Coverage Report

Created: 2025-12-31 07:01

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/git/merge-ort.c
Line
Count
Source
1
/*
2
 * "Ostensibly Recursive's Twin" merge strategy, or "ort" for short.  Meant
3
 * as a drop-in replacement for the "recursive" merge strategy, allowing one
4
 * to replace
5
 *
6
 *   git merge [-s recursive]
7
 *
8
 * with
9
 *
10
 *   git merge -s ort
11
 *
12
 * Note: git's parser allows the space between '-s' and its argument to be
13
 * missing.  (Should I have backronymed "ham", "alsa", "kip", "nap, "alvo",
14
 * "cale", "peedy", or "ins" instead of "ort"?)
15
 */
16
17
#define USE_THE_REPOSITORY_VARIABLE
18
#define DISABLE_SIGN_COMPARE_WARNINGS
19
20
#include "git-compat-util.h"
21
#include "merge-ort.h"
22
23
#include "alloc.h"
24
#include "advice.h"
25
#include "attr.h"
26
#include "cache-tree.h"
27
#include "commit.h"
28
#include "commit-reach.h"
29
#include "config.h"
30
#include "diff.h"
31
#include "diffcore.h"
32
#include "dir.h"
33
#include "environment.h"
34
#include "gettext.h"
35
#include "hex.h"
36
#include "entry.h"
37
#include "merge-ll.h"
38
#include "match-trees.h"
39
#include "mem-pool.h"
40
#include "object-file.h"
41
#include "object-name.h"
42
#include "odb.h"
43
#include "oid-array.h"
44
#include "path.h"
45
#include "promisor-remote.h"
46
#include "read-cache-ll.h"
47
#include "refs.h"
48
#include "revision.h"
49
#include "sparse-index.h"
50
#include "strmap.h"
51
#include "trace2.h"
52
#include "tree.h"
53
#include "unpack-trees.h"
54
#include "xdiff-interface.h"
55
56
/*
57
 * We have many arrays of size 3.  Whenever we have such an array, the
58
 * indices refer to one of the sides of the three-way merge.  This is so
59
 * pervasive that the constants 0, 1, and 2 are used in many places in the
60
 * code (especially in arithmetic operations to find the other side's index
61
 * or to compute a relevant mask), but sometimes these enum names are used
62
 * to aid code clarity.
63
 *
64
 * See also 'filemask' and 'dirmask' in struct conflict_info; the "ith side"
65
 * referred to there is one of these three sides.
66
 */
67
enum merge_side {
68
  MERGE_BASE = 0,
69
  MERGE_SIDE1 = 1,
70
  MERGE_SIDE2 = 2
71
};
72
73
static unsigned RESULT_INITIALIZED = 0x1abe11ed; /* unlikely accidental value */
74
75
struct traversal_callback_data {
76
  unsigned long mask;
77
  unsigned long dirmask;
78
  struct name_entry names[3];
79
};
80
81
struct deferred_traversal_data {
82
  /*
83
   * possible_trivial_merges: directories to be explored only when needed
84
   *
85
   * possible_trivial_merges is a map of directory names to
86
   * dir_rename_mask.  When we detect that a directory is unchanged on
87
   * one side, we can sometimes resolve the directory without recursing
88
   * into it.  Renames are the only things that can prevent such an
89
   * optimization.  However, for rename sources:
90
   *   - If no parent directory needed directory rename detection, then
91
   *     no path under such a directory can be a relevant_source.
92
   * and for rename destinations:
93
   *   - If no cached rename has a target path under the directory AND
94
   *   - If there are no unpaired relevant_sources elsewhere in the
95
   *     repository
96
   * then we don't need any path under this directory for a rename
97
   * destination.  The only way to know the last item above is to defer
98
   * handling such directories until the end of collect_merge_info(),
99
   * in handle_deferred_entries().
100
   *
101
   * For each we store dir_rename_mask, since that's the only bit of
102
   * information we need, other than the path, to resume the recursive
103
   * traversal.
104
   */
105
  struct strintmap possible_trivial_merges;
106
107
  /*
108
   * trivial_merges_okay: if trivial directory merges are okay
109
   *
110
   * See possible_trivial_merges above.  The "no unpaired
111
   * relevant_sources elsewhere in the repository" is a single boolean
112
   * per merge side, which we store here.  Note that while 0 means no,
113
   * 1 only means "maybe" rather than "yes"; we optimistically set it
114
   * to 1 initially and only clear when we determine it is unsafe to
115
   * do trivial directory merges.
116
   */
117
  unsigned trivial_merges_okay;
118
119
  /*
120
   * target_dirs: ancestor directories of rename targets
121
   *
122
   * target_dirs contains all directory names that are an ancestor of
123
   * any rename destination.
124
   */
125
  struct strset target_dirs;
126
};
127
128
struct rename_info {
129
  /*
130
   * All variables that are arrays of size 3 correspond to data tracked
131
   * for the sides in enum merge_side.  Index 0 is almost always unused
132
   * because we often only need to track information for MERGE_SIDE1 and
133
   * MERGE_SIDE2 (MERGE_BASE can't have rename information since renames
134
   * are determined relative to what changed since the MERGE_BASE).
135
   */
136
137
  /*
138
   * pairs: pairing of filenames from diffcore_rename()
139
   */
140
  struct diff_queue_struct pairs[3];
141
142
  /*
143
   * dirs_removed: directories removed on a given side of history.
144
   *
145
   * The keys of dirs_removed[side] are the directories that were removed
146
   * on the given side of history.  The value of the strintmap for each
147
   * directory is a value from enum dir_rename_relevance.
148
   */
149
  struct strintmap dirs_removed[3];
150
151
  /*
152
   * dir_rename_count: tracking where parts of a directory were renamed to
153
   *
154
   * When files in a directory are renamed, they may not all go to the
155
   * same location.  Each strmap here tracks:
156
   *      old_dir => {new_dir => int}
157
   * That is, dir_rename_count[side] is a strmap to a strintmap.
158
   */
159
  struct strmap dir_rename_count[3];
160
161
  /*
162
   * dir_renames: computed directory renames
163
   *
164
   * This is a map of old_dir => new_dir and is derived in part from
165
   * dir_rename_count.
166
   */
167
  struct strmap dir_renames[3];
168
169
  /*
170
   * relevant_sources: deleted paths wanted in rename detection, and why
171
   *
172
   * relevant_sources is a set of deleted paths on each side of
173
   * history for which we need rename detection.  If a path is deleted
174
   * on one side of history, we need to detect if it is part of a
175
   * rename if either
176
   *    * the file is modified/deleted on the other side of history
177
   *    * we need to detect renames for an ancestor directory
178
   * If neither of those are true, we can skip rename detection for
179
   * that path.  The reason is stored as a value from enum
180
   * file_rename_relevance, as the reason can inform the algorithm in
181
   * diffcore_rename_extended().
182
   */
183
  struct strintmap relevant_sources[3];
184
185
  struct deferred_traversal_data deferred[3];
186
187
  /*
188
   * dir_rename_mask:
189
   *   0: optimization removing unmodified potential rename source okay
190
   *   2 or 4: optimization okay, but must check for files added to dir
191
   *   7: optimization forbidden; need rename source in case of dir rename
192
   */
193
  unsigned dir_rename_mask:3;
194
195
  /*
196
   * callback_data_*: supporting data structures for alternate traversal
197
   *
198
   * We sometimes need to be able to traverse through all the files
199
   * in a given tree before all immediate subdirectories within that
200
   * tree.  Since traverse_trees() doesn't do that naturally, we have
201
   * a traverse_trees_wrapper() that stores any immediate
202
   * subdirectories while traversing files, then traverses the
203
   * immediate subdirectories later.  These callback_data* variables
204
   * store the information for the subdirectories so that we can do
205
   * that traversal order.
206
   */
207
  struct traversal_callback_data *callback_data;
208
  int callback_data_nr, callback_data_alloc;
209
  char *callback_data_traverse_path;
210
211
  /*
212
   * merge_trees: trees passed to the merge algorithm for the merge
213
   *
214
   * merge_trees records the trees passed to the merge algorithm.  But,
215
   * this data also is stored in merge_result->priv.  If a sequence of
216
   * merges are being done (such as when cherry-picking or rebasing),
217
   * the next merge can look at this and re-use information from
218
   * previous merges under certain circumstances.
219
   *
220
   * See also all the cached_* variables.
221
   */
222
  struct tree *merge_trees[3];
223
224
  /*
225
   * cached_pairs_valid_side: which side's cached info can be reused
226
   *
227
   * See the description for merge_trees.  For repeated merges, at most
228
   * only one side's cached information can be used.  Valid values:
229
   *   MERGE_SIDE2: cached data from side2 can be reused
230
   *   MERGE_SIDE1: cached data from side1 can be reused
231
   *   0:           no cached data can be reused
232
   *   -1:          See redo_after_renames; both sides can be reused.
233
   */
234
  int cached_pairs_valid_side;
235
236
  /*
237
   * cached_pairs: Caching of renames and deletions.
238
   *
239
   * These are mappings recording renames and deletions of individual
240
   * files (not directories).  They are thus a map from an old
241
   * filename to either NULL (for deletions) or a new filename (for
242
   * renames).
243
   */
244
  struct strmap cached_pairs[3];
245
246
  /*
247
   * cached_target_names: just the destinations from cached_pairs
248
   *
249
   * We sometimes want a fast lookup to determine if a given filename
250
   * is one of the destinations in cached_pairs.  cached_target_names
251
   * is thus duplicative information, but it provides a fast lookup.
252
   */
253
  struct strset cached_target_names[3];
254
255
  /*
256
   * cached_irrelevant: Caching of rename_sources that aren't relevant.
257
   *
258
   * If we try to detect a rename for a source path and succeed, it's
259
   * part of a rename.  If we try to detect a rename for a source path
260
   * and fail, then it's a delete.  If we do not try to detect a rename
261
   * for a path, then we don't know if it's a rename or a delete.  If
262
   * merge-ort doesn't think the path is relevant, then we just won't
263
   * cache anything for that path.  But there's a slight problem in
264
   * that merge-ort can think a path is RELEVANT_LOCATION, but due to
265
   * commit 9bd342137e ("diffcore-rename: determine which
266
   * relevant_sources are no longer relevant", 2021-03-13),
267
   * diffcore-rename can downgrade the path to RELEVANT_NO_MORE.  To
268
   * avoid excessive calls to diffcore_rename_extended() we still need
269
   * to cache such paths, though we cannot record them as either
270
   * renames or deletes.  So we cache them here as a "turned out to be
271
   * irrelevant *for this commit*" as they are often also irrelevant
272
   * for subsequent commits, though we will have to do some extra
273
   * checking to see whether such paths become relevant for rename
274
   * detection when cherry-picking/rebasing subsequent commits.
275
   */
276
  struct strset cached_irrelevant[3];
277
278
  /*
279
   * redo_after_renames: optimization flag for "restarting" the merge
280
   *
281
   * Sometimes it pays to detect renames, cache them, and then
282
   * restart the merge operation from the beginning.  The reason for
283
   * this is that when we know where all the renames are, we know
284
   * whether a certain directory has any paths under it affected --
285
   * and if a directory is not affected then it permits us to do
286
   * trivial tree merging in more cases.  Doing trivial tree merging
287
   * prevents the need to run process_entry() on every path
288
   * underneath trees that can be trivially merged, and
289
   * process_entry() is more expensive than collect_merge_info() --
290
   * plus, the second collect_merge_info() will be much faster since
291
   * it doesn't have to recurse into the relevant trees.
292
   *
293
   * Values for this flag:
294
   *   0 = don't bother, not worth it (or conditions not yet checked)
295
   *   1 = conditions for optimization met, optimization worthwhile
296
   *   2 = we already did it (don't restart merge yet again)
297
   */
298
  unsigned redo_after_renames;
299
300
  /*
301
   * needed_limit: value needed for inexact rename detection to run
302
   *
303
   * If the current rename limit wasn't high enough for inexact
304
   * rename detection to run, this records the limit needed.  Otherwise,
305
   * this value remains 0.
306
   */
307
  int needed_limit;
308
};
309
310
struct merge_options_internal {
311
  /*
312
   * paths: primary data structure in all of merge ort.
313
   *
314
   * The keys of paths:
315
   *   * are full relative paths from the toplevel of the repository
316
   *     (e.g. "drivers/firmware/raspberrypi.c").
317
   *   * store all relevant paths in the repo, both directories and
318
   *     files (e.g. drivers, drivers/firmware would also be included)
319
   *   * these keys serve to intern *all* path strings, which allows us
320
   *     to do pointer comparisons on file & directory names instead of
321
   *     using strcmp; however, for this pointer-comparison optimization
322
   *     to work, any code path that independently computes a path needs
323
   *     to check for it existing in this strmap, and if so, point to
324
   *     the path in this strmap instead of their computed copy.  See
325
   *     the "reuse known pointer" comment in
326
   *     apply_directory_rename_modifications() for an example.
327
   *
328
   * The values of paths:
329
   *   * either a pointer to a merged_info, or a conflict_info struct
330
   *   * merged_info contains all relevant information for a
331
   *     non-conflicted entry.
332
   *   * conflict_info contains a merged_info, plus any additional
333
   *     information about a conflict such as the higher orders stages
334
   *     involved and the names of the paths those came from (handy
335
   *     once renames get involved).
336
   *   * a path may start "conflicted" (i.e. point to a conflict_info)
337
   *     and then a later step (e.g. three-way content merge) determines
338
   *     it can be cleanly merged, at which point it'll be marked clean
339
   *     and the algorithm will ignore any data outside the contained
340
   *     merged_info for that entry
341
   *   * If an entry remains conflicted, the merged_info portion of a
342
   *     conflict_info will later be filled with whatever version of
343
   *     the file should be placed in the working directory (e.g. an
344
   *     as-merged-as-possible variation that contains conflict markers).
345
   */
346
  struct strmap paths;
347
348
  /*
349
   * conflicted: a subset of keys->values from "paths"
350
   *
351
   * conflicted is basically an optimization between process_entries()
352
   * and record_conflicted_index_entries(); the latter could loop over
353
   * ALL the entries in paths AGAIN and look for the ones that are
354
   * still conflicted, but since process_entries() has to loop over
355
   * all of them, it saves the ones it couldn't resolve in this strmap
356
   * so that record_conflicted_index_entries() can iterate just the
357
   * relevant entries.
358
   */
359
  struct strmap conflicted;
360
361
  /*
362
   * pool: memory pool for fast allocation/deallocation
363
   *
364
   * We allocate room for lots of filenames and auxiliary data
365
   * structures in merge_options_internal, and it tends to all be
366
   * freed together too.  Using a memory pool for these provides a
367
   * nice speedup.
368
   */
369
  struct mem_pool pool;
370
371
  /*
372
   * conflicts: logical conflicts and messages stored by _primary_ path
373
   *
374
   * This is a map of pathnames (a subset of the keys in "paths" above)
375
   * to struct string_list, with each item's `util` containing a
376
   * `struct logical_conflict_info`. Note, though, that for each path,
377
   * it only stores the logical conflicts for which that path is the
378
   * primary path; the path might be part of additional conflicts.
379
   */
380
  struct strmap conflicts;
381
382
  /*
383
   * renames: various data relating to rename detection
384
   */
385
  struct rename_info renames;
386
387
  /*
388
   * attr_index: hacky minimal index used for renormalization
389
   *
390
   * renormalization code _requires_ an index, though it only needs to
391
   * find a .gitattributes file within the index.  So, when
392
   * renormalization is important, we create a special index with just
393
   * that one file.
394
   */
395
  struct index_state attr_index;
396
397
  /*
398
   * current_dir_name, toplevel_dir: temporary vars
399
   *
400
   * These are used in collect_merge_info_callback(), and will set the
401
   * various merged_info.directory_name for the various paths we get;
402
   * see documentation for that variable and the requirements placed on
403
   * that field.
404
   */
405
  const char *current_dir_name;
406
  const char *toplevel_dir;
407
408
  /* call_depth: recursion level counter for merging merge bases */
409
  int call_depth;
410
411
  /* field that holds submodule conflict information */
412
  struct string_list conflicted_submodules;
413
};
414
415
struct conflicted_submodule_item {
416
  char *abbrev;
417
  int flag;
418
};
419
420
static void conflicted_submodule_item_free(void *util, const char *str UNUSED)
421
0
{
422
0
  struct conflicted_submodule_item *item = util;
423
424
0
  free(item->abbrev);
425
0
  free(item);
426
0
}
427
428
struct version_info {
429
  struct object_id oid;
430
  unsigned short mode;
431
};
432
433
struct merged_info {
434
  /* if is_null, ignore result.  otherwise result has oid & mode */
435
  struct version_info result;
436
  unsigned is_null:1;
437
438
  /*
439
   * clean: whether the path in question is cleanly merged.
440
   *
441
   * see conflict_info.merged for more details.
442
   */
443
  unsigned clean:1;
444
445
  /*
446
   * basename_offset: offset of basename of path.
447
   *
448
   * perf optimization to avoid recomputing offset of final '/'
449
   * character in pathname (0 if no '/' in pathname).
450
   */
451
  size_t basename_offset;
452
453
   /*
454
    * directory_name: containing directory name.
455
    *
456
    * Note that we assume directory_name is constructed such that
457
    *    strcmp(dir1_name, dir2_name) == 0 iff dir1_name == dir2_name,
458
    * i.e. string equality is equivalent to pointer equality.  For this
459
    * to hold, we have to be careful setting directory_name.
460
    */
461
  const char *directory_name;
462
};
463
464
struct conflict_info {
465
  /*
466
   * merged: the version of the path that will be written to working tree
467
   *
468
   * WARNING: It is critical to check merged.clean and ensure it is 0
469
   * before reading any conflict_info fields outside of merged.
470
   * Allocated merge_info structs will always have clean set to 1.
471
   * Allocated conflict_info structs will have merged.clean set to 0
472
   * initially.  The merged.clean field is how we know if it is safe
473
   * to access other parts of conflict_info besides merged; if a
474
   * conflict_info's merged.clean is changed to 1, the rest of the
475
   * algorithm is not allowed to look at anything outside of the
476
   * merged member anymore.
477
   */
478
  struct merged_info merged;
479
480
  /* oids & modes from each of the three trees for this path */
481
  struct version_info stages[3];
482
483
  /* pathnames for each stage; may differ due to rename detection */
484
  const char *pathnames[3];
485
486
  /* Whether this path is/was involved in a directory/file conflict */
487
  unsigned df_conflict:1;
488
489
  /*
490
   * Whether this path is/was involved in a non-content conflict other
491
   * than a directory/file conflict (e.g. rename/rename, rename/delete,
492
   * file location based on possible directory rename).
493
   */
494
  unsigned path_conflict:1;
495
496
  /*
497
   * For filemask and dirmask, the ith bit corresponds to whether the
498
   * ith entry is a file (filemask) or a directory (dirmask).  Thus,
499
   * filemask & dirmask is always zero, and filemask | dirmask is at
500
   * most 7 but can be less when a path does not appear as either a
501
   * file or a directory on at least one side of history.
502
   *
503
   * Note that these masks are related to enum merge_side, as the ith
504
   * entry corresponds to side i.
505
   *
506
   * These values come from a traverse_trees() call; more info may be
507
   * found looking at tree-walk.h's struct traverse_info,
508
   * particularly the documentation above the "fn" member (note that
509
   * filemask = mask & ~dirmask from that documentation).
510
   */
511
  unsigned filemask:3;
512
  unsigned dirmask:3;
513
514
  /*
515
   * Optimization to track which stages match, to avoid the need to
516
   * recompute it in multiple steps. Either 0 or at least 2 bits are
517
   * set; if at least 2 bits are set, their corresponding stages match.
518
   */
519
  unsigned match_mask:3;
520
};
521
522
enum conflict_and_info_types {
523
  /* "Simple" conflicts and informational messages */
524
  INFO_AUTO_MERGING = 0,
525
  CONFLICT_CONTENTS,       /* text file that failed to merge */
526
  CONFLICT_BINARY,
527
  CONFLICT_FILE_DIRECTORY,
528
  CONFLICT_DISTINCT_MODES,
529
  CONFLICT_MODIFY_DELETE,
530
531
  /* Regular rename */
532
  CONFLICT_RENAME_RENAME,   /* same file renamed differently */
533
  CONFLICT_RENAME_COLLIDES, /* rename/add or two files renamed to 1 */
534
  CONFLICT_RENAME_DELETE,
535
536
  /* Basic directory rename */
537
  CONFLICT_DIR_RENAME_SUGGESTED,
538
  INFO_DIR_RENAME_APPLIED,
539
540
  /* Special directory rename cases */
541
  INFO_DIR_RENAME_SKIPPED_DUE_TO_RERENAME,
542
  CONFLICT_DIR_RENAME_FILE_IN_WAY,
543
  CONFLICT_DIR_RENAME_COLLISION,
544
  CONFLICT_DIR_RENAME_SPLIT,
545
546
  /* Basic submodule */
547
  INFO_SUBMODULE_FAST_FORWARDING,
548
  CONFLICT_SUBMODULE_FAILED_TO_MERGE,
549
550
  /* Special submodule cases broken out from FAILED_TO_MERGE */
551
  CONFLICT_SUBMODULE_FAILED_TO_MERGE_BUT_POSSIBLE_RESOLUTION,
552
  CONFLICT_SUBMODULE_NOT_INITIALIZED,
553
  CONFLICT_SUBMODULE_HISTORY_NOT_AVAILABLE,
554
  CONFLICT_SUBMODULE_MAY_HAVE_REWINDS,
555
  CONFLICT_SUBMODULE_NULL_MERGE_BASE,
556
557
  /* INSERT NEW ENTRIES HERE */
558
559
  /*
560
   * Keep this entry after all regular conflict and info types; only
561
   * errors (failures causing immediate abort of the merge) should
562
   * come after this.
563
   */
564
  NB_REGULAR_CONFLICT_TYPES,
565
566
  /*
567
   * Something is seriously wrong; cannot even perform merge;
568
   * Keep this group _last_ other than NB_TOTAL_TYPES
569
   */
570
  ERROR_SUBMODULE_CORRUPT,
571
  ERROR_THREEWAY_CONTENT_MERGE_FAILED,
572
  ERROR_OBJECT_WRITE_FAILED,
573
  ERROR_OBJECT_READ_FAILED,
574
  ERROR_OBJECT_NOT_A_BLOB,
575
576
  /* Keep this entry _last_ in the list */
577
  NB_TOTAL_TYPES,
578
};
579
580
/*
581
 * Short description of conflict type, relied upon by external tools.
582
 *
583
 * We can add more entries, but DO NOT change any of these strings.  Also,
584
 * please ensure the order matches what is used in conflict_info_and_types.
585
 */
586
static const char *type_short_descriptions[] = {
587
  /*** "Simple" conflicts and informational messages ***/
588
  [INFO_AUTO_MERGING] = "Auto-merging",
589
  [CONFLICT_CONTENTS] = "CONFLICT (contents)",
590
  [CONFLICT_BINARY] = "CONFLICT (binary)",
591
  [CONFLICT_FILE_DIRECTORY] = "CONFLICT (file/directory)",
592
  [CONFLICT_DISTINCT_MODES] = "CONFLICT (distinct modes)",
593
  [CONFLICT_MODIFY_DELETE] = "CONFLICT (modify/delete)",
594
595
  /*** Regular rename ***/
596
  [CONFLICT_RENAME_RENAME] = "CONFLICT (rename/rename)",
597
  [CONFLICT_RENAME_COLLIDES] = "CONFLICT (rename involved in collision)",
598
  [CONFLICT_RENAME_DELETE] = "CONFLICT (rename/delete)",
599
600
  /*** Basic directory rename ***/
601
  [CONFLICT_DIR_RENAME_SUGGESTED] =
602
    "CONFLICT (directory rename suggested)",
603
  [INFO_DIR_RENAME_APPLIED] = "Path updated due to directory rename",
604
605
  /*** Special directory rename cases ***/
606
  [INFO_DIR_RENAME_SKIPPED_DUE_TO_RERENAME] =
607
    "Directory rename skipped since directory was renamed on both sides",
608
  [CONFLICT_DIR_RENAME_FILE_IN_WAY] =
609
    "CONFLICT (file in way of directory rename)",
610
  [CONFLICT_DIR_RENAME_COLLISION] = "CONFLICT(directory rename collision)",
611
  [CONFLICT_DIR_RENAME_SPLIT] = "CONFLICT(directory rename unclear split)",
612
613
  /*** Basic submodule ***/
614
  [INFO_SUBMODULE_FAST_FORWARDING] = "Fast forwarding submodule",
615
  [CONFLICT_SUBMODULE_FAILED_TO_MERGE] = "CONFLICT (submodule)",
616
617
  /*** Special submodule cases broken out from FAILED_TO_MERGE ***/
618
  [CONFLICT_SUBMODULE_FAILED_TO_MERGE_BUT_POSSIBLE_RESOLUTION] =
619
    "CONFLICT (submodule with possible resolution)",
620
  [CONFLICT_SUBMODULE_NOT_INITIALIZED] =
621
    "CONFLICT (submodule not initialized)",
622
  [CONFLICT_SUBMODULE_HISTORY_NOT_AVAILABLE] =
623
    "CONFLICT (submodule history not available)",
624
  [CONFLICT_SUBMODULE_MAY_HAVE_REWINDS] =
625
    "CONFLICT (submodule may have rewinds)",
626
  [CONFLICT_SUBMODULE_NULL_MERGE_BASE] =
627
    "CONFLICT (submodule lacks merge base)",
628
629
  /* Something is seriously wrong; cannot even perform merge */
630
  [ERROR_SUBMODULE_CORRUPT] =
631
    "ERROR (submodule corrupt)",
632
  [ERROR_THREEWAY_CONTENT_MERGE_FAILED] =
633
    "ERROR (three-way content merge failed)",
634
  [ERROR_OBJECT_WRITE_FAILED] =
635
    "ERROR (object write failed)",
636
  [ERROR_OBJECT_READ_FAILED] =
637
    "ERROR (object read failed)",
638
  [ERROR_OBJECT_NOT_A_BLOB] =
639
    "ERROR (object is not a blob)",
640
};
641
642
struct logical_conflict_info {
643
  enum conflict_and_info_types type;
644
  struct strvec paths;
645
};
646
647
/*** Function Grouping: various utility functions ***/
648
649
/*
650
 * For the next three macros, see warning for conflict_info.merged.
651
 *
652
 * In each of the below, mi is a struct merged_info*, and ci was defined
653
 * as a struct conflict_info* (but we need to verify ci isn't actually
654
 * pointed at a struct merged_info*).
655
 *
656
 * INITIALIZE_CI: Assign ci to mi but only if it's safe; set to NULL otherwise.
657
 * VERIFY_CI: Ensure that something we assigned to a conflict_info* is one.
658
 * ASSIGN_AND_VERIFY_CI: Similar to VERIFY_CI but do assignment first.
659
 */
660
0
#define INITIALIZE_CI(ci, mi) do {                                           \
661
0
  (ci) = (!(mi) || (mi)->clean) ? NULL : (struct conflict_info *)(mi); \
662
0
} while (0)
663
0
#define VERIFY_CI(ci) assert(ci && !ci->merged.clean);
664
0
#define ASSIGN_AND_VERIFY_CI(ci, mi) do {    \
665
0
  (ci) = (struct conflict_info *)(mi);  \
666
0
  assert((ci) && !(mi)->clean);        \
667
0
} while (0)
668
669
static void free_strmap_strings(struct strmap *map)
670
0
{
671
0
  struct hashmap_iter iter;
672
0
  struct strmap_entry *entry;
673
674
0
  strmap_for_each_entry(map, &iter, entry) {
675
0
    free((char*)entry->key);
676
0
  }
677
0
}
678
679
static void clear_or_reinit_internal_opts(struct merge_options_internal *opti,
680
            int reinitialize)
681
0
{
682
0
  struct rename_info *renames = &opti->renames;
683
0
  int i;
684
0
  void (*strmap_clear_func)(struct strmap *, int) =
685
0
    reinitialize ? strmap_partial_clear : strmap_clear;
686
0
  void (*strintmap_clear_func)(struct strintmap *) =
687
0
    reinitialize ? strintmap_partial_clear : strintmap_clear;
688
0
  void (*strset_clear_func)(struct strset *) =
689
0
    reinitialize ? strset_partial_clear : strset_clear;
690
691
0
  strmap_clear_func(&opti->paths, 0);
692
693
  /*
694
   * All keys and values in opti->conflicted are a subset of those in
695
   * opti->paths.  We don't want to deallocate anything twice, so we
696
   * don't free the keys and we pass 0 for free_values.
697
   */
698
0
  strmap_clear_func(&opti->conflicted, 0);
699
700
0
  discard_index(&opti->attr_index);
701
702
  /* Free memory used by various renames maps */
703
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; ++i) {
704
0
    strintmap_clear_func(&renames->dirs_removed[i]);
705
0
    strmap_clear_func(&renames->dir_renames[i], 0);
706
0
    strintmap_clear_func(&renames->relevant_sources[i]);
707
0
    if (!reinitialize)
708
0
      assert(renames->cached_pairs_valid_side == 0);
709
0
    if (i != renames->cached_pairs_valid_side &&
710
0
        -1 != renames->cached_pairs_valid_side) {
711
0
      strset_clear_func(&renames->cached_target_names[i]);
712
0
      strmap_clear_func(&renames->cached_pairs[i], 1);
713
0
      strset_clear_func(&renames->cached_irrelevant[i]);
714
0
      partial_clear_dir_rename_count(&renames->dir_rename_count[i]);
715
0
      if (!reinitialize)
716
0
        strmap_clear(&renames->dir_rename_count[i], 1);
717
0
    }
718
0
  }
719
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; ++i) {
720
0
    strintmap_clear_func(&renames->deferred[i].possible_trivial_merges);
721
0
    strset_clear_func(&renames->deferred[i].target_dirs);
722
0
    renames->deferred[i].trivial_merges_okay = 1; /* 1 == maybe */
723
0
  }
724
0
  renames->cached_pairs_valid_side = 0;
725
0
  renames->dir_rename_mask = 0;
726
727
0
  if (!reinitialize) {
728
0
    struct hashmap_iter iter;
729
0
    struct strmap_entry *e;
730
731
    /* Release and free each strbuf found in output */
732
0
    strmap_for_each_entry(&opti->conflicts, &iter, e) {
733
0
      struct string_list *list = e->value;
734
0
      for (int i = 0; i < list->nr; i++) {
735
0
        struct logical_conflict_info *info =
736
0
          list->items[i].util;
737
0
        strvec_clear(&info->paths);
738
0
      }
739
      /*
740
       * While strictly speaking we don't need to
741
       * free(conflicts) here because we could pass
742
       * free_values=1 when calling strmap_clear() on
743
       * opti->conflicts, that would require strmap_clear
744
       * to do another strmap_for_each_entry() loop, so we
745
       * just free it while we're iterating anyway.
746
       */
747
0
      string_list_clear(list, 1);
748
0
      free(list);
749
0
    }
750
0
    strmap_clear(&opti->conflicts, 0);
751
0
  }
752
753
0
  mem_pool_discard(&opti->pool, 0);
754
755
0
  string_list_clear_func(&opti->conflicted_submodules,
756
0
          conflicted_submodule_item_free);
757
758
  /* Clean out callback_data as well. */
759
0
  FREE_AND_NULL(renames->callback_data);
760
0
  renames->callback_data_nr = renames->callback_data_alloc = 0;
761
0
}
762
763
static void format_commit(struct strbuf *sb,
764
        int indent,
765
        struct repository *repo,
766
        struct commit *commit)
767
0
{
768
0
  struct merge_remote_desc *desc;
769
0
  struct pretty_print_context ctx = {0};
770
0
  ctx.abbrev = DEFAULT_ABBREV;
771
772
0
  strbuf_addchars(sb, ' ', indent);
773
0
  desc = merge_remote_util(commit);
774
0
  if (desc) {
775
0
    strbuf_addf(sb, "virtual %s\n", desc->name);
776
0
    return;
777
0
  }
778
779
0
  repo_format_commit_message(repo, commit, "%h %s", sb, &ctx);
780
0
  strbuf_addch(sb, '\n');
781
0
}
782
783
__attribute__((format (printf, 8, 9)))
784
static void path_msg(struct merge_options *opt,
785
         enum conflict_and_info_types type,
786
         int omittable_hint, /* skippable under --remerge-diff */
787
         const char *primary_path,
788
         const char *other_path_1, /* may be NULL */
789
         const char *other_path_2, /* may be NULL */
790
         struct string_list *other_paths, /* may be NULL */
791
         const char *fmt, ...)
792
0
{
793
0
  va_list ap;
794
0
  struct string_list *path_conflicts;
795
0
  struct logical_conflict_info *info;
796
0
  struct strbuf buf = STRBUF_INIT;
797
0
  struct strbuf *dest;
798
0
  struct strbuf tmp = STRBUF_INIT;
799
800
  /* Sanity checks */
801
0
  ASSERT(omittable_hint ==
802
0
         (!starts_with(type_short_descriptions[type], "CONFLICT") &&
803
0
    !starts_with(type_short_descriptions[type], "ERROR")) ||
804
0
         type == CONFLICT_DIR_RENAME_SUGGESTED);
805
0
  if (opt->record_conflict_msgs_as_headers && omittable_hint)
806
0
    return; /* Do not record mere hints in headers */
807
0
  if (opt->priv->call_depth && opt->verbosity < 5)
808
0
    return; /* Ignore messages from inner merges */
809
810
  /* Ensure path_conflicts (ptr to array of logical_conflict) allocated */
811
0
  path_conflicts = strmap_get(&opt->priv->conflicts, primary_path);
812
0
  if (!path_conflicts) {
813
0
    path_conflicts = xmalloc(sizeof(*path_conflicts));
814
0
    string_list_init_dup(path_conflicts);
815
0
    strmap_put(&opt->priv->conflicts, primary_path, path_conflicts);
816
0
  }
817
818
  /* Add a logical_conflict at the end to store info from this call */
819
0
  info = xcalloc(1, sizeof(*info));
820
0
  info->type = type;
821
0
  strvec_init(&info->paths);
822
823
  /* Handle the list of paths */
824
0
  strvec_push(&info->paths, primary_path);
825
0
  if (other_path_1)
826
0
    strvec_push(&info->paths, other_path_1);
827
0
  if (other_path_2)
828
0
    strvec_push(&info->paths, other_path_2);
829
0
  if (other_paths)
830
0
    for (int i = 0; i < other_paths->nr; i++)
831
0
    strvec_push(&info->paths, other_paths->items[i].string);
832
833
  /* Handle message and its format, in normal case */
834
0
  dest = (opt->record_conflict_msgs_as_headers ? &tmp : &buf);
835
836
0
  va_start(ap, fmt);
837
0
  if (opt->priv->call_depth) {
838
0
    strbuf_addchars(dest, ' ', 2);
839
0
    strbuf_addstr(dest, "From inner merge:");
840
0
    strbuf_addchars(dest, ' ', opt->priv->call_depth * 2);
841
0
  }
842
0
  strbuf_vaddf(dest, fmt, ap);
843
0
  va_end(ap);
844
845
  /* Handle specialized formatting of message under --remerge-diff */
846
0
  if (opt->record_conflict_msgs_as_headers) {
847
0
    int i_sb = 0, i_tmp = 0;
848
849
    /* Start with the specified prefix */
850
0
    if (opt->msg_header_prefix)
851
0
      strbuf_addf(&buf, "%s ", opt->msg_header_prefix);
852
853
    /* Copy tmp to sb, adding spaces after newlines */
854
0
    strbuf_grow(&buf, buf.len + 2*tmp.len); /* more than sufficient */
855
0
    for (; i_tmp < tmp.len; i_tmp++, i_sb++) {
856
      /* Copy next character from tmp to sb */
857
0
      buf.buf[buf.len + i_sb] = tmp.buf[i_tmp];
858
859
      /* If we copied a newline, add a space */
860
0
      if (tmp.buf[i_tmp] == '\n')
861
0
        buf.buf[++i_sb] = ' ';
862
0
    }
863
    /* Update length and ensure it's NUL-terminated */
864
0
    buf.len += i_sb;
865
0
    buf.buf[buf.len] = '\0';
866
867
0
    strbuf_release(&tmp);
868
0
  }
869
0
  string_list_append_nodup(path_conflicts, strbuf_detach(&buf, NULL))
870
0
    ->util = info;
871
0
}
872
873
static struct diff_filespec *pool_alloc_filespec(struct mem_pool *pool,
874
             const char *path)
875
0
{
876
  /* Similar to alloc_filespec(), but allocate from pool and reuse path */
877
0
  struct diff_filespec *spec;
878
879
0
  spec = mem_pool_calloc(pool, 1, sizeof(*spec));
880
0
  spec->path = (char*)path; /* spec won't modify it */
881
882
0
  spec->count = 1;
883
0
  spec->is_binary = -1;
884
0
  return spec;
885
0
}
886
887
static struct diff_filepair *pool_diff_queue(struct mem_pool *pool,
888
               struct diff_queue_struct *queue,
889
               struct diff_filespec *one,
890
               struct diff_filespec *two)
891
0
{
892
  /* Same code as diff_queue(), except allocate from pool */
893
0
  struct diff_filepair *dp;
894
895
0
  dp = mem_pool_calloc(pool, 1, sizeof(*dp));
896
0
  dp->one = one;
897
0
  dp->two = two;
898
0
  if (queue)
899
0
    diff_q(queue, dp);
900
0
  return dp;
901
0
}
902
903
/* add a string to a strbuf, but converting "/" to "_" */
904
static void add_flattened_path(struct strbuf *out, const char *s)
905
0
{
906
0
  size_t i = out->len;
907
0
  strbuf_addstr(out, s);
908
0
  for (; i < out->len; i++)
909
0
    if (out->buf[i] == '/')
910
0
      out->buf[i] = '_';
911
0
}
912
913
static char *unique_path(struct merge_options *opt,
914
       const char *path,
915
       const char *branch)
916
0
{
917
0
  char *ret = NULL;
918
0
  struct strbuf newpath = STRBUF_INIT;
919
0
  int suffix = 0;
920
0
  size_t base_len;
921
0
  struct strmap *existing_paths = &opt->priv->paths;
922
923
0
  strbuf_addf(&newpath, "%s~", path);
924
0
  add_flattened_path(&newpath, branch);
925
926
0
  base_len = newpath.len;
927
0
  while (strmap_contains(existing_paths, newpath.buf)) {
928
0
    strbuf_setlen(&newpath, base_len);
929
0
    strbuf_addf(&newpath, "_%d", suffix++);
930
0
  }
931
932
  /* Track the new path in our memory pool */
933
0
  ret = mem_pool_alloc(&opt->priv->pool, newpath.len + 1);
934
0
  memcpy(ret, newpath.buf, newpath.len + 1);
935
0
  strbuf_release(&newpath);
936
0
  return ret;
937
0
}
938
939
/*** Function Grouping: functions related to collect_merge_info() ***/
940
941
static int traverse_trees_wrapper_callback(int n,
942
             unsigned long mask,
943
             unsigned long dirmask,
944
             struct name_entry *names,
945
             struct traverse_info *info)
946
0
{
947
0
  struct merge_options *opt = info->data;
948
0
  struct rename_info *renames = &opt->priv->renames;
949
0
  unsigned filemask = mask & ~dirmask;
950
951
0
  assert(n==3);
952
953
0
  if (!renames->callback_data_traverse_path)
954
0
    renames->callback_data_traverse_path = xstrdup(info->traverse_path);
955
956
0
  if (filemask && filemask == renames->dir_rename_mask)
957
0
    renames->dir_rename_mask = 0x07;
958
959
0
  ALLOC_GROW(renames->callback_data, renames->callback_data_nr + 1,
960
0
       renames->callback_data_alloc);
961
0
  renames->callback_data[renames->callback_data_nr].mask = mask;
962
0
  renames->callback_data[renames->callback_data_nr].dirmask = dirmask;
963
0
  COPY_ARRAY(renames->callback_data[renames->callback_data_nr].names,
964
0
       names, 3);
965
0
  renames->callback_data_nr++;
966
967
0
  return mask;
968
0
}
969
970
/*
971
 * Much like traverse_trees(), BUT:
972
 *   - read all the tree entries FIRST, saving them
973
 *   - note that the above step provides an opportunity to compute necessary
974
 *     additional details before the "real" traversal
975
 *   - loop through the saved entries and call the original callback on them
976
 */
977
static int traverse_trees_wrapper(struct index_state *istate,
978
          int n,
979
          struct tree_desc *t,
980
          struct traverse_info *info)
981
0
{
982
0
  int ret, i, old_offset;
983
0
  traverse_callback_t old_fn;
984
0
  char *old_callback_data_traverse_path;
985
0
  struct merge_options *opt = info->data;
986
0
  struct rename_info *renames = &opt->priv->renames;
987
988
0
  assert(renames->dir_rename_mask == 2 || renames->dir_rename_mask == 4);
989
990
0
  old_callback_data_traverse_path = renames->callback_data_traverse_path;
991
0
  old_fn = info->fn;
992
0
  old_offset = renames->callback_data_nr;
993
994
0
  renames->callback_data_traverse_path = NULL;
995
0
  info->fn = traverse_trees_wrapper_callback;
996
0
  ret = traverse_trees(istate, n, t, info);
997
0
  if (ret < 0)
998
0
    return ret;
999
1000
0
  info->traverse_path = renames->callback_data_traverse_path;
1001
0
  info->fn = old_fn;
1002
0
  for (i = old_offset; i < renames->callback_data_nr; ++i) {
1003
0
    info->fn(n,
1004
0
       renames->callback_data[i].mask,
1005
0
       renames->callback_data[i].dirmask,
1006
0
       renames->callback_data[i].names,
1007
0
       info);
1008
0
  }
1009
1010
0
  renames->callback_data_nr = old_offset;
1011
0
  free(renames->callback_data_traverse_path);
1012
0
  renames->callback_data_traverse_path = old_callback_data_traverse_path;
1013
0
  info->traverse_path = NULL;
1014
0
  return 0;
1015
0
}
1016
1017
static void setup_path_info(struct merge_options *opt,
1018
          struct string_list_item *result,
1019
          const char *current_dir_name,
1020
          int current_dir_name_len,
1021
          char *fullpath, /* we'll take over ownership */
1022
          struct name_entry *names,
1023
          struct name_entry *merged_version,
1024
          unsigned is_null,     /* boolean */
1025
          unsigned df_conflict, /* boolean */
1026
          unsigned filemask,
1027
          unsigned dirmask,
1028
          int resolved          /* boolean */)
1029
0
{
1030
  /* result->util is void*, so mi is a convenience typed variable */
1031
0
  struct merged_info *mi;
1032
1033
0
  assert(!is_null || resolved);
1034
0
  assert(!df_conflict || !resolved); /* df_conflict implies !resolved */
1035
0
  assert(resolved == (merged_version != NULL));
1036
1037
0
  mi = mem_pool_calloc(&opt->priv->pool, 1,
1038
0
           resolved ? sizeof(struct merged_info) :
1039
0
          sizeof(struct conflict_info));
1040
0
  mi->directory_name = current_dir_name;
1041
0
  mi->basename_offset = current_dir_name_len;
1042
0
  mi->clean = !!resolved;
1043
0
  if (resolved) {
1044
0
    mi->result.mode = merged_version->mode;
1045
0
    oidcpy(&mi->result.oid, &merged_version->oid);
1046
0
    mi->is_null = !!is_null;
1047
0
  } else {
1048
0
    int i;
1049
0
    struct conflict_info *ci;
1050
1051
0
    ASSIGN_AND_VERIFY_CI(ci, mi);
1052
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
1053
0
      ci->pathnames[i] = fullpath;
1054
0
      ci->stages[i].mode = names[i].mode;
1055
0
      oidcpy(&ci->stages[i].oid, &names[i].oid);
1056
0
    }
1057
0
    ci->filemask = filemask;
1058
0
    ci->dirmask = dirmask;
1059
0
    ci->df_conflict = !!df_conflict;
1060
0
    if (dirmask)
1061
      /*
1062
       * Assume is_null for now, but if we have entries
1063
       * under the directory then when it is complete in
1064
       * write_completed_directory() it'll update this.
1065
       * Also, for D/F conflicts, we have to handle the
1066
       * directory first, then clear this bit and process
1067
       * the file to see how it is handled -- that occurs
1068
       * near the top of process_entry().
1069
       */
1070
0
      mi->is_null = 1;
1071
0
  }
1072
0
  strmap_put(&opt->priv->paths, fullpath, mi);
1073
0
  result->string = fullpath;
1074
0
  result->util = mi;
1075
0
}
1076
1077
static void add_pair(struct merge_options *opt,
1078
         struct name_entry *names,
1079
         const char *pathname,
1080
         unsigned side,
1081
         unsigned is_add /* if false, is_delete */,
1082
         unsigned match_mask,
1083
         unsigned dir_rename_mask)
1084
0
{
1085
0
  struct diff_filespec *one, *two;
1086
0
  struct rename_info *renames = &opt->priv->renames;
1087
0
  int names_idx = is_add ? side : 0;
1088
1089
0
  if (is_add) {
1090
0
    assert(match_mask == 0 || match_mask == 6);
1091
0
    if (strset_contains(&renames->cached_target_names[side],
1092
0
            pathname))
1093
0
      return;
1094
0
  } else {
1095
0
    unsigned content_relevant = (match_mask == 0);
1096
0
    unsigned location_relevant = (dir_rename_mask == 0x07);
1097
1098
0
    assert(match_mask == 0 || match_mask == 3 || match_mask == 5);
1099
1100
    /*
1101
     * If pathname is found in cached_irrelevant[side] due to
1102
     * previous pick but for this commit content is relevant,
1103
     * then we need to remove it from cached_irrelevant.
1104
     */
1105
0
    if (content_relevant)
1106
      /* strset_remove is no-op if strset doesn't have key */
1107
0
      strset_remove(&renames->cached_irrelevant[side],
1108
0
              pathname);
1109
1110
    /*
1111
     * We do not need to re-detect renames for paths that we already
1112
     * know the pairing, i.e. for cached_pairs (or
1113
     * cached_irrelevant).  However, handle_deferred_entries() needs
1114
     * to loop over the union of keys from relevant_sources[side] and
1115
     * cached_pairs[side], so for simplicity we set relevant_sources
1116
     * for all the cached_pairs too and then strip them back out in
1117
     * prune_cached_from_relevant() at the beginning of
1118
     * detect_regular_renames().
1119
     */
1120
0
    if (content_relevant || location_relevant) {
1121
      /* content_relevant trumps location_relevant */
1122
0
      strintmap_set(&renames->relevant_sources[side], pathname,
1123
0
              content_relevant ? RELEVANT_CONTENT : RELEVANT_LOCATION);
1124
0
    }
1125
1126
    /*
1127
     * Avoid creating pair if we've already cached rename results.
1128
     * Note that we do this after setting relevant_sources[side]
1129
     * as noted in the comment above.
1130
     */
1131
0
    if (strmap_contains(&renames->cached_pairs[side], pathname) ||
1132
0
        strset_contains(&renames->cached_irrelevant[side], pathname))
1133
0
      return;
1134
0
  }
1135
1136
0
  one = pool_alloc_filespec(&opt->priv->pool, pathname);
1137
0
  two = pool_alloc_filespec(&opt->priv->pool, pathname);
1138
0
  fill_filespec(is_add ? two : one,
1139
0
          &names[names_idx].oid, 1, names[names_idx].mode);
1140
0
  pool_diff_queue(&opt->priv->pool, &renames->pairs[side], one, two);
1141
0
}
1142
1143
static void collect_rename_info(struct merge_options *opt,
1144
        struct name_entry *names,
1145
        const char *dirname,
1146
        const char *fullname,
1147
        unsigned filemask,
1148
        unsigned dirmask,
1149
        unsigned match_mask)
1150
0
{
1151
0
  struct rename_info *renames = &opt->priv->renames;
1152
0
  unsigned side;
1153
1154
  /*
1155
   * Update dir_rename_mask (determines ignore-rename-source validity)
1156
   *
1157
   * dir_rename_mask helps us keep track of when directory rename
1158
   * detection may be relevant.  Basically, whenever a directory is
1159
   * removed on one side of history, and a file is added to that
1160
   * directory on the other side of history, directory rename
1161
   * detection is relevant (meaning we have to detect renames for all
1162
   * files within that directory to deduce where the directory
1163
   * moved).  Also, whenever a directory needs directory rename
1164
   * detection, due to the "majority rules" choice for where to move
1165
   * it (see t6423 testcase 1f), we also need to detect renames for
1166
   * all files within subdirectories of that directory as well.
1167
   *
1168
   * Here we haven't looked at files within the directory yet, we are
1169
   * just looking at the directory itself.  So, if we aren't yet in
1170
   * a case where a parent directory needed directory rename detection
1171
   * (i.e. dir_rename_mask != 0x07), and if the directory was removed
1172
   * on one side of history, record the mask of the other side of
1173
   * history in dir_rename_mask.
1174
   */
1175
0
  if (renames->dir_rename_mask != 0x07 &&
1176
0
      (dirmask == 3 || dirmask == 5)) {
1177
    /* simple sanity check */
1178
0
    assert(renames->dir_rename_mask == 0 ||
1179
0
           renames->dir_rename_mask == (dirmask & ~1));
1180
    /* update dir_rename_mask; have it record mask of new side */
1181
0
    renames->dir_rename_mask = (dirmask & ~1);
1182
0
  }
1183
1184
  /* Update dirs_removed, as needed */
1185
0
  if (dirmask == 1 || dirmask == 3 || dirmask == 5) {
1186
    /* absent_mask = 0x07 - dirmask; sides = absent_mask/2 */
1187
0
    unsigned sides = (0x07 - dirmask)/2;
1188
0
    unsigned relevance = (renames->dir_rename_mask == 0x07) ?
1189
0
          RELEVANT_FOR_ANCESTOR : NOT_RELEVANT;
1190
    /*
1191
     * Record relevance of this directory.  However, note that
1192
     * when collect_merge_info_callback() recurses into this
1193
     * directory and calls collect_rename_info() on paths
1194
     * within that directory, if we find a path that was added
1195
     * to this directory on the other side of history, we will
1196
     * upgrade this value to RELEVANT_FOR_SELF; see below.
1197
     */
1198
0
    if (sides & 1)
1199
0
      strintmap_set(&renames->dirs_removed[1], fullname,
1200
0
              relevance);
1201
0
    if (sides & 2)
1202
0
      strintmap_set(&renames->dirs_removed[2], fullname,
1203
0
              relevance);
1204
0
  }
1205
1206
  /*
1207
   * Here's the block that potentially upgrades to RELEVANT_FOR_SELF.
1208
   * When we run across a file added to a directory.  In such a case,
1209
   * find the directory of the file and upgrade its relevance.
1210
   */
1211
0
  if (renames->dir_rename_mask == 0x07 &&
1212
0
      (filemask == 2 || filemask == 4)) {
1213
    /*
1214
     * Need directory rename for parent directory on other side
1215
     * of history from added file.  Thus
1216
     *    side = (~filemask & 0x06) >> 1
1217
     * or
1218
     *    side = 3 - (filemask/2).
1219
     */
1220
0
    unsigned side = 3 - (filemask >> 1);
1221
0
    strintmap_set(&renames->dirs_removed[side], dirname,
1222
0
            RELEVANT_FOR_SELF);
1223
0
  }
1224
1225
0
  if (filemask == 0 || filemask == 7)
1226
0
    return;
1227
1228
0
  for (side = MERGE_SIDE1; side <= MERGE_SIDE2; ++side) {
1229
0
    unsigned side_mask = (1 << side);
1230
1231
    /* Check for deletion on side */
1232
0
    if ((filemask & 1) && !(filemask & side_mask))
1233
0
      add_pair(opt, names, fullname, side, 0 /* delete */,
1234
0
         match_mask & filemask,
1235
0
         renames->dir_rename_mask);
1236
1237
    /* Check for addition on side */
1238
0
    if (!(filemask & 1) && (filemask & side_mask))
1239
0
      add_pair(opt, names, fullname, side, 1 /* add */,
1240
0
         match_mask & filemask,
1241
0
         renames->dir_rename_mask);
1242
0
  }
1243
0
}
1244
1245
static int collect_merge_info_callback(int n,
1246
               unsigned long mask,
1247
               unsigned long dirmask,
1248
               struct name_entry *names,
1249
               struct traverse_info *info)
1250
0
{
1251
  /*
1252
   * n is 3.  Always.
1253
   * common ancestor (mbase) has mask 1, and stored in index 0 of names
1254
   * head of side 1  (side1) has mask 2, and stored in index 1 of names
1255
   * head of side 2  (side2) has mask 4, and stored in index 2 of names
1256
   */
1257
0
  struct merge_options *opt = info->data;
1258
0
  struct merge_options_internal *opti = opt->priv;
1259
0
  struct rename_info *renames = &opt->priv->renames;
1260
0
  struct string_list_item pi;  /* Path Info */
1261
0
  struct conflict_info *ci; /* typed alias to pi.util (which is void*) */
1262
0
  struct name_entry *p;
1263
0
  size_t len;
1264
0
  char *fullpath;
1265
0
  const char *dirname = opti->current_dir_name;
1266
0
  unsigned prev_dir_rename_mask = renames->dir_rename_mask;
1267
0
  unsigned filemask = mask & ~dirmask;
1268
0
  unsigned match_mask = 0; /* will be updated below */
1269
0
  unsigned mbase_null = !(mask & 1);
1270
0
  unsigned side1_null = !(mask & 2);
1271
0
  unsigned side2_null = !(mask & 4);
1272
0
  unsigned side1_matches_mbase = (!side1_null && !mbase_null &&
1273
0
          names[0].mode == names[1].mode &&
1274
0
          oideq(&names[0].oid, &names[1].oid));
1275
0
  unsigned side2_matches_mbase = (!side2_null && !mbase_null &&
1276
0
          names[0].mode == names[2].mode &&
1277
0
          oideq(&names[0].oid, &names[2].oid));
1278
0
  unsigned sides_match = (!side1_null && !side2_null &&
1279
0
        names[1].mode == names[2].mode &&
1280
0
        oideq(&names[1].oid, &names[2].oid));
1281
1282
  /*
1283
   * Note: When a path is a file on one side of history and a directory
1284
   * in another, we have a directory/file conflict.  In such cases, if
1285
   * the conflict doesn't resolve from renames and deletions, then we
1286
   * always leave directories where they are and move files out of the
1287
   * way.  Thus, while struct conflict_info has a df_conflict field to
1288
   * track such conflicts, we ignore that field for any directories at
1289
   * a path and only pay attention to it for files at the given path.
1290
   * The fact that we leave directories were they are also means that
1291
   * we do not need to worry about getting additional df_conflict
1292
   * information propagated from parent directories down to children
1293
   * (unlike, say traverse_trees_recursive() in unpack-trees.c, which
1294
   * sets a newinfo.df_conflicts field specifically to propagate it).
1295
   */
1296
0
  unsigned df_conflict = (filemask != 0) && (dirmask != 0);
1297
1298
  /* n = 3 is a fundamental assumption. */
1299
0
  if (n != 3)
1300
0
    BUG("Called collect_merge_info_callback wrong");
1301
1302
  /*
1303
   * A bunch of sanity checks verifying that traverse_trees() calls
1304
   * us the way I expect.  Could just remove these at some point,
1305
   * though maybe they are helpful to future code readers.
1306
   */
1307
0
  assert(mbase_null == is_null_oid(&names[0].oid));
1308
0
  assert(side1_null == is_null_oid(&names[1].oid));
1309
0
  assert(side2_null == is_null_oid(&names[2].oid));
1310
0
  assert(!mbase_null || !side1_null || !side2_null);
1311
0
  assert(mask > 0 && mask < 8);
1312
1313
  /* Determine match_mask */
1314
0
  if (side1_matches_mbase)
1315
0
    match_mask = (side2_matches_mbase ? 7 : 3);
1316
0
  else if (side2_matches_mbase)
1317
0
    match_mask = 5;
1318
0
  else if (sides_match)
1319
0
    match_mask = 6;
1320
1321
  /*
1322
   * Get the name of the relevant filepath, which we'll pass to
1323
   * setup_path_info() for tracking.
1324
   */
1325
0
  p = names;
1326
0
  while (!p->mode)
1327
0
    p++;
1328
0
  len = traverse_path_len(info, p->pathlen);
1329
1330
  /* +1 in both of the following lines to include the NUL byte */
1331
0
  fullpath = mem_pool_alloc(&opt->priv->pool, len + 1);
1332
0
  make_traverse_path(fullpath, len + 1, info, p->path, p->pathlen);
1333
1334
  /*
1335
   * If mbase, side1, and side2 all match, we can resolve early.  Even
1336
   * if these are trees, there will be no renames or anything
1337
   * underneath.
1338
   */
1339
0
  if (side1_matches_mbase && side2_matches_mbase) {
1340
    /* mbase, side1, & side2 all match; use mbase as resolution */
1341
0
    setup_path_info(opt, &pi, dirname, info->pathlen, fullpath,
1342
0
        names, names+0, mbase_null, 0 /* df_conflict */,
1343
0
        filemask, dirmask, 1 /* resolved */);
1344
0
    return mask;
1345
0
  }
1346
1347
  /*
1348
   * If the sides match, and all three paths are present and are
1349
   * files, then we can take either as the resolution.  We can't do
1350
   * this with trees, because there may be rename sources from the
1351
   * merge_base.
1352
   */
1353
0
  if (sides_match && filemask == 0x07) {
1354
    /* use side1 (== side2) version as resolution */
1355
0
    setup_path_info(opt, &pi, dirname, info->pathlen, fullpath,
1356
0
        names, names+1, side1_null, 0,
1357
0
        filemask, dirmask, 1);
1358
0
    return mask;
1359
0
  }
1360
1361
  /*
1362
   * If side1 matches mbase and all three paths are present and are
1363
   * files, then we can use side2 as the resolution.  We cannot
1364
   * necessarily do so this for trees, because there may be rename
1365
   * destinations within side2.
1366
   */
1367
0
  if (side1_matches_mbase && filemask == 0x07) {
1368
    /* use side2 version as resolution */
1369
0
    setup_path_info(opt, &pi, dirname, info->pathlen, fullpath,
1370
0
        names, names+2, side2_null, 0,
1371
0
        filemask, dirmask, 1);
1372
0
    return mask;
1373
0
  }
1374
1375
  /* Similar to above but swapping sides 1 and 2 */
1376
0
  if (side2_matches_mbase && filemask == 0x07) {
1377
    /* use side1 version as resolution */
1378
0
    setup_path_info(opt, &pi, dirname, info->pathlen, fullpath,
1379
0
        names, names+1, side1_null, 0,
1380
0
        filemask, dirmask, 1);
1381
0
    return mask;
1382
0
  }
1383
1384
  /*
1385
   * Sometimes we can tell that a source path need not be included in
1386
   * rename detection -- namely, whenever either
1387
   *    side1_matches_mbase && side2_null
1388
   * or
1389
   *    side2_matches_mbase && side1_null
1390
   * However, we call collect_rename_info() even in those cases,
1391
   * because exact renames are cheap and would let us remove both a
1392
   * source and destination path.  We'll cull the unneeded sources
1393
   * later.
1394
   */
1395
0
  collect_rename_info(opt, names, dirname, fullpath,
1396
0
          filemask, dirmask, match_mask);
1397
1398
  /*
1399
   * None of the special cases above matched, so we have a
1400
   * provisional conflict.  (Rename detection might allow us to
1401
   * unconflict some more cases, but that comes later so all we can
1402
   * do now is record the different non-null file hashes.)
1403
   */
1404
0
  setup_path_info(opt, &pi, dirname, info->pathlen, fullpath,
1405
0
      names, NULL, 0, df_conflict, filemask, dirmask, 0);
1406
1407
0
  ci = pi.util;
1408
0
  VERIFY_CI(ci);
1409
0
  ci->match_mask = match_mask;
1410
1411
  /* If dirmask, recurse into subdirectories */
1412
0
  if (dirmask) {
1413
0
    struct traverse_info newinfo;
1414
0
    struct tree_desc t[3];
1415
0
    void *buf[3] = {NULL, NULL, NULL};
1416
0
    const char *original_dir_name;
1417
0
    int i, ret, side;
1418
1419
    /*
1420
     * Check for whether we can avoid recursing due to one side
1421
     * matching the merge base.  The side that does NOT match is
1422
     * the one that might have a rename destination we need.
1423
     */
1424
0
    assert(!side1_matches_mbase || !side2_matches_mbase);
1425
0
    side = side1_matches_mbase ? MERGE_SIDE2 :
1426
0
      side2_matches_mbase ? MERGE_SIDE1 : MERGE_BASE;
1427
0
    if (filemask == 0 && (dirmask == 2 || dirmask == 4)) {
1428
      /*
1429
       * Also defer recursing into new directories; set up a
1430
       * few variables to let us do so.
1431
       */
1432
0
      ci->match_mask = (7 - dirmask);
1433
0
      side = dirmask / 2;
1434
0
    }
1435
0
    if (renames->dir_rename_mask != 0x07 &&
1436
0
        side != MERGE_BASE &&
1437
0
        renames->deferred[side].trivial_merges_okay &&
1438
0
        !strset_contains(&renames->deferred[side].target_dirs,
1439
0
             pi.string)) {
1440
0
      strintmap_set(&renames->deferred[side].possible_trivial_merges,
1441
0
              pi.string, renames->dir_rename_mask);
1442
0
      renames->dir_rename_mask = prev_dir_rename_mask;
1443
0
      return mask;
1444
0
    }
1445
1446
    /* We need to recurse */
1447
0
    ci->match_mask &= filemask;
1448
0
    newinfo = *info;
1449
0
    newinfo.prev = info;
1450
0
    newinfo.name = p->path;
1451
0
    newinfo.namelen = p->pathlen;
1452
0
    newinfo.pathlen = st_add3(newinfo.pathlen, p->pathlen, 1);
1453
    /*
1454
     * If this directory we are about to recurse into cared about
1455
     * its parent directory (the current directory) having a D/F
1456
     * conflict, then we'd propagate the masks in this way:
1457
     *    newinfo.df_conflicts |= (mask & ~dirmask);
1458
     * But we don't worry about propagating D/F conflicts.  (See
1459
     * comment near setting of local df_conflict variable near
1460
     * the beginning of this function).
1461
     */
1462
1463
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
1464
0
      if (i == 1 && side1_matches_mbase)
1465
0
        t[1] = t[0];
1466
0
      else if (i == 2 && side2_matches_mbase)
1467
0
        t[2] = t[0];
1468
0
      else if (i == 2 && sides_match)
1469
0
        t[2] = t[1];
1470
0
      else {
1471
0
        const struct object_id *oid = NULL;
1472
0
        if (dirmask & 1)
1473
0
          oid = &names[i].oid;
1474
0
        buf[i] = fill_tree_descriptor(opt->repo,
1475
0
                    t + i, oid);
1476
0
      }
1477
0
      dirmask >>= 1;
1478
0
    }
1479
1480
0
    original_dir_name = opti->current_dir_name;
1481
0
    opti->current_dir_name = pi.string;
1482
0
    if (renames->dir_rename_mask == 0 ||
1483
0
        renames->dir_rename_mask == 0x07)
1484
0
      ret = traverse_trees(NULL, 3, t, &newinfo);
1485
0
    else
1486
0
      ret = traverse_trees_wrapper(NULL, 3, t, &newinfo);
1487
0
    opti->current_dir_name = original_dir_name;
1488
0
    renames->dir_rename_mask = prev_dir_rename_mask;
1489
1490
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++)
1491
0
      free(buf[i]);
1492
1493
0
    if (ret < 0)
1494
0
      return -1;
1495
0
  }
1496
1497
0
  return mask;
1498
0
}
1499
1500
static void resolve_trivial_directory_merge(struct conflict_info *ci, int side)
1501
0
{
1502
0
  VERIFY_CI(ci);
1503
0
  assert((side == 1 && ci->match_mask == 5) ||
1504
0
         (side == 2 && ci->match_mask == 3));
1505
0
  oidcpy(&ci->merged.result.oid, &ci->stages[side].oid);
1506
0
  ci->merged.result.mode = ci->stages[side].mode;
1507
0
  ci->merged.is_null = is_null_oid(&ci->stages[side].oid);
1508
0
  ci->match_mask = 0;
1509
0
  ci->merged.clean = 1; /* (ci->filemask == 0); */
1510
0
}
1511
1512
static int handle_deferred_entries(struct merge_options *opt,
1513
           struct traverse_info *info)
1514
0
{
1515
0
  struct rename_info *renames = &opt->priv->renames;
1516
0
  struct hashmap_iter iter;
1517
0
  struct strmap_entry *entry;
1518
0
  int side, ret = 0;
1519
0
  int path_count_before, path_count_after = 0;
1520
1521
0
  path_count_before = strmap_get_size(&opt->priv->paths);
1522
0
  for (side = MERGE_SIDE1; side <= MERGE_SIDE2; side++) {
1523
0
    unsigned optimization_okay = 1;
1524
0
    struct strintmap copy;
1525
1526
    /* Loop over the set of paths we need to know rename info for */
1527
0
    strintmap_for_each_entry(&renames->relevant_sources[side],
1528
0
           &iter, entry) {
1529
0
      char *rename_target, *dir, *dir_marker;
1530
0
      struct strmap_entry *e;
1531
1532
      /*
1533
       * If we don't know delete/rename info for this path,
1534
       * then we need to recurse into all trees to get all
1535
       * adds to make sure we have it.
1536
       */
1537
0
      if (strset_contains(&renames->cached_irrelevant[side],
1538
0
              entry->key))
1539
0
        continue;
1540
0
      e = strmap_get_entry(&renames->cached_pairs[side],
1541
0
               entry->key);
1542
0
      if (!e) {
1543
0
        optimization_okay = 0;
1544
0
        break;
1545
0
      }
1546
1547
      /* If this is a delete, we have enough info already */
1548
0
      rename_target = e->value;
1549
0
      if (!rename_target)
1550
0
        continue;
1551
1552
      /* If we already walked the rename target, we're good */
1553
0
      if (strmap_contains(&opt->priv->paths, rename_target))
1554
0
        continue;
1555
1556
      /*
1557
       * Otherwise, we need to get a list of directories that
1558
       * will need to be recursed into to get this
1559
       * rename_target.
1560
       */
1561
0
      dir = xstrdup(rename_target);
1562
0
      while ((dir_marker = strrchr(dir, '/'))) {
1563
0
        *dir_marker = '\0';
1564
0
        if (strset_contains(&renames->deferred[side].target_dirs,
1565
0
                dir))
1566
0
          break;
1567
0
        strset_add(&renames->deferred[side].target_dirs,
1568
0
             dir);
1569
0
      }
1570
0
      free(dir);
1571
0
    }
1572
0
    renames->deferred[side].trivial_merges_okay = optimization_okay;
1573
    /*
1574
     * We need to recurse into any directories in
1575
     * possible_trivial_merges[side] found in target_dirs[side].
1576
     * But when we recurse, we may need to queue up some of the
1577
     * subdirectories for possible_trivial_merges[side].  Since
1578
     * we can't safely iterate through a hashmap while also adding
1579
     * entries, move the entries into 'copy', iterate over 'copy',
1580
     * and then we'll also iterate anything added into
1581
     * possible_trivial_merges[side] once this loop is done.
1582
     */
1583
0
    copy = renames->deferred[side].possible_trivial_merges;
1584
0
    strintmap_init_with_options(&renames->deferred[side].possible_trivial_merges,
1585
0
              0,
1586
0
              &opt->priv->pool,
1587
0
              0);
1588
0
    strintmap_for_each_entry(&copy, &iter, entry) {
1589
0
      const char *path = entry->key;
1590
0
      unsigned dir_rename_mask = (intptr_t)entry->value;
1591
0
      struct conflict_info *ci;
1592
0
      unsigned dirmask;
1593
0
      struct tree_desc t[3];
1594
0
      void *buf[3] = {NULL,};
1595
0
      int i;
1596
1597
0
      ci = strmap_get(&opt->priv->paths, path);
1598
0
      VERIFY_CI(ci);
1599
0
      dirmask = ci->dirmask;
1600
1601
0
      if (optimization_okay &&
1602
0
          !strset_contains(&renames->deferred[side].target_dirs,
1603
0
               path)) {
1604
0
        resolve_trivial_directory_merge(ci, side);
1605
0
        continue;
1606
0
      }
1607
1608
0
      info->name = path;
1609
0
      info->namelen = strlen(path);
1610
0
      info->pathlen = info->namelen + 1;
1611
1612
0
      for (i = 0; i < 3; i++, dirmask >>= 1) {
1613
0
        if (i == 1 && ci->match_mask == 3)
1614
0
          t[1] = t[0];
1615
0
        else if (i == 2 && ci->match_mask == 5)
1616
0
          t[2] = t[0];
1617
0
        else if (i == 2 && ci->match_mask == 6)
1618
0
          t[2] = t[1];
1619
0
        else {
1620
0
          const struct object_id *oid = NULL;
1621
0
          if (dirmask & 1)
1622
0
            oid = &ci->stages[i].oid;
1623
0
          buf[i] = fill_tree_descriptor(opt->repo,
1624
0
                      t+i, oid);
1625
0
        }
1626
0
      }
1627
1628
0
      ci->match_mask &= ci->filemask;
1629
0
      opt->priv->current_dir_name = path;
1630
0
      renames->dir_rename_mask = dir_rename_mask;
1631
0
      if (renames->dir_rename_mask == 0 ||
1632
0
          renames->dir_rename_mask == 0x07)
1633
0
        ret = traverse_trees(NULL, 3, t, info);
1634
0
      else
1635
0
        ret = traverse_trees_wrapper(NULL, 3, t, info);
1636
1637
0
      for (i = MERGE_BASE; i <= MERGE_SIDE2; i++)
1638
0
        free(buf[i]);
1639
1640
0
      if (ret < 0)
1641
0
        return ret;
1642
0
    }
1643
0
    strintmap_clear(&copy);
1644
0
    strintmap_for_each_entry(&renames->deferred[side].possible_trivial_merges,
1645
0
           &iter, entry) {
1646
0
      const char *path = entry->key;
1647
0
      struct conflict_info *ci;
1648
1649
0
      ci = strmap_get(&opt->priv->paths, path);
1650
0
      VERIFY_CI(ci);
1651
1652
0
      ASSERT(renames->deferred[side].trivial_merges_okay &&
1653
0
             !strset_contains(&renames->deferred[side].target_dirs,
1654
0
            path));
1655
0
      resolve_trivial_directory_merge(ci, side);
1656
0
    }
1657
0
    if (!optimization_okay || path_count_after)
1658
0
      path_count_after = strmap_get_size(&opt->priv->paths);
1659
0
  }
1660
0
  if (path_count_after) {
1661
    /*
1662
     * The choice of wanted_factor here does not affect
1663
     * correctness, only performance.  When the
1664
     *    path_count_after / path_count_before
1665
     * ratio is high, redoing after renames is a big
1666
     * performance boost.  I suspect that redoing is a wash
1667
     * somewhere near a value of 2, and below that redoing will
1668
     * slow things down.  I applied a fudge factor and picked
1669
     * 3; see the commit message when this was introduced for
1670
     * back of the envelope calculations for this ratio.
1671
     */
1672
0
    const int wanted_factor = 3;
1673
1674
    /* We should only redo collect_merge_info one time */
1675
0
    assert(renames->redo_after_renames == 0);
1676
1677
0
    if (path_count_after / path_count_before >= wanted_factor) {
1678
0
      renames->redo_after_renames = 1;
1679
0
      renames->cached_pairs_valid_side = -1;
1680
0
    }
1681
0
  } else if (renames->redo_after_renames == 2)
1682
0
    renames->redo_after_renames = 0;
1683
0
  return ret;
1684
0
}
1685
1686
static int collect_merge_info(struct merge_options *opt,
1687
            struct tree *merge_base,
1688
            struct tree *side1,
1689
            struct tree *side2)
1690
0
{
1691
0
  int ret;
1692
0
  struct tree_desc t[3];
1693
0
  struct traverse_info info;
1694
1695
0
  opt->priv->toplevel_dir = "";
1696
0
  opt->priv->current_dir_name = opt->priv->toplevel_dir;
1697
0
  setup_traverse_info(&info, opt->priv->toplevel_dir);
1698
0
  info.fn = collect_merge_info_callback;
1699
0
  info.data = opt;
1700
0
  info.show_all_errors = 1;
1701
1702
0
  if (parse_tree(merge_base) < 0 ||
1703
0
      parse_tree(side1) < 0 ||
1704
0
      parse_tree(side2) < 0)
1705
0
    return -1;
1706
0
  init_tree_desc(t + 0, &merge_base->object.oid,
1707
0
           merge_base->buffer, merge_base->size);
1708
0
  init_tree_desc(t + 1, &side1->object.oid, side1->buffer, side1->size);
1709
0
  init_tree_desc(t + 2, &side2->object.oid, side2->buffer, side2->size);
1710
1711
0
  trace2_region_enter("merge", "traverse_trees", opt->repo);
1712
0
  ret = traverse_trees(NULL, 3, t, &info);
1713
0
  if (ret == 0)
1714
0
    ret = handle_deferred_entries(opt, &info);
1715
0
  trace2_region_leave("merge", "traverse_trees", opt->repo);
1716
1717
0
  return ret;
1718
0
}
1719
1720
/*** Function Grouping: functions related to threeway content merges ***/
1721
1722
static int find_first_merges(struct repository *repo,
1723
           const char *path,
1724
           struct commit *a,
1725
           struct commit *b,
1726
           struct object_array *result)
1727
0
{
1728
0
  int i, j;
1729
0
  struct object_array merges = OBJECT_ARRAY_INIT;
1730
0
  struct commit *commit;
1731
0
  int contains_another;
1732
1733
0
  char merged_revision[GIT_MAX_HEXSZ + 2];
1734
0
  const char *rev_args[] = { "rev-list", "--merges", "--ancestry-path",
1735
0
           "--all", merged_revision, NULL };
1736
0
  struct rev_info revs;
1737
0
  struct setup_revision_opt rev_opts;
1738
1739
0
  memset(result, 0, sizeof(struct object_array));
1740
0
  memset(&rev_opts, 0, sizeof(rev_opts));
1741
1742
  /* get all revisions that merge commit a */
1743
0
  xsnprintf(merged_revision, sizeof(merged_revision), "^%s",
1744
0
      oid_to_hex(&a->object.oid));
1745
0
  repo_init_revisions(repo, &revs, NULL);
1746
  /* FIXME: can't handle linked worktrees in submodules yet */
1747
0
  revs.single_worktree = path != NULL;
1748
0
  setup_revisions(ARRAY_SIZE(rev_args)-1, rev_args, &revs, &rev_opts);
1749
1750
  /* save all revisions from the above list that contain b */
1751
0
  if (prepare_revision_walk(&revs))
1752
0
    die("revision walk setup failed");
1753
0
  while ((commit = get_revision(&revs)) != NULL) {
1754
0
    struct object *o = &(commit->object);
1755
0
    int ret = repo_in_merge_bases(repo, b, commit);
1756
1757
0
    if (ret < 0) {
1758
0
      object_array_clear(&merges);
1759
0
      release_revisions(&revs);
1760
0
      return ret;
1761
0
    }
1762
0
    if (ret > 0)
1763
0
      add_object_array(o, NULL, &merges);
1764
0
  }
1765
0
  reset_revision_walk();
1766
1767
  /* Now we've got all merges that contain a and b. Prune all
1768
   * merges that contain another found merge and save them in
1769
   * result.
1770
   */
1771
0
  for (i = 0; i < merges.nr; i++) {
1772
0
    struct commit *m1 = (struct commit *) merges.objects[i].item;
1773
1774
0
    contains_another = 0;
1775
0
    for (j = 0; j < merges.nr; j++) {
1776
0
      struct commit *m2 = (struct commit *) merges.objects[j].item;
1777
0
      if (i != j) {
1778
0
        int ret = repo_in_merge_bases(repo, m2, m1);
1779
0
        if (ret < 0) {
1780
0
          object_array_clear(&merges);
1781
0
          release_revisions(&revs);
1782
0
          return ret;
1783
0
        }
1784
0
        if (ret > 0) {
1785
0
          contains_another = 1;
1786
0
          break;
1787
0
        }
1788
0
      }
1789
0
    }
1790
1791
0
    if (!contains_another)
1792
0
      add_object_array(merges.objects[i].item, NULL, result);
1793
0
  }
1794
1795
0
  object_array_clear(&merges);
1796
0
  release_revisions(&revs);
1797
0
  return result->nr;
1798
0
}
1799
1800
static int merge_submodule(struct merge_options *opt,
1801
         const char *path,
1802
         const struct object_id *o,
1803
         const struct object_id *a,
1804
         const struct object_id *b,
1805
         struct object_id *result)
1806
0
{
1807
0
  struct repository subrepo;
1808
0
  struct strbuf sb = STRBUF_INIT;
1809
0
  int ret = 0, ret2;
1810
0
  struct commit *commit_o, *commit_a, *commit_b;
1811
0
  int parent_count;
1812
0
  struct object_array merges;
1813
1814
0
  int i;
1815
0
  int search = !opt->priv->call_depth;
1816
0
  int sub_not_initialized = 1;
1817
0
  int sub_flag = CONFLICT_SUBMODULE_FAILED_TO_MERGE;
1818
1819
  /* store fallback answer in result in case we fail */
1820
0
  oidcpy(result, opt->priv->call_depth ? o : a);
1821
1822
  /* we can not handle deletion conflicts */
1823
0
  if (is_null_oid(a) || is_null_oid(b))
1824
0
    BUG("submodule deleted on one side; this should be handled outside of merge_submodule()");
1825
1826
0
  if ((sub_not_initialized = repo_submodule_init(&subrepo,
1827
0
    opt->repo, path, null_oid(the_hash_algo)))) {
1828
0
    path_msg(opt, CONFLICT_SUBMODULE_NOT_INITIALIZED, 0,
1829
0
       path, NULL, NULL, NULL,
1830
0
       _("Failed to merge submodule %s (not checked out)"),
1831
0
       path);
1832
0
    sub_flag = CONFLICT_SUBMODULE_NOT_INITIALIZED;
1833
0
    goto cleanup;
1834
0
  }
1835
1836
0
  if (is_null_oid(o)) {
1837
0
    path_msg(opt, CONFLICT_SUBMODULE_NULL_MERGE_BASE, 0,
1838
0
       path, NULL, NULL, NULL,
1839
0
       _("Failed to merge submodule %s (no merge base)"),
1840
0
       path);
1841
0
    goto cleanup;
1842
0
  }
1843
1844
0
  if (!(commit_o = lookup_commit_reference(&subrepo, o)) ||
1845
0
      !(commit_a = lookup_commit_reference(&subrepo, a)) ||
1846
0
      !(commit_b = lookup_commit_reference(&subrepo, b))) {
1847
0
    path_msg(opt, CONFLICT_SUBMODULE_HISTORY_NOT_AVAILABLE, 0,
1848
0
       path, NULL, NULL, NULL,
1849
0
       _("Failed to merge submodule %s (commits not present)"),
1850
0
       path);
1851
0
    sub_flag = CONFLICT_SUBMODULE_HISTORY_NOT_AVAILABLE;
1852
0
    goto cleanup;
1853
0
  }
1854
1855
  /* check whether both changes are forward */
1856
0
  ret2 = repo_in_merge_bases(&subrepo, commit_o, commit_a);
1857
0
  if (ret2 < 0) {
1858
0
    path_msg(opt, ERROR_SUBMODULE_CORRUPT, 0,
1859
0
       path, NULL, NULL, NULL,
1860
0
       _("error: failed to merge submodule %s "
1861
0
         "(repository corrupt)"),
1862
0
       path);
1863
0
    ret = -1;
1864
0
    goto cleanup;
1865
0
  }
1866
0
  if (ret2 > 0)
1867
0
    ret2 = repo_in_merge_bases(&subrepo, commit_o, commit_b);
1868
0
  if (ret2 < 0) {
1869
0
    path_msg(opt, ERROR_SUBMODULE_CORRUPT, 0,
1870
0
       path, NULL, NULL, NULL,
1871
0
       _("error: failed to merge submodule %s "
1872
0
         "(repository corrupt)"),
1873
0
       path);
1874
0
    ret = -1;
1875
0
    goto cleanup;
1876
0
  }
1877
0
  if (!ret2) {
1878
0
    path_msg(opt, CONFLICT_SUBMODULE_MAY_HAVE_REWINDS, 0,
1879
0
       path, NULL, NULL, NULL,
1880
0
       _("Failed to merge submodule %s "
1881
0
         "(commits don't follow merge-base)"),
1882
0
       path);
1883
0
    goto cleanup;
1884
0
  }
1885
1886
  /* Case #1: a is contained in b or vice versa */
1887
0
  ret2 = repo_in_merge_bases(&subrepo, commit_a, commit_b);
1888
0
  if (ret2 < 0) {
1889
0
    path_msg(opt, ERROR_SUBMODULE_CORRUPT, 0,
1890
0
       path, NULL, NULL, NULL,
1891
0
       _("error: failed to merge submodule %s "
1892
0
         "(repository corrupt)"),
1893
0
       path);
1894
0
    ret = -1;
1895
0
    goto cleanup;
1896
0
  }
1897
0
  if (ret2 > 0) {
1898
0
    oidcpy(result, b);
1899
0
    path_msg(opt, INFO_SUBMODULE_FAST_FORWARDING, 1,
1900
0
       path, NULL, NULL, NULL,
1901
0
       _("Note: Fast-forwarding submodule %s to %s"),
1902
0
       path, oid_to_hex(b));
1903
0
    ret = 1;
1904
0
    goto cleanup;
1905
0
  }
1906
0
  ret2 = repo_in_merge_bases(&subrepo, commit_b, commit_a);
1907
0
  if (ret2 < 0) {
1908
0
    path_msg(opt, ERROR_SUBMODULE_CORRUPT, 0,
1909
0
       path, NULL, NULL, NULL,
1910
0
       _("error: failed to merge submodule %s "
1911
0
         "(repository corrupt)"),
1912
0
       path);
1913
0
    ret = -1;
1914
0
    goto cleanup;
1915
0
  }
1916
0
  if (ret2 > 0) {
1917
0
    oidcpy(result, a);
1918
0
    path_msg(opt, INFO_SUBMODULE_FAST_FORWARDING, 1,
1919
0
       path, NULL, NULL, NULL,
1920
0
       _("Note: Fast-forwarding submodule %s to %s"),
1921
0
       path, oid_to_hex(a));
1922
0
    ret = 1;
1923
0
    goto cleanup;
1924
0
  }
1925
1926
  /*
1927
   * Case #2: There are one or more merges that contain a and b in
1928
   * the submodule. If there is only one, then present it as a
1929
   * suggestion to the user, but leave it marked unmerged so the
1930
   * user needs to confirm the resolution.
1931
   */
1932
1933
  /* Skip the search if makes no sense to the calling context.  */
1934
0
  if (!search)
1935
0
    goto cleanup;
1936
1937
  /* find commit which merges them */
1938
0
  parent_count = find_first_merges(&subrepo, path, commit_a, commit_b,
1939
0
           &merges);
1940
0
  switch (parent_count) {
1941
0
  case -1:
1942
0
    path_msg(opt, ERROR_SUBMODULE_CORRUPT, 0,
1943
0
       path, NULL, NULL, NULL,
1944
0
       _("error: failed to merge submodule %s "
1945
0
         "(repository corrupt)"),
1946
0
       path);
1947
0
    ret = -1;
1948
0
    break;
1949
0
  case 0:
1950
0
    path_msg(opt, CONFLICT_SUBMODULE_FAILED_TO_MERGE, 0,
1951
0
       path, NULL, NULL, NULL,
1952
0
       _("Failed to merge submodule %s"), path);
1953
0
    break;
1954
1955
0
  case 1:
1956
0
    format_commit(&sb, 4, &subrepo,
1957
0
            (struct commit *)merges.objects[0].item);
1958
0
    path_msg(opt, CONFLICT_SUBMODULE_FAILED_TO_MERGE_BUT_POSSIBLE_RESOLUTION, 0,
1959
0
       path, NULL, NULL, NULL,
1960
0
       _("Failed to merge submodule %s, but a possible merge "
1961
0
         "resolution exists: %s"),
1962
0
       path, sb.buf);
1963
0
    strbuf_release(&sb);
1964
0
    break;
1965
0
  default:
1966
0
    for (i = 0; i < merges.nr; i++)
1967
0
      format_commit(&sb, 4, &subrepo,
1968
0
              (struct commit *)merges.objects[i].item);
1969
0
    path_msg(opt, CONFLICT_SUBMODULE_FAILED_TO_MERGE_BUT_POSSIBLE_RESOLUTION, 0,
1970
0
       path, NULL, NULL, NULL,
1971
0
       _("Failed to merge submodule %s, but multiple "
1972
0
         "possible merges exist:\n%s"), path, sb.buf);
1973
0
    strbuf_release(&sb);
1974
0
  }
1975
1976
0
  object_array_clear(&merges);
1977
0
cleanup:
1978
0
  if (!opt->priv->call_depth && !ret) {
1979
0
    struct string_list *csub = &opt->priv->conflicted_submodules;
1980
0
    struct conflicted_submodule_item *util;
1981
0
    const char *abbrev;
1982
1983
0
    util = xmalloc(sizeof(*util));
1984
0
    util->flag = sub_flag;
1985
0
    util->abbrev = NULL;
1986
0
    if (!sub_not_initialized) {
1987
0
      abbrev = repo_find_unique_abbrev(&subrepo, b, DEFAULT_ABBREV);
1988
0
      util->abbrev = xstrdup(abbrev);
1989
0
    }
1990
0
    string_list_append(csub, path)->util = util;
1991
0
  }
1992
1993
0
  if (!sub_not_initialized)
1994
0
    repo_clear(&subrepo);
1995
0
  return ret;
1996
0
}
1997
1998
static void initialize_attr_index(struct merge_options *opt)
1999
0
{
2000
  /*
2001
   * The renormalize_buffer() functions require attributes, and
2002
   * annoyingly those can only be read from the working tree or from
2003
   * an index_state.  merge-ort doesn't have an index_state, so we
2004
   * generate a fake one containing only attribute information.
2005
   */
2006
0
  struct merged_info *mi;
2007
0
  struct index_state *attr_index = &opt->priv->attr_index;
2008
0
  struct cache_entry *ce;
2009
2010
0
  attr_index->repo = opt->repo;
2011
0
  attr_index->initialized = 1;
2012
2013
0
  if (!opt->renormalize)
2014
0
    return;
2015
2016
0
  mi = strmap_get(&opt->priv->paths, GITATTRIBUTES_FILE);
2017
0
  if (!mi)
2018
0
    return;
2019
2020
0
  if (mi->clean) {
2021
0
    int len = strlen(GITATTRIBUTES_FILE);
2022
0
    ce = make_empty_cache_entry(attr_index, len);
2023
0
    ce->ce_mode = create_ce_mode(mi->result.mode);
2024
0
    ce->ce_flags = create_ce_flags(0);
2025
0
    ce->ce_namelen = len;
2026
0
    oidcpy(&ce->oid, &mi->result.oid);
2027
0
    memcpy(ce->name, GITATTRIBUTES_FILE, len);
2028
0
    add_index_entry(attr_index, ce,
2029
0
        ADD_CACHE_OK_TO_ADD | ADD_CACHE_OK_TO_REPLACE);
2030
0
    get_stream_filter(attr_index, GITATTRIBUTES_FILE, &ce->oid);
2031
0
  } else {
2032
0
    int stage, len;
2033
0
    struct conflict_info *ci;
2034
2035
0
    ASSIGN_AND_VERIFY_CI(ci, mi);
2036
0
    for (stage = 0; stage < 3; stage++) {
2037
0
      unsigned stage_mask = (1 << stage);
2038
2039
0
      if (!(ci->filemask & stage_mask))
2040
0
        continue;
2041
0
      len = strlen(GITATTRIBUTES_FILE);
2042
0
      ce = make_empty_cache_entry(attr_index, len);
2043
0
      ce->ce_mode = create_ce_mode(ci->stages[stage].mode);
2044
0
      ce->ce_flags = create_ce_flags(stage);
2045
0
      ce->ce_namelen = len;
2046
0
      oidcpy(&ce->oid, &ci->stages[stage].oid);
2047
0
      memcpy(ce->name, GITATTRIBUTES_FILE, len);
2048
0
      add_index_entry(attr_index, ce,
2049
0
          ADD_CACHE_OK_TO_ADD | ADD_CACHE_OK_TO_REPLACE);
2050
0
      get_stream_filter(attr_index, GITATTRIBUTES_FILE,
2051
0
            &ce->oid);
2052
0
    }
2053
0
  }
2054
0
}
2055
2056
static int merge_3way(struct merge_options *opt,
2057
          const char *path,
2058
          const struct object_id *o,
2059
          const struct object_id *a,
2060
          const struct object_id *b,
2061
          const char *pathnames[3],
2062
          const int extra_marker_size,
2063
          mmbuffer_t *result_buf)
2064
0
{
2065
0
  mmfile_t orig, src1, src2;
2066
0
  struct ll_merge_options ll_opts = LL_MERGE_OPTIONS_INIT;
2067
0
  char *base, *name1, *name2;
2068
0
  enum ll_merge_result merge_status;
2069
2070
0
  if (!opt->priv->attr_index.initialized)
2071
0
    initialize_attr_index(opt);
2072
2073
0
  ll_opts.renormalize = opt->renormalize;
2074
0
  ll_opts.extra_marker_size = extra_marker_size;
2075
0
  ll_opts.xdl_opts = opt->xdl_opts;
2076
0
  ll_opts.conflict_style = opt->conflict_style;
2077
2078
0
  if (opt->priv->call_depth) {
2079
0
    ll_opts.virtual_ancestor = 1;
2080
0
    ll_opts.variant = 0;
2081
0
  } else {
2082
0
    switch (opt->recursive_variant) {
2083
0
    case MERGE_VARIANT_OURS:
2084
0
      ll_opts.variant = XDL_MERGE_FAVOR_OURS;
2085
0
      break;
2086
0
    case MERGE_VARIANT_THEIRS:
2087
0
      ll_opts.variant = XDL_MERGE_FAVOR_THEIRS;
2088
0
      break;
2089
0
    default:
2090
0
      ll_opts.variant = 0;
2091
0
      break;
2092
0
    }
2093
0
  }
2094
2095
0
  assert(pathnames[0] && pathnames[1] && pathnames[2] && opt->ancestor);
2096
0
  if (pathnames[0] == pathnames[1] && pathnames[1] == pathnames[2]) {
2097
0
    base  = mkpathdup("%s", opt->ancestor);
2098
0
    name1 = mkpathdup("%s", opt->branch1);
2099
0
    name2 = mkpathdup("%s", opt->branch2);
2100
0
  } else {
2101
0
    base  = mkpathdup("%s:%s", opt->ancestor, pathnames[0]);
2102
0
    name1 = mkpathdup("%s:%s", opt->branch1,  pathnames[1]);
2103
0
    name2 = mkpathdup("%s:%s", opt->branch2,  pathnames[2]);
2104
0
  }
2105
2106
0
  read_mmblob(&orig, o);
2107
0
  read_mmblob(&src1, a);
2108
0
  read_mmblob(&src2, b);
2109
2110
0
  merge_status = ll_merge(result_buf, path, &orig, base,
2111
0
        &src1, name1, &src2, name2,
2112
0
        &opt->priv->attr_index, &ll_opts);
2113
0
  if (merge_status == LL_MERGE_BINARY_CONFLICT)
2114
0
    path_msg(opt, CONFLICT_BINARY, 0,
2115
0
       path, NULL, NULL, NULL,
2116
0
       "warning: Cannot merge binary files: %s (%s vs. %s)",
2117
0
       path, name1, name2);
2118
2119
0
  free(base);
2120
0
  free(name1);
2121
0
  free(name2);
2122
0
  free(orig.ptr);
2123
0
  free(src1.ptr);
2124
0
  free(src2.ptr);
2125
0
  return merge_status;
2126
0
}
2127
2128
static int handle_content_merge(struct merge_options *opt,
2129
        const char *path,
2130
        const struct version_info *o,
2131
        const struct version_info *a,
2132
        const struct version_info *b,
2133
        const char *pathnames[3],
2134
        const int extra_marker_size,
2135
        const int record_object,
2136
        struct version_info *result)
2137
0
{
2138
  /*
2139
   * path is the target location where we want to put the file, and
2140
   * is used to determine any normalization rules in ll_merge.
2141
   *
2142
   * The normal case is that path and all entries in pathnames are
2143
   * identical, though renames can affect which path we got one of
2144
   * the three blobs to merge on various sides of history.
2145
   *
2146
   * extra_marker_size is the amount to extend conflict markers in
2147
   * ll_merge; this is needed if we have content merges of content
2148
   * merges, which happens for example with rename/rename(2to1) and
2149
   * rename/add conflicts.
2150
   */
2151
0
  int clean = 1;
2152
2153
  /*
2154
   * handle_content_merge() needs both files to be of the same type, i.e.
2155
   * both files OR both submodules OR both symlinks.  Conflicting types
2156
   * needs to be handled elsewhere.
2157
   */
2158
0
  assert((S_IFMT & a->mode) == (S_IFMT & b->mode));
2159
2160
  /* Merge modes */
2161
0
  if (a->mode == b->mode || a->mode == o->mode)
2162
0
    result->mode = b->mode;
2163
0
  else {
2164
    /* must be the 100644/100755 case */
2165
0
    assert(S_ISREG(a->mode));
2166
0
    result->mode = a->mode;
2167
0
    clean = (b->mode == o->mode);
2168
    /*
2169
     * FIXME: If opt->priv->call_depth && !clean, then we really
2170
     * should not make result->mode match either a->mode or
2171
     * b->mode; that causes t6416 "check conflicting mode for
2172
     * regular file" to fail.  It would be best to use some other
2173
     * mode, but we'll confuse all kinds of stuff if we use one
2174
     * where S_ISREG(result->mode) isn't true, and if we use
2175
     * something like 0100666, then tree-walk.c's calls to
2176
     * canon_mode() will just normalize that to 100644 for us and
2177
     * thus not solve anything.
2178
     *
2179
     * Figure out if there's some kind of way we can work around
2180
     * this...
2181
     */
2182
0
  }
2183
2184
  /*
2185
   * Trivial oid merge.
2186
   *
2187
   * Note: While one might assume that the next four lines would
2188
   * be unnecessary due to the fact that match_mask is often
2189
   * setup and already handled, renames don't always take care
2190
   * of that.
2191
   */
2192
0
  if (oideq(&a->oid, &b->oid) || oideq(&a->oid, &o->oid))
2193
0
    oidcpy(&result->oid, &b->oid);
2194
0
  else if (oideq(&b->oid, &o->oid))
2195
0
    oidcpy(&result->oid, &a->oid);
2196
2197
  /* Remaining rules depend on file vs. submodule vs. symlink. */
2198
0
  else if (S_ISREG(a->mode)) {
2199
0
    mmbuffer_t result_buf;
2200
0
    int ret = 0, merge_status;
2201
0
    int two_way;
2202
2203
    /*
2204
     * If 'o' is different type, treat it as null so we do a
2205
     * two-way merge.
2206
     */
2207
0
    two_way = ((S_IFMT & o->mode) != (S_IFMT & a->mode));
2208
2209
0
    merge_status = merge_3way(opt, path,
2210
0
            two_way ? null_oid(the_hash_algo) : &o->oid,
2211
0
            &a->oid, &b->oid,
2212
0
            pathnames, extra_marker_size,
2213
0
            &result_buf);
2214
2215
0
    if ((merge_status < 0) || !result_buf.ptr) {
2216
0
      path_msg(opt, ERROR_THREEWAY_CONTENT_MERGE_FAILED, 0,
2217
0
         pathnames[0], pathnames[1], pathnames[2], NULL,
2218
0
         _("error: failed to execute internal merge for %s"),
2219
0
         path);
2220
0
      ret = -1;
2221
0
    }
2222
2223
0
    if (!ret && record_object &&
2224
0
        odb_write_object(the_repository->objects, result_buf.ptr, result_buf.size,
2225
0
             OBJ_BLOB, &result->oid)) {
2226
0
      path_msg(opt, ERROR_OBJECT_WRITE_FAILED, 0,
2227
0
         pathnames[0], pathnames[1], pathnames[2], NULL,
2228
0
         _("error: unable to add %s to database"), path);
2229
0
      ret = -1;
2230
0
    }
2231
0
    free(result_buf.ptr);
2232
2233
0
    if (ret)
2234
0
      return -1;
2235
0
    if (merge_status > 0)
2236
0
      clean = 0;
2237
0
    path_msg(opt, INFO_AUTO_MERGING, 1, path, NULL, NULL, NULL,
2238
0
       _("Auto-merging %s"), path);
2239
0
  } else if (S_ISGITLINK(a->mode)) {
2240
0
    int two_way = ((S_IFMT & o->mode) != (S_IFMT & a->mode));
2241
0
    clean = merge_submodule(opt, pathnames[0],
2242
0
          two_way ? null_oid(the_hash_algo) : &o->oid,
2243
0
          &a->oid, &b->oid, &result->oid);
2244
0
    if (clean < 0)
2245
0
      return -1;
2246
0
    if (opt->priv->call_depth && two_way && !clean) {
2247
0
      result->mode = o->mode;
2248
0
      oidcpy(&result->oid, &o->oid);
2249
0
    }
2250
0
  } else if (S_ISLNK(a->mode)) {
2251
0
    if (opt->priv->call_depth) {
2252
0
      clean = 0;
2253
0
      result->mode = o->mode;
2254
0
      oidcpy(&result->oid, &o->oid);
2255
0
    } else {
2256
0
      switch (opt->recursive_variant) {
2257
0
      case MERGE_VARIANT_NORMAL:
2258
0
        clean = 0;
2259
0
        oidcpy(&result->oid, &a->oid);
2260
0
        break;
2261
0
      case MERGE_VARIANT_OURS:
2262
0
        oidcpy(&result->oid, &a->oid);
2263
0
        break;
2264
0
      case MERGE_VARIANT_THEIRS:
2265
0
        oidcpy(&result->oid, &b->oid);
2266
0
        break;
2267
0
      }
2268
0
    }
2269
0
  } else
2270
0
    BUG("unsupported object type in the tree: %06o for %s",
2271
0
        a->mode, path);
2272
2273
0
  return clean;
2274
0
}
2275
2276
/*** Function Grouping: functions related to detect_and_process_renames(), ***
2277
 *** which are split into directory and regular rename detection sections. ***/
2278
2279
/*** Function Grouping: functions related to directory rename detection ***/
2280
2281
struct collision_info {
2282
  struct string_list source_files;
2283
  unsigned reported_already:1;
2284
};
2285
2286
/*
2287
 * Return a new string that replaces the beginning portion (which matches
2288
 * rename_info->key), with rename_info->util.new_dir.  In perl-speak:
2289
 *   new_path_name = (old_path =~ s/rename_info->key/rename_info->value/);
2290
 * NOTE:
2291
 *   Caller must ensure that old_path starts with rename_info->key + '/'.
2292
 */
2293
static char *apply_dir_rename(struct strmap_entry *rename_info,
2294
            const char *old_path)
2295
0
{
2296
0
  struct strbuf new_path = STRBUF_INIT;
2297
0
  const char *old_dir = rename_info->key;
2298
0
  const char *new_dir = rename_info->value;
2299
0
  int oldlen, newlen, new_dir_len;
2300
2301
0
  oldlen = strlen(old_dir);
2302
0
  if (*new_dir == '\0')
2303
    /*
2304
     * If someone renamed/merged a subdirectory into the root
2305
     * directory (e.g. 'some/subdir' -> ''), then we want to
2306
     * avoid returning
2307
     *     '' + '/filename'
2308
     * as the rename; we need to make old_path + oldlen advance
2309
     * past the '/' character.
2310
     */
2311
0
    oldlen++;
2312
0
  new_dir_len = strlen(new_dir);
2313
0
  newlen = new_dir_len + (strlen(old_path) - oldlen) + 1;
2314
0
  strbuf_grow(&new_path, newlen);
2315
0
  strbuf_add(&new_path, new_dir, new_dir_len);
2316
0
  strbuf_addstr(&new_path, &old_path[oldlen]);
2317
2318
0
  return strbuf_detach(&new_path, NULL);
2319
0
}
2320
2321
static int path_in_way(struct strmap *paths,
2322
           const char *path,
2323
           unsigned side_mask,
2324
           struct diff_filepair *p)
2325
0
{
2326
0
  struct merged_info *mi = strmap_get(paths, path);
2327
0
  struct conflict_info *ci;
2328
0
  if (!mi)
2329
0
    return 0;
2330
0
  INITIALIZE_CI(ci, mi);
2331
0
  return mi->clean || (side_mask & (ci->filemask | ci->dirmask))
2332
    /* See testcases 12[npq] of t6423 for this next condition */
2333
0
       || ((ci->filemask & 0x01) &&
2334
0
           strcmp(p->one->path, path));
2335
0
}
2336
2337
/*
2338
 * See if there is a directory rename for path, and if there are any file
2339
 * level conflicts on the given side for the renamed location.  If there is
2340
 * a rename and there are no conflicts, return the new name.  Otherwise,
2341
 * return NULL.
2342
 */
2343
static char *handle_path_level_conflicts(struct merge_options *opt,
2344
           const char *path,
2345
           unsigned side_index,
2346
           struct diff_filepair *p,
2347
           struct strmap_entry *rename_info,
2348
           struct strmap *collisions)
2349
0
{
2350
0
  char *new_path = NULL;
2351
0
  struct collision_info *c_info;
2352
0
  int clean = 1;
2353
0
  struct strbuf collision_paths = STRBUF_INIT;
2354
2355
  /*
2356
   * entry has the mapping of old directory name to new directory name
2357
   * that we want to apply to path.
2358
   */
2359
0
  new_path = apply_dir_rename(rename_info, path);
2360
0
  if (!new_path)
2361
0
    BUG("Failed to apply directory rename!");
2362
2363
  /*
2364
   * The caller needs to have ensured that it has pre-populated
2365
   * collisions with all paths that map to new_path.  Do a quick check
2366
   * to ensure that's the case.
2367
   */
2368
0
  c_info = strmap_get(collisions, new_path);
2369
0
  if (!c_info)
2370
0
    BUG("c_info is NULL");
2371
2372
  /*
2373
   * Check for one-sided add/add/.../add conflicts, i.e.
2374
   * where implicit renames from the other side doing
2375
   * directory rename(s) can affect this side of history
2376
   * to put multiple paths into the same location.  Warn
2377
   * and bail on directory renames for such paths.
2378
   */
2379
0
  if (c_info->reported_already) {
2380
0
    clean = 0;
2381
0
  } else if (path_in_way(&opt->priv->paths, new_path, 1 << side_index, p)) {
2382
0
    c_info->reported_already = 1;
2383
0
    strbuf_add_separated_string_list(&collision_paths, ", ",
2384
0
             &c_info->source_files);
2385
0
    path_msg(opt, CONFLICT_DIR_RENAME_FILE_IN_WAY, 0,
2386
0
       new_path, NULL, NULL, &c_info->source_files,
2387
0
       _("CONFLICT (implicit dir rename): Existing "
2388
0
         "file/dir at %s in the way of implicit "
2389
0
         "directory rename(s) putting the following "
2390
0
         "path(s) there: %s."),
2391
0
       new_path, collision_paths.buf);
2392
0
    clean = 0;
2393
0
  } else if (c_info->source_files.nr > 1) {
2394
0
    c_info->reported_already = 1;
2395
0
    strbuf_add_separated_string_list(&collision_paths, ", ",
2396
0
             &c_info->source_files);
2397
0
    path_msg(opt, CONFLICT_DIR_RENAME_COLLISION, 0,
2398
0
       new_path, NULL, NULL, &c_info->source_files,
2399
0
       _("CONFLICT (implicit dir rename): Cannot map "
2400
0
         "more than one path to %s; implicit directory "
2401
0
         "renames tried to put these paths there: %s"),
2402
0
       new_path, collision_paths.buf);
2403
0
    clean = 0;
2404
0
  }
2405
2406
  /* Free memory we no longer need */
2407
0
  strbuf_release(&collision_paths);
2408
0
  if (!clean && new_path) {
2409
0
    free(new_path);
2410
0
    return NULL;
2411
0
  }
2412
2413
0
  return new_path;
2414
0
}
2415
2416
static void get_provisional_directory_renames(struct merge_options *opt,
2417
                unsigned side,
2418
                int *clean)
2419
0
{
2420
0
  struct hashmap_iter iter;
2421
0
  struct strmap_entry *entry;
2422
0
  struct rename_info *renames = &opt->priv->renames;
2423
2424
  /*
2425
   * Collapse
2426
   *    dir_rename_count: old_directory -> {new_directory -> count}
2427
   * down to
2428
   *    dir_renames: old_directory -> best_new_directory
2429
   * where best_new_directory is the one with the unique highest count.
2430
   */
2431
0
  strmap_for_each_entry(&renames->dir_rename_count[side], &iter, entry) {
2432
0
    const char *source_dir = entry->key;
2433
0
    struct strintmap *counts = entry->value;
2434
0
    struct hashmap_iter count_iter;
2435
0
    struct strmap_entry *count_entry;
2436
0
    int max = 0;
2437
0
    int bad_max = 0;
2438
0
    const char *best = NULL;
2439
2440
0
    strintmap_for_each_entry(counts, &count_iter, count_entry) {
2441
0
      const char *target_dir = count_entry->key;
2442
0
      intptr_t count = (intptr_t)count_entry->value;
2443
2444
0
      if (count == max)
2445
0
        bad_max = max;
2446
0
      else if (count > max) {
2447
0
        max = count;
2448
0
        best = target_dir;
2449
0
      }
2450
0
    }
2451
2452
0
    if (max == 0)
2453
0
      continue;
2454
2455
0
    if (bad_max == max) {
2456
0
      path_msg(opt, CONFLICT_DIR_RENAME_SPLIT, 0,
2457
0
         source_dir, NULL, NULL, NULL,
2458
0
         _("CONFLICT (directory rename split): "
2459
0
           "Unclear where to rename %s to; it was "
2460
0
           "renamed to multiple other directories, "
2461
0
           "with no destination getting a majority of "
2462
0
           "the files."),
2463
0
         source_dir);
2464
0
      *clean = 0;
2465
0
    } else {
2466
0
      strmap_put(&renames->dir_renames[side],
2467
0
           source_dir, (void*)best);
2468
0
    }
2469
0
  }
2470
0
}
2471
2472
static void handle_directory_level_conflicts(struct merge_options *opt)
2473
0
{
2474
0
  struct hashmap_iter iter;
2475
0
  struct strmap_entry *entry;
2476
0
  struct string_list duplicated = STRING_LIST_INIT_NODUP;
2477
0
  struct rename_info *renames = &opt->priv->renames;
2478
0
  struct strmap *side1_dir_renames = &renames->dir_renames[MERGE_SIDE1];
2479
0
  struct strmap *side2_dir_renames = &renames->dir_renames[MERGE_SIDE2];
2480
0
  int i;
2481
2482
0
  strmap_for_each_entry(side1_dir_renames, &iter, entry) {
2483
0
    if (strmap_contains(side2_dir_renames, entry->key))
2484
0
      string_list_append(&duplicated, entry->key);
2485
0
  }
2486
2487
0
  for (i = 0; i < duplicated.nr; i++) {
2488
0
    strmap_remove(side1_dir_renames, duplicated.items[i].string, 0);
2489
0
    strmap_remove(side2_dir_renames, duplicated.items[i].string, 0);
2490
0
  }
2491
0
  string_list_clear(&duplicated, 0);
2492
0
}
2493
2494
static struct strmap_entry *check_dir_renamed(const char *path,
2495
                struct strmap *dir_renames)
2496
0
{
2497
0
  char *temp = xstrdup(path);
2498
0
  char *end;
2499
0
  struct strmap_entry *e = NULL;
2500
2501
0
  while ((end = strrchr(temp, '/'))) {
2502
0
    *end = '\0';
2503
0
    e = strmap_get_entry(dir_renames, temp);
2504
0
    if (e)
2505
0
      break;
2506
0
  }
2507
0
  free(temp);
2508
0
  return e;
2509
0
}
2510
2511
static void compute_collisions(struct strmap *collisions,
2512
             struct strmap *dir_renames,
2513
             struct diff_queue_struct *pairs)
2514
0
{
2515
0
  int i;
2516
2517
0
  strmap_init_with_options(collisions, NULL, 0);
2518
0
  if (strmap_empty(dir_renames))
2519
0
    return;
2520
2521
  /*
2522
   * Multiple files can be mapped to the same path due to directory
2523
   * renames done by the other side of history.  Since that other
2524
   * side of history could have merged multiple directories into one,
2525
   * if our side of history added the same file basename to each of
2526
   * those directories, then all N of them would get implicitly
2527
   * renamed by the directory rename detection into the same path,
2528
   * and we'd get an add/add/.../add conflict, and all those adds
2529
   * from *this* side of history.  This is not representable in the
2530
   * index, and users aren't going to easily be able to make sense of
2531
   * it.  So we need to provide a good warning about what's
2532
   * happening, and fall back to no-directory-rename detection
2533
   * behavior for those paths.
2534
   *
2535
   * See testcases 9e and all of section 5 from t6423 for examples.
2536
   */
2537
0
  for (i = 0; i < pairs->nr; ++i) {
2538
0
    struct strmap_entry *rename_info;
2539
0
    struct collision_info *collision_info;
2540
0
    char *new_path;
2541
0
    struct diff_filepair *pair = pairs->queue[i];
2542
2543
0
    if (pair->status != 'A' && pair->status != 'R')
2544
0
      continue;
2545
0
    rename_info = check_dir_renamed(pair->two->path, dir_renames);
2546
0
    if (!rename_info)
2547
0
      continue;
2548
2549
0
    new_path = apply_dir_rename(rename_info, pair->two->path);
2550
0
    assert(new_path);
2551
0
    collision_info = strmap_get(collisions, new_path);
2552
0
    if (collision_info) {
2553
0
      free(new_path);
2554
0
    } else {
2555
0
      CALLOC_ARRAY(collision_info, 1);
2556
0
      string_list_init_nodup(&collision_info->source_files);
2557
0
      strmap_put(collisions, new_path, collision_info);
2558
0
    }
2559
0
    string_list_insert(&collision_info->source_files,
2560
0
           pair->two->path);
2561
0
  }
2562
0
}
2563
2564
static void free_collisions(struct strmap *collisions)
2565
0
{
2566
0
  struct hashmap_iter iter;
2567
0
  struct strmap_entry *entry;
2568
2569
  /* Free each value in the collisions map */
2570
0
  strmap_for_each_entry(collisions, &iter, entry) {
2571
0
    struct collision_info *info = entry->value;
2572
0
    string_list_clear(&info->source_files, 0);
2573
0
  }
2574
  /*
2575
   * In compute_collisions(), we set collisions.strdup_strings to 0
2576
   * so that we wouldn't have to make another copy of the new_path
2577
   * allocated by apply_dir_rename().  But now that we've used them
2578
   * and have no other references to these strings, it is time to
2579
   * deallocate them.
2580
   */
2581
0
  free_strmap_strings(collisions);
2582
0
  strmap_clear(collisions, 1);
2583
0
}
2584
2585
static char *check_for_directory_rename(struct merge_options *opt,
2586
          const char *path,
2587
          unsigned side_index,
2588
          struct diff_filepair *p,
2589
          struct strmap *dir_renames,
2590
          struct strmap *dir_rename_exclusions,
2591
          struct strmap *collisions,
2592
          int *clean_merge)
2593
0
{
2594
0
  char *new_path;
2595
0
  struct strmap_entry *rename_info;
2596
0
  const char *new_dir;
2597
0
  int other_side = 3 - side_index;
2598
2599
  /*
2600
   * Cases where we don't have or don't want a directory rename for
2601
   * this path.
2602
   */
2603
0
  if (strmap_empty(dir_renames))
2604
0
    return NULL;
2605
0
  if (strmap_get(&collisions[other_side], path))
2606
0
    return NULL;
2607
0
  rename_info = check_dir_renamed(path, dir_renames);
2608
0
  if (!rename_info)
2609
0
    return NULL;
2610
2611
  /*
2612
   * This next part is a little weird.  We do not want to do an
2613
   * implicit rename into a directory we renamed on our side, because
2614
   * that will result in a spurious rename/rename(1to2) conflict.  An
2615
   * example:
2616
   *   Base commit: dumbdir/afile, otherdir/bfile
2617
   *   Side 1:      smrtdir/afile, otherdir/bfile
2618
   *   Side 2:      dumbdir/afile, dumbdir/bfile
2619
   * Here, while working on Side 1, we could notice that otherdir was
2620
   * renamed/merged to dumbdir, and change the diff_filepair for
2621
   * otherdir/bfile into a rename into dumbdir/bfile.  However, Side
2622
   * 2 will notice the rename from dumbdir to smrtdir, and do the
2623
   * transitive rename to move it from dumbdir/bfile to
2624
   * smrtdir/bfile.  That gives us bfile in dumbdir vs being in
2625
   * smrtdir, a rename/rename(1to2) conflict.  We really just want
2626
   * the file to end up in smrtdir.  And the way to achieve that is
2627
   * to not let Side1 do the rename to dumbdir, since we know that is
2628
   * the source of one of our directory renames.
2629
   *
2630
   * That's why dir_rename_exclusions is here.
2631
   *
2632
   * As it turns out, this also prevents N-way transient rename
2633
   * confusion; See testcases 9c and 9d of t6423.
2634
   */
2635
0
  new_dir = rename_info->value; /* old_dir = rename_info->key; */
2636
0
  if (strmap_contains(dir_rename_exclusions, new_dir)) {
2637
0
    path_msg(opt, INFO_DIR_RENAME_SKIPPED_DUE_TO_RERENAME, 1,
2638
0
       rename_info->key, path, new_dir, NULL,
2639
0
       _("WARNING: Avoiding applying %s -> %s rename "
2640
0
         "to %s, because %s itself was renamed."),
2641
0
       rename_info->key, new_dir, path, new_dir);
2642
0
    return NULL;
2643
0
  }
2644
2645
0
  new_path = handle_path_level_conflicts(opt, path, side_index, p,
2646
0
                 rename_info,
2647
0
                 &collisions[side_index]);
2648
0
  *clean_merge &= (new_path != NULL);
2649
2650
0
  return new_path;
2651
0
}
2652
2653
static void apply_directory_rename_modifications(struct merge_options *opt,
2654
             struct diff_filepair *pair,
2655
             char *new_path)
2656
0
{
2657
  /*
2658
   * The basic idea is to get the conflict_info from opt->priv->paths
2659
   * at old path, and insert it into new_path; basically just this:
2660
   *     ci = strmap_get(&opt->priv->paths, old_path);
2661
   *     strmap_remove(&opt->priv->paths, old_path, 0);
2662
   *     strmap_put(&opt->priv->paths, new_path, ci);
2663
   * However, there are some factors complicating this:
2664
   *     - opt->priv->paths may already have an entry at new_path
2665
   *     - Each ci tracks its containing directory, so we need to
2666
   *       update that
2667
   *     - If another ci has the same containing directory, then
2668
   *       the two char*'s MUST point to the same location.  See the
2669
   *       comment in struct merged_info.  strcmp equality is not
2670
   *       enough; we need pointer equality.
2671
   *     - opt->priv->paths must hold the parent directories of any
2672
   *       entries that are added.  So, if this directory rename
2673
   *       causes entirely new directories, we must recursively add
2674
   *       parent directories.
2675
   *     - For each parent directory added to opt->priv->paths, we
2676
   *       also need to get its parent directory stored in its
2677
   *       conflict_info->merged.directory_name with all the same
2678
   *       requirements about pointer equality.
2679
   */
2680
0
  struct string_list dirs_to_insert = STRING_LIST_INIT_NODUP;
2681
0
  struct conflict_info *ci, *new_ci;
2682
0
  struct strmap_entry *entry;
2683
0
  const char *branch_with_new_path, *branch_with_dir_rename;
2684
0
  const char *old_path = pair->two->path;
2685
0
  const char *parent_name;
2686
0
  const char *cur_path;
2687
0
  int i, len;
2688
2689
0
  entry = strmap_get_entry(&opt->priv->paths, old_path);
2690
0
  old_path = entry->key;
2691
0
  ci = entry->value;
2692
0
  VERIFY_CI(ci);
2693
2694
  /* Find parent directories missing from opt->priv->paths */
2695
0
  cur_path = mem_pool_strdup(&opt->priv->pool, new_path);
2696
0
  free((char*)new_path);
2697
0
  new_path = (char *)cur_path;
2698
2699
0
  while (1) {
2700
    /* Find the parent directory of cur_path */
2701
0
    char *last_slash = strrchr(cur_path, '/');
2702
0
    if (last_slash) {
2703
0
      parent_name = mem_pool_strndup(&opt->priv->pool,
2704
0
                   cur_path,
2705
0
                   last_slash - cur_path);
2706
0
    } else {
2707
0
      parent_name = opt->priv->toplevel_dir;
2708
0
      break;
2709
0
    }
2710
2711
    /* Look it up in opt->priv->paths */
2712
0
    entry = strmap_get_entry(&opt->priv->paths, parent_name);
2713
0
    if (entry) {
2714
0
      parent_name = entry->key; /* reuse known pointer */
2715
0
      break;
2716
0
    }
2717
2718
    /* Record this is one of the directories we need to insert */
2719
0
    string_list_append(&dirs_to_insert, parent_name);
2720
0
    cur_path = parent_name;
2721
0
  }
2722
2723
  /* Traverse dirs_to_insert and insert them into opt->priv->paths */
2724
0
  for (i = dirs_to_insert.nr-1; i >= 0; --i) {
2725
0
    struct conflict_info *dir_ci;
2726
0
    char *cur_dir = dirs_to_insert.items[i].string;
2727
2728
0
    dir_ci = mem_pool_calloc(&opt->priv->pool, 1, sizeof(*dir_ci));
2729
2730
0
    dir_ci->merged.directory_name = parent_name;
2731
0
    len = strlen(parent_name);
2732
    /* len+1 because of trailing '/' character */
2733
0
    dir_ci->merged.basename_offset = (len > 0 ? len+1 : len);
2734
0
    dir_ci->dirmask = ci->filemask;
2735
0
    strmap_put(&opt->priv->paths, cur_dir, dir_ci);
2736
2737
0
    parent_name = cur_dir;
2738
0
  }
2739
2740
0
  assert(ci->filemask == 2 || ci->filemask == 4);
2741
0
  assert(ci->dirmask == 0 || ci->dirmask == 1);
2742
0
  if (ci->dirmask == 0)
2743
0
    strmap_remove(&opt->priv->paths, old_path, 0);
2744
0
  else {
2745
    /*
2746
     * This file exists on one side, but we still had a directory
2747
     * at the old location that we can't remove until after
2748
     * processing all paths below it.  So, make a copy of ci in
2749
     * new_ci and only put the file information into it.
2750
     */
2751
0
    new_ci = mem_pool_calloc(&opt->priv->pool, 1, sizeof(*new_ci));
2752
0
    memcpy(new_ci, ci, sizeof(*ci));
2753
0
    assert(!new_ci->match_mask);
2754
0
    new_ci->dirmask = 0;
2755
0
    new_ci->stages[1].mode = 0;
2756
0
    oidcpy(&new_ci->stages[1].oid, null_oid(the_hash_algo));
2757
2758
    /*
2759
     * Now that we have the file information in new_ci, make sure
2760
     * ci only has the directory information.
2761
     */
2762
0
    ci->filemask = 0;
2763
0
    ci->merged.clean = 1;
2764
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
2765
0
      if (ci->dirmask & (1 << i))
2766
0
        continue;
2767
      /* zero out any entries related to files */
2768
0
      ci->stages[i].mode = 0;
2769
0
      oidcpy(&ci->stages[i].oid, null_oid(the_hash_algo));
2770
0
    }
2771
2772
    /* Now we want to focus on new_ci, so reassign ci to it. */
2773
0
    ci = new_ci;
2774
0
  }
2775
2776
0
  branch_with_new_path   = (ci->filemask == 2) ? opt->branch1 : opt->branch2;
2777
0
  branch_with_dir_rename = (ci->filemask == 2) ? opt->branch2 : opt->branch1;
2778
2779
  /* Now, finally update ci and stick it into opt->priv->paths */
2780
0
  ci->merged.directory_name = parent_name;
2781
0
  len = strlen(parent_name);
2782
0
  ci->merged.basename_offset = (len > 0 ? len+1 : len);
2783
0
  new_ci = strmap_get(&opt->priv->paths, new_path);
2784
0
  if (!new_ci) {
2785
    /* Place ci back into opt->priv->paths, but at new_path */
2786
0
    strmap_put(&opt->priv->paths, new_path, ci);
2787
0
  } else {
2788
0
    int index;
2789
2790
    /* A few sanity checks */
2791
0
    VERIFY_CI(new_ci);
2792
0
    assert(ci->filemask == 2 || ci->filemask == 4);
2793
0
    assert((new_ci->filemask & ci->filemask) == 0);
2794
0
    assert(!new_ci->merged.clean);
2795
2796
    /* Copy stuff from ci into new_ci */
2797
0
    new_ci->filemask |= ci->filemask;
2798
0
    if (new_ci->dirmask)
2799
0
      new_ci->df_conflict = 1;
2800
0
    index = (ci->filemask >> 1);
2801
0
    new_ci->pathnames[index] = ci->pathnames[index];
2802
0
    new_ci->stages[index].mode = ci->stages[index].mode;
2803
0
    oidcpy(&new_ci->stages[index].oid, &ci->stages[index].oid);
2804
2805
0
    ci = new_ci;
2806
0
  }
2807
2808
0
  if (opt->detect_directory_renames == MERGE_DIRECTORY_RENAMES_TRUE) {
2809
    /* Notify user of updated path */
2810
0
    if (pair->status == 'A')
2811
0
      path_msg(opt, INFO_DIR_RENAME_APPLIED, 1,
2812
0
         new_path, old_path, NULL, NULL,
2813
0
         _("Path updated: %s added in %s inside a "
2814
0
           "directory that was renamed in %s; moving "
2815
0
           "it to %s."),
2816
0
         old_path, branch_with_new_path,
2817
0
         branch_with_dir_rename, new_path);
2818
0
    else
2819
0
      path_msg(opt, INFO_DIR_RENAME_APPLIED, 1,
2820
0
         new_path, old_path, NULL, NULL,
2821
0
         _("Path updated: %s renamed to %s in %s, "
2822
0
           "inside a directory that was renamed in %s; "
2823
0
           "moving it to %s."),
2824
0
         pair->one->path, old_path, branch_with_new_path,
2825
0
         branch_with_dir_rename, new_path);
2826
0
  } else {
2827
    /*
2828
     * opt->detect_directory_renames has the value
2829
     * MERGE_DIRECTORY_RENAMES_CONFLICT, so mark these as conflicts.
2830
     */
2831
0
    ci->path_conflict = 1;
2832
0
    if (pair->status == 'A')
2833
0
      path_msg(opt, CONFLICT_DIR_RENAME_SUGGESTED, 1,
2834
0
         new_path, old_path, NULL, NULL,
2835
0
         _("CONFLICT (file location): %s added in %s "
2836
0
           "inside a directory that was renamed in %s, "
2837
0
           "suggesting it should perhaps be moved to "
2838
0
           "%s."),
2839
0
         old_path, branch_with_new_path,
2840
0
         branch_with_dir_rename, new_path);
2841
0
    else
2842
0
      path_msg(opt, CONFLICT_DIR_RENAME_SUGGESTED, 1,
2843
0
         new_path, old_path, NULL, NULL,
2844
0
         _("CONFLICT (file location): %s renamed to %s "
2845
0
           "in %s, inside a directory that was renamed "
2846
0
           "in %s, suggesting it should perhaps be "
2847
0
           "moved to %s."),
2848
0
         pair->one->path, old_path, branch_with_new_path,
2849
0
         branch_with_dir_rename, new_path);
2850
0
  }
2851
2852
  /*
2853
   * Finally, record the new location.
2854
   */
2855
0
  pair->two->path = new_path;
2856
2857
0
  string_list_clear(&dirs_to_insert, 0);
2858
0
}
2859
2860
/*** Function Grouping: functions related to regular rename detection ***/
2861
2862
static int process_renames(struct merge_options *opt,
2863
         struct diff_queue_struct *renames)
2864
0
{
2865
0
  int clean_merge = 1, i;
2866
2867
0
  for (i = 0; i < renames->nr; ++i) {
2868
0
    const char *oldpath = NULL, *newpath;
2869
0
    struct diff_filepair *pair = renames->queue[i];
2870
0
    struct conflict_info *oldinfo = NULL, *newinfo = NULL;
2871
0
    struct strmap_entry *old_ent, *new_ent;
2872
0
    unsigned int old_sidemask;
2873
0
    int target_index, other_source_index;
2874
0
    int source_deleted, collision, type_changed;
2875
0
    const char *rename_branch = NULL, *delete_branch = NULL;
2876
2877
0
    old_ent = strmap_get_entry(&opt->priv->paths, pair->one->path);
2878
0
    new_ent = strmap_get_entry(&opt->priv->paths, pair->two->path);
2879
0
    if (old_ent) {
2880
0
      oldpath = old_ent->key;
2881
0
      oldinfo = old_ent->value;
2882
0
    }
2883
0
    newpath = pair->two->path;
2884
0
    if (new_ent) {
2885
0
      newpath = new_ent->key;
2886
0
      newinfo = new_ent->value;
2887
0
    }
2888
2889
    /*
2890
     * Directory renames can result in rename-to-self; the code
2891
     * below assumes we have A->B with different A & B, and tries
2892
     * to move all entries to path B.  If A & B are the same path,
2893
     * the logic can get confused, so skip further processing when
2894
     * A & B are already the same path.
2895
     *
2896
     * As a reminder, we can avoid strcmp here because all paths
2897
     * are interned in opt->priv->paths; see the comment above
2898
     * "paths" in struct merge_options_internal.
2899
     */
2900
0
    if (oldpath == newpath)
2901
0
      continue;
2902
2903
    /*
2904
     * If pair->one->path isn't in opt->priv->paths, that means
2905
     * that either directory rename detection removed that
2906
     * path, or a parent directory of oldpath was resolved and
2907
     * we don't even need the rename; in either case, we can
2908
     * skip it.  If oldinfo->merged.clean, then the other side
2909
     * of history had no changes to oldpath and we don't need
2910
     * the rename and can skip it.
2911
     */
2912
0
    if (!oldinfo || oldinfo->merged.clean)
2913
0
      continue;
2914
2915
    /*
2916
     * Rename caching from a previous commit might give us an
2917
     * irrelevant rename for the current commit.
2918
     *
2919
     * Imagine:
2920
     *     foo/A -> bar/A
2921
     * was a cached rename for the upstream side from the
2922
     * previous commit (without the directories being renamed),
2923
     * but the next commit being replayed
2924
     *     * does NOT add or delete files
2925
     *     * does NOT have directory renames
2926
     *     * does NOT modify any files under bar/
2927
     *     * does NOT modify foo/A
2928
     *     * DOES modify other files under foo/ (otherwise the
2929
     *       !oldinfo check above would have already exited for
2930
     *       us)
2931
     * In such a case, our trivial directory resolution will
2932
     * have already merged bar/, and our attempt to process
2933
     * the cached
2934
     *     foo/A -> bar/A
2935
     * would be counterproductive, and lack the necessary
2936
     * information anyway.  Skip such renames.
2937
     */
2938
0
    if (!newinfo)
2939
0
      continue;
2940
2941
    /*
2942
     * diff_filepairs have copies of pathnames, thus we have to
2943
     * use standard 'strcmp()' (negated) instead of '=='.
2944
     */
2945
0
    if (i + 1 < renames->nr &&
2946
0
        !strcmp(oldpath, renames->queue[i+1]->one->path)) {
2947
      /* Handle rename/rename(1to2) or rename/rename(1to1) */
2948
0
      const char *pathnames[3];
2949
0
      struct version_info merged;
2950
0
      struct conflict_info *base, *side1, *side2;
2951
0
      unsigned was_binary_blob = 0;
2952
0
      const int record_object = true;
2953
2954
0
      pathnames[0] = oldpath;
2955
0
      pathnames[1] = newpath;
2956
0
      pathnames[2] = renames->queue[i+1]->two->path;
2957
2958
0
      base = strmap_get(&opt->priv->paths, pathnames[0]);
2959
0
      side1 = strmap_get(&opt->priv->paths, pathnames[1]);
2960
0
      side2 = strmap_get(&opt->priv->paths, pathnames[2]);
2961
2962
0
      VERIFY_CI(base);
2963
0
      VERIFY_CI(side1);
2964
0
      VERIFY_CI(side2);
2965
2966
0
      if (!strcmp(pathnames[1], pathnames[2])) {
2967
0
        struct rename_info *ri = &opt->priv->renames;
2968
0
        int j;
2969
2970
        /* Both sides renamed the same way */
2971
0
        assert(side1 == side2);
2972
0
        memcpy(&side1->stages[0], &base->stages[0],
2973
0
               sizeof(merged));
2974
0
        side1->filemask |= (1 << MERGE_BASE);
2975
        /* Mark base as resolved by removal */
2976
0
        base->merged.is_null = 1;
2977
0
        base->merged.clean = 1;
2978
2979
        /*
2980
         * Disable remembering renames optimization;
2981
         * rename/rename(1to1) is incredibly rare, and
2982
         * just disabling the optimization is easier
2983
         * than purging cached_pairs,
2984
         * cached_target_names, and dir_rename_counts.
2985
         */
2986
0
        for (j = 0; j < 3; j++)
2987
0
          ri->merge_trees[j] = NULL;
2988
2989
        /* We handled both renames, i.e. i+1 handled */
2990
0
        i++;
2991
        /* Move to next rename */
2992
0
        continue;
2993
0
      }
2994
2995
      /* This is a rename/rename(1to2) */
2996
0
      clean_merge = handle_content_merge(opt,
2997
0
                 pair->one->path,
2998
0
                 &base->stages[0],
2999
0
                 &side1->stages[1],
3000
0
                 &side2->stages[2],
3001
0
                 pathnames,
3002
0
                 1 + 2 * opt->priv->call_depth,
3003
0
                 record_object,
3004
0
                 &merged);
3005
0
      if (clean_merge < 0)
3006
0
        return -1;
3007
0
      if (!clean_merge &&
3008
0
          merged.mode == side1->stages[1].mode &&
3009
0
          oideq(&merged.oid, &side1->stages[1].oid))
3010
0
        was_binary_blob = 1;
3011
0
      memcpy(&side1->stages[1], &merged, sizeof(merged));
3012
0
      if (was_binary_blob) {
3013
        /*
3014
         * Getting here means we were attempting to
3015
         * merge a binary blob.
3016
         *
3017
         * Since we can't merge binaries,
3018
         * handle_content_merge() just takes one
3019
         * side.  But we don't want to copy the
3020
         * contents of one side to both paths.  We
3021
         * used the contents of side1 above for
3022
         * side1->stages, let's use the contents of
3023
         * side2 for side2->stages below.
3024
         */
3025
0
        oidcpy(&merged.oid, &side2->stages[2].oid);
3026
0
        merged.mode = side2->stages[2].mode;
3027
0
      }
3028
0
      memcpy(&side2->stages[2], &merged, sizeof(merged));
3029
3030
0
      side1->path_conflict = 1;
3031
0
      side2->path_conflict = 1;
3032
      /*
3033
       * TODO: For renames we normally remove the path at the
3034
       * old name.  It would thus seem consistent to do the
3035
       * same for rename/rename(1to2) cases, but we haven't
3036
       * done so traditionally and a number of the regression
3037
       * tests now encode an expectation that the file is
3038
       * left there at stage 1.  If we ever decide to change
3039
       * this, add the following two lines here:
3040
       *    base->merged.is_null = 1;
3041
       *    base->merged.clean = 1;
3042
       * and remove the setting of base->path_conflict to 1.
3043
       */
3044
0
      base->path_conflict = 1;
3045
0
      path_msg(opt, CONFLICT_RENAME_RENAME, 0,
3046
0
         pathnames[0], pathnames[1], pathnames[2], NULL,
3047
0
         _("CONFLICT (rename/rename): %s renamed to "
3048
0
           "%s in %s and to %s in %s."),
3049
0
         pathnames[0],
3050
0
         pathnames[1], opt->branch1,
3051
0
         pathnames[2], opt->branch2);
3052
3053
0
      i++; /* We handled both renames, i.e. i+1 handled */
3054
0
      continue;
3055
0
    }
3056
3057
0
    VERIFY_CI(oldinfo);
3058
0
    VERIFY_CI(newinfo);
3059
0
    target_index = pair->score; /* from collect_renames() */
3060
0
    assert(target_index == 1 || target_index == 2);
3061
0
    other_source_index = 3 - target_index;
3062
0
    old_sidemask = (1 << other_source_index); /* 2 or 4 */
3063
0
    source_deleted = (oldinfo->filemask == 1);
3064
0
    collision = ((newinfo->filemask & old_sidemask) != 0);
3065
0
    type_changed = !source_deleted &&
3066
0
      (S_ISREG(oldinfo->stages[other_source_index].mode) !=
3067
0
       S_ISREG(newinfo->stages[target_index].mode));
3068
0
    if (type_changed && collision) {
3069
      /*
3070
       * special handling so later blocks can handle this...
3071
       *
3072
       * if type_changed && collision are both true, then this
3073
       * was really a double rename, but one side wasn't
3074
       * detected due to lack of break detection.  I.e.
3075
       * something like
3076
       *    orig: has normal file 'foo'
3077
       *    side1: renames 'foo' to 'bar', adds 'foo' symlink
3078
       *    side2: renames 'foo' to 'bar'
3079
       * In this case, the foo->bar rename on side1 won't be
3080
       * detected because the new symlink named 'foo' is
3081
       * there and we don't do break detection.  But we detect
3082
       * this here because we don't want to merge the content
3083
       * of the foo symlink with the foo->bar file, so we
3084
       * have some logic to handle this special case.  The
3085
       * easiest way to do that is make 'bar' on side1 not
3086
       * be considered a colliding file but the other part
3087
       * of a normal rename.  If the file is very different,
3088
       * well we're going to get content merge conflicts
3089
       * anyway so it doesn't hurt.  And if the colliding
3090
       * file also has a different type, that'll be handled
3091
       * by the content merge logic in process_entry() too.
3092
       *
3093
       * See also t6430, 'rename vs. rename/symlink'
3094
       */
3095
0
      collision = 0;
3096
0
    }
3097
0
    if (source_deleted) {
3098
0
      if (target_index == 1) {
3099
0
        rename_branch = opt->branch1;
3100
0
        delete_branch = opt->branch2;
3101
0
      } else {
3102
0
        rename_branch = opt->branch2;
3103
0
        delete_branch = opt->branch1;
3104
0
      }
3105
0
    }
3106
3107
0
    assert(source_deleted || oldinfo->filemask & old_sidemask ||
3108
0
           !strcmp(pair->one->path, pair->two->path));
3109
3110
    /* Need to check for special types of rename conflicts... */
3111
0
    if (collision && !source_deleted) {
3112
      /* collision: rename/add or rename/rename(2to1) */
3113
0
      const char *pathnames[3];
3114
0
      struct version_info merged;
3115
3116
0
      struct conflict_info *base, *side1, *side2;
3117
0
      int clean;
3118
0
      const int record_object = true;
3119
3120
0
      pathnames[0] = oldpath;
3121
0
      pathnames[other_source_index] = oldpath;
3122
0
      pathnames[target_index] = newpath;
3123
3124
0
      base = strmap_get(&opt->priv->paths, pathnames[0]);
3125
0
      side1 = strmap_get(&opt->priv->paths, pathnames[1]);
3126
0
      side2 = strmap_get(&opt->priv->paths, pathnames[2]);
3127
3128
0
      VERIFY_CI(base);
3129
0
      VERIFY_CI(side1);
3130
0
      VERIFY_CI(side2);
3131
3132
0
      clean = handle_content_merge(opt, pair->one->path,
3133
0
                 &base->stages[0],
3134
0
                 &side1->stages[1],
3135
0
                 &side2->stages[2],
3136
0
                 pathnames,
3137
0
                 1 + 2 * opt->priv->call_depth,
3138
0
                 record_object,
3139
0
                 &merged);
3140
0
      if (clean < 0)
3141
0
        return -1;
3142
3143
0
      memcpy(&newinfo->stages[target_index], &merged,
3144
0
             sizeof(merged));
3145
0
      if (!clean) {
3146
0
        path_msg(opt, CONFLICT_RENAME_COLLIDES, 0,
3147
0
           newpath, oldpath, NULL, NULL,
3148
0
           _("CONFLICT (rename involved in "
3149
0
             "collision): rename of %s -> %s has "
3150
0
             "content conflicts AND collides "
3151
0
             "with another path; this may result "
3152
0
             "in nested conflict markers."),
3153
0
           oldpath, newpath);
3154
0
      }
3155
0
    } else if (collision && source_deleted) {
3156
      /*
3157
       * rename/add/delete or rename/rename(2to1)/delete:
3158
       * since oldpath was deleted on the side that didn't
3159
       * do the rename, there's not much of a content merge
3160
       * we can do for the rename.  oldinfo->merged.is_null
3161
       * was already set, so we just leave things as-is so
3162
       * they look like an add/add conflict.
3163
       */
3164
3165
0
      newinfo->path_conflict = 1;
3166
0
      path_msg(opt, CONFLICT_RENAME_DELETE, 0,
3167
0
         newpath, oldpath, NULL, NULL,
3168
0
         _("CONFLICT (rename/delete): %s renamed "
3169
0
           "to %s in %s, but deleted in %s."),
3170
0
         oldpath, newpath, rename_branch, delete_branch);
3171
0
    } else {
3172
      /*
3173
       * a few different cases...start by copying the
3174
       * existing stage(s) from oldinfo over the newinfo
3175
       * and update the pathname(s).
3176
       */
3177
0
      memcpy(&newinfo->stages[0], &oldinfo->stages[0],
3178
0
             sizeof(newinfo->stages[0]));
3179
0
      newinfo->filemask |= (1 << MERGE_BASE);
3180
0
      newinfo->pathnames[0] = oldpath;
3181
0
      if (type_changed) {
3182
        /* rename vs. typechange */
3183
        /* Mark the original as resolved by removal */
3184
0
        memcpy(&oldinfo->stages[0].oid, null_oid(the_hash_algo),
3185
0
               sizeof(oldinfo->stages[0].oid));
3186
0
        oldinfo->stages[0].mode = 0;
3187
0
        oldinfo->filemask &= 0x06;
3188
0
      } else if (source_deleted) {
3189
        /* rename/delete */
3190
0
        newinfo->path_conflict = 1;
3191
0
        path_msg(opt, CONFLICT_RENAME_DELETE, 0,
3192
0
           newpath, oldpath, NULL, NULL,
3193
0
           _("CONFLICT (rename/delete): %s renamed"
3194
0
             " to %s in %s, but deleted in %s."),
3195
0
           oldpath, newpath,
3196
0
           rename_branch, delete_branch);
3197
0
      } else {
3198
        /* normal rename */
3199
0
        memcpy(&newinfo->stages[other_source_index],
3200
0
               &oldinfo->stages[other_source_index],
3201
0
               sizeof(newinfo->stages[0]));
3202
0
        newinfo->filemask |= (1 << other_source_index);
3203
0
        newinfo->pathnames[other_source_index] = oldpath;
3204
0
      }
3205
0
    }
3206
3207
0
    if (!type_changed) {
3208
      /* Mark the original as resolved by removal */
3209
0
      oldinfo->merged.is_null = 1;
3210
0
      oldinfo->merged.clean = 1;
3211
0
    }
3212
3213
0
  }
3214
3215
0
  return clean_merge;
3216
0
}
3217
3218
static inline int possible_side_renames(struct rename_info *renames,
3219
          unsigned side_index)
3220
0
{
3221
0
  return renames->pairs[side_index].nr > 0 &&
3222
0
         !strintmap_empty(&renames->relevant_sources[side_index]);
3223
0
}
3224
3225
static inline int possible_renames(struct rename_info *renames)
3226
0
{
3227
0
  return possible_side_renames(renames, 1) ||
3228
0
         possible_side_renames(renames, 2) ||
3229
0
         !strmap_empty(&renames->cached_pairs[1]) ||
3230
0
         !strmap_empty(&renames->cached_pairs[2]);
3231
0
}
3232
3233
static void resolve_diffpair_statuses(struct diff_queue_struct *q)
3234
0
{
3235
  /*
3236
   * A simplified version of diff_resolve_rename_copy(); would probably
3237
   * just use that function but it's static...
3238
   */
3239
0
  int i;
3240
0
  struct diff_filepair *p;
3241
3242
0
  for (i = 0; i < q->nr; ++i) {
3243
0
    p = q->queue[i];
3244
0
    p->status = 0; /* undecided */
3245
0
    if (!DIFF_FILE_VALID(p->one))
3246
0
      p->status = DIFF_STATUS_ADDED;
3247
0
    else if (!DIFF_FILE_VALID(p->two))
3248
0
      p->status = DIFF_STATUS_DELETED;
3249
0
    else if (DIFF_PAIR_RENAME(p))
3250
0
      p->status = DIFF_STATUS_RENAMED;
3251
0
  }
3252
0
}
3253
3254
static void prune_cached_from_relevant(struct rename_info *renames,
3255
               unsigned side)
3256
0
{
3257
  /* Reason for this function described in add_pair() */
3258
0
  struct hashmap_iter iter;
3259
0
  struct strmap_entry *entry;
3260
3261
  /* Remove from relevant_sources all entries in cached_pairs[side] */
3262
0
  strmap_for_each_entry(&renames->cached_pairs[side], &iter, entry) {
3263
0
    strintmap_remove(&renames->relevant_sources[side],
3264
0
         entry->key);
3265
0
  }
3266
  /* Remove from relevant_sources all entries in cached_irrelevant[side] */
3267
0
  strset_for_each_entry(&renames->cached_irrelevant[side], &iter, entry) {
3268
0
    strintmap_remove(&renames->relevant_sources[side],
3269
0
         entry->key);
3270
0
  }
3271
0
}
3272
3273
static void use_cached_pairs(struct merge_options *opt,
3274
           struct strmap *cached_pairs,
3275
           struct diff_queue_struct *pairs)
3276
0
{
3277
0
  struct hashmap_iter iter;
3278
0
  struct strmap_entry *entry;
3279
3280
  /*
3281
   * Add to side_pairs all entries from renames->cached_pairs[side_index].
3282
   * (Info in cached_irrelevant[side_index] is not relevant here.)
3283
   */
3284
0
  strmap_for_each_entry(cached_pairs, &iter, entry) {
3285
0
    struct diff_filespec *one, *two;
3286
0
    const char *old_name = entry->key;
3287
0
    const char *new_name = entry->value;
3288
0
    if (!new_name)
3289
0
      new_name = old_name;
3290
3291
    /*
3292
     * cached_pairs has *copies* of old_name and new_name,
3293
     * because it has to persist across merges.  Since
3294
     * pool_alloc_filespec() will just re-use the existing
3295
     * filenames, which will also get re-used by
3296
     * opt->priv->paths if they become renames, and then
3297
     * get freed at the end of the merge, that would leave
3298
     * the copy in cached_pairs dangling.  Avoid this by
3299
     * making a copy here.
3300
     */
3301
0
    old_name = mem_pool_strdup(&opt->priv->pool, old_name);
3302
0
    new_name = mem_pool_strdup(&opt->priv->pool, new_name);
3303
3304
    /* We don't care about oid/mode, only filenames and status */
3305
0
    one = pool_alloc_filespec(&opt->priv->pool, old_name);
3306
0
    two = pool_alloc_filespec(&opt->priv->pool, new_name);
3307
0
    pool_diff_queue(&opt->priv->pool, pairs, one, two);
3308
0
    pairs->queue[pairs->nr-1]->status = entry->value ? 'R' : 'D';
3309
0
  }
3310
0
}
3311
3312
static void cache_new_pair(struct rename_info *renames,
3313
         int side,
3314
         char *old_path,
3315
         char *new_path,
3316
         int free_old_value)
3317
0
{
3318
0
  char *old_value;
3319
0
  new_path = xstrdup(new_path);
3320
0
  old_value = strmap_put(&renames->cached_pairs[side],
3321
0
             old_path, new_path);
3322
0
  strset_add(&renames->cached_target_names[side], new_path);
3323
0
  if (free_old_value)
3324
0
    free(old_value);
3325
0
  else
3326
0
    assert(!old_value);
3327
0
}
3328
3329
static void possibly_cache_new_pair(struct rename_info *renames,
3330
            struct diff_filepair *p,
3331
            unsigned side,
3332
            char *new_path)
3333
0
{
3334
0
  int dir_renamed_side = 0;
3335
3336
0
  if (new_path) {
3337
    /*
3338
     * Directory renames happen on the other side of history from
3339
     * the side that adds new files to the old directory.
3340
     */
3341
0
    dir_renamed_side = 3 - side;
3342
0
  } else {
3343
0
    int val = strintmap_get(&renames->relevant_sources[side],
3344
0
          p->one->path);
3345
0
    if (val == RELEVANT_NO_MORE) {
3346
0
      assert(p->status == 'D');
3347
0
      strset_add(&renames->cached_irrelevant[side],
3348
0
           p->one->path);
3349
0
    }
3350
0
    if (val <= 0)
3351
0
      return;
3352
0
  }
3353
3354
0
  if (p->status == 'D') {
3355
    /*
3356
     * If we already had this delete, we'll just set it's value
3357
     * to NULL again, so no harm.
3358
     */
3359
0
    strmap_put(&renames->cached_pairs[side], p->one->path, NULL);
3360
0
  } else if (p->status == 'R') {
3361
0
    if (!new_path)
3362
0
      new_path = p->two->path;
3363
0
    else
3364
0
      cache_new_pair(renames, dir_renamed_side,
3365
0
               p->two->path, new_path, 0);
3366
0
    cache_new_pair(renames, side, p->one->path, new_path, 1);
3367
0
  } else if (p->status == 'A' && new_path) {
3368
0
    cache_new_pair(renames, dir_renamed_side,
3369
0
             p->two->path, new_path, 0);
3370
0
  }
3371
0
}
3372
3373
static int compare_pairs(const void *a_, const void *b_)
3374
0
{
3375
0
  const struct diff_filepair *a = *((const struct diff_filepair **)a_);
3376
0
  const struct diff_filepair *b = *((const struct diff_filepair **)b_);
3377
3378
0
  return strcmp(a->one->path, b->one->path);
3379
0
}
3380
3381
/* Call diffcore_rename() to update deleted/added pairs into rename pairs */
3382
static int detect_regular_renames(struct merge_options *opt,
3383
          unsigned side_index)
3384
0
{
3385
0
  struct diff_options diff_opts;
3386
0
  struct rename_info *renames = &opt->priv->renames;
3387
3388
0
  prune_cached_from_relevant(renames, side_index);
3389
0
  if (!possible_side_renames(renames, side_index)) {
3390
    /*
3391
     * No rename detection needed for this side, but we still need
3392
     * to make sure 'adds' are marked correctly in case the other
3393
     * side had directory renames.
3394
     */
3395
0
    resolve_diffpair_statuses(&renames->pairs[side_index]);
3396
0
    return 0;
3397
0
  }
3398
3399
0
  partial_clear_dir_rename_count(&renames->dir_rename_count[side_index]);
3400
0
  repo_diff_setup(opt->repo, &diff_opts);
3401
0
  diff_opts.flags.recursive = 1;
3402
0
  diff_opts.flags.rename_empty = 0;
3403
0
  diff_opts.detect_rename = DIFF_DETECT_RENAME;
3404
0
  diff_opts.rename_limit = opt->rename_limit;
3405
0
  if (opt->rename_limit <= 0)
3406
0
    diff_opts.rename_limit = 7000;
3407
0
  diff_opts.rename_score = opt->rename_score;
3408
0
  diff_opts.show_rename_progress = opt->show_rename_progress;
3409
0
  diff_opts.output_format = DIFF_FORMAT_NO_OUTPUT;
3410
0
  diff_setup_done(&diff_opts);
3411
3412
0
  diff_queued_diff = renames->pairs[side_index];
3413
0
  trace2_region_enter("diff", "diffcore_rename", opt->repo);
3414
0
  diffcore_rename_extended(&diff_opts,
3415
0
         &opt->priv->pool,
3416
0
         &renames->relevant_sources[side_index],
3417
0
         &renames->dirs_removed[side_index],
3418
0
         &renames->dir_rename_count[side_index],
3419
0
         &renames->cached_pairs[side_index]);
3420
0
  trace2_region_leave("diff", "diffcore_rename", opt->repo);
3421
0
  resolve_diffpair_statuses(&diff_queued_diff);
3422
3423
0
  if (diff_opts.needed_rename_limit > 0)
3424
0
    renames->redo_after_renames = 0;
3425
0
  if (diff_opts.needed_rename_limit > renames->needed_limit)
3426
0
    renames->needed_limit = diff_opts.needed_rename_limit;
3427
3428
0
  renames->pairs[side_index] = diff_queued_diff;
3429
3430
0
  diff_opts.output_format = DIFF_FORMAT_NO_OUTPUT;
3431
0
  diff_queued_diff.nr = 0;
3432
0
  diff_queued_diff.queue = NULL;
3433
0
  diff_flush(&diff_opts);
3434
3435
0
  return 1;
3436
0
}
3437
3438
/*
3439
 * Get information of all renames which occurred in 'side_pairs', making use
3440
 * of any implicit directory renames in side_dir_renames (also making use of
3441
 * implicit directory renames rename_exclusions as needed by
3442
 * check_for_directory_rename()).  Add all (updated) renames into result.
3443
 */
3444
static int collect_renames(struct merge_options *opt,
3445
         struct diff_queue_struct *result,
3446
         unsigned side_index,
3447
         struct strmap *collisions,
3448
         struct strmap *dir_renames_for_side,
3449
         struct strmap *rename_exclusions)
3450
0
{
3451
0
  int i, clean = 1;
3452
0
  struct diff_queue_struct *side_pairs;
3453
0
  struct rename_info *renames = &opt->priv->renames;
3454
3455
0
  side_pairs = &renames->pairs[side_index];
3456
3457
0
  for (i = 0; i < side_pairs->nr; ++i) {
3458
0
    struct diff_filepair *p = side_pairs->queue[i];
3459
0
    char *new_path; /* non-NULL only with directory renames */
3460
3461
0
    if (p->status != 'A' && p->status != 'R') {
3462
0
      possibly_cache_new_pair(renames, p, side_index, NULL);
3463
0
      pool_diff_free_filepair(&opt->priv->pool, p);
3464
0
      continue;
3465
0
    }
3466
0
    if (opt->detect_directory_renames == MERGE_DIRECTORY_RENAMES_NONE &&
3467
0
        p->status == 'R') {
3468
0
      possibly_cache_new_pair(renames, p, side_index, NULL);
3469
0
      goto skip_directory_renames;
3470
0
    }
3471
3472
0
    new_path = check_for_directory_rename(opt, p->two->path,
3473
0
                  side_index, p,
3474
0
                  dir_renames_for_side,
3475
0
                  rename_exclusions,
3476
0
                  collisions,
3477
0
                  &clean);
3478
3479
0
    possibly_cache_new_pair(renames, p, side_index, new_path);
3480
0
    if (p->status != 'R' && !new_path) {
3481
0
      pool_diff_free_filepair(&opt->priv->pool, p);
3482
0
      continue;
3483
0
    }
3484
3485
0
    if (new_path)
3486
0
      apply_directory_rename_modifications(opt, p, new_path);
3487
3488
0
skip_directory_renames:
3489
    /*
3490
     * p->score comes back from diffcore_rename_extended() with
3491
     * the similarity of the renamed file.  The similarity was
3492
     * used to determine that the two files were related and
3493
     * are a rename, which we have already used, but beyond
3494
     * that we have no use for the similarity.  So p->score is
3495
     * now irrelevant.  However, process_renames() will need to
3496
     * know which side of the merge this rename was associated
3497
     * with, so overwrite p->score with that value.
3498
     */
3499
0
    p->score = side_index;
3500
0
    result->queue[result->nr++] = p;
3501
0
  }
3502
3503
0
  return clean;
3504
0
}
3505
3506
static int detect_and_process_renames(struct merge_options *opt)
3507
0
{
3508
0
  struct diff_queue_struct combined = { 0 };
3509
0
  struct rename_info *renames = &opt->priv->renames;
3510
0
  struct strmap collisions[3];
3511
0
  int need_dir_renames, s, i, clean = 1;
3512
0
  unsigned detection_run = 0;
3513
3514
0
  if (!possible_renames(renames))
3515
0
    goto cleanup;
3516
0
  if (!opt->detect_renames) {
3517
0
    renames->redo_after_renames = 0;
3518
0
    renames->cached_pairs_valid_side = 0;
3519
0
    goto cleanup;
3520
0
  }
3521
3522
0
  trace2_region_enter("merge", "regular renames", opt->repo);
3523
0
  detection_run |= detect_regular_renames(opt, MERGE_SIDE1);
3524
0
  detection_run |= detect_regular_renames(opt, MERGE_SIDE2);
3525
0
  if (renames->needed_limit) {
3526
0
    renames->cached_pairs_valid_side = 0;
3527
0
    renames->redo_after_renames = 0;
3528
0
  }
3529
0
  if (renames->redo_after_renames && detection_run) {
3530
0
    int i, side;
3531
0
    struct diff_filepair *p;
3532
3533
    /* Cache the renames, we found */
3534
0
    for (side = MERGE_SIDE1; side <= MERGE_SIDE2; side++) {
3535
0
      for (i = 0; i < renames->pairs[side].nr; ++i) {
3536
0
        p = renames->pairs[side].queue[i];
3537
0
        possibly_cache_new_pair(renames, p, side, NULL);
3538
0
      }
3539
0
    }
3540
3541
    /* Restart the merge with the cached renames */
3542
0
    renames->redo_after_renames = 2;
3543
0
    trace2_region_leave("merge", "regular renames", opt->repo);
3544
0
    goto cleanup;
3545
0
  }
3546
0
  use_cached_pairs(opt, &renames->cached_pairs[1], &renames->pairs[1]);
3547
0
  use_cached_pairs(opt, &renames->cached_pairs[2], &renames->pairs[2]);
3548
0
  trace2_region_leave("merge", "regular renames", opt->repo);
3549
3550
0
  trace2_region_enter("merge", "directory renames", opt->repo);
3551
0
  need_dir_renames =
3552
0
    !opt->priv->call_depth &&
3553
0
    (opt->detect_directory_renames == MERGE_DIRECTORY_RENAMES_TRUE ||
3554
0
     opt->detect_directory_renames == MERGE_DIRECTORY_RENAMES_CONFLICT);
3555
3556
0
  if (need_dir_renames) {
3557
0
    get_provisional_directory_renames(opt, MERGE_SIDE1, &clean);
3558
0
    get_provisional_directory_renames(opt, MERGE_SIDE2, &clean);
3559
0
    handle_directory_level_conflicts(opt);
3560
0
  }
3561
3562
0
  ALLOC_GROW(combined.queue,
3563
0
       renames->pairs[1].nr + renames->pairs[2].nr,
3564
0
       combined.alloc);
3565
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; i++) {
3566
0
    int other_side = 3 - i;
3567
0
    compute_collisions(&collisions[i],
3568
0
           &renames->dir_renames[other_side],
3569
0
           &renames->pairs[i]);
3570
0
  }
3571
0
  clean &= collect_renames(opt, &combined, MERGE_SIDE1,
3572
0
         collisions,
3573
0
         &renames->dir_renames[2],
3574
0
         &renames->dir_renames[1]);
3575
0
  clean &= collect_renames(opt, &combined, MERGE_SIDE2,
3576
0
         collisions,
3577
0
         &renames->dir_renames[1],
3578
0
         &renames->dir_renames[2]);
3579
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; i++)
3580
0
    free_collisions(&collisions[i]);
3581
0
  STABLE_QSORT(combined.queue, combined.nr, compare_pairs);
3582
0
  trace2_region_leave("merge", "directory renames", opt->repo);
3583
3584
0
  trace2_region_enter("merge", "process renames", opt->repo);
3585
0
  clean &= process_renames(opt, &combined);
3586
0
  trace2_region_leave("merge", "process renames", opt->repo);
3587
3588
0
  goto simple_cleanup; /* collect_renames() handles some of cleanup */
3589
3590
0
cleanup:
3591
  /*
3592
   * Free now unneeded filepairs, which would have been handled
3593
   * in collect_renames() normally but we skipped that code.
3594
   */
3595
0
  for (s = MERGE_SIDE1; s <= MERGE_SIDE2; s++) {
3596
0
    struct diff_queue_struct *side_pairs;
3597
0
    int i;
3598
3599
0
    side_pairs = &renames->pairs[s];
3600
0
    for (i = 0; i < side_pairs->nr; ++i) {
3601
0
      struct diff_filepair *p = side_pairs->queue[i];
3602
0
      pool_diff_free_filepair(&opt->priv->pool, p);
3603
0
    }
3604
0
  }
3605
3606
0
simple_cleanup:
3607
  /* Free memory for renames->pairs[] and combined */
3608
0
  for (s = MERGE_SIDE1; s <= MERGE_SIDE2; s++) {
3609
0
    free(renames->pairs[s].queue);
3610
0
    diff_queue_init(&renames->pairs[s]);
3611
0
  }
3612
0
  for (i = 0; i < combined.nr; i++)
3613
0
    pool_diff_free_filepair(&opt->priv->pool, combined.queue[i]);
3614
0
  free(combined.queue);
3615
3616
0
  return clean;
3617
0
}
3618
3619
/*** Function Grouping: functions related to process_entries() ***/
3620
3621
static int sort_dirs_next_to_their_children(const char *one, const char *two)
3622
0
{
3623
0
  unsigned char c1, c2;
3624
3625
  /*
3626
   * Here we only care that entries for directories appear adjacent
3627
   * to and before files underneath the directory.  We can achieve
3628
   * that by pretending to add a trailing slash to every file and
3629
   * then sorting.  In other words, we do not want the natural
3630
   * sorting of
3631
   *     foo
3632
   *     foo.txt
3633
   *     foo/bar
3634
   * Instead, we want "foo" to sort as though it were "foo/", so that
3635
   * we instead get
3636
   *     foo.txt
3637
   *     foo
3638
   *     foo/bar
3639
   * To achieve this, we basically implement our own strcmp, except that
3640
   * if we get to the end of either string instead of comparing NUL to
3641
   * another character, we compare '/' to it.
3642
   *
3643
   * If this unusual "sort as though '/' were appended" perplexes
3644
   * you, perhaps it will help to note that this is not the final
3645
   * sort.  write_tree() will sort again without the trailing slash
3646
   * magic, but just on paths immediately under a given tree.
3647
   *
3648
   * The reason to not use df_name_compare directly was that it was
3649
   * just too expensive (we don't have the string lengths handy), so
3650
   * it was reimplemented.
3651
   */
3652
3653
  /*
3654
   * NOTE: This function will never be called with two equal strings,
3655
   * because it is used to sort the keys of a strmap, and strmaps have
3656
   * unique keys by construction.  That simplifies our c1==c2 handling
3657
   * below.
3658
   */
3659
3660
0
  while (*one && (*one == *two)) {
3661
0
    one++;
3662
0
    two++;
3663
0
  }
3664
3665
0
  c1 = *one ? *one : '/';
3666
0
  c2 = *two ? *two : '/';
3667
3668
0
  if (c1 == c2) {
3669
    /* Getting here means one is a leading directory of the other */
3670
0
    return (*one) ? 1 : -1;
3671
0
  } else
3672
0
    return c1 - c2;
3673
0
}
3674
3675
static int read_oid_strbuf(struct merge_options *opt,
3676
         const struct object_id *oid,
3677
         struct strbuf *dst,
3678
         const char *path)
3679
0
{
3680
0
  void *buf;
3681
0
  enum object_type type;
3682
0
  unsigned long size;
3683
0
  buf = odb_read_object(the_repository->objects, oid, &type, &size);
3684
0
  if (!buf) {
3685
0
    path_msg(opt, ERROR_OBJECT_READ_FAILED, 0,
3686
0
       path, NULL, NULL, NULL,
3687
0
       _("error: cannot read object %s"), oid_to_hex(oid));
3688
0
    return -1;
3689
0
  }
3690
0
  if (type != OBJ_BLOB) {
3691
0
    free(buf);
3692
0
    path_msg(opt, ERROR_OBJECT_NOT_A_BLOB, 0,
3693
0
       path, NULL, NULL, NULL,
3694
0
       _("error: object %s is not a blob"), oid_to_hex(oid));
3695
0
    return -1;
3696
0
  }
3697
0
  strbuf_attach(dst, buf, size, size + 1);
3698
0
  return 0;
3699
0
}
3700
3701
static int blob_unchanged(struct merge_options *opt,
3702
        const struct version_info *base,
3703
        const struct version_info *side,
3704
        const char *path)
3705
0
{
3706
0
  struct strbuf basebuf = STRBUF_INIT;
3707
0
  struct strbuf sidebuf = STRBUF_INIT;
3708
0
  int ret = 0; /* assume changed for safety */
3709
0
  struct index_state *idx = &opt->priv->attr_index;
3710
3711
0
  if (!idx->initialized)
3712
0
    initialize_attr_index(opt);
3713
3714
0
  if (base->mode != side->mode)
3715
0
    return 0;
3716
0
  if (oideq(&base->oid, &side->oid))
3717
0
    return 1;
3718
3719
0
  if (read_oid_strbuf(opt, &base->oid, &basebuf, path) ||
3720
0
      read_oid_strbuf(opt, &side->oid, &sidebuf, path))
3721
0
    goto error_return;
3722
  /*
3723
   * Note: binary | is used so that both renormalizations are
3724
   * performed.  Comparison can be skipped if both files are
3725
   * unchanged since their sha1s have already been compared.
3726
   */
3727
0
  if (renormalize_buffer(idx, path, basebuf.buf, basebuf.len, &basebuf) |
3728
0
      renormalize_buffer(idx, path, sidebuf.buf, sidebuf.len, &sidebuf))
3729
0
    ret = (basebuf.len == sidebuf.len &&
3730
0
           !memcmp(basebuf.buf, sidebuf.buf, basebuf.len));
3731
3732
0
error_return:
3733
0
  strbuf_release(&basebuf);
3734
0
  strbuf_release(&sidebuf);
3735
0
  return ret;
3736
0
}
3737
3738
struct directory_versions {
3739
  /*
3740
   * versions: list of (basename -> version_info)
3741
   *
3742
   * The basenames are in reverse lexicographic order of full pathnames,
3743
   * as processed in process_entries().  This puts all entries within
3744
   * a directory together, and covers the directory itself after
3745
   * everything within it, allowing us to write subtrees before needing
3746
   * to record information for the tree itself.
3747
   */
3748
  struct string_list versions;
3749
3750
  /*
3751
   * offsets: list of (full relative path directories -> integer offsets)
3752
   *
3753
   * Since versions contains basenames from files in multiple different
3754
   * directories, we need to know which entries in versions correspond
3755
   * to which directories.  Values of e.g.
3756
   *     ""             0
3757
   *     src            2
3758
   *     src/moduleA    5
3759
   * Would mean that entries 0-1 of versions are files in the toplevel
3760
   * directory, entries 2-4 are files under src/, and the remaining
3761
   * entries starting at index 5 are files under src/moduleA/.
3762
   */
3763
  struct string_list offsets;
3764
3765
  /*
3766
   * last_directory: directory that previously processed file found in
3767
   *
3768
   * last_directory starts NULL, but records the directory in which the
3769
   * previous file was found within.  As soon as
3770
   *    directory(current_file) != last_directory
3771
   * then we need to start updating accounting in versions & offsets.
3772
   * Note that last_directory is always the last path in "offsets" (or
3773
   * NULL if "offsets" is empty) so this exists just for quick access.
3774
   */
3775
  const char *last_directory;
3776
3777
  /* last_directory_len: cached computation of strlen(last_directory) */
3778
  unsigned last_directory_len;
3779
};
3780
3781
static int tree_entry_order(const void *a_, const void *b_)
3782
0
{
3783
0
  const struct string_list_item *a = a_;
3784
0
  const struct string_list_item *b = b_;
3785
3786
0
  const struct merged_info *ami = a->util;
3787
0
  const struct merged_info *bmi = b->util;
3788
0
  return base_name_compare(a->string, strlen(a->string), ami->result.mode,
3789
0
         b->string, strlen(b->string), bmi->result.mode);
3790
0
}
3791
3792
static int write_tree(struct object_id *result_oid,
3793
          struct string_list *versions,
3794
          unsigned int offset,
3795
          size_t hash_size)
3796
0
{
3797
0
  size_t maxlen = 0, extra;
3798
0
  unsigned int nr;
3799
0
  struct strbuf buf = STRBUF_INIT;
3800
0
  int i, ret = 0;
3801
3802
0
  assert(offset <= versions->nr);
3803
0
  nr = versions->nr - offset;
3804
0
  if (versions->nr)
3805
    /* No need for STABLE_QSORT -- filenames must be unique */
3806
0
    QSORT(versions->items + offset, nr, tree_entry_order);
3807
3808
  /* Pre-allocate some space in buf */
3809
0
  extra = hash_size + 8; /* 8: 6 for mode, 1 for space, 1 for NUL char */
3810
0
  for (i = 0; i < nr; i++) {
3811
0
    maxlen += strlen(versions->items[offset+i].string) + extra;
3812
0
  }
3813
0
  strbuf_grow(&buf, maxlen);
3814
3815
  /* Write each entry out to buf */
3816
0
  for (i = 0; i < nr; i++) {
3817
0
    struct merged_info *mi = versions->items[offset+i].util;
3818
0
    struct version_info *ri = &mi->result;
3819
0
    strbuf_addf(&buf, "%o %s%c",
3820
0
          ri->mode,
3821
0
          versions->items[offset+i].string, '\0');
3822
0
    strbuf_add(&buf, ri->oid.hash, hash_size);
3823
0
  }
3824
3825
  /* Write this object file out, and record in result_oid */
3826
0
  if (odb_write_object(the_repository->objects, buf.buf,
3827
0
           buf.len, OBJ_TREE, result_oid))
3828
0
    ret = -1;
3829
0
  strbuf_release(&buf);
3830
0
  return ret;
3831
0
}
3832
3833
static void record_entry_for_tree(struct directory_versions *dir_metadata,
3834
          const char *path,
3835
          struct merged_info *mi)
3836
0
{
3837
0
  const char *basename;
3838
3839
0
  if (mi->is_null)
3840
    /* nothing to record */
3841
0
    return;
3842
3843
0
  basename = path + mi->basename_offset;
3844
0
  assert(strchr(basename, '/') == NULL);
3845
0
  string_list_append(&dir_metadata->versions,
3846
0
         basename)->util = &mi->result;
3847
0
}
3848
3849
static int write_completed_directory(struct merge_options *opt,
3850
             const char *new_directory_name,
3851
             struct directory_versions *info)
3852
0
{
3853
0
  const char *prev_dir;
3854
0
  struct merged_info *dir_info = NULL;
3855
0
  unsigned int offset, ret = 0;
3856
3857
  /*
3858
   * Some explanation of info->versions and info->offsets...
3859
   *
3860
   * process_entries() iterates over all relevant files AND
3861
   * directories in reverse lexicographic order, and calls this
3862
   * function.  Thus, an example of the paths that process_entries()
3863
   * could operate on (along with the directories for those paths
3864
   * being shown) is:
3865
   *
3866
   *     xtract.c             ""
3867
   *     tokens.txt           ""
3868
   *     src/moduleB/umm.c    src/moduleB
3869
   *     src/moduleB/stuff.h  src/moduleB
3870
   *     src/moduleB/baz.c    src/moduleB
3871
   *     src/moduleB          src
3872
   *     src/moduleA/foo.c    src/moduleA
3873
   *     src/moduleA/bar.c    src/moduleA
3874
   *     src/moduleA          src
3875
   *     src                  ""
3876
   *     Makefile             ""
3877
   *
3878
   * info->versions:
3879
   *
3880
   *     always contains the unprocessed entries and their
3881
   *     version_info information.  For example, after the first five
3882
   *     entries above, info->versions would be:
3883
   *
3884
   *         xtract.c     <xtract.c's version_info>
3885
   *         token.txt    <token.txt's version_info>
3886
   *         umm.c        <src/moduleB/umm.c's version_info>
3887
   *         stuff.h      <src/moduleB/stuff.h's version_info>
3888
   *         baz.c        <src/moduleB/baz.c's version_info>
3889
   *
3890
   *     Once a subdirectory is completed we remove the entries in
3891
   *     that subdirectory from info->versions, writing it as a tree
3892
   *     (write_tree()).  Thus, as soon as we get to src/moduleB,
3893
   *     info->versions would be updated to
3894
   *
3895
   *         xtract.c     <xtract.c's version_info>
3896
   *         token.txt    <token.txt's version_info>
3897
   *         moduleB      <src/moduleB's version_info>
3898
   *
3899
   * info->offsets:
3900
   *
3901
   *     helps us track which entries in info->versions correspond to
3902
   *     which directories.  When we are N directories deep (e.g. 4
3903
   *     for src/modA/submod/subdir/), we have up to N+1 unprocessed
3904
   *     directories (+1 because of toplevel dir).  Corresponding to
3905
   *     the info->versions example above, after processing five entries
3906
   *     info->offsets will be:
3907
   *
3908
   *         ""           0
3909
   *         src/moduleB  2
3910
   *
3911
   *     which is used to know that xtract.c & token.txt are from the
3912
   *     toplevel directory, while umm.c & stuff.h & baz.c are from the
3913
   *     src/moduleB directory.  Again, following the example above,
3914
   *     once we need to process src/moduleB, then info->offsets is
3915
   *     updated to
3916
   *
3917
   *         ""           0
3918
   *         src          2
3919
   *
3920
   *     which says that moduleB (and only moduleB so far) is in the
3921
   *     src directory.
3922
   *
3923
   *     One unique thing to note about info->offsets here is that
3924
   *     "src" was not added to info->offsets until there was a path
3925
   *     (a file OR directory) immediately below src/ that got
3926
   *     processed.
3927
   *
3928
   * Since process_entry() just appends new entries to info->versions,
3929
   * write_completed_directory() only needs to do work if the next path
3930
   * is in a directory that is different than the last directory found
3931
   * in info->offsets.
3932
   */
3933
3934
  /*
3935
   * If we are working with the same directory as the last entry, there
3936
   * is no work to do.  (See comments above the directory_name member of
3937
   * struct merged_info for why we can use pointer comparison instead of
3938
   * strcmp here.)
3939
   */
3940
0
  if (new_directory_name == info->last_directory)
3941
0
    return 0;
3942
3943
  /*
3944
   * If we are just starting (last_directory is NULL), or last_directory
3945
   * is a prefix of the current directory, then we can just update
3946
   * info->offsets to record the offset where we started this directory
3947
   * and update last_directory to have quick access to it.
3948
   */
3949
0
  if (info->last_directory == NULL ||
3950
0
      !strncmp(new_directory_name, info->last_directory,
3951
0
         info->last_directory_len)) {
3952
0
    uintptr_t offset = info->versions.nr;
3953
3954
0
    info->last_directory = new_directory_name;
3955
0
    info->last_directory_len = strlen(info->last_directory);
3956
    /*
3957
     * Record the offset into info->versions where we will
3958
     * start recording basenames of paths found within
3959
     * new_directory_name.
3960
     */
3961
0
    string_list_append(&info->offsets,
3962
0
           info->last_directory)->util = (void*)offset;
3963
0
    return 0;
3964
0
  }
3965
3966
  /*
3967
   * The next entry that will be processed will be within
3968
   * new_directory_name.  Since at this point we know that
3969
   * new_directory_name is within a different directory than
3970
   * info->last_directory, we have all entries for info->last_directory
3971
   * in info->versions and we need to create a tree object for them.
3972
   */
3973
0
  dir_info = strmap_get(&opt->priv->paths, info->last_directory);
3974
0
  assert(dir_info);
3975
0
  offset = (uintptr_t)info->offsets.items[info->offsets.nr-1].util;
3976
0
  if (offset == info->versions.nr) {
3977
    /*
3978
     * Actually, we don't need to create a tree object in this
3979
     * case.  Whenever all files within a directory disappear
3980
     * during the merge (e.g. unmodified on one side and
3981
     * deleted on the other, or files were renamed elsewhere),
3982
     * then we get here and the directory itself needs to be
3983
     * omitted from its parent tree as well.
3984
     */
3985
0
    dir_info->is_null = 1;
3986
0
  } else {
3987
    /*
3988
     * Write out the tree to the git object directory, and also
3989
     * record the mode and oid in dir_info->result.
3990
     */
3991
0
    int record_tree = (!opt->mergeability_only ||
3992
0
           opt->priv->call_depth);
3993
0
    dir_info->is_null = 0;
3994
0
    dir_info->result.mode = S_IFDIR;
3995
0
    if (record_tree &&
3996
0
        write_tree(&dir_info->result.oid, &info->versions, offset,
3997
0
             opt->repo->hash_algo->rawsz) < 0)
3998
0
      ret = -1;
3999
0
  }
4000
4001
  /*
4002
   * We've now used several entries from info->versions and one entry
4003
   * from info->offsets, so we get rid of those values.
4004
   */
4005
0
  info->offsets.nr--;
4006
0
  info->versions.nr = offset;
4007
4008
  /*
4009
   * Now we've taken care of the completed directory, but we need to
4010
   * prepare things since future entries will be in
4011
   * new_directory_name.  (In particular, process_entry() will be
4012
   * appending new entries to info->versions.)  So, we need to make
4013
   * sure new_directory_name is the last entry in info->offsets.
4014
   */
4015
0
  prev_dir = info->offsets.nr == 0 ? NULL :
4016
0
       info->offsets.items[info->offsets.nr-1].string;
4017
0
  if (new_directory_name != prev_dir) {
4018
0
    uintptr_t c = info->versions.nr;
4019
0
    string_list_append(&info->offsets,
4020
0
           new_directory_name)->util = (void*)c;
4021
0
  }
4022
4023
  /* And, of course, we need to update last_directory to match. */
4024
0
  info->last_directory = new_directory_name;
4025
0
  info->last_directory_len = strlen(info->last_directory);
4026
4027
0
  return ret;
4028
0
}
4029
4030
/* Per entry merge function */
4031
static int process_entry(struct merge_options *opt,
4032
       const char *path,
4033
       struct conflict_info *ci,
4034
       struct directory_versions *dir_metadata)
4035
0
{
4036
0
  int df_file_index = 0;
4037
4038
0
  VERIFY_CI(ci);
4039
0
  assert(ci->filemask >= 0 && ci->filemask <= 7);
4040
  /* ci->match_mask == 7 was handled in collect_merge_info_callback() */
4041
0
  assert(ci->match_mask == 0 || ci->match_mask == 3 ||
4042
0
         ci->match_mask == 5 || ci->match_mask == 6);
4043
4044
0
  if (ci->dirmask) {
4045
0
    record_entry_for_tree(dir_metadata, path, &ci->merged);
4046
0
    if (ci->filemask == 0)
4047
      /* nothing else to handle */
4048
0
      return 0;
4049
0
    assert(ci->df_conflict);
4050
0
  }
4051
4052
0
  if (ci->df_conflict && ci->merged.result.mode == 0) {
4053
0
    int i;
4054
4055
    /*
4056
     * directory no longer in the way, but we do have a file we
4057
     * need to place here so we need to clean away the "directory
4058
     * merges to nothing" result.
4059
     */
4060
0
    ci->df_conflict = 0;
4061
0
    assert(ci->filemask != 0);
4062
0
    ci->merged.clean = 0;
4063
0
    ci->merged.is_null = 0;
4064
    /* and we want to zero out any directory-related entries */
4065
0
    ci->match_mask = (ci->match_mask & ~ci->dirmask);
4066
0
    ci->dirmask = 0;
4067
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
4068
0
      if (ci->filemask & (1 << i))
4069
0
        continue;
4070
0
      ci->stages[i].mode = 0;
4071
0
      oidcpy(&ci->stages[i].oid, null_oid(the_hash_algo));
4072
0
    }
4073
0
  } else if (ci->df_conflict && ci->merged.result.mode != 0) {
4074
    /*
4075
     * This started out as a D/F conflict, and the entries in
4076
     * the competing directory were not removed by the merge as
4077
     * evidenced by write_completed_directory() writing a value
4078
     * to ci->merged.result.mode.
4079
     */
4080
0
    struct conflict_info *new_ci;
4081
0
    const char *branch;
4082
0
    const char *old_path = path;
4083
0
    int i;
4084
4085
0
    assert(ci->merged.result.mode == S_IFDIR);
4086
4087
    /*
4088
     * If filemask is 1, we can just ignore the file as having
4089
     * been deleted on both sides.  We do not want to overwrite
4090
     * ci->merged.result, since it stores the tree for all the
4091
     * files under it.
4092
     */
4093
0
    if (ci->filemask == 1) {
4094
0
      ci->filemask = 0;
4095
0
      return 0;
4096
0
    }
4097
4098
    /*
4099
     * This file still exists on at least one side, and we want
4100
     * the directory to remain here, so we need to move this
4101
     * path to some new location.
4102
     */
4103
0
    new_ci = mem_pool_calloc(&opt->priv->pool, 1, sizeof(*new_ci));
4104
4105
    /* We don't really want new_ci->merged.result copied, but it'll
4106
     * be overwritten below so it doesn't matter.  We also don't
4107
     * want any directory mode/oid values copied, but we'll zero
4108
     * those out immediately.  We do want the rest of ci copied.
4109
     */
4110
0
    memcpy(new_ci, ci, sizeof(*ci));
4111
0
    new_ci->match_mask = (new_ci->match_mask & ~new_ci->dirmask);
4112
0
    new_ci->dirmask = 0;
4113
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
4114
0
      if (new_ci->filemask & (1 << i))
4115
0
        continue;
4116
      /* zero out any entries related to directories */
4117
0
      new_ci->stages[i].mode = 0;
4118
0
      oidcpy(&new_ci->stages[i].oid, null_oid(the_hash_algo));
4119
0
    }
4120
4121
    /*
4122
     * Find out which side this file came from; note that we
4123
     * cannot just use ci->filemask, because renames could cause
4124
     * the filemask to go back to 7.  So we use dirmask, then
4125
     * pick the opposite side's index.
4126
     */
4127
0
    df_file_index = (ci->dirmask & (1 << 1)) ? 2 : 1;
4128
0
    branch = (df_file_index == 1) ? opt->branch1 : opt->branch2;
4129
0
    path = unique_path(opt, path, branch);
4130
0
    strmap_put(&opt->priv->paths, path, new_ci);
4131
4132
0
    path_msg(opt, CONFLICT_FILE_DIRECTORY, 0,
4133
0
       path, old_path, NULL, NULL,
4134
0
       _("CONFLICT (file/directory): directory in the way "
4135
0
         "of %s from %s; moving it to %s instead."),
4136
0
       old_path, branch, path);
4137
4138
    /*
4139
     * Zero out the filemask for the old ci.  At this point, ci
4140
     * was just an entry for a directory, so we don't need to
4141
     * do anything more with it.
4142
     */
4143
0
    ci->filemask = 0;
4144
4145
    /*
4146
     * Now note that we're working on the new entry (path was
4147
     * updated above.
4148
     */
4149
0
    ci = new_ci;
4150
0
  }
4151
4152
  /*
4153
   * NOTE: Below there is a long switch-like if-elseif-elseif... block
4154
   *       which the code goes through even for the df_conflict cases
4155
   *       above.
4156
   */
4157
0
  if (ci->match_mask) {
4158
0
    ci->merged.clean = !ci->df_conflict && !ci->path_conflict;
4159
0
    if (ci->match_mask == 6) {
4160
      /* stages[1] == stages[2] */
4161
0
      ci->merged.result.mode = ci->stages[1].mode;
4162
0
      oidcpy(&ci->merged.result.oid, &ci->stages[1].oid);
4163
0
    } else {
4164
      /* determine the mask of the side that didn't match */
4165
0
      unsigned int othermask = 7 & ~ci->match_mask;
4166
0
      int side = (othermask == 4) ? 2 : 1;
4167
4168
0
      ci->merged.result.mode = ci->stages[side].mode;
4169
0
      ci->merged.is_null = !ci->merged.result.mode;
4170
0
      if (ci->merged.is_null)
4171
0
        ci->merged.clean = 1;
4172
0
      oidcpy(&ci->merged.result.oid, &ci->stages[side].oid);
4173
4174
0
      assert(othermask == 2 || othermask == 4);
4175
0
      assert(ci->merged.is_null ==
4176
0
             (ci->filemask == ci->match_mask));
4177
0
    }
4178
0
  } else if (ci->filemask >= 6 &&
4179
0
       (S_IFMT & ci->stages[1].mode) !=
4180
0
       (S_IFMT & ci->stages[2].mode)) {
4181
    /* Two different items from (file/submodule/symlink) */
4182
0
    if (opt->priv->call_depth) {
4183
      /* Just use the version from the merge base */
4184
0
      ci->merged.clean = 0;
4185
0
      oidcpy(&ci->merged.result.oid, &ci->stages[0].oid);
4186
0
      ci->merged.result.mode = ci->stages[0].mode;
4187
0
      ci->merged.is_null = (ci->merged.result.mode == 0);
4188
0
    } else {
4189
      /* Handle by renaming one or both to separate paths. */
4190
0
      unsigned o_mode = ci->stages[0].mode;
4191
0
      unsigned a_mode = ci->stages[1].mode;
4192
0
      unsigned b_mode = ci->stages[2].mode;
4193
0
      struct conflict_info *new_ci;
4194
0
      const char *a_path = NULL, *b_path = NULL;
4195
0
      int rename_a = 0, rename_b = 0;
4196
4197
0
      new_ci = mem_pool_alloc(&opt->priv->pool,
4198
0
            sizeof(*new_ci));
4199
4200
0
      if (S_ISREG(a_mode))
4201
0
        rename_a = 1;
4202
0
      else if (S_ISREG(b_mode))
4203
0
        rename_b = 1;
4204
0
      else {
4205
0
        rename_a = 1;
4206
0
        rename_b = 1;
4207
0
      }
4208
4209
0
      if (rename_a)
4210
0
        a_path = unique_path(opt, path, opt->branch1);
4211
0
      if (rename_b)
4212
0
        b_path = unique_path(opt, path, opt->branch2);
4213
4214
0
      if (rename_a && rename_b) {
4215
0
        path_msg(opt, CONFLICT_DISTINCT_MODES, 0,
4216
0
           path, a_path, b_path, NULL,
4217
0
           _("CONFLICT (distinct types): %s had "
4218
0
             "different types on each side; "
4219
0
             "renamed both of them so each can "
4220
0
             "be recorded somewhere."),
4221
0
           path);
4222
0
      } else {
4223
0
        path_msg(opt, CONFLICT_DISTINCT_MODES, 0,
4224
0
           path, rename_a ? a_path : b_path,
4225
0
           NULL, NULL,
4226
0
           _("CONFLICT (distinct types): %s had "
4227
0
             "different types on each side; "
4228
0
             "renamed one of them so each can be "
4229
0
             "recorded somewhere."),
4230
0
           path);
4231
0
      }
4232
4233
0
      ci->merged.clean = 0;
4234
0
      memcpy(new_ci, ci, sizeof(*new_ci));
4235
4236
      /* Put b into new_ci, removing a from stages */
4237
0
      new_ci->merged.result.mode = ci->stages[2].mode;
4238
0
      oidcpy(&new_ci->merged.result.oid, &ci->stages[2].oid);
4239
0
      new_ci->stages[1].mode = 0;
4240
0
      oidcpy(&new_ci->stages[1].oid, null_oid(the_hash_algo));
4241
0
      new_ci->filemask = 5;
4242
0
      if ((S_IFMT & b_mode) != (S_IFMT & o_mode)) {
4243
0
        new_ci->stages[0].mode = 0;
4244
0
        oidcpy(&new_ci->stages[0].oid, null_oid(the_hash_algo));
4245
0
        new_ci->filemask = 4;
4246
0
      }
4247
4248
      /* Leave only a in ci, fixing stages. */
4249
0
      ci->merged.result.mode = ci->stages[1].mode;
4250
0
      oidcpy(&ci->merged.result.oid, &ci->stages[1].oid);
4251
0
      ci->stages[2].mode = 0;
4252
0
      oidcpy(&ci->stages[2].oid, null_oid(the_hash_algo));
4253
0
      ci->filemask = 3;
4254
0
      if ((S_IFMT & a_mode) != (S_IFMT & o_mode)) {
4255
0
        ci->stages[0].mode = 0;
4256
0
        oidcpy(&ci->stages[0].oid, null_oid(the_hash_algo));
4257
0
        ci->filemask = 2;
4258
0
      }
4259
4260
      /* Insert entries into opt->priv_paths */
4261
0
      assert(rename_a || rename_b);
4262
0
      if (rename_a)
4263
0
        strmap_put(&opt->priv->paths, a_path, ci);
4264
4265
0
      if (!rename_b)
4266
0
        b_path = path;
4267
0
      strmap_put(&opt->priv->paths, b_path, new_ci);
4268
4269
0
      if (rename_a && rename_b)
4270
0
        strmap_remove(&opt->priv->paths, path, 0);
4271
4272
      /*
4273
       * Do special handling for b_path since process_entry()
4274
       * won't be called on it specially.
4275
       */
4276
0
      strmap_put(&opt->priv->conflicted, b_path, new_ci);
4277
0
      record_entry_for_tree(dir_metadata, b_path,
4278
0
                &new_ci->merged);
4279
4280
      /*
4281
       * Remaining code for processing this entry should
4282
       * think in terms of processing a_path.
4283
       */
4284
0
      if (a_path)
4285
0
        path = a_path;
4286
0
    }
4287
0
  } else if (ci->filemask >= 6) {
4288
    /* Need a two-way or three-way content merge */
4289
0
    struct version_info merged_file;
4290
0
    int clean_merge;
4291
0
    struct version_info *o = &ci->stages[0];
4292
0
    struct version_info *a = &ci->stages[1];
4293
0
    struct version_info *b = &ci->stages[2];
4294
0
    int record_object = (!opt->mergeability_only ||
4295
0
             opt->priv->call_depth);
4296
4297
0
    clean_merge = handle_content_merge(opt, path, o, a, b,
4298
0
               ci->pathnames,
4299
0
               opt->priv->call_depth * 2,
4300
0
               record_object,
4301
0
               &merged_file);
4302
0
    if (clean_merge < 0)
4303
0
      return -1;
4304
0
    ci->merged.clean = clean_merge &&
4305
0
           !ci->df_conflict && !ci->path_conflict;
4306
0
    ci->merged.result.mode = merged_file.mode;
4307
0
    ci->merged.is_null = (merged_file.mode == 0);
4308
0
    oidcpy(&ci->merged.result.oid, &merged_file.oid);
4309
0
    if (clean_merge && ci->df_conflict) {
4310
0
      assert(df_file_index == 1 || df_file_index == 2);
4311
0
      ci->filemask = 1 << df_file_index;
4312
0
      ci->stages[df_file_index].mode = merged_file.mode;
4313
0
      oidcpy(&ci->stages[df_file_index].oid, &merged_file.oid);
4314
0
    }
4315
0
    if (!clean_merge) {
4316
0
      const char *reason = _("content");
4317
0
      if (ci->filemask == 6)
4318
0
        reason = _("add/add");
4319
0
      if (S_ISGITLINK(merged_file.mode))
4320
0
        reason = _("submodule");
4321
0
      path_msg(opt, CONFLICT_CONTENTS, 0,
4322
0
         path, NULL, NULL, NULL,
4323
0
         _("CONFLICT (%s): Merge conflict in %s"),
4324
0
         reason, path);
4325
0
    }
4326
0
  } else if (ci->filemask == 3 || ci->filemask == 5) {
4327
    /* Modify/delete */
4328
0
    const char *modify_branch, *delete_branch;
4329
0
    int side = (ci->filemask == 5) ? 2 : 1;
4330
0
    int index = opt->priv->call_depth ? 0 : side;
4331
4332
0
    ci->merged.result.mode = ci->stages[index].mode;
4333
0
    oidcpy(&ci->merged.result.oid, &ci->stages[index].oid);
4334
0
    ci->merged.clean = 0;
4335
4336
0
    modify_branch = (side == 1) ? opt->branch1 : opt->branch2;
4337
0
    delete_branch = (side == 1) ? opt->branch2 : opt->branch1;
4338
4339
0
    if (opt->renormalize &&
4340
0
        blob_unchanged(opt, &ci->stages[0], &ci->stages[side],
4341
0
           path)) {
4342
0
      if (!ci->path_conflict) {
4343
        /*
4344
         * Blob unchanged after renormalization, so
4345
         * there's no modify/delete conflict after all;
4346
         * we can just remove the file.
4347
         */
4348
0
        ci->merged.is_null = 1;
4349
0
        ci->merged.clean = 1;
4350
         /*
4351
          * file goes away => even if there was a
4352
          * directory/file conflict there isn't one now.
4353
          */
4354
0
        ci->df_conflict = 0;
4355
0
      } else {
4356
        /* rename/delete, so conflict remains */
4357
0
      }
4358
0
    } else if (ci->path_conflict &&
4359
0
         oideq(&ci->stages[0].oid, &ci->stages[side].oid)) {
4360
      /*
4361
       * This came from a rename/delete; no action to take,
4362
       * but avoid printing "modify/delete" conflict notice
4363
       * since the contents were not modified.
4364
       */
4365
0
    } else {
4366
0
      path_msg(opt, CONFLICT_MODIFY_DELETE, 0,
4367
0
         path, NULL, NULL, NULL,
4368
0
         _("CONFLICT (modify/delete): %s deleted in %s "
4369
0
           "and modified in %s.  Version %s of %s left "
4370
0
           "in tree."),
4371
0
         path, delete_branch, modify_branch,
4372
0
         modify_branch, path);
4373
0
    }
4374
0
  } else if (ci->filemask == 2 || ci->filemask == 4) {
4375
    /* Added on one side */
4376
0
    int side = (ci->filemask == 4) ? 2 : 1;
4377
0
    ci->merged.result.mode = ci->stages[side].mode;
4378
0
    oidcpy(&ci->merged.result.oid, &ci->stages[side].oid);
4379
0
    ci->merged.clean = !ci->df_conflict && !ci->path_conflict;
4380
0
  } else if (ci->filemask == 1) {
4381
    /* Deleted on both sides */
4382
0
    ci->merged.is_null = 1;
4383
0
    ci->merged.result.mode = 0;
4384
0
    oidcpy(&ci->merged.result.oid, null_oid(the_hash_algo));
4385
0
    assert(!ci->df_conflict);
4386
0
    ci->merged.clean = !ci->path_conflict;
4387
0
  }
4388
4389
  /*
4390
   * If still conflicted, record it separately.  This allows us to later
4391
   * iterate over just conflicted entries when updating the index instead
4392
   * of iterating over all entries.
4393
   */
4394
0
  if (!ci->merged.clean)
4395
0
    strmap_put(&opt->priv->conflicted, path, ci);
4396
4397
  /* Record metadata for ci->merged in dir_metadata */
4398
0
  record_entry_for_tree(dir_metadata, path, &ci->merged);
4399
0
  return 0;
4400
0
}
4401
4402
static void prefetch_for_content_merges(struct merge_options *opt,
4403
          struct string_list *plist)
4404
0
{
4405
0
  struct string_list_item *e;
4406
0
  struct oid_array to_fetch = OID_ARRAY_INIT;
4407
4408
0
  if (opt->repo != the_repository || !repo_has_promisor_remote(the_repository))
4409
0
    return;
4410
4411
0
  for (e = &plist->items[plist->nr-1]; e >= plist->items; --e) {
4412
    /* char *path = e->string; */
4413
0
    struct conflict_info *ci = e->util;
4414
0
    int i;
4415
4416
    /* Ignore clean entries */
4417
0
    if (ci->merged.clean)
4418
0
      continue;
4419
4420
    /* Ignore entries that don't need a content merge */
4421
0
    if (ci->match_mask || ci->filemask < 6 ||
4422
0
        !S_ISREG(ci->stages[1].mode) ||
4423
0
        !S_ISREG(ci->stages[2].mode) ||
4424
0
        oideq(&ci->stages[1].oid, &ci->stages[2].oid))
4425
0
      continue;
4426
4427
    /* Also don't need content merge if base matches either side */
4428
0
    if (ci->filemask == 7 &&
4429
0
        S_ISREG(ci->stages[0].mode) &&
4430
0
        (oideq(&ci->stages[0].oid, &ci->stages[1].oid) ||
4431
0
         oideq(&ci->stages[0].oid, &ci->stages[2].oid)))
4432
0
      continue;
4433
4434
0
    for (i = 0; i < 3; i++) {
4435
0
      unsigned side_mask = (1 << i);
4436
0
      struct version_info *vi = &ci->stages[i];
4437
4438
0
      if ((ci->filemask & side_mask) &&
4439
0
          S_ISREG(vi->mode) &&
4440
0
          odb_read_object_info_extended(opt->repo->objects, &vi->oid, NULL,
4441
0
                OBJECT_INFO_FOR_PREFETCH))
4442
0
        oid_array_append(&to_fetch, &vi->oid);
4443
0
    }
4444
0
  }
4445
4446
0
  promisor_remote_get_direct(opt->repo, to_fetch.oid, to_fetch.nr);
4447
0
  oid_array_clear(&to_fetch);
4448
0
}
4449
4450
static int process_entries(struct merge_options *opt,
4451
         struct object_id *result_oid)
4452
0
{
4453
0
  struct hashmap_iter iter;
4454
0
  struct strmap_entry *e;
4455
0
  struct string_list plist = STRING_LIST_INIT_NODUP;
4456
0
  struct string_list_item *entry;
4457
0
  struct directory_versions dir_metadata = { STRING_LIST_INIT_NODUP,
4458
0
               STRING_LIST_INIT_NODUP,
4459
0
               NULL, 0 };
4460
0
  int ret = 0;
4461
0
  const int record_tree = (!opt->mergeability_only ||
4462
0
         opt->priv->call_depth);
4463
4464
0
  trace2_region_enter("merge", "process_entries setup", opt->repo);
4465
0
  if (strmap_empty(&opt->priv->paths)) {
4466
0
    oidcpy(result_oid, opt->repo->hash_algo->empty_tree);
4467
0
    return 0;
4468
0
  }
4469
4470
  /* Hack to pre-allocate plist to the desired size */
4471
0
  trace2_region_enter("merge", "plist grow", opt->repo);
4472
0
  ALLOC_GROW(plist.items, strmap_get_size(&opt->priv->paths), plist.alloc);
4473
0
  trace2_region_leave("merge", "plist grow", opt->repo);
4474
4475
  /* Put every entry from paths into plist, then sort */
4476
0
  trace2_region_enter("merge", "plist copy", opt->repo);
4477
0
  strmap_for_each_entry(&opt->priv->paths, &iter, e) {
4478
0
    string_list_append(&plist, e->key)->util = e->value;
4479
0
  }
4480
0
  trace2_region_leave("merge", "plist copy", opt->repo);
4481
4482
0
  trace2_region_enter("merge", "plist special sort", opt->repo);
4483
0
  plist.cmp = sort_dirs_next_to_their_children;
4484
0
  string_list_sort(&plist);
4485
0
  trace2_region_leave("merge", "plist special sort", opt->repo);
4486
4487
0
  trace2_region_leave("merge", "process_entries setup", opt->repo);
4488
4489
  /*
4490
   * Iterate over the items in reverse order, so we can handle paths
4491
   * below a directory before needing to handle the directory itself.
4492
   *
4493
   * This allows us to write subtrees before we need to write trees,
4494
   * and it also enables sane handling of directory/file conflicts
4495
   * (because it allows us to know whether the directory is still in
4496
   * the way when it is time to process the file at the same path).
4497
   */
4498
0
  trace2_region_enter("merge", "processing", opt->repo);
4499
0
  prefetch_for_content_merges(opt, &plist);
4500
0
  for (entry = &plist.items[plist.nr-1]; entry >= plist.items; --entry) {
4501
0
    char *path = entry->string;
4502
    /*
4503
     * NOTE: mi may actually be a pointer to a conflict_info, but
4504
     * we have to check mi->clean first to see if it's safe to
4505
     * reassign to such a pointer type.
4506
     */
4507
0
    struct merged_info *mi = entry->util;
4508
4509
0
    if (write_completed_directory(opt, mi->directory_name,
4510
0
                &dir_metadata) < 0) {
4511
0
      ret = -1;
4512
0
      goto cleanup;
4513
0
    }
4514
0
    if (mi->clean)
4515
0
      record_entry_for_tree(&dir_metadata, path, mi);
4516
0
    else {
4517
0
      struct conflict_info *ci = (struct conflict_info *)mi;
4518
0
      if (process_entry(opt, path, ci, &dir_metadata) < 0) {
4519
0
        ret = -1;
4520
0
        goto cleanup;
4521
0
      };
4522
0
      if (!ci->merged.clean && opt->mergeability_only &&
4523
0
          !opt->priv->call_depth) {
4524
0
        ret = 0;
4525
0
        goto cleanup;
4526
0
      }
4527
4528
0
    }
4529
0
  }
4530
0
  trace2_region_leave("merge", "processing", opt->repo);
4531
4532
0
  trace2_region_enter("merge", "process_entries cleanup", opt->repo);
4533
0
  if (dir_metadata.offsets.nr != 1 ||
4534
0
      (uintptr_t)dir_metadata.offsets.items[0].util != 0) {
4535
0
    printf("dir_metadata.offsets.nr = %"PRIuMAX" (should be 1)\n",
4536
0
           (uintmax_t)dir_metadata.offsets.nr);
4537
0
    printf("dir_metadata.offsets.items[0].util = %u (should be 0)\n",
4538
0
           (unsigned)(uintptr_t)dir_metadata.offsets.items[0].util);
4539
0
    fflush(stdout);
4540
0
    BUG("dir_metadata accounting completely off; shouldn't happen");
4541
0
  }
4542
0
  if (record_tree &&
4543
0
      write_tree(result_oid, &dir_metadata.versions, 0,
4544
0
           opt->repo->hash_algo->rawsz) < 0)
4545
0
    ret = -1;
4546
0
cleanup:
4547
0
  string_list_clear(&plist, 0);
4548
0
  string_list_clear(&dir_metadata.versions, 0);
4549
0
  string_list_clear(&dir_metadata.offsets, 0);
4550
0
  trace2_region_leave("merge", "process_entries cleanup", opt->repo);
4551
4552
0
  return ret;
4553
0
}
4554
4555
/*** Function Grouping: functions related to merge_switch_to_result() ***/
4556
4557
static int checkout(struct merge_options *opt,
4558
        struct tree *prev,
4559
        struct tree *next)
4560
0
{
4561
  /* Switch the index/working copy from old to new */
4562
0
  int ret;
4563
0
  struct tree_desc trees[2];
4564
0
  struct unpack_trees_options unpack_opts;
4565
4566
0
  memset(&unpack_opts, 0, sizeof(unpack_opts));
4567
0
  unpack_opts.head_idx = -1;
4568
0
  unpack_opts.src_index = opt->repo->index;
4569
0
  unpack_opts.dst_index = opt->repo->index;
4570
4571
0
  setup_unpack_trees_porcelain(&unpack_opts, "merge");
4572
4573
  /*
4574
   * NOTE: if this were just "git checkout" code, we would probably
4575
   * read or refresh the cache and check for a conflicted index, but
4576
   * builtin/merge.c or sequencer.c really needs to read the index
4577
   * and check for conflicted entries before starting merging for a
4578
   * good user experience (no sense waiting for merges/rebases before
4579
   * erroring out), so there's no reason to duplicate that work here.
4580
   */
4581
4582
  /* 2-way merge to the new branch */
4583
0
  unpack_opts.update = 1;
4584
0
  unpack_opts.merge = 1;
4585
0
  unpack_opts.quiet = 0; /* FIXME: sequencer might want quiet? */
4586
0
  unpack_opts.verbose_update = (opt->verbosity > 2);
4587
0
  unpack_opts.fn = twoway_merge;
4588
0
  unpack_opts.preserve_ignored = 0; /* FIXME: !opts->overwrite_ignore */
4589
0
  if (parse_tree(prev) < 0)
4590
0
    return -1;
4591
0
  init_tree_desc(&trees[0], &prev->object.oid, prev->buffer, prev->size);
4592
0
  if (parse_tree(next) < 0)
4593
0
    return -1;
4594
0
  init_tree_desc(&trees[1], &next->object.oid, next->buffer, next->size);
4595
4596
0
  ret = unpack_trees(2, trees, &unpack_opts);
4597
0
  clear_unpack_trees_porcelain(&unpack_opts);
4598
0
  return ret;
4599
0
}
4600
4601
static int record_conflicted_index_entries(struct merge_options *opt)
4602
0
{
4603
0
  struct hashmap_iter iter;
4604
0
  struct strmap_entry *e;
4605
0
  struct index_state *index = opt->repo->index;
4606
0
  struct checkout state = CHECKOUT_INIT;
4607
0
  int errs = 0;
4608
0
  int original_cache_nr;
4609
4610
0
  if (strmap_empty(&opt->priv->conflicted))
4611
0
    return 0;
4612
4613
  /*
4614
   * We are in a conflicted state. These conflicts might be inside
4615
   * sparse-directory entries, so check if any entries are outside
4616
   * of the sparse-checkout cone preemptively.
4617
   *
4618
   * We set original_cache_nr below, but that might change if
4619
   * index_name_pos() calls ask for paths within sparse directories.
4620
   */
4621
0
  strmap_for_each_entry(&opt->priv->conflicted, &iter, e) {
4622
0
    if (!path_in_sparse_checkout(e->key, index)) {
4623
0
      ensure_full_index(index);
4624
0
      break;
4625
0
    }
4626
0
  }
4627
4628
  /* If any entries have skip_worktree set, we'll have to check 'em out */
4629
0
  state.force = 1;
4630
0
  state.quiet = 1;
4631
0
  state.refresh_cache = 1;
4632
0
  state.istate = index;
4633
0
  original_cache_nr = index->cache_nr;
4634
4635
  /* Append every entry from conflicted into index, then sort */
4636
0
  strmap_for_each_entry(&opt->priv->conflicted, &iter, e) {
4637
0
    const char *path = e->key;
4638
0
    struct conflict_info *ci = e->value;
4639
0
    int pos;
4640
0
    struct cache_entry *ce;
4641
0
    int i;
4642
4643
0
    VERIFY_CI(ci);
4644
4645
    /*
4646
     * The index will already have a stage=0 entry for this path,
4647
     * because we created an as-merged-as-possible version of the
4648
     * file and checkout() moved the working copy and index over
4649
     * to that version.
4650
     *
4651
     * However, previous iterations through this loop will have
4652
     * added unstaged entries to the end of the cache which
4653
     * ignore the standard alphabetical ordering of cache
4654
     * entries and break invariants needed for index_name_pos()
4655
     * to work.  However, we know the entry we want is before
4656
     * those appended cache entries, so do a temporary swap on
4657
     * cache_nr to only look through entries of interest.
4658
     */
4659
0
    SWAP(index->cache_nr, original_cache_nr);
4660
0
    pos = index_name_pos(index, path, strlen(path));
4661
0
    SWAP(index->cache_nr, original_cache_nr);
4662
0
    if (pos < 0) {
4663
0
      if (ci->filemask != 1)
4664
0
        BUG("Conflicted %s but nothing in basic working tree or index; this shouldn't happen", path);
4665
0
      cache_tree_invalidate_path(index, path);
4666
0
    } else {
4667
0
      ce = index->cache[pos];
4668
4669
      /*
4670
       * Clean paths with CE_SKIP_WORKTREE set will not be
4671
       * written to the working tree by the unpack_trees()
4672
       * call in checkout().  Our conflicted entries would
4673
       * have appeared clean to that code since we ignored
4674
       * the higher order stages.  Thus, we need override
4675
       * the CE_SKIP_WORKTREE bit and manually write those
4676
       * files to the working disk here.
4677
       */
4678
0
      if (ce_skip_worktree(ce))
4679
0
        errs |= checkout_entry(ce, &state, NULL, NULL);
4680
4681
      /*
4682
       * Mark this cache entry for removal and instead add
4683
       * new stage>0 entries corresponding to the
4684
       * conflicts.  If there are many conflicted entries, we
4685
       * want to avoid memmove'ing O(NM) entries by
4686
       * inserting the new entries one at a time.  So,
4687
       * instead, we just add the new cache entries to the
4688
       * end (ignoring normal index requirements on sort
4689
       * order) and sort the index once we're all done.
4690
       */
4691
0
      ce->ce_flags |= CE_REMOVE;
4692
0
    }
4693
4694
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
4695
0
      struct version_info *vi;
4696
0
      if (!(ci->filemask & (1ul << i)))
4697
0
        continue;
4698
0
      vi = &ci->stages[i];
4699
0
      ce = make_cache_entry(index, vi->mode, &vi->oid,
4700
0
                path, i+1, 0);
4701
0
      add_index_entry(index, ce, ADD_CACHE_JUST_APPEND);
4702
0
    }
4703
0
  }
4704
4705
  /*
4706
   * Remove the unused cache entries (and invalidate the relevant
4707
   * cache-trees), then sort the index entries to get the conflicted
4708
   * entries we added to the end into their right locations.
4709
   */
4710
0
  remove_marked_cache_entries(index, 1);
4711
  /*
4712
   * No need for STABLE_QSORT -- cmp_cache_name_compare sorts primarily
4713
   * on filename and secondarily on stage, and (name, stage #) are a
4714
   * unique tuple.
4715
   */
4716
0
  QSORT(index->cache, index->cache_nr, cmp_cache_name_compare);
4717
4718
0
  return errs;
4719
0
}
4720
4721
0
static void print_submodule_conflict_suggestion(struct string_list *csub) {
4722
0
  struct string_list_item *item;
4723
0
  struct strbuf msg = STRBUF_INIT;
4724
0
  struct strbuf tmp = STRBUF_INIT;
4725
0
  struct strbuf subs = STRBUF_INIT;
4726
4727
0
  if (!csub->nr)
4728
0
    return;
4729
4730
0
  strbuf_add_separated_string_list(&subs, " ", csub);
4731
0
  for_each_string_list_item(item, csub) {
4732
0
    struct conflicted_submodule_item *util = item->util;
4733
4734
    /*
4735
     * NEEDSWORK: The steps to resolve these errors deserve a more
4736
     * detailed explanation than what is currently printed below.
4737
     */
4738
0
    if (util->flag == CONFLICT_SUBMODULE_NOT_INITIALIZED ||
4739
0
        util->flag == CONFLICT_SUBMODULE_HISTORY_NOT_AVAILABLE)
4740
0
      continue;
4741
4742
    /*
4743
     * TRANSLATORS: This is a line of advice to resolve a merge
4744
     * conflict in a submodule. The first argument is the submodule
4745
     * name, and the second argument is the abbreviated id of the
4746
     * commit that needs to be merged.  For example:
4747
     *  - go to submodule (mysubmodule), and either merge commit abc1234"
4748
     */
4749
0
    strbuf_addf(&tmp, _(" - go to submodule (%s), and either merge commit %s\n"
4750
0
            "   or update to an existing commit which has merged those changes\n"),
4751
0
          item->string, util->abbrev);
4752
0
  }
4753
4754
  /*
4755
   * TRANSLATORS: This is a detailed message for resolving submodule
4756
   * conflicts.  The first argument is string containing one step per
4757
   * submodule.  The second is a space-separated list of submodule names.
4758
   */
4759
0
  strbuf_addf(&msg,
4760
0
        _("Recursive merging with submodules currently only supports trivial cases.\n"
4761
0
          "Please manually handle the merging of each conflicted submodule.\n"
4762
0
          "This can be accomplished with the following steps:\n"
4763
0
          "%s"
4764
0
          " - come back to superproject and run:\n\n"
4765
0
          "      git add %s\n\n"
4766
0
          "   to record the above merge or update\n"
4767
0
          " - resolve any other conflicts in the superproject\n"
4768
0
          " - commit the resulting index in the superproject\n"),
4769
0
        tmp.buf, subs.buf);
4770
4771
0
  advise_if_enabled(ADVICE_SUBMODULE_MERGE_CONFLICT, "%s", msg.buf);
4772
4773
0
  strbuf_release(&subs);
4774
0
  strbuf_release(&tmp);
4775
0
  strbuf_release(&msg);
4776
0
}
4777
4778
void merge_display_update_messages(struct merge_options *opt,
4779
           int detailed,
4780
           struct merge_result *result)
4781
0
{
4782
0
  struct merge_options_internal *opti = result->priv;
4783
0
  struct hashmap_iter iter;
4784
0
  struct strmap_entry *e;
4785
0
  struct string_list olist = STRING_LIST_INIT_NODUP;
4786
0
  FILE *o = stdout;
4787
4788
0
  if (opt->record_conflict_msgs_as_headers)
4789
0
    BUG("Either display conflict messages or record them as headers, not both");
4790
0
  if (opt->mergeability_only)
4791
0
    BUG("Displaying conflict messages incompatible with mergeability-only checks");
4792
4793
0
  trace2_region_enter("merge", "display messages", opt->repo);
4794
4795
  /* Hack to pre-allocate olist to the desired size */
4796
0
  ALLOC_GROW(olist.items, strmap_get_size(&opti->conflicts),
4797
0
       olist.alloc);
4798
4799
  /* Put every entry from output into olist, then sort */
4800
0
  strmap_for_each_entry(&opti->conflicts, &iter, e) {
4801
0
    string_list_append(&olist, e->key)->util = e->value;
4802
0
  }
4803
0
  string_list_sort(&olist);
4804
4805
  /* Print to stderr if we hit errors rather than just conflicts */
4806
0
  if (result->clean < 0)
4807
0
    o = stderr;
4808
4809
  /* Iterate over the items, printing them */
4810
0
  for (int path_nr = 0; path_nr < olist.nr; ++path_nr) {
4811
0
    struct string_list *conflicts = olist.items[path_nr].util;
4812
0
    for (int i = 0; i < conflicts->nr; i++) {
4813
0
      struct logical_conflict_info *info =
4814
0
        conflicts->items[i].util;
4815
4816
      /* On failure, ignore regular conflict types */
4817
0
      if (result->clean < 0 &&
4818
0
          info->type < NB_REGULAR_CONFLICT_TYPES)
4819
0
        continue;
4820
4821
0
      if (detailed) {
4822
0
        fprintf(o, "%lu", (unsigned long)info->paths.nr);
4823
0
        fputc('\0', o);
4824
0
        for (int n = 0; n < info->paths.nr; n++) {
4825
0
          fputs(info->paths.v[n], o);
4826
0
          fputc('\0', o);
4827
0
        }
4828
0
        fputs(type_short_descriptions[info->type], o);
4829
0
        fputc('\0', o);
4830
0
      }
4831
0
      fputs(conflicts->items[i].string, o);
4832
0
      fputc('\n', o);
4833
0
      if (detailed)
4834
0
        fputc('\0', o);
4835
0
    }
4836
0
  }
4837
0
  string_list_clear(&olist, 0);
4838
4839
0
  if (result->clean >= 0)
4840
0
    print_submodule_conflict_suggestion(&opti->conflicted_submodules);
4841
4842
  /* Also include needed rename limit adjustment now */
4843
0
  diff_warn_rename_limit("merge.renamelimit",
4844
0
             opti->renames.needed_limit, 0);
4845
4846
0
  trace2_region_leave("merge", "display messages", opt->repo);
4847
0
}
4848
4849
void merge_get_conflicted_files(struct merge_result *result,
4850
        struct string_list *conflicted_files)
4851
0
{
4852
0
  struct hashmap_iter iter;
4853
0
  struct strmap_entry *e;
4854
0
  struct merge_options_internal *opti = result->priv;
4855
4856
0
  strmap_for_each_entry(&opti->conflicted, &iter, e) {
4857
0
    const char *path = e->key;
4858
0
    struct conflict_info *ci = e->value;
4859
0
    int i;
4860
4861
0
    VERIFY_CI(ci);
4862
4863
0
    for (i = MERGE_BASE; i <= MERGE_SIDE2; i++) {
4864
0
      struct stage_info *si;
4865
4866
0
      if (!(ci->filemask & (1ul << i)))
4867
0
        continue;
4868
4869
0
      si = xmalloc(sizeof(*si));
4870
0
      si->stage = i+1;
4871
0
      si->mode = ci->stages[i].mode;
4872
0
      oidcpy(&si->oid, &ci->stages[i].oid);
4873
0
      string_list_append(conflicted_files, path)->util = si;
4874
0
    }
4875
0
  }
4876
  /* string_list_sort() uses a stable sort, so we're good */
4877
0
  string_list_sort(conflicted_files);
4878
0
}
4879
4880
void merge_switch_to_result(struct merge_options *opt,
4881
          struct tree *head,
4882
          struct merge_result *result,
4883
          int update_worktree_and_index,
4884
          int display_update_msgs)
4885
0
{
4886
0
  assert(opt->priv == NULL);
4887
0
  if (result->clean >= 0 && update_worktree_and_index) {
4888
0
    trace2_region_enter("merge", "checkout", opt->repo);
4889
0
    if (checkout(opt, head, result->tree)) {
4890
      /* failure to function */
4891
0
      result->clean = -1;
4892
0
      merge_finalize(opt, result);
4893
0
      trace2_region_leave("merge", "checkout", opt->repo);
4894
0
      return;
4895
0
    }
4896
0
    trace2_region_leave("merge", "checkout", opt->repo);
4897
4898
0
    trace2_region_enter("merge", "record_conflicted", opt->repo);
4899
0
    opt->priv = result->priv;
4900
0
    if (record_conflicted_index_entries(opt)) {
4901
      /* failure to function */
4902
0
      opt->priv = NULL;
4903
0
      result->clean = -1;
4904
0
      merge_finalize(opt, result);
4905
0
      trace2_region_leave("merge", "record_conflicted",
4906
0
              opt->repo);
4907
0
      return;
4908
0
    }
4909
0
    opt->priv = NULL;
4910
0
    trace2_region_leave("merge", "record_conflicted", opt->repo);
4911
4912
0
    trace2_region_enter("merge", "write_auto_merge", opt->repo);
4913
0
    if (refs_update_ref(get_main_ref_store(opt->repo), "", "AUTO_MERGE",
4914
0
            &result->tree->object.oid, NULL, REF_NO_DEREF,
4915
0
            UPDATE_REFS_MSG_ON_ERR)) {
4916
      /* failure to function */
4917
0
      opt->priv = NULL;
4918
0
      result->clean = -1;
4919
0
      merge_finalize(opt, result);
4920
0
      trace2_region_leave("merge", "write_auto_merge",
4921
0
              opt->repo);
4922
0
      return;
4923
0
    }
4924
0
    trace2_region_leave("merge", "write_auto_merge", opt->repo);
4925
0
  }
4926
0
  if (display_update_msgs)
4927
0
    merge_display_update_messages(opt, /* detailed */ 0, result);
4928
4929
0
  merge_finalize(opt, result);
4930
0
}
4931
4932
void merge_finalize(struct merge_options *opt,
4933
        struct merge_result *result)
4934
0
{
4935
0
  if (opt->renormalize)
4936
0
    git_attr_set_direction(GIT_ATTR_CHECKIN);
4937
0
  assert(opt->priv == NULL);
4938
4939
0
  if (result->priv) {
4940
0
    clear_or_reinit_internal_opts(result->priv, 0);
4941
0
    FREE_AND_NULL(result->priv);
4942
0
  }
4943
0
}
4944
4945
/*** Function Grouping: helper functions for merge_incore_*() ***/
4946
4947
static struct tree *shift_tree_object(struct repository *repo,
4948
              struct tree *one, struct tree *two,
4949
              const char *subtree_shift)
4950
0
{
4951
0
  struct object_id shifted;
4952
4953
0
  if (!*subtree_shift) {
4954
0
    shift_tree(repo, &one->object.oid, &two->object.oid, &shifted, 0);
4955
0
  } else {
4956
0
    shift_tree_by(repo, &one->object.oid, &two->object.oid, &shifted,
4957
0
            subtree_shift);
4958
0
  }
4959
0
  if (oideq(&two->object.oid, &shifted))
4960
0
    return two;
4961
0
  return lookup_tree(repo, &shifted);
4962
0
}
4963
4964
static inline void set_commit_tree(struct commit *c, struct tree *t)
4965
0
{
4966
0
  c->maybe_tree = t;
4967
0
}
4968
4969
struct commit *make_virtual_commit(struct repository *repo,
4970
           struct tree *tree,
4971
           const char *comment)
4972
0
{
4973
0
  struct commit *commit = alloc_commit_node(repo);
4974
4975
0
  set_merge_remote_desc(commit, comment, (struct object *)commit);
4976
0
  set_commit_tree(commit, tree);
4977
0
  commit->object.parsed = 1;
4978
0
  return commit;
4979
0
}
4980
4981
static void merge_start(struct merge_options *opt, struct merge_result *result)
4982
0
{
4983
0
  struct rename_info *renames;
4984
0
  int i;
4985
0
  struct mem_pool *pool = NULL;
4986
4987
  /* Sanity checks on opt */
4988
0
  trace2_region_enter("merge", "sanity checks", opt->repo);
4989
0
  assert(opt->repo);
4990
4991
0
  assert(opt->branch1 && opt->branch2);
4992
4993
0
  assert(opt->detect_directory_renames >= MERGE_DIRECTORY_RENAMES_NONE &&
4994
0
         opt->detect_directory_renames <= MERGE_DIRECTORY_RENAMES_TRUE);
4995
0
  assert(opt->rename_limit >= -1);
4996
0
  assert(opt->rename_score >= 0 && opt->rename_score <= MAX_SCORE);
4997
0
  assert(opt->show_rename_progress >= 0 && opt->show_rename_progress <= 1);
4998
4999
0
  assert(opt->xdl_opts >= 0);
5000
0
  assert(opt->recursive_variant >= MERGE_VARIANT_NORMAL &&
5001
0
         opt->recursive_variant <= MERGE_VARIANT_THEIRS);
5002
5003
0
  if (opt->msg_header_prefix)
5004
0
    assert(opt->record_conflict_msgs_as_headers);
5005
5006
  /*
5007
   * detect_renames, verbosity, buffer_output, and obuf are ignored
5008
   * fields that were used by "recursive" rather than "ort" -- but
5009
   * sanity check them anyway.
5010
   */
5011
0
  assert(opt->detect_renames >= -1 &&
5012
0
         opt->detect_renames <= DIFF_DETECT_COPY);
5013
0
  assert(opt->verbosity >= 0 && opt->verbosity <= 5);
5014
0
  assert(opt->buffer_output <= 2);
5015
0
  assert(opt->obuf.len == 0);
5016
5017
0
  assert(opt->priv == NULL);
5018
0
  if (result->_properly_initialized != 0 &&
5019
0
      result->_properly_initialized != RESULT_INITIALIZED)
5020
0
    BUG("struct merge_result passed to merge_incore_*recursive() must be zeroed or filled with values from a previous run");
5021
0
  assert(!!result->priv == !!result->_properly_initialized);
5022
0
  if (result->priv) {
5023
0
    opt->priv = result->priv;
5024
0
    result->priv = NULL;
5025
    /*
5026
     * opt->priv non-NULL means we had results from a previous
5027
     * run; do a few sanity checks that user didn't mess with
5028
     * it in an obvious fashion.
5029
     */
5030
0
    assert(opt->priv->call_depth == 0);
5031
0
    assert(!opt->priv->toplevel_dir ||
5032
0
           0 == strlen(opt->priv->toplevel_dir));
5033
0
  }
5034
0
  trace2_region_leave("merge", "sanity checks", opt->repo);
5035
5036
  /* Handle attr direction stuff for renormalization */
5037
0
  if (opt->renormalize)
5038
0
    git_attr_set_direction(GIT_ATTR_CHECKOUT);
5039
5040
  /* Initialization of opt->priv, our internal merge data */
5041
0
  trace2_region_enter("merge", "allocate/init", opt->repo);
5042
0
  if (opt->priv) {
5043
0
    clear_or_reinit_internal_opts(opt->priv, 1);
5044
0
    string_list_init_nodup(&opt->priv->conflicted_submodules);
5045
0
    trace2_region_leave("merge", "allocate/init", opt->repo);
5046
0
    return;
5047
0
  }
5048
0
  opt->priv = xcalloc(1, sizeof(*opt->priv));
5049
5050
  /* Initialization of various renames fields */
5051
0
  renames = &opt->priv->renames;
5052
0
  mem_pool_init(&opt->priv->pool, 0);
5053
0
  pool = &opt->priv->pool;
5054
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; i++) {
5055
0
    strintmap_init_with_options(&renames->dirs_removed[i],
5056
0
              NOT_RELEVANT, pool, 0);
5057
0
    strmap_init_with_options(&renames->dir_rename_count[i],
5058
0
           NULL, 1);
5059
0
    strmap_init_with_options(&renames->dir_renames[i],
5060
0
           NULL, 0);
5061
    /*
5062
     * relevant_sources uses -1 for the default, because we need
5063
     * to be able to distinguish not-in-strintmap from valid
5064
     * relevant_source values from enum file_rename_relevance.
5065
     * In particular, possibly_cache_new_pair() expects a negative
5066
     * value for not-found entries.
5067
     */
5068
0
    strintmap_init_with_options(&renames->relevant_sources[i],
5069
0
              -1 /* explicitly invalid */,
5070
0
              pool, 0);
5071
0
    strmap_init_with_options(&renames->cached_pairs[i],
5072
0
           NULL, 1);
5073
0
    strset_init_with_options(&renames->cached_irrelevant[i],
5074
0
           NULL, 1);
5075
0
    strset_init_with_options(&renames->cached_target_names[i],
5076
0
           NULL, 0);
5077
0
  }
5078
0
  for (i = MERGE_SIDE1; i <= MERGE_SIDE2; i++) {
5079
0
    strintmap_init_with_options(&renames->deferred[i].possible_trivial_merges,
5080
0
              0, pool, 0);
5081
0
    strset_init_with_options(&renames->deferred[i].target_dirs,
5082
0
           pool, 1);
5083
0
    renames->deferred[i].trivial_merges_okay = 1; /* 1 == maybe */
5084
0
  }
5085
5086
  /*
5087
   * Although we initialize opt->priv->paths with strdup_strings=0,
5088
   * that's just to avoid making yet another copy of an allocated
5089
   * string.  Putting the entry into paths means we are taking
5090
   * ownership, so we will later free it.
5091
   *
5092
   * In contrast, conflicted just has a subset of keys from paths, so
5093
   * we don't want to free those (it'd be a duplicate free).
5094
   */
5095
0
  strmap_init_with_options(&opt->priv->paths, pool, 0);
5096
0
  strmap_init_with_options(&opt->priv->conflicted, pool, 0);
5097
5098
  /*
5099
   * keys & string_lists in conflicts will sometimes need to outlive
5100
   * "paths", so it will have a copy of relevant keys.  It's probably
5101
   * a small subset of the overall paths that have special output.
5102
   */
5103
0
  strmap_init(&opt->priv->conflicts);
5104
5105
0
  trace2_region_leave("merge", "allocate/init", opt->repo);
5106
0
}
5107
5108
static void merge_check_renames_reusable(struct merge_options *opt,
5109
           struct merge_result *result,
5110
           struct tree *merge_base,
5111
           struct tree *side1,
5112
           struct tree *side2)
5113
0
{
5114
0
  struct rename_info *renames;
5115
0
  struct tree **merge_trees;
5116
0
  struct merge_options_internal *opti = result->priv;
5117
5118
0
  if (!opti)
5119
0
    return;
5120
5121
0
  renames = &opti->renames;
5122
0
  merge_trees = renames->merge_trees;
5123
5124
  /*
5125
   * Handle case where previous merge operation did not want cache to
5126
   * take effect, e.g. because rename/rename(1to1) makes it invalid.
5127
   */
5128
0
  if (!merge_trees[0]) {
5129
0
    assert(!merge_trees[0] && !merge_trees[1] && !merge_trees[2]);
5130
0
    renames->cached_pairs_valid_side = 0; /* neither side valid */
5131
0
    return;
5132
0
  }
5133
5134
  /*
5135
   * Avoid using cached renames when directory rename detection is
5136
   * turned off.  Cached renames are far less important in that case,
5137
   * and they lead to testcases with an interesting intersection of
5138
   * effects from relevant renames optimization, trivial directory
5139
   * resolution optimization, and cached renames all converging when
5140
   * the target of a cached rename is in a directory that
5141
   * collect_merge_info() does not recurse into.  To avoid such
5142
   * problems, simply disable cached renames for this case (similar
5143
   * to the rename/rename(1to1) case; see the "disabling the
5144
   * optimization" comment near that case).
5145
   *
5146
   * This could be revisited in the future; see the commit message
5147
   * where this comment was added for some possible pointers, or the
5148
   * later commit where this comment was added.
5149
   */
5150
0
  if (opt->detect_directory_renames == MERGE_DIRECTORY_RENAMES_NONE) {
5151
0
    renames->cached_pairs_valid_side = 0; /* neither side valid */
5152
0
    return;
5153
0
  }
5154
5155
  /*
5156
   * Handle other cases; note that merge_trees[0..2] will only
5157
   * be NULL if opti is, or if all three were manually set to
5158
   * NULL by e.g. rename/rename(1to1) handling.
5159
   */
5160
0
  assert(merge_trees[0] && merge_trees[1] && merge_trees[2]);
5161
5162
  /* Check if we meet a condition for re-using cached_pairs */
5163
0
  if (oideq(&merge_base->object.oid, &merge_trees[2]->object.oid) &&
5164
0
      oideq(&side1->object.oid, &result->tree->object.oid))
5165
0
    renames->cached_pairs_valid_side = MERGE_SIDE1;
5166
0
  else if (oideq(&merge_base->object.oid, &merge_trees[1]->object.oid) &&
5167
0
     oideq(&side2->object.oid, &result->tree->object.oid))
5168
0
    renames->cached_pairs_valid_side = MERGE_SIDE2;
5169
0
  else
5170
0
    renames->cached_pairs_valid_side = 0; /* neither side valid */
5171
0
}
5172
5173
/*** Function Grouping: merge_incore_*() and their internal variants ***/
5174
5175
static void move_opt_priv_to_result_priv(struct merge_options *opt,
5176
           struct merge_result *result)
5177
0
{
5178
  /*
5179
   * opt->priv and result->priv are a bit weird.  opt->priv contains
5180
   * information that we can re-use in subsequent merge operations to
5181
   * enable our cached renames optimization.  The best way to provide
5182
   * that to subsequent merges is putting it in result->priv.
5183
   * However, putting it directly there would mean retrofitting lots
5184
   * of functions in this file to also take a merge_result pointer,
5185
   * which is ugly and annoying.  So, we just make sure at the end of
5186
   * the merge (the outer merge if there are internal recursive ones)
5187
   * to move it.
5188
   */
5189
0
  assert(opt->priv && !result->priv);
5190
0
  result->priv = opt->priv;
5191
0
  result->_properly_initialized = RESULT_INITIALIZED;
5192
0
  opt->priv = NULL;
5193
0
}
5194
5195
/*
5196
 * Originally from merge_trees_internal(); heavily adapted, though.
5197
 */
5198
static void merge_ort_nonrecursive_internal(struct merge_options *opt,
5199
              struct tree *merge_base,
5200
              struct tree *side1,
5201
              struct tree *side2,
5202
              struct merge_result *result)
5203
0
{
5204
0
  struct object_id working_tree_oid;
5205
5206
0
  if (opt->subtree_shift) {
5207
0
    side2 = shift_tree_object(opt->repo, side1, side2,
5208
0
            opt->subtree_shift);
5209
0
    merge_base = shift_tree_object(opt->repo, side1, merge_base,
5210
0
                 opt->subtree_shift);
5211
0
  }
5212
5213
0
redo:
5214
0
  trace2_region_enter("merge", "collect_merge_info", opt->repo);
5215
0
  if (collect_merge_info(opt, merge_base, side1, side2) != 0) {
5216
    /*
5217
     * TRANSLATORS: The %s arguments are: 1) tree hash of a merge
5218
     * base, and 2-3) the trees for the two trees we're merging.
5219
     */
5220
0
    error(_("collecting merge info failed for trees %s, %s, %s"),
5221
0
        oid_to_hex(&merge_base->object.oid),
5222
0
        oid_to_hex(&side1->object.oid),
5223
0
        oid_to_hex(&side2->object.oid));
5224
0
    result->clean = -1;
5225
0
    move_opt_priv_to_result_priv(opt, result);
5226
0
    return;
5227
0
  }
5228
0
  trace2_region_leave("merge", "collect_merge_info", opt->repo);
5229
5230
0
  trace2_region_enter("merge", "renames", opt->repo);
5231
0
  result->clean = detect_and_process_renames(opt);
5232
0
  trace2_region_leave("merge", "renames", opt->repo);
5233
0
  if (opt->priv->renames.redo_after_renames == 2) {
5234
0
    trace2_region_enter("merge", "reset_maps", opt->repo);
5235
0
    clear_or_reinit_internal_opts(opt->priv, 1);
5236
0
    trace2_region_leave("merge", "reset_maps", opt->repo);
5237
0
    goto redo;
5238
0
  }
5239
5240
0
  trace2_region_enter("merge", "process_entries", opt->repo);
5241
0
  if (process_entries(opt, &working_tree_oid) < 0)
5242
0
    result->clean = -1;
5243
0
  trace2_region_leave("merge", "process_entries", opt->repo);
5244
5245
  /* Set return values */
5246
0
  result->path_messages = &opt->priv->conflicts;
5247
5248
0
  if (result->clean >= 0) {
5249
0
    if (!opt->mergeability_only) {
5250
0
      result->tree = parse_tree_indirect(&working_tree_oid);
5251
0
      if (!result->tree)
5252
0
        die(_("unable to read tree (%s)"),
5253
0
            oid_to_hex(&working_tree_oid));
5254
0
    }
5255
    /* existence of conflicted entries implies unclean */
5256
0
    result->clean &= strmap_empty(&opt->priv->conflicted);
5257
0
  }
5258
0
  if (!opt->priv->call_depth || result->clean < 0)
5259
0
    move_opt_priv_to_result_priv(opt, result);
5260
0
}
5261
5262
/*
5263
 * Originally from merge_recursive_internal(); somewhat adapted, though.
5264
 */
5265
static void merge_ort_internal(struct merge_options *opt,
5266
             const struct commit_list *_merge_bases,
5267
             struct commit *h1,
5268
             struct commit *h2,
5269
             struct merge_result *result)
5270
0
{
5271
0
  struct commit_list *merge_bases = copy_commit_list(_merge_bases);
5272
0
  struct commit *next;
5273
0
  struct commit *merged_merge_bases;
5274
0
  const char *ancestor_name;
5275
0
  struct strbuf merge_base_abbrev = STRBUF_INIT;
5276
5277
0
  if (!merge_bases) {
5278
0
    if (repo_get_merge_bases(the_repository, h1, h2,
5279
0
           &merge_bases) < 0) {
5280
0
      result->clean = -1;
5281
0
      goto out;
5282
0
    }
5283
    /* See merge-ort.h:merge_incore_recursive() declaration NOTE */
5284
0
    merge_bases = reverse_commit_list(merge_bases);
5285
0
  }
5286
5287
0
  merged_merge_bases = pop_commit(&merge_bases);
5288
0
  if (!merged_merge_bases) {
5289
    /* if there is no common ancestor, use an empty tree */
5290
0
    struct tree *tree;
5291
5292
0
    tree = lookup_tree(opt->repo, opt->repo->hash_algo->empty_tree);
5293
0
    merged_merge_bases = make_virtual_commit(opt->repo, tree,
5294
0
               "ancestor");
5295
0
    ancestor_name = "empty tree";
5296
0
  } else if (merge_bases) {
5297
0
    ancestor_name = "merged common ancestors";
5298
0
  } else if (opt->ancestor) {
5299
0
    ancestor_name = opt->ancestor;
5300
0
  } else {
5301
0
    strbuf_add_unique_abbrev(&merge_base_abbrev,
5302
0
           &merged_merge_bases->object.oid,
5303
0
           DEFAULT_ABBREV);
5304
0
    ancestor_name = merge_base_abbrev.buf;
5305
0
  }
5306
5307
0
  for (next = pop_commit(&merge_bases); next;
5308
0
       next = pop_commit(&merge_bases)) {
5309
0
    const char *saved_b1, *saved_b2;
5310
0
    struct commit *prev = merged_merge_bases;
5311
5312
0
    opt->priv->call_depth++;
5313
    /*
5314
     * When the merge fails, the result contains files
5315
     * with conflict markers. The cleanness flag is
5316
     * ignored (unless indicating an error), it was never
5317
     * actually used, as result of merge_trees has always
5318
     * overwritten it: the committed "conflicts" were
5319
     * already resolved.
5320
     */
5321
0
    saved_b1 = opt->branch1;
5322
0
    saved_b2 = opt->branch2;
5323
0
    opt->branch1 = "Temporary merge branch 1";
5324
0
    opt->branch2 = "Temporary merge branch 2";
5325
0
    merge_ort_internal(opt, NULL, prev, next, result);
5326
0
    if (result->clean < 0)
5327
0
      goto out;
5328
0
    opt->branch1 = saved_b1;
5329
0
    opt->branch2 = saved_b2;
5330
0
    opt->priv->call_depth--;
5331
5332
0
    merged_merge_bases = make_virtual_commit(opt->repo,
5333
0
               result->tree,
5334
0
               "merged tree");
5335
0
    commit_list_insert(prev, &merged_merge_bases->parents);
5336
0
    commit_list_insert(next, &merged_merge_bases->parents->next);
5337
5338
0
    clear_or_reinit_internal_opts(opt->priv, 1);
5339
0
  }
5340
5341
0
  opt->ancestor = ancestor_name;
5342
0
  merge_ort_nonrecursive_internal(opt,
5343
0
          repo_get_commit_tree(opt->repo,
5344
0
                   merged_merge_bases),
5345
0
          repo_get_commit_tree(opt->repo, h1),
5346
0
          repo_get_commit_tree(opt->repo, h2),
5347
0
          result);
5348
0
  strbuf_release(&merge_base_abbrev);
5349
0
  opt->ancestor = NULL;  /* avoid accidental re-use of opt->ancestor */
5350
5351
0
out:
5352
0
  free_commit_list(merge_bases);
5353
0
}
5354
5355
void merge_incore_nonrecursive(struct merge_options *opt,
5356
             struct tree *merge_base,
5357
             struct tree *side1,
5358
             struct tree *side2,
5359
             struct merge_result *result)
5360
0
{
5361
0
  trace2_region_enter("merge", "incore_nonrecursive", opt->repo);
5362
5363
0
  trace2_region_enter("merge", "merge_start", opt->repo);
5364
0
  assert(opt->ancestor != NULL);
5365
0
  merge_check_renames_reusable(opt, result, merge_base, side1, side2);
5366
0
  merge_start(opt, result);
5367
  /*
5368
   * Record the trees used in this merge, so if there's a next merge in
5369
   * a cherry-pick or rebase sequence it might be able to take advantage
5370
   * of the cached_pairs in that next merge.
5371
   */
5372
0
  opt->priv->renames.merge_trees[0] = merge_base;
5373
0
  opt->priv->renames.merge_trees[1] = side1;
5374
0
  opt->priv->renames.merge_trees[2] = side2;
5375
0
  trace2_region_leave("merge", "merge_start", opt->repo);
5376
5377
0
  merge_ort_nonrecursive_internal(opt, merge_base, side1, side2, result);
5378
0
  trace2_region_leave("merge", "incore_nonrecursive", opt->repo);
5379
0
}
5380
5381
void merge_incore_recursive(struct merge_options *opt,
5382
          const struct commit_list *merge_bases,
5383
          struct commit *side1,
5384
          struct commit *side2,
5385
          struct merge_result *result)
5386
0
{
5387
0
  trace2_region_enter("merge", "incore_recursive", opt->repo);
5388
5389
  /*
5390
   * We set the ancestor label based on the merge_bases...but we
5391
   * allow one exception through so that builtin/am can override
5392
   * with its constructed fake ancestor.
5393
   */
5394
0
  assert(opt->ancestor == NULL ||
5395
0
         (merge_bases && !merge_bases->next));
5396
5397
0
  trace2_region_enter("merge", "merge_start", opt->repo);
5398
0
  merge_start(opt, result);
5399
0
  trace2_region_leave("merge", "merge_start", opt->repo);
5400
5401
0
  merge_ort_internal(opt, merge_bases, side1, side2, result);
5402
0
  trace2_region_leave("merge", "incore_recursive", opt->repo);
5403
0
}
5404
5405
static void merge_recursive_config(struct merge_options *opt, int ui)
5406
0
{
5407
0
  char *value = NULL;
5408
0
  int renormalize = 0;
5409
0
  repo_config_get_int(the_repository, "merge.verbosity", &opt->verbosity);
5410
0
  repo_config_get_int(the_repository, "diff.renamelimit", &opt->rename_limit);
5411
0
  repo_config_get_int(the_repository, "merge.renamelimit", &opt->rename_limit);
5412
0
  repo_config_get_bool(the_repository, "merge.renormalize", &renormalize);
5413
0
  opt->renormalize = renormalize;
5414
0
  if (!repo_config_get_string(the_repository, "diff.renames", &value)) {
5415
0
    opt->detect_renames = git_config_rename("diff.renames", value);
5416
0
    free(value);
5417
0
  }
5418
0
  if (!repo_config_get_string(the_repository, "merge.renames", &value)) {
5419
0
    opt->detect_renames = git_config_rename("merge.renames", value);
5420
0
    free(value);
5421
0
  }
5422
0
  if (!repo_config_get_string(the_repository, "merge.directoryrenames", &value)) {
5423
0
    int boolval = git_parse_maybe_bool(value);
5424
0
    if (0 <= boolval) {
5425
0
      opt->detect_directory_renames = boolval ?
5426
0
        MERGE_DIRECTORY_RENAMES_TRUE :
5427
0
        MERGE_DIRECTORY_RENAMES_NONE;
5428
0
    } else if (!strcasecmp(value, "conflict")) {
5429
0
      opt->detect_directory_renames =
5430
0
        MERGE_DIRECTORY_RENAMES_CONFLICT;
5431
0
    } /* avoid erroring on values from future versions of git */
5432
0
    free(value);
5433
0
  }
5434
0
  if (ui) {
5435
0
    if (!repo_config_get_string(the_repository, "diff.algorithm", &value)) {
5436
0
      long diff_algorithm = parse_algorithm_value(value);
5437
0
      if (diff_algorithm < 0)
5438
0
        die(_("unknown value for config '%s': %s"), "diff.algorithm", value);
5439
0
      opt->xdl_opts = (opt->xdl_opts & ~XDF_DIFF_ALGORITHM_MASK) | diff_algorithm;
5440
0
      free(value);
5441
0
    }
5442
0
  }
5443
0
  repo_config(the_repository, git_xmerge_config, NULL);
5444
0
}
5445
5446
static void init_merge_options(struct merge_options *opt,
5447
      struct repository *repo, int ui)
5448
0
{
5449
0
  const char *merge_verbosity;
5450
0
  memset(opt, 0, sizeof(struct merge_options));
5451
5452
0
  opt->repo = repo;
5453
5454
0
  opt->detect_renames = -1;
5455
0
  opt->detect_directory_renames = MERGE_DIRECTORY_RENAMES_CONFLICT;
5456
0
  opt->rename_limit = -1;
5457
5458
0
  opt->verbosity = 2;
5459
0
  opt->buffer_output = 1;
5460
0
  strbuf_init(&opt->obuf, 0);
5461
5462
0
  opt->renormalize = 0;
5463
5464
0
  opt->conflict_style = -1;
5465
0
  opt->xdl_opts = DIFF_WITH_ALG(opt, HISTOGRAM_DIFF);
5466
5467
0
  merge_recursive_config(opt, ui);
5468
0
  merge_verbosity = getenv("GIT_MERGE_VERBOSITY");
5469
0
  if (merge_verbosity)
5470
0
    opt->verbosity = strtol(merge_verbosity, NULL, 10);
5471
0
  if (opt->verbosity >= 5)
5472
0
    opt->buffer_output = 0;
5473
0
}
5474
5475
void init_ui_merge_options(struct merge_options *opt,
5476
      struct repository *repo)
5477
0
{
5478
0
  init_merge_options(opt, repo, 1);
5479
0
}
5480
5481
void init_basic_merge_options(struct merge_options *opt,
5482
      struct repository *repo)
5483
0
{
5484
0
  init_merge_options(opt, repo, 0);
5485
0
}
5486
5487
/*
5488
 * For now, members of merge_options do not need deep copying, but
5489
 * it may change in the future, in which case we would need to update
5490
 * this, and also make a matching change to clear_merge_options() to
5491
 * release the resources held by a copied instance.
5492
 */
5493
void copy_merge_options(struct merge_options *dst, struct merge_options *src)
5494
0
{
5495
0
  *dst = *src;
5496
0
}
5497
5498
void clear_merge_options(struct merge_options *opt UNUSED)
5499
0
{
5500
0
  ; /* no-op as our copy is shallow right now */
5501
0
}
5502
5503
int parse_merge_opt(struct merge_options *opt, const char *s)
5504
0
{
5505
0
  const char *arg;
5506
5507
0
  if (!s || !*s)
5508
0
    return -1;
5509
0
  if (!strcmp(s, "ours"))
5510
0
    opt->recursive_variant = MERGE_VARIANT_OURS;
5511
0
  else if (!strcmp(s, "theirs"))
5512
0
    opt->recursive_variant = MERGE_VARIANT_THEIRS;
5513
0
  else if (!strcmp(s, "subtree"))
5514
0
    opt->subtree_shift = "";
5515
0
  else if (skip_prefix(s, "subtree=", &arg))
5516
0
    opt->subtree_shift = arg;
5517
0
  else if (!strcmp(s, "patience"))
5518
0
    opt->xdl_opts = DIFF_WITH_ALG(opt, PATIENCE_DIFF);
5519
0
  else if (!strcmp(s, "histogram"))
5520
0
    opt->xdl_opts = DIFF_WITH_ALG(opt, HISTOGRAM_DIFF);
5521
0
  else if (skip_prefix(s, "diff-algorithm=", &arg)) {
5522
0
    long value = parse_algorithm_value(arg);
5523
0
    if (value < 0)
5524
0
      return -1;
5525
    /* clear out previous settings */
5526
0
    opt->xdl_opts &= ~XDF_DIFF_ALGORITHM_MASK;
5527
0
    opt->xdl_opts |= value;
5528
0
  }
5529
0
  else if (!strcmp(s, "ignore-space-change"))
5530
0
    DIFF_XDL_SET(opt, IGNORE_WHITESPACE_CHANGE);
5531
0
  else if (!strcmp(s, "ignore-all-space"))
5532
0
    DIFF_XDL_SET(opt, IGNORE_WHITESPACE);
5533
0
  else if (!strcmp(s, "ignore-space-at-eol"))
5534
0
    DIFF_XDL_SET(opt, IGNORE_WHITESPACE_AT_EOL);
5535
0
  else if (!strcmp(s, "ignore-cr-at-eol"))
5536
0
    DIFF_XDL_SET(opt, IGNORE_CR_AT_EOL);
5537
0
  else if (!strcmp(s, "renormalize"))
5538
0
    opt->renormalize = 1;
5539
0
  else if (!strcmp(s, "no-renormalize"))
5540
0
    opt->renormalize = 0;
5541
0
  else if (!strcmp(s, "no-renames"))
5542
0
    opt->detect_renames = 0;
5543
0
  else if (!strcmp(s, "find-renames")) {
5544
0
    opt->detect_renames = 1;
5545
0
    opt->rename_score = 0;
5546
0
  }
5547
0
  else if (skip_prefix(s, "find-renames=", &arg) ||
5548
0
     skip_prefix(s, "rename-threshold=", &arg)) {
5549
0
    if ((opt->rename_score = parse_rename_score(&arg)) == -1 || *arg != 0)
5550
0
      return -1;
5551
0
    opt->detect_renames = 1;
5552
0
  }
5553
  /*
5554
   * Please update $__git_merge_strategy_options in
5555
   * git-completion.bash when you add new options
5556
   */
5557
0
  else
5558
0
    return -1;
5559
0
  return 0;
5560
0
}