chfs_nodeops.c revision 1.3.2.1 1 1.3.2.1 rmind /* $NetBSD: chfs_nodeops.c,v 1.3.2.1 2014/05/18 17:46:21 rmind Exp $ */
2 1.1 ahoka
3 1.1 ahoka /*-
4 1.1 ahoka * Copyright (c) 2010 Department of Software Engineering,
5 1.1 ahoka * University of Szeged, Hungary
6 1.1 ahoka * Copyright (C) 2010 David Tengeri <dtengeri (at) inf.u-szeged.hu>
7 1.1 ahoka * Copyright (C) 2010 Tamas Toth <ttoth (at) inf.u-szeged.hu>
8 1.1 ahoka * Copyright (C) 2010 Adam Hoka <ahoka (at) NetBSD.org>
9 1.1 ahoka * All rights reserved.
10 1.1 ahoka *
11 1.1 ahoka * This code is derived from software contributed to The NetBSD Foundation
12 1.1 ahoka * by the Department of Software Engineering, University of Szeged, Hungary
13 1.1 ahoka *
14 1.1 ahoka * Redistribution and use in source and binary forms, with or without
15 1.1 ahoka * modification, are permitted provided that the following conditions
16 1.1 ahoka * are met:
17 1.1 ahoka * 1. Redistributions of source code must retain the above copyright
18 1.1 ahoka * notice, this list of conditions and the following disclaimer.
19 1.1 ahoka * 2. Redistributions in binary form must reproduce the above copyright
20 1.1 ahoka * notice, this list of conditions and the following disclaimer in the
21 1.1 ahoka * documentation and/or other materials provided with the distribution.
22 1.1 ahoka *
23 1.1 ahoka * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 1.1 ahoka * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
25 1.1 ahoka * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
26 1.1 ahoka * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
27 1.1 ahoka * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
28 1.1 ahoka * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
29 1.1 ahoka * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
30 1.1 ahoka * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
31 1.1 ahoka * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 ahoka * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 ahoka * SUCH DAMAGE.
34 1.1 ahoka */
35 1.1 ahoka
36 1.1 ahoka #include "chfs.h"
37 1.1 ahoka
38 1.3 ttoth /*
39 1.1 ahoka * chfs_update_eb_dirty - updates dirty and free space, first and
40 1.1 ahoka * last node references
41 1.3 ttoth * Returns zero in case of success, 1 in case of fail.
42 1.1 ahoka */
43 1.1 ahoka int
44 1.1 ahoka chfs_update_eb_dirty(struct chfs_mount *chmp,
45 1.1 ahoka struct chfs_eraseblock *cheb, uint32_t size)
46 1.1 ahoka {
47 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
48 1.1 ahoka KASSERT(!mutex_owned(&chmp->chm_lock_sizes));
49 1.1 ahoka
50 1.1 ahoka if (!size)
51 1.1 ahoka return 0;
52 1.1 ahoka
53 1.1 ahoka if (size > cheb->free_size) {
54 1.3.2.1 rmind chfs_err("free_size (%d) is less than dirty space (%d) "
55 1.1 ahoka "on block (%d)\n", cheb->free_size, size, cheb->lnr);
56 1.1 ahoka return 1;
57 1.1 ahoka }
58 1.1 ahoka mutex_enter(&chmp->chm_lock_sizes);
59 1.1 ahoka chfs_change_size_free(chmp, cheb, -size);
60 1.1 ahoka chfs_change_size_dirty(chmp, cheb, size);
61 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
62 1.1 ahoka return 0;
63 1.1 ahoka }
64 1.1 ahoka
65 1.3 ttoth /*
66 1.1 ahoka * chfs_add_node_to_list - adds a data node ref to vnode cache's dnode list
67 1.1 ahoka * This function inserts a data node ref to the list of vnode cache.
68 1.1 ahoka * The list is sorted by data node's lnr and offset.
69 1.1 ahoka */
70 1.1 ahoka void
71 1.1 ahoka chfs_add_node_to_list(struct chfs_mount *chmp,
72 1.1 ahoka struct chfs_vnode_cache *vc,
73 1.1 ahoka struct chfs_node_ref *new, struct chfs_node_ref **list)
74 1.1 ahoka {
75 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_vnocache));
76 1.2 ttoth
77 1.1 ahoka struct chfs_node_ref *nextref = *list;
78 1.1 ahoka struct chfs_node_ref *prevref = NULL;
79 1.1 ahoka
80 1.1 ahoka while (nextref && nextref != (struct chfs_node_ref *)vc &&
81 1.1 ahoka (nextref->nref_lnr <= new->nref_lnr)) {
82 1.1 ahoka if (nextref->nref_lnr == new->nref_lnr) {
83 1.1 ahoka while (nextref && nextref !=
84 1.1 ahoka (struct chfs_node_ref *)vc &&
85 1.1 ahoka (CHFS_GET_OFS(nextref->nref_offset) <
86 1.1 ahoka CHFS_GET_OFS(new->nref_offset))) {
87 1.1 ahoka prevref = nextref;
88 1.1 ahoka nextref = nextref->nref_next;
89 1.1 ahoka }
90 1.1 ahoka break;
91 1.1 ahoka }
92 1.1 ahoka prevref = nextref;
93 1.1 ahoka nextref = nextref->nref_next;
94 1.1 ahoka }
95 1.1 ahoka
96 1.1 ahoka if (nextref && nextref != (struct chfs_node_ref *)vc &&
97 1.1 ahoka nextref->nref_lnr == new->nref_lnr &&
98 1.1 ahoka CHFS_GET_OFS(nextref->nref_offset) ==
99 1.1 ahoka CHFS_GET_OFS(new->nref_offset)) {
100 1.1 ahoka new->nref_next = nextref->nref_next;
101 1.2 ttoth chfs_mark_node_obsolete(chmp, nextref);
102 1.1 ahoka } else {
103 1.1 ahoka new->nref_next = nextref;
104 1.1 ahoka }
105 1.1 ahoka
106 1.2 ttoth KASSERT(new->nref_next != NULL);
107 1.2 ttoth
108 1.1 ahoka if (prevref) {
109 1.1 ahoka prevref->nref_next = new;
110 1.1 ahoka } else {
111 1.1 ahoka *list = new;
112 1.1 ahoka }
113 1.1 ahoka }
114 1.1 ahoka
115 1.2 ttoth /*
116 1.3 ttoth * chfs_remove_node_from_list - removes a node from a list
117 1.3 ttoth * Usually used for removing data nodes.
118 1.2 ttoth */
119 1.2 ttoth void
120 1.2 ttoth chfs_remove_node_from_list(struct chfs_mount *chmp,
121 1.2 ttoth struct chfs_vnode_cache *vc,
122 1.2 ttoth struct chfs_node_ref *old_nref, struct chfs_node_ref **list)
123 1.2 ttoth {
124 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
125 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_vnocache));
126 1.2 ttoth
127 1.2 ttoth struct chfs_node_ref *tmpnref;
128 1.2 ttoth
129 1.2 ttoth if (*list == (struct chfs_node_ref *)vc) {
130 1.3 ttoth /* list is empty */
131 1.2 ttoth return;
132 1.2 ttoth }
133 1.2 ttoth
134 1.2 ttoth KASSERT(old_nref->nref_next != NULL);
135 1.2 ttoth
136 1.2 ttoth if (*list == old_nref) {
137 1.2 ttoth *list = old_nref->nref_next;
138 1.2 ttoth } else {
139 1.2 ttoth tmpnref = *list;
140 1.2 ttoth while (tmpnref->nref_next &&
141 1.2 ttoth tmpnref->nref_next != (struct chfs_node_ref *)vc) {
142 1.2 ttoth if (tmpnref->nref_next == old_nref) {
143 1.2 ttoth tmpnref->nref_next = old_nref->nref_next;
144 1.2 ttoth break;
145 1.2 ttoth }
146 1.2 ttoth tmpnref = tmpnref->nref_next;
147 1.2 ttoth }
148 1.2 ttoth }
149 1.2 ttoth }
150 1.2 ttoth
151 1.2 ttoth /*
152 1.3 ttoth * chfs_remove_and_obsolete - removes a node from a list and obsoletes the nref
153 1.2 ttoth * We should use this function carefully on data nodes,
154 1.3 ttoth * because removing a frag will also obsolete the node ref.
155 1.2 ttoth */
156 1.2 ttoth void
157 1.2 ttoth chfs_remove_and_obsolete(struct chfs_mount *chmp,
158 1.2 ttoth struct chfs_vnode_cache *vc,
159 1.2 ttoth struct chfs_node_ref *old_nref, struct chfs_node_ref **list)
160 1.2 ttoth {
161 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
162 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_vnocache));
163 1.2 ttoth
164 1.2 ttoth chfs_remove_node_from_list(chmp, vc, old_nref, list);
165 1.2 ttoth
166 1.2 ttoth dbg("[MARK] vno: %llu lnr: %u ofs: %u\n", vc->vno, old_nref->nref_lnr,
167 1.2 ttoth old_nref->nref_offset);
168 1.2 ttoth chfs_mark_node_obsolete(chmp, old_nref);
169 1.2 ttoth }
170 1.2 ttoth
171 1.3 ttoth /* chfs_add_fd_to_inode - adds a directory entry to an inode */
172 1.1 ahoka void
173 1.1 ahoka chfs_add_fd_to_inode(struct chfs_mount *chmp,
174 1.1 ahoka struct chfs_inode *parent, struct chfs_dirent *new)
175 1.1 ahoka {
176 1.1 ahoka struct chfs_dirent *fd, *tmpfd;
177 1.1 ahoka
178 1.3 ttoth /* update highest version */
179 1.1 ahoka if (new->version > parent->chvc->highest_version) {
180 1.1 ahoka parent->chvc->highest_version = new->version;
181 1.1 ahoka }
182 1.1 ahoka
183 1.1 ahoka TAILQ_FOREACH_SAFE(fd, &parent->dents, fds, tmpfd) {
184 1.1 ahoka if (fd->nhash > new->nhash) {
185 1.1 ahoka /* insert new before fd */
186 1.1 ahoka TAILQ_INSERT_BEFORE(fd, new, fds);
187 1.1 ahoka return;
188 1.1 ahoka } else if (fd->nhash == new->nhash &&
189 1.1 ahoka !strcmp(fd->name, new->name)) {
190 1.1 ahoka if (new->version > fd->version) {
191 1.1 ahoka /* replace fd with new */
192 1.1 ahoka TAILQ_INSERT_BEFORE(fd, new, fds);
193 1.1 ahoka TAILQ_REMOVE(&parent->dents, fd, fds);
194 1.1 ahoka if (fd->nref) {
195 1.2 ttoth mutex_enter(&chmp->chm_lock_vnocache);
196 1.2 ttoth chfs_remove_and_obsolete(chmp, parent->chvc, fd->nref,
197 1.2 ttoth &parent->chvc->dirents);
198 1.2 ttoth mutex_exit(&chmp->chm_lock_vnocache);
199 1.1 ahoka }
200 1.1 ahoka chfs_free_dirent(fd);
201 1.1 ahoka } else {
202 1.3 ttoth /* new is older (normally it's not an option) */
203 1.1 ahoka chfs_mark_node_obsolete(chmp, new->nref);
204 1.1 ahoka chfs_free_dirent(new);
205 1.1 ahoka }
206 1.1 ahoka return;
207 1.1 ahoka }
208 1.1 ahoka }
209 1.1 ahoka /* if we couldnt fit it elsewhere, lets add to the end */
210 1.1 ahoka /* FIXME insert tail or insert head? */
211 1.1 ahoka TAILQ_INSERT_HEAD(&parent->dents, new, fds);
212 1.3 ttoth }
213 1.1 ahoka
214 1.1 ahoka
215 1.3 ttoth /* chfs_add_vnode_ref_to_vc - adds a vnode info to the vnode cache */
216 1.1 ahoka void
217 1.1 ahoka chfs_add_vnode_ref_to_vc(struct chfs_mount *chmp,
218 1.1 ahoka struct chfs_vnode_cache *vc, struct chfs_node_ref *new)
219 1.1 ahoka {
220 1.2 ttoth KASSERT(mutex_owned(&chmp->chm_lock_vnocache));
221 1.2 ttoth struct chfs_node_ref *nref;
222 1.2 ttoth
223 1.3 ttoth /* store only the last one, drop the others */
224 1.2 ttoth while (vc->v != (struct chfs_node_ref *)vc) {
225 1.2 ttoth nref = vc->v;
226 1.2 ttoth chfs_remove_and_obsolete(chmp, vc, nref, &vc->v);
227 1.1 ahoka }
228 1.2 ttoth
229 1.2 ttoth new->nref_next = (struct chfs_node_ref *)vc;
230 1.1 ahoka vc->v = new;
231 1.1 ahoka }
232 1.1 ahoka
233 1.3 ttoth /* chfs_nref_next - step to the next in-memory nref */
234 1.1 ahoka struct chfs_node_ref *
235 1.1 ahoka chfs_nref_next(struct chfs_node_ref *nref)
236 1.1 ahoka {
237 1.1 ahoka nref++;
238 1.1 ahoka if (nref->nref_lnr == REF_LINK_TO_NEXT) {
239 1.3 ttoth /* end of chain */
240 1.1 ahoka if (!nref->nref_next)
241 1.1 ahoka return NULL;
242 1.1 ahoka
243 1.3 ttoth /* link to the next block */
244 1.1 ahoka nref = nref->nref_next;
245 1.1 ahoka }
246 1.3 ttoth /* end of chain */
247 1.1 ahoka if (nref->nref_lnr == REF_EMPTY_NODE)
248 1.1 ahoka return NULL;
249 1.1 ahoka
250 1.1 ahoka return nref;
251 1.1 ahoka }
252 1.1 ahoka
253 1.3 ttoth /* chfs_nref_len - calculates the length of an nref */
254 1.1 ahoka int
255 1.1 ahoka chfs_nref_len(struct chfs_mount *chmp,
256 1.1 ahoka struct chfs_eraseblock *cheb, struct chfs_node_ref *nref)
257 1.1 ahoka {
258 1.1 ahoka struct chfs_node_ref *next;
259 1.1 ahoka
260 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
261 1.1 ahoka
262 1.1 ahoka if (!cheb)
263 1.1 ahoka cheb = &chmp->chm_blocks[nref->nref_lnr];
264 1.1 ahoka
265 1.1 ahoka next = chfs_nref_next(nref);
266 1.1 ahoka
267 1.1 ahoka if (!next) {
268 1.1 ahoka return chmp->chm_ebh->eb_size - cheb->free_size -
269 1.1 ahoka CHFS_GET_OFS(nref->nref_offset);
270 1.1 ahoka }
271 1.1 ahoka return CHFS_GET_OFS(next->nref_offset) -
272 1.1 ahoka CHFS_GET_OFS(nref->nref_offset);
273 1.1 ahoka }
274 1.1 ahoka
275 1.3 ttoth /* chfs_mark_node_obsolete - marks a node as obsolete */
276 1.1 ahoka void
277 1.1 ahoka chfs_mark_node_obsolete(struct chfs_mount *chmp,
278 1.1 ahoka struct chfs_node_ref *nref)
279 1.1 ahoka {
280 1.1 ahoka int len;
281 1.1 ahoka struct chfs_eraseblock *cheb;
282 1.1 ahoka
283 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
284 1.1 ahoka
285 1.1 ahoka KASSERT(!CHFS_REF_OBSOLETE(nref));
286 1.1 ahoka
287 1.1 ahoka KASSERT(nref->nref_lnr <= chmp->chm_ebh->peb_nr);
288 1.1 ahoka cheb = &chmp->chm_blocks[nref->nref_lnr];
289 1.1 ahoka
290 1.1 ahoka #ifdef DIAGNOSTIC
291 1.1 ahoka if (cheb->used_size + cheb->free_size + cheb->dirty_size +
292 1.1 ahoka cheb->unchecked_size + cheb->wasted_size != chmp->chm_ebh->eb_size) {
293 1.1 ahoka dbg("eraseblock leak detected!\nused: %u\nfree: %u\n"
294 1.1 ahoka "dirty: %u\nunchecked: %u\nwasted: %u\ntotal: %u\nshould be: %zu\n",
295 1.1 ahoka cheb->used_size, cheb->free_size, cheb->dirty_size,
296 1.1 ahoka cheb->unchecked_size, cheb->wasted_size, cheb->used_size + cheb->free_size +
297 1.1 ahoka cheb->dirty_size + cheb->unchecked_size + cheb->wasted_size,
298 1.1 ahoka chmp->chm_ebh->eb_size);
299 1.1 ahoka }
300 1.1 ahoka #endif
301 1.1 ahoka
302 1.1 ahoka len = chfs_nref_len(chmp, cheb, nref);
303 1.1 ahoka
304 1.1 ahoka mutex_enter(&chmp->chm_lock_sizes);
305 1.1 ahoka
306 1.1 ahoka if (CHFS_REF_FLAGS(nref) == CHFS_UNCHECKED_NODE_MASK) {
307 1.1 ahoka chfs_change_size_unchecked(chmp, cheb, -len);
308 1.1 ahoka } else {
309 1.1 ahoka chfs_change_size_used(chmp, cheb, -len);
310 1.1 ahoka
311 1.1 ahoka KASSERT(cheb->used_size <= chmp->chm_ebh->eb_size);
312 1.1 ahoka }
313 1.1 ahoka chfs_change_size_dirty(chmp, cheb, len);
314 1.1 ahoka
315 1.1 ahoka #ifdef DIAGNOSTIC
316 1.1 ahoka if (cheb->used_size + cheb->free_size + cheb->dirty_size +
317 1.1 ahoka cheb->unchecked_size + cheb->wasted_size != chmp->chm_ebh->eb_size) {
318 1.1 ahoka panic("eraseblock leak detected!\nused: %u\nfree: %u\n"
319 1.1 ahoka "dirty: %u\nunchecked: %u\nwasted: %u\ntotal: %u\nshould be: %zu\n",
320 1.1 ahoka cheb->used_size, cheb->free_size, cheb->dirty_size,
321 1.1 ahoka cheb->unchecked_size, cheb->wasted_size, cheb->used_size + cheb->free_size +
322 1.1 ahoka cheb->dirty_size + cheb->unchecked_size + cheb->wasted_size,
323 1.1 ahoka chmp->chm_ebh->eb_size);
324 1.1 ahoka }
325 1.1 ahoka #endif
326 1.1 ahoka nref->nref_offset = CHFS_GET_OFS(nref->nref_offset) |
327 1.1 ahoka CHFS_OBSOLETE_NODE_MASK;
328 1.1 ahoka
329 1.1 ahoka if (chmp->chm_flags & CHFS_MP_FLAG_SCANNING) {
330 1.1 ahoka /*Scan is in progress, do nothing now*/
331 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
332 1.1 ahoka return;
333 1.1 ahoka }
334 1.1 ahoka
335 1.1 ahoka if (cheb == chmp->chm_nextblock) {
336 1.1 ahoka dbg("Not moving nextblock to dirty/erase_pending list\n");
337 1.1 ahoka } else if (!cheb->used_size && !cheb->unchecked_size) {
338 1.1 ahoka if (cheb == chmp->chm_gcblock) {
339 1.1 ahoka dbg("gcblock is completely dirtied\n");
340 1.1 ahoka chmp->chm_gcblock = NULL;
341 1.1 ahoka } else {
342 1.3 ttoth /* remove from a tailq, but we don't know which tailq contains this cheb
343 1.3 ttoth * so we remove it from the dirty list now */
344 1.1 ahoka //TAILQ_REMOVE(&chmp->chm_dirty_queue, cheb, queue);
345 1.1 ahoka int removed = 0;
346 1.1 ahoka struct chfs_eraseblock *eb, *tmpeb;
347 1.1 ahoka //XXX ugly code
348 1.1 ahoka TAILQ_FOREACH_SAFE(eb, &chmp->chm_free_queue, queue, tmpeb) {
349 1.1 ahoka if (eb == cheb) {
350 1.1 ahoka TAILQ_REMOVE(&chmp->chm_free_queue, cheb, queue);
351 1.1 ahoka removed = 1;
352 1.1 ahoka break;
353 1.1 ahoka }
354 1.1 ahoka }
355 1.1 ahoka if (removed == 0) {
356 1.1 ahoka TAILQ_FOREACH_SAFE(eb, &chmp->chm_dirty_queue, queue, tmpeb) {
357 1.1 ahoka if (eb == cheb) {
358 1.1 ahoka TAILQ_REMOVE(&chmp->chm_dirty_queue, cheb, queue);
359 1.1 ahoka removed = 1;
360 1.1 ahoka break;
361 1.1 ahoka }
362 1.1 ahoka }
363 1.1 ahoka }
364 1.1 ahoka if (removed == 0) {
365 1.1 ahoka TAILQ_FOREACH_SAFE(eb, &chmp->chm_very_dirty_queue, queue, tmpeb) {
366 1.1 ahoka if (eb == cheb) {
367 1.1 ahoka TAILQ_REMOVE(&chmp->chm_very_dirty_queue, cheb, queue);
368 1.1 ahoka removed = 1;
369 1.1 ahoka break;
370 1.1 ahoka }
371 1.1 ahoka }
372 1.1 ahoka }
373 1.1 ahoka if (removed == 0) {
374 1.1 ahoka TAILQ_FOREACH_SAFE(eb, &chmp->chm_clean_queue, queue, tmpeb) {
375 1.1 ahoka if (eb == cheb) {
376 1.1 ahoka TAILQ_REMOVE(&chmp->chm_clean_queue, cheb, queue);
377 1.1 ahoka removed = 1;
378 1.1 ahoka break;
379 1.1 ahoka }
380 1.1 ahoka }
381 1.1 ahoka }
382 1.1 ahoka }
383 1.1 ahoka if (chmp->chm_wbuf_len) {
384 1.1 ahoka dbg("Adding block to erasable pending wbuf queue\n");
385 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_erasable_pending_wbuf_queue,
386 1.1 ahoka cheb, queue);
387 1.1 ahoka } else {
388 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_erase_pending_queue,
389 1.1 ahoka cheb, queue);
390 1.1 ahoka chmp->chm_nr_erasable_blocks++;
391 1.1 ahoka }
392 1.1 ahoka chfs_remap_leb(chmp);
393 1.1 ahoka } else if (cheb == chmp->chm_gcblock) {
394 1.1 ahoka dbg("Not moving gcblock to dirty list\n");
395 1.1 ahoka } else if (cheb->dirty_size > MAX_DIRTY_TO_CLEAN &&
396 1.1 ahoka cheb->dirty_size - len <= MAX_DIRTY_TO_CLEAN) {
397 1.1 ahoka dbg("Freshly dirtied, remove it from clean queue and "
398 1.1 ahoka "add it to dirty\n");
399 1.1 ahoka TAILQ_REMOVE(&chmp->chm_clean_queue, cheb, queue);
400 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_dirty_queue, cheb, queue);
401 1.1 ahoka } else if (VERY_DIRTY(chmp, cheb->dirty_size) &&
402 1.1 ahoka !VERY_DIRTY(chmp, cheb->dirty_size - len)) {
403 1.1 ahoka dbg("Becomes now very dirty, remove it from dirty "
404 1.1 ahoka "queue and add it to very dirty\n");
405 1.1 ahoka TAILQ_REMOVE(&chmp->chm_dirty_queue, cheb, queue);
406 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_very_dirty_queue, cheb, queue);
407 1.1 ahoka } else {
408 1.1 ahoka dbg("Leave cheb where it is\n");
409 1.1 ahoka }
410 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
411 1.1 ahoka return;
412 1.1 ahoka }
413 1.1 ahoka
414 1.3 ttoth /*
415 1.1 ahoka * chfs_close_eraseblock - close an eraseblock
416 1.1 ahoka *
417 1.1 ahoka * This function close the physical chain of the nodes on the eraseblock,
418 1.1 ahoka * convert its free size to dirty and add it to clean, dirty or very dirty list.
419 1.1 ahoka */
420 1.1 ahoka int
421 1.1 ahoka chfs_close_eraseblock(struct chfs_mount *chmp,
422 1.1 ahoka struct chfs_eraseblock *cheb)
423 1.1 ahoka {
424 1.1 ahoka uint32_t offset;
425 1.1 ahoka struct chfs_node_ref *nref;
426 1.1 ahoka
427 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
428 1.1 ahoka
429 1.1 ahoka offset = chmp->chm_ebh->eb_size - cheb->free_size;
430 1.1 ahoka
431 1.1 ahoka // Close the chain
432 1.1 ahoka nref = chfs_alloc_node_ref(cheb);
433 1.1 ahoka if (!nref)
434 1.1 ahoka return ENOMEM;
435 1.1 ahoka
436 1.1 ahoka nref->nref_next = NULL;
437 1.1 ahoka nref->nref_offset = offset;
438 1.1 ahoka
439 1.1 ahoka // Mark space as dirty
440 1.1 ahoka chfs_update_eb_dirty(chmp, cheb, cheb->free_size);
441 1.1 ahoka
442 1.1 ahoka if (cheb->dirty_size < MAX_DIRTY_TO_CLEAN) {
443 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_clean_queue, cheb, queue);
444 1.1 ahoka } else if (VERY_DIRTY(chmp, cheb->dirty_size)) {
445 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_very_dirty_queue, cheb, queue);
446 1.1 ahoka } else {
447 1.1 ahoka TAILQ_INSERT_TAIL(&chmp->chm_dirty_queue, cheb, queue);
448 1.1 ahoka }
449 1.1 ahoka return 0;
450 1.1 ahoka }
451 1.1 ahoka
452 1.3 ttoth /*
453 1.3 ttoth * chfs_reserve_space_normal -
454 1.3 ttoth * checks available space and calls chfs_reserve_space
455 1.3 ttoth * used during writing
456 1.3 ttoth */
457 1.1 ahoka int
458 1.1 ahoka chfs_reserve_space_normal(struct chfs_mount *chmp, uint32_t size, int prio)
459 1.1 ahoka {
460 1.1 ahoka int ret;
461 1.1 ahoka
462 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
463 1.1 ahoka
464 1.1 ahoka mutex_enter(&chmp->chm_lock_sizes);
465 1.1 ahoka while (chmp->chm_nr_free_blocks + chmp->chm_nr_erasable_blocks < chmp->chm_resv_blocks_write) {
466 1.1 ahoka dbg("free: %d, erasable: %d, resv: %d\n", chmp->chm_nr_free_blocks, chmp->chm_nr_erasable_blocks, chmp->chm_resv_blocks_write);
467 1.1 ahoka uint32_t avail, dirty;
468 1.1 ahoka if (prio == ALLOC_DELETION && chmp->chm_nr_free_blocks + chmp->chm_nr_erasable_blocks >= chmp->chm_resv_blocks_deletion)
469 1.1 ahoka break;
470 1.1 ahoka
471 1.1 ahoka dirty = chmp->chm_dirty_size - chmp->chm_nr_erasable_blocks * chmp->chm_ebh->eb_size + chmp->chm_unchecked_size;
472 1.1 ahoka if (dirty < chmp->chm_nospc_dirty) {
473 1.1 ahoka dbg("dirty: %u < nospc_dirty: %u\n", dirty, chmp->chm_nospc_dirty);
474 1.1 ahoka ret = ENOSPC;
475 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
476 1.1 ahoka goto out;
477 1.1 ahoka }
478 1.1 ahoka
479 1.1 ahoka avail = chmp->chm_free_size - (chmp->chm_resv_blocks_write * chmp->chm_ebh->eb_size);
480 1.1 ahoka if (size > avail) {
481 1.1 ahoka dbg("size: %u > avail: %u\n", size, avail);
482 1.1 ahoka ret = ENOSPC;
483 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
484 1.1 ahoka goto out;
485 1.1 ahoka }
486 1.1 ahoka
487 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
488 1.1 ahoka ret = chfs_gcollect_pass(chmp);
489 1.1 ahoka mutex_enter(&chmp->chm_lock_sizes);
490 1.1 ahoka
491 1.1 ahoka if (chmp->chm_nr_erasable_blocks ||
492 1.1 ahoka !TAILQ_EMPTY(&chmp->chm_erasable_pending_wbuf_queue) ||
493 1.1 ahoka ret == EAGAIN) {
494 1.1 ahoka ret = chfs_remap_leb(chmp);
495 1.1 ahoka }
496 1.1 ahoka
497 1.1 ahoka if (ret) {
498 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
499 1.1 ahoka goto out;
500 1.1 ahoka }
501 1.1 ahoka }
502 1.1 ahoka
503 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
504 1.1 ahoka ret = chfs_reserve_space(chmp, size);
505 1.1 ahoka out:
506 1.1 ahoka return ret;
507 1.1 ahoka }
508 1.1 ahoka
509 1.1 ahoka
510 1.3 ttoth /* chfs_reserve_space_gc - tries to reserve space for GC */
511 1.1 ahoka int
512 1.1 ahoka chfs_reserve_space_gc(struct chfs_mount *chmp, uint32_t size)
513 1.1 ahoka {
514 1.1 ahoka int ret;
515 1.1 ahoka
516 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
517 1.1 ahoka
518 1.1 ahoka mutex_enter(&chmp->chm_lock_sizes);
519 1.1 ahoka chfs_remap_leb(chmp);
520 1.1 ahoka
521 1.1 ahoka if (size > chmp->chm_free_size) {
522 1.1 ahoka dbg("size: %u\n", size);
523 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
524 1.1 ahoka return ENOSPC;
525 1.1 ahoka }
526 1.1 ahoka
527 1.1 ahoka mutex_exit(&chmp->chm_lock_sizes);
528 1.1 ahoka ret = chfs_reserve_space(chmp, size);
529 1.1 ahoka return ret;
530 1.1 ahoka }
531 1.1 ahoka
532 1.3 ttoth /*
533 1.1 ahoka * chfs_reserve_space - finds a block which free size is >= requested size
534 1.1 ahoka * Returns zero in case of success, error code in case of fail.
535 1.1 ahoka */
536 1.1 ahoka int
537 1.1 ahoka chfs_reserve_space(struct chfs_mount *chmp, uint32_t size)
538 1.1 ahoka {
539 1.1 ahoka //TODO define minimum reserved blocks, which is needed for writing
540 1.1 ahoka //TODO check we have enough free blocks to write
541 1.1 ahoka //TODO if no: need erase and GC
542 1.1 ahoka
543 1.1 ahoka int err;
544 1.1 ahoka struct chfs_eraseblock *cheb;
545 1.1 ahoka
546 1.1 ahoka KASSERT(mutex_owned(&chmp->chm_lock_mountfields));
547 1.1 ahoka KASSERT(!mutex_owned(&chmp->chm_lock_sizes));
548 1.1 ahoka
549 1.1 ahoka cheb = chmp->chm_nextblock;
550 1.1 ahoka if (cheb && size > cheb->free_size) {
551 1.1 ahoka dbg("size: %u > free_size: %u\n", size, cheb->free_size);
552 1.1 ahoka /*
553 1.1 ahoka * There isn't enough space on this eraseblock, we mark this as
554 1.1 ahoka * dirty and close the physical chain of the node refs.
555 1.1 ahoka */
556 1.1 ahoka //Write out pending data if any
557 1.1 ahoka if (chmp->chm_wbuf_len) {
558 1.1 ahoka chfs_flush_pending_wbuf(chmp);
559 1.1 ahoka //FIXME need goto restart here?
560 1.1 ahoka }
561 1.1 ahoka
562 1.1 ahoka while (chmp->chm_wbuf_ofs < chmp->chm_ebh->eb_size) {
563 1.1 ahoka dbg("wbuf ofs: %zu - eb_size: %zu\n",
564 1.1 ahoka chmp->chm_wbuf_ofs, chmp->chm_ebh->eb_size);
565 1.1 ahoka chfs_flush_pending_wbuf(chmp);
566 1.1 ahoka }
567 1.1 ahoka
568 1.1 ahoka if (!(chmp->chm_wbuf_ofs % chmp->chm_ebh->eb_size) && !chmp->chm_wbuf_len)
569 1.1 ahoka chmp->chm_wbuf_ofs = 0xffffffff;
570 1.1 ahoka
571 1.1 ahoka err = chfs_close_eraseblock(chmp, cheb);
572 1.1 ahoka if (err)
573 1.1 ahoka return err;
574 1.1 ahoka
575 1.1 ahoka cheb = NULL;
576 1.1 ahoka }
577 1.1 ahoka if (!cheb) {
578 1.1 ahoka //get a block for nextblock
579 1.1 ahoka if (TAILQ_EMPTY(&chmp->chm_free_queue)) {
580 1.1 ahoka // If this succeeds there will be a block on free_queue
581 1.1 ahoka dbg("cheb remap (free: %d)\n", chmp->chm_nr_free_blocks);
582 1.1 ahoka err = chfs_remap_leb(chmp);
583 1.1 ahoka if (err)
584 1.1 ahoka return err;
585 1.1 ahoka }
586 1.1 ahoka cheb = TAILQ_FIRST(&chmp->chm_free_queue);
587 1.1 ahoka TAILQ_REMOVE(&chmp->chm_free_queue, cheb, queue);
588 1.1 ahoka chmp->chm_nextblock = cheb;
589 1.1 ahoka chmp->chm_nr_free_blocks--;
590 1.1 ahoka }
591 1.1 ahoka
592 1.1 ahoka return 0;
593 1.1 ahoka }
594 1.1 ahoka
595