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authorLinus Torvalds <torvalds@linux-foundation.org>2026-10-02 12:17:24 -0700
committerLinus Torvalds <torvalds@linux-foundation.org>2026-10-02 12:17:24 -0700
commit3f1fe48a36b0b6722dc3fd421d93512bac138e9a (patch)
treeb767d7f6e26bc64334d3f14f8422d187239dc45d /drivers/nvmem
downloadlinux-stable-3f1fe48a36b0b6722dc3fd421d93512bac138e9a.tar.gz
linux-stable-3f1fe48a36b0b6722dc3fd421d93512bac138e9a.zip
Merge tag 'io_uring-7.3-20261002' of git://git.kernel.org/pub/scm/linux/kernel/git/axboe/linuxgrafted
Pull io_uring fixes from Jens Axboe: - Fix a task_work add use-after-free with SQPOLL. The sqpoll thread could pop and complete the last request while io_req_normal_work_add() was still looking at them after the mpscq push. Use the same approach as DEFER_TASKRUN to protect from that, holding an RCU read lock across the add, and have exit wait for an RCU grace period for SQPOLL rings as well. - CQE32 ring fixes: correct the free entry check for 32b CQEs, zero the big_cqe for aux CQEs, and only post the dummy skip CQE on CQE_MIXED rings - Mark the source filter table as COW when cloning bpf filters, so registering another filter on the source doesn't modify the shared table in place - Initialize the task context before running the BPF loop - Requeue zcrx multishot receives stopped by a local resource - End a TX_TIMESTAMP multishot cmd when the CQ is full (lollipopkit) * tag 'io_uring-7.3-20261002' of git://git.kernel.org/pub/scm/linux/kernel/git/axboe/linux: io_uring: fix task_work add use-after-free with SQPOLL io_uring/cmd_net: end TX_TIMESTAMP multishot when the CQ is full io_uring/zcrx: requeue multishot receives stopped by a local resource io_uring: initialize task context before running the BPF loop io_uring: zero big_cqe for aux CQEs on CQE32 rings io_uring: fix free entry check for 32b CQEs on CQE32 rings io_uring: only post the dummy skip CQE on CQE_MIXED rings io_uring/bpf_filter: mark source as COW when cloning filters
Diffstat (limited to 'drivers/nvmem')
-rw-r--r--drivers/nvmem/Kconfig586
-rw-r--r--drivers/nvmem/Makefile104
-rw-r--r--drivers/nvmem/airoha-smc-efuses.c125
-rw-r--r--drivers/nvmem/an8855-efuse.c67
-rw-r--r--drivers/nvmem/apple-efuses.c81
-rw-r--r--drivers/nvmem/apple-spmi-nvmem.c78
-rw-r--r--drivers/nvmem/at24.c871
-rw-r--r--drivers/nvmem/at25.c585
-rw-r--r--drivers/nvmem/bcm-ocotp.c313
-rw-r--r--drivers/nvmem/brcm_nvram.c267
-rw-r--r--drivers/nvmem/core.c2179
-rw-r--r--drivers/nvmem/ee1004.c351
-rw-r--r--drivers/nvmem/eeprom_93xx46.c560
-rw-r--r--drivers/nvmem/imx-iim.c143
-rw-r--r--drivers/nvmem/imx-ocotp-ele.c249
-rw-r--r--drivers/nvmem/imx-ocotp-scu.c275
-rw-r--r--drivers/nvmem/imx-ocotp.c645
-rw-r--r--drivers/nvmem/internals.h65
-rw-r--r--drivers/nvmem/jz4780-efuse.c237
-rw-r--r--drivers/nvmem/lan9662-otpc.c228
-rw-r--r--drivers/nvmem/layerscape-sfp.c108
-rw-r--r--drivers/nvmem/layouts.c205
-rw-r--r--drivers/nvmem/layouts/Kconfig42
-rw-r--r--drivers/nvmem/layouts/Makefile9
-rw-r--r--drivers/nvmem/layouts/fixed-layout.c58
-rw-r--r--drivers/nvmem/layouts/onie-tlv.c261
-rw-r--r--drivers/nvmem/layouts/sl28vpd.c169
-rw-r--r--drivers/nvmem/layouts/u-boot-env.c211
-rw-r--r--drivers/nvmem/layouts/u-boot-env.h15
-rw-r--r--drivers/nvmem/lpc18xx_eeprom.c277
-rw-r--r--drivers/nvmem/lpc18xx_otp.c105
-rw-r--r--drivers/nvmem/m24lr.c606
-rw-r--r--drivers/nvmem/max77759-nvmem.c144
-rw-r--r--drivers/nvmem/meson-efuse.c107
-rw-r--r--drivers/nvmem/meson-mx-efuse.c243
-rw-r--r--drivers/nvmem/microchip-otpc.c289
-rw-r--r--drivers/nvmem/mtk-efuse.c159
-rw-r--r--drivers/nvmem/mxs-ocotp.c195
-rw-r--r--drivers/nvmem/nintendo-otp.c120
-rw-r--r--drivers/nvmem/qcom-spmi-sdam.c183
-rw-r--r--drivers/nvmem/qfprom.c477
-rw-r--r--drivers/nvmem/qnap-mcu-eeprom.c111
-rw-r--r--drivers/nvmem/qoriq-efuse.c77
-rw-r--r--drivers/nvmem/rave-sp-eeprom.c362
-rw-r--r--drivers/nvmem/rcar-efuse.c142
-rw-r--r--drivers/nvmem/rmem.c178
-rw-r--r--drivers/nvmem/rockchip-efuse.c302
-rw-r--r--drivers/nvmem/rockchip-otp.c472
-rw-r--r--drivers/nvmem/s32g-ocotp-nvmem.c100
-rw-r--r--drivers/nvmem/sc27xx-efuse.c279
-rw-r--r--drivers/nvmem/sec-qfprom.c96
-rw-r--r--drivers/nvmem/snvs_lpgpr.c157
-rw-r--r--drivers/nvmem/sprd-efuse.c443
-rw-r--r--drivers/nvmem/stm32-bsec-optee-ta.c298
-rw-r--r--drivers/nvmem/stm32-bsec-optee-ta.h80
-rw-r--r--drivers/nvmem/stm32-romem.c312
-rw-r--r--drivers/nvmem/sunplus-ocotp.c228
-rw-r--r--drivers/nvmem/sunxi_sid.c232
-rw-r--r--drivers/nvmem/u-boot-env.c99
-rw-r--r--drivers/nvmem/uniphier-efuse.c77
-rw-r--r--drivers/nvmem/vf610-ocotp.c254
-rw-r--r--drivers/nvmem/zynqmp_nvmem.c236
62 files changed, 16527 insertions, 0 deletions
diff --git a/drivers/nvmem/Kconfig b/drivers/nvmem/Kconfig
new file mode 100644
index 000000000..c36c2a4c2
--- /dev/null
+++ b/drivers/nvmem/Kconfig
@@ -0,0 +1,586 @@
+# SPDX-License-Identifier: GPL-2.0-only
+menuconfig NVMEM
+ bool "NVMEM Support"
+ imply NVMEM_LAYOUTS
+ help
+ Support for NVMEM(Non Volatile Memory) devices like EEPROM, EFUSES...
+
+ This framework is designed to provide a generic interface to NVMEM
+ from both the Linux Kernel and the userspace.
+
+ If unsure, say no.
+
+if NVMEM
+
+config NVMEM_SYSFS
+ bool "/sys/bus/nvmem/devices/*/nvmem (sysfs interface)"
+ depends on SYSFS
+ default y
+ help
+ Say Y here to add a sysfs interface for NVMEM.
+
+ This interface is mostly used by userspace applications to
+ read/write directly into nvmem.
+
+# Layouts
+
+source "drivers/nvmem/layouts/Kconfig"
+
+# Devices
+
+if NVMEM_SYSFS
+
+config EEPROM_AT24
+ tristate "I2C EEPROMs / RAMs / ROMs from most vendors"
+ depends on I2C && SYSFS
+ select REGMAP
+ select REGMAP_I2C
+ help
+ Enable this driver to get read/write support to most I2C EEPROMs
+ and compatible devices like FRAMs, SRAMs, ROMs etc. After you
+ configure the driver to know about each chip on your target
+ board. Use these generic chip names, instead of vendor-specific
+ ones like at24c64, 24lc02 or fm24c04:
+
+ 24c00, 24c01, 24c02, spd (readonly 24c02), 24c04, 24c08,
+ 24c16, 24c32, 24c64, 24c128, 24c256, 24c512, 24c1024, 24c2048
+
+ Unless you like data loss puzzles, always be sure that any chip
+ you configure as a 24c32 (32 kbit) or larger is NOT really a
+ 24c16 (16 kbit) or smaller, and vice versa. Marking the chip
+ as read-only won't help recover from this. Also, if your chip
+ has any software write-protect mechanism you may want to review the
+ code to make sure this driver won't turn it on by accident.
+
+ If you use this with an SMBus adapter instead of an I2C adapter,
+ full functionality is not available. Only smaller devices are
+ supported (24c16 and below, max 4 kByte).
+
+ This driver can also be built as a module. If so, the module
+ will be called at24.
+
+config EEPROM_AT25
+ tristate "SPI EEPROMs (FRAMs) from most vendors"
+ depends on SPI && SYSFS
+ select SPI_MEM
+ help
+ Enable this driver to get read/write support to most SPI EEPROMs
+ and Cypress FRAMs,
+ after you configure the board init code to know about each eeprom
+ on your target board.
+
+ This driver can also be built as a module. If so, the module
+ will be called at25.
+
+config EEPROM_93XX46
+ tristate "Microwire EEPROM 93XX46 support"
+ depends on SPI && SYSFS
+ select REGMAP
+ help
+ Driver for the microwire EEPROM chipsets 93xx46x. The driver
+ supports both read and write commands and also the command to
+ erase the whole EEPROM.
+
+ This driver can also be built as a module. If so, the module
+ will be called eeprom_93xx46.
+
+ If unsure, say N.
+
+config EEPROM_EE1004
+ tristate "SPD EEPROMs on DDR4 memory modules"
+ depends on I2C && SYSFS
+ help
+ Enable this driver to get read support to SPD EEPROMs following
+ the JEDEC EE1004 standard. These are typically found on DDR4
+ SDRAM memory modules.
+
+ This driver can also be built as a module. If so, the module
+ will be called ee1004.
+
+config EEPROM_M24LR
+ tristate "STMicroelectronics M24LR RFID/NFC EEPROM support"
+ depends on I2C && SYSFS
+ select REGMAP_I2C
+ help
+ This enables support for STMicroelectronics M24LR RFID/NFC EEPROM
+ chips. These dual-interface devices expose two I2C addresses:
+ one for EEPROM memory access and another for control and system
+ configuration (e.g. UID, password handling).
+
+ This driver provides a sysfs interface for control functions and
+ integrates with the nvmem subsystem for EEPROM access.
+
+ To compile this driver as a module, choose M here: the
+ module will be called m24lr.
+
+endif # NVMEM_SYSFS
+
+config NVMEM_AIROHA_SMC_EFUSES
+ tristate "Airoha SMC eFuse support"
+ depends on ARM64
+ depends on ARCH_AIROHA || COMPILE_TEST
+ depends on HAVE_ARM_SMCCC
+ default ARCH_AIROHA
+ help
+ Say y here to enable support for reading eFuses on Airoha AN7581
+ SoCs. These are e.g. used to store factory programmed
+ calibration data required for the PCIe or the USB-C PHY or Thermal.
+
+ This driver can also be built as a module. If so, the module will
+ be called nvmem-airoha-smc-efuses.
+
+config NVMEM_AN8855_EFUSE
+ tristate "Airoha AN8855 eFuse support"
+ depends on COMPILE_TEST
+ help
+ Say y here to enable support for reading eFuses on Airoha AN8855
+ Switch. These are e.g. used to store factory programmed
+ calibration data required for the PHY.
+
+ This driver can also be built as a module. If so, the module will
+ be called nvmem-an8855-efuse.
+
+config NVMEM_APPLE_EFUSES
+ tristate "Apple eFuse support"
+ depends on ARCH_APPLE || COMPILE_TEST
+ help
+ Say y here to enable support for reading eFuses on Apple SoCs
+ such as the M1. These are e.g. used to store factory programmed
+ calibration data required for the PCIe or the USB-C PHY.
+
+ This driver can also be built as a module. If so, the module will
+ be called nvmem-apple-efuses.
+
+config NVMEM_APPLE_SPMI
+ tristate "Apple SPMI NVMEM"
+ depends on ARCH_APPLE || COMPILE_TEST
+ depends on SPMI
+ select REGMAP_SPMI
+ help
+ Say y here to build a driver to expose NVMEM cells for a set of power
+ and RTC-related settings on a SPMI-attached PMIC present on Apple
+ devices, such as Apple Silicon Macs.
+
+ This driver can also be built as a module. If so, the module
+ will be called apple-nvmem-spmi.
+
+config NVMEM_BCM_OCOTP
+ tristate "Broadcom On-Chip OTP Controller support"
+ depends on ARCH_BCM_IPROC || COMPILE_TEST
+ depends on HAS_IOMEM
+ default ARCH_BCM_IPROC
+ help
+ Say y here to enable read/write access to the Broadcom OTP
+ controller.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-bcm-ocotp.
+
+config NVMEM_BRCM_NVRAM
+ tristate "Broadcom's NVRAM support"
+ depends on ARCH_BCM_5301X || COMPILE_TEST
+ depends on HAS_IOMEM
+ select GENERIC_NET_UTILS
+ help
+ This driver provides support for Broadcom's NVRAM that can be accessed
+ using I/O mapping.
+
+config NVMEM_IMX_IIM
+ tristate "i.MX IC Identification Module support"
+ depends on ARCH_MXC || COMPILE_TEST
+ help
+ This is a driver for the IC Identification Module (IIM) available on
+ i.MX SoCs, providing access to 4 Kbits of programmable
+ eFuses.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-imx-iim.
+
+config NVMEM_IMX_OCOTP
+ tristate "i.MX 6/7/8 On-Chip OTP Controller support"
+ depends on ARCH_MXC || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a driver for the On-Chip OTP Controller (OCOTP) available on
+ i.MX6 SoCs, providing access to 4 Kbits of one-time programmable
+ eFuses.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-imx-ocotp.
+
+config NVMEM_IMX_OCOTP_ELE
+ tristate "i.MX On-Chip OTP Controller support"
+ depends on ARCH_MXC || COMPILE_TEST
+ depends on HAS_IOMEM
+ depends on OF
+ help
+ This is a driver for the On-Chip OTP Controller (OCOTP)
+ available on i.MX SoCs which has ELE.
+
+config NVMEM_IMX_OCOTP_SCU
+ tristate "i.MX8 SCU On-Chip OTP Controller support"
+ depends on IMX_SCU
+ depends on HAVE_ARM_SMCCC
+ help
+ This is a driver for the SCU On-Chip OTP Controller (OCOTP)
+ available on i.MX8 SoCs.
+
+config NVMEM_JZ4780_EFUSE
+ tristate "JZ4780 EFUSE Memory Support"
+ depends on MACH_INGENIC || COMPILE_TEST
+ depends on HAS_IOMEM
+ depends on OF
+ select REGMAP_MMIO
+ help
+ Say Y here to include support for JZ4780 efuse memory found on
+ all JZ4780 SoC based devices.
+ To compile this driver as a module, choose M here: the module
+ will be called nvmem_jz4780_efuse.
+
+config NVMEM_LAN9662_OTPC
+ tristate "Microchip LAN9662 OTP controller support"
+ depends on SOC_LAN966 || ARCH_LAN969X || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This driver enables the OTP controller available on Microchip LAN9662
+ SoCs. It controls the access to the OTP memory connected to it.
+
+config NVMEM_LAYERSCAPE_SFP
+ tristate "Layerscape SFP (Security Fuse Processor) support"
+ depends on ARCH_LAYERSCAPE || COMPILE_TEST
+ depends on HAS_IOMEM
+ select REGMAP_MMIO
+ help
+ This driver provides support to read the eFuses on Freescale
+ Layerscape SoC's. For example, the vendor provides a per part
+ unique ID there.
+
+ This driver can also be built as a module. If so, the module
+ will be called layerscape-sfp.
+
+config NVMEM_LPC18XX_EEPROM
+ tristate "NXP LPC18XX EEPROM Memory Support"
+ depends on ARCH_LPC18XX || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ Say Y here to include support for NXP LPC18xx EEPROM memory found in
+ NXP LPC185x/3x and LPC435x/3x/2x/1x devices.
+ To compile this driver as a module, choose M here: the module
+ will be called nvmem_lpc18xx_eeprom.
+
+config NVMEM_LPC18XX_OTP
+ tristate "NXP LPC18XX OTP Memory Support"
+ depends on ARCH_LPC18XX || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ Say Y here to include support for NXP LPC18xx OTP memory found on
+ all LPC18xx and LPC43xx devices.
+ To compile this driver as a module, choose M here: the module
+ will be called nvmem_lpc18xx_otp.
+
+config NVMEM_MAX77759
+ tristate "Maxim Integrated MAX77759 NVMEM Support"
+ depends on MFD_MAX77759
+ default MFD_MAX77759
+ help
+ Say Y here to include support for the user-accessible storage found
+ in Maxim Integrated MAX77759 PMICs. This IC provides space for 30
+ bytes of storage.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-max77759.
+
+config NVMEM_MESON_EFUSE
+ tristate "Amlogic Meson GX eFuse Support"
+ depends on (ARCH_MESON || COMPILE_TEST) && MESON_SM
+ help
+ This is a driver to retrieve specific values from the eFuse found on
+ the Amlogic Meson GX SoCs.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_meson_efuse.
+
+config NVMEM_MESON_MX_EFUSE
+ tristate "Amlogic Meson6/Meson8/Meson8b eFuse Support"
+ depends on ARCH_MESON || COMPILE_TEST
+ help
+ This is a driver to retrieve specific values from the eFuse found on
+ the Amlogic Meson6, Meson8 and Meson8b SoCs.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_meson_mx_efuse.
+
+config NVMEM_MICROCHIP_OTPC
+ tristate "Microchip OTPC support"
+ depends on ARCH_AT91 || COMPILE_TEST
+ help
+ This driver enable the OTP controller available on Microchip SAMA7G5
+ SoCs. It controls the access to the OTP memory connected to it.
+
+config NVMEM_MTK_EFUSE
+ tristate "Mediatek SoCs EFUSE support"
+ depends on ARCH_MEDIATEK || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a driver to access hardware related data like sensor
+ calibration, HDMI impedance etc.
+
+ This driver can also be built as a module. If so, the module
+ will be called efuse-mtk.
+
+config NVMEM_MXS_OCOTP
+ tristate "Freescale MXS On-Chip OTP Memory Support"
+ depends on ARCH_MXS || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ If you say Y here, you will get readonly access to the
+ One Time Programmable memory pages that are stored
+ on the Freescale i.MX23/i.MX28 processor.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-mxs-ocotp.
+
+config NVMEM_NINTENDO_OTP
+ tristate "Nintendo Wii and Wii U OTP Support"
+ depends on WII || COMPILE_TEST
+ help
+ This is a driver exposing the OTP of a Nintendo Wii or Wii U console.
+
+ This memory contains common and per-console keys, signatures and
+ related data required to access peripherals.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-nintendo-otp.
+
+config NVMEM_S32G_OCOTP
+ tristate "S32G SoC OCOTP support"
+ depends on ARCH_S32
+ help
+ This is a driver for the 'OCOTP' peripheral available on S32G
+ platforms.
+
+ If you say Y here, you will get support for the One Time
+ Programmable memory pages.
+
+config NVMEM_QCOM_QFPROM
+ tristate "Qualcomm QFPROM Support"
+ depends on ARCH_QCOM || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ Say y here to enable QFPROM support. The QFPROM provides access
+ functions for QFPROM data to rest of the drivers via nvmem interface.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_qfprom.
+
+config NVMEM_QCOM_SEC_QFPROM
+ tristate "Qualcomm SECURE QFPROM Support"
+ depends on ARCH_QCOM || COMPILE_TEST
+ depends on HAS_IOMEM
+ depends on OF
+ select QCOM_SCM
+ help
+ Say y here to enable secure QFPROM support. The secure QFPROM provides access
+ functions for QFPROM data to rest of the drivers via nvmem interface.
+
+ This driver can also be built as a module. If so, the module will be called
+ nvmem_sec_qfprom.
+
+config NVMEM_QNAP_MCU_EEPROM
+ tristate "QNAP MCU EEPROM Support"
+ depends on MFD_QNAP_MCU
+ help
+ Say y here to enable support for accessing the EEPROM attached to
+ QNAP MCU devices. This EEPROM contains additional runtime device
+ information, like MAC addresses for ethernet devices that do not
+ contain their own mac storage.
+
+config NVMEM_RAVE_SP_EEPROM
+ tristate "Rave SP EEPROM Support"
+ depends on RAVE_SP_CORE
+ help
+ Say y here to enable Rave SP EEPROM support.
+
+config NVMEM_RCAR_EFUSE
+ tristate "Renesas R-Car Gen4 E-FUSE support"
+ depends on (ARCH_RENESAS && ARM64) || COMPILE_TEST
+ help
+ Enable support for reading the fuses in the E-FUSE or OTP
+ non-volatile memory block on Renesas R-Car Gen4 SoCs.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-rcar-efuse.
+
+config NVMEM_RMEM
+ tristate "Reserved Memory Based Driver Support"
+ depends on HAS_IOMEM
+ select CRC32
+ help
+ This driver maps reserved memory into an nvmem device. It might be
+ useful to expose information left by firmware in memory.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-rmem.
+
+config NVMEM_ROCKCHIP_EFUSE
+ tristate "Rockchip eFuse Support"
+ depends on ARCH_ROCKCHIP || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a simple driver to dump specified values of Rockchip SoC
+ from eFuse, such as cpu-leakage.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_rockchip_efuse.
+
+config NVMEM_ROCKCHIP_OTP
+ tristate "Rockchip OTP controller support"
+ depends on ARCH_ROCKCHIP || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a simple driver to dump specified values of Rockchip SoC
+ from OTP, such as cpu-leakage.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_rockchip_otp.
+
+config NVMEM_SC27XX_EFUSE
+ tristate "Spreadtrum SC27XX eFuse Support"
+ depends on MFD_SC27XX_PMIC || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a simple driver to dump specified values of Spreadtrum
+ SC27XX PMICs from eFuse.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-sc27xx-efuse.
+
+config NVMEM_SNVS_LPGPR
+ tristate "Support for Low Power General Purpose Register"
+ depends on ARCH_MXC || COMPILE_TEST
+ help
+ This is a driver for Low Power General Purpose Register (LPGPR) available on
+ i.MX6 and i.MX7 SoCs in Secure Non-Volatile Storage (SNVS) of this chip.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-snvs-lpgpr.
+
+config NVMEM_SPMI_SDAM
+ tristate "SPMI SDAM Support"
+ depends on SPMI
+ help
+ This driver supports the Shared Direct Access Memory Module on
+ Qualcomm Technologies, Inc. PMICs. It provides the clients
+ an interface to read/write to the SDAM module's shared memory.
+
+config NVMEM_SPRD_EFUSE
+ tristate "Spreadtrum SoC eFuse Support"
+ depends on ARCH_SPRD || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a simple driver to dump specified values of Spreadtrum
+ SoCs from eFuse.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-sprd-efuse.
+
+config NVMEM_STM32_BSEC_OPTEE_TA
+ def_bool NVMEM_STM32_ROMEM && OPTEE
+ help
+ Say y here to enable the accesses to STM32MP SoC OTPs by the OP-TEE
+ trusted application STM32MP BSEC.
+
+ This library is a used by stm32-romem driver or included in the module
+ called nvmem-stm32-romem.
+
+config NVMEM_STM32_ROMEM
+ tristate "STMicroelectronics STM32 factory-programmed memory support"
+ depends on ARCH_STM32 || COMPILE_TEST
+ depends on OPTEE || !OPTEE
+ help
+ Say y here to enable read-only access for STMicroelectronics STM32
+ factory-programmed memory area.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-stm32-romem.
+
+config NVMEM_SUNPLUS_OCOTP
+ tristate "Sunplus SoC OTP support"
+ depends on SOC_SP7021 || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a driver for the On-chip OTP controller (OCOTP) available
+ on Sunplus SoCs. It provides access to 128 bytes of one-time
+ programmable eFuse.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-sunplus-ocotp.
+
+config NVMEM_SUNXI_SID
+ tristate "Allwinner SoCs SID support"
+ depends on ARCH_SUNXI
+ help
+ This is a driver for the 'security ID' available on various Allwinner
+ devices.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_sunxi_sid.
+
+config NVMEM_U_BOOT_ENV
+ tristate "U-Boot environment variables support"
+ depends on OF && MTD
+ select NVMEM_LAYOUT_U_BOOT_ENV
+ help
+ U-Boot stores its setup as environment variables. This driver adds
+ support for verifying & exporting such data. It also exposes variables
+ as NVMEM cells so they can be referenced by other drivers.
+
+ Currently this drivers works only with env variables on top of MTD.
+
+ If compiled as module it will be called nvmem_u-boot-env.
+
+config NVMEM_UNIPHIER_EFUSE
+ tristate "UniPhier SoCs eFuse support"
+ depends on ARCH_UNIPHIER || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a simple driver to dump specified values of UniPhier SoC
+ from eFuse.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem-uniphier-efuse.
+
+config NVMEM_VF610_OCOTP
+ tristate "VF610 SoC OCOTP support"
+ depends on SOC_VF610 || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This is a driver for the 'OCOTP' peripheral available on Vybrid
+ devices like VF5xx and VF6xx.
+
+ This driver can also be build as a module. If so, the module will
+ be called nvmem-vf610-ocotp.
+
+config NVMEM_ZYNQMP
+ tristate "Xilinx ZYNQMP SoC nvmem firmware support"
+ depends on ARCH_ZYNQMP
+ help
+ This is a driver to access hardware related data like
+ soc revision, IDCODE... etc by using the firmware
+ interface.
+
+ If sure, say yes. If unsure, say no.
+
+config NVMEM_QORIQ_EFUSE
+ tristate "NXP QorIQ eFuse support"
+ depends on PPC_85xx || COMPILE_TEST
+ depends on HAS_IOMEM
+ help
+ This driver provides read support for the eFuses (SFP) on NXP QorIQ
+ series SoC's. This includes secure boot settings, the globally unique
+ NXP ID 'FUIDR' and the OEM unique ID 'OUIDR'.
+
+ This driver can also be built as a module. If so, the module
+ will be called nvmem_qoriq_efuse.
+
+endif # NVMEM
diff --git a/drivers/nvmem/Makefile b/drivers/nvmem/Makefile
new file mode 100644
index 000000000..2bbfb9ff1
--- /dev/null
+++ b/drivers/nvmem/Makefile
@@ -0,0 +1,104 @@
+# SPDX-License-Identifier: GPL-2.0
+#
+# Makefile for nvmem drivers.
+#
+
+obj-$(CONFIG_NVMEM) += nvmem_core.o
+nvmem_core-y := core.o
+obj-$(CONFIG_NVMEM_LAYOUTS) += nvmem_layouts.o
+nvmem_layouts-y := layouts.o
+obj-y += layouts/
+
+# Devices
+obj-$(CONFIG_EEPROM_AT24) += at24.o
+obj-$(CONFIG_EEPROM_AT25) += at25.o
+obj-$(CONFIG_EEPROM_93XX46) += eeprom_93xx46.o
+obj-$(CONFIG_EEPROM_EE1004) += ee1004.o
+obj-$(CONFIG_EEPROM_M24LR) += m24lr.o
+obj-$(CONFIG_NVMEM_AIROHA_SMC_EFUSES) += nvmem-airoha-smc-efuses.o
+nvmem-airoha-smc-efuses-y := airoha-smc-efuses.o
+obj-$(CONFIG_NVMEM_AN8855_EFUSE) += nvmem-an8855-efuse.o
+nvmem-an8855-efuse-y := an8855-efuse.o
+obj-$(CONFIG_NVMEM_APPLE_EFUSES) += nvmem-apple-efuses.o
+nvmem-apple-efuses-y := apple-efuses.o
+obj-$(CONFIG_NVMEM_APPLE_SPMI) += apple_nvmem_spmi.o
+apple_nvmem_spmi-y := apple-spmi-nvmem.o
+obj-$(CONFIG_NVMEM_BCM_OCOTP) += nvmem-bcm-ocotp.o
+nvmem-bcm-ocotp-y := bcm-ocotp.o
+obj-$(CONFIG_NVMEM_BRCM_NVRAM) += nvmem_brcm_nvram.o
+nvmem_brcm_nvram-y := brcm_nvram.o
+obj-$(CONFIG_NVMEM_IMX_IIM) += nvmem-imx-iim.o
+nvmem-imx-iim-y := imx-iim.o
+obj-$(CONFIG_NVMEM_IMX_OCOTP) += nvmem-imx-ocotp.o
+nvmem-imx-ocotp-y := imx-ocotp.o
+obj-$(CONFIG_NVMEM_IMX_OCOTP_ELE) += nvmem-imx-ocotp-ele.o
+nvmem-imx-ocotp-ele-y := imx-ocotp-ele.o
+obj-$(CONFIG_NVMEM_IMX_OCOTP_SCU) += nvmem-imx-ocotp-scu.o
+nvmem-imx-ocotp-scu-y := imx-ocotp-scu.o
+obj-$(CONFIG_NVMEM_JZ4780_EFUSE) += nvmem_jz4780_efuse.o
+nvmem_jz4780_efuse-y := jz4780-efuse.o
+obj-$(CONFIG_NVMEM_LAN9662_OTPC) += nvmem-lan9662-otpc.o
+nvmem-lan9662-otpc-y := lan9662-otpc.o
+obj-$(CONFIG_NVMEM_LAYERSCAPE_SFP) += nvmem-layerscape-sfp.o
+nvmem-layerscape-sfp-y := layerscape-sfp.o
+obj-$(CONFIG_NVMEM_LPC18XX_EEPROM) += nvmem_lpc18xx_eeprom.o
+nvmem_lpc18xx_eeprom-y := lpc18xx_eeprom.o
+obj-$(CONFIG_NVMEM_LPC18XX_OTP) += nvmem_lpc18xx_otp.o
+nvmem_lpc18xx_otp-y := lpc18xx_otp.o
+obj-$(CONFIG_NVMEM_MAX77759) += nvmem-max77759.o
+nvmem-max77759-y := max77759-nvmem.o
+obj-$(CONFIG_NVMEM_MESON_EFUSE) += nvmem_meson_efuse.o
+nvmem_meson_efuse-y := meson-efuse.o
+obj-$(CONFIG_NVMEM_MESON_MX_EFUSE) += nvmem_meson_mx_efuse.o
+nvmem_meson_mx_efuse-y := meson-mx-efuse.o
+obj-$(CONFIG_NVMEM_MICROCHIP_OTPC) += nvmem-microchip-otpc.o
+nvmem-microchip-otpc-y := microchip-otpc.o
+obj-$(CONFIG_NVMEM_MTK_EFUSE) += nvmem_mtk-efuse.o
+nvmem_mtk-efuse-y := mtk-efuse.o
+obj-$(CONFIG_NVMEM_MXS_OCOTP) += nvmem-mxs-ocotp.o
+nvmem-mxs-ocotp-y := mxs-ocotp.o
+obj-$(CONFIG_NVMEM_NINTENDO_OTP) += nvmem-nintendo-otp.o
+nvmem-nintendo-otp-y := nintendo-otp.o
+obj-$(CONFIG_NVMEM_QCOM_QFPROM) += nvmem_qfprom.o
+nvmem_qfprom-y := qfprom.o
+obj-$(CONFIG_NVMEM_QCOM_SEC_QFPROM) += nvmem_sec_qfprom.o
+nvmem_sec_qfprom-y := sec-qfprom.o
+obj-$(CONFIG_NVMEM_QNAP_MCU_EEPROM) += nvmem-qnap-mcu-eeprom.o
+nvmem-qnap-mcu-eeprom-y := qnap-mcu-eeprom.o
+obj-$(CONFIG_NVMEM_RAVE_SP_EEPROM) += nvmem-rave-sp-eeprom.o
+nvmem-rave-sp-eeprom-y := rave-sp-eeprom.o
+obj-$(CONFIG_NVMEM_RCAR_EFUSE) += nvmem-rcar-efuse.o
+nvmem-rcar-efuse-y := rcar-efuse.o
+obj-$(CONFIG_NVMEM_RMEM) += nvmem-rmem.o
+nvmem-rmem-y := rmem.o
+obj-$(CONFIG_NVMEM_ROCKCHIP_EFUSE) += nvmem_rockchip_efuse.o
+nvmem_rockchip_efuse-y := rockchip-efuse.o
+obj-$(CONFIG_NVMEM_ROCKCHIP_OTP) += nvmem-rockchip-otp.o
+nvmem-rockchip-otp-y := rockchip-otp.o
+obj-$(CONFIG_NVMEM_SC27XX_EFUSE) += nvmem-sc27xx-efuse.o
+nvmem-sc27xx-efuse-y := sc27xx-efuse.o
+obj-$(CONFIG_NVMEM_SNVS_LPGPR) += nvmem_snvs_lpgpr.o
+nvmem_snvs_lpgpr-y := snvs_lpgpr.o
+obj-$(CONFIG_NVMEM_SPMI_SDAM) += nvmem_qcom-spmi-sdam.o
+nvmem_qcom-spmi-sdam-y += qcom-spmi-sdam.o
+obj-$(CONFIG_NVMEM_SPRD_EFUSE) += nvmem_sprd_efuse.o
+nvmem_sprd_efuse-y := sprd-efuse.o
+obj-$(CONFIG_NVMEM_STM32_ROMEM) += nvmem_stm32_romem.o
+nvmem_stm32_romem-y := stm32-romem.o
+nvmem_stm32_romem-$(CONFIG_NVMEM_STM32_BSEC_OPTEE_TA) += stm32-bsec-optee-ta.o
+obj-$(CONFIG_NVMEM_SUNPLUS_OCOTP) += nvmem_sunplus_ocotp.o
+nvmem_sunplus_ocotp-y := sunplus-ocotp.o
+obj-$(CONFIG_NVMEM_SUNXI_SID) += nvmem_sunxi_sid.o
+nvmem_sunxi_sid-y := sunxi_sid.o
+obj-$(CONFIG_NVMEM_S32G_OCOTP) += nvmem-s32g-ocotp-nvmem.o
+nvmem-s32g-ocotp-nvmem-y := s32g-ocotp-nvmem.o
+obj-$(CONFIG_NVMEM_U_BOOT_ENV) += nvmem_u-boot-env.o
+nvmem_u-boot-env-y := u-boot-env.o
+obj-$(CONFIG_NVMEM_UNIPHIER_EFUSE) += nvmem-uniphier-efuse.o
+nvmem-uniphier-efuse-y := uniphier-efuse.o
+obj-$(CONFIG_NVMEM_VF610_OCOTP) += nvmem-vf610-ocotp.o
+nvmem-vf610-ocotp-y := vf610-ocotp.o
+obj-$(CONFIG_NVMEM_ZYNQMP) += nvmem_zynqmp_nvmem.o
+nvmem_zynqmp_nvmem-y := zynqmp_nvmem.o
+obj-$(CONFIG_NVMEM_QORIQ_EFUSE) += nvmem-qoriq-efuse.o
+nvmem-qoriq-efuse-y := qoriq-efuse.o
diff --git a/drivers/nvmem/airoha-smc-efuses.c b/drivers/nvmem/airoha-smc-efuses.c
new file mode 100644
index 000000000..e56a99f4a
--- /dev/null
+++ b/drivers/nvmem/airoha-smc-efuses.c
@@ -0,0 +1,125 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * Author: Christian Marangi <ansuelsmth@gmail.com>
+ */
+
+#include <linux/arm-smccc.h>
+#include <linux/mod_devicetable.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/of.h>
+#include <linux/regmap.h>
+
+#define AIROHA_SMC_EFUSE_FID 0x82000001
+#define AIROHA_SMC_EFUSE_SUB_ID_READ 0x44414552
+
+#define AIROHA_EFUSE_CELLS 64
+
+struct airoha_efuse_bank_priv {
+ u32 bank_index;
+};
+
+static int airoha_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct regmap *regmap = context;
+
+ return regmap_bulk_read(regmap, offset,
+ val, bytes / sizeof(u32));
+}
+
+static int airoha_efuse_reg_read(void *context, unsigned int offset,
+ unsigned int *val)
+{
+ struct airoha_efuse_bank_priv *priv = context;
+ struct arm_smccc_res res;
+
+ arm_smccc_1_1_invoke(AIROHA_SMC_EFUSE_FID,
+ AIROHA_SMC_EFUSE_SUB_ID_READ,
+ priv->bank_index, offset, 0, 0, 0, 0, &res);
+
+ /* check if SMC reported an error */
+ if (res.a0)
+ return -EIO;
+
+ *val = res.a1;
+ return 0;
+}
+
+static int airoha_efuse_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ int ret;
+
+ for_each_child_of_node_scoped(dev->of_node, child) {
+ struct nvmem_config nvmem_config = {
+ .size = AIROHA_EFUSE_CELLS * sizeof(u32),
+ .stride = sizeof(u32),
+ .word_size = sizeof(u32),
+ .reg_read = airoha_efuse_read,
+ };
+ struct regmap_config regmap_config = {
+ .reg_read = airoha_efuse_reg_read,
+ .reg_bits = 32,
+ .val_bits = 32,
+ .reg_stride = 4,
+ };
+ struct airoha_efuse_bank_priv *priv;
+ struct nvmem_device *nvmem;
+ struct regmap *regmap;
+ const char *name;
+ u32 bank;
+
+ ret = of_property_read_u32(child, "reg", &bank);
+ if (ret)
+ return ret;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ name = devm_kasprintf(dev, GFP_KERNEL, "airoha-efuse-%u",
+ bank);
+ if (!name)
+ return -ENOMEM;
+
+ priv->bank_index = bank;
+
+ regmap_config.name = name;
+ regmap = devm_regmap_init(dev, NULL, priv,
+ &regmap_config);
+ if (IS_ERR(regmap))
+ return PTR_ERR(regmap);
+
+ nvmem_config.name = name;
+ nvmem_config.priv = regmap;
+ nvmem_config.dev = dev;
+ nvmem_config.id = bank;
+ nvmem_config.of_node = child;
+ nvmem = devm_nvmem_register(dev, &nvmem_config);
+ if (IS_ERR(nvmem))
+ return PTR_ERR(nvmem);
+ }
+
+ return 0;
+}
+
+static const struct of_device_id airoha_efuse_of_match[] = {
+ { .compatible = "airoha,an7581-efuses", },
+ { /* sentinel */ }
+};
+MODULE_DEVICE_TABLE(of, airoha_efuse_of_match);
+
+static struct platform_driver airoha_efuse_driver = {
+ .probe = airoha_efuse_probe,
+ .driver = {
+ .name = "airoha-efuse",
+ .of_match_table = airoha_efuse_of_match,
+ },
+};
+module_platform_driver(airoha_efuse_driver);
+
+MODULE_AUTHOR("Christian Marangi <ansuelsmth@gmail.com>");
+MODULE_DESCRIPTION("Driver for Airoha SMC eFUSEs");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/an8855-efuse.c b/drivers/nvmem/an8855-efuse.c
new file mode 100644
index 000000000..ed0840f79
--- /dev/null
+++ b/drivers/nvmem/an8855-efuse.c
@@ -0,0 +1,67 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * Airoha AN8855 Switch EFUSE Driver
+ */
+
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/regmap.h>
+
+#define AN8855_EFUSE_CELL 50
+
+#define AN8855_EFUSE_DATA0 0x1000a500
+#define AN8855_EFUSE_R50O GENMASK(30, 24)
+
+static int an8855_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct regmap *regmap = context;
+
+ return regmap_bulk_read(regmap, AN8855_EFUSE_DATA0 + offset,
+ val, bytes / sizeof(u32));
+}
+
+static int an8855_efuse_probe(struct platform_device *pdev)
+{
+ struct nvmem_config an8855_nvmem_config = {
+ .name = "an8855-efuse",
+ .size = AN8855_EFUSE_CELL * sizeof(u32),
+ .stride = sizeof(u32),
+ .word_size = sizeof(u32),
+ .reg_read = an8855_efuse_read,
+ };
+ struct device *dev = &pdev->dev;
+ struct nvmem_device *nvmem;
+ struct regmap *regmap;
+
+ /* Assign NVMEM priv to MFD regmap */
+ regmap = dev_get_regmap(dev->parent, NULL);
+ if (!regmap)
+ return -ENOENT;
+
+ an8855_nvmem_config.priv = regmap;
+ an8855_nvmem_config.dev = dev;
+ nvmem = devm_nvmem_register(dev, &an8855_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id an8855_efuse_of_match[] = {
+ { .compatible = "airoha,an8855-efuse", },
+ { /* sentinel */ }
+};
+MODULE_DEVICE_TABLE(of, an8855_efuse_of_match);
+
+static struct platform_driver an8855_efuse_driver = {
+ .probe = an8855_efuse_probe,
+ .driver = {
+ .name = "an8855-efuse",
+ .of_match_table = an8855_efuse_of_match,
+ },
+};
+module_platform_driver(an8855_efuse_driver);
+
+MODULE_AUTHOR("Christian Marangi <ansuelsmth@gmail.com>");
+MODULE_DESCRIPTION("Driver for AN8855 Switch EFUSE");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/apple-efuses.c b/drivers/nvmem/apple-efuses.c
new file mode 100644
index 000000000..9913e77b8
--- /dev/null
+++ b/drivers/nvmem/apple-efuses.c
@@ -0,0 +1,81 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Apple SoC eFuse driver
+ *
+ * Copyright (C) The Asahi Linux Contributors
+ */
+
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+
+struct apple_efuses_priv {
+ void __iomem *fuses;
+};
+
+static int apple_efuses_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct apple_efuses_priv *priv = context;
+ u32 *dst = val;
+
+ while (bytes >= sizeof(u32)) {
+ *dst++ = readl_relaxed(priv->fuses + offset);
+ bytes -= sizeof(u32);
+ offset += sizeof(u32);
+ }
+
+ return 0;
+}
+
+static int apple_efuses_probe(struct platform_device *pdev)
+{
+ struct apple_efuses_priv *priv;
+ struct resource *res;
+ struct nvmem_config config = {
+ .dev = &pdev->dev,
+ .add_legacy_fixed_of_cells = true,
+ .read_only = true,
+ .reg_read = apple_efuses_read,
+ .stride = sizeof(u32),
+ .word_size = sizeof(u32),
+ .name = "apple_efuses_nvmem",
+ .id = NVMEM_DEVID_AUTO,
+ .root_only = true,
+ };
+
+ priv = devm_kzalloc(config.dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->fuses = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->fuses))
+ return PTR_ERR(priv->fuses);
+
+ config.priv = priv;
+ config.size = resource_size(res);
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(config.dev, &config));
+}
+
+static const struct of_device_id apple_efuses_of_match[] = {
+ { .compatible = "apple,efuses", },
+ {}
+};
+
+MODULE_DEVICE_TABLE(of, apple_efuses_of_match);
+
+static struct platform_driver apple_efuses_driver = {
+ .driver = {
+ .name = "apple_efuses",
+ .of_match_table = apple_efuses_of_match,
+ },
+ .probe = apple_efuses_probe,
+};
+
+module_platform_driver(apple_efuses_driver);
+
+MODULE_AUTHOR("Sven Peter <sven@svenpeter.dev>");
+MODULE_DESCRIPTION("Apple SoC eFuse driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/apple-spmi-nvmem.c b/drivers/nvmem/apple-spmi-nvmem.c
new file mode 100644
index 000000000..7acb0c07d
--- /dev/null
+++ b/drivers/nvmem/apple-spmi-nvmem.c
@@ -0,0 +1,78 @@
+// SPDX-License-Identifier: GPL-2.0-only OR MIT
+/*
+ * Apple SPMI NVMEM driver
+ *
+ * Copyright The Asahi Linux Contributors
+ */
+
+#include <linux/kernel.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/spmi.h>
+#include <linux/regmap.h>
+
+static const struct regmap_config apple_spmi_regmap_config = {
+ .reg_bits = 16,
+ .val_bits = 8,
+ .max_register = 0xffff,
+};
+
+static int apple_spmi_nvmem_read(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct regmap *map = priv;
+
+ return regmap_bulk_read(map, offset, val, bytes);
+}
+
+static int apple_spmi_nvmem_write(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct regmap *map = priv;
+
+ return regmap_bulk_write(map, offset, val, bytes);
+}
+
+static int apple_spmi_nvmem_probe(struct spmi_device *sdev)
+{
+ struct regmap *regmap;
+ struct nvmem_config nvmem_cfg = {
+ .dev = &sdev->dev,
+ .name = "spmi_nvmem",
+ .id = NVMEM_DEVID_AUTO,
+ .word_size = 1,
+ .stride = 1,
+ .size = 0xffff,
+ .reg_read = apple_spmi_nvmem_read,
+ .reg_write = apple_spmi_nvmem_write,
+ };
+
+ regmap = devm_regmap_init_spmi_ext(sdev, &apple_spmi_regmap_config);
+ if (IS_ERR(regmap))
+ return PTR_ERR(regmap);
+
+ nvmem_cfg.priv = regmap;
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(&sdev->dev, &nvmem_cfg));
+}
+
+static const struct of_device_id apple_spmi_nvmem_id_table[] = {
+ { .compatible = "apple,spmi-nvmem" },
+ { },
+};
+MODULE_DEVICE_TABLE(of, apple_spmi_nvmem_id_table);
+
+static struct spmi_driver apple_spmi_nvmem_driver = {
+ .probe = apple_spmi_nvmem_probe,
+ .driver = {
+ .name = "apple-spmi-nvmem",
+ .of_match_table = apple_spmi_nvmem_id_table,
+ },
+};
+
+module_spmi_driver(apple_spmi_nvmem_driver);
+
+MODULE_LICENSE("Dual MIT/GPL");
+MODULE_AUTHOR("Hector Martin <marcan@marcan.st>");
+MODULE_DESCRIPTION("Apple SPMI NVMEM driver");
diff --git a/drivers/nvmem/at24.c b/drivers/nvmem/at24.c
new file mode 100644
index 000000000..772c4d9fa
--- /dev/null
+++ b/drivers/nvmem/at24.c
@@ -0,0 +1,871 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * at24.c - handle most I2C EEPROMs
+ *
+ * Copyright (C) 2005-2007 David Brownell
+ * Copyright (C) 2008 Wolfram Sang, Pengutronix
+ */
+
+#include <linux/acpi.h>
+#include <linux/bitops.h>
+#include <linux/capability.h>
+#include <linux/delay.h>
+#include <linux/i2c.h>
+#include <linux/init.h>
+#include <linux/jiffies.h>
+#include <linux/kernel.h>
+#include <linux/module.h>
+#include <linux/mutex.h>
+#include <linux/nvmem-provider.h>
+#include <linux/pm_runtime.h>
+#include <linux/property.h>
+#include <linux/regmap.h>
+#include <linux/regulator/consumer.h>
+#include <linux/slab.h>
+
+/* Address pointer is 16 bit. */
+#define AT24_FLAG_ADDR16 BIT(7)
+/* sysfs-entry will be read-only. */
+#define AT24_FLAG_READONLY BIT(6)
+/* sysfs-entry will be world-readable. */
+#define AT24_FLAG_IRUGO BIT(5)
+/* Take always 8 addresses (24c00). */
+#define AT24_FLAG_TAKE8ADDR BIT(4)
+/* Factory-programmed serial number. */
+#define AT24_FLAG_SERIAL BIT(3)
+/* Factory-programmed mac address. */
+#define AT24_FLAG_MAC BIT(2)
+/* Does not auto-rollover reads to the next slave address. */
+#define AT24_FLAG_NO_RDROL BIT(1)
+
+/*
+ * I2C EEPROMs from most vendors are inexpensive and mostly interchangeable.
+ * Differences between different vendor product lines (like Atmel AT24C or
+ * MicroChip 24LC, etc) won't much matter for typical read/write access.
+ * There are also I2C RAM chips, likewise interchangeable. One example
+ * would be the PCF8570, which acts like a 24c02 EEPROM (256 bytes).
+ *
+ * However, misconfiguration can lose data. "Set 16-bit memory address"
+ * to a part with 8-bit addressing will overwrite data. Writing with too
+ * big a page size also loses data. And it's not safe to assume that the
+ * conventional addresses 0x50..0x57 only hold eeproms; a PCF8563 RTC
+ * uses 0x51, for just one example.
+ *
+ * Accordingly, explicit board-specific configuration data should be used
+ * in almost all cases. (One partial exception is an SMBus used to access
+ * "SPD" data for DRAM sticks. Those only use 24c02 EEPROMs.)
+ *
+ * So this driver uses "new style" I2C driver binding, expecting to be
+ * told what devices exist. That may be in arch/X/mach-Y/board-Z.c or
+ * similar kernel-resident tables; or, configuration data coming from
+ * a bootloader.
+ *
+ * Other than binding model, current differences from "eeprom" driver are
+ * that this one handles write access and isn't restricted to 24c02 devices.
+ * It also handles larger devices (32 kbit and up) with two-byte addresses,
+ * which won't work on pure SMBus systems.
+ */
+
+struct at24_data {
+ /*
+ * Lock protects against activities from other Linux tasks,
+ * but not from changes by other I2C masters.
+ */
+ struct mutex lock;
+
+ unsigned int write_max;
+ unsigned int num_addresses;
+ unsigned int offset_adj;
+
+ u32 byte_len;
+ u16 page_size;
+ u8 flags;
+
+ struct nvmem_device *nvmem;
+ struct regulator *vcc_reg;
+ void (*read_post)(unsigned int off, char *buf, size_t count);
+
+ /*
+ * Some chips tie up multiple I2C addresses; dummy devices reserve
+ * them for us.
+ */
+ u8 bank_addr_shift;
+ struct regmap *client_regmaps[] __counted_by(num_addresses);
+};
+
+/*
+ * This parameter is to help this driver avoid blocking other drivers out
+ * of I2C for potentially troublesome amounts of time. With a 100 kHz I2C
+ * clock, one 256 byte read takes about 1/43 second which is excessive;
+ * but the 1/170 second it takes at 400 kHz may be quite reasonable; and
+ * at 1 MHz (Fm+) a 1/430 second delay could easily be invisible.
+ *
+ * This value is forced to be a power of two so that writes align on pages.
+ */
+static unsigned int at24_io_limit = 128;
+module_param_named(io_limit, at24_io_limit, uint, 0);
+MODULE_PARM_DESC(at24_io_limit, "Maximum bytes per I/O (default 128)");
+
+/*
+ * Specs often allow 5 msec for a page write, sometimes 20 msec;
+ * it's important to recover from write timeouts.
+ */
+static unsigned int at24_write_timeout = 25;
+module_param_named(write_timeout, at24_write_timeout, uint, 0);
+MODULE_PARM_DESC(at24_write_timeout, "Time (in ms) to try writes (default 25)");
+
+struct at24_chip_data {
+ u32 byte_len;
+ u8 flags;
+ u8 bank_addr_shift;
+ void (*read_post)(unsigned int off, char *buf, size_t count);
+};
+
+#define AT24_CHIP_DATA(_name, _len, _flags) \
+ static const struct at24_chip_data _name = { \
+ .byte_len = _len, .flags = _flags, \
+ }
+
+#define AT24_CHIP_DATA_CB(_name, _len, _flags, _read_post) \
+ static const struct at24_chip_data _name = { \
+ .byte_len = _len, .flags = _flags, \
+ .read_post = _read_post, \
+ }
+
+#define AT24_CHIP_DATA_BS(_name, _len, _flags, _bank_addr_shift) \
+ static const struct at24_chip_data _name = { \
+ .byte_len = _len, .flags = _flags, \
+ .bank_addr_shift = _bank_addr_shift \
+ }
+
+static void at24_read_post_vaio(unsigned int off, char *buf, size_t count)
+{
+ int i;
+
+ if (capable(CAP_SYS_ADMIN))
+ return;
+
+ /*
+ * Hide VAIO private settings to regular users:
+ * - BIOS passwords: bytes 0x00 to 0x0f
+ * - UUID: bytes 0x10 to 0x1f
+ * - Serial number: 0xc0 to 0xdf
+ */
+ for (i = 0; i < count; i++) {
+ if ((off + i <= 0x1f) ||
+ (off + i >= 0xc0 && off + i <= 0xdf))
+ buf[i] = 0;
+ }
+}
+
+/* needs 8 addresses as A0-A2 are ignored */
+AT24_CHIP_DATA(at24_data_24c00, 128 / 8, AT24_FLAG_TAKE8ADDR);
+/* old variants can't be handled with this generic entry! */
+AT24_CHIP_DATA(at24_data_24c01, 1024 / 8, 0);
+AT24_CHIP_DATA(at24_data_24cs01, 16,
+ AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24c02, 2048 / 8, 0);
+AT24_CHIP_DATA(at24_data_24cs02, 16,
+ AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24mac402, 48 / 8,
+ AT24_FLAG_MAC | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24mac602, 64 / 8,
+ AT24_FLAG_MAC | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24aa025e48, 48 / 8,
+ AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24aa025e64, 64 / 8,
+ AT24_FLAG_READONLY);
+/* spd is a 24c02 in memory DIMMs */
+AT24_CHIP_DATA(at24_data_spd, 2048 / 8,
+ AT24_FLAG_READONLY | AT24_FLAG_IRUGO);
+/* 24c02_vaio is a 24c02 on some Sony laptops */
+AT24_CHIP_DATA_CB(at24_data_24c02_vaio, 2048 / 8,
+ AT24_FLAG_READONLY | AT24_FLAG_IRUGO,
+ at24_read_post_vaio);
+AT24_CHIP_DATA(at24_data_24c04, 4096 / 8, 0);
+AT24_CHIP_DATA(at24_data_24cs04, 16,
+ AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+/* 24rf08 quirk is handled at i2c-core */
+AT24_CHIP_DATA(at24_data_24c08, 8192 / 8, 0);
+AT24_CHIP_DATA(at24_data_24cs08, 16,
+ AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24c16, 16384 / 8, 0);
+AT24_CHIP_DATA(at24_data_24cs16, 16,
+ AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24c32, 32768 / 8, AT24_FLAG_ADDR16);
+/* M24C32-D Additional Write lockable page (M24C32-D order codes) */
+AT24_CHIP_DATA(at24_data_24c32d_wlp, 32, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA(at24_data_24cs32, 16,
+ AT24_FLAG_ADDR16 | AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24c64, 65536 / 8, AT24_FLAG_ADDR16);
+/* M24C64-D Additional Write lockable page (M24C64-D order codes) */
+AT24_CHIP_DATA(at24_data_24c64d_wlp, 32, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA(at24_data_24cs64, 16,
+ AT24_FLAG_ADDR16 | AT24_FLAG_SERIAL | AT24_FLAG_READONLY);
+AT24_CHIP_DATA(at24_data_24c128, 131072 / 8, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA(at24_data_24c256, 262144 / 8, AT24_FLAG_ADDR16);
+/* M24256E Additional Write lockable page (M24256E-F order codes) */
+AT24_CHIP_DATA(at24_data_24256e_wlp, 64, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA(at24_data_24c512, 524288 / 8, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA(at24_data_24c1024, 1048576 / 8, AT24_FLAG_ADDR16);
+AT24_CHIP_DATA_BS(at24_data_24c1025, 1048576 / 8, AT24_FLAG_ADDR16, 2);
+AT24_CHIP_DATA(at24_data_24c2048, 2097152 / 8, AT24_FLAG_ADDR16);
+/* identical to 24c08 ? */
+AT24_CHIP_DATA(at24_data_INT3499, 8192 / 8, 0);
+
+static const struct i2c_device_id at24_ids[] = {
+ { .name = "24c00", .driver_data = (kernel_ulong_t)&at24_data_24c00 },
+ { .name = "24c01", .driver_data = (kernel_ulong_t)&at24_data_24c01 },
+ { .name = "24cs01", .driver_data = (kernel_ulong_t)&at24_data_24cs01 },
+ { .name = "24c02", .driver_data = (kernel_ulong_t)&at24_data_24c02 },
+ { .name = "24cs02", .driver_data = (kernel_ulong_t)&at24_data_24cs02 },
+ { .name = "24mac402", .driver_data = (kernel_ulong_t)&at24_data_24mac402 },
+ { .name = "24mac602", .driver_data = (kernel_ulong_t)&at24_data_24mac602 },
+ { .name = "24aa025e48", .driver_data = (kernel_ulong_t)&at24_data_24aa025e48 },
+ { .name = "24aa025e64", .driver_data = (kernel_ulong_t)&at24_data_24aa025e64 },
+ { .name = "spd", .driver_data = (kernel_ulong_t)&at24_data_spd },
+ { .name = "24c02-vaio", .driver_data = (kernel_ulong_t)&at24_data_24c02_vaio },
+ { .name = "24c04", .driver_data = (kernel_ulong_t)&at24_data_24c04 },
+ { .name = "24cs04", .driver_data = (kernel_ulong_t)&at24_data_24cs04 },
+ { .name = "24c08", .driver_data = (kernel_ulong_t)&at24_data_24c08 },
+ { .name = "24cs08", .driver_data = (kernel_ulong_t)&at24_data_24cs08 },
+ { .name = "24c16", .driver_data = (kernel_ulong_t)&at24_data_24c16 },
+ { .name = "24cs16", .driver_data = (kernel_ulong_t)&at24_data_24cs16 },
+ { .name = "24c32", .driver_data = (kernel_ulong_t)&at24_data_24c32 },
+ { .name = "24c32d-wl", .driver_data = (kernel_ulong_t)&at24_data_24c32d_wlp },
+ { .name = "24cs32", .driver_data = (kernel_ulong_t)&at24_data_24cs32 },
+ { .name = "24c64", .driver_data = (kernel_ulong_t)&at24_data_24c64 },
+ { .name = "24c64-wl", .driver_data = (kernel_ulong_t)&at24_data_24c64d_wlp },
+ { .name = "24cs64", .driver_data = (kernel_ulong_t)&at24_data_24cs64 },
+ { .name = "24c128", .driver_data = (kernel_ulong_t)&at24_data_24c128 },
+ { .name = "24c256", .driver_data = (kernel_ulong_t)&at24_data_24c256 },
+ { .name = "24256e-wl", .driver_data = (kernel_ulong_t)&at24_data_24256e_wlp },
+ { .name = "24c512", .driver_data = (kernel_ulong_t)&at24_data_24c512 },
+ { .name = "24c1024", .driver_data = (kernel_ulong_t)&at24_data_24c1024 },
+ { .name = "24c1025", .driver_data = (kernel_ulong_t)&at24_data_24c1025 },
+ { .name = "24c2048", .driver_data = (kernel_ulong_t)&at24_data_24c2048 },
+ { .name = "at24", .driver_data = 0 },
+ { /* END OF LIST */ }
+};
+MODULE_DEVICE_TABLE(i2c, at24_ids);
+
+static const struct of_device_id at24_of_match[] = {
+ { .compatible = "atmel,24c00", .data = &at24_data_24c00 },
+ { .compatible = "atmel,24c01", .data = &at24_data_24c01 },
+ { .compatible = "atmel,24cs01", .data = &at24_data_24cs01 },
+ { .compatible = "atmel,24c02", .data = &at24_data_24c02 },
+ { .compatible = "atmel,24cs02", .data = &at24_data_24cs02 },
+ { .compatible = "atmel,24mac402", .data = &at24_data_24mac402 },
+ { .compatible = "atmel,24mac602", .data = &at24_data_24mac602 },
+ { .compatible = "atmel,spd", .data = &at24_data_spd },
+ { .compatible = "atmel,24c04", .data = &at24_data_24c04 },
+ { .compatible = "atmel,24cs04", .data = &at24_data_24cs04 },
+ { .compatible = "atmel,24c08", .data = &at24_data_24c08 },
+ { .compatible = "atmel,24cs08", .data = &at24_data_24cs08 },
+ { .compatible = "atmel,24c16", .data = &at24_data_24c16 },
+ { .compatible = "atmel,24cs16", .data = &at24_data_24cs16 },
+ { .compatible = "atmel,24c32", .data = &at24_data_24c32 },
+ { .compatible = "atmel,24c32d-wl", .data = &at24_data_24c32d_wlp },
+ { .compatible = "atmel,24cs32", .data = &at24_data_24cs32 },
+ { .compatible = "atmel,24c64", .data = &at24_data_24c64 },
+ { .compatible = "atmel,24c64d-wl", .data = &at24_data_24c64d_wlp },
+ { .compatible = "atmel,24cs64", .data = &at24_data_24cs64 },
+ { .compatible = "atmel,24c128", .data = &at24_data_24c128 },
+ { .compatible = "atmel,24c256", .data = &at24_data_24c256 },
+ { .compatible = "atmel,24c512", .data = &at24_data_24c512 },
+ { .compatible = "atmel,24c1024", .data = &at24_data_24c1024 },
+ { .compatible = "atmel,24c1025", .data = &at24_data_24c1025 },
+ { .compatible = "atmel,24c2048", .data = &at24_data_24c2048 },
+ { .compatible = "microchip,24aa025e48", .data = &at24_data_24aa025e48 },
+ { .compatible = "microchip,24aa025e64", .data = &at24_data_24aa025e64 },
+ { .compatible = "st,24256e-wl", .data = &at24_data_24256e_wlp },
+ { /* END OF LIST */ },
+};
+MODULE_DEVICE_TABLE(of, at24_of_match);
+
+static const struct acpi_device_id at24_acpi_ids[] = {
+ { "INT3499", (kernel_ulong_t)&at24_data_INT3499 },
+ { "TPF0001", (kernel_ulong_t)&at24_data_24c1024 },
+ { /* END OF LIST */ }
+};
+MODULE_DEVICE_TABLE(acpi, at24_acpi_ids);
+
+/*
+ * This routine supports chips which consume multiple I2C addresses. It
+ * computes the addressing information to be used for a given r/w request.
+ * Assumes that sanity checks for offset happened at sysfs-layer.
+ *
+ * Slave address and byte offset derive from the offset. Always
+ * set the byte address; on a multi-master board, another master
+ * may have changed the chip's "current" address pointer.
+ */
+static struct regmap *at24_translate_offset(struct at24_data *at24,
+ unsigned int *offset)
+{
+ unsigned int i;
+
+ if (at24->flags & AT24_FLAG_ADDR16) {
+ i = *offset >> 16;
+ *offset &= 0xffff;
+ } else {
+ i = *offset >> 8;
+ *offset &= 0xff;
+ }
+
+ return at24->client_regmaps[i];
+}
+
+static struct device *at24_base_client_dev(struct at24_data *at24)
+{
+ return regmap_get_device(at24->client_regmaps[0]);
+}
+
+static size_t at24_adjust_read_count(struct at24_data *at24,
+ unsigned int offset, size_t count)
+{
+ unsigned int bits;
+ size_t remainder;
+
+ /*
+ * In case of multi-address chips that don't rollover reads to
+ * the next slave address: truncate the count to the slave boundary,
+ * so that the read never straddles slaves.
+ */
+ if (at24->flags & AT24_FLAG_NO_RDROL) {
+ bits = (at24->flags & AT24_FLAG_ADDR16) ? 16 : 8;
+ remainder = BIT(bits) - offset;
+ if (count > remainder)
+ count = remainder;
+ }
+
+ if (count > at24_io_limit)
+ count = at24_io_limit;
+
+ return count;
+}
+
+static ssize_t at24_regmap_read(struct at24_data *at24, char *buf,
+ unsigned int offset, size_t count)
+{
+ unsigned long timeout, read_time;
+ struct regmap *regmap;
+ int ret;
+
+ regmap = at24_translate_offset(at24, &offset);
+ count = at24_adjust_read_count(at24, offset, count);
+
+ /* adjust offset for mac and serial read ops */
+ offset += at24->offset_adj;
+
+ timeout = jiffies + msecs_to_jiffies(at24_write_timeout);
+ do {
+ /*
+ * The timestamp shall be taken before the actual operation
+ * to avoid a premature timeout in case of high CPU load.
+ */
+ read_time = jiffies;
+
+ ret = regmap_bulk_read(regmap, offset, buf, count);
+ dev_dbg(regmap_get_device(regmap), "read %zu@%d --> %d (%ld)\n",
+ count, offset, ret, jiffies);
+ if (!ret)
+ return count;
+
+ usleep_range(1000, 1500);
+ } while (time_before(read_time, timeout));
+
+ return -ETIMEDOUT;
+}
+
+/*
+ * Note that if the hardware write-protect pin is pulled high, the whole
+ * chip is normally write protected. But there are plenty of product
+ * variants here, including OTP fuses and partial chip protect.
+ *
+ * We only use page mode writes; the alternative is sloooow. These routines
+ * write at most one page.
+ */
+
+static size_t at24_adjust_write_count(struct at24_data *at24,
+ unsigned int offset, size_t count)
+{
+ unsigned int next_page;
+
+ /* write_max is at most a page */
+ if (count > at24->write_max)
+ count = at24->write_max;
+
+ /* Never roll over backwards, to the start of this page */
+ next_page = roundup(offset + 1, at24->page_size);
+ if (offset + count > next_page)
+ count = next_page - offset;
+
+ return count;
+}
+
+static ssize_t at24_regmap_write(struct at24_data *at24, const char *buf,
+ unsigned int offset, size_t count)
+{
+ unsigned long timeout, write_time;
+ struct regmap *regmap;
+ int ret;
+
+ regmap = at24_translate_offset(at24, &offset);
+ count = at24_adjust_write_count(at24, offset, count);
+ timeout = jiffies + msecs_to_jiffies(at24_write_timeout);
+
+ do {
+ /*
+ * The timestamp shall be taken before the actual operation
+ * to avoid a premature timeout in case of high CPU load.
+ */
+ write_time = jiffies;
+
+ ret = regmap_bulk_write(regmap, offset, buf, count);
+ dev_dbg(regmap_get_device(regmap), "write %zu@%d --> %d (%ld)\n",
+ count, offset, ret, jiffies);
+ if (!ret)
+ return count;
+
+ usleep_range(1000, 1500);
+ } while (time_before(write_time, timeout));
+
+ return -ETIMEDOUT;
+}
+
+static int at24_read(void *priv, unsigned int off, void *val, size_t count)
+{
+ struct at24_data *at24;
+ struct device *dev;
+ char *buf = val;
+ int i, ret;
+
+ at24 = priv;
+ dev = at24_base_client_dev(at24);
+
+ if (unlikely(!count))
+ return count;
+
+ if (off + count > at24->byte_len)
+ return -EINVAL;
+
+ ret = pm_runtime_resume_and_get(dev);
+ if (ret)
+ return ret;
+ /*
+ * Read data from chip, protecting against concurrent updates
+ * from this host, but not from other I2C masters.
+ */
+ mutex_lock(&at24->lock);
+
+ for (i = 0; count; i += ret, count -= ret) {
+ ret = at24_regmap_read(at24, buf + i, off + i, count);
+ if (ret < 0) {
+ mutex_unlock(&at24->lock);
+ pm_runtime_put(dev);
+ return ret;
+ }
+ }
+
+ mutex_unlock(&at24->lock);
+
+ pm_runtime_put(dev);
+
+ if (unlikely(at24->read_post))
+ at24->read_post(off, buf, i);
+
+ return 0;
+}
+
+static int at24_write(void *priv, unsigned int off, void *val, size_t count)
+{
+ struct at24_data *at24;
+ struct device *dev;
+ char *buf = val;
+ int ret;
+
+ at24 = priv;
+ dev = at24_base_client_dev(at24);
+
+ if (unlikely(!count))
+ return -EINVAL;
+
+ if (off + count > at24->byte_len)
+ return -EINVAL;
+
+ ret = pm_runtime_resume_and_get(dev);
+ if (ret)
+ return ret;
+ /*
+ * Write data to chip, protecting against concurrent updates
+ * from this host, but not from other I2C masters.
+ */
+ mutex_lock(&at24->lock);
+
+ while (count) {
+ ret = at24_regmap_write(at24, buf, off, count);
+ if (ret < 0) {
+ mutex_unlock(&at24->lock);
+ pm_runtime_put(dev);
+ return ret;
+ }
+ buf += ret;
+ off += ret;
+ count -= ret;
+ }
+
+ mutex_unlock(&at24->lock);
+
+ pm_runtime_put(dev);
+
+ return 0;
+}
+
+static int at24_make_dummy_client(struct at24_data *at24, unsigned int index,
+ struct i2c_client *base_client,
+ struct regmap_config *regmap_config)
+{
+ struct i2c_client *dummy_client;
+ struct regmap *regmap;
+
+ dummy_client = devm_i2c_new_dummy_device(&base_client->dev,
+ base_client->adapter,
+ base_client->addr +
+ (index << at24->bank_addr_shift));
+ if (IS_ERR(dummy_client))
+ return PTR_ERR(dummy_client);
+
+ regmap = devm_regmap_init_i2c(dummy_client, regmap_config);
+ if (IS_ERR(regmap))
+ return PTR_ERR(regmap);
+
+ at24->client_regmaps[index] = regmap;
+
+ return 0;
+}
+
+static unsigned int at24_get_offset_adj(u8 flags, unsigned int byte_len)
+{
+ if (flags & AT24_FLAG_MAC) {
+ /* EUI-48 starts from 0x9a, EUI-64 from 0x98 */
+ return 0xa0 - byte_len;
+ } else if (flags & AT24_FLAG_SERIAL && flags & AT24_FLAG_ADDR16) {
+ /*
+ * For 16 bit address pointers, the word address must contain
+ * a '10' sequence in bits 11 and 10 regardless of the
+ * intended position of the address pointer.
+ */
+ return 0x0800;
+ } else if (flags & AT24_FLAG_SERIAL) {
+ /*
+ * Otherwise the word address must begin with a '10' sequence,
+ * regardless of the intended address.
+ */
+ return 0x0080;
+ } else {
+ return 0;
+ }
+}
+
+static void at24_probe_temp_sensor(struct i2c_client *client)
+{
+ struct at24_data *at24 = i2c_get_clientdata(client);
+ struct i2c_board_info info = { .type = "jc42" };
+ int ret;
+ u8 val;
+
+ /*
+ * Byte 2 has value 11 for DDR3, earlier versions don't
+ * support the thermal sensor present flag
+ */
+ ret = at24_read(at24, 2, &val, 1);
+ if (ret || val != 11)
+ return;
+
+ /* Byte 32, bit 7 is set if temp sensor is present */
+ ret = at24_read(at24, 32, &val, 1);
+ if (ret || !(val & BIT(7)))
+ return;
+
+ info.addr = 0x18 | (client->addr & 7);
+
+ i2c_new_client_device(client->adapter, &info);
+}
+
+static int at24_probe(struct i2c_client *client)
+{
+ struct regmap_config regmap_config = { };
+ struct nvmem_config nvmem_config = { };
+ u32 byte_len, page_size, flags, addrw;
+ const struct at24_chip_data *cdata;
+ struct device *dev = &client->dev;
+ bool i2c_fn_i2c, i2c_fn_block;
+ unsigned int i, num_addresses;
+ struct at24_data *at24;
+ bool full_power;
+ struct regmap *regmap;
+ bool writable;
+ u8 test_byte;
+ int err;
+
+ i2c_fn_i2c = i2c_check_functionality(client->adapter, I2C_FUNC_I2C);
+ i2c_fn_block = i2c_check_functionality(client->adapter,
+ I2C_FUNC_SMBUS_WRITE_I2C_BLOCK);
+
+ cdata = i2c_get_match_data(client);
+ if (!cdata)
+ return -ENODEV;
+
+ err = device_property_read_u32(dev, "pagesize", &page_size);
+ if (err)
+ /*
+ * This is slow, but we can't know all eeproms, so we better
+ * play safe. Specifying custom eeprom-types via device tree
+ * or properties is recommended anyhow.
+ */
+ page_size = 1;
+
+ flags = cdata->flags;
+ if (device_property_present(dev, "read-only"))
+ flags |= AT24_FLAG_READONLY;
+ if (device_property_present(dev, "no-read-rollover"))
+ flags |= AT24_FLAG_NO_RDROL;
+
+ err = device_property_read_u32(dev, "address-width", &addrw);
+ if (!err) {
+ switch (addrw) {
+ case 8:
+ if (flags & AT24_FLAG_ADDR16)
+ dev_warn(dev,
+ "Override address width to be 8, while default is 16\n");
+ flags &= ~AT24_FLAG_ADDR16;
+ break;
+ case 16:
+ flags |= AT24_FLAG_ADDR16;
+ break;
+ default:
+ dev_warn(dev, "Bad \"address-width\" property: %u\n",
+ addrw);
+ }
+ }
+
+ err = device_property_read_u32(dev, "size", &byte_len);
+ if (err)
+ byte_len = cdata->byte_len;
+
+ if (!i2c_fn_i2c && !i2c_fn_block)
+ page_size = 1;
+
+ if (!page_size)
+ return dev_err_probe(dev, -EINVAL, "page_size must not be 0!\n");
+
+ if (!is_power_of_2(page_size))
+ dev_warn(dev, "page_size looks suspicious (no power of 2)!\n");
+
+ err = device_property_read_u32(dev, "num-addresses", &num_addresses);
+ if (err) {
+ if (flags & AT24_FLAG_TAKE8ADDR)
+ num_addresses = 8;
+ else
+ num_addresses = DIV_ROUND_UP(byte_len,
+ (flags & AT24_FLAG_ADDR16) ? 65536 : 256);
+ }
+
+ if ((flags & AT24_FLAG_SERIAL) && (flags & AT24_FLAG_MAC))
+ return dev_err_probe(dev, -EINVAL,
+ "invalid device data - cannot have both AT24_FLAG_SERIAL & AT24_FLAG_MAC.");
+
+ regmap_config.val_bits = 8;
+ regmap_config.reg_bits = (flags & AT24_FLAG_ADDR16) ? 16 : 8;
+ regmap_config.disable_locking = true;
+
+ regmap = devm_regmap_init_i2c(client, &regmap_config);
+ if (IS_ERR(regmap))
+ return PTR_ERR(regmap);
+
+ at24 = devm_kzalloc(dev, struct_size(at24, client_regmaps, num_addresses),
+ GFP_KERNEL);
+ if (!at24)
+ return -ENOMEM;
+
+ mutex_init(&at24->lock);
+ at24->byte_len = byte_len;
+ at24->page_size = page_size;
+ at24->flags = flags;
+ at24->read_post = cdata->read_post;
+ at24->bank_addr_shift = cdata->bank_addr_shift;
+ at24->num_addresses = num_addresses;
+ at24->offset_adj = at24_get_offset_adj(flags, byte_len);
+ at24->client_regmaps[0] = regmap;
+
+ at24->vcc_reg = devm_regulator_get(dev, "vcc");
+ if (IS_ERR(at24->vcc_reg))
+ return PTR_ERR(at24->vcc_reg);
+
+ writable = !(flags & AT24_FLAG_READONLY);
+ if (writable) {
+ at24->write_max = min_t(unsigned int,
+ page_size, at24_io_limit);
+ if (!i2c_fn_i2c && at24->write_max > I2C_SMBUS_BLOCK_MAX)
+ at24->write_max = I2C_SMBUS_BLOCK_MAX;
+ }
+
+ /* use dummy devices for multiple-address chips */
+ for (i = 1; i < num_addresses; i++) {
+ err = at24_make_dummy_client(at24, i, client, &regmap_config);
+ if (err)
+ return err;
+ }
+
+ /*
+ * We initialize nvmem_config.id to NVMEM_DEVID_AUTO even if the
+ * label property is set as some platform can have multiple eeproms
+ * with same label and we can not register each of those with same
+ * label. Failing to register those eeproms trigger cascade failure
+ * on such platform.
+ */
+ nvmem_config.id = NVMEM_DEVID_AUTO;
+
+ if (device_property_present(dev, "label")) {
+ err = device_property_read_string(dev, "label",
+ &nvmem_config.name);
+ if (err)
+ return err;
+ } else {
+ nvmem_config.name = dev_name(dev);
+ }
+
+ nvmem_config.type = NVMEM_TYPE_EEPROM;
+ nvmem_config.dev = dev;
+ nvmem_config.read_only = !writable;
+ nvmem_config.root_only = !(flags & AT24_FLAG_IRUGO);
+ nvmem_config.owner = THIS_MODULE;
+ nvmem_config.compat = true;
+ nvmem_config.base_dev = dev;
+ nvmem_config.reg_read = at24_read;
+ nvmem_config.reg_write = at24_write;
+ nvmem_config.priv = at24;
+ nvmem_config.stride = 1;
+ nvmem_config.word_size = 1;
+ nvmem_config.size = byte_len;
+
+ i2c_set_clientdata(client, at24);
+
+ full_power = acpi_dev_state_d0(&client->dev);
+ if (full_power) {
+ err = regulator_enable(at24->vcc_reg);
+ if (err)
+ return dev_err_probe(dev, err, "Failed to enable vcc regulator\n");
+
+ pm_runtime_set_active(dev);
+ }
+ pm_runtime_enable(dev);
+
+ /*
+ * Perform a one-byte test read to verify that the chip is functional,
+ * unless powering on the device is to be avoided during probe (i.e.
+ * it's powered off right now).
+ */
+ if (full_power) {
+ err = at24_read(at24, 0, &test_byte, 1);
+ if (err) {
+ pm_runtime_disable(dev);
+ if (!pm_runtime_status_suspended(dev))
+ regulator_disable(at24->vcc_reg);
+ return -ENODEV;
+ }
+ }
+
+ at24->nvmem = devm_nvmem_register(dev, &nvmem_config);
+ if (IS_ERR(at24->nvmem)) {
+ pm_runtime_disable(dev);
+ if (!pm_runtime_status_suspended(dev))
+ regulator_disable(at24->vcc_reg);
+ return dev_err_probe(dev, PTR_ERR(at24->nvmem),
+ "failed to register nvmem\n");
+ }
+
+ /* If this a SPD EEPROM, probe for DDR3 thermal sensor */
+ if (cdata == &at24_data_spd)
+ at24_probe_temp_sensor(client);
+
+ pm_runtime_idle(dev);
+
+ if (writable)
+ dev_info(dev, "%u byte %s EEPROM, writable, %u bytes/write\n",
+ byte_len, client->name, at24->write_max);
+ else
+ dev_info(dev, "%u byte %s EEPROM, read-only\n",
+ byte_len, client->name);
+
+ return 0;
+}
+
+static void at24_remove(struct i2c_client *client)
+{
+ struct at24_data *at24 = i2c_get_clientdata(client);
+
+ pm_runtime_disable(&client->dev);
+ if (acpi_dev_state_d0(&client->dev)) {
+ if (!pm_runtime_status_suspended(&client->dev))
+ regulator_disable(at24->vcc_reg);
+ pm_runtime_set_suspended(&client->dev);
+ }
+}
+
+static int __maybe_unused at24_suspend(struct device *dev)
+{
+ struct i2c_client *client = to_i2c_client(dev);
+ struct at24_data *at24 = i2c_get_clientdata(client);
+
+ return regulator_disable(at24->vcc_reg);
+}
+
+static int __maybe_unused at24_resume(struct device *dev)
+{
+ struct i2c_client *client = to_i2c_client(dev);
+ struct at24_data *at24 = i2c_get_clientdata(client);
+
+ return regulator_enable(at24->vcc_reg);
+}
+
+static const struct dev_pm_ops at24_pm_ops = {
+ SET_SYSTEM_SLEEP_PM_OPS(pm_runtime_force_suspend,
+ pm_runtime_force_resume)
+ SET_RUNTIME_PM_OPS(at24_suspend, at24_resume, NULL)
+};
+
+static struct i2c_driver at24_driver = {
+ .driver = {
+ .name = "at24",
+ .pm = &at24_pm_ops,
+ .of_match_table = at24_of_match,
+ .acpi_match_table = at24_acpi_ids,
+ },
+ .probe = at24_probe,
+ .remove = at24_remove,
+ .id_table = at24_ids,
+ .flags = I2C_DRV_ACPI_WAIVE_D0_PROBE,
+};
+
+static int __init at24_init(void)
+{
+ if (!at24_io_limit) {
+ pr_err("at24: at24_io_limit must not be 0!\n");
+ return -EINVAL;
+ }
+
+ at24_io_limit = rounddown_pow_of_two(at24_io_limit);
+ return i2c_add_driver(&at24_driver);
+}
+module_init(at24_init);
+
+static void __exit at24_exit(void)
+{
+ i2c_del_driver(&at24_driver);
+}
+module_exit(at24_exit);
+
+MODULE_DESCRIPTION("Driver for most I2C EEPROMs");
+MODULE_AUTHOR("David Brownell and Wolfram Sang");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/at25.c b/drivers/nvmem/at25.c
new file mode 100644
index 000000000..bc2cfb75d
--- /dev/null
+++ b/drivers/nvmem/at25.c
@@ -0,0 +1,585 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * Driver for most of the SPI EEPROMs, such as Atmel AT25 models
+ * and Cypress FRAMs FM25 models.
+ *
+ * Copyright (C) 2006 David Brownell
+ */
+
+#include <linux/bits.h>
+#include <linux/cleanup.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/iopoll.h>
+#include <linux/kernel.h>
+#include <linux/module.h>
+#include <linux/property.h>
+#include <linux/sched.h>
+#include <linux/slab.h>
+
+#include <linux/spi/eeprom.h>
+#include <linux/spi/spi.h>
+#include <linux/spi/spi-mem.h>
+
+#include <linux/nvmem-provider.h>
+
+/*
+ * NOTE: this is an *EEPROM* driver. The vagaries of product naming
+ * mean that some AT25 products are EEPROMs, and others are FLASH.
+ * Handle FLASH chips with the drivers/mtd/devices/m25p80.c driver,
+ * not this one!
+ *
+ * EEPROMs that can be used with this driver include, for example:
+ * AT25M02, AT25128B
+ */
+
+#define FM25_SN_LEN 8 /* serial number length */
+#define FM25_MAX_ID_LEN 9 /* ID length */
+#define EE_MAXADDRLEN 3 /* 24 bit addresses, up to 2 MBytes */
+
+struct at25_data {
+ struct spi_eeprom chip;
+ struct spi_mem *spimem;
+ struct mutex lock;
+ unsigned addrlen;
+ struct nvmem_config nvmem_config;
+ struct nvmem_device *nvmem;
+ u8 sernum[FM25_SN_LEN];
+ u8 id[FM25_MAX_ID_LEN];
+ u8 id_len;
+};
+
+#define AT25_WREN 0x06 /* latch the write enable */
+#define AT25_WRDI 0x04 /* reset the write enable */
+#define AT25_RDSR 0x05 /* read status register */
+#define AT25_WRSR 0x01 /* write status register */
+#define AT25_READ 0x03 /* read byte(s) */
+#define AT25_WRITE 0x02 /* write byte(s)/sector */
+#define FM25_SLEEP 0xb9 /* enter sleep mode */
+#define FM25_RDID 0x9f /* read device ID */
+#define FM25_RDSN 0xc3 /* read S/N */
+
+#define AT25_SR_nRDY 0x01 /* nRDY = write-in-progress */
+#define AT25_SR_WEN 0x02 /* write enable (latched) */
+#define AT25_SR_BP0 0x04 /* BP for software writeprotect */
+#define AT25_SR_BP1 0x08
+#define AT25_SR_WPEN 0x80 /* writeprotect enable */
+
+#define AT25_INSTR_BIT3 0x08 /* additional address bit in instr */
+
+/*
+ * Specs often allow 5ms for a page write, sometimes 20ms;
+ * it's important to recover from write timeouts.
+ */
+#define EE_TIMEOUT 25
+
+/*-------------------------------------------------------------------------*/
+
+#define io_limit PAGE_SIZE /* bytes */
+
+/* Handle the address MSB as part of instruction byte */
+static u8 at25_instr(struct at25_data *at25, u8 instr, unsigned int off)
+{
+ if (!(at25->chip.flags & EE_INSTR_BIT3_IS_ADDR))
+ return instr;
+ if (off < BIT(at25->addrlen * 8))
+ return instr;
+ return instr | AT25_INSTR_BIT3;
+}
+
+static int at25_ee_read(void *priv, unsigned int offset,
+ void *val, size_t count)
+{
+ u8 *bounce __free(kfree) = kmalloc(min(count, io_limit), GFP_KERNEL);
+ struct at25_data *at25 = priv;
+ char *buf = val;
+ unsigned int msg_offset = offset;
+ size_t bytes_left = count;
+ size_t segment;
+ int status;
+
+ if (!bounce)
+ return -ENOMEM;
+
+ if (unlikely(offset >= at25->chip.byte_len))
+ return -EINVAL;
+ if ((offset + count) > at25->chip.byte_len)
+ count = at25->chip.byte_len - offset;
+ if (unlikely(!count))
+ return -EINVAL;
+
+ do {
+ struct spi_mem_op op;
+
+ segment = min(bytes_left, io_limit);
+
+ op = (struct spi_mem_op)SPI_MEM_OP(SPI_MEM_OP_CMD(at25_instr(at25, AT25_READ,
+ msg_offset), 1),
+ SPI_MEM_OP_ADDR(at25->addrlen, msg_offset, 1),
+ SPI_MEM_OP_NO_DUMMY,
+ SPI_MEM_OP_DATA_IN(segment, bounce, 1));
+
+ status = spi_mem_adjust_op_size(at25->spimem, &op);
+ if (status)
+ return status;
+ segment = op.data.nbytes;
+
+ mutex_lock(&at25->lock);
+ status = spi_mem_exec_op(at25->spimem, &op);
+ mutex_unlock(&at25->lock);
+ if (status)
+ return status;
+ memcpy(buf, bounce, segment);
+
+ msg_offset += segment;
+ buf += segment;
+ bytes_left -= segment;
+ } while (bytes_left > 0);
+
+ dev_dbg(&at25->spimem->spi->dev, "read %zu bytes at %d\n",
+ count, offset);
+ return 0;
+}
+
+/*
+ * Read extra registers as ID or serial number
+ *
+ * Allow for the callers to provide @buf on stack (not necessary DMA-capable)
+ * by allocating a bounce buffer internally.
+ */
+static int fm25_aux_read(struct at25_data *at25, u8 *buf, uint8_t command,
+ int len)
+{
+ u8 *bounce __free(kfree) = kmalloc(len, GFP_KERNEL);
+ struct spi_mem_op op;
+ int status;
+
+ if (!bounce)
+ return -ENOMEM;
+
+ op = (struct spi_mem_op)SPI_MEM_OP(SPI_MEM_OP_CMD(command, 1),
+ SPI_MEM_OP_NO_ADDR,
+ SPI_MEM_OP_NO_DUMMY,
+ SPI_MEM_OP_DATA_IN(len, bounce, 1));
+
+ status = spi_mem_exec_op(at25->spimem, &op);
+ dev_dbg(&at25->spimem->spi->dev, "read %d aux bytes --> %d\n", len, status);
+ if (status)
+ return status;
+
+ memcpy(buf, bounce, len);
+
+ return 0;
+}
+
+static ssize_t sernum_show(struct device *dev, struct device_attribute *attr, char *buf)
+{
+ struct at25_data *at25;
+
+ at25 = dev_get_drvdata(dev);
+ return sysfs_emit(buf, "%*ph\n", (int)sizeof(at25->sernum), at25->sernum);
+}
+static DEVICE_ATTR_RO(sernum);
+
+static ssize_t jedec_id_show(struct device *dev, struct device_attribute *attr, char *buf)
+{
+ struct at25_data *at25;
+
+ at25 = dev_get_drvdata(dev);
+
+ if (!at25->id_len)
+ return -EOPNOTSUPP;
+
+ return sysfs_emit(buf, "%*phN\n", at25->id_len, at25->id);
+}
+static DEVICE_ATTR_RO(jedec_id);
+
+static struct attribute *at25_attrs[] = {
+ &dev_attr_sernum.attr,
+ &dev_attr_jedec_id.attr,
+ NULL,
+};
+ATTRIBUTE_GROUPS(at25);
+
+/*
+ * Poll Read Status Register with timeout
+ *
+ * Return:
+ * 0, if the chip is ready
+ * [positive] Status Register value as-is, if the chip is busy
+ * [negative] error code in case of read failure
+ */
+static int at25_wait_ready(struct at25_data *at25)
+{
+ u8 *bounce __free(kfree) = kmalloc(1, GFP_KERNEL);
+ struct spi_mem_op op;
+ int status;
+
+ if (!bounce)
+ return -ENOMEM;
+
+ op = (struct spi_mem_op)SPI_MEM_OP(SPI_MEM_OP_CMD(AT25_RDSR, 1),
+ SPI_MEM_OP_NO_ADDR,
+ SPI_MEM_OP_NO_DUMMY,
+ SPI_MEM_OP_DATA_IN(1, bounce, 1));
+
+ read_poll_timeout(spi_mem_exec_op, status,
+ status || !(bounce[0] & AT25_SR_nRDY), false,
+ USEC_PER_MSEC, USEC_PER_MSEC * EE_TIMEOUT,
+ at25->spimem, &op);
+ if (status < 0)
+ return status;
+ if (!(bounce[0] & AT25_SR_nRDY))
+ return 0;
+
+ return bounce[0];
+}
+
+static int at25_ee_write(void *priv, unsigned int off, void *val, size_t count)
+{
+ u8 *bounce __free(kfree) = kmalloc(min(count, io_limit), GFP_KERNEL);
+ struct at25_data *at25 = priv;
+ const char *buf = val;
+ unsigned int buf_size;
+ int status;
+
+ if (unlikely(off >= at25->chip.byte_len))
+ return -EFBIG;
+ if ((off + count) > at25->chip.byte_len)
+ count = at25->chip.byte_len - off;
+ if (unlikely(!count))
+ return -EINVAL;
+
+ buf_size = at25->chip.page_size;
+
+ if (!bounce)
+ return -ENOMEM;
+
+ /*
+ * For write, rollover is within the page ... so we write at
+ * most one page, then manually roll over to the next page.
+ */
+ guard(mutex)(&at25->lock);
+ do {
+ struct spi_mem_op op = SPI_MEM_OP(SPI_MEM_OP_CMD(AT25_WREN, 1),
+ SPI_MEM_OP_NO_ADDR,
+ SPI_MEM_OP_NO_DUMMY,
+ SPI_MEM_OP_NO_DATA);
+ unsigned int segment;
+
+ status = spi_mem_exec_op(at25->spimem, &op);
+ if (status < 0) {
+ dev_dbg(&at25->spimem->spi->dev, "WREN --> %d\n", status);
+ return status;
+ }
+
+ /* Write as much of a page as we can */
+ segment = buf_size - (off % buf_size);
+ if (segment > count)
+ segment = count;
+ if (segment > io_limit)
+ segment = io_limit;
+
+ op = (struct spi_mem_op)SPI_MEM_OP(SPI_MEM_OP_CMD(at25_instr(at25, AT25_WRITE, off),
+ 1),
+ SPI_MEM_OP_ADDR(at25->addrlen, off, 1),
+ SPI_MEM_OP_NO_DUMMY,
+ SPI_MEM_OP_DATA_OUT(segment, bounce, 1));
+
+ status = spi_mem_adjust_op_size(at25->spimem, &op);
+ if (status)
+ return status;
+ segment = op.data.nbytes;
+
+ memcpy(bounce, buf, segment);
+
+ status = spi_mem_exec_op(at25->spimem, &op);
+ dev_dbg(&at25->spimem->spi->dev, "write %u bytes at %u --> %d\n",
+ segment, off, status);
+ if (status)
+ return status;
+
+ /*
+ * REVISIT this should detect (or prevent) failed writes
+ * to read-only sections of the EEPROM...
+ */
+
+ status = at25_wait_ready(at25);
+ if (status < 0) {
+ dev_err_probe(&at25->spimem->spi->dev, status,
+ "Read Status Redister command failed\n");
+ return status;
+ }
+ if (status) {
+ dev_dbg(&at25->spimem->spi->dev,
+ "Status %02x\n", status);
+ dev_err(&at25->spimem->spi->dev,
+ "write %u bytes offset %u, timeout after %u msecs\n",
+ segment, off, EE_TIMEOUT);
+ return -ETIMEDOUT;
+ }
+
+ off += segment;
+ buf += segment;
+ count -= segment;
+
+ } while (count > 0);
+
+ return status;
+}
+
+/*-------------------------------------------------------------------------*/
+
+static int at25_fw_to_chip(struct device *dev, struct spi_eeprom *chip)
+{
+ u32 val;
+ int err;
+
+ strscpy(chip->name, "at25", sizeof(chip->name));
+
+ err = device_property_read_u32(dev, "size", &val);
+ if (err)
+ err = device_property_read_u32(dev, "at25,byte-len", &val);
+ if (err) {
+ dev_err(dev, "Error: missing \"size\" property\n");
+ return err;
+ }
+ chip->byte_len = val;
+
+ err = device_property_read_u32(dev, "pagesize", &val);
+ if (err)
+ err = device_property_read_u32(dev, "at25,page-size", &val);
+ if (err) {
+ dev_err(dev, "Error: missing \"pagesize\" property\n");
+ return err;
+ }
+ chip->page_size = val;
+
+ err = device_property_read_u32(dev, "address-width", &val);
+ if (err) {
+ err = device_property_read_u32(dev, "at25,addr-mode", &val);
+ if (err) {
+ dev_err(dev, "Error: missing \"address-width\" property\n");
+ return err;
+ }
+ chip->flags = (u16)val;
+ } else {
+ switch (val) {
+ case 9:
+ chip->flags |= EE_INSTR_BIT3_IS_ADDR;
+ fallthrough;
+ case 8:
+ chip->flags |= EE_ADDR1;
+ break;
+ case 16:
+ chip->flags |= EE_ADDR2;
+ break;
+ case 24:
+ chip->flags |= EE_ADDR3;
+ break;
+ default:
+ dev_err(dev,
+ "Error: bad \"address-width\" property: %u\n",
+ val);
+ return -ENODEV;
+ }
+ if (device_property_present(dev, "read-only"))
+ chip->flags |= EE_READONLY;
+ }
+ return 0;
+}
+
+static int at25_fram_to_chip(struct device *dev, struct spi_eeprom *chip)
+{
+ struct at25_data *at25 = container_of(chip, struct at25_data, chip);
+ u8 sernum[FM25_SN_LEN];
+ u8 id[FM25_MAX_ID_LEN];
+ u32 val;
+ int i;
+
+ strscpy(chip->name, "fm25", sizeof(chip->name));
+
+ if (!device_property_read_u32(dev, "size", &val)) {
+ chip->byte_len = val;
+ } else {
+ /* Get ID of chip */
+ fm25_aux_read(at25, id, FM25_RDID, FM25_MAX_ID_LEN);
+
+ /* Store the unprocessed ID for exposing via sysfs */
+ memcpy(at25->id, id, FM25_MAX_ID_LEN);
+ at25->id_len = FM25_MAX_ID_LEN;
+
+ /* There are inside-out FRAM variations, detect them and reverse the ID bytes */
+ if (id[6] == 0x7f && id[2] == 0xc2)
+ for (i = 0; i < ARRAY_SIZE(id) / 2; i++) {
+ u8 tmp = id[i];
+ int j = ARRAY_SIZE(id) - i - 1;
+
+ id[i] = id[j];
+ id[j] = tmp;
+ }
+
+ if (id[6] == 0xc2) {
+ at25->id_len = 9;
+ switch (id[7]) {
+ case 0x21 ... 0x26:
+ chip->byte_len = BIT(id[7] - 0x21 + 4) * 1024;
+ break;
+ case 0x2a ... 0x30:
+ /* CY15B102QN ... CY15B116QN */
+ chip->byte_len = BIT(((id[7] >> 1) & 0xf) + 13);
+ break;
+ default:
+ dev_err(dev, "Error: unsupported size (id %02x)\n", id[7]);
+ return -ENODEV;
+ }
+ } else if (id[2] == 0x82 && id[3] == 0x06) {
+ at25->id_len = 8;
+ switch (id[1]) {
+ case 0x51 ... 0x54:
+ /* CY15B102QSN ... CY15B204QSN */
+ chip->byte_len = BIT(((id[0] >> 3) & 0x1F) + 9);
+ break;
+ default:
+ dev_err(dev, "Error: unsupported product id %02x\n", id[1]);
+ return -ENODEV;
+ }
+ } else {
+ dev_err(dev, "Error: unrecognized JEDEC ID format: %*ph\n",
+ FM25_MAX_ID_LEN, id);
+ return -ENODEV;
+ }
+
+ fm25_aux_read(at25, sernum, FM25_RDSN, FM25_SN_LEN);
+ /* Swap byte order */
+ for (i = 0; i < FM25_SN_LEN; i++)
+ at25->sernum[i] = sernum[FM25_SN_LEN - 1 - i];
+ }
+
+ if (chip->byte_len > 64 * 1024)
+ chip->flags |= EE_ADDR3;
+ else
+ chip->flags |= EE_ADDR2;
+
+ chip->page_size = PAGE_SIZE;
+ return 0;
+}
+
+static const struct of_device_id at25_of_match[] = {
+ { .compatible = "atmel,at25" },
+ { .compatible = "cypress,fm25" },
+ { }
+};
+MODULE_DEVICE_TABLE(of, at25_of_match);
+
+static const struct spi_device_id at25_spi_ids[] = {
+ { .name = "at25" },
+ { .name = "fm25" },
+ { }
+};
+MODULE_DEVICE_TABLE(spi, at25_spi_ids);
+
+static int at25_probe(struct spi_mem *mem)
+{
+ struct spi_device *spi = mem->spi;
+ struct spi_eeprom *pdata;
+ struct at25_data *at25;
+ bool is_fram;
+ int err;
+
+ at25 = devm_kzalloc(&spi->dev, sizeof(*at25), GFP_KERNEL);
+ if (!at25)
+ return -ENOMEM;
+
+ at25->spimem = mem;
+
+ /*
+ * Ping the chip ... the status register is pretty portable,
+ * unlike probing manufacturer IDs.
+ */
+ err = at25_wait_ready(at25);
+ if (err < 0)
+ return dev_err_probe(&spi->dev, err, "Read Status Register command failed\n");
+ if (err) {
+ dev_err(&spi->dev, "Not ready (%02x)\n", err);
+ return -ENXIO;
+ }
+
+ mutex_init(&at25->lock);
+ spi_set_drvdata(spi, at25);
+
+ is_fram = fwnode_device_is_compatible(dev_fwnode(&spi->dev), "cypress,fm25");
+
+ /* Chip description */
+ pdata = dev_get_platdata(&spi->dev);
+ if (pdata) {
+ at25->chip = *pdata;
+ } else {
+ if (is_fram)
+ err = at25_fram_to_chip(&spi->dev, &at25->chip);
+ else
+ err = at25_fw_to_chip(&spi->dev, &at25->chip);
+ if (err)
+ return err;
+ }
+
+ /* For now we only support 8/16/24 bit addressing */
+ if (at25->chip.flags & EE_ADDR1)
+ at25->addrlen = 1;
+ else if (at25->chip.flags & EE_ADDR2)
+ at25->addrlen = 2;
+ else if (at25->chip.flags & EE_ADDR3)
+ at25->addrlen = 3;
+ else {
+ dev_dbg(&spi->dev, "unsupported address type\n");
+ return -EINVAL;
+ }
+
+ at25->nvmem_config.type = is_fram ? NVMEM_TYPE_FRAM : NVMEM_TYPE_EEPROM;
+ at25->nvmem_config.name = dev_name(&spi->dev);
+ at25->nvmem_config.dev = &spi->dev;
+ at25->nvmem_config.read_only = at25->chip.flags & EE_READONLY;
+ at25->nvmem_config.root_only = true;
+ at25->nvmem_config.owner = THIS_MODULE;
+ at25->nvmem_config.compat = true;
+ at25->nvmem_config.base_dev = &spi->dev;
+ at25->nvmem_config.reg_read = at25_ee_read;
+ at25->nvmem_config.reg_write = at25_ee_write;
+ at25->nvmem_config.priv = at25;
+ at25->nvmem_config.stride = 1;
+ at25->nvmem_config.word_size = 1;
+ at25->nvmem_config.size = at25->chip.byte_len;
+
+ at25->nvmem = devm_nvmem_register(&spi->dev, &at25->nvmem_config);
+ if (IS_ERR(at25->nvmem))
+ return PTR_ERR(at25->nvmem);
+
+ dev_info(&spi->dev, "%d %s %s %s%s, pagesize %u\n",
+ (at25->chip.byte_len < 1024) ?
+ at25->chip.byte_len : (at25->chip.byte_len / 1024),
+ (at25->chip.byte_len < 1024) ? "Byte" : "KByte",
+ at25->chip.name, is_fram ? "fram" : "eeprom",
+ (at25->chip.flags & EE_READONLY) ? " (readonly)" : "",
+ at25->chip.page_size);
+ return 0;
+}
+
+/*-------------------------------------------------------------------------*/
+
+static struct spi_mem_driver at25_driver = {
+ .spidrv = {
+ .driver = {
+ .name = "at25",
+ .of_match_table = at25_of_match,
+ .dev_groups = at25_groups,
+ },
+ .id_table = at25_spi_ids,
+ },
+ .probe = at25_probe,
+};
+
+module_spi_mem_driver(at25_driver);
+
+MODULE_DESCRIPTION("Driver for most SPI EEPROMs");
+MODULE_AUTHOR("David Brownell");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/bcm-ocotp.c b/drivers/nvmem/bcm-ocotp.c
new file mode 100644
index 000000000..2490f44ca
--- /dev/null
+++ b/drivers/nvmem/bcm-ocotp.c
@@ -0,0 +1,313 @@
+// SPDX-License-Identifier: GPL-2.0-only
+// Copyright (C) 2016 Broadcom
+
+#include <linux/acpi.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+/*
+ * # of tries for OTP Status. The time to execute a command varies. The slowest
+ * commands are writes which also vary based on the # of bits turned on. Writing
+ * 0xffffffff takes ~3800 us.
+ */
+#define OTPC_RETRIES 5000
+
+/* Sequence to enable OTP program */
+#define OTPC_PROG_EN_SEQ { 0xf, 0x4, 0x8, 0xd }
+
+/* OTPC Commands */
+#define OTPC_CMD_READ 0x0
+#define OTPC_CMD_OTP_PROG_ENABLE 0x2
+#define OTPC_CMD_OTP_PROG_DISABLE 0x3
+#define OTPC_CMD_PROGRAM 0x8
+
+/* OTPC Status Bits */
+#define OTPC_STAT_CMD_DONE BIT(1)
+#define OTPC_STAT_PROG_OK BIT(2)
+
+/* OTPC register definition */
+#define OTPC_MODE_REG_OFFSET 0x0
+#define OTPC_MODE_REG_OTPC_MODE 0
+#define OTPC_COMMAND_OFFSET 0x4
+#define OTPC_COMMAND_COMMAND_WIDTH 6
+#define OTPC_CMD_START_OFFSET 0x8
+#define OTPC_CMD_START_START 0
+#define OTPC_CPU_STATUS_OFFSET 0xc
+#define OTPC_CPUADDR_REG_OFFSET 0x28
+#define OTPC_CPUADDR_REG_OTPC_CPU_ADDRESS_WIDTH 16
+#define OTPC_CPU_WRITE_REG_OFFSET 0x2c
+
+#define OTPC_CMD_MASK (BIT(OTPC_COMMAND_COMMAND_WIDTH) - 1)
+#define OTPC_ADDR_MASK (BIT(OTPC_CPUADDR_REG_OTPC_CPU_ADDRESS_WIDTH) - 1)
+
+
+struct otpc_map {
+ /* in words. */
+ u32 otpc_row_size;
+ /* 128 bit row / 4 words support. */
+ u16 data_r_offset[4];
+ /* 128 bit row / 4 words support. */
+ u16 data_w_offset[4];
+};
+
+static struct otpc_map otp_map = {
+ .otpc_row_size = 1,
+ .data_r_offset = {0x10},
+ .data_w_offset = {0x2c},
+};
+
+static struct otpc_map otp_map_v2 = {
+ .otpc_row_size = 2,
+ .data_r_offset = {0x10, 0x5c},
+ .data_w_offset = {0x2c, 0x64},
+};
+
+struct otpc_priv {
+ struct device *dev;
+ void __iomem *base;
+ const struct otpc_map *map;
+ struct nvmem_config *config;
+};
+
+static inline void set_command(void __iomem *base, u32 command)
+{
+ writel(command & OTPC_CMD_MASK, base + OTPC_COMMAND_OFFSET);
+}
+
+static inline void set_cpu_address(void __iomem *base, u32 addr)
+{
+ writel(addr & OTPC_ADDR_MASK, base + OTPC_CPUADDR_REG_OFFSET);
+}
+
+static inline void set_start_bit(void __iomem *base)
+{
+ writel(1 << OTPC_CMD_START_START, base + OTPC_CMD_START_OFFSET);
+}
+
+static inline void reset_start_bit(void __iomem *base)
+{
+ writel(0, base + OTPC_CMD_START_OFFSET);
+}
+
+static inline void write_cpu_data(void __iomem *base, u32 value)
+{
+ writel(value, base + OTPC_CPU_WRITE_REG_OFFSET);
+}
+
+static int poll_cpu_status(void __iomem *base, u32 value)
+{
+ u32 status;
+ u32 retries;
+
+ for (retries = 0; retries < OTPC_RETRIES; retries++) {
+ status = readl(base + OTPC_CPU_STATUS_OFFSET);
+ if (status & value)
+ break;
+ udelay(1);
+ }
+ if (retries == OTPC_RETRIES)
+ return -EAGAIN;
+
+ return 0;
+}
+
+static int enable_ocotp_program(void __iomem *base)
+{
+ static const u32 vals[] = OTPC_PROG_EN_SEQ;
+ int i;
+ int ret;
+
+ /* Write the magic sequence to enable programming */
+ set_command(base, OTPC_CMD_OTP_PROG_ENABLE);
+ for (i = 0; i < ARRAY_SIZE(vals); i++) {
+ write_cpu_data(base, vals[i]);
+ set_start_bit(base);
+ ret = poll_cpu_status(base, OTPC_STAT_CMD_DONE);
+ reset_start_bit(base);
+ if (ret)
+ return ret;
+ }
+
+ return poll_cpu_status(base, OTPC_STAT_PROG_OK);
+}
+
+static int disable_ocotp_program(void __iomem *base)
+{
+ int ret;
+
+ set_command(base, OTPC_CMD_OTP_PROG_DISABLE);
+ set_start_bit(base);
+ ret = poll_cpu_status(base, OTPC_STAT_PROG_OK);
+ reset_start_bit(base);
+
+ return ret;
+}
+
+static int bcm_otpc_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct otpc_priv *priv = context;
+ u32 *buf = val;
+ u32 bytes_read;
+ u32 address = offset / priv->config->word_size;
+ int i, ret;
+
+ for (bytes_read = 0; bytes_read < bytes;) {
+ set_command(priv->base, OTPC_CMD_READ);
+ set_cpu_address(priv->base, address++);
+ set_start_bit(priv->base);
+ ret = poll_cpu_status(priv->base, OTPC_STAT_CMD_DONE);
+ if (ret) {
+ dev_err(priv->dev, "otp read error: 0x%x", ret);
+ return -EIO;
+ }
+
+ for (i = 0; i < priv->map->otpc_row_size; i++) {
+ *buf++ = readl(priv->base +
+ priv->map->data_r_offset[i]);
+ bytes_read += sizeof(*buf);
+ }
+
+ reset_start_bit(priv->base);
+ }
+
+ return 0;
+}
+
+static int bcm_otpc_write(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct otpc_priv *priv = context;
+ u32 *buf = val;
+ u32 bytes_written;
+ u32 address = offset / priv->config->word_size;
+ int i, ret;
+
+ if (offset % priv->config->word_size)
+ return -EINVAL;
+
+ ret = enable_ocotp_program(priv->base);
+ if (ret)
+ return -EIO;
+
+ for (bytes_written = 0; bytes_written < bytes;) {
+ set_command(priv->base, OTPC_CMD_PROGRAM);
+ set_cpu_address(priv->base, address++);
+ for (i = 0; i < priv->map->otpc_row_size; i++) {
+ writel(*buf, priv->base + priv->map->data_w_offset[i]);
+ buf++;
+ bytes_written += sizeof(*buf);
+ }
+ set_start_bit(priv->base);
+ ret = poll_cpu_status(priv->base, OTPC_STAT_CMD_DONE);
+ reset_start_bit(priv->base);
+ if (ret) {
+ dev_err(priv->dev, "otp write error: 0x%x", ret);
+ return -EIO;
+ }
+ }
+
+ disable_ocotp_program(priv->base);
+
+ return 0;
+}
+
+static struct nvmem_config bcm_otpc_nvmem_config = {
+ .name = "bcm-ocotp",
+ .read_only = false,
+ .word_size = 4,
+ .stride = 4,
+ .reg_read = bcm_otpc_read,
+ .reg_write = bcm_otpc_write,
+};
+
+static const struct of_device_id bcm_otpc_dt_ids[] = {
+ { .compatible = "brcm,ocotp", .data = &otp_map },
+ { .compatible = "brcm,ocotp-v2", .data = &otp_map_v2 },
+ { },
+};
+MODULE_DEVICE_TABLE(of, bcm_otpc_dt_ids);
+
+static const struct acpi_device_id bcm_otpc_acpi_ids[] __maybe_unused = {
+ { .id = "BRCM0700", .driver_data = (kernel_ulong_t)&otp_map },
+ { .id = "BRCM0701", .driver_data = (kernel_ulong_t)&otp_map_v2 },
+ { /* sentinel */ }
+};
+MODULE_DEVICE_TABLE(acpi, bcm_otpc_acpi_ids);
+
+static int bcm_otpc_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct otpc_priv *priv;
+ struct nvmem_device *nvmem;
+ int err;
+ u32 num_words;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->map = device_get_match_data(dev);
+ if (!priv->map)
+ return -ENODEV;
+
+ /* Get OTP base address register. */
+ priv->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(priv->base)) {
+ dev_err(dev, "unable to map I/O memory\n");
+ return PTR_ERR(priv->base);
+ }
+
+ /* Enable CPU access to OTPC. */
+ writel(readl(priv->base + OTPC_MODE_REG_OFFSET) |
+ BIT(OTPC_MODE_REG_OTPC_MODE),
+ priv->base + OTPC_MODE_REG_OFFSET);
+ reset_start_bit(priv->base);
+
+ /* Read size of memory in words. */
+ err = device_property_read_u32(dev, "brcm,ocotp-size", &num_words);
+ if (err) {
+ dev_err(dev, "size parameter not specified\n");
+ return -EINVAL;
+ } else if (num_words == 0) {
+ dev_err(dev, "size must be > 0\n");
+ return -EINVAL;
+ }
+
+ bcm_otpc_nvmem_config.size = 4 * num_words;
+ bcm_otpc_nvmem_config.dev = dev;
+ bcm_otpc_nvmem_config.priv = priv;
+
+ if (priv->map == &otp_map_v2) {
+ bcm_otpc_nvmem_config.word_size = 8;
+ bcm_otpc_nvmem_config.stride = 8;
+ }
+
+ priv->config = &bcm_otpc_nvmem_config;
+
+ nvmem = devm_nvmem_register(dev, &bcm_otpc_nvmem_config);
+ if (IS_ERR(nvmem)) {
+ dev_err(dev, "error registering nvmem config\n");
+ return PTR_ERR(nvmem);
+ }
+
+ return 0;
+}
+
+static struct platform_driver bcm_otpc_driver = {
+ .probe = bcm_otpc_probe,
+ .driver = {
+ .name = "brcm-otpc",
+ .of_match_table = bcm_otpc_dt_ids,
+ .acpi_match_table = ACPI_PTR(bcm_otpc_acpi_ids),
+ },
+};
+module_platform_driver(bcm_otpc_driver);
+
+MODULE_DESCRIPTION("Broadcom OTPC driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/brcm_nvram.c b/drivers/nvmem/brcm_nvram.c
new file mode 100644
index 000000000..9f77aee37
--- /dev/null
+++ b/drivers/nvmem/brcm_nvram.c
@@ -0,0 +1,267 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (C) 2021 Rafał Miłecki <rafal@milecki.pl>
+ */
+
+#include <linux/bcm47xx_nvram.h>
+#include <linux/etherdevice.h>
+#include <linux/hex.h>
+#include <linux/if_ether.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+#define NVRAM_MAGIC "FLSH"
+
+/**
+ * struct brcm_nvram - driver state internal struct
+ *
+ * @dev: NVMEM device pointer
+ * @nvmem_size: Size of the whole space available for NVRAM
+ * @data: NVRAM data copy stored to avoid poking underlying flash controller
+ * @data_len: NVRAM data size
+ * @padding_byte: Padding value used to fill remaining space
+ * @cells: Array of discovered NVMEM cells
+ * @ncells: Number of elements in cells
+ */
+struct brcm_nvram {
+ struct device *dev;
+ size_t nvmem_size;
+ uint8_t *data;
+ size_t data_len;
+ uint8_t padding_byte;
+ struct nvmem_cell_info *cells;
+ int ncells;
+};
+
+struct brcm_nvram_header {
+ char magic[4];
+ __le32 len;
+ __le32 crc_ver_init; /* 0:7 crc, 8:15 ver, 16:31 sdram_init */
+ __le32 config_refresh; /* 0:15 sdram_config, 16:31 sdram_refresh */
+ __le32 config_ncdl; /* ncdl values for memc */
+};
+
+static int brcm_nvram_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct brcm_nvram *priv = context;
+ size_t to_copy;
+
+ if (offset + bytes > priv->data_len)
+ to_copy = max_t(ssize_t, (ssize_t)priv->data_len - offset, 0);
+ else
+ to_copy = bytes;
+
+ memcpy(val, priv->data + offset, to_copy);
+
+ memset((uint8_t *)val + to_copy, priv->padding_byte, bytes - to_copy);
+
+ return 0;
+}
+
+static int brcm_nvram_copy_data(struct brcm_nvram *priv, struct platform_device *pdev)
+{
+ struct resource *res;
+ void __iomem *base;
+
+ base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(base))
+ return PTR_ERR(base);
+
+ priv->nvmem_size = resource_size(res);
+
+ priv->padding_byte = readb(base + priv->nvmem_size - 1);
+ for (priv->data_len = priv->nvmem_size;
+ priv->data_len;
+ priv->data_len--) {
+ if (readb(base + priv->data_len - 1) != priv->padding_byte)
+ break;
+ }
+ WARN(priv->data_len > SZ_128K, "Unexpected (big) NVRAM size: %zu B\n", priv->data_len);
+
+ if (priv->data_len < sizeof(struct brcm_nvram_header)) {
+ dev_err(priv->dev, "NVRAM data too small (%zu)\n", priv->data_len);
+ return -EINVAL;
+ }
+
+ priv->data = devm_kzalloc(priv->dev, priv->data_len, GFP_KERNEL);
+ if (!priv->data)
+ return -ENOMEM;
+
+ memcpy_fromio(priv->data, base, priv->data_len);
+
+ bcm47xx_nvram_init_from_iomem(base, priv->data_len);
+
+ return 0;
+}
+
+static int brcm_nvram_read_post_process_macaddr(void *context, const char *id, int index,
+ unsigned int offset, void *buf, size_t bytes)
+{
+ u8 mac[ETH_ALEN];
+
+ if (bytes != MAC_ADDR_STR_LEN)
+ return -EINVAL;
+
+ if (!mac_pton(buf, mac))
+ return -EINVAL;
+
+ if (index)
+ eth_addr_add(mac, index);
+
+ ether_addr_copy(buf, mac);
+
+ return 0;
+}
+
+static int brcm_nvram_add_cells(struct brcm_nvram *priv, uint8_t *data,
+ size_t len)
+{
+ struct device *dev = priv->dev;
+ char *var, *value;
+ uint8_t tmp;
+ int idx;
+ int err = 0;
+
+ tmp = priv->data[len - 1];
+ priv->data[len - 1] = '\0';
+
+ priv->ncells = 0;
+ for (var = data + sizeof(struct brcm_nvram_header);
+ var < (char *)data + len && *var;
+ var += strlen(var) + 1) {
+ priv->ncells++;
+ }
+
+ priv->cells = devm_kcalloc(dev, priv->ncells, sizeof(*priv->cells), GFP_KERNEL);
+ if (!priv->cells) {
+ err = -ENOMEM;
+ goto out;
+ }
+
+ for (var = data + sizeof(struct brcm_nvram_header), idx = 0;
+ var < (char *)data + len && *var;
+ var = value + strlen(value) + 1, idx++) {
+ char *eq, *name;
+
+ eq = strchr(var, '=');
+ if (!eq)
+ break;
+ *eq = '\0';
+ name = devm_kstrdup(dev, var, GFP_KERNEL);
+ *eq = '=';
+ if (!name) {
+ err = -ENOMEM;
+ goto out;
+ }
+ value = eq + 1;
+
+ priv->cells[idx].name = name;
+ priv->cells[idx].offset = value - (char *)data;
+ priv->cells[idx].bytes = strlen(value);
+ priv->cells[idx].np = of_get_child_by_name(dev->of_node, priv->cells[idx].name);
+ if (!strcmp(name, "et0macaddr") ||
+ !strcmp(name, "et1macaddr") ||
+ !strcmp(name, "et2macaddr")) {
+ priv->cells[idx].raw_len = strlen(value);
+ priv->cells[idx].bytes = ETH_ALEN;
+ priv->cells[idx].read_post_process = brcm_nvram_read_post_process_macaddr;
+ }
+ }
+
+out:
+ priv->data[len - 1] = tmp;
+ return err;
+}
+
+static int brcm_nvram_parse(struct brcm_nvram *priv)
+{
+ struct brcm_nvram_header *header = (struct brcm_nvram_header *)priv->data;
+ struct device *dev = priv->dev;
+ size_t len;
+ int err;
+
+ if (memcmp(header->magic, NVRAM_MAGIC, 4)) {
+ dev_err(dev, "Invalid NVRAM magic\n");
+ return -EINVAL;
+ }
+
+ len = le32_to_cpu(header->len);
+ if (len < sizeof(*header)) {
+ dev_err(dev, "NVRAM length (%zd) too small\n", len);
+ return -EINVAL;
+ }
+ if (len > priv->data_len) {
+ dev_err(dev, "NVRAM length (%zd) exceeds data size (%zd)\n", len,
+ priv->data_len);
+ return -EINVAL;
+ }
+
+ err = brcm_nvram_add_cells(priv, priv->data, len);
+ if (err)
+ dev_err(dev, "Failed to add cells: %d\n", err);
+
+ return 0;
+}
+
+static int brcm_nvram_probe(struct platform_device *pdev)
+{
+ struct nvmem_config config = {
+ .name = "brcm-nvram",
+ .reg_read = brcm_nvram_read,
+ };
+ struct device *dev = &pdev->dev;
+ struct brcm_nvram *priv;
+ int err;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+ priv->dev = dev;
+
+ err = brcm_nvram_copy_data(priv, pdev);
+ if (err)
+ return err;
+
+ err = brcm_nvram_parse(priv);
+ if (err)
+ return err;
+
+ config.dev = dev;
+ config.cells = priv->cells;
+ config.ncells = priv->ncells;
+ config.priv = priv;
+ config.size = priv->nvmem_size;
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(dev, &config));
+}
+
+static const struct of_device_id brcm_nvram_of_match_table[] = {
+ { .compatible = "brcm,nvram", },
+ {},
+};
+
+static struct platform_driver brcm_nvram_driver = {
+ .probe = brcm_nvram_probe,
+ .driver = {
+ .name = "brcm_nvram",
+ .of_match_table = brcm_nvram_of_match_table,
+ },
+};
+
+static int __init brcm_nvram_init(void)
+{
+ return platform_driver_register(&brcm_nvram_driver);
+}
+
+subsys_initcall_sync(brcm_nvram_init);
+
+MODULE_AUTHOR("Rafał Miłecki");
+MODULE_DESCRIPTION("Broadcom I/O-mapped NVRAM support driver");
+MODULE_LICENSE("GPL");
+MODULE_DEVICE_TABLE(of, brcm_nvram_of_match_table);
diff --git a/drivers/nvmem/core.c b/drivers/nvmem/core.c
new file mode 100644
index 000000000..0556d1401
--- /dev/null
+++ b/drivers/nvmem/core.c
@@ -0,0 +1,2179 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * nvmem framework core.
+ *
+ * Copyright (C) 2015 Srinivas Kandagatla <srinivas.kandagatla@linaro.org>
+ * Copyright (C) 2013 Maxime Ripard <maxime.ripard@free-electrons.com>
+ */
+
+#include <linux/cleanup.h>
+#include <linux/device.h>
+#include <linux/export.h>
+#include <linux/fs.h>
+#include <linux/idr.h>
+#include <linux/init.h>
+#include <linux/kref.h>
+#include <linux/module.h>
+#include <linux/mutex.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/gpio/consumer.h>
+#include <linux/of.h>
+#include <linux/slab.h>
+
+#include "internals.h"
+
+#define to_nvmem_device(d) container_of(d, struct nvmem_device, dev)
+
+#define FLAG_COMPAT BIT(0)
+struct nvmem_cell_entry {
+ const char *name;
+ int offset;
+ size_t raw_len;
+ int bytes;
+ int bit_offset;
+ int nbits;
+ nvmem_cell_post_process_t read_post_process;
+ void *priv;
+ struct device_node *np;
+ struct nvmem_device *nvmem;
+ struct list_head node;
+};
+
+struct nvmem_cell {
+ struct nvmem_cell_entry *entry;
+ const char *id;
+ int index;
+};
+
+static DEFINE_MUTEX(nvmem_mutex);
+static DEFINE_IDA(nvmem_ida);
+
+static DEFINE_MUTEX(nvmem_lookup_mutex);
+static LIST_HEAD(nvmem_lookup_list);
+
+static BLOCKING_NOTIFIER_HEAD(nvmem_notifier);
+
+static int __nvmem_reg_read(struct nvmem_device *nvmem, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct nvmem_operations *ops = nvmem->ops;
+
+ if (!ops->reg_read)
+ return -EOPNOTSUPP;
+
+ return ops->reg_read(nvmem->priv, offset, val, bytes);
+}
+
+static int __nvmem_reg_write(struct nvmem_device *nvmem, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct nvmem_operations *ops = nvmem->ops;
+ int ret, wr_ok;
+
+ if (!ops->reg_write)
+ return -EOPNOTSUPP;
+
+ ret = gpiod_set_value_cansleep(nvmem->wp_gpio, 0);
+ if (ret)
+ return ret;
+
+ wr_ok = ops->reg_write(nvmem->priv, offset, val, bytes);
+
+ ret = gpiod_set_value_cansleep(nvmem->wp_gpio, 1);
+ if (ret)
+ return ret;
+
+ return wr_ok;
+}
+
+static int nvmem_access_with_keepouts(struct nvmem_device *nvmem,
+ unsigned int offset, void *val,
+ size_t bytes, int write)
+{
+
+ unsigned int end = offset + bytes;
+ unsigned int kend, ksize;
+ const struct nvmem_keepout *keepout = nvmem->keepout;
+ const struct nvmem_keepout *keepoutend = keepout + nvmem->nkeepout;
+ int rc;
+
+ /*
+ * Skip all keepouts before the range being accessed.
+ * Keepouts are sorted.
+ */
+ while ((keepout < keepoutend) && (keepout->end <= offset))
+ keepout++;
+
+ while ((offset < end) && (keepout < keepoutend)) {
+ /* Access the valid portion before the keepout. */
+ if (offset < keepout->start) {
+ kend = min(end, keepout->start);
+ ksize = kend - offset;
+ if (write)
+ rc = __nvmem_reg_write(nvmem, offset, val, ksize);
+ else
+ rc = __nvmem_reg_read(nvmem, offset, val, ksize);
+
+ if (rc)
+ return rc;
+
+ offset += ksize;
+ val += ksize;
+ }
+
+ /*
+ * Now we're aligned to the start of this keepout zone. Go
+ * through it.
+ */
+ kend = min(end, keepout->end);
+ ksize = kend - offset;
+ if (!write)
+ memset(val, keepout->value, ksize);
+
+ val += ksize;
+ offset += ksize;
+ keepout++;
+ }
+
+ /*
+ * If we ran out of keepouts but there's still stuff to do, send it
+ * down directly
+ */
+ if (offset < end) {
+ ksize = end - offset;
+ if (write)
+ return __nvmem_reg_write(nvmem, offset, val, ksize);
+ else
+ return __nvmem_reg_read(nvmem, offset, val, ksize);
+ }
+
+ return 0;
+}
+
+static int nvmem_reg_read(struct nvmem_device *nvmem, unsigned int offset,
+ void *val, size_t bytes)
+{
+ if (!nvmem->nkeepout)
+ return __nvmem_reg_read(nvmem, offset, val, bytes);
+
+ return nvmem_access_with_keepouts(nvmem, offset, val, bytes, false);
+}
+
+static int nvmem_reg_write(struct nvmem_device *nvmem, unsigned int offset,
+ void *val, size_t bytes)
+{
+ if (!nvmem->nkeepout)
+ return __nvmem_reg_write(nvmem, offset, val, bytes);
+
+ return nvmem_access_with_keepouts(nvmem, offset, val, bytes, true);
+}
+
+#ifdef CONFIG_NVMEM_SYSFS
+static const char * const nvmem_type_str[] = {
+ [NVMEM_TYPE_UNKNOWN] = "Unknown",
+ [NVMEM_TYPE_EEPROM] = "EEPROM",
+ [NVMEM_TYPE_OTP] = "OTP",
+ [NVMEM_TYPE_BATTERY_BACKED] = "Battery backed",
+ [NVMEM_TYPE_FRAM] = "FRAM",
+};
+
+#ifdef CONFIG_DEBUG_LOCK_ALLOC
+static struct lock_class_key eeprom_lock_key;
+#endif
+
+static ssize_t type_show(struct device *dev,
+ struct device_attribute *attr, char *buf)
+{
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+
+ return sysfs_emit(buf, "%s\n", nvmem_type_str[nvmem->type]);
+}
+
+static DEVICE_ATTR_RO(type);
+
+static ssize_t force_ro_show(struct device *dev, struct device_attribute *attr,
+ char *buf)
+{
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+
+ return sysfs_emit(buf, "%d\n", nvmem->read_only);
+}
+
+static ssize_t force_ro_store(struct device *dev, struct device_attribute *attr,
+ const char *buf, size_t count)
+{
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+ int ret = kstrtobool(buf, &nvmem->read_only);
+
+ if (ret < 0)
+ return ret;
+
+ return count;
+}
+
+static DEVICE_ATTR_RW(force_ro);
+
+static struct attribute *nvmem_attrs[] = {
+ &dev_attr_force_ro.attr,
+ &dev_attr_type.attr,
+ NULL,
+};
+
+static ssize_t bin_attr_nvmem_read(struct file *filp, struct kobject *kobj,
+ const struct bin_attribute *attr, char *buf,
+ loff_t pos, size_t count)
+{
+ struct device *dev;
+ struct nvmem_device *nvmem;
+ int rc;
+
+ if (attr->private)
+ dev = attr->private;
+ else
+ dev = kobj_to_dev(kobj);
+ nvmem = to_nvmem_device(dev);
+
+ if (!IS_ALIGNED(pos, nvmem->stride))
+ return -EINVAL;
+
+ if (count < nvmem->word_size)
+ return -EINVAL;
+
+ count = round_down(count, nvmem->word_size);
+
+ rc = nvmem_reg_read(nvmem, pos, buf, count);
+ if (rc) {
+ if (rc == -EOPNOTSUPP)
+ return -EPERM;
+ return rc;
+ }
+
+ return count;
+}
+
+static ssize_t bin_attr_nvmem_write(struct file *filp, struct kobject *kobj,
+ const struct bin_attribute *attr, char *buf,
+ loff_t pos, size_t count)
+{
+ struct device *dev;
+ struct nvmem_device *nvmem;
+ int rc;
+
+ if (attr->private)
+ dev = attr->private;
+ else
+ dev = kobj_to_dev(kobj);
+ nvmem = to_nvmem_device(dev);
+
+ if (!IS_ALIGNED(pos, nvmem->stride))
+ return -EINVAL;
+
+ if (count < nvmem->word_size)
+ return -EINVAL;
+
+ count = round_down(count, nvmem->word_size);
+
+ if (nvmem->read_only)
+ return -EPERM;
+
+ rc = nvmem_reg_write(nvmem, pos, buf, count);
+ if (rc) {
+ if (rc == -EOPNOTSUPP)
+ return -EPERM;
+ return rc;
+ }
+
+ return count;
+}
+
+static umode_t nvmem_bin_attr_get_umode(struct nvmem_device *nvmem)
+{
+ struct nvmem_operations *ops = nvmem->ops;
+
+ umode_t mode = 0400;
+
+ if (!nvmem->root_only)
+ mode |= 0044;
+
+ if (!nvmem->read_only)
+ mode |= 0200;
+
+ if (!ops->reg_write)
+ mode &= ~0200;
+
+ if (!ops->reg_read)
+ mode &= ~0444;
+
+ return mode;
+}
+
+static umode_t nvmem_bin_attr_is_visible(struct kobject *kobj,
+ const struct bin_attribute *attr,
+ int i)
+{
+ struct device *dev = kobj_to_dev(kobj);
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+
+ return nvmem_bin_attr_get_umode(nvmem);
+}
+
+static size_t nvmem_bin_attr_size(struct kobject *kobj,
+ const struct bin_attribute *attr,
+ int i)
+{
+ struct device *dev = kobj_to_dev(kobj);
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+
+ return nvmem->size;
+}
+
+static umode_t nvmem_attr_is_visible(struct kobject *kobj,
+ struct attribute *attr, int i)
+{
+ struct device *dev = kobj_to_dev(kobj);
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+ struct nvmem_operations *ops = nvmem->ops;
+
+ /*
+ * If the device has no .reg_write operation, do not allow
+ * configuration as read-write.
+ * If the device is set as read-only by configuration, it
+ * can be forced into read-write mode using the 'force_ro'
+ * attribute.
+ */
+ if (attr == &dev_attr_force_ro.attr && !ops->reg_write)
+ return 0; /* Attribute not visible */
+
+ return attr->mode;
+}
+
+static struct nvmem_cell *nvmem_create_cell(struct nvmem_cell_entry *entry,
+ const char *id, int index);
+
+static ssize_t nvmem_cell_attr_read(struct file *filp, struct kobject *kobj,
+ const struct bin_attribute *attr, char *buf,
+ loff_t pos, size_t count)
+{
+ struct nvmem_cell_entry *entry;
+ struct nvmem_cell *cell = NULL;
+ size_t cell_sz, read_len;
+ void *content;
+
+ entry = attr->private;
+ cell = nvmem_create_cell(entry, entry->name, 0);
+ if (IS_ERR(cell))
+ return PTR_ERR(cell);
+
+ if (!cell)
+ return -EINVAL;
+
+ content = nvmem_cell_read(cell, &cell_sz);
+ if (IS_ERR(content)) {
+ read_len = PTR_ERR(content);
+ goto destroy_cell;
+ }
+
+ read_len = min_t(unsigned int, cell_sz - pos, count);
+ memcpy(buf, content + pos, read_len);
+ kfree(content);
+
+destroy_cell:
+ kfree_const(cell->id);
+ kfree(cell);
+
+ return read_len;
+}
+
+/* default read/write permissions */
+static const struct bin_attribute bin_attr_rw_nvmem = {
+ .attr = {
+ .name = "nvmem",
+ .mode = 0644,
+ },
+ .read = bin_attr_nvmem_read,
+ .write = bin_attr_nvmem_write,
+};
+
+static const struct bin_attribute *const nvmem_bin_attributes[] = {
+ &bin_attr_rw_nvmem,
+ NULL,
+};
+
+static const struct attribute_group nvmem_bin_group = {
+ .bin_attrs = nvmem_bin_attributes,
+ .attrs = nvmem_attrs,
+ .is_bin_visible = nvmem_bin_attr_is_visible,
+ .bin_size = nvmem_bin_attr_size,
+ .is_visible = nvmem_attr_is_visible,
+};
+
+static const struct attribute_group *nvmem_dev_groups[] = {
+ &nvmem_bin_group,
+ NULL,
+};
+
+static const struct bin_attribute bin_attr_nvmem_eeprom_compat = {
+ .attr = {
+ .name = "eeprom",
+ },
+ .read = bin_attr_nvmem_read,
+ .write = bin_attr_nvmem_write,
+};
+
+/*
+ * nvmem_setup_compat() - Create an additional binary entry in
+ * drivers sys directory, to be backwards compatible with the older
+ * drivers/misc/eeprom drivers.
+ */
+static int nvmem_sysfs_setup_compat(struct nvmem_device *nvmem,
+ const struct nvmem_config *config)
+{
+ int rval;
+
+ if (!config->compat)
+ return 0;
+
+ if (!config->base_dev)
+ return -EINVAL;
+
+ nvmem->eeprom = bin_attr_nvmem_eeprom_compat;
+ if (config->type == NVMEM_TYPE_FRAM)
+ nvmem->eeprom.attr.name = "fram";
+ nvmem->eeprom.attr.mode = nvmem_bin_attr_get_umode(nvmem);
+ nvmem->eeprom.size = nvmem->size;
+#ifdef CONFIG_DEBUG_LOCK_ALLOC
+ nvmem->eeprom.attr.key = &eeprom_lock_key;
+#endif
+ nvmem->eeprom.private = &nvmem->dev;
+ nvmem->base_dev = config->base_dev;
+
+ rval = device_create_bin_file(nvmem->base_dev, &nvmem->eeprom);
+ if (rval) {
+ dev_err(&nvmem->dev,
+ "Failed to create eeprom binary file %d\n", rval);
+ return rval;
+ }
+
+ nvmem->flags |= FLAG_COMPAT;
+
+ return 0;
+}
+
+static void nvmem_sysfs_remove_compat(struct nvmem_device *nvmem)
+{
+ if (nvmem->flags & FLAG_COMPAT)
+ device_remove_bin_file(nvmem->base_dev, &nvmem->eeprom);
+}
+
+static int nvmem_populate_sysfs_cells(struct nvmem_device *nvmem)
+{
+ struct attribute_group group = {
+ .name = "cells",
+ };
+ struct nvmem_cell_entry *entry;
+ const struct bin_attribute **pattrs;
+ struct bin_attribute *attrs;
+ unsigned int ncells = 0, i = 0;
+ int ret;
+
+ guard(mutex)(&nvmem_mutex);
+
+ if (list_empty(&nvmem->cells) || nvmem->sysfs_cells_populated)
+ return 0;
+
+ /* Allocate an array of attributes with a sentinel */
+ ncells = list_count_nodes(&nvmem->cells);
+ pattrs = devm_kcalloc(&nvmem->dev, ncells + 1,
+ sizeof(struct bin_attribute *), GFP_KERNEL);
+ if (!pattrs)
+ return -ENOMEM;
+
+ attrs = devm_kcalloc(&nvmem->dev, ncells, sizeof(struct bin_attribute), GFP_KERNEL);
+ if (!attrs)
+ return -ENOMEM;
+
+ /* Initialize each attribute to take the name and size of the cell */
+ list_for_each_entry(entry, &nvmem->cells, node) {
+ sysfs_bin_attr_init(&attrs[i]);
+ attrs[i].attr.name = devm_kasprintf(&nvmem->dev, GFP_KERNEL,
+ "%s@%x,%x", entry->name,
+ entry->offset,
+ entry->bit_offset);
+ attrs[i].attr.mode = 0444 & nvmem_bin_attr_get_umode(nvmem);
+ attrs[i].size = entry->bytes;
+ attrs[i].read = &nvmem_cell_attr_read;
+ attrs[i].private = entry;
+ if (!attrs[i].attr.name)
+ return -ENOMEM;
+
+ pattrs[i] = &attrs[i];
+ i++;
+ }
+
+ group.bin_attrs = pattrs;
+
+ ret = device_add_group(&nvmem->dev, &group);
+ if (ret)
+ return ret;
+
+ nvmem->sysfs_cells_populated = true;
+
+ return ret;
+}
+
+#else /* CONFIG_NVMEM_SYSFS */
+
+static int nvmem_sysfs_setup_compat(struct nvmem_device *nvmem,
+ const struct nvmem_config *config)
+{
+ return -ENOSYS;
+}
+static void nvmem_sysfs_remove_compat(struct nvmem_device *nvmem)
+{
+}
+
+#endif /* CONFIG_NVMEM_SYSFS */
+
+static void nvmem_release(struct device *dev)
+{
+ struct nvmem_device *nvmem = to_nvmem_device(dev);
+
+ ida_free(&nvmem_ida, nvmem->id);
+ gpiod_put(nvmem->wp_gpio);
+ kfree(nvmem->ops);
+ kfree(nvmem);
+}
+
+static const struct device_type nvmem_provider_type = {
+ .release = nvmem_release,
+};
+
+static const struct bus_type nvmem_bus_type = {
+ .name = "nvmem",
+};
+
+static void nvmem_cell_entry_drop(struct nvmem_cell_entry *cell)
+{
+ blocking_notifier_call_chain(&nvmem_notifier, NVMEM_CELL_REMOVE, cell);
+ scoped_guard(mutex, &nvmem_mutex)
+ list_del(&cell->node);
+ of_node_put(cell->np);
+ kfree_const(cell->name);
+ kfree(cell);
+}
+
+static void nvmem_device_remove_all_cells(const struct nvmem_device *nvmem)
+{
+ struct nvmem_cell_entry *cell, *p;
+
+ list_for_each_entry_safe(cell, p, &nvmem->cells, node)
+ nvmem_cell_entry_drop(cell);
+}
+
+static void nvmem_cell_entry_add(struct nvmem_cell_entry *cell)
+{
+ scoped_guard(mutex, &nvmem_mutex)
+ list_add_tail(&cell->node, &cell->nvmem->cells);
+ blocking_notifier_call_chain(&nvmem_notifier, NVMEM_CELL_ADD, cell);
+}
+
+static int nvmem_cell_info_to_nvmem_cell_entry_nodup(struct nvmem_device *nvmem,
+ const struct nvmem_cell_info *info,
+ struct nvmem_cell_entry *cell)
+{
+ cell->nvmem = nvmem;
+ cell->offset = info->offset;
+ cell->raw_len = info->raw_len ?: info->bytes;
+ cell->bytes = info->bytes;
+ cell->name = info->name;
+ cell->read_post_process = info->read_post_process;
+ cell->priv = info->priv;
+
+ cell->bit_offset = info->bit_offset;
+ cell->nbits = info->nbits;
+ cell->np = info->np;
+
+ if (cell->nbits) {
+ cell->bytes = DIV_ROUND_UP(cell->nbits + cell->bit_offset,
+ BITS_PER_BYTE);
+ cell->raw_len = ALIGN(cell->bytes, nvmem->word_size);
+ }
+
+ if (!IS_ALIGNED(cell->offset, nvmem->stride)) {
+ dev_err(&nvmem->dev,
+ "cell %s unaligned to nvmem stride %d\n",
+ cell->name ?: "<unknown>", nvmem->stride);
+ return -EINVAL;
+ }
+
+ if (!IS_ALIGNED(cell->raw_len, nvmem->word_size)) {
+ dev_err(&nvmem->dev,
+ "cell %s raw len %zd unaligned to nvmem word size %d\n",
+ cell->name ?: "<unknown>", cell->raw_len,
+ nvmem->word_size);
+
+ if (info->raw_len)
+ return -EINVAL;
+
+ cell->raw_len = ALIGN(cell->raw_len, nvmem->word_size);
+ }
+
+ return 0;
+}
+
+static int nvmem_cell_info_to_nvmem_cell_entry(struct nvmem_device *nvmem,
+ const struct nvmem_cell_info *info,
+ struct nvmem_cell_entry *cell)
+{
+ int err;
+
+ err = nvmem_cell_info_to_nvmem_cell_entry_nodup(nvmem, info, cell);
+ if (err)
+ return err;
+
+ cell->name = kstrdup_const(info->name, GFP_KERNEL);
+ if (!cell->name)
+ return -ENOMEM;
+
+ return 0;
+}
+
+/**
+ * nvmem_add_one_cell() - Add one cell information to an nvmem device
+ *
+ * @nvmem: nvmem device to add cells to.
+ * @info: nvmem cell info to add to the device
+ *
+ * Return: 0 or negative error code on failure.
+ */
+int nvmem_add_one_cell(struct nvmem_device *nvmem,
+ const struct nvmem_cell_info *info)
+{
+ struct nvmem_cell_entry *cell;
+ int rval;
+
+ cell = kzalloc_obj(*cell);
+ if (!cell)
+ return -ENOMEM;
+
+ rval = nvmem_cell_info_to_nvmem_cell_entry(nvmem, info, cell);
+ if (rval) {
+ kfree(cell);
+ return rval;
+ }
+
+ nvmem_cell_entry_add(cell);
+
+ return 0;
+}
+EXPORT_SYMBOL_GPL(nvmem_add_one_cell);
+
+/**
+ * nvmem_add_cells() - Add cell information to an nvmem device
+ *
+ * @nvmem: nvmem device to add cells to.
+ * @info: nvmem cell info to add to the device
+ * @ncells: number of cells in info
+ *
+ * Return: 0 or negative error code on failure.
+ */
+static int nvmem_add_cells(struct nvmem_device *nvmem,
+ const struct nvmem_cell_info *info,
+ int ncells)
+{
+ int i, rval;
+
+ for (i = 0; i < ncells; i++) {
+ rval = nvmem_add_one_cell(nvmem, &info[i]);
+ if (rval)
+ return rval;
+ }
+
+ return 0;
+}
+
+/**
+ * nvmem_register_notifier() - Register a notifier block for nvmem events.
+ *
+ * @nb: notifier block to be called on nvmem events.
+ *
+ * Return: 0 on success, negative error number on failure.
+ */
+int nvmem_register_notifier(struct notifier_block *nb)
+{
+ return blocking_notifier_chain_register(&nvmem_notifier, nb);
+}
+EXPORT_SYMBOL_GPL(nvmem_register_notifier);
+
+/**
+ * nvmem_unregister_notifier() - Unregister a notifier block for nvmem events.
+ *
+ * @nb: notifier block to be unregistered.
+ *
+ * Return: 0 on success, negative error number on failure.
+ */
+int nvmem_unregister_notifier(struct notifier_block *nb)
+{
+ return blocking_notifier_chain_unregister(&nvmem_notifier, nb);
+}
+EXPORT_SYMBOL_GPL(nvmem_unregister_notifier);
+
+static struct nvmem_cell_entry *
+nvmem_find_cell_entry_by_name(struct nvmem_device *nvmem, const char *cell_id)
+{
+ struct nvmem_cell_entry *iter, *cell = NULL;
+
+ guard(mutex)(&nvmem_mutex);
+
+ list_for_each_entry(iter, &nvmem->cells, node) {
+ if (strcmp(cell_id, iter->name) == 0) {
+ cell = iter;
+ break;
+ }
+ }
+
+ return cell;
+}
+
+static int nvmem_validate_keepouts(struct nvmem_device *nvmem)
+{
+ unsigned int cur = 0;
+ const struct nvmem_keepout *keepout = nvmem->keepout;
+ const struct nvmem_keepout *keepoutend = keepout + nvmem->nkeepout;
+
+ while (keepout < keepoutend) {
+ /* Ensure keepouts are sorted and don't overlap. */
+ if (keepout->start < cur) {
+ dev_err(&nvmem->dev,
+ "Keepout regions aren't sorted or overlap.\n");
+
+ return -ERANGE;
+ }
+
+ if (keepout->end < keepout->start) {
+ dev_err(&nvmem->dev,
+ "Invalid keepout region.\n");
+
+ return -EINVAL;
+ }
+
+ /*
+ * Validate keepouts (and holes between) don't violate
+ * word_size constraints.
+ */
+ if ((keepout->end - keepout->start < nvmem->word_size) ||
+ ((keepout->start != cur) &&
+ (keepout->start - cur < nvmem->word_size))) {
+
+ dev_err(&nvmem->dev,
+ "Keepout regions violate word_size constraints.\n");
+
+ return -ERANGE;
+ }
+
+ /* Validate keepouts don't violate stride (alignment). */
+ if (!IS_ALIGNED(keepout->start, nvmem->stride) ||
+ !IS_ALIGNED(keepout->end, nvmem->stride)) {
+
+ dev_err(&nvmem->dev,
+ "Keepout regions violate stride.\n");
+
+ return -EINVAL;
+ }
+
+ cur = keepout->end;
+ keepout++;
+ }
+
+ return 0;
+}
+
+int nvmem_add_cells_from_dt(struct nvmem_device *nvmem, struct device_node *np)
+{
+ struct device *dev = &nvmem->dev;
+ const __be32 *addr;
+ int len, ret;
+
+ for_each_child_of_node_scoped(np, child) {
+ struct nvmem_cell_info info = {0};
+
+ addr = of_get_property(child, "reg", &len);
+ if (!addr)
+ continue;
+ if (len < 2 * sizeof(u32)) {
+ dev_err(dev, "nvmem: invalid reg on %pOF\n", child);
+ return -EINVAL;
+ }
+
+ info.offset = be32_to_cpup(addr++);
+ info.bytes = be32_to_cpup(addr);
+ info.name = kasprintf(GFP_KERNEL, "%pOFn", child);
+
+ addr = of_get_property(child, "bits", &len);
+ if (addr && len == (2 * sizeof(u32))) {
+ info.bit_offset = be32_to_cpup(addr++);
+ info.nbits = be32_to_cpup(addr);
+ if (info.bit_offset >= BITS_PER_BYTE * info.bytes ||
+ info.nbits < 1 ||
+ info.bit_offset + info.nbits > BITS_PER_BYTE * info.bytes) {
+ dev_err(dev, "nvmem: invalid bits on %pOF\n", child);
+ return -EINVAL;
+ }
+ }
+
+ info.np = of_node_get(child);
+
+ if (nvmem->fixup_dt_cell_info)
+ nvmem->fixup_dt_cell_info(nvmem, &info);
+
+ ret = nvmem_add_one_cell(nvmem, &info);
+ kfree(info.name);
+ if (ret) {
+ of_node_put(info.np);
+ return ret;
+ }
+ }
+
+ return 0;
+}
+EXPORT_SYMBOL_GPL(nvmem_add_cells_from_dt);
+
+static int nvmem_add_cells_from_legacy_of(struct nvmem_device *nvmem)
+{
+ return nvmem_add_cells_from_dt(nvmem, nvmem->dev.of_node);
+}
+
+int nvmem_layout_register(struct nvmem_layout *layout)
+{
+ int ret;
+
+ if (!layout->add_cells)
+ return -EINVAL;
+
+ /* Populate the cells */
+ ret = layout->add_cells(layout);
+ if (ret)
+ return ret;
+
+#ifdef CONFIG_NVMEM_SYSFS
+ ret = nvmem_populate_sysfs_cells(layout->nvmem);
+ if (ret) {
+ nvmem_device_remove_all_cells(layout->nvmem);
+ return ret;
+ }
+#endif
+
+ return 0;
+}
+EXPORT_SYMBOL_GPL(nvmem_layout_register);
+
+void nvmem_layout_unregister(struct nvmem_layout *layout)
+{
+ /* Keep the API even with an empty stub in case we need it later */
+}
+EXPORT_SYMBOL_GPL(nvmem_layout_unregister);
+
+/**
+ * nvmem_register() - Register a nvmem device for given nvmem_config.
+ * Also creates a binary entry in /sys/bus/nvmem/devices/dev-name/nvmem
+ *
+ * @config: nvmem device configuration with which nvmem device is created.
+ *
+ * Return: Will be an ERR_PTR() on error or a valid pointer to nvmem_device
+ * on success.
+ */
+
+struct nvmem_device *nvmem_register(const struct nvmem_config *config)
+{
+ struct nvmem_operations *ops;
+ struct nvmem_device *nvmem;
+ int rval;
+
+ if (!config->dev)
+ return ERR_PTR(-EINVAL);
+
+ if (!config->reg_read && !config->reg_write)
+ return ERR_PTR(-EINVAL);
+
+ nvmem = kzalloc_obj(*nvmem);
+ if (!nvmem)
+ return ERR_PTR(-ENOMEM);
+
+ ops = kzalloc_obj(*ops);
+ if (!ops) {
+ kfree(nvmem);
+ return ERR_PTR(-ENOMEM);
+ }
+
+ rval = ida_alloc(&nvmem_ida, GFP_KERNEL);
+ if (rval < 0) {
+ kfree(ops);
+ kfree(nvmem);
+ return ERR_PTR(rval);
+ }
+
+ nvmem->id = rval;
+
+ nvmem->dev.type = &nvmem_provider_type;
+ nvmem->dev.bus = &nvmem_bus_type;
+ nvmem->dev.parent = config->dev;
+ nvmem->ops = ops;
+
+ device_initialize(&nvmem->dev);
+
+ if (!config->ignore_wp)
+ nvmem->wp_gpio = gpiod_get_optional(config->dev, "wp",
+ GPIOD_OUT_HIGH);
+ if (IS_ERR(nvmem->wp_gpio)) {
+ rval = PTR_ERR(nvmem->wp_gpio);
+ nvmem->wp_gpio = NULL;
+ goto err_put_device;
+ }
+
+ kref_init(&nvmem->refcnt);
+ INIT_LIST_HEAD(&nvmem->cells);
+ nvmem->fixup_dt_cell_info = config->fixup_dt_cell_info;
+
+ ops->reg_read = config->reg_read;
+ ops->reg_write = config->reg_write;
+
+ nvmem->owner = config->owner;
+ if (!nvmem->owner && config->dev->driver)
+ nvmem->owner = config->dev->driver->owner;
+ nvmem->stride = config->stride ?: 1;
+ nvmem->word_size = config->word_size ?: 1;
+ nvmem->size = config->size;
+ nvmem->root_only = config->root_only;
+ nvmem->priv = config->priv;
+ nvmem->type = config->type;
+ nvmem->keepout = config->keepout;
+ nvmem->nkeepout = config->nkeepout;
+ if (config->of_node)
+ nvmem->dev.of_node = config->of_node;
+ else
+ nvmem->dev.of_node = config->dev->of_node;
+
+ switch (config->id) {
+ case NVMEM_DEVID_NONE:
+ rval = dev_set_name(&nvmem->dev, "%s", config->name);
+ break;
+ case NVMEM_DEVID_AUTO:
+ rval = dev_set_name(&nvmem->dev, "%s%d", config->name, nvmem->id);
+ break;
+ default:
+ rval = dev_set_name(&nvmem->dev, "%s%d",
+ config->name ? : "nvmem",
+ config->name ? config->id : nvmem->id);
+ break;
+ }
+
+ if (rval)
+ goto err_put_device;
+
+ nvmem->read_only = device_property_present(config->dev, "read-only") ||
+ config->read_only || !ops->reg_write;
+
+#ifdef CONFIG_NVMEM_SYSFS
+ nvmem->dev.groups = nvmem_dev_groups;
+#endif
+
+ if (nvmem->nkeepout) {
+ rval = nvmem_validate_keepouts(nvmem);
+ if (rval)
+ goto err_put_device;
+ }
+
+ if (config->compat) {
+ rval = nvmem_sysfs_setup_compat(nvmem, config);
+ if (rval)
+ goto err_put_device;
+ }
+
+ if (config->cells) {
+ rval = nvmem_add_cells(nvmem, config->cells, config->ncells);
+ if (rval)
+ goto err_remove_cells;
+ }
+
+ if (config->add_legacy_fixed_of_cells) {
+ rval = nvmem_add_cells_from_legacy_of(nvmem);
+ if (rval)
+ goto err_remove_cells;
+ }
+
+ dev_dbg(&nvmem->dev, "Registering nvmem device %s\n", config->name);
+
+ rval = device_add(&nvmem->dev);
+ if (rval)
+ goto err_remove_cells;
+
+ rval = nvmem_populate_layout(nvmem);
+ if (rval)
+ goto err_remove_dev;
+
+ /* If the device has WP GPIO, default to read-only */
+ if (nvmem->wp_gpio)
+ nvmem->read_only = true;
+
+#ifdef CONFIG_NVMEM_SYSFS
+ rval = nvmem_populate_sysfs_cells(nvmem);
+ if (rval)
+ goto err_destroy_layout;
+#endif
+
+ blocking_notifier_call_chain(&nvmem_notifier, NVMEM_ADD, nvmem);
+
+ return nvmem;
+
+#ifdef CONFIG_NVMEM_SYSFS
+err_destroy_layout:
+ nvmem_destroy_layout(nvmem);
+#endif
+err_remove_dev:
+ device_del(&nvmem->dev);
+err_remove_cells:
+ nvmem_device_remove_all_cells(nvmem);
+ nvmem_sysfs_remove_compat(nvmem);
+err_put_device:
+ put_device(&nvmem->dev);
+
+ return ERR_PTR(rval);
+}
+EXPORT_SYMBOL_GPL(nvmem_register);
+
+static void nvmem_device_release(struct kref *kref)
+{
+ struct nvmem_device *nvmem;
+
+ nvmem = container_of(kref, struct nvmem_device, refcnt);
+
+ blocking_notifier_call_chain(&nvmem_notifier, NVMEM_REMOVE, nvmem);
+
+ nvmem_sysfs_remove_compat(nvmem);
+
+ nvmem_device_remove_all_cells(nvmem);
+ nvmem_destroy_layout(nvmem);
+ device_unregister(&nvmem->dev);
+}
+
+/**
+ * nvmem_unregister() - Unregister previously registered nvmem device
+ *
+ * @nvmem: Pointer to previously registered nvmem device.
+ */
+void nvmem_unregister(struct nvmem_device *nvmem)
+{
+ if (nvmem)
+ kref_put(&nvmem->refcnt, nvmem_device_release);
+}
+EXPORT_SYMBOL_GPL(nvmem_unregister);
+
+static void devm_nvmem_unregister(void *nvmem)
+{
+ nvmem_unregister(nvmem);
+}
+
+/**
+ * devm_nvmem_register() - Register a managed nvmem device for given
+ * nvmem_config.
+ * Also creates a binary entry in /sys/bus/nvmem/devices/dev-name/nvmem
+ *
+ * @dev: Device that uses the nvmem device.
+ * @config: nvmem device configuration with which nvmem device is created.
+ *
+ * Return: Will be an ERR_PTR() on error or a valid pointer to nvmem_device
+ * on success.
+ */
+struct nvmem_device *devm_nvmem_register(struct device *dev,
+ const struct nvmem_config *config)
+{
+ struct nvmem_device *nvmem;
+ int ret;
+
+ nvmem = nvmem_register(config);
+ if (IS_ERR(nvmem))
+ return nvmem;
+
+ ret = devm_add_action_or_reset(dev, devm_nvmem_unregister, nvmem);
+ if (ret)
+ return ERR_PTR(ret);
+
+ return nvmem;
+}
+EXPORT_SYMBOL_GPL(devm_nvmem_register);
+
+static struct nvmem_device *nvmem_device_match(void *data,
+ int (*match)(struct device *dev, const void *data))
+{
+ struct nvmem_device *nvmem = NULL;
+ struct device *dev;
+
+ scoped_guard(mutex, &nvmem_mutex) {
+ dev = bus_find_device(&nvmem_bus_type, NULL, data, match);
+ if (dev)
+ nvmem = to_nvmem_device(dev);
+ }
+ if (!nvmem)
+ return ERR_PTR(-EPROBE_DEFER);
+
+ if (!try_module_get(nvmem->owner)) {
+ dev_err(&nvmem->dev,
+ "could not increase module refcount for cell %s\n",
+ nvmem_dev_name(nvmem));
+
+ put_device(&nvmem->dev);
+ return ERR_PTR(-EINVAL);
+ }
+
+ kref_get(&nvmem->refcnt);
+
+ return nvmem;
+}
+
+#if IS_ENABLED(CONFIG_OF)
+/**
+ * of_nvmem_device_get() - Get nvmem device from a given id
+ *
+ * @np: Device tree node that uses the nvmem device.
+ * @id: nvmem name from nvmem-names property.
+ *
+ * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
+ * on success.
+ */
+struct nvmem_device *of_nvmem_device_get(struct device_node *np, const char *id)
+{
+
+ struct device_node *nvmem_np;
+ struct nvmem_device *nvmem;
+ int index = 0;
+
+ if (id)
+ index = of_property_match_string(np, "nvmem-names", id);
+
+ nvmem_np = of_parse_phandle(np, "nvmem", index);
+ if (!nvmem_np)
+ return ERR_PTR(-ENOENT);
+
+ nvmem = nvmem_device_match(nvmem_np, device_match_of_node);
+ of_node_put(nvmem_np);
+ return nvmem;
+}
+EXPORT_SYMBOL_GPL(of_nvmem_device_get);
+#endif
+
+/**
+ * nvmem_device_get() - Get nvmem device from a given id
+ *
+ * @dev: Device that uses the nvmem device.
+ * @dev_name: name of the requested nvmem device.
+ *
+ * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
+ * on success.
+ */
+struct nvmem_device *nvmem_device_get(struct device *dev, const char *dev_name)
+{
+ if (dev->of_node) { /* try dt first */
+ struct nvmem_device *nvmem;
+
+ nvmem = of_nvmem_device_get(dev->of_node, dev_name);
+
+ if (!IS_ERR(nvmem) || PTR_ERR(nvmem) == -EPROBE_DEFER)
+ return nvmem;
+
+ }
+
+ return nvmem_device_match((void *)dev_name, device_match_name);
+}
+EXPORT_SYMBOL_GPL(nvmem_device_get);
+
+/**
+ * nvmem_device_find() - Find nvmem device with matching function
+ *
+ * @data: Data to pass to match function
+ * @match: Callback function to check device
+ *
+ * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
+ * on success.
+ */
+struct nvmem_device *nvmem_device_find(void *data,
+ int (*match)(struct device *dev, const void *data))
+{
+ return nvmem_device_match(data, match);
+}
+EXPORT_SYMBOL_GPL(nvmem_device_find);
+
+static int devm_nvmem_device_match(struct device *dev, void *res, void *data)
+{
+ struct nvmem_device **nvmem = res;
+
+ if (WARN_ON(!nvmem || !*nvmem))
+ return 0;
+
+ return *nvmem == data;
+}
+
+static void devm_nvmem_device_release(struct device *dev, void *res)
+{
+ nvmem_device_put(*(struct nvmem_device **)res);
+}
+
+/**
+ * devm_nvmem_device_put() - put already got nvmem device
+ *
+ * @dev: Device that uses the nvmem device.
+ * @nvmem: pointer to nvmem device allocated by devm_nvmem_cell_get(),
+ * that needs to be released.
+ */
+void devm_nvmem_device_put(struct device *dev, struct nvmem_device *nvmem)
+{
+ int ret;
+
+ ret = devres_release(dev, devm_nvmem_device_release,
+ devm_nvmem_device_match, nvmem);
+
+ WARN_ON(ret);
+}
+EXPORT_SYMBOL_GPL(devm_nvmem_device_put);
+
+/**
+ * nvmem_device_put() - put already got nvmem device
+ *
+ * @nvmem: pointer to nvmem device that needs to be released.
+ */
+void nvmem_device_put(struct nvmem_device *nvmem)
+{
+ put_device(&nvmem->dev);
+ module_put(nvmem->owner);
+ kref_put(&nvmem->refcnt, nvmem_device_release);
+}
+EXPORT_SYMBOL_GPL(nvmem_device_put);
+
+/**
+ * devm_nvmem_device_get() - Get nvmem device of device from a given id
+ *
+ * @dev: Device that requests the nvmem device.
+ * @id: name id for the requested nvmem device.
+ *
+ * Return: ERR_PTR() on error or a valid pointer to a struct nvmem_device
+ * on success. The nvmem_device will be freed by the automatically once the
+ * device is freed.
+ */
+struct nvmem_device *devm_nvmem_device_get(struct device *dev, const char *id)
+{
+ struct nvmem_device **ptr, *nvmem;
+
+ ptr = devres_alloc(devm_nvmem_device_release, sizeof(*ptr), GFP_KERNEL);
+ if (!ptr)
+ return ERR_PTR(-ENOMEM);
+
+ nvmem = nvmem_device_get(dev, id);
+ if (!IS_ERR(nvmem)) {
+ *ptr = nvmem;
+ devres_add(dev, ptr);
+ } else {
+ devres_free(ptr);
+ }
+
+ return nvmem;
+}
+EXPORT_SYMBOL_GPL(devm_nvmem_device_get);
+
+static struct nvmem_cell *nvmem_create_cell(struct nvmem_cell_entry *entry,
+ const char *id, int index)
+{
+ struct nvmem_cell *cell;
+ const char *name = NULL;
+
+ cell = kzalloc_obj(*cell);
+ if (!cell)
+ return ERR_PTR(-ENOMEM);
+
+ if (id) {
+ name = kstrdup_const(id, GFP_KERNEL);
+ if (!name) {
+ kfree(cell);
+ return ERR_PTR(-ENOMEM);
+ }
+ }
+
+ cell->id = name;
+ cell->entry = entry;
+ cell->index = index;
+
+ return cell;
+}
+
+static struct nvmem_cell *
+nvmem_cell_get_from_lookup(struct device *dev, const char *con_id)
+{
+ struct nvmem_cell_entry *cell_entry;
+ struct nvmem_cell *cell = ERR_PTR(-ENOENT);
+ struct nvmem_cell_lookup *lookup;
+ struct nvmem_device *nvmem;
+ const char *dev_id;
+
+ if (!dev)
+ return ERR_PTR(-EINVAL);
+
+ dev_id = dev_name(dev);
+
+ guard(mutex)(&nvmem_lookup_mutex);
+
+ list_for_each_entry(lookup, &nvmem_lookup_list, node) {
+ if ((strcmp(lookup->dev_id, dev_id) == 0) &&
+ (strcmp(lookup->con_id, con_id) == 0)) {
+ /* This is the right entry. */
+ nvmem = nvmem_device_match((void *)lookup->nvmem_name,
+ device_match_name);
+ if (IS_ERR(nvmem))
+ /* Provider may not be registered yet. */
+ return ERR_CAST(nvmem);
+
+ cell_entry = nvmem_find_cell_entry_by_name(nvmem,
+ lookup->cell_name);
+ if (!cell_entry) {
+ nvmem_device_put(nvmem);
+ cell = ERR_PTR(-ENOENT);
+ } else {
+ cell = nvmem_create_cell(cell_entry, con_id, 0);
+ if (IS_ERR(cell))
+ nvmem_device_put(nvmem);
+ }
+ break;
+ }
+ }
+
+ return cell;
+}
+
+static void nvmem_layout_module_put(struct nvmem_device *nvmem)
+{
+ if (nvmem->layout && nvmem->layout->dev.driver)
+ module_put(nvmem->layout->dev.driver->owner);
+}
+
+#if IS_ENABLED(CONFIG_OF)
+static struct nvmem_cell_entry *
+nvmem_find_cell_entry_by_node(struct nvmem_device *nvmem, struct device_node *np)
+{
+ struct nvmem_cell_entry *cell;
+
+ guard(mutex)(&nvmem_mutex);
+
+ list_for_each_entry(cell, &nvmem->cells, node) {
+ if (np == cell->np)
+ return cell;
+ }
+
+ return NULL;
+}
+
+static int nvmem_layout_module_get_optional(struct nvmem_device *nvmem)
+{
+ if (!nvmem->layout)
+ return 0;
+
+ if (!nvmem->layout->dev.driver ||
+ !try_module_get(nvmem->layout->dev.driver->owner))
+ return -EPROBE_DEFER;
+
+ return 0;
+}
+
+/**
+ * of_nvmem_cell_get() - Get a nvmem cell from given device node and cell id
+ *
+ * @np: Device tree node that uses the nvmem cell.
+ * @id: nvmem cell name from nvmem-cell-names property, or NULL
+ * for the cell at index 0 (the lone cell with no accompanying
+ * nvmem-cell-names property).
+ *
+ * Return: Will be an ERR_PTR() on error or a valid pointer
+ * to a struct nvmem_cell. The nvmem_cell will be freed by the
+ * nvmem_cell_put().
+ */
+struct nvmem_cell *of_nvmem_cell_get(struct device_node *np, const char *id)
+{
+ struct device_node *cell_np, *nvmem_np;
+ struct nvmem_device *nvmem;
+ struct nvmem_cell_entry *cell_entry;
+ struct nvmem_cell *cell;
+ struct of_phandle_args cell_spec;
+ int index = 0;
+ int cell_index = 0;
+ int ret;
+
+ /* if cell name exists, find index to the name */
+ if (id)
+ index = of_property_match_string(np, "nvmem-cell-names", id);
+
+ ret = of_parse_phandle_with_optional_args(np, "nvmem-cells",
+ "#nvmem-cell-cells",
+ index, &cell_spec);
+ if (ret)
+ return ERR_PTR(-ENOENT);
+
+ if (cell_spec.args_count > 1)
+ return ERR_PTR(-EINVAL);
+
+ cell_np = cell_spec.np;
+ if (cell_spec.args_count)
+ cell_index = cell_spec.args[0];
+
+ nvmem_np = of_get_parent(cell_np);
+ if (!nvmem_np) {
+ of_node_put(cell_np);
+ return ERR_PTR(-EINVAL);
+ }
+
+ /* nvmem layouts produce cells within the nvmem-layout container */
+ if (of_node_name_eq(nvmem_np, "nvmem-layout")) {
+ nvmem_np = of_get_next_parent(nvmem_np);
+ if (!nvmem_np) {
+ of_node_put(cell_np);
+ return ERR_PTR(-EINVAL);
+ }
+ }
+
+ nvmem = nvmem_device_match(nvmem_np, device_match_of_node);
+ of_node_put(nvmem_np);
+ if (IS_ERR(nvmem)) {
+ of_node_put(cell_np);
+ return ERR_CAST(nvmem);
+ }
+
+ ret = nvmem_layout_module_get_optional(nvmem);
+ if (ret) {
+ of_node_put(cell_np);
+ nvmem_device_put(nvmem);
+ return ERR_PTR(ret);
+ }
+
+ cell_entry = nvmem_find_cell_entry_by_node(nvmem, cell_np);
+ of_node_put(cell_np);
+ if (!cell_entry) {
+ nvmem_layout_module_put(nvmem);
+ ret = nvmem->layout ? -EPROBE_DEFER : -ENOENT;
+ nvmem_device_put(nvmem);
+ return ERR_PTR(ret);
+ }
+
+ cell = nvmem_create_cell(cell_entry, id, cell_index);
+ if (IS_ERR(cell)) {
+ nvmem_layout_module_put(nvmem);
+ nvmem_device_put(nvmem);
+ }
+
+ return cell;
+}
+EXPORT_SYMBOL_GPL(of_nvmem_cell_get);
+#endif
+
+/**
+ * nvmem_cell_get() - Get nvmem cell of device from a given cell name
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @id: nvmem cell name to get (this corresponds with the name from the
+ * nvmem-cell-names property for DT systems and with the con_id from
+ * the lookup entry for non-DT systems).
+ *
+ * Return: Will be an ERR_PTR() on error or a valid pointer
+ * to a struct nvmem_cell. The nvmem_cell will be freed by the
+ * nvmem_cell_put().
+ */
+struct nvmem_cell *nvmem_cell_get(struct device *dev, const char *id)
+{
+ struct nvmem_cell *cell;
+
+ if (dev->of_node) { /* try dt first */
+ cell = of_nvmem_cell_get(dev->of_node, id);
+ if (!IS_ERR(cell) || PTR_ERR(cell) == -EPROBE_DEFER)
+ return cell;
+ }
+
+ /* NULL cell id only allowed for device tree; invalid otherwise */
+ if (!id)
+ return ERR_PTR(-EINVAL);
+
+ return nvmem_cell_get_from_lookup(dev, id);
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_get);
+
+static void devm_nvmem_cell_release(struct device *dev, void *res)
+{
+ nvmem_cell_put(*(struct nvmem_cell **)res);
+}
+
+/**
+ * devm_nvmem_cell_get() - Get nvmem cell of device from a given id
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @id: nvmem cell name id to get.
+ *
+ * Return: Will be an ERR_PTR() on error or a valid pointer
+ * to a struct nvmem_cell. The nvmem_cell will be freed by the
+ * automatically once the device is freed.
+ */
+struct nvmem_cell *devm_nvmem_cell_get(struct device *dev, const char *id)
+{
+ struct nvmem_cell **ptr, *cell;
+
+ ptr = devres_alloc(devm_nvmem_cell_release, sizeof(*ptr), GFP_KERNEL);
+ if (!ptr)
+ return ERR_PTR(-ENOMEM);
+
+ cell = nvmem_cell_get(dev, id);
+ if (!IS_ERR(cell)) {
+ *ptr = cell;
+ devres_add(dev, ptr);
+ } else {
+ devres_free(ptr);
+ }
+
+ return cell;
+}
+EXPORT_SYMBOL_GPL(devm_nvmem_cell_get);
+
+static int devm_nvmem_cell_match(struct device *dev, void *res, void *data)
+{
+ struct nvmem_cell **c = res;
+
+ if (WARN_ON(!c || !*c))
+ return 0;
+
+ return *c == data;
+}
+
+/**
+ * devm_nvmem_cell_put() - Release previously allocated nvmem cell
+ * from devm_nvmem_cell_get.
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell: Previously allocated nvmem cell by devm_nvmem_cell_get().
+ */
+void devm_nvmem_cell_put(struct device *dev, struct nvmem_cell *cell)
+{
+ int ret;
+
+ ret = devres_release(dev, devm_nvmem_cell_release,
+ devm_nvmem_cell_match, cell);
+
+ WARN_ON(ret);
+}
+EXPORT_SYMBOL(devm_nvmem_cell_put);
+
+/**
+ * nvmem_cell_put() - Release previously allocated nvmem cell.
+ *
+ * @cell: Previously allocated nvmem cell by nvmem_cell_get().
+ */
+void nvmem_cell_put(struct nvmem_cell *cell)
+{
+ struct nvmem_device *nvmem = cell->entry->nvmem;
+
+ if (cell->id)
+ kfree_const(cell->id);
+
+ kfree(cell);
+ nvmem_layout_module_put(nvmem);
+ nvmem_device_put(nvmem);
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_put);
+
+static void nvmem_shift_read_buffer_in_place(struct nvmem_cell_entry *cell, void *buf)
+{
+ u8 *p, *b;
+ int i, extra, bytes_offset;
+ int bit_offset = cell->bit_offset;
+
+ p = b = buf;
+
+ bytes_offset = bit_offset / BITS_PER_BYTE;
+ b += bytes_offset;
+ bit_offset %= BITS_PER_BYTE;
+
+ if (bit_offset % BITS_PER_BYTE) {
+ /* First shift */
+ *p = *b++ >> bit_offset;
+
+ /* setup rest of the bytes if any */
+ for (i = 1; i < cell->bytes; i++) {
+ /* Get bits from next byte and shift them towards msb */
+ *p++ |= *b << (BITS_PER_BYTE - bit_offset);
+
+ *p = *b++ >> bit_offset;
+ }
+ } else if (p != b) {
+ memmove(p, b, cell->bytes - bytes_offset);
+ p += cell->bytes - 1;
+ } else {
+ /* point to the msb */
+ p += cell->bytes - 1;
+ }
+
+ /* result fits in less bytes */
+ extra = cell->bytes - DIV_ROUND_UP(cell->nbits, BITS_PER_BYTE);
+ while (--extra >= 0)
+ *p-- = 0;
+
+ /* clear msb bits if any leftover in the last byte */
+ if (cell->nbits % BITS_PER_BYTE)
+ *p &= GENMASK((cell->nbits % BITS_PER_BYTE) - 1, 0);
+}
+
+static int __nvmem_cell_read(struct nvmem_device *nvmem,
+ struct nvmem_cell_entry *cell,
+ void *buf, size_t *len, const char *id, int index)
+{
+ int rc;
+
+ rc = nvmem_reg_read(nvmem, cell->offset, buf, cell->raw_len);
+
+ if (rc)
+ return rc;
+
+ /* shift bits in-place */
+ if (cell->bit_offset || cell->nbits)
+ nvmem_shift_read_buffer_in_place(cell, buf);
+
+ if (cell->read_post_process) {
+ rc = cell->read_post_process(cell->priv, id, index,
+ cell->offset, buf, cell->raw_len);
+ if (rc)
+ return rc;
+ }
+
+ if (len)
+ *len = cell->bytes;
+
+ return 0;
+}
+
+/**
+ * nvmem_cell_read() - Read a given nvmem cell
+ *
+ * @cell: nvmem cell to be read.
+ * @len: pointer to length of cell which will be populated on successful read;
+ * can be NULL.
+ *
+ * Return: ERR_PTR() on error or a valid pointer to a buffer on success. The
+ * buffer should be freed by the consumer with a kfree().
+ */
+void *nvmem_cell_read(struct nvmem_cell *cell, size_t *len)
+{
+ struct nvmem_cell_entry *entry = cell->entry;
+ struct nvmem_device *nvmem = entry->nvmem;
+ u8 *buf;
+ int rc;
+
+ if (!nvmem)
+ return ERR_PTR(-EINVAL);
+
+ buf = kzalloc(max_t(size_t, entry->raw_len, entry->bytes), GFP_KERNEL);
+ if (!buf)
+ return ERR_PTR(-ENOMEM);
+
+ rc = __nvmem_cell_read(nvmem, cell->entry, buf, len, cell->id, cell->index);
+ if (rc) {
+ kfree(buf);
+ return ERR_PTR(rc);
+ }
+
+ return buf;
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read);
+
+static void *nvmem_cell_prepare_write_buffer(struct nvmem_cell_entry *cell,
+ u8 *_buf, int len)
+{
+ struct nvmem_device *nvmem = cell->nvmem;
+ int i, rc, nbits, bit_offset = cell->bit_offset;
+ u8 v, *p, *buf, *b, pbyte, pbits;
+
+ nbits = cell->nbits;
+ buf = kzalloc(cell->bytes, GFP_KERNEL);
+ if (!buf)
+ return ERR_PTR(-ENOMEM);
+
+ memcpy(buf, _buf, len);
+ p = b = buf;
+
+ if (bit_offset) {
+ pbyte = *b;
+ *b <<= bit_offset;
+
+ /* setup the first byte with lsb bits from nvmem */
+ rc = nvmem_reg_read(nvmem, cell->offset, &v, 1);
+ if (rc)
+ goto err;
+ *b++ |= GENMASK(bit_offset - 1, 0) & v;
+
+ /* setup rest of the byte if any */
+ for (i = 1; i < cell->bytes; i++) {
+ /* Get last byte bits and shift them towards lsb */
+ pbits = pbyte >> (BITS_PER_BYTE - 1 - bit_offset);
+ pbyte = *b;
+ p = b;
+ *b <<= bit_offset;
+ *b++ |= pbits;
+ }
+ }
+
+ /* if it's not end on byte boundary */
+ if ((nbits + bit_offset) % BITS_PER_BYTE) {
+ /* setup the last byte with msb bits from nvmem */
+ rc = nvmem_reg_read(nvmem,
+ cell->offset + cell->bytes - 1, &v, 1);
+ if (rc)
+ goto err;
+ *p |= GENMASK(7, (nbits + bit_offset) % BITS_PER_BYTE) & v;
+
+ }
+
+ return buf;
+err:
+ kfree(buf);
+ return ERR_PTR(rc);
+}
+
+static int __nvmem_cell_entry_write(struct nvmem_cell_entry *cell, void *buf, size_t len)
+{
+ struct nvmem_device *nvmem = cell->nvmem;
+ int rc;
+
+ if (!nvmem || nvmem->read_only ||
+ (cell->bit_offset == 0 && len != cell->bytes))
+ return -EINVAL;
+
+ /*
+ * Any cells which have a read_post_process hook are read-only because
+ * we cannot reverse the operation and it might affect other cells,
+ * too.
+ */
+ if (cell->read_post_process)
+ return -EINVAL;
+
+ if (cell->bit_offset || cell->nbits) {
+ if (len != BITS_TO_BYTES(cell->nbits) && len != cell->bytes)
+ return -EINVAL;
+ buf = nvmem_cell_prepare_write_buffer(cell, buf, len);
+ if (IS_ERR(buf))
+ return PTR_ERR(buf);
+ }
+
+ rc = nvmem_reg_write(nvmem, cell->offset, buf, cell->bytes);
+
+ /* free the tmp buffer */
+ if (cell->bit_offset || cell->nbits)
+ kfree(buf);
+
+ if (rc)
+ return rc;
+
+ return len;
+}
+
+/**
+ * nvmem_cell_write() - Write to a given nvmem cell
+ *
+ * @cell: nvmem cell to be written.
+ * @buf: Buffer to be written.
+ * @len: length of buffer to be written to nvmem cell.
+ *
+ * Return: length of bytes written or negative on failure.
+ */
+int nvmem_cell_write(struct nvmem_cell *cell, void *buf, size_t len)
+{
+ return __nvmem_cell_entry_write(cell->entry, buf, len);
+}
+
+EXPORT_SYMBOL_GPL(nvmem_cell_write);
+
+static int nvmem_cell_read_common(struct device *dev, const char *cell_id,
+ void *val, size_t count)
+{
+ struct nvmem_cell *cell;
+ void *buf;
+ size_t len;
+
+ cell = nvmem_cell_get(dev, cell_id);
+ if (IS_ERR(cell))
+ return PTR_ERR(cell);
+
+ buf = nvmem_cell_read(cell, &len);
+ if (IS_ERR(buf)) {
+ nvmem_cell_put(cell);
+ return PTR_ERR(buf);
+ }
+ if (len != count) {
+ kfree(buf);
+ nvmem_cell_put(cell);
+ return -EINVAL;
+ }
+ memcpy(val, buf, count);
+ kfree(buf);
+ nvmem_cell_put(cell);
+
+ return 0;
+}
+
+/**
+ * nvmem_cell_read_u8() - Read a cell value as a u8
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_u8(struct device *dev, const char *cell_id, u8 *val)
+{
+ return nvmem_cell_read_common(dev, cell_id, val, sizeof(*val));
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_u8);
+
+/**
+ * nvmem_cell_read_u16() - Read a cell value as a u16
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_u16(struct device *dev, const char *cell_id, u16 *val)
+{
+ return nvmem_cell_read_common(dev, cell_id, val, sizeof(*val));
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_u16);
+
+/**
+ * nvmem_cell_read_u32() - Read a cell value as a u32
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_u32(struct device *dev, const char *cell_id, u32 *val)
+{
+ return nvmem_cell_read_common(dev, cell_id, val, sizeof(*val));
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_u32);
+
+/**
+ * nvmem_cell_read_u64() - Read a cell value as a u64
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_u64(struct device *dev, const char *cell_id, u64 *val)
+{
+ return nvmem_cell_read_common(dev, cell_id, val, sizeof(*val));
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_u64);
+
+static const void *nvmem_cell_read_variable_common(struct device *dev,
+ const char *cell_id,
+ size_t max_len, size_t *len)
+{
+ struct nvmem_cell *cell;
+ int nbits;
+ void *buf;
+
+ cell = nvmem_cell_get(dev, cell_id);
+ if (IS_ERR(cell))
+ return cell;
+
+ nbits = cell->entry->nbits;
+ buf = nvmem_cell_read(cell, len);
+ nvmem_cell_put(cell);
+ if (IS_ERR(buf))
+ return buf;
+
+ /*
+ * If nbits is set then nvmem_cell_read() can significantly exaggerate
+ * the length of the real data. Throw away the extra junk.
+ */
+ if (nbits)
+ *len = DIV_ROUND_UP(nbits, 8);
+
+ if (*len > max_len) {
+ kfree(buf);
+ return ERR_PTR(-ERANGE);
+ }
+
+ return buf;
+}
+
+/**
+ * nvmem_cell_read_variable_le_u32() - Read up to 32-bits of data as a little endian number.
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_variable_le_u32(struct device *dev, const char *cell_id,
+ u32 *val)
+{
+ size_t len;
+ const u8 *buf;
+ int i;
+
+ buf = nvmem_cell_read_variable_common(dev, cell_id, sizeof(*val), &len);
+ if (IS_ERR(buf))
+ return PTR_ERR(buf);
+
+ /* Copy w/ implicit endian conversion */
+ *val = 0;
+ for (i = 0; i < len; i++)
+ *val |= buf[i] << (8 * i);
+
+ kfree(buf);
+
+ return 0;
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_variable_le_u32);
+
+/**
+ * nvmem_cell_read_variable_le_u64() - Read up to 64-bits of data as a little endian number.
+ *
+ * @dev: Device that requests the nvmem cell.
+ * @cell_id: Name of nvmem cell to read.
+ * @val: pointer to output value.
+ *
+ * Return: 0 on success or negative errno.
+ */
+int nvmem_cell_read_variable_le_u64(struct device *dev, const char *cell_id,
+ u64 *val)
+{
+ size_t len;
+ const u8 *buf;
+ int i;
+
+ buf = nvmem_cell_read_variable_common(dev, cell_id, sizeof(*val), &len);
+ if (IS_ERR(buf))
+ return PTR_ERR(buf);
+
+ /* Copy w/ implicit endian conversion */
+ *val = 0;
+ for (i = 0; i < len; i++)
+ *val |= (uint64_t)buf[i] << (8 * i);
+
+ kfree(buf);
+
+ return 0;
+}
+EXPORT_SYMBOL_GPL(nvmem_cell_read_variable_le_u64);
+
+/**
+ * nvmem_device_cell_read() - Read a given nvmem device and cell
+ *
+ * @nvmem: nvmem device to read from.
+ * @info: nvmem cell info to be read.
+ * @buf: buffer pointer which will be populated on successful read.
+ *
+ * Return: length of successful bytes read on success and negative
+ * error code on error.
+ */
+ssize_t nvmem_device_cell_read(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *info, void *buf)
+{
+ struct nvmem_cell_entry cell;
+ int rc;
+ ssize_t len;
+
+ if (!nvmem)
+ return -EINVAL;
+
+ rc = nvmem_cell_info_to_nvmem_cell_entry_nodup(nvmem, info, &cell);
+ if (rc)
+ return rc;
+
+ rc = __nvmem_cell_read(nvmem, &cell, buf, &len, NULL, 0);
+ if (rc)
+ return rc;
+
+ return len;
+}
+EXPORT_SYMBOL_GPL(nvmem_device_cell_read);
+
+/**
+ * nvmem_device_cell_write() - Write cell to a given nvmem device
+ *
+ * @nvmem: nvmem device to be written to.
+ * @info: nvmem cell info to be written.
+ * @buf: buffer to be written to cell.
+ *
+ * Return: length of bytes written or negative error code on failure.
+ */
+int nvmem_device_cell_write(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *info, void *buf)
+{
+ struct nvmem_cell_entry cell;
+ int rc;
+
+ if (!nvmem)
+ return -EINVAL;
+
+ rc = nvmem_cell_info_to_nvmem_cell_entry_nodup(nvmem, info, &cell);
+ if (rc)
+ return rc;
+
+ return __nvmem_cell_entry_write(&cell, buf, cell.bytes);
+}
+EXPORT_SYMBOL_GPL(nvmem_device_cell_write);
+
+/**
+ * nvmem_device_read() - Read from a given nvmem device
+ *
+ * @nvmem: nvmem device to read from.
+ * @offset: offset in nvmem device.
+ * @bytes: number of bytes to read.
+ * @buf: buffer pointer which will be populated on successful read.
+ *
+ * Return: length of successful bytes read on success and negative
+ * error code on error.
+ */
+int nvmem_device_read(struct nvmem_device *nvmem,
+ unsigned int offset,
+ size_t bytes, void *buf)
+{
+ int rc;
+
+ if (!nvmem)
+ return -EINVAL;
+
+ rc = nvmem_reg_read(nvmem, offset, buf, bytes);
+
+ if (rc)
+ return rc;
+
+ return bytes;
+}
+EXPORT_SYMBOL_GPL(nvmem_device_read);
+
+/**
+ * nvmem_device_write() - Write cell to a given nvmem device
+ *
+ * @nvmem: nvmem device to be written to.
+ * @offset: offset in nvmem device.
+ * @bytes: number of bytes to write.
+ * @buf: buffer to be written.
+ *
+ * Return: length of bytes written or negative error code on failure.
+ */
+int nvmem_device_write(struct nvmem_device *nvmem,
+ unsigned int offset,
+ size_t bytes, void *buf)
+{
+ int rc;
+
+ if (!nvmem)
+ return -EINVAL;
+
+ rc = nvmem_reg_write(nvmem, offset, buf, bytes);
+
+ if (rc)
+ return rc;
+
+
+ return bytes;
+}
+EXPORT_SYMBOL_GPL(nvmem_device_write);
+
+/**
+ * nvmem_add_cell_lookups() - register a list of cell lookup entries
+ *
+ * @entries: array of cell lookup entries
+ * @nentries: number of cell lookup entries in the array
+ */
+void nvmem_add_cell_lookups(struct nvmem_cell_lookup *entries, size_t nentries)
+{
+ int i;
+
+ guard(mutex)(&nvmem_lookup_mutex);
+
+ for (i = 0; i < nentries; i++)
+ list_add_tail(&entries[i].node, &nvmem_lookup_list);
+}
+EXPORT_SYMBOL_GPL(nvmem_add_cell_lookups);
+
+/**
+ * nvmem_del_cell_lookups() - remove a list of previously added cell lookup
+ * entries
+ *
+ * @entries: array of cell lookup entries
+ * @nentries: number of cell lookup entries in the array
+ */
+void nvmem_del_cell_lookups(struct nvmem_cell_lookup *entries, size_t nentries)
+{
+ int i;
+
+ guard(mutex)(&nvmem_lookup_mutex);
+
+ for (i = 0; i < nentries; i++)
+ list_del(&entries[i].node);
+}
+EXPORT_SYMBOL_GPL(nvmem_del_cell_lookups);
+
+/**
+ * nvmem_dev_name() - Get the name of a given nvmem device.
+ *
+ * @nvmem: nvmem device.
+ *
+ * Return: name of the nvmem device.
+ */
+const char *nvmem_dev_name(struct nvmem_device *nvmem)
+{
+ return dev_name(&nvmem->dev);
+}
+EXPORT_SYMBOL_GPL(nvmem_dev_name);
+
+/**
+ * nvmem_dev_size() - Get the size of a given nvmem device.
+ *
+ * @nvmem: nvmem device.
+ *
+ * Return: size of the nvmem device.
+ */
+size_t nvmem_dev_size(struct nvmem_device *nvmem)
+{
+ return nvmem->size;
+}
+EXPORT_SYMBOL_GPL(nvmem_dev_size);
+
+static int __init nvmem_init(void)
+{
+ int ret;
+
+ ret = bus_register(&nvmem_bus_type);
+ if (ret)
+ return ret;
+
+ ret = nvmem_layout_bus_register();
+ if (ret)
+ bus_unregister(&nvmem_bus_type);
+
+ return ret;
+}
+
+static void __exit nvmem_exit(void)
+{
+ nvmem_layout_bus_unregister();
+ bus_unregister(&nvmem_bus_type);
+}
+
+subsys_initcall(nvmem_init);
+module_exit(nvmem_exit);
+
+MODULE_AUTHOR("Srinivas Kandagatla <srinivas.kandagatla@linaro.org>");
+MODULE_AUTHOR("Maxime Ripard <maxime.ripard@free-electrons.com>");
+MODULE_DESCRIPTION("nvmem Driver Core");
diff --git a/drivers/nvmem/ee1004.c b/drivers/nvmem/ee1004.c
new file mode 100644
index 000000000..923f404a4
--- /dev/null
+++ b/drivers/nvmem/ee1004.c
@@ -0,0 +1,351 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * ee1004 - driver for DDR4 SPD EEPROMs
+ *
+ * Copyright (C) 2017-2019 Jean Delvare
+ *
+ * Based on the at24 driver:
+ * Copyright (C) 2005-2007 David Brownell
+ * Copyright (C) 2008 Wolfram Sang, Pengutronix
+ */
+
+#include <linux/device.h>
+#include <linux/i2c.h>
+#include <linux/init.h>
+#include <linux/kernel.h>
+#include <linux/module.h>
+#include <linux/mutex.h>
+#include <linux/nvmem-provider.h>
+
+/*
+ * DDR4 memory modules use special EEPROMs following the Jedec EE1004
+ * specification. These are 512-byte EEPROMs using a single I2C address
+ * in the 0x50-0x57 range for data. One of two 256-byte page is selected
+ * by writing a command to I2C address 0x36 or 0x37 on the same I2C bus.
+ *
+ * Therefore we need to request these 2 additional addresses, and serialize
+ * access to all such EEPROMs with a single mutex.
+ *
+ * We assume it is safe to read up to 32 bytes at once from these EEPROMs.
+ * We use SMBus access even if I2C is available, these EEPROMs are small
+ * enough, and reading from them infrequent enough, that we favor simplicity
+ * over performance.
+ */
+
+#define EE1004_MAX_BUSSES 8
+#define EE1004_ADDR_SET_PAGE 0x36
+#define EE1004_NUM_PAGES 2
+#define EE1004_PAGE_SIZE 256
+#define EE1004_PAGE_SHIFT 8
+#define EE1004_EEPROM_SIZE (EE1004_PAGE_SIZE * EE1004_NUM_PAGES)
+
+/*
+ * Mutex protects ee1004_set_page and ee1004_dev_count, and must be held
+ * from page selection to end of read.
+ */
+static DEFINE_MUTEX(ee1004_bus_lock);
+
+static struct ee1004_bus_data {
+ struct i2c_adapter *adap;
+ struct i2c_client *set_page[EE1004_NUM_PAGES];
+ unsigned int dev_count;
+ int current_page;
+} ee1004_bus_data[EE1004_MAX_BUSSES];
+
+static const struct i2c_device_id ee1004_ids[] = {
+ { "ee1004" },
+ { }
+};
+MODULE_DEVICE_TABLE(i2c, ee1004_ids);
+
+/*-------------------------------------------------------------------------*/
+
+static struct ee1004_bus_data *ee1004_get_bus_data(struct i2c_adapter *adap)
+{
+ int i;
+
+ for (i = 0; i < EE1004_MAX_BUSSES; i++)
+ if (ee1004_bus_data[i].adap == adap)
+ return ee1004_bus_data + i;
+
+ /* If not existent yet, create new entry */
+ for (i = 0; i < EE1004_MAX_BUSSES; i++)
+ if (!ee1004_bus_data[i].adap) {
+ ee1004_bus_data[i].adap = adap;
+ return ee1004_bus_data + i;
+ }
+
+ return NULL;
+}
+
+static int ee1004_get_current_page(struct ee1004_bus_data *bd)
+{
+ int err;
+
+ err = i2c_smbus_read_byte(bd->set_page[0]);
+ if (err == -ENXIO) {
+ /* Nack means page 1 is selected */
+ return 1;
+ }
+ if (err < 0) {
+ /* Anything else is a real error, bail out */
+ return err;
+ }
+
+ /* Ack means page 0 is selected, returned value meaningless */
+ return 0;
+}
+
+static int ee1004_set_current_page(struct i2c_client *client, int page)
+{
+ struct ee1004_bus_data *bd = i2c_get_clientdata(client);
+ int ret;
+
+ if (page == bd->current_page)
+ return 0;
+
+ /* Data is ignored */
+ ret = i2c_smbus_write_byte(bd->set_page[page], 0x00);
+ /*
+ * Don't give up just yet. Some memory modules will select the page
+ * but not ack the command. Check which page is selected now.
+ */
+ if (ret == -ENXIO && ee1004_get_current_page(bd) == page)
+ ret = 0;
+ if (ret < 0) {
+ dev_err(&client->dev, "Failed to select page %d (%d)\n", page, ret);
+ return ret;
+ }
+
+ dev_dbg(&client->dev, "Selected page %d\n", page);
+ bd->current_page = page;
+
+ return 0;
+}
+
+static ssize_t ee1004_eeprom_read(struct i2c_client *client, char *buf,
+ unsigned int offset, size_t count)
+{
+ int status, page;
+
+ page = offset >> EE1004_PAGE_SHIFT;
+ offset &= (1 << EE1004_PAGE_SHIFT) - 1;
+
+ status = ee1004_set_current_page(client, page);
+ if (status)
+ return status;
+
+ /* Can't cross page boundaries */
+ if (offset + count > EE1004_PAGE_SIZE)
+ count = EE1004_PAGE_SIZE - offset;
+
+ if (count > I2C_SMBUS_BLOCK_MAX)
+ count = I2C_SMBUS_BLOCK_MAX;
+
+ return i2c_smbus_read_i2c_block_data_or_emulated(client, offset, count, buf);
+}
+
+static int ee1004_read(void *priv, unsigned int off, void *val, size_t count)
+{
+ struct i2c_client *client = priv;
+ char *buf = val;
+ int ret;
+
+ if (unlikely(!count))
+ return count;
+
+ if (off + count > EE1004_EEPROM_SIZE)
+ return -EINVAL;
+
+ /*
+ * Read data from chip, protecting against concurrent access to
+ * other EE1004 SPD EEPROMs on the same adapter.
+ */
+ mutex_lock(&ee1004_bus_lock);
+
+ while (count) {
+ ret = ee1004_eeprom_read(client, buf, off, count);
+ if (ret < 0) {
+ mutex_unlock(&ee1004_bus_lock);
+ return ret;
+ }
+
+ buf += ret;
+ off += ret;
+ count -= ret;
+ }
+
+ mutex_unlock(&ee1004_bus_lock);
+
+ return 0;
+}
+
+static void ee1004_probe_temp_sensor(struct i2c_client *client)
+{
+ struct i2c_board_info info = { .type = "jc42" };
+ unsigned short addr = 0x18 | (client->addr & 7);
+ unsigned short addr_list[] = { addr, I2C_CLIENT_END };
+ u8 data[2];
+ int ret;
+
+ /* byte 14, bit 7 is set if temp sensor is present */
+ ret = ee1004_eeprom_read(client, data, 14, 1);
+ if (ret != 1)
+ return;
+
+ if (!(data[0] & BIT(7))) {
+ /*
+ * If the SPD data suggests that there is no temperature
+ * sensor, it may still be there for SPD revision 1.0.
+ * See SPD Annex L, Revision 1 and 2, for details.
+ * Check DIMM type and SPD revision; if it is a DDR4
+ * with SPD revision 1.0, check the thermal sensor address
+ * and instantiate the jc42 driver if a chip is found at
+ * that address.
+ * It is not necessary to check if there is a chip at the
+ * temperature sensor address since i2c_new_scanned_device()
+ * will do that and return silently if no chip is found.
+ */
+ ret = ee1004_eeprom_read(client, data, 1, 2);
+ if (ret != 2 || data[0] != 0x10 || data[1] != 0x0c)
+ return;
+ }
+ i2c_new_scanned_device(client->adapter, &info, addr_list, NULL);
+}
+
+static void ee1004_cleanup(int idx, struct ee1004_bus_data *bd)
+{
+ if (--bd->dev_count == 0) {
+ while (--idx >= 0)
+ i2c_unregister_device(bd->set_page[idx]);
+ memset(bd, 0, sizeof(struct ee1004_bus_data));
+ }
+}
+
+static void ee1004_cleanup_bus_data(void *data)
+{
+ struct ee1004_bus_data *bd = data;
+
+ /* Remove page select clients if this is the last device */
+ mutex_lock(&ee1004_bus_lock);
+ ee1004_cleanup(EE1004_NUM_PAGES, bd);
+ mutex_unlock(&ee1004_bus_lock);
+}
+
+static int ee1004_init_bus_data(struct i2c_client *client)
+{
+ struct ee1004_bus_data *bd;
+ int err, cnr = 0;
+
+ bd = ee1004_get_bus_data(client->adapter);
+ if (!bd)
+ return dev_err_probe(&client->dev, -ENOSPC, "Only %d busses supported",
+ EE1004_MAX_BUSSES);
+
+ i2c_set_clientdata(client, bd);
+
+ if (++bd->dev_count == 1) {
+ /* Use 2 dummy devices for page select command */
+ for (cnr = 0; cnr < EE1004_NUM_PAGES; cnr++) {
+ struct i2c_client *cl;
+
+ cl = i2c_new_dummy_device(client->adapter, EE1004_ADDR_SET_PAGE + cnr);
+ if (IS_ERR(cl)) {
+ err = PTR_ERR(cl);
+ goto err_out;
+ }
+
+ bd->set_page[cnr] = cl;
+ }
+
+ /* Remember current page to avoid unneeded page select */
+ err = ee1004_get_current_page(bd);
+ if (err < 0)
+ goto err_out;
+
+ dev_dbg(&client->dev, "Currently selected page: %d\n", err);
+ bd->current_page = err;
+ }
+
+ return 0;
+
+err_out:
+ ee1004_cleanup(cnr, bd);
+
+ return err;
+}
+
+static int ee1004_probe(struct i2c_client *client)
+{
+ struct nvmem_config config = {
+ .dev = &client->dev,
+ .name = dev_name(&client->dev),
+ .id = NVMEM_DEVID_NONE,
+ .owner = THIS_MODULE,
+ .type = NVMEM_TYPE_EEPROM,
+ .read_only = true,
+ .root_only = false,
+ .reg_read = ee1004_read,
+ .size = EE1004_EEPROM_SIZE,
+ .word_size = 1,
+ .stride = 1,
+ .priv = client,
+ .compat = true,
+ .base_dev = &client->dev,
+ };
+ struct nvmem_device *ndev;
+ int err;
+
+ /* Make sure we can operate on this adapter */
+ if (!i2c_check_functionality(client->adapter,
+ I2C_FUNC_SMBUS_BYTE | I2C_FUNC_SMBUS_READ_I2C_BLOCK) &&
+ !i2c_check_functionality(client->adapter,
+ I2C_FUNC_SMBUS_BYTE | I2C_FUNC_SMBUS_READ_BYTE_DATA))
+ return -EPFNOSUPPORT;
+
+ err = i2c_smbus_read_byte(client);
+ if (err < 0)
+ return -ENODEV;
+
+ mutex_lock(&ee1004_bus_lock);
+
+ err = ee1004_init_bus_data(client);
+ if (err < 0) {
+ mutex_unlock(&ee1004_bus_lock);
+ return err;
+ }
+
+ ee1004_probe_temp_sensor(client);
+
+ mutex_unlock(&ee1004_bus_lock);
+
+ err = devm_add_action_or_reset(&client->dev, ee1004_cleanup_bus_data,
+ i2c_get_clientdata(client));
+ if (err < 0)
+ return err;
+
+ ndev = devm_nvmem_register(&client->dev, &config);
+ if (IS_ERR(ndev))
+ return PTR_ERR(ndev);
+
+ dev_info(&client->dev,
+ "%u byte EE1004-compliant SPD EEPROM, read-only\n",
+ EE1004_EEPROM_SIZE);
+
+ return 0;
+}
+
+/*-------------------------------------------------------------------------*/
+
+static struct i2c_driver ee1004_driver = {
+ .driver = {
+ .name = "ee1004",
+ },
+ .probe = ee1004_probe,
+ .id_table = ee1004_ids,
+};
+module_i2c_driver(ee1004_driver);
+
+MODULE_DESCRIPTION("Driver for EE1004-compliant DDR4 SPD EEPROMs");
+MODULE_AUTHOR("Jean Delvare");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/eeprom_93xx46.c b/drivers/nvmem/eeprom_93xx46.c
new file mode 100644
index 000000000..f9c3ab52c
--- /dev/null
+++ b/drivers/nvmem/eeprom_93xx46.c
@@ -0,0 +1,560 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Driver for 93xx46 EEPROMs
+ *
+ * (C) 2011 DENX Software Engineering, Anatolij Gustschin <agust@denx.de>
+ */
+
+#include <linux/array_size.h>
+#include <linux/bits.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/gpio/consumer.h>
+#include <linux/kstrtox.h>
+#include <linux/log2.h>
+#include <linux/module.h>
+#include <linux/mutex.h>
+#include <linux/property.h>
+#include <linux/slab.h>
+#include <linux/spi/spi.h>
+#include <linux/string_choices.h>
+
+#include <linux/nvmem-provider.h>
+
+struct eeprom_93xx46_platform_data {
+ unsigned char flags;
+#define EE_ADDR8 0x01 /* 8 bit addr. cfg */
+#define EE_ADDR16 0x02 /* 16 bit addr. cfg */
+#define EE_READONLY 0x08 /* forbid writing */
+#define EE_SIZE1K 0x10 /* 1 kb of data, that is a 93xx46 */
+#define EE_SIZE2K 0x20 /* 2 kb of data, that is a 93xx56 */
+#define EE_SIZE4K 0x40 /* 4 kb of data, that is a 93xx66 */
+
+ unsigned int quirks;
+/* Single word read transfers only; no sequential read. */
+#define EEPROM_93XX46_QUIRK_SINGLE_WORD_READ (1 << 0)
+/* Instructions such as EWEN are (addrlen + 2) in length. */
+#define EEPROM_93XX46_QUIRK_INSTRUCTION_LENGTH (1 << 1)
+/* Add extra cycle after address during a read */
+#define EEPROM_93XX46_QUIRK_EXTRA_READ_CYCLE BIT(2)
+
+ struct gpio_desc *select;
+};
+
+#define OP_START 0x4
+#define OP_WRITE (OP_START | 0x1)
+#define OP_READ (OP_START | 0x2)
+/* The following addresses are offset for the 1K EEPROM variant in 16-bit mode */
+#define ADDR_EWDS 0x00
+#define ADDR_ERAL 0x20
+#define ADDR_EWEN 0x30
+
+struct eeprom_93xx46_devtype_data {
+ unsigned int quirks;
+ unsigned char flags;
+};
+
+static const struct eeprom_93xx46_devtype_data at93c46_data = {
+ .flags = EE_SIZE1K,
+};
+
+static const struct eeprom_93xx46_devtype_data at93c56_data = {
+ .flags = EE_SIZE2K,
+};
+
+static const struct eeprom_93xx46_devtype_data at93c66_data = {
+ .flags = EE_SIZE4K,
+};
+
+static const struct eeprom_93xx46_devtype_data atmel_at93c46d_data = {
+ .flags = EE_SIZE1K,
+ .quirks = EEPROM_93XX46_QUIRK_SINGLE_WORD_READ |
+ EEPROM_93XX46_QUIRK_INSTRUCTION_LENGTH,
+};
+
+static const struct eeprom_93xx46_devtype_data microchip_93lc46b_data = {
+ .flags = EE_SIZE1K,
+ .quirks = EEPROM_93XX46_QUIRK_EXTRA_READ_CYCLE,
+};
+
+struct eeprom_93xx46_dev {
+ struct spi_device *spi;
+ struct eeprom_93xx46_platform_data *pdata;
+ struct mutex lock;
+ struct nvmem_config nvmem_config;
+ struct nvmem_device *nvmem;
+ int addrlen;
+ int size;
+};
+
+static inline bool has_quirk_single_word_read(struct eeprom_93xx46_dev *edev)
+{
+ return edev->pdata->quirks & EEPROM_93XX46_QUIRK_SINGLE_WORD_READ;
+}
+
+static inline bool has_quirk_instruction_length(struct eeprom_93xx46_dev *edev)
+{
+ return edev->pdata->quirks & EEPROM_93XX46_QUIRK_INSTRUCTION_LENGTH;
+}
+
+static inline bool has_quirk_extra_read_cycle(struct eeprom_93xx46_dev *edev)
+{
+ return edev->pdata->quirks & EEPROM_93XX46_QUIRK_EXTRA_READ_CYCLE;
+}
+
+static int eeprom_93xx46_read(void *priv, unsigned int off,
+ void *val, size_t count)
+{
+ struct eeprom_93xx46_dev *edev = priv;
+ char *buf = val;
+ int err = 0;
+ int bits;
+
+ if (unlikely(off >= edev->size))
+ return 0;
+ if ((off + count) > edev->size)
+ count = edev->size - off;
+ if (unlikely(!count))
+ return count;
+
+ mutex_lock(&edev->lock);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 1);
+
+ /* The opcode in front of the address is three bits. */
+ bits = edev->addrlen + 3;
+
+ while (count) {
+ struct spi_message m;
+ struct spi_transfer t[2] = {};
+ u16 cmd_addr = OP_READ << edev->addrlen;
+ size_t nbytes = count;
+
+ if (edev->pdata->flags & EE_ADDR8) {
+ cmd_addr |= off;
+ if (has_quirk_single_word_read(edev))
+ nbytes = 1;
+ } else {
+ cmd_addr |= (off >> 1);
+ if (has_quirk_single_word_read(edev))
+ nbytes = 2;
+ }
+
+ dev_dbg(&edev->spi->dev, "read cmd 0x%x, %d Hz\n",
+ cmd_addr, edev->spi->max_speed_hz);
+
+ if (has_quirk_extra_read_cycle(edev)) {
+ cmd_addr <<= 1;
+ bits += 1;
+ }
+
+ t[0].tx_buf = (char *)&cmd_addr;
+ t[0].len = 2;
+ t[0].bits_per_word = bits;
+
+ t[1].rx_buf = buf;
+ t[1].len = count;
+ t[1].bits_per_word = 8;
+
+ spi_message_init_with_transfers(&m, t, ARRAY_SIZE(t));
+
+ err = spi_sync(edev->spi, &m);
+ /* have to wait at least Tcsl ns */
+ ndelay(250);
+
+ if (err) {
+ dev_err(&edev->spi->dev, "read %zu bytes at %u: err. %d\n",
+ nbytes, off, err);
+ break;
+ }
+
+ buf += nbytes;
+ off += nbytes;
+ count -= nbytes;
+ }
+
+ gpiod_set_value_cansleep(edev->pdata->select, 0);
+
+ mutex_unlock(&edev->lock);
+
+ return err;
+}
+
+static int eeprom_93xx46_ew(struct eeprom_93xx46_dev *edev, int is_on)
+{
+ struct spi_message m;
+ struct spi_transfer t = {};
+ int bits, ret;
+ u16 cmd_addr;
+
+ /* The opcode in front of the address is three bits. */
+ bits = edev->addrlen + 3;
+
+ cmd_addr = OP_START << edev->addrlen;
+ cmd_addr |= (is_on ? ADDR_EWEN : ADDR_EWDS) << (edev->addrlen - 6);
+
+ if (has_quirk_instruction_length(edev)) {
+ cmd_addr <<= 2;
+ bits += 2;
+ }
+
+ dev_dbg(&edev->spi->dev, "ew %s cmd 0x%04x, %d bits\n",
+ str_enable_disable(is_on), cmd_addr, bits);
+
+ t.tx_buf = &cmd_addr;
+ t.len = 2;
+ t.bits_per_word = bits;
+
+ spi_message_init_with_transfers(&m, &t, 1);
+
+ mutex_lock(&edev->lock);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 1);
+
+ ret = spi_sync(edev->spi, &m);
+ /* have to wait at least Tcsl ns */
+ ndelay(250);
+ if (ret)
+ dev_err(&edev->spi->dev, "erase/write %s error %d\n",
+ str_enable_disable(is_on), ret);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 0);
+
+ mutex_unlock(&edev->lock);
+ return ret;
+}
+
+static ssize_t
+eeprom_93xx46_write_word(struct eeprom_93xx46_dev *edev,
+ const char *buf, unsigned int off)
+{
+ struct spi_message m;
+ struct spi_transfer t[2] = {};
+ int bits, data_len, ret;
+ u16 cmd_addr;
+
+ if (unlikely(off >= edev->size))
+ return -EINVAL;
+
+ /* The opcode in front of the address is three bits. */
+ bits = edev->addrlen + 3;
+
+ cmd_addr = OP_WRITE << edev->addrlen;
+
+ if (edev->pdata->flags & EE_ADDR8) {
+ cmd_addr |= off;
+ data_len = 1;
+ } else {
+ cmd_addr |= (off >> 1);
+ data_len = 2;
+ }
+
+ dev_dbg(&edev->spi->dev, "write cmd 0x%x\n", cmd_addr);
+
+ t[0].tx_buf = (char *)&cmd_addr;
+ t[0].len = 2;
+ t[0].bits_per_word = bits;
+
+ t[1].tx_buf = buf;
+ t[1].len = data_len;
+ t[1].bits_per_word = 8;
+
+ spi_message_init_with_transfers(&m, t, ARRAY_SIZE(t));
+
+ ret = spi_sync(edev->spi, &m);
+ /* have to wait program cycle time Twc ms */
+ mdelay(6);
+ return ret;
+}
+
+static int eeprom_93xx46_write(void *priv, unsigned int off,
+ void *val, size_t count)
+{
+ struct eeprom_93xx46_dev *edev = priv;
+ char *buf = val;
+ int ret, step = 1;
+ unsigned int i;
+
+ if (unlikely(off >= edev->size))
+ return -EFBIG;
+ if ((off + count) > edev->size)
+ count = edev->size - off;
+ if (unlikely(!count))
+ return count;
+
+ /* only write even number of bytes on 16-bit devices */
+ if (edev->pdata->flags & EE_ADDR16) {
+ step = 2;
+ count &= ~1;
+ }
+
+ /* erase/write enable */
+ ret = eeprom_93xx46_ew(edev, 1);
+ if (ret)
+ return ret;
+
+ mutex_lock(&edev->lock);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 1);
+
+ for (i = 0; i < count; i += step) {
+ ret = eeprom_93xx46_write_word(edev, &buf[i], off + i);
+ if (ret) {
+ dev_err(&edev->spi->dev, "write failed at %u: %d\n", off + i, ret);
+ break;
+ }
+ }
+
+ gpiod_set_value_cansleep(edev->pdata->select, 0);
+
+ mutex_unlock(&edev->lock);
+
+ /* erase/write disable */
+ eeprom_93xx46_ew(edev, 0);
+ return ret;
+}
+
+static int eeprom_93xx46_eral(struct eeprom_93xx46_dev *edev)
+{
+ struct spi_message m;
+ struct spi_transfer t = {};
+ int bits, ret;
+ u16 cmd_addr;
+
+ /* The opcode in front of the address is three bits. */
+ bits = edev->addrlen + 3;
+
+ cmd_addr = OP_START << edev->addrlen;
+ cmd_addr |= ADDR_ERAL << (edev->addrlen - 6);
+
+ if (has_quirk_instruction_length(edev)) {
+ cmd_addr <<= 2;
+ bits += 2;
+ }
+
+ dev_dbg(&edev->spi->dev, "eral cmd 0x%04x, %d bits\n", cmd_addr, bits);
+
+ t.tx_buf = &cmd_addr;
+ t.len = 2;
+ t.bits_per_word = bits;
+
+ spi_message_init_with_transfers(&m, &t, 1);
+
+ mutex_lock(&edev->lock);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 1);
+
+ ret = spi_sync(edev->spi, &m);
+ if (ret)
+ dev_err(&edev->spi->dev, "erase error %d\n", ret);
+ /* have to wait erase cycle time Tec ms */
+ mdelay(6);
+
+ gpiod_set_value_cansleep(edev->pdata->select, 0);
+
+ mutex_unlock(&edev->lock);
+ return ret;
+}
+
+static ssize_t erase_store(struct device *dev, struct device_attribute *attr,
+ const char *buf, size_t count)
+{
+ struct eeprom_93xx46_dev *edev = dev_get_drvdata(dev);
+ bool erase;
+ int ret;
+
+ ret = kstrtobool(buf, &erase);
+ if (ret)
+ return ret;
+
+ if (erase) {
+ ret = eeprom_93xx46_ew(edev, 1);
+ if (ret)
+ return ret;
+ ret = eeprom_93xx46_eral(edev);
+ if (ret)
+ return ret;
+ ret = eeprom_93xx46_ew(edev, 0);
+ if (ret)
+ return ret;
+ }
+ return count;
+}
+static DEVICE_ATTR_WO(erase);
+
+static const struct of_device_id eeprom_93xx46_of_table[] = {
+ { .compatible = "eeprom-93xx46", .data = &at93c46_data, },
+ { .compatible = "atmel,at93c46", .data = &at93c46_data, },
+ { .compatible = "atmel,at93c46d", .data = &atmel_at93c46d_data, },
+ { .compatible = "atmel,at93c56", .data = &at93c56_data, },
+ { .compatible = "atmel,at93c66", .data = &at93c66_data, },
+ { .compatible = "microchip,93lc46b", .data = &microchip_93lc46b_data, },
+ {}
+};
+MODULE_DEVICE_TABLE(of, eeprom_93xx46_of_table);
+
+static const struct spi_device_id eeprom_93xx46_spi_ids[] = {
+ { .name = "eeprom-93xx46",
+ .driver_data = (kernel_ulong_t)&at93c46_data, },
+ { .name = "at93c46",
+ .driver_data = (kernel_ulong_t)&at93c46_data, },
+ { .name = "at93c46d",
+ .driver_data = (kernel_ulong_t)&atmel_at93c46d_data, },
+ { .name = "at93c56",
+ .driver_data = (kernel_ulong_t)&at93c56_data, },
+ { .name = "at93c66",
+ .driver_data = (kernel_ulong_t)&at93c66_data, },
+ { .name = "93lc46b",
+ .driver_data = (kernel_ulong_t)&microchip_93lc46b_data, },
+ {}
+};
+MODULE_DEVICE_TABLE(spi, eeprom_93xx46_spi_ids);
+
+static int eeprom_93xx46_probe_fw(struct device *dev)
+{
+ const struct eeprom_93xx46_devtype_data *data;
+ struct eeprom_93xx46_platform_data *pd;
+ u32 tmp;
+ int ret;
+
+ pd = devm_kzalloc(dev, sizeof(*pd), GFP_KERNEL);
+ if (!pd)
+ return -ENOMEM;
+
+ ret = device_property_read_u32(dev, "data-size", &tmp);
+ if (ret < 0) {
+ dev_err(dev, "data-size property not found\n");
+ return ret;
+ }
+
+ if (tmp == 8) {
+ pd->flags |= EE_ADDR8;
+ } else if (tmp == 16) {
+ pd->flags |= EE_ADDR16;
+ } else {
+ dev_err(dev, "invalid data-size (%d)\n", tmp);
+ return -EINVAL;
+ }
+
+ if (device_property_read_bool(dev, "read-only"))
+ pd->flags |= EE_READONLY;
+
+ pd->select = devm_gpiod_get_optional(dev, "select", GPIOD_OUT_LOW);
+ if (IS_ERR(pd->select))
+ return PTR_ERR(pd->select);
+ gpiod_set_consumer_name(pd->select, "93xx46 EEPROMs OE");
+
+ data = spi_get_device_match_data(to_spi_device(dev));
+ if (data) {
+ pd->quirks = data->quirks;
+ pd->flags |= data->flags;
+ }
+
+ dev->platform_data = pd;
+
+ return 0;
+}
+
+static int eeprom_93xx46_probe(struct spi_device *spi)
+{
+ struct eeprom_93xx46_platform_data *pd;
+ struct eeprom_93xx46_dev *edev;
+ struct device *dev = &spi->dev;
+ int err;
+
+ err = eeprom_93xx46_probe_fw(dev);
+ if (err < 0)
+ return err;
+
+ pd = spi->dev.platform_data;
+ if (!pd) {
+ dev_err(&spi->dev, "missing platform data\n");
+ return -ENODEV;
+ }
+
+ edev = devm_kzalloc(&spi->dev, sizeof(*edev), GFP_KERNEL);
+ if (!edev)
+ return -ENOMEM;
+
+ if (pd->flags & EE_SIZE1K)
+ edev->size = 128;
+ else if (pd->flags & EE_SIZE2K)
+ edev->size = 256;
+ else if (pd->flags & EE_SIZE4K)
+ edev->size = 512;
+ else {
+ dev_err(&spi->dev, "unspecified size\n");
+ return -EINVAL;
+ }
+
+ if (pd->flags & EE_ADDR8)
+ edev->addrlen = ilog2(edev->size);
+ else if (pd->flags & EE_ADDR16)
+ edev->addrlen = ilog2(edev->size) - 1;
+ else {
+ dev_err(&spi->dev, "unspecified address type\n");
+ return -EINVAL;
+ }
+
+ mutex_init(&edev->lock);
+
+ edev->spi = spi;
+ edev->pdata = pd;
+
+ edev->nvmem_config.type = NVMEM_TYPE_EEPROM;
+ edev->nvmem_config.name = dev_name(&spi->dev);
+ edev->nvmem_config.dev = &spi->dev;
+ edev->nvmem_config.read_only = pd->flags & EE_READONLY;
+ edev->nvmem_config.root_only = true;
+ edev->nvmem_config.owner = THIS_MODULE;
+ edev->nvmem_config.compat = true;
+ edev->nvmem_config.base_dev = &spi->dev;
+ edev->nvmem_config.reg_read = eeprom_93xx46_read;
+ edev->nvmem_config.reg_write = eeprom_93xx46_write;
+ edev->nvmem_config.priv = edev;
+ edev->nvmem_config.stride = 4;
+ edev->nvmem_config.word_size = 1;
+ edev->nvmem_config.size = edev->size;
+
+ edev->nvmem = devm_nvmem_register(&spi->dev, &edev->nvmem_config);
+ if (IS_ERR(edev->nvmem))
+ return PTR_ERR(edev->nvmem);
+
+ dev_info(&spi->dev, "%d-bit eeprom containing %d bytes %s\n",
+ (pd->flags & EE_ADDR8) ? 8 : 16,
+ edev->size,
+ (pd->flags & EE_READONLY) ? "(readonly)" : "");
+
+ if (!(pd->flags & EE_READONLY)) {
+ if (device_create_file(&spi->dev, &dev_attr_erase))
+ dev_err(&spi->dev, "can't create erase interface\n");
+ }
+
+ spi_set_drvdata(spi, edev);
+ return 0;
+}
+
+static void eeprom_93xx46_remove(struct spi_device *spi)
+{
+ struct eeprom_93xx46_dev *edev = spi_get_drvdata(spi);
+
+ if (!(edev->pdata->flags & EE_READONLY))
+ device_remove_file(&spi->dev, &dev_attr_erase);
+}
+
+static struct spi_driver eeprom_93xx46_driver = {
+ .driver = {
+ .name = "93xx46",
+ .of_match_table = eeprom_93xx46_of_table,
+ },
+ .probe = eeprom_93xx46_probe,
+ .remove = eeprom_93xx46_remove,
+ .id_table = eeprom_93xx46_spi_ids,
+};
+
+module_spi_driver(eeprom_93xx46_driver);
+
+MODULE_LICENSE("GPL");
+MODULE_DESCRIPTION("Driver for 93xx46 EEPROMs");
+MODULE_AUTHOR("Anatolij Gustschin <agust@denx.de>");
+MODULE_ALIAS("spi:93xx46");
diff --git a/drivers/nvmem/imx-iim.c b/drivers/nvmem/imx-iim.c
new file mode 100644
index 000000000..8cfbe55a5
--- /dev/null
+++ b/drivers/nvmem/imx-iim.c
@@ -0,0 +1,143 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * i.MX IIM driver
+ *
+ * Copyright (c) 2017 Pengutronix, Michael Grzeschik <m.grzeschik@pengutronix.de>
+ *
+ * Based on the barebox iim driver,
+ * Copyright (c) 2010 Baruch Siach <baruch@tkos.co.il>,
+ * Orex Computed Radiography
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+#include <linux/clk.h>
+
+#define IIM_BANK_BASE(n) (0x800 + 0x400 * (n))
+
+struct imx_iim_drvdata {
+ unsigned int nregs;
+};
+
+struct iim_priv {
+ void __iomem *base;
+ struct clk *clk;
+};
+
+static int imx_iim_read(void *context, unsigned int offset,
+ void *buf, size_t bytes)
+{
+ struct iim_priv *iim = context;
+ int i, ret;
+ u8 *buf8 = buf;
+
+ ret = clk_prepare_enable(iim->clk);
+ if (ret)
+ return ret;
+
+ for (i = offset; i < offset + bytes; i++) {
+ int bank = i >> 5;
+ int reg = i & 0x1f;
+
+ *buf8++ = readl(iim->base + IIM_BANK_BASE(bank) + reg * 4);
+ }
+
+ clk_disable_unprepare(iim->clk);
+
+ return 0;
+}
+
+static struct imx_iim_drvdata imx27_drvdata = {
+ .nregs = 2 * 32,
+};
+
+static struct imx_iim_drvdata imx25_imx31_imx35_drvdata = {
+ .nregs = 3 * 32,
+};
+
+static struct imx_iim_drvdata imx51_drvdata = {
+ .nregs = 4 * 32,
+};
+
+static struct imx_iim_drvdata imx53_drvdata = {
+ .nregs = 4 * 32 + 16,
+};
+
+static const struct of_device_id imx_iim_dt_ids[] = {
+ {
+ .compatible = "fsl,imx25-iim",
+ .data = &imx25_imx31_imx35_drvdata,
+ }, {
+ .compatible = "fsl,imx27-iim",
+ .data = &imx27_drvdata,
+ }, {
+ .compatible = "fsl,imx31-iim",
+ .data = &imx25_imx31_imx35_drvdata,
+ }, {
+ .compatible = "fsl,imx35-iim",
+ .data = &imx25_imx31_imx35_drvdata,
+ }, {
+ .compatible = "fsl,imx51-iim",
+ .data = &imx51_drvdata,
+ }, {
+ .compatible = "fsl,imx53-iim",
+ .data = &imx53_drvdata,
+ }, {
+ /* sentinel */
+ },
+};
+MODULE_DEVICE_TABLE(of, imx_iim_dt_ids);
+
+static int imx_iim_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct iim_priv *iim;
+ struct nvmem_device *nvmem;
+ struct nvmem_config cfg = {};
+ const struct imx_iim_drvdata *drvdata = NULL;
+
+ iim = devm_kzalloc(dev, sizeof(*iim), GFP_KERNEL);
+ if (!iim)
+ return -ENOMEM;
+
+ iim->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(iim->base))
+ return PTR_ERR(iim->base);
+
+ drvdata = of_device_get_match_data(&pdev->dev);
+
+ iim->clk = devm_clk_get(dev, NULL);
+ if (IS_ERR(iim->clk))
+ return PTR_ERR(iim->clk);
+
+ cfg.name = "imx-iim";
+ cfg.read_only = true;
+ cfg.word_size = 1;
+ cfg.stride = 1;
+ cfg.reg_read = imx_iim_read;
+ cfg.dev = dev;
+ cfg.size = drvdata->nregs;
+ cfg.priv = iim;
+
+ nvmem = devm_nvmem_register(dev, &cfg);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver imx_iim_driver = {
+ .probe = imx_iim_probe,
+ .driver = {
+ .name = "imx-iim",
+ .of_match_table = imx_iim_dt_ids,
+ },
+};
+module_platform_driver(imx_iim_driver);
+
+MODULE_AUTHOR("Michael Grzeschik <m.grzeschik@pengutronix.de>");
+MODULE_DESCRIPTION("i.MX IIM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/imx-ocotp-ele.c b/drivers/nvmem/imx-ocotp-ele.c
new file mode 100644
index 000000000..a0d2985c6
--- /dev/null
+++ b/drivers/nvmem/imx-ocotp-ele.c
@@ -0,0 +1,249 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * i.MX9 OCOTP fusebox driver
+ *
+ * Copyright 2023 NXP
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+#include <linux/if_ether.h> /* ETH_ALEN */
+
+enum fuse_type {
+ FUSE_FSB = BIT(0),
+ FUSE_ELE = BIT(1),
+ FUSE_ECC = BIT(2),
+ FUSE_INVALID = -1
+};
+
+struct ocotp_map_entry {
+ u32 start; /* start word */
+ u32 num; /* num words */
+ enum fuse_type type;
+};
+
+struct ocotp_devtype_data {
+ u32 reg_off;
+ char *name;
+ u32 size;
+ u32 num_entry;
+ u32 flag;
+ nvmem_reg_read_t reg_read;
+ struct ocotp_map_entry entry[];
+};
+
+struct imx_ocotp_priv {
+ struct device *dev;
+ void __iomem *base;
+ struct nvmem_config config;
+ struct mutex lock;
+ const struct ocotp_devtype_data *data;
+};
+
+static enum fuse_type imx_ocotp_fuse_type(void *context, u32 index)
+{
+ struct imx_ocotp_priv *priv = context;
+ const struct ocotp_devtype_data *data = priv->data;
+ u32 start, end;
+ int i;
+
+ for (i = 0; i < data->num_entry; i++) {
+ start = data->entry[i].start;
+ end = data->entry[i].start + data->entry[i].num;
+
+ if (index >= start && index < end)
+ return data->entry[i].type;
+ }
+
+ return FUSE_INVALID;
+}
+
+static int imx_ocotp_reg_read(void *context, unsigned int offset, void *val, size_t bytes)
+{
+ struct imx_ocotp_priv *priv = context;
+ void __iomem *reg = priv->base + priv->data->reg_off;
+ u32 count, index, num_bytes;
+ enum fuse_type type;
+ u32 *buf;
+ void *p;
+ int i;
+ u8 skipbytes;
+
+ if (offset + bytes > priv->data->size)
+ bytes = priv->data->size - offset;
+
+ index = offset >> 2;
+ skipbytes = offset - (index << 2);
+ num_bytes = round_up(bytes + skipbytes, 4);
+ count = num_bytes >> 2;
+
+ p = kzalloc(num_bytes, GFP_KERNEL);
+ if (!p)
+ return -ENOMEM;
+
+ mutex_lock(&priv->lock);
+
+ buf = p;
+
+ for (i = index; i < (index + count); i++) {
+ type = imx_ocotp_fuse_type(context, i);
+ if (type == FUSE_INVALID || type == FUSE_ELE) {
+ *buf++ = 0;
+ continue;
+ }
+
+ if (type & FUSE_ECC)
+ *buf++ = readl_relaxed(reg + (i << 2)) & GENMASK(15, 0);
+ else
+ *buf++ = readl_relaxed(reg + (i << 2));
+ }
+
+ memcpy(val, ((u8 *)p) + skipbytes, bytes);
+
+ mutex_unlock(&priv->lock);
+
+ kfree(p);
+
+ return 0;
+};
+
+static int imx_ocotp_cell_pp(void *context, const char *id, int index,
+ unsigned int offset, void *data, size_t bytes)
+{
+ u8 *buf = data;
+ int i;
+
+ /* Deal with some post processing of nvmem cell data */
+ if (id && !strcmp(id, "mac-address")) {
+ bytes = min(bytes, ETH_ALEN);
+ for (i = 0; i < bytes / 2; i++)
+ swap(buf[i], buf[bytes - i - 1]);
+ }
+
+ return 0;
+}
+
+static void imx_ocotp_fixup_dt_cell_info(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *cell)
+{
+ cell->raw_len = round_up(cell->bytes, 4);
+ cell->read_post_process = imx_ocotp_cell_pp;
+}
+
+static int imx_ele_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct imx_ocotp_priv *priv;
+ struct nvmem_device *nvmem;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->data = of_device_get_match_data(dev);
+
+ priv->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ priv->config.dev = dev;
+ priv->config.name = "ELE-OCOTP";
+ priv->config.id = NVMEM_DEVID_AUTO;
+ priv->config.owner = THIS_MODULE;
+ priv->config.size = priv->data->size;
+ priv->config.reg_read = priv->data->reg_read;
+ priv->config.word_size = 1;
+ priv->config.stride = 1;
+ priv->config.priv = priv;
+ priv->config.read_only = true;
+ priv->config.add_legacy_fixed_of_cells = true;
+ priv->config.fixup_dt_cell_info = imx_ocotp_fixup_dt_cell_info;
+ mutex_init(&priv->lock);
+
+ nvmem = devm_nvmem_register(dev, &priv->config);
+ if (IS_ERR(nvmem))
+ return PTR_ERR(nvmem);
+
+ return 0;
+}
+
+static const struct ocotp_devtype_data imx93_ocotp_data = {
+ .reg_off = 0x8000,
+ .reg_read = imx_ocotp_reg_read,
+ .size = 2048,
+ .num_entry = 6,
+ .entry = {
+ { 0, 52, FUSE_FSB },
+ { 63, 1, FUSE_ELE},
+ { 128, 16, FUSE_ELE },
+ { 182, 1, FUSE_ELE },
+ { 188, 1, FUSE_ELE },
+ { 312, 200, FUSE_FSB }
+ },
+};
+
+static const struct ocotp_devtype_data imx94_ocotp_data = {
+ .reg_off = 0x8000,
+ .reg_read = imx_ocotp_reg_read,
+ .size = 3296, /* 103 Banks */
+ .num_entry = 10,
+ .entry = {
+ { 0, 1, FUSE_FSB | FUSE_ECC },
+ { 7, 1, FUSE_FSB | FUSE_ECC },
+ { 9, 3, FUSE_FSB | FUSE_ECC },
+ { 12, 24, FUSE_FSB },
+ { 36, 2, FUSE_FSB | FUSE_ECC },
+ { 38, 14, FUSE_FSB },
+ { 59, 1, FUSE_ELE },
+ { 525, 2, FUSE_FSB | FUSE_ECC },
+ { 528, 7, FUSE_FSB },
+ { 536, 280, FUSE_FSB },
+ },
+};
+
+static const struct ocotp_devtype_data imx95_ocotp_data = {
+ .reg_off = 0x8000,
+ .reg_read = imx_ocotp_reg_read,
+ .size = 2048,
+ .num_entry = 12,
+ .entry = {
+ { 0, 1, FUSE_FSB | FUSE_ECC },
+ { 7, 1, FUSE_FSB | FUSE_ECC },
+ { 9, 3, FUSE_FSB | FUSE_ECC },
+ { 12, 24, FUSE_FSB },
+ { 36, 2, FUSE_FSB | FUSE_ECC },
+ { 38, 14, FUSE_FSB },
+ { 63, 1, FUSE_ELE },
+ { 128, 16, FUSE_ELE },
+ { 188, 1, FUSE_ELE },
+ { 317, 2, FUSE_FSB | FUSE_ECC },
+ { 320, 7, FUSE_FSB },
+ { 328, 184, FUSE_FSB }
+ },
+};
+
+static const struct of_device_id imx_ele_ocotp_dt_ids[] = {
+ { .compatible = "fsl,imx93-ocotp", .data = &imx93_ocotp_data, },
+ { .compatible = "fsl,imx94-ocotp", .data = &imx94_ocotp_data, },
+ { .compatible = "fsl,imx95-ocotp", .data = &imx95_ocotp_data, },
+ {},
+};
+MODULE_DEVICE_TABLE(of, imx_ele_ocotp_dt_ids);
+
+static struct platform_driver imx_ele_ocotp_driver = {
+ .driver = {
+ .name = "imx_ele_ocotp",
+ .of_match_table = imx_ele_ocotp_dt_ids,
+ },
+ .probe = imx_ele_ocotp_probe,
+};
+module_platform_driver(imx_ele_ocotp_driver);
+
+MODULE_DESCRIPTION("i.MX OCOTP/ELE driver");
+MODULE_AUTHOR("Peng Fan <peng.fan@nxp.com>");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/imx-ocotp-scu.c b/drivers/nvmem/imx-ocotp-scu.c
new file mode 100644
index 000000000..517d83e11
--- /dev/null
+++ b/drivers/nvmem/imx-ocotp-scu.c
@@ -0,0 +1,275 @@
+// SPDX-License-Identifier: GPL-2.0+
+/*
+ * i.MX8 OCOTP fusebox driver
+ *
+ * Copyright 2019 NXP
+ *
+ * Peng Fan <peng.fan@nxp.com>
+ */
+
+#include <linux/arm-smccc.h>
+#include <linux/firmware/imx/sci.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+#define IMX_SIP_OTP_WRITE 0xc200000B
+
+enum ocotp_devtype {
+ IMX8QXP,
+ IMX8QM,
+};
+
+#define ECC_REGION BIT(0)
+#define HOLE_REGION BIT(1)
+
+struct ocotp_region {
+ u32 start;
+ u32 end;
+ u32 flag;
+};
+
+struct ocotp_devtype_data {
+ int devtype;
+ int nregs;
+ u32 num_region;
+ struct ocotp_region region[];
+};
+
+struct ocotp_priv {
+ struct device *dev;
+ const struct ocotp_devtype_data *data;
+ struct imx_sc_ipc *nvmem_ipc;
+};
+
+struct imx_sc_msg_misc_fuse_read {
+ struct imx_sc_rpc_msg hdr;
+ u32 word;
+} __packed;
+
+static DEFINE_MUTEX(scu_ocotp_mutex);
+
+static struct ocotp_devtype_data imx8qxp_data = {
+ .devtype = IMX8QXP,
+ .nregs = 800,
+ .num_region = 3,
+ .region = {
+ {0x10, 0x10f, ECC_REGION},
+ {0x110, 0x21F, HOLE_REGION},
+ {0x220, 0x31F, ECC_REGION},
+ },
+};
+
+static struct ocotp_devtype_data imx8qm_data = {
+ .devtype = IMX8QM,
+ .nregs = 800,
+ .num_region = 2,
+ .region = {
+ {0x10, 0x10f, ECC_REGION},
+ {0x1a0, 0x1ff, ECC_REGION},
+ },
+};
+
+static bool in_hole(void *context, u32 index)
+{
+ struct ocotp_priv *priv = context;
+ const struct ocotp_devtype_data *data = priv->data;
+ int i;
+
+ for (i = 0; i < data->num_region; i++) {
+ if (data->region[i].flag & HOLE_REGION) {
+ if ((index >= data->region[i].start) &&
+ (index <= data->region[i].end))
+ return true;
+ }
+ }
+
+ return false;
+}
+
+static bool in_ecc(void *context, u32 index)
+{
+ struct ocotp_priv *priv = context;
+ const struct ocotp_devtype_data *data = priv->data;
+ int i;
+
+ for (i = 0; i < data->num_region; i++) {
+ if (data->region[i].flag & ECC_REGION) {
+ if ((index >= data->region[i].start) &&
+ (index <= data->region[i].end))
+ return true;
+ }
+ }
+
+ return false;
+}
+
+static int imx_sc_misc_otp_fuse_read(struct imx_sc_ipc *ipc, u32 word,
+ u32 *val)
+{
+ struct imx_sc_msg_misc_fuse_read msg;
+ struct imx_sc_rpc_msg *hdr = &msg.hdr;
+ int ret;
+
+ hdr->ver = IMX_SC_RPC_VERSION;
+ hdr->svc = IMX_SC_RPC_SVC_MISC;
+ hdr->func = IMX_SC_MISC_FUNC_OTP_FUSE_READ;
+ hdr->size = 2;
+
+ msg.word = word;
+
+ ret = imx_scu_call_rpc(ipc, &msg, true);
+ if (ret)
+ return ret;
+
+ *val = msg.word;
+
+ return 0;
+}
+
+static int imx_scu_ocotp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct ocotp_priv *priv = context;
+ u32 count, index, num_bytes;
+ u32 *buf;
+ void *p;
+ int i, ret;
+
+ index = offset;
+ num_bytes = round_up(bytes, 4);
+ count = num_bytes >> 2;
+
+ if (count > (priv->data->nregs - index))
+ count = priv->data->nregs - index;
+
+ p = kzalloc(num_bytes, GFP_KERNEL);
+ if (!p)
+ return -ENOMEM;
+
+ mutex_lock(&scu_ocotp_mutex);
+
+ buf = p;
+
+ for (i = index; i < (index + count); i++) {
+ if (in_hole(context, i)) {
+ *buf++ = 0;
+ continue;
+ }
+
+ ret = imx_sc_misc_otp_fuse_read(priv->nvmem_ipc, i, buf);
+ if (ret) {
+ mutex_unlock(&scu_ocotp_mutex);
+ kfree(p);
+ return ret;
+ }
+ buf++;
+ }
+
+ memcpy(val, (u8 *)p, bytes);
+
+ mutex_unlock(&scu_ocotp_mutex);
+
+ kfree(p);
+
+ return 0;
+}
+
+static int imx_scu_ocotp_write(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct ocotp_priv *priv = context;
+ struct arm_smccc_res res;
+ u32 *buf = val;
+ u32 tmp;
+ u32 index;
+ int ret;
+
+ /* allow only writing one complete OTP word at a time */
+ if (bytes != 4)
+ return -EINVAL;
+
+ index = offset;
+
+ if (in_hole(context, index))
+ return -EINVAL;
+
+ if (in_ecc(context, index)) {
+ pr_warn("ECC region, only program once\n");
+ mutex_lock(&scu_ocotp_mutex);
+ ret = imx_sc_misc_otp_fuse_read(priv->nvmem_ipc, index, &tmp);
+ mutex_unlock(&scu_ocotp_mutex);
+ if (ret)
+ return ret;
+ if (tmp) {
+ pr_warn("ECC region, already has value: %x\n", tmp);
+ return -EIO;
+ }
+ }
+
+ mutex_lock(&scu_ocotp_mutex);
+
+ arm_smccc_smc(IMX_SIP_OTP_WRITE, index, *buf, 0, 0, 0, 0, 0, &res);
+
+ mutex_unlock(&scu_ocotp_mutex);
+
+ return res.a0;
+}
+
+static struct nvmem_config imx_scu_ocotp_nvmem_config = {
+ .name = "imx-scu-ocotp",
+ .add_legacy_fixed_of_cells = true,
+ .read_only = false,
+ .word_size = 4,
+ .stride = 1,
+ .owner = THIS_MODULE,
+ .reg_read = imx_scu_ocotp_read,
+ .reg_write = imx_scu_ocotp_write,
+};
+
+static const struct of_device_id imx_scu_ocotp_dt_ids[] = {
+ { .compatible = "fsl,imx8qxp-scu-ocotp", (void *)&imx8qxp_data },
+ { .compatible = "fsl,imx8qm-scu-ocotp", (void *)&imx8qm_data },
+ { },
+};
+MODULE_DEVICE_TABLE(of, imx_scu_ocotp_dt_ids);
+
+static int imx_scu_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct ocotp_priv *priv;
+ struct nvmem_device *nvmem;
+ int ret;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ ret = imx_scu_get_handle(&priv->nvmem_ipc);
+ if (ret)
+ return ret;
+
+ priv->data = of_device_get_match_data(dev);
+ priv->dev = dev;
+ imx_scu_ocotp_nvmem_config.size = 4 * priv->data->nregs;
+ imx_scu_ocotp_nvmem_config.dev = dev;
+ imx_scu_ocotp_nvmem_config.priv = priv;
+ nvmem = devm_nvmem_register(dev, &imx_scu_ocotp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver imx_scu_ocotp_driver = {
+ .probe = imx_scu_ocotp_probe,
+ .driver = {
+ .name = "imx_scu_ocotp",
+ .of_match_table = imx_scu_ocotp_dt_ids,
+ },
+};
+module_platform_driver(imx_scu_ocotp_driver);
+
+MODULE_AUTHOR("Peng Fan <peng.fan@nxp.com>");
+MODULE_DESCRIPTION("i.MX8 SCU OCOTP fuse box driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/imx-ocotp.c b/drivers/nvmem/imx-ocotp.c
new file mode 100644
index 000000000..108d78d7f
--- /dev/null
+++ b/drivers/nvmem/imx-ocotp.c
@@ -0,0 +1,645 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * i.MX6 OCOTP fusebox driver
+ *
+ * Copyright (c) 2015 Pengutronix, Philipp Zabel <p.zabel@pengutronix.de>
+ *
+ * Copyright 2019 NXP
+ *
+ * Based on the barebox ocotp driver,
+ * Copyright (c) 2010 Baruch Siach <baruch@tkos.co.il>,
+ * Orex Computed Radiography
+ *
+ * Write support based on the fsl_otp driver,
+ * Copyright (C) 2010-2013 Freescale Semiconductor, Inc
+ */
+
+#include <linux/clk.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+#include <linux/delay.h>
+#include <linux/if_ether.h> /* ETH_ALEN */
+
+#define IMX_OCOTP_OFFSET_B0W0 0x400 /* Offset from base address of the
+ * OTP Bank0 Word0
+ */
+#define IMX_OCOTP_OFFSET_PER_WORD 0x10 /* Offset between the start addr
+ * of two consecutive OTP words.
+ */
+
+#define IMX_OCOTP_ADDR_CTRL 0x0000
+#define IMX_OCOTP_ADDR_CTRL_SET 0x0004
+#define IMX_OCOTP_ADDR_CTRL_CLR 0x0008
+#define IMX_OCOTP_ADDR_TIMING 0x0010
+#define IMX_OCOTP_ADDR_DATA0 0x0020
+#define IMX_OCOTP_ADDR_DATA1 0x0030
+#define IMX_OCOTP_ADDR_DATA2 0x0040
+#define IMX_OCOTP_ADDR_DATA3 0x0050
+
+#define IMX_OCOTP_BM_CTRL_ADDR 0x000000FF
+#define IMX_OCOTP_BM_CTRL_BUSY 0x00000100
+#define IMX_OCOTP_BM_CTRL_ERROR 0x00000200
+#define IMX_OCOTP_BM_CTRL_REL_SHADOWS 0x00000400
+
+#define IMX_OCOTP_BM_CTRL_ADDR_8MP 0x000001FF
+#define IMX_OCOTP_BM_CTRL_BUSY_8MP 0x00000200
+#define IMX_OCOTP_BM_CTRL_ERROR_8MP 0x00000400
+#define IMX_OCOTP_BM_CTRL_REL_SHADOWS_8MP 0x00000800
+
+#define IMX_OCOTP_BM_CTRL_DEFAULT \
+ { \
+ .bm_addr = IMX_OCOTP_BM_CTRL_ADDR, \
+ .bm_busy = IMX_OCOTP_BM_CTRL_BUSY, \
+ .bm_error = IMX_OCOTP_BM_CTRL_ERROR, \
+ .bm_rel_shadows = IMX_OCOTP_BM_CTRL_REL_SHADOWS,\
+ }
+
+#define IMX_OCOTP_BM_CTRL_8MP \
+ { \
+ .bm_addr = IMX_OCOTP_BM_CTRL_ADDR_8MP, \
+ .bm_busy = IMX_OCOTP_BM_CTRL_BUSY_8MP, \
+ .bm_error = IMX_OCOTP_BM_CTRL_ERROR_8MP, \
+ .bm_rel_shadows = IMX_OCOTP_BM_CTRL_REL_SHADOWS_8MP,\
+ }
+
+#define TIMING_STROBE_PROG_US 10 /* Min time to blow a fuse */
+#define TIMING_STROBE_READ_NS 37 /* Min time before read */
+#define TIMING_RELAX_NS 17
+#define DEF_FSOURCE 1001 /* > 1000 ns */
+#define DEF_STROBE_PROG 10000 /* IPG clocks */
+#define IMX_OCOTP_WR_UNLOCK 0x3E770000
+#define IMX_OCOTP_READ_LOCKED_VAL 0xBADABADA
+
+static DEFINE_MUTEX(ocotp_mutex);
+
+struct ocotp_priv {
+ struct device *dev;
+ struct clk *clk;
+ void __iomem *base;
+ const struct ocotp_params *params;
+ struct nvmem_config *config;
+};
+
+struct ocotp_ctrl_reg {
+ u32 bm_addr;
+ u32 bm_busy;
+ u32 bm_error;
+ u32 bm_rel_shadows;
+};
+
+struct ocotp_params {
+ unsigned int nregs;
+ unsigned int bank_address_words;
+ void (*set_timing)(struct ocotp_priv *priv);
+ struct ocotp_ctrl_reg ctrl;
+};
+
+static int imx_ocotp_wait_for_busy(struct ocotp_priv *priv, u32 flags)
+{
+ int count;
+ u32 c, mask;
+ u32 bm_ctrl_busy, bm_ctrl_error;
+ void __iomem *base = priv->base;
+
+ bm_ctrl_busy = priv->params->ctrl.bm_busy;
+ bm_ctrl_error = priv->params->ctrl.bm_error;
+
+ mask = bm_ctrl_busy | bm_ctrl_error | flags;
+
+ for (count = 10000; count >= 0; count--) {
+ c = readl(base + IMX_OCOTP_ADDR_CTRL);
+ if (!(c & mask))
+ break;
+ cpu_relax();
+ }
+
+ if (count < 0) {
+ /* HW_OCOTP_CTRL[ERROR] will be set under the following
+ * conditions:
+ * - A write is performed to a shadow register during a shadow
+ * reload (essentially, while HW_OCOTP_CTRL[RELOAD_SHADOWS] is
+ * set. In addition, the contents of the shadow register shall
+ * not be updated.
+ * - A write is performed to a shadow register which has been
+ * locked.
+ * - A read is performed to from a shadow register which has
+ * been read locked.
+ * - A program is performed to a fuse word which has been locked
+ * - A read is performed to from a fuse word which has been read
+ * locked.
+ */
+ if (c & bm_ctrl_error)
+ return -EPERM;
+ return -ETIMEDOUT;
+ }
+
+ return 0;
+}
+
+static void imx_ocotp_clr_err_if_set(struct ocotp_priv *priv)
+{
+ u32 c, bm_ctrl_error;
+ void __iomem *base = priv->base;
+
+ bm_ctrl_error = priv->params->ctrl.bm_error;
+
+ c = readl(base + IMX_OCOTP_ADDR_CTRL);
+ if (!(c & bm_ctrl_error))
+ return;
+
+ writel(bm_ctrl_error, base + IMX_OCOTP_ADDR_CTRL_CLR);
+}
+
+static int imx_ocotp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct ocotp_priv *priv = context;
+ unsigned int count;
+ u8 *buf, *p;
+ int i, ret;
+ u32 index, num_bytes;
+
+ index = offset >> 2;
+ num_bytes = round_up((offset % 4) + bytes, 4);
+ count = num_bytes >> 2;
+
+ if (count > (priv->params->nregs - index))
+ count = priv->params->nregs - index;
+
+ p = kzalloc(num_bytes, GFP_KERNEL);
+ if (!p)
+ return -ENOMEM;
+
+ mutex_lock(&ocotp_mutex);
+
+ buf = p;
+
+ ret = clk_prepare_enable(priv->clk);
+ if (ret < 0) {
+ mutex_unlock(&ocotp_mutex);
+ dev_err(priv->dev, "failed to prepare/enable ocotp clk\n");
+ kfree(p);
+ return ret;
+ }
+
+ ret = imx_ocotp_wait_for_busy(priv, 0);
+ if (ret < 0) {
+ dev_err(priv->dev, "timeout during read setup\n");
+ goto read_end;
+ }
+
+ for (i = index; i < (index + count); i++) {
+ *(u32 *)buf = readl(priv->base + IMX_OCOTP_OFFSET_B0W0 +
+ i * IMX_OCOTP_OFFSET_PER_WORD);
+
+ /* 47.3.1.2
+ * For "read locked" registers 0xBADABADA will be returned and
+ * HW_OCOTP_CTRL[ERROR] will be set. It must be cleared by
+ * software before any new write, read or reload access can be
+ * issued
+ */
+ if (*((u32 *)buf) == IMX_OCOTP_READ_LOCKED_VAL)
+ imx_ocotp_clr_err_if_set(priv);
+
+ buf += 4;
+ }
+
+ index = offset % 4;
+ memcpy(val, &p[index], bytes);
+
+read_end:
+ clk_disable_unprepare(priv->clk);
+ mutex_unlock(&ocotp_mutex);
+
+ kfree(p);
+
+ return ret;
+}
+
+static int imx_ocotp_cell_pp(void *context, const char *id, int index,
+ unsigned int offset, void *data, size_t bytes)
+{
+ u8 *buf = data;
+ int i;
+
+ /* Deal with some post processing of nvmem cell data */
+ if (id && !strcmp(id, "mac-address")) {
+ bytes = min(bytes, ETH_ALEN);
+ for (i = 0; i < bytes / 2; i++)
+ swap(buf[i], buf[bytes - i - 1]);
+ }
+
+ return 0;
+}
+
+static void imx_ocotp_set_imx6_timing(struct ocotp_priv *priv)
+{
+ unsigned long clk_rate;
+ unsigned long strobe_read, relax, strobe_prog;
+ u32 timing;
+
+ /* 47.3.1.3.1
+ * Program HW_OCOTP_TIMING[STROBE_PROG] and HW_OCOTP_TIMING[RELAX]
+ * fields with timing values to match the current frequency of the
+ * ipg_clk. OTP writes will work at maximum bus frequencies as long
+ * as the HW_OCOTP_TIMING parameters are set correctly.
+ *
+ * Note: there are minimum timings required to ensure an OTP fuse burns
+ * correctly that are independent of the ipg_clk. Those values are not
+ * formally documented anywhere however, working from the minimum
+ * timings given in u-boot we can say:
+ *
+ * - Minimum STROBE_PROG time is 10 microseconds. Intuitively 10
+ * microseconds feels about right as representative of a minimum time
+ * to physically burn out a fuse.
+ *
+ * - Minimum STROBE_READ i.e. the time to wait post OTP fuse burn before
+ * performing another read is 37 nanoseconds
+ *
+ * - Minimum RELAX timing is 17 nanoseconds. This final RELAX minimum
+ * timing is not entirely clear the documentation says "This
+ * count value specifies the time to add to all default timing
+ * parameters other than the Tpgm and Trd. It is given in number
+ * of ipg_clk periods." where Tpgm and Trd refer to STROBE_PROG
+ * and STROBE_READ respectively. What the other timing parameters
+ * are though, is not specified. Experience shows a zero RELAX
+ * value will mess up a re-load of the shadow registers post OTP
+ * burn.
+ */
+ clk_rate = clk_get_rate(priv->clk);
+
+ relax = DIV_ROUND_UP(clk_rate * TIMING_RELAX_NS, 1000000000) - 1;
+ strobe_read = DIV_ROUND_UP(clk_rate * TIMING_STROBE_READ_NS,
+ 1000000000);
+ strobe_read += 2 * (relax + 1) - 1;
+ strobe_prog = DIV_ROUND_CLOSEST(clk_rate * TIMING_STROBE_PROG_US,
+ 1000000);
+ strobe_prog += 2 * (relax + 1) - 1;
+
+ timing = readl(priv->base + IMX_OCOTP_ADDR_TIMING) & 0x0FC00000;
+ timing |= strobe_prog & 0x00000FFF;
+ timing |= (relax << 12) & 0x0000F000;
+ timing |= (strobe_read << 16) & 0x003F0000;
+
+ writel(timing, priv->base + IMX_OCOTP_ADDR_TIMING);
+}
+
+static void imx_ocotp_set_imx7_timing(struct ocotp_priv *priv)
+{
+ unsigned long clk_rate;
+ u64 fsource, strobe_prog;
+ u32 timing;
+
+ /* i.MX 7Solo Applications Processor Reference Manual, Rev. 0.1
+ * 6.4.3.3
+ */
+ clk_rate = clk_get_rate(priv->clk);
+ fsource = DIV_ROUND_UP_ULL((u64)clk_rate * DEF_FSOURCE,
+ NSEC_PER_SEC) + 1;
+ strobe_prog = DIV_ROUND_CLOSEST_ULL((u64)clk_rate * DEF_STROBE_PROG,
+ NSEC_PER_SEC) + 1;
+
+ timing = strobe_prog & 0x00000FFF;
+ timing |= (fsource << 12) & 0x000FF000;
+
+ writel(timing, priv->base + IMX_OCOTP_ADDR_TIMING);
+}
+
+static int imx_ocotp_write(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct ocotp_priv *priv = context;
+ u32 *buf = val;
+ int ret;
+
+ u32 ctrl;
+ u8 waddr;
+ u8 word = 0;
+
+ /* allow only writing one complete OTP word at a time */
+ if ((bytes != priv->config->word_size) ||
+ (offset % priv->config->word_size))
+ return -EINVAL;
+
+ mutex_lock(&ocotp_mutex);
+
+ ret = clk_prepare_enable(priv->clk);
+ if (ret < 0) {
+ mutex_unlock(&ocotp_mutex);
+ dev_err(priv->dev, "failed to prepare/enable ocotp clk\n");
+ return ret;
+ }
+
+ /* Setup the write timing values */
+ priv->params->set_timing(priv);
+
+ /* 47.3.1.3.2
+ * Check that HW_OCOTP_CTRL[BUSY] and HW_OCOTP_CTRL[ERROR] are clear.
+ * Overlapped accesses are not supported by the controller. Any pending
+ * write or reload must be completed before a write access can be
+ * requested.
+ */
+ ret = imx_ocotp_wait_for_busy(priv, 0);
+ if (ret < 0) {
+ dev_err(priv->dev, "timeout during timing setup\n");
+ goto write_end;
+ }
+
+ /* 47.3.1.3.3
+ * Write the requested address to HW_OCOTP_CTRL[ADDR] and program the
+ * unlock code into HW_OCOTP_CTRL[WR_UNLOCK]. This must be programmed
+ * for each write access. The lock code is documented in the register
+ * description. Both the unlock code and address can be written in the
+ * same operation.
+ */
+ if (priv->params->bank_address_words != 0) {
+ /*
+ * In banked/i.MX7 mode the OTP register bank goes into waddr
+ * see i.MX 7Solo Applications Processor Reference Manual, Rev.
+ * 0.1 section 6.4.3.1
+ */
+ offset = offset / priv->config->word_size;
+ waddr = offset / priv->params->bank_address_words;
+ word = offset & (priv->params->bank_address_words - 1);
+ } else {
+ /*
+ * Non-banked i.MX6 mode.
+ * OTP write/read address specifies one of 128 word address
+ * locations
+ */
+ waddr = offset / 4;
+ }
+
+ ctrl = readl(priv->base + IMX_OCOTP_ADDR_CTRL);
+ ctrl &= ~priv->params->ctrl.bm_addr;
+ ctrl |= waddr & priv->params->ctrl.bm_addr;
+ ctrl |= IMX_OCOTP_WR_UNLOCK;
+
+ writel(ctrl, priv->base + IMX_OCOTP_ADDR_CTRL);
+
+ /* 47.3.1.3.4
+ * Write the data to the HW_OCOTP_DATA register. This will automatically
+ * set HW_OCOTP_CTRL[BUSY] and clear HW_OCOTP_CTRL[WR_UNLOCK]. To
+ * protect programming same OTP bit twice, before program OCOTP will
+ * automatically read fuse value in OTP and use read value to mask
+ * program data. The controller will use masked program data to program
+ * a 32-bit word in the OTP per the address in HW_OCOTP_CTRL[ADDR]. Bit
+ * fields with 1's will result in that OTP bit being programmed. Bit
+ * fields with 0's will be ignored. At the same time that the write is
+ * accepted, the controller makes an internal copy of
+ * HW_OCOTP_CTRL[ADDR] which cannot be updated until the next write
+ * sequence is initiated. This copy guarantees that erroneous writes to
+ * HW_OCOTP_CTRL[ADDR] will not affect an active write operation. It
+ * should also be noted that during the programming HW_OCOTP_DATA will
+ * shift right (with zero fill). This shifting is required to program
+ * the OTP serially. During the write operation, HW_OCOTP_DATA cannot be
+ * modified.
+ * Note: on i.MX7 there are four data fields to write for banked write
+ * with the fuse blowing operation only taking place after data0
+ * has been written. This is why data0 must always be the last
+ * register written.
+ */
+ if (priv->params->bank_address_words != 0) {
+ /* Banked/i.MX7 mode */
+ switch (word) {
+ case 0:
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA1);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA2);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA3);
+ writel(*buf, priv->base + IMX_OCOTP_ADDR_DATA0);
+ break;
+ case 1:
+ writel(*buf, priv->base + IMX_OCOTP_ADDR_DATA1);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA2);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA3);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA0);
+ break;
+ case 2:
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA1);
+ writel(*buf, priv->base + IMX_OCOTP_ADDR_DATA2);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA3);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA0);
+ break;
+ case 3:
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA1);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA2);
+ writel(*buf, priv->base + IMX_OCOTP_ADDR_DATA3);
+ writel(0, priv->base + IMX_OCOTP_ADDR_DATA0);
+ break;
+ }
+ } else {
+ /* Non-banked i.MX6 mode */
+ writel(*buf, priv->base + IMX_OCOTP_ADDR_DATA0);
+ }
+
+ /* 47.4.1.4.5
+ * Once complete, the controller will clear BUSY. A write request to a
+ * protected or locked region will result in no OTP access and no
+ * setting of HW_OCOTP_CTRL[BUSY]. In addition HW_OCOTP_CTRL[ERROR] will
+ * be set. It must be cleared by software before any new write access
+ * can be issued.
+ */
+ ret = imx_ocotp_wait_for_busy(priv, 0);
+ if (ret < 0) {
+ if (ret == -EPERM) {
+ dev_err(priv->dev, "failed write to locked region");
+ imx_ocotp_clr_err_if_set(priv);
+ } else {
+ dev_err(priv->dev, "timeout during data write\n");
+ }
+ goto write_end;
+ }
+
+ /* 47.3.1.4
+ * Write Postamble: Due to internal electrical characteristics of the
+ * OTP during writes, all OTP operations following a write must be
+ * separated by 2 us after the clearing of HW_OCOTP_CTRL_BUSY following
+ * the write.
+ */
+ udelay(2);
+
+ /* reload all shadow registers */
+ writel(priv->params->ctrl.bm_rel_shadows,
+ priv->base + IMX_OCOTP_ADDR_CTRL_SET);
+ ret = imx_ocotp_wait_for_busy(priv,
+ priv->params->ctrl.bm_rel_shadows);
+ if (ret < 0)
+ dev_err(priv->dev, "timeout during shadow register reload\n");
+
+write_end:
+ clk_disable_unprepare(priv->clk);
+ mutex_unlock(&ocotp_mutex);
+ return ret < 0 ? ret : bytes;
+}
+
+static struct nvmem_config imx_ocotp_nvmem_config = {
+ .name = "imx-ocotp",
+ .read_only = false,
+ .word_size = 4,
+ .stride = 1,
+ .reg_read = imx_ocotp_read,
+ .reg_write = imx_ocotp_write,
+};
+
+static const struct ocotp_params imx6q_params = {
+ .nregs = 128,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx6sl_params = {
+ .nregs = 64,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx6sll_params = {
+ .nregs = 80,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx6sx_params = {
+ .nregs = 128,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx6ul_params = {
+ .nregs = 144,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx6ull_params = {
+ .nregs = 80,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx7d_params = {
+ .nregs = 64,
+ .bank_address_words = 4,
+ .set_timing = imx_ocotp_set_imx7_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx7ulp_params = {
+ .nregs = 256,
+ .bank_address_words = 0,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx8mq_params = {
+ .nregs = 256,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx8mm_params = {
+ .nregs = 256,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx8mn_params = {
+ .nregs = 256,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_DEFAULT,
+};
+
+static const struct ocotp_params imx8mp_params = {
+ .nregs = 384,
+ .bank_address_words = 0,
+ .set_timing = imx_ocotp_set_imx6_timing,
+ .ctrl = IMX_OCOTP_BM_CTRL_8MP,
+};
+
+static const struct of_device_id imx_ocotp_dt_ids[] = {
+ { .compatible = "fsl,imx6q-ocotp", .data = &imx6q_params },
+ { .compatible = "fsl,imx6sl-ocotp", .data = &imx6sl_params },
+ { .compatible = "fsl,imx6sx-ocotp", .data = &imx6sx_params },
+ { .compatible = "fsl,imx6ul-ocotp", .data = &imx6ul_params },
+ { .compatible = "fsl,imx6ull-ocotp", .data = &imx6ull_params },
+ { .compatible = "fsl,imx7d-ocotp", .data = &imx7d_params },
+ { .compatible = "fsl,imx6sll-ocotp", .data = &imx6sll_params },
+ { .compatible = "fsl,imx7ulp-ocotp", .data = &imx7ulp_params },
+ { .compatible = "fsl,imx8mq-ocotp", .data = &imx8mq_params },
+ { .compatible = "fsl,imx8mm-ocotp", .data = &imx8mm_params },
+ { .compatible = "fsl,imx8mn-ocotp", .data = &imx8mn_params },
+ { .compatible = "fsl,imx8mp-ocotp", .data = &imx8mp_params },
+ { },
+};
+MODULE_DEVICE_TABLE(of, imx_ocotp_dt_ids);
+
+static void imx_ocotp_fixup_dt_cell_info(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *cell)
+{
+ cell->raw_len = round_up(cell->bytes, 4);
+ cell->read_post_process = imx_ocotp_cell_pp;
+}
+
+static int imx_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct ocotp_priv *priv;
+ struct nvmem_device *nvmem;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->dev = dev;
+
+ priv->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ priv->clk = devm_clk_get(dev, NULL);
+ if (IS_ERR(priv->clk))
+ return PTR_ERR(priv->clk);
+
+ priv->params = of_device_get_match_data(&pdev->dev);
+ imx_ocotp_nvmem_config.add_legacy_fixed_of_cells = true;
+ imx_ocotp_nvmem_config.size = 4 * priv->params->nregs;
+ imx_ocotp_nvmem_config.dev = dev;
+ imx_ocotp_nvmem_config.priv = priv;
+ imx_ocotp_nvmem_config.fixup_dt_cell_info = &imx_ocotp_fixup_dt_cell_info;
+
+ priv->config = &imx_ocotp_nvmem_config;
+
+ clk_prepare_enable(priv->clk);
+ imx_ocotp_clr_err_if_set(priv);
+ clk_disable_unprepare(priv->clk);
+
+ nvmem = devm_nvmem_register(dev, &imx_ocotp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver imx_ocotp_driver = {
+ .probe = imx_ocotp_probe,
+ .driver = {
+ .name = "imx_ocotp",
+ .of_match_table = imx_ocotp_dt_ids,
+ },
+};
+module_platform_driver(imx_ocotp_driver);
+
+MODULE_AUTHOR("Philipp Zabel <p.zabel@pengutronix.de>");
+MODULE_DESCRIPTION("i.MX6/i.MX7 OCOTP fuse box driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/internals.h b/drivers/nvmem/internals.h
new file mode 100644
index 000000000..4e610deea
--- /dev/null
+++ b/drivers/nvmem/internals.h
@@ -0,0 +1,65 @@
+/* SPDX-License-Identifier: GPL-2.0 */
+
+#ifndef _LINUX_NVMEM_INTERNALS_H
+#define _LINUX_NVMEM_INTERNALS_H
+
+#include <linux/device.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+
+/* Hold pointers to callbacks owned by the nvmem provider module. */
+struct nvmem_operations {
+ nvmem_reg_read_t reg_read;
+ nvmem_reg_write_t reg_write;
+};
+
+struct nvmem_device {
+ struct module *owner;
+ struct device dev;
+ int stride;
+ int word_size;
+ int id;
+ struct kref refcnt;
+ size_t size;
+ bool read_only;
+ bool root_only;
+ int flags;
+ enum nvmem_type type;
+ struct bin_attribute eeprom;
+ struct device *base_dev;
+ struct list_head cells;
+ void (*fixup_dt_cell_info)(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *cell);
+ const struct nvmem_keepout *keepout;
+ unsigned int nkeepout;
+ struct gpio_desc *wp_gpio;
+ struct nvmem_layout *layout;
+ struct nvmem_operations *ops;
+ void *priv;
+ bool sysfs_cells_populated;
+};
+
+int nvmem_add_cells_from_dt(struct nvmem_device *nvmem, struct device_node *np);
+
+#if IS_ENABLED(CONFIG_OF)
+int nvmem_layout_bus_register(void);
+void nvmem_layout_bus_unregister(void);
+int nvmem_populate_layout(struct nvmem_device *nvmem);
+void nvmem_destroy_layout(struct nvmem_device *nvmem);
+#else /* CONFIG_OF */
+static inline int nvmem_layout_bus_register(void)
+{
+ return 0;
+}
+
+static inline void nvmem_layout_bus_unregister(void) {}
+
+static inline int nvmem_populate_layout(struct nvmem_device *nvmem)
+{
+ return 0;
+}
+
+static inline void nvmem_destroy_layout(struct nvmem_device *nvmem) { }
+#endif /* CONFIG_OF */
+
+#endif /* ifndef _LINUX_NVMEM_INTERNALS_H */
diff --git a/drivers/nvmem/jz4780-efuse.c b/drivers/nvmem/jz4780-efuse.c
new file mode 100644
index 000000000..0b01b840e
--- /dev/null
+++ b/drivers/nvmem/jz4780-efuse.c
@@ -0,0 +1,237 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * JZ4780 EFUSE Memory Support driver
+ *
+ * Copyright (c) 2017 PrasannaKumar Muralidharan <prasannatsmkumar@gmail.com>
+ * Copyright (c) 2020 H. Nikolaus Schaller <hns@goldelico.com>
+ */
+
+/*
+ * Currently supports JZ4780 efuse which has 8K programmable bit.
+ * Efuse is separated into seven segments as below:
+ *
+ * -----------------------------------------------------------------------
+ * | 64 bit | 128 bit | 128 bit | 3520 bit | 8 bit | 2296 bit | 2048 bit |
+ * -----------------------------------------------------------------------
+ *
+ * The rom itself is accessed using a 9 bit address line and an 8 word wide bus
+ * which reads/writes based on strobes. The strobe is configured in the config
+ * register and is based on number of cycles of the bus clock.
+ *
+ * Driver supports read only as the writes are done in the Factory.
+ */
+
+#include <linux/bitops.h>
+#include <linux/clk.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/regmap.h>
+#include <linux/timer.h>
+
+#define JZ_EFUCTRL (0x0) /* Control Register */
+#define JZ_EFUCFG (0x4) /* Configure Register*/
+#define JZ_EFUSTATE (0x8) /* Status Register */
+#define JZ_EFUDATA(n) (0xC + (n) * 4)
+
+/* We read 32 byte chunks to avoid complexity in the driver. */
+#define JZ_EFU_READ_SIZE 32
+
+#define EFUCTRL_ADDR_MASK 0x3FF
+#define EFUCTRL_ADDR_SHIFT 21
+#define EFUCTRL_LEN_MASK 0x1F
+#define EFUCTRL_LEN_SHIFT 16
+#define EFUCTRL_PG_EN BIT(15)
+#define EFUCTRL_WR_EN BIT(1)
+#define EFUCTRL_RD_EN BIT(0)
+
+#define EFUCFG_INT_EN BIT(31)
+#define EFUCFG_RD_ADJ_MASK 0xF
+#define EFUCFG_RD_ADJ_SHIFT 20
+#define EFUCFG_RD_STR_MASK 0xF
+#define EFUCFG_RD_STR_SHIFT 16
+#define EFUCFG_WR_ADJ_MASK 0xF
+#define EFUCFG_WR_ADJ_SHIFT 12
+#define EFUCFG_WR_STR_MASK 0xFFF
+#define EFUCFG_WR_STR_SHIFT 0
+
+#define EFUSTATE_WR_DONE BIT(1)
+#define EFUSTATE_RD_DONE BIT(0)
+
+struct jz4780_efuse {
+ struct device *dev;
+ struct regmap *map;
+ struct clk *clk;
+};
+
+/* main entry point */
+static int jz4780_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct jz4780_efuse *efuse = context;
+
+ while (bytes > 0) {
+ size_t start = offset & ~(JZ_EFU_READ_SIZE - 1);
+ size_t chunk = min(bytes, (start + JZ_EFU_READ_SIZE)
+ - offset);
+ char buf[JZ_EFU_READ_SIZE];
+ unsigned int tmp;
+ u32 ctrl;
+ int ret;
+
+ ctrl = (start << EFUCTRL_ADDR_SHIFT)
+ | ((JZ_EFU_READ_SIZE - 1) << EFUCTRL_LEN_SHIFT)
+ | EFUCTRL_RD_EN;
+
+ regmap_update_bits(efuse->map, JZ_EFUCTRL,
+ (EFUCTRL_ADDR_MASK << EFUCTRL_ADDR_SHIFT) |
+ (EFUCTRL_LEN_MASK << EFUCTRL_LEN_SHIFT) |
+ EFUCTRL_PG_EN | EFUCTRL_WR_EN |
+ EFUCTRL_RD_EN,
+ ctrl);
+
+ ret = regmap_read_poll_timeout(efuse->map, JZ_EFUSTATE,
+ tmp, tmp & EFUSTATE_RD_DONE,
+ 1 * MSEC_PER_SEC,
+ 50 * MSEC_PER_SEC);
+ if (ret < 0) {
+ dev_err(efuse->dev, "Time out while reading efuse data");
+ return ret;
+ }
+
+ ret = regmap_bulk_read(efuse->map, JZ_EFUDATA(0),
+ buf, JZ_EFU_READ_SIZE / sizeof(u32));
+ if (ret < 0)
+ return ret;
+
+ memcpy(val, &buf[offset - start], chunk);
+
+ val += chunk;
+ offset += chunk;
+ bytes -= chunk;
+ }
+
+ return 0;
+}
+
+static struct nvmem_config jz4780_efuse_nvmem_config = {
+ .name = "jz4780-efuse",
+ .size = 1024,
+ .word_size = 1,
+ .stride = 1,
+ .owner = THIS_MODULE,
+ .reg_read = jz4780_efuse_read,
+};
+
+static const struct regmap_config jz4780_efuse_regmap_config = {
+ .reg_bits = 32,
+ .val_bits = 32,
+ .reg_stride = 4,
+ .max_register = JZ_EFUDATA(7),
+};
+
+static void clk_disable_unprepare_helper(void *clock)
+{
+ clk_disable_unprepare(clock);
+}
+
+static int jz4780_efuse_probe(struct platform_device *pdev)
+{
+ struct nvmem_device *nvmem;
+ struct jz4780_efuse *efuse;
+ struct nvmem_config cfg;
+ unsigned long clk_rate;
+ unsigned long rd_adj;
+ unsigned long rd_strobe;
+ struct device *dev = &pdev->dev;
+ void __iomem *regs;
+ int ret;
+
+ efuse = devm_kzalloc(dev, sizeof(*efuse), GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ regs = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(regs))
+ return PTR_ERR(regs);
+
+ efuse->map = devm_regmap_init_mmio(dev, regs,
+ &jz4780_efuse_regmap_config);
+ if (IS_ERR(efuse->map))
+ return PTR_ERR(efuse->map);
+
+ efuse->clk = devm_clk_get(&pdev->dev, NULL);
+ if (IS_ERR(efuse->clk))
+ return PTR_ERR(efuse->clk);
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret < 0)
+ return ret;
+
+ ret = devm_add_action_or_reset(&pdev->dev,
+ clk_disable_unprepare_helper,
+ efuse->clk);
+ if (ret < 0)
+ return ret;
+
+ clk_rate = clk_get_rate(efuse->clk);
+
+ efuse->dev = dev;
+
+ /*
+ * rd_adj and rd_strobe are 4 bit values
+ * conditions:
+ * bus clk_period * (rd_adj + 1) > 6.5ns
+ * bus clk_period * (rd_adj + 5 + rd_strobe) > 35ns
+ * i.e. rd_adj >= 6.5ns / clk_period
+ * i.e. rd_strobe >= 35 ns / clk_period - 5 - rd_adj + 1
+ * constants:
+ * 1 / 6.5ns == 153846154 Hz
+ * 1 / 35ns == 28571429 Hz
+ */
+
+ rd_adj = clk_rate / 153846154;
+ rd_strobe = clk_rate / 28571429 - 5 - rd_adj + 1;
+
+ if (rd_adj > EFUCFG_RD_ADJ_MASK ||
+ rd_strobe > EFUCFG_RD_STR_MASK) {
+ dev_err(&pdev->dev, "Cannot set clock configuration\n");
+ return -EINVAL;
+ }
+
+ regmap_update_bits(efuse->map, JZ_EFUCFG,
+ (EFUCFG_RD_ADJ_MASK << EFUCFG_RD_ADJ_SHIFT) |
+ (EFUCFG_RD_STR_MASK << EFUCFG_RD_STR_SHIFT),
+ (rd_adj << EFUCFG_RD_ADJ_SHIFT) |
+ (rd_strobe << EFUCFG_RD_STR_SHIFT));
+
+ cfg = jz4780_efuse_nvmem_config;
+ cfg.dev = &pdev->dev;
+ cfg.priv = efuse;
+
+ nvmem = devm_nvmem_register(dev, &cfg);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id jz4780_efuse_match[] = {
+ { .compatible = "ingenic,jz4780-efuse" },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, jz4780_efuse_match);
+
+static struct platform_driver jz4780_efuse_driver = {
+ .probe = jz4780_efuse_probe,
+ .driver = {
+ .name = "jz4780-efuse",
+ .of_match_table = jz4780_efuse_match,
+ },
+};
+module_platform_driver(jz4780_efuse_driver);
+
+MODULE_AUTHOR("PrasannaKumar Muralidharan <prasannatsmkumar@gmail.com>");
+MODULE_AUTHOR("H. Nikolaus Schaller <hns@goldelico.com>");
+MODULE_AUTHOR("Paul Cercueil <paul@crapouillou.net>");
+MODULE_DESCRIPTION("Ingenic JZ4780 efuse driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/lan9662-otpc.c b/drivers/nvmem/lan9662-otpc.c
new file mode 100644
index 000000000..62d1d6381
--- /dev/null
+++ b/drivers/nvmem/lan9662-otpc.c
@@ -0,0 +1,228 @@
+// SPDX-License-Identifier: GPL-2.0
+
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+#define OTP_OTP_PWR_DN(t) (t + 0x00)
+#define OTP_OTP_PWR_DN_OTP_PWRDN_N BIT(0)
+#define OTP_OTP_ADDR_HI(t) (t + 0x04)
+#define OTP_OTP_ADDR_LO(t) (t + 0x08)
+#define OTP_OTP_PRGM_DATA(t) (t + 0x10)
+#define OTP_OTP_PRGM_MODE(t) (t + 0x14)
+#define OTP_OTP_PRGM_MODE_OTP_PGM_MODE_BYTE BIT(0)
+#define OTP_OTP_RD_DATA(t) (t + 0x18)
+#define OTP_OTP_FUNC_CMD(t) (t + 0x20)
+#define OTP_OTP_FUNC_CMD_OTP_PROGRAM BIT(1)
+#define OTP_OTP_FUNC_CMD_OTP_READ BIT(0)
+#define OTP_OTP_CMD_GO(t) (t + 0x28)
+#define OTP_OTP_CMD_GO_OTP_GO BIT(0)
+#define OTP_OTP_PASS_FAIL(t) (t + 0x2c)
+#define OTP_OTP_PASS_FAIL_OTP_READ_PROHIBITED BIT(3)
+#define OTP_OTP_PASS_FAIL_OTP_WRITE_PROHIBITED BIT(2)
+#define OTP_OTP_PASS_FAIL_OTP_FAIL BIT(0)
+#define OTP_OTP_STATUS(t) (t + 0x30)
+#define OTP_OTP_STATUS_OTP_CPUMPEN BIT(1)
+#define OTP_OTP_STATUS_OTP_BUSY BIT(0)
+
+#define OTP_SLEEP_US 10
+#define OTP_TIMEOUT_US 500000
+
+struct lan9662_otp {
+ struct device *dev;
+ void __iomem *base;
+};
+
+static int lan9662_otp_wait_flag_clear(void __iomem *reg, u32 flag)
+{
+ u32 val;
+
+ return readl_poll_timeout(reg, val, !(val & flag),
+ OTP_SLEEP_US, OTP_TIMEOUT_US);
+}
+
+static int lan9662_otp_power(struct lan9662_otp *otp, bool up)
+{
+ void __iomem *pwrdn = OTP_OTP_PWR_DN(otp->base);
+
+ if (up) {
+ writel(readl(pwrdn) & ~OTP_OTP_PWR_DN_OTP_PWRDN_N, pwrdn);
+ if (lan9662_otp_wait_flag_clear(OTP_OTP_STATUS(otp->base),
+ OTP_OTP_STATUS_OTP_CPUMPEN))
+ return -ETIMEDOUT;
+ } else {
+ writel(readl(pwrdn) | OTP_OTP_PWR_DN_OTP_PWRDN_N, pwrdn);
+ }
+
+ return 0;
+}
+
+static int lan9662_otp_execute(struct lan9662_otp *otp)
+{
+ if (lan9662_otp_wait_flag_clear(OTP_OTP_CMD_GO(otp->base),
+ OTP_OTP_CMD_GO_OTP_GO))
+ return -ETIMEDOUT;
+
+ if (lan9662_otp_wait_flag_clear(OTP_OTP_STATUS(otp->base),
+ OTP_OTP_STATUS_OTP_BUSY))
+ return -ETIMEDOUT;
+
+ return 0;
+}
+
+static void lan9662_otp_set_address(struct lan9662_otp *otp, u32 offset)
+{
+ writel(0xff & (offset >> 8), OTP_OTP_ADDR_HI(otp->base));
+ writel(0xff & offset, OTP_OTP_ADDR_LO(otp->base));
+}
+
+static int lan9662_otp_read_byte(struct lan9662_otp *otp, u32 offset, u8 *dst)
+{
+ u32 pass;
+ int rc;
+
+ lan9662_otp_set_address(otp, offset);
+ writel(OTP_OTP_FUNC_CMD_OTP_READ, OTP_OTP_FUNC_CMD(otp->base));
+ writel(OTP_OTP_CMD_GO_OTP_GO, OTP_OTP_CMD_GO(otp->base));
+ rc = lan9662_otp_execute(otp);
+ if (!rc) {
+ pass = readl(OTP_OTP_PASS_FAIL(otp->base));
+ if (pass & OTP_OTP_PASS_FAIL_OTP_READ_PROHIBITED)
+ return -EACCES;
+ *dst = (u8) readl(OTP_OTP_RD_DATA(otp->base));
+ }
+ return rc;
+}
+
+static int lan9662_otp_write_byte(struct lan9662_otp *otp, u32 offset, u8 data)
+{
+ u32 pass;
+ int rc;
+
+ lan9662_otp_set_address(otp, offset);
+ writel(OTP_OTP_PRGM_MODE_OTP_PGM_MODE_BYTE, OTP_OTP_PRGM_MODE(otp->base));
+ writel(data, OTP_OTP_PRGM_DATA(otp->base));
+ writel(OTP_OTP_FUNC_CMD_OTP_PROGRAM, OTP_OTP_FUNC_CMD(otp->base));
+ writel(OTP_OTP_CMD_GO_OTP_GO, OTP_OTP_CMD_GO(otp->base));
+
+ rc = lan9662_otp_execute(otp);
+ if (!rc) {
+ pass = readl(OTP_OTP_PASS_FAIL(otp->base));
+ if (pass & OTP_OTP_PASS_FAIL_OTP_WRITE_PROHIBITED)
+ return -EACCES;
+ if (pass & OTP_OTP_PASS_FAIL_OTP_FAIL)
+ return -EIO;
+ }
+ return rc;
+}
+
+static int lan9662_otp_read(void *context, unsigned int offset,
+ void *_val, size_t bytes)
+{
+ struct lan9662_otp *otp = context;
+ u8 *val = _val;
+ uint8_t data;
+ int i, rc = 0;
+
+ lan9662_otp_power(otp, true);
+ for (i = 0; i < bytes; i++) {
+ rc = lan9662_otp_read_byte(otp, offset + i, &data);
+ if (rc < 0)
+ break;
+ *val++ = data;
+ }
+ lan9662_otp_power(otp, false);
+
+ return rc;
+}
+
+static int lan9662_otp_write(void *context, unsigned int offset,
+ void *_val, size_t bytes)
+{
+ struct lan9662_otp *otp = context;
+ u8 *val = _val;
+ u8 data, newdata;
+ int i, rc = 0;
+
+ lan9662_otp_power(otp, true);
+ for (i = 0; i < bytes; i++) {
+ /* Skip zero bytes */
+ if (val[i]) {
+ rc = lan9662_otp_read_byte(otp, offset + i, &data);
+ if (rc < 0)
+ break;
+
+ newdata = data | val[i];
+ if (newdata == data)
+ continue;
+
+ rc = lan9662_otp_write_byte(otp, offset + i,
+ newdata);
+ if (rc < 0)
+ break;
+ }
+ }
+ lan9662_otp_power(otp, false);
+
+ return rc;
+}
+
+static struct nvmem_config otp_config = {
+ .name = "lan9662-otp",
+ .stride = 1,
+ .word_size = 1,
+ .reg_read = lan9662_otp_read,
+ .reg_write = lan9662_otp_write,
+};
+
+static int lan9662_otp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct nvmem_device *nvmem;
+ struct lan9662_otp *otp;
+
+ otp = devm_kzalloc(&pdev->dev, sizeof(*otp), GFP_KERNEL);
+ if (!otp)
+ return -ENOMEM;
+
+ otp->dev = dev;
+ otp->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(otp->base))
+ return PTR_ERR(otp->base);
+
+ otp_config.priv = otp;
+ otp_config.dev = dev;
+ otp_config.size = (uintptr_t) device_get_match_data(dev);
+
+ nvmem = devm_nvmem_register(dev, &otp_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id lan9662_otp_match[] = {
+ {
+ .compatible = "microchip,lan9662-otpc",
+ .data = (const void *) SZ_8K,
+ },
+ {
+ .compatible = "microchip,lan9691-otpc",
+ .data = (const void *) SZ_16K,
+ },
+ { },
+};
+MODULE_DEVICE_TABLE(of, lan9662_otp_match);
+
+static struct platform_driver lan9662_otp_driver = {
+ .probe = lan9662_otp_probe,
+ .driver = {
+ .name = "lan9662-otp",
+ .of_match_table = lan9662_otp_match,
+ },
+};
+module_platform_driver(lan9662_otp_driver);
+
+MODULE_AUTHOR("Horatiu Vultur <horatiu.vultur@microchip.com>");
+MODULE_DESCRIPTION("lan9662 OTP driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/layerscape-sfp.c b/drivers/nvmem/layerscape-sfp.c
new file mode 100644
index 000000000..c1521afd5
--- /dev/null
+++ b/drivers/nvmem/layerscape-sfp.c
@@ -0,0 +1,108 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Layerscape SFP driver
+ *
+ * Copyright (c) 2022 Michael Walle <michael@walle.cc>
+ *
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/property.h>
+#include <linux/regmap.h>
+
+#define LAYERSCAPE_SFP_OTP_OFFSET 0x0200
+
+struct layerscape_sfp_priv {
+ struct regmap *regmap;
+};
+
+struct layerscape_sfp_data {
+ int size;
+ enum regmap_endian endian;
+};
+
+static int layerscape_sfp_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct layerscape_sfp_priv *priv = context;
+
+ return regmap_bulk_read(priv->regmap,
+ LAYERSCAPE_SFP_OTP_OFFSET + offset, val,
+ bytes / 4);
+}
+
+static struct nvmem_config layerscape_sfp_nvmem_config = {
+ .name = "fsl-sfp",
+ .reg_read = layerscape_sfp_read,
+ .word_size = 4,
+ .stride = 4,
+};
+
+static int layerscape_sfp_probe(struct platform_device *pdev)
+{
+ const struct layerscape_sfp_data *data;
+ struct layerscape_sfp_priv *priv;
+ struct nvmem_device *nvmem;
+ struct regmap_config config = { 0 };
+ void __iomem *base;
+
+ priv = devm_kzalloc(&pdev->dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(base))
+ return PTR_ERR(base);
+
+ data = device_get_match_data(&pdev->dev);
+ config.reg_bits = 32;
+ config.reg_stride = 4;
+ config.val_bits = 32;
+ config.val_format_endian = data->endian;
+ config.max_register = LAYERSCAPE_SFP_OTP_OFFSET + data->size - 4;
+ priv->regmap = devm_regmap_init_mmio(&pdev->dev, base, &config);
+ if (IS_ERR(priv->regmap))
+ return PTR_ERR(priv->regmap);
+
+ layerscape_sfp_nvmem_config.size = data->size;
+ layerscape_sfp_nvmem_config.dev = &pdev->dev;
+ layerscape_sfp_nvmem_config.priv = priv;
+
+ nvmem = devm_nvmem_register(&pdev->dev, &layerscape_sfp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct layerscape_sfp_data ls1021a_data = {
+ .size = 0x88,
+ .endian = REGMAP_ENDIAN_BIG,
+};
+
+static const struct layerscape_sfp_data ls1028a_data = {
+ .size = 0x88,
+ .endian = REGMAP_ENDIAN_LITTLE,
+};
+
+static const struct of_device_id layerscape_sfp_dt_ids[] = {
+ { .compatible = "fsl,ls1021a-sfp", .data = &ls1021a_data },
+ { .compatible = "fsl,ls1028a-sfp", .data = &ls1028a_data },
+ {},
+};
+MODULE_DEVICE_TABLE(of, layerscape_sfp_dt_ids);
+
+static struct platform_driver layerscape_sfp_driver = {
+ .probe = layerscape_sfp_probe,
+ .driver = {
+ .name = "layerscape_sfp",
+ .of_match_table = layerscape_sfp_dt_ids,
+ },
+};
+module_platform_driver(layerscape_sfp_driver);
+
+MODULE_AUTHOR("Michael Walle <michael@walle.cc>");
+MODULE_DESCRIPTION("Layerscape Security Fuse Processor driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/layouts.c b/drivers/nvmem/layouts.c
new file mode 100644
index 000000000..07a34be96
--- /dev/null
+++ b/drivers/nvmem/layouts.c
@@ -0,0 +1,205 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * NVMEM layout bus handling
+ *
+ * Copyright (C) 2023 Bootlin
+ * Author: Miquel Raynal <miquel.raynal@bootlin.com
+ */
+
+#include <linux/device.h>
+#include <linux/dma-mapping.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/of_device.h>
+#include <linux/of_irq.h>
+
+#include "internals.h"
+
+#define to_nvmem_layout_driver(drv) \
+ (container_of_const((drv), struct nvmem_layout_driver, driver))
+#define to_nvmem_layout_device(_dev) \
+ container_of((_dev), struct nvmem_layout, dev)
+
+static int nvmem_layout_bus_match(struct device *dev, const struct device_driver *drv)
+{
+ return of_driver_match_device(dev, drv);
+}
+
+static int nvmem_layout_bus_probe(struct device *dev)
+{
+ struct nvmem_layout_driver *drv = to_nvmem_layout_driver(dev->driver);
+ struct nvmem_layout *layout = to_nvmem_layout_device(dev);
+
+ if (!drv->probe || !drv->remove)
+ return -EINVAL;
+
+ return drv->probe(layout);
+}
+
+static void nvmem_layout_bus_remove(struct device *dev)
+{
+ struct nvmem_layout_driver *drv = to_nvmem_layout_driver(dev->driver);
+ struct nvmem_layout *layout = to_nvmem_layout_device(dev);
+
+ return drv->remove(layout);
+}
+
+static int nvmem_layout_bus_uevent(const struct device *dev,
+ struct kobj_uevent_env *env)
+{
+ int ret;
+
+ ret = of_device_uevent_modalias(dev, env);
+ if (ret != -ENODEV)
+ return ret;
+
+ return 0;
+}
+
+static const struct bus_type nvmem_layout_bus_type = {
+ .name = "nvmem-layout",
+ .match = nvmem_layout_bus_match,
+ .probe = nvmem_layout_bus_probe,
+ .remove = nvmem_layout_bus_remove,
+ .uevent = nvmem_layout_bus_uevent,
+};
+
+int __nvmem_layout_driver_register(struct nvmem_layout_driver *drv,
+ struct module *owner)
+{
+ drv->driver.bus = &nvmem_layout_bus_type;
+ drv->driver.owner = owner;
+
+ return driver_register(&drv->driver);
+}
+EXPORT_SYMBOL_GPL(__nvmem_layout_driver_register);
+
+void nvmem_layout_driver_unregister(struct nvmem_layout_driver *drv)
+{
+ driver_unregister(&drv->driver);
+}
+EXPORT_SYMBOL_GPL(nvmem_layout_driver_unregister);
+
+static void nvmem_layout_release_device(struct device *dev)
+{
+ struct nvmem_layout *layout = to_nvmem_layout_device(dev);
+
+ of_node_put(layout->dev.of_node);
+ kfree(layout);
+}
+
+static int nvmem_layout_create_device(struct nvmem_device *nvmem,
+ struct device_node *np)
+{
+ struct nvmem_layout *layout;
+ struct device *dev;
+ int ret;
+
+ layout = kzalloc_obj(*layout);
+ if (!layout)
+ return -ENOMEM;
+
+ /* Create a bidirectional link */
+ layout->nvmem = nvmem;
+ nvmem->layout = layout;
+
+ /* Device model registration */
+ dev = &layout->dev;
+ device_initialize(dev);
+ dev->parent = &nvmem->dev;
+ dev->bus = &nvmem_layout_bus_type;
+ dev->release = nvmem_layout_release_device;
+ dev->coherent_dma_mask = DMA_BIT_MASK(32);
+ dev->dma_mask = &dev->coherent_dma_mask;
+ device_set_node(dev, of_fwnode_handle(of_node_get(np)));
+ of_device_make_bus_id(dev);
+ of_msi_configure(dev, dev->of_node);
+
+ ret = device_add(dev);
+ if (ret) {
+ put_device(dev);
+ return ret;
+ }
+
+ return 0;
+}
+
+static int nvmem_layout_bus_populate(struct nvmem_device *nvmem,
+ struct device_node *layout_dn)
+{
+ int ret;
+
+ /* Make sure it has a compatible property */
+ if (!of_property_present(layout_dn, "compatible")) {
+ pr_debug("%s() - skipping %pOF, no compatible prop\n",
+ __func__, layout_dn);
+ return 0;
+ }
+
+ if (of_node_check_flag(layout_dn, OF_POPULATED_BUS)) {
+ pr_debug("%s() - skipping %pOF, already populated\n",
+ __func__, layout_dn);
+
+ return 0;
+ }
+
+ /* NVMEM layout buses expect only a single device representing the layout */
+ ret = nvmem_layout_create_device(nvmem, layout_dn);
+ if (ret)
+ return ret;
+
+ of_node_set_flag(layout_dn, OF_POPULATED_BUS);
+
+ return 0;
+}
+
+struct device_node *of_nvmem_layout_get_container(struct nvmem_device *nvmem)
+{
+ return of_get_child_by_name(nvmem->dev.of_node, "nvmem-layout");
+}
+EXPORT_SYMBOL_GPL(of_nvmem_layout_get_container);
+
+/*
+ * Returns the number of devices populated, 0 if the operation was not relevant
+ * for this nvmem device, an error code otherwise.
+ */
+int nvmem_populate_layout(struct nvmem_device *nvmem)
+{
+ struct device_node *layout_dn;
+ int ret;
+
+ layout_dn = of_nvmem_layout_get_container(nvmem);
+ if (!layout_dn)
+ return 0;
+
+ /* Populate the layout device */
+ device_links_supplier_sync_state_pause();
+ ret = nvmem_layout_bus_populate(nvmem, layout_dn);
+ device_links_supplier_sync_state_resume();
+
+ of_node_put(layout_dn);
+ return ret;
+}
+
+void nvmem_destroy_layout(struct nvmem_device *nvmem)
+{
+ struct device *dev;
+
+ if (!nvmem->layout)
+ return;
+
+ dev = &nvmem->layout->dev;
+ of_node_clear_flag(dev->of_node, OF_POPULATED_BUS);
+ device_unregister(dev);
+}
+
+int nvmem_layout_bus_register(void)
+{
+ return bus_register(&nvmem_layout_bus_type);
+}
+
+void nvmem_layout_bus_unregister(void)
+{
+ bus_unregister(&nvmem_layout_bus_type);
+}
diff --git a/drivers/nvmem/layouts/Kconfig b/drivers/nvmem/layouts/Kconfig
new file mode 100644
index 000000000..5e586dfeb
--- /dev/null
+++ b/drivers/nvmem/layouts/Kconfig
@@ -0,0 +1,42 @@
+# SPDX-License-Identifier: GPL-2.0
+
+config NVMEM_LAYOUTS
+ bool
+ depends on OF
+
+if NVMEM_LAYOUTS
+
+menu "Layout Types"
+
+config NVMEM_LAYOUT_SL28_VPD
+ tristate "Kontron sl28 VPD layout support"
+ select CRC8
+ help
+ Say Y here if you want to support the VPD layout of the Kontron
+ SMARC-sAL28 boards.
+
+ If unsure, say N.
+
+config NVMEM_LAYOUT_ONIE_TLV
+ tristate "ONIE tlv support"
+ select CRC32
+ help
+ Say Y here if you want to support the Open Compute Project ONIE
+ Type-Length-Value standard table.
+
+ If unsure, say N.
+
+config NVMEM_LAYOUT_U_BOOT_ENV
+ tristate "U-Boot environment variables layout"
+ select CRC32
+ select GENERIC_NET_UTILS
+ help
+ U-Boot stores its setup as environment variables. This driver adds
+ support for verifying & exporting such data. It also exposes variables
+ as NVMEM cells so they can be referenced by other drivers.
+
+ If unsure, say N.
+
+endmenu
+
+endif
diff --git a/drivers/nvmem/layouts/Makefile b/drivers/nvmem/layouts/Makefile
new file mode 100644
index 000000000..dd6c6c70b
--- /dev/null
+++ b/drivers/nvmem/layouts/Makefile
@@ -0,0 +1,9 @@
+# SPDX-License-Identifier: GPL-2.0
+#
+# Makefile for nvmem layouts.
+#
+
+obj-$(CONFIG_NVMEM_LAYOUTS) += fixed-layout.o
+obj-$(CONFIG_NVMEM_LAYOUT_SL28_VPD) += sl28vpd.o
+obj-$(CONFIG_NVMEM_LAYOUT_ONIE_TLV) += onie-tlv.o
+obj-$(CONFIG_NVMEM_LAYOUT_U_BOOT_ENV) += u-boot-env.o
diff --git a/drivers/nvmem/layouts/fixed-layout.c b/drivers/nvmem/layouts/fixed-layout.c
new file mode 100644
index 000000000..635d448b3
--- /dev/null
+++ b/drivers/nvmem/layouts/fixed-layout.c
@@ -0,0 +1,58 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright 2026 Bootlin
+ *
+ * Authors: Mathieu Dubois-Briand <mathieu.dubois-briand@bootlin.com>
+ */
+
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+
+#include "../internals.h"
+
+static int fixed_layout_add_cells(struct nvmem_layout *layout)
+{
+ struct device_node *np;
+ int ret;
+
+ np = of_nvmem_layout_get_container(layout->nvmem);
+ if (!np)
+ return -ENOENT;
+
+ ret = nvmem_add_cells_from_dt(layout->nvmem, np);
+ of_node_put(np);
+
+ return ret;
+}
+
+static int fixed_layout_probe(struct nvmem_layout *layout)
+{
+ layout->add_cells = fixed_layout_add_cells;
+
+ return nvmem_layout_register(layout);
+}
+
+static void fixed_layout_remove(struct nvmem_layout *layout)
+{
+ nvmem_layout_unregister(layout);
+}
+
+static const struct of_device_id fixed_layout_of_match_table[] = {
+ { .compatible = "fixed-layout", },
+ {},
+};
+
+static struct nvmem_layout_driver fixed_layout_layout = {
+ .driver = {
+ .name = "fixed-layout",
+ .of_match_table = fixed_layout_of_match_table,
+ },
+ .probe = fixed_layout_probe,
+ .remove = fixed_layout_remove,
+};
+module_nvmem_layout_driver(fixed_layout_layout);
+
+MODULE_AUTHOR("Mathieu Dubois-Briand");
+MODULE_LICENSE("GPL");
+MODULE_DEVICE_TABLE(of, fixed_layout_of_match_table);
+MODULE_DESCRIPTION("NVMEM fixed-layout driver");
diff --git a/drivers/nvmem/layouts/onie-tlv.c b/drivers/nvmem/layouts/onie-tlv.c
new file mode 100644
index 000000000..8b0f3c1b8
--- /dev/null
+++ b/drivers/nvmem/layouts/onie-tlv.c
@@ -0,0 +1,261 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * ONIE tlv NVMEM cells provider
+ *
+ * Copyright (C) 2022 Open Compute Group ONIE
+ * Author: Miquel Raynal <miquel.raynal@bootlin.com>
+ * Based on the nvmem driver written by: Vadym Kochan <vadym.kochan@plvision.eu>
+ * Inspired by the first layout written by: Rafał Miłecki <rafal@milecki.pl>
+ */
+
+#include <linux/crc32.h>
+#include <linux/etherdevice.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+
+#define ONIE_TLV_MAX_LEN 2048
+#define ONIE_TLV_CRC_FIELD_SZ 6
+#define ONIE_TLV_CRC_SZ 4
+#define ONIE_TLV_HDR_ID "TlvInfo"
+
+struct onie_tlv_hdr {
+ u8 id[8];
+ u8 version;
+ __be16 data_len;
+} __packed;
+
+struct onie_tlv {
+ u8 type;
+ u8 len;
+} __packed;
+
+static const char *onie_tlv_cell_name(u8 type)
+{
+ switch (type) {
+ case 0x21:
+ return "product-name";
+ case 0x22:
+ return "part-number";
+ case 0x23:
+ return "serial-number";
+ case 0x24:
+ return "mac-address";
+ case 0x25:
+ return "manufacture-date";
+ case 0x26:
+ return "device-version";
+ case 0x27:
+ return "label-revision";
+ case 0x28:
+ return "platform-name";
+ case 0x29:
+ return "onie-version";
+ case 0x2A:
+ return "num-macs";
+ case 0x2B:
+ return "manufacturer";
+ case 0x2C:
+ return "country-code";
+ case 0x2D:
+ return "vendor";
+ case 0x2E:
+ return "diag-version";
+ case 0x2F:
+ return "service-tag";
+ case 0xFD:
+ return "vendor-extension";
+ case 0xFE:
+ return "crc32";
+ default:
+ break;
+ }
+
+ return NULL;
+}
+
+static int onie_tlv_mac_read_cb(void *priv, const char *id, int index,
+ unsigned int offset, void *buf,
+ size_t bytes)
+{
+ eth_addr_add(buf, index);
+
+ return 0;
+}
+
+static nvmem_cell_post_process_t onie_tlv_read_cb(u8 type, u8 *buf)
+{
+ switch (type) {
+ case 0x24:
+ return &onie_tlv_mac_read_cb;
+ default:
+ break;
+ }
+
+ return NULL;
+}
+
+static int onie_tlv_add_cells(struct device *dev, struct nvmem_device *nvmem,
+ size_t data_len, u8 *data)
+{
+ struct nvmem_cell_info cell = {};
+ struct device_node *layout;
+ struct onie_tlv tlv;
+ unsigned int hdr_len = sizeof(struct onie_tlv_hdr);
+ unsigned int offset = 0;
+ int ret;
+
+ layout = of_nvmem_layout_get_container(nvmem);
+ if (!layout)
+ return -ENOENT;
+
+ while (offset < data_len) {
+ memcpy(&tlv, data + offset, sizeof(tlv));
+ if (offset + tlv.len >= data_len) {
+ dev_err(dev, "Out of bounds field (0x%x bytes at 0x%x)\n",
+ tlv.len, hdr_len + offset);
+ break;
+ }
+
+ cell.name = onie_tlv_cell_name(tlv.type);
+ if (!cell.name)
+ goto next;
+
+ cell.offset = hdr_len + offset + sizeof(tlv.type) + sizeof(tlv.len);
+ cell.bytes = tlv.len;
+ cell.np = of_get_child_by_name(layout, cell.name);
+ cell.read_post_process = onie_tlv_read_cb(tlv.type, data + offset + sizeof(tlv));
+
+ ret = nvmem_add_one_cell(nvmem, &cell);
+ if (ret) {
+ of_node_put(layout);
+ return ret;
+ }
+
+next:
+ offset += sizeof(tlv) + tlv.len;
+ }
+
+ of_node_put(layout);
+
+ return 0;
+}
+
+static bool onie_tlv_hdr_is_valid(struct device *dev, struct onie_tlv_hdr *hdr)
+{
+ if (memcmp(hdr->id, ONIE_TLV_HDR_ID, sizeof(hdr->id))) {
+ dev_err(dev, "Invalid header\n");
+ return false;
+ }
+
+ if (hdr->version != 0x1) {
+ dev_err(dev, "Invalid version number\n");
+ return false;
+ }
+
+ return true;
+}
+
+static bool onie_tlv_crc_is_valid(struct device *dev, size_t table_len, u8 *table)
+{
+ struct onie_tlv crc_hdr;
+ u32 read_crc, calc_crc;
+ __be32 crc_be;
+
+ memcpy(&crc_hdr, table + table_len - ONIE_TLV_CRC_FIELD_SZ, sizeof(crc_hdr));
+ if (crc_hdr.type != 0xfe || crc_hdr.len != ONIE_TLV_CRC_SZ) {
+ dev_err(dev, "Invalid CRC field\n");
+ return false;
+ }
+
+ /* The table contains a JAMCRC, which is XOR'ed compared to the original
+ * CRC32 implementation as known in the Ethernet world.
+ */
+ memcpy(&crc_be, table + table_len - ONIE_TLV_CRC_SZ, ONIE_TLV_CRC_SZ);
+ read_crc = be32_to_cpu(crc_be);
+ calc_crc = crc32(~0, table, table_len - ONIE_TLV_CRC_SZ) ^ 0xFFFFFFFF;
+ if (read_crc != calc_crc) {
+ dev_err(dev, "Invalid CRC read: 0x%08x, expected: 0x%08x\n",
+ read_crc, calc_crc);
+ return false;
+ }
+
+ return true;
+}
+
+static int onie_tlv_parse_table(struct nvmem_layout *layout)
+{
+ struct nvmem_device *nvmem = layout->nvmem;
+ struct device *dev = &layout->dev;
+ struct onie_tlv_hdr hdr;
+ size_t table_len, data_len, hdr_len;
+ u8 *table, *data;
+ int ret;
+
+ ret = nvmem_device_read(nvmem, 0, sizeof(hdr), &hdr);
+ if (ret < 0)
+ return ret;
+
+ if (!onie_tlv_hdr_is_valid(dev, &hdr)) {
+ dev_err(dev, "Invalid ONIE TLV header\n");
+ return -EINVAL;
+ }
+
+ hdr_len = sizeof(hdr.id) + sizeof(hdr.version) + sizeof(hdr.data_len);
+ data_len = be16_to_cpu(hdr.data_len);
+ table_len = hdr_len + data_len;
+ if (table_len > ONIE_TLV_MAX_LEN) {
+ dev_err(dev, "Invalid ONIE TLV data length\n");
+ return -EINVAL;
+ }
+
+ table = devm_kmalloc(dev, table_len, GFP_KERNEL);
+ if (!table)
+ return -ENOMEM;
+
+ ret = nvmem_device_read(nvmem, 0, table_len, table);
+ if (ret != table_len)
+ return ret;
+
+ if (!onie_tlv_crc_is_valid(dev, table_len, table))
+ return -EINVAL;
+
+ data = table + hdr_len;
+ ret = onie_tlv_add_cells(dev, nvmem, data_len, data);
+ if (ret)
+ return ret;
+
+ return 0;
+}
+
+static int onie_tlv_probe(struct nvmem_layout *layout)
+{
+ layout->add_cells = onie_tlv_parse_table;
+
+ return nvmem_layout_register(layout);
+}
+
+static void onie_tlv_remove(struct nvmem_layout *layout)
+{
+ nvmem_layout_unregister(layout);
+}
+
+static const struct of_device_id onie_tlv_of_match_table[] = {
+ { .compatible = "onie,tlv-layout", },
+ {},
+};
+MODULE_DEVICE_TABLE(of, onie_tlv_of_match_table);
+
+static struct nvmem_layout_driver onie_tlv_layout = {
+ .driver = {
+ .name = "onie-tlv-layout",
+ .of_match_table = onie_tlv_of_match_table,
+ },
+ .probe = onie_tlv_probe,
+ .remove = onie_tlv_remove,
+};
+module_nvmem_layout_driver(onie_tlv_layout);
+
+MODULE_LICENSE("GPL");
+MODULE_AUTHOR("Miquel Raynal <miquel.raynal@bootlin.com>");
+MODULE_DESCRIPTION("NVMEM layout driver for Onie TLV table parsing");
diff --git a/drivers/nvmem/layouts/sl28vpd.c b/drivers/nvmem/layouts/sl28vpd.c
new file mode 100644
index 000000000..e93b020b0
--- /dev/null
+++ b/drivers/nvmem/layouts/sl28vpd.c
@@ -0,0 +1,169 @@
+// SPDX-License-Identifier: GPL-2.0
+
+#include <linux/crc8.h>
+#include <linux/etherdevice.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <uapi/linux/if_ether.h>
+
+#define SL28VPD_MAGIC 'V'
+
+struct sl28vpd_header {
+ u8 magic;
+ u8 version;
+} __packed;
+
+struct sl28vpd_v1 {
+ struct sl28vpd_header header;
+ char serial_number[15];
+ u8 base_mac_address[ETH_ALEN];
+ u8 crc8;
+} __packed;
+
+static int sl28vpd_mac_address_pp(void *priv, const char *id, int index,
+ unsigned int offset, void *buf,
+ size_t bytes)
+{
+ if (bytes != ETH_ALEN)
+ return -EINVAL;
+
+ if (index < 0)
+ return -EINVAL;
+
+ if (!is_valid_ether_addr(buf))
+ return -EINVAL;
+
+ eth_addr_add(buf, index);
+
+ return 0;
+}
+
+static const struct nvmem_cell_info sl28vpd_v1_entries[] = {
+ {
+ .name = "serial-number",
+ .offset = offsetof(struct sl28vpd_v1, serial_number),
+ .bytes = sizeof_field(struct sl28vpd_v1, serial_number),
+ },
+ {
+ .name = "base-mac-address",
+ .offset = offsetof(struct sl28vpd_v1, base_mac_address),
+ .bytes = sizeof_field(struct sl28vpd_v1, base_mac_address),
+ .read_post_process = sl28vpd_mac_address_pp,
+ },
+};
+
+static int sl28vpd_v1_check_crc(struct device *dev, struct nvmem_device *nvmem)
+{
+ struct sl28vpd_v1 data_v1;
+ u8 table[CRC8_TABLE_SIZE];
+ int ret;
+ u8 crc;
+
+ crc8_populate_msb(table, 0x07);
+
+ ret = nvmem_device_read(nvmem, 0, sizeof(data_v1), &data_v1);
+ if (ret < 0)
+ return ret;
+ else if (ret != sizeof(data_v1))
+ return -EIO;
+
+ crc = crc8(table, (void *)&data_v1, sizeof(data_v1) - 1, 0);
+
+ if (crc != data_v1.crc8) {
+ dev_err(dev,
+ "Checksum is invalid (got %02x, expected %02x).\n",
+ crc, data_v1.crc8);
+ return -EINVAL;
+ }
+
+ return 0;
+}
+
+static int sl28vpd_add_cells(struct nvmem_layout *layout)
+{
+ struct nvmem_device *nvmem = layout->nvmem;
+ struct device *dev = &layout->dev;
+ const struct nvmem_cell_info *pinfo;
+ struct nvmem_cell_info info = {0};
+ struct device_node *layout_np;
+ struct sl28vpd_header hdr;
+ int ret, i;
+
+ /* check header */
+ ret = nvmem_device_read(nvmem, 0, sizeof(hdr), &hdr);
+ if (ret < 0)
+ return ret;
+ else if (ret != sizeof(hdr))
+ return -EIO;
+
+ if (hdr.magic != SL28VPD_MAGIC) {
+ dev_err(dev, "Invalid magic value (%02x)\n", hdr.magic);
+ return -EINVAL;
+ }
+
+ if (hdr.version != 1) {
+ dev_err(dev, "Version %d is unsupported.\n", hdr.version);
+ return -EINVAL;
+ }
+
+ ret = sl28vpd_v1_check_crc(dev, nvmem);
+ if (ret)
+ return ret;
+
+ layout_np = of_nvmem_layout_get_container(nvmem);
+ if (!layout_np)
+ return -ENOENT;
+
+ for (i = 0; i < ARRAY_SIZE(sl28vpd_v1_entries); i++) {
+ pinfo = &sl28vpd_v1_entries[i];
+
+ info.name = pinfo->name;
+ info.offset = pinfo->offset;
+ info.bytes = pinfo->bytes;
+ info.read_post_process = pinfo->read_post_process;
+ info.np = of_get_child_by_name(layout_np, pinfo->name);
+
+ ret = nvmem_add_one_cell(nvmem, &info);
+ if (ret) {
+ of_node_put(layout_np);
+ return ret;
+ }
+ }
+
+ of_node_put(layout_np);
+
+ return 0;
+}
+
+static int sl28vpd_probe(struct nvmem_layout *layout)
+{
+ layout->add_cells = sl28vpd_add_cells;
+
+ return nvmem_layout_register(layout);
+}
+
+static void sl28vpd_remove(struct nvmem_layout *layout)
+{
+ nvmem_layout_unregister(layout);
+}
+
+static const struct of_device_id sl28vpd_of_match_table[] = {
+ { .compatible = "kontron,sl28-vpd" },
+ {},
+};
+MODULE_DEVICE_TABLE(of, sl28vpd_of_match_table);
+
+static struct nvmem_layout_driver sl28vpd_layout = {
+ .driver = {
+ .name = "kontron-sl28vpd-layout",
+ .of_match_table = sl28vpd_of_match_table,
+ },
+ .probe = sl28vpd_probe,
+ .remove = sl28vpd_remove,
+};
+module_nvmem_layout_driver(sl28vpd_layout);
+
+MODULE_LICENSE("GPL");
+MODULE_AUTHOR("Michael Walle <michael@walle.cc>");
+MODULE_DESCRIPTION("NVMEM layout driver for the VPD of Kontron sl28 boards");
diff --git a/drivers/nvmem/layouts/u-boot-env.c b/drivers/nvmem/layouts/u-boot-env.c
new file mode 100644
index 000000000..33ec23503
--- /dev/null
+++ b/drivers/nvmem/layouts/u-boot-env.c
@@ -0,0 +1,211 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (C) 2022 - 2023 Rafał Miłecki <rafal@milecki.pl>
+ */
+
+#include <linux/crc32.h>
+#include <linux/etherdevice.h>
+#include <linux/export.h>
+#include <linux/hex.h>
+#include <linux/if_ether.h>
+#include <linux/nvmem-consumer.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/slab.h>
+
+#include "u-boot-env.h"
+
+struct u_boot_env_image_single {
+ __le32 crc32;
+ uint8_t data[];
+} __packed;
+
+struct u_boot_env_image_redundant {
+ __le32 crc32;
+ u8 mark;
+ uint8_t data[];
+} __packed;
+
+struct u_boot_env_image_broadcom {
+ __le32 magic;
+ __le32 len;
+ __le32 crc32;
+ DECLARE_FLEX_ARRAY(uint8_t, data);
+} __packed;
+
+static int u_boot_env_read_post_process_ethaddr(void *context, const char *id, int index,
+ unsigned int offset, void *buf, size_t bytes)
+{
+ u8 mac[ETH_ALEN];
+
+ if (!mac_pton(buf, mac))
+ return -EINVAL;
+
+ if (index)
+ eth_addr_add(mac, index);
+
+ ether_addr_copy(buf, mac);
+
+ return 0;
+}
+
+static int u_boot_env_parse_cells(struct device *dev, struct nvmem_device *nvmem, uint8_t *buf,
+ size_t data_offset, size_t data_len)
+{
+ char *data = buf + data_offset;
+ char *var, *value, *eq;
+
+ for (var = data;
+ var < data + data_len && *var;
+ var = value + strlen(value) + 1) {
+ struct nvmem_cell_info info = {};
+
+ eq = strchr(var, '=');
+ if (!eq)
+ break;
+ *eq = '\0';
+ value = eq + 1;
+
+ info.name = devm_kstrdup(dev, var, GFP_KERNEL);
+ if (!info.name)
+ return -ENOMEM;
+ info.offset = data_offset + value - data;
+ info.bytes = strlen(value);
+ info.np = of_get_child_by_name(dev->of_node, info.name);
+ if (!strcmp(var, "ethaddr") && info.bytes == MAC_ADDR_STR_LEN) {
+ info.raw_len = strlen(value);
+ info.bytes = ETH_ALEN;
+ info.read_post_process = u_boot_env_read_post_process_ethaddr;
+ }
+
+ nvmem_add_one_cell(nvmem, &info);
+ }
+
+ return 0;
+}
+
+int u_boot_env_parse(struct device *dev, struct nvmem_device *nvmem,
+ enum u_boot_env_format format)
+{
+ size_t crc32_data_offset;
+ size_t crc32_data_len;
+ size_t crc32_offset;
+ uint32_t *crc32_addr;
+ size_t data_offset;
+ size_t data_len;
+ size_t dev_size;
+ uint32_t crc32;
+ uint32_t calc;
+ uint8_t *buf;
+ u32 env_size;
+ int bytes;
+ int err;
+
+ dev_size = device_property_read_u32(dev, "env-size", &env_size) ?
+ nvmem_dev_size(nvmem) : (size_t)env_size;
+
+ buf = kzalloc(dev_size, GFP_KERNEL);
+ if (!buf) {
+ err = -ENOMEM;
+ goto err_out;
+ }
+
+ bytes = nvmem_device_read(nvmem, 0, dev_size, buf);
+ if (bytes < 0) {
+ err = bytes;
+ goto err_kfree;
+ } else if (bytes != dev_size) {
+ err = -EIO;
+ goto err_kfree;
+ }
+
+ switch (format) {
+ case U_BOOT_FORMAT_SINGLE:
+ crc32_offset = offsetof(struct u_boot_env_image_single, crc32);
+ crc32_data_offset = offsetof(struct u_boot_env_image_single, data);
+ data_offset = offsetof(struct u_boot_env_image_single, data);
+ break;
+ case U_BOOT_FORMAT_REDUNDANT:
+ crc32_offset = offsetof(struct u_boot_env_image_redundant, crc32);
+ crc32_data_offset = offsetof(struct u_boot_env_image_redundant, data);
+ data_offset = offsetof(struct u_boot_env_image_redundant, data);
+ break;
+ case U_BOOT_FORMAT_BROADCOM:
+ crc32_offset = offsetof(struct u_boot_env_image_broadcom, crc32);
+ crc32_data_offset = offsetof(struct u_boot_env_image_broadcom, data);
+ data_offset = offsetof(struct u_boot_env_image_broadcom, data);
+ break;
+ }
+
+ if (dev_size < data_offset) {
+ dev_err(dev, "Device too small for u-boot-env\n");
+ err = -EIO;
+ goto err_kfree;
+ }
+
+ crc32_addr = (uint32_t *)(buf + crc32_offset);
+ crc32 = *crc32_addr;
+ crc32_data_len = dev_size - crc32_data_offset;
+ data_len = dev_size - data_offset;
+
+ calc = crc32_le(~0, buf + crc32_data_offset, crc32_data_len) ^ ~0L;
+ if (calc != crc32) {
+ dev_err(dev, "Invalid calculated CRC32: 0x%08x (expected: 0x%08x)\n", calc, crc32);
+ err = -EINVAL;
+ goto err_kfree;
+ }
+
+ buf[dev_size - 1] = '\0';
+ err = u_boot_env_parse_cells(dev, nvmem, buf, data_offset, data_len);
+
+err_kfree:
+ kfree(buf);
+err_out:
+ return err;
+}
+EXPORT_SYMBOL_GPL(u_boot_env_parse);
+
+static int u_boot_env_add_cells(struct nvmem_layout *layout)
+{
+ struct device *dev = &layout->dev;
+ enum u_boot_env_format format;
+
+ format = (uintptr_t)device_get_match_data(dev);
+
+ return u_boot_env_parse(dev, layout->nvmem, format);
+}
+
+static int u_boot_env_probe(struct nvmem_layout *layout)
+{
+ layout->add_cells = u_boot_env_add_cells;
+
+ return nvmem_layout_register(layout);
+}
+
+static void u_boot_env_remove(struct nvmem_layout *layout)
+{
+ nvmem_layout_unregister(layout);
+}
+
+static const struct of_device_id u_boot_env_of_match_table[] = {
+ { .compatible = "u-boot,env", .data = (void *)U_BOOT_FORMAT_SINGLE, },
+ { .compatible = "u-boot,env-redundant-bool", .data = (void *)U_BOOT_FORMAT_REDUNDANT, },
+ { .compatible = "u-boot,env-redundant-count", .data = (void *)U_BOOT_FORMAT_REDUNDANT, },
+ { .compatible = "brcm,env", .data = (void *)U_BOOT_FORMAT_BROADCOM, },
+ {},
+};
+
+static struct nvmem_layout_driver u_boot_env_layout = {
+ .driver = {
+ .name = "u-boot-env-layout",
+ .of_match_table = u_boot_env_of_match_table,
+ },
+ .probe = u_boot_env_probe,
+ .remove = u_boot_env_remove,
+};
+module_nvmem_layout_driver(u_boot_env_layout);
+
+MODULE_AUTHOR("Rafał Miłecki");
+MODULE_LICENSE("GPL");
+MODULE_DEVICE_TABLE(of, u_boot_env_of_match_table);
+MODULE_DESCRIPTION("NVMEM layout driver for U-Boot environment variables");
diff --git a/drivers/nvmem/layouts/u-boot-env.h b/drivers/nvmem/layouts/u-boot-env.h
new file mode 100644
index 000000000..dd5f280ac
--- /dev/null
+++ b/drivers/nvmem/layouts/u-boot-env.h
@@ -0,0 +1,15 @@
+/* SPDX-License-Identifier: GPL-2.0-only */
+
+#ifndef _LINUX_NVMEM_LAYOUTS_U_BOOT_ENV_H
+#define _LINUX_NVMEM_LAYOUTS_U_BOOT_ENV_H
+
+enum u_boot_env_format {
+ U_BOOT_FORMAT_SINGLE,
+ U_BOOT_FORMAT_REDUNDANT,
+ U_BOOT_FORMAT_BROADCOM,
+};
+
+int u_boot_env_parse(struct device *dev, struct nvmem_device *nvmem,
+ enum u_boot_env_format format);
+
+#endif /* ifndef _LINUX_NVMEM_LAYOUTS_U_BOOT_ENV_H */
diff --git a/drivers/nvmem/lpc18xx_eeprom.c b/drivers/nvmem/lpc18xx_eeprom.c
new file mode 100644
index 000000000..504155e30
--- /dev/null
+++ b/drivers/nvmem/lpc18xx_eeprom.c
@@ -0,0 +1,277 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * NXP LPC18xx/LPC43xx EEPROM memory NVMEM driver
+ *
+ * Copyright (c) 2015 Ariel D'Alessandro <ariel@vanguardiasur.com>
+ */
+
+#include <linux/clk.h>
+#include <linux/device.h>
+#include <linux/delay.h>
+#include <linux/err.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/reset.h>
+
+/* Registers */
+#define LPC18XX_EEPROM_AUTOPROG 0x00c
+#define LPC18XX_EEPROM_AUTOPROG_WORD 0x1
+
+#define LPC18XX_EEPROM_CLKDIV 0x014
+
+#define LPC18XX_EEPROM_PWRDWN 0x018
+#define LPC18XX_EEPROM_PWRDWN_NO 0x0
+#define LPC18XX_EEPROM_PWRDWN_YES 0x1
+
+#define LPC18XX_EEPROM_INTSTAT 0xfe0
+#define LPC18XX_EEPROM_INTSTAT_END_OF_PROG BIT(2)
+
+#define LPC18XX_EEPROM_INTSTATCLR 0xfe8
+#define LPC18XX_EEPROM_INTSTATCLR_PROG_CLR_ST BIT(2)
+
+/* Fixed page size (bytes) */
+#define LPC18XX_EEPROM_PAGE_SIZE 0x80
+
+/* EEPROM device requires a ~1500 kHz clock (min 800 kHz, max 1600 kHz) */
+#define LPC18XX_EEPROM_CLOCK_HZ 1500000
+
+/* EEPROM requires 3 ms of erase/program time between each writing */
+#define LPC18XX_EEPROM_PROGRAM_TIME 3
+
+struct lpc18xx_eeprom_dev {
+ struct clk *clk;
+ void __iomem *reg_base;
+ void __iomem *mem_base;
+ struct nvmem_device *nvmem;
+ unsigned reg_bytes;
+ unsigned val_bytes;
+ int size;
+};
+
+static inline void lpc18xx_eeprom_writel(struct lpc18xx_eeprom_dev *eeprom,
+ u32 reg, u32 val)
+{
+ writel(val, eeprom->reg_base + reg);
+}
+
+static inline u32 lpc18xx_eeprom_readl(struct lpc18xx_eeprom_dev *eeprom,
+ u32 reg)
+{
+ return readl(eeprom->reg_base + reg);
+}
+
+static int lpc18xx_eeprom_busywait_until_prog(struct lpc18xx_eeprom_dev *eeprom)
+{
+ unsigned long end;
+ u32 val;
+
+ /* Wait until EEPROM program operation has finished */
+ end = jiffies + msecs_to_jiffies(LPC18XX_EEPROM_PROGRAM_TIME * 10);
+
+ while (time_is_after_jiffies(end)) {
+ val = lpc18xx_eeprom_readl(eeprom, LPC18XX_EEPROM_INTSTAT);
+
+ if (val & LPC18XX_EEPROM_INTSTAT_END_OF_PROG) {
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_INTSTATCLR,
+ LPC18XX_EEPROM_INTSTATCLR_PROG_CLR_ST);
+ return 0;
+ }
+
+ usleep_range(LPC18XX_EEPROM_PROGRAM_TIME * USEC_PER_MSEC,
+ (LPC18XX_EEPROM_PROGRAM_TIME + 1) * USEC_PER_MSEC);
+ }
+
+ return -ETIMEDOUT;
+}
+
+static int lpc18xx_eeprom_gather_write(void *context, unsigned int reg,
+ void *val, size_t bytes)
+{
+ struct lpc18xx_eeprom_dev *eeprom = context;
+ unsigned int offset = reg;
+ int ret;
+
+ /*
+ * The last page contains the EEPROM initialization data and is not
+ * writable.
+ */
+ if ((reg > eeprom->size - LPC18XX_EEPROM_PAGE_SIZE) ||
+ (reg + bytes > eeprom->size - LPC18XX_EEPROM_PAGE_SIZE))
+ return -EINVAL;
+
+
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_PWRDWN,
+ LPC18XX_EEPROM_PWRDWN_NO);
+
+ /* Wait 100 us while the EEPROM wakes up */
+ usleep_range(100, 200);
+
+ while (bytes) {
+ writel(*(u32 *)val, eeprom->mem_base + offset);
+ ret = lpc18xx_eeprom_busywait_until_prog(eeprom);
+ if (ret < 0)
+ return ret;
+
+ bytes -= eeprom->val_bytes;
+ val += eeprom->val_bytes;
+ offset += eeprom->val_bytes;
+ }
+
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_PWRDWN,
+ LPC18XX_EEPROM_PWRDWN_YES);
+
+ return 0;
+}
+
+static int lpc18xx_eeprom_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct lpc18xx_eeprom_dev *eeprom = context;
+
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_PWRDWN,
+ LPC18XX_EEPROM_PWRDWN_NO);
+
+ /* Wait 100 us while the EEPROM wakes up */
+ usleep_range(100, 200);
+
+ while (bytes) {
+ *(u32 *)val = readl(eeprom->mem_base + offset);
+ bytes -= eeprom->val_bytes;
+ val += eeprom->val_bytes;
+ offset += eeprom->val_bytes;
+ }
+
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_PWRDWN,
+ LPC18XX_EEPROM_PWRDWN_YES);
+
+ return 0;
+}
+
+
+static struct nvmem_config lpc18xx_nvmem_config = {
+ .name = "lpc18xx-eeprom",
+ .stride = 4,
+ .word_size = 4,
+ .reg_read = lpc18xx_eeprom_read,
+ .reg_write = lpc18xx_eeprom_gather_write,
+};
+
+static int lpc18xx_eeprom_probe(struct platform_device *pdev)
+{
+ struct lpc18xx_eeprom_dev *eeprom;
+ struct device *dev = &pdev->dev;
+ struct reset_control *rst;
+ unsigned long clk_rate;
+ struct resource *res;
+ int ret;
+
+ eeprom = devm_kzalloc(dev, sizeof(*eeprom), GFP_KERNEL);
+ if (!eeprom)
+ return -ENOMEM;
+
+ res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "reg");
+ eeprom->reg_base = devm_ioremap_resource(dev, res);
+ if (IS_ERR(eeprom->reg_base))
+ return PTR_ERR(eeprom->reg_base);
+
+ res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "mem");
+ eeprom->mem_base = devm_ioremap_resource(dev, res);
+ if (IS_ERR(eeprom->mem_base))
+ return PTR_ERR(eeprom->mem_base);
+
+ eeprom->clk = devm_clk_get(&pdev->dev, "eeprom");
+ if (IS_ERR(eeprom->clk)) {
+ dev_err(&pdev->dev, "failed to get eeprom clock\n");
+ return PTR_ERR(eeprom->clk);
+ }
+
+ ret = clk_prepare_enable(eeprom->clk);
+ if (ret < 0) {
+ dev_err(dev, "failed to prepare/enable eeprom clk: %d\n", ret);
+ return ret;
+ }
+
+ rst = devm_reset_control_get_exclusive(dev, NULL);
+ if (IS_ERR(rst)) {
+ dev_err(dev, "failed to get reset: %ld\n", PTR_ERR(rst));
+ ret = PTR_ERR(rst);
+ goto err_clk;
+ }
+
+ ret = reset_control_assert(rst);
+ if (ret < 0) {
+ dev_err(dev, "failed to assert reset: %d\n", ret);
+ goto err_clk;
+ }
+
+ eeprom->val_bytes = 4;
+ eeprom->reg_bytes = 4;
+
+ /*
+ * Clock rate is generated by dividing the system bus clock by the
+ * division factor, contained in the divider register (minus 1 encoded).
+ */
+ clk_rate = clk_get_rate(eeprom->clk);
+ clk_rate = DIV_ROUND_UP(clk_rate, LPC18XX_EEPROM_CLOCK_HZ) - 1;
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_CLKDIV, clk_rate);
+
+ /*
+ * Writing a single word to the page will start the erase/program cycle
+ * automatically
+ */
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_AUTOPROG,
+ LPC18XX_EEPROM_AUTOPROG_WORD);
+
+ lpc18xx_eeprom_writel(eeprom, LPC18XX_EEPROM_PWRDWN,
+ LPC18XX_EEPROM_PWRDWN_YES);
+
+ eeprom->size = resource_size(res);
+ lpc18xx_nvmem_config.size = resource_size(res);
+ lpc18xx_nvmem_config.dev = dev;
+ lpc18xx_nvmem_config.priv = eeprom;
+
+ eeprom->nvmem = devm_nvmem_register(dev, &lpc18xx_nvmem_config);
+ if (IS_ERR(eeprom->nvmem)) {
+ ret = PTR_ERR(eeprom->nvmem);
+ goto err_clk;
+ }
+
+ platform_set_drvdata(pdev, eeprom);
+
+ return 0;
+
+err_clk:
+ clk_disable_unprepare(eeprom->clk);
+
+ return ret;
+}
+
+static void lpc18xx_eeprom_remove(struct platform_device *pdev)
+{
+ struct lpc18xx_eeprom_dev *eeprom = platform_get_drvdata(pdev);
+
+ clk_disable_unprepare(eeprom->clk);
+}
+
+static const struct of_device_id lpc18xx_eeprom_of_match[] = {
+ { .compatible = "nxp,lpc1857-eeprom" },
+ { },
+};
+MODULE_DEVICE_TABLE(of, lpc18xx_eeprom_of_match);
+
+static struct platform_driver lpc18xx_eeprom_driver = {
+ .probe = lpc18xx_eeprom_probe,
+ .remove = lpc18xx_eeprom_remove,
+ .driver = {
+ .name = "lpc18xx-eeprom",
+ .of_match_table = lpc18xx_eeprom_of_match,
+ },
+};
+
+module_platform_driver(lpc18xx_eeprom_driver);
+
+MODULE_AUTHOR("Ariel D'Alessandro <ariel@vanguardiasur.com.ar>");
+MODULE_DESCRIPTION("NXP LPC18xx EEPROM memory Driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/lpc18xx_otp.c b/drivers/nvmem/lpc18xx_otp.c
new file mode 100644
index 000000000..c41a0c58b
--- /dev/null
+++ b/drivers/nvmem/lpc18xx_otp.c
@@ -0,0 +1,105 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * NXP LPC18xx/43xx OTP memory NVMEM driver
+ *
+ * Copyright (c) 2016 Joachim Eastwood <manabian@gmail.com>
+ *
+ * Based on the imx ocotp driver,
+ * Copyright (c) 2015 Pengutronix, Philipp Zabel <p.zabel@pengutronix.de>
+ *
+ * TODO: add support for writing OTP register via API in boot ROM.
+ */
+
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+/*
+ * LPC18xx OTP memory contains 4 banks with 4 32-bit words. Bank 0 starts
+ * at offset 0 from the base.
+ *
+ * Bank 0 contains the part ID for Flashless devices and is reserved for
+ * devices with Flash.
+ * Bank 1/2 is generale purpose or AES key storage for secure devices.
+ * Bank 3 contains control data, USB ID and generale purpose words.
+ */
+#define LPC18XX_OTP_NUM_BANKS 4
+#define LPC18XX_OTP_WORDS_PER_BANK 4
+#define LPC18XX_OTP_WORD_SIZE sizeof(u32)
+#define LPC18XX_OTP_SIZE (LPC18XX_OTP_NUM_BANKS * \
+ LPC18XX_OTP_WORDS_PER_BANK * \
+ LPC18XX_OTP_WORD_SIZE)
+
+struct lpc18xx_otp {
+ void __iomem *base;
+};
+
+static int lpc18xx_otp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct lpc18xx_otp *otp = context;
+ unsigned int count = bytes >> 2;
+ u32 index = offset >> 2;
+ u32 *buf = val;
+ int i;
+
+ if (count > (LPC18XX_OTP_SIZE - index))
+ count = LPC18XX_OTP_SIZE - index;
+
+ for (i = index; i < (index + count); i++)
+ *buf++ = readl(otp->base + i * LPC18XX_OTP_WORD_SIZE);
+
+ return 0;
+}
+
+static struct nvmem_config lpc18xx_otp_nvmem_config = {
+ .name = "lpc18xx-otp",
+ .read_only = true,
+ .word_size = LPC18XX_OTP_WORD_SIZE,
+ .stride = LPC18XX_OTP_WORD_SIZE,
+ .reg_read = lpc18xx_otp_read,
+};
+
+static int lpc18xx_otp_probe(struct platform_device *pdev)
+{
+ struct nvmem_device *nvmem;
+ struct lpc18xx_otp *otp;
+
+ otp = devm_kzalloc(&pdev->dev, sizeof(*otp), GFP_KERNEL);
+ if (!otp)
+ return -ENOMEM;
+
+ otp->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(otp->base))
+ return PTR_ERR(otp->base);
+
+ lpc18xx_otp_nvmem_config.size = LPC18XX_OTP_SIZE;
+ lpc18xx_otp_nvmem_config.dev = &pdev->dev;
+ lpc18xx_otp_nvmem_config.priv = otp;
+
+ nvmem = devm_nvmem_register(&pdev->dev, &lpc18xx_otp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id lpc18xx_otp_dt_ids[] = {
+ { .compatible = "nxp,lpc1850-otp" },
+ { },
+};
+MODULE_DEVICE_TABLE(of, lpc18xx_otp_dt_ids);
+
+static struct platform_driver lpc18xx_otp_driver = {
+ .probe = lpc18xx_otp_probe,
+ .driver = {
+ .name = "lpc18xx_otp",
+ .of_match_table = lpc18xx_otp_dt_ids,
+ },
+};
+module_platform_driver(lpc18xx_otp_driver);
+
+MODULE_AUTHOR("Joachim Eastwoood <manabian@gmail.com>");
+MODULE_DESCRIPTION("NXP LPC18xx OTP NVMEM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/m24lr.c b/drivers/nvmem/m24lr.c
new file mode 100644
index 000000000..7a9fd45a8
--- /dev/null
+++ b/drivers/nvmem/m24lr.c
@@ -0,0 +1,606 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * m24lr.c - Sysfs control interface for ST M24LR series RFID/NFC chips
+ *
+ * Copyright (c) 2025 Abd-Alrhman Masalkhi <abd.masalkhi@gmail.com>
+ *
+ * This driver implements both the sysfs-based control interface and EEPROM
+ * access for STMicroelectronics M24LR series chips (e.g., M24LR04E-R).
+ * It provides access to control registers for features such as password
+ * authentication, memory protection, and device configuration. In addition,
+ * it manages read and write operations to the EEPROM region of the chip.
+ */
+
+#include <linux/device.h>
+#include <linux/i2c.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/of_device.h>
+#include <linux/regmap.h>
+
+#define M24LR_WRITE_TIMEOUT 25u
+#define M24LR_READ_TIMEOUT (M24LR_WRITE_TIMEOUT)
+
+/**
+ * struct m24lr_chip - describes chip-specific sysfs layout
+ * @sss_len: the length of the sss region
+ * @page_size: chip-specific limit on the maximum number of bytes allowed
+ * in a single write operation.
+ * @eeprom_size: size of the EEPROM in byte
+ *
+ * Supports multiple M24LR chip variants (e.g., M24LRxx) by allowing each
+ * to define its own set of sysfs attributes, depending on its available
+ * registers and features.
+ */
+struct m24lr_chip {
+ unsigned int sss_len;
+ unsigned int page_size;
+ unsigned int eeprom_size;
+};
+
+/**
+ * struct m24lr - core driver data for M24LR chip control
+ * @uid: 64 bits unique identifier stored in the device
+ * @sss_len: the length of the sss region
+ * @page_size: chip-specific limit on the maximum number of bytes allowed
+ * in a single write operation.
+ * @eeprom_size: size of the EEPROM in byte
+ * @ctl_regmap: regmap interface for accessing the system parameter sector
+ * @eeprom_regmap: regmap interface for accessing the EEPROM
+ * @lock: mutex to synchronize operations to the device
+ *
+ * Central data structure holding the state and resources used by the
+ * M24LR device driver.
+ */
+struct m24lr {
+ u64 uid;
+ unsigned int sss_len;
+ unsigned int page_size;
+ unsigned int eeprom_size;
+ struct regmap *ctl_regmap;
+ struct regmap *eeprom_regmap;
+ struct mutex lock; /* synchronize operations to the device */
+};
+
+static const struct regmap_range m24lr_ctl_vo_ranges[] = {
+ regmap_reg_range(0, 63),
+};
+
+static const struct regmap_access_table m24lr_ctl_vo_table = {
+ .yes_ranges = m24lr_ctl_vo_ranges,
+ .n_yes_ranges = ARRAY_SIZE(m24lr_ctl_vo_ranges),
+};
+
+static const struct regmap_config m24lr_ctl_regmap_conf = {
+ .name = "m24lr_ctl",
+ .reg_stride = 1,
+ .reg_bits = 16,
+ .val_bits = 8,
+ .disable_locking = false,
+ .cache_type = REGCACHE_RBTREE,/* Flat can't be used, there's huge gap */
+ .volatile_table = &m24lr_ctl_vo_table,
+};
+
+/* Chip descriptor for M24LR04E-R variant */
+static const struct m24lr_chip m24lr04e_r_chip = {
+ .page_size = 4,
+ .eeprom_size = 512,
+ .sss_len = 4,
+};
+
+/* Chip descriptor for M24LR16E-R variant */
+static const struct m24lr_chip m24lr16e_r_chip = {
+ .page_size = 4,
+ .eeprom_size = 2048,
+ .sss_len = 16,
+};
+
+/* Chip descriptor for M24LR64E-R variant */
+static const struct m24lr_chip m24lr64e_r_chip = {
+ .page_size = 4,
+ .eeprom_size = 8192,
+ .sss_len = 64,
+};
+
+static const struct i2c_device_id m24lr_ids[] = {
+ { "m24lr04e-r", (kernel_ulong_t)&m24lr04e_r_chip},
+ { "m24lr16e-r", (kernel_ulong_t)&m24lr16e_r_chip},
+ { "m24lr64e-r", (kernel_ulong_t)&m24lr64e_r_chip},
+ { }
+};
+MODULE_DEVICE_TABLE(i2c, m24lr_ids);
+
+static const struct of_device_id m24lr_of_match[] = {
+ { .compatible = "st,m24lr04e-r", .data = &m24lr04e_r_chip},
+ { .compatible = "st,m24lr16e-r", .data = &m24lr16e_r_chip},
+ { .compatible = "st,m24lr64e-r", .data = &m24lr64e_r_chip},
+ { }
+};
+MODULE_DEVICE_TABLE(of, m24lr_of_match);
+
+/**
+ * m24lr_regmap_read - read data using regmap with retry on failure
+ * @regmap: regmap instance for the device
+ * @buf: buffer to store the read data
+ * @size: number of bytes to read
+ * @offset: starting register address
+ *
+ * Attempts to read a block of data from the device with retries and timeout.
+ * Some M24LR chips may transiently NACK reads (e.g., during internal write
+ * cycles), so this function retries with a short sleep until the timeout
+ * expires.
+ *
+ * Returns:
+ * Number of bytes read on success,
+ * -ETIMEDOUT if the read fails within the timeout window.
+ */
+static ssize_t m24lr_regmap_read(struct regmap *regmap, u8 *buf,
+ size_t size, unsigned int offset)
+{
+ int err;
+ unsigned long timeout, read_time;
+ ssize_t ret = -ETIMEDOUT;
+
+ timeout = jiffies + msecs_to_jiffies(M24LR_READ_TIMEOUT);
+ do {
+ read_time = jiffies;
+
+ err = regmap_bulk_read(regmap, offset, buf, size);
+ if (!err) {
+ ret = size;
+ break;
+ }
+
+ usleep_range(1000, 2000);
+ } while (time_before(read_time, timeout));
+
+ return ret;
+}
+
+/**
+ * m24lr_regmap_write - write data using regmap with retry on failure
+ * @regmap: regmap instance for the device
+ * @buf: buffer containing the data to write
+ * @size: number of bytes to write
+ * @offset: starting register address
+ *
+ * Attempts to write a block of data to the device with retries and a timeout.
+ * Some M24LR devices may NACK I2C writes while an internal write operation
+ * is in progress. This function retries the write operation with a short delay
+ * until it succeeds or the timeout is reached.
+ *
+ * Returns:
+ * Number of bytes written on success,
+ * -ETIMEDOUT if the write fails within the timeout window.
+ */
+static ssize_t m24lr_regmap_write(struct regmap *regmap, const u8 *buf,
+ size_t size, unsigned int offset)
+{
+ int err;
+ unsigned long timeout, write_time;
+ ssize_t ret = -ETIMEDOUT;
+
+ timeout = jiffies + msecs_to_jiffies(M24LR_WRITE_TIMEOUT);
+
+ do {
+ write_time = jiffies;
+
+ err = regmap_bulk_write(regmap, offset, buf, size);
+ if (!err) {
+ ret = size;
+ break;
+ }
+
+ usleep_range(1000, 2000);
+ } while (time_before(write_time, timeout));
+
+ return ret;
+}
+
+static ssize_t m24lr_read(struct m24lr *m24lr, u8 *buf, size_t size,
+ unsigned int offset, bool is_eeprom)
+{
+ struct regmap *regmap;
+ ssize_t ret;
+
+ if (is_eeprom)
+ regmap = m24lr->eeprom_regmap;
+ else
+ regmap = m24lr->ctl_regmap;
+
+ mutex_lock(&m24lr->lock);
+ ret = m24lr_regmap_read(regmap, buf, size, offset);
+ mutex_unlock(&m24lr->lock);
+
+ return ret;
+}
+
+/**
+ * m24lr_write - write buffer to M24LR device with page alignment handling
+ * @m24lr: pointer to driver context
+ * @buf: data buffer to write
+ * @size: number of bytes to write
+ * @offset: target register address in the device
+ * @is_eeprom: true if the write should target the EEPROM,
+ * false if it should target the system parameters sector.
+ *
+ * Writes data to the M24LR device using regmap, split into chunks no larger
+ * than page_size to respect device-specific write limitations (e.g., page
+ * size or I2C hold-time concerns). Each chunk is aligned to the page boundary
+ * defined by page_size.
+ *
+ * Returns:
+ * Total number of bytes written on success,
+ * A negative error code if any write fails.
+ */
+static ssize_t m24lr_write(struct m24lr *m24lr, const u8 *buf, size_t size,
+ unsigned int offset, bool is_eeprom)
+{
+ unsigned int n, next_sector;
+ struct regmap *regmap;
+ ssize_t ret = 0;
+ ssize_t err;
+
+ if (is_eeprom)
+ regmap = m24lr->eeprom_regmap;
+ else
+ regmap = m24lr->ctl_regmap;
+
+ n = min_t(unsigned int, size, m24lr->page_size);
+ next_sector = roundup(offset + 1, m24lr->page_size);
+ if (offset + n > next_sector)
+ n = next_sector - offset;
+
+ mutex_lock(&m24lr->lock);
+ while (n) {
+ err = m24lr_regmap_write(regmap, buf + offset, n, offset);
+ if (IS_ERR_VALUE(err)) {
+ if (!ret)
+ ret = err;
+
+ break;
+ }
+
+ offset += n;
+ size -= n;
+ ret += n;
+ n = min_t(unsigned int, size, m24lr->page_size);
+ }
+ mutex_unlock(&m24lr->lock);
+
+ return ret;
+}
+
+/**
+ * m24lr_write_pass - Write password to M24LR043-R using secure format
+ * @m24lr: Pointer to device control structure
+ * @buf: Input buffer containing hex-encoded password
+ * @count: Number of bytes in @buf
+ * @code: Operation code to embed between password copies
+ *
+ * This function parses a 4-byte password, encodes it in big-endian format,
+ * and constructs a 9-byte sequence of the form:
+ *
+ * [BE(password), code, BE(password)]
+ *
+ * The result is written to register 0x0900 (2304), which is the password
+ * register in M24LR04E-R chip.
+ *
+ * Return: Number of bytes written on success, or negative error code on failure
+ */
+static ssize_t m24lr_write_pass(struct m24lr *m24lr, const char *buf,
+ size_t count, u8 code)
+{
+ __be32 be_pass;
+ u8 output[9];
+ ssize_t ret;
+ u32 pass;
+ int err;
+
+ if (!count)
+ return -EINVAL;
+
+ if (count > 8)
+ return -EINVAL;
+
+ err = kstrtou32(buf, 16, &pass);
+ if (err)
+ return err;
+
+ be_pass = cpu_to_be32(pass);
+
+ memcpy(output, &be_pass, sizeof(be_pass));
+ output[4] = code;
+ memcpy(output + 5, &be_pass, sizeof(be_pass));
+
+ mutex_lock(&m24lr->lock);
+ ret = m24lr_regmap_write(m24lr->ctl_regmap, output, 9, 2304);
+ mutex_unlock(&m24lr->lock);
+
+ return ret;
+}
+
+static ssize_t m24lr_read_reg_le(struct m24lr *m24lr, u64 *val,
+ unsigned int reg_addr,
+ unsigned int reg_size)
+{
+ ssize_t ret;
+ __le64 input = 0;
+
+ ret = m24lr_read(m24lr, (u8 *)&input, reg_size, reg_addr, false);
+ if (IS_ERR_VALUE(ret))
+ return ret;
+
+ if (ret != reg_size)
+ return -EINVAL;
+
+ switch (reg_size) {
+ case 1:
+ *val = *(u8 *)&input;
+ break;
+ case 2:
+ *val = le16_to_cpu((__le16)input);
+ break;
+ case 4:
+ *val = le32_to_cpu((__le32)input);
+ break;
+ case 8:
+ *val = le64_to_cpu((__le64)input);
+ break;
+ default:
+ return -EINVAL;
+ }
+
+ return 0;
+}
+
+static int m24lr_nvmem_read(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ ssize_t err;
+ struct m24lr *m24lr = priv;
+
+ if (!bytes)
+ return bytes;
+
+ if (offset + bytes > m24lr->eeprom_size)
+ return -EINVAL;
+
+ err = m24lr_read(m24lr, val, bytes, offset, true);
+ if (IS_ERR_VALUE(err))
+ return err;
+
+ return 0;
+}
+
+static int m24lr_nvmem_write(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ ssize_t err;
+ struct m24lr *m24lr = priv;
+
+ if (!bytes)
+ return -EINVAL;
+
+ if (offset + bytes > m24lr->eeprom_size)
+ return -EINVAL;
+
+ err = m24lr_write(m24lr, val, bytes, offset, true);
+ if (IS_ERR_VALUE(err))
+ return err;
+
+ return 0;
+}
+
+static ssize_t m24lr_ctl_sss_read(struct file *filep, struct kobject *kobj,
+ const struct bin_attribute *attr, char *buf,
+ loff_t offset, size_t count)
+{
+ struct m24lr *m24lr = attr->private;
+
+ if (!count)
+ return count;
+
+ if (size_add(offset, count) > m24lr->sss_len)
+ return -EINVAL;
+
+ return m24lr_read(m24lr, buf, count, offset, false);
+}
+
+static ssize_t m24lr_ctl_sss_write(struct file *filep, struct kobject *kobj,
+ const struct bin_attribute *attr, char *buf,
+ loff_t offset, size_t count)
+{
+ struct m24lr *m24lr = attr->private;
+
+ if (!count)
+ return -EINVAL;
+
+ if (size_add(offset, count) > m24lr->sss_len)
+ return -EINVAL;
+
+ return m24lr_write(m24lr, buf, count, offset, false);
+}
+static BIN_ATTR(sss, 0600, m24lr_ctl_sss_read, m24lr_ctl_sss_write, 0);
+
+static ssize_t new_pass_store(struct device *dev, struct device_attribute *attr,
+ const char *buf, size_t count)
+{
+ struct m24lr *m24lr = i2c_get_clientdata(to_i2c_client(dev));
+
+ return m24lr_write_pass(m24lr, buf, count, 7);
+}
+static DEVICE_ATTR_WO(new_pass);
+
+static ssize_t unlock_store(struct device *dev, struct device_attribute *attr,
+ const char *buf, size_t count)
+{
+ struct m24lr *m24lr = i2c_get_clientdata(to_i2c_client(dev));
+
+ return m24lr_write_pass(m24lr, buf, count, 9);
+}
+static DEVICE_ATTR_WO(unlock);
+
+static ssize_t uid_show(struct device *dev, struct device_attribute *attr,
+ char *buf)
+{
+ struct m24lr *m24lr = i2c_get_clientdata(to_i2c_client(dev));
+
+ return sysfs_emit(buf, "%llx\n", m24lr->uid);
+}
+static DEVICE_ATTR_RO(uid);
+
+static ssize_t total_sectors_show(struct device *dev,
+ struct device_attribute *attr, char *buf)
+{
+ struct m24lr *m24lr = i2c_get_clientdata(to_i2c_client(dev));
+
+ return sysfs_emit(buf, "%x\n", m24lr->sss_len);
+}
+static DEVICE_ATTR_RO(total_sectors);
+
+static struct attribute *m24lr_ctl_dev_attrs[] = {
+ &dev_attr_unlock.attr,
+ &dev_attr_new_pass.attr,
+ &dev_attr_uid.attr,
+ &dev_attr_total_sectors.attr,
+ NULL,
+};
+
+static const struct m24lr_chip *m24lr_get_chip(struct device *dev)
+{
+ const struct m24lr_chip *ret;
+ const struct i2c_device_id *id;
+
+ id = i2c_match_id(m24lr_ids, to_i2c_client(dev));
+
+ if (dev->of_node && of_match_device(m24lr_of_match, dev))
+ ret = of_device_get_match_data(dev);
+ else if (id)
+ ret = (void *)id->driver_data;
+ else
+ ret = acpi_device_get_match_data(dev);
+
+ return ret;
+}
+
+static int m24lr_probe(struct i2c_client *client)
+{
+ struct regmap_config eeprom_regmap_conf = {0};
+ struct nvmem_config nvmem_conf = {0};
+ struct device *dev = &client->dev;
+ struct i2c_client *eeprom_client;
+ const struct m24lr_chip *chip;
+ struct regmap *eeprom_regmap;
+ struct nvmem_device *nvmem;
+ struct regmap *ctl_regmap;
+ struct m24lr *m24lr;
+ u32 regs[2];
+ long err;
+
+ if (!i2c_check_functionality(client->adapter, I2C_FUNC_I2C))
+ return -EOPNOTSUPP;
+
+ chip = m24lr_get_chip(dev);
+ if (!chip)
+ return -ENODEV;
+
+ m24lr = devm_kzalloc(dev, sizeof(struct m24lr), GFP_KERNEL);
+ if (!m24lr)
+ return -ENOMEM;
+
+ err = device_property_read_u32_array(dev, "reg", regs, ARRAY_SIZE(regs));
+ if (err)
+ return dev_err_probe(dev, err, "Failed to read 'reg' property\n");
+
+ /* Create a second I2C client for the eeprom interface */
+ eeprom_client = devm_i2c_new_dummy_device(dev, client->adapter, regs[1]);
+ if (IS_ERR(eeprom_client))
+ return dev_err_probe(dev, PTR_ERR(eeprom_client),
+ "Failed to create dummy I2C client for the EEPROM\n");
+
+ ctl_regmap = devm_regmap_init_i2c(client, &m24lr_ctl_regmap_conf);
+ if (IS_ERR(ctl_regmap))
+ return dev_err_probe(dev, PTR_ERR(ctl_regmap),
+ "Failed to init regmap\n");
+
+ eeprom_regmap_conf.name = "m24lr_eeprom";
+ eeprom_regmap_conf.reg_bits = 16;
+ eeprom_regmap_conf.val_bits = 8;
+ eeprom_regmap_conf.disable_locking = true;
+ eeprom_regmap_conf.max_register = chip->eeprom_size - 1;
+
+ eeprom_regmap = devm_regmap_init_i2c(eeprom_client,
+ &eeprom_regmap_conf);
+ if (IS_ERR(eeprom_regmap))
+ return dev_err_probe(dev, PTR_ERR(eeprom_regmap),
+ "Failed to init regmap\n");
+
+ mutex_init(&m24lr->lock);
+ m24lr->sss_len = chip->sss_len;
+ m24lr->page_size = chip->page_size;
+ m24lr->eeprom_size = chip->eeprom_size;
+ m24lr->eeprom_regmap = eeprom_regmap;
+ m24lr->ctl_regmap = ctl_regmap;
+
+ nvmem_conf.dev = &eeprom_client->dev;
+ nvmem_conf.owner = THIS_MODULE;
+ nvmem_conf.type = NVMEM_TYPE_EEPROM;
+ nvmem_conf.reg_read = m24lr_nvmem_read;
+ nvmem_conf.reg_write = m24lr_nvmem_write;
+ nvmem_conf.size = chip->eeprom_size;
+ nvmem_conf.word_size = 1;
+ nvmem_conf.stride = 1;
+ nvmem_conf.priv = m24lr;
+
+ nvmem = devm_nvmem_register(dev, &nvmem_conf);
+ if (IS_ERR(nvmem))
+ return dev_err_probe(dev, PTR_ERR(nvmem),
+ "Failed to register nvmem\n");
+
+ i2c_set_clientdata(client, m24lr);
+ i2c_set_clientdata(eeprom_client, m24lr);
+
+ bin_attr_sss.size = chip->sss_len;
+ bin_attr_sss.private = m24lr;
+ err = sysfs_create_bin_file(&dev->kobj, &bin_attr_sss);
+ if (err)
+ return dev_err_probe(dev, err,
+ "Failed to create sss bin file\n");
+
+ /* test by reading the uid, if success store it */
+ err = m24lr_read_reg_le(m24lr, &m24lr->uid, 2324, sizeof(m24lr->uid));
+ if (IS_ERR_VALUE(err))
+ goto remove_bin_file;
+
+ return 0;
+
+remove_bin_file:
+ sysfs_remove_bin_file(&dev->kobj, &bin_attr_sss);
+
+ return err;
+}
+
+static void m24lr_remove(struct i2c_client *client)
+{
+ sysfs_remove_bin_file(&client->dev.kobj, &bin_attr_sss);
+}
+
+ATTRIBUTE_GROUPS(m24lr_ctl_dev);
+
+static struct i2c_driver m24lr_driver = {
+ .driver = {
+ .name = "m24lr",
+ .of_match_table = m24lr_of_match,
+ .dev_groups = m24lr_ctl_dev_groups,
+ },
+ .probe = m24lr_probe,
+ .remove = m24lr_remove,
+ .id_table = m24lr_ids,
+};
+module_i2c_driver(m24lr_driver);
+
+MODULE_AUTHOR("Abd-Alrhman Masalkhi");
+MODULE_DESCRIPTION("st m24lr control driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/max77759-nvmem.c b/drivers/nvmem/max77759-nvmem.c
new file mode 100644
index 000000000..283000ec3
--- /dev/null
+++ b/drivers/nvmem/max77759-nvmem.c
@@ -0,0 +1,144 @@
+// SPDX-License-Identifier: GPL-2.0-only
+//
+// Copyright 2020 Google Inc
+// Copyright 2025 Linaro Ltd.
+//
+// NVMEM driver for Maxim MAX77759
+
+#include <linux/dev_printk.h>
+#include <linux/device.h>
+#include <linux/device/driver.h>
+#include <linux/err.h>
+#include <linux/mfd/max77759.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/overflow.h>
+#include <linux/platform_device.h>
+#include <linux/string.h>
+
+#define MAX77759_NVMEM_OPCODE_HEADER_LEN 3
+/*
+ * NVMEM commands have a three byte header (which becomes part of the command),
+ * so we need to subtract that.
+ */
+#define MAX77759_NVMEM_SIZE (MAX77759_MAXQ_OPCODE_MAXLENGTH \
+ - MAX77759_NVMEM_OPCODE_HEADER_LEN)
+
+struct max77759_nvmem {
+ struct device *dev;
+ struct max77759 *max77759;
+};
+
+static int max77759_nvmem_reg_read(void *priv, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct max77759_nvmem *nvmem = priv;
+ DEFINE_FLEX(struct max77759_maxq_command, cmd, cmd, length,
+ MAX77759_NVMEM_OPCODE_HEADER_LEN);
+ DEFINE_FLEX(struct max77759_maxq_response, rsp, rsp, length,
+ MAX77759_MAXQ_OPCODE_MAXLENGTH);
+ int ret;
+
+ cmd->cmd[0] = MAX77759_MAXQ_OPCODE_USER_SPACE_READ;
+ cmd->cmd[1] = offset;
+ cmd->cmd[2] = bytes;
+ rsp->length = bytes + MAX77759_NVMEM_OPCODE_HEADER_LEN;
+
+ ret = max77759_maxq_command(nvmem->max77759, cmd, rsp);
+ if (ret < 0)
+ return ret;
+
+ if (memcmp(cmd->cmd, rsp->rsp, MAX77759_NVMEM_OPCODE_HEADER_LEN)) {
+ dev_warn(nvmem->dev, "protocol error (read)\n");
+ return -EIO;
+ }
+
+ memcpy(val, &rsp->rsp[MAX77759_NVMEM_OPCODE_HEADER_LEN], bytes);
+
+ return 0;
+}
+
+static int max77759_nvmem_reg_write(void *priv, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct max77759_nvmem *nvmem = priv;
+ DEFINE_FLEX(struct max77759_maxq_command, cmd, cmd, length,
+ MAX77759_MAXQ_OPCODE_MAXLENGTH);
+ DEFINE_FLEX(struct max77759_maxq_response, rsp, rsp, length,
+ MAX77759_MAXQ_OPCODE_MAXLENGTH);
+ int ret;
+
+ cmd->cmd[0] = MAX77759_MAXQ_OPCODE_USER_SPACE_WRITE;
+ cmd->cmd[1] = offset;
+ cmd->cmd[2] = bytes;
+ memcpy(&cmd->cmd[MAX77759_NVMEM_OPCODE_HEADER_LEN], val, bytes);
+ cmd->length = bytes + MAX77759_NVMEM_OPCODE_HEADER_LEN;
+ rsp->length = cmd->length;
+
+ ret = max77759_maxq_command(nvmem->max77759, cmd, rsp);
+ if (ret < 0)
+ return ret;
+
+ if (memcmp(cmd->cmd, rsp->rsp, cmd->length)) {
+ dev_warn(nvmem->dev, "protocol error (write)\n");
+ return -EIO;
+ }
+
+ return 0;
+}
+
+static int max77759_nvmem_probe(struct platform_device *pdev)
+{
+ struct nvmem_config config = {
+ .dev = &pdev->dev,
+ .name = dev_name(&pdev->dev),
+ .id = NVMEM_DEVID_NONE,
+ .type = NVMEM_TYPE_EEPROM,
+ .ignore_wp = true,
+ .size = MAX77759_NVMEM_SIZE,
+ .word_size = sizeof(u8),
+ .stride = sizeof(u8),
+ .reg_read = max77759_nvmem_reg_read,
+ .reg_write = max77759_nvmem_reg_write,
+ };
+ struct max77759_nvmem *nvmem;
+
+ nvmem = devm_kzalloc(&pdev->dev, sizeof(*nvmem), GFP_KERNEL);
+ if (!nvmem)
+ return -ENOMEM;
+
+ nvmem->dev = &pdev->dev;
+ nvmem->max77759 = dev_get_drvdata(pdev->dev.parent);
+
+ config.priv = nvmem;
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(config.dev, &config));
+}
+
+static const struct of_device_id max77759_nvmem_of_id[] = {
+ { .compatible = "maxim,max77759-nvmem", },
+ { }
+};
+MODULE_DEVICE_TABLE(of, max77759_nvmem_of_id);
+
+static const struct platform_device_id max77759_nvmem_platform_id[] = {
+ { "max77759-nvmem", },
+ { }
+};
+MODULE_DEVICE_TABLE(platform, max77759_nvmem_platform_id);
+
+static struct platform_driver max77759_nvmem_driver = {
+ .driver = {
+ .name = "max77759-nvmem",
+ .probe_type = PROBE_PREFER_ASYNCHRONOUS,
+ .of_match_table = max77759_nvmem_of_id,
+ },
+ .probe = max77759_nvmem_probe,
+ .id_table = max77759_nvmem_platform_id,
+};
+
+module_platform_driver(max77759_nvmem_driver);
+
+MODULE_AUTHOR("André Draszik <andre.draszik@linaro.org>");
+MODULE_DESCRIPTION("NVMEM driver for Maxim MAX77759");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/meson-efuse.c b/drivers/nvmem/meson-efuse.c
new file mode 100644
index 000000000..d7f9ac99a
--- /dev/null
+++ b/drivers/nvmem/meson-efuse.c
@@ -0,0 +1,107 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Amlogic Meson GX eFuse Driver
+ *
+ * Copyright (c) 2016 Endless Computers, Inc.
+ * Author: Carlo Caione <carlo@endlessm.com>
+ */
+
+#include <linux/clk.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+#include <linux/firmware/meson/meson_sm.h>
+
+static int meson_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct meson_sm_firmware *fw = context;
+ int ret;
+
+ ret = meson_sm_call_read(fw, (u8 *)val, bytes, SM_EFUSE_READ, offset,
+ bytes, 0, 0, 0);
+
+ return ret < 0 ? ret : 0;
+}
+
+static int meson_efuse_write(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct meson_sm_firmware *fw = context;
+ int ret;
+
+ ret = meson_sm_call_write(fw, (u8 *)val, bytes, SM_EFUSE_WRITE, offset,
+ bytes, 0, 0, 0);
+
+ return ret < 0 ? ret : 0;
+}
+
+static const struct of_device_id meson_efuse_match[] = {
+ { .compatible = "amlogic,meson-gxbb-efuse", },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, meson_efuse_match);
+
+static int meson_efuse_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct meson_sm_firmware *fw;
+ struct nvmem_device *nvmem;
+ struct nvmem_config *econfig;
+ struct clk *clk;
+ unsigned int size;
+ struct device_node *sm_np __free(device_node) =
+ of_parse_phandle(pdev->dev.of_node, "secure-monitor", 0);
+
+ if (!sm_np) {
+ dev_err(&pdev->dev, "no secure-monitor node\n");
+ return -ENODEV;
+ }
+
+ fw = meson_sm_get(sm_np);
+ if (!fw)
+ return -EPROBE_DEFER;
+
+ clk = devm_clk_get_enabled(dev, NULL);
+ if (IS_ERR(clk))
+ return dev_err_probe(dev, PTR_ERR(clk), "failed to get efuse gate");
+
+ if (meson_sm_call(fw, SM_EFUSE_USER_MAX, &size, 0, 0, 0, 0, 0) < 0) {
+ dev_err(dev, "failed to get max user");
+ return -EINVAL;
+ }
+
+ econfig = devm_kzalloc(dev, sizeof(*econfig), GFP_KERNEL);
+ if (!econfig)
+ return -ENOMEM;
+
+ econfig->dev = dev;
+ econfig->name = dev_name(dev);
+ econfig->add_legacy_fixed_of_cells = true;
+ econfig->stride = 1;
+ econfig->word_size = 1;
+ econfig->reg_read = meson_efuse_read;
+ econfig->reg_write = meson_efuse_write;
+ econfig->size = size;
+ econfig->priv = fw;
+
+ nvmem = devm_nvmem_register(&pdev->dev, econfig);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver meson_efuse_driver = {
+ .probe = meson_efuse_probe,
+ .driver = {
+ .name = "meson-efuse",
+ .of_match_table = meson_efuse_match,
+ },
+};
+
+module_platform_driver(meson_efuse_driver);
+
+MODULE_AUTHOR("Carlo Caione <carlo@endlessm.com>");
+MODULE_DESCRIPTION("Amlogic Meson GX NVMEM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/meson-mx-efuse.c b/drivers/nvmem/meson-mx-efuse.c
new file mode 100644
index 000000000..8a16f5f02
--- /dev/null
+++ b/drivers/nvmem/meson-mx-efuse.c
@@ -0,0 +1,243 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Amlogic Meson6, Meson8 and Meson8b eFuse Driver
+ *
+ * Copyright (c) 2017 Martin Blumenstingl <martin.blumenstingl@googlemail.com>
+ */
+
+#include <linux/bitfield.h>
+#include <linux/bitops.h>
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/io.h>
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/sizes.h>
+#include <linux/slab.h>
+
+#define MESON_MX_EFUSE_CNTL1 0x04
+#define MESON_MX_EFUSE_CNTL1_PD_ENABLE BIT(27)
+#define MESON_MX_EFUSE_CNTL1_AUTO_RD_BUSY BIT(26)
+#define MESON_MX_EFUSE_CNTL1_AUTO_RD_START BIT(25)
+#define MESON_MX_EFUSE_CNTL1_AUTO_RD_ENABLE BIT(24)
+#define MESON_MX_EFUSE_CNTL1_BYTE_WR_DATA GENMASK(23, 16)
+#define MESON_MX_EFUSE_CNTL1_AUTO_WR_BUSY BIT(14)
+#define MESON_MX_EFUSE_CNTL1_AUTO_WR_START BIT(13)
+#define MESON_MX_EFUSE_CNTL1_AUTO_WR_ENABLE BIT(12)
+#define MESON_MX_EFUSE_CNTL1_BYTE_ADDR_SET BIT(11)
+#define MESON_MX_EFUSE_CNTL1_BYTE_ADDR_MASK GENMASK(10, 0)
+
+#define MESON_MX_EFUSE_CNTL2 0x08
+
+#define MESON_MX_EFUSE_CNTL4 0x10
+#define MESON_MX_EFUSE_CNTL4_ENCRYPT_ENABLE BIT(10)
+
+struct meson_mx_efuse_platform_data {
+ const char *name;
+ unsigned int word_size;
+};
+
+struct meson_mx_efuse {
+ void __iomem *base;
+ struct clk *core_clk;
+ struct nvmem_config config;
+};
+
+static void meson_mx_efuse_mask_bits(struct meson_mx_efuse *efuse, u32 reg,
+ u32 mask, u32 set)
+{
+ u32 data;
+
+ data = readl(efuse->base + reg);
+ data &= ~mask;
+ data |= (set & mask);
+
+ writel(data, efuse->base + reg);
+}
+
+static int meson_mx_efuse_hw_enable(struct meson_mx_efuse *efuse)
+{
+ int err;
+
+ err = clk_prepare_enable(efuse->core_clk);
+ if (err)
+ return err;
+
+ /* power up the efuse */
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_PD_ENABLE, 0);
+
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL4,
+ MESON_MX_EFUSE_CNTL4_ENCRYPT_ENABLE, 0);
+
+ return 0;
+}
+
+static void meson_mx_efuse_hw_disable(struct meson_mx_efuse *efuse)
+{
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_PD_ENABLE,
+ MESON_MX_EFUSE_CNTL1_PD_ENABLE);
+
+ clk_disable_unprepare(efuse->core_clk);
+}
+
+static int meson_mx_efuse_read_addr(struct meson_mx_efuse *efuse,
+ unsigned int addr, u32 *value)
+{
+ int err;
+ u32 regval;
+
+ /* write the address to read */
+ regval = FIELD_PREP(MESON_MX_EFUSE_CNTL1_BYTE_ADDR_MASK, addr);
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_BYTE_ADDR_MASK, regval);
+
+ /* inform the hardware that we changed the address */
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_BYTE_ADDR_SET,
+ MESON_MX_EFUSE_CNTL1_BYTE_ADDR_SET);
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_BYTE_ADDR_SET, 0);
+
+ /* start the read process */
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_START,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_START);
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_START, 0);
+
+ /*
+ * perform a dummy read to ensure that the HW has the RD_BUSY bit set
+ * when polling for the status below.
+ */
+ readl(efuse->base + MESON_MX_EFUSE_CNTL1);
+
+ err = readl_poll_timeout_atomic(efuse->base + MESON_MX_EFUSE_CNTL1,
+ regval,
+ (!(regval & MESON_MX_EFUSE_CNTL1_AUTO_RD_BUSY)),
+ 1, 1000);
+ if (err) {
+ dev_err(efuse->config.dev,
+ "Timeout while reading efuse address %u\n", addr);
+ return err;
+ }
+
+ *value = readl(efuse->base + MESON_MX_EFUSE_CNTL2);
+
+ return 0;
+}
+
+static int meson_mx_efuse_read(void *context, unsigned int offset,
+ void *buf, size_t bytes)
+{
+ struct meson_mx_efuse *efuse = context;
+ u32 tmp;
+ int err, i, addr;
+
+ err = meson_mx_efuse_hw_enable(efuse);
+ if (err)
+ return err;
+
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_ENABLE,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_ENABLE);
+
+ for (i = 0; i < bytes; i += efuse->config.word_size) {
+ addr = (offset + i) / efuse->config.word_size;
+
+ err = meson_mx_efuse_read_addr(efuse, addr, &tmp);
+ if (err)
+ break;
+
+ memcpy(buf + i, &tmp,
+ min_t(size_t, bytes - i, efuse->config.word_size));
+ }
+
+ meson_mx_efuse_mask_bits(efuse, MESON_MX_EFUSE_CNTL1,
+ MESON_MX_EFUSE_CNTL1_AUTO_RD_ENABLE, 0);
+
+ meson_mx_efuse_hw_disable(efuse);
+
+ return err;
+}
+
+static const struct meson_mx_efuse_platform_data meson6_efuse_data = {
+ .name = "meson6-efuse",
+ .word_size = 1,
+};
+
+static const struct meson_mx_efuse_platform_data meson8_efuse_data = {
+ .name = "meson8-efuse",
+ .word_size = 4,
+};
+
+static const struct meson_mx_efuse_platform_data meson8b_efuse_data = {
+ .name = "meson8b-efuse",
+ .word_size = 4,
+};
+
+static const struct of_device_id meson_mx_efuse_match[] = {
+ { .compatible = "amlogic,meson6-efuse", .data = &meson6_efuse_data },
+ { .compatible = "amlogic,meson8-efuse", .data = &meson8_efuse_data },
+ { .compatible = "amlogic,meson8b-efuse", .data = &meson8b_efuse_data },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, meson_mx_efuse_match);
+
+static int meson_mx_efuse_probe(struct platform_device *pdev)
+{
+ const struct meson_mx_efuse_platform_data *drvdata;
+ struct meson_mx_efuse *efuse;
+ struct nvmem_device *nvmem;
+
+ drvdata = of_device_get_match_data(&pdev->dev);
+ if (!drvdata)
+ return -EINVAL;
+
+ efuse = devm_kzalloc(&pdev->dev, sizeof(*efuse), GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ efuse->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(efuse->base))
+ return PTR_ERR(efuse->base);
+
+ efuse->config.name = drvdata->name;
+ efuse->config.owner = THIS_MODULE;
+ efuse->config.dev = &pdev->dev;
+ efuse->config.priv = efuse;
+ efuse->config.add_legacy_fixed_of_cells = true;
+ efuse->config.stride = drvdata->word_size;
+ efuse->config.word_size = drvdata->word_size;
+ efuse->config.size = SZ_512;
+ efuse->config.read_only = true;
+ efuse->config.reg_read = meson_mx_efuse_read;
+
+ efuse->core_clk = devm_clk_get(&pdev->dev, "core");
+ if (IS_ERR(efuse->core_clk)) {
+ dev_err(&pdev->dev, "Failed to get core clock\n");
+ return PTR_ERR(efuse->core_clk);
+ }
+
+ nvmem = devm_nvmem_register(&pdev->dev, &efuse->config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver meson_mx_efuse_driver = {
+ .probe = meson_mx_efuse_probe,
+ .driver = {
+ .name = "meson-mx-efuse",
+ .of_match_table = meson_mx_efuse_match,
+ },
+};
+
+module_platform_driver(meson_mx_efuse_driver);
+
+MODULE_AUTHOR("Martin Blumenstingl <martin.blumenstingl@googlemail.com>");
+MODULE_DESCRIPTION("Amlogic Meson MX eFuse NVMEM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/microchip-otpc.c b/drivers/nvmem/microchip-otpc.c
new file mode 100644
index 000000000..df979e854
--- /dev/null
+++ b/drivers/nvmem/microchip-otpc.c
@@ -0,0 +1,289 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * OTP Memory controller
+ *
+ * Copyright (C) 2022 Microchip Technology Inc. and its subsidiaries
+ *
+ * Author: Claudiu Beznea <claudiu.beznea@microchip.com>
+ */
+
+#include <linux/bitfield.h>
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+#define MCHP_OTPC_CR (0x0)
+#define MCHP_OTPC_CR_READ BIT(6)
+#define MCHP_OTPC_MR (0x4)
+#define MCHP_OTPC_MR_ADDR GENMASK(31, 16)
+#define MCHP_OTPC_AR (0x8)
+#define MCHP_OTPC_SR (0xc)
+#define MCHP_OTPC_SR_READ BIT(6)
+#define MCHP_OTPC_HR (0x20)
+#define MCHP_OTPC_HR_SIZE GENMASK(15, 8)
+#define MCHP_OTPC_DR (0x24)
+
+#define MCHP_OTPC_NAME "mchp-otpc"
+#define MCHP_OTPC_SIZE (11 * 1024)
+
+/**
+ * struct mchp_otpc - OTPC private data structure
+ * @base: base address
+ * @dev: struct device pointer
+ * @packets: list of packets in OTP memory
+ * @npackets: number of packets in OTP memory
+ */
+struct mchp_otpc {
+ void __iomem *base;
+ struct device *dev;
+ struct list_head packets;
+ u32 npackets;
+};
+
+/**
+ * struct mchp_otpc_packet - OTPC packet data structure
+ * @list: list head
+ * @id: packet ID
+ * @offset: packet offset (in words) in OTP memory
+ */
+struct mchp_otpc_packet {
+ struct list_head list;
+ u32 id;
+ u32 offset;
+};
+
+static struct mchp_otpc_packet *mchp_otpc_id_to_packet(struct mchp_otpc *otpc,
+ u32 id)
+{
+ struct mchp_otpc_packet *packet;
+
+ if (id >= otpc->npackets)
+ return NULL;
+
+ list_for_each_entry(packet, &otpc->packets, list) {
+ if (packet->id == id)
+ return packet;
+ }
+
+ return NULL;
+}
+
+static int mchp_otpc_prepare_read(struct mchp_otpc *otpc,
+ unsigned int offset)
+{
+ u32 tmp;
+
+ /* Set address. */
+ tmp = readl_relaxed(otpc->base + MCHP_OTPC_MR);
+ tmp &= ~MCHP_OTPC_MR_ADDR;
+ tmp |= FIELD_PREP(MCHP_OTPC_MR_ADDR, offset);
+ writel_relaxed(tmp, otpc->base + MCHP_OTPC_MR);
+
+ /* Set read. */
+ tmp = readl_relaxed(otpc->base + MCHP_OTPC_CR);
+ tmp |= MCHP_OTPC_CR_READ;
+ writel_relaxed(tmp, otpc->base + MCHP_OTPC_CR);
+
+ /* Wait for packet to be transferred into temporary buffers. */
+ return read_poll_timeout(readl_relaxed, tmp, !(tmp & MCHP_OTPC_SR_READ),
+ 10000, 2000, false, otpc->base + MCHP_OTPC_SR);
+}
+
+/*
+ * OTPC memory is organized into packets. Each packets contains a header and
+ * a payload. Header is 4 bytes long and contains the size of the payload.
+ * Payload size varies. The memory footprint is something as follows:
+ *
+ * Memory offset Memory footprint Packet ID
+ * ------------- ---------------- ---------
+ *
+ * 0x0 +------------+ <-- packet 0
+ * | header 0 |
+ * 0x4 +------------+
+ * | payload 0 |
+ * . .
+ * . ... .
+ * . .
+ * offset1 +------------+ <-- packet 1
+ * | header 1 |
+ * offset1 + 0x4 +------------+
+ * | payload 1 |
+ * . .
+ * . ... .
+ * . .
+ * offset2 +------------+ <-- packet 2
+ * . .
+ * . ... .
+ * . .
+ * offsetN +------------+ <-- packet N
+ * | header N |
+ * offsetN + 0x4 +------------+
+ * | payload N |
+ * . .
+ * . ... .
+ * . .
+ * +------------+
+ *
+ * where offset1, offset2, offsetN depends on the size of payload 0, payload 1,
+ * payload N-1.
+ *
+ * The access to memory is done on a per packet basis: the control registers
+ * need to be updated with an offset address (within a packet range) and the
+ * data registers will be update by controller with information contained by
+ * that packet. E.g. if control registers are updated with any address within
+ * the range [offset1, offset2) the data registers are updated by controller
+ * with packet 1. Header data is accessible though MCHP_OTPC_HR register.
+ * Payload data is accessible though MCHP_OTPC_DR and MCHP_OTPC_AR registers.
+ * There is no direct mapping b/w the offset requested by software and the
+ * offset returned by hardware.
+ *
+ * For this, the read function will return the first requested bytes in the
+ * packet. The user will have to be aware of the memory footprint before doing
+ * the read request.
+ */
+static int mchp_otpc_read(void *priv, unsigned int off, void *val,
+ size_t bytes)
+{
+ struct mchp_otpc *otpc = priv;
+ struct mchp_otpc_packet *packet;
+ u32 *buf = val;
+ u32 offset;
+ size_t len = 0;
+ int ret, payload_size;
+
+ /*
+ * We reach this point with off being multiple of stride = 4 to
+ * be able to cross the subsystem. Inside the driver we use continuous
+ * unsigned integer numbers for packet id, thus divide off by 4
+ * before passing it to mchp_otpc_id_to_packet().
+ */
+ packet = mchp_otpc_id_to_packet(otpc, off / 4);
+ if (!packet)
+ return -EINVAL;
+ offset = packet->offset;
+
+ while (len < bytes) {
+ ret = mchp_otpc_prepare_read(otpc, offset);
+ if (ret)
+ return ret;
+
+ /* Read and save header content. */
+ *buf++ = readl_relaxed(otpc->base + MCHP_OTPC_HR);
+ len += sizeof(*buf);
+ offset++;
+ if (len >= bytes)
+ break;
+
+ /* Read and save payload content. */
+ payload_size = FIELD_GET(MCHP_OTPC_HR_SIZE, *(buf - 1));
+ writel_relaxed(0UL, otpc->base + MCHP_OTPC_AR);
+ do {
+ *buf++ = readl_relaxed(otpc->base + MCHP_OTPC_DR);
+ len += sizeof(*buf);
+ offset++;
+ payload_size--;
+ } while (payload_size >= 0 && len < bytes);
+ }
+
+ return 0;
+}
+
+static int mchp_otpc_init_packets_list(struct mchp_otpc *otpc, u32 *size)
+{
+ struct mchp_otpc_packet *packet;
+ u32 word, word_pos = 0, id = 0, npackets = 0, payload_size;
+ int ret;
+
+ INIT_LIST_HEAD(&otpc->packets);
+ *size = 0;
+
+ while (*size < MCHP_OTPC_SIZE) {
+ ret = mchp_otpc_prepare_read(otpc, word_pos);
+ if (ret)
+ return ret;
+
+ word = readl_relaxed(otpc->base + MCHP_OTPC_HR);
+ payload_size = FIELD_GET(MCHP_OTPC_HR_SIZE, word);
+ if (!payload_size)
+ break;
+
+ packet = devm_kzalloc(otpc->dev, sizeof(*packet), GFP_KERNEL);
+ if (!packet)
+ return -ENOMEM;
+
+ packet->id = id++;
+ packet->offset = word_pos;
+ INIT_LIST_HEAD(&packet->list);
+ list_add_tail(&packet->list, &otpc->packets);
+
+ /* Count size by adding header and paload sizes. */
+ *size += 4 * (payload_size + 1);
+ /* Next word: this packet (header, payload) position + 1. */
+ word_pos += payload_size + 2;
+
+ npackets++;
+ }
+
+ otpc->npackets = npackets;
+
+ return 0;
+}
+
+static struct nvmem_config mchp_nvmem_config = {
+ .name = MCHP_OTPC_NAME,
+ .type = NVMEM_TYPE_OTP,
+ .read_only = true,
+ .word_size = 4,
+ .stride = 4,
+ .reg_read = mchp_otpc_read,
+};
+
+static int mchp_otpc_probe(struct platform_device *pdev)
+{
+ struct nvmem_device *nvmem;
+ struct mchp_otpc *otpc;
+ u32 size;
+ int ret;
+
+ otpc = devm_kzalloc(&pdev->dev, sizeof(*otpc), GFP_KERNEL);
+ if (!otpc)
+ return -ENOMEM;
+
+ otpc->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(otpc->base))
+ return PTR_ERR(otpc->base);
+
+ otpc->dev = &pdev->dev;
+ ret = mchp_otpc_init_packets_list(otpc, &size);
+ if (ret)
+ return ret;
+
+ mchp_nvmem_config.dev = otpc->dev;
+ mchp_nvmem_config.add_legacy_fixed_of_cells = true;
+ mchp_nvmem_config.size = size;
+ mchp_nvmem_config.priv = otpc;
+ nvmem = devm_nvmem_register(&pdev->dev, &mchp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id __maybe_unused mchp_otpc_ids[] = {
+ { .compatible = "microchip,sama7g5-otpc", },
+ { },
+};
+MODULE_DEVICE_TABLE(of, mchp_otpc_ids);
+
+static struct platform_driver mchp_otpc_driver = {
+ .probe = mchp_otpc_probe,
+ .driver = {
+ .name = MCHP_OTPC_NAME,
+ .of_match_table = of_match_ptr(mchp_otpc_ids),
+ },
+};
+module_platform_driver(mchp_otpc_driver);
+
+MODULE_AUTHOR("Claudiu Beznea <claudiu.beznea@microchip.com>");
+MODULE_DESCRIPTION("Microchip SAMA7G5 OTPC driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/mtk-efuse.c b/drivers/nvmem/mtk-efuse.c
new file mode 100644
index 000000000..00a84ea96
--- /dev/null
+++ b/drivers/nvmem/mtk-efuse.c
@@ -0,0 +1,159 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (c) 2015 MediaTek Inc.
+ * Author: Andrew-CT Chen <andrew-ct.chen@mediatek.com>
+ */
+
+#include <linux/device.h>
+#include <linux/module.h>
+#include <linux/io.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/property.h>
+
+struct mtk_efuse_pdata {
+ bool uses_post_processing;
+};
+
+struct mtk_efuse_priv {
+ void __iomem *base;
+};
+
+static int mtk_reg_read(void *context,
+ unsigned int reg, void *_val, size_t bytes)
+{
+ struct mtk_efuse_priv *priv = context;
+ void __iomem *addr = priv->base + reg;
+ u8 *val = _val;
+ int i;
+
+ for (i = 0; i < bytes; i++, val++)
+ *val = readb(addr + i);
+
+ return 0;
+}
+
+static int mtk_efuse_gpu_speedbin_pp(void *context, const char *id, int index,
+ unsigned int offset, void *data, size_t bytes)
+{
+ u8 *val = data;
+
+ if (val[0] < 8)
+ val[0] = BIT(val[0]);
+
+ return 0;
+}
+
+static void mtk_efuse_fixup_dt_cell_info(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *cell)
+{
+ size_t sz = strlen(cell->name);
+
+ /*
+ * On some SoCs, the GPU speedbin is not read as bitmask but as
+ * a number with range [0-7] (max 3 bits): post process to use
+ * it in OPP tables to describe supported-hw.
+ */
+ if (cell->nbits <= 3 &&
+ strncmp(cell->name, "gpu-speedbin", min(sz, strlen("gpu-speedbin"))) == 0)
+ cell->read_post_process = mtk_efuse_gpu_speedbin_pp;
+}
+
+static int mtk_efuse_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct resource *res;
+ struct nvmem_device *nvmem;
+ struct nvmem_config econfig = {};
+ struct mtk_efuse_priv *priv;
+ const struct mtk_efuse_pdata *pdata;
+ struct platform_device *socinfo;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ pdata = device_get_match_data(dev);
+ econfig.add_legacy_fixed_of_cells = true;
+ econfig.stride = 1;
+ econfig.word_size = 1;
+ econfig.reg_read = mtk_reg_read;
+ econfig.size = resource_size(res);
+ econfig.priv = priv;
+ econfig.dev = dev;
+ if (pdata->uses_post_processing)
+ econfig.fixup_dt_cell_info = &mtk_efuse_fixup_dt_cell_info;
+ nvmem = devm_nvmem_register(dev, &econfig);
+ if (IS_ERR(nvmem))
+ return PTR_ERR(nvmem);
+
+ socinfo = platform_device_register_data(&pdev->dev, "mtk-socinfo",
+ PLATFORM_DEVID_AUTO, NULL, 0);
+ if (IS_ERR(socinfo))
+ dev_info(dev, "MediaTek SoC Information will be unavailable\n");
+
+ platform_set_drvdata(pdev, socinfo);
+ return 0;
+}
+
+static const struct mtk_efuse_pdata mtk_mt8186_efuse_pdata = {
+ .uses_post_processing = true,
+};
+
+static const struct mtk_efuse_pdata mtk_efuse_pdata = {
+ .uses_post_processing = false,
+};
+
+static const struct of_device_id mtk_efuse_of_match[] = {
+ { .compatible = "mediatek,mt8173-efuse", .data = &mtk_efuse_pdata },
+ { .compatible = "mediatek,mt8186-efuse", .data = &mtk_mt8186_efuse_pdata },
+ { .compatible = "mediatek,efuse", .data = &mtk_efuse_pdata },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, mtk_efuse_of_match);
+
+static void mtk_efuse_remove(struct platform_device *pdev)
+{
+ struct platform_device *socinfo = platform_get_drvdata(pdev);
+
+ if (!IS_ERR_OR_NULL(socinfo))
+ platform_device_unregister(socinfo);
+}
+
+static struct platform_driver mtk_efuse_driver = {
+ .probe = mtk_efuse_probe,
+ .remove = mtk_efuse_remove,
+ .driver = {
+ .name = "mediatek,efuse",
+ .of_match_table = mtk_efuse_of_match,
+ },
+};
+
+static int __init mtk_efuse_init(void)
+{
+ int ret;
+
+ ret = platform_driver_register(&mtk_efuse_driver);
+ if (ret) {
+ pr_err("Failed to register efuse driver\n");
+ return ret;
+ }
+
+ return 0;
+}
+
+static void __exit mtk_efuse_exit(void)
+{
+ return platform_driver_unregister(&mtk_efuse_driver);
+}
+
+subsys_initcall(mtk_efuse_init);
+module_exit(mtk_efuse_exit);
+
+MODULE_AUTHOR("Andrew-CT Chen <andrew-ct.chen@mediatek.com>");
+MODULE_DESCRIPTION("Mediatek EFUSE driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/mxs-ocotp.c b/drivers/nvmem/mxs-ocotp.c
new file mode 100644
index 000000000..7b78f18f9
--- /dev/null
+++ b/drivers/nvmem/mxs-ocotp.c
@@ -0,0 +1,195 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * Freescale MXS On-Chip OTP driver
+ *
+ * Copyright (C) 2015 Stefan Wahren <stefan.wahren@i2se.com>
+ *
+ * Based on the driver from Huang Shijie and Christoph G. Baumann
+ */
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/err.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/property.h>
+#include <linux/slab.h>
+#include <linux/stmp_device.h>
+
+/* OCOTP registers and bits */
+
+#define BM_OCOTP_CTRL_RD_BANK_OPEN BIT(12)
+#define BM_OCOTP_CTRL_ERROR BIT(9)
+#define BM_OCOTP_CTRL_BUSY BIT(8)
+
+#define OCOTP_TIMEOUT 10000
+#define OCOTP_DATA_OFFSET 0x20
+
+struct mxs_ocotp {
+ struct clk *clk;
+ void __iomem *base;
+ struct nvmem_device *nvmem;
+};
+
+static int mxs_ocotp_wait(struct mxs_ocotp *otp)
+{
+ int timeout = OCOTP_TIMEOUT;
+ unsigned int status = 0;
+
+ while (timeout--) {
+ status = readl(otp->base);
+
+ if (!(status & (BM_OCOTP_CTRL_BUSY | BM_OCOTP_CTRL_ERROR)))
+ break;
+
+ cpu_relax();
+ }
+
+ if (status & BM_OCOTP_CTRL_BUSY)
+ return -EBUSY;
+ else if (status & BM_OCOTP_CTRL_ERROR)
+ return -EIO;
+
+ return 0;
+}
+
+static int mxs_ocotp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct mxs_ocotp *otp = context;
+ u32 *buf = val;
+ int ret;
+
+ ret = clk_enable(otp->clk);
+ if (ret)
+ return ret;
+
+ writel(BM_OCOTP_CTRL_ERROR, otp->base + STMP_OFFSET_REG_CLR);
+
+ ret = mxs_ocotp_wait(otp);
+ if (ret)
+ goto disable_clk;
+
+ /* open OCOTP banks for read */
+ writel(BM_OCOTP_CTRL_RD_BANK_OPEN, otp->base + STMP_OFFSET_REG_SET);
+
+ /* approximately wait 33 hclk cycles */
+ udelay(1);
+
+ ret = mxs_ocotp_wait(otp);
+ if (ret)
+ goto close_banks;
+
+ while (bytes) {
+ if ((offset < OCOTP_DATA_OFFSET) || (offset % 16)) {
+ /* fill up non-data register */
+ *buf++ = 0;
+ } else {
+ *buf++ = readl(otp->base + offset);
+ }
+
+ bytes -= 4;
+ offset += 4;
+ }
+
+close_banks:
+ /* close banks for power saving */
+ writel(BM_OCOTP_CTRL_RD_BANK_OPEN, otp->base + STMP_OFFSET_REG_CLR);
+
+disable_clk:
+ clk_disable(otp->clk);
+
+ return ret;
+}
+
+static struct nvmem_config ocotp_config = {
+ .name = "mxs-ocotp",
+ .stride = 16,
+ .word_size = 4,
+ .reg_read = mxs_ocotp_read,
+};
+
+struct mxs_data {
+ int size;
+};
+
+static const struct mxs_data imx23_data = {
+ .size = 0x220,
+};
+
+static const struct mxs_data imx28_data = {
+ .size = 0x2a0,
+};
+
+static const struct of_device_id mxs_ocotp_match[] = {
+ { .compatible = "fsl,imx23-ocotp", .data = &imx23_data },
+ { .compatible = "fsl,imx28-ocotp", .data = &imx28_data },
+ { /* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, mxs_ocotp_match);
+
+static void mxs_ocotp_action(void *data)
+{
+ clk_unprepare(data);
+}
+
+static int mxs_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ const struct mxs_data *data;
+ struct mxs_ocotp *otp;
+ int ret;
+
+ data = device_get_match_data(dev);
+ if (!data)
+ return -EINVAL;
+
+ otp = devm_kzalloc(dev, sizeof(*otp), GFP_KERNEL);
+ if (!otp)
+ return -ENOMEM;
+
+ otp->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(otp->base))
+ return PTR_ERR(otp->base);
+
+ otp->clk = devm_clk_get(&pdev->dev, NULL);
+ if (IS_ERR(otp->clk))
+ return PTR_ERR(otp->clk);
+
+ ret = clk_prepare(otp->clk);
+ if (ret < 0) {
+ dev_err(dev, "failed to prepare clk: %d\n", ret);
+ return ret;
+ }
+
+ ret = devm_add_action_or_reset(&pdev->dev, mxs_ocotp_action, otp->clk);
+ if (ret)
+ return ret;
+
+ ocotp_config.size = data->size;
+ ocotp_config.priv = otp;
+ ocotp_config.dev = dev;
+ otp->nvmem = devm_nvmem_register(dev, &ocotp_config);
+ if (IS_ERR(otp->nvmem))
+ return PTR_ERR(otp->nvmem);
+
+ platform_set_drvdata(pdev, otp);
+
+ return 0;
+}
+
+static struct platform_driver mxs_ocotp_driver = {
+ .probe = mxs_ocotp_probe,
+ .driver = {
+ .name = "mxs-ocotp",
+ .of_match_table = mxs_ocotp_match,
+ },
+};
+
+module_platform_driver(mxs_ocotp_driver);
+MODULE_AUTHOR("Stefan Wahren <wahrenst@gmx.net");
+MODULE_DESCRIPTION("driver for OCOTP in i.MX23/i.MX28");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/nintendo-otp.c b/drivers/nvmem/nintendo-otp.c
new file mode 100644
index 000000000..a4d986e45
--- /dev/null
+++ b/drivers/nvmem/nintendo-otp.c
@@ -0,0 +1,120 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Nintendo Wii and Wii U OTP driver
+ *
+ * This is a driver exposing the OTP of a Nintendo Wii or Wii U console.
+ *
+ * This memory contains common and per-console keys, signatures and
+ * related data required to access peripherals.
+ *
+ * Based on reversed documentation from https://wiiubrew.org/wiki/Hardware/OTP
+ *
+ * Copyright (C) 2021 Emmanuel Gil Peyrot <linkmauve@linkmauve.fr>
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+#define HW_OTPCMD 0
+#define HW_OTPDATA 4
+#define OTP_READ 0x80000000
+#define BANK_SIZE 128
+#define WORD_SIZE 4
+
+struct nintendo_otp_priv {
+ void __iomem *regs;
+};
+
+struct nintendo_otp_devtype_data {
+ const char *name;
+ unsigned int num_banks;
+};
+
+static const struct nintendo_otp_devtype_data hollywood_otp_data = {
+ .name = "wii-otp",
+ .num_banks = 1,
+};
+
+static const struct nintendo_otp_devtype_data latte_otp_data = {
+ .name = "wiiu-otp",
+ .num_banks = 8,
+};
+
+static int nintendo_otp_reg_read(void *context,
+ unsigned int reg, void *_val, size_t bytes)
+{
+ struct nintendo_otp_priv *priv = context;
+ u32 *val = _val;
+ int words = bytes / WORD_SIZE;
+ u32 bank, addr;
+
+ while (words--) {
+ bank = (reg / BANK_SIZE) << 8;
+ addr = (reg / WORD_SIZE) % (BANK_SIZE / WORD_SIZE);
+ iowrite32be(OTP_READ | bank | addr, priv->regs + HW_OTPCMD);
+ *val++ = ioread32be(priv->regs + HW_OTPDATA);
+ reg += WORD_SIZE;
+ }
+
+ return 0;
+}
+
+static const struct of_device_id nintendo_otp_of_table[] = {
+ { .compatible = "nintendo,hollywood-otp", .data = &hollywood_otp_data },
+ { .compatible = "nintendo,latte-otp", .data = &latte_otp_data },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, nintendo_otp_of_table);
+
+static int nintendo_otp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ const struct nintendo_otp_devtype_data *data;
+ struct nvmem_device *nvmem;
+ struct nintendo_otp_priv *priv;
+
+ struct nvmem_config config = {
+ .stride = WORD_SIZE,
+ .word_size = WORD_SIZE,
+ .reg_read = nintendo_otp_reg_read,
+ .read_only = true,
+ .root_only = true,
+ };
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->regs = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(priv->regs))
+ return PTR_ERR(priv->regs);
+
+ data = of_device_get_match_data(dev);
+ if (data) {
+ config.name = data->name;
+ config.size = data->num_banks * BANK_SIZE;
+ }
+
+ config.dev = dev;
+ config.priv = priv;
+
+ nvmem = devm_nvmem_register(dev, &config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver nintendo_otp_driver = {
+ .probe = nintendo_otp_probe,
+ .driver = {
+ .name = "nintendo-otp",
+ .of_match_table = nintendo_otp_of_table,
+ },
+};
+module_platform_driver(nintendo_otp_driver);
+MODULE_AUTHOR("Emmanuel Gil Peyrot <linkmauve@linkmauve.fr>");
+MODULE_DESCRIPTION("Nintendo Wii and Wii U OTP driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/qcom-spmi-sdam.c b/drivers/nvmem/qcom-spmi-sdam.c
new file mode 100644
index 000000000..4f1cca6ea
--- /dev/null
+++ b/drivers/nvmem/qcom-spmi-sdam.c
@@ -0,0 +1,183 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (c) 2017, 2020-2021, The Linux Foundation. All rights reserved.
+ */
+
+#include <linux/device.h>
+#include <linux/module.h>
+#include <linux/of.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/regmap.h>
+
+#define SDAM_MEM_START 0x40
+#define REGISTER_MAP_ID 0x40
+#define REGISTER_MAP_VERSION 0x41
+#define SDAM_SIZE 0x44
+#define SDAM_PBS_TRIG_SET 0xE5
+#define SDAM_PBS_TRIG_CLR 0xE6
+
+struct sdam_chip {
+ struct regmap *regmap;
+ struct nvmem_config sdam_config;
+ unsigned int base;
+ unsigned int size;
+};
+
+/* read only register offsets */
+static const u8 sdam_ro_map[] = {
+ REGISTER_MAP_ID,
+ REGISTER_MAP_VERSION,
+ SDAM_SIZE
+};
+
+static bool sdam_is_valid(struct sdam_chip *sdam, unsigned int offset,
+ size_t len)
+{
+ unsigned int sdam_mem_end = SDAM_MEM_START + sdam->size - 1;
+
+ if (!len)
+ return false;
+
+ if (offset >= SDAM_MEM_START && offset <= sdam_mem_end
+ && (offset + len - 1) <= sdam_mem_end)
+ return true;
+ else if ((offset == SDAM_PBS_TRIG_SET || offset == SDAM_PBS_TRIG_CLR)
+ && (len == 1))
+ return true;
+
+ return false;
+}
+
+static bool sdam_is_ro(unsigned int offset, size_t len)
+{
+ int i;
+
+ for (i = 0; i < ARRAY_SIZE(sdam_ro_map); i++)
+ if (offset <= sdam_ro_map[i] && (offset + len) > sdam_ro_map[i])
+ return true;
+
+ return false;
+}
+
+static int sdam_read(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct sdam_chip *sdam = priv;
+ struct device *dev = sdam->sdam_config.dev;
+ int rc;
+
+ if (!sdam_is_valid(sdam, offset, bytes)) {
+ dev_err(dev, "Invalid SDAM offset %#x len=%zd\n",
+ offset, bytes);
+ return -EINVAL;
+ }
+
+ rc = regmap_bulk_read(sdam->regmap, sdam->base + offset, val, bytes);
+ if (rc < 0)
+ dev_err(dev, "Failed to read SDAM offset %#x len=%zd, rc=%d\n",
+ offset, bytes, rc);
+
+ return rc;
+}
+
+static int sdam_write(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct sdam_chip *sdam = priv;
+ struct device *dev = sdam->sdam_config.dev;
+ int rc;
+
+ if (!sdam_is_valid(sdam, offset, bytes)) {
+ dev_err(dev, "Invalid SDAM offset %#x len=%zd\n",
+ offset, bytes);
+ return -EINVAL;
+ }
+
+ if (sdam_is_ro(offset, bytes)) {
+ dev_err(dev, "Invalid write offset %#x len=%zd\n",
+ offset, bytes);
+ return -EINVAL;
+ }
+
+ rc = regmap_bulk_write(sdam->regmap, sdam->base + offset, val, bytes);
+ if (rc < 0)
+ dev_err(dev, "Failed to write SDAM offset %#x len=%zd, rc=%d\n",
+ offset, bytes, rc);
+
+ return rc;
+}
+
+static int sdam_probe(struct platform_device *pdev)
+{
+ struct sdam_chip *sdam;
+ struct nvmem_device *nvmem;
+ unsigned int val;
+ int rc;
+
+ sdam = devm_kzalloc(&pdev->dev, sizeof(*sdam), GFP_KERNEL);
+ if (!sdam)
+ return -ENOMEM;
+
+ sdam->regmap = dev_get_regmap(pdev->dev.parent, NULL);
+ if (!sdam->regmap) {
+ dev_err(&pdev->dev, "Failed to get regmap handle\n");
+ return -ENXIO;
+ }
+
+ rc = of_property_read_u32(pdev->dev.of_node, "reg", &sdam->base);
+ if (rc < 0) {
+ dev_err(&pdev->dev, "Failed to get SDAM base, rc=%d\n", rc);
+ return -EINVAL;
+ }
+
+ rc = regmap_read(sdam->regmap, sdam->base + SDAM_SIZE, &val);
+ if (rc < 0) {
+ dev_err(&pdev->dev, "Failed to read SDAM_SIZE rc=%d\n", rc);
+ return -EINVAL;
+ }
+ sdam->size = val * 32;
+
+ sdam->sdam_config.dev = &pdev->dev;
+ sdam->sdam_config.name = "spmi_sdam";
+ sdam->sdam_config.id = NVMEM_DEVID_AUTO;
+ sdam->sdam_config.owner = THIS_MODULE;
+ sdam->sdam_config.add_legacy_fixed_of_cells = true;
+ sdam->sdam_config.stride = 1;
+ sdam->sdam_config.size = sdam->size;
+ sdam->sdam_config.word_size = 1;
+ sdam->sdam_config.reg_read = sdam_read;
+ sdam->sdam_config.reg_write = sdam_write;
+ sdam->sdam_config.priv = sdam;
+
+ nvmem = devm_nvmem_register(&pdev->dev, &sdam->sdam_config);
+ if (IS_ERR(nvmem)) {
+ dev_err(&pdev->dev,
+ "Failed to register SDAM nvmem device rc=%ld\n",
+ PTR_ERR(nvmem));
+ return -ENXIO;
+ }
+ dev_dbg(&pdev->dev,
+ "SDAM base=%#x size=%u registered successfully\n",
+ sdam->base, sdam->size);
+
+ return 0;
+}
+
+static const struct of_device_id sdam_match_table[] = {
+ { .compatible = "qcom,spmi-sdam" },
+ {},
+};
+MODULE_DEVICE_TABLE(of, sdam_match_table);
+
+static struct platform_driver sdam_driver = {
+ .driver = {
+ .name = "qcom,spmi-sdam",
+ .of_match_table = sdam_match_table,
+ },
+ .probe = sdam_probe,
+};
+module_platform_driver(sdam_driver);
+
+MODULE_DESCRIPTION("QCOM SPMI SDAM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/qfprom.c b/drivers/nvmem/qfprom.c
new file mode 100644
index 000000000..1de3435df
--- /dev/null
+++ b/drivers/nvmem/qfprom.c
@@ -0,0 +1,477 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (C) 2015 Srinivas Kandagatla <srinivas.kandagatla@linaro.org>
+ */
+
+#include <linux/clk.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/iopoll.h>
+#include <linux/kernel.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/pm_domain.h>
+#include <linux/pm_runtime.h>
+#include <linux/property.h>
+#include <linux/regulator/consumer.h>
+
+/* Blow timer clock frequency in Mhz */
+#define QFPROM_BLOW_TIMER_OFFSET 0x03c
+
+/* Amount of time required to hold charge to blow fuse in micro-seconds */
+#define QFPROM_FUSE_BLOW_POLL_US 100
+#define QFPROM_FUSE_BLOW_TIMEOUT_US 10000
+
+#define QFPROM_BLOW_STATUS_OFFSET 0x048
+#define QFPROM_BLOW_STATUS_BUSY 0x1
+#define QFPROM_BLOW_STATUS_READY 0x0
+
+#define QFPROM_ACCEL_OFFSET 0x044
+
+#define QFPROM_VERSION_OFFSET 0x0
+#define QFPROM_MAJOR_VERSION_SHIFT 28
+#define QFPROM_MAJOR_VERSION_MASK GENMASK(31, QFPROM_MAJOR_VERSION_SHIFT)
+#define QFPROM_MINOR_VERSION_SHIFT 16
+#define QFPROM_MINOR_VERSION_MASK GENMASK(27, QFPROM_MINOR_VERSION_SHIFT)
+
+static bool read_raw_data;
+module_param(read_raw_data, bool, 0644);
+MODULE_PARM_DESC(read_raw_data, "Read raw instead of corrected data");
+
+/**
+ * struct qfprom_soc_data - config that varies from SoC to SoC.
+ *
+ * @accel_value: Should contain qfprom accel value.
+ * @qfprom_blow_timer_value: The timer value of qfprom when doing efuse blow.
+ * @qfprom_blow_set_freq: The frequency required to set when we start the
+ * fuse blowing.
+ * @qfprom_blow_uV: LDO voltage to be set when doing efuse blow
+ */
+struct qfprom_soc_data {
+ u32 accel_value;
+ u32 qfprom_blow_timer_value;
+ u32 qfprom_blow_set_freq;
+ int qfprom_blow_uV;
+};
+
+/**
+ * struct qfprom_priv - structure holding qfprom attributes
+ *
+ * @qfpraw: iomapped memory space for qfprom-efuse raw address space.
+ * @qfpconf: iomapped memory space for qfprom-efuse configuration address
+ * space.
+ * @qfpcorrected: iomapped memory space for qfprom corrected address space.
+ * @qfpsecurity: iomapped memory space for qfprom security control space.
+ * @dev: qfprom device structure.
+ * @secclk: Clock supply.
+ * @vcc: Regulator supply.
+ * @soc_data: Data that for things that varies from SoC to SoC.
+ */
+struct qfprom_priv {
+ void __iomem *qfpraw;
+ void __iomem *qfpconf;
+ void __iomem *qfpcorrected;
+ void __iomem *qfpsecurity;
+ struct device *dev;
+ struct clk *secclk;
+ struct regulator *vcc;
+ const struct qfprom_soc_data *soc_data;
+};
+
+/**
+ * struct qfprom_touched_values - saved values to restore after blowing
+ *
+ * @clk_rate: The rate the clock was at before blowing.
+ * @accel_val: The value of the accel reg before blowing.
+ * @timer_val: The value of the timer before blowing.
+ */
+struct qfprom_touched_values {
+ unsigned long clk_rate;
+ u32 accel_val;
+ u32 timer_val;
+};
+
+/**
+ * struct qfprom_soc_compatible_data - Data matched against the SoC
+ * compatible string.
+ *
+ * @keepout: Array of keepout regions for this SoC.
+ * @nkeepout: Number of elements in the keepout array.
+ */
+struct qfprom_soc_compatible_data {
+ const struct nvmem_keepout *keepout;
+ unsigned int nkeepout;
+};
+
+static const struct nvmem_keepout sc7180_qfprom_keepout[] = {
+ {.start = 0x128, .end = 0x148},
+ {.start = 0x220, .end = 0x228}
+};
+
+static const struct qfprom_soc_compatible_data sc7180_qfprom = {
+ .keepout = sc7180_qfprom_keepout,
+ .nkeepout = ARRAY_SIZE(sc7180_qfprom_keepout)
+};
+
+static const struct nvmem_keepout sc7280_qfprom_keepout[] = {
+ {.start = 0x128, .end = 0x148},
+ {.start = 0x238, .end = 0x248}
+};
+
+static const struct qfprom_soc_compatible_data sc7280_qfprom = {
+ .keepout = sc7280_qfprom_keepout,
+ .nkeepout = ARRAY_SIZE(sc7280_qfprom_keepout)
+};
+
+/**
+ * qfprom_disable_fuse_blowing() - Undo enabling of fuse blowing.
+ * @priv: Our driver data.
+ * @old: The data that was stashed from before fuse blowing.
+ *
+ * Resets the value of the blow timer, accel register and the clock
+ * and voltage settings.
+ *
+ * Prints messages if there are errors but doesn't return an error code
+ * since there's not much we can do upon failure.
+ */
+static void qfprom_disable_fuse_blowing(const struct qfprom_priv *priv,
+ const struct qfprom_touched_values *old)
+{
+ int ret;
+
+ writel(old->timer_val, priv->qfpconf + QFPROM_BLOW_TIMER_OFFSET);
+ writel(old->accel_val, priv->qfpconf + QFPROM_ACCEL_OFFSET);
+
+ dev_pm_genpd_set_performance_state(priv->dev, 0);
+ pm_runtime_put(priv->dev);
+
+ /*
+ * This may be a shared rail and may be able to run at a lower rate
+ * when we're not blowing fuses. At the moment, the regulator framework
+ * applies voltage constraints even on disabled rails, so remove our
+ * constraints and allow the rail to be adjusted by other users.
+ */
+ ret = regulator_set_voltage(priv->vcc, 0, INT_MAX);
+ if (ret)
+ dev_warn(priv->dev, "Failed to set 0 voltage (ignoring)\n");
+
+ ret = regulator_disable(priv->vcc);
+ if (ret)
+ dev_warn(priv->dev, "Failed to disable regulator (ignoring)\n");
+
+ ret = clk_set_rate(priv->secclk, old->clk_rate);
+ if (ret)
+ dev_warn(priv->dev,
+ "Failed to set clock rate for disable (ignoring)\n");
+
+ clk_disable_unprepare(priv->secclk);
+}
+
+/**
+ * qfprom_enable_fuse_blowing() - Enable fuse blowing.
+ * @priv: Our driver data.
+ * @old: We'll stash stuff here to use when disabling.
+ *
+ * Sets the value of the blow timer, accel register and the clock
+ * and voltage settings.
+ *
+ * Prints messages if there are errors so caller doesn't need to.
+ *
+ * Return: 0 or -err.
+ */
+static int qfprom_enable_fuse_blowing(const struct qfprom_priv *priv,
+ struct qfprom_touched_values *old)
+{
+ int ret;
+ int qfprom_blow_uV = priv->soc_data->qfprom_blow_uV;
+
+ ret = clk_prepare_enable(priv->secclk);
+ if (ret) {
+ dev_err(priv->dev, "Failed to enable clock\n");
+ return ret;
+ }
+
+ old->clk_rate = clk_get_rate(priv->secclk);
+ ret = clk_set_rate(priv->secclk, priv->soc_data->qfprom_blow_set_freq);
+ if (ret) {
+ dev_err(priv->dev, "Failed to set clock rate for enable\n");
+ goto err_clk_prepared;
+ }
+
+ /*
+ * Hardware requires a minimum voltage for fuse blowing.
+ * This may be a shared rail so don't specify a maximum.
+ * Regulator constraints will cap to the actual maximum.
+ */
+ ret = regulator_set_voltage(priv->vcc, qfprom_blow_uV, INT_MAX);
+ if (ret) {
+ dev_err(priv->dev, "Failed to set %duV\n", qfprom_blow_uV);
+ goto err_clk_rate_set;
+ }
+
+ ret = regulator_enable(priv->vcc);
+ if (ret) {
+ dev_err(priv->dev, "Failed to enable regulator\n");
+ goto err_clk_rate_set;
+ }
+
+ ret = pm_runtime_resume_and_get(priv->dev);
+ if (ret < 0) {
+ dev_err(priv->dev, "Failed to enable power-domain\n");
+ goto err_reg_enable;
+ }
+ dev_pm_genpd_set_performance_state(priv->dev, INT_MAX);
+
+ old->timer_val = readl(priv->qfpconf + QFPROM_BLOW_TIMER_OFFSET);
+ old->accel_val = readl(priv->qfpconf + QFPROM_ACCEL_OFFSET);
+ writel(priv->soc_data->qfprom_blow_timer_value,
+ priv->qfpconf + QFPROM_BLOW_TIMER_OFFSET);
+ writel(priv->soc_data->accel_value,
+ priv->qfpconf + QFPROM_ACCEL_OFFSET);
+
+ return 0;
+
+err_reg_enable:
+ regulator_disable(priv->vcc);
+err_clk_rate_set:
+ clk_set_rate(priv->secclk, old->clk_rate);
+err_clk_prepared:
+ clk_disable_unprepare(priv->secclk);
+ return ret;
+}
+
+/**
+ * qfprom_reg_write() - Write to fuses.
+ * @context: Our driver data.
+ * @reg: The offset to write at.
+ * @_val: Pointer to data to write.
+ * @bytes: The number of bytes to write.
+ *
+ * Writes to fuses. WARNING: THIS IS PERMANENT.
+ *
+ * Return: 0 or -err.
+ */
+static int qfprom_reg_write(void *context, unsigned int reg, void *_val,
+ size_t bytes)
+{
+ struct qfprom_priv *priv = context;
+ struct qfprom_touched_values old;
+ int words = bytes / 4;
+ u32 *value = _val;
+ u32 blow_status;
+ int ret;
+ int i;
+
+ dev_dbg(priv->dev,
+ "Writing to raw qfprom region : %#010x of size: %zu\n",
+ reg, bytes);
+
+ /*
+ * The hardware only allows us to write word at a time, but we can
+ * read byte at a time. Until the nvmem framework allows a separate
+ * word_size and stride for reading vs. writing, we'll enforce here.
+ */
+ if (bytes % 4) {
+ dev_err(priv->dev,
+ "%zu is not an integral number of words\n", bytes);
+ return -EINVAL;
+ }
+ if (reg % 4) {
+ dev_err(priv->dev,
+ "Invalid offset: %#x. Must be word aligned\n", reg);
+ return -EINVAL;
+ }
+
+ ret = qfprom_enable_fuse_blowing(priv, &old);
+ if (ret)
+ return ret;
+
+ ret = readl_relaxed_poll_timeout(
+ priv->qfpconf + QFPROM_BLOW_STATUS_OFFSET,
+ blow_status, blow_status == QFPROM_BLOW_STATUS_READY,
+ QFPROM_FUSE_BLOW_POLL_US, QFPROM_FUSE_BLOW_TIMEOUT_US);
+
+ if (ret) {
+ dev_err(priv->dev,
+ "Timeout waiting for initial ready; aborting.\n");
+ goto exit_enabled_fuse_blowing;
+ }
+
+ for (i = 0; i < words; i++)
+ writel(value[i], priv->qfpraw + reg + (i * 4));
+
+ ret = readl_relaxed_poll_timeout(
+ priv->qfpconf + QFPROM_BLOW_STATUS_OFFSET,
+ blow_status, blow_status == QFPROM_BLOW_STATUS_READY,
+ QFPROM_FUSE_BLOW_POLL_US, QFPROM_FUSE_BLOW_TIMEOUT_US);
+
+ /* Give an error, but not much we can do in this case */
+ if (ret)
+ dev_err(priv->dev, "Timeout waiting for finish.\n");
+
+exit_enabled_fuse_blowing:
+ qfprom_disable_fuse_blowing(priv, &old);
+
+ return ret;
+}
+
+static int qfprom_reg_read(void *context,
+ unsigned int reg, void *_val, size_t bytes)
+{
+ struct qfprom_priv *priv = context;
+ u32 *val = _val;
+ void __iomem *base = priv->qfpcorrected;
+ int words = DIV_ROUND_UP(bytes, sizeof(u32));
+ int i;
+
+ if (read_raw_data && priv->qfpraw)
+ base = priv->qfpraw;
+
+ for (i = 0; i < words; i++)
+ *val++ = readl(base + reg + i * sizeof(u32));
+
+ return 0;
+}
+
+/* Align reads to word boundary */
+static void qfprom_fixup_dt_cell_info(struct nvmem_device *nvmem,
+ struct nvmem_cell_info *cell)
+{
+ unsigned int byte_offset = cell->offset % sizeof(u32);
+
+ cell->bit_offset += byte_offset * BITS_PER_BYTE;
+ cell->offset -= byte_offset;
+ if (byte_offset && !cell->nbits)
+ cell->nbits = cell->bytes * BITS_PER_BYTE;
+}
+
+static void qfprom_runtime_disable(void *data)
+{
+ pm_runtime_disable(data);
+}
+
+static const struct qfprom_soc_data qfprom_7_8_data = {
+ .accel_value = 0xD10,
+ .qfprom_blow_timer_value = 25,
+ .qfprom_blow_set_freq = 4800000,
+ .qfprom_blow_uV = 1800000,
+};
+
+static const struct qfprom_soc_data qfprom_7_15_data = {
+ .accel_value = 0xD08,
+ .qfprom_blow_timer_value = 24,
+ .qfprom_blow_set_freq = 4800000,
+ .qfprom_blow_uV = 1900000,
+};
+
+static int qfprom_probe(struct platform_device *pdev)
+{
+ struct nvmem_config econfig = {
+ .name = "qfprom",
+ .add_legacy_fixed_of_cells = true,
+ .stride = 4,
+ .word_size = 4,
+ .id = NVMEM_DEVID_AUTO,
+ .reg_read = qfprom_reg_read,
+ .fixup_dt_cell_info = qfprom_fixup_dt_cell_info,
+ };
+ struct device *dev = &pdev->dev;
+ struct resource *res;
+ struct nvmem_device *nvmem;
+ const struct qfprom_soc_compatible_data *soc_data;
+ struct qfprom_priv *priv;
+ int ret;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ /* The corrected section is always provided */
+ priv->qfpcorrected = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->qfpcorrected))
+ return PTR_ERR(priv->qfpcorrected);
+
+ econfig.size = resource_size(res);
+ econfig.dev = dev;
+ econfig.priv = priv;
+
+ priv->dev = dev;
+ soc_data = device_get_match_data(dev);
+ if (soc_data) {
+ econfig.keepout = soc_data->keepout;
+ econfig.nkeepout = soc_data->nkeepout;
+ }
+
+ /*
+ * If more than one region is provided then the OS has the ability
+ * to write.
+ */
+ res = platform_get_resource(pdev, IORESOURCE_MEM, 1);
+ if (res) {
+ u32 version;
+ int major_version, minor_version;
+
+ priv->qfpraw = devm_ioremap_resource(dev, res);
+ if (IS_ERR(priv->qfpraw))
+ return PTR_ERR(priv->qfpraw);
+ priv->qfpconf = devm_platform_ioremap_resource(pdev, 2);
+ if (IS_ERR(priv->qfpconf))
+ return PTR_ERR(priv->qfpconf);
+ priv->qfpsecurity = devm_platform_ioremap_resource(pdev, 3);
+ if (IS_ERR(priv->qfpsecurity))
+ return PTR_ERR(priv->qfpsecurity);
+
+ version = readl(priv->qfpsecurity + QFPROM_VERSION_OFFSET);
+ major_version = (version & QFPROM_MAJOR_VERSION_MASK) >>
+ QFPROM_MAJOR_VERSION_SHIFT;
+ minor_version = (version & QFPROM_MINOR_VERSION_MASK) >>
+ QFPROM_MINOR_VERSION_SHIFT;
+
+ if (major_version == 7 && minor_version == 8)
+ priv->soc_data = &qfprom_7_8_data;
+ else if (major_version == 7 && minor_version == 15)
+ priv->soc_data = &qfprom_7_15_data;
+
+ priv->vcc = devm_regulator_get(&pdev->dev, "vcc");
+ if (IS_ERR(priv->vcc))
+ return PTR_ERR(priv->vcc);
+
+ priv->secclk = devm_clk_get_optional(dev, "core");
+ if (IS_ERR(priv->secclk))
+ return dev_err_probe(dev, PTR_ERR(priv->secclk), "Error getting clock\n");
+
+ /* Only enable writing if we have SoC data and a valid clock */
+ if (priv->soc_data && priv->secclk)
+ econfig.reg_write = qfprom_reg_write;
+ }
+
+ pm_runtime_enable(dev);
+ ret = devm_add_action_or_reset(dev, qfprom_runtime_disable, dev);
+ if (ret)
+ return ret;
+
+ nvmem = devm_nvmem_register(dev, &econfig);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id qfprom_of_match[] = {
+ { .compatible = "qcom,qfprom",},
+ { .compatible = "qcom,sc7180-qfprom", .data = &sc7180_qfprom},
+ { .compatible = "qcom,sc7280-qfprom", .data = &sc7280_qfprom},
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, qfprom_of_match);
+
+static struct platform_driver qfprom_driver = {
+ .probe = qfprom_probe,
+ .driver = {
+ .name = "qcom,qfprom",
+ .of_match_table = qfprom_of_match,
+ },
+};
+module_platform_driver(qfprom_driver);
+MODULE_AUTHOR("Srinivas Kandagatla <srinivas.kandagatla@linaro.org>");
+MODULE_DESCRIPTION("Qualcomm QFPROM driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/qnap-mcu-eeprom.c b/drivers/nvmem/qnap-mcu-eeprom.c
new file mode 100644
index 000000000..07bdaa2a3
--- /dev/null
+++ b/drivers/nvmem/qnap-mcu-eeprom.c
@@ -0,0 +1,111 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * ee1004 - driver for DDR4 SPD EEPROMs
+ *
+ * Copyright (C) 2017-2019 Jean Delvare
+ *
+ * Based on the at24 driver:
+ * Copyright (C) 2005-2007 David Brownell
+ * Copyright (C) 2008 Wolfram Sang, Pengutronix
+ */
+
+#include <linux/mfd/qnap-mcu.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+/* Determined by trial and error until read anomalies appeared */
+#define QNAP_MCU_EEPROM_SIZE 256
+#define QNAP_MCU_EEPROM_BLOCK_SIZE 32
+
+static int qnap_mcu_eeprom_read_block(struct qnap_mcu *mcu, unsigned int offset,
+ void *val, size_t bytes)
+{
+ const u8 cmd[] = { 0xf7, 0xa1, offset, bytes };
+ u8 *reply;
+ int ret = 0;
+
+ reply = kzalloc(bytes + sizeof(cmd), GFP_KERNEL);
+ if (!reply)
+ return -ENOMEM;
+
+ ret = qnap_mcu_exec(mcu, cmd, sizeof(cmd), reply, bytes + sizeof(cmd));
+ if (ret)
+ goto out;
+
+ /* First bytes must mirror the sent command */
+ if (memcmp(cmd, reply, sizeof(cmd))) {
+ ret = -EIO;
+ goto out;
+ }
+
+ memcpy(val, reply + sizeof(cmd), bytes);
+
+out:
+ kfree(reply);
+ return ret;
+}
+
+static int qnap_mcu_eeprom_read(void *priv, unsigned int offset, void *val, size_t bytes)
+{
+ struct qnap_mcu *mcu = priv;
+ int pos = 0, ret;
+ u8 *buf = val;
+
+ if (unlikely(!bytes))
+ return 0;
+
+ while (bytes > 0) {
+ size_t to_read = (bytes > QNAP_MCU_EEPROM_BLOCK_SIZE) ?
+ QNAP_MCU_EEPROM_BLOCK_SIZE : bytes;
+
+ ret = qnap_mcu_eeprom_read_block(mcu, offset + pos, &buf[pos], to_read);
+ if (ret < 0)
+ return ret;
+
+ pos += to_read;
+ bytes -= to_read;
+ }
+
+ return 0;
+}
+
+static int qnap_mcu_eeprom_probe(struct platform_device *pdev)
+{
+ struct qnap_mcu *mcu = dev_get_drvdata(pdev->dev.parent);
+ struct nvmem_config nvcfg = {};
+ struct nvmem_device *ndev;
+
+ nvcfg.dev = &pdev->dev;
+ nvcfg.of_node = pdev->dev.parent->of_node;
+ nvcfg.name = dev_name(&pdev->dev);
+ nvcfg.id = NVMEM_DEVID_NONE;
+ nvcfg.owner = THIS_MODULE;
+ nvcfg.type = NVMEM_TYPE_EEPROM;
+ nvcfg.read_only = true;
+ nvcfg.root_only = false;
+ nvcfg.reg_read = qnap_mcu_eeprom_read;
+ nvcfg.size = QNAP_MCU_EEPROM_SIZE;
+ nvcfg.word_size = 1;
+ nvcfg.stride = 1;
+ nvcfg.priv = mcu;
+
+ ndev = devm_nvmem_register(&pdev->dev, &nvcfg);
+ if (IS_ERR(ndev))
+ return PTR_ERR(ndev);
+
+ return 0;
+}
+
+static struct platform_driver qnap_mcu_eeprom_driver = {
+ .probe = qnap_mcu_eeprom_probe,
+ .driver = {
+ .name = "qnap-mcu-eeprom",
+ },
+};
+module_platform_driver(qnap_mcu_eeprom_driver);
+
+MODULE_AUTHOR("Heiko Stuebner <heiko@sntech.de>");
+MODULE_DESCRIPTION("QNAP MCU EEPROM driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/qoriq-efuse.c b/drivers/nvmem/qoriq-efuse.c
new file mode 100644
index 000000000..80f514939
--- /dev/null
+++ b/drivers/nvmem/qoriq-efuse.c
@@ -0,0 +1,77 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * Copyright (C) 2023 Westermo Network Technologies AB
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+
+struct qoriq_efuse_priv {
+ void __iomem *base;
+};
+
+static int qoriq_efuse_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct qoriq_efuse_priv *priv = context;
+
+ /* .stride = 4 so offset is guaranteed to be aligned */
+ __ioread32_copy(val, priv->base + offset, bytes / 4);
+
+ /* Ignore trailing bytes (there shouldn't be any) */
+
+ return 0;
+}
+
+static int qoriq_efuse_probe(struct platform_device *pdev)
+{
+ struct nvmem_config config = {
+ .dev = &pdev->dev,
+ .read_only = true,
+ .reg_read = qoriq_efuse_read,
+ .stride = sizeof(u32),
+ .word_size = sizeof(u32),
+ .name = "qoriq_efuse_read",
+ .id = NVMEM_DEVID_AUTO,
+ .root_only = true,
+ };
+ struct qoriq_efuse_priv *priv;
+ struct nvmem_device *nvmem;
+ struct resource *res;
+
+ priv = devm_kzalloc(config.dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ config.size = resource_size(res);
+ config.priv = priv;
+ nvmem = devm_nvmem_register(config.dev, &config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id qoriq_efuse_of_match[] = {
+ { .compatible = "fsl,t1023-sfp", },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, qoriq_efuse_of_match);
+
+static struct platform_driver qoriq_efuse_driver = {
+ .probe = qoriq_efuse_probe,
+ .driver = {
+ .name = "qoriq-efuse",
+ .of_match_table = qoriq_efuse_of_match,
+ },
+};
+module_platform_driver(qoriq_efuse_driver);
+
+MODULE_AUTHOR("Richard Alpe <richard.alpe@bit42.se>");
+MODULE_DESCRIPTION("NXP QorIQ Security Fuse Processor (SFP) Reader");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/rave-sp-eeprom.c b/drivers/nvmem/rave-sp-eeprom.c
new file mode 100644
index 000000000..9ecf3873c
--- /dev/null
+++ b/drivers/nvmem/rave-sp-eeprom.c
@@ -0,0 +1,362 @@
+// SPDX-License-Identifier: GPL-2.0+
+
+/*
+ * EEPROM driver for RAVE SP
+ *
+ * Copyright (C) 2018 Zodiac Inflight Innovations
+ *
+ */
+#include <linux/kernel.h>
+#include <linux/mfd/rave-sp.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/sizes.h>
+
+/**
+ * enum rave_sp_eeprom_access_type - Supported types of EEPROM access
+ *
+ * @RAVE_SP_EEPROM_WRITE: EEPROM write
+ * @RAVE_SP_EEPROM_READ: EEPROM read
+ */
+enum rave_sp_eeprom_access_type {
+ RAVE_SP_EEPROM_WRITE = 0,
+ RAVE_SP_EEPROM_READ = 1,
+};
+
+/**
+ * enum rave_sp_eeprom_header_size - EEPROM command header sizes
+ *
+ * @RAVE_SP_EEPROM_HEADER_SMALL: EEPROM header size for "small" devices (< 8K)
+ * @RAVE_SP_EEPROM_HEADER_BIG: EEPROM header size for "big" devices (> 8K)
+ */
+enum rave_sp_eeprom_header_size {
+ RAVE_SP_EEPROM_HEADER_SMALL = 4U,
+ RAVE_SP_EEPROM_HEADER_BIG = 5U,
+};
+#define RAVE_SP_EEPROM_HEADER_MAX RAVE_SP_EEPROM_HEADER_BIG
+
+#define RAVE_SP_EEPROM_PAGE_SIZE 32U
+
+/**
+ * struct rave_sp_eeprom_page - RAVE SP EEPROM page
+ *
+ * @type: Access type (see enum rave_sp_eeprom_access_type)
+ * @success: Success flag (Success = 1, Failure = 0)
+ * @data: Read data
+ *
+ * Note this structure corresponds to RSP_*_EEPROM payload from RAVE
+ * SP ICD
+ */
+struct rave_sp_eeprom_page {
+ u8 type;
+ u8 success;
+ u8 data[RAVE_SP_EEPROM_PAGE_SIZE];
+} __packed;
+
+/**
+ * struct rave_sp_eeprom - RAVE SP EEPROM device
+ *
+ * @sp: Pointer to parent RAVE SP device
+ * @mutex: Lock protecting access to EEPROM
+ * @address: EEPROM device address
+ * @header_size: Size of EEPROM command header for this device
+ * @dev: Pointer to corresponding struct device used for logging
+ */
+struct rave_sp_eeprom {
+ struct rave_sp *sp;
+ struct mutex mutex;
+ u8 address;
+ unsigned int header_size;
+ struct device *dev;
+};
+
+/**
+ * rave_sp_eeprom_io - Low-level part of EEPROM page access
+ *
+ * @eeprom: EEPROM device to write to
+ * @type: EEPROM access type (read or write)
+ * @idx: number of the EEPROM page
+ * @page: Data to write or buffer to store result (via page->data)
+ *
+ * This function does all of the low-level work required to perform a
+ * EEPROM access. This includes formatting correct command payload,
+ * sending it and checking received results.
+ *
+ * Returns zero in case of success or negative error code in
+ * case of failure.
+ */
+static int rave_sp_eeprom_io(struct rave_sp_eeprom *eeprom,
+ enum rave_sp_eeprom_access_type type,
+ u16 idx,
+ struct rave_sp_eeprom_page *page)
+{
+ const bool is_write = type == RAVE_SP_EEPROM_WRITE;
+ const unsigned int data_size = is_write ? sizeof(page->data) : 0;
+ const unsigned int cmd_size = eeprom->header_size + data_size;
+ const unsigned int rsp_size =
+ is_write ? sizeof(*page) - sizeof(page->data) : sizeof(*page);
+ unsigned int offset = 0;
+ u8 cmd[RAVE_SP_EEPROM_HEADER_MAX + sizeof(page->data)];
+ int ret;
+
+ if (WARN_ON(cmd_size > sizeof(cmd)))
+ return -EINVAL;
+
+ cmd[offset++] = eeprom->address;
+ cmd[offset++] = 0;
+ cmd[offset++] = type;
+ cmd[offset++] = idx;
+
+ /*
+ * If there's still room in this command's header it means we
+ * are talkin to EEPROM that uses 16-bit page numbers and we
+ * have to specify index's MSB in payload as well.
+ */
+ if (offset < eeprom->header_size)
+ cmd[offset++] = idx >> 8;
+ /*
+ * Copy our data to write to command buffer first. In case of
+ * a read data_size should be zero and memcpy would become a
+ * no-op
+ */
+ memcpy(&cmd[offset], page->data, data_size);
+
+ ret = rave_sp_exec(eeprom->sp, cmd, cmd_size, page, rsp_size);
+ if (ret)
+ return ret;
+
+ if (page->type != type)
+ return -EPROTO;
+
+ if (!page->success)
+ return -EIO;
+
+ return 0;
+}
+
+/**
+ * rave_sp_eeprom_page_access - Access single EEPROM page
+ *
+ * @eeprom: EEPROM device to access
+ * @type: Access type to perform (read or write)
+ * @offset: Offset within EEPROM to access
+ * @data: Data buffer
+ * @data_len: Size of the data buffer
+ *
+ * This function performs a generic access to a single page or a
+ * portion thereof. Requested access MUST NOT cross the EEPROM page
+ * boundary.
+ *
+ * Returns zero in case of success or negative error code in
+ * case of failure.
+ */
+static int
+rave_sp_eeprom_page_access(struct rave_sp_eeprom *eeprom,
+ enum rave_sp_eeprom_access_type type,
+ unsigned int offset, u8 *data,
+ size_t data_len)
+{
+ const unsigned int page_offset = offset % RAVE_SP_EEPROM_PAGE_SIZE;
+ const unsigned int page_nr = offset / RAVE_SP_EEPROM_PAGE_SIZE;
+ struct rave_sp_eeprom_page page;
+ int ret;
+
+ /*
+ * This function will not work if data access we've been asked
+ * to do is crossing EEPROM page boundary. Normally this
+ * should never happen and getting here would indicate a bug
+ * in the code.
+ */
+ if (WARN_ON(data_len > sizeof(page.data) - page_offset))
+ return -EINVAL;
+
+ if (type == RAVE_SP_EEPROM_WRITE) {
+ /*
+ * If doing a partial write we need to do a read first
+ * to fill the rest of the page with correct data.
+ */
+ if (data_len < RAVE_SP_EEPROM_PAGE_SIZE) {
+ ret = rave_sp_eeprom_io(eeprom, RAVE_SP_EEPROM_READ,
+ page_nr, &page);
+ if (ret)
+ return ret;
+ }
+
+ memcpy(&page.data[page_offset], data, data_len);
+ }
+
+ ret = rave_sp_eeprom_io(eeprom, type, page_nr, &page);
+ if (ret)
+ return ret;
+
+ /*
+ * Since we receive the result of the read via 'page.data'
+ * buffer we need to copy that to 'data'
+ */
+ if (type == RAVE_SP_EEPROM_READ)
+ memcpy(data, &page.data[page_offset], data_len);
+
+ return 0;
+}
+
+/**
+ * rave_sp_eeprom_access - Access EEPROM data
+ *
+ * @eeprom: EEPROM device to access
+ * @type: Access type to perform (read or write)
+ * @offset: Offset within EEPROM to access
+ * @data: Data buffer
+ * @data_len: Size of the data buffer
+ *
+ * This function performs a generic access (either read or write) at
+ * arbitrary offset (not necessary page aligned) of arbitrary length
+ * (is not constrained by EEPROM page size).
+ *
+ * Returns zero in case of success or negative error code in case of
+ * failure.
+ */
+static int rave_sp_eeprom_access(struct rave_sp_eeprom *eeprom,
+ enum rave_sp_eeprom_access_type type,
+ unsigned int offset, u8 *data,
+ unsigned int data_len)
+{
+ unsigned int residue;
+ unsigned int chunk;
+ unsigned int head;
+ int ret;
+
+ mutex_lock(&eeprom->mutex);
+
+ head = offset % RAVE_SP_EEPROM_PAGE_SIZE;
+ residue = data_len;
+
+ do {
+ /*
+ * First iteration, if we are doing an access that is
+ * not 32-byte aligned, we need to access only data up
+ * to a page boundary to avoid corssing it in
+ * rave_sp_eeprom_page_access()
+ */
+ if (unlikely(head)) {
+ chunk = RAVE_SP_EEPROM_PAGE_SIZE - head;
+ /*
+ * This can only happen once per
+ * rave_sp_eeprom_access() call, so we set
+ * head to zero to process all the other
+ * iterations normally.
+ */
+ head = 0;
+ } else {
+ chunk = RAVE_SP_EEPROM_PAGE_SIZE;
+ }
+
+ /*
+ * We should never read more that 'residue' bytes
+ */
+ chunk = min(chunk, residue);
+ ret = rave_sp_eeprom_page_access(eeprom, type, offset,
+ data, chunk);
+ if (ret)
+ goto out;
+
+ residue -= chunk;
+ offset += chunk;
+ data += chunk;
+ } while (residue);
+out:
+ mutex_unlock(&eeprom->mutex);
+ return ret;
+}
+
+static int rave_sp_eeprom_reg_read(void *eeprom, unsigned int offset,
+ void *val, size_t bytes)
+{
+ return rave_sp_eeprom_access(eeprom, RAVE_SP_EEPROM_READ,
+ offset, val, bytes);
+}
+
+static int rave_sp_eeprom_reg_write(void *eeprom, unsigned int offset,
+ void *val, size_t bytes)
+{
+ return rave_sp_eeprom_access(eeprom, RAVE_SP_EEPROM_WRITE,
+ offset, val, bytes);
+}
+
+static int rave_sp_eeprom_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct rave_sp *sp = dev_get_drvdata(dev->parent);
+ struct device_node *np = dev->of_node;
+ struct nvmem_config config = { 0 };
+ struct rave_sp_eeprom *eeprom;
+ struct nvmem_device *nvmem;
+ u32 reg[2], size;
+
+ if (of_property_read_u32_array(np, "reg", reg, ARRAY_SIZE(reg))) {
+ dev_err(dev, "Failed to parse \"reg\" property\n");
+ return -EINVAL;
+ }
+
+ size = reg[1];
+ /*
+ * Per ICD, we have no more than 2 bytes to specify EEPROM
+ * page.
+ */
+ if (size > U16_MAX * RAVE_SP_EEPROM_PAGE_SIZE) {
+ dev_err(dev, "Specified size is too big\n");
+ return -EINVAL;
+ }
+
+ eeprom = devm_kzalloc(dev, sizeof(*eeprom), GFP_KERNEL);
+ if (!eeprom)
+ return -ENOMEM;
+
+ eeprom->address = reg[0];
+ eeprom->sp = sp;
+ eeprom->dev = dev;
+
+ if (size > SZ_8K)
+ eeprom->header_size = RAVE_SP_EEPROM_HEADER_BIG;
+ else
+ eeprom->header_size = RAVE_SP_EEPROM_HEADER_SMALL;
+
+ mutex_init(&eeprom->mutex);
+
+ config.id = -1;
+ of_property_read_string(np, "zii,eeprom-name", &config.name);
+ config.priv = eeprom;
+ config.dev = dev;
+ config.add_legacy_fixed_of_cells = true;
+ config.size = size;
+ config.reg_read = rave_sp_eeprom_reg_read;
+ config.reg_write = rave_sp_eeprom_reg_write;
+ config.word_size = 1;
+ config.stride = 1;
+
+ nvmem = devm_nvmem_register(dev, &config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id rave_sp_eeprom_of_match[] = {
+ { .compatible = "zii,rave-sp-eeprom" },
+ {}
+};
+MODULE_DEVICE_TABLE(of, rave_sp_eeprom_of_match);
+
+static struct platform_driver rave_sp_eeprom_driver = {
+ .probe = rave_sp_eeprom_probe,
+ .driver = {
+ .name = KBUILD_MODNAME,
+ .of_match_table = rave_sp_eeprom_of_match,
+ },
+};
+module_platform_driver(rave_sp_eeprom_driver);
+
+MODULE_LICENSE("GPL");
+MODULE_AUTHOR("Andrey Vostrikov <andrey.vostrikov@cogentembedded.com>");
+MODULE_AUTHOR("Nikita Yushchenko <nikita.yoush@cogentembedded.com>");
+MODULE_AUTHOR("Andrey Smirnov <andrew.smirnov@gmail.com>");
+MODULE_DESCRIPTION("RAVE SP EEPROM driver");
diff --git a/drivers/nvmem/rcar-efuse.c b/drivers/nvmem/rcar-efuse.c
new file mode 100644
index 000000000..b94ff83b7
--- /dev/null
+++ b/drivers/nvmem/rcar-efuse.c
@@ -0,0 +1,142 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Renesas R-Car E-FUSE/OTP Driver
+ *
+ * Copyright (C) 2024 Glider bv
+ */
+
+#include <linux/device.h>
+#include <linux/export.h>
+#include <linux/io.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/pm_runtime.h>
+#include <linux/property.h>
+
+struct rcar_fuse {
+ struct nvmem_keepout keepouts[2];
+ struct nvmem_device *nvmem;
+ struct device *dev;
+ void __iomem *base;
+};
+
+struct rcar_fuse_data {
+ unsigned int bank; /* 0: PFC + E-FUSE, 1: OPT_MEM + E-FUSE */
+ unsigned int start; /* inclusive */
+ unsigned int end; /* exclusive */
+};
+
+static int rcar_fuse_reg_read(void *priv, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct rcar_fuse *fuse = priv;
+ int ret;
+
+ ret = pm_runtime_resume_and_get(fuse->dev);
+ if (ret < 0)
+ return ret;
+
+ __ioread32_copy(val, fuse->base + offset, bytes / 4);
+
+ pm_runtime_put(fuse->dev);
+
+ return 0;
+}
+
+static int rcar_fuse_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ const struct rcar_fuse_data *data = device_get_match_data(dev);
+ struct nvmem_config config = {
+ .dev = dev,
+ .name = "rcar-fuse",
+ .id = NVMEM_DEVID_NONE,
+ .owner = THIS_MODULE,
+ .type = NVMEM_TYPE_OTP,
+ .read_only = true,
+ .root_only = true,
+ .reg_read = rcar_fuse_reg_read,
+ .word_size = 4,
+ .stride = 4,
+ };
+ struct rcar_fuse *fuse;
+ struct resource *res;
+ int ret;
+
+ ret = devm_pm_runtime_enable(dev);
+ if (ret < 0)
+ return ret;
+
+ fuse = devm_kzalloc(dev, sizeof(*fuse), GFP_KERNEL);
+ if (!fuse)
+ return -ENOMEM;
+
+ fuse->base = devm_platform_get_and_ioremap_resource(pdev, data->bank,
+ &res);
+ if (IS_ERR(fuse->base))
+ return PTR_ERR(fuse->base);
+
+ fuse->dev = dev;
+ fuse->keepouts[0].start = 0;
+ fuse->keepouts[0].end = data->start;
+ fuse->keepouts[1].start = data->end;
+ fuse->keepouts[1].end = resource_size(res);
+
+ config.keepout = fuse->keepouts;
+ config.nkeepout = ARRAY_SIZE(fuse->keepouts);
+ config.size = resource_size(res);
+ config.priv = fuse;
+
+ fuse->nvmem = devm_nvmem_register(dev, &config);
+ if (IS_ERR(fuse->nvmem))
+ return dev_err_probe(dev, PTR_ERR(fuse->nvmem),
+ "Failed to register NVMEM device\n");
+
+ return 0;
+}
+
+static const struct rcar_fuse_data rcar_fuse_v3u = {
+ .bank = 0,
+ .start = 0x0c0,
+ .end = 0x0e8,
+};
+
+static const struct rcar_fuse_data rcar_fuse_s4 = {
+ .bank = 0,
+ .start = 0x0c0,
+ .end = 0x14c,
+};
+
+static const struct rcar_fuse_data rcar_fuse_v4h = {
+ .bank = 1,
+ .start = 0x100,
+ .end = 0x1a0,
+};
+
+static const struct rcar_fuse_data rcar_fuse_v4m = {
+ .bank = 1,
+ .start = 0x100,
+ .end = 0x110,
+};
+
+static const struct of_device_id rcar_fuse_match[] = {
+ { .compatible = "renesas,r8a779a0-efuse", .data = &rcar_fuse_v3u },
+ { .compatible = "renesas,r8a779f0-efuse", .data = &rcar_fuse_s4 },
+ { .compatible = "renesas,r8a779g0-otp", .data = &rcar_fuse_v4h },
+ { .compatible = "renesas,r8a779h0-otp", .data = &rcar_fuse_v4m },
+ { /* sentinel */ }
+};
+MODULE_DEVICE_TABLE(of, rcar_fuse_match);
+
+static struct platform_driver rcar_fuse_driver = {
+ .probe = rcar_fuse_probe,
+ .driver = {
+ .name = "rcar_fuse",
+ .of_match_table = rcar_fuse_match,
+ },
+};
+module_platform_driver(rcar_fuse_driver);
+
+MODULE_DESCRIPTION("Renesas R-Car E-FUSE/OTP driver");
+MODULE_LICENSE("GPL");
+MODULE_AUTHOR("Geert Uytterhoeven");
diff --git a/drivers/nvmem/rmem.c b/drivers/nvmem/rmem.c
new file mode 100644
index 000000000..b39d628cb
--- /dev/null
+++ b/drivers/nvmem/rmem.c
@@ -0,0 +1,178 @@
+// SPDX-License-Identifier: GPL-2.0+
+/*
+ * Copyright (C) 2020 Nicolas Saenz Julienne <nsaenzjulienne@suse.de>
+ */
+
+#include <linux/crc32.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of_reserved_mem.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+struct rmem {
+ struct device *dev;
+ struct nvmem_device *nvmem;
+ struct reserved_mem *mem;
+};
+
+struct rmem_match_data {
+ int (*checksum)(struct rmem *priv);
+};
+
+struct __packed rmem_eyeq5_header {
+ u32 magic;
+ u32 version;
+ u32 size;
+};
+
+#define RMEM_EYEQ5_MAGIC ((u32)0xDABBAD00)
+
+static int rmem_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rmem *priv = context;
+ void *addr;
+
+ if ((phys_addr_t)offset + bytes > priv->mem->size)
+ return -EIO;
+
+ /*
+ * Only map the reserved memory at this point to avoid potential rogue
+ * kernel threads inadvertently modifying it. Based on the current
+ * uses-cases for this driver, the performance hit isn't a concern.
+ * Nor is likely to be, given the nature of the subsystem. Most nvmem
+ * devices operate over slow buses to begin with.
+ *
+ * An alternative would be setting the memory as RO, set_memory_ro(),
+ * but as of Dec 2020 this isn't possible on arm64.
+ */
+ addr = memremap(priv->mem->base, priv->mem->size, MEMREMAP_WB);
+ if (!addr) {
+ dev_err(priv->dev, "Failed to remap memory region\n");
+ return -ENOMEM;
+ }
+
+ memcpy(val, addr + offset, bytes);
+
+ memunmap(addr);
+
+ return 0;
+}
+
+static int rmem_eyeq5_checksum(struct rmem *priv)
+{
+ void *buf __free(kfree) = NULL;
+ struct rmem_eyeq5_header header;
+ u32 computed_crc, *target_crc;
+ size_t data_size;
+ int ret;
+
+ ret = rmem_read(priv, 0, &header, sizeof(header));
+ if (ret)
+ return ret;
+
+ if (header.magic != RMEM_EYEQ5_MAGIC)
+ return -EINVAL;
+
+ /*
+ * Avoid massive kmalloc() if header read is invalid;
+ * the check would be done by the next rmem_read() anyway.
+ */
+ if (header.size > priv->mem->size)
+ return -EINVAL;
+
+ /*
+ * 0 +-------------------+
+ * | Header (12 bytes) | \
+ * +-------------------+ |
+ * | | | data to be CRCed
+ * | ... | |
+ * | | /
+ * data_size +-------------------+
+ * | CRC (4 bytes) |
+ * header.size +-------------------+
+ */
+
+ buf = kmalloc(header.size, GFP_KERNEL);
+ if (!buf)
+ return -ENOMEM;
+
+ ret = rmem_read(priv, 0, buf, header.size);
+ if (ret)
+ return ret;
+
+ data_size = header.size - sizeof(*target_crc);
+ target_crc = buf + data_size;
+ computed_crc = crc32(U32_MAX, buf, data_size) ^ U32_MAX;
+
+ if (computed_crc == *target_crc)
+ return 0;
+
+ dev_err(priv->dev,
+ "checksum failed: computed %#x, expected %#x, header (%#x, %#x, %#x)\n",
+ computed_crc, *target_crc, header.magic, header.version, header.size);
+ return -EINVAL;
+}
+
+static int rmem_probe(struct platform_device *pdev)
+{
+ struct nvmem_config config = { };
+ struct device *dev = &pdev->dev;
+ const struct rmem_match_data *match_data = device_get_match_data(dev);
+ struct reserved_mem *mem;
+ struct rmem *priv;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+ priv->dev = dev;
+
+ mem = of_reserved_mem_lookup(dev->of_node);
+ if (!mem) {
+ dev_err(dev, "Failed to lookup reserved memory\n");
+ return -EINVAL;
+ }
+ priv->mem = mem;
+
+ config.dev = dev;
+ config.priv = priv;
+ config.name = "rmem";
+ config.id = NVMEM_DEVID_AUTO;
+ config.size = mem->size;
+ config.reg_read = rmem_read;
+
+ if (match_data && match_data->checksum) {
+ int ret = match_data->checksum(priv);
+
+ if (ret)
+ return ret;
+ }
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(dev, &config));
+}
+
+static const struct rmem_match_data rmem_eyeq5_match_data = {
+ .checksum = rmem_eyeq5_checksum,
+};
+
+static const struct of_device_id rmem_match[] = {
+ { .compatible = "mobileye,eyeq5-bootloader-config", .data = &rmem_eyeq5_match_data },
+ { .compatible = "nvmem-rmem", },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, rmem_match);
+
+static struct platform_driver rmem_driver = {
+ .probe = rmem_probe,
+ .driver = {
+ .name = "rmem",
+ .of_match_table = rmem_match,
+ },
+};
+module_platform_driver(rmem_driver);
+
+MODULE_AUTHOR("Nicolas Saenz Julienne <nsaenzjulienne@suse.de>");
+MODULE_DESCRIPTION("Reserved Memory Based nvmem Driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/rockchip-efuse.c b/drivers/nvmem/rockchip-efuse.c
new file mode 100644
index 000000000..013e67136
--- /dev/null
+++ b/drivers/nvmem/rockchip-efuse.c
@@ -0,0 +1,302 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Rockchip eFuse Driver
+ *
+ * Copyright (c) 2015 Rockchip Electronics Co. Ltd.
+ * Author: Caesar Wang <wxt@rock-chips.com>
+ */
+
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/slab.h>
+#include <linux/of.h>
+#include <linux/of_platform.h>
+#include <linux/platform_device.h>
+
+#define RK3288_A_SHIFT 6
+#define RK3288_A_MASK 0x3ff
+#define RK3288_PGENB BIT(3)
+#define RK3288_LOAD BIT(2)
+#define RK3288_STROBE BIT(1)
+#define RK3288_CSB BIT(0)
+
+#define RK3328_SECURE_SIZES 96
+#define RK3328_INT_STATUS 0x0018
+#define RK3328_DOUT 0x0020
+#define RK3328_AUTO_CTRL 0x0024
+#define RK3328_INT_FINISH BIT(0)
+#define RK3328_AUTO_ENB BIT(0)
+#define RK3328_AUTO_RD BIT(1)
+
+#define RK3399_A_SHIFT 16
+#define RK3399_A_MASK 0x3ff
+#define RK3399_NBYTES 4
+#define RK3399_STROBSFTSEL BIT(9)
+#define RK3399_RSB BIT(7)
+#define RK3399_PD BIT(5)
+#define RK3399_PGENB BIT(3)
+#define RK3399_LOAD BIT(2)
+#define RK3399_STROBE BIT(1)
+#define RK3399_CSB BIT(0)
+
+#define REG_EFUSE_CTRL 0x0000
+#define REG_EFUSE_DOUT 0x0004
+
+struct rockchip_efuse_chip {
+ struct device *dev;
+ void __iomem *base;
+ struct clk *clk;
+};
+
+static int rockchip_rk3288_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rockchip_efuse_chip *efuse = context;
+ u8 *buf = val;
+ int ret;
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret < 0) {
+ dev_err(efuse->dev, "failed to prepare/enable efuse clk\n");
+ return ret;
+ }
+
+ writel(RK3288_LOAD | RK3288_PGENB, efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ while (bytes--) {
+ writel(readl(efuse->base + REG_EFUSE_CTRL) &
+ (~(RK3288_A_MASK << RK3288_A_SHIFT)),
+ efuse->base + REG_EFUSE_CTRL);
+ writel(readl(efuse->base + REG_EFUSE_CTRL) |
+ ((offset++ & RK3288_A_MASK) << RK3288_A_SHIFT),
+ efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ writel(readl(efuse->base + REG_EFUSE_CTRL) |
+ RK3288_STROBE, efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ *buf++ = readb(efuse->base + REG_EFUSE_DOUT);
+ writel(readl(efuse->base + REG_EFUSE_CTRL) &
+ (~RK3288_STROBE), efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ }
+
+ /* Switch to standby mode */
+ writel(RK3288_PGENB | RK3288_CSB, efuse->base + REG_EFUSE_CTRL);
+
+ clk_disable_unprepare(efuse->clk);
+
+ return 0;
+}
+
+static int rockchip_rk3328_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rockchip_efuse_chip *efuse = context;
+ unsigned int addr_start, addr_end, addr_offset, addr_len;
+ u32 out_value, status;
+ u8 *buf;
+ int ret, i = 0;
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret < 0) {
+ dev_err(efuse->dev, "failed to prepare/enable efuse clk\n");
+ return ret;
+ }
+
+ /* 128 Byte efuse, 96 Byte for secure, 32 Byte for non-secure */
+ offset += RK3328_SECURE_SIZES;
+ addr_start = rounddown(offset, RK3399_NBYTES) / RK3399_NBYTES;
+ addr_end = roundup(offset + bytes, RK3399_NBYTES) / RK3399_NBYTES;
+ addr_offset = offset % RK3399_NBYTES;
+ addr_len = addr_end - addr_start;
+
+ buf = kzalloc(array3_size(addr_len, RK3399_NBYTES, sizeof(*buf)),
+ GFP_KERNEL);
+ if (!buf) {
+ ret = -ENOMEM;
+ goto nomem;
+ }
+
+ while (addr_len--) {
+ writel(RK3328_AUTO_RD | RK3328_AUTO_ENB |
+ ((addr_start++ & RK3399_A_MASK) << RK3399_A_SHIFT),
+ efuse->base + RK3328_AUTO_CTRL);
+ udelay(4);
+ status = readl(efuse->base + RK3328_INT_STATUS);
+ if (!(status & RK3328_INT_FINISH)) {
+ ret = -EIO;
+ goto err;
+ }
+ out_value = readl(efuse->base + RK3328_DOUT);
+ writel(RK3328_INT_FINISH, efuse->base + RK3328_INT_STATUS);
+
+ memcpy(&buf[i], &out_value, RK3399_NBYTES);
+ i += RK3399_NBYTES;
+ }
+
+ memcpy(val, buf + addr_offset, bytes);
+err:
+ kfree(buf);
+nomem:
+ clk_disable_unprepare(efuse->clk);
+
+ return ret;
+}
+
+static int rockchip_rk3399_efuse_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rockchip_efuse_chip *efuse = context;
+ unsigned int addr_start, addr_end, addr_offset, addr_len;
+ u32 out_value;
+ u8 *buf;
+ int ret, i = 0;
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret < 0) {
+ dev_err(efuse->dev, "failed to prepare/enable efuse clk\n");
+ return ret;
+ }
+
+ addr_start = rounddown(offset, RK3399_NBYTES) / RK3399_NBYTES;
+ addr_end = roundup(offset + bytes, RK3399_NBYTES) / RK3399_NBYTES;
+ addr_offset = offset % RK3399_NBYTES;
+ addr_len = addr_end - addr_start;
+
+ buf = kzalloc(array3_size(addr_len, RK3399_NBYTES, sizeof(*buf)),
+ GFP_KERNEL);
+ if (!buf) {
+ clk_disable_unprepare(efuse->clk);
+ return -ENOMEM;
+ }
+
+ writel(RK3399_LOAD | RK3399_PGENB | RK3399_STROBSFTSEL | RK3399_RSB,
+ efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ while (addr_len--) {
+ writel(readl(efuse->base + REG_EFUSE_CTRL) | RK3399_STROBE |
+ ((addr_start++ & RK3399_A_MASK) << RK3399_A_SHIFT),
+ efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+ out_value = readl(efuse->base + REG_EFUSE_DOUT);
+ writel(readl(efuse->base + REG_EFUSE_CTRL) & (~RK3399_STROBE),
+ efuse->base + REG_EFUSE_CTRL);
+ udelay(1);
+
+ memcpy(&buf[i], &out_value, RK3399_NBYTES);
+ i += RK3399_NBYTES;
+ }
+
+ /* Switch to standby mode */
+ writel(RK3399_PD | RK3399_CSB, efuse->base + REG_EFUSE_CTRL);
+
+ memcpy(val, buf + addr_offset, bytes);
+
+ kfree(buf);
+
+ clk_disable_unprepare(efuse->clk);
+
+ return 0;
+}
+
+static struct nvmem_config econfig = {
+ .name = "rockchip-efuse",
+ .add_legacy_fixed_of_cells = true,
+ .type = NVMEM_TYPE_OTP,
+ .stride = 1,
+ .word_size = 1,
+ .read_only = true,
+};
+
+static const struct of_device_id rockchip_efuse_match[] = {
+ /* deprecated but kept around for dts binding compatibility */
+ {
+ .compatible = "rockchip,rockchip-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3066a-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3188-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3228-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3288-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3368-efuse",
+ .data = (void *)&rockchip_rk3288_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3328-efuse",
+ .data = (void *)&rockchip_rk3328_efuse_read,
+ },
+ {
+ .compatible = "rockchip,rk3399-efuse",
+ .data = (void *)&rockchip_rk3399_efuse_read,
+ },
+ { /* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, rockchip_efuse_match);
+
+static int rockchip_efuse_probe(struct platform_device *pdev)
+{
+ struct resource *res;
+ struct nvmem_device *nvmem;
+ struct rockchip_efuse_chip *efuse;
+ const void *data;
+ struct device *dev = &pdev->dev;
+
+ data = of_device_get_match_data(dev);
+ if (!data) {
+ dev_err(dev, "failed to get match data\n");
+ return -EINVAL;
+ }
+
+ efuse = devm_kzalloc(dev, sizeof(struct rockchip_efuse_chip),
+ GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ efuse->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(efuse->base))
+ return PTR_ERR(efuse->base);
+
+ efuse->clk = devm_clk_get(dev, "pclk_efuse");
+ if (IS_ERR(efuse->clk))
+ return PTR_ERR(efuse->clk);
+
+ efuse->dev = dev;
+ if (of_property_read_u32(dev->of_node, "rockchip,efuse-size",
+ &econfig.size))
+ econfig.size = resource_size(res);
+ econfig.reg_read = data;
+ econfig.priv = efuse;
+ econfig.dev = efuse->dev;
+ nvmem = devm_nvmem_register(dev, &econfig);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver rockchip_efuse_driver = {
+ .probe = rockchip_efuse_probe,
+ .driver = {
+ .name = "rockchip-efuse",
+ .of_match_table = rockchip_efuse_match,
+ },
+};
+
+module_platform_driver(rockchip_efuse_driver);
+MODULE_DESCRIPTION("rockchip_efuse driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/rockchip-otp.c b/drivers/nvmem/rockchip-otp.c
new file mode 100644
index 000000000..2c0feb036
--- /dev/null
+++ b/drivers/nvmem/rockchip-otp.c
@@ -0,0 +1,472 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Rockchip OTP Driver
+ *
+ * Copyright (c) 2018 Rockchip Electronics Co. Ltd.
+ * Author: Finley Xiao <finley.xiao@rock-chips.com>
+ */
+
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/reset.h>
+#include <linux/slab.h>
+#include <linux/of.h>
+#include <linux/of_platform.h>
+#include <linux/platform_device.h>
+
+/* OTP Register Offsets */
+#define OTPC_SBPI_CTRL 0x0020
+#define OTPC_SBPI_CMD_VALID_PRE 0x0024
+#define OTPC_SBPI_CS_VALID_PRE 0x0028
+#define OTPC_SBPI_STATUS 0x002C
+#define OTPC_USER_CTRL 0x0100
+#define OTPC_USER_ADDR 0x0104
+#define OTPC_USER_ENABLE 0x0108
+#define OTPC_USER_QP 0x0120
+#define OTPC_USER_Q 0x0124
+#define OTPC_INT_STATUS 0x0304
+#define OTPC_SBPI_CMD0_OFFSET 0x1000
+#define OTPC_SBPI_CMD1_OFFSET 0x1004
+
+/* OTP Register bits and masks */
+#define OTPC_USER_ADDR_MASK GENMASK(31, 16)
+#define OTPC_USE_USER BIT(0)
+#define OTPC_USE_USER_MASK GENMASK(16, 16)
+#define OTPC_USER_FSM_ENABLE BIT(0)
+#define OTPC_USER_FSM_ENABLE_MASK GENMASK(16, 16)
+#define OTPC_SBPI_DONE BIT(1)
+#define OTPC_USER_DONE BIT(2)
+
+#define SBPI_DAP_ADDR 0x02
+#define SBPI_DAP_ADDR_SHIFT 8
+#define SBPI_DAP_ADDR_MASK GENMASK(31, 24)
+#define SBPI_CMD_VALID_MASK GENMASK(31, 16)
+#define SBPI_DAP_CMD_WRF 0xC0
+#define SBPI_DAP_REG_ECC 0x3A
+#define SBPI_ECC_ENABLE 0x00
+#define SBPI_ECC_DISABLE 0x09
+#define SBPI_ENABLE BIT(0)
+#define SBPI_ENABLE_MASK GENMASK(16, 16)
+
+#define OTPC_TIMEOUT 10000
+
+/* RK3588 Register */
+#define RK3588_OTPC_AUTO_CTRL 0x04
+#define RK3588_OTPC_AUTO_EN 0x08
+#define RK3588_OTPC_INT_ST 0x84
+#define RK3588_OTPC_DOUT0 0x20
+#define RK3588_BURST_NUM 1
+#define RK3588_BURST_SHIFT 8
+#define RK3588_ADDR_SHIFT 16
+#define RK3588_AUTO_EN BIT(0)
+#define RK3588_RD_DONE BIT(1)
+
+struct rockchip_data {
+ int size;
+ int read_offset;
+ int word_size;
+ const char * const *clks;
+ int num_clks;
+ nvmem_reg_read_t reg_read;
+};
+
+struct rockchip_otp {
+ struct device *dev;
+ void __iomem *base;
+ struct reset_control *rst;
+ const struct rockchip_data *data;
+ struct clk_bulk_data clks[];
+};
+
+static int rockchip_otp_reset(struct rockchip_otp *otp)
+{
+ int ret;
+
+ ret = reset_control_assert(otp->rst);
+ if (ret) {
+ dev_err(otp->dev, "failed to assert otp phy %d\n", ret);
+ return ret;
+ }
+
+ udelay(2);
+
+ ret = reset_control_deassert(otp->rst);
+ if (ret) {
+ dev_err(otp->dev, "failed to deassert otp phy %d\n", ret);
+ return ret;
+ }
+
+ return 0;
+}
+
+static int rockchip_otp_wait_status(struct rockchip_otp *otp,
+ unsigned int reg, u32 flag)
+{
+ u32 status = 0;
+ int ret;
+
+ ret = readl_poll_timeout_atomic(otp->base + reg, status,
+ (status & flag), 1, OTPC_TIMEOUT);
+ if (ret)
+ return ret;
+
+ /* clean int status */
+ writel(flag, otp->base + reg);
+
+ return 0;
+}
+
+static int rockchip_otp_ecc_enable(struct rockchip_otp *otp, bool enable)
+{
+ int ret = 0;
+
+ writel(SBPI_DAP_ADDR_MASK | (SBPI_DAP_ADDR << SBPI_DAP_ADDR_SHIFT),
+ otp->base + OTPC_SBPI_CTRL);
+
+ writel(SBPI_CMD_VALID_MASK | 0x1, otp->base + OTPC_SBPI_CMD_VALID_PRE);
+ writel(SBPI_DAP_CMD_WRF | SBPI_DAP_REG_ECC,
+ otp->base + OTPC_SBPI_CMD0_OFFSET);
+ if (enable)
+ writel(SBPI_ECC_ENABLE, otp->base + OTPC_SBPI_CMD1_OFFSET);
+ else
+ writel(SBPI_ECC_DISABLE, otp->base + OTPC_SBPI_CMD1_OFFSET);
+
+ writel(SBPI_ENABLE_MASK | SBPI_ENABLE, otp->base + OTPC_SBPI_CTRL);
+
+ ret = rockchip_otp_wait_status(otp, OTPC_INT_STATUS, OTPC_SBPI_DONE);
+ if (ret < 0)
+ dev_err(otp->dev, "timeout during ecc_enable\n");
+
+ return ret;
+}
+
+static int px30_otp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rockchip_otp *otp = context;
+ u8 *buf = val;
+ int ret;
+
+ ret = rockchip_otp_reset(otp);
+ if (ret) {
+ dev_err(otp->dev, "failed to reset otp phy\n");
+ return ret;
+ }
+
+ ret = rockchip_otp_ecc_enable(otp, false);
+ if (ret < 0) {
+ dev_err(otp->dev, "rockchip_otp_ecc_enable err\n");
+ return ret;
+ }
+
+ writel(OTPC_USE_USER | OTPC_USE_USER_MASK, otp->base + OTPC_USER_CTRL);
+ udelay(5);
+ while (bytes--) {
+ writel(offset++ | OTPC_USER_ADDR_MASK,
+ otp->base + OTPC_USER_ADDR);
+ writel(OTPC_USER_FSM_ENABLE | OTPC_USER_FSM_ENABLE_MASK,
+ otp->base + OTPC_USER_ENABLE);
+ ret = rockchip_otp_wait_status(otp, OTPC_INT_STATUS, OTPC_USER_DONE);
+ if (ret < 0) {
+ dev_err(otp->dev, "timeout during read setup\n");
+ goto read_end;
+ }
+ *buf++ = readb(otp->base + OTPC_USER_Q);
+ }
+
+read_end:
+ writel(0x0 | OTPC_USE_USER_MASK, otp->base + OTPC_USER_CTRL);
+
+ return ret;
+}
+
+static int rk3568_otp_read(void *context, unsigned int offset, void *val,
+ size_t count)
+{
+ struct rockchip_otp *otp = context;
+ u16 *buf = val;
+ u32 otp_qp;
+ int ret;
+
+ ret = rockchip_otp_reset(otp);
+ if (ret) {
+ dev_err(otp->dev, "failed to reset otp phy\n");
+ return ret;
+ }
+
+ ret = rockchip_otp_ecc_enable(otp, true);
+ if (ret) {
+ dev_err(otp->dev, "rockchip_otp_ecc_enable err\n");
+ return ret;
+ }
+
+ writel(OTPC_USE_USER | OTPC_USE_USER_MASK, otp->base + OTPC_USER_CTRL);
+ udelay(5);
+
+ while (count--) {
+ writel(offset++ | OTPC_USER_ADDR_MASK,
+ otp->base + OTPC_USER_ADDR);
+ writel(OTPC_USER_FSM_ENABLE | OTPC_USER_FSM_ENABLE_MASK,
+ otp->base + OTPC_USER_ENABLE);
+
+ ret = rockchip_otp_wait_status(otp, OTPC_INT_STATUS,
+ OTPC_USER_DONE);
+ if (ret) {
+ dev_err(otp->dev, "timeout during read setup\n");
+ goto read_end;
+ }
+
+ otp_qp = readl(otp->base + OTPC_USER_QP);
+ if (((otp_qp & 0xc0) == 0xc0) || (otp_qp & 0x20)) {
+ ret = -EIO;
+ dev_err(otp->dev, "ecc check error during read setup\n");
+ goto read_end;
+ }
+
+ *buf++ = readl(otp->base + OTPC_USER_Q);
+ }
+
+read_end:
+ writel(0x0 | OTPC_USE_USER_MASK, otp->base + OTPC_USER_CTRL);
+
+ return ret;
+}
+
+static int rk3588_otp_read(void *context, unsigned int offset,
+ void *val, size_t count)
+{
+ struct rockchip_otp *otp = context;
+ u32 *buf = val;
+ int ret;
+
+ while (count--) {
+ writel((offset++ << RK3588_ADDR_SHIFT) |
+ (RK3588_BURST_NUM << RK3588_BURST_SHIFT),
+ otp->base + RK3588_OTPC_AUTO_CTRL);
+ writel(RK3588_AUTO_EN, otp->base + RK3588_OTPC_AUTO_EN);
+
+ ret = rockchip_otp_wait_status(otp, RK3588_OTPC_INT_ST,
+ RK3588_RD_DONE);
+ if (ret) {
+ dev_err(otp->dev, "timeout during read setup\n");
+ return ret;
+ }
+
+ *buf++ = readl(otp->base + RK3588_OTPC_DOUT0);
+ }
+
+ return ret;
+}
+
+static int rockchip_otp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct rockchip_otp *otp = context;
+ int ret, word_size;
+
+ if (!otp->data || !otp->data->reg_read)
+ return -EINVAL;
+
+ ret = clk_bulk_prepare_enable(otp->data->num_clks, otp->clks);
+ if (ret < 0) {
+ dev_err(otp->dev, "failed to prepare/enable clks\n");
+ return ret;
+ }
+
+ offset += otp->data->read_offset;
+ word_size = otp->data->word_size;
+
+ if (word_size > 1) {
+ unsigned int addr_start, addr_end;
+ size_t count;
+ u8 *buf;
+
+ addr_start = offset / word_size;
+ addr_end = DIV_ROUND_UP(offset + bytes, word_size);
+ count = addr_end - addr_start;
+
+ buf = kzalloc(array_size(count, word_size), GFP_KERNEL);
+ if (!buf) {
+ ret = -ENOMEM;
+ goto err;
+ }
+
+ ret = otp->data->reg_read(context, addr_start, buf, count);
+ if (!ret)
+ memcpy(val, buf + (offset % word_size), bytes);
+
+ kfree(buf);
+ } else {
+ ret = otp->data->reg_read(context, offset, val, bytes);
+ }
+
+err:
+ clk_bulk_disable_unprepare(otp->data->num_clks, otp->clks);
+
+ return ret;
+}
+
+static struct nvmem_config otp_config = {
+ .name = "rockchip-otp",
+ .owner = THIS_MODULE,
+ .add_legacy_fixed_of_cells = true,
+ .type = NVMEM_TYPE_OTP,
+ .read_only = true,
+ .stride = 1,
+ .word_size = sizeof(u8),
+ .reg_read = rockchip_otp_read,
+};
+
+static const char * const px30_otp_clocks[] = {
+ "otp", "apb_pclk", "phy",
+};
+
+static const struct rockchip_data px30_data = {
+ .size = 0x40,
+ .clks = px30_otp_clocks,
+ .num_clks = ARRAY_SIZE(px30_otp_clocks),
+ .reg_read = px30_otp_read,
+};
+
+static const char * const rk3528_otp_clocks[] = {
+ "otp", "apb_pclk", "sbpi",
+};
+
+static const struct rockchip_data rk3528_data = {
+ .size = 0x80,
+ .word_size = sizeof(u16),
+ .clks = rk3528_otp_clocks,
+ .num_clks = ARRAY_SIZE(rk3528_otp_clocks),
+ .reg_read = rk3568_otp_read,
+};
+
+static const char * const rk3568_otp_clocks[] = {
+ "otp", "apb_pclk", "phy", "sbpi",
+};
+
+static const struct rockchip_data rk3568_data = {
+ .size = 0x80,
+ .word_size = sizeof(u16),
+ .clks = rk3568_otp_clocks,
+ .num_clks = ARRAY_SIZE(rk3568_otp_clocks),
+ .reg_read = rk3568_otp_read,
+};
+
+static const struct rockchip_data rk3576_data = {
+ .size = 0x100,
+ .read_offset = 0x700,
+ .word_size = sizeof(u32),
+ .clks = px30_otp_clocks,
+ .num_clks = ARRAY_SIZE(px30_otp_clocks),
+ .reg_read = rk3588_otp_read,
+};
+
+static const char * const rk3588_otp_clocks[] = {
+ "otp", "apb_pclk", "phy", "arb",
+};
+
+static const struct rockchip_data rk3588_data = {
+ .size = 0x400,
+ .read_offset = 0xc00,
+ .word_size = sizeof(u32),
+ .clks = rk3588_otp_clocks,
+ .num_clks = ARRAY_SIZE(rk3588_otp_clocks),
+ .reg_read = rk3588_otp_read,
+};
+
+static const struct of_device_id rockchip_otp_match[] = {
+ {
+ .compatible = "rockchip,px30-otp",
+ .data = &px30_data,
+ },
+ {
+ .compatible = "rockchip,rk3308-otp",
+ .data = &px30_data,
+ },
+ {
+ .compatible = "rockchip,rk3528-otp",
+ .data = &rk3528_data,
+ },
+ {
+ .compatible = "rockchip,rk3562-otp",
+ .data = &rk3568_data,
+ },
+ {
+ .compatible = "rockchip,rk3568-otp",
+ .data = &rk3568_data,
+ },
+ {
+ .compatible = "rockchip,rk3576-otp",
+ .data = &rk3576_data,
+ },
+ {
+ .compatible = "rockchip,rk3588-otp",
+ .data = &rk3588_data,
+ },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, rockchip_otp_match);
+
+static int rockchip_otp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct rockchip_otp *otp;
+ const struct rockchip_data *data;
+ struct nvmem_device *nvmem;
+ int ret, i;
+
+ data = of_device_get_match_data(dev);
+ if (!data)
+ return dev_err_probe(dev, -EINVAL, "failed to get match data\n");
+
+ otp = devm_kzalloc(&pdev->dev, struct_size(otp, clks, data->num_clks),
+ GFP_KERNEL);
+ if (!otp)
+ return -ENOMEM;
+
+ otp->data = data;
+ otp->dev = dev;
+ otp->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(otp->base))
+ return dev_err_probe(dev, PTR_ERR(otp->base),
+ "failed to ioremap resource\n");
+
+ for (i = 0; i < data->num_clks; ++i)
+ otp->clks[i].id = data->clks[i];
+
+ ret = devm_clk_bulk_get(dev, data->num_clks, otp->clks);
+ if (ret)
+ return dev_err_probe(dev, ret, "failed to get clocks\n");
+
+ otp->rst = devm_reset_control_array_get_exclusive(dev);
+ if (IS_ERR(otp->rst))
+ return dev_err_probe(dev, PTR_ERR(otp->rst),
+ "failed to get resets\n");
+
+ otp_config.size = data->size;
+ otp_config.priv = otp;
+ otp_config.dev = dev;
+
+ nvmem = devm_nvmem_register(dev, &otp_config);
+ if (IS_ERR(nvmem))
+ return dev_err_probe(dev, PTR_ERR(nvmem),
+ "failed to register nvmem device\n");
+ return 0;
+}
+
+static struct platform_driver rockchip_otp_driver = {
+ .probe = rockchip_otp_probe,
+ .driver = {
+ .name = "rockchip-otp",
+ .of_match_table = rockchip_otp_match,
+ },
+};
+
+module_platform_driver(rockchip_otp_driver);
+MODULE_DESCRIPTION("Rockchip OTP driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/s32g-ocotp-nvmem.c b/drivers/nvmem/s32g-ocotp-nvmem.c
new file mode 100644
index 000000000..119871ab3
--- /dev/null
+++ b/drivers/nvmem/s32g-ocotp-nvmem.c
@@ -0,0 +1,100 @@
+// SPDX-License-Identifier: GPL-2.0+
+/*
+ * Copyright 2023-2025 NXP
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/of_device.h>
+#include <linux/platform_device.h>
+
+struct s32g_ocotp_priv {
+ struct device *dev;
+ void __iomem *base;
+};
+
+static int s32g_ocotp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct s32g_ocotp_priv *s32g_data = context;
+ u32 *dst = val;
+
+ while (bytes >= sizeof(u32)) {
+ *dst++ = ioread32(s32g_data->base + offset);
+
+ bytes -= sizeof(u32);
+ offset += sizeof(u32);
+ }
+
+ return 0;
+}
+
+static struct nvmem_keepout s32g_keepouts[] = {
+ { .start = 0, .end = 520 },
+ { .start = 540, .end = 564 },
+ { .start = 596, .end = 664 },
+ { .start = 668, .end = 676 },
+ { .start = 684, .end = 732 },
+ { .start = 744, .end = 864 },
+ { .start = 908, .end = 924 },
+ { .start = 928, .end = 936 },
+ { .start = 948, .end = 964 },
+ { .start = 968, .end = 976 },
+ { .start = 984, .end = 1012 },
+};
+
+static struct nvmem_config s32g_ocotp_nvmem_config = {
+ .name = "s32g-ocotp",
+ .add_legacy_fixed_of_cells = true,
+ .read_only = true,
+ .word_size = 4,
+ .reg_read = s32g_ocotp_read,
+ .keepout = s32g_keepouts,
+ .nkeepout = ARRAY_SIZE(s32g_keepouts),
+};
+
+static const struct of_device_id ocotp_of_match[] = {
+ { .compatible = "nxp,s32g2-ocotp" },
+ { /* sentinel */ }
+};
+
+static int s32g_ocotp_probe(struct platform_device *pdev)
+{
+ struct s32g_ocotp_priv *s32g_data;
+ struct device *dev = &pdev->dev;
+ struct nvmem_device *nvmem;
+ struct resource *res;
+
+ s32g_data = devm_kzalloc(dev, sizeof(*s32g_data), GFP_KERNEL);
+ if (!s32g_data)
+ return -ENOMEM;
+
+ s32g_data->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(s32g_data->base))
+ return dev_err_probe(dev, PTR_ERR(s32g_data->base),
+ "Cannot map OCOTP device.\n");
+
+ s32g_data->dev = dev;
+ s32g_ocotp_nvmem_config.dev = dev;
+ s32g_ocotp_nvmem_config.priv = s32g_data;
+ s32g_ocotp_nvmem_config.size = resource_size(res);
+
+ nvmem = devm_nvmem_register(dev, &s32g_ocotp_nvmem_config);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static struct platform_driver s32g_ocotp_driver = {
+ .probe = s32g_ocotp_probe,
+ .driver = {
+ .name = "s32g-ocotp",
+ .of_match_table = ocotp_of_match,
+ },
+};
+module_platform_driver(s32g_ocotp_driver);
+MODULE_AUTHOR("NXP");
+MODULE_DESCRIPTION("S32G OCOTP driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/sc27xx-efuse.c b/drivers/nvmem/sc27xx-efuse.c
new file mode 100644
index 000000000..4e2ffefac
--- /dev/null
+++ b/drivers/nvmem/sc27xx-efuse.c
@@ -0,0 +1,279 @@
+// SPDX-License-Identifier: GPL-2.0
+// Copyright (C) 2018 Spreadtrum Communications Inc.
+
+#include <linux/hwspinlock.h>
+#include <linux/module.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/regmap.h>
+#include <linux/nvmem-provider.h>
+
+/* PMIC global registers definition */
+#define SC27XX_MODULE_EN 0xc08
+#define SC2730_MODULE_EN 0x1808
+#define SC27XX_EFUSE_EN BIT(6)
+
+/* Efuse controller registers definition */
+#define SC27XX_EFUSE_GLB_CTRL 0x0
+#define SC27XX_EFUSE_DATA_RD 0x4
+#define SC27XX_EFUSE_DATA_WR 0x8
+#define SC27XX_EFUSE_BLOCK_INDEX 0xc
+#define SC27XX_EFUSE_MODE_CTRL 0x10
+#define SC27XX_EFUSE_STATUS 0x14
+#define SC27XX_EFUSE_WR_TIMING_CTRL 0x20
+#define SC27XX_EFUSE_RD_TIMING_CTRL 0x24
+#define SC27XX_EFUSE_EFUSE_DEB_CTRL 0x28
+
+/* Mask definition for SC27XX_EFUSE_BLOCK_INDEX register */
+#define SC27XX_EFUSE_BLOCK_MASK GENMASK(4, 0)
+
+/* Bits definitions for SC27XX_EFUSE_MODE_CTRL register */
+#define SC27XX_EFUSE_PG_START BIT(0)
+#define SC27XX_EFUSE_RD_START BIT(1)
+#define SC27XX_EFUSE_CLR_RDDONE BIT(2)
+
+/* Bits definitions for SC27XX_EFUSE_STATUS register */
+#define SC27XX_EFUSE_PGM_BUSY BIT(0)
+#define SC27XX_EFUSE_READ_BUSY BIT(1)
+#define SC27XX_EFUSE_STANDBY BIT(2)
+#define SC27XX_EFUSE_GLOBAL_PROT BIT(3)
+#define SC27XX_EFUSE_RD_DONE BIT(4)
+
+/* Block number and block width (bytes) definitions */
+#define SC27XX_EFUSE_BLOCK_MAX 32
+#define SC27XX_EFUSE_BLOCK_WIDTH 2
+
+/* Timeout (ms) for the trylock of hardware spinlocks */
+#define SC27XX_EFUSE_HWLOCK_TIMEOUT 5000
+
+/* Timeout (us) of polling the status */
+#define SC27XX_EFUSE_POLL_TIMEOUT 3000000
+#define SC27XX_EFUSE_POLL_DELAY_US 10000
+
+/*
+ * Since different PMICs of SC27xx series can have different
+ * address , we should save address in the device data structure.
+ */
+struct sc27xx_efuse_variant_data {
+ u32 module_en;
+};
+
+struct sc27xx_efuse {
+ struct device *dev;
+ struct regmap *regmap;
+ struct hwspinlock *hwlock;
+ struct mutex mutex;
+ u32 base;
+ const struct sc27xx_efuse_variant_data *var_data;
+};
+
+static const struct sc27xx_efuse_variant_data sc2731_edata = {
+ .module_en = SC27XX_MODULE_EN,
+};
+
+static const struct sc27xx_efuse_variant_data sc2730_edata = {
+ .module_en = SC2730_MODULE_EN,
+};
+
+/*
+ * On Spreadtrum platform, we have multi-subsystems will access the unique
+ * efuse controller, so we need one hardware spinlock to synchronize between
+ * the multiple subsystems.
+ */
+static int sc27xx_efuse_lock(struct sc27xx_efuse *efuse)
+{
+ int ret;
+
+ mutex_lock(&efuse->mutex);
+
+ ret = hwspin_lock_timeout_raw(efuse->hwlock,
+ SC27XX_EFUSE_HWLOCK_TIMEOUT);
+ if (ret) {
+ dev_err(efuse->dev, "timeout to get the hwspinlock\n");
+ mutex_unlock(&efuse->mutex);
+ return ret;
+ }
+
+ return 0;
+}
+
+static void sc27xx_efuse_unlock(struct sc27xx_efuse *efuse)
+{
+ hwspin_unlock_raw(efuse->hwlock);
+ mutex_unlock(&efuse->mutex);
+}
+
+static int sc27xx_efuse_poll_status(struct sc27xx_efuse *efuse, u32 bits)
+{
+ int ret;
+ u32 val;
+
+ ret = regmap_read_poll_timeout(efuse->regmap,
+ efuse->base + SC27XX_EFUSE_STATUS,
+ val, (val & bits),
+ SC27XX_EFUSE_POLL_DELAY_US,
+ SC27XX_EFUSE_POLL_TIMEOUT);
+ if (ret) {
+ dev_err(efuse->dev, "timeout to update the efuse status\n");
+ return ret;
+ }
+
+ return 0;
+}
+
+static int sc27xx_efuse_read(void *context, u32 offset, void *val, size_t bytes)
+{
+ struct sc27xx_efuse *efuse = context;
+ u32 buf, blk_index = offset / SC27XX_EFUSE_BLOCK_WIDTH;
+ u32 blk_offset = (offset % SC27XX_EFUSE_BLOCK_WIDTH) * BITS_PER_BYTE;
+ int ret;
+
+ if (blk_index > SC27XX_EFUSE_BLOCK_MAX ||
+ bytes > SC27XX_EFUSE_BLOCK_WIDTH)
+ return -EINVAL;
+
+ ret = sc27xx_efuse_lock(efuse);
+ if (ret)
+ return ret;
+
+ /* Enable the efuse controller. */
+ ret = regmap_update_bits(efuse->regmap, efuse->var_data->module_en,
+ SC27XX_EFUSE_EN, SC27XX_EFUSE_EN);
+ if (ret)
+ goto unlock_efuse;
+
+ /*
+ * Before reading, we should ensure the efuse controller is in
+ * standby state.
+ */
+ ret = sc27xx_efuse_poll_status(efuse, SC27XX_EFUSE_STANDBY);
+ if (ret)
+ goto disable_efuse;
+
+ /* Set the block address to be read. */
+ ret = regmap_write(efuse->regmap,
+ efuse->base + SC27XX_EFUSE_BLOCK_INDEX,
+ blk_index & SC27XX_EFUSE_BLOCK_MASK);
+ if (ret)
+ goto disable_efuse;
+
+ /* Start reading process from efuse memory. */
+ ret = regmap_update_bits(efuse->regmap,
+ efuse->base + SC27XX_EFUSE_MODE_CTRL,
+ SC27XX_EFUSE_RD_START,
+ SC27XX_EFUSE_RD_START);
+ if (ret)
+ goto disable_efuse;
+
+ /*
+ * Polling the read done status to make sure the reading process
+ * is completed, that means the data can be read out now.
+ */
+ ret = sc27xx_efuse_poll_status(efuse, SC27XX_EFUSE_RD_DONE);
+ if (ret)
+ goto disable_efuse;
+
+ /* Read data from efuse memory. */
+ ret = regmap_read(efuse->regmap, efuse->base + SC27XX_EFUSE_DATA_RD,
+ &buf);
+ if (ret)
+ goto disable_efuse;
+
+ /* Clear the read done flag. */
+ ret = regmap_update_bits(efuse->regmap,
+ efuse->base + SC27XX_EFUSE_MODE_CTRL,
+ SC27XX_EFUSE_CLR_RDDONE,
+ SC27XX_EFUSE_CLR_RDDONE);
+
+disable_efuse:
+ /* Disable the efuse controller after reading. */
+ regmap_update_bits(efuse->regmap, efuse->var_data->module_en, SC27XX_EFUSE_EN, 0);
+unlock_efuse:
+ sc27xx_efuse_unlock(efuse);
+
+ if (!ret) {
+ buf >>= blk_offset;
+ memcpy(val, &buf, bytes);
+ }
+
+ return ret;
+}
+
+static int sc27xx_efuse_probe(struct platform_device *pdev)
+{
+ struct device_node *np = pdev->dev.of_node;
+ struct nvmem_config econfig = { };
+ struct nvmem_device *nvmem;
+ struct sc27xx_efuse *efuse;
+ int ret;
+
+ efuse = devm_kzalloc(&pdev->dev, sizeof(*efuse), GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ efuse->regmap = dev_get_regmap(pdev->dev.parent, NULL);
+ if (!efuse->regmap) {
+ dev_err(&pdev->dev, "failed to get efuse regmap\n");
+ return -ENODEV;
+ }
+
+ ret = of_property_read_u32(np, "reg", &efuse->base);
+ if (ret) {
+ dev_err(&pdev->dev, "failed to get efuse base address\n");
+ return ret;
+ }
+
+ ret = of_hwspin_lock_get_id(np, 0);
+ if (ret < 0) {
+ dev_err(&pdev->dev, "failed to get hwspinlock id\n");
+ return ret;
+ }
+
+ efuse->hwlock = devm_hwspin_lock_request_specific(&pdev->dev, ret);
+ if (!efuse->hwlock) {
+ dev_err(&pdev->dev, "failed to request hwspinlock\n");
+ return -ENXIO;
+ }
+
+ mutex_init(&efuse->mutex);
+ efuse->dev = &pdev->dev;
+ efuse->var_data = of_device_get_match_data(&pdev->dev);
+
+ econfig.stride = 1;
+ econfig.word_size = 1;
+ econfig.read_only = true;
+ econfig.name = "sc27xx-efuse";
+ econfig.size = SC27XX_EFUSE_BLOCK_MAX * SC27XX_EFUSE_BLOCK_WIDTH;
+ econfig.reg_read = sc27xx_efuse_read;
+ econfig.priv = efuse;
+ econfig.dev = &pdev->dev;
+ econfig.add_legacy_fixed_of_cells = true;
+ nvmem = devm_nvmem_register(&pdev->dev, &econfig);
+ if (IS_ERR(nvmem)) {
+ dev_err(&pdev->dev, "failed to register nvmem config\n");
+ return PTR_ERR(nvmem);
+ }
+
+ return 0;
+}
+
+static const struct of_device_id sc27xx_efuse_of_match[] = {
+ { .compatible = "sprd,sc2731-efuse", .data = &sc2731_edata},
+ { .compatible = "sprd,sc2730-efuse", .data = &sc2730_edata},
+ { }
+};
+MODULE_DEVICE_TABLE(of, sc27xx_efuse_of_match);
+
+static struct platform_driver sc27xx_efuse_driver = {
+ .probe = sc27xx_efuse_probe,
+ .driver = {
+ .name = "sc27xx-efuse",
+ .of_match_table = sc27xx_efuse_of_match,
+ },
+};
+
+module_platform_driver(sc27xx_efuse_driver);
+
+MODULE_AUTHOR("Freeman Liu <freeman.liu@spreadtrum.com>");
+MODULE_DESCRIPTION("Spreadtrum SC27xx efuse driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/sec-qfprom.c b/drivers/nvmem/sec-qfprom.c
new file mode 100644
index 000000000..51d21e65a
--- /dev/null
+++ b/drivers/nvmem/sec-qfprom.c
@@ -0,0 +1,96 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (c) 2023, Qualcomm Innovation Center, Inc. All rights reserved.
+ */
+
+#include <linux/firmware/qcom/qcom_scm.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+#include <linux/pm_runtime.h>
+
+/**
+ * struct sec_qfprom - structure holding secure qfprom attributes
+ *
+ * @base: starting physical address for secure qfprom corrected address space.
+ * @dev: qfprom device structure.
+ */
+struct sec_qfprom {
+ phys_addr_t base;
+ struct device *dev;
+};
+
+static int sec_qfprom_reg_read(void *context, unsigned int reg, void *_val, size_t bytes)
+{
+ struct sec_qfprom *priv = context;
+ unsigned int i;
+ u8 *val = _val;
+ u32 read_val;
+ u8 *tmp;
+
+ for (i = 0; i < bytes; i++, reg++) {
+ if (i == 0 || reg % 4 == 0) {
+ if (qcom_scm_io_readl(priv->base + (reg & ~3), &read_val)) {
+ dev_err(priv->dev, "Couldn't access fuse register\n");
+ return -EINVAL;
+ }
+ tmp = (u8 *)&read_val;
+ }
+
+ val[i] = tmp[reg & 3];
+ }
+
+ return 0;
+}
+
+static int sec_qfprom_probe(struct platform_device *pdev)
+{
+ struct nvmem_config econfig = {
+ .name = "sec-qfprom",
+ .add_legacy_fixed_of_cells = true,
+ .stride = 1,
+ .word_size = 1,
+ .id = NVMEM_DEVID_AUTO,
+ .reg_read = sec_qfprom_reg_read,
+ };
+ struct device *dev = &pdev->dev;
+ struct nvmem_device *nvmem;
+ struct sec_qfprom *priv;
+ struct resource *res;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
+ if (!res)
+ return -EINVAL;
+
+ priv->base = res->start;
+
+ econfig.size = resource_size(res);
+ econfig.dev = dev;
+ econfig.priv = priv;
+
+ priv->dev = dev;
+
+ nvmem = devm_nvmem_register(dev, &econfig);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id sec_qfprom_of_match[] = {
+ { .compatible = "qcom,sec-qfprom" },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, sec_qfprom_of_match);
+
+static struct platform_driver qfprom_driver = {
+ .probe = sec_qfprom_probe,
+ .driver = {
+ .name = "qcom_sec_qfprom",
+ .of_match_table = sec_qfprom_of_match,
+ },
+};
+module_platform_driver(qfprom_driver);
+MODULE_DESCRIPTION("Qualcomm Secure QFPROM driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/snvs_lpgpr.c b/drivers/nvmem/snvs_lpgpr.c
new file mode 100644
index 000000000..89c271123
--- /dev/null
+++ b/drivers/nvmem/snvs_lpgpr.c
@@ -0,0 +1,157 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (c) 2015 Pengutronix, Steffen Trumtrar <kernel@pengutronix.de>
+ * Copyright (c) 2017 Pengutronix, Oleksij Rempel <kernel@pengutronix.de>
+ */
+
+#include <linux/mfd/syscon.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/regmap.h>
+
+#define IMX6Q_SNVS_HPLR 0x00
+#define IMX6Q_SNVS_LPLR 0x34
+#define IMX6Q_SNVS_LPGPR 0x68
+
+#define IMX7D_SNVS_HPLR 0x00
+#define IMX7D_SNVS_LPLR 0x34
+#define IMX7D_SNVS_LPGPR 0x90
+
+#define IMX_GPR_SL BIT(5)
+#define IMX_GPR_HL BIT(5)
+
+struct snvs_lpgpr_cfg {
+ int offset;
+ int offset_hplr;
+ int offset_lplr;
+ int size;
+};
+
+struct snvs_lpgpr_priv {
+ struct device_d *dev;
+ struct regmap *regmap;
+ struct nvmem_config cfg;
+ const struct snvs_lpgpr_cfg *dcfg;
+};
+
+static const struct snvs_lpgpr_cfg snvs_lpgpr_cfg_imx6q = {
+ .offset = IMX6Q_SNVS_LPGPR,
+ .offset_hplr = IMX6Q_SNVS_HPLR,
+ .offset_lplr = IMX6Q_SNVS_LPLR,
+ .size = 4,
+};
+
+static const struct snvs_lpgpr_cfg snvs_lpgpr_cfg_imx7d = {
+ .offset = IMX7D_SNVS_LPGPR,
+ .offset_hplr = IMX7D_SNVS_HPLR,
+ .offset_lplr = IMX7D_SNVS_LPLR,
+ .size = 16,
+};
+
+static int snvs_lpgpr_write(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct snvs_lpgpr_priv *priv = context;
+ const struct snvs_lpgpr_cfg *dcfg = priv->dcfg;
+ unsigned int lock_reg;
+ int ret;
+
+ ret = regmap_read(priv->regmap, dcfg->offset_hplr, &lock_reg);
+ if (ret < 0)
+ return ret;
+
+ if (lock_reg & IMX_GPR_SL)
+ return -EPERM;
+
+ ret = regmap_read(priv->regmap, dcfg->offset_lplr, &lock_reg);
+ if (ret < 0)
+ return ret;
+
+ if (lock_reg & IMX_GPR_HL)
+ return -EPERM;
+
+ return regmap_bulk_write(priv->regmap, dcfg->offset + offset, val,
+ bytes / 4);
+}
+
+static int snvs_lpgpr_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct snvs_lpgpr_priv *priv = context;
+ const struct snvs_lpgpr_cfg *dcfg = priv->dcfg;
+
+ return regmap_bulk_read(priv->regmap, dcfg->offset + offset,
+ val, bytes / 4);
+}
+
+static int snvs_lpgpr_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct device_node *node = dev->of_node;
+ struct device_node *syscon_node;
+ struct snvs_lpgpr_priv *priv;
+ struct nvmem_config *cfg;
+ struct nvmem_device *nvmem;
+ const struct snvs_lpgpr_cfg *dcfg;
+
+ if (!node)
+ return -ENOENT;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ dcfg = of_device_get_match_data(dev);
+ if (!dcfg)
+ return -EINVAL;
+
+ syscon_node = of_get_parent(node);
+ if (!syscon_node)
+ return -ENODEV;
+
+ priv->regmap = syscon_node_to_regmap(syscon_node);
+ of_node_put(syscon_node);
+ if (IS_ERR(priv->regmap))
+ return PTR_ERR(priv->regmap);
+
+ priv->dcfg = dcfg;
+
+ cfg = &priv->cfg;
+ cfg->priv = priv;
+ cfg->name = dev_name(dev);
+ cfg->dev = dev;
+ cfg->stride = 4;
+ cfg->word_size = 4;
+ cfg->size = dcfg->size;
+ cfg->owner = THIS_MODULE;
+ cfg->reg_read = snvs_lpgpr_read;
+ cfg->reg_write = snvs_lpgpr_write;
+
+ nvmem = devm_nvmem_register(dev, cfg);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id snvs_lpgpr_dt_ids[] = {
+ { .compatible = "fsl,imx6q-snvs-lpgpr", .data = &snvs_lpgpr_cfg_imx6q },
+ { .compatible = "fsl,imx6ul-snvs-lpgpr",
+ .data = &snvs_lpgpr_cfg_imx6q },
+ { .compatible = "fsl,imx7d-snvs-lpgpr", .data = &snvs_lpgpr_cfg_imx7d },
+ { },
+};
+MODULE_DEVICE_TABLE(of, snvs_lpgpr_dt_ids);
+
+static struct platform_driver snvs_lpgpr_driver = {
+ .probe = snvs_lpgpr_probe,
+ .driver = {
+ .name = "snvs_lpgpr",
+ .of_match_table = snvs_lpgpr_dt_ids,
+ },
+};
+module_platform_driver(snvs_lpgpr_driver);
+
+MODULE_AUTHOR("Oleksij Rempel <o.rempel@pengutronix.de>");
+MODULE_DESCRIPTION("Low Power General Purpose Register in i.MX6 and i.MX7 Secure Non-Volatile Storage");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/sprd-efuse.c b/drivers/nvmem/sprd-efuse.c
new file mode 100644
index 000000000..1a7e4e5d8
--- /dev/null
+++ b/drivers/nvmem/sprd-efuse.c
@@ -0,0 +1,443 @@
+// SPDX-License-Identifier: GPL-2.0
+// Copyright (C) 2019 Spreadtrum Communications Inc.
+
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/hwspinlock.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+
+#define SPRD_EFUSE_ENABLE 0x20
+#define SPRD_EFUSE_ERR_FLAG 0x24
+#define SPRD_EFUSE_ERR_CLR 0x28
+#define SPRD_EFUSE_MAGIC_NUM 0x2c
+#define SPRD_EFUSE_FW_CFG 0x50
+#define SPRD_EFUSE_PW_SWT 0x54
+#define SPRD_EFUSE_MEM(val) (0x1000 + ((val) << 2))
+
+#define SPRD_EFUSE_VDD_EN BIT(0)
+#define SPRD_EFUSE_AUTO_CHECK_EN BIT(1)
+#define SPRD_EFUSE_DOUBLE_EN BIT(2)
+#define SPRD_EFUSE_MARGIN_RD_EN BIT(3)
+#define SPRD_EFUSE_LOCK_WR_EN BIT(4)
+
+#define SPRD_EFUSE_ERR_CLR_MASK GENMASK(13, 0)
+
+#define SPRD_EFUSE_ENK1_ON BIT(0)
+#define SPRD_EFUSE_ENK2_ON BIT(1)
+#define SPRD_EFUSE_PROG_EN BIT(2)
+
+#define SPRD_EFUSE_MAGIC_NUMBER 0x8810
+
+/* Block width (bytes) definitions */
+#define SPRD_EFUSE_BLOCK_WIDTH 4
+
+/*
+ * The Spreadtrum AP efuse contains 2 parts: normal efuse and secure efuse,
+ * and we can only access the normal efuse in kernel. So define the normal
+ * block offset index and normal block numbers.
+ */
+#define SPRD_EFUSE_NORMAL_BLOCK_NUMS 24
+#define SPRD_EFUSE_NORMAL_BLOCK_OFFSET 72
+
+/* Timeout (ms) for the trylock of hardware spinlocks */
+#define SPRD_EFUSE_HWLOCK_TIMEOUT 5000
+
+/*
+ * Since different Spreadtrum SoC chip can have different normal block numbers
+ * and offset. And some SoC can support block double feature, which means
+ * when reading or writing data to efuse memory, the controller can save double
+ * data in case one data become incorrect after a long period.
+ *
+ * Thus we should save them in the device data structure.
+ */
+struct sprd_efuse_variant_data {
+ u32 blk_nums;
+ u32 blk_offset;
+ bool blk_double;
+};
+
+struct sprd_efuse {
+ struct device *dev;
+ struct clk *clk;
+ struct hwspinlock *hwlock;
+ struct mutex mutex;
+ void __iomem *base;
+ const struct sprd_efuse_variant_data *data;
+};
+
+static const struct sprd_efuse_variant_data ums312_data = {
+ .blk_nums = SPRD_EFUSE_NORMAL_BLOCK_NUMS,
+ .blk_offset = SPRD_EFUSE_NORMAL_BLOCK_OFFSET,
+ .blk_double = false,
+};
+
+/*
+ * On Spreadtrum platform, we have multi-subsystems will access the unique
+ * efuse controller, so we need one hardware spinlock to synchronize between
+ * the multiple subsystems.
+ */
+static int sprd_efuse_lock(struct sprd_efuse *efuse)
+{
+ int ret;
+
+ mutex_lock(&efuse->mutex);
+
+ ret = hwspin_lock_timeout_raw(efuse->hwlock,
+ SPRD_EFUSE_HWLOCK_TIMEOUT);
+ if (ret) {
+ dev_err(efuse->dev, "timeout get the hwspinlock\n");
+ mutex_unlock(&efuse->mutex);
+ return ret;
+ }
+
+ return 0;
+}
+
+static void sprd_efuse_unlock(struct sprd_efuse *efuse)
+{
+ hwspin_unlock_raw(efuse->hwlock);
+ mutex_unlock(&efuse->mutex);
+}
+
+static void sprd_efuse_set_prog_power(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_PW_SWT);
+
+ if (en)
+ val &= ~SPRD_EFUSE_ENK2_ON;
+ else
+ val &= ~SPRD_EFUSE_ENK1_ON;
+
+ writel(val, efuse->base + SPRD_EFUSE_PW_SWT);
+
+ /* Open or close efuse power need wait 1000us to make power stable. */
+ usleep_range(1000, 1200);
+
+ if (en)
+ val |= SPRD_EFUSE_ENK1_ON;
+ else
+ val |= SPRD_EFUSE_ENK2_ON;
+
+ writel(val, efuse->base + SPRD_EFUSE_PW_SWT);
+
+ /* Open or close efuse power need wait 1000us to make power stable. */
+ usleep_range(1000, 1200);
+}
+
+static void sprd_efuse_set_read_power(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_ENABLE);
+
+ if (en)
+ val |= SPRD_EFUSE_VDD_EN;
+ else
+ val &= ~SPRD_EFUSE_VDD_EN;
+
+ writel(val, efuse->base + SPRD_EFUSE_ENABLE);
+
+ /* Open or close efuse power need wait 1000us to make power stable. */
+ usleep_range(1000, 1200);
+}
+
+static void sprd_efuse_set_prog_lock(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_ENABLE);
+
+ if (en)
+ val |= SPRD_EFUSE_LOCK_WR_EN;
+ else
+ val &= ~SPRD_EFUSE_LOCK_WR_EN;
+
+ writel(val, efuse->base + SPRD_EFUSE_ENABLE);
+}
+
+static void sprd_efuse_set_auto_check(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_ENABLE);
+
+ if (en)
+ val |= SPRD_EFUSE_AUTO_CHECK_EN;
+ else
+ val &= ~SPRD_EFUSE_AUTO_CHECK_EN;
+
+ writel(val, efuse->base + SPRD_EFUSE_ENABLE);
+}
+
+static void sprd_efuse_set_data_double(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_ENABLE);
+
+ if (en)
+ val |= SPRD_EFUSE_DOUBLE_EN;
+ else
+ val &= ~SPRD_EFUSE_DOUBLE_EN;
+
+ writel(val, efuse->base + SPRD_EFUSE_ENABLE);
+}
+
+static void sprd_efuse_set_prog_en(struct sprd_efuse *efuse, bool en)
+{
+ u32 val = readl(efuse->base + SPRD_EFUSE_PW_SWT);
+
+ if (en)
+ val |= SPRD_EFUSE_PROG_EN;
+ else
+ val &= ~SPRD_EFUSE_PROG_EN;
+
+ writel(val, efuse->base + SPRD_EFUSE_PW_SWT);
+}
+
+static int sprd_efuse_raw_prog(struct sprd_efuse *efuse, u32 blk, bool doub,
+ bool lock, u32 *data)
+{
+ u32 status;
+ int ret = 0;
+
+ /*
+ * We need set the correct magic number before writing the efuse to
+ * allow programming, and block other programming until we clear the
+ * magic number.
+ */
+ writel(SPRD_EFUSE_MAGIC_NUMBER,
+ efuse->base + SPRD_EFUSE_MAGIC_NUM);
+
+ /*
+ * Power on the efuse, enable programme and enable double data
+ * if asked.
+ */
+ sprd_efuse_set_prog_power(efuse, true);
+ sprd_efuse_set_prog_en(efuse, true);
+ sprd_efuse_set_data_double(efuse, doub);
+
+ /*
+ * Enable the auto-check function to validate if the programming is
+ * successful.
+ */
+ if (lock)
+ sprd_efuse_set_auto_check(efuse, true);
+
+ writel(*data, efuse->base + SPRD_EFUSE_MEM(blk));
+
+ /* Disable auto-check and data double after programming */
+ if (lock)
+ sprd_efuse_set_auto_check(efuse, false);
+ sprd_efuse_set_data_double(efuse, false);
+
+ /*
+ * Check the efuse error status, if the programming is successful,
+ * we should lock this efuse block to avoid programming again.
+ */
+ status = readl(efuse->base + SPRD_EFUSE_ERR_FLAG);
+ if (status) {
+ dev_err(efuse->dev,
+ "write error status %u of block %d\n", status, blk);
+
+ writel(SPRD_EFUSE_ERR_CLR_MASK,
+ efuse->base + SPRD_EFUSE_ERR_CLR);
+ ret = -EBUSY;
+ } else if (lock) {
+ sprd_efuse_set_prog_lock(efuse, lock);
+ writel(0, efuse->base + SPRD_EFUSE_MEM(blk));
+ sprd_efuse_set_prog_lock(efuse, false);
+ }
+
+ sprd_efuse_set_prog_power(efuse, false);
+ writel(0, efuse->base + SPRD_EFUSE_MAGIC_NUM);
+
+ return ret;
+}
+
+static int sprd_efuse_raw_read(struct sprd_efuse *efuse, int blk, u32 *val,
+ bool doub)
+{
+ u32 status;
+
+ /*
+ * Need power on the efuse before reading data from efuse, and will
+ * power off the efuse after reading process.
+ */
+ sprd_efuse_set_read_power(efuse, true);
+
+ /* Enable double data if asked */
+ sprd_efuse_set_data_double(efuse, doub);
+
+ /* Start to read data from efuse block */
+ *val = readl(efuse->base + SPRD_EFUSE_MEM(blk));
+
+ /* Disable double data */
+ sprd_efuse_set_data_double(efuse, false);
+
+ /* Power off the efuse */
+ sprd_efuse_set_read_power(efuse, false);
+
+ /*
+ * Check the efuse error status and clear them if there are some
+ * errors occurred.
+ */
+ status = readl(efuse->base + SPRD_EFUSE_ERR_FLAG);
+ if (status) {
+ dev_err(efuse->dev,
+ "read error status %d of block %d\n", status, blk);
+
+ writel(SPRD_EFUSE_ERR_CLR_MASK,
+ efuse->base + SPRD_EFUSE_ERR_CLR);
+ return -EBUSY;
+ }
+
+ return 0;
+}
+
+static int sprd_efuse_read(void *context, u32 offset, void *val, size_t bytes)
+{
+ struct sprd_efuse *efuse = context;
+ bool blk_double = efuse->data->blk_double;
+ u32 index = offset / SPRD_EFUSE_BLOCK_WIDTH + efuse->data->blk_offset;
+ u32 blk_offset = (offset % SPRD_EFUSE_BLOCK_WIDTH) * BITS_PER_BYTE;
+ u32 data;
+ int ret;
+
+ ret = sprd_efuse_lock(efuse);
+ if (ret)
+ return ret;
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret)
+ goto unlock;
+
+ ret = sprd_efuse_raw_read(efuse, index, &data, blk_double);
+ if (!ret) {
+ data >>= blk_offset;
+ memcpy(val, &data, bytes);
+ }
+
+ clk_disable_unprepare(efuse->clk);
+
+unlock:
+ sprd_efuse_unlock(efuse);
+ return ret;
+}
+
+static int sprd_efuse_write(void *context, u32 offset, void *val, size_t bytes)
+{
+ struct sprd_efuse *efuse = context;
+ bool blk_double = efuse->data->blk_double;
+ bool lock;
+ int ret;
+
+ ret = sprd_efuse_lock(efuse);
+ if (ret)
+ return ret;
+
+ ret = clk_prepare_enable(efuse->clk);
+ if (ret)
+ goto unlock;
+
+ /*
+ * If the writing bytes are equal with the block width, which means the
+ * whole block will be programmed. For this case, we should not allow
+ * this block to be programmed again by locking this block.
+ *
+ * If the block was programmed partially, we should allow this block to
+ * be programmed again.
+ */
+ if (bytes < SPRD_EFUSE_BLOCK_WIDTH)
+ lock = false;
+ else
+ lock = true;
+
+ ret = sprd_efuse_raw_prog(efuse, offset, blk_double, lock, val);
+
+ clk_disable_unprepare(efuse->clk);
+
+unlock:
+ sprd_efuse_unlock(efuse);
+ return ret;
+}
+
+static int sprd_efuse_probe(struct platform_device *pdev)
+{
+ struct device_node *np = pdev->dev.of_node;
+ struct nvmem_device *nvmem;
+ struct nvmem_config econfig = { };
+ struct sprd_efuse *efuse;
+ const struct sprd_efuse_variant_data *pdata;
+ int ret;
+
+ pdata = of_device_get_match_data(&pdev->dev);
+ if (!pdata) {
+ dev_err(&pdev->dev, "No matching driver data found\n");
+ return -EINVAL;
+ }
+
+ efuse = devm_kzalloc(&pdev->dev, sizeof(*efuse), GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ efuse->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(efuse->base))
+ return PTR_ERR(efuse->base);
+
+ ret = of_hwspin_lock_get_id(np, 0);
+ if (ret < 0) {
+ dev_err(&pdev->dev, "failed to get hwlock id\n");
+ return ret;
+ }
+
+ efuse->hwlock = devm_hwspin_lock_request_specific(&pdev->dev, ret);
+ if (!efuse->hwlock) {
+ dev_err(&pdev->dev, "failed to request hwlock\n");
+ return -ENXIO;
+ }
+
+ efuse->clk = devm_clk_get(&pdev->dev, "enable");
+ if (IS_ERR(efuse->clk)) {
+ dev_err(&pdev->dev, "failed to get enable clock\n");
+ return PTR_ERR(efuse->clk);
+ }
+
+ mutex_init(&efuse->mutex);
+ efuse->dev = &pdev->dev;
+ efuse->data = pdata;
+
+ econfig.stride = 1;
+ econfig.word_size = 1;
+ econfig.read_only = false;
+ econfig.name = "sprd-efuse";
+ econfig.size = efuse->data->blk_nums * SPRD_EFUSE_BLOCK_WIDTH;
+ econfig.add_legacy_fixed_of_cells = true;
+ econfig.reg_read = sprd_efuse_read;
+ econfig.reg_write = sprd_efuse_write;
+ econfig.priv = efuse;
+ econfig.dev = &pdev->dev;
+ nvmem = devm_nvmem_register(&pdev->dev, &econfig);
+ if (IS_ERR(nvmem)) {
+ dev_err(&pdev->dev, "failed to register nvmem\n");
+ return PTR_ERR(nvmem);
+ }
+
+ return 0;
+}
+
+static const struct of_device_id sprd_efuse_of_match[] = {
+ { .compatible = "sprd,ums312-efuse", .data = &ums312_data },
+ { }
+};
+MODULE_DEVICE_TABLE(of, sprd_efuse_of_match);
+
+static struct platform_driver sprd_efuse_driver = {
+ .probe = sprd_efuse_probe,
+ .driver = {
+ .name = "sprd-efuse",
+ .of_match_table = sprd_efuse_of_match,
+ },
+};
+
+module_platform_driver(sprd_efuse_driver);
+
+MODULE_AUTHOR("Freeman Liu <freeman.liu@spreadtrum.com>");
+MODULE_DESCRIPTION("Spreadtrum AP efuse driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/stm32-bsec-optee-ta.c b/drivers/nvmem/stm32-bsec-optee-ta.c
new file mode 100644
index 000000000..f89ce791d
--- /dev/null
+++ b/drivers/nvmem/stm32-bsec-optee-ta.c
@@ -0,0 +1,298 @@
+// SPDX-License-Identifier: GPL-2.0-or-later
+/*
+ * OP-TEE STM32MP BSEC PTA interface, used by STM32 ROMEM driver
+ *
+ * Copyright (C) 2022, STMicroelectronics - All Rights Reserved
+ */
+
+#include <linux/tee_drv.h>
+
+#include "stm32-bsec-optee-ta.h"
+
+/*
+ * Read OTP memory
+ *
+ * [in] value[0].a OTP start offset in byte
+ * [in] value[0].b Access type (0:shadow, 1:fuse, 2:lock)
+ * [out] memref[1].buffer Output buffer to store read values
+ * [out] memref[1].size Size of OTP to be read
+ *
+ * Return codes:
+ * TEE_SUCCESS - Invoke command success
+ * TEE_ERROR_BAD_PARAMETERS - Incorrect input param
+ * TEE_ERROR_ACCESS_DENIED - OTP not accessible by caller
+ */
+#define PTA_BSEC_READ_MEM 0x0
+
+/*
+ * Write OTP memory
+ *
+ * [in] value[0].a OTP start offset in byte
+ * [in] value[0].b Access type (0:shadow, 1:fuse, 2:lock)
+ * [in] memref[1].buffer Input buffer to read values
+ * [in] memref[1].size Size of OTP to be written
+ *
+ * Return codes:
+ * TEE_SUCCESS - Invoke command success
+ * TEE_ERROR_BAD_PARAMETERS - Incorrect input param
+ * TEE_ERROR_ACCESS_DENIED - OTP not accessible by caller
+ */
+#define PTA_BSEC_WRITE_MEM 0x1
+
+/* value of PTA_BSEC access type = value[in] b */
+#define SHADOW_ACCESS 0
+#define FUSE_ACCESS 1
+#define LOCK_ACCESS 2
+
+/* Bitfield definition for LOCK status */
+#define LOCK_PERM BIT(30)
+
+/* OP-TEE STM32MP BSEC TA UUID */
+static const uuid_t stm32mp_bsec_ta_uuid =
+ UUID_INIT(0x94cf71ad, 0x80e6, 0x40b5,
+ 0xa7, 0xc6, 0x3d, 0xc5, 0x01, 0xeb, 0x28, 0x03);
+
+/*
+ * Check whether this driver supports the BSEC TA in the TEE instance
+ * represented by the params (ver/data) to this function.
+ */
+static int stm32_bsec_optee_ta_match(struct tee_ioctl_version_data *ver,
+ const void *data)
+{
+ /* Currently this driver only supports GP compliant, OP-TEE based TA */
+ if ((ver->impl_id == TEE_IMPL_ID_OPTEE) &&
+ (ver->gen_caps & TEE_GEN_CAP_GP))
+ return 1;
+ else
+ return 0;
+}
+
+/* Open a session to OP-TEE for STM32MP BSEC TA */
+static int stm32_bsec_ta_open_session(struct tee_context *ctx, u32 *id)
+{
+ struct tee_ioctl_open_session_arg sess_arg;
+ int rc;
+
+ memset(&sess_arg, 0, sizeof(sess_arg));
+ export_uuid(sess_arg.uuid, &stm32mp_bsec_ta_uuid);
+ sess_arg.clnt_login = TEE_IOCTL_LOGIN_REE_KERNEL;
+ sess_arg.num_params = 0;
+
+ rc = tee_client_open_session(ctx, &sess_arg, NULL);
+ if ((rc < 0) || (sess_arg.ret != 0)) {
+ pr_err("%s: tee_client_open_session failed err:%#x, ret:%#x\n",
+ __func__, sess_arg.ret, rc);
+ if (!rc)
+ rc = -EINVAL;
+ } else {
+ *id = sess_arg.session;
+ }
+
+ return rc;
+}
+
+/* close a session to OP-TEE for STM32MP BSEC TA */
+static void stm32_bsec_ta_close_session(void *ctx, u32 id)
+{
+ tee_client_close_session(ctx, id);
+}
+
+/* stm32_bsec_optee_ta_open() - initialize the STM32MP BSEC TA */
+int stm32_bsec_optee_ta_open(struct tee_context **ctx)
+{
+ struct tee_context *tee_ctx;
+ u32 session_id;
+ int rc;
+
+ /* Open context with TEE driver */
+ tee_ctx = tee_client_open_context(NULL, stm32_bsec_optee_ta_match, NULL, NULL);
+ if (IS_ERR(tee_ctx)) {
+ rc = PTR_ERR(tee_ctx);
+ if (rc == -ENOENT)
+ return -EPROBE_DEFER;
+ pr_err("%s: tee_client_open_context failed (%d)\n", __func__, rc);
+
+ return rc;
+ }
+
+ /* Check STM32MP BSEC TA presence */
+ rc = stm32_bsec_ta_open_session(tee_ctx, &session_id);
+ if (rc) {
+ tee_client_close_context(tee_ctx);
+ return rc;
+ }
+
+ stm32_bsec_ta_close_session(tee_ctx, session_id);
+
+ *ctx = tee_ctx;
+
+ return 0;
+}
+
+/* stm32_bsec_optee_ta_open() - release the PTA STM32MP BSEC TA */
+void stm32_bsec_optee_ta_close(void *ctx)
+{
+ tee_client_close_context(ctx);
+}
+
+/* stm32_bsec_optee_ta_read() - nvmem read access using PTA client driver */
+int stm32_bsec_optee_ta_read(struct tee_context *ctx, unsigned int offset,
+ void *buf, size_t bytes)
+{
+ struct tee_shm *shm;
+ struct tee_ioctl_invoke_arg arg;
+ struct tee_param param[2];
+ u8 *shm_buf;
+ u32 start, num_bytes;
+ int ret;
+ u32 session_id;
+
+ ret = stm32_bsec_ta_open_session(ctx, &session_id);
+ if (ret)
+ return ret;
+
+ memset(&arg, 0, sizeof(arg));
+ memset(&param, 0, sizeof(param));
+
+ arg.func = PTA_BSEC_READ_MEM;
+ arg.session = session_id;
+ arg.num_params = 2;
+
+ /* align access on 32bits */
+ start = ALIGN_DOWN(offset, 4);
+ num_bytes = round_up(offset + bytes - start, 4);
+ param[0].attr = TEE_IOCTL_PARAM_ATTR_TYPE_VALUE_INPUT;
+ param[0].u.value.a = start;
+ param[0].u.value.b = SHADOW_ACCESS;
+
+ shm = tee_shm_alloc_kernel_buf(ctx, num_bytes);
+ if (IS_ERR(shm)) {
+ ret = PTR_ERR(shm);
+ goto out_tee_session;
+ }
+
+ param[1].attr = TEE_IOCTL_PARAM_ATTR_TYPE_MEMREF_OUTPUT;
+ param[1].u.memref.shm = shm;
+ param[1].u.memref.size = num_bytes;
+
+ ret = tee_client_invoke_func(ctx, &arg, param);
+ if (ret < 0 || arg.ret != 0) {
+ pr_err("TA_BSEC invoke failed TEE err:%#x, ret:%#x\n",
+ arg.ret, ret);
+ if (!ret)
+ ret = -EIO;
+ }
+ if (!ret) {
+ shm_buf = tee_shm_get_va(shm, 0);
+ if (IS_ERR(shm_buf)) {
+ ret = PTR_ERR(shm_buf);
+ pr_err("tee_shm_get_va failed for transmit (%d)\n", ret);
+ } else {
+ /* read data from 32 bits aligned buffer */
+ memcpy(buf, &shm_buf[offset % 4], bytes);
+ }
+ }
+
+ tee_shm_free(shm);
+
+out_tee_session:
+ stm32_bsec_ta_close_session(ctx, session_id);
+
+ return ret;
+}
+
+/* stm32_bsec_optee_ta_write() - nvmem write access using PTA client driver */
+int stm32_bsec_optee_ta_write(struct tee_context *ctx, unsigned int lower,
+ unsigned int offset, void *buf, size_t bytes)
+{ struct tee_shm *shm;
+ struct tee_ioctl_invoke_arg arg;
+ struct tee_param param[2];
+ u8 *shm_buf;
+ int ret;
+ u32 session_id;
+
+ ret = stm32_bsec_ta_open_session(ctx, &session_id);
+ if (ret)
+ return ret;
+
+ /* Allow only writing complete 32-bits aligned words */
+ if ((bytes % 4) || (offset % 4))
+ return -EINVAL;
+
+ memset(&arg, 0, sizeof(arg));
+ memset(&param, 0, sizeof(param));
+
+ arg.func = PTA_BSEC_WRITE_MEM;
+ arg.session = session_id;
+ arg.num_params = 2;
+
+ param[0].attr = TEE_IOCTL_PARAM_ATTR_TYPE_VALUE_INPUT;
+ param[0].u.value.a = offset;
+ param[0].u.value.b = FUSE_ACCESS;
+
+ shm = tee_shm_alloc_kernel_buf(ctx, bytes);
+ if (IS_ERR(shm)) {
+ ret = PTR_ERR(shm);
+ goto out_tee_session;
+ }
+
+ param[1].attr = TEE_IOCTL_PARAM_ATTR_TYPE_MEMREF_INPUT;
+ param[1].u.memref.shm = shm;
+ param[1].u.memref.size = bytes;
+
+ shm_buf = tee_shm_get_va(shm, 0);
+ if (IS_ERR(shm_buf)) {
+ ret = PTR_ERR(shm_buf);
+ pr_err("tee_shm_get_va failed for transmit (%d)\n", ret);
+ tee_shm_free(shm);
+
+ goto out_tee_session;
+ }
+
+ memcpy(shm_buf, buf, bytes);
+
+ ret = tee_client_invoke_func(ctx, &arg, param);
+ if (ret < 0 || arg.ret != 0) {
+ pr_err("TA_BSEC invoke failed TEE err:%#x, ret:%#x\n", arg.ret, ret);
+ if (!ret)
+ ret = -EIO;
+ }
+ pr_debug("Write OTPs %d to %zu, ret=%d\n", offset / 4, (offset + bytes) / 4, ret);
+
+ /* Lock the upper OTPs with ECC protection, word programming only */
+ if (!ret && ((offset + bytes) >= (lower * 4))) {
+ u32 start, nb_lock;
+ u32 *lock = (u32 *)shm_buf;
+ int i;
+
+ /*
+ * don't lock the lower OTPs, no ECC protection and incremental
+ * bit programming, a second write is allowed
+ */
+ start = max_t(u32, offset, lower * 4);
+ nb_lock = (offset + bytes - start) / 4;
+
+ param[0].u.value.a = start;
+ param[0].u.value.b = LOCK_ACCESS;
+ param[1].u.memref.size = nb_lock * 4;
+
+ for (i = 0; i < nb_lock; i++)
+ lock[i] = LOCK_PERM;
+
+ ret = tee_client_invoke_func(ctx, &arg, param);
+ if (ret < 0 || arg.ret != 0) {
+ pr_err("TA_BSEC invoke failed TEE err:%#x, ret:%#x\n", arg.ret, ret);
+ if (!ret)
+ ret = -EIO;
+ }
+ pr_debug("Lock upper OTPs %d to %d, ret=%d\n",
+ start / 4, start / 4 + nb_lock, ret);
+ }
+
+ tee_shm_free(shm);
+
+out_tee_session:
+ stm32_bsec_ta_close_session(ctx, session_id);
+
+ return ret;
+}
diff --git a/drivers/nvmem/stm32-bsec-optee-ta.h b/drivers/nvmem/stm32-bsec-optee-ta.h
new file mode 100644
index 000000000..3966a0535
--- /dev/null
+++ b/drivers/nvmem/stm32-bsec-optee-ta.h
@@ -0,0 +1,80 @@
+/* SPDX-License-Identifier: GPL-2.0-or-later */
+/*
+ * OP-TEE STM32MP BSEC PTA interface, used by STM32 ROMEM driver
+ *
+ * Copyright (C) 2022, STMicroelectronics - All Rights Reserved
+ */
+
+#if IS_ENABLED(CONFIG_NVMEM_STM32_BSEC_OPTEE_TA)
+/**
+ * stm32_bsec_optee_ta_open() - initialize the STM32 BSEC TA
+ * @ctx: the OP-TEE context on success
+ *
+ * Return:
+ * On success, 0. On failure, -errno.
+ */
+int stm32_bsec_optee_ta_open(struct tee_context **ctx);
+
+/**
+ * stm32_bsec_optee_ta_close() - release the STM32 BSEC TA
+ * @ctx: the OP-TEE context
+ *
+ * This function used to clean the OP-TEE resources initialized in
+ * stm32_bsec_optee_ta_open(); it can be used as callback to
+ * devm_add_action_or_reset()
+ */
+void stm32_bsec_optee_ta_close(void *ctx);
+
+/**
+ * stm32_bsec_optee_ta_read() - nvmem read access using TA client driver
+ * @ctx: the OP-TEE context provided by stm32_bsec_optee_ta_open
+ * @offset: nvmem offset
+ * @buf: buffer to fill with nvem values
+ * @bytes: number of bytes to read
+ *
+ * Return:
+ * On success, 0. On failure, -errno.
+ */
+int stm32_bsec_optee_ta_read(struct tee_context *ctx, unsigned int offset,
+ void *buf, size_t bytes);
+
+/**
+ * stm32_bsec_optee_ta_write() - nvmem write access using TA client driver
+ * @ctx: the OP-TEE context provided by stm32_bsec_optee_ta_open
+ * @lower: number of lower OTP, not protected by ECC
+ * @offset: nvmem offset
+ * @buf: buffer with nvem values
+ * @bytes: number of bytes to write
+ *
+ * Return:
+ * On success, 0. On failure, -errno.
+ */
+int stm32_bsec_optee_ta_write(struct tee_context *ctx, unsigned int lower,
+ unsigned int offset, void *buf, size_t bytes);
+
+#else
+
+static inline int stm32_bsec_optee_ta_open(struct tee_context **ctx)
+{
+ return -EOPNOTSUPP;
+}
+
+static inline void stm32_bsec_optee_ta_close(void *ctx)
+{
+}
+
+static inline int stm32_bsec_optee_ta_read(struct tee_context *ctx,
+ unsigned int offset, void *buf,
+ size_t bytes)
+{
+ return -EOPNOTSUPP;
+}
+
+static inline int stm32_bsec_optee_ta_write(struct tee_context *ctx,
+ unsigned int lower,
+ unsigned int offset, void *buf,
+ size_t bytes)
+{
+ return -EOPNOTSUPP;
+}
+#endif /* CONFIG_NVMEM_STM32_BSEC_OPTEE_TA */
diff --git a/drivers/nvmem/stm32-romem.c b/drivers/nvmem/stm32-romem.c
new file mode 100644
index 000000000..82879b1c9
--- /dev/null
+++ b/drivers/nvmem/stm32-romem.c
@@ -0,0 +1,312 @@
+// SPDX-License-Identifier: GPL-2.0
+/*
+ * STM32 Factory-programmed memory read access driver
+ *
+ * Copyright (C) 2017, STMicroelectronics - All Rights Reserved
+ * Author: Fabrice Gasnier <fabrice.gasnier@st.com> for STMicroelectronics.
+ */
+
+#include <linux/arm-smccc.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/property.h>
+#include <linux/tee_drv.h>
+
+#include "stm32-bsec-optee-ta.h"
+
+/* BSEC secure service access from non-secure */
+#define STM32_SMC_BSEC 0x82001003
+#define STM32_SMC_READ_SHADOW 0x01
+#define STM32_SMC_PROG_OTP 0x02
+#define STM32_SMC_WRITE_SHADOW 0x03
+#define STM32_SMC_READ_OTP 0x04
+
+/* shadow registers offset */
+#define STM32MP15_BSEC_DATA0 0x200
+
+struct stm32_romem_cfg {
+ int size;
+ u8 lower;
+ bool ta;
+};
+
+struct stm32_romem_priv {
+ void __iomem *base;
+ struct nvmem_config cfg;
+ u8 lower;
+ struct tee_context *ctx;
+};
+
+static int stm32_romem_read(void *context, unsigned int offset, void *buf,
+ size_t bytes)
+{
+ struct stm32_romem_priv *priv = context;
+ u8 *buf8 = buf;
+ int i;
+
+ for (i = offset; i < offset + bytes; i++)
+ *buf8++ = readb_relaxed(priv->base + i);
+
+ return 0;
+}
+
+static int stm32_bsec_smc(u8 op, u32 otp, u32 data, u32 *result)
+{
+#if IS_ENABLED(CONFIG_HAVE_ARM_SMCCC)
+ struct arm_smccc_res res;
+
+ arm_smccc_smc(STM32_SMC_BSEC, op, otp, data, 0, 0, 0, 0, &res);
+ if (res.a0)
+ return -EIO;
+
+ if (result)
+ *result = (u32)res.a1;
+
+ return 0;
+#else
+ return -ENXIO;
+#endif
+}
+
+static int stm32_bsec_read(void *context, unsigned int offset, void *buf,
+ size_t bytes)
+{
+ struct stm32_romem_priv *priv = context;
+ struct device *dev = priv->cfg.dev;
+ u32 roffset, rbytes, val;
+ u8 *buf8 = buf, *val8 = (u8 *)&val;
+ int i, j = 0, ret, skip_bytes, size;
+
+ /* Round unaligned access to 32-bits */
+ roffset = rounddown(offset, 4);
+ skip_bytes = offset & 0x3;
+ rbytes = roundup(bytes + skip_bytes, 4);
+
+ if (roffset + rbytes > priv->cfg.size)
+ return -EINVAL;
+
+ for (i = roffset; (i < roffset + rbytes); i += 4) {
+ u32 otp = i >> 2;
+
+ if (otp < priv->lower) {
+ /* read lower data from shadow registers */
+ val = readl_relaxed(
+ priv->base + STM32MP15_BSEC_DATA0 + i);
+ } else {
+ ret = stm32_bsec_smc(STM32_SMC_READ_SHADOW, otp, 0,
+ &val);
+ if (ret) {
+ dev_err(dev, "Can't read data%d (%d)\n", otp,
+ ret);
+ return ret;
+ }
+ }
+ /* skip first bytes in case of unaligned read */
+ if (skip_bytes)
+ size = min(bytes, (size_t)(4 - skip_bytes));
+ else
+ size = min(bytes, (size_t)4);
+ memcpy(&buf8[j], &val8[skip_bytes], size);
+ bytes -= size;
+ j += size;
+ skip_bytes = 0;
+ }
+
+ return 0;
+}
+
+static int stm32_bsec_write(void *context, unsigned int offset, void *buf,
+ size_t bytes)
+{
+ struct stm32_romem_priv *priv = context;
+ struct device *dev = priv->cfg.dev;
+ u32 *buf32 = buf;
+ int ret, i;
+
+ /* Allow only writing complete 32-bits aligned words */
+ if ((bytes % 4) || (offset % 4))
+ return -EINVAL;
+
+ for (i = offset; i < offset + bytes; i += 4) {
+ ret = stm32_bsec_smc(STM32_SMC_PROG_OTP, i >> 2, *buf32++,
+ NULL);
+ if (ret) {
+ dev_err(dev, "Can't write data%d (%d)\n", i >> 2, ret);
+ return ret;
+ }
+ }
+
+ if (offset + bytes >= priv->lower * 4)
+ dev_warn(dev, "Update of upper OTPs with ECC protection (word programming, only once)\n");
+
+ return 0;
+}
+
+static int stm32_bsec_pta_read(void *context, unsigned int offset, void *buf,
+ size_t bytes)
+{
+ struct stm32_romem_priv *priv = context;
+
+ return stm32_bsec_optee_ta_read(priv->ctx, offset, buf, bytes);
+}
+
+static int stm32_bsec_pta_write(void *context, unsigned int offset, void *buf,
+ size_t bytes)
+{
+ struct stm32_romem_priv *priv = context;
+
+ return stm32_bsec_optee_ta_write(priv->ctx, priv->lower, offset, buf, bytes);
+}
+
+static bool stm32_bsec_smc_check(void)
+{
+ u32 val;
+ int ret;
+
+ /* check that the OP-TEE support the BSEC SMC (legacy mode) */
+ ret = stm32_bsec_smc(STM32_SMC_READ_SHADOW, 0, 0, &val);
+
+ return !ret;
+}
+
+static bool optee_presence_check(void)
+{
+ struct device_node *np;
+ bool tee_detected = false;
+
+ /* check that the OP-TEE node is present and available. */
+ np = of_find_compatible_node(NULL, NULL, "linaro,optee-tz");
+ if (np && of_device_is_available(np))
+ tee_detected = true;
+ of_node_put(np);
+
+ return tee_detected;
+}
+
+static int stm32_romem_probe(struct platform_device *pdev)
+{
+ const struct stm32_romem_cfg *cfg;
+ struct device *dev = &pdev->dev;
+ struct stm32_romem_priv *priv;
+ struct resource *res;
+ int rc;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ priv->cfg.name = "stm32-romem";
+ priv->cfg.word_size = 1;
+ priv->cfg.stride = 1;
+ priv->cfg.dev = dev;
+ priv->cfg.priv = priv;
+ priv->cfg.owner = THIS_MODULE;
+ priv->cfg.type = NVMEM_TYPE_OTP;
+ priv->cfg.add_legacy_fixed_of_cells = true;
+
+ priv->lower = 0;
+
+ cfg = device_get_match_data(dev);
+ if (!cfg) {
+ priv->cfg.read_only = true;
+ priv->cfg.size = resource_size(res);
+ priv->cfg.reg_read = stm32_romem_read;
+ } else {
+ priv->cfg.size = cfg->size;
+ priv->lower = cfg->lower;
+ if (cfg->ta || optee_presence_check()) {
+ rc = stm32_bsec_optee_ta_open(&priv->ctx);
+ if (rc) {
+ /* wait for OP-TEE client driver to be up and ready */
+ if (rc == -EPROBE_DEFER)
+ return -EPROBE_DEFER;
+ /* BSEC PTA is required or SMC not supported */
+ if (cfg->ta || !stm32_bsec_smc_check())
+ return rc;
+ }
+ }
+ if (priv->ctx) {
+ rc = devm_add_action_or_reset(dev, stm32_bsec_optee_ta_close, priv->ctx);
+ if (rc) {
+ dev_err(dev, "devm_add_action_or_reset() failed (%d)\n", rc);
+ return rc;
+ }
+ priv->cfg.reg_read = stm32_bsec_pta_read;
+ priv->cfg.reg_write = stm32_bsec_pta_write;
+ } else {
+ priv->cfg.reg_read = stm32_bsec_read;
+ priv->cfg.reg_write = stm32_bsec_write;
+ }
+ }
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(dev, &priv->cfg));
+}
+
+/*
+ * STM32MP15/13 BSEC OTP regions: 4096 OTP bits (with 3072 effective bits)
+ * => 96 x 32-bits data words
+ * - Lower: 1K bits, 2:1 redundancy, incremental bit programming
+ * => 32 (x 32-bits) lower shadow registers = words 0 to 31
+ * - Upper: 2K bits, ECC protection, word programming only
+ * => 64 (x 32-bits) = words 32 to 95
+ */
+static const struct stm32_romem_cfg stm32mp15_bsec_cfg = {
+ .size = 384,
+ .lower = 32,
+ .ta = false,
+};
+
+static const struct stm32_romem_cfg stm32mp13_bsec_cfg = {
+ .size = 384,
+ .lower = 32,
+ .ta = true,
+};
+
+/*
+ * STM32MP25 BSEC OTP: 3 regions of 32-bits data words
+ * lower OTP (OTP0 to OTP127), bitwise (1-bit) programmable
+ * mid OTP (OTP128 to OTP255), bulk (32-bit) programmable
+ * upper OTP (OTP256 to OTP383), bulk (32-bit) programmable
+ * but no access to HWKEY and ECIES key: limited at OTP367
+ */
+static const struct stm32_romem_cfg stm32mp25_bsec_cfg = {
+ .size = 368 * 4,
+ .lower = 127,
+ .ta = true,
+};
+
+static const struct of_device_id stm32_romem_of_match[] __maybe_unused = {
+ { .compatible = "st,stm32f4-otp", }, {
+ .compatible = "st,stm32mp15-bsec",
+ .data = (void *)&stm32mp15_bsec_cfg,
+ }, {
+ .compatible = "st,stm32mp13-bsec",
+ .data = (void *)&stm32mp13_bsec_cfg,
+ }, {
+ .compatible = "st,stm32mp25-bsec",
+ .data = (void *)&stm32mp25_bsec_cfg,
+ },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, stm32_romem_of_match);
+
+static struct platform_driver stm32_romem_driver = {
+ .probe = stm32_romem_probe,
+ .driver = {
+ .name = "stm32-romem",
+ .of_match_table = of_match_ptr(stm32_romem_of_match),
+ },
+};
+module_platform_driver(stm32_romem_driver);
+
+MODULE_AUTHOR("Fabrice Gasnier <fabrice.gasnier@st.com>");
+MODULE_DESCRIPTION("STMicroelectronics STM32 RO-MEM");
+MODULE_ALIAS("platform:nvmem-stm32-romem");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/sunplus-ocotp.c b/drivers/nvmem/sunplus-ocotp.c
new file mode 100644
index 000000000..6884def3b
--- /dev/null
+++ b/drivers/nvmem/sunplus-ocotp.c
@@ -0,0 +1,228 @@
+// SPDX-License-Identifier: GPL-2.0
+
+/*
+ * The OCOTP driver for Sunplus SP7021
+ *
+ * Copyright (C) 2019 Sunplus Technology Inc., All rights reserved.
+ */
+
+#include <linux/bitfield.h>
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+
+/*
+ * OTP memory
+ * Each bank contains 4 words (32 bits).
+ * Bank 0 starts at offset 0 from the base.
+ */
+
+#define OTP_WORDS_PER_BANK 4
+#define OTP_WORD_SIZE sizeof(u32)
+#define OTP_BIT_ADDR_OF_BANK (8 * OTP_WORD_SIZE * OTP_WORDS_PER_BANK)
+#define QAC628_OTP_NUM_BANKS 8
+#define QAC628_OTP_SIZE (QAC628_OTP_NUM_BANKS * OTP_WORDS_PER_BANK * OTP_WORD_SIZE)
+#define OTP_READ_TIMEOUT_US 200000
+
+/* HB_GPIO */
+#define ADDRESS_8_DATA 0x20
+
+/* OTP_RX */
+#define OTP_CONTROL_2 0x48
+#define OTP_RD_PERIOD GENMASK(15, 8)
+#define OTP_RD_PERIOD_MASK ~GENMASK(15, 8)
+#define CPU_CLOCK FIELD_PREP(OTP_RD_PERIOD, 30)
+#define SEL_BAK_KEY2 BIT(5)
+#define SEL_BAK_KEY2_MASK ~BIT(5)
+#define SW_TRIM_EN BIT(4)
+#define SW_TRIM_EN_MASK ~BIT(4)
+#define SEL_BAK_KEY BIT(3)
+#define SEL_BAK_KEY_MASK ~BIT(3)
+#define OTP_READ BIT(2)
+#define OTP_LOAD_SECURE_DATA BIT(1)
+#define OTP_LOAD_SECURE_DATA_MASK ~BIT(1)
+#define OTP_DO_CRC BIT(0)
+#define OTP_DO_CRC_MASK ~BIT(0)
+#define OTP_STATUS 0x4c
+#define OTP_READ_DONE BIT(4)
+#define OTP_READ_DONE_MASK ~BIT(4)
+#define OTP_LOAD_SECURE_DONE_MASK ~BIT(2)
+#define OTP_READ_ADDRESS 0x50
+
+enum base_type {
+ HB_GPIO,
+ OTPRX,
+ BASEMAX,
+};
+
+struct sp_ocotp_priv {
+ struct device *dev;
+ void __iomem *base[BASEMAX];
+ struct clk *clk;
+};
+
+struct sp_ocotp_data {
+ int size;
+};
+
+static const struct sp_ocotp_data sp_otp_v0 = {
+ .size = QAC628_OTP_SIZE,
+};
+
+static int sp_otp_read_real(struct sp_ocotp_priv *otp, int addr, char *value)
+{
+ unsigned int addr_data;
+ unsigned int byte_shift;
+ unsigned int status;
+ int ret;
+
+ addr_data = addr % (OTP_WORD_SIZE * OTP_WORDS_PER_BANK);
+ addr_data = addr_data / OTP_WORD_SIZE;
+
+ byte_shift = addr % (OTP_WORD_SIZE * OTP_WORDS_PER_BANK);
+ byte_shift = byte_shift % OTP_WORD_SIZE;
+
+ addr = addr / (OTP_WORD_SIZE * OTP_WORDS_PER_BANK);
+ addr = addr * OTP_BIT_ADDR_OF_BANK;
+
+ writel(readl(otp->base[OTPRX] + OTP_STATUS) & OTP_READ_DONE_MASK &
+ OTP_LOAD_SECURE_DONE_MASK, otp->base[OTPRX] + OTP_STATUS);
+ writel(addr, otp->base[OTPRX] + OTP_READ_ADDRESS);
+ writel(readl(otp->base[OTPRX] + OTP_CONTROL_2) | OTP_READ,
+ otp->base[OTPRX] + OTP_CONTROL_2);
+ writel(readl(otp->base[OTPRX] + OTP_CONTROL_2) & SEL_BAK_KEY2_MASK & SW_TRIM_EN_MASK
+ & SEL_BAK_KEY_MASK & OTP_LOAD_SECURE_DATA_MASK & OTP_DO_CRC_MASK,
+ otp->base[OTPRX] + OTP_CONTROL_2);
+ writel((readl(otp->base[OTPRX] + OTP_CONTROL_2) & OTP_RD_PERIOD_MASK) | CPU_CLOCK,
+ otp->base[OTPRX] + OTP_CONTROL_2);
+
+ ret = readl_poll_timeout(otp->base[OTPRX] + OTP_STATUS, status,
+ status & OTP_READ_DONE, 10, OTP_READ_TIMEOUT_US);
+
+ if (ret < 0)
+ return ret;
+
+ *value = (readl(otp->base[HB_GPIO] + ADDRESS_8_DATA + addr_data * OTP_WORD_SIZE)
+ >> (8 * byte_shift)) & 0xff;
+
+ return ret;
+}
+
+static int sp_ocotp_read(void *priv, unsigned int offset, void *value, size_t bytes)
+{
+ struct sp_ocotp_priv *otp = priv;
+ unsigned int addr;
+ char *buf = value;
+ char val[4];
+ int ret;
+
+ ret = clk_enable(otp->clk);
+ if (ret)
+ return ret;
+
+ *buf = 0;
+ for (addr = offset; addr < (offset + bytes); addr++) {
+ ret = sp_otp_read_real(otp, addr, val);
+ if (ret < 0) {
+ dev_err(otp->dev, "OTP read fail:%d at %d", ret, addr);
+ goto disable_clk;
+ }
+
+ *buf++ = *val;
+ }
+
+disable_clk:
+ clk_disable(otp->clk);
+
+ return ret;
+}
+
+static struct nvmem_config sp_ocotp_nvmem_config = {
+ .name = "sp-ocotp",
+ .add_legacy_fixed_of_cells = true,
+ .read_only = true,
+ .word_size = 1,
+ .size = QAC628_OTP_SIZE,
+ .stride = 1,
+ .reg_read = sp_ocotp_read,
+ .owner = THIS_MODULE,
+};
+
+static int sp_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct nvmem_device *nvmem;
+ struct sp_ocotp_priv *otp;
+ int ret;
+
+ otp = devm_kzalloc(dev, sizeof(*otp), GFP_KERNEL);
+ if (!otp)
+ return -ENOMEM;
+
+ otp->dev = dev;
+
+ otp->base[HB_GPIO] = devm_platform_ioremap_resource_byname(pdev, "hb_gpio");
+ if (IS_ERR(otp->base[HB_GPIO]))
+ return PTR_ERR(otp->base[HB_GPIO]);
+
+ otp->base[OTPRX] = devm_platform_ioremap_resource_byname(pdev, "otprx");
+ if (IS_ERR(otp->base[OTPRX]))
+ return PTR_ERR(otp->base[OTPRX]);
+
+ otp->clk = devm_clk_get(&pdev->dev, NULL);
+ if (IS_ERR(otp->clk))
+ return dev_err_probe(&pdev->dev, PTR_ERR(otp->clk),
+ "devm_clk_get fail\n");
+
+ ret = clk_prepare(otp->clk);
+ if (ret < 0) {
+ dev_err(dev, "failed to prepare clk: %d\n", ret);
+ return ret;
+ }
+
+ sp_ocotp_nvmem_config.priv = otp;
+ sp_ocotp_nvmem_config.dev = dev;
+
+ nvmem = devm_nvmem_register(dev, &sp_ocotp_nvmem_config);
+ if (IS_ERR(nvmem)) {
+ ret = dev_err_probe(&pdev->dev, PTR_ERR(nvmem),
+ "register nvmem device fail\n");
+ goto err;
+ }
+
+ platform_set_drvdata(pdev, nvmem);
+
+ dev_dbg(dev, "banks:%d x wpb:%d x wsize:%d = %d",
+ (int)QAC628_OTP_NUM_BANKS, (int)OTP_WORDS_PER_BANK,
+ (int)OTP_WORD_SIZE, (int)QAC628_OTP_SIZE);
+
+ return 0;
+err:
+ clk_unprepare(otp->clk);
+ return ret;
+}
+
+static const struct of_device_id sp_ocotp_dt_ids[] = {
+ { .compatible = "sunplus,sp7021-ocotp", .data = &sp_otp_v0 },
+ { }
+};
+MODULE_DEVICE_TABLE(of, sp_ocotp_dt_ids);
+
+static struct platform_driver sp_otp_driver = {
+ .probe = sp_ocotp_probe,
+ .driver = {
+ .name = "sunplus,sp7021-ocotp",
+ .of_match_table = sp_ocotp_dt_ids,
+ }
+};
+module_platform_driver(sp_otp_driver);
+
+MODULE_AUTHOR("Vincent Shih <vincent.sunplus@gmail.com>");
+MODULE_DESCRIPTION("Sunplus On-Chip OTP driver");
+MODULE_LICENSE("GPL");
+
diff --git a/drivers/nvmem/sunxi_sid.c b/drivers/nvmem/sunxi_sid.c
new file mode 100644
index 000000000..ba14a7620
--- /dev/null
+++ b/drivers/nvmem/sunxi_sid.c
@@ -0,0 +1,232 @@
+// SPDX-License-Identifier: GPL-2.0+
+/*
+ * Allwinner sunXi SoCs Security ID support.
+ *
+ * Copyright (c) 2013 Oliver Schinagl <oliver@schinagl.nl>
+ * Copyright (C) 2014 Maxime Ripard <maxime.ripard@free-electrons.com>
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/iopoll.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+#include <linux/random.h>
+
+/* Registers and special values for doing register-based SID readout on H3 */
+#define SUN8I_SID_PRCTL 0x40
+#define SUN8I_SID_RDKEY 0x60
+
+#define SUN8I_SID_OFFSET_MASK 0x1FF
+#define SUN8I_SID_OFFSET_SHIFT 16
+#define SUN8I_SID_OP_LOCK (0xAC << 8)
+#define SUN8I_SID_READ BIT(1)
+
+struct sunxi_sid_cfg {
+ u32 value_offset;
+ u32 size;
+ bool need_register_readout;
+};
+
+struct sunxi_sid {
+ void __iomem *base;
+ u32 value_offset;
+};
+
+static int sunxi_sid_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct sunxi_sid *sid = context;
+ u32 word;
+
+ /* .stride = 4 so offset is guaranteed to be aligned */
+ __ioread32_copy(val, sid->base + sid->value_offset + offset, bytes / 4);
+
+ val += round_down(bytes, 4);
+ offset += round_down(bytes, 4);
+ bytes = bytes % 4;
+
+ if (!bytes)
+ return 0;
+
+ /* Handle any trailing bytes */
+ word = readl_relaxed(sid->base + sid->value_offset + offset);
+ memcpy(val, &word, bytes);
+
+ return 0;
+}
+
+static int sun8i_sid_register_readout(const struct sunxi_sid *sid,
+ const unsigned int offset,
+ u32 *out)
+{
+ u32 reg_val;
+ int ret;
+
+ /* Set word, lock access, and set read command */
+ reg_val = (offset & SUN8I_SID_OFFSET_MASK)
+ << SUN8I_SID_OFFSET_SHIFT;
+ reg_val |= SUN8I_SID_OP_LOCK | SUN8I_SID_READ;
+ writel(reg_val, sid->base + SUN8I_SID_PRCTL);
+
+ ret = readl_poll_timeout(sid->base + SUN8I_SID_PRCTL, reg_val,
+ !(reg_val & SUN8I_SID_READ), 100, 250000);
+ if (ret)
+ return ret;
+
+ if (out)
+ *out = readl(sid->base + SUN8I_SID_RDKEY);
+
+ writel(0, sid->base + SUN8I_SID_PRCTL);
+
+ return 0;
+}
+
+/*
+ * On Allwinner H3, the value on the 0x200 offset of the SID controller seems
+ * to be not reliable at all.
+ * Read by the registers instead.
+ */
+static int sun8i_sid_read_by_reg(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct sunxi_sid *sid = context;
+ u32 word;
+ int ret;
+
+ /* .stride = 4 so offset is guaranteed to be aligned */
+ while (bytes >= 4) {
+ ret = sun8i_sid_register_readout(sid, offset, val);
+ if (ret)
+ return ret;
+
+ val += 4;
+ offset += 4;
+ bytes -= 4;
+ }
+
+ if (!bytes)
+ return 0;
+
+ /* Handle any trailing bytes */
+ ret = sun8i_sid_register_readout(sid, offset, &word);
+ if (ret)
+ return ret;
+
+ memcpy(val, &word, bytes);
+
+ return 0;
+}
+
+static int sunxi_sid_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct nvmem_config *nvmem_cfg;
+ struct nvmem_device *nvmem;
+ struct sunxi_sid *sid;
+ int size;
+ char *randomness;
+ const struct sunxi_sid_cfg *cfg;
+
+ sid = devm_kzalloc(dev, sizeof(*sid), GFP_KERNEL);
+ if (!sid)
+ return -ENOMEM;
+
+ cfg = of_device_get_match_data(dev);
+ if (!cfg)
+ return -EINVAL;
+ sid->value_offset = cfg->value_offset;
+
+ sid->base = devm_platform_ioremap_resource(pdev, 0);
+ if (IS_ERR(sid->base))
+ return PTR_ERR(sid->base);
+
+ size = cfg->size;
+
+ nvmem_cfg = devm_kzalloc(dev, sizeof(*nvmem_cfg), GFP_KERNEL);
+ if (!nvmem_cfg)
+ return -ENOMEM;
+
+ nvmem_cfg->dev = dev;
+ nvmem_cfg->name = "sunxi-sid";
+ nvmem_cfg->type = NVMEM_TYPE_OTP;
+ nvmem_cfg->add_legacy_fixed_of_cells = true;
+ nvmem_cfg->read_only = true;
+ nvmem_cfg->size = cfg->size;
+ nvmem_cfg->word_size = 1;
+ nvmem_cfg->stride = 4;
+ nvmem_cfg->priv = sid;
+ if (cfg->need_register_readout)
+ nvmem_cfg->reg_read = sun8i_sid_read_by_reg;
+ else
+ nvmem_cfg->reg_read = sunxi_sid_read;
+
+ nvmem = devm_nvmem_register(dev, nvmem_cfg);
+ if (IS_ERR(nvmem))
+ return PTR_ERR(nvmem);
+
+ randomness = kzalloc(size, GFP_KERNEL);
+ if (!randomness)
+ return -ENOMEM;
+
+ nvmem_cfg->reg_read(sid, 0, randomness, size);
+ add_device_randomness(randomness, size);
+ kfree(randomness);
+
+ platform_set_drvdata(pdev, nvmem);
+
+ return 0;
+}
+
+static const struct sunxi_sid_cfg sun4i_a10_cfg = {
+ .size = 0x10,
+};
+
+static const struct sunxi_sid_cfg sun7i_a20_cfg = {
+ .size = 0x200,
+};
+
+static const struct sunxi_sid_cfg sun8i_h3_cfg = {
+ .value_offset = 0x200,
+ .size = 0x100,
+ .need_register_readout = true,
+};
+
+static const struct sunxi_sid_cfg sun50i_a64_cfg = {
+ .value_offset = 0x200,
+ .size = 0x100,
+};
+
+static const struct sunxi_sid_cfg sun50i_h6_cfg = {
+ .value_offset = 0x200,
+ .size = 0x200,
+};
+
+static const struct of_device_id sunxi_sid_of_match[] = {
+ { .compatible = "allwinner,sun4i-a10-sid", .data = &sun4i_a10_cfg },
+ { .compatible = "allwinner,sun7i-a20-sid", .data = &sun7i_a20_cfg },
+ { .compatible = "allwinner,sun8i-a83t-sid", .data = &sun50i_a64_cfg },
+ { .compatible = "allwinner,sun8i-h3-sid", .data = &sun8i_h3_cfg },
+ { .compatible = "allwinner,sun20i-d1-sid", .data = &sun50i_a64_cfg },
+ { .compatible = "allwinner,sun50i-a64-sid", .data = &sun50i_a64_cfg },
+ { .compatible = "allwinner,sun50i-h5-sid", .data = &sun50i_a64_cfg },
+ { .compatible = "allwinner,sun50i-h6-sid", .data = &sun50i_h6_cfg },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, sunxi_sid_of_match);
+
+static struct platform_driver sunxi_sid_driver = {
+ .probe = sunxi_sid_probe,
+ .driver = {
+ .name = "eeprom-sunxi-sid",
+ .of_match_table = sunxi_sid_of_match,
+ },
+};
+module_platform_driver(sunxi_sid_driver);
+
+MODULE_AUTHOR("Oliver Schinagl <oliver@schinagl.nl>");
+MODULE_DESCRIPTION("Allwinner sunxi security id driver");
+MODULE_LICENSE("GPL");
diff --git a/drivers/nvmem/u-boot-env.c b/drivers/nvmem/u-boot-env.c
new file mode 100644
index 000000000..467b28891
--- /dev/null
+++ b/drivers/nvmem/u-boot-env.c
@@ -0,0 +1,99 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (C) 2022 Rafał Miłecki <rafal@milecki.pl>
+ */
+
+#include <linux/module.h>
+#include <linux/mtd/mtd.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+#include "layouts/u-boot-env.h"
+
+struct u_boot_env {
+ struct device *dev;
+ struct nvmem_device *nvmem;
+ enum u_boot_env_format format;
+
+ struct mtd_info *mtd;
+};
+
+static int u_boot_env_read(void *context, unsigned int offset, void *val,
+ size_t bytes)
+{
+ struct u_boot_env *priv = context;
+ struct device *dev = priv->dev;
+ size_t bytes_read;
+ int err;
+
+ err = mtd_read(priv->mtd, offset, bytes, &bytes_read, val);
+ if (err && !mtd_is_bitflip(err)) {
+ dev_err(dev, "Failed to read from mtd: %d\n", err);
+ return err;
+ }
+
+ if (bytes_read != bytes) {
+ dev_err(dev, "Failed to read %zu bytes\n", bytes);
+ return -EIO;
+ }
+
+ return 0;
+}
+
+static int u_boot_env_probe(struct platform_device *pdev)
+{
+ struct nvmem_config config = {
+ .name = "u-boot-env",
+ .reg_read = u_boot_env_read,
+ };
+ struct device *dev = &pdev->dev;
+ struct device_node *np = dev->of_node;
+ struct u_boot_env *priv;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+ priv->dev = dev;
+
+ priv->format = (uintptr_t)of_device_get_match_data(dev);
+
+ priv->mtd = of_get_mtd_device_by_node(np);
+ if (IS_ERR(priv->mtd)) {
+ dev_err_probe(dev, PTR_ERR(priv->mtd), "Failed to get %pOF MTD\n", np);
+ return PTR_ERR(priv->mtd);
+ }
+
+ config.dev = dev;
+ config.priv = priv;
+ config.size = priv->mtd->size;
+
+ priv->nvmem = devm_nvmem_register(dev, &config);
+ if (IS_ERR(priv->nvmem))
+ return PTR_ERR(priv->nvmem);
+
+ return u_boot_env_parse(dev, priv->nvmem, priv->format);
+}
+
+static const struct of_device_id u_boot_env_of_match_table[] = {
+ { .compatible = "u-boot,env", .data = (void *)U_BOOT_FORMAT_SINGLE, },
+ { .compatible = "u-boot,env-redundant-bool", .data = (void *)U_BOOT_FORMAT_REDUNDANT, },
+ { .compatible = "u-boot,env-redundant-count", .data = (void *)U_BOOT_FORMAT_REDUNDANT, },
+ { .compatible = "brcm,env", .data = (void *)U_BOOT_FORMAT_BROADCOM, },
+ {},
+};
+
+static struct platform_driver u_boot_env_driver = {
+ .probe = u_boot_env_probe,
+ .driver = {
+ .name = "u_boot_env",
+ .of_match_table = u_boot_env_of_match_table,
+ },
+};
+module_platform_driver(u_boot_env_driver);
+
+MODULE_AUTHOR("Rafał Miłecki");
+MODULE_DESCRIPTION("U-Boot environment variables support module");
+MODULE_LICENSE("GPL");
+MODULE_DEVICE_TABLE(of, u_boot_env_of_match_table);
diff --git a/drivers/nvmem/uniphier-efuse.c b/drivers/nvmem/uniphier-efuse.c
new file mode 100644
index 000000000..85f9372fb
--- /dev/null
+++ b/drivers/nvmem/uniphier-efuse.c
@@ -0,0 +1,77 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * UniPhier eFuse driver
+ *
+ * Copyright (C) 2017 Socionext Inc.
+ */
+
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/platform_device.h>
+
+struct uniphier_efuse_priv {
+ void __iomem *base;
+};
+
+static int uniphier_reg_read(void *context,
+ unsigned int reg, void *_val, size_t bytes)
+{
+ struct uniphier_efuse_priv *priv = context;
+ u8 *val = _val;
+ int offs;
+
+ for (offs = 0; offs < bytes; offs += sizeof(u8))
+ *val++ = readb(priv->base + reg + offs);
+
+ return 0;
+}
+
+static int uniphier_efuse_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct resource *res;
+ struct nvmem_device *nvmem;
+ struct nvmem_config econfig = {};
+ struct uniphier_efuse_priv *priv;
+
+ priv = devm_kzalloc(dev, sizeof(*priv), GFP_KERNEL);
+ if (!priv)
+ return -ENOMEM;
+
+ priv->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(priv->base))
+ return PTR_ERR(priv->base);
+
+ econfig.stride = 1;
+ econfig.word_size = 1;
+ econfig.read_only = true;
+ econfig.reg_read = uniphier_reg_read;
+ econfig.size = resource_size(res);
+ econfig.priv = priv;
+ econfig.dev = dev;
+ econfig.add_legacy_fixed_of_cells = true;
+ nvmem = devm_nvmem_register(dev, &econfig);
+
+ return PTR_ERR_OR_ZERO(nvmem);
+}
+
+static const struct of_device_id uniphier_efuse_of_match[] = {
+ { .compatible = "socionext,uniphier-efuse",},
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, uniphier_efuse_of_match);
+
+static struct platform_driver uniphier_efuse_driver = {
+ .probe = uniphier_efuse_probe,
+ .driver = {
+ .name = "uniphier-efuse",
+ .of_match_table = uniphier_efuse_of_match,
+ },
+};
+module_platform_driver(uniphier_efuse_driver);
+
+MODULE_AUTHOR("Keiji Hayashibara <hayashibara.keiji@socionext.com>");
+MODULE_DESCRIPTION("UniPhier eFuse driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/vf610-ocotp.c b/drivers/nvmem/vf610-ocotp.c
new file mode 100644
index 000000000..ee9c61ae7
--- /dev/null
+++ b/drivers/nvmem/vf610-ocotp.c
@@ -0,0 +1,254 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Copyright (C) 2015 Toradex AG.
+ *
+ * Author: Sanchayan Maity <sanchayan.maity@toradex.com>
+ *
+ * Based on the barebox ocotp driver,
+ * Copyright (c) 2010 Baruch Siach <baruch@tkos.co.il>
+ * Orex Computed Radiography
+ */
+
+#include <linux/clk.h>
+#include <linux/delay.h>
+#include <linux/device.h>
+#include <linux/io.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/slab.h>
+
+/* OCOTP Register Offsets */
+#define OCOTP_CTRL_REG 0x00
+#define OCOTP_CTRL_SET 0x04
+#define OCOTP_CTRL_CLR 0x08
+#define OCOTP_TIMING 0x10
+#define OCOTP_DATA 0x20
+#define OCOTP_READ_CTRL_REG 0x30
+#define OCOTP_READ_FUSE_DATA 0x40
+
+/* OCOTP Register bits and masks */
+#define OCOTP_CTRL_WR_UNLOCK 16
+#define OCOTP_CTRL_WR_UNLOCK_KEY 0x3E77
+#define OCOTP_CTRL_WR_UNLOCK_MASK GENMASK(31, 16)
+#define OCOTP_CTRL_ADDR 0
+#define OCOTP_CTRL_ADDR_MASK GENMASK(6, 0)
+#define OCOTP_CTRL_RELOAD_SHADOWS BIT(10)
+#define OCOTP_CTRL_ERR BIT(9)
+#define OCOTP_CTRL_BUSY BIT(8)
+
+#define OCOTP_TIMING_STROBE_READ 16
+#define OCOTP_TIMING_STROBE_READ_MASK GENMASK(21, 16)
+#define OCOTP_TIMING_RELAX 12
+#define OCOTP_TIMING_RELAX_MASK GENMASK(15, 12)
+#define OCOTP_TIMING_STROBE_PROG 0
+#define OCOTP_TIMING_STROBE_PROG_MASK GENMASK(11, 0)
+
+#define OCOTP_READ_CTRL_READ_FUSE 0x1
+
+#define VF610_OCOTP_TIMEOUT 100000
+
+#define BF(value, field) (((value) << field) & field##_MASK)
+
+#define DEF_RELAX 20
+
+static const int base_to_fuse_addr_mappings[][2] = {
+ {0x400, 0x00},
+ {0x410, 0x01},
+ {0x420, 0x02},
+ {0x450, 0x05},
+ {0x4F0, 0x0F},
+ {0x600, 0x20},
+ {0x610, 0x21},
+ {0x620, 0x22},
+ {0x630, 0x23},
+ {0x640, 0x24},
+ {0x650, 0x25},
+ {0x660, 0x26},
+ {0x670, 0x27},
+ {0x6F0, 0x2F},
+ {0x880, 0x38},
+ {0x890, 0x39},
+ {0x8A0, 0x3A},
+ {0x8B0, 0x3B},
+ {0x8C0, 0x3C},
+ {0x8D0, 0x3D},
+ {0x8E0, 0x3E},
+ {0x8F0, 0x3F},
+ {0xC80, 0x78},
+ {0xC90, 0x79},
+ {0xCA0, 0x7A},
+ {0xCB0, 0x7B},
+ {0xCC0, 0x7C},
+ {0xCD0, 0x7D},
+ {0xCE0, 0x7E},
+ {0xCF0, 0x7F},
+};
+
+struct vf610_ocotp {
+ void __iomem *base;
+ struct clk *clk;
+ struct device *dev;
+ struct nvmem_device *nvmem;
+ int timing;
+};
+
+static int vf610_ocotp_wait_busy(void __iomem *base)
+{
+ int timeout = VF610_OCOTP_TIMEOUT;
+
+ while ((readl(base) & OCOTP_CTRL_BUSY) && --timeout)
+ udelay(10);
+
+ if (!timeout) {
+ writel(OCOTP_CTRL_ERR, base + OCOTP_CTRL_CLR);
+ return -ETIMEDOUT;
+ }
+
+ udelay(10);
+
+ return 0;
+}
+
+static int vf610_ocotp_calculate_timing(struct vf610_ocotp *ocotp_dev)
+{
+ u32 clk_rate;
+ u32 relax, strobe_read, strobe_prog;
+ u32 timing;
+
+ clk_rate = clk_get_rate(ocotp_dev->clk);
+
+ /* Refer section OTP read/write timing parameters in TRM */
+ relax = clk_rate / (1000000000 / DEF_RELAX) - 1;
+ strobe_prog = clk_rate / (1000000000 / 10000) + 2 * (DEF_RELAX + 1) - 1;
+ strobe_read = clk_rate / (1000000000 / 40) + 2 * (DEF_RELAX + 1) - 1;
+
+ timing = BF(relax, OCOTP_TIMING_RELAX);
+ timing |= BF(strobe_read, OCOTP_TIMING_STROBE_READ);
+ timing |= BF(strobe_prog, OCOTP_TIMING_STROBE_PROG);
+
+ return timing;
+}
+
+static int vf610_get_fuse_address(int base_addr_offset)
+{
+ int i;
+
+ for (i = 0; i < ARRAY_SIZE(base_to_fuse_addr_mappings); i++) {
+ if (base_to_fuse_addr_mappings[i][0] == base_addr_offset)
+ return base_to_fuse_addr_mappings[i][1];
+ }
+
+ return -EINVAL;
+}
+
+static int vf610_ocotp_read(void *context, unsigned int offset,
+ void *val, size_t bytes)
+{
+ struct vf610_ocotp *ocotp = context;
+ void __iomem *base = ocotp->base;
+ u32 reg, *buf = val;
+ int fuse_addr;
+ int ret;
+
+ while (bytes > 0) {
+ fuse_addr = vf610_get_fuse_address(offset);
+ if (fuse_addr > 0) {
+ writel(ocotp->timing, base + OCOTP_TIMING);
+ ret = vf610_ocotp_wait_busy(base + OCOTP_CTRL_REG);
+ if (ret)
+ return ret;
+
+ reg = readl(base + OCOTP_CTRL_REG);
+ reg &= ~OCOTP_CTRL_ADDR_MASK;
+ reg &= ~OCOTP_CTRL_WR_UNLOCK_MASK;
+ reg |= BF(fuse_addr, OCOTP_CTRL_ADDR);
+ writel(reg, base + OCOTP_CTRL_REG);
+
+ writel(OCOTP_READ_CTRL_READ_FUSE,
+ base + OCOTP_READ_CTRL_REG);
+ ret = vf610_ocotp_wait_busy(base + OCOTP_CTRL_REG);
+ if (ret)
+ return ret;
+
+ if (readl(base) & OCOTP_CTRL_ERR) {
+ dev_dbg(ocotp->dev, "Error reading from fuse address %x\n",
+ fuse_addr);
+ writel(OCOTP_CTRL_ERR, base + OCOTP_CTRL_CLR);
+ }
+
+ /*
+ * In case of error, we do not abort and expect to read
+ * 0xBADABADA as mentioned by the TRM. We just read this
+ * value and return.
+ */
+ *buf = readl(base + OCOTP_READ_FUSE_DATA);
+ } else {
+ *buf = 0;
+ }
+
+ buf++;
+ bytes -= 4;
+ offset += 4;
+ }
+
+ return 0;
+}
+
+static struct nvmem_config ocotp_config = {
+ .name = "ocotp",
+ .stride = 4,
+ .word_size = 4,
+ .reg_read = vf610_ocotp_read,
+};
+
+static const struct of_device_id ocotp_of_match[] = {
+ { .compatible = "fsl,vf610-ocotp", },
+ {/* sentinel */},
+};
+MODULE_DEVICE_TABLE(of, ocotp_of_match);
+
+static int vf610_ocotp_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct resource *res;
+ struct vf610_ocotp *ocotp_dev;
+
+ ocotp_dev = devm_kzalloc(dev, sizeof(struct vf610_ocotp), GFP_KERNEL);
+ if (!ocotp_dev)
+ return -ENOMEM;
+
+ ocotp_dev->base = devm_platform_get_and_ioremap_resource(pdev, 0, &res);
+ if (IS_ERR(ocotp_dev->base))
+ return PTR_ERR(ocotp_dev->base);
+
+ ocotp_dev->clk = devm_clk_get(dev, NULL);
+ if (IS_ERR(ocotp_dev->clk)) {
+ dev_err(dev, "failed getting clock, err = %ld\n",
+ PTR_ERR(ocotp_dev->clk));
+ return PTR_ERR(ocotp_dev->clk);
+ }
+ ocotp_dev->dev = dev;
+ ocotp_dev->timing = vf610_ocotp_calculate_timing(ocotp_dev);
+
+ ocotp_config.size = resource_size(res);
+ ocotp_config.priv = ocotp_dev;
+ ocotp_config.dev = dev;
+
+ ocotp_dev->nvmem = devm_nvmem_register(dev, &ocotp_config);
+
+ return PTR_ERR_OR_ZERO(ocotp_dev->nvmem);
+}
+
+static struct platform_driver vf610_ocotp_driver = {
+ .probe = vf610_ocotp_probe,
+ .driver = {
+ .name = "vf610-ocotp",
+ .of_match_table = ocotp_of_match,
+ },
+};
+module_platform_driver(vf610_ocotp_driver);
+MODULE_AUTHOR("Sanchayan Maity <sanchayan.maity@toradex.com>");
+MODULE_DESCRIPTION("Vybrid OCOTP driver");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/nvmem/zynqmp_nvmem.c b/drivers/nvmem/zynqmp_nvmem.c
new file mode 100644
index 000000000..d297ff150
--- /dev/null
+++ b/drivers/nvmem/zynqmp_nvmem.c
@@ -0,0 +1,236 @@
+// SPDX-License-Identifier: GPL-2.0+
+/*
+ * Copyright (C) 2019 Xilinx, Inc.
+ * Copyright (C) 2022 - 2023, Advanced Micro Devices, Inc.
+ */
+
+#include <linux/dma-mapping.h>
+#include <linux/module.h>
+#include <linux/nvmem-provider.h>
+#include <linux/of.h>
+#include <linux/platform_device.h>
+#include <linux/firmware/xlnx-zynqmp.h>
+
+#define SILICON_REVISION_MASK 0xF
+#define P_USER_0_64_UPPER_MASK GENMASK(31, 16)
+#define P_USER_127_LOWER_4_BIT_MASK GENMASK(3, 0)
+#define WORD_INBYTES 4
+#define SOC_VER_SIZE 0x4
+#define EFUSE_MEMORY_SIZE 0x177
+#define UNUSED_SPACE 0x8
+#define ZYNQMP_NVMEM_SIZE (SOC_VER_SIZE + UNUSED_SPACE + \
+ EFUSE_MEMORY_SIZE)
+#define SOC_VERSION_OFFSET 0x0
+#define EFUSE_START_OFFSET 0xC
+#define EFUSE_END_OFFSET 0xFC
+#define EFUSE_PUF_START_OFFSET 0x100
+#define EFUSE_PUF_MID_OFFSET 0x140
+#define EFUSE_PUF_END_OFFSET 0x17F
+#define EFUSE_NOT_ENABLED 29
+
+/*
+ * efuse access type
+ */
+enum efuse_access {
+ EFUSE_READ = 0,
+ EFUSE_WRITE
+};
+
+/**
+ * struct xilinx_efuse - the basic structure
+ * @src: address of the buffer to store the data to be write/read
+ * @size: read/write word count
+ * @offset: read/write offset
+ * @flag: 0 - represents efuse read and 1- represents efuse write
+ * @pufuserfuse:0 - represents non-puf efuses, offset is used for read/write
+ * 1 - represents puf user fuse row number.
+ *
+ * this structure stores all the required details to
+ * read/write efuse memory.
+ */
+struct xilinx_efuse {
+ u64 src;
+ u32 size;
+ u32 offset;
+ enum efuse_access flag;
+ u32 pufuserfuse;
+};
+
+static int zynqmp_efuse_access(void *context, unsigned int offset,
+ void *val, size_t bytes, enum efuse_access flag,
+ unsigned int pufflag)
+{
+ struct device *dev = context;
+ struct xilinx_efuse *efuse;
+ dma_addr_t dma_addr;
+ dma_addr_t dma_buf;
+ size_t words = bytes / WORD_INBYTES;
+ int ret;
+ unsigned int value;
+ char *data;
+
+ if (bytes % WORD_INBYTES != 0) {
+ dev_err(dev, "Bytes requested should be word aligned\n");
+ return -EOPNOTSUPP;
+ }
+
+ if (pufflag == 0 && offset % WORD_INBYTES) {
+ dev_err(dev, "Offset requested should be word aligned\n");
+ return -EOPNOTSUPP;
+ }
+
+ if (pufflag == 1 && flag == EFUSE_WRITE) {
+ memcpy(&value, val, sizeof(value));
+ if ((offset == EFUSE_PUF_START_OFFSET ||
+ offset == EFUSE_PUF_MID_OFFSET) &&
+ value & P_USER_0_64_UPPER_MASK) {
+ dev_err(dev, "Only lower 4 bytes are allowed to be programmed in P_USER_0 & P_USER_64\n");
+ return -EOPNOTSUPP;
+ }
+
+ if (offset == EFUSE_PUF_END_OFFSET &&
+ (value & P_USER_127_LOWER_4_BIT_MASK)) {
+ dev_err(dev, "Only MSB 28 bits are allowed to be programmed for P_USER_127\n");
+ return -EOPNOTSUPP;
+ }
+ }
+
+ efuse = dma_alloc_coherent(dev, sizeof(struct xilinx_efuse),
+ &dma_addr, GFP_KERNEL);
+ if (!efuse)
+ return -ENOMEM;
+
+ data = dma_alloc_coherent(dev, bytes,
+ &dma_buf, GFP_KERNEL);
+ if (!data) {
+ ret = -ENOMEM;
+ goto efuse_data_fail;
+ }
+
+ if (flag == EFUSE_WRITE) {
+ memcpy(data, val, bytes);
+ efuse->flag = EFUSE_WRITE;
+ } else {
+ efuse->flag = EFUSE_READ;
+ }
+
+ efuse->src = dma_buf;
+ efuse->size = words;
+ efuse->offset = offset;
+ efuse->pufuserfuse = pufflag;
+
+ zynqmp_pm_efuse_access(dma_addr, (u32 *)&ret);
+ if (ret != 0) {
+ if (ret == EFUSE_NOT_ENABLED) {
+ dev_err(dev, "efuse access is not enabled\n");
+ ret = -EOPNOTSUPP;
+ } else {
+ dev_err(dev, "Error in efuse read %x\n", ret);
+ ret = -EPERM;
+ }
+ goto efuse_access_err;
+ }
+
+ if (flag == EFUSE_READ)
+ memcpy(val, data, bytes);
+efuse_access_err:
+ dma_free_coherent(dev, bytes,
+ data, dma_buf);
+efuse_data_fail:
+ dma_free_coherent(dev, sizeof(struct xilinx_efuse),
+ efuse, dma_addr);
+
+ return ret;
+}
+
+static int zynqmp_nvmem_read(void *context, unsigned int offset, void *val, size_t bytes)
+{
+ struct device *dev = context;
+ int ret;
+ int pufflag = 0;
+ int idcode;
+ int version;
+
+ if (offset >= EFUSE_PUF_START_OFFSET && offset <= EFUSE_PUF_END_OFFSET)
+ pufflag = 1;
+
+ switch (offset) {
+ /* Soc version offset is zero */
+ case SOC_VERSION_OFFSET:
+ if (bytes != SOC_VER_SIZE)
+ return -EOPNOTSUPP;
+
+ ret = zynqmp_pm_get_chipid((u32 *)&idcode, (u32 *)&version);
+ if (ret < 0)
+ return ret;
+
+ dev_dbg(dev, "Read chipid val %x %x\n", idcode, version);
+ *(int *)val = version & SILICON_REVISION_MASK;
+ break;
+ /* Efuse offset starts from 0xc */
+ case EFUSE_START_OFFSET ... EFUSE_END_OFFSET:
+ case EFUSE_PUF_START_OFFSET ... EFUSE_PUF_END_OFFSET:
+ ret = zynqmp_efuse_access(context, offset, val,
+ bytes, EFUSE_READ, pufflag);
+ break;
+ default:
+ *(u32 *)val = 0xDEADBEEF;
+ ret = 0;
+ break;
+ }
+
+ return ret;
+}
+
+static int zynqmp_nvmem_write(void *context,
+ unsigned int offset, void *val, size_t bytes)
+{
+ int pufflag = 0;
+
+ if (offset < EFUSE_START_OFFSET || offset > EFUSE_PUF_END_OFFSET)
+ return -EOPNOTSUPP;
+
+ if (offset >= EFUSE_PUF_START_OFFSET && offset <= EFUSE_PUF_END_OFFSET)
+ pufflag = 1;
+
+ return zynqmp_efuse_access(context, offset,
+ val, bytes, EFUSE_WRITE, pufflag);
+}
+
+static const struct of_device_id zynqmp_nvmem_match[] = {
+ { .compatible = "xlnx,zynqmp-nvmem-fw", },
+ { /* sentinel */ },
+};
+MODULE_DEVICE_TABLE(of, zynqmp_nvmem_match);
+
+static int zynqmp_nvmem_probe(struct platform_device *pdev)
+{
+ struct device *dev = &pdev->dev;
+ struct nvmem_config econfig = {};
+
+ econfig.name = "zynqmp-nvmem";
+ econfig.owner = THIS_MODULE;
+ econfig.word_size = 1;
+ econfig.size = ZYNQMP_NVMEM_SIZE;
+ econfig.dev = dev;
+ econfig.priv = dev;
+ econfig.add_legacy_fixed_of_cells = true;
+ econfig.reg_read = zynqmp_nvmem_read;
+ econfig.reg_write = zynqmp_nvmem_write;
+
+ return PTR_ERR_OR_ZERO(devm_nvmem_register(dev, &econfig));
+}
+
+static struct platform_driver zynqmp_nvmem_driver = {
+ .probe = zynqmp_nvmem_probe,
+ .driver = {
+ .name = "zynqmp-nvmem",
+ .of_match_table = zynqmp_nvmem_match,
+ },
+};
+
+module_platform_driver(zynqmp_nvmem_driver);
+
+MODULE_AUTHOR("Michal Simek <michal.simek@amd.com>, Nava kishore Manne <nava.kishore.manne@amd.com>");
+MODULE_DESCRIPTION("ZynqMP NVMEM driver");
+MODULE_LICENSE("GPL");