netfs: Remove deprecated use of PG_private_2 as a second writeback flag
Remove the deprecated use of PG_private_2 in netfslib. Signed-off-by: David Howells <dhowells@redhat.com> Reviewed-by: Jeff Layton <jlayton@kernel.org> cc: Matthew Wilcox (Oracle) <willy@infradead.org> cc: linux-cachefs@redhat.com cc: linux-fsdevel@vger.kernel.org cc: linux-mm@kvack.org
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2e9d7e4b98
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ae678317b9
3 changed files with 2 additions and 169 deletions
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@ -498,11 +498,6 @@ const struct netfs_request_ops ceph_netfs_ops = {
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};
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#ifdef CONFIG_CEPH_FSCACHE
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static void ceph_set_page_fscache(struct page *page)
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{
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folio_start_private_2(page_folio(page)); /* [DEPRECATED] */
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}
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static void ceph_fscache_write_terminated(void *priv, ssize_t error, bool was_async)
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{
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struct inode *inode = priv;
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@ -520,10 +515,6 @@ static void ceph_fscache_write_to_cache(struct inode *inode, u64 off, u64 len, b
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ceph_fscache_write_terminated, inode, true, caching);
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}
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#else
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static inline void ceph_set_page_fscache(struct page *page)
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{
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}
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static inline void ceph_fscache_write_to_cache(struct inode *inode, u64 off, u64 len, bool caching)
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{
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}
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@ -715,8 +706,6 @@ static int writepage_nounlock(struct page *page, struct writeback_control *wbc)
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len = wlen;
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set_page_writeback(page);
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if (caching)
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ceph_set_page_fscache(page);
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ceph_fscache_write_to_cache(inode, page_off, len, caching);
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if (IS_ENCRYPTED(inode)) {
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@ -800,8 +789,6 @@ static int ceph_writepage(struct page *page, struct writeback_control *wbc)
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return AOP_WRITEPAGE_ACTIVATE;
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}
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folio_wait_private_2(page_folio(page)); /* [DEPRECATED] */
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err = writepage_nounlock(page, wbc);
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if (err == -ERESTARTSYS) {
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/* direct memory reclaimer was killed by SIGKILL. return 0
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@ -1075,8 +1062,7 @@ get_more_pages:
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unlock_page(page);
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break;
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}
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if (PageWriteback(page) ||
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PagePrivate2(page) /* [DEPRECATED] */) {
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if (PageWriteback(page)) {
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if (wbc->sync_mode == WB_SYNC_NONE) {
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doutc(cl, "%p under writeback\n", page);
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unlock_page(page);
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@ -1084,7 +1070,6 @@ get_more_pages:
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}
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doutc(cl, "waiting on writeback %p\n", page);
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wait_on_page_writeback(page);
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folio_wait_private_2(page_folio(page)); /* [DEPRECATED] */
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}
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if (!clear_page_dirty_for_io(page)) {
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@ -1269,8 +1254,6 @@ new_request:
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}
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set_page_writeback(page);
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if (caching)
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ceph_set_page_fscache(page);
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len += thp_size(page);
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}
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ceph_fscache_write_to_cache(inode, offset, len, caching);
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@ -464,7 +464,7 @@ retry:
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if (!netfs_is_cache_enabled(ctx) &&
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netfs_skip_folio_read(folio, pos, len, false)) {
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netfs_stat(&netfs_n_rh_write_zskip);
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goto have_folio_no_wait;
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goto have_folio;
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}
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rreq = netfs_alloc_request(mapping, file,
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@ -505,12 +505,6 @@ retry:
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netfs_put_request(rreq, false, netfs_rreq_trace_put_return);
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have_folio:
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if (test_bit(NETFS_ICTX_USE_PGPRIV2, &ctx->flags)) {
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ret = folio_wait_private_2_killable(folio);
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if (ret < 0)
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goto error;
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}
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have_folio_no_wait:
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*_folio = folio;
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_leave(" = 0");
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return 0;
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144
fs/netfs/io.c
144
fs/netfs/io.c
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@ -98,146 +98,6 @@ static void netfs_rreq_completed(struct netfs_io_request *rreq, bool was_async)
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netfs_put_request(rreq, was_async, netfs_rreq_trace_put_complete);
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}
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/*
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* [DEPRECATED] Deal with the completion of writing the data to the cache. We
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* have to clear the PG_fscache bits on the folios involved and release the
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* caller's ref.
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*
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* May be called in softirq mode and we inherit a ref from the caller.
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*/
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static void netfs_rreq_unmark_after_write(struct netfs_io_request *rreq,
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bool was_async)
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{
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struct netfs_io_subrequest *subreq;
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struct folio *folio;
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pgoff_t unlocked = 0;
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bool have_unlocked = false;
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rcu_read_lock();
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list_for_each_entry(subreq, &rreq->subrequests, rreq_link) {
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XA_STATE(xas, &rreq->mapping->i_pages, subreq->start / PAGE_SIZE);
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xas_for_each(&xas, folio, (subreq->start + subreq->len - 1) / PAGE_SIZE) {
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if (xas_retry(&xas, folio))
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continue;
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/* We might have multiple writes from the same huge
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* folio, but we mustn't unlock a folio more than once.
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*/
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if (have_unlocked && folio->index <= unlocked)
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continue;
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unlocked = folio_next_index(folio) - 1;
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trace_netfs_folio(folio, netfs_folio_trace_end_copy);
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folio_end_private_2(folio);
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have_unlocked = true;
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}
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}
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rcu_read_unlock();
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netfs_rreq_completed(rreq, was_async);
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}
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static void netfs_rreq_copy_terminated(void *priv, ssize_t transferred_or_error,
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bool was_async) /* [DEPRECATED] */
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{
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struct netfs_io_subrequest *subreq = priv;
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struct netfs_io_request *rreq = subreq->rreq;
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if (IS_ERR_VALUE(transferred_or_error)) {
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netfs_stat(&netfs_n_rh_write_failed);
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trace_netfs_failure(rreq, subreq, transferred_or_error,
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netfs_fail_copy_to_cache);
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} else {
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netfs_stat(&netfs_n_rh_write_done);
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}
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trace_netfs_sreq(subreq, netfs_sreq_trace_write_term);
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/* If we decrement nr_copy_ops to 0, the ref belongs to us. */
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if (atomic_dec_and_test(&rreq->nr_copy_ops))
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netfs_rreq_unmark_after_write(rreq, was_async);
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netfs_put_subrequest(subreq, was_async, netfs_sreq_trace_put_terminated);
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}
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/*
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* [DEPRECATED] Perform any outstanding writes to the cache. We inherit a ref
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* from the caller.
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*/
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static void netfs_rreq_do_write_to_cache(struct netfs_io_request *rreq)
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{
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struct netfs_cache_resources *cres = &rreq->cache_resources;
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struct netfs_io_subrequest *subreq, *next, *p;
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struct iov_iter iter;
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int ret;
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trace_netfs_rreq(rreq, netfs_rreq_trace_copy);
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/* We don't want terminating writes trying to wake us up whilst we're
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* still going through the list.
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*/
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atomic_inc(&rreq->nr_copy_ops);
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list_for_each_entry_safe(subreq, p, &rreq->subrequests, rreq_link) {
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if (!test_bit(NETFS_SREQ_COPY_TO_CACHE, &subreq->flags)) {
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list_del_init(&subreq->rreq_link);
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netfs_put_subrequest(subreq, false,
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netfs_sreq_trace_put_no_copy);
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}
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}
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list_for_each_entry(subreq, &rreq->subrequests, rreq_link) {
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/* Amalgamate adjacent writes */
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while (!list_is_last(&subreq->rreq_link, &rreq->subrequests)) {
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next = list_next_entry(subreq, rreq_link);
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if (next->start != subreq->start + subreq->len)
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break;
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subreq->len += next->len;
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list_del_init(&next->rreq_link);
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netfs_put_subrequest(next, false,
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netfs_sreq_trace_put_merged);
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}
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ret = cres->ops->prepare_write(cres, &subreq->start, &subreq->len,
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subreq->len, rreq->i_size, true);
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if (ret < 0) {
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trace_netfs_failure(rreq, subreq, ret, netfs_fail_prepare_write);
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trace_netfs_sreq(subreq, netfs_sreq_trace_write_skip);
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continue;
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}
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iov_iter_xarray(&iter, ITER_SOURCE, &rreq->mapping->i_pages,
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subreq->start, subreq->len);
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atomic_inc(&rreq->nr_copy_ops);
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netfs_stat(&netfs_n_rh_write);
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netfs_get_subrequest(subreq, netfs_sreq_trace_get_copy_to_cache);
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trace_netfs_sreq(subreq, netfs_sreq_trace_write);
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cres->ops->write(cres, subreq->start, &iter,
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netfs_rreq_copy_terminated, subreq);
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}
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/* If we decrement nr_copy_ops to 0, the usage ref belongs to us. */
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if (atomic_dec_and_test(&rreq->nr_copy_ops))
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netfs_rreq_unmark_after_write(rreq, false);
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}
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static void netfs_rreq_write_to_cache_work(struct work_struct *work) /* [DEPRECATED] */
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{
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struct netfs_io_request *rreq =
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container_of(work, struct netfs_io_request, work);
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netfs_rreq_do_write_to_cache(rreq);
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}
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static void netfs_rreq_write_to_cache(struct netfs_io_request *rreq) /* [DEPRECATED] */
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{
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rreq->work.func = netfs_rreq_write_to_cache_work;
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if (!queue_work(system_unbound_wq, &rreq->work))
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BUG();
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}
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/*
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* Handle a short read.
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*/
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@ -410,10 +270,6 @@ again:
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clear_bit_unlock(NETFS_RREQ_IN_PROGRESS, &rreq->flags);
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wake_up_bit(&rreq->flags, NETFS_RREQ_IN_PROGRESS);
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if (test_bit(NETFS_RREQ_COPY_TO_CACHE, &rreq->flags) &&
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test_bit(NETFS_RREQ_USE_PGPRIV2, &rreq->flags))
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return netfs_rreq_write_to_cache(rreq);
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netfs_rreq_completed(rreq, was_async);
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}
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