Merge remote-tracking branch 'spi/topic/rspi' into spi-pdata
[deliverable/linux.git] / drivers / gpu / drm / radeon / radeon_ring.c
1 /*
2 * Copyright 2008 Advanced Micro Devices, Inc.
3 * Copyright 2008 Red Hat Inc.
4 * Copyright 2009 Jerome Glisse.
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a
7 * copy of this software and associated documentation files (the "Software"),
8 * to deal in the Software without restriction, including without limitation
9 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
10 * and/or sell copies of the Software, and to permit persons to whom the
11 * Software is furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE COPYRIGHT HOLDER(S) OR AUTHOR(S) BE LIABLE FOR ANY CLAIM, DAMAGES OR
20 * OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE,
21 * ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR
22 * OTHER DEALINGS IN THE SOFTWARE.
23 *
24 * Authors: Dave Airlie
25 * Alex Deucher
26 * Jerome Glisse
27 * Christian König
28 */
29 #include <linux/seq_file.h>
30 #include <linux/slab.h>
31 #include <drm/drmP.h>
32 #include <drm/radeon_drm.h>
33 #include "radeon_reg.h"
34 #include "radeon.h"
35 #include "atom.h"
36
37 /*
38 * IB
39 * IBs (Indirect Buffers) and areas of GPU accessible memory where
40 * commands are stored. You can put a pointer to the IB in the
41 * command ring and the hw will fetch the commands from the IB
42 * and execute them. Generally userspace acceleration drivers
43 * produce command buffers which are send to the kernel and
44 * put in IBs for execution by the requested ring.
45 */
46 static int radeon_debugfs_sa_init(struct radeon_device *rdev);
47
48 /**
49 * radeon_ib_get - request an IB (Indirect Buffer)
50 *
51 * @rdev: radeon_device pointer
52 * @ring: ring index the IB is associated with
53 * @ib: IB object returned
54 * @size: requested IB size
55 *
56 * Request an IB (all asics). IBs are allocated using the
57 * suballocator.
58 * Returns 0 on success, error on failure.
59 */
60 int radeon_ib_get(struct radeon_device *rdev, int ring,
61 struct radeon_ib *ib, struct radeon_vm *vm,
62 unsigned size)
63 {
64 int i, r;
65
66 r = radeon_sa_bo_new(rdev, &rdev->ring_tmp_bo, &ib->sa_bo, size, 256, true);
67 if (r) {
68 dev_err(rdev->dev, "failed to get a new IB (%d)\n", r);
69 return r;
70 }
71
72 r = radeon_semaphore_create(rdev, &ib->semaphore);
73 if (r) {
74 return r;
75 }
76
77 ib->ring = ring;
78 ib->fence = NULL;
79 ib->ptr = radeon_sa_bo_cpu_addr(ib->sa_bo);
80 ib->vm = vm;
81 if (vm) {
82 /* ib pool is bound at RADEON_VA_IB_OFFSET in virtual address
83 * space and soffset is the offset inside the pool bo
84 */
85 ib->gpu_addr = ib->sa_bo->soffset + RADEON_VA_IB_OFFSET;
86 } else {
87 ib->gpu_addr = radeon_sa_bo_gpu_addr(ib->sa_bo);
88 }
89 ib->is_const_ib = false;
90 for (i = 0; i < RADEON_NUM_RINGS; ++i)
91 ib->sync_to[i] = NULL;
92
93 return 0;
94 }
95
96 /**
97 * radeon_ib_free - free an IB (Indirect Buffer)
98 *
99 * @rdev: radeon_device pointer
100 * @ib: IB object to free
101 *
102 * Free an IB (all asics).
103 */
104 void radeon_ib_free(struct radeon_device *rdev, struct radeon_ib *ib)
105 {
106 radeon_semaphore_free(rdev, &ib->semaphore, ib->fence);
107 radeon_sa_bo_free(rdev, &ib->sa_bo, ib->fence);
108 radeon_fence_unref(&ib->fence);
109 }
110
111 /**
112 * radeon_ib_sync_to - sync to fence before executing the IB
113 *
114 * @ib: IB object to add fence to
115 * @fence: fence to sync to
116 *
117 * Sync to the fence before executing the IB
118 */
119 void radeon_ib_sync_to(struct radeon_ib *ib, struct radeon_fence *fence)
120 {
121 struct radeon_fence *other;
122
123 if (!fence)
124 return;
125
126 other = ib->sync_to[fence->ring];
127 ib->sync_to[fence->ring] = radeon_fence_later(fence, other);
128 }
129
130 /**
131 * radeon_ib_schedule - schedule an IB (Indirect Buffer) on the ring
132 *
133 * @rdev: radeon_device pointer
134 * @ib: IB object to schedule
135 * @const_ib: Const IB to schedule (SI only)
136 *
137 * Schedule an IB on the associated ring (all asics).
138 * Returns 0 on success, error on failure.
139 *
140 * On SI, there are two parallel engines fed from the primary ring,
141 * the CE (Constant Engine) and the DE (Drawing Engine). Since
142 * resource descriptors have moved to memory, the CE allows you to
143 * prime the caches while the DE is updating register state so that
144 * the resource descriptors will be already in cache when the draw is
145 * processed. To accomplish this, the userspace driver submits two
146 * IBs, one for the CE and one for the DE. If there is a CE IB (called
147 * a CONST_IB), it will be put on the ring prior to the DE IB. Prior
148 * to SI there was just a DE IB.
149 */
150 int radeon_ib_schedule(struct radeon_device *rdev, struct radeon_ib *ib,
151 struct radeon_ib *const_ib)
152 {
153 struct radeon_ring *ring = &rdev->ring[ib->ring];
154 bool need_sync = false;
155 int i, r = 0;
156
157 if (!ib->length_dw || !ring->ready) {
158 /* TODO: Nothings in the ib we should report. */
159 dev_err(rdev->dev, "couldn't schedule ib\n");
160 return -EINVAL;
161 }
162
163 /* 64 dwords should be enough for fence too */
164 r = radeon_ring_lock(rdev, ring, 64 + RADEON_NUM_RINGS * 8);
165 if (r) {
166 dev_err(rdev->dev, "scheduling IB failed (%d).\n", r);
167 return r;
168 }
169 for (i = 0; i < RADEON_NUM_RINGS; ++i) {
170 struct radeon_fence *fence = ib->sync_to[i];
171 if (radeon_fence_need_sync(fence, ib->ring)) {
172 need_sync = true;
173 radeon_semaphore_sync_rings(rdev, ib->semaphore,
174 fence->ring, ib->ring);
175 radeon_fence_note_sync(fence, ib->ring);
176 }
177 }
178 /* immediately free semaphore when we don't need to sync */
179 if (!need_sync) {
180 radeon_semaphore_free(rdev, &ib->semaphore, NULL);
181 }
182 /* if we can't remember our last VM flush then flush now! */
183 /* XXX figure out why we have to flush for every IB */
184 if (ib->vm /*&& !ib->vm->last_flush*/) {
185 radeon_ring_vm_flush(rdev, ib->ring, ib->vm);
186 }
187 if (const_ib) {
188 radeon_ring_ib_execute(rdev, const_ib->ring, const_ib);
189 radeon_semaphore_free(rdev, &const_ib->semaphore, NULL);
190 }
191 radeon_ring_ib_execute(rdev, ib->ring, ib);
192 r = radeon_fence_emit(rdev, &ib->fence, ib->ring);
193 if (r) {
194 dev_err(rdev->dev, "failed to emit fence for new IB (%d)\n", r);
195 radeon_ring_unlock_undo(rdev, ring);
196 return r;
197 }
198 if (const_ib) {
199 const_ib->fence = radeon_fence_ref(ib->fence);
200 }
201 /* we just flushed the VM, remember that */
202 if (ib->vm && !ib->vm->last_flush) {
203 ib->vm->last_flush = radeon_fence_ref(ib->fence);
204 }
205 radeon_ring_unlock_commit(rdev, ring);
206 return 0;
207 }
208
209 /**
210 * radeon_ib_pool_init - Init the IB (Indirect Buffer) pool
211 *
212 * @rdev: radeon_device pointer
213 *
214 * Initialize the suballocator to manage a pool of memory
215 * for use as IBs (all asics).
216 * Returns 0 on success, error on failure.
217 */
218 int radeon_ib_pool_init(struct radeon_device *rdev)
219 {
220 int r;
221
222 if (rdev->ib_pool_ready) {
223 return 0;
224 }
225 r = radeon_sa_bo_manager_init(rdev, &rdev->ring_tmp_bo,
226 RADEON_IB_POOL_SIZE*64*1024,
227 RADEON_GPU_PAGE_SIZE,
228 RADEON_GEM_DOMAIN_GTT);
229 if (r) {
230 return r;
231 }
232
233 r = radeon_sa_bo_manager_start(rdev, &rdev->ring_tmp_bo);
234 if (r) {
235 return r;
236 }
237
238 rdev->ib_pool_ready = true;
239 if (radeon_debugfs_sa_init(rdev)) {
240 dev_err(rdev->dev, "failed to register debugfs file for SA\n");
241 }
242 return 0;
243 }
244
245 /**
246 * radeon_ib_pool_fini - Free the IB (Indirect Buffer) pool
247 *
248 * @rdev: radeon_device pointer
249 *
250 * Tear down the suballocator managing the pool of memory
251 * for use as IBs (all asics).
252 */
253 void radeon_ib_pool_fini(struct radeon_device *rdev)
254 {
255 if (rdev->ib_pool_ready) {
256 radeon_sa_bo_manager_suspend(rdev, &rdev->ring_tmp_bo);
257 radeon_sa_bo_manager_fini(rdev, &rdev->ring_tmp_bo);
258 rdev->ib_pool_ready = false;
259 }
260 }
261
262 /**
263 * radeon_ib_ring_tests - test IBs on the rings
264 *
265 * @rdev: radeon_device pointer
266 *
267 * Test an IB (Indirect Buffer) on each ring.
268 * If the test fails, disable the ring.
269 * Returns 0 on success, error if the primary GFX ring
270 * IB test fails.
271 */
272 int radeon_ib_ring_tests(struct radeon_device *rdev)
273 {
274 unsigned i;
275 int r;
276
277 for (i = 0; i < RADEON_NUM_RINGS; ++i) {
278 struct radeon_ring *ring = &rdev->ring[i];
279
280 if (!ring->ready)
281 continue;
282
283 r = radeon_ib_test(rdev, i, ring);
284 if (r) {
285 ring->ready = false;
286
287 if (i == RADEON_RING_TYPE_GFX_INDEX) {
288 /* oh, oh, that's really bad */
289 DRM_ERROR("radeon: failed testing IB on GFX ring (%d).\n", r);
290 rdev->accel_working = false;
291 return r;
292
293 } else {
294 /* still not good, but we can live with it */
295 DRM_ERROR("radeon: failed testing IB on ring %d (%d).\n", i, r);
296 }
297 }
298 }
299 return 0;
300 }
301
302 /*
303 * Rings
304 * Most engines on the GPU are fed via ring buffers. Ring
305 * buffers are areas of GPU accessible memory that the host
306 * writes commands into and the GPU reads commands out of.
307 * There is a rptr (read pointer) that determines where the
308 * GPU is currently reading, and a wptr (write pointer)
309 * which determines where the host has written. When the
310 * pointers are equal, the ring is idle. When the host
311 * writes commands to the ring buffer, it increments the
312 * wptr. The GPU then starts fetching commands and executes
313 * them until the pointers are equal again.
314 */
315 static int radeon_debugfs_ring_init(struct radeon_device *rdev, struct radeon_ring *ring);
316
317 /**
318 * radeon_ring_write - write a value to the ring
319 *
320 * @ring: radeon_ring structure holding ring information
321 * @v: dword (dw) value to write
322 *
323 * Write a value to the requested ring buffer (all asics).
324 */
325 void radeon_ring_write(struct radeon_ring *ring, uint32_t v)
326 {
327 #if DRM_DEBUG_CODE
328 if (ring->count_dw <= 0) {
329 DRM_ERROR("radeon: writing more dwords to the ring than expected!\n");
330 }
331 #endif
332 ring->ring[ring->wptr++] = v;
333 ring->wptr &= ring->ptr_mask;
334 ring->count_dw--;
335 ring->ring_free_dw--;
336 }
337
338 /**
339 * radeon_ring_supports_scratch_reg - check if the ring supports
340 * writing to scratch registers
341 *
342 * @rdev: radeon_device pointer
343 * @ring: radeon_ring structure holding ring information
344 *
345 * Check if a specific ring supports writing to scratch registers (all asics).
346 * Returns true if the ring supports writing to scratch regs, false if not.
347 */
348 bool radeon_ring_supports_scratch_reg(struct radeon_device *rdev,
349 struct radeon_ring *ring)
350 {
351 switch (ring->idx) {
352 case RADEON_RING_TYPE_GFX_INDEX:
353 case CAYMAN_RING_TYPE_CP1_INDEX:
354 case CAYMAN_RING_TYPE_CP2_INDEX:
355 return true;
356 default:
357 return false;
358 }
359 }
360
361 u32 radeon_ring_generic_get_rptr(struct radeon_device *rdev,
362 struct radeon_ring *ring)
363 {
364 u32 rptr;
365
366 if (rdev->wb.enabled && ring != &rdev->ring[R600_RING_TYPE_UVD_INDEX])
367 rptr = le32_to_cpu(rdev->wb.wb[ring->rptr_offs/4]);
368 else
369 rptr = RREG32(ring->rptr_reg);
370 rptr = (rptr & ring->ptr_reg_mask) >> ring->ptr_reg_shift;
371
372 return rptr;
373 }
374
375 u32 radeon_ring_generic_get_wptr(struct radeon_device *rdev,
376 struct radeon_ring *ring)
377 {
378 u32 wptr;
379
380 wptr = RREG32(ring->wptr_reg);
381 wptr = (wptr & ring->ptr_reg_mask) >> ring->ptr_reg_shift;
382
383 return wptr;
384 }
385
386 void radeon_ring_generic_set_wptr(struct radeon_device *rdev,
387 struct radeon_ring *ring)
388 {
389 WREG32(ring->wptr_reg, (ring->wptr << ring->ptr_reg_shift) & ring->ptr_reg_mask);
390 (void)RREG32(ring->wptr_reg);
391 }
392
393 /**
394 * radeon_ring_free_size - update the free size
395 *
396 * @rdev: radeon_device pointer
397 * @ring: radeon_ring structure holding ring information
398 *
399 * Update the free dw slots in the ring buffer (all asics).
400 */
401 void radeon_ring_free_size(struct radeon_device *rdev, struct radeon_ring *ring)
402 {
403 ring->rptr = radeon_ring_get_rptr(rdev, ring);
404 /* This works because ring_size is a power of 2 */
405 ring->ring_free_dw = (ring->rptr + (ring->ring_size / 4));
406 ring->ring_free_dw -= ring->wptr;
407 ring->ring_free_dw &= ring->ptr_mask;
408 if (!ring->ring_free_dw) {
409 ring->ring_free_dw = ring->ring_size / 4;
410 }
411 }
412
413 /**
414 * radeon_ring_alloc - allocate space on the ring buffer
415 *
416 * @rdev: radeon_device pointer
417 * @ring: radeon_ring structure holding ring information
418 * @ndw: number of dwords to allocate in the ring buffer
419 *
420 * Allocate @ndw dwords in the ring buffer (all asics).
421 * Returns 0 on success, error on failure.
422 */
423 int radeon_ring_alloc(struct radeon_device *rdev, struct radeon_ring *ring, unsigned ndw)
424 {
425 int r;
426
427 /* make sure we aren't trying to allocate more space than there is on the ring */
428 if (ndw > (ring->ring_size / 4))
429 return -ENOMEM;
430 /* Align requested size with padding so unlock_commit can
431 * pad safely */
432 radeon_ring_free_size(rdev, ring);
433 if (ring->ring_free_dw == (ring->ring_size / 4)) {
434 /* This is an empty ring update lockup info to avoid
435 * false positive.
436 */
437 radeon_ring_lockup_update(ring);
438 }
439 ndw = (ndw + ring->align_mask) & ~ring->align_mask;
440 while (ndw > (ring->ring_free_dw - 1)) {
441 radeon_ring_free_size(rdev, ring);
442 if (ndw < ring->ring_free_dw) {
443 break;
444 }
445 r = radeon_fence_wait_next_locked(rdev, ring->idx);
446 if (r)
447 return r;
448 }
449 ring->count_dw = ndw;
450 ring->wptr_old = ring->wptr;
451 return 0;
452 }
453
454 /**
455 * radeon_ring_lock - lock the ring and allocate space on it
456 *
457 * @rdev: radeon_device pointer
458 * @ring: radeon_ring structure holding ring information
459 * @ndw: number of dwords to allocate in the ring buffer
460 *
461 * Lock the ring and allocate @ndw dwords in the ring buffer
462 * (all asics).
463 * Returns 0 on success, error on failure.
464 */
465 int radeon_ring_lock(struct radeon_device *rdev, struct radeon_ring *ring, unsigned ndw)
466 {
467 int r;
468
469 mutex_lock(&rdev->ring_lock);
470 r = radeon_ring_alloc(rdev, ring, ndw);
471 if (r) {
472 mutex_unlock(&rdev->ring_lock);
473 return r;
474 }
475 return 0;
476 }
477
478 /**
479 * radeon_ring_commit - tell the GPU to execute the new
480 * commands on the ring buffer
481 *
482 * @rdev: radeon_device pointer
483 * @ring: radeon_ring structure holding ring information
484 *
485 * Update the wptr (write pointer) to tell the GPU to
486 * execute new commands on the ring buffer (all asics).
487 */
488 void radeon_ring_commit(struct radeon_device *rdev, struct radeon_ring *ring)
489 {
490 /* We pad to match fetch size */
491 while (ring->wptr & ring->align_mask) {
492 radeon_ring_write(ring, ring->nop);
493 }
494 DRM_MEMORYBARRIER();
495 radeon_ring_set_wptr(rdev, ring);
496 }
497
498 /**
499 * radeon_ring_unlock_commit - tell the GPU to execute the new
500 * commands on the ring buffer and unlock it
501 *
502 * @rdev: radeon_device pointer
503 * @ring: radeon_ring structure holding ring information
504 *
505 * Call radeon_ring_commit() then unlock the ring (all asics).
506 */
507 void radeon_ring_unlock_commit(struct radeon_device *rdev, struct radeon_ring *ring)
508 {
509 radeon_ring_commit(rdev, ring);
510 mutex_unlock(&rdev->ring_lock);
511 }
512
513 /**
514 * radeon_ring_undo - reset the wptr
515 *
516 * @ring: radeon_ring structure holding ring information
517 *
518 * Reset the driver's copy of the wptr (all asics).
519 */
520 void radeon_ring_undo(struct radeon_ring *ring)
521 {
522 ring->wptr = ring->wptr_old;
523 }
524
525 /**
526 * radeon_ring_unlock_undo - reset the wptr and unlock the ring
527 *
528 * @ring: radeon_ring structure holding ring information
529 *
530 * Call radeon_ring_undo() then unlock the ring (all asics).
531 */
532 void radeon_ring_unlock_undo(struct radeon_device *rdev, struct radeon_ring *ring)
533 {
534 radeon_ring_undo(ring);
535 mutex_unlock(&rdev->ring_lock);
536 }
537
538 /**
539 * radeon_ring_force_activity - add some nop packets to the ring
540 *
541 * @rdev: radeon_device pointer
542 * @ring: radeon_ring structure holding ring information
543 *
544 * Add some nop packets to the ring to force activity (all asics).
545 * Used for lockup detection to see if the rptr is advancing.
546 */
547 void radeon_ring_force_activity(struct radeon_device *rdev, struct radeon_ring *ring)
548 {
549 int r;
550
551 radeon_ring_free_size(rdev, ring);
552 if (ring->rptr == ring->wptr) {
553 r = radeon_ring_alloc(rdev, ring, 1);
554 if (!r) {
555 radeon_ring_write(ring, ring->nop);
556 radeon_ring_commit(rdev, ring);
557 }
558 }
559 }
560
561 /**
562 * radeon_ring_lockup_update - update lockup variables
563 *
564 * @ring: radeon_ring structure holding ring information
565 *
566 * Update the last rptr value and timestamp (all asics).
567 */
568 void radeon_ring_lockup_update(struct radeon_ring *ring)
569 {
570 ring->last_rptr = ring->rptr;
571 ring->last_activity = jiffies;
572 }
573
574 /**
575 * radeon_ring_test_lockup() - check if ring is lockedup by recording information
576 * @rdev: radeon device structure
577 * @ring: radeon_ring structure holding ring information
578 *
579 * We don't need to initialize the lockup tracking information as we will either
580 * have CP rptr to a different value of jiffies wrap around which will force
581 * initialization of the lockup tracking informations.
582 *
583 * A possible false positivie is if we get call after while and last_cp_rptr ==
584 * the current CP rptr, even if it's unlikely it might happen. To avoid this
585 * if the elapsed time since last call is bigger than 2 second than we return
586 * false and update the tracking information. Due to this the caller must call
587 * radeon_ring_test_lockup several time in less than 2sec for lockup to be reported
588 * the fencing code should be cautious about that.
589 *
590 * Caller should write to the ring to force CP to do something so we don't get
591 * false positive when CP is just gived nothing to do.
592 *
593 **/
594 bool radeon_ring_test_lockup(struct radeon_device *rdev, struct radeon_ring *ring)
595 {
596 unsigned long cjiffies, elapsed;
597
598 cjiffies = jiffies;
599 if (!time_after(cjiffies, ring->last_activity)) {
600 /* likely a wrap around */
601 radeon_ring_lockup_update(ring);
602 return false;
603 }
604 ring->rptr = radeon_ring_get_rptr(rdev, ring);
605 if (ring->rptr != ring->last_rptr) {
606 /* CP is still working no lockup */
607 radeon_ring_lockup_update(ring);
608 return false;
609 }
610 elapsed = jiffies_to_msecs(cjiffies - ring->last_activity);
611 if (radeon_lockup_timeout && elapsed >= radeon_lockup_timeout) {
612 dev_err(rdev->dev, "GPU lockup CP stall for more than %lumsec\n", elapsed);
613 return true;
614 }
615 /* give a chance to the GPU ... */
616 return false;
617 }
618
619 /**
620 * radeon_ring_backup - Back up the content of a ring
621 *
622 * @rdev: radeon_device pointer
623 * @ring: the ring we want to back up
624 *
625 * Saves all unprocessed commits from a ring, returns the number of dwords saved.
626 */
627 unsigned radeon_ring_backup(struct radeon_device *rdev, struct radeon_ring *ring,
628 uint32_t **data)
629 {
630 unsigned size, ptr, i;
631
632 /* just in case lock the ring */
633 mutex_lock(&rdev->ring_lock);
634 *data = NULL;
635
636 if (ring->ring_obj == NULL) {
637 mutex_unlock(&rdev->ring_lock);
638 return 0;
639 }
640
641 /* it doesn't make sense to save anything if all fences are signaled */
642 if (!radeon_fence_count_emitted(rdev, ring->idx)) {
643 mutex_unlock(&rdev->ring_lock);
644 return 0;
645 }
646
647 /* calculate the number of dw on the ring */
648 if (ring->rptr_save_reg)
649 ptr = RREG32(ring->rptr_save_reg);
650 else if (rdev->wb.enabled)
651 ptr = le32_to_cpu(*ring->next_rptr_cpu_addr);
652 else {
653 /* no way to read back the next rptr */
654 mutex_unlock(&rdev->ring_lock);
655 return 0;
656 }
657
658 size = ring->wptr + (ring->ring_size / 4);
659 size -= ptr;
660 size &= ring->ptr_mask;
661 if (size == 0) {
662 mutex_unlock(&rdev->ring_lock);
663 return 0;
664 }
665
666 /* and then save the content of the ring */
667 *data = kmalloc_array(size, sizeof(uint32_t), GFP_KERNEL);
668 if (!*data) {
669 mutex_unlock(&rdev->ring_lock);
670 return 0;
671 }
672 for (i = 0; i < size; ++i) {
673 (*data)[i] = ring->ring[ptr++];
674 ptr &= ring->ptr_mask;
675 }
676
677 mutex_unlock(&rdev->ring_lock);
678 return size;
679 }
680
681 /**
682 * radeon_ring_restore - append saved commands to the ring again
683 *
684 * @rdev: radeon_device pointer
685 * @ring: ring to append commands to
686 * @size: number of dwords we want to write
687 * @data: saved commands
688 *
689 * Allocates space on the ring and restore the previously saved commands.
690 */
691 int radeon_ring_restore(struct radeon_device *rdev, struct radeon_ring *ring,
692 unsigned size, uint32_t *data)
693 {
694 int i, r;
695
696 if (!size || !data)
697 return 0;
698
699 /* restore the saved ring content */
700 r = radeon_ring_lock(rdev, ring, size);
701 if (r)
702 return r;
703
704 for (i = 0; i < size; ++i) {
705 radeon_ring_write(ring, data[i]);
706 }
707
708 radeon_ring_unlock_commit(rdev, ring);
709 kfree(data);
710 return 0;
711 }
712
713 /**
714 * radeon_ring_init - init driver ring struct.
715 *
716 * @rdev: radeon_device pointer
717 * @ring: radeon_ring structure holding ring information
718 * @ring_size: size of the ring
719 * @rptr_offs: offset of the rptr writeback location in the WB buffer
720 * @rptr_reg: MMIO offset of the rptr register
721 * @wptr_reg: MMIO offset of the wptr register
722 * @ptr_reg_shift: bit offset of the rptr/wptr values
723 * @ptr_reg_mask: bit mask of the rptr/wptr values
724 * @nop: nop packet for this ring
725 *
726 * Initialize the driver information for the selected ring (all asics).
727 * Returns 0 on success, error on failure.
728 */
729 int radeon_ring_init(struct radeon_device *rdev, struct radeon_ring *ring, unsigned ring_size,
730 unsigned rptr_offs, unsigned rptr_reg, unsigned wptr_reg,
731 u32 ptr_reg_shift, u32 ptr_reg_mask, u32 nop)
732 {
733 int r;
734
735 ring->ring_size = ring_size;
736 ring->rptr_offs = rptr_offs;
737 ring->rptr_reg = rptr_reg;
738 ring->wptr_reg = wptr_reg;
739 ring->ptr_reg_shift = ptr_reg_shift;
740 ring->ptr_reg_mask = ptr_reg_mask;
741 ring->nop = nop;
742 /* Allocate ring buffer */
743 if (ring->ring_obj == NULL) {
744 r = radeon_bo_create(rdev, ring->ring_size, PAGE_SIZE, true,
745 RADEON_GEM_DOMAIN_GTT,
746 NULL, &ring->ring_obj);
747 if (r) {
748 dev_err(rdev->dev, "(%d) ring create failed\n", r);
749 return r;
750 }
751 r = radeon_bo_reserve(ring->ring_obj, false);
752 if (unlikely(r != 0))
753 return r;
754 r = radeon_bo_pin(ring->ring_obj, RADEON_GEM_DOMAIN_GTT,
755 &ring->gpu_addr);
756 if (r) {
757 radeon_bo_unreserve(ring->ring_obj);
758 dev_err(rdev->dev, "(%d) ring pin failed\n", r);
759 return r;
760 }
761 r = radeon_bo_kmap(ring->ring_obj,
762 (void **)&ring->ring);
763 radeon_bo_unreserve(ring->ring_obj);
764 if (r) {
765 dev_err(rdev->dev, "(%d) ring map failed\n", r);
766 return r;
767 }
768 }
769 ring->ptr_mask = (ring->ring_size / 4) - 1;
770 ring->ring_free_dw = ring->ring_size / 4;
771 if (rdev->wb.enabled) {
772 u32 index = RADEON_WB_RING0_NEXT_RPTR + (ring->idx * 4);
773 ring->next_rptr_gpu_addr = rdev->wb.gpu_addr + index;
774 ring->next_rptr_cpu_addr = &rdev->wb.wb[index/4];
775 }
776 if (radeon_debugfs_ring_init(rdev, ring)) {
777 DRM_ERROR("Failed to register debugfs file for rings !\n");
778 }
779 radeon_ring_lockup_update(ring);
780 return 0;
781 }
782
783 /**
784 * radeon_ring_fini - tear down the driver ring struct.
785 *
786 * @rdev: radeon_device pointer
787 * @ring: radeon_ring structure holding ring information
788 *
789 * Tear down the driver information for the selected ring (all asics).
790 */
791 void radeon_ring_fini(struct radeon_device *rdev, struct radeon_ring *ring)
792 {
793 int r;
794 struct radeon_bo *ring_obj;
795
796 mutex_lock(&rdev->ring_lock);
797 ring_obj = ring->ring_obj;
798 ring->ready = false;
799 ring->ring = NULL;
800 ring->ring_obj = NULL;
801 mutex_unlock(&rdev->ring_lock);
802
803 if (ring_obj) {
804 r = radeon_bo_reserve(ring_obj, false);
805 if (likely(r == 0)) {
806 radeon_bo_kunmap(ring_obj);
807 radeon_bo_unpin(ring_obj);
808 radeon_bo_unreserve(ring_obj);
809 }
810 radeon_bo_unref(&ring_obj);
811 }
812 }
813
814 /*
815 * Debugfs info
816 */
817 #if defined(CONFIG_DEBUG_FS)
818
819 static int radeon_debugfs_ring_info(struct seq_file *m, void *data)
820 {
821 struct drm_info_node *node = (struct drm_info_node *) m->private;
822 struct drm_device *dev = node->minor->dev;
823 struct radeon_device *rdev = dev->dev_private;
824 int ridx = *(int*)node->info_ent->data;
825 struct radeon_ring *ring = &rdev->ring[ridx];
826 unsigned count, i, j;
827 u32 tmp;
828
829 radeon_ring_free_size(rdev, ring);
830 count = (ring->ring_size / 4) - ring->ring_free_dw;
831 tmp = radeon_ring_get_wptr(rdev, ring);
832 seq_printf(m, "wptr(0x%04x): 0x%08x [%5d]\n", ring->wptr_reg, tmp, tmp);
833 tmp = radeon_ring_get_rptr(rdev, ring);
834 seq_printf(m, "rptr(0x%04x): 0x%08x [%5d]\n", ring->rptr_reg, tmp, tmp);
835 if (ring->rptr_save_reg) {
836 seq_printf(m, "rptr next(0x%04x): 0x%08x\n", ring->rptr_save_reg,
837 RREG32(ring->rptr_save_reg));
838 }
839 seq_printf(m, "driver's copy of the wptr: 0x%08x [%5d]\n", ring->wptr, ring->wptr);
840 seq_printf(m, "driver's copy of the rptr: 0x%08x [%5d]\n", ring->rptr, ring->rptr);
841 seq_printf(m, "last semaphore signal addr : 0x%016llx\n", ring->last_semaphore_signal_addr);
842 seq_printf(m, "last semaphore wait addr : 0x%016llx\n", ring->last_semaphore_wait_addr);
843 seq_printf(m, "%u free dwords in ring\n", ring->ring_free_dw);
844 seq_printf(m, "%u dwords in ring\n", count);
845 /* print 8 dw before current rptr as often it's the last executed
846 * packet that is the root issue
847 */
848 i = (ring->rptr + ring->ptr_mask + 1 - 32) & ring->ptr_mask;
849 for (j = 0; j <= (count + 32); j++) {
850 seq_printf(m, "r[%5d]=0x%08x\n", i, ring->ring[i]);
851 i = (i + 1) & ring->ptr_mask;
852 }
853 return 0;
854 }
855
856 static int radeon_gfx_index = RADEON_RING_TYPE_GFX_INDEX;
857 static int cayman_cp1_index = CAYMAN_RING_TYPE_CP1_INDEX;
858 static int cayman_cp2_index = CAYMAN_RING_TYPE_CP2_INDEX;
859 static int radeon_dma1_index = R600_RING_TYPE_DMA_INDEX;
860 static int radeon_dma2_index = CAYMAN_RING_TYPE_DMA1_INDEX;
861 static int r600_uvd_index = R600_RING_TYPE_UVD_INDEX;
862
863 static struct drm_info_list radeon_debugfs_ring_info_list[] = {
864 {"radeon_ring_gfx", radeon_debugfs_ring_info, 0, &radeon_gfx_index},
865 {"radeon_ring_cp1", radeon_debugfs_ring_info, 0, &cayman_cp1_index},
866 {"radeon_ring_cp2", radeon_debugfs_ring_info, 0, &cayman_cp2_index},
867 {"radeon_ring_dma1", radeon_debugfs_ring_info, 0, &radeon_dma1_index},
868 {"radeon_ring_dma2", radeon_debugfs_ring_info, 0, &radeon_dma2_index},
869 {"radeon_ring_uvd", radeon_debugfs_ring_info, 0, &r600_uvd_index},
870 };
871
872 static int radeon_debugfs_sa_info(struct seq_file *m, void *data)
873 {
874 struct drm_info_node *node = (struct drm_info_node *) m->private;
875 struct drm_device *dev = node->minor->dev;
876 struct radeon_device *rdev = dev->dev_private;
877
878 radeon_sa_bo_dump_debug_info(&rdev->ring_tmp_bo, m);
879
880 return 0;
881
882 }
883
884 static struct drm_info_list radeon_debugfs_sa_list[] = {
885 {"radeon_sa_info", &radeon_debugfs_sa_info, 0, NULL},
886 };
887
888 #endif
889
890 static int radeon_debugfs_ring_init(struct radeon_device *rdev, struct radeon_ring *ring)
891 {
892 #if defined(CONFIG_DEBUG_FS)
893 unsigned i;
894 for (i = 0; i < ARRAY_SIZE(radeon_debugfs_ring_info_list); ++i) {
895 struct drm_info_list *info = &radeon_debugfs_ring_info_list[i];
896 int ridx = *(int*)radeon_debugfs_ring_info_list[i].data;
897 unsigned r;
898
899 if (&rdev->ring[ridx] != ring)
900 continue;
901
902 r = radeon_debugfs_add_files(rdev, info, 1);
903 if (r)
904 return r;
905 }
906 #endif
907 return 0;
908 }
909
910 static int radeon_debugfs_sa_init(struct radeon_device *rdev)
911 {
912 #if defined(CONFIG_DEBUG_FS)
913 return radeon_debugfs_add_files(rdev, radeon_debugfs_sa_list, 1);
914 #else
915 return 0;
916 #endif
917 }
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