xref: /linux/drivers/i3c/master.c (revision 8323e783dc3904839e64cb08cfcc7571ef9212c4)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright (C) 2018 Cadence Design Systems Inc.
4  *
5  * Author: Boris Brezillon <boris.brezillon@bootlin.com>
6  */
7 
8 #include <linux/atomic.h>
9 #include <linux/bug.h>
10 #include <linux/device.h>
11 #include <linux/dma-mapping.h>
12 #include <linux/err.h>
13 #include <linux/export.h>
14 #include <linux/kernel.h>
15 #include <linux/list.h>
16 #include <linux/of.h>
17 #include <linux/pm_runtime.h>
18 #include <linux/slab.h>
19 #include <linux/spinlock.h>
20 #include <linux/workqueue.h>
21 
22 #include "internals.h"
23 
24 static DEFINE_IDR(i3c_bus_idr);
25 static DEFINE_MUTEX(i3c_core_lock);
26 static int __i3c_first_dynamic_bus_num;
27 static BLOCKING_NOTIFIER_HEAD(i3c_bus_notifier);
28 
29 /**
30  * i3c_bus_maintenance_lock - Lock the bus for a maintenance operation
31  * @bus: I3C bus to take the lock on
32  *
33  * This function takes the bus lock so that no other operations can occur on
34  * the bus. This is needed for all kind of bus maintenance operation, like
35  * - enabling/disabling slave events
36  * - re-triggering DAA
37  * - changing the dynamic address of a device
38  * - relinquishing mastership
39  * - ...
40  *
41  * The reason for this kind of locking is that we don't want drivers and core
42  * logic to rely on I3C device information that could be changed behind their
43  * back.
44  */
45 static void i3c_bus_maintenance_lock(struct i3c_bus *bus)
46 {
47 	down_write(&bus->lock);
48 }
49 
50 /**
51  * i3c_bus_maintenance_unlock - Release the bus lock after a maintenance
52  *			      operation
53  * @bus: I3C bus to release the lock on
54  *
55  * Should be called when the bus maintenance operation is done. See
56  * i3c_bus_maintenance_lock() for more details on what these maintenance
57  * operations are.
58  */
59 static void i3c_bus_maintenance_unlock(struct i3c_bus *bus)
60 {
61 	up_write(&bus->lock);
62 }
63 
64 /**
65  * i3c_bus_normaluse_lock - Lock the bus for a normal operation
66  * @bus: I3C bus to take the lock on
67  *
68  * This function takes the bus lock for any operation that is not a maintenance
69  * operation (see i3c_bus_maintenance_lock() for a non-exhaustive list of
70  * maintenance operations). Basically all communications with I3C devices are
71  * normal operations (HDR, SDR transfers or CCC commands that do not change bus
72  * state or I3C dynamic address).
73  *
74  * Note that this lock is not guaranteeing serialization of normal operations.
75  * In other words, transfer requests passed to the I3C master can be submitted
76  * in parallel and I3C master drivers have to use their own locking to make
77  * sure two different communications are not inter-mixed, or access to the
78  * output/input queue is not done while the engine is busy.
79  */
80 void i3c_bus_normaluse_lock(struct i3c_bus *bus)
81 {
82 	down_read(&bus->lock);
83 }
84 
85 /**
86  * i3c_bus_normaluse_unlock - Release the bus lock after a normal operation
87  * @bus: I3C bus to release the lock on
88  *
89  * Should be called when a normal operation is done. See
90  * i3c_bus_normaluse_lock() for more details on what these normal operations
91  * are.
92  */
93 void i3c_bus_normaluse_unlock(struct i3c_bus *bus)
94 {
95 	up_read(&bus->lock);
96 }
97 
98 static struct i3c_master_controller *
99 i3c_bus_to_i3c_master(struct i3c_bus *i3cbus)
100 {
101 	return container_of(i3cbus, struct i3c_master_controller, bus);
102 }
103 
104 static struct i3c_master_controller *dev_to_i3cmaster(struct device *dev)
105 {
106 	return container_of(dev, struct i3c_master_controller, dev);
107 }
108 
109 static int __must_check i3c_master_rpm_get(struct i3c_master_controller *master)
110 {
111 	int ret = master->rpm_allowed ? pm_runtime_resume_and_get(master->dev.parent) : 0;
112 
113 	if (ret < 0) {
114 		dev_err(master->dev.parent, "runtime resume failed, error %d\n", ret);
115 		return ret;
116 	}
117 	return 0;
118 }
119 
120 static void i3c_master_rpm_put(struct i3c_master_controller *master)
121 {
122 	if (master->rpm_allowed)
123 		pm_runtime_put_autosuspend(master->dev.parent);
124 }
125 
126 int i3c_bus_rpm_get(struct i3c_bus *bus)
127 {
128 	return i3c_master_rpm_get(i3c_bus_to_i3c_master(bus));
129 }
130 
131 void i3c_bus_rpm_put(struct i3c_bus *bus)
132 {
133 	i3c_master_rpm_put(i3c_bus_to_i3c_master(bus));
134 }
135 
136 bool i3c_bus_rpm_ibi_allowed(struct i3c_bus *bus)
137 {
138 	return i3c_bus_to_i3c_master(bus)->rpm_ibi_allowed;
139 }
140 
141 static const struct device_type i3c_device_type;
142 
143 static struct i3c_bus *dev_to_i3cbus(struct device *dev)
144 {
145 	struct i3c_master_controller *master;
146 
147 	if (dev->type == &i3c_device_type)
148 		return dev_to_i3cdev(dev)->bus;
149 
150 	master = dev_to_i3cmaster(dev);
151 
152 	return &master->bus;
153 }
154 
155 static struct i3c_dev_desc *dev_to_i3cdesc(struct device *dev)
156 {
157 	struct i3c_master_controller *master;
158 
159 	if (dev->type == &i3c_device_type)
160 		return dev_to_i3cdev(dev)->desc;
161 
162 	master = dev_to_i3cmaster(dev);
163 
164 	return master->this;
165 }
166 
167 static ssize_t bcr_show(struct device *dev,
168 			struct device_attribute *da,
169 			char *buf)
170 {
171 	struct i3c_bus *bus = dev_to_i3cbus(dev);
172 	struct i3c_dev_desc *desc;
173 	ssize_t ret;
174 
175 	i3c_bus_normaluse_lock(bus);
176 	desc = dev_to_i3cdesc(dev);
177 	ret = sysfs_emit(buf, "0x%02x\n", desc->info.bcr);
178 	i3c_bus_normaluse_unlock(bus);
179 
180 	return ret;
181 }
182 static DEVICE_ATTR_RO(bcr);
183 
184 static ssize_t dcr_show(struct device *dev,
185 			struct device_attribute *da,
186 			char *buf)
187 {
188 	struct i3c_bus *bus = dev_to_i3cbus(dev);
189 	struct i3c_dev_desc *desc;
190 	ssize_t ret;
191 
192 	i3c_bus_normaluse_lock(bus);
193 	desc = dev_to_i3cdesc(dev);
194 	ret = sysfs_emit(buf, "0x%02x\n", desc->info.dcr);
195 	i3c_bus_normaluse_unlock(bus);
196 
197 	return ret;
198 }
199 static DEVICE_ATTR_RO(dcr);
200 
201 static ssize_t pid_show(struct device *dev,
202 			struct device_attribute *da,
203 			char *buf)
204 {
205 	struct i3c_bus *bus = dev_to_i3cbus(dev);
206 	struct i3c_dev_desc *desc;
207 	ssize_t ret;
208 
209 	i3c_bus_normaluse_lock(bus);
210 	desc = dev_to_i3cdesc(dev);
211 	ret = sysfs_emit(buf, "%llx\n", desc->info.pid);
212 	i3c_bus_normaluse_unlock(bus);
213 
214 	return ret;
215 }
216 static DEVICE_ATTR_RO(pid);
217 
218 static ssize_t dynamic_address_show(struct device *dev,
219 				    struct device_attribute *da,
220 				    char *buf)
221 {
222 	struct i3c_bus *bus = dev_to_i3cbus(dev);
223 	struct i3c_dev_desc *desc;
224 	ssize_t ret;
225 
226 	i3c_bus_normaluse_lock(bus);
227 	desc = dev_to_i3cdesc(dev);
228 	ret = sysfs_emit(buf, "%02x\n", desc->info.dyn_addr);
229 	i3c_bus_normaluse_unlock(bus);
230 
231 	return ret;
232 }
233 static DEVICE_ATTR_RO(dynamic_address);
234 
235 static const char * const hdrcap_strings[] = {
236 	"hdr-ddr", "hdr-tsp", "hdr-tsl",
237 };
238 
239 static ssize_t hdrcap_show(struct device *dev,
240 			   struct device_attribute *da,
241 			   char *buf)
242 {
243 	struct i3c_bus *bus = dev_to_i3cbus(dev);
244 	struct i3c_dev_desc *desc;
245 	ssize_t offset = 0, ret;
246 	unsigned long caps;
247 	int mode;
248 
249 	i3c_bus_normaluse_lock(bus);
250 	desc = dev_to_i3cdesc(dev);
251 	caps = desc->info.hdr_cap;
252 	for_each_set_bit(mode, &caps, 8) {
253 		if (mode >= ARRAY_SIZE(hdrcap_strings))
254 			break;
255 
256 		if (!hdrcap_strings[mode])
257 			continue;
258 
259 		ret = sysfs_emit_at(buf, offset, offset ? " %s" : "%s",
260 			      hdrcap_strings[mode]);
261 		if (ret < 0)
262 			goto out;
263 
264 		offset += ret;
265 	}
266 
267 	ret = sysfs_emit_at(buf, offset, "\n");
268 	if (ret < 0)
269 		goto out;
270 
271 	ret = offset + ret;
272 
273 out:
274 	i3c_bus_normaluse_unlock(bus);
275 
276 	return ret;
277 }
278 static DEVICE_ATTR_RO(hdrcap);
279 
280 static ssize_t modalias_show(struct device *dev,
281 			     struct device_attribute *da, char *buf)
282 {
283 	struct i3c_device *i3c = dev_to_i3cdev(dev);
284 	struct i3c_device_info devinfo;
285 	u16 manuf, part, ext;
286 
287 	i3c_device_get_info(i3c, &devinfo);
288 	manuf = I3C_PID_MANUF_ID(devinfo.pid);
289 	part = I3C_PID_PART_ID(devinfo.pid);
290 	ext = I3C_PID_EXTRA_INFO(devinfo.pid);
291 
292 	if (I3C_PID_RND_LOWER_32BITS(devinfo.pid))
293 		return sysfs_emit(buf, "i3c:dcr%02Xmanuf%04X\n", devinfo.dcr,
294 			       manuf);
295 
296 	return sysfs_emit(buf, "i3c:dcr%02Xmanuf%04Xpart%04Xext%04X\n",
297 		       devinfo.dcr, manuf, part, ext);
298 }
299 static DEVICE_ATTR_RO(modalias);
300 
301 static struct attribute *i3c_device_attrs[] = {
302 	&dev_attr_bcr.attr,
303 	&dev_attr_dcr.attr,
304 	&dev_attr_pid.attr,
305 	&dev_attr_dynamic_address.attr,
306 	&dev_attr_hdrcap.attr,
307 	&dev_attr_modalias.attr,
308 	NULL,
309 };
310 ATTRIBUTE_GROUPS(i3c_device);
311 
312 static int i3c_device_uevent(const struct device *dev, struct kobj_uevent_env *env)
313 {
314 	const struct i3c_device *i3cdev = dev_to_i3cdev(dev);
315 	struct i3c_device_info devinfo;
316 	u16 manuf, part, ext;
317 
318 	if (i3cdev->desc)
319 		devinfo = i3cdev->desc->info;
320 	manuf = I3C_PID_MANUF_ID(devinfo.pid);
321 	part = I3C_PID_PART_ID(devinfo.pid);
322 	ext = I3C_PID_EXTRA_INFO(devinfo.pid);
323 
324 	if (I3C_PID_RND_LOWER_32BITS(devinfo.pid))
325 		return add_uevent_var(env, "MODALIAS=i3c:dcr%02Xmanuf%04X",
326 				      devinfo.dcr, manuf);
327 
328 	return add_uevent_var(env,
329 			      "MODALIAS=i3c:dcr%02Xmanuf%04Xpart%04Xext%04X",
330 			      devinfo.dcr, manuf, part, ext);
331 }
332 
333 static const struct device_type i3c_device_type = {
334 	.groups	= i3c_device_groups,
335 	.uevent = i3c_device_uevent,
336 };
337 
338 static int i3c_device_match(struct device *dev, const struct device_driver *drv)
339 {
340 	struct i3c_device *i3cdev;
341 	const struct i3c_driver *i3cdrv;
342 
343 	if (dev->type != &i3c_device_type)
344 		return 0;
345 
346 	i3cdev = dev_to_i3cdev(dev);
347 	i3cdrv = drv_to_i3cdrv(drv);
348 	if (i3c_device_match_id(i3cdev, i3cdrv->id_table))
349 		return 1;
350 
351 	return 0;
352 }
353 
354 static int i3c_device_probe(struct device *dev)
355 {
356 	struct i3c_device *i3cdev = dev_to_i3cdev(dev);
357 	struct i3c_driver *driver = drv_to_i3cdrv(dev->driver);
358 
359 	return driver->probe(i3cdev);
360 }
361 
362 static void i3c_device_remove(struct device *dev)
363 {
364 	struct i3c_device *i3cdev = dev_to_i3cdev(dev);
365 	struct i3c_driver *driver = drv_to_i3cdrv(dev->driver);
366 
367 	if (driver->remove)
368 		driver->remove(i3cdev);
369 }
370 
371 static enum i3c_addr_slot_status
372 i3c_bus_get_addr_slot_status_mask(struct i3c_bus *bus, u16 addr, u32 mask)
373 {
374 	unsigned long status;
375 	int bitpos = addr * I3C_ADDR_SLOT_STATUS_BITS;
376 
377 	if (addr > I2C_MAX_ADDR)
378 		return I3C_ADDR_SLOT_RSVD;
379 
380 	status = bus->addrslots[bitpos / BITS_PER_LONG];
381 	status >>= bitpos % BITS_PER_LONG;
382 
383 	return status & mask;
384 }
385 
386 static enum i3c_addr_slot_status
387 i3c_bus_get_addr_slot_status(struct i3c_bus *bus, u16 addr)
388 {
389 	return i3c_bus_get_addr_slot_status_mask(bus, addr, I3C_ADDR_SLOT_STATUS_MASK);
390 }
391 
392 static void i3c_bus_set_addr_slot_status_mask(struct i3c_bus *bus, u16 addr,
393 					      enum i3c_addr_slot_status status, u32 mask)
394 {
395 	int bitpos = addr * I3C_ADDR_SLOT_STATUS_BITS;
396 	unsigned long *ptr;
397 
398 	if (addr > I2C_MAX_ADDR)
399 		return;
400 
401 	ptr = bus->addrslots + (bitpos / BITS_PER_LONG);
402 	*ptr &= ~((unsigned long)mask << (bitpos % BITS_PER_LONG));
403 	*ptr |= ((unsigned long)status & mask) << (bitpos % BITS_PER_LONG);
404 }
405 
406 static void i3c_bus_set_addr_slot_status(struct i3c_bus *bus, u16 addr,
407 					 enum i3c_addr_slot_status status)
408 {
409 	i3c_bus_set_addr_slot_status_mask(bus, addr, status, I3C_ADDR_SLOT_STATUS_MASK);
410 }
411 
412 static bool i3c_bus_dev_addr_is_avail(struct i3c_bus *bus, u8 addr)
413 {
414 	enum i3c_addr_slot_status status;
415 
416 	status = i3c_bus_get_addr_slot_status(bus, addr);
417 
418 	return status == I3C_ADDR_SLOT_FREE;
419 }
420 
421 /*
422  * ┌────┬─────────────┬───┬─────────┬───┐
423  * │S/Sr│ 7'h7E RnW=0 │ACK│ ENTDAA  │ T ├────┐
424  * └────┴─────────────┴───┴─────────┴───┘    │
425  * ┌─────────────────────────────────────────┘
426  * │  ┌──┬─────────────┬───┬─────────────────┬────────────────┬───┬─────────┐
427  * └─►│Sr│7'h7E RnW=1  │ACK│48bit UID BCR DCR│Assign 7bit Addr│PAR│ ACK/NACK428  *    └──┴─────────────┴───┴─────────────────┴────────────────┴───┴─────────┘
429  * Some master controllers (such as HCI) need to prepare the entire above transaction before
430  * sending it out to the I3C bus. This means that a 7-bit dynamic address needs to be allocated
431  * before knowing the target device's UID information.
432  *
433  * However, some I3C targets may request specific addresses (called as "init_dyn_addr"), which is
434  * typically specified by the DT-'s assigned-address property. Lower addresses having higher IBI
435  * priority. If it is available, i3c_bus_get_free_addr() preferably return a free address that is
436  * not in the list of desired addresses (called as "init_dyn_addr"). This allows the device with
437  * the "init_dyn_addr" to switch to its "init_dyn_addr" when it hot-joins the I3C bus. Otherwise,
438  * if the "init_dyn_addr" is already in use by another I3C device, the target device will not be
439  * able to switch to its desired address.
440  *
441  * If the previous step fails, fallback returning one of the remaining unassigned address,
442  * regardless of its state in the desired list.
443  */
444 static int i3c_bus_get_free_addr(struct i3c_bus *bus, u8 start_addr)
445 {
446 	enum i3c_addr_slot_status status;
447 	u8 addr;
448 
449 	for (addr = start_addr; addr < I3C_MAX_ADDR; addr++) {
450 		status = i3c_bus_get_addr_slot_status_mask(bus, addr,
451 							   I3C_ADDR_SLOT_EXT_STATUS_MASK);
452 		if (status == I3C_ADDR_SLOT_FREE)
453 			return addr;
454 	}
455 
456 	for (addr = start_addr; addr < I3C_MAX_ADDR; addr++) {
457 		status = i3c_bus_get_addr_slot_status_mask(bus, addr,
458 							   I3C_ADDR_SLOT_STATUS_MASK);
459 		if (status == I3C_ADDR_SLOT_FREE)
460 			return addr;
461 	}
462 
463 	return -ENOMEM;
464 }
465 
466 static void i3c_bus_init_addrslots(struct i3c_bus *bus)
467 {
468 	int i;
469 
470 	/* Addresses 0 to 7 are reserved. */
471 	for (i = 0; i < 8; i++)
472 		i3c_bus_set_addr_slot_status(bus, i, I3C_ADDR_SLOT_RSVD);
473 
474 	/*
475 	 * Reserve broadcast address and all addresses that might collide
476 	 * with the broadcast address when facing a single bit error.
477 	 */
478 	i3c_bus_set_addr_slot_status(bus, I3C_BROADCAST_ADDR,
479 				     I3C_ADDR_SLOT_RSVD);
480 	for (i = 0; i < 7; i++)
481 		i3c_bus_set_addr_slot_status(bus, I3C_BROADCAST_ADDR ^ BIT(i),
482 					     I3C_ADDR_SLOT_RSVD);
483 }
484 
485 static void i3c_bus_cleanup(struct i3c_bus *i3cbus)
486 {
487 	mutex_lock(&i3c_core_lock);
488 	idr_remove(&i3c_bus_idr, i3cbus->id);
489 	mutex_unlock(&i3c_core_lock);
490 }
491 
492 static int i3c_bus_init(struct i3c_bus *i3cbus, struct device_node *np)
493 {
494 	int ret, start, end, id = -1;
495 
496 	init_rwsem(&i3cbus->lock);
497 	INIT_LIST_HEAD(&i3cbus->devs.i2c);
498 	INIT_LIST_HEAD(&i3cbus->devs.i3c);
499 	i3c_bus_init_addrslots(i3cbus);
500 	i3cbus->mode = I3C_BUS_MODE_PURE;
501 
502 	if (np)
503 		id = of_alias_get_id(np, "i3c");
504 
505 	mutex_lock(&i3c_core_lock);
506 	if (id >= 0) {
507 		start = id;
508 		end = start + 1;
509 	} else {
510 		start = __i3c_first_dynamic_bus_num;
511 		end = 0;
512 	}
513 
514 	ret = idr_alloc(&i3c_bus_idr, i3cbus, start, end, GFP_KERNEL);
515 	mutex_unlock(&i3c_core_lock);
516 
517 	if (ret < 0)
518 		return ret;
519 
520 	i3cbus->id = ret;
521 
522 	return 0;
523 }
524 
525 void i3c_for_each_bus_locked(int (*fn)(struct i3c_bus *bus, void *data),
526 			     void *data)
527 {
528 	struct i3c_bus *bus;
529 	int id;
530 
531 	mutex_lock(&i3c_core_lock);
532 	idr_for_each_entry(&i3c_bus_idr, bus, id)
533 		fn(bus, data);
534 	mutex_unlock(&i3c_core_lock);
535 }
536 EXPORT_SYMBOL_GPL(i3c_for_each_bus_locked);
537 
538 int i3c_register_notifier(struct notifier_block *nb)
539 {
540 	return blocking_notifier_chain_register(&i3c_bus_notifier, nb);
541 }
542 EXPORT_SYMBOL_GPL(i3c_register_notifier);
543 
544 int i3c_unregister_notifier(struct notifier_block *nb)
545 {
546 	return blocking_notifier_chain_unregister(&i3c_bus_notifier, nb);
547 }
548 EXPORT_SYMBOL_GPL(i3c_unregister_notifier);
549 
550 static void i3c_bus_notify(struct i3c_bus *bus, unsigned int action)
551 {
552 	blocking_notifier_call_chain(&i3c_bus_notifier, action, bus);
553 }
554 
555 static const char * const i3c_bus_mode_strings[] = {
556 	[I3C_BUS_MODE_PURE] = "pure",
557 	[I3C_BUS_MODE_MIXED_FAST] = "mixed-fast",
558 	[I3C_BUS_MODE_MIXED_LIMITED] = "mixed-limited",
559 	[I3C_BUS_MODE_MIXED_SLOW] = "mixed-slow",
560 };
561 
562 static ssize_t mode_show(struct device *dev,
563 			 struct device_attribute *da,
564 			 char *buf)
565 {
566 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
567 	ssize_t ret;
568 
569 	i3c_bus_normaluse_lock(i3cbus);
570 	if (i3cbus->mode < 0 ||
571 	    i3cbus->mode >= ARRAY_SIZE(i3c_bus_mode_strings) ||
572 	    !i3c_bus_mode_strings[i3cbus->mode])
573 		ret = sysfs_emit(buf, "unknown\n");
574 	else
575 		ret = sysfs_emit(buf, "%s\n", i3c_bus_mode_strings[i3cbus->mode]);
576 	i3c_bus_normaluse_unlock(i3cbus);
577 
578 	return ret;
579 }
580 static DEVICE_ATTR_RO(mode);
581 
582 static ssize_t current_master_show(struct device *dev,
583 				   struct device_attribute *da,
584 				   char *buf)
585 {
586 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
587 	ssize_t ret;
588 
589 	i3c_bus_normaluse_lock(i3cbus);
590 	ret = sysfs_emit(buf, "%d-%llx\n", i3cbus->id,
591 		      i3cbus->cur_master->info.pid);
592 	i3c_bus_normaluse_unlock(i3cbus);
593 
594 	return ret;
595 }
596 static DEVICE_ATTR_RO(current_master);
597 
598 static ssize_t i3c_scl_frequency_show(struct device *dev,
599 				      struct device_attribute *da,
600 				      char *buf)
601 {
602 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
603 	ssize_t ret;
604 
605 	i3c_bus_normaluse_lock(i3cbus);
606 	ret = sysfs_emit(buf, "%ld\n", i3cbus->scl_rate.i3c);
607 	i3c_bus_normaluse_unlock(i3cbus);
608 
609 	return ret;
610 }
611 static DEVICE_ATTR_RO(i3c_scl_frequency);
612 
613 static ssize_t i2c_scl_frequency_show(struct device *dev,
614 				      struct device_attribute *da,
615 				      char *buf)
616 {
617 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
618 	ssize_t ret;
619 
620 	i3c_bus_normaluse_lock(i3cbus);
621 	ret = sysfs_emit(buf, "%ld\n", i3cbus->scl_rate.i2c);
622 	i3c_bus_normaluse_unlock(i3cbus);
623 
624 	return ret;
625 }
626 static DEVICE_ATTR_RO(i2c_scl_frequency);
627 
628 static void i3c_master_hj_work_fn(struct work_struct *work)
629 {
630 	struct i3c_master_controller *master = container_of(work, typeof(*master), hj_work);
631 
632 	if (!master->shutting_down)
633 		i3c_master_do_daa(master);
634 }
635 
636 static int i3c_set_hotjoin(struct i3c_master_controller *master, bool enable)
637 {
638 	int ret;
639 
640 	if (!master || !master->ops)
641 		return -EINVAL;
642 
643 	if (!master->ops->enable_hotjoin || !master->ops->disable_hotjoin)
644 		return -EINVAL;
645 
646 	if (enable || master->rpm_ibi_allowed) {
647 		ret = i3c_master_rpm_get(master);
648 		if (ret)
649 			return ret;
650 	}
651 
652 	i3c_bus_maintenance_lock(&master->bus);
653 
654 	if (master->shutting_down)
655 		ret = -ENODEV;
656 	else if (enable)
657 		ret = master->ops->enable_hotjoin(master);
658 	else
659 		ret = master->ops->disable_hotjoin(master);
660 
661 	if (!ret)
662 		master->hotjoin = enable;
663 
664 	i3c_bus_maintenance_unlock(&master->bus);
665 
666 	if ((enable && ret) || (!enable && !ret) || master->rpm_ibi_allowed)
667 		i3c_master_rpm_put(master);
668 
669 	return ret;
670 }
671 
672 static ssize_t hotjoin_store(struct device *dev, struct device_attribute *attr,
673 			     const char *buf, size_t count)
674 {
675 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
676 	int ret;
677 	bool res;
678 
679 	if (!i3cbus->cur_master)
680 		return -EINVAL;
681 
682 	if (kstrtobool(buf, &res))
683 		return -EINVAL;
684 
685 	ret = i3c_set_hotjoin(i3cbus->cur_master->common.master, res);
686 	if (ret)
687 		return ret;
688 
689 	return count;
690 }
691 
692 /*
693  * i3c_master_enable_hotjoin - Enable hotjoin
694  * @master: I3C master object
695  *
696  * Return: a 0 in case of success, an negative error code otherwise.
697  */
698 int i3c_master_enable_hotjoin(struct i3c_master_controller *master)
699 {
700 	return i3c_set_hotjoin(master, true);
701 }
702 EXPORT_SYMBOL_GPL(i3c_master_enable_hotjoin);
703 
704 /*
705  * i3c_master_disable_hotjoin - Disable hotjoin
706  * @master: I3C master object
707  *
708  * Return: a 0 in case of success, an negative error code otherwise.
709  */
710 int i3c_master_disable_hotjoin(struct i3c_master_controller *master)
711 {
712 	return i3c_set_hotjoin(master, false);
713 }
714 EXPORT_SYMBOL_GPL(i3c_master_disable_hotjoin);
715 
716 /**
717  * i3c_master_queue_hotjoin - Queue DAA processing after a Hot-Join event
718  * @master: I3C master object
719  *
720  * Queue the hot-join worker on the master's workqueue.
721  */
722 void i3c_master_queue_hotjoin(struct i3c_master_controller *master)
723 {
724 	queue_work(master->wq, &master->hj_work);
725 }
726 EXPORT_SYMBOL_GPL(i3c_master_queue_hotjoin);
727 
728 static ssize_t hotjoin_show(struct device *dev, struct device_attribute *da, char *buf)
729 {
730 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
731 	ssize_t ret;
732 
733 	i3c_bus_normaluse_lock(i3cbus);
734 	ret = sysfs_emit(buf, "%d\n", i3cbus->cur_master->common.master->hotjoin);
735 	i3c_bus_normaluse_unlock(i3cbus);
736 
737 	return ret;
738 }
739 
740 static DEVICE_ATTR_RW(hotjoin);
741 
742 static ssize_t dev_nack_retry_count_show(struct device *dev,
743 					 struct device_attribute *attr, char *buf)
744 {
745 	return sysfs_emit(buf, "%u\n", dev_to_i3cmaster(dev)->dev_nack_retry_count);
746 }
747 
748 static ssize_t dev_nack_retry_count_store(struct device *dev,
749 					  struct device_attribute *attr,
750 					  const char *buf, size_t count)
751 {
752 	struct i3c_bus *i3cbus = dev_to_i3cbus(dev);
753 	struct i3c_master_controller *master = dev_to_i3cmaster(dev);
754 	unsigned long val;
755 	int ret;
756 
757 	ret = kstrtoul(buf, 0, &val);
758 	if (ret)
759 		return ret;
760 
761 	i3c_bus_maintenance_lock(i3cbus);
762 	ret = master->ops->set_dev_nack_retry(master, val);
763 	i3c_bus_maintenance_unlock(i3cbus);
764 
765 	if (ret)
766 		return ret;
767 
768 	master->dev_nack_retry_count = val;
769 
770 	return count;
771 }
772 
773 static DEVICE_ATTR_RW(dev_nack_retry_count);
774 
775 static ssize_t do_daa_store(struct device *dev,
776 			    struct device_attribute *attr,
777 			    const char *buf, size_t count)
778 {
779 	struct i3c_master_controller *master = dev_to_i3cmaster(dev);
780 	bool val;
781 	int ret;
782 
783 	if (kstrtobool(buf, &val))
784 		return -EINVAL;
785 
786 	if (!val)
787 		return -EINVAL;
788 
789 	if (!master->init_done)
790 		return -EAGAIN;
791 
792 	ret = i3c_master_do_daa(master);
793 	if (ret)
794 		return ret;
795 
796 	return count;
797 }
798 
799 static DEVICE_ATTR_WO(do_daa);
800 
801 static struct attribute *i3c_masterdev_attrs[] = {
802 	&dev_attr_mode.attr,
803 	&dev_attr_current_master.attr,
804 	&dev_attr_i3c_scl_frequency.attr,
805 	&dev_attr_i2c_scl_frequency.attr,
806 	&dev_attr_bcr.attr,
807 	&dev_attr_dcr.attr,
808 	&dev_attr_pid.attr,
809 	&dev_attr_dynamic_address.attr,
810 	&dev_attr_hdrcap.attr,
811 	&dev_attr_hotjoin.attr,
812 	&dev_attr_do_daa.attr,
813 	NULL,
814 };
815 ATTRIBUTE_GROUPS(i3c_masterdev);
816 
817 static void i3c_masterdev_release(struct device *dev)
818 {
819 	struct i3c_master_controller *master = dev_to_i3cmaster(dev);
820 	struct i3c_bus *bus = dev_to_i3cbus(dev);
821 
822 	if (master->wq)
823 		destroy_workqueue(master->wq);
824 
825 	WARN_ON(!list_empty(&bus->devs.i2c) || !list_empty(&bus->devs.i3c));
826 	i3c_bus_cleanup(bus);
827 
828 	of_node_put(dev->of_node);
829 }
830 
831 static const struct device_type i3c_masterdev_type = {
832 	.groups	= i3c_masterdev_groups,
833 };
834 
835 static void i3c_master_shutdown(struct i3c_master_controller *master)
836 {
837 	i3c_bus_maintenance_lock(&master->bus);
838 	master->shutting_down = true;
839 	i3c_bus_maintenance_unlock(&master->bus);
840 
841 	cancel_work_sync(&master->hj_work);
842 }
843 
844 static void i3c_device_shutdown(struct device *dev)
845 {
846 	if (dev->type == &i3c_masterdev_type)
847 		i3c_master_shutdown(dev_to_i3cmaster(dev));
848 }
849 
850 const struct bus_type i3c_bus_type = {
851 	.name = "i3c",
852 	.match = i3c_device_match,
853 	.probe = i3c_device_probe,
854 	.remove = i3c_device_remove,
855 	.shutdown = i3c_device_shutdown,
856 };
857 EXPORT_SYMBOL_GPL(i3c_bus_type);
858 
859 static int i3c_bus_set_mode(struct i3c_bus *i3cbus, enum i3c_bus_mode mode,
860 			    unsigned long max_i2c_scl_rate)
861 {
862 	struct i3c_master_controller *master = i3c_bus_to_i3c_master(i3cbus);
863 
864 	i3cbus->mode = mode;
865 
866 	switch (i3cbus->mode) {
867 	case I3C_BUS_MODE_PURE:
868 		if (!i3cbus->scl_rate.i3c)
869 			i3cbus->scl_rate.i3c = I3C_BUS_I3C_SCL_TYP_RATE;
870 		break;
871 	case I3C_BUS_MODE_MIXED_FAST:
872 	case I3C_BUS_MODE_MIXED_LIMITED:
873 		if (!i3cbus->scl_rate.i3c)
874 			i3cbus->scl_rate.i3c = I3C_BUS_I3C_SCL_TYP_RATE;
875 		if (!i3cbus->scl_rate.i2c)
876 			i3cbus->scl_rate.i2c = max_i2c_scl_rate;
877 		break;
878 	case I3C_BUS_MODE_MIXED_SLOW:
879 		if (!i3cbus->scl_rate.i2c)
880 			i3cbus->scl_rate.i2c = max_i2c_scl_rate;
881 		if (!i3cbus->scl_rate.i3c ||
882 		    i3cbus->scl_rate.i3c > i3cbus->scl_rate.i2c)
883 			i3cbus->scl_rate.i3c = i3cbus->scl_rate.i2c;
884 		break;
885 	default:
886 		return -EINVAL;
887 	}
888 
889 	dev_dbg(&master->dev, "i2c-scl = %ld Hz i3c-scl = %ld Hz\n",
890 		i3cbus->scl_rate.i2c, i3cbus->scl_rate.i3c);
891 
892 	/*
893 	 * I3C/I2C frequency may have been overridden, check that user-provided
894 	 * values are not exceeding max possible frequency.
895 	 */
896 	if (i3cbus->scl_rate.i3c > I3C_BUS_I3C_SCL_MAX_RATE ||
897 	    i3cbus->scl_rate.i2c > I3C_BUS_I2C_FM_PLUS_SCL_MAX_RATE)
898 		return -EINVAL;
899 
900 	return 0;
901 }
902 
903 static struct i3c_master_controller *
904 i2c_adapter_to_i3c_master(struct i2c_adapter *adap)
905 {
906 	return container_of(adap, struct i3c_master_controller, i2c);
907 }
908 
909 static struct i2c_adapter *
910 i3c_master_to_i2c_adapter(struct i3c_master_controller *master)
911 {
912 	return &master->i2c;
913 }
914 
915 static void i3c_master_free_i2c_dev(struct i2c_dev_desc *dev)
916 {
917 	kfree(dev);
918 }
919 
920 static struct i2c_dev_desc *
921 i3c_master_alloc_i2c_dev(struct i3c_master_controller *master,
922 			 u16 addr, u8 lvr)
923 {
924 	struct i2c_dev_desc *dev;
925 
926 	dev = kzalloc_obj(*dev);
927 	if (!dev)
928 		return ERR_PTR(-ENOMEM);
929 
930 	dev->common.master = master;
931 	dev->addr = addr;
932 	dev->lvr = lvr;
933 
934 	return dev;
935 }
936 
937 static void *i3c_ccc_cmd_dest_init(struct i3c_ccc_cmd_dest *dest, u8 addr,
938 				   u16 payloadlen)
939 {
940 	dest->addr = addr;
941 	dest->payload.len = payloadlen;
942 	if (payloadlen)
943 		dest->payload.data = kzalloc(payloadlen, GFP_KERNEL);
944 	else
945 		dest->payload.data = NULL;
946 
947 	return dest->payload.data;
948 }
949 
950 static void i3c_ccc_cmd_dest_cleanup(struct i3c_ccc_cmd_dest *dest)
951 {
952 	kfree(dest->payload.data);
953 }
954 
955 static void i3c_ccc_cmd_init(struct i3c_ccc_cmd *cmd, bool rnw, u8 id,
956 			     struct i3c_ccc_cmd_dest *dests,
957 			     unsigned int ndests)
958 {
959 	cmd->rnw = rnw ? 1 : 0;
960 	cmd->id = id;
961 	cmd->dests = dests;
962 	cmd->ndests = ndests;
963 	cmd->err = I3C_ERROR_UNKNOWN;
964 }
965 
966 /**
967  * i3c_master_send_ccc_cmd_locked() - send a CCC (Common Command Codes)
968  * @master: master used to send frames on the bus
969  * @cmd: command to send
970  *
971  * Return: 0 in case of success, or a negative error code otherwise.
972  *         I3C Mx error codes are stored in cmd->err.
973  */
974 static int i3c_master_send_ccc_cmd_locked(struct i3c_master_controller *master,
975 					  struct i3c_ccc_cmd *cmd)
976 {
977 	if (!cmd || !master)
978 		return -EINVAL;
979 
980 	if (WARN_ON(master->init_done &&
981 		    !rwsem_is_locked(&master->bus.lock)))
982 		return -EINVAL;
983 
984 	if (!master->ops->send_ccc_cmd)
985 		return -EOPNOTSUPP;
986 
987 	if ((cmd->id & I3C_CCC_DIRECT) && (!cmd->dests || !cmd->ndests))
988 		return -EINVAL;
989 
990 	if (master->ops->supports_ccc_cmd &&
991 	    !master->ops->supports_ccc_cmd(master, cmd))
992 		return -EOPNOTSUPP;
993 
994 	return master->ops->send_ccc_cmd(master, cmd);
995 }
996 
997 static struct i2c_dev_desc *
998 i3c_master_find_i2c_dev_by_addr(const struct i3c_master_controller *master,
999 				u16 addr)
1000 {
1001 	struct i2c_dev_desc *dev;
1002 
1003 	i3c_bus_for_each_i2cdev(&master->bus, dev) {
1004 		if (dev->addr == addr)
1005 			return dev;
1006 	}
1007 
1008 	return NULL;
1009 }
1010 
1011 /**
1012  * i3c_master_get_free_addr() - get a free address on the bus
1013  * @master: I3C master object
1014  * @start_addr: where to start searching
1015  *
1016  * This function must be called with the bus lock held in write mode.
1017  *
1018  * Return: the first free address starting at @start_addr (included) or -ENOMEM
1019  * if there's no more address available.
1020  */
1021 int i3c_master_get_free_addr(struct i3c_master_controller *master,
1022 			     u8 start_addr)
1023 {
1024 	return i3c_bus_get_free_addr(&master->bus, start_addr);
1025 }
1026 EXPORT_SYMBOL_GPL(i3c_master_get_free_addr);
1027 
1028 static void i3c_device_release(struct device *dev)
1029 {
1030 	struct i3c_device *i3cdev = dev_to_i3cdev(dev);
1031 
1032 	WARN_ON(i3cdev->desc);
1033 
1034 	of_node_put(i3cdev->dev.of_node);
1035 	kfree(i3cdev);
1036 }
1037 
1038 static void i3c_master_free_i3c_dev(struct i3c_dev_desc *dev)
1039 {
1040 	kfree(dev);
1041 }
1042 
1043 static struct i3c_dev_desc *
1044 i3c_master_alloc_i3c_dev(struct i3c_master_controller *master,
1045 			 const struct i3c_device_info *info)
1046 {
1047 	struct i3c_dev_desc *dev;
1048 
1049 	dev = kzalloc_obj(*dev);
1050 	if (!dev)
1051 		return ERR_PTR(-ENOMEM);
1052 
1053 	dev->common.master = master;
1054 	dev->info = *info;
1055 	mutex_init(&dev->ibi_lock);
1056 
1057 	return dev;
1058 }
1059 
1060 static int i3c_master_rstdaa_locked(struct i3c_master_controller *master,
1061 				    u8 addr)
1062 {
1063 	enum i3c_addr_slot_status addrstat;
1064 	struct i3c_ccc_cmd_dest dest;
1065 	struct i3c_ccc_cmd cmd;
1066 	int ret;
1067 
1068 	if (!master)
1069 		return -EINVAL;
1070 
1071 	addrstat = i3c_bus_get_addr_slot_status(&master->bus, addr);
1072 	if (addr != I3C_BROADCAST_ADDR && addrstat != I3C_ADDR_SLOT_I3C_DEV)
1073 		return -EINVAL;
1074 
1075 	i3c_ccc_cmd_dest_init(&dest, addr, 0);
1076 	i3c_ccc_cmd_init(&cmd, false,
1077 			 I3C_CCC_RSTDAA(addr == I3C_BROADCAST_ADDR),
1078 			 &dest, 1);
1079 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1080 	i3c_ccc_cmd_dest_cleanup(&dest);
1081 
1082 	/* No active devices on the bus. */
1083 	if (ret && cmd.err == I3C_ERROR_M2)
1084 		ret = 0;
1085 
1086 	return ret;
1087 }
1088 
1089 /**
1090  * i3c_master_entdaa_locked() - start a DAA (Dynamic Address Assignment)
1091  *				procedure
1092  * @master: master used to send frames on the bus
1093  *
1094  * Send a ENTDAA CCC command to start a DAA procedure.
1095  *
1096  * Note that this function only sends the ENTDAA CCC command, all the logic
1097  * behind dynamic address assignment has to be handled in the I3C master
1098  * driver.
1099  *
1100  * This function must be called with the bus lock held in write mode.
1101  *
1102  * Return: 0 in case of success, or a negative error code otherwise.
1103  */
1104 int i3c_master_entdaa_locked(struct i3c_master_controller *master)
1105 {
1106 	struct i3c_ccc_cmd_dest dest;
1107 	struct i3c_ccc_cmd cmd;
1108 	int ret;
1109 
1110 	i3c_ccc_cmd_dest_init(&dest, I3C_BROADCAST_ADDR, 0);
1111 	i3c_ccc_cmd_init(&cmd, false, I3C_CCC_ENTDAA, &dest, 1);
1112 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1113 	i3c_ccc_cmd_dest_cleanup(&dest);
1114 
1115 	/* No active devices need an address. */
1116 	if (ret && cmd.err == I3C_ERROR_M2)
1117 		ret = 0;
1118 
1119 	return ret;
1120 }
1121 EXPORT_SYMBOL_GPL(i3c_master_entdaa_locked);
1122 
1123 static int i3c_master_enec_disec_locked(struct i3c_master_controller *master,
1124 					u8 addr, bool enable, u8 evts,
1125 					bool suppress_m2)
1126 {
1127 	struct i3c_ccc_events *events;
1128 	struct i3c_ccc_cmd_dest dest;
1129 	struct i3c_ccc_cmd cmd;
1130 	int ret;
1131 
1132 	events = i3c_ccc_cmd_dest_init(&dest, addr, sizeof(*events));
1133 	if (!events)
1134 		return -ENOMEM;
1135 
1136 	events->events = evts;
1137 	i3c_ccc_cmd_init(&cmd, false,
1138 			 enable ?
1139 			 I3C_CCC_ENEC(addr == I3C_BROADCAST_ADDR) :
1140 			 I3C_CCC_DISEC(addr == I3C_BROADCAST_ADDR),
1141 			 &dest, 1);
1142 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1143 	i3c_ccc_cmd_dest_cleanup(&dest);
1144 
1145 	if (suppress_m2 && ret && cmd.err == I3C_ERROR_M2)
1146 		ret = 0;
1147 
1148 	return ret;
1149 }
1150 
1151 /**
1152  * i3c_master_disec_locked() - send a DISEC CCC command
1153  * @master: master used to send frames on the bus
1154  * @addr: a valid I3C slave address or %I3C_BROADCAST_ADDR
1155  * @evts: events to disable
1156  *
1157  * Send a DISEC CCC command to disable some or all events coming from a
1158  * specific slave, or all devices if @addr is %I3C_BROADCAST_ADDR.
1159  *
1160  * This function must be called with the bus lock held in write mode.
1161  *
1162  * Return: 0 in case of success, or a negative error code otherwise.
1163  */
1164 int i3c_master_disec_locked(struct i3c_master_controller *master, u8 addr,
1165 			    u8 evts)
1166 {
1167 	return i3c_master_enec_disec_locked(master, addr, false, evts, false);
1168 }
1169 EXPORT_SYMBOL_GPL(i3c_master_disec_locked);
1170 
1171 /**
1172  * i3c_master_enec_locked() - send an ENEC CCC command
1173  * @master: master used to send frames on the bus
1174  * @addr: a valid I3C slave address or %I3C_BROADCAST_ADDR
1175  * @evts: events to disable
1176  *
1177  * Sends an ENEC CCC command to enable some or all events coming from a
1178  * specific slave, or all devices if @addr is %I3C_BROADCAST_ADDR.
1179  *
1180  * This function must be called with the bus lock held in write mode.
1181  *
1182  * Return: 0 in case of success, or a negative error code otherwise.
1183  */
1184 int i3c_master_enec_locked(struct i3c_master_controller *master, u8 addr,
1185 			   u8 evts)
1186 {
1187 	return i3c_master_enec_disec_locked(master, addr, true, evts, false);
1188 }
1189 EXPORT_SYMBOL_GPL(i3c_master_enec_locked);
1190 
1191 /**
1192  * i3c_master_defslvs_locked() - send a DEFSLVS CCC command
1193  * @master: master used to send frames on the bus
1194  *
1195  * Send a DEFSLVS CCC command containing all the devices known to the @master.
1196  * This is useful when you have secondary masters on the bus to propagate
1197  * device information.
1198  *
1199  * This should be called after all I3C devices have been discovered (in other
1200  * words, after the DAA procedure has finished) and instantiated in
1201  * &i3c_master_controller_ops->bus_init().
1202  * It should also be called if a master ACKed an Hot-Join request and assigned
1203  * a dynamic address to the device joining the bus.
1204  *
1205  * This function must be called with the bus lock held in write mode.
1206  *
1207  * Return: 0 in case of success, or a negative error code otherwise.
1208  */
1209 int i3c_master_defslvs_locked(struct i3c_master_controller *master)
1210 {
1211 	struct i3c_ccc_defslvs *defslvs;
1212 	struct i3c_ccc_dev_desc *desc;
1213 	struct i3c_ccc_cmd_dest dest;
1214 	struct i3c_dev_desc *i3cdev;
1215 	struct i2c_dev_desc *i2cdev;
1216 	struct i3c_ccc_cmd cmd;
1217 	struct i3c_bus *bus;
1218 	bool send = false;
1219 	int ndevs = 0, ret;
1220 
1221 	if (!master)
1222 		return -EINVAL;
1223 
1224 	bus = i3c_master_get_bus(master);
1225 	i3c_bus_for_each_i3cdev(bus, i3cdev) {
1226 		ndevs++;
1227 
1228 		if (i3cdev == master->this)
1229 			continue;
1230 
1231 		if (I3C_BCR_DEVICE_ROLE(i3cdev->info.bcr) ==
1232 		    I3C_BCR_I3C_MASTER)
1233 			send = true;
1234 	}
1235 
1236 	/* No other master on the bus, skip DEFSLVS. */
1237 	if (!send)
1238 		return 0;
1239 
1240 	i3c_bus_for_each_i2cdev(bus, i2cdev)
1241 		ndevs++;
1242 
1243 	defslvs = i3c_ccc_cmd_dest_init(&dest, I3C_BROADCAST_ADDR,
1244 					struct_size(defslvs, slaves,
1245 						    ndevs - 1));
1246 	if (!defslvs)
1247 		return -ENOMEM;
1248 
1249 	defslvs->count = ndevs;
1250 	defslvs->master.bcr = master->this->info.bcr;
1251 	defslvs->master.dcr = master->this->info.dcr;
1252 	defslvs->master.dyn_addr = master->this->info.dyn_addr << 1;
1253 	defslvs->master.static_addr = I3C_BROADCAST_ADDR << 1;
1254 
1255 	desc = defslvs->slaves;
1256 	i3c_bus_for_each_i2cdev(bus, i2cdev) {
1257 		desc->lvr = i2cdev->lvr;
1258 		desc->static_addr = i2cdev->addr << 1;
1259 		desc++;
1260 	}
1261 
1262 	i3c_bus_for_each_i3cdev(bus, i3cdev) {
1263 		/* Skip the I3C dev representing this master. */
1264 		if (i3cdev == master->this)
1265 			continue;
1266 
1267 		desc->bcr = i3cdev->info.bcr;
1268 		desc->dcr = i3cdev->info.dcr;
1269 		desc->dyn_addr = i3cdev->info.dyn_addr << 1;
1270 		desc->static_addr = i3cdev->info.static_addr << 1;
1271 		desc++;
1272 	}
1273 
1274 	i3c_ccc_cmd_init(&cmd, false, I3C_CCC_DEFSLVS, &dest, 1);
1275 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1276 	i3c_ccc_cmd_dest_cleanup(&dest);
1277 
1278 	return ret;
1279 }
1280 EXPORT_SYMBOL_GPL(i3c_master_defslvs_locked);
1281 
1282 static int i3c_master_setda_locked(struct i3c_master_controller *master,
1283 				   u8 oldaddr, u8 newaddr, bool setdasa)
1284 {
1285 	struct i3c_ccc_cmd_dest dest;
1286 	struct i3c_ccc_setda *setda;
1287 	struct i3c_ccc_cmd cmd;
1288 	int ret;
1289 
1290 	if (!oldaddr || !newaddr)
1291 		return -EINVAL;
1292 
1293 	setda = i3c_ccc_cmd_dest_init(&dest, oldaddr, sizeof(*setda));
1294 	if (!setda)
1295 		return -ENOMEM;
1296 
1297 	setda->addr = newaddr << 1;
1298 	i3c_ccc_cmd_init(&cmd, false,
1299 			 setdasa ? I3C_CCC_SETDASA : I3C_CCC_SETNEWDA,
1300 			 &dest, 1);
1301 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1302 	i3c_ccc_cmd_dest_cleanup(&dest);
1303 
1304 	return ret;
1305 }
1306 
1307 static int i3c_master_setdasa_locked(struct i3c_master_controller *master,
1308 				     u8 static_addr, u8 dyn_addr)
1309 {
1310 	return i3c_master_setda_locked(master, static_addr, dyn_addr, true);
1311 }
1312 
1313 static int i3c_master_setnewda_locked(struct i3c_master_controller *master,
1314 				      u8 oldaddr, u8 newaddr)
1315 {
1316 	return i3c_master_setda_locked(master, oldaddr, newaddr, false);
1317 }
1318 
1319 static int i3c_master_getmrl_locked(struct i3c_master_controller *master,
1320 				    struct i3c_device_info *info)
1321 {
1322 	struct i3c_ccc_cmd_dest dest;
1323 	struct i3c_ccc_mrl *mrl;
1324 	struct i3c_ccc_cmd cmd;
1325 	int ret;
1326 
1327 	mrl = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*mrl));
1328 	if (!mrl)
1329 		return -ENOMEM;
1330 
1331 	/*
1332 	 * When the device does not have IBI payload GETMRL only returns 2
1333 	 * bytes of data.
1334 	 */
1335 	if (!(info->bcr & I3C_BCR_IBI_PAYLOAD))
1336 		dest.payload.len -= 1;
1337 
1338 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMRL, &dest, 1);
1339 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1340 	if (ret)
1341 		goto out;
1342 
1343 	switch (dest.payload.len) {
1344 	case 3:
1345 		info->max_ibi_len = mrl->ibi_len;
1346 		fallthrough;
1347 	case 2:
1348 		info->max_read_len = be16_to_cpu(mrl->read_len);
1349 		break;
1350 	default:
1351 		ret = -EIO;
1352 		goto out;
1353 	}
1354 
1355 out:
1356 	i3c_ccc_cmd_dest_cleanup(&dest);
1357 
1358 	return ret;
1359 }
1360 
1361 static int i3c_master_getmwl_locked(struct i3c_master_controller *master,
1362 				    struct i3c_device_info *info)
1363 {
1364 	struct i3c_ccc_cmd_dest dest;
1365 	struct i3c_ccc_mwl *mwl;
1366 	struct i3c_ccc_cmd cmd;
1367 	int ret;
1368 
1369 	mwl = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*mwl));
1370 	if (!mwl)
1371 		return -ENOMEM;
1372 
1373 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMWL, &dest, 1);
1374 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1375 	if (ret)
1376 		goto out;
1377 
1378 	if (dest.payload.len != sizeof(*mwl)) {
1379 		ret = -EIO;
1380 		goto out;
1381 	}
1382 
1383 	info->max_write_len = be16_to_cpu(mwl->len);
1384 
1385 out:
1386 	i3c_ccc_cmd_dest_cleanup(&dest);
1387 
1388 	return ret;
1389 }
1390 
1391 static int i3c_master_getmxds_locked(struct i3c_master_controller *master,
1392 				     struct i3c_device_info *info)
1393 {
1394 	struct i3c_ccc_getmxds *getmaxds;
1395 	struct i3c_ccc_cmd_dest dest;
1396 	struct i3c_ccc_cmd cmd;
1397 	int ret;
1398 
1399 	getmaxds = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr,
1400 					 sizeof(*getmaxds));
1401 	if (!getmaxds)
1402 		return -ENOMEM;
1403 
1404 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETMXDS, &dest, 1);
1405 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1406 	if (ret) {
1407 		/*
1408 		 * Retry when the device does not support max read turnaround
1409 		 * while expecting shorter length from this CCC command.
1410 		 */
1411 		dest.payload.len -= 3;
1412 		ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1413 		if (ret)
1414 			goto out;
1415 	}
1416 
1417 	if (dest.payload.len != 2 && dest.payload.len != 5) {
1418 		ret = -EIO;
1419 		goto out;
1420 	}
1421 
1422 	info->max_read_ds = getmaxds->maxrd;
1423 	info->max_write_ds = getmaxds->maxwr;
1424 	if (dest.payload.len == 5)
1425 		info->max_read_turnaround = getmaxds->maxrdturn[0] |
1426 					    ((u32)getmaxds->maxrdturn[1] << 8) |
1427 					    ((u32)getmaxds->maxrdturn[2] << 16);
1428 
1429 out:
1430 	i3c_ccc_cmd_dest_cleanup(&dest);
1431 
1432 	return ret;
1433 }
1434 
1435 static int i3c_master_gethdrcap_locked(struct i3c_master_controller *master,
1436 				       struct i3c_device_info *info)
1437 {
1438 	struct i3c_ccc_gethdrcap *gethdrcap;
1439 	struct i3c_ccc_cmd_dest dest;
1440 	struct i3c_ccc_cmd cmd;
1441 	int ret;
1442 
1443 	gethdrcap = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr,
1444 					  sizeof(*gethdrcap));
1445 	if (!gethdrcap)
1446 		return -ENOMEM;
1447 
1448 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETHDRCAP, &dest, 1);
1449 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1450 	if (ret)
1451 		goto out;
1452 
1453 	if (dest.payload.len != 1) {
1454 		ret = -EIO;
1455 		goto out;
1456 	}
1457 
1458 	info->hdr_cap = gethdrcap->modes;
1459 
1460 out:
1461 	i3c_ccc_cmd_dest_cleanup(&dest);
1462 
1463 	return ret;
1464 }
1465 
1466 static int i3c_master_getpid_locked(struct i3c_master_controller *master,
1467 				    struct i3c_device_info *info)
1468 {
1469 	struct i3c_ccc_getpid *getpid;
1470 	struct i3c_ccc_cmd_dest dest;
1471 	struct i3c_ccc_cmd cmd;
1472 	int ret, i;
1473 
1474 	getpid = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getpid));
1475 	if (!getpid)
1476 		return -ENOMEM;
1477 
1478 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETPID, &dest, 1);
1479 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1480 	if (ret)
1481 		goto out;
1482 
1483 	info->pid = 0;
1484 	for (i = 0; i < sizeof(getpid->pid); i++) {
1485 		int sft = (sizeof(getpid->pid) - i - 1) * 8;
1486 
1487 		info->pid |= (u64)getpid->pid[i] << sft;
1488 	}
1489 
1490 out:
1491 	i3c_ccc_cmd_dest_cleanup(&dest);
1492 
1493 	return ret;
1494 }
1495 
1496 static int i3c_master_getbcr_locked(struct i3c_master_controller *master,
1497 				    struct i3c_device_info *info)
1498 {
1499 	struct i3c_ccc_getbcr *getbcr;
1500 	struct i3c_ccc_cmd_dest dest;
1501 	struct i3c_ccc_cmd cmd;
1502 	int ret;
1503 
1504 	getbcr = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getbcr));
1505 	if (!getbcr)
1506 		return -ENOMEM;
1507 
1508 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETBCR, &dest, 1);
1509 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1510 	if (ret)
1511 		goto out;
1512 
1513 	info->bcr = getbcr->bcr;
1514 
1515 out:
1516 	i3c_ccc_cmd_dest_cleanup(&dest);
1517 
1518 	return ret;
1519 }
1520 
1521 static int i3c_master_getdcr_locked(struct i3c_master_controller *master,
1522 				    struct i3c_device_info *info)
1523 {
1524 	struct i3c_ccc_getdcr *getdcr;
1525 	struct i3c_ccc_cmd_dest dest;
1526 	struct i3c_ccc_cmd cmd;
1527 	int ret;
1528 
1529 	getdcr = i3c_ccc_cmd_dest_init(&dest, info->dyn_addr, sizeof(*getdcr));
1530 	if (!getdcr)
1531 		return -ENOMEM;
1532 
1533 	i3c_ccc_cmd_init(&cmd, true, I3C_CCC_GETDCR, &dest, 1);
1534 	ret = i3c_master_send_ccc_cmd_locked(master, &cmd);
1535 	if (ret)
1536 		goto out;
1537 
1538 	info->dcr = getdcr->dcr;
1539 
1540 out:
1541 	i3c_ccc_cmd_dest_cleanup(&dest);
1542 
1543 	return ret;
1544 }
1545 
1546 static int i3c_master_retrieve_dev_info(struct i3c_dev_desc *dev)
1547 {
1548 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
1549 	enum i3c_addr_slot_status slot_status;
1550 	int ret;
1551 
1552 	if (!dev->info.dyn_addr)
1553 		return -EINVAL;
1554 
1555 	slot_status = i3c_bus_get_addr_slot_status(&master->bus,
1556 						   dev->info.dyn_addr);
1557 	if (slot_status == I3C_ADDR_SLOT_RSVD ||
1558 	    slot_status == I3C_ADDR_SLOT_I2C_DEV)
1559 		return -EINVAL;
1560 
1561 	ret = i3c_master_getpid_locked(master, &dev->info);
1562 	if (ret)
1563 		return ret;
1564 
1565 	ret = i3c_master_getbcr_locked(master, &dev->info);
1566 	if (ret)
1567 		return ret;
1568 
1569 	ret = i3c_master_getdcr_locked(master, &dev->info);
1570 	if (ret)
1571 		return ret;
1572 
1573 	if (dev->info.bcr & I3C_BCR_MAX_DATA_SPEED_LIM) {
1574 		ret = i3c_master_getmxds_locked(master, &dev->info);
1575 		if (ret)
1576 			return ret;
1577 	}
1578 
1579 	if (dev->info.bcr & I3C_BCR_IBI_PAYLOAD)
1580 		dev->info.max_ibi_len = 1;
1581 
1582 	i3c_master_getmrl_locked(master, &dev->info);
1583 	i3c_master_getmwl_locked(master, &dev->info);
1584 
1585 	if (dev->info.bcr & I3C_BCR_HDR_CAP) {
1586 		ret = i3c_master_gethdrcap_locked(master, &dev->info);
1587 		if (ret && ret != -EOPNOTSUPP)
1588 			return ret;
1589 	}
1590 
1591 	return 0;
1592 }
1593 
1594 static void i3c_master_put_i3c_addrs(struct i3c_dev_desc *dev)
1595 {
1596 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
1597 
1598 	if (dev->info.static_addr)
1599 		i3c_bus_set_addr_slot_status(&master->bus,
1600 					     dev->info.static_addr,
1601 					     I3C_ADDR_SLOT_FREE);
1602 
1603 	if (dev->info.dyn_addr)
1604 		i3c_bus_set_addr_slot_status(&master->bus, dev->info.dyn_addr,
1605 					     I3C_ADDR_SLOT_FREE);
1606 
1607 	if (dev->boardinfo && dev->boardinfo->init_dyn_addr)
1608 		i3c_bus_set_addr_slot_status(&master->bus, dev->boardinfo->init_dyn_addr,
1609 					     I3C_ADDR_SLOT_FREE);
1610 }
1611 
1612 static int i3c_master_get_i3c_addrs(struct i3c_dev_desc *dev)
1613 {
1614 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
1615 	enum i3c_addr_slot_status status;
1616 
1617 	if (!dev->info.static_addr && !dev->info.dyn_addr)
1618 		return 0;
1619 
1620 	if (dev->info.static_addr) {
1621 		status = i3c_bus_get_addr_slot_status(&master->bus,
1622 						      dev->info.static_addr);
1623 		/* Since static address and assigned dynamic address can be
1624 		 * equal, allow this case to pass.
1625 		 */
1626 		if (status != I3C_ADDR_SLOT_FREE &&
1627 		    dev->info.static_addr != dev->boardinfo->init_dyn_addr)
1628 			return -EBUSY;
1629 
1630 		i3c_bus_set_addr_slot_status(&master->bus,
1631 					     dev->info.static_addr,
1632 					     I3C_ADDR_SLOT_I3C_DEV);
1633 	}
1634 
1635 	/*
1636 	 * ->init_dyn_addr should have been reserved before that, so, if we're
1637 	 * trying to apply a pre-reserved dynamic address, we should not try
1638 	 * to reserve the address slot a second time.
1639 	 */
1640 	if (dev->info.dyn_addr &&
1641 	    (!dev->boardinfo ||
1642 	     dev->boardinfo->init_dyn_addr != dev->info.dyn_addr)) {
1643 		status = i3c_bus_get_addr_slot_status(&master->bus,
1644 						      dev->info.dyn_addr);
1645 		if (status != I3C_ADDR_SLOT_FREE)
1646 			goto err_release_static_addr;
1647 
1648 		i3c_bus_set_addr_slot_status(&master->bus, dev->info.dyn_addr,
1649 					     I3C_ADDR_SLOT_I3C_DEV);
1650 	}
1651 
1652 	return 0;
1653 
1654 err_release_static_addr:
1655 	if (dev->info.static_addr)
1656 		i3c_bus_set_addr_slot_status(&master->bus,
1657 					     dev->info.static_addr,
1658 					     I3C_ADDR_SLOT_FREE);
1659 
1660 	return -EBUSY;
1661 }
1662 
1663 static int i3c_master_attach_i3c_dev(struct i3c_master_controller *master,
1664 				     struct i3c_dev_desc *dev)
1665 {
1666 	int ret;
1667 
1668 	/*
1669 	 * We don't attach devices to the controller until they are
1670 	 * addressable on the bus.
1671 	 */
1672 	if (!dev->info.static_addr && !dev->info.dyn_addr)
1673 		return 0;
1674 
1675 	ret = i3c_master_get_i3c_addrs(dev);
1676 	if (ret)
1677 		return ret;
1678 
1679 	/* Do not attach the master device itself. */
1680 	if (master->this != dev && master->ops->attach_i3c_dev) {
1681 		ret = master->ops->attach_i3c_dev(dev);
1682 		if (ret) {
1683 			i3c_master_put_i3c_addrs(dev);
1684 			return ret;
1685 		}
1686 	}
1687 
1688 	list_add_tail(&dev->common.node, &master->bus.devs.i3c);
1689 
1690 	return 0;
1691 }
1692 
1693 static int i3c_master_reattach_i3c_dev(struct i3c_dev_desc *dev,
1694 				       u8 old_dyn_addr)
1695 {
1696 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
1697 	int ret;
1698 
1699 	if (dev->info.dyn_addr != old_dyn_addr) {
1700 		i3c_bus_set_addr_slot_status(&master->bus,
1701 					     dev->info.dyn_addr,
1702 					     I3C_ADDR_SLOT_I3C_DEV);
1703 		if (old_dyn_addr)
1704 			i3c_bus_set_addr_slot_status(&master->bus, old_dyn_addr,
1705 						     I3C_ADDR_SLOT_FREE);
1706 	}
1707 
1708 	if (master->ops->reattach_i3c_dev) {
1709 		ret = master->ops->reattach_i3c_dev(dev, old_dyn_addr);
1710 		if (ret) {
1711 			i3c_master_put_i3c_addrs(dev);
1712 			return ret;
1713 		}
1714 	}
1715 
1716 	return 0;
1717 }
1718 
1719 static void i3c_master_detach_i3c_dev(struct i3c_dev_desc *dev)
1720 {
1721 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
1722 
1723 	/* Do not detach the master device itself. */
1724 	if (master->this != dev && master->ops->detach_i3c_dev)
1725 		master->ops->detach_i3c_dev(dev);
1726 
1727 	i3c_master_put_i3c_addrs(dev);
1728 	list_del(&dev->common.node);
1729 }
1730 
1731 static int i3c_master_attach_i2c_dev(struct i3c_master_controller *master,
1732 				     struct i2c_dev_desc *dev)
1733 {
1734 	int ret;
1735 
1736 	if (master->ops->attach_i2c_dev) {
1737 		ret = master->ops->attach_i2c_dev(dev);
1738 		if (ret)
1739 			return ret;
1740 	}
1741 
1742 	list_add_tail(&dev->common.node, &master->bus.devs.i2c);
1743 
1744 	return 0;
1745 }
1746 
1747 static void i3c_master_detach_i2c_dev(struct i2c_dev_desc *dev)
1748 {
1749 	struct i3c_master_controller *master = i2c_dev_get_master(dev);
1750 
1751 	list_del(&dev->common.node);
1752 
1753 	if (master->ops->detach_i2c_dev)
1754 		master->ops->detach_i2c_dev(dev);
1755 }
1756 
1757 static int i3c_master_early_i3c_dev_add(struct i3c_master_controller *master,
1758 					  struct i3c_dev_boardinfo *boardinfo)
1759 {
1760 	struct i3c_device_info info = {
1761 		.static_addr = boardinfo->static_addr,
1762 		.pid = boardinfo->pid,
1763 	};
1764 	struct i3c_dev_desc *i3cdev;
1765 	int ret;
1766 
1767 	i3cdev = i3c_master_alloc_i3c_dev(master, &info);
1768 	if (IS_ERR(i3cdev))
1769 		return -ENOMEM;
1770 
1771 	i3cdev->boardinfo = boardinfo;
1772 
1773 	ret = i3c_master_attach_i3c_dev(master, i3cdev);
1774 	if (ret)
1775 		goto err_free_dev;
1776 
1777 	ret = i3c_master_setdasa_locked(master, i3cdev->info.static_addr,
1778 					i3cdev->boardinfo->init_dyn_addr);
1779 	if (ret)
1780 		goto err_detach_dev;
1781 
1782 	i3cdev->info.dyn_addr = i3cdev->boardinfo->init_dyn_addr;
1783 	ret = i3c_master_reattach_i3c_dev(i3cdev, 0);
1784 	if (ret)
1785 		goto err_rstdaa;
1786 
1787 	ret = i3c_master_retrieve_dev_info(i3cdev);
1788 	if (ret)
1789 		goto err_rstdaa;
1790 
1791 	return 0;
1792 
1793 err_rstdaa:
1794 	i3c_master_rstdaa_locked(master, i3cdev->boardinfo->init_dyn_addr);
1795 err_detach_dev:
1796 	i3c_master_detach_i3c_dev(i3cdev);
1797 err_free_dev:
1798 	i3c_master_free_i3c_dev(i3cdev);
1799 
1800 	return ret;
1801 }
1802 
1803 static void
1804 i3c_master_register_new_i3c_devs(struct i3c_master_controller *master)
1805 {
1806 	struct i3c_dev_desc *desc;
1807 	int ret;
1808 
1809 	if (!master->init_done)
1810 		return;
1811 
1812 	i3c_bus_for_each_i3cdev(&master->bus, desc) {
1813 		if (desc->dev || !desc->info.dyn_addr || desc == master->this)
1814 			continue;
1815 
1816 		desc->dev = kzalloc_obj(*desc->dev);
1817 		if (!desc->dev)
1818 			continue;
1819 
1820 		desc->dev->bus = &master->bus;
1821 		desc->dev->desc = desc;
1822 		desc->dev->dev.parent = &master->dev;
1823 		desc->dev->dev.type = &i3c_device_type;
1824 		desc->dev->dev.bus = &i3c_bus_type;
1825 		desc->dev->dev.release = i3c_device_release;
1826 		dev_set_name(&desc->dev->dev, "%d-%llx", master->bus.id,
1827 			     desc->info.pid);
1828 
1829 		if (desc->boardinfo)
1830 			desc->dev->dev.of_node = desc->boardinfo->of_node;
1831 
1832 		ret = device_register(&desc->dev->dev);
1833 		if (ret) {
1834 			dev_err(&master->dev,
1835 				"Failed to add I3C device (err = %d)\n", ret);
1836 			put_device(&desc->dev->dev);
1837 		}
1838 	}
1839 }
1840 
1841 /**
1842  * i3c_master_do_daa_ext() - Dynamic Address Assignment (extended version)
1843  * @master: controller
1844  * @rstdaa: whether to first perform Reset of Dynamic Addresses (RSTDAA)
1845  *
1846  * Perform Dynamic Address Assignment with optional support for System
1847  * Hibernation (@rstdaa is true).
1848  *
1849  * After System Hibernation, Dynamic Addresses can have been reassigned at boot
1850  * time to different values. A simple strategy is followed to handle that.
1851  * Perform a Reset of Dynamic Addresses (RSTDAA) followed by the normal DAA
1852  * procedure which has provision for reassigning addresses that differ from the
1853  * previously recorded addresses.
1854  *
1855  * Return: a 0 in case of success, an negative error code otherwise.
1856  */
1857 int i3c_master_do_daa_ext(struct i3c_master_controller *master, bool rstdaa)
1858 {
1859 	int rstret = 0;
1860 	int ret;
1861 
1862 	ret = i3c_master_rpm_get(master);
1863 	if (ret)
1864 		return ret;
1865 
1866 	i3c_bus_maintenance_lock(&master->bus);
1867 
1868 	if (master->shutting_down) {
1869 		ret = -ENODEV;
1870 	} else {
1871 		if (rstdaa)
1872 			rstret = i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR);
1873 		ret = master->ops->do_daa(master);
1874 	}
1875 
1876 	i3c_bus_maintenance_unlock(&master->bus);
1877 
1878 	if (ret)
1879 		goto out;
1880 
1881 	i3c_bus_normaluse_lock(&master->bus);
1882 	i3c_master_register_new_i3c_devs(master);
1883 	i3c_bus_normaluse_unlock(&master->bus);
1884 out:
1885 	i3c_master_rpm_put(master);
1886 
1887 	return rstret ?: ret;
1888 }
1889 EXPORT_SYMBOL_GPL(i3c_master_do_daa_ext);
1890 
1891 /**
1892  * i3c_master_do_daa() - do a DAA (Dynamic Address Assignment)
1893  * @master: master doing the DAA
1894  *
1895  * This function instantiates I3C device objects and adds them to the
1896  * I3C device list. All device information is automatically retrieved using
1897  * standard CCC commands.
1898  *
1899  * Return: a 0 in case of success, an negative error code otherwise.
1900  */
1901 int i3c_master_do_daa(struct i3c_master_controller *master)
1902 {
1903 	return i3c_master_do_daa_ext(master, false);
1904 }
1905 EXPORT_SYMBOL_GPL(i3c_master_do_daa);
1906 
1907 /**
1908  * i3c_master_dma_map_single() - Map buffer for single DMA transfer
1909  * @dev: device object of a device doing DMA
1910  * @buf: destination/source buffer for DMA
1911  * @len: length of transfer
1912  * @force_bounce: true, force to use a bounce buffer,
1913  *                false, function will auto check is a bounce buffer required
1914  * @dir: DMA direction
1915  *
1916  * Map buffer for a DMA transfer and allocate a bounce buffer if required.
1917  *
1918  * Return: I3C DMA transfer descriptor or NULL in case of error.
1919  */
1920 struct i3c_dma *i3c_master_dma_map_single(struct device *dev, void *buf,
1921 	size_t len, bool force_bounce, enum dma_data_direction dir)
1922 {
1923 	void *bounce __free(kfree) = NULL;
1924 	void *dma_buf = buf;
1925 
1926 	struct i3c_dma *dma_xfer __free(kfree) = kzalloc_obj(*dma_xfer);
1927 	if (!dma_xfer)
1928 		return NULL;
1929 
1930 	dma_xfer->dev = dev;
1931 	dma_xfer->buf = buf;
1932 	dma_xfer->dir = dir;
1933 	dma_xfer->len = len;
1934 	dma_xfer->map_len = len;
1935 
1936 	if (is_vmalloc_addr(buf))
1937 		force_bounce = true;
1938 
1939 	if (force_bounce) {
1940 		dma_xfer->map_len = ALIGN(len, cache_line_size());
1941 		if (dir == DMA_FROM_DEVICE)
1942 			bounce = kzalloc(dma_xfer->map_len, GFP_KERNEL);
1943 		else
1944 			bounce = kmemdup(buf, dma_xfer->map_len, GFP_KERNEL);
1945 		if (!bounce)
1946 			return NULL;
1947 		dma_buf = bounce;
1948 	}
1949 
1950 	dma_xfer->addr = dma_map_single(dev, dma_buf, dma_xfer->map_len, dir);
1951 	if (dma_mapping_error(dev, dma_xfer->addr))
1952 		return NULL;
1953 
1954 	dma_xfer->bounce_buf = no_free_ptr(bounce);
1955 	return no_free_ptr(dma_xfer);
1956 }
1957 EXPORT_SYMBOL_GPL(i3c_master_dma_map_single);
1958 
1959 /**
1960  * i3c_master_dma_unmap_single() - Unmap buffer after DMA
1961  * @dma_xfer: DMA transfer and mapping descriptor
1962  *
1963  * Unmap buffer and cleanup DMA transfer descriptor.
1964  */
1965 void i3c_master_dma_unmap_single(struct i3c_dma *dma_xfer)
1966 {
1967 	dma_unmap_single(dma_xfer->dev, dma_xfer->addr,
1968 			 dma_xfer->map_len, dma_xfer->dir);
1969 	if (dma_xfer->bounce_buf) {
1970 		if (dma_xfer->dir == DMA_FROM_DEVICE)
1971 			memcpy(dma_xfer->buf, dma_xfer->bounce_buf,
1972 			       dma_xfer->len);
1973 		kfree(dma_xfer->bounce_buf);
1974 	}
1975 	kfree(dma_xfer);
1976 }
1977 EXPORT_SYMBOL_GPL(i3c_master_dma_unmap_single);
1978 
1979 /**
1980  * i3c_master_set_info() - set master device information
1981  * @master: master used to send frames on the bus
1982  * @info: I3C device information
1983  *
1984  * Set master device info. This should be called from
1985  * &i3c_master_controller_ops->bus_init().
1986  *
1987  * Not all &i3c_device_info fields are meaningful for a master device.
1988  * Here is a list of fields that should be properly filled:
1989  *
1990  * - &i3c_device_info->dyn_addr
1991  * - &i3c_device_info->bcr
1992  * - &i3c_device_info->dcr
1993  * - &i3c_device_info->pid
1994  * - &i3c_device_info->hdr_cap if %I3C_BCR_HDR_CAP bit is set in
1995  *   &i3c_device_info->bcr
1996  *
1997  * This function must be called with the bus lock held in maintenance mode.
1998  *
1999  * Return: 0 if @info contains valid information (not every piece of
2000  * information can be checked, but we can at least make sure @info->dyn_addr
2001  * and @info->bcr are correct), -EINVAL otherwise.
2002  */
2003 int i3c_master_set_info(struct i3c_master_controller *master,
2004 			const struct i3c_device_info *info)
2005 {
2006 	struct i3c_dev_desc *i3cdev;
2007 	int ret;
2008 
2009 	if (!i3c_bus_dev_addr_is_avail(&master->bus, info->dyn_addr))
2010 		return -EINVAL;
2011 
2012 	if (I3C_BCR_DEVICE_ROLE(info->bcr) == I3C_BCR_I3C_MASTER &&
2013 	    master->secondary)
2014 		return -EINVAL;
2015 
2016 	if (master->this)
2017 		return -EINVAL;
2018 
2019 	i3cdev = i3c_master_alloc_i3c_dev(master, info);
2020 	if (IS_ERR(i3cdev))
2021 		return PTR_ERR(i3cdev);
2022 
2023 	master->this = i3cdev;
2024 	master->bus.cur_master = master->this;
2025 
2026 	ret = i3c_master_attach_i3c_dev(master, i3cdev);
2027 	if (ret)
2028 		goto err_free_dev;
2029 
2030 	return 0;
2031 
2032 err_free_dev:
2033 	i3c_master_free_i3c_dev(i3cdev);
2034 
2035 	return ret;
2036 }
2037 EXPORT_SYMBOL_GPL(i3c_master_set_info);
2038 
2039 static void i3c_master_detach_free_devs(struct i3c_master_controller *master)
2040 {
2041 	struct i3c_dev_desc *i3cdev, *i3ctmp;
2042 	struct i2c_dev_desc *i2cdev, *i2ctmp;
2043 
2044 	list_for_each_entry_safe(i3cdev, i3ctmp, &master->bus.devs.i3c,
2045 				 common.node) {
2046 		i3c_master_detach_i3c_dev(i3cdev);
2047 
2048 		if (i3cdev->boardinfo && i3cdev->boardinfo->init_dyn_addr)
2049 			i3c_bus_set_addr_slot_status(&master->bus,
2050 					i3cdev->boardinfo->init_dyn_addr,
2051 					I3C_ADDR_SLOT_FREE);
2052 
2053 		i3c_master_free_i3c_dev(i3cdev);
2054 	}
2055 
2056 	list_for_each_entry_safe(i2cdev, i2ctmp, &master->bus.devs.i2c,
2057 				 common.node) {
2058 		i3c_master_detach_i2c_dev(i2cdev);
2059 		i3c_bus_set_addr_slot_status(&master->bus,
2060 					     i2cdev->addr,
2061 					     I3C_ADDR_SLOT_FREE);
2062 		i3c_master_free_i2c_dev(i2cdev);
2063 	}
2064 }
2065 
2066 /**
2067  * i3c_master_bus_init() - initialize an I3C bus
2068  * @master: main master initializing the bus
2069  *
2070  * This function is following all initialisation steps described in the I3C
2071  * specification:
2072  *
2073  * 1. Attach I2C devs to the master so that the master can fill its internal
2074  *    device table appropriately
2075  *
2076  * 2. Call &i3c_master_controller_ops->bus_init() method to initialize
2077  *    the master controller. That's usually where the bus mode is selected
2078  *    (pure bus or mixed fast/slow bus)
2079  *
2080  * 3. Instruct all devices on the bus to drop their dynamic address. This is
2081  *    particularly important when the bus was previously configured by someone
2082  *    else (for example the bootloader)
2083  *
2084  * 4. Disable all slave events.
2085  *
2086  * 5. Reserve address slots for I3C devices with init_dyn_addr. And if devices
2087  *    also have static_addr, try to pre-assign dynamic addresses requested by
2088  *    the FW with SETDASA and attach corresponding statically defined I3C
2089  *    devices to the master.
2090  *
2091  * 6. Do a DAA (Dynamic Address Assignment) to assign dynamic addresses to all
2092  *    remaining I3C devices
2093  *
2094  * Once this is done, all I3C and I2C devices should be usable.
2095  *
2096  * Return: a 0 in case of success, an negative error code otherwise.
2097  */
2098 static int i3c_master_bus_init(struct i3c_master_controller *master)
2099 {
2100 	enum i3c_addr_slot_status status;
2101 	struct i2c_dev_boardinfo *i2cboardinfo;
2102 	struct i3c_dev_boardinfo *i3cboardinfo;
2103 	struct i2c_dev_desc *i2cdev;
2104 	int ret;
2105 
2106 	/*
2107 	 * First attach all devices with static definitions provided by the
2108 	 * FW.
2109 	 */
2110 	list_for_each_entry(i2cboardinfo, &master->boardinfo.i2c, node) {
2111 		status = i3c_bus_get_addr_slot_status(&master->bus,
2112 						      i2cboardinfo->base.addr);
2113 		if (status != I3C_ADDR_SLOT_FREE) {
2114 			ret = -EBUSY;
2115 			goto err_detach_devs;
2116 		}
2117 
2118 		i3c_bus_set_addr_slot_status(&master->bus,
2119 					     i2cboardinfo->base.addr,
2120 					     I3C_ADDR_SLOT_I2C_DEV);
2121 
2122 		i2cdev = i3c_master_alloc_i2c_dev(master,
2123 						  i2cboardinfo->base.addr,
2124 						  i2cboardinfo->lvr);
2125 		if (IS_ERR(i2cdev)) {
2126 			ret = PTR_ERR(i2cdev);
2127 			goto err_detach_devs;
2128 		}
2129 
2130 		ret = i3c_master_attach_i2c_dev(master, i2cdev);
2131 		if (ret) {
2132 			i3c_master_free_i2c_dev(i2cdev);
2133 			goto err_detach_devs;
2134 		}
2135 	}
2136 
2137 	/*
2138 	 * Now execute the controller specific ->bus_init() routine, which
2139 	 * might configure its internal logic to match the bus limitations.
2140 	 */
2141 	ret = master->ops->bus_init(master);
2142 	if (ret)
2143 		goto err_detach_devs;
2144 
2145 	/*
2146 	 * The master device should have been instantiated in ->bus_init(),
2147 	 * complain if this was not the case.
2148 	 */
2149 	if (!master->this) {
2150 		dev_err(&master->dev,
2151 			"master_set_info() was not called in ->bus_init()\n");
2152 		ret = -EINVAL;
2153 		goto err_bus_cleanup;
2154 	}
2155 
2156 	if (master->ops->set_speed) {
2157 		ret = master->ops->set_speed(master, I3C_OPEN_DRAIN_SLOW_SPEED);
2158 		if (ret)
2159 			goto err_bus_cleanup;
2160 	}
2161 
2162 	/*
2163 	 * Reset all dynamic address that may have been assigned before
2164 	 * (assigned by the bootloader for example).
2165 	 */
2166 	ret = i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR);
2167 	if (ret)
2168 		goto err_bus_cleanup;
2169 
2170 	if (master->ops->set_speed) {
2171 		ret = master->ops->set_speed(master, I3C_OPEN_DRAIN_NORMAL_SPEED);
2172 		if (ret)
2173 			goto err_bus_cleanup;
2174 	}
2175 
2176 	/*
2177 	 * Disable all slave events before starting DAA. When no active device
2178 	 * is on the bus, returns Mx error code M2, this error is ignored.
2179 	 */
2180 	ret = i3c_master_enec_disec_locked(master, I3C_BROADCAST_ADDR, false,
2181 					   I3C_CCC_EVENT_SIR | I3C_CCC_EVENT_MR |
2182 					   I3C_CCC_EVENT_HJ, true);
2183 	if (ret)
2184 		goto err_bus_cleanup;
2185 
2186 	/*
2187 	 * Reserve init_dyn_addr first, and then try to pre-assign dynamic
2188 	 * address and retrieve device information if needed.
2189 	 * In case pre-assign dynamic address fails, setting dynamic address to
2190 	 * the requested init_dyn_addr is retried after DAA is done in
2191 	 * i3c_master_add_i3c_dev_locked().
2192 	 */
2193 	list_for_each_entry(i3cboardinfo, &master->boardinfo.i3c, node) {
2194 
2195 		/*
2196 		 * We don't reserve a dynamic address for devices that
2197 		 * don't explicitly request one.
2198 		 */
2199 		if (!i3cboardinfo->init_dyn_addr)
2200 			continue;
2201 
2202 		ret = i3c_bus_get_addr_slot_status(&master->bus,
2203 						   i3cboardinfo->init_dyn_addr);
2204 		if (ret != I3C_ADDR_SLOT_FREE) {
2205 			ret = -EBUSY;
2206 			goto err_rstdaa;
2207 		}
2208 
2209 		/* Do not mark as occupied until real device exist in bus */
2210 		i3c_bus_set_addr_slot_status_mask(&master->bus,
2211 						  i3cboardinfo->init_dyn_addr,
2212 						  I3C_ADDR_SLOT_EXT_DESIRED,
2213 						  I3C_ADDR_SLOT_EXT_STATUS_MASK);
2214 
2215 		/*
2216 		 * Only try to create/attach devices that have a static
2217 		 * address. Other devices will be created/attached when
2218 		 * DAA happens, and the requested dynamic address will
2219 		 * be set using SETNEWDA once those devices become
2220 		 * addressable.
2221 		 */
2222 
2223 		if (i3cboardinfo->static_addr)
2224 			i3c_master_early_i3c_dev_add(master, i3cboardinfo);
2225 	}
2226 
2227 	ret = i3c_master_do_daa(master);
2228 	if (ret)
2229 		goto err_rstdaa;
2230 
2231 	return 0;
2232 
2233 err_rstdaa:
2234 	i3c_master_rstdaa_locked(master, I3C_BROADCAST_ADDR);
2235 
2236 err_bus_cleanup:
2237 	if (master->ops->bus_cleanup)
2238 		master->ops->bus_cleanup(master);
2239 
2240 err_detach_devs:
2241 	i3c_master_detach_free_devs(master);
2242 
2243 	return ret;
2244 }
2245 
2246 static void i3c_master_bus_cleanup(struct i3c_master_controller *master)
2247 {
2248 	if (master->ops->bus_cleanup) {
2249 		int ret = i3c_master_rpm_get(master);
2250 
2251 		if (ret) {
2252 			dev_err(&master->dev,
2253 				"runtime resume error: master bus_cleanup() not done\n");
2254 		} else {
2255 			master->ops->bus_cleanup(master);
2256 			i3c_master_rpm_put(master);
2257 		}
2258 	}
2259 
2260 	i3c_master_detach_free_devs(master);
2261 }
2262 
2263 static void i3c_master_attach_boardinfo(struct i3c_dev_desc *i3cdev)
2264 {
2265 	struct i3c_master_controller *master = i3cdev->common.master;
2266 	struct i3c_dev_boardinfo *i3cboardinfo;
2267 
2268 	list_for_each_entry(i3cboardinfo, &master->boardinfo.i3c, node) {
2269 		if (i3cdev->info.pid != i3cboardinfo->pid)
2270 			continue;
2271 
2272 		i3cdev->boardinfo = i3cboardinfo;
2273 		i3cdev->info.static_addr = i3cboardinfo->static_addr;
2274 		return;
2275 	}
2276 }
2277 
2278 static struct i3c_dev_desc *
2279 i3c_master_search_i3c_dev_duplicate(struct i3c_dev_desc *refdev)
2280 {
2281 	struct i3c_master_controller *master = i3c_dev_get_master(refdev);
2282 	struct i3c_dev_desc *i3cdev;
2283 
2284 	i3c_bus_for_each_i3cdev(&master->bus, i3cdev) {
2285 		if (i3cdev != refdev && i3cdev->info.pid == refdev->info.pid)
2286 			return i3cdev;
2287 	}
2288 
2289 	return NULL;
2290 }
2291 
2292 /**
2293  * i3c_master_add_i3c_dev_locked() - add an I3C slave to the bus
2294  * @master: master used to send frames on the bus
2295  * @addr: I3C slave dynamic address assigned to the device
2296  *
2297  * This function is instantiating an I3C device object and adding it to the
2298  * I3C device list. All device information are automatically retrieved using
2299  * standard CCC commands.
2300  *
2301  * The I3C device object is returned in case the master wants to attach
2302  * private data to it using i3c_dev_set_master_data().
2303  *
2304  * This function must be called with the bus lock held in write mode.
2305  *
2306  * Return: a 0 in case of success, an negative error code otherwise.
2307  */
2308 int i3c_master_add_i3c_dev_locked(struct i3c_master_controller *master,
2309 				  u8 addr)
2310 {
2311 	struct i3c_device_info info = { .dyn_addr = addr };
2312 	struct i3c_dev_desc *newdev, *olddev;
2313 	u8 old_dyn_addr = addr, expected_dyn_addr;
2314 	struct i3c_ibi_setup ibireq = { };
2315 	bool enable_ibi = false;
2316 	int ret;
2317 
2318 	if (!master)
2319 		return -EINVAL;
2320 
2321 	newdev = i3c_master_alloc_i3c_dev(master, &info);
2322 	if (IS_ERR(newdev))
2323 		return PTR_ERR(newdev);
2324 
2325 	ret = i3c_master_attach_i3c_dev(master, newdev);
2326 	if (ret)
2327 		goto err_free_dev;
2328 
2329 	ret = i3c_master_retrieve_dev_info(newdev);
2330 	if (ret)
2331 		goto err_detach_dev;
2332 
2333 	i3c_master_attach_boardinfo(newdev);
2334 
2335 	olddev = i3c_master_search_i3c_dev_duplicate(newdev);
2336 	if (olddev) {
2337 		newdev->dev = olddev->dev;
2338 		if (newdev->dev)
2339 			newdev->dev->desc = newdev;
2340 
2341 		/*
2342 		 * We need to restore the IBI state too, so let's save the
2343 		 * IBI information and try to restore them after olddev has
2344 		 * been detached+released and its IBI has been stopped and
2345 		 * the associated resources have been freed.
2346 		 */
2347 		mutex_lock(&olddev->ibi_lock);
2348 		if (olddev->ibi) {
2349 			ibireq.handler = olddev->ibi->handler;
2350 			ibireq.max_payload_len = olddev->ibi->max_payload_len;
2351 			ibireq.num_slots = olddev->ibi->num_slots;
2352 
2353 			if (olddev->ibi->enabled)
2354 				enable_ibi = true;
2355 			/*
2356 			 * The olddev should not receive any commands on the
2357 			 * i3c bus as it does not exist and has been assigned
2358 			 * a new address. This will result in NACK or timeout.
2359 			 * So, update the olddev->ibi->enabled flag to false
2360 			 * to avoid DISEC with OldAddr.
2361 			 */
2362 			olddev->ibi->enabled = false;
2363 			i3c_dev_free_ibi_locked(olddev);
2364 		}
2365 		mutex_unlock(&olddev->ibi_lock);
2366 
2367 		old_dyn_addr = olddev->info.dyn_addr;
2368 
2369 		i3c_master_detach_i3c_dev(olddev);
2370 		i3c_master_free_i3c_dev(olddev);
2371 	}
2372 
2373 	/*
2374 	 * Depending on our previous state, the expected dynamic address might
2375 	 * differ:
2376 	 * - if the device already had a dynamic address assigned, let's try to
2377 	 *   re-apply this one
2378 	 * - if the device did not have a dynamic address and the firmware
2379 	 *   requested a specific address, pick this one
2380 	 * - in any other case, keep the address automatically assigned by the
2381 	 *   master
2382 	 */
2383 	if (old_dyn_addr && old_dyn_addr != newdev->info.dyn_addr)
2384 		expected_dyn_addr = old_dyn_addr;
2385 	else if (newdev->boardinfo && newdev->boardinfo->init_dyn_addr)
2386 		expected_dyn_addr = newdev->boardinfo->init_dyn_addr;
2387 	else
2388 		expected_dyn_addr = newdev->info.dyn_addr;
2389 
2390 	if (newdev->info.dyn_addr != expected_dyn_addr &&
2391 	    i3c_bus_get_addr_slot_status(&master->bus, expected_dyn_addr) == I3C_ADDR_SLOT_FREE) {
2392 		/*
2393 		 * Try to apply the expected dynamic address. If it fails, keep
2394 		 * the address assigned by the master.
2395 		 */
2396 		ret = i3c_master_setnewda_locked(master,
2397 						 newdev->info.dyn_addr,
2398 						 expected_dyn_addr);
2399 		if (!ret) {
2400 			old_dyn_addr = newdev->info.dyn_addr;
2401 			newdev->info.dyn_addr = expected_dyn_addr;
2402 			i3c_master_reattach_i3c_dev(newdev, old_dyn_addr);
2403 		} else {
2404 			dev_err(&master->dev,
2405 				"Failed to assign reserved/old address to device %d%llx",
2406 				master->bus.id, newdev->info.pid);
2407 		}
2408 	}
2409 
2410 	/*
2411 	 * Now is time to try to restore the IBI setup. If we're lucky,
2412 	 * everything works as before, otherwise, all we can do is complain.
2413 	 * FIXME: maybe we should add callback to inform the driver that it
2414 	 * should request the IBI again instead of trying to hide that from
2415 	 * him.
2416 	 */
2417 	if (ibireq.handler) {
2418 		mutex_lock(&newdev->ibi_lock);
2419 		ret = i3c_dev_request_ibi_locked(newdev, &ibireq);
2420 		if (ret) {
2421 			dev_err(&master->dev,
2422 				"Failed to request IBI on device %d-%llx",
2423 				master->bus.id, newdev->info.pid);
2424 		} else if (enable_ibi) {
2425 			ret = i3c_dev_enable_ibi_locked(newdev);
2426 			if (ret)
2427 				dev_err(&master->dev,
2428 					"Failed to re-enable IBI on device %d-%llx",
2429 					master->bus.id, newdev->info.pid);
2430 		}
2431 		mutex_unlock(&newdev->ibi_lock);
2432 	}
2433 
2434 	return 0;
2435 
2436 err_detach_dev:
2437 	if (newdev->dev && newdev->dev->desc)
2438 		newdev->dev->desc = NULL;
2439 
2440 	i3c_master_detach_i3c_dev(newdev);
2441 
2442 err_free_dev:
2443 	i3c_master_free_i3c_dev(newdev);
2444 
2445 	return ret;
2446 }
2447 EXPORT_SYMBOL_GPL(i3c_master_add_i3c_dev_locked);
2448 
2449 #define OF_I3C_REG1_IS_I2C_DEV			BIT(31)
2450 
2451 static int
2452 of_i3c_master_add_i2c_boardinfo(struct i3c_master_controller *master,
2453 				struct device_node *node, u32 *reg)
2454 {
2455 	struct i2c_dev_boardinfo *boardinfo;
2456 	struct device *dev = &master->dev;
2457 	int ret;
2458 
2459 	boardinfo = devm_kzalloc(dev, sizeof(*boardinfo), GFP_KERNEL);
2460 	if (!boardinfo)
2461 		return -ENOMEM;
2462 
2463 	ret = of_i2c_get_board_info(dev, node, &boardinfo->base);
2464 	if (ret)
2465 		return ret;
2466 
2467 	/*
2468 	 * The I3C Specification does not clearly say I2C devices with 10-bit
2469 	 * address are supported. These devices can't be passed properly through
2470 	 * DEFSLVS command.
2471 	 */
2472 	if (boardinfo->base.flags & I2C_CLIENT_TEN) {
2473 		dev_err(dev, "I2C device with 10 bit address not supported.\n");
2474 		return -EOPNOTSUPP;
2475 	}
2476 
2477 	/* LVR is encoded in reg[2]. */
2478 	boardinfo->lvr = reg[2];
2479 
2480 	list_add_tail(&boardinfo->node, &master->boardinfo.i2c);
2481 	of_node_get(node);
2482 
2483 	return 0;
2484 }
2485 
2486 static int
2487 of_i3c_master_add_i3c_boardinfo(struct i3c_master_controller *master,
2488 				struct device_node *node, u32 *reg)
2489 {
2490 	struct i3c_dev_boardinfo *boardinfo;
2491 	struct device *dev = &master->dev;
2492 	enum i3c_addr_slot_status addrstatus;
2493 	u32 init_dyn_addr = 0;
2494 
2495 	boardinfo = devm_kzalloc(dev, sizeof(*boardinfo), GFP_KERNEL);
2496 	if (!boardinfo)
2497 		return -ENOMEM;
2498 
2499 	if (reg[0]) {
2500 		if (reg[0] > I3C_MAX_ADDR)
2501 			return -EINVAL;
2502 
2503 		addrstatus = i3c_bus_get_addr_slot_status(&master->bus,
2504 							  reg[0]);
2505 		if (addrstatus != I3C_ADDR_SLOT_FREE)
2506 			return -EINVAL;
2507 	}
2508 
2509 	boardinfo->static_addr = reg[0];
2510 
2511 	if (!of_property_read_u32(node, "assigned-address", &init_dyn_addr)) {
2512 		if (init_dyn_addr > I3C_MAX_ADDR)
2513 			return -EINVAL;
2514 
2515 		addrstatus = i3c_bus_get_addr_slot_status(&master->bus,
2516 							  init_dyn_addr);
2517 		if (addrstatus != I3C_ADDR_SLOT_FREE)
2518 			return -EINVAL;
2519 	}
2520 
2521 	boardinfo->pid = ((u64)reg[1] << 32) | reg[2];
2522 
2523 	if ((boardinfo->pid & GENMASK_ULL(63, 48)) ||
2524 	    I3C_PID_RND_LOWER_32BITS(boardinfo->pid))
2525 		return -EINVAL;
2526 
2527 	boardinfo->init_dyn_addr = init_dyn_addr;
2528 	boardinfo->of_node = of_node_get(node);
2529 	list_add_tail(&boardinfo->node, &master->boardinfo.i3c);
2530 
2531 	return 0;
2532 }
2533 
2534 static int of_i3c_master_add_dev(struct i3c_master_controller *master,
2535 				 struct device_node *node)
2536 {
2537 	u32 reg[3];
2538 	int ret;
2539 
2540 	if (!master)
2541 		return -EINVAL;
2542 
2543 	ret = of_property_read_u32_array(node, "reg", reg, ARRAY_SIZE(reg));
2544 	if (ret)
2545 		return ret;
2546 
2547 	/*
2548 	 * The manufacturer ID can't be 0. If reg[1] == 0 that means we're
2549 	 * dealing with an I2C device.
2550 	 */
2551 	if (!reg[1])
2552 		ret = of_i3c_master_add_i2c_boardinfo(master, node, reg);
2553 	else
2554 		ret = of_i3c_master_add_i3c_boardinfo(master, node, reg);
2555 
2556 	return ret;
2557 }
2558 
2559 static int of_populate_i3c_bus(struct i3c_master_controller *master)
2560 {
2561 	struct device *dev = &master->dev;
2562 	struct device_node *i3cbus_np = dev->of_node;
2563 	int ret;
2564 	u32 val;
2565 
2566 	if (!i3cbus_np)
2567 		return 0;
2568 
2569 	for_each_available_child_of_node_scoped(i3cbus_np, node) {
2570 		ret = of_i3c_master_add_dev(master, node);
2571 		if (ret)
2572 			return ret;
2573 	}
2574 
2575 	/*
2576 	 * The user might want to limit I2C and I3C speed in case some devices
2577 	 * on the bus are not supporting typical rates, or if the bus topology
2578 	 * prevents it from using max possible rate.
2579 	 */
2580 	if (!of_property_read_u32(i3cbus_np, "i2c-scl-hz", &val))
2581 		master->bus.scl_rate.i2c = val;
2582 
2583 	if (!of_property_read_u32(i3cbus_np, "i3c-scl-hz", &val))
2584 		master->bus.scl_rate.i3c = val;
2585 
2586 	return 0;
2587 }
2588 
2589 static int i3c_master_i2c_adapter_xfer(struct i2c_adapter *adap,
2590 				       struct i2c_msg *xfers, int nxfers)
2591 {
2592 	struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap);
2593 	struct i2c_dev_desc *dev;
2594 	int i, ret;
2595 	u16 addr;
2596 
2597 	if (!xfers || !master || nxfers <= 0)
2598 		return -EINVAL;
2599 
2600 	if (!master->ops->i2c_xfers)
2601 		return -EOPNOTSUPP;
2602 
2603 	/* Doing transfers to different devices is not supported. */
2604 	addr = xfers[0].addr;
2605 	for (i = 1; i < nxfers; i++) {
2606 		if (addr != xfers[i].addr)
2607 			return -EOPNOTSUPP;
2608 	}
2609 
2610 	ret = i3c_master_rpm_get(master);
2611 	if (ret)
2612 		return ret;
2613 
2614 	i3c_bus_normaluse_lock(&master->bus);
2615 	dev = i3c_master_find_i2c_dev_by_addr(master, addr);
2616 	if (!dev)
2617 		ret = -ENOENT;
2618 	else
2619 		ret = master->ops->i2c_xfers(dev, xfers, nxfers);
2620 	i3c_bus_normaluse_unlock(&master->bus);
2621 
2622 	i3c_master_rpm_put(master);
2623 
2624 	return ret ? ret : nxfers;
2625 }
2626 
2627 static u32 i3c_master_i2c_funcs(struct i2c_adapter *adapter)
2628 {
2629 	return I2C_FUNC_SMBUS_EMUL | I2C_FUNC_I2C;
2630 }
2631 
2632 static u8 i3c_master_i2c_get_lvr(struct i2c_client *client)
2633 {
2634 	/* Fall back to no spike filters and FM bus mode. */
2635 	u8 lvr = I3C_LVR_I2C_INDEX(2) | I3C_LVR_I2C_FM_MODE;
2636 	u32 reg[3];
2637 
2638 	if (!of_property_read_u32_array(client->dev.of_node, "reg", reg, ARRAY_SIZE(reg)))
2639 		lvr = reg[2];
2640 
2641 	return lvr;
2642 }
2643 
2644 static int i3c_master_i2c_attach(struct i2c_adapter *adap, struct i2c_client *client)
2645 {
2646 	struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap);
2647 	enum i3c_addr_slot_status status;
2648 	struct i2c_dev_desc *i2cdev;
2649 	int ret;
2650 
2651 	/* Already added by board info? */
2652 	if (i3c_master_find_i2c_dev_by_addr(master, client->addr))
2653 		return 0;
2654 
2655 	status = i3c_bus_get_addr_slot_status(&master->bus, client->addr);
2656 	if (status != I3C_ADDR_SLOT_FREE)
2657 		return -EBUSY;
2658 
2659 	i3c_bus_set_addr_slot_status(&master->bus, client->addr,
2660 				     I3C_ADDR_SLOT_I2C_DEV);
2661 
2662 	i2cdev = i3c_master_alloc_i2c_dev(master, client->addr,
2663 					  i3c_master_i2c_get_lvr(client));
2664 	if (IS_ERR(i2cdev)) {
2665 		ret = PTR_ERR(i2cdev);
2666 		goto out_clear_status;
2667 	}
2668 
2669 	ret = i3c_master_attach_i2c_dev(master, i2cdev);
2670 	if (ret)
2671 		goto out_free_dev;
2672 
2673 	return 0;
2674 
2675 out_free_dev:
2676 	i3c_master_free_i2c_dev(i2cdev);
2677 out_clear_status:
2678 	i3c_bus_set_addr_slot_status(&master->bus, client->addr,
2679 				     I3C_ADDR_SLOT_FREE);
2680 
2681 	return ret;
2682 }
2683 
2684 static int i3c_master_i2c_detach(struct i2c_adapter *adap, struct i2c_client *client)
2685 {
2686 	struct i3c_master_controller *master = i2c_adapter_to_i3c_master(adap);
2687 	struct i2c_dev_desc *dev;
2688 
2689 	dev = i3c_master_find_i2c_dev_by_addr(master, client->addr);
2690 	if (!dev)
2691 		return -ENODEV;
2692 
2693 	i3c_master_detach_i2c_dev(dev);
2694 	i3c_bus_set_addr_slot_status(&master->bus, dev->addr,
2695 				     I3C_ADDR_SLOT_FREE);
2696 	i3c_master_free_i2c_dev(dev);
2697 
2698 	return 0;
2699 }
2700 
2701 static const struct i2c_algorithm i3c_master_i2c_algo = {
2702 	.master_xfer = i3c_master_i2c_adapter_xfer,
2703 	.functionality = i3c_master_i2c_funcs,
2704 };
2705 
2706 static int i3c_i2c_notifier_call(struct notifier_block *nb, unsigned long action,
2707 				 void *data)
2708 {
2709 	struct i2c_adapter *adap;
2710 	struct i2c_client *client;
2711 	struct device *dev = data;
2712 	struct i3c_master_controller *master;
2713 	int ret;
2714 
2715 	if (dev->type != &i2c_client_type)
2716 		return 0;
2717 
2718 	client = to_i2c_client(dev);
2719 	adap = client->adapter;
2720 
2721 	if (adap->algo != &i3c_master_i2c_algo)
2722 		return 0;
2723 
2724 	master = i2c_adapter_to_i3c_master(adap);
2725 
2726 	ret = i3c_master_rpm_get(master);
2727 	if (ret)
2728 		return ret;
2729 
2730 	i3c_bus_maintenance_lock(&master->bus);
2731 	switch (action) {
2732 	case BUS_NOTIFY_ADD_DEVICE:
2733 		ret = i3c_master_i2c_attach(adap, client);
2734 		break;
2735 	case BUS_NOTIFY_DEL_DEVICE:
2736 		ret = i3c_master_i2c_detach(adap, client);
2737 		break;
2738 	default:
2739 		ret = -EINVAL;
2740 	}
2741 	i3c_bus_maintenance_unlock(&master->bus);
2742 
2743 	i3c_master_rpm_put(master);
2744 
2745 	return ret;
2746 }
2747 
2748 static struct notifier_block i2cdev_notifier = {
2749 	.notifier_call = i3c_i2c_notifier_call,
2750 };
2751 
2752 static int i3c_master_i2c_adapter_init(struct i3c_master_controller *master)
2753 {
2754 	struct i2c_adapter *adap = i3c_master_to_i2c_adapter(master);
2755 	struct i2c_dev_desc *i2cdev;
2756 	struct i2c_dev_boardinfo *i2cboardinfo;
2757 	int ret, id;
2758 
2759 	adap->dev.parent = master->dev.parent;
2760 	adap->owner = master->dev.parent->driver->owner;
2761 	adap->algo = &i3c_master_i2c_algo;
2762 	strscpy(adap->name, dev_name(master->dev.parent), sizeof(adap->name));
2763 	adap->timeout = HZ;
2764 	adap->retries = 3;
2765 
2766 	id = of_alias_get_id(master->dev.of_node, "i2c");
2767 	if (id >= 0) {
2768 		adap->nr = id;
2769 		ret = i2c_add_numbered_adapter(adap);
2770 	} else {
2771 		ret = i2c_add_adapter(adap);
2772 	}
2773 	if (ret)
2774 		return ret;
2775 
2776 	/*
2777 	 * We silently ignore failures here. The bus should keep working
2778 	 * correctly even if one or more i2c devices are not registered.
2779 	 */
2780 	list_for_each_entry(i2cboardinfo, &master->boardinfo.i2c, node) {
2781 		i2cdev = i3c_master_find_i2c_dev_by_addr(master,
2782 							 i2cboardinfo->base.addr);
2783 		if (WARN_ON(!i2cdev))
2784 			continue;
2785 		i2cdev->dev = i2c_new_client_device(adap, &i2cboardinfo->base);
2786 	}
2787 
2788 	return 0;
2789 }
2790 
2791 static void i3c_master_i2c_adapter_cleanup(struct i3c_master_controller *master)
2792 {
2793 	struct i2c_dev_desc *i2cdev;
2794 
2795 	i2c_del_adapter(&master->i2c);
2796 
2797 	i3c_bus_for_each_i2cdev(&master->bus, i2cdev)
2798 		i2cdev->dev = NULL;
2799 }
2800 
2801 static void i3c_master_unregister_i3c_devs(struct i3c_master_controller *master)
2802 {
2803 	struct i3c_dev_desc *i3cdev;
2804 
2805 	i3c_bus_for_each_i3cdev(&master->bus, i3cdev) {
2806 		if (!i3cdev->dev)
2807 			continue;
2808 
2809 		i3cdev->dev->desc = NULL;
2810 		if (device_is_registered(&i3cdev->dev->dev))
2811 			device_unregister(&i3cdev->dev->dev);
2812 		else
2813 			put_device(&i3cdev->dev->dev);
2814 		i3cdev->dev = NULL;
2815 	}
2816 }
2817 
2818 /**
2819  * i3c_master_queue_ibi() - Queue an IBI
2820  * @dev: the device this IBI is coming from
2821  * @slot: the IBI slot used to store the payload
2822  *
2823  * Queue an IBI to the controller workqueue. The IBI handler attached to
2824  * the dev will be called from a workqueue context.
2825  */
2826 void i3c_master_queue_ibi(struct i3c_dev_desc *dev, struct i3c_ibi_slot *slot)
2827 {
2828 	if (!dev->ibi || !slot)
2829 		return;
2830 
2831 	atomic_inc(&dev->ibi->pending_ibis);
2832 	queue_work(dev->ibi->wq, &slot->work);
2833 }
2834 EXPORT_SYMBOL_GPL(i3c_master_queue_ibi);
2835 
2836 static void i3c_master_handle_ibi(struct work_struct *work)
2837 {
2838 	struct i3c_ibi_slot *slot = container_of(work, struct i3c_ibi_slot,
2839 						 work);
2840 	struct i3c_dev_desc *dev = slot->dev;
2841 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
2842 	struct i3c_ibi_payload payload;
2843 
2844 	payload.data = slot->data;
2845 	payload.len = slot->len;
2846 
2847 	if (dev->dev)
2848 		dev->ibi->handler(dev->dev, &payload);
2849 
2850 	master->ops->recycle_ibi_slot(dev, slot);
2851 	if (atomic_dec_and_test(&dev->ibi->pending_ibis))
2852 		complete(&dev->ibi->all_ibis_handled);
2853 }
2854 
2855 static void i3c_master_init_ibi_slot(struct i3c_dev_desc *dev,
2856 				     struct i3c_ibi_slot *slot)
2857 {
2858 	slot->dev = dev;
2859 	INIT_WORK(&slot->work, i3c_master_handle_ibi);
2860 }
2861 
2862 struct i3c_generic_ibi_slot {
2863 	struct list_head node;
2864 	struct i3c_ibi_slot base;
2865 };
2866 
2867 struct i3c_generic_ibi_pool {
2868 	spinlock_t lock;
2869 	unsigned int num_slots;
2870 	void *payload_buf;
2871 	struct list_head free_slots;
2872 	struct list_head pending;
2873 	struct i3c_generic_ibi_slot slots[] __counted_by(num_slots);
2874 };
2875 
2876 /**
2877  * i3c_generic_ibi_free_pool() - Free a generic IBI pool
2878  * @pool: the IBI pool to free
2879  *
2880  * Free all IBI slots allated by a generic IBI pool.
2881  */
2882 void i3c_generic_ibi_free_pool(struct i3c_generic_ibi_pool *pool)
2883 {
2884 	struct i3c_generic_ibi_slot *slot;
2885 	unsigned int nslots = 0;
2886 
2887 	while (!list_empty(&pool->free_slots)) {
2888 		slot = list_first_entry(&pool->free_slots,
2889 					struct i3c_generic_ibi_slot, node);
2890 		list_del(&slot->node);
2891 		nslots++;
2892 	}
2893 
2894 	/*
2895 	 * If the number of freed slots is not equal to the number of allocated
2896 	 * slots we have a leak somewhere.
2897 	 */
2898 	WARN_ON(nslots != pool->num_slots);
2899 
2900 	kfree(pool->payload_buf);
2901 	kfree(pool);
2902 }
2903 EXPORT_SYMBOL_GPL(i3c_generic_ibi_free_pool);
2904 
2905 /**
2906  * i3c_generic_ibi_alloc_pool() - Create a generic IBI pool
2907  * @dev: the device this pool will be used for
2908  * @req: IBI setup request describing what the device driver expects
2909  *
2910  * Create a generic IBI pool based on the information provided in @req.
2911  *
2912  * Return: a valid IBI pool in case of success, an ERR_PTR() otherwise.
2913  */
2914 struct i3c_generic_ibi_pool *
2915 i3c_generic_ibi_alloc_pool(struct i3c_dev_desc *dev,
2916 			   const struct i3c_ibi_setup *req)
2917 {
2918 	struct i3c_generic_ibi_pool *pool;
2919 	struct i3c_generic_ibi_slot *slot;
2920 	unsigned int i;
2921 	int ret;
2922 
2923 	pool = kzalloc_flex(*pool, slots, req->num_slots);
2924 	if (!pool)
2925 		return ERR_PTR(-ENOMEM);
2926 
2927 	pool->num_slots = req->num_slots;
2928 
2929 	spin_lock_init(&pool->lock);
2930 	INIT_LIST_HEAD(&pool->free_slots);
2931 	INIT_LIST_HEAD(&pool->pending);
2932 
2933 	if (req->max_payload_len) {
2934 		pool->payload_buf = kcalloc(req->num_slots,
2935 					    req->max_payload_len, GFP_KERNEL);
2936 		if (!pool->payload_buf) {
2937 			ret = -ENOMEM;
2938 			goto err_free_pool;
2939 		}
2940 	}
2941 
2942 	for (i = 0; i < req->num_slots; i++) {
2943 		slot = &pool->slots[i];
2944 		i3c_master_init_ibi_slot(dev, &slot->base);
2945 
2946 		if (req->max_payload_len)
2947 			slot->base.data = pool->payload_buf +
2948 					  (i * req->max_payload_len);
2949 
2950 		list_add_tail(&slot->node, &pool->free_slots);
2951 	}
2952 
2953 	return pool;
2954 
2955 err_free_pool:
2956 	i3c_generic_ibi_free_pool(pool);
2957 	return ERR_PTR(ret);
2958 }
2959 EXPORT_SYMBOL_GPL(i3c_generic_ibi_alloc_pool);
2960 
2961 /**
2962  * i3c_generic_ibi_get_free_slot() - Get a free slot from a generic IBI pool
2963  * @pool: the pool to query an IBI slot on
2964  *
2965  * Search for a free slot in a generic IBI pool.
2966  * The slot should be returned to the pool using i3c_generic_ibi_recycle_slot()
2967  * when it's no longer needed.
2968  *
2969  * Return: a pointer to a free slot, or NULL if there's no free slot available.
2970  */
2971 struct i3c_ibi_slot *
2972 i3c_generic_ibi_get_free_slot(struct i3c_generic_ibi_pool *pool)
2973 {
2974 	struct i3c_generic_ibi_slot *slot;
2975 	unsigned long flags;
2976 
2977 	spin_lock_irqsave(&pool->lock, flags);
2978 	slot = list_first_entry_or_null(&pool->free_slots,
2979 					struct i3c_generic_ibi_slot, node);
2980 	if (slot)
2981 		list_del(&slot->node);
2982 	spin_unlock_irqrestore(&pool->lock, flags);
2983 
2984 	return slot ? &slot->base : NULL;
2985 }
2986 EXPORT_SYMBOL_GPL(i3c_generic_ibi_get_free_slot);
2987 
2988 /**
2989  * i3c_generic_ibi_recycle_slot() - Return a slot to a generic IBI pool
2990  * @pool: the pool to return the IBI slot to
2991  * @s: IBI slot to recycle
2992  *
2993  * Add an IBI slot back to its generic IBI pool. Should be called from the
2994  * master driver struct_master_controller_ops->recycle_ibi() method.
2995  */
2996 void i3c_generic_ibi_recycle_slot(struct i3c_generic_ibi_pool *pool,
2997 				  struct i3c_ibi_slot *s)
2998 {
2999 	struct i3c_generic_ibi_slot *slot;
3000 	unsigned long flags;
3001 
3002 	if (!s)
3003 		return;
3004 
3005 	slot = container_of(s, struct i3c_generic_ibi_slot, base);
3006 	spin_lock_irqsave(&pool->lock, flags);
3007 	list_add_tail(&slot->node, &pool->free_slots);
3008 	spin_unlock_irqrestore(&pool->lock, flags);
3009 }
3010 EXPORT_SYMBOL_GPL(i3c_generic_ibi_recycle_slot);
3011 
3012 static int i3c_master_check_ops(const struct i3c_master_controller_ops *ops)
3013 {
3014 	if (!ops || !ops->bus_init || !ops->i3c_xfers ||
3015 	    !ops->send_ccc_cmd || !ops->do_daa || !ops->i2c_xfers)
3016 		return -EINVAL;
3017 
3018 	if (ops->request_ibi &&
3019 	    (!ops->enable_ibi || !ops->disable_ibi || !ops->free_ibi ||
3020 	     !ops->recycle_ibi_slot))
3021 		return -EINVAL;
3022 
3023 	return 0;
3024 }
3025 
3026 /**
3027  * i3c_master_register() - register an I3C master
3028  * @master: master used to send frames on the bus
3029  * @parent: the parent device (the one that provides this I3C master
3030  *	    controller)
3031  * @ops: the master controller operations
3032  * @secondary: true if you are registering a secondary master. Will return
3033  *	       -EOPNOTSUPP if set to true since secondary masters are not yet
3034  *	       supported
3035  *
3036  * This function takes care of everything for you:
3037  *
3038  * - creates and initializes the I3C bus
3039  * - populates the bus with static I2C devs if @parent->of_node is not
3040  *   NULL
3041  * - registers all I3C devices added by the controller during bus
3042  *   initialization
3043  * - registers the I2C adapter and all I2C devices
3044  *
3045  * Return: 0 in case of success, a negative error code otherwise.
3046  */
3047 int i3c_master_register(struct i3c_master_controller *master,
3048 			struct device *parent,
3049 			const struct i3c_master_controller_ops *ops,
3050 			bool secondary)
3051 {
3052 	unsigned long i2c_scl_rate = I3C_BUS_I2C_FM_PLUS_SCL_MAX_RATE;
3053 	struct i3c_bus *i3cbus = i3c_master_get_bus(master);
3054 	enum i3c_bus_mode mode = I3C_BUS_MODE_PURE;
3055 	struct i2c_dev_boardinfo *i2cbi;
3056 	int ret;
3057 
3058 	/* We do not support secondary masters yet. */
3059 	if (secondary)
3060 		return -EOPNOTSUPP;
3061 
3062 	ret = i3c_master_check_ops(ops);
3063 	if (ret)
3064 		return ret;
3065 
3066 	master->dev.parent = parent;
3067 	master->dev.of_node = of_node_get(parent->of_node);
3068 	master->dev.bus = &i3c_bus_type;
3069 	master->dev.type = &i3c_masterdev_type;
3070 	master->dev.release = i3c_masterdev_release;
3071 	master->ops = ops;
3072 	master->secondary = secondary;
3073 	INIT_LIST_HEAD(&master->boardinfo.i2c);
3074 	INIT_LIST_HEAD(&master->boardinfo.i3c);
3075 
3076 	ret = i3c_master_rpm_get(master);
3077 	if (ret)
3078 		return ret;
3079 
3080 	device_initialize(&master->dev);
3081 
3082 	master->dev.dma_mask = parent->dma_mask;
3083 	master->dev.coherent_dma_mask = parent->coherent_dma_mask;
3084 	master->dev.dma_parms = parent->dma_parms;
3085 
3086 	ret = i3c_bus_init(i3cbus, master->dev.of_node);
3087 	if (ret)
3088 		goto err_put_dev;
3089 
3090 	dev_set_name(&master->dev, "i3c-%d", i3cbus->id);
3091 
3092 	ret = of_populate_i3c_bus(master);
3093 	if (ret)
3094 		goto err_put_dev;
3095 
3096 	list_for_each_entry(i2cbi, &master->boardinfo.i2c, node) {
3097 		switch (i2cbi->lvr & I3C_LVR_I2C_INDEX_MASK) {
3098 		case I3C_LVR_I2C_INDEX(0):
3099 			if (mode < I3C_BUS_MODE_MIXED_FAST)
3100 				mode = I3C_BUS_MODE_MIXED_FAST;
3101 			break;
3102 		case I3C_LVR_I2C_INDEX(1):
3103 			if (mode < I3C_BUS_MODE_MIXED_LIMITED)
3104 				mode = I3C_BUS_MODE_MIXED_LIMITED;
3105 			break;
3106 		case I3C_LVR_I2C_INDEX(2):
3107 			if (mode < I3C_BUS_MODE_MIXED_SLOW)
3108 				mode = I3C_BUS_MODE_MIXED_SLOW;
3109 			break;
3110 		default:
3111 			ret = -EINVAL;
3112 			goto err_put_dev;
3113 		}
3114 
3115 		if (i2cbi->lvr & I3C_LVR_I2C_FM_MODE)
3116 			i2c_scl_rate = I3C_BUS_I2C_FM_SCL_MAX_RATE;
3117 	}
3118 
3119 	ret = i3c_bus_set_mode(i3cbus, mode, i2c_scl_rate);
3120 	if (ret)
3121 		goto err_put_dev;
3122 
3123 	master->wq = alloc_workqueue("%s", WQ_PERCPU | WQ_FREEZABLE, 0, dev_name(parent));
3124 	if (!master->wq) {
3125 		ret = -ENOMEM;
3126 		goto err_put_dev;
3127 	}
3128 	INIT_WORK(&master->hj_work, i3c_master_hj_work_fn);
3129 
3130 	ret = i3c_master_bus_init(master);
3131 	if (ret)
3132 		goto err_put_dev;
3133 
3134 	ret = device_add(&master->dev);
3135 	if (ret)
3136 		goto err_cleanup_bus;
3137 
3138 	/*
3139 	 * Expose our I3C bus as an I2C adapter so that I2C devices are exposed
3140 	 * through the I2C subsystem.
3141 	 */
3142 	ret = i3c_master_i2c_adapter_init(master);
3143 	if (ret)
3144 		goto err_del_dev;
3145 
3146 	i3c_bus_notify(i3cbus, I3C_NOTIFY_BUS_ADD);
3147 
3148 	pm_runtime_no_callbacks(&master->dev);
3149 	pm_suspend_ignore_children(&master->dev, true);
3150 	pm_runtime_enable(&master->dev);
3151 
3152 	/*
3153 	 * We're done initializing the bus and the controller, we can now
3154 	 * register I3C devices discovered during the initial DAA.
3155 	 */
3156 	master->init_done = true;
3157 	i3c_bus_normaluse_lock(&master->bus);
3158 	i3c_master_register_new_i3c_devs(master);
3159 	i3c_bus_normaluse_unlock(&master->bus);
3160 
3161 	if (master->ops->set_dev_nack_retry)
3162 		device_create_file(&master->dev, &dev_attr_dev_nack_retry_count);
3163 
3164 	i3c_master_rpm_put(master);
3165 
3166 	return 0;
3167 
3168 err_del_dev:
3169 	device_del(&master->dev);
3170 
3171 err_cleanup_bus:
3172 	i3c_master_bus_cleanup(master);
3173 
3174 err_put_dev:
3175 	i3c_master_rpm_put(master);
3176 	put_device(&master->dev);
3177 
3178 	return ret;
3179 }
3180 EXPORT_SYMBOL_GPL(i3c_master_register);
3181 
3182 /**
3183  * i3c_master_unregister() - unregister an I3C master
3184  * @master: master used to send frames on the bus
3185  *
3186  * Basically undo everything done in i3c_master_register().
3187  */
3188 void i3c_master_unregister(struct i3c_master_controller *master)
3189 {
3190 	i3c_bus_notify(&master->bus, I3C_NOTIFY_BUS_REMOVE);
3191 	i3c_master_shutdown(master);
3192 
3193 	if (master->ops->set_dev_nack_retry)
3194 		device_remove_file(&master->dev, &dev_attr_dev_nack_retry_count);
3195 
3196 	i3c_master_i2c_adapter_cleanup(master);
3197 	i3c_master_unregister_i3c_devs(master);
3198 	i3c_master_bus_cleanup(master);
3199 	pm_runtime_disable(&master->dev);
3200 	device_unregister(&master->dev);
3201 }
3202 EXPORT_SYMBOL_GPL(i3c_master_unregister);
3203 
3204 int i3c_dev_setdasa_locked(struct i3c_dev_desc *dev)
3205 {
3206 	struct i3c_master_controller *master;
3207 
3208 	if (!dev)
3209 		return -ENOENT;
3210 
3211 	master = i3c_dev_get_master(dev);
3212 	if (!master)
3213 		return -EINVAL;
3214 
3215 	if (!dev->boardinfo || !dev->boardinfo->init_dyn_addr ||
3216 		!dev->boardinfo->static_addr)
3217 		return -EINVAL;
3218 
3219 	return i3c_master_setdasa_locked(master, dev->info.static_addr,
3220 						dev->boardinfo->init_dyn_addr);
3221 }
3222 
3223 int i3c_dev_do_xfers_locked(struct i3c_dev_desc *dev, struct i3c_xfer *xfers,
3224 			    int nxfers, enum i3c_xfer_mode mode)
3225 {
3226 	struct i3c_master_controller *master;
3227 
3228 	if (!dev)
3229 		return -ENOENT;
3230 
3231 	master = i3c_dev_get_master(dev);
3232 	if (!master || !xfers)
3233 		return -EINVAL;
3234 
3235 	if (mode != I3C_SDR && !(master->this->info.hdr_cap & BIT(mode)))
3236 		return -EOPNOTSUPP;
3237 
3238 	return master->ops->i3c_xfers(dev, xfers, nxfers, mode);
3239 }
3240 
3241 int i3c_dev_disable_ibi_locked(struct i3c_dev_desc *dev)
3242 {
3243 	struct i3c_master_controller *master;
3244 	int ret;
3245 
3246 	if (!dev->ibi)
3247 		return -EINVAL;
3248 
3249 	master = i3c_dev_get_master(dev);
3250 	ret = master->ops->disable_ibi(dev);
3251 	if (ret)
3252 		return ret;
3253 
3254 	reinit_completion(&dev->ibi->all_ibis_handled);
3255 	if (atomic_read(&dev->ibi->pending_ibis))
3256 		wait_for_completion(&dev->ibi->all_ibis_handled);
3257 
3258 	dev->ibi->enabled = false;
3259 
3260 	return 0;
3261 }
3262 
3263 int i3c_dev_enable_ibi_locked(struct i3c_dev_desc *dev)
3264 {
3265 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
3266 	int ret;
3267 
3268 	if (!dev->ibi)
3269 		return -EINVAL;
3270 
3271 	ret = master->ops->enable_ibi(dev);
3272 	if (!ret)
3273 		dev->ibi->enabled = true;
3274 
3275 	return ret;
3276 }
3277 
3278 int i3c_dev_request_ibi_locked(struct i3c_dev_desc *dev,
3279 			       const struct i3c_ibi_setup *req)
3280 {
3281 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
3282 	struct i3c_device_ibi_info *ibi;
3283 	int ret;
3284 
3285 	if (!master->ops->request_ibi)
3286 		return -EOPNOTSUPP;
3287 
3288 	if (dev->ibi)
3289 		return -EBUSY;
3290 
3291 	ibi = kzalloc_obj(*ibi);
3292 	if (!ibi)
3293 		return -ENOMEM;
3294 
3295 	ibi->wq = alloc_ordered_workqueue(dev_name(i3cdev_to_dev(dev->dev)), WQ_MEM_RECLAIM);
3296 	if (!ibi->wq) {
3297 		kfree(ibi);
3298 		return -ENOMEM;
3299 	}
3300 
3301 	atomic_set(&ibi->pending_ibis, 0);
3302 	init_completion(&ibi->all_ibis_handled);
3303 	ibi->handler = req->handler;
3304 	ibi->max_payload_len = req->max_payload_len;
3305 	ibi->num_slots = req->num_slots;
3306 
3307 	dev->ibi = ibi;
3308 	ret = master->ops->request_ibi(dev, req);
3309 	if (ret) {
3310 		kfree(ibi);
3311 		dev->ibi = NULL;
3312 	}
3313 
3314 	return ret;
3315 }
3316 
3317 void i3c_dev_free_ibi_locked(struct i3c_dev_desc *dev)
3318 {
3319 	struct i3c_master_controller *master = i3c_dev_get_master(dev);
3320 
3321 	if (!dev->ibi)
3322 		return;
3323 
3324 	if (dev->ibi->enabled) {
3325 		int ret;
3326 
3327 		dev_err(&master->dev, "Freeing IBI that is still enabled\n");
3328 		ret = i3c_master_rpm_get(master);
3329 		if (!ret) {
3330 			ret = i3c_dev_disable_ibi_locked(dev);
3331 			i3c_master_rpm_put(master);
3332 		}
3333 		if (ret)
3334 			dev_err(&master->dev, "Failed to disable IBI before freeing\n");
3335 	}
3336 
3337 	master->ops->free_ibi(dev);
3338 
3339 	if (dev->ibi->wq) {
3340 		destroy_workqueue(dev->ibi->wq);
3341 		dev->ibi->wq = NULL;
3342 	}
3343 
3344 	kfree(dev->ibi);
3345 	dev->ibi = NULL;
3346 }
3347 
3348 static int __init i3c_init(void)
3349 {
3350 	int res;
3351 
3352 	res = of_alias_get_highest_id("i3c");
3353 	if (res >= 0) {
3354 		mutex_lock(&i3c_core_lock);
3355 		__i3c_first_dynamic_bus_num = res + 1;
3356 		mutex_unlock(&i3c_core_lock);
3357 	}
3358 
3359 	res = bus_register_notifier(&i2c_bus_type, &i2cdev_notifier);
3360 	if (res)
3361 		return res;
3362 
3363 	res = bus_register(&i3c_bus_type);
3364 	if (res)
3365 		goto out_unreg_notifier;
3366 
3367 	return 0;
3368 
3369 out_unreg_notifier:
3370 	bus_unregister_notifier(&i2c_bus_type, &i2cdev_notifier);
3371 
3372 	return res;
3373 }
3374 subsys_initcall(i3c_init);
3375 
3376 static void __exit i3c_exit(void)
3377 {
3378 	bus_unregister_notifier(&i2c_bus_type, &i2cdev_notifier);
3379 	idr_destroy(&i3c_bus_idr);
3380 	bus_unregister(&i3c_bus_type);
3381 }
3382 module_exit(i3c_exit);
3383 
3384 MODULE_AUTHOR("Boris Brezillon <boris.brezillon@bootlin.com>");
3385 MODULE_DESCRIPTION("I3C core");
3386 MODULE_LICENSE("GPL v2");
3387