i915_gem.c 134 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 "drmP.h"
  28. #include "drm.h"
  29. #include "i915_drm.h"
  30. #include "i915_drv.h"
  31. #include "i915_trace.h"
  32. #include "intel_drv.h"
  33. #include <linux/slab.h>
  34. #include <linux/swap.h>
  35. #include <linux/pci.h>
  36. #include <linux/intel-gtt.h>
  37. static uint32_t i915_gem_get_gtt_alignment(struct drm_gem_object *obj);
  38. static int i915_gem_object_flush_gpu_write_domain(struct drm_gem_object *obj,
  39. bool pipelined);
  40. static void i915_gem_object_flush_gtt_write_domain(struct drm_gem_object *obj);
  41. static void i915_gem_object_flush_cpu_write_domain(struct drm_gem_object *obj);
  42. static int i915_gem_object_set_to_cpu_domain(struct drm_gem_object *obj,
  43. int write);
  44. static int i915_gem_object_set_cpu_read_domain_range(struct drm_gem_object *obj,
  45. uint64_t offset,
  46. uint64_t size);
  47. static void i915_gem_object_set_to_full_cpu_read_domain(struct drm_gem_object *obj);
  48. static int i915_gem_object_wait_rendering(struct drm_gem_object *obj,
  49. bool interruptible);
  50. static int i915_gem_object_bind_to_gtt(struct drm_gem_object *obj,
  51. unsigned alignment);
  52. static void i915_gem_clear_fence_reg(struct drm_gem_object *obj);
  53. static int i915_gem_phys_pwrite(struct drm_device *dev, struct drm_gem_object *obj,
  54. struct drm_i915_gem_pwrite *args,
  55. struct drm_file *file_priv);
  56. static void i915_gem_free_object_tail(struct drm_gem_object *obj);
  57. static int
  58. i915_gem_object_get_pages(struct drm_gem_object *obj,
  59. gfp_t gfpmask);
  60. static void
  61. i915_gem_object_put_pages(struct drm_gem_object *obj);
  62. static LIST_HEAD(shrink_list);
  63. static DEFINE_SPINLOCK(shrink_list_lock);
  64. /* some bookkeeping */
  65. static void i915_gem_info_add_obj(struct drm_i915_private *dev_priv,
  66. size_t size)
  67. {
  68. dev_priv->mm.object_count++;
  69. dev_priv->mm.object_memory += size;
  70. }
  71. static void i915_gem_info_remove_obj(struct drm_i915_private *dev_priv,
  72. size_t size)
  73. {
  74. dev_priv->mm.object_count--;
  75. dev_priv->mm.object_memory -= size;
  76. }
  77. static void i915_gem_info_add_gtt(struct drm_i915_private *dev_priv,
  78. size_t size)
  79. {
  80. dev_priv->mm.gtt_count++;
  81. dev_priv->mm.gtt_memory += size;
  82. }
  83. static void i915_gem_info_remove_gtt(struct drm_i915_private *dev_priv,
  84. size_t size)
  85. {
  86. dev_priv->mm.gtt_count--;
  87. dev_priv->mm.gtt_memory -= size;
  88. }
  89. static void i915_gem_info_add_pin(struct drm_i915_private *dev_priv,
  90. size_t size)
  91. {
  92. dev_priv->mm.pin_count++;
  93. dev_priv->mm.pin_memory += size;
  94. }
  95. static void i915_gem_info_remove_pin(struct drm_i915_private *dev_priv,
  96. size_t size)
  97. {
  98. dev_priv->mm.pin_count--;
  99. dev_priv->mm.pin_memory -= size;
  100. }
  101. int
  102. i915_gem_check_is_wedged(struct drm_device *dev)
  103. {
  104. struct drm_i915_private *dev_priv = dev->dev_private;
  105. struct completion *x = &dev_priv->error_completion;
  106. unsigned long flags;
  107. int ret;
  108. if (!atomic_read(&dev_priv->mm.wedged))
  109. return 0;
  110. ret = wait_for_completion_interruptible(x);
  111. if (ret)
  112. return ret;
  113. /* Success, we reset the GPU! */
  114. if (!atomic_read(&dev_priv->mm.wedged))
  115. return 0;
  116. /* GPU is hung, bump the completion count to account for
  117. * the token we just consumed so that we never hit zero and
  118. * end up waiting upon a subsequent completion event that
  119. * will never happen.
  120. */
  121. spin_lock_irqsave(&x->wait.lock, flags);
  122. x->done++;
  123. spin_unlock_irqrestore(&x->wait.lock, flags);
  124. return -EIO;
  125. }
  126. static int i915_mutex_lock_interruptible(struct drm_device *dev)
  127. {
  128. struct drm_i915_private *dev_priv = dev->dev_private;
  129. int ret;
  130. ret = i915_gem_check_is_wedged(dev);
  131. if (ret)
  132. return ret;
  133. ret = mutex_lock_interruptible(&dev->struct_mutex);
  134. if (ret)
  135. return ret;
  136. if (atomic_read(&dev_priv->mm.wedged)) {
  137. mutex_unlock(&dev->struct_mutex);
  138. return -EAGAIN;
  139. }
  140. WARN_ON(i915_verify_lists(dev));
  141. return 0;
  142. }
  143. static inline bool
  144. i915_gem_object_is_inactive(struct drm_i915_gem_object *obj_priv)
  145. {
  146. return obj_priv->gtt_space &&
  147. !obj_priv->active &&
  148. obj_priv->pin_count == 0;
  149. }
  150. int i915_gem_do_init(struct drm_device *dev,
  151. unsigned long start,
  152. unsigned long end)
  153. {
  154. drm_i915_private_t *dev_priv = dev->dev_private;
  155. if (start >= end ||
  156. (start & (PAGE_SIZE - 1)) != 0 ||
  157. (end & (PAGE_SIZE - 1)) != 0) {
  158. return -EINVAL;
  159. }
  160. drm_mm_init(&dev_priv->mm.gtt_space, start,
  161. end - start);
  162. dev_priv->mm.gtt_total = end - start;
  163. return 0;
  164. }
  165. int
  166. i915_gem_init_ioctl(struct drm_device *dev, void *data,
  167. struct drm_file *file_priv)
  168. {
  169. struct drm_i915_gem_init *args = data;
  170. int ret;
  171. mutex_lock(&dev->struct_mutex);
  172. ret = i915_gem_do_init(dev, args->gtt_start, args->gtt_end);
  173. mutex_unlock(&dev->struct_mutex);
  174. return ret;
  175. }
  176. int
  177. i915_gem_get_aperture_ioctl(struct drm_device *dev, void *data,
  178. struct drm_file *file_priv)
  179. {
  180. struct drm_i915_private *dev_priv = dev->dev_private;
  181. struct drm_i915_gem_get_aperture *args = data;
  182. if (!(dev->driver->driver_features & DRIVER_GEM))
  183. return -ENODEV;
  184. mutex_lock(&dev->struct_mutex);
  185. args->aper_size = dev_priv->mm.gtt_total;
  186. args->aper_available_size = args->aper_size - dev_priv->mm.pin_memory;
  187. mutex_unlock(&dev->struct_mutex);
  188. return 0;
  189. }
  190. /**
  191. * Creates a new mm object and returns a handle to it.
  192. */
  193. int
  194. i915_gem_create_ioctl(struct drm_device *dev, void *data,
  195. struct drm_file *file_priv)
  196. {
  197. struct drm_i915_gem_create *args = data;
  198. struct drm_gem_object *obj;
  199. int ret;
  200. u32 handle;
  201. args->size = roundup(args->size, PAGE_SIZE);
  202. /* Allocate the new object */
  203. obj = i915_gem_alloc_object(dev, args->size);
  204. if (obj == NULL)
  205. return -ENOMEM;
  206. ret = drm_gem_handle_create(file_priv, obj, &handle);
  207. if (ret) {
  208. drm_gem_object_release(obj);
  209. i915_gem_info_remove_obj(dev->dev_private, obj->size);
  210. kfree(obj);
  211. return ret;
  212. }
  213. /* drop reference from allocate - handle holds it now */
  214. drm_gem_object_unreference(obj);
  215. trace_i915_gem_object_create(obj);
  216. args->handle = handle;
  217. return 0;
  218. }
  219. static inline int
  220. fast_shmem_read(struct page **pages,
  221. loff_t page_base, int page_offset,
  222. char __user *data,
  223. int length)
  224. {
  225. char *vaddr;
  226. int ret;
  227. vaddr = kmap_atomic(pages[page_base >> PAGE_SHIFT]);
  228. ret = __copy_to_user_inatomic(data, vaddr + page_offset, length);
  229. kunmap_atomic(vaddr);
  230. return ret;
  231. }
  232. static int i915_gem_object_needs_bit17_swizzle(struct drm_gem_object *obj)
  233. {
  234. drm_i915_private_t *dev_priv = obj->dev->dev_private;
  235. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  236. return dev_priv->mm.bit_6_swizzle_x == I915_BIT_6_SWIZZLE_9_10_17 &&
  237. obj_priv->tiling_mode != I915_TILING_NONE;
  238. }
  239. static inline void
  240. slow_shmem_copy(struct page *dst_page,
  241. int dst_offset,
  242. struct page *src_page,
  243. int src_offset,
  244. int length)
  245. {
  246. char *dst_vaddr, *src_vaddr;
  247. dst_vaddr = kmap(dst_page);
  248. src_vaddr = kmap(src_page);
  249. memcpy(dst_vaddr + dst_offset, src_vaddr + src_offset, length);
  250. kunmap(src_page);
  251. kunmap(dst_page);
  252. }
  253. static inline void
  254. slow_shmem_bit17_copy(struct page *gpu_page,
  255. int gpu_offset,
  256. struct page *cpu_page,
  257. int cpu_offset,
  258. int length,
  259. int is_read)
  260. {
  261. char *gpu_vaddr, *cpu_vaddr;
  262. /* Use the unswizzled path if this page isn't affected. */
  263. if ((page_to_phys(gpu_page) & (1 << 17)) == 0) {
  264. if (is_read)
  265. return slow_shmem_copy(cpu_page, cpu_offset,
  266. gpu_page, gpu_offset, length);
  267. else
  268. return slow_shmem_copy(gpu_page, gpu_offset,
  269. cpu_page, cpu_offset, length);
  270. }
  271. gpu_vaddr = kmap(gpu_page);
  272. cpu_vaddr = kmap(cpu_page);
  273. /* Copy the data, XORing A6 with A17 (1). The user already knows he's
  274. * XORing with the other bits (A9 for Y, A9 and A10 for X)
  275. */
  276. while (length > 0) {
  277. int cacheline_end = ALIGN(gpu_offset + 1, 64);
  278. int this_length = min(cacheline_end - gpu_offset, length);
  279. int swizzled_gpu_offset = gpu_offset ^ 64;
  280. if (is_read) {
  281. memcpy(cpu_vaddr + cpu_offset,
  282. gpu_vaddr + swizzled_gpu_offset,
  283. this_length);
  284. } else {
  285. memcpy(gpu_vaddr + swizzled_gpu_offset,
  286. cpu_vaddr + cpu_offset,
  287. this_length);
  288. }
  289. cpu_offset += this_length;
  290. gpu_offset += this_length;
  291. length -= this_length;
  292. }
  293. kunmap(cpu_page);
  294. kunmap(gpu_page);
  295. }
  296. /**
  297. * This is the fast shmem pread path, which attempts to copy_from_user directly
  298. * from the backing pages of the object to the user's address space. On a
  299. * fault, it fails so we can fall back to i915_gem_shmem_pwrite_slow().
  300. */
  301. static int
  302. i915_gem_shmem_pread_fast(struct drm_device *dev, struct drm_gem_object *obj,
  303. struct drm_i915_gem_pread *args,
  304. struct drm_file *file_priv)
  305. {
  306. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  307. ssize_t remain;
  308. loff_t offset, page_base;
  309. char __user *user_data;
  310. int page_offset, page_length;
  311. user_data = (char __user *) (uintptr_t) args->data_ptr;
  312. remain = args->size;
  313. obj_priv = to_intel_bo(obj);
  314. offset = args->offset;
  315. while (remain > 0) {
  316. /* Operation in this page
  317. *
  318. * page_base = page offset within aperture
  319. * page_offset = offset within page
  320. * page_length = bytes to copy for this page
  321. */
  322. page_base = (offset & ~(PAGE_SIZE-1));
  323. page_offset = offset & (PAGE_SIZE-1);
  324. page_length = remain;
  325. if ((page_offset + remain) > PAGE_SIZE)
  326. page_length = PAGE_SIZE - page_offset;
  327. if (fast_shmem_read(obj_priv->pages,
  328. page_base, page_offset,
  329. user_data, page_length))
  330. return -EFAULT;
  331. remain -= page_length;
  332. user_data += page_length;
  333. offset += page_length;
  334. }
  335. return 0;
  336. }
  337. static int
  338. i915_gem_object_get_pages_or_evict(struct drm_gem_object *obj)
  339. {
  340. int ret;
  341. ret = i915_gem_object_get_pages(obj, __GFP_NORETRY | __GFP_NOWARN);
  342. /* If we've insufficient memory to map in the pages, attempt
  343. * to make some space by throwing out some old buffers.
  344. */
  345. if (ret == -ENOMEM) {
  346. struct drm_device *dev = obj->dev;
  347. ret = i915_gem_evict_something(dev, obj->size,
  348. i915_gem_get_gtt_alignment(obj));
  349. if (ret)
  350. return ret;
  351. ret = i915_gem_object_get_pages(obj, 0);
  352. }
  353. return ret;
  354. }
  355. /**
  356. * This is the fallback shmem pread path, which allocates temporary storage
  357. * in kernel space to copy_to_user into outside of the struct_mutex, so we
  358. * can copy out of the object's backing pages while holding the struct mutex
  359. * and not take page faults.
  360. */
  361. static int
  362. i915_gem_shmem_pread_slow(struct drm_device *dev, struct drm_gem_object *obj,
  363. struct drm_i915_gem_pread *args,
  364. struct drm_file *file_priv)
  365. {
  366. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  367. struct mm_struct *mm = current->mm;
  368. struct page **user_pages;
  369. ssize_t remain;
  370. loff_t offset, pinned_pages, i;
  371. loff_t first_data_page, last_data_page, num_pages;
  372. int shmem_page_index, shmem_page_offset;
  373. int data_page_index, data_page_offset;
  374. int page_length;
  375. int ret;
  376. uint64_t data_ptr = args->data_ptr;
  377. int do_bit17_swizzling;
  378. remain = args->size;
  379. /* Pin the user pages containing the data. We can't fault while
  380. * holding the struct mutex, yet we want to hold it while
  381. * dereferencing the user data.
  382. */
  383. first_data_page = data_ptr / PAGE_SIZE;
  384. last_data_page = (data_ptr + args->size - 1) / PAGE_SIZE;
  385. num_pages = last_data_page - first_data_page + 1;
  386. user_pages = drm_malloc_ab(num_pages, sizeof(struct page *));
  387. if (user_pages == NULL)
  388. return -ENOMEM;
  389. mutex_unlock(&dev->struct_mutex);
  390. down_read(&mm->mmap_sem);
  391. pinned_pages = get_user_pages(current, mm, (uintptr_t)args->data_ptr,
  392. num_pages, 1, 0, user_pages, NULL);
  393. up_read(&mm->mmap_sem);
  394. mutex_lock(&dev->struct_mutex);
  395. if (pinned_pages < num_pages) {
  396. ret = -EFAULT;
  397. goto out;
  398. }
  399. ret = i915_gem_object_set_cpu_read_domain_range(obj,
  400. args->offset,
  401. args->size);
  402. if (ret)
  403. goto out;
  404. do_bit17_swizzling = i915_gem_object_needs_bit17_swizzle(obj);
  405. obj_priv = to_intel_bo(obj);
  406. offset = args->offset;
  407. while (remain > 0) {
  408. /* Operation in this page
  409. *
  410. * shmem_page_index = page number within shmem file
  411. * shmem_page_offset = offset within page in shmem file
  412. * data_page_index = page number in get_user_pages return
  413. * data_page_offset = offset with data_page_index page.
  414. * page_length = bytes to copy for this page
  415. */
  416. shmem_page_index = offset / PAGE_SIZE;
  417. shmem_page_offset = offset & ~PAGE_MASK;
  418. data_page_index = data_ptr / PAGE_SIZE - first_data_page;
  419. data_page_offset = data_ptr & ~PAGE_MASK;
  420. page_length = remain;
  421. if ((shmem_page_offset + page_length) > PAGE_SIZE)
  422. page_length = PAGE_SIZE - shmem_page_offset;
  423. if ((data_page_offset + page_length) > PAGE_SIZE)
  424. page_length = PAGE_SIZE - data_page_offset;
  425. if (do_bit17_swizzling) {
  426. slow_shmem_bit17_copy(obj_priv->pages[shmem_page_index],
  427. shmem_page_offset,
  428. user_pages[data_page_index],
  429. data_page_offset,
  430. page_length,
  431. 1);
  432. } else {
  433. slow_shmem_copy(user_pages[data_page_index],
  434. data_page_offset,
  435. obj_priv->pages[shmem_page_index],
  436. shmem_page_offset,
  437. page_length);
  438. }
  439. remain -= page_length;
  440. data_ptr += page_length;
  441. offset += page_length;
  442. }
  443. out:
  444. for (i = 0; i < pinned_pages; i++) {
  445. SetPageDirty(user_pages[i]);
  446. page_cache_release(user_pages[i]);
  447. }
  448. drm_free_large(user_pages);
  449. return ret;
  450. }
  451. /**
  452. * Reads data from the object referenced by handle.
  453. *
  454. * On error, the contents of *data are undefined.
  455. */
  456. int
  457. i915_gem_pread_ioctl(struct drm_device *dev, void *data,
  458. struct drm_file *file_priv)
  459. {
  460. struct drm_i915_gem_pread *args = data;
  461. struct drm_gem_object *obj;
  462. struct drm_i915_gem_object *obj_priv;
  463. int ret = 0;
  464. if (args->size == 0)
  465. return 0;
  466. if (!access_ok(VERIFY_WRITE,
  467. (char __user *)(uintptr_t)args->data_ptr,
  468. args->size))
  469. return -EFAULT;
  470. ret = fault_in_pages_writeable((char __user *)(uintptr_t)args->data_ptr,
  471. args->size);
  472. if (ret)
  473. return -EFAULT;
  474. ret = i915_mutex_lock_interruptible(dev);
  475. if (ret)
  476. return ret;
  477. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  478. if (obj == NULL) {
  479. ret = -ENOENT;
  480. goto unlock;
  481. }
  482. obj_priv = to_intel_bo(obj);
  483. /* Bounds check source. */
  484. if (args->offset > obj->size || args->size > obj->size - args->offset) {
  485. ret = -EINVAL;
  486. goto out;
  487. }
  488. ret = i915_gem_object_get_pages_or_evict(obj);
  489. if (ret)
  490. goto out;
  491. ret = i915_gem_object_set_cpu_read_domain_range(obj,
  492. args->offset,
  493. args->size);
  494. if (ret)
  495. goto out_put;
  496. ret = -EFAULT;
  497. if (!i915_gem_object_needs_bit17_swizzle(obj))
  498. ret = i915_gem_shmem_pread_fast(dev, obj, args, file_priv);
  499. if (ret == -EFAULT)
  500. ret = i915_gem_shmem_pread_slow(dev, obj, args, file_priv);
  501. out_put:
  502. i915_gem_object_put_pages(obj);
  503. out:
  504. drm_gem_object_unreference(obj);
  505. unlock:
  506. mutex_unlock(&dev->struct_mutex);
  507. return ret;
  508. }
  509. /* This is the fast write path which cannot handle
  510. * page faults in the source data
  511. */
  512. static inline int
  513. fast_user_write(struct io_mapping *mapping,
  514. loff_t page_base, int page_offset,
  515. char __user *user_data,
  516. int length)
  517. {
  518. char *vaddr_atomic;
  519. unsigned long unwritten;
  520. vaddr_atomic = io_mapping_map_atomic_wc(mapping, page_base);
  521. unwritten = __copy_from_user_inatomic_nocache(vaddr_atomic + page_offset,
  522. user_data, length);
  523. io_mapping_unmap_atomic(vaddr_atomic);
  524. return unwritten;
  525. }
  526. /* Here's the write path which can sleep for
  527. * page faults
  528. */
  529. static inline void
  530. slow_kernel_write(struct io_mapping *mapping,
  531. loff_t gtt_base, int gtt_offset,
  532. struct page *user_page, int user_offset,
  533. int length)
  534. {
  535. char __iomem *dst_vaddr;
  536. char *src_vaddr;
  537. dst_vaddr = io_mapping_map_wc(mapping, gtt_base);
  538. src_vaddr = kmap(user_page);
  539. memcpy_toio(dst_vaddr + gtt_offset,
  540. src_vaddr + user_offset,
  541. length);
  542. kunmap(user_page);
  543. io_mapping_unmap(dst_vaddr);
  544. }
  545. static inline int
  546. fast_shmem_write(struct page **pages,
  547. loff_t page_base, int page_offset,
  548. char __user *data,
  549. int length)
  550. {
  551. char *vaddr;
  552. int ret;
  553. vaddr = kmap_atomic(pages[page_base >> PAGE_SHIFT]);
  554. ret = __copy_from_user_inatomic(vaddr + page_offset, data, length);
  555. kunmap_atomic(vaddr);
  556. return ret;
  557. }
  558. /**
  559. * This is the fast pwrite path, where we copy the data directly from the
  560. * user into the GTT, uncached.
  561. */
  562. static int
  563. i915_gem_gtt_pwrite_fast(struct drm_device *dev, struct drm_gem_object *obj,
  564. struct drm_i915_gem_pwrite *args,
  565. struct drm_file *file_priv)
  566. {
  567. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  568. drm_i915_private_t *dev_priv = dev->dev_private;
  569. ssize_t remain;
  570. loff_t offset, page_base;
  571. char __user *user_data;
  572. int page_offset, page_length;
  573. user_data = (char __user *) (uintptr_t) args->data_ptr;
  574. remain = args->size;
  575. obj_priv = to_intel_bo(obj);
  576. offset = obj_priv->gtt_offset + args->offset;
  577. while (remain > 0) {
  578. /* Operation in this page
  579. *
  580. * page_base = page offset within aperture
  581. * page_offset = offset within page
  582. * page_length = bytes to copy for this page
  583. */
  584. page_base = (offset & ~(PAGE_SIZE-1));
  585. page_offset = offset & (PAGE_SIZE-1);
  586. page_length = remain;
  587. if ((page_offset + remain) > PAGE_SIZE)
  588. page_length = PAGE_SIZE - page_offset;
  589. /* If we get a fault while copying data, then (presumably) our
  590. * source page isn't available. Return the error and we'll
  591. * retry in the slow path.
  592. */
  593. if (fast_user_write(dev_priv->mm.gtt_mapping, page_base,
  594. page_offset, user_data, page_length))
  595. return -EFAULT;
  596. remain -= page_length;
  597. user_data += page_length;
  598. offset += page_length;
  599. }
  600. return 0;
  601. }
  602. /**
  603. * This is the fallback GTT pwrite path, which uses get_user_pages to pin
  604. * the memory and maps it using kmap_atomic for copying.
  605. *
  606. * This code resulted in x11perf -rgb10text consuming about 10% more CPU
  607. * than using i915_gem_gtt_pwrite_fast on a G45 (32-bit).
  608. */
  609. static int
  610. i915_gem_gtt_pwrite_slow(struct drm_device *dev, struct drm_gem_object *obj,
  611. struct drm_i915_gem_pwrite *args,
  612. struct drm_file *file_priv)
  613. {
  614. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  615. drm_i915_private_t *dev_priv = dev->dev_private;
  616. ssize_t remain;
  617. loff_t gtt_page_base, offset;
  618. loff_t first_data_page, last_data_page, num_pages;
  619. loff_t pinned_pages, i;
  620. struct page **user_pages;
  621. struct mm_struct *mm = current->mm;
  622. int gtt_page_offset, data_page_offset, data_page_index, page_length;
  623. int ret;
  624. uint64_t data_ptr = args->data_ptr;
  625. remain = args->size;
  626. /* Pin the user pages containing the data. We can't fault while
  627. * holding the struct mutex, and all of the pwrite implementations
  628. * want to hold it while dereferencing the user data.
  629. */
  630. first_data_page = data_ptr / PAGE_SIZE;
  631. last_data_page = (data_ptr + args->size - 1) / PAGE_SIZE;
  632. num_pages = last_data_page - first_data_page + 1;
  633. user_pages = drm_malloc_ab(num_pages, sizeof(struct page *));
  634. if (user_pages == NULL)
  635. return -ENOMEM;
  636. mutex_unlock(&dev->struct_mutex);
  637. down_read(&mm->mmap_sem);
  638. pinned_pages = get_user_pages(current, mm, (uintptr_t)args->data_ptr,
  639. num_pages, 0, 0, user_pages, NULL);
  640. up_read(&mm->mmap_sem);
  641. mutex_lock(&dev->struct_mutex);
  642. if (pinned_pages < num_pages) {
  643. ret = -EFAULT;
  644. goto out_unpin_pages;
  645. }
  646. ret = i915_gem_object_set_to_gtt_domain(obj, 1);
  647. if (ret)
  648. goto out_unpin_pages;
  649. obj_priv = to_intel_bo(obj);
  650. offset = obj_priv->gtt_offset + args->offset;
  651. while (remain > 0) {
  652. /* Operation in this page
  653. *
  654. * gtt_page_base = page offset within aperture
  655. * gtt_page_offset = offset within page in aperture
  656. * data_page_index = page number in get_user_pages return
  657. * data_page_offset = offset with data_page_index page.
  658. * page_length = bytes to copy for this page
  659. */
  660. gtt_page_base = offset & PAGE_MASK;
  661. gtt_page_offset = offset & ~PAGE_MASK;
  662. data_page_index = data_ptr / PAGE_SIZE - first_data_page;
  663. data_page_offset = data_ptr & ~PAGE_MASK;
  664. page_length = remain;
  665. if ((gtt_page_offset + page_length) > PAGE_SIZE)
  666. page_length = PAGE_SIZE - gtt_page_offset;
  667. if ((data_page_offset + page_length) > PAGE_SIZE)
  668. page_length = PAGE_SIZE - data_page_offset;
  669. slow_kernel_write(dev_priv->mm.gtt_mapping,
  670. gtt_page_base, gtt_page_offset,
  671. user_pages[data_page_index],
  672. data_page_offset,
  673. page_length);
  674. remain -= page_length;
  675. offset += page_length;
  676. data_ptr += page_length;
  677. }
  678. out_unpin_pages:
  679. for (i = 0; i < pinned_pages; i++)
  680. page_cache_release(user_pages[i]);
  681. drm_free_large(user_pages);
  682. return ret;
  683. }
  684. /**
  685. * This is the fast shmem pwrite path, which attempts to directly
  686. * copy_from_user into the kmapped pages backing the object.
  687. */
  688. static int
  689. i915_gem_shmem_pwrite_fast(struct drm_device *dev, struct drm_gem_object *obj,
  690. struct drm_i915_gem_pwrite *args,
  691. struct drm_file *file_priv)
  692. {
  693. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  694. ssize_t remain;
  695. loff_t offset, page_base;
  696. char __user *user_data;
  697. int page_offset, page_length;
  698. user_data = (char __user *) (uintptr_t) args->data_ptr;
  699. remain = args->size;
  700. obj_priv = to_intel_bo(obj);
  701. offset = args->offset;
  702. obj_priv->dirty = 1;
  703. while (remain > 0) {
  704. /* Operation in this page
  705. *
  706. * page_base = page offset within aperture
  707. * page_offset = offset within page
  708. * page_length = bytes to copy for this page
  709. */
  710. page_base = (offset & ~(PAGE_SIZE-1));
  711. page_offset = offset & (PAGE_SIZE-1);
  712. page_length = remain;
  713. if ((page_offset + remain) > PAGE_SIZE)
  714. page_length = PAGE_SIZE - page_offset;
  715. if (fast_shmem_write(obj_priv->pages,
  716. page_base, page_offset,
  717. user_data, page_length))
  718. return -EFAULT;
  719. remain -= page_length;
  720. user_data += page_length;
  721. offset += page_length;
  722. }
  723. return 0;
  724. }
  725. /**
  726. * This is the fallback shmem pwrite path, which uses get_user_pages to pin
  727. * the memory and maps it using kmap_atomic for copying.
  728. *
  729. * This avoids taking mmap_sem for faulting on the user's address while the
  730. * struct_mutex is held.
  731. */
  732. static int
  733. i915_gem_shmem_pwrite_slow(struct drm_device *dev, struct drm_gem_object *obj,
  734. struct drm_i915_gem_pwrite *args,
  735. struct drm_file *file_priv)
  736. {
  737. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  738. struct mm_struct *mm = current->mm;
  739. struct page **user_pages;
  740. ssize_t remain;
  741. loff_t offset, pinned_pages, i;
  742. loff_t first_data_page, last_data_page, num_pages;
  743. int shmem_page_index, shmem_page_offset;
  744. int data_page_index, data_page_offset;
  745. int page_length;
  746. int ret;
  747. uint64_t data_ptr = args->data_ptr;
  748. int do_bit17_swizzling;
  749. remain = args->size;
  750. /* Pin the user pages containing the data. We can't fault while
  751. * holding the struct mutex, and all of the pwrite implementations
  752. * want to hold it while dereferencing the user data.
  753. */
  754. first_data_page = data_ptr / PAGE_SIZE;
  755. last_data_page = (data_ptr + args->size - 1) / PAGE_SIZE;
  756. num_pages = last_data_page - first_data_page + 1;
  757. user_pages = drm_malloc_ab(num_pages, sizeof(struct page *));
  758. if (user_pages == NULL)
  759. return -ENOMEM;
  760. mutex_unlock(&dev->struct_mutex);
  761. down_read(&mm->mmap_sem);
  762. pinned_pages = get_user_pages(current, mm, (uintptr_t)args->data_ptr,
  763. num_pages, 0, 0, user_pages, NULL);
  764. up_read(&mm->mmap_sem);
  765. mutex_lock(&dev->struct_mutex);
  766. if (pinned_pages < num_pages) {
  767. ret = -EFAULT;
  768. goto out;
  769. }
  770. ret = i915_gem_object_set_to_cpu_domain(obj, 1);
  771. if (ret)
  772. goto out;
  773. do_bit17_swizzling = i915_gem_object_needs_bit17_swizzle(obj);
  774. obj_priv = to_intel_bo(obj);
  775. offset = args->offset;
  776. obj_priv->dirty = 1;
  777. while (remain > 0) {
  778. /* Operation in this page
  779. *
  780. * shmem_page_index = page number within shmem file
  781. * shmem_page_offset = offset within page in shmem file
  782. * data_page_index = page number in get_user_pages return
  783. * data_page_offset = offset with data_page_index page.
  784. * page_length = bytes to copy for this page
  785. */
  786. shmem_page_index = offset / PAGE_SIZE;
  787. shmem_page_offset = offset & ~PAGE_MASK;
  788. data_page_index = data_ptr / PAGE_SIZE - first_data_page;
  789. data_page_offset = data_ptr & ~PAGE_MASK;
  790. page_length = remain;
  791. if ((shmem_page_offset + page_length) > PAGE_SIZE)
  792. page_length = PAGE_SIZE - shmem_page_offset;
  793. if ((data_page_offset + page_length) > PAGE_SIZE)
  794. page_length = PAGE_SIZE - data_page_offset;
  795. if (do_bit17_swizzling) {
  796. slow_shmem_bit17_copy(obj_priv->pages[shmem_page_index],
  797. shmem_page_offset,
  798. user_pages[data_page_index],
  799. data_page_offset,
  800. page_length,
  801. 0);
  802. } else {
  803. slow_shmem_copy(obj_priv->pages[shmem_page_index],
  804. shmem_page_offset,
  805. user_pages[data_page_index],
  806. data_page_offset,
  807. page_length);
  808. }
  809. remain -= page_length;
  810. data_ptr += page_length;
  811. offset += page_length;
  812. }
  813. out:
  814. for (i = 0; i < pinned_pages; i++)
  815. page_cache_release(user_pages[i]);
  816. drm_free_large(user_pages);
  817. return ret;
  818. }
  819. /**
  820. * Writes data to the object referenced by handle.
  821. *
  822. * On error, the contents of the buffer that were to be modified are undefined.
  823. */
  824. int
  825. i915_gem_pwrite_ioctl(struct drm_device *dev, void *data,
  826. struct drm_file *file)
  827. {
  828. struct drm_i915_gem_pwrite *args = data;
  829. struct drm_gem_object *obj;
  830. struct drm_i915_gem_object *obj_priv;
  831. int ret;
  832. if (args->size == 0)
  833. return 0;
  834. if (!access_ok(VERIFY_READ,
  835. (char __user *)(uintptr_t)args->data_ptr,
  836. args->size))
  837. return -EFAULT;
  838. ret = fault_in_pages_readable((char __user *)(uintptr_t)args->data_ptr,
  839. args->size);
  840. if (ret)
  841. return -EFAULT;
  842. ret = i915_mutex_lock_interruptible(dev);
  843. if (ret)
  844. return ret;
  845. obj = drm_gem_object_lookup(dev, file, args->handle);
  846. if (obj == NULL) {
  847. ret = -ENOENT;
  848. goto unlock;
  849. }
  850. obj_priv = to_intel_bo(obj);
  851. /* Bounds check destination. */
  852. if (args->offset > obj->size || args->size > obj->size - args->offset) {
  853. ret = -EINVAL;
  854. goto out;
  855. }
  856. /* We can only do the GTT pwrite on untiled buffers, as otherwise
  857. * it would end up going through the fenced access, and we'll get
  858. * different detiling behavior between reading and writing.
  859. * pread/pwrite currently are reading and writing from the CPU
  860. * perspective, requiring manual detiling by the client.
  861. */
  862. if (obj_priv->phys_obj)
  863. ret = i915_gem_phys_pwrite(dev, obj, args, file);
  864. else if (obj_priv->tiling_mode == I915_TILING_NONE &&
  865. obj_priv->gtt_space &&
  866. obj->write_domain != I915_GEM_DOMAIN_CPU) {
  867. ret = i915_gem_object_pin(obj, 0);
  868. if (ret)
  869. goto out;
  870. ret = i915_gem_object_set_to_gtt_domain(obj, 1);
  871. if (ret)
  872. goto out_unpin;
  873. ret = i915_gem_gtt_pwrite_fast(dev, obj, args, file);
  874. if (ret == -EFAULT)
  875. ret = i915_gem_gtt_pwrite_slow(dev, obj, args, file);
  876. out_unpin:
  877. i915_gem_object_unpin(obj);
  878. } else {
  879. ret = i915_gem_object_get_pages_or_evict(obj);
  880. if (ret)
  881. goto out;
  882. ret = i915_gem_object_set_to_cpu_domain(obj, 1);
  883. if (ret)
  884. goto out_put;
  885. ret = -EFAULT;
  886. if (!i915_gem_object_needs_bit17_swizzle(obj))
  887. ret = i915_gem_shmem_pwrite_fast(dev, obj, args, file);
  888. if (ret == -EFAULT)
  889. ret = i915_gem_shmem_pwrite_slow(dev, obj, args, file);
  890. out_put:
  891. i915_gem_object_put_pages(obj);
  892. }
  893. out:
  894. drm_gem_object_unreference(obj);
  895. unlock:
  896. mutex_unlock(&dev->struct_mutex);
  897. return ret;
  898. }
  899. /**
  900. * Called when user space prepares to use an object with the CPU, either
  901. * through the mmap ioctl's mapping or a GTT mapping.
  902. */
  903. int
  904. i915_gem_set_domain_ioctl(struct drm_device *dev, void *data,
  905. struct drm_file *file_priv)
  906. {
  907. struct drm_i915_private *dev_priv = dev->dev_private;
  908. struct drm_i915_gem_set_domain *args = data;
  909. struct drm_gem_object *obj;
  910. struct drm_i915_gem_object *obj_priv;
  911. uint32_t read_domains = args->read_domains;
  912. uint32_t write_domain = args->write_domain;
  913. int ret;
  914. if (!(dev->driver->driver_features & DRIVER_GEM))
  915. return -ENODEV;
  916. /* Only handle setting domains to types used by the CPU. */
  917. if (write_domain & I915_GEM_GPU_DOMAINS)
  918. return -EINVAL;
  919. if (read_domains & I915_GEM_GPU_DOMAINS)
  920. return -EINVAL;
  921. /* Having something in the write domain implies it's in the read
  922. * domain, and only that read domain. Enforce that in the request.
  923. */
  924. if (write_domain != 0 && read_domains != write_domain)
  925. return -EINVAL;
  926. ret = i915_mutex_lock_interruptible(dev);
  927. if (ret)
  928. return ret;
  929. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  930. if (obj == NULL) {
  931. ret = -ENOENT;
  932. goto unlock;
  933. }
  934. obj_priv = to_intel_bo(obj);
  935. intel_mark_busy(dev, obj);
  936. if (read_domains & I915_GEM_DOMAIN_GTT) {
  937. ret = i915_gem_object_set_to_gtt_domain(obj, write_domain != 0);
  938. /* Update the LRU on the fence for the CPU access that's
  939. * about to occur.
  940. */
  941. if (obj_priv->fence_reg != I915_FENCE_REG_NONE) {
  942. struct drm_i915_fence_reg *reg =
  943. &dev_priv->fence_regs[obj_priv->fence_reg];
  944. list_move_tail(&reg->lru_list,
  945. &dev_priv->mm.fence_list);
  946. }
  947. /* Silently promote "you're not bound, there was nothing to do"
  948. * to success, since the client was just asking us to
  949. * make sure everything was done.
  950. */
  951. if (ret == -EINVAL)
  952. ret = 0;
  953. } else {
  954. ret = i915_gem_object_set_to_cpu_domain(obj, write_domain != 0);
  955. }
  956. /* Maintain LRU order of "inactive" objects */
  957. if (ret == 0 && i915_gem_object_is_inactive(obj_priv))
  958. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.inactive_list);
  959. drm_gem_object_unreference(obj);
  960. unlock:
  961. mutex_unlock(&dev->struct_mutex);
  962. return ret;
  963. }
  964. /**
  965. * Called when user space has done writes to this buffer
  966. */
  967. int
  968. i915_gem_sw_finish_ioctl(struct drm_device *dev, void *data,
  969. struct drm_file *file_priv)
  970. {
  971. struct drm_i915_gem_sw_finish *args = data;
  972. struct drm_gem_object *obj;
  973. int ret = 0;
  974. if (!(dev->driver->driver_features & DRIVER_GEM))
  975. return -ENODEV;
  976. ret = i915_mutex_lock_interruptible(dev);
  977. if (ret)
  978. return ret;
  979. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  980. if (obj == NULL) {
  981. ret = -ENOENT;
  982. goto unlock;
  983. }
  984. /* Pinned buffers may be scanout, so flush the cache */
  985. if (to_intel_bo(obj)->pin_count)
  986. i915_gem_object_flush_cpu_write_domain(obj);
  987. drm_gem_object_unreference(obj);
  988. unlock:
  989. mutex_unlock(&dev->struct_mutex);
  990. return ret;
  991. }
  992. /**
  993. * Maps the contents of an object, returning the address it is mapped
  994. * into.
  995. *
  996. * While the mapping holds a reference on the contents of the object, it doesn't
  997. * imply a ref on the object itself.
  998. */
  999. int
  1000. i915_gem_mmap_ioctl(struct drm_device *dev, void *data,
  1001. struct drm_file *file_priv)
  1002. {
  1003. struct drm_i915_gem_mmap *args = data;
  1004. struct drm_gem_object *obj;
  1005. loff_t offset;
  1006. unsigned long addr;
  1007. if (!(dev->driver->driver_features & DRIVER_GEM))
  1008. return -ENODEV;
  1009. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  1010. if (obj == NULL)
  1011. return -ENOENT;
  1012. offset = args->offset;
  1013. down_write(&current->mm->mmap_sem);
  1014. addr = do_mmap(obj->filp, 0, args->size,
  1015. PROT_READ | PROT_WRITE, MAP_SHARED,
  1016. args->offset);
  1017. up_write(&current->mm->mmap_sem);
  1018. drm_gem_object_unreference_unlocked(obj);
  1019. if (IS_ERR((void *)addr))
  1020. return addr;
  1021. args->addr_ptr = (uint64_t) addr;
  1022. return 0;
  1023. }
  1024. /**
  1025. * i915_gem_fault - fault a page into the GTT
  1026. * vma: VMA in question
  1027. * vmf: fault info
  1028. *
  1029. * The fault handler is set up by drm_gem_mmap() when a object is GTT mapped
  1030. * from userspace. The fault handler takes care of binding the object to
  1031. * the GTT (if needed), allocating and programming a fence register (again,
  1032. * only if needed based on whether the old reg is still valid or the object
  1033. * is tiled) and inserting a new PTE into the faulting process.
  1034. *
  1035. * Note that the faulting process may involve evicting existing objects
  1036. * from the GTT and/or fence registers to make room. So performance may
  1037. * suffer if the GTT working set is large or there are few fence registers
  1038. * left.
  1039. */
  1040. int i915_gem_fault(struct vm_area_struct *vma, struct vm_fault *vmf)
  1041. {
  1042. struct drm_gem_object *obj = vma->vm_private_data;
  1043. struct drm_device *dev = obj->dev;
  1044. drm_i915_private_t *dev_priv = dev->dev_private;
  1045. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1046. pgoff_t page_offset;
  1047. unsigned long pfn;
  1048. int ret = 0;
  1049. bool write = !!(vmf->flags & FAULT_FLAG_WRITE);
  1050. /* We don't use vmf->pgoff since that has the fake offset */
  1051. page_offset = ((unsigned long)vmf->virtual_address - vma->vm_start) >>
  1052. PAGE_SHIFT;
  1053. /* Now bind it into the GTT if needed */
  1054. mutex_lock(&dev->struct_mutex);
  1055. if (!obj_priv->gtt_space) {
  1056. ret = i915_gem_object_bind_to_gtt(obj, 0);
  1057. if (ret)
  1058. goto unlock;
  1059. ret = i915_gem_object_set_to_gtt_domain(obj, write);
  1060. if (ret)
  1061. goto unlock;
  1062. }
  1063. /* Need a new fence register? */
  1064. if (obj_priv->tiling_mode != I915_TILING_NONE) {
  1065. ret = i915_gem_object_get_fence_reg(obj, true);
  1066. if (ret)
  1067. goto unlock;
  1068. }
  1069. if (i915_gem_object_is_inactive(obj_priv))
  1070. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.inactive_list);
  1071. pfn = ((dev->agp->base + obj_priv->gtt_offset) >> PAGE_SHIFT) +
  1072. page_offset;
  1073. /* Finally, remap it using the new GTT offset */
  1074. ret = vm_insert_pfn(vma, (unsigned long)vmf->virtual_address, pfn);
  1075. unlock:
  1076. mutex_unlock(&dev->struct_mutex);
  1077. switch (ret) {
  1078. case 0:
  1079. case -ERESTARTSYS:
  1080. return VM_FAULT_NOPAGE;
  1081. case -ENOMEM:
  1082. case -EAGAIN:
  1083. return VM_FAULT_OOM;
  1084. default:
  1085. return VM_FAULT_SIGBUS;
  1086. }
  1087. }
  1088. /**
  1089. * i915_gem_create_mmap_offset - create a fake mmap offset for an object
  1090. * @obj: obj in question
  1091. *
  1092. * GEM memory mapping works by handing back to userspace a fake mmap offset
  1093. * it can use in a subsequent mmap(2) call. The DRM core code then looks
  1094. * up the object based on the offset and sets up the various memory mapping
  1095. * structures.
  1096. *
  1097. * This routine allocates and attaches a fake offset for @obj.
  1098. */
  1099. static int
  1100. i915_gem_create_mmap_offset(struct drm_gem_object *obj)
  1101. {
  1102. struct drm_device *dev = obj->dev;
  1103. struct drm_gem_mm *mm = dev->mm_private;
  1104. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1105. struct drm_map_list *list;
  1106. struct drm_local_map *map;
  1107. int ret = 0;
  1108. /* Set the object up for mmap'ing */
  1109. list = &obj->map_list;
  1110. list->map = kzalloc(sizeof(struct drm_map_list), GFP_KERNEL);
  1111. if (!list->map)
  1112. return -ENOMEM;
  1113. map = list->map;
  1114. map->type = _DRM_GEM;
  1115. map->size = obj->size;
  1116. map->handle = obj;
  1117. /* Get a DRM GEM mmap offset allocated... */
  1118. list->file_offset_node = drm_mm_search_free(&mm->offset_manager,
  1119. obj->size / PAGE_SIZE, 0, 0);
  1120. if (!list->file_offset_node) {
  1121. DRM_ERROR("failed to allocate offset for bo %d\n", obj->name);
  1122. ret = -ENOSPC;
  1123. goto out_free_list;
  1124. }
  1125. list->file_offset_node = drm_mm_get_block(list->file_offset_node,
  1126. obj->size / PAGE_SIZE, 0);
  1127. if (!list->file_offset_node) {
  1128. ret = -ENOMEM;
  1129. goto out_free_list;
  1130. }
  1131. list->hash.key = list->file_offset_node->start;
  1132. ret = drm_ht_insert_item(&mm->offset_hash, &list->hash);
  1133. if (ret) {
  1134. DRM_ERROR("failed to add to map hash\n");
  1135. goto out_free_mm;
  1136. }
  1137. /* By now we should be all set, any drm_mmap request on the offset
  1138. * below will get to our mmap & fault handler */
  1139. obj_priv->mmap_offset = ((uint64_t) list->hash.key) << PAGE_SHIFT;
  1140. return 0;
  1141. out_free_mm:
  1142. drm_mm_put_block(list->file_offset_node);
  1143. out_free_list:
  1144. kfree(list->map);
  1145. return ret;
  1146. }
  1147. /**
  1148. * i915_gem_release_mmap - remove physical page mappings
  1149. * @obj: obj in question
  1150. *
  1151. * Preserve the reservation of the mmapping with the DRM core code, but
  1152. * relinquish ownership of the pages back to the system.
  1153. *
  1154. * It is vital that we remove the page mapping if we have mapped a tiled
  1155. * object through the GTT and then lose the fence register due to
  1156. * resource pressure. Similarly if the object has been moved out of the
  1157. * aperture, than pages mapped into userspace must be revoked. Removing the
  1158. * mapping will then trigger a page fault on the next user access, allowing
  1159. * fixup by i915_gem_fault().
  1160. */
  1161. void
  1162. i915_gem_release_mmap(struct drm_gem_object *obj)
  1163. {
  1164. struct drm_device *dev = obj->dev;
  1165. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1166. if (dev->dev_mapping)
  1167. unmap_mapping_range(dev->dev_mapping,
  1168. obj_priv->mmap_offset, obj->size, 1);
  1169. }
  1170. static void
  1171. i915_gem_free_mmap_offset(struct drm_gem_object *obj)
  1172. {
  1173. struct drm_device *dev = obj->dev;
  1174. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1175. struct drm_gem_mm *mm = dev->mm_private;
  1176. struct drm_map_list *list;
  1177. list = &obj->map_list;
  1178. drm_ht_remove_item(&mm->offset_hash, &list->hash);
  1179. if (list->file_offset_node) {
  1180. drm_mm_put_block(list->file_offset_node);
  1181. list->file_offset_node = NULL;
  1182. }
  1183. if (list->map) {
  1184. kfree(list->map);
  1185. list->map = NULL;
  1186. }
  1187. obj_priv->mmap_offset = 0;
  1188. }
  1189. /**
  1190. * i915_gem_get_gtt_alignment - return required GTT alignment for an object
  1191. * @obj: object to check
  1192. *
  1193. * Return the required GTT alignment for an object, taking into account
  1194. * potential fence register mapping if needed.
  1195. */
  1196. static uint32_t
  1197. i915_gem_get_gtt_alignment(struct drm_gem_object *obj)
  1198. {
  1199. struct drm_device *dev = obj->dev;
  1200. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1201. int start, i;
  1202. /*
  1203. * Minimum alignment is 4k (GTT page size), but might be greater
  1204. * if a fence register is needed for the object.
  1205. */
  1206. if (INTEL_INFO(dev)->gen >= 4 || obj_priv->tiling_mode == I915_TILING_NONE)
  1207. return 4096;
  1208. /*
  1209. * Previous chips need to be aligned to the size of the smallest
  1210. * fence register that can contain the object.
  1211. */
  1212. if (INTEL_INFO(dev)->gen == 3)
  1213. start = 1024*1024;
  1214. else
  1215. start = 512*1024;
  1216. for (i = start; i < obj->size; i <<= 1)
  1217. ;
  1218. return i;
  1219. }
  1220. /**
  1221. * i915_gem_mmap_gtt_ioctl - prepare an object for GTT mmap'ing
  1222. * @dev: DRM device
  1223. * @data: GTT mapping ioctl data
  1224. * @file_priv: GEM object info
  1225. *
  1226. * Simply returns the fake offset to userspace so it can mmap it.
  1227. * The mmap call will end up in drm_gem_mmap(), which will set things
  1228. * up so we can get faults in the handler above.
  1229. *
  1230. * The fault handler will take care of binding the object into the GTT
  1231. * (since it may have been evicted to make room for something), allocating
  1232. * a fence register, and mapping the appropriate aperture address into
  1233. * userspace.
  1234. */
  1235. int
  1236. i915_gem_mmap_gtt_ioctl(struct drm_device *dev, void *data,
  1237. struct drm_file *file_priv)
  1238. {
  1239. struct drm_i915_gem_mmap_gtt *args = data;
  1240. struct drm_gem_object *obj;
  1241. struct drm_i915_gem_object *obj_priv;
  1242. int ret;
  1243. if (!(dev->driver->driver_features & DRIVER_GEM))
  1244. return -ENODEV;
  1245. ret = i915_mutex_lock_interruptible(dev);
  1246. if (ret)
  1247. return ret;
  1248. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  1249. if (obj == NULL) {
  1250. ret = -ENOENT;
  1251. goto unlock;
  1252. }
  1253. obj_priv = to_intel_bo(obj);
  1254. if (obj_priv->madv != I915_MADV_WILLNEED) {
  1255. DRM_ERROR("Attempting to mmap a purgeable buffer\n");
  1256. ret = -EINVAL;
  1257. goto out;
  1258. }
  1259. if (!obj_priv->mmap_offset) {
  1260. ret = i915_gem_create_mmap_offset(obj);
  1261. if (ret)
  1262. goto out;
  1263. }
  1264. args->offset = obj_priv->mmap_offset;
  1265. /*
  1266. * Pull it into the GTT so that we have a page list (makes the
  1267. * initial fault faster and any subsequent flushing possible).
  1268. */
  1269. if (!obj_priv->agp_mem) {
  1270. ret = i915_gem_object_bind_to_gtt(obj, 0);
  1271. if (ret)
  1272. goto out;
  1273. }
  1274. out:
  1275. drm_gem_object_unreference(obj);
  1276. unlock:
  1277. mutex_unlock(&dev->struct_mutex);
  1278. return ret;
  1279. }
  1280. static void
  1281. i915_gem_object_put_pages(struct drm_gem_object *obj)
  1282. {
  1283. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1284. int page_count = obj->size / PAGE_SIZE;
  1285. int i;
  1286. BUG_ON(obj_priv->pages_refcount == 0);
  1287. BUG_ON(obj_priv->madv == __I915_MADV_PURGED);
  1288. if (--obj_priv->pages_refcount != 0)
  1289. return;
  1290. if (obj_priv->tiling_mode != I915_TILING_NONE)
  1291. i915_gem_object_save_bit_17_swizzle(obj);
  1292. if (obj_priv->madv == I915_MADV_DONTNEED)
  1293. obj_priv->dirty = 0;
  1294. for (i = 0; i < page_count; i++) {
  1295. if (obj_priv->dirty)
  1296. set_page_dirty(obj_priv->pages[i]);
  1297. if (obj_priv->madv == I915_MADV_WILLNEED)
  1298. mark_page_accessed(obj_priv->pages[i]);
  1299. page_cache_release(obj_priv->pages[i]);
  1300. }
  1301. obj_priv->dirty = 0;
  1302. drm_free_large(obj_priv->pages);
  1303. obj_priv->pages = NULL;
  1304. }
  1305. static uint32_t
  1306. i915_gem_next_request_seqno(struct drm_device *dev,
  1307. struct intel_ring_buffer *ring)
  1308. {
  1309. drm_i915_private_t *dev_priv = dev->dev_private;
  1310. ring->outstanding_lazy_request = true;
  1311. return dev_priv->next_seqno;
  1312. }
  1313. static void
  1314. i915_gem_object_move_to_active(struct drm_gem_object *obj,
  1315. struct intel_ring_buffer *ring)
  1316. {
  1317. struct drm_device *dev = obj->dev;
  1318. struct drm_i915_private *dev_priv = dev->dev_private;
  1319. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1320. uint32_t seqno = i915_gem_next_request_seqno(dev, ring);
  1321. BUG_ON(ring == NULL);
  1322. obj_priv->ring = ring;
  1323. /* Add a reference if we're newly entering the active list. */
  1324. if (!obj_priv->active) {
  1325. drm_gem_object_reference(obj);
  1326. obj_priv->active = 1;
  1327. }
  1328. /* Move from whatever list we were on to the tail of execution. */
  1329. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.active_list);
  1330. list_move_tail(&obj_priv->ring_list, &ring->active_list);
  1331. obj_priv->last_rendering_seqno = seqno;
  1332. }
  1333. static void
  1334. i915_gem_object_move_to_flushing(struct drm_gem_object *obj)
  1335. {
  1336. struct drm_device *dev = obj->dev;
  1337. drm_i915_private_t *dev_priv = dev->dev_private;
  1338. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1339. BUG_ON(!obj_priv->active);
  1340. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.flushing_list);
  1341. list_del_init(&obj_priv->ring_list);
  1342. obj_priv->last_rendering_seqno = 0;
  1343. }
  1344. /* Immediately discard the backing storage */
  1345. static void
  1346. i915_gem_object_truncate(struct drm_gem_object *obj)
  1347. {
  1348. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1349. struct inode *inode;
  1350. /* Our goal here is to return as much of the memory as
  1351. * is possible back to the system as we are called from OOM.
  1352. * To do this we must instruct the shmfs to drop all of its
  1353. * backing pages, *now*. Here we mirror the actions taken
  1354. * when by shmem_delete_inode() to release the backing store.
  1355. */
  1356. inode = obj->filp->f_path.dentry->d_inode;
  1357. truncate_inode_pages(inode->i_mapping, 0);
  1358. if (inode->i_op->truncate_range)
  1359. inode->i_op->truncate_range(inode, 0, (loff_t)-1);
  1360. obj_priv->madv = __I915_MADV_PURGED;
  1361. }
  1362. static inline int
  1363. i915_gem_object_is_purgeable(struct drm_i915_gem_object *obj_priv)
  1364. {
  1365. return obj_priv->madv == I915_MADV_DONTNEED;
  1366. }
  1367. static void
  1368. i915_gem_object_move_to_inactive(struct drm_gem_object *obj)
  1369. {
  1370. struct drm_device *dev = obj->dev;
  1371. drm_i915_private_t *dev_priv = dev->dev_private;
  1372. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1373. if (obj_priv->pin_count != 0)
  1374. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.pinned_list);
  1375. else
  1376. list_move_tail(&obj_priv->mm_list, &dev_priv->mm.inactive_list);
  1377. list_del_init(&obj_priv->ring_list);
  1378. BUG_ON(!list_empty(&obj_priv->gpu_write_list));
  1379. obj_priv->last_rendering_seqno = 0;
  1380. obj_priv->ring = NULL;
  1381. if (obj_priv->active) {
  1382. obj_priv->active = 0;
  1383. drm_gem_object_unreference(obj);
  1384. }
  1385. WARN_ON(i915_verify_lists(dev));
  1386. }
  1387. static void
  1388. i915_gem_process_flushing_list(struct drm_device *dev,
  1389. uint32_t flush_domains,
  1390. struct intel_ring_buffer *ring)
  1391. {
  1392. drm_i915_private_t *dev_priv = dev->dev_private;
  1393. struct drm_i915_gem_object *obj_priv, *next;
  1394. list_for_each_entry_safe(obj_priv, next,
  1395. &ring->gpu_write_list,
  1396. gpu_write_list) {
  1397. struct drm_gem_object *obj = &obj_priv->base;
  1398. if (obj->write_domain & flush_domains) {
  1399. uint32_t old_write_domain = obj->write_domain;
  1400. obj->write_domain = 0;
  1401. list_del_init(&obj_priv->gpu_write_list);
  1402. i915_gem_object_move_to_active(obj, ring);
  1403. /* update the fence lru list */
  1404. if (obj_priv->fence_reg != I915_FENCE_REG_NONE) {
  1405. struct drm_i915_fence_reg *reg =
  1406. &dev_priv->fence_regs[obj_priv->fence_reg];
  1407. list_move_tail(&reg->lru_list,
  1408. &dev_priv->mm.fence_list);
  1409. }
  1410. trace_i915_gem_object_change_domain(obj,
  1411. obj->read_domains,
  1412. old_write_domain);
  1413. }
  1414. }
  1415. }
  1416. uint32_t
  1417. i915_add_request(struct drm_device *dev,
  1418. struct drm_file *file,
  1419. struct drm_i915_gem_request *request,
  1420. struct intel_ring_buffer *ring)
  1421. {
  1422. drm_i915_private_t *dev_priv = dev->dev_private;
  1423. struct drm_i915_file_private *file_priv = NULL;
  1424. uint32_t seqno;
  1425. int was_empty;
  1426. if (file != NULL)
  1427. file_priv = file->driver_priv;
  1428. if (request == NULL) {
  1429. request = kzalloc(sizeof(*request), GFP_KERNEL);
  1430. if (request == NULL)
  1431. return 0;
  1432. }
  1433. seqno = ring->add_request(dev, ring, 0);
  1434. ring->outstanding_lazy_request = false;
  1435. request->seqno = seqno;
  1436. request->ring = ring;
  1437. request->emitted_jiffies = jiffies;
  1438. was_empty = list_empty(&ring->request_list);
  1439. list_add_tail(&request->list, &ring->request_list);
  1440. if (file_priv) {
  1441. spin_lock(&file_priv->mm.lock);
  1442. request->file_priv = file_priv;
  1443. list_add_tail(&request->client_list,
  1444. &file_priv->mm.request_list);
  1445. spin_unlock(&file_priv->mm.lock);
  1446. }
  1447. if (!dev_priv->mm.suspended) {
  1448. mod_timer(&dev_priv->hangcheck_timer,
  1449. jiffies + msecs_to_jiffies(DRM_I915_HANGCHECK_PERIOD));
  1450. if (was_empty)
  1451. queue_delayed_work(dev_priv->wq,
  1452. &dev_priv->mm.retire_work, HZ);
  1453. }
  1454. return seqno;
  1455. }
  1456. /**
  1457. * Command execution barrier
  1458. *
  1459. * Ensures that all commands in the ring are finished
  1460. * before signalling the CPU
  1461. */
  1462. static void
  1463. i915_retire_commands(struct drm_device *dev, struct intel_ring_buffer *ring)
  1464. {
  1465. uint32_t flush_domains = 0;
  1466. /* The sampler always gets flushed on i965 (sigh) */
  1467. if (INTEL_INFO(dev)->gen >= 4)
  1468. flush_domains |= I915_GEM_DOMAIN_SAMPLER;
  1469. ring->flush(dev, ring,
  1470. I915_GEM_DOMAIN_COMMAND, flush_domains);
  1471. }
  1472. static inline void
  1473. i915_gem_request_remove_from_client(struct drm_i915_gem_request *request)
  1474. {
  1475. struct drm_i915_file_private *file_priv = request->file_priv;
  1476. if (!file_priv)
  1477. return;
  1478. spin_lock(&file_priv->mm.lock);
  1479. list_del(&request->client_list);
  1480. request->file_priv = NULL;
  1481. spin_unlock(&file_priv->mm.lock);
  1482. }
  1483. static void i915_gem_reset_ring_lists(struct drm_i915_private *dev_priv,
  1484. struct intel_ring_buffer *ring)
  1485. {
  1486. while (!list_empty(&ring->request_list)) {
  1487. struct drm_i915_gem_request *request;
  1488. request = list_first_entry(&ring->request_list,
  1489. struct drm_i915_gem_request,
  1490. list);
  1491. list_del(&request->list);
  1492. i915_gem_request_remove_from_client(request);
  1493. kfree(request);
  1494. }
  1495. while (!list_empty(&ring->active_list)) {
  1496. struct drm_i915_gem_object *obj_priv;
  1497. obj_priv = list_first_entry(&ring->active_list,
  1498. struct drm_i915_gem_object,
  1499. ring_list);
  1500. obj_priv->base.write_domain = 0;
  1501. list_del_init(&obj_priv->gpu_write_list);
  1502. i915_gem_object_move_to_inactive(&obj_priv->base);
  1503. }
  1504. }
  1505. void i915_gem_reset(struct drm_device *dev)
  1506. {
  1507. struct drm_i915_private *dev_priv = dev->dev_private;
  1508. struct drm_i915_gem_object *obj_priv;
  1509. int i;
  1510. i915_gem_reset_ring_lists(dev_priv, &dev_priv->render_ring);
  1511. i915_gem_reset_ring_lists(dev_priv, &dev_priv->bsd_ring);
  1512. i915_gem_reset_ring_lists(dev_priv, &dev_priv->blt_ring);
  1513. /* Remove anything from the flushing lists. The GPU cache is likely
  1514. * to be lost on reset along with the data, so simply move the
  1515. * lost bo to the inactive list.
  1516. */
  1517. while (!list_empty(&dev_priv->mm.flushing_list)) {
  1518. obj_priv = list_first_entry(&dev_priv->mm.flushing_list,
  1519. struct drm_i915_gem_object,
  1520. mm_list);
  1521. obj_priv->base.write_domain = 0;
  1522. list_del_init(&obj_priv->gpu_write_list);
  1523. i915_gem_object_move_to_inactive(&obj_priv->base);
  1524. }
  1525. /* Move everything out of the GPU domains to ensure we do any
  1526. * necessary invalidation upon reuse.
  1527. */
  1528. list_for_each_entry(obj_priv,
  1529. &dev_priv->mm.inactive_list,
  1530. mm_list)
  1531. {
  1532. obj_priv->base.read_domains &= ~I915_GEM_GPU_DOMAINS;
  1533. }
  1534. /* The fence registers are invalidated so clear them out */
  1535. for (i = 0; i < 16; i++) {
  1536. struct drm_i915_fence_reg *reg;
  1537. reg = &dev_priv->fence_regs[i];
  1538. if (!reg->obj)
  1539. continue;
  1540. i915_gem_clear_fence_reg(reg->obj);
  1541. }
  1542. }
  1543. /**
  1544. * This function clears the request list as sequence numbers are passed.
  1545. */
  1546. static void
  1547. i915_gem_retire_requests_ring(struct drm_device *dev,
  1548. struct intel_ring_buffer *ring)
  1549. {
  1550. drm_i915_private_t *dev_priv = dev->dev_private;
  1551. uint32_t seqno;
  1552. if (!ring->status_page.page_addr ||
  1553. list_empty(&ring->request_list))
  1554. return;
  1555. WARN_ON(i915_verify_lists(dev));
  1556. seqno = ring->get_seqno(dev, ring);
  1557. while (!list_empty(&ring->request_list)) {
  1558. struct drm_i915_gem_request *request;
  1559. request = list_first_entry(&ring->request_list,
  1560. struct drm_i915_gem_request,
  1561. list);
  1562. if (!i915_seqno_passed(seqno, request->seqno))
  1563. break;
  1564. trace_i915_gem_request_retire(dev, request->seqno);
  1565. list_del(&request->list);
  1566. i915_gem_request_remove_from_client(request);
  1567. kfree(request);
  1568. }
  1569. /* Move any buffers on the active list that are no longer referenced
  1570. * by the ringbuffer to the flushing/inactive lists as appropriate.
  1571. */
  1572. while (!list_empty(&ring->active_list)) {
  1573. struct drm_gem_object *obj;
  1574. struct drm_i915_gem_object *obj_priv;
  1575. obj_priv = list_first_entry(&ring->active_list,
  1576. struct drm_i915_gem_object,
  1577. ring_list);
  1578. if (!i915_seqno_passed(seqno, obj_priv->last_rendering_seqno))
  1579. break;
  1580. obj = &obj_priv->base;
  1581. if (obj->write_domain != 0)
  1582. i915_gem_object_move_to_flushing(obj);
  1583. else
  1584. i915_gem_object_move_to_inactive(obj);
  1585. }
  1586. if (unlikely (dev_priv->trace_irq_seqno &&
  1587. i915_seqno_passed(dev_priv->trace_irq_seqno, seqno))) {
  1588. ring->user_irq_put(dev, ring);
  1589. dev_priv->trace_irq_seqno = 0;
  1590. }
  1591. WARN_ON(i915_verify_lists(dev));
  1592. }
  1593. void
  1594. i915_gem_retire_requests(struct drm_device *dev)
  1595. {
  1596. drm_i915_private_t *dev_priv = dev->dev_private;
  1597. if (!list_empty(&dev_priv->mm.deferred_free_list)) {
  1598. struct drm_i915_gem_object *obj_priv, *tmp;
  1599. /* We must be careful that during unbind() we do not
  1600. * accidentally infinitely recurse into retire requests.
  1601. * Currently:
  1602. * retire -> free -> unbind -> wait -> retire_ring
  1603. */
  1604. list_for_each_entry_safe(obj_priv, tmp,
  1605. &dev_priv->mm.deferred_free_list,
  1606. mm_list)
  1607. i915_gem_free_object_tail(&obj_priv->base);
  1608. }
  1609. i915_gem_retire_requests_ring(dev, &dev_priv->render_ring);
  1610. i915_gem_retire_requests_ring(dev, &dev_priv->bsd_ring);
  1611. i915_gem_retire_requests_ring(dev, &dev_priv->blt_ring);
  1612. }
  1613. static void
  1614. i915_gem_retire_work_handler(struct work_struct *work)
  1615. {
  1616. drm_i915_private_t *dev_priv;
  1617. struct drm_device *dev;
  1618. dev_priv = container_of(work, drm_i915_private_t,
  1619. mm.retire_work.work);
  1620. dev = dev_priv->dev;
  1621. /* Come back later if the device is busy... */
  1622. if (!mutex_trylock(&dev->struct_mutex)) {
  1623. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, HZ);
  1624. return;
  1625. }
  1626. i915_gem_retire_requests(dev);
  1627. if (!dev_priv->mm.suspended &&
  1628. (!list_empty(&dev_priv->render_ring.request_list) ||
  1629. !list_empty(&dev_priv->bsd_ring.request_list) ||
  1630. !list_empty(&dev_priv->blt_ring.request_list)))
  1631. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, HZ);
  1632. mutex_unlock(&dev->struct_mutex);
  1633. }
  1634. int
  1635. i915_do_wait_request(struct drm_device *dev, uint32_t seqno,
  1636. bool interruptible, struct intel_ring_buffer *ring)
  1637. {
  1638. drm_i915_private_t *dev_priv = dev->dev_private;
  1639. u32 ier;
  1640. int ret = 0;
  1641. BUG_ON(seqno == 0);
  1642. if (atomic_read(&dev_priv->mm.wedged))
  1643. return -EAGAIN;
  1644. if (ring->outstanding_lazy_request) {
  1645. seqno = i915_add_request(dev, NULL, NULL, ring);
  1646. if (seqno == 0)
  1647. return -ENOMEM;
  1648. }
  1649. BUG_ON(seqno == dev_priv->next_seqno);
  1650. if (!i915_seqno_passed(ring->get_seqno(dev, ring), seqno)) {
  1651. if (HAS_PCH_SPLIT(dev))
  1652. ier = I915_READ(DEIER) | I915_READ(GTIER);
  1653. else
  1654. ier = I915_READ(IER);
  1655. if (!ier) {
  1656. DRM_ERROR("something (likely vbetool) disabled "
  1657. "interrupts, re-enabling\n");
  1658. i915_driver_irq_preinstall(dev);
  1659. i915_driver_irq_postinstall(dev);
  1660. }
  1661. trace_i915_gem_request_wait_begin(dev, seqno);
  1662. ring->waiting_gem_seqno = seqno;
  1663. ring->user_irq_get(dev, ring);
  1664. if (interruptible)
  1665. ret = wait_event_interruptible(ring->irq_queue,
  1666. i915_seqno_passed(
  1667. ring->get_seqno(dev, ring), seqno)
  1668. || atomic_read(&dev_priv->mm.wedged));
  1669. else
  1670. wait_event(ring->irq_queue,
  1671. i915_seqno_passed(
  1672. ring->get_seqno(dev, ring), seqno)
  1673. || atomic_read(&dev_priv->mm.wedged));
  1674. ring->user_irq_put(dev, ring);
  1675. ring->waiting_gem_seqno = 0;
  1676. trace_i915_gem_request_wait_end(dev, seqno);
  1677. }
  1678. if (atomic_read(&dev_priv->mm.wedged))
  1679. ret = -EAGAIN;
  1680. if (ret && ret != -ERESTARTSYS)
  1681. DRM_ERROR("%s returns %d (awaiting %d at %d, next %d)\n",
  1682. __func__, ret, seqno, ring->get_seqno(dev, ring),
  1683. dev_priv->next_seqno);
  1684. /* Directly dispatch request retiring. While we have the work queue
  1685. * to handle this, the waiter on a request often wants an associated
  1686. * buffer to have made it to the inactive list, and we would need
  1687. * a separate wait queue to handle that.
  1688. */
  1689. if (ret == 0)
  1690. i915_gem_retire_requests_ring(dev, ring);
  1691. return ret;
  1692. }
  1693. /**
  1694. * Waits for a sequence number to be signaled, and cleans up the
  1695. * request and object lists appropriately for that event.
  1696. */
  1697. static int
  1698. i915_wait_request(struct drm_device *dev, uint32_t seqno,
  1699. struct intel_ring_buffer *ring)
  1700. {
  1701. return i915_do_wait_request(dev, seqno, 1, ring);
  1702. }
  1703. static void
  1704. i915_gem_flush_ring(struct drm_device *dev,
  1705. struct drm_file *file_priv,
  1706. struct intel_ring_buffer *ring,
  1707. uint32_t invalidate_domains,
  1708. uint32_t flush_domains)
  1709. {
  1710. ring->flush(dev, ring, invalidate_domains, flush_domains);
  1711. i915_gem_process_flushing_list(dev, flush_domains, ring);
  1712. }
  1713. static void
  1714. i915_gem_flush(struct drm_device *dev,
  1715. struct drm_file *file_priv,
  1716. uint32_t invalidate_domains,
  1717. uint32_t flush_domains,
  1718. uint32_t flush_rings)
  1719. {
  1720. drm_i915_private_t *dev_priv = dev->dev_private;
  1721. if (flush_domains & I915_GEM_DOMAIN_CPU)
  1722. drm_agp_chipset_flush(dev);
  1723. if ((flush_domains | invalidate_domains) & I915_GEM_GPU_DOMAINS) {
  1724. if (flush_rings & RING_RENDER)
  1725. i915_gem_flush_ring(dev, file_priv,
  1726. &dev_priv->render_ring,
  1727. invalidate_domains, flush_domains);
  1728. if (flush_rings & RING_BSD)
  1729. i915_gem_flush_ring(dev, file_priv,
  1730. &dev_priv->bsd_ring,
  1731. invalidate_domains, flush_domains);
  1732. if (flush_rings & RING_BLT)
  1733. i915_gem_flush_ring(dev, file_priv,
  1734. &dev_priv->blt_ring,
  1735. invalidate_domains, flush_domains);
  1736. }
  1737. }
  1738. /**
  1739. * Ensures that all rendering to the object has completed and the object is
  1740. * safe to unbind from the GTT or access from the CPU.
  1741. */
  1742. static int
  1743. i915_gem_object_wait_rendering(struct drm_gem_object *obj,
  1744. bool interruptible)
  1745. {
  1746. struct drm_device *dev = obj->dev;
  1747. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1748. int ret;
  1749. /* This function only exists to support waiting for existing rendering,
  1750. * not for emitting required flushes.
  1751. */
  1752. BUG_ON((obj->write_domain & I915_GEM_GPU_DOMAINS) != 0);
  1753. /* If there is rendering queued on the buffer being evicted, wait for
  1754. * it.
  1755. */
  1756. if (obj_priv->active) {
  1757. ret = i915_do_wait_request(dev,
  1758. obj_priv->last_rendering_seqno,
  1759. interruptible,
  1760. obj_priv->ring);
  1761. if (ret)
  1762. return ret;
  1763. }
  1764. return 0;
  1765. }
  1766. /**
  1767. * Unbinds an object from the GTT aperture.
  1768. */
  1769. int
  1770. i915_gem_object_unbind(struct drm_gem_object *obj)
  1771. {
  1772. struct drm_device *dev = obj->dev;
  1773. struct drm_i915_private *dev_priv = dev->dev_private;
  1774. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1775. int ret = 0;
  1776. if (obj_priv->gtt_space == NULL)
  1777. return 0;
  1778. if (obj_priv->pin_count != 0) {
  1779. DRM_ERROR("Attempting to unbind pinned buffer\n");
  1780. return -EINVAL;
  1781. }
  1782. /* blow away mappings if mapped through GTT */
  1783. i915_gem_release_mmap(obj);
  1784. /* Move the object to the CPU domain to ensure that
  1785. * any possible CPU writes while it's not in the GTT
  1786. * are flushed when we go to remap it. This will
  1787. * also ensure that all pending GPU writes are finished
  1788. * before we unbind.
  1789. */
  1790. ret = i915_gem_object_set_to_cpu_domain(obj, 1);
  1791. if (ret == -ERESTARTSYS)
  1792. return ret;
  1793. /* Continue on if we fail due to EIO, the GPU is hung so we
  1794. * should be safe and we need to cleanup or else we might
  1795. * cause memory corruption through use-after-free.
  1796. */
  1797. if (ret) {
  1798. i915_gem_clflush_object(obj);
  1799. obj->read_domains = obj->write_domain = I915_GEM_DOMAIN_CPU;
  1800. }
  1801. /* release the fence reg _after_ flushing */
  1802. if (obj_priv->fence_reg != I915_FENCE_REG_NONE)
  1803. i915_gem_clear_fence_reg(obj);
  1804. drm_unbind_agp(obj_priv->agp_mem);
  1805. drm_free_agp(obj_priv->agp_mem, obj->size / PAGE_SIZE);
  1806. i915_gem_object_put_pages(obj);
  1807. BUG_ON(obj_priv->pages_refcount);
  1808. i915_gem_info_remove_gtt(dev_priv, obj->size);
  1809. list_del_init(&obj_priv->mm_list);
  1810. drm_mm_put_block(obj_priv->gtt_space);
  1811. obj_priv->gtt_space = NULL;
  1812. obj_priv->gtt_offset = 0;
  1813. if (i915_gem_object_is_purgeable(obj_priv))
  1814. i915_gem_object_truncate(obj);
  1815. trace_i915_gem_object_unbind(obj);
  1816. return ret;
  1817. }
  1818. static int i915_ring_idle(struct drm_device *dev,
  1819. struct intel_ring_buffer *ring)
  1820. {
  1821. if (list_empty(&ring->gpu_write_list) && list_empty(&ring->active_list))
  1822. return 0;
  1823. i915_gem_flush_ring(dev, NULL, ring,
  1824. I915_GEM_GPU_DOMAINS, I915_GEM_GPU_DOMAINS);
  1825. return i915_wait_request(dev,
  1826. i915_gem_next_request_seqno(dev, ring),
  1827. ring);
  1828. }
  1829. int
  1830. i915_gpu_idle(struct drm_device *dev)
  1831. {
  1832. drm_i915_private_t *dev_priv = dev->dev_private;
  1833. bool lists_empty;
  1834. int ret;
  1835. lists_empty = (list_empty(&dev_priv->mm.flushing_list) &&
  1836. list_empty(&dev_priv->mm.active_list));
  1837. if (lists_empty)
  1838. return 0;
  1839. /* Flush everything onto the inactive list. */
  1840. ret = i915_ring_idle(dev, &dev_priv->render_ring);
  1841. if (ret)
  1842. return ret;
  1843. ret = i915_ring_idle(dev, &dev_priv->bsd_ring);
  1844. if (ret)
  1845. return ret;
  1846. ret = i915_ring_idle(dev, &dev_priv->blt_ring);
  1847. if (ret)
  1848. return ret;
  1849. return 0;
  1850. }
  1851. static int
  1852. i915_gem_object_get_pages(struct drm_gem_object *obj,
  1853. gfp_t gfpmask)
  1854. {
  1855. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1856. int page_count, i;
  1857. struct address_space *mapping;
  1858. struct inode *inode;
  1859. struct page *page;
  1860. BUG_ON(obj_priv->pages_refcount
  1861. == DRM_I915_GEM_OBJECT_MAX_PAGES_REFCOUNT);
  1862. if (obj_priv->pages_refcount++ != 0)
  1863. return 0;
  1864. /* Get the list of pages out of our struct file. They'll be pinned
  1865. * at this point until we release them.
  1866. */
  1867. page_count = obj->size / PAGE_SIZE;
  1868. BUG_ON(obj_priv->pages != NULL);
  1869. obj_priv->pages = drm_calloc_large(page_count, sizeof(struct page *));
  1870. if (obj_priv->pages == NULL) {
  1871. obj_priv->pages_refcount--;
  1872. return -ENOMEM;
  1873. }
  1874. inode = obj->filp->f_path.dentry->d_inode;
  1875. mapping = inode->i_mapping;
  1876. for (i = 0; i < page_count; i++) {
  1877. page = read_cache_page_gfp(mapping, i,
  1878. GFP_HIGHUSER |
  1879. __GFP_COLD |
  1880. __GFP_RECLAIMABLE |
  1881. gfpmask);
  1882. if (IS_ERR(page))
  1883. goto err_pages;
  1884. obj_priv->pages[i] = page;
  1885. }
  1886. if (obj_priv->tiling_mode != I915_TILING_NONE)
  1887. i915_gem_object_do_bit_17_swizzle(obj);
  1888. return 0;
  1889. err_pages:
  1890. while (i--)
  1891. page_cache_release(obj_priv->pages[i]);
  1892. drm_free_large(obj_priv->pages);
  1893. obj_priv->pages = NULL;
  1894. obj_priv->pages_refcount--;
  1895. return PTR_ERR(page);
  1896. }
  1897. static void sandybridge_write_fence_reg(struct drm_i915_fence_reg *reg)
  1898. {
  1899. struct drm_gem_object *obj = reg->obj;
  1900. struct drm_device *dev = obj->dev;
  1901. drm_i915_private_t *dev_priv = dev->dev_private;
  1902. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1903. int regnum = obj_priv->fence_reg;
  1904. uint64_t val;
  1905. val = (uint64_t)((obj_priv->gtt_offset + obj->size - 4096) &
  1906. 0xfffff000) << 32;
  1907. val |= obj_priv->gtt_offset & 0xfffff000;
  1908. val |= (uint64_t)((obj_priv->stride / 128) - 1) <<
  1909. SANDYBRIDGE_FENCE_PITCH_SHIFT;
  1910. if (obj_priv->tiling_mode == I915_TILING_Y)
  1911. val |= 1 << I965_FENCE_TILING_Y_SHIFT;
  1912. val |= I965_FENCE_REG_VALID;
  1913. I915_WRITE64(FENCE_REG_SANDYBRIDGE_0 + (regnum * 8), val);
  1914. }
  1915. static void i965_write_fence_reg(struct drm_i915_fence_reg *reg)
  1916. {
  1917. struct drm_gem_object *obj = reg->obj;
  1918. struct drm_device *dev = obj->dev;
  1919. drm_i915_private_t *dev_priv = dev->dev_private;
  1920. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1921. int regnum = obj_priv->fence_reg;
  1922. uint64_t val;
  1923. val = (uint64_t)((obj_priv->gtt_offset + obj->size - 4096) &
  1924. 0xfffff000) << 32;
  1925. val |= obj_priv->gtt_offset & 0xfffff000;
  1926. val |= ((obj_priv->stride / 128) - 1) << I965_FENCE_PITCH_SHIFT;
  1927. if (obj_priv->tiling_mode == I915_TILING_Y)
  1928. val |= 1 << I965_FENCE_TILING_Y_SHIFT;
  1929. val |= I965_FENCE_REG_VALID;
  1930. I915_WRITE64(FENCE_REG_965_0 + (regnum * 8), val);
  1931. }
  1932. static void i915_write_fence_reg(struct drm_i915_fence_reg *reg)
  1933. {
  1934. struct drm_gem_object *obj = reg->obj;
  1935. struct drm_device *dev = obj->dev;
  1936. drm_i915_private_t *dev_priv = dev->dev_private;
  1937. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1938. int regnum = obj_priv->fence_reg;
  1939. int tile_width;
  1940. uint32_t fence_reg, val;
  1941. uint32_t pitch_val;
  1942. if ((obj_priv->gtt_offset & ~I915_FENCE_START_MASK) ||
  1943. (obj_priv->gtt_offset & (obj->size - 1))) {
  1944. WARN(1, "%s: object 0x%08x not 1M or size (0x%zx) aligned\n",
  1945. __func__, obj_priv->gtt_offset, obj->size);
  1946. return;
  1947. }
  1948. if (obj_priv->tiling_mode == I915_TILING_Y &&
  1949. HAS_128_BYTE_Y_TILING(dev))
  1950. tile_width = 128;
  1951. else
  1952. tile_width = 512;
  1953. /* Note: pitch better be a power of two tile widths */
  1954. pitch_val = obj_priv->stride / tile_width;
  1955. pitch_val = ffs(pitch_val) - 1;
  1956. if (obj_priv->tiling_mode == I915_TILING_Y &&
  1957. HAS_128_BYTE_Y_TILING(dev))
  1958. WARN_ON(pitch_val > I830_FENCE_MAX_PITCH_VAL);
  1959. else
  1960. WARN_ON(pitch_val > I915_FENCE_MAX_PITCH_VAL);
  1961. val = obj_priv->gtt_offset;
  1962. if (obj_priv->tiling_mode == I915_TILING_Y)
  1963. val |= 1 << I830_FENCE_TILING_Y_SHIFT;
  1964. val |= I915_FENCE_SIZE_BITS(obj->size);
  1965. val |= pitch_val << I830_FENCE_PITCH_SHIFT;
  1966. val |= I830_FENCE_REG_VALID;
  1967. if (regnum < 8)
  1968. fence_reg = FENCE_REG_830_0 + (regnum * 4);
  1969. else
  1970. fence_reg = FENCE_REG_945_8 + ((regnum - 8) * 4);
  1971. I915_WRITE(fence_reg, val);
  1972. }
  1973. static void i830_write_fence_reg(struct drm_i915_fence_reg *reg)
  1974. {
  1975. struct drm_gem_object *obj = reg->obj;
  1976. struct drm_device *dev = obj->dev;
  1977. drm_i915_private_t *dev_priv = dev->dev_private;
  1978. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  1979. int regnum = obj_priv->fence_reg;
  1980. uint32_t val;
  1981. uint32_t pitch_val;
  1982. uint32_t fence_size_bits;
  1983. if ((obj_priv->gtt_offset & ~I830_FENCE_START_MASK) ||
  1984. (obj_priv->gtt_offset & (obj->size - 1))) {
  1985. WARN(1, "%s: object 0x%08x not 512K or size aligned\n",
  1986. __func__, obj_priv->gtt_offset);
  1987. return;
  1988. }
  1989. pitch_val = obj_priv->stride / 128;
  1990. pitch_val = ffs(pitch_val) - 1;
  1991. WARN_ON(pitch_val > I830_FENCE_MAX_PITCH_VAL);
  1992. val = obj_priv->gtt_offset;
  1993. if (obj_priv->tiling_mode == I915_TILING_Y)
  1994. val |= 1 << I830_FENCE_TILING_Y_SHIFT;
  1995. fence_size_bits = I830_FENCE_SIZE_BITS(obj->size);
  1996. WARN_ON(fence_size_bits & ~0x00000f00);
  1997. val |= fence_size_bits;
  1998. val |= pitch_val << I830_FENCE_PITCH_SHIFT;
  1999. val |= I830_FENCE_REG_VALID;
  2000. I915_WRITE(FENCE_REG_830_0 + (regnum * 4), val);
  2001. }
  2002. static int i915_find_fence_reg(struct drm_device *dev,
  2003. bool interruptible)
  2004. {
  2005. struct drm_i915_fence_reg *reg = NULL;
  2006. struct drm_i915_gem_object *obj_priv = NULL;
  2007. struct drm_i915_private *dev_priv = dev->dev_private;
  2008. struct drm_gem_object *obj = NULL;
  2009. int i, avail, ret;
  2010. /* First try to find a free reg */
  2011. avail = 0;
  2012. for (i = dev_priv->fence_reg_start; i < dev_priv->num_fence_regs; i++) {
  2013. reg = &dev_priv->fence_regs[i];
  2014. if (!reg->obj)
  2015. return i;
  2016. obj_priv = to_intel_bo(reg->obj);
  2017. if (!obj_priv->pin_count)
  2018. avail++;
  2019. }
  2020. if (avail == 0)
  2021. return -ENOSPC;
  2022. /* None available, try to steal one or wait for a user to finish */
  2023. i = I915_FENCE_REG_NONE;
  2024. list_for_each_entry(reg, &dev_priv->mm.fence_list,
  2025. lru_list) {
  2026. obj = reg->obj;
  2027. obj_priv = to_intel_bo(obj);
  2028. if (obj_priv->pin_count)
  2029. continue;
  2030. /* found one! */
  2031. i = obj_priv->fence_reg;
  2032. break;
  2033. }
  2034. BUG_ON(i == I915_FENCE_REG_NONE);
  2035. /* We only have a reference on obj from the active list. put_fence_reg
  2036. * might drop that one, causing a use-after-free in it. So hold a
  2037. * private reference to obj like the other callers of put_fence_reg
  2038. * (set_tiling ioctl) do. */
  2039. drm_gem_object_reference(obj);
  2040. ret = i915_gem_object_put_fence_reg(obj, interruptible);
  2041. drm_gem_object_unreference(obj);
  2042. if (ret != 0)
  2043. return ret;
  2044. return i;
  2045. }
  2046. /**
  2047. * i915_gem_object_get_fence_reg - set up a fence reg for an object
  2048. * @obj: object to map through a fence reg
  2049. *
  2050. * When mapping objects through the GTT, userspace wants to be able to write
  2051. * to them without having to worry about swizzling if the object is tiled.
  2052. *
  2053. * This function walks the fence regs looking for a free one for @obj,
  2054. * stealing one if it can't find any.
  2055. *
  2056. * It then sets up the reg based on the object's properties: address, pitch
  2057. * and tiling format.
  2058. */
  2059. int
  2060. i915_gem_object_get_fence_reg(struct drm_gem_object *obj,
  2061. bool interruptible)
  2062. {
  2063. struct drm_device *dev = obj->dev;
  2064. struct drm_i915_private *dev_priv = dev->dev_private;
  2065. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2066. struct drm_i915_fence_reg *reg = NULL;
  2067. int ret;
  2068. /* Just update our place in the LRU if our fence is getting used. */
  2069. if (obj_priv->fence_reg != I915_FENCE_REG_NONE) {
  2070. reg = &dev_priv->fence_regs[obj_priv->fence_reg];
  2071. list_move_tail(&reg->lru_list, &dev_priv->mm.fence_list);
  2072. return 0;
  2073. }
  2074. switch (obj_priv->tiling_mode) {
  2075. case I915_TILING_NONE:
  2076. WARN(1, "allocating a fence for non-tiled object?\n");
  2077. break;
  2078. case I915_TILING_X:
  2079. if (!obj_priv->stride)
  2080. return -EINVAL;
  2081. WARN((obj_priv->stride & (512 - 1)),
  2082. "object 0x%08x is X tiled but has non-512B pitch\n",
  2083. obj_priv->gtt_offset);
  2084. break;
  2085. case I915_TILING_Y:
  2086. if (!obj_priv->stride)
  2087. return -EINVAL;
  2088. WARN((obj_priv->stride & (128 - 1)),
  2089. "object 0x%08x is Y tiled but has non-128B pitch\n",
  2090. obj_priv->gtt_offset);
  2091. break;
  2092. }
  2093. ret = i915_find_fence_reg(dev, interruptible);
  2094. if (ret < 0)
  2095. return ret;
  2096. obj_priv->fence_reg = ret;
  2097. reg = &dev_priv->fence_regs[obj_priv->fence_reg];
  2098. list_add_tail(&reg->lru_list, &dev_priv->mm.fence_list);
  2099. reg->obj = obj;
  2100. switch (INTEL_INFO(dev)->gen) {
  2101. case 6:
  2102. sandybridge_write_fence_reg(reg);
  2103. break;
  2104. case 5:
  2105. case 4:
  2106. i965_write_fence_reg(reg);
  2107. break;
  2108. case 3:
  2109. i915_write_fence_reg(reg);
  2110. break;
  2111. case 2:
  2112. i830_write_fence_reg(reg);
  2113. break;
  2114. }
  2115. trace_i915_gem_object_get_fence(obj, obj_priv->fence_reg,
  2116. obj_priv->tiling_mode);
  2117. return 0;
  2118. }
  2119. /**
  2120. * i915_gem_clear_fence_reg - clear out fence register info
  2121. * @obj: object to clear
  2122. *
  2123. * Zeroes out the fence register itself and clears out the associated
  2124. * data structures in dev_priv and obj_priv.
  2125. */
  2126. static void
  2127. i915_gem_clear_fence_reg(struct drm_gem_object *obj)
  2128. {
  2129. struct drm_device *dev = obj->dev;
  2130. drm_i915_private_t *dev_priv = dev->dev_private;
  2131. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2132. struct drm_i915_fence_reg *reg =
  2133. &dev_priv->fence_regs[obj_priv->fence_reg];
  2134. uint32_t fence_reg;
  2135. switch (INTEL_INFO(dev)->gen) {
  2136. case 6:
  2137. I915_WRITE64(FENCE_REG_SANDYBRIDGE_0 +
  2138. (obj_priv->fence_reg * 8), 0);
  2139. break;
  2140. case 5:
  2141. case 4:
  2142. I915_WRITE64(FENCE_REG_965_0 + (obj_priv->fence_reg * 8), 0);
  2143. break;
  2144. case 3:
  2145. if (obj_priv->fence_reg >= 8)
  2146. fence_reg = FENCE_REG_945_8 + (obj_priv->fence_reg - 8) * 4;
  2147. else
  2148. case 2:
  2149. fence_reg = FENCE_REG_830_0 + obj_priv->fence_reg * 4;
  2150. I915_WRITE(fence_reg, 0);
  2151. break;
  2152. }
  2153. reg->obj = NULL;
  2154. obj_priv->fence_reg = I915_FENCE_REG_NONE;
  2155. list_del_init(&reg->lru_list);
  2156. }
  2157. /**
  2158. * i915_gem_object_put_fence_reg - waits on outstanding fenced access
  2159. * to the buffer to finish, and then resets the fence register.
  2160. * @obj: tiled object holding a fence register.
  2161. * @bool: whether the wait upon the fence is interruptible
  2162. *
  2163. * Zeroes out the fence register itself and clears out the associated
  2164. * data structures in dev_priv and obj_priv.
  2165. */
  2166. int
  2167. i915_gem_object_put_fence_reg(struct drm_gem_object *obj,
  2168. bool interruptible)
  2169. {
  2170. struct drm_device *dev = obj->dev;
  2171. struct drm_i915_private *dev_priv = dev->dev_private;
  2172. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2173. struct drm_i915_fence_reg *reg;
  2174. if (obj_priv->fence_reg == I915_FENCE_REG_NONE)
  2175. return 0;
  2176. /* If we've changed tiling, GTT-mappings of the object
  2177. * need to re-fault to ensure that the correct fence register
  2178. * setup is in place.
  2179. */
  2180. i915_gem_release_mmap(obj);
  2181. /* On the i915, GPU access to tiled buffers is via a fence,
  2182. * therefore we must wait for any outstanding access to complete
  2183. * before clearing the fence.
  2184. */
  2185. reg = &dev_priv->fence_regs[obj_priv->fence_reg];
  2186. if (reg->gpu) {
  2187. int ret;
  2188. ret = i915_gem_object_flush_gpu_write_domain(obj, true);
  2189. if (ret)
  2190. return ret;
  2191. ret = i915_gem_object_wait_rendering(obj, interruptible);
  2192. if (ret)
  2193. return ret;
  2194. reg->gpu = false;
  2195. }
  2196. i915_gem_object_flush_gtt_write_domain(obj);
  2197. i915_gem_clear_fence_reg(obj);
  2198. return 0;
  2199. }
  2200. /**
  2201. * Finds free space in the GTT aperture and binds the object there.
  2202. */
  2203. static int
  2204. i915_gem_object_bind_to_gtt(struct drm_gem_object *obj, unsigned alignment)
  2205. {
  2206. struct drm_device *dev = obj->dev;
  2207. drm_i915_private_t *dev_priv = dev->dev_private;
  2208. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2209. struct drm_mm_node *free_space;
  2210. gfp_t gfpmask = __GFP_NORETRY | __GFP_NOWARN;
  2211. int ret;
  2212. if (obj_priv->madv != I915_MADV_WILLNEED) {
  2213. DRM_ERROR("Attempting to bind a purgeable object\n");
  2214. return -EINVAL;
  2215. }
  2216. if (alignment == 0)
  2217. alignment = i915_gem_get_gtt_alignment(obj);
  2218. if (alignment & (i915_gem_get_gtt_alignment(obj) - 1)) {
  2219. DRM_ERROR("Invalid object alignment requested %u\n", alignment);
  2220. return -EINVAL;
  2221. }
  2222. /* If the object is bigger than the entire aperture, reject it early
  2223. * before evicting everything in a vain attempt to find space.
  2224. */
  2225. if (obj->size > dev_priv->mm.gtt_total) {
  2226. DRM_ERROR("Attempting to bind an object larger than the aperture\n");
  2227. return -E2BIG;
  2228. }
  2229. search_free:
  2230. free_space = drm_mm_search_free(&dev_priv->mm.gtt_space,
  2231. obj->size, alignment, 0);
  2232. if (free_space != NULL)
  2233. obj_priv->gtt_space = drm_mm_get_block(free_space, obj->size,
  2234. alignment);
  2235. if (obj_priv->gtt_space == NULL) {
  2236. /* If the gtt is empty and we're still having trouble
  2237. * fitting our object in, we're out of memory.
  2238. */
  2239. ret = i915_gem_evict_something(dev, obj->size, alignment);
  2240. if (ret)
  2241. return ret;
  2242. goto search_free;
  2243. }
  2244. ret = i915_gem_object_get_pages(obj, gfpmask);
  2245. if (ret) {
  2246. drm_mm_put_block(obj_priv->gtt_space);
  2247. obj_priv->gtt_space = NULL;
  2248. if (ret == -ENOMEM) {
  2249. /* first try to clear up some space from the GTT */
  2250. ret = i915_gem_evict_something(dev, obj->size,
  2251. alignment);
  2252. if (ret) {
  2253. /* now try to shrink everyone else */
  2254. if (gfpmask) {
  2255. gfpmask = 0;
  2256. goto search_free;
  2257. }
  2258. return ret;
  2259. }
  2260. goto search_free;
  2261. }
  2262. return ret;
  2263. }
  2264. /* Create an AGP memory structure pointing at our pages, and bind it
  2265. * into the GTT.
  2266. */
  2267. obj_priv->agp_mem = drm_agp_bind_pages(dev,
  2268. obj_priv->pages,
  2269. obj->size >> PAGE_SHIFT,
  2270. obj_priv->gtt_space->start,
  2271. obj_priv->agp_type);
  2272. if (obj_priv->agp_mem == NULL) {
  2273. i915_gem_object_put_pages(obj);
  2274. drm_mm_put_block(obj_priv->gtt_space);
  2275. obj_priv->gtt_space = NULL;
  2276. ret = i915_gem_evict_something(dev, obj->size, alignment);
  2277. if (ret)
  2278. return ret;
  2279. goto search_free;
  2280. }
  2281. /* keep track of bounds object by adding it to the inactive list */
  2282. list_add_tail(&obj_priv->mm_list, &dev_priv->mm.inactive_list);
  2283. i915_gem_info_add_gtt(dev_priv, obj->size);
  2284. /* Assert that the object is not currently in any GPU domain. As it
  2285. * wasn't in the GTT, there shouldn't be any way it could have been in
  2286. * a GPU cache
  2287. */
  2288. BUG_ON(obj->read_domains & I915_GEM_GPU_DOMAINS);
  2289. BUG_ON(obj->write_domain & I915_GEM_GPU_DOMAINS);
  2290. obj_priv->gtt_offset = obj_priv->gtt_space->start;
  2291. trace_i915_gem_object_bind(obj, obj_priv->gtt_offset);
  2292. return 0;
  2293. }
  2294. void
  2295. i915_gem_clflush_object(struct drm_gem_object *obj)
  2296. {
  2297. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2298. /* If we don't have a page list set up, then we're not pinned
  2299. * to GPU, and we can ignore the cache flush because it'll happen
  2300. * again at bind time.
  2301. */
  2302. if (obj_priv->pages == NULL)
  2303. return;
  2304. trace_i915_gem_object_clflush(obj);
  2305. drm_clflush_pages(obj_priv->pages, obj->size / PAGE_SIZE);
  2306. }
  2307. /** Flushes any GPU write domain for the object if it's dirty. */
  2308. static int
  2309. i915_gem_object_flush_gpu_write_domain(struct drm_gem_object *obj,
  2310. bool pipelined)
  2311. {
  2312. struct drm_device *dev = obj->dev;
  2313. uint32_t old_write_domain;
  2314. if ((obj->write_domain & I915_GEM_GPU_DOMAINS) == 0)
  2315. return 0;
  2316. /* Queue the GPU write cache flushing we need. */
  2317. old_write_domain = obj->write_domain;
  2318. i915_gem_flush_ring(dev, NULL,
  2319. to_intel_bo(obj)->ring,
  2320. 0, obj->write_domain);
  2321. BUG_ON(obj->write_domain);
  2322. trace_i915_gem_object_change_domain(obj,
  2323. obj->read_domains,
  2324. old_write_domain);
  2325. if (pipelined)
  2326. return 0;
  2327. return i915_gem_object_wait_rendering(obj, true);
  2328. }
  2329. /** Flushes the GTT write domain for the object if it's dirty. */
  2330. static void
  2331. i915_gem_object_flush_gtt_write_domain(struct drm_gem_object *obj)
  2332. {
  2333. uint32_t old_write_domain;
  2334. if (obj->write_domain != I915_GEM_DOMAIN_GTT)
  2335. return;
  2336. /* No actual flushing is required for the GTT write domain. Writes
  2337. * to it immediately go to main memory as far as we know, so there's
  2338. * no chipset flush. It also doesn't land in render cache.
  2339. */
  2340. old_write_domain = obj->write_domain;
  2341. obj->write_domain = 0;
  2342. trace_i915_gem_object_change_domain(obj,
  2343. obj->read_domains,
  2344. old_write_domain);
  2345. }
  2346. /** Flushes the CPU write domain for the object if it's dirty. */
  2347. static void
  2348. i915_gem_object_flush_cpu_write_domain(struct drm_gem_object *obj)
  2349. {
  2350. struct drm_device *dev = obj->dev;
  2351. uint32_t old_write_domain;
  2352. if (obj->write_domain != I915_GEM_DOMAIN_CPU)
  2353. return;
  2354. i915_gem_clflush_object(obj);
  2355. drm_agp_chipset_flush(dev);
  2356. old_write_domain = obj->write_domain;
  2357. obj->write_domain = 0;
  2358. trace_i915_gem_object_change_domain(obj,
  2359. obj->read_domains,
  2360. old_write_domain);
  2361. }
  2362. /**
  2363. * Moves a single object to the GTT read, and possibly write domain.
  2364. *
  2365. * This function returns when the move is complete, including waiting on
  2366. * flushes to occur.
  2367. */
  2368. int
  2369. i915_gem_object_set_to_gtt_domain(struct drm_gem_object *obj, int write)
  2370. {
  2371. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2372. uint32_t old_write_domain, old_read_domains;
  2373. int ret;
  2374. /* Not valid to be called on unbound objects. */
  2375. if (obj_priv->gtt_space == NULL)
  2376. return -EINVAL;
  2377. ret = i915_gem_object_flush_gpu_write_domain(obj, false);
  2378. if (ret != 0)
  2379. return ret;
  2380. i915_gem_object_flush_cpu_write_domain(obj);
  2381. if (write) {
  2382. ret = i915_gem_object_wait_rendering(obj, true);
  2383. if (ret)
  2384. return ret;
  2385. }
  2386. old_write_domain = obj->write_domain;
  2387. old_read_domains = obj->read_domains;
  2388. /* It should now be out of any other write domains, and we can update
  2389. * the domain values for our changes.
  2390. */
  2391. BUG_ON((obj->write_domain & ~I915_GEM_DOMAIN_GTT) != 0);
  2392. obj->read_domains |= I915_GEM_DOMAIN_GTT;
  2393. if (write) {
  2394. obj->read_domains = I915_GEM_DOMAIN_GTT;
  2395. obj->write_domain = I915_GEM_DOMAIN_GTT;
  2396. obj_priv->dirty = 1;
  2397. }
  2398. trace_i915_gem_object_change_domain(obj,
  2399. old_read_domains,
  2400. old_write_domain);
  2401. return 0;
  2402. }
  2403. /*
  2404. * Prepare buffer for display plane. Use uninterruptible for possible flush
  2405. * wait, as in modesetting process we're not supposed to be interrupted.
  2406. */
  2407. int
  2408. i915_gem_object_set_to_display_plane(struct drm_gem_object *obj,
  2409. bool pipelined)
  2410. {
  2411. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2412. uint32_t old_read_domains;
  2413. int ret;
  2414. /* Not valid to be called on unbound objects. */
  2415. if (obj_priv->gtt_space == NULL)
  2416. return -EINVAL;
  2417. ret = i915_gem_object_flush_gpu_write_domain(obj, true);
  2418. if (ret)
  2419. return ret;
  2420. /* Currently, we are always called from an non-interruptible context. */
  2421. if (!pipelined) {
  2422. ret = i915_gem_object_wait_rendering(obj, false);
  2423. if (ret)
  2424. return ret;
  2425. }
  2426. i915_gem_object_flush_cpu_write_domain(obj);
  2427. old_read_domains = obj->read_domains;
  2428. obj->read_domains |= I915_GEM_DOMAIN_GTT;
  2429. trace_i915_gem_object_change_domain(obj,
  2430. old_read_domains,
  2431. obj->write_domain);
  2432. return 0;
  2433. }
  2434. int
  2435. i915_gem_object_flush_gpu(struct drm_i915_gem_object *obj,
  2436. bool interruptible)
  2437. {
  2438. if (!obj->active)
  2439. return 0;
  2440. if (obj->base.write_domain & I915_GEM_GPU_DOMAINS)
  2441. i915_gem_flush_ring(obj->base.dev, NULL, obj->ring,
  2442. 0, obj->base.write_domain);
  2443. return i915_gem_object_wait_rendering(&obj->base, interruptible);
  2444. }
  2445. /**
  2446. * Moves a single object to the CPU read, and possibly write domain.
  2447. *
  2448. * This function returns when the move is complete, including waiting on
  2449. * flushes to occur.
  2450. */
  2451. static int
  2452. i915_gem_object_set_to_cpu_domain(struct drm_gem_object *obj, int write)
  2453. {
  2454. uint32_t old_write_domain, old_read_domains;
  2455. int ret;
  2456. ret = i915_gem_object_flush_gpu_write_domain(obj, false);
  2457. if (ret != 0)
  2458. return ret;
  2459. i915_gem_object_flush_gtt_write_domain(obj);
  2460. /* If we have a partially-valid cache of the object in the CPU,
  2461. * finish invalidating it and free the per-page flags.
  2462. */
  2463. i915_gem_object_set_to_full_cpu_read_domain(obj);
  2464. if (write) {
  2465. ret = i915_gem_object_wait_rendering(obj, true);
  2466. if (ret)
  2467. return ret;
  2468. }
  2469. old_write_domain = obj->write_domain;
  2470. old_read_domains = obj->read_domains;
  2471. /* Flush the CPU cache if it's still invalid. */
  2472. if ((obj->read_domains & I915_GEM_DOMAIN_CPU) == 0) {
  2473. i915_gem_clflush_object(obj);
  2474. obj->read_domains |= I915_GEM_DOMAIN_CPU;
  2475. }
  2476. /* It should now be out of any other write domains, and we can update
  2477. * the domain values for our changes.
  2478. */
  2479. BUG_ON((obj->write_domain & ~I915_GEM_DOMAIN_CPU) != 0);
  2480. /* If we're writing through the CPU, then the GPU read domains will
  2481. * need to be invalidated at next use.
  2482. */
  2483. if (write) {
  2484. obj->read_domains = I915_GEM_DOMAIN_CPU;
  2485. obj->write_domain = I915_GEM_DOMAIN_CPU;
  2486. }
  2487. trace_i915_gem_object_change_domain(obj,
  2488. old_read_domains,
  2489. old_write_domain);
  2490. return 0;
  2491. }
  2492. /*
  2493. * Set the next domain for the specified object. This
  2494. * may not actually perform the necessary flushing/invaliding though,
  2495. * as that may want to be batched with other set_domain operations
  2496. *
  2497. * This is (we hope) the only really tricky part of gem. The goal
  2498. * is fairly simple -- track which caches hold bits of the object
  2499. * and make sure they remain coherent. A few concrete examples may
  2500. * help to explain how it works. For shorthand, we use the notation
  2501. * (read_domains, write_domain), e.g. (CPU, CPU) to indicate the
  2502. * a pair of read and write domain masks.
  2503. *
  2504. * Case 1: the batch buffer
  2505. *
  2506. * 1. Allocated
  2507. * 2. Written by CPU
  2508. * 3. Mapped to GTT
  2509. * 4. Read by GPU
  2510. * 5. Unmapped from GTT
  2511. * 6. Freed
  2512. *
  2513. * Let's take these a step at a time
  2514. *
  2515. * 1. Allocated
  2516. * Pages allocated from the kernel may still have
  2517. * cache contents, so we set them to (CPU, CPU) always.
  2518. * 2. Written by CPU (using pwrite)
  2519. * The pwrite function calls set_domain (CPU, CPU) and
  2520. * this function does nothing (as nothing changes)
  2521. * 3. Mapped by GTT
  2522. * This function asserts that the object is not
  2523. * currently in any GPU-based read or write domains
  2524. * 4. Read by GPU
  2525. * i915_gem_execbuffer calls set_domain (COMMAND, 0).
  2526. * As write_domain is zero, this function adds in the
  2527. * current read domains (CPU+COMMAND, 0).
  2528. * flush_domains is set to CPU.
  2529. * invalidate_domains is set to COMMAND
  2530. * clflush is run to get data out of the CPU caches
  2531. * then i915_dev_set_domain calls i915_gem_flush to
  2532. * emit an MI_FLUSH and drm_agp_chipset_flush
  2533. * 5. Unmapped from GTT
  2534. * i915_gem_object_unbind calls set_domain (CPU, CPU)
  2535. * flush_domains and invalidate_domains end up both zero
  2536. * so no flushing/invalidating happens
  2537. * 6. Freed
  2538. * yay, done
  2539. *
  2540. * Case 2: The shared render buffer
  2541. *
  2542. * 1. Allocated
  2543. * 2. Mapped to GTT
  2544. * 3. Read/written by GPU
  2545. * 4. set_domain to (CPU,CPU)
  2546. * 5. Read/written by CPU
  2547. * 6. Read/written by GPU
  2548. *
  2549. * 1. Allocated
  2550. * Same as last example, (CPU, CPU)
  2551. * 2. Mapped to GTT
  2552. * Nothing changes (assertions find that it is not in the GPU)
  2553. * 3. Read/written by GPU
  2554. * execbuffer calls set_domain (RENDER, RENDER)
  2555. * flush_domains gets CPU
  2556. * invalidate_domains gets GPU
  2557. * clflush (obj)
  2558. * MI_FLUSH and drm_agp_chipset_flush
  2559. * 4. set_domain (CPU, CPU)
  2560. * flush_domains gets GPU
  2561. * invalidate_domains gets CPU
  2562. * wait_rendering (obj) to make sure all drawing is complete.
  2563. * This will include an MI_FLUSH to get the data from GPU
  2564. * to memory
  2565. * clflush (obj) to invalidate the CPU cache
  2566. * Another MI_FLUSH in i915_gem_flush (eliminate this somehow?)
  2567. * 5. Read/written by CPU
  2568. * cache lines are loaded and dirtied
  2569. * 6. Read written by GPU
  2570. * Same as last GPU access
  2571. *
  2572. * Case 3: The constant buffer
  2573. *
  2574. * 1. Allocated
  2575. * 2. Written by CPU
  2576. * 3. Read by GPU
  2577. * 4. Updated (written) by CPU again
  2578. * 5. Read by GPU
  2579. *
  2580. * 1. Allocated
  2581. * (CPU, CPU)
  2582. * 2. Written by CPU
  2583. * (CPU, CPU)
  2584. * 3. Read by GPU
  2585. * (CPU+RENDER, 0)
  2586. * flush_domains = CPU
  2587. * invalidate_domains = RENDER
  2588. * clflush (obj)
  2589. * MI_FLUSH
  2590. * drm_agp_chipset_flush
  2591. * 4. Updated (written) by CPU again
  2592. * (CPU, CPU)
  2593. * flush_domains = 0 (no previous write domain)
  2594. * invalidate_domains = 0 (no new read domains)
  2595. * 5. Read by GPU
  2596. * (CPU+RENDER, 0)
  2597. * flush_domains = CPU
  2598. * invalidate_domains = RENDER
  2599. * clflush (obj)
  2600. * MI_FLUSH
  2601. * drm_agp_chipset_flush
  2602. */
  2603. static void
  2604. i915_gem_object_set_to_gpu_domain(struct drm_gem_object *obj,
  2605. struct intel_ring_buffer *ring)
  2606. {
  2607. struct drm_device *dev = obj->dev;
  2608. struct drm_i915_private *dev_priv = dev->dev_private;
  2609. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2610. uint32_t invalidate_domains = 0;
  2611. uint32_t flush_domains = 0;
  2612. uint32_t old_read_domains;
  2613. intel_mark_busy(dev, obj);
  2614. /*
  2615. * If the object isn't moving to a new write domain,
  2616. * let the object stay in multiple read domains
  2617. */
  2618. if (obj->pending_write_domain == 0)
  2619. obj->pending_read_domains |= obj->read_domains;
  2620. else
  2621. obj_priv->dirty = 1;
  2622. /*
  2623. * Flush the current write domain if
  2624. * the new read domains don't match. Invalidate
  2625. * any read domains which differ from the old
  2626. * write domain
  2627. */
  2628. if (obj->write_domain &&
  2629. (obj->write_domain != obj->pending_read_domains ||
  2630. obj_priv->ring != ring)) {
  2631. flush_domains |= obj->write_domain;
  2632. invalidate_domains |=
  2633. obj->pending_read_domains & ~obj->write_domain;
  2634. }
  2635. /*
  2636. * Invalidate any read caches which may have
  2637. * stale data. That is, any new read domains.
  2638. */
  2639. invalidate_domains |= obj->pending_read_domains & ~obj->read_domains;
  2640. if ((flush_domains | invalidate_domains) & I915_GEM_DOMAIN_CPU)
  2641. i915_gem_clflush_object(obj);
  2642. old_read_domains = obj->read_domains;
  2643. /* The actual obj->write_domain will be updated with
  2644. * pending_write_domain after we emit the accumulated flush for all
  2645. * of our domain changes in execbuffers (which clears objects'
  2646. * write_domains). So if we have a current write domain that we
  2647. * aren't changing, set pending_write_domain to that.
  2648. */
  2649. if (flush_domains == 0 && obj->pending_write_domain == 0)
  2650. obj->pending_write_domain = obj->write_domain;
  2651. obj->read_domains = obj->pending_read_domains;
  2652. dev->invalidate_domains |= invalidate_domains;
  2653. dev->flush_domains |= flush_domains;
  2654. if (flush_domains & I915_GEM_GPU_DOMAINS)
  2655. dev_priv->mm.flush_rings |= obj_priv->ring->id;
  2656. if (invalidate_domains & I915_GEM_GPU_DOMAINS)
  2657. dev_priv->mm.flush_rings |= ring->id;
  2658. trace_i915_gem_object_change_domain(obj,
  2659. old_read_domains,
  2660. obj->write_domain);
  2661. }
  2662. /**
  2663. * Moves the object from a partially CPU read to a full one.
  2664. *
  2665. * Note that this only resolves i915_gem_object_set_cpu_read_domain_range(),
  2666. * and doesn't handle transitioning from !(read_domains & I915_GEM_DOMAIN_CPU).
  2667. */
  2668. static void
  2669. i915_gem_object_set_to_full_cpu_read_domain(struct drm_gem_object *obj)
  2670. {
  2671. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2672. if (!obj_priv->page_cpu_valid)
  2673. return;
  2674. /* If we're partially in the CPU read domain, finish moving it in.
  2675. */
  2676. if (obj->read_domains & I915_GEM_DOMAIN_CPU) {
  2677. int i;
  2678. for (i = 0; i <= (obj->size - 1) / PAGE_SIZE; i++) {
  2679. if (obj_priv->page_cpu_valid[i])
  2680. continue;
  2681. drm_clflush_pages(obj_priv->pages + i, 1);
  2682. }
  2683. }
  2684. /* Free the page_cpu_valid mappings which are now stale, whether
  2685. * or not we've got I915_GEM_DOMAIN_CPU.
  2686. */
  2687. kfree(obj_priv->page_cpu_valid);
  2688. obj_priv->page_cpu_valid = NULL;
  2689. }
  2690. /**
  2691. * Set the CPU read domain on a range of the object.
  2692. *
  2693. * The object ends up with I915_GEM_DOMAIN_CPU in its read flags although it's
  2694. * not entirely valid. The page_cpu_valid member of the object flags which
  2695. * pages have been flushed, and will be respected by
  2696. * i915_gem_object_set_to_cpu_domain() if it's called on to get a valid mapping
  2697. * of the whole object.
  2698. *
  2699. * This function returns when the move is complete, including waiting on
  2700. * flushes to occur.
  2701. */
  2702. static int
  2703. i915_gem_object_set_cpu_read_domain_range(struct drm_gem_object *obj,
  2704. uint64_t offset, uint64_t size)
  2705. {
  2706. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  2707. uint32_t old_read_domains;
  2708. int i, ret;
  2709. if (offset == 0 && size == obj->size)
  2710. return i915_gem_object_set_to_cpu_domain(obj, 0);
  2711. ret = i915_gem_object_flush_gpu_write_domain(obj, false);
  2712. if (ret != 0)
  2713. return ret;
  2714. i915_gem_object_flush_gtt_write_domain(obj);
  2715. /* If we're already fully in the CPU read domain, we're done. */
  2716. if (obj_priv->page_cpu_valid == NULL &&
  2717. (obj->read_domains & I915_GEM_DOMAIN_CPU) != 0)
  2718. return 0;
  2719. /* Otherwise, create/clear the per-page CPU read domain flag if we're
  2720. * newly adding I915_GEM_DOMAIN_CPU
  2721. */
  2722. if (obj_priv->page_cpu_valid == NULL) {
  2723. obj_priv->page_cpu_valid = kzalloc(obj->size / PAGE_SIZE,
  2724. GFP_KERNEL);
  2725. if (obj_priv->page_cpu_valid == NULL)
  2726. return -ENOMEM;
  2727. } else if ((obj->read_domains & I915_GEM_DOMAIN_CPU) == 0)
  2728. memset(obj_priv->page_cpu_valid, 0, obj->size / PAGE_SIZE);
  2729. /* Flush the cache on any pages that are still invalid from the CPU's
  2730. * perspective.
  2731. */
  2732. for (i = offset / PAGE_SIZE; i <= (offset + size - 1) / PAGE_SIZE;
  2733. i++) {
  2734. if (obj_priv->page_cpu_valid[i])
  2735. continue;
  2736. drm_clflush_pages(obj_priv->pages + i, 1);
  2737. obj_priv->page_cpu_valid[i] = 1;
  2738. }
  2739. /* It should now be out of any other write domains, and we can update
  2740. * the domain values for our changes.
  2741. */
  2742. BUG_ON((obj->write_domain & ~I915_GEM_DOMAIN_CPU) != 0);
  2743. old_read_domains = obj->read_domains;
  2744. obj->read_domains |= I915_GEM_DOMAIN_CPU;
  2745. trace_i915_gem_object_change_domain(obj,
  2746. old_read_domains,
  2747. obj->write_domain);
  2748. return 0;
  2749. }
  2750. static int
  2751. i915_gem_execbuffer_relocate_entry(struct drm_i915_gem_object *obj,
  2752. struct drm_file *file_priv,
  2753. struct drm_i915_gem_exec_object2 *entry,
  2754. struct drm_i915_gem_relocation_entry *reloc)
  2755. {
  2756. struct drm_device *dev = obj->base.dev;
  2757. struct drm_gem_object *target_obj;
  2758. uint32_t target_offset;
  2759. int ret = -EINVAL;
  2760. target_obj = drm_gem_object_lookup(dev, file_priv,
  2761. reloc->target_handle);
  2762. if (target_obj == NULL)
  2763. return -ENOENT;
  2764. target_offset = to_intel_bo(target_obj)->gtt_offset;
  2765. #if WATCH_RELOC
  2766. DRM_INFO("%s: obj %p offset %08x target %d "
  2767. "read %08x write %08x gtt %08x "
  2768. "presumed %08x delta %08x\n",
  2769. __func__,
  2770. obj,
  2771. (int) reloc->offset,
  2772. (int) reloc->target_handle,
  2773. (int) reloc->read_domains,
  2774. (int) reloc->write_domain,
  2775. (int) target_offset,
  2776. (int) reloc->presumed_offset,
  2777. reloc->delta);
  2778. #endif
  2779. /* The target buffer should have appeared before us in the
  2780. * exec_object list, so it should have a GTT space bound by now.
  2781. */
  2782. if (target_offset == 0) {
  2783. DRM_ERROR("No GTT space found for object %d\n",
  2784. reloc->target_handle);
  2785. goto err;
  2786. }
  2787. /* Validate that the target is in a valid r/w GPU domain */
  2788. if (reloc->write_domain & (reloc->write_domain - 1)) {
  2789. DRM_ERROR("reloc with multiple write domains: "
  2790. "obj %p target %d offset %d "
  2791. "read %08x write %08x",
  2792. obj, reloc->target_handle,
  2793. (int) reloc->offset,
  2794. reloc->read_domains,
  2795. reloc->write_domain);
  2796. goto err;
  2797. }
  2798. if (reloc->write_domain & I915_GEM_DOMAIN_CPU ||
  2799. reloc->read_domains & I915_GEM_DOMAIN_CPU) {
  2800. DRM_ERROR("reloc with read/write CPU domains: "
  2801. "obj %p target %d offset %d "
  2802. "read %08x write %08x",
  2803. obj, reloc->target_handle,
  2804. (int) reloc->offset,
  2805. reloc->read_domains,
  2806. reloc->write_domain);
  2807. goto err;
  2808. }
  2809. if (reloc->write_domain && target_obj->pending_write_domain &&
  2810. reloc->write_domain != target_obj->pending_write_domain) {
  2811. DRM_ERROR("Write domain conflict: "
  2812. "obj %p target %d offset %d "
  2813. "new %08x old %08x\n",
  2814. obj, reloc->target_handle,
  2815. (int) reloc->offset,
  2816. reloc->write_domain,
  2817. target_obj->pending_write_domain);
  2818. goto err;
  2819. }
  2820. target_obj->pending_read_domains |= reloc->read_domains;
  2821. target_obj->pending_write_domain |= reloc->write_domain;
  2822. /* If the relocation already has the right value in it, no
  2823. * more work needs to be done.
  2824. */
  2825. if (target_offset == reloc->presumed_offset)
  2826. goto out;
  2827. /* Check that the relocation address is valid... */
  2828. if (reloc->offset > obj->base.size - 4) {
  2829. DRM_ERROR("Relocation beyond object bounds: "
  2830. "obj %p target %d offset %d size %d.\n",
  2831. obj, reloc->target_handle,
  2832. (int) reloc->offset,
  2833. (int) obj->base.size);
  2834. goto err;
  2835. }
  2836. if (reloc->offset & 3) {
  2837. DRM_ERROR("Relocation not 4-byte aligned: "
  2838. "obj %p target %d offset %d.\n",
  2839. obj, reloc->target_handle,
  2840. (int) reloc->offset);
  2841. goto err;
  2842. }
  2843. /* and points to somewhere within the target object. */
  2844. if (reloc->delta >= target_obj->size) {
  2845. DRM_ERROR("Relocation beyond target object bounds: "
  2846. "obj %p target %d delta %d size %d.\n",
  2847. obj, reloc->target_handle,
  2848. (int) reloc->delta,
  2849. (int) target_obj->size);
  2850. goto err;
  2851. }
  2852. reloc->delta += target_offset;
  2853. if (obj->base.write_domain == I915_GEM_DOMAIN_CPU) {
  2854. uint32_t page_offset = reloc->offset & ~PAGE_MASK;
  2855. char *vaddr;
  2856. vaddr = kmap_atomic(obj->pages[reloc->offset >> PAGE_SHIFT]);
  2857. *(uint32_t *)(vaddr + page_offset) = reloc->delta;
  2858. kunmap_atomic(vaddr);
  2859. } else {
  2860. struct drm_i915_private *dev_priv = dev->dev_private;
  2861. uint32_t __iomem *reloc_entry;
  2862. void __iomem *reloc_page;
  2863. ret = i915_gem_object_set_to_gtt_domain(&obj->base, 1);
  2864. if (ret)
  2865. goto err;
  2866. /* Map the page containing the relocation we're going to perform. */
  2867. reloc->offset += obj->gtt_offset;
  2868. reloc_page = io_mapping_map_atomic_wc(dev_priv->mm.gtt_mapping,
  2869. reloc->offset & PAGE_MASK);
  2870. reloc_entry = (uint32_t __iomem *)
  2871. (reloc_page + (reloc->offset & ~PAGE_MASK));
  2872. iowrite32(reloc->delta, reloc_entry);
  2873. io_mapping_unmap_atomic(reloc_page);
  2874. }
  2875. /* and update the user's relocation entry */
  2876. reloc->presumed_offset = target_offset;
  2877. out:
  2878. ret = 0;
  2879. err:
  2880. drm_gem_object_unreference(target_obj);
  2881. return ret;
  2882. }
  2883. static int
  2884. i915_gem_execbuffer_relocate_object(struct drm_i915_gem_object *obj,
  2885. struct drm_file *file_priv,
  2886. struct drm_i915_gem_exec_object2 *entry)
  2887. {
  2888. struct drm_i915_gem_relocation_entry __user *user_relocs;
  2889. int i, ret;
  2890. user_relocs = (void __user *)(uintptr_t)entry->relocs_ptr;
  2891. for (i = 0; i < entry->relocation_count; i++) {
  2892. struct drm_i915_gem_relocation_entry reloc;
  2893. if (__copy_from_user_inatomic(&reloc,
  2894. user_relocs+i,
  2895. sizeof(reloc)))
  2896. return -EFAULT;
  2897. ret = i915_gem_execbuffer_relocate_entry(obj, file_priv, entry, &reloc);
  2898. if (ret)
  2899. return ret;
  2900. if (__copy_to_user_inatomic(&user_relocs[i].presumed_offset,
  2901. &reloc.presumed_offset,
  2902. sizeof(reloc.presumed_offset)))
  2903. return -EFAULT;
  2904. }
  2905. return 0;
  2906. }
  2907. static int
  2908. i915_gem_execbuffer_relocate_object_slow(struct drm_i915_gem_object *obj,
  2909. struct drm_file *file_priv,
  2910. struct drm_i915_gem_exec_object2 *entry,
  2911. struct drm_i915_gem_relocation_entry *relocs)
  2912. {
  2913. int i, ret;
  2914. for (i = 0; i < entry->relocation_count; i++) {
  2915. ret = i915_gem_execbuffer_relocate_entry(obj, file_priv, entry, &relocs[i]);
  2916. if (ret)
  2917. return ret;
  2918. }
  2919. return 0;
  2920. }
  2921. static int
  2922. i915_gem_execbuffer_relocate(struct drm_device *dev,
  2923. struct drm_file *file,
  2924. struct drm_gem_object **object_list,
  2925. struct drm_i915_gem_exec_object2 *exec_list,
  2926. int count)
  2927. {
  2928. int i, ret;
  2929. for (i = 0; i < count; i++) {
  2930. struct drm_i915_gem_object *obj = to_intel_bo(object_list[i]);
  2931. obj->base.pending_read_domains = 0;
  2932. obj->base.pending_write_domain = 0;
  2933. ret = i915_gem_execbuffer_relocate_object(obj, file,
  2934. &exec_list[i]);
  2935. if (ret)
  2936. return ret;
  2937. }
  2938. return 0;
  2939. }
  2940. static int
  2941. i915_gem_execbuffer_reserve(struct drm_device *dev,
  2942. struct drm_file *file,
  2943. struct drm_gem_object **object_list,
  2944. struct drm_i915_gem_exec_object2 *exec_list,
  2945. int count)
  2946. {
  2947. struct drm_i915_private *dev_priv = dev->dev_private;
  2948. int ret, i, retry;
  2949. /* attempt to pin all of the buffers into the GTT */
  2950. for (retry = 0; retry < 2; retry++) {
  2951. ret = 0;
  2952. for (i = 0; i < count; i++) {
  2953. struct drm_i915_gem_exec_object2 *entry = &exec_list[i];
  2954. struct drm_i915_gem_object *obj= to_intel_bo(object_list[i]);
  2955. bool need_fence =
  2956. entry->flags & EXEC_OBJECT_NEEDS_FENCE &&
  2957. obj->tiling_mode != I915_TILING_NONE;
  2958. /* Check fence reg constraints and rebind if necessary */
  2959. if (need_fence &&
  2960. !i915_gem_object_fence_offset_ok(&obj->base,
  2961. obj->tiling_mode)) {
  2962. ret = i915_gem_object_unbind(&obj->base);
  2963. if (ret)
  2964. break;
  2965. }
  2966. ret = i915_gem_object_pin(&obj->base, entry->alignment);
  2967. if (ret)
  2968. break;
  2969. /*
  2970. * Pre-965 chips need a fence register set up in order
  2971. * to properly handle blits to/from tiled surfaces.
  2972. */
  2973. if (need_fence) {
  2974. ret = i915_gem_object_get_fence_reg(&obj->base, true);
  2975. if (ret) {
  2976. i915_gem_object_unpin(&obj->base);
  2977. break;
  2978. }
  2979. dev_priv->fence_regs[obj->fence_reg].gpu = true;
  2980. }
  2981. entry->offset = obj->gtt_offset;
  2982. }
  2983. while (i--)
  2984. i915_gem_object_unpin(object_list[i]);
  2985. if (ret == 0)
  2986. break;
  2987. if (ret != -ENOSPC || retry)
  2988. return ret;
  2989. ret = i915_gem_evict_everything(dev);
  2990. if (ret)
  2991. return ret;
  2992. }
  2993. return 0;
  2994. }
  2995. static int
  2996. i915_gem_execbuffer_relocate_slow(struct drm_device *dev,
  2997. struct drm_file *file,
  2998. struct drm_gem_object **object_list,
  2999. struct drm_i915_gem_exec_object2 *exec_list,
  3000. int count)
  3001. {
  3002. struct drm_i915_gem_relocation_entry *reloc;
  3003. int i, total, ret;
  3004. for (i = 0; i < count; i++) {
  3005. struct drm_i915_gem_object *obj = to_intel_bo(object_list[i]);
  3006. obj->in_execbuffer = false;
  3007. }
  3008. mutex_unlock(&dev->struct_mutex);
  3009. total = 0;
  3010. for (i = 0; i < count; i++)
  3011. total += exec_list[i].relocation_count;
  3012. reloc = drm_malloc_ab(total, sizeof(*reloc));
  3013. if (reloc == NULL) {
  3014. mutex_lock(&dev->struct_mutex);
  3015. return -ENOMEM;
  3016. }
  3017. total = 0;
  3018. for (i = 0; i < count; i++) {
  3019. struct drm_i915_gem_relocation_entry __user *user_relocs;
  3020. user_relocs = (void __user *)(uintptr_t)exec_list[i].relocs_ptr;
  3021. if (copy_from_user(reloc+total, user_relocs,
  3022. exec_list[i].relocation_count *
  3023. sizeof(*reloc))) {
  3024. ret = -EFAULT;
  3025. mutex_lock(&dev->struct_mutex);
  3026. goto err;
  3027. }
  3028. total += exec_list[i].relocation_count;
  3029. }
  3030. ret = i915_mutex_lock_interruptible(dev);
  3031. if (ret) {
  3032. mutex_lock(&dev->struct_mutex);
  3033. goto err;
  3034. }
  3035. ret = i915_gem_execbuffer_reserve(dev, file,
  3036. object_list, exec_list,
  3037. count);
  3038. if (ret)
  3039. goto err;
  3040. total = 0;
  3041. for (i = 0; i < count; i++) {
  3042. struct drm_i915_gem_object *obj = to_intel_bo(object_list[i]);
  3043. obj->base.pending_read_domains = 0;
  3044. obj->base.pending_write_domain = 0;
  3045. ret = i915_gem_execbuffer_relocate_object_slow(obj, file,
  3046. &exec_list[i],
  3047. reloc + total);
  3048. if (ret)
  3049. goto err;
  3050. total += exec_list[i].relocation_count;
  3051. }
  3052. /* Leave the user relocations as are, this is the painfully slow path,
  3053. * and we want to avoid the complication of dropping the lock whilst
  3054. * having buffers reserved in the aperture and so causing spurious
  3055. * ENOSPC for random operations.
  3056. */
  3057. err:
  3058. drm_free_large(reloc);
  3059. return ret;
  3060. }
  3061. static int
  3062. i915_gem_execbuffer_move_to_gpu(struct drm_device *dev,
  3063. struct drm_file *file,
  3064. struct intel_ring_buffer *ring,
  3065. struct drm_gem_object **objects,
  3066. int count)
  3067. {
  3068. struct drm_i915_private *dev_priv = dev->dev_private;
  3069. int ret, i;
  3070. /* Zero the global flush/invalidate flags. These
  3071. * will be modified as new domains are computed
  3072. * for each object
  3073. */
  3074. dev->invalidate_domains = 0;
  3075. dev->flush_domains = 0;
  3076. dev_priv->mm.flush_rings = 0;
  3077. for (i = 0; i < count; i++)
  3078. i915_gem_object_set_to_gpu_domain(objects[i], ring);
  3079. if (dev->invalidate_domains | dev->flush_domains) {
  3080. #if WATCH_EXEC
  3081. DRM_INFO("%s: invalidate_domains %08x flush_domains %08x\n",
  3082. __func__,
  3083. dev->invalidate_domains,
  3084. dev->flush_domains);
  3085. #endif
  3086. i915_gem_flush(dev, file,
  3087. dev->invalidate_domains,
  3088. dev->flush_domains,
  3089. dev_priv->mm.flush_rings);
  3090. }
  3091. for (i = 0; i < count; i++) {
  3092. struct drm_i915_gem_object *obj = to_intel_bo(objects[i]);
  3093. /* XXX replace with semaphores */
  3094. if (obj->ring && ring != obj->ring) {
  3095. ret = i915_gem_object_wait_rendering(&obj->base, true);
  3096. if (ret)
  3097. return ret;
  3098. }
  3099. }
  3100. return 0;
  3101. }
  3102. /* Throttle our rendering by waiting until the ring has completed our requests
  3103. * emitted over 20 msec ago.
  3104. *
  3105. * Note that if we were to use the current jiffies each time around the loop,
  3106. * we wouldn't escape the function with any frames outstanding if the time to
  3107. * render a frame was over 20ms.
  3108. *
  3109. * This should get us reasonable parallelism between CPU and GPU but also
  3110. * relatively low latency when blocking on a particular request to finish.
  3111. */
  3112. static int
  3113. i915_gem_ring_throttle(struct drm_device *dev, struct drm_file *file)
  3114. {
  3115. struct drm_i915_private *dev_priv = dev->dev_private;
  3116. struct drm_i915_file_private *file_priv = file->driver_priv;
  3117. unsigned long recent_enough = jiffies - msecs_to_jiffies(20);
  3118. struct drm_i915_gem_request *request;
  3119. struct intel_ring_buffer *ring = NULL;
  3120. u32 seqno = 0;
  3121. int ret;
  3122. spin_lock(&file_priv->mm.lock);
  3123. list_for_each_entry(request, &file_priv->mm.request_list, client_list) {
  3124. if (time_after_eq(request->emitted_jiffies, recent_enough))
  3125. break;
  3126. ring = request->ring;
  3127. seqno = request->seqno;
  3128. }
  3129. spin_unlock(&file_priv->mm.lock);
  3130. if (seqno == 0)
  3131. return 0;
  3132. ret = 0;
  3133. if (!i915_seqno_passed(ring->get_seqno(dev, ring), seqno)) {
  3134. /* And wait for the seqno passing without holding any locks and
  3135. * causing extra latency for others. This is safe as the irq
  3136. * generation is designed to be run atomically and so is
  3137. * lockless.
  3138. */
  3139. ring->user_irq_get(dev, ring);
  3140. ret = wait_event_interruptible(ring->irq_queue,
  3141. i915_seqno_passed(ring->get_seqno(dev, ring), seqno)
  3142. || atomic_read(&dev_priv->mm.wedged));
  3143. ring->user_irq_put(dev, ring);
  3144. if (ret == 0 && atomic_read(&dev_priv->mm.wedged))
  3145. ret = -EIO;
  3146. }
  3147. if (ret == 0)
  3148. queue_delayed_work(dev_priv->wq, &dev_priv->mm.retire_work, 0);
  3149. return ret;
  3150. }
  3151. static int
  3152. i915_gem_check_execbuffer(struct drm_i915_gem_execbuffer2 *exec,
  3153. uint64_t exec_offset)
  3154. {
  3155. uint32_t exec_start, exec_len;
  3156. exec_start = (uint32_t) exec_offset + exec->batch_start_offset;
  3157. exec_len = (uint32_t) exec->batch_len;
  3158. if ((exec_start | exec_len) & 0x7)
  3159. return -EINVAL;
  3160. if (!exec_start)
  3161. return -EINVAL;
  3162. return 0;
  3163. }
  3164. static int
  3165. validate_exec_list(struct drm_i915_gem_exec_object2 *exec,
  3166. int count)
  3167. {
  3168. int i;
  3169. for (i = 0; i < count; i++) {
  3170. char __user *ptr = (char __user *)(uintptr_t)exec[i].relocs_ptr;
  3171. int length; /* limited by fault_in_pages_readable() */
  3172. /* First check for malicious input causing overflow */
  3173. if (exec[i].relocation_count >
  3174. INT_MAX / sizeof(struct drm_i915_gem_relocation_entry))
  3175. return -EINVAL;
  3176. length = exec[i].relocation_count *
  3177. sizeof(struct drm_i915_gem_relocation_entry);
  3178. if (!access_ok(VERIFY_READ, ptr, length))
  3179. return -EFAULT;
  3180. /* we may also need to update the presumed offsets */
  3181. if (!access_ok(VERIFY_WRITE, ptr, length))
  3182. return -EFAULT;
  3183. if (fault_in_pages_readable(ptr, length))
  3184. return -EFAULT;
  3185. }
  3186. return 0;
  3187. }
  3188. static int
  3189. i915_gem_do_execbuffer(struct drm_device *dev, void *data,
  3190. struct drm_file *file,
  3191. struct drm_i915_gem_execbuffer2 *args,
  3192. struct drm_i915_gem_exec_object2 *exec_list)
  3193. {
  3194. drm_i915_private_t *dev_priv = dev->dev_private;
  3195. struct drm_gem_object **object_list = NULL;
  3196. struct drm_gem_object *batch_obj;
  3197. struct drm_i915_gem_object *obj_priv;
  3198. struct drm_clip_rect *cliprects = NULL;
  3199. struct drm_i915_gem_request *request = NULL;
  3200. int ret, i, flips;
  3201. uint64_t exec_offset;
  3202. struct intel_ring_buffer *ring = NULL;
  3203. ret = i915_gem_check_is_wedged(dev);
  3204. if (ret)
  3205. return ret;
  3206. ret = validate_exec_list(exec_list, args->buffer_count);
  3207. if (ret)
  3208. return ret;
  3209. #if WATCH_EXEC
  3210. DRM_INFO("buffers_ptr %d buffer_count %d len %08x\n",
  3211. (int) args->buffers_ptr, args->buffer_count, args->batch_len);
  3212. #endif
  3213. switch (args->flags & I915_EXEC_RING_MASK) {
  3214. case I915_EXEC_DEFAULT:
  3215. case I915_EXEC_RENDER:
  3216. ring = &dev_priv->render_ring;
  3217. break;
  3218. case I915_EXEC_BSD:
  3219. if (!HAS_BSD(dev)) {
  3220. DRM_ERROR("execbuf with invalid ring (BSD)\n");
  3221. return -EINVAL;
  3222. }
  3223. ring = &dev_priv->bsd_ring;
  3224. break;
  3225. case I915_EXEC_BLT:
  3226. if (!HAS_BLT(dev)) {
  3227. DRM_ERROR("execbuf with invalid ring (BLT)\n");
  3228. return -EINVAL;
  3229. }
  3230. ring = &dev_priv->blt_ring;
  3231. break;
  3232. default:
  3233. DRM_ERROR("execbuf with unknown ring: %d\n",
  3234. (int)(args->flags & I915_EXEC_RING_MASK));
  3235. return -EINVAL;
  3236. }
  3237. if (args->buffer_count < 1) {
  3238. DRM_ERROR("execbuf with %d buffers\n", args->buffer_count);
  3239. return -EINVAL;
  3240. }
  3241. object_list = drm_malloc_ab(sizeof(*object_list), args->buffer_count);
  3242. if (object_list == NULL) {
  3243. DRM_ERROR("Failed to allocate object list for %d buffers\n",
  3244. args->buffer_count);
  3245. ret = -ENOMEM;
  3246. goto pre_mutex_err;
  3247. }
  3248. if (args->num_cliprects != 0) {
  3249. cliprects = kcalloc(args->num_cliprects, sizeof(*cliprects),
  3250. GFP_KERNEL);
  3251. if (cliprects == NULL) {
  3252. ret = -ENOMEM;
  3253. goto pre_mutex_err;
  3254. }
  3255. ret = copy_from_user(cliprects,
  3256. (struct drm_clip_rect __user *)
  3257. (uintptr_t) args->cliprects_ptr,
  3258. sizeof(*cliprects) * args->num_cliprects);
  3259. if (ret != 0) {
  3260. DRM_ERROR("copy %d cliprects failed: %d\n",
  3261. args->num_cliprects, ret);
  3262. ret = -EFAULT;
  3263. goto pre_mutex_err;
  3264. }
  3265. }
  3266. request = kzalloc(sizeof(*request), GFP_KERNEL);
  3267. if (request == NULL) {
  3268. ret = -ENOMEM;
  3269. goto pre_mutex_err;
  3270. }
  3271. ret = i915_mutex_lock_interruptible(dev);
  3272. if (ret)
  3273. goto pre_mutex_err;
  3274. if (dev_priv->mm.suspended) {
  3275. mutex_unlock(&dev->struct_mutex);
  3276. ret = -EBUSY;
  3277. goto pre_mutex_err;
  3278. }
  3279. /* Look up object handles */
  3280. for (i = 0; i < args->buffer_count; i++) {
  3281. object_list[i] = drm_gem_object_lookup(dev, file,
  3282. exec_list[i].handle);
  3283. if (object_list[i] == NULL) {
  3284. DRM_ERROR("Invalid object handle %d at index %d\n",
  3285. exec_list[i].handle, i);
  3286. /* prevent error path from reading uninitialized data */
  3287. args->buffer_count = i + 1;
  3288. ret = -ENOENT;
  3289. goto err;
  3290. }
  3291. obj_priv = to_intel_bo(object_list[i]);
  3292. if (obj_priv->in_execbuffer) {
  3293. DRM_ERROR("Object %p appears more than once in object list\n",
  3294. object_list[i]);
  3295. /* prevent error path from reading uninitialized data */
  3296. args->buffer_count = i + 1;
  3297. ret = -EINVAL;
  3298. goto err;
  3299. }
  3300. obj_priv->in_execbuffer = true;
  3301. }
  3302. /* Move the objects en-masse into the GTT, evicting if necessary. */
  3303. ret = i915_gem_execbuffer_reserve(dev, file,
  3304. object_list, exec_list,
  3305. args->buffer_count);
  3306. if (ret)
  3307. goto err;
  3308. /* The objects are in their final locations, apply the relocations. */
  3309. ret = i915_gem_execbuffer_relocate(dev, file,
  3310. object_list, exec_list,
  3311. args->buffer_count);
  3312. if (ret) {
  3313. if (ret == -EFAULT) {
  3314. ret = i915_gem_execbuffer_relocate_slow(dev, file,
  3315. object_list,
  3316. exec_list,
  3317. args->buffer_count);
  3318. BUG_ON(!mutex_is_locked(&dev->struct_mutex));
  3319. }
  3320. if (ret)
  3321. goto err;
  3322. }
  3323. /* Set the pending read domains for the batch buffer to COMMAND */
  3324. batch_obj = object_list[args->buffer_count-1];
  3325. if (batch_obj->pending_write_domain) {
  3326. DRM_ERROR("Attempting to use self-modifying batch buffer\n");
  3327. ret = -EINVAL;
  3328. goto err;
  3329. }
  3330. batch_obj->pending_read_domains |= I915_GEM_DOMAIN_COMMAND;
  3331. /* Sanity check the batch buffer */
  3332. exec_offset = to_intel_bo(batch_obj)->gtt_offset;
  3333. ret = i915_gem_check_execbuffer(args, exec_offset);
  3334. if (ret != 0) {
  3335. DRM_ERROR("execbuf with invalid offset/length\n");
  3336. goto err;
  3337. }
  3338. ret = i915_gem_execbuffer_move_to_gpu(dev, file, ring,
  3339. object_list, args->buffer_count);
  3340. if (ret)
  3341. goto err;
  3342. for (i = 0; i < args->buffer_count; i++) {
  3343. struct drm_gem_object *obj = object_list[i];
  3344. uint32_t old_write_domain = obj->write_domain;
  3345. obj->write_domain = obj->pending_write_domain;
  3346. trace_i915_gem_object_change_domain(obj,
  3347. obj->read_domains,
  3348. old_write_domain);
  3349. }
  3350. #if WATCH_COHERENCY
  3351. for (i = 0; i < args->buffer_count; i++) {
  3352. i915_gem_object_check_coherency(object_list[i],
  3353. exec_list[i].handle);
  3354. }
  3355. #endif
  3356. #if WATCH_EXEC
  3357. i915_gem_dump_object(batch_obj,
  3358. args->batch_len,
  3359. __func__,
  3360. ~0);
  3361. #endif
  3362. /* Check for any pending flips. As we only maintain a flip queue depth
  3363. * of 1, we can simply insert a WAIT for the next display flip prior
  3364. * to executing the batch and avoid stalling the CPU.
  3365. */
  3366. flips = 0;
  3367. for (i = 0; i < args->buffer_count; i++) {
  3368. if (object_list[i]->write_domain)
  3369. flips |= atomic_read(&to_intel_bo(object_list[i])->pending_flip);
  3370. }
  3371. if (flips) {
  3372. int plane, flip_mask;
  3373. for (plane = 0; flips >> plane; plane++) {
  3374. if (((flips >> plane) & 1) == 0)
  3375. continue;
  3376. if (plane)
  3377. flip_mask = MI_WAIT_FOR_PLANE_B_FLIP;
  3378. else
  3379. flip_mask = MI_WAIT_FOR_PLANE_A_FLIP;
  3380. intel_ring_begin(dev, ring, 2);
  3381. intel_ring_emit(dev, ring,
  3382. MI_WAIT_FOR_EVENT | flip_mask);
  3383. intel_ring_emit(dev, ring, MI_NOOP);
  3384. intel_ring_advance(dev, ring);
  3385. }
  3386. }
  3387. /* Exec the batchbuffer */
  3388. ret = ring->dispatch_gem_execbuffer(dev, ring, args,
  3389. cliprects, exec_offset);
  3390. if (ret) {
  3391. DRM_ERROR("dispatch failed %d\n", ret);
  3392. goto err;
  3393. }
  3394. /*
  3395. * Ensure that the commands in the batch buffer are
  3396. * finished before the interrupt fires
  3397. */
  3398. i915_retire_commands(dev, ring);
  3399. for (i = 0; i < args->buffer_count; i++) {
  3400. struct drm_gem_object *obj = object_list[i];
  3401. i915_gem_object_move_to_active(obj, ring);
  3402. if (obj->write_domain)
  3403. list_move_tail(&to_intel_bo(obj)->gpu_write_list,
  3404. &ring->gpu_write_list);
  3405. }
  3406. i915_add_request(dev, file, request, ring);
  3407. request = NULL;
  3408. err:
  3409. for (i = 0; i < args->buffer_count; i++) {
  3410. if (object_list[i]) {
  3411. obj_priv = to_intel_bo(object_list[i]);
  3412. obj_priv->in_execbuffer = false;
  3413. }
  3414. drm_gem_object_unreference(object_list[i]);
  3415. }
  3416. mutex_unlock(&dev->struct_mutex);
  3417. pre_mutex_err:
  3418. drm_free_large(object_list);
  3419. kfree(cliprects);
  3420. kfree(request);
  3421. return ret;
  3422. }
  3423. /*
  3424. * Legacy execbuffer just creates an exec2 list from the original exec object
  3425. * list array and passes it to the real function.
  3426. */
  3427. int
  3428. i915_gem_execbuffer(struct drm_device *dev, void *data,
  3429. struct drm_file *file_priv)
  3430. {
  3431. struct drm_i915_gem_execbuffer *args = data;
  3432. struct drm_i915_gem_execbuffer2 exec2;
  3433. struct drm_i915_gem_exec_object *exec_list = NULL;
  3434. struct drm_i915_gem_exec_object2 *exec2_list = NULL;
  3435. int ret, i;
  3436. #if WATCH_EXEC
  3437. DRM_INFO("buffers_ptr %d buffer_count %d len %08x\n",
  3438. (int) args->buffers_ptr, args->buffer_count, args->batch_len);
  3439. #endif
  3440. if (args->buffer_count < 1) {
  3441. DRM_ERROR("execbuf with %d buffers\n", args->buffer_count);
  3442. return -EINVAL;
  3443. }
  3444. /* Copy in the exec list from userland */
  3445. exec_list = drm_malloc_ab(sizeof(*exec_list), args->buffer_count);
  3446. exec2_list = drm_malloc_ab(sizeof(*exec2_list), args->buffer_count);
  3447. if (exec_list == NULL || exec2_list == NULL) {
  3448. DRM_ERROR("Failed to allocate exec list for %d buffers\n",
  3449. args->buffer_count);
  3450. drm_free_large(exec_list);
  3451. drm_free_large(exec2_list);
  3452. return -ENOMEM;
  3453. }
  3454. ret = copy_from_user(exec_list,
  3455. (struct drm_i915_relocation_entry __user *)
  3456. (uintptr_t) args->buffers_ptr,
  3457. sizeof(*exec_list) * args->buffer_count);
  3458. if (ret != 0) {
  3459. DRM_ERROR("copy %d exec entries failed %d\n",
  3460. args->buffer_count, ret);
  3461. drm_free_large(exec_list);
  3462. drm_free_large(exec2_list);
  3463. return -EFAULT;
  3464. }
  3465. for (i = 0; i < args->buffer_count; i++) {
  3466. exec2_list[i].handle = exec_list[i].handle;
  3467. exec2_list[i].relocation_count = exec_list[i].relocation_count;
  3468. exec2_list[i].relocs_ptr = exec_list[i].relocs_ptr;
  3469. exec2_list[i].alignment = exec_list[i].alignment;
  3470. exec2_list[i].offset = exec_list[i].offset;
  3471. if (INTEL_INFO(dev)->gen < 4)
  3472. exec2_list[i].flags = EXEC_OBJECT_NEEDS_FENCE;
  3473. else
  3474. exec2_list[i].flags = 0;
  3475. }
  3476. exec2.buffers_ptr = args->buffers_ptr;
  3477. exec2.buffer_count = args->buffer_count;
  3478. exec2.batch_start_offset = args->batch_start_offset;
  3479. exec2.batch_len = args->batch_len;
  3480. exec2.DR1 = args->DR1;
  3481. exec2.DR4 = args->DR4;
  3482. exec2.num_cliprects = args->num_cliprects;
  3483. exec2.cliprects_ptr = args->cliprects_ptr;
  3484. exec2.flags = I915_EXEC_RENDER;
  3485. ret = i915_gem_do_execbuffer(dev, data, file_priv, &exec2, exec2_list);
  3486. if (!ret) {
  3487. /* Copy the new buffer offsets back to the user's exec list. */
  3488. for (i = 0; i < args->buffer_count; i++)
  3489. exec_list[i].offset = exec2_list[i].offset;
  3490. /* ... and back out to userspace */
  3491. ret = copy_to_user((struct drm_i915_relocation_entry __user *)
  3492. (uintptr_t) args->buffers_ptr,
  3493. exec_list,
  3494. sizeof(*exec_list) * args->buffer_count);
  3495. if (ret) {
  3496. ret = -EFAULT;
  3497. DRM_ERROR("failed to copy %d exec entries "
  3498. "back to user (%d)\n",
  3499. args->buffer_count, ret);
  3500. }
  3501. }
  3502. drm_free_large(exec_list);
  3503. drm_free_large(exec2_list);
  3504. return ret;
  3505. }
  3506. int
  3507. i915_gem_execbuffer2(struct drm_device *dev, void *data,
  3508. struct drm_file *file_priv)
  3509. {
  3510. struct drm_i915_gem_execbuffer2 *args = data;
  3511. struct drm_i915_gem_exec_object2 *exec2_list = NULL;
  3512. int ret;
  3513. #if WATCH_EXEC
  3514. DRM_INFO("buffers_ptr %d buffer_count %d len %08x\n",
  3515. (int) args->buffers_ptr, args->buffer_count, args->batch_len);
  3516. #endif
  3517. if (args->buffer_count < 1) {
  3518. DRM_ERROR("execbuf2 with %d buffers\n", args->buffer_count);
  3519. return -EINVAL;
  3520. }
  3521. exec2_list = drm_malloc_ab(sizeof(*exec2_list), args->buffer_count);
  3522. if (exec2_list == NULL) {
  3523. DRM_ERROR("Failed to allocate exec list for %d buffers\n",
  3524. args->buffer_count);
  3525. return -ENOMEM;
  3526. }
  3527. ret = copy_from_user(exec2_list,
  3528. (struct drm_i915_relocation_entry __user *)
  3529. (uintptr_t) args->buffers_ptr,
  3530. sizeof(*exec2_list) * args->buffer_count);
  3531. if (ret != 0) {
  3532. DRM_ERROR("copy %d exec entries failed %d\n",
  3533. args->buffer_count, ret);
  3534. drm_free_large(exec2_list);
  3535. return -EFAULT;
  3536. }
  3537. ret = i915_gem_do_execbuffer(dev, data, file_priv, args, exec2_list);
  3538. if (!ret) {
  3539. /* Copy the new buffer offsets back to the user's exec list. */
  3540. ret = copy_to_user((struct drm_i915_relocation_entry __user *)
  3541. (uintptr_t) args->buffers_ptr,
  3542. exec2_list,
  3543. sizeof(*exec2_list) * args->buffer_count);
  3544. if (ret) {
  3545. ret = -EFAULT;
  3546. DRM_ERROR("failed to copy %d exec entries "
  3547. "back to user (%d)\n",
  3548. args->buffer_count, ret);
  3549. }
  3550. }
  3551. drm_free_large(exec2_list);
  3552. return ret;
  3553. }
  3554. int
  3555. i915_gem_object_pin(struct drm_gem_object *obj, uint32_t alignment)
  3556. {
  3557. struct drm_device *dev = obj->dev;
  3558. struct drm_i915_private *dev_priv = dev->dev_private;
  3559. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  3560. int ret;
  3561. BUG_ON(obj_priv->pin_count == DRM_I915_GEM_OBJECT_MAX_PIN_COUNT);
  3562. WARN_ON(i915_verify_lists(dev));
  3563. if (obj_priv->gtt_space != NULL) {
  3564. if (alignment == 0)
  3565. alignment = i915_gem_get_gtt_alignment(obj);
  3566. if (obj_priv->gtt_offset & (alignment - 1)) {
  3567. WARN(obj_priv->pin_count,
  3568. "bo is already pinned with incorrect alignment: offset=%x, req.alignment=%x\n",
  3569. obj_priv->gtt_offset, alignment);
  3570. ret = i915_gem_object_unbind(obj);
  3571. if (ret)
  3572. return ret;
  3573. }
  3574. }
  3575. if (obj_priv->gtt_space == NULL) {
  3576. ret = i915_gem_object_bind_to_gtt(obj, alignment);
  3577. if (ret)
  3578. return ret;
  3579. }
  3580. obj_priv->pin_count++;
  3581. /* If the object is not active and not pending a flush,
  3582. * remove it from the inactive list
  3583. */
  3584. if (obj_priv->pin_count == 1) {
  3585. i915_gem_info_add_pin(dev_priv, obj->size);
  3586. if (!obj_priv->active)
  3587. list_move_tail(&obj_priv->mm_list,
  3588. &dev_priv->mm.pinned_list);
  3589. }
  3590. WARN_ON(i915_verify_lists(dev));
  3591. return 0;
  3592. }
  3593. void
  3594. i915_gem_object_unpin(struct drm_gem_object *obj)
  3595. {
  3596. struct drm_device *dev = obj->dev;
  3597. drm_i915_private_t *dev_priv = dev->dev_private;
  3598. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  3599. WARN_ON(i915_verify_lists(dev));
  3600. obj_priv->pin_count--;
  3601. BUG_ON(obj_priv->pin_count < 0);
  3602. BUG_ON(obj_priv->gtt_space == NULL);
  3603. /* If the object is no longer pinned, and is
  3604. * neither active nor being flushed, then stick it on
  3605. * the inactive list
  3606. */
  3607. if (obj_priv->pin_count == 0) {
  3608. if (!obj_priv->active)
  3609. list_move_tail(&obj_priv->mm_list,
  3610. &dev_priv->mm.inactive_list);
  3611. i915_gem_info_remove_pin(dev_priv, obj->size);
  3612. }
  3613. WARN_ON(i915_verify_lists(dev));
  3614. }
  3615. int
  3616. i915_gem_pin_ioctl(struct drm_device *dev, void *data,
  3617. struct drm_file *file_priv)
  3618. {
  3619. struct drm_i915_gem_pin *args = data;
  3620. struct drm_gem_object *obj;
  3621. struct drm_i915_gem_object *obj_priv;
  3622. int ret;
  3623. ret = i915_mutex_lock_interruptible(dev);
  3624. if (ret)
  3625. return ret;
  3626. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  3627. if (obj == NULL) {
  3628. ret = -ENOENT;
  3629. goto unlock;
  3630. }
  3631. obj_priv = to_intel_bo(obj);
  3632. if (obj_priv->madv != I915_MADV_WILLNEED) {
  3633. DRM_ERROR("Attempting to pin a purgeable buffer\n");
  3634. ret = -EINVAL;
  3635. goto out;
  3636. }
  3637. if (obj_priv->pin_filp != NULL && obj_priv->pin_filp != file_priv) {
  3638. DRM_ERROR("Already pinned in i915_gem_pin_ioctl(): %d\n",
  3639. args->handle);
  3640. ret = -EINVAL;
  3641. goto out;
  3642. }
  3643. obj_priv->user_pin_count++;
  3644. obj_priv->pin_filp = file_priv;
  3645. if (obj_priv->user_pin_count == 1) {
  3646. ret = i915_gem_object_pin(obj, args->alignment);
  3647. if (ret)
  3648. goto out;
  3649. }
  3650. /* XXX - flush the CPU caches for pinned objects
  3651. * as the X server doesn't manage domains yet
  3652. */
  3653. i915_gem_object_flush_cpu_write_domain(obj);
  3654. args->offset = obj_priv->gtt_offset;
  3655. out:
  3656. drm_gem_object_unreference(obj);
  3657. unlock:
  3658. mutex_unlock(&dev->struct_mutex);
  3659. return ret;
  3660. }
  3661. int
  3662. i915_gem_unpin_ioctl(struct drm_device *dev, void *data,
  3663. struct drm_file *file_priv)
  3664. {
  3665. struct drm_i915_gem_pin *args = data;
  3666. struct drm_gem_object *obj;
  3667. struct drm_i915_gem_object *obj_priv;
  3668. int ret;
  3669. ret = i915_mutex_lock_interruptible(dev);
  3670. if (ret)
  3671. return ret;
  3672. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  3673. if (obj == NULL) {
  3674. ret = -ENOENT;
  3675. goto unlock;
  3676. }
  3677. obj_priv = to_intel_bo(obj);
  3678. if (obj_priv->pin_filp != file_priv) {
  3679. DRM_ERROR("Not pinned by caller in i915_gem_pin_ioctl(): %d\n",
  3680. args->handle);
  3681. ret = -EINVAL;
  3682. goto out;
  3683. }
  3684. obj_priv->user_pin_count--;
  3685. if (obj_priv->user_pin_count == 0) {
  3686. obj_priv->pin_filp = NULL;
  3687. i915_gem_object_unpin(obj);
  3688. }
  3689. out:
  3690. drm_gem_object_unreference(obj);
  3691. unlock:
  3692. mutex_unlock(&dev->struct_mutex);
  3693. return ret;
  3694. }
  3695. int
  3696. i915_gem_busy_ioctl(struct drm_device *dev, void *data,
  3697. struct drm_file *file_priv)
  3698. {
  3699. struct drm_i915_gem_busy *args = data;
  3700. struct drm_gem_object *obj;
  3701. struct drm_i915_gem_object *obj_priv;
  3702. int ret;
  3703. ret = i915_mutex_lock_interruptible(dev);
  3704. if (ret)
  3705. return ret;
  3706. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  3707. if (obj == NULL) {
  3708. ret = -ENOENT;
  3709. goto unlock;
  3710. }
  3711. obj_priv = to_intel_bo(obj);
  3712. /* Count all active objects as busy, even if they are currently not used
  3713. * by the gpu. Users of this interface expect objects to eventually
  3714. * become non-busy without any further actions, therefore emit any
  3715. * necessary flushes here.
  3716. */
  3717. args->busy = obj_priv->active;
  3718. if (args->busy) {
  3719. /* Unconditionally flush objects, even when the gpu still uses this
  3720. * object. Userspace calling this function indicates that it wants to
  3721. * use this buffer rather sooner than later, so issuing the required
  3722. * flush earlier is beneficial.
  3723. */
  3724. if (obj->write_domain & I915_GEM_GPU_DOMAINS)
  3725. i915_gem_flush_ring(dev, file_priv,
  3726. obj_priv->ring,
  3727. 0, obj->write_domain);
  3728. /* Update the active list for the hardware's current position.
  3729. * Otherwise this only updates on a delayed timer or when irqs
  3730. * are actually unmasked, and our working set ends up being
  3731. * larger than required.
  3732. */
  3733. i915_gem_retire_requests_ring(dev, obj_priv->ring);
  3734. args->busy = obj_priv->active;
  3735. }
  3736. drm_gem_object_unreference(obj);
  3737. unlock:
  3738. mutex_unlock(&dev->struct_mutex);
  3739. return ret;
  3740. }
  3741. int
  3742. i915_gem_throttle_ioctl(struct drm_device *dev, void *data,
  3743. struct drm_file *file_priv)
  3744. {
  3745. return i915_gem_ring_throttle(dev, file_priv);
  3746. }
  3747. int
  3748. i915_gem_madvise_ioctl(struct drm_device *dev, void *data,
  3749. struct drm_file *file_priv)
  3750. {
  3751. struct drm_i915_gem_madvise *args = data;
  3752. struct drm_gem_object *obj;
  3753. struct drm_i915_gem_object *obj_priv;
  3754. int ret;
  3755. switch (args->madv) {
  3756. case I915_MADV_DONTNEED:
  3757. case I915_MADV_WILLNEED:
  3758. break;
  3759. default:
  3760. return -EINVAL;
  3761. }
  3762. ret = i915_mutex_lock_interruptible(dev);
  3763. if (ret)
  3764. return ret;
  3765. obj = drm_gem_object_lookup(dev, file_priv, args->handle);
  3766. if (obj == NULL) {
  3767. ret = -ENOENT;
  3768. goto unlock;
  3769. }
  3770. obj_priv = to_intel_bo(obj);
  3771. if (obj_priv->pin_count) {
  3772. ret = -EINVAL;
  3773. goto out;
  3774. }
  3775. if (obj_priv->madv != __I915_MADV_PURGED)
  3776. obj_priv->madv = args->madv;
  3777. /* if the object is no longer bound, discard its backing storage */
  3778. if (i915_gem_object_is_purgeable(obj_priv) &&
  3779. obj_priv->gtt_space == NULL)
  3780. i915_gem_object_truncate(obj);
  3781. args->retained = obj_priv->madv != __I915_MADV_PURGED;
  3782. out:
  3783. drm_gem_object_unreference(obj);
  3784. unlock:
  3785. mutex_unlock(&dev->struct_mutex);
  3786. return ret;
  3787. }
  3788. struct drm_gem_object * i915_gem_alloc_object(struct drm_device *dev,
  3789. size_t size)
  3790. {
  3791. struct drm_i915_private *dev_priv = dev->dev_private;
  3792. struct drm_i915_gem_object *obj;
  3793. obj = kzalloc(sizeof(*obj), GFP_KERNEL);
  3794. if (obj == NULL)
  3795. return NULL;
  3796. if (drm_gem_object_init(dev, &obj->base, size) != 0) {
  3797. kfree(obj);
  3798. return NULL;
  3799. }
  3800. i915_gem_info_add_obj(dev_priv, size);
  3801. obj->base.write_domain = I915_GEM_DOMAIN_CPU;
  3802. obj->base.read_domains = I915_GEM_DOMAIN_CPU;
  3803. obj->agp_type = AGP_USER_MEMORY;
  3804. obj->base.driver_private = NULL;
  3805. obj->fence_reg = I915_FENCE_REG_NONE;
  3806. INIT_LIST_HEAD(&obj->mm_list);
  3807. INIT_LIST_HEAD(&obj->ring_list);
  3808. INIT_LIST_HEAD(&obj->gpu_write_list);
  3809. obj->madv = I915_MADV_WILLNEED;
  3810. return &obj->base;
  3811. }
  3812. int i915_gem_init_object(struct drm_gem_object *obj)
  3813. {
  3814. BUG();
  3815. return 0;
  3816. }
  3817. static void i915_gem_free_object_tail(struct drm_gem_object *obj)
  3818. {
  3819. struct drm_device *dev = obj->dev;
  3820. drm_i915_private_t *dev_priv = dev->dev_private;
  3821. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  3822. int ret;
  3823. ret = i915_gem_object_unbind(obj);
  3824. if (ret == -ERESTARTSYS) {
  3825. list_move(&obj_priv->mm_list,
  3826. &dev_priv->mm.deferred_free_list);
  3827. return;
  3828. }
  3829. if (obj_priv->mmap_offset)
  3830. i915_gem_free_mmap_offset(obj);
  3831. drm_gem_object_release(obj);
  3832. i915_gem_info_remove_obj(dev_priv, obj->size);
  3833. kfree(obj_priv->page_cpu_valid);
  3834. kfree(obj_priv->bit_17);
  3835. kfree(obj_priv);
  3836. }
  3837. void i915_gem_free_object(struct drm_gem_object *obj)
  3838. {
  3839. struct drm_device *dev = obj->dev;
  3840. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  3841. trace_i915_gem_object_destroy(obj);
  3842. while (obj_priv->pin_count > 0)
  3843. i915_gem_object_unpin(obj);
  3844. if (obj_priv->phys_obj)
  3845. i915_gem_detach_phys_object(dev, obj);
  3846. i915_gem_free_object_tail(obj);
  3847. }
  3848. int
  3849. i915_gem_idle(struct drm_device *dev)
  3850. {
  3851. drm_i915_private_t *dev_priv = dev->dev_private;
  3852. int ret;
  3853. mutex_lock(&dev->struct_mutex);
  3854. if (dev_priv->mm.suspended) {
  3855. mutex_unlock(&dev->struct_mutex);
  3856. return 0;
  3857. }
  3858. ret = i915_gpu_idle(dev);
  3859. if (ret) {
  3860. mutex_unlock(&dev->struct_mutex);
  3861. return ret;
  3862. }
  3863. /* Under UMS, be paranoid and evict. */
  3864. if (!drm_core_check_feature(dev, DRIVER_MODESET)) {
  3865. ret = i915_gem_evict_inactive(dev);
  3866. if (ret) {
  3867. mutex_unlock(&dev->struct_mutex);
  3868. return ret;
  3869. }
  3870. }
  3871. /* Hack! Don't let anybody do execbuf while we don't control the chip.
  3872. * We need to replace this with a semaphore, or something.
  3873. * And not confound mm.suspended!
  3874. */
  3875. dev_priv->mm.suspended = 1;
  3876. del_timer_sync(&dev_priv->hangcheck_timer);
  3877. i915_kernel_lost_context(dev);
  3878. i915_gem_cleanup_ringbuffer(dev);
  3879. mutex_unlock(&dev->struct_mutex);
  3880. /* Cancel the retire work handler, which should be idle now. */
  3881. cancel_delayed_work_sync(&dev_priv->mm.retire_work);
  3882. return 0;
  3883. }
  3884. /*
  3885. * 965+ support PIPE_CONTROL commands, which provide finer grained control
  3886. * over cache flushing.
  3887. */
  3888. static int
  3889. i915_gem_init_pipe_control(struct drm_device *dev)
  3890. {
  3891. drm_i915_private_t *dev_priv = dev->dev_private;
  3892. struct drm_gem_object *obj;
  3893. struct drm_i915_gem_object *obj_priv;
  3894. int ret;
  3895. obj = i915_gem_alloc_object(dev, 4096);
  3896. if (obj == NULL) {
  3897. DRM_ERROR("Failed to allocate seqno page\n");
  3898. ret = -ENOMEM;
  3899. goto err;
  3900. }
  3901. obj_priv = to_intel_bo(obj);
  3902. obj_priv->agp_type = AGP_USER_CACHED_MEMORY;
  3903. ret = i915_gem_object_pin(obj, 4096);
  3904. if (ret)
  3905. goto err_unref;
  3906. dev_priv->seqno_gfx_addr = obj_priv->gtt_offset;
  3907. dev_priv->seqno_page = kmap(obj_priv->pages[0]);
  3908. if (dev_priv->seqno_page == NULL)
  3909. goto err_unpin;
  3910. dev_priv->seqno_obj = obj;
  3911. memset(dev_priv->seqno_page, 0, PAGE_SIZE);
  3912. return 0;
  3913. err_unpin:
  3914. i915_gem_object_unpin(obj);
  3915. err_unref:
  3916. drm_gem_object_unreference(obj);
  3917. err:
  3918. return ret;
  3919. }
  3920. static void
  3921. i915_gem_cleanup_pipe_control(struct drm_device *dev)
  3922. {
  3923. drm_i915_private_t *dev_priv = dev->dev_private;
  3924. struct drm_gem_object *obj;
  3925. struct drm_i915_gem_object *obj_priv;
  3926. obj = dev_priv->seqno_obj;
  3927. obj_priv = to_intel_bo(obj);
  3928. kunmap(obj_priv->pages[0]);
  3929. i915_gem_object_unpin(obj);
  3930. drm_gem_object_unreference(obj);
  3931. dev_priv->seqno_obj = NULL;
  3932. dev_priv->seqno_page = NULL;
  3933. }
  3934. int
  3935. i915_gem_init_ringbuffer(struct drm_device *dev)
  3936. {
  3937. drm_i915_private_t *dev_priv = dev->dev_private;
  3938. int ret;
  3939. if (HAS_PIPE_CONTROL(dev)) {
  3940. ret = i915_gem_init_pipe_control(dev);
  3941. if (ret)
  3942. return ret;
  3943. }
  3944. ret = intel_init_render_ring_buffer(dev);
  3945. if (ret)
  3946. goto cleanup_pipe_control;
  3947. if (HAS_BSD(dev)) {
  3948. ret = intel_init_bsd_ring_buffer(dev);
  3949. if (ret)
  3950. goto cleanup_render_ring;
  3951. }
  3952. if (HAS_BLT(dev)) {
  3953. ret = intel_init_blt_ring_buffer(dev);
  3954. if (ret)
  3955. goto cleanup_bsd_ring;
  3956. }
  3957. dev_priv->next_seqno = 1;
  3958. return 0;
  3959. cleanup_bsd_ring:
  3960. intel_cleanup_ring_buffer(dev, &dev_priv->bsd_ring);
  3961. cleanup_render_ring:
  3962. intel_cleanup_ring_buffer(dev, &dev_priv->render_ring);
  3963. cleanup_pipe_control:
  3964. if (HAS_PIPE_CONTROL(dev))
  3965. i915_gem_cleanup_pipe_control(dev);
  3966. return ret;
  3967. }
  3968. void
  3969. i915_gem_cleanup_ringbuffer(struct drm_device *dev)
  3970. {
  3971. drm_i915_private_t *dev_priv = dev->dev_private;
  3972. intel_cleanup_ring_buffer(dev, &dev_priv->render_ring);
  3973. intel_cleanup_ring_buffer(dev, &dev_priv->bsd_ring);
  3974. intel_cleanup_ring_buffer(dev, &dev_priv->blt_ring);
  3975. if (HAS_PIPE_CONTROL(dev))
  3976. i915_gem_cleanup_pipe_control(dev);
  3977. }
  3978. int
  3979. i915_gem_entervt_ioctl(struct drm_device *dev, void *data,
  3980. struct drm_file *file_priv)
  3981. {
  3982. drm_i915_private_t *dev_priv = dev->dev_private;
  3983. int ret;
  3984. if (drm_core_check_feature(dev, DRIVER_MODESET))
  3985. return 0;
  3986. if (atomic_read(&dev_priv->mm.wedged)) {
  3987. DRM_ERROR("Reenabling wedged hardware, good luck\n");
  3988. atomic_set(&dev_priv->mm.wedged, 0);
  3989. }
  3990. mutex_lock(&dev->struct_mutex);
  3991. dev_priv->mm.suspended = 0;
  3992. ret = i915_gem_init_ringbuffer(dev);
  3993. if (ret != 0) {
  3994. mutex_unlock(&dev->struct_mutex);
  3995. return ret;
  3996. }
  3997. BUG_ON(!list_empty(&dev_priv->mm.active_list));
  3998. BUG_ON(!list_empty(&dev_priv->render_ring.active_list));
  3999. BUG_ON(!list_empty(&dev_priv->bsd_ring.active_list));
  4000. BUG_ON(!list_empty(&dev_priv->blt_ring.active_list));
  4001. BUG_ON(!list_empty(&dev_priv->mm.flushing_list));
  4002. BUG_ON(!list_empty(&dev_priv->mm.inactive_list));
  4003. BUG_ON(!list_empty(&dev_priv->render_ring.request_list));
  4004. BUG_ON(!list_empty(&dev_priv->bsd_ring.request_list));
  4005. BUG_ON(!list_empty(&dev_priv->blt_ring.request_list));
  4006. mutex_unlock(&dev->struct_mutex);
  4007. ret = drm_irq_install(dev);
  4008. if (ret)
  4009. goto cleanup_ringbuffer;
  4010. return 0;
  4011. cleanup_ringbuffer:
  4012. mutex_lock(&dev->struct_mutex);
  4013. i915_gem_cleanup_ringbuffer(dev);
  4014. dev_priv->mm.suspended = 1;
  4015. mutex_unlock(&dev->struct_mutex);
  4016. return ret;
  4017. }
  4018. int
  4019. i915_gem_leavevt_ioctl(struct drm_device *dev, void *data,
  4020. struct drm_file *file_priv)
  4021. {
  4022. if (drm_core_check_feature(dev, DRIVER_MODESET))
  4023. return 0;
  4024. drm_irq_uninstall(dev);
  4025. return i915_gem_idle(dev);
  4026. }
  4027. void
  4028. i915_gem_lastclose(struct drm_device *dev)
  4029. {
  4030. int ret;
  4031. if (drm_core_check_feature(dev, DRIVER_MODESET))
  4032. return;
  4033. ret = i915_gem_idle(dev);
  4034. if (ret)
  4035. DRM_ERROR("failed to idle hardware: %d\n", ret);
  4036. }
  4037. static void
  4038. init_ring_lists(struct intel_ring_buffer *ring)
  4039. {
  4040. INIT_LIST_HEAD(&ring->active_list);
  4041. INIT_LIST_HEAD(&ring->request_list);
  4042. INIT_LIST_HEAD(&ring->gpu_write_list);
  4043. }
  4044. void
  4045. i915_gem_load(struct drm_device *dev)
  4046. {
  4047. int i;
  4048. drm_i915_private_t *dev_priv = dev->dev_private;
  4049. INIT_LIST_HEAD(&dev_priv->mm.active_list);
  4050. INIT_LIST_HEAD(&dev_priv->mm.flushing_list);
  4051. INIT_LIST_HEAD(&dev_priv->mm.inactive_list);
  4052. INIT_LIST_HEAD(&dev_priv->mm.pinned_list);
  4053. INIT_LIST_HEAD(&dev_priv->mm.fence_list);
  4054. INIT_LIST_HEAD(&dev_priv->mm.deferred_free_list);
  4055. init_ring_lists(&dev_priv->render_ring);
  4056. init_ring_lists(&dev_priv->bsd_ring);
  4057. init_ring_lists(&dev_priv->blt_ring);
  4058. for (i = 0; i < 16; i++)
  4059. INIT_LIST_HEAD(&dev_priv->fence_regs[i].lru_list);
  4060. INIT_DELAYED_WORK(&dev_priv->mm.retire_work,
  4061. i915_gem_retire_work_handler);
  4062. init_completion(&dev_priv->error_completion);
  4063. spin_lock(&shrink_list_lock);
  4064. list_add(&dev_priv->mm.shrink_list, &shrink_list);
  4065. spin_unlock(&shrink_list_lock);
  4066. /* On GEN3 we really need to make sure the ARB C3 LP bit is set */
  4067. if (IS_GEN3(dev)) {
  4068. u32 tmp = I915_READ(MI_ARB_STATE);
  4069. if (!(tmp & MI_ARB_C3_LP_WRITE_ENABLE)) {
  4070. /* arb state is a masked write, so set bit + bit in mask */
  4071. tmp = MI_ARB_C3_LP_WRITE_ENABLE | (MI_ARB_C3_LP_WRITE_ENABLE << MI_ARB_MASK_SHIFT);
  4072. I915_WRITE(MI_ARB_STATE, tmp);
  4073. }
  4074. }
  4075. /* Old X drivers will take 0-2 for front, back, depth buffers */
  4076. if (!drm_core_check_feature(dev, DRIVER_MODESET))
  4077. dev_priv->fence_reg_start = 3;
  4078. if (INTEL_INFO(dev)->gen >= 4 || IS_I945G(dev) || IS_I945GM(dev) || IS_G33(dev))
  4079. dev_priv->num_fence_regs = 16;
  4080. else
  4081. dev_priv->num_fence_regs = 8;
  4082. /* Initialize fence registers to zero */
  4083. switch (INTEL_INFO(dev)->gen) {
  4084. case 6:
  4085. for (i = 0; i < 16; i++)
  4086. I915_WRITE64(FENCE_REG_SANDYBRIDGE_0 + (i * 8), 0);
  4087. break;
  4088. case 5:
  4089. case 4:
  4090. for (i = 0; i < 16; i++)
  4091. I915_WRITE64(FENCE_REG_965_0 + (i * 8), 0);
  4092. break;
  4093. case 3:
  4094. if (IS_I945G(dev) || IS_I945GM(dev) || IS_G33(dev))
  4095. for (i = 0; i < 8; i++)
  4096. I915_WRITE(FENCE_REG_945_8 + (i * 4), 0);
  4097. case 2:
  4098. for (i = 0; i < 8; i++)
  4099. I915_WRITE(FENCE_REG_830_0 + (i * 4), 0);
  4100. break;
  4101. }
  4102. i915_gem_detect_bit_6_swizzle(dev);
  4103. init_waitqueue_head(&dev_priv->pending_flip_queue);
  4104. }
  4105. /*
  4106. * Create a physically contiguous memory object for this object
  4107. * e.g. for cursor + overlay regs
  4108. */
  4109. static int i915_gem_init_phys_object(struct drm_device *dev,
  4110. int id, int size, int align)
  4111. {
  4112. drm_i915_private_t *dev_priv = dev->dev_private;
  4113. struct drm_i915_gem_phys_object *phys_obj;
  4114. int ret;
  4115. if (dev_priv->mm.phys_objs[id - 1] || !size)
  4116. return 0;
  4117. phys_obj = kzalloc(sizeof(struct drm_i915_gem_phys_object), GFP_KERNEL);
  4118. if (!phys_obj)
  4119. return -ENOMEM;
  4120. phys_obj->id = id;
  4121. phys_obj->handle = drm_pci_alloc(dev, size, align);
  4122. if (!phys_obj->handle) {
  4123. ret = -ENOMEM;
  4124. goto kfree_obj;
  4125. }
  4126. #ifdef CONFIG_X86
  4127. set_memory_wc((unsigned long)phys_obj->handle->vaddr, phys_obj->handle->size / PAGE_SIZE);
  4128. #endif
  4129. dev_priv->mm.phys_objs[id - 1] = phys_obj;
  4130. return 0;
  4131. kfree_obj:
  4132. kfree(phys_obj);
  4133. return ret;
  4134. }
  4135. static void i915_gem_free_phys_object(struct drm_device *dev, int id)
  4136. {
  4137. drm_i915_private_t *dev_priv = dev->dev_private;
  4138. struct drm_i915_gem_phys_object *phys_obj;
  4139. if (!dev_priv->mm.phys_objs[id - 1])
  4140. return;
  4141. phys_obj = dev_priv->mm.phys_objs[id - 1];
  4142. if (phys_obj->cur_obj) {
  4143. i915_gem_detach_phys_object(dev, phys_obj->cur_obj);
  4144. }
  4145. #ifdef CONFIG_X86
  4146. set_memory_wb((unsigned long)phys_obj->handle->vaddr, phys_obj->handle->size / PAGE_SIZE);
  4147. #endif
  4148. drm_pci_free(dev, phys_obj->handle);
  4149. kfree(phys_obj);
  4150. dev_priv->mm.phys_objs[id - 1] = NULL;
  4151. }
  4152. void i915_gem_free_all_phys_object(struct drm_device *dev)
  4153. {
  4154. int i;
  4155. for (i = I915_GEM_PHYS_CURSOR_0; i <= I915_MAX_PHYS_OBJECT; i++)
  4156. i915_gem_free_phys_object(dev, i);
  4157. }
  4158. void i915_gem_detach_phys_object(struct drm_device *dev,
  4159. struct drm_gem_object *obj)
  4160. {
  4161. struct drm_i915_gem_object *obj_priv;
  4162. int i;
  4163. int ret;
  4164. int page_count;
  4165. obj_priv = to_intel_bo(obj);
  4166. if (!obj_priv->phys_obj)
  4167. return;
  4168. ret = i915_gem_object_get_pages(obj, 0);
  4169. if (ret)
  4170. goto out;
  4171. page_count = obj->size / PAGE_SIZE;
  4172. for (i = 0; i < page_count; i++) {
  4173. char *dst = kmap_atomic(obj_priv->pages[i]);
  4174. char *src = obj_priv->phys_obj->handle->vaddr + (i * PAGE_SIZE);
  4175. memcpy(dst, src, PAGE_SIZE);
  4176. kunmap_atomic(dst);
  4177. }
  4178. drm_clflush_pages(obj_priv->pages, page_count);
  4179. drm_agp_chipset_flush(dev);
  4180. i915_gem_object_put_pages(obj);
  4181. out:
  4182. obj_priv->phys_obj->cur_obj = NULL;
  4183. obj_priv->phys_obj = NULL;
  4184. }
  4185. int
  4186. i915_gem_attach_phys_object(struct drm_device *dev,
  4187. struct drm_gem_object *obj,
  4188. int id,
  4189. int align)
  4190. {
  4191. drm_i915_private_t *dev_priv = dev->dev_private;
  4192. struct drm_i915_gem_object *obj_priv;
  4193. int ret = 0;
  4194. int page_count;
  4195. int i;
  4196. if (id > I915_MAX_PHYS_OBJECT)
  4197. return -EINVAL;
  4198. obj_priv = to_intel_bo(obj);
  4199. if (obj_priv->phys_obj) {
  4200. if (obj_priv->phys_obj->id == id)
  4201. return 0;
  4202. i915_gem_detach_phys_object(dev, obj);
  4203. }
  4204. /* create a new object */
  4205. if (!dev_priv->mm.phys_objs[id - 1]) {
  4206. ret = i915_gem_init_phys_object(dev, id,
  4207. obj->size, align);
  4208. if (ret) {
  4209. DRM_ERROR("failed to init phys object %d size: %zu\n", id, obj->size);
  4210. goto out;
  4211. }
  4212. }
  4213. /* bind to the object */
  4214. obj_priv->phys_obj = dev_priv->mm.phys_objs[id - 1];
  4215. obj_priv->phys_obj->cur_obj = obj;
  4216. ret = i915_gem_object_get_pages(obj, 0);
  4217. if (ret) {
  4218. DRM_ERROR("failed to get page list\n");
  4219. goto out;
  4220. }
  4221. page_count = obj->size / PAGE_SIZE;
  4222. for (i = 0; i < page_count; i++) {
  4223. char *src = kmap_atomic(obj_priv->pages[i]);
  4224. char *dst = obj_priv->phys_obj->handle->vaddr + (i * PAGE_SIZE);
  4225. memcpy(dst, src, PAGE_SIZE);
  4226. kunmap_atomic(src);
  4227. }
  4228. i915_gem_object_put_pages(obj);
  4229. return 0;
  4230. out:
  4231. return ret;
  4232. }
  4233. static int
  4234. i915_gem_phys_pwrite(struct drm_device *dev, struct drm_gem_object *obj,
  4235. struct drm_i915_gem_pwrite *args,
  4236. struct drm_file *file_priv)
  4237. {
  4238. struct drm_i915_gem_object *obj_priv = to_intel_bo(obj);
  4239. void *vaddr = obj_priv->phys_obj->handle->vaddr + args->offset;
  4240. char __user *user_data = (char __user *) (uintptr_t) args->data_ptr;
  4241. DRM_DEBUG_DRIVER("vaddr %p, %lld\n", vaddr, args->size);
  4242. if (__copy_from_user_inatomic_nocache(vaddr, user_data, args->size)) {
  4243. unsigned long unwritten;
  4244. /* The physical object once assigned is fixed for the lifetime
  4245. * of the obj, so we can safely drop the lock and continue
  4246. * to access vaddr.
  4247. */
  4248. mutex_unlock(&dev->struct_mutex);
  4249. unwritten = copy_from_user(vaddr, user_data, args->size);
  4250. mutex_lock(&dev->struct_mutex);
  4251. if (unwritten)
  4252. return -EFAULT;
  4253. }
  4254. drm_agp_chipset_flush(dev);
  4255. return 0;
  4256. }
  4257. void i915_gem_release(struct drm_device *dev, struct drm_file *file)
  4258. {
  4259. struct drm_i915_file_private *file_priv = file->driver_priv;
  4260. /* Clean up our request list when the client is going away, so that
  4261. * later retire_requests won't dereference our soon-to-be-gone
  4262. * file_priv.
  4263. */
  4264. spin_lock(&file_priv->mm.lock);
  4265. while (!list_empty(&file_priv->mm.request_list)) {
  4266. struct drm_i915_gem_request *request;
  4267. request = list_first_entry(&file_priv->mm.request_list,
  4268. struct drm_i915_gem_request,
  4269. client_list);
  4270. list_del(&request->client_list);
  4271. request->file_priv = NULL;
  4272. }
  4273. spin_unlock(&file_priv->mm.lock);
  4274. }
  4275. static int
  4276. i915_gpu_is_active(struct drm_device *dev)
  4277. {
  4278. drm_i915_private_t *dev_priv = dev->dev_private;
  4279. int lists_empty;
  4280. lists_empty = list_empty(&dev_priv->mm.flushing_list) &&
  4281. list_empty(&dev_priv->mm.active_list);
  4282. return !lists_empty;
  4283. }
  4284. static int
  4285. i915_gem_shrink(struct shrinker *shrink, int nr_to_scan, gfp_t gfp_mask)
  4286. {
  4287. drm_i915_private_t *dev_priv, *next_dev;
  4288. struct drm_i915_gem_object *obj_priv, *next_obj;
  4289. int cnt = 0;
  4290. int would_deadlock = 1;
  4291. /* "fast-path" to count number of available objects */
  4292. if (nr_to_scan == 0) {
  4293. spin_lock(&shrink_list_lock);
  4294. list_for_each_entry(dev_priv, &shrink_list, mm.shrink_list) {
  4295. struct drm_device *dev = dev_priv->dev;
  4296. if (mutex_trylock(&dev->struct_mutex)) {
  4297. list_for_each_entry(obj_priv,
  4298. &dev_priv->mm.inactive_list,
  4299. mm_list)
  4300. cnt++;
  4301. mutex_unlock(&dev->struct_mutex);
  4302. }
  4303. }
  4304. spin_unlock(&shrink_list_lock);
  4305. return (cnt / 100) * sysctl_vfs_cache_pressure;
  4306. }
  4307. spin_lock(&shrink_list_lock);
  4308. rescan:
  4309. /* first scan for clean buffers */
  4310. list_for_each_entry_safe(dev_priv, next_dev,
  4311. &shrink_list, mm.shrink_list) {
  4312. struct drm_device *dev = dev_priv->dev;
  4313. if (! mutex_trylock(&dev->struct_mutex))
  4314. continue;
  4315. spin_unlock(&shrink_list_lock);
  4316. i915_gem_retire_requests(dev);
  4317. list_for_each_entry_safe(obj_priv, next_obj,
  4318. &dev_priv->mm.inactive_list,
  4319. mm_list) {
  4320. if (i915_gem_object_is_purgeable(obj_priv)) {
  4321. i915_gem_object_unbind(&obj_priv->base);
  4322. if (--nr_to_scan <= 0)
  4323. break;
  4324. }
  4325. }
  4326. spin_lock(&shrink_list_lock);
  4327. mutex_unlock(&dev->struct_mutex);
  4328. would_deadlock = 0;
  4329. if (nr_to_scan <= 0)
  4330. break;
  4331. }
  4332. /* second pass, evict/count anything still on the inactive list */
  4333. list_for_each_entry_safe(dev_priv, next_dev,
  4334. &shrink_list, mm.shrink_list) {
  4335. struct drm_device *dev = dev_priv->dev;
  4336. if (! mutex_trylock(&dev->struct_mutex))
  4337. continue;
  4338. spin_unlock(&shrink_list_lock);
  4339. list_for_each_entry_safe(obj_priv, next_obj,
  4340. &dev_priv->mm.inactive_list,
  4341. mm_list) {
  4342. if (nr_to_scan > 0) {
  4343. i915_gem_object_unbind(&obj_priv->base);
  4344. nr_to_scan--;
  4345. } else
  4346. cnt++;
  4347. }
  4348. spin_lock(&shrink_list_lock);
  4349. mutex_unlock(&dev->struct_mutex);
  4350. would_deadlock = 0;
  4351. }
  4352. if (nr_to_scan) {
  4353. int active = 0;
  4354. /*
  4355. * We are desperate for pages, so as a last resort, wait
  4356. * for the GPU to finish and discard whatever we can.
  4357. * This has a dramatic impact to reduce the number of
  4358. * OOM-killer events whilst running the GPU aggressively.
  4359. */
  4360. list_for_each_entry(dev_priv, &shrink_list, mm.shrink_list) {
  4361. struct drm_device *dev = dev_priv->dev;
  4362. if (!mutex_trylock(&dev->struct_mutex))
  4363. continue;
  4364. spin_unlock(&shrink_list_lock);
  4365. if (i915_gpu_is_active(dev)) {
  4366. i915_gpu_idle(dev);
  4367. active++;
  4368. }
  4369. spin_lock(&shrink_list_lock);
  4370. mutex_unlock(&dev->struct_mutex);
  4371. }
  4372. if (active)
  4373. goto rescan;
  4374. }
  4375. spin_unlock(&shrink_list_lock);
  4376. if (would_deadlock)
  4377. return -1;
  4378. else if (cnt > 0)
  4379. return (cnt / 100) * sysctl_vfs_cache_pressure;
  4380. else
  4381. return 0;
  4382. }
  4383. static struct shrinker shrinker = {
  4384. .shrink = i915_gem_shrink,
  4385. .seeks = DEFAULT_SEEKS,
  4386. };
  4387. __init void
  4388. i915_gem_shrinker_init(void)
  4389. {
  4390. register_shrinker(&shrinker);
  4391. }
  4392. __exit void
  4393. i915_gem_shrinker_exit(void)
  4394. {
  4395. unregister_shrinker(&shrinker);
  4396. }