mru: use double-linked list from list.h
[git] / builtin / pack-objects.c
1 #include "builtin.h"
2 #include "cache.h"
3 #include "config.h"
4 #include "attr.h"
5 #include "object.h"
6 #include "blob.h"
7 #include "commit.h"
8 #include "tag.h"
9 #include "tree.h"
10 #include "delta.h"
11 #include "pack.h"
12 #include "pack-revindex.h"
13 #include "csum-file.h"
14 #include "tree-walk.h"
15 #include "diff.h"
16 #include "revision.h"
17 #include "list-objects.h"
18 #include "pack-objects.h"
19 #include "progress.h"
20 #include "refs.h"
21 #include "streaming.h"
22 #include "thread-utils.h"
23 #include "pack-bitmap.h"
24 #include "reachable.h"
25 #include "sha1-array.h"
26 #include "argv-array.h"
27 #include "mru.h"
28 #include "packfile.h"
29
30 static const char *pack_usage[] = {
31         N_("git pack-objects --stdout [<options>...] [< <ref-list> | < <object-list>]"),
32         N_("git pack-objects [<options>...] <base-name> [< <ref-list> | < <object-list>]"),
33         NULL
34 };
35
36 /*
37  * Objects we are going to pack are collected in the `to_pack` structure.
38  * It contains an array (dynamically expanded) of the object data, and a map
39  * that can resolve SHA1s to their position in the array.
40  */
41 static struct packing_data to_pack;
42
43 static struct pack_idx_entry **written_list;
44 static uint32_t nr_result, nr_written;
45
46 static int non_empty;
47 static int reuse_delta = 1, reuse_object = 1;
48 static int keep_unreachable, unpack_unreachable, include_tag;
49 static timestamp_t unpack_unreachable_expiration;
50 static int pack_loose_unreachable;
51 static int local;
52 static int have_non_local_packs;
53 static int incremental;
54 static int ignore_packed_keep;
55 static int allow_ofs_delta;
56 static struct pack_idx_option pack_idx_opts;
57 static const char *base_name;
58 static int progress = 1;
59 static int window = 10;
60 static unsigned long pack_size_limit;
61 static int depth = 50;
62 static int delta_search_threads;
63 static int pack_to_stdout;
64 static int num_preferred_base;
65 static struct progress *progress_state;
66
67 static struct packed_git *reuse_packfile;
68 static uint32_t reuse_packfile_objects;
69 static off_t reuse_packfile_offset;
70
71 static int use_bitmap_index_default = 1;
72 static int use_bitmap_index = -1;
73 static int write_bitmap_index;
74 static uint16_t write_bitmap_options;
75
76 static unsigned long delta_cache_size = 0;
77 static unsigned long max_delta_cache_size = 256 * 1024 * 1024;
78 static unsigned long cache_max_small_delta_size = 1000;
79
80 static unsigned long window_memory_limit = 0;
81
82 /*
83  * stats
84  */
85 static uint32_t written, written_delta;
86 static uint32_t reused, reused_delta;
87
88 /*
89  * Indexed commits
90  */
91 static struct commit **indexed_commits;
92 static unsigned int indexed_commits_nr;
93 static unsigned int indexed_commits_alloc;
94
95 static void index_commit_for_bitmap(struct commit *commit)
96 {
97         if (indexed_commits_nr >= indexed_commits_alloc) {
98                 indexed_commits_alloc = (indexed_commits_alloc + 32) * 2;
99                 REALLOC_ARRAY(indexed_commits, indexed_commits_alloc);
100         }
101
102         indexed_commits[indexed_commits_nr++] = commit;
103 }
104
105 static void *get_delta(struct object_entry *entry)
106 {
107         unsigned long size, base_size, delta_size;
108         void *buf, *base_buf, *delta_buf;
109         enum object_type type;
110
111         buf = read_sha1_file(entry->idx.oid.hash, &type, &size);
112         if (!buf)
113                 die("unable to read %s", oid_to_hex(&entry->idx.oid));
114         base_buf = read_sha1_file(entry->delta->idx.oid.hash, &type,
115                                   &base_size);
116         if (!base_buf)
117                 die("unable to read %s",
118                     oid_to_hex(&entry->delta->idx.oid));
119         delta_buf = diff_delta(base_buf, base_size,
120                                buf, size, &delta_size, 0);
121         if (!delta_buf || delta_size != entry->delta_size)
122                 die("delta size changed");
123         free(buf);
124         free(base_buf);
125         return delta_buf;
126 }
127
128 static unsigned long do_compress(void **pptr, unsigned long size)
129 {
130         git_zstream stream;
131         void *in, *out;
132         unsigned long maxsize;
133
134         git_deflate_init(&stream, pack_compression_level);
135         maxsize = git_deflate_bound(&stream, size);
136
137         in = *pptr;
138         out = xmalloc(maxsize);
139         *pptr = out;
140
141         stream.next_in = in;
142         stream.avail_in = size;
143         stream.next_out = out;
144         stream.avail_out = maxsize;
145         while (git_deflate(&stream, Z_FINISH) == Z_OK)
146                 ; /* nothing */
147         git_deflate_end(&stream);
148
149         free(in);
150         return stream.total_out;
151 }
152
153 static unsigned long write_large_blob_data(struct git_istream *st, struct sha1file *f,
154                                            const unsigned char *sha1)
155 {
156         git_zstream stream;
157         unsigned char ibuf[1024 * 16];
158         unsigned char obuf[1024 * 16];
159         unsigned long olen = 0;
160
161         git_deflate_init(&stream, pack_compression_level);
162
163         for (;;) {
164                 ssize_t readlen;
165                 int zret = Z_OK;
166                 readlen = read_istream(st, ibuf, sizeof(ibuf));
167                 if (readlen == -1)
168                         die(_("unable to read %s"), sha1_to_hex(sha1));
169
170                 stream.next_in = ibuf;
171                 stream.avail_in = readlen;
172                 while ((stream.avail_in || readlen == 0) &&
173                        (zret == Z_OK || zret == Z_BUF_ERROR)) {
174                         stream.next_out = obuf;
175                         stream.avail_out = sizeof(obuf);
176                         zret = git_deflate(&stream, readlen ? 0 : Z_FINISH);
177                         sha1write(f, obuf, stream.next_out - obuf);
178                         olen += stream.next_out - obuf;
179                 }
180                 if (stream.avail_in)
181                         die(_("deflate error (%d)"), zret);
182                 if (readlen == 0) {
183                         if (zret != Z_STREAM_END)
184                                 die(_("deflate error (%d)"), zret);
185                         break;
186                 }
187         }
188         git_deflate_end(&stream);
189         return olen;
190 }
191
192 /*
193  * we are going to reuse the existing object data as is.  make
194  * sure it is not corrupt.
195  */
196 static int check_pack_inflate(struct packed_git *p,
197                 struct pack_window **w_curs,
198                 off_t offset,
199                 off_t len,
200                 unsigned long expect)
201 {
202         git_zstream stream;
203         unsigned char fakebuf[4096], *in;
204         int st;
205
206         memset(&stream, 0, sizeof(stream));
207         git_inflate_init(&stream);
208         do {
209                 in = use_pack(p, w_curs, offset, &stream.avail_in);
210                 stream.next_in = in;
211                 stream.next_out = fakebuf;
212                 stream.avail_out = sizeof(fakebuf);
213                 st = git_inflate(&stream, Z_FINISH);
214                 offset += stream.next_in - in;
215         } while (st == Z_OK || st == Z_BUF_ERROR);
216         git_inflate_end(&stream);
217         return (st == Z_STREAM_END &&
218                 stream.total_out == expect &&
219                 stream.total_in == len) ? 0 : -1;
220 }
221
222 static void copy_pack_data(struct sha1file *f,
223                 struct packed_git *p,
224                 struct pack_window **w_curs,
225                 off_t offset,
226                 off_t len)
227 {
228         unsigned char *in;
229         unsigned long avail;
230
231         while (len) {
232                 in = use_pack(p, w_curs, offset, &avail);
233                 if (avail > len)
234                         avail = (unsigned long)len;
235                 sha1write(f, in, avail);
236                 offset += avail;
237                 len -= avail;
238         }
239 }
240
241 /* Return 0 if we will bust the pack-size limit */
242 static unsigned long write_no_reuse_object(struct sha1file *f, struct object_entry *entry,
243                                            unsigned long limit, int usable_delta)
244 {
245         unsigned long size, datalen;
246         unsigned char header[MAX_PACK_OBJECT_HEADER],
247                       dheader[MAX_PACK_OBJECT_HEADER];
248         unsigned hdrlen;
249         enum object_type type;
250         void *buf;
251         struct git_istream *st = NULL;
252
253         if (!usable_delta) {
254                 if (entry->type == OBJ_BLOB &&
255                     entry->size > big_file_threshold &&
256                     (st = open_istream(entry->idx.oid.hash, &type, &size, NULL)) != NULL)
257                         buf = NULL;
258                 else {
259                         buf = read_sha1_file(entry->idx.oid.hash, &type,
260                                              &size);
261                         if (!buf)
262                                 die(_("unable to read %s"),
263                                     oid_to_hex(&entry->idx.oid));
264                 }
265                 /*
266                  * make sure no cached delta data remains from a
267                  * previous attempt before a pack split occurred.
268                  */
269                 FREE_AND_NULL(entry->delta_data);
270                 entry->z_delta_size = 0;
271         } else if (entry->delta_data) {
272                 size = entry->delta_size;
273                 buf = entry->delta_data;
274                 entry->delta_data = NULL;
275                 type = (allow_ofs_delta && entry->delta->idx.offset) ?
276                         OBJ_OFS_DELTA : OBJ_REF_DELTA;
277         } else {
278                 buf = get_delta(entry);
279                 size = entry->delta_size;
280                 type = (allow_ofs_delta && entry->delta->idx.offset) ?
281                         OBJ_OFS_DELTA : OBJ_REF_DELTA;
282         }
283
284         if (st) /* large blob case, just assume we don't compress well */
285                 datalen = size;
286         else if (entry->z_delta_size)
287                 datalen = entry->z_delta_size;
288         else
289                 datalen = do_compress(&buf, size);
290
291         /*
292          * The object header is a byte of 'type' followed by zero or
293          * more bytes of length.
294          */
295         hdrlen = encode_in_pack_object_header(header, sizeof(header),
296                                               type, size);
297
298         if (type == OBJ_OFS_DELTA) {
299                 /*
300                  * Deltas with relative base contain an additional
301                  * encoding of the relative offset for the delta
302                  * base from this object's position in the pack.
303                  */
304                 off_t ofs = entry->idx.offset - entry->delta->idx.offset;
305                 unsigned pos = sizeof(dheader) - 1;
306                 dheader[pos] = ofs & 127;
307                 while (ofs >>= 7)
308                         dheader[--pos] = 128 | (--ofs & 127);
309                 if (limit && hdrlen + sizeof(dheader) - pos + datalen + 20 >= limit) {
310                         if (st)
311                                 close_istream(st);
312                         free(buf);
313                         return 0;
314                 }
315                 sha1write(f, header, hdrlen);
316                 sha1write(f, dheader + pos, sizeof(dheader) - pos);
317                 hdrlen += sizeof(dheader) - pos;
318         } else if (type == OBJ_REF_DELTA) {
319                 /*
320                  * Deltas with a base reference contain
321                  * an additional 20 bytes for the base sha1.
322                  */
323                 if (limit && hdrlen + 20 + datalen + 20 >= limit) {
324                         if (st)
325                                 close_istream(st);
326                         free(buf);
327                         return 0;
328                 }
329                 sha1write(f, header, hdrlen);
330                 sha1write(f, entry->delta->idx.oid.hash, 20);
331                 hdrlen += 20;
332         } else {
333                 if (limit && hdrlen + datalen + 20 >= limit) {
334                         if (st)
335                                 close_istream(st);
336                         free(buf);
337                         return 0;
338                 }
339                 sha1write(f, header, hdrlen);
340         }
341         if (st) {
342                 datalen = write_large_blob_data(st, f, entry->idx.oid.hash);
343                 close_istream(st);
344         } else {
345                 sha1write(f, buf, datalen);
346                 free(buf);
347         }
348
349         return hdrlen + datalen;
350 }
351
352 /* Return 0 if we will bust the pack-size limit */
353 static off_t write_reuse_object(struct sha1file *f, struct object_entry *entry,
354                                 unsigned long limit, int usable_delta)
355 {
356         struct packed_git *p = entry->in_pack;
357         struct pack_window *w_curs = NULL;
358         struct revindex_entry *revidx;
359         off_t offset;
360         enum object_type type = entry->type;
361         off_t datalen;
362         unsigned char header[MAX_PACK_OBJECT_HEADER],
363                       dheader[MAX_PACK_OBJECT_HEADER];
364         unsigned hdrlen;
365
366         if (entry->delta)
367                 type = (allow_ofs_delta && entry->delta->idx.offset) ?
368                         OBJ_OFS_DELTA : OBJ_REF_DELTA;
369         hdrlen = encode_in_pack_object_header(header, sizeof(header),
370                                               type, entry->size);
371
372         offset = entry->in_pack_offset;
373         revidx = find_pack_revindex(p, offset);
374         datalen = revidx[1].offset - offset;
375         if (!pack_to_stdout && p->index_version > 1 &&
376             check_pack_crc(p, &w_curs, offset, datalen, revidx->nr)) {
377                 error("bad packed object CRC for %s",
378                       oid_to_hex(&entry->idx.oid));
379                 unuse_pack(&w_curs);
380                 return write_no_reuse_object(f, entry, limit, usable_delta);
381         }
382
383         offset += entry->in_pack_header_size;
384         datalen -= entry->in_pack_header_size;
385
386         if (!pack_to_stdout && p->index_version == 1 &&
387             check_pack_inflate(p, &w_curs, offset, datalen, entry->size)) {
388                 error("corrupt packed object for %s",
389                       oid_to_hex(&entry->idx.oid));
390                 unuse_pack(&w_curs);
391                 return write_no_reuse_object(f, entry, limit, usable_delta);
392         }
393
394         if (type == OBJ_OFS_DELTA) {
395                 off_t ofs = entry->idx.offset - entry->delta->idx.offset;
396                 unsigned pos = sizeof(dheader) - 1;
397                 dheader[pos] = ofs & 127;
398                 while (ofs >>= 7)
399                         dheader[--pos] = 128 | (--ofs & 127);
400                 if (limit && hdrlen + sizeof(dheader) - pos + datalen + 20 >= limit) {
401                         unuse_pack(&w_curs);
402                         return 0;
403                 }
404                 sha1write(f, header, hdrlen);
405                 sha1write(f, dheader + pos, sizeof(dheader) - pos);
406                 hdrlen += sizeof(dheader) - pos;
407                 reused_delta++;
408         } else if (type == OBJ_REF_DELTA) {
409                 if (limit && hdrlen + 20 + datalen + 20 >= limit) {
410                         unuse_pack(&w_curs);
411                         return 0;
412                 }
413                 sha1write(f, header, hdrlen);
414                 sha1write(f, entry->delta->idx.oid.hash, 20);
415                 hdrlen += 20;
416                 reused_delta++;
417         } else {
418                 if (limit && hdrlen + datalen + 20 >= limit) {
419                         unuse_pack(&w_curs);
420                         return 0;
421                 }
422                 sha1write(f, header, hdrlen);
423         }
424         copy_pack_data(f, p, &w_curs, offset, datalen);
425         unuse_pack(&w_curs);
426         reused++;
427         return hdrlen + datalen;
428 }
429
430 /* Return 0 if we will bust the pack-size limit */
431 static off_t write_object(struct sha1file *f,
432                           struct object_entry *entry,
433                           off_t write_offset)
434 {
435         unsigned long limit;
436         off_t len;
437         int usable_delta, to_reuse;
438
439         if (!pack_to_stdout)
440                 crc32_begin(f);
441
442         /* apply size limit if limited packsize and not first object */
443         if (!pack_size_limit || !nr_written)
444                 limit = 0;
445         else if (pack_size_limit <= write_offset)
446                 /*
447                  * the earlier object did not fit the limit; avoid
448                  * mistaking this with unlimited (i.e. limit = 0).
449                  */
450                 limit = 1;
451         else
452                 limit = pack_size_limit - write_offset;
453
454         if (!entry->delta)
455                 usable_delta = 0;       /* no delta */
456         else if (!pack_size_limit)
457                usable_delta = 1;        /* unlimited packfile */
458         else if (entry->delta->idx.offset == (off_t)-1)
459                 usable_delta = 0;       /* base was written to another pack */
460         else if (entry->delta->idx.offset)
461                 usable_delta = 1;       /* base already exists in this pack */
462         else
463                 usable_delta = 0;       /* base could end up in another pack */
464
465         if (!reuse_object)
466                 to_reuse = 0;   /* explicit */
467         else if (!entry->in_pack)
468                 to_reuse = 0;   /* can't reuse what we don't have */
469         else if (entry->type == OBJ_REF_DELTA || entry->type == OBJ_OFS_DELTA)
470                                 /* check_object() decided it for us ... */
471                 to_reuse = usable_delta;
472                                 /* ... but pack split may override that */
473         else if (entry->type != entry->in_pack_type)
474                 to_reuse = 0;   /* pack has delta which is unusable */
475         else if (entry->delta)
476                 to_reuse = 0;   /* we want to pack afresh */
477         else
478                 to_reuse = 1;   /* we have it in-pack undeltified,
479                                  * and we do not need to deltify it.
480                                  */
481
482         if (!to_reuse)
483                 len = write_no_reuse_object(f, entry, limit, usable_delta);
484         else
485                 len = write_reuse_object(f, entry, limit, usable_delta);
486         if (!len)
487                 return 0;
488
489         if (usable_delta)
490                 written_delta++;
491         written++;
492         if (!pack_to_stdout)
493                 entry->idx.crc32 = crc32_end(f);
494         return len;
495 }
496
497 enum write_one_status {
498         WRITE_ONE_SKIP = -1, /* already written */
499         WRITE_ONE_BREAK = 0, /* writing this will bust the limit; not written */
500         WRITE_ONE_WRITTEN = 1, /* normal */
501         WRITE_ONE_RECURSIVE = 2 /* already scheduled to be written */
502 };
503
504 static enum write_one_status write_one(struct sha1file *f,
505                                        struct object_entry *e,
506                                        off_t *offset)
507 {
508         off_t size;
509         int recursing;
510
511         /*
512          * we set offset to 1 (which is an impossible value) to mark
513          * the fact that this object is involved in "write its base
514          * first before writing a deltified object" recursion.
515          */
516         recursing = (e->idx.offset == 1);
517         if (recursing) {
518                 warning("recursive delta detected for object %s",
519                         oid_to_hex(&e->idx.oid));
520                 return WRITE_ONE_RECURSIVE;
521         } else if (e->idx.offset || e->preferred_base) {
522                 /* offset is non zero if object is written already. */
523                 return WRITE_ONE_SKIP;
524         }
525
526         /* if we are deltified, write out base object first. */
527         if (e->delta) {
528                 e->idx.offset = 1; /* now recurse */
529                 switch (write_one(f, e->delta, offset)) {
530                 case WRITE_ONE_RECURSIVE:
531                         /* we cannot depend on this one */
532                         e->delta = NULL;
533                         break;
534                 default:
535                         break;
536                 case WRITE_ONE_BREAK:
537                         e->idx.offset = recursing;
538                         return WRITE_ONE_BREAK;
539                 }
540         }
541
542         e->idx.offset = *offset;
543         size = write_object(f, e, *offset);
544         if (!size) {
545                 e->idx.offset = recursing;
546                 return WRITE_ONE_BREAK;
547         }
548         written_list[nr_written++] = &e->idx;
549
550         /* make sure off_t is sufficiently large not to wrap */
551         if (signed_add_overflows(*offset, size))
552                 die("pack too large for current definition of off_t");
553         *offset += size;
554         return WRITE_ONE_WRITTEN;
555 }
556
557 static int mark_tagged(const char *path, const struct object_id *oid, int flag,
558                        void *cb_data)
559 {
560         unsigned char peeled[20];
561         struct object_entry *entry = packlist_find(&to_pack, oid->hash, NULL);
562
563         if (entry)
564                 entry->tagged = 1;
565         if (!peel_ref(path, peeled)) {
566                 entry = packlist_find(&to_pack, peeled, NULL);
567                 if (entry)
568                         entry->tagged = 1;
569         }
570         return 0;
571 }
572
573 static inline void add_to_write_order(struct object_entry **wo,
574                                unsigned int *endp,
575                                struct object_entry *e)
576 {
577         if (e->filled)
578                 return;
579         wo[(*endp)++] = e;
580         e->filled = 1;
581 }
582
583 static void add_descendants_to_write_order(struct object_entry **wo,
584                                            unsigned int *endp,
585                                            struct object_entry *e)
586 {
587         int add_to_order = 1;
588         while (e) {
589                 if (add_to_order) {
590                         struct object_entry *s;
591                         /* add this node... */
592                         add_to_write_order(wo, endp, e);
593                         /* all its siblings... */
594                         for (s = e->delta_sibling; s; s = s->delta_sibling) {
595                                 add_to_write_order(wo, endp, s);
596                         }
597                 }
598                 /* drop down a level to add left subtree nodes if possible */
599                 if (e->delta_child) {
600                         add_to_order = 1;
601                         e = e->delta_child;
602                 } else {
603                         add_to_order = 0;
604                         /* our sibling might have some children, it is next */
605                         if (e->delta_sibling) {
606                                 e = e->delta_sibling;
607                                 continue;
608                         }
609                         /* go back to our parent node */
610                         e = e->delta;
611                         while (e && !e->delta_sibling) {
612                                 /* we're on the right side of a subtree, keep
613                                  * going up until we can go right again */
614                                 e = e->delta;
615                         }
616                         if (!e) {
617                                 /* done- we hit our original root node */
618                                 return;
619                         }
620                         /* pass it off to sibling at this level */
621                         e = e->delta_sibling;
622                 }
623         };
624 }
625
626 static void add_family_to_write_order(struct object_entry **wo,
627                                       unsigned int *endp,
628                                       struct object_entry *e)
629 {
630         struct object_entry *root;
631
632         for (root = e; root->delta; root = root->delta)
633                 ; /* nothing */
634         add_descendants_to_write_order(wo, endp, root);
635 }
636
637 static struct object_entry **compute_write_order(void)
638 {
639         unsigned int i, wo_end, last_untagged;
640
641         struct object_entry **wo;
642         struct object_entry *objects = to_pack.objects;
643
644         for (i = 0; i < to_pack.nr_objects; i++) {
645                 objects[i].tagged = 0;
646                 objects[i].filled = 0;
647                 objects[i].delta_child = NULL;
648                 objects[i].delta_sibling = NULL;
649         }
650
651         /*
652          * Fully connect delta_child/delta_sibling network.
653          * Make sure delta_sibling is sorted in the original
654          * recency order.
655          */
656         for (i = to_pack.nr_objects; i > 0;) {
657                 struct object_entry *e = &objects[--i];
658                 if (!e->delta)
659                         continue;
660                 /* Mark me as the first child */
661                 e->delta_sibling = e->delta->delta_child;
662                 e->delta->delta_child = e;
663         }
664
665         /*
666          * Mark objects that are at the tip of tags.
667          */
668         for_each_tag_ref(mark_tagged, NULL);
669
670         /*
671          * Give the objects in the original recency order until
672          * we see a tagged tip.
673          */
674         ALLOC_ARRAY(wo, to_pack.nr_objects);
675         for (i = wo_end = 0; i < to_pack.nr_objects; i++) {
676                 if (objects[i].tagged)
677                         break;
678                 add_to_write_order(wo, &wo_end, &objects[i]);
679         }
680         last_untagged = i;
681
682         /*
683          * Then fill all the tagged tips.
684          */
685         for (; i < to_pack.nr_objects; i++) {
686                 if (objects[i].tagged)
687                         add_to_write_order(wo, &wo_end, &objects[i]);
688         }
689
690         /*
691          * And then all remaining commits and tags.
692          */
693         for (i = last_untagged; i < to_pack.nr_objects; i++) {
694                 if (objects[i].type != OBJ_COMMIT &&
695                     objects[i].type != OBJ_TAG)
696                         continue;
697                 add_to_write_order(wo, &wo_end, &objects[i]);
698         }
699
700         /*
701          * And then all the trees.
702          */
703         for (i = last_untagged; i < to_pack.nr_objects; i++) {
704                 if (objects[i].type != OBJ_TREE)
705                         continue;
706                 add_to_write_order(wo, &wo_end, &objects[i]);
707         }
708
709         /*
710          * Finally all the rest in really tight order
711          */
712         for (i = last_untagged; i < to_pack.nr_objects; i++) {
713                 if (!objects[i].filled)
714                         add_family_to_write_order(wo, &wo_end, &objects[i]);
715         }
716
717         if (wo_end != to_pack.nr_objects)
718                 die("ordered %u objects, expected %"PRIu32, wo_end, to_pack.nr_objects);
719
720         return wo;
721 }
722
723 static off_t write_reused_pack(struct sha1file *f)
724 {
725         unsigned char buffer[8192];
726         off_t to_write, total;
727         int fd;
728
729         if (!is_pack_valid(reuse_packfile))
730                 die("packfile is invalid: %s", reuse_packfile->pack_name);
731
732         fd = git_open(reuse_packfile->pack_name);
733         if (fd < 0)
734                 die_errno("unable to open packfile for reuse: %s",
735                           reuse_packfile->pack_name);
736
737         if (lseek(fd, sizeof(struct pack_header), SEEK_SET) == -1)
738                 die_errno("unable to seek in reused packfile");
739
740         if (reuse_packfile_offset < 0)
741                 reuse_packfile_offset = reuse_packfile->pack_size - 20;
742
743         total = to_write = reuse_packfile_offset - sizeof(struct pack_header);
744
745         while (to_write) {
746                 int read_pack = xread(fd, buffer, sizeof(buffer));
747
748                 if (read_pack <= 0)
749                         die_errno("unable to read from reused packfile");
750
751                 if (read_pack > to_write)
752                         read_pack = to_write;
753
754                 sha1write(f, buffer, read_pack);
755                 to_write -= read_pack;
756
757                 /*
758                  * We don't know the actual number of objects written,
759                  * only how many bytes written, how many bytes total, and
760                  * how many objects total. So we can fake it by pretending all
761                  * objects we are writing are the same size. This gives us a
762                  * smooth progress meter, and at the end it matches the true
763                  * answer.
764                  */
765                 written = reuse_packfile_objects *
766                                 (((double)(total - to_write)) / total);
767                 display_progress(progress_state, written);
768         }
769
770         close(fd);
771         written = reuse_packfile_objects;
772         display_progress(progress_state, written);
773         return reuse_packfile_offset - sizeof(struct pack_header);
774 }
775
776 static const char no_split_warning[] = N_(
777 "disabling bitmap writing, packs are split due to pack.packSizeLimit"
778 );
779
780 static void write_pack_file(void)
781 {
782         uint32_t i = 0, j;
783         struct sha1file *f;
784         off_t offset;
785         uint32_t nr_remaining = nr_result;
786         time_t last_mtime = 0;
787         struct object_entry **write_order;
788
789         if (progress > pack_to_stdout)
790                 progress_state = start_progress(_("Writing objects"), nr_result);
791         ALLOC_ARRAY(written_list, to_pack.nr_objects);
792         write_order = compute_write_order();
793
794         do {
795                 unsigned char sha1[20];
796                 char *pack_tmp_name = NULL;
797
798                 if (pack_to_stdout)
799                         f = sha1fd_throughput(1, "<stdout>", progress_state);
800                 else
801                         f = create_tmp_packfile(&pack_tmp_name);
802
803                 offset = write_pack_header(f, nr_remaining);
804
805                 if (reuse_packfile) {
806                         off_t packfile_size;
807                         assert(pack_to_stdout);
808
809                         packfile_size = write_reused_pack(f);
810                         offset += packfile_size;
811                 }
812
813                 nr_written = 0;
814                 for (; i < to_pack.nr_objects; i++) {
815                         struct object_entry *e = write_order[i];
816                         if (write_one(f, e, &offset) == WRITE_ONE_BREAK)
817                                 break;
818                         display_progress(progress_state, written);
819                 }
820
821                 /*
822                  * Did we write the wrong # entries in the header?
823                  * If so, rewrite it like in fast-import
824                  */
825                 if (pack_to_stdout) {
826                         sha1close(f, sha1, CSUM_CLOSE);
827                 } else if (nr_written == nr_remaining) {
828                         sha1close(f, sha1, CSUM_FSYNC);
829                 } else {
830                         int fd = sha1close(f, sha1, 0);
831                         fixup_pack_header_footer(fd, sha1, pack_tmp_name,
832                                                  nr_written, sha1, offset);
833                         close(fd);
834                         if (write_bitmap_index) {
835                                 warning(_(no_split_warning));
836                                 write_bitmap_index = 0;
837                         }
838                 }
839
840                 if (!pack_to_stdout) {
841                         struct stat st;
842                         struct strbuf tmpname = STRBUF_INIT;
843
844                         /*
845                          * Packs are runtime accessed in their mtime
846                          * order since newer packs are more likely to contain
847                          * younger objects.  So if we are creating multiple
848                          * packs then we should modify the mtime of later ones
849                          * to preserve this property.
850                          */
851                         if (stat(pack_tmp_name, &st) < 0) {
852                                 warning_errno("failed to stat %s", pack_tmp_name);
853                         } else if (!last_mtime) {
854                                 last_mtime = st.st_mtime;
855                         } else {
856                                 struct utimbuf utb;
857                                 utb.actime = st.st_atime;
858                                 utb.modtime = --last_mtime;
859                                 if (utime(pack_tmp_name, &utb) < 0)
860                                         warning_errno("failed utime() on %s", pack_tmp_name);
861                         }
862
863                         strbuf_addf(&tmpname, "%s-", base_name);
864
865                         if (write_bitmap_index) {
866                                 bitmap_writer_set_checksum(sha1);
867                                 bitmap_writer_build_type_index(written_list, nr_written);
868                         }
869
870                         finish_tmp_packfile(&tmpname, pack_tmp_name,
871                                             written_list, nr_written,
872                                             &pack_idx_opts, sha1);
873
874                         if (write_bitmap_index) {
875                                 strbuf_addf(&tmpname, "%s.bitmap", sha1_to_hex(sha1));
876
877                                 stop_progress(&progress_state);
878
879                                 bitmap_writer_show_progress(progress);
880                                 bitmap_writer_reuse_bitmaps(&to_pack);
881                                 bitmap_writer_select_commits(indexed_commits, indexed_commits_nr, -1);
882                                 bitmap_writer_build(&to_pack);
883                                 bitmap_writer_finish(written_list, nr_written,
884                                                      tmpname.buf, write_bitmap_options);
885                                 write_bitmap_index = 0;
886                         }
887
888                         strbuf_release(&tmpname);
889                         free(pack_tmp_name);
890                         puts(sha1_to_hex(sha1));
891                 }
892
893                 /* mark written objects as written to previous pack */
894                 for (j = 0; j < nr_written; j++) {
895                         written_list[j]->offset = (off_t)-1;
896                 }
897                 nr_remaining -= nr_written;
898         } while (nr_remaining && i < to_pack.nr_objects);
899
900         free(written_list);
901         free(write_order);
902         stop_progress(&progress_state);
903         if (written != nr_result)
904                 die("wrote %"PRIu32" objects while expecting %"PRIu32,
905                         written, nr_result);
906 }
907
908 static int no_try_delta(const char *path)
909 {
910         static struct attr_check *check;
911
912         if (!check)
913                 check = attr_check_initl("delta", NULL);
914         if (git_check_attr(path, check))
915                 return 0;
916         if (ATTR_FALSE(check->items[0].value))
917                 return 1;
918         return 0;
919 }
920
921 /*
922  * When adding an object, check whether we have already added it
923  * to our packing list. If so, we can skip. However, if we are
924  * being asked to excludei t, but the previous mention was to include
925  * it, make sure to adjust its flags and tweak our numbers accordingly.
926  *
927  * As an optimization, we pass out the index position where we would have
928  * found the item, since that saves us from having to look it up again a
929  * few lines later when we want to add the new entry.
930  */
931 static int have_duplicate_entry(const unsigned char *sha1,
932                                 int exclude,
933                                 uint32_t *index_pos)
934 {
935         struct object_entry *entry;
936
937         entry = packlist_find(&to_pack, sha1, index_pos);
938         if (!entry)
939                 return 0;
940
941         if (exclude) {
942                 if (!entry->preferred_base)
943                         nr_result--;
944                 entry->preferred_base = 1;
945         }
946
947         return 1;
948 }
949
950 static int want_found_object(int exclude, struct packed_git *p)
951 {
952         if (exclude)
953                 return 1;
954         if (incremental)
955                 return 0;
956
957         /*
958          * When asked to do --local (do not include an object that appears in a
959          * pack we borrow from elsewhere) or --honor-pack-keep (do not include
960          * an object that appears in a pack marked with .keep), finding a pack
961          * that matches the criteria is sufficient for us to decide to omit it.
962          * However, even if this pack does not satisfy the criteria, we need to
963          * make sure no copy of this object appears in _any_ pack that makes us
964          * to omit the object, so we need to check all the packs.
965          *
966          * We can however first check whether these options can possible matter;
967          * if they do not matter we know we want the object in generated pack.
968          * Otherwise, we signal "-1" at the end to tell the caller that we do
969          * not know either way, and it needs to check more packs.
970          */
971         if (!ignore_packed_keep &&
972             (!local || !have_non_local_packs))
973                 return 1;
974
975         if (local && !p->pack_local)
976                 return 0;
977         if (ignore_packed_keep && p->pack_local && p->pack_keep)
978                 return 0;
979
980         /* we don't know yet; keep looking for more packs */
981         return -1;
982 }
983
984 /*
985  * Check whether we want the object in the pack (e.g., we do not want
986  * objects found in non-local stores if the "--local" option was used).
987  *
988  * If the caller already knows an existing pack it wants to take the object
989  * from, that is passed in *found_pack and *found_offset; otherwise this
990  * function finds if there is any pack that has the object and returns the pack
991  * and its offset in these variables.
992  */
993 static int want_object_in_pack(const unsigned char *sha1,
994                                int exclude,
995                                struct packed_git **found_pack,
996                                off_t *found_offset)
997 {
998         int want;
999         struct list_head *pos;
1000
1001         if (!exclude && local && has_loose_object_nonlocal(sha1))
1002                 return 0;
1003
1004         /*
1005          * If we already know the pack object lives in, start checks from that
1006          * pack - in the usual case when neither --local was given nor .keep files
1007          * are present we will determine the answer right now.
1008          */
1009         if (*found_pack) {
1010                 want = want_found_object(exclude, *found_pack);
1011                 if (want != -1)
1012                         return want;
1013         }
1014
1015         list_for_each(pos, &packed_git_mru.list) {
1016                 struct mru *entry = list_entry(pos, struct mru, list);
1017                 struct packed_git *p = entry->item;
1018                 off_t offset;
1019
1020                 if (p == *found_pack)
1021                         offset = *found_offset;
1022                 else
1023                         offset = find_pack_entry_one(sha1, p);
1024
1025                 if (offset) {
1026                         if (!*found_pack) {
1027                                 if (!is_pack_valid(p))
1028                                         continue;
1029                                 *found_offset = offset;
1030                                 *found_pack = p;
1031                         }
1032                         want = want_found_object(exclude, p);
1033                         if (!exclude && want > 0)
1034                                 mru_mark(&packed_git_mru, entry);
1035                         if (want != -1)
1036                                 return want;
1037                 }
1038         }
1039
1040         return 1;
1041 }
1042
1043 static void create_object_entry(const unsigned char *sha1,
1044                                 enum object_type type,
1045                                 uint32_t hash,
1046                                 int exclude,
1047                                 int no_try_delta,
1048                                 uint32_t index_pos,
1049                                 struct packed_git *found_pack,
1050                                 off_t found_offset)
1051 {
1052         struct object_entry *entry;
1053
1054         entry = packlist_alloc(&to_pack, sha1, index_pos);
1055         entry->hash = hash;
1056         if (type)
1057                 entry->type = type;
1058         if (exclude)
1059                 entry->preferred_base = 1;
1060         else
1061                 nr_result++;
1062         if (found_pack) {
1063                 entry->in_pack = found_pack;
1064                 entry->in_pack_offset = found_offset;
1065         }
1066
1067         entry->no_try_delta = no_try_delta;
1068 }
1069
1070 static const char no_closure_warning[] = N_(
1071 "disabling bitmap writing, as some objects are not being packed"
1072 );
1073
1074 static int add_object_entry(const unsigned char *sha1, enum object_type type,
1075                             const char *name, int exclude)
1076 {
1077         struct packed_git *found_pack = NULL;
1078         off_t found_offset = 0;
1079         uint32_t index_pos;
1080
1081         if (have_duplicate_entry(sha1, exclude, &index_pos))
1082                 return 0;
1083
1084         if (!want_object_in_pack(sha1, exclude, &found_pack, &found_offset)) {
1085                 /* The pack is missing an object, so it will not have closure */
1086                 if (write_bitmap_index) {
1087                         warning(_(no_closure_warning));
1088                         write_bitmap_index = 0;
1089                 }
1090                 return 0;
1091         }
1092
1093         create_object_entry(sha1, type, pack_name_hash(name),
1094                             exclude, name && no_try_delta(name),
1095                             index_pos, found_pack, found_offset);
1096
1097         display_progress(progress_state, nr_result);
1098         return 1;
1099 }
1100
1101 static int add_object_entry_from_bitmap(const unsigned char *sha1,
1102                                         enum object_type type,
1103                                         int flags, uint32_t name_hash,
1104                                         struct packed_git *pack, off_t offset)
1105 {
1106         uint32_t index_pos;
1107
1108         if (have_duplicate_entry(sha1, 0, &index_pos))
1109                 return 0;
1110
1111         if (!want_object_in_pack(sha1, 0, &pack, &offset))
1112                 return 0;
1113
1114         create_object_entry(sha1, type, name_hash, 0, 0, index_pos, pack, offset);
1115
1116         display_progress(progress_state, nr_result);
1117         return 1;
1118 }
1119
1120 struct pbase_tree_cache {
1121         unsigned char sha1[20];
1122         int ref;
1123         int temporary;
1124         void *tree_data;
1125         unsigned long tree_size;
1126 };
1127
1128 static struct pbase_tree_cache *(pbase_tree_cache[256]);
1129 static int pbase_tree_cache_ix(const unsigned char *sha1)
1130 {
1131         return sha1[0] % ARRAY_SIZE(pbase_tree_cache);
1132 }
1133 static int pbase_tree_cache_ix_incr(int ix)
1134 {
1135         return (ix+1) % ARRAY_SIZE(pbase_tree_cache);
1136 }
1137
1138 static struct pbase_tree {
1139         struct pbase_tree *next;
1140         /* This is a phony "cache" entry; we are not
1141          * going to evict it or find it through _get()
1142          * mechanism -- this is for the toplevel node that
1143          * would almost always change with any commit.
1144          */
1145         struct pbase_tree_cache pcache;
1146 } *pbase_tree;
1147
1148 static struct pbase_tree_cache *pbase_tree_get(const unsigned char *sha1)
1149 {
1150         struct pbase_tree_cache *ent, *nent;
1151         void *data;
1152         unsigned long size;
1153         enum object_type type;
1154         int neigh;
1155         int my_ix = pbase_tree_cache_ix(sha1);
1156         int available_ix = -1;
1157
1158         /* pbase-tree-cache acts as a limited hashtable.
1159          * your object will be found at your index or within a few
1160          * slots after that slot if it is cached.
1161          */
1162         for (neigh = 0; neigh < 8; neigh++) {
1163                 ent = pbase_tree_cache[my_ix];
1164                 if (ent && !hashcmp(ent->sha1, sha1)) {
1165                         ent->ref++;
1166                         return ent;
1167                 }
1168                 else if (((available_ix < 0) && (!ent || !ent->ref)) ||
1169                          ((0 <= available_ix) &&
1170                           (!ent && pbase_tree_cache[available_ix])))
1171                         available_ix = my_ix;
1172                 if (!ent)
1173                         break;
1174                 my_ix = pbase_tree_cache_ix_incr(my_ix);
1175         }
1176
1177         /* Did not find one.  Either we got a bogus request or
1178          * we need to read and perhaps cache.
1179          */
1180         data = read_sha1_file(sha1, &type, &size);
1181         if (!data)
1182                 return NULL;
1183         if (type != OBJ_TREE) {
1184                 free(data);
1185                 return NULL;
1186         }
1187
1188         /* We need to either cache or return a throwaway copy */
1189
1190         if (available_ix < 0)
1191                 ent = NULL;
1192         else {
1193                 ent = pbase_tree_cache[available_ix];
1194                 my_ix = available_ix;
1195         }
1196
1197         if (!ent) {
1198                 nent = xmalloc(sizeof(*nent));
1199                 nent->temporary = (available_ix < 0);
1200         }
1201         else {
1202                 /* evict and reuse */
1203                 free(ent->tree_data);
1204                 nent = ent;
1205         }
1206         hashcpy(nent->sha1, sha1);
1207         nent->tree_data = data;
1208         nent->tree_size = size;
1209         nent->ref = 1;
1210         if (!nent->temporary)
1211                 pbase_tree_cache[my_ix] = nent;
1212         return nent;
1213 }
1214
1215 static void pbase_tree_put(struct pbase_tree_cache *cache)
1216 {
1217         if (!cache->temporary) {
1218                 cache->ref--;
1219                 return;
1220         }
1221         free(cache->tree_data);
1222         free(cache);
1223 }
1224
1225 static int name_cmp_len(const char *name)
1226 {
1227         int i;
1228         for (i = 0; name[i] && name[i] != '\n' && name[i] != '/'; i++)
1229                 ;
1230         return i;
1231 }
1232
1233 static void add_pbase_object(struct tree_desc *tree,
1234                              const char *name,
1235                              int cmplen,
1236                              const char *fullname)
1237 {
1238         struct name_entry entry;
1239         int cmp;
1240
1241         while (tree_entry(tree,&entry)) {
1242                 if (S_ISGITLINK(entry.mode))
1243                         continue;
1244                 cmp = tree_entry_len(&entry) != cmplen ? 1 :
1245                       memcmp(name, entry.path, cmplen);
1246                 if (cmp > 0)
1247                         continue;
1248                 if (cmp < 0)
1249                         return;
1250                 if (name[cmplen] != '/') {
1251                         add_object_entry(entry.oid->hash,
1252                                          object_type(entry.mode),
1253                                          fullname, 1);
1254                         return;
1255                 }
1256                 if (S_ISDIR(entry.mode)) {
1257                         struct tree_desc sub;
1258                         struct pbase_tree_cache *tree;
1259                         const char *down = name+cmplen+1;
1260                         int downlen = name_cmp_len(down);
1261
1262                         tree = pbase_tree_get(entry.oid->hash);
1263                         if (!tree)
1264                                 return;
1265                         init_tree_desc(&sub, tree->tree_data, tree->tree_size);
1266
1267                         add_pbase_object(&sub, down, downlen, fullname);
1268                         pbase_tree_put(tree);
1269                 }
1270         }
1271 }
1272
1273 static unsigned *done_pbase_paths;
1274 static int done_pbase_paths_num;
1275 static int done_pbase_paths_alloc;
1276 static int done_pbase_path_pos(unsigned hash)
1277 {
1278         int lo = 0;
1279         int hi = done_pbase_paths_num;
1280         while (lo < hi) {
1281                 int mi = (hi + lo) / 2;
1282                 if (done_pbase_paths[mi] == hash)
1283                         return mi;
1284                 if (done_pbase_paths[mi] < hash)
1285                         hi = mi;
1286                 else
1287                         lo = mi + 1;
1288         }
1289         return -lo-1;
1290 }
1291
1292 static int check_pbase_path(unsigned hash)
1293 {
1294         int pos = done_pbase_path_pos(hash);
1295         if (0 <= pos)
1296                 return 1;
1297         pos = -pos - 1;
1298         ALLOC_GROW(done_pbase_paths,
1299                    done_pbase_paths_num + 1,
1300                    done_pbase_paths_alloc);
1301         done_pbase_paths_num++;
1302         if (pos < done_pbase_paths_num)
1303                 MOVE_ARRAY(done_pbase_paths + pos + 1, done_pbase_paths + pos,
1304                            done_pbase_paths_num - pos - 1);
1305         done_pbase_paths[pos] = hash;
1306         return 0;
1307 }
1308
1309 static void add_preferred_base_object(const char *name)
1310 {
1311         struct pbase_tree *it;
1312         int cmplen;
1313         unsigned hash = pack_name_hash(name);
1314
1315         if (!num_preferred_base || check_pbase_path(hash))
1316                 return;
1317
1318         cmplen = name_cmp_len(name);
1319         for (it = pbase_tree; it; it = it->next) {
1320                 if (cmplen == 0) {
1321                         add_object_entry(it->pcache.sha1, OBJ_TREE, NULL, 1);
1322                 }
1323                 else {
1324                         struct tree_desc tree;
1325                         init_tree_desc(&tree, it->pcache.tree_data, it->pcache.tree_size);
1326                         add_pbase_object(&tree, name, cmplen, name);
1327                 }
1328         }
1329 }
1330
1331 static void add_preferred_base(unsigned char *sha1)
1332 {
1333         struct pbase_tree *it;
1334         void *data;
1335         unsigned long size;
1336         unsigned char tree_sha1[20];
1337
1338         if (window <= num_preferred_base++)
1339                 return;
1340
1341         data = read_object_with_reference(sha1, tree_type, &size, tree_sha1);
1342         if (!data)
1343                 return;
1344
1345         for (it = pbase_tree; it; it = it->next) {
1346                 if (!hashcmp(it->pcache.sha1, tree_sha1)) {
1347                         free(data);
1348                         return;
1349                 }
1350         }
1351
1352         it = xcalloc(1, sizeof(*it));
1353         it->next = pbase_tree;
1354         pbase_tree = it;
1355
1356         hashcpy(it->pcache.sha1, tree_sha1);
1357         it->pcache.tree_data = data;
1358         it->pcache.tree_size = size;
1359 }
1360
1361 static void cleanup_preferred_base(void)
1362 {
1363         struct pbase_tree *it;
1364         unsigned i;
1365
1366         it = pbase_tree;
1367         pbase_tree = NULL;
1368         while (it) {
1369                 struct pbase_tree *this = it;
1370                 it = this->next;
1371                 free(this->pcache.tree_data);
1372                 free(this);
1373         }
1374
1375         for (i = 0; i < ARRAY_SIZE(pbase_tree_cache); i++) {
1376                 if (!pbase_tree_cache[i])
1377                         continue;
1378                 free(pbase_tree_cache[i]->tree_data);
1379                 FREE_AND_NULL(pbase_tree_cache[i]);
1380         }
1381
1382         FREE_AND_NULL(done_pbase_paths);
1383         done_pbase_paths_num = done_pbase_paths_alloc = 0;
1384 }
1385
1386 static void check_object(struct object_entry *entry)
1387 {
1388         if (entry->in_pack) {
1389                 struct packed_git *p = entry->in_pack;
1390                 struct pack_window *w_curs = NULL;
1391                 const unsigned char *base_ref = NULL;
1392                 struct object_entry *base_entry;
1393                 unsigned long used, used_0;
1394                 unsigned long avail;
1395                 off_t ofs;
1396                 unsigned char *buf, c;
1397
1398                 buf = use_pack(p, &w_curs, entry->in_pack_offset, &avail);
1399
1400                 /*
1401                  * We want in_pack_type even if we do not reuse delta
1402                  * since non-delta representations could still be reused.
1403                  */
1404                 used = unpack_object_header_buffer(buf, avail,
1405                                                    &entry->in_pack_type,
1406                                                    &entry->size);
1407                 if (used == 0)
1408                         goto give_up;
1409
1410                 /*
1411                  * Determine if this is a delta and if so whether we can
1412                  * reuse it or not.  Otherwise let's find out as cheaply as
1413                  * possible what the actual type and size for this object is.
1414                  */
1415                 switch (entry->in_pack_type) {
1416                 default:
1417                         /* Not a delta hence we've already got all we need. */
1418                         entry->type = entry->in_pack_type;
1419                         entry->in_pack_header_size = used;
1420                         if (entry->type < OBJ_COMMIT || entry->type > OBJ_BLOB)
1421                                 goto give_up;
1422                         unuse_pack(&w_curs);
1423                         return;
1424                 case OBJ_REF_DELTA:
1425                         if (reuse_delta && !entry->preferred_base)
1426                                 base_ref = use_pack(p, &w_curs,
1427                                                 entry->in_pack_offset + used, NULL);
1428                         entry->in_pack_header_size = used + 20;
1429                         break;
1430                 case OBJ_OFS_DELTA:
1431                         buf = use_pack(p, &w_curs,
1432                                        entry->in_pack_offset + used, NULL);
1433                         used_0 = 0;
1434                         c = buf[used_0++];
1435                         ofs = c & 127;
1436                         while (c & 128) {
1437                                 ofs += 1;
1438                                 if (!ofs || MSB(ofs, 7)) {
1439                                         error("delta base offset overflow in pack for %s",
1440                                               oid_to_hex(&entry->idx.oid));
1441                                         goto give_up;
1442                                 }
1443                                 c = buf[used_0++];
1444                                 ofs = (ofs << 7) + (c & 127);
1445                         }
1446                         ofs = entry->in_pack_offset - ofs;
1447                         if (ofs <= 0 || ofs >= entry->in_pack_offset) {
1448                                 error("delta base offset out of bound for %s",
1449                                       oid_to_hex(&entry->idx.oid));
1450                                 goto give_up;
1451                         }
1452                         if (reuse_delta && !entry->preferred_base) {
1453                                 struct revindex_entry *revidx;
1454                                 revidx = find_pack_revindex(p, ofs);
1455                                 if (!revidx)
1456                                         goto give_up;
1457                                 base_ref = nth_packed_object_sha1(p, revidx->nr);
1458                         }
1459                         entry->in_pack_header_size = used + used_0;
1460                         break;
1461                 }
1462
1463                 if (base_ref && (base_entry = packlist_find(&to_pack, base_ref, NULL))) {
1464                         /*
1465                          * If base_ref was set above that means we wish to
1466                          * reuse delta data, and we even found that base
1467                          * in the list of objects we want to pack. Goodie!
1468                          *
1469                          * Depth value does not matter - find_deltas() will
1470                          * never consider reused delta as the base object to
1471                          * deltify other objects against, in order to avoid
1472                          * circular deltas.
1473                          */
1474                         entry->type = entry->in_pack_type;
1475                         entry->delta = base_entry;
1476                         entry->delta_size = entry->size;
1477                         entry->delta_sibling = base_entry->delta_child;
1478                         base_entry->delta_child = entry;
1479                         unuse_pack(&w_curs);
1480                         return;
1481                 }
1482
1483                 if (entry->type) {
1484                         /*
1485                          * This must be a delta and we already know what the
1486                          * final object type is.  Let's extract the actual
1487                          * object size from the delta header.
1488                          */
1489                         entry->size = get_size_from_delta(p, &w_curs,
1490                                         entry->in_pack_offset + entry->in_pack_header_size);
1491                         if (entry->size == 0)
1492                                 goto give_up;
1493                         unuse_pack(&w_curs);
1494                         return;
1495                 }
1496
1497                 /*
1498                  * No choice but to fall back to the recursive delta walk
1499                  * with sha1_object_info() to find about the object type
1500                  * at this point...
1501                  */
1502                 give_up:
1503                 unuse_pack(&w_curs);
1504         }
1505
1506         entry->type = sha1_object_info(entry->idx.oid.hash, &entry->size);
1507         /*
1508          * The error condition is checked in prepare_pack().  This is
1509          * to permit a missing preferred base object to be ignored
1510          * as a preferred base.  Doing so can result in a larger
1511          * pack file, but the transfer will still take place.
1512          */
1513 }
1514
1515 static int pack_offset_sort(const void *_a, const void *_b)
1516 {
1517         const struct object_entry *a = *(struct object_entry **)_a;
1518         const struct object_entry *b = *(struct object_entry **)_b;
1519
1520         /* avoid filesystem trashing with loose objects */
1521         if (!a->in_pack && !b->in_pack)
1522                 return oidcmp(&a->idx.oid, &b->idx.oid);
1523
1524         if (a->in_pack < b->in_pack)
1525                 return -1;
1526         if (a->in_pack > b->in_pack)
1527                 return 1;
1528         return a->in_pack_offset < b->in_pack_offset ? -1 :
1529                         (a->in_pack_offset > b->in_pack_offset);
1530 }
1531
1532 /*
1533  * Drop an on-disk delta we were planning to reuse. Naively, this would
1534  * just involve blanking out the "delta" field, but we have to deal
1535  * with some extra book-keeping:
1536  *
1537  *   1. Removing ourselves from the delta_sibling linked list.
1538  *
1539  *   2. Updating our size/type to the non-delta representation. These were
1540  *      either not recorded initially (size) or overwritten with the delta type
1541  *      (type) when check_object() decided to reuse the delta.
1542  *
1543  *   3. Resetting our delta depth, as we are now a base object.
1544  */
1545 static void drop_reused_delta(struct object_entry *entry)
1546 {
1547         struct object_entry **p = &entry->delta->delta_child;
1548         struct object_info oi = OBJECT_INFO_INIT;
1549
1550         while (*p) {
1551                 if (*p == entry)
1552                         *p = (*p)->delta_sibling;
1553                 else
1554                         p = &(*p)->delta_sibling;
1555         }
1556         entry->delta = NULL;
1557         entry->depth = 0;
1558
1559         oi.sizep = &entry->size;
1560         oi.typep = &entry->type;
1561         if (packed_object_info(entry->in_pack, entry->in_pack_offset, &oi) < 0) {
1562                 /*
1563                  * We failed to get the info from this pack for some reason;
1564                  * fall back to sha1_object_info, which may find another copy.
1565                  * And if that fails, the error will be recorded in entry->type
1566                  * and dealt with in prepare_pack().
1567                  */
1568                 entry->type = sha1_object_info(entry->idx.oid.hash,
1569                                                &entry->size);
1570         }
1571 }
1572
1573 /*
1574  * Follow the chain of deltas from this entry onward, throwing away any links
1575  * that cause us to hit a cycle (as determined by the DFS state flags in
1576  * the entries).
1577  *
1578  * We also detect too-long reused chains that would violate our --depth
1579  * limit.
1580  */
1581 static void break_delta_chains(struct object_entry *entry)
1582 {
1583         /*
1584          * The actual depth of each object we will write is stored as an int,
1585          * as it cannot exceed our int "depth" limit. But before we break
1586          * changes based no that limit, we may potentially go as deep as the
1587          * number of objects, which is elsewhere bounded to a uint32_t.
1588          */
1589         uint32_t total_depth;
1590         struct object_entry *cur, *next;
1591
1592         for (cur = entry, total_depth = 0;
1593              cur;
1594              cur = cur->delta, total_depth++) {
1595                 if (cur->dfs_state == DFS_DONE) {
1596                         /*
1597                          * We've already seen this object and know it isn't
1598                          * part of a cycle. We do need to append its depth
1599                          * to our count.
1600                          */
1601                         total_depth += cur->depth;
1602                         break;
1603                 }
1604
1605                 /*
1606                  * We break cycles before looping, so an ACTIVE state (or any
1607                  * other cruft which made its way into the state variable)
1608                  * is a bug.
1609                  */
1610                 if (cur->dfs_state != DFS_NONE)
1611                         die("BUG: confusing delta dfs state in first pass: %d",
1612                             cur->dfs_state);
1613
1614                 /*
1615                  * Now we know this is the first time we've seen the object. If
1616                  * it's not a delta, we're done traversing, but we'll mark it
1617                  * done to save time on future traversals.
1618                  */
1619                 if (!cur->delta) {
1620                         cur->dfs_state = DFS_DONE;
1621                         break;
1622                 }
1623
1624                 /*
1625                  * Mark ourselves as active and see if the next step causes
1626                  * us to cycle to another active object. It's important to do
1627                  * this _before_ we loop, because it impacts where we make the
1628                  * cut, and thus how our total_depth counter works.
1629                  * E.g., We may see a partial loop like:
1630                  *
1631                  *   A -> B -> C -> D -> B
1632                  *
1633                  * Cutting B->C breaks the cycle. But now the depth of A is
1634                  * only 1, and our total_depth counter is at 3. The size of the
1635                  * error is always one less than the size of the cycle we
1636                  * broke. Commits C and D were "lost" from A's chain.
1637                  *
1638                  * If we instead cut D->B, then the depth of A is correct at 3.
1639                  * We keep all commits in the chain that we examined.
1640                  */
1641                 cur->dfs_state = DFS_ACTIVE;
1642                 if (cur->delta->dfs_state == DFS_ACTIVE) {
1643                         drop_reused_delta(cur);
1644                         cur->dfs_state = DFS_DONE;
1645                         break;
1646                 }
1647         }
1648
1649         /*
1650          * And now that we've gone all the way to the bottom of the chain, we
1651          * need to clear the active flags and set the depth fields as
1652          * appropriate. Unlike the loop above, which can quit when it drops a
1653          * delta, we need to keep going to look for more depth cuts. So we need
1654          * an extra "next" pointer to keep going after we reset cur->delta.
1655          */
1656         for (cur = entry; cur; cur = next) {
1657                 next = cur->delta;
1658
1659                 /*
1660                  * We should have a chain of zero or more ACTIVE states down to
1661                  * a final DONE. We can quit after the DONE, because either it
1662                  * has no bases, or we've already handled them in a previous
1663                  * call.
1664                  */
1665                 if (cur->dfs_state == DFS_DONE)
1666                         break;
1667                 else if (cur->dfs_state != DFS_ACTIVE)
1668                         die("BUG: confusing delta dfs state in second pass: %d",
1669                             cur->dfs_state);
1670
1671                 /*
1672                  * If the total_depth is more than depth, then we need to snip
1673                  * the chain into two or more smaller chains that don't exceed
1674                  * the maximum depth. Most of the resulting chains will contain
1675                  * (depth + 1) entries (i.e., depth deltas plus one base), and
1676                  * the last chain (i.e., the one containing entry) will contain
1677                  * whatever entries are left over, namely
1678                  * (total_depth % (depth + 1)) of them.
1679                  *
1680                  * Since we are iterating towards decreasing depth, we need to
1681                  * decrement total_depth as we go, and we need to write to the
1682                  * entry what its final depth will be after all of the
1683                  * snipping. Since we're snipping into chains of length (depth
1684                  * + 1) entries, the final depth of an entry will be its
1685                  * original depth modulo (depth + 1). Any time we encounter an
1686                  * entry whose final depth is supposed to be zero, we snip it
1687                  * from its delta base, thereby making it so.
1688                  */
1689                 cur->depth = (total_depth--) % (depth + 1);
1690                 if (!cur->depth)
1691                         drop_reused_delta(cur);
1692
1693                 cur->dfs_state = DFS_DONE;
1694         }
1695 }
1696
1697 static void get_object_details(void)
1698 {
1699         uint32_t i;
1700         struct object_entry **sorted_by_offset;
1701
1702         sorted_by_offset = xcalloc(to_pack.nr_objects, sizeof(struct object_entry *));
1703         for (i = 0; i < to_pack.nr_objects; i++)
1704                 sorted_by_offset[i] = to_pack.objects + i;
1705         QSORT(sorted_by_offset, to_pack.nr_objects, pack_offset_sort);
1706
1707         for (i = 0; i < to_pack.nr_objects; i++) {
1708                 struct object_entry *entry = sorted_by_offset[i];
1709                 check_object(entry);
1710                 if (big_file_threshold < entry->size)
1711                         entry->no_try_delta = 1;
1712         }
1713
1714         /*
1715          * This must happen in a second pass, since we rely on the delta
1716          * information for the whole list being completed.
1717          */
1718         for (i = 0; i < to_pack.nr_objects; i++)
1719                 break_delta_chains(&to_pack.objects[i]);
1720
1721         free(sorted_by_offset);
1722 }
1723
1724 /*
1725  * We search for deltas in a list sorted by type, by filename hash, and then
1726  * by size, so that we see progressively smaller and smaller files.
1727  * That's because we prefer deltas to be from the bigger file
1728  * to the smaller -- deletes are potentially cheaper, but perhaps
1729  * more importantly, the bigger file is likely the more recent
1730  * one.  The deepest deltas are therefore the oldest objects which are
1731  * less susceptible to be accessed often.
1732  */
1733 static int type_size_sort(const void *_a, const void *_b)
1734 {
1735         const struct object_entry *a = *(struct object_entry **)_a;
1736         const struct object_entry *b = *(struct object_entry **)_b;
1737
1738         if (a->type > b->type)
1739                 return -1;
1740         if (a->type < b->type)
1741                 return 1;
1742         if (a->hash > b->hash)
1743                 return -1;
1744         if (a->hash < b->hash)
1745                 return 1;
1746         if (a->preferred_base > b->preferred_base)
1747                 return -1;
1748         if (a->preferred_base < b->preferred_base)
1749                 return 1;
1750         if (a->size > b->size)
1751                 return -1;
1752         if (a->size < b->size)
1753                 return 1;
1754         return a < b ? -1 : (a > b);  /* newest first */
1755 }
1756
1757 struct unpacked {
1758         struct object_entry *entry;
1759         void *data;
1760         struct delta_index *index;
1761         unsigned depth;
1762 };
1763
1764 static int delta_cacheable(unsigned long src_size, unsigned long trg_size,
1765                            unsigned long delta_size)
1766 {
1767         if (max_delta_cache_size && delta_cache_size + delta_size > max_delta_cache_size)
1768                 return 0;
1769
1770         if (delta_size < cache_max_small_delta_size)
1771                 return 1;
1772
1773         /* cache delta, if objects are large enough compared to delta size */
1774         if ((src_size >> 20) + (trg_size >> 21) > (delta_size >> 10))
1775                 return 1;
1776
1777         return 0;
1778 }
1779
1780 #ifndef NO_PTHREADS
1781
1782 static pthread_mutex_t read_mutex;
1783 #define read_lock()             pthread_mutex_lock(&read_mutex)
1784 #define read_unlock()           pthread_mutex_unlock(&read_mutex)
1785
1786 static pthread_mutex_t cache_mutex;
1787 #define cache_lock()            pthread_mutex_lock(&cache_mutex)
1788 #define cache_unlock()          pthread_mutex_unlock(&cache_mutex)
1789
1790 static pthread_mutex_t progress_mutex;
1791 #define progress_lock()         pthread_mutex_lock(&progress_mutex)
1792 #define progress_unlock()       pthread_mutex_unlock(&progress_mutex)
1793
1794 #else
1795
1796 #define read_lock()             (void)0
1797 #define read_unlock()           (void)0
1798 #define cache_lock()            (void)0
1799 #define cache_unlock()          (void)0
1800 #define progress_lock()         (void)0
1801 #define progress_unlock()       (void)0
1802
1803 #endif
1804
1805 static int try_delta(struct unpacked *trg, struct unpacked *src,
1806                      unsigned max_depth, unsigned long *mem_usage)
1807 {
1808         struct object_entry *trg_entry = trg->entry;
1809         struct object_entry *src_entry = src->entry;
1810         unsigned long trg_size, src_size, delta_size, sizediff, max_size, sz;
1811         unsigned ref_depth;
1812         enum object_type type;
1813         void *delta_buf;
1814
1815         /* Don't bother doing diffs between different types */
1816         if (trg_entry->type != src_entry->type)
1817                 return -1;
1818
1819         /*
1820          * We do not bother to try a delta that we discarded on an
1821          * earlier try, but only when reusing delta data.  Note that
1822          * src_entry that is marked as the preferred_base should always
1823          * be considered, as even if we produce a suboptimal delta against
1824          * it, we will still save the transfer cost, as we already know
1825          * the other side has it and we won't send src_entry at all.
1826          */
1827         if (reuse_delta && trg_entry->in_pack &&
1828             trg_entry->in_pack == src_entry->in_pack &&
1829             !src_entry->preferred_base &&
1830             trg_entry->in_pack_type != OBJ_REF_DELTA &&
1831             trg_entry->in_pack_type != OBJ_OFS_DELTA)
1832                 return 0;
1833
1834         /* Let's not bust the allowed depth. */
1835         if (src->depth >= max_depth)
1836                 return 0;
1837
1838         /* Now some size filtering heuristics. */
1839         trg_size = trg_entry->size;
1840         if (!trg_entry->delta) {
1841                 max_size = trg_size/2 - 20;
1842                 ref_depth = 1;
1843         } else {
1844                 max_size = trg_entry->delta_size;
1845                 ref_depth = trg->depth;
1846         }
1847         max_size = (uint64_t)max_size * (max_depth - src->depth) /
1848                                                 (max_depth - ref_depth + 1);
1849         if (max_size == 0)
1850                 return 0;
1851         src_size = src_entry->size;
1852         sizediff = src_size < trg_size ? trg_size - src_size : 0;
1853         if (sizediff >= max_size)
1854                 return 0;
1855         if (trg_size < src_size / 32)
1856                 return 0;
1857
1858         /* Load data if not already done */
1859         if (!trg->data) {
1860                 read_lock();
1861                 trg->data = read_sha1_file(trg_entry->idx.oid.hash, &type,
1862                                            &sz);
1863                 read_unlock();
1864                 if (!trg->data)
1865                         die("object %s cannot be read",
1866                             oid_to_hex(&trg_entry->idx.oid));
1867                 if (sz != trg_size)
1868                         die("object %s inconsistent object length (%lu vs %lu)",
1869                             oid_to_hex(&trg_entry->idx.oid), sz,
1870                             trg_size);
1871                 *mem_usage += sz;
1872         }
1873         if (!src->data) {
1874                 read_lock();
1875                 src->data = read_sha1_file(src_entry->idx.oid.hash, &type,
1876                                            &sz);
1877                 read_unlock();
1878                 if (!src->data) {
1879                         if (src_entry->preferred_base) {
1880                                 static int warned = 0;
1881                                 if (!warned++)
1882                                         warning("object %s cannot be read",
1883                                                 oid_to_hex(&src_entry->idx.oid));
1884                                 /*
1885                                  * Those objects are not included in the
1886                                  * resulting pack.  Be resilient and ignore
1887                                  * them if they can't be read, in case the
1888                                  * pack could be created nevertheless.
1889                                  */
1890                                 return 0;
1891                         }
1892                         die("object %s cannot be read",
1893                             oid_to_hex(&src_entry->idx.oid));
1894                 }
1895                 if (sz != src_size)
1896                         die("object %s inconsistent object length (%lu vs %lu)",
1897                             oid_to_hex(&src_entry->idx.oid), sz,
1898                             src_size);
1899                 *mem_usage += sz;
1900         }
1901         if (!src->index) {
1902                 src->index = create_delta_index(src->data, src_size);
1903                 if (!src->index) {
1904                         static int warned = 0;
1905                         if (!warned++)
1906                                 warning("suboptimal pack - out of memory");
1907                         return 0;
1908                 }
1909                 *mem_usage += sizeof_delta_index(src->index);
1910         }
1911
1912         delta_buf = create_delta(src->index, trg->data, trg_size, &delta_size, max_size);
1913         if (!delta_buf)
1914                 return 0;
1915
1916         if (trg_entry->delta) {
1917                 /* Prefer only shallower same-sized deltas. */
1918                 if (delta_size == trg_entry->delta_size &&
1919                     src->depth + 1 >= trg->depth) {
1920                         free(delta_buf);
1921                         return 0;
1922                 }
1923         }
1924
1925         /*
1926          * Handle memory allocation outside of the cache
1927          * accounting lock.  Compiler will optimize the strangeness
1928          * away when NO_PTHREADS is defined.
1929          */
1930         free(trg_entry->delta_data);
1931         cache_lock();
1932         if (trg_entry->delta_data) {
1933                 delta_cache_size -= trg_entry->delta_size;
1934                 trg_entry->delta_data = NULL;
1935         }
1936         if (delta_cacheable(src_size, trg_size, delta_size)) {
1937                 delta_cache_size += delta_size;
1938                 cache_unlock();
1939                 trg_entry->delta_data = xrealloc(delta_buf, delta_size);
1940         } else {
1941                 cache_unlock();
1942                 free(delta_buf);
1943         }
1944
1945         trg_entry->delta = src_entry;
1946         trg_entry->delta_size = delta_size;
1947         trg->depth = src->depth + 1;
1948
1949         return 1;
1950 }
1951
1952 static unsigned int check_delta_limit(struct object_entry *me, unsigned int n)
1953 {
1954         struct object_entry *child = me->delta_child;
1955         unsigned int m = n;
1956         while (child) {
1957                 unsigned int c = check_delta_limit(child, n + 1);
1958                 if (m < c)
1959                         m = c;
1960                 child = child->delta_sibling;
1961         }
1962         return m;
1963 }
1964
1965 static unsigned long free_unpacked(struct unpacked *n)
1966 {
1967         unsigned long freed_mem = sizeof_delta_index(n->index);
1968         free_delta_index(n->index);
1969         n->index = NULL;
1970         if (n->data) {
1971                 freed_mem += n->entry->size;
1972                 FREE_AND_NULL(n->data);
1973         }
1974         n->entry = NULL;
1975         n->depth = 0;
1976         return freed_mem;
1977 }
1978
1979 static void find_deltas(struct object_entry **list, unsigned *list_size,
1980                         int window, int depth, unsigned *processed)
1981 {
1982         uint32_t i, idx = 0, count = 0;
1983         struct unpacked *array;
1984         unsigned long mem_usage = 0;
1985
1986         array = xcalloc(window, sizeof(struct unpacked));
1987
1988         for (;;) {
1989                 struct object_entry *entry;
1990                 struct unpacked *n = array + idx;
1991                 int j, max_depth, best_base = -1;
1992
1993                 progress_lock();
1994                 if (!*list_size) {
1995                         progress_unlock();
1996                         break;
1997                 }
1998                 entry = *list++;
1999                 (*list_size)--;
2000                 if (!entry->preferred_base) {
2001                         (*processed)++;
2002                         display_progress(progress_state, *processed);
2003                 }
2004                 progress_unlock();
2005
2006                 mem_usage -= free_unpacked(n);
2007                 n->entry = entry;
2008
2009                 while (window_memory_limit &&
2010                        mem_usage > window_memory_limit &&
2011                        count > 1) {
2012                         uint32_t tail = (idx + window - count) % window;
2013                         mem_usage -= free_unpacked(array + tail);
2014                         count--;
2015                 }
2016
2017                 /* We do not compute delta to *create* objects we are not
2018                  * going to pack.
2019                  */
2020                 if (entry->preferred_base)
2021                         goto next;
2022
2023                 /*
2024                  * If the current object is at pack edge, take the depth the
2025                  * objects that depend on the current object into account
2026                  * otherwise they would become too deep.
2027                  */
2028                 max_depth = depth;
2029                 if (entry->delta_child) {
2030                         max_depth -= check_delta_limit(entry, 0);
2031                         if (max_depth <= 0)
2032                                 goto next;
2033                 }
2034
2035                 j = window;
2036                 while (--j > 0) {
2037                         int ret;
2038                         uint32_t other_idx = idx + j;
2039                         struct unpacked *m;
2040                         if (other_idx >= window)
2041                                 other_idx -= window;
2042                         m = array + other_idx;
2043                         if (!m->entry)
2044                                 break;
2045                         ret = try_delta(n, m, max_depth, &mem_usage);
2046                         if (ret < 0)
2047                                 break;
2048                         else if (ret > 0)
2049                                 best_base = other_idx;
2050                 }
2051
2052                 /*
2053                  * If we decided to cache the delta data, then it is best
2054                  * to compress it right away.  First because we have to do
2055                  * it anyway, and doing it here while we're threaded will
2056                  * save a lot of time in the non threaded write phase,
2057                  * as well as allow for caching more deltas within
2058                  * the same cache size limit.
2059                  * ...
2060                  * But only if not writing to stdout, since in that case
2061                  * the network is most likely throttling writes anyway,
2062                  * and therefore it is best to go to the write phase ASAP
2063                  * instead, as we can afford spending more time compressing
2064                  * between writes at that moment.
2065                  */
2066                 if (entry->delta_data && !pack_to_stdout) {
2067                         entry->z_delta_size = do_compress(&entry->delta_data,
2068                                                           entry->delta_size);
2069                         cache_lock();
2070                         delta_cache_size -= entry->delta_size;
2071                         delta_cache_size += entry->z_delta_size;
2072                         cache_unlock();
2073                 }
2074
2075                 /* if we made n a delta, and if n is already at max
2076                  * depth, leaving it in the window is pointless.  we
2077                  * should evict it first.
2078                  */
2079                 if (entry->delta && max_depth <= n->depth)
2080                         continue;
2081
2082                 /*
2083                  * Move the best delta base up in the window, after the
2084                  * currently deltified object, to keep it longer.  It will
2085                  * be the first base object to be attempted next.
2086                  */
2087                 if (entry->delta) {
2088                         struct unpacked swap = array[best_base];
2089                         int dist = (window + idx - best_base) % window;
2090                         int dst = best_base;
2091                         while (dist--) {
2092                                 int src = (dst + 1) % window;
2093                                 array[dst] = array[src];
2094                                 dst = src;
2095                         }
2096                         array[dst] = swap;
2097                 }
2098
2099                 next:
2100                 idx++;
2101                 if (count + 1 < window)
2102                         count++;
2103                 if (idx >= window)
2104                         idx = 0;
2105         }
2106
2107         for (i = 0; i < window; ++i) {
2108                 free_delta_index(array[i].index);
2109                 free(array[i].data);
2110         }
2111         free(array);
2112 }
2113
2114 #ifndef NO_PTHREADS
2115
2116 static void try_to_free_from_threads(size_t size)
2117 {
2118         read_lock();
2119         release_pack_memory(size);
2120         read_unlock();
2121 }
2122
2123 static try_to_free_t old_try_to_free_routine;
2124
2125 /*
2126  * The main thread waits on the condition that (at least) one of the workers
2127  * has stopped working (which is indicated in the .working member of
2128  * struct thread_params).
2129  * When a work thread has completed its work, it sets .working to 0 and
2130  * signals the main thread and waits on the condition that .data_ready
2131  * becomes 1.
2132  */
2133
2134 struct thread_params {
2135         pthread_t thread;
2136         struct object_entry **list;
2137         unsigned list_size;
2138         unsigned remaining;
2139         int window;
2140         int depth;
2141         int working;
2142         int data_ready;
2143         pthread_mutex_t mutex;
2144         pthread_cond_t cond;
2145         unsigned *processed;
2146 };
2147
2148 static pthread_cond_t progress_cond;
2149
2150 /*
2151  * Mutex and conditional variable can't be statically-initialized on Windows.
2152  */
2153 static void init_threaded_search(void)
2154 {
2155         init_recursive_mutex(&read_mutex);
2156         pthread_mutex_init(&cache_mutex, NULL);
2157         pthread_mutex_init(&progress_mutex, NULL);
2158         pthread_cond_init(&progress_cond, NULL);
2159         old_try_to_free_routine = set_try_to_free_routine(try_to_free_from_threads);
2160 }
2161
2162 static void cleanup_threaded_search(void)
2163 {
2164         set_try_to_free_routine(old_try_to_free_routine);
2165         pthread_cond_destroy(&progress_cond);
2166         pthread_mutex_destroy(&read_mutex);
2167         pthread_mutex_destroy(&cache_mutex);
2168         pthread_mutex_destroy(&progress_mutex);
2169 }
2170
2171 static void *threaded_find_deltas(void *arg)
2172 {
2173         struct thread_params *me = arg;
2174
2175         progress_lock();
2176         while (me->remaining) {
2177                 progress_unlock();
2178
2179                 find_deltas(me->list, &me->remaining,
2180                             me->window, me->depth, me->processed);
2181
2182                 progress_lock();
2183                 me->working = 0;
2184                 pthread_cond_signal(&progress_cond);
2185                 progress_unlock();
2186
2187                 /*
2188                  * We must not set ->data_ready before we wait on the
2189                  * condition because the main thread may have set it to 1
2190                  * before we get here. In order to be sure that new
2191                  * work is available if we see 1 in ->data_ready, it
2192                  * was initialized to 0 before this thread was spawned
2193                  * and we reset it to 0 right away.
2194                  */
2195                 pthread_mutex_lock(&me->mutex);
2196                 while (!me->data_ready)
2197                         pthread_cond_wait(&me->cond, &me->mutex);
2198                 me->data_ready = 0;
2199                 pthread_mutex_unlock(&me->mutex);
2200
2201                 progress_lock();
2202         }
2203         progress_unlock();
2204         /* leave ->working 1 so that this doesn't get more work assigned */
2205         return NULL;
2206 }
2207
2208 static void ll_find_deltas(struct object_entry **list, unsigned list_size,
2209                            int window, int depth, unsigned *processed)
2210 {
2211         struct thread_params *p;
2212         int i, ret, active_threads = 0;
2213
2214         init_threaded_search();
2215
2216         if (delta_search_threads <= 1) {
2217                 find_deltas(list, &list_size, window, depth, processed);
2218                 cleanup_threaded_search();
2219                 return;
2220         }
2221         if (progress > pack_to_stdout)
2222                 fprintf(stderr, "Delta compression using up to %d threads.\n",
2223                                 delta_search_threads);
2224         p = xcalloc(delta_search_threads, sizeof(*p));
2225
2226         /* Partition the work amongst work threads. */
2227         for (i = 0; i < delta_search_threads; i++) {
2228                 unsigned sub_size = list_size / (delta_search_threads - i);
2229
2230                 /* don't use too small segments or no deltas will be found */
2231                 if (sub_size < 2*window && i+1 < delta_search_threads)
2232                         sub_size = 0;
2233
2234                 p[i].window = window;
2235                 p[i].depth = depth;
2236                 p[i].processed = processed;
2237                 p[i].working = 1;
2238                 p[i].data_ready = 0;
2239
2240                 /* try to split chunks on "path" boundaries */
2241                 while (sub_size && sub_size < list_size &&
2242                        list[sub_size]->hash &&
2243                        list[sub_size]->hash == list[sub_size-1]->hash)
2244                         sub_size++;
2245
2246                 p[i].list = list;
2247                 p[i].list_size = sub_size;
2248                 p[i].remaining = sub_size;
2249
2250                 list += sub_size;
2251                 list_size -= sub_size;
2252         }
2253
2254         /* Start work threads. */
2255         for (i = 0; i < delta_search_threads; i++) {
2256                 if (!p[i].list_size)
2257                         continue;
2258                 pthread_mutex_init(&p[i].mutex, NULL);
2259                 pthread_cond_init(&p[i].cond, NULL);
2260                 ret = pthread_create(&p[i].thread, NULL,
2261                                      threaded_find_deltas, &p[i]);
2262                 if (ret)
2263                         die("unable to create thread: %s", strerror(ret));
2264                 active_threads++;
2265         }
2266
2267         /*
2268          * Now let's wait for work completion.  Each time a thread is done
2269          * with its work, we steal half of the remaining work from the
2270          * thread with the largest number of unprocessed objects and give
2271          * it to that newly idle thread.  This ensure good load balancing
2272          * until the remaining object list segments are simply too short
2273          * to be worth splitting anymore.
2274          */
2275         while (active_threads) {
2276                 struct thread_params *target = NULL;
2277                 struct thread_params *victim = NULL;
2278                 unsigned sub_size = 0;
2279
2280                 progress_lock();
2281                 for (;;) {
2282                         for (i = 0; !target && i < delta_search_threads; i++)
2283                                 if (!p[i].working)
2284                                         target = &p[i];
2285                         if (target)
2286                                 break;
2287                         pthread_cond_wait(&progress_cond, &progress_mutex);
2288                 }
2289
2290                 for (i = 0; i < delta_search_threads; i++)
2291                         if (p[i].remaining > 2*window &&
2292                             (!victim || victim->remaining < p[i].remaining))
2293                                 victim = &p[i];
2294                 if (victim) {
2295                         sub_size = victim->remaining / 2;
2296                         list = victim->list + victim->list_size - sub_size;
2297                         while (sub_size && list[0]->hash &&
2298                                list[0]->hash == list[-1]->hash) {
2299                                 list++;
2300                                 sub_size--;
2301                         }
2302                         if (!sub_size) {
2303                                 /*
2304                                  * It is possible for some "paths" to have
2305                                  * so many objects that no hash boundary
2306                                  * might be found.  Let's just steal the
2307                                  * exact half in that case.
2308                                  */
2309                                 sub_size = victim->remaining / 2;
2310                                 list -= sub_size;
2311                         }
2312                         target->list = list;
2313                         victim->list_size -= sub_size;
2314                         victim->remaining -= sub_size;
2315                 }
2316                 target->list_size = sub_size;
2317                 target->remaining = sub_size;
2318                 target->working = 1;
2319                 progress_unlock();
2320
2321                 pthread_mutex_lock(&target->mutex);
2322                 target->data_ready = 1;
2323                 pthread_cond_signal(&target->cond);
2324                 pthread_mutex_unlock(&target->mutex);
2325
2326                 if (!sub_size) {
2327                         pthread_join(target->thread, NULL);
2328                         pthread_cond_destroy(&target->cond);
2329                         pthread_mutex_destroy(&target->mutex);
2330                         active_threads--;
2331                 }
2332         }
2333         cleanup_threaded_search();
2334         free(p);
2335 }
2336
2337 #else
2338 #define ll_find_deltas(l, s, w, d, p)   find_deltas(l, &s, w, d, p)
2339 #endif
2340
2341 static void add_tag_chain(const struct object_id *oid)
2342 {
2343         struct tag *tag;
2344
2345         /*
2346          * We catch duplicates already in add_object_entry(), but we'd
2347          * prefer to do this extra check to avoid having to parse the
2348          * tag at all if we already know that it's being packed (e.g., if
2349          * it was included via bitmaps, we would not have parsed it
2350          * previously).
2351          */
2352         if (packlist_find(&to_pack, oid->hash, NULL))
2353                 return;
2354
2355         tag = lookup_tag(oid);
2356         while (1) {
2357                 if (!tag || parse_tag(tag) || !tag->tagged)
2358                         die("unable to pack objects reachable from tag %s",
2359                             oid_to_hex(oid));
2360
2361                 add_object_entry(tag->object.oid.hash, OBJ_TAG, NULL, 0);
2362
2363                 if (tag->tagged->type != OBJ_TAG)
2364                         return;
2365
2366                 tag = (struct tag *)tag->tagged;
2367         }
2368 }
2369
2370 static int add_ref_tag(const char *path, const struct object_id *oid, int flag, void *cb_data)
2371 {
2372         struct object_id peeled;
2373
2374         if (starts_with(path, "refs/tags/") && /* is a tag? */
2375             !peel_ref(path, peeled.hash)    && /* peelable? */
2376             packlist_find(&to_pack, peeled.hash, NULL))      /* object packed? */
2377                 add_tag_chain(oid);
2378         return 0;
2379 }
2380
2381 static void prepare_pack(int window, int depth)
2382 {
2383         struct object_entry **delta_list;
2384         uint32_t i, nr_deltas;
2385         unsigned n;
2386
2387         get_object_details();
2388
2389         /*
2390          * If we're locally repacking then we need to be doubly careful
2391          * from now on in order to make sure no stealth corruption gets
2392          * propagated to the new pack.  Clients receiving streamed packs
2393          * should validate everything they get anyway so no need to incur
2394          * the additional cost here in that case.
2395          */
2396         if (!pack_to_stdout)
2397                 do_check_packed_object_crc = 1;
2398
2399         if (!to_pack.nr_objects || !window || !depth)
2400                 return;
2401
2402         ALLOC_ARRAY(delta_list, to_pack.nr_objects);
2403         nr_deltas = n = 0;
2404
2405         for (i = 0; i < to_pack.nr_objects; i++) {
2406                 struct object_entry *entry = to_pack.objects + i;
2407
2408                 if (entry->delta)
2409                         /* This happens if we decided to reuse existing
2410                          * delta from a pack.  "reuse_delta &&" is implied.
2411                          */
2412                         continue;
2413
2414                 if (entry->size < 50)
2415                         continue;
2416
2417                 if (entry->no_try_delta)
2418                         continue;
2419
2420                 if (!entry->preferred_base) {
2421                         nr_deltas++;
2422                         if (entry->type < 0)
2423                                 die("unable to get type of object %s",
2424                                     oid_to_hex(&entry->idx.oid));
2425                 } else {
2426                         if (entry->type < 0) {
2427                                 /*
2428                                  * This object is not found, but we
2429                                  * don't have to include it anyway.
2430                                  */
2431                                 continue;
2432                         }
2433                 }
2434
2435                 delta_list[n++] = entry;
2436         }
2437
2438         if (nr_deltas && n > 1) {
2439                 unsigned nr_done = 0;
2440                 if (progress)
2441                         progress_state = start_progress(_("Compressing objects"),
2442                                                         nr_deltas);
2443                 QSORT(delta_list, n, type_size_sort);
2444                 ll_find_deltas(delta_list, n, window+1, depth, &nr_done);
2445                 stop_progress(&progress_state);
2446                 if (nr_done != nr_deltas)
2447                         die("inconsistency with delta count");
2448         }
2449         free(delta_list);
2450 }
2451
2452 static int git_pack_config(const char *k, const char *v, void *cb)
2453 {
2454         if (!strcmp(k, "pack.window")) {
2455                 window = git_config_int(k, v);
2456                 return 0;
2457         }
2458         if (!strcmp(k, "pack.windowmemory")) {
2459                 window_memory_limit = git_config_ulong(k, v);
2460                 return 0;
2461         }
2462         if (!strcmp(k, "pack.depth")) {
2463                 depth = git_config_int(k, v);
2464                 return 0;
2465         }
2466         if (!strcmp(k, "pack.deltacachesize")) {
2467                 max_delta_cache_size = git_config_int(k, v);
2468                 return 0;
2469         }
2470         if (!strcmp(k, "pack.deltacachelimit")) {
2471                 cache_max_small_delta_size = git_config_int(k, v);
2472                 return 0;
2473         }
2474         if (!strcmp(k, "pack.writebitmaphashcache")) {
2475                 if (git_config_bool(k, v))
2476                         write_bitmap_options |= BITMAP_OPT_HASH_CACHE;
2477                 else
2478                         write_bitmap_options &= ~BITMAP_OPT_HASH_CACHE;
2479         }
2480         if (!strcmp(k, "pack.usebitmaps")) {
2481                 use_bitmap_index_default = git_config_bool(k, v);
2482                 return 0;
2483         }
2484         if (!strcmp(k, "pack.threads")) {
2485                 delta_search_threads = git_config_int(k, v);
2486                 if (delta_search_threads < 0)
2487                         die("invalid number of threads specified (%d)",
2488                             delta_search_threads);
2489 #ifdef NO_PTHREADS
2490                 if (delta_search_threads != 1) {
2491                         warning("no threads support, ignoring %s", k);
2492                         delta_search_threads = 0;
2493                 }
2494 #endif
2495                 return 0;
2496         }
2497         if (!strcmp(k, "pack.indexversion")) {
2498                 pack_idx_opts.version = git_config_int(k, v);
2499                 if (pack_idx_opts.version > 2)
2500                         die("bad pack.indexversion=%"PRIu32,
2501                             pack_idx_opts.version);
2502                 return 0;
2503         }
2504         return git_default_config(k, v, cb);
2505 }
2506
2507 static void read_object_list_from_stdin(void)
2508 {
2509         char line[40 + 1 + PATH_MAX + 2];
2510         unsigned char sha1[20];
2511
2512         for (;;) {
2513                 if (!fgets(line, sizeof(line), stdin)) {
2514                         if (feof(stdin))
2515                                 break;
2516                         if (!ferror(stdin))
2517                                 die("fgets returned NULL, not EOF, not error!");
2518                         if (errno != EINTR)
2519                                 die_errno("fgets");
2520                         clearerr(stdin);
2521                         continue;
2522                 }
2523                 if (line[0] == '-') {
2524                         if (get_sha1_hex(line+1, sha1))
2525                                 die("expected edge sha1, got garbage:\n %s",
2526                                     line);
2527                         add_preferred_base(sha1);
2528                         continue;
2529                 }
2530                 if (get_sha1_hex(line, sha1))
2531                         die("expected sha1, got garbage:\n %s", line);
2532
2533                 add_preferred_base_object(line+41);
2534                 add_object_entry(sha1, 0, line+41, 0);
2535         }
2536 }
2537
2538 #define OBJECT_ADDED (1u<<20)
2539
2540 static void show_commit(struct commit *commit, void *data)
2541 {
2542         add_object_entry(commit->object.oid.hash, OBJ_COMMIT, NULL, 0);
2543         commit->object.flags |= OBJECT_ADDED;
2544
2545         if (write_bitmap_index)
2546                 index_commit_for_bitmap(commit);
2547 }
2548
2549 static void show_object(struct object *obj, const char *name, void *data)
2550 {
2551         add_preferred_base_object(name);
2552         add_object_entry(obj->oid.hash, obj->type, name, 0);
2553         obj->flags |= OBJECT_ADDED;
2554 }
2555
2556 static void show_edge(struct commit *commit)
2557 {
2558         add_preferred_base(commit->object.oid.hash);
2559 }
2560
2561 struct in_pack_object {
2562         off_t offset;
2563         struct object *object;
2564 };
2565
2566 struct in_pack {
2567         int alloc;
2568         int nr;
2569         struct in_pack_object *array;
2570 };
2571
2572 static void mark_in_pack_object(struct object *object, struct packed_git *p, struct in_pack *in_pack)
2573 {
2574         in_pack->array[in_pack->nr].offset = find_pack_entry_one(object->oid.hash, p);
2575         in_pack->array[in_pack->nr].object = object;
2576         in_pack->nr++;
2577 }
2578
2579 /*
2580  * Compare the objects in the offset order, in order to emulate the
2581  * "git rev-list --objects" output that produced the pack originally.
2582  */
2583 static int ofscmp(const void *a_, const void *b_)
2584 {
2585         struct in_pack_object *a = (struct in_pack_object *)a_;
2586         struct in_pack_object *b = (struct in_pack_object *)b_;
2587
2588         if (a->offset < b->offset)
2589                 return -1;
2590         else if (a->offset > b->offset)
2591                 return 1;
2592         else
2593                 return oidcmp(&a->object->oid, &b->object->oid);
2594 }
2595
2596 static void add_objects_in_unpacked_packs(struct rev_info *revs)
2597 {
2598         struct packed_git *p;
2599         struct in_pack in_pack;
2600         uint32_t i;
2601
2602         memset(&in_pack, 0, sizeof(in_pack));
2603
2604         for (p = packed_git; p; p = p->next) {
2605                 const unsigned char *sha1;
2606                 struct object *o;
2607
2608                 if (!p->pack_local || p->pack_keep)
2609                         continue;
2610                 if (open_pack_index(p))
2611                         die("cannot open pack index");
2612
2613                 ALLOC_GROW(in_pack.array,
2614                            in_pack.nr + p->num_objects,
2615                            in_pack.alloc);
2616
2617                 for (i = 0; i < p->num_objects; i++) {
2618                         sha1 = nth_packed_object_sha1(p, i);
2619                         o = lookup_unknown_object(sha1);
2620                         if (!(o->flags & OBJECT_ADDED))
2621                                 mark_in_pack_object(o, p, &in_pack);
2622                         o->flags |= OBJECT_ADDED;
2623                 }
2624         }
2625
2626         if (in_pack.nr) {
2627                 QSORT(in_pack.array, in_pack.nr, ofscmp);
2628                 for (i = 0; i < in_pack.nr; i++) {
2629                         struct object *o = in_pack.array[i].object;
2630                         add_object_entry(o->oid.hash, o->type, "", 0);
2631                 }
2632         }
2633         free(in_pack.array);
2634 }
2635
2636 static int add_loose_object(const struct object_id *oid, const char *path,
2637                             void *data)
2638 {
2639         enum object_type type = sha1_object_info(oid->hash, NULL);
2640
2641         if (type < 0) {
2642                 warning("loose object at %s could not be examined", path);
2643                 return 0;
2644         }
2645
2646         add_object_entry(oid->hash, type, "", 0);
2647         return 0;
2648 }
2649
2650 /*
2651  * We actually don't even have to worry about reachability here.
2652  * add_object_entry will weed out duplicates, so we just add every
2653  * loose object we find.
2654  */
2655 static void add_unreachable_loose_objects(void)
2656 {
2657         for_each_loose_file_in_objdir(get_object_directory(),
2658                                       add_loose_object,
2659                                       NULL, NULL, NULL);
2660 }
2661
2662 static int has_sha1_pack_kept_or_nonlocal(const unsigned char *sha1)
2663 {
2664         static struct packed_git *last_found = (void *)1;
2665         struct packed_git *p;
2666
2667         p = (last_found != (void *)1) ? last_found : packed_git;
2668
2669         while (p) {
2670                 if ((!p->pack_local || p->pack_keep) &&
2671                         find_pack_entry_one(sha1, p)) {
2672                         last_found = p;
2673                         return 1;
2674                 }
2675                 if (p == last_found)
2676                         p = packed_git;
2677                 else
2678                         p = p->next;
2679                 if (p == last_found)
2680                         p = p->next;
2681         }
2682         return 0;
2683 }
2684
2685 /*
2686  * Store a list of sha1s that are should not be discarded
2687  * because they are either written too recently, or are
2688  * reachable from another object that was.
2689  *
2690  * This is filled by get_object_list.
2691  */
2692 static struct oid_array recent_objects;
2693
2694 static int loosened_object_can_be_discarded(const struct object_id *oid,
2695                                             timestamp_t mtime)
2696 {
2697         if (!unpack_unreachable_expiration)
2698                 return 0;
2699         if (mtime > unpack_unreachable_expiration)
2700                 return 0;
2701         if (oid_array_lookup(&recent_objects, oid) >= 0)
2702                 return 0;
2703         return 1;
2704 }
2705
2706 static void loosen_unused_packed_objects(struct rev_info *revs)
2707 {
2708         struct packed_git *p;
2709         uint32_t i;
2710         struct object_id oid;
2711
2712         for (p = packed_git; p; p = p->next) {
2713                 if (!p->pack_local || p->pack_keep)
2714                         continue;
2715
2716                 if (open_pack_index(p))
2717                         die("cannot open pack index");
2718
2719                 for (i = 0; i < p->num_objects; i++) {
2720                         nth_packed_object_oid(&oid, p, i);
2721                         if (!packlist_find(&to_pack, oid.hash, NULL) &&
2722                             !has_sha1_pack_kept_or_nonlocal(oid.hash) &&
2723                             !loosened_object_can_be_discarded(&oid, p->mtime))
2724                                 if (force_object_loose(oid.hash, p->mtime))
2725                                         die("unable to force loose object");
2726                 }
2727         }
2728 }
2729
2730 /*
2731  * This tracks any options which pack-reuse code expects to be on, or which a
2732  * reader of the pack might not understand, and which would therefore prevent
2733  * blind reuse of what we have on disk.
2734  */
2735 static int pack_options_allow_reuse(void)
2736 {
2737         return pack_to_stdout &&
2738                allow_ofs_delta &&
2739                !ignore_packed_keep &&
2740                (!local || !have_non_local_packs) &&
2741                !incremental;
2742 }
2743
2744 static int get_object_list_from_bitmap(struct rev_info *revs)
2745 {
2746         if (prepare_bitmap_walk(revs) < 0)
2747                 return -1;
2748
2749         if (pack_options_allow_reuse() &&
2750             !reuse_partial_packfile_from_bitmap(
2751                         &reuse_packfile,
2752                         &reuse_packfile_objects,
2753                         &reuse_packfile_offset)) {
2754                 assert(reuse_packfile_objects);
2755                 nr_result += reuse_packfile_objects;
2756                 display_progress(progress_state, nr_result);
2757         }
2758
2759         traverse_bitmap_commit_list(&add_object_entry_from_bitmap);
2760         return 0;
2761 }
2762
2763 static void record_recent_object(struct object *obj,
2764                                  const char *name,
2765                                  void *data)
2766 {
2767         oid_array_append(&recent_objects, &obj->oid);
2768 }
2769
2770 static void record_recent_commit(struct commit *commit, void *data)
2771 {
2772         oid_array_append(&recent_objects, &commit->object.oid);
2773 }
2774
2775 static void get_object_list(int ac, const char **av)
2776 {
2777         struct rev_info revs;
2778         char line[1000];
2779         int flags = 0;
2780
2781         init_revisions(&revs, NULL);
2782         save_commit_buffer = 0;
2783         setup_revisions(ac, av, &revs, NULL);
2784
2785         /* make sure shallows are read */
2786         is_repository_shallow();
2787
2788         while (fgets(line, sizeof(line), stdin) != NULL) {
2789                 int len = strlen(line);
2790                 if (len && line[len - 1] == '\n')
2791                         line[--len] = 0;
2792                 if (!len)
2793                         break;
2794                 if (*line == '-') {
2795                         if (!strcmp(line, "--not")) {
2796                                 flags ^= UNINTERESTING;
2797                                 write_bitmap_index = 0;
2798                                 continue;
2799                         }
2800                         if (starts_with(line, "--shallow ")) {
2801                                 struct object_id oid;
2802                                 if (get_oid_hex(line + 10, &oid))
2803                                         die("not an SHA-1 '%s'", line + 10);
2804                                 register_shallow(&oid);
2805                                 use_bitmap_index = 0;
2806                                 continue;
2807                         }
2808                         die("not a rev '%s'", line);
2809                 }
2810                 if (handle_revision_arg(line, &revs, flags, REVARG_CANNOT_BE_FILENAME))
2811                         die("bad revision '%s'", line);
2812         }
2813
2814         if (use_bitmap_index && !get_object_list_from_bitmap(&revs))
2815                 return;
2816
2817         if (prepare_revision_walk(&revs))
2818                 die("revision walk setup failed");
2819         mark_edges_uninteresting(&revs, show_edge);
2820         traverse_commit_list(&revs, show_commit, show_object, NULL);
2821
2822         if (unpack_unreachable_expiration) {
2823                 revs.ignore_missing_links = 1;
2824                 if (add_unseen_recent_objects_to_traversal(&revs,
2825                                 unpack_unreachable_expiration))
2826                         die("unable to add recent objects");
2827                 if (prepare_revision_walk(&revs))
2828                         die("revision walk setup failed");
2829                 traverse_commit_list(&revs, record_recent_commit,
2830                                      record_recent_object, NULL);
2831         }
2832
2833         if (keep_unreachable)
2834                 add_objects_in_unpacked_packs(&revs);
2835         if (pack_loose_unreachable)
2836                 add_unreachable_loose_objects();
2837         if (unpack_unreachable)
2838                 loosen_unused_packed_objects(&revs);
2839
2840         oid_array_clear(&recent_objects);
2841 }
2842
2843 static int option_parse_index_version(const struct option *opt,
2844                                       const char *arg, int unset)
2845 {
2846         char *c;
2847         const char *val = arg;
2848         pack_idx_opts.version = strtoul(val, &c, 10);
2849         if (pack_idx_opts.version > 2)
2850                 die(_("unsupported index version %s"), val);
2851         if (*c == ',' && c[1])
2852                 pack_idx_opts.off32_limit = strtoul(c+1, &c, 0);
2853         if (*c || pack_idx_opts.off32_limit & 0x80000000)
2854                 die(_("bad index version '%s'"), val);
2855         return 0;
2856 }
2857
2858 static int option_parse_unpack_unreachable(const struct option *opt,
2859                                            const char *arg, int unset)
2860 {
2861         if (unset) {
2862                 unpack_unreachable = 0;
2863                 unpack_unreachable_expiration = 0;
2864         }
2865         else {
2866                 unpack_unreachable = 1;
2867                 if (arg)
2868                         unpack_unreachable_expiration = approxidate(arg);
2869         }
2870         return 0;
2871 }
2872
2873 int cmd_pack_objects(int argc, const char **argv, const char *prefix)
2874 {
2875         int use_internal_rev_list = 0;
2876         int thin = 0;
2877         int shallow = 0;
2878         int all_progress_implied = 0;
2879         struct argv_array rp = ARGV_ARRAY_INIT;
2880         int rev_list_unpacked = 0, rev_list_all = 0, rev_list_reflog = 0;
2881         int rev_list_index = 0;
2882         struct option pack_objects_options[] = {
2883                 OPT_SET_INT('q', "quiet", &progress,
2884                             N_("do not show progress meter"), 0),
2885                 OPT_SET_INT(0, "progress", &progress,
2886                             N_("show progress meter"), 1),
2887                 OPT_SET_INT(0, "all-progress", &progress,
2888                             N_("show progress meter during object writing phase"), 2),
2889                 OPT_BOOL(0, "all-progress-implied",
2890                          &all_progress_implied,
2891                          N_("similar to --all-progress when progress meter is shown")),
2892                 { OPTION_CALLBACK, 0, "index-version", NULL, N_("version[,offset]"),
2893                   N_("write the pack index file in the specified idx format version"),
2894                   0, option_parse_index_version },
2895                 OPT_MAGNITUDE(0, "max-pack-size", &pack_size_limit,
2896                               N_("maximum size of each output pack file")),
2897                 OPT_BOOL(0, "local", &local,
2898                          N_("ignore borrowed objects from alternate object store")),
2899                 OPT_BOOL(0, "incremental", &incremental,
2900                          N_("ignore packed objects")),
2901                 OPT_INTEGER(0, "window", &window,
2902                             N_("limit pack window by objects")),
2903                 OPT_MAGNITUDE(0, "window-memory", &window_memory_limit,
2904                               N_("limit pack window by memory in addition to object limit")),
2905                 OPT_INTEGER(0, "depth", &depth,
2906                             N_("maximum length of delta chain allowed in the resulting pack")),
2907                 OPT_BOOL(0, "reuse-delta", &reuse_delta,
2908                          N_("reuse existing deltas")),
2909                 OPT_BOOL(0, "reuse-object", &reuse_object,
2910                          N_("reuse existing objects")),
2911                 OPT_BOOL(0, "delta-base-offset", &allow_ofs_delta,
2912                          N_("use OFS_DELTA objects")),
2913                 OPT_INTEGER(0, "threads", &delta_search_threads,
2914                             N_("use threads when searching for best delta matches")),
2915                 OPT_BOOL(0, "non-empty", &non_empty,
2916                          N_("do not create an empty pack output")),
2917                 OPT_BOOL(0, "revs", &use_internal_rev_list,
2918                          N_("read revision arguments from standard input")),
2919                 { OPTION_SET_INT, 0, "unpacked", &rev_list_unpacked, NULL,
2920                   N_("limit the objects to those that are not yet packed"),
2921                   PARSE_OPT_NOARG | PARSE_OPT_NONEG, NULL, 1 },
2922                 { OPTION_SET_INT, 0, "all", &rev_list_all, NULL,
2923                   N_("include objects reachable from any reference"),
2924                   PARSE_OPT_NOARG | PARSE_OPT_NONEG, NULL, 1 },
2925                 { OPTION_SET_INT, 0, "reflog", &rev_list_reflog, NULL,
2926                   N_("include objects referred by reflog entries"),
2927                   PARSE_OPT_NOARG | PARSE_OPT_NONEG, NULL, 1 },
2928                 { OPTION_SET_INT, 0, "indexed-objects", &rev_list_index, NULL,
2929                   N_("include objects referred to by the index"),
2930                   PARSE_OPT_NOARG | PARSE_OPT_NONEG, NULL, 1 },
2931                 OPT_BOOL(0, "stdout", &pack_to_stdout,
2932                          N_("output pack to stdout")),
2933                 OPT_BOOL(0, "include-tag", &include_tag,
2934                          N_("include tag objects that refer to objects to be packed")),
2935                 OPT_BOOL(0, "keep-unreachable", &keep_unreachable,
2936                          N_("keep unreachable objects")),
2937                 OPT_BOOL(0, "pack-loose-unreachable", &pack_loose_unreachable,
2938                          N_("pack loose unreachable objects")),
2939                 { OPTION_CALLBACK, 0, "unpack-unreachable", NULL, N_("time"),
2940                   N_("unpack unreachable objects newer than <time>"),
2941                   PARSE_OPT_OPTARG, option_parse_unpack_unreachable },
2942                 OPT_BOOL(0, "thin", &thin,
2943                          N_("create thin packs")),
2944                 OPT_BOOL(0, "shallow", &shallow,
2945                          N_("create packs suitable for shallow fetches")),
2946                 OPT_BOOL(0, "honor-pack-keep", &ignore_packed_keep,
2947                          N_("ignore packs that have companion .keep file")),
2948                 OPT_INTEGER(0, "compression", &pack_compression_level,
2949                             N_("pack compression level")),
2950                 OPT_SET_INT(0, "keep-true-parents", &grafts_replace_parents,
2951                             N_("do not hide commits by grafts"), 0),
2952                 OPT_BOOL(0, "use-bitmap-index", &use_bitmap_index,
2953                          N_("use a bitmap index if available to speed up counting objects")),
2954                 OPT_BOOL(0, "write-bitmap-index", &write_bitmap_index,
2955                          N_("write a bitmap index together with the pack index")),
2956                 OPT_END(),
2957         };
2958
2959         check_replace_refs = 0;
2960
2961         reset_pack_idx_option(&pack_idx_opts);
2962         git_config(git_pack_config, NULL);
2963
2964         progress = isatty(2);
2965         argc = parse_options(argc, argv, prefix, pack_objects_options,
2966                              pack_usage, 0);
2967
2968         if (argc) {
2969                 base_name = argv[0];
2970                 argc--;
2971         }
2972         if (pack_to_stdout != !base_name || argc)
2973                 usage_with_options(pack_usage, pack_objects_options);
2974
2975         argv_array_push(&rp, "pack-objects");
2976         if (thin) {
2977                 use_internal_rev_list = 1;
2978                 argv_array_push(&rp, shallow
2979                                 ? "--objects-edge-aggressive"
2980                                 : "--objects-edge");
2981         } else
2982                 argv_array_push(&rp, "--objects");
2983
2984         if (rev_list_all) {
2985                 use_internal_rev_list = 1;
2986                 argv_array_push(&rp, "--all");
2987         }
2988         if (rev_list_reflog) {
2989                 use_internal_rev_list = 1;
2990                 argv_array_push(&rp, "--reflog");
2991         }
2992         if (rev_list_index) {
2993                 use_internal_rev_list = 1;
2994                 argv_array_push(&rp, "--indexed-objects");
2995         }
2996         if (rev_list_unpacked) {
2997                 use_internal_rev_list = 1;
2998                 argv_array_push(&rp, "--unpacked");
2999         }
3000
3001         if (!reuse_object)
3002                 reuse_delta = 0;
3003         if (pack_compression_level == -1)
3004                 pack_compression_level = Z_DEFAULT_COMPRESSION;
3005         else if (pack_compression_level < 0 || pack_compression_level > Z_BEST_COMPRESSION)
3006                 die("bad pack compression level %d", pack_compression_level);
3007
3008         if (!delta_search_threads)      /* --threads=0 means autodetect */
3009                 delta_search_threads = online_cpus();
3010
3011 #ifdef NO_PTHREADS
3012         if (delta_search_threads != 1)
3013                 warning("no threads support, ignoring --threads");
3014 #endif
3015         if (!pack_to_stdout && !pack_size_limit)
3016                 pack_size_limit = pack_size_limit_cfg;
3017         if (pack_to_stdout && pack_size_limit)
3018                 die("--max-pack-size cannot be used to build a pack for transfer.");
3019         if (pack_size_limit && pack_size_limit < 1024*1024) {
3020                 warning("minimum pack size limit is 1 MiB");
3021                 pack_size_limit = 1024*1024;
3022         }
3023
3024         if (!pack_to_stdout && thin)
3025                 die("--thin cannot be used to build an indexable pack.");
3026
3027         if (keep_unreachable && unpack_unreachable)
3028                 die("--keep-unreachable and --unpack-unreachable are incompatible.");
3029         if (!rev_list_all || !rev_list_reflog || !rev_list_index)
3030                 unpack_unreachable_expiration = 0;
3031
3032         /*
3033          * "soft" reasons not to use bitmaps - for on-disk repack by default we want
3034          *
3035          * - to produce good pack (with bitmap index not-yet-packed objects are
3036          *   packed in suboptimal order).
3037          *
3038          * - to use more robust pack-generation codepath (avoiding possible
3039          *   bugs in bitmap code and possible bitmap index corruption).
3040          */
3041         if (!pack_to_stdout)
3042                 use_bitmap_index_default = 0;
3043
3044         if (use_bitmap_index < 0)
3045                 use_bitmap_index = use_bitmap_index_default;
3046
3047         /* "hard" reasons not to use bitmaps; these just won't work at all */
3048         if (!use_internal_rev_list || (!pack_to_stdout && write_bitmap_index) || is_repository_shallow())
3049                 use_bitmap_index = 0;
3050
3051         if (pack_to_stdout || !rev_list_all)
3052                 write_bitmap_index = 0;
3053
3054         if (progress && all_progress_implied)
3055                 progress = 2;
3056
3057         prepare_packed_git();
3058         if (ignore_packed_keep) {
3059                 struct packed_git *p;
3060                 for (p = packed_git; p; p = p->next)
3061                         if (p->pack_local && p->pack_keep)
3062                                 break;
3063                 if (!p) /* no keep-able packs found */
3064                         ignore_packed_keep = 0;
3065         }
3066         if (local) {
3067                 /*
3068                  * unlike ignore_packed_keep above, we do not want to
3069                  * unset "local" based on looking at packs, as it
3070                  * also covers non-local objects
3071                  */
3072                 struct packed_git *p;
3073                 for (p = packed_git; p; p = p->next) {
3074                         if (!p->pack_local) {
3075                                 have_non_local_packs = 1;
3076                                 break;
3077                         }
3078                 }
3079         }
3080
3081         if (progress)
3082                 progress_state = start_progress(_("Counting objects"), 0);
3083         if (!use_internal_rev_list)
3084                 read_object_list_from_stdin();
3085         else {
3086                 get_object_list(rp.argc, rp.argv);
3087                 argv_array_clear(&rp);
3088         }
3089         cleanup_preferred_base();
3090         if (include_tag && nr_result)
3091                 for_each_ref(add_ref_tag, NULL);
3092         stop_progress(&progress_state);
3093
3094         if (non_empty && !nr_result)
3095                 return 0;
3096         if (nr_result)
3097                 prepare_pack(window, depth);
3098         write_pack_file();
3099         if (progress)
3100                 fprintf(stderr, "Total %"PRIu32" (delta %"PRIu32"),"
3101                         " reused %"PRIu32" (delta %"PRIu32")\n",
3102                         written, written_delta, reused, reused_delta);
3103         return 0;
3104 }