1 // SPDX-License-Identifier: (GPL-2.0 OR BSD-3-Clause)
2 // Copyright(c) 2015-17 Intel Corporation.
3
4 #include <linux/acpi.h>
5 #include <linux/delay.h>
6 #include <linux/pm_runtime.h>
7 #include <linux/soundwire/sdw_registers.h>
8 #include <linux/soundwire/sdw.h>
9 #include <linux/soundwire/sdw_type.h>
10 #include <linux/string_choices.h>
11 #include "bus.h"
12 #include "irq.h"
13 #include "sysfs_local.h"
14
15 static DEFINE_IDA(sdw_bus_ida);
16
sdw_get_id(struct sdw_bus * bus)17 static int sdw_get_id(struct sdw_bus *bus)
18 {
19 int rc = ida_alloc(&sdw_bus_ida, GFP_KERNEL);
20
21 if (rc < 0)
22 return rc;
23
24 bus->id = rc;
25
26 if (bus->controller_id == -1)
27 bus->controller_id = rc;
28
29 return 0;
30 }
31
32 /**
33 * sdw_bus_master_add() - add a bus Master instance
34 * @bus: bus instance
35 * @parent: parent device
36 * @fwnode: firmware node handle
37 *
38 * Initializes the bus instance, read properties and create child
39 * devices.
40 */
sdw_bus_master_add(struct sdw_bus * bus,struct device * parent,struct fwnode_handle * fwnode)41 int sdw_bus_master_add(struct sdw_bus *bus, struct device *parent,
42 struct fwnode_handle *fwnode)
43 {
44 struct sdw_master_prop *prop = NULL;
45 int ret;
46
47 if (!parent) {
48 pr_err("SoundWire parent device is not set\n");
49 return -ENODEV;
50 }
51
52 ret = sdw_get_id(bus);
53 if (ret < 0) {
54 dev_err(parent, "Failed to get bus id\n");
55 return ret;
56 }
57
58 ida_init(&bus->slave_ida);
59
60 ret = sdw_master_device_add(bus, parent, fwnode);
61 if (ret < 0) {
62 dev_err(parent, "Failed to add master device at link %d\n",
63 bus->link_id);
64 return ret;
65 }
66
67 if (!bus->ops) {
68 dev_err(bus->dev, "SoundWire Bus ops are not set\n");
69 return -EINVAL;
70 }
71
72 if (!bus->compute_params) {
73 dev_err(bus->dev,
74 "Bandwidth allocation not configured, compute_params no set\n");
75 return -EINVAL;
76 }
77
78 /*
79 * Give each bus_lock and msg_lock a unique key so that lockdep won't
80 * trigger a deadlock warning when the locks of several buses are
81 * grabbed during configuration of a multi-bus stream.
82 */
83 lockdep_register_key(&bus->msg_lock_key);
84 __mutex_init(&bus->msg_lock, "msg_lock", &bus->msg_lock_key);
85
86 lockdep_register_key(&bus->bus_lock_key);
87 __mutex_init(&bus->bus_lock, "bus_lock", &bus->bus_lock_key);
88
89 INIT_LIST_HEAD(&bus->slaves);
90 INIT_LIST_HEAD(&bus->m_rt_list);
91
92 /*
93 * Initialize multi_link flag
94 */
95 bus->multi_link = false;
96 if (bus->ops->read_prop) {
97 ret = bus->ops->read_prop(bus);
98 if (ret < 0) {
99 dev_err(bus->dev,
100 "Bus read properties failed:%d\n", ret);
101 return ret;
102 }
103 }
104
105 sdw_bus_debugfs_init(bus);
106
107 /*
108 * Device numbers in SoundWire are 0 through 15. Enumeration device
109 * number (0), Broadcast device number (15), Group numbers (12 and
110 * 13) and Master device number (14) are not used for assignment so
111 * mask these and other higher bits.
112 */
113
114 /* Set higher order bits */
115 *bus->assigned = ~GENMASK(SDW_BROADCAST_DEV_NUM, SDW_ENUM_DEV_NUM);
116
117 /* Set enumeration device number and broadcast device number */
118 set_bit(SDW_ENUM_DEV_NUM, bus->assigned);
119 set_bit(SDW_BROADCAST_DEV_NUM, bus->assigned);
120
121 /* Set group device numbers and master device number */
122 set_bit(SDW_GROUP12_DEV_NUM, bus->assigned);
123 set_bit(SDW_GROUP13_DEV_NUM, bus->assigned);
124 set_bit(SDW_MASTER_DEV_NUM, bus->assigned);
125
126 ret = sdw_irq_create(bus, fwnode);
127 if (ret)
128 return ret;
129
130 /*
131 * SDW is an enumerable bus, but devices can be powered off. So,
132 * they won't be able to report as present.
133 *
134 * Create Slave devices based on Slaves described in
135 * the respective firmware (ACPI/DT)
136 */
137 if (IS_ENABLED(CONFIG_ACPI) && ACPI_HANDLE(bus->dev))
138 ret = sdw_acpi_find_slaves(bus);
139 else if (IS_ENABLED(CONFIG_OF) && bus->dev->of_node)
140 ret = sdw_of_find_slaves(bus);
141 else
142 ret = -ENOTSUPP; /* No ACPI/DT so error out */
143
144 if (ret < 0) {
145 dev_err(bus->dev, "Finding slaves failed:%d\n", ret);
146 sdw_irq_delete(bus);
147 return ret;
148 }
149
150 /*
151 * Initialize clock values based on Master properties. The max
152 * frequency is read from max_clk_freq property. Current assumption
153 * is that the bus will start at highest clock frequency when
154 * powered on.
155 *
156 * Default active bank will be 0 as out of reset the Slaves have
157 * to start with bank 0 (Table 40 of Spec)
158 */
159 prop = &bus->prop;
160 bus->params.max_dr_freq = prop->max_clk_freq * SDW_DOUBLE_RATE_FACTOR;
161 bus->params.curr_dr_freq = bus->params.max_dr_freq;
162 bus->params.curr_bank = SDW_BANK0;
163 bus->params.next_bank = SDW_BANK1;
164
165 return 0;
166 }
167 EXPORT_SYMBOL(sdw_bus_master_add);
168
sdw_delete_slave(struct device * dev,void * data)169 static int sdw_delete_slave(struct device *dev, void *data)
170 {
171 struct sdw_slave *slave = dev_to_sdw_dev(dev);
172 struct sdw_bus *bus = slave->bus;
173
174 pm_runtime_disable(dev);
175
176 sdw_slave_debugfs_exit(slave);
177
178 mutex_lock(&bus->bus_lock);
179
180 if (slave->dev_num) { /* clear dev_num if assigned */
181 clear_bit(slave->dev_num, bus->assigned);
182 if (bus->ops && bus->ops->put_device_num)
183 bus->ops->put_device_num(bus, slave);
184 }
185 list_del_init(&slave->node);
186 mutex_unlock(&bus->bus_lock);
187
188 device_unregister(dev);
189 return 0;
190 }
191
192 /**
193 * sdw_bus_master_delete() - delete the bus master instance
194 * @bus: bus to be deleted
195 *
196 * Remove the instance, delete the child devices.
197 */
sdw_bus_master_delete(struct sdw_bus * bus)198 void sdw_bus_master_delete(struct sdw_bus *bus)
199 {
200 device_for_each_child(bus->dev, NULL, sdw_delete_slave);
201
202 sdw_irq_delete(bus);
203
204 sdw_master_device_del(bus);
205
206 sdw_bus_debugfs_exit(bus);
207 lockdep_unregister_key(&bus->bus_lock_key);
208 lockdep_unregister_key(&bus->msg_lock_key);
209 ida_free(&sdw_bus_ida, bus->id);
210 }
211 EXPORT_SYMBOL(sdw_bus_master_delete);
212
213 /*
214 * SDW IO Calls
215 */
216
find_response_code(enum sdw_command_response resp)217 static inline int find_response_code(enum sdw_command_response resp)
218 {
219 switch (resp) {
220 case SDW_CMD_OK:
221 return 0;
222
223 case SDW_CMD_IGNORED:
224 return -ENODATA;
225
226 case SDW_CMD_TIMEOUT:
227 return -ETIMEDOUT;
228
229 default:
230 return -EIO;
231 }
232 }
233
do_transfer(struct sdw_bus * bus,struct sdw_msg * msg)234 static inline int do_transfer(struct sdw_bus *bus, struct sdw_msg *msg)
235 {
236 int retry = bus->prop.err_threshold;
237 enum sdw_command_response resp;
238 int ret = 0, i;
239
240 for (i = 0; i <= retry; i++) {
241 resp = bus->ops->xfer_msg(bus, msg);
242 ret = find_response_code(resp);
243
244 /* if cmd is ok or ignored return */
245 if (ret == 0 || ret == -ENODATA)
246 return ret;
247 }
248
249 return ret;
250 }
251
do_transfer_defer(struct sdw_bus * bus,struct sdw_msg * msg)252 static inline int do_transfer_defer(struct sdw_bus *bus,
253 struct sdw_msg *msg)
254 {
255 struct sdw_defer *defer = &bus->defer_msg;
256 int retry = bus->prop.err_threshold;
257 enum sdw_command_response resp;
258 int ret = 0, i;
259
260 defer->msg = msg;
261 defer->length = msg->len;
262 init_completion(&defer->complete);
263
264 for (i = 0; i <= retry; i++) {
265 resp = bus->ops->xfer_msg_defer(bus);
266 ret = find_response_code(resp);
267 /* if cmd is ok or ignored return */
268 if (ret == 0 || ret == -ENODATA)
269 return ret;
270 }
271
272 return ret;
273 }
274
sdw_transfer_unlocked(struct sdw_bus * bus,struct sdw_msg * msg)275 static int sdw_transfer_unlocked(struct sdw_bus *bus, struct sdw_msg *msg)
276 {
277 int ret;
278
279 ret = do_transfer(bus, msg);
280 if (ret != 0 && ret != -ENODATA)
281 dev_err(bus->dev, "trf on Slave %d failed:%d %s addr %x count %d\n",
282 msg->dev_num, ret,
283 str_write_read(msg->flags & SDW_MSG_FLAG_WRITE),
284 msg->addr, msg->len);
285
286 return ret;
287 }
288
289 /**
290 * sdw_transfer() - Synchronous transfer message to a SDW Slave device
291 * @bus: SDW bus
292 * @msg: SDW message to be xfered
293 */
sdw_transfer(struct sdw_bus * bus,struct sdw_msg * msg)294 int sdw_transfer(struct sdw_bus *bus, struct sdw_msg *msg)
295 {
296 int ret;
297
298 mutex_lock(&bus->msg_lock);
299
300 ret = sdw_transfer_unlocked(bus, msg);
301
302 mutex_unlock(&bus->msg_lock);
303
304 return ret;
305 }
306
307 /**
308 * sdw_show_ping_status() - Direct report of PING status, to be used by Peripheral drivers
309 * @bus: SDW bus
310 * @sync_delay: Delay before reading status
311 */
sdw_show_ping_status(struct sdw_bus * bus,bool sync_delay)312 void sdw_show_ping_status(struct sdw_bus *bus, bool sync_delay)
313 {
314 u32 status;
315
316 if (!bus->ops->read_ping_status)
317 return;
318
319 /*
320 * wait for peripheral to sync if desired. 10-15ms should be more than
321 * enough in most cases.
322 */
323 if (sync_delay)
324 usleep_range(10000, 15000);
325
326 mutex_lock(&bus->msg_lock);
327
328 status = bus->ops->read_ping_status(bus);
329
330 mutex_unlock(&bus->msg_lock);
331
332 if (!status)
333 dev_warn(bus->dev, "%s: no peripherals attached\n", __func__);
334 else
335 dev_dbg(bus->dev, "PING status: %#x\n", status);
336 }
337 EXPORT_SYMBOL(sdw_show_ping_status);
338
339 /**
340 * sdw_transfer_defer() - Asynchronously transfer message to a SDW Slave device
341 * @bus: SDW bus
342 * @msg: SDW message to be xfered
343 *
344 * Caller needs to hold the msg_lock lock while calling this
345 */
sdw_transfer_defer(struct sdw_bus * bus,struct sdw_msg * msg)346 int sdw_transfer_defer(struct sdw_bus *bus, struct sdw_msg *msg)
347 {
348 int ret;
349
350 if (!bus->ops->xfer_msg_defer)
351 return -ENOTSUPP;
352
353 ret = do_transfer_defer(bus, msg);
354 if (ret != 0 && ret != -ENODATA)
355 dev_err(bus->dev, "Defer trf on Slave %d failed:%d\n",
356 msg->dev_num, ret);
357
358 return ret;
359 }
360
sdw_fill_msg(struct sdw_msg * msg,struct sdw_slave * slave,u32 addr,size_t count,u16 dev_num,u8 flags,u8 * buf)361 int sdw_fill_msg(struct sdw_msg *msg, struct sdw_slave *slave,
362 u32 addr, size_t count, u16 dev_num, u8 flags, u8 *buf)
363 {
364 memset(msg, 0, sizeof(*msg));
365 msg->addr = addr; /* addr is 16 bit and truncated here */
366 msg->len = count;
367 msg->dev_num = dev_num;
368 msg->flags = flags;
369 msg->buf = buf;
370
371 if (addr < SDW_REG_NO_PAGE) /* no paging area */
372 return 0;
373
374 if (addr >= SDW_REG_MAX) { /* illegal addr */
375 pr_err("SDW: Invalid address %x passed\n", addr);
376 return -EINVAL;
377 }
378
379 if (addr < SDW_REG_OPTIONAL_PAGE) { /* 32k but no page */
380 if (slave && !slave->prop.paging_support)
381 return 0;
382 /* no need for else as that will fall-through to paging */
383 }
384
385 /* paging mandatory */
386 if (dev_num == SDW_ENUM_DEV_NUM || dev_num == SDW_BROADCAST_DEV_NUM) {
387 pr_err("SDW: Invalid device for paging :%d\n", dev_num);
388 return -EINVAL;
389 }
390
391 if (!slave) {
392 pr_err("SDW: No slave for paging addr\n");
393 return -EINVAL;
394 }
395
396 if (!slave->prop.paging_support) {
397 dev_err(&slave->dev,
398 "address %x needs paging but no support\n", addr);
399 return -EINVAL;
400 }
401
402 msg->addr_page1 = FIELD_GET(SDW_SCP_ADDRPAGE1_MASK, addr);
403 msg->addr_page2 = FIELD_GET(SDW_SCP_ADDRPAGE2_MASK, addr);
404 msg->addr |= BIT(15);
405 msg->page = true;
406
407 return 0;
408 }
409
410 /*
411 * Read/Write IO functions.
412 */
413
sdw_ntransfer_no_pm(struct sdw_slave * slave,u32 addr,u8 flags,size_t count,u8 * val)414 static int sdw_ntransfer_no_pm(struct sdw_slave *slave, u32 addr, u8 flags,
415 size_t count, u8 *val)
416 {
417 struct sdw_msg msg;
418 size_t size;
419 int ret;
420
421 while (count) {
422 // Only handle bytes up to next page boundary
423 size = min_t(size_t, count, (SDW_REGADDR + 1) - (addr & SDW_REGADDR));
424
425 ret = sdw_fill_msg(&msg, slave, addr, size, slave->dev_num, flags, val);
426 if (ret < 0)
427 return ret;
428
429 ret = sdw_transfer(slave->bus, &msg);
430 if (ret < 0 && !slave->is_mockup_device)
431 return ret;
432
433 addr += size;
434 val += size;
435 count -= size;
436 }
437
438 return 0;
439 }
440
441 /**
442 * sdw_nread_no_pm() - Read "n" contiguous SDW Slave registers with no PM
443 * @slave: SDW Slave
444 * @addr: Register address
445 * @count: length
446 * @val: Buffer for values to be read
447 *
448 * Note that if the message crosses a page boundary each page will be
449 * transferred under a separate invocation of the msg_lock.
450 */
sdw_nread_no_pm(struct sdw_slave * slave,u32 addr,size_t count,u8 * val)451 int sdw_nread_no_pm(struct sdw_slave *slave, u32 addr, size_t count, u8 *val)
452 {
453 return sdw_ntransfer_no_pm(slave, addr, SDW_MSG_FLAG_READ, count, val);
454 }
455 EXPORT_SYMBOL(sdw_nread_no_pm);
456
457 /**
458 * sdw_nwrite_no_pm() - Write "n" contiguous SDW Slave registers with no PM
459 * @slave: SDW Slave
460 * @addr: Register address
461 * @count: length
462 * @val: Buffer for values to be written
463 *
464 * Note that if the message crosses a page boundary each page will be
465 * transferred under a separate invocation of the msg_lock.
466 */
sdw_nwrite_no_pm(struct sdw_slave * slave,u32 addr,size_t count,const u8 * val)467 int sdw_nwrite_no_pm(struct sdw_slave *slave, u32 addr, size_t count, const u8 *val)
468 {
469 return sdw_ntransfer_no_pm(slave, addr, SDW_MSG_FLAG_WRITE, count, (u8 *)val);
470 }
471 EXPORT_SYMBOL(sdw_nwrite_no_pm);
472
473 /**
474 * sdw_write_no_pm() - Write a SDW Slave register with no PM
475 * @slave: SDW Slave
476 * @addr: Register address
477 * @value: Register value
478 */
sdw_write_no_pm(struct sdw_slave * slave,u32 addr,u8 value)479 int sdw_write_no_pm(struct sdw_slave *slave, u32 addr, u8 value)
480 {
481 return sdw_nwrite_no_pm(slave, addr, 1, &value);
482 }
483 EXPORT_SYMBOL(sdw_write_no_pm);
484
485 static int
sdw_bread_no_pm(struct sdw_bus * bus,u16 dev_num,u32 addr)486 sdw_bread_no_pm(struct sdw_bus *bus, u16 dev_num, u32 addr)
487 {
488 struct sdw_msg msg;
489 u8 buf;
490 int ret;
491
492 ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
493 SDW_MSG_FLAG_READ, &buf);
494 if (ret < 0)
495 return ret;
496
497 ret = sdw_transfer(bus, &msg);
498 if (ret < 0)
499 return ret;
500
501 return buf;
502 }
503
504 static int
sdw_bwrite_no_pm(struct sdw_bus * bus,u16 dev_num,u32 addr,u8 value)505 sdw_bwrite_no_pm(struct sdw_bus *bus, u16 dev_num, u32 addr, u8 value)
506 {
507 struct sdw_msg msg;
508 int ret;
509
510 ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
511 SDW_MSG_FLAG_WRITE, &value);
512 if (ret < 0)
513 return ret;
514
515 return sdw_transfer(bus, &msg);
516 }
517
sdw_bread_no_pm_unlocked(struct sdw_bus * bus,u16 dev_num,u32 addr)518 int sdw_bread_no_pm_unlocked(struct sdw_bus *bus, u16 dev_num, u32 addr)
519 {
520 struct sdw_msg msg;
521 u8 buf;
522 int ret;
523
524 ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
525 SDW_MSG_FLAG_READ, &buf);
526 if (ret < 0)
527 return ret;
528
529 ret = sdw_transfer_unlocked(bus, &msg);
530 if (ret < 0)
531 return ret;
532
533 return buf;
534 }
535 EXPORT_SYMBOL(sdw_bread_no_pm_unlocked);
536
sdw_bwrite_no_pm_unlocked(struct sdw_bus * bus,u16 dev_num,u32 addr,u8 value)537 int sdw_bwrite_no_pm_unlocked(struct sdw_bus *bus, u16 dev_num, u32 addr, u8 value)
538 {
539 struct sdw_msg msg;
540 int ret;
541
542 ret = sdw_fill_msg(&msg, NULL, addr, 1, dev_num,
543 SDW_MSG_FLAG_WRITE, &value);
544 if (ret < 0)
545 return ret;
546
547 return sdw_transfer_unlocked(bus, &msg);
548 }
549 EXPORT_SYMBOL(sdw_bwrite_no_pm_unlocked);
550
551 /**
552 * sdw_read_no_pm() - Read a SDW Slave register with no PM
553 * @slave: SDW Slave
554 * @addr: Register address
555 */
sdw_read_no_pm(struct sdw_slave * slave,u32 addr)556 int sdw_read_no_pm(struct sdw_slave *slave, u32 addr)
557 {
558 u8 buf;
559 int ret;
560
561 ret = sdw_nread_no_pm(slave, addr, 1, &buf);
562 if (ret < 0)
563 return ret;
564 else
565 return buf;
566 }
567 EXPORT_SYMBOL(sdw_read_no_pm);
568
sdw_update_no_pm(struct sdw_slave * slave,u32 addr,u8 mask,u8 val)569 int sdw_update_no_pm(struct sdw_slave *slave, u32 addr, u8 mask, u8 val)
570 {
571 int tmp;
572
573 tmp = sdw_read_no_pm(slave, addr);
574 if (tmp < 0)
575 return tmp;
576
577 tmp = (tmp & ~mask) | val;
578 return sdw_write_no_pm(slave, addr, tmp);
579 }
580 EXPORT_SYMBOL(sdw_update_no_pm);
581
582 /* Read-Modify-Write Slave register */
sdw_update(struct sdw_slave * slave,u32 addr,u8 mask,u8 val)583 int sdw_update(struct sdw_slave *slave, u32 addr, u8 mask, u8 val)
584 {
585 int tmp;
586
587 tmp = sdw_read(slave, addr);
588 if (tmp < 0)
589 return tmp;
590
591 tmp = (tmp & ~mask) | val;
592 return sdw_write(slave, addr, tmp);
593 }
594 EXPORT_SYMBOL(sdw_update);
595
596 /**
597 * sdw_nread() - Read "n" contiguous SDW Slave registers
598 * @slave: SDW Slave
599 * @addr: Register address
600 * @count: length
601 * @val: Buffer for values to be read
602 *
603 * This version of the function will take a PM reference to the slave
604 * device.
605 * Note that if the message crosses a page boundary each page will be
606 * transferred under a separate invocation of the msg_lock.
607 */
sdw_nread(struct sdw_slave * slave,u32 addr,size_t count,u8 * val)608 int sdw_nread(struct sdw_slave *slave, u32 addr, size_t count, u8 *val)
609 {
610 int ret;
611
612 ret = pm_runtime_get_sync(&slave->dev);
613 if (ret < 0 && ret != -EACCES) {
614 pm_runtime_put_noidle(&slave->dev);
615 return ret;
616 }
617
618 ret = sdw_nread_no_pm(slave, addr, count, val);
619
620 pm_runtime_mark_last_busy(&slave->dev);
621 pm_runtime_put(&slave->dev);
622
623 return ret;
624 }
625 EXPORT_SYMBOL(sdw_nread);
626
627 /**
628 * sdw_nwrite() - Write "n" contiguous SDW Slave registers
629 * @slave: SDW Slave
630 * @addr: Register address
631 * @count: length
632 * @val: Buffer for values to be written
633 *
634 * This version of the function will take a PM reference to the slave
635 * device.
636 * Note that if the message crosses a page boundary each page will be
637 * transferred under a separate invocation of the msg_lock.
638 */
sdw_nwrite(struct sdw_slave * slave,u32 addr,size_t count,const u8 * val)639 int sdw_nwrite(struct sdw_slave *slave, u32 addr, size_t count, const u8 *val)
640 {
641 int ret;
642
643 ret = pm_runtime_get_sync(&slave->dev);
644 if (ret < 0 && ret != -EACCES) {
645 pm_runtime_put_noidle(&slave->dev);
646 return ret;
647 }
648
649 ret = sdw_nwrite_no_pm(slave, addr, count, val);
650
651 pm_runtime_mark_last_busy(&slave->dev);
652 pm_runtime_put(&slave->dev);
653
654 return ret;
655 }
656 EXPORT_SYMBOL(sdw_nwrite);
657
658 /**
659 * sdw_read() - Read a SDW Slave register
660 * @slave: SDW Slave
661 * @addr: Register address
662 *
663 * This version of the function will take a PM reference to the slave
664 * device.
665 */
sdw_read(struct sdw_slave * slave,u32 addr)666 int sdw_read(struct sdw_slave *slave, u32 addr)
667 {
668 u8 buf;
669 int ret;
670
671 ret = sdw_nread(slave, addr, 1, &buf);
672 if (ret < 0)
673 return ret;
674
675 return buf;
676 }
677 EXPORT_SYMBOL(sdw_read);
678
679 /**
680 * sdw_write() - Write a SDW Slave register
681 * @slave: SDW Slave
682 * @addr: Register address
683 * @value: Register value
684 *
685 * This version of the function will take a PM reference to the slave
686 * device.
687 */
sdw_write(struct sdw_slave * slave,u32 addr,u8 value)688 int sdw_write(struct sdw_slave *slave, u32 addr, u8 value)
689 {
690 return sdw_nwrite(slave, addr, 1, &value);
691 }
692 EXPORT_SYMBOL(sdw_write);
693
694 /*
695 * SDW alert handling
696 */
697
698 /* called with bus_lock held */
sdw_get_slave(struct sdw_bus * bus,int i)699 static struct sdw_slave *sdw_get_slave(struct sdw_bus *bus, int i)
700 {
701 struct sdw_slave *slave;
702
703 list_for_each_entry(slave, &bus->slaves, node) {
704 if (slave->dev_num == i)
705 return slave;
706 }
707
708 return NULL;
709 }
710
sdw_compare_devid(struct sdw_slave * slave,struct sdw_slave_id id)711 int sdw_compare_devid(struct sdw_slave *slave, struct sdw_slave_id id)
712 {
713 if (slave->id.mfg_id != id.mfg_id ||
714 slave->id.part_id != id.part_id ||
715 slave->id.class_id != id.class_id ||
716 (slave->id.unique_id != SDW_IGNORED_UNIQUE_ID &&
717 slave->id.unique_id != id.unique_id))
718 return -ENODEV;
719
720 return 0;
721 }
722 EXPORT_SYMBOL(sdw_compare_devid);
723
724 /* called with bus_lock held */
sdw_get_device_num(struct sdw_slave * slave)725 static int sdw_get_device_num(struct sdw_slave *slave)
726 {
727 struct sdw_bus *bus = slave->bus;
728 int bit;
729
730 if (bus->ops && bus->ops->get_device_num) {
731 bit = bus->ops->get_device_num(bus, slave);
732 if (bit < 0)
733 goto err;
734 } else {
735 bit = find_first_zero_bit(bus->assigned, SDW_MAX_DEVICES);
736 if (bit == SDW_MAX_DEVICES) {
737 bit = -ENODEV;
738 goto err;
739 }
740 }
741
742 /*
743 * Do not update dev_num in Slave data structure here,
744 * Update once program dev_num is successful
745 */
746 set_bit(bit, bus->assigned);
747
748 err:
749 return bit;
750 }
751
sdw_assign_device_num(struct sdw_slave * slave)752 static int sdw_assign_device_num(struct sdw_slave *slave)
753 {
754 struct sdw_bus *bus = slave->bus;
755 struct device *dev = bus->dev;
756 int ret;
757
758 /* check first if device number is assigned, if so reuse that */
759 if (!slave->dev_num) {
760 if (!slave->dev_num_sticky) {
761 int dev_num;
762
763 mutex_lock(&slave->bus->bus_lock);
764 dev_num = sdw_get_device_num(slave);
765 mutex_unlock(&slave->bus->bus_lock);
766 if (dev_num < 0) {
767 dev_err(dev, "Get dev_num failed: %d\n", dev_num);
768 return dev_num;
769 }
770
771 slave->dev_num_sticky = dev_num;
772 } else {
773 dev_dbg(dev, "Slave already registered, reusing dev_num: %d\n",
774 slave->dev_num_sticky);
775 }
776 }
777
778 /* Clear the slave->dev_num to transfer message on device 0 */
779 slave->dev_num = 0;
780
781 ret = sdw_write_no_pm(slave, SDW_SCP_DEVNUMBER, slave->dev_num_sticky);
782 if (ret < 0) {
783 dev_err(dev, "Program device_num %d failed: %d\n",
784 slave->dev_num_sticky, ret);
785 return ret;
786 }
787
788 /* After xfer of msg, restore dev_num */
789 slave->dev_num = slave->dev_num_sticky;
790
791 if (bus->ops && bus->ops->new_peripheral_assigned)
792 bus->ops->new_peripheral_assigned(bus, slave, slave->dev_num);
793
794 return 0;
795 }
796
sdw_extract_slave_id(struct sdw_bus * bus,u64 addr,struct sdw_slave_id * id)797 void sdw_extract_slave_id(struct sdw_bus *bus,
798 u64 addr, struct sdw_slave_id *id)
799 {
800 dev_dbg(bus->dev, "SDW Slave Addr: %llx\n", addr);
801
802 id->sdw_version = SDW_VERSION(addr);
803 id->unique_id = SDW_UNIQUE_ID(addr);
804 id->mfg_id = SDW_MFG_ID(addr);
805 id->part_id = SDW_PART_ID(addr);
806 id->class_id = SDW_CLASS_ID(addr);
807
808 dev_dbg(bus->dev,
809 "SDW Slave class_id 0x%02x, mfg_id 0x%04x, part_id 0x%04x, unique_id 0x%x, version 0x%x\n",
810 id->class_id, id->mfg_id, id->part_id, id->unique_id, id->sdw_version);
811 }
812 EXPORT_SYMBOL(sdw_extract_slave_id);
813
is_clock_scaling_supported_by_slave(struct sdw_slave * slave)814 bool is_clock_scaling_supported_by_slave(struct sdw_slave *slave)
815 {
816 /*
817 * Dynamic scaling is a defined by SDCA. However, some devices expose the class ID but
818 * can't support dynamic scaling. We might need a quirk to handle such devices.
819 * The clock base and scale registers themselves are SoundWire 1.2, so a device
820 * may implement them without setting the class field; the driver says so with
821 * clock_reg_supported.
822 */
823 return slave->id.class_id || slave->prop.clock_reg_supported;
824 }
825 EXPORT_SYMBOL(is_clock_scaling_supported_by_slave);
826
sdw_program_device_num(struct sdw_bus * bus,bool * programmed)827 static int sdw_program_device_num(struct sdw_bus *bus, bool *programmed)
828 {
829 u8 buf[SDW_NUM_DEV_ID_REGISTERS] = {0};
830 struct sdw_slave *slave, *_s;
831 struct sdw_slave_id id;
832 struct sdw_msg msg;
833 bool found;
834 int count = 0, ret;
835 u64 addr;
836
837 *programmed = false;
838
839 /* No Slave, so use raw xfer api */
840 ret = sdw_fill_msg(&msg, NULL, SDW_SCP_DEVID_0,
841 SDW_NUM_DEV_ID_REGISTERS, 0, SDW_MSG_FLAG_READ, buf);
842 if (ret < 0)
843 return ret;
844
845 do {
846 ret = sdw_transfer(bus, &msg);
847 if (ret == -ENODATA) { /* end of device id reads */
848 dev_dbg(bus->dev, "No more devices to enumerate\n");
849 ret = 0;
850 break;
851 }
852 if (ret < 0) {
853 dev_err(bus->dev, "DEVID read fail:%d\n", ret);
854 break;
855 }
856
857 /*
858 * Construct the addr and extract. Cast the higher shift
859 * bits to avoid truncation due to size limit.
860 */
861 addr = buf[5] | (buf[4] << 8) | (buf[3] << 16) |
862 ((u64)buf[2] << 24) | ((u64)buf[1] << 32) |
863 ((u64)buf[0] << 40);
864
865 sdw_extract_slave_id(bus, addr, &id);
866
867 found = false;
868 /* Now compare with entries */
869 list_for_each_entry_safe(slave, _s, &bus->slaves, node) {
870 if (sdw_compare_devid(slave, id) == 0) {
871 found = true;
872
873 /*
874 * To prevent skipping state-machine stages don't
875 * program a device until we've seen it UNATTACH.
876 * Must return here because no other device on #0
877 * can be detected until this one has been
878 * assigned a device ID.
879 */
880 if (slave->status != SDW_SLAVE_UNATTACHED)
881 return 0;
882
883 /*
884 * Assign a new dev_num to this Slave and
885 * not mark it present. It will be marked
886 * present after it reports ATTACHED on new
887 * dev_num
888 */
889 ret = sdw_assign_device_num(slave);
890 if (ret < 0) {
891 dev_err(bus->dev,
892 "Assign dev_num failed:%d\n",
893 ret);
894 return ret;
895 }
896
897 *programmed = true;
898
899 break;
900 }
901 }
902
903 if (!found) {
904 /* TODO: Park this device in Group 13 */
905
906 /*
907 * add Slave device even if there is no platform
908 * firmware description. There will be no driver probe
909 * but the user/integration will be able to see the
910 * device, enumeration status and device number in sysfs
911 */
912 sdw_slave_add(bus, &id, NULL);
913
914 dev_err(bus->dev, "Slave Entry not found\n");
915 }
916
917 count++;
918
919 /*
920 * Check till error out or retry (count) exhausts.
921 * Device can drop off and rejoin during enumeration
922 * so count till twice the bound.
923 */
924
925 } while (ret == 0 && count < (SDW_MAX_DEVICES * 2));
926
927 return ret;
928 }
929
sdw_modify_slave_status(struct sdw_slave * slave,enum sdw_slave_status status)930 static void sdw_modify_slave_status(struct sdw_slave *slave,
931 enum sdw_slave_status status)
932 {
933 struct sdw_bus *bus = slave->bus;
934
935 mutex_lock(&bus->bus_lock);
936
937 dev_vdbg(bus->dev,
938 "changing status slave %d status %d new status %d\n",
939 slave->dev_num, slave->status, status);
940
941 if (status == SDW_SLAVE_UNATTACHED) {
942 dev_dbg(&slave->dev,
943 "initializing enumeration and init completion for Slave %d\n",
944 slave->dev_num);
945
946 reinit_completion(&slave->enumeration_complete);
947 reinit_completion(&slave->initialization_complete);
948
949 } else if ((status == SDW_SLAVE_ATTACHED) &&
950 (slave->status == SDW_SLAVE_UNATTACHED)) {
951 dev_dbg(&slave->dev,
952 "signaling enumeration completion for Slave %d\n",
953 slave->dev_num);
954
955 complete_all(&slave->enumeration_complete);
956 }
957 slave->status = status;
958 mutex_unlock(&bus->bus_lock);
959 }
960
sdw_slave_clk_stop_callback(struct sdw_slave * slave,enum sdw_clk_stop_mode mode,enum sdw_clk_stop_type type)961 static int sdw_slave_clk_stop_callback(struct sdw_slave *slave,
962 enum sdw_clk_stop_mode mode,
963 enum sdw_clk_stop_type type)
964 {
965 int ret = 0;
966
967 mutex_lock(&slave->sdw_dev_lock);
968
969 if (slave->probed) {
970 struct device *dev = &slave->dev;
971 struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
972
973 if (drv->ops && drv->ops->clk_stop)
974 ret = drv->ops->clk_stop(slave, mode, type);
975 }
976
977 mutex_unlock(&slave->sdw_dev_lock);
978
979 return ret;
980 }
981
sdw_slave_clk_stop_prepare(struct sdw_slave * slave,enum sdw_clk_stop_mode mode,bool prepare)982 static int sdw_slave_clk_stop_prepare(struct sdw_slave *slave,
983 enum sdw_clk_stop_mode mode,
984 bool prepare)
985 {
986 bool wake_en;
987 u32 val = 0;
988 int ret;
989
990 wake_en = slave->prop.wake_capable;
991
992 if (prepare) {
993 val = SDW_SCP_SYSTEMCTRL_CLK_STP_PREP;
994
995 if (mode == SDW_CLK_STOP_MODE1)
996 val |= SDW_SCP_SYSTEMCTRL_CLK_STP_MODE1;
997
998 if (wake_en)
999 val |= SDW_SCP_SYSTEMCTRL_WAKE_UP_EN;
1000 } else {
1001 ret = sdw_read_no_pm(slave, SDW_SCP_SYSTEMCTRL);
1002 if (ret < 0) {
1003 if (ret != -ENODATA)
1004 dev_err(&slave->dev, "SDW_SCP_SYSTEMCTRL read failed:%d\n", ret);
1005 return ret;
1006 }
1007 val = ret;
1008 val &= ~(SDW_SCP_SYSTEMCTRL_CLK_STP_PREP);
1009 }
1010
1011 ret = sdw_write_no_pm(slave, SDW_SCP_SYSTEMCTRL, val);
1012
1013 if (ret < 0 && ret != -ENODATA)
1014 dev_err(&slave->dev, "SDW_SCP_SYSTEMCTRL write failed:%d\n", ret);
1015
1016 return ret;
1017 }
1018
sdw_bus_wait_for_clk_prep_deprep(struct sdw_bus * bus,u16 dev_num,bool prepare)1019 static int sdw_bus_wait_for_clk_prep_deprep(struct sdw_bus *bus, u16 dev_num, bool prepare)
1020 {
1021 int retry = bus->clk_stop_timeout;
1022 int val;
1023
1024 do {
1025 val = sdw_bread_no_pm(bus, dev_num, SDW_SCP_STAT);
1026 if (val < 0) {
1027 if (val != -ENODATA)
1028 dev_err(bus->dev, "SDW_SCP_STAT bread failed:%d\n", val);
1029 return val;
1030 }
1031 val &= SDW_SCP_STAT_CLK_STP_NF;
1032 if (!val) {
1033 dev_dbg(bus->dev, "clock stop %s done slave:%d\n",
1034 prepare ? "prepare" : "deprepare",
1035 dev_num);
1036 return 0;
1037 }
1038
1039 usleep_range(1000, 1500);
1040 retry--;
1041 } while (retry);
1042
1043 dev_dbg(bus->dev, "clock stop %s did not complete for slave:%d\n",
1044 prepare ? "prepare" : "deprepare",
1045 dev_num);
1046
1047 return -ETIMEDOUT;
1048 }
1049
1050 /**
1051 * sdw_bus_prep_clk_stop: prepare Slave(s) for clock stop
1052 *
1053 * @bus: SDW bus instance
1054 *
1055 * Query Slave for clock stop mode and prepare for that mode.
1056 */
sdw_bus_prep_clk_stop(struct sdw_bus * bus)1057 int sdw_bus_prep_clk_stop(struct sdw_bus *bus)
1058 {
1059 bool simple_clk_stop = true;
1060 struct sdw_slave *slave;
1061 bool is_slave = false;
1062 int ret = 0;
1063
1064 /*
1065 * In order to save on transition time, prepare
1066 * each Slave and then wait for all Slave(s) to be
1067 * prepared for clock stop.
1068 * If one of the Slave devices has lost sync and
1069 * replies with Command Ignored/-ENODATA, we continue
1070 * the loop
1071 */
1072 list_for_each_entry(slave, &bus->slaves, node) {
1073 if (!slave->dev_num)
1074 continue;
1075
1076 if (slave->status != SDW_SLAVE_ATTACHED &&
1077 slave->status != SDW_SLAVE_ALERT)
1078 continue;
1079
1080 /* Identify if Slave(s) are available on Bus */
1081 is_slave = true;
1082
1083 ret = sdw_slave_clk_stop_callback(slave,
1084 SDW_CLK_STOP_MODE0,
1085 SDW_CLK_PRE_PREPARE);
1086 if (ret < 0 && ret != -ENODATA) {
1087 dev_err(&slave->dev, "clock stop pre-prepare cb failed:%d\n", ret);
1088 return ret;
1089 }
1090
1091 /* Only prepare a Slave device if needed */
1092 if (!slave->prop.simple_clk_stop_capable) {
1093 simple_clk_stop = false;
1094
1095 ret = sdw_slave_clk_stop_prepare(slave,
1096 SDW_CLK_STOP_MODE0,
1097 true);
1098 if (ret < 0 && ret != -ENODATA) {
1099 dev_err(&slave->dev, "clock stop prepare failed:%d\n", ret);
1100 return ret;
1101 }
1102 }
1103 }
1104
1105 /* Skip remaining clock stop preparation if no Slave is attached */
1106 if (!is_slave)
1107 return 0;
1108
1109 /*
1110 * Don't wait for all Slaves to be ready if they follow the simple
1111 * state machine
1112 */
1113 if (!simple_clk_stop) {
1114 ret = sdw_bus_wait_for_clk_prep_deprep(bus,
1115 SDW_BROADCAST_DEV_NUM, true);
1116 /*
1117 * if there are no Slave devices present and the reply is
1118 * Command_Ignored/-ENODATA, we don't need to continue with the
1119 * flow and can just return here. The error code is not modified
1120 * and its handling left as an exercise for the caller.
1121 */
1122 if (ret < 0)
1123 return ret;
1124 }
1125
1126 /* Inform slaves that prep is done */
1127 list_for_each_entry(slave, &bus->slaves, node) {
1128 if (!slave->dev_num)
1129 continue;
1130
1131 if (slave->status != SDW_SLAVE_ATTACHED &&
1132 slave->status != SDW_SLAVE_ALERT)
1133 continue;
1134
1135 ret = sdw_slave_clk_stop_callback(slave,
1136 SDW_CLK_STOP_MODE0,
1137 SDW_CLK_POST_PREPARE);
1138
1139 if (ret < 0 && ret != -ENODATA) {
1140 dev_err(&slave->dev, "clock stop post-prepare cb failed:%d\n", ret);
1141 return ret;
1142 }
1143 }
1144
1145 return 0;
1146 }
1147 EXPORT_SYMBOL(sdw_bus_prep_clk_stop);
1148
1149 /**
1150 * sdw_bus_clk_stop: stop bus clock
1151 *
1152 * @bus: SDW bus instance
1153 *
1154 * After preparing the Slaves for clock stop, stop the clock by broadcasting
1155 * write to SCP_CTRL register.
1156 */
sdw_bus_clk_stop(struct sdw_bus * bus)1157 int sdw_bus_clk_stop(struct sdw_bus *bus)
1158 {
1159 int ret;
1160
1161 /*
1162 * broadcast clock stop now, attached Slaves will ACK this,
1163 * unattached will ignore
1164 */
1165 ret = sdw_bwrite_no_pm(bus, SDW_BROADCAST_DEV_NUM,
1166 SDW_SCP_CTRL, SDW_SCP_CTRL_CLK_STP_NOW);
1167 if (ret < 0) {
1168 if (ret != -ENODATA)
1169 dev_err(bus->dev, "ClockStopNow Broadcast msg failed %d\n", ret);
1170 return ret;
1171 }
1172
1173 return 0;
1174 }
1175 EXPORT_SYMBOL(sdw_bus_clk_stop);
1176
1177 /**
1178 * sdw_bus_exit_clk_stop: Exit clock stop mode
1179 *
1180 * @bus: SDW bus instance
1181 *
1182 * This De-prepares the Slaves by exiting Clock Stop Mode 0. For the Slaves
1183 * exiting Clock Stop Mode 1, they will be de-prepared after they enumerate
1184 * back.
1185 */
sdw_bus_exit_clk_stop(struct sdw_bus * bus)1186 int sdw_bus_exit_clk_stop(struct sdw_bus *bus)
1187 {
1188 bool simple_clk_stop = true;
1189 struct sdw_slave *slave;
1190 bool is_slave = false;
1191 int ret;
1192
1193 /*
1194 * In order to save on transition time, de-prepare
1195 * each Slave and then wait for all Slave(s) to be
1196 * de-prepared after clock resume.
1197 */
1198 list_for_each_entry(slave, &bus->slaves, node) {
1199 if (!slave->dev_num)
1200 continue;
1201
1202 if (slave->status != SDW_SLAVE_ATTACHED &&
1203 slave->status != SDW_SLAVE_ALERT)
1204 continue;
1205
1206 /* Identify if Slave(s) are available on Bus */
1207 is_slave = true;
1208
1209 ret = sdw_slave_clk_stop_callback(slave, SDW_CLK_STOP_MODE0,
1210 SDW_CLK_PRE_DEPREPARE);
1211 if (ret < 0)
1212 dev_warn(&slave->dev, "clock stop pre-deprepare cb failed:%d\n", ret);
1213
1214 /* Only de-prepare a Slave device if needed */
1215 if (!slave->prop.simple_clk_stop_capable) {
1216 simple_clk_stop = false;
1217
1218 ret = sdw_slave_clk_stop_prepare(slave, SDW_CLK_STOP_MODE0,
1219 false);
1220
1221 if (ret < 0)
1222 dev_warn(&slave->dev, "clock stop deprepare failed:%d\n", ret);
1223 }
1224 }
1225
1226 /* Skip remaining clock stop de-preparation if no Slave is attached */
1227 if (!is_slave)
1228 return 0;
1229
1230 /*
1231 * Don't wait for all Slaves to be ready if they follow the simple
1232 * state machine
1233 */
1234 if (!simple_clk_stop) {
1235 ret = sdw_bus_wait_for_clk_prep_deprep(bus, SDW_BROADCAST_DEV_NUM, false);
1236 if (ret < 0)
1237 dev_warn(bus->dev, "clock stop deprepare wait failed:%d\n", ret);
1238 }
1239
1240 list_for_each_entry(slave, &bus->slaves, node) {
1241 if (!slave->dev_num)
1242 continue;
1243
1244 if (slave->status != SDW_SLAVE_ATTACHED &&
1245 slave->status != SDW_SLAVE_ALERT)
1246 continue;
1247
1248 ret = sdw_slave_clk_stop_callback(slave, SDW_CLK_STOP_MODE0,
1249 SDW_CLK_POST_DEPREPARE);
1250 if (ret < 0)
1251 dev_warn(&slave->dev, "clock stop post-deprepare cb failed:%d\n", ret);
1252 }
1253
1254 return 0;
1255 }
1256 EXPORT_SYMBOL(sdw_bus_exit_clk_stop);
1257
sdw_configure_dpn_intr(struct sdw_slave * slave,int port,bool enable,int mask)1258 int sdw_configure_dpn_intr(struct sdw_slave *slave,
1259 int port, bool enable, int mask)
1260 {
1261 u32 addr;
1262 int ret;
1263 u8 val = 0;
1264
1265 if (slave->bus->params.s_data_mode != SDW_PORT_DATA_MODE_NORMAL) {
1266 dev_dbg(&slave->dev, "TEST FAIL interrupt %s\n",
1267 str_on_off(enable));
1268 mask |= SDW_DPN_INT_TEST_FAIL;
1269 }
1270
1271 addr = SDW_DPN_INTMASK(port);
1272
1273 /* Set/Clear port ready interrupt mask */
1274 if (enable) {
1275 val |= mask;
1276 val |= SDW_DPN_INT_PORT_READY;
1277 } else {
1278 val &= ~(mask);
1279 val &= ~SDW_DPN_INT_PORT_READY;
1280 }
1281
1282 ret = sdw_update_no_pm(slave, addr, (mask | SDW_DPN_INT_PORT_READY), val);
1283 if (ret < 0)
1284 dev_err(&slave->dev,
1285 "SDW_DPN_INTMASK write failed:%d\n", val);
1286
1287 return ret;
1288 }
1289
sdw_slave_get_scale_index(struct sdw_slave * slave,u8 * base)1290 int sdw_slave_get_scale_index(struct sdw_slave *slave, u8 *base)
1291 {
1292 u32 mclk_freq = slave->bus->prop.mclk_freq;
1293 u32 curr_freq = slave->bus->params.curr_dr_freq >> 1;
1294 unsigned int scale;
1295 u8 scale_index;
1296
1297 if (!mclk_freq) {
1298 dev_err(&slave->dev,
1299 "no bus MCLK, cannot set SDW_SCP_BUS_CLOCK_BASE\n");
1300 return -EINVAL;
1301 }
1302
1303 /*
1304 * map base frequency using Table 89 of SoundWire 1.2 spec.
1305 * The order of the tests just follows the specification, this
1306 * is not a selection between possible values or a search for
1307 * the best value but just a mapping. Only one case per platform
1308 * is relevant.
1309 * Some BIOS have inconsistent values for mclk_freq but a
1310 * correct root so we force the mclk_freq to avoid variations.
1311 */
1312 if (!(19200000 % mclk_freq)) {
1313 mclk_freq = 19200000;
1314 *base = SDW_SCP_BASE_CLOCK_19200000_HZ;
1315 } else if (!(22579200 % mclk_freq)) {
1316 mclk_freq = 22579200;
1317 *base = SDW_SCP_BASE_CLOCK_22579200_HZ;
1318 } else if (!(24576000 % mclk_freq)) {
1319 mclk_freq = 24576000;
1320 *base = SDW_SCP_BASE_CLOCK_24576000_HZ;
1321 } else if (!(32000000 % mclk_freq)) {
1322 mclk_freq = 32000000;
1323 *base = SDW_SCP_BASE_CLOCK_32000000_HZ;
1324 } else if (!(96000000 % mclk_freq)) {
1325 mclk_freq = 24000000;
1326 *base = SDW_SCP_BASE_CLOCK_24000000_HZ;
1327 } else {
1328 dev_err(&slave->dev,
1329 "Unsupported clock base, mclk %d\n",
1330 mclk_freq);
1331 return -EINVAL;
1332 }
1333
1334 if (mclk_freq % curr_freq) {
1335 dev_err(&slave->dev,
1336 "mclk %d is not multiple of bus curr_freq %d\n",
1337 mclk_freq, curr_freq);
1338 return -EINVAL;
1339 }
1340
1341 scale = mclk_freq / curr_freq;
1342
1343 /*
1344 * map scale to Table 90 of SoundWire 1.2 spec - and check
1345 * that the scale is a power of two and maximum 64
1346 */
1347 scale_index = ilog2(scale);
1348
1349 if (BIT(scale_index) != scale || scale_index > 6) {
1350 dev_err(&slave->dev,
1351 "No match found for scale %d, bus mclk %d curr_freq %d\n",
1352 scale, mclk_freq, curr_freq);
1353 return -EINVAL;
1354 }
1355 scale_index++;
1356
1357 dev_dbg(&slave->dev,
1358 "Configured bus base %d, scale %d, mclk %d, curr_freq %d\n",
1359 *base, scale_index, mclk_freq, curr_freq);
1360
1361 return scale_index;
1362 }
1363 EXPORT_SYMBOL(sdw_slave_get_scale_index);
1364
sdw_slave_get_current_bank(struct sdw_slave * slave)1365 int sdw_slave_get_current_bank(struct sdw_slave *slave)
1366 {
1367 int tmp;
1368
1369 tmp = sdw_read(slave, SDW_SCP_CTRL);
1370 if (tmp < 0)
1371 return tmp;
1372
1373 return FIELD_GET(SDW_SCP_STAT_CURR_BANK, tmp);
1374 }
1375 EXPORT_SYMBOL_GPL(sdw_slave_get_current_bank);
1376
sdw_slave_set_frequency(struct sdw_slave * slave)1377 static int sdw_slave_set_frequency(struct sdw_slave *slave)
1378 {
1379 int scale_index;
1380 u8 base;
1381 int ret;
1382
1383 /*
1384 * frequency base and scale registers are required for SDCA
1385 * devices. They may also be used for 1.2+/non-SDCA devices.
1386 * Driver can set the property directly, for now there's no
1387 * DisCo property to discover support for the scaling registers
1388 * from platform firmware.
1389 */
1390 if (!is_clock_scaling_supported_by_slave(slave))
1391 return 0;
1392
1393 scale_index = sdw_slave_get_scale_index(slave, &base);
1394 if (scale_index < 0)
1395 return scale_index;
1396
1397 ret = sdw_write_no_pm(slave, SDW_SCP_BUS_CLOCK_BASE, base);
1398 if (ret < 0) {
1399 dev_err(&slave->dev,
1400 "SDW_SCP_BUS_CLOCK_BASE write failed:%d\n", ret);
1401 return ret;
1402 }
1403
1404 /* initialize scale for both banks */
1405 ret = sdw_write_no_pm(slave, SDW_SCP_BUSCLOCK_SCALE_B0, scale_index);
1406 if (ret < 0) {
1407 dev_err(&slave->dev,
1408 "SDW_SCP_BUSCLOCK_SCALE_B0 write failed:%d\n", ret);
1409 return ret;
1410 }
1411 ret = sdw_write_no_pm(slave, SDW_SCP_BUSCLOCK_SCALE_B1, scale_index);
1412 if (ret < 0)
1413 dev_err(&slave->dev,
1414 "SDW_SCP_BUSCLOCK_SCALE_B1 write failed:%d\n", ret);
1415
1416 return ret;
1417 }
1418
sdw_initialize_slave(struct sdw_slave * slave)1419 static int sdw_initialize_slave(struct sdw_slave *slave)
1420 {
1421 struct sdw_slave_prop *prop = &slave->prop;
1422 int status;
1423 int ret;
1424 u8 val;
1425
1426 ret = sdw_slave_set_frequency(slave);
1427 if (ret < 0)
1428 return ret;
1429
1430 if (slave->bus->prop.quirks & SDW_MASTER_QUIRKS_CLEAR_INITIAL_CLASH) {
1431 /* Clear bus clash interrupt before enabling interrupt mask */
1432 status = sdw_read_no_pm(slave, SDW_SCP_INT1);
1433 if (status < 0) {
1434 dev_err(&slave->dev,
1435 "SDW_SCP_INT1 (BUS_CLASH) read failed:%d\n", status);
1436 return status;
1437 }
1438 if (status & SDW_SCP_INT1_BUS_CLASH) {
1439 dev_warn(&slave->dev, "Bus clash detected before INT mask is enabled\n");
1440 ret = sdw_write_no_pm(slave, SDW_SCP_INT1, SDW_SCP_INT1_BUS_CLASH);
1441 if (ret < 0) {
1442 dev_err(&slave->dev,
1443 "SDW_SCP_INT1 (BUS_CLASH) write failed:%d\n", ret);
1444 return ret;
1445 }
1446 }
1447 }
1448 if ((slave->bus->prop.quirks & SDW_MASTER_QUIRKS_CLEAR_INITIAL_PARITY) &&
1449 !(prop->quirks & SDW_SLAVE_QUIRKS_INVALID_INITIAL_PARITY)) {
1450 /* Clear parity interrupt before enabling interrupt mask */
1451 status = sdw_read_no_pm(slave, SDW_SCP_INT1);
1452 if (status < 0) {
1453 dev_err(&slave->dev,
1454 "SDW_SCP_INT1 (PARITY) read failed:%d\n", status);
1455 return status;
1456 }
1457 if (status & SDW_SCP_INT1_PARITY) {
1458 dev_warn(&slave->dev, "PARITY error detected before INT mask is enabled\n");
1459 ret = sdw_write_no_pm(slave, SDW_SCP_INT1, SDW_SCP_INT1_PARITY);
1460 if (ret < 0) {
1461 dev_err(&slave->dev,
1462 "SDW_SCP_INT1 (PARITY) write failed:%d\n", ret);
1463 return ret;
1464 }
1465 }
1466 }
1467
1468 /*
1469 * Set SCP_INT1_MASK register, typically bus clash and
1470 * implementation-defined interrupt mask. The Parity detection
1471 * may not always be correct on startup so its use is
1472 * device-dependent, it might e.g. only be enabled in
1473 * steady-state after a couple of frames.
1474 */
1475 val = prop->scp_int1_mask;
1476
1477 /* Enable SCP interrupts */
1478 ret = sdw_update_no_pm(slave, SDW_SCP_INTMASK1, val, val);
1479 if (ret < 0) {
1480 dev_err(&slave->dev,
1481 "SDW_SCP_INTMASK1 write failed:%d\n", ret);
1482 return ret;
1483 }
1484
1485 /* No need to continue if DP0 is not present */
1486 if (!prop->dp0_prop)
1487 return 0;
1488
1489 /* Enable DP0 interrupts */
1490 val = prop->dp0_prop->imp_def_interrupts;
1491 val |= SDW_DP0_INT_PORT_READY | SDW_DP0_INT_BRA_FAILURE;
1492
1493 ret = sdw_update_no_pm(slave, SDW_DP0_INTMASK, val, val);
1494 if (ret < 0)
1495 dev_err(&slave->dev,
1496 "SDW_DP0_INTMASK read failed:%d\n", ret);
1497 return ret;
1498 }
1499
sdw_handle_dp0_interrupt(struct sdw_slave * slave,u8 * slave_status)1500 static int sdw_handle_dp0_interrupt(struct sdw_slave *slave, u8 *slave_status)
1501 {
1502 u8 clear, impl_int_mask;
1503 int status, status2, ret, count = 0;
1504
1505 status = sdw_read_no_pm(slave, SDW_DP0_INT);
1506 if (status < 0) {
1507 dev_err(&slave->dev,
1508 "SDW_DP0_INT read failed:%d\n", status);
1509 return status;
1510 }
1511
1512 do {
1513 clear = status & ~(SDW_DP0_INTERRUPTS | SDW_DP0_SDCA_CASCADE);
1514
1515 if (status & SDW_DP0_INT_TEST_FAIL) {
1516 dev_err(&slave->dev, "Test fail for port 0\n");
1517 clear |= SDW_DP0_INT_TEST_FAIL;
1518 }
1519
1520 /*
1521 * Assumption: PORT_READY interrupt will be received only for
1522 * ports implementing Channel Prepare state machine (CP_SM)
1523 */
1524
1525 if (status & SDW_DP0_INT_PORT_READY) {
1526 complete(&slave->port_ready[0]);
1527 clear |= SDW_DP0_INT_PORT_READY;
1528 }
1529
1530 if (status & SDW_DP0_INT_BRA_FAILURE) {
1531 dev_err(&slave->dev, "BRA failed\n");
1532 clear |= SDW_DP0_INT_BRA_FAILURE;
1533 }
1534
1535 impl_int_mask = SDW_DP0_INT_IMPDEF1 |
1536 SDW_DP0_INT_IMPDEF2 | SDW_DP0_INT_IMPDEF3;
1537
1538 if (status & impl_int_mask) {
1539 clear |= impl_int_mask;
1540 *slave_status = clear;
1541 }
1542
1543 /* clear the interrupts but don't touch reserved and SDCA_CASCADE fields */
1544 ret = sdw_write_no_pm(slave, SDW_DP0_INT, clear);
1545 if (ret < 0) {
1546 dev_err(&slave->dev,
1547 "SDW_DP0_INT write failed:%d\n", ret);
1548 return ret;
1549 }
1550
1551 /* Read DP0 interrupt again */
1552 status2 = sdw_read_no_pm(slave, SDW_DP0_INT);
1553 if (status2 < 0) {
1554 dev_err(&slave->dev,
1555 "SDW_DP0_INT read failed:%d\n", status2);
1556 return status2;
1557 }
1558 /* filter to limit loop to interrupts identified in the first status read */
1559 status &= status2;
1560
1561 count++;
1562
1563 /* we can get alerts while processing so keep retrying */
1564 } while ((status & SDW_DP0_INTERRUPTS) && (count < SDW_READ_INTR_CLEAR_RETRY));
1565
1566 if (count == SDW_READ_INTR_CLEAR_RETRY)
1567 dev_warn(&slave->dev, "Reached MAX_RETRY on DP0 read\n");
1568
1569 return ret;
1570 }
1571
sdw_handle_port_interrupt(struct sdw_slave * slave,int port,u8 * slave_status)1572 static int sdw_handle_port_interrupt(struct sdw_slave *slave,
1573 int port, u8 *slave_status)
1574 {
1575 u8 clear, impl_int_mask;
1576 int status, status2, ret, count = 0;
1577 u32 addr;
1578
1579 if (port == 0)
1580 return sdw_handle_dp0_interrupt(slave, slave_status);
1581
1582 addr = SDW_DPN_INT(port);
1583 status = sdw_read_no_pm(slave, addr);
1584 if (status < 0) {
1585 dev_err(&slave->dev,
1586 "SDW_DPN_INT read failed:%d\n", status);
1587
1588 return status;
1589 }
1590
1591 do {
1592 clear = status & ~SDW_DPN_INTERRUPTS;
1593
1594 if (status & SDW_DPN_INT_TEST_FAIL) {
1595 dev_err(&slave->dev, "Test fail for port:%d\n", port);
1596 clear |= SDW_DPN_INT_TEST_FAIL;
1597 }
1598
1599 /*
1600 * Assumption: PORT_READY interrupt will be received only
1601 * for ports implementing CP_SM.
1602 */
1603 if (status & SDW_DPN_INT_PORT_READY) {
1604 complete(&slave->port_ready[port]);
1605 clear |= SDW_DPN_INT_PORT_READY;
1606 }
1607
1608 impl_int_mask = SDW_DPN_INT_IMPDEF1 |
1609 SDW_DPN_INT_IMPDEF2 | SDW_DPN_INT_IMPDEF3;
1610
1611 if (status & impl_int_mask) {
1612 clear |= impl_int_mask;
1613 *slave_status = clear;
1614 }
1615
1616 /* clear the interrupt but don't touch reserved fields */
1617 ret = sdw_write_no_pm(slave, addr, clear);
1618 if (ret < 0) {
1619 dev_err(&slave->dev,
1620 "SDW_DPN_INT write failed:%d\n", ret);
1621 return ret;
1622 }
1623
1624 /* Read DPN interrupt again */
1625 status2 = sdw_read_no_pm(slave, addr);
1626 if (status2 < 0) {
1627 dev_err(&slave->dev,
1628 "SDW_DPN_INT read failed:%d\n", status2);
1629 return status2;
1630 }
1631 /* filter to limit loop to interrupts identified in the first status read */
1632 status &= status2;
1633
1634 count++;
1635
1636 /* we can get alerts while processing so keep retrying */
1637 } while ((status & SDW_DPN_INTERRUPTS) && (count < SDW_READ_INTR_CLEAR_RETRY));
1638
1639 if (count == SDW_READ_INTR_CLEAR_RETRY)
1640 dev_warn(&slave->dev, "Reached MAX_RETRY on port read");
1641
1642 return ret;
1643 }
1644
sdw_handle_slave_alerts(struct sdw_slave * slave)1645 static int sdw_handle_slave_alerts(struct sdw_slave *slave)
1646 {
1647 struct sdw_slave_intr_status slave_intr;
1648 u8 clear = 0, bit, port_status[15] = {0};
1649 int port_num, stat, ret, count = 0;
1650 unsigned long port;
1651 bool slave_notify;
1652 u8 sdca_cascade = 0;
1653 u8 buf, buf2[2];
1654 bool parity_check;
1655 bool parity_quirk;
1656
1657 sdw_modify_slave_status(slave, SDW_SLAVE_ALERT);
1658
1659 ret = pm_runtime_get_sync(&slave->dev);
1660 if (ret < 0 && ret != -EACCES) {
1661 dev_err(&slave->dev, "Failed to resume device: %d\n", ret);
1662 pm_runtime_put_noidle(&slave->dev);
1663 return ret;
1664 }
1665
1666 /* Read Intstat 1, Intstat 2 and Intstat 3 registers */
1667 ret = sdw_read_no_pm(slave, SDW_SCP_INT1);
1668 if (ret < 0) {
1669 dev_err(&slave->dev,
1670 "SDW_SCP_INT1 read failed:%d\n", ret);
1671 goto io_err;
1672 }
1673 buf = ret;
1674
1675 ret = sdw_nread_no_pm(slave, SDW_SCP_INTSTAT2, 2, buf2);
1676 if (ret < 0) {
1677 dev_err(&slave->dev,
1678 "SDW_SCP_INT2/3 read failed:%d\n", ret);
1679 goto io_err;
1680 }
1681
1682 if (slave->id.class_id) {
1683 ret = sdw_read_no_pm(slave, SDW_DP0_INT);
1684 if (ret < 0) {
1685 dev_err(&slave->dev,
1686 "SDW_DP0_INT read failed:%d\n", ret);
1687 goto io_err;
1688 }
1689 sdca_cascade = ret & SDW_DP0_SDCA_CASCADE;
1690 }
1691
1692 do {
1693 slave_notify = false;
1694
1695 /*
1696 * Check parity, bus clash and Slave (impl defined)
1697 * interrupt
1698 */
1699 if (buf & SDW_SCP_INT1_PARITY) {
1700 parity_check = slave->prop.scp_int1_mask & SDW_SCP_INT1_PARITY;
1701 parity_quirk = !slave->first_interrupt_done &&
1702 (slave->prop.quirks & SDW_SLAVE_QUIRKS_INVALID_INITIAL_PARITY);
1703
1704 if (parity_check && !parity_quirk)
1705 dev_err(&slave->dev, "Parity error detected\n");
1706 clear |= SDW_SCP_INT1_PARITY;
1707 }
1708
1709 if (buf & SDW_SCP_INT1_BUS_CLASH) {
1710 if (slave->prop.scp_int1_mask & SDW_SCP_INT1_BUS_CLASH)
1711 dev_err(&slave->dev, "Bus clash detected\n");
1712 clear |= SDW_SCP_INT1_BUS_CLASH;
1713 }
1714
1715 /*
1716 * When bus clash or parity errors are detected, such errors
1717 * are unlikely to be recoverable errors.
1718 * TODO: In such scenario, reset bus. Make this configurable
1719 * via sysfs property with bus reset being the default.
1720 */
1721
1722 if (buf & SDW_SCP_INT1_IMPL_DEF) {
1723 if (slave->prop.scp_int1_mask & SDW_SCP_INT1_IMPL_DEF) {
1724 dev_dbg(&slave->dev, "Slave impl defined interrupt\n");
1725 slave_notify = true;
1726 }
1727 clear |= SDW_SCP_INT1_IMPL_DEF;
1728 }
1729
1730 /* the SDCA interrupts are cleared in the codec driver .interrupt_callback() */
1731 if (sdca_cascade)
1732 slave_notify = true;
1733
1734 /* Check port 0 - 3 interrupts */
1735 port = buf & SDW_SCP_INT1_PORT0_3;
1736
1737 /* To get port number corresponding to bits, shift it */
1738 port = FIELD_GET(SDW_SCP_INT1_PORT0_3, port);
1739 for_each_set_bit(bit, &port, 8) {
1740 sdw_handle_port_interrupt(slave, bit,
1741 &port_status[bit]);
1742 }
1743
1744 /* Check if cascade 2 interrupt is present */
1745 if (buf & SDW_SCP_INT1_SCP2_CASCADE) {
1746 port = buf2[0] & SDW_SCP_INTSTAT2_PORT4_10;
1747 for_each_set_bit(bit, &port, 8) {
1748 /* scp2 ports start from 4 */
1749 port_num = bit + 4;
1750 sdw_handle_port_interrupt(slave,
1751 port_num,
1752 &port_status[port_num]);
1753 }
1754 }
1755
1756 /* now check last cascade */
1757 if (buf2[0] & SDW_SCP_INTSTAT2_SCP3_CASCADE) {
1758 port = buf2[1] & SDW_SCP_INTSTAT3_PORT11_14;
1759 for_each_set_bit(bit, &port, 8) {
1760 /* scp3 ports start from 11 */
1761 port_num = bit + 11;
1762 sdw_handle_port_interrupt(slave,
1763 port_num,
1764 &port_status[port_num]);
1765 }
1766 }
1767
1768 /* Update the Slave driver */
1769 if (slave_notify) {
1770 if (slave->prop.use_domain_irq && slave->irq)
1771 handle_nested_irq(slave->irq);
1772
1773 mutex_lock(&slave->sdw_dev_lock);
1774
1775 if (slave->probed) {
1776 struct device *dev = &slave->dev;
1777 struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
1778
1779 if (drv->ops && drv->ops->interrupt_callback) {
1780 slave_intr.sdca_cascade = sdca_cascade;
1781 slave_intr.control_port = clear;
1782 memcpy(slave_intr.port, &port_status,
1783 sizeof(slave_intr.port));
1784
1785 drv->ops->interrupt_callback(slave, &slave_intr);
1786 }
1787 }
1788
1789 mutex_unlock(&slave->sdw_dev_lock);
1790 }
1791
1792 /* Ack interrupt */
1793 ret = sdw_write_no_pm(slave, SDW_SCP_INT1, clear);
1794 if (ret < 0) {
1795 dev_err(&slave->dev,
1796 "SDW_SCP_INT1 write failed:%d\n", ret);
1797 goto io_err;
1798 }
1799
1800 /* at this point all initial interrupt sources were handled */
1801 slave->first_interrupt_done = true;
1802
1803 /*
1804 * Read status again to ensure no new interrupts arrived
1805 * while servicing interrupts.
1806 */
1807 ret = sdw_read_no_pm(slave, SDW_SCP_INT1);
1808 if (ret < 0) {
1809 dev_err(&slave->dev,
1810 "SDW_SCP_INT1 recheck read failed:%d\n", ret);
1811 goto io_err;
1812 }
1813 buf = ret;
1814
1815 ret = sdw_nread_no_pm(slave, SDW_SCP_INTSTAT2, 2, buf2);
1816 if (ret < 0) {
1817 dev_err(&slave->dev,
1818 "SDW_SCP_INT2/3 recheck read failed:%d\n", ret);
1819 goto io_err;
1820 }
1821
1822 if (slave->id.class_id) {
1823 ret = sdw_read_no_pm(slave, SDW_DP0_INT);
1824 if (ret < 0) {
1825 dev_err(&slave->dev,
1826 "SDW_DP0_INT recheck read failed:%d\n", ret);
1827 goto io_err;
1828 }
1829 sdca_cascade = ret & SDW_DP0_SDCA_CASCADE;
1830 }
1831
1832 /*
1833 * Make sure no interrupts are pending
1834 */
1835 stat = buf || buf2[0] || buf2[1] || sdca_cascade;
1836
1837 /*
1838 * Exit loop if Slave is continuously in ALERT state even
1839 * after servicing the interrupt multiple times.
1840 */
1841 count++;
1842
1843 /* we can get alerts while processing so keep retrying */
1844 } while (stat != 0 && count < SDW_READ_INTR_CLEAR_RETRY);
1845
1846 if (count == SDW_READ_INTR_CLEAR_RETRY)
1847 dev_warn(&slave->dev, "Reached MAX_RETRY on alert read\n");
1848
1849 io_err:
1850 pm_runtime_mark_last_busy(&slave->dev);
1851 pm_runtime_put_autosuspend(&slave->dev);
1852
1853 return ret;
1854 }
1855
sdw_update_slave_status(struct sdw_slave * slave,enum sdw_slave_status status)1856 static int sdw_update_slave_status(struct sdw_slave *slave,
1857 enum sdw_slave_status status)
1858 {
1859 int ret = 0;
1860
1861 mutex_lock(&slave->sdw_dev_lock);
1862
1863 if (slave->probed) {
1864 struct device *dev = &slave->dev;
1865 struct sdw_driver *drv = drv_to_sdw_driver(dev->driver);
1866
1867 if (drv->ops && drv->ops->update_status)
1868 ret = drv->ops->update_status(slave, status);
1869 }
1870
1871 mutex_unlock(&slave->sdw_dev_lock);
1872
1873 return ret;
1874 }
1875
1876 /**
1877 * sdw_handle_slave_status() - Handle Slave status
1878 * @bus: SDW bus instance
1879 * @status: Status for all Slave(s)
1880 */
sdw_handle_slave_status(struct sdw_bus * bus,enum sdw_slave_status status[])1881 int sdw_handle_slave_status(struct sdw_bus *bus,
1882 enum sdw_slave_status status[])
1883 {
1884 enum sdw_slave_status prev_status;
1885 struct sdw_slave *slave;
1886 bool attached_initializing, id_programmed;
1887 int i, ret = 0;
1888
1889 /* first check if any Slaves fell off the bus */
1890 for (i = 1; i <= SDW_MAX_DEVICES; i++) {
1891 mutex_lock(&bus->bus_lock);
1892 if (test_bit(i, bus->assigned) == false) {
1893 mutex_unlock(&bus->bus_lock);
1894 continue;
1895 }
1896 mutex_unlock(&bus->bus_lock);
1897
1898 slave = sdw_get_slave(bus, i);
1899 if (!slave)
1900 continue;
1901
1902 if (status[i] == SDW_SLAVE_UNATTACHED &&
1903 slave->status != SDW_SLAVE_UNATTACHED) {
1904 dev_dbg(&slave->dev, "Slave %d state check1: UNATTACHED, status was %d\n",
1905 i, slave->status);
1906 sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
1907
1908 /* Ensure driver knows that peripheral unattached */
1909 ret = sdw_update_slave_status(slave, status[i]);
1910 if (ret < 0)
1911 dev_warn(&slave->dev, "Update Slave status failed:%d\n", ret);
1912 }
1913 }
1914
1915 if (status[0] == SDW_SLAVE_ATTACHED) {
1916 dev_dbg(bus->dev, "Slave attached, programming device number\n");
1917
1918 /*
1919 * Programming a device number will have side effects,
1920 * so we deal with other devices at a later time.
1921 * This relies on those devices reporting ATTACHED, which will
1922 * trigger another call to this function. This will only
1923 * happen if at least one device ID was programmed.
1924 * Error returns from sdw_program_device_num() are currently
1925 * ignored because there's no useful recovery that can be done.
1926 * Returning the error here could result in the current status
1927 * of other devices not being handled, because if no device IDs
1928 * were programmed there's nothing to guarantee a status change
1929 * to trigger another call to this function.
1930 */
1931 sdw_program_device_num(bus, &id_programmed);
1932 if (id_programmed)
1933 return 0;
1934 }
1935
1936 /* Continue to check other slave statuses */
1937 for (i = 1; i <= SDW_MAX_DEVICES; i++) {
1938 mutex_lock(&bus->bus_lock);
1939 if (test_bit(i, bus->assigned) == false) {
1940 mutex_unlock(&bus->bus_lock);
1941 continue;
1942 }
1943 mutex_unlock(&bus->bus_lock);
1944
1945 slave = sdw_get_slave(bus, i);
1946 if (!slave)
1947 continue;
1948
1949 attached_initializing = false;
1950
1951 switch (status[i]) {
1952 case SDW_SLAVE_UNATTACHED:
1953 if (slave->status == SDW_SLAVE_UNATTACHED)
1954 break;
1955
1956 dev_dbg(&slave->dev, "Slave %d state check2: UNATTACHED, status was %d\n",
1957 i, slave->status);
1958
1959 sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
1960 break;
1961
1962 case SDW_SLAVE_ALERT:
1963 if (slave->status != SDW_SLAVE_ATTACHED &&
1964 slave->status != SDW_SLAVE_ALERT)
1965 continue;
1966
1967 ret = sdw_handle_slave_alerts(slave);
1968 if (ret < 0)
1969 dev_err(&slave->dev,
1970 "Slave %d alert handling failed: %d\n",
1971 i, ret);
1972 break;
1973
1974 case SDW_SLAVE_ATTACHED:
1975 if (slave->status == SDW_SLAVE_ATTACHED)
1976 break;
1977
1978 prev_status = slave->status;
1979 sdw_modify_slave_status(slave, SDW_SLAVE_ATTACHED);
1980
1981 if (prev_status == SDW_SLAVE_ALERT)
1982 break;
1983
1984 attached_initializing = true;
1985
1986 ret = sdw_initialize_slave(slave);
1987 if (ret < 0)
1988 dev_err(&slave->dev,
1989 "Slave %d initialization failed: %d\n",
1990 i, ret);
1991
1992 break;
1993
1994 default:
1995 dev_err(&slave->dev, "Invalid slave %d status:%d\n",
1996 i, status[i]);
1997 break;
1998 }
1999
2000 ret = sdw_update_slave_status(slave, status[i]);
2001 if (ret < 0)
2002 dev_err(&slave->dev,
2003 "Update Slave status failed:%d\n", ret);
2004 if (attached_initializing) {
2005 dev_dbg(&slave->dev,
2006 "signaling initialization completion for Slave %d\n",
2007 slave->dev_num);
2008
2009 complete_all(&slave->initialization_complete);
2010
2011 /*
2012 * If the manager became pm_runtime active, the peripherals will be
2013 * restarted and attach, but their pm_runtime status may remain
2014 * suspended. If the 'update_slave_status' callback initiates
2015 * any sort of deferred processing, this processing would not be
2016 * cancelled on pm_runtime suspend.
2017 * To avoid such zombie states, we queue a request to resume.
2018 * This would be a no-op in case the peripheral was being resumed
2019 * by e.g. the ALSA/ASoC framework.
2020 */
2021 pm_request_resume(&slave->dev);
2022 }
2023 }
2024
2025 return ret;
2026 }
2027 EXPORT_SYMBOL(sdw_handle_slave_status);
2028
sdw_clear_slave_status(struct sdw_bus * bus,u32 request)2029 void sdw_clear_slave_status(struct sdw_bus *bus, u32 request)
2030 {
2031 struct sdw_slave *slave;
2032 int i;
2033
2034 /* Check all non-zero devices */
2035 for (i = 1; i <= SDW_MAX_DEVICES; i++) {
2036 mutex_lock(&bus->bus_lock);
2037 if (test_bit(i, bus->assigned) == false) {
2038 mutex_unlock(&bus->bus_lock);
2039 continue;
2040 }
2041 mutex_unlock(&bus->bus_lock);
2042
2043 slave = sdw_get_slave(bus, i);
2044 if (!slave)
2045 continue;
2046
2047 if (slave->status != SDW_SLAVE_UNATTACHED) {
2048 sdw_modify_slave_status(slave, SDW_SLAVE_UNATTACHED);
2049 slave->first_interrupt_done = false;
2050 sdw_update_slave_status(slave, SDW_SLAVE_UNATTACHED);
2051 }
2052
2053 /* keep track of request, used in pm_runtime resume */
2054 slave->unattach_request = request;
2055 }
2056 }
2057 EXPORT_SYMBOL(sdw_clear_slave_status);
2058
sdw_bpt_send_async(struct sdw_bus * bus,struct sdw_slave * slave,struct sdw_bpt_msg * msg)2059 int sdw_bpt_send_async(struct sdw_bus *bus, struct sdw_slave *slave, struct sdw_bpt_msg *msg)
2060 {
2061 int len = 0;
2062 int i;
2063
2064 for (i = 0; i < msg->sections; i++)
2065 len += msg->sec[i].len;
2066
2067 if (len > SDW_BPT_MSG_MAX_BYTES) {
2068 dev_err(bus->dev, "Invalid BPT message length %d\n", len);
2069 return -EINVAL;
2070 }
2071
2072 /* check device is enumerated */
2073 if (slave->dev_num == SDW_ENUM_DEV_NUM ||
2074 slave->dev_num > SDW_MAX_DEVICES) {
2075 dev_err(&slave->dev, "Invalid device number %d\n", slave->dev_num);
2076 return -ENODEV;
2077 }
2078
2079 /* make sure all callbacks are defined */
2080 if (!bus->ops->bpt_send_async ||
2081 !bus->ops->bpt_wait) {
2082 dev_err(bus->dev, "BPT callbacks not defined\n");
2083 return -EOPNOTSUPP;
2084 }
2085
2086 return bus->ops->bpt_send_async(bus, slave, msg);
2087 }
2088 EXPORT_SYMBOL(sdw_bpt_send_async);
2089
sdw_bpt_wait(struct sdw_bus * bus,struct sdw_slave * slave,struct sdw_bpt_msg * msg)2090 int sdw_bpt_wait(struct sdw_bus *bus, struct sdw_slave *slave, struct sdw_bpt_msg *msg)
2091 {
2092 return bus->ops->bpt_wait(bus, slave, msg);
2093 }
2094 EXPORT_SYMBOL(sdw_bpt_wait);
2095
sdw_bpt_send_sync(struct sdw_bus * bus,struct sdw_slave * slave,struct sdw_bpt_msg * msg)2096 int sdw_bpt_send_sync(struct sdw_bus *bus, struct sdw_slave *slave, struct sdw_bpt_msg *msg)
2097 {
2098 int ret;
2099
2100 ret = sdw_bpt_send_async(bus, slave, msg);
2101 if (ret < 0)
2102 return ret;
2103
2104 return sdw_bpt_wait(bus, slave, msg);
2105 }
2106 EXPORT_SYMBOL(sdw_bpt_send_sync);
2107