1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * File operations used by nfsd. Some of these have been ripped from 4 * other parts of the kernel because they weren't exported, others 5 * are partial duplicates with added or changed functionality. 6 * 7 * Note that several functions dget() the dentry upon which they want 8 * to act, most notably those that create directory entries. Response 9 * dentry's are dput()'d if necessary in the release callback. 10 * So if you notice code paths that apparently fail to dput() the 11 * dentry, don't worry--they have been taken care of. 12 * 13 * Copyright (C) 1995-1999 Olaf Kirch <okir@monad.swb.de> 14 * Zerocpy NFS support (C) 2002 Hirokazu Takahashi <taka@valinux.co.jp> 15 */ 16 17 #include <linux/fs.h> 18 #include <linux/file.h> 19 #include <linux/splice.h> 20 #include <linux/falloc.h> 21 #include <linux/fcntl.h> 22 #include <linux/namei.h> 23 #include <linux/delay.h> 24 #include <linux/fsnotify.h> 25 #include <linux/posix_acl_xattr.h> 26 #include <linux/xattr.h> 27 #include <linux/jhash.h> 28 #include <linux/pagemap.h> 29 #include <linux/slab.h> 30 #include <linux/uaccess.h> 31 #include <linux/exportfs.h> 32 #include <linux/writeback.h> 33 #include <linux/security.h> 34 35 #include "xdr3.h" 36 37 #ifdef CONFIG_NFSD_V4 38 #include "acl.h" 39 #include "idmap.h" 40 #include "xdr4.h" 41 #endif /* CONFIG_NFSD_V4 */ 42 43 #include "nfsd.h" 44 #include "vfs.h" 45 #include "filecache.h" 46 #include "trace.h" 47 48 #define NFSDDBG_FACILITY NFSDDBG_FILEOP 49 50 /** 51 * nfserrno - Map Linux errnos to NFS errnos 52 * @errno: POSIX(-ish) error code to be mapped 53 * 54 * Returns the appropriate (net-endian) nfserr_* (or nfs_ok if errno is 0). If 55 * it's an error we don't expect, log it once and return nfserr_io. 56 */ 57 __be32 58 nfserrno (int errno) 59 { 60 static struct { 61 __be32 nfserr; 62 int syserr; 63 } nfs_errtbl[] = { 64 { nfs_ok, 0 }, 65 { nfserr_perm, -EPERM }, 66 { nfserr_noent, -ENOENT }, 67 { nfserr_io, -EIO }, 68 { nfserr_nxio, -ENXIO }, 69 { nfserr_fbig, -E2BIG }, 70 { nfserr_stale, -EBADF }, 71 { nfserr_acces, -EACCES }, 72 { nfserr_exist, -EEXIST }, 73 { nfserr_xdev, -EXDEV }, 74 { nfserr_mlink, -EMLINK }, 75 { nfserr_nodev, -ENODEV }, 76 { nfserr_notdir, -ENOTDIR }, 77 { nfserr_isdir, -EISDIR }, 78 { nfserr_inval, -EINVAL }, 79 { nfserr_fbig, -EFBIG }, 80 { nfserr_nospc, -ENOSPC }, 81 { nfserr_rofs, -EROFS }, 82 { nfserr_mlink, -EMLINK }, 83 { nfserr_nametoolong, -ENAMETOOLONG }, 84 { nfserr_notempty, -ENOTEMPTY }, 85 { nfserr_dquot, -EDQUOT }, 86 { nfserr_stale, -ESTALE }, 87 { nfserr_jukebox, -ETIMEDOUT }, 88 { nfserr_jukebox, -ERESTARTSYS }, 89 { nfserr_jukebox, -EAGAIN }, 90 { nfserr_jukebox, -EWOULDBLOCK }, 91 { nfserr_jukebox, -ENOMEM }, 92 { nfserr_io, -ETXTBSY }, 93 { nfserr_notsupp, -EOPNOTSUPP }, 94 { nfserr_toosmall, -ETOOSMALL }, 95 { nfserr_serverfault, -ESERVERFAULT }, 96 { nfserr_serverfault, -ENFILE }, 97 { nfserr_io, -EREMOTEIO }, 98 { nfserr_stale, -EOPENSTALE }, 99 { nfserr_io, -EUCLEAN }, 100 { nfserr_perm, -ENOKEY }, 101 { nfserr_no_grace, -ENOGRACE}, 102 { nfserr_io, -EBADMSG }, 103 }; 104 int i; 105 106 for (i = 0; i < ARRAY_SIZE(nfs_errtbl); i++) { 107 if (nfs_errtbl[i].syserr == errno) 108 return nfs_errtbl[i].nfserr; 109 } 110 WARN_ONCE(1, "nfsd: non-standard errno: %d\n", errno); 111 return nfserr_io; 112 } 113 114 /* 115 * Called from nfsd_lookup and encode_dirent. Check if we have crossed 116 * a mount point. 117 * Returns -EAGAIN or -ETIMEDOUT leaving *dpp and *expp unchanged, 118 * or nfs_ok having possibly changed *dpp and *expp 119 */ 120 int 121 nfsd_cross_mnt(struct svc_rqst *rqstp, struct dentry **dpp, 122 struct svc_export **expp) 123 { 124 struct svc_export *exp = *expp, *exp2 = NULL; 125 struct dentry *dentry = *dpp; 126 struct path path = {.mnt = mntget(exp->ex_path.mnt), 127 .dentry = dget(dentry)}; 128 unsigned int follow_flags = 0; 129 int err = 0; 130 131 if (exp->ex_flags & NFSEXP_CROSSMOUNT) 132 follow_flags = LOOKUP_AUTOMOUNT; 133 134 err = follow_down(&path, follow_flags); 135 if (err < 0) 136 goto out; 137 if (path.mnt == exp->ex_path.mnt && path.dentry == dentry && 138 nfsd_mountpoint(dentry, exp) == 2) { 139 /* This is only a mountpoint in some other namespace */ 140 path_put(&path); 141 goto out; 142 } 143 144 exp2 = rqst_exp_get_by_name(rqstp, &path); 145 if (IS_ERR(exp2)) { 146 err = PTR_ERR(exp2); 147 /* 148 * We normally allow NFS clients to continue 149 * "underneath" a mountpoint that is not exported. 150 * The exception is V4ROOT, where no traversal is ever 151 * allowed without an explicit export of the new 152 * directory. 153 */ 154 if (err == -ENOENT && !(exp->ex_flags & NFSEXP_V4ROOT)) 155 err = 0; 156 path_put(&path); 157 goto out; 158 } 159 if (nfsd_v4client(rqstp) || 160 (exp->ex_flags & NFSEXP_CROSSMOUNT) || EX_NOHIDE(exp2)) { 161 /* successfully crossed mount point */ 162 /* 163 * This is subtle: path.dentry is *not* on path.mnt 164 * at this point. The only reason we are safe is that 165 * original mnt is pinned down by exp, so we should 166 * put path *before* putting exp 167 */ 168 *dpp = path.dentry; 169 path.dentry = dentry; 170 *expp = exp2; 171 exp2 = exp; 172 } 173 path_put(&path); 174 exp_put(exp2); 175 out: 176 return err; 177 } 178 179 static void follow_to_parent(struct path *path) 180 { 181 struct dentry *dp; 182 183 while (path->dentry == path->mnt->mnt_root && follow_up(path)) 184 ; 185 dp = dget_parent(path->dentry); 186 dput(path->dentry); 187 path->dentry = dp; 188 } 189 190 static int nfsd_lookup_parent(struct svc_rqst *rqstp, struct dentry *dparent, struct svc_export **exp, struct dentry **dentryp) 191 { 192 struct svc_export *exp2; 193 struct path path = {.mnt = mntget((*exp)->ex_path.mnt), 194 .dentry = dget(dparent)}; 195 196 follow_to_parent(&path); 197 198 exp2 = rqst_exp_parent(rqstp, &path); 199 if (PTR_ERR(exp2) == -ENOENT) { 200 *dentryp = dget(dparent); 201 } else if (IS_ERR(exp2)) { 202 path_put(&path); 203 return PTR_ERR(exp2); 204 } else { 205 *dentryp = dget(path.dentry); 206 exp_put(*exp); 207 *exp = exp2; 208 } 209 path_put(&path); 210 return 0; 211 } 212 213 /* 214 * For nfsd purposes, we treat V4ROOT exports as though there was an 215 * export at *every* directory. 216 * We return: 217 * '1' if this dentry *must* be an export point, 218 * '2' if it might be, if there is really a mount here, and 219 * '0' if there is no chance of an export point here. 220 */ 221 int nfsd_mountpoint(struct dentry *dentry, struct svc_export *exp) 222 { 223 if (!d_inode(dentry)) 224 return 0; 225 if (exp->ex_flags & NFSEXP_V4ROOT) 226 return 1; 227 if (nfsd4_is_junction(dentry)) 228 return 1; 229 if (d_managed(dentry)) 230 /* 231 * Might only be a mountpoint in a different namespace, 232 * but we need to check. 233 */ 234 return 2; 235 return 0; 236 } 237 238 __be32 239 nfsd_lookup_dentry(struct svc_rqst *rqstp, struct svc_fh *fhp, 240 const char *name, unsigned int len, 241 struct svc_export **exp_ret, struct dentry **dentry_ret) 242 { 243 struct svc_export *exp; 244 struct dentry *dparent; 245 struct dentry *dentry; 246 int host_err; 247 248 dprintk("nfsd: nfsd_lookup(fh %s, %.*s)\n", SVCFH_fmt(fhp), len,name); 249 250 dparent = fhp->fh_dentry; 251 exp = exp_get(fhp->fh_export); 252 253 /* Lookup the name, but don't follow links */ 254 if (isdotent(name, len)) { 255 if (len==1) 256 dentry = dget(dparent); 257 else if (dparent != exp->ex_path.dentry) 258 dentry = dget_parent(dparent); 259 else if (!EX_NOHIDE(exp) && !nfsd_v4client(rqstp)) 260 dentry = dget(dparent); /* .. == . just like at / */ 261 else { 262 /* checking mountpoint crossing is very different when stepping up */ 263 host_err = nfsd_lookup_parent(rqstp, dparent, &exp, &dentry); 264 if (host_err) 265 goto out_nfserr; 266 } 267 } else { 268 dentry = lookup_one_len_unlocked(name, dparent, len); 269 host_err = PTR_ERR(dentry); 270 if (IS_ERR(dentry)) 271 goto out_nfserr; 272 if (nfsd_mountpoint(dentry, exp)) { 273 host_err = nfsd_cross_mnt(rqstp, &dentry, &exp); 274 if (host_err) { 275 dput(dentry); 276 goto out_nfserr; 277 } 278 } 279 } 280 *dentry_ret = dentry; 281 *exp_ret = exp; 282 return 0; 283 284 out_nfserr: 285 exp_put(exp); 286 return nfserrno(host_err); 287 } 288 289 /** 290 * nfsd_lookup - look up a single path component for nfsd 291 * 292 * @rqstp: the request context 293 * @fhp: the file handle of the directory 294 * @name: the component name, or %NULL to look up parent 295 * @len: length of name to examine 296 * @resfh: pointer to pre-initialised filehandle to hold result. 297 * 298 * Look up one component of a pathname. 299 * N.B. After this call _both_ fhp and resfh need an fh_put 300 * 301 * If the lookup would cross a mountpoint, and the mounted filesystem 302 * is exported to the client with NFSEXP_NOHIDE, then the lookup is 303 * accepted as it stands and the mounted directory is 304 * returned. Otherwise the covered directory is returned. 305 * NOTE: this mountpoint crossing is not supported properly by all 306 * clients and is explicitly disallowed for NFSv3 307 * 308 */ 309 __be32 310 nfsd_lookup(struct svc_rqst *rqstp, struct svc_fh *fhp, const char *name, 311 unsigned int len, struct svc_fh *resfh) 312 { 313 struct svc_export *exp; 314 struct dentry *dentry; 315 __be32 err; 316 317 err = fh_verify(rqstp, fhp, S_IFDIR, NFSD_MAY_EXEC); 318 if (err) 319 return err; 320 err = nfsd_lookup_dentry(rqstp, fhp, name, len, &exp, &dentry); 321 if (err) 322 return err; 323 err = check_nfsd_access(exp, rqstp, false); 324 if (err) 325 goto out; 326 /* 327 * Note: we compose the file handle now, but as the 328 * dentry may be negative, it may need to be updated. 329 */ 330 err = fh_compose(resfh, exp, dentry, fhp); 331 if (!err && d_really_is_negative(dentry)) 332 err = nfserr_noent; 333 out: 334 dput(dentry); 335 exp_put(exp); 336 return err; 337 } 338 339 static void 340 commit_reset_write_verifier(struct nfsd_net *nn, struct svc_rqst *rqstp, 341 int err) 342 { 343 switch (err) { 344 case -EAGAIN: 345 case -ESTALE: 346 /* 347 * Neither of these are the result of a problem with 348 * durable storage, so avoid a write verifier reset. 349 */ 350 break; 351 default: 352 nfsd_reset_write_verifier(nn); 353 trace_nfsd_writeverf_reset(nn, rqstp, err); 354 } 355 } 356 357 /* 358 * Commit metadata changes to stable storage. 359 */ 360 static int 361 commit_inode_metadata(struct inode *inode) 362 { 363 const struct export_operations *export_ops = inode->i_sb->s_export_op; 364 365 if (export_ops->commit_metadata) 366 return export_ops->commit_metadata(inode); 367 return sync_inode_metadata(inode, 1); 368 } 369 370 static int 371 commit_metadata(struct svc_fh *fhp) 372 { 373 struct inode *inode = d_inode(fhp->fh_dentry); 374 375 if (!EX_ISSYNC(fhp->fh_export)) 376 return 0; 377 return commit_inode_metadata(inode); 378 } 379 380 /* 381 * Go over the attributes and take care of the small differences between 382 * NFS semantics and what Linux expects. 383 */ 384 static void 385 nfsd_sanitize_attrs(struct inode *inode, struct iattr *iap) 386 { 387 /* Ignore mode updates on symlinks */ 388 if (S_ISLNK(inode->i_mode)) 389 iap->ia_valid &= ~ATTR_MODE; 390 391 /* sanitize the mode change */ 392 if (iap->ia_valid & ATTR_MODE) { 393 iap->ia_mode &= S_IALLUGO; 394 iap->ia_mode |= (inode->i_mode & ~S_IALLUGO); 395 } 396 397 /* Revoke setuid/setgid on chown */ 398 if (!S_ISDIR(inode->i_mode) && 399 ((iap->ia_valid & ATTR_UID) || (iap->ia_valid & ATTR_GID))) { 400 iap->ia_valid |= ATTR_KILL_PRIV; 401 if (iap->ia_valid & ATTR_MODE) { 402 /* we're setting mode too, just clear the s*id bits */ 403 iap->ia_mode &= ~S_ISUID; 404 if (iap->ia_mode & S_IXGRP) 405 iap->ia_mode &= ~S_ISGID; 406 } else { 407 /* set ATTR_KILL_* bits and let VFS handle it */ 408 iap->ia_valid |= ATTR_KILL_SUID; 409 iap->ia_valid |= 410 setattr_should_drop_sgid(&nop_mnt_idmap, inode); 411 } 412 } 413 } 414 415 static __be32 416 nfsd_get_write_access(struct svc_rqst *rqstp, struct svc_fh *fhp, 417 struct iattr *iap) 418 { 419 struct inode *inode = d_inode(fhp->fh_dentry); 420 421 if (iap->ia_size < inode->i_size) { 422 __be32 err; 423 424 err = nfsd_permission(&rqstp->rq_cred, 425 fhp->fh_export, fhp->fh_dentry, 426 NFSD_MAY_TRUNC | NFSD_MAY_OWNER_OVERRIDE); 427 if (err) 428 return err; 429 } 430 return nfserrno(get_write_access(inode)); 431 } 432 433 static int __nfsd_setattr(struct dentry *dentry, struct iattr *iap) 434 { 435 int host_err; 436 437 if (iap->ia_valid & ATTR_SIZE) { 438 /* 439 * RFC5661, Section 18.30.4: 440 * Changing the size of a file with SETATTR indirectly 441 * changes the time_modify and change attributes. 442 * 443 * (and similar for the older RFCs) 444 */ 445 struct iattr size_attr = { 446 .ia_valid = ATTR_SIZE | ATTR_CTIME | ATTR_MTIME, 447 .ia_size = iap->ia_size, 448 }; 449 450 if (iap->ia_size < 0) 451 return -EFBIG; 452 453 host_err = notify_change(&nop_mnt_idmap, dentry, &size_attr, NULL); 454 if (host_err) 455 return host_err; 456 iap->ia_valid &= ~ATTR_SIZE; 457 458 /* 459 * Avoid the additional setattr call below if the only other 460 * attribute that the client sends is the mtime, as we update 461 * it as part of the size change above. 462 */ 463 if ((iap->ia_valid & ~ATTR_MTIME) == 0) 464 return 0; 465 } 466 467 if (!iap->ia_valid) 468 return 0; 469 470 iap->ia_valid |= ATTR_CTIME; 471 return notify_change(&nop_mnt_idmap, dentry, iap, NULL); 472 } 473 474 /** 475 * nfsd_setattr - Set various file attributes. 476 * @rqstp: controlling RPC transaction 477 * @fhp: filehandle of target 478 * @attr: attributes to set 479 * @guardtime: do not act if ctime.tv_sec does not match this timestamp 480 * 481 * This call may adjust the contents of @attr (in particular, this 482 * call may change the bits in the na_iattr.ia_valid field). 483 * 484 * Returns nfs_ok on success, otherwise an NFS status code is 485 * returned. Caller must release @fhp by calling fh_put in either 486 * case. 487 */ 488 __be32 489 nfsd_setattr(struct svc_rqst *rqstp, struct svc_fh *fhp, 490 struct nfsd_attrs *attr, const struct timespec64 *guardtime) 491 { 492 struct dentry *dentry; 493 struct inode *inode; 494 struct iattr *iap = attr->na_iattr; 495 int accmode = NFSD_MAY_SATTR; 496 umode_t ftype = 0; 497 __be32 err; 498 int host_err = 0; 499 bool get_write_count; 500 bool size_change = (iap->ia_valid & ATTR_SIZE); 501 int retries; 502 503 if (iap->ia_valid & ATTR_SIZE) { 504 accmode |= NFSD_MAY_WRITE|NFSD_MAY_OWNER_OVERRIDE; 505 ftype = S_IFREG; 506 } 507 508 /* 509 * If utimes(2) and friends are called with times not NULL, we should 510 * not set NFSD_MAY_WRITE bit. Otherwise fh_verify->nfsd_permission 511 * will return EACCES, when the caller's effective UID does not match 512 * the owner of the file, and the caller is not privileged. In this 513 * situation, we should return EPERM(notify_change will return this). 514 */ 515 if (iap->ia_valid & (ATTR_ATIME | ATTR_MTIME)) { 516 accmode |= NFSD_MAY_OWNER_OVERRIDE; 517 if (!(iap->ia_valid & (ATTR_ATIME_SET | ATTR_MTIME_SET))) 518 accmode |= NFSD_MAY_WRITE; 519 } 520 521 /* Callers that do fh_verify should do the fh_want_write: */ 522 get_write_count = !fhp->fh_dentry; 523 524 /* Get inode */ 525 err = fh_verify(rqstp, fhp, ftype, accmode); 526 if (err) 527 return err; 528 if (get_write_count) { 529 host_err = fh_want_write(fhp); 530 if (host_err) 531 goto out; 532 } 533 534 dentry = fhp->fh_dentry; 535 inode = d_inode(dentry); 536 537 nfsd_sanitize_attrs(inode, iap); 538 539 /* 540 * The size case is special, it changes the file in addition to the 541 * attributes, and file systems don't expect it to be mixed with 542 * "random" attribute changes. We thus split out the size change 543 * into a separate call to ->setattr, and do the rest as a separate 544 * setattr call. 545 */ 546 if (size_change) { 547 err = nfsd_get_write_access(rqstp, fhp, iap); 548 if (err) 549 return err; 550 } 551 552 inode_lock(inode); 553 err = fh_fill_pre_attrs(fhp); 554 if (err) 555 goto out_unlock; 556 557 if (guardtime) { 558 struct timespec64 ctime = inode_get_ctime(inode); 559 if ((u32)guardtime->tv_sec != (u32)ctime.tv_sec || 560 guardtime->tv_nsec != ctime.tv_nsec) { 561 err = nfserr_notsync; 562 goto out_fill_attrs; 563 } 564 } 565 566 for (retries = 1;;) { 567 struct iattr attrs; 568 569 /* 570 * notify_change() can alter its iattr argument, making 571 * @iap unsuitable for submission multiple times. Make a 572 * copy for every loop iteration. 573 */ 574 attrs = *iap; 575 host_err = __nfsd_setattr(dentry, &attrs); 576 if (host_err != -EAGAIN || !retries--) 577 break; 578 if (!nfsd_wait_for_delegreturn(rqstp, inode)) 579 break; 580 } 581 if (attr->na_seclabel && attr->na_seclabel->len) 582 attr->na_labelerr = security_inode_setsecctx(dentry, 583 attr->na_seclabel->data, attr->na_seclabel->len); 584 if (IS_ENABLED(CONFIG_FS_POSIX_ACL) && attr->na_pacl) 585 attr->na_aclerr = set_posix_acl(&nop_mnt_idmap, 586 dentry, ACL_TYPE_ACCESS, 587 attr->na_pacl); 588 if (IS_ENABLED(CONFIG_FS_POSIX_ACL) && 589 !attr->na_aclerr && attr->na_dpacl && S_ISDIR(inode->i_mode)) 590 attr->na_aclerr = set_posix_acl(&nop_mnt_idmap, 591 dentry, ACL_TYPE_DEFAULT, 592 attr->na_dpacl); 593 out_fill_attrs: 594 /* 595 * RFC 1813 Section 3.3.2 does not mandate that an NFS server 596 * returns wcc_data for SETATTR. Some client implementations 597 * depend on receiving wcc_data, however, to sort out partial 598 * updates (eg., the client requested that size and mode be 599 * modified, but the server changed only the file mode). 600 */ 601 fh_fill_post_attrs(fhp); 602 out_unlock: 603 inode_unlock(inode); 604 if (size_change) 605 put_write_access(inode); 606 out: 607 if (!host_err) 608 host_err = commit_metadata(fhp); 609 return err != 0 ? err : nfserrno(host_err); 610 } 611 612 #if defined(CONFIG_NFSD_V4) 613 /* 614 * NFS junction information is stored in an extended attribute. 615 */ 616 #define NFSD_JUNCTION_XATTR_NAME XATTR_TRUSTED_PREFIX "junction.nfs" 617 618 /** 619 * nfsd4_is_junction - Test if an object could be an NFS junction 620 * 621 * @dentry: object to test 622 * 623 * Returns 1 if "dentry" appears to contain NFS junction information. 624 * Otherwise 0 is returned. 625 */ 626 int nfsd4_is_junction(struct dentry *dentry) 627 { 628 struct inode *inode = d_inode(dentry); 629 630 if (inode == NULL) 631 return 0; 632 if (inode->i_mode & S_IXUGO) 633 return 0; 634 if (!(inode->i_mode & S_ISVTX)) 635 return 0; 636 if (vfs_getxattr(&nop_mnt_idmap, dentry, NFSD_JUNCTION_XATTR_NAME, 637 NULL, 0) <= 0) 638 return 0; 639 return 1; 640 } 641 642 static struct nfsd4_compound_state *nfsd4_get_cstate(struct svc_rqst *rqstp) 643 { 644 return &((struct nfsd4_compoundres *)rqstp->rq_resp)->cstate; 645 } 646 647 __be32 nfsd4_clone_file_range(struct svc_rqst *rqstp, 648 struct nfsd_file *nf_src, u64 src_pos, 649 struct nfsd_file *nf_dst, u64 dst_pos, 650 u64 count, bool sync) 651 { 652 struct file *src = nf_src->nf_file; 653 struct file *dst = nf_dst->nf_file; 654 errseq_t since; 655 loff_t cloned; 656 __be32 ret = 0; 657 658 since = READ_ONCE(dst->f_wb_err); 659 cloned = vfs_clone_file_range(src, src_pos, dst, dst_pos, count, 0); 660 if (cloned < 0) { 661 ret = nfserrno(cloned); 662 goto out_err; 663 } 664 if (count && cloned != count) { 665 ret = nfserrno(-EINVAL); 666 goto out_err; 667 } 668 if (sync) { 669 loff_t dst_end = count ? dst_pos + count - 1 : LLONG_MAX; 670 int status = vfs_fsync_range(dst, dst_pos, dst_end, 0); 671 672 if (!status) 673 status = filemap_check_wb_err(dst->f_mapping, since); 674 if (!status) 675 status = commit_inode_metadata(file_inode(src)); 676 if (status < 0) { 677 struct nfsd_net *nn = net_generic(nf_dst->nf_net, 678 nfsd_net_id); 679 680 trace_nfsd_clone_file_range_err(rqstp, 681 &nfsd4_get_cstate(rqstp)->save_fh, 682 src_pos, 683 &nfsd4_get_cstate(rqstp)->current_fh, 684 dst_pos, 685 count, status); 686 commit_reset_write_verifier(nn, rqstp, status); 687 ret = nfserrno(status); 688 } 689 } 690 out_err: 691 return ret; 692 } 693 694 ssize_t nfsd_copy_file_range(struct file *src, u64 src_pos, struct file *dst, 695 u64 dst_pos, u64 count) 696 { 697 ssize_t ret; 698 699 /* 700 * Limit copy to 4MB to prevent indefinitely blocking an nfsd 701 * thread and client rpc slot. The choice of 4MB is somewhat 702 * arbitrary. We might instead base this on r/wsize, or make it 703 * tunable, or use a time instead of a byte limit, or implement 704 * asynchronous copy. In theory a client could also recognize a 705 * limit like this and pipeline multiple COPY requests. 706 */ 707 count = min_t(u64, count, 1 << 22); 708 ret = vfs_copy_file_range(src, src_pos, dst, dst_pos, count, 0); 709 710 if (ret == -EOPNOTSUPP || ret == -EXDEV) 711 ret = vfs_copy_file_range(src, src_pos, dst, dst_pos, count, 712 COPY_FILE_SPLICE); 713 return ret; 714 } 715 716 __be32 nfsd4_vfs_fallocate(struct svc_rqst *rqstp, struct svc_fh *fhp, 717 struct file *file, loff_t offset, loff_t len, 718 int flags) 719 { 720 int error; 721 722 if (!S_ISREG(file_inode(file)->i_mode)) 723 return nfserr_inval; 724 725 error = vfs_fallocate(file, flags, offset, len); 726 if (!error) 727 error = commit_metadata(fhp); 728 729 return nfserrno(error); 730 } 731 #endif /* defined(CONFIG_NFSD_V4) */ 732 733 /* 734 * Check server access rights to a file system object 735 */ 736 struct accessmap { 737 u32 access; 738 int how; 739 }; 740 static struct accessmap nfs3_regaccess[] = { 741 { NFS3_ACCESS_READ, NFSD_MAY_READ }, 742 { NFS3_ACCESS_EXECUTE, NFSD_MAY_EXEC }, 743 { NFS3_ACCESS_MODIFY, NFSD_MAY_WRITE|NFSD_MAY_TRUNC }, 744 { NFS3_ACCESS_EXTEND, NFSD_MAY_WRITE }, 745 746 #ifdef CONFIG_NFSD_V4 747 { NFS4_ACCESS_XAREAD, NFSD_MAY_READ }, 748 { NFS4_ACCESS_XAWRITE, NFSD_MAY_WRITE }, 749 { NFS4_ACCESS_XALIST, NFSD_MAY_READ }, 750 #endif 751 752 { 0, 0 } 753 }; 754 755 static struct accessmap nfs3_diraccess[] = { 756 { NFS3_ACCESS_READ, NFSD_MAY_READ }, 757 { NFS3_ACCESS_LOOKUP, NFSD_MAY_EXEC }, 758 { NFS3_ACCESS_MODIFY, NFSD_MAY_EXEC|NFSD_MAY_WRITE|NFSD_MAY_TRUNC}, 759 { NFS3_ACCESS_EXTEND, NFSD_MAY_EXEC|NFSD_MAY_WRITE }, 760 { NFS3_ACCESS_DELETE, NFSD_MAY_REMOVE }, 761 762 #ifdef CONFIG_NFSD_V4 763 { NFS4_ACCESS_XAREAD, NFSD_MAY_READ }, 764 { NFS4_ACCESS_XAWRITE, NFSD_MAY_WRITE }, 765 { NFS4_ACCESS_XALIST, NFSD_MAY_READ }, 766 #endif 767 768 { 0, 0 } 769 }; 770 771 static struct accessmap nfs3_anyaccess[] = { 772 /* Some clients - Solaris 2.6 at least, make an access call 773 * to the server to check for access for things like /dev/null 774 * (which really, the server doesn't care about). So 775 * We provide simple access checking for them, looking 776 * mainly at mode bits, and we make sure to ignore read-only 777 * filesystem checks 778 */ 779 { NFS3_ACCESS_READ, NFSD_MAY_READ }, 780 { NFS3_ACCESS_EXECUTE, NFSD_MAY_EXEC }, 781 { NFS3_ACCESS_MODIFY, NFSD_MAY_WRITE|NFSD_MAY_LOCAL_ACCESS }, 782 { NFS3_ACCESS_EXTEND, NFSD_MAY_WRITE|NFSD_MAY_LOCAL_ACCESS }, 783 784 { 0, 0 } 785 }; 786 787 __be32 788 nfsd_access(struct svc_rqst *rqstp, struct svc_fh *fhp, u32 *access, u32 *supported) 789 { 790 struct accessmap *map; 791 struct svc_export *export; 792 struct dentry *dentry; 793 u32 query, result = 0, sresult = 0; 794 __be32 error; 795 796 error = fh_verify(rqstp, fhp, 0, NFSD_MAY_NOP); 797 if (error) 798 goto out; 799 800 export = fhp->fh_export; 801 dentry = fhp->fh_dentry; 802 803 if (d_is_reg(dentry)) 804 map = nfs3_regaccess; 805 else if (d_is_dir(dentry)) 806 map = nfs3_diraccess; 807 else 808 map = nfs3_anyaccess; 809 810 811 query = *access; 812 for (; map->access; map++) { 813 if (map->access & query) { 814 __be32 err2; 815 816 sresult |= map->access; 817 818 err2 = nfsd_permission(&rqstp->rq_cred, export, 819 dentry, map->how); 820 switch (err2) { 821 case nfs_ok: 822 result |= map->access; 823 break; 824 825 /* the following error codes just mean the access was not allowed, 826 * rather than an error occurred */ 827 case nfserr_rofs: 828 case nfserr_acces: 829 case nfserr_perm: 830 /* simply don't "or" in the access bit. */ 831 break; 832 default: 833 error = err2; 834 goto out; 835 } 836 } 837 } 838 *access = result; 839 if (supported) 840 *supported = sresult; 841 842 out: 843 return error; 844 } 845 846 int nfsd_open_break_lease(struct inode *inode, int access) 847 { 848 unsigned int mode; 849 850 if (access & NFSD_MAY_NOT_BREAK_LEASE) 851 return 0; 852 mode = (access & NFSD_MAY_WRITE) ? O_WRONLY : O_RDONLY; 853 return break_lease(inode, mode | O_NONBLOCK); 854 } 855 856 /* 857 * Open an existing file or directory. 858 * The may_flags argument indicates the type of open (read/write/lock) 859 * and additional flags. 860 * N.B. After this call fhp needs an fh_put 861 */ 862 static int 863 __nfsd_open(struct svc_fh *fhp, umode_t type, int may_flags, struct file **filp) 864 { 865 struct path path; 866 struct inode *inode; 867 struct file *file; 868 int flags = O_RDONLY|O_LARGEFILE; 869 int host_err = -EPERM; 870 871 path.mnt = fhp->fh_export->ex_path.mnt; 872 path.dentry = fhp->fh_dentry; 873 inode = d_inode(path.dentry); 874 875 if (IS_APPEND(inode) && (may_flags & NFSD_MAY_WRITE)) 876 goto out; 877 878 if (!inode->i_fop) 879 goto out; 880 881 host_err = nfsd_open_break_lease(inode, may_flags); 882 if (host_err) /* NOMEM or WOULDBLOCK */ 883 goto out; 884 885 if (may_flags & NFSD_MAY_WRITE) { 886 if (may_flags & NFSD_MAY_READ) 887 flags = O_RDWR|O_LARGEFILE; 888 else 889 flags = O_WRONLY|O_LARGEFILE; 890 } 891 892 file = dentry_open(&path, flags, current_cred()); 893 if (IS_ERR(file)) { 894 host_err = PTR_ERR(file); 895 goto out; 896 } 897 898 host_err = security_file_post_open(file, may_flags); 899 if (host_err) { 900 fput(file); 901 goto out; 902 } 903 904 *filp = file; 905 out: 906 return host_err; 907 } 908 909 __be32 910 nfsd_open(struct svc_rqst *rqstp, struct svc_fh *fhp, umode_t type, 911 int may_flags, struct file **filp) 912 { 913 __be32 err; 914 int host_err; 915 bool retried = false; 916 917 /* 918 * If we get here, then the client has already done an "open", 919 * and (hopefully) checked permission - so allow OWNER_OVERRIDE 920 * in case a chmod has now revoked permission. 921 * 922 * Arguably we should also allow the owner override for 923 * directories, but we never have and it doesn't seem to have 924 * caused anyone a problem. If we were to change this, note 925 * also that our filldir callbacks would need a variant of 926 * lookup_one_len that doesn't check permissions. 927 */ 928 if (type == S_IFREG) 929 may_flags |= NFSD_MAY_OWNER_OVERRIDE; 930 retry: 931 err = fh_verify(rqstp, fhp, type, may_flags); 932 if (!err) { 933 host_err = __nfsd_open(fhp, type, may_flags, filp); 934 if (host_err == -EOPENSTALE && !retried) { 935 retried = true; 936 fh_put(fhp); 937 goto retry; 938 } 939 err = nfserrno(host_err); 940 } 941 return err; 942 } 943 944 /** 945 * nfsd_open_verified - Open a regular file for the filecache 946 * @fhp: NFS filehandle of the file to open 947 * @may_flags: internal permission flags 948 * @filp: OUT: open "struct file *" 949 * 950 * Returns zero on success, or a negative errno value. 951 */ 952 int 953 nfsd_open_verified(struct svc_fh *fhp, int may_flags, struct file **filp) 954 { 955 return __nfsd_open(fhp, S_IFREG, may_flags, filp); 956 } 957 958 /* 959 * Grab and keep cached pages associated with a file in the svc_rqst 960 * so that they can be passed to the network sendmsg routines 961 * directly. They will be released after the sending has completed. 962 * 963 * Return values: Number of bytes consumed, or -EIO if there are no 964 * remaining pages in rqstp->rq_pages. 965 */ 966 static int 967 nfsd_splice_actor(struct pipe_inode_info *pipe, struct pipe_buffer *buf, 968 struct splice_desc *sd) 969 { 970 struct svc_rqst *rqstp = sd->u.data; 971 struct page *page = buf->page; // may be a compound one 972 unsigned offset = buf->offset; 973 struct page *last_page; 974 975 last_page = page + (offset + sd->len - 1) / PAGE_SIZE; 976 for (page += offset / PAGE_SIZE; page <= last_page; page++) { 977 /* 978 * Skip page replacement when extending the contents of the 979 * current page. But note that we may get two zero_pages in a 980 * row from shmem. 981 */ 982 if (page == *(rqstp->rq_next_page - 1) && 983 offset_in_page(rqstp->rq_res.page_base + 984 rqstp->rq_res.page_len)) 985 continue; 986 if (unlikely(!svc_rqst_replace_page(rqstp, page))) 987 return -EIO; 988 } 989 if (rqstp->rq_res.page_len == 0) // first call 990 rqstp->rq_res.page_base = offset % PAGE_SIZE; 991 rqstp->rq_res.page_len += sd->len; 992 return sd->len; 993 } 994 995 static int nfsd_direct_splice_actor(struct pipe_inode_info *pipe, 996 struct splice_desc *sd) 997 { 998 return __splice_from_pipe(pipe, sd, nfsd_splice_actor); 999 } 1000 1001 static u32 nfsd_eof_on_read(struct file *file, loff_t offset, ssize_t len, 1002 size_t expected) 1003 { 1004 if (expected != 0 && len == 0) 1005 return 1; 1006 if (offset+len >= i_size_read(file_inode(file))) 1007 return 1; 1008 return 0; 1009 } 1010 1011 static __be32 nfsd_finish_read(struct svc_rqst *rqstp, struct svc_fh *fhp, 1012 struct file *file, loff_t offset, 1013 unsigned long *count, u32 *eof, ssize_t host_err) 1014 { 1015 if (host_err >= 0) { 1016 struct nfsd_net *nn = net_generic(SVC_NET(rqstp), nfsd_net_id); 1017 1018 nfsd_stats_io_read_add(nn, fhp->fh_export, host_err); 1019 *eof = nfsd_eof_on_read(file, offset, host_err, *count); 1020 *count = host_err; 1021 fsnotify_access(file); 1022 trace_nfsd_read_io_done(rqstp, fhp, offset, *count); 1023 return 0; 1024 } else { 1025 trace_nfsd_read_err(rqstp, fhp, offset, host_err); 1026 return nfserrno(host_err); 1027 } 1028 } 1029 1030 /** 1031 * nfsd_splice_read - Perform a VFS read using a splice pipe 1032 * @rqstp: RPC transaction context 1033 * @fhp: file handle of file to be read 1034 * @file: opened struct file of file to be read 1035 * @offset: starting byte offset 1036 * @count: IN: requested number of bytes; OUT: number of bytes read 1037 * @eof: OUT: set non-zero if operation reached the end of the file 1038 * 1039 * Returns nfs_ok on success, otherwise an nfserr stat value is 1040 * returned. 1041 */ 1042 __be32 nfsd_splice_read(struct svc_rqst *rqstp, struct svc_fh *fhp, 1043 struct file *file, loff_t offset, unsigned long *count, 1044 u32 *eof) 1045 { 1046 struct splice_desc sd = { 1047 .len = 0, 1048 .total_len = *count, 1049 .pos = offset, 1050 .u.data = rqstp, 1051 }; 1052 ssize_t host_err; 1053 1054 trace_nfsd_read_splice(rqstp, fhp, offset, *count); 1055 host_err = rw_verify_area(READ, file, &offset, *count); 1056 if (!host_err) 1057 host_err = splice_direct_to_actor(file, &sd, 1058 nfsd_direct_splice_actor); 1059 return nfsd_finish_read(rqstp, fhp, file, offset, count, eof, host_err); 1060 } 1061 1062 /** 1063 * nfsd_iter_read - Perform a VFS read using an iterator 1064 * @rqstp: RPC transaction context 1065 * @fhp: file handle of file to be read 1066 * @file: opened struct file of file to be read 1067 * @offset: starting byte offset 1068 * @count: IN: requested number of bytes; OUT: number of bytes read 1069 * @base: offset in first page of read buffer 1070 * @eof: OUT: set non-zero if operation reached the end of the file 1071 * 1072 * Some filesystems or situations cannot use nfsd_splice_read. This 1073 * function is the slightly less-performant fallback for those cases. 1074 * 1075 * Returns nfs_ok on success, otherwise an nfserr stat value is 1076 * returned. 1077 */ 1078 __be32 nfsd_iter_read(struct svc_rqst *rqstp, struct svc_fh *fhp, 1079 struct file *file, loff_t offset, unsigned long *count, 1080 unsigned int base, u32 *eof) 1081 { 1082 unsigned long v, total; 1083 struct iov_iter iter; 1084 loff_t ppos = offset; 1085 struct page *page; 1086 ssize_t host_err; 1087 1088 v = 0; 1089 total = *count; 1090 while (total) { 1091 page = *(rqstp->rq_next_page++); 1092 rqstp->rq_vec[v].iov_base = page_address(page) + base; 1093 rqstp->rq_vec[v].iov_len = min_t(size_t, total, PAGE_SIZE - base); 1094 total -= rqstp->rq_vec[v].iov_len; 1095 ++v; 1096 base = 0; 1097 } 1098 WARN_ON_ONCE(v > ARRAY_SIZE(rqstp->rq_vec)); 1099 1100 trace_nfsd_read_vector(rqstp, fhp, offset, *count); 1101 iov_iter_kvec(&iter, ITER_DEST, rqstp->rq_vec, v, *count); 1102 host_err = vfs_iter_read(file, &iter, &ppos, 0); 1103 return nfsd_finish_read(rqstp, fhp, file, offset, count, eof, host_err); 1104 } 1105 1106 /* 1107 * Gathered writes: If another process is currently writing to the file, 1108 * there's a high chance this is another nfsd (triggered by a bulk write 1109 * from a client's biod). Rather than syncing the file with each write 1110 * request, we sleep for 10 msec. 1111 * 1112 * I don't know if this roughly approximates C. Juszak's idea of 1113 * gathered writes, but it's a nice and simple solution (IMHO), and it 1114 * seems to work:-) 1115 * 1116 * Note: we do this only in the NFSv2 case, since v3 and higher have a 1117 * better tool (separate unstable writes and commits) for solving this 1118 * problem. 1119 */ 1120 static int wait_for_concurrent_writes(struct file *file) 1121 { 1122 struct inode *inode = file_inode(file); 1123 static ino_t last_ino; 1124 static dev_t last_dev; 1125 int err = 0; 1126 1127 if (atomic_read(&inode->i_writecount) > 1 1128 || (last_ino == inode->i_ino && last_dev == inode->i_sb->s_dev)) { 1129 dprintk("nfsd: write defer %d\n", task_pid_nr(current)); 1130 msleep(10); 1131 dprintk("nfsd: write resume %d\n", task_pid_nr(current)); 1132 } 1133 1134 if (inode->i_state & I_DIRTY) { 1135 dprintk("nfsd: write sync %d\n", task_pid_nr(current)); 1136 err = vfs_fsync(file, 0); 1137 } 1138 last_ino = inode->i_ino; 1139 last_dev = inode->i_sb->s_dev; 1140 return err; 1141 } 1142 1143 __be32 1144 nfsd_vfs_write(struct svc_rqst *rqstp, struct svc_fh *fhp, struct nfsd_file *nf, 1145 loff_t offset, struct kvec *vec, int vlen, 1146 unsigned long *cnt, int stable, 1147 __be32 *verf) 1148 { 1149 struct nfsd_net *nn = net_generic(SVC_NET(rqstp), nfsd_net_id); 1150 struct file *file = nf->nf_file; 1151 struct super_block *sb = file_inode(file)->i_sb; 1152 struct svc_export *exp; 1153 struct iov_iter iter; 1154 errseq_t since; 1155 __be32 nfserr; 1156 int host_err; 1157 loff_t pos = offset; 1158 unsigned long exp_op_flags = 0; 1159 unsigned int pflags = current->flags; 1160 rwf_t flags = 0; 1161 bool restore_flags = false; 1162 1163 trace_nfsd_write_opened(rqstp, fhp, offset, *cnt); 1164 1165 if (sb->s_export_op) 1166 exp_op_flags = sb->s_export_op->flags; 1167 1168 if (test_bit(RQ_LOCAL, &rqstp->rq_flags) && 1169 !(exp_op_flags & EXPORT_OP_REMOTE_FS)) { 1170 /* 1171 * We want throttling in balance_dirty_pages() 1172 * and shrink_inactive_list() to only consider 1173 * the backingdev we are writing to, so that nfs to 1174 * localhost doesn't cause nfsd to lock up due to all 1175 * the client's dirty pages or its congested queue. 1176 */ 1177 current->flags |= PF_LOCAL_THROTTLE; 1178 restore_flags = true; 1179 } 1180 1181 exp = fhp->fh_export; 1182 1183 if (!EX_ISSYNC(exp)) 1184 stable = NFS_UNSTABLE; 1185 1186 if (stable && !fhp->fh_use_wgather) 1187 flags |= RWF_SYNC; 1188 1189 iov_iter_kvec(&iter, ITER_SOURCE, vec, vlen, *cnt); 1190 since = READ_ONCE(file->f_wb_err); 1191 if (verf) 1192 nfsd_copy_write_verifier(verf, nn); 1193 host_err = vfs_iter_write(file, &iter, &pos, flags); 1194 if (host_err < 0) { 1195 commit_reset_write_verifier(nn, rqstp, host_err); 1196 goto out_nfserr; 1197 } 1198 *cnt = host_err; 1199 nfsd_stats_io_write_add(nn, exp, *cnt); 1200 fsnotify_modify(file); 1201 host_err = filemap_check_wb_err(file->f_mapping, since); 1202 if (host_err < 0) 1203 goto out_nfserr; 1204 1205 if (stable && fhp->fh_use_wgather) { 1206 host_err = wait_for_concurrent_writes(file); 1207 if (host_err < 0) 1208 commit_reset_write_verifier(nn, rqstp, host_err); 1209 } 1210 1211 out_nfserr: 1212 if (host_err >= 0) { 1213 trace_nfsd_write_io_done(rqstp, fhp, offset, *cnt); 1214 nfserr = nfs_ok; 1215 } else { 1216 trace_nfsd_write_err(rqstp, fhp, offset, host_err); 1217 nfserr = nfserrno(host_err); 1218 } 1219 if (restore_flags) 1220 current_restore_flags(pflags, PF_LOCAL_THROTTLE); 1221 return nfserr; 1222 } 1223 1224 /** 1225 * nfsd_read_splice_ok - check if spliced reading is supported 1226 * @rqstp: RPC transaction context 1227 * 1228 * Return values: 1229 * %true: nfsd_splice_read() may be used 1230 * %false: nfsd_splice_read() must not be used 1231 * 1232 * NFS READ normally uses splice to send data in-place. However the 1233 * data in cache can change after the reply's MIC is computed but 1234 * before the RPC reply is sent. To prevent the client from 1235 * rejecting the server-computed MIC in this somewhat rare case, do 1236 * not use splice with the GSS integrity and privacy services. 1237 */ 1238 bool nfsd_read_splice_ok(struct svc_rqst *rqstp) 1239 { 1240 switch (svc_auth_flavor(rqstp)) { 1241 case RPC_AUTH_GSS_KRB5I: 1242 case RPC_AUTH_GSS_KRB5P: 1243 return false; 1244 } 1245 return true; 1246 } 1247 1248 /** 1249 * nfsd_read - Read data from a file 1250 * @rqstp: RPC transaction context 1251 * @fhp: file handle of file to be read 1252 * @offset: starting byte offset 1253 * @count: IN: requested number of bytes; OUT: number of bytes read 1254 * @eof: OUT: set non-zero if operation reached the end of the file 1255 * 1256 * The caller must verify that there is enough space in @rqstp.rq_res 1257 * to perform this operation. 1258 * 1259 * N.B. After this call fhp needs an fh_put 1260 * 1261 * Returns nfs_ok on success, otherwise an nfserr stat value is 1262 * returned. 1263 */ 1264 __be32 nfsd_read(struct svc_rqst *rqstp, struct svc_fh *fhp, 1265 loff_t offset, unsigned long *count, u32 *eof) 1266 { 1267 struct nfsd_file *nf; 1268 struct file *file; 1269 __be32 err; 1270 1271 trace_nfsd_read_start(rqstp, fhp, offset, *count); 1272 err = nfsd_file_acquire_gc(rqstp, fhp, NFSD_MAY_READ, &nf); 1273 if (err) 1274 return err; 1275 1276 file = nf->nf_file; 1277 if (file->f_op->splice_read && nfsd_read_splice_ok(rqstp)) 1278 err = nfsd_splice_read(rqstp, fhp, file, offset, count, eof); 1279 else 1280 err = nfsd_iter_read(rqstp, fhp, file, offset, count, 0, eof); 1281 1282 nfsd_file_put(nf); 1283 trace_nfsd_read_done(rqstp, fhp, offset, *count); 1284 return err; 1285 } 1286 1287 /* 1288 * Write data to a file. 1289 * The stable flag requests synchronous writes. 1290 * N.B. After this call fhp needs an fh_put 1291 */ 1292 __be32 1293 nfsd_write(struct svc_rqst *rqstp, struct svc_fh *fhp, loff_t offset, 1294 struct kvec *vec, int vlen, unsigned long *cnt, int stable, 1295 __be32 *verf) 1296 { 1297 struct nfsd_file *nf; 1298 __be32 err; 1299 1300 trace_nfsd_write_start(rqstp, fhp, offset, *cnt); 1301 1302 err = nfsd_file_acquire_gc(rqstp, fhp, NFSD_MAY_WRITE, &nf); 1303 if (err) 1304 goto out; 1305 1306 err = nfsd_vfs_write(rqstp, fhp, nf, offset, vec, 1307 vlen, cnt, stable, verf); 1308 nfsd_file_put(nf); 1309 out: 1310 trace_nfsd_write_done(rqstp, fhp, offset, *cnt); 1311 return err; 1312 } 1313 1314 /** 1315 * nfsd_commit - Commit pending writes to stable storage 1316 * @rqstp: RPC request being processed 1317 * @fhp: NFS filehandle 1318 * @nf: target file 1319 * @offset: raw offset from beginning of file 1320 * @count: raw count of bytes to sync 1321 * @verf: filled in with the server's current write verifier 1322 * 1323 * Note: we guarantee that data that lies within the range specified 1324 * by the 'offset' and 'count' parameters will be synced. The server 1325 * is permitted to sync data that lies outside this range at the 1326 * same time. 1327 * 1328 * Unfortunately we cannot lock the file to make sure we return full WCC 1329 * data to the client, as locking happens lower down in the filesystem. 1330 * 1331 * Return values: 1332 * An nfsstat value in network byte order. 1333 */ 1334 __be32 1335 nfsd_commit(struct svc_rqst *rqstp, struct svc_fh *fhp, struct nfsd_file *nf, 1336 u64 offset, u32 count, __be32 *verf) 1337 { 1338 __be32 err = nfs_ok; 1339 u64 maxbytes; 1340 loff_t start, end; 1341 struct nfsd_net *nn; 1342 1343 /* 1344 * Convert the client-provided (offset, count) range to a 1345 * (start, end) range. If the client-provided range falls 1346 * outside the maximum file size of the underlying FS, 1347 * clamp the sync range appropriately. 1348 */ 1349 start = 0; 1350 end = LLONG_MAX; 1351 maxbytes = (u64)fhp->fh_dentry->d_sb->s_maxbytes; 1352 if (offset < maxbytes) { 1353 start = offset; 1354 if (count && (offset + count - 1 < maxbytes)) 1355 end = offset + count - 1; 1356 } 1357 1358 nn = net_generic(nf->nf_net, nfsd_net_id); 1359 if (EX_ISSYNC(fhp->fh_export)) { 1360 errseq_t since = READ_ONCE(nf->nf_file->f_wb_err); 1361 int err2; 1362 1363 err2 = vfs_fsync_range(nf->nf_file, start, end, 0); 1364 switch (err2) { 1365 case 0: 1366 nfsd_copy_write_verifier(verf, nn); 1367 err2 = filemap_check_wb_err(nf->nf_file->f_mapping, 1368 since); 1369 err = nfserrno(err2); 1370 break; 1371 case -EINVAL: 1372 err = nfserr_notsupp; 1373 break; 1374 default: 1375 commit_reset_write_verifier(nn, rqstp, err2); 1376 err = nfserrno(err2); 1377 } 1378 } else 1379 nfsd_copy_write_verifier(verf, nn); 1380 1381 return err; 1382 } 1383 1384 /** 1385 * nfsd_create_setattr - Set a created file's attributes 1386 * @rqstp: RPC transaction being executed 1387 * @fhp: NFS filehandle of parent directory 1388 * @resfhp: NFS filehandle of new object 1389 * @attrs: requested attributes of new object 1390 * 1391 * Returns nfs_ok on success, or an nfsstat in network byte order. 1392 */ 1393 __be32 1394 nfsd_create_setattr(struct svc_rqst *rqstp, struct svc_fh *fhp, 1395 struct svc_fh *resfhp, struct nfsd_attrs *attrs) 1396 { 1397 struct iattr *iap = attrs->na_iattr; 1398 __be32 status; 1399 1400 /* 1401 * Mode has already been set by file creation. 1402 */ 1403 iap->ia_valid &= ~ATTR_MODE; 1404 1405 /* 1406 * Setting uid/gid works only for root. Irix appears to 1407 * send along the gid on create when it tries to implement 1408 * setgid directories via NFS: 1409 */ 1410 if (!uid_eq(current_fsuid(), GLOBAL_ROOT_UID)) 1411 iap->ia_valid &= ~(ATTR_UID|ATTR_GID); 1412 1413 /* 1414 * Callers expect new file metadata to be committed even 1415 * if the attributes have not changed. 1416 */ 1417 if (nfsd_attrs_valid(attrs)) 1418 status = nfsd_setattr(rqstp, resfhp, attrs, NULL); 1419 else 1420 status = nfserrno(commit_metadata(resfhp)); 1421 1422 /* 1423 * Transactional filesystems had a chance to commit changes 1424 * for both parent and child simultaneously making the 1425 * following commit_metadata a noop in many cases. 1426 */ 1427 if (!status) 1428 status = nfserrno(commit_metadata(fhp)); 1429 1430 /* 1431 * Update the new filehandle to pick up the new attributes. 1432 */ 1433 if (!status) 1434 status = fh_update(resfhp); 1435 1436 return status; 1437 } 1438 1439 /* HPUX client sometimes creates a file in mode 000, and sets size to 0. 1440 * setting size to 0 may fail for some specific file systems by the permission 1441 * checking which requires WRITE permission but the mode is 000. 1442 * we ignore the resizing(to 0) on the just new created file, since the size is 1443 * 0 after file created. 1444 * 1445 * call this only after vfs_create() is called. 1446 * */ 1447 static void 1448 nfsd_check_ignore_resizing(struct iattr *iap) 1449 { 1450 if ((iap->ia_valid & ATTR_SIZE) && (iap->ia_size == 0)) 1451 iap->ia_valid &= ~ATTR_SIZE; 1452 } 1453 1454 /* The parent directory should already be locked: */ 1455 __be32 1456 nfsd_create_locked(struct svc_rqst *rqstp, struct svc_fh *fhp, 1457 struct nfsd_attrs *attrs, 1458 int type, dev_t rdev, struct svc_fh *resfhp) 1459 { 1460 struct dentry *dentry, *dchild; 1461 struct inode *dirp; 1462 struct iattr *iap = attrs->na_iattr; 1463 __be32 err; 1464 int host_err = 0; 1465 1466 dentry = fhp->fh_dentry; 1467 dirp = d_inode(dentry); 1468 1469 dchild = dget(resfhp->fh_dentry); 1470 err = nfsd_permission(&rqstp->rq_cred, fhp->fh_export, dentry, 1471 NFSD_MAY_CREATE); 1472 if (err) 1473 goto out; 1474 1475 if (!(iap->ia_valid & ATTR_MODE)) 1476 iap->ia_mode = 0; 1477 iap->ia_mode = (iap->ia_mode & S_IALLUGO) | type; 1478 1479 if (!IS_POSIXACL(dirp)) 1480 iap->ia_mode &= ~current_umask(); 1481 1482 err = 0; 1483 switch (type) { 1484 case S_IFREG: 1485 host_err = vfs_create(&nop_mnt_idmap, dirp, dchild, 1486 iap->ia_mode, true); 1487 if (!host_err) 1488 nfsd_check_ignore_resizing(iap); 1489 break; 1490 case S_IFDIR: 1491 dchild = vfs_mkdir(&nop_mnt_idmap, dirp, dchild, iap->ia_mode); 1492 if (IS_ERR(dchild)) { 1493 host_err = PTR_ERR(dchild); 1494 } else if (d_is_negative(dchild)) { 1495 err = nfserr_serverfault; 1496 goto out; 1497 } else if (unlikely(dchild != resfhp->fh_dentry)) { 1498 dput(resfhp->fh_dentry); 1499 resfhp->fh_dentry = dget(dchild); 1500 } 1501 break; 1502 case S_IFCHR: 1503 case S_IFBLK: 1504 case S_IFIFO: 1505 case S_IFSOCK: 1506 host_err = vfs_mknod(&nop_mnt_idmap, dirp, dchild, 1507 iap->ia_mode, rdev); 1508 break; 1509 default: 1510 printk(KERN_WARNING "nfsd: bad file type %o in nfsd_create\n", 1511 type); 1512 host_err = -EINVAL; 1513 } 1514 if (host_err < 0) 1515 goto out_nfserr; 1516 1517 err = nfsd_create_setattr(rqstp, fhp, resfhp, attrs); 1518 1519 out: 1520 if (!IS_ERR(dchild)) 1521 dput(dchild); 1522 return err; 1523 1524 out_nfserr: 1525 err = nfserrno(host_err); 1526 goto out; 1527 } 1528 1529 /* 1530 * Create a filesystem object (regular, directory, special). 1531 * Note that the parent directory is left locked. 1532 * 1533 * N.B. Every call to nfsd_create needs an fh_put for _both_ fhp and resfhp 1534 */ 1535 __be32 1536 nfsd_create(struct svc_rqst *rqstp, struct svc_fh *fhp, 1537 char *fname, int flen, struct nfsd_attrs *attrs, 1538 int type, dev_t rdev, struct svc_fh *resfhp) 1539 { 1540 struct dentry *dentry, *dchild = NULL; 1541 __be32 err; 1542 int host_err; 1543 1544 if (isdotent(fname, flen)) 1545 return nfserr_exist; 1546 1547 err = fh_verify(rqstp, fhp, S_IFDIR, NFSD_MAY_NOP); 1548 if (err) 1549 return err; 1550 1551 dentry = fhp->fh_dentry; 1552 1553 host_err = fh_want_write(fhp); 1554 if (host_err) 1555 return nfserrno(host_err); 1556 1557 inode_lock_nested(dentry->d_inode, I_MUTEX_PARENT); 1558 dchild = lookup_one_len(fname, dentry, flen); 1559 host_err = PTR_ERR(dchild); 1560 if (IS_ERR(dchild)) { 1561 err = nfserrno(host_err); 1562 goto out_unlock; 1563 } 1564 err = fh_compose(resfhp, fhp->fh_export, dchild, fhp); 1565 /* 1566 * We unconditionally drop our ref to dchild as fh_compose will have 1567 * already grabbed its own ref for it. 1568 */ 1569 dput(dchild); 1570 if (err) 1571 goto out_unlock; 1572 err = fh_fill_pre_attrs(fhp); 1573 if (err != nfs_ok) 1574 goto out_unlock; 1575 err = nfsd_create_locked(rqstp, fhp, attrs, type, rdev, resfhp); 1576 fh_fill_post_attrs(fhp); 1577 out_unlock: 1578 inode_unlock(dentry->d_inode); 1579 return err; 1580 } 1581 1582 /* 1583 * Read a symlink. On entry, *lenp must contain the maximum path length that 1584 * fits into the buffer. On return, it contains the true length. 1585 * N.B. After this call fhp needs an fh_put 1586 */ 1587 __be32 1588 nfsd_readlink(struct svc_rqst *rqstp, struct svc_fh *fhp, char *buf, int *lenp) 1589 { 1590 __be32 err; 1591 const char *link; 1592 struct path path; 1593 DEFINE_DELAYED_CALL(done); 1594 int len; 1595 1596 err = fh_verify(rqstp, fhp, S_IFLNK, NFSD_MAY_NOP); 1597 if (unlikely(err)) 1598 return err; 1599 1600 path.mnt = fhp->fh_export->ex_path.mnt; 1601 path.dentry = fhp->fh_dentry; 1602 1603 if (unlikely(!d_is_symlink(path.dentry))) 1604 return nfserr_inval; 1605 1606 touch_atime(&path); 1607 1608 link = vfs_get_link(path.dentry, &done); 1609 if (IS_ERR(link)) 1610 return nfserrno(PTR_ERR(link)); 1611 1612 len = strlen(link); 1613 if (len < *lenp) 1614 *lenp = len; 1615 memcpy(buf, link, *lenp); 1616 do_delayed_call(&done); 1617 return 0; 1618 } 1619 1620 /** 1621 * nfsd_symlink - Create a symlink and look up its inode 1622 * @rqstp: RPC transaction being executed 1623 * @fhp: NFS filehandle of parent directory 1624 * @fname: filename of the new symlink 1625 * @flen: length of @fname 1626 * @path: content of the new symlink (NUL-terminated) 1627 * @attrs: requested attributes of new object 1628 * @resfhp: NFS filehandle of new object 1629 * 1630 * N.B. After this call _both_ fhp and resfhp need an fh_put 1631 * 1632 * Returns nfs_ok on success, or an nfsstat in network byte order. 1633 */ 1634 __be32 1635 nfsd_symlink(struct svc_rqst *rqstp, struct svc_fh *fhp, 1636 char *fname, int flen, 1637 char *path, struct nfsd_attrs *attrs, 1638 struct svc_fh *resfhp) 1639 { 1640 struct dentry *dentry, *dnew; 1641 __be32 err, cerr; 1642 int host_err; 1643 1644 err = nfserr_noent; 1645 if (!flen || path[0] == '\0') 1646 goto out; 1647 err = nfserr_exist; 1648 if (isdotent(fname, flen)) 1649 goto out; 1650 1651 err = fh_verify(rqstp, fhp, S_IFDIR, NFSD_MAY_CREATE); 1652 if (err) 1653 goto out; 1654 1655 host_err = fh_want_write(fhp); 1656 if (host_err) { 1657 err = nfserrno(host_err); 1658 goto out; 1659 } 1660 1661 dentry = fhp->fh_dentry; 1662 inode_lock_nested(dentry->d_inode, I_MUTEX_PARENT); 1663 dnew = lookup_one_len(fname, dentry, flen); 1664 if (IS_ERR(dnew)) { 1665 err = nfserrno(PTR_ERR(dnew)); 1666 inode_unlock(dentry->d_inode); 1667 goto out_drop_write; 1668 } 1669 err = fh_fill_pre_attrs(fhp); 1670 if (err != nfs_ok) 1671 goto out_unlock; 1672 host_err = vfs_symlink(&nop_mnt_idmap, d_inode(dentry), dnew, path); 1673 err = nfserrno(host_err); 1674 cerr = fh_compose(resfhp, fhp->fh_export, dnew, fhp); 1675 if (!err) 1676 nfsd_create_setattr(rqstp, fhp, resfhp, attrs); 1677 fh_fill_post_attrs(fhp); 1678 out_unlock: 1679 inode_unlock(dentry->d_inode); 1680 if (!err) 1681 err = nfserrno(commit_metadata(fhp)); 1682 dput(dnew); 1683 if (err==0) err = cerr; 1684 out_drop_write: 1685 fh_drop_write(fhp); 1686 out: 1687 return err; 1688 } 1689 1690 /* 1691 * Create a hardlink 1692 * N.B. After this call _both_ ffhp and tfhp need an fh_put 1693 */ 1694 __be32 1695 nfsd_link(struct svc_rqst *rqstp, struct svc_fh *ffhp, 1696 char *name, int len, struct svc_fh *tfhp) 1697 { 1698 struct dentry *ddir, *dnew, *dold; 1699 struct inode *dirp; 1700 __be32 err; 1701 int host_err; 1702 1703 err = fh_verify(rqstp, ffhp, S_IFDIR, NFSD_MAY_CREATE); 1704 if (err) 1705 goto out; 1706 err = fh_verify(rqstp, tfhp, 0, NFSD_MAY_NOP); 1707 if (err) 1708 goto out; 1709 err = nfserr_isdir; 1710 if (d_is_dir(tfhp->fh_dentry)) 1711 goto out; 1712 err = nfserr_perm; 1713 if (!len) 1714 goto out; 1715 err = nfserr_exist; 1716 if (isdotent(name, len)) 1717 goto out; 1718 1719 host_err = fh_want_write(tfhp); 1720 if (host_err) { 1721 err = nfserrno(host_err); 1722 goto out; 1723 } 1724 1725 ddir = ffhp->fh_dentry; 1726 dirp = d_inode(ddir); 1727 inode_lock_nested(dirp, I_MUTEX_PARENT); 1728 1729 dnew = lookup_one_len(name, ddir, len); 1730 if (IS_ERR(dnew)) { 1731 err = nfserrno(PTR_ERR(dnew)); 1732 goto out_unlock; 1733 } 1734 1735 dold = tfhp->fh_dentry; 1736 1737 err = nfserr_noent; 1738 if (d_really_is_negative(dold)) 1739 goto out_dput; 1740 err = fh_fill_pre_attrs(ffhp); 1741 if (err != nfs_ok) 1742 goto out_dput; 1743 host_err = vfs_link(dold, &nop_mnt_idmap, dirp, dnew, NULL); 1744 fh_fill_post_attrs(ffhp); 1745 inode_unlock(dirp); 1746 if (!host_err) { 1747 err = nfserrno(commit_metadata(ffhp)); 1748 if (!err) 1749 err = nfserrno(commit_metadata(tfhp)); 1750 } else { 1751 err = nfserrno(host_err); 1752 } 1753 dput(dnew); 1754 out_drop_write: 1755 fh_drop_write(tfhp); 1756 out: 1757 return err; 1758 1759 out_dput: 1760 dput(dnew); 1761 out_unlock: 1762 inode_unlock(dirp); 1763 goto out_drop_write; 1764 } 1765 1766 static void 1767 nfsd_close_cached_files(struct dentry *dentry) 1768 { 1769 struct inode *inode = d_inode(dentry); 1770 1771 if (inode && S_ISREG(inode->i_mode)) 1772 nfsd_file_close_inode_sync(inode); 1773 } 1774 1775 static bool 1776 nfsd_has_cached_files(struct dentry *dentry) 1777 { 1778 bool ret = false; 1779 struct inode *inode = d_inode(dentry); 1780 1781 if (inode && S_ISREG(inode->i_mode)) 1782 ret = nfsd_file_is_cached(inode); 1783 return ret; 1784 } 1785 1786 /* 1787 * Rename a file 1788 * N.B. After this call _both_ ffhp and tfhp need an fh_put 1789 */ 1790 __be32 1791 nfsd_rename(struct svc_rqst *rqstp, struct svc_fh *ffhp, char *fname, int flen, 1792 struct svc_fh *tfhp, char *tname, int tlen) 1793 { 1794 struct dentry *fdentry, *tdentry, *odentry, *ndentry, *trap; 1795 struct inode *fdir, *tdir; 1796 __be32 err; 1797 int host_err; 1798 bool close_cached = false; 1799 1800 err = fh_verify(rqstp, ffhp, S_IFDIR, NFSD_MAY_REMOVE); 1801 if (err) 1802 goto out; 1803 err = fh_verify(rqstp, tfhp, S_IFDIR, NFSD_MAY_CREATE); 1804 if (err) 1805 goto out; 1806 1807 fdentry = ffhp->fh_dentry; 1808 fdir = d_inode(fdentry); 1809 1810 tdentry = tfhp->fh_dentry; 1811 tdir = d_inode(tdentry); 1812 1813 err = nfserr_perm; 1814 if (!flen || isdotent(fname, flen) || !tlen || isdotent(tname, tlen)) 1815 goto out; 1816 1817 err = nfserr_xdev; 1818 if (ffhp->fh_export->ex_path.mnt != tfhp->fh_export->ex_path.mnt) 1819 goto out; 1820 if (ffhp->fh_export->ex_path.dentry != tfhp->fh_export->ex_path.dentry) 1821 goto out; 1822 1823 retry: 1824 host_err = fh_want_write(ffhp); 1825 if (host_err) { 1826 err = nfserrno(host_err); 1827 goto out; 1828 } 1829 1830 trap = lock_rename(tdentry, fdentry); 1831 if (IS_ERR(trap)) { 1832 err = nfserr_xdev; 1833 goto out_want_write; 1834 } 1835 err = fh_fill_pre_attrs(ffhp); 1836 if (err != nfs_ok) 1837 goto out_unlock; 1838 err = fh_fill_pre_attrs(tfhp); 1839 if (err != nfs_ok) 1840 goto out_unlock; 1841 1842 odentry = lookup_one_len(fname, fdentry, flen); 1843 host_err = PTR_ERR(odentry); 1844 if (IS_ERR(odentry)) 1845 goto out_nfserr; 1846 1847 host_err = -ENOENT; 1848 if (d_really_is_negative(odentry)) 1849 goto out_dput_old; 1850 host_err = -EINVAL; 1851 if (odentry == trap) 1852 goto out_dput_old; 1853 1854 ndentry = lookup_one_len(tname, tdentry, tlen); 1855 host_err = PTR_ERR(ndentry); 1856 if (IS_ERR(ndentry)) 1857 goto out_dput_old; 1858 host_err = -ENOTEMPTY; 1859 if (ndentry == trap) 1860 goto out_dput_new; 1861 1862 if ((ndentry->d_sb->s_export_op->flags & EXPORT_OP_CLOSE_BEFORE_UNLINK) && 1863 nfsd_has_cached_files(ndentry)) { 1864 close_cached = true; 1865 goto out_dput_old; 1866 } else { 1867 struct renamedata rd = { 1868 .old_mnt_idmap = &nop_mnt_idmap, 1869 .old_dir = fdir, 1870 .old_dentry = odentry, 1871 .new_mnt_idmap = &nop_mnt_idmap, 1872 .new_dir = tdir, 1873 .new_dentry = ndentry, 1874 }; 1875 int retries; 1876 1877 for (retries = 1;;) { 1878 host_err = vfs_rename(&rd); 1879 if (host_err != -EAGAIN || !retries--) 1880 break; 1881 if (!nfsd_wait_for_delegreturn(rqstp, d_inode(odentry))) 1882 break; 1883 } 1884 if (!host_err) { 1885 host_err = commit_metadata(tfhp); 1886 if (!host_err) 1887 host_err = commit_metadata(ffhp); 1888 } 1889 } 1890 out_dput_new: 1891 dput(ndentry); 1892 out_dput_old: 1893 dput(odentry); 1894 out_nfserr: 1895 err = nfserrno(host_err); 1896 1897 if (!close_cached) { 1898 fh_fill_post_attrs(ffhp); 1899 fh_fill_post_attrs(tfhp); 1900 } 1901 out_unlock: 1902 unlock_rename(tdentry, fdentry); 1903 out_want_write: 1904 fh_drop_write(ffhp); 1905 1906 /* 1907 * If the target dentry has cached open files, then we need to 1908 * try to close them prior to doing the rename. Final fput 1909 * shouldn't be done with locks held however, so we delay it 1910 * until this point and then reattempt the whole shebang. 1911 */ 1912 if (close_cached) { 1913 close_cached = false; 1914 nfsd_close_cached_files(ndentry); 1915 dput(ndentry); 1916 goto retry; 1917 } 1918 out: 1919 return err; 1920 } 1921 1922 /* 1923 * Unlink a file or directory 1924 * N.B. After this call fhp needs an fh_put 1925 */ 1926 __be32 1927 nfsd_unlink(struct svc_rqst *rqstp, struct svc_fh *fhp, int type, 1928 char *fname, int flen) 1929 { 1930 struct dentry *dentry, *rdentry; 1931 struct inode *dirp; 1932 struct inode *rinode; 1933 __be32 err; 1934 int host_err; 1935 1936 err = nfserr_acces; 1937 if (!flen || isdotent(fname, flen)) 1938 goto out; 1939 err = fh_verify(rqstp, fhp, S_IFDIR, NFSD_MAY_REMOVE); 1940 if (err) 1941 goto out; 1942 1943 host_err = fh_want_write(fhp); 1944 if (host_err) 1945 goto out_nfserr; 1946 1947 dentry = fhp->fh_dentry; 1948 dirp = d_inode(dentry); 1949 inode_lock_nested(dirp, I_MUTEX_PARENT); 1950 1951 rdentry = lookup_one_len(fname, dentry, flen); 1952 host_err = PTR_ERR(rdentry); 1953 if (IS_ERR(rdentry)) 1954 goto out_unlock; 1955 1956 if (d_really_is_negative(rdentry)) { 1957 dput(rdentry); 1958 host_err = -ENOENT; 1959 goto out_unlock; 1960 } 1961 rinode = d_inode(rdentry); 1962 err = fh_fill_pre_attrs(fhp); 1963 if (err != nfs_ok) 1964 goto out_unlock; 1965 1966 ihold(rinode); 1967 if (!type) 1968 type = d_inode(rdentry)->i_mode & S_IFMT; 1969 1970 if (type != S_IFDIR) { 1971 int retries; 1972 1973 if (rdentry->d_sb->s_export_op->flags & EXPORT_OP_CLOSE_BEFORE_UNLINK) 1974 nfsd_close_cached_files(rdentry); 1975 1976 for (retries = 1;;) { 1977 host_err = vfs_unlink(&nop_mnt_idmap, dirp, rdentry, NULL); 1978 if (host_err != -EAGAIN || !retries--) 1979 break; 1980 if (!nfsd_wait_for_delegreturn(rqstp, rinode)) 1981 break; 1982 } 1983 } else { 1984 host_err = vfs_rmdir(&nop_mnt_idmap, dirp, rdentry); 1985 } 1986 fh_fill_post_attrs(fhp); 1987 1988 inode_unlock(dirp); 1989 if (!host_err) 1990 host_err = commit_metadata(fhp); 1991 dput(rdentry); 1992 iput(rinode); /* truncate the inode here */ 1993 1994 out_drop_write: 1995 fh_drop_write(fhp); 1996 out_nfserr: 1997 if (host_err == -EBUSY) { 1998 /* name is mounted-on. There is no perfect 1999 * error status. 2000 */ 2001 err = nfserr_file_open; 2002 } else { 2003 err = nfserrno(host_err); 2004 } 2005 out: 2006 return err; 2007 out_unlock: 2008 inode_unlock(dirp); 2009 goto out_drop_write; 2010 } 2011 2012 /* 2013 * We do this buffering because we must not call back into the file 2014 * system's ->lookup() method from the filldir callback. That may well 2015 * deadlock a number of file systems. 2016 * 2017 * This is based heavily on the implementation of same in XFS. 2018 */ 2019 struct buffered_dirent { 2020 u64 ino; 2021 loff_t offset; 2022 int namlen; 2023 unsigned int d_type; 2024 char name[]; 2025 }; 2026 2027 struct readdir_data { 2028 struct dir_context ctx; 2029 char *dirent; 2030 size_t used; 2031 int full; 2032 }; 2033 2034 static bool nfsd_buffered_filldir(struct dir_context *ctx, const char *name, 2035 int namlen, loff_t offset, u64 ino, 2036 unsigned int d_type) 2037 { 2038 struct readdir_data *buf = 2039 container_of(ctx, struct readdir_data, ctx); 2040 struct buffered_dirent *de = (void *)(buf->dirent + buf->used); 2041 unsigned int reclen; 2042 2043 reclen = ALIGN(sizeof(struct buffered_dirent) + namlen, sizeof(u64)); 2044 if (buf->used + reclen > PAGE_SIZE) { 2045 buf->full = 1; 2046 return false; 2047 } 2048 2049 de->namlen = namlen; 2050 de->offset = offset; 2051 de->ino = ino; 2052 de->d_type = d_type; 2053 memcpy(de->name, name, namlen); 2054 buf->used += reclen; 2055 2056 return true; 2057 } 2058 2059 static __be32 nfsd_buffered_readdir(struct file *file, struct svc_fh *fhp, 2060 nfsd_filldir_t func, struct readdir_cd *cdp, 2061 loff_t *offsetp) 2062 { 2063 struct buffered_dirent *de; 2064 int host_err; 2065 int size; 2066 loff_t offset; 2067 struct readdir_data buf = { 2068 .ctx.actor = nfsd_buffered_filldir, 2069 .dirent = (void *)__get_free_page(GFP_KERNEL) 2070 }; 2071 2072 if (!buf.dirent) 2073 return nfserrno(-ENOMEM); 2074 2075 offset = *offsetp; 2076 2077 while (1) { 2078 unsigned int reclen; 2079 2080 cdp->err = nfserr_eof; /* will be cleared on successful read */ 2081 buf.used = 0; 2082 buf.full = 0; 2083 2084 host_err = iterate_dir(file, &buf.ctx); 2085 if (buf.full) 2086 host_err = 0; 2087 2088 if (host_err < 0) 2089 break; 2090 2091 size = buf.used; 2092 2093 if (!size) 2094 break; 2095 2096 de = (struct buffered_dirent *)buf.dirent; 2097 while (size > 0) { 2098 offset = de->offset; 2099 2100 if (func(cdp, de->name, de->namlen, de->offset, 2101 de->ino, de->d_type)) 2102 break; 2103 2104 if (cdp->err != nfs_ok) 2105 break; 2106 2107 trace_nfsd_dirent(fhp, de->ino, de->name, de->namlen); 2108 2109 reclen = ALIGN(sizeof(*de) + de->namlen, 2110 sizeof(u64)); 2111 size -= reclen; 2112 de = (struct buffered_dirent *)((char *)de + reclen); 2113 } 2114 if (size > 0) /* We bailed out early */ 2115 break; 2116 2117 offset = vfs_llseek(file, 0, SEEK_CUR); 2118 } 2119 2120 free_page((unsigned long)(buf.dirent)); 2121 2122 if (host_err) 2123 return nfserrno(host_err); 2124 2125 *offsetp = offset; 2126 return cdp->err; 2127 } 2128 2129 /** 2130 * nfsd_readdir - Read entries from a directory 2131 * @rqstp: RPC transaction context 2132 * @fhp: NFS file handle of directory to be read 2133 * @offsetp: OUT: seek offset of final entry that was read 2134 * @cdp: OUT: an eof error value 2135 * @func: entry filler actor 2136 * 2137 * This implementation ignores the NFSv3/4 verifier cookie. 2138 * 2139 * NB: normal system calls hold file->f_pos_lock when calling 2140 * ->iterate_shared and ->llseek, but nfsd_readdir() does not. 2141 * Because the struct file acquired here is not visible to other 2142 * threads, it's internal state does not need mutex protection. 2143 * 2144 * Returns nfs_ok on success, otherwise an nfsstat code is 2145 * returned. 2146 */ 2147 __be32 2148 nfsd_readdir(struct svc_rqst *rqstp, struct svc_fh *fhp, loff_t *offsetp, 2149 struct readdir_cd *cdp, nfsd_filldir_t func) 2150 { 2151 __be32 err; 2152 struct file *file; 2153 loff_t offset = *offsetp; 2154 int may_flags = NFSD_MAY_READ; 2155 2156 err = nfsd_open(rqstp, fhp, S_IFDIR, may_flags, &file); 2157 if (err) 2158 goto out; 2159 2160 if (fhp->fh_64bit_cookies) 2161 file->f_mode |= FMODE_64BITHASH; 2162 else 2163 file->f_mode |= FMODE_32BITHASH; 2164 2165 offset = vfs_llseek(file, offset, SEEK_SET); 2166 if (offset < 0) { 2167 err = nfserrno((int)offset); 2168 goto out_close; 2169 } 2170 2171 err = nfsd_buffered_readdir(file, fhp, func, cdp, offsetp); 2172 2173 if (err == nfserr_eof || err == nfserr_toosmall) 2174 err = nfs_ok; /* can still be found in ->err */ 2175 out_close: 2176 nfsd_filp_close(file); 2177 out: 2178 return err; 2179 } 2180 2181 /** 2182 * nfsd_filp_close: close a file synchronously 2183 * @fp: the file to close 2184 * 2185 * nfsd_filp_close() is similar in behaviour to filp_close(). 2186 * The difference is that if this is the final close on the 2187 * file, the that finalisation happens immediately, rather then 2188 * being handed over to a work_queue, as it the case for 2189 * filp_close(). 2190 * When a user-space process closes a file (even when using 2191 * filp_close() the finalisation happens before returning to 2192 * userspace, so it is effectively synchronous. When a kernel thread 2193 * uses file_close(), on the other hand, the handling is completely 2194 * asynchronous. This means that any cost imposed by that finalisation 2195 * is not imposed on the nfsd thread, and nfsd could potentually 2196 * close files more quickly than the work queue finalises the close, 2197 * which would lead to unbounded growth in the queue. 2198 * 2199 * In some contexts is it not safe to synchronously wait for 2200 * close finalisation (see comment for __fput_sync()), but nfsd 2201 * does not match those contexts. In partcilarly it does not, at the 2202 * time that this function is called, hold and locks and no finalisation 2203 * of any file, socket, or device driver would have any cause to wait 2204 * for nfsd to make progress. 2205 */ 2206 void nfsd_filp_close(struct file *fp) 2207 { 2208 get_file(fp); 2209 filp_close(fp, NULL); 2210 __fput_sync(fp); 2211 } 2212 2213 /* 2214 * Get file system stats 2215 * N.B. After this call fhp needs an fh_put 2216 */ 2217 __be32 2218 nfsd_statfs(struct svc_rqst *rqstp, struct svc_fh *fhp, struct kstatfs *stat, int access) 2219 { 2220 __be32 err; 2221 2222 err = fh_verify(rqstp, fhp, 0, NFSD_MAY_NOP | access); 2223 if (!err) { 2224 struct path path = { 2225 .mnt = fhp->fh_export->ex_path.mnt, 2226 .dentry = fhp->fh_dentry, 2227 }; 2228 if (vfs_statfs(&path, stat)) 2229 err = nfserr_io; 2230 } 2231 return err; 2232 } 2233 2234 static int exp_rdonly(struct svc_cred *cred, struct svc_export *exp) 2235 { 2236 return nfsexp_flags(cred, exp) & NFSEXP_READONLY; 2237 } 2238 2239 #ifdef CONFIG_NFSD_V4 2240 /* 2241 * Helper function to translate error numbers. In the case of xattr operations, 2242 * some error codes need to be translated outside of the standard translations. 2243 * 2244 * ENODATA needs to be translated to nfserr_noxattr. 2245 * E2BIG to nfserr_xattr2big. 2246 * 2247 * Additionally, vfs_listxattr can return -ERANGE. This means that the 2248 * file has too many extended attributes to retrieve inside an 2249 * XATTR_LIST_MAX sized buffer. This is a bug in the xattr implementation: 2250 * filesystems will allow the adding of extended attributes until they hit 2251 * their own internal limit. This limit may be larger than XATTR_LIST_MAX. 2252 * So, at that point, the attributes are present and valid, but can't 2253 * be retrieved using listxattr, since the upper level xattr code enforces 2254 * the XATTR_LIST_MAX limit. 2255 * 2256 * This bug means that we need to deal with listxattr returning -ERANGE. The 2257 * best mapping is to return TOOSMALL. 2258 */ 2259 static __be32 2260 nfsd_xattr_errno(int err) 2261 { 2262 switch (err) { 2263 case -ENODATA: 2264 return nfserr_noxattr; 2265 case -E2BIG: 2266 return nfserr_xattr2big; 2267 case -ERANGE: 2268 return nfserr_toosmall; 2269 } 2270 return nfserrno(err); 2271 } 2272 2273 /* 2274 * Retrieve the specified user extended attribute. To avoid always 2275 * having to allocate the maximum size (since we are not getting 2276 * a maximum size from the RPC), do a probe + alloc. Hold a reader 2277 * lock on i_rwsem to prevent the extended attribute from changing 2278 * size while we're doing this. 2279 */ 2280 __be32 2281 nfsd_getxattr(struct svc_rqst *rqstp, struct svc_fh *fhp, char *name, 2282 void **bufp, int *lenp) 2283 { 2284 ssize_t len; 2285 __be32 err; 2286 char *buf; 2287 struct inode *inode; 2288 struct dentry *dentry; 2289 2290 err = fh_verify(rqstp, fhp, 0, NFSD_MAY_READ); 2291 if (err) 2292 return err; 2293 2294 err = nfs_ok; 2295 dentry = fhp->fh_dentry; 2296 inode = d_inode(dentry); 2297 2298 inode_lock_shared(inode); 2299 2300 len = vfs_getxattr(&nop_mnt_idmap, dentry, name, NULL, 0); 2301 2302 /* 2303 * Zero-length attribute, just return. 2304 */ 2305 if (len == 0) { 2306 *bufp = NULL; 2307 *lenp = 0; 2308 goto out; 2309 } 2310 2311 if (len < 0) { 2312 err = nfsd_xattr_errno(len); 2313 goto out; 2314 } 2315 2316 if (len > *lenp) { 2317 err = nfserr_toosmall; 2318 goto out; 2319 } 2320 2321 buf = kvmalloc(len, GFP_KERNEL); 2322 if (buf == NULL) { 2323 err = nfserr_jukebox; 2324 goto out; 2325 } 2326 2327 len = vfs_getxattr(&nop_mnt_idmap, dentry, name, buf, len); 2328 if (len <= 0) { 2329 kvfree(buf); 2330 buf = NULL; 2331 err = nfsd_xattr_errno(len); 2332 } 2333 2334 *lenp = len; 2335 *bufp = buf; 2336 2337 out: 2338 inode_unlock_shared(inode); 2339 2340 return err; 2341 } 2342 2343 /* 2344 * Retrieve the xattr names. Since we can't know how many are 2345 * user extended attributes, we must get all attributes here, 2346 * and have the XDR encode filter out the "user." ones. 2347 * 2348 * While this could always just allocate an XATTR_LIST_MAX 2349 * buffer, that's a waste, so do a probe + allocate. To 2350 * avoid any changes between the probe and allocate, wrap 2351 * this in inode_lock. 2352 */ 2353 __be32 2354 nfsd_listxattr(struct svc_rqst *rqstp, struct svc_fh *fhp, char **bufp, 2355 int *lenp) 2356 { 2357 ssize_t len; 2358 __be32 err; 2359 char *buf; 2360 struct inode *inode; 2361 struct dentry *dentry; 2362 2363 err = fh_verify(rqstp, fhp, 0, NFSD_MAY_READ); 2364 if (err) 2365 return err; 2366 2367 dentry = fhp->fh_dentry; 2368 inode = d_inode(dentry); 2369 *lenp = 0; 2370 2371 inode_lock_shared(inode); 2372 2373 len = vfs_listxattr(dentry, NULL, 0); 2374 if (len <= 0) { 2375 err = nfsd_xattr_errno(len); 2376 goto out; 2377 } 2378 2379 if (len > XATTR_LIST_MAX) { 2380 err = nfserr_xattr2big; 2381 goto out; 2382 } 2383 2384 buf = kvmalloc(len, GFP_KERNEL); 2385 if (buf == NULL) { 2386 err = nfserr_jukebox; 2387 goto out; 2388 } 2389 2390 len = vfs_listxattr(dentry, buf, len); 2391 if (len <= 0) { 2392 kvfree(buf); 2393 err = nfsd_xattr_errno(len); 2394 goto out; 2395 } 2396 2397 *lenp = len; 2398 *bufp = buf; 2399 2400 err = nfs_ok; 2401 out: 2402 inode_unlock_shared(inode); 2403 2404 return err; 2405 } 2406 2407 /** 2408 * nfsd_removexattr - Remove an extended attribute 2409 * @rqstp: RPC transaction being executed 2410 * @fhp: NFS filehandle of object with xattr to remove 2411 * @name: name of xattr to remove (NUL-terminate) 2412 * 2413 * Pass in a NULL pointer for delegated_inode, and let the client deal 2414 * with NFS4ERR_DELAY (same as with e.g. setattr and remove). 2415 * 2416 * Returns nfs_ok on success, or an nfsstat in network byte order. 2417 */ 2418 __be32 2419 nfsd_removexattr(struct svc_rqst *rqstp, struct svc_fh *fhp, char *name) 2420 { 2421 __be32 err; 2422 int ret; 2423 2424 err = fh_verify(rqstp, fhp, 0, NFSD_MAY_WRITE); 2425 if (err) 2426 return err; 2427 2428 ret = fh_want_write(fhp); 2429 if (ret) 2430 return nfserrno(ret); 2431 2432 inode_lock(fhp->fh_dentry->d_inode); 2433 err = fh_fill_pre_attrs(fhp); 2434 if (err != nfs_ok) 2435 goto out_unlock; 2436 ret = __vfs_removexattr_locked(&nop_mnt_idmap, fhp->fh_dentry, 2437 name, NULL); 2438 err = nfsd_xattr_errno(ret); 2439 fh_fill_post_attrs(fhp); 2440 out_unlock: 2441 inode_unlock(fhp->fh_dentry->d_inode); 2442 fh_drop_write(fhp); 2443 2444 return err; 2445 } 2446 2447 __be32 2448 nfsd_setxattr(struct svc_rqst *rqstp, struct svc_fh *fhp, char *name, 2449 void *buf, u32 len, u32 flags) 2450 { 2451 __be32 err; 2452 int ret; 2453 2454 err = fh_verify(rqstp, fhp, 0, NFSD_MAY_WRITE); 2455 if (err) 2456 return err; 2457 2458 ret = fh_want_write(fhp); 2459 if (ret) 2460 return nfserrno(ret); 2461 inode_lock(fhp->fh_dentry->d_inode); 2462 err = fh_fill_pre_attrs(fhp); 2463 if (err != nfs_ok) 2464 goto out_unlock; 2465 ret = __vfs_setxattr_locked(&nop_mnt_idmap, fhp->fh_dentry, 2466 name, buf, len, flags, NULL); 2467 fh_fill_post_attrs(fhp); 2468 err = nfsd_xattr_errno(ret); 2469 out_unlock: 2470 inode_unlock(fhp->fh_dentry->d_inode); 2471 fh_drop_write(fhp); 2472 return err; 2473 } 2474 #endif 2475 2476 /* 2477 * Check for a user's access permissions to this inode. 2478 */ 2479 __be32 2480 nfsd_permission(struct svc_cred *cred, struct svc_export *exp, 2481 struct dentry *dentry, int acc) 2482 { 2483 struct inode *inode = d_inode(dentry); 2484 int err; 2485 2486 if ((acc & NFSD_MAY_MASK) == NFSD_MAY_NOP) 2487 return 0; 2488 #if 0 2489 dprintk("nfsd: permission 0x%x%s%s%s%s%s%s%s mode 0%o%s%s%s\n", 2490 acc, 2491 (acc & NFSD_MAY_READ)? " read" : "", 2492 (acc & NFSD_MAY_WRITE)? " write" : "", 2493 (acc & NFSD_MAY_EXEC)? " exec" : "", 2494 (acc & NFSD_MAY_SATTR)? " sattr" : "", 2495 (acc & NFSD_MAY_TRUNC)? " trunc" : "", 2496 (acc & NFSD_MAY_NLM)? " nlm" : "", 2497 (acc & NFSD_MAY_OWNER_OVERRIDE)? " owneroverride" : "", 2498 inode->i_mode, 2499 IS_IMMUTABLE(inode)? " immut" : "", 2500 IS_APPEND(inode)? " append" : "", 2501 __mnt_is_readonly(exp->ex_path.mnt)? " ro" : ""); 2502 dprintk(" owner %d/%d user %d/%d\n", 2503 inode->i_uid, inode->i_gid, current_fsuid(), current_fsgid()); 2504 #endif 2505 2506 /* Normally we reject any write/sattr etc access on a read-only file 2507 * system. But if it is IRIX doing check on write-access for a 2508 * device special file, we ignore rofs. 2509 */ 2510 if (!(acc & NFSD_MAY_LOCAL_ACCESS)) 2511 if (acc & (NFSD_MAY_WRITE | NFSD_MAY_SATTR | NFSD_MAY_TRUNC)) { 2512 if (exp_rdonly(cred, exp) || 2513 __mnt_is_readonly(exp->ex_path.mnt)) 2514 return nfserr_rofs; 2515 if (/* (acc & NFSD_MAY_WRITE) && */ IS_IMMUTABLE(inode)) 2516 return nfserr_perm; 2517 } 2518 if ((acc & NFSD_MAY_TRUNC) && IS_APPEND(inode)) 2519 return nfserr_perm; 2520 2521 /* 2522 * The file owner always gets access permission for accesses that 2523 * would normally be checked at open time. This is to make 2524 * file access work even when the client has done a fchmod(fd, 0). 2525 * 2526 * However, `cp foo bar' should fail nevertheless when bar is 2527 * readonly. A sensible way to do this might be to reject all 2528 * attempts to truncate a read-only file, because a creat() call 2529 * always implies file truncation. 2530 * ... but this isn't really fair. A process may reasonably call 2531 * ftruncate on an open file descriptor on a file with perm 000. 2532 * We must trust the client to do permission checking - using "ACCESS" 2533 * with NFSv3. 2534 */ 2535 if ((acc & NFSD_MAY_OWNER_OVERRIDE) && 2536 uid_eq(inode->i_uid, current_fsuid())) 2537 return 0; 2538 2539 /* This assumes NFSD_MAY_{READ,WRITE,EXEC} == MAY_{READ,WRITE,EXEC} */ 2540 err = inode_permission(&nop_mnt_idmap, inode, 2541 acc & (MAY_READ | MAY_WRITE | MAY_EXEC)); 2542 2543 /* Allow read access to binaries even when mode 111 */ 2544 if (err == -EACCES && S_ISREG(inode->i_mode) && 2545 (acc == (NFSD_MAY_READ | NFSD_MAY_OWNER_OVERRIDE) || 2546 acc == (NFSD_MAY_READ | NFSD_MAY_READ_IF_EXEC))) 2547 err = inode_permission(&nop_mnt_idmap, inode, MAY_EXEC); 2548 2549 return err? nfserrno(err) : 0; 2550 } 2551