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-rw-r--r--drivers/iio/test/Kconfig54
-rw-r--r--drivers/iio/test/Makefile11
-rw-r--r--drivers/iio/test/iio-test-format.c324
-rw-r--r--drivers/iio/test/iio-test-gts.c515
-rw-r--r--drivers/iio/test/iio-test-multiply.c212
-rw-r--r--drivers/iio/test/iio-test-rescale.c719
6 files changed, 1835 insertions, 0 deletions
diff --git a/drivers/iio/test/Kconfig b/drivers/iio/test/Kconfig
new file mode 100644
index 000000000..4fc17dd0d
--- /dev/null
+++ b/drivers/iio/test/Kconfig
@@ -0,0 +1,54 @@
+# SPDX-License-Identifier: GPL-2.0-only
+#
+# Industrial I/O subsystem unit tests configuration
+#
+
+# Keep in alphabetical order
+config IIO_GTS_KUNIT_TEST
+ tristate "Test IIO gain-time-scale helpers" if !KUNIT_ALL_TESTS
+ depends on KUNIT
+ select IIO_GTS_HELPER
+ default KUNIT_ALL_TESTS
+ help
+ build unit tests for the IIO light sensor gain-time-scale helpers.
+
+ For more information on KUnit and unit tests in general, please refer
+ to the KUnit documentation in Documentation/dev-tools/kunit/.
+
+ If unsure, say N. Keep in alphabetical order
+
+config IIO_RESCALE_KUNIT_TEST
+ tristate "Test IIO rescale conversion functions" if !KUNIT_ALL_TESTS
+ depends on KUNIT && IIO_RESCALE
+ default KUNIT_ALL_TESTS
+ help
+ Build unit tests for the iio-rescale code.
+
+ For more information on KUnit and unit tests in general, please refer
+ to the KUnit documentation in Documentation/dev-tools/kunit/.
+
+ If unsure, say N.
+
+config IIO_FORMAT_KUNIT_TEST
+ tristate "Test IIO formatting functions" if !KUNIT_ALL_TESTS
+ depends on KUNIT
+ default KUNIT_ALL_TESTS
+ help
+ build unit tests for the IIO formatting functions.
+
+ For more information on KUnit and unit tests in general, please refer
+ to the KUnit documentation in Documentation/dev-tools/kunit/.
+
+ If unsure, say N.
+
+config IIO_MULTIPLY_KUNIT_TEST
+ tristate "Test IIO multiply functions" if !KUNIT_ALL_TESTS
+ depends on KUNIT
+ default KUNIT_ALL_TESTS
+ help
+ build unit tests for the IIO multiply functions.
+
+ For more information on KUnit and unit tests in general, please refer
+ to the KUnit documentation in Documentation/dev-tools/kunit/.
+
+ If unsure, say N.
diff --git a/drivers/iio/test/Makefile b/drivers/iio/test/Makefile
new file mode 100644
index 000000000..0c846bc21
--- /dev/null
+++ b/drivers/iio/test/Makefile
@@ -0,0 +1,11 @@
+# SPDX-License-Identifier: GPL-2.0
+#
+# Makefile for the industrial I/O unit tests.
+#
+
+# Keep in alphabetical order
+obj-$(CONFIG_IIO_RESCALE_KUNIT_TEST) += iio-test-rescale.o
+obj-$(CONFIG_IIO_FORMAT_KUNIT_TEST) += iio-test-format.o
+obj-$(CONFIG_IIO_GTS_KUNIT_TEST) += iio-test-gts.o
+obj-$(CONFIG_IIO_MULTIPLY_KUNIT_TEST) += iio-test-multiply.o
+CFLAGS_iio-test-format.o += $(DISABLE_STRUCTLEAK_PLUGIN)
diff --git a/drivers/iio/test/iio-test-format.c b/drivers/iio/test/iio-test-format.c
new file mode 100644
index 000000000..e5d0a2ac4
--- /dev/null
+++ b/drivers/iio/test/iio-test-format.c
@@ -0,0 +1,324 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/* Unit tests for IIO formatting functions
+ *
+ * Copyright (c) 2020 Lars-Peter Clausen <lars@metafoo.de>
+ */
+
+#include <kunit/test.h>
+#include <linux/iio/iio.h>
+
+#define IIO_TEST_FORMAT_EXPECT_EQ(_test, _buf, _ret, _val) do { \
+ KUNIT_EXPECT_EQ(_test, strlen(_buf), _ret); \
+ KUNIT_EXPECT_STREQ(_test, (_buf), (_val)); \
+ } while (0)
+
+static void iio_test_iio_format_value_integer(struct kunit *test)
+{
+ char *buf;
+ int val;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ val = 42;
+ ret = iio_format_value(buf, IIO_VAL_INT, 1, &val);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "42\n");
+
+ val = -23;
+ ret = iio_format_value(buf, IIO_VAL_INT, 1, &val);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-23\n");
+
+ val = 0;
+ ret = iio_format_value(buf, IIO_VAL_INT, 1, &val);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0\n");
+
+ val = INT_MAX;
+ ret = iio_format_value(buf, IIO_VAL_INT, 1, &val);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "2147483647\n");
+
+ val = INT_MIN;
+ ret = iio_format_value(buf, IIO_VAL_INT, 1, &val);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-2147483648\n");
+}
+
+static void iio_test_iio_format_value_fixedpoint(struct kunit *test)
+{
+ int values[2];
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ /* positive >= 1 */
+ values[0] = 1;
+ values[1] = 10;
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1.000010\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO_DB, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1.000010 dB\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1.000000010\n");
+
+ /* positive < 1 */
+ values[0] = 0;
+ values[1] = 12;
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000012\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO_DB, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000012 dB\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000000012\n");
+
+ /* negative <= -1 */
+ values[0] = -1;
+ values[1] = 10;
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-1.000010\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO_DB, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-1.000010 dB\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-1.000000010\n");
+
+ /* negative > -1 */
+ values[0] = 0;
+ values[1] = -123;
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.000123\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_MICRO_DB, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.000123 dB\n");
+
+ ret = iio_format_value(buf, IIO_VAL_INT_PLUS_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.000000123\n");
+}
+
+static void iio_test_iio_format_value_fractional(struct kunit *test)
+{
+ int values[2];
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ /* positive < 1 */
+ values[0] = 1;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.100000000\n");
+
+ /* positive >= 1 */
+ values[0] = 100;
+ values[1] = 3;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "33.333333333\n");
+
+ /* negative > -1 */
+ values[0] = -1;
+ values[1] = 1000000000;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.000000001\n");
+
+ /* negative <= -1 */
+ values[0] = -200;
+ values[1] = 3;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-66.666666666\n");
+
+ /* Zero */
+ values[0] = 0;
+ values[1] = -10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000000000\n");
+}
+
+static void iio_test_iio_format_value_fractional_log2(struct kunit *test)
+{
+ int values[2];
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ /* positive < 1 */
+ values[0] = 123;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL_LOG2, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.120117187\n");
+
+ /* positive >= 1 */
+ values[0] = 1234567;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL_LOG2, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1205.631835937\n");
+
+ /* negative > -1 */
+ values[0] = -123;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL_LOG2, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.120117187\n");
+
+ /* negative <= -1 */
+ values[0] = -1234567;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL_LOG2, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-1205.631835937\n");
+
+ /* Zero */
+ values[0] = 0;
+ values[1] = 10;
+ ret = iio_format_value(buf, IIO_VAL_FRACTIONAL_LOG2, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000000000\n");
+}
+
+static void iio_test_iio_format_value_multiple(struct kunit *test)
+{
+ int values[] = {1, -2, 3, -4, 5};
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ ret = iio_format_value(buf, IIO_VAL_INT_MULTIPLE,
+ ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1 -2 3 -4 5 \n");
+}
+
+static void iio_test_iio_format_value_integer_64(struct kunit *test)
+{
+ int values[2];
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ iio_val_s64_decompose(24, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "24\n");
+
+ iio_val_s64_decompose(-24, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-24\n");
+
+ iio_val_s64_decompose(0, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0\n");
+
+ iio_val_s64_decompose(UINT_MAX, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "4294967295\n");
+
+ iio_val_s64_decompose(-((s64)UINT_MAX), &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-4294967295\n");
+
+ iio_val_s64_decompose(LLONG_MAX, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "9223372036854775807\n");
+
+ iio_val_s64_decompose(LLONG_MIN, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_INT_64, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-9223372036854775808\n");
+}
+
+static void iio_test_iio_format_value_decimal_64(struct kunit *test)
+{
+ int values[2];
+ char *buf;
+ int ret;
+
+ buf = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buf);
+
+ /* DECIMAL64_MILLI: positive >= 1, value 1.234 */
+ iio_val_s64_decompose(1234, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MILLI, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1.234\n");
+
+ /* DECIMAL64_MICRO: positive >= 1, value 3.141592 */
+ iio_val_s64_decompose(3141592, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "3.141592\n");
+
+ /* DECIMAL64_MILLI: positive < 1, value 0.042 */
+ iio_val_s64_decompose(42, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MILLI, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.042\n");
+
+ /* DECIMAL64_MILLI: negative <= -1, value -1.234 */
+ iio_val_s64_decompose(-1234, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MILLI, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-1.234\n");
+
+ /* DECIMAL64_MILLI: negative > -1, value -0.123 */
+ iio_val_s64_decompose(-123, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MILLI, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-0.123\n");
+
+ /* DECIMAL64_MILLI: zero */
+ iio_val_s64_decompose(0, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MILLI, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "0.000\n");
+
+ /* DECIMAL64_NANO: value 1.000000001 */
+ iio_val_s64_decompose(1000000001, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "1.000000001\n");
+
+ /* DECIMAL64_MICRO: large value using upper 32 bits */
+ iio_val_s64_decompose(5000000000000042LL, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "5000000000.000042\n");
+
+ /* limits */
+ iio_val_s64_decompose(LLONG_MAX, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_PICO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "9223372.036854775807\n");
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "9223372036.854775807\n");
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "9223372036854.775807\n");
+
+ iio_val_s64_decompose(LLONG_MIN, &values[0], &values[1]);
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_PICO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-9223372.036854775808\n");
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_NANO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-9223372036.854775808\n");
+ ret = iio_format_value(buf, IIO_VAL_DECIMAL64_MICRO, ARRAY_SIZE(values), values);
+ IIO_TEST_FORMAT_EXPECT_EQ(test, buf, ret, "-9223372036854.775808\n");
+}
+
+static struct kunit_case iio_format_test_cases[] = {
+ KUNIT_CASE(iio_test_iio_format_value_integer),
+ KUNIT_CASE(iio_test_iio_format_value_fixedpoint),
+ KUNIT_CASE(iio_test_iio_format_value_fractional),
+ KUNIT_CASE(iio_test_iio_format_value_fractional_log2),
+ KUNIT_CASE(iio_test_iio_format_value_multiple),
+ KUNIT_CASE(iio_test_iio_format_value_integer_64),
+ KUNIT_CASE(iio_test_iio_format_value_decimal_64),
+ { }
+};
+
+static struct kunit_suite iio_format_test_suite = {
+ .name = "iio-format",
+ .test_cases = iio_format_test_cases,
+};
+kunit_test_suite(iio_format_test_suite);
+
+MODULE_AUTHOR("Lars-Peter Clausen <lars@metafoo.de>");
+MODULE_DESCRIPTION("Test IIO formatting functions");
+MODULE_LICENSE("GPL v2");
diff --git a/drivers/iio/test/iio-test-gts.c b/drivers/iio/test/iio-test-gts.c
new file mode 100644
index 000000000..6ffff85ba
--- /dev/null
+++ b/drivers/iio/test/iio-test-gts.c
@@ -0,0 +1,515 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/* Unit tests for IIO light sensor gain-time-scale helpers
+ *
+ * Copyright (c) 2023 Matti Vaittinen <mazziesaccount@gmail.com>
+ */
+
+#include <kunit/device.h>
+#include <kunit/test.h>
+#include <linux/device.h>
+#include <linux/iio/iio-gts-helper.h>
+#include <linux/iio/types.h>
+
+/*
+ * Please, read the "rant" from the top of the lib/test_linear_ranges.c if
+ * you see a line of helper code which is not being tested.
+ *
+ * Then, please look at the line which is not being tested. Is this line
+ * somehow unusually complex? If answer is "no", then chances are that the
+ * "development inertia" caused by adding a test exceeds the benefits.
+ *
+ * If yes, then adding a test is probably a good idea but please stop for a
+ * moment and consider the effort of changing all the tests when code gets
+ * refactored. Eventually it needs to be.
+ */
+
+#define TEST_TSEL_50 1
+#define TEST_TSEL_X_MIN TEST_TSEL_50
+#define TEST_TSEL_100 0
+#define TEST_TSEL_200 2
+#define TEST_TSEL_400 4
+#define TEST_TSEL_X_MAX TEST_TSEL_400
+
+#define TEST_GSEL_1 0x00
+#define TEST_GSEL_X_MIN TEST_GSEL_1
+#define TEST_GSEL_4 0x08
+#define TEST_GSEL_16 0x0a
+#define TEST_GSEL_32 0x0b
+#define TEST_GSEL_64 0x0c
+#define TEST_GSEL_256 0x18
+#define TEST_GSEL_512 0x19
+#define TEST_GSEL_1024 0x1a
+#define TEST_GSEL_2048 0x1b
+#define TEST_GSEL_4096 0x1c
+#define TEST_GSEL_X_MAX TEST_GSEL_4096
+
+#define TEST_SCALE_1X 64
+#define TEST_SCALE_MIN_X TEST_SCALE_1X
+#define TEST_SCALE_2X 32
+#define TEST_SCALE_4X 16
+#define TEST_SCALE_8X 8
+#define TEST_SCALE_16X 4
+#define TEST_SCALE_32X 2
+#define TEST_SCALE_64X 1
+
+#define TEST_SCALE_NANO_128X 500000000
+#define TEST_SCALE_NANO_256X 250000000
+#define TEST_SCALE_NANO_512X 125000000
+#define TEST_SCALE_NANO_1024X 62500000
+#define TEST_SCALE_NANO_2048X 31250000
+#define TEST_SCALE_NANO_4096X 15625000
+#define TEST_SCALE_NANO_4096X2 7812500
+#define TEST_SCALE_NANO_4096X4 3906250
+#define TEST_SCALE_NANO_4096X8 1953125
+
+#define TEST_SCALE_NANO_MAX_X TEST_SCALE_NANO_4096X8
+
+/*
+ * Can't have this allocated from stack because the kunit clean-up will
+ * happen only after the test function has already gone
+ */
+static struct iio_gts gts;
+
+/* Keep the gain and time tables unsorted to test the sorting */
+static const struct iio_gain_sel_pair gts_test_gains[] = {
+ GAIN_SCALE_GAIN(1, TEST_GSEL_1),
+ GAIN_SCALE_GAIN(4, TEST_GSEL_4),
+ GAIN_SCALE_GAIN(16, TEST_GSEL_16),
+ GAIN_SCALE_GAIN(32, TEST_GSEL_32),
+ GAIN_SCALE_GAIN(64, TEST_GSEL_64),
+ GAIN_SCALE_GAIN(256, TEST_GSEL_256),
+ GAIN_SCALE_GAIN(512, TEST_GSEL_512),
+ GAIN_SCALE_GAIN(1024, TEST_GSEL_1024),
+ GAIN_SCALE_GAIN(4096, TEST_GSEL_4096),
+ GAIN_SCALE_GAIN(2048, TEST_GSEL_2048),
+#define HWGAIN_MAX 4096
+};
+
+static const struct iio_itime_sel_mul gts_test_itimes[] = {
+ GAIN_SCALE_ITIME_US(100 * 1000, TEST_TSEL_100, 2),
+ GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 8),
+ GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 8),
+ GAIN_SCALE_ITIME_US(50 * 1000, TEST_TSEL_50, 1),
+ GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
+#define TIMEGAIN_MAX 8
+};
+#define TOTAL_GAIN_MAX (HWGAIN_MAX * TIMEGAIN_MAX)
+#define IIO_GTS_TEST_DEV "iio-gts-test-dev"
+
+static struct device *__test_init_iio_gain_scale(struct kunit *test,
+ struct iio_gts *gts, const struct iio_gain_sel_pair *g_table,
+ int num_g, const struct iio_itime_sel_mul *i_table, int num_i)
+{
+ struct device *dev;
+ int ret;
+
+ dev = kunit_device_register(test, IIO_GTS_TEST_DEV);
+
+ KUNIT_EXPECT_NOT_ERR_OR_NULL(test, dev);
+ if (IS_ERR_OR_NULL(dev))
+ return NULL;
+
+ ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, g_table, num_g,
+ i_table, num_i, gts);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ if (ret)
+ return NULL;
+
+ return dev;
+}
+
+#define test_init_iio_gain_scale(test, gts) \
+ __test_init_iio_gain_scale(test, gts, gts_test_gains, \
+ ARRAY_SIZE(gts_test_gains), gts_test_itimes, \
+ ARRAY_SIZE(gts_test_itimes))
+
+static void test_init_iio_gts_invalid(struct kunit *test)
+{
+ struct device *dev;
+ int ret;
+ const struct iio_itime_sel_mul itimes_neg[] = {
+ GAIN_SCALE_ITIME_US(-10, TEST_TSEL_400, 8),
+ GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
+ };
+ const struct iio_gain_sel_pair gains_neg[] = {
+ GAIN_SCALE_GAIN(1, TEST_GSEL_1),
+ GAIN_SCALE_GAIN(2, TEST_GSEL_4),
+ GAIN_SCALE_GAIN(-2, TEST_GSEL_16),
+ };
+ /* 55555 * 38656 = 2147534080 => overflows 32bit int */
+ const struct iio_itime_sel_mul itimes_overflow[] = {
+ GAIN_SCALE_ITIME_US(400 * 1000, TEST_TSEL_400, 55555),
+ GAIN_SCALE_ITIME_US(200 * 1000, TEST_TSEL_200, 4),
+ };
+ const struct iio_gain_sel_pair gains_overflow[] = {
+ GAIN_SCALE_GAIN(1, TEST_GSEL_1),
+ GAIN_SCALE_GAIN(2, TEST_GSEL_4),
+ GAIN_SCALE_GAIN(38656, TEST_GSEL_16),
+ };
+
+ dev = kunit_device_register(test, IIO_GTS_TEST_DEV);
+ KUNIT_EXPECT_NOT_ERR_OR_NULL(test, dev);
+ if (!dev)
+ return;
+
+ /* Ok gains, negative time */
+ ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gts_test_gains,
+ ARRAY_SIZE(gts_test_gains), itimes_neg,
+ ARRAY_SIZE(itimes_neg), &gts);
+ KUNIT_EXPECT_EQ(test, -EINVAL, ret);
+
+ /* Ok times, negative gain */
+ ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gains_neg,
+ ARRAY_SIZE(gains_neg), gts_test_itimes,
+ ARRAY_SIZE(gts_test_itimes), &gts);
+ KUNIT_EXPECT_EQ(test, -EINVAL, ret);
+
+ /* gain * time overflow int */
+ ret = devm_iio_init_iio_gts(dev, TEST_SCALE_1X, 0, gains_overflow,
+ ARRAY_SIZE(gains_overflow), itimes_overflow,
+ ARRAY_SIZE(itimes_overflow), &gts);
+ KUNIT_EXPECT_EQ(test, -EOVERFLOW, ret);
+}
+
+static void test_iio_gts_find_gain_for_scale_using_time(struct kunit *test)
+{
+ struct device *dev;
+ int ret, gain_sel;
+
+ dev = test_init_iio_gain_scale(test, &gts);
+ if (!dev)
+ return;
+
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_100,
+ TEST_SCALE_8X, 0, &gain_sel);
+ /*
+ * Meas time 100 => gain by time 2x
+ * TEST_SCALE_8X matches total gain 8x
+ * => required HWGAIN 4x
+ */
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_GSEL_4, gain_sel);
+
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_200, 0,
+ TEST_SCALE_NANO_256X, &gain_sel);
+ /*
+ * Meas time 200 => gain by time 4x
+ * TEST_SCALE_256X matches total gain 256x
+ * => required HWGAIN 256/4 => 64x
+ */
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_GSEL_64, gain_sel);
+
+ /* Min time, Min gain */
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_X_MIN,
+ TEST_SCALE_MIN_X, 0, &gain_sel);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_GSEL_1, gain_sel);
+
+ /* Max time, Max gain */
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_X_MAX,
+ 0, TEST_SCALE_NANO_MAX_X, &gain_sel);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_GSEL_4096, gain_sel);
+
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_100, 0,
+ TEST_SCALE_NANO_256X, &gain_sel);
+ /*
+ * Meas time 100 => gain by time 2x
+ * TEST_SCALE_256X matches total gain 256x
+ * => required HWGAIN 256/2 => 128x (not in gain-table - unsupported)
+ */
+ KUNIT_EXPECT_NE(test, 0, ret);
+
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_200, 0,
+ TEST_SCALE_NANO_MAX_X, &gain_sel);
+ /* We can't reach the max gain with integration time smaller than MAX */
+ KUNIT_EXPECT_NE(test, 0, ret);
+
+ ret = iio_gts_find_gain_sel_for_scale_using_time(&gts, TEST_TSEL_50, 0,
+ TEST_SCALE_NANO_MAX_X, &gain_sel);
+ /* We can't reach the max gain with integration time smaller than MAX */
+ KUNIT_EXPECT_NE(test, 0, ret);
+}
+
+static void test_iio_gts_find_new_gain_sel_by_old_gain_time(struct kunit *test)
+{
+ struct device *dev;
+ int ret, old_gain, new_gain, old_time_sel, new_time_sel;
+
+ dev = test_init_iio_gain_scale(test, &gts);
+ if (!dev)
+ return;
+
+ old_gain = 32;
+ old_time_sel = TEST_TSEL_200;
+ new_time_sel = TEST_TSEL_400;
+
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ /*
+ * Doubling the integration time doubles the total gain - so old
+ * (hw)gain must be divided by two to compensate. => 32 / 2 => 16
+ */
+ KUNIT_EXPECT_EQ(test, 16, new_gain);
+
+ old_gain = 4;
+ old_time_sel = TEST_TSEL_50;
+ new_time_sel = TEST_TSEL_200;
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ /*
+ * gain by time 1x => 4x - (hw)gain 4x => 1x
+ */
+ KUNIT_EXPECT_EQ(test, 1, new_gain);
+
+ old_gain = 512;
+ old_time_sel = TEST_TSEL_400;
+ new_time_sel = TEST_TSEL_50;
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ /*
+ * gain by time 8x => 1x - (hw)gain 512x => 4096x)
+ */
+ KUNIT_EXPECT_EQ(test, 4096, new_gain);
+
+ /* Unsupported gain 2x */
+ old_gain = 4;
+ old_time_sel = TEST_TSEL_200;
+ new_time_sel = TEST_TSEL_400;
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_NE(test, 0, ret);
+
+ /* Too small gain */
+ old_gain = 4;
+ old_time_sel = TEST_TSEL_50;
+ new_time_sel = TEST_TSEL_400;
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_NE(test, 0, ret);
+
+ /* Too big gain */
+ old_gain = 1024;
+ old_time_sel = TEST_TSEL_400;
+ new_time_sel = TEST_TSEL_50;
+ ret = iio_gts_find_new_gain_sel_by_old_gain_time(&gts, old_gain,
+ old_time_sel, new_time_sel, &new_gain);
+ KUNIT_EXPECT_NE(test, 0, ret);
+
+}
+
+static void test_iio_find_closest_gain_low(struct kunit *test)
+{
+ struct device *dev;
+ bool in_range;
+ int ret;
+
+ const struct iio_gain_sel_pair gts_test_gains_gain_low[] = {
+ GAIN_SCALE_GAIN(4, TEST_GSEL_4),
+ GAIN_SCALE_GAIN(16, TEST_GSEL_16),
+ GAIN_SCALE_GAIN(32, TEST_GSEL_32),
+ };
+
+ dev = test_init_iio_gain_scale(test, &gts);
+ if (!dev)
+ return;
+
+ ret = iio_find_closest_gain_low(&gts, 2, &in_range);
+ KUNIT_EXPECT_EQ(test, 1, ret);
+ KUNIT_EXPECT_EQ(test, true, in_range);
+
+ ret = iio_find_closest_gain_low(&gts, 1, &in_range);
+ KUNIT_EXPECT_EQ(test, 1, ret);
+ KUNIT_EXPECT_EQ(test, true, in_range);
+
+ ret = iio_find_closest_gain_low(&gts, 4095, &in_range);
+ KUNIT_EXPECT_EQ(test, 2048, ret);
+ KUNIT_EXPECT_EQ(test, true, in_range);
+
+ ret = iio_find_closest_gain_low(&gts, 4097, &in_range);
+ KUNIT_EXPECT_EQ(test, 4096, ret);
+ KUNIT_EXPECT_EQ(test, false, in_range);
+
+ kunit_device_unregister(test, dev);
+
+ dev = __test_init_iio_gain_scale(test, &gts, gts_test_gains_gain_low,
+ ARRAY_SIZE(gts_test_gains_gain_low),
+ gts_test_itimes, ARRAY_SIZE(gts_test_itimes));
+ if (!dev)
+ return;
+
+ ret = iio_find_closest_gain_low(&gts, 3, &in_range);
+ KUNIT_EXPECT_EQ(test, -EINVAL, ret);
+ KUNIT_EXPECT_EQ(test, false, in_range);
+}
+
+static void test_iio_gts_total_gain_to_scale(struct kunit *test)
+{
+ struct device *dev;
+ int ret, scale_int, scale_nano;
+
+ dev = test_init_iio_gain_scale(test, &gts);
+ if (!dev)
+ return;
+
+ ret = iio_gts_total_gain_to_scale(&gts, 1, &scale_int, &scale_nano);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_SCALE_1X, scale_int);
+ KUNIT_EXPECT_EQ(test, 0, scale_nano);
+
+ ret = iio_gts_total_gain_to_scale(&gts, 1, &scale_int, &scale_nano);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, TEST_SCALE_1X, scale_int);
+ KUNIT_EXPECT_EQ(test, 0, scale_nano);
+
+ ret = iio_gts_total_gain_to_scale(&gts, 4096 * 8, &scale_int,
+ &scale_nano);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ KUNIT_EXPECT_EQ(test, 0, scale_int);
+ KUNIT_EXPECT_EQ(test, TEST_SCALE_NANO_4096X8, scale_nano);
+}
+
+static void test_iio_gts_chk_times(struct kunit *test, const int *vals)
+{
+ static const int expected[] = {0, 50000, 0, 100000, 0, 200000, 0, 400000};
+ int i;
+
+ for (i = 0; i < ARRAY_SIZE(expected); i++)
+ KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
+}
+
+static void test_iio_gts_chk_scales_all(struct kunit *test, struct iio_gts *gts,
+ const int *vals, int len)
+{
+ static const int gains[] = {1, 2, 4, 8, 16, 32, 64, 128, 256, 512,
+ 1024, 2048, 4096, 4096 * 2, 4096 * 4,
+ 4096 * 8};
+ int expected[ARRAY_SIZE(gains) * 2];
+ int i, ret;
+ int exp_len = ARRAY_SIZE(gains) * 2;
+
+ KUNIT_EXPECT_EQ(test, exp_len, len);
+ if (len != exp_len)
+ return;
+
+ for (i = 0; i < ARRAY_SIZE(gains); i++) {
+ ret = iio_gts_total_gain_to_scale(gts, gains[i],
+ &expected[2 * i],
+ &expected[2 * i + 1]);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ if (ret)
+ return;
+ }
+
+ for (i = 0; i < ARRAY_SIZE(expected); i++)
+ KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
+}
+
+static void test_iio_gts_chk_scales_t200(struct kunit *test, struct iio_gts *gts,
+ const int *vals, int len)
+{
+ /* The gain caused by time 200 is 4x */
+ static const int gains[] = {
+ 1 * 4,
+ 4 * 4,
+ 16 * 4,
+ 32 * 4,
+ 64 * 4,
+ 256 * 4,
+ 512 * 4,
+ 1024 * 4,
+ 2048 * 4,
+ 4096 * 4
+ };
+ int expected[ARRAY_SIZE(gains) * 2];
+ int i, ret;
+
+ KUNIT_EXPECT_EQ(test, 2 * ARRAY_SIZE(gains), len);
+ if (len < 2 * ARRAY_SIZE(gains))
+ return;
+
+ for (i = 0; i < ARRAY_SIZE(gains); i++) {
+ ret = iio_gts_total_gain_to_scale(gts, gains[i],
+ &expected[2 * i],
+ &expected[2 * i + 1]);
+ KUNIT_EXPECT_EQ(test, 0, ret);
+ if (ret)
+ return;
+ }
+
+ for (i = 0; i < ARRAY_SIZE(expected); i++)
+ KUNIT_EXPECT_EQ(test, expected[i], vals[i]);
+}
+
+static void test_iio_gts_avail_test(struct kunit *test)
+{
+ struct device *dev;
+ int ret;
+ int type, len;
+ const int *vals;
+
+ dev = test_init_iio_gain_scale(test, &gts);
+ if (!dev)
+ return;
+
+ /* test table building for times and iio_gts_avail_times() */
+ ret = iio_gts_avail_times(&gts, &vals, &type, &len);
+ KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
+ if (ret)
+ return;
+
+ KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_MICRO, type);
+ KUNIT_EXPECT_EQ(test, 8, len);
+ if (len < 8)
+ return;
+
+ test_iio_gts_chk_times(test, vals);
+
+ /* Test table building for all scales and iio_gts_all_avail_scales() */
+ ret = iio_gts_all_avail_scales(&gts, &vals, &type, &len);
+ KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
+ if (ret)
+ return;
+
+ KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_NANO, type);
+
+ test_iio_gts_chk_scales_all(test, &gts, vals, len);
+
+ /*
+ * Test table building for scales/time and
+ * iio_gts_avail_scales_for_time()
+ */
+ ret = iio_gts_avail_scales_for_time(&gts, 200000, &vals, &type, &len);
+ KUNIT_EXPECT_EQ(test, IIO_AVAIL_LIST, ret);
+ if (ret)
+ return;
+
+ KUNIT_EXPECT_EQ(test, IIO_VAL_INT_PLUS_NANO, type);
+ test_iio_gts_chk_scales_t200(test, &gts, vals, len);
+}
+
+static struct kunit_case iio_gts_test_cases[] = {
+ KUNIT_CASE(test_init_iio_gts_invalid),
+ KUNIT_CASE(test_iio_gts_find_gain_for_scale_using_time),
+ KUNIT_CASE(test_iio_gts_find_new_gain_sel_by_old_gain_time),
+ KUNIT_CASE(test_iio_find_closest_gain_low),
+ KUNIT_CASE(test_iio_gts_total_gain_to_scale),
+ KUNIT_CASE(test_iio_gts_avail_test),
+ { }
+};
+
+static struct kunit_suite iio_gts_test_suite = {
+ .name = "iio-gain-time-scale",
+ .test_cases = iio_gts_test_cases,
+};
+
+kunit_test_suite(iio_gts_test_suite);
+
+MODULE_LICENSE("GPL");
+MODULE_AUTHOR("Matti Vaittinen <mazziesaccount@gmail.com>");
+MODULE_DESCRIPTION("Test IIO light sensor gain-time-scale helpers");
+MODULE_IMPORT_NS("IIO_GTS_HELPER");
diff --git a/drivers/iio/test/iio-test-multiply.c b/drivers/iio/test/iio-test-multiply.c
new file mode 100644
index 000000000..432e279ff
--- /dev/null
+++ b/drivers/iio/test/iio-test-multiply.c
@@ -0,0 +1,212 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/* Unit tests for IIO multiply functions
+ *
+ * Copyright (c) 2025 Hans de Goede <hans@hansg.org>
+ * Based on iio-test-format.c which is:
+ * Copyright (c) 2020 Lars-Peter Clausen <lars@metafoo.de>
+ */
+
+#include <kunit/test.h>
+#include <linux/iio/consumer.h>
+#include <linux/math64.h>
+#include <linux/types.h>
+
+static void __iio_test_iio_multiply_value_integer(struct kunit *test, s64 multiplier)
+{
+ int ret, result, val;
+
+ val = 42;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT, val, 0);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, multiplier * val);
+
+ val = -23;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT, val, 0);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, multiplier * val);
+
+ val = 0;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT, val, 0);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, multiplier * val);
+}
+
+static void iio_test_iio_multiply_value_integer(struct kunit *test)
+{
+ __iio_test_iio_multiply_value_integer(test, 20);
+ __iio_test_iio_multiply_value_integer(test, -20);
+}
+
+static void __iio_test_iio_multiply_value_fixedpoint(struct kunit *test, s64 multiplier)
+{
+ int ret, result, val, val2;
+
+ /* positive >= 1 (1.5) */
+ val = 1;
+ val2 = 500000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_MICRO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * 15, 10));
+
+ val = 1;
+ val2 = 500000000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_NANO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * 15, 10));
+
+ /* positive < 1 (0.5) */
+ val = 0;
+ val2 = 500000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_MICRO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * 5, 10));
+
+ val = 0;
+ val2 = 500000000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_NANO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * 5, 10));
+
+ /* negative <= -1 (-1.5) */
+ val = -1;
+ val2 = 500000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_MICRO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * -15, 10));
+
+ val = -1;
+ val2 = 500000000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_NANO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * -15, 10));
+
+ /* negative > -1 (-0.5) */
+ val = 0;
+ val2 = -500000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_MICRO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * -5, 10));
+
+ val = 0;
+ val2 = -500000000;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_INT_PLUS_NANO, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * -5, 10));
+}
+
+static void iio_test_iio_multiply_value_fixedpoint(struct kunit *test)
+{
+ __iio_test_iio_multiply_value_fixedpoint(test, 20);
+ __iio_test_iio_multiply_value_fixedpoint(test, -20);
+}
+
+static void __iio_test_iio_multiply_value_fractional(struct kunit *test, s64 multiplier)
+{
+ int ret, result, val, val2;
+
+ /* positive < 1 (1/10)*/
+ val = 1;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * val, val2));
+
+ /* positive >= 1 (100/3)*/
+ val = 100;
+ val2 = 3;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * val, val2));
+
+ /* negative > -1 (-1/10) */
+ val = -1;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * val, val2));
+
+ /* negative <= -1 (-200/3)*/
+ val = -200;
+ val2 = 3;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * val, val2));
+
+ /* Zero (0/-10) */
+ val = 0;
+ val2 = -10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, div_s64(multiplier * val, val2));
+}
+
+static void iio_test_iio_multiply_value_fractional(struct kunit *test)
+{
+ __iio_test_iio_multiply_value_fractional(test, 20);
+ __iio_test_iio_multiply_value_fractional(test, -20);
+}
+
+static void __iio_test_iio_multiply_value_fractional_log2(struct kunit *test, s64 multiplier)
+{
+ int ret, result, val, val2;
+
+ /* positive < 1 (123/1024) */
+ val = 123;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL_LOG2, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, (multiplier * val) >> val2);
+
+ /* positive >= 1 (1234567/1024) */
+ val = 1234567;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL_LOG2, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, (multiplier * val) >> val2);
+
+ /* negative > -1 (-123/1024) */
+ val = -123;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL_LOG2, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, (multiplier * val) >> val2);
+
+ /* negative <= -1 (-1234567/1024) */
+ val = -1234567;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL_LOG2, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, (multiplier * val) >> val2);
+
+ /* Zero (0/1024) */
+ val = 0;
+ val2 = 10;
+ ret = iio_multiply_value(&result, multiplier, IIO_VAL_FRACTIONAL_LOG2, val, val2);
+ KUNIT_EXPECT_EQ(test, ret, IIO_VAL_INT);
+ KUNIT_EXPECT_EQ(test, result, (multiplier * val) >> val2);
+}
+
+static void iio_test_iio_multiply_value_fractional_log2(struct kunit *test)
+{
+ __iio_test_iio_multiply_value_fractional_log2(test, 20);
+ __iio_test_iio_multiply_value_fractional_log2(test, -20);
+}
+
+static struct kunit_case iio_multiply_test_cases[] = {
+ KUNIT_CASE(iio_test_iio_multiply_value_integer),
+ KUNIT_CASE(iio_test_iio_multiply_value_fixedpoint),
+ KUNIT_CASE(iio_test_iio_multiply_value_fractional),
+ KUNIT_CASE(iio_test_iio_multiply_value_fractional_log2),
+ { }
+};
+
+static struct kunit_suite iio_multiply_test_suite = {
+ .name = "iio-multiply",
+ .test_cases = iio_multiply_test_cases,
+};
+kunit_test_suite(iio_multiply_test_suite);
+
+MODULE_AUTHOR("Hans de Goede <hans@hansg.org>");
+MODULE_DESCRIPTION("Test IIO multiply functions");
+MODULE_LICENSE("GPL");
+MODULE_IMPORT_NS("IIO_UNIT_TEST");
diff --git a/drivers/iio/test/iio-test-rescale.c b/drivers/iio/test/iio-test-rescale.c
new file mode 100644
index 000000000..bcd4a607b
--- /dev/null
+++ b/drivers/iio/test/iio-test-rescale.c
@@ -0,0 +1,719 @@
+// SPDX-License-Identifier: GPL-2.0-only
+/*
+ * Kunit tests for IIO rescale conversions
+ *
+ * Copyright (c) 2021 Liam Beguin <liambeguin@gmail.com>
+ */
+
+#include <linux/gcd.h>
+#include <linux/overflow.h>
+
+#include <linux/iio/afe/rescale.h>
+#include <linux/iio/iio.h>
+
+#include <kunit/test.h>
+
+struct rescale_tc_data {
+ const char *name;
+
+ const s32 numerator;
+ const s32 denominator;
+ const s32 offset;
+
+ const int schan_val;
+ const int schan_val2;
+ const int schan_off;
+ const int schan_scale_type;
+
+ const char *expected;
+ const char *expected_off;
+};
+
+static const struct rescale_tc_data scale_cases[] = {
+ /*
+ * Typical use cases
+ */
+ {
+ .name = "typical IIO_VAL_INT, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT,
+ .schan_val = 42,
+ .expected = "5210.918114143",
+ },
+ {
+ .name = "typical IIO_VAL_INT, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT,
+ .schan_val = 42,
+ .expected = "-5210.918114143",
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 42,
+ .schan_val2 = 20,
+ .expected = "260.545905707",
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 42,
+ .schan_val2 = 20,
+ .expected = "-260.545905707",
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL_LOG2, positive",
+ .numerator = 42,
+ .denominator = 53,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 4096,
+ .schan_val2 = 16,
+ .expected = "0.049528301",
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL_LOG2, negative",
+ .numerator = -42,
+ .denominator = 53,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 4096,
+ .schan_val2 = 16,
+ .expected = "-0.049528301",
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_NANO, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456,
+ .expected = "1240.710106203",
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_NANO, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456,
+ .expected = "-1240.710106203",
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_MICRO, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 1234,
+ .expected = "1240.84789",
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_MICRO, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 1234,
+ .expected = "-1240.84789",
+ },
+ /*
+ * Use cases with small scales involving divisions
+ */
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 261/509 scaled by 90/1373754273",
+ .numerator = 261,
+ .denominator = 509,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 90,
+ .schan_val2 = 1373754273,
+ .expected = "0.000000033594",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 90/1373754273 scaled by 261/509",
+ .numerator = 90,
+ .denominator = 1373754273,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 261,
+ .schan_val2 = 509,
+ .expected = "0.000000033594",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 760/1373754273 scaled by 427/2727",
+ .numerator = 760,
+ .denominator = 1373754273,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 427,
+ .schan_val2 = 2727,
+ .expected = "0.000000086626",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 761/1373754273 scaled by 427/2727",
+ .numerator = 761,
+ .denominator = 1373754273,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 427,
+ .schan_val2 = 2727,
+ .expected = "0.000000086740",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 5/32768 scaled by 3/10000",
+ .numerator = 5,
+ .denominator = 32768,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 3,
+ .schan_val2 = 10000,
+ .expected = "0.0000000457763671875",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 0 < scale < 1",
+ .numerator = 6,
+ .denominator = 6,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 1,
+ .schan_val2 = 3,
+ .expected = "0.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, -1 < scale < 0",
+ .numerator = -6,
+ .denominator = 6,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 1,
+ .schan_val2 = 3,
+ .expected = "-0.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, 0 < scale < 2",
+ .numerator = 8,
+ .denominator = 2,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 1,
+ .schan_val2 = 3,
+ .expected = "1.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL, -2 < scale < 0",
+ .numerator = -8,
+ .denominator = 2,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 1,
+ .schan_val2 = 3,
+ .expected = "-1.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, 760/32768 scaled by 15/22",
+ .numerator = 760,
+ .denominator = 32768,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 15,
+ .schan_val2 = 22,
+ .expected = "0.000000082946",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, 761/32768 scaled by 15/22",
+ .numerator = 761,
+ .denominator = 32768,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 15,
+ .schan_val2 = 22,
+ .expected = "0.000000083055",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, 0 < scale < 1",
+ .numerator = 16,
+ .denominator = 3,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 1,
+ .schan_val2 = 4,
+ .expected = "0.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, -1 < scale < 0",
+ .numerator = -16,
+ .denominator = 3,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 1,
+ .schan_val2 = 4,
+ .expected = "-0.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, 0 < scale < 2",
+ .numerator = 8,
+ .denominator = 3,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 1,
+ .schan_val2 = 1,
+ .expected = "1.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_FRACTIONAL_LOG2, -2 < scale < 0",
+ .numerator = -8,
+ .denominator = 3,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 1,
+ .schan_val2 = 1,
+ .expected = "-1.3333333333333333",
+ },
+ {
+ .name = "small IIO_VAL_INT_PLUS_MICRO, positive",
+ .numerator = 1,
+ .denominator = 2,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 5,
+ .schan_val2 = 1234,
+ .expected = "2.500617",
+ },
+ {
+ .name = "small IIO_VAL_INT_PLUS_MICRO, negative",
+ .numerator = -1,
+ .denominator = 2,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 5,
+ .schan_val2 = 1234,
+ .expected = "-2.500617",
+ },
+ /*
+ * INT_PLUS_{MICRO,NANO} positive/negative corner cases
+ */
+ {
+ .name = "negative IIO_VAL_INT_PLUS_NANO, negative schan",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = 123456,
+ .expected = "-1240.710106203",
+ },
+ {
+ .name = "negative IIO_VAL_INT_PLUS_NANO, both negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = 123456,
+ .expected = "1240.710106203",
+ },
+ {
+ .name = "negative IIO_VAL_INT_PLUS_NANO, 3 negative",
+ .numerator = -1000000,
+ .denominator = -8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = 123456,
+ .expected = "-1240.710106203",
+ },
+ {
+ .name = "negative IIO_VAL_INT_PLUS_NANO, 4 negative",
+ .numerator = -1000000,
+ .denominator = -8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = -123456,
+ .expected = "-1240.710106203",
+ },
+ {
+ .name = "negative IIO_VAL_INT_PLUS_NANO, negative, *val = 0",
+ .numerator = 1,
+ .denominator = -10,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 0,
+ .schan_val2 = 123456789,
+ .expected = "-0.012345678",
+ },
+ /*
+ * INT_PLUS_{MICRO,NANO} decimal part overflow
+ */
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_NANO, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .expected = "1256.01200856",
+ },
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_NANO, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .expected = "-1256.01200856",
+ },
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_NANO, negative schan",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = 123456789,
+ .expected = "-1256.01200856",
+ },
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_MICRO, positive",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .expected = "16557.914267",
+ },
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_MICRO, negative",
+ .numerator = -1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .expected = "-16557.914267",
+ },
+ {
+ .name = "decimal overflow IIO_VAL_INT_PLUS_MICRO, negative schan",
+ .numerator = 1000000,
+ .denominator = 8060,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = -10,
+ .schan_val2 = 123456789,
+ .expected = "-16557.914267",
+ },
+ /*
+ * 32-bit overflow conditions
+ */
+ {
+ .name = "overflow IIO_VAL_FRACTIONAL, positive",
+ .numerator = 2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = S32_MAX,
+ .schan_val2 = 1,
+ .expected = "214748364.7",
+ },
+ {
+ .name = "overflow IIO_VAL_FRACTIONAL, negative",
+ .numerator = -2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = S32_MAX,
+ .schan_val2 = 1,
+ .expected = "-214748364.7",
+ },
+ {
+ .name = "overflow IIO_VAL_FRACTIONAL_LOG2, positive",
+ .numerator = S32_MAX,
+ .denominator = 4096,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 4096,
+ .schan_val2 = 16,
+ .expected = "32767.99998474121",
+ },
+ {
+ .name = "overflow IIO_VAL_FRACTIONAL_LOG2, negative",
+ .numerator = S32_MAX,
+ .denominator = 4096,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = -4096,
+ .schan_val2 = 16,
+ .expected = "-32767.99998474121",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_NANO, positive",
+ .numerator = 2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = S32_MAX,
+ .expected = "1.214748364",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_NANO, negative",
+ .numerator = -2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = S32_MAX,
+ .expected = "-1.214748364",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_NANO, negative schan",
+ .numerator = 2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = -10,
+ .schan_val2 = S32_MAX,
+ .expected = "-1.214748364",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_MICRO, positive",
+ .numerator = 2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = S32_MAX,
+ .expected = "215.748364",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_MICRO, negative",
+ .numerator = -2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = S32_MAX,
+ .expected = "-215.748364",
+ },
+ {
+ .name = "overflow IIO_VAL_INT_PLUS_MICRO, negative schan",
+ .numerator = 2,
+ .denominator = 20,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = -10,
+ .schan_val2 = S32_MAX,
+ .expected = "-215.748364",
+ },
+};
+
+static const struct rescale_tc_data offset_cases[] = {
+ /*
+ * Typical use cases
+ */
+ {
+ .name = "typical IIO_VAL_INT, positive",
+ .offset = 1234,
+ .schan_scale_type = IIO_VAL_INT,
+ .schan_val = 123,
+ .schan_val2 = 0,
+ .schan_off = 14,
+ .expected_off = "24", /* 23.872 */
+ },
+ {
+ .name = "typical IIO_VAL_INT, negative",
+ .offset = -1234,
+ .schan_scale_type = IIO_VAL_INT,
+ .schan_val = 12,
+ .schan_val2 = 0,
+ .schan_off = 14,
+ .expected_off = "-88", /* -88.83333333333333 */
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL, positive",
+ .offset = 1234,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 12,
+ .schan_val2 = 34,
+ .schan_off = 14,
+ .expected_off = "3510", /* 3510.333333333333 */
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL, negative",
+ .offset = -1234,
+ .schan_scale_type = IIO_VAL_FRACTIONAL,
+ .schan_val = 12,
+ .schan_val2 = 34,
+ .schan_off = 14,
+ .expected_off = "-3482", /* -3482.333333333333 */
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL_LOG2, positive",
+ .offset = 1234,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 12,
+ .schan_val2 = 16,
+ .schan_off = 14,
+ .expected_off = "6739299", /* 6739299.333333333 */
+ },
+ {
+ .name = "typical IIO_VAL_FRACTIONAL_LOG2, negative",
+ .offset = -1234,
+ .schan_scale_type = IIO_VAL_FRACTIONAL_LOG2,
+ .schan_val = 12,
+ .schan_val2 = 16,
+ .schan_off = 14,
+ .expected_off = "-6739271", /* -6739271.333333333 */
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_NANO, positive",
+ .offset = 1234,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .schan_off = 14,
+ .expected_off = "135", /* 135.8951219647469 */
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_NANO, negative",
+ .offset = -1234,
+ .schan_scale_type = IIO_VAL_INT_PLUS_NANO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .schan_off = 14,
+ .expected_off = "-107", /* -107.89512196474689 */
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_MICRO, positive",
+ .offset = 1234,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .schan_off = 14,
+ .expected_off = "23", /* 23.246438560723952 */
+ },
+ {
+ .name = "typical IIO_VAL_INT_PLUS_MICRO, negative",
+ .offset = -12345,
+ .schan_scale_type = IIO_VAL_INT_PLUS_MICRO,
+ .schan_val = 10,
+ .schan_val2 = 123456789,
+ .schan_off = 14,
+ .expected_off = "-78", /* -78.50185091745313 */
+ },
+};
+
+static void case_to_desc(const struct rescale_tc_data *t, char *desc)
+{
+ strscpy(desc, t->name, KUNIT_PARAM_DESC_SIZE);
+}
+
+KUNIT_ARRAY_PARAM(iio_rescale_scale, scale_cases, case_to_desc);
+KUNIT_ARRAY_PARAM(iio_rescale_offset, offset_cases, case_to_desc);
+
+/**
+ * iio_str_to_nano() - Parse a fixed-point string to get an
+ * IIO_VAL_INT_PLUS_NANO value
+ * @str: The string to parse
+ * @nano: The number as an integer
+ *
+ * Returns 0 on success, or a negative error code if the string cound not be
+ * parsed.
+ */
+static int iio_str_to_nano(const char *str, s64 *nano)
+{
+ int tmp, tmp2;
+ int ret = 0;
+
+ /*
+ * iio_str_to_fixpoint() uses 10^8 here instead of 10^9 as fract_mult is
+ * the multiplier for the first decimal place.
+ */
+ ret = iio_str_to_fixpoint(str, 100000000, &tmp, &tmp2);
+ if (ret < 0)
+ return ret;
+
+ if (tmp < 0)
+ tmp2 *= -1;
+
+ *nano = (s64)tmp * 1000000000UL + tmp2;
+
+ return ret;
+}
+
+/**
+ * iio_test_relative_error_ppm() - Compute relative error (in parts-per-million)
+ * between two fixed-point strings
+ * @real_str: The real value as a string
+ * @exp_str: The expected value as a string
+ *
+ * Returns a negative error code if the strings cound not be parsed, or the
+ * relative error in parts-per-million.
+ */
+static int iio_test_relative_error_ppm(const char *real_str, const char *exp_str)
+{
+ s64 real, exp, err;
+ int ret;
+
+ ret = iio_str_to_nano(real_str, &real);
+ if (ret < 0)
+ return ret;
+
+ ret = iio_str_to_nano(exp_str, &exp);
+ if (ret < 0)
+ return ret;
+
+ if (!exp) {
+ pr_err("Expected value is null, relative error is undefined\n");
+ return -EINVAL;
+ }
+
+ err = 1000000UL * abs(exp - real);
+
+ return (int)div64_u64(err, abs(exp));
+}
+
+static void iio_rescale_test_scale(struct kunit *test)
+{
+ struct rescale_tc_data *t = (struct rescale_tc_data *)test->param_value;
+ char *buff = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ struct rescale rescale;
+ int values[2];
+ int rel_ppm;
+ int ret;
+
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buff);
+
+ rescale.numerator = t->numerator;
+ rescale.denominator = t->denominator;
+ rescale.offset = t->offset;
+ values[0] = t->schan_val;
+ values[1] = t->schan_val2;
+
+ ret = rescale_process_scale(&rescale, t->schan_scale_type,
+ &values[0], &values[1]);
+
+ ret = iio_format_value(buff, ret, 2, values);
+ KUNIT_EXPECT_EQ(test, (int)strlen(buff), ret);
+
+ rel_ppm = iio_test_relative_error_ppm(buff, t->expected);
+ KUNIT_EXPECT_GE_MSG(test, rel_ppm, 0, "failed to compute ppm\n");
+
+ KUNIT_EXPECT_EQ_MSG(test, rel_ppm, 0,
+ "\t real=%s"
+ "\texpected=%s\n",
+ buff, t->expected);
+}
+
+static void iio_rescale_test_offset(struct kunit *test)
+{
+ struct rescale_tc_data *t = (struct rescale_tc_data *)test->param_value;
+ char *buff_off = kunit_kmalloc(test, PAGE_SIZE, GFP_KERNEL);
+ struct rescale rescale;
+ int values[2];
+ int ret;
+
+ KUNIT_ASSERT_NOT_ERR_OR_NULL(test, buff_off);
+
+ rescale.numerator = t->numerator;
+ rescale.denominator = t->denominator;
+ rescale.offset = t->offset;
+ values[0] = t->schan_val;
+ values[1] = t->schan_val2;
+
+ ret = rescale_process_offset(&rescale, t->schan_scale_type,
+ t->schan_val, t->schan_val2, t->schan_off,
+ &values[0], &values[1]);
+
+ ret = iio_format_value(buff_off, ret, 2, values);
+ KUNIT_EXPECT_EQ(test, (int)strlen(buff_off), ret);
+
+ KUNIT_EXPECT_STREQ(test, strim(buff_off), t->expected_off);
+}
+
+static struct kunit_case iio_rescale_test_cases[] = {
+ KUNIT_CASE_PARAM(iio_rescale_test_scale, iio_rescale_scale_gen_params),
+ KUNIT_CASE_PARAM(iio_rescale_test_offset, iio_rescale_offset_gen_params),
+ { }
+};
+
+static struct kunit_suite iio_rescale_test_suite = {
+ .name = "iio-rescale",
+ .test_cases = iio_rescale_test_cases,
+};
+kunit_test_suite(iio_rescale_test_suite);
+
+MODULE_AUTHOR("Liam Beguin <liambeguin@gmail.com>");
+MODULE_DESCRIPTION("Test IIO rescale conversion functions");
+MODULE_LICENSE("GPL v2");
+MODULE_IMPORT_NS("IIO_RESCALE");