1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (c) 2012-2015, 2017, 2021, The Linux Foundation. All rights reserved.
4 */
5
6 #include <linux/bitfield.h>
7 #include <linux/bitmap.h>
8 #include <linux/delay.h>
9 #include <linux/err.h>
10 #include <linux/interrupt.h>
11 #include <linux/io.h>
12 #include <linux/irqchip/chained_irq.h>
13 #include <linux/irqdomain.h>
14 #include <linux/irq.h>
15 #include <linux/kernel.h>
16 #include <linux/module.h>
17 #include <linux/of.h>
18 #include <linux/of_address.h>
19 #include <linux/of_irq.h>
20 #include <linux/platform_device.h>
21 #include <linux/slab.h>
22 #include <linux/spmi.h>
23
24 /* PMIC Arbiter configuration registers */
25 #define PMIC_ARB_VERSION 0x0000
26 #define PMIC_ARB_VERSION_V2_MIN 0x20010000
27 #define PMIC_ARB_VERSION_V3_MIN 0x30000000
28 #define PMIC_ARB_VERSION_V5_MIN 0x50000000
29 #define PMIC_ARB_VERSION_V7_MIN 0x70000000
30 #define PMIC_ARB_VERSION_V8_MIN 0x80000000
31 #define PMIC_ARB_VERSION_V8P5_MIN 0x80050000
32 #define PMIC_ARB_INT_EN 0x0004
33
34 #define PMIC_ARB_FEATURES 0x0004
35 #define PMIC_ARB_FEATURES_PERIPH_MASK GENMASK(10, 0)
36 #define PMIC_ARB_FEATURES_V8_PERIPH_MASK GENMASK(12, 0)
37
38 /* PMIC Arbiter channel registers offsets */
39 #define PMIC_ARB_CMD 0x00
40 #define PMIC_ARB_CONFIG 0x04
41 #define PMIC_ARB_STATUS 0x08
42 #define PMIC_ARB_WDATA0 0x10
43 #define PMIC_ARB_WDATA1 0x14
44 #define PMIC_ARB_RDATA0 0x18
45 #define PMIC_ARB_RDATA1 0x1C
46
47 /* Mapping Table */
48 #define SPMI_MAPPING_TABLE_REG(N) (0x0B00 + (4 * (N)))
49 #define SPMI_MAPPING_BIT_INDEX(X) (((X) >> 18) & 0xF)
50 #define SPMI_MAPPING_BIT_IS_0_FLAG(X) (((X) >> 17) & 0x1)
51 #define SPMI_MAPPING_BIT_IS_0_RESULT(X) (((X) >> 9) & 0xFF)
52 #define SPMI_MAPPING_BIT_IS_1_FLAG(X) (((X) >> 8) & 0x1)
53 #define SPMI_MAPPING_BIT_IS_1_RESULT(X) (((X) >> 0) & 0xFF)
54
55 #define SPMI_MAPPING_TABLE_TREE_DEPTH 16 /* Maximum of 16-bits */
56 #define PMIC_ARB_MAX_PPID BIT(13)
57 #define PMIC_ARB_APID_VALID BIT(15)
58 #define PMIC_ARB_CHAN_IS_IRQ_OWNER_MASK BIT(24)
59 #define PMIC_ARB_V8_CHAN_IS_IRQ_OWNER_MASK BIT(31)
60
61 #define INVALID_EE 0xFF
62
63 /* Ownership Table */
64 #define SPMI_OWNERSHIP_PERIPH2OWNER(X) ((X) & 0x7)
65
66 /* Command register fields */
67 #define PMIC_ARB_CMD_MAX_BYTE_COUNT 8
68
69 /* Command Opcodes */
70 enum pmic_arb_cmd_op_code {
71 PMIC_ARB_OP_EXT_WRITEL = 0,
72 PMIC_ARB_OP_EXT_READL = 1,
73 PMIC_ARB_OP_EXT_WRITE = 2,
74 PMIC_ARB_OP_RESET = 3,
75 PMIC_ARB_OP_SLEEP = 4,
76 PMIC_ARB_OP_SHUTDOWN = 5,
77 PMIC_ARB_OP_WAKEUP = 6,
78 PMIC_ARB_OP_AUTHENTICATE = 7,
79 PMIC_ARB_OP_MSTR_READ = 8,
80 PMIC_ARB_OP_MSTR_WRITE = 9,
81 PMIC_ARB_OP_EXT_READ = 13,
82 PMIC_ARB_OP_WRITE = 14,
83 PMIC_ARB_OP_READ = 15,
84 PMIC_ARB_OP_ZERO_WRITE = 16,
85 };
86
87 /*
88 * PMIC arbiter version 5 uses different register offsets for read/write vs
89 * observer channels.
90 */
91 enum pmic_arb_channel {
92 PMIC_ARB_CHANNEL_RW,
93 PMIC_ARB_CHANNEL_OBS,
94 };
95
96 #define PMIC_ARB_MAX_BUSES 4
97
98 /* Maximum number of support PMIC peripherals */
99 #define PMIC_ARB_MAX_PERIPHS 512
100 #define PMIC_ARB_MAX_PERIPHS_V7 1024
101 #define PMIC_ARB_MAX_PERIPHS_V8 8192
102 #define PMIC_ARB_TIMEOUT_US 1000
103 #define PMIC_ARB_MAX_TRANS_BYTES (8)
104
105 #define PMIC_ARB_APID_MASK 0xFF
106 #define PMIC_ARB_PPID_MASK GENMASK(11, 0)
107 #define PMIC_ARB_V8_PPID_MASK GENMASK(12, 0)
108
109 /* interrupt enable bit */
110 #define SPMI_PIC_ACC_ENABLE_BIT BIT(0)
111
112 #define HWIRQ_SID_MASK GENMASK(28, 24)
113 #define HWIRQ_PID_MASK GENMASK(23, 16)
114 #define HWIRQ_IRQID_MASK GENMASK(15, 13)
115 #define HWIRQ_APID_MASK GENMASK(12, 0)
116
117 #define spec_to_hwirq(slave_id, periph_id, irq_id, apid) \
118 (FIELD_PREP(HWIRQ_SID_MASK, (slave_id)) | \
119 FIELD_PREP(HWIRQ_PID_MASK, (periph_id)) | \
120 FIELD_PREP(HWIRQ_IRQID_MASK, (irq_id)) | \
121 FIELD_PREP(HWIRQ_APID_MASK, (apid)))
122
123 #define hwirq_to_sid(hwirq) FIELD_GET(HWIRQ_SID_MASK, (hwirq))
124 #define hwirq_to_per(hwirq) FIELD_GET(HWIRQ_PID_MASK, (hwirq))
125 #define hwirq_to_irq(hwirq) FIELD_GET(HWIRQ_IRQID_MASK, (hwirq))
126 #define hwirq_to_apid(hwirq) FIELD_GET(HWIRQ_APID_MASK, (hwirq))
127
128 struct pmic_arb_ver_ops;
129
130 struct apid_data {
131 u16 ppid;
132 u8 write_ee;
133 u8 irq_ee;
134 };
135
136 struct spmi_pmic_arb;
137
138 /**
139 * struct spmi_pmic_arb_bus - SPMI PMIC Arbiter Bus object
140 *
141 * @pmic_arb: the SPMI PMIC Arbiter the bus belongs to.
142 * @domain: irq domain object for PMIC IRQ domain
143 * @intr: address of the SPMI interrupt control registers.
144 * @cnfg: address of the PMIC Arbiter configuration registers.
145 * @apid_owner: on v8: address of APID owner mapping table registers
146 * @spmic: spmi controller registered for this bus
147 * @lock: lock to synchronize accesses.
148 * @base_apid: on v7 and v8: minimum APID associated with the
149 * particular SPMI bus instance
150 * @apid_count: on v5, v7 and v8: number of APIDs associated with the
151 * particular SPMI bus instance
152 * @mapping_table: in-memory copy of PPID -> APID mapping table.
153 * @mapping_table_valid:bitmap containing valid-only periphs
154 * @ppid_to_apid: in-memory copy of PPID -> APID mapping table.
155 * @last_apid: Highest value APID in use
156 * @apid_data: Table of data for all APIDs
157 * @min_apid: minimum APID (used for bounding IRQ search)
158 * @max_apid: maximum APID
159 * @irq: PMIC ARB interrupt.
160 * @id: unique ID of the bus
161 */
162 struct spmi_pmic_arb_bus {
163 struct spmi_pmic_arb *pmic_arb;
164 struct irq_domain *domain;
165 void __iomem *intr;
166 void __iomem *cnfg;
167 void __iomem *apid_owner;
168 struct spmi_controller *spmic;
169 raw_spinlock_t lock;
170 u16 base_apid;
171 int apid_count;
172 u32 *mapping_table;
173 DECLARE_BITMAP(mapping_table_valid, PMIC_ARB_MAX_PERIPHS);
174 u16 *ppid_to_apid;
175 u16 last_apid;
176 struct apid_data *apid_data;
177 u16 min_apid;
178 u16 max_apid;
179 int irq;
180 u8 id;
181 };
182
183 /**
184 * struct spmi_pmic_arb - SPMI PMIC Arbiter object
185 *
186 * @rd_base: on v1 "core", on v2 "observer" register base off DT.
187 * @wr_base: on v1 "core", on v2 "chnls" register base off DT.
188 * @core: core register base for v2 and above only (see above)
189 * @core_size: core register base size
190 * @apid_map: on v8, APID mapping table register base
191 * @channel: execution environment channel to use for accesses.
192 * @ee: the current Execution Environment
193 * @ver_ops: version dependent operations.
194 * @max_periphs: Number of elements in apid_data[]
195 * @buses: per arbiter buses instances
196 * @buses_available: number of buses registered
197 */
198 struct spmi_pmic_arb {
199 void __iomem *rd_base;
200 void __iomem *wr_base;
201 void __iomem *core;
202 resource_size_t core_size;
203 void __iomem *apid_map;
204 u8 channel;
205 u8 ee;
206 const struct pmic_arb_ver_ops *ver_ops;
207 int max_periphs;
208 struct spmi_pmic_arb_bus *buses[PMIC_ARB_MAX_BUSES];
209 int buses_available;
210 };
211
212 /**
213 * struct pmic_arb_ver_ops - version dependent functionality.
214 *
215 * @ver_str: version string.
216 * @get_core_resources: initializes the core, observer and channels
217 * @get_bus_resources: requests per-SPMI bus register resources
218 * @init_apid: finds the apid base and count
219 * @ppid_to_apid: finds the apid for a given ppid.
220 * @non_data_cmd: on v1 issues an spmi non-data command.
221 * on v2 no HW support, returns -EOPNOTSUPP.
222 * @offset: on v1 offset of per-ee channel.
223 * on v2 offset of per-ee and per-ppid channel.
224 * @fmt_cmd: formats a GENI/SPMI command.
225 * @owner_acc_status: on v1 address of PMIC_ARB_SPMI_PIC_OWNERm_ACC_STATUSn
226 * on v2 address of SPMI_PIC_OWNERm_ACC_STATUSn.
227 * @acc_enable: on v1 address of PMIC_ARB_SPMI_PIC_ACC_ENABLEn
228 * on v2 address of SPMI_PIC_ACC_ENABLEn.
229 * @irq_status: on v1 address of PMIC_ARB_SPMI_PIC_IRQ_STATUSn
230 * on v2 address of SPMI_PIC_IRQ_STATUSn.
231 * @irq_clear: on v1 address of PMIC_ARB_SPMI_PIC_IRQ_CLEARn
232 * on v2 address of SPMI_PIC_IRQ_CLEARn.
233 * @apid_map_offset: offset of PMIC_ARB_REG_CHNLn
234 * @apid_owner: on v2 and later address of SPMI_PERIPHn_2OWNER_TABLE_REG
235 * @check_chnl_status: checks channel status and returns error code if any
236 */
237 struct pmic_arb_ver_ops {
238 const char *ver_str;
239 int (*get_core_resources)(struct platform_device *pdev, void __iomem *core);
240 int (*get_bus_resources)(struct platform_device *pdev,
241 struct device_node *node,
242 struct spmi_pmic_arb_bus *bus);
243 int (*init_apid)(struct spmi_pmic_arb_bus *bus, int index);
244 int (*ppid_to_apid)(struct spmi_pmic_arb_bus *bus, u16 ppid);
245 /* spmi commands (read_cmd, write_cmd, cmd) functionality */
246 int (*offset)(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
247 enum pmic_arb_channel ch_type);
248 u32 (*fmt_cmd)(u8 opc, u8 sid, u16 addr, u8 bc);
249 int (*non_data_cmd)(struct spmi_controller *ctrl, u8 opc, u8 sid);
250 /* Interrupts controller functionality (offset of PIC registers) */
251 void __iomem *(*owner_acc_status)(struct spmi_pmic_arb_bus *bus, u8 m,
252 u16 n);
253 void __iomem *(*acc_enable)(struct spmi_pmic_arb_bus *bus, u16 n);
254 void __iomem *(*irq_status)(struct spmi_pmic_arb_bus *bus, u16 n);
255 void __iomem *(*irq_clear)(struct spmi_pmic_arb_bus *bus, u16 n);
256 u32 (*apid_map_offset)(u16 n);
257 void __iomem *(*apid_owner)(struct spmi_pmic_arb_bus *bus, u16 n);
258 int (*check_chnl_status)(struct spmi_controller *ctrl, u32 status,
259 u8 sid, u16 addr, u32 offset);
260 };
261
pmic_arb_base_write(struct spmi_pmic_arb * pmic_arb,u32 offset,u32 val)262 static inline void pmic_arb_base_write(struct spmi_pmic_arb *pmic_arb,
263 u32 offset, u32 val)
264 {
265 writel_relaxed(val, pmic_arb->wr_base + offset);
266 }
267
pmic_arb_set_rd_cmd(struct spmi_pmic_arb * pmic_arb,u32 offset,u32 val)268 static inline void pmic_arb_set_rd_cmd(struct spmi_pmic_arb *pmic_arb,
269 u32 offset, u32 val)
270 {
271 writel_relaxed(val, pmic_arb->rd_base + offset);
272 }
273
274 /**
275 * pmic_arb_read_data: reads pmic-arb's register and copy 1..4 bytes to buf
276 * @pmic_arb: the SPMI PMIC arbiter
277 * @bc: byte count -1. range: 0..3
278 * @reg: register's address
279 * @buf: output parameter, length must be bc + 1
280 */
281 static void
pmic_arb_read_data(struct spmi_pmic_arb * pmic_arb,u8 * buf,u32 reg,u8 bc)282 pmic_arb_read_data(struct spmi_pmic_arb *pmic_arb, u8 *buf, u32 reg, u8 bc)
283 {
284 u32 data = __raw_readl(pmic_arb->rd_base + reg);
285
286 memcpy(buf, &data, (bc & 3) + 1);
287 }
288
289 /**
290 * pmic_arb_write_data: write 1..4 bytes from buf to pmic-arb's register
291 * @pmic_arb: the SPMI PMIC arbiter
292 * @bc: byte-count -1. range: 0..3.
293 * @reg: register's address.
294 * @buf: buffer to write. length must be bc + 1.
295 */
pmic_arb_write_data(struct spmi_pmic_arb * pmic_arb,const u8 * buf,u32 reg,u8 bc)296 static void pmic_arb_write_data(struct spmi_pmic_arb *pmic_arb, const u8 *buf,
297 u32 reg, u8 bc)
298 {
299 u32 data = 0;
300
301 memcpy(&data, buf, (bc & 3) + 1);
302 __raw_writel(data, pmic_arb->wr_base + reg);
303 }
304
pmic_arb_check_chnl_status_v1(struct spmi_controller * ctrl,u32 status,u8 sid,u16 addr,u32 offset)305 static int pmic_arb_check_chnl_status_v1(struct spmi_controller *ctrl,
306 u32 status, u8 sid, u16 addr,
307 u32 offset)
308 {
309 /* Check if DONE bit is set */
310 if (!(status & BIT(0)))
311 return -EAGAIN;
312
313 if (status & BIT(1)) {
314 dev_err(&ctrl->dev, "%s: %#x %#x: transaction failed (%#x) reg: 0x%x\n",
315 __func__, sid, addr, status, offset);
316 WARN_ON(1);
317 return -EIO;
318 }
319
320 if (status & BIT(2)) {
321 dev_err(&ctrl->dev, "%s: %#x %#x: transaction denied (%#x)\n",
322 __func__, sid, addr, status);
323 return -EPERM;
324 }
325
326 if (status & BIT(3)) {
327 dev_err(&ctrl->dev, "%s: %#x %#x: transaction dropped (%#x)\n",
328 __func__, sid, addr, status);
329 return -EIO;
330 }
331
332 return 0;
333 }
334
pmic_arb_check_chnl_status_v8p5(struct spmi_controller * ctrl,u32 status,u8 sid,u16 addr,u32 offset)335 static int pmic_arb_check_chnl_status_v8p5(struct spmi_controller *ctrl,
336 u32 status, u8 sid, u16 addr,
337 u32 offset)
338 {
339 /* Check if DONE bit is set */
340 if (!(status & BIT(0)))
341 return -EAGAIN;
342
343 if (status & BIT(1)) {
344 dev_err(&ctrl->dev, "%s: %#x %#x: transaction failed (%#x) reg: 0x%x\n",
345 __func__, sid, addr, status, offset);
346 WARN_ON(1);
347 return -EIO;
348 }
349
350 if (status & BIT(2)) {
351 dev_err(&ctrl->dev, "%s: %#x %#x: CRC error (%#x)\n",
352 __func__, sid, addr, status);
353 return -EIO;
354 }
355
356 if (status & BIT(3)) {
357 dev_err(&ctrl->dev, "%s: %#x %#x: parity error (%#x)\n",
358 __func__, sid, addr, status);
359 return -EIO;
360 }
361
362 if (status & BIT(4)) {
363 dev_err(&ctrl->dev, "%s: %#x %#x: NACK error (%#x)\n",
364 __func__, sid, addr, status);
365 return -EIO;
366 }
367
368 if (status & BIT(5)) {
369 dev_err(&ctrl->dev, "%s: %#x %#x: transaction denied (%#x)\n",
370 __func__, sid, addr, status);
371 return -EPERM;
372 }
373
374 if (status & BIT(6)) {
375 dev_err(&ctrl->dev, "%s: %#x %#x: transaction dropped (%#x)\n",
376 __func__, sid, addr, status);
377 return -EIO;
378 }
379
380 return 0;
381 }
382
pmic_arb_wait_for_done(struct spmi_controller * ctrl,void __iomem * base,u8 sid,u16 addr,enum pmic_arb_channel ch_type)383 static int pmic_arb_wait_for_done(struct spmi_controller *ctrl,
384 void __iomem *base, u8 sid, u16 addr,
385 enum pmic_arb_channel ch_type)
386 {
387 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
388 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
389 u32 status = 0;
390 u32 timeout = PMIC_ARB_TIMEOUT_US;
391 u32 offset;
392 int rc;
393
394 rc = pmic_arb->ver_ops->offset(bus, sid, addr, ch_type);
395 if (rc < 0)
396 return rc;
397
398 offset = rc;
399 offset += PMIC_ARB_STATUS;
400
401 while (timeout--) {
402 status = readl_relaxed(base + offset);
403
404 rc = pmic_arb->ver_ops->check_chnl_status(ctrl, status, sid, addr, offset);
405 if (rc != -EAGAIN)
406 return rc;
407
408 udelay(1);
409 }
410
411 dev_err(&ctrl->dev, "%s: %#x %#x %#x: timeout, status %#x\n",
412 __func__, bus->id, sid, addr, status);
413 return -ETIMEDOUT;
414 }
415
416 static int
pmic_arb_non_data_cmd_v1(struct spmi_controller * ctrl,u8 opc,u8 sid)417 pmic_arb_non_data_cmd_v1(struct spmi_controller *ctrl, u8 opc, u8 sid)
418 {
419 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
420 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
421 unsigned long flags;
422 u32 cmd;
423 int rc;
424 u32 offset;
425
426 rc = pmic_arb->ver_ops->offset(bus, sid, 0, PMIC_ARB_CHANNEL_RW);
427 if (rc < 0)
428 return rc;
429
430 offset = rc;
431 cmd = ((opc | 0x40) << 27) | ((sid & 0xf) << 20);
432
433 raw_spin_lock_irqsave(&bus->lock, flags);
434 pmic_arb_base_write(pmic_arb, offset + PMIC_ARB_CMD, cmd);
435 rc = pmic_arb_wait_for_done(ctrl, pmic_arb->wr_base, sid, 0,
436 PMIC_ARB_CHANNEL_RW);
437 raw_spin_unlock_irqrestore(&bus->lock, flags);
438
439 return rc;
440 }
441
442 static int
pmic_arb_non_data_cmd_v2(struct spmi_controller * ctrl,u8 opc,u8 sid)443 pmic_arb_non_data_cmd_v2(struct spmi_controller *ctrl, u8 opc, u8 sid)
444 {
445 return -EOPNOTSUPP;
446 }
447
448 /* Non-data command */
pmic_arb_cmd(struct spmi_controller * ctrl,u8 opc,u8 sid)449 static int pmic_arb_cmd(struct spmi_controller *ctrl, u8 opc, u8 sid)
450 {
451 struct spmi_pmic_arb *pmic_arb = spmi_controller_get_drvdata(ctrl);
452
453 dev_dbg(&ctrl->dev, "cmd op:0x%x sid:%d\n", opc, sid);
454
455 /* Check for valid non-data command */
456 if (opc < SPMI_CMD_RESET || opc > SPMI_CMD_WAKEUP)
457 return -EINVAL;
458
459 return pmic_arb->ver_ops->non_data_cmd(ctrl, opc, sid);
460 }
461
pmic_arb_fmt_read_cmd(struct spmi_pmic_arb_bus * bus,u8 opc,u8 sid,u16 addr,size_t len,u32 * cmd,u32 * offset)462 static int pmic_arb_fmt_read_cmd(struct spmi_pmic_arb_bus *bus, u8 opc, u8 sid,
463 u16 addr, size_t len, u32 *cmd, u32 *offset)
464 {
465 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
466 u8 bc = len - 1;
467 int rc;
468
469 rc = pmic_arb->ver_ops->offset(bus, sid, addr,
470 PMIC_ARB_CHANNEL_OBS);
471 if (rc < 0)
472 return rc;
473
474 *offset = rc;
475 if (bc >= PMIC_ARB_MAX_TRANS_BYTES) {
476 dev_err(&bus->spmic->dev, "pmic-arb supports 1..%d bytes per trans, but:%zu requested\n",
477 PMIC_ARB_MAX_TRANS_BYTES, len);
478 return -EINVAL;
479 }
480
481 /* Check the opcode */
482 if (opc >= 0x60 && opc <= 0x7F)
483 opc = PMIC_ARB_OP_READ;
484 else if (opc >= 0x20 && opc <= 0x2F)
485 opc = PMIC_ARB_OP_EXT_READ;
486 else if (opc >= 0x38 && opc <= 0x3F)
487 opc = PMIC_ARB_OP_EXT_READL;
488 else
489 return -EINVAL;
490
491 *cmd = pmic_arb->ver_ops->fmt_cmd(opc, sid, addr, bc);
492
493 return 0;
494 }
495
pmic_arb_read_cmd_unlocked(struct spmi_controller * ctrl,u32 cmd,u32 offset,u8 sid,u16 addr,u8 * buf,size_t len)496 static int pmic_arb_read_cmd_unlocked(struct spmi_controller *ctrl, u32 cmd,
497 u32 offset, u8 sid, u16 addr, u8 *buf,
498 size_t len)
499 {
500 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
501 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
502 u8 bc = len - 1;
503 int rc;
504
505 pmic_arb_set_rd_cmd(pmic_arb, offset + PMIC_ARB_CMD, cmd);
506 rc = pmic_arb_wait_for_done(ctrl, pmic_arb->rd_base, sid, addr,
507 PMIC_ARB_CHANNEL_OBS);
508 if (rc)
509 return rc;
510
511 pmic_arb_read_data(pmic_arb, buf, offset + PMIC_ARB_RDATA0,
512 min_t(u8, bc, 3));
513
514 if (bc > 3)
515 pmic_arb_read_data(pmic_arb, buf + 4, offset + PMIC_ARB_RDATA1,
516 bc - 4);
517 return 0;
518 }
519
pmic_arb_read_cmd(struct spmi_controller * ctrl,u8 opc,u8 sid,u16 addr,u8 * buf,size_t len)520 static int pmic_arb_read_cmd(struct spmi_controller *ctrl, u8 opc, u8 sid,
521 u16 addr, u8 *buf, size_t len)
522 {
523 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
524 unsigned long flags;
525 u32 cmd, offset;
526 int rc;
527
528 rc = pmic_arb_fmt_read_cmd(bus, opc, sid, addr, len, &cmd,
529 &offset);
530 if (rc)
531 return rc;
532
533 raw_spin_lock_irqsave(&bus->lock, flags);
534 rc = pmic_arb_read_cmd_unlocked(ctrl, cmd, offset, sid, addr, buf, len);
535 raw_spin_unlock_irqrestore(&bus->lock, flags);
536
537 return rc;
538 }
539
pmic_arb_fmt_write_cmd(struct spmi_pmic_arb_bus * bus,u8 opc,u8 sid,u16 addr,size_t len,u32 * cmd,u32 * offset)540 static int pmic_arb_fmt_write_cmd(struct spmi_pmic_arb_bus *bus, u8 opc,
541 u8 sid, u16 addr, size_t len, u32 *cmd,
542 u32 *offset)
543 {
544 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
545 u8 bc = len - 1;
546 int rc;
547
548 rc = pmic_arb->ver_ops->offset(bus, sid, addr,
549 PMIC_ARB_CHANNEL_RW);
550 if (rc < 0)
551 return rc;
552
553 *offset = rc;
554 if (bc >= PMIC_ARB_MAX_TRANS_BYTES) {
555 dev_err(&bus->spmic->dev, "pmic-arb supports 1..%d bytes per trans, but:%zu requested\n",
556 PMIC_ARB_MAX_TRANS_BYTES, len);
557 return -EINVAL;
558 }
559
560 /* Check the opcode */
561 if (opc >= 0x40 && opc <= 0x5F)
562 opc = PMIC_ARB_OP_WRITE;
563 else if (opc <= 0x0F)
564 opc = PMIC_ARB_OP_EXT_WRITE;
565 else if (opc >= 0x30 && opc <= 0x37)
566 opc = PMIC_ARB_OP_EXT_WRITEL;
567 else if (opc >= 0x80)
568 opc = PMIC_ARB_OP_ZERO_WRITE;
569 else
570 return -EINVAL;
571
572 *cmd = pmic_arb->ver_ops->fmt_cmd(opc, sid, addr, bc);
573
574 return 0;
575 }
576
pmic_arb_write_cmd_unlocked(struct spmi_controller * ctrl,u32 cmd,u32 offset,u8 sid,u16 addr,const u8 * buf,size_t len)577 static int pmic_arb_write_cmd_unlocked(struct spmi_controller *ctrl, u32 cmd,
578 u32 offset, u8 sid, u16 addr,
579 const u8 *buf, size_t len)
580 {
581 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
582 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
583 u8 bc = len - 1;
584
585 /* Write data to FIFOs */
586 pmic_arb_write_data(pmic_arb, buf, offset + PMIC_ARB_WDATA0,
587 min_t(u8, bc, 3));
588 if (bc > 3)
589 pmic_arb_write_data(pmic_arb, buf + 4, offset + PMIC_ARB_WDATA1,
590 bc - 4);
591
592 /* Start the transaction */
593 pmic_arb_base_write(pmic_arb, offset + PMIC_ARB_CMD, cmd);
594 return pmic_arb_wait_for_done(ctrl, pmic_arb->wr_base, sid, addr,
595 PMIC_ARB_CHANNEL_RW);
596 }
597
pmic_arb_write_cmd(struct spmi_controller * ctrl,u8 opc,u8 sid,u16 addr,const u8 * buf,size_t len)598 static int pmic_arb_write_cmd(struct spmi_controller *ctrl, u8 opc, u8 sid,
599 u16 addr, const u8 *buf, size_t len)
600 {
601 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
602 unsigned long flags;
603 u32 cmd, offset;
604 int rc;
605
606 rc = pmic_arb_fmt_write_cmd(bus, opc, sid, addr, len, &cmd,
607 &offset);
608 if (rc)
609 return rc;
610
611 raw_spin_lock_irqsave(&bus->lock, flags);
612 rc = pmic_arb_write_cmd_unlocked(ctrl, cmd, offset, sid, addr, buf,
613 len);
614 raw_spin_unlock_irqrestore(&bus->lock, flags);
615
616 return rc;
617 }
618
pmic_arb_masked_write(struct spmi_controller * ctrl,u8 sid,u16 addr,const u8 * buf,const u8 * mask,size_t len)619 static int pmic_arb_masked_write(struct spmi_controller *ctrl, u8 sid, u16 addr,
620 const u8 *buf, const u8 *mask, size_t len)
621 {
622 struct spmi_pmic_arb_bus *bus = spmi_controller_get_drvdata(ctrl);
623 u32 read_cmd, read_offset, write_cmd, write_offset;
624 u8 temp[PMIC_ARB_MAX_TRANS_BYTES];
625 unsigned long flags;
626 int rc, i;
627
628 rc = pmic_arb_fmt_read_cmd(bus, SPMI_CMD_EXT_READL, sid, addr, len,
629 &read_cmd, &read_offset);
630 if (rc)
631 return rc;
632
633 rc = pmic_arb_fmt_write_cmd(bus, SPMI_CMD_EXT_WRITEL, sid, addr,
634 len, &write_cmd, &write_offset);
635 if (rc)
636 return rc;
637
638 raw_spin_lock_irqsave(&bus->lock, flags);
639 rc = pmic_arb_read_cmd_unlocked(ctrl, read_cmd, read_offset, sid, addr,
640 temp, len);
641 if (rc)
642 goto done;
643
644 for (i = 0; i < len; i++)
645 temp[i] = (temp[i] & ~mask[i]) | (buf[i] & mask[i]);
646
647 rc = pmic_arb_write_cmd_unlocked(ctrl, write_cmd, write_offset, sid,
648 addr, temp, len);
649 done:
650 raw_spin_unlock_irqrestore(&bus->lock, flags);
651
652 return rc;
653 }
654
655 enum qpnpint_regs {
656 QPNPINT_REG_RT_STS = 0x10,
657 QPNPINT_REG_SET_TYPE = 0x11,
658 QPNPINT_REG_POLARITY_HIGH = 0x12,
659 QPNPINT_REG_POLARITY_LOW = 0x13,
660 QPNPINT_REG_LATCHED_CLR = 0x14,
661 QPNPINT_REG_EN_SET = 0x15,
662 QPNPINT_REG_EN_CLR = 0x16,
663 QPNPINT_REG_LATCHED_STS = 0x18,
664 };
665
666 struct spmi_pmic_arb_qpnpint_type {
667 u8 type; /* 1 -> edge */
668 u8 polarity_high;
669 u8 polarity_low;
670 } __packed;
671
672 /* Simplified accessor functions for irqchip callbacks */
qpnpint_spmi_write(struct irq_data * d,u8 reg,void * buf,size_t len)673 static void qpnpint_spmi_write(struct irq_data *d, u8 reg, void *buf,
674 size_t len)
675 {
676 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
677 u8 sid = hwirq_to_sid(d->hwirq);
678 u8 per = hwirq_to_per(d->hwirq);
679
680 if (pmic_arb_write_cmd(bus->spmic, SPMI_CMD_EXT_WRITEL, sid,
681 (per << 8) + reg, buf, len))
682 dev_err_ratelimited(&bus->spmic->dev, "failed irqchip transaction on %x\n",
683 d->irq);
684 }
685
qpnpint_spmi_read(struct irq_data * d,u8 reg,void * buf,size_t len)686 static void qpnpint_spmi_read(struct irq_data *d, u8 reg, void *buf, size_t len)
687 {
688 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
689 u8 sid = hwirq_to_sid(d->hwirq);
690 u8 per = hwirq_to_per(d->hwirq);
691
692 if (pmic_arb_read_cmd(bus->spmic, SPMI_CMD_EXT_READL, sid,
693 (per << 8) + reg, buf, len))
694 dev_err_ratelimited(&bus->spmic->dev, "failed irqchip transaction on %x\n",
695 d->irq);
696 }
697
qpnpint_spmi_masked_write(struct irq_data * d,u8 reg,const void * buf,const void * mask,size_t len)698 static int qpnpint_spmi_masked_write(struct irq_data *d, u8 reg,
699 const void *buf, const void *mask,
700 size_t len)
701 {
702 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
703 u8 sid = hwirq_to_sid(d->hwirq);
704 u8 per = hwirq_to_per(d->hwirq);
705 int rc;
706
707 rc = pmic_arb_masked_write(bus->spmic, sid, (per << 8) + reg, buf,
708 mask, len);
709 if (rc)
710 dev_err_ratelimited(&bus->spmic->dev, "failed irqchip transaction on %x rc=%d\n",
711 d->irq, rc);
712 return rc;
713 }
714
cleanup_irq(struct spmi_pmic_arb_bus * bus,u16 apid,int id)715 static void cleanup_irq(struct spmi_pmic_arb_bus *bus, u16 apid, int id)
716 {
717 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
718 u16 ppid = bus->apid_data[apid].ppid;
719 u8 sid = ppid >> 8;
720 u8 per = ppid & 0xFF;
721 u8 irq_mask = BIT(id);
722
723 dev_err_ratelimited(&bus->spmic->dev, "%s apid=%d sid=0x%x per=0x%x irq=%d\n",
724 __func__, apid, sid, per, id);
725 writel_relaxed(irq_mask, pmic_arb->ver_ops->irq_clear(bus, apid));
726 }
727
periph_interrupt(struct spmi_pmic_arb_bus * bus,u16 apid)728 static int periph_interrupt(struct spmi_pmic_arb_bus *bus, u16 apid)
729 {
730 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
731 unsigned int irq;
732 u32 status, id;
733 int handled = 0;
734 u8 sid = (bus->apid_data[apid].ppid >> 8) & 0x1F;
735 u8 per = bus->apid_data[apid].ppid & 0xFF;
736
737 status = readl_relaxed(pmic_arb->ver_ops->irq_status(bus, apid));
738 while (status) {
739 id = ffs(status) - 1;
740 status &= ~BIT(id);
741 irq = irq_find_mapping(bus->domain,
742 spec_to_hwirq(sid, per, id, apid));
743 if (irq == 0) {
744 cleanup_irq(bus, apid, id);
745 continue;
746 }
747 generic_handle_irq(irq);
748 handled++;
749 }
750
751 return handled;
752 }
753
pmic_arb_chained_irq(struct irq_desc * desc)754 static void pmic_arb_chained_irq(struct irq_desc *desc)
755 {
756 struct spmi_pmic_arb_bus *bus = irq_desc_get_handler_data(desc);
757 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
758 const struct pmic_arb_ver_ops *ver_ops = pmic_arb->ver_ops;
759 struct irq_chip *chip = irq_desc_get_chip(desc);
760 int first = bus->min_apid;
761 int last = bus->max_apid;
762 /*
763 * acc_offset will be non-zero for the secondary SPMI bus instance on
764 * v7 and v8 controllers.
765 */
766 int acc_offset = bus->base_apid >> 5;
767 u8 ee = pmic_arb->ee;
768 u32 status, enable, handled = 0;
769 int i, id, apid;
770 /* status based dispatch */
771 bool acc_valid = false;
772 u32 irq_status = 0;
773
774 chained_irq_enter(chip, desc);
775
776 for (i = first >> 5; i <= last >> 5; ++i) {
777 status = readl_relaxed(ver_ops->owner_acc_status(bus, ee, i - acc_offset));
778 if (status)
779 acc_valid = true;
780
781 while (status) {
782 id = ffs(status) - 1;
783 status &= ~BIT(id);
784 apid = id + i * 32;
785 if (apid < first || apid > last) {
786 WARN_ONCE(true, "spurious spmi irq received for apid=%d\n",
787 apid);
788 continue;
789 }
790 enable = readl_relaxed(
791 ver_ops->acc_enable(bus, apid));
792 if (enable & SPMI_PIC_ACC_ENABLE_BIT)
793 if (periph_interrupt(bus, apid) != 0)
794 handled++;
795 }
796 }
797
798 /* ACC_STATUS is empty but IRQ fired check IRQ_STATUS */
799 if (!acc_valid) {
800 for (i = first; i <= last; i++) {
801 /* skip if APPS is not irq owner */
802 if (bus->apid_data[i].irq_ee != pmic_arb->ee)
803 continue;
804
805 irq_status = readl_relaxed(
806 ver_ops->irq_status(bus, i));
807 if (irq_status) {
808 enable = readl_relaxed(
809 ver_ops->acc_enable(bus, i));
810 if (enable & SPMI_PIC_ACC_ENABLE_BIT) {
811 dev_dbg(&bus->spmic->dev,
812 "Dispatching IRQ for apid=%d status=%x\n",
813 i, irq_status);
814 if (periph_interrupt(bus, i) != 0)
815 handled++;
816 }
817 }
818 }
819 }
820
821 if (handled == 0)
822 handle_bad_irq(desc);
823
824 chained_irq_exit(chip, desc);
825 }
826
qpnpint_irq_ack(struct irq_data * d)827 static void qpnpint_irq_ack(struct irq_data *d)
828 {
829 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
830 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
831 u8 irq = hwirq_to_irq(d->hwirq);
832 u16 apid = hwirq_to_apid(d->hwirq);
833 u8 data;
834
835 writel_relaxed(BIT(irq), pmic_arb->ver_ops->irq_clear(bus, apid));
836
837 data = BIT(irq);
838 qpnpint_spmi_write(d, QPNPINT_REG_LATCHED_CLR, &data, 1);
839 }
840
qpnpint_irq_mask(struct irq_data * d)841 static void qpnpint_irq_mask(struct irq_data *d)
842 {
843 u8 irq = hwirq_to_irq(d->hwirq);
844 u8 data = BIT(irq);
845
846 qpnpint_spmi_write(d, QPNPINT_REG_EN_CLR, &data, 1);
847 }
848
qpnpint_irq_unmask(struct irq_data * d)849 static void qpnpint_irq_unmask(struct irq_data *d)
850 {
851 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
852 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
853 const struct pmic_arb_ver_ops *ver_ops = pmic_arb->ver_ops;
854 u8 irq = hwirq_to_irq(d->hwirq);
855 u16 apid = hwirq_to_apid(d->hwirq);
856 u8 buf[2];
857
858 writel_relaxed(SPMI_PIC_ACC_ENABLE_BIT,
859 ver_ops->acc_enable(bus, apid));
860
861 qpnpint_spmi_read(d, QPNPINT_REG_EN_SET, &buf[0], 1);
862 if (!(buf[0] & BIT(irq))) {
863 /*
864 * Since the interrupt is currently disabled, write to both the
865 * LATCHED_CLR and EN_SET registers so that a spurious interrupt
866 * cannot be triggered when the interrupt is enabled
867 */
868 buf[0] = BIT(irq);
869 buf[1] = BIT(irq);
870 qpnpint_spmi_write(d, QPNPINT_REG_LATCHED_CLR, &buf, 2);
871 }
872 }
873
qpnpint_irq_set_type(struct irq_data * d,unsigned int flow_type)874 static int qpnpint_irq_set_type(struct irq_data *d, unsigned int flow_type)
875 {
876 struct spmi_pmic_arb_qpnpint_type type = {0};
877 struct spmi_pmic_arb_qpnpint_type mask;
878 irq_flow_handler_t flow_handler;
879 u8 irq_bit = BIT(hwirq_to_irq(d->hwirq));
880 int rc;
881
882 if (flow_type & (IRQF_TRIGGER_RISING | IRQF_TRIGGER_FALLING)) {
883 type.type = irq_bit;
884 if (flow_type & IRQF_TRIGGER_RISING)
885 type.polarity_high = irq_bit;
886 if (flow_type & IRQF_TRIGGER_FALLING)
887 type.polarity_low = irq_bit;
888
889 flow_handler = handle_edge_irq;
890 } else {
891 if ((flow_type & (IRQF_TRIGGER_HIGH)) &&
892 (flow_type & (IRQF_TRIGGER_LOW)))
893 return -EINVAL;
894
895 if (flow_type & IRQF_TRIGGER_HIGH)
896 type.polarity_high = irq_bit;
897 else
898 type.polarity_low = irq_bit;
899
900 flow_handler = handle_level_irq;
901 }
902
903 mask.type = irq_bit;
904 mask.polarity_high = irq_bit;
905 mask.polarity_low = irq_bit;
906
907 rc = qpnpint_spmi_masked_write(d, QPNPINT_REG_SET_TYPE, &type, &mask,
908 sizeof(type));
909 irq_set_handler_locked(d, flow_handler);
910
911 return rc;
912 }
913
qpnpint_irq_set_wake(struct irq_data * d,unsigned int on)914 static int qpnpint_irq_set_wake(struct irq_data *d, unsigned int on)
915 {
916 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
917
918 return irq_set_irq_wake(bus->irq, on);
919 }
920
qpnpint_get_irqchip_state(struct irq_data * d,enum irqchip_irq_state which,bool * state)921 static int qpnpint_get_irqchip_state(struct irq_data *d,
922 enum irqchip_irq_state which,
923 bool *state)
924 {
925 u8 irq = hwirq_to_irq(d->hwirq);
926 u8 status = 0;
927
928 if (which != IRQCHIP_STATE_LINE_LEVEL)
929 return -EINVAL;
930
931 qpnpint_spmi_read(d, QPNPINT_REG_RT_STS, &status, 1);
932 *state = !!(status & BIT(irq));
933
934 return 0;
935 }
936
qpnpint_irq_domain_activate(struct irq_domain * domain,struct irq_data * d,bool reserve)937 static int qpnpint_irq_domain_activate(struct irq_domain *domain,
938 struct irq_data *d, bool reserve)
939 {
940 struct spmi_pmic_arb_bus *bus = irq_data_get_irq_chip_data(d);
941 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
942 u16 periph = hwirq_to_per(d->hwirq);
943 u16 apid = hwirq_to_apid(d->hwirq);
944 u16 sid = hwirq_to_sid(d->hwirq);
945 u16 irq = hwirq_to_irq(d->hwirq);
946 u8 buf;
947
948 if (bus->apid_data[apid].irq_ee != pmic_arb->ee) {
949 dev_err(&bus->spmic->dev, "failed to xlate sid = %#x, periph = %#x, irq = %u: ee=%u but owner=%u\n",
950 sid, periph, irq, pmic_arb->ee,
951 bus->apid_data[apid].irq_ee);
952 return -ENODEV;
953 }
954
955 buf = BIT(irq);
956 qpnpint_spmi_write(d, QPNPINT_REG_EN_CLR, &buf, 1);
957 qpnpint_spmi_write(d, QPNPINT_REG_LATCHED_CLR, &buf, 1);
958
959 return 0;
960 }
961
962 static struct irq_chip pmic_arb_irqchip = {
963 .name = "pmic_arb",
964 .irq_ack = qpnpint_irq_ack,
965 .irq_mask = qpnpint_irq_mask,
966 .irq_unmask = qpnpint_irq_unmask,
967 .irq_set_type = qpnpint_irq_set_type,
968 .irq_set_wake = qpnpint_irq_set_wake,
969 .irq_get_irqchip_state = qpnpint_get_irqchip_state,
970 .flags = IRQCHIP_MASK_ON_SUSPEND,
971 };
972
qpnpint_irq_domain_translate(struct irq_domain * d,struct irq_fwspec * fwspec,unsigned long * out_hwirq,unsigned int * out_type)973 static int qpnpint_irq_domain_translate(struct irq_domain *d,
974 struct irq_fwspec *fwspec,
975 unsigned long *out_hwirq,
976 unsigned int *out_type)
977 {
978 struct spmi_pmic_arb_bus *bus = d->host_data;
979 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
980 u32 *intspec = fwspec->param;
981 u16 apid, ppid;
982 int rc;
983
984 dev_dbg(&bus->spmic->dev, "intspec[0] 0x%1x intspec[1] 0x%02x intspec[2] 0x%02x\n",
985 intspec[0], intspec[1], intspec[2]);
986
987 if (irq_domain_get_of_node(d) != bus->spmic->dev.of_node)
988 return -EINVAL;
989 if (fwspec->param_count != 4)
990 return -EINVAL;
991 if (intspec[0] > FIELD_MAX(HWIRQ_SID_MASK) || intspec[1] > FIELD_MAX(HWIRQ_PID_MASK) ||
992 intspec[2] > FIELD_MAX(HWIRQ_IRQID_MASK))
993 return -EINVAL;
994
995 ppid = intspec[0] << 8 | intspec[1];
996 rc = pmic_arb->ver_ops->ppid_to_apid(bus, ppid);
997 if (rc < 0) {
998 dev_err(&bus->spmic->dev, "failed to xlate sid = %#x, periph = %#x, irq = %u rc = %d\n",
999 intspec[0], intspec[1], intspec[2], rc);
1000 return rc;
1001 }
1002
1003 apid = rc;
1004 /* Keep track of {max,min}_apid for bounding search during interrupt */
1005 if (apid > bus->max_apid)
1006 bus->max_apid = apid;
1007 if (apid < bus->min_apid)
1008 bus->min_apid = apid;
1009
1010 *out_hwirq = spec_to_hwirq(intspec[0], intspec[1], intspec[2], apid);
1011 *out_type = intspec[3] & IRQ_TYPE_SENSE_MASK;
1012
1013 dev_dbg(&bus->spmic->dev, "out_hwirq = %lu\n", *out_hwirq);
1014
1015 return 0;
1016 }
1017
1018 static struct lock_class_key qpnpint_irq_lock_class, qpnpint_irq_request_class;
1019
qpnpint_irq_domain_map(struct spmi_pmic_arb_bus * bus,struct irq_domain * domain,unsigned int virq,irq_hw_number_t hwirq,unsigned int type)1020 static void qpnpint_irq_domain_map(struct spmi_pmic_arb_bus *bus,
1021 struct irq_domain *domain, unsigned int virq,
1022 irq_hw_number_t hwirq, unsigned int type)
1023 {
1024 irq_flow_handler_t handler;
1025
1026 dev_dbg(&bus->spmic->dev, "virq = %u, hwirq = %lu, type = %u\n",
1027 virq, hwirq, type);
1028
1029 if (type & IRQ_TYPE_EDGE_BOTH)
1030 handler = handle_edge_irq;
1031 else
1032 handler = handle_level_irq;
1033
1034
1035 irq_set_lockdep_class(virq, &qpnpint_irq_lock_class,
1036 &qpnpint_irq_request_class);
1037 irq_domain_set_info(domain, virq, hwirq, &pmic_arb_irqchip, bus,
1038 handler, NULL, NULL);
1039 }
1040
qpnpint_irq_domain_alloc(struct irq_domain * domain,unsigned int virq,unsigned int nr_irqs,void * data)1041 static int qpnpint_irq_domain_alloc(struct irq_domain *domain,
1042 unsigned int virq, unsigned int nr_irqs,
1043 void *data)
1044 {
1045 struct spmi_pmic_arb_bus *bus = domain->host_data;
1046 struct irq_fwspec *fwspec = data;
1047 irq_hw_number_t hwirq;
1048 unsigned int type;
1049 int ret, i;
1050
1051 ret = qpnpint_irq_domain_translate(domain, fwspec, &hwirq, &type);
1052 if (ret)
1053 return ret;
1054
1055 for (i = 0; i < nr_irqs; i++)
1056 qpnpint_irq_domain_map(bus, domain, virq + i, hwirq + i,
1057 type);
1058
1059 return 0;
1060 }
1061
pmic_arb_init_apid_min_max(struct spmi_pmic_arb_bus * bus)1062 static int pmic_arb_init_apid_min_max(struct spmi_pmic_arb_bus *bus)
1063 {
1064 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1065
1066 /*
1067 * Initialize max_apid/min_apid to the opposite bounds, during
1068 * the irq domain translation, we are sure to update these
1069 */
1070 bus->max_apid = 0;
1071 bus->min_apid = pmic_arb->max_periphs - 1;
1072
1073 return 0;
1074 }
1075
pmic_arb_get_core_resources_v1(struct platform_device * pdev,void __iomem * core)1076 static int pmic_arb_get_core_resources_v1(struct platform_device *pdev,
1077 void __iomem *core)
1078 {
1079 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
1080
1081 pmic_arb->wr_base = core;
1082 pmic_arb->rd_base = core;
1083
1084 pmic_arb->max_periphs = PMIC_ARB_MAX_PERIPHS;
1085
1086 return 0;
1087 }
1088
pmic_arb_init_apid_v1(struct spmi_pmic_arb_bus * bus,int index)1089 static int pmic_arb_init_apid_v1(struct spmi_pmic_arb_bus *bus, int index)
1090 {
1091 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1092 u32 *mapping_table;
1093
1094 if (index) {
1095 dev_err(&bus->spmic->dev, "Unsupported buses count %d detected\n",
1096 index);
1097 return -EINVAL;
1098 }
1099
1100 mapping_table = devm_kcalloc(&bus->spmic->dev, pmic_arb->max_periphs,
1101 sizeof(*mapping_table), GFP_KERNEL);
1102 if (!mapping_table)
1103 return -ENOMEM;
1104
1105 bus->mapping_table = mapping_table;
1106
1107 return pmic_arb_init_apid_min_max(bus);
1108 }
1109
pmic_arb_ppid_to_apid_v1(struct spmi_pmic_arb_bus * bus,u16 ppid)1110 static int pmic_arb_ppid_to_apid_v1(struct spmi_pmic_arb_bus *bus, u16 ppid)
1111 {
1112 u32 *mapping_table = bus->mapping_table;
1113 int index = 0, i;
1114 u16 apid_valid;
1115 u16 apid;
1116 u32 data;
1117
1118 apid_valid = bus->ppid_to_apid[ppid];
1119 if (apid_valid & PMIC_ARB_APID_VALID) {
1120 apid = apid_valid & ~PMIC_ARB_APID_VALID;
1121 return apid;
1122 }
1123
1124 for (i = 0; i < SPMI_MAPPING_TABLE_TREE_DEPTH; ++i) {
1125 if (!test_and_set_bit(index, bus->mapping_table_valid))
1126 mapping_table[index] = readl_relaxed(bus->cnfg +
1127 SPMI_MAPPING_TABLE_REG(index));
1128
1129 data = mapping_table[index];
1130
1131 if (ppid & BIT(SPMI_MAPPING_BIT_INDEX(data))) {
1132 if (SPMI_MAPPING_BIT_IS_1_FLAG(data)) {
1133 index = SPMI_MAPPING_BIT_IS_1_RESULT(data);
1134 } else {
1135 apid = SPMI_MAPPING_BIT_IS_1_RESULT(data);
1136 bus->ppid_to_apid[ppid]
1137 = apid | PMIC_ARB_APID_VALID;
1138 bus->apid_data[apid].ppid = ppid;
1139 return apid;
1140 }
1141 } else {
1142 if (SPMI_MAPPING_BIT_IS_0_FLAG(data)) {
1143 index = SPMI_MAPPING_BIT_IS_0_RESULT(data);
1144 } else {
1145 apid = SPMI_MAPPING_BIT_IS_0_RESULT(data);
1146 bus->ppid_to_apid[ppid]
1147 = apid | PMIC_ARB_APID_VALID;
1148 bus->apid_data[apid].ppid = ppid;
1149 return apid;
1150 }
1151 }
1152 }
1153
1154 return -ENODEV;
1155 }
1156
1157 /* v1 offset per ee */
pmic_arb_offset_v1(struct spmi_pmic_arb_bus * bus,u8 sid,u16 addr,enum pmic_arb_channel ch_type)1158 static int pmic_arb_offset_v1(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
1159 enum pmic_arb_channel ch_type)
1160 {
1161 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1162 return 0x800 + 0x80 * pmic_arb->channel;
1163 }
1164
pmic_arb_find_apid(struct spmi_pmic_arb_bus * bus,u16 ppid)1165 static u16 pmic_arb_find_apid(struct spmi_pmic_arb_bus *bus, u16 ppid)
1166 {
1167 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1168 struct apid_data *apidd = &bus->apid_data[bus->last_apid];
1169 u32 regval, offset;
1170 u16 id, apid;
1171
1172 for (apid = bus->last_apid; ; apid++, apidd++) {
1173 offset = pmic_arb->ver_ops->apid_map_offset(apid);
1174 if (offset >= pmic_arb->core_size)
1175 break;
1176
1177 regval = readl_relaxed(pmic_arb->ver_ops->apid_owner(bus,
1178 apid));
1179 apidd->irq_ee = SPMI_OWNERSHIP_PERIPH2OWNER(regval);
1180 apidd->write_ee = apidd->irq_ee;
1181
1182 regval = readl_relaxed(pmic_arb->core + offset);
1183 if (!regval)
1184 continue;
1185
1186 id = (regval >> 8) & PMIC_ARB_PPID_MASK;
1187 bus->ppid_to_apid[id] = apid | PMIC_ARB_APID_VALID;
1188 apidd->ppid = id;
1189 if (id == ppid) {
1190 apid |= PMIC_ARB_APID_VALID;
1191 break;
1192 }
1193 }
1194 bus->last_apid = apid & ~PMIC_ARB_APID_VALID;
1195
1196 return apid;
1197 }
1198
pmic_arb_get_obsrvr_chnls_v2(struct platform_device * pdev)1199 static int pmic_arb_get_obsrvr_chnls_v2(struct platform_device *pdev)
1200 {
1201 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
1202
1203 pmic_arb->rd_base = devm_platform_ioremap_resource_byname(pdev, "obsrvr");
1204 if (IS_ERR(pmic_arb->rd_base))
1205 return PTR_ERR(pmic_arb->rd_base);
1206
1207 pmic_arb->wr_base = devm_platform_ioremap_resource_byname(pdev, "chnls");
1208 if (IS_ERR(pmic_arb->wr_base))
1209 return PTR_ERR(pmic_arb->wr_base);
1210
1211 return 0;
1212 }
1213
pmic_arb_get_core_resources_v2(struct platform_device * pdev,void __iomem * core)1214 static int pmic_arb_get_core_resources_v2(struct platform_device *pdev,
1215 void __iomem *core)
1216 {
1217 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
1218
1219 pmic_arb->core = core;
1220
1221 pmic_arb->max_periphs = PMIC_ARB_MAX_PERIPHS;
1222
1223 return pmic_arb_get_obsrvr_chnls_v2(pdev);
1224 }
1225
pmic_arb_ppid_to_apid_v2(struct spmi_pmic_arb_bus * bus,u16 ppid)1226 static int pmic_arb_ppid_to_apid_v2(struct spmi_pmic_arb_bus *bus, u16 ppid)
1227 {
1228 u16 apid_valid;
1229
1230 apid_valid = bus->ppid_to_apid[ppid];
1231 if (!(apid_valid & PMIC_ARB_APID_VALID))
1232 apid_valid = pmic_arb_find_apid(bus, ppid);
1233 if (!(apid_valid & PMIC_ARB_APID_VALID))
1234 return -ENODEV;
1235
1236 return apid_valid & ~PMIC_ARB_APID_VALID;
1237 }
1238
_pmic_arb_read_apid_map(struct spmi_pmic_arb_bus * bus,void __iomem * ppid_base,unsigned long ppid_mask,u8 ppid_shift,unsigned long irq_owner_mask)1239 static int _pmic_arb_read_apid_map(struct spmi_pmic_arb_bus *bus,
1240 void __iomem *ppid_base, unsigned long ppid_mask,
1241 u8 ppid_shift, unsigned long irq_owner_mask)
1242 {
1243 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1244 struct apid_data *apidd;
1245 struct apid_data *prev_apidd;
1246 u16 i, apid, ppid, apid_max;
1247 bool valid, is_irq_ee;
1248 u32 regval, offset;
1249
1250 /*
1251 * In order to allow multiple EEs to write to a single PPID in arbiter
1252 * version 5,7 and 8, there can be more than one APID mapped to each PPID.
1253 * The owner field for each of these mappings specifies the EE which is
1254 * allowed to write to the APID. The owner of the last (highest) APID
1255 * which has the IRQ owner bit set for a given PPID will receive
1256 * interrupts from the PPID.
1257 *
1258 * In arbiter version 7, the APID numbering space is divided between
1259 * the primary bus (0) and secondary bus (1) such that:
1260 * APID = 0 to N-1 are assigned to the primary bus
1261 * APID = N to N+M-1 are assigned to the secondary bus
1262 * where N = number of APIDs supported by the primary bus and
1263 * M = number of APIDs supported by the secondary bus
1264 *
1265 * In arbiter version 8, the APID numbering space is divided between
1266 * the SPMI buses according to this mapping:
1267 * APID = 0 to N-1 --> bus 0
1268 * APID = N to N+M-1 --> bus 1
1269 * APID = N+M to N+M+P-1 --> bus 2
1270 * APID = N+M+P to N+M+P+Q-1 --> bus 3
1271 * where N = number of APIDs supported by bus 0
1272 * M = number of APIDs supported by bus 1
1273 * P = number of APIDs supported by bus 2
1274 * Q = number of APIDs supported by bus 3
1275 */
1276
1277 apidd = &bus->apid_data[bus->base_apid];
1278 apid_max = bus->base_apid + bus->apid_count;
1279 for (i = bus->base_apid; i < apid_max; i++, apidd++) {
1280 offset = pmic_arb->ver_ops->apid_map_offset(i);
1281 if (offset >= pmic_arb->core_size)
1282 break;
1283 regval = readl_relaxed(ppid_base + offset);
1284 if (!regval)
1285 continue;
1286 ppid = (regval >> ppid_shift) & ppid_mask;
1287 is_irq_ee = regval & irq_owner_mask;
1288
1289 regval = readl_relaxed(pmic_arb->ver_ops->apid_owner(bus, i));
1290 apidd->write_ee = SPMI_OWNERSHIP_PERIPH2OWNER(regval);
1291
1292 apidd->irq_ee = is_irq_ee ? apidd->write_ee : INVALID_EE;
1293
1294 valid = bus->ppid_to_apid[ppid] & PMIC_ARB_APID_VALID;
1295 apid = bus->ppid_to_apid[ppid] & ~PMIC_ARB_APID_VALID;
1296 prev_apidd = &bus->apid_data[apid];
1297
1298 if (!valid || apidd->write_ee == pmic_arb->ee) {
1299 /* First PPID mapping or one for this EE */
1300 bus->ppid_to_apid[ppid] = i | PMIC_ARB_APID_VALID;
1301 } else if (valid && is_irq_ee &&
1302 prev_apidd->write_ee == pmic_arb->ee) {
1303 /*
1304 * Duplicate PPID mapping after the one for this EE;
1305 * override the irq owner
1306 */
1307 prev_apidd->irq_ee = apidd->irq_ee;
1308 }
1309
1310 apidd->ppid = ppid;
1311 bus->last_apid = i;
1312 }
1313
1314 /* Dump the mapping table for debug purposes. */
1315 dev_dbg(&bus->spmic->dev, "PPID APID Write-EE IRQ-EE\n");
1316 for (ppid = 0; ppid < PMIC_ARB_MAX_PPID; ppid++) {
1317 apid = bus->ppid_to_apid[ppid];
1318 if (apid & PMIC_ARB_APID_VALID) {
1319 apid &= ~PMIC_ARB_APID_VALID;
1320 apidd = &bus->apid_data[apid];
1321 dev_dbg(&bus->spmic->dev, "%#03X %3u %2u %2u\n",
1322 ppid, apid, apidd->write_ee, apidd->irq_ee);
1323 }
1324 }
1325
1326 return 0;
1327 }
1328
pmic_arb_read_apid_map_v5(struct spmi_pmic_arb_bus * bus)1329 static int pmic_arb_read_apid_map_v5(struct spmi_pmic_arb_bus *bus)
1330 {
1331 return _pmic_arb_read_apid_map(bus, bus->pmic_arb->core, PMIC_ARB_PPID_MASK,
1332 8, PMIC_ARB_CHAN_IS_IRQ_OWNER_MASK);
1333 }
1334
pmic_arb_ppid_to_apid_v5(struct spmi_pmic_arb_bus * bus,u16 ppid)1335 static int pmic_arb_ppid_to_apid_v5(struct spmi_pmic_arb_bus *bus, u16 ppid)
1336 {
1337 if (!(bus->ppid_to_apid[ppid] & PMIC_ARB_APID_VALID))
1338 return -ENODEV;
1339
1340 return bus->ppid_to_apid[ppid] & ~PMIC_ARB_APID_VALID;
1341 }
1342
1343 /* v2 offset per ppid and per ee */
pmic_arb_offset_v2(struct spmi_pmic_arb_bus * bus,u8 sid,u16 addr,enum pmic_arb_channel ch_type)1344 static int pmic_arb_offset_v2(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
1345 enum pmic_arb_channel ch_type)
1346 {
1347 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1348 u16 apid;
1349 u16 ppid;
1350 int rc;
1351
1352 ppid = sid << 8 | ((addr >> 8) & 0xFF);
1353 rc = pmic_arb_ppid_to_apid_v2(bus, ppid);
1354 if (rc < 0)
1355 return rc;
1356
1357 apid = rc;
1358 return 0x1000 * pmic_arb->ee + 0x8000 * apid;
1359 }
1360
pmic_arb_init_apid_v5(struct spmi_pmic_arb_bus * bus,int index)1361 static int pmic_arb_init_apid_v5(struct spmi_pmic_arb_bus *bus, int index)
1362 {
1363 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1364 int ret;
1365
1366 if (index) {
1367 dev_err(&bus->spmic->dev, "Unsupported buses count %d detected\n",
1368 index);
1369 return -EINVAL;
1370 }
1371
1372 bus->base_apid = 0;
1373 bus->apid_count = readl_relaxed(pmic_arb->core + PMIC_ARB_FEATURES) &
1374 PMIC_ARB_FEATURES_PERIPH_MASK;
1375
1376 if (bus->base_apid + bus->apid_count > pmic_arb->max_periphs) {
1377 dev_err(&bus->spmic->dev, "Unsupported APID count %d detected\n",
1378 bus->base_apid + bus->apid_count);
1379 return -EINVAL;
1380 }
1381
1382 ret = pmic_arb_init_apid_min_max(bus);
1383 if (ret)
1384 return ret;
1385
1386 ret = pmic_arb_read_apid_map_v5(bus);
1387 if (ret) {
1388 dev_err(&bus->spmic->dev, "could not read APID->PPID mapping table, rc= %d\n",
1389 ret);
1390 return ret;
1391 }
1392
1393 return 0;
1394 }
1395
1396 /*
1397 * v5 offset per ee and per apid for observer channels and per apid for
1398 * read/write channels.
1399 */
pmic_arb_offset_v5(struct spmi_pmic_arb_bus * bus,u8 sid,u16 addr,enum pmic_arb_channel ch_type)1400 static int pmic_arb_offset_v5(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
1401 enum pmic_arb_channel ch_type)
1402 {
1403 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1404 u16 apid;
1405 int rc;
1406 u32 offset = 0;
1407 u16 ppid = (sid << 8) | (addr >> 8);
1408
1409 rc = pmic_arb_ppid_to_apid_v5(bus, ppid);
1410 if (rc < 0)
1411 return rc;
1412
1413 apid = rc;
1414 switch (ch_type) {
1415 case PMIC_ARB_CHANNEL_OBS:
1416 offset = 0x10000 * pmic_arb->ee + 0x80 * apid;
1417 break;
1418 case PMIC_ARB_CHANNEL_RW:
1419 if (bus->apid_data[apid].write_ee != pmic_arb->ee) {
1420 dev_err(&bus->spmic->dev, "disallowed SPMI write to sid=%u, addr=0x%04X\n",
1421 sid, addr);
1422 return -EPERM;
1423 }
1424 offset = 0x10000 * apid;
1425 break;
1426 }
1427
1428 return offset;
1429 }
1430
pmic_arb_get_core_resources_v7(struct platform_device * pdev,void __iomem * core)1431 static int pmic_arb_get_core_resources_v7(struct platform_device *pdev,
1432 void __iomem *core)
1433 {
1434 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
1435
1436 pmic_arb->core = core;
1437
1438 pmic_arb->max_periphs = PMIC_ARB_MAX_PERIPHS_V7;
1439
1440 return pmic_arb_get_obsrvr_chnls_v2(pdev);
1441 }
1442
_pmic_arb_init_apid_v7(struct spmi_pmic_arb_bus * bus,int index,int max_buses,unsigned long periph_mask)1443 static int _pmic_arb_init_apid_v7(struct spmi_pmic_arb_bus *bus, int index,
1444 int max_buses, unsigned long periph_mask)
1445 {
1446 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1447 int i;
1448
1449 if (index < 0 || index >= max_buses) {
1450 dev_err(&bus->spmic->dev, "Unsupported bus index %d detected\n",
1451 index);
1452 return -EINVAL;
1453 }
1454
1455 bus->base_apid = 0;
1456 bus->apid_count = 0;
1457 for (i = 0; i <= index; i++) {
1458 bus->base_apid += bus->apid_count;
1459 bus->apid_count = readl_relaxed(pmic_arb->core +
1460 PMIC_ARB_FEATURES + i * 4) &
1461 periph_mask;
1462 }
1463
1464 if (bus->apid_count == 0) {
1465 dev_err(&bus->spmic->dev, "Bus %d not implemented\n", index);
1466 return -EINVAL;
1467 } else if (bus->base_apid + bus->apid_count > pmic_arb->max_periphs) {
1468 dev_err(&bus->spmic->dev, "Unsupported max APID %d detected\n",
1469 bus->base_apid + bus->apid_count);
1470 return -EINVAL;
1471 }
1472
1473 return pmic_arb_init_apid_min_max(bus);
1474 }
1475
1476 /*
1477 * Arbiter v7 supports 2 buses. Each bus will get a different apid count, read
1478 * from different registers.
1479 */
pmic_arb_init_apid_v7(struct spmi_pmic_arb_bus * bus,int index)1480 static int pmic_arb_init_apid_v7(struct spmi_pmic_arb_bus *bus, int index)
1481 {
1482 int ret = _pmic_arb_init_apid_v7(bus, index, 2, PMIC_ARB_FEATURES_PERIPH_MASK);
1483 if (ret)
1484 return ret;
1485
1486 ret = pmic_arb_read_apid_map_v5(bus);
1487 if (ret) {
1488 dev_err(&bus->spmic->dev, "could not read APID->PPID mapping table, rc= %d\n",
1489 ret);
1490 return ret;
1491 }
1492
1493 return 0;
1494 }
1495
1496 /*
1497 * v7 offset per ee and per apid for observer channels and per apid for
1498 * read/write channels.
1499 */
pmic_arb_offset_v7(struct spmi_pmic_arb_bus * bus,u8 sid,u16 addr,enum pmic_arb_channel ch_type)1500 static int pmic_arb_offset_v7(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
1501 enum pmic_arb_channel ch_type)
1502 {
1503 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1504 u16 apid;
1505 int rc;
1506 u32 offset = 0;
1507 u16 ppid = (sid << 8) | (addr >> 8);
1508
1509 rc = pmic_arb->ver_ops->ppid_to_apid(bus, ppid);
1510 if (rc < 0)
1511 return rc;
1512
1513 apid = rc;
1514 switch (ch_type) {
1515 case PMIC_ARB_CHANNEL_OBS:
1516 offset = 0x8000 * pmic_arb->ee + 0x20 * apid;
1517 break;
1518 case PMIC_ARB_CHANNEL_RW:
1519 if (bus->apid_data[apid].write_ee != pmic_arb->ee) {
1520 dev_err(&bus->spmic->dev, "disallowed SPMI write to sid=%u, addr=0x%04X\n",
1521 sid, addr);
1522 return -EPERM;
1523 }
1524 offset = 0x1000 * apid;
1525 break;
1526 }
1527
1528 return offset;
1529 }
1530
pmic_arb_get_core_resources_v8(struct platform_device * pdev,void __iomem * core)1531 static int pmic_arb_get_core_resources_v8(struct platform_device *pdev,
1532 void __iomem *core)
1533 {
1534 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
1535
1536 pmic_arb->apid_map = devm_platform_ioremap_resource_byname(pdev, "chnl_map");
1537 if (IS_ERR(pmic_arb->apid_map))
1538 return PTR_ERR(pmic_arb->apid_map);
1539
1540 pmic_arb->core = core;
1541
1542 pmic_arb->max_periphs = PMIC_ARB_MAX_PERIPHS_V8;
1543
1544 return pmic_arb_get_obsrvr_chnls_v2(pdev);
1545 }
1546
pmic_arb_get_bus_resources_v8(struct platform_device * pdev,struct device_node * node,struct spmi_pmic_arb_bus * bus)1547 static int pmic_arb_get_bus_resources_v8(struct platform_device *pdev,
1548 struct device_node *node,
1549 struct spmi_pmic_arb_bus *bus)
1550 {
1551 int index;
1552
1553 index = of_property_match_string(node, "reg-names", "chnl_owner");
1554 if (index < 0) {
1555 dev_err(&pdev->dev, "chnl_owner reg region missing\n");
1556 return -EINVAL;
1557 }
1558
1559 bus->apid_owner = devm_of_iomap(&pdev->dev, node, index, NULL);
1560
1561 return PTR_ERR_OR_ZERO(bus->apid_owner);
1562 }
1563
pmic_arb_read_apid_map_v8(struct spmi_pmic_arb_bus * bus)1564 static int pmic_arb_read_apid_map_v8(struct spmi_pmic_arb_bus *bus)
1565 {
1566 return _pmic_arb_read_apid_map(bus, bus->pmic_arb->apid_map,
1567 PMIC_ARB_V8_PPID_MASK, 0,
1568 PMIC_ARB_V8_CHAN_IS_IRQ_OWNER_MASK);
1569 }
1570
1571 /*
1572 * Arbiter v8 supports up to 4 buses. Each bus will get a different apid count, read
1573 * from different registers.
1574 */
pmic_arb_init_apid_v8(struct spmi_pmic_arb_bus * bus,int index)1575 static int pmic_arb_init_apid_v8(struct spmi_pmic_arb_bus *bus, int index)
1576 {
1577 int ret = _pmic_arb_init_apid_v7(bus, index, 4,
1578 PMIC_ARB_FEATURES_V8_PERIPH_MASK);
1579 if (ret)
1580 return ret;
1581
1582 ret = pmic_arb_read_apid_map_v8(bus);
1583 if (ret) {
1584 dev_err(&bus->spmic->dev, "could not read APID->PPID mapping table, rc= %d\n",
1585 ret);
1586 return ret;
1587 }
1588
1589 return 0;
1590 }
1591
1592 /*
1593 * v8 offset per ee and per apid for observer channels and per apid for
1594 * read/write channels.
1595 */
pmic_arb_offset_v8(struct spmi_pmic_arb_bus * bus,u8 sid,u16 addr,enum pmic_arb_channel ch_type)1596 static int pmic_arb_offset_v8(struct spmi_pmic_arb_bus *bus, u8 sid, u16 addr,
1597 enum pmic_arb_channel ch_type)
1598 {
1599 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1600 u16 apid;
1601 int rc;
1602 u32 offset = 0;
1603 u16 ppid = (sid << 8) | (addr >> 8);
1604
1605 rc = pmic_arb->ver_ops->ppid_to_apid(bus, ppid);
1606 if (rc < 0)
1607 return rc;
1608
1609 apid = rc;
1610 switch (ch_type) {
1611 case PMIC_ARB_CHANNEL_OBS:
1612 offset = 0x40000 * pmic_arb->ee + 0x20 * apid;
1613 break;
1614 case PMIC_ARB_CHANNEL_RW:
1615 if (bus->apid_data[apid].write_ee != pmic_arb->ee) {
1616 dev_err(&bus->spmic->dev, "disallowed SPMI write to sid=%u, addr=0x%04X\n",
1617 sid, addr);
1618 return -EPERM;
1619 }
1620 offset = 0x200 * apid;
1621 break;
1622 }
1623
1624 return offset;
1625 }
1626
pmic_arb_fmt_cmd_v1(u8 opc,u8 sid,u16 addr,u8 bc)1627 static u32 pmic_arb_fmt_cmd_v1(u8 opc, u8 sid, u16 addr, u8 bc)
1628 {
1629 return (opc << 27) | ((sid & 0xf) << 20) | (addr << 4) | (bc & 0x7);
1630 }
1631
pmic_arb_fmt_cmd_v2(u8 opc,u8 sid,u16 addr,u8 bc)1632 static u32 pmic_arb_fmt_cmd_v2(u8 opc, u8 sid, u16 addr, u8 bc)
1633 {
1634 return (opc << 27) | ((addr & 0xff) << 4) | (bc & 0x7);
1635 }
1636
1637 static void __iomem *
pmic_arb_owner_acc_status_v1(struct spmi_pmic_arb_bus * bus,u8 m,u16 n)1638 pmic_arb_owner_acc_status_v1(struct spmi_pmic_arb_bus *bus, u8 m, u16 n)
1639 {
1640 return bus->intr + 0x20 * m + 0x4 * n;
1641 }
1642
1643 static void __iomem *
pmic_arb_owner_acc_status_v2(struct spmi_pmic_arb_bus * bus,u8 m,u16 n)1644 pmic_arb_owner_acc_status_v2(struct spmi_pmic_arb_bus *bus, u8 m, u16 n)
1645 {
1646 return bus->intr + 0x100000 + 0x1000 * m + 0x4 * n;
1647 }
1648
1649 static void __iomem *
pmic_arb_owner_acc_status_v3(struct spmi_pmic_arb_bus * bus,u8 m,u16 n)1650 pmic_arb_owner_acc_status_v3(struct spmi_pmic_arb_bus *bus, u8 m, u16 n)
1651 {
1652 return bus->intr + 0x200000 + 0x1000 * m + 0x4 * n;
1653 }
1654
1655 static void __iomem *
pmic_arb_owner_acc_status_v5(struct spmi_pmic_arb_bus * bus,u8 m,u16 n)1656 pmic_arb_owner_acc_status_v5(struct spmi_pmic_arb_bus *bus, u8 m, u16 n)
1657 {
1658 return bus->intr + 0x10000 * m + 0x4 * n;
1659 }
1660
1661 static void __iomem *
pmic_arb_owner_acc_status_v7(struct spmi_pmic_arb_bus * bus,u8 m,u16 n)1662 pmic_arb_owner_acc_status_v7(struct spmi_pmic_arb_bus *bus, u8 m, u16 n)
1663 {
1664 return bus->intr + 0x1000 * m + 0x4 * n;
1665 }
1666
1667 static void __iomem *
pmic_arb_acc_enable_v1(struct spmi_pmic_arb_bus * bus,u16 n)1668 pmic_arb_acc_enable_v1(struct spmi_pmic_arb_bus *bus, u16 n)
1669 {
1670 return bus->intr + 0x200 + 0x4 * n;
1671 }
1672
1673 static void __iomem *
pmic_arb_acc_enable_v2(struct spmi_pmic_arb_bus * bus,u16 n)1674 pmic_arb_acc_enable_v2(struct spmi_pmic_arb_bus *bus, u16 n)
1675 {
1676 return bus->intr + 0x1000 * n;
1677 }
1678
1679 static void __iomem *
pmic_arb_acc_enable_v5(struct spmi_pmic_arb_bus * bus,u16 n)1680 pmic_arb_acc_enable_v5(struct spmi_pmic_arb_bus *bus, u16 n)
1681 {
1682 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1683 return pmic_arb->wr_base + 0x100 + 0x10000 * n;
1684 }
1685
1686 static void __iomem *
pmic_arb_acc_enable_v7(struct spmi_pmic_arb_bus * bus,u16 n)1687 pmic_arb_acc_enable_v7(struct spmi_pmic_arb_bus *bus, u16 n)
1688 {
1689 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1690 return pmic_arb->wr_base + 0x100 + 0x1000 * n;
1691 }
1692
1693 static void __iomem *
pmic_arb_acc_enable_v8(struct spmi_pmic_arb_bus * bus,u16 n)1694 pmic_arb_acc_enable_v8(struct spmi_pmic_arb_bus *bus, u16 n)
1695 {
1696 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1697
1698 return pmic_arb->wr_base + 0x100 + 0x200 * n;
1699 }
1700
1701 static void __iomem *
pmic_arb_irq_status_v1(struct spmi_pmic_arb_bus * bus,u16 n)1702 pmic_arb_irq_status_v1(struct spmi_pmic_arb_bus *bus, u16 n)
1703 {
1704 return bus->intr + 0x600 + 0x4 * n;
1705 }
1706
1707 static void __iomem *
pmic_arb_irq_status_v2(struct spmi_pmic_arb_bus * bus,u16 n)1708 pmic_arb_irq_status_v2(struct spmi_pmic_arb_bus *bus, u16 n)
1709 {
1710 return bus->intr + 0x4 + 0x1000 * n;
1711 }
1712
1713 static void __iomem *
pmic_arb_irq_status_v5(struct spmi_pmic_arb_bus * bus,u16 n)1714 pmic_arb_irq_status_v5(struct spmi_pmic_arb_bus *bus, u16 n)
1715 {
1716 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1717 return pmic_arb->wr_base + 0x104 + 0x10000 * n;
1718 }
1719
1720 static void __iomem *
pmic_arb_irq_status_v7(struct spmi_pmic_arb_bus * bus,u16 n)1721 pmic_arb_irq_status_v7(struct spmi_pmic_arb_bus *bus, u16 n)
1722 {
1723 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1724 return pmic_arb->wr_base + 0x104 + 0x1000 * n;
1725 }
1726
1727 static void __iomem *
pmic_arb_irq_status_v8(struct spmi_pmic_arb_bus * bus,u16 n)1728 pmic_arb_irq_status_v8(struct spmi_pmic_arb_bus *bus, u16 n)
1729 {
1730 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1731
1732 return pmic_arb->wr_base + 0x104 + 0x200 * n;
1733 }
1734
1735 static void __iomem *
pmic_arb_irq_clear_v1(struct spmi_pmic_arb_bus * bus,u16 n)1736 pmic_arb_irq_clear_v1(struct spmi_pmic_arb_bus *bus, u16 n)
1737 {
1738 return bus->intr + 0xA00 + 0x4 * n;
1739 }
1740
1741 static void __iomem *
pmic_arb_irq_clear_v2(struct spmi_pmic_arb_bus * bus,u16 n)1742 pmic_arb_irq_clear_v2(struct spmi_pmic_arb_bus *bus, u16 n)
1743 {
1744 return bus->intr + 0x8 + 0x1000 * n;
1745 }
1746
1747 static void __iomem *
pmic_arb_irq_clear_v5(struct spmi_pmic_arb_bus * bus,u16 n)1748 pmic_arb_irq_clear_v5(struct spmi_pmic_arb_bus *bus, u16 n)
1749 {
1750 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1751 return pmic_arb->wr_base + 0x108 + 0x10000 * n;
1752 }
1753
1754 static void __iomem *
pmic_arb_irq_clear_v7(struct spmi_pmic_arb_bus * bus,u16 n)1755 pmic_arb_irq_clear_v7(struct spmi_pmic_arb_bus *bus, u16 n)
1756 {
1757 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1758 return pmic_arb->wr_base + 0x108 + 0x1000 * n;
1759 }
1760
1761 static void __iomem *
pmic_arb_irq_clear_v8(struct spmi_pmic_arb_bus * bus,u16 n)1762 pmic_arb_irq_clear_v8(struct spmi_pmic_arb_bus *bus, u16 n)
1763 {
1764 struct spmi_pmic_arb *pmic_arb = bus->pmic_arb;
1765
1766 return pmic_arb->wr_base + 0x108 + 0x200 * n;
1767 }
1768
pmic_arb_apid_map_offset_v2(u16 n)1769 static u32 pmic_arb_apid_map_offset_v2(u16 n)
1770 {
1771 return 0x800 + 0x4 * n;
1772 }
1773
pmic_arb_apid_map_offset_v5(u16 n)1774 static u32 pmic_arb_apid_map_offset_v5(u16 n)
1775 {
1776 return 0x900 + 0x4 * n;
1777 }
1778
pmic_arb_apid_map_offset_v7(u16 n)1779 static u32 pmic_arb_apid_map_offset_v7(u16 n)
1780 {
1781 return 0x2000 + 0x4 * n;
1782 }
1783
pmic_arb_apid_map_offset_v8(u16 n)1784 static u32 pmic_arb_apid_map_offset_v8(u16 n)
1785 {
1786 /* For v8, offset is from "chnl_map" base register, not "core". */
1787 return 0x4 * n;
1788 }
1789
1790 static void __iomem *
pmic_arb_apid_owner_v2(struct spmi_pmic_arb_bus * bus,u16 n)1791 pmic_arb_apid_owner_v2(struct spmi_pmic_arb_bus *bus, u16 n)
1792 {
1793 return bus->cnfg + 0x700 + 0x4 * n;
1794 }
1795
1796 /*
1797 * For arbiter version 7 and 8, APID ownership table registers have independent
1798 * numbering space for each SPMI bus instance, so each is indexed starting from
1799 * 0.
1800 */
1801 static void __iomem *
pmic_arb_apid_owner_v7(struct spmi_pmic_arb_bus * bus,u16 n)1802 pmic_arb_apid_owner_v7(struct spmi_pmic_arb_bus *bus, u16 n)
1803 {
1804 return bus->cnfg + 0x4 * (n - bus->base_apid);
1805 }
1806
1807 static void __iomem *
pmic_arb_apid_owner_v8(struct spmi_pmic_arb_bus * bus,u16 n)1808 pmic_arb_apid_owner_v8(struct spmi_pmic_arb_bus *bus, u16 n)
1809 {
1810 return bus->apid_owner + 0x4 * (n - bus->base_apid);
1811 }
1812
1813 static const struct pmic_arb_ver_ops pmic_arb_v1 = {
1814 .ver_str = "v1",
1815 .get_core_resources = pmic_arb_get_core_resources_v1,
1816 .init_apid = pmic_arb_init_apid_v1,
1817 .ppid_to_apid = pmic_arb_ppid_to_apid_v1,
1818 .non_data_cmd = pmic_arb_non_data_cmd_v1,
1819 .offset = pmic_arb_offset_v1,
1820 .fmt_cmd = pmic_arb_fmt_cmd_v1,
1821 .owner_acc_status = pmic_arb_owner_acc_status_v1,
1822 .acc_enable = pmic_arb_acc_enable_v1,
1823 .irq_status = pmic_arb_irq_status_v1,
1824 .irq_clear = pmic_arb_irq_clear_v1,
1825 .apid_map_offset = pmic_arb_apid_map_offset_v2,
1826 .apid_owner = pmic_arb_apid_owner_v2,
1827 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1828 };
1829
1830 static const struct pmic_arb_ver_ops pmic_arb_v2 = {
1831 .ver_str = "v2",
1832 .get_core_resources = pmic_arb_get_core_resources_v2,
1833 .init_apid = pmic_arb_init_apid_v1,
1834 .ppid_to_apid = pmic_arb_ppid_to_apid_v2,
1835 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1836 .offset = pmic_arb_offset_v2,
1837 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1838 .owner_acc_status = pmic_arb_owner_acc_status_v2,
1839 .acc_enable = pmic_arb_acc_enable_v2,
1840 .irq_status = pmic_arb_irq_status_v2,
1841 .irq_clear = pmic_arb_irq_clear_v2,
1842 .apid_map_offset = pmic_arb_apid_map_offset_v2,
1843 .apid_owner = pmic_arb_apid_owner_v2,
1844 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1845 };
1846
1847 static const struct pmic_arb_ver_ops pmic_arb_v3 = {
1848 .ver_str = "v3",
1849 .get_core_resources = pmic_arb_get_core_resources_v2,
1850 .init_apid = pmic_arb_init_apid_v1,
1851 .ppid_to_apid = pmic_arb_ppid_to_apid_v2,
1852 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1853 .offset = pmic_arb_offset_v2,
1854 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1855 .owner_acc_status = pmic_arb_owner_acc_status_v3,
1856 .acc_enable = pmic_arb_acc_enable_v2,
1857 .irq_status = pmic_arb_irq_status_v2,
1858 .irq_clear = pmic_arb_irq_clear_v2,
1859 .apid_map_offset = pmic_arb_apid_map_offset_v2,
1860 .apid_owner = pmic_arb_apid_owner_v2,
1861 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1862 };
1863
1864 static const struct pmic_arb_ver_ops pmic_arb_v5 = {
1865 .ver_str = "v5",
1866 .get_core_resources = pmic_arb_get_core_resources_v2,
1867 .init_apid = pmic_arb_init_apid_v5,
1868 .ppid_to_apid = pmic_arb_ppid_to_apid_v5,
1869 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1870 .offset = pmic_arb_offset_v5,
1871 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1872 .owner_acc_status = pmic_arb_owner_acc_status_v5,
1873 .acc_enable = pmic_arb_acc_enable_v5,
1874 .irq_status = pmic_arb_irq_status_v5,
1875 .irq_clear = pmic_arb_irq_clear_v5,
1876 .apid_map_offset = pmic_arb_apid_map_offset_v5,
1877 .apid_owner = pmic_arb_apid_owner_v2,
1878 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1879 };
1880
1881 static const struct pmic_arb_ver_ops pmic_arb_v7 = {
1882 .ver_str = "v7",
1883 .get_core_resources = pmic_arb_get_core_resources_v7,
1884 .init_apid = pmic_arb_init_apid_v7,
1885 .ppid_to_apid = pmic_arb_ppid_to_apid_v5,
1886 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1887 .offset = pmic_arb_offset_v7,
1888 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1889 .owner_acc_status = pmic_arb_owner_acc_status_v7,
1890 .acc_enable = pmic_arb_acc_enable_v7,
1891 .irq_status = pmic_arb_irq_status_v7,
1892 .irq_clear = pmic_arb_irq_clear_v7,
1893 .apid_map_offset = pmic_arb_apid_map_offset_v7,
1894 .apid_owner = pmic_arb_apid_owner_v7,
1895 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1896 };
1897
1898 static const struct pmic_arb_ver_ops pmic_arb_v8 = {
1899 .ver_str = "v8",
1900 .get_core_resources = pmic_arb_get_core_resources_v8,
1901 .get_bus_resources = pmic_arb_get_bus_resources_v8,
1902 .init_apid = pmic_arb_init_apid_v8,
1903 .ppid_to_apid = pmic_arb_ppid_to_apid_v5,
1904 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1905 .offset = pmic_arb_offset_v8,
1906 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1907 .owner_acc_status = pmic_arb_owner_acc_status_v7,
1908 .acc_enable = pmic_arb_acc_enable_v8,
1909 .irq_status = pmic_arb_irq_status_v8,
1910 .irq_clear = pmic_arb_irq_clear_v8,
1911 .apid_map_offset = pmic_arb_apid_map_offset_v8,
1912 .apid_owner = pmic_arb_apid_owner_v8,
1913 .check_chnl_status = pmic_arb_check_chnl_status_v1,
1914 };
1915
1916 static const struct pmic_arb_ver_ops pmic_arb_v8p5 = {
1917 .ver_str = "v8.5",
1918 .get_core_resources = pmic_arb_get_core_resources_v8,
1919 .get_bus_resources = pmic_arb_get_bus_resources_v8,
1920 .init_apid = pmic_arb_init_apid_v8,
1921 .ppid_to_apid = pmic_arb_ppid_to_apid_v5,
1922 .non_data_cmd = pmic_arb_non_data_cmd_v2,
1923 .offset = pmic_arb_offset_v8,
1924 .fmt_cmd = pmic_arb_fmt_cmd_v2,
1925 .owner_acc_status = pmic_arb_owner_acc_status_v7,
1926 .acc_enable = pmic_arb_acc_enable_v8,
1927 .irq_status = pmic_arb_irq_status_v8,
1928 .irq_clear = pmic_arb_irq_clear_v8,
1929 .apid_map_offset = pmic_arb_apid_map_offset_v8,
1930 .apid_owner = pmic_arb_apid_owner_v8,
1931 .check_chnl_status = pmic_arb_check_chnl_status_v8p5,
1932 };
1933
1934 static const struct irq_domain_ops pmic_arb_irq_domain_ops = {
1935 .activate = qpnpint_irq_domain_activate,
1936 .alloc = qpnpint_irq_domain_alloc,
1937 .free = irq_domain_free_irqs_common,
1938 .translate = qpnpint_irq_domain_translate,
1939 };
1940
spmi_pmic_arb_bus_init(struct platform_device * pdev,struct device_node * node,struct spmi_pmic_arb * pmic_arb)1941 static int spmi_pmic_arb_bus_init(struct platform_device *pdev,
1942 struct device_node *node,
1943 struct spmi_pmic_arb *pmic_arb)
1944 {
1945 int bus_index = pmic_arb->buses_available;
1946 struct spmi_pmic_arb_bus *bus;
1947 struct device *dev = &pdev->dev;
1948 struct spmi_controller *ctrl;
1949 void __iomem *intr;
1950 void __iomem *cnfg;
1951 int index, ret;
1952 int irq;
1953
1954 ctrl = devm_spmi_controller_alloc(dev, sizeof(*bus));
1955 if (IS_ERR(ctrl))
1956 return PTR_ERR(ctrl);
1957
1958 ctrl->cmd = pmic_arb_cmd;
1959 ctrl->read_cmd = pmic_arb_read_cmd;
1960 ctrl->write_cmd = pmic_arb_write_cmd;
1961
1962 bus = spmi_controller_get_drvdata(ctrl);
1963
1964 pmic_arb->buses[bus_index] = bus;
1965
1966 raw_spin_lock_init(&bus->lock);
1967
1968 bus->ppid_to_apid = devm_kcalloc(dev, PMIC_ARB_MAX_PPID,
1969 sizeof(*bus->ppid_to_apid),
1970 GFP_KERNEL);
1971 if (!bus->ppid_to_apid)
1972 return -ENOMEM;
1973
1974 bus->apid_data = devm_kcalloc(dev, pmic_arb->max_periphs,
1975 sizeof(*bus->apid_data),
1976 GFP_KERNEL);
1977 if (!bus->apid_data)
1978 return -ENOMEM;
1979
1980 index = of_property_match_string(node, "reg-names", "cnfg");
1981 if (index < 0) {
1982 dev_err(dev, "cnfg reg region missing\n");
1983 return -EINVAL;
1984 }
1985
1986 cnfg = devm_of_iomap(dev, node, index, NULL);
1987 if (IS_ERR(cnfg))
1988 return PTR_ERR(cnfg);
1989
1990 index = of_property_match_string(node, "reg-names", "intr");
1991 if (index < 0) {
1992 dev_err(dev, "intr reg region missing\n");
1993 return -EINVAL;
1994 }
1995
1996 intr = devm_of_iomap(dev, node, index, NULL);
1997 if (IS_ERR(intr))
1998 return PTR_ERR(intr);
1999
2000 irq = of_irq_get_byname(node, "periph_irq");
2001 if (irq <= 0)
2002 return irq ?: -ENXIO;
2003
2004 bus->pmic_arb = pmic_arb;
2005 bus->intr = intr;
2006 bus->cnfg = cnfg;
2007 bus->irq = irq;
2008 bus->spmic = ctrl;
2009 bus->id = bus_index;
2010
2011 if (pmic_arb->ver_ops->get_bus_resources) {
2012 ret = pmic_arb->ver_ops->get_bus_resources(pdev, node, bus);
2013 if (ret)
2014 return ret;
2015 }
2016
2017 ret = pmic_arb->ver_ops->init_apid(bus, bus_index);
2018 if (ret)
2019 return ret;
2020
2021 dev_dbg(&pdev->dev, "adding irq domain for bus %d\n", bus_index);
2022
2023 bus->domain = irq_domain_create_tree(of_fwnode_handle(node), &pmic_arb_irq_domain_ops, bus);
2024 if (!bus->domain) {
2025 dev_err(&pdev->dev, "unable to create irq_domain\n");
2026 return -ENOMEM;
2027 }
2028
2029 irq_set_chained_handler_and_data(bus->irq,
2030 pmic_arb_chained_irq, bus);
2031
2032 ctrl->dev.of_node = node;
2033 dev_set_name(&ctrl->dev, "spmi-%d", bus_index);
2034
2035 ret = devm_spmi_controller_add(dev, ctrl);
2036 if (ret)
2037 return ret;
2038
2039 pmic_arb->buses_available++;
2040
2041 return 0;
2042 }
2043
spmi_pmic_arb_register_buses(struct spmi_pmic_arb * pmic_arb,struct platform_device * pdev)2044 static int spmi_pmic_arb_register_buses(struct spmi_pmic_arb *pmic_arb,
2045 struct platform_device *pdev)
2046 {
2047 struct device *dev = &pdev->dev;
2048 struct device_node *node = dev->of_node;
2049 int ret;
2050
2051 /* legacy mode doesn't provide child node for the bus */
2052 if (of_device_is_compatible(node, "qcom,spmi-pmic-arb"))
2053 return spmi_pmic_arb_bus_init(pdev, node, pmic_arb);
2054
2055 for_each_available_child_of_node_scoped(node, child) {
2056 if (of_node_name_eq(child, "spmi")) {
2057 ret = spmi_pmic_arb_bus_init(pdev, child, pmic_arb);
2058 if (ret)
2059 return ret;
2060 }
2061 }
2062
2063 return ret;
2064 }
2065
spmi_pmic_arb_deregister_buses(struct spmi_pmic_arb * pmic_arb)2066 static void spmi_pmic_arb_deregister_buses(struct spmi_pmic_arb *pmic_arb)
2067 {
2068 int i;
2069
2070 for (i = 0; i < pmic_arb->buses_available; i++) {
2071 struct spmi_pmic_arb_bus *bus = pmic_arb->buses[i];
2072
2073 irq_set_chained_handler_and_data(bus->irq,
2074 NULL, NULL);
2075 irq_domain_remove(bus->domain);
2076 }
2077 }
2078
spmi_pmic_arb_probe(struct platform_device * pdev)2079 static int spmi_pmic_arb_probe(struct platform_device *pdev)
2080 {
2081 struct spmi_pmic_arb *pmic_arb;
2082 struct device *dev = &pdev->dev;
2083 struct resource *res;
2084 void __iomem *core;
2085 u32 channel, ee, hw_ver;
2086 int err;
2087
2088 pmic_arb = devm_kzalloc(dev, sizeof(*pmic_arb), GFP_KERNEL);
2089 if (!pmic_arb)
2090 return -ENOMEM;
2091
2092 res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "core");
2093 core = devm_ioremap(dev, res->start, resource_size(res));
2094 if (!core)
2095 return -ENOMEM;
2096
2097 pmic_arb->core_size = resource_size(res);
2098
2099 platform_set_drvdata(pdev, pmic_arb);
2100
2101 hw_ver = readl_relaxed(core + PMIC_ARB_VERSION);
2102
2103 if (hw_ver < PMIC_ARB_VERSION_V2_MIN)
2104 pmic_arb->ver_ops = &pmic_arb_v1;
2105 else if (hw_ver < PMIC_ARB_VERSION_V3_MIN)
2106 pmic_arb->ver_ops = &pmic_arb_v2;
2107 else if (hw_ver < PMIC_ARB_VERSION_V5_MIN)
2108 pmic_arb->ver_ops = &pmic_arb_v3;
2109 else if (hw_ver < PMIC_ARB_VERSION_V7_MIN)
2110 pmic_arb->ver_ops = &pmic_arb_v5;
2111 else if (hw_ver < PMIC_ARB_VERSION_V8_MIN)
2112 pmic_arb->ver_ops = &pmic_arb_v7;
2113 else if (hw_ver < PMIC_ARB_VERSION_V8P5_MIN)
2114 pmic_arb->ver_ops = &pmic_arb_v8;
2115 else
2116 pmic_arb->ver_ops = &pmic_arb_v8p5;
2117
2118 err = pmic_arb->ver_ops->get_core_resources(pdev, core);
2119 if (err)
2120 return err;
2121
2122 dev_info(dev, "PMIC arbiter version %s (0x%x)\n",
2123 pmic_arb->ver_ops->ver_str, hw_ver);
2124
2125 err = of_property_read_u32(pdev->dev.of_node, "qcom,channel", &channel);
2126 if (err) {
2127 dev_err(&pdev->dev, "channel unspecified.\n");
2128 return err;
2129 }
2130
2131 if (channel > 5) {
2132 dev_err(&pdev->dev, "invalid channel (%u) specified.\n",
2133 channel);
2134 return -EINVAL;
2135 }
2136
2137 pmic_arb->channel = channel;
2138
2139 err = of_property_read_u32(pdev->dev.of_node, "qcom,ee", &ee);
2140 if (err) {
2141 dev_err(&pdev->dev, "EE unspecified.\n");
2142 return err;
2143 }
2144
2145 if (ee > 5) {
2146 dev_err(&pdev->dev, "invalid EE (%u) specified\n", ee);
2147 return -EINVAL;
2148 }
2149
2150 pmic_arb->ee = ee;
2151
2152 return spmi_pmic_arb_register_buses(pmic_arb, pdev);
2153 }
2154
spmi_pmic_arb_remove(struct platform_device * pdev)2155 static void spmi_pmic_arb_remove(struct platform_device *pdev)
2156 {
2157 struct spmi_pmic_arb *pmic_arb = platform_get_drvdata(pdev);
2158
2159 spmi_pmic_arb_deregister_buses(pmic_arb);
2160 }
2161
2162 static const struct of_device_id spmi_pmic_arb_match_table[] = {
2163 { .compatible = "qcom,spmi-pmic-arb", },
2164 { .compatible = "qcom,x1e80100-spmi-pmic-arb", },
2165 { .compatible = "qcom,glymur-spmi-pmic-arb", },
2166 {},
2167 };
2168 MODULE_DEVICE_TABLE(of, spmi_pmic_arb_match_table);
2169
2170 static struct platform_driver spmi_pmic_arb_driver = {
2171 .probe = spmi_pmic_arb_probe,
2172 .remove = spmi_pmic_arb_remove,
2173 .driver = {
2174 .name = "spmi_pmic_arb",
2175 .of_match_table = spmi_pmic_arb_match_table,
2176 },
2177 };
2178 module_platform_driver(spmi_pmic_arb_driver);
2179
2180 MODULE_DESCRIPTION("Qualcomm MSM SPMI Controller (PMIC Arbiter) driver");
2181 MODULE_LICENSE("GPL v2");
2182 MODULE_ALIAS("platform:spmi_pmic_arb");
2183