docs: change hard-coded default of nsupdate command to match lib/param
[Samba.git] / ctdb / server / ctdb_vacuum.c
blobd07afd4f90c45b78cc613fb2d1d4cdfc2881af81
1 /*
2 ctdb vacuuming events
4 Copyright (C) Ronnie Sahlberg 2009
5 Copyright (C) Michael Adam 2010-2013
6 Copyright (C) Stefan Metzmacher 2010-2011
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 3 of the License, or
11 (at your option) any later version.
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, see <http://www.gnu.org/licenses/>.
22 #include "includes.h"
23 #include "tdb.h"
24 #include "system/network.h"
25 #include "system/filesys.h"
26 #include "system/dir.h"
27 #include "../include/ctdb_private.h"
28 #include "db_wrap.h"
29 #include "lib/util/dlinklist.h"
30 #include "../include/ctdb_private.h"
31 #include "../common/rb_tree.h"
33 #define TIMELIMIT() timeval_current_ofs(10, 0)
35 enum vacuum_child_status { VACUUM_RUNNING, VACUUM_OK, VACUUM_ERROR, VACUUM_TIMEOUT};
37 struct ctdb_vacuum_child_context {
38 struct ctdb_vacuum_child_context *next, *prev;
39 struct ctdb_vacuum_handle *vacuum_handle;
40 /* fd child writes status to */
41 int fd[2];
42 pid_t child_pid;
43 enum vacuum_child_status status;
44 struct timeval start_time;
47 struct ctdb_vacuum_handle {
48 struct ctdb_db_context *ctdb_db;
49 struct ctdb_vacuum_child_context *child_ctx;
50 uint32_t fast_path_count;
54 /* a list of records to possibly delete */
55 struct vacuum_data {
56 uint32_t vacuum_limit;
57 uint32_t repack_limit;
58 struct ctdb_context *ctdb;
59 struct ctdb_db_context *ctdb_db;
60 struct tdb_context *dest_db;
61 trbt_tree_t *delete_list;
62 uint32_t delete_count;
63 struct ctdb_marshall_buffer **vacuum_fetch_list;
64 struct timeval start;
65 bool traverse_error;
66 bool vacuum;
67 uint32_t total;
68 uint32_t vacuumed;
69 uint32_t copied;
70 uint32_t fast_added_to_vacuum_fetch_list;
71 uint32_t fast_added_to_delete_list;
72 uint32_t fast_deleted;
73 uint32_t fast_skipped;
74 uint32_t fast_error;
75 uint32_t fast_total;
76 uint32_t full_added_to_vacuum_fetch_list;
77 uint32_t full_added_to_delete_list;
78 uint32_t full_skipped;
79 uint32_t full_error;
80 uint32_t full_total;
81 uint32_t delete_left;
82 uint32_t delete_remote_error;
83 uint32_t delete_local_error;
84 uint32_t delete_deleted;
85 uint32_t delete_skipped;
88 /* this structure contains the information for one record to be deleted */
89 struct delete_record_data {
90 struct ctdb_context *ctdb;
91 struct ctdb_db_context *ctdb_db;
92 struct ctdb_ltdb_header hdr;
93 TDB_DATA key;
94 uint8_t keydata[1];
97 struct delete_records_list {
98 struct ctdb_marshall_buffer *records;
99 struct vacuum_data *vdata;
103 * Store key and header in a tree, indexed by the key hash.
105 static int insert_delete_record_data_into_tree(struct ctdb_context *ctdb,
106 struct ctdb_db_context *ctdb_db,
107 trbt_tree_t *tree,
108 const struct ctdb_ltdb_header *hdr,
109 TDB_DATA key)
111 struct delete_record_data *dd;
112 uint32_t hash;
113 size_t len;
115 len = offsetof(struct delete_record_data, keydata) + key.dsize;
117 dd = (struct delete_record_data *)talloc_size(tree, len);
118 if (dd == NULL) {
119 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
120 return -1;
122 talloc_set_name_const(dd, "struct delete_record_data");
124 dd->ctdb = ctdb;
125 dd->ctdb_db = ctdb_db;
126 dd->key.dsize = key.dsize;
127 dd->key.dptr = dd->keydata;
128 memcpy(dd->keydata, key.dptr, key.dsize);
130 dd->hdr = *hdr;
132 hash = ctdb_hash(&key);
134 trbt_insert32(tree, hash, dd);
136 return 0;
139 static int add_record_to_delete_list(struct vacuum_data *vdata, TDB_DATA key,
140 struct ctdb_ltdb_header *hdr)
142 struct ctdb_context *ctdb = vdata->ctdb;
143 struct ctdb_db_context *ctdb_db = vdata->ctdb_db;
144 uint32_t hash;
145 int ret;
147 hash = ctdb_hash(&key);
149 if (trbt_lookup32(vdata->delete_list, hash)) {
150 DEBUG(DEBUG_INFO, (__location__ " Hash collission when vacuuming, skipping this record.\n"));
151 return 0;
154 ret = insert_delete_record_data_into_tree(ctdb, ctdb_db,
155 vdata->delete_list,
156 hdr, key);
157 if (ret != 0) {
158 return -1;
161 vdata->delete_count++;
163 return 0;
167 * Add a record to the list of records to be sent
168 * to their lmaster with VACUUM_FETCH.
170 static int add_record_to_vacuum_fetch_list(struct vacuum_data *vdata,
171 TDB_DATA key)
173 struct ctdb_context *ctdb = vdata->ctdb;
174 struct ctdb_rec_data *rec;
175 uint32_t lmaster;
176 size_t old_size;
177 struct ctdb_marshall_buffer *vfl;
179 lmaster = ctdb_lmaster(ctdb, &key);
181 vfl = vdata->vacuum_fetch_list[lmaster];
183 rec = ctdb_marshall_record(vfl, ctdb->pnn, key, NULL, tdb_null);
184 if (rec == NULL) {
185 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
186 vdata->traverse_error = true;
187 return -1;
190 old_size = talloc_get_size(vfl);
191 vfl = talloc_realloc_size(NULL, vfl, old_size + rec->length);
192 if (vfl == NULL) {
193 DEBUG(DEBUG_ERR,(__location__ " Failed to expand\n"));
194 vdata->traverse_error = true;
195 return -1;
197 vdata->vacuum_fetch_list[lmaster] = vfl;
199 vfl->count++;
200 memcpy(old_size+(uint8_t *)vfl, rec, rec->length);
201 talloc_free(rec);
203 vdata->total++;
205 return 0;
209 static void ctdb_vacuum_event(struct event_context *ev, struct timed_event *te,
210 struct timeval t, void *private_data);
214 * traverse function for gathering the records that can be deleted
216 static int vacuum_traverse(struct tdb_context *tdb, TDB_DATA key, TDB_DATA data, void *private)
218 struct vacuum_data *vdata = talloc_get_type(private, struct vacuum_data);
219 struct ctdb_context *ctdb = vdata->ctdb;
220 uint32_t lmaster;
221 struct ctdb_ltdb_header *hdr;
222 int res = 0;
224 vdata->full_total++;
226 lmaster = ctdb_lmaster(ctdb, &key);
227 if (lmaster >= ctdb->num_nodes) {
228 vdata->full_error++;
229 DEBUG(DEBUG_CRIT, (__location__
230 " lmaster[%u] >= ctdb->num_nodes[%u] for key"
231 " with hash[%u]!\n",
232 (unsigned)lmaster,
233 (unsigned)ctdb->num_nodes,
234 (unsigned)ctdb_hash(&key)));
235 return -1;
238 if (data.dsize != sizeof(struct ctdb_ltdb_header)) {
239 /* it is not a deleted record */
240 vdata->full_skipped++;
241 return 0;
244 hdr = (struct ctdb_ltdb_header *)data.dptr;
246 if (hdr->dmaster != ctdb->pnn) {
247 vdata->full_skipped++;
248 return 0;
251 if (lmaster == ctdb->pnn) {
253 * We are both lmaster and dmaster, and the record is empty.
254 * So we should be able to delete it.
256 res = add_record_to_delete_list(vdata, key, hdr);
257 if (res != 0) {
258 vdata->full_error++;
259 } else {
260 vdata->full_added_to_delete_list++;
262 } else {
264 * We are not lmaster.
265 * Add the record to the blob ready to send to the nodes.
267 res = add_record_to_vacuum_fetch_list(vdata, key);
268 if (res != 0) {
269 vdata->full_error++;
270 } else {
271 vdata->full_added_to_vacuum_fetch_list++;
275 return res;
279 * traverse the tree of records to delete and marshall them into
280 * a blob
282 static int delete_marshall_traverse(void *param, void *data)
284 struct delete_record_data *dd = talloc_get_type(data, struct delete_record_data);
285 struct delete_records_list *recs = talloc_get_type(param, struct delete_records_list);
286 struct ctdb_rec_data *rec;
287 size_t old_size;
289 rec = ctdb_marshall_record(dd, recs->records->db_id, dd->key, &dd->hdr, tdb_null);
290 if (rec == NULL) {
291 DEBUG(DEBUG_ERR, (__location__ " failed to marshall record\n"));
292 return 0;
295 old_size = talloc_get_size(recs->records);
296 recs->records = talloc_realloc_size(NULL, recs->records, old_size + rec->length);
297 if (recs->records == NULL) {
298 DEBUG(DEBUG_ERR,(__location__ " Failed to expand\n"));
299 return 0;
301 recs->records->count++;
302 memcpy(old_size+(uint8_t *)(recs->records), rec, rec->length);
303 return 0;
307 * Variant of delete_marshall_traverse() that bumps the
308 * RSN of each traversed record in the database.
310 * This is needed to ensure that when rolling out our
311 * empty record copy before remote deletion, we as the
312 * record's dmaster keep a higher RSN than the non-dmaster
313 * nodes. This is needed to prevent old copies from
314 * resurrection in recoveries.
316 static int delete_marshall_traverse_first(void *param, void *data)
318 struct delete_record_data *dd = talloc_get_type(data, struct delete_record_data);
319 struct delete_records_list *recs = talloc_get_type(param, struct delete_records_list);
320 struct ctdb_db_context *ctdb_db = dd->ctdb_db;
321 struct ctdb_context *ctdb = ctdb_db->ctdb;
322 struct ctdb_ltdb_header *header;
323 TDB_DATA tdb_data, ctdb_data;
324 uint32_t lmaster;
325 uint32_t hash = ctdb_hash(&(dd->key));
326 int res;
328 res = tdb_chainlock(ctdb_db->ltdb->tdb, dd->key);
329 if (res != 0) {
330 DEBUG(DEBUG_ERR,
331 (__location__ " Error getting chainlock on record with "
332 "key hash [0x%08x] on database db[%s].\n",
333 hash, ctdb_db->db_name));
334 recs->vdata->delete_skipped++;
335 talloc_free(dd);
336 return 0;
340 * Verify that the record is still empty, its RSN has not
341 * changed and that we are still its lmaster and dmaster.
344 tdb_data = tdb_fetch(ctdb_db->ltdb->tdb, dd->key);
345 if (tdb_data.dsize < sizeof(struct ctdb_ltdb_header)) {
346 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
347 "on database db[%s] does not exist or is not"
348 " a ctdb-record. skipping.\n",
349 hash, ctdb_db->db_name));
350 goto skip;
353 if (tdb_data.dsize > sizeof(struct ctdb_ltdb_header)) {
354 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
355 "on database db[%s] has been recycled. "
356 "skipping.\n",
357 hash, ctdb_db->db_name));
358 goto skip;
361 header = (struct ctdb_ltdb_header *)tdb_data.dptr;
363 if (header->flags & CTDB_REC_RO_FLAGS) {
364 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
365 "on database db[%s] has read-only flags. "
366 "skipping.\n",
367 hash, ctdb_db->db_name));
368 goto skip;
371 if (header->dmaster != ctdb->pnn) {
372 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
373 "on database db[%s] has been migrated away. "
374 "skipping.\n",
375 hash, ctdb_db->db_name));
376 goto skip;
379 if (header->rsn != dd->hdr.rsn) {
380 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
381 "on database db[%s] seems to have been "
382 "migrated away and back again (with empty "
383 "data). skipping.\n",
384 hash, ctdb_db->db_name));
385 goto skip;
388 lmaster = ctdb_lmaster(ctdb_db->ctdb, &dd->key);
390 if (lmaster != ctdb->pnn) {
391 DEBUG(DEBUG_INFO, (__location__ ": not lmaster for record in "
392 "delete list (key hash [0x%08x], db[%s]). "
393 "Strange! skipping.\n",
394 hash, ctdb_db->db_name));
395 goto skip;
399 * Increment the record's RSN to ensure the dmaster (i.e. the current
400 * node) has the highest RSN of the record in the cluster.
401 * This is to prevent old record copies from resurrecting in recoveries
402 * if something should fail during the deletion process.
403 * Note that ctdb_ltdb_store_server() increments the RSN if called
404 * on the record's dmaster.
407 ctdb_data.dptr = tdb_data.dptr + sizeof(struct ctdb_ltdb_header);
408 ctdb_data.dsize = tdb_data.dsize - sizeof(struct ctdb_ltdb_header);
410 res = ctdb_ltdb_store(ctdb_db, dd->key, header, ctdb_data);
411 if (res != 0) {
412 DEBUG(DEBUG_ERR, (__location__ ": Failed to store record with "
413 "key hash [0x%08x] on database db[%s].\n",
414 hash, ctdb_db->db_name));
415 goto skip;
418 tdb_chainunlock(ctdb_db->ltdb->tdb, dd->key);
420 goto done;
422 skip:
423 tdb_chainunlock(ctdb_db->ltdb->tdb, dd->key);
425 recs->vdata->delete_skipped++;
426 talloc_free(dd);
427 dd = NULL;
429 done:
430 if (tdb_data.dptr != NULL) {
431 free(tdb_data.dptr);
434 if (dd == NULL) {
435 return 0;
438 return delete_marshall_traverse(param, data);
442 * traverse function for the traversal of the delete_queue,
443 * the fast-path vacuuming list.
445 * - If the record has been migrated off the node
446 * or has been revived (filled with data) on the node,
447 * then skip the record.
449 * - If the current node is the record's lmaster and it is
450 * a record that has never been migrated with data, then
451 * delete the record from the local tdb.
453 * - If the current node is the record's lmaster and it has
454 * been migrated with data, then schedule it for the normal
455 * vacuuming procedure (i.e. add it to the delete_list).
457 * - If the current node is NOT the record's lmaster then
458 * add it to the list of records that are to be sent to
459 * the lmaster with the VACUUM_FETCH message.
461 static int delete_queue_traverse(void *param, void *data)
463 struct delete_record_data *dd =
464 talloc_get_type(data, struct delete_record_data);
465 struct vacuum_data *vdata = talloc_get_type(param, struct vacuum_data);
466 struct ctdb_db_context *ctdb_db = dd->ctdb_db;
467 struct ctdb_context *ctdb = ctdb_db->ctdb; /* or dd->ctdb ??? */
468 int res;
469 struct ctdb_ltdb_header *header;
470 TDB_DATA tdb_data;
471 uint32_t lmaster;
472 uint32_t hash = ctdb_hash(&(dd->key));
474 vdata->fast_total++;
476 res = tdb_chainlock(ctdb_db->ltdb->tdb, dd->key);
477 if (res != 0) {
478 DEBUG(DEBUG_ERR,
479 (__location__ " Error getting chainlock on record with "
480 "key hash [0x%08x] on database db[%s].\n",
481 hash, ctdb_db->db_name));
482 vdata->fast_error++;
483 return 0;
486 tdb_data = tdb_fetch(ctdb_db->ltdb->tdb, dd->key);
487 if (tdb_data.dsize < sizeof(struct ctdb_ltdb_header)) {
488 /* Does not exist or not a ctdb record. Skip. */
489 goto skipped;
492 if (tdb_data.dsize > sizeof(struct ctdb_ltdb_header)) {
493 /* The record has been recycled (filled with data). Skip. */
494 goto skipped;
497 header = (struct ctdb_ltdb_header *)tdb_data.dptr;
499 if (header->dmaster != ctdb->pnn) {
500 /* The record has been migrated off the node. Skip. */
501 goto skipped;
504 if (header->rsn != dd->hdr.rsn) {
506 * The record has been migrated off the node and back again.
507 * But not requeued for deletion. Skip it.
509 goto skipped;
513 * We are dmaster, and the record has no data, and it has
514 * not been migrated after it has been queued for deletion.
516 * At this stage, the record could still have been revived locally
517 * and last been written with empty data. This can only be
518 * fixed with the addition of an active or delete flag. (TODO)
521 lmaster = ctdb_lmaster(ctdb_db->ctdb, &dd->key);
523 if (lmaster != ctdb->pnn) {
524 res = add_record_to_vacuum_fetch_list(vdata, dd->key);
526 if (res != 0) {
527 DEBUG(DEBUG_ERR,
528 (__location__ " Error adding record to list "
529 "of records to send to lmaster.\n"));
530 vdata->fast_error++;
531 } else {
532 vdata->fast_added_to_vacuum_fetch_list++;
534 goto done;
537 /* use header->flags or dd->hdr.flags ?? */
538 if (dd->hdr.flags & CTDB_REC_FLAG_MIGRATED_WITH_DATA) {
539 res = add_record_to_delete_list(vdata, dd->key, &dd->hdr);
541 if (res != 0) {
542 DEBUG(DEBUG_ERR,
543 (__location__ " Error adding record to list "
544 "of records for deletion on lmaster.\n"));
545 vdata->fast_error++;
546 } else {
547 vdata->fast_added_to_delete_list++;
549 } else {
550 res = tdb_delete(ctdb_db->ltdb->tdb, dd->key);
552 if (res != 0) {
553 DEBUG(DEBUG_ERR,
554 (__location__ " Error deleting record with key "
555 "hash [0x%08x] from local data base db[%s].\n",
556 hash, ctdb_db->db_name));
557 vdata->fast_error++;
558 } else {
559 DEBUG(DEBUG_DEBUG,
560 (__location__ " Deleted record with key hash "
561 "[0x%08x] from local data base db[%s].\n",
562 hash, ctdb_db->db_name));
563 vdata->fast_deleted++;
567 goto done;
569 skipped:
570 vdata->fast_skipped++;
572 done:
573 if (tdb_data.dptr != NULL) {
574 free(tdb_data.dptr);
576 tdb_chainunlock(ctdb_db->ltdb->tdb, dd->key);
578 return 0;
582 * Delete the records that we are lmaster and dmaster for and
583 * that could be deleted on all other nodes via the TRY_DELETE_RECORDS
584 * control.
586 static int delete_record_traverse(void *param, void *data)
588 struct delete_record_data *dd =
589 talloc_get_type(data, struct delete_record_data);
590 struct vacuum_data *vdata = talloc_get_type(param, struct vacuum_data);
591 struct ctdb_db_context *ctdb_db = dd->ctdb_db;
592 struct ctdb_context *ctdb = ctdb_db->ctdb;
593 int res;
594 struct ctdb_ltdb_header *header;
595 TDB_DATA tdb_data;
596 uint32_t lmaster;
597 bool deleted = false;
598 uint32_t hash = ctdb_hash(&(dd->key));
600 res = tdb_chainlock(ctdb_db->ltdb->tdb, dd->key);
601 if (res != 0) {
602 DEBUG(DEBUG_ERR,
603 (__location__ " Error getting chainlock on record with "
604 "key hash [0x%08x] on database db[%s].\n",
605 hash, ctdb_db->db_name));
606 vdata->delete_local_error++;
607 return 0;
611 * Verify that the record is still empty, its RSN has not
612 * changed and that we are still its lmaster and dmaster.
615 tdb_data = tdb_fetch(ctdb_db->ltdb->tdb, dd->key);
616 if (tdb_data.dsize < sizeof(struct ctdb_ltdb_header)) {
617 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
618 "on database db[%s] does not exist or is not"
619 " a ctdb-record. skipping.\n",
620 hash, ctdb_db->db_name));
621 vdata->delete_skipped++;
622 goto done;
625 if (tdb_data.dsize > sizeof(struct ctdb_ltdb_header)) {
626 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
627 "on database db[%s] has been recycled. "
628 "skipping.\n",
629 hash, ctdb_db->db_name));
630 vdata->delete_skipped++;
631 goto done;
634 header = (struct ctdb_ltdb_header *)tdb_data.dptr;
636 if (header->flags & CTDB_REC_RO_FLAGS) {
637 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
638 "on database db[%s] has read-only flags. "
639 "skipping.\n",
640 hash, ctdb_db->db_name));
641 vdata->delete_skipped++;
642 goto done;
645 if (header->dmaster != ctdb->pnn) {
646 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
647 "on database db[%s] has been migrated away. "
648 "skipping.\n",
649 hash, ctdb_db->db_name));
650 vdata->delete_skipped++;
651 goto done;
654 if (header->rsn != dd->hdr.rsn + 1) {
656 * The record has been migrated off the node and back again.
657 * But not requeued for deletion. Skip it.
658 * (Note that the first marshall traverse has bumped the RSN
659 * on disk.)
661 DEBUG(DEBUG_INFO, (__location__ ": record with hash [0x%08x] "
662 "on database db[%s] seems to have been "
663 "migrated away and back again (with empty "
664 "data). skipping.\n",
665 hash, ctdb_db->db_name));
666 vdata->delete_skipped++;
667 goto done;
670 lmaster = ctdb_lmaster(ctdb_db->ctdb, &dd->key);
672 if (lmaster != ctdb->pnn) {
673 DEBUG(DEBUG_INFO, (__location__ ": not lmaster for record in "
674 "delete list (key hash [0x%08x], db[%s]). "
675 "Strange! skipping.\n",
676 hash, ctdb_db->db_name));
677 vdata->delete_skipped++;
678 goto done;
681 res = tdb_delete(ctdb_db->ltdb->tdb, dd->key);
683 if (res != 0) {
684 DEBUG(DEBUG_ERR,
685 (__location__ " Error deleting record with key hash "
686 "[0x%08x] from local data base db[%s].\n",
687 hash, ctdb_db->db_name));
688 vdata->delete_local_error++;
689 goto done;
692 deleted = true;
694 DEBUG(DEBUG_DEBUG,
695 (__location__ " Deleted record with key hash [0x%08x] from "
696 "local data base db[%s].\n", hash, ctdb_db->db_name));
698 done:
699 if (tdb_data.dptr != NULL) {
700 free(tdb_data.dptr);
703 tdb_chainunlock(ctdb_db->ltdb->tdb, dd->key);
705 if (deleted) {
707 * successfully deleted the record locally.
708 * remove it from the list and update statistics.
710 talloc_free(dd);
711 vdata->delete_deleted++;
712 vdata->delete_left--;
715 return 0;
719 * Fast vacuuming run:
720 * Traverse the delete_queue.
721 * This fills the same lists as the database traverse.
723 static void ctdb_vacuum_db_fast(struct ctdb_db_context *ctdb_db,
724 struct vacuum_data *vdata)
726 trbt_traversearray32(ctdb_db->delete_queue, 1, delete_queue_traverse, vdata);
728 if (vdata->fast_total > 0) {
729 DEBUG(DEBUG_INFO,
730 (__location__
731 " fast vacuuming delete_queue traverse statistics: "
732 "db[%s] "
733 "total[%u] "
734 "del[%u] "
735 "skp[%u] "
736 "err[%u] "
737 "adl[%u] "
738 "avf[%u]\n",
739 ctdb_db->db_name,
740 (unsigned)vdata->fast_total,
741 (unsigned)vdata->fast_deleted,
742 (unsigned)vdata->fast_skipped,
743 (unsigned)vdata->fast_error,
744 (unsigned)vdata->fast_added_to_delete_list,
745 (unsigned)vdata->fast_added_to_vacuum_fetch_list));
748 return;
752 * Full vacuum run:
753 * read-only traverse of the database, looking for records that
754 * might be able to be vacuumed.
756 * This is not done each time but only every tunable
757 * VacuumFastPathCount times.
759 static int ctdb_vacuum_db_full(struct ctdb_db_context *ctdb_db,
760 struct vacuum_data *vdata,
761 bool full_vacuum_run)
763 int ret;
765 if (!full_vacuum_run) {
766 return 0;
769 ret = tdb_traverse_read(ctdb_db->ltdb->tdb, vacuum_traverse, vdata);
770 if (ret == -1 || vdata->traverse_error) {
771 DEBUG(DEBUG_ERR, (__location__ " Traverse error in vacuuming "
772 "'%s'\n", ctdb_db->db_name));
773 return -1;
776 if (vdata->full_total > 0) {
777 DEBUG(DEBUG_INFO,
778 (__location__
779 " full vacuuming db traverse statistics: "
780 "db[%s] "
781 "total[%u] "
782 "skp[%u] "
783 "err[%u] "
784 "adl[%u] "
785 "avf[%u]\n",
786 ctdb_db->db_name,
787 (unsigned)vdata->full_total,
788 (unsigned)vdata->full_skipped,
789 (unsigned)vdata->full_error,
790 (unsigned)vdata->full_added_to_delete_list,
791 (unsigned)vdata->full_added_to_vacuum_fetch_list));
794 return 0;
798 * Process the vacuum fetch lists:
799 * For records for which we are not the lmaster, tell the lmaster to
800 * fetch the record.
802 static int ctdb_process_vacuum_fetch_lists(struct ctdb_db_context *ctdb_db,
803 struct vacuum_data *vdata)
805 int i;
806 struct ctdb_context *ctdb = ctdb_db->ctdb;
808 for (i = 0; i < ctdb->num_nodes; i++) {
809 TDB_DATA data;
810 struct ctdb_marshall_buffer *vfl = vdata->vacuum_fetch_list[i];
812 if (ctdb->nodes[i]->pnn == ctdb->pnn) {
813 continue;
816 if (vfl->count == 0) {
817 continue;
820 DEBUG(DEBUG_INFO, ("Found %u records for lmaster %u in '%s'\n",
821 vfl->count, ctdb->nodes[i]->pnn,
822 ctdb_db->db_name));
824 data.dsize = talloc_get_size(vfl);
825 data.dptr = (void *)vfl;
826 if (ctdb_client_send_message(ctdb, ctdb->nodes[i]->pnn,
827 CTDB_SRVID_VACUUM_FETCH,
828 data) != 0)
830 DEBUG(DEBUG_ERR, (__location__ " Failed to send vacuum "
831 "fetch message to %u\n",
832 ctdb->nodes[i]->pnn));
833 return -1;
837 return 0;
841 * Process the delete list:
843 * This is the last step of vacuuming that consistently deletes
844 * those records that have been migrated with data and can hence
845 * not be deleted when leaving a node.
847 * In this step, the lmaster does the final deletion of those empty
848 * records that it is also dmaster for. It has ususally received
849 * at least some of these records previously from the former dmasters
850 * with the vacuum fetch message.
852 * This last step is implemented as a 3-phase process to protect from
853 * races leading to data corruption:
855 * 1) Send the lmaster's copy to all other active nodes with the
856 * RECEIVE_RECORDS control: The remote nodes store the lmaster's copy.
857 * 2) Send the records that could successfully be stored remotely
858 * in step #1 to all active nodes with the TRY_DELETE_RECORDS
859 * control. The remote notes delete their local copy.
860 * 3) The lmaster locally deletes its copies of all records that
861 * could successfully be deleted remotely in step #2.
863 static int ctdb_process_delete_list(struct ctdb_db_context *ctdb_db,
864 struct vacuum_data *vdata)
866 int ret, i;
867 struct ctdb_context *ctdb = ctdb_db->ctdb;
868 struct delete_records_list *recs;
869 TDB_DATA indata;
870 struct ctdb_node_map *nodemap;
871 uint32_t *active_nodes;
872 int num_active_nodes;
873 TALLOC_CTX *tmp_ctx;
875 if (vdata->delete_count == 0) {
876 return 0;
879 tmp_ctx = talloc_new(vdata);
880 if (tmp_ctx == NULL) {
881 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
882 return 0;
885 vdata->delete_left = vdata->delete_count;
888 * get the list of currently active nodes
891 ret = ctdb_ctrl_getnodemap(ctdb, TIMELIMIT(),
892 CTDB_CURRENT_NODE,
893 tmp_ctx,
894 &nodemap);
895 if (ret != 0) {
896 DEBUG(DEBUG_ERR,(__location__ " unable to get node map\n"));
897 ret = -1;
898 goto done;
901 active_nodes = list_of_active_nodes(ctdb, nodemap,
902 nodemap, /* talloc context */
903 false /* include self */);
904 /* yuck! ;-) */
905 num_active_nodes = talloc_get_size(active_nodes)/sizeof(*active_nodes);
908 * Now delete the records all active nodes in a three-phase process:
909 * 1) send all active remote nodes the current empty copy with this
910 * node as DMASTER
911 * 2) if all nodes could store the new copy,
912 * tell all the active remote nodes to delete all their copy
913 * 3) if all remote nodes deleted their record copy, delete it locally
917 * Step 1:
918 * Send currently empty record copy to all active nodes for storing.
921 recs = talloc_zero(tmp_ctx, struct delete_records_list);
922 if (recs == NULL) {
923 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
924 ret = -1;
925 goto done;
927 recs->records = (struct ctdb_marshall_buffer *)
928 talloc_zero_size(recs,
929 offsetof(struct ctdb_marshall_buffer, data));
930 if (recs->records == NULL) {
931 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
932 ret = -1;
933 goto done;
935 recs->records->db_id = ctdb_db->db_id;
936 recs->vdata = vdata;
939 * traverse the tree of all records we want to delete and
940 * create a blob we can send to the other nodes.
942 * We call delete_marshall_traverse_first() to bump the
943 * records' RSNs in the database, to ensure we (as dmaster)
944 * keep the highest RSN of the records in the cluster.
946 trbt_traversearray32(vdata->delete_list, 1,
947 delete_marshall_traverse_first, recs);
949 indata.dsize = talloc_get_size(recs->records);
950 indata.dptr = (void *)recs->records;
952 for (i = 0; i < num_active_nodes; i++) {
953 struct ctdb_marshall_buffer *records;
954 struct ctdb_rec_data *rec;
955 int32_t res;
956 TDB_DATA outdata;
958 ret = ctdb_control(ctdb, active_nodes[i], 0,
959 CTDB_CONTROL_RECEIVE_RECORDS, 0,
960 indata, recs, &outdata, &res,
961 NULL, NULL);
962 if (ret != 0 || res != 0) {
963 DEBUG(DEBUG_ERR, ("Error storing record copies on "
964 "node %u: ret[%d] res[%d]\n",
965 active_nodes[i], ret, res));
966 ret = -1;
967 goto done;
971 * outdata contains the list of records coming back
972 * from the node: These are the records that the
973 * remote node could not store. We remove these from
974 * the list to process further.
976 records = (struct ctdb_marshall_buffer *)outdata.dptr;
977 rec = (struct ctdb_rec_data *)&records->data[0];
978 while (records->count-- > 1) {
979 TDB_DATA reckey, recdata;
980 struct ctdb_ltdb_header *rechdr;
981 struct delete_record_data *dd;
983 reckey.dptr = &rec->data[0];
984 reckey.dsize = rec->keylen;
985 recdata.dptr = &rec->data[reckey.dsize];
986 recdata.dsize = rec->datalen;
988 if (recdata.dsize < sizeof(struct ctdb_ltdb_header)) {
989 DEBUG(DEBUG_CRIT,(__location__ " bad ltdb record\n"));
990 ret = -1;
991 goto done;
993 rechdr = (struct ctdb_ltdb_header *)recdata.dptr;
994 recdata.dptr += sizeof(*rechdr);
995 recdata.dsize -= sizeof(*rechdr);
997 dd = (struct delete_record_data *)trbt_lookup32(
998 vdata->delete_list,
999 ctdb_hash(&reckey));
1000 if (dd != NULL) {
1002 * The other node could not store the record
1003 * copy and it is the first node that failed.
1004 * So we should remove it from the tree and
1005 * update statistics.
1007 talloc_free(dd);
1008 vdata->delete_remote_error++;
1009 vdata->delete_left--;
1012 rec = (struct ctdb_rec_data *)(rec->length + (uint8_t *)rec);
1016 if (vdata->delete_left == 0) {
1017 goto success;
1021 * Step 2:
1022 * Send the remaining records to all active nodes for deletion.
1024 * The lmaster's (i.e. our) copies of these records have been stored
1025 * successfully on the other nodes.
1029 * Create a marshall blob from the remaining list of records to delete.
1032 talloc_free(recs->records);
1034 recs->records = (struct ctdb_marshall_buffer *)
1035 talloc_zero_size(recs,
1036 offsetof(struct ctdb_marshall_buffer, data));
1037 if (recs->records == NULL) {
1038 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
1039 ret = -1;
1040 goto done;
1042 recs->records->db_id = ctdb_db->db_id;
1044 trbt_traversearray32(vdata->delete_list, 1,
1045 delete_marshall_traverse, recs);
1047 indata.dsize = talloc_get_size(recs->records);
1048 indata.dptr = (void *)recs->records;
1050 for (i = 0; i < num_active_nodes; i++) {
1051 struct ctdb_marshall_buffer *records;
1052 struct ctdb_rec_data *rec;
1053 int32_t res;
1054 TDB_DATA outdata;
1056 ret = ctdb_control(ctdb, active_nodes[i], 0,
1057 CTDB_CONTROL_TRY_DELETE_RECORDS, 0,
1058 indata, recs, &outdata, &res,
1059 NULL, NULL);
1060 if (ret != 0 || res != 0) {
1061 DEBUG(DEBUG_ERR, ("Failed to delete records on "
1062 "node %u: ret[%d] res[%d]\n",
1063 active_nodes[i], ret, res));
1064 ret = -1;
1065 goto done;
1069 * outdata contains the list of records coming back
1070 * from the node: These are the records that the
1071 * remote node could not delete. We remove these from
1072 * the list to delete locally.
1074 records = (struct ctdb_marshall_buffer *)outdata.dptr;
1075 rec = (struct ctdb_rec_data *)&records->data[0];
1076 while (records->count-- > 1) {
1077 TDB_DATA reckey, recdata;
1078 struct ctdb_ltdb_header *rechdr;
1079 struct delete_record_data *dd;
1081 reckey.dptr = &rec->data[0];
1082 reckey.dsize = rec->keylen;
1083 recdata.dptr = &rec->data[reckey.dsize];
1084 recdata.dsize = rec->datalen;
1086 if (recdata.dsize < sizeof(struct ctdb_ltdb_header)) {
1087 DEBUG(DEBUG_CRIT,(__location__ " bad ltdb record\n"));
1088 ret = -1;
1089 goto done;
1091 rechdr = (struct ctdb_ltdb_header *)recdata.dptr;
1092 recdata.dptr += sizeof(*rechdr);
1093 recdata.dsize -= sizeof(*rechdr);
1095 dd = (struct delete_record_data *)trbt_lookup32(
1096 vdata->delete_list,
1097 ctdb_hash(&reckey));
1098 if (dd != NULL) {
1100 * The other node could not delete the
1101 * record and it is the first node that
1102 * failed. So we should remove it from
1103 * the tree and update statistics.
1105 talloc_free(dd);
1106 vdata->delete_remote_error++;
1107 vdata->delete_left--;
1110 rec = (struct ctdb_rec_data *)(rec->length + (uint8_t *)rec);
1114 if (vdata->delete_left == 0) {
1115 goto success;
1119 * Step 3:
1120 * Delete the remaining records locally.
1122 * These records have successfully been deleted on all
1123 * active remote nodes.
1126 trbt_traversearray32(vdata->delete_list, 1,
1127 delete_record_traverse, vdata);
1129 success:
1131 if (vdata->delete_count > 0) {
1132 DEBUG(DEBUG_INFO,
1133 (__location__
1134 " vacuum delete list statistics: "
1135 "db[%s] "
1136 "coll[%u] "
1137 "rem.err[%u] "
1138 "loc.err[%u] "
1139 "skip[%u] "
1140 "del[%u] "
1141 "left[%u]\n",
1142 ctdb_db->db_name,
1143 (unsigned)vdata->delete_count,
1144 (unsigned)vdata->delete_remote_error,
1145 (unsigned)vdata->delete_local_error,
1146 (unsigned)vdata->delete_skipped,
1147 (unsigned)vdata->delete_deleted,
1148 (unsigned)vdata->delete_left));
1151 ret = 0;
1153 done:
1154 talloc_free(tmp_ctx);
1156 return ret;
1160 * initialize the vacuum_data
1162 static int ctdb_vacuum_init_vacuum_data(struct ctdb_db_context *ctdb_db,
1163 struct vacuum_data *vdata)
1165 int i;
1166 struct ctdb_context *ctdb = ctdb_db->ctdb;
1168 vdata->fast_added_to_delete_list = 0;
1169 vdata->fast_added_to_vacuum_fetch_list = 0;
1170 vdata->fast_deleted = 0;
1171 vdata->fast_skipped = 0;
1172 vdata->fast_error = 0;
1173 vdata->fast_total = 0;
1174 vdata->full_added_to_delete_list = 0;
1175 vdata->full_added_to_vacuum_fetch_list = 0;
1176 vdata->full_skipped = 0;
1177 vdata->full_error = 0;
1178 vdata->full_total = 0;
1179 vdata->delete_count = 0;
1180 vdata->delete_left = 0;
1181 vdata->delete_remote_error = 0;
1182 vdata->delete_local_error = 0;
1183 vdata->delete_skipped = 0;
1184 vdata->delete_deleted = 0;
1186 /* the list needs to be of length num_nodes */
1187 vdata->vacuum_fetch_list = talloc_zero_array(vdata,
1188 struct ctdb_marshall_buffer *,
1189 ctdb->num_nodes);
1190 if (vdata->vacuum_fetch_list == NULL) {
1191 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
1192 return -1;
1194 for (i = 0; i < ctdb->num_nodes; i++) {
1195 vdata->vacuum_fetch_list[i] = (struct ctdb_marshall_buffer *)
1196 talloc_zero_size(vdata->vacuum_fetch_list,
1197 offsetof(struct ctdb_marshall_buffer, data));
1198 if (vdata->vacuum_fetch_list[i] == NULL) {
1199 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
1200 return -1;
1202 vdata->vacuum_fetch_list[i]->db_id = ctdb_db->db_id;
1205 return 0;
1209 * Vacuum a DB:
1210 * - Always do the fast vacuuming run, which traverses
1211 * the in-memory delete queue: these records have been
1212 * scheduled for deletion.
1213 * - Only if explicitly requested, the database is traversed
1214 * in order to use the traditional heuristics on empty records
1215 * to trigger deletion.
1216 * This is done only every VacuumFastPathCount'th vacuuming run.
1218 * The traverse runs fill two lists:
1220 * - The delete_list:
1221 * This is the list of empty records the current
1222 * node is lmaster and dmaster for. These records are later
1223 * deleted first on other nodes and then locally.
1225 * The fast vacuuming run has a short cut for those records
1226 * that have never been migrated with data: these records
1227 * are immediately deleted locally, since they have left
1228 * no trace on other nodes.
1230 * - The vacuum_fetch lists
1231 * (one for each other lmaster node):
1232 * The records in this list are sent for deletion to
1233 * their lmaster in a bulk VACUUM_FETCH message.
1235 * The lmaster then migrates all these records to itelf
1236 * so that they can be vacuumed there.
1238 * This executes in the child context.
1240 static int ctdb_vacuum_db(struct ctdb_db_context *ctdb_db,
1241 struct vacuum_data *vdata,
1242 bool full_vacuum_run)
1244 struct ctdb_context *ctdb = ctdb_db->ctdb;
1245 int ret, pnn;
1247 DEBUG(DEBUG_INFO, (__location__ " Entering %s vacuum run for db "
1248 "%s db_id[0x%08x]\n",
1249 full_vacuum_run ? "full" : "fast",
1250 ctdb_db->db_name, ctdb_db->db_id));
1252 ret = ctdb_ctrl_getvnnmap(ctdb, TIMELIMIT(), CTDB_CURRENT_NODE, ctdb, &ctdb->vnn_map);
1253 if (ret != 0) {
1254 DEBUG(DEBUG_ERR, ("Unable to get vnnmap from local node\n"));
1255 return ret;
1258 pnn = ctdb_ctrl_getpnn(ctdb, TIMELIMIT(), CTDB_CURRENT_NODE);
1259 if (pnn == -1) {
1260 DEBUG(DEBUG_ERR, ("Unable to get pnn from local node\n"));
1261 return -1;
1264 ctdb->pnn = pnn;
1266 ret = ctdb_vacuum_init_vacuum_data(ctdb_db, vdata);
1267 if (ret != 0) {
1268 return ret;
1271 ctdb_vacuum_db_fast(ctdb_db, vdata);
1273 ret = ctdb_vacuum_db_full(ctdb_db, vdata, full_vacuum_run);
1274 if (ret != 0) {
1275 return ret;
1278 ret = ctdb_process_vacuum_fetch_lists(ctdb_db, vdata);
1279 if (ret != 0) {
1280 return ret;
1283 ret = ctdb_process_delete_list(ctdb_db, vdata);
1284 if (ret != 0) {
1285 return ret;
1288 /* this ensures we run our event queue */
1289 ctdb_ctrl_getpnn(ctdb, TIMELIMIT(), CTDB_CURRENT_NODE);
1291 return 0;
1296 * traverse function for repacking
1298 static int repack_traverse(struct tdb_context *tdb, TDB_DATA key, TDB_DATA data, void *private)
1300 struct vacuum_data *vdata = (struct vacuum_data *)private;
1302 if (vdata->vacuum) {
1303 uint32_t hash = ctdb_hash(&key);
1304 struct delete_record_data *kd;
1306 * check if we can ignore this record because it's in the delete_list
1308 kd = (struct delete_record_data *)trbt_lookup32(vdata->delete_list, hash);
1310 * there might be hash collisions so we have to compare the keys here to be sure
1312 if (kd && kd->key.dsize == key.dsize && memcmp(kd->key.dptr, key.dptr, key.dsize) == 0) {
1313 struct ctdb_ltdb_header *hdr = (struct ctdb_ltdb_header *)data.dptr;
1315 * we have to check if the record hasn't changed in the meantime in order to
1316 * savely remove it from the database
1318 if (data.dsize == sizeof(struct ctdb_ltdb_header) &&
1319 hdr->dmaster == kd->ctdb->pnn &&
1320 ctdb_lmaster(kd->ctdb, &(kd->key)) == kd->ctdb->pnn &&
1321 kd->hdr.rsn == hdr->rsn) {
1322 vdata->vacuumed++;
1323 return 0;
1327 if (tdb_store(vdata->dest_db, key, data, TDB_INSERT) != 0) {
1328 vdata->traverse_error = true;
1329 return -1;
1331 vdata->copied++;
1332 return 0;
1336 * repack a tdb
1338 static int ctdb_repack_tdb(struct tdb_context *tdb, TALLOC_CTX *mem_ctx, struct vacuum_data *vdata)
1340 struct tdb_context *tmp_db;
1342 if (tdb_transaction_start(tdb) != 0) {
1343 DEBUG(DEBUG_ERR,(__location__ " Failed to start transaction\n"));
1344 return -1;
1347 tmp_db = tdb_open("tmpdb", tdb_hash_size(tdb),
1348 TDB_INTERNAL|TDB_DISALLOW_NESTING,
1349 O_RDWR|O_CREAT, 0);
1350 if (tmp_db == NULL) {
1351 DEBUG(DEBUG_ERR,(__location__ " Failed to create tmp_db\n"));
1352 tdb_transaction_cancel(tdb);
1353 return -1;
1356 vdata->traverse_error = false;
1357 vdata->dest_db = tmp_db;
1358 vdata->vacuum = true;
1359 vdata->vacuumed = 0;
1360 vdata->copied = 0;
1363 * repack and vacuum on-the-fly by not writing the records that are
1364 * no longer needed
1366 if (tdb_traverse_read(tdb, repack_traverse, vdata) == -1) {
1367 DEBUG(DEBUG_ERR,(__location__ " Failed to traverse copying out\n"));
1368 tdb_transaction_cancel(tdb);
1369 tdb_close(tmp_db);
1370 return -1;
1373 DEBUG(DEBUG_INFO,(__location__ " %u records vacuumed\n", vdata->vacuumed));
1375 if (vdata->traverse_error) {
1376 DEBUG(DEBUG_ERR,(__location__ " Error during traversal\n"));
1377 tdb_transaction_cancel(tdb);
1378 tdb_close(tmp_db);
1379 return -1;
1382 if (tdb_wipe_all(tdb) != 0) {
1383 DEBUG(DEBUG_ERR,(__location__ " Failed to wipe database\n"));
1384 tdb_transaction_cancel(tdb);
1385 tdb_close(tmp_db);
1386 return -1;
1389 vdata->traverse_error = false;
1390 vdata->dest_db = tdb;
1391 vdata->vacuum = false;
1392 vdata->copied = 0;
1394 if (tdb_traverse_read(tmp_db, repack_traverse, vdata) == -1) {
1395 DEBUG(DEBUG_ERR,(__location__ " Failed to traverse copying back\n"));
1396 tdb_transaction_cancel(tdb);
1397 tdb_close(tmp_db);
1398 return -1;
1401 if (vdata->traverse_error) {
1402 DEBUG(DEBUG_ERR,(__location__ " Error during second traversal\n"));
1403 tdb_transaction_cancel(tdb);
1404 tdb_close(tmp_db);
1405 return -1;
1408 tdb_close(tmp_db);
1411 if (tdb_transaction_commit(tdb) != 0) {
1412 DEBUG(DEBUG_ERR,(__location__ " Failed to commit\n"));
1413 return -1;
1415 DEBUG(DEBUG_INFO,(__location__ " %u records copied\n", vdata->copied));
1417 return 0;
1421 * repack and vaccum a db
1422 * called from the child context
1424 static int ctdb_vacuum_and_repack_db(struct ctdb_db_context *ctdb_db,
1425 TALLOC_CTX *mem_ctx,
1426 bool full_vacuum_run)
1428 uint32_t repack_limit = ctdb_db->ctdb->tunable.repack_limit;
1429 uint32_t vacuum_limit = ctdb_db->ctdb->tunable.vacuum_limit;
1430 const char *name = ctdb_db->db_name;
1431 int freelist_size;
1432 struct vacuum_data *vdata;
1434 freelist_size = tdb_freelist_size(ctdb_db->ltdb->tdb);
1435 if (freelist_size == -1) {
1436 DEBUG(DEBUG_ERR,(__location__ " Failed to get freelist size for '%s'\n", name));
1437 return -1;
1440 vdata = talloc_zero(mem_ctx, struct vacuum_data);
1441 if (vdata == NULL) {
1442 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
1443 return -1;
1446 vdata->ctdb = ctdb_db->ctdb;
1447 vdata->vacuum_limit = vacuum_limit;
1448 vdata->repack_limit = repack_limit;
1449 vdata->delete_list = trbt_create(vdata, 0);
1450 vdata->ctdb_db = ctdb_db;
1451 if (vdata->delete_list == NULL) {
1452 DEBUG(DEBUG_ERR,(__location__ " Out of memory\n"));
1453 talloc_free(vdata);
1454 return -1;
1457 vdata->start = timeval_current();
1460 * gather all records that can be deleted in vdata
1462 if (ctdb_vacuum_db(ctdb_db, vdata, full_vacuum_run) != 0) {
1463 DEBUG(DEBUG_ERR,(__location__ " Failed to vacuum '%s'\n", name));
1467 * decide if a repack is necessary
1469 if (freelist_size < repack_limit && vdata->delete_left < vacuum_limit)
1471 talloc_free(vdata);
1472 return 0;
1475 DEBUG(DEBUG_INFO,("Repacking %s with %u freelist entries and %u records to delete\n",
1476 name, freelist_size, vdata->delete_left));
1479 * repack and implicitely get rid of the records we can delete
1481 if (ctdb_repack_tdb(ctdb_db->ltdb->tdb, mem_ctx, vdata) != 0) {
1482 DEBUG(DEBUG_ERR,(__location__ " Failed to repack '%s'\n", name));
1483 talloc_free(vdata);
1484 return -1;
1486 talloc_free(vdata);
1488 return 0;
1491 static uint32_t get_vacuum_interval(struct ctdb_db_context *ctdb_db)
1493 uint32_t interval = ctdb_db->ctdb->tunable.vacuum_interval;
1495 return interval;
1498 static int vacuum_child_destructor(struct ctdb_vacuum_child_context *child_ctx)
1500 double l = timeval_elapsed(&child_ctx->start_time);
1501 struct ctdb_db_context *ctdb_db = child_ctx->vacuum_handle->ctdb_db;
1502 struct ctdb_context *ctdb = ctdb_db->ctdb;
1504 DEBUG(DEBUG_INFO,("Vacuuming took %.3f seconds for database %s\n", l, ctdb_db->db_name));
1506 if (child_ctx->child_pid != -1) {
1507 ctdb_kill(ctdb, child_ctx->child_pid, SIGKILL);
1508 } else {
1509 /* Bump the number of successful fast-path runs. */
1510 child_ctx->vacuum_handle->fast_path_count++;
1513 DLIST_REMOVE(ctdb->vacuumers, child_ctx);
1515 event_add_timed(ctdb->ev, child_ctx->vacuum_handle,
1516 timeval_current_ofs(get_vacuum_interval(ctdb_db), 0),
1517 ctdb_vacuum_event, child_ctx->vacuum_handle);
1519 return 0;
1523 * this event is generated when a vacuum child process times out
1525 static void vacuum_child_timeout(struct event_context *ev, struct timed_event *te,
1526 struct timeval t, void *private_data)
1528 struct ctdb_vacuum_child_context *child_ctx = talloc_get_type(private_data, struct ctdb_vacuum_child_context);
1530 DEBUG(DEBUG_ERR,("Vacuuming child process timed out for db %s\n", child_ctx->vacuum_handle->ctdb_db->db_name));
1532 child_ctx->status = VACUUM_TIMEOUT;
1534 talloc_free(child_ctx);
1539 * this event is generated when a vacuum child process has completed
1541 static void vacuum_child_handler(struct event_context *ev, struct fd_event *fde,
1542 uint16_t flags, void *private_data)
1544 struct ctdb_vacuum_child_context *child_ctx = talloc_get_type(private_data, struct ctdb_vacuum_child_context);
1545 char c = 0;
1546 int ret;
1548 DEBUG(DEBUG_INFO,("Vacuuming child process %d finished for db %s\n", child_ctx->child_pid, child_ctx->vacuum_handle->ctdb_db->db_name));
1549 child_ctx->child_pid = -1;
1551 ret = read(child_ctx->fd[0], &c, 1);
1552 if (ret != 1 || c != 0) {
1553 child_ctx->status = VACUUM_ERROR;
1554 DEBUG(DEBUG_ERR, ("A vacuum child process failed with an error for database %s. ret=%d c=%d\n", child_ctx->vacuum_handle->ctdb_db->db_name, ret, c));
1555 } else {
1556 child_ctx->status = VACUUM_OK;
1559 talloc_free(child_ctx);
1563 * this event is called every time we need to start a new vacuum process
1565 static void
1566 ctdb_vacuum_event(struct event_context *ev, struct timed_event *te,
1567 struct timeval t, void *private_data)
1569 struct ctdb_vacuum_handle *vacuum_handle = talloc_get_type(private_data, struct ctdb_vacuum_handle);
1570 struct ctdb_db_context *ctdb_db = vacuum_handle->ctdb_db;
1571 struct ctdb_context *ctdb = ctdb_db->ctdb;
1572 struct ctdb_vacuum_child_context *child_ctx;
1573 struct tevent_fd *fde;
1574 int ret;
1576 /* we dont vacuum if we are in recovery mode, or db frozen */
1577 if (ctdb->recovery_mode == CTDB_RECOVERY_ACTIVE ||
1578 ctdb->freeze_mode[ctdb_db->priority] != CTDB_FREEZE_NONE) {
1579 DEBUG(DEBUG_INFO, ("Not vacuuming %s (%s)\n", ctdb_db->db_name,
1580 ctdb->recovery_mode == CTDB_RECOVERY_ACTIVE ? "in recovery"
1581 : ctdb->freeze_mode[ctdb_db->priority] == CTDB_FREEZE_PENDING
1582 ? "freeze pending"
1583 : "frozen"));
1584 event_add_timed(ctdb->ev, vacuum_handle,
1585 timeval_current_ofs(get_vacuum_interval(ctdb_db), 0),
1586 ctdb_vacuum_event, vacuum_handle);
1587 return;
1590 child_ctx = talloc(vacuum_handle, struct ctdb_vacuum_child_context);
1591 if (child_ctx == NULL) {
1592 DEBUG(DEBUG_CRIT, (__location__ " Failed to allocate child context for vacuuming of %s\n", ctdb_db->db_name));
1593 ctdb_fatal(ctdb, "Out of memory when crating vacuum child context. Shutting down\n");
1597 ret = pipe(child_ctx->fd);
1598 if (ret != 0) {
1599 talloc_free(child_ctx);
1600 DEBUG(DEBUG_ERR, ("Failed to create pipe for vacuum child process.\n"));
1601 event_add_timed(ctdb->ev, vacuum_handle,
1602 timeval_current_ofs(get_vacuum_interval(ctdb_db), 0),
1603 ctdb_vacuum_event, vacuum_handle);
1604 return;
1607 if (vacuum_handle->fast_path_count > ctdb->tunable.vacuum_fast_path_count) {
1608 vacuum_handle->fast_path_count = 0;
1611 child_ctx->child_pid = ctdb_fork(ctdb);
1612 if (child_ctx->child_pid == (pid_t)-1) {
1613 close(child_ctx->fd[0]);
1614 close(child_ctx->fd[1]);
1615 talloc_free(child_ctx);
1616 DEBUG(DEBUG_ERR, ("Failed to fork vacuum child process.\n"));
1617 event_add_timed(ctdb->ev, vacuum_handle,
1618 timeval_current_ofs(get_vacuum_interval(ctdb_db), 0),
1619 ctdb_vacuum_event, vacuum_handle);
1620 return;
1624 if (child_ctx->child_pid == 0) {
1625 char cc = 0;
1626 bool full_vacuum_run = false;
1627 close(child_ctx->fd[0]);
1629 DEBUG(DEBUG_INFO,("Vacuuming child process %d for db %s started\n", getpid(), ctdb_db->db_name));
1630 ctdb_set_process_name("ctdb_vacuum");
1631 if (switch_from_server_to_client(ctdb, "vacuum-%s", ctdb_db->db_name) != 0) {
1632 DEBUG(DEBUG_CRIT, (__location__ "ERROR: failed to switch vacuum daemon into client mode. Shutting down.\n"));
1633 _exit(1);
1637 * repack the db
1639 if ((ctdb->tunable.vacuum_fast_path_count > 0) &&
1640 (vacuum_handle->fast_path_count == 0))
1642 full_vacuum_run = true;
1644 cc = ctdb_vacuum_and_repack_db(ctdb_db, child_ctx,
1645 full_vacuum_run);
1647 write(child_ctx->fd[1], &cc, 1);
1648 _exit(0);
1651 set_close_on_exec(child_ctx->fd[0]);
1652 close(child_ctx->fd[1]);
1654 child_ctx->status = VACUUM_RUNNING;
1655 child_ctx->start_time = timeval_current();
1657 DLIST_ADD(ctdb->vacuumers, child_ctx);
1658 talloc_set_destructor(child_ctx, vacuum_child_destructor);
1661 * Clear the fastpath vacuuming list in the parent.
1663 talloc_free(ctdb_db->delete_queue);
1664 ctdb_db->delete_queue = trbt_create(ctdb_db, 0);
1665 if (ctdb_db->delete_queue == NULL) {
1666 /* fatal here? ... */
1667 ctdb_fatal(ctdb, "Out of memory when re-creating vacuum tree "
1668 "in parent context. Shutting down\n");
1671 event_add_timed(ctdb->ev, child_ctx,
1672 timeval_current_ofs(ctdb->tunable.vacuum_max_run_time, 0),
1673 vacuum_child_timeout, child_ctx);
1675 DEBUG(DEBUG_DEBUG, (__location__ " Created PIPE FD:%d to child vacuum process\n", child_ctx->fd[0]));
1677 fde = event_add_fd(ctdb->ev, child_ctx, child_ctx->fd[0],
1678 EVENT_FD_READ, vacuum_child_handler, child_ctx);
1679 tevent_fd_set_auto_close(fde);
1681 vacuum_handle->child_ctx = child_ctx;
1682 child_ctx->vacuum_handle = vacuum_handle;
1685 void ctdb_stop_vacuuming(struct ctdb_context *ctdb)
1687 /* Simply free them all. */
1688 while (ctdb->vacuumers) {
1689 DEBUG(DEBUG_INFO, ("Aborting vacuuming for %s (%i)\n",
1690 ctdb->vacuumers->vacuum_handle->ctdb_db->db_name,
1691 (int)ctdb->vacuumers->child_pid));
1692 /* vacuum_child_destructor kills it, removes from list */
1693 talloc_free(ctdb->vacuumers);
1697 /* this function initializes the vacuuming context for a database
1698 * starts the vacuuming events
1700 int ctdb_vacuum_init(struct ctdb_db_context *ctdb_db)
1702 if (ctdb_db->persistent != 0) {
1703 DEBUG(DEBUG_ERR,("Vacuuming is disabled for persistent database %s\n", ctdb_db->db_name));
1704 return 0;
1707 ctdb_db->vacuum_handle = talloc(ctdb_db, struct ctdb_vacuum_handle);
1708 CTDB_NO_MEMORY(ctdb_db->ctdb, ctdb_db->vacuum_handle);
1710 ctdb_db->vacuum_handle->ctdb_db = ctdb_db;
1711 ctdb_db->vacuum_handle->fast_path_count = 0;
1713 event_add_timed(ctdb_db->ctdb->ev, ctdb_db->vacuum_handle,
1714 timeval_current_ofs(get_vacuum_interval(ctdb_db), 0),
1715 ctdb_vacuum_event, ctdb_db->vacuum_handle);
1717 return 0;
1720 static void remove_record_from_delete_queue(struct ctdb_db_context *ctdb_db,
1721 const struct ctdb_ltdb_header *hdr,
1722 const TDB_DATA key)
1724 struct delete_record_data *kd;
1725 uint32_t hash;
1727 hash = (uint32_t)ctdb_hash(&key);
1729 DEBUG(DEBUG_DEBUG, (__location__
1730 " remove_record_from_delete_queue: "
1731 "db[%s] "
1732 "db_id[0x%08x] "
1733 "key_hash[0x%08x] "
1734 "lmaster[%u] "
1735 "migrated_with_data[%s]\n",
1736 ctdb_db->db_name, ctdb_db->db_id,
1737 hash,
1738 ctdb_lmaster(ctdb_db->ctdb, &key),
1739 hdr->flags & CTDB_REC_FLAG_MIGRATED_WITH_DATA ? "yes" : "no"));
1741 kd = (struct delete_record_data *)trbt_lookup32(ctdb_db->delete_queue, hash);
1742 if (kd == NULL) {
1743 DEBUG(DEBUG_DEBUG, (__location__
1744 " remove_record_from_delete_queue: "
1745 "record not in queue (hash[0x%08x])\n.",
1746 hash));
1747 return;
1750 if ((kd->key.dsize != key.dsize) ||
1751 (memcmp(kd->key.dptr, key.dptr, key.dsize) != 0))
1753 DEBUG(DEBUG_DEBUG, (__location__
1754 " remove_record_from_delete_queue: "
1755 "hash collision for key with hash[0x%08x] "
1756 "in db[%s] - skipping\n",
1757 hash, ctdb_db->db_name));
1758 return;
1761 DEBUG(DEBUG_DEBUG, (__location__
1762 " remove_record_from_delete_queue: "
1763 "removing key with hash[0x%08x]\n",
1764 hash));
1766 talloc_free(kd);
1768 return;
1772 * Insert a record into the ctdb_db context's delete queue,
1773 * handling hash collisions.
1775 static int insert_record_into_delete_queue(struct ctdb_db_context *ctdb_db,
1776 const struct ctdb_ltdb_header *hdr,
1777 TDB_DATA key)
1779 struct delete_record_data *kd;
1780 uint32_t hash;
1781 int ret;
1783 hash = (uint32_t)ctdb_hash(&key);
1785 DEBUG(DEBUG_INFO, (__location__ " schedule for deletion: db[%s] "
1786 "db_id[0x%08x] "
1787 "key_hash[0x%08x] "
1788 "lmaster[%u] "
1789 "migrated_with_data[%s]\n",
1790 ctdb_db->db_name, ctdb_db->db_id,
1791 hash,
1792 ctdb_lmaster(ctdb_db->ctdb, &key),
1793 hdr->flags & CTDB_REC_FLAG_MIGRATED_WITH_DATA ? "yes" : "no"));
1795 kd = (struct delete_record_data *)trbt_lookup32(ctdb_db->delete_queue, hash);
1796 if (kd != NULL) {
1797 if ((kd->key.dsize != key.dsize) ||
1798 (memcmp(kd->key.dptr, key.dptr, key.dsize) != 0))
1800 DEBUG(DEBUG_INFO,
1801 (__location__ " schedule for deletion: "
1802 "hash collision for key hash [0x%08x]. "
1803 "Skipping the record.\n", hash));
1804 return 0;
1805 } else {
1806 DEBUG(DEBUG_DEBUG,
1807 (__location__ " schedule for deletion: "
1808 "updating entry for key with hash [0x%08x].\n",
1809 hash));
1813 ret = insert_delete_record_data_into_tree(ctdb_db->ctdb, ctdb_db,
1814 ctdb_db->delete_queue,
1815 hdr, key);
1816 if (ret != 0) {
1817 DEBUG(DEBUG_INFO,
1818 (__location__ " schedule for deletion: error "
1819 "inserting key with hash [0x%08x] into delete queue\n",
1820 hash));
1821 return -1;
1824 return 0;
1828 * Schedule a record for deletetion.
1829 * Called from the parent context.
1831 int32_t ctdb_control_schedule_for_deletion(struct ctdb_context *ctdb,
1832 TDB_DATA indata)
1834 struct ctdb_control_schedule_for_deletion *dd;
1835 struct ctdb_db_context *ctdb_db;
1836 int ret;
1837 TDB_DATA key;
1839 dd = (struct ctdb_control_schedule_for_deletion *)indata.dptr;
1841 ctdb_db = find_ctdb_db(ctdb, dd->db_id);
1842 if (ctdb_db == NULL) {
1843 DEBUG(DEBUG_ERR, (__location__ " Unknown db id 0x%08x\n",
1844 dd->db_id));
1845 return -1;
1848 key.dsize = dd->keylen;
1849 key.dptr = dd->key;
1851 ret = insert_record_into_delete_queue(ctdb_db, &dd->hdr, key);
1853 return ret;
1856 int32_t ctdb_local_schedule_for_deletion(struct ctdb_db_context *ctdb_db,
1857 const struct ctdb_ltdb_header *hdr,
1858 TDB_DATA key)
1860 int ret;
1861 struct ctdb_control_schedule_for_deletion *dd;
1862 TDB_DATA indata;
1863 int32_t status;
1865 if (ctdb_db->ctdb->ctdbd_pid == getpid()) {
1866 /* main daemon - directly queue */
1867 ret = insert_record_into_delete_queue(ctdb_db, hdr, key);
1869 return ret;
1872 /* if we dont have a connection to the daemon we can not send
1873 a control. For example sometimes from update_record control child
1874 process.
1876 if (!ctdb_db->ctdb->can_send_controls) {
1877 return -1;
1881 /* child process: send the main daemon a control */
1882 indata.dsize = offsetof(struct ctdb_control_schedule_for_deletion, key) + key.dsize;
1883 indata.dptr = talloc_zero_array(ctdb_db, uint8_t, indata.dsize);
1884 if (indata.dptr == NULL) {
1885 DEBUG(DEBUG_ERR, (__location__ " out of memory\n"));
1886 return -1;
1888 dd = (struct ctdb_control_schedule_for_deletion *)(void *)indata.dptr;
1889 dd->db_id = ctdb_db->db_id;
1890 dd->hdr = *hdr;
1891 dd->keylen = key.dsize;
1892 memcpy(dd->key, key.dptr, key.dsize);
1894 ret = ctdb_control(ctdb_db->ctdb,
1895 CTDB_CURRENT_NODE,
1896 ctdb_db->db_id,
1897 CTDB_CONTROL_SCHEDULE_FOR_DELETION,
1898 CTDB_CTRL_FLAG_NOREPLY, /* flags */
1899 indata,
1900 NULL, /* mem_ctx */
1901 NULL, /* outdata */
1902 &status,
1903 NULL, /* timeout : NULL == wait forever */
1904 NULL); /* error message */
1906 talloc_free(indata.dptr);
1908 if (ret != 0 || status != 0) {
1909 DEBUG(DEBUG_ERR, (__location__ " Error sending "
1910 "SCHEDULE_FOR_DELETION "
1911 "control.\n"));
1912 if (status != 0) {
1913 ret = -1;
1917 return ret;
1920 void ctdb_local_remove_from_delete_queue(struct ctdb_db_context *ctdb_db,
1921 const struct ctdb_ltdb_header *hdr,
1922 const TDB_DATA key)
1924 if (ctdb_db->ctdb->ctdbd_pid != getpid()) {
1926 * Only remove the record from the delete queue if called
1927 * in the main daemon.
1929 return;
1932 remove_record_from_delete_queue(ctdb_db, hdr, key);
1934 return;