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nfs_bio.c revision 1.151.2.10
      1 /*	$NetBSD: nfs_bio.c,v 1.151.2.10 2007/08/19 19:24:57 ad 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 1.151.2.10 2007/08/19 19:24:57 ad 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_vflag & VV_ROOT) && 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, 0);
    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, 0);
    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 			brelse(bp, B_NOCACHE);
    273 			return 0;
    274 		}
    275 
    276 		/*
    277 		 * Find the entry we were looking for in the block.
    278 		 */
    279 
    280 		en = ndp->dc_entry;
    281 
    282 		pdp = dp = (struct dirent *)bp->b_data;
    283 		edp = (struct dirent *)(void *)((char *)bp->b_data + bp->b_bcount -
    284 		    bp->b_resid);
    285 		enn = 0;
    286 		while (enn < en && dp < edp) {
    287 			pdp = dp;
    288 			dp = _DIRENT_NEXT(dp);
    289 			enn++;
    290 		}
    291 
    292 		/*
    293 		 * If the entry number was bigger than the number of
    294 		 * entries in the block, or the cookie of the previous
    295 		 * entry doesn't match, the directory cache is
    296 		 * stale. Flush it and try again (i.e. go to
    297 		 * the server).
    298 		 */
    299 		if (dp >= edp || (struct dirent *)_DIRENT_NEXT(dp) > edp ||
    300 		    (en > 0 && NFS_GETCOOKIE(pdp) != ndp->dc_cookie)) {
    301 #ifdef DEBUG
    302 		    	printf("invalid cache: %p %p %p off %lx %lx\n",
    303 				pdp, dp, edp,
    304 				(unsigned long)uio->uio_offset,
    305 				(unsigned long)NFS_GETCOOKIE(pdp));
    306 #endif
    307 			nfs_putdircache(np, ndp);
    308 			brelse(bp, 0);
    309 			nfs_invaldircache(vp, 0);
    310 			nfs_vinvalbuf(vp, 0, cred, l, 0);
    311 			goto diragain;
    312 		}
    313 
    314 		on = (char *)dp - (char *)bp->b_data;
    315 
    316 		/*
    317 		 * Cache all entries that may be exported to the
    318 		 * user, as they may be thrown back at us. The
    319 		 * NFSBIO_CACHECOOKIES flag indicates that all
    320 		 * entries are being 'exported', so cache them all.
    321 		 */
    322 
    323 		if (en == 0 && pdp == dp) {
    324 			dp = _DIRENT_NEXT(dp);
    325 			enn++;
    326 		}
    327 
    328 		if (uio->uio_resid < (bp->b_bcount - bp->b_resid - on)) {
    329 			n = uio->uio_resid;
    330 			enough = 1;
    331 		} else
    332 			n = bp->b_bcount - bp->b_resid - on;
    333 
    334 		ep = (struct dirent *)(void *)((char *)bp->b_data + on + n);
    335 
    336 		/*
    337 		 * Find last complete entry to copy, caching entries
    338 		 * (if requested) as we go.
    339 		 */
    340 
    341 		while (dp < ep && (struct dirent *)_DIRENT_NEXT(dp) <= ep) {
    342 			if (cflag & NFSBIO_CACHECOOKIES) {
    343 				nndp = nfs_enterdircache(vp, NFS_GETCOOKIE(pdp),
    344 				    ndp->dc_blkcookie, enn, bp->b_lblkno);
    345 				if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
    346 					NFS_STASHCOOKIE32(pdp,
    347 					    nndp->dc_cookie32);
    348 				}
    349 				nfs_putdircache(np, nndp);
    350 			}
    351 			pdp = dp;
    352 			dp = _DIRENT_NEXT(dp);
    353 			enn++;
    354 		}
    355 		nfs_putdircache(np, ndp);
    356 
    357 		/*
    358 		 * If the last requested entry was not the last in the
    359 		 * buffer (happens if NFS_DIRFRAGSIZ < NFS_DIRBLKSIZ),
    360 		 * cache the cookie of the last requested one, and
    361 		 * set of the offset to it.
    362 		 */
    363 
    364 		if ((on + n) < bp->b_bcount - bp->b_resid) {
    365 			curoff = NFS_GETCOOKIE(pdp);
    366 			nndp = nfs_enterdircache(vp, curoff, ndp->dc_blkcookie,
    367 			    enn, bp->b_lblkno);
    368 			if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
    369 				NFS_STASHCOOKIE32(pdp, nndp->dc_cookie32);
    370 				curoff = nndp->dc_cookie32;
    371 			}
    372 			nfs_putdircache(np, nndp);
    373 		} else
    374 			curoff = bp->b_dcookie;
    375 
    376 		/*
    377 		 * Always cache the entry for the next block,
    378 		 * so that readaheads can use it.
    379 		 */
    380 		nndp = nfs_enterdircache(vp, bp->b_dcookie, bp->b_dcookie, 0,0);
    381 		if (nmp->nm_flag & NFSMNT_XLATECOOKIE) {
    382 			if (curoff == bp->b_dcookie) {
    383 				NFS_STASHCOOKIE32(pdp, nndp->dc_cookie32);
    384 				curoff = nndp->dc_cookie32;
    385 			}
    386 		}
    387 
    388 		n = (char *)_DIRENT_NEXT(pdp) - ((char *)bp->b_data + on);
    389 
    390 		/*
    391 		 * If not eof and read aheads are enabled, start one.
    392 		 * (You need the current block first, so that you have the
    393 		 *  directory offset cookie of the next block.)
    394 		 */
    395 		if (nfs_numasync > 0 && nmp->nm_readahead > 0 &&
    396 		    !NFS_EOFVALID(np)) {
    397 			rabp = nfs_getcacheblk(vp, NFSDC_BLKNO(nndp),
    398 						NFS_DIRBLKSIZ, l);
    399 			if (rabp) {
    400 			    if ((rabp->b_flags & (B_DONE | B_DELWRI)) == 0) {
    401 				rabp->b_dcookie = nndp->dc_cookie;
    402 				rabp->b_flags |= (B_READ | B_ASYNC);
    403 				if (nfs_asyncio(rabp)) {
    404 				    brelse(rabp, B_INVAL);
    405 				}
    406 			    } else
    407 				brelse(rabp, 0);
    408 			}
    409 		}
    410 		nfs_putdircache(np, nndp);
    411 		got_buf = 1;
    412 		break;
    413 	    default:
    414 		printf(" nfsbioread: type %x unexpected\n",vp->v_type);
    415 		break;
    416 	    }
    417 
    418 	    if (n > 0) {
    419 		if (!baddr)
    420 			baddr = bp->b_data;
    421 		error = uiomove((char *)baddr + on, (int)n, uio);
    422 	    }
    423 	    switch (vp->v_type) {
    424 	    case VREG:
    425 		break;
    426 	    case VLNK:
    427 		n = 0;
    428 		break;
    429 	    case VDIR:
    430 		uio->uio_offset = curoff;
    431 		if (enough)
    432 			n = 0;
    433 		break;
    434 	    default:
    435 		printf(" nfsbioread: type %x unexpected\n",vp->v_type);
    436 	    }
    437 	    if (got_buf)
    438 		brelse(bp, 0);
    439 	} while (error == 0 && uio->uio_resid > 0 && n > 0);
    440 	return (error);
    441 }
    442 
    443 /*
    444  * Vnode op for write using bio
    445  */
    446 int
    447 nfs_write(v)
    448 	void *v;
    449 {
    450 	struct vop_write_args /* {
    451 		struct vnode *a_vp;
    452 		struct uio *a_uio;
    453 		int  a_ioflag;
    454 		kauth_cred_t a_cred;
    455 	} */ *ap = v;
    456 	struct uio *uio = ap->a_uio;
    457 	struct lwp *l = curlwp;
    458 	struct vnode *vp = ap->a_vp;
    459 	struct nfsnode *np = VTONFS(vp);
    460 	kauth_cred_t cred = ap->a_cred;
    461 	struct nfsmount *nmp = VFSTONFS(vp->v_mount);
    462 	voff_t oldoff, origoff;
    463 	vsize_t bytelen;
    464 	int error = 0;
    465 	int ioflag = ap->a_ioflag;
    466 	int extended = 0, wrotedata = 0;
    467 
    468 #ifdef DIAGNOSTIC
    469 	if (uio->uio_rw != UIO_WRITE)
    470 		panic("nfs_write mode");
    471 #endif
    472 	if (vp->v_type != VREG)
    473 		return (EIO);
    474 	if (np->n_flag & NWRITEERR) {
    475 		np->n_flag &= ~NWRITEERR;
    476 		return (np->n_error);
    477 	}
    478 #ifndef NFS_V2_ONLY
    479 	if ((nmp->nm_flag & NFSMNT_NFSV3) &&
    480 	    !(nmp->nm_iflag & NFSMNT_GOTFSINFO))
    481 		(void)nfs_fsinfo(nmp, vp, cred, l);
    482 #endif
    483 	if (ioflag & IO_APPEND) {
    484 		NFS_INVALIDATE_ATTRCACHE(np);
    485 		error = nfs_flushstalebuf(vp, cred, l,
    486 		    NFS_FLUSHSTALEBUF_MYWRITE);
    487 		if (error)
    488 			return (error);
    489 		uio->uio_offset = np->n_size;
    490 	}
    491 	if (uio->uio_offset < 0)
    492 		return (EINVAL);
    493 	if ((uio->uio_offset + uio->uio_resid) > nmp->nm_maxfilesize)
    494 		return (EFBIG);
    495 	if (uio->uio_resid == 0)
    496 		return (0);
    497 	/*
    498 	 * Maybe this should be above the vnode op call, but so long as
    499 	 * file servers have no limits, i don't think it matters
    500 	 */
    501 	if (l && l->l_proc && uio->uio_offset + uio->uio_resid >
    502 	      l->l_proc->p_rlimit[RLIMIT_FSIZE].rlim_cur) {
    503 		mutex_enter(&proclist_mutex);
    504 		psignal(l->l_proc, SIGXFSZ);
    505 		mutex_exit(&proclist_mutex);
    506 		return (EFBIG);
    507 	}
    508 
    509 	origoff = uio->uio_offset;
    510 	do {
    511 		bool overwrite; /* if we are overwriting whole pages */
    512 		u_quad_t oldsize;
    513 		oldoff = uio->uio_offset;
    514 		bytelen = uio->uio_resid;
    515 
    516 		nfsstats.biocache_writes++;
    517 
    518 		oldsize = np->n_size;
    519 		np->n_flag |= NMODIFIED;
    520 		if (np->n_size < uio->uio_offset + bytelen) {
    521 			np->n_size = uio->uio_offset + bytelen;
    522 		}
    523 		overwrite = false;
    524 		if ((uio->uio_offset & PAGE_MASK) == 0) {
    525 			if ((vp->v_vflag & VV_MAPPED) == 0 &&
    526 			    bytelen > PAGE_SIZE) {
    527 				bytelen = trunc_page(bytelen);
    528 				overwrite = true;
    529 			} else if ((bytelen & PAGE_MASK) == 0 &&
    530 			    uio->uio_offset >= vp->v_size) {
    531 				overwrite = true;
    532 			}
    533 		}
    534 		if (vp->v_size < uio->uio_offset + bytelen) {
    535 			uvm_vnp_setwritesize(vp, uio->uio_offset + bytelen);
    536 		}
    537 		error = ubc_uiomove(&vp->v_uobj, uio, bytelen,
    538 		    UBC_WRITE | UBC_PARTIALOK |
    539 		    (overwrite ? UBC_FAULTBUSY : 0) |
    540 		    (UBC_WANT_UNMAP(vp) ? UBC_UNMAP : 0));
    541 		if (error) {
    542 			uvm_vnp_setwritesize(vp, vp->v_size);
    543 			if (overwrite && np->n_size != oldsize) {
    544 				/*
    545 				 * backout size and free pages past eof.
    546 				 */
    547 				np->n_size = oldsize;
    548 				mutex_enter(&vp->v_interlock);
    549 				(void)VOP_PUTPAGES(vp, round_page(vp->v_size),
    550 				    0, PGO_SYNCIO | PGO_FREE);
    551 			}
    552 			break;
    553 		}
    554 		wrotedata = 1;
    555 
    556 		/*
    557 		 * update UVM's notion of the size now that we've
    558 		 * copied the data into the vnode's pages.
    559 		 */
    560 
    561 		if (vp->v_size < uio->uio_offset) {
    562 			uvm_vnp_setsize(vp, uio->uio_offset);
    563 			extended = 1;
    564 		}
    565 
    566 		if ((oldoff & ~(nmp->nm_wsize - 1)) !=
    567 		    (uio->uio_offset & ~(nmp->nm_wsize - 1))) {
    568 			mutex_enter(&vp->v_interlock);
    569 			error = VOP_PUTPAGES(vp,
    570 			    trunc_page(oldoff & ~(nmp->nm_wsize - 1)),
    571 			    round_page((uio->uio_offset + nmp->nm_wsize - 1) &
    572 				       ~(nmp->nm_wsize - 1)), PGO_CLEANIT);
    573 		}
    574 	} while (uio->uio_resid > 0);
    575 	if (wrotedata)
    576 		VN_KNOTE(vp, NOTE_WRITE | (extended ? NOTE_EXTEND : 0));
    577 	if (error == 0 && (ioflag & IO_SYNC) != 0) {
    578 		mutex_enter(&vp->v_interlock);
    579 		error = VOP_PUTPAGES(vp,
    580 		    trunc_page(origoff & ~(nmp->nm_wsize - 1)),
    581 		    round_page((uio->uio_offset + nmp->nm_wsize - 1) &
    582 			       ~(nmp->nm_wsize - 1)),
    583 		    PGO_CLEANIT | PGO_SYNCIO);
    584 	}
    585 	return error;
    586 }
    587 
    588 /*
    589  * Get an nfs cache block.
    590  * Allocate a new one if the block isn't currently in the cache
    591  * and return the block marked busy. If the calling process is
    592  * interrupted by a signal for an interruptible mount point, return
    593  * NULL.
    594  */
    595 struct buf *
    596 nfs_getcacheblk(vp, bn, size, l)
    597 	struct vnode *vp;
    598 	daddr_t bn;
    599 	int size;
    600 	struct lwp *l;
    601 {
    602 	struct buf *bp;
    603 	struct nfsmount *nmp = VFSTONFS(vp->v_mount);
    604 
    605 	if (nmp->nm_flag & NFSMNT_INT) {
    606 		bp = getblk(vp, bn, size, PCATCH, 0);
    607 		while (bp == NULL) {
    608 			if (nfs_sigintr(nmp, NULL, l))
    609 				return (NULL);
    610 			bp = getblk(vp, bn, size, 0, 2 * hz);
    611 		}
    612 	} else
    613 		bp = getblk(vp, bn, size, 0, 0);
    614 	return (bp);
    615 }
    616 
    617 /*
    618  * Flush and invalidate all dirty buffers. If another process is already
    619  * doing the flush, just wait for completion.
    620  */
    621 int
    622 nfs_vinvalbuf(vp, flags, cred, l, intrflg)
    623 	struct vnode *vp;
    624 	int flags;
    625 	kauth_cred_t cred;
    626 	struct lwp *l;
    627 	int intrflg;
    628 {
    629 	struct nfsnode *np = VTONFS(vp);
    630 	struct nfsmount *nmp = VFSTONFS(vp->v_mount);
    631 	int error = 0, slptimeo;
    632 	bool catch;
    633 
    634 	if ((nmp->nm_flag & NFSMNT_INT) == 0)
    635 		intrflg = 0;
    636 	if (intrflg) {
    637 		catch = true;
    638 		slptimeo = 2 * hz;
    639 	} else {
    640 		catch = false;
    641 		slptimeo = 0;
    642 	}
    643 	/*
    644 	 * First wait for any other process doing a flush to complete.
    645 	 */
    646 	mutex_enter(&vp->v_interlock);
    647 	while (np->n_flag & NFLUSHINPROG) {
    648 		np->n_flag |= NFLUSHWANT;
    649 		error = mtsleep(&np->n_flag, PRIBIO + 2, "nfsvinval",
    650 			slptimeo, &vp->v_interlock);
    651 		if (error && intrflg && nfs_sigintr(nmp, NULL, l)) {
    652 			mutex_exit(&vp->v_interlock);
    653 			return EINTR;
    654 		}
    655 	}
    656 
    657 	/*
    658 	 * Now, flush as required.
    659 	 */
    660 	np->n_flag |= NFLUSHINPROG;
    661 	mutex_exit(&vp->v_interlock);
    662 	error = vinvalbuf(vp, flags, cred, l, catch, 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 	mutex_enter(&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 	mutex_exit(&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 (curlwp == uvm.pagedaemon_lwp) {
    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 				if (nfs_sigintr(nmp, NULL, curlwp)) {
    824 					mutex_exit(&nmp->nm_lock);
    825 					return (EINTR);
    826 				}
    827 				if (catch) {
    828 					catch = false;
    829 					slptimeo = 2 * hz;
    830 				}
    831 			}
    832 
    833 			/*
    834 			 * We might have lost our iod while sleeping,
    835 			 * so check and loop if nescessary.
    836 			 */
    837 
    838 			if (nmp->nm_bufqiods == 0) {
    839 				mutex_exit(&nmp->nm_lock);
    840 				goto again;
    841 			}
    842 		}
    843 		TAILQ_INSERT_TAIL(&nmp->nm_bufq, bp, b_freelist);
    844 		nmp->nm_bufqlen++;
    845 		mutex_exit(&nmp->nm_lock);
    846 		return (0);
    847 	}
    848 	mutex_exit(&nmp->nm_lock);
    849 
    850 	/*
    851 	 * All the iods are busy on other mounts, so return EIO to
    852 	 * force the caller to process the i/o synchronously.
    853 	 */
    854 
    855 	return (EIO);
    856 }
    857 
    858 /*
    859  * nfs_doio for read.
    860  */
    861 static int
    862 nfs_doio_read(bp, uiop)
    863 	struct buf *bp;
    864 	struct uio *uiop;
    865 {
    866 	struct vnode *vp = bp->b_vp;
    867 	struct nfsnode *np = VTONFS(vp);
    868 	struct nfsmount *nmp = VFSTONFS(vp->v_mount);
    869 	int error = 0;
    870 
    871 	uiop->uio_rw = UIO_READ;
    872 	switch (vp->v_type) {
    873 	case VREG:
    874 		nfsstats.read_bios++;
    875 		error = nfs_readrpc(vp, uiop);
    876 		if (!error && uiop->uio_resid) {
    877 			int diff, len;
    878 
    879 			/*
    880 			 * If uio_resid > 0, there is a hole in the file and
    881 			 * no writes after the hole have been pushed to
    882 			 * the server yet or the file has been truncated
    883 			 * on the server.
    884 			 * Just zero fill the rest of the valid area.
    885 			 */
    886 
    887 			KASSERT(vp->v_size >=
    888 			    uiop->uio_offset + uiop->uio_resid);
    889 			diff = bp->b_bcount - uiop->uio_resid;
    890 			len = uiop->uio_resid;
    891 			memset((char *)bp->b_data + diff, 0, len);
    892 			uiop->uio_resid = 0;
    893 		}
    894 #if 0
    895 		if (uiop->uio_lwp && (vp->v_iflag & VI_TEXT) &&
    896 		    timespeccmp(&np->n_mtime, &np->n_vattr->va_mtime, !=)) {
    897 			killproc(uiop->uio_lwp->l_proc, "process text file was modified");
    898 #if 0 /* XXX NJWLWP */
    899 			uiop->uio_lwp->l_proc->p_holdcnt++;
    900 #endif
    901 		}
    902 #endif
    903 		break;
    904 	case VLNK:
    905 		KASSERT(uiop->uio_offset == (off_t)0);
    906 		nfsstats.readlink_bios++;
    907 		error = nfs_readlinkrpc(vp, uiop, np->n_rcred);
    908 		break;
    909 	case VDIR:
    910 		nfsstats.readdir_bios++;
    911 		uiop->uio_offset = bp->b_dcookie;
    912 #ifndef NFS_V2_ONLY
    913 		if (nmp->nm_flag & NFSMNT_RDIRPLUS) {
    914 			error = nfs_readdirplusrpc(vp, uiop,
    915 			    curlwp->l_cred);
    916 			/*
    917 			 * nfs_request maps NFSERR_NOTSUPP to ENOTSUP.
    918 			 */
    919 			if (error == ENOTSUP)
    920 				nmp->nm_flag &= ~NFSMNT_RDIRPLUS;
    921 		}
    922 #else
    923 		nmp->nm_flag &= ~NFSMNT_RDIRPLUS;
    924 #endif
    925 		if ((nmp->nm_flag & NFSMNT_RDIRPLUS) == 0)
    926 			error = nfs_readdirrpc(vp, uiop,
    927 			    curlwp->l_cred);
    928 		if (!error) {
    929 			bp->b_dcookie = uiop->uio_offset;
    930 		}
    931 		break;
    932 	default:
    933 		printf("nfs_doio:  type %x unexpected\n", vp->v_type);
    934 		break;
    935 	}
    936 	bp->b_error = error;
    937 	return error;
    938 }
    939 
    940 /*
    941  * nfs_doio for write.
    942  */
    943 static int
    944 nfs_doio_write(bp, uiop)
    945 	struct buf *bp;
    946 	struct uio *uiop;
    947 {
    948 	struct vnode *vp = bp->b_vp;
    949 	struct nfsnode *np = VTONFS(vp);
    950 	struct nfsmount *nmp = VFSTONFS(vp->v_mount);
    951 	int iomode;
    952 	bool stalewriteverf = false;
    953 	int i, npages = (bp->b_bcount + PAGE_SIZE - 1) >> PAGE_SHIFT;
    954 	struct vm_page *pgs[npages];
    955 #ifndef NFS_V2_ONLY
    956 	bool needcommit = true; /* need only COMMIT RPC */
    957 #else
    958 	bool needcommit = false; /* need only COMMIT RPC */
    959 #endif
    960 	bool pageprotected;
    961 	struct uvm_object *uobj = &vp->v_uobj;
    962 	int error;
    963 	off_t off, cnt;
    964 
    965 	if ((bp->b_flags & B_ASYNC) != 0 && NFS_ISV3(vp)) {
    966 		iomode = NFSV3WRITE_UNSTABLE;
    967 	} else {
    968 		iomode = NFSV3WRITE_FILESYNC;
    969 	}
    970 
    971 #ifndef NFS_V2_ONLY
    972 again:
    973 #endif
    974 	rw_enter(&nmp->nm_writeverflock, RW_READER);
    975 
    976 	for (i = 0; i < npages; i++) {
    977 		pgs[i] = uvm_pageratop((vaddr_t)bp->b_data + (i << PAGE_SHIFT));
    978 		if (pgs[i]->uobject == uobj &&
    979 		    pgs[i]->offset == uiop->uio_offset + (i << PAGE_SHIFT)) {
    980 			KASSERT(pgs[i]->flags & PG_BUSY);
    981 			/*
    982 			 * this page belongs to our object.
    983 			 */
    984 			mutex_enter(&uobj->vmobjlock);
    985 			/*
    986 			 * write out the page stably if it's about to
    987 			 * be released because we can't resend it
    988 			 * on the server crash.
    989 			 *
    990 			 * XXX assuming PG_RELEASE|PG_PAGEOUT won't be
    991 			 * changed until unbusy the page.
    992 			 */
    993 			if (pgs[i]->flags & (PG_RELEASED|PG_PAGEOUT))
    994 				iomode = NFSV3WRITE_FILESYNC;
    995 			/*
    996 			 * if we met a page which hasn't been sent yet,
    997 			 * we need do WRITE RPC.
    998 			 */
    999 			if ((pgs[i]->flags & PG_NEEDCOMMIT) == 0)
   1000 				needcommit = false;
   1001 			mutex_exit(&uobj->vmobjlock);
   1002 		} else {
   1003 			iomode = NFSV3WRITE_FILESYNC;
   1004 			needcommit = false;
   1005 		}
   1006 	}
   1007 	if (!needcommit && iomode == NFSV3WRITE_UNSTABLE) {
   1008 		mutex_enter(&uobj->vmobjlock);
   1009 		for (i = 0; i < npages; i++) {
   1010 			pgs[i]->flags |= PG_NEEDCOMMIT | PG_RDONLY;
   1011 			pmap_page_protect(pgs[i], VM_PROT_READ);
   1012 		}
   1013 		mutex_exit(&uobj->vmobjlock);
   1014 		pageprotected = true; /* pages can't be modified during i/o. */
   1015 	} else
   1016 		pageprotected = false;
   1017 
   1018 	/*
   1019 	 * Send the data to the server if necessary,
   1020 	 * otherwise just send a commit rpc.
   1021 	 */
   1022 #ifndef NFS_V2_ONLY
   1023 	if (needcommit) {
   1024 
   1025 		/*
   1026 		 * If the buffer is in the range that we already committed,
   1027 		 * there's nothing to do.
   1028 		 *
   1029 		 * If it's in the range that we need to commit, push the
   1030 		 * whole range at once, otherwise only push the buffer.
   1031 		 * In both these cases, acquire the commit lock to avoid
   1032 		 * other processes modifying the range.
   1033 		 */
   1034 
   1035 		off = uiop->uio_offset;
   1036 		cnt = bp->b_bcount;
   1037 		mutex_enter(&np->n_commitlock);
   1038 		if (!nfs_in_committed_range(vp, off, bp->b_bcount)) {
   1039 			bool pushedrange;
   1040 			if (nfs_in_tobecommitted_range(vp, off, bp->b_bcount)) {
   1041 				pushedrange = true;
   1042 				off = np->n_pushlo;
   1043 				cnt = np->n_pushhi - np->n_pushlo;
   1044 			} else {
   1045 				pushedrange = false;
   1046 			}
   1047 			error = nfs_commit(vp, off, cnt, curlwp);
   1048 			if (error == 0) {
   1049 				if (pushedrange) {
   1050 					nfs_merge_commit_ranges(vp);
   1051 				} else {
   1052 					nfs_add_committed_range(vp, off, cnt);
   1053 				}
   1054 			}
   1055 		} else {
   1056 			error = 0;
   1057 		}
   1058 		mutex_exit(&np->n_commitlock);
   1059 		rw_exit(&nmp->nm_writeverflock);
   1060 		if (!error) {
   1061 			/*
   1062 			 * pages are now on stable storage.
   1063 			 */
   1064 			uiop->uio_resid = 0;
   1065 			mutex_enter(&uobj->vmobjlock);
   1066 			for (i = 0; i < npages; i++) {
   1067 				pgs[i]->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
   1068 			}
   1069 			mutex_exit(&uobj->vmobjlock);
   1070 			return 0;
   1071 		} else if (error == NFSERR_STALEWRITEVERF) {
   1072 			nfs_clearcommit(vp->v_mount);
   1073 			goto again;
   1074 		}
   1075 		if (error) {
   1076 			bp->b_error = np->n_error = error;
   1077 			np->n_flag |= NWRITEERR;
   1078 		}
   1079 		return error;
   1080 	}
   1081 #endif
   1082 	off = uiop->uio_offset;
   1083 	cnt = bp->b_bcount;
   1084 	uiop->uio_rw = UIO_WRITE;
   1085 	nfsstats.write_bios++;
   1086 	error = nfs_writerpc(vp, uiop, &iomode, pageprotected, &stalewriteverf);
   1087 #ifndef NFS_V2_ONLY
   1088 	if (!error && iomode == NFSV3WRITE_UNSTABLE) {
   1089 		/*
   1090 		 * we need to commit pages later.
   1091 		 */
   1092 		mutex_enter(&np->n_commitlock);
   1093 		nfs_add_tobecommitted_range(vp, off, cnt);
   1094 		/*
   1095 		 * if there can be too many uncommitted pages, commit them now.
   1096 		 */
   1097 		if (np->n_pushhi - np->n_pushlo > nfs_commitsize) {
   1098 			off = np->n_pushlo;
   1099 			cnt = nfs_commitsize >> 1;
   1100 			error = nfs_commit(vp, off, cnt, curlwp);
   1101 			if (!error) {
   1102 				nfs_add_committed_range(vp, off, cnt);
   1103 				nfs_del_tobecommitted_range(vp, off, cnt);
   1104 			}
   1105 			if (error == NFSERR_STALEWRITEVERF) {
   1106 				stalewriteverf = true;
   1107 				error = 0; /* it isn't a real error */
   1108 			}
   1109 		} else {
   1110 			/*
   1111 			 * re-dirty pages so that they will be passed
   1112 			 * to us later again.
   1113 			 */
   1114 			mutex_enter(&uobj->vmobjlock);
   1115 			for (i = 0; i < npages; i++) {
   1116 				pgs[i]->flags &= ~PG_CLEAN;
   1117 			}
   1118 			mutex_exit(&uobj->vmobjlock);
   1119 		}
   1120 		mutex_exit(&np->n_commitlock);
   1121 	} else
   1122 #endif
   1123 	if (!error) {
   1124 		/*
   1125 		 * pages are now on stable storage.
   1126 		 */
   1127 		mutex_enter(&np->n_commitlock);
   1128 		nfs_del_committed_range(vp, off, cnt);
   1129 		mutex_exit(&np->n_commitlock);
   1130 		mutex_enter(&uobj->vmobjlock);
   1131 		for (i = 0; i < npages; i++) {
   1132 			pgs[i]->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
   1133 		}
   1134 		mutex_exit(&uobj->vmobjlock);
   1135 	} else {
   1136 		/*
   1137 		 * we got an error.
   1138 		 */
   1139 		bp->b_error = np->n_error = error;
   1140 		np->n_flag |= NWRITEERR;
   1141 	}
   1142 
   1143 	rw_exit(&nmp->nm_writeverflock);
   1144 
   1145 	if (stalewriteverf) {
   1146 		nfs_clearcommit(vp->v_mount);
   1147 	}
   1148 	return error;
   1149 }
   1150 
   1151 /*
   1152  * nfs_doio for B_PHYS.
   1153  */
   1154 static int
   1155 nfs_doio_phys(bp, uiop)
   1156 	struct buf *bp;
   1157 	struct uio *uiop;
   1158 {
   1159 	struct vnode *vp = bp->b_vp;
   1160 	int error;
   1161 
   1162 	uiop->uio_offset = ((off_t)bp->b_blkno) << DEV_BSHIFT;
   1163 	if (bp->b_flags & B_READ) {
   1164 		uiop->uio_rw = UIO_READ;
   1165 		nfsstats.read_physios++;
   1166 		error = nfs_readrpc(vp, uiop);
   1167 	} else {
   1168 		int iomode = NFSV3WRITE_DATASYNC;
   1169 		bool stalewriteverf;
   1170 		struct nfsmount *nmp = VFSTONFS(vp->v_mount);
   1171 
   1172 		uiop->uio_rw = UIO_WRITE;
   1173 		nfsstats.write_physios++;
   1174 		rw_enter(&nmp->nm_writeverflock, RW_READER);
   1175 		error = nfs_writerpc(vp, uiop, &iomode, false, &stalewriteverf);
   1176 		rw_exit(&nmp->nm_writeverflock);
   1177 		if (stalewriteverf) {
   1178 			nfs_clearcommit(bp->b_vp->v_mount);
   1179 		}
   1180 	}
   1181 	bp->b_error = error;
   1182 	return error;
   1183 }
   1184 
   1185 /*
   1186  * Do an I/O operation to/from a cache block. This may be called
   1187  * synchronously or from an nfsiod.
   1188  */
   1189 int
   1190 nfs_doio(bp)
   1191 	struct buf *bp;
   1192 {
   1193 	int error;
   1194 	struct uio uio;
   1195 	struct uio *uiop = &uio;
   1196 	struct iovec io;
   1197 	UVMHIST_FUNC("nfs_doio"); UVMHIST_CALLED(ubchist);
   1198 
   1199 	uiop->uio_iov = &io;
   1200 	uiop->uio_iovcnt = 1;
   1201 	uiop->uio_offset = (((off_t)bp->b_blkno) << DEV_BSHIFT);
   1202 	UIO_SETUP_SYSSPACE(uiop);
   1203 	io.iov_base = bp->b_data;
   1204 	io.iov_len = uiop->uio_resid = bp->b_bcount;
   1205 
   1206 	/*
   1207 	 * Historically, paging was done with physio, but no more...
   1208 	 */
   1209 	if (bp->b_flags & B_PHYS) {
   1210 		/*
   1211 		 * ...though reading /dev/drum still gets us here.
   1212 		 */
   1213 		error = nfs_doio_phys(bp, uiop);
   1214 	} else if (bp->b_flags & B_READ) {
   1215 		error = nfs_doio_read(bp, uiop);
   1216 	} else {
   1217 		error = nfs_doio_write(bp, uiop);
   1218 	}
   1219 	bp->b_resid = uiop->uio_resid;
   1220 	biodone(bp);
   1221 	return (error);
   1222 }
   1223 
   1224 /*
   1225  * Vnode op for VM getpages.
   1226  */
   1227 
   1228 int
   1229 nfs_getpages(v)
   1230 	void *v;
   1231 {
   1232 	struct vop_getpages_args /* {
   1233 		struct vnode *a_vp;
   1234 		voff_t a_offset;
   1235 		struct vm_page **a_m;
   1236 		int *a_count;
   1237 		int a_centeridx;
   1238 		vm_prot_t a_access_type;
   1239 		int a_advice;
   1240 		int a_flags;
   1241 	} */ *ap = v;
   1242 
   1243 	struct vnode *vp = ap->a_vp;
   1244 	struct uvm_object *uobj = &vp->v_uobj;
   1245 	struct nfsnode *np = VTONFS(vp);
   1246 	const int npages = *ap->a_count;
   1247 	struct vm_page *pg, **pgs, *opgs[npages];
   1248 	off_t origoffset, len;
   1249 	int i, error;
   1250 	bool v3 = NFS_ISV3(vp);
   1251 	bool write = (ap->a_access_type & VM_PROT_WRITE) != 0;
   1252 	bool locked = (ap->a_flags & PGO_LOCKED) != 0;
   1253 
   1254 	/*
   1255 	 * call the genfs code to get the pages.  `pgs' may be NULL
   1256 	 * when doing read-ahead.
   1257 	 */
   1258 
   1259 	pgs = ap->a_m;
   1260 	if (write && locked && v3) {
   1261 		KASSERT(pgs != NULL);
   1262 #ifdef DEBUG
   1263 
   1264 		/*
   1265 		 * If PGO_LOCKED is set, real pages shouldn't exists
   1266 		 * in the array.
   1267 		 */
   1268 
   1269 		for (i = 0; i < npages; i++)
   1270 			KDASSERT(pgs[i] == NULL || pgs[i] == PGO_DONTCARE);
   1271 #endif
   1272 		memcpy(opgs, pgs, npages * sizeof(struct vm_pages *));
   1273 	}
   1274 	error = genfs_getpages(v);
   1275 	if (error) {
   1276 		return (error);
   1277 	}
   1278 
   1279 	/*
   1280 	 * for read faults where the nfs node is not yet marked NMODIFIED,
   1281 	 * set PG_RDONLY on the pages so that we come back here if someone
   1282 	 * tries to modify later via the mapping that will be entered for
   1283 	 * this fault.
   1284 	 */
   1285 
   1286 	if (!write && (np->n_flag & NMODIFIED) == 0 && pgs != NULL) {
   1287 		if (!locked) {
   1288 			mutex_enter(&uobj->vmobjlock);
   1289 		}
   1290 		for (i = 0; i < npages; i++) {
   1291 			pg = pgs[i];
   1292 			if (pg == NULL || pg == PGO_DONTCARE) {
   1293 				continue;
   1294 			}
   1295 			pg->flags |= PG_RDONLY;
   1296 		}
   1297 		if (!locked) {
   1298 			mutex_exit(&uobj->vmobjlock);
   1299 		}
   1300 	}
   1301 	if (!write) {
   1302 		return (0);
   1303 	}
   1304 
   1305 	/*
   1306 	 * this is a write fault, update the commit info.
   1307 	 */
   1308 
   1309 	origoffset = ap->a_offset;
   1310 	len = npages << PAGE_SHIFT;
   1311 
   1312 	if (v3) {
   1313 		if (!locked) {
   1314 			mutex_enter(&np->n_commitlock);
   1315 		} else {
   1316 			if (!mutex_tryenter(&np->n_commitlock)) {
   1317 
   1318 				/*
   1319 				 * Since PGO_LOCKED is set, we need to unbusy
   1320 				 * all pages fetched by genfs_getpages() above,
   1321 				 * tell the caller that there are no pages
   1322 				 * available and put back original pgs array.
   1323 				 */
   1324 
   1325 				mutex_enter(&uvm_pageqlock);
   1326 				uvm_page_unbusy(pgs, npages);
   1327 				mutex_exit(&uvm_pageqlock);
   1328 				*ap->a_count = 0;
   1329 				memcpy(pgs, opgs,
   1330 				    npages * sizeof(struct vm_pages *));
   1331 				return EBUSY;
   1332 			}
   1333 		}
   1334 		nfs_del_committed_range(vp, origoffset, len);
   1335 		nfs_del_tobecommitted_range(vp, origoffset, len);
   1336 	}
   1337 	np->n_flag |= NMODIFIED;
   1338 	if (!locked) {
   1339 		mutex_enter(&uobj->vmobjlock);
   1340 	}
   1341 	for (i = 0; i < npages; i++) {
   1342 		pg = pgs[i];
   1343 		if (pg == NULL || pg == PGO_DONTCARE) {
   1344 			continue;
   1345 		}
   1346 		pg->flags &= ~(PG_NEEDCOMMIT | PG_RDONLY);
   1347 	}
   1348 	if (!locked) {
   1349 		mutex_exit(&uobj->vmobjlock);
   1350 	}
   1351 	if (v3) {
   1352 		mutex_exit(&np->n_commitlock);
   1353 	}
   1354 	return (0);
   1355 }
   1356