xref: /linux/drivers/i3c/master/i3c-master-cdns.c (revision 3a2c4d55e32ad65efebdb6de44eef3bfa08bb49d)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (C) 2018 Cadence Design Systems Inc.
4  *
5  * Author: Boris Brezillon <boris.brezillon@bootlin.com>
6  */
7 
8 #include <linux/bitops.h>
9 #include <linux/clk.h>
10 #include <linux/err.h>
11 #include <linux/errno.h>
12 #include <linux/i3c/master.h>
13 #include <linux/interrupt.h>
14 #include <linux/io.h>
15 #include <linux/iopoll.h>
16 #include <linux/ioport.h>
17 #include <linux/kernel.h>
18 #include <linux/list.h>
19 #include <linux/module.h>
20 #include <linux/of.h>
21 #include <linux/platform_device.h>
22 #include <linux/slab.h>
23 #include <linux/spinlock.h>
24 #include <linux/workqueue.h>
25 
26 #include "../internals.h"
27 
28 #define DEV_ID				0x0
29 #define DEV_ID_I3C_MASTER		0x5034
30 
31 #define CONF_STATUS0			0x4
32 #define CONF_STATUS0_CMDR_DEPTH(x)	(4 << (((x) & GENMASK(31, 29)) >> 29))
33 #define CONF_STATUS0_ECC_CHK		BIT(28)
34 #define CONF_STATUS0_INTEG_CHK		BIT(27)
35 #define CONF_STATUS0_CSR_DAP_CHK	BIT(26)
36 #define CONF_STATUS0_TRANS_TOUT_CHK	BIT(25)
37 #define CONF_STATUS0_PROT_FAULTS_CHK	BIT(24)
38 #define CONF_STATUS0_GPO_NUM(x)		(((x) & GENMASK(23, 16)) >> 16)
39 #define CONF_STATUS0_GPI_NUM(x)		(((x) & GENMASK(15, 8)) >> 8)
40 #define CONF_STATUS0_IBIR_DEPTH(x)	(4 << (((x) & GENMASK(7, 6)) >> 7))
41 #define CONF_STATUS0_SUPPORTS_DDR	BIT(5)
42 #define CONF_STATUS0_SEC_MASTER		BIT(4)
43 #define CONF_STATUS0_DEVS_NUM(x)	((x) & GENMASK(3, 0))
44 
45 #define CONF_STATUS1			0x8
46 #define CONF_STATUS1_IBI_HW_RES(x)	((((x) & GENMASK(31, 28)) >> 28) + 1)
47 #define CONF_STATUS1_CMD_DEPTH(x)	(4 << (((x) & GENMASK(27, 26)) >> 26))
48 #define CONF_STATUS1_SLVDDR_RX_DEPTH(x)	(8 << (((x) & GENMASK(25, 21)) >> 21))
49 #define CONF_STATUS1_SLVDDR_TX_DEPTH(x)	(8 << (((x) & GENMASK(20, 16)) >> 16))
50 #define CONF_STATUS1_IBI_DEPTH(x)	(2 << (((x) & GENMASK(12, 10)) >> 10))
51 #define CONF_STATUS1_RX_DEPTH(x)	(8 << (((x) & GENMASK(9, 5)) >> 5))
52 #define CONF_STATUS1_TX_DEPTH(x)	(8 << ((x) & GENMASK(4, 0)))
53 
54 #define REV_ID				0xc
55 #define REV_ID_VID(id)			(((id) & GENMASK(31, 20)) >> 20)
56 #define REV_ID_PID(id)			(((id) & GENMASK(19, 8)) >> 8)
57 #define REV_ID_REV_MAJOR(id)		(((id) & GENMASK(7, 4)) >> 4)
58 #define REV_ID_REV_MINOR(id)		((id) & GENMASK(3, 0))
59 
60 #define CTRL				0x10
61 #define CTRL_DEV_EN			BIT(31)
62 #define CTRL_HALT_EN			BIT(30)
63 #define CTRL_MCS			BIT(29)
64 #define CTRL_MCS_EN			BIT(28)
65 #define CTRL_THD_DELAY(x)		(((x) << 24) & GENMASK(25, 24))
66 #define CTRL_HJ_DISEC			BIT(8)
67 #define CTRL_MST_ACK			BIT(7)
68 #define CTRL_HJ_ACK			BIT(6)
69 #define CTRL_HJ_INIT			BIT(5)
70 #define CTRL_MST_INIT			BIT(4)
71 #define CTRL_AHDR_OPT			BIT(3)
72 #define CTRL_PURE_BUS_MODE		0
73 #define CTRL_MIXED_FAST_BUS_MODE	2
74 #define CTRL_MIXED_SLOW_BUS_MODE	3
75 #define CTRL_BUS_MODE_MASK		GENMASK(1, 0)
76 #define THD_DELAY_MAX			3
77 
78 #define PRESCL_CTRL0			0x14
79 #define PRESCL_CTRL0_I2C(x)		((x) << 16)
80 #define PRESCL_CTRL0_I3C(x)		(x)
81 #define PRESCL_CTRL0_I3C_MAX		GENMASK(9, 0)
82 #define PRESCL_CTRL0_I2C_MAX		GENMASK(15, 0)
83 
84 #define PRESCL_CTRL1			0x18
85 #define PRESCL_CTRL1_PP_LOW_MASK	GENMASK(15, 8)
86 #define PRESCL_CTRL1_PP_LOW(x)		((x) << 8)
87 #define PRESCL_CTRL1_OD_LOW_MASK	GENMASK(7, 0)
88 #define PRESCL_CTRL1_OD_LOW(x)		(x)
89 
90 #define MST_IER				0x20
91 #define MST_IDR				0x24
92 #define MST_IMR				0x28
93 #define MST_ICR				0x2c
94 #define MST_ISR				0x30
95 #define MST_INT_HALTED			BIT(18)
96 #define MST_INT_MR_DONE			BIT(17)
97 #define MST_INT_IMM_COMP		BIT(16)
98 #define MST_INT_TX_THR			BIT(15)
99 #define MST_INT_TX_OVF			BIT(14)
100 #define MST_INT_IBID_THR		BIT(12)
101 #define MST_INT_IBID_UNF		BIT(11)
102 #define MST_INT_IBIR_THR		BIT(10)
103 #define MST_INT_IBIR_UNF		BIT(9)
104 #define MST_INT_IBIR_OVF		BIT(8)
105 #define MST_INT_RX_THR			BIT(7)
106 #define MST_INT_RX_UNF			BIT(6)
107 #define MST_INT_CMDD_EMP		BIT(5)
108 #define MST_INT_CMDD_THR		BIT(4)
109 #define MST_INT_CMDD_OVF		BIT(3)
110 #define MST_INT_CMDR_THR		BIT(2)
111 #define MST_INT_CMDR_UNF		BIT(1)
112 #define MST_INT_CMDR_OVF		BIT(0)
113 
114 #define MST_STATUS0			0x34
115 #define MST_STATUS0_IDLE		BIT(18)
116 #define MST_STATUS0_HALTED		BIT(17)
117 #define MST_STATUS0_MASTER_MODE		BIT(16)
118 #define MST_STATUS0_TX_FULL		BIT(13)
119 #define MST_STATUS0_IBID_FULL		BIT(12)
120 #define MST_STATUS0_IBIR_FULL		BIT(11)
121 #define MST_STATUS0_RX_FULL		BIT(10)
122 #define MST_STATUS0_CMDD_FULL		BIT(9)
123 #define MST_STATUS0_CMDR_FULL		BIT(8)
124 #define MST_STATUS0_TX_EMP		BIT(5)
125 #define MST_STATUS0_IBID_EMP		BIT(4)
126 #define MST_STATUS0_IBIR_EMP		BIT(3)
127 #define MST_STATUS0_RX_EMP		BIT(2)
128 #define MST_STATUS0_CMDD_EMP		BIT(1)
129 #define MST_STATUS0_CMDR_EMP		BIT(0)
130 
131 #define CMDR				0x38
132 #define CMDR_NO_ERROR			0
133 #define CMDR_DDR_PREAMBLE_ERROR		1
134 #define CMDR_DDR_PARITY_ERROR		2
135 #define CMDR_DDR_RX_FIFO_OVF		3
136 #define CMDR_DDR_TX_FIFO_UNF		4
137 #define CMDR_M0_ERROR			5
138 #define CMDR_M1_ERROR			6
139 #define CMDR_M2_ERROR			7
140 #define CMDR_MST_ABORT			8
141 #define CMDR_NACK_RESP			9
142 #define CMDR_INVALID_DA			10
143 #define CMDR_DDR_DROPPED		11
144 #define CMDR_ERROR(x)			(((x) & GENMASK(27, 24)) >> 24)
145 #define CMDR_XFER_BYTES(x)		(((x) & GENMASK(19, 8)) >> 8)
146 #define CMDR_CMDID_HJACK_DISEC		0xfe
147 #define CMDR_CMDID_HJACK_ENTDAA		0xff
148 #define CMDR_CMDID(x)			((x) & GENMASK(7, 0))
149 
150 #define IBIR				0x3c
151 #define IBIR_ACKED			BIT(12)
152 #define IBIR_SLVID(x)			(((x) & GENMASK(11, 8)) >> 8)
153 #define IBIR_ERROR			BIT(7)
154 #define IBIR_XFER_BYTES(x)		(((x) & GENMASK(6, 2)) >> 2)
155 #define IBIR_TYPE_IBI			0
156 #define IBIR_TYPE_HJ			1
157 #define IBIR_TYPE_MR			2
158 #define IBIR_TYPE(x)			((x) & GENMASK(1, 0))
159 
160 #define SLV_IER				0x40
161 #define SLV_IDR				0x44
162 #define SLV_IMR				0x48
163 #define SLV_ICR				0x4c
164 #define SLV_ISR				0x50
165 #define SLV_INT_TM			BIT(20)
166 #define SLV_INT_ERROR			BIT(19)
167 #define SLV_INT_EVENT_UP		BIT(18)
168 #define SLV_INT_HJ_DONE			BIT(17)
169 #define SLV_INT_MR_DONE			BIT(16)
170 #define SLV_INT_DA_UPD			BIT(15)
171 #define SLV_INT_SDR_FAIL		BIT(14)
172 #define SLV_INT_DDR_FAIL		BIT(13)
173 #define SLV_INT_M_RD_ABORT		BIT(12)
174 #define SLV_INT_DDR_RX_THR		BIT(11)
175 #define SLV_INT_DDR_TX_THR		BIT(10)
176 #define SLV_INT_SDR_RX_THR		BIT(9)
177 #define SLV_INT_SDR_TX_THR		BIT(8)
178 #define SLV_INT_DDR_RX_UNF		BIT(7)
179 #define SLV_INT_DDR_TX_OVF		BIT(6)
180 #define SLV_INT_SDR_RX_UNF		BIT(5)
181 #define SLV_INT_SDR_TX_OVF		BIT(4)
182 #define SLV_INT_DDR_RD_COMP		BIT(3)
183 #define SLV_INT_DDR_WR_COMP		BIT(2)
184 #define SLV_INT_SDR_RD_COMP		BIT(1)
185 #define SLV_INT_SDR_WR_COMP		BIT(0)
186 
187 #define SLV_STATUS0			0x54
188 #define SLV_STATUS0_REG_ADDR(s)		(((s) & GENMASK(23, 16)) >> 16)
189 #define SLV_STATUS0_XFRD_BYTES(s)	((s) & GENMASK(15, 0))
190 
191 #define SLV_STATUS1			0x58
192 #define SLV_STATUS1_AS(s)		(((s) & GENMASK(21, 20)) >> 20)
193 #define SLV_STATUS1_VEN_TM		BIT(19)
194 #define SLV_STATUS1_HJ_DIS		BIT(18)
195 #define SLV_STATUS1_MR_DIS		BIT(17)
196 #define SLV_STATUS1_PROT_ERR		BIT(16)
197 #define SLV_STATUS1_DA(s)		(((s) & GENMASK(15, 9)) >> 9)
198 #define SLV_STATUS1_HAS_DA		BIT(8)
199 #define SLV_STATUS1_DDR_RX_FULL		BIT(7)
200 #define SLV_STATUS1_DDR_TX_FULL		BIT(6)
201 #define SLV_STATUS1_DDR_RX_EMPTY	BIT(5)
202 #define SLV_STATUS1_DDR_TX_EMPTY	BIT(4)
203 #define SLV_STATUS1_SDR_RX_FULL		BIT(3)
204 #define SLV_STATUS1_SDR_TX_FULL		BIT(2)
205 #define SLV_STATUS1_SDR_RX_EMPTY	BIT(1)
206 #define SLV_STATUS1_SDR_TX_EMPTY	BIT(0)
207 
208 #define CMD0_FIFO			0x60
209 #define CMD0_FIFO_IS_DDR		BIT(31)
210 #define CMD0_FIFO_IS_CCC		BIT(30)
211 #define CMD0_FIFO_BCH			BIT(29)
212 #define XMIT_BURST_STATIC_SUBADDR	0
213 #define XMIT_SINGLE_INC_SUBADDR		1
214 #define XMIT_SINGLE_STATIC_SUBADDR	2
215 #define XMIT_BURST_WITHOUT_SUBADDR	3
216 #define CMD0_FIFO_PRIV_XMIT_MODE(m)	((m) << 27)
217 #define CMD0_FIFO_SBCA			BIT(26)
218 #define CMD0_FIFO_RSBC			BIT(25)
219 #define CMD0_FIFO_IS_10B		BIT(24)
220 #define CMD0_FIFO_PL_LEN(l)		((l) << 12)
221 #define CMD0_FIFO_PL_LEN_MAX		4095
222 #define CMD0_FIFO_DEV_ADDR(a)		((a) << 1)
223 #define CMD0_FIFO_RNW			BIT(0)
224 
225 #define CMD1_FIFO			0x64
226 #define CMD1_FIFO_CMDID(id)		((id) << 24)
227 #define CMD1_FIFO_CSRADDR(a)		(a)
228 #define CMD1_FIFO_CCC(id)		(id)
229 
230 #define TX_FIFO				0x68
231 
232 #define IMD_CMD0			0x70
233 #define IMD_CMD0_PL_LEN(l)		((l) << 12)
234 #define IMD_CMD0_DEV_ADDR(a)		((a) << 1)
235 #define IMD_CMD0_RNW			BIT(0)
236 
237 #define IMD_CMD1			0x74
238 #define IMD_CMD1_CCC(id)		(id)
239 
240 #define IMD_DATA			0x78
241 #define RX_FIFO				0x80
242 #define IBI_DATA_FIFO			0x84
243 #define SLV_DDR_TX_FIFO			0x88
244 #define SLV_DDR_RX_FIFO			0x8c
245 
246 #define CMD_IBI_THR_CTRL		0x90
247 #define IBIR_THR(t)			((t) << 24)
248 #define CMDR_THR(t)			((t) << 16)
249 #define IBI_THR(t)			((t) << 8)
250 #define CMD_THR(t)			(t)
251 
252 #define TX_RX_THR_CTRL			0x94
253 #define RX_THR(t)			((t) << 16)
254 #define TX_THR(t)			(t)
255 
256 #define SLV_DDR_TX_RX_THR_CTRL		0x98
257 #define SLV_DDR_RX_THR(t)		((t) << 16)
258 #define SLV_DDR_TX_THR(t)		(t)
259 
260 #define FLUSH_CTRL			0x9c
261 #define FLUSH_IBI_RESP			BIT(23)
262 #define FLUSH_CMD_RESP			BIT(22)
263 #define FLUSH_SLV_DDR_RX_FIFO		BIT(22)
264 #define FLUSH_SLV_DDR_TX_FIFO		BIT(21)
265 #define FLUSH_IMM_FIFO			BIT(20)
266 #define FLUSH_IBI_FIFO			BIT(19)
267 #define FLUSH_RX_FIFO			BIT(18)
268 #define FLUSH_TX_FIFO			BIT(17)
269 #define FLUSH_CMD_FIFO			BIT(16)
270 
271 #define TTO_PRESCL_CTRL0		0xb0
272 #define TTO_PRESCL_CTRL0_DIVB(x)	((x) << 16)
273 #define TTO_PRESCL_CTRL0_DIVA(x)	(x)
274 
275 #define TTO_PRESCL_CTRL1		0xb4
276 #define TTO_PRESCL_CTRL1_DIVB(x)	((x) << 16)
277 #define TTO_PRESCL_CTRL1_DIVA(x)	(x)
278 
279 #define DEVS_CTRL			0xb8
280 #define DEVS_CTRL_DEV_CLR_SHIFT		16
281 #define DEVS_CTRL_DEV_CLR_ALL		GENMASK(31, 16)
282 #define DEVS_CTRL_DEV_CLR(dev)		BIT(16 + (dev))
283 #define DEVS_CTRL_DEV_ACTIVE(dev)	BIT(dev)
284 #define DEVS_CTRL_DEVS_ACTIVE_MASK	GENMASK(15, 0)
285 #define MAX_DEVS			16
286 
287 #define DEV_ID_RR0(d)			(0xc0 + ((d) * 0x10))
288 #define DEV_ID_RR0_LVR_EXT_ADDR		BIT(11)
289 #define DEV_ID_RR0_HDR_CAP		BIT(10)
290 #define DEV_ID_RR0_IS_I3C		BIT(9)
291 #define DEV_ID_RR0_DEV_ADDR_MASK	(GENMASK(6, 0) | GENMASK(15, 13))
292 #define DEV_ID_RR0_SET_DEV_ADDR(a)	(((a) & GENMASK(6, 0)) |	\
293 					 (((a) & GENMASK(9, 7)) << 6))
294 #define DEV_ID_RR0_GET_DEV_ADDR(x)	((((x) >> 1) & GENMASK(6, 0)) |	\
295 					 (((x) >> 6) & GENMASK(9, 7)))
296 
297 #define DEV_ID_RR1(d)			(0xc4 + ((d) * 0x10))
298 #define DEV_ID_RR1_PID_MSB(pid)		(pid)
299 
300 #define DEV_ID_RR2(d)			(0xc8 + ((d) * 0x10))
301 #define DEV_ID_RR2_PID_LSB(pid)		((pid) << 16)
302 #define DEV_ID_RR2_BCR(bcr)		((bcr) << 8)
303 #define DEV_ID_RR2_DCR(dcr)		(dcr)
304 #define DEV_ID_RR2_LVR(lvr)		(lvr)
305 
306 #define SIR_MAP(x)			(0x180 + ((x) * 4))
307 #define SIR_MAP_DEV_REG(d)		SIR_MAP((d) / 2)
308 #define SIR_MAP_DEV_SHIFT(d, fs)	((fs) + (((d) % 2) ? 16 : 0))
309 #define SIR_MAP_DEV_CONF_MASK(d)	(GENMASK(15, 0) << (((d) % 2) ? 16 : 0))
310 #define SIR_MAP_DEV_CONF(d, c)		((c) << (((d) % 2) ? 16 : 0))
311 #define DEV_ROLE_SLAVE			0
312 #define DEV_ROLE_MASTER			1
313 #define SIR_MAP_DEV_ROLE(role)		((role) << 14)
314 #define SIR_MAP_DEV_SLOW		BIT(13)
315 #define SIR_MAP_DEV_PL(l)		((l) << 8)
316 #define SIR_MAP_PL_MAX			GENMASK(4, 0)
317 #define SIR_MAP_DEV_DA(a)		((a) << 1)
318 #define SIR_MAP_DEV_ACK			BIT(0)
319 
320 #define GPIR_WORD(x)			(0x200 + ((x) * 4))
321 #define GPI_REG(val, id)		\
322 	(((val) >> (((id) % 4) * 8)) & GENMASK(7, 0))
323 
324 #define GPOR_WORD(x)			(0x220 + ((x) * 4))
325 #define GPO_REG(val, id)		\
326 	(((val) >> (((id) % 4) * 8)) & GENMASK(7, 0))
327 
328 #define ASF_INT_STATUS			0x300
329 #define ASF_INT_RAW_STATUS		0x304
330 #define ASF_INT_MASK			0x308
331 #define ASF_INT_TEST			0x30c
332 #define ASF_INT_FATAL_SELECT		0x310
333 #define ASF_INTEGRITY_ERR		BIT(6)
334 #define ASF_PROTOCOL_ERR		BIT(5)
335 #define ASF_TRANS_TIMEOUT_ERR		BIT(4)
336 #define ASF_CSR_ERR			BIT(3)
337 #define ASF_DAP_ERR			BIT(2)
338 #define ASF_SRAM_UNCORR_ERR		BIT(1)
339 #define ASF_SRAM_CORR_ERR		BIT(0)
340 
341 #define ASF_SRAM_CORR_FAULT_STATUS	0x320
342 #define ASF_SRAM_UNCORR_FAULT_STATUS	0x324
343 #define ASF_SRAM_CORR_FAULT_INSTANCE(x)	((x) >> 24)
344 #define ASF_SRAM_CORR_FAULT_ADDR(x)	((x) & GENMASK(23, 0))
345 
346 #define ASF_SRAM_FAULT_STATS		0x328
347 #define ASF_SRAM_FAULT_UNCORR_STATS(x)	((x) >> 16)
348 #define ASF_SRAM_FAULT_CORR_STATS(x)	((x) & GENMASK(15, 0))
349 
350 #define ASF_TRANS_TOUT_CTRL		0x330
351 #define ASF_TRANS_TOUT_EN		BIT(31)
352 #define ASF_TRANS_TOUT_VAL(x)	(x)
353 
354 #define ASF_TRANS_TOUT_FAULT_MASK	0x334
355 #define ASF_TRANS_TOUT_FAULT_STATUS	0x338
356 #define ASF_TRANS_TOUT_FAULT_APB	BIT(3)
357 #define ASF_TRANS_TOUT_FAULT_SCL_LOW	BIT(2)
358 #define ASF_TRANS_TOUT_FAULT_SCL_HIGH	BIT(1)
359 #define ASF_TRANS_TOUT_FAULT_FSCL_HIGH	BIT(0)
360 
361 #define ASF_PROTO_FAULT_MASK		0x340
362 #define ASF_PROTO_FAULT_STATUS		0x344
363 #define ASF_PROTO_FAULT_SLVSDR_RD_ABORT	BIT(31)
364 #define ASF_PROTO_FAULT_SLVDDR_FAIL	BIT(30)
365 #define ASF_PROTO_FAULT_S(x)		BIT(16 + (x))
366 #define ASF_PROTO_FAULT_MSTSDR_RD_ABORT	BIT(15)
367 #define ASF_PROTO_FAULT_MSTDDR_FAIL	BIT(14)
368 #define ASF_PROTO_FAULT_M(x)		BIT(x)
369 
370 struct cdns_i3c_master_caps {
371 	u32 cmdfifodepth;
372 	u32 cmdrfifodepth;
373 	u32 txfifodepth;
374 	u32 rxfifodepth;
375 	u32 ibirfifodepth;
376 };
377 
378 struct cdns_i3c_cmd {
379 	u32 cmd0;
380 	u32 cmd1;
381 	u32 tx_len;
382 	const void *tx_buf;
383 	u32 rx_len;
384 	void *rx_buf;
385 	u32 error;
386 };
387 
388 struct cdns_i3c_xfer {
389 	struct list_head node;
390 	struct completion comp;
391 	int ret;
392 	unsigned int ncmds;
393 	struct cdns_i3c_cmd cmds[] __counted_by(ncmds);
394 };
395 
396 struct cdns_i3c_data {
397 	u8 thd_delay_ns;
398 };
399 
400 struct cdns_i3c_master {
401 	struct i3c_master_controller base;
402 	u32 free_rr_slots;
403 	unsigned int maxdevs;
404 	struct {
405 		unsigned int num_slots;
406 		struct i3c_dev_desc **slots;
407 		spinlock_t lock;
408 	} ibi;
409 	struct {
410 		struct list_head list;
411 		struct cdns_i3c_xfer *cur;
412 		spinlock_t lock;
413 	} xferqueue;
414 	void __iomem *regs;
415 	struct clk *sysclk;
416 	struct cdns_i3c_master_caps caps;
417 	unsigned long i3c_scl_lim;
418 	const struct cdns_i3c_data *devdata;
419 };
420 
421 static inline struct cdns_i3c_master *
422 to_cdns_i3c_master(struct i3c_master_controller *master)
423 {
424 	return container_of(master, struct cdns_i3c_master, base);
425 }
426 
427 static void cdns_i3c_master_wr_to_tx_fifo(struct cdns_i3c_master *master,
428 					  const u8 *bytes, int nbytes)
429 {
430 	i3c_writel_fifo(master->regs + TX_FIFO, bytes, nbytes);
431 }
432 
433 static void cdns_i3c_master_rd_from_rx_fifo(struct cdns_i3c_master *master,
434 					    u8 *bytes, int nbytes)
435 {
436 	i3c_readl_fifo(master->regs + RX_FIFO, bytes, nbytes);
437 }
438 
439 static bool cdns_i3c_master_supports_ccc_cmd(struct i3c_master_controller *m,
440 					     const struct i3c_ccc_cmd *cmd)
441 {
442 	if (cmd->ndests > 1)
443 		return false;
444 
445 	switch (cmd->id) {
446 	case I3C_CCC_ENEC(true):
447 	case I3C_CCC_ENEC(false):
448 	case I3C_CCC_DISEC(true):
449 	case I3C_CCC_DISEC(false):
450 	case I3C_CCC_ENTAS(0, true):
451 	case I3C_CCC_ENTAS(0, false):
452 	case I3C_CCC_RSTDAA(true):
453 	case I3C_CCC_RSTDAA(false):
454 	case I3C_CCC_ENTDAA:
455 	case I3C_CCC_SETMWL(true):
456 	case I3C_CCC_SETMWL(false):
457 	case I3C_CCC_SETMRL(true):
458 	case I3C_CCC_SETMRL(false):
459 	case I3C_CCC_DEFSLVS:
460 	case I3C_CCC_ENTHDR(0):
461 	case I3C_CCC_SETDASA:
462 	case I3C_CCC_SETNEWDA:
463 	case I3C_CCC_GETMWL:
464 	case I3C_CCC_GETMRL:
465 	case I3C_CCC_GETPID:
466 	case I3C_CCC_GETBCR:
467 	case I3C_CCC_GETDCR:
468 	case I3C_CCC_GETSTATUS:
469 	case I3C_CCC_GETACCMST:
470 	case I3C_CCC_GETMXDS:
471 	case I3C_CCC_GETHDRCAP:
472 		return true;
473 	default:
474 		break;
475 	}
476 
477 	return false;
478 }
479 
480 static int cdns_i3c_master_disable(struct cdns_i3c_master *master)
481 {
482 	u32 status;
483 
484 	writel(readl(master->regs + CTRL) & ~CTRL_DEV_EN, master->regs + CTRL);
485 
486 	return readl_poll_timeout(master->regs + MST_STATUS0, status,
487 				  status & MST_STATUS0_IDLE, 10, 1000000);
488 }
489 
490 static void cdns_i3c_master_enable(struct cdns_i3c_master *master)
491 {
492 	writel(readl(master->regs + CTRL) | CTRL_DEV_EN, master->regs + CTRL);
493 }
494 
495 static struct cdns_i3c_xfer *
496 cdns_i3c_master_alloc_xfer(struct cdns_i3c_master *master, unsigned int ncmds)
497 {
498 	struct cdns_i3c_xfer *xfer;
499 
500 	xfer = kzalloc_flex(*xfer, cmds, ncmds);
501 	if (!xfer)
502 		return NULL;
503 
504 	INIT_LIST_HEAD(&xfer->node);
505 	xfer->ncmds = ncmds;
506 	xfer->ret = -ETIMEDOUT;
507 
508 	return xfer;
509 }
510 
511 static void cdns_i3c_master_free_xfer(struct cdns_i3c_xfer *xfer)
512 {
513 	kfree(xfer);
514 }
515 
516 static void cdns_i3c_master_start_xfer_locked(struct cdns_i3c_master *master)
517 {
518 	struct cdns_i3c_xfer *xfer = master->xferqueue.cur;
519 	unsigned int i;
520 
521 	if (!xfer)
522 		return;
523 
524 	writel(MST_INT_CMDD_EMP, master->regs + MST_ICR);
525 	for (i = 0; i < xfer->ncmds; i++) {
526 		struct cdns_i3c_cmd *cmd = &xfer->cmds[i];
527 
528 		cdns_i3c_master_wr_to_tx_fifo(master, cmd->tx_buf,
529 					      cmd->tx_len);
530 	}
531 
532 	for (i = 0; i < xfer->ncmds; i++) {
533 		struct cdns_i3c_cmd *cmd = &xfer->cmds[i];
534 
535 		writel(cmd->cmd1 | CMD1_FIFO_CMDID(i),
536 		       master->regs + CMD1_FIFO);
537 		writel(cmd->cmd0, master->regs + CMD0_FIFO);
538 	}
539 
540 	writel(readl(master->regs + CTRL) | CTRL_MCS,
541 	       master->regs + CTRL);
542 	writel(MST_INT_CMDD_EMP, master->regs + MST_IER);
543 }
544 
545 static void cdns_i3c_master_end_xfer_locked(struct cdns_i3c_master *master,
546 					    u32 isr)
547 {
548 	struct cdns_i3c_xfer *xfer = master->xferqueue.cur;
549 	int i, ret = 0;
550 	u32 status0;
551 
552 	if (!xfer)
553 		return;
554 
555 	if (!(isr & MST_INT_CMDD_EMP))
556 		return;
557 
558 	writel(MST_INT_CMDD_EMP, master->regs + MST_IDR);
559 
560 	for (status0 = readl(master->regs + MST_STATUS0);
561 	     !(status0 & MST_STATUS0_CMDR_EMP);
562 	     status0 = readl(master->regs + MST_STATUS0)) {
563 		struct cdns_i3c_cmd *cmd;
564 		u32 cmdr, rx_len, id;
565 
566 		cmdr = readl(master->regs + CMDR);
567 		id = CMDR_CMDID(cmdr);
568 		if (id == CMDR_CMDID_HJACK_DISEC ||
569 		    id == CMDR_CMDID_HJACK_ENTDAA ||
570 		    WARN_ON(id >= xfer->ncmds))
571 			continue;
572 
573 		cmd = &xfer->cmds[CMDR_CMDID(cmdr)];
574 		rx_len = min_t(u32, CMDR_XFER_BYTES(cmdr), cmd->rx_len);
575 		cdns_i3c_master_rd_from_rx_fifo(master, cmd->rx_buf, rx_len);
576 		cmd->rx_len = rx_len;
577 		cmd->error = CMDR_ERROR(cmdr);
578 	}
579 
580 	for (i = 0; i < xfer->ncmds; i++) {
581 		switch (xfer->cmds[i].error) {
582 		case CMDR_NO_ERROR:
583 			break;
584 
585 		case CMDR_DDR_PREAMBLE_ERROR:
586 		case CMDR_DDR_PARITY_ERROR:
587 		case CMDR_M0_ERROR:
588 		case CMDR_M1_ERROR:
589 		case CMDR_M2_ERROR:
590 		case CMDR_MST_ABORT:
591 		case CMDR_NACK_RESP:
592 		case CMDR_DDR_DROPPED:
593 			ret = -EIO;
594 			break;
595 
596 		case CMDR_DDR_RX_FIFO_OVF:
597 		case CMDR_DDR_TX_FIFO_UNF:
598 			ret = -ENOSPC;
599 			break;
600 
601 		case CMDR_INVALID_DA:
602 		default:
603 			ret = -EINVAL;
604 			break;
605 		}
606 	}
607 
608 	xfer->ret = ret;
609 	complete(&xfer->comp);
610 
611 	xfer = list_first_entry_or_null(&master->xferqueue.list,
612 					struct cdns_i3c_xfer, node);
613 	if (xfer)
614 		list_del_init(&xfer->node);
615 
616 	master->xferqueue.cur = xfer;
617 	cdns_i3c_master_start_xfer_locked(master);
618 }
619 
620 static void cdns_i3c_master_queue_xfer(struct cdns_i3c_master *master,
621 				       struct cdns_i3c_xfer *xfer)
622 {
623 	unsigned long flags;
624 
625 	init_completion(&xfer->comp);
626 	spin_lock_irqsave(&master->xferqueue.lock, flags);
627 	if (master->xferqueue.cur) {
628 		list_add_tail(&xfer->node, &master->xferqueue.list);
629 	} else {
630 		master->xferqueue.cur = xfer;
631 		cdns_i3c_master_start_xfer_locked(master);
632 	}
633 	spin_unlock_irqrestore(&master->xferqueue.lock, flags);
634 }
635 
636 static void cdns_i3c_master_unqueue_xfer(struct cdns_i3c_master *master,
637 					 struct cdns_i3c_xfer *xfer)
638 {
639 	unsigned long flags;
640 
641 	spin_lock_irqsave(&master->xferqueue.lock, flags);
642 	if (master->xferqueue.cur == xfer) {
643 		u32 status;
644 
645 		writel(readl(master->regs + CTRL) & ~CTRL_DEV_EN,
646 		       master->regs + CTRL);
647 		readl_poll_timeout_atomic(master->regs + MST_STATUS0, status,
648 					  status & MST_STATUS0_IDLE, 10,
649 					  1000000);
650 		master->xferqueue.cur = NULL;
651 		writel(FLUSH_RX_FIFO | FLUSH_TX_FIFO | FLUSH_CMD_FIFO |
652 		       FLUSH_CMD_RESP,
653 		       master->regs + FLUSH_CTRL);
654 		writel(MST_INT_CMDD_EMP, master->regs + MST_IDR);
655 		writel(readl(master->regs + CTRL) | CTRL_DEV_EN,
656 		       master->regs + CTRL);
657 	} else {
658 		list_del_init(&xfer->node);
659 	}
660 	spin_unlock_irqrestore(&master->xferqueue.lock, flags);
661 }
662 
663 static enum i3c_error_code cdns_i3c_cmd_get_err(struct cdns_i3c_cmd *cmd)
664 {
665 	switch (cmd->error) {
666 	case CMDR_M0_ERROR:
667 		return I3C_ERROR_M0;
668 
669 	case CMDR_M1_ERROR:
670 		return I3C_ERROR_M1;
671 
672 	case CMDR_M2_ERROR:
673 	case CMDR_NACK_RESP:
674 		return I3C_ERROR_M2;
675 
676 	default:
677 		break;
678 	}
679 
680 	return I3C_ERROR_UNKNOWN;
681 }
682 
683 static int cdns_i3c_master_send_ccc_cmd(struct i3c_master_controller *m,
684 					struct i3c_ccc_cmd *cmd)
685 {
686 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
687 	struct cdns_i3c_xfer *xfer;
688 	struct cdns_i3c_cmd *ccmd;
689 	int ret;
690 
691 	xfer = cdns_i3c_master_alloc_xfer(master, 1);
692 	if (!xfer)
693 		return -ENOMEM;
694 
695 	ccmd = xfer->cmds;
696 	ccmd->cmd1 = CMD1_FIFO_CCC(cmd->id);
697 	ccmd->cmd0 = CMD0_FIFO_IS_CCC |
698 		     CMD0_FIFO_PL_LEN(cmd->dests[0].payload.len);
699 
700 	if (cmd->id & I3C_CCC_DIRECT)
701 		ccmd->cmd0 |= CMD0_FIFO_DEV_ADDR(cmd->dests[0].addr);
702 
703 	if (cmd->rnw) {
704 		ccmd->cmd0 |= CMD0_FIFO_RNW;
705 		ccmd->rx_buf = cmd->dests[0].payload.data;
706 		ccmd->rx_len = cmd->dests[0].payload.len;
707 	} else {
708 		ccmd->tx_buf = cmd->dests[0].payload.data;
709 		ccmd->tx_len = cmd->dests[0].payload.len;
710 	}
711 
712 	cdns_i3c_master_queue_xfer(master, xfer);
713 	if (!wait_for_completion_timeout(&xfer->comp, msecs_to_jiffies(1000)))
714 		cdns_i3c_master_unqueue_xfer(master, xfer);
715 
716 	ret = xfer->ret;
717 	cmd->err = cdns_i3c_cmd_get_err(&xfer->cmds[0]);
718 	if (!ret && cmd->rnw)
719 		cmd->dests[0].payload.actual_len = ccmd->rx_len;
720 	cdns_i3c_master_free_xfer(xfer);
721 
722 	return ret;
723 }
724 
725 static int cdns_i3c_master_i3c_xfers(struct i3c_dev_desc *dev,
726 				     struct i3c_xfer *xfers,
727 				     int nxfers, enum i3c_xfer_mode mode)
728 {
729 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
730 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
731 	int txslots = 0, rxslots = 0, i, ret;
732 	struct cdns_i3c_xfer *cdns_xfer;
733 
734 	for (i = 0; i < nxfers; i++) {
735 		if (xfers[i].len > CMD0_FIFO_PL_LEN_MAX)
736 			return -EOPNOTSUPP;
737 	}
738 
739 	if (!nxfers)
740 		return 0;
741 
742 	if (nxfers > master->caps.cmdfifodepth ||
743 	    nxfers > master->caps.cmdrfifodepth)
744 		return -EOPNOTSUPP;
745 
746 	/*
747 	 * First make sure that all transactions (block of transfers separated
748 	 * by a STOP marker) fit in the FIFOs.
749 	 */
750 	for (i = 0; i < nxfers; i++) {
751 		if (xfers[i].rnw)
752 			rxslots += DIV_ROUND_UP(xfers[i].len, 4);
753 		else
754 			txslots += DIV_ROUND_UP(xfers[i].len, 4);
755 	}
756 
757 	if (rxslots > master->caps.rxfifodepth ||
758 	    txslots > master->caps.txfifodepth)
759 		return -EOPNOTSUPP;
760 
761 	cdns_xfer = cdns_i3c_master_alloc_xfer(master, nxfers);
762 	if (!cdns_xfer)
763 		return -ENOMEM;
764 
765 	for (i = 0; i < nxfers; i++) {
766 		struct cdns_i3c_cmd *ccmd = &cdns_xfer->cmds[i];
767 		u32 pl_len = xfers[i].len;
768 
769 		ccmd->cmd0 = CMD0_FIFO_DEV_ADDR(dev->info.dyn_addr) |
770 			CMD0_FIFO_PRIV_XMIT_MODE(XMIT_BURST_WITHOUT_SUBADDR);
771 
772 		if (xfers[i].rnw) {
773 			ccmd->cmd0 |= CMD0_FIFO_RNW;
774 			ccmd->rx_buf = xfers[i].data.in;
775 			ccmd->rx_len = xfers[i].len;
776 			pl_len++;
777 		} else {
778 			ccmd->tx_buf = xfers[i].data.out;
779 			ccmd->tx_len = xfers[i].len;
780 		}
781 
782 		ccmd->cmd0 |= CMD0_FIFO_PL_LEN(pl_len);
783 
784 		if (i < nxfers - 1)
785 			ccmd->cmd0 |= CMD0_FIFO_RSBC;
786 
787 		if (!i)
788 			ccmd->cmd0 |= CMD0_FIFO_BCH;
789 	}
790 
791 	cdns_i3c_master_queue_xfer(master, cdns_xfer);
792 	if (!wait_for_completion_timeout(&cdns_xfer->comp,
793 					 msecs_to_jiffies(1000)))
794 		cdns_i3c_master_unqueue_xfer(master, cdns_xfer);
795 
796 	ret = cdns_xfer->ret;
797 
798 	for (i = 0; i < nxfers; i++)
799 		xfers[i].err = cdns_i3c_cmd_get_err(&cdns_xfer->cmds[i]);
800 
801 	cdns_i3c_master_free_xfer(cdns_xfer);
802 
803 	return ret;
804 }
805 
806 static int cdns_i3c_master_i2c_xfers(struct i2c_dev_desc *dev,
807 				     struct i2c_msg *xfers, int nxfers)
808 {
809 	struct i3c_master_controller *m = i2c_dev_get_master(dev);
810 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
811 	unsigned int nrxwords = 0, ntxwords = 0;
812 	struct cdns_i3c_xfer *xfer;
813 	int i, ret = 0;
814 
815 	if (nxfers > master->caps.cmdfifodepth)
816 		return -EOPNOTSUPP;
817 
818 	for (i = 0; i < nxfers; i++) {
819 		if (xfers[i].len > CMD0_FIFO_PL_LEN_MAX)
820 			return -EOPNOTSUPP;
821 
822 		if (xfers[i].flags & I2C_M_RD)
823 			nrxwords += DIV_ROUND_UP(xfers[i].len, 4);
824 		else
825 			ntxwords += DIV_ROUND_UP(xfers[i].len, 4);
826 	}
827 
828 	if (ntxwords > master->caps.txfifodepth ||
829 	    nrxwords > master->caps.rxfifodepth)
830 		return -EOPNOTSUPP;
831 
832 	xfer = cdns_i3c_master_alloc_xfer(master, nxfers);
833 	if (!xfer)
834 		return -ENOMEM;
835 
836 	for (i = 0; i < nxfers; i++) {
837 		struct cdns_i3c_cmd *ccmd = &xfer->cmds[i];
838 
839 		ccmd->cmd0 = CMD0_FIFO_DEV_ADDR(xfers[i].addr) |
840 			CMD0_FIFO_PL_LEN(xfers[i].len) |
841 			CMD0_FIFO_PRIV_XMIT_MODE(XMIT_BURST_WITHOUT_SUBADDR);
842 
843 		if (xfers[i].flags & I2C_M_TEN)
844 			ccmd->cmd0 |= CMD0_FIFO_IS_10B;
845 
846 		if (xfers[i].flags & I2C_M_RD) {
847 			ccmd->cmd0 |= CMD0_FIFO_RNW;
848 			ccmd->rx_buf = xfers[i].buf;
849 			ccmd->rx_len = xfers[i].len;
850 		} else {
851 			ccmd->tx_buf = xfers[i].buf;
852 			ccmd->tx_len = xfers[i].len;
853 		}
854 	}
855 
856 	cdns_i3c_master_queue_xfer(master, xfer);
857 	if (!wait_for_completion_timeout(&xfer->comp, m->i2c.timeout))
858 		cdns_i3c_master_unqueue_xfer(master, xfer);
859 
860 	ret = xfer->ret;
861 	cdns_i3c_master_free_xfer(xfer);
862 
863 	return ret;
864 }
865 
866 struct cdns_i3c_i2c_dev_data {
867 	u16 id;
868 	s16 ibi;
869 	struct i3c_generic_ibi_pool *ibi_pool;
870 };
871 
872 static u32 prepare_rr0_dev_address(u32 addr)
873 {
874 	u32 ret = (addr << 1) & 0xff;
875 
876 	/* RR0[7:1] = addr[6:0] */
877 	ret |= (addr & GENMASK(6, 0)) << 1;
878 
879 	/* RR0[15:13] = addr[9:7] */
880 	ret |= (addr & GENMASK(9, 7)) << 6;
881 
882 	/* RR0[0] = ~XOR(addr[6:0]) */
883 	ret |= parity8(addr & 0x7f) ? 0 : BIT(0);
884 
885 	return ret;
886 }
887 
888 static void cdns_i3c_master_upd_i3c_addr(struct i3c_dev_desc *dev)
889 {
890 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
891 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
892 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
893 	u32 rr;
894 
895 	rr = prepare_rr0_dev_address(dev->info.dyn_addr ?
896 				     dev->info.dyn_addr :
897 				     dev->info.static_addr);
898 	writel(DEV_ID_RR0_IS_I3C | rr, master->regs + DEV_ID_RR0(data->id));
899 }
900 
901 static int cdns_i3c_master_get_rr_slot(struct cdns_i3c_master *master,
902 				       u8 dyn_addr)
903 {
904 	unsigned long activedevs;
905 	u32 rr;
906 	int i;
907 
908 	if (!dyn_addr) {
909 		if (!master->free_rr_slots)
910 			return -ENOSPC;
911 
912 		return ffs(master->free_rr_slots) - 1;
913 	}
914 
915 	activedevs = readl(master->regs + DEVS_CTRL) & DEVS_CTRL_DEVS_ACTIVE_MASK;
916 	activedevs &= ~BIT(0);
917 
918 	for_each_set_bit(i, &activedevs, master->maxdevs + 1) {
919 		rr = readl(master->regs + DEV_ID_RR0(i));
920 		if (!(rr & DEV_ID_RR0_IS_I3C) ||
921 		    DEV_ID_RR0_GET_DEV_ADDR(rr) != dyn_addr)
922 			continue;
923 
924 		return i;
925 	}
926 
927 	return -EINVAL;
928 }
929 
930 static int cdns_i3c_master_reattach_i3c_dev(struct i3c_dev_desc *dev,
931 					    u8 old_dyn_addr)
932 {
933 	cdns_i3c_master_upd_i3c_addr(dev);
934 
935 	return 0;
936 }
937 
938 static int cdns_i3c_master_attach_i3c_dev(struct i3c_dev_desc *dev)
939 {
940 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
941 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
942 	struct cdns_i3c_i2c_dev_data *data;
943 	int slot;
944 
945 	data = kzalloc_obj(*data);
946 	if (!data)
947 		return -ENOMEM;
948 
949 	slot = cdns_i3c_master_get_rr_slot(master, dev->info.dyn_addr);
950 	if (slot < 0) {
951 		kfree(data);
952 		return slot;
953 	}
954 
955 	data->ibi = -1;
956 	data->id = slot;
957 	i3c_dev_set_master_data(dev, data);
958 	master->free_rr_slots &= ~BIT(slot);
959 
960 	if (!dev->info.dyn_addr) {
961 		cdns_i3c_master_upd_i3c_addr(dev);
962 		writel(readl(master->regs + DEVS_CTRL) |
963 		       DEVS_CTRL_DEV_ACTIVE(data->id),
964 		       master->regs + DEVS_CTRL);
965 	}
966 
967 	return 0;
968 }
969 
970 static void cdns_i3c_master_detach_i3c_dev(struct i3c_dev_desc *dev)
971 {
972 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
973 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
974 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
975 
976 	writel(readl(master->regs + DEVS_CTRL) |
977 	       DEVS_CTRL_DEV_CLR(data->id),
978 	       master->regs + DEVS_CTRL);
979 
980 	i3c_dev_set_master_data(dev, NULL);
981 	master->free_rr_slots |= BIT(data->id);
982 	kfree(data);
983 }
984 
985 static int cdns_i3c_master_attach_i2c_dev(struct i2c_dev_desc *dev)
986 {
987 	struct i3c_master_controller *m = i2c_dev_get_master(dev);
988 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
989 	struct cdns_i3c_i2c_dev_data *data;
990 	int slot;
991 
992 	slot = cdns_i3c_master_get_rr_slot(master, 0);
993 	if (slot < 0)
994 		return slot;
995 
996 	data = kzalloc_obj(*data);
997 	if (!data)
998 		return -ENOMEM;
999 
1000 	data->id = slot;
1001 	master->free_rr_slots &= ~BIT(slot);
1002 	i2c_dev_set_master_data(dev, data);
1003 
1004 	writel(prepare_rr0_dev_address(dev->addr),
1005 	       master->regs + DEV_ID_RR0(data->id));
1006 	writel(dev->lvr, master->regs + DEV_ID_RR2(data->id));
1007 	writel(readl(master->regs + DEVS_CTRL) |
1008 	       DEVS_CTRL_DEV_ACTIVE(data->id),
1009 	       master->regs + DEVS_CTRL);
1010 
1011 	return 0;
1012 }
1013 
1014 static void cdns_i3c_master_detach_i2c_dev(struct i2c_dev_desc *dev)
1015 {
1016 	struct i3c_master_controller *m = i2c_dev_get_master(dev);
1017 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1018 	struct cdns_i3c_i2c_dev_data *data = i2c_dev_get_master_data(dev);
1019 
1020 	writel(readl(master->regs + DEVS_CTRL) |
1021 	       DEVS_CTRL_DEV_CLR(data->id),
1022 	       master->regs + DEVS_CTRL);
1023 	master->free_rr_slots |= BIT(data->id);
1024 
1025 	i2c_dev_set_master_data(dev, NULL);
1026 	kfree(data);
1027 }
1028 
1029 static void cdns_i3c_master_bus_cleanup(struct i3c_master_controller *m)
1030 {
1031 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1032 
1033 	cdns_i3c_master_disable(master);
1034 }
1035 
1036 static void cdns_i3c_master_dev_rr_to_info(struct cdns_i3c_master *master,
1037 					   unsigned int slot,
1038 					   struct i3c_device_info *info)
1039 {
1040 	u32 rr;
1041 
1042 	memset(info, 0, sizeof(*info));
1043 	rr = readl(master->regs + DEV_ID_RR0(slot));
1044 	info->dyn_addr = DEV_ID_RR0_GET_DEV_ADDR(rr);
1045 	rr = readl(master->regs + DEV_ID_RR2(slot));
1046 	info->dcr = rr;
1047 	info->bcr = rr >> 8;
1048 	info->pid = rr >> 16;
1049 	info->pid |= (u64)readl(master->regs + DEV_ID_RR1(slot)) << 16;
1050 }
1051 
1052 static void cdns_i3c_master_upd_i3c_scl_lim(struct cdns_i3c_master *master)
1053 {
1054 	struct i3c_master_controller *m = &master->base;
1055 	unsigned long i3c_lim_period, pres_step, ncycles;
1056 	struct i3c_bus *bus = i3c_master_get_bus(m);
1057 	unsigned long new_i3c_scl_lim = 0;
1058 	struct i3c_dev_desc *dev;
1059 	u32 prescl1, ctrl;
1060 
1061 	i3c_bus_for_each_i3cdev(bus, dev) {
1062 		unsigned long max_fscl;
1063 
1064 		max_fscl = max(I3C_CCC_MAX_SDR_FSCL(dev->info.max_read_ds),
1065 			       I3C_CCC_MAX_SDR_FSCL(dev->info.max_write_ds));
1066 		switch (max_fscl) {
1067 		case I3C_SDR1_FSCL_8MHZ:
1068 			max_fscl = 8000000;
1069 			break;
1070 		case I3C_SDR2_FSCL_6MHZ:
1071 			max_fscl = 6000000;
1072 			break;
1073 		case I3C_SDR3_FSCL_4MHZ:
1074 			max_fscl = 4000000;
1075 			break;
1076 		case I3C_SDR4_FSCL_2MHZ:
1077 			max_fscl = 2000000;
1078 			break;
1079 		case I3C_SDR0_FSCL_MAX:
1080 		default:
1081 			max_fscl = 0;
1082 			break;
1083 		}
1084 
1085 		if (max_fscl &&
1086 		    (new_i3c_scl_lim > max_fscl || !new_i3c_scl_lim))
1087 			new_i3c_scl_lim = max_fscl;
1088 	}
1089 
1090 	/* Only update PRESCL_CTRL1 if the I3C SCL limitation has changed. */
1091 	if (new_i3c_scl_lim == master->i3c_scl_lim)
1092 		return;
1093 	master->i3c_scl_lim = new_i3c_scl_lim;
1094 	if (!new_i3c_scl_lim)
1095 		return;
1096 	pres_step = 1000000000UL / (bus->scl_rate.i3c * 4);
1097 
1098 	/* Configure PP_LOW to meet I3C slave limitations. */
1099 	prescl1 = readl(master->regs + PRESCL_CTRL1) &
1100 		  ~PRESCL_CTRL1_PP_LOW_MASK;
1101 	ctrl = readl(master->regs + CTRL);
1102 
1103 	i3c_lim_period = DIV_ROUND_UP(1000000000, master->i3c_scl_lim);
1104 	ncycles = DIV_ROUND_UP(i3c_lim_period, pres_step);
1105 	if (ncycles < 4)
1106 		ncycles = 0;
1107 	else
1108 		ncycles -= 4;
1109 
1110 	prescl1 |= PRESCL_CTRL1_PP_LOW(ncycles);
1111 
1112 	/* Disable I3C master before updating PRESCL_CTRL1. */
1113 	if (ctrl & CTRL_DEV_EN)
1114 		cdns_i3c_master_disable(master);
1115 
1116 	writel(prescl1, master->regs + PRESCL_CTRL1);
1117 
1118 	if (ctrl & CTRL_DEV_EN)
1119 		cdns_i3c_master_enable(master);
1120 }
1121 
1122 static int cdns_i3c_master_do_daa(struct i3c_master_controller *m)
1123 {
1124 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1125 	unsigned long olddevs, newdevs;
1126 	int ret, slot;
1127 	u8 addrs[MAX_DEVS] = { };
1128 	u8 last_addr = 0;
1129 
1130 	olddevs = readl(master->regs + DEVS_CTRL) & DEVS_CTRL_DEVS_ACTIVE_MASK;
1131 	olddevs |= BIT(0);
1132 
1133 	/* Prepare RR slots before launching DAA. */
1134 	for_each_clear_bit(slot, &olddevs, master->maxdevs + 1) {
1135 		ret = i3c_master_get_free_addr(m, last_addr + 1);
1136 		if (ret < 0)
1137 			return -ENOSPC;
1138 
1139 		last_addr = ret;
1140 		addrs[slot] = last_addr;
1141 		writel(prepare_rr0_dev_address(last_addr) | DEV_ID_RR0_IS_I3C,
1142 		       master->regs + DEV_ID_RR0(slot));
1143 		writel(0, master->regs + DEV_ID_RR1(slot));
1144 		writel(0, master->regs + DEV_ID_RR2(slot));
1145 	}
1146 
1147 	ret = i3c_master_entdaa_locked(&master->base);
1148 	if (ret)
1149 		return ret;
1150 
1151 	newdevs = readl(master->regs + DEVS_CTRL) & DEVS_CTRL_DEVS_ACTIVE_MASK;
1152 	newdevs &= ~olddevs;
1153 
1154 	/*
1155 	 * Clear all retaining registers filled during DAA. We already
1156 	 * have the addressed assigned to them in the addrs array.
1157 	 */
1158 	for_each_set_bit(slot, &newdevs, master->maxdevs + 1)
1159 		i3c_master_add_i3c_dev_locked(m, addrs[slot]);
1160 
1161 	/*
1162 	 * Clear slots that ended up not being used. Can be caused by I3C
1163 	 * device creation failure or when the I3C device was already known
1164 	 * by the system but with a different address (in this case the device
1165 	 * already has a slot and does not need a new one).
1166 	 */
1167 	writel(readl(master->regs + DEVS_CTRL) |
1168 	       master->free_rr_slots << DEVS_CTRL_DEV_CLR_SHIFT,
1169 	       master->regs + DEVS_CTRL);
1170 
1171 	i3c_master_defslvs_locked(&master->base);
1172 
1173 	cdns_i3c_master_upd_i3c_scl_lim(master);
1174 
1175 	/* Unmask Hot-Join and Mastership request interrupts. */
1176 	i3c_master_enec_locked(m, I3C_BROADCAST_ADDR,
1177 			       I3C_CCC_EVENT_HJ | I3C_CCC_EVENT_MR);
1178 
1179 	return 0;
1180 }
1181 
1182 static u8 cdns_i3c_master_calculate_thd_delay(struct cdns_i3c_master *master)
1183 {
1184 	unsigned long sysclk_rate = clk_get_rate(master->sysclk);
1185 	u8 thd_delay = DIV_ROUND_UP(master->devdata->thd_delay_ns,
1186 				    (NSEC_PER_SEC / sysclk_rate));
1187 
1188 	/* Every value greater than 3 is not valid. */
1189 	if (thd_delay > THD_DELAY_MAX)
1190 		thd_delay = THD_DELAY_MAX;
1191 
1192 	/* CTLR_THD_DEL value is encoded. */
1193 	return (THD_DELAY_MAX - thd_delay);
1194 }
1195 
1196 static int cdns_i3c_master_bus_init(struct i3c_master_controller *m)
1197 {
1198 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1199 	unsigned long pres_step, sysclk_rate, max_i2cfreq;
1200 	struct i3c_bus *bus = i3c_master_get_bus(m);
1201 	u32 ctrl, prescl0, prescl1, pres, low;
1202 	struct i3c_device_info info = { };
1203 	int ret, ncycles;
1204 
1205 	switch (bus->mode) {
1206 	case I3C_BUS_MODE_PURE:
1207 		ctrl = CTRL_PURE_BUS_MODE;
1208 		break;
1209 
1210 	case I3C_BUS_MODE_MIXED_FAST:
1211 		ctrl = CTRL_MIXED_FAST_BUS_MODE;
1212 		break;
1213 
1214 	case I3C_BUS_MODE_MIXED_SLOW:
1215 		ctrl = CTRL_MIXED_SLOW_BUS_MODE;
1216 		break;
1217 
1218 	default:
1219 		return -EINVAL;
1220 	}
1221 
1222 	sysclk_rate = clk_get_rate(master->sysclk);
1223 	if (!sysclk_rate)
1224 		return -EINVAL;
1225 
1226 	pres = DIV_ROUND_UP(sysclk_rate, (bus->scl_rate.i3c * 4)) - 1;
1227 	if (pres > PRESCL_CTRL0_I3C_MAX)
1228 		return -ERANGE;
1229 
1230 	bus->scl_rate.i3c = sysclk_rate / ((pres + 1) * 4);
1231 
1232 	prescl0 = PRESCL_CTRL0_I3C(pres);
1233 
1234 	low = ((I3C_BUS_TLOW_OD_MIN_NS * sysclk_rate) / (pres + 1)) - 2;
1235 	prescl1 = PRESCL_CTRL1_OD_LOW(low);
1236 
1237 	max_i2cfreq = bus->scl_rate.i2c;
1238 
1239 	pres = (sysclk_rate / (max_i2cfreq * 5)) - 1;
1240 	if (pres > PRESCL_CTRL0_I2C_MAX)
1241 		return -ERANGE;
1242 
1243 	bus->scl_rate.i2c = sysclk_rate / ((pres + 1) * 5);
1244 
1245 	prescl0 |= PRESCL_CTRL0_I2C(pres);
1246 	writel(prescl0, master->regs + PRESCL_CTRL0);
1247 
1248 	/* Calculate OD and PP low. */
1249 	pres_step = 1000000000 / (bus->scl_rate.i3c * 4);
1250 	ncycles = DIV_ROUND_UP(I3C_BUS_TLOW_OD_MIN_NS, pres_step) - 2;
1251 	if (ncycles < 0)
1252 		ncycles = 0;
1253 	prescl1 = PRESCL_CTRL1_OD_LOW(ncycles);
1254 	writel(prescl1, master->regs + PRESCL_CTRL1);
1255 
1256 	/* Get an address for the master. */
1257 	ret = i3c_master_get_free_addr(m, 0);
1258 	if (ret < 0)
1259 		return ret;
1260 
1261 	writel(prepare_rr0_dev_address(ret) | DEV_ID_RR0_IS_I3C,
1262 	       master->regs + DEV_ID_RR0(0));
1263 
1264 	cdns_i3c_master_dev_rr_to_info(master, 0, &info);
1265 	if (info.bcr & I3C_BCR_HDR_CAP)
1266 		info.hdr_cap = I3C_CCC_HDR_MODE(I3C_HDR_DDR);
1267 
1268 	ret = i3c_master_set_info(&master->base, &info);
1269 	if (ret)
1270 		return ret;
1271 
1272 	/*
1273 	 * Enable Hot-Join, and, when a Hot-Join request happens, disable all
1274 	 * events coming from this device.
1275 	 *
1276 	 * We will issue ENTDAA afterwards from the threaded IRQ handler.
1277 	 */
1278 	ctrl |= CTRL_HJ_ACK | CTRL_HJ_DISEC | CTRL_HALT_EN | CTRL_MCS_EN;
1279 
1280 	/*
1281 	 * Configure data hold delay based on device-specific data.
1282 	 *
1283 	 * MIPI I3C Specification 1.0 defines non-zero minimal tHD_PP timing on
1284 	 * master output. This setting allows to meet this timing on master's
1285 	 * SoC outputs, regardless of PCB balancing.
1286 	 */
1287 	ctrl |= CTRL_THD_DELAY(cdns_i3c_master_calculate_thd_delay(master));
1288 	writel(ctrl, master->regs + CTRL);
1289 
1290 	cdns_i3c_master_enable(master);
1291 
1292 	return 0;
1293 }
1294 
1295 static void cdns_i3c_master_handle_ibi(struct cdns_i3c_master *master,
1296 				       u32 ibir)
1297 {
1298 	struct cdns_i3c_i2c_dev_data *data;
1299 	bool data_consumed = false;
1300 	struct i3c_ibi_slot *slot;
1301 	u32 id = IBIR_SLVID(ibir);
1302 	struct i3c_dev_desc *dev;
1303 	size_t nbytes;
1304 	u8 *buf;
1305 
1306 	/*
1307 	 * FIXME: maybe we should report the FIFO OVF errors to the upper
1308 	 * layer.
1309 	 */
1310 	if (id >= master->ibi.num_slots || (ibir & IBIR_ERROR))
1311 		goto out;
1312 
1313 	dev = master->ibi.slots[id];
1314 	spin_lock(&master->ibi.lock);
1315 
1316 	data = i3c_dev_get_master_data(dev);
1317 	slot = i3c_generic_ibi_get_free_slot(data->ibi_pool);
1318 	if (!slot)
1319 		goto out_unlock;
1320 
1321 	buf = slot->data;
1322 
1323 	nbytes = IBIR_XFER_BYTES(ibir);
1324 	i3c_readl_fifo(master->regs + IBI_DATA_FIFO, buf, nbytes);
1325 
1326 	slot->len = min_t(unsigned int, IBIR_XFER_BYTES(ibir),
1327 			  dev->ibi->max_payload_len);
1328 	i3c_master_queue_ibi(dev, slot);
1329 	data_consumed = true;
1330 
1331 out_unlock:
1332 	spin_unlock(&master->ibi.lock);
1333 
1334 out:
1335 	/* Consume data from the FIFO if it's not been done already. */
1336 	if (!data_consumed) {
1337 		int i;
1338 
1339 		for (i = 0; i < IBIR_XFER_BYTES(ibir); i += 4)
1340 			readl(master->regs + IBI_DATA_FIFO);
1341 	}
1342 }
1343 
1344 static void cnds_i3c_master_demux_ibis(struct cdns_i3c_master *master)
1345 {
1346 	u32 status0;
1347 
1348 	writel(MST_INT_IBIR_THR, master->regs + MST_ICR);
1349 
1350 	for (status0 = readl(master->regs + MST_STATUS0);
1351 	     !(status0 & MST_STATUS0_IBIR_EMP);
1352 	     status0 = readl(master->regs + MST_STATUS0)) {
1353 		u32 ibir = readl(master->regs + IBIR);
1354 
1355 		switch (IBIR_TYPE(ibir)) {
1356 		case IBIR_TYPE_IBI:
1357 			cdns_i3c_master_handle_ibi(master, ibir);
1358 			break;
1359 
1360 		case IBIR_TYPE_HJ:
1361 			WARN_ON(IBIR_XFER_BYTES(ibir) || (ibir & IBIR_ERROR));
1362 			i3c_master_queue_hotjoin(&master->base);
1363 			break;
1364 
1365 		case IBIR_TYPE_MR:
1366 			WARN_ON(IBIR_XFER_BYTES(ibir) || (ibir & IBIR_ERROR));
1367 			break;
1368 
1369 		default:
1370 			break;
1371 		}
1372 	}
1373 }
1374 
1375 static irqreturn_t cdns_i3c_master_interrupt(int irq, void *data)
1376 {
1377 	struct cdns_i3c_master *master = data;
1378 	u32 status;
1379 
1380 	status = readl(master->regs + MST_ISR);
1381 	if (!(status & readl(master->regs + MST_IMR)))
1382 		return IRQ_NONE;
1383 
1384 	spin_lock(&master->xferqueue.lock);
1385 	cdns_i3c_master_end_xfer_locked(master, status);
1386 	spin_unlock(&master->xferqueue.lock);
1387 
1388 	if (status & MST_INT_IBIR_THR)
1389 		cnds_i3c_master_demux_ibis(master);
1390 
1391 	return IRQ_HANDLED;
1392 }
1393 
1394 static int cdns_i3c_master_disable_ibi(struct i3c_dev_desc *dev)
1395 {
1396 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
1397 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1398 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
1399 	unsigned long flags;
1400 	u32 sirmap;
1401 	int ret;
1402 
1403 	ret = i3c_master_disec_locked(m, dev->info.dyn_addr,
1404 				      I3C_CCC_EVENT_SIR);
1405 	if (ret)
1406 		return ret;
1407 
1408 	spin_lock_irqsave(&master->ibi.lock, flags);
1409 	sirmap = readl(master->regs + SIR_MAP_DEV_REG(data->ibi));
1410 	sirmap &= ~SIR_MAP_DEV_CONF_MASK(data->ibi);
1411 	sirmap |= SIR_MAP_DEV_CONF(data->ibi,
1412 				   SIR_MAP_DEV_DA(I3C_BROADCAST_ADDR));
1413 	writel(sirmap, master->regs + SIR_MAP_DEV_REG(data->ibi));
1414 	spin_unlock_irqrestore(&master->ibi.lock, flags);
1415 
1416 	return ret;
1417 }
1418 
1419 static int cdns_i3c_master_enable_ibi(struct i3c_dev_desc *dev)
1420 {
1421 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
1422 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1423 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
1424 	unsigned long flags;
1425 	u32 sircfg, sirmap;
1426 	int ret;
1427 
1428 	spin_lock_irqsave(&master->ibi.lock, flags);
1429 	sirmap = readl(master->regs + SIR_MAP_DEV_REG(data->ibi));
1430 	sirmap &= ~SIR_MAP_DEV_CONF_MASK(data->ibi);
1431 	sircfg = SIR_MAP_DEV_ROLE(dev->info.bcr >> 6) |
1432 		 SIR_MAP_DEV_DA(dev->info.dyn_addr) |
1433 		 SIR_MAP_DEV_PL(dev->info.max_ibi_len) |
1434 		 SIR_MAP_DEV_ACK;
1435 
1436 	if (dev->info.bcr & I3C_BCR_MAX_DATA_SPEED_LIM)
1437 		sircfg |= SIR_MAP_DEV_SLOW;
1438 
1439 	sirmap |= SIR_MAP_DEV_CONF(data->ibi, sircfg);
1440 	writel(sirmap, master->regs + SIR_MAP_DEV_REG(data->ibi));
1441 	spin_unlock_irqrestore(&master->ibi.lock, flags);
1442 
1443 	ret = i3c_master_enec_locked(m, dev->info.dyn_addr,
1444 				     I3C_CCC_EVENT_SIR);
1445 	if (ret) {
1446 		spin_lock_irqsave(&master->ibi.lock, flags);
1447 		sirmap = readl(master->regs + SIR_MAP_DEV_REG(data->ibi));
1448 		sirmap &= ~SIR_MAP_DEV_CONF_MASK(data->ibi);
1449 		sirmap |= SIR_MAP_DEV_CONF(data->ibi,
1450 					   SIR_MAP_DEV_DA(I3C_BROADCAST_ADDR));
1451 		writel(sirmap, master->regs + SIR_MAP_DEV_REG(data->ibi));
1452 		spin_unlock_irqrestore(&master->ibi.lock, flags);
1453 	}
1454 
1455 	return ret;
1456 }
1457 
1458 static int cdns_i3c_master_request_ibi(struct i3c_dev_desc *dev,
1459 				       const struct i3c_ibi_setup *req)
1460 {
1461 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
1462 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1463 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
1464 	unsigned long flags;
1465 	unsigned int i;
1466 
1467 	data->ibi_pool = i3c_generic_ibi_alloc_pool(dev, req);
1468 	if (IS_ERR(data->ibi_pool))
1469 		return PTR_ERR(data->ibi_pool);
1470 
1471 	spin_lock_irqsave(&master->ibi.lock, flags);
1472 	for (i = 0; i < master->ibi.num_slots; i++) {
1473 		if (!master->ibi.slots[i]) {
1474 			data->ibi = i;
1475 			master->ibi.slots[i] = dev;
1476 			break;
1477 		}
1478 	}
1479 	spin_unlock_irqrestore(&master->ibi.lock, flags);
1480 
1481 	if (i < master->ibi.num_slots)
1482 		return 0;
1483 
1484 	i3c_generic_ibi_free_pool(data->ibi_pool);
1485 	data->ibi_pool = NULL;
1486 
1487 	return -ENOSPC;
1488 }
1489 
1490 static void cdns_i3c_master_free_ibi(struct i3c_dev_desc *dev)
1491 {
1492 	struct i3c_master_controller *m = i3c_dev_get_master(dev);
1493 	struct cdns_i3c_master *master = to_cdns_i3c_master(m);
1494 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
1495 	unsigned long flags;
1496 
1497 	spin_lock_irqsave(&master->ibi.lock, flags);
1498 	master->ibi.slots[data->ibi] = NULL;
1499 	data->ibi = -1;
1500 	spin_unlock_irqrestore(&master->ibi.lock, flags);
1501 
1502 	i3c_generic_ibi_free_pool(data->ibi_pool);
1503 }
1504 
1505 static void cdns_i3c_master_recycle_ibi_slot(struct i3c_dev_desc *dev,
1506 					     struct i3c_ibi_slot *slot)
1507 {
1508 	struct cdns_i3c_i2c_dev_data *data = i3c_dev_get_master_data(dev);
1509 
1510 	i3c_generic_ibi_recycle_slot(data->ibi_pool, slot);
1511 }
1512 
1513 static const struct i3c_master_controller_ops cdns_i3c_master_ops = {
1514 	.bus_init = cdns_i3c_master_bus_init,
1515 	.bus_cleanup = cdns_i3c_master_bus_cleanup,
1516 	.do_daa = cdns_i3c_master_do_daa,
1517 	.attach_i3c_dev = cdns_i3c_master_attach_i3c_dev,
1518 	.reattach_i3c_dev = cdns_i3c_master_reattach_i3c_dev,
1519 	.detach_i3c_dev = cdns_i3c_master_detach_i3c_dev,
1520 	.attach_i2c_dev = cdns_i3c_master_attach_i2c_dev,
1521 	.detach_i2c_dev = cdns_i3c_master_detach_i2c_dev,
1522 	.supports_ccc_cmd = cdns_i3c_master_supports_ccc_cmd,
1523 	.send_ccc_cmd = cdns_i3c_master_send_ccc_cmd,
1524 	.i3c_xfers = cdns_i3c_master_i3c_xfers,
1525 	.i2c_xfers = cdns_i3c_master_i2c_xfers,
1526 	.enable_ibi = cdns_i3c_master_enable_ibi,
1527 	.disable_ibi = cdns_i3c_master_disable_ibi,
1528 	.request_ibi = cdns_i3c_master_request_ibi,
1529 	.free_ibi = cdns_i3c_master_free_ibi,
1530 	.recycle_ibi_slot = cdns_i3c_master_recycle_ibi_slot,
1531 };
1532 
1533 static struct cdns_i3c_data cdns_i3c_devdata = {
1534 	.thd_delay_ns = 10,
1535 };
1536 
1537 static const struct of_device_id cdns_i3c_master_of_ids[] = {
1538 	{ .compatible = "cdns,i3c-master", .data = &cdns_i3c_devdata },
1539 	{ /* sentinel */ },
1540 };
1541 MODULE_DEVICE_TABLE(of, cdns_i3c_master_of_ids);
1542 
1543 static int cdns_i3c_master_probe(struct platform_device *pdev)
1544 {
1545 	struct cdns_i3c_master *master;
1546 	struct clk *pclk;
1547 	int ret, irq;
1548 	u32 val;
1549 
1550 	master = devm_kzalloc(&pdev->dev, sizeof(*master), GFP_KERNEL);
1551 	if (!master)
1552 		return -ENOMEM;
1553 
1554 	master->devdata = of_device_get_match_data(&pdev->dev);
1555 	if (!master->devdata)
1556 		return -EINVAL;
1557 
1558 	master->regs = devm_platform_ioremap_resource(pdev, 0);
1559 	if (IS_ERR(master->regs))
1560 		return PTR_ERR(master->regs);
1561 
1562 	pclk = devm_clk_get_enabled(&pdev->dev, "pclk");
1563 	if (IS_ERR(pclk))
1564 		return PTR_ERR(pclk);
1565 
1566 	master->sysclk = devm_clk_get_enabled(&pdev->dev, "sysclk");
1567 	if (IS_ERR(master->sysclk))
1568 		return PTR_ERR(master->sysclk);
1569 
1570 	irq = platform_get_irq(pdev, 0);
1571 	if (irq < 0)
1572 		return irq;
1573 
1574 	if (readl(master->regs + DEV_ID) != DEV_ID_I3C_MASTER)
1575 		return -EINVAL;
1576 
1577 	spin_lock_init(&master->xferqueue.lock);
1578 	INIT_LIST_HEAD(&master->xferqueue.list);
1579 
1580 	writel(0xffffffff, master->regs + MST_IDR);
1581 	writel(0xffffffff, master->regs + SLV_IDR);
1582 	ret = devm_request_irq(&pdev->dev, irq, cdns_i3c_master_interrupt, 0,
1583 			       dev_name(&pdev->dev), master);
1584 	if (ret)
1585 		return ret;
1586 
1587 	platform_set_drvdata(pdev, master);
1588 
1589 	val = readl(master->regs + CONF_STATUS0);
1590 
1591 	/* Device ID0 is reserved to describe this master. */
1592 	master->maxdevs = CONF_STATUS0_DEVS_NUM(val);
1593 	master->free_rr_slots = GENMASK(master->maxdevs, 1);
1594 	master->caps.ibirfifodepth = CONF_STATUS0_IBIR_DEPTH(val);
1595 	master->caps.cmdrfifodepth = CONF_STATUS0_CMDR_DEPTH(val);
1596 
1597 	val = readl(master->regs + CONF_STATUS1);
1598 	master->caps.cmdfifodepth = CONF_STATUS1_CMD_DEPTH(val);
1599 	master->caps.rxfifodepth = CONF_STATUS1_RX_DEPTH(val);
1600 	master->caps.txfifodepth = CONF_STATUS1_TX_DEPTH(val);
1601 
1602 	spin_lock_init(&master->ibi.lock);
1603 	master->ibi.num_slots = CONF_STATUS1_IBI_HW_RES(val);
1604 	master->ibi.slots = devm_kcalloc(&pdev->dev, master->ibi.num_slots,
1605 					 sizeof(*master->ibi.slots),
1606 					 GFP_KERNEL);
1607 	if (!master->ibi.slots)
1608 		return -ENOMEM;
1609 
1610 	writel(IBIR_THR(1), master->regs + CMD_IBI_THR_CTRL);
1611 	writel(MST_INT_IBIR_THR, master->regs + MST_IER);
1612 	writel(DEVS_CTRL_DEV_CLR_ALL, master->regs + DEVS_CTRL);
1613 
1614 	return i3c_master_register(&master->base, &pdev->dev,
1615 				   &cdns_i3c_master_ops, false);
1616 }
1617 
1618 static void cdns_i3c_master_remove(struct platform_device *pdev)
1619 {
1620 	struct cdns_i3c_master *master = platform_get_drvdata(pdev);
1621 
1622 	i3c_master_unregister(&master->base);
1623 }
1624 
1625 static struct platform_driver cdns_i3c_master = {
1626 	.probe = cdns_i3c_master_probe,
1627 	.remove = cdns_i3c_master_remove,
1628 	.driver = {
1629 		.name = "cdns-i3c-master",
1630 		.of_match_table = cdns_i3c_master_of_ids,
1631 	},
1632 };
1633 module_platform_driver(cdns_i3c_master);
1634 
1635 MODULE_AUTHOR("Boris Brezillon <boris.brezillon@bootlin.com>");
1636 MODULE_DESCRIPTION("Cadence I3C master driver");
1637 MODULE_LICENSE("GPL v2");
1638 MODULE_ALIAS("platform:cdns-i3c-master");
1639