btree.c 8.3 KB

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  1. /*
  2. * linux/fs/hfs/btree.c
  3. *
  4. * Copyright (C) 2001
  5. * Brad Boyer (flar@allandria.com)
  6. * (C) 2003 Ardis Technologies <roman@ardistech.com>
  7. *
  8. * Handle opening/closing btree
  9. */
  10. #include <linux/pagemap.h>
  11. #include <linux/log2.h>
  12. #include "btree.h"
  13. /* Get a reference to a B*Tree and do some initial checks */
  14. struct hfs_btree *hfs_btree_open(struct super_block *sb, u32 id, btree_keycmp keycmp)
  15. {
  16. struct hfs_btree *tree;
  17. struct hfs_btree_header_rec *head;
  18. struct address_space *mapping;
  19. struct page *page;
  20. unsigned int size;
  21. tree = kzalloc(sizeof(*tree), GFP_KERNEL);
  22. if (!tree)
  23. return NULL;
  24. init_MUTEX(&tree->tree_lock);
  25. spin_lock_init(&tree->hash_lock);
  26. /* Set the correct compare function */
  27. tree->sb = sb;
  28. tree->cnid = id;
  29. tree->keycmp = keycmp;
  30. tree->inode = iget_locked(sb, id);
  31. if (!tree->inode)
  32. goto free_tree;
  33. BUG_ON(!(tree->inode->i_state & I_NEW));
  34. {
  35. struct hfs_mdb *mdb = HFS_SB(sb)->mdb;
  36. HFS_I(tree->inode)->flags = 0;
  37. init_MUTEX(&HFS_I(tree->inode)->extents_lock);
  38. switch (id) {
  39. case HFS_EXT_CNID:
  40. hfs_inode_read_fork(tree->inode, mdb->drXTExtRec, mdb->drXTFlSize,
  41. mdb->drXTFlSize, be32_to_cpu(mdb->drXTClpSiz));
  42. tree->inode->i_mapping->a_ops = &hfs_btree_aops;
  43. break;
  44. case HFS_CAT_CNID:
  45. hfs_inode_read_fork(tree->inode, mdb->drCTExtRec, mdb->drCTFlSize,
  46. mdb->drCTFlSize, be32_to_cpu(mdb->drCTClpSiz));
  47. tree->inode->i_mapping->a_ops = &hfs_btree_aops;
  48. break;
  49. default:
  50. BUG();
  51. }
  52. }
  53. unlock_new_inode(tree->inode);
  54. mapping = tree->inode->i_mapping;
  55. page = read_mapping_page(mapping, 0, NULL);
  56. if (IS_ERR(page))
  57. goto free_tree;
  58. /* Load the header */
  59. head = (struct hfs_btree_header_rec *)(kmap(page) + sizeof(struct hfs_bnode_desc));
  60. tree->root = be32_to_cpu(head->root);
  61. tree->leaf_count = be32_to_cpu(head->leaf_count);
  62. tree->leaf_head = be32_to_cpu(head->leaf_head);
  63. tree->leaf_tail = be32_to_cpu(head->leaf_tail);
  64. tree->node_count = be32_to_cpu(head->node_count);
  65. tree->free_nodes = be32_to_cpu(head->free_nodes);
  66. tree->attributes = be32_to_cpu(head->attributes);
  67. tree->node_size = be16_to_cpu(head->node_size);
  68. tree->max_key_len = be16_to_cpu(head->max_key_len);
  69. tree->depth = be16_to_cpu(head->depth);
  70. size = tree->node_size;
  71. if (!is_power_of_2(size))
  72. goto fail_page;
  73. if (!tree->node_count)
  74. goto fail_page;
  75. if ((id == HFS_EXT_CNID) && (tree->max_key_len != HFS_MAX_EXT_KEYLEN)) {
  76. printk(KERN_ERR "hfs: invalid extent max_key_len %d\n",
  77. tree->max_key_len);
  78. goto fail_page;
  79. }
  80. if ((id == HFS_CAT_CNID) && (tree->max_key_len != HFS_MAX_CAT_KEYLEN)) {
  81. printk(KERN_ERR "hfs: invalid catalog max_key_len %d\n",
  82. tree->max_key_len);
  83. goto fail_page;
  84. }
  85. tree->node_size_shift = ffs(size) - 1;
  86. tree->pages_per_bnode = (tree->node_size + PAGE_CACHE_SIZE - 1) >> PAGE_CACHE_SHIFT;
  87. kunmap(page);
  88. page_cache_release(page);
  89. return tree;
  90. fail_page:
  91. page_cache_release(page);
  92. free_tree:
  93. tree->inode->i_mapping->a_ops = &hfs_aops;
  94. iput(tree->inode);
  95. kfree(tree);
  96. return NULL;
  97. }
  98. /* Release resources used by a btree */
  99. void hfs_btree_close(struct hfs_btree *tree)
  100. {
  101. struct hfs_bnode *node;
  102. int i;
  103. if (!tree)
  104. return;
  105. for (i = 0; i < NODE_HASH_SIZE; i++) {
  106. while ((node = tree->node_hash[i])) {
  107. tree->node_hash[i] = node->next_hash;
  108. if (atomic_read(&node->refcnt))
  109. printk(KERN_ERR "hfs: node %d:%d still has %d user(s)!\n",
  110. node->tree->cnid, node->this, atomic_read(&node->refcnt));
  111. hfs_bnode_free(node);
  112. tree->node_hash_cnt--;
  113. }
  114. }
  115. iput(tree->inode);
  116. kfree(tree);
  117. }
  118. void hfs_btree_write(struct hfs_btree *tree)
  119. {
  120. struct hfs_btree_header_rec *head;
  121. struct hfs_bnode *node;
  122. struct page *page;
  123. node = hfs_bnode_find(tree, 0);
  124. if (IS_ERR(node))
  125. /* panic? */
  126. return;
  127. /* Load the header */
  128. page = node->page[0];
  129. head = (struct hfs_btree_header_rec *)(kmap(page) + sizeof(struct hfs_bnode_desc));
  130. head->root = cpu_to_be32(tree->root);
  131. head->leaf_count = cpu_to_be32(tree->leaf_count);
  132. head->leaf_head = cpu_to_be32(tree->leaf_head);
  133. head->leaf_tail = cpu_to_be32(tree->leaf_tail);
  134. head->node_count = cpu_to_be32(tree->node_count);
  135. head->free_nodes = cpu_to_be32(tree->free_nodes);
  136. head->attributes = cpu_to_be32(tree->attributes);
  137. head->depth = cpu_to_be16(tree->depth);
  138. kunmap(page);
  139. set_page_dirty(page);
  140. hfs_bnode_put(node);
  141. }
  142. static struct hfs_bnode *hfs_bmap_new_bmap(struct hfs_bnode *prev, u32 idx)
  143. {
  144. struct hfs_btree *tree = prev->tree;
  145. struct hfs_bnode *node;
  146. struct hfs_bnode_desc desc;
  147. __be32 cnid;
  148. node = hfs_bnode_create(tree, idx);
  149. if (IS_ERR(node))
  150. return node;
  151. if (!tree->free_nodes)
  152. panic("FIXME!!!");
  153. tree->free_nodes--;
  154. prev->next = idx;
  155. cnid = cpu_to_be32(idx);
  156. hfs_bnode_write(prev, &cnid, offsetof(struct hfs_bnode_desc, next), 4);
  157. node->type = HFS_NODE_MAP;
  158. node->num_recs = 1;
  159. hfs_bnode_clear(node, 0, tree->node_size);
  160. desc.next = 0;
  161. desc.prev = 0;
  162. desc.type = HFS_NODE_MAP;
  163. desc.height = 0;
  164. desc.num_recs = cpu_to_be16(1);
  165. desc.reserved = 0;
  166. hfs_bnode_write(node, &desc, 0, sizeof(desc));
  167. hfs_bnode_write_u16(node, 14, 0x8000);
  168. hfs_bnode_write_u16(node, tree->node_size - 2, 14);
  169. hfs_bnode_write_u16(node, tree->node_size - 4, tree->node_size - 6);
  170. return node;
  171. }
  172. struct hfs_bnode *hfs_bmap_alloc(struct hfs_btree *tree)
  173. {
  174. struct hfs_bnode *node, *next_node;
  175. struct page **pagep;
  176. u32 nidx, idx;
  177. u16 off, len;
  178. u8 *data, byte, m;
  179. int i;
  180. while (!tree->free_nodes) {
  181. struct inode *inode = tree->inode;
  182. u32 count;
  183. int res;
  184. res = hfs_extend_file(inode);
  185. if (res)
  186. return ERR_PTR(res);
  187. HFS_I(inode)->phys_size = inode->i_size =
  188. (loff_t)HFS_I(inode)->alloc_blocks *
  189. HFS_SB(tree->sb)->alloc_blksz;
  190. HFS_I(inode)->fs_blocks = inode->i_size >>
  191. tree->sb->s_blocksize_bits;
  192. inode_set_bytes(inode, inode->i_size);
  193. count = inode->i_size >> tree->node_size_shift;
  194. tree->free_nodes = count - tree->node_count;
  195. tree->node_count = count;
  196. }
  197. nidx = 0;
  198. node = hfs_bnode_find(tree, nidx);
  199. if (IS_ERR(node))
  200. return node;
  201. len = hfs_brec_lenoff(node, 2, &off);
  202. off += node->page_offset;
  203. pagep = node->page + (off >> PAGE_CACHE_SHIFT);
  204. data = kmap(*pagep);
  205. off &= ~PAGE_CACHE_MASK;
  206. idx = 0;
  207. for (;;) {
  208. while (len) {
  209. byte = data[off];
  210. if (byte != 0xff) {
  211. for (m = 0x80, i = 0; i < 8; m >>= 1, i++) {
  212. if (!(byte & m)) {
  213. idx += i;
  214. data[off] |= m;
  215. set_page_dirty(*pagep);
  216. kunmap(*pagep);
  217. tree->free_nodes--;
  218. mark_inode_dirty(tree->inode);
  219. hfs_bnode_put(node);
  220. return hfs_bnode_create(tree, idx);
  221. }
  222. }
  223. }
  224. if (++off >= PAGE_CACHE_SIZE) {
  225. kunmap(*pagep);
  226. data = kmap(*++pagep);
  227. off = 0;
  228. }
  229. idx += 8;
  230. len--;
  231. }
  232. kunmap(*pagep);
  233. nidx = node->next;
  234. if (!nidx) {
  235. printk(KERN_DEBUG "hfs: create new bmap node...\n");
  236. next_node = hfs_bmap_new_bmap(node, idx);
  237. } else
  238. next_node = hfs_bnode_find(tree, nidx);
  239. hfs_bnode_put(node);
  240. if (IS_ERR(next_node))
  241. return next_node;
  242. node = next_node;
  243. len = hfs_brec_lenoff(node, 0, &off);
  244. off += node->page_offset;
  245. pagep = node->page + (off >> PAGE_CACHE_SHIFT);
  246. data = kmap(*pagep);
  247. off &= ~PAGE_CACHE_MASK;
  248. }
  249. }
  250. void hfs_bmap_free(struct hfs_bnode *node)
  251. {
  252. struct hfs_btree *tree;
  253. struct page *page;
  254. u16 off, len;
  255. u32 nidx;
  256. u8 *data, byte, m;
  257. dprint(DBG_BNODE_MOD, "btree_free_node: %u\n", node->this);
  258. tree = node->tree;
  259. nidx = node->this;
  260. node = hfs_bnode_find(tree, 0);
  261. if (IS_ERR(node))
  262. return;
  263. len = hfs_brec_lenoff(node, 2, &off);
  264. while (nidx >= len * 8) {
  265. u32 i;
  266. nidx -= len * 8;
  267. i = node->next;
  268. hfs_bnode_put(node);
  269. if (!i) {
  270. /* panic */;
  271. printk(KERN_CRIT "hfs: unable to free bnode %u. bmap not found!\n", node->this);
  272. return;
  273. }
  274. node = hfs_bnode_find(tree, i);
  275. if (IS_ERR(node))
  276. return;
  277. if (node->type != HFS_NODE_MAP) {
  278. /* panic */;
  279. printk(KERN_CRIT "hfs: invalid bmap found! (%u,%d)\n", node->this, node->type);
  280. hfs_bnode_put(node);
  281. return;
  282. }
  283. len = hfs_brec_lenoff(node, 0, &off);
  284. }
  285. off += node->page_offset + nidx / 8;
  286. page = node->page[off >> PAGE_CACHE_SHIFT];
  287. data = kmap(page);
  288. off &= ~PAGE_CACHE_MASK;
  289. m = 1 << (~nidx & 7);
  290. byte = data[off];
  291. if (!(byte & m)) {
  292. printk(KERN_CRIT "hfs: trying to free free bnode %u(%d)\n", node->this, node->type);
  293. kunmap(page);
  294. hfs_bnode_put(node);
  295. return;
  296. }
  297. data[off] = byte & ~m;
  298. set_page_dirty(page);
  299. kunmap(page);
  300. hfs_bnode_put(node);
  301. tree->free_nodes++;
  302. mark_inode_dirty(tree->inode);
  303. }