btrfs-progs: list: switch to common message helpers
[platform/upstream/btrfs-progs.git] / btrfs-list.c
1 /*
2  * Copyright (C) 2010 Oracle.  All rights reserved.
3  *
4  * This program is free software; you can redistribute it and/or
5  * modify it under the terms of the GNU General Public
6  * License v2 as published by the Free Software Foundation.
7  *
8  * This program is distributed in the hope that it will be useful,
9  * but WITHOUT ANY WARRANTY; without even the implied warranty of
10  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
11  * General Public License for more details.
12  *
13  * You should have received a copy of the GNU General Public
14  * License along with this program; if not, write to the
15  * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
16  * Boston, MA 021110-1307, USA.
17  */
18
19 #include <sys/ioctl.h>
20 #include <sys/mount.h>
21 #include <stdio.h>
22 #include <stdlib.h>
23 #include <sys/types.h>
24 #include <sys/stat.h>
25 #include <fcntl.h>
26 #include <unistd.h>
27 #include <dirent.h>
28 #include <libgen.h>
29 #include "ctree.h"
30 #include "transaction.h"
31 #include "utils.h"
32 #include "ioctl.h"
33 #include <uuid/uuid.h>
34 #include "btrfs-list.h"
35 #include "rbtree-utils.h"
36
37 #define BTRFS_LIST_NFILTERS_INCREASE    (2 * BTRFS_LIST_FILTER_MAX)
38 #define BTRFS_LIST_NCOMPS_INCREASE      (2 * BTRFS_LIST_COMP_MAX)
39
40 /* we store all the roots we find in an rbtree so that we can
41  * search for them later.
42  */
43 struct root_lookup {
44         struct rb_root root;
45 };
46
47 static struct {
48         char    *name;
49         char    *column_name;
50         int     need_print;
51 } btrfs_list_columns[] = {
52         {
53                 .name           = "ID",
54                 .column_name    = "ID",
55                 .need_print     = 0,
56         },
57         {
58                 .name           = "gen",
59                 .column_name    = "Gen",
60                 .need_print     = 0,
61         },
62         {
63                 .name           = "cgen",
64                 .column_name    = "CGen",
65                 .need_print     = 0,
66         },
67         {
68                 .name           = "parent",
69                 .column_name    = "Parent",
70                 .need_print     = 0,
71         },
72         {
73                 .name           = "top level",
74                 .column_name    = "Top Level",
75                 .need_print     = 0,
76         },
77         {
78                 .name           = "otime",
79                 .column_name    = "OTime",
80                 .need_print     = 0,
81         },
82         {
83                 .name           = "parent_uuid",
84                 .column_name    = "Parent UUID",
85                 .need_print     = 0,
86         },
87         {
88                 .name           = "received_uuid",
89                 .column_name    = "Received UUID",
90                 .need_print     = 0,
91         },
92         {
93                 .name           = "uuid",
94                 .column_name    = "UUID",
95                 .need_print     = 0,
96         },
97         {
98                 .name           = "path",
99                 .column_name    = "Path",
100                 .need_print     = 0,
101         },
102         {
103                 .name           = NULL,
104                 .column_name    = NULL,
105                 .need_print     = 0,
106         },
107 };
108
109 static btrfs_list_filter_func all_filter_funcs[];
110 static btrfs_list_comp_func all_comp_funcs[];
111
112 void btrfs_list_setup_print_column(enum btrfs_list_column_enum column)
113 {
114         int i;
115
116         ASSERT(0 <= column && column <= BTRFS_LIST_ALL);
117
118         if (column < BTRFS_LIST_ALL) {
119                 btrfs_list_columns[column].need_print = 1;
120                 return;
121         }
122
123         for (i = 0; i < BTRFS_LIST_ALL; i++)
124                 btrfs_list_columns[i].need_print = 1;
125 }
126
127 static void root_lookup_init(struct root_lookup *tree)
128 {
129         tree->root.rb_node = NULL;
130 }
131
132 static int comp_entry_with_rootid(struct root_info *entry1,
133                                   struct root_info *entry2,
134                                   int is_descending)
135 {
136         int ret;
137
138         if (entry1->root_id > entry2->root_id)
139                 ret = 1;
140         else if (entry1->root_id < entry2->root_id)
141                 ret = -1;
142         else
143                 ret = 0;
144
145         return is_descending ? -ret : ret;
146 }
147
148 static int comp_entry_with_gen(struct root_info *entry1,
149                                struct root_info *entry2,
150                                int is_descending)
151 {
152         int ret;
153
154         if (entry1->gen > entry2->gen)
155                 ret = 1;
156         else if (entry1->gen < entry2->gen)
157                 ret = -1;
158         else
159                 ret = 0;
160
161         return is_descending ? -ret : ret;
162 }
163
164 static int comp_entry_with_ogen(struct root_info *entry1,
165                                 struct root_info *entry2,
166                                 int is_descending)
167 {
168         int ret;
169
170         if (entry1->ogen > entry2->ogen)
171                 ret = 1;
172         else if (entry1->ogen < entry2->ogen)
173                 ret = -1;
174         else
175                 ret = 0;
176
177         return is_descending ? -ret : ret;
178 }
179
180 static int comp_entry_with_path(struct root_info *entry1,
181                                 struct root_info *entry2,
182                                 int is_descending)
183 {
184         int ret;
185
186         if (strcmp(entry1->full_path, entry2->full_path) > 0)
187                 ret = 1;
188         else if (strcmp(entry1->full_path, entry2->full_path) < 0)
189                 ret = -1;
190         else
191                 ret = 0;
192
193         return is_descending ? -ret : ret;
194 }
195
196 static btrfs_list_comp_func all_comp_funcs[] = {
197         [BTRFS_LIST_COMP_ROOTID]        = comp_entry_with_rootid,
198         [BTRFS_LIST_COMP_OGEN]          = comp_entry_with_ogen,
199         [BTRFS_LIST_COMP_GEN]           = comp_entry_with_gen,
200         [BTRFS_LIST_COMP_PATH]          = comp_entry_with_path,
201 };
202
203 static char *all_sort_items[] = {
204         [BTRFS_LIST_COMP_ROOTID]        = "rootid",
205         [BTRFS_LIST_COMP_OGEN]          = "ogen",
206         [BTRFS_LIST_COMP_GEN]           = "gen",
207         [BTRFS_LIST_COMP_PATH]          = "path",
208         [BTRFS_LIST_COMP_MAX]           = NULL,
209 };
210
211 static int  btrfs_list_get_sort_item(char *sort_name)
212 {
213         int i;
214
215         for (i = 0; i < BTRFS_LIST_COMP_MAX; i++) {
216                 if (strcmp(sort_name, all_sort_items[i]) == 0)
217                         return i;
218         }
219         return -1;
220 }
221
222 struct btrfs_list_comparer_set *btrfs_list_alloc_comparer_set(void)
223 {
224         struct btrfs_list_comparer_set *set;
225         int size;
226
227         size = sizeof(struct btrfs_list_comparer_set) +
228                BTRFS_LIST_NCOMPS_INCREASE * sizeof(struct btrfs_list_comparer);
229         set = calloc(1, size);
230         if (!set) {
231                 fprintf(stderr, "memory allocation failed\n");
232                 exit(1);
233         }
234
235         set->total = BTRFS_LIST_NCOMPS_INCREASE;
236
237         return set;
238 }
239
240 static int btrfs_list_setup_comparer(struct btrfs_list_comparer_set **comp_set,
241                 enum btrfs_list_comp_enum comparer, int is_descending)
242 {
243         struct btrfs_list_comparer_set *set = *comp_set;
244         int size;
245
246         ASSERT(set != NULL);
247         ASSERT(comparer < BTRFS_LIST_COMP_MAX);
248         ASSERT(set->ncomps <= set->total);
249
250         if (set->ncomps == set->total) {
251                 void *tmp;
252
253                 size = set->total + BTRFS_LIST_NCOMPS_INCREASE;
254                 size = sizeof(*set) + size * sizeof(struct btrfs_list_comparer);
255                 tmp = set;
256                 set = realloc(set, size);
257                 if (!set) {
258                         fprintf(stderr, "memory allocation failed\n");
259                         free(tmp);
260                         exit(1);
261                 }
262
263                 memset(&set->comps[set->total], 0,
264                        BTRFS_LIST_NCOMPS_INCREASE *
265                        sizeof(struct btrfs_list_comparer));
266                 set->total += BTRFS_LIST_NCOMPS_INCREASE;
267                 *comp_set = set;
268         }
269
270         ASSERT(set->comps[set->ncomps].comp_func == NULL);
271
272         set->comps[set->ncomps].comp_func = all_comp_funcs[comparer];
273         set->comps[set->ncomps].is_descending = is_descending;
274         set->ncomps++;
275         return 0;
276 }
277
278 static int sort_comp(struct root_info *entry1, struct root_info *entry2,
279                      struct btrfs_list_comparer_set *set)
280 {
281         int rootid_compared = 0;
282         int i, ret = 0;
283
284         if (!set || !set->ncomps)
285                 goto comp_rootid;
286
287         for (i = 0; i < set->ncomps; i++) {
288                 if (!set->comps[i].comp_func)
289                         break;
290
291                 ret = set->comps[i].comp_func(entry1, entry2,
292                                               set->comps[i].is_descending);
293                 if (ret)
294                         return ret;
295
296                 if (set->comps[i].comp_func == comp_entry_with_rootid)
297                         rootid_compared = 1;
298         }
299
300         if (!rootid_compared) {
301 comp_rootid:
302                 ret = comp_entry_with_rootid(entry1, entry2, 0);
303         }
304
305         return ret;
306 }
307
308 static int sort_tree_insert(struct root_lookup *sort_tree,
309                             struct root_info *ins,
310                             struct btrfs_list_comparer_set *comp_set)
311 {
312         struct rb_node **p = &sort_tree->root.rb_node;
313         struct rb_node *parent = NULL;
314         struct root_info *curr;
315         int ret;
316
317         while (*p) {
318                 parent = *p;
319                 curr = rb_entry(parent, struct root_info, sort_node);
320
321                 ret = sort_comp(ins, curr, comp_set);
322                 if (ret < 0)
323                         p = &(*p)->rb_left;
324                 else if (ret > 0)
325                         p = &(*p)->rb_right;
326                 else
327                         return -EEXIST;
328         }
329
330         rb_link_node(&ins->sort_node, parent, p);
331         rb_insert_color(&ins->sort_node, &sort_tree->root);
332         return 0;
333 }
334
335 /*
336  * insert a new root into the tree.  returns the existing root entry
337  * if one is already there.  Both root_id and ref_tree are used
338  * as the key
339  */
340 static int root_tree_insert(struct root_lookup *root_tree,
341                             struct root_info *ins)
342 {
343         struct rb_node **p = &root_tree->root.rb_node;
344         struct rb_node * parent = NULL;
345         struct root_info *curr;
346         int ret;
347
348         while(*p) {
349                 parent = *p;
350                 curr = rb_entry(parent, struct root_info, rb_node);
351
352                 ret = comp_entry_with_rootid(ins, curr, 0);
353                 if (ret < 0)
354                         p = &(*p)->rb_left;
355                 else if (ret > 0)
356                         p = &(*p)->rb_right;
357                 else
358                         return -EEXIST;
359         }
360
361         rb_link_node(&ins->rb_node, parent, p);
362         rb_insert_color(&ins->rb_node, &root_tree->root);
363         return 0;
364 }
365
366 /*
367  * find a given root id in the tree.  We return the smallest one,
368  * rb_next can be used to move forward looking for more if required
369  */
370 static struct root_info *root_tree_search(struct root_lookup *root_tree,
371                                           u64 root_id)
372 {
373         struct rb_node *n = root_tree->root.rb_node;
374         struct root_info *entry;
375         struct root_info tmp;
376         int ret;
377
378         tmp.root_id = root_id;
379
380         while(n) {
381                 entry = rb_entry(n, struct root_info, rb_node);
382
383                 ret = comp_entry_with_rootid(&tmp, entry, 0);
384                 if (ret < 0)
385                         n = n->rb_left;
386                 else if (ret > 0)
387                         n = n->rb_right;
388                 else
389                         return entry;
390         }
391         return NULL;
392 }
393
394 static int update_root(struct root_lookup *root_lookup,
395                        u64 root_id, u64 ref_tree, u64 root_offset, u64 flags,
396                        u64 dir_id, char *name, int name_len, u64 ogen, u64 gen,
397                        time_t ot, void *uuid, void *puuid, void *ruuid)
398 {
399         struct root_info *ri;
400
401         ri = root_tree_search(root_lookup, root_id);
402         if (!ri || ri->root_id != root_id)
403                 return -ENOENT;
404         if (name && name_len > 0) {
405                 free(ri->name);
406
407                 ri->name = malloc(name_len + 1);
408                 if (!ri->name) {
409                         fprintf(stderr, "memory allocation failed\n");
410                         exit(1);
411                 }
412                 strncpy(ri->name, name, name_len);
413                 ri->name[name_len] = 0;
414         }
415         if (ref_tree)
416                 ri->ref_tree = ref_tree;
417         if (root_offset)
418                 ri->root_offset = root_offset;
419         if (flags)
420                 ri->flags = flags;
421         if (dir_id)
422                 ri->dir_id = dir_id;
423         if (gen)
424                 ri->gen = gen;
425         if (ogen)
426                 ri->ogen = ogen;
427         if (!ri->ogen && root_offset)
428                 ri->ogen = root_offset;
429         if (ot)
430                 ri->otime = ot;
431         if (uuid)
432                 memcpy(&ri->uuid, uuid, BTRFS_UUID_SIZE);
433         if (puuid)
434                 memcpy(&ri->puuid, puuid, BTRFS_UUID_SIZE);
435         if (ruuid)
436                 memcpy(&ri->ruuid, ruuid, BTRFS_UUID_SIZE);
437
438         return 0;
439 }
440
441 /*
442  * add_root - update the existed root, or allocate a new root and insert it
443  *            into the lookup tree.
444  * root_id: object id of the root
445  * ref_tree: object id of the referring root.
446  * root_offset: offset value of the root'key
447  * dir_id: inode id of the directory in ref_tree where this root can be found.
448  * name: the name of root_id in that directory
449  * name_len: the length of name
450  * ogen: the original generation of the root
451  * gen: the current generation of the root
452  * ot: the original time(create time) of the root
453  * uuid: uuid of the root
454  * puuid: uuid of the root parent if any
455  * ruuid: uuid of the received subvol, if any
456  */
457 static int add_root(struct root_lookup *root_lookup,
458                     u64 root_id, u64 ref_tree, u64 root_offset, u64 flags,
459                     u64 dir_id, char *name, int name_len, u64 ogen, u64 gen,
460                     time_t ot, void *uuid, void *puuid, void *ruuid)
461 {
462         struct root_info *ri;
463         int ret;
464
465         ret = update_root(root_lookup, root_id, ref_tree, root_offset, flags,
466                           dir_id, name, name_len, ogen, gen, ot,
467                           uuid, puuid, ruuid);
468         if (!ret)
469                 return 0;
470
471         ri = calloc(1, sizeof(*ri));
472         if (!ri) {
473                 printf("memory allocation failed\n");
474                 exit(1);
475         }
476         ri->root_id = root_id;
477
478         if (name && name_len > 0) {
479                 ri->name = malloc(name_len + 1);
480                 if (!ri->name) {
481                         fprintf(stderr, "memory allocation failed\n");
482                         exit(1);
483                 }
484                 strncpy(ri->name, name, name_len);
485                 ri->name[name_len] = 0;
486         }
487         if (ref_tree)
488                 ri->ref_tree = ref_tree;
489         if (dir_id)
490                 ri->dir_id = dir_id;
491         if (root_offset)
492                 ri->root_offset = root_offset;
493         if (flags)
494                 ri->flags = flags;
495         if (gen)
496                 ri->gen = gen;
497         if (ogen)
498                 ri->ogen = ogen;
499         if (!ri->ogen && root_offset)
500                 ri->ogen = root_offset;
501         if (ot)
502                 ri->otime = ot;
503
504         if (uuid)
505                 memcpy(&ri->uuid, uuid, BTRFS_UUID_SIZE);
506
507         if (puuid)
508                 memcpy(&ri->puuid, puuid, BTRFS_UUID_SIZE);
509
510         if (ruuid)
511                 memcpy(&ri->ruuid, ruuid, BTRFS_UUID_SIZE);
512
513         ret = root_tree_insert(root_lookup, ri);
514         if (ret) {
515                 error("failed to insert tree %llu",
516                                 (unsigned long long)root_id);
517                 exit(1);
518         }
519         return 0;
520 }
521
522 static void free_root_info(struct rb_node *node)
523 {
524         struct root_info *ri;
525
526         ri = rb_entry(node, struct root_info, rb_node);
527         free(ri->name);
528         free(ri->path);
529         free(ri->full_path);
530         free(ri);
531 }
532
533 /*
534  * for a given root_info, search through the root_lookup tree to construct
535  * the full path name to it.
536  *
537  * This can't be called until all the root_info->path fields are filled
538  * in by lookup_ino_path
539  */
540 static int resolve_root(struct root_lookup *rl, struct root_info *ri,
541                        u64 top_id)
542 {
543         char *full_path = NULL;
544         int len = 0;
545         struct root_info *found;
546
547         /*
548          * we go backwards from the root_info object and add pathnames
549          * from parent directories as we go.
550          */
551         found = ri;
552         while (1) {
553                 char *tmp;
554                 u64 next;
555                 int add_len;
556
557                 /*
558                  * ref_tree = 0 indicates the subvolume
559                  * has been deleted.
560                  */
561                 if (!found->ref_tree) {
562                         free(full_path);
563                         return -ENOENT;
564                 }
565
566                 add_len = strlen(found->path);
567
568                 if (full_path) {
569                         /* room for / and for null */
570                         tmp = malloc(add_len + 2 + len);
571                         if (!tmp) {
572                                 perror("malloc failed");
573                                 exit(1);
574                         }
575                         memcpy(tmp + add_len + 1, full_path, len);
576                         tmp[add_len] = '/';
577                         memcpy(tmp, found->path, add_len);
578                         tmp [add_len + len + 1] = '\0';
579                         free(full_path);
580                         full_path = tmp;
581                         len += add_len + 1;
582                 } else {
583                         full_path = strdup(found->path);
584                         len = add_len;
585                 }
586                 if (!ri->top_id)
587                         ri->top_id = found->ref_tree;
588
589                 next = found->ref_tree;
590                 if (next == top_id)
591                         break;
592                 /*
593                 * if the ref_tree = BTRFS_FS_TREE_OBJECTID,
594                 * we are at the top
595                 */
596                 if (next == BTRFS_FS_TREE_OBJECTID)
597                         break;
598                 /*
599                 * if the ref_tree wasn't in our tree of roots, the
600                 * subvolume was deleted.
601                 */
602                 found = root_tree_search(rl, next);
603                 if (!found) {
604                         free(full_path);
605                         return -ENOENT;
606                 }
607         }
608
609         ri->full_path = full_path;
610
611         return 0;
612 }
613
614 /*
615  * for a single root_info, ask the kernel to give us a path name
616  * inside it's ref_root for the dir_id where it lives.
617  *
618  * This fills in root_info->path with the path to the directory and and
619  * appends this root's name.
620  */
621 static int lookup_ino_path(int fd, struct root_info *ri)
622 {
623         struct btrfs_ioctl_ino_lookup_args args;
624         int ret;
625
626         if (ri->path)
627                 return 0;
628
629         if (!ri->ref_tree)
630                 return -ENOENT;
631
632         memset(&args, 0, sizeof(args));
633         args.treeid = ri->ref_tree;
634         args.objectid = ri->dir_id;
635
636         ret = ioctl(fd, BTRFS_IOC_INO_LOOKUP, &args);
637         if (ret < 0) {
638                 if (errno == ENOENT) {
639                         ri->ref_tree = 0;
640                         return -ENOENT;
641                 }
642                 error("failed to lookup path for root %llu: %s",
643                         (unsigned long long)ri->ref_tree, strerror(errno));
644                 return ret;
645         }
646
647         if (args.name[0]) {
648                 /*
649                  * we're in a subdirectory of ref_tree, the kernel ioctl
650                  * puts a / in there for us
651                  */
652                 ri->path = malloc(strlen(ri->name) + strlen(args.name) + 1);
653                 if (!ri->path) {
654                         perror("malloc failed");
655                         exit(1);
656                 }
657                 strcpy(ri->path, args.name);
658                 strcat(ri->path, ri->name);
659         } else {
660                 /* we're at the root of ref_tree */
661                 ri->path = strdup(ri->name);
662                 if (!ri->path) {
663                         perror("strdup failed");
664                         exit(1);
665                 }
666         }
667         return 0;
668 }
669
670 /* finding the generation for a given path is a two step process.
671  * First we use the inode lookup routine to find out the root id
672  *
673  * Then we use the tree search ioctl to scan all the root items for a
674  * given root id and spit out the latest generation we can find
675  */
676 static u64 find_root_gen(int fd)
677 {
678         struct btrfs_ioctl_ino_lookup_args ino_args;
679         int ret;
680         struct btrfs_ioctl_search_args args;
681         struct btrfs_ioctl_search_key *sk = &args.key;
682         struct btrfs_ioctl_search_header sh;
683         unsigned long off = 0;
684         u64 max_found = 0;
685         int i;
686
687         memset(&ino_args, 0, sizeof(ino_args));
688         ino_args.objectid = BTRFS_FIRST_FREE_OBJECTID;
689
690         /* this ioctl fills in ino_args->treeid */
691         ret = ioctl(fd, BTRFS_IOC_INO_LOOKUP, &ino_args);
692         if (ret < 0) {
693                 error("failed to lookup path for dirid %llu: %s",
694                         (unsigned long long)BTRFS_FIRST_FREE_OBJECTID,
695                         strerror(errno));
696                 return 0;
697         }
698
699         memset(&args, 0, sizeof(args));
700
701         sk->tree_id = BTRFS_ROOT_TREE_OBJECTID;
702
703         /*
704          * there may be more than one ROOT_ITEM key if there are
705          * snapshots pending deletion, we have to loop through
706          * them.
707          */
708         sk->min_objectid = ino_args.treeid;
709         sk->max_objectid = ino_args.treeid;
710         sk->max_type = BTRFS_ROOT_ITEM_KEY;
711         sk->min_type = BTRFS_ROOT_ITEM_KEY;
712         sk->max_offset = (u64)-1;
713         sk->max_transid = (u64)-1;
714         sk->nr_items = 4096;
715
716         while (1) {
717                 ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
718                 if (ret < 0) {
719                         error("can't perform the search: %s", strerror(errno));
720                         return 0;
721                 }
722                 /* the ioctl returns the number of item it found in nr_items */
723                 if (sk->nr_items == 0)
724                         break;
725
726                 off = 0;
727                 for (i = 0; i < sk->nr_items; i++) {
728                         struct btrfs_root_item *item;
729
730                         memcpy(&sh, args.buf + off, sizeof(sh));
731                         off += sizeof(sh);
732                         item = (struct btrfs_root_item *)(args.buf + off);
733                         off += sh.len;
734
735                         sk->min_objectid = sh.objectid;
736                         sk->min_type = sh.type;
737                         sk->min_offset = sh.offset;
738
739                         if (sh.objectid > ino_args.treeid)
740                                 break;
741
742                         if (sh.objectid == ino_args.treeid &&
743                             sh.type == BTRFS_ROOT_ITEM_KEY) {
744                                 max_found = max(max_found,
745                                                 btrfs_root_generation(item));
746                         }
747                 }
748                 if (sk->min_offset < (u64)-1)
749                         sk->min_offset++;
750                 else
751                         break;
752
753                 if (sk->min_type != BTRFS_ROOT_ITEM_KEY)
754                         break;
755                 if (sk->min_objectid != ino_args.treeid)
756                         break;
757         }
758         return max_found;
759 }
760
761 /* pass in a directory id and this will return
762  * the full path of the parent directory inside its
763  * subvolume root.
764  *
765  * It may return NULL if it is in the root, or an ERR_PTR if things
766  * go badly.
767  */
768 static char *__ino_resolve(int fd, u64 dirid)
769 {
770         struct btrfs_ioctl_ino_lookup_args args;
771         int ret;
772         char *full;
773
774         memset(&args, 0, sizeof(args));
775         args.objectid = dirid;
776
777         ret = ioctl(fd, BTRFS_IOC_INO_LOOKUP, &args);
778         if (ret < 0) {
779                 error("failed to lookup path for dirid %llu: %s",
780                         (unsigned long long)dirid, strerror(errno));
781                 return ERR_PTR(ret);
782         }
783
784         if (args.name[0]) {
785                 /*
786                  * we're in a subdirectory of ref_tree, the kernel ioctl
787                  * puts a / in there for us
788                  */
789                 full = strdup(args.name);
790                 if (!full) {
791                         perror("malloc failed");
792                         return ERR_PTR(-ENOMEM);
793                 }
794         } else {
795                 /* we're at the root of ref_tree */
796                 full = NULL;
797         }
798         return full;
799 }
800
801 /*
802  * simple string builder, returning a new string with both
803  * dirid and name
804  */
805 static char *build_name(const char *dirid, const char *name)
806 {
807         char *full;
808
809         if (!dirid)
810                 return strdup(name);
811
812         full = malloc(strlen(dirid) + strlen(name) + 1);
813         if (!full)
814                 return NULL;
815         strcpy(full, dirid);
816         strcat(full, name);
817         return full;
818 }
819
820 /*
821  * given an inode number, this returns the full path name inside the subvolume
822  * to that file/directory.  cache_dirid and cache_name are used to
823  * cache the results so we can avoid tree searches if a later call goes
824  * to the same directory or file name
825  */
826 static char *ino_resolve(int fd, u64 ino, u64 *cache_dirid, char **cache_name)
827
828 {
829         u64 dirid;
830         char *dirname;
831         char *name;
832         char *full;
833         int ret;
834         struct btrfs_ioctl_search_args args;
835         struct btrfs_ioctl_search_key *sk = &args.key;
836         struct btrfs_ioctl_search_header *sh;
837         unsigned long off = 0;
838         int namelen;
839
840         memset(&args, 0, sizeof(args));
841
842         sk->tree_id = 0;
843
844         /*
845          * step one, we search for the inode back ref.  We just use the first
846          * one
847          */
848         sk->min_objectid = ino;
849         sk->max_objectid = ino;
850         sk->max_type = BTRFS_INODE_REF_KEY;
851         sk->max_offset = (u64)-1;
852         sk->min_type = BTRFS_INODE_REF_KEY;
853         sk->max_transid = (u64)-1;
854         sk->nr_items = 1;
855
856         ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
857         if (ret < 0) {
858                 error("can't perform the search: %s", strerror(errno));
859                 return NULL;
860         }
861         /* the ioctl returns the number of item it found in nr_items */
862         if (sk->nr_items == 0)
863                 return NULL;
864
865         off = 0;
866         sh = (struct btrfs_ioctl_search_header *)(args.buf + off);
867
868         if (btrfs_search_header_type(sh) == BTRFS_INODE_REF_KEY) {
869                 struct btrfs_inode_ref *ref;
870                 dirid = btrfs_search_header_offset(sh);
871
872                 ref = (struct btrfs_inode_ref *)(sh + 1);
873                 namelen = btrfs_stack_inode_ref_name_len(ref);
874
875                 name = (char *)(ref + 1);
876                 name = strndup(name, namelen);
877
878                 /* use our cached value */
879                 if (dirid == *cache_dirid && *cache_name) {
880                         dirname = *cache_name;
881                         goto build;
882                 }
883         } else {
884                 return NULL;
885         }
886         /*
887          * the inode backref gives us the file name and the parent directory id.
888          * From here we use __ino_resolve to get the path to the parent
889          */
890         dirname = __ino_resolve(fd, dirid);
891 build:
892         full = build_name(dirname, name);
893         if (*cache_name && dirname != *cache_name)
894                 free(*cache_name);
895
896         *cache_name = dirname;
897         *cache_dirid = dirid;
898         free(name);
899
900         return full;
901 }
902
903 int btrfs_list_get_default_subvolume(int fd, u64 *default_id)
904 {
905         struct btrfs_ioctl_search_args args;
906         struct btrfs_ioctl_search_key *sk = &args.key;
907         struct btrfs_ioctl_search_header *sh;
908         u64 found = 0;
909         int ret;
910
911         memset(&args, 0, sizeof(args));
912
913         /*
914          * search for a dir item with a name 'default' in the tree of
915          * tree roots, it should point us to a default root
916          */
917         sk->tree_id = BTRFS_ROOT_TREE_OBJECTID;
918
919         /* don't worry about ancient format and request only one item */
920         sk->nr_items = 1;
921
922         sk->max_objectid = BTRFS_ROOT_TREE_DIR_OBJECTID;
923         sk->min_objectid = BTRFS_ROOT_TREE_DIR_OBJECTID;
924         sk->max_type = BTRFS_DIR_ITEM_KEY;
925         sk->min_type = BTRFS_DIR_ITEM_KEY;
926         sk->max_offset = (u64)-1;
927         sk->max_transid = (u64)-1;
928
929         ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
930         if (ret < 0)
931                 return ret;
932
933         /* the ioctl returns the number of items it found in nr_items */
934         if (sk->nr_items == 0)
935                 goto out;
936
937         sh = (struct btrfs_ioctl_search_header *)args.buf;
938
939         if (btrfs_search_header_type(sh) == BTRFS_DIR_ITEM_KEY) {
940                 struct btrfs_dir_item *di;
941                 int name_len;
942                 char *name;
943
944                 di = (struct btrfs_dir_item *)(sh + 1);
945                 name_len = btrfs_stack_dir_name_len(di);
946                 name = (char *)(di + 1);
947
948                 if (!strncmp("default", name, name_len))
949                         found = btrfs_disk_key_objectid(&di->location);
950         }
951
952 out:
953         *default_id = found;
954         return 0;
955 }
956
957 static int list_subvol_search(int fd, struct root_lookup *root_lookup)
958 {
959         int ret;
960         struct btrfs_ioctl_search_args args;
961         struct btrfs_ioctl_search_key *sk = &args.key;
962         struct btrfs_ioctl_search_header sh;
963         struct btrfs_root_ref *ref;
964         struct btrfs_root_item *ri;
965         unsigned long off = 0;
966         int name_len;
967         char *name;
968         u64 dir_id;
969         u64 gen = 0;
970         u64 ogen;
971         u64 flags;
972         int i;
973         time_t t;
974         u8 uuid[BTRFS_UUID_SIZE];
975         u8 puuid[BTRFS_UUID_SIZE];
976         u8 ruuid[BTRFS_UUID_SIZE];
977
978         root_lookup_init(root_lookup);
979         memset(&args, 0, sizeof(args));
980
981         sk->tree_id = BTRFS_ROOT_TREE_OBJECTID;
982
983         /*
984          * set the min and max to backref keys.  The search will
985          * only send back this type of key now.
986          */
987         sk->max_type = BTRFS_ROOT_BACKREF_KEY;
988         sk->min_type = BTRFS_ROOT_ITEM_KEY;
989
990         sk->min_objectid = BTRFS_FIRST_FREE_OBJECTID;
991
992         /*
993          * set all the other params to the max, we'll take any objectid
994          * and any trans
995          */
996         sk->max_objectid = BTRFS_LAST_FREE_OBJECTID;
997         sk->max_offset = (u64)-1;
998         sk->max_transid = (u64)-1;
999
1000         /* just a big number, doesn't matter much */
1001         sk->nr_items = 4096;
1002
1003         while(1) {
1004                 ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
1005                 if (ret < 0)
1006                         return ret;
1007                 /* the ioctl returns the number of item it found in nr_items */
1008                 if (sk->nr_items == 0)
1009                         break;
1010
1011                 off = 0;
1012
1013                 /*
1014                  * for each item, pull the key out of the header and then
1015                  * read the root_ref item it contains
1016                  */
1017                 for (i = 0; i < sk->nr_items; i++) {
1018                         memcpy(&sh, args.buf + off, sizeof(sh));
1019                         off += sizeof(sh);
1020                         if (sh.type == BTRFS_ROOT_BACKREF_KEY) {
1021                                 ref = (struct btrfs_root_ref *)(args.buf + off);
1022                                 name_len = btrfs_stack_root_ref_name_len(ref);
1023                                 name = (char *)(ref + 1);
1024                                 dir_id = btrfs_stack_root_ref_dirid(ref);
1025
1026                                 add_root(root_lookup, sh.objectid, sh.offset,
1027                                          0, 0, dir_id, name, name_len, 0, 0, 0,
1028                                          NULL, NULL, NULL);
1029                         } else if (sh.type == BTRFS_ROOT_ITEM_KEY) {
1030                                 ri = (struct btrfs_root_item *)(args.buf + off);
1031                                 gen = btrfs_root_generation(ri);
1032                                 flags = btrfs_root_flags(ri);
1033                                 if(sh.len >
1034                                    sizeof(struct btrfs_root_item_v0)) {
1035                                         t = btrfs_stack_timespec_sec(&ri->otime);
1036                                         ogen = btrfs_root_otransid(ri);
1037                                         memcpy(uuid, ri->uuid, BTRFS_UUID_SIZE);
1038                                         memcpy(puuid, ri->parent_uuid, BTRFS_UUID_SIZE);
1039                                         memcpy(ruuid, ri->received_uuid, BTRFS_UUID_SIZE);
1040                                 } else {
1041                                         t = 0;
1042                                         ogen = 0;
1043                                         memset(uuid, 0, BTRFS_UUID_SIZE);
1044                                         memset(puuid, 0, BTRFS_UUID_SIZE);
1045                                         memset(ruuid, 0, BTRFS_UUID_SIZE);
1046                                 }
1047
1048                                 add_root(root_lookup, sh.objectid, 0,
1049                                          sh.offset, flags, 0, NULL, 0, ogen,
1050                                          gen, t, uuid, puuid, ruuid);
1051                         }
1052
1053                         off += sh.len;
1054
1055                         /*
1056                          * record the mins in sk so we can make sure the
1057                          * next search doesn't repeat this root
1058                          */
1059                         sk->min_objectid = sh.objectid;
1060                         sk->min_type = sh.type;
1061                         sk->min_offset = sh.offset;
1062                 }
1063                 sk->nr_items = 4096;
1064                 sk->min_offset++;
1065                 if (!sk->min_offset)    /* overflow */
1066                         sk->min_type++;
1067                 else
1068                         continue;
1069
1070                 if (sk->min_type > BTRFS_ROOT_BACKREF_KEY) {
1071                         sk->min_type = BTRFS_ROOT_ITEM_KEY;
1072                         sk->min_objectid++;
1073                 } else
1074                         continue;
1075
1076                 if (sk->min_objectid > sk->max_objectid)
1077                         break;
1078         }
1079
1080         return 0;
1081 }
1082
1083 static int filter_by_rootid(struct root_info *ri, u64 data)
1084 {
1085         return ri->root_id == data;
1086 }
1087
1088 static int filter_snapshot(struct root_info *ri, u64 data)
1089 {
1090         return !!ri->root_offset;
1091 }
1092
1093 static int filter_flags(struct root_info *ri, u64 flags)
1094 {
1095         return ri->flags & flags;
1096 }
1097
1098 static int filter_gen_more(struct root_info *ri, u64 data)
1099 {
1100         return ri->gen >= data;
1101 }
1102
1103 static int filter_gen_less(struct root_info *ri, u64 data)
1104 {
1105         return ri->gen <= data;
1106 }
1107
1108 static int filter_gen_equal(struct root_info  *ri, u64 data)
1109 {
1110         return ri->gen == data;
1111 }
1112
1113 static int filter_cgen_more(struct root_info *ri, u64 data)
1114 {
1115         return ri->ogen >= data;
1116 }
1117
1118 static int filter_cgen_less(struct root_info *ri, u64 data)
1119 {
1120         return ri->ogen <= data;
1121 }
1122
1123 static int filter_cgen_equal(struct root_info *ri, u64 data)
1124 {
1125         return ri->ogen == data;
1126 }
1127
1128 static int filter_topid_equal(struct root_info *ri, u64 data)
1129 {
1130         return ri->top_id == data;
1131 }
1132
1133 static int filter_full_path(struct root_info *ri, u64 data)
1134 {
1135         if (ri->full_path && ri->top_id != data) {
1136                 char *tmp;
1137                 char p[] = "<FS_TREE>";
1138                 int add_len = strlen(p);
1139                 int len = strlen(ri->full_path);
1140
1141                 tmp = malloc(len + add_len + 2);
1142                 if (!tmp) {
1143                         fprintf(stderr, "memory allocation failed\n");
1144                         exit(1);
1145                 }
1146                 memcpy(tmp + add_len + 1, ri->full_path, len);
1147                 tmp[len + add_len + 1] = '\0';
1148                 tmp[add_len] = '/';
1149                 memcpy(tmp, p, add_len);
1150                 free(ri->full_path);
1151                 ri->full_path = tmp;
1152         }
1153         return 1;
1154 }
1155
1156 static int filter_by_parent(struct root_info *ri, u64 data)
1157 {
1158         return !uuid_compare(ri->puuid, (u8 *)(unsigned long)data);
1159 }
1160
1161 static int filter_deleted(struct root_info *ri, u64 data)
1162 {
1163         return ri->deleted;
1164 }
1165
1166 static btrfs_list_filter_func all_filter_funcs[] = {
1167         [BTRFS_LIST_FILTER_ROOTID]              = filter_by_rootid,
1168         [BTRFS_LIST_FILTER_SNAPSHOT_ONLY]       = filter_snapshot,
1169         [BTRFS_LIST_FILTER_FLAGS]               = filter_flags,
1170         [BTRFS_LIST_FILTER_GEN_MORE]            = filter_gen_more,
1171         [BTRFS_LIST_FILTER_GEN_LESS]            = filter_gen_less,
1172         [BTRFS_LIST_FILTER_GEN_EQUAL]           = filter_gen_equal,
1173         [BTRFS_LIST_FILTER_CGEN_MORE]           = filter_cgen_more,
1174         [BTRFS_LIST_FILTER_CGEN_LESS]           = filter_cgen_less,
1175         [BTRFS_LIST_FILTER_CGEN_EQUAL]          = filter_cgen_equal,
1176         [BTRFS_LIST_FILTER_TOPID_EQUAL]         = filter_topid_equal,
1177         [BTRFS_LIST_FILTER_FULL_PATH]           = filter_full_path,
1178         [BTRFS_LIST_FILTER_BY_PARENT]           = filter_by_parent,
1179         [BTRFS_LIST_FILTER_DELETED]             = filter_deleted,
1180 };
1181
1182 struct btrfs_list_filter_set *btrfs_list_alloc_filter_set(void)
1183 {
1184         struct btrfs_list_filter_set *set;
1185         int size;
1186
1187         size = sizeof(struct btrfs_list_filter_set) +
1188                BTRFS_LIST_NFILTERS_INCREASE * sizeof(struct btrfs_list_filter);
1189         set = calloc(1, size);
1190         if (!set) {
1191                 fprintf(stderr, "memory allocation failed\n");
1192                 exit(1);
1193         }
1194
1195         set->total = BTRFS_LIST_NFILTERS_INCREASE;
1196
1197         return set;
1198 }
1199
1200 int btrfs_list_setup_filter(struct btrfs_list_filter_set **filter_set,
1201                             enum btrfs_list_filter_enum filter, u64 data)
1202 {
1203         struct btrfs_list_filter_set *set = *filter_set;
1204         int size;
1205
1206         ASSERT(set != NULL);
1207         ASSERT(filter < BTRFS_LIST_FILTER_MAX);
1208         ASSERT(set->nfilters <= set->total);
1209
1210         if (set->nfilters == set->total) {
1211                 void *tmp;
1212
1213                 size = set->total + BTRFS_LIST_NFILTERS_INCREASE;
1214                 size = sizeof(*set) + size * sizeof(struct btrfs_list_filter);
1215                 tmp = set;
1216                 set = realloc(set, size);
1217                 if (!set) {
1218                         fprintf(stderr, "memory allocation failed\n");
1219                         free(tmp);
1220                         exit(1);
1221                 }
1222
1223                 memset(&set->filters[set->total], 0,
1224                        BTRFS_LIST_NFILTERS_INCREASE *
1225                        sizeof(struct btrfs_list_filter));
1226                 set->total += BTRFS_LIST_NFILTERS_INCREASE;
1227                 *filter_set = set;
1228         }
1229
1230         ASSERT(set->filters[set->nfilters].filter_func == NULL);
1231
1232         if (filter == BTRFS_LIST_FILTER_DELETED)
1233                 set->only_deleted = 1;
1234
1235         set->filters[set->nfilters].filter_func = all_filter_funcs[filter];
1236         set->filters[set->nfilters].data = data;
1237         set->nfilters++;
1238         return 0;
1239 }
1240
1241 static int filter_root(struct root_info *ri,
1242                        struct btrfs_list_filter_set *set)
1243 {
1244         int i, ret;
1245
1246         if (!set)
1247                 return 1;
1248
1249         if (set->only_deleted && !ri->deleted)
1250                 return 0;
1251
1252         if (!set->only_deleted && ri->deleted)
1253                 return 0;
1254
1255         for (i = 0; i < set->nfilters; i++) {
1256                 if (!set->filters[i].filter_func)
1257                         break;
1258                 ret = set->filters[i].filter_func(ri, set->filters[i].data);
1259                 if (!ret)
1260                         return 0;
1261         }
1262         return 1;
1263 }
1264
1265 static void filter_and_sort_subvol(struct root_lookup *all_subvols,
1266                                     struct root_lookup *sort_tree,
1267                                     struct btrfs_list_filter_set *filter_set,
1268                                     struct btrfs_list_comparer_set *comp_set,
1269                                     u64 top_id)
1270 {
1271         struct rb_node *n;
1272         struct root_info *entry;
1273         int ret;
1274
1275         root_lookup_init(sort_tree);
1276
1277         n = rb_last(&all_subvols->root);
1278         while (n) {
1279                 entry = rb_entry(n, struct root_info, rb_node);
1280
1281                 ret = resolve_root(all_subvols, entry, top_id);
1282                 if (ret == -ENOENT) {
1283                         entry->full_path = strdup("DELETED");
1284                         entry->deleted = 1;
1285                 }
1286                 ret = filter_root(entry, filter_set);
1287                 if (ret)
1288                         sort_tree_insert(sort_tree, entry, comp_set);
1289                 n = rb_prev(n);
1290         }
1291 }
1292
1293 static int list_subvol_fill_paths(int fd, struct root_lookup *root_lookup)
1294 {
1295         struct rb_node *n;
1296
1297         n = rb_first(&root_lookup->root);
1298         while (n) {
1299                 struct root_info *entry;
1300                 int ret;
1301                 entry = rb_entry(n, struct root_info, rb_node);
1302                 ret = lookup_ino_path(fd, entry);
1303                 if (ret && ret != -ENOENT)
1304                         return ret;
1305                 n = rb_next(n);
1306         }
1307
1308         return 0;
1309 }
1310
1311 static void print_subvolume_column(struct root_info *subv,
1312                                    enum btrfs_list_column_enum column)
1313 {
1314         char tstr[256];
1315         char uuidparse[BTRFS_UUID_UNPARSED_SIZE];
1316
1317         ASSERT(0 <= column && column < BTRFS_LIST_ALL);
1318
1319         switch (column) {
1320         case BTRFS_LIST_OBJECTID:
1321                 printf("%llu", subv->root_id);
1322                 break;
1323         case BTRFS_LIST_GENERATION:
1324                 printf("%llu", subv->gen);
1325                 break;
1326         case BTRFS_LIST_OGENERATION:
1327                 printf("%llu", subv->ogen);
1328                 break;
1329         case BTRFS_LIST_PARENT:
1330                 printf("%llu", subv->ref_tree);
1331                 break;
1332         case BTRFS_LIST_TOP_LEVEL:
1333                 printf("%llu", subv->top_id);
1334                 break;
1335         case BTRFS_LIST_OTIME:
1336                 if (subv->otime) {
1337                         struct tm tm;
1338
1339                         localtime_r(&subv->otime, &tm);
1340                         strftime(tstr, 256, "%Y-%m-%d %X", &tm);
1341                 } else
1342                         strcpy(tstr, "-");
1343                 printf("%s", tstr);
1344                 break;
1345         case BTRFS_LIST_UUID:
1346                 if (uuid_is_null(subv->uuid))
1347                         strcpy(uuidparse, "-");
1348                 else
1349                         uuid_unparse(subv->uuid, uuidparse);
1350                 printf("%s", uuidparse);
1351                 break;
1352         case BTRFS_LIST_PUUID:
1353                 if (uuid_is_null(subv->puuid))
1354                         strcpy(uuidparse, "-");
1355                 else
1356                         uuid_unparse(subv->puuid, uuidparse);
1357                 printf("%s", uuidparse);
1358                 break;
1359         case BTRFS_LIST_RUUID:
1360                 if (uuid_is_null(subv->ruuid))
1361                         strcpy(uuidparse, "-");
1362                 else
1363                         uuid_unparse(subv->ruuid, uuidparse);
1364                 printf("%s", uuidparse);
1365                 break;
1366         case BTRFS_LIST_PATH:
1367                 BUG_ON(!subv->full_path);
1368                 printf("%s", subv->full_path);
1369                 break;
1370         default:
1371                 break;
1372         }
1373 }
1374
1375 static void print_one_subvol_info_raw(struct root_info *subv,
1376                 const char *raw_prefix)
1377 {
1378         int i;
1379
1380         for (i = 0; i < BTRFS_LIST_ALL; i++) {
1381                 if (!btrfs_list_columns[i].need_print)
1382                         continue;
1383
1384                 if (raw_prefix)
1385                         printf("%s",raw_prefix);
1386
1387                 print_subvolume_column(subv, i);
1388         }
1389         printf("\n");
1390 }
1391
1392 static void print_one_subvol_info_table(struct root_info *subv)
1393 {
1394         int i;
1395
1396         for (i = 0; i < BTRFS_LIST_ALL; i++) {
1397                 if (!btrfs_list_columns[i].need_print)
1398                         continue;
1399
1400                 print_subvolume_column(subv, i);
1401
1402                 if (i != BTRFS_LIST_PATH)
1403                         printf("\t");
1404
1405                 if (i == BTRFS_LIST_TOP_LEVEL)
1406                         printf("\t");
1407         }
1408         printf("\n");
1409 }
1410
1411 static void print_one_subvol_info_default(struct root_info *subv)
1412 {
1413         int i;
1414
1415         for (i = 0; i < BTRFS_LIST_ALL; i++) {
1416                 if (!btrfs_list_columns[i].need_print)
1417                         continue;
1418
1419                 printf("%s ", btrfs_list_columns[i].name);
1420                 print_subvolume_column(subv, i);
1421
1422                 if (i != BTRFS_LIST_PATH)
1423                         printf(" ");
1424         }
1425         printf("\n");
1426 }
1427
1428 static void print_all_subvol_info_tab_head(void)
1429 {
1430         int i;
1431         int len;
1432         char barrier[20];
1433
1434         for (i = 0; i < BTRFS_LIST_ALL; i++) {
1435                 if (btrfs_list_columns[i].need_print)
1436                         printf("%s\t", btrfs_list_columns[i].name);
1437
1438                 if (i == BTRFS_LIST_ALL-1)
1439                         printf("\n");
1440         }
1441
1442         for (i = 0; i < BTRFS_LIST_ALL; i++) {
1443                 memset(barrier, 0, sizeof(barrier));
1444
1445                 if (btrfs_list_columns[i].need_print) {
1446                         len = strlen(btrfs_list_columns[i].name);
1447                         while (len--)
1448                                 strcat(barrier, "-");
1449
1450                         printf("%s\t", barrier);
1451                 }
1452                 if (i == BTRFS_LIST_ALL-1)
1453                         printf("\n");
1454         }
1455 }
1456
1457 static void print_all_subvol_info(struct root_lookup *sorted_tree,
1458                   enum btrfs_list_layout layout, const char *raw_prefix)
1459 {
1460         struct rb_node *n;
1461         struct root_info *entry;
1462
1463         if (layout == BTRFS_LIST_LAYOUT_TABLE)
1464                 print_all_subvol_info_tab_head();
1465
1466         n = rb_first(&sorted_tree->root);
1467         while (n) {
1468                 entry = rb_entry(n, struct root_info, sort_node);
1469                 switch (layout) {
1470                 case BTRFS_LIST_LAYOUT_DEFAULT:
1471                         print_one_subvol_info_default(entry);
1472                         break;
1473                 case BTRFS_LIST_LAYOUT_TABLE:
1474                         print_one_subvol_info_table(entry);
1475                         break;
1476                 case BTRFS_LIST_LAYOUT_RAW:
1477                         print_one_subvol_info_raw(entry, raw_prefix);
1478                         break;
1479                 }
1480                 n = rb_next(n);
1481         }
1482 }
1483
1484 static int btrfs_list_subvols(int fd, struct root_lookup *root_lookup)
1485 {
1486         int ret;
1487
1488         ret = list_subvol_search(fd, root_lookup);
1489         if (ret) {
1490                 error("can't perform the search: %s", strerror(errno));
1491                 return ret;
1492         }
1493
1494         /*
1495          * now we have an rbtree full of root_info objects, but we need to fill
1496          * in their path names within the subvol that is referencing each one.
1497          */
1498         ret = list_subvol_fill_paths(fd, root_lookup);
1499         return ret;
1500 }
1501
1502 int btrfs_list_subvols_print(int fd, struct btrfs_list_filter_set *filter_set,
1503                        struct btrfs_list_comparer_set *comp_set,
1504                        enum btrfs_list_layout layout, int full_path,
1505                        const char *raw_prefix)
1506 {
1507         struct root_lookup root_lookup;
1508         struct root_lookup root_sort;
1509         int ret = 0;
1510         u64 top_id = 0;
1511
1512         if (full_path)
1513                 ret = btrfs_list_get_path_rootid(fd, &top_id);
1514         if (ret)
1515                 return ret;
1516
1517         ret = btrfs_list_subvols(fd, &root_lookup);
1518         if (ret)
1519                 return ret;
1520         filter_and_sort_subvol(&root_lookup, &root_sort, filter_set,
1521                                  comp_set, top_id);
1522
1523         print_all_subvol_info(&root_sort, layout, raw_prefix);
1524         rb_free_nodes(&root_lookup.root, free_root_info);
1525
1526         return 0;
1527 }
1528
1529 static char *strdup_or_null(const char *s)
1530 {
1531         if (!s)
1532                 return NULL;
1533         return strdup(s);
1534 }
1535
1536 int btrfs_get_subvol(int fd, struct root_info *the_ri)
1537 {
1538         int ret, rr;
1539         struct root_lookup rl;
1540         struct rb_node *rbn;
1541         struct root_info *ri;
1542         u64 root_id;
1543
1544         ret = btrfs_list_get_path_rootid(fd, &root_id);
1545         if (ret)
1546                 return ret;
1547
1548         ret = btrfs_list_subvols(fd, &rl);
1549         if (ret)
1550                 return ret;
1551
1552         rbn = rb_first(&rl.root);
1553         while(rbn) {
1554                 ri = rb_entry(rbn, struct root_info, rb_node);
1555                 rr = resolve_root(&rl, ri, root_id);
1556                 if (rr == -ENOENT) {
1557                         ret = -ENOENT;
1558                         rbn = rb_next(rbn);
1559                         continue;
1560                 }
1561                 if (!comp_entry_with_rootid(the_ri, ri, 0)) {
1562                         memcpy(the_ri, ri, offsetof(struct root_info, path));
1563                         the_ri->path = strdup_or_null(ri->path);
1564                         the_ri->name = strdup_or_null(ri->name);
1565                         the_ri->full_path = strdup_or_null(ri->full_path);
1566                         ret = 0;
1567                         break;
1568                 }
1569                 rbn = rb_next(rbn);
1570         }
1571         rb_free_nodes(&rl.root, free_root_info);
1572         return ret;
1573 }
1574
1575 static int print_one_extent(int fd, struct btrfs_ioctl_search_header *sh,
1576                             struct btrfs_file_extent_item *item,
1577                             u64 found_gen, u64 *cache_dirid,
1578                             char **cache_dir_name, u64 *cache_ino,
1579                             char **cache_full_name)
1580 {
1581         u64 len = 0;
1582         u64 disk_start = 0;
1583         u64 disk_offset = 0;
1584         u8 type;
1585         int compressed = 0;
1586         int flags = 0;
1587         char *name = NULL;
1588
1589         if (btrfs_search_header_objectid(sh) == *cache_ino) {
1590                 name = *cache_full_name;
1591         } else if (*cache_full_name) {
1592                 free(*cache_full_name);
1593                 *cache_full_name = NULL;
1594         }
1595         if (!name) {
1596                 name = ino_resolve(fd, btrfs_search_header_objectid(sh),
1597                                    cache_dirid,
1598                                    cache_dir_name);
1599                 *cache_full_name = name;
1600                 *cache_ino = btrfs_search_header_objectid(sh);
1601         }
1602         if (!name)
1603                 return -EIO;
1604
1605         type = btrfs_stack_file_extent_type(item);
1606         compressed = btrfs_stack_file_extent_compression(item);
1607
1608         if (type == BTRFS_FILE_EXTENT_REG ||
1609             type == BTRFS_FILE_EXTENT_PREALLOC) {
1610                 disk_start = btrfs_stack_file_extent_disk_bytenr(item);
1611                 disk_offset = btrfs_stack_file_extent_offset(item);
1612                 len = btrfs_stack_file_extent_num_bytes(item);
1613         } else if (type == BTRFS_FILE_EXTENT_INLINE) {
1614                 disk_start = 0;
1615                 disk_offset = 0;
1616                 len = btrfs_stack_file_extent_ram_bytes(item);
1617         } else {
1618                 error(
1619         "unhandled extent type %d for inode %llu file offset %llu gen %llu",
1620                         type,
1621                         (unsigned long long)btrfs_search_header_objectid(sh),
1622                         (unsigned long long)btrfs_search_header_offset(sh),
1623                         (unsigned long long)found_gen);
1624
1625                 return -EIO;
1626         }
1627         printf("inode %llu file offset %llu len %llu disk start %llu "
1628                "offset %llu gen %llu flags ",
1629                (unsigned long long)btrfs_search_header_objectid(sh),
1630                (unsigned long long)btrfs_search_header_offset(sh),
1631                (unsigned long long)len,
1632                (unsigned long long)disk_start,
1633                (unsigned long long)disk_offset,
1634                (unsigned long long)found_gen);
1635
1636         if (compressed) {
1637                 printf("COMPRESS");
1638                 flags++;
1639         }
1640         if (type == BTRFS_FILE_EXTENT_PREALLOC) {
1641                 printf("%sPREALLOC", flags ? "|" : "");
1642                 flags++;
1643         }
1644         if (type == BTRFS_FILE_EXTENT_INLINE) {
1645                 printf("%sINLINE", flags ? "|" : "");
1646                 flags++;
1647         }
1648         if (!flags)
1649                 printf("NONE");
1650
1651         printf(" %s\n", name);
1652         return 0;
1653 }
1654
1655 int btrfs_list_find_updated_files(int fd, u64 root_id, u64 oldest_gen)
1656 {
1657         int ret;
1658         struct btrfs_ioctl_search_args args;
1659         struct btrfs_ioctl_search_key *sk = &args.key;
1660         struct btrfs_ioctl_search_header sh;
1661         struct btrfs_file_extent_item *item;
1662         unsigned long off = 0;
1663         u64 found_gen;
1664         u64 max_found = 0;
1665         int i;
1666         u64 cache_dirid = 0;
1667         u64 cache_ino = 0;
1668         char *cache_dir_name = NULL;
1669         char *cache_full_name = NULL;
1670         struct btrfs_file_extent_item backup;
1671
1672         memset(&backup, 0, sizeof(backup));
1673         memset(&args, 0, sizeof(args));
1674
1675         sk->tree_id = root_id;
1676
1677         /*
1678          * set all the other params to the max, we'll take any objectid
1679          * and any trans
1680          */
1681         sk->max_objectid = (u64)-1;
1682         sk->max_offset = (u64)-1;
1683         sk->max_transid = (u64)-1;
1684         sk->max_type = BTRFS_EXTENT_DATA_KEY;
1685         sk->min_transid = oldest_gen;
1686         /* just a big number, doesn't matter much */
1687         sk->nr_items = 4096;
1688
1689         max_found = find_root_gen(fd);
1690         while(1) {
1691                 ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
1692                 if (ret < 0) {
1693                         error("can't perform the search: %s", strerror(errno));
1694                         break;
1695                 }
1696                 /* the ioctl returns the number of item it found in nr_items */
1697                 if (sk->nr_items == 0)
1698                         break;
1699
1700                 off = 0;
1701
1702                 /*
1703                  * for each item, pull the key out of the header and then
1704                  * read the root_ref item it contains
1705                  */
1706                 for (i = 0; i < sk->nr_items; i++) {
1707                         memcpy(&sh, args.buf + off, sizeof(sh));
1708                         off += sizeof(sh);
1709
1710                         /*
1711                          * just in case the item was too big, pass something other
1712                          * than garbage
1713                          */
1714                         if (sh.len == 0)
1715                                 item = &backup;
1716                         else
1717                                 item = (struct btrfs_file_extent_item *)(args.buf +
1718                                                                  off);
1719                         found_gen = btrfs_stack_file_extent_generation(item);
1720                         if (sh.type == BTRFS_EXTENT_DATA_KEY &&
1721                             found_gen >= oldest_gen) {
1722                                 print_one_extent(fd, &sh, item, found_gen,
1723                                                  &cache_dirid, &cache_dir_name,
1724                                                  &cache_ino, &cache_full_name);
1725                         }
1726                         off += sh.len;
1727
1728                         /*
1729                          * record the mins in sk so we can make sure the
1730                          * next search doesn't repeat this root
1731                          */
1732                         sk->min_objectid = sh.objectid;
1733                         sk->min_offset = sh.offset;
1734                         sk->min_type = sh.type;
1735                 }
1736                 sk->nr_items = 4096;
1737                 if (sk->min_offset < (u64)-1)
1738                         sk->min_offset++;
1739                 else if (sk->min_objectid < (u64)-1) {
1740                         sk->min_objectid++;
1741                         sk->min_offset = 0;
1742                         sk->min_type = 0;
1743                 } else
1744                         break;
1745         }
1746         free(cache_dir_name);
1747         free(cache_full_name);
1748         printf("transid marker was %llu\n", (unsigned long long)max_found);
1749         return ret;
1750 }
1751
1752 char *btrfs_list_path_for_root(int fd, u64 root)
1753 {
1754         struct root_lookup root_lookup;
1755         struct rb_node *n;
1756         char *ret_path = NULL;
1757         int ret;
1758         u64 top_id;
1759
1760         ret = btrfs_list_get_path_rootid(fd, &top_id);
1761         if (ret)
1762                 return ERR_PTR(ret);
1763
1764         ret = list_subvol_search(fd, &root_lookup);
1765         if (ret < 0)
1766                 return ERR_PTR(ret);
1767
1768         ret = list_subvol_fill_paths(fd, &root_lookup);
1769         if (ret < 0)
1770                 return ERR_PTR(ret);
1771
1772         n = rb_last(&root_lookup.root);
1773         while (n) {
1774                 struct root_info *entry;
1775
1776                 entry = rb_entry(n, struct root_info, rb_node);
1777                 ret = resolve_root(&root_lookup, entry, top_id);
1778                 if (ret == -ENOENT && entry->root_id == root) {
1779                         ret_path = NULL;
1780                         break;
1781                 }
1782                 if (entry->root_id == root) {
1783                         ret_path = entry->full_path;
1784                         entry->full_path = NULL;
1785                 }
1786
1787                 n = rb_prev(n);
1788         }
1789         rb_free_nodes(&root_lookup.root, free_root_info);
1790
1791         return ret_path;
1792 }
1793
1794 int btrfs_list_parse_sort_string(char *opt_arg,
1795                                  struct btrfs_list_comparer_set **comps)
1796 {
1797         int order;
1798         int flag;
1799         char *p;
1800         char **ptr_argv;
1801         int what_to_sort;
1802
1803         while ((p = strtok(opt_arg, ",")) != NULL) {
1804                 flag = 0;
1805                 ptr_argv = all_sort_items;
1806
1807                 while (*ptr_argv) {
1808                         if (strcmp(*ptr_argv, p) == 0) {
1809                                 flag = 1;
1810                                 break;
1811                         } else {
1812                                 p++;
1813                                 if (strcmp(*ptr_argv, p) == 0) {
1814                                         flag = 1;
1815                                         p--;
1816                                         break;
1817                                 }
1818                                 p--;
1819                         }
1820                         ptr_argv++;
1821                 }
1822
1823                 if (flag == 0)
1824                         return -1;
1825
1826                 else {
1827                         if (*p == '+') {
1828                                 order = 0;
1829                                 p++;
1830                         } else if (*p == '-') {
1831                                 order = 1;
1832                                 p++;
1833                         } else
1834                                 order = 0;
1835
1836                         what_to_sort = btrfs_list_get_sort_item(p);
1837                         btrfs_list_setup_comparer(comps, what_to_sort, order);
1838                 }
1839                 opt_arg = NULL;
1840         }
1841
1842         return 0;
1843 }
1844
1845 /*
1846  * This function is used to parse the argument of filter condition.
1847  *
1848  * type is the filter object.
1849  */
1850 int btrfs_list_parse_filter_string(char *opt_arg,
1851                                    struct btrfs_list_filter_set **filters,
1852                                    enum btrfs_list_filter_enum type)
1853 {
1854
1855         u64 arg;
1856
1857         switch (*(opt_arg++)) {
1858         case '+':
1859                 arg = arg_strtou64(opt_arg);
1860                 type += 2;
1861
1862                 btrfs_list_setup_filter(filters, type, arg);
1863                 break;
1864         case '-':
1865                 arg = arg_strtou64(opt_arg);
1866                 type += 1;
1867
1868                 btrfs_list_setup_filter(filters, type, arg);
1869                 break;
1870         default:
1871                 opt_arg--;
1872                 arg = arg_strtou64(opt_arg);
1873
1874                 btrfs_list_setup_filter(filters, type, arg);
1875                 break;
1876         }
1877
1878         return 0;
1879 }
1880
1881 int btrfs_list_get_path_rootid(int fd, u64 *treeid)
1882 {
1883         int ret;
1884
1885         ret = lookup_path_rootid(fd, treeid);
1886         if (ret < 0)
1887                 error("cannot resolve rootid for path: %s",
1888                         strerror(errno));
1889
1890         return ret;
1891 }