xref: /linux/drivers/gpu/drm/amd/amdkfd/kfd_events.c (revision c06b6cde2a1c3bcbb561bd57bb6f34eae9030921)
1 // SPDX-License-Identifier: GPL-2.0 OR MIT
2 /*
3  * Copyright 2014-2022 Advanced Micro Devices, Inc.
4  *
5  * Permission is hereby granted, free of charge, to any person obtaining a
6  * copy of this software and associated documentation files (the "Software"),
7  * to deal in the Software without restriction, including without limitation
8  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
9  * and/or sell copies of the Software, and to permit persons to whom the
10  * Software is furnished to do so, subject to the following conditions:
11  *
12  * The above copyright notice and this permission notice shall be included in
13  * all copies or substantial portions of the Software.
14  *
15  * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
16  * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
17  * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.  IN NO EVENT SHALL
18  * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
19  * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
20  * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
21  * OTHER DEALINGS IN THE SOFTWARE.
22  */
23 
24 #include <linux/mm_types.h>
25 #include <linux/slab.h>
26 #include <linux/types.h>
27 #include <linux/sched/signal.h>
28 #include <linux/sched/mm.h>
29 #include <linux/uaccess.h>
30 #include <linux/mman.h>
31 #include <linux/memory.h>
32 #include "kfd_priv.h"
33 #include "kfd_events.h"
34 #include "kfd_device_queue_manager.h"
35 #include <linux/device.h>
36 
37 /*
38  * Wrapper around wait_queue_entry_t
39  */
40 struct kfd_event_waiter {
41 	wait_queue_entry_t wait;
42 	struct kfd_event *event; /* Event to wait for */
43 	bool activated;		 /* Becomes true when event is signaled */
44 	bool event_age_enabled;  /* set to true when last_event_age is non-zero */
45 };
46 
47 /*
48  * Each signal event needs a 64-bit signal slot where the signaler will write
49  * a 1 before sending an interrupt. (This is needed because some interrupts
50  * do not contain enough spare data bits to identify an event.)
51  * We get whole pages and map them to the process VA.
52  * Individual signal events use their event_id as slot index.
53  */
54 struct kfd_signal_page {
55 	uint64_t *kernel_address;
56 	uint64_t __user *user_address;
57 	bool need_to_free_pages;
58 };
59 
60 static uint64_t *page_slots(struct kfd_signal_page *page)
61 {
62 	return page->kernel_address;
63 }
64 
65 static struct kfd_signal_page *allocate_signal_page(struct kfd_process *p)
66 {
67 	void *backing_store;
68 	struct kfd_signal_page *page;
69 
70 	page = kzalloc_obj(*page);
71 	if (!page)
72 		return NULL;
73 
74 	backing_store = (void *) __get_free_pages(GFP_KERNEL,
75 					get_order(KFD_SIGNAL_EVENT_LIMIT * 8));
76 	if (!backing_store)
77 		goto fail_alloc_signal_store;
78 
79 	/* Initialize all events to unsignaled */
80 	memset(backing_store, (uint8_t) UNSIGNALED_EVENT_SLOT,
81 	       KFD_SIGNAL_EVENT_LIMIT * 8);
82 
83 	page->kernel_address = backing_store;
84 	page->need_to_free_pages = true;
85 	pr_debug("Allocated new event signal page at %p, for process %p\n",
86 			page, p);
87 
88 	return page;
89 
90 fail_alloc_signal_store:
91 	kfree(page);
92 	return NULL;
93 }
94 
95 static int allocate_event_notification_slot(struct kfd_process *p,
96 					    struct kfd_event *ev,
97 					    const int *restore_id)
98 {
99 	int id;
100 
101 	if (!p->signal_page) {
102 		p->signal_page = allocate_signal_page(p);
103 		if (!p->signal_page)
104 			return -ENOMEM;
105 		/* Oldest user mode expects 256 event slots */
106 		p->signal_mapped_size = 256*8;
107 	}
108 
109 	if (restore_id) {
110 		id = idr_alloc(&p->event_idr, ev, *restore_id, *restore_id + 1,
111 				GFP_KERNEL);
112 	} else {
113 		/*
114 		 * Compatibility with old user mode: Only use signal slots
115 		 * user mode has mapped, may be less than
116 		 * KFD_SIGNAL_EVENT_LIMIT. This also allows future increase
117 		 * of the event limit without breaking user mode.
118 		 */
119 		id = idr_alloc(&p->event_idr, ev, 0, p->signal_mapped_size / 8,
120 				GFP_KERNEL);
121 	}
122 	if (id < 0)
123 		return id;
124 
125 	ev->event_id = id;
126 	page_slots(p->signal_page)[id] = UNSIGNALED_EVENT_SLOT;
127 
128 	return 0;
129 }
130 
131 /*
132  * Assumes that p->event_mutex or rcu_readlock is held and of course that p is
133  * not going away.
134  */
135 static struct kfd_event *lookup_event_by_id(struct kfd_process *p, uint32_t id)
136 {
137 	return idr_find(&p->event_idr, id);
138 }
139 
140 /**
141  * lookup_signaled_event_by_partial_id - Lookup signaled event from partial ID
142  * @p:     Pointer to struct kfd_process
143  * @id:    ID to look up
144  * @bits:  Number of valid bits in @id
145  * @signal_mailbox_updated: flag indicates if FW updates signal mailbox entry
146  *
147  * Finds the first signaled event with a matching partial ID. If no
148  * matching signaled event is found, returns NULL. In that case the
149  * caller should assume that the partial ID is invalid and do an
150  * exhaustive search of all siglaned events.
151  *
152  * If multiple events with the same partial ID signal at the same
153  * time, they will be found one interrupt at a time, not necessarily
154  * in the same order the interrupts occurred. As long as the number of
155  * interrupts is correct, all signaled events will be seen by the
156  * driver.
157  */
158 static struct kfd_event *lookup_signaled_event_by_partial_id(
159 	struct kfd_process *p, uint32_t id, uint32_t bits,
160 	bool signal_mailbox_updated)
161 {
162 	struct kfd_event *ev;
163 
164 	if (!p->signal_page || id >= KFD_SIGNAL_EVENT_LIMIT)
165 		return NULL;
166 
167 	/* Fast path for the common case that @id is not a partial ID
168 	 * and we only need a single lookup.
169 	 */
170 	if (bits > 31 || (1U << bits) >= KFD_SIGNAL_EVENT_LIMIT) {
171 		if (signal_mailbox_updated &&
172 		    page_slots(p->signal_page)[id] == UNSIGNALED_EVENT_SLOT)
173 			return NULL;
174 
175 		return idr_find(&p->event_idr, id);
176 	}
177 
178 	/* General case for partial IDs: Iterate over all matching IDs
179 	 * and find the first one that has signaled.
180 	 */
181 	for (ev = NULL; id < KFD_SIGNAL_EVENT_LIMIT && !ev; id += 1U << bits) {
182 		if (page_slots(p->signal_page)[id] == UNSIGNALED_EVENT_SLOT)
183 			continue;
184 
185 		ev = idr_find(&p->event_idr, id);
186 	}
187 
188 	return ev;
189 }
190 
191 static int create_signal_event(struct file *devkfd, struct kfd_process *p,
192 				struct kfd_event *ev, const int *restore_id)
193 {
194 	int ret;
195 
196 	if (p->signal_mapped_size &&
197 	    p->signal_event_count == p->signal_mapped_size / 8) {
198 		if (!p->signal_event_limit_reached) {
199 			pr_debug("Signal event wasn't created because limit was reached\n");
200 			p->signal_event_limit_reached = true;
201 		}
202 		return -ENOSPC;
203 	}
204 
205 	ret = allocate_event_notification_slot(p, ev, restore_id);
206 	if (ret) {
207 		pr_warn("Signal event wasn't created because out of kernel memory\n");
208 		return ret;
209 	}
210 
211 	p->signal_event_count++;
212 
213 	ev->user_signal_address = &p->signal_page->user_address[ev->event_id];
214 	pr_debug("Signal event number %zu created with id %d, address %p\n",
215 			p->signal_event_count, ev->event_id,
216 			ev->user_signal_address);
217 
218 	return 0;
219 }
220 
221 static int create_other_event(struct kfd_process *p, struct kfd_event *ev, const int *restore_id)
222 {
223 	int id;
224 
225 	if (restore_id)
226 		id = idr_alloc(&p->event_idr, ev, *restore_id, *restore_id + 1,
227 			GFP_KERNEL);
228 	else
229 		/* Cast KFD_LAST_NONSIGNAL_EVENT to uint32_t. This allows an
230 		 * intentional integer overflow to -1 without a compiler
231 		 * warning. idr_alloc treats a negative value as "maximum
232 		 * signed integer".
233 		 */
234 		id = idr_alloc(&p->event_idr, ev, KFD_FIRST_NONSIGNAL_EVENT_ID,
235 				(uint32_t)KFD_LAST_NONSIGNAL_EVENT_ID + 1,
236 				GFP_KERNEL);
237 
238 	if (id < 0)
239 		return id;
240 	ev->event_id = id;
241 
242 	return 0;
243 }
244 
245 int kfd_event_init_process(struct kfd_process *p)
246 {
247 	int id;
248 
249 	mutex_init(&p->event_mutex);
250 	idr_init(&p->event_idr);
251 	p->signal_page = NULL;
252 	p->signal_event_count = 1;
253 	/* Allocate event ID 0. It is used for a fast path to ignore bogus events
254 	 * that are sent by the CP without a context ID
255 	 */
256 	id = idr_alloc(&p->event_idr, NULL, 0, 1, GFP_KERNEL);
257 	if (id < 0) {
258 		idr_destroy(&p->event_idr);
259 		mutex_destroy(&p->event_mutex);
260 		return id;
261 	}
262 	return 0;
263 }
264 
265 static void destroy_event(struct kfd_process *p, struct kfd_event *ev)
266 {
267 	struct kfd_event_waiter *waiter;
268 
269 	/* Wake up pending waiters. They will return failure */
270 	spin_lock(&ev->lock);
271 	list_for_each_entry(waiter, &ev->wq.head, wait.entry)
272 		WRITE_ONCE(waiter->event, NULL);
273 	wake_up_all(&ev->wq);
274 	spin_unlock(&ev->lock);
275 
276 	if (ev->type == KFD_EVENT_TYPE_SIGNAL ||
277 	    ev->type == KFD_EVENT_TYPE_DEBUG)
278 		p->signal_event_count--;
279 
280 	idr_remove(&p->event_idr, ev->event_id);
281 	kfree_rcu(ev, rcu);
282 }
283 
284 static void destroy_events(struct kfd_process *p)
285 {
286 	struct kfd_event *ev;
287 	uint32_t id;
288 
289 	idr_for_each_entry(&p->event_idr, ev, id)
290 		if (ev)
291 			destroy_event(p, ev);
292 	idr_destroy(&p->event_idr);
293 	mutex_destroy(&p->event_mutex);
294 }
295 
296 /*
297  * We assume that the process is being destroyed and there is no need to
298  * unmap the pages or keep bookkeeping data in order.
299  */
300 static void shutdown_signal_page(struct kfd_process *p)
301 {
302 	struct kfd_signal_page *page = p->signal_page;
303 
304 	if (page) {
305 		if (page->need_to_free_pages)
306 			free_pages((unsigned long)page->kernel_address,
307 				   get_order(KFD_SIGNAL_EVENT_LIMIT * 8));
308 		kfree(page);
309 	}
310 }
311 
312 void kfd_event_free_process(struct kfd_process *p)
313 {
314 	destroy_events(p);
315 	shutdown_signal_page(p);
316 }
317 
318 static bool event_can_be_gpu_signaled(const struct kfd_event *ev)
319 {
320 	return ev->type == KFD_EVENT_TYPE_SIGNAL ||
321 					ev->type == KFD_EVENT_TYPE_DEBUG;
322 }
323 
324 static bool event_can_be_cpu_signaled(const struct kfd_event *ev)
325 {
326 	return ev->type == KFD_EVENT_TYPE_SIGNAL;
327 }
328 
329 static int kfd_event_page_set(struct kfd_process *p, void *kernel_address,
330 		       uint64_t size, uint64_t user_handle)
331 {
332 	struct kfd_signal_page *page;
333 
334 	if (p->signal_page)
335 		return -EBUSY;
336 
337 	if (size < KFD_SIGNAL_EVENT_LIMIT * 8) {
338 		pr_err("Event page size %llu is too small, need at least %lu bytes\n",
339 				size, (unsigned long)(KFD_SIGNAL_EVENT_LIMIT * 8));
340 		return -EINVAL;
341 	}
342 
343 	page = kzalloc_obj(*page);
344 	if (!page)
345 		return -ENOMEM;
346 
347 	/* Initialize all events to unsignaled */
348 	memset(kernel_address, (uint8_t) UNSIGNALED_EVENT_SLOT,
349 	       KFD_SIGNAL_EVENT_LIMIT * 8);
350 
351 	page->kernel_address = kernel_address;
352 
353 	p->signal_page = page;
354 	p->signal_mapped_size = size;
355 	p->signal_handle = user_handle;
356 	return 0;
357 }
358 
359 int kfd_kmap_event_page(struct kfd_process *p, uint64_t event_page_offset)
360 {
361 	struct kfd_node *kfd;
362 	struct kfd_process_device *pdd;
363 	void *mem, *kern_addr;
364 	uint64_t size;
365 	int err = 0;
366 
367 	if (p->signal_page) {
368 		pr_err("Event page is already set\n");
369 		return -EINVAL;
370 	}
371 
372 	pdd = kfd_process_device_data_by_id(p, GET_GPU_ID(event_page_offset));
373 	if (!pdd) {
374 		pr_err("Getting device by id failed in %s\n", __func__);
375 		return -EINVAL;
376 	}
377 	kfd = pdd->dev;
378 
379 	pdd = kfd_bind_process_to_device(kfd, p);
380 	if (IS_ERR(pdd))
381 		return PTR_ERR(pdd);
382 
383 	mem = kfd_process_device_translate_handle(pdd,
384 			GET_IDR_HANDLE(event_page_offset));
385 	if (!mem) {
386 		pr_err("Can't find BO, offset is 0x%llx\n", event_page_offset);
387 		return -EINVAL;
388 	}
389 
390 	err = amdgpu_amdkfd_gpuvm_map_gtt_bo_to_kernel(mem, &kern_addr, &size);
391 	if (err) {
392 		pr_err("Failed to map event page to kernel\n");
393 		return err;
394 	}
395 
396 	err = kfd_event_page_set(p, kern_addr, size, event_page_offset);
397 	if (err) {
398 		pr_err("Failed to set event page\n");
399 		amdgpu_amdkfd_gpuvm_unmap_gtt_bo_from_kernel(mem);
400 		return err;
401 	}
402 	return err;
403 }
404 
405 int kfd_event_create(struct file *devkfd, struct kfd_process *p,
406 		     uint32_t event_type, bool auto_reset, uint32_t node_id,
407 		     uint32_t *event_id, uint32_t *event_trigger_data,
408 		     uint64_t *event_page_offset, uint32_t *event_slot_index)
409 {
410 	int ret = 0;
411 	struct kfd_event *ev = kzalloc_obj(*ev);
412 
413 	if (!ev)
414 		return -ENOMEM;
415 
416 	ev->type = event_type;
417 	ev->auto_reset = auto_reset;
418 	ev->signaled = false;
419 
420 	spin_lock_init(&ev->lock);
421 	init_waitqueue_head(&ev->wq);
422 
423 	*event_page_offset = 0;
424 
425 	mutex_lock(&p->event_mutex);
426 
427 	switch (event_type) {
428 	case KFD_EVENT_TYPE_SIGNAL:
429 	case KFD_EVENT_TYPE_DEBUG:
430 		ret = create_signal_event(devkfd, p, ev, NULL);
431 		if (!ret) {
432 			*event_page_offset = KFD_MMAP_TYPE_EVENTS;
433 			*event_slot_index = ev->event_id;
434 		}
435 		break;
436 	default:
437 		ret = create_other_event(p, ev, NULL);
438 		break;
439 	}
440 
441 	if (!ret) {
442 		*event_id = ev->event_id;
443 		*event_trigger_data = ev->event_id;
444 		ev->event_age = 1;
445 	} else {
446 		kfree(ev);
447 	}
448 
449 	mutex_unlock(&p->event_mutex);
450 
451 	return ret;
452 }
453 
454 int kfd_criu_restore_event(struct file *devkfd,
455 			   struct kfd_process *p,
456 			   uint8_t __user *user_priv_ptr,
457 			   uint64_t *priv_data_offset,
458 			   uint64_t max_priv_data_size)
459 {
460 	struct kfd_criu_event_priv_data *ev_priv;
461 	struct kfd_event *ev = NULL;
462 	int ret = 0;
463 
464 	ev_priv = kmalloc_obj(*ev_priv);
465 	if (!ev_priv)
466 		return -ENOMEM;
467 
468 	ev = kzalloc_obj(*ev);
469 	if (!ev) {
470 		ret = -ENOMEM;
471 		goto exit;
472 	}
473 
474 	if (*priv_data_offset + sizeof(*ev_priv) > max_priv_data_size) {
475 		ret = -EINVAL;
476 		goto exit;
477 	}
478 
479 	ret = copy_from_user(ev_priv, user_priv_ptr + *priv_data_offset, sizeof(*ev_priv));
480 	if (ret) {
481 		ret = -EFAULT;
482 		goto exit;
483 	}
484 	*priv_data_offset += sizeof(*ev_priv);
485 
486 	if (ev_priv->event_id > INT_MAX) {
487 		ret = -EINVAL;
488 		goto exit;
489 	}
490 
491 	if (ev_priv->user_handle) {
492 		ret = kfd_kmap_event_page(p, ev_priv->user_handle);
493 		if (ret)
494 			goto exit;
495 	}
496 
497 	ev->type = ev_priv->type;
498 	ev->auto_reset = ev_priv->auto_reset;
499 	ev->signaled = ev_priv->signaled;
500 
501 	spin_lock_init(&ev->lock);
502 	init_waitqueue_head(&ev->wq);
503 
504 	mutex_lock(&p->event_mutex);
505 	switch (ev->type) {
506 	case KFD_EVENT_TYPE_SIGNAL:
507 	case KFD_EVENT_TYPE_DEBUG:
508 		ret = create_signal_event(devkfd, p, ev, &ev_priv->event_id);
509 		break;
510 	case KFD_EVENT_TYPE_MEMORY:
511 		memcpy(&ev->memory_exception_data,
512 			&ev_priv->memory_exception_data,
513 			sizeof(struct kfd_hsa_memory_exception_data));
514 
515 		ret = create_other_event(p, ev, &ev_priv->event_id);
516 		break;
517 	case KFD_EVENT_TYPE_HW_EXCEPTION:
518 		memcpy(&ev->hw_exception_data,
519 			&ev_priv->hw_exception_data,
520 			sizeof(struct kfd_hsa_hw_exception_data));
521 
522 		ret = create_other_event(p, ev, &ev_priv->event_id);
523 		break;
524 	}
525 	mutex_unlock(&p->event_mutex);
526 
527 exit:
528 	if (ret)
529 		kfree(ev);
530 
531 	kfree(ev_priv);
532 
533 	return ret;
534 }
535 
536 int kfd_criu_checkpoint_events(struct kfd_process *p,
537 			 uint8_t __user *user_priv_data,
538 			 uint64_t *priv_data_offset)
539 {
540 	struct kfd_criu_event_priv_data *ev_privs;
541 	int i = 0;
542 	int ret =  0;
543 	struct kfd_event *ev;
544 	uint32_t ev_id;
545 
546 	uint32_t num_events = kfd_get_num_events(p);
547 
548 	if (!num_events)
549 		return 0;
550 
551 	ev_privs = kvzalloc(num_events * sizeof(*ev_privs), GFP_KERNEL);
552 	if (!ev_privs)
553 		return -ENOMEM;
554 
555 
556 	idr_for_each_entry(&p->event_idr, ev, ev_id) {
557 		struct kfd_criu_event_priv_data *ev_priv;
558 
559 		/*
560 		 * Currently, all events have same size of private_data, but the current ioctl's
561 		 * and CRIU plugin supports private_data of variable sizes
562 		 */
563 		ev_priv = &ev_privs[i];
564 
565 		ev_priv->object_type = KFD_CRIU_OBJECT_TYPE_EVENT;
566 
567 		/* We store the user_handle with the first event */
568 		if (i == 0 && p->signal_page)
569 			ev_priv->user_handle = p->signal_handle;
570 
571 		ev_priv->event_id = ev->event_id;
572 		ev_priv->auto_reset = ev->auto_reset;
573 		ev_priv->type = ev->type;
574 		ev_priv->signaled = ev->signaled;
575 
576 		if (ev_priv->type == KFD_EVENT_TYPE_MEMORY)
577 			memcpy(&ev_priv->memory_exception_data,
578 				&ev->memory_exception_data,
579 				sizeof(struct kfd_hsa_memory_exception_data));
580 		else if (ev_priv->type == KFD_EVENT_TYPE_HW_EXCEPTION)
581 			memcpy(&ev_priv->hw_exception_data,
582 				&ev->hw_exception_data,
583 				sizeof(struct kfd_hsa_hw_exception_data));
584 
585 		pr_debug("Checkpointed event[%d] id = 0x%08x auto_reset = %x type = %x signaled = %x\n",
586 			  i,
587 			  ev_priv->event_id,
588 			  ev_priv->auto_reset,
589 			  ev_priv->type,
590 			  ev_priv->signaled);
591 		i++;
592 	}
593 
594 	ret = copy_to_user(user_priv_data + *priv_data_offset,
595 			   ev_privs, num_events * sizeof(*ev_privs));
596 	if (ret) {
597 		pr_err("Failed to copy events priv to user\n");
598 		ret = -EFAULT;
599 	}
600 
601 	*priv_data_offset += num_events * sizeof(*ev_privs);
602 
603 	kvfree(ev_privs);
604 	return ret;
605 }
606 
607 int kfd_get_num_events(struct kfd_process *p)
608 {
609 	struct kfd_event *ev;
610 	uint32_t id;
611 	u32 num_events = 0;
612 
613 	idr_for_each_entry(&p->event_idr, ev, id)
614 		num_events++;
615 
616 	return num_events;
617 }
618 
619 /* Assumes that p is current. */
620 int kfd_event_destroy(struct kfd_process *p, uint32_t event_id)
621 {
622 	struct kfd_event *ev;
623 	int ret = 0;
624 
625 	mutex_lock(&p->event_mutex);
626 
627 	ev = lookup_event_by_id(p, event_id);
628 
629 	if (ev)
630 		destroy_event(p, ev);
631 	else
632 		ret = -EINVAL;
633 
634 	mutex_unlock(&p->event_mutex);
635 	return ret;
636 }
637 
638 static void set_event(struct kfd_event *ev)
639 {
640 	struct kfd_event_waiter *waiter;
641 
642 	/* Auto reset if the list is non-empty and we're waking
643 	 * someone. waitqueue_active is safe here because we're
644 	 * protected by the ev->lock, which is also held when
645 	 * updating the wait queues in kfd_wait_on_events.
646 	 */
647 	ev->signaled = !ev->auto_reset || !waitqueue_active(&ev->wq);
648 	if (!(++ev->event_age)) {
649 		/* Never wrap back to reserved/default event age 0/1 */
650 		ev->event_age = 2;
651 		WARN_ONCE(1, "event_age wrap back!");
652 	}
653 
654 	list_for_each_entry(waiter, &ev->wq.head, wait.entry)
655 		WRITE_ONCE(waiter->activated, true);
656 
657 	wake_up_all(&ev->wq);
658 }
659 
660 /* Assumes that p is current. */
661 int kfd_set_event(struct kfd_process *p, uint32_t event_id)
662 {
663 	int ret = 0;
664 	struct kfd_event *ev;
665 
666 	rcu_read_lock();
667 
668 	ev = lookup_event_by_id(p, event_id);
669 	if (!ev) {
670 		ret = -EINVAL;
671 		goto unlock_rcu;
672 	}
673 	spin_lock(&ev->lock);
674 
675 	if (event_can_be_cpu_signaled(ev))
676 		set_event(ev);
677 	else
678 		ret = -EINVAL;
679 
680 	spin_unlock(&ev->lock);
681 unlock_rcu:
682 	rcu_read_unlock();
683 	return ret;
684 }
685 
686 static void reset_event(struct kfd_event *ev)
687 {
688 	ev->signaled = false;
689 }
690 
691 /* Assumes that p is current. */
692 int kfd_reset_event(struct kfd_process *p, uint32_t event_id)
693 {
694 	int ret = 0;
695 	struct kfd_event *ev;
696 
697 	rcu_read_lock();
698 
699 	ev = lookup_event_by_id(p, event_id);
700 	if (!ev) {
701 		ret = -EINVAL;
702 		goto unlock_rcu;
703 	}
704 	spin_lock(&ev->lock);
705 
706 	if (event_can_be_cpu_signaled(ev))
707 		reset_event(ev);
708 	else
709 		ret = -EINVAL;
710 
711 	spin_unlock(&ev->lock);
712 unlock_rcu:
713 	rcu_read_unlock();
714 	return ret;
715 
716 }
717 
718 static void acknowledge_signal(struct kfd_process *p, struct kfd_event *ev)
719 {
720 	WRITE_ONCE(page_slots(p->signal_page)[ev->event_id], UNSIGNALED_EVENT_SLOT);
721 }
722 
723 static void set_event_from_interrupt(struct kfd_process *p,
724 					struct kfd_event *ev)
725 {
726 	if (ev && event_can_be_gpu_signaled(ev)) {
727 		acknowledge_signal(p, ev);
728 		spin_lock(&ev->lock);
729 		set_event(ev);
730 		spin_unlock(&ev->lock);
731 	}
732 }
733 
734 void kfd_signal_event_interrupt(u32 pasid, uint32_t partial_id,
735 				uint32_t valid_id_bits, bool signal_mailbox_updated)
736 {
737 	struct kfd_event *ev = NULL;
738 
739 	/*
740 	 * Because we are called from arbitrary context (workqueue) as opposed
741 	 * to process context, kfd_process could attempt to exit while we are
742 	 * running so the lookup function increments the process ref count.
743 	 */
744 	struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL);
745 
746 	if (!p)
747 		return; /* Presumably process exited. */
748 
749 	rcu_read_lock();
750 
751 	if (valid_id_bits)
752 		ev = lookup_signaled_event_by_partial_id(p, partial_id,
753 							 valid_id_bits,
754 							 signal_mailbox_updated);
755 	if (ev) {
756 		set_event_from_interrupt(p, ev);
757 	} else if (p->signal_page) {
758 		/*
759 		 * Partial ID lookup failed. Assume that the event ID
760 		 * in the interrupt payload was invalid and do an
761 		 * exhaustive search of signaled events.
762 		 */
763 		uint64_t *slots = page_slots(p->signal_page);
764 		uint32_t id;
765 
766 		if (valid_id_bits)
767 			pr_debug_ratelimited("Partial ID invalid: %u (%u valid bits)\n",
768 					     partial_id, valid_id_bits);
769 
770 		if (p->signal_event_count < KFD_SIGNAL_EVENT_LIMIT / 64) {
771 			/* With relatively few events, it's faster to
772 			 * iterate over the event IDR
773 			 */
774 			idr_for_each_entry(&p->event_idr, ev, id) {
775 				if (id >= KFD_SIGNAL_EVENT_LIMIT)
776 					break;
777 
778 				if (READ_ONCE(slots[id]) != UNSIGNALED_EVENT_SLOT)
779 					set_event_from_interrupt(p, ev);
780 			}
781 		} else {
782 			/* With relatively many events, it's faster to
783 			 * iterate over the signal slots and lookup
784 			 * only signaled events from the IDR.
785 			 */
786 			for (id = 1; id < KFD_SIGNAL_EVENT_LIMIT; id++)
787 				if (READ_ONCE(slots[id]) != UNSIGNALED_EVENT_SLOT) {
788 					ev = lookup_event_by_id(p, id);
789 					set_event_from_interrupt(p, ev);
790 				}
791 		}
792 	}
793 
794 	rcu_read_unlock();
795 	kfd_unref_process(p);
796 }
797 
798 static struct kfd_event_waiter *alloc_event_waiters(uint32_t num_events)
799 {
800 	struct kfd_event_waiter *event_waiters;
801 	uint32_t i;
802 
803 	event_waiters = kzalloc_objs(struct kfd_event_waiter, num_events);
804 	if (!event_waiters)
805 		return NULL;
806 
807 	for (i = 0; i < num_events; i++)
808 		init_wait(&event_waiters[i].wait);
809 
810 	return event_waiters;
811 }
812 
813 static int init_event_waiter(struct kfd_process *p,
814 		struct kfd_event_waiter *waiter,
815 		struct kfd_event_data *event_data)
816 {
817 	struct kfd_event *ev = lookup_event_by_id(p, event_data->event_id);
818 
819 	if (!ev)
820 		return -EINVAL;
821 
822 	spin_lock(&ev->lock);
823 	waiter->event = ev;
824 	waiter->activated = ev->signaled;
825 	ev->signaled = ev->signaled && !ev->auto_reset;
826 
827 	/* last_event_age = 0 reserved for backward compatible */
828 	if (waiter->event->type == KFD_EVENT_TYPE_SIGNAL &&
829 		event_data->signal_event_data.last_event_age) {
830 		waiter->event_age_enabled = true;
831 		if (ev->event_age != event_data->signal_event_data.last_event_age)
832 			waiter->activated = true;
833 	}
834 
835 	if (!waiter->activated)
836 		add_wait_queue(&ev->wq, &waiter->wait);
837 	spin_unlock(&ev->lock);
838 
839 	return 0;
840 }
841 
842 /* test_event_condition - Test condition of events being waited for
843  * @all:           Return completion only if all events have signaled
844  * @num_events:    Number of events to wait for
845  * @event_waiters: Array of event waiters, one per event
846  *
847  * Returns KFD_IOC_WAIT_RESULT_COMPLETE if all (or one) event(s) have
848  * signaled. Returns KFD_IOC_WAIT_RESULT_TIMEOUT if no (or not all)
849  * events have signaled. Returns KFD_IOC_WAIT_RESULT_FAIL if any of
850  * the events have been destroyed.
851  */
852 static uint32_t test_event_condition(bool all, uint32_t num_events,
853 				struct kfd_event_waiter *event_waiters)
854 {
855 	uint32_t i;
856 	uint32_t activated_count = 0;
857 
858 	for (i = 0; i < num_events; i++) {
859 		if (!READ_ONCE(event_waiters[i].event))
860 			return KFD_IOC_WAIT_RESULT_FAIL;
861 
862 		if (READ_ONCE(event_waiters[i].activated)) {
863 			if (!all)
864 				return KFD_IOC_WAIT_RESULT_COMPLETE;
865 
866 			activated_count++;
867 		}
868 	}
869 
870 	return activated_count == num_events ?
871 		KFD_IOC_WAIT_RESULT_COMPLETE : KFD_IOC_WAIT_RESULT_TIMEOUT;
872 }
873 
874 /*
875  * Copy event specific data, if defined.
876  * Currently only memory exception events have additional data to copy to user
877  */
878 static int copy_signaled_event_data(uint32_t num_events,
879 		struct kfd_event_waiter *event_waiters,
880 		struct kfd_event_data __user *data)
881 {
882 	void *src;
883 	void __user *dst;
884 	struct kfd_event_waiter *waiter;
885 	struct kfd_event *event;
886 	uint32_t i, size = 0;
887 
888 	for (i = 0; i < num_events; i++) {
889 		waiter = &event_waiters[i];
890 		event = waiter->event;
891 		if (!event)
892 			return -EINVAL; /* event was destroyed */
893 		if (waiter->activated) {
894 			if (event->type == KFD_EVENT_TYPE_MEMORY) {
895 				dst = &data[i].memory_exception_data;
896 				src = &event->memory_exception_data;
897 				size = sizeof(struct kfd_hsa_memory_exception_data);
898 			} else if (event->type == KFD_EVENT_TYPE_HW_EXCEPTION) {
899 				dst = &data[i].memory_exception_data;
900 				src = &event->hw_exception_data;
901 				size = sizeof(struct kfd_hsa_hw_exception_data);
902 			} else if (event->type == KFD_EVENT_TYPE_SIGNAL &&
903 				waiter->event_age_enabled) {
904 				dst = &data[i].signal_event_data.last_event_age;
905 				src = &event->event_age;
906 				size = sizeof(u64);
907 			}
908 			if (size && copy_to_user(dst, src, size))
909 				return -EFAULT;
910 		}
911 	}
912 
913 	return 0;
914 }
915 
916 static long user_timeout_to_jiffies(uint32_t user_timeout_ms)
917 {
918 	if (user_timeout_ms == KFD_EVENT_TIMEOUT_IMMEDIATE)
919 		return 0;
920 
921 	if (user_timeout_ms == KFD_EVENT_TIMEOUT_INFINITE)
922 		return MAX_SCHEDULE_TIMEOUT;
923 
924 	/*
925 	 * msecs_to_jiffies interprets all values above 2^31-1 as infinite,
926 	 * but we consider them finite.
927 	 * This hack is wrong, but nobody is likely to notice.
928 	 */
929 	user_timeout_ms = min_t(uint32_t, user_timeout_ms, 0x7FFFFFFF);
930 
931 	return msecs_to_jiffies(user_timeout_ms) + 1;
932 }
933 
934 static void free_waiters(uint32_t num_events, struct kfd_event_waiter *waiters,
935 			 bool undo_auto_reset)
936 {
937 	uint32_t i;
938 
939 	for (i = 0; i < num_events; i++)
940 		if (waiters[i].event) {
941 			spin_lock(&waiters[i].event->lock);
942 			remove_wait_queue(&waiters[i].event->wq,
943 					  &waiters[i].wait);
944 			if (undo_auto_reset && waiters[i].activated &&
945 			    waiters[i].event && waiters[i].event->auto_reset)
946 				set_event(waiters[i].event);
947 			spin_unlock(&waiters[i].event->lock);
948 		}
949 
950 	kfree(waiters);
951 }
952 
953 int kfd_wait_on_events(struct kfd_process *p,
954 		       uint32_t num_events, void __user *data,
955 		       bool all, uint32_t *user_timeout_ms,
956 		       uint32_t *wait_result)
957 {
958 	struct kfd_event_data __user *events =
959 			(struct kfd_event_data __user *) data;
960 	uint32_t i;
961 	int ret = 0;
962 
963 	struct kfd_event_waiter *event_waiters = NULL;
964 	long timeout = user_timeout_to_jiffies(*user_timeout_ms);
965 
966 	event_waiters = alloc_event_waiters(num_events);
967 	if (!event_waiters) {
968 		ret = -ENOMEM;
969 		goto out;
970 	}
971 
972 	/* Use p->event_mutex here to protect against concurrent creation and
973 	 * destruction of events while we initialize event_waiters.
974 	 */
975 	mutex_lock(&p->event_mutex);
976 
977 	for (i = 0; i < num_events; i++) {
978 		struct kfd_event_data event_data;
979 
980 		if (copy_from_user(&event_data, &events[i],
981 				sizeof(struct kfd_event_data))) {
982 			ret = -EFAULT;
983 			goto out_unlock;
984 		}
985 
986 		ret = init_event_waiter(p, &event_waiters[i], &event_data);
987 		if (ret)
988 			goto out_unlock;
989 	}
990 
991 	/* Check condition once. */
992 	*wait_result = test_event_condition(all, num_events, event_waiters);
993 	if (*wait_result == KFD_IOC_WAIT_RESULT_COMPLETE) {
994 		ret = copy_signaled_event_data(num_events,
995 					       event_waiters, events);
996 		goto out_unlock;
997 	} else if (WARN_ON(*wait_result == KFD_IOC_WAIT_RESULT_FAIL)) {
998 		/* This should not happen. Events shouldn't be
999 		 * destroyed while we're holding the event_mutex
1000 		 */
1001 		goto out_unlock;
1002 	}
1003 
1004 	mutex_unlock(&p->event_mutex);
1005 
1006 	while (true) {
1007 		if (fatal_signal_pending(current)) {
1008 			ret = -EINTR;
1009 			break;
1010 		}
1011 
1012 		if (signal_pending(current)) {
1013 			ret = -ERESTARTSYS;
1014 			if (*user_timeout_ms != KFD_EVENT_TIMEOUT_IMMEDIATE &&
1015 			    *user_timeout_ms != KFD_EVENT_TIMEOUT_INFINITE)
1016 				*user_timeout_ms = jiffies_to_msecs(
1017 					max(0l, timeout-1));
1018 			break;
1019 		}
1020 
1021 		/* Set task state to interruptible sleep before
1022 		 * checking wake-up conditions. A concurrent wake-up
1023 		 * will put the task back into runnable state. In that
1024 		 * case schedule_timeout will not put the task to
1025 		 * sleep and we'll get a chance to re-check the
1026 		 * updated conditions almost immediately. Otherwise,
1027 		 * this race condition would lead to a soft hang or a
1028 		 * very long sleep.
1029 		 */
1030 		set_current_state(TASK_INTERRUPTIBLE);
1031 
1032 		*wait_result = test_event_condition(all, num_events,
1033 						    event_waiters);
1034 		if (*wait_result != KFD_IOC_WAIT_RESULT_TIMEOUT)
1035 			break;
1036 
1037 		if (timeout <= 0)
1038 			break;
1039 
1040 		timeout = schedule_timeout(timeout);
1041 	}
1042 	__set_current_state(TASK_RUNNING);
1043 
1044 	mutex_lock(&p->event_mutex);
1045 	/* copy_signaled_event_data may sleep. So this has to happen
1046 	 * after the task state is set back to RUNNING.
1047 	 *
1048 	 * The event may also have been destroyed after signaling. So
1049 	 * copy_signaled_event_data also must confirm that the event
1050 	 * still exists. Therefore this must be under the p->event_mutex
1051 	 * which is also held when events are destroyed.
1052 	 */
1053 	if (!ret && *wait_result == KFD_IOC_WAIT_RESULT_COMPLETE)
1054 		ret = copy_signaled_event_data(num_events,
1055 					       event_waiters, events);
1056 
1057 out_unlock:
1058 	free_waiters(num_events, event_waiters, ret == -ERESTARTSYS);
1059 	mutex_unlock(&p->event_mutex);
1060 out:
1061 	if (ret)
1062 		*wait_result = KFD_IOC_WAIT_RESULT_FAIL;
1063 	else if (*wait_result == KFD_IOC_WAIT_RESULT_FAIL)
1064 		ret = -EIO;
1065 
1066 	return ret;
1067 }
1068 
1069 int kfd_event_mmap(struct kfd_process *p, struct vm_area_struct *vma)
1070 {
1071 	unsigned long pfn;
1072 	struct kfd_signal_page *page;
1073 	int ret;
1074 
1075 	/* check required size doesn't exceed the allocated size */
1076 	if (get_order(KFD_SIGNAL_EVENT_LIMIT * 8) <
1077 			get_order(vma->vm_end - vma->vm_start)) {
1078 		pr_err("Event page mmap requested illegal size\n");
1079 		return -EINVAL;
1080 	}
1081 
1082 	page = p->signal_page;
1083 	if (!page) {
1084 		/* Probably KFD bug, but mmap is user-accessible. */
1085 		pr_debug("Signal page could not be found\n");
1086 		return -EINVAL;
1087 	}
1088 
1089 	pfn = __pa(page->kernel_address);
1090 	pfn >>= PAGE_SHIFT;
1091 
1092 	vm_flags_set(vma, VM_IO | VM_DONTCOPY | VM_DONTEXPAND | VM_NORESERVE
1093 		       | VM_DONTDUMP | VM_PFNMAP);
1094 
1095 	pr_debug("Mapping signal page\n");
1096 	pr_debug("     start user address  == 0x%08lx\n", vma->vm_start);
1097 	pr_debug("     end user address    == 0x%08lx\n", vma->vm_end);
1098 	pr_debug("     pfn                 == 0x%016lX\n", pfn);
1099 	pr_debug("     vm_flags            == 0x%08lX\n", vma->vm_flags);
1100 	pr_debug("     size                == 0x%08lX\n",
1101 			vma->vm_end - vma->vm_start);
1102 
1103 	page->user_address = (uint64_t __user *)vma->vm_start;
1104 
1105 	/* mapping the page to user process */
1106 	ret = remap_pfn_range(vma, vma->vm_start, pfn,
1107 			vma->vm_end - vma->vm_start, vma->vm_page_prot);
1108 	if (!ret)
1109 		p->signal_mapped_size = vma->vm_end - vma->vm_start;
1110 
1111 	return ret;
1112 }
1113 
1114 /*
1115  * Assumes that p is not going away.
1116  */
1117 static void lookup_events_by_type_and_signal(struct kfd_process *p,
1118 		int type, void *event_data)
1119 {
1120 	struct kfd_hsa_memory_exception_data *ev_data;
1121 	struct kfd_event *ev;
1122 	uint32_t id;
1123 	bool send_signal = true;
1124 
1125 	ev_data = (struct kfd_hsa_memory_exception_data *) event_data;
1126 
1127 	rcu_read_lock();
1128 
1129 	id = KFD_FIRST_NONSIGNAL_EVENT_ID;
1130 	idr_for_each_entry_continue(&p->event_idr, ev, id)
1131 		if (ev->type == type) {
1132 			send_signal = false;
1133 			dev_dbg(kfd_device,
1134 					"Event found: id %X type %d",
1135 					ev->event_id, ev->type);
1136 			spin_lock(&ev->lock);
1137 			set_event(ev);
1138 			if (ev->type == KFD_EVENT_TYPE_MEMORY && ev_data)
1139 				ev->memory_exception_data = *ev_data;
1140 			spin_unlock(&ev->lock);
1141 		}
1142 
1143 	if (type == KFD_EVENT_TYPE_MEMORY) {
1144 		dev_warn(kfd_device,
1145 			"Sending SIGSEGV to process pid %d",
1146 				p->lead_thread->pid);
1147 		send_sig(SIGSEGV, p->lead_thread, 0);
1148 	}
1149 
1150 	/* Send SIGTERM no event of type "type" has been found*/
1151 	if (send_signal) {
1152 		if (send_sigterm) {
1153 			dev_warn(kfd_device,
1154 				"Sending SIGTERM to process pid %d",
1155 					p->lead_thread->pid);
1156 			send_sig(SIGTERM, p->lead_thread, 0);
1157 		} else {
1158 			dev_err(kfd_device,
1159 				"Process pid %d got unhandled exception",
1160 				p->lead_thread->pid);
1161 		}
1162 	}
1163 
1164 	rcu_read_unlock();
1165 }
1166 
1167 void kfd_signal_hw_exception_event(u32 pasid)
1168 {
1169 	/*
1170 	 * Because we are called from arbitrary context (workqueue) as opposed
1171 	 * to process context, kfd_process could attempt to exit while we are
1172 	 * running so the lookup function increments the process ref count.
1173 	 */
1174 	struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL);
1175 
1176 	if (!p)
1177 		return; /* Presumably process exited. */
1178 
1179 	lookup_events_by_type_and_signal(p, KFD_EVENT_TYPE_HW_EXCEPTION, NULL);
1180 	kfd_unref_process(p);
1181 }
1182 
1183 void kfd_signal_vm_fault_event_with_userptr(struct kfd_process *p, uint64_t gpu_va)
1184 {
1185 	struct kfd_process_device *pdd;
1186 	struct kfd_hsa_memory_exception_data exception_data;
1187 	int i;
1188 
1189 	memset(&exception_data, 0, sizeof(exception_data));
1190 	exception_data.va = gpu_va;
1191 	exception_data.failure.NotPresent = 1;
1192 
1193 	// Send VM seg fault to all kfd process device
1194 	for (i = 0; i < p->n_pdds; i++) {
1195 		pdd = p->pdds[i];
1196 		exception_data.gpu_id = pdd->user_gpu_id;
1197 		kfd_evict_process_device(pdd);
1198 		kfd_signal_vm_fault_event(pdd, NULL, &exception_data);
1199 	}
1200 }
1201 
1202 void kfd_signal_vm_fault_event(struct kfd_process_device *pdd,
1203 				struct kfd_vm_fault_info *info,
1204 				struct kfd_hsa_memory_exception_data *data)
1205 {
1206 	struct kfd_event *ev;
1207 	uint32_t id;
1208 	struct kfd_process *p = pdd->process;
1209 	struct kfd_hsa_memory_exception_data memory_exception_data;
1210 	int user_gpu_id;
1211 
1212 	user_gpu_id = kfd_process_get_user_gpu_id(p, pdd->dev->id);
1213 	if (unlikely(user_gpu_id == -EINVAL)) {
1214 		WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n",
1215 			  pdd->dev->id);
1216 		return;
1217 	}
1218 
1219 	/* SoC15 chips and onwards will pass in data from now on. */
1220 	if (!data) {
1221 		memset(&memory_exception_data, 0, sizeof(memory_exception_data));
1222 		memory_exception_data.gpu_id = user_gpu_id;
1223 		memory_exception_data.failure.imprecise = true;
1224 
1225 		/* Set failure reason */
1226 		if (info) {
1227 			memory_exception_data.va = (info->page_addr) <<
1228 								PAGE_SHIFT;
1229 			memory_exception_data.failure.NotPresent =
1230 				info->prot_valid ? 1 : 0;
1231 			memory_exception_data.failure.NoExecute =
1232 				info->prot_exec ? 1 : 0;
1233 			memory_exception_data.failure.ReadOnly =
1234 				info->prot_write ? 1 : 0;
1235 			memory_exception_data.failure.imprecise = 0;
1236 		}
1237 	}
1238 
1239 	rcu_read_lock();
1240 
1241 	id = KFD_FIRST_NONSIGNAL_EVENT_ID;
1242 	idr_for_each_entry_continue(&p->event_idr, ev, id)
1243 		if (ev->type == KFD_EVENT_TYPE_MEMORY) {
1244 			spin_lock(&ev->lock);
1245 			ev->memory_exception_data = data ? *data :
1246 							memory_exception_data;
1247 			set_event(ev);
1248 			spin_unlock(&ev->lock);
1249 		}
1250 
1251 	rcu_read_unlock();
1252 }
1253 
1254 void kfd_signal_reset_event(struct kfd_node *dev)
1255 {
1256 	struct kfd_hsa_hw_exception_data hw_exception_data;
1257 	struct kfd_hsa_memory_exception_data memory_exception_data;
1258 	struct kfd_process *p;
1259 	struct kfd_event *ev;
1260 	unsigned int temp;
1261 	uint32_t id, idx;
1262 	int reset_cause = atomic_read(&dev->sram_ecc_flag) ?
1263 			KFD_HW_EXCEPTION_ECC :
1264 			KFD_HW_EXCEPTION_GPU_HANG;
1265 
1266 	/* Whole gpu reset caused by GPU hang and memory is lost */
1267 	memset(&hw_exception_data, 0, sizeof(hw_exception_data));
1268 	hw_exception_data.memory_lost = 1;
1269 	hw_exception_data.reset_cause = reset_cause;
1270 
1271 	memset(&memory_exception_data, 0, sizeof(memory_exception_data));
1272 	memory_exception_data.ErrorType = KFD_MEM_ERR_SRAM_ECC;
1273 	memory_exception_data.failure.imprecise = true;
1274 
1275 	idx = srcu_read_lock(&kfd_processes_srcu);
1276 	hash_for_each_rcu(kfd_processes_table, temp, p, kfd_processes) {
1277 		int user_gpu_id = kfd_process_get_user_gpu_id(p, dev->id);
1278 		struct kfd_process_device *pdd = kfd_get_process_device_data(dev, p);
1279 
1280 		if (unlikely(user_gpu_id == -EINVAL)) {
1281 			WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n", dev->id);
1282 			continue;
1283 		}
1284 
1285 		if (unlikely(!pdd)) {
1286 			WARN_ONCE(1, "Could not get device data from process pid:%d\n",
1287 				  p->lead_thread->pid);
1288 			continue;
1289 		}
1290 
1291 		if (dev->dqm->detect_hang_count && !pdd->has_reset_queue)
1292 			continue;
1293 
1294 		if (dev->dqm->detect_hang_count) {
1295 			struct amdgpu_task_info *ti;
1296 			struct amdgpu_fpriv *drv_priv;
1297 
1298 			if (unlikely(amdgpu_file_to_fpriv(pdd->drm_file, &drv_priv))) {
1299 				WARN_ONCE(1, "Could not get vm for device %x from pid:%d\n",
1300 					  dev->id, p->lead_thread->pid);
1301 				continue;
1302 			}
1303 
1304 			ti = amdgpu_vm_get_task_info_vm(&drv_priv->vm);
1305 			if (ti) {
1306 				dev_err(dev->adev->dev,
1307 					"Queues reset on process %s tid %d thread %s pid %d\n",
1308 					ti->process_name, ti->tgid, ti->task.comm, ti->task.pid);
1309 				amdgpu_vm_put_task_info(ti);
1310 			}
1311 		}
1312 
1313 		rcu_read_lock();
1314 
1315 		id = KFD_FIRST_NONSIGNAL_EVENT_ID;
1316 		idr_for_each_entry_continue(&p->event_idr, ev, id) {
1317 			if (ev->type == KFD_EVENT_TYPE_HW_EXCEPTION) {
1318 				spin_lock(&ev->lock);
1319 				ev->hw_exception_data = hw_exception_data;
1320 				ev->hw_exception_data.gpu_id = user_gpu_id;
1321 				set_event(ev);
1322 				spin_unlock(&ev->lock);
1323 			}
1324 			if (ev->type == KFD_EVENT_TYPE_MEMORY &&
1325 			    reset_cause == KFD_HW_EXCEPTION_ECC) {
1326 				spin_lock(&ev->lock);
1327 				ev->memory_exception_data = memory_exception_data;
1328 				ev->memory_exception_data.gpu_id = user_gpu_id;
1329 				set_event(ev);
1330 				spin_unlock(&ev->lock);
1331 			}
1332 		}
1333 
1334 		rcu_read_unlock();
1335 	}
1336 	srcu_read_unlock(&kfd_processes_srcu, idx);
1337 }
1338 
1339 void kfd_signal_poison_consumed_event(struct kfd_node *dev, u32 pasid)
1340 {
1341 	struct kfd_process *p = kfd_lookup_process_by_pasid(pasid, NULL);
1342 	struct kfd_hsa_memory_exception_data memory_exception_data;
1343 	struct kfd_hsa_hw_exception_data hw_exception_data;
1344 	struct kfd_event *ev;
1345 	uint32_t id = KFD_FIRST_NONSIGNAL_EVENT_ID;
1346 	int user_gpu_id;
1347 
1348 	if (!p) {
1349 		dev_warn(dev->adev->dev, "Not find process with pasid:%d\n", pasid);
1350 		return; /* Presumably process exited. */
1351 	}
1352 
1353 	user_gpu_id = kfd_process_get_user_gpu_id(p, dev->id);
1354 	if (unlikely(user_gpu_id == -EINVAL)) {
1355 		WARN_ONCE(1, "Could not get user_gpu_id from dev->id:%x\n", dev->id);
1356 		kfd_unref_process(p);
1357 		return;
1358 	}
1359 
1360 	memset(&hw_exception_data, 0, sizeof(hw_exception_data));
1361 	hw_exception_data.gpu_id = user_gpu_id;
1362 	hw_exception_data.memory_lost = 1;
1363 	hw_exception_data.reset_cause = KFD_HW_EXCEPTION_ECC;
1364 
1365 	memset(&memory_exception_data, 0, sizeof(memory_exception_data));
1366 	memory_exception_data.ErrorType = KFD_MEM_ERR_POISON_CONSUMED;
1367 	memory_exception_data.gpu_id = user_gpu_id;
1368 	memory_exception_data.failure.imprecise = true;
1369 
1370 	rcu_read_lock();
1371 
1372 	idr_for_each_entry_continue(&p->event_idr, ev, id) {
1373 		if (ev->type == KFD_EVENT_TYPE_HW_EXCEPTION) {
1374 			spin_lock(&ev->lock);
1375 			ev->hw_exception_data = hw_exception_data;
1376 			set_event(ev);
1377 			spin_unlock(&ev->lock);
1378 		}
1379 
1380 		if (ev->type == KFD_EVENT_TYPE_MEMORY) {
1381 			spin_lock(&ev->lock);
1382 			ev->memory_exception_data = memory_exception_data;
1383 			set_event(ev);
1384 			spin_unlock(&ev->lock);
1385 		}
1386 	}
1387 
1388 	dev_warn(dev->adev->dev, "Send SIGBUS to process %s(pasid:%d)\n",
1389 		p->lead_thread->comm, pasid);
1390 	rcu_read_unlock();
1391 
1392 	/* user application will handle SIGBUS signal */
1393 	send_sig(SIGBUS, p->lead_thread, 0);
1394 
1395 	kfd_unref_process(p);
1396 }
1397 
1398 /* signal KFD_EVENT_TYPE_SIGNAL events from process p
1399  * send signal SIGBUS to correspondent user space process
1400  */
1401 void kfd_signal_process_terminate_event(struct kfd_process *p)
1402 {
1403 	struct kfd_event *ev;
1404 	u32 id;
1405 
1406 	rcu_read_lock();
1407 
1408 	/* iterate from id 1 for KFD_EVENT_TYPE_SIGNAL events */
1409 	id = 1;
1410 	idr_for_each_entry_continue(&p->event_idr, ev, id)
1411 		if (ev->type == KFD_EVENT_TYPE_SIGNAL) {
1412 			spin_lock(&ev->lock);
1413 			set_event(ev);
1414 			spin_unlock(&ev->lock);
1415 		}
1416 
1417 	/* Send SIGBUS to p->lead_thread */
1418 	dev_notice(kfd_device,
1419 		   "Sending SIGBUS to process %d",
1420 		   p->lead_thread->pid);
1421 
1422 	send_sig(SIGBUS, p->lead_thread, 0);
1423 
1424 	rcu_read_unlock();
1425 }
1426