io.c 20 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /* kiocb-using read/write
  3. *
  4. * Copyright (C) 2021 Red Hat, Inc. All Rights Reserved.
  5. * Written by David Howells (dhowells@redhat.com)
  6. */
  7. #include <linux/mount.h>
  8. #include <linux/slab.h>
  9. #include <linux/file.h>
  10. #include <linux/uio.h>
  11. #include <linux/bio.h>
  12. #include <linux/falloc.h>
  13. #include <linux/sched/mm.h>
  14. #include <trace/events/fscache.h>
  15. #include "internal.h"
  16. struct cachefiles_kiocb {
  17. struct kiocb iocb;
  18. refcount_t ki_refcnt;
  19. loff_t start;
  20. union {
  21. size_t skipped;
  22. size_t len;
  23. };
  24. struct cachefiles_object *object;
  25. netfs_io_terminated_t term_func;
  26. void *term_func_priv;
  27. bool was_async;
  28. unsigned int inval_counter; /* Copy of cookie->inval_counter */
  29. u64 b_writing;
  30. };
  31. static inline void cachefiles_put_kiocb(struct cachefiles_kiocb *ki)
  32. {
  33. if (refcount_dec_and_test(&ki->ki_refcnt)) {
  34. cachefiles_put_object(ki->object, cachefiles_obj_put_ioreq);
  35. fput(ki->iocb.ki_filp);
  36. kfree(ki);
  37. }
  38. }
  39. /*
  40. * Handle completion of a read from the cache.
  41. */
  42. static void cachefiles_read_complete(struct kiocb *iocb, long ret)
  43. {
  44. struct cachefiles_kiocb *ki = container_of(iocb, struct cachefiles_kiocb, iocb);
  45. struct inode *inode = file_inode(ki->iocb.ki_filp);
  46. _enter("%ld", ret);
  47. if (ret < 0)
  48. trace_cachefiles_io_error(ki->object, inode, ret,
  49. cachefiles_trace_read_error);
  50. if (ki->term_func) {
  51. if (ret >= 0) {
  52. if (ki->object->cookie->inval_counter == ki->inval_counter)
  53. ki->skipped += ret;
  54. else
  55. ret = -ESTALE;
  56. }
  57. ki->term_func(ki->term_func_priv, ret, ki->was_async);
  58. }
  59. cachefiles_put_kiocb(ki);
  60. }
  61. /*
  62. * Initiate a read from the cache.
  63. */
  64. static int cachefiles_read(struct netfs_cache_resources *cres,
  65. loff_t start_pos,
  66. struct iov_iter *iter,
  67. enum netfs_read_from_hole read_hole,
  68. netfs_io_terminated_t term_func,
  69. void *term_func_priv)
  70. {
  71. struct cachefiles_object *object;
  72. struct cachefiles_kiocb *ki;
  73. struct file *file;
  74. unsigned int old_nofs;
  75. ssize_t ret = -ENOBUFS;
  76. size_t len = iov_iter_count(iter), skipped = 0;
  77. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_READ))
  78. goto presubmission_error;
  79. fscache_count_read();
  80. object = cachefiles_cres_object(cres);
  81. file = cachefiles_cres_file(cres);
  82. _enter("%pD,%li,%llx,%zx/%llx",
  83. file, file_inode(file)->i_ino, start_pos, len,
  84. i_size_read(file_inode(file)));
  85. /* If the caller asked us to seek for data before doing the read, then
  86. * we should do that now. If we find a gap, we fill it with zeros.
  87. */
  88. if (read_hole != NETFS_READ_HOLE_IGNORE) {
  89. loff_t off = start_pos, off2;
  90. off2 = cachefiles_inject_read_error();
  91. if (off2 == 0)
  92. off2 = vfs_llseek(file, off, SEEK_DATA);
  93. if (off2 < 0 && off2 >= (loff_t)-MAX_ERRNO && off2 != -ENXIO) {
  94. skipped = 0;
  95. ret = off2;
  96. goto presubmission_error;
  97. }
  98. if (off2 == -ENXIO || off2 >= start_pos + len) {
  99. /* The region is beyond the EOF or there's no more data
  100. * in the region, so clear the rest of the buffer and
  101. * return success.
  102. */
  103. ret = -ENODATA;
  104. if (read_hole == NETFS_READ_HOLE_FAIL)
  105. goto presubmission_error;
  106. iov_iter_zero(len, iter);
  107. skipped = len;
  108. ret = 0;
  109. goto presubmission_error;
  110. }
  111. skipped = off2 - off;
  112. iov_iter_zero(skipped, iter);
  113. }
  114. ret = -ENOMEM;
  115. ki = kzalloc(sizeof(struct cachefiles_kiocb), GFP_KERNEL);
  116. if (!ki)
  117. goto presubmission_error;
  118. refcount_set(&ki->ki_refcnt, 2);
  119. ki->iocb.ki_filp = file;
  120. ki->iocb.ki_pos = start_pos + skipped;
  121. ki->iocb.ki_flags = IOCB_DIRECT;
  122. ki->iocb.ki_ioprio = get_current_ioprio();
  123. ki->skipped = skipped;
  124. ki->object = object;
  125. ki->inval_counter = cres->inval_counter;
  126. ki->term_func = term_func;
  127. ki->term_func_priv = term_func_priv;
  128. ki->was_async = true;
  129. if (ki->term_func)
  130. ki->iocb.ki_complete = cachefiles_read_complete;
  131. get_file(ki->iocb.ki_filp);
  132. cachefiles_grab_object(object, cachefiles_obj_get_ioreq);
  133. trace_cachefiles_read(object, file_inode(file), ki->iocb.ki_pos, len - skipped);
  134. old_nofs = memalloc_nofs_save();
  135. ret = cachefiles_inject_read_error();
  136. if (ret == 0)
  137. ret = vfs_iocb_iter_read(file, &ki->iocb, iter);
  138. memalloc_nofs_restore(old_nofs);
  139. switch (ret) {
  140. case -EIOCBQUEUED:
  141. goto in_progress;
  142. case -ERESTARTSYS:
  143. case -ERESTARTNOINTR:
  144. case -ERESTARTNOHAND:
  145. case -ERESTART_RESTARTBLOCK:
  146. /* There's no easy way to restart the syscall since other AIO's
  147. * may be already running. Just fail this IO with EINTR.
  148. */
  149. ret = -EINTR;
  150. fallthrough;
  151. default:
  152. ki->was_async = false;
  153. cachefiles_read_complete(&ki->iocb, ret);
  154. if (ret > 0)
  155. ret = 0;
  156. break;
  157. }
  158. in_progress:
  159. cachefiles_put_kiocb(ki);
  160. _leave(" = %zd", ret);
  161. return ret;
  162. presubmission_error:
  163. if (term_func)
  164. term_func(term_func_priv, ret < 0 ? ret : skipped, false);
  165. return ret;
  166. }
  167. /*
  168. * Query the occupancy of the cache in a region, returning where the next chunk
  169. * of data starts and how long it is.
  170. */
  171. static int cachefiles_query_occupancy(struct netfs_cache_resources *cres,
  172. loff_t start, size_t len, size_t granularity,
  173. loff_t *_data_start, size_t *_data_len)
  174. {
  175. struct cachefiles_object *object;
  176. struct file *file;
  177. loff_t off, off2;
  178. *_data_start = -1;
  179. *_data_len = 0;
  180. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_READ))
  181. return -ENOBUFS;
  182. object = cachefiles_cres_object(cres);
  183. file = cachefiles_cres_file(cres);
  184. granularity = max_t(size_t, object->volume->cache->bsize, granularity);
  185. _enter("%pD,%li,%llx,%zx/%llx",
  186. file, file_inode(file)->i_ino, start, len,
  187. i_size_read(file_inode(file)));
  188. off = cachefiles_inject_read_error();
  189. if (off == 0)
  190. off = vfs_llseek(file, start, SEEK_DATA);
  191. if (off == -ENXIO)
  192. return -ENODATA; /* Beyond EOF */
  193. if (off < 0 && off >= (loff_t)-MAX_ERRNO)
  194. return -ENOBUFS; /* Error. */
  195. if (round_up(off, granularity) >= start + len)
  196. return -ENODATA; /* No data in range */
  197. off2 = cachefiles_inject_read_error();
  198. if (off2 == 0)
  199. off2 = vfs_llseek(file, off, SEEK_HOLE);
  200. if (off2 == -ENXIO)
  201. return -ENODATA; /* Beyond EOF */
  202. if (off2 < 0 && off2 >= (loff_t)-MAX_ERRNO)
  203. return -ENOBUFS; /* Error. */
  204. /* Round away partial blocks */
  205. off = round_up(off, granularity);
  206. off2 = round_down(off2, granularity);
  207. if (off2 <= off)
  208. return -ENODATA;
  209. *_data_start = off;
  210. if (off2 > start + len)
  211. *_data_len = len;
  212. else
  213. *_data_len = off2 - off;
  214. return 0;
  215. }
  216. /*
  217. * Handle completion of a write to the cache.
  218. */
  219. static void cachefiles_write_complete(struct kiocb *iocb, long ret)
  220. {
  221. struct cachefiles_kiocb *ki = container_of(iocb, struct cachefiles_kiocb, iocb);
  222. struct cachefiles_object *object = ki->object;
  223. struct inode *inode = file_inode(ki->iocb.ki_filp);
  224. _enter("%ld", ret);
  225. if (ki->was_async)
  226. kiocb_end_write(iocb);
  227. if (ret < 0)
  228. trace_cachefiles_io_error(object, inode, ret,
  229. cachefiles_trace_write_error);
  230. atomic_long_sub(ki->b_writing, &object->volume->cache->b_writing);
  231. set_bit(FSCACHE_COOKIE_HAVE_DATA, &object->cookie->flags);
  232. if (ki->term_func)
  233. ki->term_func(ki->term_func_priv, ret, ki->was_async);
  234. cachefiles_put_kiocb(ki);
  235. }
  236. /*
  237. * Initiate a write to the cache.
  238. */
  239. int __cachefiles_write(struct cachefiles_object *object,
  240. struct file *file,
  241. loff_t start_pos,
  242. struct iov_iter *iter,
  243. netfs_io_terminated_t term_func,
  244. void *term_func_priv)
  245. {
  246. struct cachefiles_cache *cache;
  247. struct cachefiles_kiocb *ki;
  248. unsigned int old_nofs;
  249. ssize_t ret;
  250. size_t len = iov_iter_count(iter);
  251. fscache_count_write();
  252. cache = object->volume->cache;
  253. _enter("%pD,%li,%llx,%zx/%llx",
  254. file, file_inode(file)->i_ino, start_pos, len,
  255. i_size_read(file_inode(file)));
  256. ki = kzalloc(sizeof(struct cachefiles_kiocb), GFP_KERNEL);
  257. if (!ki) {
  258. if (term_func)
  259. term_func(term_func_priv, -ENOMEM, false);
  260. return -ENOMEM;
  261. }
  262. refcount_set(&ki->ki_refcnt, 2);
  263. ki->iocb.ki_filp = file;
  264. ki->iocb.ki_pos = start_pos;
  265. ki->iocb.ki_flags = IOCB_DIRECT | IOCB_WRITE;
  266. ki->iocb.ki_ioprio = get_current_ioprio();
  267. ki->object = object;
  268. ki->start = start_pos;
  269. ki->len = len;
  270. ki->term_func = term_func;
  271. ki->term_func_priv = term_func_priv;
  272. ki->was_async = true;
  273. ki->b_writing = (len + (1 << cache->bshift) - 1) >> cache->bshift;
  274. if (ki->term_func)
  275. ki->iocb.ki_complete = cachefiles_write_complete;
  276. atomic_long_add(ki->b_writing, &cache->b_writing);
  277. get_file(ki->iocb.ki_filp);
  278. cachefiles_grab_object(object, cachefiles_obj_get_ioreq);
  279. trace_cachefiles_write(object, file_inode(file), ki->iocb.ki_pos, len);
  280. old_nofs = memalloc_nofs_save();
  281. ret = cachefiles_inject_write_error();
  282. if (ret == 0)
  283. ret = vfs_iocb_iter_write(file, &ki->iocb, iter);
  284. memalloc_nofs_restore(old_nofs);
  285. switch (ret) {
  286. case -EIOCBQUEUED:
  287. goto in_progress;
  288. case -ERESTARTSYS:
  289. case -ERESTARTNOINTR:
  290. case -ERESTARTNOHAND:
  291. case -ERESTART_RESTARTBLOCK:
  292. /* There's no easy way to restart the syscall since other AIO's
  293. * may be already running. Just fail this IO with EINTR.
  294. */
  295. ret = -EINTR;
  296. fallthrough;
  297. default:
  298. ki->was_async = false;
  299. cachefiles_write_complete(&ki->iocb, ret);
  300. if (ret > 0)
  301. ret = 0;
  302. break;
  303. }
  304. in_progress:
  305. cachefiles_put_kiocb(ki);
  306. _leave(" = %zd", ret);
  307. return ret;
  308. }
  309. static int cachefiles_write(struct netfs_cache_resources *cres,
  310. loff_t start_pos,
  311. struct iov_iter *iter,
  312. netfs_io_terminated_t term_func,
  313. void *term_func_priv)
  314. {
  315. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_WRITE)) {
  316. if (term_func)
  317. term_func(term_func_priv, -ENOBUFS, false);
  318. return -ENOBUFS;
  319. }
  320. return __cachefiles_write(cachefiles_cres_object(cres),
  321. cachefiles_cres_file(cres),
  322. start_pos, iter,
  323. term_func, term_func_priv);
  324. }
  325. static inline enum netfs_io_source
  326. cachefiles_do_prepare_read(struct netfs_cache_resources *cres,
  327. loff_t start, size_t *_len, loff_t i_size,
  328. unsigned long *_flags, ino_t netfs_ino)
  329. {
  330. enum cachefiles_prepare_read_trace why;
  331. struct cachefiles_object *object = NULL;
  332. struct cachefiles_cache *cache;
  333. struct fscache_cookie *cookie = fscache_cres_cookie(cres);
  334. const struct cred *saved_cred;
  335. struct file *file = cachefiles_cres_file(cres);
  336. enum netfs_io_source ret = NETFS_DOWNLOAD_FROM_SERVER;
  337. size_t len = *_len;
  338. loff_t off, to;
  339. ino_t ino = file ? file_inode(file)->i_ino : 0;
  340. int rc;
  341. _enter("%zx @%llx/%llx", len, start, i_size);
  342. if (start >= i_size) {
  343. ret = NETFS_FILL_WITH_ZEROES;
  344. why = cachefiles_trace_read_after_eof;
  345. goto out_no_object;
  346. }
  347. if (test_bit(FSCACHE_COOKIE_NO_DATA_TO_READ, &cookie->flags)) {
  348. __set_bit(NETFS_SREQ_COPY_TO_CACHE, _flags);
  349. why = cachefiles_trace_read_no_data;
  350. if (!test_bit(NETFS_SREQ_ONDEMAND, _flags))
  351. goto out_no_object;
  352. }
  353. /* The object and the file may be being created in the background. */
  354. if (!file) {
  355. why = cachefiles_trace_read_no_file;
  356. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_READ))
  357. goto out_no_object;
  358. file = cachefiles_cres_file(cres);
  359. if (!file)
  360. goto out_no_object;
  361. ino = file_inode(file)->i_ino;
  362. }
  363. object = cachefiles_cres_object(cres);
  364. cache = object->volume->cache;
  365. cachefiles_begin_secure(cache, &saved_cred);
  366. retry:
  367. off = cachefiles_inject_read_error();
  368. if (off == 0)
  369. off = vfs_llseek(file, start, SEEK_DATA);
  370. if (off < 0 && off >= (loff_t)-MAX_ERRNO) {
  371. if (off == (loff_t)-ENXIO) {
  372. why = cachefiles_trace_read_seek_nxio;
  373. goto download_and_store;
  374. }
  375. trace_cachefiles_io_error(object, file_inode(file), off,
  376. cachefiles_trace_seek_error);
  377. why = cachefiles_trace_read_seek_error;
  378. goto out;
  379. }
  380. if (off >= start + len) {
  381. why = cachefiles_trace_read_found_hole;
  382. goto download_and_store;
  383. }
  384. if (off > start) {
  385. off = round_up(off, cache->bsize);
  386. len = off - start;
  387. *_len = len;
  388. why = cachefiles_trace_read_found_part;
  389. goto download_and_store;
  390. }
  391. to = cachefiles_inject_read_error();
  392. if (to == 0)
  393. to = vfs_llseek(file, start, SEEK_HOLE);
  394. if (to < 0 && to >= (loff_t)-MAX_ERRNO) {
  395. trace_cachefiles_io_error(object, file_inode(file), to,
  396. cachefiles_trace_seek_error);
  397. why = cachefiles_trace_read_seek_error;
  398. goto out;
  399. }
  400. if (to < start + len) {
  401. if (start + len >= i_size)
  402. to = round_up(to, cache->bsize);
  403. else
  404. to = round_down(to, cache->bsize);
  405. len = to - start;
  406. *_len = len;
  407. }
  408. why = cachefiles_trace_read_have_data;
  409. ret = NETFS_READ_FROM_CACHE;
  410. goto out;
  411. download_and_store:
  412. __set_bit(NETFS_SREQ_COPY_TO_CACHE, _flags);
  413. if (test_bit(NETFS_SREQ_ONDEMAND, _flags)) {
  414. rc = cachefiles_ondemand_read(object, start, len);
  415. if (!rc) {
  416. __clear_bit(NETFS_SREQ_ONDEMAND, _flags);
  417. goto retry;
  418. }
  419. ret = NETFS_INVALID_READ;
  420. }
  421. out:
  422. cachefiles_end_secure(cache, saved_cred);
  423. out_no_object:
  424. trace_cachefiles_prep_read(object, start, len, *_flags, ret, why, ino, netfs_ino);
  425. return ret;
  426. }
  427. /*
  428. * Prepare a read operation, shortening it to a cached/uncached
  429. * boundary as appropriate.
  430. */
  431. static enum netfs_io_source cachefiles_prepare_read(struct netfs_io_subrequest *subreq,
  432. unsigned long long i_size)
  433. {
  434. return cachefiles_do_prepare_read(&subreq->rreq->cache_resources,
  435. subreq->start, &subreq->len, i_size,
  436. &subreq->flags, subreq->rreq->inode->i_ino);
  437. }
  438. /*
  439. * Prepare an on-demand read operation, shortening it to a cached/uncached
  440. * boundary as appropriate.
  441. */
  442. static enum netfs_io_source
  443. cachefiles_prepare_ondemand_read(struct netfs_cache_resources *cres,
  444. loff_t start, size_t *_len, loff_t i_size,
  445. unsigned long *_flags, ino_t ino)
  446. {
  447. return cachefiles_do_prepare_read(cres, start, _len, i_size, _flags, ino);
  448. }
  449. /*
  450. * Prepare for a write to occur.
  451. */
  452. int __cachefiles_prepare_write(struct cachefiles_object *object,
  453. struct file *file,
  454. loff_t *_start, size_t *_len, size_t upper_len,
  455. bool no_space_allocated_yet)
  456. {
  457. struct cachefiles_cache *cache = object->volume->cache;
  458. loff_t start = *_start, pos;
  459. size_t len = *_len;
  460. int ret;
  461. /* Round to DIO size */
  462. start = round_down(*_start, PAGE_SIZE);
  463. if (start != *_start || *_len > upper_len) {
  464. /* Probably asked to cache a streaming write written into the
  465. * pagecache when the cookie was temporarily out of service to
  466. * culling.
  467. */
  468. fscache_count_dio_misfit();
  469. return -ENOBUFS;
  470. }
  471. *_len = round_up(len, PAGE_SIZE);
  472. /* We need to work out whether there's sufficient disk space to perform
  473. * the write - but we can skip that check if we have space already
  474. * allocated.
  475. */
  476. if (no_space_allocated_yet)
  477. goto check_space;
  478. pos = cachefiles_inject_read_error();
  479. if (pos == 0)
  480. pos = vfs_llseek(file, start, SEEK_DATA);
  481. if (pos < 0 && pos >= (loff_t)-MAX_ERRNO) {
  482. if (pos == -ENXIO)
  483. goto check_space; /* Unallocated tail */
  484. trace_cachefiles_io_error(object, file_inode(file), pos,
  485. cachefiles_trace_seek_error);
  486. return pos;
  487. }
  488. if ((u64)pos >= (u64)start + *_len)
  489. goto check_space; /* Unallocated region */
  490. /* We have a block that's at least partially filled - if we're low on
  491. * space, we need to see if it's fully allocated. If it's not, we may
  492. * want to cull it.
  493. */
  494. if (cachefiles_has_space(cache, 0, *_len / PAGE_SIZE,
  495. cachefiles_has_space_check) == 0)
  496. return 0; /* Enough space to simply overwrite the whole block */
  497. pos = cachefiles_inject_read_error();
  498. if (pos == 0)
  499. pos = vfs_llseek(file, start, SEEK_HOLE);
  500. if (pos < 0 && pos >= (loff_t)-MAX_ERRNO) {
  501. trace_cachefiles_io_error(object, file_inode(file), pos,
  502. cachefiles_trace_seek_error);
  503. return pos;
  504. }
  505. if ((u64)pos >= (u64)start + *_len)
  506. return 0; /* Fully allocated */
  507. /* Partially allocated, but insufficient space: cull. */
  508. fscache_count_no_write_space();
  509. ret = cachefiles_inject_remove_error();
  510. if (ret == 0)
  511. ret = vfs_fallocate(file, FALLOC_FL_PUNCH_HOLE | FALLOC_FL_KEEP_SIZE,
  512. start, *_len);
  513. if (ret < 0) {
  514. trace_cachefiles_io_error(object, file_inode(file), ret,
  515. cachefiles_trace_fallocate_error);
  516. cachefiles_io_error_obj(object,
  517. "CacheFiles: fallocate failed (%d)\n", ret);
  518. ret = -EIO;
  519. }
  520. return ret;
  521. check_space:
  522. return cachefiles_has_space(cache, 0, *_len / PAGE_SIZE,
  523. cachefiles_has_space_for_write);
  524. }
  525. static int cachefiles_prepare_write(struct netfs_cache_resources *cres,
  526. loff_t *_start, size_t *_len, size_t upper_len,
  527. loff_t i_size, bool no_space_allocated_yet)
  528. {
  529. struct cachefiles_object *object = cachefiles_cres_object(cres);
  530. struct cachefiles_cache *cache = object->volume->cache;
  531. const struct cred *saved_cred;
  532. int ret;
  533. if (!cachefiles_cres_file(cres)) {
  534. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_WRITE))
  535. return -ENOBUFS;
  536. if (!cachefiles_cres_file(cres))
  537. return -ENOBUFS;
  538. }
  539. cachefiles_begin_secure(cache, &saved_cred);
  540. ret = __cachefiles_prepare_write(object, cachefiles_cres_file(cres),
  541. _start, _len, upper_len,
  542. no_space_allocated_yet);
  543. cachefiles_end_secure(cache, saved_cred);
  544. return ret;
  545. }
  546. static void cachefiles_prepare_write_subreq(struct netfs_io_subrequest *subreq)
  547. {
  548. struct netfs_io_request *wreq = subreq->rreq;
  549. struct netfs_cache_resources *cres = &wreq->cache_resources;
  550. struct netfs_io_stream *stream = &wreq->io_streams[subreq->stream_nr];
  551. _enter("W=%x[%x] %llx", wreq->debug_id, subreq->debug_index, subreq->start);
  552. stream->sreq_max_len = MAX_RW_COUNT;
  553. stream->sreq_max_segs = BIO_MAX_VECS;
  554. if (!cachefiles_cres_file(cres)) {
  555. if (!fscache_wait_for_operation(cres, FSCACHE_WANT_WRITE))
  556. return netfs_prepare_write_failed(subreq);
  557. if (!cachefiles_cres_file(cres))
  558. return netfs_prepare_write_failed(subreq);
  559. }
  560. }
  561. static void cachefiles_issue_write(struct netfs_io_subrequest *subreq)
  562. {
  563. struct netfs_io_request *wreq = subreq->rreq;
  564. struct netfs_cache_resources *cres = &wreq->cache_resources;
  565. struct cachefiles_object *object = cachefiles_cres_object(cres);
  566. struct cachefiles_cache *cache = object->volume->cache;
  567. struct netfs_io_stream *stream = &wreq->io_streams[subreq->stream_nr];
  568. const struct cred *saved_cred;
  569. size_t off, pre, post, len = subreq->len;
  570. loff_t start = subreq->start;
  571. int ret;
  572. _enter("W=%x[%x] %llx-%llx",
  573. wreq->debug_id, subreq->debug_index, start, start + len - 1);
  574. /* We need to start on the cache granularity boundary */
  575. off = start & (CACHEFILES_DIO_BLOCK_SIZE - 1);
  576. if (off) {
  577. pre = CACHEFILES_DIO_BLOCK_SIZE - off;
  578. if (pre >= len) {
  579. fscache_count_dio_misfit();
  580. netfs_write_subrequest_terminated(subreq, len, false);
  581. return;
  582. }
  583. subreq->transferred += pre;
  584. start += pre;
  585. len -= pre;
  586. iov_iter_advance(&subreq->io_iter, pre);
  587. }
  588. /* We also need to end on the cache granularity boundary */
  589. if (start + len == wreq->i_size) {
  590. size_t part = len % CACHEFILES_DIO_BLOCK_SIZE;
  591. size_t need = CACHEFILES_DIO_BLOCK_SIZE - part;
  592. if (part && stream->submit_extendable_to >= need) {
  593. len += need;
  594. subreq->len += need;
  595. subreq->io_iter.count += need;
  596. }
  597. }
  598. post = len & (CACHEFILES_DIO_BLOCK_SIZE - 1);
  599. if (post) {
  600. len -= post;
  601. if (len == 0) {
  602. fscache_count_dio_misfit();
  603. netfs_write_subrequest_terminated(subreq, post, false);
  604. return;
  605. }
  606. iov_iter_truncate(&subreq->io_iter, len);
  607. }
  608. cachefiles_begin_secure(cache, &saved_cred);
  609. ret = __cachefiles_prepare_write(object, cachefiles_cres_file(cres),
  610. &start, &len, len, true);
  611. cachefiles_end_secure(cache, saved_cred);
  612. if (ret < 0) {
  613. netfs_write_subrequest_terminated(subreq, ret, false);
  614. return;
  615. }
  616. cachefiles_write(&subreq->rreq->cache_resources,
  617. subreq->start, &subreq->io_iter,
  618. netfs_write_subrequest_terminated, subreq);
  619. }
  620. /*
  621. * Clean up an operation.
  622. */
  623. static void cachefiles_end_operation(struct netfs_cache_resources *cres)
  624. {
  625. struct file *file = cachefiles_cres_file(cres);
  626. if (file)
  627. fput(file);
  628. fscache_end_cookie_access(fscache_cres_cookie(cres), fscache_access_io_end);
  629. }
  630. static const struct netfs_cache_ops cachefiles_netfs_cache_ops = {
  631. .end_operation = cachefiles_end_operation,
  632. .read = cachefiles_read,
  633. .write = cachefiles_write,
  634. .issue_write = cachefiles_issue_write,
  635. .prepare_read = cachefiles_prepare_read,
  636. .prepare_write = cachefiles_prepare_write,
  637. .prepare_write_subreq = cachefiles_prepare_write_subreq,
  638. .prepare_ondemand_read = cachefiles_prepare_ondemand_read,
  639. .query_occupancy = cachefiles_query_occupancy,
  640. };
  641. /*
  642. * Open the cache file when beginning a cache operation.
  643. */
  644. bool cachefiles_begin_operation(struct netfs_cache_resources *cres,
  645. enum fscache_want_state want_state)
  646. {
  647. struct cachefiles_object *object = cachefiles_cres_object(cres);
  648. if (!cachefiles_cres_file(cres)) {
  649. cres->ops = &cachefiles_netfs_cache_ops;
  650. if (object->file) {
  651. spin_lock(&object->lock);
  652. if (!cres->cache_priv2 && object->file)
  653. cres->cache_priv2 = get_file(object->file);
  654. spin_unlock(&object->lock);
  655. }
  656. }
  657. if (!cachefiles_cres_file(cres) && want_state != FSCACHE_WANT_PARAMS) {
  658. pr_err("failed to get cres->file\n");
  659. return false;
  660. }
  661. return true;
  662. }