ttm_tt.c 13 KB

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  1. /**************************************************************************
  2. *
  3. * Copyright (c) 2006-2009 VMware, Inc., Palo Alto, CA., USA
  4. * All Rights Reserved.
  5. *
  6. * Permission is hereby granted, free of charge, to any person obtaining a
  7. * copy of this software and associated documentation files (the
  8. * "Software"), to deal in the Software without restriction, including
  9. * without limitation the rights to use, copy, modify, merge, publish,
  10. * distribute, sub license, and/or sell copies of the Software, and to
  11. * permit persons to whom the Software is furnished to do so, subject to
  12. * the following conditions:
  13. *
  14. * The above copyright notice and this permission notice (including the
  15. * next paragraph) shall be included in all copies or substantial portions
  16. * of the Software.
  17. *
  18. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  19. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  20. * FITNESS FOR A PARTICULAR PURPOSE AND NON-INFRINGEMENT. IN NO EVENT SHALL
  21. * THE COPYRIGHT HOLDERS, AUTHORS AND/OR ITS SUPPLIERS BE LIABLE FOR ANY CLAIM,
  22. * DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR
  23. * OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE
  24. * USE OR OTHER DEALINGS IN THE SOFTWARE.
  25. *
  26. **************************************************************************/
  27. /*
  28. * Authors: Thomas Hellstrom <thellstrom-at-vmware-dot-com>
  29. */
  30. #include <linux/vmalloc.h>
  31. #include <linux/sched.h>
  32. #include <linux/highmem.h>
  33. #include <linux/pagemap.h>
  34. #include <linux/file.h>
  35. #include <linux/swap.h>
  36. #include "drm_cache.h"
  37. #include "ttm/ttm_module.h"
  38. #include "ttm/ttm_bo_driver.h"
  39. #include "ttm/ttm_placement.h"
  40. static int ttm_tt_swapin(struct ttm_tt *ttm);
  41. /**
  42. * Allocates storage for pointers to the pages that back the ttm.
  43. *
  44. * Uses kmalloc if possible. Otherwise falls back to vmalloc.
  45. */
  46. static void ttm_tt_alloc_page_directory(struct ttm_tt *ttm)
  47. {
  48. unsigned long size = ttm->num_pages * sizeof(*ttm->pages);
  49. ttm->pages = NULL;
  50. if (size <= PAGE_SIZE)
  51. ttm->pages = kzalloc(size, GFP_KERNEL);
  52. if (!ttm->pages) {
  53. ttm->pages = vmalloc_user(size);
  54. if (ttm->pages)
  55. ttm->page_flags |= TTM_PAGE_FLAG_VMALLOC;
  56. }
  57. }
  58. static void ttm_tt_free_page_directory(struct ttm_tt *ttm)
  59. {
  60. if (ttm->page_flags & TTM_PAGE_FLAG_VMALLOC) {
  61. vfree(ttm->pages);
  62. ttm->page_flags &= ~TTM_PAGE_FLAG_VMALLOC;
  63. } else {
  64. kfree(ttm->pages);
  65. }
  66. ttm->pages = NULL;
  67. }
  68. static struct page *ttm_tt_alloc_page(unsigned page_flags)
  69. {
  70. gfp_t gfp_flags = GFP_USER;
  71. if (page_flags & TTM_PAGE_FLAG_ZERO_ALLOC)
  72. gfp_flags |= __GFP_ZERO;
  73. if (page_flags & TTM_PAGE_FLAG_DMA32)
  74. gfp_flags |= __GFP_DMA32;
  75. else
  76. gfp_flags |= __GFP_HIGHMEM;
  77. return alloc_page(gfp_flags);
  78. }
  79. static void ttm_tt_free_user_pages(struct ttm_tt *ttm)
  80. {
  81. int write;
  82. int dirty;
  83. struct page *page;
  84. int i;
  85. struct ttm_backend *be = ttm->be;
  86. BUG_ON(!(ttm->page_flags & TTM_PAGE_FLAG_USER));
  87. write = ((ttm->page_flags & TTM_PAGE_FLAG_WRITE) != 0);
  88. dirty = ((ttm->page_flags & TTM_PAGE_FLAG_USER_DIRTY) != 0);
  89. if (be)
  90. be->func->clear(be);
  91. for (i = 0; i < ttm->num_pages; ++i) {
  92. page = ttm->pages[i];
  93. if (page == NULL)
  94. continue;
  95. if (page == ttm->dummy_read_page) {
  96. BUG_ON(write);
  97. continue;
  98. }
  99. if (write && dirty && !PageReserved(page))
  100. set_page_dirty_lock(page);
  101. ttm->pages[i] = NULL;
  102. ttm_mem_global_free(ttm->glob->mem_glob, PAGE_SIZE);
  103. put_page(page);
  104. }
  105. ttm->state = tt_unpopulated;
  106. ttm->first_himem_page = ttm->num_pages;
  107. ttm->last_lomem_page = -1;
  108. }
  109. static struct page *__ttm_tt_get_page(struct ttm_tt *ttm, int index)
  110. {
  111. struct page *p;
  112. struct ttm_mem_global *mem_glob = ttm->glob->mem_glob;
  113. int ret;
  114. while (NULL == (p = ttm->pages[index])) {
  115. p = ttm_tt_alloc_page(ttm->page_flags);
  116. if (!p)
  117. return NULL;
  118. ret = ttm_mem_global_alloc_page(mem_glob, p, false, false);
  119. if (unlikely(ret != 0))
  120. goto out_err;
  121. if (PageHighMem(p))
  122. ttm->pages[--ttm->first_himem_page] = p;
  123. else
  124. ttm->pages[++ttm->last_lomem_page] = p;
  125. }
  126. return p;
  127. out_err:
  128. put_page(p);
  129. return NULL;
  130. }
  131. struct page *ttm_tt_get_page(struct ttm_tt *ttm, int index)
  132. {
  133. int ret;
  134. if (unlikely(ttm->page_flags & TTM_PAGE_FLAG_SWAPPED)) {
  135. ret = ttm_tt_swapin(ttm);
  136. if (unlikely(ret != 0))
  137. return NULL;
  138. }
  139. return __ttm_tt_get_page(ttm, index);
  140. }
  141. int ttm_tt_populate(struct ttm_tt *ttm)
  142. {
  143. struct page *page;
  144. unsigned long i;
  145. struct ttm_backend *be;
  146. int ret;
  147. if (ttm->state != tt_unpopulated)
  148. return 0;
  149. if (unlikely(ttm->page_flags & TTM_PAGE_FLAG_SWAPPED)) {
  150. ret = ttm_tt_swapin(ttm);
  151. if (unlikely(ret != 0))
  152. return ret;
  153. }
  154. be = ttm->be;
  155. for (i = 0; i < ttm->num_pages; ++i) {
  156. page = __ttm_tt_get_page(ttm, i);
  157. if (!page)
  158. return -ENOMEM;
  159. }
  160. be->func->populate(be, ttm->num_pages, ttm->pages,
  161. ttm->dummy_read_page);
  162. ttm->state = tt_unbound;
  163. return 0;
  164. }
  165. EXPORT_SYMBOL(ttm_tt_populate);
  166. #ifdef CONFIG_X86
  167. static inline int ttm_tt_set_page_caching(struct page *p,
  168. enum ttm_caching_state c_state)
  169. {
  170. if (PageHighMem(p))
  171. return 0;
  172. switch (c_state) {
  173. case tt_cached:
  174. return set_pages_wb(p, 1);
  175. case tt_wc:
  176. return set_memory_wc((unsigned long) page_address(p), 1);
  177. default:
  178. return set_pages_uc(p, 1);
  179. }
  180. }
  181. #else /* CONFIG_X86 */
  182. static inline int ttm_tt_set_page_caching(struct page *p,
  183. enum ttm_caching_state c_state)
  184. {
  185. return 0;
  186. }
  187. #endif /* CONFIG_X86 */
  188. /*
  189. * Change caching policy for the linear kernel map
  190. * for range of pages in a ttm.
  191. */
  192. static int ttm_tt_set_caching(struct ttm_tt *ttm,
  193. enum ttm_caching_state c_state)
  194. {
  195. int i, j;
  196. struct page *cur_page;
  197. int ret;
  198. if (ttm->caching_state == c_state)
  199. return 0;
  200. if (c_state != tt_cached) {
  201. ret = ttm_tt_populate(ttm);
  202. if (unlikely(ret != 0))
  203. return ret;
  204. }
  205. if (ttm->caching_state == tt_cached)
  206. drm_clflush_pages(ttm->pages, ttm->num_pages);
  207. for (i = 0; i < ttm->num_pages; ++i) {
  208. cur_page = ttm->pages[i];
  209. if (likely(cur_page != NULL)) {
  210. ret = ttm_tt_set_page_caching(cur_page, c_state);
  211. if (unlikely(ret != 0))
  212. goto out_err;
  213. }
  214. }
  215. ttm->caching_state = c_state;
  216. return 0;
  217. out_err:
  218. for (j = 0; j < i; ++j) {
  219. cur_page = ttm->pages[j];
  220. if (likely(cur_page != NULL)) {
  221. (void)ttm_tt_set_page_caching(cur_page,
  222. ttm->caching_state);
  223. }
  224. }
  225. return ret;
  226. }
  227. int ttm_tt_set_placement_caching(struct ttm_tt *ttm, uint32_t placement)
  228. {
  229. enum ttm_caching_state state;
  230. if (placement & TTM_PL_FLAG_WC)
  231. state = tt_wc;
  232. else if (placement & TTM_PL_FLAG_UNCACHED)
  233. state = tt_uncached;
  234. else
  235. state = tt_cached;
  236. return ttm_tt_set_caching(ttm, state);
  237. }
  238. EXPORT_SYMBOL(ttm_tt_set_placement_caching);
  239. static void ttm_tt_free_alloced_pages(struct ttm_tt *ttm)
  240. {
  241. int i;
  242. struct page *cur_page;
  243. struct ttm_backend *be = ttm->be;
  244. if (be)
  245. be->func->clear(be);
  246. (void)ttm_tt_set_caching(ttm, tt_cached);
  247. for (i = 0; i < ttm->num_pages; ++i) {
  248. cur_page = ttm->pages[i];
  249. ttm->pages[i] = NULL;
  250. if (cur_page) {
  251. if (page_count(cur_page) != 1)
  252. printk(KERN_ERR TTM_PFX
  253. "Erroneous page count. "
  254. "Leaking pages.\n");
  255. ttm_mem_global_free_page(ttm->glob->mem_glob,
  256. cur_page);
  257. __free_page(cur_page);
  258. }
  259. }
  260. ttm->state = tt_unpopulated;
  261. ttm->first_himem_page = ttm->num_pages;
  262. ttm->last_lomem_page = -1;
  263. }
  264. void ttm_tt_destroy(struct ttm_tt *ttm)
  265. {
  266. struct ttm_backend *be;
  267. if (unlikely(ttm == NULL))
  268. return;
  269. be = ttm->be;
  270. if (likely(be != NULL)) {
  271. be->func->destroy(be);
  272. ttm->be = NULL;
  273. }
  274. if (likely(ttm->pages != NULL)) {
  275. if (ttm->page_flags & TTM_PAGE_FLAG_USER)
  276. ttm_tt_free_user_pages(ttm);
  277. else
  278. ttm_tt_free_alloced_pages(ttm);
  279. ttm_tt_free_page_directory(ttm);
  280. }
  281. if (!(ttm->page_flags & TTM_PAGE_FLAG_PERSISTANT_SWAP) &&
  282. ttm->swap_storage)
  283. fput(ttm->swap_storage);
  284. kfree(ttm);
  285. }
  286. int ttm_tt_set_user(struct ttm_tt *ttm,
  287. struct task_struct *tsk,
  288. unsigned long start, unsigned long num_pages)
  289. {
  290. struct mm_struct *mm = tsk->mm;
  291. int ret;
  292. int write = (ttm->page_flags & TTM_PAGE_FLAG_WRITE) != 0;
  293. struct ttm_mem_global *mem_glob = ttm->glob->mem_glob;
  294. BUG_ON(num_pages != ttm->num_pages);
  295. BUG_ON((ttm->page_flags & TTM_PAGE_FLAG_USER) == 0);
  296. /**
  297. * Account user pages as lowmem pages for now.
  298. */
  299. ret = ttm_mem_global_alloc(mem_glob, num_pages * PAGE_SIZE,
  300. false, false);
  301. if (unlikely(ret != 0))
  302. return ret;
  303. down_read(&mm->mmap_sem);
  304. ret = get_user_pages(tsk, mm, start, num_pages,
  305. write, 0, ttm->pages, NULL);
  306. up_read(&mm->mmap_sem);
  307. if (ret != num_pages && write) {
  308. ttm_tt_free_user_pages(ttm);
  309. ttm_mem_global_free(mem_glob, num_pages * PAGE_SIZE);
  310. return -ENOMEM;
  311. }
  312. ttm->tsk = tsk;
  313. ttm->start = start;
  314. ttm->state = tt_unbound;
  315. return 0;
  316. }
  317. struct ttm_tt *ttm_tt_create(struct ttm_bo_device *bdev, unsigned long size,
  318. uint32_t page_flags, struct page *dummy_read_page)
  319. {
  320. struct ttm_bo_driver *bo_driver = bdev->driver;
  321. struct ttm_tt *ttm;
  322. if (!bo_driver)
  323. return NULL;
  324. ttm = kzalloc(sizeof(*ttm), GFP_KERNEL);
  325. if (!ttm)
  326. return NULL;
  327. ttm->glob = bdev->glob;
  328. ttm->num_pages = (size + PAGE_SIZE - 1) >> PAGE_SHIFT;
  329. ttm->first_himem_page = ttm->num_pages;
  330. ttm->last_lomem_page = -1;
  331. ttm->caching_state = tt_cached;
  332. ttm->page_flags = page_flags;
  333. ttm->dummy_read_page = dummy_read_page;
  334. ttm_tt_alloc_page_directory(ttm);
  335. if (!ttm->pages) {
  336. ttm_tt_destroy(ttm);
  337. printk(KERN_ERR TTM_PFX "Failed allocating page table\n");
  338. return NULL;
  339. }
  340. ttm->be = bo_driver->create_ttm_backend_entry(bdev);
  341. if (!ttm->be) {
  342. ttm_tt_destroy(ttm);
  343. printk(KERN_ERR TTM_PFX "Failed creating ttm backend entry\n");
  344. return NULL;
  345. }
  346. ttm->state = tt_unpopulated;
  347. return ttm;
  348. }
  349. void ttm_tt_unbind(struct ttm_tt *ttm)
  350. {
  351. int ret;
  352. struct ttm_backend *be = ttm->be;
  353. if (ttm->state == tt_bound) {
  354. ret = be->func->unbind(be);
  355. BUG_ON(ret);
  356. ttm->state = tt_unbound;
  357. }
  358. }
  359. int ttm_tt_bind(struct ttm_tt *ttm, struct ttm_mem_reg *bo_mem)
  360. {
  361. int ret = 0;
  362. struct ttm_backend *be;
  363. if (!ttm)
  364. return -EINVAL;
  365. if (ttm->state == tt_bound)
  366. return 0;
  367. be = ttm->be;
  368. ret = ttm_tt_populate(ttm);
  369. if (ret)
  370. return ret;
  371. ret = be->func->bind(be, bo_mem);
  372. if (ret) {
  373. printk(KERN_ERR TTM_PFX "Couldn't bind backend.\n");
  374. return ret;
  375. }
  376. ttm->state = tt_bound;
  377. if (ttm->page_flags & TTM_PAGE_FLAG_USER)
  378. ttm->page_flags |= TTM_PAGE_FLAG_USER_DIRTY;
  379. return 0;
  380. }
  381. EXPORT_SYMBOL(ttm_tt_bind);
  382. static int ttm_tt_swapin(struct ttm_tt *ttm)
  383. {
  384. struct address_space *swap_space;
  385. struct file *swap_storage;
  386. struct page *from_page;
  387. struct page *to_page;
  388. void *from_virtual;
  389. void *to_virtual;
  390. int i;
  391. int ret;
  392. if (ttm->page_flags & TTM_PAGE_FLAG_USER) {
  393. ret = ttm_tt_set_user(ttm, ttm->tsk, ttm->start,
  394. ttm->num_pages);
  395. if (unlikely(ret != 0))
  396. return ret;
  397. ttm->page_flags &= ~TTM_PAGE_FLAG_SWAPPED;
  398. return 0;
  399. }
  400. swap_storage = ttm->swap_storage;
  401. BUG_ON(swap_storage == NULL);
  402. swap_space = swap_storage->f_path.dentry->d_inode->i_mapping;
  403. for (i = 0; i < ttm->num_pages; ++i) {
  404. from_page = read_mapping_page(swap_space, i, NULL);
  405. if (IS_ERR(from_page))
  406. goto out_err;
  407. to_page = __ttm_tt_get_page(ttm, i);
  408. if (unlikely(to_page == NULL))
  409. goto out_err;
  410. preempt_disable();
  411. from_virtual = kmap_atomic(from_page, KM_USER0);
  412. to_virtual = kmap_atomic(to_page, KM_USER1);
  413. memcpy(to_virtual, from_virtual, PAGE_SIZE);
  414. kunmap_atomic(to_virtual, KM_USER1);
  415. kunmap_atomic(from_virtual, KM_USER0);
  416. preempt_enable();
  417. page_cache_release(from_page);
  418. }
  419. if (!(ttm->page_flags & TTM_PAGE_FLAG_PERSISTANT_SWAP))
  420. fput(swap_storage);
  421. ttm->swap_storage = NULL;
  422. ttm->page_flags &= ~TTM_PAGE_FLAG_SWAPPED;
  423. return 0;
  424. out_err:
  425. ttm_tt_free_alloced_pages(ttm);
  426. return -ENOMEM;
  427. }
  428. int ttm_tt_swapout(struct ttm_tt *ttm, struct file *persistant_swap_storage)
  429. {
  430. struct address_space *swap_space;
  431. struct file *swap_storage;
  432. struct page *from_page;
  433. struct page *to_page;
  434. void *from_virtual;
  435. void *to_virtual;
  436. int i;
  437. BUG_ON(ttm->state != tt_unbound && ttm->state != tt_unpopulated);
  438. BUG_ON(ttm->caching_state != tt_cached);
  439. /*
  440. * For user buffers, just unpin the pages, as there should be
  441. * vma references.
  442. */
  443. if (ttm->page_flags & TTM_PAGE_FLAG_USER) {
  444. ttm_tt_free_user_pages(ttm);
  445. ttm->page_flags |= TTM_PAGE_FLAG_SWAPPED;
  446. ttm->swap_storage = NULL;
  447. return 0;
  448. }
  449. if (!persistant_swap_storage) {
  450. swap_storage = shmem_file_setup("ttm swap",
  451. ttm->num_pages << PAGE_SHIFT,
  452. 0);
  453. if (unlikely(IS_ERR(swap_storage))) {
  454. printk(KERN_ERR "Failed allocating swap storage.\n");
  455. return -ENOMEM;
  456. }
  457. } else
  458. swap_storage = persistant_swap_storage;
  459. swap_space = swap_storage->f_path.dentry->d_inode->i_mapping;
  460. for (i = 0; i < ttm->num_pages; ++i) {
  461. from_page = ttm->pages[i];
  462. if (unlikely(from_page == NULL))
  463. continue;
  464. to_page = read_mapping_page(swap_space, i, NULL);
  465. if (unlikely(to_page == NULL))
  466. goto out_err;
  467. preempt_disable();
  468. from_virtual = kmap_atomic(from_page, KM_USER0);
  469. to_virtual = kmap_atomic(to_page, KM_USER1);
  470. memcpy(to_virtual, from_virtual, PAGE_SIZE);
  471. kunmap_atomic(to_virtual, KM_USER1);
  472. kunmap_atomic(from_virtual, KM_USER0);
  473. preempt_enable();
  474. set_page_dirty(to_page);
  475. mark_page_accessed(to_page);
  476. page_cache_release(to_page);
  477. }
  478. ttm_tt_free_alloced_pages(ttm);
  479. ttm->swap_storage = swap_storage;
  480. ttm->page_flags |= TTM_PAGE_FLAG_SWAPPED;
  481. if (persistant_swap_storage)
  482. ttm->page_flags |= TTM_PAGE_FLAG_PERSISTANT_SWAP;
  483. return 0;
  484. out_err:
  485. if (!persistant_swap_storage)
  486. fput(swap_storage);
  487. return -ENOMEM;
  488. }