1 /*
2  * Copyright © 2014-2017 Intel Corporation
3  *
4  * Permission is hereby granted, free of charge, to any person obtaining a
5  * copy of this software and associated documentation files (the "Software"),
6  * to deal in the Software without restriction, including without limitation
7  * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8  * and/or sell copies of the Software, and to permit persons to whom the
9  * Software is furnished to do so, subject to the following conditions:
10  *
11  * The above copyright notice and this permission notice (including the next
12  * paragraph) shall be included in all copies or substantial portions of the
13  * 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 AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
19  * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
20  * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
21  * IN THE SOFTWARE.
22  *
23  */
24 
25 #include <linux/debugfs.h>
26 
27 #include "gt/intel_gt.h"
28 #include "intel_guc_log.h"
29 #include "i915_drv.h"
30 
31 static void guc_log_capture_logs(struct intel_guc_log *log);
32 
33 /**
34  * DOC: GuC firmware log
35  *
36  * Firmware log is enabled by setting i915.guc_log_level to the positive level.
37  * Log data is printed out via reading debugfs i915_guc_log_dump. Reading from
38  * i915_guc_load_status will print out firmware loading status and scratch
39  * registers value.
40  */
41 
42 static int guc_action_flush_log_complete(struct intel_guc *guc)
43 {
44 	u32 action[] = {
45 		INTEL_GUC_ACTION_LOG_BUFFER_FILE_FLUSH_COMPLETE
46 	};
47 
48 	return intel_guc_send(guc, action, ARRAY_SIZE(action));
49 }
50 
51 static int guc_action_flush_log(struct intel_guc *guc)
52 {
53 	u32 action[] = {
54 		INTEL_GUC_ACTION_FORCE_LOG_BUFFER_FLUSH,
55 		0
56 	};
57 
58 	return intel_guc_send(guc, action, ARRAY_SIZE(action));
59 }
60 
61 static int guc_action_control_log(struct intel_guc *guc, bool enable,
62 				  bool default_logging, u32 verbosity)
63 {
64 	u32 action[] = {
65 		INTEL_GUC_ACTION_UK_LOG_ENABLE_LOGGING,
66 		(enable ? GUC_LOG_CONTROL_LOGGING_ENABLED : 0) |
67 		(verbosity << GUC_LOG_CONTROL_VERBOSITY_SHIFT) |
68 		(default_logging ? GUC_LOG_CONTROL_DEFAULT_LOGGING : 0)
69 	};
70 
71 	GEM_BUG_ON(verbosity > GUC_LOG_VERBOSITY_MAX);
72 
73 	return intel_guc_send(guc, action, ARRAY_SIZE(action));
74 }
75 
76 static inline struct intel_guc *log_to_guc(struct intel_guc_log *log)
77 {
78 	return container_of(log, struct intel_guc, log);
79 }
80 
81 static void guc_log_enable_flush_events(struct intel_guc_log *log)
82 {
83 	intel_guc_enable_msg(log_to_guc(log),
84 			     INTEL_GUC_RECV_MSG_FLUSH_LOG_BUFFER |
85 			     INTEL_GUC_RECV_MSG_CRASH_DUMP_POSTED);
86 }
87 
88 static void guc_log_disable_flush_events(struct intel_guc_log *log)
89 {
90 	intel_guc_disable_msg(log_to_guc(log),
91 			      INTEL_GUC_RECV_MSG_FLUSH_LOG_BUFFER |
92 			      INTEL_GUC_RECV_MSG_CRASH_DUMP_POSTED);
93 }
94 
95 /*
96  * Sub buffer switch callback. Called whenever relay has to switch to a new
97  * sub buffer, relay stays on the same sub buffer if 0 is returned.
98  */
99 static int subbuf_start_callback(struct rchan_buf *buf,
100 				 void *subbuf,
101 				 void *prev_subbuf,
102 				 size_t prev_padding)
103 {
104 	/*
105 	 * Use no-overwrite mode by default, where relay will stop accepting
106 	 * new data if there are no empty sub buffers left.
107 	 * There is no strict synchronization enforced by relay between Consumer
108 	 * and Producer. In overwrite mode, there is a possibility of getting
109 	 * inconsistent/garbled data, the producer could be writing on to the
110 	 * same sub buffer from which Consumer is reading. This can't be avoided
111 	 * unless Consumer is fast enough and can always run in tandem with
112 	 * Producer.
113 	 */
114 	if (relay_buf_full(buf))
115 		return 0;
116 
117 	return 1;
118 }
119 
120 /*
121  * file_create() callback. Creates relay file in debugfs.
122  */
123 static struct dentry *create_buf_file_callback(const char *filename,
124 					       struct dentry *parent,
125 					       umode_t mode,
126 					       struct rchan_buf *buf,
127 					       int *is_global)
128 {
129 	struct dentry *buf_file;
130 
131 	/*
132 	 * This to enable the use of a single buffer for the relay channel and
133 	 * correspondingly have a single file exposed to User, through which
134 	 * it can collect the logs in order without any post-processing.
135 	 * Need to set 'is_global' even if parent is NULL for early logging.
136 	 */
137 	*is_global = 1;
138 
139 	if (!parent)
140 		return NULL;
141 
142 	buf_file = debugfs_create_file(filename, mode,
143 				       parent, buf, &relay_file_operations);
144 	if (IS_ERR(buf_file))
145 		return NULL;
146 
147 	return buf_file;
148 }
149 
150 /*
151  * file_remove() default callback. Removes relay file in debugfs.
152  */
153 static int remove_buf_file_callback(struct dentry *dentry)
154 {
155 	debugfs_remove(dentry);
156 	return 0;
157 }
158 
159 /* relay channel callbacks */
160 static struct rchan_callbacks relay_callbacks = {
161 	.subbuf_start = subbuf_start_callback,
162 	.create_buf_file = create_buf_file_callback,
163 	.remove_buf_file = remove_buf_file_callback,
164 };
165 
166 static void guc_move_to_next_buf(struct intel_guc_log *log)
167 {
168 	/*
169 	 * Make sure the updates made in the sub buffer are visible when
170 	 * Consumer sees the following update to offset inside the sub buffer.
171 	 */
172 	smp_wmb();
173 
174 	/* All data has been written, so now move the offset of sub buffer. */
175 	relay_reserve(log->relay.channel, log->vma->obj->base.size);
176 
177 	/* Switch to the next sub buffer */
178 	relay_flush(log->relay.channel);
179 }
180 
181 static void *guc_get_write_buffer(struct intel_guc_log *log)
182 {
183 	/*
184 	 * Just get the base address of a new sub buffer and copy data into it
185 	 * ourselves. NULL will be returned in no-overwrite mode, if all sub
186 	 * buffers are full. Could have used the relay_write() to indirectly
187 	 * copy the data, but that would have been bit convoluted, as we need to
188 	 * write to only certain locations inside a sub buffer which cannot be
189 	 * done without using relay_reserve() along with relay_write(). So its
190 	 * better to use relay_reserve() alone.
191 	 */
192 	return relay_reserve(log->relay.channel, 0);
193 }
194 
195 static bool guc_check_log_buf_overflow(struct intel_guc_log *log,
196 				       enum guc_log_buffer_type type,
197 				       unsigned int full_cnt)
198 {
199 	unsigned int prev_full_cnt = log->stats[type].sampled_overflow;
200 	bool overflow = false;
201 
202 	if (full_cnt != prev_full_cnt) {
203 		overflow = true;
204 
205 		log->stats[type].overflow = full_cnt;
206 		log->stats[type].sampled_overflow += full_cnt - prev_full_cnt;
207 
208 		if (full_cnt < prev_full_cnt) {
209 			/* buffer_full_cnt is a 4 bit counter */
210 			log->stats[type].sampled_overflow += 16;
211 		}
212 
213 		dev_notice_ratelimited(guc_to_gt(log_to_guc(log))->i915->drm.dev,
214 				       "GuC log buffer overflow\n");
215 	}
216 
217 	return overflow;
218 }
219 
220 static unsigned int guc_get_log_buffer_size(enum guc_log_buffer_type type)
221 {
222 	switch (type) {
223 	case GUC_ISR_LOG_BUFFER:
224 		return ISR_BUFFER_SIZE;
225 	case GUC_DPC_LOG_BUFFER:
226 		return DPC_BUFFER_SIZE;
227 	case GUC_CRASH_DUMP_LOG_BUFFER:
228 		return CRASH_BUFFER_SIZE;
229 	default:
230 		MISSING_CASE(type);
231 	}
232 
233 	return 0;
234 }
235 
236 static void guc_read_update_log_buffer(struct intel_guc_log *log)
237 {
238 	unsigned int buffer_size, read_offset, write_offset, bytes_to_copy, full_cnt;
239 	struct guc_log_buffer_state *log_buf_state, *log_buf_snapshot_state;
240 	struct guc_log_buffer_state log_buf_state_local;
241 	enum guc_log_buffer_type type;
242 	void *src_data, *dst_data;
243 	bool new_overflow;
244 
245 	mutex_lock(&log->relay.lock);
246 
247 	if (WARN_ON(!intel_guc_log_relay_enabled(log)))
248 		goto out_unlock;
249 
250 	/* Get the pointer to shared GuC log buffer */
251 	log_buf_state = src_data = log->relay.buf_addr;
252 
253 	/* Get the pointer to local buffer to store the logs */
254 	log_buf_snapshot_state = dst_data = guc_get_write_buffer(log);
255 
256 	if (unlikely(!log_buf_snapshot_state)) {
257 		/*
258 		 * Used rate limited to avoid deluge of messages, logs might be
259 		 * getting consumed by User at a slow rate.
260 		 */
261 		DRM_ERROR_RATELIMITED("no sub-buffer to capture logs\n");
262 		log->relay.full_count++;
263 
264 		goto out_unlock;
265 	}
266 
267 	/* Actual logs are present from the 2nd page */
268 	src_data += PAGE_SIZE;
269 	dst_data += PAGE_SIZE;
270 
271 	for (type = GUC_ISR_LOG_BUFFER; type < GUC_MAX_LOG_BUFFER; type++) {
272 		/*
273 		 * Make a copy of the state structure, inside GuC log buffer
274 		 * (which is uncached mapped), on the stack to avoid reading
275 		 * from it multiple times.
276 		 */
277 		memcpy(&log_buf_state_local, log_buf_state,
278 		       sizeof(struct guc_log_buffer_state));
279 		buffer_size = guc_get_log_buffer_size(type);
280 		read_offset = log_buf_state_local.read_ptr;
281 		write_offset = log_buf_state_local.sampled_write_ptr;
282 		full_cnt = log_buf_state_local.buffer_full_cnt;
283 
284 		/* Bookkeeping stuff */
285 		log->stats[type].flush += log_buf_state_local.flush_to_file;
286 		new_overflow = guc_check_log_buf_overflow(log, type, full_cnt);
287 
288 		/* Update the state of shared log buffer */
289 		log_buf_state->read_ptr = write_offset;
290 		log_buf_state->flush_to_file = 0;
291 		log_buf_state++;
292 
293 		/* First copy the state structure in snapshot buffer */
294 		memcpy(log_buf_snapshot_state, &log_buf_state_local,
295 		       sizeof(struct guc_log_buffer_state));
296 
297 		/*
298 		 * The write pointer could have been updated by GuC firmware,
299 		 * after sending the flush interrupt to Host, for consistency
300 		 * set write pointer value to same value of sampled_write_ptr
301 		 * in the snapshot buffer.
302 		 */
303 		log_buf_snapshot_state->write_ptr = write_offset;
304 		log_buf_snapshot_state++;
305 
306 		/* Now copy the actual logs. */
307 		if (unlikely(new_overflow)) {
308 			/* copy the whole buffer in case of overflow */
309 			read_offset = 0;
310 			write_offset = buffer_size;
311 		} else if (unlikely((read_offset > buffer_size) ||
312 				    (write_offset > buffer_size))) {
313 			DRM_ERROR("invalid log buffer state\n");
314 			/* copy whole buffer as offsets are unreliable */
315 			read_offset = 0;
316 			write_offset = buffer_size;
317 		}
318 
319 		/* Just copy the newly written data */
320 		if (read_offset > write_offset) {
321 			i915_memcpy_from_wc(dst_data, src_data, write_offset);
322 			bytes_to_copy = buffer_size - read_offset;
323 		} else {
324 			bytes_to_copy = write_offset - read_offset;
325 		}
326 		i915_memcpy_from_wc(dst_data + read_offset,
327 				    src_data + read_offset, bytes_to_copy);
328 
329 		src_data += buffer_size;
330 		dst_data += buffer_size;
331 	}
332 
333 	guc_move_to_next_buf(log);
334 
335 out_unlock:
336 	mutex_unlock(&log->relay.lock);
337 }
338 
339 static void capture_logs_work(struct work_struct *work)
340 {
341 	struct intel_guc_log *log =
342 		container_of(work, struct intel_guc_log, relay.flush_work);
343 
344 	guc_log_capture_logs(log);
345 }
346 
347 static int guc_log_map(struct intel_guc_log *log)
348 {
349 	void *vaddr;
350 
351 	lockdep_assert_held(&log->relay.lock);
352 
353 	if (!log->vma)
354 		return -ENODEV;
355 
356 	/*
357 	 * Create a WC (Uncached for read) vmalloc mapping of log
358 	 * buffer pages, so that we can directly get the data
359 	 * (up-to-date) from memory.
360 	 */
361 	vaddr = i915_gem_object_pin_map(log->vma->obj, I915_MAP_WC);
362 	if (IS_ERR(vaddr))
363 		return PTR_ERR(vaddr);
364 
365 	log->relay.buf_addr = vaddr;
366 
367 	return 0;
368 }
369 
370 static void guc_log_unmap(struct intel_guc_log *log)
371 {
372 	lockdep_assert_held(&log->relay.lock);
373 
374 	i915_gem_object_unpin_map(log->vma->obj);
375 	log->relay.buf_addr = NULL;
376 }
377 
378 void intel_guc_log_init_early(struct intel_guc_log *log)
379 {
380 	mutex_init(&log->relay.lock);
381 	INIT_WORK(&log->relay.flush_work, capture_logs_work);
382 }
383 
384 static int guc_log_relay_create(struct intel_guc_log *log)
385 {
386 	struct intel_guc *guc = log_to_guc(log);
387 	struct drm_i915_private *dev_priv = guc_to_gt(guc)->i915;
388 	struct rchan *guc_log_relay_chan;
389 	size_t n_subbufs, subbuf_size;
390 	int ret;
391 
392 	lockdep_assert_held(&log->relay.lock);
393 
394 	 /* Keep the size of sub buffers same as shared log buffer */
395 	subbuf_size = log->vma->size;
396 
397 	/*
398 	 * Store up to 8 snapshots, which is large enough to buffer sufficient
399 	 * boot time logs and provides enough leeway to User, in terms of
400 	 * latency, for consuming the logs from relay. Also doesn't take
401 	 * up too much memory.
402 	 */
403 	n_subbufs = 8;
404 
405 	guc_log_relay_chan = relay_open("guc_log",
406 					dev_priv->drm.primary->debugfs_root,
407 					subbuf_size, n_subbufs,
408 					&relay_callbacks, dev_priv);
409 	if (!guc_log_relay_chan) {
410 		DRM_ERROR("Couldn't create relay chan for GuC logging\n");
411 
412 		ret = -ENOMEM;
413 		return ret;
414 	}
415 
416 	GEM_BUG_ON(guc_log_relay_chan->subbuf_size < subbuf_size);
417 	log->relay.channel = guc_log_relay_chan;
418 
419 	return 0;
420 }
421 
422 static void guc_log_relay_destroy(struct intel_guc_log *log)
423 {
424 	lockdep_assert_held(&log->relay.lock);
425 
426 	relay_close(log->relay.channel);
427 	log->relay.channel = NULL;
428 }
429 
430 static void guc_log_capture_logs(struct intel_guc_log *log)
431 {
432 	struct intel_guc *guc = log_to_guc(log);
433 	struct drm_i915_private *dev_priv = guc_to_gt(guc)->i915;
434 	intel_wakeref_t wakeref;
435 
436 	guc_read_update_log_buffer(log);
437 
438 	/*
439 	 * Generally device is expected to be active only at this
440 	 * time, so get/put should be really quick.
441 	 */
442 	with_intel_runtime_pm(&dev_priv->runtime_pm, wakeref)
443 		guc_action_flush_log_complete(guc);
444 }
445 
446 static u32 __get_default_log_level(struct intel_guc_log *log)
447 {
448 	/* A negative value means "use platform/config default" */
449 	if (i915_modparams.guc_log_level < 0) {
450 		return (IS_ENABLED(CONFIG_DRM_I915_DEBUG) ||
451 			IS_ENABLED(CONFIG_DRM_I915_DEBUG_GEM)) ?
452 			GUC_LOG_LEVEL_MAX : GUC_LOG_LEVEL_NON_VERBOSE;
453 	}
454 
455 	if (i915_modparams.guc_log_level > GUC_LOG_LEVEL_MAX) {
456 		DRM_WARN("Incompatible option detected: %s=%d, %s!\n",
457 			 "guc_log_level", i915_modparams.guc_log_level,
458 			 "verbosity too high");
459 		return (IS_ENABLED(CONFIG_DRM_I915_DEBUG) ||
460 			IS_ENABLED(CONFIG_DRM_I915_DEBUG_GEM)) ?
461 			GUC_LOG_LEVEL_MAX : GUC_LOG_LEVEL_DISABLED;
462 	}
463 
464 	GEM_BUG_ON(i915_modparams.guc_log_level < GUC_LOG_LEVEL_DISABLED);
465 	GEM_BUG_ON(i915_modparams.guc_log_level > GUC_LOG_LEVEL_MAX);
466 	return i915_modparams.guc_log_level;
467 }
468 
469 int intel_guc_log_create(struct intel_guc_log *log)
470 {
471 	struct intel_guc *guc = log_to_guc(log);
472 	struct i915_vma *vma;
473 	u32 guc_log_size;
474 	int ret;
475 
476 	GEM_BUG_ON(log->vma);
477 
478 	/*
479 	 *  GuC Log buffer Layout
480 	 *
481 	 *  +===============================+ 00B
482 	 *  |    Crash dump state header    |
483 	 *  +-------------------------------+ 32B
484 	 *  |       DPC state header        |
485 	 *  +-------------------------------+ 64B
486 	 *  |       ISR state header        |
487 	 *  +-------------------------------+ 96B
488 	 *  |                               |
489 	 *  +===============================+ PAGE_SIZE (4KB)
490 	 *  |        Crash Dump logs        |
491 	 *  +===============================+ + CRASH_SIZE
492 	 *  |           DPC logs            |
493 	 *  +===============================+ + DPC_SIZE
494 	 *  |           ISR logs            |
495 	 *  +===============================+ + ISR_SIZE
496 	 */
497 	guc_log_size = PAGE_SIZE + CRASH_BUFFER_SIZE + DPC_BUFFER_SIZE +
498 			ISR_BUFFER_SIZE;
499 
500 	vma = intel_guc_allocate_vma(guc, guc_log_size);
501 	if (IS_ERR(vma)) {
502 		ret = PTR_ERR(vma);
503 		goto err;
504 	}
505 
506 	log->vma = vma;
507 
508 	log->level = __get_default_log_level(log);
509 	DRM_DEBUG_DRIVER("guc_log_level=%d (%s, verbose:%s, verbosity:%d)\n",
510 			 log->level, enableddisabled(log->level),
511 			 yesno(GUC_LOG_LEVEL_IS_VERBOSE(log->level)),
512 			 GUC_LOG_LEVEL_TO_VERBOSITY(log->level));
513 
514 	return 0;
515 
516 err:
517 	DRM_ERROR("Failed to allocate GuC log buffer. %d\n", ret);
518 	return ret;
519 }
520 
521 void intel_guc_log_destroy(struct intel_guc_log *log)
522 {
523 	i915_vma_unpin_and_release(&log->vma, 0);
524 }
525 
526 int intel_guc_log_set_level(struct intel_guc_log *log, u32 level)
527 {
528 	struct intel_guc *guc = log_to_guc(log);
529 	struct drm_i915_private *dev_priv = guc_to_gt(guc)->i915;
530 	intel_wakeref_t wakeref;
531 	int ret = 0;
532 
533 	BUILD_BUG_ON(GUC_LOG_VERBOSITY_MIN != 0);
534 	GEM_BUG_ON(!log->vma);
535 
536 	/*
537 	 * GuC is recognizing log levels starting from 0 to max, we're using 0
538 	 * as indication that logging should be disabled.
539 	 */
540 	if (level < GUC_LOG_LEVEL_DISABLED || level > GUC_LOG_LEVEL_MAX)
541 		return -EINVAL;
542 
543 	mutex_lock(&dev_priv->drm.struct_mutex);
544 
545 	if (log->level == level)
546 		goto out_unlock;
547 
548 	with_intel_runtime_pm(&dev_priv->runtime_pm, wakeref)
549 		ret = guc_action_control_log(guc,
550 					     GUC_LOG_LEVEL_IS_VERBOSE(level),
551 					     GUC_LOG_LEVEL_IS_ENABLED(level),
552 					     GUC_LOG_LEVEL_TO_VERBOSITY(level));
553 	if (ret) {
554 		DRM_DEBUG_DRIVER("guc_log_control action failed %d\n", ret);
555 		goto out_unlock;
556 	}
557 
558 	log->level = level;
559 
560 out_unlock:
561 	mutex_unlock(&dev_priv->drm.struct_mutex);
562 
563 	return ret;
564 }
565 
566 bool intel_guc_log_relay_enabled(const struct intel_guc_log *log)
567 {
568 	return log->relay.buf_addr;
569 }
570 
571 int intel_guc_log_relay_open(struct intel_guc_log *log)
572 {
573 	int ret;
574 
575 	mutex_lock(&log->relay.lock);
576 
577 	if (intel_guc_log_relay_enabled(log)) {
578 		ret = -EEXIST;
579 		goto out_unlock;
580 	}
581 
582 	/*
583 	 * We require SSE 4.1 for fast reads from the GuC log buffer and
584 	 * it should be present on the chipsets supporting GuC based
585 	 * submisssions.
586 	 */
587 	if (!i915_has_memcpy_from_wc()) {
588 		ret = -ENXIO;
589 		goto out_unlock;
590 	}
591 
592 	ret = guc_log_relay_create(log);
593 	if (ret)
594 		goto out_unlock;
595 
596 	ret = guc_log_map(log);
597 	if (ret)
598 		goto out_relay;
599 
600 	mutex_unlock(&log->relay.lock);
601 
602 	guc_log_enable_flush_events(log);
603 
604 	/*
605 	 * When GuC is logging without us relaying to userspace, we're ignoring
606 	 * the flush notification. This means that we need to unconditionally
607 	 * flush on relay enabling, since GuC only notifies us once.
608 	 */
609 	queue_work(system_highpri_wq, &log->relay.flush_work);
610 
611 	return 0;
612 
613 out_relay:
614 	guc_log_relay_destroy(log);
615 out_unlock:
616 	mutex_unlock(&log->relay.lock);
617 
618 	return ret;
619 }
620 
621 void intel_guc_log_relay_flush(struct intel_guc_log *log)
622 {
623 	struct intel_guc *guc = log_to_guc(log);
624 	struct drm_i915_private *i915 = guc_to_gt(guc)->i915;
625 	intel_wakeref_t wakeref;
626 
627 	/*
628 	 * Before initiating the forceful flush, wait for any pending/ongoing
629 	 * flush to complete otherwise forceful flush may not actually happen.
630 	 */
631 	flush_work(&log->relay.flush_work);
632 
633 	with_intel_runtime_pm(&i915->runtime_pm, wakeref)
634 		guc_action_flush_log(guc);
635 
636 	/* GuC would have updated log buffer by now, so capture it */
637 	guc_log_capture_logs(log);
638 }
639 
640 void intel_guc_log_relay_close(struct intel_guc_log *log)
641 {
642 	struct intel_guc *guc = log_to_guc(log);
643 	struct drm_i915_private *i915 = guc_to_gt(guc)->i915;
644 
645 	guc_log_disable_flush_events(log);
646 	intel_synchronize_irq(i915);
647 
648 	flush_work(&log->relay.flush_work);
649 
650 	mutex_lock(&log->relay.lock);
651 	GEM_BUG_ON(!intel_guc_log_relay_enabled(log));
652 	guc_log_unmap(log);
653 	guc_log_relay_destroy(log);
654 	mutex_unlock(&log->relay.lock);
655 }
656 
657 void intel_guc_log_handle_flush_event(struct intel_guc_log *log)
658 {
659 	queue_work(system_highpri_wq, &log->relay.flush_work);
660 }
661