rgrp.c 63 KB

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  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. #include <linux/slab.h>
  10. #include <linux/spinlock.h>
  11. #include <linux/completion.h>
  12. #include <linux/buffer_head.h>
  13. #include <linux/fs.h>
  14. #include <linux/gfs2_ondisk.h>
  15. #include <linux/prefetch.h>
  16. #include <linux/blkdev.h>
  17. #include <linux/rbtree.h>
  18. #include <linux/random.h>
  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. #define BFITNOENT ((u32)~0)
  34. #define NO_BLOCK ((u64)~0)
  35. #if BITS_PER_LONG == 32
  36. #define LBITMASK (0x55555555UL)
  37. #define LBITSKIP55 (0x55555555UL)
  38. #define LBITSKIP00 (0x00000000UL)
  39. #else
  40. #define LBITMASK (0x5555555555555555UL)
  41. #define LBITSKIP55 (0x5555555555555555UL)
  42. #define LBITSKIP00 (0x0000000000000000UL)
  43. #endif
  44. /*
  45. * These routines are used by the resource group routines (rgrp.c)
  46. * to keep track of block allocation. Each block is represented by two
  47. * bits. So, each byte represents GFS2_NBBY (i.e. 4) blocks.
  48. *
  49. * 0 = Free
  50. * 1 = Used (not metadata)
  51. * 2 = Unlinked (still in use) inode
  52. * 3 = Used (metadata)
  53. */
  54. static const char valid_change[16] = {
  55. /* current */
  56. /* n */ 0, 1, 1, 1,
  57. /* e */ 1, 0, 0, 0,
  58. /* w */ 0, 0, 0, 1,
  59. 1, 0, 0, 0
  60. };
  61. static int gfs2_rbm_find(struct gfs2_rbm *rbm, u8 state, u32 minext,
  62. const struct gfs2_inode *ip, bool nowrap);
  63. /**
  64. * gfs2_setbit - Set a bit in the bitmaps
  65. * @rbm: The position of the bit to set
  66. * @do_clone: Also set the clone bitmap, if it exists
  67. * @new_state: the new state of the block
  68. *
  69. */
  70. static inline void gfs2_setbit(const struct gfs2_rbm *rbm, bool do_clone,
  71. unsigned char new_state)
  72. {
  73. unsigned char *byte1, *byte2, *end, cur_state;
  74. unsigned int buflen = rbm->bi->bi_len;
  75. const unsigned int bit = (rbm->offset % GFS2_NBBY) * GFS2_BIT_SIZE;
  76. byte1 = rbm->bi->bi_bh->b_data + rbm->bi->bi_offset + (rbm->offset / GFS2_NBBY);
  77. end = rbm->bi->bi_bh->b_data + rbm->bi->bi_offset + buflen;
  78. BUG_ON(byte1 >= end);
  79. cur_state = (*byte1 >> bit) & GFS2_BIT_MASK;
  80. if (unlikely(!valid_change[new_state * 4 + cur_state])) {
  81. printk(KERN_WARNING "GFS2: buf_blk = 0x%x old_state=%d, "
  82. "new_state=%d\n", rbm->offset, cur_state, new_state);
  83. printk(KERN_WARNING "GFS2: rgrp=0x%llx bi_start=0x%x\n",
  84. (unsigned long long)rbm->rgd->rd_addr,
  85. rbm->bi->bi_start);
  86. printk(KERN_WARNING "GFS2: bi_offset=0x%x bi_len=0x%x\n",
  87. rbm->bi->bi_offset, rbm->bi->bi_len);
  88. dump_stack();
  89. gfs2_consist_rgrpd(rbm->rgd);
  90. return;
  91. }
  92. *byte1 ^= (cur_state ^ new_state) << bit;
  93. if (do_clone && rbm->bi->bi_clone) {
  94. byte2 = rbm->bi->bi_clone + rbm->bi->bi_offset + (rbm->offset / GFS2_NBBY);
  95. cur_state = (*byte2 >> bit) & GFS2_BIT_MASK;
  96. *byte2 ^= (cur_state ^ new_state) << bit;
  97. }
  98. }
  99. /**
  100. * gfs2_testbit - test a bit in the bitmaps
  101. * @rbm: The bit to test
  102. *
  103. * Returns: The two bit block state of the requested bit
  104. */
  105. static inline u8 gfs2_testbit(const struct gfs2_rbm *rbm)
  106. {
  107. const u8 *buffer = rbm->bi->bi_bh->b_data + rbm->bi->bi_offset;
  108. const u8 *byte;
  109. unsigned int bit;
  110. byte = buffer + (rbm->offset / GFS2_NBBY);
  111. bit = (rbm->offset % GFS2_NBBY) * GFS2_BIT_SIZE;
  112. return (*byte >> bit) & GFS2_BIT_MASK;
  113. }
  114. /**
  115. * gfs2_bit_search
  116. * @ptr: Pointer to bitmap data
  117. * @mask: Mask to use (normally 0x55555.... but adjusted for search start)
  118. * @state: The state we are searching for
  119. *
  120. * We xor the bitmap data with a patter which is the bitwise opposite
  121. * of what we are looking for, this gives rise to a pattern of ones
  122. * wherever there is a match. Since we have two bits per entry, we
  123. * take this pattern, shift it down by one place and then and it with
  124. * the original. All the even bit positions (0,2,4, etc) then represent
  125. * successful matches, so we mask with 0x55555..... to remove the unwanted
  126. * odd bit positions.
  127. *
  128. * This allows searching of a whole u64 at once (32 blocks) with a
  129. * single test (on 64 bit arches).
  130. */
  131. static inline u64 gfs2_bit_search(const __le64 *ptr, u64 mask, u8 state)
  132. {
  133. u64 tmp;
  134. static const u64 search[] = {
  135. [0] = 0xffffffffffffffffULL,
  136. [1] = 0xaaaaaaaaaaaaaaaaULL,
  137. [2] = 0x5555555555555555ULL,
  138. [3] = 0x0000000000000000ULL,
  139. };
  140. tmp = le64_to_cpu(*ptr) ^ search[state];
  141. tmp &= (tmp >> 1);
  142. tmp &= mask;
  143. return tmp;
  144. }
  145. /**
  146. * rs_cmp - multi-block reservation range compare
  147. * @blk: absolute file system block number of the new reservation
  148. * @len: number of blocks in the new reservation
  149. * @rs: existing reservation to compare against
  150. *
  151. * returns: 1 if the block range is beyond the reach of the reservation
  152. * -1 if the block range is before the start of the reservation
  153. * 0 if the block range overlaps with the reservation
  154. */
  155. static inline int rs_cmp(u64 blk, u32 len, struct gfs2_blkreserv *rs)
  156. {
  157. u64 startblk = gfs2_rbm_to_block(&rs->rs_rbm);
  158. if (blk >= startblk + rs->rs_free)
  159. return 1;
  160. if (blk + len - 1 < startblk)
  161. return -1;
  162. return 0;
  163. }
  164. /**
  165. * gfs2_bitfit - Search an rgrp's bitmap buffer to find a bit-pair representing
  166. * a block in a given allocation state.
  167. * @buf: the buffer that holds the bitmaps
  168. * @len: the length (in bytes) of the buffer
  169. * @goal: start search at this block's bit-pair (within @buffer)
  170. * @state: GFS2_BLKST_XXX the state of the block we're looking for.
  171. *
  172. * Scope of @goal and returned block number is only within this bitmap buffer,
  173. * not entire rgrp or filesystem. @buffer will be offset from the actual
  174. * beginning of a bitmap block buffer, skipping any header structures, but
  175. * headers are always a multiple of 64 bits long so that the buffer is
  176. * always aligned to a 64 bit boundary.
  177. *
  178. * The size of the buffer is in bytes, but is it assumed that it is
  179. * always ok to read a complete multiple of 64 bits at the end
  180. * of the block in case the end is no aligned to a natural boundary.
  181. *
  182. * Return: the block number (bitmap buffer scope) that was found
  183. */
  184. static u32 gfs2_bitfit(const u8 *buf, const unsigned int len,
  185. u32 goal, u8 state)
  186. {
  187. u32 spoint = (goal << 1) & ((8*sizeof(u64)) - 1);
  188. const __le64 *ptr = ((__le64 *)buf) + (goal >> 5);
  189. const __le64 *end = (__le64 *)(buf + ALIGN(len, sizeof(u64)));
  190. u64 tmp;
  191. u64 mask = 0x5555555555555555ULL;
  192. u32 bit;
  193. /* Mask off bits we don't care about at the start of the search */
  194. mask <<= spoint;
  195. tmp = gfs2_bit_search(ptr, mask, state);
  196. ptr++;
  197. while(tmp == 0 && ptr < end) {
  198. tmp = gfs2_bit_search(ptr, 0x5555555555555555ULL, state);
  199. ptr++;
  200. }
  201. /* Mask off any bits which are more than len bytes from the start */
  202. if (ptr == end && (len & (sizeof(u64) - 1)))
  203. tmp &= (((u64)~0) >> (64 - 8*(len & (sizeof(u64) - 1))));
  204. /* Didn't find anything, so return */
  205. if (tmp == 0)
  206. return BFITNOENT;
  207. ptr--;
  208. bit = __ffs64(tmp);
  209. bit /= 2; /* two bits per entry in the bitmap */
  210. return (((const unsigned char *)ptr - buf) * GFS2_NBBY) + bit;
  211. }
  212. /**
  213. * gfs2_rbm_from_block - Set the rbm based upon rgd and block number
  214. * @rbm: The rbm with rgd already set correctly
  215. * @block: The block number (filesystem relative)
  216. *
  217. * This sets the bi and offset members of an rbm based on a
  218. * resource group and a filesystem relative block number. The
  219. * resource group must be set in the rbm on entry, the bi and
  220. * offset members will be set by this function.
  221. *
  222. * Returns: 0 on success, or an error code
  223. */
  224. static int gfs2_rbm_from_block(struct gfs2_rbm *rbm, u64 block)
  225. {
  226. u64 rblock = block - rbm->rgd->rd_data0;
  227. u32 x;
  228. if (WARN_ON_ONCE(rblock > UINT_MAX))
  229. return -EINVAL;
  230. if (block >= rbm->rgd->rd_data0 + rbm->rgd->rd_data)
  231. return -E2BIG;
  232. rbm->bi = rbm->rgd->rd_bits;
  233. rbm->offset = (u32)(rblock);
  234. /* Check if the block is within the first block */
  235. if (rbm->offset < (rbm->bi->bi_start + rbm->bi->bi_len) * GFS2_NBBY)
  236. return 0;
  237. /* Adjust for the size diff between gfs2_meta_header and gfs2_rgrp */
  238. rbm->offset += (sizeof(struct gfs2_rgrp) -
  239. sizeof(struct gfs2_meta_header)) * GFS2_NBBY;
  240. x = rbm->offset / rbm->rgd->rd_sbd->sd_blocks_per_bitmap;
  241. rbm->offset -= x * rbm->rgd->rd_sbd->sd_blocks_per_bitmap;
  242. rbm->bi += x;
  243. return 0;
  244. }
  245. /**
  246. * gfs2_unaligned_extlen - Look for free blocks which are not byte aligned
  247. * @rbm: Position to search (value/result)
  248. * @n_unaligned: Number of unaligned blocks to check
  249. * @len: Decremented for each block found (terminate on zero)
  250. *
  251. * Returns: true if a non-free block is encountered
  252. */
  253. static bool gfs2_unaligned_extlen(struct gfs2_rbm *rbm, u32 n_unaligned, u32 *len)
  254. {
  255. u64 block;
  256. u32 n;
  257. u8 res;
  258. for (n = 0; n < n_unaligned; n++) {
  259. res = gfs2_testbit(rbm);
  260. if (res != GFS2_BLKST_FREE)
  261. return true;
  262. (*len)--;
  263. if (*len == 0)
  264. return true;
  265. block = gfs2_rbm_to_block(rbm);
  266. if (gfs2_rbm_from_block(rbm, block + 1))
  267. return true;
  268. }
  269. return false;
  270. }
  271. /**
  272. * gfs2_free_extlen - Return extent length of free blocks
  273. * @rbm: Starting position
  274. * @len: Max length to check
  275. *
  276. * Starting at the block specified by the rbm, see how many free blocks
  277. * there are, not reading more than len blocks ahead. This can be done
  278. * using memchr_inv when the blocks are byte aligned, but has to be done
  279. * on a block by block basis in case of unaligned blocks. Also this
  280. * function can cope with bitmap boundaries (although it must stop on
  281. * a resource group boundary)
  282. *
  283. * Returns: Number of free blocks in the extent
  284. */
  285. static u32 gfs2_free_extlen(const struct gfs2_rbm *rrbm, u32 len)
  286. {
  287. struct gfs2_rbm rbm = *rrbm;
  288. u32 n_unaligned = rbm.offset & 3;
  289. u32 size = len;
  290. u32 bytes;
  291. u32 chunk_size;
  292. u8 *ptr, *start, *end;
  293. u64 block;
  294. if (n_unaligned &&
  295. gfs2_unaligned_extlen(&rbm, 4 - n_unaligned, &len))
  296. goto out;
  297. n_unaligned = len & 3;
  298. /* Start is now byte aligned */
  299. while (len > 3) {
  300. start = rbm.bi->bi_bh->b_data;
  301. if (rbm.bi->bi_clone)
  302. start = rbm.bi->bi_clone;
  303. end = start + rbm.bi->bi_bh->b_size;
  304. start += rbm.bi->bi_offset;
  305. BUG_ON(rbm.offset & 3);
  306. start += (rbm.offset / GFS2_NBBY);
  307. bytes = min_t(u32, len / GFS2_NBBY, (end - start));
  308. ptr = memchr_inv(start, 0, bytes);
  309. chunk_size = ((ptr == NULL) ? bytes : (ptr - start));
  310. chunk_size *= GFS2_NBBY;
  311. BUG_ON(len < chunk_size);
  312. len -= chunk_size;
  313. block = gfs2_rbm_to_block(&rbm);
  314. if (gfs2_rbm_from_block(&rbm, block + chunk_size)) {
  315. n_unaligned = 0;
  316. break;
  317. }
  318. if (ptr) {
  319. n_unaligned = 3;
  320. break;
  321. }
  322. n_unaligned = len & 3;
  323. }
  324. /* Deal with any bits left over at the end */
  325. if (n_unaligned)
  326. gfs2_unaligned_extlen(&rbm, n_unaligned, &len);
  327. out:
  328. return size - len;
  329. }
  330. /**
  331. * gfs2_bitcount - count the number of bits in a certain state
  332. * @rgd: the resource group descriptor
  333. * @buffer: the buffer that holds the bitmaps
  334. * @buflen: the length (in bytes) of the buffer
  335. * @state: the state of the block we're looking for
  336. *
  337. * Returns: The number of bits
  338. */
  339. static u32 gfs2_bitcount(struct gfs2_rgrpd *rgd, const u8 *buffer,
  340. unsigned int buflen, u8 state)
  341. {
  342. const u8 *byte = buffer;
  343. const u8 *end = buffer + buflen;
  344. const u8 state1 = state << 2;
  345. const u8 state2 = state << 4;
  346. const u8 state3 = state << 6;
  347. u32 count = 0;
  348. for (; byte < end; byte++) {
  349. if (((*byte) & 0x03) == state)
  350. count++;
  351. if (((*byte) & 0x0C) == state1)
  352. count++;
  353. if (((*byte) & 0x30) == state2)
  354. count++;
  355. if (((*byte) & 0xC0) == state3)
  356. count++;
  357. }
  358. return count;
  359. }
  360. /**
  361. * gfs2_rgrp_verify - Verify that a resource group is consistent
  362. * @rgd: the rgrp
  363. *
  364. */
  365. void gfs2_rgrp_verify(struct gfs2_rgrpd *rgd)
  366. {
  367. struct gfs2_sbd *sdp = rgd->rd_sbd;
  368. struct gfs2_bitmap *bi = NULL;
  369. u32 length = rgd->rd_length;
  370. u32 count[4], tmp;
  371. int buf, x;
  372. memset(count, 0, 4 * sizeof(u32));
  373. /* Count # blocks in each of 4 possible allocation states */
  374. for (buf = 0; buf < length; buf++) {
  375. bi = rgd->rd_bits + buf;
  376. for (x = 0; x < 4; x++)
  377. count[x] += gfs2_bitcount(rgd,
  378. bi->bi_bh->b_data +
  379. bi->bi_offset,
  380. bi->bi_len, x);
  381. }
  382. if (count[0] != rgd->rd_free) {
  383. if (gfs2_consist_rgrpd(rgd))
  384. fs_err(sdp, "free data mismatch: %u != %u\n",
  385. count[0], rgd->rd_free);
  386. return;
  387. }
  388. tmp = rgd->rd_data - rgd->rd_free - rgd->rd_dinodes;
  389. if (count[1] != tmp) {
  390. if (gfs2_consist_rgrpd(rgd))
  391. fs_err(sdp, "used data mismatch: %u != %u\n",
  392. count[1], tmp);
  393. return;
  394. }
  395. if (count[2] + count[3] != rgd->rd_dinodes) {
  396. if (gfs2_consist_rgrpd(rgd))
  397. fs_err(sdp, "used metadata mismatch: %u != %u\n",
  398. count[2] + count[3], rgd->rd_dinodes);
  399. return;
  400. }
  401. }
  402. static inline int rgrp_contains_block(struct gfs2_rgrpd *rgd, u64 block)
  403. {
  404. u64 first = rgd->rd_data0;
  405. u64 last = first + rgd->rd_data;
  406. return first <= block && block < last;
  407. }
  408. /**
  409. * gfs2_blk2rgrpd - Find resource group for a given data/meta block number
  410. * @sdp: The GFS2 superblock
  411. * @blk: The data block number
  412. * @exact: True if this needs to be an exact match
  413. *
  414. * Returns: The resource group, or NULL if not found
  415. */
  416. struct gfs2_rgrpd *gfs2_blk2rgrpd(struct gfs2_sbd *sdp, u64 blk, bool exact)
  417. {
  418. struct rb_node *n, *next;
  419. struct gfs2_rgrpd *cur;
  420. spin_lock(&sdp->sd_rindex_spin);
  421. n = sdp->sd_rindex_tree.rb_node;
  422. while (n) {
  423. cur = rb_entry(n, struct gfs2_rgrpd, rd_node);
  424. next = NULL;
  425. if (blk < cur->rd_addr)
  426. next = n->rb_left;
  427. else if (blk >= cur->rd_data0 + cur->rd_data)
  428. next = n->rb_right;
  429. if (next == NULL) {
  430. spin_unlock(&sdp->sd_rindex_spin);
  431. if (exact) {
  432. if (blk < cur->rd_addr)
  433. return NULL;
  434. if (blk >= cur->rd_data0 + cur->rd_data)
  435. return NULL;
  436. }
  437. return cur;
  438. }
  439. n = next;
  440. }
  441. spin_unlock(&sdp->sd_rindex_spin);
  442. return NULL;
  443. }
  444. /**
  445. * gfs2_rgrpd_get_first - get the first Resource Group in the filesystem
  446. * @sdp: The GFS2 superblock
  447. *
  448. * Returns: The first rgrp in the filesystem
  449. */
  450. struct gfs2_rgrpd *gfs2_rgrpd_get_first(struct gfs2_sbd *sdp)
  451. {
  452. const struct rb_node *n;
  453. struct gfs2_rgrpd *rgd;
  454. spin_lock(&sdp->sd_rindex_spin);
  455. n = rb_first(&sdp->sd_rindex_tree);
  456. rgd = rb_entry(n, struct gfs2_rgrpd, rd_node);
  457. spin_unlock(&sdp->sd_rindex_spin);
  458. return rgd;
  459. }
  460. /**
  461. * gfs2_rgrpd_get_next - get the next RG
  462. * @rgd: the resource group descriptor
  463. *
  464. * Returns: The next rgrp
  465. */
  466. struct gfs2_rgrpd *gfs2_rgrpd_get_next(struct gfs2_rgrpd *rgd)
  467. {
  468. struct gfs2_sbd *sdp = rgd->rd_sbd;
  469. const struct rb_node *n;
  470. spin_lock(&sdp->sd_rindex_spin);
  471. n = rb_next(&rgd->rd_node);
  472. if (n == NULL)
  473. n = rb_first(&sdp->sd_rindex_tree);
  474. if (unlikely(&rgd->rd_node == n)) {
  475. spin_unlock(&sdp->sd_rindex_spin);
  476. return NULL;
  477. }
  478. rgd = rb_entry(n, struct gfs2_rgrpd, rd_node);
  479. spin_unlock(&sdp->sd_rindex_spin);
  480. return rgd;
  481. }
  482. void gfs2_free_clones(struct gfs2_rgrpd *rgd)
  483. {
  484. int x;
  485. for (x = 0; x < rgd->rd_length; x++) {
  486. struct gfs2_bitmap *bi = rgd->rd_bits + x;
  487. kfree(bi->bi_clone);
  488. bi->bi_clone = NULL;
  489. }
  490. }
  491. /**
  492. * gfs2_rs_alloc - make sure we have a reservation assigned to the inode
  493. * @ip: the inode for this reservation
  494. */
  495. int gfs2_rs_alloc(struct gfs2_inode *ip)
  496. {
  497. int error = 0;
  498. down_write(&ip->i_rw_mutex);
  499. if (ip->i_res)
  500. goto out;
  501. ip->i_res = kmem_cache_zalloc(gfs2_rsrv_cachep, GFP_NOFS);
  502. if (!ip->i_res) {
  503. error = -ENOMEM;
  504. goto out;
  505. }
  506. RB_CLEAR_NODE(&ip->i_res->rs_node);
  507. out:
  508. up_write(&ip->i_rw_mutex);
  509. return error;
  510. }
  511. static void dump_rs(struct seq_file *seq, const struct gfs2_blkreserv *rs)
  512. {
  513. gfs2_print_dbg(seq, " B: n:%llu s:%llu b:%u f:%u\n",
  514. (unsigned long long)rs->rs_inum,
  515. (unsigned long long)gfs2_rbm_to_block(&rs->rs_rbm),
  516. rs->rs_rbm.offset, rs->rs_free);
  517. }
  518. /**
  519. * __rs_deltree - remove a multi-block reservation from the rgd tree
  520. * @rs: The reservation to remove
  521. *
  522. */
  523. static void __rs_deltree(struct gfs2_inode *ip, struct gfs2_blkreserv *rs)
  524. {
  525. struct gfs2_rgrpd *rgd;
  526. if (!gfs2_rs_active(rs))
  527. return;
  528. rgd = rs->rs_rbm.rgd;
  529. trace_gfs2_rs(rs, TRACE_RS_TREEDEL);
  530. rb_erase(&rs->rs_node, &rgd->rd_rstree);
  531. RB_CLEAR_NODE(&rs->rs_node);
  532. if (rs->rs_free) {
  533. /* return reserved blocks to the rgrp and the ip */
  534. BUG_ON(rs->rs_rbm.rgd->rd_reserved < rs->rs_free);
  535. rs->rs_rbm.rgd->rd_reserved -= rs->rs_free;
  536. rs->rs_free = 0;
  537. clear_bit(GBF_FULL, &rs->rs_rbm.bi->bi_flags);
  538. smp_mb__after_clear_bit();
  539. }
  540. }
  541. /**
  542. * gfs2_rs_deltree - remove a multi-block reservation from the rgd tree
  543. * @rs: The reservation to remove
  544. *
  545. */
  546. void gfs2_rs_deltree(struct gfs2_inode *ip, struct gfs2_blkreserv *rs)
  547. {
  548. struct gfs2_rgrpd *rgd;
  549. rgd = rs->rs_rbm.rgd;
  550. if (rgd) {
  551. spin_lock(&rgd->rd_rsspin);
  552. __rs_deltree(ip, rs);
  553. spin_unlock(&rgd->rd_rsspin);
  554. }
  555. }
  556. /**
  557. * gfs2_rs_delete - delete a multi-block reservation
  558. * @ip: The inode for this reservation
  559. *
  560. */
  561. void gfs2_rs_delete(struct gfs2_inode *ip)
  562. {
  563. down_write(&ip->i_rw_mutex);
  564. if (ip->i_res) {
  565. gfs2_rs_deltree(ip, ip->i_res);
  566. BUG_ON(ip->i_res->rs_free);
  567. kmem_cache_free(gfs2_rsrv_cachep, ip->i_res);
  568. ip->i_res = NULL;
  569. }
  570. up_write(&ip->i_rw_mutex);
  571. }
  572. /**
  573. * return_all_reservations - return all reserved blocks back to the rgrp.
  574. * @rgd: the rgrp that needs its space back
  575. *
  576. * We previously reserved a bunch of blocks for allocation. Now we need to
  577. * give them back. This leave the reservation structures in tact, but removes
  578. * all of their corresponding "no-fly zones".
  579. */
  580. static void return_all_reservations(struct gfs2_rgrpd *rgd)
  581. {
  582. struct rb_node *n;
  583. struct gfs2_blkreserv *rs;
  584. spin_lock(&rgd->rd_rsspin);
  585. while ((n = rb_first(&rgd->rd_rstree))) {
  586. rs = rb_entry(n, struct gfs2_blkreserv, rs_node);
  587. __rs_deltree(NULL, rs);
  588. }
  589. spin_unlock(&rgd->rd_rsspin);
  590. }
  591. void gfs2_clear_rgrpd(struct gfs2_sbd *sdp)
  592. {
  593. struct rb_node *n;
  594. struct gfs2_rgrpd *rgd;
  595. struct gfs2_glock *gl;
  596. while ((n = rb_first(&sdp->sd_rindex_tree))) {
  597. rgd = rb_entry(n, struct gfs2_rgrpd, rd_node);
  598. gl = rgd->rd_gl;
  599. rb_erase(n, &sdp->sd_rindex_tree);
  600. if (gl) {
  601. spin_lock(&gl->gl_spin);
  602. gl->gl_object = NULL;
  603. spin_unlock(&gl->gl_spin);
  604. gfs2_glock_add_to_lru(gl);
  605. gfs2_glock_put(gl);
  606. }
  607. gfs2_free_clones(rgd);
  608. kfree(rgd->rd_bits);
  609. return_all_reservations(rgd);
  610. kmem_cache_free(gfs2_rgrpd_cachep, rgd);
  611. }
  612. }
  613. static void gfs2_rindex_print(const struct gfs2_rgrpd *rgd)
  614. {
  615. printk(KERN_INFO " ri_addr = %llu\n", (unsigned long long)rgd->rd_addr);
  616. printk(KERN_INFO " ri_length = %u\n", rgd->rd_length);
  617. printk(KERN_INFO " ri_data0 = %llu\n", (unsigned long long)rgd->rd_data0);
  618. printk(KERN_INFO " ri_data = %u\n", rgd->rd_data);
  619. printk(KERN_INFO " ri_bitbytes = %u\n", rgd->rd_bitbytes);
  620. }
  621. /**
  622. * gfs2_compute_bitstructs - Compute the bitmap sizes
  623. * @rgd: The resource group descriptor
  624. *
  625. * Calculates bitmap descriptors, one for each block that contains bitmap data
  626. *
  627. * Returns: errno
  628. */
  629. static int compute_bitstructs(struct gfs2_rgrpd *rgd)
  630. {
  631. struct gfs2_sbd *sdp = rgd->rd_sbd;
  632. struct gfs2_bitmap *bi;
  633. u32 length = rgd->rd_length; /* # blocks in hdr & bitmap */
  634. u32 bytes_left, bytes;
  635. int x;
  636. if (!length)
  637. return -EINVAL;
  638. rgd->rd_bits = kcalloc(length, sizeof(struct gfs2_bitmap), GFP_NOFS);
  639. if (!rgd->rd_bits)
  640. return -ENOMEM;
  641. bytes_left = rgd->rd_bitbytes;
  642. for (x = 0; x < length; x++) {
  643. bi = rgd->rd_bits + x;
  644. bi->bi_flags = 0;
  645. /* small rgrp; bitmap stored completely in header block */
  646. if (length == 1) {
  647. bytes = bytes_left;
  648. bi->bi_offset = sizeof(struct gfs2_rgrp);
  649. bi->bi_start = 0;
  650. bi->bi_len = bytes;
  651. /* header block */
  652. } else if (x == 0) {
  653. bytes = sdp->sd_sb.sb_bsize - sizeof(struct gfs2_rgrp);
  654. bi->bi_offset = sizeof(struct gfs2_rgrp);
  655. bi->bi_start = 0;
  656. bi->bi_len = bytes;
  657. /* last block */
  658. } else if (x + 1 == length) {
  659. bytes = bytes_left;
  660. bi->bi_offset = sizeof(struct gfs2_meta_header);
  661. bi->bi_start = rgd->rd_bitbytes - bytes_left;
  662. bi->bi_len = bytes;
  663. /* other blocks */
  664. } else {
  665. bytes = sdp->sd_sb.sb_bsize -
  666. sizeof(struct gfs2_meta_header);
  667. bi->bi_offset = sizeof(struct gfs2_meta_header);
  668. bi->bi_start = rgd->rd_bitbytes - bytes_left;
  669. bi->bi_len = bytes;
  670. }
  671. bytes_left -= bytes;
  672. }
  673. if (bytes_left) {
  674. gfs2_consist_rgrpd(rgd);
  675. return -EIO;
  676. }
  677. bi = rgd->rd_bits + (length - 1);
  678. if ((bi->bi_start + bi->bi_len) * GFS2_NBBY != rgd->rd_data) {
  679. if (gfs2_consist_rgrpd(rgd)) {
  680. gfs2_rindex_print(rgd);
  681. fs_err(sdp, "start=%u len=%u offset=%u\n",
  682. bi->bi_start, bi->bi_len, bi->bi_offset);
  683. }
  684. return -EIO;
  685. }
  686. return 0;
  687. }
  688. /**
  689. * gfs2_ri_total - Total up the file system space, according to the rindex.
  690. * @sdp: the filesystem
  691. *
  692. */
  693. u64 gfs2_ri_total(struct gfs2_sbd *sdp)
  694. {
  695. u64 total_data = 0;
  696. struct inode *inode = sdp->sd_rindex;
  697. struct gfs2_inode *ip = GFS2_I(inode);
  698. char buf[sizeof(struct gfs2_rindex)];
  699. int error, rgrps;
  700. for (rgrps = 0;; rgrps++) {
  701. loff_t pos = rgrps * sizeof(struct gfs2_rindex);
  702. if (pos + sizeof(struct gfs2_rindex) > i_size_read(inode))
  703. break;
  704. error = gfs2_internal_read(ip, buf, &pos,
  705. sizeof(struct gfs2_rindex));
  706. if (error != sizeof(struct gfs2_rindex))
  707. break;
  708. total_data += be32_to_cpu(((struct gfs2_rindex *)buf)->ri_data);
  709. }
  710. return total_data;
  711. }
  712. static int rgd_insert(struct gfs2_rgrpd *rgd)
  713. {
  714. struct gfs2_sbd *sdp = rgd->rd_sbd;
  715. struct rb_node **newn = &sdp->sd_rindex_tree.rb_node, *parent = NULL;
  716. /* Figure out where to put new node */
  717. while (*newn) {
  718. struct gfs2_rgrpd *cur = rb_entry(*newn, struct gfs2_rgrpd,
  719. rd_node);
  720. parent = *newn;
  721. if (rgd->rd_addr < cur->rd_addr)
  722. newn = &((*newn)->rb_left);
  723. else if (rgd->rd_addr > cur->rd_addr)
  724. newn = &((*newn)->rb_right);
  725. else
  726. return -EEXIST;
  727. }
  728. rb_link_node(&rgd->rd_node, parent, newn);
  729. rb_insert_color(&rgd->rd_node, &sdp->sd_rindex_tree);
  730. sdp->sd_rgrps++;
  731. return 0;
  732. }
  733. /**
  734. * read_rindex_entry - Pull in a new resource index entry from the disk
  735. * @ip: Pointer to the rindex inode
  736. *
  737. * Returns: 0 on success, > 0 on EOF, error code otherwise
  738. */
  739. static int read_rindex_entry(struct gfs2_inode *ip)
  740. {
  741. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  742. loff_t pos = sdp->sd_rgrps * sizeof(struct gfs2_rindex);
  743. struct gfs2_rindex buf;
  744. int error;
  745. struct gfs2_rgrpd *rgd;
  746. if (pos >= i_size_read(&ip->i_inode))
  747. return 1;
  748. error = gfs2_internal_read(ip, (char *)&buf, &pos,
  749. sizeof(struct gfs2_rindex));
  750. if (error != sizeof(struct gfs2_rindex))
  751. return (error == 0) ? 1 : error;
  752. rgd = kmem_cache_zalloc(gfs2_rgrpd_cachep, GFP_NOFS);
  753. error = -ENOMEM;
  754. if (!rgd)
  755. return error;
  756. rgd->rd_sbd = sdp;
  757. rgd->rd_addr = be64_to_cpu(buf.ri_addr);
  758. rgd->rd_length = be32_to_cpu(buf.ri_length);
  759. rgd->rd_data0 = be64_to_cpu(buf.ri_data0);
  760. rgd->rd_data = be32_to_cpu(buf.ri_data);
  761. rgd->rd_bitbytes = be32_to_cpu(buf.ri_bitbytes);
  762. spin_lock_init(&rgd->rd_rsspin);
  763. error = compute_bitstructs(rgd);
  764. if (error)
  765. goto fail;
  766. error = gfs2_glock_get(sdp, rgd->rd_addr,
  767. &gfs2_rgrp_glops, CREATE, &rgd->rd_gl);
  768. if (error)
  769. goto fail;
  770. rgd->rd_gl->gl_object = rgd;
  771. rgd->rd_rgl = (struct gfs2_rgrp_lvb *)rgd->rd_gl->gl_lksb.sb_lvbptr;
  772. rgd->rd_flags &= ~GFS2_RDF_UPTODATE;
  773. if (rgd->rd_data > sdp->sd_max_rg_data)
  774. sdp->sd_max_rg_data = rgd->rd_data;
  775. spin_lock(&sdp->sd_rindex_spin);
  776. error = rgd_insert(rgd);
  777. spin_unlock(&sdp->sd_rindex_spin);
  778. if (!error)
  779. return 0;
  780. error = 0; /* someone else read in the rgrp; free it and ignore it */
  781. gfs2_glock_put(rgd->rd_gl);
  782. fail:
  783. kfree(rgd->rd_bits);
  784. kmem_cache_free(gfs2_rgrpd_cachep, rgd);
  785. return error;
  786. }
  787. /**
  788. * gfs2_ri_update - Pull in a new resource index from the disk
  789. * @ip: pointer to the rindex inode
  790. *
  791. * Returns: 0 on successful update, error code otherwise
  792. */
  793. static int gfs2_ri_update(struct gfs2_inode *ip)
  794. {
  795. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  796. int error;
  797. do {
  798. error = read_rindex_entry(ip);
  799. } while (error == 0);
  800. if (error < 0)
  801. return error;
  802. sdp->sd_rindex_uptodate = 1;
  803. return 0;
  804. }
  805. /**
  806. * gfs2_rindex_update - Update the rindex if required
  807. * @sdp: The GFS2 superblock
  808. *
  809. * We grab a lock on the rindex inode to make sure that it doesn't
  810. * change whilst we are performing an operation. We keep this lock
  811. * for quite long periods of time compared to other locks. This
  812. * doesn't matter, since it is shared and it is very, very rarely
  813. * accessed in the exclusive mode (i.e. only when expanding the filesystem).
  814. *
  815. * This makes sure that we're using the latest copy of the resource index
  816. * special file, which might have been updated if someone expanded the
  817. * filesystem (via gfs2_grow utility), which adds new resource groups.
  818. *
  819. * Returns: 0 on succeess, error code otherwise
  820. */
  821. int gfs2_rindex_update(struct gfs2_sbd *sdp)
  822. {
  823. struct gfs2_inode *ip = GFS2_I(sdp->sd_rindex);
  824. struct gfs2_glock *gl = ip->i_gl;
  825. struct gfs2_holder ri_gh;
  826. int error = 0;
  827. int unlock_required = 0;
  828. /* Read new copy from disk if we don't have the latest */
  829. if (!sdp->sd_rindex_uptodate) {
  830. if (!gfs2_glock_is_locked_by_me(gl)) {
  831. error = gfs2_glock_nq_init(gl, LM_ST_SHARED, 0, &ri_gh);
  832. if (error)
  833. return error;
  834. unlock_required = 1;
  835. }
  836. if (!sdp->sd_rindex_uptodate)
  837. error = gfs2_ri_update(ip);
  838. if (unlock_required)
  839. gfs2_glock_dq_uninit(&ri_gh);
  840. }
  841. return error;
  842. }
  843. static void gfs2_rgrp_in(struct gfs2_rgrpd *rgd, const void *buf)
  844. {
  845. const struct gfs2_rgrp *str = buf;
  846. u32 rg_flags;
  847. rg_flags = be32_to_cpu(str->rg_flags);
  848. rg_flags &= ~GFS2_RDF_MASK;
  849. rgd->rd_flags &= GFS2_RDF_MASK;
  850. rgd->rd_flags |= rg_flags;
  851. rgd->rd_free = be32_to_cpu(str->rg_free);
  852. rgd->rd_dinodes = be32_to_cpu(str->rg_dinodes);
  853. rgd->rd_igeneration = be64_to_cpu(str->rg_igeneration);
  854. }
  855. static void gfs2_rgrp_out(struct gfs2_rgrpd *rgd, void *buf)
  856. {
  857. struct gfs2_rgrp *str = buf;
  858. str->rg_flags = cpu_to_be32(rgd->rd_flags & ~GFS2_RDF_MASK);
  859. str->rg_free = cpu_to_be32(rgd->rd_free);
  860. str->rg_dinodes = cpu_to_be32(rgd->rd_dinodes);
  861. str->__pad = cpu_to_be32(0);
  862. str->rg_igeneration = cpu_to_be64(rgd->rd_igeneration);
  863. memset(&str->rg_reserved, 0, sizeof(str->rg_reserved));
  864. }
  865. static int gfs2_rgrp_lvb_valid(struct gfs2_rgrpd *rgd)
  866. {
  867. struct gfs2_rgrp_lvb *rgl = rgd->rd_rgl;
  868. struct gfs2_rgrp *str = (struct gfs2_rgrp *)rgd->rd_bits[0].bi_bh->b_data;
  869. if (rgl->rl_flags != str->rg_flags || rgl->rl_free != str->rg_free ||
  870. rgl->rl_dinodes != str->rg_dinodes ||
  871. rgl->rl_igeneration != str->rg_igeneration)
  872. return 0;
  873. return 1;
  874. }
  875. static void gfs2_rgrp_ondisk2lvb(struct gfs2_rgrp_lvb *rgl, const void *buf)
  876. {
  877. const struct gfs2_rgrp *str = buf;
  878. rgl->rl_magic = cpu_to_be32(GFS2_MAGIC);
  879. rgl->rl_flags = str->rg_flags;
  880. rgl->rl_free = str->rg_free;
  881. rgl->rl_dinodes = str->rg_dinodes;
  882. rgl->rl_igeneration = str->rg_igeneration;
  883. rgl->__pad = 0UL;
  884. }
  885. static void update_rgrp_lvb_unlinked(struct gfs2_rgrpd *rgd, u32 change)
  886. {
  887. struct gfs2_rgrp_lvb *rgl = rgd->rd_rgl;
  888. u32 unlinked = be32_to_cpu(rgl->rl_unlinked) + change;
  889. rgl->rl_unlinked = cpu_to_be32(unlinked);
  890. }
  891. static u32 count_unlinked(struct gfs2_rgrpd *rgd)
  892. {
  893. struct gfs2_bitmap *bi;
  894. const u32 length = rgd->rd_length;
  895. const u8 *buffer = NULL;
  896. u32 i, goal, count = 0;
  897. for (i = 0, bi = rgd->rd_bits; i < length; i++, bi++) {
  898. goal = 0;
  899. buffer = bi->bi_bh->b_data + bi->bi_offset;
  900. WARN_ON(!buffer_uptodate(bi->bi_bh));
  901. while (goal < bi->bi_len * GFS2_NBBY) {
  902. goal = gfs2_bitfit(buffer, bi->bi_len, goal,
  903. GFS2_BLKST_UNLINKED);
  904. if (goal == BFITNOENT)
  905. break;
  906. count++;
  907. goal++;
  908. }
  909. }
  910. return count;
  911. }
  912. /**
  913. * gfs2_rgrp_bh_get - Read in a RG's header and bitmaps
  914. * @rgd: the struct gfs2_rgrpd describing the RG to read in
  915. *
  916. * Read in all of a Resource Group's header and bitmap blocks.
  917. * Caller must eventually call gfs2_rgrp_relse() to free the bitmaps.
  918. *
  919. * Returns: errno
  920. */
  921. int gfs2_rgrp_bh_get(struct gfs2_rgrpd *rgd)
  922. {
  923. struct gfs2_sbd *sdp = rgd->rd_sbd;
  924. struct gfs2_glock *gl = rgd->rd_gl;
  925. unsigned int length = rgd->rd_length;
  926. struct gfs2_bitmap *bi;
  927. unsigned int x, y;
  928. int error;
  929. if (rgd->rd_bits[0].bi_bh != NULL)
  930. return 0;
  931. for (x = 0; x < length; x++) {
  932. bi = rgd->rd_bits + x;
  933. error = gfs2_meta_read(gl, rgd->rd_addr + x, 0, &bi->bi_bh);
  934. if (error)
  935. goto fail;
  936. }
  937. for (y = length; y--;) {
  938. bi = rgd->rd_bits + y;
  939. error = gfs2_meta_wait(sdp, bi->bi_bh);
  940. if (error)
  941. goto fail;
  942. if (gfs2_metatype_check(sdp, bi->bi_bh, y ? GFS2_METATYPE_RB :
  943. GFS2_METATYPE_RG)) {
  944. error = -EIO;
  945. goto fail;
  946. }
  947. }
  948. if (!(rgd->rd_flags & GFS2_RDF_UPTODATE)) {
  949. for (x = 0; x < length; x++)
  950. clear_bit(GBF_FULL, &rgd->rd_bits[x].bi_flags);
  951. gfs2_rgrp_in(rgd, (rgd->rd_bits[0].bi_bh)->b_data);
  952. rgd->rd_flags |= (GFS2_RDF_UPTODATE | GFS2_RDF_CHECK);
  953. rgd->rd_free_clone = rgd->rd_free;
  954. }
  955. if (be32_to_cpu(GFS2_MAGIC) != rgd->rd_rgl->rl_magic) {
  956. rgd->rd_rgl->rl_unlinked = cpu_to_be32(count_unlinked(rgd));
  957. gfs2_rgrp_ondisk2lvb(rgd->rd_rgl,
  958. rgd->rd_bits[0].bi_bh->b_data);
  959. }
  960. else if (sdp->sd_args.ar_rgrplvb) {
  961. if (!gfs2_rgrp_lvb_valid(rgd)){
  962. gfs2_consist_rgrpd(rgd);
  963. error = -EIO;
  964. goto fail;
  965. }
  966. if (rgd->rd_rgl->rl_unlinked == 0)
  967. rgd->rd_flags &= ~GFS2_RDF_CHECK;
  968. }
  969. return 0;
  970. fail:
  971. while (x--) {
  972. bi = rgd->rd_bits + x;
  973. brelse(bi->bi_bh);
  974. bi->bi_bh = NULL;
  975. gfs2_assert_warn(sdp, !bi->bi_clone);
  976. }
  977. return error;
  978. }
  979. int update_rgrp_lvb(struct gfs2_rgrpd *rgd)
  980. {
  981. u32 rl_flags;
  982. if (rgd->rd_flags & GFS2_RDF_UPTODATE)
  983. return 0;
  984. if (be32_to_cpu(GFS2_MAGIC) != rgd->rd_rgl->rl_magic)
  985. return gfs2_rgrp_bh_get(rgd);
  986. rl_flags = be32_to_cpu(rgd->rd_rgl->rl_flags);
  987. rl_flags &= ~GFS2_RDF_MASK;
  988. rgd->rd_flags &= GFS2_RDF_MASK;
  989. rgd->rd_flags |= (rl_flags | GFS2_RDF_UPTODATE | GFS2_RDF_CHECK);
  990. if (rgd->rd_rgl->rl_unlinked == 0)
  991. rgd->rd_flags &= ~GFS2_RDF_CHECK;
  992. rgd->rd_free = be32_to_cpu(rgd->rd_rgl->rl_free);
  993. rgd->rd_free_clone = rgd->rd_free;
  994. rgd->rd_dinodes = be32_to_cpu(rgd->rd_rgl->rl_dinodes);
  995. rgd->rd_igeneration = be64_to_cpu(rgd->rd_rgl->rl_igeneration);
  996. return 0;
  997. }
  998. int gfs2_rgrp_go_lock(struct gfs2_holder *gh)
  999. {
  1000. struct gfs2_rgrpd *rgd = gh->gh_gl->gl_object;
  1001. struct gfs2_sbd *sdp = rgd->rd_sbd;
  1002. if (gh->gh_flags & GL_SKIP && sdp->sd_args.ar_rgrplvb)
  1003. return 0;
  1004. return gfs2_rgrp_bh_get((struct gfs2_rgrpd *)gh->gh_gl->gl_object);
  1005. }
  1006. /**
  1007. * gfs2_rgrp_go_unlock - Release RG bitmaps read in with gfs2_rgrp_bh_get()
  1008. * @gh: The glock holder for the resource group
  1009. *
  1010. */
  1011. void gfs2_rgrp_go_unlock(struct gfs2_holder *gh)
  1012. {
  1013. struct gfs2_rgrpd *rgd = gh->gh_gl->gl_object;
  1014. int x, length = rgd->rd_length;
  1015. for (x = 0; x < length; x++) {
  1016. struct gfs2_bitmap *bi = rgd->rd_bits + x;
  1017. if (bi->bi_bh) {
  1018. brelse(bi->bi_bh);
  1019. bi->bi_bh = NULL;
  1020. }
  1021. }
  1022. }
  1023. int gfs2_rgrp_send_discards(struct gfs2_sbd *sdp, u64 offset,
  1024. struct buffer_head *bh,
  1025. const struct gfs2_bitmap *bi, unsigned minlen, u64 *ptrimmed)
  1026. {
  1027. struct super_block *sb = sdp->sd_vfs;
  1028. u64 blk;
  1029. sector_t start = 0;
  1030. sector_t nr_blks = 0;
  1031. int rv;
  1032. unsigned int x;
  1033. u32 trimmed = 0;
  1034. u8 diff;
  1035. for (x = 0; x < bi->bi_len; x++) {
  1036. const u8 *clone = bi->bi_clone ? bi->bi_clone : bi->bi_bh->b_data;
  1037. clone += bi->bi_offset;
  1038. clone += x;
  1039. if (bh) {
  1040. const u8 *orig = bh->b_data + bi->bi_offset + x;
  1041. diff = ~(*orig | (*orig >> 1)) & (*clone | (*clone >> 1));
  1042. } else {
  1043. diff = ~(*clone | (*clone >> 1));
  1044. }
  1045. diff &= 0x55;
  1046. if (diff == 0)
  1047. continue;
  1048. blk = offset + ((bi->bi_start + x) * GFS2_NBBY);
  1049. while(diff) {
  1050. if (diff & 1) {
  1051. if (nr_blks == 0)
  1052. goto start_new_extent;
  1053. if ((start + nr_blks) != blk) {
  1054. if (nr_blks >= minlen) {
  1055. rv = sb_issue_discard(sb,
  1056. start, nr_blks,
  1057. GFP_NOFS, 0);
  1058. if (rv)
  1059. goto fail;
  1060. trimmed += nr_blks;
  1061. }
  1062. nr_blks = 0;
  1063. start_new_extent:
  1064. start = blk;
  1065. }
  1066. nr_blks++;
  1067. }
  1068. diff >>= 2;
  1069. blk++;
  1070. }
  1071. }
  1072. if (nr_blks >= minlen) {
  1073. rv = sb_issue_discard(sb, start, nr_blks, GFP_NOFS, 0);
  1074. if (rv)
  1075. goto fail;
  1076. trimmed += nr_blks;
  1077. }
  1078. if (ptrimmed)
  1079. *ptrimmed = trimmed;
  1080. return 0;
  1081. fail:
  1082. if (sdp->sd_args.ar_discard)
  1083. fs_warn(sdp, "error %d on discard request, turning discards off for this filesystem", rv);
  1084. sdp->sd_args.ar_discard = 0;
  1085. return -EIO;
  1086. }
  1087. /**
  1088. * gfs2_fitrim - Generate discard requests for unused bits of the filesystem
  1089. * @filp: Any file on the filesystem
  1090. * @argp: Pointer to the arguments (also used to pass result)
  1091. *
  1092. * Returns: 0 on success, otherwise error code
  1093. */
  1094. int gfs2_fitrim(struct file *filp, void __user *argp)
  1095. {
  1096. struct inode *inode = file_inode(filp);
  1097. struct gfs2_sbd *sdp = GFS2_SB(inode);
  1098. struct request_queue *q = bdev_get_queue(sdp->sd_vfs->s_bdev);
  1099. struct buffer_head *bh;
  1100. struct gfs2_rgrpd *rgd;
  1101. struct gfs2_rgrpd *rgd_end;
  1102. struct gfs2_holder gh;
  1103. struct fstrim_range r;
  1104. int ret = 0;
  1105. u64 amt;
  1106. u64 trimmed = 0;
  1107. u64 start, end, minlen;
  1108. unsigned int x;
  1109. unsigned bs_shift = sdp->sd_sb.sb_bsize_shift;
  1110. if (!capable(CAP_SYS_ADMIN))
  1111. return -EPERM;
  1112. if (!blk_queue_discard(q))
  1113. return -EOPNOTSUPP;
  1114. if (copy_from_user(&r, argp, sizeof(r)))
  1115. return -EFAULT;
  1116. ret = gfs2_rindex_update(sdp);
  1117. if (ret)
  1118. return ret;
  1119. start = r.start >> bs_shift;
  1120. end = start + (r.len >> bs_shift);
  1121. minlen = max_t(u64, r.minlen,
  1122. q->limits.discard_granularity) >> bs_shift;
  1123. rgd = gfs2_blk2rgrpd(sdp, start, 0);
  1124. rgd_end = gfs2_blk2rgrpd(sdp, end - 1, 0);
  1125. if (end <= start ||
  1126. minlen > sdp->sd_max_rg_data ||
  1127. start > rgd_end->rd_data0 + rgd_end->rd_data)
  1128. return -EINVAL;
  1129. while (1) {
  1130. ret = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_EXCLUSIVE, 0, &gh);
  1131. if (ret)
  1132. goto out;
  1133. if (!(rgd->rd_flags & GFS2_RGF_TRIMMED)) {
  1134. /* Trim each bitmap in the rgrp */
  1135. for (x = 0; x < rgd->rd_length; x++) {
  1136. struct gfs2_bitmap *bi = rgd->rd_bits + x;
  1137. ret = gfs2_rgrp_send_discards(sdp,
  1138. rgd->rd_data0, NULL, bi, minlen,
  1139. &amt);
  1140. if (ret) {
  1141. gfs2_glock_dq_uninit(&gh);
  1142. goto out;
  1143. }
  1144. trimmed += amt;
  1145. }
  1146. /* Mark rgrp as having been trimmed */
  1147. ret = gfs2_trans_begin(sdp, RES_RG_HDR, 0);
  1148. if (ret == 0) {
  1149. bh = rgd->rd_bits[0].bi_bh;
  1150. rgd->rd_flags |= GFS2_RGF_TRIMMED;
  1151. gfs2_trans_add_meta(rgd->rd_gl, bh);
  1152. gfs2_rgrp_out(rgd, bh->b_data);
  1153. gfs2_rgrp_ondisk2lvb(rgd->rd_rgl, bh->b_data);
  1154. gfs2_trans_end(sdp);
  1155. }
  1156. }
  1157. gfs2_glock_dq_uninit(&gh);
  1158. if (rgd == rgd_end)
  1159. break;
  1160. rgd = gfs2_rgrpd_get_next(rgd);
  1161. }
  1162. out:
  1163. r.len = trimmed << 9;
  1164. if (copy_to_user(argp, &r, sizeof(r)))
  1165. return -EFAULT;
  1166. return ret;
  1167. }
  1168. /**
  1169. * rs_insert - insert a new multi-block reservation into the rgrp's rb_tree
  1170. * @ip: the inode structure
  1171. *
  1172. */
  1173. static void rs_insert(struct gfs2_inode *ip)
  1174. {
  1175. struct rb_node **newn, *parent = NULL;
  1176. int rc;
  1177. struct gfs2_blkreserv *rs = ip->i_res;
  1178. struct gfs2_rgrpd *rgd = rs->rs_rbm.rgd;
  1179. u64 fsblock = gfs2_rbm_to_block(&rs->rs_rbm);
  1180. BUG_ON(gfs2_rs_active(rs));
  1181. spin_lock(&rgd->rd_rsspin);
  1182. newn = &rgd->rd_rstree.rb_node;
  1183. while (*newn) {
  1184. struct gfs2_blkreserv *cur =
  1185. rb_entry(*newn, struct gfs2_blkreserv, rs_node);
  1186. parent = *newn;
  1187. rc = rs_cmp(fsblock, rs->rs_free, cur);
  1188. if (rc > 0)
  1189. newn = &((*newn)->rb_right);
  1190. else if (rc < 0)
  1191. newn = &((*newn)->rb_left);
  1192. else {
  1193. spin_unlock(&rgd->rd_rsspin);
  1194. WARN_ON(1);
  1195. return;
  1196. }
  1197. }
  1198. rb_link_node(&rs->rs_node, parent, newn);
  1199. rb_insert_color(&rs->rs_node, &rgd->rd_rstree);
  1200. /* Do our rgrp accounting for the reservation */
  1201. rgd->rd_reserved += rs->rs_free; /* blocks reserved */
  1202. spin_unlock(&rgd->rd_rsspin);
  1203. trace_gfs2_rs(rs, TRACE_RS_INSERT);
  1204. }
  1205. /**
  1206. * rg_mblk_search - find a group of multiple free blocks to form a reservation
  1207. * @rgd: the resource group descriptor
  1208. * @ip: pointer to the inode for which we're reserving blocks
  1209. * @requested: number of blocks required for this allocation
  1210. *
  1211. */
  1212. static void rg_mblk_search(struct gfs2_rgrpd *rgd, struct gfs2_inode *ip,
  1213. unsigned requested)
  1214. {
  1215. struct gfs2_rbm rbm = { .rgd = rgd, };
  1216. u64 goal;
  1217. struct gfs2_blkreserv *rs = ip->i_res;
  1218. u32 extlen;
  1219. u32 free_blocks = rgd->rd_free_clone - rgd->rd_reserved;
  1220. int ret;
  1221. extlen = max_t(u32, atomic_read(&rs->rs_sizehint), requested);
  1222. extlen = clamp(extlen, RGRP_RSRV_MINBLKS, free_blocks);
  1223. if ((rgd->rd_free_clone < rgd->rd_reserved) || (free_blocks < extlen))
  1224. return;
  1225. /* Find bitmap block that contains bits for goal block */
  1226. if (rgrp_contains_block(rgd, ip->i_goal))
  1227. goal = ip->i_goal;
  1228. else
  1229. goal = rgd->rd_last_alloc + rgd->rd_data0;
  1230. if (WARN_ON(gfs2_rbm_from_block(&rbm, goal)))
  1231. return;
  1232. ret = gfs2_rbm_find(&rbm, GFS2_BLKST_FREE, extlen, ip, true);
  1233. if (ret == 0) {
  1234. rs->rs_rbm = rbm;
  1235. rs->rs_free = extlen;
  1236. rs->rs_inum = ip->i_no_addr;
  1237. rs_insert(ip);
  1238. } else {
  1239. if (goal == rgd->rd_last_alloc + rgd->rd_data0)
  1240. rgd->rd_last_alloc = 0;
  1241. }
  1242. }
  1243. /**
  1244. * gfs2_next_unreserved_block - Return next block that is not reserved
  1245. * @rgd: The resource group
  1246. * @block: The starting block
  1247. * @length: The required length
  1248. * @ip: Ignore any reservations for this inode
  1249. *
  1250. * If the block does not appear in any reservation, then return the
  1251. * block number unchanged. If it does appear in the reservation, then
  1252. * keep looking through the tree of reservations in order to find the
  1253. * first block number which is not reserved.
  1254. */
  1255. static u64 gfs2_next_unreserved_block(struct gfs2_rgrpd *rgd, u64 block,
  1256. u32 length,
  1257. const struct gfs2_inode *ip)
  1258. {
  1259. struct gfs2_blkreserv *rs;
  1260. struct rb_node *n;
  1261. int rc;
  1262. spin_lock(&rgd->rd_rsspin);
  1263. n = rgd->rd_rstree.rb_node;
  1264. while (n) {
  1265. rs = rb_entry(n, struct gfs2_blkreserv, rs_node);
  1266. rc = rs_cmp(block, length, rs);
  1267. if (rc < 0)
  1268. n = n->rb_left;
  1269. else if (rc > 0)
  1270. n = n->rb_right;
  1271. else
  1272. break;
  1273. }
  1274. if (n) {
  1275. while ((rs_cmp(block, length, rs) == 0) && (ip->i_res != rs)) {
  1276. block = gfs2_rbm_to_block(&rs->rs_rbm) + rs->rs_free;
  1277. n = n->rb_right;
  1278. if (n == NULL)
  1279. break;
  1280. rs = rb_entry(n, struct gfs2_blkreserv, rs_node);
  1281. }
  1282. }
  1283. spin_unlock(&rgd->rd_rsspin);
  1284. return block;
  1285. }
  1286. /**
  1287. * gfs2_reservation_check_and_update - Check for reservations during block alloc
  1288. * @rbm: The current position in the resource group
  1289. * @ip: The inode for which we are searching for blocks
  1290. * @minext: The minimum extent length
  1291. *
  1292. * This checks the current position in the rgrp to see whether there is
  1293. * a reservation covering this block. If not then this function is a
  1294. * no-op. If there is, then the position is moved to the end of the
  1295. * contiguous reservation(s) so that we are pointing at the first
  1296. * non-reserved block.
  1297. *
  1298. * Returns: 0 if no reservation, 1 if @rbm has changed, otherwise an error
  1299. */
  1300. static int gfs2_reservation_check_and_update(struct gfs2_rbm *rbm,
  1301. const struct gfs2_inode *ip,
  1302. u32 minext)
  1303. {
  1304. u64 block = gfs2_rbm_to_block(rbm);
  1305. u32 extlen = 1;
  1306. u64 nblock;
  1307. int ret;
  1308. /*
  1309. * If we have a minimum extent length, then skip over any extent
  1310. * which is less than the min extent length in size.
  1311. */
  1312. if (minext) {
  1313. extlen = gfs2_free_extlen(rbm, minext);
  1314. nblock = block + extlen;
  1315. if (extlen < minext)
  1316. goto fail;
  1317. }
  1318. /*
  1319. * Check the extent which has been found against the reservations
  1320. * and skip if parts of it are already reserved
  1321. */
  1322. nblock = gfs2_next_unreserved_block(rbm->rgd, block, extlen, ip);
  1323. if (nblock == block)
  1324. return 0;
  1325. fail:
  1326. ret = gfs2_rbm_from_block(rbm, nblock);
  1327. if (ret < 0)
  1328. return ret;
  1329. return 1;
  1330. }
  1331. /**
  1332. * gfs2_rbm_find - Look for blocks of a particular state
  1333. * @rbm: Value/result starting position and final position
  1334. * @state: The state which we want to find
  1335. * @minext: The requested extent length (0 for a single block)
  1336. * @ip: If set, check for reservations
  1337. * @nowrap: Stop looking at the end of the rgrp, rather than wrapping
  1338. * around until we've reached the starting point.
  1339. *
  1340. * Side effects:
  1341. * - If looking for free blocks, we set GBF_FULL on each bitmap which
  1342. * has no free blocks in it.
  1343. *
  1344. * Returns: 0 on success, -ENOSPC if there is no block of the requested state
  1345. */
  1346. static int gfs2_rbm_find(struct gfs2_rbm *rbm, u8 state, u32 minext,
  1347. const struct gfs2_inode *ip, bool nowrap)
  1348. {
  1349. struct buffer_head *bh;
  1350. struct gfs2_bitmap *initial_bi;
  1351. u32 initial_offset;
  1352. u32 offset;
  1353. u8 *buffer;
  1354. int index;
  1355. int n = 0;
  1356. int iters = rbm->rgd->rd_length;
  1357. int ret;
  1358. /* If we are not starting at the beginning of a bitmap, then we
  1359. * need to add one to the bitmap count to ensure that we search
  1360. * the starting bitmap twice.
  1361. */
  1362. if (rbm->offset != 0)
  1363. iters++;
  1364. while(1) {
  1365. if (test_bit(GBF_FULL, &rbm->bi->bi_flags) &&
  1366. (state == GFS2_BLKST_FREE))
  1367. goto next_bitmap;
  1368. bh = rbm->bi->bi_bh;
  1369. buffer = bh->b_data + rbm->bi->bi_offset;
  1370. WARN_ON(!buffer_uptodate(bh));
  1371. if (state != GFS2_BLKST_UNLINKED && rbm->bi->bi_clone)
  1372. buffer = rbm->bi->bi_clone + rbm->bi->bi_offset;
  1373. initial_offset = rbm->offset;
  1374. offset = gfs2_bitfit(buffer, rbm->bi->bi_len, rbm->offset, state);
  1375. if (offset == BFITNOENT)
  1376. goto bitmap_full;
  1377. rbm->offset = offset;
  1378. if (ip == NULL)
  1379. return 0;
  1380. initial_bi = rbm->bi;
  1381. ret = gfs2_reservation_check_and_update(rbm, ip, minext);
  1382. if (ret == 0)
  1383. return 0;
  1384. if (ret > 0) {
  1385. n += (rbm->bi - initial_bi);
  1386. goto next_iter;
  1387. }
  1388. if (ret == -E2BIG) {
  1389. index = 0;
  1390. rbm->offset = 0;
  1391. n += (rbm->bi - initial_bi);
  1392. goto res_covered_end_of_rgrp;
  1393. }
  1394. return ret;
  1395. bitmap_full: /* Mark bitmap as full and fall through */
  1396. if ((state == GFS2_BLKST_FREE) && initial_offset == 0)
  1397. set_bit(GBF_FULL, &rbm->bi->bi_flags);
  1398. next_bitmap: /* Find next bitmap in the rgrp */
  1399. rbm->offset = 0;
  1400. index = rbm->bi - rbm->rgd->rd_bits;
  1401. index++;
  1402. if (index == rbm->rgd->rd_length)
  1403. index = 0;
  1404. res_covered_end_of_rgrp:
  1405. rbm->bi = &rbm->rgd->rd_bits[index];
  1406. if ((index == 0) && nowrap)
  1407. break;
  1408. n++;
  1409. next_iter:
  1410. if (n >= iters)
  1411. break;
  1412. }
  1413. return -ENOSPC;
  1414. }
  1415. /**
  1416. * try_rgrp_unlink - Look for any unlinked, allocated, but unused inodes
  1417. * @rgd: The rgrp
  1418. * @last_unlinked: block address of the last dinode we unlinked
  1419. * @skip: block address we should explicitly not unlink
  1420. *
  1421. * Returns: 0 if no error
  1422. * The inode, if one has been found, in inode.
  1423. */
  1424. static void try_rgrp_unlink(struct gfs2_rgrpd *rgd, u64 *last_unlinked, u64 skip)
  1425. {
  1426. u64 block;
  1427. struct gfs2_sbd *sdp = rgd->rd_sbd;
  1428. struct gfs2_glock *gl;
  1429. struct gfs2_inode *ip;
  1430. int error;
  1431. int found = 0;
  1432. struct gfs2_rbm rbm = { .rgd = rgd, .bi = rgd->rd_bits, .offset = 0 };
  1433. while (1) {
  1434. down_write(&sdp->sd_log_flush_lock);
  1435. error = gfs2_rbm_find(&rbm, GFS2_BLKST_UNLINKED, 0, NULL, true);
  1436. up_write(&sdp->sd_log_flush_lock);
  1437. if (error == -ENOSPC)
  1438. break;
  1439. if (WARN_ON_ONCE(error))
  1440. break;
  1441. block = gfs2_rbm_to_block(&rbm);
  1442. if (gfs2_rbm_from_block(&rbm, block + 1))
  1443. break;
  1444. if (*last_unlinked != NO_BLOCK && block <= *last_unlinked)
  1445. continue;
  1446. if (block == skip)
  1447. continue;
  1448. *last_unlinked = block;
  1449. error = gfs2_glock_get(sdp, block, &gfs2_inode_glops, CREATE, &gl);
  1450. if (error)
  1451. continue;
  1452. /* If the inode is already in cache, we can ignore it here
  1453. * because the existing inode disposal code will deal with
  1454. * it when all refs have gone away. Accessing gl_object like
  1455. * this is not safe in general. Here it is ok because we do
  1456. * not dereference the pointer, and we only need an approx
  1457. * answer to whether it is NULL or not.
  1458. */
  1459. ip = gl->gl_object;
  1460. if (ip || queue_work(gfs2_delete_workqueue, &gl->gl_delete) == 0)
  1461. gfs2_glock_put(gl);
  1462. else
  1463. found++;
  1464. /* Limit reclaim to sensible number of tasks */
  1465. if (found > NR_CPUS)
  1466. return;
  1467. }
  1468. rgd->rd_flags &= ~GFS2_RDF_CHECK;
  1469. return;
  1470. }
  1471. /**
  1472. * gfs2_rgrp_congested - Use stats to figure out whether an rgrp is congested
  1473. * @rgd: The rgrp in question
  1474. * @loops: An indication of how picky we can be (0=very, 1=less so)
  1475. *
  1476. * This function uses the recently added glock statistics in order to
  1477. * figure out whether a parciular resource group is suffering from
  1478. * contention from multiple nodes. This is done purely on the basis
  1479. * of timings, since this is the only data we have to work with and
  1480. * our aim here is to reject a resource group which is highly contended
  1481. * but (very important) not to do this too often in order to ensure that
  1482. * we do not land up introducing fragmentation by changing resource
  1483. * groups when not actually required.
  1484. *
  1485. * The calculation is fairly simple, we want to know whether the SRTTB
  1486. * (i.e. smoothed round trip time for blocking operations) to acquire
  1487. * the lock for this rgrp's glock is significantly greater than the
  1488. * time taken for resource groups on average. We introduce a margin in
  1489. * the form of the variable @var which is computed as the sum of the two
  1490. * respective variences, and multiplied by a factor depending on @loops
  1491. * and whether we have a lot of data to base the decision on. This is
  1492. * then tested against the square difference of the means in order to
  1493. * decide whether the result is statistically significant or not.
  1494. *
  1495. * Returns: A boolean verdict on the congestion status
  1496. */
  1497. static bool gfs2_rgrp_congested(const struct gfs2_rgrpd *rgd, int loops)
  1498. {
  1499. const struct gfs2_glock *gl = rgd->rd_gl;
  1500. const struct gfs2_sbd *sdp = gl->gl_sbd;
  1501. struct gfs2_lkstats *st;
  1502. s64 r_dcount, l_dcount;
  1503. s64 r_srttb, l_srttb;
  1504. s64 srttb_diff;
  1505. s64 sqr_diff;
  1506. s64 var;
  1507. preempt_disable();
  1508. st = &this_cpu_ptr(sdp->sd_lkstats)->lkstats[LM_TYPE_RGRP];
  1509. r_srttb = st->stats[GFS2_LKS_SRTTB];
  1510. r_dcount = st->stats[GFS2_LKS_DCOUNT];
  1511. var = st->stats[GFS2_LKS_SRTTVARB] +
  1512. gl->gl_stats.stats[GFS2_LKS_SRTTVARB];
  1513. preempt_enable();
  1514. l_srttb = gl->gl_stats.stats[GFS2_LKS_SRTTB];
  1515. l_dcount = gl->gl_stats.stats[GFS2_LKS_DCOUNT];
  1516. if ((l_dcount < 1) || (r_dcount < 1) || (r_srttb == 0))
  1517. return false;
  1518. srttb_diff = r_srttb - l_srttb;
  1519. sqr_diff = srttb_diff * srttb_diff;
  1520. var *= 2;
  1521. if (l_dcount < 8 || r_dcount < 8)
  1522. var *= 2;
  1523. if (loops == 1)
  1524. var *= 2;
  1525. return ((srttb_diff < 0) && (sqr_diff > var));
  1526. }
  1527. /**
  1528. * gfs2_rgrp_used_recently
  1529. * @rs: The block reservation with the rgrp to test
  1530. * @msecs: The time limit in milliseconds
  1531. *
  1532. * Returns: True if the rgrp glock has been used within the time limit
  1533. */
  1534. static bool gfs2_rgrp_used_recently(const struct gfs2_blkreserv *rs,
  1535. u64 msecs)
  1536. {
  1537. u64 tdiff;
  1538. tdiff = ktime_to_ns(ktime_sub(ktime_get_real(),
  1539. rs->rs_rbm.rgd->rd_gl->gl_dstamp));
  1540. return tdiff > (msecs * 1000 * 1000);
  1541. }
  1542. static u32 gfs2_orlov_skip(const struct gfs2_inode *ip)
  1543. {
  1544. const struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  1545. u32 skip;
  1546. get_random_bytes(&skip, sizeof(skip));
  1547. return skip % sdp->sd_rgrps;
  1548. }
  1549. static bool gfs2_select_rgrp(struct gfs2_rgrpd **pos, const struct gfs2_rgrpd *begin)
  1550. {
  1551. struct gfs2_rgrpd *rgd = *pos;
  1552. struct gfs2_sbd *sdp = rgd->rd_sbd;
  1553. rgd = gfs2_rgrpd_get_next(rgd);
  1554. if (rgd == NULL)
  1555. rgd = gfs2_rgrpd_get_first(sdp);
  1556. *pos = rgd;
  1557. if (rgd != begin) /* If we didn't wrap */
  1558. return true;
  1559. return false;
  1560. }
  1561. /**
  1562. * gfs2_inplace_reserve - Reserve space in the filesystem
  1563. * @ip: the inode to reserve space for
  1564. * @requested: the number of blocks to be reserved
  1565. *
  1566. * Returns: errno
  1567. */
  1568. int gfs2_inplace_reserve(struct gfs2_inode *ip, u32 requested, u32 aflags)
  1569. {
  1570. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  1571. struct gfs2_rgrpd *begin = NULL;
  1572. struct gfs2_blkreserv *rs = ip->i_res;
  1573. int error = 0, rg_locked, flags = 0;
  1574. u64 last_unlinked = NO_BLOCK;
  1575. int loops = 0;
  1576. u32 skip = 0;
  1577. if (sdp->sd_args.ar_rgrplvb)
  1578. flags |= GL_SKIP;
  1579. if (gfs2_assert_warn(sdp, requested))
  1580. return -EINVAL;
  1581. if (gfs2_rs_active(rs)) {
  1582. begin = rs->rs_rbm.rgd;
  1583. flags = 0; /* Yoda: Do or do not. There is no try */
  1584. } else if (ip->i_rgd && rgrp_contains_block(ip->i_rgd, ip->i_goal)) {
  1585. rs->rs_rbm.rgd = begin = ip->i_rgd;
  1586. } else {
  1587. rs->rs_rbm.rgd = begin = gfs2_blk2rgrpd(sdp, ip->i_goal, 1);
  1588. }
  1589. if (S_ISDIR(ip->i_inode.i_mode) && (aflags & GFS2_AF_ORLOV))
  1590. skip = gfs2_orlov_skip(ip);
  1591. if (rs->rs_rbm.rgd == NULL)
  1592. return -EBADSLT;
  1593. while (loops < 3) {
  1594. rg_locked = 1;
  1595. if (!gfs2_glock_is_locked_by_me(rs->rs_rbm.rgd->rd_gl)) {
  1596. rg_locked = 0;
  1597. if (skip && skip--)
  1598. goto next_rgrp;
  1599. if (!gfs2_rs_active(rs) && (loops < 2) &&
  1600. gfs2_rgrp_used_recently(rs, 1000) &&
  1601. gfs2_rgrp_congested(rs->rs_rbm.rgd, loops))
  1602. goto next_rgrp;
  1603. error = gfs2_glock_nq_init(rs->rs_rbm.rgd->rd_gl,
  1604. LM_ST_EXCLUSIVE, flags,
  1605. &rs->rs_rgd_gh);
  1606. if (unlikely(error))
  1607. return error;
  1608. if (!gfs2_rs_active(rs) && (loops < 2) &&
  1609. gfs2_rgrp_congested(rs->rs_rbm.rgd, loops))
  1610. goto skip_rgrp;
  1611. if (sdp->sd_args.ar_rgrplvb) {
  1612. error = update_rgrp_lvb(rs->rs_rbm.rgd);
  1613. if (unlikely(error)) {
  1614. gfs2_glock_dq_uninit(&rs->rs_rgd_gh);
  1615. return error;
  1616. }
  1617. }
  1618. }
  1619. /* Skip unuseable resource groups */
  1620. if (rs->rs_rbm.rgd->rd_flags & (GFS2_RGF_NOALLOC | GFS2_RDF_ERROR))
  1621. goto skip_rgrp;
  1622. if (sdp->sd_args.ar_rgrplvb)
  1623. gfs2_rgrp_bh_get(rs->rs_rbm.rgd);
  1624. /* Get a reservation if we don't already have one */
  1625. if (!gfs2_rs_active(rs))
  1626. rg_mblk_search(rs->rs_rbm.rgd, ip, requested);
  1627. /* Skip rgrps when we can't get a reservation on first pass */
  1628. if (!gfs2_rs_active(rs) && (loops < 1))
  1629. goto check_rgrp;
  1630. /* If rgrp has enough free space, use it */
  1631. if (rs->rs_rbm.rgd->rd_free_clone >= requested) {
  1632. ip->i_rgd = rs->rs_rbm.rgd;
  1633. return 0;
  1634. }
  1635. /* Drop reservation, if we couldn't use reserved rgrp */
  1636. if (gfs2_rs_active(rs))
  1637. gfs2_rs_deltree(ip, rs);
  1638. check_rgrp:
  1639. /* Check for unlinked inodes which can be reclaimed */
  1640. if (rs->rs_rbm.rgd->rd_flags & GFS2_RDF_CHECK)
  1641. try_rgrp_unlink(rs->rs_rbm.rgd, &last_unlinked,
  1642. ip->i_no_addr);
  1643. skip_rgrp:
  1644. /* Unlock rgrp if required */
  1645. if (!rg_locked)
  1646. gfs2_glock_dq_uninit(&rs->rs_rgd_gh);
  1647. next_rgrp:
  1648. /* Find the next rgrp, and continue looking */
  1649. if (gfs2_select_rgrp(&rs->rs_rbm.rgd, begin))
  1650. continue;
  1651. if (skip)
  1652. continue;
  1653. /* If we've scanned all the rgrps, but found no free blocks
  1654. * then this checks for some less likely conditions before
  1655. * trying again.
  1656. */
  1657. loops++;
  1658. /* Check that fs hasn't grown if writing to rindex */
  1659. if (ip == GFS2_I(sdp->sd_rindex) && !sdp->sd_rindex_uptodate) {
  1660. error = gfs2_ri_update(ip);
  1661. if (error)
  1662. return error;
  1663. }
  1664. /* Flushing the log may release space */
  1665. if (loops == 2)
  1666. gfs2_log_flush(sdp, NULL);
  1667. }
  1668. return -ENOSPC;
  1669. }
  1670. /**
  1671. * gfs2_inplace_release - release an inplace reservation
  1672. * @ip: the inode the reservation was taken out on
  1673. *
  1674. * Release a reservation made by gfs2_inplace_reserve().
  1675. */
  1676. void gfs2_inplace_release(struct gfs2_inode *ip)
  1677. {
  1678. struct gfs2_blkreserv *rs = ip->i_res;
  1679. if (rs->rs_rgd_gh.gh_gl)
  1680. gfs2_glock_dq_uninit(&rs->rs_rgd_gh);
  1681. }
  1682. /**
  1683. * gfs2_get_block_type - Check a block in a RG is of given type
  1684. * @rgd: the resource group holding the block
  1685. * @block: the block number
  1686. *
  1687. * Returns: The block type (GFS2_BLKST_*)
  1688. */
  1689. static unsigned char gfs2_get_block_type(struct gfs2_rgrpd *rgd, u64 block)
  1690. {
  1691. struct gfs2_rbm rbm = { .rgd = rgd, };
  1692. int ret;
  1693. ret = gfs2_rbm_from_block(&rbm, block);
  1694. WARN_ON_ONCE(ret != 0);
  1695. return gfs2_testbit(&rbm);
  1696. }
  1697. /**
  1698. * gfs2_alloc_extent - allocate an extent from a given bitmap
  1699. * @rbm: the resource group information
  1700. * @dinode: TRUE if the first block we allocate is for a dinode
  1701. * @n: The extent length (value/result)
  1702. *
  1703. * Add the bitmap buffer to the transaction.
  1704. * Set the found bits to @new_state to change block's allocation state.
  1705. */
  1706. static void gfs2_alloc_extent(const struct gfs2_rbm *rbm, bool dinode,
  1707. unsigned int *n)
  1708. {
  1709. struct gfs2_rbm pos = { .rgd = rbm->rgd, };
  1710. const unsigned int elen = *n;
  1711. u64 block;
  1712. int ret;
  1713. *n = 1;
  1714. block = gfs2_rbm_to_block(rbm);
  1715. gfs2_trans_add_meta(rbm->rgd->rd_gl, rbm->bi->bi_bh);
  1716. gfs2_setbit(rbm, true, dinode ? GFS2_BLKST_DINODE : GFS2_BLKST_USED);
  1717. block++;
  1718. while (*n < elen) {
  1719. ret = gfs2_rbm_from_block(&pos, block);
  1720. if (ret || gfs2_testbit(&pos) != GFS2_BLKST_FREE)
  1721. break;
  1722. gfs2_trans_add_meta(pos.rgd->rd_gl, pos.bi->bi_bh);
  1723. gfs2_setbit(&pos, true, GFS2_BLKST_USED);
  1724. (*n)++;
  1725. block++;
  1726. }
  1727. }
  1728. /**
  1729. * rgblk_free - Change alloc state of given block(s)
  1730. * @sdp: the filesystem
  1731. * @bstart: the start of a run of blocks to free
  1732. * @blen: the length of the block run (all must lie within ONE RG!)
  1733. * @new_state: GFS2_BLKST_XXX the after-allocation block state
  1734. *
  1735. * Returns: Resource group containing the block(s)
  1736. */
  1737. static struct gfs2_rgrpd *rgblk_free(struct gfs2_sbd *sdp, u64 bstart,
  1738. u32 blen, unsigned char new_state)
  1739. {
  1740. struct gfs2_rbm rbm;
  1741. rbm.rgd = gfs2_blk2rgrpd(sdp, bstart, 1);
  1742. if (!rbm.rgd) {
  1743. if (gfs2_consist(sdp))
  1744. fs_err(sdp, "block = %llu\n", (unsigned long long)bstart);
  1745. return NULL;
  1746. }
  1747. while (blen--) {
  1748. gfs2_rbm_from_block(&rbm, bstart);
  1749. bstart++;
  1750. if (!rbm.bi->bi_clone) {
  1751. rbm.bi->bi_clone = kmalloc(rbm.bi->bi_bh->b_size,
  1752. GFP_NOFS | __GFP_NOFAIL);
  1753. memcpy(rbm.bi->bi_clone + rbm.bi->bi_offset,
  1754. rbm.bi->bi_bh->b_data + rbm.bi->bi_offset,
  1755. rbm.bi->bi_len);
  1756. }
  1757. gfs2_trans_add_meta(rbm.rgd->rd_gl, rbm.bi->bi_bh);
  1758. gfs2_setbit(&rbm, false, new_state);
  1759. }
  1760. return rbm.rgd;
  1761. }
  1762. /**
  1763. * gfs2_rgrp_dump - print out an rgrp
  1764. * @seq: The iterator
  1765. * @gl: The glock in question
  1766. *
  1767. */
  1768. int gfs2_rgrp_dump(struct seq_file *seq, const struct gfs2_glock *gl)
  1769. {
  1770. struct gfs2_rgrpd *rgd = gl->gl_object;
  1771. struct gfs2_blkreserv *trs;
  1772. const struct rb_node *n;
  1773. if (rgd == NULL)
  1774. return 0;
  1775. gfs2_print_dbg(seq, " R: n:%llu f:%02x b:%u/%u i:%u r:%u\n",
  1776. (unsigned long long)rgd->rd_addr, rgd->rd_flags,
  1777. rgd->rd_free, rgd->rd_free_clone, rgd->rd_dinodes,
  1778. rgd->rd_reserved);
  1779. spin_lock(&rgd->rd_rsspin);
  1780. for (n = rb_first(&rgd->rd_rstree); n; n = rb_next(&trs->rs_node)) {
  1781. trs = rb_entry(n, struct gfs2_blkreserv, rs_node);
  1782. dump_rs(seq, trs);
  1783. }
  1784. spin_unlock(&rgd->rd_rsspin);
  1785. return 0;
  1786. }
  1787. static void gfs2_rgrp_error(struct gfs2_rgrpd *rgd)
  1788. {
  1789. struct gfs2_sbd *sdp = rgd->rd_sbd;
  1790. fs_warn(sdp, "rgrp %llu has an error, marking it readonly until umount\n",
  1791. (unsigned long long)rgd->rd_addr);
  1792. fs_warn(sdp, "umount on all nodes and run fsck.gfs2 to fix the error\n");
  1793. gfs2_rgrp_dump(NULL, rgd->rd_gl);
  1794. rgd->rd_flags |= GFS2_RDF_ERROR;
  1795. }
  1796. /**
  1797. * gfs2_adjust_reservation - Adjust (or remove) a reservation after allocation
  1798. * @ip: The inode we have just allocated blocks for
  1799. * @rbm: The start of the allocated blocks
  1800. * @len: The extent length
  1801. *
  1802. * Adjusts a reservation after an allocation has taken place. If the
  1803. * reservation does not match the allocation, or if it is now empty
  1804. * then it is removed.
  1805. */
  1806. static void gfs2_adjust_reservation(struct gfs2_inode *ip,
  1807. const struct gfs2_rbm *rbm, unsigned len)
  1808. {
  1809. struct gfs2_blkreserv *rs = ip->i_res;
  1810. struct gfs2_rgrpd *rgd = rbm->rgd;
  1811. unsigned rlen;
  1812. u64 block;
  1813. int ret;
  1814. spin_lock(&rgd->rd_rsspin);
  1815. if (gfs2_rs_active(rs)) {
  1816. if (gfs2_rbm_eq(&rs->rs_rbm, rbm)) {
  1817. block = gfs2_rbm_to_block(rbm);
  1818. ret = gfs2_rbm_from_block(&rs->rs_rbm, block + len);
  1819. rlen = min(rs->rs_free, len);
  1820. rs->rs_free -= rlen;
  1821. rgd->rd_reserved -= rlen;
  1822. trace_gfs2_rs(rs, TRACE_RS_CLAIM);
  1823. if (rs->rs_free && !ret)
  1824. goto out;
  1825. }
  1826. __rs_deltree(ip, rs);
  1827. }
  1828. out:
  1829. spin_unlock(&rgd->rd_rsspin);
  1830. }
  1831. /**
  1832. * gfs2_alloc_blocks - Allocate one or more blocks of data and/or a dinode
  1833. * @ip: the inode to allocate the block for
  1834. * @bn: Used to return the starting block number
  1835. * @nblocks: requested number of blocks/extent length (value/result)
  1836. * @dinode: 1 if we're allocating a dinode block, else 0
  1837. * @generation: the generation number of the inode
  1838. *
  1839. * Returns: 0 or error
  1840. */
  1841. int gfs2_alloc_blocks(struct gfs2_inode *ip, u64 *bn, unsigned int *nblocks,
  1842. bool dinode, u64 *generation)
  1843. {
  1844. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  1845. struct buffer_head *dibh;
  1846. struct gfs2_rbm rbm = { .rgd = ip->i_rgd, };
  1847. unsigned int ndata;
  1848. u64 goal;
  1849. u64 block; /* block, within the file system scope */
  1850. int error;
  1851. if (gfs2_rs_active(ip->i_res))
  1852. goal = gfs2_rbm_to_block(&ip->i_res->rs_rbm);
  1853. else if (!dinode && rgrp_contains_block(rbm.rgd, ip->i_goal))
  1854. goal = ip->i_goal;
  1855. else
  1856. goal = rbm.rgd->rd_last_alloc + rbm.rgd->rd_data0;
  1857. gfs2_rbm_from_block(&rbm, goal);
  1858. error = gfs2_rbm_find(&rbm, GFS2_BLKST_FREE, 0, ip, false);
  1859. if (error == -ENOSPC) {
  1860. gfs2_rbm_from_block(&rbm, goal);
  1861. error = gfs2_rbm_find(&rbm, GFS2_BLKST_FREE, 0, NULL, false);
  1862. }
  1863. /* Since all blocks are reserved in advance, this shouldn't happen */
  1864. if (error) {
  1865. fs_warn(sdp, "inum=%llu error=%d, nblocks=%u, full=%d\n",
  1866. (unsigned long long)ip->i_no_addr, error, *nblocks,
  1867. test_bit(GBF_FULL, &rbm.rgd->rd_bits->bi_flags));
  1868. goto rgrp_error;
  1869. }
  1870. gfs2_alloc_extent(&rbm, dinode, nblocks);
  1871. block = gfs2_rbm_to_block(&rbm);
  1872. rbm.rgd->rd_last_alloc = block - rbm.rgd->rd_data0;
  1873. if (gfs2_rs_active(ip->i_res))
  1874. gfs2_adjust_reservation(ip, &rbm, *nblocks);
  1875. ndata = *nblocks;
  1876. if (dinode)
  1877. ndata--;
  1878. if (!dinode) {
  1879. ip->i_goal = block + ndata - 1;
  1880. error = gfs2_meta_inode_buffer(ip, &dibh);
  1881. if (error == 0) {
  1882. struct gfs2_dinode *di =
  1883. (struct gfs2_dinode *)dibh->b_data;
  1884. gfs2_trans_add_meta(ip->i_gl, dibh);
  1885. di->di_goal_meta = di->di_goal_data =
  1886. cpu_to_be64(ip->i_goal);
  1887. brelse(dibh);
  1888. }
  1889. }
  1890. if (rbm.rgd->rd_free < *nblocks) {
  1891. printk(KERN_WARNING "nblocks=%u\n", *nblocks);
  1892. goto rgrp_error;
  1893. }
  1894. rbm.rgd->rd_free -= *nblocks;
  1895. if (dinode) {
  1896. rbm.rgd->rd_dinodes++;
  1897. *generation = rbm.rgd->rd_igeneration++;
  1898. if (*generation == 0)
  1899. *generation = rbm.rgd->rd_igeneration++;
  1900. }
  1901. gfs2_trans_add_meta(rbm.rgd->rd_gl, rbm.rgd->rd_bits[0].bi_bh);
  1902. gfs2_rgrp_out(rbm.rgd, rbm.rgd->rd_bits[0].bi_bh->b_data);
  1903. gfs2_rgrp_ondisk2lvb(rbm.rgd->rd_rgl, rbm.rgd->rd_bits[0].bi_bh->b_data);
  1904. gfs2_statfs_change(sdp, 0, -(s64)*nblocks, dinode ? 1 : 0);
  1905. if (dinode)
  1906. gfs2_trans_add_unrevoke(sdp, block, 1);
  1907. /*
  1908. * This needs reviewing to see why we cannot do the quota change
  1909. * at this point in the dinode case.
  1910. */
  1911. if (ndata)
  1912. gfs2_quota_change(ip, ndata, ip->i_inode.i_uid,
  1913. ip->i_inode.i_gid);
  1914. rbm.rgd->rd_free_clone -= *nblocks;
  1915. trace_gfs2_block_alloc(ip, rbm.rgd, block, *nblocks,
  1916. dinode ? GFS2_BLKST_DINODE : GFS2_BLKST_USED);
  1917. *bn = block;
  1918. return 0;
  1919. rgrp_error:
  1920. gfs2_rgrp_error(rbm.rgd);
  1921. return -EIO;
  1922. }
  1923. /**
  1924. * __gfs2_free_blocks - free a contiguous run of block(s)
  1925. * @ip: the inode these blocks are being freed from
  1926. * @bstart: first block of a run of contiguous blocks
  1927. * @blen: the length of the block run
  1928. * @meta: 1 if the blocks represent metadata
  1929. *
  1930. */
  1931. void __gfs2_free_blocks(struct gfs2_inode *ip, u64 bstart, u32 blen, int meta)
  1932. {
  1933. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  1934. struct gfs2_rgrpd *rgd;
  1935. rgd = rgblk_free(sdp, bstart, blen, GFS2_BLKST_FREE);
  1936. if (!rgd)
  1937. return;
  1938. trace_gfs2_block_alloc(ip, rgd, bstart, blen, GFS2_BLKST_FREE);
  1939. rgd->rd_free += blen;
  1940. rgd->rd_flags &= ~GFS2_RGF_TRIMMED;
  1941. gfs2_trans_add_meta(rgd->rd_gl, rgd->rd_bits[0].bi_bh);
  1942. gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data);
  1943. gfs2_rgrp_ondisk2lvb(rgd->rd_rgl, rgd->rd_bits[0].bi_bh->b_data);
  1944. /* Directories keep their data in the metadata address space */
  1945. if (meta || ip->i_depth)
  1946. gfs2_meta_wipe(ip, bstart, blen);
  1947. }
  1948. /**
  1949. * gfs2_free_meta - free a contiguous run of data block(s)
  1950. * @ip: the inode these blocks are being freed from
  1951. * @bstart: first block of a run of contiguous blocks
  1952. * @blen: the length of the block run
  1953. *
  1954. */
  1955. void gfs2_free_meta(struct gfs2_inode *ip, u64 bstart, u32 blen)
  1956. {
  1957. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  1958. __gfs2_free_blocks(ip, bstart, blen, 1);
  1959. gfs2_statfs_change(sdp, 0, +blen, 0);
  1960. gfs2_quota_change(ip, -(s64)blen, ip->i_inode.i_uid, ip->i_inode.i_gid);
  1961. }
  1962. void gfs2_unlink_di(struct inode *inode)
  1963. {
  1964. struct gfs2_inode *ip = GFS2_I(inode);
  1965. struct gfs2_sbd *sdp = GFS2_SB(inode);
  1966. struct gfs2_rgrpd *rgd;
  1967. u64 blkno = ip->i_no_addr;
  1968. rgd = rgblk_free(sdp, blkno, 1, GFS2_BLKST_UNLINKED);
  1969. if (!rgd)
  1970. return;
  1971. trace_gfs2_block_alloc(ip, rgd, blkno, 1, GFS2_BLKST_UNLINKED);
  1972. gfs2_trans_add_meta(rgd->rd_gl, rgd->rd_bits[0].bi_bh);
  1973. gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data);
  1974. gfs2_rgrp_ondisk2lvb(rgd->rd_rgl, rgd->rd_bits[0].bi_bh->b_data);
  1975. update_rgrp_lvb_unlinked(rgd, 1);
  1976. }
  1977. static void gfs2_free_uninit_di(struct gfs2_rgrpd *rgd, u64 blkno)
  1978. {
  1979. struct gfs2_sbd *sdp = rgd->rd_sbd;
  1980. struct gfs2_rgrpd *tmp_rgd;
  1981. tmp_rgd = rgblk_free(sdp, blkno, 1, GFS2_BLKST_FREE);
  1982. if (!tmp_rgd)
  1983. return;
  1984. gfs2_assert_withdraw(sdp, rgd == tmp_rgd);
  1985. if (!rgd->rd_dinodes)
  1986. gfs2_consist_rgrpd(rgd);
  1987. rgd->rd_dinodes--;
  1988. rgd->rd_free++;
  1989. gfs2_trans_add_meta(rgd->rd_gl, rgd->rd_bits[0].bi_bh);
  1990. gfs2_rgrp_out(rgd, rgd->rd_bits[0].bi_bh->b_data);
  1991. gfs2_rgrp_ondisk2lvb(rgd->rd_rgl, rgd->rd_bits[0].bi_bh->b_data);
  1992. update_rgrp_lvb_unlinked(rgd, -1);
  1993. gfs2_statfs_change(sdp, 0, +1, -1);
  1994. }
  1995. void gfs2_free_di(struct gfs2_rgrpd *rgd, struct gfs2_inode *ip)
  1996. {
  1997. gfs2_free_uninit_di(rgd, ip->i_no_addr);
  1998. trace_gfs2_block_alloc(ip, rgd, ip->i_no_addr, 1, GFS2_BLKST_FREE);
  1999. gfs2_quota_change(ip, -1, ip->i_inode.i_uid, ip->i_inode.i_gid);
  2000. gfs2_meta_wipe(ip, ip->i_no_addr, 1);
  2001. }
  2002. /**
  2003. * gfs2_check_blk_type - Check the type of a block
  2004. * @sdp: The superblock
  2005. * @no_addr: The block number to check
  2006. * @type: The block type we are looking for
  2007. *
  2008. * Returns: 0 if the block type matches the expected type
  2009. * -ESTALE if it doesn't match
  2010. * or -ve errno if something went wrong while checking
  2011. */
  2012. int gfs2_check_blk_type(struct gfs2_sbd *sdp, u64 no_addr, unsigned int type)
  2013. {
  2014. struct gfs2_rgrpd *rgd;
  2015. struct gfs2_holder rgd_gh;
  2016. int error = -EINVAL;
  2017. rgd = gfs2_blk2rgrpd(sdp, no_addr, 1);
  2018. if (!rgd)
  2019. goto fail;
  2020. error = gfs2_glock_nq_init(rgd->rd_gl, LM_ST_SHARED, 0, &rgd_gh);
  2021. if (error)
  2022. goto fail;
  2023. if (gfs2_get_block_type(rgd, no_addr) != type)
  2024. error = -ESTALE;
  2025. gfs2_glock_dq_uninit(&rgd_gh);
  2026. fail:
  2027. return error;
  2028. }
  2029. /**
  2030. * gfs2_rlist_add - add a RG to a list of RGs
  2031. * @ip: the inode
  2032. * @rlist: the list of resource groups
  2033. * @block: the block
  2034. *
  2035. * Figure out what RG a block belongs to and add that RG to the list
  2036. *
  2037. * FIXME: Don't use NOFAIL
  2038. *
  2039. */
  2040. void gfs2_rlist_add(struct gfs2_inode *ip, struct gfs2_rgrp_list *rlist,
  2041. u64 block)
  2042. {
  2043. struct gfs2_sbd *sdp = GFS2_SB(&ip->i_inode);
  2044. struct gfs2_rgrpd *rgd;
  2045. struct gfs2_rgrpd **tmp;
  2046. unsigned int new_space;
  2047. unsigned int x;
  2048. if (gfs2_assert_warn(sdp, !rlist->rl_ghs))
  2049. return;
  2050. if (ip->i_rgd && rgrp_contains_block(ip->i_rgd, block))
  2051. rgd = ip->i_rgd;
  2052. else
  2053. rgd = gfs2_blk2rgrpd(sdp, block, 1);
  2054. if (!rgd) {
  2055. fs_err(sdp, "rlist_add: no rgrp for block %llu\n", (unsigned long long)block);
  2056. return;
  2057. }
  2058. ip->i_rgd = rgd;
  2059. for (x = 0; x < rlist->rl_rgrps; x++)
  2060. if (rlist->rl_rgd[x] == rgd)
  2061. return;
  2062. if (rlist->rl_rgrps == rlist->rl_space) {
  2063. new_space = rlist->rl_space + 10;
  2064. tmp = kcalloc(new_space, sizeof(struct gfs2_rgrpd *),
  2065. GFP_NOFS | __GFP_NOFAIL);
  2066. if (rlist->rl_rgd) {
  2067. memcpy(tmp, rlist->rl_rgd,
  2068. rlist->rl_space * sizeof(struct gfs2_rgrpd *));
  2069. kfree(rlist->rl_rgd);
  2070. }
  2071. rlist->rl_space = new_space;
  2072. rlist->rl_rgd = tmp;
  2073. }
  2074. rlist->rl_rgd[rlist->rl_rgrps++] = rgd;
  2075. }
  2076. /**
  2077. * gfs2_rlist_alloc - all RGs have been added to the rlist, now allocate
  2078. * and initialize an array of glock holders for them
  2079. * @rlist: the list of resource groups
  2080. * @state: the lock state to acquire the RG lock in
  2081. *
  2082. * FIXME: Don't use NOFAIL
  2083. *
  2084. */
  2085. void gfs2_rlist_alloc(struct gfs2_rgrp_list *rlist, unsigned int state)
  2086. {
  2087. unsigned int x;
  2088. rlist->rl_ghs = kcalloc(rlist->rl_rgrps, sizeof(struct gfs2_holder),
  2089. GFP_NOFS | __GFP_NOFAIL);
  2090. for (x = 0; x < rlist->rl_rgrps; x++)
  2091. gfs2_holder_init(rlist->rl_rgd[x]->rd_gl,
  2092. state, 0,
  2093. &rlist->rl_ghs[x]);
  2094. }
  2095. /**
  2096. * gfs2_rlist_free - free a resource group list
  2097. * @list: the list of resource groups
  2098. *
  2099. */
  2100. void gfs2_rlist_free(struct gfs2_rgrp_list *rlist)
  2101. {
  2102. unsigned int x;
  2103. kfree(rlist->rl_rgd);
  2104. if (rlist->rl_ghs) {
  2105. for (x = 0; x < rlist->rl_rgrps; x++)
  2106. gfs2_holder_uninit(&rlist->rl_ghs[x]);
  2107. kfree(rlist->rl_ghs);
  2108. rlist->rl_ghs = NULL;
  2109. }
  2110. }