1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * R9A06G032 clock driver
4  *
5  * Copyright (C) 2018 Renesas Electronics Europe Limited
6  *
7  * Michel Pollet <michel.pollet@bp.renesas.com>, <buserror@gmail.com>
8  */
9 
10 #include <linux/clk.h>
11 #include <linux/clk-provider.h>
12 #include <linux/delay.h>
13 #include <linux/init.h>
14 #include <linux/io.h>
15 #include <linux/kernel.h>
16 #include <linux/math64.h>
17 #include <linux/of.h>
18 #include <linux/of_address.h>
19 #include <linux/of_platform.h>
20 #include <linux/platform_device.h>
21 #include <linux/pm_clock.h>
22 #include <linux/pm_domain.h>
23 #include <linux/slab.h>
24 #include <linux/soc/renesas/r9a06g032-sysctrl.h>
25 #include <linux/spinlock.h>
26 #include <dt-bindings/clock/r9a06g032-sysctrl.h>
27 
28 #define R9A06G032_SYSCTRL_DMAMUX 0xA0
29 
30 struct r9a06g032_gate {
31 	u16 gate, reset, ready, midle,
32 		scon, mirack, mistat;
33 };
34 
35 /* This is used to describe a clock for instantiation */
36 struct r9a06g032_clkdesc {
37 	const char *name;
38 	uint32_t managed: 1;
39 	uint32_t type: 3;
40 	uint32_t index: 8;
41 	uint32_t source : 8; /* source index + 1 (0 == none) */
42 	/* these are used to populate the bitsel struct */
43 	union {
44 		struct r9a06g032_gate gate;
45 		/* for dividers */
46 		struct {
47 			unsigned int div_min : 10, div_max : 10, reg: 10;
48 			u16 div_table[4];
49 		};
50 		/* For fixed-factor ones */
51 		struct {
52 			u16 div, mul;
53 		};
54 		/* for dual gate */
55 		struct {
56 			uint16_t group : 1;
57 			u16 sel, g1, r1, g2, r2;
58 		} dual;
59 	};
60 };
61 
62 #define I_GATE(_clk, _rst, _rdy, _midle, _scon, _mirack, _mistat) \
63 	{ .gate = _clk, .reset = _rst, \
64 		.ready = _rdy, .midle = _midle, \
65 		.scon = _scon, .mirack = _mirack, .mistat = _mistat }
66 #define D_GATE(_idx, _n, _src, ...) \
67 	{ .type = K_GATE, .index = R9A06G032_##_idx, \
68 		.source = 1 + R9A06G032_##_src, .name = _n, \
69 		.gate = I_GATE(__VA_ARGS__) }
70 #define D_MODULE(_idx, _n, _src, ...) \
71 	{ .type = K_GATE, .index = R9A06G032_##_idx, \
72 		.source = 1 + R9A06G032_##_src, .name = _n, \
73 		.managed = 1, .gate = I_GATE(__VA_ARGS__) }
74 #define D_ROOT(_idx, _n, _mul, _div) \
75 	{ .type = K_FFC, .index = R9A06G032_##_idx, .name = _n, \
76 		.div = _div, .mul = _mul }
77 #define D_FFC(_idx, _n, _src, _div) \
78 	{ .type = K_FFC, .index = R9A06G032_##_idx, \
79 		.source = 1 + R9A06G032_##_src, .name = _n, \
80 		.div = _div, .mul = 1}
81 #define D_DIV(_idx, _n, _src, _reg, _min, _max, ...) \
82 	{ .type = K_DIV, .index = R9A06G032_##_idx, \
83 		.source = 1 + R9A06G032_##_src, .name = _n, \
84 		.reg = _reg, .div_min = _min, .div_max = _max, \
85 		.div_table = { __VA_ARGS__ } }
86 #define D_UGATE(_idx, _n, _src, _g, _g1, _r1, _g2, _r2) \
87 	{ .type = K_DUALGATE, .index = R9A06G032_##_idx, \
88 		.source = 1 + R9A06G032_##_src, .name = _n, \
89 		.dual = { .group = _g, \
90 			.g1 = _g1, .r1 = _r1, .g2 = _g2, .r2 = _r2 }, }
91 
92 enum { K_GATE = 0, K_FFC, K_DIV, K_BITSEL, K_DUALGATE };
93 
94 /* Internal clock IDs */
95 #define R9A06G032_CLKOUT		0
96 #define R9A06G032_CLKOUT_D10		2
97 #define R9A06G032_CLKOUT_D16		3
98 #define R9A06G032_CLKOUT_D160		4
99 #define R9A06G032_CLKOUT_D1OR2		5
100 #define R9A06G032_CLKOUT_D20		6
101 #define R9A06G032_CLKOUT_D40		7
102 #define R9A06G032_CLKOUT_D5		8
103 #define R9A06G032_CLKOUT_D8		9
104 #define R9A06G032_DIV_ADC		10
105 #define R9A06G032_DIV_I2C		11
106 #define R9A06G032_DIV_NAND		12
107 #define R9A06G032_DIV_P1_PG		13
108 #define R9A06G032_DIV_P2_PG		14
109 #define R9A06G032_DIV_P3_PG		15
110 #define R9A06G032_DIV_P4_PG		16
111 #define R9A06G032_DIV_P5_PG		17
112 #define R9A06G032_DIV_P6_PG		18
113 #define R9A06G032_DIV_QSPI0		19
114 #define R9A06G032_DIV_QSPI1		20
115 #define R9A06G032_DIV_REF_SYNC		21
116 #define R9A06G032_DIV_SDIO0		22
117 #define R9A06G032_DIV_SDIO1		23
118 #define R9A06G032_DIV_SWITCH		24
119 #define R9A06G032_DIV_UART		25
120 #define R9A06G032_DIV_MOTOR		64
121 #define R9A06G032_CLK_DDRPHY_PLLCLK_D4	78
122 #define R9A06G032_CLK_ECAT100_D4	79
123 #define R9A06G032_CLK_HSR100_D2		80
124 #define R9A06G032_CLK_REF_SYNC_D4	81
125 #define R9A06G032_CLK_REF_SYNC_D8	82
126 #define R9A06G032_CLK_SERCOS100_D2	83
127 #define R9A06G032_DIV_CA7		84
128 
129 #define R9A06G032_UART_GROUP_012	154
130 #define R9A06G032_UART_GROUP_34567	155
131 
132 #define R9A06G032_CLOCK_COUNT		(R9A06G032_UART_GROUP_34567 + 1)
133 
134 static const struct r9a06g032_clkdesc r9a06g032_clocks[] = {
135 	D_ROOT(CLKOUT, "clkout", 25, 1),
136 	D_ROOT(CLK_PLL_USB, "clk_pll_usb", 12, 10),
137 	D_FFC(CLKOUT_D10, "clkout_d10", CLKOUT, 10),
138 	D_FFC(CLKOUT_D16, "clkout_d16", CLKOUT, 16),
139 	D_FFC(CLKOUT_D160, "clkout_d160", CLKOUT, 160),
140 	D_DIV(CLKOUT_D1OR2, "clkout_d1or2", CLKOUT, 0, 1, 2),
141 	D_FFC(CLKOUT_D20, "clkout_d20", CLKOUT, 20),
142 	D_FFC(CLKOUT_D40, "clkout_d40", CLKOUT, 40),
143 	D_FFC(CLKOUT_D5, "clkout_d5", CLKOUT, 5),
144 	D_FFC(CLKOUT_D8, "clkout_d8", CLKOUT, 8),
145 	D_DIV(DIV_ADC, "div_adc", CLKOUT, 77, 50, 250),
146 	D_DIV(DIV_I2C, "div_i2c", CLKOUT, 78, 12, 16),
147 	D_DIV(DIV_NAND, "div_nand", CLKOUT, 82, 12, 32),
148 	D_DIV(DIV_P1_PG, "div_p1_pg", CLKOUT, 68, 12, 200),
149 	D_DIV(DIV_P2_PG, "div_p2_pg", CLKOUT, 62, 12, 128),
150 	D_DIV(DIV_P3_PG, "div_p3_pg", CLKOUT, 64, 8, 128),
151 	D_DIV(DIV_P4_PG, "div_p4_pg", CLKOUT, 66, 8, 128),
152 	D_DIV(DIV_P5_PG, "div_p5_pg", CLKOUT, 71, 10, 40),
153 	D_DIV(DIV_P6_PG, "div_p6_pg", CLKOUT, 18, 12, 64),
154 	D_DIV(DIV_QSPI0, "div_qspi0", CLKOUT, 73, 3, 7),
155 	D_DIV(DIV_QSPI1, "div_qspi1", CLKOUT, 25, 3, 7),
156 	D_DIV(DIV_REF_SYNC, "div_ref_sync", CLKOUT, 56, 2, 16, 2, 4, 8, 16),
157 	D_DIV(DIV_SDIO0, "div_sdio0", CLKOUT, 74, 20, 128),
158 	D_DIV(DIV_SDIO1, "div_sdio1", CLKOUT, 75, 20, 128),
159 	D_DIV(DIV_SWITCH, "div_switch", CLKOUT, 37, 5, 40),
160 	D_DIV(DIV_UART, "div_uart", CLKOUT, 79, 12, 128),
161 	D_GATE(CLK_25_PG4, "clk_25_pg4", CLKOUT_D40, 0x749, 0x74a, 0x74b, 0, 0xae3, 0, 0),
162 	D_GATE(CLK_25_PG5, "clk_25_pg5", CLKOUT_D40, 0x74c, 0x74d, 0x74e, 0, 0xae4, 0, 0),
163 	D_GATE(CLK_25_PG6, "clk_25_pg6", CLKOUT_D40, 0x74f, 0x750, 0x751, 0, 0xae5, 0, 0),
164 	D_GATE(CLK_25_PG7, "clk_25_pg7", CLKOUT_D40, 0x752, 0x753, 0x754, 0, 0xae6, 0, 0),
165 	D_GATE(CLK_25_PG8, "clk_25_pg8", CLKOUT_D40, 0x755, 0x756, 0x757, 0, 0xae7, 0, 0),
166 	D_GATE(CLK_ADC, "clk_adc", DIV_ADC, 0x1ea, 0x1eb, 0, 0, 0, 0, 0),
167 	D_GATE(CLK_ECAT100, "clk_ecat100", CLKOUT_D10, 0x405, 0, 0, 0, 0, 0, 0),
168 	D_GATE(CLK_HSR100, "clk_hsr100", CLKOUT_D10, 0x483, 0, 0, 0, 0, 0, 0),
169 	D_GATE(CLK_I2C0, "clk_i2c0", DIV_I2C, 0x1e6, 0x1e7, 0, 0, 0, 0, 0),
170 	D_GATE(CLK_I2C1, "clk_i2c1", DIV_I2C, 0x1e8, 0x1e9, 0, 0, 0, 0, 0),
171 	D_GATE(CLK_MII_REF, "clk_mii_ref", CLKOUT_D40, 0x342, 0, 0, 0, 0, 0, 0),
172 	D_GATE(CLK_NAND, "clk_nand", DIV_NAND, 0x284, 0x285, 0, 0, 0, 0, 0),
173 	D_GATE(CLK_NOUSBP2_PG6, "clk_nousbp2_pg6", DIV_P2_PG, 0x774, 0x775, 0, 0, 0, 0, 0),
174 	D_GATE(CLK_P1_PG2, "clk_p1_pg2", DIV_P1_PG, 0x862, 0x863, 0, 0, 0, 0, 0),
175 	D_GATE(CLK_P1_PG3, "clk_p1_pg3", DIV_P1_PG, 0x864, 0x865, 0, 0, 0, 0, 0),
176 	D_GATE(CLK_P1_PG4, "clk_p1_pg4", DIV_P1_PG, 0x866, 0x867, 0, 0, 0, 0, 0),
177 	D_GATE(CLK_P4_PG3, "clk_p4_pg3", DIV_P4_PG, 0x824, 0x825, 0, 0, 0, 0, 0),
178 	D_GATE(CLK_P4_PG4, "clk_p4_pg4", DIV_P4_PG, 0x826, 0x827, 0, 0, 0, 0, 0),
179 	D_GATE(CLK_P6_PG1, "clk_p6_pg1", DIV_P6_PG, 0x8a0, 0x8a1, 0x8a2, 0, 0xb60, 0, 0),
180 	D_GATE(CLK_P6_PG2, "clk_p6_pg2", DIV_P6_PG, 0x8a3, 0x8a4, 0x8a5, 0, 0xb61, 0, 0),
181 	D_GATE(CLK_P6_PG3, "clk_p6_pg3", DIV_P6_PG, 0x8a6, 0x8a7, 0x8a8, 0, 0xb62, 0, 0),
182 	D_GATE(CLK_P6_PG4, "clk_p6_pg4", DIV_P6_PG, 0x8a9, 0x8aa, 0x8ab, 0, 0xb63, 0, 0),
183 	D_MODULE(CLK_PCI_USB, "clk_pci_usb", CLKOUT_D40, 0xe6, 0, 0, 0, 0, 0, 0),
184 	D_GATE(CLK_QSPI0, "clk_qspi0", DIV_QSPI0, 0x2a4, 0x2a5, 0, 0, 0, 0, 0),
185 	D_GATE(CLK_QSPI1, "clk_qspi1", DIV_QSPI1, 0x484, 0x485, 0, 0, 0, 0, 0),
186 	D_GATE(CLK_RGMII_REF, "clk_rgmii_ref", CLKOUT_D8, 0x340, 0, 0, 0, 0, 0, 0),
187 	D_GATE(CLK_RMII_REF, "clk_rmii_ref", CLKOUT_D20, 0x341, 0, 0, 0, 0, 0, 0),
188 	D_GATE(CLK_SDIO0, "clk_sdio0", DIV_SDIO0, 0x64, 0, 0, 0, 0, 0, 0),
189 	D_GATE(CLK_SDIO1, "clk_sdio1", DIV_SDIO1, 0x644, 0, 0, 0, 0, 0, 0),
190 	D_GATE(CLK_SERCOS100, "clk_sercos100", CLKOUT_D10, 0x425, 0, 0, 0, 0, 0, 0),
191 	D_GATE(CLK_SLCD, "clk_slcd", DIV_P1_PG, 0x860, 0x861, 0, 0, 0, 0, 0),
192 	D_GATE(CLK_SPI0, "clk_spi0", DIV_P3_PG, 0x7e0, 0x7e1, 0, 0, 0, 0, 0),
193 	D_GATE(CLK_SPI1, "clk_spi1", DIV_P3_PG, 0x7e2, 0x7e3, 0, 0, 0, 0, 0),
194 	D_GATE(CLK_SPI2, "clk_spi2", DIV_P3_PG, 0x7e4, 0x7e5, 0, 0, 0, 0, 0),
195 	D_GATE(CLK_SPI3, "clk_spi3", DIV_P3_PG, 0x7e6, 0x7e7, 0, 0, 0, 0, 0),
196 	D_GATE(CLK_SPI4, "clk_spi4", DIV_P4_PG, 0x820, 0x821, 0, 0, 0, 0, 0),
197 	D_GATE(CLK_SPI5, "clk_spi5", DIV_P4_PG, 0x822, 0x823, 0, 0, 0, 0, 0),
198 	D_GATE(CLK_SWITCH, "clk_switch", DIV_SWITCH, 0x982, 0x983, 0, 0, 0, 0, 0),
199 	D_DIV(DIV_MOTOR, "div_motor", CLKOUT_D5, 84, 2, 8),
200 	D_MODULE(HCLK_ECAT125, "hclk_ecat125", CLKOUT_D8, 0x400, 0x401, 0, 0x402, 0, 0x440, 0x441),
201 	D_MODULE(HCLK_PINCONFIG, "hclk_pinconfig", CLKOUT_D40, 0x740, 0x741, 0x742, 0, 0xae0, 0, 0),
202 	D_MODULE(HCLK_SERCOS, "hclk_sercos", CLKOUT_D10, 0x420, 0x422, 0, 0x421, 0, 0x460, 0x461),
203 	D_MODULE(HCLK_SGPIO2, "hclk_sgpio2", DIV_P5_PG, 0x8c3, 0x8c4, 0x8c5, 0, 0xb41, 0, 0),
204 	D_MODULE(HCLK_SGPIO3, "hclk_sgpio3", DIV_P5_PG, 0x8c6, 0x8c7, 0x8c8, 0, 0xb42, 0, 0),
205 	D_MODULE(HCLK_SGPIO4, "hclk_sgpio4", DIV_P5_PG, 0x8c9, 0x8ca, 0x8cb, 0, 0xb43, 0, 0),
206 	D_MODULE(HCLK_TIMER0, "hclk_timer0", CLKOUT_D40, 0x743, 0x744, 0x745, 0, 0xae1, 0, 0),
207 	D_MODULE(HCLK_TIMER1, "hclk_timer1", CLKOUT_D40, 0x746, 0x747, 0x748, 0, 0xae2, 0, 0),
208 	D_MODULE(HCLK_USBF, "hclk_usbf", CLKOUT_D8, 0xe3, 0, 0, 0xe4, 0, 0x102, 0x103),
209 	D_MODULE(HCLK_USBH, "hclk_usbh", CLKOUT_D8, 0xe0, 0xe1, 0, 0xe2, 0, 0x100, 0x101),
210 	D_MODULE(HCLK_USBPM, "hclk_usbpm", CLKOUT_D8, 0xe5, 0, 0, 0, 0, 0, 0),
211 	D_GATE(CLK_48_PG_F, "clk_48_pg_f", CLK_48, 0x78c, 0x78d, 0, 0x78e, 0, 0xb04, 0xb05),
212 	D_GATE(CLK_48_PG4, "clk_48_pg4", CLK_48, 0x789, 0x78a, 0x78b, 0, 0xb03, 0, 0),
213 	D_FFC(CLK_DDRPHY_PLLCLK_D4, "clk_ddrphy_pllclk_d4", CLK_DDRPHY_PLLCLK, 4),
214 	D_FFC(CLK_ECAT100_D4, "clk_ecat100_d4", CLK_ECAT100, 4),
215 	D_FFC(CLK_HSR100_D2, "clk_hsr100_d2", CLK_HSR100, 2),
216 	D_FFC(CLK_REF_SYNC_D4, "clk_ref_sync_d4", CLK_REF_SYNC, 4),
217 	D_FFC(CLK_REF_SYNC_D8, "clk_ref_sync_d8", CLK_REF_SYNC, 8),
218 	D_FFC(CLK_SERCOS100_D2, "clk_sercos100_d2", CLK_SERCOS100, 2),
219 	D_DIV(DIV_CA7, "div_ca7", CLK_REF_SYNC, 57, 1, 4, 1, 2, 4),
220 	D_MODULE(HCLK_CAN0, "hclk_can0", CLK_48, 0x783, 0x784, 0x785, 0, 0xb01, 0, 0),
221 	D_MODULE(HCLK_CAN1, "hclk_can1", CLK_48, 0x786, 0x787, 0x788, 0, 0xb02, 0, 0),
222 	D_MODULE(HCLK_DELTASIGMA, "hclk_deltasigma", DIV_MOTOR, 0x1ef, 0x1f0, 0x1f1, 0, 0, 0, 0),
223 	D_MODULE(HCLK_PWMPTO, "hclk_pwmpto", DIV_MOTOR, 0x1ec, 0x1ed, 0x1ee, 0, 0, 0, 0),
224 	D_MODULE(HCLK_RSV, "hclk_rsv", CLK_48, 0x780, 0x781, 0x782, 0, 0xb00, 0, 0),
225 	D_MODULE(HCLK_SGPIO0, "hclk_sgpio0", DIV_MOTOR, 0x1e0, 0x1e1, 0x1e2, 0, 0, 0, 0),
226 	D_MODULE(HCLK_SGPIO1, "hclk_sgpio1", DIV_MOTOR, 0x1e3, 0x1e4, 0x1e5, 0, 0, 0, 0),
227 	D_DIV(RTOS_MDC, "rtos_mdc", CLK_REF_SYNC, 100, 80, 640, 80, 160, 320, 640),
228 	D_GATE(CLK_CM3, "clk_cm3", CLK_REF_SYNC_D4, 0xba0, 0xba1, 0, 0xba2, 0, 0xbc0, 0xbc1),
229 	D_GATE(CLK_DDRC, "clk_ddrc", CLK_DDRPHY_PLLCLK_D4, 0x323, 0x324, 0, 0, 0, 0, 0),
230 	D_GATE(CLK_ECAT25, "clk_ecat25", CLK_ECAT100_D4, 0x403, 0x404, 0, 0, 0, 0, 0),
231 	D_GATE(CLK_HSR50, "clk_hsr50", CLK_HSR100_D2, 0x484, 0x485, 0, 0, 0, 0, 0),
232 	D_GATE(CLK_HW_RTOS, "clk_hw_rtos", CLK_REF_SYNC_D4, 0xc60, 0xc61, 0, 0, 0, 0, 0),
233 	D_GATE(CLK_SERCOS50, "clk_sercos50", CLK_SERCOS100_D2, 0x424, 0x423, 0, 0, 0, 0, 0),
234 	D_MODULE(HCLK_ADC, "hclk_adc", CLK_REF_SYNC_D8, 0x1af, 0x1b0, 0x1b1, 0, 0, 0, 0),
235 	D_MODULE(HCLK_CM3, "hclk_cm3", CLK_REF_SYNC_D4, 0xc20, 0xc21, 0xc22, 0, 0, 0, 0),
236 	D_MODULE(HCLK_CRYPTO_EIP150, "hclk_crypto_eip150", CLK_REF_SYNC_D4, 0x123, 0x124, 0x125, 0, 0x142, 0, 0),
237 	D_MODULE(HCLK_CRYPTO_EIP93, "hclk_crypto_eip93", CLK_REF_SYNC_D4, 0x120, 0x121, 0, 0x122, 0, 0x140, 0x141),
238 	D_MODULE(HCLK_DDRC, "hclk_ddrc", CLK_REF_SYNC_D4, 0x320, 0x322, 0, 0x321, 0, 0x3a0, 0x3a1),
239 	D_MODULE(HCLK_DMA0, "hclk_dma0", CLK_REF_SYNC_D4, 0x260, 0x261, 0x262, 0x263, 0x2c0, 0x2c1, 0x2c2),
240 	D_MODULE(HCLK_DMA1, "hclk_dma1", CLK_REF_SYNC_D4, 0x264, 0x265, 0x266, 0x267, 0x2c3, 0x2c4, 0x2c5),
241 	D_MODULE(HCLK_GMAC0, "hclk_gmac0", CLK_REF_SYNC_D4, 0x360, 0x361, 0x362, 0x363, 0x3c0, 0x3c1, 0x3c2),
242 	D_MODULE(HCLK_GMAC1, "hclk_gmac1", CLK_REF_SYNC_D4, 0x380, 0x381, 0x382, 0x383, 0x3e0, 0x3e1, 0x3e2),
243 	D_MODULE(HCLK_GPIO0, "hclk_gpio0", CLK_REF_SYNC_D4, 0x212, 0x213, 0x214, 0, 0, 0, 0),
244 	D_MODULE(HCLK_GPIO1, "hclk_gpio1", CLK_REF_SYNC_D4, 0x215, 0x216, 0x217, 0, 0, 0, 0),
245 	D_MODULE(HCLK_GPIO2, "hclk_gpio2", CLK_REF_SYNC_D4, 0x229, 0x22a, 0x22b, 0, 0, 0, 0),
246 	D_MODULE(HCLK_HSR, "hclk_hsr", CLK_HSR100_D2, 0x480, 0x482, 0, 0x481, 0, 0x4c0, 0x4c1),
247 	D_MODULE(HCLK_I2C0, "hclk_i2c0", CLK_REF_SYNC_D8, 0x1a9, 0x1aa, 0x1ab, 0, 0, 0, 0),
248 	D_MODULE(HCLK_I2C1, "hclk_i2c1", CLK_REF_SYNC_D8, 0x1ac, 0x1ad, 0x1ae, 0, 0, 0, 0),
249 	D_MODULE(HCLK_LCD, "hclk_lcd", CLK_REF_SYNC_D4, 0x7a0, 0x7a1, 0x7a2, 0, 0xb20, 0, 0),
250 	D_MODULE(HCLK_MSEBI_M, "hclk_msebi_m", CLK_REF_SYNC_D4, 0x164, 0x165, 0x166, 0, 0x183, 0, 0),
251 	D_MODULE(HCLK_MSEBI_S, "hclk_msebi_s", CLK_REF_SYNC_D4, 0x160, 0x161, 0x162, 0x163, 0x180, 0x181, 0x182),
252 	D_MODULE(HCLK_NAND, "hclk_nand", CLK_REF_SYNC_D4, 0x280, 0x281, 0x282, 0x283, 0x2e0, 0x2e1, 0x2e2),
253 	D_MODULE(HCLK_PG_I, "hclk_pg_i", CLK_REF_SYNC_D4, 0x7ac, 0x7ad, 0, 0x7ae, 0, 0xb24, 0xb25),
254 	D_MODULE(HCLK_PG19, "hclk_pg19", CLK_REF_SYNC_D4, 0x22c, 0x22d, 0x22e, 0, 0, 0, 0),
255 	D_MODULE(HCLK_PG20, "hclk_pg20", CLK_REF_SYNC_D4, 0x22f, 0x230, 0x231, 0, 0, 0, 0),
256 	D_MODULE(HCLK_PG3, "hclk_pg3", CLK_REF_SYNC_D4, 0x7a6, 0x7a7, 0x7a8, 0, 0xb22, 0, 0),
257 	D_MODULE(HCLK_PG4, "hclk_pg4", CLK_REF_SYNC_D4, 0x7a9, 0x7aa, 0x7ab, 0, 0xb23, 0, 0),
258 	D_MODULE(HCLK_QSPI0, "hclk_qspi0", CLK_REF_SYNC_D4, 0x2a0, 0x2a1, 0x2a2, 0x2a3, 0x300, 0x301, 0x302),
259 	D_MODULE(HCLK_QSPI1, "hclk_qspi1", CLK_REF_SYNC_D4, 0x480, 0x481, 0x482, 0x483, 0x4c0, 0x4c1, 0x4c2),
260 	D_MODULE(HCLK_ROM, "hclk_rom", CLK_REF_SYNC_D4, 0xaa0, 0xaa1, 0xaa2, 0, 0xb80, 0, 0),
261 	D_MODULE(HCLK_RTC, "hclk_rtc", CLK_REF_SYNC_D8, 0xa00, 0xa03, 0, 0xa02, 0, 0, 0),
262 	D_MODULE(HCLK_SDIO0, "hclk_sdio0", CLK_REF_SYNC_D4, 0x60, 0x61, 0x62, 0x63, 0x80, 0x81, 0x82),
263 	D_MODULE(HCLK_SDIO1, "hclk_sdio1", CLK_REF_SYNC_D4, 0x640, 0x641, 0x642, 0x643, 0x660, 0x661, 0x662),
264 	D_MODULE(HCLK_SEMAP, "hclk_semap", CLK_REF_SYNC_D4, 0x7a3, 0x7a4, 0x7a5, 0, 0xb21, 0, 0),
265 	D_MODULE(HCLK_SPI0, "hclk_spi0", CLK_REF_SYNC_D4, 0x200, 0x201, 0x202, 0, 0, 0, 0),
266 	D_MODULE(HCLK_SPI1, "hclk_spi1", CLK_REF_SYNC_D4, 0x203, 0x204, 0x205, 0, 0, 0, 0),
267 	D_MODULE(HCLK_SPI2, "hclk_spi2", CLK_REF_SYNC_D4, 0x206, 0x207, 0x208, 0, 0, 0, 0),
268 	D_MODULE(HCLK_SPI3, "hclk_spi3", CLK_REF_SYNC_D4, 0x209, 0x20a, 0x20b, 0, 0, 0, 0),
269 	D_MODULE(HCLK_SPI4, "hclk_spi4", CLK_REF_SYNC_D4, 0x20c, 0x20d, 0x20e, 0, 0, 0, 0),
270 	D_MODULE(HCLK_SPI5, "hclk_spi5", CLK_REF_SYNC_D4, 0x20f, 0x210, 0x211, 0, 0, 0, 0),
271 	D_MODULE(HCLK_SWITCH, "hclk_switch", CLK_REF_SYNC_D4, 0x980, 0, 0x981, 0, 0, 0, 0),
272 	D_MODULE(HCLK_SWITCH_RG, "hclk_switch_rg", CLK_REF_SYNC_D4, 0xc40, 0xc41, 0xc42, 0, 0, 0, 0),
273 	D_MODULE(HCLK_UART0, "hclk_uart0", CLK_REF_SYNC_D8, 0x1a0, 0x1a1, 0x1a2, 0, 0, 0, 0),
274 	D_MODULE(HCLK_UART1, "hclk_uart1", CLK_REF_SYNC_D8, 0x1a3, 0x1a4, 0x1a5, 0, 0, 0, 0),
275 	D_MODULE(HCLK_UART2, "hclk_uart2", CLK_REF_SYNC_D8, 0x1a6, 0x1a7, 0x1a8, 0, 0, 0, 0),
276 	D_MODULE(HCLK_UART3, "hclk_uart3", CLK_REF_SYNC_D4, 0x218, 0x219, 0x21a, 0, 0, 0, 0),
277 	D_MODULE(HCLK_UART4, "hclk_uart4", CLK_REF_SYNC_D4, 0x21b, 0x21c, 0x21d, 0, 0, 0, 0),
278 	D_MODULE(HCLK_UART5, "hclk_uart5", CLK_REF_SYNC_D4, 0x220, 0x221, 0x222, 0, 0, 0, 0),
279 	D_MODULE(HCLK_UART6, "hclk_uart6", CLK_REF_SYNC_D4, 0x223, 0x224, 0x225, 0, 0, 0, 0),
280 	D_MODULE(HCLK_UART7, "hclk_uart7", CLK_REF_SYNC_D4, 0x226, 0x227, 0x228, 0, 0, 0, 0),
281 	/*
282 	 * These are not hardware clocks, but are needed to handle the special
283 	 * case where we have a 'selector bit' that doesn't just change the
284 	 * parent for a clock, but also the gate it's supposed to use.
285 	 */
286 	{
287 		.index = R9A06G032_UART_GROUP_012,
288 		.name = "uart_group_012",
289 		.type = K_BITSEL,
290 		.source = 1 + R9A06G032_DIV_UART,
291 		/* R9A06G032_SYSCTRL_REG_PWRCTRL_PG0_0 */
292 		.dual.sel = ((0x34 / 4) << 5) | 30,
293 		.dual.group = 0,
294 	},
295 	{
296 		.index = R9A06G032_UART_GROUP_34567,
297 		.name = "uart_group_34567",
298 		.type = K_BITSEL,
299 		.source = 1 + R9A06G032_DIV_P2_PG,
300 		/* R9A06G032_SYSCTRL_REG_PWRCTRL_PG1_PR2 */
301 		.dual.sel = ((0xec / 4) << 5) | 24,
302 		.dual.group = 1,
303 	},
304 	D_UGATE(CLK_UART0, "clk_uart0", UART_GROUP_012, 0, 0x1b2, 0x1b3, 0x1b4, 0x1b5),
305 	D_UGATE(CLK_UART1, "clk_uart1", UART_GROUP_012, 0, 0x1b6, 0x1b7, 0x1b8, 0x1b9),
306 	D_UGATE(CLK_UART2, "clk_uart2", UART_GROUP_012, 0, 0x1ba, 0x1bb, 0x1bc, 0x1bd),
307 	D_UGATE(CLK_UART3, "clk_uart3", UART_GROUP_34567, 1, 0x760, 0x761, 0x762, 0x763),
308 	D_UGATE(CLK_UART4, "clk_uart4", UART_GROUP_34567, 1, 0x764, 0x765, 0x766, 0x767),
309 	D_UGATE(CLK_UART5, "clk_uart5", UART_GROUP_34567, 1, 0x768, 0x769, 0x76a, 0x76b),
310 	D_UGATE(CLK_UART6, "clk_uart6", UART_GROUP_34567, 1, 0x76c, 0x76d, 0x76e, 0x76f),
311 	D_UGATE(CLK_UART7, "clk_uart7", UART_GROUP_34567, 1, 0x770, 0x771, 0x772, 0x773),
312 };
313 
314 struct r9a06g032_priv {
315 	struct clk_onecell_data data;
316 	spinlock_t lock; /* protects concurrent access to gates */
317 	void __iomem *reg;
318 };
319 
320 static struct r9a06g032_priv *sysctrl_priv;
321 
322 /* Exported helper to access the DMAMUX register */
323 int r9a06g032_sysctrl_set_dmamux(u32 mask, u32 val)
324 {
325 	unsigned long flags;
326 	u32 dmamux;
327 
328 	if (!sysctrl_priv)
329 		return -EPROBE_DEFER;
330 
331 	spin_lock_irqsave(&sysctrl_priv->lock, flags);
332 
333 	dmamux = readl(sysctrl_priv->reg + R9A06G032_SYSCTRL_DMAMUX);
334 	dmamux &= ~mask;
335 	dmamux |= val & mask;
336 	writel(dmamux, sysctrl_priv->reg + R9A06G032_SYSCTRL_DMAMUX);
337 
338 	spin_unlock_irqrestore(&sysctrl_priv->lock, flags);
339 
340 	return 0;
341 }
342 EXPORT_SYMBOL_GPL(r9a06g032_sysctrl_set_dmamux);
343 
344 /* register/bit pairs are encoded as an uint16_t */
345 static void
346 clk_rdesc_set(struct r9a06g032_priv *clocks,
347 	      u16 one, unsigned int on)
348 {
349 	u32 __iomem *reg = clocks->reg + (4 * (one >> 5));
350 	u32 val = readl(reg);
351 
352 	val = (val & ~(1U << (one & 0x1f))) | ((!!on) << (one & 0x1f));
353 	writel(val, reg);
354 }
355 
356 static int
357 clk_rdesc_get(struct r9a06g032_priv *clocks,
358 	      uint16_t one)
359 {
360 	u32 __iomem *reg = clocks->reg + (4 * (one >> 5));
361 	u32 val = readl(reg);
362 
363 	return !!(val & (1U << (one & 0x1f)));
364 }
365 
366 /*
367  * This implements the R9A06G032 clock gate 'driver'. We cannot use the system's
368  * clock gate framework as the gates on the R9A06G032 have a special enabling
369  * sequence, therefore we use this little proxy.
370  */
371 struct r9a06g032_clk_gate {
372 	struct clk_hw hw;
373 	struct r9a06g032_priv *clocks;
374 	u16 index;
375 
376 	struct r9a06g032_gate gate;
377 };
378 
379 #define to_r9a06g032_gate(_hw) container_of(_hw, struct r9a06g032_clk_gate, hw)
380 
381 static int create_add_module_clock(struct of_phandle_args *clkspec,
382 				   struct device *dev)
383 {
384 	struct clk *clk;
385 	int error;
386 
387 	clk = of_clk_get_from_provider(clkspec);
388 	if (IS_ERR(clk))
389 		return PTR_ERR(clk);
390 
391 	error = pm_clk_create(dev);
392 	if (error) {
393 		clk_put(clk);
394 		return error;
395 	}
396 
397 	error = pm_clk_add_clk(dev, clk);
398 	if (error) {
399 		pm_clk_destroy(dev);
400 		clk_put(clk);
401 	}
402 
403 	return error;
404 }
405 
406 static int r9a06g032_attach_dev(struct generic_pm_domain *pd,
407 				struct device *dev)
408 {
409 	struct device_node *np = dev->of_node;
410 	struct of_phandle_args clkspec;
411 	int i = 0;
412 	int error;
413 	int index;
414 
415 	while (!of_parse_phandle_with_args(np, "clocks", "#clock-cells", i,
416 					   &clkspec)) {
417 		if (clkspec.np != pd->dev.of_node)
418 			continue;
419 
420 		index = clkspec.args[0];
421 		if (index < R9A06G032_CLOCK_COUNT &&
422 		    r9a06g032_clocks[index].managed) {
423 			error = create_add_module_clock(&clkspec, dev);
424 			of_node_put(clkspec.np);
425 			if (error)
426 				return error;
427 		}
428 		i++;
429 	}
430 
431 	return 0;
432 }
433 
434 static void r9a06g032_detach_dev(struct generic_pm_domain *unused, struct device *dev)
435 {
436 	if (!pm_clk_no_clocks(dev))
437 		pm_clk_destroy(dev);
438 }
439 
440 static int r9a06g032_add_clk_domain(struct device *dev)
441 {
442 	struct device_node *np = dev->of_node;
443 	struct generic_pm_domain *pd;
444 
445 	pd = devm_kzalloc(dev, sizeof(*pd), GFP_KERNEL);
446 	if (!pd)
447 		return -ENOMEM;
448 
449 	pd->name = np->name;
450 	pd->flags = GENPD_FLAG_PM_CLK | GENPD_FLAG_ALWAYS_ON |
451 		    GENPD_FLAG_ACTIVE_WAKEUP;
452 	pd->attach_dev = r9a06g032_attach_dev;
453 	pd->detach_dev = r9a06g032_detach_dev;
454 	pm_genpd_init(pd, &pm_domain_always_on_gov, false);
455 
456 	of_genpd_add_provider_simple(np, pd);
457 	return 0;
458 }
459 
460 static void
461 r9a06g032_clk_gate_set(struct r9a06g032_priv *clocks,
462 		       struct r9a06g032_gate *g, int on)
463 {
464 	unsigned long flags;
465 
466 	WARN_ON(!g->gate);
467 
468 	spin_lock_irqsave(&clocks->lock, flags);
469 	clk_rdesc_set(clocks, g->gate, on);
470 	/* De-assert reset */
471 	if (g->reset)
472 		clk_rdesc_set(clocks, g->reset, 1);
473 	spin_unlock_irqrestore(&clocks->lock, flags);
474 
475 	/* Hardware manual recommends 5us delay after enabling clock & reset */
476 	udelay(5);
477 
478 	/* If the peripheral is memory mapped (i.e. an AXI slave), there is an
479 	 * associated SLVRDY bit in the System Controller that needs to be set
480 	 * so that the FlexWAY bus fabric passes on the read/write requests.
481 	 */
482 	if (g->ready || g->midle) {
483 		spin_lock_irqsave(&clocks->lock, flags);
484 		if (g->ready)
485 			clk_rdesc_set(clocks, g->ready, on);
486 		/* Clear 'Master Idle Request' bit */
487 		if (g->midle)
488 			clk_rdesc_set(clocks, g->midle, !on);
489 		spin_unlock_irqrestore(&clocks->lock, flags);
490 	}
491 	/* Note: We don't wait for FlexWAY Socket Connection signal */
492 }
493 
494 static int r9a06g032_clk_gate_enable(struct clk_hw *hw)
495 {
496 	struct r9a06g032_clk_gate *g = to_r9a06g032_gate(hw);
497 
498 	r9a06g032_clk_gate_set(g->clocks, &g->gate, 1);
499 	return 0;
500 }
501 
502 static void r9a06g032_clk_gate_disable(struct clk_hw *hw)
503 {
504 	struct r9a06g032_clk_gate *g = to_r9a06g032_gate(hw);
505 
506 	r9a06g032_clk_gate_set(g->clocks, &g->gate, 0);
507 }
508 
509 static int r9a06g032_clk_gate_is_enabled(struct clk_hw *hw)
510 {
511 	struct r9a06g032_clk_gate *g = to_r9a06g032_gate(hw);
512 
513 	/* if clock is in reset, the gate might be on, and still not 'be' on */
514 	if (g->gate.reset && !clk_rdesc_get(g->clocks, g->gate.reset))
515 		return 0;
516 
517 	return clk_rdesc_get(g->clocks, g->gate.gate);
518 }
519 
520 static const struct clk_ops r9a06g032_clk_gate_ops = {
521 	.enable = r9a06g032_clk_gate_enable,
522 	.disable = r9a06g032_clk_gate_disable,
523 	.is_enabled = r9a06g032_clk_gate_is_enabled,
524 };
525 
526 static struct clk *
527 r9a06g032_register_gate(struct r9a06g032_priv *clocks,
528 			const char *parent_name,
529 			const struct r9a06g032_clkdesc *desc)
530 {
531 	struct clk *clk;
532 	struct r9a06g032_clk_gate *g;
533 	struct clk_init_data init = {};
534 
535 	g = kzalloc(sizeof(*g), GFP_KERNEL);
536 	if (!g)
537 		return NULL;
538 
539 	init.name = desc->name;
540 	init.ops = &r9a06g032_clk_gate_ops;
541 	init.flags = CLK_SET_RATE_PARENT;
542 	init.parent_names = parent_name ? &parent_name : NULL;
543 	init.num_parents = parent_name ? 1 : 0;
544 
545 	g->clocks = clocks;
546 	g->index = desc->index;
547 	g->gate = desc->gate;
548 	g->hw.init = &init;
549 
550 	/*
551 	 * important here, some clocks are already in use by the CM3, we
552 	 * have to assume they are not Linux's to play with and try to disable
553 	 * at the end of the boot!
554 	 */
555 	if (r9a06g032_clk_gate_is_enabled(&g->hw)) {
556 		init.flags |= CLK_IS_CRITICAL;
557 		pr_debug("%s was enabled, making read-only\n", desc->name);
558 	}
559 
560 	clk = clk_register(NULL, &g->hw);
561 	if (IS_ERR(clk)) {
562 		kfree(g);
563 		return NULL;
564 	}
565 	return clk;
566 }
567 
568 struct r9a06g032_clk_div {
569 	struct clk_hw hw;
570 	struct r9a06g032_priv *clocks;
571 	u16 index;
572 	u16 reg;
573 	u16 min, max;
574 	u8 table_size;
575 	u16 table[8];	/* we know there are no more than 8 */
576 };
577 
578 #define to_r9a06g032_div(_hw) \
579 		container_of(_hw, struct r9a06g032_clk_div, hw)
580 
581 static unsigned long
582 r9a06g032_div_recalc_rate(struct clk_hw *hw,
583 			  unsigned long parent_rate)
584 {
585 	struct r9a06g032_clk_div *clk = to_r9a06g032_div(hw);
586 	u32 __iomem *reg = clk->clocks->reg + (4 * clk->reg);
587 	u32 div = readl(reg);
588 
589 	if (div < clk->min)
590 		div = clk->min;
591 	else if (div > clk->max)
592 		div = clk->max;
593 	return DIV_ROUND_UP(parent_rate, div);
594 }
595 
596 /*
597  * Attempts to find a value that is in range of min,max,
598  * and if a table of set dividers was specified for this
599  * register, try to find the fixed divider that is the closest
600  * to the target frequency
601  */
602 static long
603 r9a06g032_div_clamp_div(struct r9a06g032_clk_div *clk,
604 			unsigned long rate, unsigned long prate)
605 {
606 	/* + 1 to cope with rates that have the remainder dropped */
607 	u32 div = DIV_ROUND_UP(prate, rate + 1);
608 	int i;
609 
610 	if (div <= clk->min)
611 		return clk->min;
612 	if (div >= clk->max)
613 		return clk->max;
614 
615 	for (i = 0; clk->table_size && i < clk->table_size - 1; i++) {
616 		if (div >= clk->table[i] && div <= clk->table[i + 1]) {
617 			unsigned long m = rate -
618 				DIV_ROUND_UP(prate, clk->table[i]);
619 			unsigned long p =
620 				DIV_ROUND_UP(prate, clk->table[i + 1]) -
621 				rate;
622 			/*
623 			 * select the divider that generates
624 			 * the value closest to the ideal frequency
625 			 */
626 			div = p >= m ? clk->table[i] : clk->table[i + 1];
627 			return div;
628 		}
629 	}
630 	return div;
631 }
632 
633 static int
634 r9a06g032_div_determine_rate(struct clk_hw *hw, struct clk_rate_request *req)
635 {
636 	struct r9a06g032_clk_div *clk = to_r9a06g032_div(hw);
637 	u32 div = DIV_ROUND_UP(req->best_parent_rate, req->rate);
638 
639 	pr_devel("%s %pC %ld (prate %ld) (wanted div %u)\n", __func__,
640 		 hw->clk, req->rate, req->best_parent_rate, div);
641 	pr_devel("   min %d (%ld) max %d (%ld)\n",
642 		 clk->min, DIV_ROUND_UP(req->best_parent_rate, clk->min),
643 		 clk->max, DIV_ROUND_UP(req->best_parent_rate, clk->max));
644 
645 	div = r9a06g032_div_clamp_div(clk, req->rate, req->best_parent_rate);
646 	/*
647 	 * this is a hack. Currently the serial driver asks for a clock rate
648 	 * that is 16 times the baud rate -- and that is wildly outside the
649 	 * range of the UART divider, somehow there is no provision for that
650 	 * case of 'let the divider as is if outside range'.
651 	 * The serial driver *shouldn't* play with these clocks anyway, there's
652 	 * several uarts attached to this divider, and changing this impacts
653 	 * everyone.
654 	 */
655 	if (clk->index == R9A06G032_DIV_UART ||
656 	    clk->index == R9A06G032_DIV_P2_PG) {
657 		pr_devel("%s div uart hack!\n", __func__);
658 		req->rate = clk_get_rate(hw->clk);
659 		return 0;
660 	}
661 	req->rate = DIV_ROUND_UP(req->best_parent_rate, div);
662 	pr_devel("%s %pC %ld / %u = %ld\n", __func__, hw->clk,
663 		 req->best_parent_rate, div, req->rate);
664 	return 0;
665 }
666 
667 static int
668 r9a06g032_div_set_rate(struct clk_hw *hw,
669 		       unsigned long rate, unsigned long parent_rate)
670 {
671 	struct r9a06g032_clk_div *clk = to_r9a06g032_div(hw);
672 	/* + 1 to cope with rates that have the remainder dropped */
673 	u32 div = DIV_ROUND_UP(parent_rate, rate + 1);
674 	u32 __iomem *reg = clk->clocks->reg + (4 * clk->reg);
675 
676 	pr_devel("%s %pC rate %ld parent %ld div %d\n", __func__, hw->clk,
677 		 rate, parent_rate, div);
678 
679 	/*
680 	 * Need to write the bit 31 with the divider value to
681 	 * latch it. Technically we should wait until it has been
682 	 * cleared too.
683 	 * TODO: Find whether this callback is sleepable, in case
684 	 * the hardware /does/ require some sort of spinloop here.
685 	 */
686 	writel(div | BIT(31), reg);
687 
688 	return 0;
689 }
690 
691 static const struct clk_ops r9a06g032_clk_div_ops = {
692 	.recalc_rate = r9a06g032_div_recalc_rate,
693 	.determine_rate = r9a06g032_div_determine_rate,
694 	.set_rate = r9a06g032_div_set_rate,
695 };
696 
697 static struct clk *
698 r9a06g032_register_div(struct r9a06g032_priv *clocks,
699 		       const char *parent_name,
700 		       const struct r9a06g032_clkdesc *desc)
701 {
702 	struct r9a06g032_clk_div *div;
703 	struct clk *clk;
704 	struct clk_init_data init = {};
705 	unsigned int i;
706 
707 	div = kzalloc(sizeof(*div), GFP_KERNEL);
708 	if (!div)
709 		return NULL;
710 
711 	init.name = desc->name;
712 	init.ops = &r9a06g032_clk_div_ops;
713 	init.flags = CLK_SET_RATE_PARENT;
714 	init.parent_names = parent_name ? &parent_name : NULL;
715 	init.num_parents = parent_name ? 1 : 0;
716 
717 	div->clocks = clocks;
718 	div->index = desc->index;
719 	div->reg = desc->reg;
720 	div->hw.init = &init;
721 	div->min = desc->div_min;
722 	div->max = desc->div_max;
723 	/* populate (optional) divider table fixed values */
724 	for (i = 0; i < ARRAY_SIZE(div->table) &&
725 	     i < ARRAY_SIZE(desc->div_table) && desc->div_table[i]; i++) {
726 		div->table[div->table_size++] = desc->div_table[i];
727 	}
728 
729 	clk = clk_register(NULL, &div->hw);
730 	if (IS_ERR(clk)) {
731 		kfree(div);
732 		return NULL;
733 	}
734 	return clk;
735 }
736 
737 /*
738  * This clock provider handles the case of the R9A06G032 where you have
739  * peripherals that have two potential clock source and two gates, one for
740  * each of the clock source - the used clock source (for all sub clocks)
741  * is selected by a single bit.
742  * That single bit affects all sub-clocks, and therefore needs to change the
743  * active gate (and turn the others off) and force a recalculation of the rates.
744  *
745  * This implements two clock providers, one 'bitselect' that
746  * handles the switch between both parents, and another 'dualgate'
747  * that knows which gate to poke at, depending on the parent's bit position.
748  */
749 struct r9a06g032_clk_bitsel {
750 	struct clk_hw	hw;
751 	struct r9a06g032_priv *clocks;
752 	u16 index;
753 	u16 selector;		/* selector register + bit */
754 };
755 
756 #define to_clk_bitselect(_hw) \
757 		container_of(_hw, struct r9a06g032_clk_bitsel, hw)
758 
759 static u8 r9a06g032_clk_mux_get_parent(struct clk_hw *hw)
760 {
761 	struct r9a06g032_clk_bitsel *set = to_clk_bitselect(hw);
762 
763 	return clk_rdesc_get(set->clocks, set->selector);
764 }
765 
766 static int r9a06g032_clk_mux_set_parent(struct clk_hw *hw, u8 index)
767 {
768 	struct r9a06g032_clk_bitsel *set = to_clk_bitselect(hw);
769 
770 	/* a single bit in the register selects one of two parent clocks */
771 	clk_rdesc_set(set->clocks, set->selector, !!index);
772 
773 	return 0;
774 }
775 
776 static const struct clk_ops clk_bitselect_ops = {
777 	.get_parent = r9a06g032_clk_mux_get_parent,
778 	.set_parent = r9a06g032_clk_mux_set_parent,
779 };
780 
781 static struct clk *
782 r9a06g032_register_bitsel(struct r9a06g032_priv *clocks,
783 			  const char *parent_name,
784 			  const struct r9a06g032_clkdesc *desc)
785 {
786 	struct clk *clk;
787 	struct r9a06g032_clk_bitsel *g;
788 	struct clk_init_data init = {};
789 	const char *names[2];
790 
791 	/* allocate the gate */
792 	g = kzalloc(sizeof(*g), GFP_KERNEL);
793 	if (!g)
794 		return NULL;
795 
796 	names[0] = parent_name;
797 	names[1] = "clk_pll_usb";
798 
799 	init.name = desc->name;
800 	init.ops = &clk_bitselect_ops;
801 	init.flags = CLK_SET_RATE_PARENT;
802 	init.parent_names = names;
803 	init.num_parents = 2;
804 
805 	g->clocks = clocks;
806 	g->index = desc->index;
807 	g->selector = desc->dual.sel;
808 	g->hw.init = &init;
809 
810 	clk = clk_register(NULL, &g->hw);
811 	if (IS_ERR(clk)) {
812 		kfree(g);
813 		return NULL;
814 	}
815 	return clk;
816 }
817 
818 struct r9a06g032_clk_dualgate {
819 	struct clk_hw	hw;
820 	struct r9a06g032_priv *clocks;
821 	u16 index;
822 	u16 selector;		/* selector register + bit */
823 	struct r9a06g032_gate gate[2];
824 };
825 
826 #define to_clk_dualgate(_hw) \
827 		container_of(_hw, struct r9a06g032_clk_dualgate, hw)
828 
829 static int
830 r9a06g032_clk_dualgate_setenable(struct r9a06g032_clk_dualgate *g, int enable)
831 {
832 	u8 sel_bit = clk_rdesc_get(g->clocks, g->selector);
833 
834 	/* we always turn off the 'other' gate, regardless */
835 	r9a06g032_clk_gate_set(g->clocks, &g->gate[!sel_bit], 0);
836 	r9a06g032_clk_gate_set(g->clocks, &g->gate[sel_bit], enable);
837 
838 	return 0;
839 }
840 
841 static int r9a06g032_clk_dualgate_enable(struct clk_hw *hw)
842 {
843 	struct r9a06g032_clk_dualgate *gate = to_clk_dualgate(hw);
844 
845 	r9a06g032_clk_dualgate_setenable(gate, 1);
846 
847 	return 0;
848 }
849 
850 static void r9a06g032_clk_dualgate_disable(struct clk_hw *hw)
851 {
852 	struct r9a06g032_clk_dualgate *gate = to_clk_dualgate(hw);
853 
854 	r9a06g032_clk_dualgate_setenable(gate, 0);
855 }
856 
857 static int r9a06g032_clk_dualgate_is_enabled(struct clk_hw *hw)
858 {
859 	struct r9a06g032_clk_dualgate *g = to_clk_dualgate(hw);
860 	u8 sel_bit = clk_rdesc_get(g->clocks, g->selector);
861 
862 	return clk_rdesc_get(g->clocks, g->gate[sel_bit].gate);
863 }
864 
865 static const struct clk_ops r9a06g032_clk_dualgate_ops = {
866 	.enable = r9a06g032_clk_dualgate_enable,
867 	.disable = r9a06g032_clk_dualgate_disable,
868 	.is_enabled = r9a06g032_clk_dualgate_is_enabled,
869 };
870 
871 static struct clk *
872 r9a06g032_register_dualgate(struct r9a06g032_priv *clocks,
873 			    const char *parent_name,
874 			    const struct r9a06g032_clkdesc *desc,
875 			    uint16_t sel)
876 {
877 	struct r9a06g032_clk_dualgate *g;
878 	struct clk *clk;
879 	struct clk_init_data init = {};
880 
881 	/* allocate the gate */
882 	g = kzalloc(sizeof(*g), GFP_KERNEL);
883 	if (!g)
884 		return NULL;
885 	g->clocks = clocks;
886 	g->index = desc->index;
887 	g->selector = sel;
888 	g->gate[0].gate = desc->dual.g1;
889 	g->gate[0].reset = desc->dual.r1;
890 	g->gate[1].gate = desc->dual.g2;
891 	g->gate[1].reset = desc->dual.r2;
892 
893 	init.name = desc->name;
894 	init.ops = &r9a06g032_clk_dualgate_ops;
895 	init.flags = CLK_SET_RATE_PARENT;
896 	init.parent_names = &parent_name;
897 	init.num_parents = 1;
898 	g->hw.init = &init;
899 	/*
900 	 * important here, some clocks are already in use by the CM3, we
901 	 * have to assume they are not Linux's to play with and try to disable
902 	 * at the end of the boot!
903 	 */
904 	if (r9a06g032_clk_dualgate_is_enabled(&g->hw)) {
905 		init.flags |= CLK_IS_CRITICAL;
906 		pr_debug("%s was enabled, making read-only\n", desc->name);
907 	}
908 
909 	clk = clk_register(NULL, &g->hw);
910 	if (IS_ERR(clk)) {
911 		kfree(g);
912 		return NULL;
913 	}
914 	return clk;
915 }
916 
917 static void r9a06g032_clocks_del_clk_provider(void *data)
918 {
919 	of_clk_del_provider(data);
920 }
921 
922 static int __init r9a06g032_clocks_probe(struct platform_device *pdev)
923 {
924 	struct device *dev = &pdev->dev;
925 	struct device_node *np = dev->of_node;
926 	struct r9a06g032_priv *clocks;
927 	struct clk **clks;
928 	struct clk *mclk;
929 	unsigned int i;
930 	u16 uart_group_sel[2];
931 	int error;
932 
933 	clocks = devm_kzalloc(dev, sizeof(*clocks), GFP_KERNEL);
934 	clks = devm_kcalloc(dev, R9A06G032_CLOCK_COUNT, sizeof(struct clk *),
935 			    GFP_KERNEL);
936 	if (!clocks || !clks)
937 		return -ENOMEM;
938 
939 	spin_lock_init(&clocks->lock);
940 
941 	clocks->data.clks = clks;
942 	clocks->data.clk_num = R9A06G032_CLOCK_COUNT;
943 
944 	mclk = devm_clk_get(dev, "mclk");
945 	if (IS_ERR(mclk))
946 		return PTR_ERR(mclk);
947 
948 	clocks->reg = of_iomap(np, 0);
949 	if (WARN_ON(!clocks->reg))
950 		return -ENOMEM;
951 	for (i = 0; i < ARRAY_SIZE(r9a06g032_clocks); ++i) {
952 		const struct r9a06g032_clkdesc *d = &r9a06g032_clocks[i];
953 		const char *parent_name = d->source ?
954 			__clk_get_name(clocks->data.clks[d->source - 1]) :
955 			__clk_get_name(mclk);
956 		struct clk *clk = NULL;
957 
958 		switch (d->type) {
959 		case K_FFC:
960 			clk = clk_register_fixed_factor(NULL, d->name,
961 							parent_name, 0,
962 							d->mul, d->div);
963 			break;
964 		case K_GATE:
965 			clk = r9a06g032_register_gate(clocks, parent_name, d);
966 			break;
967 		case K_DIV:
968 			clk = r9a06g032_register_div(clocks, parent_name, d);
969 			break;
970 		case K_BITSEL:
971 			/* keep that selector register around */
972 			uart_group_sel[d->dual.group] = d->dual.sel;
973 			clk = r9a06g032_register_bitsel(clocks, parent_name, d);
974 			break;
975 		case K_DUALGATE:
976 			clk = r9a06g032_register_dualgate(clocks, parent_name,
977 							  d,
978 							  uart_group_sel[d->dual.group]);
979 			break;
980 		}
981 		clocks->data.clks[d->index] = clk;
982 	}
983 	error = of_clk_add_provider(np, of_clk_src_onecell_get, &clocks->data);
984 	if (error)
985 		return error;
986 
987 	error = devm_add_action_or_reset(dev,
988 					r9a06g032_clocks_del_clk_provider, np);
989 	if (error)
990 		return error;
991 
992 	error = r9a06g032_add_clk_domain(dev);
993 	if (error)
994 		return error;
995 
996 	sysctrl_priv = clocks;
997 
998 	error = of_platform_populate(np, NULL, NULL, dev);
999 	if (error)
1000 		dev_err(dev, "Failed to populate children (%d)\n", error);
1001 
1002 	return 0;
1003 }
1004 
1005 static const struct of_device_id r9a06g032_match[] = {
1006 	{ .compatible = "renesas,r9a06g032-sysctrl" },
1007 	{ }
1008 };
1009 
1010 static struct platform_driver r9a06g032_clock_driver = {
1011 	.driver		= {
1012 		.name	= "renesas,r9a06g032-sysctrl",
1013 		.of_match_table = r9a06g032_match,
1014 	},
1015 };
1016 
1017 static int __init r9a06g032_clocks_init(void)
1018 {
1019 	return platform_driver_probe(&r9a06g032_clock_driver,
1020 			r9a06g032_clocks_probe);
1021 }
1022 
1023 subsys_initcall(r9a06g032_clocks_init);
1024