1 /* 2 * fs/sysfs/dir.c - sysfs core and dir operation implementation 3 * 4 * Copyright (c) 2001-3 Patrick Mochel 5 * Copyright (c) 2007 SUSE Linux Products GmbH 6 * Copyright (c) 2007 Tejun Heo <teheo@suse.de> 7 * 8 * This file is released under the GPLv2. 9 * 10 * Please see Documentation/filesystems/sysfs.txt for more information. 11 */ 12 13 #undef DEBUG 14 15 #include <linux/fs.h> 16 #include <linux/mount.h> 17 #include <linux/module.h> 18 #include <linux/kobject.h> 19 #include <linux/namei.h> 20 #include <linux/idr.h> 21 #include <linux/completion.h> 22 #include <linux/mutex.h> 23 #include <linux/slab.h> 24 #include "sysfs.h" 25 26 DEFINE_MUTEX(sysfs_mutex); 27 DEFINE_MUTEX(sysfs_rename_mutex); 28 DEFINE_SPINLOCK(sysfs_assoc_lock); 29 30 static DEFINE_SPINLOCK(sysfs_ino_lock); 31 static DEFINE_IDA(sysfs_ino_ida); 32 33 /** 34 * sysfs_link_sibling - link sysfs_dirent into sibling list 35 * @sd: sysfs_dirent of interest 36 * 37 * Link @sd into its sibling list which starts from 38 * sd->s_parent->s_dir.children. 39 * 40 * Locking: 41 * mutex_lock(sysfs_mutex) 42 */ 43 static void sysfs_link_sibling(struct sysfs_dirent *sd) 44 { 45 struct sysfs_dirent *parent_sd = sd->s_parent; 46 struct sysfs_dirent **pos; 47 48 BUG_ON(sd->s_sibling); 49 50 /* Store directory entries in order by ino. This allows 51 * readdir to properly restart without having to add a 52 * cursor into the s_dir.children list. 53 */ 54 for (pos = &parent_sd->s_dir.children; *pos; pos = &(*pos)->s_sibling) { 55 if (sd->s_ino < (*pos)->s_ino) 56 break; 57 } 58 sd->s_sibling = *pos; 59 *pos = sd; 60 } 61 62 /** 63 * sysfs_unlink_sibling - unlink sysfs_dirent from sibling list 64 * @sd: sysfs_dirent of interest 65 * 66 * Unlink @sd from its sibling list which starts from 67 * sd->s_parent->s_dir.children. 68 * 69 * Locking: 70 * mutex_lock(sysfs_mutex) 71 */ 72 static void sysfs_unlink_sibling(struct sysfs_dirent *sd) 73 { 74 struct sysfs_dirent **pos; 75 76 for (pos = &sd->s_parent->s_dir.children; *pos; 77 pos = &(*pos)->s_sibling) { 78 if (*pos == sd) { 79 *pos = sd->s_sibling; 80 sd->s_sibling = NULL; 81 break; 82 } 83 } 84 } 85 86 /** 87 * sysfs_get_dentry - get dentry for the given sysfs_dirent 88 * @sd: sysfs_dirent of interest 89 * 90 * Get dentry for @sd. Dentry is looked up if currently not 91 * present. This function descends from the root looking up 92 * dentry for each step. 93 * 94 * LOCKING: 95 * mutex_lock(sysfs_rename_mutex) 96 * 97 * RETURNS: 98 * Pointer to found dentry on success, ERR_PTR() value on error. 99 */ 100 struct dentry *sysfs_get_dentry(struct sysfs_dirent *sd) 101 { 102 struct dentry *dentry = dget(sysfs_sb->s_root); 103 104 while (dentry->d_fsdata != sd) { 105 struct sysfs_dirent *cur; 106 struct dentry *parent; 107 108 /* find the first ancestor which hasn't been looked up */ 109 cur = sd; 110 while (cur->s_parent != dentry->d_fsdata) 111 cur = cur->s_parent; 112 113 /* look it up */ 114 parent = dentry; 115 mutex_lock(&parent->d_inode->i_mutex); 116 dentry = lookup_one_noperm(cur->s_name, parent); 117 mutex_unlock(&parent->d_inode->i_mutex); 118 dput(parent); 119 120 if (IS_ERR(dentry)) 121 break; 122 } 123 return dentry; 124 } 125 126 /** 127 * sysfs_get_active - get an active reference to sysfs_dirent 128 * @sd: sysfs_dirent to get an active reference to 129 * 130 * Get an active reference of @sd. This function is noop if @sd 131 * is NULL. 132 * 133 * RETURNS: 134 * Pointer to @sd on success, NULL on failure. 135 */ 136 static struct sysfs_dirent *sysfs_get_active(struct sysfs_dirent *sd) 137 { 138 if (unlikely(!sd)) 139 return NULL; 140 141 while (1) { 142 int v, t; 143 144 v = atomic_read(&sd->s_active); 145 if (unlikely(v < 0)) 146 return NULL; 147 148 t = atomic_cmpxchg(&sd->s_active, v, v + 1); 149 if (likely(t == v)) 150 return sd; 151 if (t < 0) 152 return NULL; 153 154 cpu_relax(); 155 } 156 } 157 158 /** 159 * sysfs_put_active - put an active reference to sysfs_dirent 160 * @sd: sysfs_dirent to put an active reference to 161 * 162 * Put an active reference to @sd. This function is noop if @sd 163 * is NULL. 164 */ 165 static void sysfs_put_active(struct sysfs_dirent *sd) 166 { 167 struct completion *cmpl; 168 int v; 169 170 if (unlikely(!sd)) 171 return; 172 173 v = atomic_dec_return(&sd->s_active); 174 if (likely(v != SD_DEACTIVATED_BIAS)) 175 return; 176 177 /* atomic_dec_return() is a mb(), we'll always see the updated 178 * sd->s_sibling. 179 */ 180 cmpl = (void *)sd->s_sibling; 181 complete(cmpl); 182 } 183 184 /** 185 * sysfs_get_active_two - get active references to sysfs_dirent and parent 186 * @sd: sysfs_dirent of interest 187 * 188 * Get active reference to @sd and its parent. Parent's active 189 * reference is grabbed first. This function is noop if @sd is 190 * NULL. 191 * 192 * RETURNS: 193 * Pointer to @sd on success, NULL on failure. 194 */ 195 struct sysfs_dirent *sysfs_get_active_two(struct sysfs_dirent *sd) 196 { 197 if (sd) { 198 if (sd->s_parent && unlikely(!sysfs_get_active(sd->s_parent))) 199 return NULL; 200 if (unlikely(!sysfs_get_active(sd))) { 201 sysfs_put_active(sd->s_parent); 202 return NULL; 203 } 204 } 205 return sd; 206 } 207 208 /** 209 * sysfs_put_active_two - put active references to sysfs_dirent and parent 210 * @sd: sysfs_dirent of interest 211 * 212 * Put active references to @sd and its parent. This function is 213 * noop if @sd is NULL. 214 */ 215 void sysfs_put_active_two(struct sysfs_dirent *sd) 216 { 217 if (sd) { 218 sysfs_put_active(sd); 219 sysfs_put_active(sd->s_parent); 220 } 221 } 222 223 /** 224 * sysfs_deactivate - deactivate sysfs_dirent 225 * @sd: sysfs_dirent to deactivate 226 * 227 * Deny new active references and drain existing ones. 228 */ 229 static void sysfs_deactivate(struct sysfs_dirent *sd) 230 { 231 DECLARE_COMPLETION_ONSTACK(wait); 232 int v; 233 234 BUG_ON(sd->s_sibling || !(sd->s_flags & SYSFS_FLAG_REMOVED)); 235 sd->s_sibling = (void *)&wait; 236 237 /* atomic_add_return() is a mb(), put_active() will always see 238 * the updated sd->s_sibling. 239 */ 240 v = atomic_add_return(SD_DEACTIVATED_BIAS, &sd->s_active); 241 242 if (v != SD_DEACTIVATED_BIAS) 243 wait_for_completion(&wait); 244 245 sd->s_sibling = NULL; 246 } 247 248 static int sysfs_alloc_ino(ino_t *pino) 249 { 250 int ino, rc; 251 252 retry: 253 spin_lock(&sysfs_ino_lock); 254 rc = ida_get_new_above(&sysfs_ino_ida, 2, &ino); 255 spin_unlock(&sysfs_ino_lock); 256 257 if (rc == -EAGAIN) { 258 if (ida_pre_get(&sysfs_ino_ida, GFP_KERNEL)) 259 goto retry; 260 rc = -ENOMEM; 261 } 262 263 *pino = ino; 264 return rc; 265 } 266 267 static void sysfs_free_ino(ino_t ino) 268 { 269 spin_lock(&sysfs_ino_lock); 270 ida_remove(&sysfs_ino_ida, ino); 271 spin_unlock(&sysfs_ino_lock); 272 } 273 274 void release_sysfs_dirent(struct sysfs_dirent * sd) 275 { 276 struct sysfs_dirent *parent_sd; 277 278 repeat: 279 /* Moving/renaming is always done while holding reference. 280 * sd->s_parent won't change beneath us. 281 */ 282 parent_sd = sd->s_parent; 283 284 if (sysfs_type(sd) == SYSFS_KOBJ_LINK) 285 sysfs_put(sd->s_symlink.target_sd); 286 if (sysfs_type(sd) & SYSFS_COPY_NAME) 287 kfree(sd->s_name); 288 kfree(sd->s_iattr); 289 sysfs_free_ino(sd->s_ino); 290 kmem_cache_free(sysfs_dir_cachep, sd); 291 292 sd = parent_sd; 293 if (sd && atomic_dec_and_test(&sd->s_count)) 294 goto repeat; 295 } 296 297 static void sysfs_d_iput(struct dentry * dentry, struct inode * inode) 298 { 299 struct sysfs_dirent * sd = dentry->d_fsdata; 300 301 sysfs_put(sd); 302 iput(inode); 303 } 304 305 static struct dentry_operations sysfs_dentry_ops = { 306 .d_iput = sysfs_d_iput, 307 }; 308 309 struct sysfs_dirent *sysfs_new_dirent(const char *name, umode_t mode, int type) 310 { 311 char *dup_name = NULL; 312 struct sysfs_dirent *sd; 313 314 if (type & SYSFS_COPY_NAME) { 315 name = dup_name = kstrdup(name, GFP_KERNEL); 316 if (!name) 317 return NULL; 318 } 319 320 sd = kmem_cache_zalloc(sysfs_dir_cachep, GFP_KERNEL); 321 if (!sd) 322 goto err_out1; 323 324 if (sysfs_alloc_ino(&sd->s_ino)) 325 goto err_out2; 326 327 atomic_set(&sd->s_count, 1); 328 atomic_set(&sd->s_active, 0); 329 330 sd->s_name = name; 331 sd->s_mode = mode; 332 sd->s_flags = type; 333 334 return sd; 335 336 err_out2: 337 kmem_cache_free(sysfs_dir_cachep, sd); 338 err_out1: 339 kfree(dup_name); 340 return NULL; 341 } 342 343 static int sysfs_ilookup_test(struct inode *inode, void *arg) 344 { 345 struct sysfs_dirent *sd = arg; 346 return inode->i_ino == sd->s_ino; 347 } 348 349 /** 350 * sysfs_addrm_start - prepare for sysfs_dirent add/remove 351 * @acxt: pointer to sysfs_addrm_cxt to be used 352 * @parent_sd: parent sysfs_dirent 353 * 354 * This function is called when the caller is about to add or 355 * remove sysfs_dirent under @parent_sd. This function acquires 356 * sysfs_mutex, grabs inode for @parent_sd if available and lock 357 * i_mutex of it. @acxt is used to keep and pass context to 358 * other addrm functions. 359 * 360 * LOCKING: 361 * Kernel thread context (may sleep). sysfs_mutex is locked on 362 * return. i_mutex of parent inode is locked on return if 363 * available. 364 */ 365 void sysfs_addrm_start(struct sysfs_addrm_cxt *acxt, 366 struct sysfs_dirent *parent_sd) 367 { 368 struct inode *inode; 369 370 memset(acxt, 0, sizeof(*acxt)); 371 acxt->parent_sd = parent_sd; 372 373 /* Lookup parent inode. inode initialization and I_NEW 374 * clearing are protected by sysfs_mutex. By grabbing it and 375 * looking up with _nowait variant, inode state can be 376 * determined reliably. 377 */ 378 mutex_lock(&sysfs_mutex); 379 380 inode = ilookup5_nowait(sysfs_sb, parent_sd->s_ino, sysfs_ilookup_test, 381 parent_sd); 382 383 if (inode && !(inode->i_state & I_NEW)) { 384 /* parent inode available */ 385 acxt->parent_inode = inode; 386 387 /* sysfs_mutex is below i_mutex in lock hierarchy. 388 * First, trylock i_mutex. If fails, unlock 389 * sysfs_mutex and lock them in order. 390 */ 391 if (!mutex_trylock(&inode->i_mutex)) { 392 mutex_unlock(&sysfs_mutex); 393 mutex_lock(&inode->i_mutex); 394 mutex_lock(&sysfs_mutex); 395 } 396 } else 397 iput(inode); 398 } 399 400 /** 401 * __sysfs_add_one - add sysfs_dirent to parent without warning 402 * @acxt: addrm context to use 403 * @sd: sysfs_dirent to be added 404 * 405 * Get @acxt->parent_sd and set sd->s_parent to it and increment 406 * nlink of parent inode if @sd is a directory and link into the 407 * children list of the parent. 408 * 409 * This function should be called between calls to 410 * sysfs_addrm_start() and sysfs_addrm_finish() and should be 411 * passed the same @acxt as passed to sysfs_addrm_start(). 412 * 413 * LOCKING: 414 * Determined by sysfs_addrm_start(). 415 * 416 * RETURNS: 417 * 0 on success, -EEXIST if entry with the given name already 418 * exists. 419 */ 420 int __sysfs_add_one(struct sysfs_addrm_cxt *acxt, struct sysfs_dirent *sd) 421 { 422 if (sysfs_find_dirent(acxt->parent_sd, sd->s_name)) 423 return -EEXIST; 424 425 sd->s_parent = sysfs_get(acxt->parent_sd); 426 427 if (sysfs_type(sd) == SYSFS_DIR && acxt->parent_inode) 428 inc_nlink(acxt->parent_inode); 429 430 acxt->cnt++; 431 432 sysfs_link_sibling(sd); 433 434 return 0; 435 } 436 437 /** 438 * sysfs_add_one - add sysfs_dirent to parent 439 * @acxt: addrm context to use 440 * @sd: sysfs_dirent to be added 441 * 442 * Get @acxt->parent_sd and set sd->s_parent to it and increment 443 * nlink of parent inode if @sd is a directory and link into the 444 * children list of the parent. 445 * 446 * This function should be called between calls to 447 * sysfs_addrm_start() and sysfs_addrm_finish() and should be 448 * passed the same @acxt as passed to sysfs_addrm_start(). 449 * 450 * LOCKING: 451 * Determined by sysfs_addrm_start(). 452 * 453 * RETURNS: 454 * 0 on success, -EEXIST if entry with the given name already 455 * exists. 456 */ 457 int sysfs_add_one(struct sysfs_addrm_cxt *acxt, struct sysfs_dirent *sd) 458 { 459 int ret; 460 461 ret = __sysfs_add_one(acxt, sd); 462 if (ret == -EEXIST) { 463 printk(KERN_WARNING "sysfs: duplicate filename '%s' " 464 "can not be created\n", sd->s_name); 465 WARN_ON(1); 466 } 467 return ret; 468 } 469 470 /** 471 * sysfs_remove_one - remove sysfs_dirent from parent 472 * @acxt: addrm context to use 473 * @sd: sysfs_dirent to be removed 474 * 475 * Mark @sd removed and drop nlink of parent inode if @sd is a 476 * directory. @sd is unlinked from the children list. 477 * 478 * This function should be called between calls to 479 * sysfs_addrm_start() and sysfs_addrm_finish() and should be 480 * passed the same @acxt as passed to sysfs_addrm_start(). 481 * 482 * LOCKING: 483 * Determined by sysfs_addrm_start(). 484 */ 485 void sysfs_remove_one(struct sysfs_addrm_cxt *acxt, struct sysfs_dirent *sd) 486 { 487 BUG_ON(sd->s_flags & SYSFS_FLAG_REMOVED); 488 489 sysfs_unlink_sibling(sd); 490 491 sd->s_flags |= SYSFS_FLAG_REMOVED; 492 sd->s_sibling = acxt->removed; 493 acxt->removed = sd; 494 495 if (sysfs_type(sd) == SYSFS_DIR && acxt->parent_inode) 496 drop_nlink(acxt->parent_inode); 497 498 acxt->cnt++; 499 } 500 501 /** 502 * sysfs_drop_dentry - drop dentry for the specified sysfs_dirent 503 * @sd: target sysfs_dirent 504 * 505 * Drop dentry for @sd. @sd must have been unlinked from its 506 * parent on entry to this function such that it can't be looked 507 * up anymore. 508 */ 509 static void sysfs_drop_dentry(struct sysfs_dirent *sd) 510 { 511 struct inode *inode; 512 struct dentry *dentry; 513 514 inode = ilookup(sysfs_sb, sd->s_ino); 515 if (!inode) 516 return; 517 518 /* Drop any existing dentries associated with sd. 519 * 520 * For the dentry to be properly freed we need to grab a 521 * reference to the dentry under the dcache lock, unhash it, 522 * and then put it. The playing with the dentry count allows 523 * dput to immediately free the dentry if it is not in use. 524 */ 525 repeat: 526 spin_lock(&dcache_lock); 527 list_for_each_entry(dentry, &inode->i_dentry, d_alias) { 528 if (d_unhashed(dentry)) 529 continue; 530 dget_locked(dentry); 531 spin_lock(&dentry->d_lock); 532 __d_drop(dentry); 533 spin_unlock(&dentry->d_lock); 534 spin_unlock(&dcache_lock); 535 dput(dentry); 536 goto repeat; 537 } 538 spin_unlock(&dcache_lock); 539 540 /* adjust nlink and update timestamp */ 541 mutex_lock(&inode->i_mutex); 542 543 inode->i_ctime = CURRENT_TIME; 544 drop_nlink(inode); 545 if (sysfs_type(sd) == SYSFS_DIR) 546 drop_nlink(inode); 547 548 mutex_unlock(&inode->i_mutex); 549 550 iput(inode); 551 } 552 553 /** 554 * sysfs_addrm_finish - finish up sysfs_dirent add/remove 555 * @acxt: addrm context to finish up 556 * 557 * Finish up sysfs_dirent add/remove. Resources acquired by 558 * sysfs_addrm_start() are released and removed sysfs_dirents are 559 * cleaned up. Timestamps on the parent inode are updated. 560 * 561 * LOCKING: 562 * All mutexes acquired by sysfs_addrm_start() are released. 563 */ 564 void sysfs_addrm_finish(struct sysfs_addrm_cxt *acxt) 565 { 566 /* release resources acquired by sysfs_addrm_start() */ 567 mutex_unlock(&sysfs_mutex); 568 if (acxt->parent_inode) { 569 struct inode *inode = acxt->parent_inode; 570 571 /* if added/removed, update timestamps on the parent */ 572 if (acxt->cnt) 573 inode->i_ctime = inode->i_mtime = CURRENT_TIME; 574 575 mutex_unlock(&inode->i_mutex); 576 iput(inode); 577 } 578 579 /* kill removed sysfs_dirents */ 580 while (acxt->removed) { 581 struct sysfs_dirent *sd = acxt->removed; 582 583 acxt->removed = sd->s_sibling; 584 sd->s_sibling = NULL; 585 586 sysfs_drop_dentry(sd); 587 sysfs_deactivate(sd); 588 sysfs_put(sd); 589 } 590 } 591 592 /** 593 * sysfs_find_dirent - find sysfs_dirent with the given name 594 * @parent_sd: sysfs_dirent to search under 595 * @name: name to look for 596 * 597 * Look for sysfs_dirent with name @name under @parent_sd. 598 * 599 * LOCKING: 600 * mutex_lock(sysfs_mutex) 601 * 602 * RETURNS: 603 * Pointer to sysfs_dirent if found, NULL if not. 604 */ 605 struct sysfs_dirent *sysfs_find_dirent(struct sysfs_dirent *parent_sd, 606 const unsigned char *name) 607 { 608 struct sysfs_dirent *sd; 609 610 for (sd = parent_sd->s_dir.children; sd; sd = sd->s_sibling) 611 if (!strcmp(sd->s_name, name)) 612 return sd; 613 return NULL; 614 } 615 616 /** 617 * sysfs_get_dirent - find and get sysfs_dirent with the given name 618 * @parent_sd: sysfs_dirent to search under 619 * @name: name to look for 620 * 621 * Look for sysfs_dirent with name @name under @parent_sd and get 622 * it if found. 623 * 624 * LOCKING: 625 * Kernel thread context (may sleep). Grabs sysfs_mutex. 626 * 627 * RETURNS: 628 * Pointer to sysfs_dirent if found, NULL if not. 629 */ 630 struct sysfs_dirent *sysfs_get_dirent(struct sysfs_dirent *parent_sd, 631 const unsigned char *name) 632 { 633 struct sysfs_dirent *sd; 634 635 mutex_lock(&sysfs_mutex); 636 sd = sysfs_find_dirent(parent_sd, name); 637 sysfs_get(sd); 638 mutex_unlock(&sysfs_mutex); 639 640 return sd; 641 } 642 643 static int create_dir(struct kobject *kobj, struct sysfs_dirent *parent_sd, 644 const char *name, struct sysfs_dirent **p_sd) 645 { 646 umode_t mode = S_IFDIR| S_IRWXU | S_IRUGO | S_IXUGO; 647 struct sysfs_addrm_cxt acxt; 648 struct sysfs_dirent *sd; 649 int rc; 650 651 /* allocate */ 652 sd = sysfs_new_dirent(name, mode, SYSFS_DIR); 653 if (!sd) 654 return -ENOMEM; 655 sd->s_dir.kobj = kobj; 656 657 /* link in */ 658 sysfs_addrm_start(&acxt, parent_sd); 659 rc = sysfs_add_one(&acxt, sd); 660 sysfs_addrm_finish(&acxt); 661 662 if (rc == 0) 663 *p_sd = sd; 664 else 665 sysfs_put(sd); 666 667 return rc; 668 } 669 670 int sysfs_create_subdir(struct kobject *kobj, const char *name, 671 struct sysfs_dirent **p_sd) 672 { 673 return create_dir(kobj, kobj->sd, name, p_sd); 674 } 675 676 /** 677 * sysfs_create_dir - create a directory for an object. 678 * @kobj: object we're creating directory for. 679 */ 680 int sysfs_create_dir(struct kobject * kobj) 681 { 682 struct sysfs_dirent *parent_sd, *sd; 683 int error = 0; 684 685 BUG_ON(!kobj); 686 687 if (kobj->parent) 688 parent_sd = kobj->parent->sd; 689 else 690 parent_sd = &sysfs_root; 691 692 error = create_dir(kobj, parent_sd, kobject_name(kobj), &sd); 693 if (!error) 694 kobj->sd = sd; 695 return error; 696 } 697 698 static struct dentry * sysfs_lookup(struct inode *dir, struct dentry *dentry, 699 struct nameidata *nd) 700 { 701 struct dentry *ret = NULL; 702 struct sysfs_dirent *parent_sd = dentry->d_parent->d_fsdata; 703 struct sysfs_dirent *sd; 704 struct inode *inode; 705 706 mutex_lock(&sysfs_mutex); 707 708 sd = sysfs_find_dirent(parent_sd, dentry->d_name.name); 709 710 /* no such entry */ 711 if (!sd) { 712 ret = ERR_PTR(-ENOENT); 713 goto out_unlock; 714 } 715 716 /* attach dentry and inode */ 717 inode = sysfs_get_inode(sd); 718 if (!inode) { 719 ret = ERR_PTR(-ENOMEM); 720 goto out_unlock; 721 } 722 723 /* instantiate and hash dentry */ 724 dentry->d_op = &sysfs_dentry_ops; 725 dentry->d_fsdata = sysfs_get(sd); 726 d_instantiate(dentry, inode); 727 d_rehash(dentry); 728 729 out_unlock: 730 mutex_unlock(&sysfs_mutex); 731 return ret; 732 } 733 734 const struct inode_operations sysfs_dir_inode_operations = { 735 .lookup = sysfs_lookup, 736 .setattr = sysfs_setattr, 737 }; 738 739 static void remove_dir(struct sysfs_dirent *sd) 740 { 741 struct sysfs_addrm_cxt acxt; 742 743 sysfs_addrm_start(&acxt, sd->s_parent); 744 sysfs_remove_one(&acxt, sd); 745 sysfs_addrm_finish(&acxt); 746 } 747 748 void sysfs_remove_subdir(struct sysfs_dirent *sd) 749 { 750 remove_dir(sd); 751 } 752 753 754 static void __sysfs_remove_dir(struct sysfs_dirent *dir_sd) 755 { 756 struct sysfs_addrm_cxt acxt; 757 struct sysfs_dirent **pos; 758 759 if (!dir_sd) 760 return; 761 762 pr_debug("sysfs %s: removing dir\n", dir_sd->s_name); 763 sysfs_addrm_start(&acxt, dir_sd); 764 pos = &dir_sd->s_dir.children; 765 while (*pos) { 766 struct sysfs_dirent *sd = *pos; 767 768 if (sysfs_type(sd) != SYSFS_DIR) 769 sysfs_remove_one(&acxt, sd); 770 else 771 pos = &(*pos)->s_sibling; 772 } 773 sysfs_addrm_finish(&acxt); 774 775 remove_dir(dir_sd); 776 } 777 778 /** 779 * sysfs_remove_dir - remove an object's directory. 780 * @kobj: object. 781 * 782 * The only thing special about this is that we remove any files in 783 * the directory before we remove the directory, and we've inlined 784 * what used to be sysfs_rmdir() below, instead of calling separately. 785 */ 786 787 void sysfs_remove_dir(struct kobject * kobj) 788 { 789 struct sysfs_dirent *sd = kobj->sd; 790 791 spin_lock(&sysfs_assoc_lock); 792 kobj->sd = NULL; 793 spin_unlock(&sysfs_assoc_lock); 794 795 __sysfs_remove_dir(sd); 796 } 797 798 int sysfs_rename_dir(struct kobject * kobj, const char *new_name) 799 { 800 struct sysfs_dirent *sd = kobj->sd; 801 struct dentry *parent = NULL; 802 struct dentry *old_dentry = NULL, *new_dentry = NULL; 803 const char *dup_name = NULL; 804 int error; 805 806 mutex_lock(&sysfs_rename_mutex); 807 808 error = 0; 809 if (strcmp(sd->s_name, new_name) == 0) 810 goto out; /* nothing to rename */ 811 812 /* get the original dentry */ 813 old_dentry = sysfs_get_dentry(sd); 814 if (IS_ERR(old_dentry)) { 815 error = PTR_ERR(old_dentry); 816 old_dentry = NULL; 817 goto out; 818 } 819 820 parent = old_dentry->d_parent; 821 822 /* lock parent and get dentry for new name */ 823 mutex_lock(&parent->d_inode->i_mutex); 824 mutex_lock(&sysfs_mutex); 825 826 error = -EEXIST; 827 if (sysfs_find_dirent(sd->s_parent, new_name)) 828 goto out_unlock; 829 830 error = -ENOMEM; 831 new_dentry = d_alloc_name(parent, new_name); 832 if (!new_dentry) 833 goto out_unlock; 834 835 /* rename kobject and sysfs_dirent */ 836 error = -ENOMEM; 837 new_name = dup_name = kstrdup(new_name, GFP_KERNEL); 838 if (!new_name) 839 goto out_unlock; 840 841 error = kobject_set_name(kobj, "%s", new_name); 842 if (error) 843 goto out_unlock; 844 845 dup_name = sd->s_name; 846 sd->s_name = new_name; 847 848 /* rename */ 849 d_add(new_dentry, NULL); 850 d_move(old_dentry, new_dentry); 851 852 error = 0; 853 out_unlock: 854 mutex_unlock(&sysfs_mutex); 855 mutex_unlock(&parent->d_inode->i_mutex); 856 kfree(dup_name); 857 dput(old_dentry); 858 dput(new_dentry); 859 out: 860 mutex_unlock(&sysfs_rename_mutex); 861 return error; 862 } 863 864 int sysfs_move_dir(struct kobject *kobj, struct kobject *new_parent_kobj) 865 { 866 struct sysfs_dirent *sd = kobj->sd; 867 struct sysfs_dirent *new_parent_sd; 868 struct dentry *old_parent, *new_parent = NULL; 869 struct dentry *old_dentry = NULL, *new_dentry = NULL; 870 int error; 871 872 mutex_lock(&sysfs_rename_mutex); 873 BUG_ON(!sd->s_parent); 874 new_parent_sd = new_parent_kobj->sd ? new_parent_kobj->sd : &sysfs_root; 875 876 error = 0; 877 if (sd->s_parent == new_parent_sd) 878 goto out; /* nothing to move */ 879 880 /* get dentries */ 881 old_dentry = sysfs_get_dentry(sd); 882 if (IS_ERR(old_dentry)) { 883 error = PTR_ERR(old_dentry); 884 old_dentry = NULL; 885 goto out; 886 } 887 old_parent = old_dentry->d_parent; 888 889 new_parent = sysfs_get_dentry(new_parent_sd); 890 if (IS_ERR(new_parent)) { 891 error = PTR_ERR(new_parent); 892 new_parent = NULL; 893 goto out; 894 } 895 896 again: 897 mutex_lock(&old_parent->d_inode->i_mutex); 898 if (!mutex_trylock(&new_parent->d_inode->i_mutex)) { 899 mutex_unlock(&old_parent->d_inode->i_mutex); 900 goto again; 901 } 902 mutex_lock(&sysfs_mutex); 903 904 error = -EEXIST; 905 if (sysfs_find_dirent(new_parent_sd, sd->s_name)) 906 goto out_unlock; 907 908 error = -ENOMEM; 909 new_dentry = d_alloc_name(new_parent, sd->s_name); 910 if (!new_dentry) 911 goto out_unlock; 912 913 error = 0; 914 d_add(new_dentry, NULL); 915 d_move(old_dentry, new_dentry); 916 917 /* Remove from old parent's list and insert into new parent's list. */ 918 sysfs_unlink_sibling(sd); 919 sysfs_get(new_parent_sd); 920 sysfs_put(sd->s_parent); 921 sd->s_parent = new_parent_sd; 922 sysfs_link_sibling(sd); 923 924 out_unlock: 925 mutex_unlock(&sysfs_mutex); 926 mutex_unlock(&new_parent->d_inode->i_mutex); 927 mutex_unlock(&old_parent->d_inode->i_mutex); 928 out: 929 dput(new_parent); 930 dput(old_dentry); 931 dput(new_dentry); 932 mutex_unlock(&sysfs_rename_mutex); 933 return error; 934 } 935 936 /* Relationship between s_mode and the DT_xxx types */ 937 static inline unsigned char dt_type(struct sysfs_dirent *sd) 938 { 939 return (sd->s_mode >> 12) & 15; 940 } 941 942 static int sysfs_readdir(struct file * filp, void * dirent, filldir_t filldir) 943 { 944 struct dentry *dentry = filp->f_path.dentry; 945 struct sysfs_dirent * parent_sd = dentry->d_fsdata; 946 struct sysfs_dirent *pos; 947 ino_t ino; 948 949 if (filp->f_pos == 0) { 950 ino = parent_sd->s_ino; 951 if (filldir(dirent, ".", 1, filp->f_pos, ino, DT_DIR) == 0) 952 filp->f_pos++; 953 } 954 if (filp->f_pos == 1) { 955 if (parent_sd->s_parent) 956 ino = parent_sd->s_parent->s_ino; 957 else 958 ino = parent_sd->s_ino; 959 if (filldir(dirent, "..", 2, filp->f_pos, ino, DT_DIR) == 0) 960 filp->f_pos++; 961 } 962 if ((filp->f_pos > 1) && (filp->f_pos < INT_MAX)) { 963 mutex_lock(&sysfs_mutex); 964 965 /* Skip the dentries we have already reported */ 966 pos = parent_sd->s_dir.children; 967 while (pos && (filp->f_pos > pos->s_ino)) 968 pos = pos->s_sibling; 969 970 for ( ; pos; pos = pos->s_sibling) { 971 const char * name; 972 int len; 973 974 name = pos->s_name; 975 len = strlen(name); 976 filp->f_pos = ino = pos->s_ino; 977 978 if (filldir(dirent, name, len, filp->f_pos, ino, 979 dt_type(pos)) < 0) 980 break; 981 } 982 if (!pos) 983 filp->f_pos = INT_MAX; 984 mutex_unlock(&sysfs_mutex); 985 } 986 return 0; 987 } 988 989 990 const struct file_operations sysfs_dir_operations = { 991 .read = generic_read_dir, 992 .readdir = sysfs_readdir, 993 }; 994