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1 #include "cache.h"
2 #include "strvec.h"
3 #include "repository.h"
4 #include "config.h"
5 #include "dir.h"
6 #include "tree.h"
7 #include "tree-walk.h"
8 #include "cache-tree.h"
9 #include "unpack-trees.h"
10 #include "progress.h"
11 #include "refs.h"
12 #include "attr.h"
13 #include "split-index.h"
14 #include "submodule.h"
15 #include "submodule-config.h"
16 #include "fsmonitor.h"
17 #include "object-store.h"
18 #include "promisor-remote.h"
19 #include "entry.h"
20 #include "parallel-checkout.h"
21
22 /*
23 * Error messages expected by scripts out of plumbing commands such as
24 * read-tree. Non-scripted Porcelain is not required to use these messages
25 * and in fact are encouraged to reword them to better suit their particular
26 * situation better. See how "git checkout" and "git merge" replaces
27 * them using setup_unpack_trees_porcelain(), for example.
28 */
29 static const char *unpack_plumbing_errors[NB_UNPACK_TREES_WARNING_TYPES] = {
30 /* ERROR_WOULD_OVERWRITE */
31 "Entry '%s' would be overwritten by merge. Cannot merge.",
32
33 /* ERROR_NOT_UPTODATE_FILE */
34 "Entry '%s' not uptodate. Cannot merge.",
35
36 /* ERROR_NOT_UPTODATE_DIR */
37 "Updating '%s' would lose untracked files in it",
38
39 /* ERROR_WOULD_LOSE_UNTRACKED_OVERWRITTEN */
40 "Untracked working tree file '%s' would be overwritten by merge.",
41
42 /* ERROR_WOULD_LOSE_UNTRACKED_REMOVED */
43 "Untracked working tree file '%s' would be removed by merge.",
44
45 /* ERROR_BIND_OVERLAP */
46 "Entry '%s' overlaps with '%s'. Cannot bind.",
47
48 /* ERROR_WOULD_LOSE_SUBMODULE */
49 "Submodule '%s' cannot checkout new HEAD.",
50
51 /* NB_UNPACK_TREES_ERROR_TYPES; just a meta value */
52 "",
53
54 /* WARNING_SPARSE_NOT_UPTODATE_FILE */
55 "Path '%s' not uptodate; will not remove from working tree.",
56
57 /* WARNING_SPARSE_UNMERGED_FILE */
58 "Path '%s' unmerged; will not remove from working tree.",
59
60 /* WARNING_SPARSE_ORPHANED_NOT_OVERWRITTEN */
61 "Path '%s' already present; will not overwrite with sparse update.",
62 };
63
64 #define ERRORMSG(o,type) \
65 ( ((o) && (o)->msgs[(type)]) \
66 ? ((o)->msgs[(type)]) \
67 : (unpack_plumbing_errors[(type)]) )
68
69 static const char *super_prefixed(const char *path)
70 {
71 /*
72 * It is necessary and sufficient to have two static buffers
73 * here, as the return value of this function is fed to
74 * error() using the unpack_*_errors[] templates we see above.
75 */
76 static struct strbuf buf[2] = {STRBUF_INIT, STRBUF_INIT};
77 static int super_prefix_len = -1;
78 static unsigned idx = ARRAY_SIZE(buf) - 1;
79
80 if (super_prefix_len < 0) {
81 const char *super_prefix = get_super_prefix();
82 if (!super_prefix) {
83 super_prefix_len = 0;
84 } else {
85 int i;
86 for (i = 0; i < ARRAY_SIZE(buf); i++)
87 strbuf_addstr(&buf[i], super_prefix);
88 super_prefix_len = buf[0].len;
89 }
90 }
91
92 if (!super_prefix_len)
93 return path;
94
95 if (++idx >= ARRAY_SIZE(buf))
96 idx = 0;
97
98 strbuf_setlen(&buf[idx], super_prefix_len);
99 strbuf_addstr(&buf[idx], path);
100
101 return buf[idx].buf;
102 }
103
104 void setup_unpack_trees_porcelain(struct unpack_trees_options *opts,
105 const char *cmd)
106 {
107 int i;
108 const char **msgs = opts->msgs;
109 const char *msg;
110
111 strvec_init(&opts->msgs_to_free);
112
113 if (!strcmp(cmd, "checkout"))
114 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
115 ? _("Your local changes to the following files would be overwritten by checkout:\n%%s"
116 "Please commit your changes or stash them before you switch branches.")
117 : _("Your local changes to the following files would be overwritten by checkout:\n%%s");
118 else if (!strcmp(cmd, "merge"))
119 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
120 ? _("Your local changes to the following files would be overwritten by merge:\n%%s"
121 "Please commit your changes or stash them before you merge.")
122 : _("Your local changes to the following files would be overwritten by merge:\n%%s");
123 else
124 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
125 ? _("Your local changes to the following files would be overwritten by %s:\n%%s"
126 "Please commit your changes or stash them before you %s.")
127 : _("Your local changes to the following files would be overwritten by %s:\n%%s");
128 msgs[ERROR_WOULD_OVERWRITE] = msgs[ERROR_NOT_UPTODATE_FILE] =
129 strvec_pushf(&opts->msgs_to_free, msg, cmd, cmd);
130
131 msgs[ERROR_NOT_UPTODATE_DIR] =
132 _("Updating the following directories would lose untracked files in them:\n%s");
133
134 if (!strcmp(cmd, "checkout"))
135 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
136 ? _("The following untracked working tree files would be removed by checkout:\n%%s"
137 "Please move or remove them before you switch branches.")
138 : _("The following untracked working tree files would be removed by checkout:\n%%s");
139 else if (!strcmp(cmd, "merge"))
140 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
141 ? _("The following untracked working tree files would be removed by merge:\n%%s"
142 "Please move or remove them before you merge.")
143 : _("The following untracked working tree files would be removed by merge:\n%%s");
144 else
145 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
146 ? _("The following untracked working tree files would be removed by %s:\n%%s"
147 "Please move or remove them before you %s.")
148 : _("The following untracked working tree files would be removed by %s:\n%%s");
149 msgs[ERROR_WOULD_LOSE_UNTRACKED_REMOVED] =
150 strvec_pushf(&opts->msgs_to_free, msg, cmd, cmd);
151
152 if (!strcmp(cmd, "checkout"))
153 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
154 ? _("The following untracked working tree files would be overwritten by checkout:\n%%s"
155 "Please move or remove them before you switch branches.")
156 : _("The following untracked working tree files would be overwritten by checkout:\n%%s");
157 else if (!strcmp(cmd, "merge"))
158 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
159 ? _("The following untracked working tree files would be overwritten by merge:\n%%s"
160 "Please move or remove them before you merge.")
161 : _("The following untracked working tree files would be overwritten by merge:\n%%s");
162 else
163 msg = advice_enabled(ADVICE_COMMIT_BEFORE_MERGE)
164 ? _("The following untracked working tree files would be overwritten by %s:\n%%s"
165 "Please move or remove them before you %s.")
166 : _("The following untracked working tree files would be overwritten by %s:\n%%s");
167 msgs[ERROR_WOULD_LOSE_UNTRACKED_OVERWRITTEN] =
168 strvec_pushf(&opts->msgs_to_free, msg, cmd, cmd);
169
170 /*
171 * Special case: ERROR_BIND_OVERLAP refers to a pair of paths, we
172 * cannot easily display it as a list.
173 */
174 msgs[ERROR_BIND_OVERLAP] = _("Entry '%s' overlaps with '%s'. Cannot bind.");
175
176 msgs[ERROR_WOULD_LOSE_SUBMODULE] =
177 _("Cannot update submodule:\n%s");
178
179 msgs[WARNING_SPARSE_NOT_UPTODATE_FILE] =
180 _("The following paths are not up to date and were left despite sparse patterns:\n%s");
181 msgs[WARNING_SPARSE_UNMERGED_FILE] =
182 _("The following paths are unmerged and were left despite sparse patterns:\n%s");
183 msgs[WARNING_SPARSE_ORPHANED_NOT_OVERWRITTEN] =
184 _("The following paths were already present and thus not updated despite sparse patterns:\n%s");
185
186 opts->show_all_errors = 1;
187 /* rejected paths may not have a static buffer */
188 for (i = 0; i < ARRAY_SIZE(opts->unpack_rejects); i++)
189 opts->unpack_rejects[i].strdup_strings = 1;
190 }
191
192 void clear_unpack_trees_porcelain(struct unpack_trees_options *opts)
193 {
194 strvec_clear(&opts->msgs_to_free);
195 memset(opts->msgs, 0, sizeof(opts->msgs));
196 }
197
198 static int do_add_entry(struct unpack_trees_options *o, struct cache_entry *ce,
199 unsigned int set, unsigned int clear)
200 {
201 clear |= CE_HASHED;
202
203 if (set & CE_REMOVE)
204 set |= CE_WT_REMOVE;
205
206 ce->ce_flags = (ce->ce_flags & ~clear) | set;
207 return add_index_entry(&o->result, ce,
208 ADD_CACHE_OK_TO_ADD | ADD_CACHE_OK_TO_REPLACE);
209 }
210
211 static void add_entry(struct unpack_trees_options *o,
212 const struct cache_entry *ce,
213 unsigned int set, unsigned int clear)
214 {
215 do_add_entry(o, dup_cache_entry(ce, &o->result), set, clear);
216 }
217
218 /*
219 * add error messages on path <path>
220 * corresponding to the type <e> with the message <msg>
221 * indicating if it should be display in porcelain or not
222 */
223 static int add_rejected_path(struct unpack_trees_options *o,
224 enum unpack_trees_error_types e,
225 const char *path)
226 {
227 if (o->quiet)
228 return -1;
229
230 if (!o->show_all_errors)
231 return error(ERRORMSG(o, e), super_prefixed(path));
232
233 /*
234 * Otherwise, insert in a list for future display by
235 * display_(error|warning)_msgs()
236 */
237 string_list_append(&o->unpack_rejects[e], path);
238 return -1;
239 }
240
241 /*
242 * display all the error messages stored in a nice way
243 */
244 static void display_error_msgs(struct unpack_trees_options *o)
245 {
246 int e;
247 unsigned error_displayed = 0;
248 for (e = 0; e < NB_UNPACK_TREES_ERROR_TYPES; e++) {
249 struct string_list *rejects = &o->unpack_rejects[e];
250
251 if (rejects->nr > 0) {
252 int i;
253 struct strbuf path = STRBUF_INIT;
254
255 error_displayed = 1;
256 for (i = 0; i < rejects->nr; i++)
257 strbuf_addf(&path, "\t%s\n", rejects->items[i].string);
258 error(ERRORMSG(o, e), super_prefixed(path.buf));
259 strbuf_release(&path);
260 }
261 string_list_clear(rejects, 0);
262 }
263 if (error_displayed)
264 fprintf(stderr, _("Aborting\n"));
265 }
266
267 /*
268 * display all the warning messages stored in a nice way
269 */
270 static void display_warning_msgs(struct unpack_trees_options *o)
271 {
272 int e;
273 unsigned warning_displayed = 0;
274 for (e = NB_UNPACK_TREES_ERROR_TYPES + 1;
275 e < NB_UNPACK_TREES_WARNING_TYPES; e++) {
276 struct string_list *rejects = &o->unpack_rejects[e];
277
278 if (rejects->nr > 0) {
279 int i;
280 struct strbuf path = STRBUF_INIT;
281
282 warning_displayed = 1;
283 for (i = 0; i < rejects->nr; i++)
284 strbuf_addf(&path, "\t%s\n", rejects->items[i].string);
285 warning(ERRORMSG(o, e), super_prefixed(path.buf));
286 strbuf_release(&path);
287 }
288 string_list_clear(rejects, 0);
289 }
290 if (warning_displayed)
291 fprintf(stderr, _("After fixing the above paths, you may want to run `git sparse-checkout reapply`.\n"));
292 }
293 static int check_submodule_move_head(const struct cache_entry *ce,
294 const char *old_id,
295 const char *new_id,
296 struct unpack_trees_options *o)
297 {
298 unsigned flags = SUBMODULE_MOVE_HEAD_DRY_RUN;
299 const struct submodule *sub = submodule_from_ce(ce);
300
301 if (!sub)
302 return 0;
303
304 if (o->reset)
305 flags |= SUBMODULE_MOVE_HEAD_FORCE;
306
307 if (submodule_move_head(ce->name, old_id, new_id, flags))
308 return add_rejected_path(o, ERROR_WOULD_LOSE_SUBMODULE, ce->name);
309 return 0;
310 }
311
312 /*
313 * Perform the loading of the repository's gitmodules file. This function is
314 * used by 'check_update()' to perform loading of the gitmodules file in two
315 * different situations:
316 * (1) before removing entries from the working tree if the gitmodules file has
317 * been marked for removal. This situation is specified by 'state' == NULL.
318 * (2) before checking out entries to the working tree if the gitmodules file
319 * has been marked for update. This situation is specified by 'state' != NULL.
320 */
321 static void load_gitmodules_file(struct index_state *index,
322 struct checkout *state)
323 {
324 int pos = index_name_pos(index, GITMODULES_FILE, strlen(GITMODULES_FILE));
325
326 if (pos >= 0) {
327 struct cache_entry *ce = index->cache[pos];
328 if (!state && ce->ce_flags & CE_WT_REMOVE) {
329 repo_read_gitmodules(the_repository, 0);
330 } else if (state && (ce->ce_flags & CE_UPDATE)) {
331 submodule_free(the_repository);
332 checkout_entry(ce, state, NULL, NULL);
333 repo_read_gitmodules(the_repository, 0);
334 }
335 }
336 }
337
338 static struct progress *get_progress(struct unpack_trees_options *o,
339 struct index_state *index)
340 {
341 unsigned cnt = 0, total = 0;
342
343 if (!o->update || !o->verbose_update)
344 return NULL;
345
346 for (; cnt < index->cache_nr; cnt++) {
347 const struct cache_entry *ce = index->cache[cnt];
348 if (ce->ce_flags & (CE_UPDATE | CE_WT_REMOVE))
349 total++;
350 }
351
352 return start_delayed_progress(_("Updating files"), total);
353 }
354
355 static void setup_collided_checkout_detection(struct checkout *state,
356 struct index_state *index)
357 {
358 int i;
359
360 state->clone = 1;
361 for (i = 0; i < index->cache_nr; i++)
362 index->cache[i]->ce_flags &= ~CE_MATCHED;
363 }
364
365 static void report_collided_checkout(struct index_state *index)
366 {
367 struct string_list list = STRING_LIST_INIT_NODUP;
368 int i;
369
370 for (i = 0; i < index->cache_nr; i++) {
371 struct cache_entry *ce = index->cache[i];
372
373 if (!(ce->ce_flags & CE_MATCHED))
374 continue;
375
376 string_list_append(&list, ce->name);
377 ce->ce_flags &= ~CE_MATCHED;
378 }
379
380 list.cmp = fspathcmp;
381 string_list_sort(&list);
382
383 if (list.nr) {
384 warning(_("the following paths have collided (e.g. case-sensitive paths\n"
385 "on a case-insensitive filesystem) and only one from the same\n"
386 "colliding group is in the working tree:\n"));
387
388 for (i = 0; i < list.nr; i++)
389 fprintf(stderr, " '%s'\n", list.items[i].string);
390 }
391
392 string_list_clear(&list, 0);
393 }
394
395 static int must_checkout(const struct cache_entry *ce)
396 {
397 return ce->ce_flags & CE_UPDATE;
398 }
399
400 static int check_updates(struct unpack_trees_options *o,
401 struct index_state *index)
402 {
403 unsigned cnt = 0;
404 int errs = 0;
405 struct progress *progress;
406 struct checkout state = CHECKOUT_INIT;
407 int i, pc_workers, pc_threshold;
408
409 trace_performance_enter();
410 state.force = 1;
411 state.quiet = 1;
412 state.refresh_cache = 1;
413 state.istate = index;
414 clone_checkout_metadata(&state.meta, &o->meta, NULL);
415
416 if (!o->update || o->dry_run) {
417 remove_marked_cache_entries(index, 0);
418 trace_performance_leave("check_updates");
419 return 0;
420 }
421
422 if (o->clone)
423 setup_collided_checkout_detection(&state, index);
424
425 progress = get_progress(o, index);
426
427 /* Start with clean cache to avoid using any possibly outdated info. */
428 invalidate_lstat_cache();
429
430 git_attr_set_direction(GIT_ATTR_CHECKOUT);
431
432 if (should_update_submodules())
433 load_gitmodules_file(index, NULL);
434
435 for (i = 0; i < index->cache_nr; i++) {
436 const struct cache_entry *ce = index->cache[i];
437
438 if (ce->ce_flags & CE_WT_REMOVE) {
439 display_progress(progress, ++cnt);
440 unlink_entry(ce);
441 }
442 }
443
444 remove_marked_cache_entries(index, 0);
445 remove_scheduled_dirs();
446
447 if (should_update_submodules())
448 load_gitmodules_file(index, &state);
449
450 if (has_promisor_remote())
451 /*
452 * Prefetch the objects that are to be checked out in the loop
453 * below.
454 */
455 prefetch_cache_entries(index, must_checkout);
456
457 get_parallel_checkout_configs(&pc_workers, &pc_threshold);
458
459 enable_delayed_checkout(&state);
460 if (pc_workers > 1)
461 init_parallel_checkout();
462 for (i = 0; i < index->cache_nr; i++) {
463 struct cache_entry *ce = index->cache[i];
464
465 if (must_checkout(ce)) {
466 size_t last_pc_queue_size = pc_queue_size();
467
468 if (ce->ce_flags & CE_WT_REMOVE)
469 BUG("both update and delete flags are set on %s",
470 ce->name);
471 ce->ce_flags &= ~CE_UPDATE;
472 errs |= checkout_entry(ce, &state, NULL, NULL);
473
474 if (last_pc_queue_size == pc_queue_size())
475 display_progress(progress, ++cnt);
476 }
477 }
478 if (pc_workers > 1)
479 errs |= run_parallel_checkout(&state, pc_workers, pc_threshold,
480 progress, &cnt);
481 stop_progress(&progress);
482 errs |= finish_delayed_checkout(&state, NULL, o->verbose_update);
483 git_attr_set_direction(GIT_ATTR_CHECKIN);
484
485 if (o->clone)
486 report_collided_checkout(index);
487
488 trace_performance_leave("check_updates");
489 return errs != 0;
490 }
491
492 static int verify_uptodate_sparse(const struct cache_entry *ce,
493 struct unpack_trees_options *o);
494 static int verify_absent_sparse(const struct cache_entry *ce,
495 enum unpack_trees_error_types,
496 struct unpack_trees_options *o);
497
498 static int apply_sparse_checkout(struct index_state *istate,
499 struct cache_entry *ce,
500 struct unpack_trees_options *o)
501 {
502 int was_skip_worktree = ce_skip_worktree(ce);
503
504 if (ce->ce_flags & CE_NEW_SKIP_WORKTREE)
505 ce->ce_flags |= CE_SKIP_WORKTREE;
506 else
507 ce->ce_flags &= ~CE_SKIP_WORKTREE;
508 if (was_skip_worktree != ce_skip_worktree(ce)) {
509 ce->ce_flags |= CE_UPDATE_IN_BASE;
510 mark_fsmonitor_invalid(istate, ce);
511 istate->cache_changed |= CE_ENTRY_CHANGED;
512 }
513
514 /*
515 * if (!was_skip_worktree && !ce_skip_worktree()) {
516 * This is perfectly normal. Move on;
517 * }
518 */
519
520 /*
521 * Merge strategies may set CE_UPDATE|CE_REMOVE outside checkout
522 * area as a result of ce_skip_worktree() shortcuts in
523 * verify_absent() and verify_uptodate().
524 * Make sure they don't modify worktree if they are already
525 * outside checkout area
526 */
527 if (was_skip_worktree && ce_skip_worktree(ce)) {
528 ce->ce_flags &= ~CE_UPDATE;
529
530 /*
531 * By default, when CE_REMOVE is on, CE_WT_REMOVE is also
532 * on to get that file removed from both index and worktree.
533 * If that file is already outside worktree area, don't
534 * bother remove it.
535 */
536 if (ce->ce_flags & CE_REMOVE)
537 ce->ce_flags &= ~CE_WT_REMOVE;
538 }
539
540 if (!was_skip_worktree && ce_skip_worktree(ce)) {
541 /*
542 * If CE_UPDATE is set, verify_uptodate() must be called already
543 * also stat info may have lost after merged_entry() so calling
544 * verify_uptodate() again may fail
545 */
546 if (!(ce->ce_flags & CE_UPDATE) &&
547 verify_uptodate_sparse(ce, o)) {
548 ce->ce_flags &= ~CE_SKIP_WORKTREE;
549 return -1;
550 }
551 ce->ce_flags |= CE_WT_REMOVE;
552 ce->ce_flags &= ~CE_UPDATE;
553 }
554 if (was_skip_worktree && !ce_skip_worktree(ce)) {
555 if (verify_absent_sparse(ce, WARNING_SPARSE_ORPHANED_NOT_OVERWRITTEN, o))
556 return -1;
557 ce->ce_flags |= CE_UPDATE;
558 }
559 return 0;
560 }
561
562 static int warn_conflicted_path(struct index_state *istate,
563 int i,
564 struct unpack_trees_options *o)
565 {
566 char *conflicting_path = istate->cache[i]->name;
567 int count = 0;
568
569 add_rejected_path(o, WARNING_SPARSE_UNMERGED_FILE, conflicting_path);
570
571 /* Find out how many higher stage entries are at same path */
572 while ((++count) + i < istate->cache_nr &&
573 !strcmp(conflicting_path, istate->cache[count + i]->name))
574 ; /* do nothing */
575
576 return count;
577 }
578
579 static inline int call_unpack_fn(const struct cache_entry * const *src,
580 struct unpack_trees_options *o)
581 {
582 int ret = o->fn(src, o);
583 if (ret > 0)
584 ret = 0;
585 return ret;
586 }
587
588 static void mark_ce_used(struct cache_entry *ce, struct unpack_trees_options *o)
589 {
590 ce->ce_flags |= CE_UNPACKED;
591
592 /*
593 * If this is a sparse directory, don't advance cache_bottom.
594 * That will be advanced later using the cache-tree data.
595 */
596 if (S_ISSPARSEDIR(ce->ce_mode))
597 return;
598
599 if (o->cache_bottom < o->src_index->cache_nr &&
600 o->src_index->cache[o->cache_bottom] == ce) {
601 int bottom = o->cache_bottom;
602 while (bottom < o->src_index->cache_nr &&
603 o->src_index->cache[bottom]->ce_flags & CE_UNPACKED)
604 bottom++;
605 o->cache_bottom = bottom;
606 }
607 }
608
609 static void mark_all_ce_unused(struct index_state *index)
610 {
611 int i;
612 for (i = 0; i < index->cache_nr; i++)
613 index->cache[i]->ce_flags &= ~(CE_UNPACKED | CE_ADDED | CE_NEW_SKIP_WORKTREE);
614 }
615
616 static int locate_in_src_index(const struct cache_entry *ce,
617 struct unpack_trees_options *o)
618 {
619 struct index_state *index = o->src_index;
620 int len = ce_namelen(ce);
621 int pos = index_name_pos(index, ce->name, len);
622 if (pos < 0)
623 pos = -1 - pos;
624 return pos;
625 }
626
627 /*
628 * We call unpack_index_entry() with an unmerged cache entry
629 * only in diff-index, and it wants a single callback. Skip
630 * the other unmerged entry with the same name.
631 */
632 static void mark_ce_used_same_name(struct cache_entry *ce,
633 struct unpack_trees_options *o)
634 {
635 struct index_state *index = o->src_index;
636 int len = ce_namelen(ce);
637 int pos;
638
639 for (pos = locate_in_src_index(ce, o); pos < index->cache_nr; pos++) {
640 struct cache_entry *next = index->cache[pos];
641 if (len != ce_namelen(next) ||
642 memcmp(ce->name, next->name, len))
643 break;
644 mark_ce_used(next, o);
645 }
646 }
647
648 static struct cache_entry *next_cache_entry(struct unpack_trees_options *o)
649 {
650 const struct index_state *index = o->src_index;
651 int pos = o->cache_bottom;
652
653 while (pos < index->cache_nr) {
654 struct cache_entry *ce = index->cache[pos];
655 if (!(ce->ce_flags & CE_UNPACKED))
656 return ce;
657 pos++;
658 }
659 return NULL;
660 }
661
662 static void add_same_unmerged(const struct cache_entry *ce,
663 struct unpack_trees_options *o)
664 {
665 struct index_state *index = o->src_index;
666 int len = ce_namelen(ce);
667 int pos = index_name_pos(index, ce->name, len);
668
669 if (0 <= pos)
670 die("programming error in a caller of mark_ce_used_same_name");
671 for (pos = -pos - 1; pos < index->cache_nr; pos++) {
672 struct cache_entry *next = index->cache[pos];
673 if (len != ce_namelen(next) ||
674 memcmp(ce->name, next->name, len))
675 break;
676 add_entry(o, next, 0, 0);
677 mark_ce_used(next, o);
678 }
679 }
680
681 static int unpack_index_entry(struct cache_entry *ce,
682 struct unpack_trees_options *o)
683 {
684 const struct cache_entry *src[MAX_UNPACK_TREES + 1] = { NULL, };
685 int ret;
686
687 src[0] = ce;
688
689 mark_ce_used(ce, o);
690 if (ce_stage(ce)) {
691 if (o->skip_unmerged) {
692 add_entry(o, ce, 0, 0);
693 return 0;
694 }
695 }
696 ret = call_unpack_fn(src, o);
697 if (ce_stage(ce))
698 mark_ce_used_same_name(ce, o);
699 return ret;
700 }
701
702 static int find_cache_pos(struct traverse_info *, const char *p, size_t len);
703
704 static void restore_cache_bottom(struct traverse_info *info, int bottom)
705 {
706 struct unpack_trees_options *o = info->data;
707
708 if (o->diff_index_cached)
709 return;
710 o->cache_bottom = bottom;
711 }
712
713 static int switch_cache_bottom(struct traverse_info *info)
714 {
715 struct unpack_trees_options *o = info->data;
716 int ret, pos;
717
718 if (o->diff_index_cached)
719 return 0;
720 ret = o->cache_bottom;
721 pos = find_cache_pos(info->prev, info->name, info->namelen);
722
723 if (pos < -1)
724 o->cache_bottom = -2 - pos;
725 else if (pos < 0)
726 o->cache_bottom = o->src_index->cache_nr;
727 return ret;
728 }
729
730 static inline int are_same_oid(struct name_entry *name_j, struct name_entry *name_k)
731 {
732 return !is_null_oid(&name_j->oid) && !is_null_oid(&name_k->oid) && oideq(&name_j->oid, &name_k->oid);
733 }
734
735 static int all_trees_same_as_cache_tree(int n, unsigned long dirmask,
736 struct name_entry *names,
737 struct traverse_info *info)
738 {
739 struct unpack_trees_options *o = info->data;
740 int i;
741
742 if (!o->merge || dirmask != ((1 << n) - 1))
743 return 0;
744
745 for (i = 1; i < n; i++)
746 if (!are_same_oid(names, names + i))
747 return 0;
748
749 return cache_tree_matches_traversal(o->src_index->cache_tree, names, info);
750 }
751
752 static int index_pos_by_traverse_info(struct name_entry *names,
753 struct traverse_info *info)
754 {
755 struct unpack_trees_options *o = info->data;
756 struct strbuf name = STRBUF_INIT;
757 int pos;
758
759 strbuf_make_traverse_path(&name, info, names->path, names->pathlen);
760 strbuf_addch(&name, '/');
761 pos = index_name_pos(o->src_index, name.buf, name.len);
762 if (pos >= 0) {
763 if (!o->src_index->sparse_index ||
764 !(o->src_index->cache[pos]->ce_flags & CE_SKIP_WORKTREE))
765 BUG("This is a directory and should not exist in index");
766 } else {
767 pos = -pos - 1;
768 }
769 if (pos >= o->src_index->cache_nr ||
770 !starts_with(o->src_index->cache[pos]->name, name.buf) ||
771 (pos > 0 && starts_with(o->src_index->cache[pos-1]->name, name.buf)))
772 BUG("pos %d doesn't point to the first entry of %s in index",
773 pos, name.buf);
774 strbuf_release(&name);
775 return pos;
776 }
777
778 /*
779 * Fast path if we detect that all trees are the same as cache-tree at this
780 * path. We'll walk these trees in an iterative loop using cache-tree/index
781 * instead of ODB since we already know what these trees contain.
782 */
783 static int traverse_by_cache_tree(int pos, int nr_entries, int nr_names,
784 struct traverse_info *info)
785 {
786 struct cache_entry *src[MAX_UNPACK_TREES + 1] = { NULL, };
787 struct unpack_trees_options *o = info->data;
788 struct cache_entry *tree_ce = NULL;
789 int ce_len = 0;
790 int i, d;
791
792 if (!o->merge)
793 BUG("We need cache-tree to do this optimization");
794
795 /*
796 * Do what unpack_callback() and unpack_single_entry() normally
797 * do. But we walk all paths in an iterative loop instead.
798 *
799 * D/F conflicts and higher stage entries are not a concern
800 * because cache-tree would be invalidated and we would never
801 * get here in the first place.
802 */
803 for (i = 0; i < nr_entries; i++) {
804 int new_ce_len, len, rc;
805
806 src[0] = o->src_index->cache[pos + i];
807
808 len = ce_namelen(src[0]);
809 new_ce_len = cache_entry_size(len);
810
811 if (new_ce_len > ce_len) {
812 new_ce_len <<= 1;
813 tree_ce = xrealloc(tree_ce, new_ce_len);
814 memset(tree_ce, 0, new_ce_len);
815 ce_len = new_ce_len;
816
817 tree_ce->ce_flags = create_ce_flags(0);
818
819 for (d = 1; d <= nr_names; d++)
820 src[d] = tree_ce;
821 }
822
823 tree_ce->ce_mode = src[0]->ce_mode;
824 tree_ce->ce_namelen = len;
825 oidcpy(&tree_ce->oid, &src[0]->oid);
826 memcpy(tree_ce->name, src[0]->name, len + 1);
827
828 rc = call_unpack_fn((const struct cache_entry * const *)src, o);
829 if (rc < 0) {
830 free(tree_ce);
831 return rc;
832 }
833
834 mark_ce_used(src[0], o);
835 }
836 free(tree_ce);
837 if (o->debug_unpack)
838 printf("Unpacked %d entries from %s to %s using cache-tree\n",
839 nr_entries,
840 o->src_index->cache[pos]->name,
841 o->src_index->cache[pos + nr_entries - 1]->name);
842 return 0;
843 }
844
845 static int traverse_trees_recursive(int n, unsigned long dirmask,
846 unsigned long df_conflicts,
847 struct name_entry *names,
848 struct traverse_info *info)
849 {
850 struct unpack_trees_options *o = info->data;
851 int i, ret, bottom;
852 int nr_buf = 0;
853 struct tree_desc t[MAX_UNPACK_TREES];
854 void *buf[MAX_UNPACK_TREES];
855 struct traverse_info newinfo;
856 struct name_entry *p;
857 int nr_entries;
858
859 nr_entries = all_trees_same_as_cache_tree(n, dirmask, names, info);
860 if (nr_entries > 0) {
861 int pos = index_pos_by_traverse_info(names, info);
862
863 if (!o->merge || df_conflicts)
864 BUG("Wrong condition to get here buddy");
865
866 /*
867 * All entries up to 'pos' must have been processed
868 * (i.e. marked CE_UNPACKED) at this point. But to be safe,
869 * save and restore cache_bottom anyway to not miss
870 * unprocessed entries before 'pos'.
871 */
872 bottom = o->cache_bottom;
873 ret = traverse_by_cache_tree(pos, nr_entries, n, info);
874 o->cache_bottom = bottom;
875 return ret;
876 }
877
878 p = names;
879 while (!p->mode)
880 p++;
881
882 newinfo = *info;
883 newinfo.prev = info;
884 newinfo.pathspec = info->pathspec;
885 newinfo.name = p->path;
886 newinfo.namelen = p->pathlen;
887 newinfo.mode = p->mode;
888 newinfo.pathlen = st_add3(newinfo.pathlen, tree_entry_len(p), 1);
889 newinfo.df_conflicts |= df_conflicts;
890
891 /*
892 * Fetch the tree from the ODB for each peer directory in the
893 * n commits.
894 *
895 * For 2- and 3-way traversals, we try to avoid hitting the
896 * ODB twice for the same OID. This should yield a nice speed
897 * up in checkouts and merges when the commits are similar.
898 *
899 * We don't bother doing the full O(n^2) search for larger n,
900 * because wider traversals don't happen that often and we
901 * avoid the search setup.
902 *
903 * When 2 peer OIDs are the same, we just copy the tree
904 * descriptor data. This implicitly borrows the buffer
905 * data from the earlier cell.
906 */
907 for (i = 0; i < n; i++, dirmask >>= 1) {
908 if (i > 0 && are_same_oid(&names[i], &names[i - 1]))
909 t[i] = t[i - 1];
910 else if (i > 1 && are_same_oid(&names[i], &names[i - 2]))
911 t[i] = t[i - 2];
912 else {
913 const struct object_id *oid = NULL;
914 if (dirmask & 1)
915 oid = &names[i].oid;
916 buf[nr_buf++] = fill_tree_descriptor(the_repository, t + i, oid);
917 }
918 }
919
920 bottom = switch_cache_bottom(&newinfo);
921 ret = traverse_trees(o->src_index, n, t, &newinfo);
922 restore_cache_bottom(&newinfo, bottom);
923
924 for (i = 0; i < nr_buf; i++)
925 free(buf[i]);
926
927 return ret;
928 }
929
930 /*
931 * Compare the traverse-path to the cache entry without actually
932 * having to generate the textual representation of the traverse
933 * path.
934 *
935 * NOTE! This *only* compares up to the size of the traverse path
936 * itself - the caller needs to do the final check for the cache
937 * entry having more data at the end!
938 */
939 static int do_compare_entry_piecewise(const struct cache_entry *ce,
940 const struct traverse_info *info,
941 const char *name, size_t namelen,
942 unsigned mode)
943 {
944 int pathlen, ce_len;
945 const char *ce_name;
946
947 if (info->prev) {
948 int cmp = do_compare_entry_piecewise(ce, info->prev,
949 info->name, info->namelen,
950 info->mode);
951 if (cmp)
952 return cmp;
953 }
954 pathlen = info->pathlen;
955 ce_len = ce_namelen(ce);
956
957 /* If ce_len < pathlen then we must have previously hit "name == directory" entry */
958 if (ce_len < pathlen)
959 return -1;
960
961 ce_len -= pathlen;
962 ce_name = ce->name + pathlen;
963
964 return df_name_compare(ce_name, ce_len, S_IFREG, name, namelen, mode);
965 }
966
967 static int do_compare_entry(const struct cache_entry *ce,
968 const struct traverse_info *info,
969 const char *name, size_t namelen,
970 unsigned mode)
971 {
972 int pathlen, ce_len;
973 const char *ce_name;
974 int cmp;
975 unsigned ce_mode;
976
977 /*
978 * If we have not precomputed the traverse path, it is quicker
979 * to avoid doing so. But if we have precomputed it,
980 * it is quicker to use the precomputed version.
981 */
982 if (!info->traverse_path)
983 return do_compare_entry_piecewise(ce, info, name, namelen, mode);
984
985 cmp = strncmp(ce->name, info->traverse_path, info->pathlen);
986 if (cmp)
987 return cmp;
988
989 pathlen = info->pathlen;
990 ce_len = ce_namelen(ce);
991
992 if (ce_len < pathlen)
993 return -1;
994
995 ce_len -= pathlen;
996 ce_name = ce->name + pathlen;
997
998 ce_mode = S_ISSPARSEDIR(ce->ce_mode) ? S_IFDIR : S_IFREG;
999 return df_name_compare(ce_name, ce_len, ce_mode, name, namelen, mode);
1000 }
1001
1002 static int compare_entry(const struct cache_entry *ce, const struct traverse_info *info, const struct name_entry *n)
1003 {
1004 int cmp = do_compare_entry(ce, info, n->path, n->pathlen, n->mode);
1005 if (cmp)
1006 return cmp;
1007
1008 /*
1009 * At this point, we know that we have a prefix match. If ce
1010 * is a sparse directory, then allow an exact match. This only
1011 * works when the input name is a directory, since ce->name
1012 * ends in a directory separator.
1013 */
1014 if (S_ISSPARSEDIR(ce->ce_mode) &&
1015 ce->ce_namelen == traverse_path_len(info, tree_entry_len(n)) + 1)
1016 return 0;
1017
1018 /*
1019 * Even if the beginning compared identically, the ce should
1020 * compare as bigger than a directory leading up to it!
1021 */
1022 return ce_namelen(ce) > traverse_path_len(info, tree_entry_len(n));
1023 }
1024
1025 static int ce_in_traverse_path(const struct cache_entry *ce,
1026 const struct traverse_info *info)
1027 {
1028 if (!info->prev)
1029 return 1;
1030 if (do_compare_entry(ce, info->prev,
1031 info->name, info->namelen, info->mode))
1032 return 0;
1033 /*
1034 * If ce (blob) is the same name as the path (which is a tree
1035 * we will be descending into), it won't be inside it.
1036 */
1037 return (info->pathlen < ce_namelen(ce));
1038 }
1039
1040 static struct cache_entry *create_ce_entry(const struct traverse_info *info,
1041 const struct name_entry *n,
1042 int stage,
1043 struct index_state *istate,
1044 int is_transient,
1045 int is_sparse_directory)
1046 {
1047 size_t len = traverse_path_len(info, tree_entry_len(n));
1048 size_t alloc_len = is_sparse_directory ? len + 1 : len;
1049 struct cache_entry *ce =
1050 is_transient ?
1051 make_empty_transient_cache_entry(alloc_len, NULL) :
1052 make_empty_cache_entry(istate, alloc_len);
1053
1054 ce->ce_mode = create_ce_mode(n->mode);
1055 ce->ce_flags = create_ce_flags(stage);
1056 ce->ce_namelen = len;
1057 oidcpy(&ce->oid, &n->oid);
1058 /* len+1 because the cache_entry allocates space for NUL */
1059 make_traverse_path(ce->name, len + 1, info, n->path, n->pathlen);
1060
1061 if (is_sparse_directory) {
1062 ce->name[len] = '/';
1063 ce->name[len + 1] = '\0';
1064 ce->ce_namelen++;
1065 ce->ce_flags |= CE_SKIP_WORKTREE;
1066 }
1067
1068 return ce;
1069 }
1070
1071 /*
1072 * Note that traverse_by_cache_tree() duplicates some logic in this function
1073 * without actually calling it. If you change the logic here you may need to
1074 * check and change there as well.
1075 */
1076 static int unpack_single_entry(int n, unsigned long mask,
1077 unsigned long dirmask,
1078 struct cache_entry **src,
1079 const struct name_entry *names,
1080 const struct traverse_info *info)
1081 {
1082 int i;
1083 struct unpack_trees_options *o = info->data;
1084 unsigned long conflicts = info->df_conflicts | dirmask;
1085
1086 if (mask == dirmask && !src[0])
1087 return 0;
1088
1089 /*
1090 * When we have a sparse directory entry for src[0],
1091 * then this isn't necessarily a directory-file conflict.
1092 */
1093 if (mask == dirmask && src[0] &&
1094 S_ISSPARSEDIR(src[0]->ce_mode))
1095 conflicts = 0;
1096
1097 /*
1098 * Ok, we've filled in up to any potential index entry in src[0],
1099 * now do the rest.
1100 */
1101 for (i = 0; i < n; i++) {
1102 int stage;
1103 unsigned int bit = 1ul << i;
1104 if (conflicts & bit) {
1105 src[i + o->merge] = o->df_conflict_entry;
1106 continue;
1107 }
1108 if (!(mask & bit))
1109 continue;
1110 if (!o->merge)
1111 stage = 0;
1112 else if (i + 1 < o->head_idx)
1113 stage = 1;
1114 else if (i + 1 > o->head_idx)
1115 stage = 3;
1116 else
1117 stage = 2;
1118
1119 /*
1120 * If the merge bit is set, then the cache entries are
1121 * discarded in the following block. In this case,
1122 * construct "transient" cache_entries, as they are
1123 * not stored in the index. otherwise construct the
1124 * cache entry from the index aware logic.
1125 */
1126 src[i + o->merge] = create_ce_entry(info, names + i, stage,
1127 &o->result, o->merge,
1128 bit & dirmask);
1129 }
1130
1131 if (o->merge) {
1132 int rc = call_unpack_fn((const struct cache_entry * const *)src,
1133 o);
1134 for (i = 0; i < n; i++) {
1135 struct cache_entry *ce = src[i + o->merge];
1136 if (ce != o->df_conflict_entry)
1137 discard_cache_entry(ce);
1138 }
1139 return rc;
1140 }
1141
1142 for (i = 0; i < n; i++)
1143 if (src[i] && src[i] != o->df_conflict_entry)
1144 if (do_add_entry(o, src[i], 0, 0))
1145 return -1;
1146
1147 return 0;
1148 }
1149
1150 static int unpack_failed(struct unpack_trees_options *o, const char *message)
1151 {
1152 discard_index(&o->result);
1153 if (!o->quiet && !o->exiting_early) {
1154 if (message)
1155 return error("%s", message);
1156 return -1;
1157 }
1158 return -1;
1159 }
1160
1161 /*
1162 * The tree traversal is looking at name p. If we have a matching entry,
1163 * return it. If name p is a directory in the index, do not return
1164 * anything, as we will want to match it when the traversal descends into
1165 * the directory.
1166 */
1167 static int find_cache_pos(struct traverse_info *info,
1168 const char *p, size_t p_len)
1169 {
1170 int pos;
1171 struct unpack_trees_options *o = info->data;
1172 struct index_state *index = o->src_index;
1173 int pfxlen = info->pathlen;
1174
1175 for (pos = o->cache_bottom; pos < index->cache_nr; pos++) {
1176 const struct cache_entry *ce = index->cache[pos];
1177 const char *ce_name, *ce_slash;
1178 int cmp, ce_len;
1179
1180 if (ce->ce_flags & CE_UNPACKED) {
1181 /*
1182 * cache_bottom entry is already unpacked, so
1183 * we can never match it; don't check it
1184 * again.
1185 */
1186 if (pos == o->cache_bottom)
1187 ++o->cache_bottom;
1188 continue;
1189 }
1190 if (!ce_in_traverse_path(ce, info)) {
1191 /*
1192 * Check if we can skip future cache checks
1193 * (because we're already past all possible
1194 * entries in the traverse path).
1195 */
1196 if (info->traverse_path) {
1197 if (strncmp(ce->name, info->traverse_path,
1198 info->pathlen) > 0)
1199 break;
1200 }
1201 continue;
1202 }
1203 ce_name = ce->name + pfxlen;
1204 ce_slash = strchr(ce_name, '/');
1205 if (ce_slash)
1206 ce_len = ce_slash - ce_name;
1207 else
1208 ce_len = ce_namelen(ce) - pfxlen;
1209 cmp = name_compare(p, p_len, ce_name, ce_len);
1210 /*
1211 * Exact match; if we have a directory we need to
1212 * delay returning it.
1213 */
1214 if (!cmp)
1215 return ce_slash ? -2 - pos : pos;
1216 if (0 < cmp)
1217 continue; /* keep looking */
1218 /*
1219 * ce_name sorts after p->path; could it be that we
1220 * have files under p->path directory in the index?
1221 * E.g. ce_name == "t-i", and p->path == "t"; we may
1222 * have "t/a" in the index.
1223 */
1224 if (p_len < ce_len && !memcmp(ce_name, p, p_len) &&
1225 ce_name[p_len] < '/')
1226 continue; /* keep looking */
1227 break;
1228 }
1229 return -1;
1230 }
1231
1232 /*
1233 * Given a sparse directory entry 'ce', compare ce->name to
1234 * info->name + '/' + p->path + '/' if info->name is non-empty.
1235 * Compare ce->name to p->path + '/' otherwise. Note that
1236 * ce->name must end in a trailing '/' because it is a sparse
1237 * directory entry.
1238 */
1239 static int sparse_dir_matches_path(const struct cache_entry *ce,
1240 struct traverse_info *info,
1241 const struct name_entry *p)
1242 {
1243 assert(S_ISSPARSEDIR(ce->ce_mode));
1244 assert(ce->name[ce->ce_namelen - 1] == '/');
1245
1246 if (info->namelen)
1247 return ce->ce_namelen == info->namelen + p->pathlen + 2 &&
1248 ce->name[info->namelen] == '/' &&
1249 !strncmp(ce->name, info->name, info->namelen) &&
1250 !strncmp(ce->name + info->namelen + 1, p->path, p->pathlen);
1251 return ce->ce_namelen == p->pathlen + 1 &&
1252 !strncmp(ce->name, p->path, p->pathlen);
1253 }
1254
1255 static struct cache_entry *find_cache_entry(struct traverse_info *info,
1256 const struct name_entry *p)
1257 {
1258 const char *path;
1259 int pos = find_cache_pos(info, p->path, p->pathlen);
1260 struct unpack_trees_options *o = info->data;
1261
1262 if (0 <= pos)
1263 return o->src_index->cache[pos];
1264
1265 /*
1266 * Check for a sparse-directory entry named "path/".
1267 * Due to the input p->path not having a trailing
1268 * slash, the negative 'pos' value overshoots the
1269 * expected position, hence "-2" instead of "-1".
1270 */
1271 pos = -pos - 2;
1272
1273 if (pos < 0 || pos >= o->src_index->cache_nr)
1274 return NULL;
1275
1276 /*
1277 * Due to lexicographic sorting and sparse directory
1278 * entries ending with a trailing slash, our path as a
1279 * sparse directory (e.g "subdir/") and our path as a
1280 * file (e.g. "subdir") might be separated by other
1281 * paths (e.g. "subdir-").
1282 */
1283 while (pos >= 0) {
1284 struct cache_entry *ce = o->src_index->cache[pos];
1285
1286 if (!skip_prefix(ce->name, info->traverse_path, &path) ||
1287 strncmp(path, p->path, p->pathlen) ||
1288 path[p->pathlen] != '/')
1289 return NULL;
1290
1291 if (S_ISSPARSEDIR(ce->ce_mode) &&
1292 sparse_dir_matches_path(ce, info, p))
1293 return ce;
1294
1295 pos--;
1296 }
1297
1298 return NULL;
1299 }
1300
1301 static void debug_path(struct traverse_info *info)
1302 {
1303 if (info->prev) {
1304 debug_path(info->prev);
1305 if (*info->prev->name)
1306 putchar('/');
1307 }
1308 printf("%s", info->name);
1309 }
1310
1311 static void debug_name_entry(int i, struct name_entry *n)
1312 {
1313 printf("ent#%d %06o %s\n", i,
1314 n->path ? n->mode : 0,
1315 n->path ? n->path : "(missing)");
1316 }
1317
1318 static void debug_unpack_callback(int n,
1319 unsigned long mask,
1320 unsigned long dirmask,
1321 struct name_entry *names,
1322 struct traverse_info *info)
1323 {
1324 int i;
1325 printf("* unpack mask %lu, dirmask %lu, cnt %d ",
1326 mask, dirmask, n);
1327 debug_path(info);
1328 putchar('\n');
1329 for (i = 0; i < n; i++)
1330 debug_name_entry(i, names + i);
1331 }
1332
1333 /*
1334 * Returns true if and only if the given cache_entry is a
1335 * sparse-directory entry that matches the given name_entry
1336 * from the tree walk at the given traverse_info.
1337 */
1338 static int is_sparse_directory_entry(struct cache_entry *ce,
1339 struct name_entry *name,
1340 struct traverse_info *info)
1341 {
1342 if (!ce || !name || !S_ISSPARSEDIR(ce->ce_mode))
1343 return 0;
1344
1345 return sparse_dir_matches_path(ce, info, name);
1346 }
1347
1348 /*
1349 * Note that traverse_by_cache_tree() duplicates some logic in this function
1350 * without actually calling it. If you change the logic here you may need to
1351 * check and change there as well.
1352 */
1353 static int unpack_callback(int n, unsigned long mask, unsigned long dirmask, struct name_entry *names, struct traverse_info *info)
1354 {
1355 struct cache_entry *src[MAX_UNPACK_TREES + 1] = { NULL, };
1356 struct unpack_trees_options *o = info->data;
1357 const struct name_entry *p = names;
1358
1359 /* Find first entry with a real name (we could use "mask" too) */
1360 while (!p->mode)
1361 p++;
1362
1363 if (o->debug_unpack)
1364 debug_unpack_callback(n, mask, dirmask, names, info);
1365
1366 /* Are we supposed to look at the index too? */
1367 if (o->merge) {
1368 while (1) {
1369 int cmp;
1370 struct cache_entry *ce;
1371
1372 if (o->diff_index_cached)
1373 ce = next_cache_entry(o);
1374 else
1375 ce = find_cache_entry(info, p);
1376
1377 if (!ce)
1378 break;
1379 cmp = compare_entry(ce, info, p);
1380 if (cmp < 0) {
1381 if (unpack_index_entry(ce, o) < 0)
1382 return unpack_failed(o, NULL);
1383 continue;
1384 }
1385 if (!cmp) {
1386 if (ce_stage(ce)) {
1387 /*
1388 * If we skip unmerged index
1389 * entries, we'll skip this
1390 * entry *and* the tree
1391 * entries associated with it!
1392 */
1393 if (o->skip_unmerged) {
1394 add_same_unmerged(ce, o);
1395 return mask;
1396 }
1397 }
1398 src[0] = ce;
1399 }
1400 break;
1401 }
1402 }
1403
1404 if (unpack_single_entry(n, mask, dirmask, src, names, info) < 0)
1405 return -1;
1406
1407 if (o->merge && src[0]) {
1408 if (ce_stage(src[0]))
1409 mark_ce_used_same_name(src[0], o);
1410 else
1411 mark_ce_used(src[0], o);
1412 }
1413
1414 /* Now handle any directories.. */
1415 if (dirmask) {
1416 /* special case: "diff-index --cached" looking at a tree */
1417 if (o->diff_index_cached &&
1418 n == 1 && dirmask == 1 && S_ISDIR(names->mode)) {
1419 int matches;
1420 matches = cache_tree_matches_traversal(o->src_index->cache_tree,
1421 names, info);
1422 /*
1423 * Everything under the name matches; skip the
1424 * entire hierarchy. diff_index_cached codepath
1425 * special cases D/F conflicts in such a way that
1426 * it does not do any look-ahead, so this is safe.
1427 */
1428 if (matches) {
1429 o->cache_bottom += matches;
1430 return mask;
1431 }
1432 }
1433
1434 if (!is_sparse_directory_entry(src[0], names, info) &&
1435 traverse_trees_recursive(n, dirmask, mask & ~dirmask,
1436 names, info) < 0) {
1437 return -1;
1438 }
1439
1440 return mask;
1441 }
1442
1443 return mask;
1444 }
1445
1446 static int clear_ce_flags_1(struct index_state *istate,
1447 struct cache_entry **cache, int nr,
1448 struct strbuf *prefix,
1449 int select_mask, int clear_mask,
1450 struct pattern_list *pl,
1451 enum pattern_match_result default_match,
1452 int progress_nr);
1453
1454 /* Whole directory matching */
1455 static int clear_ce_flags_dir(struct index_state *istate,
1456 struct cache_entry **cache, int nr,
1457 struct strbuf *prefix,
1458 char *basename,
1459 int select_mask, int clear_mask,
1460 struct pattern_list *pl,
1461 enum pattern_match_result default_match,
1462 int progress_nr)
1463 {
1464 struct cache_entry **cache_end;
1465 int dtype = DT_DIR;
1466 int rc;
1467 enum pattern_match_result ret, orig_ret;
1468 orig_ret = path_matches_pattern_list(prefix->buf, prefix->len,
1469 basename, &dtype, pl, istate);
1470
1471 strbuf_addch(prefix, '/');
1472
1473 /* If undecided, use matching result of parent dir in defval */
1474 if (orig_ret == UNDECIDED)
1475 ret = default_match;
1476 else
1477 ret = orig_ret;
1478
1479 for (cache_end = cache; cache_end != cache + nr; cache_end++) {
1480 struct cache_entry *ce = *cache_end;
1481 if (strncmp(ce->name, prefix->buf, prefix->len))
1482 break;
1483 }
1484
1485 if (pl->use_cone_patterns && orig_ret == MATCHED_RECURSIVE) {
1486 struct cache_entry **ce = cache;
1487 rc = cache_end - cache;
1488
1489 while (ce < cache_end) {
1490 (*ce)->ce_flags &= ~clear_mask;
1491 ce++;
1492 }
1493 } else if (pl->use_cone_patterns && orig_ret == NOT_MATCHED) {
1494 rc = cache_end - cache;
1495 } else {
1496 rc = clear_ce_flags_1(istate, cache, cache_end - cache,
1497 prefix,
1498 select_mask, clear_mask,
1499 pl, ret,
1500 progress_nr);
1501 }
1502
1503 strbuf_setlen(prefix, prefix->len - 1);
1504 return rc;
1505 }
1506
1507 /*
1508 * Traverse the index, find every entry that matches according to
1509 * o->pl. Do "ce_flags &= ~clear_mask" on those entries. Return the
1510 * number of traversed entries.
1511 *
1512 * If select_mask is non-zero, only entries whose ce_flags has on of
1513 * those bits enabled are traversed.
1514 *
1515 * cache : pointer to an index entry
1516 * prefix_len : an offset to its path
1517 *
1518 * The current path ("prefix") including the trailing '/' is
1519 * cache[0]->name[0..(prefix_len-1)]
1520 * Top level path has prefix_len zero.
1521 */
1522 static int clear_ce_flags_1(struct index_state *istate,
1523 struct cache_entry **cache, int nr,
1524 struct strbuf *prefix,
1525 int select_mask, int clear_mask,
1526 struct pattern_list *pl,
1527 enum pattern_match_result default_match,
1528 int progress_nr)
1529 {
1530 struct cache_entry **cache_end = nr ? cache + nr : cache;
1531
1532 /*
1533 * Process all entries that have the given prefix and meet
1534 * select_mask condition
1535 */
1536 while(cache != cache_end) {
1537 struct cache_entry *ce = *cache;
1538 const char *name, *slash;
1539 int len, dtype;
1540 enum pattern_match_result ret;
1541
1542 display_progress(istate->progress, progress_nr);
1543
1544 if (select_mask && !(ce->ce_flags & select_mask)) {
1545 cache++;
1546 progress_nr++;
1547 continue;
1548 }
1549
1550 if (prefix->len && strncmp(ce->name, prefix->buf, prefix->len))
1551 break;
1552
1553 name = ce->name + prefix->len;
1554 slash = strchr(name, '/');
1555
1556 /* If it's a directory, try whole directory match first */
1557 if (slash) {
1558 int processed;
1559
1560 len = slash - name;
1561 strbuf_add(prefix, name, len);
1562
1563 processed = clear_ce_flags_dir(istate, cache, cache_end - cache,
1564 prefix,
1565 prefix->buf + prefix->len - len,
1566 select_mask, clear_mask,
1567 pl, default_match,
1568 progress_nr);
1569
1570 /* clear_c_f_dir eats a whole dir already? */
1571 if (processed) {
1572 cache += processed;
1573 progress_nr += processed;
1574 strbuf_setlen(prefix, prefix->len - len);
1575 continue;
1576 }
1577
1578 strbuf_addch(prefix, '/');
1579 processed = clear_ce_flags_1(istate, cache, cache_end - cache,
1580 prefix,
1581 select_mask, clear_mask, pl,
1582 default_match, progress_nr);
1583
1584 cache += processed;
1585 progress_nr += processed;
1586
1587 strbuf_setlen(prefix, prefix->len - len - 1);
1588 continue;
1589 }
1590
1591 /* Non-directory */
1592 dtype = ce_to_dtype(ce);
1593 ret = path_matches_pattern_list(ce->name,
1594 ce_namelen(ce),
1595 name, &dtype, pl, istate);
1596 if (ret == UNDECIDED)
1597 ret = default_match;
1598 if (ret == MATCHED || ret == MATCHED_RECURSIVE)
1599 ce->ce_flags &= ~clear_mask;
1600 cache++;
1601 progress_nr++;
1602 }
1603
1604 display_progress(istate->progress, progress_nr);
1605 return nr - (cache_end - cache);
1606 }
1607
1608 static int clear_ce_flags(struct index_state *istate,
1609 int select_mask, int clear_mask,
1610 struct pattern_list *pl,
1611 int show_progress)
1612 {
1613 static struct strbuf prefix = STRBUF_INIT;
1614 char label[100];
1615 int rval;
1616
1617 strbuf_reset(&prefix);
1618 if (show_progress)
1619 istate->progress = start_delayed_progress(
1620 _("Updating index flags"),
1621 istate->cache_nr);
1622
1623 xsnprintf(label, sizeof(label), "clear_ce_flags(0x%08lx,0x%08lx)",
1624 (unsigned long)select_mask, (unsigned long)clear_mask);
1625 trace2_region_enter("unpack_trees", label, the_repository);
1626 rval = clear_ce_flags_1(istate,
1627 istate->cache,
1628 istate->cache_nr,
1629 &prefix,
1630 select_mask, clear_mask,
1631 pl, 0, 0);
1632 trace2_region_leave("unpack_trees", label, the_repository);
1633
1634 stop_progress(&istate->progress);
1635 return rval;
1636 }
1637
1638 /*
1639 * Set/Clear CE_NEW_SKIP_WORKTREE according to $GIT_DIR/info/sparse-checkout
1640 */
1641 static void mark_new_skip_worktree(struct pattern_list *pl,
1642 struct index_state *istate,
1643 int select_flag, int skip_wt_flag,
1644 int show_progress)
1645 {
1646 int i;
1647
1648 /*
1649 * 1. Pretend the narrowest worktree: only unmerged entries
1650 * are checked out
1651 */
1652 for (i = 0; i < istate->cache_nr; i++) {
1653 struct cache_entry *ce = istate->cache[i];
1654
1655 if (select_flag && !(ce->ce_flags & select_flag))
1656 continue;
1657
1658 if (!ce_stage(ce) && !(ce->ce_flags & CE_CONFLICTED))
1659 ce->ce_flags |= skip_wt_flag;
1660 else
1661 ce->ce_flags &= ~skip_wt_flag;
1662 }
1663
1664 /*
1665 * 2. Widen worktree according to sparse-checkout file.
1666 * Matched entries will have skip_wt_flag cleared (i.e. "in")
1667 */
1668 clear_ce_flags(istate, select_flag, skip_wt_flag, pl, show_progress);
1669 }
1670
1671 static void populate_from_existing_patterns(struct unpack_trees_options *o,
1672 struct pattern_list *pl)
1673 {
1674 if (get_sparse_checkout_patterns(pl) < 0)
1675 o->skip_sparse_checkout = 1;
1676 else
1677 o->pl = pl;
1678 }
1679
1680
1681 static int verify_absent(const struct cache_entry *,
1682 enum unpack_trees_error_types,
1683 struct unpack_trees_options *);
1684 /*
1685 * N-way merge "len" trees. Returns 0 on success, -1 on failure to manipulate the
1686 * resulting index, -2 on failure to reflect the changes to the work tree.
1687 *
1688 * CE_ADDED, CE_UNPACKED and CE_NEW_SKIP_WORKTREE are used internally
1689 */
1690 int unpack_trees(unsigned len, struct tree_desc *t, struct unpack_trees_options *o)
1691 {
1692 struct repository *repo = the_repository;
1693 int i, ret;
1694 static struct cache_entry *dfc;
1695 struct pattern_list pl;
1696 int free_pattern_list = 0;
1697
1698 if (len > MAX_UNPACK_TREES)
1699 die("unpack_trees takes at most %d trees", MAX_UNPACK_TREES);
1700
1701 trace_performance_enter();
1702 trace2_region_enter("unpack_trees", "unpack_trees", the_repository);
1703
1704 prepare_repo_settings(repo);
1705 if (repo->settings.command_requires_full_index) {
1706 ensure_full_index(o->src_index);
1707 ensure_full_index(o->dst_index);
1708 }
1709
1710 if (!core_apply_sparse_checkout || !o->update)
1711 o->skip_sparse_checkout = 1;
1712 if (!o->skip_sparse_checkout && !o->pl) {
1713 memset(&pl, 0, sizeof(pl));
1714 free_pattern_list = 1;
1715 populate_from_existing_patterns(o, &pl);
1716 }
1717
1718 memset(&o->result, 0, sizeof(o->result));
1719 o->result.initialized = 1;
1720 o->result.timestamp.sec = o->src_index->timestamp.sec;
1721 o->result.timestamp.nsec = o->src_index->timestamp.nsec;
1722 o->result.version = o->src_index->version;
1723 if (!o->src_index->split_index) {
1724 o->result.split_index = NULL;
1725 } else if (o->src_index == o->dst_index) {
1726 /*
1727 * o->dst_index (and thus o->src_index) will be discarded
1728 * and overwritten with o->result at the end of this function,
1729 * so just use src_index's split_index to avoid having to
1730 * create a new one.
1731 */
1732 o->result.split_index = o->src_index->split_index;
1733 o->result.split_index->refcount++;
1734 } else {
1735 o->result.split_index = init_split_index(&o->result);
1736 }
1737 oidcpy(&o->result.oid, &o->src_index->oid);
1738 o->merge_size = len;
1739 mark_all_ce_unused(o->src_index);
1740
1741 o->result.fsmonitor_last_update =
1742 xstrdup_or_null(o->src_index->fsmonitor_last_update);
1743
1744 /*
1745 * Sparse checkout loop #1: set NEW_SKIP_WORKTREE on existing entries
1746 */
1747 if (!o->skip_sparse_checkout)
1748 mark_new_skip_worktree(o->pl, o->src_index, 0,
1749 CE_NEW_SKIP_WORKTREE, o->verbose_update);
1750
1751 if (!dfc)
1752 dfc = xcalloc(1, cache_entry_size(0));
1753 o->df_conflict_entry = dfc;
1754
1755 if (len) {
1756 const char *prefix = o->prefix ? o->prefix : "";
1757 struct traverse_info info;
1758
1759 setup_traverse_info(&info, prefix);
1760 info.fn = unpack_callback;
1761 info.data = o;
1762 info.show_all_errors = o->show_all_errors;
1763 info.pathspec = o->pathspec;
1764
1765 if (o->prefix) {
1766 /*
1767 * Unpack existing index entries that sort before the
1768 * prefix the tree is spliced into. Note that o->merge
1769 * is always true in this case.
1770 */
1771 while (1) {
1772 struct cache_entry *ce = next_cache_entry(o);
1773 if (!ce)
1774 break;
1775 if (ce_in_traverse_path(ce, &info))
1776 break;
1777 if (unpack_index_entry(ce, o) < 0)
1778 goto return_failed;
1779 }
1780 }
1781
1782 trace_performance_enter();
1783 trace2_region_enter("unpack_trees", "traverse_trees", the_repository);
1784 ret = traverse_trees(o->src_index, len, t, &info);
1785 trace2_region_leave("unpack_trees", "traverse_trees", the_repository);
1786 trace_performance_leave("traverse_trees");
1787 if (ret < 0)
1788 goto return_failed;
1789 }
1790
1791 /* Any left-over entries in the index? */
1792 if (o->merge) {
1793 while (1) {
1794 struct cache_entry *ce = next_cache_entry(o);
1795 if (!ce)
1796 break;
1797 if (unpack_index_entry(ce, o) < 0)
1798 goto return_failed;
1799 }
1800 }
1801 mark_all_ce_unused(o->src_index);
1802
1803 if (o->trivial_merges_only && o->nontrivial_merge) {
1804 ret = unpack_failed(o, "Merge requires file-level merging");
1805 goto done;
1806 }
1807
1808 if (!o->skip_sparse_checkout) {
1809 /*
1810 * Sparse checkout loop #2: set NEW_SKIP_WORKTREE on entries not in loop #1
1811 * If they will have NEW_SKIP_WORKTREE, also set CE_SKIP_WORKTREE
1812 * so apply_sparse_checkout() won't attempt to remove it from worktree
1813 */
1814 mark_new_skip_worktree(o->pl, &o->result,
1815 CE_ADDED, CE_SKIP_WORKTREE | CE_NEW_SKIP_WORKTREE,
1816 o->verbose_update);
1817
1818 ret = 0;
1819 for (i = 0; i < o->result.cache_nr; i++) {
1820 struct cache_entry *ce = o->result.cache[i];
1821
1822 /*
1823 * Entries marked with CE_ADDED in merged_entry() do not have
1824 * verify_absent() check (the check is effectively disabled
1825 * because CE_NEW_SKIP_WORKTREE is set unconditionally).
1826 *
1827 * Do the real check now because we have had
1828 * correct CE_NEW_SKIP_WORKTREE
1829 */
1830 if (ce->ce_flags & CE_ADDED &&
1831 verify_absent(ce, WARNING_SPARSE_ORPHANED_NOT_OVERWRITTEN, o))
1832 ret = 1;
1833
1834 if (apply_sparse_checkout(&o->result, ce, o))
1835 ret = 1;
1836 }
1837 if (ret == 1) {
1838 /*
1839 * Inability to sparsify or de-sparsify individual
1840 * paths is not an error, but just a warning.
1841 */
1842 if (o->show_all_errors)
1843 display_warning_msgs(o);
1844 ret = 0;
1845 }
1846 }
1847
1848 ret = check_updates(o, &o->result) ? (-2) : 0;
1849 if (o->dst_index) {
1850 move_index_extensions(&o->result, o->src_index);
1851 if (!ret) {
1852 if (git_env_bool("GIT_TEST_CHECK_CACHE_TREE", 0))
1853 cache_tree_verify(the_repository, &o->result);
1854 if (!cache_tree_fully_valid(o->result.cache_tree))
1855 cache_tree_update(&o->result,
1856 WRITE_TREE_SILENT |
1857 WRITE_TREE_REPAIR);
1858 }
1859
1860 o->result.updated_workdir = 1;
1861 discard_index(o->dst_index);
1862 *o->dst_index = o->result;
1863 } else {
1864 discard_index(&o->result);
1865 }
1866 o->src_index = NULL;
1867
1868 done:
1869 if (free_pattern_list)
1870 clear_pattern_list(&pl);
1871 trace2_region_leave("unpack_trees", "unpack_trees", the_repository);
1872 trace_performance_leave("unpack_trees");
1873 return ret;
1874
1875 return_failed:
1876 if (o->show_all_errors)
1877 display_error_msgs(o);
1878 mark_all_ce_unused(o->src_index);
1879 ret = unpack_failed(o, NULL);
1880 if (o->exiting_early)
1881 ret = 0;
1882 goto done;
1883 }
1884
1885 /*
1886 * Update SKIP_WORKTREE bits according to sparsity patterns, and update
1887 * working directory to match.
1888 *
1889 * CE_NEW_SKIP_WORKTREE is used internally.
1890 */
1891 enum update_sparsity_result update_sparsity(struct unpack_trees_options *o)
1892 {
1893 enum update_sparsity_result ret = UPDATE_SPARSITY_SUCCESS;
1894 struct pattern_list pl;
1895 int i;
1896 unsigned old_show_all_errors;
1897 int free_pattern_list = 0;
1898
1899 old_show_all_errors = o->show_all_errors;
1900 o->show_all_errors = 1;
1901
1902 /* Sanity checks */
1903 if (!o->update || o->index_only || o->skip_sparse_checkout)
1904 BUG("update_sparsity() is for reflecting sparsity patterns in working directory");
1905 if (o->src_index != o->dst_index || o->fn)
1906 BUG("update_sparsity() called wrong");
1907
1908 trace_performance_enter();
1909
1910 /* If we weren't given patterns, use the recorded ones */
1911 if (!o->pl) {
1912 memset(&pl, 0, sizeof(pl));
1913 free_pattern_list = 1;
1914 populate_from_existing_patterns(o, &pl);
1915 if (o->skip_sparse_checkout)
1916 goto skip_sparse_checkout;
1917 }
1918
1919 /* Set NEW_SKIP_WORKTREE on existing entries. */
1920 mark_all_ce_unused(o->src_index);
1921 mark_new_skip_worktree(o->pl, o->src_index, 0,
1922 CE_NEW_SKIP_WORKTREE, o->verbose_update);
1923
1924 /* Then loop over entries and update/remove as needed */
1925 ret = UPDATE_SPARSITY_SUCCESS;
1926 for (i = 0; i < o->src_index->cache_nr; i++) {
1927 struct cache_entry *ce = o->src_index->cache[i];
1928
1929
1930 if (ce_stage(ce)) {
1931 /* -1 because for loop will increment by 1 */
1932 i += warn_conflicted_path(o->src_index, i, o) - 1;
1933 ret = UPDATE_SPARSITY_WARNINGS;
1934 continue;
1935 }
1936
1937 if (apply_sparse_checkout(o->src_index, ce, o))
1938 ret = UPDATE_SPARSITY_WARNINGS;
1939 }
1940
1941 skip_sparse_checkout:
1942 if (check_updates(o, o->src_index))
1943 ret = UPDATE_SPARSITY_WORKTREE_UPDATE_FAILURES;
1944
1945 display_warning_msgs(o);
1946 o->show_all_errors = old_show_all_errors;
1947 if (free_pattern_list)
1948 clear_pattern_list(&pl);
1949 trace_performance_leave("update_sparsity");
1950 return ret;
1951 }
1952
1953 /* Here come the merge functions */
1954
1955 static int reject_merge(const struct cache_entry *ce,
1956 struct unpack_trees_options *o)
1957 {
1958 return add_rejected_path(o, ERROR_WOULD_OVERWRITE, ce->name);
1959 }
1960
1961 static int same(const struct cache_entry *a, const struct cache_entry *b)
1962 {
1963 if (!!a != !!b)
1964 return 0;
1965 if (!a && !b)
1966 return 1;
1967 if ((a->ce_flags | b->ce_flags) & CE_CONFLICTED)
1968 return 0;
1969 return a->ce_mode == b->ce_mode &&
1970 oideq(&a->oid, &b->oid);
1971 }
1972
1973
1974 /*
1975 * When a CE gets turned into an unmerged entry, we
1976 * want it to be up-to-date
1977 */
1978 static int verify_uptodate_1(const struct cache_entry *ce,
1979 struct unpack_trees_options *o,
1980 enum unpack_trees_error_types error_type)
1981 {
1982 struct stat st;
1983
1984 if (o->index_only)
1985 return 0;
1986
1987 /*
1988 * CE_VALID and CE_SKIP_WORKTREE cheat, we better check again
1989 * if this entry is truly up-to-date because this file may be
1990 * overwritten.
1991 */
1992 if ((ce->ce_flags & CE_VALID) || ce_skip_worktree(ce))
1993 ; /* keep checking */
1994 else if (o->reset || ce_uptodate(ce))
1995 return 0;
1996
1997 if (!lstat(ce->name, &st)) {
1998 int flags = CE_MATCH_IGNORE_VALID|CE_MATCH_IGNORE_SKIP_WORKTREE;
1999 unsigned changed = ie_match_stat(o->src_index, ce, &st, flags);
2000
2001 if (submodule_from_ce(ce)) {
2002 int r = check_submodule_move_head(ce,
2003 "HEAD", oid_to_hex(&ce->oid), o);
2004 if (r)
2005 return add_rejected_path(o, error_type, ce->name);
2006 return 0;
2007 }
2008
2009 if (!changed)
2010 return 0;
2011 /*
2012 * Historic default policy was to allow submodule to be out
2013 * of sync wrt the superproject index. If the submodule was
2014 * not considered interesting above, we don't care here.
2015 */
2016 if (S_ISGITLINK(ce->ce_mode))
2017 return 0;
2018
2019 errno = 0;
2020 }
2021 if (errno == ENOENT)
2022 return 0;
2023 return add_rejected_path(o, error_type, ce->name);
2024 }
2025
2026 int verify_uptodate(const struct cache_entry *ce,
2027 struct unpack_trees_options *o)
2028 {
2029 if (!o->skip_sparse_checkout && (ce->ce_flags & CE_NEW_SKIP_WORKTREE))
2030 return 0;
2031 return verify_uptodate_1(ce, o, ERROR_NOT_UPTODATE_FILE);
2032 }
2033
2034 static int verify_uptodate_sparse(const struct cache_entry *ce,
2035 struct unpack_trees_options *o)
2036 {
2037 return verify_uptodate_1(ce, o, WARNING_SPARSE_NOT_UPTODATE_FILE);
2038 }
2039
2040 /*
2041 * TODO: We should actually invalidate o->result, not src_index [1].
2042 * But since cache tree and untracked cache both are not copied to
2043 * o->result until unpacking is complete, we invalidate them on
2044 * src_index instead with the assumption that they will be copied to
2045 * dst_index at the end.
2046 *
2047 * [1] src_index->cache_tree is also used in unpack_callback() so if
2048 * we invalidate o->result, we need to update it to use
2049 * o->result.cache_tree as well.
2050 */
2051 static void invalidate_ce_path(const struct cache_entry *ce,
2052 struct unpack_trees_options *o)
2053 {
2054 if (!ce)
2055 return;
2056 cache_tree_invalidate_path(o->src_index, ce->name);
2057 untracked_cache_invalidate_path(o->src_index, ce->name, 1);
2058 }
2059
2060 /*
2061 * Check that checking out ce->sha1 in subdir ce->name is not
2062 * going to overwrite any working files.
2063 */
2064 static int verify_clean_submodule(const char *old_sha1,
2065 const struct cache_entry *ce,
2066 struct unpack_trees_options *o)
2067 {
2068 if (!submodule_from_ce(ce))
2069 return 0;
2070
2071 return check_submodule_move_head(ce, old_sha1,
2072 oid_to_hex(&ce->oid), o);
2073 }
2074
2075 static int verify_clean_subdirectory(const struct cache_entry *ce,
2076 struct unpack_trees_options *o)
2077 {
2078 /*
2079 * we are about to extract "ce->name"; we would not want to lose
2080 * anything in the existing directory there.
2081 */
2082 int namelen;
2083 int i;
2084 struct dir_struct d;
2085 char *pathbuf;
2086 int cnt = 0;
2087
2088 if (S_ISGITLINK(ce->ce_mode)) {
2089 struct object_id oid;
2090 int sub_head = resolve_gitlink_ref(ce->name, "HEAD", &oid);
2091 /*
2092 * If we are not going to update the submodule, then
2093 * we don't care.
2094 */
2095 if (!sub_head && oideq(&oid, &ce->oid))
2096 return 0;
2097 return verify_clean_submodule(sub_head ? NULL : oid_to_hex(&oid),
2098 ce, o);
2099 }
2100
2101 /*
2102 * First let's make sure we do not have a local modification
2103 * in that directory.
2104 */
2105 namelen = ce_namelen(ce);
2106 for (i = locate_in_src_index(ce, o);
2107 i < o->src_index->cache_nr;
2108 i++) {
2109 struct cache_entry *ce2 = o->src_index->cache[i];
2110 int len = ce_namelen(ce2);
2111 if (len < namelen ||
2112 strncmp(ce->name, ce2->name, namelen) ||
2113 ce2->name[namelen] != '/')
2114 break;
2115 /*
2116 * ce2->name is an entry in the subdirectory to be
2117 * removed.
2118 */
2119 if (!ce_stage(ce2)) {
2120 if (verify_uptodate(ce2, o))
2121 return -1;
2122 add_entry(o, ce2, CE_REMOVE, 0);
2123 invalidate_ce_path(ce, o);
2124 mark_ce_used(ce2, o);
2125 }
2126 cnt++;
2127 }
2128
2129 /*
2130 * Then we need to make sure that we do not lose a locally
2131 * present file that is not ignored.
2132 */
2133 pathbuf = xstrfmt("%.*s/", namelen, ce->name);
2134
2135 memset(&d, 0, sizeof(d));
2136 if (o->dir)
2137 d.exclude_per_dir = o->dir->exclude_per_dir;
2138 i = read_directory(&d, o->src_index, pathbuf, namelen+1, NULL);
2139 if (i)
2140 return add_rejected_path(o, ERROR_NOT_UPTODATE_DIR, ce->name);
2141 free(pathbuf);
2142 return cnt;
2143 }
2144
2145 /*
2146 * This gets called when there was no index entry for the tree entry 'dst',
2147 * but we found a file in the working tree that 'lstat()' said was fine,
2148 * and we're on a case-insensitive filesystem.
2149 *
2150 * See if we can find a case-insensitive match in the index that also
2151 * matches the stat information, and assume it's that other file!
2152 */
2153 static int icase_exists(struct unpack_trees_options *o, const char *name, int len, struct stat *st)
2154 {
2155 const struct cache_entry *src;
2156
2157 src = index_file_exists(o->src_index, name, len, 1);
2158 return src && !ie_match_stat(o->src_index, src, st, CE_MATCH_IGNORE_VALID|CE_MATCH_IGNORE_SKIP_WORKTREE);
2159 }
2160
2161 static int check_ok_to_remove(const char *name, int len, int dtype,
2162 const struct cache_entry *ce, struct stat *st,
2163 enum unpack_trees_error_types error_type,
2164 struct unpack_trees_options *o)
2165 {
2166 const struct cache_entry *result;
2167
2168 /*
2169 * It may be that the 'lstat()' succeeded even though
2170 * target 'ce' was absent, because there is an old
2171 * entry that is different only in case..
2172 *
2173 * Ignore that lstat() if it matches.
2174 */
2175 if (ignore_case && icase_exists(o, name, len, st))
2176 return 0;
2177
2178 if (o->dir &&
2179 is_excluded(o->dir, o->src_index, name, &dtype))
2180 /*
2181 * ce->name is explicitly excluded, so it is Ok to
2182 * overwrite it.
2183 */
2184 return 0;
2185 if (S_ISDIR(st->st_mode)) {
2186 /*
2187 * We are checking out path "foo" and
2188 * found "foo/." in the working tree.
2189 * This is tricky -- if we have modified
2190 * files that are in "foo/" we would lose
2191 * them.
2192 */
2193 if (verify_clean_subdirectory(ce, o) < 0)
2194 return -1;
2195 return 0;
2196 }
2197
2198 /*
2199 * The previous round may already have decided to
2200 * delete this path, which is in a subdirectory that
2201 * is being replaced with a blob.
2202 */
2203 result = index_file_exists(&o->result, name, len, 0);
2204 if (result) {
2205 if (result->ce_flags & CE_REMOVE)
2206 return 0;
2207 }
2208
2209 return add_rejected_path(o, error_type, name);
2210 }
2211
2212 /*
2213 * We do not want to remove or overwrite a working tree file that
2214 * is not tracked, unless it is ignored.
2215 */
2216 static int verify_absent_1(const struct cache_entry *ce,
2217 enum unpack_trees_error_types error_type,
2218 struct unpack_trees_options *o)
2219 {
2220 int len;
2221 struct stat st;
2222
2223 if (o->index_only || o->reset || !o->update)
2224 return 0;
2225
2226 len = check_leading_path(ce->name, ce_namelen(ce), 0);
2227 if (!len)
2228 return 0;
2229 else if (len > 0) {
2230 char *path;
2231 int ret;
2232
2233 path = xmemdupz(ce->name, len);
2234 if (lstat(path, &st))
2235 ret = error_errno("cannot stat '%s'", path);
2236 else {
2237 if (submodule_from_ce(ce))
2238 ret = check_submodule_move_head(ce,
2239 oid_to_hex(&ce->oid),
2240 NULL, o);
2241 else
2242 ret = check_ok_to_remove(path, len, DT_UNKNOWN, NULL,
2243 &st, error_type, o);
2244 }
2245 free(path);
2246 return ret;
2247 } else if (lstat(ce->name, &st)) {
2248 if (errno != ENOENT)
2249 return error_errno("cannot stat '%s'", ce->name);
2250 return 0;
2251 } else {
2252 if (submodule_from_ce(ce))
2253 return check_submodule_move_head(ce, oid_to_hex(&ce->oid),
2254 NULL, o);
2255
2256 return check_ok_to_remove(ce->name, ce_namelen(ce),
2257 ce_to_dtype(ce), ce, &st,
2258 error_type, o);
2259 }
2260 }
2261
2262 static int verify_absent(const struct cache_entry *ce,
2263 enum unpack_trees_error_types error_type,
2264 struct unpack_trees_options *o)
2265 {
2266 if (!o->skip_sparse_checkout && (ce->ce_flags & CE_NEW_SKIP_WORKTREE))
2267 return 0;
2268 return verify_absent_1(ce, error_type, o);
2269 }
2270
2271 static int verify_absent_sparse(const struct cache_entry *ce,
2272 enum unpack_trees_error_types error_type,
2273 struct unpack_trees_options *o)
2274 {
2275 return verify_absent_1(ce, error_type, o);
2276 }
2277
2278 static int merged_entry(const struct cache_entry *ce,
2279 const struct cache_entry *old,
2280 struct unpack_trees_options *o)
2281 {
2282 int update = CE_UPDATE;
2283 struct cache_entry *merge = dup_cache_entry(ce, &o->result);
2284
2285 if (!old) {
2286 /*
2287 * New index entries. In sparse checkout, the following
2288 * verify_absent() will be delayed until after
2289 * traverse_trees() finishes in unpack_trees(), then:
2290 *
2291 * - CE_NEW_SKIP_WORKTREE will be computed correctly
2292 * - verify_absent() be called again, this time with
2293 * correct CE_NEW_SKIP_WORKTREE
2294 *
2295 * verify_absent() call here does nothing in sparse
2296 * checkout (i.e. o->skip_sparse_checkout == 0)
2297 */
2298 update |= CE_ADDED;
2299 merge->ce_flags |= CE_NEW_SKIP_WORKTREE;
2300
2301 if (verify_absent(merge,
2302 ERROR_WOULD_LOSE_UNTRACKED_OVERWRITTEN, o)) {
2303 discard_cache_entry(merge);
2304 return -1;
2305 }
2306 invalidate_ce_path(merge, o);
2307
2308 if (submodule_from_ce(ce) && file_exists(ce->name)) {
2309 int ret = check_submodule_move_head(ce, NULL,
2310 oid_to_hex(&ce->oid),
2311 o);
2312 if (ret)
2313 return ret;
2314 }
2315
2316 } else if (!(old->ce_flags & CE_CONFLICTED)) {
2317 /*
2318 * See if we can re-use the old CE directly?
2319 * That way we get the uptodate stat info.
2320 *
2321 * This also removes the UPDATE flag on a match; otherwise
2322 * we will end up overwriting local changes in the work tree.
2323 */
2324 if (same(old, merge)) {
2325 copy_cache_entry(merge, old);
2326 update = 0;
2327 } else {
2328 if (verify_uptodate(old, o)) {
2329 discard_cache_entry(merge);
2330 return -1;
2331 }
2332 /* Migrate old flags over */
2333 update |= old->ce_flags & (CE_SKIP_WORKTREE | CE_NEW_SKIP_WORKTREE);
2334 invalidate_ce_path(old, o);
2335 }
2336
2337 if (submodule_from_ce(ce) && file_exists(ce->name)) {
2338 int ret = check_submodule_move_head(ce, oid_to_hex(&old->oid),
2339 oid_to_hex(&ce->oid),
2340 o);
2341 if (ret)
2342 return ret;
2343 }
2344 } else {
2345 /*
2346 * Previously unmerged entry left as an existence
2347 * marker by read_index_unmerged();
2348 */
2349 invalidate_ce_path(old, o);
2350 }
2351
2352 if (do_add_entry(o, merge, update, CE_STAGEMASK) < 0)
2353 return -1;
2354 return 1;
2355 }
2356
2357 static int deleted_entry(const struct cache_entry *ce,
2358 const struct cache_entry *old,
2359 struct unpack_trees_options *o)
2360 {
2361 /* Did it exist in the index? */
2362 if (!old) {
2363 if (verify_absent(ce, ERROR_WOULD_LOSE_UNTRACKED_REMOVED, o))
2364 return -1;
2365 return 0;
2366 }
2367 if (!(old->ce_flags & CE_CONFLICTED) && verify_uptodate(old, o))
2368 return -1;
2369 add_entry(o, ce, CE_REMOVE, 0);
2370 invalidate_ce_path(ce, o);
2371 return 1;
2372 }
2373
2374 static int keep_entry(const struct cache_entry *ce,
2375 struct unpack_trees_options *o)
2376 {
2377 add_entry(o, ce, 0, 0);
2378 if (ce_stage(ce))
2379 invalidate_ce_path(ce, o);
2380 return 1;
2381 }
2382
2383 #if DBRT_DEBUG
2384 static void show_stage_entry(FILE *o,
2385 const char *label, const struct cache_entry *ce)
2386 {
2387 if (!ce)
2388 fprintf(o, "%s (missing)\n", label);
2389 else
2390 fprintf(o, "%s%06o %s %d\t%s\n",
2391 label,
2392 ce->ce_mode,
2393 oid_to_hex(&ce->oid),
2394 ce_stage(ce),
2395 ce->name);
2396 }
2397 #endif
2398
2399 int threeway_merge(const struct cache_entry * const *stages,
2400 struct unpack_trees_options *o)
2401 {
2402 const struct cache_entry *index;
2403 const struct cache_entry *head;
2404 const struct cache_entry *remote = stages[o->head_idx + 1];
2405 int count;
2406 int head_match = 0;
2407 int remote_match = 0;
2408
2409 int df_conflict_head = 0;
2410 int df_conflict_remote = 0;
2411
2412 int any_anc_missing = 0;
2413 int no_anc_exists = 1;
2414 int i;
2415
2416 for (i = 1; i < o->head_idx; i++) {
2417 if (!stages[i] || stages[i] == o->df_conflict_entry)
2418 any_anc_missing = 1;
2419 else
2420 no_anc_exists = 0;
2421 }
2422
2423 index = stages[0];
2424 head = stages[o->head_idx];
2425
2426 if (head == o->df_conflict_entry) {
2427 df_conflict_head = 1;
2428 head = NULL;
2429 }
2430
2431 if (remote == o->df_conflict_entry) {
2432 df_conflict_remote = 1;
2433 remote = NULL;
2434 }
2435
2436 /*
2437 * First, if there's a #16 situation, note that to prevent #13
2438 * and #14.
2439 */
2440 if (!same(remote, head)) {
2441 for (i = 1; i < o->head_idx; i++) {
2442 if (same(stages[i], head)) {
2443 head_match = i;
2444 }
2445 if (same(stages[i], remote)) {
2446 remote_match = i;
2447 }
2448 }
2449 }
2450
2451 /*
2452 * We start with cases where the index is allowed to match
2453 * something other than the head: #14(ALT) and #2ALT, where it
2454 * is permitted to match the result instead.
2455 */
2456 /* #14, #14ALT, #2ALT */
2457 if (remote && !df_conflict_head && head_match && !remote_match) {
2458 if (index && !same(index, remote) && !same(index, head))
2459 return reject_merge(index, o);
2460 return merged_entry(remote, index, o);
2461 }
2462 /*
2463 * If we have an entry in the index cache, then we want to
2464 * make sure that it matches head.
2465 */
2466 if (index && !same(index, head))
2467 return reject_merge(index, o);
2468
2469 if (head) {
2470 /* #5ALT, #15 */
2471 if (same(head, remote))
2472 return merged_entry(head, index, o);
2473 /* #13, #3ALT */
2474 if (!df_conflict_remote && remote_match && !head_match)
2475 return merged_entry(head, index, o);
2476 }
2477
2478 /* #1 */
2479 if (!head && !remote && any_anc_missing)
2480 return 0;
2481
2482 /*
2483 * Under the "aggressive" rule, we resolve mostly trivial
2484 * cases that we historically had git-merge-one-file resolve.
2485 */
2486 if (o->aggressive) {
2487 int head_deleted = !head;
2488 int remote_deleted = !remote;
2489 const struct cache_entry *ce = NULL;
2490
2491 if (index)
2492 ce = index;
2493 else if (head)
2494 ce = head;
2495 else if (remote)
2496 ce = remote;
2497 else {
2498 for (i = 1; i < o->head_idx; i++) {
2499 if (stages[i] && stages[i] != o->df_conflict_entry) {
2500 ce = stages[i];
2501 break;
2502 }
2503 }
2504 }
2505
2506 /*
2507 * Deleted in both.
2508 * Deleted in one and unchanged in the other.
2509 */
2510 if ((head_deleted && remote_deleted) ||
2511 (head_deleted && remote && remote_match) ||
2512 (remote_deleted && head && head_match)) {
2513 if (index)
2514 return deleted_entry(index, index, o);
2515 if (ce && !head_deleted) {
2516 if (verify_absent(ce, ERROR_WOULD_LOSE_UNTRACKED_REMOVED, o))
2517 return -1;
2518 }
2519 return 0;
2520 }
2521 /*
2522 * Added in both, identically.
2523 */
2524 if (no_anc_exists && head && remote && same(head, remote))
2525 return merged_entry(head, index, o);
2526
2527 }
2528
2529 /* Below are "no merge" cases, which require that the index be
2530 * up-to-date to avoid the files getting overwritten with
2531 * conflict resolution files.
2532 */
2533 if (index) {
2534 if (verify_uptodate(index, o))
2535 return -1;
2536 }
2537
2538 o->nontrivial_merge = 1;
2539
2540 /* #2, #3, #4, #6, #7, #9, #10, #11. */
2541 count = 0;
2542 if (!head_match || !remote_match) {
2543 for (i = 1; i < o->head_idx; i++) {
2544 if (stages[i] && stages[i] != o->df_conflict_entry) {
2545 keep_entry(stages[i], o);
2546 count++;
2547 break;
2548 }
2549 }
2550 }
2551 #if DBRT_DEBUG
2552 else {
2553 fprintf(stderr, "read-tree: warning #16 detected\n");
2554 show_stage_entry(stderr, "head ", stages[head_match]);
2555 show_stage_entry(stderr, "remote ", stages[remote_match]);
2556 }
2557 #endif
2558 if (head) { count += keep_entry(head, o); }
2559 if (remote) { count += keep_entry(remote, o); }
2560 return count;
2561 }
2562
2563 /*
2564 * Two-way merge.
2565 *
2566 * The rule is to "carry forward" what is in the index without losing
2567 * information across a "fast-forward", favoring a successful merge
2568 * over a merge failure when it makes sense. For details of the
2569 * "carry forward" rule, please see <Documentation/git-read-tree.txt>.
2570 *
2571 */
2572 int twoway_merge(const struct cache_entry * const *src,
2573 struct unpack_trees_options *o)
2574 {
2575 const struct cache_entry *current = src[0];
2576 const struct cache_entry *oldtree = src[1];
2577 const struct cache_entry *newtree = src[2];
2578
2579 if (o->merge_size != 2)
2580 return error("Cannot do a twoway merge of %d trees",
2581 o->merge_size);
2582
2583 if (oldtree == o->df_conflict_entry)
2584 oldtree = NULL;
2585 if (newtree == o->df_conflict_entry)
2586 newtree = NULL;
2587
2588 if (current) {
2589 if (current->ce_flags & CE_CONFLICTED) {
2590 if (same(oldtree, newtree) || o->reset) {
2591 if (!newtree)
2592 return deleted_entry(current, current, o);
2593 else
2594 return merged_entry(newtree, current, o);
2595 }
2596 return reject_merge(current, o);
2597 } else if ((!oldtree && !newtree) || /* 4 and 5 */
2598 (!oldtree && newtree &&
2599 same(current, newtree)) || /* 6 and 7 */
2600 (oldtree && newtree &&
2601 same(oldtree, newtree)) || /* 14 and 15 */
2602 (oldtree && newtree &&
2603 !same(oldtree, newtree) && /* 18 and 19 */
2604 same(current, newtree))) {
2605 return keep_entry(current, o);
2606 } else if (oldtree && !newtree && same(current, oldtree)) {
2607 /* 10 or 11 */
2608 return deleted_entry(oldtree, current, o);
2609 } else if (oldtree && newtree &&
2610 same(current, oldtree) && !same(current, newtree)) {
2611 /* 20 or 21 */
2612 return merged_entry(newtree, current, o);
2613 } else if (current && !oldtree && newtree &&
2614 S_ISSPARSEDIR(current->ce_mode) != S_ISSPARSEDIR(newtree->ce_mode) &&
2615 ce_stage(current) == 0) {
2616 /*
2617 * This case is a directory/file conflict across the sparse-index
2618 * boundary. When we are changing from one path to another via
2619 * 'git checkout', then we want to replace one entry with another
2620 * via merged_entry(). If there are staged changes, then we should
2621 * reject the merge instead.
2622 */
2623 return merged_entry(newtree, current, o);
2624 } else
2625 return reject_merge(current, o);
2626 }
2627 else if (newtree) {
2628 if (oldtree && !o->initial_checkout) {
2629 /*
2630 * deletion of the path was staged;
2631 */
2632 if (same(oldtree, newtree))
2633 return 1;
2634 return reject_merge(oldtree, o);
2635 }
2636 return merged_entry(newtree, current, o);
2637 }
2638 return deleted_entry(oldtree, current, o);
2639 }
2640
2641 /*
2642 * Bind merge.
2643 *
2644 * Keep the index entries at stage0, collapse stage1 but make sure
2645 * stage0 does not have anything there.
2646 */
2647 int bind_merge(const struct cache_entry * const *src,
2648 struct unpack_trees_options *o)
2649 {
2650 const struct cache_entry *old = src[0];
2651 const struct cache_entry *a = src[1];
2652
2653 if (o->merge_size != 1)
2654 return error("Cannot do a bind merge of %d trees",
2655 o->merge_size);
2656 if (a && old)
2657 return o->quiet ? -1 :
2658 error(ERRORMSG(o, ERROR_BIND_OVERLAP),
2659 super_prefixed(a->name),
2660 super_prefixed(old->name));
2661 if (!a)
2662 return keep_entry(old, o);
2663 else
2664 return merged_entry(a, NULL, o);
2665 }
2666
2667 /*
2668 * One-way merge.
2669 *
2670 * The rule is:
2671 * - take the stat information from stage0, take the data from stage1
2672 */
2673 int oneway_merge(const struct cache_entry * const *src,
2674 struct unpack_trees_options *o)
2675 {
2676 const struct cache_entry *old = src[0];
2677 const struct cache_entry *a = src[1];
2678
2679 if (o->merge_size != 1)
2680 return error("Cannot do a oneway merge of %d trees",
2681 o->merge_size);
2682
2683 if (!a || a == o->df_conflict_entry)
2684 return deleted_entry(old, old, o);
2685
2686 if (old && same(old, a)) {
2687 int update = 0;
2688 if (o->reset && o->update && !ce_uptodate(old) && !ce_skip_worktree(old) &&
2689 !(old->ce_flags & CE_FSMONITOR_VALID)) {
2690 struct stat st;
2691 if (lstat(old->name, &st) ||
2692 ie_match_stat(o->src_index, old, &st, CE_MATCH_IGNORE_VALID|CE_MATCH_IGNORE_SKIP_WORKTREE))
2693 update |= CE_UPDATE;
2694 }
2695 if (o->update && S_ISGITLINK(old->ce_mode) &&
2696 should_update_submodules() && !verify_uptodate(old, o))
2697 update |= CE_UPDATE;
2698 add_entry(o, old, update, CE_STAGEMASK);
2699 return 0;
2700 }
2701 return merged_entry(a, old, o);
2702 }
2703
2704 /*
2705 * Merge worktree and untracked entries in a stash entry.
2706 *
2707 * Ignore all index entries. Collapse remaining trees but make sure that they
2708 * don't have any conflicting files.
2709 */
2710 int stash_worktree_untracked_merge(const struct cache_entry * const *src,
2711 struct unpack_trees_options *o)
2712 {
2713 const struct cache_entry *worktree = src[1];
2714 const struct cache_entry *untracked = src[2];
2715
2716 if (o->merge_size != 2)
2717 BUG("invalid merge_size: %d", o->merge_size);
2718
2719 if (worktree && untracked)
2720 return error(_("worktree and untracked commit have duplicate entries: %s"),
2721 super_prefixed(worktree->name));
2722
2723 return merged_entry(worktree ? worktree : untracked, NULL, o);
2724 }