btrfs-progs: Use common unit parser for btrfs filesystem command
[platform/upstream/btrfs-progs.git] / cmds-fi-usage.c
1 /*
2  * This program is free software; you can redistribute it and/or
3  * modify it under the terms of the GNU General Public
4  * License v2 as published by the Free Software Foundation.
5  *
6  * This program is distributed in the hope that it will be useful,
7  * but WITHOUT ANY WARRANTY; without even the implied warranty of
8  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU
9  * General Public License for more details.
10  *
11  * You should have received a copy of the GNU General Public
12  * License along with this program; if not, write to the
13  * Free Software Foundation, Inc., 59 Temple Place - Suite 330,
14  * Boston, MA 021110-1307, USA.
15  */
16
17 #include <stdio.h>
18 #include <stdlib.h>
19 #include <string.h>
20 #include <unistd.h>
21 #include <sys/ioctl.h>
22 #include <errno.h>
23 #include <stdarg.h>
24 #include <getopt.h>
25
26 #include "utils.h"
27 #include "kerncompat.h"
28 #include "ctree.h"
29 #include "string-table.h"
30 #include "cmds-fi-usage.h"
31 #include "commands.h"
32
33 #include "version.h"
34
35 /*
36  * Add the chunk info to the chunk_info list
37  */
38 static int add_info_to_list(struct chunk_info **info_ptr,
39                         int *info_count,
40                         struct btrfs_chunk *chunk)
41 {
42
43         u64 type = btrfs_stack_chunk_type(chunk);
44         u64 size = btrfs_stack_chunk_length(chunk);
45         int num_stripes = btrfs_stack_chunk_num_stripes(chunk);
46         int j;
47
48         for (j = 0 ; j < num_stripes ; j++) {
49                 int i;
50                 struct chunk_info *p = 0;
51                 struct btrfs_stripe *stripe;
52                 u64    devid;
53
54                 stripe = btrfs_stripe_nr(chunk, j);
55                 devid = btrfs_stack_stripe_devid(stripe);
56
57                 for (i = 0 ; i < *info_count ; i++)
58                         if ((*info_ptr)[i].type == type &&
59                             (*info_ptr)[i].devid == devid &&
60                             (*info_ptr)[i].num_stripes == num_stripes ) {
61                                 p = (*info_ptr) + i;
62                                 break;
63                         }
64
65                 if (!p) {
66                         int size = sizeof(struct btrfs_chunk) * (*info_count+1);
67                         struct chunk_info *res = realloc(*info_ptr, size);
68
69                         if (!res) {
70                                 free(*info_ptr);
71                                 fprintf(stderr, "ERROR: not enough memory\n");
72                                 return -ENOMEM;
73                         }
74
75                         *info_ptr = res;
76                         p = res + *info_count;
77                         (*info_count)++;
78
79                         p->devid = devid;
80                         p->type = type;
81                         p->size = 0;
82                         p->num_stripes = num_stripes;
83                 }
84
85                 p->size += size;
86
87         }
88
89         return 0;
90
91 }
92
93 /*
94  *  Helper to sort the chunk type
95  */
96 static int cmp_chunk_block_group(u64 f1, u64 f2)
97 {
98
99         u64 mask;
100
101         if ((f1 & BTRFS_BLOCK_GROUP_TYPE_MASK) ==
102                 (f2 & BTRFS_BLOCK_GROUP_TYPE_MASK))
103                         mask = BTRFS_BLOCK_GROUP_PROFILE_MASK;
104         else if (f2 & BTRFS_BLOCK_GROUP_SYSTEM)
105                         return -1;
106         else if (f1 & BTRFS_BLOCK_GROUP_SYSTEM)
107                         return +1;
108         else
109                         mask = BTRFS_BLOCK_GROUP_TYPE_MASK;
110
111         if ((f1 & mask) > (f2 & mask))
112                 return +1;
113         else if ((f1 & mask) < (f2 & mask))
114                 return -1;
115         else
116                 return 0;
117 }
118
119 /*
120  * Helper to sort the chunk
121  */
122 static int cmp_chunk_info(const void *a, const void *b)
123 {
124         return cmp_chunk_block_group(
125                 ((struct chunk_info *)a)->type,
126                 ((struct chunk_info *)b)->type);
127 }
128
129 static int load_chunk_info(int fd, struct chunk_info **info_ptr, int *info_count)
130 {
131         int ret;
132         struct btrfs_ioctl_search_args args;
133         struct btrfs_ioctl_search_key *sk = &args.key;
134         struct btrfs_ioctl_search_header *sh;
135         unsigned long off = 0;
136         int i, e;
137
138         memset(&args, 0, sizeof(args));
139
140         /*
141          * there may be more than one ROOT_ITEM key if there are
142          * snapshots pending deletion, we have to loop through
143          * them.
144          */
145         sk->tree_id = BTRFS_CHUNK_TREE_OBJECTID;
146
147         sk->min_objectid = 0;
148         sk->max_objectid = (u64)-1;
149         sk->max_type = 0;
150         sk->min_type = (u8)-1;
151         sk->min_offset = 0;
152         sk->max_offset = (u64)-1;
153         sk->min_transid = 0;
154         sk->max_transid = (u64)-1;
155         sk->nr_items = 4096;
156
157         while (1) {
158                 ret = ioctl(fd, BTRFS_IOC_TREE_SEARCH, &args);
159                 e = errno;
160                 if (e == EPERM)
161                         return -e;
162
163                 if (ret < 0) {
164                         fprintf(stderr,
165                                 "ERROR: can't perform the search - %s\n",
166                                 strerror(e));
167                         return 1;
168                 }
169                 /* the ioctl returns the number of item it found in nr_items */
170
171                 if (sk->nr_items == 0)
172                         break;
173
174                 off = 0;
175                 for (i = 0; i < sk->nr_items; i++) {
176                         struct btrfs_chunk *item;
177                         sh = (struct btrfs_ioctl_search_header *)(args.buf +
178                                                                   off);
179
180                         off += sizeof(*sh);
181                         item = (struct btrfs_chunk *)(args.buf + off);
182
183                         ret = add_info_to_list(info_ptr, info_count, item);
184                         if (ret) {
185                                 *info_ptr = 0;
186                                 return 1;
187                         }
188
189                         off += sh->len;
190
191                         sk->min_objectid = sh->objectid;
192                         sk->min_type = sh->type;
193                         sk->min_offset = sh->offset+1;
194
195                 }
196                 if (!sk->min_offset)    /* overflow */
197                         sk->min_type++;
198                 else
199                         continue;
200
201                 if (!sk->min_type)
202                         sk->min_objectid++;
203                  else
204                         continue;
205
206                 if (!sk->min_objectid)
207                         break;
208         }
209
210         qsort(*info_ptr, *info_count, sizeof(struct chunk_info),
211                 cmp_chunk_info);
212
213         return 0;
214 }
215
216 /*
217  * Helper to sort the struct btrfs_ioctl_space_info
218  */
219 static int cmp_btrfs_ioctl_space_info(const void *a, const void *b)
220 {
221         return cmp_chunk_block_group(
222                 ((struct btrfs_ioctl_space_info *)a)->flags,
223                 ((struct btrfs_ioctl_space_info *)b)->flags);
224 }
225
226 /*
227  * This function load all the information about the space usage
228  */
229 static struct btrfs_ioctl_space_args *load_space_info(int fd, char *path)
230 {
231         struct btrfs_ioctl_space_args *sargs = 0, *sargs_orig = 0;
232         int e, ret, count;
233
234         sargs_orig = sargs = calloc(1, sizeof(struct btrfs_ioctl_space_args));
235         if (!sargs) {
236                 fprintf(stderr, "ERROR: not enough memory\n");
237                 return NULL;
238         }
239
240         sargs->space_slots = 0;
241         sargs->total_spaces = 0;
242
243         ret = ioctl(fd, BTRFS_IOC_SPACE_INFO, sargs);
244         e = errno;
245         if (ret) {
246                 fprintf(stderr,
247                         "ERROR: couldn't get space info on '%s' - %s\n",
248                         path, strerror(e));
249                 free(sargs);
250                 return NULL;
251         }
252         if (!sargs->total_spaces) {
253                 free(sargs);
254                 printf("No chunks found\n");
255                 return NULL;
256         }
257
258         count = sargs->total_spaces;
259
260         sargs = realloc(sargs, sizeof(struct btrfs_ioctl_space_args) +
261                         (count * sizeof(struct btrfs_ioctl_space_info)));
262         if (!sargs) {
263                 free(sargs_orig);
264                 fprintf(stderr, "ERROR: not enough memory\n");
265                 return NULL;
266         }
267
268         sargs->space_slots = count;
269         sargs->total_spaces = 0;
270
271         ret = ioctl(fd, BTRFS_IOC_SPACE_INFO, sargs);
272         e = errno;
273
274         if (ret) {
275                 fprintf(stderr,
276                         "ERROR: couldn't get space info on '%s' - %s\n",
277                         path, strerror(e));
278                 free(sargs);
279                 return NULL;
280         }
281
282         qsort(&(sargs->spaces), count, sizeof(struct btrfs_ioctl_space_info),
283                 cmp_btrfs_ioctl_space_info);
284
285         return sargs;
286 }
287
288 /*
289  * This function computes the space occuped by a *single* RAID5/RAID6 chunk.
290  * The computation is performed on the basis of the number of stripes
291  * which compose the chunk, which could be different from the number of devices
292  * if a disk is added later.
293  */
294 static void get_raid56_used(int fd, struct chunk_info *chunks, int chunkcount,
295                 u64 *raid5_used, u64 *raid6_used)
296 {
297         struct chunk_info *info_ptr = chunks;
298         *raid5_used = 0;
299         *raid6_used = 0;
300
301         while (chunkcount-- > 0) {
302                 if (info_ptr->type & BTRFS_BLOCK_GROUP_RAID5)
303                         (*raid5_used) += info_ptr->size / (info_ptr->num_stripes - 1);
304                 if (info_ptr->type & BTRFS_BLOCK_GROUP_RAID6)
305                         (*raid6_used) += info_ptr->size / (info_ptr->num_stripes - 2);
306                 info_ptr++;
307         }
308 }
309
310 #define MIN_UNALOCATED_THRESH   (16 * 1024 * 1024)
311 static int print_filesystem_usage_overall(int fd, struct chunk_info *chunkinfo,
312                 int chunkcount, struct device_info *devinfo, int devcount,
313                 char *path, unsigned unit_mode)
314 {
315         struct btrfs_ioctl_space_args *sargs = 0;
316         int i;
317         int ret = 0;
318         int width = 10;         /* default 10 for human units */
319         /*
320          * r_* prefix is for raw data
321          * l_* is for logical
322          */
323         u64 r_total_size = 0;   /* filesystem size, sum of device sizes */
324         u64 r_total_chunks = 0; /* sum of chunks sizes on disk(s) */
325         u64 r_total_used = 0;
326         u64 r_total_unused = 0;
327         u64 r_total_missing = 0;        /* sum of missing devices size */
328         u64 r_data_used = 0;
329         u64 r_data_chunks = 0;
330         u64 l_data_chunks = 0;
331         u64 r_metadata_used = 0;
332         u64 r_metadata_chunks = 0;
333         u64 l_metadata_chunks = 0;
334         u64 r_system_used = 0;
335         u64 r_system_chunks = 0;
336         double data_ratio;
337         double metadata_ratio;
338         /* logical */
339         u64 raid5_used = 0;
340         u64 raid6_used = 0;
341         u64 l_global_reserve = 0;
342         u64 l_global_reserve_used = 0;
343         u64 free_estimated = 0;
344         u64 free_min = 0;
345         int max_data_ratio = 1;
346
347         sargs = load_space_info(fd, path);
348         if (!sargs) {
349                 ret = 1;
350                 goto exit;
351         }
352
353         r_total_size = 0;
354         for (i = 0; i < devcount; i++) {
355                 r_total_size += devinfo[i].size;
356                 if (!devinfo[i].device_size)
357                         r_total_missing += devinfo[i].size;
358         }
359
360         if (r_total_size == 0) {
361                 fprintf(stderr,
362                         "ERROR: couldn't get space info on '%s' - %s\n",
363                         path, strerror(errno));
364
365                 ret = 1;
366                 goto exit;
367         }
368         get_raid56_used(fd, chunkinfo, chunkcount, &raid5_used, &raid6_used);
369
370         for (i = 0; i < sargs->total_spaces; i++) {
371                 int ratio;
372                 u64 flags = sargs->spaces[i].flags;
373
374                 /*
375                  * The raid5/raid6 ratio depends by the stripes number
376                  * used by every chunk. It is computed separately
377                  */
378                 if (flags & BTRFS_BLOCK_GROUP_RAID0)
379                         ratio = 1;
380                 else if (flags & BTRFS_BLOCK_GROUP_RAID1)
381                         ratio = 2;
382                 else if (flags & BTRFS_BLOCK_GROUP_RAID5)
383                         ratio = 0;
384                 else if (flags & BTRFS_BLOCK_GROUP_RAID6)
385                         ratio = 0;
386                 else if (flags & BTRFS_BLOCK_GROUP_DUP)
387                         ratio = 2;
388                 else if (flags & BTRFS_BLOCK_GROUP_RAID10)
389                         ratio = 2;
390                 else
391                         ratio = 1;
392
393                 if (!ratio)
394                         fprintf(stderr, "WARNING: RAID56 detected, not implemented\n");
395
396                 if (ratio > max_data_ratio)
397                         max_data_ratio = ratio;
398
399                 if (flags & BTRFS_SPACE_INFO_GLOBAL_RSV) {
400                         l_global_reserve = sargs->spaces[i].total_bytes;
401                         l_global_reserve_used = sargs->spaces[i].used_bytes;
402                 }
403                 if ((flags & (BTRFS_BLOCK_GROUP_DATA | BTRFS_BLOCK_GROUP_METADATA))
404                         == (BTRFS_BLOCK_GROUP_DATA | BTRFS_BLOCK_GROUP_METADATA)) {
405                         fprintf(stderr, "WARNING: MIXED blockgroups not handled\n");
406                 }
407
408                 if (flags & BTRFS_BLOCK_GROUP_DATA) {
409                         r_data_used += sargs->spaces[i].used_bytes * ratio;
410                         r_data_chunks += sargs->spaces[i].total_bytes * ratio;
411                         l_data_chunks += sargs->spaces[i].total_bytes;
412                 }
413                 if (flags & BTRFS_BLOCK_GROUP_METADATA) {
414                         r_metadata_used += sargs->spaces[i].used_bytes * ratio;
415                         r_metadata_chunks += sargs->spaces[i].total_bytes * ratio;
416                         l_metadata_chunks += sargs->spaces[i].total_bytes;
417                 }
418                 if (flags & BTRFS_BLOCK_GROUP_SYSTEM) {
419                         r_system_used += sargs->spaces[i].used_bytes * ratio;
420                         r_system_chunks += sargs->spaces[i].total_bytes * ratio;
421                 }
422         }
423
424         r_total_chunks = r_data_chunks + r_metadata_chunks + r_system_chunks;
425         r_total_used = r_data_used + r_metadata_used + r_system_used;
426         r_total_unused = r_total_size - r_total_chunks;
427
428         /* Raw / Logical = raid factor, >= 1 */
429         data_ratio = (double)r_data_chunks / l_data_chunks;
430         metadata_ratio = (double)r_metadata_chunks / l_metadata_chunks;
431
432 #if 0
433         /* add the raid5/6 allocated space */
434         total_chunks += raid5_used + raid6_used;
435 #endif
436
437         /*
438          * We're able to fill at least DATA for the unused space
439          *
440          * With mixed raid levels, this gives a rough estimate but more
441          * accurate than just counting the logical free space
442          * (l_data_chunks - l_data_used)
443          *
444          * In non-mixed case there's no difference.
445          */
446         free_estimated = (r_data_chunks - r_data_used) / data_ratio;
447         free_min = free_estimated;
448
449         /* Chop unallocatable space */
450         /* FIXME: must be applied per device */
451         if (r_total_unused >= MIN_UNALOCATED_THRESH) {
452                 free_estimated += r_total_unused / data_ratio;
453                 /* Match the calculation of 'df', use the highest raid ratio */
454                 free_min += r_total_unused / max_data_ratio;
455         }
456
457         if (unit_mode != UNITS_HUMAN)
458                 width = 18;
459
460         printf("Overall:\n");
461
462         printf("    Device size:\t\t%*s\n", width,
463                 pretty_size_mode(r_total_size, unit_mode));
464         printf("    Device allocated:\t\t%*s\n", width,
465                 pretty_size_mode(r_total_chunks, unit_mode));
466         printf("    Device unallocated:\t\t%*s\n", width,
467                 pretty_size_mode(r_total_unused, unit_mode));
468         printf("    Device missing:\t\t%*s\n", width,
469                 pretty_size_mode(r_total_missing, unit_mode));
470         printf("    Used:\t\t\t%*s\n", width,
471                 pretty_size_mode(r_total_used, unit_mode));
472         printf("    Free (estimated):\t\t%*s\t(",
473                 width,
474                 pretty_size_mode(free_estimated, unit_mode));
475         printf("min: %s)\n", pretty_size_mode(free_min, unit_mode));
476         printf("    Data ratio:\t\t\t%*.2f\n",
477                 width, data_ratio);
478         printf("    Metadata ratio:\t\t%*.2f\n",
479                 width, metadata_ratio);
480         printf("    Global reserve:\t\t%*s\t(used: %s)\n", width,
481                 pretty_size_mode(l_global_reserve, unit_mode),
482                 pretty_size_mode(l_global_reserve_used, unit_mode));
483
484 exit:
485
486         if (sargs)
487                 free(sargs);
488
489         return ret;
490 }
491
492 /*
493  *  Helper to sort the device_info structure
494  */
495 static int cmp_device_info(const void *a, const void *b)
496 {
497         return strcmp(((struct device_info *)a)->path,
498                         ((struct device_info *)b)->path);
499 }
500
501 /*
502  *  This function loads the device_info structure and put them in an array
503  */
504 static int load_device_info(int fd, struct device_info **device_info_ptr,
505                            int *device_info_count)
506 {
507         int ret, i, ndevs, e;
508         struct btrfs_ioctl_fs_info_args fi_args;
509         struct btrfs_ioctl_dev_info_args dev_info;
510         struct device_info *info;
511
512         *device_info_count = 0;
513         *device_info_ptr = 0;
514
515         ret = ioctl(fd, BTRFS_IOC_FS_INFO, &fi_args);
516         e = errno;
517         if (e == EPERM)
518                 return -e;
519         if (ret < 0) {
520                 fprintf(stderr, "ERROR: cannot get filesystem info - %s\n",
521                                 strerror(e));
522                 return 1;
523         }
524
525         info = calloc(fi_args.num_devices, sizeof(struct device_info));
526         if (!info) {
527                 fprintf(stderr, "ERROR: not enough memory\n");
528                 return 1;
529         }
530
531         for (i = 0, ndevs = 0 ; i <= fi_args.max_id ; i++) {
532                 BUG_ON(ndevs >= fi_args.num_devices);
533                 memset(&dev_info, 0, sizeof(dev_info));
534                 ret = get_device_info(fd, i, &dev_info);
535
536                 if (ret == -ENODEV)
537                         continue;
538                 if (ret) {
539                         fprintf(stderr,
540                             "ERROR: cannot get info about device devid=%d\n",
541                             i);
542                         free(info);
543                         return ret;
544                 }
545
546                 info[ndevs].devid = dev_info.devid;
547                 if (!dev_info.path[0]) {
548                         strcpy(info[ndevs].path, "missing");
549                 } else {
550                         strcpy(info[ndevs].path, (char *)dev_info.path);
551                         info[ndevs].device_size =
552                                 get_partition_size((char *)dev_info.path);
553                 }
554                 info[ndevs].size = dev_info.total_bytes;
555                 ++ndevs;
556         }
557
558         BUG_ON(ndevs != fi_args.num_devices);
559         qsort(info, fi_args.num_devices,
560                 sizeof(struct device_info), cmp_device_info);
561
562         *device_info_count = fi_args.num_devices;
563         *device_info_ptr = info;
564
565         return 0;
566 }
567
568 int load_chunk_and_device_info(int fd, struct chunk_info **chunkinfo,
569                 int *chunkcount, struct device_info **devinfo, int *devcount)
570 {
571         int ret;
572
573         ret = load_chunk_info(fd, chunkinfo, chunkcount);
574         if (ret == -EPERM) {
575                 fprintf(stderr,
576                         "WARNING: can't read detailed chunk info, RAID5/6 numbers will be incorrect, run as root\n");
577         } else if (ret) {
578                 return ret;
579         }
580
581         ret = load_device_info(fd, devinfo, devcount);
582         if (ret == -EPERM) {
583                 fprintf(stderr,
584                         "WARNING: can't get filesystem info from ioctl(FS_INFO), run as root\n");
585                 ret = 0;
586         }
587
588         return ret;
589 }
590
591 /*
592  *  This function computes the size of a chunk in a disk
593  */
594 static u64 calc_chunk_size(struct chunk_info *ci)
595 {
596         if (ci->type & BTRFS_BLOCK_GROUP_RAID0)
597                 return ci->size / ci->num_stripes;
598         else if (ci->type & BTRFS_BLOCK_GROUP_RAID1)
599                 return ci->size ;
600         else if (ci->type & BTRFS_BLOCK_GROUP_DUP)
601                 return ci->size ;
602         else if (ci->type & BTRFS_BLOCK_GROUP_RAID5)
603                 return ci->size / (ci->num_stripes -1);
604         else if (ci->type & BTRFS_BLOCK_GROUP_RAID6)
605                 return ci->size / (ci->num_stripes -2);
606         else if (ci->type & BTRFS_BLOCK_GROUP_RAID10)
607                 return ci->size / ci->num_stripes;
608         return ci->size;
609 }
610
611 /*
612  *  This function print the results of the command "btrfs fi usage"
613  *  in tabular format
614  */
615 static void _cmd_filesystem_usage_tabular(unsigned unit_mode,
616                                         struct btrfs_ioctl_space_args *sargs,
617                                         struct chunk_info *chunks_info_ptr,
618                                         int chunks_info_count,
619                                         struct device_info *device_info_ptr,
620                                         int device_info_count)
621 {
622         int i;
623         u64 total_unused = 0;
624         struct string_table *matrix = 0;
625         int  ncols, nrows;
626
627         ncols = sargs->total_spaces + 2;
628         nrows = 2 + 1 + device_info_count + 1 + 2;
629
630         matrix = table_create(ncols, nrows);
631         if (!matrix) {
632                 fprintf(stderr, "ERROR: not enough memory\n");
633                 return;
634         }
635
636         /* header */
637         for (i = 0; i < sargs->total_spaces; i++) {
638                 const char *description;
639                 u64 flags = sargs->spaces[i].flags;
640
641                 if (flags & BTRFS_SPACE_INFO_GLOBAL_RSV)
642                         continue;
643
644                 description = btrfs_group_type_str(flags);
645
646                 table_printf(matrix, 1+i, 0, "<%s", description);
647         }
648
649         for (i = 0; i < sargs->total_spaces; i++) {
650                 const char *r_mode;
651
652                 u64 flags = sargs->spaces[i].flags;
653                 r_mode = btrfs_group_profile_str(flags);
654
655                 table_printf(matrix, 1+i, 1, "<%s", r_mode);
656         }
657
658         table_printf(matrix, 1+sargs->total_spaces, 1, "<Unallocated");
659
660         /* body */
661         for (i = 0; i < device_info_count; i++) {
662                 int k, col;
663                 char *p;
664
665                 u64  total_allocated = 0, unused;
666
667                 p = strrchr(device_info_ptr[i].path, '/');
668                 if (!p)
669                         p = device_info_ptr[i].path;
670                 else
671                         p++;
672
673                 table_printf(matrix, 0, i + 3, "<%s", device_info_ptr[i].path);
674
675                 for (col = 1, k = 0 ; k < sargs->total_spaces ; k++)  {
676                         u64     flags = sargs->spaces[k].flags;
677                         u64 devid = device_info_ptr[i].devid;
678                         int     j;
679                         u64 size = 0;
680
681                         for (j = 0 ; j < chunks_info_count ; j++) {
682                                 if (chunks_info_ptr[j].type != flags )
683                                                 continue;
684                                 if (chunks_info_ptr[j].devid != devid)
685                                                 continue;
686
687                                 size += calc_chunk_size(chunks_info_ptr+j);
688                         }
689
690                         if (size)
691                                 table_printf(matrix, col, i+3,
692                                         ">%s", pretty_size_mode(size, unit_mode));
693                         else
694                                 table_printf(matrix, col, i+3, ">-");
695
696                         total_allocated += size;
697                         col++;
698                 }
699
700                 unused = get_partition_size(device_info_ptr[i].path)
701                                 - total_allocated;
702
703                 table_printf(matrix, sargs->total_spaces + 1, i + 3,
704                                ">%s", pretty_size_mode(unused, unit_mode));
705                 total_unused += unused;
706
707         }
708
709         for (i = 0; i <= sargs->total_spaces; i++)
710                 table_printf(matrix, i + 1, device_info_count + 3, "=");
711
712         /* footer */
713         table_printf(matrix, 0, device_info_count + 4, "<Total");
714         for (i = 0; i < sargs->total_spaces; i++)
715                 table_printf(matrix, 1 + i, device_info_count + 4, ">%s",
716                         pretty_size_mode(sargs->spaces[i].total_bytes, unit_mode));
717
718         table_printf(matrix, sargs->total_spaces + 1, device_info_count + 4,
719                         ">%s", pretty_size_mode(total_unused, unit_mode));
720
721         table_printf(matrix, 0, device_info_count + 5, "<Used");
722         for (i = 0; i < sargs->total_spaces; i++)
723                 table_printf(matrix, 1 + i, device_info_count+5, ">%s",
724                         pretty_size_mode(sargs->spaces[i].used_bytes, unit_mode));
725
726         table_dump(matrix);
727         table_free(matrix);
728 }
729
730 /*
731  *  This function prints the unused space per every disk
732  */
733 static void print_unused(struct chunk_info *info_ptr,
734                           int info_count,
735                           struct device_info *device_info_ptr,
736                           int device_info_count,
737                           unsigned unit_mode)
738 {
739         int i;
740         for (i = 0; i < device_info_count; i++) {
741                 int     j;
742                 u64     total = 0;
743
744                 for (j = 0; j < info_count; j++)
745                         if (info_ptr[j].devid == device_info_ptr[i].devid)
746                                 total += calc_chunk_size(info_ptr+j);
747
748                 printf("   %s\t%10s\n",
749                         device_info_ptr[i].path,
750                         pretty_size_mode(device_info_ptr[i].size - total,
751                                 unit_mode));
752         }
753 }
754
755 /*
756  *  This function prints the allocated chunk per every disk
757  */
758 static void print_chunk_device(u64 chunk_type,
759                                 struct chunk_info *chunks_info_ptr,
760                                 int chunks_info_count,
761                                 struct device_info *device_info_ptr,
762                                 int device_info_count,
763                                 unsigned unit_mode)
764 {
765         int i;
766
767         for (i = 0; i < device_info_count; i++) {
768                 int     j;
769                 u64     total = 0;
770
771                 for (j = 0; j < chunks_info_count; j++) {
772
773                         if (chunks_info_ptr[j].type != chunk_type)
774                                 continue;
775                         if (chunks_info_ptr[j].devid != device_info_ptr[i].devid)
776                                 continue;
777
778                         total += calc_chunk_size(&(chunks_info_ptr[j]));
779                         //total += chunks_info_ptr[j].size;
780                 }
781
782                 if (total > 0)
783                         printf("   %s\t%10s\n",
784                                 device_info_ptr[i].path,
785                                 pretty_size_mode(total, unit_mode));
786         }
787 }
788
789 /*
790  *  This function print the results of the command "btrfs fi usage"
791  *  in linear format
792  */
793 static void _cmd_filesystem_usage_linear(unsigned unit_mode,
794                                         struct btrfs_ioctl_space_args *sargs,
795                                         struct chunk_info *info_ptr,
796                                         int info_count,
797                                         struct device_info *device_info_ptr,
798                                         int device_info_count)
799 {
800         int i;
801
802         for (i = 0; i < sargs->total_spaces; i++) {
803                 const char *description;
804                 const char *r_mode;
805                 u64 flags = sargs->spaces[i].flags;
806
807                 if (flags & BTRFS_SPACE_INFO_GLOBAL_RSV)
808                         continue;
809
810                 description = btrfs_group_type_str(flags);
811                 r_mode = btrfs_group_profile_str(flags);
812
813                 printf("%s,%s: Size:%s, ",
814                         description,
815                         r_mode,
816                         pretty_size_mode(sargs->spaces[i].total_bytes,
817                                 unit_mode));
818                 printf("Used:%s\n",
819                         pretty_size_mode(sargs->spaces[i].used_bytes, unit_mode));
820                 print_chunk_device(flags, info_ptr, info_count,
821                                 device_info_ptr, device_info_count, unit_mode);
822                 printf("\n");
823         }
824
825         printf("Unallocated:\n");
826         print_unused(info_ptr, info_count, device_info_ptr, device_info_count,
827                         unit_mode);
828 }
829
830 static int print_filesystem_usage_by_chunk(int fd,
831                 struct chunk_info *chunkinfo, int chunkcount,
832                 struct device_info *devinfo, int devcount,
833                 char *path, unsigned unit_mode, int tabular)
834 {
835         struct btrfs_ioctl_space_args *sargs;
836         int ret = 0;
837
838         if (!chunkinfo)
839                 return 0;
840
841         sargs = load_space_info(fd, path);
842         if (!sargs) {
843                 ret = 1;
844                 goto out;
845         }
846
847         if (tabular)
848                 _cmd_filesystem_usage_tabular(unit_mode, sargs, chunkinfo,
849                                 chunkcount, devinfo, devcount);
850         else
851                 _cmd_filesystem_usage_linear(unit_mode, sargs, chunkinfo,
852                                 chunkcount, devinfo, devcount);
853
854         free(sargs);
855 out:
856         return ret;
857 }
858
859 const char * const cmd_filesystem_usage_usage[] = {
860         "btrfs filesystem usage [options] <path> [<path>..]",
861         "Show detailed information about internal filesystem usage .",
862         HELPINFO_OUTPUT_UNIT_DF,
863         "-T                 show data in tabular format",
864         NULL
865 };
866
867 int cmd_filesystem_usage(int argc, char **argv)
868 {
869         int ret = 0;
870         unsigned unit_mode;
871         int i;
872         int more_than_one = 0;
873         int tabular = 0;
874
875         unit_mode = get_unit_mode_from_arg(&argc, argv, 1);
876
877         optind = 1;
878         while (1) {
879                 int c;
880
881                 c = getopt(argc, argv, "T");
882                 if (c < 0)
883                         break;
884
885                 switch (c) {
886                 case 'T':
887                         tabular = 1;
888                         break;
889                 default:
890                         usage(cmd_filesystem_usage_usage);
891                 }
892         }
893
894         if (check_argc_min(argc - optind, 1))
895                 usage(cmd_filesystem_usage_usage);
896
897         for (i = optind; i < argc; i++) {
898                 int fd;
899                 DIR *dirstream = NULL;
900                 struct chunk_info *chunkinfo = NULL;
901                 struct device_info *devinfo = NULL;
902                 int chunkcount = 0;
903                 int devcount = 0;
904
905                 fd = open_file_or_dir(argv[i], &dirstream);
906                 if (fd < 0) {
907                         fprintf(stderr, "ERROR: can't access '%s'\n",
908                                 argv[i]);
909                         ret = 1;
910                         goto out;
911                 }
912                 if (more_than_one)
913                         printf("\n");
914
915                 ret = load_chunk_and_device_info(fd, &chunkinfo, &chunkcount,
916                                 &devinfo, &devcount);
917                 if (ret)
918                         goto cleanup;
919
920                 ret = print_filesystem_usage_overall(fd, chunkinfo, chunkcount,
921                                 devinfo, devcount, argv[i], unit_mode);
922                 if (ret)
923                         goto cleanup;
924                 printf("\n");
925                 ret = print_filesystem_usage_by_chunk(fd, chunkinfo, chunkcount,
926                                 devinfo, devcount, argv[i], unit_mode, tabular);
927 cleanup:
928                 close_file_or_dir(fd, dirstream);
929                 free(chunkinfo);
930                 free(devinfo);
931
932                 if (ret)
933                         goto out;
934                 more_than_one = 1;
935         }
936
937 out:
938         return !!ret;
939 }
940
941 void print_device_chunks(int fd, struct device_info *devinfo,
942                 struct chunk_info *chunks_info_ptr,
943                 int chunks_info_count, unsigned unit_mode)
944 {
945         int i;
946         u64 allocated = 0;
947
948         for (i = 0 ; i < chunks_info_count ; i++) {
949                 const char *description;
950                 const char *r_mode;
951                 u64 flags;
952                 u64 size;
953
954                 if (chunks_info_ptr[i].devid != devinfo->devid)
955                         continue;
956
957                 flags = chunks_info_ptr[i].type;
958
959                 description = btrfs_group_type_str(flags);
960                 r_mode = btrfs_group_profile_str(flags);
961                 size = calc_chunk_size(chunks_info_ptr+i);
962                 printf("   %s,%s:%*s%10s\n",
963                         description,
964                         r_mode,
965                         (int)(20 - strlen(description) - strlen(r_mode)), "",
966                         pretty_size_mode(size, unit_mode));
967
968                 allocated += size;
969
970         }
971         printf("   Unallocated: %*s%10s\n",
972                 (int)(20 - strlen("Unallocated")), "",
973                 pretty_size_mode(devinfo->size - allocated, unit_mode));
974 }
975
976 void print_device_sizes(int fd, struct device_info *devinfo, unsigned unit_mode)
977 {
978         printf("   Device size: %*s%10s\n",
979                 (int)(20 - strlen("Device size")), "",
980                 pretty_size_mode(devinfo->device_size, unit_mode));
981 #if 0
982         /*
983          * The term has not seen an agreement and we don't want to change it
984          * once it's in non-development branches or even released.
985          */
986         printf("   FS occupied: %*s%10s\n",
987                 (int)(20 - strlen("FS occupied")), "",
988                 pretty_size_mode(devinfo->size, unit_mode));
989 #endif
990 }