xref: /linux/drivers/clk/clk-rp1.c (revision 502d45774af09f1c681c754c4b7cdfb5d7f72fd9)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (C) 2023 Raspberry Pi Ltd.
4  *
5  * Clock driver for RP1 PCIe multifunction chip.
6  */
7 
8 #include <linux/bitfield.h>
9 #include <linux/clk-provider.h>
10 #include <linux/regmap.h>
11 #include <linux/math64.h>
12 #include <linux/module.h>
13 #include <linux/platform_device.h>
14 #include <linux/units.h>
15 
16 #include <dt-bindings/clock/raspberrypi,rp1-clocks.h>
17 
18 #define PLL_SYS_OFFSET			0x08000
19 #define PLL_SYS_CS			(PLL_SYS_OFFSET + 0x00)
20 #define PLL_SYS_PWR			(PLL_SYS_OFFSET + 0x04)
21 #define PLL_SYS_FBDIV_INT		(PLL_SYS_OFFSET + 0x08)
22 #define PLL_SYS_FBDIV_FRAC		(PLL_SYS_OFFSET + 0x0c)
23 #define PLL_SYS_PRIM			(PLL_SYS_OFFSET + 0x10)
24 #define PLL_SYS_SEC			(PLL_SYS_OFFSET + 0x14)
25 
26 #define PLL_AUDIO_OFFSET		0x0c000
27 #define PLL_AUDIO_CS			(PLL_AUDIO_OFFSET + 0x00)
28 #define PLL_AUDIO_PWR			(PLL_AUDIO_OFFSET + 0x04)
29 #define PLL_AUDIO_FBDIV_INT		(PLL_AUDIO_OFFSET + 0x08)
30 #define PLL_AUDIO_FBDIV_FRAC		(PLL_AUDIO_OFFSET + 0x0c)
31 #define PLL_AUDIO_PRIM			(PLL_AUDIO_OFFSET + 0x10)
32 #define PLL_AUDIO_SEC			(PLL_AUDIO_OFFSET + 0x14)
33 #define PLL_AUDIO_TERN			(PLL_AUDIO_OFFSET + 0x18)
34 
35 #define PLL_VIDEO_OFFSET		0x10000
36 #define PLL_VIDEO_CS			(PLL_VIDEO_OFFSET + 0x00)
37 #define PLL_VIDEO_PWR			(PLL_VIDEO_OFFSET + 0x04)
38 #define PLL_VIDEO_FBDIV_INT		(PLL_VIDEO_OFFSET + 0x08)
39 #define PLL_VIDEO_FBDIV_FRAC		(PLL_VIDEO_OFFSET + 0x0c)
40 #define PLL_VIDEO_PRIM			(PLL_VIDEO_OFFSET + 0x10)
41 #define PLL_VIDEO_SEC			(PLL_VIDEO_OFFSET + 0x14)
42 
43 #define GPCLK_OE_CTRL			0x00000
44 
45 #define CLK_SYS_OFFSET			0x00014
46 #define CLK_SYS_CTRL			(CLK_SYS_OFFSET + 0x00)
47 #define CLK_SYS_DIV_INT			(CLK_SYS_OFFSET + 0x04)
48 #define CLK_SYS_SEL			(CLK_SYS_OFFSET + 0x0c)
49 
50 #define CLK_SLOW_OFFSET			0x00024
51 #define CLK_SLOW_SYS_CTRL		(CLK_SLOW_OFFSET + 0x00)
52 #define CLK_SLOW_SYS_DIV_INT		(CLK_SLOW_OFFSET + 0x04)
53 #define CLK_SLOW_SYS_SEL		(CLK_SLOW_OFFSET + 0x0c)
54 
55 #define CLK_DMA_OFFSET			0x00044
56 #define CLK_DMA_CTRL			(CLK_DMA_OFFSET + 0x00)
57 #define CLK_DMA_DIV_INT			(CLK_DMA_OFFSET + 0x04)
58 #define CLK_DMA_SEL			(CLK_DMA_OFFSET + 0x0c)
59 
60 #define CLK_UART_OFFSET			0x00054
61 #define CLK_UART_CTRL			(CLK_UART_OFFSET + 0x00)
62 #define CLK_UART_DIV_INT		(CLK_UART_OFFSET + 0x04)
63 #define CLK_UART_SEL			(CLK_UART_OFFSET + 0x0c)
64 
65 #define CLK_ETH_OFFSET			0x00064
66 #define CLK_ETH_CTRL			(CLK_ETH_OFFSET + 0x00)
67 #define CLK_ETH_DIV_INT			(CLK_ETH_OFFSET + 0x04)
68 #define CLK_ETH_SEL			(CLK_ETH_OFFSET + 0x0c)
69 
70 #define CLK_PWM0_OFFSET			0x00074
71 #define CLK_PWM0_CTRL			(CLK_PWM0_OFFSET + 0x00)
72 #define CLK_PWM0_DIV_INT		(CLK_PWM0_OFFSET + 0x04)
73 #define CLK_PWM0_DIV_FRAC		(CLK_PWM0_OFFSET + 0x08)
74 #define CLK_PWM0_SEL			(CLK_PWM0_OFFSET + 0x0c)
75 
76 #define CLK_PWM1_OFFSET			0x00084
77 #define CLK_PWM1_CTRL			(CLK_PWM1_OFFSET + 0x00)
78 #define CLK_PWM1_DIV_INT		(CLK_PWM1_OFFSET + 0x04)
79 #define CLK_PWM1_DIV_FRAC		(CLK_PWM1_OFFSET + 0x08)
80 #define CLK_PWM1_SEL			(CLK_PWM1_OFFSET + 0x0c)
81 
82 #define CLK_AUDIO_IN_OFFSET		0x00094
83 #define CLK_AUDIO_IN_CTRL		(CLK_AUDIO_IN_OFFSET + 0x00)
84 #define CLK_AUDIO_IN_DIV_INT		(CLK_AUDIO_IN_OFFSET + 0x04)
85 #define CLK_AUDIO_IN_SEL		(CLK_AUDIO_IN_OFFSET + 0x0c)
86 
87 #define CLK_AUDIO_OUT_OFFSET		0x000a4
88 #define CLK_AUDIO_OUT_CTRL		(CLK_AUDIO_OUT_OFFSET + 0x00)
89 #define CLK_AUDIO_OUT_DIV_INT		(CLK_AUDIO_OUT_OFFSET + 0x04)
90 #define CLK_AUDIO_OUT_SEL		(CLK_AUDIO_OUT_OFFSET + 0x0c)
91 
92 #define CLK_I2S_OFFSET			0x000b4
93 #define CLK_I2S_CTRL			(CLK_I2S_OFFSET + 0x00)
94 #define CLK_I2S_DIV_INT			(CLK_I2S_OFFSET + 0x04)
95 #define CLK_I2S_SEL			(CLK_I2S_OFFSET + 0x0c)
96 
97 #define CLK_MIPI0_CFG_OFFSET		0x000c4
98 #define CLK_MIPI0_CFG_CTRL		(CLK_MIPI0_CFG_OFFSET + 0x00)
99 #define CLK_MIPI0_CFG_DIV_INT		(CLK_MIPI0_CFG_OFFSET + 0x04)
100 #define CLK_MIPI0_CFG_SEL		(CLK_MIPI0_CFG_OFFSET + 0x0c)
101 
102 #define CLK_MIPI1_CFG_OFFSET		0x000d4
103 #define CLK_MIPI1_CFG_CTRL		(CLK_MIPI1_CFG_OFFSET + 0x00)
104 #define CLK_MIPI1_CFG_DIV_INT		(CLK_MIPI1_CFG_OFFSET + 0x04)
105 #define CLK_MIPI1_CFG_SEL		(CLK_MIPI1_CFG_OFFSET + 0x0c)
106 
107 #define CLK_PCIE_AUX_OFFSET		0x000e4
108 #define CLK_PCIE_AUX_CTRL		(CLK_PCIE_AUX_OFFSET + 0x00)
109 #define CLK_PCIE_AUX_DIV_INT		(CLK_PCIE_AUX_OFFSET + 0x04)
110 #define CLK_PCIE_AUX_SEL		(CLK_PCIE_AUX_OFFSET + 0x0c)
111 
112 #define CLK_USBH0_MICROFRAME_OFFSET	0x000f4
113 #define CLK_USBH0_MICROFRAME_CTRL	(CLK_USBH0_MICROFRAME_OFFSET + 0x00)
114 #define CLK_USBH0_MICROFRAME_DIV_INT	(CLK_USBH0_MICROFRAME_OFFSET + 0x04)
115 #define CLK_USBH0_MICROFRAME_SEL	(CLK_USBH0_MICROFRAME_OFFSET + 0x0c)
116 
117 #define CLK_USBH1_MICROFRAME_OFFSET	0x00104
118 #define CLK_USBH1_MICROFRAME_CTRL	(CLK_USBH1_MICROFRAME_OFFSET + 0x00)
119 #define CLK_USBH1_MICROFRAME_DIV_INT	(CLK_USBH1_MICROFRAME_OFFSET + 0x04)
120 #define CLK_USBH1_MICROFRAME_SEL	(CLK_USBH1_MICROFRAME_OFFSET + 0x0c)
121 
122 #define CLK_USBH0_SUSPEND_OFFSET	0x00114
123 #define CLK_USBH0_SUSPEND_CTRL		(CLK_USBH0_SUSPEND_OFFSET + 0x00)
124 #define CLK_USBH0_SUSPEND_DIV_INT	(CLK_USBH0_SUSPEND_OFFSET + 0x04)
125 #define CLK_USBH0_SUSPEND_SEL		(CLK_USBH0_SUSPEND_OFFSET + 0x0c)
126 
127 #define CLK_USBH1_SUSPEND_OFFSET	0x00124
128 #define CLK_USBH1_SUSPEND_CTRL		(CLK_USBH1_SUSPEND_OFFSET + 0x00)
129 #define CLK_USBH1_SUSPEND_DIV_INT	(CLK_USBH1_SUSPEND_OFFSET + 0x04)
130 #define CLK_USBH1_SUSPEND_SEL		(CLK_USBH1_SUSPEND_OFFSET + 0x0c)
131 
132 #define CLK_ETH_TSU_OFFSET		0x00134
133 #define CLK_ETH_TSU_CTRL		(CLK_ETH_TSU_OFFSET + 0x00)
134 #define CLK_ETH_TSU_DIV_INT		(CLK_ETH_TSU_OFFSET + 0x04)
135 #define CLK_ETH_TSU_SEL			(CLK_ETH_TSU_OFFSET + 0x0c)
136 
137 #define CLK_ADC_OFFSET			0x00144
138 #define CLK_ADC_CTRL			(CLK_ADC_OFFSET + 0x00)
139 #define CLK_ADC_DIV_INT			(CLK_ADC_OFFSET + 0x04)
140 #define CLK_ADC_SEL			(CLK_ADC_OFFSET + 0x0c)
141 
142 #define CLK_SDIO_TIMER_OFFSET		0x00154
143 #define CLK_SDIO_TIMER_CTRL		(CLK_SDIO_TIMER_OFFSET + 0x00)
144 #define CLK_SDIO_TIMER_DIV_INT		(CLK_SDIO_TIMER_OFFSET + 0x04)
145 #define CLK_SDIO_TIMER_SEL		(CLK_SDIO_TIMER_OFFSET + 0x0c)
146 
147 #define CLK_SDIO_ALT_SRC_OFFSET		0x00164
148 #define CLK_SDIO_ALT_SRC_CTRL		(CLK_SDIO_ALT_SRC_OFFSET + 0x00)
149 #define CLK_SDIO_ALT_SRC_DIV_INT	(CLK_SDIO_ALT_SRC_OFFSET + 0x04)
150 #define CLK_SDIO_ALT_SRC_SEL		(CLK_SDIO_ALT_SRC_OFFSET + 0x0c)
151 
152 #define CLK_GP0_OFFSET			0x00174
153 #define CLK_GP0_CTRL			(CLK_GP0_OFFSET + 0x00)
154 #define CLK_GP0_DIV_INT			(CLK_GP0_OFFSET + 0x04)
155 #define CLK_GP0_DIV_FRAC		(CLK_GP0_OFFSET + 0x08)
156 #define CLK_GP0_SEL			(CLK_GP0_OFFSET + 0x0c)
157 
158 #define CLK_GP1_OFFSET			0x00184
159 #define CLK_GP1_CTRL			(CLK_GP1_OFFSET + 0x00)
160 #define CLK_GP1_DIV_INT			(CLK_GP1_OFFSET + 0x04)
161 #define CLK_GP1_DIV_FRAC		(CLK_GP1_OFFSET + 0x08)
162 #define CLK_GP1_SEL			(CLK_GP1_OFFSET + 0x0c)
163 
164 #define CLK_GP2_OFFSET			0x00194
165 #define CLK_GP2_CTRL			(CLK_GP2_OFFSET + 0x00)
166 #define CLK_GP2_DIV_INT			(CLK_GP2_OFFSET + 0x04)
167 #define CLK_GP2_DIV_FRAC		(CLK_GP2_OFFSET + 0x08)
168 #define CLK_GP2_SEL			(CLK_GP2_OFFSET + 0x0c)
169 
170 #define CLK_GP3_OFFSET			0x001a4
171 #define CLK_GP3_CTRL			(CLK_GP3_OFFSET + 0x00)
172 #define CLK_GP3_DIV_INT			(CLK_GP3_OFFSET + 0x04)
173 #define CLK_GP3_DIV_FRAC		(CLK_GP3_OFFSET + 0x08)
174 #define CLK_GP3_SEL			(CLK_GP3_OFFSET + 0x0c)
175 
176 #define CLK_GP4_OFFSET			0x001b4
177 #define CLK_GP4_CTRL			(CLK_GP4_OFFSET + 0x00)
178 #define CLK_GP4_DIV_INT			(CLK_GP4_OFFSET + 0x04)
179 #define CLK_GP4_DIV_FRAC		(CLK_GP4_OFFSET + 0x08)
180 #define CLK_GP4_SEL			(CLK_GP4_OFFSET + 0x0c)
181 
182 #define CLK_GP5_OFFSET			0x001c4
183 #define CLK_GP5_CTRL			(CLK_GP5_OFFSET + 0x00)
184 #define CLK_GP5_DIV_INT			(CLK_GP5_OFFSET + 0x04)
185 #define CLK_GP5_DIV_FRAC		(CLK_GP5_OFFSET + 0x08)
186 #define CLK_GP5_SEL			(CLK_GP5_OFFSET + 0x0c)
187 
188 #define CLK_SYS_RESUS_CTRL		0x0020c
189 
190 #define CLK_SLOW_SYS_RESUS_CTRL		0x00214
191 
192 #define FC0_OFFSET			0x0021c
193 #define FC0_REF_KHZ			(FC0_OFFSET + 0x00)
194 #define FC0_MIN_KHZ			(FC0_OFFSET + 0x04)
195 #define FC0_MAX_KHZ			(FC0_OFFSET + 0x08)
196 #define FC0_DELAY			(FC0_OFFSET + 0x0c)
197 #define FC0_INTERVAL			(FC0_OFFSET + 0x10)
198 #define FC0_SRC				(FC0_OFFSET + 0x14)
199 #define FC0_STATUS			(FC0_OFFSET + 0x18)
200 #define FC0_RESULT			(FC0_OFFSET + 0x1c)
201 #define FC_SIZE				0x20
202 #define FC_COUNT			8
203 #define FC_NUM(idx, off)		((idx) * 32 + (off))
204 
205 #define AUX_SEL				1
206 
207 #define VIDEO_CLOCKS_OFFSET		0x4000
208 #define VIDEO_CLK_VEC_CTRL		(VIDEO_CLOCKS_OFFSET + 0x0000)
209 #define VIDEO_CLK_VEC_DIV_INT		(VIDEO_CLOCKS_OFFSET + 0x0004)
210 #define VIDEO_CLK_VEC_SEL		(VIDEO_CLOCKS_OFFSET + 0x000c)
211 #define VIDEO_CLK_DPI_CTRL		(VIDEO_CLOCKS_OFFSET + 0x0010)
212 #define VIDEO_CLK_DPI_DIV_INT		(VIDEO_CLOCKS_OFFSET + 0x0014)
213 #define VIDEO_CLK_DPI_SEL		(VIDEO_CLOCKS_OFFSET + 0x001c)
214 #define VIDEO_CLK_MIPI0_DPI_CTRL	(VIDEO_CLOCKS_OFFSET + 0x0020)
215 #define VIDEO_CLK_MIPI0_DPI_DIV_INT	(VIDEO_CLOCKS_OFFSET + 0x0024)
216 #define VIDEO_CLK_MIPI0_DPI_DIV_FRAC	(VIDEO_CLOCKS_OFFSET + 0x0028)
217 #define VIDEO_CLK_MIPI0_DPI_SEL		(VIDEO_CLOCKS_OFFSET + 0x002c)
218 #define VIDEO_CLK_MIPI1_DPI_CTRL	(VIDEO_CLOCKS_OFFSET + 0x0030)
219 #define VIDEO_CLK_MIPI1_DPI_DIV_INT	(VIDEO_CLOCKS_OFFSET + 0x0034)
220 #define VIDEO_CLK_MIPI1_DPI_DIV_FRAC	(VIDEO_CLOCKS_OFFSET + 0x0038)
221 #define VIDEO_CLK_MIPI1_DPI_SEL		(VIDEO_CLOCKS_OFFSET + 0x003c)
222 
223 #define DIV_INT_8BIT_MAX		GENMASK(7, 0)	/* max divide for most clocks */
224 #define DIV_INT_16BIT_MAX		GENMASK(15, 0)	/* max divide for GPx, PWM */
225 #define DIV_INT_24BIT_MAX               GENMASK(23, 0)	/* max divide for CLK_SYS */
226 
227 #define FC0_STATUS_DONE			BIT(4)
228 #define FC0_STATUS_RUNNING		BIT(8)
229 #define FC0_RESULT_FRAC_SHIFT		5
230 
231 #define PLL_PRIM_DIV1_MASK		GENMASK(18, 16)
232 #define PLL_PRIM_DIV2_MASK		GENMASK(14, 12)
233 
234 #define PLL_SEC_DIV_MASK		GENMASK(12, 8)
235 
236 #define PLL_CS_LOCK			BIT(31)
237 #define PLL_CS_REFDIV_MASK		BIT(1)
238 
239 #define PLL_PWR_PD			BIT(0)
240 #define PLL_PWR_DACPD			BIT(1)
241 #define PLL_PWR_DSMPD			BIT(2)
242 #define PLL_PWR_POSTDIVPD		BIT(3)
243 #define PLL_PWR_4PHASEPD		BIT(4)
244 #define PLL_PWR_VCOPD			BIT(5)
245 #define PLL_PWR_MASK			GENMASK(5, 0)
246 
247 #define PLL_SEC_RST			BIT(16)
248 #define PLL_SEC_IMPL			BIT(31)
249 
250 /* PLL phase output for both PRI and SEC */
251 #define PLL_PH_EN			BIT(4)
252 #define PLL_PH_PHASE_SHIFT		0
253 
254 #define RP1_PLL_PHASE_0			0
255 #define RP1_PLL_PHASE_90		1
256 #define RP1_PLL_PHASE_180		2
257 #define RP1_PLL_PHASE_270		3
258 
259 /* Clock fields for all clocks */
260 #define CLK_CTRL_ENABLE			BIT(11)
261 #define CLK_CTRL_AUXSRC_MASK		GENMASK(9, 5)
262 #define CLK_CTRL_SRC_SHIFT		0
263 #define CLK_DIV_FRAC_BITS		16
264 
265 #define LOCK_TIMEOUT_US			100000
266 #define LOCK_POLL_DELAY_US		5
267 
268 #define MAX_CLK_PARENTS			16
269 
270 #define PLL_DIV_INVALID			19
271 /*
272  * Secondary PLL channel output divider table.
273  * Divider values range from 8 to 19, where
274  * 19 means invalid.
275  */
276 static const struct clk_div_table pll_sec_div_table[] = {
277 	{ 0x00, PLL_DIV_INVALID },
278 	{ 0x01, PLL_DIV_INVALID },
279 	{ 0x02, PLL_DIV_INVALID },
280 	{ 0x03, PLL_DIV_INVALID },
281 	{ 0x04, PLL_DIV_INVALID },
282 	{ 0x05, PLL_DIV_INVALID },
283 	{ 0x06, PLL_DIV_INVALID },
284 	{ 0x07, PLL_DIV_INVALID },
285 	{ 0x08,  8 },
286 	{ 0x09,  9 },
287 	{ 0x0a, 10 },
288 	{ 0x0b, 11 },
289 	{ 0x0c, 12 },
290 	{ 0x0d, 13 },
291 	{ 0x0e, 14 },
292 	{ 0x0f, 15 },
293 	{ 0x10, 16 },
294 	{ 0x11, 17 },
295 	{ 0x12, 18 },
296 	{ 0x13, PLL_DIV_INVALID },
297 	{ 0x14, PLL_DIV_INVALID },
298 	{ 0x15, PLL_DIV_INVALID },
299 	{ 0x16, PLL_DIV_INVALID },
300 	{ 0x17, PLL_DIV_INVALID },
301 	{ 0x18, PLL_DIV_INVALID },
302 	{ 0x19, PLL_DIV_INVALID },
303 	{ 0x1a, PLL_DIV_INVALID },
304 	{ 0x1b, PLL_DIV_INVALID },
305 	{ 0x1c, PLL_DIV_INVALID },
306 	{ 0x1d, PLL_DIV_INVALID },
307 	{ 0x1e, PLL_DIV_INVALID },
308 	{ 0x1f, PLL_DIV_INVALID },
309 	{ 0 }
310 };
311 
312 struct rp1_clockman {
313 	struct device *dev;
314 	void __iomem *regs;
315 	struct regmap *regmap;
316 	spinlock_t regs_lock; /* spinlock for all clocks */
317 
318 	/* Must be last */
319 	struct clk_hw_onecell_data onecell;
320 };
321 
322 struct rp1_pll_core_data {
323 	u32 cs_reg;
324 	u32 pwr_reg;
325 	u32 fbdiv_int_reg;
326 	u32 fbdiv_frac_reg;
327 	u32 fc0_src;
328 };
329 
330 struct rp1_pll_data {
331 	u32 ctrl_reg;
332 	u32 fc0_src;
333 };
334 
335 struct rp1_pll_ph_data {
336 	unsigned int phase;
337 	unsigned int fixed_divider;
338 	u32 ph_reg;
339 	u32 fc0_src;
340 };
341 
342 struct rp1_pll_divider_data {
343 	u32 sec_reg;
344 	u32 fc0_src;
345 };
346 
347 struct rp1_clock_data {
348 	int num_std_parents;
349 	int num_aux_parents;
350 	u32 oe_mask;
351 	u32 clk_src_mask;
352 	u32 ctrl_reg;
353 	u32 div_int_reg;
354 	u32 div_frac_reg;
355 	u32 sel_reg;
356 	u32 div_int_max;
357 	unsigned long max_freq;
358 	u32 fc0_src;
359 };
360 
361 struct rp1_clk_desc {
362 	struct clk_hw *(*clk_register)(struct rp1_clockman *clockman,
363 				       struct rp1_clk_desc *desc);
364 	const void *data;
365 	struct clk_hw hw;
366 	struct rp1_clockman *clockman;
367 	unsigned long cached_rate;
368 	struct clk_divider div;
369 };
370 
371 static struct rp1_clk_desc *clk_audio_core;
372 static struct rp1_clk_desc *clk_audio;
373 static struct rp1_clk_desc *clk_i2s;
374 static struct clk_hw *clk_xosc;
375 
376 static inline
clockman_write(struct rp1_clockman * clockman,u32 reg,u32 val)377 void clockman_write(struct rp1_clockman *clockman, u32 reg, u32 val)
378 {
379 	regmap_write(clockman->regmap, reg, val);
380 }
381 
clockman_read(struct rp1_clockman * clockman,u32 reg)382 static inline u32 clockman_read(struct rp1_clockman *clockman, u32 reg)
383 {
384 	u32 val;
385 
386 	regmap_read(clockman->regmap, reg, &val);
387 
388 	return val;
389 }
390 
rp1_pll_core_is_on(struct clk_hw * hw)391 static int rp1_pll_core_is_on(struct clk_hw *hw)
392 {
393 	struct rp1_clk_desc *pll_core = container_of(hw, struct rp1_clk_desc, hw);
394 	struct rp1_clockman *clockman = pll_core->clockman;
395 	const struct rp1_pll_core_data *data = pll_core->data;
396 	u32 pwr = clockman_read(clockman, data->pwr_reg);
397 
398 	return (pwr & PLL_PWR_PD) || (pwr & PLL_PWR_POSTDIVPD);
399 }
400 
rp1_pll_core_on(struct clk_hw * hw)401 static int rp1_pll_core_on(struct clk_hw *hw)
402 {
403 	struct rp1_clk_desc *pll_core = container_of(hw, struct rp1_clk_desc, hw);
404 	struct rp1_clockman *clockman = pll_core->clockman;
405 	const struct rp1_pll_core_data *data = pll_core->data;
406 	u32 fbdiv_frac, val;
407 	int ret;
408 
409 	spin_lock(&clockman->regs_lock);
410 
411 	if (!(clockman_read(clockman, data->cs_reg) & PLL_CS_LOCK)) {
412 		/* Reset to a known state. */
413 		clockman_write(clockman, data->pwr_reg, PLL_PWR_MASK);
414 		clockman_write(clockman, data->fbdiv_int_reg, 20);
415 		clockman_write(clockman, data->fbdiv_frac_reg, 0);
416 		clockman_write(clockman, data->cs_reg, PLL_CS_REFDIV_MASK);
417 	}
418 
419 	/* Come out of reset. */
420 	fbdiv_frac = clockman_read(clockman, data->fbdiv_frac_reg);
421 	clockman_write(clockman, data->pwr_reg, fbdiv_frac ? 0 : PLL_PWR_DSMPD);
422 	spin_unlock(&clockman->regs_lock);
423 
424 	/* Wait for the PLL to lock. */
425 	ret = regmap_read_poll_timeout(clockman->regmap, data->cs_reg, val,
426 				       val & PLL_CS_LOCK,
427 				       LOCK_POLL_DELAY_US, LOCK_TIMEOUT_US);
428 	if (ret)
429 		dev_err(clockman->dev, "%s: can't lock PLL\n",
430 			clk_hw_get_name(hw));
431 
432 	return ret;
433 }
434 
rp1_pll_core_off(struct clk_hw * hw)435 static void rp1_pll_core_off(struct clk_hw *hw)
436 {
437 	struct rp1_clk_desc *pll_core = container_of(hw, struct rp1_clk_desc, hw);
438 	struct rp1_clockman *clockman = pll_core->clockman;
439 	const struct rp1_pll_core_data *data = pll_core->data;
440 
441 	spin_lock(&clockman->regs_lock);
442 	clockman_write(clockman, data->pwr_reg, 0);
443 	spin_unlock(&clockman->regs_lock);
444 }
445 
get_pll_core_divider(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate,u32 * div_int,u32 * div_frac)446 static inline unsigned long get_pll_core_divider(struct clk_hw *hw,
447 						 unsigned long rate,
448 						 unsigned long parent_rate,
449 						 u32 *div_int, u32 *div_frac)
450 {
451 	u32 fbdiv_int, fbdiv_frac;
452 	unsigned long calc_rate;
453 	u64 shifted_fbdiv_int;
454 	u64 div_fp64; /* 32.32 fixed point fraction. */
455 
456 	/* Factor of reference clock to VCO frequency. */
457 	div_fp64 = (u64)(rate) << 32;
458 	div_fp64 = DIV_ROUND_CLOSEST_ULL(div_fp64, parent_rate);
459 
460 	/* Round the fractional component at 24 bits. */
461 	div_fp64 += 1 << (32 - 24 - 1);
462 
463 	fbdiv_int = div_fp64 >> 32;
464 	fbdiv_frac = (div_fp64 >> (32 - 24)) & 0xffffff;
465 
466 	shifted_fbdiv_int = (u64)fbdiv_int << 24;
467 	calc_rate = (u64)parent_rate * (shifted_fbdiv_int + fbdiv_frac);
468 	calc_rate += BIT(23);
469 	calc_rate >>= 24;
470 
471 	*div_int = fbdiv_int;
472 	*div_frac = fbdiv_frac;
473 
474 	return calc_rate;
475 }
476 
rp1_pll_core_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)477 static int rp1_pll_core_set_rate(struct clk_hw *hw,
478 				 unsigned long rate, unsigned long parent_rate)
479 {
480 	struct rp1_clk_desc *pll_core = container_of(hw, struct rp1_clk_desc, hw);
481 	struct rp1_clockman *clockman = pll_core->clockman;
482 	const struct rp1_pll_core_data *data = pll_core->data;
483 	u32 fbdiv_int, fbdiv_frac;
484 
485 	/* Disable dividers to start with. */
486 	spin_lock(&clockman->regs_lock);
487 	clockman_write(clockman, data->fbdiv_int_reg, 0);
488 	clockman_write(clockman, data->fbdiv_frac_reg, 0);
489 	spin_unlock(&clockman->regs_lock);
490 
491 	get_pll_core_divider(hw, rate, parent_rate,
492 			     &fbdiv_int, &fbdiv_frac);
493 
494 	spin_lock(&clockman->regs_lock);
495 	clockman_write(clockman, data->pwr_reg, fbdiv_frac ? 0 : PLL_PWR_DSMPD);
496 	clockman_write(clockman, data->fbdiv_int_reg, fbdiv_int);
497 	clockman_write(clockman, data->fbdiv_frac_reg, fbdiv_frac);
498 	spin_unlock(&clockman->regs_lock);
499 
500 	/* Check that reference frequency is no greater than VCO / 16. */
501 	if (WARN_ON_ONCE(parent_rate > (rate / 16)))
502 		return -ERANGE;
503 
504 	spin_lock(&clockman->regs_lock);
505 	/* Don't need to divide ref unless parent_rate > (output freq / 16) */
506 	clockman_write(clockman, data->cs_reg,
507 		       clockman_read(clockman, data->cs_reg) |
508 				     PLL_CS_REFDIV_MASK);
509 	spin_unlock(&clockman->regs_lock);
510 
511 	return 0;
512 }
513 
rp1_pll_core_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)514 static unsigned long rp1_pll_core_recalc_rate(struct clk_hw *hw,
515 					      unsigned long parent_rate)
516 {
517 	struct rp1_clk_desc *pll_core = container_of(hw, struct rp1_clk_desc, hw);
518 	struct rp1_clockman *clockman = pll_core->clockman;
519 	const struct rp1_pll_core_data *data = pll_core->data;
520 	u32 fbdiv_int, fbdiv_frac;
521 	unsigned long calc_rate;
522 	u64 shifted_fbdiv_int;
523 
524 	fbdiv_int = clockman_read(clockman, data->fbdiv_int_reg);
525 	fbdiv_frac = clockman_read(clockman, data->fbdiv_frac_reg);
526 
527 	shifted_fbdiv_int = (u64)fbdiv_int << 24;
528 	calc_rate = (u64)parent_rate * (shifted_fbdiv_int + fbdiv_frac);
529 	calc_rate += BIT(23);
530 	calc_rate >>= 24;
531 
532 	return calc_rate;
533 }
534 
rp1_pll_core_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)535 static int rp1_pll_core_determine_rate(struct clk_hw *hw,
536 				       struct clk_rate_request *req)
537 {
538 	u32 fbdiv_int, fbdiv_frac;
539 
540 	req->rate = get_pll_core_divider(hw, req->rate, req->best_parent_rate,
541 					 &fbdiv_int,
542 					 &fbdiv_frac);
543 
544 	return 0;
545 }
546 
get_pll_prim_dividers(unsigned long rate,unsigned long parent_rate,u32 * divider1,u32 * divider2)547 static void get_pll_prim_dividers(unsigned long rate, unsigned long parent_rate,
548 				  u32 *divider1, u32 *divider2)
549 {
550 	unsigned int div1, div2;
551 	unsigned int best_div1 = 7, best_div2 = 7;
552 	unsigned long best_rate_diff =
553 		abs_diff(DIV_ROUND_CLOSEST(parent_rate, best_div1 * best_div2), rate);
554 	unsigned long rate_diff, calc_rate;
555 
556 	for (div1 = 1; div1 <= 7; div1++) {
557 		for (div2 = 1; div2 <= div1; div2++) {
558 			calc_rate = DIV_ROUND_CLOSEST(parent_rate, div1 * div2);
559 			rate_diff = abs_diff(calc_rate, rate);
560 
561 			if (calc_rate == rate) {
562 				best_div1 = div1;
563 				best_div2 = div2;
564 				goto done;
565 			} else if (rate_diff < best_rate_diff) {
566 				best_div1 = div1;
567 				best_div2 = div2;
568 				best_rate_diff = rate_diff;
569 			}
570 		}
571 	}
572 
573 done:
574 	*divider1 = best_div1;
575 	*divider2 = best_div2;
576 }
577 
rp1_pll_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)578 static int rp1_pll_set_rate(struct clk_hw *hw,
579 			    unsigned long rate, unsigned long parent_rate)
580 {
581 	struct rp1_clk_desc *pll = container_of(hw, struct rp1_clk_desc, hw);
582 	struct rp1_clockman *clockman = pll->clockman;
583 	const struct rp1_pll_data *data = pll->data;
584 
585 	u32 prim, prim_div1, prim_div2;
586 
587 	get_pll_prim_dividers(rate, parent_rate, &prim_div1, &prim_div2);
588 
589 	spin_lock(&clockman->regs_lock);
590 	prim = clockman_read(clockman, data->ctrl_reg);
591 	prim &= ~PLL_PRIM_DIV1_MASK;
592 	prim |= FIELD_PREP(PLL_PRIM_DIV1_MASK, prim_div1);
593 	prim &= ~PLL_PRIM_DIV2_MASK;
594 	prim |= FIELD_PREP(PLL_PRIM_DIV2_MASK, prim_div2);
595 	clockman_write(clockman, data->ctrl_reg, prim);
596 	spin_unlock(&clockman->regs_lock);
597 
598 	return 0;
599 }
600 
rp1_pll_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)601 static unsigned long rp1_pll_recalc_rate(struct clk_hw *hw,
602 					 unsigned long parent_rate)
603 {
604 	struct rp1_clk_desc *pll = container_of(hw, struct rp1_clk_desc, hw);
605 	struct rp1_clockman *clockman = pll->clockman;
606 	const struct rp1_pll_data *data = pll->data;
607 	u32 prim, prim_div1, prim_div2;
608 
609 	prim = clockman_read(clockman, data->ctrl_reg);
610 	prim_div1 = FIELD_GET(PLL_PRIM_DIV1_MASK, prim);
611 	prim_div2 = FIELD_GET(PLL_PRIM_DIV2_MASK, prim);
612 
613 	if (!prim_div1 || !prim_div2) {
614 		dev_err(clockman->dev, "%s: (%s) zero divider value\n",
615 			__func__, clk_hw_get_name(hw));
616 		return 0;
617 	}
618 
619 	return DIV_ROUND_CLOSEST(parent_rate, prim_div1 * prim_div2);
620 }
621 
rp1_pll_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)622 static int rp1_pll_determine_rate(struct clk_hw *hw,
623 				  struct clk_rate_request *req)
624 {
625 	struct clk_hw *clk_audio_hw = &clk_audio->hw;
626 	u32 div1, div2;
627 
628 	if (hw == clk_audio_hw && clk_audio->cached_rate == req->rate)
629 		req->best_parent_rate = clk_audio_core->cached_rate;
630 
631 	get_pll_prim_dividers(req->rate, req->best_parent_rate, &div1, &div2);
632 
633 	req->rate = DIV_ROUND_CLOSEST(req->best_parent_rate, div1 * div2);
634 
635 	return 0;
636 }
637 
rp1_pll_ph_is_on(struct clk_hw * hw)638 static int rp1_pll_ph_is_on(struct clk_hw *hw)
639 {
640 	struct rp1_clk_desc *pll_ph = container_of(hw, struct rp1_clk_desc, hw);
641 	struct rp1_clockman *clockman = pll_ph->clockman;
642 	const struct rp1_pll_ph_data *data = pll_ph->data;
643 
644 	return !!(clockman_read(clockman, data->ph_reg) & PLL_PH_EN);
645 }
646 
rp1_pll_ph_on(struct clk_hw * hw)647 static int rp1_pll_ph_on(struct clk_hw *hw)
648 {
649 	struct rp1_clk_desc *pll_ph = container_of(hw, struct rp1_clk_desc, hw);
650 	struct rp1_clockman *clockman = pll_ph->clockman;
651 	const struct rp1_pll_ph_data *data = pll_ph->data;
652 	u32 ph_reg;
653 
654 	spin_lock(&clockman->regs_lock);
655 	ph_reg = clockman_read(clockman, data->ph_reg);
656 	ph_reg |= data->phase << PLL_PH_PHASE_SHIFT;
657 	ph_reg |= PLL_PH_EN;
658 	clockman_write(clockman, data->ph_reg, ph_reg);
659 	spin_unlock(&clockman->regs_lock);
660 
661 	return 0;
662 }
663 
rp1_pll_ph_off(struct clk_hw * hw)664 static void rp1_pll_ph_off(struct clk_hw *hw)
665 {
666 	struct rp1_clk_desc *pll_ph = container_of(hw, struct rp1_clk_desc, hw);
667 	struct rp1_clockman *clockman = pll_ph->clockman;
668 	const struct rp1_pll_ph_data *data = pll_ph->data;
669 
670 	spin_lock(&clockman->regs_lock);
671 	clockman_write(clockman, data->ph_reg,
672 		       clockman_read(clockman, data->ph_reg) & ~PLL_PH_EN);
673 	spin_unlock(&clockman->regs_lock);
674 }
675 
rp1_pll_ph_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)676 static unsigned long rp1_pll_ph_recalc_rate(struct clk_hw *hw,
677 					    unsigned long parent_rate)
678 {
679 	struct rp1_clk_desc *pll_ph = container_of(hw, struct rp1_clk_desc, hw);
680 	const struct rp1_pll_ph_data *data = pll_ph->data;
681 
682 	return parent_rate / data->fixed_divider;
683 }
684 
rp1_pll_ph_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)685 static int rp1_pll_ph_determine_rate(struct clk_hw *hw,
686 				     struct clk_rate_request *req)
687 {
688 	struct rp1_clk_desc *pll_ph = container_of(hw, struct rp1_clk_desc, hw);
689 	const struct rp1_pll_ph_data *data = pll_ph->data;
690 
691 	req->rate = req->best_parent_rate / data->fixed_divider;
692 
693 	return 0;
694 }
695 
rp1_pll_divider_is_on(struct clk_hw * hw)696 static int rp1_pll_divider_is_on(struct clk_hw *hw)
697 {
698 	struct rp1_clk_desc *divider = container_of(hw, struct rp1_clk_desc, div.hw);
699 	struct rp1_clockman *clockman = divider->clockman;
700 	const struct rp1_pll_data *data = divider->data;
701 
702 	return !(clockman_read(clockman, data->ctrl_reg) & PLL_SEC_RST);
703 }
704 
rp1_pll_divider_on(struct clk_hw * hw)705 static int rp1_pll_divider_on(struct clk_hw *hw)
706 {
707 	struct rp1_clk_desc *divider = container_of(hw, struct rp1_clk_desc, div.hw);
708 	struct rp1_clockman *clockman = divider->clockman;
709 	const struct rp1_pll_data *data = divider->data;
710 
711 	spin_lock(&clockman->regs_lock);
712 	/* Check the implementation bit is set! */
713 	WARN_ON(!(clockman_read(clockman, data->ctrl_reg) & PLL_SEC_IMPL));
714 	clockman_write(clockman, data->ctrl_reg,
715 		       clockman_read(clockman, data->ctrl_reg) & ~PLL_SEC_RST);
716 	spin_unlock(&clockman->regs_lock);
717 
718 	return 0;
719 }
720 
rp1_pll_divider_off(struct clk_hw * hw)721 static void rp1_pll_divider_off(struct clk_hw *hw)
722 {
723 	struct rp1_clk_desc *divider = container_of(hw, struct rp1_clk_desc, div.hw);
724 	struct rp1_clockman *clockman = divider->clockman;
725 	const struct rp1_pll_data *data = divider->data;
726 
727 	spin_lock(&clockman->regs_lock);
728 	clockman_write(clockman, data->ctrl_reg,
729 		       clockman_read(clockman, data->ctrl_reg) | PLL_SEC_RST);
730 	spin_unlock(&clockman->regs_lock);
731 }
732 
rp1_pll_divider_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)733 static int rp1_pll_divider_set_rate(struct clk_hw *hw,
734 				    unsigned long rate,
735 				    unsigned long parent_rate)
736 {
737 	struct rp1_clk_desc *divider = container_of(hw, struct rp1_clk_desc, div.hw);
738 	struct rp1_clockman *clockman = divider->clockman;
739 	const struct rp1_pll_data *data = divider->data;
740 	u32 div, sec;
741 
742 	div = DIV_ROUND_UP_ULL(parent_rate, rate);
743 	div = clamp(div, 8u, 19u);
744 
745 	spin_lock(&clockman->regs_lock);
746 	sec = clockman_read(clockman, data->ctrl_reg);
747 	sec &= ~PLL_SEC_DIV_MASK;
748 	sec |= FIELD_PREP(PLL_SEC_DIV_MASK, div);
749 
750 	/* Must keep the divider in reset to change the value. */
751 	sec |= PLL_SEC_RST;
752 	clockman_write(clockman, data->ctrl_reg, sec);
753 
754 	/* must sleep 10 pll vco cycles */
755 	ndelay(div64_ul(10ULL * div * NSEC_PER_SEC, parent_rate));
756 
757 	sec &= ~PLL_SEC_RST;
758 	clockman_write(clockman, data->ctrl_reg, sec);
759 	spin_unlock(&clockman->regs_lock);
760 
761 	return 0;
762 }
763 
rp1_pll_divider_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)764 static unsigned long rp1_pll_divider_recalc_rate(struct clk_hw *hw,
765 						 unsigned long parent_rate)
766 {
767 	return clk_divider_ops.recalc_rate(hw, parent_rate);
768 }
769 
rp1_pll_divider_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)770 static int rp1_pll_divider_determine_rate(struct clk_hw *hw,
771 					  struct clk_rate_request *req)
772 {
773 	req->rate = clk_divider_ops.determine_rate(hw, req);
774 
775 	return 0;
776 }
777 
rp1_clock_is_on(struct clk_hw * hw)778 static int rp1_clock_is_on(struct clk_hw *hw)
779 {
780 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
781 	struct rp1_clockman *clockman = clock->clockman;
782 	const struct rp1_clock_data *data = clock->data;
783 
784 	return !!(clockman_read(clockman, data->ctrl_reg) & CLK_CTRL_ENABLE);
785 }
786 
rp1_clock_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)787 static unsigned long rp1_clock_recalc_rate(struct clk_hw *hw,
788 					   unsigned long parent_rate)
789 {
790 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
791 	struct rp1_clockman *clockman = clock->clockman;
792 	const struct rp1_clock_data *data = clock->data;
793 	u64 calc_rate;
794 	u64 div;
795 	u32 frac;
796 
797 	div = clockman_read(clockman, data->div_int_reg);
798 	frac = (data->div_frac_reg != 0) ?
799 		clockman_read(clockman, data->div_frac_reg) : 0;
800 
801 	/* If the integer portion of the divider is 0, treat it as 2^16 */
802 	if (!div)
803 		div = 1 << 16;
804 
805 	div = (div << CLK_DIV_FRAC_BITS) | (frac >> (32 - CLK_DIV_FRAC_BITS));
806 
807 	calc_rate = (u64)parent_rate << CLK_DIV_FRAC_BITS;
808 	calc_rate = div64_u64(calc_rate, div);
809 
810 	return calc_rate;
811 }
812 
rp1_clock_on(struct clk_hw * hw)813 static int rp1_clock_on(struct clk_hw *hw)
814 {
815 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
816 	struct rp1_clockman *clockman = clock->clockman;
817 	const struct rp1_clock_data *data = clock->data;
818 
819 	spin_lock(&clockman->regs_lock);
820 	clockman_write(clockman, data->ctrl_reg,
821 		       clockman_read(clockman, data->ctrl_reg) | CLK_CTRL_ENABLE);
822 	/* If this is a GPCLK, turn on the output-enable */
823 	if (data->oe_mask)
824 		clockman_write(clockman, GPCLK_OE_CTRL,
825 			       clockman_read(clockman, GPCLK_OE_CTRL) | data->oe_mask);
826 	spin_unlock(&clockman->regs_lock);
827 
828 	return 0;
829 }
830 
rp1_clock_off(struct clk_hw * hw)831 static void rp1_clock_off(struct clk_hw *hw)
832 {
833 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
834 	struct rp1_clockman *clockman = clock->clockman;
835 	const struct rp1_clock_data *data = clock->data;
836 
837 	spin_lock(&clockman->regs_lock);
838 	clockman_write(clockman, data->ctrl_reg,
839 		       clockman_read(clockman, data->ctrl_reg) & ~CLK_CTRL_ENABLE);
840 	/* If this is a GPCLK, turn off the output-enable */
841 	if (data->oe_mask)
842 		clockman_write(clockman, GPCLK_OE_CTRL,
843 			       clockman_read(clockman, GPCLK_OE_CTRL) & ~data->oe_mask);
844 	spin_unlock(&clockman->regs_lock);
845 }
846 
rp1_clock_choose_div(unsigned long rate,unsigned long parent_rate,const struct rp1_clock_data * data)847 static u32 rp1_clock_choose_div(unsigned long rate, unsigned long parent_rate,
848 				const struct rp1_clock_data *data)
849 {
850 	u64 div;
851 
852 	/*
853 	 * Due to earlier rounding, calculated parent_rate may differ from
854 	 * expected value. Don't fail on a small discrepancy near unity divide.
855 	 */
856 	if (!rate || rate > parent_rate + (parent_rate >> CLK_DIV_FRAC_BITS))
857 		return 0;
858 
859 	/*
860 	 * Always express div in fixed-point format for fractional division;
861 	 * If no fractional divider is present, the fraction part will be zero.
862 	 */
863 	if (data->div_frac_reg) {
864 		div = (u64)parent_rate << CLK_DIV_FRAC_BITS;
865 		div = DIV_ROUND_CLOSEST_ULL(div, rate);
866 	} else {
867 		div = DIV_ROUND_CLOSEST_ULL(parent_rate, rate);
868 		div <<= CLK_DIV_FRAC_BITS;
869 	}
870 
871 	div = clamp(div,
872 		    1ull << CLK_DIV_FRAC_BITS,
873 		    (u64)data->div_int_max << CLK_DIV_FRAC_BITS);
874 
875 	return div;
876 }
877 
rp1_clock_get_parent(struct clk_hw * hw)878 static u8 rp1_clock_get_parent(struct clk_hw *hw)
879 {
880 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
881 	struct rp1_clockman *clockman = clock->clockman;
882 	const struct rp1_clock_data *data = clock->data;
883 	u32 sel, ctrl;
884 	u8 parent;
885 
886 	/* Sel is one-hot, so find the first bit set */
887 	sel = clockman_read(clockman, data->sel_reg);
888 	parent = ffs(sel) - 1;
889 
890 	/* sel == 0 implies the parent clock is not enabled yet. */
891 	if (!sel) {
892 		/* Read the clock src from the CTRL register instead */
893 		ctrl = clockman_read(clockman, data->ctrl_reg);
894 		parent = (ctrl & data->clk_src_mask) >> CLK_CTRL_SRC_SHIFT;
895 	}
896 
897 	if (parent >= data->num_std_parents)
898 		parent = AUX_SEL;
899 
900 	if (parent == AUX_SEL) {
901 		/*
902 		 * Clock parent is an auxiliary source, so get the parent from
903 		 * the AUXSRC register field.
904 		 */
905 		ctrl = clockman_read(clockman, data->ctrl_reg);
906 		parent = FIELD_GET(CLK_CTRL_AUXSRC_MASK, ctrl);
907 		parent += data->num_std_parents;
908 	}
909 
910 	return parent;
911 }
912 
rp1_clock_set_parent(struct clk_hw * hw,u8 index)913 static int rp1_clock_set_parent(struct clk_hw *hw, u8 index)
914 {
915 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
916 	struct rp1_clockman *clockman = clock->clockman;
917 	const struct rp1_clock_data *data = clock->data;
918 	u32 ctrl, sel;
919 
920 	spin_lock(&clockman->regs_lock);
921 	ctrl = clockman_read(clockman, data->ctrl_reg);
922 
923 	if (index >= data->num_std_parents) {
924 		/* This is an aux source request */
925 		if (index >= data->num_std_parents + data->num_aux_parents) {
926 			spin_unlock(&clockman->regs_lock);
927 			return -EINVAL;
928 		}
929 
930 		/* Select parent from aux list */
931 		ctrl &= ~CLK_CTRL_AUXSRC_MASK;
932 		ctrl |= FIELD_PREP(CLK_CTRL_AUXSRC_MASK, index - data->num_std_parents);
933 		/* Set src to aux list */
934 		ctrl &= ~data->clk_src_mask;
935 		ctrl |= (AUX_SEL << CLK_CTRL_SRC_SHIFT) & data->clk_src_mask;
936 	} else {
937 		ctrl &= ~data->clk_src_mask;
938 		ctrl |= (index << CLK_CTRL_SRC_SHIFT) & data->clk_src_mask;
939 	}
940 
941 	clockman_write(clockman, data->ctrl_reg, ctrl);
942 	spin_unlock(&clockman->regs_lock);
943 
944 	sel = rp1_clock_get_parent(hw);
945 	if (sel != index)
946 		return -EINVAL;
947 
948 	return 0;
949 }
950 
rp1_clock_set_rate_and_parent(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate,u8 parent)951 static int rp1_clock_set_rate_and_parent(struct clk_hw *hw,
952 					 unsigned long rate,
953 					 unsigned long parent_rate,
954 					 u8 parent)
955 {
956 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
957 	struct rp1_clockman *clockman = clock->clockman;
958 	const struct rp1_clock_data *data = clock->data;
959 	u32 div = rp1_clock_choose_div(rate, parent_rate, data);
960 
961 	spin_lock(&clockman->regs_lock);
962 
963 	clockman_write(clockman, data->div_int_reg, div >> CLK_DIV_FRAC_BITS);
964 	if (data->div_frac_reg)
965 		clockman_write(clockman, data->div_frac_reg, div << (32 - CLK_DIV_FRAC_BITS));
966 
967 	spin_unlock(&clockman->regs_lock);
968 
969 	if (parent != 0xff)
970 		return rp1_clock_set_parent(hw, parent);
971 
972 	return 0;
973 }
974 
rp1_clock_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)975 static int rp1_clock_set_rate(struct clk_hw *hw, unsigned long rate,
976 			      unsigned long parent_rate)
977 {
978 	return rp1_clock_set_rate_and_parent(hw, rate, parent_rate, 0xff);
979 }
980 
calc_core_pll_rate(struct clk_hw * pll_hw,unsigned long target_rate,int * pdiv_prim,int * pdiv_clk)981 static unsigned long calc_core_pll_rate(struct clk_hw *pll_hw,
982 					unsigned long target_rate,
983 					int *pdiv_prim, int *pdiv_clk)
984 {
985 	static const int prim_divs[] = {
986 		2, 3, 4, 5, 6, 7, 8, 9, 10, 12, 14, 15, 16,
987 		18, 20, 21, 24, 25, 28, 30, 35, 36, 42, 49,
988 	};
989 	const unsigned long xosc_rate = clk_hw_get_rate(clk_xosc);
990 	const unsigned long core_min = xosc_rate * 16;
991 	const unsigned long core_max = 2400000000;
992 	int best_div_prim = 1, best_div_clk = 1;
993 	unsigned long best_rate = core_max + 1;
994 	unsigned long core_rate = 0;
995 	int div_int, div_frac;
996 	u64 div;
997 	int i;
998 
999 	/* Given the target rate, choose a set of divisors/multipliers */
1000 	for (i = 0; i < ARRAY_SIZE(prim_divs); i++) {
1001 		int div_prim = prim_divs[i];
1002 		int div_clk;
1003 
1004 		for (div_clk = 1; div_clk <= 256; div_clk++) {
1005 			core_rate = target_rate * div_clk * div_prim;
1006 			if (core_rate >= core_min) {
1007 				if (core_rate < best_rate) {
1008 					best_rate = core_rate;
1009 					best_div_prim = div_prim;
1010 					best_div_clk = div_clk;
1011 				}
1012 				break;
1013 			}
1014 		}
1015 	}
1016 
1017 	if (best_rate < core_max) {
1018 		div = ((best_rate << 24) + xosc_rate / 2) / xosc_rate;
1019 		div_int = div >> 24;
1020 		div_frac = div % (1 << 24);
1021 		core_rate = (xosc_rate * ((div_int << 24) + div_frac) + (1 << 23)) >> 24;
1022 	} else {
1023 		core_rate = 0;
1024 	}
1025 
1026 	if (pdiv_prim)
1027 		*pdiv_prim = best_div_prim;
1028 	if (pdiv_clk)
1029 		*pdiv_clk = best_div_clk;
1030 
1031 	return core_rate;
1032 }
1033 
rp1_clock_choose_div_and_prate(struct clk_hw * hw,int parent_idx,unsigned long rate,unsigned long * prate,unsigned long * calc_rate)1034 static void rp1_clock_choose_div_and_prate(struct clk_hw *hw,
1035 					   int parent_idx,
1036 					   unsigned long rate,
1037 					   unsigned long *prate,
1038 					   unsigned long *calc_rate)
1039 {
1040 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
1041 	const struct rp1_clock_data *data = clock->data;
1042 	struct clk_hw *clk_audio_hw = &clk_audio->hw;
1043 	struct clk_hw *clk_i2s_hw = &clk_i2s->hw;
1044 	struct clk_hw *parent;
1045 	u32 div;
1046 	u64 tmp;
1047 
1048 	parent = clk_hw_get_parent_by_index(hw, parent_idx);
1049 
1050 	if (hw == clk_i2s_hw && clk_i2s->cached_rate == rate && parent == clk_audio_hw) {
1051 		*prate = clk_audio->cached_rate;
1052 		*calc_rate = rate;
1053 		return;
1054 	}
1055 
1056 	if (hw == clk_i2s_hw && parent == clk_audio_hw) {
1057 		unsigned long core_rate, audio_rate, i2s_rate;
1058 		int div_prim, div_clk;
1059 
1060 		core_rate = calc_core_pll_rate(parent, rate, &div_prim, &div_clk);
1061 		audio_rate = DIV_ROUND_CLOSEST(core_rate, div_prim);
1062 		i2s_rate = DIV_ROUND_CLOSEST(audio_rate, div_clk);
1063 		clk_audio_core->cached_rate = core_rate;
1064 		clk_audio->cached_rate = audio_rate;
1065 		clk_i2s->cached_rate = i2s_rate;
1066 		*prate = audio_rate;
1067 		*calc_rate = i2s_rate;
1068 		return;
1069 	}
1070 
1071 	*prate = clk_hw_get_rate(parent);
1072 	div = rp1_clock_choose_div(rate, *prate, data);
1073 
1074 	if (!div) {
1075 		*calc_rate = 0;
1076 		return;
1077 	}
1078 
1079 	/* Recalculate to account for rounding errors */
1080 	tmp = (u64)*prate << CLK_DIV_FRAC_BITS;
1081 	tmp = div_u64(tmp, div);
1082 
1083 	/*
1084 	 * Prevent overclocks - if all parent choices result in
1085 	 * a downstream clock in excess of the maximum, then the
1086 	 * call to set the clock will fail.
1087 	 */
1088 	if (tmp > data->max_freq)
1089 		*calc_rate = 0;
1090 	else
1091 		*calc_rate = tmp;
1092 }
1093 
rp1_clock_determine_rate(struct clk_hw * hw,struct clk_rate_request * req)1094 static int rp1_clock_determine_rate(struct clk_hw *hw,
1095 				    struct clk_rate_request *req)
1096 {
1097 	struct clk_hw *parent, *best_parent = NULL;
1098 	unsigned long best_rate = 0;
1099 	unsigned long best_prate = 0;
1100 	unsigned long best_rate_diff = ULONG_MAX;
1101 	unsigned long prate, calc_rate;
1102 	size_t i;
1103 
1104 	/*
1105 	 * If the NO_REPARENT flag is set, try to use existing parent.
1106 	 */
1107 	if ((clk_hw_get_flags(hw) & CLK_SET_RATE_NO_REPARENT)) {
1108 		i = rp1_clock_get_parent(hw);
1109 		parent = clk_hw_get_parent_by_index(hw, i);
1110 		if (parent) {
1111 			rp1_clock_choose_div_and_prate(hw, i, req->rate, &prate,
1112 						       &calc_rate);
1113 			if (calc_rate > 0) {
1114 				req->best_parent_hw = parent;
1115 				req->best_parent_rate = prate;
1116 				req->rate = calc_rate;
1117 				return 0;
1118 			}
1119 		}
1120 	}
1121 
1122 	/*
1123 	 * Select parent clock that results in the closest rate (lower or
1124 	 * higher)
1125 	 */
1126 	for (i = 0; i < clk_hw_get_num_parents(hw); i++) {
1127 		parent = clk_hw_get_parent_by_index(hw, i);
1128 		if (!parent)
1129 			continue;
1130 
1131 		rp1_clock_choose_div_and_prate(hw, i, req->rate, &prate,
1132 					       &calc_rate);
1133 
1134 		if (abs_diff(calc_rate, req->rate) < best_rate_diff) {
1135 			best_parent = parent;
1136 			best_prate = prate;
1137 			best_rate = calc_rate;
1138 			best_rate_diff = abs_diff(calc_rate, req->rate);
1139 
1140 			if (best_rate_diff == 0)
1141 				break;
1142 		}
1143 	}
1144 
1145 	if (best_rate == 0)
1146 		return -EINVAL;
1147 
1148 	req->best_parent_hw = best_parent;
1149 	req->best_parent_rate = best_prate;
1150 	req->rate = best_rate;
1151 
1152 	return 0;
1153 }
1154 
rp1_varsrc_set_rate(struct clk_hw * hw,unsigned long rate,unsigned long parent_rate)1155 static int rp1_varsrc_set_rate(struct clk_hw *hw,
1156 			       unsigned long rate, unsigned long parent_rate)
1157 {
1158 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
1159 
1160 	/*
1161 	 * "varsrc" exists purely to let clock dividers know the frequency
1162 	 * of an externally-managed clock source (such as MIPI DSI byte-clock)
1163 	 * which may change at run-time as a side-effect of some other driver.
1164 	 */
1165 	clock->cached_rate = rate;
1166 	return 0;
1167 }
1168 
rp1_varsrc_recalc_rate(struct clk_hw * hw,unsigned long parent_rate)1169 static unsigned long rp1_varsrc_recalc_rate(struct clk_hw *hw,
1170 					    unsigned long parent_rate)
1171 {
1172 	struct rp1_clk_desc *clock = container_of(hw, struct rp1_clk_desc, hw);
1173 
1174 	return clock->cached_rate;
1175 }
1176 
1177 static const struct clk_ops rp1_pll_core_ops = {
1178 	.is_prepared = rp1_pll_core_is_on,
1179 	.prepare = rp1_pll_core_on,
1180 	.unprepare = rp1_pll_core_off,
1181 	.set_rate = rp1_pll_core_set_rate,
1182 	.recalc_rate = rp1_pll_core_recalc_rate,
1183 	.determine_rate = rp1_pll_core_determine_rate,
1184 };
1185 
1186 static const struct clk_ops rp1_pll_ops = {
1187 	.set_rate = rp1_pll_set_rate,
1188 	.recalc_rate = rp1_pll_recalc_rate,
1189 	.determine_rate = rp1_pll_determine_rate,
1190 };
1191 
1192 static const struct clk_ops rp1_pll_ph_ops = {
1193 	.is_prepared = rp1_pll_ph_is_on,
1194 	.prepare = rp1_pll_ph_on,
1195 	.unprepare = rp1_pll_ph_off,
1196 	.recalc_rate = rp1_pll_ph_recalc_rate,
1197 	.determine_rate = rp1_pll_ph_determine_rate,
1198 };
1199 
1200 static const struct clk_ops rp1_pll_divider_ops = {
1201 	.is_prepared = rp1_pll_divider_is_on,
1202 	.prepare = rp1_pll_divider_on,
1203 	.unprepare = rp1_pll_divider_off,
1204 	.set_rate = rp1_pll_divider_set_rate,
1205 	.recalc_rate = rp1_pll_divider_recalc_rate,
1206 	.determine_rate = rp1_pll_divider_determine_rate,
1207 };
1208 
1209 static const struct clk_ops rp1_clk_ops = {
1210 	.is_prepared = rp1_clock_is_on,
1211 	.prepare = rp1_clock_on,
1212 	.unprepare = rp1_clock_off,
1213 	.recalc_rate = rp1_clock_recalc_rate,
1214 	.get_parent = rp1_clock_get_parent,
1215 	.set_parent = rp1_clock_set_parent,
1216 	.set_rate_and_parent = rp1_clock_set_rate_and_parent,
1217 	.set_rate = rp1_clock_set_rate,
1218 	.determine_rate = rp1_clock_determine_rate,
1219 };
1220 
1221 static const struct clk_ops rp1_varsrc_ops = {
1222 	.set_rate = rp1_varsrc_set_rate,
1223 	.recalc_rate = rp1_varsrc_recalc_rate,
1224 	.determine_rate = clk_determine_rate_noop,
1225 };
1226 
rp1_register_pll(struct rp1_clockman * clockman,struct rp1_clk_desc * desc)1227 static struct clk_hw *rp1_register_pll(struct rp1_clockman *clockman,
1228 				       struct rp1_clk_desc *desc)
1229 {
1230 	int ret;
1231 
1232 	desc->clockman = clockman;
1233 
1234 	ret = devm_clk_hw_register(clockman->dev, &desc->hw);
1235 	if (ret)
1236 		return ERR_PTR(ret);
1237 
1238 	return &desc->hw;
1239 }
1240 
rp1_register_pll_divider(struct rp1_clockman * clockman,struct rp1_clk_desc * desc)1241 static struct clk_hw *rp1_register_pll_divider(struct rp1_clockman *clockman,
1242 					       struct rp1_clk_desc *desc)
1243 {
1244 	const struct rp1_pll_data *divider_data = desc->data;
1245 	int ret;
1246 
1247 	desc->div.reg = clockman->regs + divider_data->ctrl_reg;
1248 	desc->div.shift = __ffs(PLL_SEC_DIV_MASK);
1249 	desc->div.width = __ffs(~(PLL_SEC_DIV_MASK >> desc->div.shift));
1250 	desc->div.flags = CLK_DIVIDER_ROUND_CLOSEST;
1251 	desc->div.lock = &clockman->regs_lock;
1252 	desc->div.hw.init = desc->hw.init;
1253 	desc->div.table = pll_sec_div_table;
1254 
1255 	desc->clockman = clockman;
1256 
1257 	ret = devm_clk_hw_register(clockman->dev, &desc->div.hw);
1258 	if (ret)
1259 		return ERR_PTR(ret);
1260 
1261 	return &desc->div.hw;
1262 }
1263 
rp1_register_clock(struct rp1_clockman * clockman,struct rp1_clk_desc * desc)1264 static struct clk_hw *rp1_register_clock(struct rp1_clockman *clockman,
1265 					 struct rp1_clk_desc *desc)
1266 {
1267 	const struct rp1_clock_data *clock_data = desc->data;
1268 	int ret;
1269 
1270 	if (WARN_ON_ONCE(MAX_CLK_PARENTS <
1271 	       clock_data->num_std_parents + clock_data->num_aux_parents))
1272 		return ERR_PTR(-EINVAL);
1273 
1274 	/* There must be a gap for the AUX selector */
1275 	if (WARN_ON_ONCE(clock_data->num_std_parents > AUX_SEL &&
1276 			 desc->hw.init->parent_data[AUX_SEL].index != -1))
1277 		return ERR_PTR(-EINVAL);
1278 
1279 	desc->clockman = clockman;
1280 
1281 	ret = devm_clk_hw_register(clockman->dev, &desc->hw);
1282 	if (ret)
1283 		return ERR_PTR(ret);
1284 
1285 	return &desc->hw;
1286 }
1287 
1288 /* Assignment helper macros for different clock types. */
1289 #define _REGISTER(f, ...)	{ .clk_register = f, __VA_ARGS__ }
1290 
1291 #define CLK_DATA(type, ...)	.data = &(struct type) { __VA_ARGS__ }
1292 
1293 #define REGISTER_PLL(...)	_REGISTER(&rp1_register_pll,		\
1294 					  __VA_ARGS__)
1295 
1296 #define REGISTER_PLL_DIV(...)	_REGISTER(&rp1_register_pll_divider,	\
1297 					  __VA_ARGS__)
1298 
1299 #define REGISTER_CLK(...)	_REGISTER(&rp1_register_clock,		\
1300 					  __VA_ARGS__)
1301 
1302 static struct rp1_clk_desc pll_sys_core_desc = REGISTER_PLL(
1303 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1304 		"pll_sys_core",
1305 		(const struct clk_parent_data[]) { { .index = 0 } },
1306 		&rp1_pll_core_ops,
1307 		CLK_IS_CRITICAL
1308 	),
1309 	CLK_DATA(rp1_pll_core_data,
1310 		 .cs_reg = PLL_SYS_CS,
1311 		 .pwr_reg = PLL_SYS_PWR,
1312 		 .fbdiv_int_reg = PLL_SYS_FBDIV_INT,
1313 		 .fbdiv_frac_reg = PLL_SYS_FBDIV_FRAC,
1314 	)
1315 );
1316 
1317 static struct rp1_clk_desc pll_audio_core_desc = REGISTER_PLL(
1318 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1319 		"pll_audio_core",
1320 		(const struct clk_parent_data[]) { { .index = 0 } },
1321 		&rp1_pll_core_ops,
1322 		CLK_IS_CRITICAL
1323 	),
1324 	CLK_DATA(rp1_pll_core_data,
1325 		 .cs_reg = PLL_AUDIO_CS,
1326 		 .pwr_reg = PLL_AUDIO_PWR,
1327 		 .fbdiv_int_reg = PLL_AUDIO_FBDIV_INT,
1328 		 .fbdiv_frac_reg = PLL_AUDIO_FBDIV_FRAC,
1329 	)
1330 );
1331 
1332 static struct rp1_clk_desc pll_video_core_desc = REGISTER_PLL(
1333 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1334 		"pll_video_core",
1335 		(const struct clk_parent_data[]) { { .index = 0 } },
1336 		&rp1_pll_core_ops,
1337 		CLK_IS_CRITICAL
1338 	),
1339 	CLK_DATA(rp1_pll_core_data,
1340 		 .cs_reg = PLL_VIDEO_CS,
1341 		 .pwr_reg = PLL_VIDEO_PWR,
1342 		 .fbdiv_int_reg = PLL_VIDEO_FBDIV_INT,
1343 		 .fbdiv_frac_reg = PLL_VIDEO_FBDIV_FRAC,
1344 	)
1345 );
1346 
1347 static struct rp1_clk_desc pll_sys_desc = REGISTER_PLL(
1348 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1349 		"pll_sys",
1350 		(const struct clk_parent_data[]) {
1351 			{ .hw = &pll_sys_core_desc.hw }
1352 		},
1353 		&rp1_pll_ops,
1354 		0
1355 	),
1356 	CLK_DATA(rp1_pll_data,
1357 		 .ctrl_reg = PLL_SYS_PRIM,
1358 		 .fc0_src = FC_NUM(0, 2),
1359 	)
1360 );
1361 
1362 static struct rp1_clk_desc pll_audio_desc = REGISTER_PLL(
1363 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1364 		"pll_audio",
1365 		(const struct clk_parent_data[]) {
1366 			{ .hw = &pll_audio_core_desc.hw }
1367 		},
1368 		&rp1_pll_ops,
1369 		CLK_SET_RATE_PARENT
1370 	),
1371 	CLK_DATA(rp1_pll_data,
1372 		 .ctrl_reg = PLL_AUDIO_PRIM,
1373 		 .fc0_src = FC_NUM(4, 2),
1374 	)
1375 );
1376 
1377 static struct rp1_clk_desc pll_video_desc = REGISTER_PLL(
1378 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1379 		"pll_video",
1380 		(const struct clk_parent_data[]) {
1381 			{ .hw = &pll_video_core_desc.hw }
1382 		},
1383 		&rp1_pll_ops,
1384 		0
1385 	),
1386 	CLK_DATA(rp1_pll_data,
1387 		 .ctrl_reg = PLL_VIDEO_PRIM,
1388 		 .fc0_src = FC_NUM(3, 2),
1389 	)
1390 );
1391 
1392 static struct rp1_clk_desc pll_sys_sec_desc = REGISTER_PLL_DIV(
1393 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1394 		"pll_sys_sec",
1395 		(const struct clk_parent_data[]) {
1396 			{ .hw = &pll_sys_core_desc.hw }
1397 		},
1398 		&rp1_pll_divider_ops,
1399 		0
1400 	),
1401 	CLK_DATA(rp1_pll_data,
1402 		 .ctrl_reg = PLL_SYS_SEC,
1403 		 .fc0_src = FC_NUM(2, 2),
1404 	)
1405 );
1406 
1407 static struct rp1_clk_desc pll_video_sec_desc = REGISTER_PLL_DIV(
1408 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1409 		"pll_video_sec",
1410 		(const struct clk_parent_data[]) {
1411 			{ .hw = &pll_video_core_desc.hw }
1412 		},
1413 		&rp1_pll_divider_ops,
1414 		0
1415 	),
1416 	CLK_DATA(rp1_pll_data,
1417 		 .ctrl_reg = PLL_VIDEO_SEC,
1418 		 .fc0_src = FC_NUM(5, 3),
1419 	)
1420 );
1421 
1422 static const struct clk_parent_data clk_eth_tsu_parents[] = {
1423 	{ .index = 0 },
1424 	{ .hw = &pll_video_sec_desc.hw },
1425 	{ .index = -1 },
1426 	{ .index = -1 },
1427 	{ .index = -1 },
1428 	{ .index = -1 },
1429 	{ .index = -1 },
1430 	{ .index = -1 },
1431 };
1432 
1433 static struct rp1_clk_desc clk_eth_tsu_desc = REGISTER_CLK(
1434 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1435 		"clk_eth_tsu",
1436 		clk_eth_tsu_parents,
1437 		&rp1_clk_ops,
1438 		0
1439 	),
1440 	CLK_DATA(rp1_clock_data,
1441 		 .num_std_parents = 0,
1442 		 .num_aux_parents = 8,
1443 		 .ctrl_reg = CLK_ETH_TSU_CTRL,
1444 		 .div_int_reg = CLK_ETH_TSU_DIV_INT,
1445 		 .sel_reg = CLK_ETH_TSU_SEL,
1446 		 .div_int_max = DIV_INT_8BIT_MAX,
1447 		 .max_freq = 50 * HZ_PER_MHZ,
1448 		 .fc0_src = FC_NUM(5, 7),
1449 	)
1450 );
1451 
1452 static const struct clk_parent_data clk_eth_parents[] = {
1453 	{ .hw = &pll_sys_sec_desc.div.hw },
1454 	{ .hw = &pll_sys_desc.hw },
1455 	{ .hw = &pll_video_sec_desc.hw },
1456 };
1457 
1458 static struct rp1_clk_desc clk_eth_desc = REGISTER_CLK(
1459 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1460 		"clk_eth",
1461 		clk_eth_parents,
1462 		&rp1_clk_ops,
1463 		0
1464 	),
1465 	CLK_DATA(rp1_clock_data,
1466 		 .num_std_parents = 0,
1467 		 .num_aux_parents = 3,
1468 		 .ctrl_reg = CLK_ETH_CTRL,
1469 		 .div_int_reg = CLK_ETH_DIV_INT,
1470 		 .sel_reg = CLK_ETH_SEL,
1471 		 .div_int_max = DIV_INT_8BIT_MAX,
1472 		 .max_freq = 125 * HZ_PER_MHZ,
1473 		 .fc0_src = FC_NUM(4, 6),
1474 	)
1475 );
1476 
1477 static const struct clk_parent_data clk_sys_parents[] = {
1478 	{ .index = 0 },
1479 	{ .index = -1 },
1480 	{ .hw = &pll_sys_desc.hw },
1481 };
1482 
1483 static struct rp1_clk_desc clk_sys_desc = REGISTER_CLK(
1484 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1485 		"clk_sys",
1486 		clk_sys_parents,
1487 		&rp1_clk_ops,
1488 		CLK_IS_CRITICAL
1489 	),
1490 	CLK_DATA(rp1_clock_data,
1491 		 .num_std_parents = 3,
1492 		 .num_aux_parents = 0,
1493 		 .ctrl_reg = CLK_SYS_CTRL,
1494 		 .div_int_reg = CLK_SYS_DIV_INT,
1495 		 .sel_reg = CLK_SYS_SEL,
1496 		 .div_int_max = DIV_INT_24BIT_MAX,
1497 		 .max_freq = 200 * HZ_PER_MHZ,
1498 		 .fc0_src = FC_NUM(0, 4),
1499 		 .clk_src_mask = 0x3,
1500 	)
1501 );
1502 
1503 static struct rp1_clk_desc pll_sys_pri_ph_desc = REGISTER_PLL(
1504 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1505 		"pll_sys_pri_ph",
1506 		(const struct clk_parent_data[]) {
1507 			{ .hw = &pll_sys_desc.hw }
1508 		},
1509 		&rp1_pll_ph_ops,
1510 		0
1511 	),
1512 	CLK_DATA(rp1_pll_ph_data,
1513 		 .ph_reg = PLL_SYS_PRIM,
1514 		 .fixed_divider = 2,
1515 		 .phase = RP1_PLL_PHASE_0,
1516 		 .fc0_src = FC_NUM(1, 2),
1517 	)
1518 );
1519 
1520 static struct rp1_clk_desc pll_audio_pri_ph_desc = REGISTER_PLL(
1521 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1522 		"pll_audio_pri_ph",
1523 		(const struct clk_parent_data[]) {
1524 			{ .hw = &pll_audio_desc.hw }
1525 		},
1526 		&rp1_pll_ph_ops,
1527 		0
1528 	),
1529 	CLK_DATA(rp1_pll_ph_data,
1530 		 .ph_reg = PLL_AUDIO_PRIM,
1531 		 .fixed_divider = 2,
1532 		 .phase = RP1_PLL_PHASE_0,
1533 		 .fc0_src = FC_NUM(5, 1),
1534 	)
1535 );
1536 
1537 static struct rp1_clk_desc pll_video_pri_ph_desc = REGISTER_PLL(
1538 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1539 		"pll_video_pri_ph",
1540 		(const struct clk_parent_data[]) {
1541 			{ .hw = &pll_video_desc.hw }
1542 		},
1543 		&rp1_pll_ph_ops,
1544 		0
1545 	),
1546 	CLK_DATA(rp1_pll_ph_data,
1547 		 .ph_reg = PLL_VIDEO_PRIM,
1548 		 .fixed_divider = 2,
1549 		 .phase = RP1_PLL_PHASE_0,
1550 		 .fc0_src = FC_NUM(4, 3),
1551 	)
1552 );
1553 
1554 static struct rp1_clk_desc pll_audio_sec_desc = REGISTER_PLL_DIV(
1555 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1556 		"pll_audio_sec",
1557 		(const struct clk_parent_data[]) {
1558 			{ .hw = &pll_audio_core_desc.hw }
1559 		},
1560 		&rp1_pll_divider_ops,
1561 		0
1562 	),
1563 	CLK_DATA(rp1_pll_data,
1564 		 .ctrl_reg = PLL_AUDIO_SEC,
1565 		 .fc0_src = FC_NUM(6, 2),
1566 	)
1567 );
1568 
1569 static struct rp1_clk_desc pll_audio_tern_desc = REGISTER_PLL_DIV(
1570 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1571 		"pll_audio_tern",
1572 		(const struct clk_parent_data[]) {
1573 			{ .hw = &pll_audio_core_desc.hw }
1574 		},
1575 		&rp1_pll_divider_ops,
1576 		0
1577 	),
1578 	CLK_DATA(rp1_pll_data,
1579 		 .ctrl_reg = PLL_AUDIO_TERN,
1580 		 .fc0_src = FC_NUM(6, 2),
1581 	)
1582 );
1583 
1584 static struct rp1_clk_desc clk_slow_sys_desc = REGISTER_CLK(
1585 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1586 		"clk_slow_sys",
1587 		(const struct clk_parent_data[]) { { .index = 0 } },
1588 		&rp1_clk_ops,
1589 		CLK_IS_CRITICAL
1590 	),
1591 	CLK_DATA(rp1_clock_data,
1592 		 .num_std_parents = 1,
1593 		 .num_aux_parents = 0,
1594 		 .ctrl_reg = CLK_SLOW_SYS_CTRL,
1595 		 .div_int_reg = CLK_SLOW_SYS_DIV_INT,
1596 		 .sel_reg = CLK_SLOW_SYS_SEL,
1597 		 .div_int_max = DIV_INT_8BIT_MAX,
1598 		 .max_freq = 50 * HZ_PER_MHZ,
1599 		 .fc0_src = FC_NUM(1, 4),
1600 		 .clk_src_mask = 0x1,
1601 	)
1602 );
1603 
1604 static const struct clk_parent_data clk_dma_parents[] = {
1605 	{ .hw = &pll_sys_pri_ph_desc.hw },
1606 	{ .hw = &pll_video_desc.hw },
1607 	{ .index = 0 },
1608 };
1609 
1610 static struct rp1_clk_desc clk_dma_desc = REGISTER_CLK(
1611 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1612 		"clk_dma",
1613 		clk_dma_parents,
1614 		&rp1_clk_ops,
1615 		0
1616 	),
1617 	CLK_DATA(rp1_clock_data,
1618 		 .num_std_parents = 0,
1619 		 .num_aux_parents = 3,
1620 		 .ctrl_reg = CLK_DMA_CTRL,
1621 		 .div_int_reg = CLK_DMA_DIV_INT,
1622 		 .sel_reg = CLK_DMA_SEL,
1623 		 .div_int_max = DIV_INT_8BIT_MAX,
1624 		 .max_freq = 100 * HZ_PER_MHZ,
1625 		 .fc0_src = FC_NUM(2, 2),
1626 	)
1627 );
1628 
1629 static const struct clk_parent_data clk_uart_parents[] = {
1630 	{ .hw = &pll_sys_pri_ph_desc.hw },
1631 	{ .hw = &pll_video_desc.hw },
1632 	{ .index = 0 },
1633 };
1634 
1635 static struct rp1_clk_desc clk_uart_desc = REGISTER_CLK(
1636 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1637 		"clk_uart",
1638 		clk_uart_parents,
1639 		&rp1_clk_ops,
1640 		0
1641 	),
1642 	CLK_DATA(rp1_clock_data,
1643 		 .num_std_parents = 0,
1644 		 .num_aux_parents = 3,
1645 		 .ctrl_reg = CLK_UART_CTRL,
1646 		 .div_int_reg = CLK_UART_DIV_INT,
1647 		 .sel_reg = CLK_UART_SEL,
1648 		 .div_int_max = DIV_INT_8BIT_MAX,
1649 		 .max_freq = 100 * HZ_PER_MHZ,
1650 		 .fc0_src = FC_NUM(6, 7),
1651 	)
1652 );
1653 
1654 static const struct clk_parent_data clk_pwm0_parents[] = {
1655 	{ .index = -1 },
1656 	{ .hw = &pll_video_sec_desc.hw },
1657 	{ .index = 0 },
1658 };
1659 
1660 static struct rp1_clk_desc clk_pwm0_desc = REGISTER_CLK(
1661 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1662 		"clk_pwm0",
1663 		clk_pwm0_parents,
1664 		&rp1_clk_ops,
1665 		0
1666 	),
1667 	CLK_DATA(rp1_clock_data,
1668 		 .num_std_parents = 0,
1669 		 .num_aux_parents = 3,
1670 		 .ctrl_reg = CLK_PWM0_CTRL,
1671 		 .div_int_reg = CLK_PWM0_DIV_INT,
1672 		 .div_frac_reg = CLK_PWM0_DIV_FRAC,
1673 		 .sel_reg = CLK_PWM0_SEL,
1674 		 .div_int_max = DIV_INT_16BIT_MAX,
1675 		 .max_freq = 76800 * HZ_PER_KHZ,
1676 		 .fc0_src = FC_NUM(0, 5),
1677 	)
1678 );
1679 
1680 static const struct clk_parent_data clk_pwm1_parents[] = {
1681 	{ .index = -1 },
1682 	{ .hw = &pll_video_sec_desc.hw },
1683 	{ .index = 0 },
1684 };
1685 
1686 static struct rp1_clk_desc clk_pwm1_desc = REGISTER_CLK(
1687 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1688 		"clk_pwm1",
1689 		clk_pwm1_parents,
1690 		&rp1_clk_ops,
1691 		0
1692 	),
1693 	CLK_DATA(rp1_clock_data,
1694 		 .num_std_parents = 0,
1695 		 .num_aux_parents = 3,
1696 		 .ctrl_reg = CLK_PWM1_CTRL,
1697 		 .div_int_reg = CLK_PWM1_DIV_INT,
1698 		 .div_frac_reg = CLK_PWM1_DIV_FRAC,
1699 		 .sel_reg = CLK_PWM1_SEL,
1700 		 .div_int_max = DIV_INT_16BIT_MAX,
1701 		 .max_freq = 76800 * HZ_PER_KHZ,
1702 		 .fc0_src = FC_NUM(1, 5),
1703 	)
1704 );
1705 
1706 static const struct clk_parent_data clk_audio_in_parents[] = {
1707 	{ .index = -1 },
1708 	{ .index = -1 },
1709 	{ .index = -1 },
1710 	{ .hw = &pll_video_sec_desc.hw },
1711 	{ .index = 0 },
1712 };
1713 
1714 static struct rp1_clk_desc clk_audio_in_desc = REGISTER_CLK(
1715 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1716 		"clk_audio_in",
1717 		clk_audio_in_parents,
1718 		&rp1_clk_ops,
1719 		0
1720 	),
1721 	CLK_DATA(rp1_clock_data,
1722 		 .num_std_parents = 0,
1723 		 .num_aux_parents = 5,
1724 		 .ctrl_reg = CLK_AUDIO_IN_CTRL,
1725 		 .div_int_reg = CLK_AUDIO_IN_DIV_INT,
1726 		 .sel_reg = CLK_AUDIO_IN_SEL,
1727 		 .div_int_max = DIV_INT_8BIT_MAX,
1728 		 .max_freq = 76800 * HZ_PER_KHZ,
1729 		 .fc0_src = FC_NUM(2, 5),
1730 	)
1731 );
1732 
1733 static const struct clk_parent_data clk_audio_out_parents[] = {
1734 	{ .index = -1 },
1735 	{ .index = -1 },
1736 	{ .hw = &pll_video_sec_desc.hw },
1737 	{ .index = 0 },
1738 };
1739 
1740 static struct rp1_clk_desc clk_audio_out_desc = REGISTER_CLK(
1741 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1742 		"clk_audio_out",
1743 		clk_audio_out_parents,
1744 		&rp1_clk_ops,
1745 		0
1746 	),
1747 	CLK_DATA(rp1_clock_data,
1748 		 .num_std_parents = 0,
1749 		 .num_aux_parents = 4,
1750 		 .ctrl_reg = CLK_AUDIO_OUT_CTRL,
1751 		 .div_int_reg = CLK_AUDIO_OUT_DIV_INT,
1752 		 .sel_reg = CLK_AUDIO_OUT_SEL,
1753 		 .div_int_max = DIV_INT_8BIT_MAX,
1754 		 .max_freq = 153600 * HZ_PER_KHZ,
1755 		 .fc0_src = FC_NUM(3, 5),
1756 	)
1757 );
1758 
1759 static const struct clk_parent_data clk_i2s_parents[] = {
1760 	{ .index = 0 },
1761 	{ .hw = &pll_audio_desc.hw },
1762 	{ .hw = &pll_audio_sec_desc.hw },
1763 };
1764 
1765 static struct rp1_clk_desc clk_i2s_desc = REGISTER_CLK(
1766 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1767 		"clk_i2s",
1768 		clk_i2s_parents,
1769 		&rp1_clk_ops,
1770 		CLK_SET_RATE_PARENT
1771 	),
1772 	CLK_DATA(rp1_clock_data,
1773 		 .num_std_parents = 0,
1774 		 .num_aux_parents = 3,
1775 		 .ctrl_reg = CLK_I2S_CTRL,
1776 		 .div_int_reg = CLK_I2S_DIV_INT,
1777 		 .sel_reg = CLK_I2S_SEL,
1778 		 .div_int_max = DIV_INT_8BIT_MAX,
1779 		 .max_freq = 50 * HZ_PER_MHZ,
1780 		 .fc0_src = FC_NUM(4, 4),
1781 	)
1782 );
1783 
1784 static struct rp1_clk_desc clk_mipi0_cfg_desc = REGISTER_CLK(
1785 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1786 		"clk_mipi0_cfg",
1787 		(const struct clk_parent_data[]) { { .index = 0 } },
1788 		&rp1_clk_ops,
1789 		0
1790 	),
1791 	CLK_DATA(rp1_clock_data,
1792 		 .num_std_parents = 0,
1793 		 .num_aux_parents = 1,
1794 		 .ctrl_reg = CLK_MIPI0_CFG_CTRL,
1795 		 .div_int_reg = CLK_MIPI0_CFG_DIV_INT,
1796 		 .sel_reg = CLK_MIPI0_CFG_SEL,
1797 		 .div_int_max = DIV_INT_8BIT_MAX,
1798 		 .max_freq = 50 * HZ_PER_MHZ,
1799 		 .fc0_src = FC_NUM(4, 5),
1800 	)
1801 );
1802 
1803 static struct rp1_clk_desc clk_mipi1_cfg_desc = REGISTER_CLK(
1804 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1805 		"clk_mipi1_cfg",
1806 		(const struct clk_parent_data[]) { { .index = 0 } },
1807 		&rp1_clk_ops,
1808 		0
1809 	),
1810 	CLK_DATA(rp1_clock_data,
1811 		 .num_std_parents = 0,
1812 		 .num_aux_parents = 1,
1813 		 .ctrl_reg = CLK_MIPI1_CFG_CTRL,
1814 		 .div_int_reg = CLK_MIPI1_CFG_DIV_INT,
1815 		 .sel_reg = CLK_MIPI1_CFG_SEL,
1816 		 .div_int_max = DIV_INT_8BIT_MAX,
1817 		 .max_freq = 50 * HZ_PER_MHZ,
1818 		 .fc0_src = FC_NUM(5, 6),
1819 		 .clk_src_mask = 0x1,
1820 	)
1821 );
1822 
1823 static struct rp1_clk_desc clk_adc_desc = REGISTER_CLK(
1824 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1825 		"clk_adc",
1826 		(const struct clk_parent_data[]) { { .index = 0 } },
1827 		&rp1_clk_ops,
1828 		0
1829 	),
1830 	CLK_DATA(rp1_clock_data,
1831 		 .num_std_parents = 0,
1832 		 .num_aux_parents = 1,
1833 		 .ctrl_reg = CLK_ADC_CTRL,
1834 		 .div_int_reg = CLK_ADC_DIV_INT,
1835 		 .sel_reg = CLK_ADC_SEL,
1836 		 .div_int_max = DIV_INT_8BIT_MAX,
1837 		 .max_freq = 50 * HZ_PER_MHZ,
1838 		 .fc0_src = FC_NUM(5, 5),
1839 	)
1840 );
1841 
1842 static struct rp1_clk_desc clk_sdio_timer_desc = REGISTER_CLK(
1843 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1844 		"clk_sdio_timer",
1845 		(const struct clk_parent_data[]) { { .index = 0 } },
1846 		&rp1_clk_ops,
1847 		0
1848 	),
1849 	CLK_DATA(rp1_clock_data,
1850 		 .num_std_parents = 0,
1851 		 .num_aux_parents = 1,
1852 		 .ctrl_reg = CLK_SDIO_TIMER_CTRL,
1853 		 .div_int_reg = CLK_SDIO_TIMER_DIV_INT,
1854 		 .sel_reg = CLK_SDIO_TIMER_SEL,
1855 		 .div_int_max = DIV_INT_8BIT_MAX,
1856 		 .max_freq = 50 * HZ_PER_MHZ,
1857 		 .fc0_src = FC_NUM(3, 4),
1858 	)
1859 );
1860 
1861 static struct rp1_clk_desc clk_sdio_alt_src_desc = REGISTER_CLK(
1862 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1863 		"clk_sdio_alt_src",
1864 		(const struct clk_parent_data[]) {
1865 			{ .hw = &pll_sys_desc.hw }
1866 		},
1867 		&rp1_clk_ops,
1868 		0
1869 	),
1870 	CLK_DATA(rp1_clock_data,
1871 		 .num_std_parents = 0,
1872 		 .num_aux_parents = 1,
1873 		 .ctrl_reg = CLK_SDIO_ALT_SRC_CTRL,
1874 		 .div_int_reg = CLK_SDIO_ALT_SRC_DIV_INT,
1875 		 .sel_reg = CLK_SDIO_ALT_SRC_SEL,
1876 		 .div_int_max = DIV_INT_8BIT_MAX,
1877 		 .max_freq = 200 * HZ_PER_MHZ,
1878 		 .fc0_src = FC_NUM(5, 4),
1879 	)
1880 );
1881 
1882 static const struct clk_parent_data clk_dpi_parents[] = {
1883 	{ .hw = &pll_sys_desc.hw },
1884 	{ .hw = &pll_video_sec_desc.hw },
1885 	{ .hw = &pll_video_desc.hw },
1886 	{ .index = -1 },
1887 	{ .index = -1 },
1888 	{ .index = -1 },
1889 	{ .index = -1 },
1890 	{ .index = -1 },
1891 };
1892 
1893 static struct rp1_clk_desc clk_dpi_desc = REGISTER_CLK(
1894 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1895 		"clk_dpi",
1896 		clk_dpi_parents,
1897 		&rp1_clk_ops,
1898 		CLK_SET_RATE_NO_REPARENT /* Let DPI driver set parent */
1899 	),
1900 	CLK_DATA(rp1_clock_data,
1901 		 .num_std_parents = 0,
1902 		 .num_aux_parents = 8,
1903 		 .ctrl_reg = VIDEO_CLK_DPI_CTRL,
1904 		 .div_int_reg = VIDEO_CLK_DPI_DIV_INT,
1905 		 .sel_reg = VIDEO_CLK_DPI_SEL,
1906 		 .div_int_max = DIV_INT_8BIT_MAX,
1907 		 .max_freq = 200 * HZ_PER_MHZ,
1908 		 .fc0_src = FC_NUM(1, 6),
1909 	)
1910 );
1911 
1912 static const struct clk_parent_data clk_gp0_parents[] = {
1913 	{ .index = 0 },
1914 	{ .index = -1 },
1915 	{ .index = -1 },
1916 	{ .index = -1 },
1917 	{ .index = -1 },
1918 	{ .index = -1 },
1919 	{ .hw = &pll_sys_desc.hw },
1920 	{ .index = -1 },
1921 	{ .index = -1 },
1922 	{ .index = -1 },
1923 	{ .hw = &clk_i2s_desc.hw },
1924 	{ .hw = &clk_adc_desc.hw },
1925 	{ .index = -1 },
1926 	{ .index = -1 },
1927 	{ .index = -1 },
1928 	{ .hw = &clk_sys_desc.hw },
1929 };
1930 
1931 static struct rp1_clk_desc clk_gp0_desc = REGISTER_CLK(
1932 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1933 		"clk_gp0",
1934 		clk_gp0_parents,
1935 		&rp1_clk_ops,
1936 		0
1937 	),
1938 	CLK_DATA(rp1_clock_data,
1939 		 .num_std_parents = 0,
1940 		 .num_aux_parents = 16,
1941 		 .oe_mask = BIT(0),
1942 		 .ctrl_reg = CLK_GP0_CTRL,
1943 		 .div_int_reg = CLK_GP0_DIV_INT,
1944 		 .div_frac_reg = CLK_GP0_DIV_FRAC,
1945 		 .sel_reg = CLK_GP0_SEL,
1946 		 .div_int_max = DIV_INT_16BIT_MAX,
1947 		 .max_freq = 100 * HZ_PER_MHZ,
1948 		 .fc0_src = FC_NUM(0, 1),
1949 	)
1950 );
1951 
1952 static const struct clk_parent_data clk_gp1_parents[] = {
1953 	{ .hw = &clk_sdio_timer_desc.hw },
1954 	{ .index = -1 },
1955 	{ .index = -1 },
1956 	{ .index = -1 },
1957 	{ .index = -1 },
1958 	{ .index = -1 },
1959 	{ .hw = &pll_sys_pri_ph_desc.hw },
1960 	{ .index = -1 },
1961 	{ .index = -1 },
1962 	{ .index = -1 },
1963 	{ .hw = &clk_adc_desc.hw },
1964 	{ .hw = &clk_dpi_desc.hw },
1965 	{ .hw = &clk_pwm0_desc.hw },
1966 	{ .index = -1 },
1967 	{ .index = -1 },
1968 	{ .index = -1 },
1969 };
1970 
1971 static struct rp1_clk_desc clk_gp1_desc = REGISTER_CLK(
1972 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1973 		"clk_gp1",
1974 		clk_gp1_parents,
1975 		&rp1_clk_ops,
1976 		0
1977 	),
1978 	CLK_DATA(rp1_clock_data,
1979 		 .num_std_parents = 0,
1980 		 .num_aux_parents = 16,
1981 		 .oe_mask = BIT(1),
1982 		 .ctrl_reg = CLK_GP1_CTRL,
1983 		 .div_int_reg = CLK_GP1_DIV_INT,
1984 		 .div_frac_reg = CLK_GP1_DIV_FRAC,
1985 		 .sel_reg = CLK_GP1_SEL,
1986 		 .div_int_max = DIV_INT_16BIT_MAX,
1987 		 .max_freq = 100 * HZ_PER_MHZ,
1988 		 .fc0_src = FC_NUM(1, 1),
1989 	)
1990 );
1991 
1992 static struct rp1_clk_desc clksrc_mipi0_dsi_byteclk_desc = REGISTER_CLK(
1993 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
1994 		"clksrc_mipi0_dsi_byteclk",
1995 		(const struct clk_parent_data[]) { { .index = 0 } },
1996 		&rp1_varsrc_ops,
1997 		0
1998 	),
1999 	CLK_DATA(rp1_clock_data,
2000 		 .num_std_parents = 1,
2001 		 .num_aux_parents = 0,
2002 	)
2003 );
2004 
2005 static struct rp1_clk_desc clksrc_mipi1_dsi_byteclk_desc = REGISTER_CLK(
2006 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2007 		"clksrc_mipi1_dsi_byteclk",
2008 		(const struct clk_parent_data[]) { { .index = 0 } },
2009 		&rp1_varsrc_ops,
2010 		0
2011 	),
2012 	CLK_DATA(rp1_clock_data,
2013 		 .num_std_parents = 1,
2014 		 .num_aux_parents = 0,
2015 	)
2016 );
2017 
2018 static const struct clk_parent_data clk_mipi0_dpi_parents[] = {
2019 	{ .hw = &pll_sys_desc.hw },
2020 	{ .hw = &pll_video_sec_desc.hw },
2021 	{ .hw = &pll_video_desc.hw },
2022 	{ .hw = &clksrc_mipi0_dsi_byteclk_desc.hw },
2023 	{ .index = -1 },
2024 	{ .index = -1 },
2025 	{ .index = -1 },
2026 	{ .index = -1 },
2027 };
2028 
2029 static struct rp1_clk_desc clk_mipi0_dpi_desc = REGISTER_CLK(
2030 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2031 		"clk_mipi0_dpi",
2032 		clk_mipi0_dpi_parents,
2033 		&rp1_clk_ops,
2034 		CLK_SET_RATE_NO_REPARENT /* Let DSI driver set parent */
2035 	),
2036 	CLK_DATA(rp1_clock_data,
2037 		 .num_std_parents = 0,
2038 		 .num_aux_parents = 8,
2039 		 .ctrl_reg = VIDEO_CLK_MIPI0_DPI_CTRL,
2040 		 .div_int_reg = VIDEO_CLK_MIPI0_DPI_DIV_INT,
2041 		 .div_frac_reg = VIDEO_CLK_MIPI0_DPI_DIV_FRAC,
2042 		 .sel_reg = VIDEO_CLK_MIPI0_DPI_SEL,
2043 		 .div_int_max = DIV_INT_8BIT_MAX,
2044 		 .max_freq = 200 * HZ_PER_MHZ,
2045 		 .fc0_src = FC_NUM(2, 6),
2046 	)
2047 );
2048 
2049 static const struct clk_parent_data clk_mipi1_dpi_parents[] = {
2050 	{ .hw = &pll_sys_desc.hw },
2051 	{ .hw = &pll_video_sec_desc.hw },
2052 	{ .hw = &pll_video_desc.hw },
2053 	{ .hw = &clksrc_mipi1_dsi_byteclk_desc.hw },
2054 	{ .index = -1 },
2055 	{ .index = -1 },
2056 	{ .index = -1 },
2057 	{ .index = -1 },
2058 };
2059 
2060 static struct rp1_clk_desc clk_mipi1_dpi_desc = REGISTER_CLK(
2061 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2062 		"clk_mipi1_dpi",
2063 		clk_mipi1_dpi_parents,
2064 		&rp1_clk_ops,
2065 		CLK_SET_RATE_NO_REPARENT /* Let DSI driver set parent */
2066 	),
2067 	CLK_DATA(rp1_clock_data,
2068 		 .num_std_parents = 0,
2069 		 .num_aux_parents = 8,
2070 		 .ctrl_reg = VIDEO_CLK_MIPI1_DPI_CTRL,
2071 		 .div_int_reg = VIDEO_CLK_MIPI1_DPI_DIV_INT,
2072 		 .div_frac_reg = VIDEO_CLK_MIPI1_DPI_DIV_FRAC,
2073 		 .sel_reg = VIDEO_CLK_MIPI1_DPI_SEL,
2074 		 .div_int_max = DIV_INT_8BIT_MAX,
2075 		 .max_freq = 200 * HZ_PER_MHZ,
2076 		 .fc0_src = FC_NUM(3, 6),
2077 	)
2078 );
2079 
2080 static const struct clk_parent_data clk_gp2_parents[] = {
2081 	{ .hw = &clk_sdio_alt_src_desc.hw },
2082 	{ .index = -1 },
2083 	{ .index = -1 },
2084 	{ .index = -1 },
2085 	{ .index = -1 },
2086 	{ .index = -1 },
2087 	{ .hw = &pll_sys_sec_desc.hw },
2088 	{ .index = -1 },
2089 	{ .hw = &pll_video_desc.hw },
2090 	{ .hw = &clk_audio_in_desc.hw },
2091 	{ .hw = &clk_dpi_desc.hw },
2092 	{ .hw = &clk_pwm0_desc.hw },
2093 	{ .hw = &clk_pwm1_desc.hw },
2094 	{ .hw = &clk_mipi0_dpi_desc.hw },
2095 	{ .hw = &clk_mipi1_cfg_desc.hw },
2096 	{ .hw = &clk_sys_desc.hw },
2097 };
2098 
2099 static struct rp1_clk_desc clk_gp2_desc = REGISTER_CLK(
2100 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2101 		"clk_gp2",
2102 		clk_gp2_parents,
2103 		&rp1_clk_ops,
2104 		0
2105 	),
2106 	CLK_DATA(rp1_clock_data,
2107 		 .num_std_parents = 0,
2108 		 .num_aux_parents = 16,
2109 		 .oe_mask = BIT(2),
2110 		 .ctrl_reg = CLK_GP2_CTRL,
2111 		 .div_int_reg = CLK_GP2_DIV_INT,
2112 		 .div_frac_reg = CLK_GP2_DIV_FRAC,
2113 		 .sel_reg = CLK_GP2_SEL,
2114 		 .div_int_max = DIV_INT_16BIT_MAX,
2115 		 .max_freq = 100 * HZ_PER_MHZ,
2116 		 .fc0_src = FC_NUM(2, 1),
2117 	)
2118 );
2119 
2120 static const struct clk_parent_data clk_gp3_parents[] = {
2121 	{ .index = 0 },
2122 	{ .index = -1 },
2123 	{ .index = -1 },
2124 	{ .index = -1 },
2125 	{ .index = -1 },
2126 	{ .index = -1 },
2127 	{ .index = -1 },
2128 	{ .index = -1 },
2129 	{ .hw = &pll_video_pri_ph_desc.hw },
2130 	{ .hw = &clk_audio_out_desc.hw },
2131 	{ .index = -1 },
2132 	{ .index = -1 },
2133 	{ .hw = &clk_mipi1_dpi_desc.hw },
2134 	{ .index = -1 },
2135 	{ .index = -1 },
2136 	{ .index = -1 },
2137 };
2138 
2139 static struct rp1_clk_desc clk_gp3_desc = REGISTER_CLK(
2140 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2141 		"clk_gp3",
2142 		clk_gp3_parents,
2143 		&rp1_clk_ops,
2144 		0
2145 	),
2146 	CLK_DATA(rp1_clock_data,
2147 		 .num_std_parents = 0,
2148 		 .num_aux_parents = 16,
2149 		 .oe_mask = BIT(3),
2150 		 .ctrl_reg = CLK_GP3_CTRL,
2151 		 .div_int_reg = CLK_GP3_DIV_INT,
2152 		 .div_frac_reg = CLK_GP3_DIV_FRAC,
2153 		 .sel_reg = CLK_GP3_SEL,
2154 		 .div_int_max = DIV_INT_16BIT_MAX,
2155 		 .max_freq = 100 * HZ_PER_MHZ,
2156 		 .fc0_src = FC_NUM(3, 1),
2157 	)
2158 );
2159 
2160 static const struct clk_parent_data clk_gp4_parents[] = {
2161 	{ .index = 0 },
2162 	{ .index = -1 },
2163 	{ .index = -1 },
2164 	{ .index = -1 },
2165 	{ .index = -1 },
2166 	{ .index = -1 },
2167 	{ .index = -1 },
2168 	{ .hw = &pll_video_sec_desc.hw },
2169 	{ .index = -1 },
2170 	{ .index = -1 },
2171 	{ .index = -1 },
2172 	{ .hw = &clk_mipi0_cfg_desc.hw },
2173 	{ .hw = &clk_uart_desc.hw },
2174 	{ .index = -1 },
2175 	{ .index = -1 },
2176 	{ .hw = &clk_sys_desc.hw },
2177 };
2178 
2179 static struct rp1_clk_desc clk_gp4_desc = REGISTER_CLK(
2180 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2181 		"clk_gp4",
2182 		clk_gp4_parents,
2183 		&rp1_clk_ops,
2184 		0
2185 	),
2186 	CLK_DATA(rp1_clock_data,
2187 		 .num_std_parents = 0,
2188 		 .num_aux_parents = 16,
2189 		 .oe_mask = BIT(4),
2190 		 .ctrl_reg = CLK_GP4_CTRL,
2191 		 .div_int_reg = CLK_GP4_DIV_INT,
2192 		 .div_frac_reg = CLK_GP4_DIV_FRAC,
2193 		 .sel_reg = CLK_GP4_SEL,
2194 		 .div_int_max = DIV_INT_16BIT_MAX,
2195 		 .max_freq = 100 * HZ_PER_MHZ,
2196 		 .fc0_src = FC_NUM(4, 1),
2197 	)
2198 );
2199 
2200 static const struct clk_parent_data clk_vec_parents[] = {
2201 	{ .hw = &pll_sys_pri_ph_desc.hw },
2202 	{ .hw = &pll_video_sec_desc.hw },
2203 	{ .hw = &pll_video_desc.hw },
2204 	{ .index = -1 },
2205 	{ .index = -1 },
2206 	{ .index = -1 },
2207 	{ .index = -1 },
2208 	{ .index = -1 },
2209 };
2210 
2211 static struct rp1_clk_desc clk_vec_desc = REGISTER_CLK(
2212 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2213 		"clk_vec",
2214 		clk_vec_parents,
2215 		&rp1_clk_ops,
2216 		CLK_SET_RATE_NO_REPARENT /* Let VEC driver set parent */
2217 	),
2218 	CLK_DATA(rp1_clock_data,
2219 		 .num_std_parents = 0,
2220 		 .num_aux_parents = 8,
2221 		 .ctrl_reg = VIDEO_CLK_VEC_CTRL,
2222 		 .div_int_reg = VIDEO_CLK_VEC_DIV_INT,
2223 		 .sel_reg = VIDEO_CLK_VEC_SEL,
2224 		 .div_int_max = DIV_INT_8BIT_MAX,
2225 		 .max_freq = 108 * HZ_PER_MHZ,
2226 		 .fc0_src = FC_NUM(0, 6),
2227 	)
2228 );
2229 
2230 static const struct clk_parent_data clk_gp5_parents[] = {
2231 	{ .index = 0 },
2232 	{ .index = -1 },
2233 	{ .index = -1 },
2234 	{ .index = -1 },
2235 	{ .index = -1 },
2236 	{ .index = -1 },
2237 	{ .index = -1 },
2238 	{ .hw = &pll_video_sec_desc.hw },
2239 	{ .hw = &clk_eth_tsu_desc.hw },
2240 	{ .index = -1 },
2241 	{ .hw = &clk_vec_desc.hw },
2242 	{ .index = -1 },
2243 	{ .index = -1 },
2244 	{ .index = -1 },
2245 	{ .index = -1 },
2246 	{ .index = -1 },
2247 };
2248 
2249 static struct rp1_clk_desc clk_gp5_desc = REGISTER_CLK(
2250 	.hw.init = CLK_HW_INIT_PARENTS_DATA(
2251 		"clk_gp5",
2252 		clk_gp5_parents,
2253 		&rp1_clk_ops,
2254 		0
2255 	),
2256 	CLK_DATA(rp1_clock_data,
2257 		 .num_std_parents = 0,
2258 		 .num_aux_parents = 16,
2259 		 .oe_mask = BIT(5),
2260 		 .ctrl_reg = CLK_GP5_CTRL,
2261 		 .div_int_reg = CLK_GP5_DIV_INT,
2262 		 .div_frac_reg = CLK_GP5_DIV_FRAC,
2263 		 .sel_reg = CLK_GP5_SEL,
2264 		 .div_int_max = DIV_INT_16BIT_MAX,
2265 		 .max_freq = 100 * HZ_PER_MHZ,
2266 		 .fc0_src = FC_NUM(5, 1),
2267 	)
2268 );
2269 
2270 static struct rp1_clk_desc *const clk_desc_array[] = {
2271 	[RP1_PLL_SYS_CORE] = &pll_sys_core_desc,
2272 	[RP1_PLL_AUDIO_CORE] = &pll_audio_core_desc,
2273 	[RP1_PLL_VIDEO_CORE] = &pll_video_core_desc,
2274 	[RP1_PLL_SYS] = &pll_sys_desc,
2275 	[RP1_CLK_ETH_TSU] = &clk_eth_tsu_desc,
2276 	[RP1_CLK_ETH] = &clk_eth_desc,
2277 	[RP1_CLK_SYS] = &clk_sys_desc,
2278 	[RP1_PLL_SYS_PRI_PH] = &pll_sys_pri_ph_desc,
2279 	[RP1_PLL_SYS_SEC] = &pll_sys_sec_desc,
2280 	[RP1_PLL_AUDIO] = &pll_audio_desc,
2281 	[RP1_PLL_VIDEO] = &pll_video_desc,
2282 	[RP1_PLL_AUDIO_PRI_PH] = &pll_audio_pri_ph_desc,
2283 	[RP1_PLL_VIDEO_PRI_PH] = &pll_video_pri_ph_desc,
2284 	[RP1_PLL_AUDIO_SEC] = &pll_audio_sec_desc,
2285 	[RP1_PLL_VIDEO_SEC] = &pll_video_sec_desc,
2286 	[RP1_PLL_AUDIO_TERN] = &pll_audio_tern_desc,
2287 	[RP1_CLK_SLOW_SYS] = &clk_slow_sys_desc,
2288 	[RP1_CLK_DMA] = &clk_dma_desc,
2289 	[RP1_CLK_UART] = &clk_uart_desc,
2290 	[RP1_CLK_PWM0] = &clk_pwm0_desc,
2291 	[RP1_CLK_PWM1] = &clk_pwm1_desc,
2292 	[RP1_CLK_AUDIO_IN] = &clk_audio_in_desc,
2293 	[RP1_CLK_AUDIO_OUT] = &clk_audio_out_desc,
2294 	[RP1_CLK_I2S] = &clk_i2s_desc,
2295 	[RP1_CLK_MIPI0_CFG] = &clk_mipi0_cfg_desc,
2296 	[RP1_CLK_MIPI1_CFG] = &clk_mipi1_cfg_desc,
2297 	[RP1_CLK_ADC] = &clk_adc_desc,
2298 	[RP1_CLK_SDIO_TIMER] = &clk_sdio_timer_desc,
2299 	[RP1_CLK_SDIO_ALT_SRC] = &clk_sdio_alt_src_desc,
2300 	[RP1_CLK_GP0] = &clk_gp0_desc,
2301 	[RP1_CLK_GP1] = &clk_gp1_desc,
2302 	[RP1_CLK_GP2] = &clk_gp2_desc,
2303 	[RP1_CLK_GP3] = &clk_gp3_desc,
2304 	[RP1_CLK_GP4] = &clk_gp4_desc,
2305 	[RP1_CLK_GP5] = &clk_gp5_desc,
2306 	[RP1_CLK_VEC] = &clk_vec_desc,
2307 	[RP1_CLK_DPI] = &clk_dpi_desc,
2308 	[RP1_CLK_MIPI0_DPI] = &clk_mipi0_dpi_desc,
2309 	[RP1_CLK_MIPI1_DPI] = &clk_mipi1_dpi_desc,
2310 	[RP1_CLK_MIPI0_DSI_BYTECLOCK] = &clksrc_mipi0_dsi_byteclk_desc,
2311 	[RP1_CLK_MIPI1_DSI_BYTECLOCK] = &clksrc_mipi1_dsi_byteclk_desc,
2312 };
2313 
2314 static const struct regmap_range rp1_reg_ranges[] = {
2315 	regmap_reg_range(PLL_SYS_CS, PLL_SYS_SEC),
2316 	regmap_reg_range(PLL_AUDIO_CS, PLL_AUDIO_TERN),
2317 	regmap_reg_range(PLL_VIDEO_CS, PLL_VIDEO_SEC),
2318 	regmap_reg_range(GPCLK_OE_CTRL, GPCLK_OE_CTRL),
2319 	regmap_reg_range(CLK_SYS_CTRL, CLK_SYS_DIV_INT),
2320 	regmap_reg_range(CLK_SYS_SEL, CLK_SYS_SEL),
2321 	regmap_reg_range(CLK_SLOW_SYS_CTRL, CLK_SLOW_SYS_DIV_INT),
2322 	regmap_reg_range(CLK_SLOW_SYS_SEL, CLK_SLOW_SYS_SEL),
2323 	regmap_reg_range(CLK_DMA_CTRL, CLK_DMA_DIV_INT),
2324 	regmap_reg_range(CLK_DMA_SEL, CLK_DMA_SEL),
2325 	regmap_reg_range(CLK_UART_CTRL, CLK_UART_DIV_INT),
2326 	regmap_reg_range(CLK_UART_SEL, CLK_UART_SEL),
2327 	regmap_reg_range(CLK_ETH_CTRL, CLK_ETH_DIV_INT),
2328 	regmap_reg_range(CLK_ETH_SEL, CLK_ETH_SEL),
2329 	regmap_reg_range(CLK_PWM0_CTRL, CLK_PWM0_SEL),
2330 	regmap_reg_range(CLK_PWM1_CTRL, CLK_PWM1_SEL),
2331 	regmap_reg_range(CLK_AUDIO_IN_CTRL, CLK_AUDIO_IN_DIV_INT),
2332 	regmap_reg_range(CLK_AUDIO_IN_SEL, CLK_AUDIO_IN_SEL),
2333 	regmap_reg_range(CLK_AUDIO_OUT_CTRL, CLK_AUDIO_OUT_DIV_INT),
2334 	regmap_reg_range(CLK_AUDIO_OUT_SEL, CLK_AUDIO_OUT_SEL),
2335 	regmap_reg_range(CLK_I2S_CTRL, CLK_I2S_DIV_INT),
2336 	regmap_reg_range(CLK_I2S_SEL, CLK_I2S_SEL),
2337 	regmap_reg_range(CLK_MIPI0_CFG_CTRL, CLK_MIPI0_CFG_DIV_INT),
2338 	regmap_reg_range(CLK_MIPI0_CFG_SEL, CLK_MIPI0_CFG_SEL),
2339 	regmap_reg_range(CLK_MIPI1_CFG_CTRL, CLK_MIPI1_CFG_DIV_INT),
2340 	regmap_reg_range(CLK_MIPI1_CFG_SEL, CLK_MIPI1_CFG_SEL),
2341 	regmap_reg_range(CLK_PCIE_AUX_CTRL, CLK_PCIE_AUX_DIV_INT),
2342 	regmap_reg_range(CLK_PCIE_AUX_SEL, CLK_PCIE_AUX_SEL),
2343 	regmap_reg_range(CLK_USBH0_MICROFRAME_CTRL, CLK_USBH0_MICROFRAME_DIV_INT),
2344 	regmap_reg_range(CLK_USBH0_MICROFRAME_SEL, CLK_USBH0_MICROFRAME_SEL),
2345 	regmap_reg_range(CLK_USBH1_MICROFRAME_CTRL, CLK_USBH1_MICROFRAME_DIV_INT),
2346 	regmap_reg_range(CLK_USBH1_MICROFRAME_SEL, CLK_USBH1_MICROFRAME_SEL),
2347 	regmap_reg_range(CLK_USBH0_SUSPEND_CTRL, CLK_USBH0_SUSPEND_DIV_INT),
2348 	regmap_reg_range(CLK_USBH0_SUSPEND_SEL, CLK_USBH0_SUSPEND_SEL),
2349 	regmap_reg_range(CLK_USBH1_SUSPEND_CTRL, CLK_USBH1_SUSPEND_DIV_INT),
2350 	regmap_reg_range(CLK_USBH1_SUSPEND_SEL, CLK_USBH1_SUSPEND_SEL),
2351 	regmap_reg_range(CLK_ETH_TSU_CTRL, CLK_ETH_TSU_DIV_INT),
2352 	regmap_reg_range(CLK_ETH_TSU_SEL, CLK_ETH_TSU_SEL),
2353 	regmap_reg_range(CLK_ADC_CTRL, CLK_ADC_DIV_INT),
2354 	regmap_reg_range(CLK_ADC_SEL, CLK_ADC_SEL),
2355 	regmap_reg_range(CLK_SDIO_TIMER_CTRL, CLK_SDIO_TIMER_DIV_INT),
2356 	regmap_reg_range(CLK_SDIO_TIMER_SEL, CLK_SDIO_TIMER_SEL),
2357 	regmap_reg_range(CLK_SDIO_ALT_SRC_CTRL, CLK_SDIO_ALT_SRC_DIV_INT),
2358 	regmap_reg_range(CLK_SDIO_ALT_SRC_SEL, CLK_SDIO_ALT_SRC_SEL),
2359 	regmap_reg_range(CLK_GP0_CTRL, CLK_GP0_SEL),
2360 	regmap_reg_range(CLK_GP1_CTRL, CLK_GP1_SEL),
2361 	regmap_reg_range(CLK_GP2_CTRL, CLK_GP2_SEL),
2362 	regmap_reg_range(CLK_GP3_CTRL, CLK_GP3_SEL),
2363 	regmap_reg_range(CLK_GP4_CTRL, CLK_GP4_SEL),
2364 	regmap_reg_range(CLK_GP5_CTRL, CLK_GP5_SEL),
2365 	regmap_reg_range(CLK_SYS_RESUS_CTRL, CLK_SYS_RESUS_CTRL),
2366 	regmap_reg_range(CLK_SLOW_SYS_RESUS_CTRL, CLK_SLOW_SYS_RESUS_CTRL),
2367 	regmap_reg_range(FC0_REF_KHZ, FC0_RESULT),
2368 	regmap_reg_range(VIDEO_CLK_VEC_CTRL, VIDEO_CLK_VEC_DIV_INT),
2369 	regmap_reg_range(VIDEO_CLK_VEC_SEL, VIDEO_CLK_DPI_DIV_INT),
2370 	regmap_reg_range(VIDEO_CLK_DPI_SEL, VIDEO_CLK_MIPI1_DPI_SEL),
2371 };
2372 
2373 static const struct regmap_access_table rp1_reg_table = {
2374 	.yes_ranges = rp1_reg_ranges,
2375 	.n_yes_ranges = ARRAY_SIZE(rp1_reg_ranges),
2376 };
2377 
2378 static const struct regmap_config rp1_clk_regmap_cfg = {
2379 	.reg_bits = 32,
2380 	.val_bits = 32,
2381 	.reg_stride = 4,
2382 	.max_register = PLL_VIDEO_SEC,
2383 	.name = "rp1-clk",
2384 	.rd_table = &rp1_reg_table,
2385 	.disable_locking = true,
2386 };
2387 
rp1_clk_probe(struct platform_device * pdev)2388 static int rp1_clk_probe(struct platform_device *pdev)
2389 {
2390 	const size_t asize = ARRAY_SIZE(clk_desc_array);
2391 	struct rp1_clk_desc *desc;
2392 	struct device *dev = &pdev->dev;
2393 	struct rp1_clockman *clockman;
2394 	struct clk_hw **hws;
2395 	unsigned int i;
2396 
2397 	clockman = devm_kzalloc(dev, struct_size(clockman, onecell.hws, asize),
2398 				GFP_KERNEL);
2399 	if (!clockman)
2400 		return -ENOMEM;
2401 
2402 	spin_lock_init(&clockman->regs_lock);
2403 	clockman->dev = dev;
2404 
2405 	clockman->regs = devm_platform_ioremap_resource(pdev, 0);
2406 	if (IS_ERR(clockman->regs))
2407 		return PTR_ERR(clockman->regs);
2408 
2409 	clockman->regmap = devm_regmap_init_mmio(dev, clockman->regs,
2410 						 &rp1_clk_regmap_cfg);
2411 	if (IS_ERR(clockman->regmap)) {
2412 		dev_err_probe(dev, PTR_ERR(clockman->regmap),
2413 			      "could not init clock regmap\n");
2414 		return PTR_ERR(clockman->regmap);
2415 	}
2416 
2417 	clockman->onecell.num = asize;
2418 	hws = clockman->onecell.hws;
2419 
2420 	for (i = 0; i < asize; i++) {
2421 		desc = clk_desc_array[i];
2422 		if (desc && desc->clk_register && desc->data)
2423 			hws[i] = desc->clk_register(clockman, desc);
2424 	}
2425 
2426 	clk_audio_core = &pll_audio_core_desc;
2427 	clk_audio = &pll_audio_desc;
2428 	clk_i2s = &clk_i2s_desc;
2429 	clk_xosc = clk_hw_get_parent_by_index(&clk_i2s->hw, 0);
2430 
2431 	platform_set_drvdata(pdev, clockman);
2432 
2433 	return devm_of_clk_add_hw_provider(dev, of_clk_hw_onecell_get,
2434 					   &clockman->onecell);
2435 }
2436 
2437 static const struct of_device_id rp1_clk_of_match[] = {
2438 	{ .compatible = "raspberrypi,rp1-clocks" },
2439 	{}
2440 };
2441 MODULE_DEVICE_TABLE(of, rp1_clk_of_match);
2442 
2443 static struct platform_driver rp1_clk_driver = {
2444 	.driver = {
2445 		.name = "rp1-clk",
2446 		.of_match_table = rp1_clk_of_match,
2447 	},
2448 	.probe = rp1_clk_probe,
2449 };
2450 
2451 module_platform_driver(rp1_clk_driver);
2452 
2453 MODULE_AUTHOR("Naushir Patuck <naush@raspberrypi.com>");
2454 MODULE_AUTHOR("Andrea della Porta <andrea.porta@suse.com>");
2455 MODULE_DESCRIPTION("RP1 clock driver");
2456 MODULE_LICENSE("GPL");
2457