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direct_write.c 11 KB

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  1. // SPDX-License-Identifier: GPL-2.0-or-later
  2. /* Unbuffered and direct write support.
  3. *
  4. * Copyright (C) 2023 Red Hat, Inc. All Rights Reserved.
  5. * Written by David Howells (dhowells@redhat.com)
  6. */
  7. #include <linux/export.h>
  8. #include <linux/uio.h>
  9. #include "internal.h"
  10. /*
  11. * Perform the cleanup rituals after an unbuffered write is complete.
  12. */
  13. static void netfs_unbuffered_write_done(struct netfs_io_request *wreq)
  14. {
  15. struct netfs_inode *ictx = netfs_inode(wreq->inode);
  16. _enter("R=%x", wreq->debug_id);
  17. /* Okay, declare that all I/O is complete. */
  18. trace_netfs_rreq(wreq, netfs_rreq_trace_write_done);
  19. if (!wreq->error)
  20. netfs_update_i_size(ictx, &ictx->inode, wreq->start, wreq->transferred);
  21. if (wreq->origin == NETFS_DIO_WRITE &&
  22. wreq->mapping->nrpages) {
  23. /* mmap may have got underfoot and we may now have folios
  24. * locally covering the region we just wrote. Attempt to
  25. * discard the folios, but leave in place any modified locally.
  26. * ->write_iter() is prevented from interfering by the DIO
  27. * counter.
  28. */
  29. pgoff_t first = wreq->start >> PAGE_SHIFT;
  30. pgoff_t last = (wreq->start + wreq->transferred - 1) >> PAGE_SHIFT;
  31. invalidate_inode_pages2_range(wreq->mapping, first, last);
  32. }
  33. if (wreq->origin == NETFS_DIO_WRITE)
  34. inode_dio_end(wreq->inode);
  35. _debug("finished");
  36. netfs_wake_rreq_flag(wreq, NETFS_RREQ_IN_PROGRESS, netfs_rreq_trace_wake_ip);
  37. /* As we cleared NETFS_RREQ_IN_PROGRESS, we acquired its ref. */
  38. if (wreq->iocb) {
  39. size_t written = umin(wreq->transferred, wreq->len);
  40. wreq->iocb->ki_pos += written;
  41. if (wreq->iocb->ki_complete) {
  42. trace_netfs_rreq(wreq, netfs_rreq_trace_ki_complete);
  43. wreq->iocb->ki_complete(wreq->iocb, wreq->error ?: written);
  44. }
  45. wreq->iocb = VFS_PTR_POISON;
  46. }
  47. netfs_clear_subrequests(wreq);
  48. }
  49. /*
  50. * Collect the subrequest results of unbuffered write subrequests.
  51. */
  52. static void netfs_unbuffered_write_collect(struct netfs_io_request *wreq,
  53. struct netfs_io_stream *stream,
  54. struct netfs_io_subrequest *subreq)
  55. {
  56. trace_netfs_collect_sreq(wreq, subreq);
  57. spin_lock(&wreq->lock);
  58. list_del_init(&subreq->rreq_link);
  59. spin_unlock(&wreq->lock);
  60. wreq->transferred += subreq->transferred;
  61. iov_iter_advance(&wreq->buffer.iter, subreq->transferred);
  62. stream->collected_to = subreq->start + subreq->transferred;
  63. wreq->collected_to = stream->collected_to;
  64. netfs_put_subrequest(subreq, netfs_sreq_trace_put_done);
  65. trace_netfs_collect_stream(wreq, stream);
  66. trace_netfs_collect_state(wreq, wreq->collected_to, 0);
  67. }
  68. /*
  69. * Write data to the server without going through the pagecache and without
  70. * writing it to the local cache. We dispatch the subrequests serially and
  71. * wait for each to complete before dispatching the next, lest we leave a gap
  72. * in the data written due to a failure such as ENOSPC. We could, however
  73. * attempt to do preparation such as content encryption for the next subreq
  74. * whilst the current is in progress.
  75. */
  76. static int netfs_unbuffered_write(struct netfs_io_request *wreq)
  77. {
  78. struct netfs_io_subrequest *subreq = NULL;
  79. struct netfs_io_stream *stream = &wreq->io_streams[0];
  80. int ret;
  81. _enter("%llx", wreq->len);
  82. if (wreq->origin == NETFS_DIO_WRITE)
  83. inode_dio_begin(wreq->inode);
  84. stream->collected_to = wreq->start;
  85. for (;;) {
  86. bool retry = false;
  87. if (!subreq) {
  88. netfs_prepare_write(wreq, stream, wreq->start + wreq->transferred);
  89. subreq = stream->construct;
  90. stream->construct = NULL;
  91. }
  92. /* Check if (re-)preparation failed. */
  93. if (unlikely(test_bit(NETFS_SREQ_FAILED, &subreq->flags))) {
  94. netfs_write_subrequest_terminated(subreq, subreq->error);
  95. wreq->error = subreq->error;
  96. break;
  97. }
  98. iov_iter_truncate(&subreq->io_iter, wreq->len - wreq->transferred);
  99. if (!iov_iter_count(&subreq->io_iter))
  100. break;
  101. subreq->len = netfs_limit_iter(&subreq->io_iter, 0,
  102. stream->sreq_max_len,
  103. stream->sreq_max_segs);
  104. iov_iter_truncate(&subreq->io_iter, subreq->len);
  105. stream->submit_extendable_to = subreq->len;
  106. trace_netfs_sreq(subreq, netfs_sreq_trace_submit);
  107. stream->issue_write(subreq);
  108. /* Async, need to wait. */
  109. netfs_wait_for_in_progress_stream(wreq, stream);
  110. if (test_bit(NETFS_SREQ_NEED_RETRY, &subreq->flags)) {
  111. retry = true;
  112. } else if (test_bit(NETFS_SREQ_FAILED, &subreq->flags)) {
  113. ret = subreq->error;
  114. wreq->error = ret;
  115. netfs_see_subrequest(subreq, netfs_sreq_trace_see_failed);
  116. subreq = NULL;
  117. break;
  118. }
  119. ret = 0;
  120. if (!retry) {
  121. netfs_unbuffered_write_collect(wreq, stream, subreq);
  122. subreq = NULL;
  123. if (wreq->transferred >= wreq->len)
  124. break;
  125. if (!wreq->iocb && signal_pending(current)) {
  126. ret = wreq->transferred ? -EINTR : -ERESTARTSYS;
  127. trace_netfs_rreq(wreq, netfs_rreq_trace_intr);
  128. break;
  129. }
  130. continue;
  131. }
  132. /* We need to retry the last subrequest, so first reset the
  133. * iterator, taking into account what, if anything, we managed
  134. * to transfer.
  135. */
  136. subreq->error = -EAGAIN;
  137. trace_netfs_sreq(subreq, netfs_sreq_trace_retry);
  138. if (subreq->transferred > 0)
  139. iov_iter_advance(&wreq->buffer.iter, subreq->transferred);
  140. if (stream->source == NETFS_UPLOAD_TO_SERVER &&
  141. wreq->netfs_ops->retry_request)
  142. wreq->netfs_ops->retry_request(wreq, stream);
  143. __clear_bit(NETFS_SREQ_NEED_RETRY, &subreq->flags);
  144. __clear_bit(NETFS_SREQ_BOUNDARY, &subreq->flags);
  145. __clear_bit(NETFS_SREQ_FAILED, &subreq->flags);
  146. subreq->io_iter = wreq->buffer.iter;
  147. subreq->start = wreq->start + wreq->transferred;
  148. subreq->len = wreq->len - wreq->transferred;
  149. subreq->transferred = 0;
  150. subreq->retry_count += 1;
  151. stream->sreq_max_len = UINT_MAX;
  152. stream->sreq_max_segs = INT_MAX;
  153. netfs_get_subrequest(subreq, netfs_sreq_trace_get_resubmit);
  154. if (stream->prepare_write) {
  155. stream->prepare_write(subreq);
  156. __set_bit(NETFS_SREQ_IN_PROGRESS, &subreq->flags);
  157. netfs_stat(&netfs_n_wh_retry_write_subreq);
  158. } else {
  159. struct iov_iter source;
  160. netfs_reset_iter(subreq);
  161. source = subreq->io_iter;
  162. netfs_reissue_write(stream, subreq, &source);
  163. }
  164. }
  165. netfs_unbuffered_write_done(wreq);
  166. _leave(" = %d", ret);
  167. return ret;
  168. }
  169. static void netfs_unbuffered_write_async(struct work_struct *work)
  170. {
  171. struct netfs_io_request *wreq = container_of(work, struct netfs_io_request, work);
  172. netfs_unbuffered_write(wreq);
  173. netfs_put_request(wreq, netfs_rreq_trace_put_complete);
  174. }
  175. /*
  176. * Perform an unbuffered write where we may have to do an RMW operation on an
  177. * encrypted file. This can also be used for direct I/O writes.
  178. */
  179. ssize_t netfs_unbuffered_write_iter_locked(struct kiocb *iocb, struct iov_iter *iter,
  180. struct netfs_group *netfs_group)
  181. {
  182. struct netfs_io_request *wreq;
  183. unsigned long long start = iocb->ki_pos;
  184. unsigned long long end = start + iov_iter_count(iter);
  185. ssize_t ret, n;
  186. size_t len = iov_iter_count(iter);
  187. bool async = !is_sync_kiocb(iocb);
  188. _enter("");
  189. /* We're going to need a bounce buffer if what we transmit is going to
  190. * be different in some way to the source buffer, e.g. because it gets
  191. * encrypted/compressed or because it needs expanding to a block size.
  192. */
  193. // TODO
  194. _debug("uw %llx-%llx", start, end);
  195. wreq = netfs_create_write_req(iocb->ki_filp->f_mapping, iocb->ki_filp, start,
  196. iocb->ki_flags & IOCB_DIRECT ?
  197. NETFS_DIO_WRITE : NETFS_UNBUFFERED_WRITE);
  198. if (IS_ERR(wreq))
  199. return PTR_ERR(wreq);
  200. wreq->io_streams[0].avail = true;
  201. trace_netfs_write(wreq, (iocb->ki_flags & IOCB_DIRECT ?
  202. netfs_write_trace_dio_write :
  203. netfs_write_trace_unbuffered_write));
  204. {
  205. /* If this is an async op and we're not using a bounce buffer,
  206. * we have to save the source buffer as the iterator is only
  207. * good until we return. In such a case, extract an iterator
  208. * to represent as much of the the output buffer as we can
  209. * manage. Note that the extraction might not be able to
  210. * allocate a sufficiently large bvec array and may shorten the
  211. * request.
  212. */
  213. if (user_backed_iter(iter)) {
  214. n = netfs_extract_user_iter(iter, len, &wreq->buffer.iter, 0);
  215. if (n < 0) {
  216. ret = n;
  217. goto error_put;
  218. }
  219. wreq->direct_bv = (struct bio_vec *)wreq->buffer.iter.bvec;
  220. wreq->direct_bv_count = n;
  221. wreq->direct_bv_unpin = iov_iter_extract_will_pin(iter);
  222. } else {
  223. /* If this is a kernel-generated async DIO request,
  224. * assume that any resources the iterator points to
  225. * (eg. a bio_vec array) will persist till the end of
  226. * the op.
  227. */
  228. wreq->buffer.iter = *iter;
  229. }
  230. wreq->len = iov_iter_count(&wreq->buffer.iter);
  231. }
  232. __set_bit(NETFS_RREQ_USE_IO_ITER, &wreq->flags);
  233. /* Copy the data into the bounce buffer and encrypt it. */
  234. // TODO
  235. /* Dispatch the write. */
  236. __set_bit(NETFS_RREQ_UPLOAD_TO_SERVER, &wreq->flags);
  237. if (async) {
  238. INIT_WORK(&wreq->work, netfs_unbuffered_write_async);
  239. wreq->iocb = iocb;
  240. queue_work(system_dfl_wq, &wreq->work);
  241. ret = -EIOCBQUEUED;
  242. } else {
  243. ret = netfs_unbuffered_write(wreq);
  244. if (ret < 0) {
  245. _debug("begin = %zd", ret);
  246. } else {
  247. iocb->ki_pos += wreq->transferred;
  248. ret = wreq->transferred ?: wreq->error;
  249. }
  250. netfs_put_request(wreq, netfs_rreq_trace_put_complete);
  251. }
  252. netfs_put_request(wreq, netfs_rreq_trace_put_return);
  253. return ret;
  254. error_put:
  255. netfs_put_failed_request(wreq);
  256. return ret;
  257. }
  258. EXPORT_SYMBOL(netfs_unbuffered_write_iter_locked);
  259. /**
  260. * netfs_unbuffered_write_iter - Unbuffered write to a file
  261. * @iocb: IO state structure
  262. * @from: iov_iter with data to write
  263. *
  264. * Do an unbuffered write to a file, writing the data directly to the server
  265. * and not lodging the data in the pagecache.
  266. *
  267. * Return:
  268. * * Negative error code if no data has been written at all of
  269. * vfs_fsync_range() failed for a synchronous write
  270. * * Number of bytes written, even for truncated writes
  271. */
  272. ssize_t netfs_unbuffered_write_iter(struct kiocb *iocb, struct iov_iter *from)
  273. {
  274. struct file *file = iocb->ki_filp;
  275. struct address_space *mapping = file->f_mapping;
  276. struct inode *inode = mapping->host;
  277. struct netfs_inode *ictx = netfs_inode(inode);
  278. ssize_t ret;
  279. loff_t pos = iocb->ki_pos;
  280. unsigned long long end = pos + iov_iter_count(from) - 1;
  281. _enter("%llx,%zx,%llx", pos, iov_iter_count(from), i_size_read(inode));
  282. if (!iov_iter_count(from))
  283. return 0;
  284. trace_netfs_write_iter(iocb, from);
  285. netfs_stat(&netfs_n_wh_dio_write);
  286. ret = netfs_start_io_direct(inode);
  287. if (ret < 0)
  288. return ret;
  289. ret = generic_write_checks(iocb, from);
  290. if (ret <= 0)
  291. goto out;
  292. ret = file_remove_privs(file);
  293. if (ret < 0)
  294. goto out;
  295. ret = file_update_time(file);
  296. if (ret < 0)
  297. goto out;
  298. if (iocb->ki_flags & IOCB_NOWAIT) {
  299. /* We could block if there are any pages in the range. */
  300. ret = -EAGAIN;
  301. if (filemap_range_has_page(mapping, pos, end))
  302. if (filemap_invalidate_inode(inode, true, pos, end))
  303. goto out;
  304. } else {
  305. ret = filemap_write_and_wait_range(mapping, pos, end);
  306. if (ret < 0)
  307. goto out;
  308. }
  309. /*
  310. * After a write we want buffered reads to be sure to go to disk to get
  311. * the new data. We invalidate clean cached page from the region we're
  312. * about to write. We do this *before* the write so that we can return
  313. * without clobbering -EIOCBQUEUED from ->direct_IO().
  314. */
  315. ret = filemap_invalidate_inode(inode, true, pos, end);
  316. if (ret < 0)
  317. goto out;
  318. end = iocb->ki_pos + iov_iter_count(from);
  319. if (end > ictx->zero_point)
  320. ictx->zero_point = end;
  321. fscache_invalidate(netfs_i_cookie(ictx), NULL, i_size_read(inode),
  322. FSCACHE_INVAL_DIO_WRITE);
  323. ret = netfs_unbuffered_write_iter_locked(iocb, from, NULL);
  324. out:
  325. netfs_end_io_direct(inode);
  326. return ret;
  327. }
  328. EXPORT_SYMBOL(netfs_unbuffered_write_iter);