1 /*
2 * Copyright © 2017 Intel Corporation
3 *
4 * Permission is hereby granted, free of charge, to any person obtaining a
5 * copy of this software and associated documentation files (the "Software"),
6 * to deal in the Software without restriction, including without limitation
7 * the rights to use, copy, modify, merge, publish, distribute, sublicense,
8 * and/or sell copies of the Software, and to permit persons to whom the
9 * Software is furnished to do so, subject to the following conditions:
10 *
11 * The above copyright notice and this permission notice shall be included
12 * in all copies or substantial portions of the Software.
13 *
14 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
15 * OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
16 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
17 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
18 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
19 * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
20 * DEALINGS IN THE SOFTWARE.
21 */
22
23 /**
24 * @file crocus_bufmgr.c
25 *
26 * The crocus buffer manager.
27 *
28 * XXX: write better comments
29 * - BOs
30 * - Explain BO cache
31 * - main interface to GEM in the kernel
32 */
33
34 #ifdef HAVE_CONFIG_H
35 #include "config.h"
36 #endif
37
38 #include <xf86drm.h>
39 #include <util/u_atomic.h>
40 #include <fcntl.h>
41 #include <stdio.h>
42 #include <stdlib.h>
43 #include <string.h>
44 #include <unistd.h>
45 #include <assert.h>
46 #include <sys/ioctl.h>
47 #include <sys/mman.h>
48 #include <sys/stat.h>
49 #include <sys/types.h>
50 #include <stdbool.h>
51 #include <time.h>
52
53 #include "errno.h"
54 #include "common/intel_clflush.h"
55 #include "dev/intel_debug.h"
56 #include "common/intel_gem.h"
57 #include "dev/intel_device_info.h"
58 #include "util/debug.h"
59 #include "util/macros.h"
60 #include "util/hash_table.h"
61 #include "util/list.h"
62 #include "util/os_file.h"
63 #include "util/u_dynarray.h"
64 #include "util/vma.h"
65 #include "crocus_bufmgr.h"
66 #include "crocus_context.h"
67 #include "string.h"
68
69 #include "drm-uapi/i915_drm.h"
70
71 #ifdef HAVE_VALGRIND
72 #include <valgrind.h>
73 #include <memcheck.h>
74 #define VG(x) x
75 #else
76 #define VG(x)
77 #endif
78
79 /**
80 * For debugging purposes, this returns a time in seconds.
81 */
82 static double
get_time(void)83 get_time(void)
84 {
85 struct timespec tp;
86
87 clock_gettime(CLOCK_MONOTONIC, &tp);
88
89 return tp.tv_sec + tp.tv_nsec / 1000000000.0;
90 }
91
92 /* VALGRIND_FREELIKE_BLOCK unfortunately does not actually undo the earlier
93 * VALGRIND_MALLOCLIKE_BLOCK but instead leaves vg convinced the memory is
94 * leaked. All because it does not call VG(cli_free) from its
95 * VG_USERREQ__FREELIKE_BLOCK handler. Instead of treating the memory like
96 * and allocation, we mark it available for use upon mmapping and remove
97 * it upon unmapping.
98 */
99 #define VG_DEFINED(ptr, size) VG(VALGRIND_MAKE_MEM_DEFINED(ptr, size))
100 #define VG_NOACCESS(ptr, size) VG(VALGRIND_MAKE_MEM_NOACCESS(ptr, size))
101
102 #define PAGE_SIZE 4096
103
104 #define WARN_ONCE(cond, fmt...) do { \
105 if (unlikely(cond)) { \
106 static bool _warned = false; \
107 if (!_warned) { \
108 fprintf(stderr, "WARNING: "); \
109 fprintf(stderr, fmt); \
110 _warned = true; \
111 } \
112 } \
113 } while (0)
114
115 #define FILE_DEBUG_FLAG DEBUG_BUFMGR
116
117 struct bo_cache_bucket {
118 /** List of cached BOs. */
119 struct list_head head;
120
121 /** Size of this bucket, in bytes. */
122 uint64_t size;
123 };
124
125 struct bo_export {
126 /** File descriptor associated with a handle export. */
127 int drm_fd;
128
129 /** GEM handle in drm_fd */
130 uint32_t gem_handle;
131
132 struct list_head link;
133 };
134
135 struct crocus_bufmgr {
136 /**
137 * List into the list of bufmgr.
138 */
139 struct list_head link;
140
141 uint32_t refcount;
142
143 int fd;
144
145 simple_mtx_t lock;
146
147 /** Array of lists of cached gem objects of power-of-two sizes */
148 struct bo_cache_bucket cache_bucket[14 * 4];
149 int num_buckets;
150 time_t time;
151
152 struct hash_table *name_table;
153 struct hash_table *handle_table;
154
155 /**
156 * List of BOs which we've effectively freed, but are hanging on to
157 * until they're idle before closing and returning the VMA.
158 */
159 struct list_head zombie_list;
160
161 bool has_llc:1;
162 bool has_mmap_offset:1;
163 bool has_tiling_uapi:1;
164 bool bo_reuse:1;
165 };
166
167 static simple_mtx_t global_bufmgr_list_mutex = _SIMPLE_MTX_INITIALIZER_NP;
168 static struct list_head global_bufmgr_list = {
169 .next = &global_bufmgr_list,
170 .prev = &global_bufmgr_list,
171 };
172
173 static int bo_set_tiling_internal(struct crocus_bo *bo, uint32_t tiling_mode,
174 uint32_t stride);
175
176 static void bo_free(struct crocus_bo *bo);
177
178 static uint32_t
key_hash_uint(const void * key)179 key_hash_uint(const void *key)
180 {
181 return _mesa_hash_data(key, 4);
182 }
183
184 static bool
key_uint_equal(const void * a,const void * b)185 key_uint_equal(const void *a, const void *b)
186 {
187 return *((unsigned *) a) == *((unsigned *) b);
188 }
189
190 static struct crocus_bo *
find_and_ref_external_bo(struct hash_table * ht,unsigned int key)191 find_and_ref_external_bo(struct hash_table *ht, unsigned int key)
192 {
193 struct hash_entry *entry = _mesa_hash_table_search(ht, &key);
194 struct crocus_bo *bo = entry ? entry->data : NULL;
195
196 if (bo) {
197 assert(bo->external);
198 assert(!bo->reusable);
199
200 /* Being non-reusable, the BO cannot be in the cache lists, but it
201 * may be in the zombie list if it had reached zero references, but
202 * we hadn't yet closed it...and then reimported the same BO. If it
203 * is, then remove it since it's now been resurrected.
204 */
205 if (bo->head.prev || bo->head.next)
206 list_del(&bo->head);
207
208 crocus_bo_reference(bo);
209 }
210
211 return bo;
212 }
213
214 /**
215 * This function finds the correct bucket fit for the input size.
216 * The function works with O(1) complexity when the requested size
217 * was queried instead of iterating the size through all the buckets.
218 */
219 static struct bo_cache_bucket *
bucket_for_size(struct crocus_bufmgr * bufmgr,uint64_t size)220 bucket_for_size(struct crocus_bufmgr *bufmgr, uint64_t size)
221 {
222 /* Calculating the pages and rounding up to the page size. */
223 const unsigned pages = (size + PAGE_SIZE - 1) / PAGE_SIZE;
224
225 /* Row Bucket sizes clz((x-1) | 3) Row Column
226 * in pages stride size
227 * 0: 1 2 3 4 -> 30 30 30 30 4 1
228 * 1: 5 6 7 8 -> 29 29 29 29 4 1
229 * 2: 10 12 14 16 -> 28 28 28 28 8 2
230 * 3: 20 24 28 32 -> 27 27 27 27 16 4
231 */
232 const unsigned row = 30 - __builtin_clz((pages - 1) | 3);
233 const unsigned row_max_pages = 4 << row;
234
235 /* The '& ~2' is the special case for row 1. In row 1, max pages /
236 * 2 is 2, but the previous row maximum is zero (because there is
237 * no previous row). All row maximum sizes are power of 2, so that
238 * is the only case where that bit will be set.
239 */
240 const unsigned prev_row_max_pages = (row_max_pages / 2) & ~2;
241 int col_size_log2 = row - 1;
242 col_size_log2 += (col_size_log2 < 0);
243
244 const unsigned col = (pages - prev_row_max_pages +
245 ((1 << col_size_log2) - 1)) >> col_size_log2;
246
247 /* Calculating the index based on the row and column. */
248 const unsigned index = (row * 4) + (col - 1);
249
250 return (index < bufmgr->num_buckets) ?
251 &bufmgr->cache_bucket[index] : NULL;
252 }
253
254
255 int
crocus_bo_busy(struct crocus_bo * bo)256 crocus_bo_busy(struct crocus_bo *bo)
257 {
258 struct crocus_bufmgr *bufmgr = bo->bufmgr;
259 struct drm_i915_gem_busy busy = { .handle = bo->gem_handle };
260
261 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_BUSY, &busy);
262 if (ret == 0) {
263 bo->idle = !busy.busy;
264 return busy.busy;
265 }
266 return false;
267 }
268
269 int
crocus_bo_madvise(struct crocus_bo * bo,int state)270 crocus_bo_madvise(struct crocus_bo *bo, int state)
271 {
272 struct drm_i915_gem_madvise madv = {
273 .handle = bo->gem_handle,
274 .madv = state,
275 .retained = 1,
276 };
277
278 intel_ioctl(bo->bufmgr->fd, DRM_IOCTL_I915_GEM_MADVISE, &madv);
279
280 return madv.retained;
281 }
282
283 static struct crocus_bo *
bo_calloc(void)284 bo_calloc(void)
285 {
286 struct crocus_bo *bo = calloc(1, sizeof(*bo));
287 if (!bo)
288 return NULL;
289
290 list_inithead(&bo->exports);
291 bo->hash = _mesa_hash_pointer(bo);
292 return bo;
293 }
294
295 static struct crocus_bo *
alloc_bo_from_cache(struct crocus_bufmgr * bufmgr,struct bo_cache_bucket * bucket,uint32_t alignment,unsigned flags)296 alloc_bo_from_cache(struct crocus_bufmgr *bufmgr,
297 struct bo_cache_bucket *bucket,
298 uint32_t alignment,
299 unsigned flags)
300 {
301 if (!bucket)
302 return NULL;
303
304 struct crocus_bo *bo = NULL;
305
306 list_for_each_entry_safe(struct crocus_bo, cur, &bucket->head, head) {
307 /* If the last BO in the cache is busy, there are no idle BOs. Bail,
308 * either falling back to a non-matching memzone, or if that fails,
309 * allocating a fresh buffer.
310 */
311 if (crocus_bo_busy(cur))
312 return NULL;
313
314 list_del(&cur->head);
315
316 /* Tell the kernel we need this BO. If it still exists, we're done! */
317 if (crocus_bo_madvise(cur, I915_MADV_WILLNEED)) {
318 bo = cur;
319 break;
320 }
321
322 /* This BO was purged, throw it out and keep looking. */
323 bo_free(cur);
324 }
325
326 if (!bo)
327 return NULL;
328
329 /* Zero the contents if necessary. If this fails, fall back to
330 * allocating a fresh BO, which will always be zeroed by the kernel.
331 */
332 if (flags & BO_ALLOC_ZEROED) {
333 void *map = crocus_bo_map(NULL, bo, MAP_WRITE | MAP_RAW);
334 if (map) {
335 memset(map, 0, bo->size);
336 } else {
337 bo_free(bo);
338 return NULL;
339 }
340 }
341
342 return bo;
343 }
344
345 static struct crocus_bo *
alloc_fresh_bo(struct crocus_bufmgr * bufmgr,uint64_t bo_size)346 alloc_fresh_bo(struct crocus_bufmgr *bufmgr, uint64_t bo_size)
347 {
348 struct crocus_bo *bo = bo_calloc();
349 if (!bo)
350 return NULL;
351
352 struct drm_i915_gem_create create = { .size = bo_size };
353
354 /* All new BOs we get from the kernel are zeroed, so we don't need to
355 * worry about that here.
356 */
357 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CREATE, &create) != 0) {
358 free(bo);
359 return NULL;
360 }
361
362 bo->gem_handle = create.handle;
363 bo->bufmgr = bufmgr;
364 bo->size = bo_size;
365 bo->idle = true;
366 bo->tiling_mode = I915_TILING_NONE;
367 bo->swizzle_mode = I915_BIT_6_SWIZZLE_NONE;
368 bo->stride = 0;
369
370 /* Calling set_domain() will allocate pages for the BO outside of the
371 * struct mutex lock in the kernel, which is more efficient than waiting
372 * to create them during the first execbuf that uses the BO.
373 */
374 struct drm_i915_gem_set_domain sd = {
375 .handle = bo->gem_handle,
376 .read_domains = I915_GEM_DOMAIN_CPU,
377 .write_domain = 0,
378 };
379
380 if (intel_ioctl(bo->bufmgr->fd, DRM_IOCTL_I915_GEM_SET_DOMAIN, &sd) != 0) {
381 bo_free(bo);
382 return NULL;
383 }
384
385 return bo;
386 }
387
388 static struct crocus_bo *
bo_alloc_internal(struct crocus_bufmgr * bufmgr,const char * name,uint64_t size,uint32_t alignment,unsigned flags,uint32_t tiling_mode,uint32_t stride)389 bo_alloc_internal(struct crocus_bufmgr *bufmgr,
390 const char *name,
391 uint64_t size,
392 uint32_t alignment,
393 unsigned flags,
394 uint32_t tiling_mode,
395 uint32_t stride)
396 {
397 struct crocus_bo *bo;
398 unsigned int page_size = getpagesize();
399 struct bo_cache_bucket *bucket = bucket_for_size(bufmgr, size);
400
401 /* Round the size up to the bucket size, or if we don't have caching
402 * at this size, a multiple of the page size.
403 */
404 uint64_t bo_size =
405 bucket ? bucket->size : MAX2(ALIGN(size, page_size), page_size);
406
407 simple_mtx_lock(&bufmgr->lock);
408
409 /* Get a buffer out of the cache if available. First, we try to find
410 * one with a matching memory zone so we can avoid reallocating VMA.
411 */
412 bo = alloc_bo_from_cache(bufmgr, bucket, alignment, flags);
413
414 simple_mtx_unlock(&bufmgr->lock);
415
416 if (!bo) {
417 bo = alloc_fresh_bo(bufmgr, bo_size);
418 if (!bo)
419 return NULL;
420 }
421
422 if (bo_set_tiling_internal(bo, tiling_mode, stride))
423 goto err_free;
424
425 bo->name = name;
426 p_atomic_set(&bo->refcount, 1);
427 bo->reusable = bucket && bufmgr->bo_reuse;
428 bo->cache_coherent = bufmgr->has_llc;
429 bo->index = -1;
430 bo->kflags = 0;
431
432 if (flags & BO_ALLOC_SCANOUT)
433 bo->scanout = 1;
434
435 if ((flags & BO_ALLOC_COHERENT) && !bo->cache_coherent) {
436 struct drm_i915_gem_caching arg = {
437 .handle = bo->gem_handle,
438 .caching = 1,
439 };
440 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_SET_CACHING, &arg) == 0) {
441 bo->cache_coherent = true;
442 bo->reusable = false;
443 }
444 }
445
446 DBG("bo_create: buf %d (%s) %llub\n", bo->gem_handle,
447 bo->name, (unsigned long long) size);
448
449 return bo;
450
451 err_free:
452 bo_free(bo);
453 return NULL;
454 }
455
456 struct crocus_bo *
crocus_bo_alloc(struct crocus_bufmgr * bufmgr,const char * name,uint64_t size)457 crocus_bo_alloc(struct crocus_bufmgr *bufmgr,
458 const char *name,
459 uint64_t size)
460 {
461 return bo_alloc_internal(bufmgr, name, size, 1,
462 0, I915_TILING_NONE, 0);
463 }
464
465 struct crocus_bo *
crocus_bo_alloc_tiled(struct crocus_bufmgr * bufmgr,const char * name,uint64_t size,uint32_t alignment,uint32_t tiling_mode,uint32_t pitch,unsigned flags)466 crocus_bo_alloc_tiled(struct crocus_bufmgr *bufmgr, const char *name,
467 uint64_t size, uint32_t alignment,
468 uint32_t tiling_mode, uint32_t pitch, unsigned flags)
469 {
470 return bo_alloc_internal(bufmgr, name, size, alignment,
471 flags, tiling_mode, pitch);
472 }
473
474 struct crocus_bo *
crocus_bo_create_userptr(struct crocus_bufmgr * bufmgr,const char * name,void * ptr,size_t size)475 crocus_bo_create_userptr(struct crocus_bufmgr *bufmgr, const char *name,
476 void *ptr, size_t size)
477 {
478 struct crocus_bo *bo;
479
480 bo = bo_calloc();
481 if (!bo)
482 return NULL;
483
484 struct drm_i915_gem_userptr arg = {
485 .user_ptr = (uintptr_t)ptr,
486 .user_size = size,
487 };
488 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_USERPTR, &arg))
489 goto err_free;
490 bo->gem_handle = arg.handle;
491
492 /* Check the buffer for validity before we try and use it in a batch */
493 struct drm_i915_gem_set_domain sd = {
494 .handle = bo->gem_handle,
495 .read_domains = I915_GEM_DOMAIN_CPU,
496 };
497 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_SET_DOMAIN, &sd))
498 goto err_close;
499
500 bo->name = name;
501 bo->size = size;
502 bo->map_cpu = ptr;
503
504 bo->bufmgr = bufmgr;
505 bo->kflags = 0;
506
507 p_atomic_set(&bo->refcount, 1);
508 bo->userptr = true;
509 bo->cache_coherent = true;
510 bo->index = -1;
511 bo->idle = true;
512
513 return bo;
514
515 err_close:
516 intel_ioctl(bufmgr->fd, DRM_IOCTL_GEM_CLOSE, &bo->gem_handle);
517 err_free:
518 free(bo);
519 return NULL;
520 }
521
522 /**
523 * Returns a crocus_bo wrapping the given buffer object handle.
524 *
525 * This can be used when one application needs to pass a buffer object
526 * to another.
527 */
528 struct crocus_bo *
crocus_bo_gem_create_from_name(struct crocus_bufmgr * bufmgr,const char * name,unsigned int handle)529 crocus_bo_gem_create_from_name(struct crocus_bufmgr *bufmgr,
530 const char *name, unsigned int handle)
531 {
532 struct crocus_bo *bo;
533
534 /* At the moment most applications only have a few named bo.
535 * For instance, in a DRI client only the render buffers passed
536 * between X and the client are named. And since X returns the
537 * alternating names for the front/back buffer a linear search
538 * provides a sufficiently fast match.
539 */
540 simple_mtx_lock(&bufmgr->lock);
541 bo = find_and_ref_external_bo(bufmgr->name_table, handle);
542 if (bo)
543 goto out;
544
545 struct drm_gem_open open_arg = { .name = handle };
546 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_GEM_OPEN, &open_arg);
547 if (ret != 0) {
548 DBG("Couldn't reference %s handle 0x%08x: %s\n",
549 name, handle, strerror(errno));
550 bo = NULL;
551 goto out;
552 }
553 /* Now see if someone has used a prime handle to get this
554 * object from the kernel before by looking through the list
555 * again for a matching gem_handle
556 */
557 bo = find_and_ref_external_bo(bufmgr->handle_table, open_arg.handle);
558 if (bo)
559 goto out;
560
561 bo = bo_calloc();
562 if (!bo)
563 goto out;
564
565 p_atomic_set(&bo->refcount, 1);
566
567 bo->size = open_arg.size;
568 bo->gtt_offset = 0;
569 bo->bufmgr = bufmgr;
570 bo->gem_handle = open_arg.handle;
571 bo->name = name;
572 bo->global_name = handle;
573 bo->reusable = false;
574 bo->external = true;
575 bo->kflags = 0;
576
577 _mesa_hash_table_insert(bufmgr->handle_table, &bo->gem_handle, bo);
578 _mesa_hash_table_insert(bufmgr->name_table, &bo->global_name, bo);
579
580 struct drm_i915_gem_get_tiling get_tiling = { .handle = bo->gem_handle };
581 ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_GET_TILING, &get_tiling);
582 if (ret != 0)
583 goto err_unref;
584
585 bo->tiling_mode = get_tiling.tiling_mode;
586 bo->swizzle_mode = get_tiling.swizzle_mode;
587 /* XXX stride is unknown */
588 DBG("bo_create_from_handle: %d (%s)\n", handle, bo->name);
589
590 out:
591 simple_mtx_unlock(&bufmgr->lock);
592 return bo;
593
594 err_unref:
595 bo_free(bo);
596 simple_mtx_unlock(&bufmgr->lock);
597 return NULL;
598 }
599
600 static void
bo_close(struct crocus_bo * bo)601 bo_close(struct crocus_bo *bo)
602 {
603 struct crocus_bufmgr *bufmgr = bo->bufmgr;
604
605 if (bo->external) {
606 struct hash_entry *entry;
607
608 if (bo->global_name) {
609 entry = _mesa_hash_table_search(bufmgr->name_table, &bo->global_name);
610 _mesa_hash_table_remove(bufmgr->name_table, entry);
611 }
612
613 entry = _mesa_hash_table_search(bufmgr->handle_table, &bo->gem_handle);
614 _mesa_hash_table_remove(bufmgr->handle_table, entry);
615
616 list_for_each_entry_safe(struct bo_export, export, &bo->exports, link) {
617 struct drm_gem_close close = { .handle = export->gem_handle };
618 intel_ioctl(export->drm_fd, DRM_IOCTL_GEM_CLOSE, &close);
619
620 list_del(&export->link);
621 free(export);
622 }
623 } else {
624 assert(list_is_empty(&bo->exports));
625 }
626
627 /* Close this object */
628 struct drm_gem_close close = { .handle = bo->gem_handle };
629 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_GEM_CLOSE, &close);
630 if (ret != 0) {
631 DBG("DRM_IOCTL_GEM_CLOSE %d failed (%s): %s\n",
632 bo->gem_handle, bo->name, strerror(errno));
633 }
634
635 free(bo);
636 }
637
638 static void
bo_free(struct crocus_bo * bo)639 bo_free(struct crocus_bo *bo)
640 {
641 struct crocus_bufmgr *bufmgr = bo->bufmgr;
642
643 if (bo->map_cpu && !bo->userptr) {
644 VG_NOACCESS(bo->map_cpu, bo->size);
645 munmap(bo->map_cpu, bo->size);
646 }
647 if (bo->map_wc) {
648 VG_NOACCESS(bo->map_wc, bo->size);
649 munmap(bo->map_wc, bo->size);
650 }
651 if (bo->map_gtt) {
652 VG_NOACCESS(bo->map_gtt, bo->size);
653 munmap(bo->map_gtt, bo->size);
654 }
655
656 if (bo->idle) {
657 bo_close(bo);
658 } else {
659 /* Defer closing the GEM BO and returning the VMA for reuse until the
660 * BO is idle. Just move it to the dead list for now.
661 */
662 list_addtail(&bo->head, &bufmgr->zombie_list);
663 }
664 }
665
666 /** Frees all cached buffers significantly older than @time. */
667 static void
cleanup_bo_cache(struct crocus_bufmgr * bufmgr,time_t time)668 cleanup_bo_cache(struct crocus_bufmgr *bufmgr, time_t time)
669 {
670 int i;
671
672 if (bufmgr->time == time)
673 return;
674
675 for (i = 0; i < bufmgr->num_buckets; i++) {
676 struct bo_cache_bucket *bucket = &bufmgr->cache_bucket[i];
677
678 list_for_each_entry_safe(struct crocus_bo, bo, &bucket->head, head) {
679 if (time - bo->free_time <= 1)
680 break;
681
682 list_del(&bo->head);
683
684 bo_free(bo);
685 }
686 }
687
688 list_for_each_entry_safe(struct crocus_bo, bo, &bufmgr->zombie_list, head) {
689 /* Stop once we reach a busy BO - all others past this point were
690 * freed more recently so are likely also busy.
691 */
692 if (!bo->idle && crocus_bo_busy(bo))
693 break;
694
695 list_del(&bo->head);
696 bo_close(bo);
697 }
698
699 bufmgr->time = time;
700 }
701
702 static void
bo_unreference_final(struct crocus_bo * bo,time_t time)703 bo_unreference_final(struct crocus_bo *bo, time_t time)
704 {
705 struct crocus_bufmgr *bufmgr = bo->bufmgr;
706 struct bo_cache_bucket *bucket;
707
708 DBG("bo_unreference final: %d (%s)\n", bo->gem_handle, bo->name);
709
710 bucket = NULL;
711 if (bo->reusable)
712 bucket = bucket_for_size(bufmgr, bo->size);
713 /* Put the buffer into our internal cache for reuse if we can. */
714 if (bucket && crocus_bo_madvise(bo, I915_MADV_DONTNEED)) {
715 bo->free_time = time;
716 bo->name = NULL;
717
718 list_addtail(&bo->head, &bucket->head);
719 } else {
720 bo_free(bo);
721 }
722 }
723
724 void
__crocus_bo_unreference(struct crocus_bo * bo)725 __crocus_bo_unreference(struct crocus_bo *bo)
726 {
727 struct crocus_bufmgr *bufmgr = bo->bufmgr;
728 struct timespec time;
729
730 clock_gettime(CLOCK_MONOTONIC, &time);
731
732 simple_mtx_lock(&bufmgr->lock);
733
734 if (p_atomic_dec_zero(&bo->refcount)) {
735 bo_unreference_final(bo, time.tv_sec);
736 cleanup_bo_cache(bufmgr, time.tv_sec);
737 }
738
739 simple_mtx_unlock(&bufmgr->lock);
740 }
741
742 static void
bo_wait_with_stall_warning(struct util_debug_callback * dbg,struct crocus_bo * bo,const char * action)743 bo_wait_with_stall_warning(struct util_debug_callback *dbg,
744 struct crocus_bo *bo,
745 const char *action)
746 {
747 bool busy = dbg && !bo->idle;
748 double elapsed = unlikely(busy) ? -get_time() : 0.0;
749
750 crocus_bo_wait_rendering(bo);
751
752 if (unlikely(busy)) {
753 elapsed += get_time();
754 if (elapsed > 1e-5) /* 0.01ms */ {
755 perf_debug(dbg, "%s a busy \"%s\" BO stalled and took %.03f ms.\n",
756 action, bo->name, elapsed * 1000);
757 }
758 }
759 }
760
761 static void
print_flags(unsigned flags)762 print_flags(unsigned flags)
763 {
764 if (flags & MAP_READ)
765 DBG("READ ");
766 if (flags & MAP_WRITE)
767 DBG("WRITE ");
768 if (flags & MAP_ASYNC)
769 DBG("ASYNC ");
770 if (flags & MAP_PERSISTENT)
771 DBG("PERSISTENT ");
772 if (flags & MAP_COHERENT)
773 DBG("COHERENT ");
774 if (flags & MAP_RAW)
775 DBG("RAW ");
776 DBG("\n");
777 }
778
779 static void *
crocus_bo_gem_mmap_legacy(struct util_debug_callback * dbg,struct crocus_bo * bo,bool wc)780 crocus_bo_gem_mmap_legacy(struct util_debug_callback *dbg,
781 struct crocus_bo *bo, bool wc)
782 {
783 struct crocus_bufmgr *bufmgr = bo->bufmgr;
784
785 struct drm_i915_gem_mmap mmap_arg = {
786 .handle = bo->gem_handle,
787 .size = bo->size,
788 .flags = wc ? I915_MMAP_WC : 0,
789 };
790
791 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_MMAP, &mmap_arg);
792 if (ret != 0) {
793 DBG("%s:%d: Error mapping buffer %d (%s): %s .\n",
794 __FILE__, __LINE__, bo->gem_handle, bo->name, strerror(errno));
795 return NULL;
796 }
797 void *map = (void *) (uintptr_t) mmap_arg.addr_ptr;
798
799 return map;
800 }
801
802 static void *
crocus_bo_gem_mmap_offset(struct util_debug_callback * dbg,struct crocus_bo * bo,bool wc)803 crocus_bo_gem_mmap_offset(struct util_debug_callback *dbg, struct crocus_bo *bo,
804 bool wc)
805 {
806 struct crocus_bufmgr *bufmgr = bo->bufmgr;
807
808 struct drm_i915_gem_mmap_offset mmap_arg = {
809 .handle = bo->gem_handle,
810 .flags = wc ? I915_MMAP_OFFSET_WC : I915_MMAP_OFFSET_WB,
811 };
812
813 /* Get the fake offset back */
814 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_MMAP_OFFSET, &mmap_arg);
815 if (ret != 0) {
816 DBG("%s:%d: Error preparing buffer %d (%s): %s .\n",
817 __FILE__, __LINE__, bo->gem_handle, bo->name, strerror(errno));
818 return NULL;
819 }
820
821 /* And map it */
822 void *map = mmap(0, bo->size, PROT_READ | PROT_WRITE, MAP_SHARED,
823 bufmgr->fd, mmap_arg.offset);
824 if (map == MAP_FAILED) {
825 DBG("%s:%d: Error mapping buffer %d (%s): %s .\n",
826 __FILE__, __LINE__, bo->gem_handle, bo->name, strerror(errno));
827 return NULL;
828 }
829
830 return map;
831 }
832
833 static void *
crocus_bo_gem_mmap(struct util_debug_callback * dbg,struct crocus_bo * bo,bool wc)834 crocus_bo_gem_mmap(struct util_debug_callback *dbg, struct crocus_bo *bo, bool wc)
835 {
836 struct crocus_bufmgr *bufmgr = bo->bufmgr;
837
838 if (bufmgr->has_mmap_offset)
839 return crocus_bo_gem_mmap_offset(dbg, bo, wc);
840 else
841 return crocus_bo_gem_mmap_legacy(dbg, bo, wc);
842 }
843
844 static void *
crocus_bo_map_cpu(struct util_debug_callback * dbg,struct crocus_bo * bo,unsigned flags)845 crocus_bo_map_cpu(struct util_debug_callback *dbg,
846 struct crocus_bo *bo, unsigned flags)
847 {
848 /* We disallow CPU maps for writing to non-coherent buffers, as the
849 * CPU map can become invalidated when a batch is flushed out, which
850 * can happen at unpredictable times. You should use WC maps instead.
851 */
852 assert(bo->cache_coherent || !(flags & MAP_WRITE));
853
854 if (!bo->map_cpu) {
855 DBG("crocus_bo_map_cpu: %d (%s)\n", bo->gem_handle, bo->name);
856
857 void *map = crocus_bo_gem_mmap(dbg, bo, false);
858 if (!map) {
859 return NULL;
860 }
861
862 VG_DEFINED(map, bo->size);
863
864 if (p_atomic_cmpxchg(&bo->map_cpu, NULL, map)) {
865 VG_NOACCESS(map, bo->size);
866 munmap(map, bo->size);
867 }
868 }
869 assert(bo->map_cpu);
870
871 DBG("crocus_bo_map_cpu: %d (%s) -> %p, ", bo->gem_handle, bo->name,
872 bo->map_cpu);
873 print_flags(flags);
874
875 if (!(flags & MAP_ASYNC)) {
876 bo_wait_with_stall_warning(dbg, bo, "CPU mapping");
877 }
878
879 if (!bo->cache_coherent && !bo->bufmgr->has_llc) {
880 /* If we're reusing an existing CPU mapping, the CPU caches may
881 * contain stale data from the last time we read from that mapping.
882 * (With the BO cache, it might even be data from a previous buffer!)
883 * Even if it's a brand new mapping, the kernel may have zeroed the
884 * buffer via CPU writes.
885 *
886 * We need to invalidate those cachelines so that we see the latest
887 * contents, and so long as we only read from the CPU mmap we do not
888 * need to write those cachelines back afterwards.
889 *
890 * On LLC, the emprical evidence suggests that writes from the GPU
891 * that bypass the LLC (i.e. for scanout) do *invalidate* the CPU
892 * cachelines. (Other reads, such as the display engine, bypass the
893 * LLC entirely requiring us to keep dirty pixels for the scanout
894 * out of any cache.)
895 */
896 intel_invalidate_range(bo->map_cpu, bo->size);
897 }
898
899 return bo->map_cpu;
900 }
901
902 static void *
crocus_bo_map_wc(struct util_debug_callback * dbg,struct crocus_bo * bo,unsigned flags)903 crocus_bo_map_wc(struct util_debug_callback *dbg,
904 struct crocus_bo *bo, unsigned flags)
905 {
906 if (!bo->map_wc) {
907 DBG("crocus_bo_map_wc: %d (%s)\n", bo->gem_handle, bo->name);
908
909 void *map = crocus_bo_gem_mmap(dbg, bo, true);
910 if (!map) {
911 return NULL;
912 }
913
914 VG_DEFINED(map, bo->size);
915
916 if (p_atomic_cmpxchg(&bo->map_wc, NULL, map)) {
917 VG_NOACCESS(map, bo->size);
918 munmap(map, bo->size);
919 }
920 }
921 assert(bo->map_wc);
922
923 DBG("crocus_bo_map_wc: %d (%s) -> %p\n", bo->gem_handle, bo->name, bo->map_wc);
924 print_flags(flags);
925
926 if (!(flags & MAP_ASYNC)) {
927 bo_wait_with_stall_warning(dbg, bo, "WC mapping");
928 }
929
930 return bo->map_wc;
931 }
932
933 /**
934 * Perform an uncached mapping via the GTT.
935 *
936 * Write access through the GTT is not quite fully coherent. On low power
937 * systems especially, like modern Atoms, we can observe reads from RAM before
938 * the write via GTT has landed. A write memory barrier that flushes the Write
939 * Combining Buffer (i.e. sfence/mfence) is not sufficient to order the later
940 * read after the write as the GTT write suffers a small delay through the GTT
941 * indirection. The kernel uses an uncached mmio read to ensure the GTT write
942 * is ordered with reads (either by the GPU, WB or WC) and unconditionally
943 * flushes prior to execbuf submission. However, if we are not informing the
944 * kernel about our GTT writes, it will not flush before earlier access, such
945 * as when using the cmdparser. Similarly, we need to be careful if we should
946 * ever issue a CPU read immediately following a GTT write.
947 *
948 * Telling the kernel about write access also has one more important
949 * side-effect. Upon receiving notification about the write, it cancels any
950 * scanout buffering for FBC/PSR and friends. Later FBC/PSR is then flushed by
951 * either SW_FINISH or DIRTYFB. The presumption is that we never write to the
952 * actual scanout via a mmaping, only to a backbuffer and so all the FBC/PSR
953 * tracking is handled on the buffer exchange instead.
954 */
955 static void *
crocus_bo_map_gtt(struct util_debug_callback * dbg,struct crocus_bo * bo,unsigned flags)956 crocus_bo_map_gtt(struct util_debug_callback *dbg,
957 struct crocus_bo *bo, unsigned flags)
958 {
959 struct crocus_bufmgr *bufmgr = bo->bufmgr;
960
961 /* If we don't support get/set_tiling, there's no support for GTT mapping
962 * either (it won't do any de-tiling for us).
963 */
964 assert(bufmgr->has_tiling_uapi);
965
966 /* Get a mapping of the buffer if we haven't before. */
967 if (bo->map_gtt == NULL) {
968 DBG("bo_map_gtt: mmap %d (%s)\n", bo->gem_handle, bo->name);
969
970 struct drm_i915_gem_mmap_gtt mmap_arg = { .handle = bo->gem_handle };
971
972 /* Get the fake offset back... */
973 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_MMAP_GTT, &mmap_arg);
974 if (ret != 0) {
975 DBG("%s:%d: Error preparing buffer map %d (%s): %s .\n",
976 __FILE__, __LINE__, bo->gem_handle, bo->name, strerror(errno));
977 return NULL;
978 }
979
980 /* and mmap it. */
981 void *map = mmap(0, bo->size, PROT_READ | PROT_WRITE,
982 MAP_SHARED, bufmgr->fd, mmap_arg.offset);
983 if (map == MAP_FAILED) {
984 DBG("%s:%d: Error mapping buffer %d (%s): %s .\n",
985 __FILE__, __LINE__, bo->gem_handle, bo->name, strerror(errno));
986 return NULL;
987 }
988
989 /* We don't need to use VALGRIND_MALLOCLIKE_BLOCK because Valgrind will
990 * already intercept this mmap call. However, for consistency between
991 * all the mmap paths, we mark the pointer as defined now and mark it
992 * as inaccessible afterwards.
993 */
994 VG_DEFINED(map, bo->size);
995
996 if (p_atomic_cmpxchg(&bo->map_gtt, NULL, map)) {
997 VG_NOACCESS(map, bo->size);
998 munmap(map, bo->size);
999 }
1000 }
1001 assert(bo->map_gtt);
1002
1003 DBG("bo_map_gtt: %d (%s) -> %p, ", bo->gem_handle, bo->name, bo->map_gtt);
1004 print_flags(flags);
1005
1006 if (!(flags & MAP_ASYNC)) {
1007 bo_wait_with_stall_warning(dbg, bo, "GTT mapping");
1008 }
1009
1010 return bo->map_gtt;
1011 }
1012
1013 static bool
can_map_cpu(struct crocus_bo * bo,unsigned flags)1014 can_map_cpu(struct crocus_bo *bo, unsigned flags)
1015 {
1016 if (bo->scanout)
1017 return false;
1018
1019 if (bo->cache_coherent)
1020 return true;
1021
1022 /* Even if the buffer itself is not cache-coherent (such as a scanout), on
1023 * an LLC platform reads always are coherent (as they are performed via the
1024 * central system agent). It is just the writes that we need to take special
1025 * care to ensure that land in main memory and not stick in the CPU cache.
1026 */
1027 if (!(flags & MAP_WRITE) && bo->bufmgr->has_llc)
1028 return true;
1029
1030 /* If PERSISTENT or COHERENT are set, the mmapping needs to remain valid
1031 * across batch flushes where the kernel will change cache domains of the
1032 * bo, invalidating continued access to the CPU mmap on non-LLC device.
1033 *
1034 * Similarly, ASYNC typically means that the buffer will be accessed via
1035 * both the CPU and the GPU simultaneously. Batches may be executed that
1036 * use the BO even while it is mapped. While OpenGL technically disallows
1037 * most drawing while non-persistent mappings are active, we may still use
1038 * the GPU for blits or other operations, causing batches to happen at
1039 * inconvenient times.
1040 *
1041 * If RAW is set, we expect the caller to be able to handle a WC buffer
1042 * more efficiently than the involuntary clflushes.
1043 */
1044 if (flags & (MAP_PERSISTENT | MAP_COHERENT | MAP_ASYNC | MAP_RAW))
1045 return false;
1046
1047 return !(flags & MAP_WRITE);
1048 }
1049
1050 void *
crocus_bo_map(struct util_debug_callback * dbg,struct crocus_bo * bo,unsigned flags)1051 crocus_bo_map(struct util_debug_callback *dbg,
1052 struct crocus_bo *bo, unsigned flags)
1053 {
1054 if (bo->tiling_mode != I915_TILING_NONE && !(flags & MAP_RAW))
1055 return crocus_bo_map_gtt(dbg, bo, flags);
1056
1057 void *map;
1058
1059 if (can_map_cpu(bo, flags))
1060 map = crocus_bo_map_cpu(dbg, bo, flags);
1061 else
1062 map = crocus_bo_map_wc(dbg, bo, flags);
1063
1064 /* Allow the attempt to fail by falling back to the GTT where necessary.
1065 *
1066 * Not every buffer can be mmaped directly using the CPU (or WC), for
1067 * example buffers that wrap stolen memory or are imported from other
1068 * devices. For those, we have little choice but to use a GTT mmapping.
1069 * However, if we use a slow GTT mmapping for reads where we expected fast
1070 * access, that order of magnitude difference in throughput will be clearly
1071 * expressed by angry users.
1072 *
1073 * We skip MAP_RAW because we want to avoid map_gtt's fence detiling.
1074 */
1075 if (!map && !(flags & MAP_RAW)) {
1076 perf_debug(dbg, "Fallback GTT mapping for %s with access flags %x\n",
1077 bo->name, flags);
1078 map = crocus_bo_map_gtt(dbg, bo, flags);
1079 }
1080
1081 return map;
1082 }
1083
1084 /** Waits for all GPU rendering with the object to have completed. */
1085 void
crocus_bo_wait_rendering(struct crocus_bo * bo)1086 crocus_bo_wait_rendering(struct crocus_bo *bo)
1087 {
1088 /* We require a kernel recent enough for WAIT_IOCTL support.
1089 * See intel_init_bufmgr()
1090 */
1091 crocus_bo_wait(bo, -1);
1092 }
1093
1094 /**
1095 * Waits on a BO for the given amount of time.
1096 *
1097 * @bo: buffer object to wait for
1098 * @timeout_ns: amount of time to wait in nanoseconds.
1099 * If value is less than 0, an infinite wait will occur.
1100 *
1101 * Returns 0 if the wait was successful ie. the last batch referencing the
1102 * object has completed within the allotted time. Otherwise some negative return
1103 * value describes the error. Of particular interest is -ETIME when the wait has
1104 * failed to yield the desired result.
1105 *
1106 * Similar to crocus_bo_wait_rendering except a timeout parameter allows
1107 * the operation to give up after a certain amount of time. Another subtle
1108 * difference is the internal locking semantics are different (this variant does
1109 * not hold the lock for the duration of the wait). This makes the wait subject
1110 * to a larger userspace race window.
1111 *
1112 * The implementation shall wait until the object is no longer actively
1113 * referenced within a batch buffer at the time of the call. The wait will
1114 * not guarantee that the buffer is re-issued via another thread, or an flinked
1115 * handle. Userspace must make sure this race does not occur if such precision
1116 * is important.
1117 *
1118 * Note that some kernels have broken the inifite wait for negative values
1119 * promise, upgrade to latest stable kernels if this is the case.
1120 */
1121 int
crocus_bo_wait(struct crocus_bo * bo,int64_t timeout_ns)1122 crocus_bo_wait(struct crocus_bo *bo, int64_t timeout_ns)
1123 {
1124 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1125
1126 /* If we know it's idle, don't bother with the kernel round trip */
1127 if (bo->idle && !bo->external)
1128 return 0;
1129
1130 struct drm_i915_gem_wait wait = {
1131 .bo_handle = bo->gem_handle,
1132 .timeout_ns = timeout_ns,
1133 };
1134 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_WAIT, &wait);
1135 if (ret != 0)
1136 return -errno;
1137
1138 bo->idle = true;
1139
1140 return ret;
1141 }
1142
1143 static void
crocus_bufmgr_destroy(struct crocus_bufmgr * bufmgr)1144 crocus_bufmgr_destroy(struct crocus_bufmgr *bufmgr)
1145 {
1146 simple_mtx_destroy(&bufmgr->lock);
1147
1148 /* Free any cached buffer objects we were going to reuse */
1149 for (int i = 0; i < bufmgr->num_buckets; i++) {
1150 struct bo_cache_bucket *bucket = &bufmgr->cache_bucket[i];
1151
1152 list_for_each_entry_safe(struct crocus_bo, bo, &bucket->head, head) {
1153 list_del(&bo->head);
1154
1155 bo_free(bo);
1156 }
1157 }
1158
1159 /* Close any buffer objects on the dead list. */
1160 list_for_each_entry_safe(struct crocus_bo, bo, &bufmgr->zombie_list, head) {
1161 list_del(&bo->head);
1162 bo_close(bo);
1163 }
1164
1165 _mesa_hash_table_destroy(bufmgr->name_table, NULL);
1166 _mesa_hash_table_destroy(bufmgr->handle_table, NULL);
1167
1168 close(bufmgr->fd);
1169
1170 free(bufmgr);
1171 }
1172
1173 static int
bo_set_tiling_internal(struct crocus_bo * bo,uint32_t tiling_mode,uint32_t stride)1174 bo_set_tiling_internal(struct crocus_bo *bo, uint32_t tiling_mode,
1175 uint32_t stride)
1176 {
1177 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1178 struct drm_i915_gem_set_tiling set_tiling;
1179 int ret;
1180
1181 if (bo->global_name == 0 &&
1182 tiling_mode == bo->tiling_mode && stride == bo->stride)
1183 return 0;
1184
1185 memset(&set_tiling, 0, sizeof(set_tiling));
1186 do {
1187 /* set_tiling is slightly broken and overwrites the
1188 * input on the error path, so we have to open code
1189 * drm_ioctl.
1190 */
1191 set_tiling.handle = bo->gem_handle;
1192 set_tiling.tiling_mode = tiling_mode;
1193 set_tiling.stride = stride;
1194
1195 ret = ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_SET_TILING, &set_tiling);
1196 } while (ret == -1 && (errno == EINTR || errno == EAGAIN));
1197 if (ret == -1)
1198 return -errno;
1199
1200 bo->tiling_mode = set_tiling.tiling_mode;
1201 bo->swizzle_mode = set_tiling.swizzle_mode;
1202 bo->stride = set_tiling.stride;
1203 return 0;
1204 }
1205
1206 int
crocus_bo_get_tiling(struct crocus_bo * bo,uint32_t * tiling_mode,uint32_t * swizzle_mode)1207 crocus_bo_get_tiling(struct crocus_bo *bo, uint32_t *tiling_mode,
1208 uint32_t *swizzle_mode)
1209 {
1210 *tiling_mode = bo->tiling_mode;
1211 *swizzle_mode = bo->swizzle_mode;
1212 return 0;
1213 }
1214
1215 struct crocus_bo *
crocus_bo_import_dmabuf(struct crocus_bufmgr * bufmgr,int prime_fd,uint64_t modifier)1216 crocus_bo_import_dmabuf(struct crocus_bufmgr *bufmgr, int prime_fd,
1217 uint64_t modifier)
1218 {
1219 uint32_t handle;
1220 struct crocus_bo *bo;
1221
1222 simple_mtx_lock(&bufmgr->lock);
1223 int ret = drmPrimeFDToHandle(bufmgr->fd, prime_fd, &handle);
1224 if (ret) {
1225 DBG("import_dmabuf: failed to obtain handle from fd: %s\n",
1226 strerror(errno));
1227 simple_mtx_unlock(&bufmgr->lock);
1228 return NULL;
1229 }
1230
1231 /*
1232 * See if the kernel has already returned this buffer to us. Just as
1233 * for named buffers, we must not create two bo's pointing at the same
1234 * kernel object
1235 */
1236 bo = find_and_ref_external_bo(bufmgr->handle_table, handle);
1237 if (bo)
1238 goto out;
1239
1240 bo = bo_calloc();
1241 if (!bo)
1242 goto out;
1243
1244 p_atomic_set(&bo->refcount, 1);
1245
1246 /* Determine size of bo. The fd-to-handle ioctl really should
1247 * return the size, but it doesn't. If we have kernel 3.12 or
1248 * later, we can lseek on the prime fd to get the size. Older
1249 * kernels will just fail, in which case we fall back to the
1250 * provided (estimated or guess size). */
1251 ret = lseek(prime_fd, 0, SEEK_END);
1252 if (ret != -1)
1253 bo->size = ret;
1254
1255 bo->bufmgr = bufmgr;
1256 bo->name = "prime";
1257 bo->reusable = false;
1258 bo->external = true;
1259 bo->kflags = 0;
1260 bo->gem_handle = handle;
1261 _mesa_hash_table_insert(bufmgr->handle_table, &bo->gem_handle, bo);
1262
1263 const struct isl_drm_modifier_info *mod_info =
1264 isl_drm_modifier_get_info(modifier);
1265 if (mod_info) {
1266 bo->tiling_mode = isl_tiling_to_i915_tiling(mod_info->tiling);
1267 } else if (bufmgr->has_tiling_uapi) {
1268 struct drm_i915_gem_get_tiling get_tiling = { .handle = bo->gem_handle };
1269 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_GET_TILING, &get_tiling))
1270 goto err;
1271
1272 bo->tiling_mode = get_tiling.tiling_mode;
1273 } else {
1274 bo->tiling_mode = I915_TILING_NONE;
1275 }
1276
1277 out:
1278 simple_mtx_unlock(&bufmgr->lock);
1279 return bo;
1280
1281 err:
1282 bo_free(bo);
1283 simple_mtx_unlock(&bufmgr->lock);
1284 return NULL;
1285 }
1286
1287 struct crocus_bo *
crocus_bo_import_dmabuf_no_mods(struct crocus_bufmgr * bufmgr,int prime_fd)1288 crocus_bo_import_dmabuf_no_mods(struct crocus_bufmgr *bufmgr,
1289 int prime_fd)
1290 {
1291 uint32_t handle;
1292 struct crocus_bo *bo;
1293
1294 simple_mtx_lock(&bufmgr->lock);
1295 int ret = drmPrimeFDToHandle(bufmgr->fd, prime_fd, &handle);
1296 if (ret) {
1297 DBG("import_dmabuf: failed to obtain handle from fd: %s\n",
1298 strerror(errno));
1299 simple_mtx_unlock(&bufmgr->lock);
1300 return NULL;
1301 }
1302
1303 /*
1304 * See if the kernel has already returned this buffer to us. Just as
1305 * for named buffers, we must not create two bo's pointing at the same
1306 * kernel object
1307 */
1308 bo = find_and_ref_external_bo(bufmgr->handle_table, handle);
1309 if (bo)
1310 goto out;
1311
1312 bo = bo_calloc();
1313 if (!bo)
1314 goto out;
1315
1316 p_atomic_set(&bo->refcount, 1);
1317
1318 /* Determine size of bo. The fd-to-handle ioctl really should
1319 * return the size, but it doesn't. If we have kernel 3.12 or
1320 * later, we can lseek on the prime fd to get the size. Older
1321 * kernels will just fail, in which case we fall back to the
1322 * provided (estimated or guess size). */
1323 ret = lseek(prime_fd, 0, SEEK_END);
1324 if (ret != -1)
1325 bo->size = ret;
1326
1327 bo->bufmgr = bufmgr;
1328 bo->name = "prime";
1329 bo->reusable = false;
1330 bo->external = true;
1331 bo->kflags = 0;
1332 bo->gem_handle = handle;
1333 _mesa_hash_table_insert(bufmgr->handle_table, &bo->gem_handle, bo);
1334
1335 out:
1336 simple_mtx_unlock(&bufmgr->lock);
1337 return bo;
1338 }
1339
1340 static void
crocus_bo_make_external_locked(struct crocus_bo * bo)1341 crocus_bo_make_external_locked(struct crocus_bo *bo)
1342 {
1343 if (!bo->external) {
1344 _mesa_hash_table_insert(bo->bufmgr->handle_table, &bo->gem_handle, bo);
1345 bo->external = true;
1346 bo->reusable = false;
1347 }
1348 }
1349
1350 static void
crocus_bo_make_external(struct crocus_bo * bo)1351 crocus_bo_make_external(struct crocus_bo *bo)
1352 {
1353 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1354
1355 if (bo->external) {
1356 assert(!bo->reusable);
1357 return;
1358 }
1359
1360 simple_mtx_lock(&bufmgr->lock);
1361 crocus_bo_make_external_locked(bo);
1362 simple_mtx_unlock(&bufmgr->lock);
1363 }
1364
1365 int
crocus_bo_export_dmabuf(struct crocus_bo * bo,int * prime_fd)1366 crocus_bo_export_dmabuf(struct crocus_bo *bo, int *prime_fd)
1367 {
1368 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1369
1370 crocus_bo_make_external(bo);
1371
1372 if (drmPrimeHandleToFD(bufmgr->fd, bo->gem_handle,
1373 DRM_CLOEXEC | DRM_RDWR, prime_fd) != 0)
1374 return -errno;
1375
1376 return 0;
1377 }
1378
1379 uint32_t
crocus_bo_export_gem_handle(struct crocus_bo * bo)1380 crocus_bo_export_gem_handle(struct crocus_bo *bo)
1381 {
1382 crocus_bo_make_external(bo);
1383
1384 return bo->gem_handle;
1385 }
1386
1387 int
crocus_bo_flink(struct crocus_bo * bo,uint32_t * name)1388 crocus_bo_flink(struct crocus_bo *bo, uint32_t *name)
1389 {
1390 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1391
1392 if (!bo->global_name) {
1393 struct drm_gem_flink flink = { .handle = bo->gem_handle };
1394
1395 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_GEM_FLINK, &flink))
1396 return -errno;
1397
1398 simple_mtx_lock(&bufmgr->lock);
1399 if (!bo->global_name) {
1400 crocus_bo_make_external_locked(bo);
1401 bo->global_name = flink.name;
1402 _mesa_hash_table_insert(bufmgr->name_table, &bo->global_name, bo);
1403 }
1404 simple_mtx_unlock(&bufmgr->lock);
1405 }
1406
1407 *name = bo->global_name;
1408 return 0;
1409 }
1410
1411 int
crocus_bo_export_gem_handle_for_device(struct crocus_bo * bo,int drm_fd,uint32_t * out_handle)1412 crocus_bo_export_gem_handle_for_device(struct crocus_bo *bo, int drm_fd,
1413 uint32_t *out_handle)
1414 {
1415 /* Only add the new GEM handle to the list of export if it belongs to a
1416 * different GEM device. Otherwise we might close the same buffer multiple
1417 * times.
1418 */
1419 struct crocus_bufmgr *bufmgr = bo->bufmgr;
1420 int ret = os_same_file_description(drm_fd, bufmgr->fd);
1421 WARN_ONCE(ret < 0,
1422 "Kernel has no file descriptor comparison support: %s\n",
1423 strerror(errno));
1424 if (ret == 0) {
1425 *out_handle = crocus_bo_export_gem_handle(bo);
1426 return 0;
1427 }
1428
1429 struct bo_export *export = calloc(1, sizeof(*export));
1430 if (!export)
1431 return -ENOMEM;
1432
1433 export->drm_fd = drm_fd;
1434
1435 int dmabuf_fd = -1;
1436 int err = crocus_bo_export_dmabuf(bo, &dmabuf_fd);
1437 if (err) {
1438 free(export);
1439 return err;
1440 }
1441
1442 simple_mtx_lock(&bufmgr->lock);
1443 err = drmPrimeFDToHandle(drm_fd, dmabuf_fd, &export->gem_handle);
1444 close(dmabuf_fd);
1445 if (err) {
1446 simple_mtx_unlock(&bufmgr->lock);
1447 free(export);
1448 return err;
1449 }
1450
1451 bool found = false;
1452 list_for_each_entry(struct bo_export, iter, &bo->exports, link) {
1453 if (iter->drm_fd != drm_fd)
1454 continue;
1455 /* Here we assume that for a given DRM fd, we'll always get back the
1456 * same GEM handle for a given buffer.
1457 */
1458 assert(iter->gem_handle == export->gem_handle);
1459 free(export);
1460 export = iter;
1461 found = true;
1462 break;
1463 }
1464 if (!found)
1465 list_addtail(&export->link, &bo->exports);
1466
1467 simple_mtx_unlock(&bufmgr->lock);
1468
1469 *out_handle = export->gem_handle;
1470
1471 return 0;
1472 }
1473
1474 static void
add_bucket(struct crocus_bufmgr * bufmgr,int size)1475 add_bucket(struct crocus_bufmgr *bufmgr, int size)
1476 {
1477 unsigned int i = bufmgr->num_buckets;
1478
1479 assert(i < ARRAY_SIZE(bufmgr->cache_bucket));
1480
1481 list_inithead(&bufmgr->cache_bucket[i].head);
1482 bufmgr->cache_bucket[i].size = size;
1483 bufmgr->num_buckets++;
1484
1485 assert(bucket_for_size(bufmgr, size) == &bufmgr->cache_bucket[i]);
1486 assert(bucket_for_size(bufmgr, size - 2048) == &bufmgr->cache_bucket[i]);
1487 assert(bucket_for_size(bufmgr, size + 1) != &bufmgr->cache_bucket[i]);
1488 }
1489
1490 static void
init_cache_buckets(struct crocus_bufmgr * bufmgr)1491 init_cache_buckets(struct crocus_bufmgr *bufmgr)
1492 {
1493 uint64_t size, cache_max_size = 64 * 1024 * 1024;
1494
1495 /* OK, so power of two buckets was too wasteful of memory.
1496 * Give 3 other sizes between each power of two, to hopefully
1497 * cover things accurately enough. (The alternative is
1498 * probably to just go for exact matching of sizes, and assume
1499 * that for things like composited window resize the tiled
1500 * width/height alignment and rounding of sizes to pages will
1501 * get us useful cache hit rates anyway)
1502 */
1503 add_bucket(bufmgr, PAGE_SIZE);
1504 add_bucket(bufmgr, PAGE_SIZE * 2);
1505 add_bucket(bufmgr, PAGE_SIZE * 3);
1506
1507 /* Initialize the linked lists for BO reuse cache. */
1508 for (size = 4 * PAGE_SIZE; size <= cache_max_size; size *= 2) {
1509 add_bucket(bufmgr, size);
1510
1511 add_bucket(bufmgr, size + size * 1 / 4);
1512 add_bucket(bufmgr, size + size * 2 / 4);
1513 add_bucket(bufmgr, size + size * 3 / 4);
1514 }
1515 }
1516
1517 uint32_t
crocus_create_hw_context(struct crocus_bufmgr * bufmgr)1518 crocus_create_hw_context(struct crocus_bufmgr *bufmgr)
1519 {
1520 struct drm_i915_gem_context_create create = { };
1521 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CONTEXT_CREATE, &create);
1522 if (ret != 0) {
1523 DBG("DRM_IOCTL_I915_GEM_CONTEXT_CREATE failed: %s\n", strerror(errno));
1524 return 0;
1525 }
1526
1527 /* Upon declaring a GPU hang, the kernel will zap the guilty context
1528 * back to the default logical HW state and attempt to continue on to
1529 * our next submitted batchbuffer. However, our render batches assume
1530 * the previous GPU state is preserved, and only emit commands needed
1531 * to incrementally change that state. In particular, we inherit the
1532 * STATE_BASE_ADDRESS and PIPELINE_SELECT settings, which are critical.
1533 * With default base addresses, our next batches will almost certainly
1534 * cause more GPU hangs, leading to repeated hangs until we're banned
1535 * or the machine is dead.
1536 *
1537 * Here we tell the kernel not to attempt to recover our context but
1538 * immediately (on the next batchbuffer submission) report that the
1539 * context is lost, and we will do the recovery ourselves. Ideally,
1540 * we'll have two lost batches instead of a continual stream of hangs.
1541 */
1542 struct drm_i915_gem_context_param p = {
1543 .ctx_id = create.ctx_id,
1544 .param = I915_CONTEXT_PARAM_RECOVERABLE,
1545 .value = false,
1546 };
1547 drmIoctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CONTEXT_SETPARAM, &p);
1548
1549 return create.ctx_id;
1550 }
1551
1552 static int
crocus_hw_context_get_priority(struct crocus_bufmgr * bufmgr,uint32_t ctx_id)1553 crocus_hw_context_get_priority(struct crocus_bufmgr *bufmgr, uint32_t ctx_id)
1554 {
1555 struct drm_i915_gem_context_param p = {
1556 .ctx_id = ctx_id,
1557 .param = I915_CONTEXT_PARAM_PRIORITY,
1558 };
1559 drmIoctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CONTEXT_GETPARAM, &p);
1560 return p.value; /* on error, return 0 i.e. default priority */
1561 }
1562
1563 int
crocus_hw_context_set_priority(struct crocus_bufmgr * bufmgr,uint32_t ctx_id,int priority)1564 crocus_hw_context_set_priority(struct crocus_bufmgr *bufmgr,
1565 uint32_t ctx_id,
1566 int priority)
1567 {
1568 struct drm_i915_gem_context_param p = {
1569 .ctx_id = ctx_id,
1570 .param = I915_CONTEXT_PARAM_PRIORITY,
1571 .value = priority,
1572 };
1573 int err;
1574
1575 err = 0;
1576 if (intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CONTEXT_SETPARAM, &p))
1577 err = -errno;
1578
1579 return err;
1580 }
1581
1582 uint32_t
crocus_clone_hw_context(struct crocus_bufmgr * bufmgr,uint32_t ctx_id)1583 crocus_clone_hw_context(struct crocus_bufmgr *bufmgr, uint32_t ctx_id)
1584 {
1585 uint32_t new_ctx = crocus_create_hw_context(bufmgr);
1586
1587 if (new_ctx) {
1588 int priority = crocus_hw_context_get_priority(bufmgr, ctx_id);
1589 crocus_hw_context_set_priority(bufmgr, new_ctx, priority);
1590 }
1591
1592 return new_ctx;
1593 }
1594
1595 void
crocus_destroy_hw_context(struct crocus_bufmgr * bufmgr,uint32_t ctx_id)1596 crocus_destroy_hw_context(struct crocus_bufmgr *bufmgr, uint32_t ctx_id)
1597 {
1598 struct drm_i915_gem_context_destroy d = { .ctx_id = ctx_id };
1599
1600 if (ctx_id != 0 &&
1601 intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_GEM_CONTEXT_DESTROY, &d) != 0) {
1602 fprintf(stderr, "DRM_IOCTL_I915_GEM_CONTEXT_DESTROY failed: %s\n",
1603 strerror(errno));
1604 }
1605 }
1606
1607 int
crocus_reg_read(struct crocus_bufmgr * bufmgr,uint32_t offset,uint64_t * result)1608 crocus_reg_read(struct crocus_bufmgr *bufmgr, uint32_t offset, uint64_t *result)
1609 {
1610 struct drm_i915_reg_read reg_read = { .offset = offset };
1611 int ret = intel_ioctl(bufmgr->fd, DRM_IOCTL_I915_REG_READ, ®_read);
1612
1613 *result = reg_read.val;
1614 return ret;
1615 }
1616
1617 static int
gem_param(int fd,int name)1618 gem_param(int fd, int name)
1619 {
1620 int v = -1; /* No param uses (yet) the sign bit, reserve it for errors */
1621
1622 struct drm_i915_getparam gp = { .param = name, .value = &v };
1623 if (intel_ioctl(fd, DRM_IOCTL_I915_GETPARAM, &gp))
1624 return -1;
1625
1626 return v;
1627 }
1628
1629 /**
1630 * Initializes the GEM buffer manager, which uses the kernel to allocate, map,
1631 * and manage map buffer objections.
1632 *
1633 * \param fd File descriptor of the opened DRM device.
1634 */
1635 static struct crocus_bufmgr *
crocus_bufmgr_create(struct intel_device_info * devinfo,int fd,bool bo_reuse)1636 crocus_bufmgr_create(struct intel_device_info *devinfo, int fd, bool bo_reuse)
1637 {
1638 struct crocus_bufmgr *bufmgr = calloc(1, sizeof(*bufmgr));
1639 if (bufmgr == NULL)
1640 return NULL;
1641
1642 /* Handles to buffer objects belong to the device fd and are not
1643 * reference counted by the kernel. If the same fd is used by
1644 * multiple parties (threads sharing the same screen bufmgr, or
1645 * even worse the same device fd passed to multiple libraries)
1646 * ownership of those handles is shared by those independent parties.
1647 *
1648 * Don't do this! Ensure that each library/bufmgr has its own device
1649 * fd so that its namespace does not clash with another.
1650 */
1651 bufmgr->fd = os_dupfd_cloexec(fd);
1652
1653 p_atomic_set(&bufmgr->refcount, 1);
1654
1655 simple_mtx_init(&bufmgr->lock, mtx_plain);
1656
1657 list_inithead(&bufmgr->zombie_list);
1658
1659 bufmgr->has_llc = devinfo->has_llc;
1660 bufmgr->has_tiling_uapi = devinfo->has_tiling_uapi;
1661 bufmgr->bo_reuse = bo_reuse;
1662 bufmgr->has_mmap_offset = gem_param(fd, I915_PARAM_MMAP_GTT_VERSION) >= 4;
1663
1664 init_cache_buckets(bufmgr);
1665
1666 bufmgr->name_table =
1667 _mesa_hash_table_create(NULL, key_hash_uint, key_uint_equal);
1668 bufmgr->handle_table =
1669 _mesa_hash_table_create(NULL, key_hash_uint, key_uint_equal);
1670
1671 return bufmgr;
1672 }
1673
1674 static struct crocus_bufmgr *
crocus_bufmgr_ref(struct crocus_bufmgr * bufmgr)1675 crocus_bufmgr_ref(struct crocus_bufmgr *bufmgr)
1676 {
1677 p_atomic_inc(&bufmgr->refcount);
1678 return bufmgr;
1679 }
1680
1681 void
crocus_bufmgr_unref(struct crocus_bufmgr * bufmgr)1682 crocus_bufmgr_unref(struct crocus_bufmgr *bufmgr)
1683 {
1684 simple_mtx_lock(&global_bufmgr_list_mutex);
1685 if (p_atomic_dec_zero(&bufmgr->refcount)) {
1686 list_del(&bufmgr->link);
1687 crocus_bufmgr_destroy(bufmgr);
1688 }
1689 simple_mtx_unlock(&global_bufmgr_list_mutex);
1690 }
1691
1692 /**
1693 * Gets an already existing GEM buffer manager or create a new one.
1694 *
1695 * \param fd File descriptor of the opened DRM device.
1696 */
1697 struct crocus_bufmgr *
crocus_bufmgr_get_for_fd(struct intel_device_info * devinfo,int fd,bool bo_reuse)1698 crocus_bufmgr_get_for_fd(struct intel_device_info *devinfo, int fd, bool bo_reuse)
1699 {
1700 struct stat st;
1701
1702 if (fstat(fd, &st))
1703 return NULL;
1704
1705 struct crocus_bufmgr *bufmgr = NULL;
1706
1707 simple_mtx_lock(&global_bufmgr_list_mutex);
1708 list_for_each_entry(struct crocus_bufmgr, iter_bufmgr, &global_bufmgr_list, link) {
1709 struct stat iter_st;
1710 if (fstat(iter_bufmgr->fd, &iter_st))
1711 continue;
1712
1713 if (st.st_rdev == iter_st.st_rdev) {
1714 assert(iter_bufmgr->bo_reuse == bo_reuse);
1715 bufmgr = crocus_bufmgr_ref(iter_bufmgr);
1716 goto unlock;
1717 }
1718 }
1719
1720 bufmgr = crocus_bufmgr_create(devinfo, fd, bo_reuse);
1721 if (bufmgr)
1722 list_addtail(&bufmgr->link, &global_bufmgr_list);
1723
1724 unlock:
1725 simple_mtx_unlock(&global_bufmgr_list_mutex);
1726
1727 return bufmgr;
1728 }
1729
1730 int
crocus_bufmgr_get_fd(struct crocus_bufmgr * bufmgr)1731 crocus_bufmgr_get_fd(struct crocus_bufmgr *bufmgr)
1732 {
1733 return bufmgr->fd;
1734 }
1735