1 // SPDX-License-Identifier: MIT
2 /*
3 * Copyright © 2022 Intel Corporation
4 */
5
6 #include "xe_guc_submit.h"
7
8 #include <linux/bitfield.h>
9 #include <linux/bitmap.h>
10 #include <linux/circ_buf.h>
11 #include <linux/dma-fence-array.h>
12
13 #include <drm/drm_drv.h>
14 #include <drm/drm_managed.h>
15
16 #include "abi/guc_actions_abi.h"
17 #include "abi/guc_actions_slpc_abi.h"
18 #include "abi/guc_klvs_abi.h"
19 #include "xe_assert.h"
20 #include "xe_bo.h"
21 #include "xe_devcoredump.h"
22 #include "xe_device.h"
23 #include "xe_exec_queue.h"
24 #include "xe_force_wake.h"
25 #include "xe_gpu_scheduler.h"
26 #include "xe_gt.h"
27 #include "xe_gt_clock.h"
28 #include "xe_gt_printk.h"
29 #include "xe_guc.h"
30 #include "xe_guc_capture.h"
31 #include "xe_guc_ct.h"
32 #include "xe_guc_exec_queue_types.h"
33 #include "xe_guc_id_mgr.h"
34 #include "xe_guc_klv_helpers.h"
35 #include "xe_guc_submit_types.h"
36 #include "xe_hw_engine.h"
37 #include "xe_lrc.h"
38 #include "xe_macros.h"
39 #include "xe_map.h"
40 #include "xe_mocs.h"
41 #include "xe_module.h"
42 #include "xe_pm.h"
43 #include "xe_ring_ops_types.h"
44 #include "xe_sched_job.h"
45 #include "xe_sleep.h"
46 #include "xe_trace.h"
47 #include "xe_uc_fw.h"
48 #include "xe_vm.h"
49
50 #define XE_GUC_EXEC_QUEUE_CGP_CONTEXT_ERROR_LEN 6
51
52 static int guc_submit_reset_prepare(struct xe_guc *guc);
53
54 static struct xe_guc *
exec_queue_to_guc(struct xe_exec_queue * q)55 exec_queue_to_guc(struct xe_exec_queue *q)
56 {
57 return &q->gt->uc.guc;
58 }
59
60 /*
61 * Helpers for engine state, using an atomic as some of the bits can transition
62 * as the same time (e.g. a suspend can be happning at the same time as schedule
63 * engine done being processed).
64 */
65 #define EXEC_QUEUE_STATE_REGISTERED (1 << 0)
66 #define EXEC_QUEUE_STATE_ENABLED (1 << 1)
67 #define EXEC_QUEUE_STATE_PENDING_ENABLE (1 << 2)
68 #define EXEC_QUEUE_STATE_PENDING_DISABLE (1 << 3)
69 #define EXEC_QUEUE_STATE_DESTROYED (1 << 4)
70 #define EXEC_QUEUE_STATE_SUSPENDED (1 << 5)
71 #define EXEC_QUEUE_STATE_RESET (1 << 6)
72 #define EXEC_QUEUE_STATE_KILLED (1 << 7)
73 #define EXEC_QUEUE_STATE_WEDGED (1 << 8)
74 #define EXEC_QUEUE_STATE_BANNED (1 << 9)
75 #define EXEC_QUEUE_STATE_PENDING_RESUME (1 << 10)
76
exec_queue_registered(struct xe_exec_queue * q)77 static bool exec_queue_registered(struct xe_exec_queue *q)
78 {
79 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_REGISTERED;
80 }
81
set_exec_queue_registered(struct xe_exec_queue * q)82 static void set_exec_queue_registered(struct xe_exec_queue *q)
83 {
84 atomic_or(EXEC_QUEUE_STATE_REGISTERED, &q->guc->state);
85 }
86
clear_exec_queue_registered(struct xe_exec_queue * q)87 static void clear_exec_queue_registered(struct xe_exec_queue *q)
88 {
89 atomic_and(~EXEC_QUEUE_STATE_REGISTERED, &q->guc->state);
90 }
91
exec_queue_enabled(struct xe_exec_queue * q)92 static bool exec_queue_enabled(struct xe_exec_queue *q)
93 {
94 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_ENABLED;
95 }
96
set_exec_queue_enabled(struct xe_exec_queue * q)97 static void set_exec_queue_enabled(struct xe_exec_queue *q)
98 {
99 atomic_or(EXEC_QUEUE_STATE_ENABLED, &q->guc->state);
100 }
101
clear_exec_queue_enabled(struct xe_exec_queue * q)102 static void clear_exec_queue_enabled(struct xe_exec_queue *q)
103 {
104 atomic_and(~EXEC_QUEUE_STATE_ENABLED, &q->guc->state);
105 }
106
exec_queue_pending_enable(struct xe_exec_queue * q)107 static bool exec_queue_pending_enable(struct xe_exec_queue *q)
108 {
109 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_PENDING_ENABLE;
110 }
111
set_exec_queue_pending_enable(struct xe_exec_queue * q)112 static void set_exec_queue_pending_enable(struct xe_exec_queue *q)
113 {
114 atomic_or(EXEC_QUEUE_STATE_PENDING_ENABLE, &q->guc->state);
115 }
116
clear_exec_queue_pending_enable(struct xe_exec_queue * q)117 static void clear_exec_queue_pending_enable(struct xe_exec_queue *q)
118 {
119 atomic_and(~EXEC_QUEUE_STATE_PENDING_ENABLE, &q->guc->state);
120 }
121
exec_queue_pending_disable(struct xe_exec_queue * q)122 static bool exec_queue_pending_disable(struct xe_exec_queue *q)
123 {
124 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_PENDING_DISABLE;
125 }
126
set_exec_queue_pending_disable(struct xe_exec_queue * q)127 static void set_exec_queue_pending_disable(struct xe_exec_queue *q)
128 {
129 atomic_or(EXEC_QUEUE_STATE_PENDING_DISABLE, &q->guc->state);
130 }
131
clear_exec_queue_pending_disable(struct xe_exec_queue * q)132 static void clear_exec_queue_pending_disable(struct xe_exec_queue *q)
133 {
134 atomic_and(~EXEC_QUEUE_STATE_PENDING_DISABLE, &q->guc->state);
135 }
136
exec_queue_destroyed(struct xe_exec_queue * q)137 static bool exec_queue_destroyed(struct xe_exec_queue *q)
138 {
139 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_DESTROYED;
140 }
141
set_exec_queue_destroyed(struct xe_exec_queue * q)142 static void set_exec_queue_destroyed(struct xe_exec_queue *q)
143 {
144 atomic_or(EXEC_QUEUE_STATE_DESTROYED, &q->guc->state);
145 }
146
clear_exec_queue_destroyed(struct xe_exec_queue * q)147 static void clear_exec_queue_destroyed(struct xe_exec_queue *q)
148 {
149 atomic_and(~EXEC_QUEUE_STATE_DESTROYED, &q->guc->state);
150 }
151
exec_queue_banned(struct xe_exec_queue * q)152 static bool exec_queue_banned(struct xe_exec_queue *q)
153 {
154 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_BANNED;
155 }
156
set_exec_queue_banned(struct xe_exec_queue * q)157 static void set_exec_queue_banned(struct xe_exec_queue *q)
158 {
159 atomic_or(EXEC_QUEUE_STATE_BANNED, &q->guc->state);
160 }
161
clear_exec_queue_banned(struct xe_exec_queue * q)162 static void clear_exec_queue_banned(struct xe_exec_queue *q)
163 {
164 atomic_andnot(EXEC_QUEUE_STATE_BANNED, &q->guc->state);
165 }
166
exec_queue_suspended(struct xe_exec_queue * q)167 static bool exec_queue_suspended(struct xe_exec_queue *q)
168 {
169 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_SUSPENDED;
170 }
171
set_exec_queue_suspended(struct xe_exec_queue * q)172 static void set_exec_queue_suspended(struct xe_exec_queue *q)
173 {
174 atomic_or(EXEC_QUEUE_STATE_SUSPENDED, &q->guc->state);
175 }
176
clear_exec_queue_suspended(struct xe_exec_queue * q)177 static void clear_exec_queue_suspended(struct xe_exec_queue *q)
178 {
179 atomic_and(~EXEC_QUEUE_STATE_SUSPENDED, &q->guc->state);
180 }
181
exec_queue_reset(struct xe_exec_queue * q)182 static bool exec_queue_reset(struct xe_exec_queue *q)
183 {
184 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_RESET;
185 }
186
set_exec_queue_reset(struct xe_exec_queue * q)187 static void set_exec_queue_reset(struct xe_exec_queue *q)
188 {
189 atomic_or(EXEC_QUEUE_STATE_RESET, &q->guc->state);
190 }
191
exec_queue_killed(struct xe_exec_queue * q)192 static bool exec_queue_killed(struct xe_exec_queue *q)
193 {
194 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_KILLED;
195 }
196
set_exec_queue_killed(struct xe_exec_queue * q)197 static void set_exec_queue_killed(struct xe_exec_queue *q)
198 {
199 atomic_or(EXEC_QUEUE_STATE_KILLED, &q->guc->state);
200 }
201
exec_queue_wedged(struct xe_exec_queue * q)202 static bool exec_queue_wedged(struct xe_exec_queue *q)
203 {
204 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_WEDGED;
205 }
206
set_exec_queue_wedged(struct xe_exec_queue * q)207 static void set_exec_queue_wedged(struct xe_exec_queue *q)
208 {
209 atomic_or(EXEC_QUEUE_STATE_WEDGED, &q->guc->state);
210 }
211
exec_queue_pending_resume(struct xe_exec_queue * q)212 static bool exec_queue_pending_resume(struct xe_exec_queue *q)
213 {
214 return atomic_read(&q->guc->state) & EXEC_QUEUE_STATE_PENDING_RESUME;
215 }
216
set_exec_queue_pending_resume(struct xe_exec_queue * q)217 static void set_exec_queue_pending_resume(struct xe_exec_queue *q)
218 {
219 atomic_or(EXEC_QUEUE_STATE_PENDING_RESUME, &q->guc->state);
220 }
221
clear_exec_queue_pending_resume(struct xe_exec_queue * q)222 static void clear_exec_queue_pending_resume(struct xe_exec_queue *q)
223 {
224 atomic_and(~EXEC_QUEUE_STATE_PENDING_RESUME, &q->guc->state);
225 }
226
exec_queue_killed_or_banned_or_wedged(struct xe_exec_queue * q)227 static bool exec_queue_killed_or_banned_or_wedged(struct xe_exec_queue *q)
228 {
229 return (atomic_read(&q->guc->state) &
230 (EXEC_QUEUE_STATE_WEDGED | EXEC_QUEUE_STATE_KILLED |
231 EXEC_QUEUE_STATE_BANNED));
232 }
233
guc_submit_sw_fini(struct drm_device * drm,void * arg)234 static void guc_submit_sw_fini(struct drm_device *drm, void *arg)
235 {
236 struct xe_guc *guc = arg;
237 struct xe_gt *gt = guc_to_gt(guc);
238
239 xe_gt_assert(gt, xa_empty(&guc->submission_state.exec_queue_lookup));
240
241 xa_destroy(&guc->submission_state.exec_queue_lookup);
242 }
243
guc_submit_fini(void * arg)244 static void guc_submit_fini(void *arg)
245 {
246 struct xe_guc *guc = arg;
247 struct xe_exec_queue *q;
248 unsigned long index;
249
250 /* Drop any wedged queue refs */
251 mutex_lock(&guc->submission_state.lock);
252 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
253 if (exec_queue_wedged(q)) {
254 mutex_unlock(&guc->submission_state.lock);
255 xe_exec_queue_put(q);
256 mutex_lock(&guc->submission_state.lock);
257 }
258 }
259 mutex_unlock(&guc->submission_state.lock);
260
261 /* Forcefully kill any remaining exec queues */
262 xe_guc_ct_stop(&guc->ct);
263 guc_submit_reset_prepare(guc);
264 xe_guc_softreset(guc);
265 xe_guc_submit_stop(guc);
266 xe_uc_fw_sanitize(&guc->fw);
267 xe_guc_submit_pause_abort(guc);
268 }
269
270 static const struct xe_exec_queue_ops guc_exec_queue_ops;
271
primelockdep(struct xe_guc * guc)272 static void primelockdep(struct xe_guc *guc)
273 {
274 if (!IS_ENABLED(CONFIG_LOCKDEP))
275 return;
276
277 fs_reclaim_acquire(GFP_KERNEL);
278
279 mutex_lock(&guc->submission_state.lock);
280 mutex_unlock(&guc->submission_state.lock);
281
282 fs_reclaim_release(GFP_KERNEL);
283 }
284
285 /**
286 * xe_guc_submit_init() - Initialize GuC submission.
287 * @guc: the &xe_guc to initialize
288 * @num_ids: number of GuC context IDs to use
289 *
290 * The bare-metal or PF driver can pass ~0 as &num_ids to indicate that all
291 * GuC context IDs supported by the GuC firmware should be used for submission.
292 *
293 * Only VF drivers will have to provide explicit number of GuC context IDs
294 * that they can use for submission.
295 *
296 * Return: 0 on success or a negative error code on failure.
297 */
xe_guc_submit_init(struct xe_guc * guc,unsigned int num_ids)298 int xe_guc_submit_init(struct xe_guc *guc, unsigned int num_ids)
299 {
300 struct xe_device *xe = guc_to_xe(guc);
301 struct xe_gt *gt = guc_to_gt(guc);
302 int err;
303
304 err = drmm_mutex_init(&xe->drm, &guc->submission_state.lock);
305 if (err)
306 return err;
307
308 err = xe_guc_id_mgr_init(&guc->submission_state.idm, num_ids);
309 if (err)
310 return err;
311
312 gt->exec_queue_ops = &guc_exec_queue_ops;
313
314 xa_init(&guc->submission_state.exec_queue_lookup);
315
316 primelockdep(guc);
317
318 guc->submission_state.initialized = true;
319
320 err = drmm_add_action_or_reset(&xe->drm, guc_submit_sw_fini, guc);
321 if (err)
322 return err;
323
324 return devm_add_action_or_reset(xe->drm.dev, guc_submit_fini, guc);
325 }
326
327 /*
328 * Given that we want to guarantee enough RCS throughput to avoid missing
329 * frames, we set the yield policy to 20% of each 80ms interval.
330 */
331 #define RC_YIELD_DURATION 80 /* in ms */
332 #define RC_YIELD_RATIO 20 /* in percent */
emit_render_compute_yield_klv(u32 * emit)333 static u32 *emit_render_compute_yield_klv(u32 *emit)
334 {
335 *emit++ = PREP_GUC_KLV_TAG(SCHEDULING_POLICIES_RENDER_COMPUTE_YIELD);
336 *emit++ = RC_YIELD_DURATION;
337 *emit++ = RC_YIELD_RATIO;
338
339 return emit;
340 }
341
342 #define SCHEDULING_POLICY_MAX_DWORDS 16
guc_init_global_schedule_policy(struct xe_guc * guc)343 static int guc_init_global_schedule_policy(struct xe_guc *guc)
344 {
345 u32 data[SCHEDULING_POLICY_MAX_DWORDS];
346 u32 *emit = data;
347 u32 count = 0;
348 int ret;
349
350 if (GUC_SUBMIT_VER(guc) < MAKE_GUC_VER(1, 1, 0))
351 return 0;
352
353 *emit++ = XE_GUC_ACTION_UPDATE_SCHEDULING_POLICIES_KLV;
354
355 if (CCS_INSTANCES(guc_to_gt(guc)))
356 emit = emit_render_compute_yield_klv(emit);
357
358 count = emit - data;
359 if (count > 1) {
360 xe_assert(guc_to_xe(guc), count <= SCHEDULING_POLICY_MAX_DWORDS);
361
362 ret = xe_guc_ct_send_block(&guc->ct, data, count);
363 if (ret < 0) {
364 xe_gt_err(guc_to_gt(guc),
365 "failed to enable GuC scheduling policies: %pe\n",
366 ERR_PTR(ret));
367 return ret;
368 }
369 }
370
371 return 0;
372 }
373
xe_guc_submit_enable(struct xe_guc * guc)374 int xe_guc_submit_enable(struct xe_guc *guc)
375 {
376 int ret;
377
378 ret = guc_init_global_schedule_policy(guc);
379 if (ret)
380 return ret;
381
382 guc->submission_state.enabled = true;
383
384 return 0;
385 }
386
xe_guc_submit_disable(struct xe_guc * guc)387 void xe_guc_submit_disable(struct xe_guc *guc)
388 {
389 guc->submission_state.enabled = false;
390 }
391
__release_guc_id(struct xe_guc * guc,struct xe_exec_queue * q,int count)392 static void __release_guc_id(struct xe_guc *guc, struct xe_exec_queue *q,
393 int count)
394 {
395 int i;
396
397 mutex_lock(&guc->submission_state.lock);
398
399 for (i = 0; i < count; ++i)
400 xa_erase(&guc->submission_state.exec_queue_lookup,
401 q->guc->id + i);
402
403 xe_guc_id_mgr_release_locked(&guc->submission_state.idm,
404 q->guc->id, q->width);
405
406 mutex_unlock(&guc->submission_state.lock);
407 }
408
alloc_guc_id(struct xe_guc * guc,struct xe_exec_queue * q)409 static int alloc_guc_id(struct xe_guc *guc, struct xe_exec_queue *q)
410 {
411 int ret, i;
412
413 mutex_lock(&guc->submission_state.lock);
414 ret = xe_guc_id_mgr_reserve_locked(&guc->submission_state.idm,
415 q->width);
416 mutex_unlock(&guc->submission_state.lock);
417 if (ret < 0)
418 return ret;
419
420 q->guc->id = ret;
421
422 /* Reserve empty slots. */
423 for (i = 0; i < q->width; ++i) {
424 ret = xa_insert(&guc->submission_state.exec_queue_lookup,
425 q->guc->id + i, NULL, GFP_KERNEL);
426 if (ret)
427 goto err_release;
428 }
429
430 return 0;
431
432 err_release:
433 __release_guc_id(guc, q, i);
434
435 return ret;
436 }
437
publish_guc_id(struct xe_guc * guc,struct xe_exec_queue * q)438 static void publish_guc_id(struct xe_guc *guc, struct xe_exec_queue *q)
439 {
440 int i;
441
442 lockdep_assert_held(&guc->submission_state.lock);
443
444 for (i = 0; i < q->width; ++i) {
445 void *old;
446
447 old = xa_store(&guc->submission_state.exec_queue_lookup,
448 q->guc->id + i, q, GFP_NOWAIT);
449 XE_WARN_ON(old || xa_is_err(old));
450 }
451 }
452
release_guc_id(struct xe_guc * guc,struct xe_exec_queue * q)453 static void release_guc_id(struct xe_guc *guc, struct xe_exec_queue *q)
454 {
455 __release_guc_id(guc, q, q->width);
456 }
457
458 struct exec_queue_policy {
459 u32 count;
460 struct guc_update_exec_queue_policy h2g;
461 };
462
__guc_exec_queue_policy_action_size(struct exec_queue_policy * policy)463 static u32 __guc_exec_queue_policy_action_size(struct exec_queue_policy *policy)
464 {
465 size_t bytes = sizeof(policy->h2g.header) +
466 (sizeof(policy->h2g.klv[0]) * policy->count);
467
468 return bytes / sizeof(u32);
469 }
470
__guc_exec_queue_policy_start_klv(struct exec_queue_policy * policy,u16 guc_id)471 static void __guc_exec_queue_policy_start_klv(struct exec_queue_policy *policy,
472 u16 guc_id)
473 {
474 policy->h2g.header.action =
475 XE_GUC_ACTION_HOST2GUC_UPDATE_CONTEXT_POLICIES;
476 policy->h2g.header.guc_id = guc_id;
477 policy->count = 0;
478 }
479
480 #define MAKE_EXEC_QUEUE_POLICY_ADD(func, id) \
481 static void __guc_exec_queue_policy_add_##func(struct exec_queue_policy *policy, \
482 u32 data) \
483 { \
484 XE_WARN_ON(policy->count >= GUC_CONTEXT_POLICIES_KLV_NUM_IDS); \
485 \
486 policy->h2g.klv[policy->count].kl = \
487 FIELD_PREP(GUC_KLV_0_KEY, \
488 GUC_CONTEXT_POLICIES_KLV_ID_##id) | \
489 FIELD_PREP(GUC_KLV_0_LEN, 1); \
490 policy->h2g.klv[policy->count].value = data; \
491 policy->count++; \
492 }
493
494 MAKE_EXEC_QUEUE_POLICY_ADD(execution_quantum, EXECUTION_QUANTUM)
495 MAKE_EXEC_QUEUE_POLICY_ADD(preemption_timeout, PREEMPTION_TIMEOUT)
496 MAKE_EXEC_QUEUE_POLICY_ADD(priority, SCHEDULING_PRIORITY)
497 MAKE_EXEC_QUEUE_POLICY_ADD(slpc_exec_queue_freq_req, SLPM_GT_FREQUENCY)
498 #undef MAKE_EXEC_QUEUE_POLICY_ADD
499
500 static const int xe_exec_queue_prio_to_guc[] = {
501 [XE_EXEC_QUEUE_PRIORITY_LOW] = GUC_CLIENT_PRIORITY_NORMAL,
502 [XE_EXEC_QUEUE_PRIORITY_NORMAL] = GUC_CLIENT_PRIORITY_KMD_NORMAL,
503 [XE_EXEC_QUEUE_PRIORITY_HIGH] = GUC_CLIENT_PRIORITY_HIGH,
504 [XE_EXEC_QUEUE_PRIORITY_KERNEL] = GUC_CLIENT_PRIORITY_KMD_HIGH,
505 };
506
init_policies(struct xe_guc * guc,struct xe_exec_queue * q)507 static void init_policies(struct xe_guc *guc, struct xe_exec_queue *q)
508 {
509 struct exec_queue_policy policy;
510 enum xe_exec_queue_priority prio = q->sched_props.priority;
511 u32 timeslice_us = q->sched_props.timeslice_us;
512 u32 slpc_exec_queue_freq_req = 0;
513 u32 preempt_timeout_us = q->sched_props.preempt_timeout_us;
514
515 xe_gt_assert(guc_to_gt(guc), exec_queue_registered(q) &&
516 !xe_exec_queue_is_multi_queue_secondary(q));
517
518 if (q->flags & EXEC_QUEUE_FLAG_LOW_LATENCY)
519 slpc_exec_queue_freq_req |= SLPC_CTX_FREQ_REQ_IS_COMPUTE;
520
521 __guc_exec_queue_policy_start_klv(&policy, q->guc->id);
522 __guc_exec_queue_policy_add_priority(&policy, xe_exec_queue_prio_to_guc[prio]);
523 __guc_exec_queue_policy_add_execution_quantum(&policy, timeslice_us);
524 __guc_exec_queue_policy_add_preemption_timeout(&policy, preempt_timeout_us);
525 __guc_exec_queue_policy_add_slpc_exec_queue_freq_req(&policy,
526 slpc_exec_queue_freq_req);
527
528 xe_guc_ct_send(&guc->ct, (u32 *)&policy.h2g,
529 __guc_exec_queue_policy_action_size(&policy), 0, 0);
530 }
531
set_min_preemption_timeout(struct xe_guc * guc,struct xe_exec_queue * q)532 static void set_min_preemption_timeout(struct xe_guc *guc, struct xe_exec_queue *q)
533 {
534 struct exec_queue_policy policy;
535
536 xe_assert(guc_to_xe(guc), !xe_exec_queue_is_multi_queue_secondary(q));
537
538 __guc_exec_queue_policy_start_klv(&policy, q->guc->id);
539 __guc_exec_queue_policy_add_preemption_timeout(&policy, 1);
540
541 xe_guc_ct_send(&guc->ct, (u32 *)&policy.h2g,
542 __guc_exec_queue_policy_action_size(&policy), 0, 0);
543 }
544
vf_recovery(struct xe_guc * guc)545 static bool vf_recovery(struct xe_guc *guc)
546 {
547 return xe_gt_recovery_pending(guc_to_gt(guc));
548 }
549
xe_guc_exec_queue_trigger_cleanup(struct xe_exec_queue * q)550 static void xe_guc_exec_queue_trigger_cleanup(struct xe_exec_queue *q)
551 {
552 struct xe_guc *guc = exec_queue_to_guc(q);
553 struct xe_device *xe = guc_to_xe(guc);
554
555 /** to wakeup xe_wait_user_fence ioctl if exec queue is reset */
556 wake_up_all(&xe->ufence_wq);
557
558 xe_sched_tdr_queue_imm(&q->guc->sched);
559 }
560
xe_guc_exec_queue_group_stop(struct xe_exec_queue * q)561 static void xe_guc_exec_queue_group_stop(struct xe_exec_queue *q)
562 {
563 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
564 struct xe_exec_queue_group *group = q->multi_queue.group;
565 struct xe_exec_queue *eq, *next;
566 LIST_HEAD(tmp);
567
568 xe_gt_assert(guc_to_gt(exec_queue_to_guc(q)),
569 xe_exec_queue_is_multi_queue(q));
570
571 mutex_lock(&group->list_lock);
572
573 /*
574 * Stop all future queues being from executing while group is stopped.
575 */
576 group->stopped = true;
577
578 list_for_each_entry_safe(eq, next, &group->list, multi_queue.link)
579 /*
580 * Refcount prevents an attempted removal from &group->list,
581 * temporary list allows safe iteration after dropping
582 * &group->list_lock.
583 */
584 if (xe_exec_queue_get_unless_zero(eq))
585 list_move_tail(&eq->multi_queue.link, &tmp);
586
587 mutex_unlock(&group->list_lock);
588
589 /* We cannot stop under list lock without getting inversions */
590 xe_sched_submission_stop(&primary->guc->sched);
591 list_for_each_entry(eq, &tmp, multi_queue.link)
592 xe_sched_submission_stop(&eq->guc->sched);
593
594 mutex_lock(&group->list_lock);
595 list_for_each_entry_safe(eq, next, &tmp, multi_queue.link) {
596 /*
597 * Corner where we got banned while stopping and not on
598 * &group->list
599 */
600 if (READ_ONCE(group->banned))
601 xe_guc_exec_queue_trigger_cleanup(eq);
602
603 list_move_tail(&eq->multi_queue.link, &group->list);
604 xe_exec_queue_put(eq);
605 }
606 mutex_unlock(&group->list_lock);
607 }
608
xe_guc_exec_queue_group_start(struct xe_exec_queue * q)609 static void xe_guc_exec_queue_group_start(struct xe_exec_queue *q)
610 {
611 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
612 struct xe_exec_queue_group *group = q->multi_queue.group;
613 struct xe_exec_queue *eq;
614
615 xe_gt_assert(guc_to_gt(exec_queue_to_guc(q)),
616 xe_exec_queue_is_multi_queue(q));
617
618 xe_sched_submission_start(&primary->guc->sched);
619
620 mutex_lock(&group->list_lock);
621 group->stopped = false;
622 list_for_each_entry(eq, &group->list, multi_queue.link)
623 xe_sched_submission_start(&eq->guc->sched);
624 mutex_unlock(&group->list_lock);
625 }
626
xe_guc_exec_queue_group_trigger_cleanup(struct xe_exec_queue * q)627 static void xe_guc_exec_queue_group_trigger_cleanup(struct xe_exec_queue *q)
628 {
629 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
630 struct xe_exec_queue_group *group = q->multi_queue.group;
631 struct xe_exec_queue *eq;
632
633 xe_gt_assert(guc_to_gt(exec_queue_to_guc(q)),
634 xe_exec_queue_is_multi_queue(q));
635
636 /* Group banned, skip timeout check in TDR */
637 WRITE_ONCE(group->banned, true);
638 xe_guc_exec_queue_trigger_cleanup(primary);
639
640 mutex_lock(&group->list_lock);
641 list_for_each_entry(eq, &group->list, multi_queue.link)
642 xe_guc_exec_queue_trigger_cleanup(eq);
643 mutex_unlock(&group->list_lock);
644 }
645
xe_guc_exec_queue_reset_trigger_cleanup(struct xe_exec_queue * q)646 static void xe_guc_exec_queue_reset_trigger_cleanup(struct xe_exec_queue *q)
647 {
648 if (xe_exec_queue_is_multi_queue(q)) {
649 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
650 struct xe_exec_queue_group *group = q->multi_queue.group;
651 struct xe_exec_queue *eq;
652
653 /* Group banned, skip timeout check in TDR */
654 WRITE_ONCE(group->banned, true);
655
656 set_exec_queue_reset(primary);
657 if (!exec_queue_banned(primary))
658 xe_guc_exec_queue_trigger_cleanup(primary);
659
660 mutex_lock(&group->list_lock);
661 list_for_each_entry(eq, &group->list, multi_queue.link) {
662 set_exec_queue_reset(eq);
663 if (!exec_queue_banned(eq))
664 xe_guc_exec_queue_trigger_cleanup(eq);
665 }
666 mutex_unlock(&group->list_lock);
667 } else {
668 set_exec_queue_reset(q);
669 if (!exec_queue_banned(q))
670 xe_guc_exec_queue_trigger_cleanup(q);
671 }
672 }
673
set_exec_queue_group_banned(struct xe_exec_queue * q)674 static void set_exec_queue_group_banned(struct xe_exec_queue *q)
675 {
676 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
677 struct xe_exec_queue_group *group = q->multi_queue.group;
678 struct xe_exec_queue *eq;
679
680 /* Ban all queues of the multi-queue group */
681 xe_gt_assert(guc_to_gt(exec_queue_to_guc(q)),
682 xe_exec_queue_is_multi_queue(q));
683 set_exec_queue_banned(primary);
684
685 mutex_lock(&group->list_lock);
686 list_for_each_entry(eq, &group->list, multi_queue.link)
687 set_exec_queue_banned(eq);
688 mutex_unlock(&group->list_lock);
689 }
690
691 /* Helper for context registration H2G */
692 struct guc_ctxt_registration_info {
693 u32 flags;
694 u32 context_idx;
695 u32 engine_class;
696 u32 engine_submit_mask;
697 u32 wq_desc_lo;
698 u32 wq_desc_hi;
699 u32 wq_base_lo;
700 u32 wq_base_hi;
701 u32 wq_size;
702 u32 cgp_lo;
703 u32 cgp_hi;
704 u32 hwlrca_lo;
705 u32 hwlrca_hi;
706 };
707
708 #define parallel_read(xe_, map_, field_) \
709 xe_map_rd_field(xe_, &map_, 0, struct guc_submit_parallel_scratch, \
710 field_)
711 #define parallel_write(xe_, map_, field_, val_) \
712 xe_map_wr_field(xe_, &map_, 0, struct guc_submit_parallel_scratch, \
713 field_, val_)
714
715 /**
716 * DOC: Multi Queue Group GuC interface
717 *
718 * The multi queue group coordination between KMD and GuC is through a software
719 * construct called Context Group Page (CGP). The CGP is a KMD managed 4KB page
720 * allocated in the global GTT.
721 *
722 * CGP format:
723 *
724 * +-----------+---------------------------+---------------------------------------------+
725 * | DWORD | Name | Description |
726 * +-----------+---------------------------+---------------------------------------------+
727 * | 0 | Version | Bits [15:8]=Major ver, [7:0]=Minor ver |
728 * +-----------+---------------------------+---------------------------------------------+
729 * | 1..15 | RESERVED | MBZ |
730 * +-----------+---------------------------+---------------------------------------------+
731 * | 16 | KMD_QUEUE_UPDATE_MASK_DW0 | KMD queue mask for queues 31..0 |
732 * +-----------+---------------------------+---------------------------------------------+
733 * | 17 | KMD_QUEUE_UPDATE_MASK_DW1 | KMD queue mask for queues 63..32 |
734 * +-----------+---------------------------+---------------------------------------------+
735 * | 18..31 | RESERVED | MBZ |
736 * +-----------+---------------------------+---------------------------------------------+
737 * | 32 | Q0CD_DW0 | Queue 0 context LRC descriptor lower DWORD |
738 * +-----------+---------------------------+---------------------------------------------+
739 * | 33 | Q0ContextIndex | Context ID for Queue 0 |
740 * +-----------+---------------------------+---------------------------------------------+
741 * | 34 | Q1CD_DW0 | Queue 1 context LRC descriptor lower DWORD |
742 * +-----------+---------------------------+---------------------------------------------+
743 * | 35 | Q1ContextIndex | Context ID for Queue 1 |
744 * +-----------+---------------------------+---------------------------------------------+
745 * | ... |... | ... |
746 * +-----------+---------------------------+---------------------------------------------+
747 * | 158 | Q63CD_DW0 | Queue 63 context LRC descriptor lower DWORD |
748 * +-----------+---------------------------+---------------------------------------------+
749 * | 159 | Q63ContextIndex | Context ID for Queue 63 |
750 * +-----------+---------------------------+---------------------------------------------+
751 * | 160..1024 | RESERVED | MBZ |
752 * +-----------+---------------------------+---------------------------------------------+
753 *
754 * While registering Q0 with GuC, CGP is updated with Q0 entry and GuC is notified
755 * through XE_GUC_ACTION_REGISTER_CONTEXT_MULTI_QUEUE H2G message which specifies
756 * the CGP address. When the secondary queues are added to the group, the CGP is
757 * updated with entry for that queue and GuC is notified through the H2G interface
758 * XE_GUC_ACTION_MULTI_QUEUE_CONTEXT_CGP_SYNC. GuC responds to these H2G messages
759 * with a XE_GUC_ACTION_NOTIFY_MULTIQ_CONTEXT_CGP_SYNC_DONE G2H message. GuC also
760 * sends a XE_GUC_ACTION_NOTIFY_MULTI_QUEUE_CGP_CONTEXT_ERROR notification for any
761 * error in the CGP. Only one of these CGP update messages can be outstanding
762 * (waiting for GuC response) at any time. The bits in KMD_QUEUE_UPDATE_MASK_DW*
763 * fields indicate which queue entry is being updated in the CGP.
764 *
765 * The primary queue (Q0) represents the multi queue group context in GuC and
766 * submission on any queue of the group must be through Q0 GuC interface only.
767 *
768 * As it is not required to register secondary queues with GuC, the secondary queue
769 * context ids in the CGP are populated with Q0 context id.
770 */
771
772 #define CGP_VERSION_MAJOR_SHIFT 8
773
xe_guc_exec_queue_group_cgp_update(struct xe_device * xe,struct xe_exec_queue * q)774 static void xe_guc_exec_queue_group_cgp_update(struct xe_device *xe,
775 struct xe_exec_queue *q)
776 {
777 struct xe_exec_queue_group *group = q->multi_queue.group;
778 u32 guc_id = group->primary->guc->id;
779
780 /* Currently implementing CGP version 1.0 */
781 xe_map_wr(xe, &group->cgp_bo->vmap, 0, u32,
782 1 << CGP_VERSION_MAJOR_SHIFT);
783
784 xe_map_wr(xe, &group->cgp_bo->vmap,
785 (32 + q->multi_queue.pos * 2) * sizeof(u32),
786 u32, lower_32_bits(xe_lrc_descriptor(q->lrc[0])));
787
788 xe_map_wr(xe, &group->cgp_bo->vmap,
789 (33 + q->multi_queue.pos * 2) * sizeof(u32),
790 u32, guc_id);
791
792 if (q->multi_queue.pos / 32) {
793 xe_map_wr(xe, &group->cgp_bo->vmap, 17 * sizeof(u32),
794 u32, BIT(q->multi_queue.pos % 32));
795 xe_map_wr(xe, &group->cgp_bo->vmap, 16 * sizeof(u32), u32, 0);
796 } else {
797 xe_map_wr(xe, &group->cgp_bo->vmap, 16 * sizeof(u32),
798 u32, BIT(q->multi_queue.pos));
799 xe_map_wr(xe, &group->cgp_bo->vmap, 17 * sizeof(u32), u32, 0);
800 }
801 }
802
xe_guc_exec_queue_group_cgp_sync(struct xe_guc * guc,struct xe_exec_queue * q,const u32 * action,u32 len)803 static void xe_guc_exec_queue_group_cgp_sync(struct xe_guc *guc,
804 struct xe_exec_queue *q,
805 const u32 *action, u32 len)
806 {
807 struct xe_exec_queue_group *group = q->multi_queue.group;
808 struct xe_device *xe = guc_to_xe(guc);
809 enum xe_multi_queue_priority priority;
810 long ret;
811
812 /*
813 * As all queues of a multi queue group use single drm scheduler
814 * submit workqueue, CGP synchronization with GuC are serialized.
815 * Hence, no locking is required here.
816 * Wait for any pending CGP_SYNC_DONE response before updating the
817 * CGP page and sending CGP_SYNC message.
818 *
819 * FIXME: Support VF migration
820 */
821 ret = wait_event_timeout(guc->ct.wq,
822 !READ_ONCE(group->sync_pending) ||
823 xe_guc_read_stopped(guc), HZ);
824 if (!ret || xe_guc_read_stopped(guc)) {
825 /* CGP_SYNC failed. Reset gt, cleanup the group */
826 xe_gt_warn(guc_to_gt(guc), "Wait for CGP_SYNC_DONE response failed!\n");
827 set_exec_queue_group_banned(q);
828 xe_gt_reset_async(q->gt);
829 xe_guc_exec_queue_group_trigger_cleanup(q);
830 return;
831 }
832
833 scoped_guard(spinlock, &q->multi_queue.lock)
834 priority = q->multi_queue.priority;
835
836 xe_lrc_set_multi_queue_priority(q->lrc[0], priority);
837 xe_guc_exec_queue_group_cgp_update(xe, q);
838
839 WRITE_ONCE(group->sync_pending, true);
840 xe_guc_ct_send(&guc->ct, action, len, G2H_LEN_DW_MULTI_QUEUE_CONTEXT, 1);
841 }
842
guc_exec_queue_send_cgp_sync(struct xe_exec_queue * q)843 static void guc_exec_queue_send_cgp_sync(struct xe_exec_queue *q)
844 {
845 #define MAX_MULTI_QUEUE_CGP_SYNC_SIZE (2)
846 struct xe_guc *guc = exec_queue_to_guc(q);
847 struct xe_exec_queue_group *group = q->multi_queue.group;
848 u32 action[MAX_MULTI_QUEUE_CGP_SYNC_SIZE];
849 int len = 0;
850
851 action[len++] = XE_GUC_ACTION_MULTI_QUEUE_CONTEXT_CGP_SYNC;
852 action[len++] = group->primary->guc->id;
853
854 xe_gt_assert(guc_to_gt(guc), len <= MAX_MULTI_QUEUE_CGP_SYNC_SIZE);
855 #undef MAX_MULTI_QUEUE_CGP_SYNC_SIZE
856
857 xe_guc_exec_queue_group_cgp_sync(guc, q, action, len);
858 }
859
__register_exec_queue_group(struct xe_exec_queue * q,struct guc_ctxt_registration_info * info)860 static void __register_exec_queue_group(struct xe_exec_queue *q,
861 struct guc_ctxt_registration_info *info)
862 {
863 struct xe_guc *guc = exec_queue_to_guc(q);
864 #define MAX_MULTI_QUEUE_REG_SIZE (8)
865 u32 action[MAX_MULTI_QUEUE_REG_SIZE];
866 int len = 0;
867
868 action[len++] = XE_GUC_ACTION_REGISTER_CONTEXT_MULTI_QUEUE;
869 action[len++] = info->flags;
870 action[len++] = info->context_idx;
871 action[len++] = info->engine_class;
872 action[len++] = info->engine_submit_mask;
873 action[len++] = 0; /* Reserved */
874 action[len++] = info->cgp_lo;
875 action[len++] = info->cgp_hi;
876
877 xe_gt_assert(guc_to_gt(guc), len <= MAX_MULTI_QUEUE_REG_SIZE);
878 #undef MAX_MULTI_QUEUE_REG_SIZE
879
880 /*
881 * The above XE_GUC_ACTION_REGISTER_CONTEXT_MULTI_QUEUE do expect a
882 * XE_GUC_ACTION_NOTIFY_MULTI_QUEUE_CONTEXT_CGP_SYNC_DONE response
883 * from guc.
884 */
885 xe_guc_exec_queue_group_cgp_sync(guc, q, action, len);
886 }
887
__register_mlrc_exec_queue(struct xe_guc * guc,struct xe_exec_queue * q,struct guc_ctxt_registration_info * info)888 static void __register_mlrc_exec_queue(struct xe_guc *guc,
889 struct xe_exec_queue *q,
890 struct guc_ctxt_registration_info *info)
891 {
892 #define MAX_MLRC_REG_SIZE (13 + XE_HW_ENGINE_MAX_INSTANCE * 2)
893 u32 action[MAX_MLRC_REG_SIZE];
894 int len = 0;
895 int i;
896
897 xe_gt_assert(guc_to_gt(guc), xe_exec_queue_is_parallel(q));
898
899 action[len++] = XE_GUC_ACTION_REGISTER_CONTEXT_MULTI_LRC;
900 action[len++] = info->flags;
901 action[len++] = info->context_idx;
902 action[len++] = info->engine_class;
903 action[len++] = info->engine_submit_mask;
904 action[len++] = info->wq_desc_lo;
905 action[len++] = info->wq_desc_hi;
906 action[len++] = info->wq_base_lo;
907 action[len++] = info->wq_base_hi;
908 action[len++] = info->wq_size;
909 action[len++] = q->width;
910 action[len++] = info->hwlrca_lo;
911 action[len++] = info->hwlrca_hi;
912
913 for (i = 1; i < q->width; ++i) {
914 struct xe_lrc *lrc = q->lrc[i];
915
916 action[len++] = lower_32_bits(xe_lrc_descriptor(lrc));
917 action[len++] = upper_32_bits(xe_lrc_descriptor(lrc));
918 }
919
920 /* explicitly checks some fields that we might fixup later */
921 xe_gt_assert(guc_to_gt(guc), info->wq_desc_lo ==
922 action[XE_GUC_REGISTER_CONTEXT_MULTI_LRC_DATA_5_WQ_DESC_ADDR_LOWER]);
923 xe_gt_assert(guc_to_gt(guc), info->wq_base_lo ==
924 action[XE_GUC_REGISTER_CONTEXT_MULTI_LRC_DATA_7_WQ_BUF_BASE_LOWER]);
925 xe_gt_assert(guc_to_gt(guc), q->width ==
926 action[XE_GUC_REGISTER_CONTEXT_MULTI_LRC_DATA_10_NUM_CTXS]);
927 xe_gt_assert(guc_to_gt(guc), info->hwlrca_lo ==
928 action[XE_GUC_REGISTER_CONTEXT_MULTI_LRC_DATA_11_HW_LRC_ADDR]);
929 xe_gt_assert(guc_to_gt(guc), len <= MAX_MLRC_REG_SIZE);
930 #undef MAX_MLRC_REG_SIZE
931
932 xe_guc_ct_send(&guc->ct, action, len, 0, 0);
933 }
934
__register_exec_queue(struct xe_guc * guc,struct guc_ctxt_registration_info * info)935 static void __register_exec_queue(struct xe_guc *guc,
936 struct guc_ctxt_registration_info *info)
937 {
938 u32 action[] = {
939 XE_GUC_ACTION_REGISTER_CONTEXT,
940 info->flags,
941 info->context_idx,
942 info->engine_class,
943 info->engine_submit_mask,
944 info->wq_desc_lo,
945 info->wq_desc_hi,
946 info->wq_base_lo,
947 info->wq_base_hi,
948 info->wq_size,
949 info->hwlrca_lo,
950 info->hwlrca_hi,
951 };
952
953 /* explicitly checks some fields that we might fixup later */
954 xe_gt_assert(guc_to_gt(guc), info->wq_desc_lo ==
955 action[XE_GUC_REGISTER_CONTEXT_DATA_5_WQ_DESC_ADDR_LOWER]);
956 xe_gt_assert(guc_to_gt(guc), info->wq_base_lo ==
957 action[XE_GUC_REGISTER_CONTEXT_DATA_7_WQ_BUF_BASE_LOWER]);
958 xe_gt_assert(guc_to_gt(guc), info->hwlrca_lo ==
959 action[XE_GUC_REGISTER_CONTEXT_DATA_10_HW_LRC_ADDR]);
960
961 xe_guc_ct_send(&guc->ct, action, ARRAY_SIZE(action), 0, 0);
962 }
963
register_exec_queue(struct xe_exec_queue * q,int ctx_type)964 static void register_exec_queue(struct xe_exec_queue *q, int ctx_type)
965 {
966 struct xe_guc *guc = exec_queue_to_guc(q);
967 struct xe_device *xe = guc_to_xe(guc);
968 struct xe_lrc *lrc = q->lrc[0];
969 struct guc_ctxt_registration_info info;
970
971 xe_gt_assert(guc_to_gt(guc), !exec_queue_registered(q));
972 xe_gt_assert(guc_to_gt(guc), ctx_type < GUC_CONTEXT_COUNT);
973
974 memset(&info, 0, sizeof(info));
975 info.context_idx = q->guc->id;
976 info.engine_class = xe_engine_class_to_guc_class(q->class);
977 info.engine_submit_mask = q->logical_mask;
978 info.hwlrca_lo = lower_32_bits(xe_lrc_descriptor(lrc));
979 info.hwlrca_hi = upper_32_bits(xe_lrc_descriptor(lrc));
980 info.flags = CONTEXT_REGISTRATION_FLAG_KMD |
981 FIELD_PREP(CONTEXT_REGISTRATION_FLAG_TYPE, ctx_type);
982
983 if (xe_exec_queue_is_multi_queue(q)) {
984 struct xe_exec_queue_group *group = q->multi_queue.group;
985
986 info.cgp_lo = xe_bo_ggtt_addr(group->cgp_bo);
987 info.cgp_hi = 0;
988 }
989
990 if (xe_exec_queue_is_parallel(q)) {
991 u64 ggtt_addr = xe_lrc_parallel_ggtt_addr(lrc);
992 struct iosys_map map = xe_lrc_parallel_map(lrc);
993
994 info.wq_desc_lo = lower_32_bits(ggtt_addr +
995 offsetof(struct guc_submit_parallel_scratch, wq_desc));
996 info.wq_desc_hi = upper_32_bits(ggtt_addr +
997 offsetof(struct guc_submit_parallel_scratch, wq_desc));
998 info.wq_base_lo = lower_32_bits(ggtt_addr +
999 offsetof(struct guc_submit_parallel_scratch, wq[0]));
1000 info.wq_base_hi = upper_32_bits(ggtt_addr +
1001 offsetof(struct guc_submit_parallel_scratch, wq[0]));
1002 info.wq_size = WQ_SIZE;
1003
1004 q->guc->wqi_head = 0;
1005 q->guc->wqi_tail = 0;
1006 xe_map_memset(xe, &map, 0, 0, PARALLEL_SCRATCH_SIZE - WQ_SIZE);
1007 parallel_write(xe, map, wq_desc.wq_status, WQ_STATUS_ACTIVE);
1008 }
1009
1010 set_exec_queue_registered(q);
1011 trace_xe_exec_queue_register(q);
1012 if (xe_exec_queue_is_multi_queue_primary(q))
1013 __register_exec_queue_group(q, &info);
1014 else if (xe_exec_queue_is_parallel(q))
1015 __register_mlrc_exec_queue(guc, q, &info);
1016 else if (!xe_exec_queue_is_multi_queue_secondary(q))
1017 __register_exec_queue(guc, &info);
1018
1019 if (!xe_exec_queue_is_multi_queue_secondary(q))
1020 init_policies(guc, q);
1021
1022 if (xe_exec_queue_is_multi_queue_secondary(q))
1023 guc_exec_queue_send_cgp_sync(q);
1024 }
1025
wq_space_until_wrap(struct xe_exec_queue * q)1026 static u32 wq_space_until_wrap(struct xe_exec_queue *q)
1027 {
1028 return (WQ_SIZE - q->guc->wqi_tail);
1029 }
1030
wq_wait_for_space(struct xe_exec_queue * q,u32 wqi_size)1031 static int wq_wait_for_space(struct xe_exec_queue *q, u32 wqi_size)
1032 {
1033 struct xe_guc *guc = exec_queue_to_guc(q);
1034 struct xe_device *xe = guc_to_xe(guc);
1035 struct iosys_map map = xe_lrc_parallel_map(q->lrc[0]);
1036 unsigned int sleep_period_ms = 1, sleep_total_ms = 0;
1037
1038 #define AVAILABLE_SPACE \
1039 CIRC_SPACE(q->guc->wqi_tail, q->guc->wqi_head, WQ_SIZE)
1040 if (wqi_size > AVAILABLE_SPACE && !vf_recovery(guc)) {
1041 try_again:
1042 q->guc->wqi_head = parallel_read(xe, map, wq_desc.head);
1043 if (wqi_size > AVAILABLE_SPACE && !vf_recovery(guc)) {
1044 if (sleep_total_ms > 2000) {
1045 xe_gt_reset_async(q->gt);
1046 return -ENODEV;
1047 }
1048
1049 sleep_total_ms += xe_sleep_exponential_ms(&sleep_period_ms, 64);
1050 goto try_again;
1051 }
1052 }
1053 #undef AVAILABLE_SPACE
1054
1055 return 0;
1056 }
1057
wq_noop_append(struct xe_exec_queue * q)1058 static int wq_noop_append(struct xe_exec_queue *q)
1059 {
1060 struct xe_guc *guc = exec_queue_to_guc(q);
1061 struct xe_device *xe = guc_to_xe(guc);
1062 struct iosys_map map = xe_lrc_parallel_map(q->lrc[0]);
1063 u32 len_dw = wq_space_until_wrap(q) / sizeof(u32) - 1;
1064
1065 if (wq_wait_for_space(q, wq_space_until_wrap(q)))
1066 return -ENODEV;
1067
1068 xe_gt_assert(guc_to_gt(guc), FIELD_FIT(WQ_LEN_MASK, len_dw));
1069
1070 parallel_write(xe, map, wq[q->guc->wqi_tail / sizeof(u32)],
1071 FIELD_PREP(WQ_TYPE_MASK, WQ_TYPE_NOOP) |
1072 FIELD_PREP(WQ_LEN_MASK, len_dw));
1073 q->guc->wqi_tail = 0;
1074
1075 return 0;
1076 }
1077
wq_item_append(struct xe_exec_queue * q)1078 static void wq_item_append(struct xe_exec_queue *q)
1079 {
1080 struct xe_guc *guc = exec_queue_to_guc(q);
1081 struct xe_device *xe = guc_to_xe(guc);
1082 struct iosys_map map = xe_lrc_parallel_map(q->lrc[0]);
1083 #define WQ_HEADER_SIZE 4 /* Includes 1 LRC address too */
1084 u32 wqi[XE_HW_ENGINE_MAX_INSTANCE + (WQ_HEADER_SIZE - 1)];
1085 u32 wqi_size = (q->width + (WQ_HEADER_SIZE - 1)) * sizeof(u32);
1086 u32 len_dw = (wqi_size / sizeof(u32)) - 1;
1087 int i = 0, j;
1088
1089 if (wqi_size > wq_space_until_wrap(q)) {
1090 if (wq_noop_append(q))
1091 return;
1092 }
1093 if (wq_wait_for_space(q, wqi_size))
1094 return;
1095
1096 wqi[i++] = FIELD_PREP(WQ_TYPE_MASK, WQ_TYPE_MULTI_LRC) |
1097 FIELD_PREP(WQ_LEN_MASK, len_dw);
1098 wqi[i++] = xe_lrc_descriptor(q->lrc[0]);
1099 wqi[i++] = FIELD_PREP(WQ_GUC_ID_MASK, q->guc->id) |
1100 FIELD_PREP(WQ_RING_TAIL_MASK, q->lrc[0]->ring.tail / sizeof(u64));
1101 wqi[i++] = 0;
1102 for (j = 1; j < q->width; ++j) {
1103 struct xe_lrc *lrc = q->lrc[j];
1104
1105 wqi[i++] = lrc->ring.tail / sizeof(u64);
1106 }
1107
1108 xe_gt_assert(guc_to_gt(guc), i == wqi_size / sizeof(u32));
1109
1110 iosys_map_incr(&map, offsetof(struct guc_submit_parallel_scratch,
1111 wq[q->guc->wqi_tail / sizeof(u32)]));
1112 xe_map_memcpy_to(xe, &map, 0, wqi, wqi_size);
1113 q->guc->wqi_tail += wqi_size;
1114 xe_gt_assert(guc_to_gt(guc), q->guc->wqi_tail <= WQ_SIZE);
1115
1116 xe_device_wmb(xe);
1117
1118 map = xe_lrc_parallel_map(q->lrc[0]);
1119 parallel_write(xe, map, wq_desc.tail, q->guc->wqi_tail);
1120 }
1121
1122 #define RESUME_PENDING ~0x0ull
submit_exec_queue(struct xe_exec_queue * q,struct xe_sched_job * job)1123 static void submit_exec_queue(struct xe_exec_queue *q, struct xe_sched_job *job)
1124 {
1125 struct xe_guc *guc = exec_queue_to_guc(q);
1126 struct xe_lrc *lrc = q->lrc[0];
1127 u32 action[3];
1128 u32 g2h_len = 0;
1129 u32 num_g2h = 0;
1130 int len = 0;
1131 bool extra_submit = false;
1132
1133 xe_gt_assert(guc_to_gt(guc), exec_queue_registered(q));
1134
1135 if (!job->restore_replay || job->last_replay) {
1136 if (xe_exec_queue_is_parallel(q))
1137 wq_item_append(q);
1138 else
1139 xe_lrc_set_ring_tail(lrc, lrc->ring.tail);
1140 job->last_replay = false;
1141 }
1142
1143 if (exec_queue_suspended(q) && !xe_exec_queue_is_parallel(q))
1144 return;
1145
1146 /*
1147 * All queues in a multi-queue group will use the primary queue
1148 * of the group to interface with GuC. If primay is suspended,
1149 * just return. Jobs will get scheduled once primary is resumed.
1150 */
1151 q = xe_exec_queue_multi_queue_primary(q);
1152 if (exec_queue_suspended(q))
1153 return;
1154
1155 if (!exec_queue_enabled(q)) {
1156 action[len++] = XE_GUC_ACTION_SCHED_CONTEXT_MODE_SET;
1157 action[len++] = q->guc->id;
1158 action[len++] = GUC_CONTEXT_ENABLE;
1159 g2h_len = G2H_LEN_DW_SCHED_CONTEXT_MODE_SET;
1160 num_g2h = 1;
1161 if (xe_exec_queue_is_parallel(q))
1162 extra_submit = true;
1163
1164 q->guc->resume_time = RESUME_PENDING;
1165 set_exec_queue_pending_enable(q);
1166 set_exec_queue_enabled(q);
1167 trace_xe_exec_queue_scheduling_enable(q);
1168 } else {
1169 action[len++] = XE_GUC_ACTION_SCHED_CONTEXT;
1170 action[len++] = q->guc->id;
1171 trace_xe_exec_queue_submit(q);
1172 }
1173
1174 xe_guc_ct_send(&guc->ct, action, len, g2h_len, num_g2h);
1175
1176 if (extra_submit) {
1177 len = 0;
1178 action[len++] = XE_GUC_ACTION_SCHED_CONTEXT;
1179 action[len++] = q->guc->id;
1180 trace_xe_exec_queue_submit(q);
1181
1182 xe_guc_ct_send(&guc->ct, action, len, 0, 0);
1183 }
1184 }
1185
1186 static struct dma_fence *
guc_exec_queue_run_job(struct drm_sched_job * drm_job)1187 guc_exec_queue_run_job(struct drm_sched_job *drm_job)
1188 {
1189 struct xe_sched_job *job = to_xe_sched_job(drm_job);
1190 struct xe_exec_queue *q = job->q;
1191 struct xe_guc *guc = exec_queue_to_guc(q);
1192 bool killed_or_banned_or_wedged =
1193 exec_queue_killed_or_banned_or_wedged(q);
1194
1195 xe_gt_assert(guc_to_gt(guc), !(exec_queue_destroyed(q) || exec_queue_pending_disable(q)) ||
1196 exec_queue_banned(q) || exec_queue_suspended(q));
1197
1198 trace_xe_sched_job_run(job);
1199
1200 if (!killed_or_banned_or_wedged && !xe_sched_job_is_error(job)) {
1201 if (xe_exec_queue_is_multi_queue_secondary(q)) {
1202 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
1203
1204 if (exec_queue_killed_or_banned_or_wedged(primary))
1205 goto run_job_out;
1206
1207 if (!exec_queue_registered(primary))
1208 register_exec_queue(primary, GUC_CONTEXT_NORMAL);
1209 }
1210
1211 if (!exec_queue_registered(q))
1212 register_exec_queue(q, GUC_CONTEXT_NORMAL);
1213 if (!job->restore_replay)
1214 q->ring_ops->emit_job(job);
1215 submit_exec_queue(q, job);
1216 job->restore_replay = false;
1217 }
1218
1219 run_job_out:
1220
1221 return job->fence;
1222 }
1223
guc_exec_queue_free_job(struct drm_sched_job * drm_job)1224 static void guc_exec_queue_free_job(struct drm_sched_job *drm_job)
1225 {
1226 struct xe_sched_job *job = to_xe_sched_job(drm_job);
1227
1228 trace_xe_sched_job_free(job);
1229 xe_sched_job_put(job);
1230 }
1231
xe_guc_read_stopped(struct xe_guc * guc)1232 int xe_guc_read_stopped(struct xe_guc *guc)
1233 {
1234 return atomic_read(&guc->submission_state.stopped);
1235 }
1236
1237 static void handle_multi_queue_secondary_sched_done(struct xe_guc *guc,
1238 struct xe_exec_queue *q,
1239 u32 runnable_state);
1240 static void handle_deregister_done(struct xe_guc *guc, struct xe_exec_queue *q);
1241
1242 #define MAKE_SCHED_CONTEXT_ACTION(q, enable_disable) \
1243 u32 action[] = { \
1244 XE_GUC_ACTION_SCHED_CONTEXT_MODE_SET, \
1245 q->guc->id, \
1246 GUC_CONTEXT_##enable_disable, \
1247 }
1248
disable_scheduling_deregister(struct xe_guc * guc,struct xe_exec_queue * q)1249 static void disable_scheduling_deregister(struct xe_guc *guc,
1250 struct xe_exec_queue *q)
1251 {
1252 MAKE_SCHED_CONTEXT_ACTION(q, DISABLE);
1253 int ret;
1254
1255 if (!xe_exec_queue_is_multi_queue_secondary(q))
1256 set_min_preemption_timeout(guc, q);
1257
1258 smp_rmb();
1259 ret = wait_event_timeout(guc->ct.wq,
1260 (!exec_queue_pending_enable(q) &&
1261 !exec_queue_pending_disable(q)) ||
1262 xe_guc_read_stopped(guc) ||
1263 vf_recovery(guc),
1264 HZ * 5);
1265 if (!ret && !vf_recovery(guc)) {
1266 struct xe_gpu_scheduler *sched = &q->guc->sched;
1267
1268 xe_gt_warn(q->gt, "Pending enable/disable failed to respond\n");
1269 xe_sched_submission_start(sched);
1270 xe_gt_reset_async(q->gt);
1271 xe_sched_tdr_queue_imm(sched);
1272 return;
1273 }
1274
1275 clear_exec_queue_enabled(q);
1276 set_exec_queue_pending_disable(q);
1277 set_exec_queue_destroyed(q);
1278 trace_xe_exec_queue_scheduling_disable(q);
1279
1280 /*
1281 * Reserve space for both G2H here as the 2nd G2H is sent from a G2H
1282 * handler and we are not allowed to reserved G2H space in handlers.
1283 */
1284 if (xe_exec_queue_is_multi_queue_secondary(q))
1285 handle_multi_queue_secondary_sched_done(guc, q, 0);
1286 else
1287 xe_guc_ct_send(&guc->ct, action, ARRAY_SIZE(action),
1288 G2H_LEN_DW_SCHED_CONTEXT_MODE_SET +
1289 G2H_LEN_DW_DEREGISTER_CONTEXT, 2);
1290 }
1291
1292 /**
1293 * xe_guc_submit_wedge() - Wedge GuC submission
1294 * @guc: the GuC object
1295 *
1296 * Save exec queue's registered with GuC state by taking a ref to each queue.
1297 * Register a DRMM handler to drop refs upon driver unload.
1298 */
xe_guc_submit_wedge(struct xe_guc * guc)1299 void xe_guc_submit_wedge(struct xe_guc *guc)
1300 {
1301 struct xe_device *xe = guc_to_xe(guc);
1302 struct xe_exec_queue *q;
1303 unsigned long index;
1304
1305 xe_gt_assert(guc_to_gt(guc), guc_to_xe(guc)->wedged.mode);
1306
1307 /*
1308 * If device is being wedged even before submission_state is
1309 * initialized, there's nothing to do here.
1310 */
1311 if (!guc->submission_state.initialized)
1312 return;
1313
1314 if (xe->wedged.mode == XE_WEDGED_MODE_UPON_ANY_HANG_NO_RESET) {
1315 mutex_lock(&guc->submission_state.lock);
1316 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q)
1317 if (xe_exec_queue_get_unless_zero(q))
1318 set_exec_queue_wedged(q);
1319 mutex_unlock(&guc->submission_state.lock);
1320 } else {
1321 /* Forcefully kill any remaining exec queues, signal fences */
1322 guc_submit_reset_prepare(guc);
1323 xe_guc_submit_stop(guc);
1324 xe_guc_softreset(guc);
1325 xe_uc_fw_sanitize(&guc->fw);
1326 xe_guc_submit_pause_abort(guc);
1327 }
1328 }
1329
guc_submit_hint_wedged(struct xe_guc * guc)1330 static bool guc_submit_hint_wedged(struct xe_guc *guc)
1331 {
1332 struct xe_device *xe = guc_to_xe(guc);
1333
1334 if (xe->wedged.mode != XE_WEDGED_MODE_UPON_ANY_HANG_NO_RESET)
1335 return false;
1336
1337 if (xe_device_wedged(xe))
1338 return true;
1339
1340 xe_device_declare_wedged(xe);
1341
1342 return true;
1343 }
1344
1345 #define ADJUST_FIVE_PERCENT(__t) mul_u64_u32_div(__t, 105, 100)
1346
check_timeout(struct xe_exec_queue * q,struct xe_sched_job * job)1347 static bool check_timeout(struct xe_exec_queue *q, struct xe_sched_job *job)
1348 {
1349 struct xe_gt *gt = guc_to_gt(exec_queue_to_guc(q));
1350 u32 ctx_timestamp, ctx_job_timestamp;
1351 u32 timeout_ms = q->sched_props.job_timeout_ms;
1352 u32 diff;
1353 u64 running_time_ms;
1354
1355 if (!xe_sched_job_started(job)) {
1356 xe_gt_warn(gt, "Check job timeout: seqno=%u, lrc_seqno=%u, guc_id=%d, not started",
1357 xe_sched_job_seqno(job), xe_sched_job_lrc_seqno(job),
1358 q->guc->id);
1359
1360 /* GuC never scheduled this job - let the caller trigger a GT reset. */
1361 return true;
1362 }
1363
1364 ctx_timestamp = lower_32_bits(xe_lrc_timestamp(q->lrc[0]));
1365 if (ctx_timestamp == job->sample_timestamp) {
1366 if (IS_SRIOV_VF(gt_to_xe(gt)))
1367 xe_gt_notice(gt, "Check job timeout: seqno=%u, lrc_seqno=%u, guc_id=%d, timestamp stuck",
1368 xe_sched_job_seqno(job),
1369 xe_sched_job_lrc_seqno(job), q->guc->id);
1370 else
1371 xe_gt_warn(gt, "Check job timeout: seqno=%u, lrc_seqno=%u, guc_id=%d, timestamp stuck",
1372 xe_sched_job_seqno(job),
1373 xe_sched_job_lrc_seqno(job), q->guc->id);
1374
1375 return xe_sched_invalidate_job(job, 0);
1376 }
1377
1378 job->sample_timestamp = ctx_timestamp;
1379 ctx_job_timestamp = xe_lrc_ctx_job_timestamp(q->lrc[0]);
1380
1381 /*
1382 * Counter wraps at ~223s at the usual 19.2MHz, be paranoid catch
1383 * possible overflows with a high timeout.
1384 */
1385 xe_gt_assert(gt, timeout_ms < 100 * MSEC_PER_SEC);
1386
1387 diff = ctx_timestamp - ctx_job_timestamp;
1388
1389 /*
1390 * Ensure timeout is within 5% to account for an GuC scheduling latency
1391 */
1392 running_time_ms =
1393 ADJUST_FIVE_PERCENT(xe_gt_clock_interval_to_ms(gt, diff));
1394
1395 xe_gt_dbg(gt,
1396 "Check job timeout: seqno=%u, lrc_seqno=%u, guc_id=%d, running_time_ms=%llu, timeout_ms=%u, diff=0x%08x",
1397 xe_sched_job_seqno(job), xe_sched_job_lrc_seqno(job),
1398 q->guc->id, running_time_ms, timeout_ms, diff);
1399
1400 return running_time_ms >= timeout_ms;
1401 }
1402
enable_scheduling(struct xe_exec_queue * q)1403 static void enable_scheduling(struct xe_exec_queue *q)
1404 {
1405 MAKE_SCHED_CONTEXT_ACTION(q, ENABLE);
1406 struct xe_guc *guc = exec_queue_to_guc(q);
1407 int ret;
1408
1409 xe_gt_assert(guc_to_gt(guc), !exec_queue_destroyed(q));
1410 xe_gt_assert(guc_to_gt(guc), exec_queue_registered(q));
1411 xe_gt_assert(guc_to_gt(guc), !exec_queue_pending_disable(q));
1412 xe_gt_assert(guc_to_gt(guc), !exec_queue_pending_enable(q));
1413
1414 set_exec_queue_pending_enable(q);
1415 set_exec_queue_enabled(q);
1416 trace_xe_exec_queue_scheduling_enable(q);
1417
1418 if (xe_exec_queue_is_multi_queue_secondary(q))
1419 handle_multi_queue_secondary_sched_done(guc, q, 1);
1420 else
1421 xe_guc_ct_send(&guc->ct, action, ARRAY_SIZE(action),
1422 G2H_LEN_DW_SCHED_CONTEXT_MODE_SET, 1);
1423
1424 ret = wait_event_timeout(guc->ct.wq,
1425 !exec_queue_pending_enable(q) ||
1426 xe_guc_read_stopped(guc) ||
1427 vf_recovery(guc), HZ * 5);
1428 if ((!ret && !vf_recovery(guc)) || xe_guc_read_stopped(guc)) {
1429 xe_gt_warn(guc_to_gt(guc), "Schedule enable failed to respond");
1430 set_exec_queue_banned(q);
1431 xe_gt_reset_async(q->gt);
1432 xe_sched_tdr_queue_imm(&q->guc->sched);
1433 }
1434 }
1435
disable_scheduling(struct xe_exec_queue * q,bool immediate)1436 static void disable_scheduling(struct xe_exec_queue *q, bool immediate)
1437 {
1438 MAKE_SCHED_CONTEXT_ACTION(q, DISABLE);
1439 struct xe_guc *guc = exec_queue_to_guc(q);
1440
1441 xe_gt_assert(guc_to_gt(guc), !exec_queue_destroyed(q));
1442 xe_gt_assert(guc_to_gt(guc), exec_queue_registered(q));
1443 xe_gt_assert(guc_to_gt(guc), !exec_queue_pending_disable(q));
1444
1445 if (immediate && !xe_exec_queue_is_multi_queue_secondary(q))
1446 set_min_preemption_timeout(guc, q);
1447 clear_exec_queue_enabled(q);
1448 set_exec_queue_pending_disable(q);
1449 trace_xe_exec_queue_scheduling_disable(q);
1450
1451 if (xe_exec_queue_is_multi_queue_secondary(q))
1452 handle_multi_queue_secondary_sched_done(guc, q, 0);
1453 else
1454 xe_guc_ct_send(&guc->ct, action, ARRAY_SIZE(action),
1455 G2H_LEN_DW_SCHED_CONTEXT_MODE_SET, 1);
1456 }
1457
1458 /*
1459 * Recover via GT reset for a kernel queue, or for a GuC scheduling failure (job
1460 * never started) on a queue that was not already killed or banned. An already
1461 * banned queue must stay banned, so its unstarted jobs do not clear the ban or
1462 * trigger a reset.
1463 */
timeout_needs_gt_reset(struct xe_exec_queue * q,struct xe_sched_job * job,bool skip_timeout_check)1464 static bool timeout_needs_gt_reset(struct xe_exec_queue *q, struct xe_sched_job *job,
1465 bool skip_timeout_check)
1466 {
1467 if (q->flags & EXEC_QUEUE_FLAG_KERNEL)
1468 return true;
1469
1470 return !skip_timeout_check && !xe_sched_job_started(job);
1471 }
1472
1473 static enum drm_gpu_sched_stat
guc_exec_queue_timedout_job(struct drm_sched_job * drm_job)1474 guc_exec_queue_timedout_job(struct drm_sched_job *drm_job)
1475 {
1476 struct xe_sched_job *job = to_xe_sched_job(drm_job);
1477 struct drm_sched_job *tmp_job;
1478 struct xe_exec_queue *q = job->q, *primary;
1479 struct xe_gpu_scheduler *sched = &q->guc->sched;
1480 struct xe_guc *guc = exec_queue_to_guc(q);
1481 const char *process_name = "no process";
1482 struct xe_device *xe = guc_to_xe(guc);
1483 int err = -ETIME;
1484 pid_t pid = -1;
1485 bool wedged = false, wedge_device = false, skip_timeout_check;
1486
1487 xe_gt_assert(guc_to_gt(guc), !exec_queue_destroyed(q));
1488
1489 primary = xe_exec_queue_multi_queue_primary(q);
1490
1491 /*
1492 * TDR has fired before free job worker. Common if exec queue
1493 * immediately closed after last fence signaled. Add back to pending
1494 * list so job can be freed and kick scheduler ensuring free job is not
1495 * lost.
1496 */
1497 if (test_bit(DMA_FENCE_FLAG_SIGNALED_BIT, &job->fence->flags) ||
1498 vf_recovery(guc))
1499 return DRM_GPU_SCHED_STAT_NO_HANG;
1500
1501 /* Kill the run_job entry point */
1502 if (xe_exec_queue_is_multi_queue(q))
1503 xe_guc_exec_queue_group_stop(q);
1504 else
1505 xe_sched_submission_stop(sched);
1506
1507 /* Must check all state after stopping scheduler */
1508 skip_timeout_check = exec_queue_reset(q) ||
1509 exec_queue_killed_or_banned_or_wedged(q);
1510
1511 /* Skip timeout check if multi-queue group is banned */
1512 if (xe_exec_queue_is_multi_queue(q) &&
1513 READ_ONCE(q->multi_queue.group->banned))
1514 skip_timeout_check = true;
1515
1516 /* LR jobs can only get here if queue has been killed or hit an error */
1517 if (xe_exec_queue_is_lr(q))
1518 xe_gt_assert(guc_to_gt(guc), skip_timeout_check);
1519
1520 /*
1521 * If devcoredump not captured and GuC capture for the job is not ready
1522 * do manual capture first and decide later if we need to use it
1523 */
1524 if (!exec_queue_killed(q) && !xe->devcoredump.captured &&
1525 !xe_guc_capture_get_matching_and_lock(q)) {
1526 /* take force wake before engine register manual capture */
1527 CLASS(xe_force_wake, fw_ref)(gt_to_fw(q->gt), XE_FORCEWAKE_ALL);
1528 if (!xe_force_wake_ref_has_domain(fw_ref.domains, XE_FORCEWAKE_ALL))
1529 xe_gt_info(q->gt, "failed to get forcewake for coredump capture\n");
1530
1531 xe_engine_snapshot_capture_for_queue(q);
1532 }
1533
1534 /*
1535 * Check if job is actually timed out, if so restart job execution and TDR
1536 */
1537 if (!skip_timeout_check && !check_timeout(q, job))
1538 goto rearm;
1539
1540 if (!exec_queue_killed(q))
1541 wedged = guc_submit_hint_wedged(exec_queue_to_guc(q));
1542
1543 set_exec_queue_banned(q);
1544
1545 /* Kick job / queue off hardware */
1546 if (!wedged && (exec_queue_enabled(primary) ||
1547 exec_queue_pending_disable(primary))) {
1548 int ret;
1549
1550 if (exec_queue_reset(primary))
1551 err = -EIO;
1552
1553 if (xe_uc_fw_is_running(&guc->fw)) {
1554 /*
1555 * Wait for any pending G2H to flush out before
1556 * modifying state
1557 */
1558 ret = wait_event_timeout(guc->ct.wq,
1559 (!exec_queue_pending_enable(primary) &&
1560 !exec_queue_pending_disable(primary)) ||
1561 xe_guc_read_stopped(guc) ||
1562 vf_recovery(guc), HZ * 5);
1563 if (vf_recovery(guc))
1564 goto handle_vf_resume;
1565 if (!ret || xe_guc_read_stopped(guc))
1566 goto trigger_reset;
1567
1568 disable_scheduling(primary, skip_timeout_check);
1569 }
1570
1571 /*
1572 * Must wait for scheduling to be disabled before signalling
1573 * any fences, if GT broken the GT reset code should signal us.
1574 *
1575 * FIXME: Tests can generate a ton of 0x6000 (IOMMU CAT fault
1576 * error) messages which can cause the schedule disable to get
1577 * lost. If this occurs, trigger a GT reset to recover.
1578 */
1579 smp_rmb();
1580 ret = wait_event_timeout(guc->ct.wq,
1581 !xe_uc_fw_is_running(&guc->fw) ||
1582 !exec_queue_pending_disable(primary) ||
1583 xe_guc_read_stopped(guc) ||
1584 vf_recovery(guc), HZ * 5);
1585 if (vf_recovery(guc))
1586 goto handle_vf_resume;
1587 if (!ret || xe_guc_read_stopped(guc)) {
1588 trigger_reset:
1589 if (!ret)
1590 xe_gt_warn(guc_to_gt(guc),
1591 "Schedule disable failed to respond, guc_id=%d",
1592 primary->guc->id);
1593 xe_devcoredump(primary, job,
1594 "Schedule disable failed to respond, guc_id=%d, ret=%d, guc_read=%d",
1595 primary->guc->id, ret, xe_guc_read_stopped(guc));
1596 xe_gt_reset_async(primary->gt);
1597 xe_sched_tdr_queue_imm(sched);
1598 goto rearm;
1599 }
1600 }
1601
1602 if (q->vm && q->vm->xef) {
1603 process_name = q->vm->xef->process_name;
1604 pid = q->vm->xef->pid;
1605 }
1606
1607 if (!exec_queue_killed(q))
1608 xe_gt_notice(guc_to_gt(guc),
1609 "Timedout job: seqno=%u, lrc_seqno=%u, guc_id=%d, flags=0x%lx in %s [%d]",
1610 xe_sched_job_seqno(job), xe_sched_job_lrc_seqno(job),
1611 q->guc->id, q->flags, process_name, pid);
1612
1613 trace_xe_sched_job_timedout(job);
1614
1615 if (!exec_queue_killed(q))
1616 xe_devcoredump(q, job,
1617 "Timedout job - seqno=%u, lrc_seqno=%u, guc_id=%d, flags=0x%lx",
1618 xe_sched_job_seqno(job), xe_sched_job_lrc_seqno(job),
1619 q->guc->id, q->flags);
1620
1621 if (!wedged) {
1622 if (timeout_needs_gt_reset(q, job, skip_timeout_check)) {
1623 if (!xe_sched_invalidate_job(job, 2)) {
1624 clear_exec_queue_banned(q);
1625 xe_gt_reset_async(q->gt);
1626 goto rearm;
1627 }
1628 if (q->flags & EXEC_QUEUE_FLAG_KERNEL) {
1629 xe_gt_WARN(q->gt, true, "Kernel-submitted job timed out\n");
1630 wedge_device = true;
1631 }
1632 } else if (q->flags & EXEC_QUEUE_FLAG_VM && !exec_queue_killed(q)) {
1633 xe_gt_WARN(q->gt, true, "VM job timed out on non-killed execqueue\n");
1634 }
1635 }
1636
1637 /* Mark all outstanding jobs as bad, thus completing them */
1638 xe_sched_job_set_error(job, err);
1639 drm_sched_for_each_pending_job(tmp_job, &sched->base, NULL)
1640 xe_sched_job_set_error(to_xe_sched_job(tmp_job), -ECANCELED);
1641
1642 if (xe_exec_queue_is_multi_queue(q)) {
1643 xe_guc_exec_queue_group_start(q);
1644 xe_guc_exec_queue_group_trigger_cleanup(q);
1645 } else {
1646 xe_sched_submission_start(sched);
1647 xe_guc_exec_queue_trigger_cleanup(q);
1648 }
1649
1650 if (wedge_device)
1651 xe_device_declare_wedged(gt_to_xe(q->gt));
1652
1653 /*
1654 * We want the job added back to the pending list so it gets freed; this
1655 * is what DRM_GPU_SCHED_STAT_NO_HANG does.
1656 */
1657 return DRM_GPU_SCHED_STAT_NO_HANG;
1658
1659 rearm:
1660 /*
1661 * XXX: Ideally want to adjust timeout based on current execution time
1662 * but there is not currently an easy way to do in DRM scheduler. With
1663 * some thought, do this in a follow up.
1664 */
1665 if (xe_exec_queue_is_multi_queue(q))
1666 xe_guc_exec_queue_group_start(q);
1667 else
1668 xe_sched_submission_start(sched);
1669 handle_vf_resume:
1670 return DRM_GPU_SCHED_STAT_NO_HANG;
1671 }
1672
guc_exec_queue_fini(struct xe_exec_queue * q)1673 static void guc_exec_queue_fini(struct xe_exec_queue *q)
1674 {
1675 struct xe_guc_exec_queue *ge = q->guc;
1676 struct xe_guc *guc = exec_queue_to_guc(q);
1677 struct drm_device *drm = &guc_to_xe(guc)->drm;
1678
1679 if (xe_exec_queue_is_multi_queue_secondary(q)) {
1680 struct xe_exec_queue_group *group = q->multi_queue.group;
1681
1682 mutex_lock(&group->list_lock);
1683 list_del(&q->multi_queue.link);
1684 mutex_unlock(&group->list_lock);
1685 }
1686
1687 release_guc_id(guc, q);
1688 xe_sched_entity_fini(&ge->entity);
1689 xe_sched_fini(&ge->sched);
1690
1691 /*
1692 * RCU free due sched being exported via DRM scheduler fences
1693 * (timeline name).
1694 */
1695 kfree_rcu(ge, rcu);
1696
1697 drm_dev_put(drm);
1698 }
1699
guc_exec_queue_do_destroy(struct xe_exec_queue * q)1700 static void guc_exec_queue_do_destroy(struct xe_exec_queue *q)
1701 {
1702 struct xe_guc_exec_queue *ge = q->guc;
1703 struct xe_guc *guc = exec_queue_to_guc(q);
1704 struct xe_device *xe = guc_to_xe(guc);
1705 struct drm_device *drm = &xe->drm;
1706
1707 /*
1708 * guc_exec_queue_fini() drops the queue's drm_device ref.
1709 * Keep the device alive until the PM-runtime guard unwinds.
1710 */
1711 drm_dev_get(drm);
1712
1713 scoped_guard(xe_pm_runtime, xe) {
1714 trace_xe_exec_queue_destroy(q);
1715
1716 /* Confirm no work left behind accessing device structures */
1717 cancel_delayed_work_sync(&ge->sched.base.work_tdr);
1718
1719 xe_exec_queue_fini(q);
1720 }
1721
1722 drm_dev_put(drm);
1723 }
1724
__guc_exec_queue_destroy_async(struct work_struct * w)1725 static void __guc_exec_queue_destroy_async(struct work_struct *w)
1726 {
1727 struct xe_guc_exec_queue *ge =
1728 container_of(w, struct xe_guc_exec_queue, destroy_async);
1729
1730 guc_exec_queue_do_destroy(ge->q);
1731 }
1732
guc_exec_queue_destroy_async(struct xe_exec_queue * q)1733 static void guc_exec_queue_destroy_async(struct xe_exec_queue *q)
1734 {
1735 INIT_WORK(&q->guc->destroy_async, __guc_exec_queue_destroy_async);
1736
1737 /* We must block on kernel engines so slabs are empty on driver unload */
1738 if (q->flags & EXEC_QUEUE_FLAG_PERMANENT || exec_queue_wedged(q))
1739 guc_exec_queue_do_destroy(q);
1740 else
1741 xe_destroy_wq_queue(&q->guc->destroy_async);
1742 }
1743
__guc_exec_queue_destroy(struct xe_guc * guc,struct xe_exec_queue * q)1744 static void __guc_exec_queue_destroy(struct xe_guc *guc, struct xe_exec_queue *q)
1745 {
1746 /*
1747 * Might be done from within the GPU scheduler, need to do async as we
1748 * fini the scheduler when the engine is fini'd, the scheduler can't
1749 * complete fini within itself (circular dependency). Async resolves
1750 * this we and don't really care when everything is fini'd, just that it
1751 * is.
1752 */
1753 guc_exec_queue_destroy_async(q);
1754 }
1755
__guc_exec_queue_process_msg_cleanup(struct xe_sched_msg * msg)1756 static void __guc_exec_queue_process_msg_cleanup(struct xe_sched_msg *msg)
1757 {
1758 struct xe_exec_queue *q = msg->private_data;
1759 struct xe_guc *guc = exec_queue_to_guc(q);
1760
1761 xe_gt_assert(guc_to_gt(guc), !(q->flags & EXEC_QUEUE_FLAG_PERMANENT));
1762 trace_xe_exec_queue_cleanup_entity(q);
1763
1764 /*
1765 * Expected state transitions for cleanup:
1766 * - If the exec queue is registered and GuC firmware is running, we must first
1767 * disable scheduling and deregister the queue to ensure proper teardown and
1768 * resource release in the GuC, then destroy the exec queue on driver side.
1769 * - If the GuC is already stopped (e.g., during driver unload or GPU reset),
1770 * we cannot expect a response for the deregister request. In this case,
1771 * it is safe to directly destroy the exec queue on driver side, as the GuC
1772 * will not process further requests and all resources must be cleaned up locally.
1773 */
1774 if (exec_queue_registered(q) && xe_uc_fw_is_running(&guc->fw))
1775 disable_scheduling_deregister(guc, q);
1776 else
1777 __guc_exec_queue_destroy(guc, q);
1778 }
1779
guc_exec_queue_allowed_to_change_state(struct xe_exec_queue * q)1780 static bool guc_exec_queue_allowed_to_change_state(struct xe_exec_queue *q)
1781 {
1782 return !exec_queue_killed_or_banned_or_wedged(q) && exec_queue_registered(q);
1783 }
1784
__guc_exec_queue_process_msg_set_sched_props(struct xe_sched_msg * msg)1785 static void __guc_exec_queue_process_msg_set_sched_props(struct xe_sched_msg *msg)
1786 {
1787 struct xe_exec_queue *q = msg->private_data;
1788 struct xe_guc *guc = exec_queue_to_guc(q);
1789
1790 if (guc_exec_queue_allowed_to_change_state(q))
1791 init_policies(guc, q);
1792 kfree(msg);
1793 }
1794
__suspend_fence_signal(struct xe_exec_queue * q)1795 static void __suspend_fence_signal(struct xe_exec_queue *q)
1796 {
1797 struct xe_guc *guc = exec_queue_to_guc(q);
1798 struct xe_device *xe = guc_to_xe(guc);
1799
1800 if (!q->guc->suspend_pending)
1801 return;
1802
1803 WRITE_ONCE(q->guc->suspend_pending, false);
1804
1805 /*
1806 * We use a GuC shared wait queue for VFs because the VF resfix start
1807 * interrupt must be able to wake all instances of suspend_wait. This
1808 * prevents the VF migration worker from being starved during
1809 * scheduling.
1810 */
1811 if (IS_SRIOV_VF(xe))
1812 wake_up_all(&guc->ct.wq);
1813 else
1814 wake_up(&q->guc->suspend_wait);
1815 }
1816
suspend_fence_signal(struct xe_exec_queue * q)1817 static void suspend_fence_signal(struct xe_exec_queue *q)
1818 {
1819 struct xe_guc *guc = exec_queue_to_guc(q);
1820
1821 xe_gt_assert(guc_to_gt(guc), exec_queue_suspended(q) || exec_queue_killed(q) ||
1822 xe_guc_read_stopped(guc));
1823 xe_gt_assert(guc_to_gt(guc), q->guc->suspend_pending);
1824
1825 __suspend_fence_signal(q);
1826 }
1827
__guc_exec_queue_process_msg_suspend(struct xe_sched_msg * msg)1828 static void __guc_exec_queue_process_msg_suspend(struct xe_sched_msg *msg)
1829 {
1830 struct xe_exec_queue *q = msg->private_data;
1831 struct xe_guc *guc = exec_queue_to_guc(q);
1832
1833 if (guc_exec_queue_allowed_to_change_state(q) && !exec_queue_suspended(q) &&
1834 exec_queue_enabled(q)) {
1835 wait_event(guc->ct.wq, vf_recovery(guc) ||
1836 ((q->guc->resume_time != RESUME_PENDING ||
1837 xe_guc_read_stopped(guc)) && !exec_queue_pending_disable(q)));
1838
1839 if (!xe_guc_read_stopped(guc)) {
1840 s64 since_resume_ms =
1841 ktime_ms_delta(ktime_get(),
1842 q->guc->resume_time);
1843 s64 wait_ms = q->vm->preempt.min_run_period_ms -
1844 since_resume_ms;
1845
1846 if (wait_ms > 0 && q->guc->resume_time)
1847 xe_sleep_relaxed_ms(wait_ms);
1848
1849 set_exec_queue_suspended(q);
1850 disable_scheduling(q, false);
1851 }
1852 } else if (q->guc->suspend_pending) {
1853 set_exec_queue_suspended(q);
1854 suspend_fence_signal(q);
1855 }
1856 }
1857
__guc_exec_queue_process_msg_resume(struct xe_sched_msg * msg)1858 static void __guc_exec_queue_process_msg_resume(struct xe_sched_msg *msg)
1859 {
1860 struct xe_exec_queue *q = msg->private_data;
1861
1862 if (guc_exec_queue_allowed_to_change_state(q)) {
1863 clear_exec_queue_suspended(q);
1864 if (!exec_queue_enabled(q)) {
1865 q->guc->resume_time = RESUME_PENDING;
1866 set_exec_queue_pending_resume(q);
1867 enable_scheduling(q);
1868 }
1869 } else {
1870 clear_exec_queue_suspended(q);
1871 }
1872 }
1873
__guc_exec_queue_process_msg_set_multi_queue_priority(struct xe_sched_msg * msg)1874 static void __guc_exec_queue_process_msg_set_multi_queue_priority(struct xe_sched_msg *msg)
1875 {
1876 struct xe_exec_queue *q = msg->private_data;
1877
1878 if (guc_exec_queue_allowed_to_change_state(q))
1879 guc_exec_queue_send_cgp_sync(q);
1880
1881 kfree(msg);
1882 }
1883
1884 #define CLEANUP 1 /* Non-zero values to catch uninitialized msg */
1885 #define SET_SCHED_PROPS 2
1886 #define SUSPEND 3
1887 #define RESUME 4
1888 #define SET_MULTI_QUEUE_PRIORITY 5
1889 #define OPCODE_MASK 0xf
1890 #define MSG_LOCKED BIT(8)
1891 #define MSG_HEAD BIT(9)
1892
guc_exec_queue_process_msg(struct xe_sched_msg * msg)1893 static void guc_exec_queue_process_msg(struct xe_sched_msg *msg)
1894 {
1895 struct xe_device *xe = guc_to_xe(exec_queue_to_guc(msg->private_data));
1896
1897 trace_xe_sched_msg_recv(msg);
1898
1899 switch (msg->opcode) {
1900 case CLEANUP:
1901 __guc_exec_queue_process_msg_cleanup(msg);
1902 break;
1903 case SET_SCHED_PROPS:
1904 __guc_exec_queue_process_msg_set_sched_props(msg);
1905 break;
1906 case SUSPEND:
1907 __guc_exec_queue_process_msg_suspend(msg);
1908 break;
1909 case RESUME:
1910 __guc_exec_queue_process_msg_resume(msg);
1911 break;
1912 case SET_MULTI_QUEUE_PRIORITY:
1913 __guc_exec_queue_process_msg_set_multi_queue_priority(msg);
1914 break;
1915 default:
1916 XE_WARN_ON("Unknown message type");
1917 }
1918
1919 xe_pm_runtime_put(xe);
1920 }
1921
1922 static const struct drm_sched_backend_ops drm_sched_ops = {
1923 .run_job = guc_exec_queue_run_job,
1924 .free_job = guc_exec_queue_free_job,
1925 .timedout_job = guc_exec_queue_timedout_job,
1926 };
1927
1928 static const struct xe_sched_backend_ops xe_sched_ops = {
1929 .process_msg = guc_exec_queue_process_msg,
1930 };
1931
guc_exec_queue_init(struct xe_exec_queue * q)1932 static int guc_exec_queue_init(struct xe_exec_queue *q)
1933 {
1934 struct xe_gpu_scheduler *sched;
1935 struct xe_guc *guc = exec_queue_to_guc(q);
1936 struct drm_device *drm = &guc_to_xe(guc)->drm;
1937 struct workqueue_struct *submit_wq = NULL;
1938 struct xe_guc_exec_queue *ge;
1939 long timeout;
1940 int err, i;
1941
1942 xe_gt_assert(guc_to_gt(guc), xe_device_uc_enabled(guc_to_xe(guc)));
1943
1944 ge = kzalloc_obj(*ge);
1945 if (!ge)
1946 return -ENOMEM;
1947
1948 drm_dev_get(drm);
1949
1950 q->guc = ge;
1951 ge->q = q;
1952 init_rcu_head(&ge->rcu);
1953 init_waitqueue_head(&ge->suspend_wait);
1954
1955 for (i = 0; i < MAX_STATIC_MSG_TYPE; ++i)
1956 INIT_LIST_HEAD(&ge->static_msgs[i].link);
1957
1958 timeout = (q->vm && xe_vm_in_lr_mode(q->vm)) ? MAX_SCHEDULE_TIMEOUT :
1959 msecs_to_jiffies(q->sched_props.job_timeout_ms);
1960
1961 err = alloc_guc_id(guc, q);
1962 if (err)
1963 goto err_free;
1964
1965 xe_exec_queue_assign_name(q, q->guc->id);
1966
1967 strscpy(ge->name, q->name, sizeof(ge->name));
1968
1969 /*
1970 * Use primary queue's submit_wq for all secondary queues of a
1971 * multi queue group. This serialization avoids any locking around
1972 * CGP synchronization with GuC.
1973 */
1974 if (xe_exec_queue_is_multi_queue_secondary(q)) {
1975 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
1976
1977 submit_wq = primary->guc->sched.base.submit_wq;
1978 }
1979
1980 err = xe_sched_init(&ge->sched, &drm_sched_ops, &xe_sched_ops,
1981 submit_wq, xe_lrc_ring_size() / MAX_JOB_SIZE_BYTES, 64,
1982 timeout, guc_to_gt(guc)->ordered_wq, NULL,
1983 ge->name, gt_to_xe(q->gt)->drm.dev);
1984 if (err)
1985 goto err_release_id;
1986
1987 sched = &ge->sched;
1988 err = xe_sched_entity_init(&ge->entity, sched);
1989 if (err)
1990 goto err_sched;
1991
1992 q->entity = &ge->entity;
1993
1994 mutex_lock(&guc->submission_state.lock);
1995 if (xe_guc_read_stopped(guc) || vf_recovery(guc))
1996 xe_sched_stop(sched);
1997 publish_guc_id(guc, q);
1998 mutex_unlock(&guc->submission_state.lock);
1999
2000 /*
2001 * Maintain secondary queues of the multi queue group in a list
2002 * for handling dependencies across the queues in the group.
2003 */
2004 if (xe_exec_queue_is_multi_queue_secondary(q)) {
2005 struct xe_exec_queue_group *group = q->multi_queue.group;
2006
2007 INIT_LIST_HEAD(&q->multi_queue.link);
2008 mutex_lock(&group->list_lock);
2009 if (group->stopped)
2010 WRITE_ONCE(q->guc->sched.base.pause_submit, true);
2011 list_add_tail(&q->multi_queue.link, &group->list);
2012 mutex_unlock(&group->list_lock);
2013 }
2014
2015 if (xe_exec_queue_is_multi_queue(q))
2016 trace_xe_exec_queue_create_multi_queue(q);
2017 else
2018 trace_xe_exec_queue_create(q);
2019
2020 return 0;
2021
2022 err_sched:
2023 xe_sched_fini(&ge->sched);
2024 err_release_id:
2025 release_guc_id(guc, q);
2026 err_free:
2027 kfree(ge);
2028 drm_dev_put(drm);
2029
2030 return err;
2031 }
2032
guc_exec_queue_kill(struct xe_exec_queue * q)2033 static void guc_exec_queue_kill(struct xe_exec_queue *q)
2034 {
2035 trace_xe_exec_queue_kill(q);
2036 set_exec_queue_killed(q);
2037 __suspend_fence_signal(q);
2038 xe_guc_exec_queue_trigger_cleanup(q);
2039 }
2040
guc_exec_queue_add_msg(struct xe_exec_queue * q,struct xe_sched_msg * msg,u32 opcode)2041 static void guc_exec_queue_add_msg(struct xe_exec_queue *q, struct xe_sched_msg *msg,
2042 u32 opcode)
2043 {
2044 xe_pm_runtime_get_noresume(guc_to_xe(exec_queue_to_guc(q)));
2045
2046 INIT_LIST_HEAD(&msg->link);
2047 msg->opcode = opcode & OPCODE_MASK;
2048 msg->private_data = q;
2049
2050 trace_xe_sched_msg_add(msg);
2051 if (opcode & MSG_HEAD)
2052 xe_sched_add_msg_head(&q->guc->sched, msg);
2053 else if (opcode & MSG_LOCKED)
2054 xe_sched_add_msg_locked(&q->guc->sched, msg);
2055 else
2056 xe_sched_add_msg(&q->guc->sched, msg);
2057 }
2058
guc_exec_queue_try_add_msg_head(struct xe_exec_queue * q,struct xe_sched_msg * msg,u32 opcode)2059 static void guc_exec_queue_try_add_msg_head(struct xe_exec_queue *q,
2060 struct xe_sched_msg *msg,
2061 u32 opcode)
2062 {
2063 if (!list_empty(&msg->link))
2064 return;
2065
2066 guc_exec_queue_add_msg(q, msg, opcode | MSG_LOCKED | MSG_HEAD);
2067 }
2068
guc_exec_queue_try_add_msg(struct xe_exec_queue * q,struct xe_sched_msg * msg,u32 opcode)2069 static bool guc_exec_queue_try_add_msg(struct xe_exec_queue *q,
2070 struct xe_sched_msg *msg,
2071 u32 opcode)
2072 {
2073 if (!list_empty(&msg->link))
2074 return false;
2075
2076 guc_exec_queue_add_msg(q, msg, opcode | MSG_LOCKED);
2077
2078 return true;
2079 }
2080
2081 #define STATIC_MSG_CLEANUP 0
2082 #define STATIC_MSG_SUSPEND 1
2083 #define STATIC_MSG_RESUME 2
guc_exec_queue_destroy(struct xe_exec_queue * q)2084 static void guc_exec_queue_destroy(struct xe_exec_queue *q)
2085 {
2086 struct xe_sched_msg *msg = q->guc->static_msgs + STATIC_MSG_CLEANUP;
2087
2088 if (!(q->flags & EXEC_QUEUE_FLAG_PERMANENT) && !exec_queue_wedged(q))
2089 guc_exec_queue_add_msg(q, msg, CLEANUP);
2090 else
2091 __guc_exec_queue_destroy(exec_queue_to_guc(q), q);
2092 }
2093
guc_exec_queue_set_priority(struct xe_exec_queue * q,enum xe_exec_queue_priority priority)2094 static int guc_exec_queue_set_priority(struct xe_exec_queue *q,
2095 enum xe_exec_queue_priority priority)
2096 {
2097 struct xe_sched_msg *msg;
2098
2099 if (q->sched_props.priority == priority ||
2100 exec_queue_killed_or_banned_or_wedged(q))
2101 return 0;
2102
2103 msg = kmalloc_obj(*msg);
2104 if (!msg)
2105 return -ENOMEM;
2106
2107 q->sched_props.priority = priority;
2108 guc_exec_queue_add_msg(q, msg, SET_SCHED_PROPS);
2109
2110 return 0;
2111 }
2112
guc_exec_queue_set_timeslice(struct xe_exec_queue * q,u32 timeslice_us)2113 static int guc_exec_queue_set_timeslice(struct xe_exec_queue *q, u32 timeslice_us)
2114 {
2115 struct xe_sched_msg *msg;
2116
2117 if (q->sched_props.timeslice_us == timeslice_us ||
2118 exec_queue_killed_or_banned_or_wedged(q))
2119 return 0;
2120
2121 msg = kmalloc_obj(*msg);
2122 if (!msg)
2123 return -ENOMEM;
2124
2125 q->sched_props.timeslice_us = timeslice_us;
2126 guc_exec_queue_add_msg(q, msg, SET_SCHED_PROPS);
2127
2128 return 0;
2129 }
2130
guc_exec_queue_set_preempt_timeout(struct xe_exec_queue * q,u32 preempt_timeout_us)2131 static int guc_exec_queue_set_preempt_timeout(struct xe_exec_queue *q,
2132 u32 preempt_timeout_us)
2133 {
2134 struct xe_sched_msg *msg;
2135
2136 if (q->sched_props.preempt_timeout_us == preempt_timeout_us ||
2137 exec_queue_killed_or_banned_or_wedged(q))
2138 return 0;
2139
2140 msg = kmalloc_obj(*msg);
2141 if (!msg)
2142 return -ENOMEM;
2143
2144 q->sched_props.preempt_timeout_us = preempt_timeout_us;
2145 guc_exec_queue_add_msg(q, msg, SET_SCHED_PROPS);
2146
2147 return 0;
2148 }
2149
guc_exec_queue_set_multi_queue_priority(struct xe_exec_queue * q,enum xe_multi_queue_priority priority)2150 static int guc_exec_queue_set_multi_queue_priority(struct xe_exec_queue *q,
2151 enum xe_multi_queue_priority priority)
2152 {
2153 struct xe_sched_msg *msg;
2154
2155 xe_gt_assert(guc_to_gt(exec_queue_to_guc(q)), xe_exec_queue_is_multi_queue(q));
2156
2157 if (exec_queue_killed_or_banned_or_wedged(q))
2158 return 0;
2159
2160 msg = kmalloc_obj(*msg);
2161 if (!msg)
2162 return -ENOMEM;
2163
2164 scoped_guard(spinlock, &q->multi_queue.lock) {
2165 if (q->multi_queue.priority == priority) {
2166 kfree(msg);
2167 return 0;
2168 }
2169
2170 q->multi_queue.priority = priority;
2171 }
2172
2173 guc_exec_queue_add_msg(q, msg, SET_MULTI_QUEUE_PRIORITY);
2174
2175 return 0;
2176 }
2177
guc_exec_queue_suspend(struct xe_exec_queue * q)2178 static int guc_exec_queue_suspend(struct xe_exec_queue *q)
2179 {
2180 struct xe_gpu_scheduler *sched = &q->guc->sched;
2181 struct xe_sched_msg *msg = q->guc->static_msgs + STATIC_MSG_SUSPEND;
2182
2183 if (exec_queue_killed_or_banned_or_wedged(q))
2184 return -EINVAL;
2185
2186 xe_sched_msg_lock(sched);
2187 if (guc_exec_queue_try_add_msg(q, msg, SUSPEND))
2188 q->guc->suspend_pending = true;
2189 xe_sched_msg_unlock(sched);
2190
2191 return 0;
2192 }
2193
guc_exec_queue_suspend_wait(struct xe_exec_queue * q)2194 static int guc_exec_queue_suspend_wait(struct xe_exec_queue *q)
2195 {
2196 struct xe_guc *guc = exec_queue_to_guc(q);
2197 struct xe_device *xe = guc_to_xe(guc);
2198 int ret;
2199
2200 /*
2201 * Likely don't need to check exec_queue_killed() as we clear
2202 * suspend_pending upon kill but to be paranoid but races in which
2203 * suspend_pending is set after kill also check kill here.
2204 */
2205 #define WAIT_COND \
2206 (!READ_ONCE(q->guc->suspend_pending) || exec_queue_killed(q) || \
2207 xe_guc_read_stopped(guc))
2208
2209 retry:
2210 if (IS_SRIOV_VF(xe))
2211 ret = wait_event_interruptible_timeout(guc->ct.wq, WAIT_COND ||
2212 vf_recovery(guc),
2213 HZ * 5);
2214 else
2215 ret = wait_event_interruptible_timeout(q->guc->suspend_wait,
2216 WAIT_COND, HZ * 5);
2217
2218 if (vf_recovery(guc) && !xe_device_wedged((guc_to_xe(guc))))
2219 return -EAGAIN;
2220
2221 if (!ret) {
2222 xe_gt_warn(guc_to_gt(guc),
2223 "Suspend fence, guc_id=%d, failed to respond",
2224 q->guc->id);
2225 /* XXX: Trigger GT reset? */
2226 return -ETIME;
2227 } else if (IS_SRIOV_VF(xe) && !WAIT_COND) {
2228 /* Corner case on RESFIX DONE where vf_recovery() changes */
2229 goto retry;
2230 }
2231
2232 #undef WAIT_COND
2233
2234 return ret < 0 ? ret : 0;
2235 }
2236
guc_exec_queue_resume(struct xe_exec_queue * q)2237 static void guc_exec_queue_resume(struct xe_exec_queue *q)
2238 {
2239 struct xe_gpu_scheduler *sched = &q->guc->sched;
2240 struct xe_sched_msg *msg = q->guc->static_msgs + STATIC_MSG_RESUME;
2241 struct xe_guc *guc = exec_queue_to_guc(q);
2242
2243 xe_gt_assert(guc_to_gt(guc), !q->guc->suspend_pending);
2244
2245 xe_sched_msg_lock(sched);
2246 guc_exec_queue_try_add_msg(q, msg, RESUME);
2247 xe_sched_msg_unlock(sched);
2248 }
2249
guc_exec_queue_reset_status(struct xe_exec_queue * q)2250 static bool guc_exec_queue_reset_status(struct xe_exec_queue *q)
2251 {
2252 if (xe_exec_queue_is_multi_queue_secondary(q) &&
2253 guc_exec_queue_reset_status(xe_exec_queue_multi_queue_primary(q)))
2254 return true;
2255
2256 return exec_queue_reset(q) || exec_queue_killed_or_banned_or_wedged(q);
2257 }
2258
guc_exec_queue_active(struct xe_exec_queue * q)2259 static bool guc_exec_queue_active(struct xe_exec_queue *q)
2260 {
2261 struct xe_exec_queue *primary = xe_exec_queue_multi_queue_primary(q);
2262
2263 return exec_queue_enabled(primary) &&
2264 !exec_queue_pending_disable(primary);
2265 }
2266
2267 /*
2268 * All of these functions are an abstraction layer which other parts of Xe can
2269 * use to trap into the GuC backend. All of these functions, aside from init,
2270 * really shouldn't do much other than trap into the DRM scheduler which
2271 * synchronizes these operations.
2272 */
2273 static const struct xe_exec_queue_ops guc_exec_queue_ops = {
2274 .init = guc_exec_queue_init,
2275 .kill = guc_exec_queue_kill,
2276 .fini = guc_exec_queue_fini,
2277 .destroy = guc_exec_queue_destroy,
2278 .set_priority = guc_exec_queue_set_priority,
2279 .set_timeslice = guc_exec_queue_set_timeslice,
2280 .set_preempt_timeout = guc_exec_queue_set_preempt_timeout,
2281 .set_multi_queue_priority = guc_exec_queue_set_multi_queue_priority,
2282 .suspend = guc_exec_queue_suspend,
2283 .suspend_wait = guc_exec_queue_suspend_wait,
2284 .resume = guc_exec_queue_resume,
2285 .reset_status = guc_exec_queue_reset_status,
2286 .active = guc_exec_queue_active,
2287 };
2288
guc_exec_queue_stop(struct xe_guc * guc,struct xe_exec_queue * q)2289 static void guc_exec_queue_stop(struct xe_guc *guc, struct xe_exec_queue *q)
2290 {
2291 struct xe_gpu_scheduler *sched = &q->guc->sched;
2292 bool do_destroy = false;
2293
2294 /* Stop scheduling + flush any DRM scheduler operations */
2295 xe_sched_submission_stop(sched);
2296
2297 /* Clean up lost G2H + reset engine state */
2298 if (exec_queue_registered(q)) {
2299 if (exec_queue_destroyed(q))
2300 do_destroy = true;
2301 }
2302 if (q->guc->suspend_pending) {
2303 set_exec_queue_suspended(q);
2304 suspend_fence_signal(q);
2305 }
2306 atomic_and(EXEC_QUEUE_STATE_WEDGED | EXEC_QUEUE_STATE_BANNED |
2307 EXEC_QUEUE_STATE_KILLED | EXEC_QUEUE_STATE_DESTROYED |
2308 EXEC_QUEUE_STATE_SUSPENDED,
2309 &q->guc->state);
2310 q->guc->resume_time = 0;
2311 trace_xe_exec_queue_stop(q);
2312
2313 /*
2314 * Ban any engine (aside from kernel and engines used for VM ops) with a
2315 * started but not complete job or if a job has gone through a GT reset
2316 * more than twice.
2317 */
2318 if (!(q->flags & (EXEC_QUEUE_FLAG_KERNEL | EXEC_QUEUE_FLAG_VM))) {
2319 struct xe_sched_job *job = xe_sched_first_pending_job(sched);
2320 bool ban = false;
2321
2322 if (job) {
2323 if ((xe_sched_job_started(job) &&
2324 !xe_sched_job_completed(job)) ||
2325 xe_sched_invalidate_job(job, 2)) {
2326 trace_xe_sched_job_ban(job);
2327 ban = true;
2328 }
2329 }
2330
2331 if (ban) {
2332 set_exec_queue_banned(q);
2333 xe_guc_exec_queue_trigger_cleanup(q);
2334 }
2335 }
2336
2337 if (do_destroy)
2338 __guc_exec_queue_destroy(guc, q);
2339 }
2340
guc_submit_reset_prepare(struct xe_guc * guc)2341 static int guc_submit_reset_prepare(struct xe_guc *guc)
2342 {
2343 int ret;
2344
2345 /*
2346 * Using an atomic here rather than submission_state.lock as this
2347 * function can be called while holding the CT lock (engine reset
2348 * failure). submission_state.lock needs the CT lock to resubmit jobs.
2349 * Atomic is not ideal, but it works to prevent against concurrent reset
2350 * and releasing any TDRs waiting on guc->submission_state.stopped.
2351 */
2352 ret = atomic_fetch_or(1, &guc->submission_state.stopped);
2353 smp_wmb();
2354 wake_up_all(&guc->ct.wq);
2355
2356 return ret;
2357 }
2358
xe_guc_submit_reset_prepare(struct xe_guc * guc)2359 int xe_guc_submit_reset_prepare(struct xe_guc *guc)
2360 {
2361 if (xe_gt_WARN_ON(guc_to_gt(guc), vf_recovery(guc)))
2362 return 0;
2363
2364 if (!guc->submission_state.initialized)
2365 return 0;
2366
2367 return guc_submit_reset_prepare(guc);
2368 }
2369
xe_guc_submit_reset_wait(struct xe_guc * guc)2370 void xe_guc_submit_reset_wait(struct xe_guc *guc)
2371 {
2372 wait_event(guc->ct.wq, xe_device_wedged(guc_to_xe(guc)) ||
2373 !xe_guc_read_stopped(guc));
2374 }
2375
xe_guc_submit_stop(struct xe_guc * guc)2376 void xe_guc_submit_stop(struct xe_guc *guc)
2377 {
2378 struct xe_exec_queue *q;
2379 unsigned long index;
2380
2381 xe_gt_assert(guc_to_gt(guc), xe_guc_read_stopped(guc) == 1);
2382
2383 mutex_lock(&guc->submission_state.lock);
2384
2385 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2386 /* Prevent redundant attempts to stop parallel queues */
2387 if (q->guc->id != index)
2388 continue;
2389
2390 guc_exec_queue_stop(guc, q);
2391 }
2392
2393 mutex_unlock(&guc->submission_state.lock);
2394
2395 /*
2396 * No one can enter the backend at this point, aside from new engine
2397 * creation which is protected by guc->submission_state.lock.
2398 */
2399
2400 }
2401
guc_exec_queue_revert_pending_state_change(struct xe_guc * guc,struct xe_exec_queue * q)2402 static void guc_exec_queue_revert_pending_state_change(struct xe_guc *guc,
2403 struct xe_exec_queue *q)
2404 {
2405 bool pending_enable, pending_disable, pending_resume;
2406
2407 pending_enable = exec_queue_pending_enable(q);
2408 pending_resume = exec_queue_pending_resume(q);
2409
2410 if (pending_enable && pending_resume) {
2411 q->guc->needs_resume = true;
2412 xe_gt_dbg(guc_to_gt(guc), "Replay RESUME - guc_id=%d",
2413 q->guc->id);
2414 }
2415
2416 if (pending_enable && !pending_resume) {
2417 clear_exec_queue_registered(q);
2418 xe_gt_dbg(guc_to_gt(guc), "Replay REGISTER - guc_id=%d",
2419 q->guc->id);
2420 }
2421
2422 if (pending_enable) {
2423 clear_exec_queue_enabled(q);
2424 clear_exec_queue_pending_resume(q);
2425 clear_exec_queue_pending_enable(q);
2426 xe_gt_dbg(guc_to_gt(guc), "Replay ENABLE - guc_id=%d",
2427 q->guc->id);
2428 }
2429
2430 if (exec_queue_destroyed(q) && exec_queue_registered(q)) {
2431 clear_exec_queue_destroyed(q);
2432 q->guc->needs_cleanup = true;
2433 xe_gt_dbg(guc_to_gt(guc), "Replay CLEANUP - guc_id=%d",
2434 q->guc->id);
2435 }
2436
2437 pending_disable = exec_queue_pending_disable(q);
2438
2439 if (pending_disable && exec_queue_suspended(q)) {
2440 clear_exec_queue_suspended(q);
2441 q->guc->needs_suspend = true;
2442 xe_gt_dbg(guc_to_gt(guc), "Replay SUSPEND - guc_id=%d",
2443 q->guc->id);
2444 }
2445
2446 if (pending_disable) {
2447 if (!pending_enable)
2448 set_exec_queue_enabled(q);
2449 clear_exec_queue_pending_disable(q);
2450 xe_gt_dbg(guc_to_gt(guc), "Replay DISABLE - guc_id=%d",
2451 q->guc->id);
2452 }
2453
2454 q->guc->resume_time = 0;
2455 }
2456
lrc_parallel_clear(struct xe_lrc * lrc)2457 static void lrc_parallel_clear(struct xe_lrc *lrc)
2458 {
2459 struct xe_device *xe = gt_to_xe(lrc->gt);
2460 struct iosys_map map = xe_lrc_parallel_map(lrc);
2461 int i;
2462
2463 for (i = 0; i < WQ_SIZE / sizeof(u32); ++i)
2464 parallel_write(xe, map, wq[i],
2465 FIELD_PREP(WQ_TYPE_MASK, WQ_TYPE_NOOP) |
2466 FIELD_PREP(WQ_LEN_MASK, 0));
2467 }
2468
2469 /*
2470 * This function is quite complex but only real way to ensure no state is lost
2471 * during VF resume flows. The function scans the queue state, make adjustments
2472 * as needed, and queues jobs / messages which replayed upon unpause.
2473 */
guc_exec_queue_pause(struct xe_guc * guc,struct xe_exec_queue * q)2474 static void guc_exec_queue_pause(struct xe_guc *guc, struct xe_exec_queue *q)
2475 {
2476 struct xe_gpu_scheduler *sched = &q->guc->sched;
2477 struct xe_sched_job *job;
2478 int i;
2479
2480 lockdep_assert_held(&guc->submission_state.lock);
2481
2482 /* Stop scheduling + flush any DRM scheduler operations */
2483 xe_sched_submission_stop(sched);
2484 cancel_delayed_work_sync(&sched->base.work_tdr);
2485
2486 guc_exec_queue_revert_pending_state_change(guc, q);
2487
2488 if (xe_exec_queue_is_parallel(q)) {
2489 /* Pairs with WRITE_ONCE in __xe_exec_queue_init */
2490 struct xe_lrc *lrc = READ_ONCE(q->lrc[0]);
2491
2492 /*
2493 * NOP existing WQ commands that may contain stale GGTT
2494 * addresses. These will be replayed upon unpause. The hardware
2495 * seems to get confused if the WQ head/tail pointers are
2496 * adjusted.
2497 */
2498 if (lrc)
2499 lrc_parallel_clear(lrc);
2500 }
2501
2502 job = xe_sched_first_pending_job(sched);
2503 if (job) {
2504 job->restore_replay = true;
2505
2506 /*
2507 * Adjust software tail so jobs submitted overwrite previous
2508 * position in ring buffer with new GGTT addresses.
2509 */
2510 for (i = 0; i < q->width; ++i)
2511 q->lrc[i]->ring.tail = job->ptrs[i].head;
2512 }
2513 }
2514
2515 /**
2516 * xe_guc_submit_pause - Stop further runs of submission tasks on given GuC.
2517 * @guc: the &xe_guc struct instance whose scheduler is to be disabled
2518 */
xe_guc_submit_pause(struct xe_guc * guc)2519 void xe_guc_submit_pause(struct xe_guc *guc)
2520 {
2521 struct xe_exec_queue *q;
2522 unsigned long index;
2523
2524 mutex_lock(&guc->submission_state.lock);
2525 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q)
2526 xe_sched_submission_stop(&q->guc->sched);
2527 mutex_unlock(&guc->submission_state.lock);
2528 }
2529
2530 /**
2531 * xe_guc_submit_pause_vf - Stop further runs of submission tasks for VF.
2532 * @guc: the &xe_guc struct instance whose scheduler is to be disabled
2533 */
xe_guc_submit_pause_vf(struct xe_guc * guc)2534 void xe_guc_submit_pause_vf(struct xe_guc *guc)
2535 {
2536 struct xe_exec_queue *q;
2537 unsigned long index;
2538
2539 xe_gt_assert(guc_to_gt(guc), IS_SRIOV_VF(guc_to_xe(guc)));
2540 xe_gt_assert(guc_to_gt(guc), vf_recovery(guc));
2541
2542 mutex_lock(&guc->submission_state.lock);
2543 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2544 /* Prevent redundant attempts to stop parallel queues */
2545 if (q->guc->id != index)
2546 continue;
2547
2548 guc_exec_queue_pause(guc, q);
2549 }
2550 mutex_unlock(&guc->submission_state.lock);
2551 }
2552
guc_exec_queue_start(struct xe_exec_queue * q)2553 static void guc_exec_queue_start(struct xe_exec_queue *q)
2554 {
2555 struct xe_gpu_scheduler *sched = &q->guc->sched;
2556
2557 if (!exec_queue_killed_or_banned_or_wedged(q)) {
2558 struct xe_sched_job *job = xe_sched_first_pending_job(sched);
2559 int i;
2560
2561 trace_xe_exec_queue_resubmit(q);
2562 if (job) {
2563 for (i = 0; i < q->width; ++i) {
2564 /*
2565 * The GuC context is unregistered at this point
2566 * time, adjusting software ring tail ensures
2567 * jobs are rewritten in original placement,
2568 * adjusting LRC tail ensures the newly loaded
2569 * GuC / contexts only view the LRC tail
2570 * increasing as jobs are written out.
2571 */
2572 q->lrc[i]->ring.tail = job->ptrs[i].head;
2573 xe_lrc_set_ring_tail(q->lrc[i],
2574 xe_lrc_ring_head(q->lrc[i]));
2575 }
2576 }
2577 xe_sched_resubmit_jobs(sched);
2578 }
2579
2580 xe_sched_submission_start(sched);
2581 xe_sched_submission_resume_tdr(sched);
2582 }
2583
xe_guc_submit_start(struct xe_guc * guc)2584 int xe_guc_submit_start(struct xe_guc *guc)
2585 {
2586 struct xe_exec_queue *q;
2587 unsigned long index;
2588
2589 xe_gt_assert(guc_to_gt(guc), xe_guc_read_stopped(guc) == 1);
2590
2591 mutex_lock(&guc->submission_state.lock);
2592 atomic_dec(&guc->submission_state.stopped);
2593 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2594 /* Prevent redundant attempts to start parallel queues */
2595 if (q->guc->id != index)
2596 continue;
2597
2598 guc_exec_queue_start(q);
2599 }
2600 mutex_unlock(&guc->submission_state.lock);
2601
2602 wake_up_all(&guc->ct.wq);
2603
2604 return 0;
2605 }
2606
guc_exec_queue_unpause_prepare(struct xe_guc * guc,struct xe_exec_queue * q)2607 static void guc_exec_queue_unpause_prepare(struct xe_guc *guc,
2608 struct xe_exec_queue *q)
2609 {
2610 struct xe_gpu_scheduler *sched = &q->guc->sched;
2611 struct xe_sched_job *job = NULL;
2612 struct drm_sched_job *s_job;
2613 bool restore_replay = false;
2614
2615 drm_sched_for_each_pending_job(s_job, &sched->base, NULL) {
2616 job = to_xe_sched_job(s_job);
2617 restore_replay |= job->restore_replay;
2618 if (restore_replay) {
2619 xe_gt_dbg(guc_to_gt(guc), "Replay JOB - guc_id=%d, seqno=%d",
2620 q->guc->id, xe_sched_job_seqno(job));
2621
2622 q->ring_ops->emit_job(job);
2623 job->restore_replay = true;
2624 }
2625 }
2626
2627 if (job)
2628 job->last_replay = true;
2629 }
2630
2631 /**
2632 * xe_guc_submit_unpause_prepare_vf - Prepare unpause submission tasks for VF.
2633 * @guc: the &xe_guc struct instance whose scheduler is to be prepared for unpause
2634 */
xe_guc_submit_unpause_prepare_vf(struct xe_guc * guc)2635 void xe_guc_submit_unpause_prepare_vf(struct xe_guc *guc)
2636 {
2637 struct xe_exec_queue *q;
2638 unsigned long index;
2639
2640 xe_gt_assert(guc_to_gt(guc), IS_SRIOV_VF(guc_to_xe(guc)));
2641 xe_gt_assert(guc_to_gt(guc), vf_recovery(guc));
2642
2643 mutex_lock(&guc->submission_state.lock);
2644 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2645 /* Prevent redundant attempts to stop parallel queues */
2646 if (q->guc->id != index)
2647 continue;
2648
2649 guc_exec_queue_unpause_prepare(guc, q);
2650 }
2651 mutex_unlock(&guc->submission_state.lock);
2652 }
2653
guc_exec_queue_replay_pending_state_change(struct xe_exec_queue * q)2654 static void guc_exec_queue_replay_pending_state_change(struct xe_exec_queue *q)
2655 {
2656 struct xe_gpu_scheduler *sched = &q->guc->sched;
2657 struct xe_sched_msg *msg;
2658
2659 if (q->guc->needs_cleanup) {
2660 msg = q->guc->static_msgs + STATIC_MSG_CLEANUP;
2661
2662 guc_exec_queue_add_msg(q, msg, CLEANUP);
2663 q->guc->needs_cleanup = false;
2664 }
2665
2666 if (q->guc->needs_suspend) {
2667 msg = q->guc->static_msgs + STATIC_MSG_SUSPEND;
2668
2669 xe_sched_msg_lock(sched);
2670 guc_exec_queue_try_add_msg_head(q, msg, SUSPEND);
2671 xe_sched_msg_unlock(sched);
2672
2673 q->guc->needs_suspend = false;
2674 }
2675
2676 /*
2677 * The resume must be in the message queue before the suspend as it is
2678 * not possible for a resume to be issued if a suspend pending is, but
2679 * the inverse is possible.
2680 */
2681 if (q->guc->needs_resume) {
2682 msg = q->guc->static_msgs + STATIC_MSG_RESUME;
2683
2684 xe_sched_msg_lock(sched);
2685 guc_exec_queue_try_add_msg_head(q, msg, RESUME);
2686 xe_sched_msg_unlock(sched);
2687
2688 q->guc->needs_resume = false;
2689 }
2690 }
2691
guc_exec_queue_unpause(struct xe_guc * guc,struct xe_exec_queue * q)2692 static void guc_exec_queue_unpause(struct xe_guc *guc, struct xe_exec_queue *q)
2693 {
2694 struct xe_gpu_scheduler *sched = &q->guc->sched;
2695 bool needs_tdr = exec_queue_killed_or_banned_or_wedged(q);
2696
2697 lockdep_assert_held(&guc->submission_state.lock);
2698
2699 xe_sched_resubmit_jobs(sched);
2700 guc_exec_queue_replay_pending_state_change(q);
2701 xe_sched_submission_start(sched);
2702 if (needs_tdr)
2703 xe_guc_exec_queue_trigger_cleanup(q);
2704 xe_sched_submission_resume_tdr(sched);
2705 }
2706
2707 /**
2708 * xe_guc_submit_unpause - Allow further runs of submission tasks on given GuC.
2709 * @guc: the &xe_guc struct instance whose scheduler is to be enabled
2710 */
xe_guc_submit_unpause(struct xe_guc * guc)2711 void xe_guc_submit_unpause(struct xe_guc *guc)
2712 {
2713 struct xe_exec_queue *q;
2714 unsigned long index;
2715
2716 mutex_lock(&guc->submission_state.lock);
2717 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q)
2718 xe_sched_submission_start(&q->guc->sched);
2719 mutex_unlock(&guc->submission_state.lock);
2720 }
2721
2722 /**
2723 * xe_guc_submit_unpause_vf - Allow further runs of submission tasks for VF.
2724 * @guc: the &xe_guc struct instance whose scheduler is to be enabled
2725 */
xe_guc_submit_unpause_vf(struct xe_guc * guc)2726 void xe_guc_submit_unpause_vf(struct xe_guc *guc)
2727 {
2728 struct xe_exec_queue *q;
2729 unsigned long index;
2730
2731 xe_gt_assert(guc_to_gt(guc), IS_SRIOV_VF(guc_to_xe(guc)));
2732
2733 mutex_lock(&guc->submission_state.lock);
2734 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2735 /*
2736 * Prevent redundant attempts to stop parallel queues, or queues
2737 * created after resfix done.
2738 */
2739 if (q->guc->id != index ||
2740 !drm_sched_is_stopped(&q->guc->sched.base))
2741 continue;
2742
2743 guc_exec_queue_unpause(guc, q);
2744 }
2745 mutex_unlock(&guc->submission_state.lock);
2746 }
2747
2748 /**
2749 * xe_guc_submit_pause_abort - Abort all paused submission task on given GuC.
2750 * @guc: the &xe_guc struct instance whose scheduler is to be aborted
2751 */
xe_guc_submit_pause_abort(struct xe_guc * guc)2752 void xe_guc_submit_pause_abort(struct xe_guc *guc)
2753 {
2754 struct xe_exec_queue *q;
2755 unsigned long index;
2756
2757 mutex_lock(&guc->submission_state.lock);
2758 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
2759 struct xe_gpu_scheduler *sched = &q->guc->sched;
2760
2761 /* Prevent redundant attempts to stop parallel queues */
2762 if (q->guc->id != index)
2763 continue;
2764
2765 xe_sched_submission_start(sched);
2766 guc_exec_queue_kill(q);
2767 }
2768 mutex_unlock(&guc->submission_state.lock);
2769 }
2770
2771 static struct xe_exec_queue *
g2h_exec_queue_lookup(struct xe_guc * guc,u32 guc_id)2772 g2h_exec_queue_lookup(struct xe_guc *guc, u32 guc_id)
2773 {
2774 struct xe_gt *gt = guc_to_gt(guc);
2775 struct xe_exec_queue *q;
2776
2777 if (unlikely(guc_id >= GUC_ID_MAX)) {
2778 xe_gt_err(gt, "Invalid guc_id %u\n", guc_id);
2779 return NULL;
2780 }
2781
2782 q = xa_load(&guc->submission_state.exec_queue_lookup, guc_id);
2783 if (unlikely(!q)) {
2784 xe_gt_err(gt, "No exec queue found for guc_id %u\n", guc_id);
2785 return NULL;
2786 }
2787
2788 xe_gt_assert(guc_to_gt(guc), guc_id >= q->guc->id);
2789 xe_gt_assert(guc_to_gt(guc), guc_id < (q->guc->id + q->width));
2790
2791 return q;
2792 }
2793
deregister_exec_queue(struct xe_guc * guc,struct xe_exec_queue * q)2794 static void deregister_exec_queue(struct xe_guc *guc, struct xe_exec_queue *q)
2795 {
2796 u32 action[] = {
2797 XE_GUC_ACTION_DEREGISTER_CONTEXT,
2798 q->guc->id,
2799 };
2800
2801 xe_gt_assert(guc_to_gt(guc), exec_queue_destroyed(q));
2802 xe_gt_assert(guc_to_gt(guc), exec_queue_registered(q));
2803 xe_gt_assert(guc_to_gt(guc), !exec_queue_pending_disable(q));
2804 xe_gt_assert(guc_to_gt(guc), !exec_queue_pending_enable(q));
2805
2806 trace_xe_exec_queue_deregister(q);
2807
2808 if (xe_exec_queue_is_multi_queue_secondary(q))
2809 handle_deregister_done(guc, q);
2810 else
2811 xe_guc_ct_send_g2h_handler(&guc->ct, action,
2812 ARRAY_SIZE(action));
2813 }
2814
handle_sched_done(struct xe_guc * guc,struct xe_exec_queue * q,u32 runnable_state)2815 static void handle_sched_done(struct xe_guc *guc, struct xe_exec_queue *q,
2816 u32 runnable_state)
2817 {
2818 trace_xe_exec_queue_scheduling_done(q);
2819
2820 if (runnable_state == 1) {
2821 xe_gt_assert(guc_to_gt(guc), exec_queue_pending_enable(q));
2822
2823 q->guc->resume_time = ktime_get();
2824 clear_exec_queue_pending_resume(q);
2825 clear_exec_queue_pending_enable(q);
2826 smp_wmb();
2827 wake_up_all(&guc->ct.wq);
2828 } else {
2829 xe_gt_assert(guc_to_gt(guc), runnable_state == 0);
2830 xe_gt_assert(guc_to_gt(guc), exec_queue_pending_disable(q));
2831
2832 if (q->guc->suspend_pending) {
2833 clear_exec_queue_pending_disable(q);
2834 suspend_fence_signal(q);
2835 } else {
2836 if (exec_queue_banned(q)) {
2837 smp_wmb();
2838 wake_up_all(&guc->ct.wq);
2839 }
2840 if (exec_queue_destroyed(q)) {
2841 /*
2842 * Make sure to clear the pending_disable only
2843 * after sampling the destroyed state. We want
2844 * to ensure we don't trigger the unregister too
2845 * early with something intending to only
2846 * disable scheduling. The caller doing the
2847 * destroy must wait for an ongoing
2848 * pending_disable before marking as destroyed.
2849 */
2850 clear_exec_queue_pending_disable(q);
2851 deregister_exec_queue(guc, q);
2852 } else {
2853 clear_exec_queue_pending_disable(q);
2854 }
2855 }
2856 }
2857 }
2858
handle_multi_queue_secondary_sched_done(struct xe_guc * guc,struct xe_exec_queue * q,u32 runnable_state)2859 static void handle_multi_queue_secondary_sched_done(struct xe_guc *guc,
2860 struct xe_exec_queue *q,
2861 u32 runnable_state)
2862 {
2863 /* Take CT lock here as handle_sched_done() do send a h2g message */
2864 mutex_lock(&guc->ct.lock);
2865 handle_sched_done(guc, q, runnable_state);
2866 mutex_unlock(&guc->ct.lock);
2867 }
2868
xe_guc_sched_done_handler(struct xe_guc * guc,u32 * msg,u32 len)2869 int xe_guc_sched_done_handler(struct xe_guc *guc, u32 *msg, u32 len)
2870 {
2871 struct xe_exec_queue *q;
2872 u32 guc_id, runnable_state;
2873
2874 if (unlikely(len < 2))
2875 return -EPROTO;
2876
2877 guc_id = msg[0];
2878 runnable_state = msg[1];
2879
2880 q = g2h_exec_queue_lookup(guc, guc_id);
2881 if (unlikely(!q))
2882 return -EPROTO;
2883
2884 if (unlikely(!exec_queue_pending_enable(q) &&
2885 !exec_queue_pending_disable(q))) {
2886 xe_gt_err(guc_to_gt(guc),
2887 "SCHED_DONE: Unexpected engine state 0x%04x, guc_id=%d, runnable_state=%u",
2888 atomic_read(&q->guc->state), q->guc->id,
2889 runnable_state);
2890 return -EPROTO;
2891 }
2892
2893 handle_sched_done(guc, q, runnable_state);
2894
2895 return 0;
2896 }
2897
handle_deregister_done(struct xe_guc * guc,struct xe_exec_queue * q)2898 static void handle_deregister_done(struct xe_guc *guc, struct xe_exec_queue *q)
2899 {
2900 trace_xe_exec_queue_deregister_done(q);
2901
2902 clear_exec_queue_registered(q);
2903 __guc_exec_queue_destroy(guc, q);
2904 }
2905
xe_guc_deregister_done_handler(struct xe_guc * guc,u32 * msg,u32 len)2906 int xe_guc_deregister_done_handler(struct xe_guc *guc, u32 *msg, u32 len)
2907 {
2908 struct xe_exec_queue *q;
2909 u32 guc_id;
2910
2911 if (unlikely(len < 1))
2912 return -EPROTO;
2913
2914 guc_id = msg[0];
2915
2916 q = g2h_exec_queue_lookup(guc, guc_id);
2917 if (unlikely(!q))
2918 return -EPROTO;
2919
2920 if (!exec_queue_destroyed(q) || exec_queue_pending_disable(q) ||
2921 exec_queue_pending_enable(q) || exec_queue_enabled(q)) {
2922 xe_gt_err(guc_to_gt(guc),
2923 "DEREGISTER_DONE: Unexpected engine state 0x%04x, guc_id=%d",
2924 atomic_read(&q->guc->state), q->guc->id);
2925 return -EPROTO;
2926 }
2927
2928 handle_deregister_done(guc, q);
2929
2930 return 0;
2931 }
2932
xe_guc_exec_queue_reset_handler(struct xe_guc * guc,u32 * msg,u32 len)2933 int xe_guc_exec_queue_reset_handler(struct xe_guc *guc, u32 *msg, u32 len)
2934 {
2935 struct xe_gt *gt = guc_to_gt(guc);
2936 struct xe_exec_queue *q;
2937 u32 guc_id;
2938
2939 if (unlikely(len < 1))
2940 return -EPROTO;
2941
2942 guc_id = msg[0];
2943
2944 q = g2h_exec_queue_lookup(guc, guc_id);
2945 if (unlikely(!q))
2946 return -EPROTO;
2947
2948 if (!exec_queue_killed(q))
2949 xe_gt_info(gt, "Engine reset: engine_class=%s, logical_mask: 0x%x, guc_id=%d, state=0x%0x",
2950 xe_hw_engine_class_to_str(q->class), q->logical_mask, guc_id,
2951 atomic_read(&q->guc->state));
2952
2953 trace_xe_exec_queue_reset(q);
2954
2955 /*
2956 * A banned engine is a NOP at this point (came from
2957 * guc_exec_queue_timedout_job). Otherwise, kick drm scheduler to cancel
2958 * jobs by setting timeout of the job to the minimum value kicking
2959 * guc_exec_queue_timedout_job.
2960 */
2961 xe_guc_exec_queue_reset_trigger_cleanup(q);
2962
2963 return 0;
2964 }
2965
2966 /*
2967 * xe_guc_error_capture_handler - Handler of GuC captured message
2968 * @guc: The GuC object
2969 * @msg: Point to the message
2970 * @len: The message length
2971 *
2972 * When GuC captured data is ready, GuC will send message
2973 * XE_GUC_ACTION_STATE_CAPTURE_NOTIFICATION to host, this function will be
2974 * called 1st to check status before process the data comes with the message.
2975 *
2976 * Returns: error code. 0 if success
2977 */
xe_guc_error_capture_handler(struct xe_guc * guc,u32 * msg,u32 len)2978 int xe_guc_error_capture_handler(struct xe_guc *guc, u32 *msg, u32 len)
2979 {
2980 u32 status;
2981
2982 if (unlikely(len != XE_GUC_ACTION_STATE_CAPTURE_NOTIFICATION_DATA_LEN))
2983 return -EPROTO;
2984
2985 status = msg[0] & XE_GUC_STATE_CAPTURE_EVENT_STATUS_MASK;
2986 if (status == XE_GUC_STATE_CAPTURE_EVENT_STATUS_NOSPACE)
2987 xe_gt_warn(guc_to_gt(guc), "G2H-Error capture no space");
2988
2989 xe_guc_capture_process(guc);
2990
2991 return 0;
2992 }
2993
xe_guc_exec_queue_memory_cat_error_handler(struct xe_guc * guc,u32 * msg,u32 len)2994 int xe_guc_exec_queue_memory_cat_error_handler(struct xe_guc *guc, u32 *msg,
2995 u32 len)
2996 {
2997 struct xe_gt *gt = guc_to_gt(guc);
2998 struct xe_exec_queue *q;
2999 u32 guc_id;
3000 u32 type = XE_GUC_CAT_ERR_TYPE_INVALID;
3001
3002 if (unlikely(!len || len > 2))
3003 return -EPROTO;
3004
3005 guc_id = msg[0];
3006
3007 if (len == 2)
3008 type = msg[1];
3009
3010 if (guc_id == GUC_ID_UNKNOWN) {
3011 /*
3012 * GuC uses GUC_ID_UNKNOWN if it can not map the CAT fault to any PF/VF
3013 * context. In such case only PF will be notified about that fault.
3014 */
3015 xe_gt_err_ratelimited(gt, "Memory CAT error reported by GuC!\n");
3016 return 0;
3017 }
3018
3019 q = g2h_exec_queue_lookup(guc, guc_id);
3020 if (unlikely(!q))
3021 return -EPROTO;
3022
3023 /*
3024 * The type is HW-defined and changes based on platform, so we don't
3025 * decode it in the kernel and only check if it is valid.
3026 * See bspec 54047 and 72187 for details.
3027 */
3028 if (type != XE_GUC_CAT_ERR_TYPE_INVALID)
3029 xe_gt_info(gt,
3030 "Engine memory CAT error [%u]: class=%s, logical_mask: 0x%x, guc_id=%d",
3031 type, xe_hw_engine_class_to_str(q->class), q->logical_mask, guc_id);
3032 else
3033 xe_gt_info(gt,
3034 "Engine memory CAT error: class=%s, logical_mask: 0x%x, guc_id=%d",
3035 xe_hw_engine_class_to_str(q->class), q->logical_mask, guc_id);
3036
3037 trace_xe_exec_queue_memory_cat_error(q);
3038
3039 /* Treat the same as engine reset */
3040 xe_guc_exec_queue_reset_trigger_cleanup(q);
3041
3042 return 0;
3043 }
3044
xe_guc_exec_queue_reset_failure_handler(struct xe_guc * guc,u32 * msg,u32 len)3045 int xe_guc_exec_queue_reset_failure_handler(struct xe_guc *guc, u32 *msg, u32 len)
3046 {
3047 struct xe_gt *gt = guc_to_gt(guc);
3048 u8 guc_class, instance;
3049 u32 reason;
3050
3051 if (unlikely(len != 3))
3052 return -EPROTO;
3053
3054 guc_class = msg[0];
3055 instance = msg[1];
3056 reason = msg[2];
3057
3058 /* Unexpected failure of a hardware feature, log an actual error */
3059 xe_gt_err(gt, "GuC engine reset request failed on %d:%d because 0x%08X",
3060 guc_class, instance, reason);
3061
3062 xe_gt_reset_async(gt);
3063
3064 return 0;
3065 }
3066
xe_guc_exec_queue_cgp_context_error_handler(struct xe_guc * guc,u32 * msg,u32 len)3067 int xe_guc_exec_queue_cgp_context_error_handler(struct xe_guc *guc, u32 *msg,
3068 u32 len)
3069 {
3070 struct xe_gt *gt = guc_to_gt(guc);
3071 struct xe_device *xe = guc_to_xe(guc);
3072 struct xe_exec_queue *q;
3073 u32 guc_id = msg[2];
3074
3075 if (unlikely(len != XE_GUC_EXEC_QUEUE_CGP_CONTEXT_ERROR_LEN)) {
3076 drm_err(&xe->drm, "Invalid length %u", len);
3077 return -EPROTO;
3078 }
3079
3080 q = g2h_exec_queue_lookup(guc, guc_id);
3081 if (unlikely(!q))
3082 return -EPROTO;
3083
3084 xe_gt_dbg(gt,
3085 "CGP context error: [%s] err=0x%x, q0_id=0x%x LRCA=0x%x guc_id=0x%x",
3086 msg[0] & 1 ? "uc" : "kmd", msg[1], msg[2], msg[3], msg[4]);
3087
3088 trace_xe_exec_queue_cgp_context_error(q);
3089
3090 /* Treat the same as engine reset */
3091 xe_guc_exec_queue_reset_trigger_cleanup(q);
3092
3093 return 0;
3094 }
3095
3096 /**
3097 * xe_guc_exec_queue_cgp_sync_done_handler - CGP synchronization done handler
3098 * @guc: guc
3099 * @msg: message indicating CGP sync done
3100 * @len: length of message
3101 *
3102 * Set multi queue group's sync_pending flag to false and wakeup anyone waiting
3103 * for CGP synchronization to complete.
3104 *
3105 * Return: 0 on success, -EPROTO for malformed messages.
3106 */
xe_guc_exec_queue_cgp_sync_done_handler(struct xe_guc * guc,u32 * msg,u32 len)3107 int xe_guc_exec_queue_cgp_sync_done_handler(struct xe_guc *guc, u32 *msg, u32 len)
3108 {
3109 struct xe_device *xe = guc_to_xe(guc);
3110 struct xe_exec_queue *q;
3111 u32 guc_id = msg[0];
3112
3113 if (unlikely(len < 1)) {
3114 drm_err(&xe->drm, "Invalid CGP_SYNC_DONE length %u", len);
3115 return -EPROTO;
3116 }
3117
3118 q = g2h_exec_queue_lookup(guc, guc_id);
3119 if (unlikely(!q))
3120 return -EPROTO;
3121
3122 if (!xe_exec_queue_is_multi_queue_primary(q)) {
3123 drm_err(&xe->drm, "Unexpected CGP_SYNC_DONE response");
3124 return -EPROTO;
3125 }
3126
3127 /* Wakeup the serialized cgp update wait */
3128 WRITE_ONCE(q->multi_queue.group->sync_pending, false);
3129 xe_guc_ct_wake_waiters(&guc->ct);
3130
3131 return 0;
3132 }
3133
3134 static void
guc_exec_queue_wq_snapshot_capture(struct xe_exec_queue * q,struct xe_guc_submit_exec_queue_snapshot * snapshot)3135 guc_exec_queue_wq_snapshot_capture(struct xe_exec_queue *q,
3136 struct xe_guc_submit_exec_queue_snapshot *snapshot)
3137 {
3138 struct xe_guc *guc = exec_queue_to_guc(q);
3139 struct xe_device *xe = guc_to_xe(guc);
3140 struct iosys_map map = xe_lrc_parallel_map(q->lrc[0]);
3141 int i;
3142
3143 snapshot->guc.wqi_head = q->guc->wqi_head;
3144 snapshot->guc.wqi_tail = q->guc->wqi_tail;
3145 snapshot->parallel.wq_desc.head = parallel_read(xe, map, wq_desc.head);
3146 snapshot->parallel.wq_desc.tail = parallel_read(xe, map, wq_desc.tail);
3147 snapshot->parallel.wq_desc.status = parallel_read(xe, map,
3148 wq_desc.wq_status);
3149
3150 if (snapshot->parallel.wq_desc.head !=
3151 snapshot->parallel.wq_desc.tail) {
3152 for (i = snapshot->parallel.wq_desc.head;
3153 i != snapshot->parallel.wq_desc.tail;
3154 i = (i + sizeof(u32)) % WQ_SIZE)
3155 snapshot->parallel.wq[i / sizeof(u32)] =
3156 parallel_read(xe, map, wq[i / sizeof(u32)]);
3157 }
3158 }
3159
3160 static void
guc_exec_queue_wq_snapshot_print(struct xe_guc_submit_exec_queue_snapshot * snapshot,struct drm_printer * p)3161 guc_exec_queue_wq_snapshot_print(struct xe_guc_submit_exec_queue_snapshot *snapshot,
3162 struct drm_printer *p)
3163 {
3164 int i;
3165
3166 drm_printf(p, "\tWQ head: %u (internal), %d (memory)\n",
3167 snapshot->guc.wqi_head, snapshot->parallel.wq_desc.head);
3168 drm_printf(p, "\tWQ tail: %u (internal), %d (memory)\n",
3169 snapshot->guc.wqi_tail, snapshot->parallel.wq_desc.tail);
3170 drm_printf(p, "\tWQ status: %u\n", snapshot->parallel.wq_desc.status);
3171
3172 if (snapshot->parallel.wq_desc.head !=
3173 snapshot->parallel.wq_desc.tail) {
3174 for (i = snapshot->parallel.wq_desc.head;
3175 i != snapshot->parallel.wq_desc.tail;
3176 i = (i + sizeof(u32)) % WQ_SIZE)
3177 drm_printf(p, "\tWQ[%zu]: 0x%08x\n", i / sizeof(u32),
3178 snapshot->parallel.wq[i / sizeof(u32)]);
3179 }
3180 }
3181
3182 /**
3183 * xe_guc_exec_queue_snapshot_capture - Take a quick snapshot of the GuC Engine.
3184 * @q: faulty exec queue
3185 *
3186 * This can be printed out in a later stage like during dev_coredump
3187 * analysis.
3188 *
3189 * Returns: a GuC Submit Engine snapshot object that must be freed by the
3190 * caller, using `xe_guc_exec_queue_snapshot_free`.
3191 */
3192 struct xe_guc_submit_exec_queue_snapshot *
xe_guc_exec_queue_snapshot_capture(struct xe_exec_queue * q)3193 xe_guc_exec_queue_snapshot_capture(struct xe_exec_queue *q)
3194 {
3195 struct xe_gpu_scheduler *sched = &q->guc->sched;
3196 struct xe_guc_submit_exec_queue_snapshot *snapshot;
3197 int i;
3198
3199 snapshot = kzalloc_obj(*snapshot, GFP_ATOMIC);
3200
3201 if (!snapshot)
3202 return NULL;
3203
3204 snapshot->guc.id = q->guc->id;
3205 memcpy(&snapshot->name, &q->name, sizeof(snapshot->name));
3206 snapshot->class = q->class;
3207 snapshot->logical_mask = q->logical_mask;
3208 snapshot->width = q->width;
3209 snapshot->refcount = kref_read(&q->refcount);
3210 snapshot->sched_timeout = sched->base.timeout;
3211 snapshot->sched_props.timeslice_us = q->sched_props.timeslice_us;
3212 snapshot->sched_props.preempt_timeout_us =
3213 q->sched_props.preempt_timeout_us;
3214
3215 snapshot->lrc = kmalloc_objs(struct xe_lrc_snapshot *, q->width,
3216 GFP_ATOMIC);
3217
3218 if (snapshot->lrc) {
3219 for (i = 0; i < q->width; ++i) {
3220 struct xe_lrc *lrc = q->lrc[i];
3221
3222 snapshot->lrc[i] = xe_lrc_snapshot_capture(lrc);
3223 }
3224 }
3225
3226 snapshot->schedule_state = atomic_read(&q->guc->state);
3227 snapshot->exec_queue_flags = q->flags;
3228
3229 snapshot->parallel_execution = xe_exec_queue_is_parallel(q);
3230 if (snapshot->parallel_execution)
3231 guc_exec_queue_wq_snapshot_capture(q, snapshot);
3232
3233 if (xe_exec_queue_is_multi_queue(q)) {
3234 snapshot->multi_queue.valid = true;
3235 snapshot->multi_queue.primary = xe_exec_queue_multi_queue_primary(q)->guc->id;
3236 snapshot->multi_queue.pos = q->multi_queue.pos;
3237 }
3238
3239 return snapshot;
3240 }
3241
3242 /**
3243 * xe_guc_exec_queue_snapshot_capture_delayed - Take delayed part of snapshot of the GuC Engine.
3244 * @snapshot: Previously captured snapshot of job.
3245 *
3246 * This captures some data that requires taking some locks, so it cannot be done in signaling path.
3247 */
3248 void
xe_guc_exec_queue_snapshot_capture_delayed(struct xe_guc_submit_exec_queue_snapshot * snapshot)3249 xe_guc_exec_queue_snapshot_capture_delayed(struct xe_guc_submit_exec_queue_snapshot *snapshot)
3250 {
3251 int i;
3252
3253 if (!snapshot || !snapshot->lrc)
3254 return;
3255
3256 for (i = 0; i < snapshot->width; ++i)
3257 xe_lrc_snapshot_capture_delayed(snapshot->lrc[i]);
3258 }
3259
3260 /**
3261 * xe_guc_exec_queue_snapshot_print - Print out a given GuC Engine snapshot.
3262 * @snapshot: GuC Submit Engine snapshot object.
3263 * @p: drm_printer where it will be printed out.
3264 *
3265 * This function prints out a given GuC Submit Engine snapshot object.
3266 */
3267 void
xe_guc_exec_queue_snapshot_print(struct xe_guc_submit_exec_queue_snapshot * snapshot,struct drm_printer * p)3268 xe_guc_exec_queue_snapshot_print(struct xe_guc_submit_exec_queue_snapshot *snapshot,
3269 struct drm_printer *p)
3270 {
3271 int i;
3272
3273 if (!snapshot)
3274 return;
3275
3276 drm_printf(p, "GuC ID: %d\n", snapshot->guc.id);
3277 drm_printf(p, "\tName: %s\n", snapshot->name);
3278 drm_printf(p, "\tClass: %d\n", snapshot->class);
3279 drm_printf(p, "\tLogical mask: 0x%x\n", snapshot->logical_mask);
3280 drm_printf(p, "\tWidth: %d\n", snapshot->width);
3281 drm_printf(p, "\tRef: %d\n", snapshot->refcount);
3282 drm_printf(p, "\tTimeout: %ld (ms)\n", snapshot->sched_timeout);
3283 drm_printf(p, "\tTimeslice: %u (us)\n",
3284 snapshot->sched_props.timeslice_us);
3285 drm_printf(p, "\tPreempt timeout: %u (us)\n",
3286 snapshot->sched_props.preempt_timeout_us);
3287
3288 for (i = 0; snapshot->lrc && i < snapshot->width; ++i)
3289 xe_lrc_snapshot_print(snapshot->lrc[i], p);
3290
3291 drm_printf(p, "\tSchedule State: 0x%x\n", snapshot->schedule_state);
3292 drm_printf(p, "\tFlags: 0x%lx\n", snapshot->exec_queue_flags);
3293
3294 if (snapshot->parallel_execution)
3295 guc_exec_queue_wq_snapshot_print(snapshot, p);
3296
3297 if (snapshot->multi_queue.valid) {
3298 drm_printf(p, "\tMulti queue primary GuC ID: %d\n", snapshot->multi_queue.primary);
3299 drm_printf(p, "\tMulti queue position: %d\n", snapshot->multi_queue.pos);
3300 }
3301 }
3302
3303 /**
3304 * xe_guc_exec_queue_snapshot_free - Free all allocated objects for a given
3305 * snapshot.
3306 * @snapshot: GuC Submit Engine snapshot object.
3307 *
3308 * This function free all the memory that needed to be allocated at capture
3309 * time.
3310 */
xe_guc_exec_queue_snapshot_free(struct xe_guc_submit_exec_queue_snapshot * snapshot)3311 void xe_guc_exec_queue_snapshot_free(struct xe_guc_submit_exec_queue_snapshot *snapshot)
3312 {
3313 int i;
3314
3315 if (!snapshot)
3316 return;
3317
3318 if (snapshot->lrc) {
3319 for (i = 0; i < snapshot->width; i++)
3320 xe_lrc_snapshot_free(snapshot->lrc[i]);
3321 kfree(snapshot->lrc);
3322 }
3323 kfree(snapshot);
3324 }
3325
guc_exec_queue_print(struct xe_exec_queue * q,struct drm_printer * p)3326 static void guc_exec_queue_print(struct xe_exec_queue *q, struct drm_printer *p)
3327 {
3328 struct xe_guc_submit_exec_queue_snapshot *snapshot;
3329
3330 snapshot = xe_guc_exec_queue_snapshot_capture(q);
3331 xe_guc_exec_queue_snapshot_print(snapshot, p);
3332 xe_guc_exec_queue_snapshot_free(snapshot);
3333 }
3334
3335 /**
3336 * xe_guc_register_vf_exec_queue - Register exec queue for a given context type.
3337 * @q: Execution queue
3338 * @ctx_type: Type of the context
3339 *
3340 * This function registers the execution queue with the guc. Special context
3341 * types like GUC_CONTEXT_COMPRESSION_SAVE and GUC_CONTEXT_COMPRESSION_RESTORE
3342 * are only applicable for IGPU and in the VF.
3343 * Submits the execution queue to GUC after registering it.
3344 *
3345 * Returns - None.
3346 */
xe_guc_register_vf_exec_queue(struct xe_exec_queue * q,int ctx_type)3347 void xe_guc_register_vf_exec_queue(struct xe_exec_queue *q, int ctx_type)
3348 {
3349 struct xe_guc *guc = exec_queue_to_guc(q);
3350 struct xe_device *xe = guc_to_xe(guc);
3351 struct xe_gt *gt = guc_to_gt(guc);
3352
3353 xe_gt_assert(gt, IS_SRIOV_VF(xe));
3354 xe_gt_assert(gt, !IS_DGFX(xe));
3355 xe_gt_assert(gt, ctx_type == GUC_CONTEXT_COMPRESSION_SAVE ||
3356 ctx_type == GUC_CONTEXT_COMPRESSION_RESTORE);
3357 xe_gt_assert(gt, GUC_SUBMIT_VER(guc) >= MAKE_GUC_VER(1, 23, 0));
3358
3359 register_exec_queue(q, ctx_type);
3360 enable_scheduling(q);
3361 }
3362
3363 /**
3364 * xe_guc_submit_print - GuC Submit Print.
3365 * @guc: GuC.
3366 * @p: drm_printer where it will be printed out.
3367 *
3368 * This function capture and prints snapshots of **all** GuC Engines.
3369 */
xe_guc_submit_print(struct xe_guc * guc,struct drm_printer * p)3370 void xe_guc_submit_print(struct xe_guc *guc, struct drm_printer *p)
3371 {
3372 struct xe_exec_queue *q;
3373 unsigned long index;
3374
3375 if (!xe_device_uc_enabled(guc_to_xe(guc)))
3376 return;
3377
3378 mutex_lock(&guc->submission_state.lock);
3379 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q)
3380 guc_exec_queue_print(q, p);
3381 mutex_unlock(&guc->submission_state.lock);
3382 }
3383
3384 /**
3385 * xe_guc_has_registered_mlrc_queues - check whether there are any MLRC queues
3386 * registered with the GuC
3387 * @guc: GuC.
3388 *
3389 * Return: true if any MLRC queue is registered with the GuC, false otherwise.
3390 */
xe_guc_has_registered_mlrc_queues(struct xe_guc * guc)3391 bool xe_guc_has_registered_mlrc_queues(struct xe_guc *guc)
3392 {
3393 struct xe_exec_queue *q;
3394 unsigned long index;
3395
3396 guard(mutex)(&guc->submission_state.lock);
3397
3398 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q)
3399 if (q->width > 1)
3400 return true;
3401
3402 return false;
3403 }
3404
3405 /**
3406 * xe_guc_contexts_hwsp_rebase - Re-compute GGTT references within all
3407 * exec queues registered to given GuC.
3408 * @guc: the &xe_guc struct instance
3409 * @scratch: scratch buffer to be used as temporary storage
3410 *
3411 * Returns: zero on success, negative error code on failure.
3412 */
xe_guc_contexts_hwsp_rebase(struct xe_guc * guc,void * scratch)3413 int xe_guc_contexts_hwsp_rebase(struct xe_guc *guc, void *scratch)
3414 {
3415 struct xe_exec_queue *q;
3416 unsigned long index;
3417 int err = 0;
3418
3419 mutex_lock(&guc->submission_state.lock);
3420 xa_for_each(&guc->submission_state.exec_queue_lookup, index, q) {
3421 /* Prevent redundant attempts to stop parallel queues */
3422 if (q->guc->id != index)
3423 continue;
3424
3425 err = xe_exec_queue_contexts_hwsp_rebase(q, scratch);
3426 if (err)
3427 break;
3428 }
3429 mutex_unlock(&guc->submission_state.lock);
3430
3431 return err;
3432 }
3433