i915_gem.c 110 KB

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  1. /*
  2. * Copyright © 2008 Intel Corporation
  3. *
  4. * Permission is hereby granted, free of charge, to any person obtaining a
  5. * copy of this software and associated documentation files (the "Software"),
  6. * to deal in the Software without restriction, including without limitation
  7. * the rights to use, copy, modify, merge, publish, distribute, sublicense,
  8. * and/or sell copies of the Software, and to permit persons to whom the
  9. * Software is furnished to do so, subject to the following conditions:
  10. *
  11. * The above copyright notice and this permission notice (including the next
  12. * paragraph) shall be included in all copies or substantial portions of the
  13. * Software.
  14. *
  15. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  16. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  17. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
  18. * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  19. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
  20. * FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS
  21. * IN THE SOFTWARE.
  22. *
  23. * Authors:
  24. * Eric Anholt <eric@anholt.net>
  25. *
  26. */
  27. #include <drm/drmP.h>
  28. #include <drm/i915_drm.h>
  29. #include "i915_drv.h"
  30. #include "i915_trace.h"
  31. #include "intel_drv.h"
  32. #include <linux/shmem_fs.h>
  33. #include <linux/slab.h>
  34. #include <linux/swap.h>
  35. #include <linux/pci.h>
  36. #include <linux/dma-buf.h>
  37. static void i915_gem_object_flush_gtt_write_domain(struct drm_i915_gem_object *obj);
  38. static void i915_gem_object_flush_cpu_write_domain(struct drm_i915_gem_object *obj);
  39. static __must_check int i915_gem_object_bind_to_gtt(struct drm_i915_gem_object *obj,
  40. unsigned alignment,
  41. bool map_and_fenceable,
  42. bool nonblocking);
  43. static int i915_gem_phys_pwrite(struct drm_device *dev,
  44. struct drm_i915_gem_object *obj,
  45. struct drm_i915_gem_pwrite *args,
  46. struct drm_file *file);
  47. static void i915_gem_write_fence(struct drm_device *dev, int reg,
  48. struct drm_i915_gem_object *obj);
  49. static void i915_gem_object_update_fence(struct drm_i915_gem_object *obj,
  50. struct drm_i915_fence_reg *fence,
  51. bool enable);
  52. static int i915_gem_inactive_shrink(struct shrinker *shrinker,
  53. struct shrink_control *sc);
  54. static long i915_gem_purge(struct drm_i915_private *dev_priv, long target);
  55. static void i915_gem_shrink_all(struct drm_i915_private *dev_priv);
  56. static void i915_gem_object_truncate(struct drm_i915_gem_object *obj);
  57. static inline void i915_gem_object_fence_lost(struct drm_i915_gem_object *obj)
  58. {
  59. if (obj->tiling_mode)
  60. i915_gem_release_mmap(obj);
  61. /* As we do not have an associated fence register, we will force
  62. * a tiling change if we ever need to acquire one.
  63. */
  64. obj->fence_dirty = false;
  65. obj->fence_reg = I915_FENCE_REG_NONE;
  66. }
  67. /* some bookkeeping */
  68. static void i915_gem_info_add_obj(struct drm_i915_private *dev_priv,
  69. size_t size)
  70. {
  71. dev_priv->mm.object_count++;
  72. dev_priv->mm.object_memory += size;
  73. }
  74. static void i915_gem_info_remove_obj(struct drm_i915_private *dev_priv,
  75. size_t size)
  76. {
  77. dev_priv->mm.object_count--;
  78. dev_priv->mm.object_memory -= size;
  79. }
  80. static int
  81. i915_gem_wait_for_error(struct drm_device *dev)
  82. {
  83. struct drm_i915_private *dev_priv = dev->dev_private;
  84. struct completion *x = &dev_priv->error_completion;
  85. unsigned long flags;
  86. int ret;
  87. if (!atomic_read(&dev_priv->mm.wedged))
  88. return 0;
  89. /*
  90. * Only wait 10 seconds for the gpu reset to complete to avoid hanging
  91. * userspace. If it takes that long something really bad is going on and
  92. * we should simply try to bail out and fail as gracefully as possible.
  93. */
  94. ret = wait_for_completion_interruptible_timeout(x, 10*HZ);
  95. if (ret == 0) {
  96. DRM_ERROR("Timed out waiting for the gpu reset to complete\n");
  97. return -EIO;
  98. } else if (ret < 0) {
  99. return ret;
  100. }
  101. if (atomic_read(&dev_priv->mm.wedged)) {
  102. /* GPU is hung, bump the completion count to account for
  103. * the token we just consumed so that we never hit zero and
  104. * end up waiting upon a subsequent completion event that
  105. * will never happen.
  106. */
  107. spin_lock_irqsave(&x->wait.lock, flags);
  108. x->done++;
  109. spin_unlock_irqrestore(&x->wait.lock, flags);
  110. }
  111. return 0;
  112. }
  113. int i915_mutex_lock_interruptible(struct drm_device *dev)
  114. {
  115. int ret;
  116. ret = i915_gem_wait_for_error(dev);
  117. if (ret)
  118. return ret;
  119. ret = mutex_lock_interruptible(&dev->struct_mutex);
  120. if (ret)
  121. return ret;
  122. WARN_ON(i915_verify_lists(dev));
  123. return 0;
  124. }
  125. static inline bool
  126. i915_gem_object_is_inactive(struct drm_i915_gem_object *obj)
  127. {
  128. return obj->gtt_space && !obj->active;
  129. }
  130. int
  131. i915_gem_init_ioctl(struct drm_device *dev, void *data,
  132. struct drm_file *file)
  133. {
  134. struct drm_i915_gem_init *args = data;
  135. if (drm_core_check_feature(dev, DRIVER_MODESET))
  136. return -ENODEV;
  137. if (args->gtt_start >= args->gtt_end ||
  138. (args->gtt_end | args->gtt_start) & (PAGE_SIZE - 1))
  139. return -EINVAL;
  140. /* GEM with user mode setting was never supported on ilk and later. */
  141. if (INTEL_INFO(dev)->gen >= 5)
  142. return -ENODEV;
  143. mutex_lock(&dev->struct_mutex);
  144. i915_gem_init_global_gtt(dev, args->gtt_start,
  145. args->gtt_end, args->gtt_end);
  146. mutex_unlock(&dev->struct_mutex);
  147. return 0;
  148. }
  149. int
  150. i915_gem_get_aperture_ioctl(struct drm_device *dev, void *data,
  151. struct drm_file *file)
  152. {
  153. struct drm_i915_private *dev_priv = dev->dev_private;
  154. struct drm_i915_gem_get_aperture *args = data;
  155. struct drm_i915_gem_object *obj;
  156. size_t pinned;
  157. pinned = 0;
  158. mutex_lock(&dev->struct_mutex);
  159. list_for_each_entry(obj, &dev_priv->mm.bound_list, gtt_list)
  160. if (obj->pin_count)
  161. pinned += obj->gtt_space->size;
  162. mutex_unlock(&dev->struct_mutex);
  163. args->aper_size = dev_priv->mm.gtt_total;
  164. args->aper_available_size = args->aper_size - pinned;
  165. return 0;
  166. }
  167. static int
  168. i915_gem_create(struct drm_file *file,
  169. struct drm_device *dev,
  170. uint64_t size,
  171. uint32_t *handle_p)
  172. {
  173. struct drm_i915_gem_object *obj;
  174. int ret;
  175. u32 handle;
  176. size = roundup(size, PAGE_SIZE);
  177. if (size == 0)
  178. return -EINVAL;
  179. /* Allocate the new object */
  180. obj = i915_gem_alloc_object(dev, size);
  181. if (obj == NULL)
  182. return -ENOMEM;
  183. ret = drm_gem_handle_create(file, &obj->base, &handle);
  184. if (ret) {
  185. drm_gem_object_release(&obj->base);
  186. i915_gem_info_remove_obj(dev->dev_private, obj->base.size);
  187. kfree(obj);
  188. return ret;
  189. }
  190. /* drop reference from allocate - handle holds it now */
  191. drm_gem_object_unreference(&obj->base);
  192. trace_i915_gem_object_create(obj);
  193. *handle_p = handle;
  194. return 0;
  195. }
  196. int
  197. i915_gem_dumb_create(struct drm_file *file,
  198. struct drm_device *dev,
  199. struct drm_mode_create_dumb *args)
  200. {
  201. /* have to work out size/pitch and return them */
  202. args->pitch = ALIGN(args->width * ((args->bpp + 7) / 8), 64);
  203. args->size = args->pitch * args->height;
  204. return i915_gem_create(file, dev,
  205. args->size, &args->handle);
  206. }
  207. int i915_gem_dumb_destroy(struct drm_file *file,
  208. struct drm_device *dev,
  209. uint32_t handle)
  210. {
  211. return drm_gem_handle_delete(file, handle);
  212. }
  213. /**
  214. * Creates a new mm object and returns a handle to it.
  215. */
  216. int
  217. i915_gem_create_ioctl(struct drm_device *dev, void *data,
  218. struct drm_file *file)
  219. {
  220. struct drm_i915_gem_create *args = data;
  221. return i915_gem_create(file, dev,
  222. args->size, &args->handle);
  223. }
  224. static int i915_gem_object_needs_bit17_swizzle(struct drm_i915_gem_object *obj)
  225. {
  226. drm_i915_private_t *dev_priv = obj->base.dev->dev_private;
  227. return dev_priv->mm.bit_6_swizzle_x == I915_BIT_6_SWIZZLE_9_10_17 &&
  228. obj->tiling_mode != I915_TILING_NONE;
  229. }
  230. static inline int
  231. __copy_to_user_swizzled(char __user *cpu_vaddr,
  232. const char *gpu_vaddr, int gpu_offset,
  233. int length)
  234. {
  235. int ret, cpu_offset = 0;
  236. while (length > 0) {
  237. int cacheline_end = ALIGN(gpu_offset + 1, 64);
  238. int this_length = min(cacheline_end - gpu_offset, length);
  239. int swizzled_gpu_offset = gpu_offset ^ 64;
  240. ret = __copy_to_user(cpu_vaddr + cpu_offset,
  241. gpu_vaddr + swizzled_gpu_offset,
  242. this_length);
  243. if (ret)
  244. return ret + length;
  245. cpu_offset += this_length;
  246. gpu_offset += this_length;
  247. length -= this_length;
  248. }
  249. return 0;
  250. }
  251. static inline int
  252. __copy_from_user_swizzled(char *gpu_vaddr, int gpu_offset,
  253. const char __user *cpu_vaddr,
  254. int length)
  255. {
  256. int ret, cpu_offset = 0;
  257. while (length > 0) {
  258. int cacheline_end = ALIGN(gpu_offset + 1, 64);
  259. int this_length = min(cacheline_end - gpu_offset, length);
  260. int swizzled_gpu_offset = gpu_offset ^ 64;
  261. ret = __copy_from_user(gpu_vaddr + swizzled_gpu_offset,
  262. cpu_vaddr + cpu_offset,
  263. this_length);
  264. if (ret)
  265. return ret + length;
  266. cpu_offset += this_length;
  267. gpu_offset += this_length;
  268. length -= this_length;
  269. }
  270. return 0;
  271. }
  272. /* Per-page copy function for the shmem pread fastpath.
  273. * Flushes invalid cachelines before reading the target if
  274. * needs_clflush is set. */
  275. static int
  276. shmem_pread_fast(struct page *page, int shmem_page_offset, int page_length,
  277. char __user *user_data,
  278. bool page_do_bit17_swizzling, bool needs_clflush)
  279. {
  280. char *vaddr;
  281. int ret;
  282. if (unlikely(page_do_bit17_swizzling))
  283. return -EINVAL;
  284. vaddr = kmap_atomic(page);
  285. if (needs_clflush)
  286. drm_clflush_virt_range(vaddr + shmem_page_offset,
  287. page_length);
  288. ret = __copy_to_user_inatomic(user_data,
  289. vaddr + shmem_page_offset,
  290. page_length);
  291. kunmap_atomic(vaddr);
  292. return ret ? -EFAULT : 0;
  293. }
  294. static void
  295. shmem_clflush_swizzled_range(char *addr, unsigned long length,
  296. bool swizzled)
  297. {
  298. if (unlikely(swizzled)) {
  299. unsigned long start = (unsigned long) addr;
  300. unsigned long end = (unsigned long) addr + length;
  301. /* For swizzling simply ensure that we always flush both
  302. * channels. Lame, but simple and it works. Swizzled
  303. * pwrite/pread is far from a hotpath - current userspace
  304. * doesn't use it at all. */
  305. start = round_down(start, 128);
  306. end = round_up(end, 128);
  307. drm_clflush_virt_range((void *)start, end - start);
  308. } else {
  309. drm_clflush_virt_range(addr, length);
  310. }
  311. }
  312. /* Only difference to the fast-path function is that this can handle bit17
  313. * and uses non-atomic copy and kmap functions. */
  314. static int
  315. shmem_pread_slow(struct page *page, int shmem_page_offset, int page_length,
  316. char __user *user_data,
  317. bool page_do_bit17_swizzling, bool needs_clflush)
  318. {
  319. char *vaddr;
  320. int ret;
  321. vaddr = kmap(page);
  322. if (needs_clflush)
  323. shmem_clflush_swizzled_range(vaddr + shmem_page_offset,
  324. page_length,
  325. page_do_bit17_swizzling);
  326. if (page_do_bit17_swizzling)
  327. ret = __copy_to_user_swizzled(user_data,
  328. vaddr, shmem_page_offset,
  329. page_length);
  330. else
  331. ret = __copy_to_user(user_data,
  332. vaddr + shmem_page_offset,
  333. page_length);
  334. kunmap(page);
  335. return ret ? - EFAULT : 0;
  336. }
  337. static int
  338. i915_gem_shmem_pread(struct drm_device *dev,
  339. struct drm_i915_gem_object *obj,
  340. struct drm_i915_gem_pread *args,
  341. struct drm_file *file)
  342. {
  343. char __user *user_data;
  344. ssize_t remain;
  345. loff_t offset;
  346. int shmem_page_offset, page_length, ret = 0;
  347. int obj_do_bit17_swizzling, page_do_bit17_swizzling;
  348. int hit_slowpath = 0;
  349. int prefaulted = 0;
  350. int needs_clflush = 0;
  351. struct scatterlist *sg;
  352. int i;
  353. user_data = (char __user *) (uintptr_t) args->data_ptr;
  354. remain = args->size;
  355. obj_do_bit17_swizzling = i915_gem_object_needs_bit17_swizzle(obj);
  356. if (!(obj->base.read_domains & I915_GEM_DOMAIN_CPU)) {
  357. /* If we're not in the cpu read domain, set ourself into the gtt
  358. * read domain and manually flush cachelines (if required). This
  359. * optimizes for the case when the gpu will dirty the data
  360. * anyway again before the next pread happens. */
  361. if (obj->cache_level == I915_CACHE_NONE)
  362. needs_clflush = 1;
  363. if (obj->gtt_space) {
  364. ret = i915_gem_object_set_to_gtt_domain(obj, false);
  365. if (ret)
  366. return ret;
  367. }
  368. }
  369. ret = i915_gem_object_get_pages(obj);
  370. if (ret)
  371. return ret;
  372. i915_gem_object_pin_pages(obj);
  373. offset = args->offset;
  374. for_each_sg(obj->pages->sgl, sg, obj->pages->nents, i) {
  375. struct page *page;
  376. if (i < offset >> PAGE_SHIFT)
  377. continue;
  378. if (remain <= 0)
  379. break;
  380. /* Operation in this page
  381. *
  382. * shmem_page_offset = offset within page in shmem file
  383. * page_length = bytes to copy for this page
  384. */
  385. shmem_page_offset = offset_in_page(offset);
  386. page_length = remain;
  387. if ((shmem_page_offset + page_length) > PAGE_SIZE)
  388. page_length = PAGE_SIZE - shmem_page_offset;
  389. page = sg_page(sg);
  390. page_do_bit17_swizzling = obj_do_bit17_swizzling &&
  391. (page_to_phys(page) & (1 << 17)) != 0;
  392. ret = shmem_pread_fast(page, shmem_page_offset, page_length,
  393. user_data, page_do_bit17_swizzling,
  394. needs_clflush);
  395. if (ret == 0)
  396. goto next_page;
  397. hit_slowpath = 1;
  398. mutex_unlock(&dev->struct_mutex);
  399. if (!prefaulted) {
  400. ret = fault_in_multipages_writeable(user_data, remain);
  401. /* Userspace is tricking us, but we've already clobbered
  402. * its pages with the prefault and promised to write the
  403. * data up to the first fault. Hence ignore any errors
  404. * and just continue. */
  405. (void)ret;
  406. prefaulted = 1;
  407. }
  408. ret = shmem_pread_slow(page, shmem_page_offset, page_length,
  409. user_data, page_do_bit17_swizzling,
  410. needs_clflush);
  411. mutex_lock(&dev->struct_mutex);
  412. next_page:
  413. mark_page_accessed(page);
  414. if (ret)
  415. goto out;
  416. remain -= page_length;
  417. user_data += page_length;
  418. offset += page_length;
  419. }
  420. out:
  421. i915_gem_object_unpin_pages(obj);
  422. if (hit_slowpath) {
  423. /* Fixup: Kill any reinstated backing storage pages */
  424. if (obj->madv == __I915_MADV_PURGED)
  425. i915_gem_object_truncate(obj);
  426. }
  427. return ret;
  428. }
  429. /**
  430. * Reads data from the object referenced by handle.
  431. *
  432. * On error, the contents of *data are undefined.
  433. */
  434. int
  435. i915_gem_pread_ioctl(struct drm_device *dev, void *data,
  436. struct drm_file *file)
  437. {
  438. struct drm_i915_gem_pread *args = data;
  439. struct drm_i915_gem_object *obj;
  440. int ret = 0;
  441. if (args->size == 0)
  442. return 0;
  443. if (!access_ok(VERIFY_WRITE,
  444. (char __user *)(uintptr_t)args->data_ptr,
  445. args->size))
  446. return -EFAULT;
  447. ret = i915_mutex_lock_interruptible(dev);
  448. if (ret)
  449. return ret;
  450. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  451. if (&obj->base == NULL) {
  452. ret = -ENOENT;
  453. goto unlock;
  454. }
  455. /* Bounds check source. */
  456. if (args->offset > obj->base.size ||
  457. args->size > obj->base.size - args->offset) {
  458. ret = -EINVAL;
  459. goto out;
  460. }
  461. /* prime objects have no backing filp to GEM pread/pwrite
  462. * pages from.
  463. */
  464. if (!obj->base.filp) {
  465. ret = -EINVAL;
  466. goto out;
  467. }
  468. trace_i915_gem_object_pread(obj, args->offset, args->size);
  469. ret = i915_gem_shmem_pread(dev, obj, args, file);
  470. out:
  471. drm_gem_object_unreference(&obj->base);
  472. unlock:
  473. mutex_unlock(&dev->struct_mutex);
  474. return ret;
  475. }
  476. /* This is the fast write path which cannot handle
  477. * page faults in the source data
  478. */
  479. static inline int
  480. fast_user_write(struct io_mapping *mapping,
  481. loff_t page_base, int page_offset,
  482. char __user *user_data,
  483. int length)
  484. {
  485. void __iomem *vaddr_atomic;
  486. void *vaddr;
  487. unsigned long unwritten;
  488. vaddr_atomic = io_mapping_map_atomic_wc(mapping, page_base);
  489. /* We can use the cpu mem copy function because this is X86. */
  490. vaddr = (void __force*)vaddr_atomic + page_offset;
  491. unwritten = __copy_from_user_inatomic_nocache(vaddr,
  492. user_data, length);
  493. io_mapping_unmap_atomic(vaddr_atomic);
  494. return unwritten;
  495. }
  496. /**
  497. * This is the fast pwrite path, where we copy the data directly from the
  498. * user into the GTT, uncached.
  499. */
  500. static int
  501. i915_gem_gtt_pwrite_fast(struct drm_device *dev,
  502. struct drm_i915_gem_object *obj,
  503. struct drm_i915_gem_pwrite *args,
  504. struct drm_file *file)
  505. {
  506. drm_i915_private_t *dev_priv = dev->dev_private;
  507. ssize_t remain;
  508. loff_t offset, page_base;
  509. char __user *user_data;
  510. int page_offset, page_length, ret;
  511. ret = i915_gem_object_pin(obj, 0, true, true);
  512. if (ret)
  513. goto out;
  514. ret = i915_gem_object_set_to_gtt_domain(obj, true);
  515. if (ret)
  516. goto out_unpin;
  517. ret = i915_gem_object_put_fence(obj);
  518. if (ret)
  519. goto out_unpin;
  520. user_data = (char __user *) (uintptr_t) args->data_ptr;
  521. remain = args->size;
  522. offset = obj->gtt_offset + args->offset;
  523. while (remain > 0) {
  524. /* Operation in this page
  525. *
  526. * page_base = page offset within aperture
  527. * page_offset = offset within page
  528. * page_length = bytes to copy for this page
  529. */
  530. page_base = offset & PAGE_MASK;
  531. page_offset = offset_in_page(offset);
  532. page_length = remain;
  533. if ((page_offset + remain) > PAGE_SIZE)
  534. page_length = PAGE_SIZE - page_offset;
  535. /* If we get a fault while copying data, then (presumably) our
  536. * source page isn't available. Return the error and we'll
  537. * retry in the slow path.
  538. */
  539. if (fast_user_write(dev_priv->mm.gtt_mapping, page_base,
  540. page_offset, user_data, page_length)) {
  541. ret = -EFAULT;
  542. goto out_unpin;
  543. }
  544. remain -= page_length;
  545. user_data += page_length;
  546. offset += page_length;
  547. }
  548. out_unpin:
  549. i915_gem_object_unpin(obj);
  550. out:
  551. return ret;
  552. }
  553. /* Per-page copy function for the shmem pwrite fastpath.
  554. * Flushes invalid cachelines before writing to the target if
  555. * needs_clflush_before is set and flushes out any written cachelines after
  556. * writing if needs_clflush is set. */
  557. static int
  558. shmem_pwrite_fast(struct page *page, int shmem_page_offset, int page_length,
  559. char __user *user_data,
  560. bool page_do_bit17_swizzling,
  561. bool needs_clflush_before,
  562. bool needs_clflush_after)
  563. {
  564. char *vaddr;
  565. int ret;
  566. if (unlikely(page_do_bit17_swizzling))
  567. return -EINVAL;
  568. vaddr = kmap_atomic(page);
  569. if (needs_clflush_before)
  570. drm_clflush_virt_range(vaddr + shmem_page_offset,
  571. page_length);
  572. ret = __copy_from_user_inatomic_nocache(vaddr + shmem_page_offset,
  573. user_data,
  574. page_length);
  575. if (needs_clflush_after)
  576. drm_clflush_virt_range(vaddr + shmem_page_offset,
  577. page_length);
  578. kunmap_atomic(vaddr);
  579. return ret ? -EFAULT : 0;
  580. }
  581. /* Only difference to the fast-path function is that this can handle bit17
  582. * and uses non-atomic copy and kmap functions. */
  583. static int
  584. shmem_pwrite_slow(struct page *page, int shmem_page_offset, int page_length,
  585. char __user *user_data,
  586. bool page_do_bit17_swizzling,
  587. bool needs_clflush_before,
  588. bool needs_clflush_after)
  589. {
  590. char *vaddr;
  591. int ret;
  592. vaddr = kmap(page);
  593. if (unlikely(needs_clflush_before || page_do_bit17_swizzling))
  594. shmem_clflush_swizzled_range(vaddr + shmem_page_offset,
  595. page_length,
  596. page_do_bit17_swizzling);
  597. if (page_do_bit17_swizzling)
  598. ret = __copy_from_user_swizzled(vaddr, shmem_page_offset,
  599. user_data,
  600. page_length);
  601. else
  602. ret = __copy_from_user(vaddr + shmem_page_offset,
  603. user_data,
  604. page_length);
  605. if (needs_clflush_after)
  606. shmem_clflush_swizzled_range(vaddr + shmem_page_offset,
  607. page_length,
  608. page_do_bit17_swizzling);
  609. kunmap(page);
  610. return ret ? -EFAULT : 0;
  611. }
  612. static int
  613. i915_gem_shmem_pwrite(struct drm_device *dev,
  614. struct drm_i915_gem_object *obj,
  615. struct drm_i915_gem_pwrite *args,
  616. struct drm_file *file)
  617. {
  618. ssize_t remain;
  619. loff_t offset;
  620. char __user *user_data;
  621. int shmem_page_offset, page_length, ret = 0;
  622. int obj_do_bit17_swizzling, page_do_bit17_swizzling;
  623. int hit_slowpath = 0;
  624. int needs_clflush_after = 0;
  625. int needs_clflush_before = 0;
  626. int i;
  627. struct scatterlist *sg;
  628. user_data = (char __user *) (uintptr_t) args->data_ptr;
  629. remain = args->size;
  630. obj_do_bit17_swizzling = i915_gem_object_needs_bit17_swizzle(obj);
  631. if (obj->base.write_domain != I915_GEM_DOMAIN_CPU) {
  632. /* If we're not in the cpu write domain, set ourself into the gtt
  633. * write domain and manually flush cachelines (if required). This
  634. * optimizes for the case when the gpu will use the data
  635. * right away and we therefore have to clflush anyway. */
  636. if (obj->cache_level == I915_CACHE_NONE)
  637. needs_clflush_after = 1;
  638. if (obj->gtt_space) {
  639. ret = i915_gem_object_set_to_gtt_domain(obj, true);
  640. if (ret)
  641. return ret;
  642. }
  643. }
  644. /* Same trick applies for invalidate partially written cachelines before
  645. * writing. */
  646. if (!(obj->base.read_domains & I915_GEM_DOMAIN_CPU)
  647. && obj->cache_level == I915_CACHE_NONE)
  648. needs_clflush_before = 1;
  649. ret = i915_gem_object_get_pages(obj);
  650. if (ret)
  651. return ret;
  652. i915_gem_object_pin_pages(obj);
  653. offset = args->offset;
  654. obj->dirty = 1;
  655. for_each_sg(obj->pages->sgl, sg, obj->pages->nents, i) {
  656. struct page *page;
  657. int partial_cacheline_write;
  658. if (i < offset >> PAGE_SHIFT)
  659. continue;
  660. if (remain <= 0)
  661. break;
  662. /* Operation in this page
  663. *
  664. * shmem_page_offset = offset within page in shmem file
  665. * page_length = bytes to copy for this page
  666. */
  667. shmem_page_offset = offset_in_page(offset);
  668. page_length = remain;
  669. if ((shmem_page_offset + page_length) > PAGE_SIZE)
  670. page_length = PAGE_SIZE - shmem_page_offset;
  671. /* If we don't overwrite a cacheline completely we need to be
  672. * careful to have up-to-date data by first clflushing. Don't
  673. * overcomplicate things and flush the entire patch. */
  674. partial_cacheline_write = needs_clflush_before &&
  675. ((shmem_page_offset | page_length)
  676. & (boot_cpu_data.x86_clflush_size - 1));
  677. page = sg_page(sg);
  678. page_do_bit17_swizzling = obj_do_bit17_swizzling &&
  679. (page_to_phys(page) & (1 << 17)) != 0;
  680. ret = shmem_pwrite_fast(page, shmem_page_offset, page_length,
  681. user_data, page_do_bit17_swizzling,
  682. partial_cacheline_write,
  683. needs_clflush_after);
  684. if (ret == 0)
  685. goto next_page;
  686. hit_slowpath = 1;
  687. mutex_unlock(&dev->struct_mutex);
  688. ret = shmem_pwrite_slow(page, shmem_page_offset, page_length,
  689. user_data, page_do_bit17_swizzling,
  690. partial_cacheline_write,
  691. needs_clflush_after);
  692. mutex_lock(&dev->struct_mutex);
  693. next_page:
  694. set_page_dirty(page);
  695. mark_page_accessed(page);
  696. if (ret)
  697. goto out;
  698. remain -= page_length;
  699. user_data += page_length;
  700. offset += page_length;
  701. }
  702. out:
  703. i915_gem_object_unpin_pages(obj);
  704. if (hit_slowpath) {
  705. /* Fixup: Kill any reinstated backing storage pages */
  706. if (obj->madv == __I915_MADV_PURGED)
  707. i915_gem_object_truncate(obj);
  708. /* and flush dirty cachelines in case the object isn't in the cpu write
  709. * domain anymore. */
  710. if (obj->base.write_domain != I915_GEM_DOMAIN_CPU) {
  711. i915_gem_clflush_object(obj);
  712. intel_gtt_chipset_flush();
  713. }
  714. }
  715. if (needs_clflush_after)
  716. intel_gtt_chipset_flush();
  717. return ret;
  718. }
  719. /**
  720. * Writes data to the object referenced by handle.
  721. *
  722. * On error, the contents of the buffer that were to be modified are undefined.
  723. */
  724. int
  725. i915_gem_pwrite_ioctl(struct drm_device *dev, void *data,
  726. struct drm_file *file)
  727. {
  728. struct drm_i915_gem_pwrite *args = data;
  729. struct drm_i915_gem_object *obj;
  730. int ret;
  731. if (args->size == 0)
  732. return 0;
  733. if (!access_ok(VERIFY_READ,
  734. (char __user *)(uintptr_t)args->data_ptr,
  735. args->size))
  736. return -EFAULT;
  737. ret = fault_in_multipages_readable((char __user *)(uintptr_t)args->data_ptr,
  738. args->size);
  739. if (ret)
  740. return -EFAULT;
  741. ret = i915_mutex_lock_interruptible(dev);
  742. if (ret)
  743. return ret;
  744. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  745. if (&obj->base == NULL) {
  746. ret = -ENOENT;
  747. goto unlock;
  748. }
  749. /* Bounds check destination. */
  750. if (args->offset > obj->base.size ||
  751. args->size > obj->base.size - args->offset) {
  752. ret = -EINVAL;
  753. goto out;
  754. }
  755. /* prime objects have no backing filp to GEM pread/pwrite
  756. * pages from.
  757. */
  758. if (!obj->base.filp) {
  759. ret = -EINVAL;
  760. goto out;
  761. }
  762. trace_i915_gem_object_pwrite(obj, args->offset, args->size);
  763. ret = -EFAULT;
  764. /* We can only do the GTT pwrite on untiled buffers, as otherwise
  765. * it would end up going through the fenced access, and we'll get
  766. * different detiling behavior between reading and writing.
  767. * pread/pwrite currently are reading and writing from the CPU
  768. * perspective, requiring manual detiling by the client.
  769. */
  770. if (obj->phys_obj) {
  771. ret = i915_gem_phys_pwrite(dev, obj, args, file);
  772. goto out;
  773. }
  774. if (obj->cache_level == I915_CACHE_NONE &&
  775. obj->tiling_mode == I915_TILING_NONE &&
  776. obj->base.write_domain != I915_GEM_DOMAIN_CPU) {
  777. ret = i915_gem_gtt_pwrite_fast(dev, obj, args, file);
  778. /* Note that the gtt paths might fail with non-page-backed user
  779. * pointers (e.g. gtt mappings when moving data between
  780. * textures). Fallback to the shmem path in that case. */
  781. }
  782. if (ret == -EFAULT || ret == -ENOSPC)
  783. ret = i915_gem_shmem_pwrite(dev, obj, args, file);
  784. out:
  785. drm_gem_object_unreference(&obj->base);
  786. unlock:
  787. mutex_unlock(&dev->struct_mutex);
  788. return ret;
  789. }
  790. int
  791. i915_gem_check_wedge(struct drm_i915_private *dev_priv,
  792. bool interruptible)
  793. {
  794. if (atomic_read(&dev_priv->mm.wedged)) {
  795. struct completion *x = &dev_priv->error_completion;
  796. bool recovery_complete;
  797. unsigned long flags;
  798. /* Give the error handler a chance to run. */
  799. spin_lock_irqsave(&x->wait.lock, flags);
  800. recovery_complete = x->done > 0;
  801. spin_unlock_irqrestore(&x->wait.lock, flags);
  802. /* Non-interruptible callers can't handle -EAGAIN, hence return
  803. * -EIO unconditionally for these. */
  804. if (!interruptible)
  805. return -EIO;
  806. /* Recovery complete, but still wedged means reset failure. */
  807. if (recovery_complete)
  808. return -EIO;
  809. return -EAGAIN;
  810. }
  811. return 0;
  812. }
  813. /*
  814. * Compare seqno against outstanding lazy request. Emit a request if they are
  815. * equal.
  816. */
  817. static int
  818. i915_gem_check_olr(struct intel_ring_buffer *ring, u32 seqno)
  819. {
  820. int ret;
  821. BUG_ON(!mutex_is_locked(&ring->dev->struct_mutex));
  822. ret = 0;
  823. if (seqno == ring->outstanding_lazy_request)
  824. ret = i915_add_request(ring, NULL, NULL);
  825. return ret;
  826. }
  827. /**
  828. * __wait_seqno - wait until execution of seqno has finished
  829. * @ring: the ring expected to report seqno
  830. * @seqno: duh!
  831. * @interruptible: do an interruptible wait (normally yes)
  832. * @timeout: in - how long to wait (NULL forever); out - how much time remaining
  833. *
  834. * Returns 0 if the seqno was found within the alloted time. Else returns the
  835. * errno with remaining time filled in timeout argument.
  836. */
  837. static int __wait_seqno(struct intel_ring_buffer *ring, u32 seqno,
  838. bool interruptible, struct timespec *timeout)
  839. {
  840. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  841. struct timespec before, now, wait_time={1,0};
  842. unsigned long timeout_jiffies;
  843. long end;
  844. bool wait_forever = true;
  845. int ret;
  846. if (i915_seqno_passed(ring->get_seqno(ring, true), seqno))
  847. return 0;
  848. trace_i915_gem_request_wait_begin(ring, seqno);
  849. if (timeout != NULL) {
  850. wait_time = *timeout;
  851. wait_forever = false;
  852. }
  853. timeout_jiffies = timespec_to_jiffies(&wait_time);
  854. if (WARN_ON(!ring->irq_get(ring)))
  855. return -ENODEV;
  856. /* Record current time in case interrupted by signal, or wedged * */
  857. getrawmonotonic(&before);
  858. #define EXIT_COND \
  859. (i915_seqno_passed(ring->get_seqno(ring, false), seqno) || \
  860. atomic_read(&dev_priv->mm.wedged))
  861. do {
  862. if (interruptible)
  863. end = wait_event_interruptible_timeout(ring->irq_queue,
  864. EXIT_COND,
  865. timeout_jiffies);
  866. else
  867. end = wait_event_timeout(ring->irq_queue, EXIT_COND,
  868. timeout_jiffies);
  869. ret = i915_gem_check_wedge(dev_priv, interruptible);
  870. if (ret)
  871. end = ret;
  872. } while (end == 0 && wait_forever);
  873. getrawmonotonic(&now);
  874. ring->irq_put(ring);
  875. trace_i915_gem_request_wait_end(ring, seqno);
  876. #undef EXIT_COND
  877. if (timeout) {
  878. struct timespec sleep_time = timespec_sub(now, before);
  879. *timeout = timespec_sub(*timeout, sleep_time);
  880. }
  881. switch (end) {
  882. case -EIO:
  883. case -EAGAIN: /* Wedged */
  884. case -ERESTARTSYS: /* Signal */
  885. return (int)end;
  886. case 0: /* Timeout */
  887. if (timeout)
  888. set_normalized_timespec(timeout, 0, 0);
  889. return -ETIME;
  890. default: /* Completed */
  891. WARN_ON(end < 0); /* We're not aware of other errors */
  892. return 0;
  893. }
  894. }
  895. /**
  896. * Waits for a sequence number to be signaled, and cleans up the
  897. * request and object lists appropriately for that event.
  898. */
  899. int
  900. i915_wait_seqno(struct intel_ring_buffer *ring, uint32_t seqno)
  901. {
  902. struct drm_device *dev = ring->dev;
  903. struct drm_i915_private *dev_priv = dev->dev_private;
  904. bool interruptible = dev_priv->mm.interruptible;
  905. int ret;
  906. BUG_ON(!mutex_is_locked(&dev->struct_mutex));
  907. BUG_ON(seqno == 0);
  908. ret = i915_gem_check_wedge(dev_priv, interruptible);
  909. if (ret)
  910. return ret;
  911. ret = i915_gem_check_olr(ring, seqno);
  912. if (ret)
  913. return ret;
  914. return __wait_seqno(ring, seqno, interruptible, NULL);
  915. }
  916. /**
  917. * Ensures that all rendering to the object has completed and the object is
  918. * safe to unbind from the GTT or access from the CPU.
  919. */
  920. static __must_check int
  921. i915_gem_object_wait_rendering(struct drm_i915_gem_object *obj,
  922. bool readonly)
  923. {
  924. struct intel_ring_buffer *ring = obj->ring;
  925. u32 seqno;
  926. int ret;
  927. seqno = readonly ? obj->last_write_seqno : obj->last_read_seqno;
  928. if (seqno == 0)
  929. return 0;
  930. ret = i915_wait_seqno(ring, seqno);
  931. if (ret)
  932. return ret;
  933. i915_gem_retire_requests_ring(ring);
  934. /* Manually manage the write flush as we may have not yet
  935. * retired the buffer.
  936. */
  937. if (obj->last_write_seqno &&
  938. i915_seqno_passed(seqno, obj->last_write_seqno)) {
  939. obj->last_write_seqno = 0;
  940. obj->base.write_domain &= ~I915_GEM_GPU_DOMAINS;
  941. }
  942. return 0;
  943. }
  944. /* A nonblocking variant of the above wait. This is a highly dangerous routine
  945. * as the object state may change during this call.
  946. */
  947. static __must_check int
  948. i915_gem_object_wait_rendering__nonblocking(struct drm_i915_gem_object *obj,
  949. bool readonly)
  950. {
  951. struct drm_device *dev = obj->base.dev;
  952. struct drm_i915_private *dev_priv = dev->dev_private;
  953. struct intel_ring_buffer *ring = obj->ring;
  954. u32 seqno;
  955. int ret;
  956. BUG_ON(!mutex_is_locked(&dev->struct_mutex));
  957. BUG_ON(!dev_priv->mm.interruptible);
  958. seqno = readonly ? obj->last_write_seqno : obj->last_read_seqno;
  959. if (seqno == 0)
  960. return 0;
  961. ret = i915_gem_check_wedge(dev_priv, true);
  962. if (ret)
  963. return ret;
  964. ret = i915_gem_check_olr(ring, seqno);
  965. if (ret)
  966. return ret;
  967. mutex_unlock(&dev->struct_mutex);
  968. ret = __wait_seqno(ring, seqno, true, NULL);
  969. mutex_lock(&dev->struct_mutex);
  970. i915_gem_retire_requests_ring(ring);
  971. /* Manually manage the write flush as we may have not yet
  972. * retired the buffer.
  973. */
  974. if (obj->last_write_seqno &&
  975. i915_seqno_passed(seqno, obj->last_write_seqno)) {
  976. obj->last_write_seqno = 0;
  977. obj->base.write_domain &= ~I915_GEM_GPU_DOMAINS;
  978. }
  979. return ret;
  980. }
  981. /**
  982. * Called when user space prepares to use an object with the CPU, either
  983. * through the mmap ioctl's mapping or a GTT mapping.
  984. */
  985. int
  986. i915_gem_set_domain_ioctl(struct drm_device *dev, void *data,
  987. struct drm_file *file)
  988. {
  989. struct drm_i915_gem_set_domain *args = data;
  990. struct drm_i915_gem_object *obj;
  991. uint32_t read_domains = args->read_domains;
  992. uint32_t write_domain = args->write_domain;
  993. int ret;
  994. /* Only handle setting domains to types used by the CPU. */
  995. if (write_domain & I915_GEM_GPU_DOMAINS)
  996. return -EINVAL;
  997. if (read_domains & I915_GEM_GPU_DOMAINS)
  998. return -EINVAL;
  999. /* Having something in the write domain implies it's in the read
  1000. * domain, and only that read domain. Enforce that in the request.
  1001. */
  1002. if (write_domain != 0 && read_domains != write_domain)
  1003. return -EINVAL;
  1004. ret = i915_mutex_lock_interruptible(dev);
  1005. if (ret)
  1006. return ret;
  1007. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  1008. if (&obj->base == NULL) {
  1009. ret = -ENOENT;
  1010. goto unlock;
  1011. }
  1012. /* Try to flush the object off the GPU without holding the lock.
  1013. * We will repeat the flush holding the lock in the normal manner
  1014. * to catch cases where we are gazumped.
  1015. */
  1016. ret = i915_gem_object_wait_rendering__nonblocking(obj, !write_domain);
  1017. if (ret)
  1018. goto unref;
  1019. if (read_domains & I915_GEM_DOMAIN_GTT) {
  1020. ret = i915_gem_object_set_to_gtt_domain(obj, write_domain != 0);
  1021. /* Silently promote "you're not bound, there was nothing to do"
  1022. * to success, since the client was just asking us to
  1023. * make sure everything was done.
  1024. */
  1025. if (ret == -EINVAL)
  1026. ret = 0;
  1027. } else {
  1028. ret = i915_gem_object_set_to_cpu_domain(obj, write_domain != 0);
  1029. }
  1030. unref:
  1031. drm_gem_object_unreference(&obj->base);
  1032. unlock:
  1033. mutex_unlock(&dev->struct_mutex);
  1034. return ret;
  1035. }
  1036. /**
  1037. * Called when user space has done writes to this buffer
  1038. */
  1039. int
  1040. i915_gem_sw_finish_ioctl(struct drm_device *dev, void *data,
  1041. struct drm_file *file)
  1042. {
  1043. struct drm_i915_gem_sw_finish *args = data;
  1044. struct drm_i915_gem_object *obj;
  1045. int ret = 0;
  1046. ret = i915_mutex_lock_interruptible(dev);
  1047. if (ret)
  1048. return ret;
  1049. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  1050. if (&obj->base == NULL) {
  1051. ret = -ENOENT;
  1052. goto unlock;
  1053. }
  1054. /* Pinned buffers may be scanout, so flush the cache */
  1055. if (obj->pin_count)
  1056. i915_gem_object_flush_cpu_write_domain(obj);
  1057. drm_gem_object_unreference(&obj->base);
  1058. unlock:
  1059. mutex_unlock(&dev->struct_mutex);
  1060. return ret;
  1061. }
  1062. /**
  1063. * Maps the contents of an object, returning the address it is mapped
  1064. * into.
  1065. *
  1066. * While the mapping holds a reference on the contents of the object, it doesn't
  1067. * imply a ref on the object itself.
  1068. */
  1069. int
  1070. i915_gem_mmap_ioctl(struct drm_device *dev, void *data,
  1071. struct drm_file *file)
  1072. {
  1073. struct drm_i915_gem_mmap *args = data;
  1074. struct drm_gem_object *obj;
  1075. unsigned long addr;
  1076. obj = drm_gem_object_lookup(dev, file, args->handle);
  1077. if (obj == NULL)
  1078. return -ENOENT;
  1079. /* prime objects have no backing filp to GEM mmap
  1080. * pages from.
  1081. */
  1082. if (!obj->filp) {
  1083. drm_gem_object_unreference_unlocked(obj);
  1084. return -EINVAL;
  1085. }
  1086. addr = vm_mmap(obj->filp, 0, args->size,
  1087. PROT_READ | PROT_WRITE, MAP_SHARED,
  1088. args->offset);
  1089. drm_gem_object_unreference_unlocked(obj);
  1090. if (IS_ERR((void *)addr))
  1091. return addr;
  1092. args->addr_ptr = (uint64_t) addr;
  1093. return 0;
  1094. }
  1095. /**
  1096. * i915_gem_fault - fault a page into the GTT
  1097. * vma: VMA in question
  1098. * vmf: fault info
  1099. *
  1100. * The fault handler is set up by drm_gem_mmap() when a object is GTT mapped
  1101. * from userspace. The fault handler takes care of binding the object to
  1102. * the GTT (if needed), allocating and programming a fence register (again,
  1103. * only if needed based on whether the old reg is still valid or the object
  1104. * is tiled) and inserting a new PTE into the faulting process.
  1105. *
  1106. * Note that the faulting process may involve evicting existing objects
  1107. * from the GTT and/or fence registers to make room. So performance may
  1108. * suffer if the GTT working set is large or there are few fence registers
  1109. * left.
  1110. */
  1111. int i915_gem_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
  1112. {
  1113. struct drm_i915_gem_object *obj = to_intel_bo(vma->vm_private_data);
  1114. struct drm_device *dev = obj->base.dev;
  1115. drm_i915_private_t *dev_priv = dev->dev_private;
  1116. pgoff_t page_offset;
  1117. unsigned long pfn;
  1118. int ret = 0;
  1119. bool write = !!(vmf->flags & FAULT_FLAG_WRITE);
  1120. /* We don't use vmf->pgoff since that has the fake offset */
  1121. page_offset = ((unsigned long)vmf->virtual_address - vma->vm_start) >>
  1122. PAGE_SHIFT;
  1123. ret = i915_mutex_lock_interruptible(dev);
  1124. if (ret)
  1125. goto out;
  1126. trace_i915_gem_object_fault(obj, page_offset, true, write);
  1127. /* Now bind it into the GTT if needed */
  1128. if (!obj->map_and_fenceable) {
  1129. ret = i915_gem_object_unbind(obj);
  1130. if (ret)
  1131. goto unlock;
  1132. }
  1133. if (!obj->gtt_space) {
  1134. ret = i915_gem_object_bind_to_gtt(obj, 0, true, false);
  1135. if (ret)
  1136. goto unlock;
  1137. ret = i915_gem_object_set_to_gtt_domain(obj, write);
  1138. if (ret)
  1139. goto unlock;
  1140. }
  1141. if (!obj->has_global_gtt_mapping)
  1142. i915_gem_gtt_bind_object(obj, obj->cache_level);
  1143. ret = i915_gem_object_get_fence(obj);
  1144. if (ret)
  1145. goto unlock;
  1146. if (i915_gem_object_is_inactive(obj))
  1147. list_move_tail(&obj->mm_list, &dev_priv->mm.inactive_list);
  1148. obj->fault_mappable = true;
  1149. pfn = ((dev_priv->mm.gtt_base_addr + obj->gtt_offset) >> PAGE_SHIFT) +
  1150. page_offset;
  1151. /* Finally, remap it using the new GTT offset */
  1152. ret = vm_insert_pfn(vma, (unsigned long)vmf->virtual_address, pfn);
  1153. unlock:
  1154. mutex_unlock(&dev->struct_mutex);
  1155. out:
  1156. switch (ret) {
  1157. case -EIO:
  1158. /* If this -EIO is due to a gpu hang, give the reset code a
  1159. * chance to clean up the mess. Otherwise return the proper
  1160. * SIGBUS. */
  1161. if (!atomic_read(&dev_priv->mm.wedged))
  1162. return VM_FAULT_SIGBUS;
  1163. case -EAGAIN:
  1164. /* Give the error handler a chance to run and move the
  1165. * objects off the GPU active list. Next time we service the
  1166. * fault, we should be able to transition the page into the
  1167. * GTT without touching the GPU (and so avoid further
  1168. * EIO/EGAIN). If the GPU is wedged, then there is no issue
  1169. * with coherency, just lost writes.
  1170. */
  1171. set_need_resched();
  1172. case 0:
  1173. case -ERESTARTSYS:
  1174. case -EINTR:
  1175. case -EBUSY:
  1176. /*
  1177. * EBUSY is ok: this just means that another thread
  1178. * already did the job.
  1179. */
  1180. return VM_FAULT_NOPAGE;
  1181. case -ENOMEM:
  1182. return VM_FAULT_OOM;
  1183. default:
  1184. WARN_ON_ONCE(ret);
  1185. return VM_FAULT_SIGBUS;
  1186. }
  1187. }
  1188. /**
  1189. * i915_gem_release_mmap - remove physical page mappings
  1190. * @obj: obj in question
  1191. *
  1192. * Preserve the reservation of the mmapping with the DRM core code, but
  1193. * relinquish ownership of the pages back to the system.
  1194. *
  1195. * It is vital that we remove the page mapping if we have mapped a tiled
  1196. * object through the GTT and then lose the fence register due to
  1197. * resource pressure. Similarly if the object has been moved out of the
  1198. * aperture, than pages mapped into userspace must be revoked. Removing the
  1199. * mapping will then trigger a page fault on the next user access, allowing
  1200. * fixup by i915_gem_fault().
  1201. */
  1202. void
  1203. i915_gem_release_mmap(struct drm_i915_gem_object *obj)
  1204. {
  1205. if (!obj->fault_mappable)
  1206. return;
  1207. if (obj->base.dev->dev_mapping)
  1208. unmap_mapping_range(obj->base.dev->dev_mapping,
  1209. (loff_t)obj->base.map_list.hash.key<<PAGE_SHIFT,
  1210. obj->base.size, 1);
  1211. obj->fault_mappable = false;
  1212. }
  1213. static uint32_t
  1214. i915_gem_get_gtt_size(struct drm_device *dev, uint32_t size, int tiling_mode)
  1215. {
  1216. uint32_t gtt_size;
  1217. if (INTEL_INFO(dev)->gen >= 4 ||
  1218. tiling_mode == I915_TILING_NONE)
  1219. return size;
  1220. /* Previous chips need a power-of-two fence region when tiling */
  1221. if (INTEL_INFO(dev)->gen == 3)
  1222. gtt_size = 1024*1024;
  1223. else
  1224. gtt_size = 512*1024;
  1225. while (gtt_size < size)
  1226. gtt_size <<= 1;
  1227. return gtt_size;
  1228. }
  1229. /**
  1230. * i915_gem_get_gtt_alignment - return required GTT alignment for an object
  1231. * @obj: object to check
  1232. *
  1233. * Return the required GTT alignment for an object, taking into account
  1234. * potential fence register mapping.
  1235. */
  1236. static uint32_t
  1237. i915_gem_get_gtt_alignment(struct drm_device *dev,
  1238. uint32_t size,
  1239. int tiling_mode)
  1240. {
  1241. /*
  1242. * Minimum alignment is 4k (GTT page size), but might be greater
  1243. * if a fence register is needed for the object.
  1244. */
  1245. if (INTEL_INFO(dev)->gen >= 4 ||
  1246. tiling_mode == I915_TILING_NONE)
  1247. return 4096;
  1248. /*
  1249. * Previous chips need to be aligned to the size of the smallest
  1250. * fence register that can contain the object.
  1251. */
  1252. return i915_gem_get_gtt_size(dev, size, tiling_mode);
  1253. }
  1254. /**
  1255. * i915_gem_get_unfenced_gtt_alignment - return required GTT alignment for an
  1256. * unfenced object
  1257. * @dev: the device
  1258. * @size: size of the object
  1259. * @tiling_mode: tiling mode of the object
  1260. *
  1261. * Return the required GTT alignment for an object, only taking into account
  1262. * unfenced tiled surface requirements.
  1263. */
  1264. uint32_t
  1265. i915_gem_get_unfenced_gtt_alignment(struct drm_device *dev,
  1266. uint32_t size,
  1267. int tiling_mode)
  1268. {
  1269. /*
  1270. * Minimum alignment is 4k (GTT page size) for sane hw.
  1271. */
  1272. if (INTEL_INFO(dev)->gen >= 4 || IS_G33(dev) ||
  1273. tiling_mode == I915_TILING_NONE)
  1274. return 4096;
  1275. /* Previous hardware however needs to be aligned to a power-of-two
  1276. * tile height. The simplest method for determining this is to reuse
  1277. * the power-of-tile object size.
  1278. */
  1279. return i915_gem_get_gtt_size(dev, size, tiling_mode);
  1280. }
  1281. static int i915_gem_object_create_mmap_offset(struct drm_i915_gem_object *obj)
  1282. {
  1283. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  1284. int ret;
  1285. if (obj->base.map_list.map)
  1286. return 0;
  1287. ret = drm_gem_create_mmap_offset(&obj->base);
  1288. if (ret != -ENOSPC)
  1289. return ret;
  1290. /* Badly fragmented mmap space? The only way we can recover
  1291. * space is by destroying unwanted objects. We can't randomly release
  1292. * mmap_offsets as userspace expects them to be persistent for the
  1293. * lifetime of the objects. The closest we can is to release the
  1294. * offsets on purgeable objects by truncating it and marking it purged,
  1295. * which prevents userspace from ever using that object again.
  1296. */
  1297. i915_gem_purge(dev_priv, obj->base.size >> PAGE_SHIFT);
  1298. ret = drm_gem_create_mmap_offset(&obj->base);
  1299. if (ret != -ENOSPC)
  1300. return ret;
  1301. i915_gem_shrink_all(dev_priv);
  1302. return drm_gem_create_mmap_offset(&obj->base);
  1303. }
  1304. static void i915_gem_object_free_mmap_offset(struct drm_i915_gem_object *obj)
  1305. {
  1306. if (!obj->base.map_list.map)
  1307. return;
  1308. drm_gem_free_mmap_offset(&obj->base);
  1309. }
  1310. int
  1311. i915_gem_mmap_gtt(struct drm_file *file,
  1312. struct drm_device *dev,
  1313. uint32_t handle,
  1314. uint64_t *offset)
  1315. {
  1316. struct drm_i915_private *dev_priv = dev->dev_private;
  1317. struct drm_i915_gem_object *obj;
  1318. int ret;
  1319. ret = i915_mutex_lock_interruptible(dev);
  1320. if (ret)
  1321. return ret;
  1322. obj = to_intel_bo(drm_gem_object_lookup(dev, file, handle));
  1323. if (&obj->base == NULL) {
  1324. ret = -ENOENT;
  1325. goto unlock;
  1326. }
  1327. if (obj->base.size > dev_priv->mm.gtt_mappable_end) {
  1328. ret = -E2BIG;
  1329. goto out;
  1330. }
  1331. if (obj->madv != I915_MADV_WILLNEED) {
  1332. DRM_ERROR("Attempting to mmap a purgeable buffer\n");
  1333. ret = -EINVAL;
  1334. goto out;
  1335. }
  1336. ret = i915_gem_object_create_mmap_offset(obj);
  1337. if (ret)
  1338. goto out;
  1339. *offset = (u64)obj->base.map_list.hash.key << PAGE_SHIFT;
  1340. out:
  1341. drm_gem_object_unreference(&obj->base);
  1342. unlock:
  1343. mutex_unlock(&dev->struct_mutex);
  1344. return ret;
  1345. }
  1346. /**
  1347. * i915_gem_mmap_gtt_ioctl - prepare an object for GTT mmap'ing
  1348. * @dev: DRM device
  1349. * @data: GTT mapping ioctl data
  1350. * @file: GEM object info
  1351. *
  1352. * Simply returns the fake offset to userspace so it can mmap it.
  1353. * The mmap call will end up in drm_gem_mmap(), which will set things
  1354. * up so we can get faults in the handler above.
  1355. *
  1356. * The fault handler will take care of binding the object into the GTT
  1357. * (since it may have been evicted to make room for something), allocating
  1358. * a fence register, and mapping the appropriate aperture address into
  1359. * userspace.
  1360. */
  1361. int
  1362. i915_gem_mmap_gtt_ioctl(struct drm_device *dev, void *data,
  1363. struct drm_file *file)
  1364. {
  1365. struct drm_i915_gem_mmap_gtt *args = data;
  1366. return i915_gem_mmap_gtt(file, dev, args->handle, &args->offset);
  1367. }
  1368. /* Immediately discard the backing storage */
  1369. static void
  1370. i915_gem_object_truncate(struct drm_i915_gem_object *obj)
  1371. {
  1372. struct inode *inode;
  1373. i915_gem_object_free_mmap_offset(obj);
  1374. if (obj->base.filp == NULL)
  1375. return;
  1376. /* Our goal here is to return as much of the memory as
  1377. * is possible back to the system as we are called from OOM.
  1378. * To do this we must instruct the shmfs to drop all of its
  1379. * backing pages, *now*.
  1380. */
  1381. inode = obj->base.filp->f_path.dentry->d_inode;
  1382. shmem_truncate_range(inode, 0, (loff_t)-1);
  1383. obj->madv = __I915_MADV_PURGED;
  1384. }
  1385. static inline int
  1386. i915_gem_object_is_purgeable(struct drm_i915_gem_object *obj)
  1387. {
  1388. return obj->madv == I915_MADV_DONTNEED;
  1389. }
  1390. static void
  1391. i915_gem_object_put_pages_gtt(struct drm_i915_gem_object *obj)
  1392. {
  1393. int page_count = obj->base.size / PAGE_SIZE;
  1394. struct scatterlist *sg;
  1395. int ret, i;
  1396. BUG_ON(obj->madv == __I915_MADV_PURGED);
  1397. ret = i915_gem_object_set_to_cpu_domain(obj, true);
  1398. if (ret) {
  1399. /* In the event of a disaster, abandon all caches and
  1400. * hope for the best.
  1401. */
  1402. WARN_ON(ret != -EIO);
  1403. i915_gem_clflush_object(obj);
  1404. obj->base.read_domains = obj->base.write_domain = I915_GEM_DOMAIN_CPU;
  1405. }
  1406. if (i915_gem_object_needs_bit17_swizzle(obj))
  1407. i915_gem_object_save_bit_17_swizzle(obj);
  1408. if (obj->madv == I915_MADV_DONTNEED)
  1409. obj->dirty = 0;
  1410. for_each_sg(obj->pages->sgl, sg, page_count, i) {
  1411. struct page *page = sg_page(sg);
  1412. if (obj->dirty)
  1413. set_page_dirty(page);
  1414. if (obj->madv == I915_MADV_WILLNEED)
  1415. mark_page_accessed(page);
  1416. page_cache_release(page);
  1417. }
  1418. obj->dirty = 0;
  1419. sg_free_table(obj->pages);
  1420. kfree(obj->pages);
  1421. }
  1422. static int
  1423. i915_gem_object_put_pages(struct drm_i915_gem_object *obj)
  1424. {
  1425. const struct drm_i915_gem_object_ops *ops = obj->ops;
  1426. if (obj->pages == NULL)
  1427. return 0;
  1428. BUG_ON(obj->gtt_space);
  1429. if (obj->pages_pin_count)
  1430. return -EBUSY;
  1431. ops->put_pages(obj);
  1432. obj->pages = NULL;
  1433. list_del(&obj->gtt_list);
  1434. if (i915_gem_object_is_purgeable(obj))
  1435. i915_gem_object_truncate(obj);
  1436. return 0;
  1437. }
  1438. static long
  1439. i915_gem_purge(struct drm_i915_private *dev_priv, long target)
  1440. {
  1441. struct drm_i915_gem_object *obj, *next;
  1442. long count = 0;
  1443. list_for_each_entry_safe(obj, next,
  1444. &dev_priv->mm.unbound_list,
  1445. gtt_list) {
  1446. if (i915_gem_object_is_purgeable(obj) &&
  1447. i915_gem_object_put_pages(obj) == 0) {
  1448. count += obj->base.size >> PAGE_SHIFT;
  1449. if (count >= target)
  1450. return count;
  1451. }
  1452. }
  1453. list_for_each_entry_safe(obj, next,
  1454. &dev_priv->mm.inactive_list,
  1455. mm_list) {
  1456. if (i915_gem_object_is_purgeable(obj) &&
  1457. i915_gem_object_unbind(obj) == 0 &&
  1458. i915_gem_object_put_pages(obj) == 0) {
  1459. count += obj->base.size >> PAGE_SHIFT;
  1460. if (count >= target)
  1461. return count;
  1462. }
  1463. }
  1464. return count;
  1465. }
  1466. static void
  1467. i915_gem_shrink_all(struct drm_i915_private *dev_priv)
  1468. {
  1469. struct drm_i915_gem_object *obj, *next;
  1470. i915_gem_evict_everything(dev_priv->dev);
  1471. list_for_each_entry_safe(obj, next, &dev_priv->mm.unbound_list, gtt_list)
  1472. i915_gem_object_put_pages(obj);
  1473. }
  1474. static int
  1475. i915_gem_object_get_pages_gtt(struct drm_i915_gem_object *obj)
  1476. {
  1477. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  1478. int page_count, i;
  1479. struct address_space *mapping;
  1480. struct sg_table *st;
  1481. struct scatterlist *sg;
  1482. struct page *page;
  1483. gfp_t gfp;
  1484. /* Assert that the object is not currently in any GPU domain. As it
  1485. * wasn't in the GTT, there shouldn't be any way it could have been in
  1486. * a GPU cache
  1487. */
  1488. BUG_ON(obj->base.read_domains & I915_GEM_GPU_DOMAINS);
  1489. BUG_ON(obj->base.write_domain & I915_GEM_GPU_DOMAINS);
  1490. st = kmalloc(sizeof(*st), GFP_KERNEL);
  1491. if (st == NULL)
  1492. return -ENOMEM;
  1493. page_count = obj->base.size / PAGE_SIZE;
  1494. if (sg_alloc_table(st, page_count, GFP_KERNEL)) {
  1495. sg_free_table(st);
  1496. kfree(st);
  1497. return -ENOMEM;
  1498. }
  1499. /* Get the list of pages out of our struct file. They'll be pinned
  1500. * at this point until we release them.
  1501. *
  1502. * Fail silently without starting the shrinker
  1503. */
  1504. mapping = obj->base.filp->f_path.dentry->d_inode->i_mapping;
  1505. gfp = mapping_gfp_mask(mapping);
  1506. gfp |= __GFP_NORETRY | __GFP_NOWARN;
  1507. gfp &= ~(__GFP_IO | __GFP_WAIT);
  1508. for_each_sg(st->sgl, sg, page_count, i) {
  1509. page = shmem_read_mapping_page_gfp(mapping, i, gfp);
  1510. if (IS_ERR(page)) {
  1511. i915_gem_purge(dev_priv, page_count);
  1512. page = shmem_read_mapping_page_gfp(mapping, i, gfp);
  1513. }
  1514. if (IS_ERR(page)) {
  1515. /* We've tried hard to allocate the memory by reaping
  1516. * our own buffer, now let the real VM do its job and
  1517. * go down in flames if truly OOM.
  1518. */
  1519. gfp &= ~(__GFP_NORETRY | __GFP_NOWARN);
  1520. gfp |= __GFP_IO | __GFP_WAIT;
  1521. i915_gem_shrink_all(dev_priv);
  1522. page = shmem_read_mapping_page_gfp(mapping, i, gfp);
  1523. if (IS_ERR(page))
  1524. goto err_pages;
  1525. gfp |= __GFP_NORETRY | __GFP_NOWARN;
  1526. gfp &= ~(__GFP_IO | __GFP_WAIT);
  1527. }
  1528. sg_set_page(sg, page, PAGE_SIZE, 0);
  1529. }
  1530. if (i915_gem_object_needs_bit17_swizzle(obj))
  1531. i915_gem_object_do_bit_17_swizzle(obj);
  1532. obj->pages = st;
  1533. return 0;
  1534. err_pages:
  1535. for_each_sg(st->sgl, sg, i, page_count)
  1536. page_cache_release(sg_page(sg));
  1537. sg_free_table(st);
  1538. kfree(st);
  1539. return PTR_ERR(page);
  1540. }
  1541. /* Ensure that the associated pages are gathered from the backing storage
  1542. * and pinned into our object. i915_gem_object_get_pages() may be called
  1543. * multiple times before they are released by a single call to
  1544. * i915_gem_object_put_pages() - once the pages are no longer referenced
  1545. * either as a result of memory pressure (reaping pages under the shrinker)
  1546. * or as the object is itself released.
  1547. */
  1548. int
  1549. i915_gem_object_get_pages(struct drm_i915_gem_object *obj)
  1550. {
  1551. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  1552. const struct drm_i915_gem_object_ops *ops = obj->ops;
  1553. int ret;
  1554. if (obj->pages)
  1555. return 0;
  1556. BUG_ON(obj->pages_pin_count);
  1557. ret = ops->get_pages(obj);
  1558. if (ret)
  1559. return ret;
  1560. list_add_tail(&obj->gtt_list, &dev_priv->mm.unbound_list);
  1561. return 0;
  1562. }
  1563. void
  1564. i915_gem_object_move_to_active(struct drm_i915_gem_object *obj,
  1565. struct intel_ring_buffer *ring,
  1566. u32 seqno)
  1567. {
  1568. struct drm_device *dev = obj->base.dev;
  1569. struct drm_i915_private *dev_priv = dev->dev_private;
  1570. BUG_ON(ring == NULL);
  1571. obj->ring = ring;
  1572. /* Add a reference if we're newly entering the active list. */
  1573. if (!obj->active) {
  1574. drm_gem_object_reference(&obj->base);
  1575. obj->active = 1;
  1576. }
  1577. /* Move from whatever list we were on to the tail of execution. */
  1578. list_move_tail(&obj->mm_list, &dev_priv->mm.active_list);
  1579. list_move_tail(&obj->ring_list, &ring->active_list);
  1580. obj->last_read_seqno = seqno;
  1581. if (obj->fenced_gpu_access) {
  1582. obj->last_fenced_seqno = seqno;
  1583. /* Bump MRU to take account of the delayed flush */
  1584. if (obj->fence_reg != I915_FENCE_REG_NONE) {
  1585. struct drm_i915_fence_reg *reg;
  1586. reg = &dev_priv->fence_regs[obj->fence_reg];
  1587. list_move_tail(&reg->lru_list,
  1588. &dev_priv->mm.fence_list);
  1589. }
  1590. }
  1591. }
  1592. static void
  1593. i915_gem_object_move_to_inactive(struct drm_i915_gem_object *obj)
  1594. {
  1595. struct drm_device *dev = obj->base.dev;
  1596. struct drm_i915_private *dev_priv = dev->dev_private;
  1597. BUG_ON(obj->base.write_domain & ~I915_GEM_GPU_DOMAINS);
  1598. BUG_ON(!obj->active);
  1599. if (obj->pin_count) /* are we a framebuffer? */
  1600. intel_mark_fb_idle(obj);
  1601. list_move_tail(&obj->mm_list, &dev_priv->mm.inactive_list);
  1602. list_del_init(&obj->ring_list);
  1603. obj->ring = NULL;
  1604. obj->last_read_seqno = 0;
  1605. obj->last_write_seqno = 0;
  1606. obj->base.write_domain = 0;
  1607. obj->last_fenced_seqno = 0;
  1608. obj->fenced_gpu_access = false;
  1609. obj->active = 0;
  1610. drm_gem_object_unreference(&obj->base);
  1611. WARN_ON(i915_verify_lists(dev));
  1612. }
  1613. static u32
  1614. i915_gem_get_seqno(struct drm_device *dev)
  1615. {
  1616. drm_i915_private_t *dev_priv = dev->dev_private;
  1617. u32 seqno = dev_priv->next_seqno;
  1618. /* reserve 0 for non-seqno */
  1619. if (++dev_priv->next_seqno == 0)
  1620. dev_priv->next_seqno = 1;
  1621. return seqno;
  1622. }
  1623. u32
  1624. i915_gem_next_request_seqno(struct intel_ring_buffer *ring)
  1625. {
  1626. if (ring->outstanding_lazy_request == 0)
  1627. ring->outstanding_lazy_request = i915_gem_get_seqno(ring->dev);
  1628. return ring->outstanding_lazy_request;
  1629. }
  1630. int
  1631. i915_add_request(struct intel_ring_buffer *ring,
  1632. struct drm_file *file,
  1633. struct drm_i915_gem_request *request)
  1634. {
  1635. drm_i915_private_t *dev_priv = ring->dev->dev_private;
  1636. uint32_t seqno;
  1637. u32 request_ring_position;
  1638. int was_empty;
  1639. int ret;
  1640. /*
  1641. * Emit any outstanding flushes - execbuf can fail to emit the flush
  1642. * after having emitted the batchbuffer command. Hence we need to fix
  1643. * things up similar to emitting the lazy request. The difference here
  1644. * is that the flush _must_ happen before the next request, no matter
  1645. * what.
  1646. */
  1647. ret = intel_ring_flush_all_caches(ring);
  1648. if (ret)
  1649. return ret;
  1650. if (request == NULL) {
  1651. request = kmalloc(sizeof(*request), GFP_KERNEL);
  1652. if (request == NULL)
  1653. return -ENOMEM;
  1654. }
  1655. seqno = i915_gem_next_request_seqno(ring);
  1656. /* Record the position of the start of the request so that
  1657. * should we detect the updated seqno part-way through the
  1658. * GPU processing the request, we never over-estimate the
  1659. * position of the head.
  1660. */
  1661. request_ring_position = intel_ring_get_tail(ring);
  1662. ret = ring->add_request(ring, &seqno);
  1663. if (ret) {
  1664. kfree(request);
  1665. return ret;
  1666. }
  1667. trace_i915_gem_request_add(ring, seqno);
  1668. request->seqno = seqno;
  1669. request->ring = ring;
  1670. request->tail = request_ring_position;
  1671. request->emitted_jiffies = jiffies;
  1672. was_empty = list_empty(&ring->request_list);
  1673. list_add_tail(&request->list, &ring->request_list);
  1674. request->file_priv = NULL;
  1675. if (file) {
  1676. struct drm_i915_file_private *file_priv = file->driver_priv;
  1677. spin_lock(&file_priv->mm.lock);
  1678. request->file_priv = file_priv;
  1679. list_add_tail(&request->client_list,
  1680. &file_priv->mm.request_list);
  1681. spin_unlock(&file_priv->mm.lock);
  1682. }
  1683. ring->outstanding_lazy_request = 0;
  1684. if (!dev_priv->mm.suspended) {
  1685. if (i915_enable_hangcheck) {
  1686. mod_timer(&dev_priv->hangcheck_timer,
  1687. jiffies +
  1688. msecs_to_jiffies(DRM_I915_HANGCHECK_PERIOD));
  1689. }
  1690. if (was_empty) {
  1691. queue_delayed_work(dev_priv->wq,
  1692. &dev_priv->mm.retire_work, HZ);
  1693. intel_mark_busy(dev_priv->dev);
  1694. }
  1695. }
  1696. return 0;
  1697. }
  1698. static inline void
  1699. i915_gem_request_remove_from_client(struct drm_i915_gem_request *request)
  1700. {
  1701. struct drm_i915_file_private *file_priv = request->file_priv;
  1702. if (!file_priv)
  1703. return;
  1704. spin_lock(&file_priv->mm.lock);
  1705. if (request->file_priv) {
  1706. list_del(&request->client_list);
  1707. request->file_priv = NULL;
  1708. }
  1709. spin_unlock(&file_priv->mm.lock);
  1710. }
  1711. static void i915_gem_reset_ring_lists(struct drm_i915_private *dev_priv,
  1712. struct intel_ring_buffer *ring)
  1713. {
  1714. while (!list_empty(&ring->request_list)) {
  1715. struct drm_i915_gem_request *request;
  1716. request = list_first_entry(&ring->request_list,
  1717. struct drm_i915_gem_request,
  1718. list);
  1719. list_del(&request->list);
  1720. i915_gem_request_remove_from_client(request);
  1721. kfree(request);
  1722. }
  1723. while (!list_empty(&ring->active_list)) {
  1724. struct drm_i915_gem_object *obj;
  1725. obj = list_first_entry(&ring->active_list,
  1726. struct drm_i915_gem_object,
  1727. ring_list);
  1728. i915_gem_object_move_to_inactive(obj);
  1729. }
  1730. }
  1731. static void i915_gem_reset_fences(struct drm_device *dev)
  1732. {
  1733. struct drm_i915_private *dev_priv = dev->dev_private;
  1734. int i;
  1735. for (i = 0; i < dev_priv->num_fence_regs; i++) {
  1736. struct drm_i915_fence_reg *reg = &dev_priv->fence_regs[i];
  1737. i915_gem_write_fence(dev, i, NULL);
  1738. if (reg->obj)
  1739. i915_gem_object_fence_lost(reg->obj);
  1740. reg->pin_count = 0;
  1741. reg->obj = NULL;
  1742. INIT_LIST_HEAD(&reg->lru_list);
  1743. }
  1744. INIT_LIST_HEAD(&dev_priv->mm.fence_list);
  1745. }
  1746. void i915_gem_reset(struct drm_device *dev)
  1747. {
  1748. struct drm_i915_private *dev_priv = dev->dev_private;
  1749. struct drm_i915_gem_object *obj;
  1750. struct intel_ring_buffer *ring;
  1751. int i;
  1752. for_each_ring(ring, dev_priv, i)
  1753. i915_gem_reset_ring_lists(dev_priv, ring);
  1754. /* Move everything out of the GPU domains to ensure we do any
  1755. * necessary invalidation upon reuse.
  1756. */
  1757. list_for_each_entry(obj,
  1758. &dev_priv->mm.inactive_list,
  1759. mm_list)
  1760. {
  1761. obj->base.read_domains &= ~I915_GEM_GPU_DOMAINS;
  1762. }
  1763. /* The fence registers are invalidated so clear them out */
  1764. i915_gem_reset_fences(dev);
  1765. }
  1766. /**
  1767. * This function clears the request list as sequence numbers are passed.
  1768. */
  1769. void
  1770. i915_gem_retire_requests_ring(struct intel_ring_buffer *ring)
  1771. {
  1772. uint32_t seqno;
  1773. int i;
  1774. if (list_empty(&ring->request_list))
  1775. return;
  1776. WARN_ON(i915_verify_lists(ring->dev));
  1777. seqno = ring->get_seqno(ring, true);
  1778. for (i = 0; i < ARRAY_SIZE(ring->sync_seqno); i++)
  1779. if (seqno >= ring->sync_seqno[i])
  1780. ring->sync_seqno[i] = 0;
  1781. while (!list_empty(&ring->request_list)) {
  1782. struct drm_i915_gem_request *request;
  1783. request = list_first_entry(&ring->request_list,
  1784. struct drm_i915_gem_request,
  1785. list);
  1786. if (!i915_seqno_passed(seqno, request->seqno))
  1787. break;
  1788. trace_i915_gem_request_retire(ring, request->seqno);
  1789. /* We know the GPU must have read the request to have
  1790. * sent us the seqno + interrupt, so use the position
  1791. * of tail of the request to update the last known position
  1792. * of the GPU head.
  1793. */
  1794. ring->last_retired_head = request->tail;
  1795. list_del(&request->list);
  1796. i915_gem_request_remove_from_client(request);
  1797. kfree(request);
  1798. }
  1799. /* Move any buffers on the active list that are no longer referenced
  1800. * by the ringbuffer to the flushing/inactive lists as appropriate.
  1801. */
  1802. while (!list_empty(&ring->active_list)) {
  1803. struct drm_i915_gem_object *obj;
  1804. obj = list_first_entry(&ring->active_list,
  1805. struct drm_i915_gem_object,
  1806. ring_list);
  1807. if (!i915_seqno_passed(seqno, obj->last_read_seqno))
  1808. break;
  1809. i915_gem_object_move_to_inactive(obj);
  1810. }
  1811. if (unlikely(ring->trace_irq_seqno &&
  1812. i915_seqno_passed(seqno, ring->trace_irq_seqno))) {
  1813. ring->irq_put(ring);
  1814. ring->trace_irq_seqno = 0;
  1815. }
  1816. WARN_ON(i915_verify_lists(ring->dev));
  1817. }
  1818. void
  1819. i915_gem_retire_requests(struct drm_device *dev)
  1820. {
  1821. drm_i915_private_t *dev_priv = dev->dev_private;
  1822. struct intel_ring_buffer *ring;
  1823. int i;
  1824. for_each_ring(ring, dev_priv, i)
  1825. i915_gem_retire_requests_ring(ring);
  1826. }
  1827. static void
  1828. i915_gem_retire_work_handler(struct work_struct *work)
  1829. {
  1830. drm_i915_private_t *dev_priv;
  1831. struct drm_device *dev;
  1832. struct intel_ring_buffer *ring;
  1833. bool idle;
  1834. int i;
  1835. dev_priv = container_of(work, drm_i915_private_t,
  1836. mm.retire_work.work);
  1837. dev = dev_priv->dev;
  1838. /* Come back later if the device is busy... */
  1839. if (!mutex_trylock(&dev->struct_mutex)) {
  1840. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, HZ);
  1841. return;
  1842. }
  1843. i915_gem_retire_requests(dev);
  1844. /* Send a periodic flush down the ring so we don't hold onto GEM
  1845. * objects indefinitely.
  1846. */
  1847. idle = true;
  1848. for_each_ring(ring, dev_priv, i) {
  1849. if (ring->gpu_caches_dirty)
  1850. i915_add_request(ring, NULL, NULL);
  1851. idle &= list_empty(&ring->request_list);
  1852. }
  1853. if (!dev_priv->mm.suspended && !idle)
  1854. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, HZ);
  1855. if (idle)
  1856. intel_mark_idle(dev);
  1857. mutex_unlock(&dev->struct_mutex);
  1858. }
  1859. /**
  1860. * Ensures that an object will eventually get non-busy by flushing any required
  1861. * write domains, emitting any outstanding lazy request and retiring and
  1862. * completed requests.
  1863. */
  1864. static int
  1865. i915_gem_object_flush_active(struct drm_i915_gem_object *obj)
  1866. {
  1867. int ret;
  1868. if (obj->active) {
  1869. ret = i915_gem_check_olr(obj->ring, obj->last_read_seqno);
  1870. if (ret)
  1871. return ret;
  1872. i915_gem_retire_requests_ring(obj->ring);
  1873. }
  1874. return 0;
  1875. }
  1876. /**
  1877. * i915_gem_wait_ioctl - implements DRM_IOCTL_I915_GEM_WAIT
  1878. * @DRM_IOCTL_ARGS: standard ioctl arguments
  1879. *
  1880. * Returns 0 if successful, else an error is returned with the remaining time in
  1881. * the timeout parameter.
  1882. * -ETIME: object is still busy after timeout
  1883. * -ERESTARTSYS: signal interrupted the wait
  1884. * -ENONENT: object doesn't exist
  1885. * Also possible, but rare:
  1886. * -EAGAIN: GPU wedged
  1887. * -ENOMEM: damn
  1888. * -ENODEV: Internal IRQ fail
  1889. * -E?: The add request failed
  1890. *
  1891. * The wait ioctl with a timeout of 0 reimplements the busy ioctl. With any
  1892. * non-zero timeout parameter the wait ioctl will wait for the given number of
  1893. * nanoseconds on an object becoming unbusy. Since the wait itself does so
  1894. * without holding struct_mutex the object may become re-busied before this
  1895. * function completes. A similar but shorter * race condition exists in the busy
  1896. * ioctl
  1897. */
  1898. int
  1899. i915_gem_wait_ioctl(struct drm_device *dev, void *data, struct drm_file *file)
  1900. {
  1901. struct drm_i915_gem_wait *args = data;
  1902. struct drm_i915_gem_object *obj;
  1903. struct intel_ring_buffer *ring = NULL;
  1904. struct timespec timeout_stack, *timeout = NULL;
  1905. u32 seqno = 0;
  1906. int ret = 0;
  1907. if (args->timeout_ns >= 0) {
  1908. timeout_stack = ns_to_timespec(args->timeout_ns);
  1909. timeout = &timeout_stack;
  1910. }
  1911. ret = i915_mutex_lock_interruptible(dev);
  1912. if (ret)
  1913. return ret;
  1914. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->bo_handle));
  1915. if (&obj->base == NULL) {
  1916. mutex_unlock(&dev->struct_mutex);
  1917. return -ENOENT;
  1918. }
  1919. /* Need to make sure the object gets inactive eventually. */
  1920. ret = i915_gem_object_flush_active(obj);
  1921. if (ret)
  1922. goto out;
  1923. if (obj->active) {
  1924. seqno = obj->last_read_seqno;
  1925. ring = obj->ring;
  1926. }
  1927. if (seqno == 0)
  1928. goto out;
  1929. /* Do this after OLR check to make sure we make forward progress polling
  1930. * on this IOCTL with a 0 timeout (like busy ioctl)
  1931. */
  1932. if (!args->timeout_ns) {
  1933. ret = -ETIME;
  1934. goto out;
  1935. }
  1936. drm_gem_object_unreference(&obj->base);
  1937. mutex_unlock(&dev->struct_mutex);
  1938. ret = __wait_seqno(ring, seqno, true, timeout);
  1939. if (timeout) {
  1940. WARN_ON(!timespec_valid(timeout));
  1941. args->timeout_ns = timespec_to_ns(timeout);
  1942. }
  1943. return ret;
  1944. out:
  1945. drm_gem_object_unreference(&obj->base);
  1946. mutex_unlock(&dev->struct_mutex);
  1947. return ret;
  1948. }
  1949. /**
  1950. * i915_gem_object_sync - sync an object to a ring.
  1951. *
  1952. * @obj: object which may be in use on another ring.
  1953. * @to: ring we wish to use the object on. May be NULL.
  1954. *
  1955. * This code is meant to abstract object synchronization with the GPU.
  1956. * Calling with NULL implies synchronizing the object with the CPU
  1957. * rather than a particular GPU ring.
  1958. *
  1959. * Returns 0 if successful, else propagates up the lower layer error.
  1960. */
  1961. int
  1962. i915_gem_object_sync(struct drm_i915_gem_object *obj,
  1963. struct intel_ring_buffer *to)
  1964. {
  1965. struct intel_ring_buffer *from = obj->ring;
  1966. u32 seqno;
  1967. int ret, idx;
  1968. if (from == NULL || to == from)
  1969. return 0;
  1970. if (to == NULL || !i915_semaphore_is_enabled(obj->base.dev))
  1971. return i915_gem_object_wait_rendering(obj, false);
  1972. idx = intel_ring_sync_index(from, to);
  1973. seqno = obj->last_read_seqno;
  1974. if (seqno <= from->sync_seqno[idx])
  1975. return 0;
  1976. ret = i915_gem_check_olr(obj->ring, seqno);
  1977. if (ret)
  1978. return ret;
  1979. ret = to->sync_to(to, from, seqno);
  1980. if (!ret)
  1981. from->sync_seqno[idx] = seqno;
  1982. return ret;
  1983. }
  1984. static void i915_gem_object_finish_gtt(struct drm_i915_gem_object *obj)
  1985. {
  1986. u32 old_write_domain, old_read_domains;
  1987. /* Act a barrier for all accesses through the GTT */
  1988. mb();
  1989. /* Force a pagefault for domain tracking on next user access */
  1990. i915_gem_release_mmap(obj);
  1991. if ((obj->base.read_domains & I915_GEM_DOMAIN_GTT) == 0)
  1992. return;
  1993. old_read_domains = obj->base.read_domains;
  1994. old_write_domain = obj->base.write_domain;
  1995. obj->base.read_domains &= ~I915_GEM_DOMAIN_GTT;
  1996. obj->base.write_domain &= ~I915_GEM_DOMAIN_GTT;
  1997. trace_i915_gem_object_change_domain(obj,
  1998. old_read_domains,
  1999. old_write_domain);
  2000. }
  2001. /**
  2002. * Unbinds an object from the GTT aperture.
  2003. */
  2004. int
  2005. i915_gem_object_unbind(struct drm_i915_gem_object *obj)
  2006. {
  2007. drm_i915_private_t *dev_priv = obj->base.dev->dev_private;
  2008. int ret = 0;
  2009. if (obj->gtt_space == NULL)
  2010. return 0;
  2011. if (obj->pin_count)
  2012. return -EBUSY;
  2013. BUG_ON(obj->pages == NULL);
  2014. ret = i915_gem_object_finish_gpu(obj);
  2015. if (ret)
  2016. return ret;
  2017. /* Continue on if we fail due to EIO, the GPU is hung so we
  2018. * should be safe and we need to cleanup or else we might
  2019. * cause memory corruption through use-after-free.
  2020. */
  2021. i915_gem_object_finish_gtt(obj);
  2022. /* release the fence reg _after_ flushing */
  2023. ret = i915_gem_object_put_fence(obj);
  2024. if (ret)
  2025. return ret;
  2026. trace_i915_gem_object_unbind(obj);
  2027. if (obj->has_global_gtt_mapping)
  2028. i915_gem_gtt_unbind_object(obj);
  2029. if (obj->has_aliasing_ppgtt_mapping) {
  2030. i915_ppgtt_unbind_object(dev_priv->mm.aliasing_ppgtt, obj);
  2031. obj->has_aliasing_ppgtt_mapping = 0;
  2032. }
  2033. i915_gem_gtt_finish_object(obj);
  2034. list_del(&obj->mm_list);
  2035. list_move_tail(&obj->gtt_list, &dev_priv->mm.unbound_list);
  2036. /* Avoid an unnecessary call to unbind on rebind. */
  2037. obj->map_and_fenceable = true;
  2038. drm_mm_put_block(obj->gtt_space);
  2039. obj->gtt_space = NULL;
  2040. obj->gtt_offset = 0;
  2041. return 0;
  2042. }
  2043. static int i915_ring_idle(struct intel_ring_buffer *ring)
  2044. {
  2045. if (list_empty(&ring->active_list))
  2046. return 0;
  2047. return i915_wait_seqno(ring, i915_gem_next_request_seqno(ring));
  2048. }
  2049. int i915_gpu_idle(struct drm_device *dev)
  2050. {
  2051. drm_i915_private_t *dev_priv = dev->dev_private;
  2052. struct intel_ring_buffer *ring;
  2053. int ret, i;
  2054. /* Flush everything onto the inactive list. */
  2055. for_each_ring(ring, dev_priv, i) {
  2056. ret = i915_switch_context(ring, NULL, DEFAULT_CONTEXT_ID);
  2057. if (ret)
  2058. return ret;
  2059. ret = i915_ring_idle(ring);
  2060. if (ret)
  2061. return ret;
  2062. }
  2063. return 0;
  2064. }
  2065. static void sandybridge_write_fence_reg(struct drm_device *dev, int reg,
  2066. struct drm_i915_gem_object *obj)
  2067. {
  2068. drm_i915_private_t *dev_priv = dev->dev_private;
  2069. uint64_t val;
  2070. if (obj) {
  2071. u32 size = obj->gtt_space->size;
  2072. val = (uint64_t)((obj->gtt_offset + size - 4096) &
  2073. 0xfffff000) << 32;
  2074. val |= obj->gtt_offset & 0xfffff000;
  2075. val |= (uint64_t)((obj->stride / 128) - 1) <<
  2076. SANDYBRIDGE_FENCE_PITCH_SHIFT;
  2077. if (obj->tiling_mode == I915_TILING_Y)
  2078. val |= 1 << I965_FENCE_TILING_Y_SHIFT;
  2079. val |= I965_FENCE_REG_VALID;
  2080. } else
  2081. val = 0;
  2082. I915_WRITE64(FENCE_REG_SANDYBRIDGE_0 + reg * 8, val);
  2083. POSTING_READ(FENCE_REG_SANDYBRIDGE_0 + reg * 8);
  2084. }
  2085. static void i965_write_fence_reg(struct drm_device *dev, int reg,
  2086. struct drm_i915_gem_object *obj)
  2087. {
  2088. drm_i915_private_t *dev_priv = dev->dev_private;
  2089. uint64_t val;
  2090. if (obj) {
  2091. u32 size = obj->gtt_space->size;
  2092. val = (uint64_t)((obj->gtt_offset + size - 4096) &
  2093. 0xfffff000) << 32;
  2094. val |= obj->gtt_offset & 0xfffff000;
  2095. val |= ((obj->stride / 128) - 1) << I965_FENCE_PITCH_SHIFT;
  2096. if (obj->tiling_mode == I915_TILING_Y)
  2097. val |= 1 << I965_FENCE_TILING_Y_SHIFT;
  2098. val |= I965_FENCE_REG_VALID;
  2099. } else
  2100. val = 0;
  2101. I915_WRITE64(FENCE_REG_965_0 + reg * 8, val);
  2102. POSTING_READ(FENCE_REG_965_0 + reg * 8);
  2103. }
  2104. static void i915_write_fence_reg(struct drm_device *dev, int reg,
  2105. struct drm_i915_gem_object *obj)
  2106. {
  2107. drm_i915_private_t *dev_priv = dev->dev_private;
  2108. u32 val;
  2109. if (obj) {
  2110. u32 size = obj->gtt_space->size;
  2111. int pitch_val;
  2112. int tile_width;
  2113. WARN((obj->gtt_offset & ~I915_FENCE_START_MASK) ||
  2114. (size & -size) != size ||
  2115. (obj->gtt_offset & (size - 1)),
  2116. "object 0x%08x [fenceable? %d] not 1M or pot-size (0x%08x) aligned\n",
  2117. obj->gtt_offset, obj->map_and_fenceable, size);
  2118. if (obj->tiling_mode == I915_TILING_Y && HAS_128_BYTE_Y_TILING(dev))
  2119. tile_width = 128;
  2120. else
  2121. tile_width = 512;
  2122. /* Note: pitch better be a power of two tile widths */
  2123. pitch_val = obj->stride / tile_width;
  2124. pitch_val = ffs(pitch_val) - 1;
  2125. val = obj->gtt_offset;
  2126. if (obj->tiling_mode == I915_TILING_Y)
  2127. val |= 1 << I830_FENCE_TILING_Y_SHIFT;
  2128. val |= I915_FENCE_SIZE_BITS(size);
  2129. val |= pitch_val << I830_FENCE_PITCH_SHIFT;
  2130. val |= I830_FENCE_REG_VALID;
  2131. } else
  2132. val = 0;
  2133. if (reg < 8)
  2134. reg = FENCE_REG_830_0 + reg * 4;
  2135. else
  2136. reg = FENCE_REG_945_8 + (reg - 8) * 4;
  2137. I915_WRITE(reg, val);
  2138. POSTING_READ(reg);
  2139. }
  2140. static void i830_write_fence_reg(struct drm_device *dev, int reg,
  2141. struct drm_i915_gem_object *obj)
  2142. {
  2143. drm_i915_private_t *dev_priv = dev->dev_private;
  2144. uint32_t val;
  2145. if (obj) {
  2146. u32 size = obj->gtt_space->size;
  2147. uint32_t pitch_val;
  2148. WARN((obj->gtt_offset & ~I830_FENCE_START_MASK) ||
  2149. (size & -size) != size ||
  2150. (obj->gtt_offset & (size - 1)),
  2151. "object 0x%08x not 512K or pot-size 0x%08x aligned\n",
  2152. obj->gtt_offset, size);
  2153. pitch_val = obj->stride / 128;
  2154. pitch_val = ffs(pitch_val) - 1;
  2155. val = obj->gtt_offset;
  2156. if (obj->tiling_mode == I915_TILING_Y)
  2157. val |= 1 << I830_FENCE_TILING_Y_SHIFT;
  2158. val |= I830_FENCE_SIZE_BITS(size);
  2159. val |= pitch_val << I830_FENCE_PITCH_SHIFT;
  2160. val |= I830_FENCE_REG_VALID;
  2161. } else
  2162. val = 0;
  2163. I915_WRITE(FENCE_REG_830_0 + reg * 4, val);
  2164. POSTING_READ(FENCE_REG_830_0 + reg * 4);
  2165. }
  2166. static void i915_gem_write_fence(struct drm_device *dev, int reg,
  2167. struct drm_i915_gem_object *obj)
  2168. {
  2169. switch (INTEL_INFO(dev)->gen) {
  2170. case 7:
  2171. case 6: sandybridge_write_fence_reg(dev, reg, obj); break;
  2172. case 5:
  2173. case 4: i965_write_fence_reg(dev, reg, obj); break;
  2174. case 3: i915_write_fence_reg(dev, reg, obj); break;
  2175. case 2: i830_write_fence_reg(dev, reg, obj); break;
  2176. default: break;
  2177. }
  2178. }
  2179. static inline int fence_number(struct drm_i915_private *dev_priv,
  2180. struct drm_i915_fence_reg *fence)
  2181. {
  2182. return fence - dev_priv->fence_regs;
  2183. }
  2184. static void i915_gem_object_update_fence(struct drm_i915_gem_object *obj,
  2185. struct drm_i915_fence_reg *fence,
  2186. bool enable)
  2187. {
  2188. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  2189. int reg = fence_number(dev_priv, fence);
  2190. i915_gem_write_fence(obj->base.dev, reg, enable ? obj : NULL);
  2191. if (enable) {
  2192. obj->fence_reg = reg;
  2193. fence->obj = obj;
  2194. list_move_tail(&fence->lru_list, &dev_priv->mm.fence_list);
  2195. } else {
  2196. obj->fence_reg = I915_FENCE_REG_NONE;
  2197. fence->obj = NULL;
  2198. list_del_init(&fence->lru_list);
  2199. }
  2200. }
  2201. static int
  2202. i915_gem_object_flush_fence(struct drm_i915_gem_object *obj)
  2203. {
  2204. if (obj->last_fenced_seqno) {
  2205. int ret = i915_wait_seqno(obj->ring, obj->last_fenced_seqno);
  2206. if (ret)
  2207. return ret;
  2208. obj->last_fenced_seqno = 0;
  2209. }
  2210. /* Ensure that all CPU reads are completed before installing a fence
  2211. * and all writes before removing the fence.
  2212. */
  2213. if (obj->base.read_domains & I915_GEM_DOMAIN_GTT)
  2214. mb();
  2215. obj->fenced_gpu_access = false;
  2216. return 0;
  2217. }
  2218. int
  2219. i915_gem_object_put_fence(struct drm_i915_gem_object *obj)
  2220. {
  2221. struct drm_i915_private *dev_priv = obj->base.dev->dev_private;
  2222. int ret;
  2223. ret = i915_gem_object_flush_fence(obj);
  2224. if (ret)
  2225. return ret;
  2226. if (obj->fence_reg == I915_FENCE_REG_NONE)
  2227. return 0;
  2228. i915_gem_object_update_fence(obj,
  2229. &dev_priv->fence_regs[obj->fence_reg],
  2230. false);
  2231. i915_gem_object_fence_lost(obj);
  2232. return 0;
  2233. }
  2234. static struct drm_i915_fence_reg *
  2235. i915_find_fence_reg(struct drm_device *dev)
  2236. {
  2237. struct drm_i915_private *dev_priv = dev->dev_private;
  2238. struct drm_i915_fence_reg *reg, *avail;
  2239. int i;
  2240. /* First try to find a free reg */
  2241. avail = NULL;
  2242. for (i = dev_priv->fence_reg_start; i < dev_priv->num_fence_regs; i++) {
  2243. reg = &dev_priv->fence_regs[i];
  2244. if (!reg->obj)
  2245. return reg;
  2246. if (!reg->pin_count)
  2247. avail = reg;
  2248. }
  2249. if (avail == NULL)
  2250. return NULL;
  2251. /* None available, try to steal one or wait for a user to finish */
  2252. list_for_each_entry(reg, &dev_priv->mm.fence_list, lru_list) {
  2253. if (reg->pin_count)
  2254. continue;
  2255. return reg;
  2256. }
  2257. return NULL;
  2258. }
  2259. /**
  2260. * i915_gem_object_get_fence - set up fencing for an object
  2261. * @obj: object to map through a fence reg
  2262. *
  2263. * When mapping objects through the GTT, userspace wants to be able to write
  2264. * to them without having to worry about swizzling if the object is tiled.
  2265. * This function walks the fence regs looking for a free one for @obj,
  2266. * stealing one if it can't find any.
  2267. *
  2268. * It then sets up the reg based on the object's properties: address, pitch
  2269. * and tiling format.
  2270. *
  2271. * For an untiled surface, this removes any existing fence.
  2272. */
  2273. int
  2274. i915_gem_object_get_fence(struct drm_i915_gem_object *obj)
  2275. {
  2276. struct drm_device *dev = obj->base.dev;
  2277. struct drm_i915_private *dev_priv = dev->dev_private;
  2278. bool enable = obj->tiling_mode != I915_TILING_NONE;
  2279. struct drm_i915_fence_reg *reg;
  2280. int ret;
  2281. /* Have we updated the tiling parameters upon the object and so
  2282. * will need to serialise the write to the associated fence register?
  2283. */
  2284. if (obj->fence_dirty) {
  2285. ret = i915_gem_object_flush_fence(obj);
  2286. if (ret)
  2287. return ret;
  2288. }
  2289. /* Just update our place in the LRU if our fence is getting reused. */
  2290. if (obj->fence_reg != I915_FENCE_REG_NONE) {
  2291. reg = &dev_priv->fence_regs[obj->fence_reg];
  2292. if (!obj->fence_dirty) {
  2293. list_move_tail(&reg->lru_list,
  2294. &dev_priv->mm.fence_list);
  2295. return 0;
  2296. }
  2297. } else if (enable) {
  2298. reg = i915_find_fence_reg(dev);
  2299. if (reg == NULL)
  2300. return -EDEADLK;
  2301. if (reg->obj) {
  2302. struct drm_i915_gem_object *old = reg->obj;
  2303. ret = i915_gem_object_flush_fence(old);
  2304. if (ret)
  2305. return ret;
  2306. i915_gem_object_fence_lost(old);
  2307. }
  2308. } else
  2309. return 0;
  2310. i915_gem_object_update_fence(obj, reg, enable);
  2311. obj->fence_dirty = false;
  2312. return 0;
  2313. }
  2314. static bool i915_gem_valid_gtt_space(struct drm_device *dev,
  2315. struct drm_mm_node *gtt_space,
  2316. unsigned long cache_level)
  2317. {
  2318. struct drm_mm_node *other;
  2319. /* On non-LLC machines we have to be careful when putting differing
  2320. * types of snoopable memory together to avoid the prefetcher
  2321. * crossing memory domains and dieing.
  2322. */
  2323. if (HAS_LLC(dev))
  2324. return true;
  2325. if (gtt_space == NULL)
  2326. return true;
  2327. if (list_empty(&gtt_space->node_list))
  2328. return true;
  2329. other = list_entry(gtt_space->node_list.prev, struct drm_mm_node, node_list);
  2330. if (other->allocated && !other->hole_follows && other->color != cache_level)
  2331. return false;
  2332. other = list_entry(gtt_space->node_list.next, struct drm_mm_node, node_list);
  2333. if (other->allocated && !gtt_space->hole_follows && other->color != cache_level)
  2334. return false;
  2335. return true;
  2336. }
  2337. static void i915_gem_verify_gtt(struct drm_device *dev)
  2338. {
  2339. #if WATCH_GTT
  2340. struct drm_i915_private *dev_priv = dev->dev_private;
  2341. struct drm_i915_gem_object *obj;
  2342. int err = 0;
  2343. list_for_each_entry(obj, &dev_priv->mm.gtt_list, gtt_list) {
  2344. if (obj->gtt_space == NULL) {
  2345. printk(KERN_ERR "object found on GTT list with no space reserved\n");
  2346. err++;
  2347. continue;
  2348. }
  2349. if (obj->cache_level != obj->gtt_space->color) {
  2350. printk(KERN_ERR "object reserved space [%08lx, %08lx] with wrong color, cache_level=%x, color=%lx\n",
  2351. obj->gtt_space->start,
  2352. obj->gtt_space->start + obj->gtt_space->size,
  2353. obj->cache_level,
  2354. obj->gtt_space->color);
  2355. err++;
  2356. continue;
  2357. }
  2358. if (!i915_gem_valid_gtt_space(dev,
  2359. obj->gtt_space,
  2360. obj->cache_level)) {
  2361. printk(KERN_ERR "invalid GTT space found at [%08lx, %08lx] - color=%x\n",
  2362. obj->gtt_space->start,
  2363. obj->gtt_space->start + obj->gtt_space->size,
  2364. obj->cache_level);
  2365. err++;
  2366. continue;
  2367. }
  2368. }
  2369. WARN_ON(err);
  2370. #endif
  2371. }
  2372. /**
  2373. * Finds free space in the GTT aperture and binds the object there.
  2374. */
  2375. static int
  2376. i915_gem_object_bind_to_gtt(struct drm_i915_gem_object *obj,
  2377. unsigned alignment,
  2378. bool map_and_fenceable,
  2379. bool nonblocking)
  2380. {
  2381. struct drm_device *dev = obj->base.dev;
  2382. drm_i915_private_t *dev_priv = dev->dev_private;
  2383. struct drm_mm_node *free_space;
  2384. u32 size, fence_size, fence_alignment, unfenced_alignment;
  2385. bool mappable, fenceable;
  2386. int ret;
  2387. if (obj->madv != I915_MADV_WILLNEED) {
  2388. DRM_ERROR("Attempting to bind a purgeable object\n");
  2389. return -EINVAL;
  2390. }
  2391. fence_size = i915_gem_get_gtt_size(dev,
  2392. obj->base.size,
  2393. obj->tiling_mode);
  2394. fence_alignment = i915_gem_get_gtt_alignment(dev,
  2395. obj->base.size,
  2396. obj->tiling_mode);
  2397. unfenced_alignment =
  2398. i915_gem_get_unfenced_gtt_alignment(dev,
  2399. obj->base.size,
  2400. obj->tiling_mode);
  2401. if (alignment == 0)
  2402. alignment = map_and_fenceable ? fence_alignment :
  2403. unfenced_alignment;
  2404. if (map_and_fenceable && alignment & (fence_alignment - 1)) {
  2405. DRM_ERROR("Invalid object alignment requested %u\n", alignment);
  2406. return -EINVAL;
  2407. }
  2408. size = map_and_fenceable ? fence_size : obj->base.size;
  2409. /* If the object is bigger than the entire aperture, reject it early
  2410. * before evicting everything in a vain attempt to find space.
  2411. */
  2412. if (obj->base.size >
  2413. (map_and_fenceable ? dev_priv->mm.gtt_mappable_end : dev_priv->mm.gtt_total)) {
  2414. DRM_ERROR("Attempting to bind an object larger than the aperture\n");
  2415. return -E2BIG;
  2416. }
  2417. ret = i915_gem_object_get_pages(obj);
  2418. if (ret)
  2419. return ret;
  2420. search_free:
  2421. if (map_and_fenceable)
  2422. free_space =
  2423. drm_mm_search_free_in_range_color(&dev_priv->mm.gtt_space,
  2424. size, alignment, obj->cache_level,
  2425. 0, dev_priv->mm.gtt_mappable_end,
  2426. false);
  2427. else
  2428. free_space = drm_mm_search_free_color(&dev_priv->mm.gtt_space,
  2429. size, alignment, obj->cache_level,
  2430. false);
  2431. if (free_space != NULL) {
  2432. if (map_and_fenceable)
  2433. obj->gtt_space =
  2434. drm_mm_get_block_range_generic(free_space,
  2435. size, alignment, obj->cache_level,
  2436. 0, dev_priv->mm.gtt_mappable_end,
  2437. false);
  2438. else
  2439. obj->gtt_space =
  2440. drm_mm_get_block_generic(free_space,
  2441. size, alignment, obj->cache_level,
  2442. false);
  2443. }
  2444. if (obj->gtt_space == NULL) {
  2445. ret = i915_gem_evict_something(dev, size, alignment,
  2446. obj->cache_level,
  2447. map_and_fenceable,
  2448. nonblocking);
  2449. if (ret)
  2450. return ret;
  2451. goto search_free;
  2452. }
  2453. if (WARN_ON(!i915_gem_valid_gtt_space(dev,
  2454. obj->gtt_space,
  2455. obj->cache_level))) {
  2456. drm_mm_put_block(obj->gtt_space);
  2457. obj->gtt_space = NULL;
  2458. return -EINVAL;
  2459. }
  2460. ret = i915_gem_gtt_prepare_object(obj);
  2461. if (ret) {
  2462. drm_mm_put_block(obj->gtt_space);
  2463. obj->gtt_space = NULL;
  2464. return ret;
  2465. }
  2466. if (!dev_priv->mm.aliasing_ppgtt)
  2467. i915_gem_gtt_bind_object(obj, obj->cache_level);
  2468. list_move_tail(&obj->gtt_list, &dev_priv->mm.bound_list);
  2469. list_add_tail(&obj->mm_list, &dev_priv->mm.inactive_list);
  2470. obj->gtt_offset = obj->gtt_space->start;
  2471. fenceable =
  2472. obj->gtt_space->size == fence_size &&
  2473. (obj->gtt_space->start & (fence_alignment - 1)) == 0;
  2474. mappable =
  2475. obj->gtt_offset + obj->base.size <= dev_priv->mm.gtt_mappable_end;
  2476. obj->map_and_fenceable = mappable && fenceable;
  2477. trace_i915_gem_object_bind(obj, map_and_fenceable);
  2478. i915_gem_verify_gtt(dev);
  2479. return 0;
  2480. }
  2481. void
  2482. i915_gem_clflush_object(struct drm_i915_gem_object *obj)
  2483. {
  2484. /* If we don't have a page list set up, then we're not pinned
  2485. * to GPU, and we can ignore the cache flush because it'll happen
  2486. * again at bind time.
  2487. */
  2488. if (obj->pages == NULL)
  2489. return;
  2490. /* If the GPU is snooping the contents of the CPU cache,
  2491. * we do not need to manually clear the CPU cache lines. However,
  2492. * the caches are only snooped when the render cache is
  2493. * flushed/invalidated. As we always have to emit invalidations
  2494. * and flushes when moving into and out of the RENDER domain, correct
  2495. * snooping behaviour occurs naturally as the result of our domain
  2496. * tracking.
  2497. */
  2498. if (obj->cache_level != I915_CACHE_NONE)
  2499. return;
  2500. trace_i915_gem_object_clflush(obj);
  2501. drm_clflush_sg(obj->pages);
  2502. }
  2503. /** Flushes the GTT write domain for the object if it's dirty. */
  2504. static void
  2505. i915_gem_object_flush_gtt_write_domain(struct drm_i915_gem_object *obj)
  2506. {
  2507. uint32_t old_write_domain;
  2508. if (obj->base.write_domain != I915_GEM_DOMAIN_GTT)
  2509. return;
  2510. /* No actual flushing is required for the GTT write domain. Writes
  2511. * to it immediately go to main memory as far as we know, so there's
  2512. * no chipset flush. It also doesn't land in render cache.
  2513. *
  2514. * However, we do have to enforce the order so that all writes through
  2515. * the GTT land before any writes to the device, such as updates to
  2516. * the GATT itself.
  2517. */
  2518. wmb();
  2519. old_write_domain = obj->base.write_domain;
  2520. obj->base.write_domain = 0;
  2521. trace_i915_gem_object_change_domain(obj,
  2522. obj->base.read_domains,
  2523. old_write_domain);
  2524. }
  2525. /** Flushes the CPU write domain for the object if it's dirty. */
  2526. static void
  2527. i915_gem_object_flush_cpu_write_domain(struct drm_i915_gem_object *obj)
  2528. {
  2529. uint32_t old_write_domain;
  2530. if (obj->base.write_domain != I915_GEM_DOMAIN_CPU)
  2531. return;
  2532. i915_gem_clflush_object(obj);
  2533. intel_gtt_chipset_flush();
  2534. old_write_domain = obj->base.write_domain;
  2535. obj->base.write_domain = 0;
  2536. trace_i915_gem_object_change_domain(obj,
  2537. obj->base.read_domains,
  2538. old_write_domain);
  2539. }
  2540. /**
  2541. * Moves a single object to the GTT read, and possibly write domain.
  2542. *
  2543. * This function returns when the move is complete, including waiting on
  2544. * flushes to occur.
  2545. */
  2546. int
  2547. i915_gem_object_set_to_gtt_domain(struct drm_i915_gem_object *obj, bool write)
  2548. {
  2549. drm_i915_private_t *dev_priv = obj->base.dev->dev_private;
  2550. uint32_t old_write_domain, old_read_domains;
  2551. int ret;
  2552. /* Not valid to be called on unbound objects. */
  2553. if (obj->gtt_space == NULL)
  2554. return -EINVAL;
  2555. if (obj->base.write_domain == I915_GEM_DOMAIN_GTT)
  2556. return 0;
  2557. ret = i915_gem_object_wait_rendering(obj, !write);
  2558. if (ret)
  2559. return ret;
  2560. i915_gem_object_flush_cpu_write_domain(obj);
  2561. old_write_domain = obj->base.write_domain;
  2562. old_read_domains = obj->base.read_domains;
  2563. /* It should now be out of any other write domains, and we can update
  2564. * the domain values for our changes.
  2565. */
  2566. BUG_ON((obj->base.write_domain & ~I915_GEM_DOMAIN_GTT) != 0);
  2567. obj->base.read_domains |= I915_GEM_DOMAIN_GTT;
  2568. if (write) {
  2569. obj->base.read_domains = I915_GEM_DOMAIN_GTT;
  2570. obj->base.write_domain = I915_GEM_DOMAIN_GTT;
  2571. obj->dirty = 1;
  2572. }
  2573. trace_i915_gem_object_change_domain(obj,
  2574. old_read_domains,
  2575. old_write_domain);
  2576. /* And bump the LRU for this access */
  2577. if (i915_gem_object_is_inactive(obj))
  2578. list_move_tail(&obj->mm_list, &dev_priv->mm.inactive_list);
  2579. return 0;
  2580. }
  2581. int i915_gem_object_set_cache_level(struct drm_i915_gem_object *obj,
  2582. enum i915_cache_level cache_level)
  2583. {
  2584. struct drm_device *dev = obj->base.dev;
  2585. drm_i915_private_t *dev_priv = dev->dev_private;
  2586. int ret;
  2587. if (obj->cache_level == cache_level)
  2588. return 0;
  2589. if (obj->pin_count) {
  2590. DRM_DEBUG("can not change the cache level of pinned objects\n");
  2591. return -EBUSY;
  2592. }
  2593. if (!i915_gem_valid_gtt_space(dev, obj->gtt_space, cache_level)) {
  2594. ret = i915_gem_object_unbind(obj);
  2595. if (ret)
  2596. return ret;
  2597. }
  2598. if (obj->gtt_space) {
  2599. ret = i915_gem_object_finish_gpu(obj);
  2600. if (ret)
  2601. return ret;
  2602. i915_gem_object_finish_gtt(obj);
  2603. /* Before SandyBridge, you could not use tiling or fence
  2604. * registers with snooped memory, so relinquish any fences
  2605. * currently pointing to our region in the aperture.
  2606. */
  2607. if (INTEL_INFO(dev)->gen < 6) {
  2608. ret = i915_gem_object_put_fence(obj);
  2609. if (ret)
  2610. return ret;
  2611. }
  2612. if (obj->has_global_gtt_mapping)
  2613. i915_gem_gtt_bind_object(obj, cache_level);
  2614. if (obj->has_aliasing_ppgtt_mapping)
  2615. i915_ppgtt_bind_object(dev_priv->mm.aliasing_ppgtt,
  2616. obj, cache_level);
  2617. obj->gtt_space->color = cache_level;
  2618. }
  2619. if (cache_level == I915_CACHE_NONE) {
  2620. u32 old_read_domains, old_write_domain;
  2621. /* If we're coming from LLC cached, then we haven't
  2622. * actually been tracking whether the data is in the
  2623. * CPU cache or not, since we only allow one bit set
  2624. * in obj->write_domain and have been skipping the clflushes.
  2625. * Just set it to the CPU cache for now.
  2626. */
  2627. WARN_ON(obj->base.write_domain & ~I915_GEM_DOMAIN_CPU);
  2628. WARN_ON(obj->base.read_domains & ~I915_GEM_DOMAIN_CPU);
  2629. old_read_domains = obj->base.read_domains;
  2630. old_write_domain = obj->base.write_domain;
  2631. obj->base.read_domains = I915_GEM_DOMAIN_CPU;
  2632. obj->base.write_domain = I915_GEM_DOMAIN_CPU;
  2633. trace_i915_gem_object_change_domain(obj,
  2634. old_read_domains,
  2635. old_write_domain);
  2636. }
  2637. obj->cache_level = cache_level;
  2638. i915_gem_verify_gtt(dev);
  2639. return 0;
  2640. }
  2641. int i915_gem_get_caching_ioctl(struct drm_device *dev, void *data,
  2642. struct drm_file *file)
  2643. {
  2644. struct drm_i915_gem_caching *args = data;
  2645. struct drm_i915_gem_object *obj;
  2646. int ret;
  2647. ret = i915_mutex_lock_interruptible(dev);
  2648. if (ret)
  2649. return ret;
  2650. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  2651. if (&obj->base == NULL) {
  2652. ret = -ENOENT;
  2653. goto unlock;
  2654. }
  2655. args->caching = obj->cache_level != I915_CACHE_NONE;
  2656. drm_gem_object_unreference(&obj->base);
  2657. unlock:
  2658. mutex_unlock(&dev->struct_mutex);
  2659. return ret;
  2660. }
  2661. int i915_gem_set_caching_ioctl(struct drm_device *dev, void *data,
  2662. struct drm_file *file)
  2663. {
  2664. struct drm_i915_gem_caching *args = data;
  2665. struct drm_i915_gem_object *obj;
  2666. enum i915_cache_level level;
  2667. int ret;
  2668. switch (args->caching) {
  2669. case I915_CACHING_NONE:
  2670. level = I915_CACHE_NONE;
  2671. break;
  2672. case I915_CACHING_CACHED:
  2673. level = I915_CACHE_LLC;
  2674. break;
  2675. default:
  2676. return -EINVAL;
  2677. }
  2678. ret = i915_mutex_lock_interruptible(dev);
  2679. if (ret)
  2680. return ret;
  2681. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  2682. if (&obj->base == NULL) {
  2683. ret = -ENOENT;
  2684. goto unlock;
  2685. }
  2686. ret = i915_gem_object_set_cache_level(obj, level);
  2687. drm_gem_object_unreference(&obj->base);
  2688. unlock:
  2689. mutex_unlock(&dev->struct_mutex);
  2690. return ret;
  2691. }
  2692. /*
  2693. * Prepare buffer for display plane (scanout, cursors, etc).
  2694. * Can be called from an uninterruptible phase (modesetting) and allows
  2695. * any flushes to be pipelined (for pageflips).
  2696. */
  2697. int
  2698. i915_gem_object_pin_to_display_plane(struct drm_i915_gem_object *obj,
  2699. u32 alignment,
  2700. struct intel_ring_buffer *pipelined)
  2701. {
  2702. u32 old_read_domains, old_write_domain;
  2703. int ret;
  2704. if (pipelined != obj->ring) {
  2705. ret = i915_gem_object_sync(obj, pipelined);
  2706. if (ret)
  2707. return ret;
  2708. }
  2709. /* The display engine is not coherent with the LLC cache on gen6. As
  2710. * a result, we make sure that the pinning that is about to occur is
  2711. * done with uncached PTEs. This is lowest common denominator for all
  2712. * chipsets.
  2713. *
  2714. * However for gen6+, we could do better by using the GFDT bit instead
  2715. * of uncaching, which would allow us to flush all the LLC-cached data
  2716. * with that bit in the PTE to main memory with just one PIPE_CONTROL.
  2717. */
  2718. ret = i915_gem_object_set_cache_level(obj, I915_CACHE_NONE);
  2719. if (ret)
  2720. return ret;
  2721. /* As the user may map the buffer once pinned in the display plane
  2722. * (e.g. libkms for the bootup splash), we have to ensure that we
  2723. * always use map_and_fenceable for all scanout buffers.
  2724. */
  2725. ret = i915_gem_object_pin(obj, alignment, true, false);
  2726. if (ret)
  2727. return ret;
  2728. i915_gem_object_flush_cpu_write_domain(obj);
  2729. old_write_domain = obj->base.write_domain;
  2730. old_read_domains = obj->base.read_domains;
  2731. /* It should now be out of any other write domains, and we can update
  2732. * the domain values for our changes.
  2733. */
  2734. obj->base.write_domain = 0;
  2735. obj->base.read_domains |= I915_GEM_DOMAIN_GTT;
  2736. trace_i915_gem_object_change_domain(obj,
  2737. old_read_domains,
  2738. old_write_domain);
  2739. return 0;
  2740. }
  2741. int
  2742. i915_gem_object_finish_gpu(struct drm_i915_gem_object *obj)
  2743. {
  2744. int ret;
  2745. if ((obj->base.read_domains & I915_GEM_GPU_DOMAINS) == 0)
  2746. return 0;
  2747. ret = i915_gem_object_wait_rendering(obj, false);
  2748. if (ret)
  2749. return ret;
  2750. /* Ensure that we invalidate the GPU's caches and TLBs. */
  2751. obj->base.read_domains &= ~I915_GEM_GPU_DOMAINS;
  2752. return 0;
  2753. }
  2754. /**
  2755. * Moves a single object to the CPU read, and possibly write domain.
  2756. *
  2757. * This function returns when the move is complete, including waiting on
  2758. * flushes to occur.
  2759. */
  2760. int
  2761. i915_gem_object_set_to_cpu_domain(struct drm_i915_gem_object *obj, bool write)
  2762. {
  2763. uint32_t old_write_domain, old_read_domains;
  2764. int ret;
  2765. if (obj->base.write_domain == I915_GEM_DOMAIN_CPU)
  2766. return 0;
  2767. ret = i915_gem_object_wait_rendering(obj, !write);
  2768. if (ret)
  2769. return ret;
  2770. i915_gem_object_flush_gtt_write_domain(obj);
  2771. old_write_domain = obj->base.write_domain;
  2772. old_read_domains = obj->base.read_domains;
  2773. /* Flush the CPU cache if it's still invalid. */
  2774. if ((obj->base.read_domains & I915_GEM_DOMAIN_CPU) == 0) {
  2775. i915_gem_clflush_object(obj);
  2776. obj->base.read_domains |= I915_GEM_DOMAIN_CPU;
  2777. }
  2778. /* It should now be out of any other write domains, and we can update
  2779. * the domain values for our changes.
  2780. */
  2781. BUG_ON((obj->base.write_domain & ~I915_GEM_DOMAIN_CPU) != 0);
  2782. /* If we're writing through the CPU, then the GPU read domains will
  2783. * need to be invalidated at next use.
  2784. */
  2785. if (write) {
  2786. obj->base.read_domains = I915_GEM_DOMAIN_CPU;
  2787. obj->base.write_domain = I915_GEM_DOMAIN_CPU;
  2788. }
  2789. trace_i915_gem_object_change_domain(obj,
  2790. old_read_domains,
  2791. old_write_domain);
  2792. return 0;
  2793. }
  2794. /* Throttle our rendering by waiting until the ring has completed our requests
  2795. * emitted over 20 msec ago.
  2796. *
  2797. * Note that if we were to use the current jiffies each time around the loop,
  2798. * we wouldn't escape the function with any frames outstanding if the time to
  2799. * render a frame was over 20ms.
  2800. *
  2801. * This should get us reasonable parallelism between CPU and GPU but also
  2802. * relatively low latency when blocking on a particular request to finish.
  2803. */
  2804. static int
  2805. i915_gem_ring_throttle(struct drm_device *dev, struct drm_file *file)
  2806. {
  2807. struct drm_i915_private *dev_priv = dev->dev_private;
  2808. struct drm_i915_file_private *file_priv = file->driver_priv;
  2809. unsigned long recent_enough = jiffies - msecs_to_jiffies(20);
  2810. struct drm_i915_gem_request *request;
  2811. struct intel_ring_buffer *ring = NULL;
  2812. u32 seqno = 0;
  2813. int ret;
  2814. if (atomic_read(&dev_priv->mm.wedged))
  2815. return -EIO;
  2816. spin_lock(&file_priv->mm.lock);
  2817. list_for_each_entry(request, &file_priv->mm.request_list, client_list) {
  2818. if (time_after_eq(request->emitted_jiffies, recent_enough))
  2819. break;
  2820. ring = request->ring;
  2821. seqno = request->seqno;
  2822. }
  2823. spin_unlock(&file_priv->mm.lock);
  2824. if (seqno == 0)
  2825. return 0;
  2826. ret = __wait_seqno(ring, seqno, true, NULL);
  2827. if (ret == 0)
  2828. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, 0);
  2829. return ret;
  2830. }
  2831. int
  2832. i915_gem_object_pin(struct drm_i915_gem_object *obj,
  2833. uint32_t alignment,
  2834. bool map_and_fenceable,
  2835. bool nonblocking)
  2836. {
  2837. int ret;
  2838. if (WARN_ON(obj->pin_count == DRM_I915_GEM_OBJECT_MAX_PIN_COUNT))
  2839. return -EBUSY;
  2840. if (obj->gtt_space != NULL) {
  2841. if ((alignment && obj->gtt_offset & (alignment - 1)) ||
  2842. (map_and_fenceable && !obj->map_and_fenceable)) {
  2843. WARN(obj->pin_count,
  2844. "bo is already pinned with incorrect alignment:"
  2845. " offset=%x, req.alignment=%x, req.map_and_fenceable=%d,"
  2846. " obj->map_and_fenceable=%d\n",
  2847. obj->gtt_offset, alignment,
  2848. map_and_fenceable,
  2849. obj->map_and_fenceable);
  2850. ret = i915_gem_object_unbind(obj);
  2851. if (ret)
  2852. return ret;
  2853. }
  2854. }
  2855. if (obj->gtt_space == NULL) {
  2856. ret = i915_gem_object_bind_to_gtt(obj, alignment,
  2857. map_and_fenceable,
  2858. nonblocking);
  2859. if (ret)
  2860. return ret;
  2861. }
  2862. if (!obj->has_global_gtt_mapping && map_and_fenceable)
  2863. i915_gem_gtt_bind_object(obj, obj->cache_level);
  2864. obj->pin_count++;
  2865. obj->pin_mappable |= map_and_fenceable;
  2866. return 0;
  2867. }
  2868. void
  2869. i915_gem_object_unpin(struct drm_i915_gem_object *obj)
  2870. {
  2871. BUG_ON(obj->pin_count == 0);
  2872. BUG_ON(obj->gtt_space == NULL);
  2873. if (--obj->pin_count == 0)
  2874. obj->pin_mappable = false;
  2875. }
  2876. int
  2877. i915_gem_pin_ioctl(struct drm_device *dev, void *data,
  2878. struct drm_file *file)
  2879. {
  2880. struct drm_i915_gem_pin *args = data;
  2881. struct drm_i915_gem_object *obj;
  2882. int ret;
  2883. ret = i915_mutex_lock_interruptible(dev);
  2884. if (ret)
  2885. return ret;
  2886. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  2887. if (&obj->base == NULL) {
  2888. ret = -ENOENT;
  2889. goto unlock;
  2890. }
  2891. if (obj->madv != I915_MADV_WILLNEED) {
  2892. DRM_ERROR("Attempting to pin a purgeable buffer\n");
  2893. ret = -EINVAL;
  2894. goto out;
  2895. }
  2896. if (obj->pin_filp != NULL && obj->pin_filp != file) {
  2897. DRM_ERROR("Already pinned in i915_gem_pin_ioctl(): %d\n",
  2898. args->handle);
  2899. ret = -EINVAL;
  2900. goto out;
  2901. }
  2902. obj->user_pin_count++;
  2903. obj->pin_filp = file;
  2904. if (obj->user_pin_count == 1) {
  2905. ret = i915_gem_object_pin(obj, args->alignment, true, false);
  2906. if (ret)
  2907. goto out;
  2908. }
  2909. /* XXX - flush the CPU caches for pinned objects
  2910. * as the X server doesn't manage domains yet
  2911. */
  2912. i915_gem_object_flush_cpu_write_domain(obj);
  2913. args->offset = obj->gtt_offset;
  2914. out:
  2915. drm_gem_object_unreference(&obj->base);
  2916. unlock:
  2917. mutex_unlock(&dev->struct_mutex);
  2918. return ret;
  2919. }
  2920. int
  2921. i915_gem_unpin_ioctl(struct drm_device *dev, void *data,
  2922. struct drm_file *file)
  2923. {
  2924. struct drm_i915_gem_pin *args = data;
  2925. struct drm_i915_gem_object *obj;
  2926. int ret;
  2927. ret = i915_mutex_lock_interruptible(dev);
  2928. if (ret)
  2929. return ret;
  2930. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  2931. if (&obj->base == NULL) {
  2932. ret = -ENOENT;
  2933. goto unlock;
  2934. }
  2935. if (obj->pin_filp != file) {
  2936. DRM_ERROR("Not pinned by caller in i915_gem_pin_ioctl(): %d\n",
  2937. args->handle);
  2938. ret = -EINVAL;
  2939. goto out;
  2940. }
  2941. obj->user_pin_count--;
  2942. if (obj->user_pin_count == 0) {
  2943. obj->pin_filp = NULL;
  2944. i915_gem_object_unpin(obj);
  2945. }
  2946. out:
  2947. drm_gem_object_unreference(&obj->base);
  2948. unlock:
  2949. mutex_unlock(&dev->struct_mutex);
  2950. return ret;
  2951. }
  2952. int
  2953. i915_gem_busy_ioctl(struct drm_device *dev, void *data,
  2954. struct drm_file *file)
  2955. {
  2956. struct drm_i915_gem_busy *args = data;
  2957. struct drm_i915_gem_object *obj;
  2958. int ret;
  2959. ret = i915_mutex_lock_interruptible(dev);
  2960. if (ret)
  2961. return ret;
  2962. obj = to_intel_bo(drm_gem_object_lookup(dev, file, args->handle));
  2963. if (&obj->base == NULL) {
  2964. ret = -ENOENT;
  2965. goto unlock;
  2966. }
  2967. /* Count all active objects as busy, even if they are currently not used
  2968. * by the gpu. Users of this interface expect objects to eventually
  2969. * become non-busy without any further actions, therefore emit any
  2970. * necessary flushes here.
  2971. */
  2972. ret = i915_gem_object_flush_active(obj);
  2973. args->busy = obj->active;
  2974. if (obj->ring) {
  2975. BUILD_BUG_ON(I915_NUM_RINGS > 16);
  2976. args->busy |= intel_ring_flag(obj->ring) << 16;
  2977. }
  2978. drm_gem_object_unreference(&obj->base);
  2979. unlock:
  2980. mutex_unlock(&dev->struct_mutex);
  2981. return ret;
  2982. }
  2983. int
  2984. i915_gem_throttle_ioctl(struct drm_device *dev, void *data,
  2985. struct drm_file *file_priv)
  2986. {
  2987. return i915_gem_ring_throttle(dev, file_priv);
  2988. }
  2989. int
  2990. i915_gem_madvise_ioctl(struct drm_device *dev, void *data,
  2991. struct drm_file *file_priv)
  2992. {
  2993. struct drm_i915_gem_madvise *args = data;
  2994. struct drm_i915_gem_object *obj;
  2995. int ret;
  2996. switch (args->madv) {
  2997. case I915_MADV_DONTNEED:
  2998. case I915_MADV_WILLNEED:
  2999. break;
  3000. default:
  3001. return -EINVAL;
  3002. }
  3003. ret = i915_mutex_lock_interruptible(dev);
  3004. if (ret)
  3005. return ret;
  3006. obj = to_intel_bo(drm_gem_object_lookup(dev, file_priv, args->handle));
  3007. if (&obj->base == NULL) {
  3008. ret = -ENOENT;
  3009. goto unlock;
  3010. }
  3011. if (obj->pin_count) {
  3012. ret = -EINVAL;
  3013. goto out;
  3014. }
  3015. if (obj->madv != __I915_MADV_PURGED)
  3016. obj->madv = args->madv;
  3017. /* if the object is no longer attached, discard its backing storage */
  3018. if (i915_gem_object_is_purgeable(obj) && obj->pages == NULL)
  3019. i915_gem_object_truncate(obj);
  3020. args->retained = obj->madv != __I915_MADV_PURGED;
  3021. out:
  3022. drm_gem_object_unreference(&obj->base);
  3023. unlock:
  3024. mutex_unlock(&dev->struct_mutex);
  3025. return ret;
  3026. }
  3027. void i915_gem_object_init(struct drm_i915_gem_object *obj,
  3028. const struct drm_i915_gem_object_ops *ops)
  3029. {
  3030. INIT_LIST_HEAD(&obj->mm_list);
  3031. INIT_LIST_HEAD(&obj->gtt_list);
  3032. INIT_LIST_HEAD(&obj->ring_list);
  3033. INIT_LIST_HEAD(&obj->exec_list);
  3034. obj->ops = ops;
  3035. obj->fence_reg = I915_FENCE_REG_NONE;
  3036. obj->madv = I915_MADV_WILLNEED;
  3037. /* Avoid an unnecessary call to unbind on the first bind. */
  3038. obj->map_and_fenceable = true;
  3039. i915_gem_info_add_obj(obj->base.dev->dev_private, obj->base.size);
  3040. }
  3041. static const struct drm_i915_gem_object_ops i915_gem_object_ops = {
  3042. .get_pages = i915_gem_object_get_pages_gtt,
  3043. .put_pages = i915_gem_object_put_pages_gtt,
  3044. };
  3045. struct drm_i915_gem_object *i915_gem_alloc_object(struct drm_device *dev,
  3046. size_t size)
  3047. {
  3048. struct drm_i915_gem_object *obj;
  3049. struct address_space *mapping;
  3050. u32 mask;
  3051. obj = kzalloc(sizeof(*obj), GFP_KERNEL);
  3052. if (obj == NULL)
  3053. return NULL;
  3054. if (drm_gem_object_init(dev, &obj->base, size) != 0) {
  3055. kfree(obj);
  3056. return NULL;
  3057. }
  3058. mask = GFP_HIGHUSER | __GFP_RECLAIMABLE;
  3059. if (IS_CRESTLINE(dev) || IS_BROADWATER(dev)) {
  3060. /* 965gm cannot relocate objects above 4GiB. */
  3061. mask &= ~__GFP_HIGHMEM;
  3062. mask |= __GFP_DMA32;
  3063. }
  3064. mapping = obj->base.filp->f_path.dentry->d_inode->i_mapping;
  3065. mapping_set_gfp_mask(mapping, mask);
  3066. i915_gem_object_init(obj, &i915_gem_object_ops);
  3067. obj->base.write_domain = I915_GEM_DOMAIN_CPU;
  3068. obj->base.read_domains = I915_GEM_DOMAIN_CPU;
  3069. if (HAS_LLC(dev)) {
  3070. /* On some devices, we can have the GPU use the LLC (the CPU
  3071. * cache) for about a 10% performance improvement
  3072. * compared to uncached. Graphics requests other than
  3073. * display scanout are coherent with the CPU in
  3074. * accessing this cache. This means in this mode we
  3075. * don't need to clflush on the CPU side, and on the
  3076. * GPU side we only need to flush internal caches to
  3077. * get data visible to the CPU.
  3078. *
  3079. * However, we maintain the display planes as UC, and so
  3080. * need to rebind when first used as such.
  3081. */
  3082. obj->cache_level = I915_CACHE_LLC;
  3083. } else
  3084. obj->cache_level = I915_CACHE_NONE;
  3085. return obj;
  3086. }
  3087. int i915_gem_init_object(struct drm_gem_object *obj)
  3088. {
  3089. BUG();
  3090. return 0;
  3091. }
  3092. void i915_gem_free_object(struct drm_gem_object *gem_obj)
  3093. {
  3094. struct drm_i915_gem_object *obj = to_intel_bo(gem_obj);
  3095. struct drm_device *dev = obj->base.dev;
  3096. drm_i915_private_t *dev_priv = dev->dev_private;
  3097. trace_i915_gem_object_destroy(obj);
  3098. if (obj->phys_obj)
  3099. i915_gem_detach_phys_object(dev, obj);
  3100. obj->pin_count = 0;
  3101. if (WARN_ON(i915_gem_object_unbind(obj) == -ERESTARTSYS)) {
  3102. bool was_interruptible;
  3103. was_interruptible = dev_priv->mm.interruptible;
  3104. dev_priv->mm.interruptible = false;
  3105. WARN_ON(i915_gem_object_unbind(obj));
  3106. dev_priv->mm.interruptible = was_interruptible;
  3107. }
  3108. obj->pages_pin_count = 0;
  3109. i915_gem_object_put_pages(obj);
  3110. i915_gem_object_free_mmap_offset(obj);
  3111. BUG_ON(obj->pages);
  3112. if (obj->base.import_attach)
  3113. drm_prime_gem_destroy(&obj->base, NULL);
  3114. drm_gem_object_release(&obj->base);
  3115. i915_gem_info_remove_obj(dev_priv, obj->base.size);
  3116. kfree(obj->bit_17);
  3117. kfree(obj);
  3118. }
  3119. int
  3120. i915_gem_idle(struct drm_device *dev)
  3121. {
  3122. drm_i915_private_t *dev_priv = dev->dev_private;
  3123. int ret;
  3124. mutex_lock(&dev->struct_mutex);
  3125. if (dev_priv->mm.suspended) {
  3126. mutex_unlock(&dev->struct_mutex);
  3127. return 0;
  3128. }
  3129. ret = i915_gpu_idle(dev);
  3130. if (ret) {
  3131. mutex_unlock(&dev->struct_mutex);
  3132. return ret;
  3133. }
  3134. i915_gem_retire_requests(dev);
  3135. /* Under UMS, be paranoid and evict. */
  3136. if (!drm_core_check_feature(dev, DRIVER_MODESET))
  3137. i915_gem_evict_everything(dev);
  3138. i915_gem_reset_fences(dev);
  3139. /* Hack! Don't let anybody do execbuf while we don't control the chip.
  3140. * We need to replace this with a semaphore, or something.
  3141. * And not confound mm.suspended!
  3142. */
  3143. dev_priv->mm.suspended = 1;
  3144. del_timer_sync(&dev_priv->hangcheck_timer);
  3145. i915_kernel_lost_context(dev);
  3146. i915_gem_cleanup_ringbuffer(dev);
  3147. mutex_unlock(&dev->struct_mutex);
  3148. /* Cancel the retire work handler, which should be idle now. */
  3149. cancel_delayed_work_sync(&dev_priv->mm.retire_work);
  3150. return 0;
  3151. }
  3152. void i915_gem_l3_remap(struct drm_device *dev)
  3153. {
  3154. drm_i915_private_t *dev_priv = dev->dev_private;
  3155. u32 misccpctl;
  3156. int i;
  3157. if (!IS_IVYBRIDGE(dev))
  3158. return;
  3159. if (!dev_priv->mm.l3_remap_info)
  3160. return;
  3161. misccpctl = I915_READ(GEN7_MISCCPCTL);
  3162. I915_WRITE(GEN7_MISCCPCTL, misccpctl & ~GEN7_DOP_CLOCK_GATE_ENABLE);
  3163. POSTING_READ(GEN7_MISCCPCTL);
  3164. for (i = 0; i < GEN7_L3LOG_SIZE; i += 4) {
  3165. u32 remap = I915_READ(GEN7_L3LOG_BASE + i);
  3166. if (remap && remap != dev_priv->mm.l3_remap_info[i/4])
  3167. DRM_DEBUG("0x%x was already programmed to %x\n",
  3168. GEN7_L3LOG_BASE + i, remap);
  3169. if (remap && !dev_priv->mm.l3_remap_info[i/4])
  3170. DRM_DEBUG_DRIVER("Clearing remapped register\n");
  3171. I915_WRITE(GEN7_L3LOG_BASE + i, dev_priv->mm.l3_remap_info[i/4]);
  3172. }
  3173. /* Make sure all the writes land before disabling dop clock gating */
  3174. POSTING_READ(GEN7_L3LOG_BASE);
  3175. I915_WRITE(GEN7_MISCCPCTL, misccpctl);
  3176. }
  3177. void i915_gem_init_swizzling(struct drm_device *dev)
  3178. {
  3179. drm_i915_private_t *dev_priv = dev->dev_private;
  3180. if (INTEL_INFO(dev)->gen < 5 ||
  3181. dev_priv->mm.bit_6_swizzle_x == I915_BIT_6_SWIZZLE_NONE)
  3182. return;
  3183. I915_WRITE(DISP_ARB_CTL, I915_READ(DISP_ARB_CTL) |
  3184. DISP_TILE_SURFACE_SWIZZLING);
  3185. if (IS_GEN5(dev))
  3186. return;
  3187. I915_WRITE(TILECTL, I915_READ(TILECTL) | TILECTL_SWZCTL);
  3188. if (IS_GEN6(dev))
  3189. I915_WRITE(ARB_MODE, _MASKED_BIT_ENABLE(ARB_MODE_SWIZZLE_SNB));
  3190. else
  3191. I915_WRITE(ARB_MODE, _MASKED_BIT_ENABLE(ARB_MODE_SWIZZLE_IVB));
  3192. }
  3193. void i915_gem_init_ppgtt(struct drm_device *dev)
  3194. {
  3195. drm_i915_private_t *dev_priv = dev->dev_private;
  3196. uint32_t pd_offset;
  3197. struct intel_ring_buffer *ring;
  3198. struct i915_hw_ppgtt *ppgtt = dev_priv->mm.aliasing_ppgtt;
  3199. uint32_t __iomem *pd_addr;
  3200. uint32_t pd_entry;
  3201. int i;
  3202. if (!dev_priv->mm.aliasing_ppgtt)
  3203. return;
  3204. pd_addr = dev_priv->mm.gtt->gtt + ppgtt->pd_offset/sizeof(uint32_t);
  3205. for (i = 0; i < ppgtt->num_pd_entries; i++) {
  3206. dma_addr_t pt_addr;
  3207. if (dev_priv->mm.gtt->needs_dmar)
  3208. pt_addr = ppgtt->pt_dma_addr[i];
  3209. else
  3210. pt_addr = page_to_phys(ppgtt->pt_pages[i]);
  3211. pd_entry = GEN6_PDE_ADDR_ENCODE(pt_addr);
  3212. pd_entry |= GEN6_PDE_VALID;
  3213. writel(pd_entry, pd_addr + i);
  3214. }
  3215. readl(pd_addr);
  3216. pd_offset = ppgtt->pd_offset;
  3217. pd_offset /= 64; /* in cachelines, */
  3218. pd_offset <<= 16;
  3219. if (INTEL_INFO(dev)->gen == 6) {
  3220. uint32_t ecochk, gab_ctl, ecobits;
  3221. ecobits = I915_READ(GAC_ECO_BITS);
  3222. I915_WRITE(GAC_ECO_BITS, ecobits | ECOBITS_PPGTT_CACHE64B);
  3223. gab_ctl = I915_READ(GAB_CTL);
  3224. I915_WRITE(GAB_CTL, gab_ctl | GAB_CTL_CONT_AFTER_PAGEFAULT);
  3225. ecochk = I915_READ(GAM_ECOCHK);
  3226. I915_WRITE(GAM_ECOCHK, ecochk | ECOCHK_SNB_BIT |
  3227. ECOCHK_PPGTT_CACHE64B);
  3228. I915_WRITE(GFX_MODE, _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE));
  3229. } else if (INTEL_INFO(dev)->gen >= 7) {
  3230. I915_WRITE(GAM_ECOCHK, ECOCHK_PPGTT_CACHE64B);
  3231. /* GFX_MODE is per-ring on gen7+ */
  3232. }
  3233. for_each_ring(ring, dev_priv, i) {
  3234. if (INTEL_INFO(dev)->gen >= 7)
  3235. I915_WRITE(RING_MODE_GEN7(ring),
  3236. _MASKED_BIT_ENABLE(GFX_PPGTT_ENABLE));
  3237. I915_WRITE(RING_PP_DIR_DCLV(ring), PP_DIR_DCLV_2G);
  3238. I915_WRITE(RING_PP_DIR_BASE(ring), pd_offset);
  3239. }
  3240. }
  3241. static bool
  3242. intel_enable_blt(struct drm_device *dev)
  3243. {
  3244. if (!HAS_BLT(dev))
  3245. return false;
  3246. /* The blitter was dysfunctional on early prototypes */
  3247. if (IS_GEN6(dev) && dev->pdev->revision < 8) {
  3248. DRM_INFO("BLT not supported on this pre-production hardware;"
  3249. " graphics performance will be degraded.\n");
  3250. return false;
  3251. }
  3252. return true;
  3253. }
  3254. int
  3255. i915_gem_init_hw(struct drm_device *dev)
  3256. {
  3257. drm_i915_private_t *dev_priv = dev->dev_private;
  3258. int ret;
  3259. if (!intel_enable_gtt())
  3260. return -EIO;
  3261. i915_gem_l3_remap(dev);
  3262. i915_gem_init_swizzling(dev);
  3263. ret = intel_init_render_ring_buffer(dev);
  3264. if (ret)
  3265. return ret;
  3266. if (HAS_BSD(dev)) {
  3267. ret = intel_init_bsd_ring_buffer(dev);
  3268. if (ret)
  3269. goto cleanup_render_ring;
  3270. }
  3271. if (intel_enable_blt(dev)) {
  3272. ret = intel_init_blt_ring_buffer(dev);
  3273. if (ret)
  3274. goto cleanup_bsd_ring;
  3275. }
  3276. dev_priv->next_seqno = 1;
  3277. /*
  3278. * XXX: There was some w/a described somewhere suggesting loading
  3279. * contexts before PPGTT.
  3280. */
  3281. i915_gem_context_init(dev);
  3282. i915_gem_init_ppgtt(dev);
  3283. return 0;
  3284. cleanup_bsd_ring:
  3285. intel_cleanup_ring_buffer(&dev_priv->ring[VCS]);
  3286. cleanup_render_ring:
  3287. intel_cleanup_ring_buffer(&dev_priv->ring[RCS]);
  3288. return ret;
  3289. }
  3290. static bool
  3291. intel_enable_ppgtt(struct drm_device *dev)
  3292. {
  3293. if (i915_enable_ppgtt >= 0)
  3294. return i915_enable_ppgtt;
  3295. #ifdef CONFIG_INTEL_IOMMU
  3296. /* Disable ppgtt on SNB if VT-d is on. */
  3297. if (INTEL_INFO(dev)->gen == 6 && intel_iommu_gfx_mapped)
  3298. return false;
  3299. #endif
  3300. return true;
  3301. }
  3302. int i915_gem_init(struct drm_device *dev)
  3303. {
  3304. struct drm_i915_private *dev_priv = dev->dev_private;
  3305. unsigned long gtt_size, mappable_size;
  3306. int ret;
  3307. gtt_size = dev_priv->mm.gtt->gtt_total_entries << PAGE_SHIFT;
  3308. mappable_size = dev_priv->mm.gtt->gtt_mappable_entries << PAGE_SHIFT;
  3309. mutex_lock(&dev->struct_mutex);
  3310. if (intel_enable_ppgtt(dev) && HAS_ALIASING_PPGTT(dev)) {
  3311. /* PPGTT pdes are stolen from global gtt ptes, so shrink the
  3312. * aperture accordingly when using aliasing ppgtt. */
  3313. gtt_size -= I915_PPGTT_PD_ENTRIES*PAGE_SIZE;
  3314. i915_gem_init_global_gtt(dev, 0, mappable_size, gtt_size);
  3315. ret = i915_gem_init_aliasing_ppgtt(dev);
  3316. if (ret) {
  3317. mutex_unlock(&dev->struct_mutex);
  3318. return ret;
  3319. }
  3320. } else {
  3321. /* Let GEM Manage all of the aperture.
  3322. *
  3323. * However, leave one page at the end still bound to the scratch
  3324. * page. There are a number of places where the hardware
  3325. * apparently prefetches past the end of the object, and we've
  3326. * seen multiple hangs with the GPU head pointer stuck in a
  3327. * batchbuffer bound at the last page of the aperture. One page
  3328. * should be enough to keep any prefetching inside of the
  3329. * aperture.
  3330. */
  3331. i915_gem_init_global_gtt(dev, 0, mappable_size,
  3332. gtt_size);
  3333. }
  3334. ret = i915_gem_init_hw(dev);
  3335. mutex_unlock(&dev->struct_mutex);
  3336. if (ret) {
  3337. i915_gem_cleanup_aliasing_ppgtt(dev);
  3338. return ret;
  3339. }
  3340. /* Allow hardware batchbuffers unless told otherwise, but not for KMS. */
  3341. if (!drm_core_check_feature(dev, DRIVER_MODESET))
  3342. dev_priv->dri1.allow_batchbuffer = 1;
  3343. return 0;
  3344. }
  3345. void
  3346. i915_gem_cleanup_ringbuffer(struct drm_device *dev)
  3347. {
  3348. drm_i915_private_t *dev_priv = dev->dev_private;
  3349. struct intel_ring_buffer *ring;
  3350. int i;
  3351. for_each_ring(ring, dev_priv, i)
  3352. intel_cleanup_ring_buffer(ring);
  3353. }
  3354. int
  3355. i915_gem_entervt_ioctl(struct drm_device *dev, void *data,
  3356. struct drm_file *file_priv)
  3357. {
  3358. drm_i915_private_t *dev_priv = dev->dev_private;
  3359. int ret;
  3360. if (drm_core_check_feature(dev, DRIVER_MODESET))
  3361. return 0;
  3362. if (atomic_read(&dev_priv->mm.wedged)) {
  3363. DRM_ERROR("Reenabling wedged hardware, good luck\n");
  3364. atomic_set(&dev_priv->mm.wedged, 0);
  3365. }
  3366. mutex_lock(&dev->struct_mutex);
  3367. dev_priv->mm.suspended = 0;
  3368. ret = i915_gem_init_hw(dev);
  3369. if (ret != 0) {
  3370. mutex_unlock(&dev->struct_mutex);
  3371. return ret;
  3372. }
  3373. BUG_ON(!list_empty(&dev_priv->mm.active_list));
  3374. BUG_ON(!list_empty(&dev_priv->mm.inactive_list));
  3375. mutex_unlock(&dev->struct_mutex);
  3376. ret = drm_irq_install(dev);
  3377. if (ret)
  3378. goto cleanup_ringbuffer;
  3379. return 0;
  3380. cleanup_ringbuffer:
  3381. mutex_lock(&dev->struct_mutex);
  3382. i915_gem_cleanup_ringbuffer(dev);
  3383. dev_priv->mm.suspended = 1;
  3384. mutex_unlock(&dev->struct_mutex);
  3385. return ret;
  3386. }
  3387. int
  3388. i915_gem_leavevt_ioctl(struct drm_device *dev, void *data,
  3389. struct drm_file *file_priv)
  3390. {
  3391. if (drm_core_check_feature(dev, DRIVER_MODESET))
  3392. return 0;
  3393. drm_irq_uninstall(dev);
  3394. return i915_gem_idle(dev);
  3395. }
  3396. void
  3397. i915_gem_lastclose(struct drm_device *dev)
  3398. {
  3399. int ret;
  3400. if (drm_core_check_feature(dev, DRIVER_MODESET))
  3401. return;
  3402. ret = i915_gem_idle(dev);
  3403. if (ret)
  3404. DRM_ERROR("failed to idle hardware: %d\n", ret);
  3405. }
  3406. static void
  3407. init_ring_lists(struct intel_ring_buffer *ring)
  3408. {
  3409. INIT_LIST_HEAD(&ring->active_list);
  3410. INIT_LIST_HEAD(&ring->request_list);
  3411. }
  3412. void
  3413. i915_gem_load(struct drm_device *dev)
  3414. {
  3415. int i;
  3416. drm_i915_private_t *dev_priv = dev->dev_private;
  3417. INIT_LIST_HEAD(&dev_priv->mm.active_list);
  3418. INIT_LIST_HEAD(&dev_priv->mm.inactive_list);
  3419. INIT_LIST_HEAD(&dev_priv->mm.unbound_list);
  3420. INIT_LIST_HEAD(&dev_priv->mm.bound_list);
  3421. INIT_LIST_HEAD(&dev_priv->mm.fence_list);
  3422. for (i = 0; i < I915_NUM_RINGS; i++)
  3423. init_ring_lists(&dev_priv->ring[i]);
  3424. for (i = 0; i < I915_MAX_NUM_FENCES; i++)
  3425. INIT_LIST_HEAD(&dev_priv->fence_regs[i].lru_list);
  3426. INIT_DELAYED_WORK(&dev_priv->mm.retire_work,
  3427. i915_gem_retire_work_handler);
  3428. init_completion(&dev_priv->error_completion);
  3429. /* On GEN3 we really need to make sure the ARB C3 LP bit is set */
  3430. if (IS_GEN3(dev)) {
  3431. I915_WRITE(MI_ARB_STATE,
  3432. _MASKED_BIT_ENABLE(MI_ARB_C3_LP_WRITE_ENABLE));
  3433. }
  3434. dev_priv->relative_constants_mode = I915_EXEC_CONSTANTS_REL_GENERAL;
  3435. /* Old X drivers will take 0-2 for front, back, depth buffers */
  3436. if (!drm_core_check_feature(dev, DRIVER_MODESET))
  3437. dev_priv->fence_reg_start = 3;
  3438. if (INTEL_INFO(dev)->gen >= 4 || IS_I945G(dev) || IS_I945GM(dev) || IS_G33(dev))
  3439. dev_priv->num_fence_regs = 16;
  3440. else
  3441. dev_priv->num_fence_regs = 8;
  3442. /* Initialize fence registers to zero */
  3443. i915_gem_reset_fences(dev);
  3444. i915_gem_detect_bit_6_swizzle(dev);
  3445. init_waitqueue_head(&dev_priv->pending_flip_queue);
  3446. dev_priv->mm.interruptible = true;
  3447. dev_priv->mm.inactive_shrinker.shrink = i915_gem_inactive_shrink;
  3448. dev_priv->mm.inactive_shrinker.seeks = DEFAULT_SEEKS;
  3449. register_shrinker(&dev_priv->mm.inactive_shrinker);
  3450. }
  3451. /*
  3452. * Create a physically contiguous memory object for this object
  3453. * e.g. for cursor + overlay regs
  3454. */
  3455. static int i915_gem_init_phys_object(struct drm_device *dev,
  3456. int id, int size, int align)
  3457. {
  3458. drm_i915_private_t *dev_priv = dev->dev_private;
  3459. struct drm_i915_gem_phys_object *phys_obj;
  3460. int ret;
  3461. if (dev_priv->mm.phys_objs[id - 1] || !size)
  3462. return 0;
  3463. phys_obj = kzalloc(sizeof(struct drm_i915_gem_phys_object), GFP_KERNEL);
  3464. if (!phys_obj)
  3465. return -ENOMEM;
  3466. phys_obj->id = id;
  3467. phys_obj->handle = drm_pci_alloc(dev, size, align);
  3468. if (!phys_obj->handle) {
  3469. ret = -ENOMEM;
  3470. goto kfree_obj;
  3471. }
  3472. #ifdef CONFIG_X86
  3473. set_memory_wc((unsigned long)phys_obj->handle->vaddr, phys_obj->handle->size / PAGE_SIZE);
  3474. #endif
  3475. dev_priv->mm.phys_objs[id - 1] = phys_obj;
  3476. return 0;
  3477. kfree_obj:
  3478. kfree(phys_obj);
  3479. return ret;
  3480. }
  3481. static void i915_gem_free_phys_object(struct drm_device *dev, int id)
  3482. {
  3483. drm_i915_private_t *dev_priv = dev->dev_private;
  3484. struct drm_i915_gem_phys_object *phys_obj;
  3485. if (!dev_priv->mm.phys_objs[id - 1])
  3486. return;
  3487. phys_obj = dev_priv->mm.phys_objs[id - 1];
  3488. if (phys_obj->cur_obj) {
  3489. i915_gem_detach_phys_object(dev, phys_obj->cur_obj);
  3490. }
  3491. #ifdef CONFIG_X86
  3492. set_memory_wb((unsigned long)phys_obj->handle->vaddr, phys_obj->handle->size / PAGE_SIZE);
  3493. #endif
  3494. drm_pci_free(dev, phys_obj->handle);
  3495. kfree(phys_obj);
  3496. dev_priv->mm.phys_objs[id - 1] = NULL;
  3497. }
  3498. void i915_gem_free_all_phys_object(struct drm_device *dev)
  3499. {
  3500. int i;
  3501. for (i = I915_GEM_PHYS_CURSOR_0; i <= I915_MAX_PHYS_OBJECT; i++)
  3502. i915_gem_free_phys_object(dev, i);
  3503. }
  3504. void i915_gem_detach_phys_object(struct drm_device *dev,
  3505. struct drm_i915_gem_object *obj)
  3506. {
  3507. struct address_space *mapping = obj->base.filp->f_path.dentry->d_inode->i_mapping;
  3508. char *vaddr;
  3509. int i;
  3510. int page_count;
  3511. if (!obj->phys_obj)
  3512. return;
  3513. vaddr = obj->phys_obj->handle->vaddr;
  3514. page_count = obj->base.size / PAGE_SIZE;
  3515. for (i = 0; i < page_count; i++) {
  3516. struct page *page = shmem_read_mapping_page(mapping, i);
  3517. if (!IS_ERR(page)) {
  3518. char *dst = kmap_atomic(page);
  3519. memcpy(dst, vaddr + i*PAGE_SIZE, PAGE_SIZE);
  3520. kunmap_atomic(dst);
  3521. drm_clflush_pages(&page, 1);
  3522. set_page_dirty(page);
  3523. mark_page_accessed(page);
  3524. page_cache_release(page);
  3525. }
  3526. }
  3527. intel_gtt_chipset_flush();
  3528. obj->phys_obj->cur_obj = NULL;
  3529. obj->phys_obj = NULL;
  3530. }
  3531. int
  3532. i915_gem_attach_phys_object(struct drm_device *dev,
  3533. struct drm_i915_gem_object *obj,
  3534. int id,
  3535. int align)
  3536. {
  3537. struct address_space *mapping = obj->base.filp->f_path.dentry->d_inode->i_mapping;
  3538. drm_i915_private_t *dev_priv = dev->dev_private;
  3539. int ret = 0;
  3540. int page_count;
  3541. int i;
  3542. if (id > I915_MAX_PHYS_OBJECT)
  3543. return -EINVAL;
  3544. if (obj->phys_obj) {
  3545. if (obj->phys_obj->id == id)
  3546. return 0;
  3547. i915_gem_detach_phys_object(dev, obj);
  3548. }
  3549. /* create a new object */
  3550. if (!dev_priv->mm.phys_objs[id - 1]) {
  3551. ret = i915_gem_init_phys_object(dev, id,
  3552. obj->base.size, align);
  3553. if (ret) {
  3554. DRM_ERROR("failed to init phys object %d size: %zu\n",
  3555. id, obj->base.size);
  3556. return ret;
  3557. }
  3558. }
  3559. /* bind to the object */
  3560. obj->phys_obj = dev_priv->mm.phys_objs[id - 1];
  3561. obj->phys_obj->cur_obj = obj;
  3562. page_count = obj->base.size / PAGE_SIZE;
  3563. for (i = 0; i < page_count; i++) {
  3564. struct page *page;
  3565. char *dst, *src;
  3566. page = shmem_read_mapping_page(mapping, i);
  3567. if (IS_ERR(page))
  3568. return PTR_ERR(page);
  3569. src = kmap_atomic(page);
  3570. dst = obj->phys_obj->handle->vaddr + (i * PAGE_SIZE);
  3571. memcpy(dst, src, PAGE_SIZE);
  3572. kunmap_atomic(src);
  3573. mark_page_accessed(page);
  3574. page_cache_release(page);
  3575. }
  3576. return 0;
  3577. }
  3578. static int
  3579. i915_gem_phys_pwrite(struct drm_device *dev,
  3580. struct drm_i915_gem_object *obj,
  3581. struct drm_i915_gem_pwrite *args,
  3582. struct drm_file *file_priv)
  3583. {
  3584. void *vaddr = obj->phys_obj->handle->vaddr + args->offset;
  3585. char __user *user_data = (char __user *) (uintptr_t) args->data_ptr;
  3586. if (__copy_from_user_inatomic_nocache(vaddr, user_data, args->size)) {
  3587. unsigned long unwritten;
  3588. /* The physical object once assigned is fixed for the lifetime
  3589. * of the obj, so we can safely drop the lock and continue
  3590. * to access vaddr.
  3591. */
  3592. mutex_unlock(&dev->struct_mutex);
  3593. unwritten = copy_from_user(vaddr, user_data, args->size);
  3594. mutex_lock(&dev->struct_mutex);
  3595. if (unwritten)
  3596. return -EFAULT;
  3597. }
  3598. intel_gtt_chipset_flush();
  3599. return 0;
  3600. }
  3601. void i915_gem_release(struct drm_device *dev, struct drm_file *file)
  3602. {
  3603. struct drm_i915_file_private *file_priv = file->driver_priv;
  3604. /* Clean up our request list when the client is going away, so that
  3605. * later retire_requests won't dereference our soon-to-be-gone
  3606. * file_priv.
  3607. */
  3608. spin_lock(&file_priv->mm.lock);
  3609. while (!list_empty(&file_priv->mm.request_list)) {
  3610. struct drm_i915_gem_request *request;
  3611. request = list_first_entry(&file_priv->mm.request_list,
  3612. struct drm_i915_gem_request,
  3613. client_list);
  3614. list_del(&request->client_list);
  3615. request->file_priv = NULL;
  3616. }
  3617. spin_unlock(&file_priv->mm.lock);
  3618. }
  3619. static int
  3620. i915_gem_inactive_shrink(struct shrinker *shrinker, struct shrink_control *sc)
  3621. {
  3622. struct drm_i915_private *dev_priv =
  3623. container_of(shrinker,
  3624. struct drm_i915_private,
  3625. mm.inactive_shrinker);
  3626. struct drm_device *dev = dev_priv->dev;
  3627. struct drm_i915_gem_object *obj;
  3628. int nr_to_scan = sc->nr_to_scan;
  3629. int cnt;
  3630. if (!mutex_trylock(&dev->struct_mutex))
  3631. return 0;
  3632. if (nr_to_scan) {
  3633. nr_to_scan -= i915_gem_purge(dev_priv, nr_to_scan);
  3634. if (nr_to_scan > 0)
  3635. i915_gem_shrink_all(dev_priv);
  3636. }
  3637. cnt = 0;
  3638. list_for_each_entry(obj, &dev_priv->mm.unbound_list, gtt_list)
  3639. if (obj->pages_pin_count == 0)
  3640. cnt += obj->base.size >> PAGE_SHIFT;
  3641. list_for_each_entry(obj, &dev_priv->mm.bound_list, gtt_list)
  3642. if (obj->pin_count == 0 && obj->pages_pin_count == 0)
  3643. cnt += obj->base.size >> PAGE_SHIFT;
  3644. mutex_unlock(&dev->struct_mutex);
  3645. return cnt;
  3646. }