nfs_bio.c revision 1.147.2.3 1 /* $NetBSD: nfs_bio.c,v 1.147.2.3 2007/05/07 10:56:10 yamt Exp $ */
2
3 /*
4 * Copyright (c) 1989, 1993
5 * The Regents of the University of California. All rights reserved.
6 *
7 * This code is derived from software contributed to Berkeley by
8 * Rick Macklem at The University of Guelph.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 * 3. Neither the name of the University nor the names of its contributors
19 * may be used to endorse or promote products derived from this software
20 * without specific prior written permission.
21 *
22 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
26 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
27 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
28 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
30 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
31 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
32 * SUCH DAMAGE.
33 *
34 * @(#)nfs_bio.c 8.9 (Berkeley) 3/30/95
35 */
36
37 #include <sys/cdefs.h>
38 __KERNEL_RCSID(0, "$NetBSD: nfs_bio.c,v 1.147.2.3 2007/05/07 10:56:10 yamt Exp $");
39
40 #include "opt_nfs.h"
41 #include "opt_ddb.h"
42
43 #include <sys/param.h>
44 #include <sys/systm.h>
45 #include <sys/resourcevar.h>
46 #include <sys/signalvar.h>
47 #include <sys/proc.h>
48 #include <sys/buf.h>
49 #include <sys/vnode.h>
50 #include <sys/mount.h>
51 #include <sys/kernel.h>
52 #include <sys/namei.h>
53 #include <sys/dirent.h>
54 #include <sys/malloc.h>
55 #include <sys/kauth.h>
56
57 #include <uvm/uvm_extern.h>
58 #include <uvm/uvm.h>
59
60 #include <nfs/rpcv2.h>
61 #include <nfs/nfsproto.h>
62 #include <nfs/nfs.h>
63 #include <nfs/nfsmount.h>
64 #include <nfs/nfsnode.h>
65 #include <nfs/nfs_var.h>
66
67 extern int nfs_numasync;
68 extern int nfs_commitsize;
69 extern struct nfsstats nfsstats;
70
71 static int nfs_doio_read __P((struct buf *, struct uio *));
72 static int nfs_doio_write __P((struct buf *, struct uio *));
73 static int nfs_doio_phys __P((struct buf *, struct uio *));
74
75 /*
76 * Vnode op for read using bio
77 * Any similarity to readip() is purely coincidental
78 */
79 int
80 nfs_bioread(vp, uio, ioflag, cred, cflag)
81 struct vnode *vp;
82 struct uio *uio;
83 int ioflag, cflag;
84 kauth_cred_t cred;
85 {
86 struct nfsnode *np = VTONFS(vp);
87 struct buf *bp = NULL, *rabp;
88 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
89 struct nfsdircache *ndp = NULL, *nndp = NULL;
90 void *baddr;
91 int got_buf = 0, error = 0, n = 0, on = 0, en, enn;
92 int enough = 0;
93 struct dirent *dp, *pdp, *edp, *ep;
94 off_t curoff = 0;
95 int advice;
96 struct lwp *l = curlwp;
97
98 #ifdef DIAGNOSTIC
99 if (uio->uio_rw != UIO_READ)
100 panic("nfs_read mode");
101 #endif
102 if (uio->uio_resid == 0)
103 return (0);
104 if (vp->v_type != VDIR && uio->uio_offset < 0)
105 return (EINVAL);
106 #ifndef NFS_V2_ONLY
107 if ((nmp->nm_flag & NFSMNT_NFSV3) &&
108 !(nmp->nm_iflag & NFSMNT_GOTFSINFO))
109 (void)nfs_fsinfo(nmp, vp, cred, l);
110 #endif
111 if (vp->v_type != VDIR &&
112 (uio->uio_offset + uio->uio_resid) > nmp->nm_maxfilesize)
113 return (EFBIG);
114
115 /*
116 * For nfs, cache consistency can only be maintained approximately.
117 * Although RFC1094 does not specify the criteria, the following is
118 * believed to be compatible with the reference port.
119 *
120 * If the file's modify time on the server has changed since the
121 * last read rpc or you have written to the file,
122 * you may have lost data cache consistency with the
123 * server, so flush all of the file's data out of the cache.
124 * Then force a getattr rpc to ensure that you have up to date
125 * attributes.
126 * NB: This implies that cache data can be read when up to
127 * NFS_ATTRTIMEO seconds out of date. If you find that you need current
128 * attributes this could be forced by setting n_attrstamp to 0 before
129 * the VOP_GETATTR() call.
130 */
131
132 if (vp->v_type != VLNK) {
133 error = nfs_flushstalebuf(vp, cred, l,
134 NFS_FLUSHSTALEBUF_MYWRITE);
135 if (error)
136 return error;
137 }
138
139 do {
140 /*
141 * Don't cache symlinks.
142 */
143 if ((vp->v_flag & VROOT) && vp->v_type == VLNK) {
144 return (nfs_readlinkrpc(vp, uio, cred));
145 }
146 baddr = (void *)0;
147 switch (vp->v_type) {
148 case VREG:
149 nfsstats.biocache_reads++;
150
151 advice = IO_ADV_DECODE(ioflag);
152 error = 0;
153 while (uio->uio_resid > 0) {
154 void *win;
155 int flags;
156 vsize_t bytelen;
157
158 nfs_delayedtruncate(vp);
159 if (np->n_size <= uio->uio_offset) {
160 break;
161 }
162 bytelen =
163 MIN(np->n_size - uio->uio_offset, uio->uio_resid);
164 win = ubc_alloc(&vp->v_uobj, uio->uio_offset,
165 &bytelen, advice, UBC_READ);
166 error = uiomove(win, bytelen, uio);
167 flags = UBC_WANT_UNMAP(vp) ? UBC_UNMAP : 0;
168 ubc_release(win, flags);
169 if (error) {
170 /*
171 * XXXkludge
172 * the file has been truncated on the server.
173 * there isn't much we can do.
174 */
175 if (uio->uio_offset >= np->n_size) {
176 /* end of file */
177 error = 0;
178 } else {
179 break;
180 }
181 }
182 }
183 break;
184
185 case VLNK:
186 nfsstats.biocache_readlinks++;
187 bp = nfs_getcacheblk(vp, (daddr_t)0, NFS_MAXPATHLEN, l);
188 if (!bp)
189 return (EINTR);
190 if ((bp->b_flags & B_DONE) == 0) {
191 bp->b_flags |= B_READ;
192 error = nfs_doio(bp);
193 if (error) {
194 brelse(bp);
195 return (error);
196 }
197 }
198 n = MIN(uio->uio_resid, NFS_MAXPATHLEN - bp->b_resid);
199 got_buf = 1;
200 on = 0;
201 break;
202 case VDIR:
203 diragain:
204 nfsstats.biocache_readdirs++;
205 ndp = nfs_searchdircache(vp, uio->uio_offset,
206 (nmp->nm_flag & NFSMNT_XLATECOOKIE), 0);
207 if (!ndp) {
208 /*
209 * We've been handed a cookie that is not
210 * in the cache. If we're not translating
211 * 32 <-> 64, it may be a value that was
212 * flushed out of the cache because it grew
213 * too big. Let the server judge if it's
214 * valid or not. In the translation case,
215 * we have no way of validating this value,
216 * so punt.
217 */
218 if (nmp->nm_flag & NFSMNT_XLATECOOKIE)
219 return (EINVAL);
220 ndp = nfs_enterdircache(vp, uio->uio_offset,
221 uio->uio_offset, 0, 0);
222 }
223
224 if (NFS_EOFVALID(np) &&
225 ndp->dc_cookie == np->n_direofoffset) {
226 nfs_putdircache(np, ndp);
227 nfsstats.direofcache_hits++;
228 return (0);
229 }
230
231 bp = nfs_getcacheblk(vp, NFSDC_BLKNO(ndp), NFS_DIRBLKSIZ, l);
232 if (!bp)
233 return (EINTR);
234 if ((bp->b_flags & B_DONE) == 0) {
235 bp->b_flags |= B_READ;
236 bp->b_dcookie = ndp->dc_blkcookie;
237 error = nfs_doio(bp);
238 if (error) {
239 /*
240 * Yuck! The directory has been modified on the
241 * server. Punt and let the userland code
242 * deal with it.
243 */
244 nfs_putdircache(np, ndp);
245 brelse(bp);
246 /*
247 * nfs_request maps NFSERR_BAD_COOKIE to EINVAL.
248 */
249 if (error == EINVAL) { /* NFSERR_BAD_COOKIE */
250 nfs_invaldircache(vp, 0);
251 nfs_vinvalbuf(vp, 0, cred, l, 1);
252 }
253 return (error);
254 }
255 }
256
257 /*
258 * Just return if we hit EOF right away with this
259 * block. Always check here, because direofoffset
260 * may have been set by an nfsiod since the last
261 * check.
262 *
263 * also, empty block implies EOF.
264 */
265
266 if (bp->b_bcount == bp->b_resid ||
267 (NFS_EOFVALID(np) &&
268 ndp->dc_blkcookie == np->n_direofoffset)) {
269 KASSERT(bp->b_bcount != bp->b_resid ||
270 ndp->dc_blkcookie == bp->b_dcookie);
271 nfs_putdircache(np, ndp);
272 bp->b_flags |= B_NOCACHE;
273 brelse(bp);
274 return 0;
275 }
276
277 /*
278 * Find the entry we were looking for in the block.
279 */
280
281 en = ndp->dc_entry;
282
283 pdp = dp = (struct dirent *)bp->b_data;
284 edp = (struct dirent *)(void *)((char *)bp->b_data + bp->b_bcount -
285 bp->b_resid);
286 enn = 0;
287 while (enn < en && dp < edp) {
288 pdp = dp;
289 dp = _DIRENT_NEXT(dp);
290 enn++;
291 }
292
293 /*
294 * If the entry number was bigger than the number of
295 * entries in the block, or the cookie of the previous
296 * entry doesn't match, the directory cache is
297 * stale. Flush it and try again (i.e. go to
298 * the server).
299 */
300 if (dp >= edp || (struct dirent *)_DIRENT_NEXT(dp) > edp ||
301 (en > 0 && NFS_GETCOOKIE(pdp) != ndp->dc_cookie)) {
302 #ifdef DEBUG
303 printf("invalid cache: %p %p %p off %lx %lx\n",
304 pdp, dp, edp,
305 (unsigned long)uio->uio_offset,
306 (unsigned long)NFS_GETCOOKIE(pdp));
307 #endif
308 nfs_putdircache(np, ndp);
309 brelse(bp);
310 nfs_invaldircache(vp, 0);
311 nfs_vinvalbuf(vp, 0, cred, l, 0);
312 goto diragain;
313 }
314
315 on = (char *)dp - (char *)bp->b_data;
316
317 /*
318 * Cache all entries that may be exported to the
319 * user, as they may be thrown back at us. The
320 * NFSBIO_CACHECOOKIES flag indicates that all
321 * entries are being 'exported', so cache them all.
322 */
323
324 if (en == 0 && pdp == dp) {
325 dp = _DIRENT_NEXT(dp);
326 enn++;
327 }
328
329 if (uio->uio_resid < (bp->b_bcount - bp->b_resid - on)) {
330 n = uio->uio_resid;
331 enough = 1;
332 } else
333 n = bp->b_bcount - bp->b_resid - on;
334
335 ep = (struct dirent *)(void *)((char *)bp->b_data + on + n);
336
337 /*
338 * Find last complete entry to copy, caching entries
339 * (if requested) as we go.
340 */
341
342 while (dp < ep && (struct dirent *)_DIRENT_NEXT(dp) <= ep) {
343 if (cflag & NFSBIO_CACHECOOKIES) {
344 nndp = nfs_enterdircache(vp, NFS_GETCOOKIE(pdp),
345 ndp->dc_blkcookie, enn, bp->b_lblkno);
346 if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
347 NFS_STASHCOOKIE32(pdp,
348 nndp->dc_cookie32);
349 }
350 nfs_putdircache(np, nndp);
351 }
352 pdp = dp;
353 dp = _DIRENT_NEXT(dp);
354 enn++;
355 }
356 nfs_putdircache(np, ndp);
357
358 /*
359 * If the last requested entry was not the last in the
360 * buffer (happens if NFS_DIRFRAGSIZ < NFS_DIRBLKSIZ),
361 * cache the cookie of the last requested one, and
362 * set of the offset to it.
363 */
364
365 if ((on + n) < bp->b_bcount - bp->b_resid) {
366 curoff = NFS_GETCOOKIE(pdp);
367 nndp = nfs_enterdircache(vp, curoff, ndp->dc_blkcookie,
368 enn, bp->b_lblkno);
369 if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
370 NFS_STASHCOOKIE32(pdp, nndp->dc_cookie32);
371 curoff = nndp->dc_cookie32;
372 }
373 nfs_putdircache(np, nndp);
374 } else
375 curoff = bp->b_dcookie;
376
377 /*
378 * Always cache the entry for the next block,
379 * so that readaheads can use it.
380 */
381 nndp = nfs_enterdircache(vp, bp->b_dcookie, bp->b_dcookie, 0,0);
382 if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
383 if (curoff == bp->b_dcookie) {
384 NFS_STASHCOOKIE32(pdp, nndp->dc_cookie32);
385 curoff = nndp->dc_cookie32;
386 }
387 }
388
389 n = (char *)_DIRENT_NEXT(pdp) - ((char *)bp->b_data + on);
390
391 /*
392 * If not eof and read aheads are enabled, start one.
393 * (You need the current block first, so that you have the
394 * directory offset cookie of the next block.)
395 */
396 if (nfs_numasync > 0 && nmp->nm_readahead > 0 &&
397 !NFS_EOFVALID(np)) {
398 rabp = nfs_getcacheblk(vp, NFSDC_BLKNO(nndp),
399 NFS_DIRBLKSIZ, l);
400 if (rabp) {
401 if ((rabp->b_flags & (B_DONE | B_DELWRI)) == 0) {
402 rabp->b_dcookie = nndp->dc_cookie;
403 rabp->b_flags |= (B_READ | B_ASYNC);
404 if (nfs_asyncio(rabp)) {
405 rabp->b_flags |= B_INVAL;
406 brelse(rabp);
407 }
408 } else
409 brelse(rabp);
410 }
411 }
412 nfs_putdircache(np, nndp);
413 got_buf = 1;
414 break;
415 default:
416 printf(" nfsbioread: type %x unexpected\n",vp->v_type);
417 break;
418 }
419
420 if (n > 0) {
421 if (!baddr)
422 baddr = bp->b_data;
423 error = uiomove((char *)baddr + on, (int)n, uio);
424 }
425 switch (vp->v_type) {
426 case VREG:
427 break;
428 case VLNK:
429 n = 0;
430 break;
431 case VDIR:
432 uio->uio_offset = curoff;
433 if (enough)
434 n = 0;
435 break;
436 default:
437 printf(" nfsbioread: type %x unexpected\n",vp->v_type);
438 }
439 if (got_buf)
440 brelse(bp);
441 } while (error == 0 && uio->uio_resid > 0 && n > 0);
442 return (error);
443 }
444
445 /*
446 * Vnode op for write using bio
447 */
448 int
449 nfs_write(v)
450 void *v;
451 {
452 struct vop_write_args /* {
453 struct vnode *a_vp;
454 struct uio *a_uio;
455 int a_ioflag;
456 kauth_cred_t a_cred;
457 } */ *ap = v;
458 struct uio *uio = ap->a_uio;
459 struct lwp *l = curlwp;
460 struct vnode *vp = ap->a_vp;
461 struct nfsnode *np = VTONFS(vp);
462 kauth_cred_t cred = ap->a_cred;
463 struct vattr vattr;
464 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
465 void *win;
466 voff_t oldoff, origoff;
467 vsize_t bytelen;
468 int flags, error = 0;
469 int ioflag = ap->a_ioflag;
470 int extended = 0, wrotedata = 0;
471
472 #ifdef DIAGNOSTIC
473 if (uio->uio_rw != UIO_WRITE)
474 panic("nfs_write mode");
475 #endif
476 if (vp->v_type != VREG)
477 return (EIO);
478 if (np->n_flag & NWRITEERR) {
479 np->n_flag &= ~NWRITEERR;
480 return (np->n_error);
481 }
482 #ifndef NFS_V2_ONLY
483 if ((nmp->nm_flag & NFSMNT_NFSV3) &&
484 !(nmp->nm_iflag & NFSMNT_GOTFSINFO))
485 (void)nfs_fsinfo(nmp, vp, cred, l);
486 #endif
487 if (ioflag & (IO_APPEND | IO_SYNC)) {
488 if (np->n_flag & NMODIFIED) {
489 NFS_INVALIDATE_ATTRCACHE(np);
490 error = nfs_vinvalbuf(vp, V_SAVE, cred, l, 1);
491 if (error)
492 return (error);
493 }
494 if (ioflag & IO_APPEND) {
495 NFS_INVALIDATE_ATTRCACHE(np);
496 error = VOP_GETATTR(vp, &vattr, cred, l);
497 if (error)
498 return (error);
499 uio->uio_offset = np->n_size;
500 }
501 }
502 if (uio->uio_offset < 0)
503 return (EINVAL);
504 if ((uio->uio_offset + uio->uio_resid) > nmp->nm_maxfilesize)
505 return (EFBIG);
506 if (uio->uio_resid == 0)
507 return (0);
508 /*
509 * Maybe this should be above the vnode op call, but so long as
510 * file servers have no limits, i don't think it matters
511 */
512 if (l && l->l_proc && uio->uio_offset + uio->uio_resid >
513 l->l_proc->p_rlimit[RLIMIT_FSIZE].rlim_cur) {
514 mutex_enter(&proclist_mutex);
515 psignal(l->l_proc, SIGXFSZ);
516 mutex_exit(&proclist_mutex);
517 return (EFBIG);
518 }
519
520 origoff = uio->uio_offset;
521 do {
522 bool extending; /* if we are extending whole pages */
523 u_quad_t oldsize;
524 oldoff = uio->uio_offset;
525 bytelen = uio->uio_resid;
526
527 nfsstats.biocache_writes++;
528
529 oldsize = np->n_size;
530 np->n_flag |= NMODIFIED;
531 if (np->n_size < uio->uio_offset + bytelen) {
532 np->n_size = uio->uio_offset + bytelen;
533 }
534 extending = ((uio->uio_offset & PAGE_MASK) == 0 &&
535 (bytelen & PAGE_MASK) == 0 &&
536 uio->uio_offset >= vp->v_size);
537 win = ubc_alloc(&vp->v_uobj, uio->uio_offset, &bytelen,
538 UVM_ADV_NORMAL,
539 UBC_WRITE | (extending ? UBC_FAULTBUSY : 0));
540 error = uiomove(win, bytelen, uio);
541 flags = UBC_WANT_UNMAP(vp) ? UBC_UNMAP : 0;
542 ubc_release(win, flags);
543 if (error) {
544 if (extending) {
545 /*
546 * backout size and free pages past eof.
547 */
548 np->n_size = oldsize;
549 simple_lock(&vp->v_interlock);
550 (void)VOP_PUTPAGES(vp, round_page(vp->v_size),
551 0, PGO_SYNCIO | PGO_FREE);
552 }
553 break;
554 }
555 wrotedata = 1;
556
557 /*
558 * update UVM's notion of the size now that we've
559 * copied the data into the vnode's pages.
560 */
561
562 if (vp->v_size < uio->uio_offset) {
563 uvm_vnp_setsize(vp, uio->uio_offset);
564 extended = 1;
565 }
566
567 if ((oldoff & ~(nmp->nm_wsize - 1)) !=
568 (uio->uio_offset & ~(nmp->nm_wsize - 1))) {
569 simple_lock(&vp->v_interlock);
570 error = VOP_PUTPAGES(vp,
571 trunc_page(oldoff & ~(nmp->nm_wsize - 1)),
572 round_page((uio->uio_offset + nmp->nm_wsize - 1) &
573 ~(nmp->nm_wsize - 1)), PGO_CLEANIT);
574 }
575 } while (uio->uio_resid > 0);
576 if (wrotedata)
577 VN_KNOTE(vp, NOTE_WRITE | (extended ? NOTE_EXTEND : 0));
578 if (ioflag & IO_SYNC) {
579 simple_lock(&vp->v_interlock);
580 error = VOP_PUTPAGES(vp,
581 trunc_page(origoff & ~(nmp->nm_wsize - 1)),
582 round_page((uio->uio_offset + nmp->nm_wsize - 1) &
583 ~(nmp->nm_wsize - 1)),
584 PGO_CLEANIT | PGO_SYNCIO);
585 }
586 return error;
587 }
588
589 /*
590 * Get an nfs cache block.
591 * Allocate a new one if the block isn't currently in the cache
592 * and return the block marked busy. If the calling process is
593 * interrupted by a signal for an interruptible mount point, return
594 * NULL.
595 */
596 struct buf *
597 nfs_getcacheblk(vp, bn, size, l)
598 struct vnode *vp;
599 daddr_t bn;
600 int size;
601 struct lwp *l;
602 {
603 struct buf *bp;
604 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
605
606 if (nmp->nm_flag & NFSMNT_INT) {
607 bp = getblk(vp, bn, size, PCATCH, 0);
608 while (bp == NULL) {
609 if (nfs_sigintr(nmp, NULL, l))
610 return (NULL);
611 bp = getblk(vp, bn, size, 0, 2 * hz);
612 }
613 } else
614 bp = getblk(vp, bn, size, 0, 0);
615 return (bp);
616 }
617
618 /*
619 * Flush and invalidate all dirty buffers. If another process is already
620 * doing the flush, just wait for completion.
621 */
622 int
623 nfs_vinvalbuf(vp, flags, cred, l, intrflg)
624 struct vnode *vp;
625 int flags;
626 kauth_cred_t cred;
627 struct lwp *l;
628 int intrflg;
629 {
630 struct nfsnode *np = VTONFS(vp);
631 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
632 int error = 0, slpflag, slptimeo;
633
634 if ((nmp->nm_flag & NFSMNT_INT) == 0)
635 intrflg = 0;
636 if (intrflg) {
637 slpflag = PCATCH;
638 slptimeo = 2 * hz;
639 } else {
640 slpflag = 0;
641 slptimeo = 0;
642 }
643 /*
644 * First wait for any other process doing a flush to complete.
645 */
646 simple_lock(&vp->v_interlock);
647 while (np->n_flag & NFLUSHINPROG) {
648 np->n_flag |= NFLUSHWANT;
649 error = ltsleep(&np->n_flag, PRIBIO + 2, "nfsvinval",
650 slptimeo, &vp->v_interlock);
651 if (error && intrflg && nfs_sigintr(nmp, NULL, l)) {
652 simple_unlock(&vp->v_interlock);
653 return EINTR;
654 }
655 }
656
657 /*
658 * Now, flush as required.
659 */
660 np->n_flag |= NFLUSHINPROG;
661 simple_unlock(&vp->v_interlock);
662 error = vinvalbuf(vp, flags, cred, l, slpflag, 0);
663 while (error) {
664 if (intrflg && nfs_sigintr(nmp, NULL, l)) {
665 error = EINTR;
666 break;
667 }
668 error = vinvalbuf(vp, flags, cred, l, 0, slptimeo);
669 }
670 simple_lock(&vp->v_interlock);
671 if (error == 0)
672 np->n_flag &= ~NMODIFIED;
673 np->n_flag &= ~NFLUSHINPROG;
674 if (np->n_flag & NFLUSHWANT) {
675 np->n_flag &= ~NFLUSHWANT;
676 wakeup(&np->n_flag);
677 }
678 simple_unlock(&vp->v_interlock);
679 return error;
680 }
681
682 /*
683 * nfs_flushstalebuf: flush cache if it's stale.
684 *
685 * => caller shouldn't own any pages or buffers which belong to the vnode.
686 */
687
688 int
689 nfs_flushstalebuf(struct vnode *vp, kauth_cred_t cred, struct lwp *l,
690 int flags)
691 {
692 struct nfsnode *np = VTONFS(vp);
693 struct vattr vattr;
694 int error;
695
696 if (np->n_flag & NMODIFIED) {
697 if ((flags & NFS_FLUSHSTALEBUF_MYWRITE) == 0
698 || vp->v_type != VREG) {
699 error = nfs_vinvalbuf(vp, V_SAVE, cred, l, 1);
700 if (error)
701 return error;
702 if (vp->v_type == VDIR) {
703 nfs_invaldircache(vp, 0);
704 }
705 } else {
706 /*
707 * XXX assuming writes are ours.
708 */
709 }
710 NFS_INVALIDATE_ATTRCACHE(np);
711 error = VOP_GETATTR(vp, &vattr, cred, l);
712 if (error)
713 return error;
714 np->n_mtime = vattr.va_mtime;
715 } else {
716 error = VOP_GETATTR(vp, &vattr, cred, l);
717 if (error)
718 return error;
719 if (timespeccmp(&np->n_mtime, &vattr.va_mtime, !=)) {
720 if (vp->v_type == VDIR) {
721 nfs_invaldircache(vp, 0);
722 }
723 error = nfs_vinvalbuf(vp, V_SAVE, cred, l, 1);
724 if (error)
725 return error;
726 np->n_mtime = vattr.va_mtime;
727 }
728 }
729
730 return error;
731 }
732
733 /*
734 * Initiate asynchronous I/O. Return an error if no nfsiods are available.
735 * This is mainly to avoid queueing async I/O requests when the nfsiods
736 * are all hung on a dead server.
737 */
738
739 int
740 nfs_asyncio(bp)
741 struct buf *bp;
742 {
743 int i;
744 struct nfsmount *nmp;
745 int gotiod, slptimeo = 0, error;
746 bool catch = false;
747
748 if (nfs_numasync == 0)
749 return (EIO);
750
751 nmp = VFSTONFS(bp->b_vp->v_mount);
752 again:
753 if (nmp->nm_flag & NFSMNT_INT)
754 catch = true;
755 gotiod = false;
756
757 /*
758 * Find a free iod to process this request.
759 */
760
761 for (i = 0; i < NFS_MAXASYNCDAEMON; i++) {
762 struct nfs_iod *iod = &nfs_asyncdaemon[i];
763
764 mutex_enter(&iod->nid_lock);
765 if (iod->nid_want) {
766 /*
767 * Found one, so wake it up and tell it which
768 * mount to process.
769 */
770 iod->nid_want = NULL;
771 iod->nid_mount = nmp;
772 cv_signal(&iod->nid_cv);
773 mutex_enter(&nmp->nm_lock);
774 mutex_exit(&iod->nid_lock);
775 nmp->nm_bufqiods++;
776 gotiod = true;
777 break;
778 }
779 mutex_exit(&iod->nid_lock);
780 }
781
782 /*
783 * If none are free, we may already have an iod working on this mount
784 * point. If so, it will process our request.
785 */
786
787 if (!gotiod) {
788 mutex_enter(&nmp->nm_lock);
789 if (nmp->nm_bufqiods > 0)
790 gotiod = true;
791 }
792
793 KASSERT(mutex_owned(&nmp->nm_lock));
794
795 /*
796 * If we have an iod which can process the request, then queue
797 * the buffer. However, even if we have an iod, do not initiate
798 * queue cleaning if curproc is the pageout daemon. if the NFS mount
799 * is via local loopback, we may put curproc (pagedaemon) to sleep
800 * waiting for the writes to complete. But the server (ourself)
801 * may block the write, waiting for its (ie., our) pagedaemon
802 * to produce clean pages to handle the write: deadlock.
803 * XXX: start non-loopback mounts straight away? If "lots free",
804 * let pagedaemon start loopback writes anyway?
805 */
806 if (gotiod) {
807
808 /*
809 * Ensure that the queue never grows too large.
810 */
811 if (curproc == uvm.pagedaemon_proc) {
812 /* Enque for later, to avoid free-page deadlock */
813 (void) 0;
814 } else while (nmp->nm_bufqlen >= 2*nfs_numasync) {
815 if (catch) {
816 error = cv_timedwait_sig(&nmp->nm_aiocv,
817 &nmp->nm_lock, slptimeo);
818 } else {
819 error = cv_timedwait(&nmp->nm_aiocv,
820 &nmp->nm_lock, slptimeo);
821 }
822 if (error) {
823 mutex_exit(&nmp->nm_lock);
824 if (nfs_sigintr(nmp, NULL, curlwp))
825 return (EINTR);
826 if (catch) {
827 catch = false;
828 slptimeo = 2 * hz;
829 }
830 }
831
832 /*
833 * We might have lost our iod while sleeping,
834 * so check and loop if nescessary.
835 */
836
837 if (nmp->nm_bufqiods == 0) {
838 mutex_exit(&nmp->nm_lock);
839 goto again;
840 }
841 }
842 TAILQ_INSERT_TAIL(&nmp->nm_bufq, bp, b_freelist);
843 nmp->nm_bufqlen++;
844 mutex_exit(&nmp->nm_lock);
845 return (0);
846 }
847 mutex_exit(&nmp->nm_lock);
848
849 /*
850 * All the iods are busy on other mounts, so return EIO to
851 * force the caller to process the i/o synchronously.
852 */
853
854 return (EIO);
855 }
856
857 /*
858 * nfs_doio for read.
859 */
860 static int
861 nfs_doio_read(bp, uiop)
862 struct buf *bp;
863 struct uio *uiop;
864 {
865 struct vnode *vp = bp->b_vp;
866 struct nfsnode *np = VTONFS(vp);
867 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
868 int error = 0;
869
870 uiop->uio_rw = UIO_READ;
871 switch (vp->v_type) {
872 case VREG:
873 nfsstats.read_bios++;
874 error = nfs_readrpc(vp, uiop);
875 if (!error && uiop->uio_resid) {
876 int diff, len;
877
878 /*
879 * If uio_resid > 0, there is a hole in the file and
880 * no writes after the hole have been pushed to
881 * the server yet or the file has been truncated
882 * on the server.
883 * Just zero fill the rest of the valid area.
884 */
885
886 KASSERT(vp->v_size >=
887 uiop->uio_offset + uiop->uio_resid);
888 diff = bp->b_bcount - uiop->uio_resid;
889 len = uiop->uio_resid;
890 memset((char *)bp->b_data + diff, 0, len);
891 uiop->uio_resid = 0;
892 }
893 #if 0
894 if (uiop->uio_lwp && (vp->v_flag & VTEXT) &&
895 timespeccmp(&np->n_mtime, &np->n_vattr->va_mtime, !=)) {
896 killproc(uiop->uio_lwp->l_proc, "process text file was modified");
897 #if 0 /* XXX NJWLWP */
898 uiop->uio_lwp->l_proc->p_holdcnt++;
899 #endif
900 }
901 #endif
902 break;
903 case VLNK:
904 KASSERT(uiop->uio_offset == (off_t)0);
905 nfsstats.readlink_bios++;
906 error = nfs_readlinkrpc(vp, uiop, np->n_rcred);
907 break;
908 case VDIR:
909 nfsstats.readdir_bios++;
910 uiop->uio_offset = bp->b_dcookie;
911 #ifndef NFS_V2_ONLY
912 if (nmp->nm_flag & NFSMNT_RDIRPLUS) {
913 error = nfs_readdirplusrpc(vp, uiop,
914 curlwp->l_cred);
915 /*
916 * nfs_request maps NFSERR_NOTSUPP to ENOTSUP.
917 */
918 if (error == ENOTSUP)
919 nmp->nm_flag &= ~NFSMNT_RDIRPLUS;
920 }
921 #else
922 nmp->nm_flag &= ~NFSMNT_RDIRPLUS;
923 #endif
924 if ((nmp->nm_flag & NFSMNT_RDIRPLUS) == 0)
925 error = nfs_readdirrpc(vp, uiop,
926 curlwp->l_cred);
927 if (!error) {
928 bp->b_dcookie = uiop->uio_offset;
929 }
930 break;
931 default:
932 printf("nfs_doio: type %x unexpected\n", vp->v_type);
933 break;
934 }
935 if (error) {
936 bp->b_flags |= B_ERROR;
937 bp->b_error = error;
938 }
939 return error;
940 }
941
942 /*
943 * nfs_doio for write.
944 */
945 static int
946 nfs_doio_write(bp, uiop)
947 struct buf *bp;
948 struct uio *uiop;
949 {
950 struct vnode *vp = bp->b_vp;
951 struct nfsnode *np = VTONFS(vp);
952 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
953 int iomode;
954 bool stalewriteverf = false;
955 int i, npages = (bp->b_bcount + PAGE_SIZE - 1) >> PAGE_SHIFT;
956 struct vm_page *pgs[npages];
957 #ifndef NFS_V2_ONLY
958 bool needcommit = true; /* need only COMMIT RPC */
959 #else
960 bool needcommit = false; /* need only COMMIT RPC */
961 #endif
962 bool pageprotected;
963 struct uvm_object *uobj = &vp->v_uobj;
964 int error;
965 off_t off, cnt;
966
967 if ((bp->b_flags & B_ASYNC) != 0 && NFS_ISV3(vp)) {
968 iomode = NFSV3WRITE_UNSTABLE;
969 } else {
970 iomode = NFSV3WRITE_FILESYNC;
971 }
972
973 #ifndef NFS_V2_ONLY
974 again:
975 #endif
976 rw_enter(&nmp->nm_writeverflock, RW_READER);
977
978 for (i = 0; i < npages; i++) {
979 pgs[i] = uvm_pageratop((vaddr_t)bp->b_data + (i << PAGE_SHIFT));
980 if (pgs[i]->uobject == uobj &&
981 pgs[i]->offset == uiop->uio_offset + (i << PAGE_SHIFT)) {
982 KASSERT(pgs[i]->flags & PG_BUSY);
983 /*
984 * this page belongs to our object.
985 */
986 simple_lock(&uobj->vmobjlock);
987 /*
988 * write out the page stably if it's about to
989 * be released because we can't resend it
990 * on the server crash.
991 *
992 * XXX assuming PG_RELEASE|PG_PAGEOUT won't be
993 * changed until unbusy the page.
994 */
995 if (pgs[i]->flags & (PG_RELEASED|PG_PAGEOUT))
996 iomode = NFSV3WRITE_FILESYNC;
997 /*
998 * if we met a page which hasn't been sent yet,
999 * we need do WRITE RPC.
1000 */
1001 if ((pgs[i]->flags & PG_NEEDCOMMIT) == 0)
1002 needcommit = false;
1003 simple_unlock(&uobj->vmobjlock);
1004 } else {
1005 iomode = NFSV3WRITE_FILESYNC;
1006 needcommit = false;
1007 }
1008 }
1009 if (!needcommit && iomode == NFSV3WRITE_UNSTABLE) {
1010 simple_lock(&uobj->vmobjlock);
1011 for (i = 0; i < npages; i++) {
1012 pgs[i]->flags |= PG_NEEDCOMMIT | PG_RDONLY;
1013 pmap_page_protect(pgs[i], VM_PROT_READ);
1014 }
1015 simple_unlock(&uobj->vmobjlock);
1016 pageprotected = true; /* pages can't be modified during i/o. */
1017 } else
1018 pageprotected = false;
1019
1020 /*
1021 * Send the data to the server if necessary,
1022 * otherwise just send a commit rpc.
1023 */
1024 #ifndef NFS_V2_ONLY
1025 if (needcommit) {
1026
1027 /*
1028 * If the buffer is in the range that we already committed,
1029 * there's nothing to do.
1030 *
1031 * If it's in the range that we need to commit, push the
1032 * whole range at once, otherwise only push the buffer.
1033 * In both these cases, acquire the commit lock to avoid
1034 * other processes modifying the range.
1035 */
1036
1037 off = uiop->uio_offset;
1038 cnt = bp->b_bcount;
1039 mutex_enter(&np->n_commitlock);
1040 if (!nfs_in_committed_range(vp, off, bp->b_bcount)) {
1041 bool pushedrange;
1042 if (nfs_in_tobecommitted_range(vp, off, bp->b_bcount)) {
1043 pushedrange = true;
1044 off = np->n_pushlo;
1045 cnt = np->n_pushhi - np->n_pushlo;
1046 } else {
1047 pushedrange = false;
1048 }
1049 error = nfs_commit(vp, off, cnt, curlwp);
1050 if (error == 0) {
1051 if (pushedrange) {
1052 nfs_merge_commit_ranges(vp);
1053 } else {
1054 nfs_add_committed_range(vp, off, cnt);
1055 }
1056 }
1057 } else {
1058 error = 0;
1059 }
1060 mutex_exit(&np->n_commitlock);
1061 rw_exit(&nmp->nm_writeverflock);
1062 if (!error) {
1063 /*
1064 * pages are now on stable storage.
1065 */
1066 uiop->uio_resid = 0;
1067 simple_lock(&uobj->vmobjlock);
1068 for (i = 0; i < npages; i++) {
1069 pgs[i]->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
1070 }
1071 simple_unlock(&uobj->vmobjlock);
1072 return 0;
1073 } else if (error == NFSERR_STALEWRITEVERF) {
1074 nfs_clearcommit(vp->v_mount);
1075 goto again;
1076 }
1077 if (error) {
1078 bp->b_flags |= B_ERROR;
1079 bp->b_error = np->n_error = error;
1080 np->n_flag |= NWRITEERR;
1081 }
1082 return error;
1083 }
1084 #endif
1085 off = uiop->uio_offset;
1086 cnt = bp->b_bcount;
1087 uiop->uio_rw = UIO_WRITE;
1088 nfsstats.write_bios++;
1089 error = nfs_writerpc(vp, uiop, &iomode, pageprotected, &stalewriteverf);
1090 #ifndef NFS_V2_ONLY
1091 if (!error && iomode == NFSV3WRITE_UNSTABLE) {
1092 /*
1093 * we need to commit pages later.
1094 */
1095 mutex_enter(&np->n_commitlock);
1096 nfs_add_tobecommitted_range(vp, off, cnt);
1097 /*
1098 * if there can be too many uncommitted pages, commit them now.
1099 */
1100 if (np->n_pushhi - np->n_pushlo > nfs_commitsize) {
1101 off = np->n_pushlo;
1102 cnt = nfs_commitsize >> 1;
1103 error = nfs_commit(vp, off, cnt, curlwp);
1104 if (!error) {
1105 nfs_add_committed_range(vp, off, cnt);
1106 nfs_del_tobecommitted_range(vp, off, cnt);
1107 }
1108 if (error == NFSERR_STALEWRITEVERF) {
1109 stalewriteverf = true;
1110 error = 0; /* it isn't a real error */
1111 }
1112 } else {
1113 /*
1114 * re-dirty pages so that they will be passed
1115 * to us later again.
1116 */
1117 simple_lock(&uobj->vmobjlock);
1118 for (i = 0; i < npages; i++) {
1119 pgs[i]->flags &= ~PG_CLEAN;
1120 }
1121 simple_unlock(&uobj->vmobjlock);
1122 }
1123 mutex_exit(&np->n_commitlock);
1124 } else
1125 #endif
1126 if (!error) {
1127 /*
1128 * pages are now on stable storage.
1129 */
1130 mutex_enter(&np->n_commitlock);
1131 nfs_del_committed_range(vp, off, cnt);
1132 mutex_exit(&np->n_commitlock);
1133 simple_lock(&uobj->vmobjlock);
1134 for (i = 0; i < npages; i++) {
1135 pgs[i]->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
1136 }
1137 simple_unlock(&uobj->vmobjlock);
1138 } else {
1139 /*
1140 * we got an error.
1141 */
1142 bp->b_flags |= B_ERROR;
1143 bp->b_error = np->n_error = error;
1144 np->n_flag |= NWRITEERR;
1145 }
1146
1147 rw_exit(&nmp->nm_writeverflock);
1148
1149 if (stalewriteverf) {
1150 nfs_clearcommit(vp->v_mount);
1151 }
1152 return error;
1153 }
1154
1155 /*
1156 * nfs_doio for B_PHYS.
1157 */
1158 static int
1159 nfs_doio_phys(bp, uiop)
1160 struct buf *bp;
1161 struct uio *uiop;
1162 {
1163 struct vnode *vp = bp->b_vp;
1164 int error;
1165
1166 uiop->uio_offset = ((off_t)bp->b_blkno) << DEV_BSHIFT;
1167 if (bp->b_flags & B_READ) {
1168 uiop->uio_rw = UIO_READ;
1169 nfsstats.read_physios++;
1170 error = nfs_readrpc(vp, uiop);
1171 } else {
1172 int iomode = NFSV3WRITE_DATASYNC;
1173 bool stalewriteverf;
1174 struct nfsmount *nmp = VFSTONFS(vp->v_mount);
1175
1176 uiop->uio_rw = UIO_WRITE;
1177 nfsstats.write_physios++;
1178 rw_enter(&nmp->nm_writeverflock, RW_READER);
1179 error = nfs_writerpc(vp, uiop, &iomode, false, &stalewriteverf);
1180 rw_exit(&nmp->nm_writeverflock);
1181 if (stalewriteverf) {
1182 nfs_clearcommit(bp->b_vp->v_mount);
1183 }
1184 }
1185 if (error) {
1186 bp->b_flags |= B_ERROR;
1187 bp->b_error = error;
1188 }
1189 return error;
1190 }
1191
1192 /*
1193 * Do an I/O operation to/from a cache block. This may be called
1194 * synchronously or from an nfsiod.
1195 */
1196 int
1197 nfs_doio(bp)
1198 struct buf *bp;
1199 {
1200 int error;
1201 struct uio uio;
1202 struct uio *uiop = &uio;
1203 struct iovec io;
1204 UVMHIST_FUNC("nfs_doio"); UVMHIST_CALLED(ubchist);
1205
1206 uiop->uio_iov = &io;
1207 uiop->uio_iovcnt = 1;
1208 uiop->uio_offset = (((off_t)bp->b_blkno) << DEV_BSHIFT);
1209 UIO_SETUP_SYSSPACE(uiop);
1210 io.iov_base = bp->b_data;
1211 io.iov_len = uiop->uio_resid = bp->b_bcount;
1212
1213 /*
1214 * Historically, paging was done with physio, but no more...
1215 */
1216 if (bp->b_flags & B_PHYS) {
1217 /*
1218 * ...though reading /dev/drum still gets us here.
1219 */
1220 error = nfs_doio_phys(bp, uiop);
1221 } else if (bp->b_flags & B_READ) {
1222 error = nfs_doio_read(bp, uiop);
1223 } else {
1224 error = nfs_doio_write(bp, uiop);
1225 }
1226 bp->b_resid = uiop->uio_resid;
1227 biodone(bp);
1228 return (error);
1229 }
1230
1231 /*
1232 * Vnode op for VM getpages.
1233 */
1234
1235 int
1236 nfs_getpages(v)
1237 void *v;
1238 {
1239 struct vop_getpages_args /* {
1240 struct vnode *a_vp;
1241 voff_t a_offset;
1242 struct vm_page **a_m;
1243 int *a_count;
1244 int a_centeridx;
1245 vm_prot_t a_access_type;
1246 int a_advice;
1247 int a_flags;
1248 } */ *ap = v;
1249
1250 struct vnode *vp = ap->a_vp;
1251 struct uvm_object *uobj = &vp->v_uobj;
1252 struct nfsnode *np = VTONFS(vp);
1253 const int npages = *ap->a_count;
1254 struct vm_page *pg, **pgs, *opgs[npages];
1255 off_t origoffset, len;
1256 int i, error;
1257 bool v3 = NFS_ISV3(vp);
1258 bool write = (ap->a_access_type & VM_PROT_WRITE) != 0;
1259 bool locked = (ap->a_flags & PGO_LOCKED) != 0;
1260
1261 /*
1262 * call the genfs code to get the pages. `pgs' may be NULL
1263 * when doing read-ahead.
1264 */
1265
1266 pgs = ap->a_m;
1267 if (write && locked && v3) {
1268 KASSERT(pgs != NULL);
1269 #ifdef DEBUG
1270
1271 /*
1272 * If PGO_LOCKED is set, real pages shouldn't exists
1273 * in the array.
1274 */
1275
1276 for (i = 0; i < npages; i++)
1277 KDASSERT(pgs[i] == NULL || pgs[i] == PGO_DONTCARE);
1278 #endif
1279 memcpy(opgs, pgs, npages * sizeof(struct vm_pages *));
1280 }
1281 error = genfs_getpages(v);
1282 if (error) {
1283 return (error);
1284 }
1285
1286 /*
1287 * for read faults where the nfs node is not yet marked NMODIFIED,
1288 * set PG_RDONLY on the pages so that we come back here if someone
1289 * tries to modify later via the mapping that will be entered for
1290 * this fault.
1291 */
1292
1293 if (!write && (np->n_flag & NMODIFIED) == 0 && pgs != NULL) {
1294 if (!locked) {
1295 simple_lock(&uobj->vmobjlock);
1296 }
1297 for (i = 0; i < npages; i++) {
1298 pg = pgs[i];
1299 if (pg == NULL || pg == PGO_DONTCARE) {
1300 continue;
1301 }
1302 pg->flags |= PG_RDONLY;
1303 }
1304 if (!locked) {
1305 simple_unlock(&uobj->vmobjlock);
1306 }
1307 }
1308 if (!write) {
1309 return (0);
1310 }
1311
1312 /*
1313 * this is a write fault, update the commit info.
1314 */
1315
1316 origoffset = ap->a_offset;
1317 len = npages << PAGE_SHIFT;
1318
1319 if (v3) {
1320 if (!locked) {
1321 mutex_enter(&np->n_commitlock);
1322 } else {
1323 if (!mutex_tryenter(&np->n_commitlock)) {
1324
1325 /*
1326 * Since PGO_LOCKED is set, we need to unbusy
1327 * all pages fetched by genfs_getpages() above,
1328 * tell the caller that there are no pages
1329 * available and put back original pgs array.
1330 */
1331
1332 uvm_lock_pageq();
1333 uvm_page_unbusy(pgs, npages);
1334 uvm_unlock_pageq();
1335 *ap->a_count = 0;
1336 memcpy(pgs, opgs,
1337 npages * sizeof(struct vm_pages *));
1338 return EBUSY;
1339 }
1340 }
1341 nfs_del_committed_range(vp, origoffset, len);
1342 nfs_del_tobecommitted_range(vp, origoffset, len);
1343 }
1344 np->n_flag |= NMODIFIED;
1345 if (!locked) {
1346 simple_lock(&uobj->vmobjlock);
1347 }
1348 for (i = 0; i < npages; i++) {
1349 pg = pgs[i];
1350 if (pg == NULL || pg == PGO_DONTCARE) {
1351 continue;
1352 }
1353 pg->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
1354 }
1355 if (!locked) {
1356 simple_unlock(&uobj->vmobjlock);
1357 }
1358 if (v3) {
1359 mutex_exit(&np->n_commitlock);
1360 }
1361 return (0);
1362 }
1363