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// SPDX-License-Identifier: GPL-2.0-only
/*
* Copyright (C) 2026 UltraRISC Technology (Shanghai) Co., Ltd.
*/
#include <linux/bitfield.h>
#include <linux/clk-provider.h>
#include <linux/io.h>
#include <linux/math64.h>
#include <linux/module.h>
#include <linux/platform_device.h>
#include "clk-ultrarisc.h"
struct ultrarisc_pll_clk {
struct clk_hw hw;
void __iomem *base;
const struct ultrarisc_pll_layout *layout;
};
struct ultrarisc_divider_clk {
struct clk_divider divider;
struct clk_gate gate;
u32 load_mask;
};
#define to_ultrarisc_pll_clk(_hw) \
container_of(_hw, struct ultrarisc_pll_clk, hw)
static inline struct ultrarisc_divider_clk *to_ultrarisc_divider_clk(struct clk_hw *hw)
{
struct clk_divider *divider = to_clk_divider(hw);
return container_of(divider, struct ultrarisc_divider_clk, divider);
}
static unsigned long ultrarisc_pll_recalc_rate(struct clk_hw *hw,
unsigned long parent_rate)
{
struct ultrarisc_pll_clk *pll = to_ultrarisc_pll_clk(hw);
const struct ultrarisc_pll_layout *layout = pll->layout;
u32 oddiv1_div, oddiv2_div;
u64 mult, rate, den;
u32 frac, m, n;
u32 cfg1, cfg2;
cfg1 = readl_relaxed(pll->base + layout->cfg1_offset);
cfg2 = readl_relaxed(pll->base + layout->cfg2_offset);
frac = field_get(layout->frac_mask, cfg1);
m = field_get(layout->m_mask, cfg2);
n = field_get(layout->n_mask, cfg2);
if (!n)
return 0;
oddiv1_div = 1U << field_get(layout->oddiv1_mask, cfg2);
oddiv2_div = 1U << field_get(layout->oddiv2_mask, cfg2);
/*
* The output frequency is calculated as:
* fvco = parent * (m + frac / 2^24) / n
* fout = fvco / (2^oddiv1_raw * 2^oddiv2_raw)
*
* The output divider values are derived from the raw register field values as:
* oddivX_div = 1 << oddivX_raw
*/
mult = ((u64)m << 24) + frac;
rate = (u64)parent_rate * mult;
den = ((u64)n << 24) * oddiv1_div * oddiv2_div;
return div64_u64(rate + (den >> 1), den);
}
static const struct clk_ops ultrarisc_pll_ro_ops = {
.recalc_rate = ultrarisc_pll_recalc_rate,
};
static unsigned long ultrarisc_divider_recalc_rate(struct clk_hw *hw,
unsigned long parent_rate)
{
struct clk_divider *divider = to_clk_divider(hw);
u32 val;
val = readl_relaxed(divider->reg) >> divider->shift;
val &= clk_div_mask(divider->width);
return divider_recalc_rate(hw, parent_rate, val, divider->table,
divider->flags, divider->width);
}
static int ultrarisc_divider_determine_rate(struct clk_hw *hw,
struct clk_rate_request *req)
{
struct clk_divider *divider = to_clk_divider(hw);
return divider_determine_rate(hw, req, divider->table, divider->width,
divider->flags);
}
static int ultrarisc_divider_set_rate(struct clk_hw *hw, unsigned long rate,
unsigned long parent_rate)
{
struct ultrarisc_divider_clk *divider_clk = to_ultrarisc_divider_clk(hw);
struct clk_divider *divider = ÷r_clk->divider;
int value;
u32 val;
value = divider_get_val(rate, parent_rate, divider->table,
divider->width, divider->flags);
if (value < 0)
return value;
scoped_guard(spinlock_irqsave, divider->lock) {
val = readl_relaxed(divider->reg);
val &= ~(clk_div_mask(divider->width) << divider->shift);
val |= value << divider->shift;
writel_relaxed(val, divider->reg);
if (divider_clk->load_mask) {
/*
* Program the new divider field, then write 1 to the
* load bit to trigger the update. The load bit is
* write-triggered and reads back as 0 on this hardware.
*/
writel_relaxed(val | divider_clk->load_mask, divider->reg);
}
}
return 0;
}
static const struct clk_ops ultrarisc_divider_ops = {
.recalc_rate = ultrarisc_divider_recalc_rate,
.determine_rate = ultrarisc_divider_determine_rate,
.set_rate = ultrarisc_divider_set_rate,
};
static struct clk_hw *ultrarisc_clk_register_pll(struct device *dev,
const struct ultrarisc_pll_desc *desc,
const struct ultrarisc_pll_layout *layout,
void __iomem *base)
{
struct clk_parent_data pdata = { .index = 0 };
struct ultrarisc_pll_clk *pll;
struct clk_init_data init = {
.name = desc->name,
.ops = &ultrarisc_pll_ro_ops,
.parent_data = &pdata,
.num_parents = 1,
.flags = CLK_GET_RATE_NOCACHE,
};
int ret;
pll = devm_kzalloc(dev, sizeof(*pll), GFP_KERNEL);
if (!pll)
return ERR_PTR(-ENOMEM);
pll->base = base;
pll->layout = layout;
pll->hw.init = &init;
ret = devm_clk_hw_register(dev, &pll->hw);
if (ret)
return ERR_PTR(ret);
return &pll->hw;
}
static struct clk_hw *
ultrarisc_clk_register_divider(struct device *dev,
const struct ultrarisc_divider_desc *desc,
struct clk_hw *parent_hw, void __iomem *base,
spinlock_t *lock)
{
const struct clk_parent_data pdata = { .hw = parent_hw };
void __iomem *reg = base + desc->offset;
struct ultrarisc_divider_clk *divider;
if (!desc->div_width)
return ERR_PTR(-EINVAL);
if (!lock)
return ERR_PTR(-EINVAL);
divider = devm_kzalloc(dev, sizeof(*divider), GFP_KERNEL);
if (!divider)
return ERR_PTR(-ENOMEM);
divider->divider.reg = reg;
divider->divider.shift = desc->div_shift;
divider->divider.width = desc->div_width;
divider->divider.flags = desc->divider_flags;
divider->divider.lock = lock;
divider->load_mask = desc->load_mask;
divider->gate.reg = reg;
divider->gate.bit_idx = desc->gate_bit;
divider->gate.flags = desc->gate_flags;
divider->gate.lock = lock;
return devm_clk_hw_register_composite_pdata(dev, desc->name,
&pdata, 1, NULL, NULL,
÷r->divider.hw,
&ultrarisc_divider_ops,
÷r->gate.hw,
&clk_gate_ops, 0);
}
static int ultrarisc_clk_register_fixed_factors(struct device *dev,
struct clk_hw_onecell_data *clk_data,
const struct ultrarisc_clk_soc_data *soc_data)
{
u32 i;
for (i = 0; i < soc_data->num_fixed_factors; i++) {
const struct ultrarisc_fixed_factor_desc *desc;
struct clk_hw *parent_hw;
struct clk_hw *hw;
desc = &soc_data->fixed_factors[i];
if (desc->id >= clk_data->num || desc->parent_id >= clk_data->num)
return -EINVAL;
parent_hw = clk_data->hws[desc->parent_id];
if (!parent_hw)
return -EINVAL;
hw = devm_clk_hw_register_fixed_factor_parent_hw(dev, desc->name,
parent_hw, 0,
desc->mult,
desc->div);
if (IS_ERR(hw))
return PTR_ERR(hw);
clk_data->hws[desc->id] = hw;
}
return 0;
}
static int ultrarisc_clk_register_plls(struct platform_device *pdev,
struct clk_hw_onecell_data *clk_data,
const struct ultrarisc_clk_soc_data *soc_data,
void __iomem *base)
{
struct device *dev = &pdev->dev;
u32 i;
for (i = 0; i < soc_data->num_plls; i++) {
const struct ultrarisc_pll_desc *desc = &soc_data->plls[i];
struct clk_hw *hw;
if (desc->id >= clk_data->num) {
dev_err(dev, "%s invalid clock ID %u >= %u\n",
desc->name, desc->id, clk_data->num);
return -EINVAL;
}
hw = ultrarisc_clk_register_pll(dev, desc, soc_data->pll_layout, base);
if (IS_ERR(hw))
return PTR_ERR(hw);
clk_data->hws[desc->id] = hw;
}
return 0;
}
static int ultrarisc_clk_register_dividers(struct platform_device *pdev,
struct clk_hw_onecell_data *clk_data,
const struct ultrarisc_clk_soc_data *soc_data,
void __iomem *base,
spinlock_t *lock)
{
struct device *dev = &pdev->dev;
u32 i;
for (i = 0; i < soc_data->num_dividers; i++) {
const struct ultrarisc_divider_desc *desc;
struct clk_hw *parent_hw;
struct clk_hw *hw;
desc = &soc_data->dividers[i];
if (desc->id >= clk_data->num || desc->parent_id >= clk_data->num)
return -EINVAL;
parent_hw = clk_data->hws[desc->parent_id];
if (!parent_hw)
return -EINVAL;
hw = ultrarisc_clk_register_divider(dev, desc, parent_hw, base,
lock);
if (IS_ERR(hw))
return PTR_ERR(hw);
if (desc->max_rate)
clk_hw_set_rate_range(hw, 0, desc->max_rate);
clk_data->hws[desc->id] = hw;
}
return 0;
}
static int ultrarisc_clk_register_gates(struct platform_device *pdev,
struct clk_hw_onecell_data *clk_data,
const struct ultrarisc_clk_soc_data *soc_data,
void __iomem *base,
spinlock_t *lock)
{
struct device *dev = &pdev->dev;
u32 i;
for (i = 0; i < soc_data->num_gates; i++) {
const struct ultrarisc_gate_desc *desc;
struct clk_hw *parent_hw;
struct clk_hw *hw;
desc = &soc_data->gates[i];
if (desc->id >= clk_data->num || desc->parent_id >= clk_data->num)
return -EINVAL;
parent_hw = clk_data->hws[desc->parent_id];
if (!parent_hw)
return -EINVAL;
hw = devm_clk_hw_register_gate_parent_hw(dev, desc->name,
parent_hw, 0,
base + desc->offset,
desc->gate_bit,
desc->gate_flags,
lock);
if (IS_ERR(hw))
return PTR_ERR(hw);
clk_data->hws[desc->id] = hw;
}
return 0;
}
int ultrarisc_clk_probe(struct platform_device *pdev,
const struct ultrarisc_clk_soc_data *soc_data)
{
struct clk_hw_onecell_data *clk_data;
struct device *dev = &pdev->dev;
void __iomem *base;
spinlock_t *lock;
int ret;
if (!soc_data)
return -EINVAL;
lock = devm_kzalloc(dev, sizeof(*lock), GFP_KERNEL);
if (!lock)
return -ENOMEM;
spin_lock_init(lock);
clk_data = devm_kzalloc(dev, struct_size(clk_data, hws,
soc_data->num_clks),
GFP_KERNEL);
if (!clk_data)
return -ENOMEM;
clk_data->num = soc_data->num_clks;
base = devm_platform_ioremap_resource(pdev, 0);
if (IS_ERR(base))
return PTR_ERR(base);
ret = ultrarisc_clk_register_plls(pdev, clk_data, soc_data, base);
if (ret)
return ret;
ret = ultrarisc_clk_register_fixed_factors(dev, clk_data, soc_data);
if (ret)
return ret;
ret = ultrarisc_clk_register_dividers(pdev, clk_data, soc_data, base, lock);
if (ret)
return ret;
ret = ultrarisc_clk_register_gates(pdev, clk_data, soc_data, base, lock);
if (ret)
return ret;
for (int i = 0; i < clk_data->num; i++) {
if (!clk_data->hws[i]) {
dev_err(dev, "missing clock ID %u\n", i);
return -EINVAL;
}
}
return devm_of_clk_add_hw_provider(dev, of_clk_hw_onecell_get, clk_data);
}
EXPORT_SYMBOL_NS_GPL(ultrarisc_clk_probe, "CLK_ULTRARISC");
MODULE_DESCRIPTION("UltraRISC clock core driver");
MODULE_LICENSE("GPL");
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