1 /* 2 * Copyright (C) Sistina Software, Inc. 1997-2003 All rights reserved. 3 * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved. 4 * 5 * This copyrighted material is made available to anyone wishing to use, 6 * modify, copy, or redistribute it subject to the terms and conditions 7 * of the GNU General Public License version 2. 8 */ 9 10 #include <linux/slab.h> 11 #include <linux/spinlock.h> 12 #include <linux/completion.h> 13 #include <linux/buffer_head.h> 14 #include <linux/fs.h> 15 #include <linux/gfs2_ondisk.h> 16 #include <linux/prefetch.h> 17 #include <linux/blkdev.h> 18 19 #include "gfs2.h" 20 #include "incore.h" 21 #include "glock.h" 22 #include "glops.h" 23 #include "lops.h" 24 #include "meta_io.h" 25 #include "quota.h" 26 #include "rgrp.h" 27 #include "super.h" 28 #include "trans.h" 29 #include "util.h" 30 #include "log.h" 31 #include "inode.h" 32 #include "trace_gfs2.h" 33 34 #define BFITNOENT ((u32)~0) 35 #define NO_BLOCK ((u64)~0) 36 37 #if BITS_PER_LONG == 32 38 #define LBITMASK (0x55555555UL) 39 #define LBITSKIP55 (0x55555555UL) 40 #define LBITSKIP00 (0x00000000UL) 41 #else 42 #define LBITMASK (0x5555555555555555UL) 43 #define LBITSKIP55 (0x5555555555555555UL) 44 #define LBITSKIP00 (0x0000000000000000UL) 45 #endif 46 47 /* 48 * These routines are used by the resource group routines (rgrp.c) 49 * to keep track of block allocation. Each block is represented by two 50 * bits. So, each byte represents GFS2_NBBY (i.e. 4) blocks. 51 * 52 * 0 = Free 53 * 1 = Used (not metadata) 54 * 2 = Unlinked (still in use) inode 55 * 3 = Used (metadata) 56 */ 57 58 static const char valid_change[16] = { 59 /* current */ 60 /* n */ 0, 1, 1, 1, 61 /* e */ 1, 0, 0, 0, 62 /* w */ 0, 0, 0, 1, 63 1, 0, 0, 0 64 }; 65 66 static u32 rgblk_search(struct gfs2_rgrpd *rgd, u32 goal, 67 unsigned char old_state, unsigned char new_state, 68 unsigned int *n); 69 70 /** 71 * gfs2_setbit - Set a bit in the bitmaps 72 * @buffer: the buffer that holds the bitmaps 73 * @buflen: the length (in bytes) of the buffer 74 * @block: the block to set 75 * @new_state: the new state of the block 76 * 77 */ 78 79 static inline void gfs2_setbit(struct gfs2_rgrpd *rgd, unsigned char *buf1, 80 unsigned char *buf2, unsigned int offset, 81 unsigned int buflen, u32 block, 82 unsigned char new_state) 83 { 84 unsigned char *byte1, *byte2, *end, cur_state; 85 const unsigned int bit = (block % GFS2_NBBY) * GFS2_BIT_SIZE; 86 87 byte1 = buf1 + offset + (block / GFS2_NBBY); 88 end = buf1 + offset + buflen; 89 90 BUG_ON(byte1 >= end); 91 92 cur_state = (*byte1 >> bit) & GFS2_BIT_MASK; 93 94 if (unlikely(!valid_change[new_state * 4 + cur_state])) { 95 gfs2_consist_rgrpd(rgd); 96 return; 97 } 98 *byte1 ^= (cur_state ^ new_state) << bit; 99 100 if (buf2) { 101 byte2 = buf2 + offset + (block / GFS2_NBBY); 102 cur_state = (*byte2 >> bit) & GFS2_BIT_MASK; 103 *byte2 ^= (cur_state ^ new_state) << bit; 104 } 105 } 106 107 /** 108 * gfs2_testbit - test a bit in the bitmaps 109 * @buffer: the buffer that holds the bitmaps 110 * @buflen: the length (in bytes) of the buffer 111 * @block: the block to read 112 * 113 */ 114 115 static inline unsigned char gfs2_testbit(struct gfs2_rgrpd *rgd, 116 const unsigned char *buffer, 117 unsigned int buflen, u32 block) 118 { 119 const unsigned char *byte, *end; 120 unsigned char cur_state; 121 unsigned int bit; 122 123 byte = buffer + (block / GFS2_NBBY); 124 bit = (block % GFS2_NBBY) * GFS2_BIT_SIZE; 125 end = buffer + buflen; 126 127 gfs2_assert(rgd->rd_sbd, byte < end); 128 129 cur_state = (*byte >> bit) & GFS2_BIT_MASK; 130 131 return cur_state; 132 } 133 134 /** 135 * gfs2_bit_search 136 * @ptr: Pointer to bitmap data 137 * @mask: Mask to use (normally 0x55555.... but adjusted for search start) 138 * @state: The state we are searching for 139 * 140 * We xor the bitmap data with a patter which is the bitwise opposite 141 * of what we are looking for, this gives rise to a pattern of ones 142 * wherever there is a match. Since we have two bits per entry, we 143 * take this pattern, shift it down by one place and then and it with 144 * the original. All the even bit positions (0,2,4, etc) then represent 145 * successful matches, so we mask with 0x55555..... to remove the unwanted 146 * odd bit positions. 147 * 148 * This allows searching of a whole u64 at once (32 blocks) with a 149 * single test (on 64 bit arches). 150 */ 151 152 static inline u64 gfs2_bit_search(const __le64 *ptr, u64 mask, u8 state) 153 { 154 u64 tmp; 155 static const u64 search[] = { 156 [0] = 0xffffffffffffffffULL, 157 [1] = 0xaaaaaaaaaaaaaaaaULL, 158 [2] = 0x5555555555555555ULL, 159 [3] = 0x0000000000000000ULL, 160 }; 161 tmp = le64_to_cpu(*ptr) ^ search[state]; 162 tmp &= (tmp >> 1); 163 tmp &= mask; 164 return tmp; 165 } 166 167 /** 168 * gfs2_bitfit - Search an rgrp's bitmap buffer to find a bit-pair representing 169 * a block in a given allocation state. 170 * @buffer: the buffer that holds the bitmaps 171 * @len: the length (in bytes) of the buffer 172 * @goal: start search at this block's bit-pair (within @buffer) 173 * @state: GFS2_BLKST_XXX the state of the block we're looking for. 174 * 175 * Scope of @goal and returned block number is only within this bitmap buffer, 176 * not entire rgrp or filesystem. @buffer will be offset from the actual 177 * beginning of a bitmap block buffer, skipping any header structures, but 178 * headers are always a multiple of 64 bits long so that the buffer is 179 * always aligned to a 64 bit boundary. 180 * 181 * The size of the buffer is in bytes, but is it assumed that it is 182 * always ok to read a complete multiple of 64 bits at the end 183 * of the block in case the end is no aligned to a natural boundary. 184 * 185 * Return: the block number (bitmap buffer scope) that was found 186 */ 187 188 static u32 gfs2_bitfit(const u8 *buf, const unsigned int len, 189 u32 goal, u8 state) 190 { 191 u32 spoint = (goal << 1) & ((8*sizeof(u64)) - 1); 192 const __le64 *ptr = ((__le64 *)buf) + (goal >> 5); 193 const __le64 *end = (__le64 *)(buf + ALIGN(len, sizeof(u64))); 194 u64 tmp; 195 u64 mask = 0x5555555555555555ULL; 196 u32 bit; 197 198 BUG_ON(state > 3); 199 200 /* Mask off bits we don't care about at the start of the search */ 201 mask <<= spoint; 202 tmp = gfs2_bit_search(ptr, mask, state); 203 ptr++; 204 while(tmp == 0 && ptr < end) { 205 tmp = gfs2_bit_search(ptr, 0x5555555555555555ULL, state); 206 ptr++; 207 } 208 /* Mask off any bits which are more than len bytes from the start */ 209 if (ptr == end && (len & (sizeof(u64) - 1))) 210 tmp &= (((u64)~0) >> (64 - 8*(len & (sizeof(u64) - 1)))); 211 /* Didn't find anything, so return */ 212 if (tmp == 0) 213 return BFITNOENT; 214 ptr--; 215 bit = __ffs64(tmp); 216 bit /= 2; /* two bits per entry in the bitmap */ 217 return (((const unsigned char *)ptr - buf) * GFS2_NBBY) + bit; 218 } 219 220 /** 221 * gfs2_bitcount - count the number of bits in a certain state 222 * @buffer: the buffer that holds the bitmaps 223 * @buflen: the length (in bytes) of the buffer 224 * @state: the state of the block we're looking for 225 * 226 * Returns: The number of bits 227 */ 228 229 static u32 gfs2_bitcount(struct gfs2_rgrpd *rgd, const u8 *buffer, 230 unsigned int buflen, u8 state) 231 { 232 const u8 *byte = buffer; 233 const u8 *end = buffer + buflen; 234 const u8 state1 = state << 2; 235 const u8 state2 = state << 4; 236 const u8 state3 = state << 6; 237 u32 count = 0; 238 239 for (; byte < end; byte++) { 240 if (((*byte) & 0x03) == state) 241 count++; 242 if (((*byte) & 0x0C) == state1) 243 count++; 244 if (((*byte) & 0x30) == state2) 245 count++; 246 if (((*byte) & 0xC0) == state3) 247 count++; 248 } 249 250 return count; 251 } 252 253 /** 254 * gfs2_rgrp_verify - Verify that a resource group is consistent 255 * @sdp: the filesystem 256 * @rgd: the rgrp 257 * 258 */ 259 260 void gfs2_rgrp_verify(struct gfs2_rgrpd *rgd) 261 { 262 struct gfs2_sbd *sdp = rgd->rd_sbd; 263 struct gfs2_bitmap *bi = NULL; 264 u32 length = rgd->rd_length; 265 u32 count[4], tmp; 266 int buf, x; 267 268 memset(count, 0, 4 * sizeof(u32)); 269 270 /* Count # blocks in each of 4 possible allocation states */ 271 for (buf = 0; buf < length; buf++) { 272 bi = rgd->rd_bits + buf; 273 for (x = 0; x < 4; x++) 274 count[x] += gfs2_bitcount(rgd, 275 bi->bi_bh->b_data + 276 bi->bi_offset, 277 bi->bi_len, x); 278 } 279 280 if (count[0] != rgd->rd_free) { 281 if (gfs2_consist_rgrpd(rgd)) 282 fs_err(sdp, "free data mismatch: %u != %u\n", 283 count[0], rgd->rd_free); 284 return; 285 } 286 287 tmp = rgd->rd_data - rgd->rd_free - rgd->rd_dinodes; 288 if (count[1] != tmp) { 289 if (gfs2_consist_rgrpd(rgd)) 290 fs_err(sdp, "used data mismatch: %u != %u\n", 291 count[1], tmp); 292 return; 293 } 294 295 if (count[2] + count[3] != rgd->rd_dinodes) { 296 if (gfs2_consist_rgrpd(rgd)) 297 fs_err(sdp, "used metadata mismatch: %u != %u\n", 298 count[2] + count[3], rgd->rd_dinodes); 299 return; 300 } 301 } 302 303 static inline int rgrp_contains_block(struct gfs2_rgrpd *rgd, u64 block) 304 { 305 u64 first = rgd->rd_data0; 306 u64 last = first + rgd->rd_data; 307 return first <= block && block < last; 308 } 309 310 /** 311 * gfs2_blk2rgrpd - Find resource group for a given data/meta block number 312 * @sdp: The GFS2 superblock 313 * @n: The data block number 314 * 315 * Returns: The resource group, or NULL if not found 316 */ 317 318 struct gfs2_rgrpd *gfs2_blk2rgrpd(struct gfs2_sbd *sdp, u64 blk) 319 { 320 struct gfs2_rgrpd *rgd; 321 322 spin_lock(&sdp->sd_rindex_spin); 323 324 list_for_each_entry(rgd, &sdp->sd_rindex_mru_list, rd_list_mru) { 325 if (rgrp_contains_block(rgd, blk)) { 326 list_move(&rgd->rd_list_mru, &sdp->sd_rindex_mru_list); 327 spin_unlock(&sdp->sd_rindex_spin); 328 return rgd; 329 } 330 } 331 332 spin_unlock(&sdp->sd_rindex_spin); 333 334 return NULL; 335 } 336 337 /** 338 * gfs2_rgrpd_get_first - get the first Resource Group in the filesystem 339 * @sdp: The GFS2 superblock 340 * 341 * Returns: The first rgrp in the filesystem 342 */ 343 344 struct gfs2_rgrpd *gfs2_rgrpd_get_first(struct gfs2_sbd *sdp) 345 { 346 gfs2_assert(sdp, !list_empty(&sdp->sd_rindex_list)); 347 return list_entry(sdp->sd_rindex_list.next, struct gfs2_rgrpd, rd_list); 348 } 349 350 /** 351 * gfs2_rgrpd_get_next - get the next RG 352 * @rgd: A RG 353 * 354 * Returns: The next rgrp 355 */ 356 357 struct gfs2_rgrpd *gfs2_rgrpd_get_next(struct gfs2_rgrpd *rgd) 358 { 359 if (rgd->rd_list.next == &rgd->rd_sbd->sd_rindex_list) 360 return NULL; 361 return list_entry(rgd->rd_list.next, struct gfs2_rgrpd, rd_list); 362 } 363 364 static void clear_rgrpdi(struct gfs2_sbd *sdp) 365 { 366 struct list_head *head; 367 struct gfs2_rgrpd *rgd; 368 struct gfs2_glock *gl; 369 370 spin_lock(&sdp->sd_rindex_spin); 371 sdp->sd_rindex_forward = NULL; 372 spin_unlock(&sdp->sd_rindex_spin); 373 374 head = &sdp->sd_rindex_list; 375 while (!list_empty(head)) { 376 rgd = list_entry(head->next, struct gfs2_rgrpd, rd_list); 377 gl = rgd->rd_gl; 378 379 list_del(&rgd->rd_list); 380 list_del(&rgd->rd_list_mru); 381 382 if (gl) { 383 gl->gl_object = NULL; 384 gfs2_glock_put(gl); 385 } 386 387 kfree(rgd->rd_bits); 388 kmem_cache_free(gfs2_rgrpd_cachep, rgd); 389 } 390 } 391 392 void gfs2_clear_rgrpd(struct gfs2_sbd *sdp) 393 { 394 mutex_lock(&sdp->sd_rindex_mutex); 395 clear_rgrpdi(sdp); 396 mutex_unlock(&sdp->sd_rindex_mutex); 397 } 398 399 static void gfs2_rindex_print(const struct gfs2_rgrpd *rgd) 400 { 401 printk(KERN_INFO " ri_addr = %llu\n", (unsigned long long)rgd->rd_addr); 402 printk(KERN_INFO " ri_length = %u\n", rgd->rd_length); 403 printk(KERN_INFO " ri_data0 = %llu\n", (unsigned long long)rgd->rd_data0); 404 printk(KERN_INFO " ri_data = %u\n", rgd->rd_data); 405 printk(KERN_INFO " ri_bitbytes = %u\n", rgd->rd_bitbytes); 406 } 407 408 /** 409 * gfs2_compute_bitstructs - Compute the bitmap sizes 410 * @rgd: The resource group descriptor 411 * 412 * Calculates bitmap descriptors, one for each block that contains bitmap data 413 * 414 * Returns: errno 415 */ 416 417 static int compute_bitstructs(struct gfs2_rgrpd *rgd) 418 { 419 struct gfs2_sbd *sdp = rgd->rd_sbd; 420 struct gfs2_bitmap *bi; 421 u32 length = rgd->rd_length; /* # blocks in hdr & bitmap */ 422 u32 bytes_left, bytes; 423 int x; 424 425 if (!length) 426 return -EINVAL; 427 428 rgd->rd_bits = kcalloc(length, sizeof(struct gfs2_bitmap), GFP_NOFS); 429 if (!rgd->rd_bits) 430 return -ENOMEM; 431 432 bytes_left = rgd->rd_bitbytes; 433 434 for (x = 0; x < length; x++) { 435 bi = rgd->rd_bits + x; 436 437 bi->bi_flags = 0; 438 /* small rgrp; bitmap stored completely in header block */ 439 if (length == 1) { 440 bytes = bytes_left; 441 bi->bi_offset = sizeof(struct gfs2_rgrp); 442 bi->bi_start = 0; 443 bi->bi_len = bytes; 444 /* header block */ 445 } else if (x == 0) { 446 bytes = sdp->sd_sb.sb_bsize - sizeof(struct gfs2_rgrp); 447 bi->bi_offset = sizeof(struct gfs2_rgrp); 448 bi->bi_start = 0; 449 bi->bi_len = bytes; 450 /* last block */ 451 } else if (x + 1 == length) { 452 bytes = bytes_left; 453 bi->bi_offset = sizeof(struct gfs2_meta_header); 454 bi->bi_start = rgd->rd_bitbytes - bytes_left; 455 bi->bi_len = bytes; 456 /* other blocks */ 457 } else { 458 bytes = sdp->sd_sb.sb_bsize - 459 sizeof(struct gfs2_meta_header); 460 bi->bi_offset = sizeof(struct gfs2_meta_header); 461 bi->bi_start = rgd->rd_bitbytes - bytes_left; 462 bi->bi_len = bytes; 463 } 464 465 bytes_left -= bytes; 466 } 467 468 if (bytes_left) { 469 gfs2_consist_rgrpd(rgd); 470 return -EIO; 471 } 472 bi = rgd->rd_bits + (length - 1); 473 if ((bi->bi_start + bi->bi_len) * GFS2_NBBY != rgd->rd_data) { 474 if (gfs2_consist_rgrpd(rgd)) { 475 gfs2_rindex_print(rgd); 476 fs_err(sdp, "start=%u len=%u offset=%u\n", 477 bi->bi_start, bi->bi_len, bi->bi_offset); 478 } 479 return -EIO; 480 } 481 482 return 0; 483 } 484 485 /** 486 * gfs2_ri_total - Total up the file system space, according to the rindex. 487 * 488 */ 489 u64 gfs2_ri_total(struct gfs2_sbd *sdp) 490 { 491 u64 total_data = 0; 492 struct inode *inode = sdp->sd_rindex; 493 struct gfs2_inode *ip = GFS2_I(inode); 494 char buf[sizeof(struct gfs2_rindex)]; 495 struct file_ra_state ra_state; 496 int error, rgrps; 497 498 mutex_lock(&sdp->sd_rindex_mutex); 499 file_ra_state_init(&ra_state, inode->i_mapping); 500 for (rgrps = 0;; rgrps++) { 501 loff_t pos = rgrps * sizeof(struct gfs2_rindex); 502 503 if (pos + sizeof(struct gfs2_rindex) >= i_size_read(inode)) 504 break; 505 error = gfs2_internal_read(ip, &ra_state, buf, &pos, 506 sizeof(struct gfs2_rindex)); 507 if (error != sizeof(struct gfs2_rindex)) 508 break; 509 total_data += be32_to_cpu(((struct gfs2_rindex *)buf)->ri_data); 510 } 511 mutex_unlock(&sdp->sd_rindex_mutex); 512 return total_data; 513 } 514 515 static void gfs2_rindex_in(struct gfs2_rgrpd *rgd, const void *buf) 516 { 517 const struct gfs2_rindex *str = buf; 518 519 rgd->rd_addr = be64_to_cpu(str->ri_addr); 520 rgd->rd_length = be32_to_cpu(str->ri_length); 521 rgd->rd_data0 = be64_to_cpu(str->ri_data0); 522 rgd->rd_data = be32_to_cpu(str->ri_data); 523 rgd->rd_bitbytes = be32_to_cpu(str->ri_bitbytes); 524 } 525 526 /** 527 * read_rindex_entry - Pull in a new resource index entry from the disk 528 * @gl: The glock covering the rindex inode 529 * 530 * Returns: 0 on success, error code otherwise 531 */ 532 533 static int read_rindex_entry(struct gfs2_inode *ip, 534 struct file_ra_state *ra_state) 535 { 536 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 537 loff_t pos = sdp->sd_rgrps * sizeof(struct gfs2_rindex); 538 char buf[sizeof(struct gfs2_rindex)]; 539 int error; 540 struct gfs2_rgrpd *rgd; 541 542 error = gfs2_internal_read(ip, ra_state, buf, &pos, 543 sizeof(struct gfs2_rindex)); 544 if (!error) 545 return 0; 546 if (error != sizeof(struct gfs2_rindex)) { 547 if (error > 0) 548 error = -EIO; 549 return error; 550 } 551 552 rgd = kmem_cache_zalloc(gfs2_rgrpd_cachep, GFP_NOFS); 553 error = -ENOMEM; 554 if (!rgd) 555 return error; 556 557 mutex_init(&rgd->rd_mutex); 558 lops_init_le(&rgd->rd_le, &gfs2_rg_lops); 559 rgd->rd_sbd = sdp; 560 561 list_add_tail(&rgd->rd_list, &sdp->sd_rindex_list); 562 list_add_tail(&rgd->rd_list_mru, &sdp->sd_rindex_mru_list); 563 564 gfs2_rindex_in(rgd, buf); 565 error = compute_bitstructs(rgd); 566 if (error) 567 return error; 568 569 error = gfs2_glock_get(sdp, rgd->rd_addr, 570 &gfs2_rgrp_glops, CREATE, &rgd->rd_gl); 571 if (error) 572 return error; 573 574 rgd->rd_gl->gl_object = rgd; 575 rgd->rd_flags &= ~GFS2_RDF_UPTODATE; 576 return error; 577 } 578 579 /** 580 * gfs2_ri_update - Pull in a new resource index from the disk 581 * @ip: pointer to the rindex inode 582 * 583 * Returns: 0 on successful update, error code otherwise 584 */ 585 586 static int gfs2_ri_update(struct gfs2_inode *ip) 587 { 588 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 589 struct inode *inode = &ip->i_inode; 590 struct file_ra_state ra_state; 591 u64 rgrp_count = i_size_read(inode); 592 struct gfs2_rgrpd *rgd; 593 unsigned int max_data = 0; 594 int error; 595 596 do_div(rgrp_count, sizeof(struct gfs2_rindex)); 597 clear_rgrpdi(sdp); 598 599 file_ra_state_init(&ra_state, inode->i_mapping); 600 for (sdp->sd_rgrps = 0; sdp->sd_rgrps < rgrp_count; sdp->sd_rgrps++) { 601 error = read_rindex_entry(ip, &ra_state); 602 if (error) { 603 clear_rgrpdi(sdp); 604 return error; 605 } 606 } 607 608 list_for_each_entry(rgd, &sdp->sd_rindex_list, rd_list) 609 if (rgd->rd_data > max_data) 610 max_data = rgd->rd_data; 611 sdp->sd_max_rg_data = max_data; 612 sdp->sd_rindex_uptodate = 1; 613 return 0; 614 } 615 616 /** 617 * gfs2_ri_update_special - Pull in a new resource index from the disk 618 * 619 * This is a special version that's safe to call from gfs2_inplace_reserve_i. 620 * In this case we know that we don't have any resource groups in memory yet. 621 * 622 * @ip: pointer to the rindex inode 623 * 624 * Returns: 0 on successful update, error code otherwise 625 */ 626 static int gfs2_ri_update_special(struct gfs2_inode *ip) 627 { 628 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 629 struct inode *inode = &ip->i_inode; 630 struct file_ra_state ra_state; 631 struct gfs2_rgrpd *rgd; 632 unsigned int max_data = 0; 633 int error; 634 635 file_ra_state_init(&ra_state, inode->i_mapping); 636 for (sdp->sd_rgrps = 0;; sdp->sd_rgrps++) { 637 /* Ignore partials */ 638 if ((sdp->sd_rgrps + 1) * sizeof(struct gfs2_rindex) > 639 i_size_read(inode)) 640 break; 641 error = read_rindex_entry(ip, &ra_state); 642 if (error) { 643 clear_rgrpdi(sdp); 644 return error; 645 } 646 } 647 list_for_each_entry(rgd, &sdp->sd_rindex_list, rd_list) 648 if (rgd->rd_data > max_data) 649 max_data = rgd->rd_data; 650 sdp->sd_max_rg_data = max_data; 651 652 sdp->sd_rindex_uptodate = 1; 653 return 0; 654 } 655 656 /** 657 * gfs2_rindex_hold - Grab a lock on the rindex 658 * @sdp: The GFS2 superblock 659 * @ri_gh: the glock holder 660 * 661 * We grab a lock on the rindex inode to make sure that it doesn't 662 * change whilst we are performing an operation. We keep this lock 663 * for quite long periods of time compared to other locks. This 664 * doesn't matter, since it is shared and it is very, very rarely 665 * accessed in the exclusive mode (i.e. only when expanding the filesystem). 666 * 667 * This makes sure that we're using the latest copy of the resource index 668 * special file, which might have been updated if someone expanded the 669 * filesystem (via gfs2_grow utility), which adds new resource groups. 670 * 671 * Returns: 0 on success, error code otherwise 672 */ 673 674 int gfs2_rindex_hold(struct gfs2_sbd *sdp, struct gfs2_holder *ri_gh) 675 { 676 struct gfs2_inode *ip = GFS2_I(sdp->sd_rindex); 677 struct gfs2_glock *gl = ip->i_gl; 678 int error; 679 680 error = gfs2_glock_nq_init(gl, LM_ST_SHARED, 0, ri_gh); 681 if (error) 682 return error; 683 684 /* Read new copy from disk if we don't have the latest */ 685 if (!sdp->sd_rindex_uptodate) { 686 mutex_lock(&sdp->sd_rindex_mutex); 687 if (!sdp->sd_rindex_uptodate) { 688 error = gfs2_ri_update(ip); 689 if (error) 690 gfs2_glock_dq_uninit(ri_gh); 691 } 692 mutex_unlock(&sdp->sd_rindex_mutex); 693 } 694 695 return error; 696 } 697 698 static void gfs2_rgrp_in(struct gfs2_rgrpd *rgd, const void *buf) 699 { 700 const struct gfs2_rgrp *str = buf; 701 u32 rg_flags; 702 703 rg_flags = be32_to_cpu(str->rg_flags); 704 rg_flags &= ~GFS2_RDF_MASK; 705 rgd->rd_flags &= GFS2_RDF_MASK; 706 rgd->rd_flags |= rg_flags; 707 rgd->rd_free = be32_to_cpu(str->rg_free); 708 rgd->rd_dinodes = be32_to_cpu(str->rg_dinodes); 709 rgd->rd_igeneration = be64_to_cpu(str->rg_igeneration); 710 } 711 712 static void gfs2_rgrp_out(struct gfs2_rgrpd *rgd, void *buf) 713 { 714 struct gfs2_rgrp *str = buf; 715 716 str->rg_flags = cpu_to_be32(rgd->rd_flags & ~GFS2_RDF_MASK); 717 str->rg_free = cpu_to_be32(rgd->rd_free); 718 str->rg_dinodes = cpu_to_be32(rgd->rd_dinodes); 719 str->__pad = cpu_to_be32(0); 720 str->rg_igeneration = cpu_to_be64(rgd->rd_igeneration); 721 memset(&str->rg_reserved, 0, sizeof(str->rg_reserved)); 722 } 723 724 /** 725 * gfs2_rgrp_bh_get - Read in a RG's header and bitmaps 726 * @rgd: the struct gfs2_rgrpd describing the RG to read in 727 * 728 * Read in all of a Resource Group's header and bitmap blocks. 729 * Caller must eventually call gfs2_rgrp_relse() to free the bitmaps. 730 * 731 * Returns: errno 732 */ 733 734 int gfs2_rgrp_bh_get(struct gfs2_rgrpd *rgd) 735 { 736 struct gfs2_sbd *sdp = rgd->rd_sbd; 737 struct gfs2_glock *gl = rgd->rd_gl; 738 unsigned int length = rgd->rd_length; 739 struct gfs2_bitmap *bi; 740 unsigned int x, y; 741 int error; 742 743 mutex_lock(&rgd->rd_mutex); 744 745 spin_lock(&sdp->sd_rindex_spin); 746 if (rgd->rd_bh_count) { 747 rgd->rd_bh_count++; 748 spin_unlock(&sdp->sd_rindex_spin); 749 mutex_unlock(&rgd->rd_mutex); 750 return 0; 751 } 752 spin_unlock(&sdp->sd_rindex_spin); 753 754 for (x = 0; x < length; x++) { 755 bi = rgd->rd_bits + x; 756 error = gfs2_meta_read(gl, rgd->rd_addr + x, 0, &bi->bi_bh); 757 if (error) 758 goto fail; 759 } 760 761 for (y = length; y--;) { 762 bi = rgd->rd_bits + y; 763 error = gfs2_meta_wait(sdp, bi->bi_bh); 764 if (error) 765 goto fail; 766 if (gfs2_metatype_check(sdp, bi->bi_bh, y ? GFS2_METATYPE_RB : 767 GFS2_METATYPE_RG)) { 768 error = -EIO; 769 goto fail; 770 } 771 } 772 773 if (!(rgd->rd_flags & GFS2_RDF_UPTODATE)) { 774 for (x = 0; x < length; x++) 775 clear_bit(GBF_FULL, &rgd->rd_bits[x].bi_flags); 776 gfs2_rgrp_in(rgd, (rgd->rd_bits[0].bi_bh)->b_data); 777 rgd->rd_flags |= (GFS2_RDF_UPTODATE | GFS2_RDF_CHECK); 778 } 779 780 spin_lock(&sdp->sd_rindex_spin); 781 rgd->rd_free_clone = rgd->rd_free; 782 rgd->rd_bh_count++; 783 spin_unlock(&sdp->sd_rindex_spin); 784 785 mutex_unlock(&rgd->rd_mutex); 786 787 return 0; 788 789 fail: 790 while (x--) { 791 bi = rgd->rd_bits + x; 792 brelse(bi->bi_bh); 793 bi->bi_bh = NULL; 794 gfs2_assert_warn(sdp, !bi->bi_clone); 795 } 796 mutex_unlock(&rgd->rd_mutex); 797 798 return error; 799 } 800 801 void gfs2_rgrp_bh_hold(struct gfs2_rgrpd *rgd) 802 { 803 struct gfs2_sbd *sdp = rgd->rd_sbd; 804 805 spin_lock(&sdp->sd_rindex_spin); 806 gfs2_assert_warn(rgd->rd_sbd, rgd->rd_bh_count); 807 rgd->rd_bh_count++; 808 spin_unlock(&sdp->sd_rindex_spin); 809 } 810 811 /** 812 * gfs2_rgrp_bh_put - Release RG bitmaps read in with gfs2_rgrp_bh_get() 813 * @rgd: the struct gfs2_rgrpd describing the RG to read in 814 * 815 */ 816 817 void gfs2_rgrp_bh_put(struct gfs2_rgrpd *rgd) 818 { 819 struct gfs2_sbd *sdp = rgd->rd_sbd; 820 int x, length = rgd->rd_length; 821 822 spin_lock(&sdp->sd_rindex_spin); 823 gfs2_assert_warn(rgd->rd_sbd, rgd->rd_bh_count); 824 if (--rgd->rd_bh_count) { 825 spin_unlock(&sdp->sd_rindex_spin); 826 return; 827 } 828 829 for (x = 0; x < length; x++) { 830 struct gfs2_bitmap *bi = rgd->rd_bits + x; 831 kfree(bi->bi_clone); 832 bi->bi_clone = NULL; 833 brelse(bi->bi_bh); 834 bi->bi_bh = NULL; 835 } 836 837 spin_unlock(&sdp->sd_rindex_spin); 838 } 839 840 static void gfs2_rgrp_send_discards(struct gfs2_sbd *sdp, u64 offset, 841 const struct gfs2_bitmap *bi) 842 { 843 struct super_block *sb = sdp->sd_vfs; 844 struct block_device *bdev = sb->s_bdev; 845 const unsigned int sects_per_blk = sdp->sd_sb.sb_bsize / 846 bdev_logical_block_size(sb->s_bdev); 847 u64 blk; 848 sector_t start = 0; 849 sector_t nr_sects = 0; 850 int rv; 851 unsigned int x; 852 853 for (x = 0; x < bi->bi_len; x++) { 854 const u8 *orig = bi->bi_bh->b_data + bi->bi_offset + x; 855 const u8 *clone = bi->bi_clone + bi->bi_offset + x; 856 u8 diff = ~(*orig | (*orig >> 1)) & (*clone | (*clone >> 1)); 857 diff &= 0x55; 858 if (diff == 0) 859 continue; 860 blk = offset + ((bi->bi_start + x) * GFS2_NBBY); 861 blk *= sects_per_blk; /* convert to sectors */ 862 while(diff) { 863 if (diff & 1) { 864 if (nr_sects == 0) 865 goto start_new_extent; 866 if ((start + nr_sects) != blk) { 867 rv = blkdev_issue_discard(bdev, start, 868 nr_sects, GFP_NOFS, 869 BLKDEV_IFL_WAIT | 870 BLKDEV_IFL_BARRIER); 871 if (rv) 872 goto fail; 873 nr_sects = 0; 874 start_new_extent: 875 start = blk; 876 } 877 nr_sects += sects_per_blk; 878 } 879 diff >>= 2; 880 blk += sects_per_blk; 881 } 882 } 883 if (nr_sects) { 884 rv = blkdev_issue_discard(bdev, start, nr_sects, GFP_NOFS, 885 BLKDEV_IFL_WAIT | BLKDEV_IFL_BARRIER); 886 if (rv) 887 goto fail; 888 } 889 return; 890 fail: 891 fs_warn(sdp, "error %d on discard request, turning discards off for this filesystem", rv); 892 sdp->sd_args.ar_discard = 0; 893 } 894 895 void gfs2_rgrp_repolish_clones(struct gfs2_rgrpd *rgd) 896 { 897 struct gfs2_sbd *sdp = rgd->rd_sbd; 898 unsigned int length = rgd->rd_length; 899 unsigned int x; 900 901 for (x = 0; x < length; x++) { 902 struct gfs2_bitmap *bi = rgd->rd_bits + x; 903 if (!bi->bi_clone) 904 continue; 905 if (sdp->sd_args.ar_discard) 906 gfs2_rgrp_send_discards(sdp, rgd->rd_data0, bi); 907 clear_bit(GBF_FULL, &bi->bi_flags); 908 memcpy(bi->bi_clone + bi->bi_offset, 909 bi->bi_bh->b_data + bi->bi_offset, bi->bi_len); 910 } 911 912 spin_lock(&sdp->sd_rindex_spin); 913 rgd->rd_free_clone = rgd->rd_free; 914 spin_unlock(&sdp->sd_rindex_spin); 915 } 916 917 /** 918 * gfs2_alloc_get - get the struct gfs2_alloc structure for an inode 919 * @ip: the incore GFS2 inode structure 920 * 921 * Returns: the struct gfs2_alloc 922 */ 923 924 struct gfs2_alloc *gfs2_alloc_get(struct gfs2_inode *ip) 925 { 926 BUG_ON(ip->i_alloc != NULL); 927 ip->i_alloc = kzalloc(sizeof(struct gfs2_alloc), GFP_NOFS); 928 return ip->i_alloc; 929 } 930 931 /** 932 * try_rgrp_fit - See if a given reservation will fit in a given RG 933 * @rgd: the RG data 934 * @al: the struct gfs2_alloc structure describing the reservation 935 * 936 * If there's room for the requested blocks to be allocated from the RG: 937 * Sets the $al_rgd field in @al. 938 * 939 * Returns: 1 on success (it fits), 0 on failure (it doesn't fit) 940 */ 941 942 static int try_rgrp_fit(struct gfs2_rgrpd *rgd, struct gfs2_alloc *al) 943 { 944 struct gfs2_sbd *sdp = rgd->rd_sbd; 945 int ret = 0; 946 947 if (rgd->rd_flags & (GFS2_RGF_NOALLOC | GFS2_RDF_ERROR)) 948 return 0; 949 950 spin_lock(&sdp->sd_rindex_spin); 951 if (rgd->rd_free_clone >= al->al_requested) { 952 al->al_rgd = rgd; 953 ret = 1; 954 } 955 spin_unlock(&sdp->sd_rindex_spin); 956 957 return ret; 958 } 959 960 /** 961 * try_rgrp_unlink - Look for any unlinked, allocated, but unused inodes 962 * @rgd: The rgrp 963 * 964 * Returns: 0 if no error 965 * The inode, if one has been found, in inode. 966 */ 967 968 static u64 try_rgrp_unlink(struct gfs2_rgrpd *rgd, u64 *last_unlinked, 969 u64 skip) 970 { 971 u32 goal = 0, block; 972 u64 no_addr; 973 struct gfs2_sbd *sdp = rgd->rd_sbd; 974 unsigned int n; 975 976 for(;;) { 977 if (goal >= rgd->rd_data) 978 break; 979 down_write(&sdp->sd_log_flush_lock); 980 n = 1; 981 block = rgblk_search(rgd, goal, GFS2_BLKST_UNLINKED, 982 GFS2_BLKST_UNLINKED, &n); 983 up_write(&sdp->sd_log_flush_lock); 984 if (block == BFITNOENT) 985 break; 986 /* rgblk_search can return a block < goal, so we need to 987 keep it marching forward. */ 988 no_addr = block + rgd->rd_data0; 989 goal++; 990 if (*last_unlinked != NO_BLOCK && no_addr <= *last_unlinked) 991 continue; 992 if (no_addr == skip) 993 continue; 994 *last_unlinked = no_addr; 995 return no_addr; 996 } 997 998 rgd->rd_flags &= ~GFS2_RDF_CHECK; 999 return 0; 1000 } 1001 1002 /** 1003 * recent_rgrp_next - get next RG from "recent" list 1004 * @cur_rgd: current rgrp 1005 * 1006 * Returns: The next rgrp in the recent list 1007 */ 1008 1009 static struct gfs2_rgrpd *recent_rgrp_next(struct gfs2_rgrpd *cur_rgd) 1010 { 1011 struct gfs2_sbd *sdp = cur_rgd->rd_sbd; 1012 struct list_head *head; 1013 struct gfs2_rgrpd *rgd; 1014 1015 spin_lock(&sdp->sd_rindex_spin); 1016 head = &sdp->sd_rindex_mru_list; 1017 if (unlikely(cur_rgd->rd_list_mru.next == head)) { 1018 spin_unlock(&sdp->sd_rindex_spin); 1019 return NULL; 1020 } 1021 rgd = list_entry(cur_rgd->rd_list_mru.next, struct gfs2_rgrpd, rd_list_mru); 1022 spin_unlock(&sdp->sd_rindex_spin); 1023 return rgd; 1024 } 1025 1026 /** 1027 * forward_rgrp_get - get an rgrp to try next from full list 1028 * @sdp: The GFS2 superblock 1029 * 1030 * Returns: The rgrp to try next 1031 */ 1032 1033 static struct gfs2_rgrpd *forward_rgrp_get(struct gfs2_sbd *sdp) 1034 { 1035 struct gfs2_rgrpd *rgd; 1036 unsigned int journals = gfs2_jindex_size(sdp); 1037 unsigned int rg = 0, x; 1038 1039 spin_lock(&sdp->sd_rindex_spin); 1040 1041 rgd = sdp->sd_rindex_forward; 1042 if (!rgd) { 1043 if (sdp->sd_rgrps >= journals) 1044 rg = sdp->sd_rgrps * sdp->sd_jdesc->jd_jid / journals; 1045 1046 for (x = 0, rgd = gfs2_rgrpd_get_first(sdp); x < rg; 1047 x++, rgd = gfs2_rgrpd_get_next(rgd)) 1048 /* Do Nothing */; 1049 1050 sdp->sd_rindex_forward = rgd; 1051 } 1052 1053 spin_unlock(&sdp->sd_rindex_spin); 1054 1055 return rgd; 1056 } 1057 1058 /** 1059 * forward_rgrp_set - set the forward rgrp pointer 1060 * @sdp: the filesystem 1061 * @rgd: The new forward rgrp 1062 * 1063 */ 1064 1065 static void forward_rgrp_set(struct gfs2_sbd *sdp, struct gfs2_rgrpd *rgd) 1066 { 1067 spin_lock(&sdp->sd_rindex_spin); 1068 sdp->sd_rindex_forward = rgd; 1069 spin_unlock(&sdp->sd_rindex_spin); 1070 } 1071 1072 /** 1073 * get_local_rgrp - Choose and lock a rgrp for allocation 1074 * @ip: the inode to reserve space for 1075 * @rgp: the chosen and locked rgrp 1076 * 1077 * Try to acquire rgrp in way which avoids contending with others. 1078 * 1079 * Returns: errno 1080 * unlinked: the block address of an unlinked block to be reclaimed 1081 */ 1082 1083 static int get_local_rgrp(struct gfs2_inode *ip, u64 *unlinked, 1084 u64 *last_unlinked) 1085 { 1086 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1087 struct gfs2_rgrpd *rgd, *begin = NULL; 1088 struct gfs2_alloc *al = ip->i_alloc; 1089 int flags = LM_FLAG_TRY; 1090 int skipped = 0; 1091 int loops = 0; 1092 int error, rg_locked; 1093 1094 *unlinked = 0; 1095 rgd = gfs2_blk2rgrpd(sdp, ip->i_goal); 1096 1097 while (rgd) { 1098 rg_locked = 0; 1099 1100 if (gfs2_glock_is_locked_by_me(rgd->rd_gl)) { 1101 rg_locked = 1; 1102 error = 0; 1103 } else { 1104 error = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_EXCLUSIVE, 1105 LM_FLAG_TRY, &al->al_rgd_gh); 1106 } 1107 switch (error) { 1108 case 0: 1109 if (try_rgrp_fit(rgd, al)) 1110 goto out; 1111 /* If the rg came in already locked, there's no 1112 way we can recover from a failed try_rgrp_unlink 1113 because that would require an iput which can only 1114 happen after the rgrp is unlocked. */ 1115 if (!rg_locked && rgd->rd_flags & GFS2_RDF_CHECK) 1116 *unlinked = try_rgrp_unlink(rgd, last_unlinked, 1117 ip->i_no_addr); 1118 if (!rg_locked) 1119 gfs2_glock_dq_uninit(&al->al_rgd_gh); 1120 if (*unlinked) 1121 return -EAGAIN; 1122 /* fall through */ 1123 case GLR_TRYFAILED: 1124 rgd = recent_rgrp_next(rgd); 1125 break; 1126 1127 default: 1128 return error; 1129 } 1130 } 1131 1132 /* Go through full list of rgrps */ 1133 1134 begin = rgd = forward_rgrp_get(sdp); 1135 1136 for (;;) { 1137 rg_locked = 0; 1138 1139 if (gfs2_glock_is_locked_by_me(rgd->rd_gl)) { 1140 rg_locked = 1; 1141 error = 0; 1142 } else { 1143 error = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_EXCLUSIVE, flags, 1144 &al->al_rgd_gh); 1145 } 1146 switch (error) { 1147 case 0: 1148 if (try_rgrp_fit(rgd, al)) 1149 goto out; 1150 if (!rg_locked && rgd->rd_flags & GFS2_RDF_CHECK) 1151 *unlinked = try_rgrp_unlink(rgd, last_unlinked, 1152 ip->i_no_addr); 1153 if (!rg_locked) 1154 gfs2_glock_dq_uninit(&al->al_rgd_gh); 1155 if (*unlinked) 1156 return -EAGAIN; 1157 break; 1158 1159 case GLR_TRYFAILED: 1160 skipped++; 1161 break; 1162 1163 default: 1164 return error; 1165 } 1166 1167 rgd = gfs2_rgrpd_get_next(rgd); 1168 if (!rgd) 1169 rgd = gfs2_rgrpd_get_first(sdp); 1170 1171 if (rgd == begin) { 1172 if (++loops >= 3) 1173 return -ENOSPC; 1174 if (!skipped) 1175 loops++; 1176 flags = 0; 1177 if (loops == 2) 1178 gfs2_log_flush(sdp, NULL); 1179 } 1180 } 1181 1182 out: 1183 if (begin) { 1184 spin_lock(&sdp->sd_rindex_spin); 1185 list_move(&rgd->rd_list_mru, &sdp->sd_rindex_mru_list); 1186 spin_unlock(&sdp->sd_rindex_spin); 1187 rgd = gfs2_rgrpd_get_next(rgd); 1188 if (!rgd) 1189 rgd = gfs2_rgrpd_get_first(sdp); 1190 forward_rgrp_set(sdp, rgd); 1191 } 1192 1193 return 0; 1194 } 1195 1196 /** 1197 * gfs2_inplace_reserve_i - Reserve space in the filesystem 1198 * @ip: the inode to reserve space for 1199 * 1200 * Returns: errno 1201 */ 1202 1203 int gfs2_inplace_reserve_i(struct gfs2_inode *ip, int hold_rindex, 1204 char *file, unsigned int line) 1205 { 1206 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1207 struct gfs2_alloc *al = ip->i_alloc; 1208 int error = 0; 1209 u64 last_unlinked = NO_BLOCK, unlinked; 1210 1211 if (gfs2_assert_warn(sdp, al->al_requested)) 1212 return -EINVAL; 1213 1214 try_again: 1215 if (hold_rindex) { 1216 /* We need to hold the rindex unless the inode we're using is 1217 the rindex itself, in which case it's already held. */ 1218 if (ip != GFS2_I(sdp->sd_rindex)) 1219 error = gfs2_rindex_hold(sdp, &al->al_ri_gh); 1220 else if (!sdp->sd_rgrps) /* We may not have the rindex read 1221 in, so: */ 1222 error = gfs2_ri_update_special(ip); 1223 } 1224 1225 if (error) 1226 return error; 1227 1228 /* Find an rgrp suitable for allocation. If it encounters any unlinked 1229 dinodes along the way, error will equal -EAGAIN and unlinked will 1230 contains it block address. We then need to look up that inode and 1231 try to free it, and try the allocation again. */ 1232 error = get_local_rgrp(ip, &unlinked, &last_unlinked); 1233 if (error) { 1234 if (hold_rindex && ip != GFS2_I(sdp->sd_rindex)) 1235 gfs2_glock_dq_uninit(&al->al_ri_gh); 1236 if (error != -EAGAIN) 1237 return error; 1238 1239 gfs2_process_unlinked_inode(ip->i_inode.i_sb, unlinked); 1240 /* regardless of whether or not gfs2_process_unlinked_inode 1241 was successful, we don't want to repeat it again. */ 1242 last_unlinked = unlinked; 1243 gfs2_log_flush(sdp, NULL); 1244 error = 0; 1245 1246 goto try_again; 1247 } 1248 /* no error, so we have the rgrp set in the inode's allocation. */ 1249 al->al_file = file; 1250 al->al_line = line; 1251 1252 return 0; 1253 } 1254 1255 /** 1256 * gfs2_inplace_release - release an inplace reservation 1257 * @ip: the inode the reservation was taken out on 1258 * 1259 * Release a reservation made by gfs2_inplace_reserve(). 1260 */ 1261 1262 void gfs2_inplace_release(struct gfs2_inode *ip) 1263 { 1264 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1265 struct gfs2_alloc *al = ip->i_alloc; 1266 1267 if (gfs2_assert_warn(sdp, al->al_alloced <= al->al_requested) == -1) 1268 fs_warn(sdp, "al_alloced = %u, al_requested = %u " 1269 "al_file = %s, al_line = %u\n", 1270 al->al_alloced, al->al_requested, al->al_file, 1271 al->al_line); 1272 1273 al->al_rgd = NULL; 1274 if (al->al_rgd_gh.gh_gl) 1275 gfs2_glock_dq_uninit(&al->al_rgd_gh); 1276 if (ip != GFS2_I(sdp->sd_rindex) && al->al_ri_gh.gh_gl) 1277 gfs2_glock_dq_uninit(&al->al_ri_gh); 1278 } 1279 1280 /** 1281 * gfs2_get_block_type - Check a block in a RG is of given type 1282 * @rgd: the resource group holding the block 1283 * @block: the block number 1284 * 1285 * Returns: The block type (GFS2_BLKST_*) 1286 */ 1287 1288 static unsigned char gfs2_get_block_type(struct gfs2_rgrpd *rgd, u64 block) 1289 { 1290 struct gfs2_bitmap *bi = NULL; 1291 u32 length, rgrp_block, buf_block; 1292 unsigned int buf; 1293 unsigned char type; 1294 1295 length = rgd->rd_length; 1296 rgrp_block = block - rgd->rd_data0; 1297 1298 for (buf = 0; buf < length; buf++) { 1299 bi = rgd->rd_bits + buf; 1300 if (rgrp_block < (bi->bi_start + bi->bi_len) * GFS2_NBBY) 1301 break; 1302 } 1303 1304 gfs2_assert(rgd->rd_sbd, buf < length); 1305 buf_block = rgrp_block - bi->bi_start * GFS2_NBBY; 1306 1307 type = gfs2_testbit(rgd, bi->bi_bh->b_data + bi->bi_offset, 1308 bi->bi_len, buf_block); 1309 1310 return type; 1311 } 1312 1313 /** 1314 * rgblk_search - find a block in @old_state, change allocation 1315 * state to @new_state 1316 * @rgd: the resource group descriptor 1317 * @goal: the goal block within the RG (start here to search for avail block) 1318 * @old_state: GFS2_BLKST_XXX the before-allocation state to find 1319 * @new_state: GFS2_BLKST_XXX the after-allocation block state 1320 * @n: The extent length 1321 * 1322 * Walk rgrp's bitmap to find bits that represent a block in @old_state. 1323 * Add the found bitmap buffer to the transaction. 1324 * Set the found bits to @new_state to change block's allocation state. 1325 * 1326 * This function never fails, because we wouldn't call it unless we 1327 * know (from reservation results, etc.) that a block is available. 1328 * 1329 * Scope of @goal and returned block is just within rgrp, not the whole 1330 * filesystem. 1331 * 1332 * Returns: the block number allocated 1333 */ 1334 1335 static u32 rgblk_search(struct gfs2_rgrpd *rgd, u32 goal, 1336 unsigned char old_state, unsigned char new_state, 1337 unsigned int *n) 1338 { 1339 struct gfs2_bitmap *bi = NULL; 1340 const u32 length = rgd->rd_length; 1341 u32 blk = BFITNOENT; 1342 unsigned int buf, x; 1343 const unsigned int elen = *n; 1344 const u8 *buffer = NULL; 1345 1346 *n = 0; 1347 /* Find bitmap block that contains bits for goal block */ 1348 for (buf = 0; buf < length; buf++) { 1349 bi = rgd->rd_bits + buf; 1350 /* Convert scope of "goal" from rgrp-wide to within found bit block */ 1351 if (goal < (bi->bi_start + bi->bi_len) * GFS2_NBBY) { 1352 goal -= bi->bi_start * GFS2_NBBY; 1353 goto do_search; 1354 } 1355 } 1356 buf = 0; 1357 goal = 0; 1358 1359 do_search: 1360 /* Search (up to entire) bitmap in this rgrp for allocatable block. 1361 "x <= length", instead of "x < length", because we typically start 1362 the search in the middle of a bit block, but if we can't find an 1363 allocatable block anywhere else, we want to be able wrap around and 1364 search in the first part of our first-searched bit block. */ 1365 for (x = 0; x <= length; x++) { 1366 bi = rgd->rd_bits + buf; 1367 1368 if (test_bit(GBF_FULL, &bi->bi_flags) && 1369 (old_state == GFS2_BLKST_FREE)) 1370 goto skip; 1371 1372 /* The GFS2_BLKST_UNLINKED state doesn't apply to the clone 1373 bitmaps, so we must search the originals for that. */ 1374 buffer = bi->bi_bh->b_data + bi->bi_offset; 1375 if (old_state != GFS2_BLKST_UNLINKED && bi->bi_clone) 1376 buffer = bi->bi_clone + bi->bi_offset; 1377 1378 blk = gfs2_bitfit(buffer, bi->bi_len, goal, old_state); 1379 if (blk != BFITNOENT) 1380 break; 1381 1382 if ((goal == 0) && (old_state == GFS2_BLKST_FREE)) 1383 set_bit(GBF_FULL, &bi->bi_flags); 1384 1385 /* Try next bitmap block (wrap back to rgrp header if at end) */ 1386 skip: 1387 buf++; 1388 buf %= length; 1389 goal = 0; 1390 } 1391 1392 if (blk == BFITNOENT) 1393 return blk; 1394 *n = 1; 1395 if (old_state == new_state) 1396 goto out; 1397 1398 gfs2_trans_add_bh(rgd->rd_gl, bi->bi_bh, 1); 1399 gfs2_setbit(rgd, bi->bi_bh->b_data, bi->bi_clone, bi->bi_offset, 1400 bi->bi_len, blk, new_state); 1401 goal = blk; 1402 while (*n < elen) { 1403 goal++; 1404 if (goal >= (bi->bi_len * GFS2_NBBY)) 1405 break; 1406 if (gfs2_testbit(rgd, buffer, bi->bi_len, goal) != 1407 GFS2_BLKST_FREE) 1408 break; 1409 gfs2_setbit(rgd, bi->bi_bh->b_data, bi->bi_clone, bi->bi_offset, 1410 bi->bi_len, goal, new_state); 1411 (*n)++; 1412 } 1413 out: 1414 return (bi->bi_start * GFS2_NBBY) + blk; 1415 } 1416 1417 /** 1418 * rgblk_free - Change alloc state of given block(s) 1419 * @sdp: the filesystem 1420 * @bstart: the start of a run of blocks to free 1421 * @blen: the length of the block run (all must lie within ONE RG!) 1422 * @new_state: GFS2_BLKST_XXX the after-allocation block state 1423 * 1424 * Returns: Resource group containing the block(s) 1425 */ 1426 1427 static struct gfs2_rgrpd *rgblk_free(struct gfs2_sbd *sdp, u64 bstart, 1428 u32 blen, unsigned char new_state) 1429 { 1430 struct gfs2_rgrpd *rgd; 1431 struct gfs2_bitmap *bi = NULL; 1432 u32 length, rgrp_blk, buf_blk; 1433 unsigned int buf; 1434 1435 rgd = gfs2_blk2rgrpd(sdp, bstart); 1436 if (!rgd) { 1437 if (gfs2_consist(sdp)) 1438 fs_err(sdp, "block = %llu\n", (unsigned long long)bstart); 1439 return NULL; 1440 } 1441 1442 length = rgd->rd_length; 1443 1444 rgrp_blk = bstart - rgd->rd_data0; 1445 1446 while (blen--) { 1447 for (buf = 0; buf < length; buf++) { 1448 bi = rgd->rd_bits + buf; 1449 if (rgrp_blk < (bi->bi_start + bi->bi_len) * GFS2_NBBY) 1450 break; 1451 } 1452 1453 gfs2_assert(rgd->rd_sbd, buf < length); 1454 1455 buf_blk = rgrp_blk - bi->bi_start * GFS2_NBBY; 1456 rgrp_blk++; 1457 1458 if (!bi->bi_clone) { 1459 bi->bi_clone = kmalloc(bi->bi_bh->b_size, 1460 GFP_NOFS | __GFP_NOFAIL); 1461 memcpy(bi->bi_clone + bi->bi_offset, 1462 bi->bi_bh->b_data + bi->bi_offset, 1463 bi->bi_len); 1464 } 1465 gfs2_trans_add_bh(rgd->rd_gl, bi->bi_bh, 1); 1466 gfs2_setbit(rgd, bi->bi_bh->b_data, NULL, bi->bi_offset, 1467 bi->bi_len, buf_blk, new_state); 1468 } 1469 1470 return rgd; 1471 } 1472 1473 /** 1474 * gfs2_rgrp_dump - print out an rgrp 1475 * @seq: The iterator 1476 * @gl: The glock in question 1477 * 1478 */ 1479 1480 int gfs2_rgrp_dump(struct seq_file *seq, const struct gfs2_glock *gl) 1481 { 1482 const struct gfs2_rgrpd *rgd = gl->gl_object; 1483 if (rgd == NULL) 1484 return 0; 1485 gfs2_print_dbg(seq, " R: n:%llu f:%02x b:%u/%u i:%u\n", 1486 (unsigned long long)rgd->rd_addr, rgd->rd_flags, 1487 rgd->rd_free, rgd->rd_free_clone, rgd->rd_dinodes); 1488 return 0; 1489 } 1490 1491 static void gfs2_rgrp_error(struct gfs2_rgrpd *rgd) 1492 { 1493 struct gfs2_sbd *sdp = rgd->rd_sbd; 1494 fs_warn(sdp, "rgrp %llu has an error, marking it readonly until umount\n", 1495 (unsigned long long)rgd->rd_addr); 1496 fs_warn(sdp, "umount on all nodes and run fsck.gfs2 to fix the error\n"); 1497 gfs2_rgrp_dump(NULL, rgd->rd_gl); 1498 rgd->rd_flags |= GFS2_RDF_ERROR; 1499 } 1500 1501 /** 1502 * gfs2_alloc_block - Allocate one or more blocks 1503 * @ip: the inode to allocate the block for 1504 * @bn: Used to return the starting block number 1505 * @n: requested number of blocks/extent length (value/result) 1506 * 1507 * Returns: 0 or error 1508 */ 1509 1510 int gfs2_alloc_block(struct gfs2_inode *ip, u64 *bn, unsigned int *n) 1511 { 1512 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1513 struct buffer_head *dibh; 1514 struct gfs2_alloc *al = ip->i_alloc; 1515 struct gfs2_rgrpd *rgd; 1516 u32 goal, blk; 1517 u64 block; 1518 int error; 1519 1520 /* Only happens if there is a bug in gfs2, return something distinctive 1521 * to ensure that it is noticed. 1522 */ 1523 if (al == NULL) 1524 return -ECANCELED; 1525 1526 rgd = al->al_rgd; 1527 1528 if (rgrp_contains_block(rgd, ip->i_goal)) 1529 goal = ip->i_goal - rgd->rd_data0; 1530 else 1531 goal = rgd->rd_last_alloc; 1532 1533 blk = rgblk_search(rgd, goal, GFS2_BLKST_FREE, GFS2_BLKST_USED, n); 1534 1535 /* Since all blocks are reserved in advance, this shouldn't happen */ 1536 if (blk == BFITNOENT) 1537 goto rgrp_error; 1538 1539 rgd->rd_last_alloc = blk; 1540 block = rgd->rd_data0 + blk; 1541 ip->i_goal = block; 1542 error = gfs2_meta_inode_buffer(ip, &dibh); 1543 if (error == 0) { 1544 struct gfs2_dinode *di = (struct gfs2_dinode *)dibh->b_data; 1545 gfs2_trans_add_bh(ip->i_gl, dibh, 1); 1546 di->di_goal_meta = di->di_goal_data = cpu_to_be64(ip->i_goal); 1547 brelse(dibh); 1548 } 1549 if (rgd->rd_free < *n) 1550 goto rgrp_error; 1551 1552 rgd->rd_free -= *n; 1553 1554 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1555 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1556 1557 al->al_alloced += *n; 1558 1559 gfs2_statfs_change(sdp, 0, -(s64)*n, 0); 1560 gfs2_quota_change(ip, *n, ip->i_inode.i_uid, ip->i_inode.i_gid); 1561 1562 spin_lock(&sdp->sd_rindex_spin); 1563 rgd->rd_free_clone -= *n; 1564 spin_unlock(&sdp->sd_rindex_spin); 1565 trace_gfs2_block_alloc(ip, block, *n, GFS2_BLKST_USED); 1566 *bn = block; 1567 return 0; 1568 1569 rgrp_error: 1570 gfs2_rgrp_error(rgd); 1571 return -EIO; 1572 } 1573 1574 /** 1575 * gfs2_alloc_di - Allocate a dinode 1576 * @dip: the directory that the inode is going in 1577 * @bn: the block number which is allocated 1578 * @generation: the generation number of the inode 1579 * 1580 * Returns: 0 on success or error 1581 */ 1582 1583 int gfs2_alloc_di(struct gfs2_inode *dip, u64 *bn, u64 *generation) 1584 { 1585 struct gfs2_sbd *sdp = GFS2_SB(&dip->i_inode); 1586 struct gfs2_alloc *al = dip->i_alloc; 1587 struct gfs2_rgrpd *rgd = al->al_rgd; 1588 u32 blk; 1589 u64 block; 1590 unsigned int n = 1; 1591 1592 blk = rgblk_search(rgd, rgd->rd_last_alloc, 1593 GFS2_BLKST_FREE, GFS2_BLKST_DINODE, &n); 1594 1595 /* Since all blocks are reserved in advance, this shouldn't happen */ 1596 if (blk == BFITNOENT) 1597 goto rgrp_error; 1598 1599 rgd->rd_last_alloc = blk; 1600 block = rgd->rd_data0 + blk; 1601 if (rgd->rd_free == 0) 1602 goto rgrp_error; 1603 1604 rgd->rd_free--; 1605 rgd->rd_dinodes++; 1606 *generation = rgd->rd_igeneration++; 1607 if (*generation == 0) 1608 *generation = rgd->rd_igeneration++; 1609 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1610 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1611 1612 al->al_alloced++; 1613 1614 gfs2_statfs_change(sdp, 0, -1, +1); 1615 gfs2_trans_add_unrevoke(sdp, block, 1); 1616 1617 spin_lock(&sdp->sd_rindex_spin); 1618 rgd->rd_free_clone--; 1619 spin_unlock(&sdp->sd_rindex_spin); 1620 trace_gfs2_block_alloc(dip, block, 1, GFS2_BLKST_DINODE); 1621 *bn = block; 1622 return 0; 1623 1624 rgrp_error: 1625 gfs2_rgrp_error(rgd); 1626 return -EIO; 1627 } 1628 1629 /** 1630 * gfs2_free_data - free a contiguous run of data block(s) 1631 * @ip: the inode these blocks are being freed from 1632 * @bstart: first block of a run of contiguous blocks 1633 * @blen: the length of the block run 1634 * 1635 */ 1636 1637 void gfs2_free_data(struct gfs2_inode *ip, u64 bstart, u32 blen) 1638 { 1639 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1640 struct gfs2_rgrpd *rgd; 1641 1642 rgd = rgblk_free(sdp, bstart, blen, GFS2_BLKST_FREE); 1643 if (!rgd) 1644 return; 1645 trace_gfs2_block_alloc(ip, bstart, blen, GFS2_BLKST_FREE); 1646 rgd->rd_free += blen; 1647 1648 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1649 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1650 1651 gfs2_trans_add_rg(rgd); 1652 1653 gfs2_statfs_change(sdp, 0, +blen, 0); 1654 gfs2_quota_change(ip, -(s64)blen, ip->i_inode.i_uid, ip->i_inode.i_gid); 1655 } 1656 1657 /** 1658 * gfs2_free_meta - free a contiguous run of data block(s) 1659 * @ip: the inode these blocks are being freed from 1660 * @bstart: first block of a run of contiguous blocks 1661 * @blen: the length of the block run 1662 * 1663 */ 1664 1665 void gfs2_free_meta(struct gfs2_inode *ip, u64 bstart, u32 blen) 1666 { 1667 struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode); 1668 struct gfs2_rgrpd *rgd; 1669 1670 rgd = rgblk_free(sdp, bstart, blen, GFS2_BLKST_FREE); 1671 if (!rgd) 1672 return; 1673 trace_gfs2_block_alloc(ip, bstart, blen, GFS2_BLKST_FREE); 1674 rgd->rd_free += blen; 1675 1676 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1677 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1678 1679 gfs2_trans_add_rg(rgd); 1680 1681 gfs2_statfs_change(sdp, 0, +blen, 0); 1682 gfs2_quota_change(ip, -(s64)blen, ip->i_inode.i_uid, ip->i_inode.i_gid); 1683 gfs2_meta_wipe(ip, bstart, blen); 1684 } 1685 1686 void gfs2_unlink_di(struct inode *inode) 1687 { 1688 struct gfs2_inode *ip = GFS2_I(inode); 1689 struct gfs2_sbd *sdp = GFS2_SB(inode); 1690 struct gfs2_rgrpd *rgd; 1691 u64 blkno = ip->i_no_addr; 1692 1693 rgd = rgblk_free(sdp, blkno, 1, GFS2_BLKST_UNLINKED); 1694 if (!rgd) 1695 return; 1696 trace_gfs2_block_alloc(ip, blkno, 1, GFS2_BLKST_UNLINKED); 1697 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1698 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1699 gfs2_trans_add_rg(rgd); 1700 } 1701 1702 static void gfs2_free_uninit_di(struct gfs2_rgrpd *rgd, u64 blkno) 1703 { 1704 struct gfs2_sbd *sdp = rgd->rd_sbd; 1705 struct gfs2_rgrpd *tmp_rgd; 1706 1707 tmp_rgd = rgblk_free(sdp, blkno, 1, GFS2_BLKST_FREE); 1708 if (!tmp_rgd) 1709 return; 1710 gfs2_assert_withdraw(sdp, rgd == tmp_rgd); 1711 1712 if (!rgd->rd_dinodes) 1713 gfs2_consist_rgrpd(rgd); 1714 rgd->rd_dinodes--; 1715 rgd->rd_free++; 1716 1717 gfs2_trans_add_bh(rgd->rd_gl, rgd->rd_bits[0].bi_bh, 1); 1718 gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data); 1719 1720 gfs2_statfs_change(sdp, 0, +1, -1); 1721 gfs2_trans_add_rg(rgd); 1722 } 1723 1724 1725 void gfs2_free_di(struct gfs2_rgrpd *rgd, struct gfs2_inode *ip) 1726 { 1727 gfs2_free_uninit_di(rgd, ip->i_no_addr); 1728 trace_gfs2_block_alloc(ip, ip->i_no_addr, 1, GFS2_BLKST_FREE); 1729 gfs2_quota_change(ip, -1, ip->i_inode.i_uid, ip->i_inode.i_gid); 1730 gfs2_meta_wipe(ip, ip->i_no_addr, 1); 1731 } 1732 1733 /** 1734 * gfs2_check_blk_type - Check the type of a block 1735 * @sdp: The superblock 1736 * @no_addr: The block number to check 1737 * @type: The block type we are looking for 1738 * 1739 * Returns: 0 if the block type matches the expected type 1740 * -ESTALE if it doesn't match 1741 * or -ve errno if something went wrong while checking 1742 */ 1743 1744 int gfs2_check_blk_type(struct gfs2_sbd *sdp, u64 no_addr, unsigned int type) 1745 { 1746 struct gfs2_rgrpd *rgd; 1747 struct gfs2_holder ri_gh, rgd_gh; 1748 struct gfs2_inode *ip = GFS2_I(sdp->sd_rindex); 1749 int ri_locked = 0; 1750 int error; 1751 1752 if (!gfs2_glock_is_locked_by_me(ip->i_gl)) { 1753 error = gfs2_rindex_hold(sdp, &ri_gh); 1754 if (error) 1755 goto fail; 1756 ri_locked = 1; 1757 } 1758 1759 error = -EINVAL; 1760 rgd = gfs2_blk2rgrpd(sdp, no_addr); 1761 if (!rgd) 1762 goto fail_rindex; 1763 1764 error = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_SHARED, 0, &rgd_gh); 1765 if (error) 1766 goto fail_rindex; 1767 1768 if (gfs2_get_block_type(rgd, no_addr) != type) 1769 error = -ESTALE; 1770 1771 gfs2_glock_dq_uninit(&rgd_gh); 1772 fail_rindex: 1773 if (ri_locked) 1774 gfs2_glock_dq_uninit(&ri_gh); 1775 fail: 1776 return error; 1777 } 1778 1779 /** 1780 * gfs2_rlist_add - add a RG to a list of RGs 1781 * @sdp: the filesystem 1782 * @rlist: the list of resource groups 1783 * @block: the block 1784 * 1785 * Figure out what RG a block belongs to and add that RG to the list 1786 * 1787 * FIXME: Don't use NOFAIL 1788 * 1789 */ 1790 1791 void gfs2_rlist_add(struct gfs2_sbd *sdp, struct gfs2_rgrp_list *rlist, 1792 u64 block) 1793 { 1794 struct gfs2_rgrpd *rgd; 1795 struct gfs2_rgrpd **tmp; 1796 unsigned int new_space; 1797 unsigned int x; 1798 1799 if (gfs2_assert_warn(sdp, !rlist->rl_ghs)) 1800 return; 1801 1802 rgd = gfs2_blk2rgrpd(sdp, block); 1803 if (!rgd) { 1804 if (gfs2_consist(sdp)) 1805 fs_err(sdp, "block = %llu\n", (unsigned long long)block); 1806 return; 1807 } 1808 1809 for (x = 0; x < rlist->rl_rgrps; x++) 1810 if (rlist->rl_rgd[x] == rgd) 1811 return; 1812 1813 if (rlist->rl_rgrps == rlist->rl_space) { 1814 new_space = rlist->rl_space + 10; 1815 1816 tmp = kcalloc(new_space, sizeof(struct gfs2_rgrpd *), 1817 GFP_NOFS | __GFP_NOFAIL); 1818 1819 if (rlist->rl_rgd) { 1820 memcpy(tmp, rlist->rl_rgd, 1821 rlist->rl_space * sizeof(struct gfs2_rgrpd *)); 1822 kfree(rlist->rl_rgd); 1823 } 1824 1825 rlist->rl_space = new_space; 1826 rlist->rl_rgd = tmp; 1827 } 1828 1829 rlist->rl_rgd[rlist->rl_rgrps++] = rgd; 1830 } 1831 1832 /** 1833 * gfs2_rlist_alloc - all RGs have been added to the rlist, now allocate 1834 * and initialize an array of glock holders for them 1835 * @rlist: the list of resource groups 1836 * @state: the lock state to acquire the RG lock in 1837 * @flags: the modifier flags for the holder structures 1838 * 1839 * FIXME: Don't use NOFAIL 1840 * 1841 */ 1842 1843 void gfs2_rlist_alloc(struct gfs2_rgrp_list *rlist, unsigned int state) 1844 { 1845 unsigned int x; 1846 1847 rlist->rl_ghs = kcalloc(rlist->rl_rgrps, sizeof(struct gfs2_holder), 1848 GFP_NOFS | __GFP_NOFAIL); 1849 for (x = 0; x < rlist->rl_rgrps; x++) 1850 gfs2_holder_init(rlist->rl_rgd[x]->rd_gl, 1851 state, 0, 1852 &rlist->rl_ghs[x]); 1853 } 1854 1855 /** 1856 * gfs2_rlist_free - free a resource group list 1857 * @list: the list of resource groups 1858 * 1859 */ 1860 1861 void gfs2_rlist_free(struct gfs2_rgrp_list *rlist) 1862 { 1863 unsigned int x; 1864 1865 kfree(rlist->rl_rgd); 1866 1867 if (rlist->rl_ghs) { 1868 for (x = 0; x < rlist->rl_rgrps; x++) 1869 gfs2_holder_uninit(&rlist->rl_ghs[x]); 1870 kfree(rlist->rl_ghs); 1871 } 1872 } 1873 1874