peel_ref(): fix return value for non-peelable, not-current reference
[git/mingw.git] / refs.c
blob787db21dfc1033082e98a10b0310b8a12c9f6c43
1 #include "cache.h"
2 #include "refs.h"
3 #include "object.h"
4 #include "tag.h"
5 #include "dir.h"
7 /*
8 * Make sure "ref" is something reasonable to have under ".git/refs/";
9 * We do not like it if:
11 * - any path component of it begins with ".", or
12 * - it has double dots "..", or
13 * - it has ASCII control character, "~", "^", ":" or SP, anywhere, or
14 * - it ends with a "/".
15 * - it ends with ".lock"
16 * - it contains a "\" (backslash)
19 /* Return true iff ch is not allowed in reference names. */
20 static inline int bad_ref_char(int ch)
22 if (((unsigned) ch) <= ' ' || ch == 0x7f ||
23 ch == '~' || ch == '^' || ch == ':' || ch == '\\')
24 return 1;
25 /* 2.13 Pattern Matching Notation */
26 if (ch == '*' || ch == '?' || ch == '[') /* Unsupported */
27 return 1;
28 return 0;
32 * Try to read one refname component from the front of refname. Return
33 * the length of the component found, or -1 if the component is not
34 * legal.
36 static int check_refname_component(const char *refname, int flags)
38 const char *cp;
39 char last = '\0';
41 for (cp = refname; ; cp++) {
42 char ch = *cp;
43 if (ch == '\0' || ch == '/')
44 break;
45 if (bad_ref_char(ch))
46 return -1; /* Illegal character in refname. */
47 if (last == '.' && ch == '.')
48 return -1; /* Refname contains "..". */
49 if (last == '@' && ch == '{')
50 return -1; /* Refname contains "@{". */
51 last = ch;
53 if (cp == refname)
54 return 0; /* Component has zero length. */
55 if (refname[0] == '.') {
56 if (!(flags & REFNAME_DOT_COMPONENT))
57 return -1; /* Component starts with '.'. */
59 * Even if leading dots are allowed, don't allow "."
60 * as a component (".." is prevented by a rule above).
62 if (refname[1] == '\0')
63 return -1; /* Component equals ".". */
65 if (cp - refname >= 5 && !memcmp(cp - 5, ".lock", 5))
66 return -1; /* Refname ends with ".lock". */
67 return cp - refname;
70 int check_refname_format(const char *refname, int flags)
72 int component_len, component_count = 0;
74 while (1) {
75 /* We are at the start of a path component. */
76 component_len = check_refname_component(refname, flags);
77 if (component_len <= 0) {
78 if ((flags & REFNAME_REFSPEC_PATTERN) &&
79 refname[0] == '*' &&
80 (refname[1] == '\0' || refname[1] == '/')) {
81 /* Accept one wildcard as a full refname component. */
82 flags &= ~REFNAME_REFSPEC_PATTERN;
83 component_len = 1;
84 } else {
85 return -1;
88 component_count++;
89 if (refname[component_len] == '\0')
90 break;
91 /* Skip to next component. */
92 refname += component_len + 1;
95 if (refname[component_len - 1] == '.')
96 return -1; /* Refname ends with '.'. */
97 if (!(flags & REFNAME_ALLOW_ONELEVEL) && component_count < 2)
98 return -1; /* Refname has only one component. */
99 return 0;
102 struct ref_entry;
105 * Information used (along with the information in ref_entry) to
106 * describe a single cached reference. This data structure only
107 * occurs embedded in a union in struct ref_entry, and only when
108 * (ref_entry->flag & REF_DIR) is zero.
110 struct ref_value {
112 * The name of the object to which this reference resolves
113 * (which may be a tag object). If REF_ISBROKEN, this is
114 * null. If REF_ISSYMREF, then this is the name of the object
115 * referred to by the last reference in the symlink chain.
117 unsigned char sha1[20];
120 * If REF_KNOWS_PEELED, then this field holds the peeled value
121 * of this reference, or null if the reference is known not to
122 * be peelable. See the documentation for peel_ref() for an
123 * exact definition of "peelable".
125 unsigned char peeled[20];
128 struct ref_cache;
131 * Information used (along with the information in ref_entry) to
132 * describe a level in the hierarchy of references. This data
133 * structure only occurs embedded in a union in struct ref_entry, and
134 * only when (ref_entry.flag & REF_DIR) is set. In that case,
135 * (ref_entry.flag & REF_INCOMPLETE) determines whether the references
136 * in the directory have already been read:
138 * (ref_entry.flag & REF_INCOMPLETE) unset -- a directory of loose
139 * or packed references, already read.
141 * (ref_entry.flag & REF_INCOMPLETE) set -- a directory of loose
142 * references that hasn't been read yet (nor has any of its
143 * subdirectories).
145 * Entries within a directory are stored within a growable array of
146 * pointers to ref_entries (entries, nr, alloc). Entries 0 <= i <
147 * sorted are sorted by their component name in strcmp() order and the
148 * remaining entries are unsorted.
150 * Loose references are read lazily, one directory at a time. When a
151 * directory of loose references is read, then all of the references
152 * in that directory are stored, and REF_INCOMPLETE stubs are created
153 * for any subdirectories, but the subdirectories themselves are not
154 * read. The reading is triggered by get_ref_dir().
156 struct ref_dir {
157 int nr, alloc;
160 * Entries with index 0 <= i < sorted are sorted by name. New
161 * entries are appended to the list unsorted, and are sorted
162 * only when required; thus we avoid the need to sort the list
163 * after the addition of every reference.
165 int sorted;
167 /* A pointer to the ref_cache that contains this ref_dir. */
168 struct ref_cache *ref_cache;
170 struct ref_entry **entries;
174 * Bit values for ref_entry::flag. REF_ISSYMREF=0x01,
175 * REF_ISPACKED=0x02, and REF_ISBROKEN=0x04 are public values; see
176 * refs.h.
180 * The field ref_entry->u.value.peeled of this value entry contains
181 * the correct peeled value for the reference, which might be
182 * null_sha1 if the reference is not a tag or if it is broken.
184 #define REF_KNOWS_PEELED 0x08
186 /* ref_entry represents a directory of references */
187 #define REF_DIR 0x10
190 * Entry has not yet been read from disk (used only for REF_DIR
191 * entries representing loose references)
193 #define REF_INCOMPLETE 0x20
196 * A ref_entry represents either a reference or a "subdirectory" of
197 * references.
199 * Each directory in the reference namespace is represented by a
200 * ref_entry with (flags & REF_DIR) set and containing a subdir member
201 * that holds the entries in that directory that have been read so
202 * far. If (flags & REF_INCOMPLETE) is set, then the directory and
203 * its subdirectories haven't been read yet. REF_INCOMPLETE is only
204 * used for loose reference directories.
206 * References are represented by a ref_entry with (flags & REF_DIR)
207 * unset and a value member that describes the reference's value. The
208 * flag member is at the ref_entry level, but it is also needed to
209 * interpret the contents of the value field (in other words, a
210 * ref_value object is not very much use without the enclosing
211 * ref_entry).
213 * Reference names cannot end with slash and directories' names are
214 * always stored with a trailing slash (except for the top-level
215 * directory, which is always denoted by ""). This has two nice
216 * consequences: (1) when the entries in each subdir are sorted
217 * lexicographically by name (as they usually are), the references in
218 * a whole tree can be generated in lexicographic order by traversing
219 * the tree in left-to-right, depth-first order; (2) the names of
220 * references and subdirectories cannot conflict, and therefore the
221 * presence of an empty subdirectory does not block the creation of a
222 * similarly-named reference. (The fact that reference names with the
223 * same leading components can conflict *with each other* is a
224 * separate issue that is regulated by is_refname_available().)
226 * Please note that the name field contains the fully-qualified
227 * reference (or subdirectory) name. Space could be saved by only
228 * storing the relative names. But that would require the full names
229 * to be generated on the fly when iterating in do_for_each_ref(), and
230 * would break callback functions, who have always been able to assume
231 * that the name strings that they are passed will not be freed during
232 * the iteration.
234 struct ref_entry {
235 unsigned char flag; /* ISSYMREF? ISPACKED? */
236 union {
237 struct ref_value value; /* if not (flags&REF_DIR) */
238 struct ref_dir subdir; /* if (flags&REF_DIR) */
239 } u;
241 * The full name of the reference (e.g., "refs/heads/master")
242 * or the full name of the directory with a trailing slash
243 * (e.g., "refs/heads/"):
245 char name[FLEX_ARRAY];
248 static void read_loose_refs(const char *dirname, struct ref_dir *dir);
250 static struct ref_dir *get_ref_dir(struct ref_entry *entry)
252 struct ref_dir *dir;
253 assert(entry->flag & REF_DIR);
254 dir = &entry->u.subdir;
255 if (entry->flag & REF_INCOMPLETE) {
256 read_loose_refs(entry->name, dir);
257 entry->flag &= ~REF_INCOMPLETE;
259 return dir;
262 static struct ref_entry *create_ref_entry(const char *refname,
263 const unsigned char *sha1, int flag,
264 int check_name)
266 int len;
267 struct ref_entry *ref;
269 if (check_name &&
270 check_refname_format(refname, REFNAME_ALLOW_ONELEVEL|REFNAME_DOT_COMPONENT))
271 die("Reference has invalid format: '%s'", refname);
272 len = strlen(refname) + 1;
273 ref = xmalloc(sizeof(struct ref_entry) + len);
274 hashcpy(ref->u.value.sha1, sha1);
275 hashclr(ref->u.value.peeled);
276 memcpy(ref->name, refname, len);
277 ref->flag = flag;
278 return ref;
281 static void clear_ref_dir(struct ref_dir *dir);
283 static void free_ref_entry(struct ref_entry *entry)
285 if (entry->flag & REF_DIR) {
287 * Do not use get_ref_dir() here, as that might
288 * trigger the reading of loose refs.
290 clear_ref_dir(&entry->u.subdir);
292 free(entry);
296 * Add a ref_entry to the end of dir (unsorted). Entry is always
297 * stored directly in dir; no recursion into subdirectories is
298 * done.
300 static void add_entry_to_dir(struct ref_dir *dir, struct ref_entry *entry)
302 ALLOC_GROW(dir->entries, dir->nr + 1, dir->alloc);
303 dir->entries[dir->nr++] = entry;
304 /* optimize for the case that entries are added in order */
305 if (dir->nr == 1 ||
306 (dir->nr == dir->sorted + 1 &&
307 strcmp(dir->entries[dir->nr - 2]->name,
308 dir->entries[dir->nr - 1]->name) < 0))
309 dir->sorted = dir->nr;
313 * Clear and free all entries in dir, recursively.
315 static void clear_ref_dir(struct ref_dir *dir)
317 int i;
318 for (i = 0; i < dir->nr; i++)
319 free_ref_entry(dir->entries[i]);
320 free(dir->entries);
321 dir->sorted = dir->nr = dir->alloc = 0;
322 dir->entries = NULL;
326 * Create a struct ref_entry object for the specified dirname.
327 * dirname is the name of the directory with a trailing slash (e.g.,
328 * "refs/heads/") or "" for the top-level directory.
330 static struct ref_entry *create_dir_entry(struct ref_cache *ref_cache,
331 const char *dirname, size_t len,
332 int incomplete)
334 struct ref_entry *direntry;
335 direntry = xcalloc(1, sizeof(struct ref_entry) + len + 1);
336 memcpy(direntry->name, dirname, len);
337 direntry->name[len] = '\0';
338 direntry->u.subdir.ref_cache = ref_cache;
339 direntry->flag = REF_DIR | (incomplete ? REF_INCOMPLETE : 0);
340 return direntry;
343 static int ref_entry_cmp(const void *a, const void *b)
345 struct ref_entry *one = *(struct ref_entry **)a;
346 struct ref_entry *two = *(struct ref_entry **)b;
347 return strcmp(one->name, two->name);
350 static void sort_ref_dir(struct ref_dir *dir);
352 struct string_slice {
353 size_t len;
354 const char *str;
357 static int ref_entry_cmp_sslice(const void *key_, const void *ent_)
359 struct string_slice *key = (struct string_slice *)key_;
360 struct ref_entry *ent = *(struct ref_entry **)ent_;
361 int entlen = strlen(ent->name);
362 int cmplen = key->len < entlen ? key->len : entlen;
363 int cmp = memcmp(key->str, ent->name, cmplen);
364 if (cmp)
365 return cmp;
366 return key->len - entlen;
370 * Return the entry with the given refname from the ref_dir
371 * (non-recursively), sorting dir if necessary. Return NULL if no
372 * such entry is found. dir must already be complete.
374 static struct ref_entry *search_ref_dir(struct ref_dir *dir,
375 const char *refname, size_t len)
377 struct ref_entry **r;
378 struct string_slice key;
380 if (refname == NULL || !dir->nr)
381 return NULL;
383 sort_ref_dir(dir);
384 key.len = len;
385 key.str = refname;
386 r = bsearch(&key, dir->entries, dir->nr, sizeof(*dir->entries),
387 ref_entry_cmp_sslice);
389 if (r == NULL)
390 return NULL;
392 return *r;
396 * Search for a directory entry directly within dir (without
397 * recursing). Sort dir if necessary. subdirname must be a directory
398 * name (i.e., end in '/'). If mkdir is set, then create the
399 * directory if it is missing; otherwise, return NULL if the desired
400 * directory cannot be found. dir must already be complete.
402 static struct ref_dir *search_for_subdir(struct ref_dir *dir,
403 const char *subdirname, size_t len,
404 int mkdir)
406 struct ref_entry *entry = search_ref_dir(dir, subdirname, len);
407 if (!entry) {
408 if (!mkdir)
409 return NULL;
411 * Since dir is complete, the absence of a subdir
412 * means that the subdir really doesn't exist;
413 * therefore, create an empty record for it but mark
414 * the record complete.
416 entry = create_dir_entry(dir->ref_cache, subdirname, len, 0);
417 add_entry_to_dir(dir, entry);
419 return get_ref_dir(entry);
423 * If refname is a reference name, find the ref_dir within the dir
424 * tree that should hold refname. If refname is a directory name
425 * (i.e., ends in '/'), then return that ref_dir itself. dir must
426 * represent the top-level directory and must already be complete.
427 * Sort ref_dirs and recurse into subdirectories as necessary. If
428 * mkdir is set, then create any missing directories; otherwise,
429 * return NULL if the desired directory cannot be found.
431 static struct ref_dir *find_containing_dir(struct ref_dir *dir,
432 const char *refname, int mkdir)
434 const char *slash;
435 for (slash = strchr(refname, '/'); slash; slash = strchr(slash + 1, '/')) {
436 size_t dirnamelen = slash - refname + 1;
437 struct ref_dir *subdir;
438 subdir = search_for_subdir(dir, refname, dirnamelen, mkdir);
439 if (!subdir) {
440 dir = NULL;
441 break;
443 dir = subdir;
446 return dir;
450 * Find the value entry with the given name in dir, sorting ref_dirs
451 * and recursing into subdirectories as necessary. If the name is not
452 * found or it corresponds to a directory entry, return NULL.
454 static struct ref_entry *find_ref(struct ref_dir *dir, const char *refname)
456 struct ref_entry *entry;
457 dir = find_containing_dir(dir, refname, 0);
458 if (!dir)
459 return NULL;
460 entry = search_ref_dir(dir, refname, strlen(refname));
461 return (entry && !(entry->flag & REF_DIR)) ? entry : NULL;
465 * Add a ref_entry to the ref_dir (unsorted), recursing into
466 * subdirectories as necessary. dir must represent the top-level
467 * directory. Return 0 on success.
469 static int add_ref(struct ref_dir *dir, struct ref_entry *ref)
471 dir = find_containing_dir(dir, ref->name, 1);
472 if (!dir)
473 return -1;
474 add_entry_to_dir(dir, ref);
475 return 0;
479 * Emit a warning and return true iff ref1 and ref2 have the same name
480 * and the same sha1. Die if they have the same name but different
481 * sha1s.
483 static int is_dup_ref(const struct ref_entry *ref1, const struct ref_entry *ref2)
485 if (strcmp(ref1->name, ref2->name))
486 return 0;
488 /* Duplicate name; make sure that they don't conflict: */
490 if ((ref1->flag & REF_DIR) || (ref2->flag & REF_DIR))
491 /* This is impossible by construction */
492 die("Reference directory conflict: %s", ref1->name);
494 if (hashcmp(ref1->u.value.sha1, ref2->u.value.sha1))
495 die("Duplicated ref, and SHA1s don't match: %s", ref1->name);
497 warning("Duplicated ref: %s", ref1->name);
498 return 1;
502 * Sort the entries in dir non-recursively (if they are not already
503 * sorted) and remove any duplicate entries.
505 static void sort_ref_dir(struct ref_dir *dir)
507 int i, j;
508 struct ref_entry *last = NULL;
511 * This check also prevents passing a zero-length array to qsort(),
512 * which is a problem on some platforms.
514 if (dir->sorted == dir->nr)
515 return;
517 qsort(dir->entries, dir->nr, sizeof(*dir->entries), ref_entry_cmp);
519 /* Remove any duplicates: */
520 for (i = 0, j = 0; j < dir->nr; j++) {
521 struct ref_entry *entry = dir->entries[j];
522 if (last && is_dup_ref(last, entry))
523 free_ref_entry(entry);
524 else
525 last = dir->entries[i++] = entry;
527 dir->sorted = dir->nr = i;
530 /* Include broken references in a do_for_each_ref*() iteration: */
531 #define DO_FOR_EACH_INCLUDE_BROKEN 0x01
534 * Return true iff the reference described by entry can be resolved to
535 * an object in the database. Emit a warning if the referred-to
536 * object does not exist.
538 static int ref_resolves_to_object(struct ref_entry *entry)
540 if (entry->flag & REF_ISBROKEN)
541 return 0;
542 if (!has_sha1_file(entry->u.value.sha1)) {
543 error("%s does not point to a valid object!", entry->name);
544 return 0;
546 return 1;
550 * current_ref is a performance hack: when iterating over references
551 * using the for_each_ref*() functions, current_ref is set to the
552 * current reference's entry before calling the callback function. If
553 * the callback function calls peel_ref(), then peel_ref() first
554 * checks whether the reference to be peeled is the current reference
555 * (it usually is) and if so, returns that reference's peeled version
556 * if it is available. This avoids a refname lookup in a common case.
558 static struct ref_entry *current_ref;
561 * Handle one reference in a do_for_each_ref*()-style iteration.
563 static int do_one_ref(const char *base, each_ref_fn fn, int trim,
564 int flags, void *cb_data, struct ref_entry *entry)
566 int retval;
567 if (prefixcmp(entry->name, base))
568 return 0;
570 if (!(flags & DO_FOR_EACH_INCLUDE_BROKEN) &&
571 !ref_resolves_to_object(entry))
572 return 0;
574 current_ref = entry;
575 retval = fn(entry->name + trim, entry->u.value.sha1, entry->flag, cb_data);
576 current_ref = NULL;
577 return retval;
581 * Call fn for each reference in dir that has index in the range
582 * offset <= index < dir->nr. Recurse into subdirectories that are in
583 * that index range, sorting them before iterating. This function
584 * does not sort dir itself; it should be sorted beforehand.
586 static int do_for_each_ref_in_dir(struct ref_dir *dir, int offset,
587 const char *base,
588 each_ref_fn fn, int trim, int flags, void *cb_data)
590 int i;
591 assert(dir->sorted == dir->nr);
592 for (i = offset; i < dir->nr; i++) {
593 struct ref_entry *entry = dir->entries[i];
594 int retval;
595 if (entry->flag & REF_DIR) {
596 struct ref_dir *subdir = get_ref_dir(entry);
597 sort_ref_dir(subdir);
598 retval = do_for_each_ref_in_dir(subdir, 0,
599 base, fn, trim, flags, cb_data);
600 } else {
601 retval = do_one_ref(base, fn, trim, flags, cb_data, entry);
603 if (retval)
604 return retval;
606 return 0;
610 * Call fn for each reference in the union of dir1 and dir2, in order
611 * by refname. Recurse into subdirectories. If a value entry appears
612 * in both dir1 and dir2, then only process the version that is in
613 * dir2. The input dirs must already be sorted, but subdirs will be
614 * sorted as needed.
616 static int do_for_each_ref_in_dirs(struct ref_dir *dir1,
617 struct ref_dir *dir2,
618 const char *base, each_ref_fn fn, int trim,
619 int flags, void *cb_data)
621 int retval;
622 int i1 = 0, i2 = 0;
624 assert(dir1->sorted == dir1->nr);
625 assert(dir2->sorted == dir2->nr);
626 while (1) {
627 struct ref_entry *e1, *e2;
628 int cmp;
629 if (i1 == dir1->nr) {
630 return do_for_each_ref_in_dir(dir2, i2,
631 base, fn, trim, flags, cb_data);
633 if (i2 == dir2->nr) {
634 return do_for_each_ref_in_dir(dir1, i1,
635 base, fn, trim, flags, cb_data);
637 e1 = dir1->entries[i1];
638 e2 = dir2->entries[i2];
639 cmp = strcmp(e1->name, e2->name);
640 if (cmp == 0) {
641 if ((e1->flag & REF_DIR) && (e2->flag & REF_DIR)) {
642 /* Both are directories; descend them in parallel. */
643 struct ref_dir *subdir1 = get_ref_dir(e1);
644 struct ref_dir *subdir2 = get_ref_dir(e2);
645 sort_ref_dir(subdir1);
646 sort_ref_dir(subdir2);
647 retval = do_for_each_ref_in_dirs(
648 subdir1, subdir2,
649 base, fn, trim, flags, cb_data);
650 i1++;
651 i2++;
652 } else if (!(e1->flag & REF_DIR) && !(e2->flag & REF_DIR)) {
653 /* Both are references; ignore the one from dir1. */
654 retval = do_one_ref(base, fn, trim, flags, cb_data, e2);
655 i1++;
656 i2++;
657 } else {
658 die("conflict between reference and directory: %s",
659 e1->name);
661 } else {
662 struct ref_entry *e;
663 if (cmp < 0) {
664 e = e1;
665 i1++;
666 } else {
667 e = e2;
668 i2++;
670 if (e->flag & REF_DIR) {
671 struct ref_dir *subdir = get_ref_dir(e);
672 sort_ref_dir(subdir);
673 retval = do_for_each_ref_in_dir(
674 subdir, 0,
675 base, fn, trim, flags, cb_data);
676 } else {
677 retval = do_one_ref(base, fn, trim, flags, cb_data, e);
680 if (retval)
681 return retval;
686 * Return true iff refname1 and refname2 conflict with each other.
687 * Two reference names conflict if one of them exactly matches the
688 * leading components of the other; e.g., "foo/bar" conflicts with
689 * both "foo" and with "foo/bar/baz" but not with "foo/bar" or
690 * "foo/barbados".
692 static int names_conflict(const char *refname1, const char *refname2)
694 for (; *refname1 && *refname1 == *refname2; refname1++, refname2++)
696 return (*refname1 == '\0' && *refname2 == '/')
697 || (*refname1 == '/' && *refname2 == '\0');
700 struct name_conflict_cb {
701 const char *refname;
702 const char *oldrefname;
703 const char *conflicting_refname;
706 static int name_conflict_fn(const char *existingrefname, const unsigned char *sha1,
707 int flags, void *cb_data)
709 struct name_conflict_cb *data = (struct name_conflict_cb *)cb_data;
710 if (data->oldrefname && !strcmp(data->oldrefname, existingrefname))
711 return 0;
712 if (names_conflict(data->refname, existingrefname)) {
713 data->conflicting_refname = existingrefname;
714 return 1;
716 return 0;
720 * Return true iff a reference named refname could be created without
721 * conflicting with the name of an existing reference in array. If
722 * oldrefname is non-NULL, ignore potential conflicts with oldrefname
723 * (e.g., because oldrefname is scheduled for deletion in the same
724 * operation).
726 static int is_refname_available(const char *refname, const char *oldrefname,
727 struct ref_dir *dir)
729 struct name_conflict_cb data;
730 data.refname = refname;
731 data.oldrefname = oldrefname;
732 data.conflicting_refname = NULL;
734 sort_ref_dir(dir);
735 if (do_for_each_ref_in_dir(dir, 0, "", name_conflict_fn,
736 0, DO_FOR_EACH_INCLUDE_BROKEN,
737 &data)) {
738 error("'%s' exists; cannot create '%s'",
739 data.conflicting_refname, refname);
740 return 0;
742 return 1;
746 * Future: need to be in "struct repository"
747 * when doing a full libification.
749 static struct ref_cache {
750 struct ref_cache *next;
751 struct ref_entry *loose;
752 struct ref_entry *packed;
753 /* The submodule name, or "" for the main repo. */
754 char name[FLEX_ARRAY];
755 } *ref_cache;
757 static void clear_packed_ref_cache(struct ref_cache *refs)
759 if (refs->packed) {
760 free_ref_entry(refs->packed);
761 refs->packed = NULL;
765 static void clear_loose_ref_cache(struct ref_cache *refs)
767 if (refs->loose) {
768 free_ref_entry(refs->loose);
769 refs->loose = NULL;
773 static struct ref_cache *create_ref_cache(const char *submodule)
775 int len;
776 struct ref_cache *refs;
777 if (!submodule)
778 submodule = "";
779 len = strlen(submodule) + 1;
780 refs = xcalloc(1, sizeof(struct ref_cache) + len);
781 memcpy(refs->name, submodule, len);
782 return refs;
786 * Return a pointer to a ref_cache for the specified submodule. For
787 * the main repository, use submodule==NULL. The returned structure
788 * will be allocated and initialized but not necessarily populated; it
789 * should not be freed.
791 static struct ref_cache *get_ref_cache(const char *submodule)
793 struct ref_cache *refs = ref_cache;
794 if (!submodule)
795 submodule = "";
796 while (refs) {
797 if (!strcmp(submodule, refs->name))
798 return refs;
799 refs = refs->next;
802 refs = create_ref_cache(submodule);
803 refs->next = ref_cache;
804 ref_cache = refs;
805 return refs;
808 void invalidate_ref_cache(const char *submodule)
810 struct ref_cache *refs = get_ref_cache(submodule);
811 clear_packed_ref_cache(refs);
812 clear_loose_ref_cache(refs);
815 /* The length of a peeled reference line in packed-refs, including EOL: */
816 #define PEELED_LINE_LENGTH 42
819 * Parse one line from a packed-refs file. Write the SHA1 to sha1.
820 * Return a pointer to the refname within the line (null-terminated),
821 * or NULL if there was a problem.
823 static const char *parse_ref_line(char *line, unsigned char *sha1)
826 * 42: the answer to everything.
828 * In this case, it happens to be the answer to
829 * 40 (length of sha1 hex representation)
830 * +1 (space in between hex and name)
831 * +1 (newline at the end of the line)
833 int len = strlen(line) - 42;
835 if (len <= 0)
836 return NULL;
837 if (get_sha1_hex(line, sha1) < 0)
838 return NULL;
839 if (!isspace(line[40]))
840 return NULL;
841 line += 41;
842 if (isspace(*line))
843 return NULL;
844 if (line[len] != '\n')
845 return NULL;
846 line[len] = 0;
848 return line;
852 * Read f, which is a packed-refs file, into dir.
854 * A comment line of the form "# pack-refs with: " may contain zero or
855 * more traits. We interpret the traits as follows:
857 * No traits:
859 * Probably no references are peeled. But if the file contains a
860 * peeled value for a reference, we will use it.
862 * peeled:
864 * References under "refs/tags/", if they *can* be peeled, *are*
865 * peeled in this file. References outside of "refs/tags/" are
866 * probably not peeled even if they could have been, but if we find
867 * a peeled value for such a reference we will use it.
869 * fully-peeled:
871 * All references in the file that can be peeled are peeled.
872 * Inversely (and this is more important), any references in the
873 * file for which no peeled value is recorded is not peelable. This
874 * trait should typically be written alongside "peeled" for
875 * compatibility with older clients, but we do not require it
876 * (i.e., "peeled" is a no-op if "fully-peeled" is set).
878 static void read_packed_refs(FILE *f, struct ref_dir *dir)
880 struct ref_entry *last = NULL;
881 char refline[PATH_MAX];
882 enum { PEELED_NONE, PEELED_TAGS, PEELED_FULLY } peeled = PEELED_NONE;
884 while (fgets(refline, sizeof(refline), f)) {
885 unsigned char sha1[20];
886 const char *refname;
887 static const char header[] = "# pack-refs with:";
889 if (!strncmp(refline, header, sizeof(header)-1)) {
890 const char *traits = refline + sizeof(header) - 1;
891 if (strstr(traits, " fully-peeled "))
892 peeled = PEELED_FULLY;
893 else if (strstr(traits, " peeled "))
894 peeled = PEELED_TAGS;
895 /* perhaps other traits later as well */
896 continue;
899 refname = parse_ref_line(refline, sha1);
900 if (refname) {
901 last = create_ref_entry(refname, sha1, REF_ISPACKED, 1);
902 if (peeled == PEELED_FULLY ||
903 (peeled == PEELED_TAGS && !prefixcmp(refname, "refs/tags/")))
904 last->flag |= REF_KNOWS_PEELED;
905 add_ref(dir, last);
906 continue;
908 if (last &&
909 refline[0] == '^' &&
910 strlen(refline) == PEELED_LINE_LENGTH &&
911 refline[PEELED_LINE_LENGTH - 1] == '\n' &&
912 !get_sha1_hex(refline + 1, sha1)) {
913 hashcpy(last->u.value.peeled, sha1);
915 * Regardless of what the file header said,
916 * we definitely know the value of *this*
917 * reference:
919 last->flag |= REF_KNOWS_PEELED;
924 static struct ref_dir *get_packed_refs(struct ref_cache *refs)
926 if (!refs->packed) {
927 const char *packed_refs_file;
928 FILE *f;
930 refs->packed = create_dir_entry(refs, "", 0, 0);
931 if (*refs->name)
932 packed_refs_file = git_path_submodule(refs->name, "packed-refs");
933 else
934 packed_refs_file = git_path("packed-refs");
935 f = fopen(packed_refs_file, "r");
936 if (f) {
937 read_packed_refs(f, get_ref_dir(refs->packed));
938 fclose(f);
941 return get_ref_dir(refs->packed);
944 void add_packed_ref(const char *refname, const unsigned char *sha1)
946 add_ref(get_packed_refs(get_ref_cache(NULL)),
947 create_ref_entry(refname, sha1, REF_ISPACKED, 1));
951 * Read the loose references from the namespace dirname into dir
952 * (without recursing). dirname must end with '/'. dir must be the
953 * directory entry corresponding to dirname.
955 static void read_loose_refs(const char *dirname, struct ref_dir *dir)
957 struct ref_cache *refs = dir->ref_cache;
958 DIR *d;
959 const char *path;
960 struct dirent *de;
961 int dirnamelen = strlen(dirname);
962 struct strbuf refname;
964 if (*refs->name)
965 path = git_path_submodule(refs->name, "%s", dirname);
966 else
967 path = git_path("%s", dirname);
969 d = opendir(path);
970 if (!d)
971 return;
973 strbuf_init(&refname, dirnamelen + 257);
974 strbuf_add(&refname, dirname, dirnamelen);
976 while ((de = readdir(d)) != NULL) {
977 unsigned char sha1[20];
978 struct stat st;
979 int flag;
980 const char *refdir;
982 if (de->d_name[0] == '.')
983 continue;
984 if (has_extension(de->d_name, ".lock"))
985 continue;
986 strbuf_addstr(&refname, de->d_name);
987 refdir = *refs->name
988 ? git_path_submodule(refs->name, "%s", refname.buf)
989 : git_path("%s", refname.buf);
990 if (stat(refdir, &st) < 0) {
991 ; /* silently ignore */
992 } else if (S_ISDIR(st.st_mode)) {
993 strbuf_addch(&refname, '/');
994 add_entry_to_dir(dir,
995 create_dir_entry(refs, refname.buf,
996 refname.len, 1));
997 } else {
998 if (*refs->name) {
999 hashclr(sha1);
1000 flag = 0;
1001 if (resolve_gitlink_ref(refs->name, refname.buf, sha1) < 0) {
1002 hashclr(sha1);
1003 flag |= REF_ISBROKEN;
1005 } else if (read_ref_full(refname.buf, sha1, 1, &flag)) {
1006 hashclr(sha1);
1007 flag |= REF_ISBROKEN;
1009 add_entry_to_dir(dir,
1010 create_ref_entry(refname.buf, sha1, flag, 1));
1012 strbuf_setlen(&refname, dirnamelen);
1014 strbuf_release(&refname);
1015 closedir(d);
1018 static struct ref_dir *get_loose_refs(struct ref_cache *refs)
1020 if (!refs->loose) {
1022 * Mark the top-level directory complete because we
1023 * are about to read the only subdirectory that can
1024 * hold references:
1026 refs->loose = create_dir_entry(refs, "", 0, 0);
1028 * Create an incomplete entry for "refs/":
1030 add_entry_to_dir(get_ref_dir(refs->loose),
1031 create_dir_entry(refs, "refs/", 5, 1));
1033 return get_ref_dir(refs->loose);
1036 /* We allow "recursive" symbolic refs. Only within reason, though */
1037 #define MAXDEPTH 5
1038 #define MAXREFLEN (1024)
1041 * Called by resolve_gitlink_ref_recursive() after it failed to read
1042 * from the loose refs in ref_cache refs. Find <refname> in the
1043 * packed-refs file for the submodule.
1045 static int resolve_gitlink_packed_ref(struct ref_cache *refs,
1046 const char *refname, unsigned char *sha1)
1048 struct ref_entry *ref;
1049 struct ref_dir *dir = get_packed_refs(refs);
1051 ref = find_ref(dir, refname);
1052 if (ref == NULL)
1053 return -1;
1055 memcpy(sha1, ref->u.value.sha1, 20);
1056 return 0;
1059 static int resolve_gitlink_ref_recursive(struct ref_cache *refs,
1060 const char *refname, unsigned char *sha1,
1061 int recursion)
1063 int fd, len;
1064 char buffer[128], *p;
1065 char *path;
1067 if (recursion > MAXDEPTH || strlen(refname) > MAXREFLEN)
1068 return -1;
1069 path = *refs->name
1070 ? git_path_submodule(refs->name, "%s", refname)
1071 : git_path("%s", refname);
1072 fd = open(path, O_RDONLY);
1073 if (fd < 0)
1074 return resolve_gitlink_packed_ref(refs, refname, sha1);
1076 len = read(fd, buffer, sizeof(buffer)-1);
1077 close(fd);
1078 if (len < 0)
1079 return -1;
1080 while (len && isspace(buffer[len-1]))
1081 len--;
1082 buffer[len] = 0;
1084 /* Was it a detached head or an old-fashioned symlink? */
1085 if (!get_sha1_hex(buffer, sha1))
1086 return 0;
1088 /* Symref? */
1089 if (strncmp(buffer, "ref:", 4))
1090 return -1;
1091 p = buffer + 4;
1092 while (isspace(*p))
1093 p++;
1095 return resolve_gitlink_ref_recursive(refs, p, sha1, recursion+1);
1098 int resolve_gitlink_ref(const char *path, const char *refname, unsigned char *sha1)
1100 int len = strlen(path), retval;
1101 char *submodule;
1102 struct ref_cache *refs;
1104 while (len && path[len-1] == '/')
1105 len--;
1106 if (!len)
1107 return -1;
1108 submodule = xstrndup(path, len);
1109 refs = get_ref_cache(submodule);
1110 free(submodule);
1112 retval = resolve_gitlink_ref_recursive(refs, refname, sha1, 0);
1113 return retval;
1117 * Return the ref_entry for the given refname from the packed
1118 * references. If it does not exist, return NULL.
1120 static struct ref_entry *get_packed_ref(const char *refname)
1122 return find_ref(get_packed_refs(get_ref_cache(NULL)), refname);
1125 const char *resolve_ref_unsafe(const char *refname, unsigned char *sha1, int reading, int *flag)
1127 int depth = MAXDEPTH;
1128 ssize_t len;
1129 char buffer[256];
1130 static char refname_buffer[256];
1132 if (flag)
1133 *flag = 0;
1135 if (check_refname_format(refname, REFNAME_ALLOW_ONELEVEL))
1136 return NULL;
1138 for (;;) {
1139 char path[PATH_MAX];
1140 struct stat st;
1141 char *buf;
1142 int fd;
1144 if (--depth < 0)
1145 return NULL;
1147 git_snpath(path, sizeof(path), "%s", refname);
1149 if (lstat(path, &st) < 0) {
1150 struct ref_entry *entry;
1152 if (errno != ENOENT)
1153 return NULL;
1155 * The loose reference file does not exist;
1156 * check for a packed reference.
1158 entry = get_packed_ref(refname);
1159 if (entry) {
1160 hashcpy(sha1, entry->u.value.sha1);
1161 if (flag)
1162 *flag |= REF_ISPACKED;
1163 return refname;
1165 /* The reference is not a packed reference, either. */
1166 if (reading) {
1167 return NULL;
1168 } else {
1169 hashclr(sha1);
1170 return refname;
1174 /* Follow "normalized" - ie "refs/.." symlinks by hand */
1175 if (S_ISLNK(st.st_mode)) {
1176 len = readlink(path, buffer, sizeof(buffer)-1);
1177 if (len < 0)
1178 return NULL;
1179 buffer[len] = 0;
1180 if (!prefixcmp(buffer, "refs/") &&
1181 !check_refname_format(buffer, 0)) {
1182 strcpy(refname_buffer, buffer);
1183 refname = refname_buffer;
1184 if (flag)
1185 *flag |= REF_ISSYMREF;
1186 continue;
1190 /* Is it a directory? */
1191 if (S_ISDIR(st.st_mode)) {
1192 errno = EISDIR;
1193 return NULL;
1197 * Anything else, just open it and try to use it as
1198 * a ref
1200 fd = open(path, O_RDONLY);
1201 if (fd < 0)
1202 return NULL;
1203 len = read_in_full(fd, buffer, sizeof(buffer)-1);
1204 close(fd);
1205 if (len < 0)
1206 return NULL;
1207 while (len && isspace(buffer[len-1]))
1208 len--;
1209 buffer[len] = '\0';
1212 * Is it a symbolic ref?
1214 if (prefixcmp(buffer, "ref:"))
1215 break;
1216 if (flag)
1217 *flag |= REF_ISSYMREF;
1218 buf = buffer + 4;
1219 while (isspace(*buf))
1220 buf++;
1221 if (check_refname_format(buf, REFNAME_ALLOW_ONELEVEL)) {
1222 if (flag)
1223 *flag |= REF_ISBROKEN;
1224 return NULL;
1226 refname = strcpy(refname_buffer, buf);
1228 /* Please note that FETCH_HEAD has a second line containing other data. */
1229 if (get_sha1_hex(buffer, sha1) || (buffer[40] != '\0' && !isspace(buffer[40]))) {
1230 if (flag)
1231 *flag |= REF_ISBROKEN;
1232 return NULL;
1234 return refname;
1237 char *resolve_refdup(const char *ref, unsigned char *sha1, int reading, int *flag)
1239 const char *ret = resolve_ref_unsafe(ref, sha1, reading, flag);
1240 return ret ? xstrdup(ret) : NULL;
1243 /* The argument to filter_refs */
1244 struct ref_filter {
1245 const char *pattern;
1246 each_ref_fn *fn;
1247 void *cb_data;
1250 int read_ref_full(const char *refname, unsigned char *sha1, int reading, int *flags)
1252 if (resolve_ref_unsafe(refname, sha1, reading, flags))
1253 return 0;
1254 return -1;
1257 int read_ref(const char *refname, unsigned char *sha1)
1259 return read_ref_full(refname, sha1, 1, NULL);
1262 int ref_exists(const char *refname)
1264 unsigned char sha1[20];
1265 return !!resolve_ref_unsafe(refname, sha1, 1, NULL);
1268 static int filter_refs(const char *refname, const unsigned char *sha1, int flags,
1269 void *data)
1271 struct ref_filter *filter = (struct ref_filter *)data;
1272 if (fnmatch(filter->pattern, refname, 0))
1273 return 0;
1274 return filter->fn(refname, sha1, flags, filter->cb_data);
1277 enum peel_status {
1278 /* object was peeled successfully: */
1279 PEEL_PEELED = 0,
1282 * object cannot be peeled because the named object (or an
1283 * object referred to by a tag in the peel chain), does not
1284 * exist.
1286 PEEL_INVALID = -1,
1288 /* object cannot be peeled because it is not a tag: */
1289 PEEL_NON_TAG = -2
1293 * Peel the named object; i.e., if the object is a tag, resolve the
1294 * tag recursively until a non-tag is found. If successful, store the
1295 * result to sha1 and return PEEL_PEELED. If the object is not a tag
1296 * or is not valid, return PEEL_NON_TAG or PEEL_INVALID, respectively,
1297 * and leave sha1 unchanged.
1299 static enum peel_status peel_object(const unsigned char *name, unsigned char *sha1)
1301 struct object *o = lookup_unknown_object(name);
1303 if (o->type == OBJ_NONE) {
1304 int type = sha1_object_info(name, NULL);
1305 if (type < 0)
1306 return PEEL_INVALID;
1307 o->type = type;
1310 if (o->type != OBJ_TAG)
1311 return PEEL_NON_TAG;
1313 o = deref_tag_noverify(o);
1314 if (!o)
1315 return PEEL_INVALID;
1317 hashcpy(sha1, o->sha1);
1318 return PEEL_PEELED;
1321 int peel_ref(const char *refname, unsigned char *sha1)
1323 int flag;
1324 unsigned char base[20];
1326 if (current_ref && (current_ref->name == refname
1327 || !strcmp(current_ref->name, refname))) {
1328 if (current_ref->flag & REF_KNOWS_PEELED) {
1329 if (is_null_sha1(current_ref->u.value.peeled))
1330 return -1;
1331 hashcpy(sha1, current_ref->u.value.peeled);
1332 return 0;
1334 return peel_object(current_ref->u.value.sha1, sha1);
1337 if (read_ref_full(refname, base, 1, &flag))
1338 return -1;
1340 if ((flag & REF_ISPACKED)) {
1341 struct ref_entry *r = get_packed_ref(refname);
1343 if (r && (r->flag & REF_KNOWS_PEELED)) {
1344 if (is_null_sha1(r->u.value.peeled))
1345 return -1;
1346 hashcpy(sha1, r->u.value.peeled);
1347 return 0;
1351 return peel_object(base, sha1);
1354 struct warn_if_dangling_data {
1355 FILE *fp;
1356 const char *refname;
1357 const char *msg_fmt;
1360 static int warn_if_dangling_symref(const char *refname, const unsigned char *sha1,
1361 int flags, void *cb_data)
1363 struct warn_if_dangling_data *d = cb_data;
1364 const char *resolves_to;
1365 unsigned char junk[20];
1367 if (!(flags & REF_ISSYMREF))
1368 return 0;
1370 resolves_to = resolve_ref_unsafe(refname, junk, 0, NULL);
1371 if (!resolves_to || strcmp(resolves_to, d->refname))
1372 return 0;
1374 fprintf(d->fp, d->msg_fmt, refname);
1375 fputc('\n', d->fp);
1376 return 0;
1379 void warn_dangling_symref(FILE *fp, const char *msg_fmt, const char *refname)
1381 struct warn_if_dangling_data data;
1383 data.fp = fp;
1384 data.refname = refname;
1385 data.msg_fmt = msg_fmt;
1386 for_each_rawref(warn_if_dangling_symref, &data);
1390 * Call fn for each reference in the specified submodule for which the
1391 * refname begins with base. If trim is non-zero, then trim that many
1392 * characters off the beginning of each refname before passing the
1393 * refname to fn. flags can be DO_FOR_EACH_INCLUDE_BROKEN to include
1394 * broken references in the iteration. If fn ever returns a non-zero
1395 * value, stop the iteration and return that value; otherwise, return
1396 * 0.
1398 static int do_for_each_ref(const char *submodule, const char *base, each_ref_fn fn,
1399 int trim, int flags, void *cb_data)
1401 struct ref_cache *refs = get_ref_cache(submodule);
1402 struct ref_dir *packed_dir = get_packed_refs(refs);
1403 struct ref_dir *loose_dir = get_loose_refs(refs);
1404 int retval = 0;
1406 if (base && *base) {
1407 packed_dir = find_containing_dir(packed_dir, base, 0);
1408 loose_dir = find_containing_dir(loose_dir, base, 0);
1411 if (packed_dir && loose_dir) {
1412 sort_ref_dir(packed_dir);
1413 sort_ref_dir(loose_dir);
1414 retval = do_for_each_ref_in_dirs(
1415 packed_dir, loose_dir,
1416 base, fn, trim, flags, cb_data);
1417 } else if (packed_dir) {
1418 sort_ref_dir(packed_dir);
1419 retval = do_for_each_ref_in_dir(
1420 packed_dir, 0,
1421 base, fn, trim, flags, cb_data);
1422 } else if (loose_dir) {
1423 sort_ref_dir(loose_dir);
1424 retval = do_for_each_ref_in_dir(
1425 loose_dir, 0,
1426 base, fn, trim, flags, cb_data);
1429 return retval;
1432 static int do_head_ref(const char *submodule, each_ref_fn fn, void *cb_data)
1434 unsigned char sha1[20];
1435 int flag;
1437 if (submodule) {
1438 if (resolve_gitlink_ref(submodule, "HEAD", sha1) == 0)
1439 return fn("HEAD", sha1, 0, cb_data);
1441 return 0;
1444 if (!read_ref_full("HEAD", sha1, 1, &flag))
1445 return fn("HEAD", sha1, flag, cb_data);
1447 return 0;
1450 int head_ref(each_ref_fn fn, void *cb_data)
1452 return do_head_ref(NULL, fn, cb_data);
1455 int head_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
1457 return do_head_ref(submodule, fn, cb_data);
1460 int for_each_ref(each_ref_fn fn, void *cb_data)
1462 return do_for_each_ref(NULL, "", fn, 0, 0, cb_data);
1465 int for_each_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
1467 return do_for_each_ref(submodule, "", fn, 0, 0, cb_data);
1470 int for_each_ref_in(const char *prefix, each_ref_fn fn, void *cb_data)
1472 return do_for_each_ref(NULL, prefix, fn, strlen(prefix), 0, cb_data);
1475 int for_each_ref_in_submodule(const char *submodule, const char *prefix,
1476 each_ref_fn fn, void *cb_data)
1478 return do_for_each_ref(submodule, prefix, fn, strlen(prefix), 0, cb_data);
1481 int for_each_tag_ref(each_ref_fn fn, void *cb_data)
1483 return for_each_ref_in("refs/tags/", fn, cb_data);
1486 int for_each_tag_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
1488 return for_each_ref_in_submodule(submodule, "refs/tags/", fn, cb_data);
1491 int for_each_branch_ref(each_ref_fn fn, void *cb_data)
1493 return for_each_ref_in("refs/heads/", fn, cb_data);
1496 int for_each_branch_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
1498 return for_each_ref_in_submodule(submodule, "refs/heads/", fn, cb_data);
1501 int for_each_remote_ref(each_ref_fn fn, void *cb_data)
1503 return for_each_ref_in("refs/remotes/", fn, cb_data);
1506 int for_each_remote_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
1508 return for_each_ref_in_submodule(submodule, "refs/remotes/", fn, cb_data);
1511 int for_each_replace_ref(each_ref_fn fn, void *cb_data)
1513 return do_for_each_ref(NULL, "refs/replace/", fn, 13, 0, cb_data);
1516 int head_ref_namespaced(each_ref_fn fn, void *cb_data)
1518 struct strbuf buf = STRBUF_INIT;
1519 int ret = 0;
1520 unsigned char sha1[20];
1521 int flag;
1523 strbuf_addf(&buf, "%sHEAD", get_git_namespace());
1524 if (!read_ref_full(buf.buf, sha1, 1, &flag))
1525 ret = fn(buf.buf, sha1, flag, cb_data);
1526 strbuf_release(&buf);
1528 return ret;
1531 int for_each_namespaced_ref(each_ref_fn fn, void *cb_data)
1533 struct strbuf buf = STRBUF_INIT;
1534 int ret;
1535 strbuf_addf(&buf, "%srefs/", get_git_namespace());
1536 ret = do_for_each_ref(NULL, buf.buf, fn, 0, 0, cb_data);
1537 strbuf_release(&buf);
1538 return ret;
1541 int for_each_glob_ref_in(each_ref_fn fn, const char *pattern,
1542 const char *prefix, void *cb_data)
1544 struct strbuf real_pattern = STRBUF_INIT;
1545 struct ref_filter filter;
1546 int ret;
1548 if (!prefix && prefixcmp(pattern, "refs/"))
1549 strbuf_addstr(&real_pattern, "refs/");
1550 else if (prefix)
1551 strbuf_addstr(&real_pattern, prefix);
1552 strbuf_addstr(&real_pattern, pattern);
1554 if (!has_glob_specials(pattern)) {
1555 /* Append implied '/' '*' if not present. */
1556 if (real_pattern.buf[real_pattern.len - 1] != '/')
1557 strbuf_addch(&real_pattern, '/');
1558 /* No need to check for '*', there is none. */
1559 strbuf_addch(&real_pattern, '*');
1562 filter.pattern = real_pattern.buf;
1563 filter.fn = fn;
1564 filter.cb_data = cb_data;
1565 ret = for_each_ref(filter_refs, &filter);
1567 strbuf_release(&real_pattern);
1568 return ret;
1571 int for_each_glob_ref(each_ref_fn fn, const char *pattern, void *cb_data)
1573 return for_each_glob_ref_in(fn, pattern, NULL, cb_data);
1576 int for_each_rawref(each_ref_fn fn, void *cb_data)
1578 return do_for_each_ref(NULL, "", fn, 0,
1579 DO_FOR_EACH_INCLUDE_BROKEN, cb_data);
1582 const char *prettify_refname(const char *name)
1584 return name + (
1585 !prefixcmp(name, "refs/heads/") ? 11 :
1586 !prefixcmp(name, "refs/tags/") ? 10 :
1587 !prefixcmp(name, "refs/remotes/") ? 13 :
1591 const char *ref_rev_parse_rules[] = {
1592 "%.*s",
1593 "refs/%.*s",
1594 "refs/tags/%.*s",
1595 "refs/heads/%.*s",
1596 "refs/remotes/%.*s",
1597 "refs/remotes/%.*s/HEAD",
1598 NULL
1601 int refname_match(const char *abbrev_name, const char *full_name, const char **rules)
1603 const char **p;
1604 const int abbrev_name_len = strlen(abbrev_name);
1606 for (p = rules; *p; p++) {
1607 if (!strcmp(full_name, mkpath(*p, abbrev_name_len, abbrev_name))) {
1608 return 1;
1612 return 0;
1615 static struct ref_lock *verify_lock(struct ref_lock *lock,
1616 const unsigned char *old_sha1, int mustexist)
1618 if (read_ref_full(lock->ref_name, lock->old_sha1, mustexist, NULL)) {
1619 error("Can't verify ref %s", lock->ref_name);
1620 unlock_ref(lock);
1621 return NULL;
1623 if (hashcmp(lock->old_sha1, old_sha1)) {
1624 error("Ref %s is at %s but expected %s", lock->ref_name,
1625 sha1_to_hex(lock->old_sha1), sha1_to_hex(old_sha1));
1626 unlock_ref(lock);
1627 return NULL;
1629 return lock;
1632 static int remove_empty_directories(const char *file)
1634 /* we want to create a file but there is a directory there;
1635 * if that is an empty directory (or a directory that contains
1636 * only empty directories), remove them.
1638 struct strbuf path;
1639 int result;
1641 strbuf_init(&path, 20);
1642 strbuf_addstr(&path, file);
1644 result = remove_dir_recursively(&path, REMOVE_DIR_EMPTY_ONLY);
1646 strbuf_release(&path);
1648 return result;
1652 * *string and *len will only be substituted, and *string returned (for
1653 * later free()ing) if the string passed in is a magic short-hand form
1654 * to name a branch.
1656 static char *substitute_branch_name(const char **string, int *len)
1658 struct strbuf buf = STRBUF_INIT;
1659 int ret = interpret_branch_name(*string, &buf);
1661 if (ret == *len) {
1662 size_t size;
1663 *string = strbuf_detach(&buf, &size);
1664 *len = size;
1665 return (char *)*string;
1668 return NULL;
1671 int dwim_ref(const char *str, int len, unsigned char *sha1, char **ref)
1673 char *last_branch = substitute_branch_name(&str, &len);
1674 const char **p, *r;
1675 int refs_found = 0;
1677 *ref = NULL;
1678 for (p = ref_rev_parse_rules; *p; p++) {
1679 char fullref[PATH_MAX];
1680 unsigned char sha1_from_ref[20];
1681 unsigned char *this_result;
1682 int flag;
1684 this_result = refs_found ? sha1_from_ref : sha1;
1685 mksnpath(fullref, sizeof(fullref), *p, len, str);
1686 r = resolve_ref_unsafe(fullref, this_result, 1, &flag);
1687 if (r) {
1688 if (!refs_found++)
1689 *ref = xstrdup(r);
1690 if (!warn_ambiguous_refs)
1691 break;
1692 } else if ((flag & REF_ISSYMREF) && strcmp(fullref, "HEAD")) {
1693 warning("ignoring dangling symref %s.", fullref);
1694 } else if ((flag & REF_ISBROKEN) && strchr(fullref, '/')) {
1695 warning("ignoring broken ref %s.", fullref);
1698 free(last_branch);
1699 return refs_found;
1702 int dwim_log(const char *str, int len, unsigned char *sha1, char **log)
1704 char *last_branch = substitute_branch_name(&str, &len);
1705 const char **p;
1706 int logs_found = 0;
1708 *log = NULL;
1709 for (p = ref_rev_parse_rules; *p; p++) {
1710 struct stat st;
1711 unsigned char hash[20];
1712 char path[PATH_MAX];
1713 const char *ref, *it;
1715 mksnpath(path, sizeof(path), *p, len, str);
1716 ref = resolve_ref_unsafe(path, hash, 1, NULL);
1717 if (!ref)
1718 continue;
1719 if (!stat(git_path("logs/%s", path), &st) &&
1720 S_ISREG(st.st_mode))
1721 it = path;
1722 else if (strcmp(ref, path) &&
1723 !stat(git_path("logs/%s", ref), &st) &&
1724 S_ISREG(st.st_mode))
1725 it = ref;
1726 else
1727 continue;
1728 if (!logs_found++) {
1729 *log = xstrdup(it);
1730 hashcpy(sha1, hash);
1732 if (!warn_ambiguous_refs)
1733 break;
1735 free(last_branch);
1736 return logs_found;
1739 static struct ref_lock *lock_ref_sha1_basic(const char *refname,
1740 const unsigned char *old_sha1,
1741 int flags, int *type_p)
1743 char *ref_file;
1744 const char *orig_refname = refname;
1745 struct ref_lock *lock;
1746 int last_errno = 0;
1747 int type, lflags;
1748 int mustexist = (old_sha1 && !is_null_sha1(old_sha1));
1749 int missing = 0;
1751 lock = xcalloc(1, sizeof(struct ref_lock));
1752 lock->lock_fd = -1;
1754 refname = resolve_ref_unsafe(refname, lock->old_sha1, mustexist, &type);
1755 if (!refname && errno == EISDIR) {
1756 /* we are trying to lock foo but we used to
1757 * have foo/bar which now does not exist;
1758 * it is normal for the empty directory 'foo'
1759 * to remain.
1761 ref_file = git_path("%s", orig_refname);
1762 if (remove_empty_directories(ref_file)) {
1763 last_errno = errno;
1764 error("there are still refs under '%s'", orig_refname);
1765 goto error_return;
1767 refname = resolve_ref_unsafe(orig_refname, lock->old_sha1, mustexist, &type);
1769 if (type_p)
1770 *type_p = type;
1771 if (!refname) {
1772 last_errno = errno;
1773 error("unable to resolve reference %s: %s",
1774 orig_refname, strerror(errno));
1775 goto error_return;
1777 missing = is_null_sha1(lock->old_sha1);
1778 /* When the ref did not exist and we are creating it,
1779 * make sure there is no existing ref that is packed
1780 * whose name begins with our refname, nor a ref whose
1781 * name is a proper prefix of our refname.
1783 if (missing &&
1784 !is_refname_available(refname, NULL, get_packed_refs(get_ref_cache(NULL)))) {
1785 last_errno = ENOTDIR;
1786 goto error_return;
1789 lock->lk = xcalloc(1, sizeof(struct lock_file));
1791 lflags = LOCK_DIE_ON_ERROR;
1792 if (flags & REF_NODEREF) {
1793 refname = orig_refname;
1794 lflags |= LOCK_NODEREF;
1796 lock->ref_name = xstrdup(refname);
1797 lock->orig_ref_name = xstrdup(orig_refname);
1798 ref_file = git_path("%s", refname);
1799 if (missing)
1800 lock->force_write = 1;
1801 if ((flags & REF_NODEREF) && (type & REF_ISSYMREF))
1802 lock->force_write = 1;
1804 if (safe_create_leading_directories(ref_file)) {
1805 last_errno = errno;
1806 error("unable to create directory for %s", ref_file);
1807 goto error_return;
1810 lock->lock_fd = hold_lock_file_for_update(lock->lk, ref_file, lflags);
1811 return old_sha1 ? verify_lock(lock, old_sha1, mustexist) : lock;
1813 error_return:
1814 unlock_ref(lock);
1815 errno = last_errno;
1816 return NULL;
1819 struct ref_lock *lock_ref_sha1(const char *refname, const unsigned char *old_sha1)
1821 char refpath[PATH_MAX];
1822 if (check_refname_format(refname, 0))
1823 return NULL;
1824 strcpy(refpath, mkpath("refs/%s", refname));
1825 return lock_ref_sha1_basic(refpath, old_sha1, 0, NULL);
1828 struct ref_lock *lock_any_ref_for_update(const char *refname,
1829 const unsigned char *old_sha1, int flags)
1831 if (check_refname_format(refname, REFNAME_ALLOW_ONELEVEL))
1832 return NULL;
1833 return lock_ref_sha1_basic(refname, old_sha1, flags, NULL);
1836 struct repack_without_ref_sb {
1837 const char *refname;
1838 int fd;
1841 static int repack_without_ref_fn(const char *refname, const unsigned char *sha1,
1842 int flags, void *cb_data)
1844 struct repack_without_ref_sb *data = cb_data;
1845 char line[PATH_MAX + 100];
1846 int len;
1848 if (!strcmp(data->refname, refname))
1849 return 0;
1850 len = snprintf(line, sizeof(line), "%s %s\n",
1851 sha1_to_hex(sha1), refname);
1852 /* this should not happen but just being defensive */
1853 if (len > sizeof(line))
1854 die("too long a refname '%s'", refname);
1855 write_or_die(data->fd, line, len);
1856 return 0;
1859 static struct lock_file packlock;
1861 static int repack_without_ref(const char *refname)
1863 struct repack_without_ref_sb data;
1864 struct ref_cache *refs = get_ref_cache(NULL);
1865 struct ref_dir *packed;
1867 if (!get_packed_ref(refname))
1868 return 0; /* refname does not exist in packed refs */
1870 data.refname = refname;
1871 data.fd = hold_lock_file_for_update(&packlock, git_path("packed-refs"), 0);
1872 if (data.fd < 0) {
1873 unable_to_lock_error(git_path("packed-refs"), errno);
1874 return error("cannot delete '%s' from packed refs", refname);
1876 clear_packed_ref_cache(refs);
1877 packed = get_packed_refs(refs);
1878 do_for_each_ref_in_dir(packed, 0, "", repack_without_ref_fn, 0, 0, &data);
1879 return commit_lock_file(&packlock);
1882 int delete_ref(const char *refname, const unsigned char *sha1, int delopt)
1884 struct ref_lock *lock;
1885 int err, i = 0, ret = 0, flag = 0;
1887 lock = lock_ref_sha1_basic(refname, sha1, delopt, &flag);
1888 if (!lock)
1889 return 1;
1890 if (!(flag & REF_ISPACKED) || flag & REF_ISSYMREF) {
1891 /* loose */
1892 i = strlen(lock->lk->filename) - 5; /* .lock */
1893 lock->lk->filename[i] = 0;
1894 err = unlink_or_warn(lock->lk->filename);
1895 if (err && errno != ENOENT)
1896 ret = 1;
1898 lock->lk->filename[i] = '.';
1900 /* removing the loose one could have resurrected an earlier
1901 * packed one. Also, if it was not loose we need to repack
1902 * without it.
1904 ret |= repack_without_ref(lock->ref_name);
1906 unlink_or_warn(git_path("logs/%s", lock->ref_name));
1907 invalidate_ref_cache(NULL);
1908 unlock_ref(lock);
1909 return ret;
1913 * People using contrib's git-new-workdir have .git/logs/refs ->
1914 * /some/other/path/.git/logs/refs, and that may live on another device.
1916 * IOW, to avoid cross device rename errors, the temporary renamed log must
1917 * live into logs/refs.
1919 #define TMP_RENAMED_LOG "logs/refs/.tmp-renamed-log"
1921 int rename_ref(const char *oldrefname, const char *newrefname, const char *logmsg)
1923 unsigned char sha1[20], orig_sha1[20];
1924 int flag = 0, logmoved = 0;
1925 struct ref_lock *lock;
1926 struct stat loginfo;
1927 int log = !lstat(git_path("logs/%s", oldrefname), &loginfo);
1928 const char *symref = NULL;
1929 struct ref_cache *refs = get_ref_cache(NULL);
1931 if (log && S_ISLNK(loginfo.st_mode))
1932 return error("reflog for %s is a symlink", oldrefname);
1934 symref = resolve_ref_unsafe(oldrefname, orig_sha1, 1, &flag);
1935 if (flag & REF_ISSYMREF)
1936 return error("refname %s is a symbolic ref, renaming it is not supported",
1937 oldrefname);
1938 if (!symref)
1939 return error("refname %s not found", oldrefname);
1941 if (!is_refname_available(newrefname, oldrefname, get_packed_refs(refs)))
1942 return 1;
1944 if (!is_refname_available(newrefname, oldrefname, get_loose_refs(refs)))
1945 return 1;
1947 if (log && rename(git_path("logs/%s", oldrefname), git_path(TMP_RENAMED_LOG)))
1948 return error("unable to move logfile logs/%s to "TMP_RENAMED_LOG": %s",
1949 oldrefname, strerror(errno));
1951 if (delete_ref(oldrefname, orig_sha1, REF_NODEREF)) {
1952 error("unable to delete old %s", oldrefname);
1953 goto rollback;
1956 if (!read_ref_full(newrefname, sha1, 1, &flag) &&
1957 delete_ref(newrefname, sha1, REF_NODEREF)) {
1958 if (errno==EISDIR) {
1959 if (remove_empty_directories(git_path("%s", newrefname))) {
1960 error("Directory not empty: %s", newrefname);
1961 goto rollback;
1963 } else {
1964 error("unable to delete existing %s", newrefname);
1965 goto rollback;
1969 if (log && safe_create_leading_directories(git_path("logs/%s", newrefname))) {
1970 error("unable to create directory for %s", newrefname);
1971 goto rollback;
1974 retry:
1975 if (log && rename(git_path(TMP_RENAMED_LOG), git_path("logs/%s", newrefname))) {
1976 if (errno==EISDIR || errno==ENOTDIR) {
1978 * rename(a, b) when b is an existing
1979 * directory ought to result in ISDIR, but
1980 * Solaris 5.8 gives ENOTDIR. Sheesh.
1982 if (remove_empty_directories(git_path("logs/%s", newrefname))) {
1983 error("Directory not empty: logs/%s", newrefname);
1984 goto rollback;
1986 goto retry;
1987 } else {
1988 error("unable to move logfile "TMP_RENAMED_LOG" to logs/%s: %s",
1989 newrefname, strerror(errno));
1990 goto rollback;
1993 logmoved = log;
1995 lock = lock_ref_sha1_basic(newrefname, NULL, 0, NULL);
1996 if (!lock) {
1997 error("unable to lock %s for update", newrefname);
1998 goto rollback;
2000 lock->force_write = 1;
2001 hashcpy(lock->old_sha1, orig_sha1);
2002 if (write_ref_sha1(lock, orig_sha1, logmsg)) {
2003 error("unable to write current sha1 into %s", newrefname);
2004 goto rollback;
2007 return 0;
2009 rollback:
2010 lock = lock_ref_sha1_basic(oldrefname, NULL, 0, NULL);
2011 if (!lock) {
2012 error("unable to lock %s for rollback", oldrefname);
2013 goto rollbacklog;
2016 lock->force_write = 1;
2017 flag = log_all_ref_updates;
2018 log_all_ref_updates = 0;
2019 if (write_ref_sha1(lock, orig_sha1, NULL))
2020 error("unable to write current sha1 into %s", oldrefname);
2021 log_all_ref_updates = flag;
2023 rollbacklog:
2024 if (logmoved && rename(git_path("logs/%s", newrefname), git_path("logs/%s", oldrefname)))
2025 error("unable to restore logfile %s from %s: %s",
2026 oldrefname, newrefname, strerror(errno));
2027 if (!logmoved && log &&
2028 rename(git_path(TMP_RENAMED_LOG), git_path("logs/%s", oldrefname)))
2029 error("unable to restore logfile %s from "TMP_RENAMED_LOG": %s",
2030 oldrefname, strerror(errno));
2032 return 1;
2035 int close_ref(struct ref_lock *lock)
2037 if (close_lock_file(lock->lk))
2038 return -1;
2039 lock->lock_fd = -1;
2040 return 0;
2043 int commit_ref(struct ref_lock *lock)
2045 if (commit_lock_file(lock->lk))
2046 return -1;
2047 lock->lock_fd = -1;
2048 return 0;
2051 void unlock_ref(struct ref_lock *lock)
2053 /* Do not free lock->lk -- atexit() still looks at them */
2054 if (lock->lk)
2055 rollback_lock_file(lock->lk);
2056 free(lock->ref_name);
2057 free(lock->orig_ref_name);
2058 free(lock);
2062 * copy the reflog message msg to buf, which has been allocated sufficiently
2063 * large, while cleaning up the whitespaces. Especially, convert LF to space,
2064 * because reflog file is one line per entry.
2066 static int copy_msg(char *buf, const char *msg)
2068 char *cp = buf;
2069 char c;
2070 int wasspace = 1;
2072 *cp++ = '\t';
2073 while ((c = *msg++)) {
2074 if (wasspace && isspace(c))
2075 continue;
2076 wasspace = isspace(c);
2077 if (wasspace)
2078 c = ' ';
2079 *cp++ = c;
2081 while (buf < cp && isspace(cp[-1]))
2082 cp--;
2083 *cp++ = '\n';
2084 return cp - buf;
2087 int log_ref_setup(const char *refname, char *logfile, int bufsize)
2089 int logfd, oflags = O_APPEND | O_WRONLY;
2091 git_snpath(logfile, bufsize, "logs/%s", refname);
2092 if (log_all_ref_updates &&
2093 (!prefixcmp(refname, "refs/heads/") ||
2094 !prefixcmp(refname, "refs/remotes/") ||
2095 !prefixcmp(refname, "refs/notes/") ||
2096 !strcmp(refname, "HEAD"))) {
2097 if (safe_create_leading_directories(logfile) < 0)
2098 return error("unable to create directory for %s",
2099 logfile);
2100 oflags |= O_CREAT;
2103 logfd = open(logfile, oflags, 0666);
2104 if (logfd < 0) {
2105 if (!(oflags & O_CREAT) && errno == ENOENT)
2106 return 0;
2108 if ((oflags & O_CREAT) && errno == EISDIR) {
2109 if (remove_empty_directories(logfile)) {
2110 return error("There are still logs under '%s'",
2111 logfile);
2113 logfd = open(logfile, oflags, 0666);
2116 if (logfd < 0)
2117 return error("Unable to append to %s: %s",
2118 logfile, strerror(errno));
2121 adjust_shared_perm(logfile);
2122 close(logfd);
2123 return 0;
2126 static int log_ref_write(const char *refname, const unsigned char *old_sha1,
2127 const unsigned char *new_sha1, const char *msg)
2129 int logfd, result, written, oflags = O_APPEND | O_WRONLY;
2130 unsigned maxlen, len;
2131 int msglen;
2132 char log_file[PATH_MAX];
2133 char *logrec;
2134 const char *committer;
2136 if (log_all_ref_updates < 0)
2137 log_all_ref_updates = !is_bare_repository();
2139 result = log_ref_setup(refname, log_file, sizeof(log_file));
2140 if (result)
2141 return result;
2143 logfd = open(log_file, oflags);
2144 if (logfd < 0)
2145 return 0;
2146 msglen = msg ? strlen(msg) : 0;
2147 committer = git_committer_info(0);
2148 maxlen = strlen(committer) + msglen + 100;
2149 logrec = xmalloc(maxlen);
2150 len = sprintf(logrec, "%s %s %s\n",
2151 sha1_to_hex(old_sha1),
2152 sha1_to_hex(new_sha1),
2153 committer);
2154 if (msglen)
2155 len += copy_msg(logrec + len - 1, msg) - 1;
2156 written = len <= maxlen ? write_in_full(logfd, logrec, len) : -1;
2157 free(logrec);
2158 if (close(logfd) != 0 || written != len)
2159 return error("Unable to append to %s", log_file);
2160 return 0;
2163 static int is_branch(const char *refname)
2165 return !strcmp(refname, "HEAD") || !prefixcmp(refname, "refs/heads/");
2168 int write_ref_sha1(struct ref_lock *lock,
2169 const unsigned char *sha1, const char *logmsg)
2171 static char term = '\n';
2172 struct object *o;
2174 if (!lock)
2175 return -1;
2176 if (!lock->force_write && !hashcmp(lock->old_sha1, sha1)) {
2177 unlock_ref(lock);
2178 return 0;
2180 o = parse_object(sha1);
2181 if (!o) {
2182 error("Trying to write ref %s with nonexistent object %s",
2183 lock->ref_name, sha1_to_hex(sha1));
2184 unlock_ref(lock);
2185 return -1;
2187 if (o->type != OBJ_COMMIT && is_branch(lock->ref_name)) {
2188 error("Trying to write non-commit object %s to branch %s",
2189 sha1_to_hex(sha1), lock->ref_name);
2190 unlock_ref(lock);
2191 return -1;
2193 if (write_in_full(lock->lock_fd, sha1_to_hex(sha1), 40) != 40 ||
2194 write_in_full(lock->lock_fd, &term, 1) != 1
2195 || close_ref(lock) < 0) {
2196 error("Couldn't write %s", lock->lk->filename);
2197 unlock_ref(lock);
2198 return -1;
2200 clear_loose_ref_cache(get_ref_cache(NULL));
2201 if (log_ref_write(lock->ref_name, lock->old_sha1, sha1, logmsg) < 0 ||
2202 (strcmp(lock->ref_name, lock->orig_ref_name) &&
2203 log_ref_write(lock->orig_ref_name, lock->old_sha1, sha1, logmsg) < 0)) {
2204 unlock_ref(lock);
2205 return -1;
2207 if (strcmp(lock->orig_ref_name, "HEAD") != 0) {
2209 * Special hack: If a branch is updated directly and HEAD
2210 * points to it (may happen on the remote side of a push
2211 * for example) then logically the HEAD reflog should be
2212 * updated too.
2213 * A generic solution implies reverse symref information,
2214 * but finding all symrefs pointing to the given branch
2215 * would be rather costly for this rare event (the direct
2216 * update of a branch) to be worth it. So let's cheat and
2217 * check with HEAD only which should cover 99% of all usage
2218 * scenarios (even 100% of the default ones).
2220 unsigned char head_sha1[20];
2221 int head_flag;
2222 const char *head_ref;
2223 head_ref = resolve_ref_unsafe("HEAD", head_sha1, 1, &head_flag);
2224 if (head_ref && (head_flag & REF_ISSYMREF) &&
2225 !strcmp(head_ref, lock->ref_name))
2226 log_ref_write("HEAD", lock->old_sha1, sha1, logmsg);
2228 if (commit_ref(lock)) {
2229 error("Couldn't set %s", lock->ref_name);
2230 unlock_ref(lock);
2231 return -1;
2233 unlock_ref(lock);
2234 return 0;
2237 int create_symref(const char *ref_target, const char *refs_heads_master,
2238 const char *logmsg)
2240 const char *lockpath;
2241 char ref[1000];
2242 int fd, len, written;
2243 char *git_HEAD = git_pathdup("%s", ref_target);
2244 unsigned char old_sha1[20], new_sha1[20];
2246 if (logmsg && read_ref(ref_target, old_sha1))
2247 hashclr(old_sha1);
2249 if (safe_create_leading_directories(git_HEAD) < 0)
2250 return error("unable to create directory for %s", git_HEAD);
2252 #ifndef NO_SYMLINK_HEAD
2253 if (prefer_symlink_refs) {
2254 unlink(git_HEAD);
2255 if (!symlink(refs_heads_master, git_HEAD))
2256 goto done;
2257 fprintf(stderr, "no symlink - falling back to symbolic ref\n");
2259 #endif
2261 len = snprintf(ref, sizeof(ref), "ref: %s\n", refs_heads_master);
2262 if (sizeof(ref) <= len) {
2263 error("refname too long: %s", refs_heads_master);
2264 goto error_free_return;
2266 lockpath = mkpath("%s.lock", git_HEAD);
2267 fd = open(lockpath, O_CREAT | O_EXCL | O_WRONLY, 0666);
2268 if (fd < 0) {
2269 error("Unable to open %s for writing", lockpath);
2270 goto error_free_return;
2272 written = write_in_full(fd, ref, len);
2273 if (close(fd) != 0 || written != len) {
2274 error("Unable to write to %s", lockpath);
2275 goto error_unlink_return;
2277 if (rename(lockpath, git_HEAD) < 0) {
2278 error("Unable to create %s", git_HEAD);
2279 goto error_unlink_return;
2281 if (adjust_shared_perm(git_HEAD)) {
2282 error("Unable to fix permissions on %s", lockpath);
2283 error_unlink_return:
2284 unlink_or_warn(lockpath);
2285 error_free_return:
2286 free(git_HEAD);
2287 return -1;
2290 #ifndef NO_SYMLINK_HEAD
2291 done:
2292 #endif
2293 if (logmsg && !read_ref(refs_heads_master, new_sha1))
2294 log_ref_write(ref_target, old_sha1, new_sha1, logmsg);
2296 free(git_HEAD);
2297 return 0;
2300 static char *ref_msg(const char *line, const char *endp)
2302 const char *ep;
2303 line += 82;
2304 ep = memchr(line, '\n', endp - line);
2305 if (!ep)
2306 ep = endp;
2307 return xmemdupz(line, ep - line);
2310 int read_ref_at(const char *refname, unsigned long at_time, int cnt,
2311 unsigned char *sha1, char **msg,
2312 unsigned long *cutoff_time, int *cutoff_tz, int *cutoff_cnt)
2314 const char *logfile, *logdata, *logend, *rec, *lastgt, *lastrec;
2315 char *tz_c;
2316 int logfd, tz, reccnt = 0;
2317 struct stat st;
2318 unsigned long date;
2319 unsigned char logged_sha1[20];
2320 void *log_mapped;
2321 size_t mapsz;
2323 logfile = git_path("logs/%s", refname);
2324 logfd = open(logfile, O_RDONLY, 0);
2325 if (logfd < 0)
2326 die_errno("Unable to read log '%s'", logfile);
2327 fstat(logfd, &st);
2328 if (!st.st_size)
2329 die("Log %s is empty.", logfile);
2330 mapsz = xsize_t(st.st_size);
2331 log_mapped = xmmap(NULL, mapsz, PROT_READ, MAP_PRIVATE, logfd, 0);
2332 logdata = log_mapped;
2333 close(logfd);
2335 lastrec = NULL;
2336 rec = logend = logdata + st.st_size;
2337 while (logdata < rec) {
2338 reccnt++;
2339 if (logdata < rec && *(rec-1) == '\n')
2340 rec--;
2341 lastgt = NULL;
2342 while (logdata < rec && *(rec-1) != '\n') {
2343 rec--;
2344 if (*rec == '>')
2345 lastgt = rec;
2347 if (!lastgt)
2348 die("Log %s is corrupt.", logfile);
2349 date = strtoul(lastgt + 1, &tz_c, 10);
2350 if (date <= at_time || cnt == 0) {
2351 tz = strtoul(tz_c, NULL, 10);
2352 if (msg)
2353 *msg = ref_msg(rec, logend);
2354 if (cutoff_time)
2355 *cutoff_time = date;
2356 if (cutoff_tz)
2357 *cutoff_tz = tz;
2358 if (cutoff_cnt)
2359 *cutoff_cnt = reccnt - 1;
2360 if (lastrec) {
2361 if (get_sha1_hex(lastrec, logged_sha1))
2362 die("Log %s is corrupt.", logfile);
2363 if (get_sha1_hex(rec + 41, sha1))
2364 die("Log %s is corrupt.", logfile);
2365 if (hashcmp(logged_sha1, sha1)) {
2366 warning("Log %s has gap after %s.",
2367 logfile, show_date(date, tz, DATE_RFC2822));
2370 else if (date == at_time) {
2371 if (get_sha1_hex(rec + 41, sha1))
2372 die("Log %s is corrupt.", logfile);
2374 else {
2375 if (get_sha1_hex(rec + 41, logged_sha1))
2376 die("Log %s is corrupt.", logfile);
2377 if (hashcmp(logged_sha1, sha1)) {
2378 warning("Log %s unexpectedly ended on %s.",
2379 logfile, show_date(date, tz, DATE_RFC2822));
2382 munmap(log_mapped, mapsz);
2383 return 0;
2385 lastrec = rec;
2386 if (cnt > 0)
2387 cnt--;
2390 rec = logdata;
2391 while (rec < logend && *rec != '>' && *rec != '\n')
2392 rec++;
2393 if (rec == logend || *rec == '\n')
2394 die("Log %s is corrupt.", logfile);
2395 date = strtoul(rec + 1, &tz_c, 10);
2396 tz = strtoul(tz_c, NULL, 10);
2397 if (get_sha1_hex(logdata, sha1))
2398 die("Log %s is corrupt.", logfile);
2399 if (is_null_sha1(sha1)) {
2400 if (get_sha1_hex(logdata + 41, sha1))
2401 die("Log %s is corrupt.", logfile);
2403 if (msg)
2404 *msg = ref_msg(logdata, logend);
2405 munmap(log_mapped, mapsz);
2407 if (cutoff_time)
2408 *cutoff_time = date;
2409 if (cutoff_tz)
2410 *cutoff_tz = tz;
2411 if (cutoff_cnt)
2412 *cutoff_cnt = reccnt;
2413 return 1;
2416 int for_each_recent_reflog_ent(const char *refname, each_reflog_ent_fn fn, long ofs, void *cb_data)
2418 const char *logfile;
2419 FILE *logfp;
2420 struct strbuf sb = STRBUF_INIT;
2421 int ret = 0;
2423 logfile = git_path("logs/%s", refname);
2424 logfp = fopen(logfile, "r");
2425 if (!logfp)
2426 return -1;
2428 if (ofs) {
2429 struct stat statbuf;
2430 if (fstat(fileno(logfp), &statbuf) ||
2431 statbuf.st_size < ofs ||
2432 fseek(logfp, -ofs, SEEK_END) ||
2433 strbuf_getwholeline(&sb, logfp, '\n')) {
2434 fclose(logfp);
2435 strbuf_release(&sb);
2436 return -1;
2440 while (!strbuf_getwholeline(&sb, logfp, '\n')) {
2441 unsigned char osha1[20], nsha1[20];
2442 char *email_end, *message;
2443 unsigned long timestamp;
2444 int tz;
2446 /* old SP new SP name <email> SP time TAB msg LF */
2447 if (sb.len < 83 || sb.buf[sb.len - 1] != '\n' ||
2448 get_sha1_hex(sb.buf, osha1) || sb.buf[40] != ' ' ||
2449 get_sha1_hex(sb.buf + 41, nsha1) || sb.buf[81] != ' ' ||
2450 !(email_end = strchr(sb.buf + 82, '>')) ||
2451 email_end[1] != ' ' ||
2452 !(timestamp = strtoul(email_end + 2, &message, 10)) ||
2453 !message || message[0] != ' ' ||
2454 (message[1] != '+' && message[1] != '-') ||
2455 !isdigit(message[2]) || !isdigit(message[3]) ||
2456 !isdigit(message[4]) || !isdigit(message[5]))
2457 continue; /* corrupt? */
2458 email_end[1] = '\0';
2459 tz = strtol(message + 1, NULL, 10);
2460 if (message[6] != '\t')
2461 message += 6;
2462 else
2463 message += 7;
2464 ret = fn(osha1, nsha1, sb.buf + 82, timestamp, tz, message,
2465 cb_data);
2466 if (ret)
2467 break;
2469 fclose(logfp);
2470 strbuf_release(&sb);
2471 return ret;
2474 int for_each_reflog_ent(const char *refname, each_reflog_ent_fn fn, void *cb_data)
2476 return for_each_recent_reflog_ent(refname, fn, 0, cb_data);
2480 * Call fn for each reflog in the namespace indicated by name. name
2481 * must be empty or end with '/'. Name will be used as a scratch
2482 * space, but its contents will be restored before return.
2484 static int do_for_each_reflog(struct strbuf *name, each_ref_fn fn, void *cb_data)
2486 DIR *d = opendir(git_path("logs/%s", name->buf));
2487 int retval = 0;
2488 struct dirent *de;
2489 int oldlen = name->len;
2491 if (!d)
2492 return name->len ? errno : 0;
2494 while ((de = readdir(d)) != NULL) {
2495 struct stat st;
2497 if (de->d_name[0] == '.')
2498 continue;
2499 if (has_extension(de->d_name, ".lock"))
2500 continue;
2501 strbuf_addstr(name, de->d_name);
2502 if (stat(git_path("logs/%s", name->buf), &st) < 0) {
2503 ; /* silently ignore */
2504 } else {
2505 if (S_ISDIR(st.st_mode)) {
2506 strbuf_addch(name, '/');
2507 retval = do_for_each_reflog(name, fn, cb_data);
2508 } else {
2509 unsigned char sha1[20];
2510 if (read_ref_full(name->buf, sha1, 0, NULL))
2511 retval = error("bad ref for %s", name->buf);
2512 else
2513 retval = fn(name->buf, sha1, 0, cb_data);
2515 if (retval)
2516 break;
2518 strbuf_setlen(name, oldlen);
2520 closedir(d);
2521 return retval;
2524 int for_each_reflog(each_ref_fn fn, void *cb_data)
2526 int retval;
2527 struct strbuf name;
2528 strbuf_init(&name, PATH_MAX);
2529 retval = do_for_each_reflog(&name, fn, cb_data);
2530 strbuf_release(&name);
2531 return retval;
2534 int update_ref(const char *action, const char *refname,
2535 const unsigned char *sha1, const unsigned char *oldval,
2536 int flags, enum action_on_err onerr)
2538 static struct ref_lock *lock;
2539 lock = lock_any_ref_for_update(refname, oldval, flags);
2540 if (!lock) {
2541 const char *str = "Cannot lock the ref '%s'.";
2542 switch (onerr) {
2543 case MSG_ON_ERR: error(str, refname); break;
2544 case DIE_ON_ERR: die(str, refname); break;
2545 case QUIET_ON_ERR: break;
2547 return 1;
2549 if (write_ref_sha1(lock, sha1, action) < 0) {
2550 const char *str = "Cannot update the ref '%s'.";
2551 switch (onerr) {
2552 case MSG_ON_ERR: error(str, refname); break;
2553 case DIE_ON_ERR: die(str, refname); break;
2554 case QUIET_ON_ERR: break;
2556 return 1;
2558 return 0;
2561 struct ref *find_ref_by_name(const struct ref *list, const char *name)
2563 for ( ; list; list = list->next)
2564 if (!strcmp(list->name, name))
2565 return (struct ref *)list;
2566 return NULL;
2570 * generate a format suitable for scanf from a ref_rev_parse_rules
2571 * rule, that is replace the "%.*s" spec with a "%s" spec
2573 static void gen_scanf_fmt(char *scanf_fmt, const char *rule)
2575 char *spec;
2577 spec = strstr(rule, "%.*s");
2578 if (!spec || strstr(spec + 4, "%.*s"))
2579 die("invalid rule in ref_rev_parse_rules: %s", rule);
2581 /* copy all until spec */
2582 strncpy(scanf_fmt, rule, spec - rule);
2583 scanf_fmt[spec - rule] = '\0';
2584 /* copy new spec */
2585 strcat(scanf_fmt, "%s");
2586 /* copy remaining rule */
2587 strcat(scanf_fmt, spec + 4);
2589 return;
2592 char *shorten_unambiguous_ref(const char *refname, int strict)
2594 int i;
2595 static char **scanf_fmts;
2596 static int nr_rules;
2597 char *short_name;
2599 /* pre generate scanf formats from ref_rev_parse_rules[] */
2600 if (!nr_rules) {
2601 size_t total_len = 0;
2603 /* the rule list is NULL terminated, count them first */
2604 for (; ref_rev_parse_rules[nr_rules]; nr_rules++)
2605 /* no +1 because strlen("%s") < strlen("%.*s") */
2606 total_len += strlen(ref_rev_parse_rules[nr_rules]);
2608 scanf_fmts = xmalloc(nr_rules * sizeof(char *) + total_len);
2610 total_len = 0;
2611 for (i = 0; i < nr_rules; i++) {
2612 scanf_fmts[i] = (char *)&scanf_fmts[nr_rules]
2613 + total_len;
2614 gen_scanf_fmt(scanf_fmts[i], ref_rev_parse_rules[i]);
2615 total_len += strlen(ref_rev_parse_rules[i]);
2619 /* bail out if there are no rules */
2620 if (!nr_rules)
2621 return xstrdup(refname);
2623 /* buffer for scanf result, at most refname must fit */
2624 short_name = xstrdup(refname);
2626 /* skip first rule, it will always match */
2627 for (i = nr_rules - 1; i > 0 ; --i) {
2628 int j;
2629 int rules_to_fail = i;
2630 int short_name_len;
2632 if (1 != sscanf(refname, scanf_fmts[i], short_name))
2633 continue;
2635 short_name_len = strlen(short_name);
2638 * in strict mode, all (except the matched one) rules
2639 * must fail to resolve to a valid non-ambiguous ref
2641 if (strict)
2642 rules_to_fail = nr_rules;
2645 * check if the short name resolves to a valid ref,
2646 * but use only rules prior to the matched one
2648 for (j = 0; j < rules_to_fail; j++) {
2649 const char *rule = ref_rev_parse_rules[j];
2650 char refname[PATH_MAX];
2652 /* skip matched rule */
2653 if (i == j)
2654 continue;
2657 * the short name is ambiguous, if it resolves
2658 * (with this previous rule) to a valid ref
2659 * read_ref() returns 0 on success
2661 mksnpath(refname, sizeof(refname),
2662 rule, short_name_len, short_name);
2663 if (ref_exists(refname))
2664 break;
2668 * short name is non-ambiguous if all previous rules
2669 * haven't resolved to a valid ref
2671 if (j == rules_to_fail)
2672 return short_name;
2675 free(short_name);
2676 return xstrdup(refname);