480de9ac92bbc7b48202ca3dd1029ab16a19b739
   1#include "cache.h"
   2#include "lockfile.h"
   3#include "refs.h"
   4#include "object.h"
   5#include "tag.h"
   6#include "dir.h"
   7#include "string-list.h"
   8
   9struct ref_lock {
  10        char *ref_name;
  11        char *orig_ref_name;
  12        struct lock_file *lk;
  13        struct object_id old_oid;
  14};
  15
  16/*
  17 * How to handle various characters in refnames:
  18 * 0: An acceptable character for refs
  19 * 1: End-of-component
  20 * 2: ., look for a preceding . to reject .. in refs
  21 * 3: {, look for a preceding @ to reject @{ in refs
  22 * 4: A bad character: ASCII control characters, and
  23 *    ":", "?", "[", "\", "^", "~", SP, or TAB
  24 * 5: *, reject unless REFNAME_REFSPEC_PATTERN is set
  25 */
  26static unsigned char refname_disposition[256] = {
  27        1, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4,
  28        4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4, 4,
  29        4, 0, 0, 0, 0, 0, 0, 0, 0, 0, 5, 0, 0, 0, 2, 1,
  30        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 4, 0, 0, 0, 0, 4,
  31        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  32        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 4, 4, 0, 4, 0,
  33        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
  34        0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 3, 0, 0, 4, 4
  35};
  36
  37/*
  38 * Flag passed to lock_ref_sha1_basic() telling it to tolerate broken
  39 * refs (i.e., because the reference is about to be deleted anyway).
  40 */
  41#define REF_DELETING    0x02
  42
  43/*
  44 * Used as a flag in ref_update::flags when a loose ref is being
  45 * pruned.
  46 */
  47#define REF_ISPRUNING   0x04
  48
  49/*
  50 * Used as a flag in ref_update::flags when the reference should be
  51 * updated to new_sha1.
  52 */
  53#define REF_HAVE_NEW    0x08
  54
  55/*
  56 * Used as a flag in ref_update::flags when old_sha1 should be
  57 * checked.
  58 */
  59#define REF_HAVE_OLD    0x10
  60
  61/*
  62 * Used as a flag in ref_update::flags when the lockfile needs to be
  63 * committed.
  64 */
  65#define REF_NEEDS_COMMIT 0x20
  66
  67/*
  68 * 0x40 is REF_FORCE_CREATE_REFLOG, so skip it if you're adding a
  69 * value to ref_update::flags
  70 */
  71
  72/*
  73 * Try to read one refname component from the front of refname.
  74 * Return the length of the component found, or -1 if the component is
  75 * not legal.  It is legal if it is something reasonable to have under
  76 * ".git/refs/"; We do not like it if:
  77 *
  78 * - any path component of it begins with ".", or
  79 * - it has double dots "..", or
  80 * - it has ASCII control characters, or
  81 * - it has ":", "?", "[", "\", "^", "~", SP, or TAB anywhere, or
  82 * - it has "*" anywhere unless REFNAME_REFSPEC_PATTERN is set, or
  83 * - it ends with a "/", or
  84 * - it ends with ".lock", or
  85 * - it contains a "@{" portion
  86 */
  87static int check_refname_component(const char *refname, int *flags)
  88{
  89        const char *cp;
  90        char last = '\0';
  91
  92        for (cp = refname; ; cp++) {
  93                int ch = *cp & 255;
  94                unsigned char disp = refname_disposition[ch];
  95                switch (disp) {
  96                case 1:
  97                        goto out;
  98                case 2:
  99                        if (last == '.')
 100                                return -1; /* Refname contains "..". */
 101                        break;
 102                case 3:
 103                        if (last == '@')
 104                                return -1; /* Refname contains "@{". */
 105                        break;
 106                case 4:
 107                        return -1;
 108                case 5:
 109                        if (!(*flags & REFNAME_REFSPEC_PATTERN))
 110                                return -1; /* refspec can't be a pattern */
 111
 112                        /*
 113                         * Unset the pattern flag so that we only accept
 114                         * a single asterisk for one side of refspec.
 115                         */
 116                        *flags &= ~ REFNAME_REFSPEC_PATTERN;
 117                        break;
 118                }
 119                last = ch;
 120        }
 121out:
 122        if (cp == refname)
 123                return 0; /* Component has zero length. */
 124        if (refname[0] == '.')
 125                return -1; /* Component starts with '.'. */
 126        if (cp - refname >= LOCK_SUFFIX_LEN &&
 127            !memcmp(cp - LOCK_SUFFIX_LEN, LOCK_SUFFIX, LOCK_SUFFIX_LEN))
 128                return -1; /* Refname ends with ".lock". */
 129        return cp - refname;
 130}
 131
 132int check_refname_format(const char *refname, int flags)
 133{
 134        int component_len, component_count = 0;
 135
 136        if (!strcmp(refname, "@"))
 137                /* Refname is a single character '@'. */
 138                return -1;
 139
 140        while (1) {
 141                /* We are at the start of a path component. */
 142                component_len = check_refname_component(refname, &flags);
 143                if (component_len <= 0)
 144                        return -1;
 145
 146                component_count++;
 147                if (refname[component_len] == '\0')
 148                        break;
 149                /* Skip to next component. */
 150                refname += component_len + 1;
 151        }
 152
 153        if (refname[component_len - 1] == '.')
 154                return -1; /* Refname ends with '.'. */
 155        if (!(flags & REFNAME_ALLOW_ONELEVEL) && component_count < 2)
 156                return -1; /* Refname has only one component. */
 157        return 0;
 158}
 159
 160struct ref_entry;
 161
 162/*
 163 * Information used (along with the information in ref_entry) to
 164 * describe a single cached reference.  This data structure only
 165 * occurs embedded in a union in struct ref_entry, and only when
 166 * (ref_entry->flag & REF_DIR) is zero.
 167 */
 168struct ref_value {
 169        /*
 170         * The name of the object to which this reference resolves
 171         * (which may be a tag object).  If REF_ISBROKEN, this is
 172         * null.  If REF_ISSYMREF, then this is the name of the object
 173         * referred to by the last reference in the symlink chain.
 174         */
 175        struct object_id oid;
 176
 177        /*
 178         * If REF_KNOWS_PEELED, then this field holds the peeled value
 179         * of this reference, or null if the reference is known not to
 180         * be peelable.  See the documentation for peel_ref() for an
 181         * exact definition of "peelable".
 182         */
 183        struct object_id peeled;
 184};
 185
 186struct ref_cache;
 187
 188/*
 189 * Information used (along with the information in ref_entry) to
 190 * describe a level in the hierarchy of references.  This data
 191 * structure only occurs embedded in a union in struct ref_entry, and
 192 * only when (ref_entry.flag & REF_DIR) is set.  In that case,
 193 * (ref_entry.flag & REF_INCOMPLETE) determines whether the references
 194 * in the directory have already been read:
 195 *
 196 *     (ref_entry.flag & REF_INCOMPLETE) unset -- a directory of loose
 197 *         or packed references, already read.
 198 *
 199 *     (ref_entry.flag & REF_INCOMPLETE) set -- a directory of loose
 200 *         references that hasn't been read yet (nor has any of its
 201 *         subdirectories).
 202 *
 203 * Entries within a directory are stored within a growable array of
 204 * pointers to ref_entries (entries, nr, alloc).  Entries 0 <= i <
 205 * sorted are sorted by their component name in strcmp() order and the
 206 * remaining entries are unsorted.
 207 *
 208 * Loose references are read lazily, one directory at a time.  When a
 209 * directory of loose references is read, then all of the references
 210 * in that directory are stored, and REF_INCOMPLETE stubs are created
 211 * for any subdirectories, but the subdirectories themselves are not
 212 * read.  The reading is triggered by get_ref_dir().
 213 */
 214struct ref_dir {
 215        int nr, alloc;
 216
 217        /*
 218         * Entries with index 0 <= i < sorted are sorted by name.  New
 219         * entries are appended to the list unsorted, and are sorted
 220         * only when required; thus we avoid the need to sort the list
 221         * after the addition of every reference.
 222         */
 223        int sorted;
 224
 225        /* A pointer to the ref_cache that contains this ref_dir. */
 226        struct ref_cache *ref_cache;
 227
 228        struct ref_entry **entries;
 229};
 230
 231/*
 232 * Bit values for ref_entry::flag.  REF_ISSYMREF=0x01,
 233 * REF_ISPACKED=0x02, REF_ISBROKEN=0x04 and REF_BAD_NAME=0x08 are
 234 * public values; see refs.h.
 235 */
 236
 237/*
 238 * The field ref_entry->u.value.peeled of this value entry contains
 239 * the correct peeled value for the reference, which might be
 240 * null_sha1 if the reference is not a tag or if it is broken.
 241 */
 242#define REF_KNOWS_PEELED 0x10
 243
 244/* ref_entry represents a directory of references */
 245#define REF_DIR 0x20
 246
 247/*
 248 * Entry has not yet been read from disk (used only for REF_DIR
 249 * entries representing loose references)
 250 */
 251#define REF_INCOMPLETE 0x40
 252
 253/*
 254 * A ref_entry represents either a reference or a "subdirectory" of
 255 * references.
 256 *
 257 * Each directory in the reference namespace is represented by a
 258 * ref_entry with (flags & REF_DIR) set and containing a subdir member
 259 * that holds the entries in that directory that have been read so
 260 * far.  If (flags & REF_INCOMPLETE) is set, then the directory and
 261 * its subdirectories haven't been read yet.  REF_INCOMPLETE is only
 262 * used for loose reference directories.
 263 *
 264 * References are represented by a ref_entry with (flags & REF_DIR)
 265 * unset and a value member that describes the reference's value.  The
 266 * flag member is at the ref_entry level, but it is also needed to
 267 * interpret the contents of the value field (in other words, a
 268 * ref_value object is not very much use without the enclosing
 269 * ref_entry).
 270 *
 271 * Reference names cannot end with slash and directories' names are
 272 * always stored with a trailing slash (except for the top-level
 273 * directory, which is always denoted by "").  This has two nice
 274 * consequences: (1) when the entries in each subdir are sorted
 275 * lexicographically by name (as they usually are), the references in
 276 * a whole tree can be generated in lexicographic order by traversing
 277 * the tree in left-to-right, depth-first order; (2) the names of
 278 * references and subdirectories cannot conflict, and therefore the
 279 * presence of an empty subdirectory does not block the creation of a
 280 * similarly-named reference.  (The fact that reference names with the
 281 * same leading components can conflict *with each other* is a
 282 * separate issue that is regulated by verify_refname_available().)
 283 *
 284 * Please note that the name field contains the fully-qualified
 285 * reference (or subdirectory) name.  Space could be saved by only
 286 * storing the relative names.  But that would require the full names
 287 * to be generated on the fly when iterating in do_for_each_ref(), and
 288 * would break callback functions, who have always been able to assume
 289 * that the name strings that they are passed will not be freed during
 290 * the iteration.
 291 */
 292struct ref_entry {
 293        unsigned char flag; /* ISSYMREF? ISPACKED? */
 294        union {
 295                struct ref_value value; /* if not (flags&REF_DIR) */
 296                struct ref_dir subdir; /* if (flags&REF_DIR) */
 297        } u;
 298        /*
 299         * The full name of the reference (e.g., "refs/heads/master")
 300         * or the full name of the directory with a trailing slash
 301         * (e.g., "refs/heads/"):
 302         */
 303        char name[FLEX_ARRAY];
 304};
 305
 306static void read_loose_refs(const char *dirname, struct ref_dir *dir);
 307static int search_ref_dir(struct ref_dir *dir, const char *refname, size_t len);
 308static struct ref_entry *create_dir_entry(struct ref_cache *ref_cache,
 309                                          const char *dirname, size_t len,
 310                                          int incomplete);
 311static void add_entry_to_dir(struct ref_dir *dir, struct ref_entry *entry);
 312
 313static struct ref_dir *get_ref_dir(struct ref_entry *entry)
 314{
 315        struct ref_dir *dir;
 316        assert(entry->flag & REF_DIR);
 317        dir = &entry->u.subdir;
 318        if (entry->flag & REF_INCOMPLETE) {
 319                read_loose_refs(entry->name, dir);
 320
 321                /*
 322                 * Manually add refs/bisect, which, being
 323                 * per-worktree, might not appear in the directory
 324                 * listing for refs/ in the main repo.
 325                 */
 326                if (!strcmp(entry->name, "refs/")) {
 327                        int pos = search_ref_dir(dir, "refs/bisect/", 12);
 328                        if (pos < 0) {
 329                                struct ref_entry *child_entry;
 330                                child_entry = create_dir_entry(dir->ref_cache,
 331                                                               "refs/bisect/",
 332                                                               12, 1);
 333                                add_entry_to_dir(dir, child_entry);
 334                                read_loose_refs("refs/bisect",
 335                                                &child_entry->u.subdir);
 336                        }
 337                }
 338                entry->flag &= ~REF_INCOMPLETE;
 339        }
 340        return dir;
 341}
 342
 343/*
 344 * Check if a refname is safe.
 345 * For refs that start with "refs/" we consider it safe as long they do
 346 * not try to resolve to outside of refs/.
 347 *
 348 * For all other refs we only consider them safe iff they only contain
 349 * upper case characters and '_' (like "HEAD" AND "MERGE_HEAD", and not like
 350 * "config").
 351 */
 352static int refname_is_safe(const char *refname)
 353{
 354        if (starts_with(refname, "refs/")) {
 355                char *buf;
 356                int result;
 357
 358                buf = xmalloc(strlen(refname) + 1);
 359                /*
 360                 * Does the refname try to escape refs/?
 361                 * For example: refs/foo/../bar is safe but refs/foo/../../bar
 362                 * is not.
 363                 */
 364                result = !normalize_path_copy(buf, refname + strlen("refs/"));
 365                free(buf);
 366                return result;
 367        }
 368        while (*refname) {
 369                if (!isupper(*refname) && *refname != '_')
 370                        return 0;
 371                refname++;
 372        }
 373        return 1;
 374}
 375
 376static struct ref_entry *create_ref_entry(const char *refname,
 377                                          const unsigned char *sha1, int flag,
 378                                          int check_name)
 379{
 380        int len;
 381        struct ref_entry *ref;
 382
 383        if (check_name &&
 384            check_refname_format(refname, REFNAME_ALLOW_ONELEVEL))
 385                die("Reference has invalid format: '%s'", refname);
 386        len = strlen(refname) + 1;
 387        ref = xmalloc(sizeof(struct ref_entry) + len);
 388        hashcpy(ref->u.value.oid.hash, sha1);
 389        oidclr(&ref->u.value.peeled);
 390        memcpy(ref->name, refname, len);
 391        ref->flag = flag;
 392        return ref;
 393}
 394
 395static void clear_ref_dir(struct ref_dir *dir);
 396
 397static void free_ref_entry(struct ref_entry *entry)
 398{
 399        if (entry->flag & REF_DIR) {
 400                /*
 401                 * Do not use get_ref_dir() here, as that might
 402                 * trigger the reading of loose refs.
 403                 */
 404                clear_ref_dir(&entry->u.subdir);
 405        }
 406        free(entry);
 407}
 408
 409/*
 410 * Add a ref_entry to the end of dir (unsorted).  Entry is always
 411 * stored directly in dir; no recursion into subdirectories is
 412 * done.
 413 */
 414static void add_entry_to_dir(struct ref_dir *dir, struct ref_entry *entry)
 415{
 416        ALLOC_GROW(dir->entries, dir->nr + 1, dir->alloc);
 417        dir->entries[dir->nr++] = entry;
 418        /* optimize for the case that entries are added in order */
 419        if (dir->nr == 1 ||
 420            (dir->nr == dir->sorted + 1 &&
 421             strcmp(dir->entries[dir->nr - 2]->name,
 422                    dir->entries[dir->nr - 1]->name) < 0))
 423                dir->sorted = dir->nr;
 424}
 425
 426/*
 427 * Clear and free all entries in dir, recursively.
 428 */
 429static void clear_ref_dir(struct ref_dir *dir)
 430{
 431        int i;
 432        for (i = 0; i < dir->nr; i++)
 433                free_ref_entry(dir->entries[i]);
 434        free(dir->entries);
 435        dir->sorted = dir->nr = dir->alloc = 0;
 436        dir->entries = NULL;
 437}
 438
 439/*
 440 * Create a struct ref_entry object for the specified dirname.
 441 * dirname is the name of the directory with a trailing slash (e.g.,
 442 * "refs/heads/") or "" for the top-level directory.
 443 */
 444static struct ref_entry *create_dir_entry(struct ref_cache *ref_cache,
 445                                          const char *dirname, size_t len,
 446                                          int incomplete)
 447{
 448        struct ref_entry *direntry;
 449        direntry = xcalloc(1, sizeof(struct ref_entry) + len + 1);
 450        memcpy(direntry->name, dirname, len);
 451        direntry->name[len] = '\0';
 452        direntry->u.subdir.ref_cache = ref_cache;
 453        direntry->flag = REF_DIR | (incomplete ? REF_INCOMPLETE : 0);
 454        return direntry;
 455}
 456
 457static int ref_entry_cmp(const void *a, const void *b)
 458{
 459        struct ref_entry *one = *(struct ref_entry **)a;
 460        struct ref_entry *two = *(struct ref_entry **)b;
 461        return strcmp(one->name, two->name);
 462}
 463
 464static void sort_ref_dir(struct ref_dir *dir);
 465
 466struct string_slice {
 467        size_t len;
 468        const char *str;
 469};
 470
 471static int ref_entry_cmp_sslice(const void *key_, const void *ent_)
 472{
 473        const struct string_slice *key = key_;
 474        const struct ref_entry *ent = *(const struct ref_entry * const *)ent_;
 475        int cmp = strncmp(key->str, ent->name, key->len);
 476        if (cmp)
 477                return cmp;
 478        return '\0' - (unsigned char)ent->name[key->len];
 479}
 480
 481/*
 482 * Return the index of the entry with the given refname from the
 483 * ref_dir (non-recursively), sorting dir if necessary.  Return -1 if
 484 * no such entry is found.  dir must already be complete.
 485 */
 486static int search_ref_dir(struct ref_dir *dir, const char *refname, size_t len)
 487{
 488        struct ref_entry **r;
 489        struct string_slice key;
 490
 491        if (refname == NULL || !dir->nr)
 492                return -1;
 493
 494        sort_ref_dir(dir);
 495        key.len = len;
 496        key.str = refname;
 497        r = bsearch(&key, dir->entries, dir->nr, sizeof(*dir->entries),
 498                    ref_entry_cmp_sslice);
 499
 500        if (r == NULL)
 501                return -1;
 502
 503        return r - dir->entries;
 504}
 505
 506/*
 507 * Search for a directory entry directly within dir (without
 508 * recursing).  Sort dir if necessary.  subdirname must be a directory
 509 * name (i.e., end in '/').  If mkdir is set, then create the
 510 * directory if it is missing; otherwise, return NULL if the desired
 511 * directory cannot be found.  dir must already be complete.
 512 */
 513static struct ref_dir *search_for_subdir(struct ref_dir *dir,
 514                                         const char *subdirname, size_t len,
 515                                         int mkdir)
 516{
 517        int entry_index = search_ref_dir(dir, subdirname, len);
 518        struct ref_entry *entry;
 519        if (entry_index == -1) {
 520                if (!mkdir)
 521                        return NULL;
 522                /*
 523                 * Since dir is complete, the absence of a subdir
 524                 * means that the subdir really doesn't exist;
 525                 * therefore, create an empty record for it but mark
 526                 * the record complete.
 527                 */
 528                entry = create_dir_entry(dir->ref_cache, subdirname, len, 0);
 529                add_entry_to_dir(dir, entry);
 530        } else {
 531                entry = dir->entries[entry_index];
 532        }
 533        return get_ref_dir(entry);
 534}
 535
 536/*
 537 * If refname is a reference name, find the ref_dir within the dir
 538 * tree that should hold refname.  If refname is a directory name
 539 * (i.e., ends in '/'), then return that ref_dir itself.  dir must
 540 * represent the top-level directory and must already be complete.
 541 * Sort ref_dirs and recurse into subdirectories as necessary.  If
 542 * mkdir is set, then create any missing directories; otherwise,
 543 * return NULL if the desired directory cannot be found.
 544 */
 545static struct ref_dir *find_containing_dir(struct ref_dir *dir,
 546                                           const char *refname, int mkdir)
 547{
 548        const char *slash;
 549        for (slash = strchr(refname, '/'); slash; slash = strchr(slash + 1, '/')) {
 550                size_t dirnamelen = slash - refname + 1;
 551                struct ref_dir *subdir;
 552                subdir = search_for_subdir(dir, refname, dirnamelen, mkdir);
 553                if (!subdir) {
 554                        dir = NULL;
 555                        break;
 556                }
 557                dir = subdir;
 558        }
 559
 560        return dir;
 561}
 562
 563/*
 564 * Find the value entry with the given name in dir, sorting ref_dirs
 565 * and recursing into subdirectories as necessary.  If the name is not
 566 * found or it corresponds to a directory entry, return NULL.
 567 */
 568static struct ref_entry *find_ref(struct ref_dir *dir, const char *refname)
 569{
 570        int entry_index;
 571        struct ref_entry *entry;
 572        dir = find_containing_dir(dir, refname, 0);
 573        if (!dir)
 574                return NULL;
 575        entry_index = search_ref_dir(dir, refname, strlen(refname));
 576        if (entry_index == -1)
 577                return NULL;
 578        entry = dir->entries[entry_index];
 579        return (entry->flag & REF_DIR) ? NULL : entry;
 580}
 581
 582/*
 583 * Remove the entry with the given name from dir, recursing into
 584 * subdirectories as necessary.  If refname is the name of a directory
 585 * (i.e., ends with '/'), then remove the directory and its contents.
 586 * If the removal was successful, return the number of entries
 587 * remaining in the directory entry that contained the deleted entry.
 588 * If the name was not found, return -1.  Please note that this
 589 * function only deletes the entry from the cache; it does not delete
 590 * it from the filesystem or ensure that other cache entries (which
 591 * might be symbolic references to the removed entry) are updated.
 592 * Nor does it remove any containing dir entries that might be made
 593 * empty by the removal.  dir must represent the top-level directory
 594 * and must already be complete.
 595 */
 596static int remove_entry(struct ref_dir *dir, const char *refname)
 597{
 598        int refname_len = strlen(refname);
 599        int entry_index;
 600        struct ref_entry *entry;
 601        int is_dir = refname[refname_len - 1] == '/';
 602        if (is_dir) {
 603                /*
 604                 * refname represents a reference directory.  Remove
 605                 * the trailing slash; otherwise we will get the
 606                 * directory *representing* refname rather than the
 607                 * one *containing* it.
 608                 */
 609                char *dirname = xmemdupz(refname, refname_len - 1);
 610                dir = find_containing_dir(dir, dirname, 0);
 611                free(dirname);
 612        } else {
 613                dir = find_containing_dir(dir, refname, 0);
 614        }
 615        if (!dir)
 616                return -1;
 617        entry_index = search_ref_dir(dir, refname, refname_len);
 618        if (entry_index == -1)
 619                return -1;
 620        entry = dir->entries[entry_index];
 621
 622        memmove(&dir->entries[entry_index],
 623                &dir->entries[entry_index + 1],
 624                (dir->nr - entry_index - 1) * sizeof(*dir->entries)
 625                );
 626        dir->nr--;
 627        if (dir->sorted > entry_index)
 628                dir->sorted--;
 629        free_ref_entry(entry);
 630        return dir->nr;
 631}
 632
 633/*
 634 * Add a ref_entry to the ref_dir (unsorted), recursing into
 635 * subdirectories as necessary.  dir must represent the top-level
 636 * directory.  Return 0 on success.
 637 */
 638static int add_ref(struct ref_dir *dir, struct ref_entry *ref)
 639{
 640        dir = find_containing_dir(dir, ref->name, 1);
 641        if (!dir)
 642                return -1;
 643        add_entry_to_dir(dir, ref);
 644        return 0;
 645}
 646
 647/*
 648 * Emit a warning and return true iff ref1 and ref2 have the same name
 649 * and the same sha1.  Die if they have the same name but different
 650 * sha1s.
 651 */
 652static int is_dup_ref(const struct ref_entry *ref1, const struct ref_entry *ref2)
 653{
 654        if (strcmp(ref1->name, ref2->name))
 655                return 0;
 656
 657        /* Duplicate name; make sure that they don't conflict: */
 658
 659        if ((ref1->flag & REF_DIR) || (ref2->flag & REF_DIR))
 660                /* This is impossible by construction */
 661                die("Reference directory conflict: %s", ref1->name);
 662
 663        if (oidcmp(&ref1->u.value.oid, &ref2->u.value.oid))
 664                die("Duplicated ref, and SHA1s don't match: %s", ref1->name);
 665
 666        warning("Duplicated ref: %s", ref1->name);
 667        return 1;
 668}
 669
 670/*
 671 * Sort the entries in dir non-recursively (if they are not already
 672 * sorted) and remove any duplicate entries.
 673 */
 674static void sort_ref_dir(struct ref_dir *dir)
 675{
 676        int i, j;
 677        struct ref_entry *last = NULL;
 678
 679        /*
 680         * This check also prevents passing a zero-length array to qsort(),
 681         * which is a problem on some platforms.
 682         */
 683        if (dir->sorted == dir->nr)
 684                return;
 685
 686        qsort(dir->entries, dir->nr, sizeof(*dir->entries), ref_entry_cmp);
 687
 688        /* Remove any duplicates: */
 689        for (i = 0, j = 0; j < dir->nr; j++) {
 690                struct ref_entry *entry = dir->entries[j];
 691                if (last && is_dup_ref(last, entry))
 692                        free_ref_entry(entry);
 693                else
 694                        last = dir->entries[i++] = entry;
 695        }
 696        dir->sorted = dir->nr = i;
 697}
 698
 699/* Include broken references in a do_for_each_ref*() iteration: */
 700#define DO_FOR_EACH_INCLUDE_BROKEN 0x01
 701
 702/*
 703 * Return true iff the reference described by entry can be resolved to
 704 * an object in the database.  Emit a warning if the referred-to
 705 * object does not exist.
 706 */
 707static int ref_resolves_to_object(struct ref_entry *entry)
 708{
 709        if (entry->flag & REF_ISBROKEN)
 710                return 0;
 711        if (!has_sha1_file(entry->u.value.oid.hash)) {
 712                error("%s does not point to a valid object!", entry->name);
 713                return 0;
 714        }
 715        return 1;
 716}
 717
 718/*
 719 * current_ref is a performance hack: when iterating over references
 720 * using the for_each_ref*() functions, current_ref is set to the
 721 * current reference's entry before calling the callback function.  If
 722 * the callback function calls peel_ref(), then peel_ref() first
 723 * checks whether the reference to be peeled is the current reference
 724 * (it usually is) and if so, returns that reference's peeled version
 725 * if it is available.  This avoids a refname lookup in a common case.
 726 */
 727static struct ref_entry *current_ref;
 728
 729typedef int each_ref_entry_fn(struct ref_entry *entry, void *cb_data);
 730
 731struct ref_entry_cb {
 732        const char *base;
 733        int trim;
 734        int flags;
 735        each_ref_fn *fn;
 736        void *cb_data;
 737};
 738
 739/*
 740 * Handle one reference in a do_for_each_ref*()-style iteration,
 741 * calling an each_ref_fn for each entry.
 742 */
 743static int do_one_ref(struct ref_entry *entry, void *cb_data)
 744{
 745        struct ref_entry_cb *data = cb_data;
 746        struct ref_entry *old_current_ref;
 747        int retval;
 748
 749        if (!starts_with(entry->name, data->base))
 750                return 0;
 751
 752        if (!(data->flags & DO_FOR_EACH_INCLUDE_BROKEN) &&
 753              !ref_resolves_to_object(entry))
 754                return 0;
 755
 756        /* Store the old value, in case this is a recursive call: */
 757        old_current_ref = current_ref;
 758        current_ref = entry;
 759        retval = data->fn(entry->name + data->trim, &entry->u.value.oid,
 760                          entry->flag, data->cb_data);
 761        current_ref = old_current_ref;
 762        return retval;
 763}
 764
 765/*
 766 * Call fn for each reference in dir that has index in the range
 767 * offset <= index < dir->nr.  Recurse into subdirectories that are in
 768 * that index range, sorting them before iterating.  This function
 769 * does not sort dir itself; it should be sorted beforehand.  fn is
 770 * called for all references, including broken ones.
 771 */
 772static int do_for_each_entry_in_dir(struct ref_dir *dir, int offset,
 773                                    each_ref_entry_fn fn, void *cb_data)
 774{
 775        int i;
 776        assert(dir->sorted == dir->nr);
 777        for (i = offset; i < dir->nr; i++) {
 778                struct ref_entry *entry = dir->entries[i];
 779                int retval;
 780                if (entry->flag & REF_DIR) {
 781                        struct ref_dir *subdir = get_ref_dir(entry);
 782                        sort_ref_dir(subdir);
 783                        retval = do_for_each_entry_in_dir(subdir, 0, fn, cb_data);
 784                } else {
 785                        retval = fn(entry, cb_data);
 786                }
 787                if (retval)
 788                        return retval;
 789        }
 790        return 0;
 791}
 792
 793/*
 794 * Call fn for each reference in the union of dir1 and dir2, in order
 795 * by refname.  Recurse into subdirectories.  If a value entry appears
 796 * in both dir1 and dir2, then only process the version that is in
 797 * dir2.  The input dirs must already be sorted, but subdirs will be
 798 * sorted as needed.  fn is called for all references, including
 799 * broken ones.
 800 */
 801static int do_for_each_entry_in_dirs(struct ref_dir *dir1,
 802                                     struct ref_dir *dir2,
 803                                     each_ref_entry_fn fn, void *cb_data)
 804{
 805        int retval;
 806        int i1 = 0, i2 = 0;
 807
 808        assert(dir1->sorted == dir1->nr);
 809        assert(dir2->sorted == dir2->nr);
 810        while (1) {
 811                struct ref_entry *e1, *e2;
 812                int cmp;
 813                if (i1 == dir1->nr) {
 814                        return do_for_each_entry_in_dir(dir2, i2, fn, cb_data);
 815                }
 816                if (i2 == dir2->nr) {
 817                        return do_for_each_entry_in_dir(dir1, i1, fn, cb_data);
 818                }
 819                e1 = dir1->entries[i1];
 820                e2 = dir2->entries[i2];
 821                cmp = strcmp(e1->name, e2->name);
 822                if (cmp == 0) {
 823                        if ((e1->flag & REF_DIR) && (e2->flag & REF_DIR)) {
 824                                /* Both are directories; descend them in parallel. */
 825                                struct ref_dir *subdir1 = get_ref_dir(e1);
 826                                struct ref_dir *subdir2 = get_ref_dir(e2);
 827                                sort_ref_dir(subdir1);
 828                                sort_ref_dir(subdir2);
 829                                retval = do_for_each_entry_in_dirs(
 830                                                subdir1, subdir2, fn, cb_data);
 831                                i1++;
 832                                i2++;
 833                        } else if (!(e1->flag & REF_DIR) && !(e2->flag & REF_DIR)) {
 834                                /* Both are references; ignore the one from dir1. */
 835                                retval = fn(e2, cb_data);
 836                                i1++;
 837                                i2++;
 838                        } else {
 839                                die("conflict between reference and directory: %s",
 840                                    e1->name);
 841                        }
 842                } else {
 843                        struct ref_entry *e;
 844                        if (cmp < 0) {
 845                                e = e1;
 846                                i1++;
 847                        } else {
 848                                e = e2;
 849                                i2++;
 850                        }
 851                        if (e->flag & REF_DIR) {
 852                                struct ref_dir *subdir = get_ref_dir(e);
 853                                sort_ref_dir(subdir);
 854                                retval = do_for_each_entry_in_dir(
 855                                                subdir, 0, fn, cb_data);
 856                        } else {
 857                                retval = fn(e, cb_data);
 858                        }
 859                }
 860                if (retval)
 861                        return retval;
 862        }
 863}
 864
 865/*
 866 * Load all of the refs from the dir into our in-memory cache. The hard work
 867 * of loading loose refs is done by get_ref_dir(), so we just need to recurse
 868 * through all of the sub-directories. We do not even need to care about
 869 * sorting, as traversal order does not matter to us.
 870 */
 871static void prime_ref_dir(struct ref_dir *dir)
 872{
 873        int i;
 874        for (i = 0; i < dir->nr; i++) {
 875                struct ref_entry *entry = dir->entries[i];
 876                if (entry->flag & REF_DIR)
 877                        prime_ref_dir(get_ref_dir(entry));
 878        }
 879}
 880
 881struct nonmatching_ref_data {
 882        const struct string_list *skip;
 883        const char *conflicting_refname;
 884};
 885
 886static int nonmatching_ref_fn(struct ref_entry *entry, void *vdata)
 887{
 888        struct nonmatching_ref_data *data = vdata;
 889
 890        if (data->skip && string_list_has_string(data->skip, entry->name))
 891                return 0;
 892
 893        data->conflicting_refname = entry->name;
 894        return 1;
 895}
 896
 897/*
 898 * Return 0 if a reference named refname could be created without
 899 * conflicting with the name of an existing reference in dir.
 900 * See verify_refname_available for more information.
 901 */
 902static int verify_refname_available_dir(const char *refname,
 903                                        const struct string_list *extras,
 904                                        const struct string_list *skip,
 905                                        struct ref_dir *dir,
 906                                        struct strbuf *err)
 907{
 908        const char *slash;
 909        int pos;
 910        struct strbuf dirname = STRBUF_INIT;
 911        int ret = -1;
 912
 913        /*
 914         * For the sake of comments in this function, suppose that
 915         * refname is "refs/foo/bar".
 916         */
 917
 918        assert(err);
 919
 920        strbuf_grow(&dirname, strlen(refname) + 1);
 921        for (slash = strchr(refname, '/'); slash; slash = strchr(slash + 1, '/')) {
 922                /* Expand dirname to the new prefix, not including the trailing slash: */
 923                strbuf_add(&dirname, refname + dirname.len, slash - refname - dirname.len);
 924
 925                /*
 926                 * We are still at a leading dir of the refname (e.g.,
 927                 * "refs/foo"; if there is a reference with that name,
 928                 * it is a conflict, *unless* it is in skip.
 929                 */
 930                if (dir) {
 931                        pos = search_ref_dir(dir, dirname.buf, dirname.len);
 932                        if (pos >= 0 &&
 933                            (!skip || !string_list_has_string(skip, dirname.buf))) {
 934                                /*
 935                                 * We found a reference whose name is
 936                                 * a proper prefix of refname; e.g.,
 937                                 * "refs/foo", and is not in skip.
 938                                 */
 939                                strbuf_addf(err, "'%s' exists; cannot create '%s'",
 940                                            dirname.buf, refname);
 941                                goto cleanup;
 942                        }
 943                }
 944
 945                if (extras && string_list_has_string(extras, dirname.buf) &&
 946                    (!skip || !string_list_has_string(skip, dirname.buf))) {
 947                        strbuf_addf(err, "cannot process '%s' and '%s' at the same time",
 948                                    refname, dirname.buf);
 949                        goto cleanup;
 950                }
 951
 952                /*
 953                 * Otherwise, we can try to continue our search with
 954                 * the next component. So try to look up the
 955                 * directory, e.g., "refs/foo/". If we come up empty,
 956                 * we know there is nothing under this whole prefix,
 957                 * but even in that case we still have to continue the
 958                 * search for conflicts with extras.
 959                 */
 960                strbuf_addch(&dirname, '/');
 961                if (dir) {
 962                        pos = search_ref_dir(dir, dirname.buf, dirname.len);
 963                        if (pos < 0) {
 964                                /*
 965                                 * There was no directory "refs/foo/",
 966                                 * so there is nothing under this
 967                                 * whole prefix. So there is no need
 968                                 * to continue looking for conflicting
 969                                 * references. But we need to continue
 970                                 * looking for conflicting extras.
 971                                 */
 972                                dir = NULL;
 973                        } else {
 974                                dir = get_ref_dir(dir->entries[pos]);
 975                        }
 976                }
 977        }
 978
 979        /*
 980         * We are at the leaf of our refname (e.g., "refs/foo/bar").
 981         * There is no point in searching for a reference with that
 982         * name, because a refname isn't considered to conflict with
 983         * itself. But we still need to check for references whose
 984         * names are in the "refs/foo/bar/" namespace, because they
 985         * *do* conflict.
 986         */
 987        strbuf_addstr(&dirname, refname + dirname.len);
 988        strbuf_addch(&dirname, '/');
 989
 990        if (dir) {
 991                pos = search_ref_dir(dir, dirname.buf, dirname.len);
 992
 993                if (pos >= 0) {
 994                        /*
 995                         * We found a directory named "$refname/"
 996                         * (e.g., "refs/foo/bar/"). It is a problem
 997                         * iff it contains any ref that is not in
 998                         * "skip".
 999                         */
1000                        struct nonmatching_ref_data data;
1001
1002                        data.skip = skip;
1003                        data.conflicting_refname = NULL;
1004                        dir = get_ref_dir(dir->entries[pos]);
1005                        sort_ref_dir(dir);
1006                        if (do_for_each_entry_in_dir(dir, 0, nonmatching_ref_fn, &data)) {
1007                                strbuf_addf(err, "'%s' exists; cannot create '%s'",
1008                                            data.conflicting_refname, refname);
1009                                goto cleanup;
1010                        }
1011                }
1012        }
1013
1014        if (extras) {
1015                /*
1016                 * Check for entries in extras that start with
1017                 * "$refname/". We do that by looking for the place
1018                 * where "$refname/" would be inserted in extras. If
1019                 * there is an entry at that position that starts with
1020                 * "$refname/" and is not in skip, then we have a
1021                 * conflict.
1022                 */
1023                for (pos = string_list_find_insert_index(extras, dirname.buf, 0);
1024                     pos < extras->nr; pos++) {
1025                        const char *extra_refname = extras->items[pos].string;
1026
1027                        if (!starts_with(extra_refname, dirname.buf))
1028                                break;
1029
1030                        if (!skip || !string_list_has_string(skip, extra_refname)) {
1031                                strbuf_addf(err, "cannot process '%s' and '%s' at the same time",
1032                                            refname, extra_refname);
1033                                goto cleanup;
1034                        }
1035                }
1036        }
1037
1038        /* No conflicts were found */
1039        ret = 0;
1040
1041cleanup:
1042        strbuf_release(&dirname);
1043        return ret;
1044}
1045
1046struct packed_ref_cache {
1047        struct ref_entry *root;
1048
1049        /*
1050         * Count of references to the data structure in this instance,
1051         * including the pointer from ref_cache::packed if any.  The
1052         * data will not be freed as long as the reference count is
1053         * nonzero.
1054         */
1055        unsigned int referrers;
1056
1057        /*
1058         * Iff the packed-refs file associated with this instance is
1059         * currently locked for writing, this points at the associated
1060         * lock (which is owned by somebody else).  The referrer count
1061         * is also incremented when the file is locked and decremented
1062         * when it is unlocked.
1063         */
1064        struct lock_file *lock;
1065
1066        /* The metadata from when this packed-refs cache was read */
1067        struct stat_validity validity;
1068};
1069
1070/*
1071 * Future: need to be in "struct repository"
1072 * when doing a full libification.
1073 */
1074static struct ref_cache {
1075        struct ref_cache *next;
1076        struct ref_entry *loose;
1077        struct packed_ref_cache *packed;
1078        /*
1079         * The submodule name, or "" for the main repo.  We allocate
1080         * length 1 rather than FLEX_ARRAY so that the main ref_cache
1081         * is initialized correctly.
1082         */
1083        char name[1];
1084} ref_cache, *submodule_ref_caches;
1085
1086/* Lock used for the main packed-refs file: */
1087static struct lock_file packlock;
1088
1089/*
1090 * Increment the reference count of *packed_refs.
1091 */
1092static void acquire_packed_ref_cache(struct packed_ref_cache *packed_refs)
1093{
1094        packed_refs->referrers++;
1095}
1096
1097/*
1098 * Decrease the reference count of *packed_refs.  If it goes to zero,
1099 * free *packed_refs and return true; otherwise return false.
1100 */
1101static int release_packed_ref_cache(struct packed_ref_cache *packed_refs)
1102{
1103        if (!--packed_refs->referrers) {
1104                free_ref_entry(packed_refs->root);
1105                stat_validity_clear(&packed_refs->validity);
1106                free(packed_refs);
1107                return 1;
1108        } else {
1109                return 0;
1110        }
1111}
1112
1113static void clear_packed_ref_cache(struct ref_cache *refs)
1114{
1115        if (refs->packed) {
1116                struct packed_ref_cache *packed_refs = refs->packed;
1117
1118                if (packed_refs->lock)
1119                        die("internal error: packed-ref cache cleared while locked");
1120                refs->packed = NULL;
1121                release_packed_ref_cache(packed_refs);
1122        }
1123}
1124
1125static void clear_loose_ref_cache(struct ref_cache *refs)
1126{
1127        if (refs->loose) {
1128                free_ref_entry(refs->loose);
1129                refs->loose = NULL;
1130        }
1131}
1132
1133static struct ref_cache *create_ref_cache(const char *submodule)
1134{
1135        int len;
1136        struct ref_cache *refs;
1137        if (!submodule)
1138                submodule = "";
1139        len = strlen(submodule) + 1;
1140        refs = xcalloc(1, sizeof(struct ref_cache) + len);
1141        memcpy(refs->name, submodule, len);
1142        return refs;
1143}
1144
1145/*
1146 * Return a pointer to a ref_cache for the specified submodule. For
1147 * the main repository, use submodule==NULL. The returned structure
1148 * will be allocated and initialized but not necessarily populated; it
1149 * should not be freed.
1150 */
1151static struct ref_cache *get_ref_cache(const char *submodule)
1152{
1153        struct ref_cache *refs;
1154
1155        if (!submodule || !*submodule)
1156                return &ref_cache;
1157
1158        for (refs = submodule_ref_caches; refs; refs = refs->next)
1159                if (!strcmp(submodule, refs->name))
1160                        return refs;
1161
1162        refs = create_ref_cache(submodule);
1163        refs->next = submodule_ref_caches;
1164        submodule_ref_caches = refs;
1165        return refs;
1166}
1167
1168/* The length of a peeled reference line in packed-refs, including EOL: */
1169#define PEELED_LINE_LENGTH 42
1170
1171/*
1172 * The packed-refs header line that we write out.  Perhaps other
1173 * traits will be added later.  The trailing space is required.
1174 */
1175static const char PACKED_REFS_HEADER[] =
1176        "# pack-refs with: peeled fully-peeled \n";
1177
1178/*
1179 * Parse one line from a packed-refs file.  Write the SHA1 to sha1.
1180 * Return a pointer to the refname within the line (null-terminated),
1181 * or NULL if there was a problem.
1182 */
1183static const char *parse_ref_line(struct strbuf *line, unsigned char *sha1)
1184{
1185        const char *ref;
1186
1187        /*
1188         * 42: the answer to everything.
1189         *
1190         * In this case, it happens to be the answer to
1191         *  40 (length of sha1 hex representation)
1192         *  +1 (space in between hex and name)
1193         *  +1 (newline at the end of the line)
1194         */
1195        if (line->len <= 42)
1196                return NULL;
1197
1198        if (get_sha1_hex(line->buf, sha1) < 0)
1199                return NULL;
1200        if (!isspace(line->buf[40]))
1201                return NULL;
1202
1203        ref = line->buf + 41;
1204        if (isspace(*ref))
1205                return NULL;
1206
1207        if (line->buf[line->len - 1] != '\n')
1208                return NULL;
1209        line->buf[--line->len] = 0;
1210
1211        return ref;
1212}
1213
1214/*
1215 * Read f, which is a packed-refs file, into dir.
1216 *
1217 * A comment line of the form "# pack-refs with: " may contain zero or
1218 * more traits. We interpret the traits as follows:
1219 *
1220 *   No traits:
1221 *
1222 *      Probably no references are peeled. But if the file contains a
1223 *      peeled value for a reference, we will use it.
1224 *
1225 *   peeled:
1226 *
1227 *      References under "refs/tags/", if they *can* be peeled, *are*
1228 *      peeled in this file. References outside of "refs/tags/" are
1229 *      probably not peeled even if they could have been, but if we find
1230 *      a peeled value for such a reference we will use it.
1231 *
1232 *   fully-peeled:
1233 *
1234 *      All references in the file that can be peeled are peeled.
1235 *      Inversely (and this is more important), any references in the
1236 *      file for which no peeled value is recorded is not peelable. This
1237 *      trait should typically be written alongside "peeled" for
1238 *      compatibility with older clients, but we do not require it
1239 *      (i.e., "peeled" is a no-op if "fully-peeled" is set).
1240 */
1241static void read_packed_refs(FILE *f, struct ref_dir *dir)
1242{
1243        struct ref_entry *last = NULL;
1244        struct strbuf line = STRBUF_INIT;
1245        enum { PEELED_NONE, PEELED_TAGS, PEELED_FULLY } peeled = PEELED_NONE;
1246
1247        while (strbuf_getwholeline(&line, f, '\n') != EOF) {
1248                unsigned char sha1[20];
1249                const char *refname;
1250                const char *traits;
1251
1252                if (skip_prefix(line.buf, "# pack-refs with:", &traits)) {
1253                        if (strstr(traits, " fully-peeled "))
1254                                peeled = PEELED_FULLY;
1255                        else if (strstr(traits, " peeled "))
1256                                peeled = PEELED_TAGS;
1257                        /* perhaps other traits later as well */
1258                        continue;
1259                }
1260
1261                refname = parse_ref_line(&line, sha1);
1262                if (refname) {
1263                        int flag = REF_ISPACKED;
1264
1265                        if (check_refname_format(refname, REFNAME_ALLOW_ONELEVEL)) {
1266                                if (!refname_is_safe(refname))
1267                                        die("packed refname is dangerous: %s", refname);
1268                                hashclr(sha1);
1269                                flag |= REF_BAD_NAME | REF_ISBROKEN;
1270                        }
1271                        last = create_ref_entry(refname, sha1, flag, 0);
1272                        if (peeled == PEELED_FULLY ||
1273                            (peeled == PEELED_TAGS && starts_with(refname, "refs/tags/")))
1274                                last->flag |= REF_KNOWS_PEELED;
1275                        add_ref(dir, last);
1276                        continue;
1277                }
1278                if (last &&
1279                    line.buf[0] == '^' &&
1280                    line.len == PEELED_LINE_LENGTH &&
1281                    line.buf[PEELED_LINE_LENGTH - 1] == '\n' &&
1282                    !get_sha1_hex(line.buf + 1, sha1)) {
1283                        hashcpy(last->u.value.peeled.hash, sha1);
1284                        /*
1285                         * Regardless of what the file header said,
1286                         * we definitely know the value of *this*
1287                         * reference:
1288                         */
1289                        last->flag |= REF_KNOWS_PEELED;
1290                }
1291        }
1292
1293        strbuf_release(&line);
1294}
1295
1296/*
1297 * Get the packed_ref_cache for the specified ref_cache, creating it
1298 * if necessary.
1299 */
1300static struct packed_ref_cache *get_packed_ref_cache(struct ref_cache *refs)
1301{
1302        char *packed_refs_file;
1303
1304        if (*refs->name)
1305                packed_refs_file = git_pathdup_submodule(refs->name, "packed-refs");
1306        else
1307                packed_refs_file = git_pathdup("packed-refs");
1308
1309        if (refs->packed &&
1310            !stat_validity_check(&refs->packed->validity, packed_refs_file))
1311                clear_packed_ref_cache(refs);
1312
1313        if (!refs->packed) {
1314                FILE *f;
1315
1316                refs->packed = xcalloc(1, sizeof(*refs->packed));
1317                acquire_packed_ref_cache(refs->packed);
1318                refs->packed->root = create_dir_entry(refs, "", 0, 0);
1319                f = fopen(packed_refs_file, "r");
1320                if (f) {
1321                        stat_validity_update(&refs->packed->validity, fileno(f));
1322                        read_packed_refs(f, get_ref_dir(refs->packed->root));
1323                        fclose(f);
1324                }
1325        }
1326        free(packed_refs_file);
1327        return refs->packed;
1328}
1329
1330static struct ref_dir *get_packed_ref_dir(struct packed_ref_cache *packed_ref_cache)
1331{
1332        return get_ref_dir(packed_ref_cache->root);
1333}
1334
1335static struct ref_dir *get_packed_refs(struct ref_cache *refs)
1336{
1337        return get_packed_ref_dir(get_packed_ref_cache(refs));
1338}
1339
1340/*
1341 * Add a reference to the in-memory packed reference cache.  This may
1342 * only be called while the packed-refs file is locked (see
1343 * lock_packed_refs()).  To actually write the packed-refs file, call
1344 * commit_packed_refs().
1345 */
1346static void add_packed_ref(const char *refname, const unsigned char *sha1)
1347{
1348        struct packed_ref_cache *packed_ref_cache =
1349                get_packed_ref_cache(&ref_cache);
1350
1351        if (!packed_ref_cache->lock)
1352                die("internal error: packed refs not locked");
1353        add_ref(get_packed_ref_dir(packed_ref_cache),
1354                create_ref_entry(refname, sha1, REF_ISPACKED, 1));
1355}
1356
1357/*
1358 * Read the loose references from the namespace dirname into dir
1359 * (without recursing).  dirname must end with '/'.  dir must be the
1360 * directory entry corresponding to dirname.
1361 */
1362static void read_loose_refs(const char *dirname, struct ref_dir *dir)
1363{
1364        struct ref_cache *refs = dir->ref_cache;
1365        DIR *d;
1366        struct dirent *de;
1367        int dirnamelen = strlen(dirname);
1368        struct strbuf refname;
1369        struct strbuf path = STRBUF_INIT;
1370        size_t path_baselen;
1371
1372        if (*refs->name)
1373                strbuf_git_path_submodule(&path, refs->name, "%s", dirname);
1374        else
1375                strbuf_git_path(&path, "%s", dirname);
1376        path_baselen = path.len;
1377
1378        d = opendir(path.buf);
1379        if (!d) {
1380                strbuf_release(&path);
1381                return;
1382        }
1383
1384        strbuf_init(&refname, dirnamelen + 257);
1385        strbuf_add(&refname, dirname, dirnamelen);
1386
1387        while ((de = readdir(d)) != NULL) {
1388                unsigned char sha1[20];
1389                struct stat st;
1390                int flag;
1391
1392                if (de->d_name[0] == '.')
1393                        continue;
1394                if (ends_with(de->d_name, ".lock"))
1395                        continue;
1396                strbuf_addstr(&refname, de->d_name);
1397                strbuf_addstr(&path, de->d_name);
1398                if (stat(path.buf, &st) < 0) {
1399                        ; /* silently ignore */
1400                } else if (S_ISDIR(st.st_mode)) {
1401                        strbuf_addch(&refname, '/');
1402                        add_entry_to_dir(dir,
1403                                         create_dir_entry(refs, refname.buf,
1404                                                          refname.len, 1));
1405                } else {
1406                        int read_ok;
1407
1408                        if (*refs->name) {
1409                                hashclr(sha1);
1410                                flag = 0;
1411                                read_ok = !resolve_gitlink_ref(refs->name,
1412                                                               refname.buf, sha1);
1413                        } else {
1414                                read_ok = !read_ref_full(refname.buf,
1415                                                         RESOLVE_REF_READING,
1416                                                         sha1, &flag);
1417                        }
1418
1419                        if (!read_ok) {
1420                                hashclr(sha1);
1421                                flag |= REF_ISBROKEN;
1422                        } else if (is_null_sha1(sha1)) {
1423                                /*
1424                                 * It is so astronomically unlikely
1425                                 * that NULL_SHA1 is the SHA-1 of an
1426                                 * actual object that we consider its
1427                                 * appearance in a loose reference
1428                                 * file to be repo corruption
1429                                 * (probably due to a software bug).
1430                                 */
1431                                flag |= REF_ISBROKEN;
1432                        }
1433
1434                        if (check_refname_format(refname.buf,
1435                                                 REFNAME_ALLOW_ONELEVEL)) {
1436                                if (!refname_is_safe(refname.buf))
1437                                        die("loose refname is dangerous: %s", refname.buf);
1438                                hashclr(sha1);
1439                                flag |= REF_BAD_NAME | REF_ISBROKEN;
1440                        }
1441                        add_entry_to_dir(dir,
1442                                         create_ref_entry(refname.buf, sha1, flag, 0));
1443                }
1444                strbuf_setlen(&refname, dirnamelen);
1445                strbuf_setlen(&path, path_baselen);
1446        }
1447        strbuf_release(&refname);
1448        strbuf_release(&path);
1449        closedir(d);
1450}
1451
1452static struct ref_dir *get_loose_refs(struct ref_cache *refs)
1453{
1454        if (!refs->loose) {
1455                /*
1456                 * Mark the top-level directory complete because we
1457                 * are about to read the only subdirectory that can
1458                 * hold references:
1459                 */
1460                refs->loose = create_dir_entry(refs, "", 0, 0);
1461                /*
1462                 * Create an incomplete entry for "refs/":
1463                 */
1464                add_entry_to_dir(get_ref_dir(refs->loose),
1465                                 create_dir_entry(refs, "refs/", 5, 1));
1466        }
1467        return get_ref_dir(refs->loose);
1468}
1469
1470/* We allow "recursive" symbolic refs. Only within reason, though */
1471#define MAXDEPTH 5
1472#define MAXREFLEN (1024)
1473
1474/*
1475 * Called by resolve_gitlink_ref_recursive() after it failed to read
1476 * from the loose refs in ref_cache refs. Find <refname> in the
1477 * packed-refs file for the submodule.
1478 */
1479static int resolve_gitlink_packed_ref(struct ref_cache *refs,
1480                                      const char *refname, unsigned char *sha1)
1481{
1482        struct ref_entry *ref;
1483        struct ref_dir *dir = get_packed_refs(refs);
1484
1485        ref = find_ref(dir, refname);
1486        if (ref == NULL)
1487                return -1;
1488
1489        hashcpy(sha1, ref->u.value.oid.hash);
1490        return 0;
1491}
1492
1493static int resolve_gitlink_ref_recursive(struct ref_cache *refs,
1494                                         const char *refname, unsigned char *sha1,
1495                                         int recursion)
1496{
1497        int fd, len;
1498        char buffer[128], *p;
1499        char *path;
1500
1501        if (recursion > MAXDEPTH || strlen(refname) > MAXREFLEN)
1502                return -1;
1503        path = *refs->name
1504                ? git_pathdup_submodule(refs->name, "%s", refname)
1505                : git_pathdup("%s", refname);
1506        fd = open(path, O_RDONLY);
1507        free(path);
1508        if (fd < 0)
1509                return resolve_gitlink_packed_ref(refs, refname, sha1);
1510
1511        len = read(fd, buffer, sizeof(buffer)-1);
1512        close(fd);
1513        if (len < 0)
1514                return -1;
1515        while (len && isspace(buffer[len-1]))
1516                len--;
1517        buffer[len] = 0;
1518
1519        /* Was it a detached head or an old-fashioned symlink? */
1520        if (!get_sha1_hex(buffer, sha1))
1521                return 0;
1522
1523        /* Symref? */
1524        if (strncmp(buffer, "ref:", 4))
1525                return -1;
1526        p = buffer + 4;
1527        while (isspace(*p))
1528                p++;
1529
1530        return resolve_gitlink_ref_recursive(refs, p, sha1, recursion+1);
1531}
1532
1533int resolve_gitlink_ref(const char *path, const char *refname, unsigned char *sha1)
1534{
1535        int len = strlen(path), retval;
1536        char *submodule;
1537        struct ref_cache *refs;
1538
1539        while (len && path[len-1] == '/')
1540                len--;
1541        if (!len)
1542                return -1;
1543        submodule = xstrndup(path, len);
1544        refs = get_ref_cache(submodule);
1545        free(submodule);
1546
1547        retval = resolve_gitlink_ref_recursive(refs, refname, sha1, 0);
1548        return retval;
1549}
1550
1551/*
1552 * Return the ref_entry for the given refname from the packed
1553 * references.  If it does not exist, return NULL.
1554 */
1555static struct ref_entry *get_packed_ref(const char *refname)
1556{
1557        return find_ref(get_packed_refs(&ref_cache), refname);
1558}
1559
1560/*
1561 * A loose ref file doesn't exist; check for a packed ref.  The
1562 * options are forwarded from resolve_safe_unsafe().
1563 */
1564static int resolve_missing_loose_ref(const char *refname,
1565                                     int resolve_flags,
1566                                     unsigned char *sha1,
1567                                     int *flags)
1568{
1569        struct ref_entry *entry;
1570
1571        /*
1572         * The loose reference file does not exist; check for a packed
1573         * reference.
1574         */
1575        entry = get_packed_ref(refname);
1576        if (entry) {
1577                hashcpy(sha1, entry->u.value.oid.hash);
1578                if (flags)
1579                        *flags |= REF_ISPACKED;
1580                return 0;
1581        }
1582        /* The reference is not a packed reference, either. */
1583        if (resolve_flags & RESOLVE_REF_READING) {
1584                errno = ENOENT;
1585                return -1;
1586        } else {
1587                hashclr(sha1);
1588                return 0;
1589        }
1590}
1591
1592/* This function needs to return a meaningful errno on failure */
1593static const char *resolve_ref_1(const char *refname,
1594                                 int resolve_flags,
1595                                 unsigned char *sha1,
1596                                 int *flags,
1597                                 struct strbuf *sb_refname,
1598                                 struct strbuf *sb_path,
1599                                 struct strbuf *sb_contents)
1600{
1601        int depth = MAXDEPTH;
1602        int bad_name = 0;
1603
1604        if (flags)
1605                *flags = 0;
1606
1607        if (check_refname_format(refname, REFNAME_ALLOW_ONELEVEL)) {
1608                if (flags)
1609                        *flags |= REF_BAD_NAME;
1610
1611                if (!(resolve_flags & RESOLVE_REF_ALLOW_BAD_NAME) ||
1612                    !refname_is_safe(refname)) {
1613                        errno = EINVAL;
1614                        return NULL;
1615                }
1616                /*
1617                 * dwim_ref() uses REF_ISBROKEN to distinguish between
1618                 * missing refs and refs that were present but invalid,
1619                 * to complain about the latter to stderr.
1620                 *
1621                 * We don't know whether the ref exists, so don't set
1622                 * REF_ISBROKEN yet.
1623                 */
1624                bad_name = 1;
1625        }
1626        for (;;) {
1627                const char *path;
1628                struct stat st;
1629                char *buf;
1630                int fd;
1631
1632                if (--depth < 0) {
1633                        errno = ELOOP;
1634                        return NULL;
1635                }
1636
1637                strbuf_reset(sb_path);
1638                strbuf_git_path(sb_path, "%s", refname);
1639                path = sb_path->buf;
1640
1641                /*
1642                 * We might have to loop back here to avoid a race
1643                 * condition: first we lstat() the file, then we try
1644                 * to read it as a link or as a file.  But if somebody
1645                 * changes the type of the file (file <-> directory
1646                 * <-> symlink) between the lstat() and reading, then
1647                 * we don't want to report that as an error but rather
1648                 * try again starting with the lstat().
1649                 */
1650        stat_ref:
1651                if (lstat(path, &st) < 0) {
1652                        if (errno != ENOENT)
1653                                return NULL;
1654                        if (resolve_missing_loose_ref(refname, resolve_flags,
1655                                                      sha1, flags))
1656                                return NULL;
1657                        if (bad_name) {
1658                                hashclr(sha1);
1659                                if (flags)
1660                                        *flags |= REF_ISBROKEN;
1661                        }
1662                        return refname;
1663                }
1664
1665                /* Follow "normalized" - ie "refs/.." symlinks by hand */
1666                if (S_ISLNK(st.st_mode)) {
1667                        strbuf_reset(sb_contents);
1668                        if (strbuf_readlink(sb_contents, path, 0) < 0) {
1669                                if (errno == ENOENT || errno == EINVAL)
1670                                        /* inconsistent with lstat; retry */
1671                                        goto stat_ref;
1672                                else
1673                                        return NULL;
1674                        }
1675                        if (starts_with(sb_contents->buf, "refs/") &&
1676                            !check_refname_format(sb_contents->buf, 0)) {
1677                                strbuf_swap(sb_refname, sb_contents);
1678                                refname = sb_refname->buf;
1679                                if (flags)
1680                                        *flags |= REF_ISSYMREF;
1681                                if (resolve_flags & RESOLVE_REF_NO_RECURSE) {
1682                                        hashclr(sha1);
1683                                        return refname;
1684                                }
1685                                continue;
1686                        }
1687                }
1688
1689                /* Is it a directory? */
1690                if (S_ISDIR(st.st_mode)) {
1691                        errno = EISDIR;
1692                        return NULL;
1693                }
1694
1695                /*
1696                 * Anything else, just open it and try to use it as
1697                 * a ref
1698                 */
1699                fd = open(path, O_RDONLY);
1700                if (fd < 0) {
1701                        if (errno == ENOENT)
1702                                /* inconsistent with lstat; retry */
1703                                goto stat_ref;
1704                        else
1705                                return NULL;
1706                }
1707                strbuf_reset(sb_contents);
1708                if (strbuf_read(sb_contents, fd, 256) < 0) {
1709                        int save_errno = errno;
1710                        close(fd);
1711                        errno = save_errno;
1712                        return NULL;
1713                }
1714                close(fd);
1715                strbuf_rtrim(sb_contents);
1716
1717                /*
1718                 * Is it a symbolic ref?
1719                 */
1720                if (!starts_with(sb_contents->buf, "ref:")) {
1721                        /*
1722                         * Please note that FETCH_HEAD has a second
1723                         * line containing other data.
1724                         */
1725                        if (get_sha1_hex(sb_contents->buf, sha1) ||
1726                            (sb_contents->buf[40] != '\0' && !isspace(sb_contents->buf[40]))) {
1727                                if (flags)
1728                                        *flags |= REF_ISBROKEN;
1729                                errno = EINVAL;
1730                                return NULL;
1731                        }
1732                        if (bad_name) {
1733                                hashclr(sha1);
1734                                if (flags)
1735                                        *flags |= REF_ISBROKEN;
1736                        }
1737                        return refname;
1738                }
1739                if (flags)
1740                        *flags |= REF_ISSYMREF;
1741                buf = sb_contents->buf + 4;
1742                while (isspace(*buf))
1743                        buf++;
1744                strbuf_reset(sb_refname);
1745                strbuf_addstr(sb_refname, buf);
1746                refname = sb_refname->buf;
1747                if (resolve_flags & RESOLVE_REF_NO_RECURSE) {
1748                        hashclr(sha1);
1749                        return refname;
1750                }
1751                if (check_refname_format(buf, REFNAME_ALLOW_ONELEVEL)) {
1752                        if (flags)
1753                                *flags |= REF_ISBROKEN;
1754
1755                        if (!(resolve_flags & RESOLVE_REF_ALLOW_BAD_NAME) ||
1756                            !refname_is_safe(buf)) {
1757                                errno = EINVAL;
1758                                return NULL;
1759                        }
1760                        bad_name = 1;
1761                }
1762        }
1763}
1764
1765const char *resolve_ref_unsafe(const char *refname, int resolve_flags,
1766                               unsigned char *sha1, int *flags)
1767{
1768        static struct strbuf sb_refname = STRBUF_INIT;
1769        struct strbuf sb_contents = STRBUF_INIT;
1770        struct strbuf sb_path = STRBUF_INIT;
1771        const char *ret;
1772
1773        ret = resolve_ref_1(refname, resolve_flags, sha1, flags,
1774                            &sb_refname, &sb_path, &sb_contents);
1775        strbuf_release(&sb_path);
1776        strbuf_release(&sb_contents);
1777        return ret;
1778}
1779
1780char *resolve_refdup(const char *refname, int resolve_flags,
1781                     unsigned char *sha1, int *flags)
1782{
1783        return xstrdup_or_null(resolve_ref_unsafe(refname, resolve_flags,
1784                                                  sha1, flags));
1785}
1786
1787/* The argument to filter_refs */
1788struct ref_filter {
1789        const char *pattern;
1790        each_ref_fn *fn;
1791        void *cb_data;
1792};
1793
1794int read_ref_full(const char *refname, int resolve_flags, unsigned char *sha1, int *flags)
1795{
1796        if (resolve_ref_unsafe(refname, resolve_flags, sha1, flags))
1797                return 0;
1798        return -1;
1799}
1800
1801int read_ref(const char *refname, unsigned char *sha1)
1802{
1803        return read_ref_full(refname, RESOLVE_REF_READING, sha1, NULL);
1804}
1805
1806int ref_exists(const char *refname)
1807{
1808        unsigned char sha1[20];
1809        return !!resolve_ref_unsafe(refname, RESOLVE_REF_READING, sha1, NULL);
1810}
1811
1812static int filter_refs(const char *refname, const struct object_id *oid,
1813                           int flags, void *data)
1814{
1815        struct ref_filter *filter = (struct ref_filter *)data;
1816
1817        if (wildmatch(filter->pattern, refname, 0, NULL))
1818                return 0;
1819        return filter->fn(refname, oid, flags, filter->cb_data);
1820}
1821
1822enum peel_status {
1823        /* object was peeled successfully: */
1824        PEEL_PEELED = 0,
1825
1826        /*
1827         * object cannot be peeled because the named object (or an
1828         * object referred to by a tag in the peel chain), does not
1829         * exist.
1830         */
1831        PEEL_INVALID = -1,
1832
1833        /* object cannot be peeled because it is not a tag: */
1834        PEEL_NON_TAG = -2,
1835
1836        /* ref_entry contains no peeled value because it is a symref: */
1837        PEEL_IS_SYMREF = -3,
1838
1839        /*
1840         * ref_entry cannot be peeled because it is broken (i.e., the
1841         * symbolic reference cannot even be resolved to an object
1842         * name):
1843         */
1844        PEEL_BROKEN = -4
1845};
1846
1847/*
1848 * Peel the named object; i.e., if the object is a tag, resolve the
1849 * tag recursively until a non-tag is found.  If successful, store the
1850 * result to sha1 and return PEEL_PEELED.  If the object is not a tag
1851 * or is not valid, return PEEL_NON_TAG or PEEL_INVALID, respectively,
1852 * and leave sha1 unchanged.
1853 */
1854static enum peel_status peel_object(const unsigned char *name, unsigned char *sha1)
1855{
1856        struct object *o = lookup_unknown_object(name);
1857
1858        if (o->type == OBJ_NONE) {
1859                int type = sha1_object_info(name, NULL);
1860                if (type < 0 || !object_as_type(o, type, 0))
1861                        return PEEL_INVALID;
1862        }
1863
1864        if (o->type != OBJ_TAG)
1865                return PEEL_NON_TAG;
1866
1867        o = deref_tag_noverify(o);
1868        if (!o)
1869                return PEEL_INVALID;
1870
1871        hashcpy(sha1, o->sha1);
1872        return PEEL_PEELED;
1873}
1874
1875/*
1876 * Peel the entry (if possible) and return its new peel_status.  If
1877 * repeel is true, re-peel the entry even if there is an old peeled
1878 * value that is already stored in it.
1879 *
1880 * It is OK to call this function with a packed reference entry that
1881 * might be stale and might even refer to an object that has since
1882 * been garbage-collected.  In such a case, if the entry has
1883 * REF_KNOWS_PEELED then leave the status unchanged and return
1884 * PEEL_PEELED or PEEL_NON_TAG; otherwise, return PEEL_INVALID.
1885 */
1886static enum peel_status peel_entry(struct ref_entry *entry, int repeel)
1887{
1888        enum peel_status status;
1889
1890        if (entry->flag & REF_KNOWS_PEELED) {
1891                if (repeel) {
1892                        entry->flag &= ~REF_KNOWS_PEELED;
1893                        oidclr(&entry->u.value.peeled);
1894                } else {
1895                        return is_null_oid(&entry->u.value.peeled) ?
1896                                PEEL_NON_TAG : PEEL_PEELED;
1897                }
1898        }
1899        if (entry->flag & REF_ISBROKEN)
1900                return PEEL_BROKEN;
1901        if (entry->flag & REF_ISSYMREF)
1902                return PEEL_IS_SYMREF;
1903
1904        status = peel_object(entry->u.value.oid.hash, entry->u.value.peeled.hash);
1905        if (status == PEEL_PEELED || status == PEEL_NON_TAG)
1906                entry->flag |= REF_KNOWS_PEELED;
1907        return status;
1908}
1909
1910int peel_ref(const char *refname, unsigned char *sha1)
1911{
1912        int flag;
1913        unsigned char base[20];
1914
1915        if (current_ref && (current_ref->name == refname
1916                            || !strcmp(current_ref->name, refname))) {
1917                if (peel_entry(current_ref, 0))
1918                        return -1;
1919                hashcpy(sha1, current_ref->u.value.peeled.hash);
1920                return 0;
1921        }
1922
1923        if (read_ref_full(refname, RESOLVE_REF_READING, base, &flag))
1924                return -1;
1925
1926        /*
1927         * If the reference is packed, read its ref_entry from the
1928         * cache in the hope that we already know its peeled value.
1929         * We only try this optimization on packed references because
1930         * (a) forcing the filling of the loose reference cache could
1931         * be expensive and (b) loose references anyway usually do not
1932         * have REF_KNOWS_PEELED.
1933         */
1934        if (flag & REF_ISPACKED) {
1935                struct ref_entry *r = get_packed_ref(refname);
1936                if (r) {
1937                        if (peel_entry(r, 0))
1938                                return -1;
1939                        hashcpy(sha1, r->u.value.peeled.hash);
1940                        return 0;
1941                }
1942        }
1943
1944        return peel_object(base, sha1);
1945}
1946
1947struct warn_if_dangling_data {
1948        FILE *fp;
1949        const char *refname;
1950        const struct string_list *refnames;
1951        const char *msg_fmt;
1952};
1953
1954static int warn_if_dangling_symref(const char *refname, const struct object_id *oid,
1955                                   int flags, void *cb_data)
1956{
1957        struct warn_if_dangling_data *d = cb_data;
1958        const char *resolves_to;
1959        struct object_id junk;
1960
1961        if (!(flags & REF_ISSYMREF))
1962                return 0;
1963
1964        resolves_to = resolve_ref_unsafe(refname, 0, junk.hash, NULL);
1965        if (!resolves_to
1966            || (d->refname
1967                ? strcmp(resolves_to, d->refname)
1968                : !string_list_has_string(d->refnames, resolves_to))) {
1969                return 0;
1970        }
1971
1972        fprintf(d->fp, d->msg_fmt, refname);
1973        fputc('\n', d->fp);
1974        return 0;
1975}
1976
1977void warn_dangling_symref(FILE *fp, const char *msg_fmt, const char *refname)
1978{
1979        struct warn_if_dangling_data data;
1980
1981        data.fp = fp;
1982        data.refname = refname;
1983        data.refnames = NULL;
1984        data.msg_fmt = msg_fmt;
1985        for_each_rawref(warn_if_dangling_symref, &data);
1986}
1987
1988void warn_dangling_symrefs(FILE *fp, const char *msg_fmt, const struct string_list *refnames)
1989{
1990        struct warn_if_dangling_data data;
1991
1992        data.fp = fp;
1993        data.refname = NULL;
1994        data.refnames = refnames;
1995        data.msg_fmt = msg_fmt;
1996        for_each_rawref(warn_if_dangling_symref, &data);
1997}
1998
1999/*
2000 * Call fn for each reference in the specified ref_cache, omitting
2001 * references not in the containing_dir of base.  fn is called for all
2002 * references, including broken ones.  If fn ever returns a non-zero
2003 * value, stop the iteration and return that value; otherwise, return
2004 * 0.
2005 */
2006static int do_for_each_entry(struct ref_cache *refs, const char *base,
2007                             each_ref_entry_fn fn, void *cb_data)
2008{
2009        struct packed_ref_cache *packed_ref_cache;
2010        struct ref_dir *loose_dir;
2011        struct ref_dir *packed_dir;
2012        int retval = 0;
2013
2014        /*
2015         * We must make sure that all loose refs are read before accessing the
2016         * packed-refs file; this avoids a race condition in which loose refs
2017         * are migrated to the packed-refs file by a simultaneous process, but
2018         * our in-memory view is from before the migration. get_packed_ref_cache()
2019         * takes care of making sure our view is up to date with what is on
2020         * disk.
2021         */
2022        loose_dir = get_loose_refs(refs);
2023        if (base && *base) {
2024                loose_dir = find_containing_dir(loose_dir, base, 0);
2025        }
2026        if (loose_dir)
2027                prime_ref_dir(loose_dir);
2028
2029        packed_ref_cache = get_packed_ref_cache(refs);
2030        acquire_packed_ref_cache(packed_ref_cache);
2031        packed_dir = get_packed_ref_dir(packed_ref_cache);
2032        if (base && *base) {
2033                packed_dir = find_containing_dir(packed_dir, base, 0);
2034        }
2035
2036        if (packed_dir && loose_dir) {
2037                sort_ref_dir(packed_dir);
2038                sort_ref_dir(loose_dir);
2039                retval = do_for_each_entry_in_dirs(
2040                                packed_dir, loose_dir, fn, cb_data);
2041        } else if (packed_dir) {
2042                sort_ref_dir(packed_dir);
2043                retval = do_for_each_entry_in_dir(
2044                                packed_dir, 0, fn, cb_data);
2045        } else if (loose_dir) {
2046                sort_ref_dir(loose_dir);
2047                retval = do_for_each_entry_in_dir(
2048                                loose_dir, 0, fn, cb_data);
2049        }
2050
2051        release_packed_ref_cache(packed_ref_cache);
2052        return retval;
2053}
2054
2055/*
2056 * Call fn for each reference in the specified ref_cache for which the
2057 * refname begins with base.  If trim is non-zero, then trim that many
2058 * characters off the beginning of each refname before passing the
2059 * refname to fn.  flags can be DO_FOR_EACH_INCLUDE_BROKEN to include
2060 * broken references in the iteration.  If fn ever returns a non-zero
2061 * value, stop the iteration and return that value; otherwise, return
2062 * 0.
2063 */
2064static int do_for_each_ref(struct ref_cache *refs, const char *base,
2065                           each_ref_fn fn, int trim, int flags, void *cb_data)
2066{
2067        struct ref_entry_cb data;
2068        data.base = base;
2069        data.trim = trim;
2070        data.flags = flags;
2071        data.fn = fn;
2072        data.cb_data = cb_data;
2073
2074        if (ref_paranoia < 0)
2075                ref_paranoia = git_env_bool("GIT_REF_PARANOIA", 0);
2076        if (ref_paranoia)
2077                data.flags |= DO_FOR_EACH_INCLUDE_BROKEN;
2078
2079        return do_for_each_entry(refs, base, do_one_ref, &data);
2080}
2081
2082static int do_head_ref(const char *submodule, each_ref_fn fn, void *cb_data)
2083{
2084        struct object_id oid;
2085        int flag;
2086
2087        if (submodule) {
2088                if (resolve_gitlink_ref(submodule, "HEAD", oid.hash) == 0)
2089                        return fn("HEAD", &oid, 0, cb_data);
2090
2091                return 0;
2092        }
2093
2094        if (!read_ref_full("HEAD", RESOLVE_REF_READING, oid.hash, &flag))
2095                return fn("HEAD", &oid, flag, cb_data);
2096
2097        return 0;
2098}
2099
2100int head_ref(each_ref_fn fn, void *cb_data)
2101{
2102        return do_head_ref(NULL, fn, cb_data);
2103}
2104
2105int head_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
2106{
2107        return do_head_ref(submodule, fn, cb_data);
2108}
2109
2110int for_each_ref(each_ref_fn fn, void *cb_data)
2111{
2112        return do_for_each_ref(&ref_cache, "", fn, 0, 0, cb_data);
2113}
2114
2115int for_each_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
2116{
2117        return do_for_each_ref(get_ref_cache(submodule), "", fn, 0, 0, cb_data);
2118}
2119
2120int for_each_ref_in(const char *prefix, each_ref_fn fn, void *cb_data)
2121{
2122        return do_for_each_ref(&ref_cache, prefix, fn, strlen(prefix), 0, cb_data);
2123}
2124
2125int for_each_fullref_in(const char *prefix, each_ref_fn fn, void *cb_data, unsigned int broken)
2126{
2127        unsigned int flag = 0;
2128
2129        if (broken)
2130                flag = DO_FOR_EACH_INCLUDE_BROKEN;
2131        return do_for_each_ref(&ref_cache, prefix, fn, 0, flag, cb_data);
2132}
2133
2134int for_each_ref_in_submodule(const char *submodule, const char *prefix,
2135                each_ref_fn fn, void *cb_data)
2136{
2137        return do_for_each_ref(get_ref_cache(submodule), prefix, fn, strlen(prefix), 0, cb_data);
2138}
2139
2140int for_each_tag_ref(each_ref_fn fn, void *cb_data)
2141{
2142        return for_each_ref_in("refs/tags/", fn, cb_data);
2143}
2144
2145int for_each_tag_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
2146{
2147        return for_each_ref_in_submodule(submodule, "refs/tags/", fn, cb_data);
2148}
2149
2150int for_each_branch_ref(each_ref_fn fn, void *cb_data)
2151{
2152        return for_each_ref_in("refs/heads/", fn, cb_data);
2153}
2154
2155int for_each_branch_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
2156{
2157        return for_each_ref_in_submodule(submodule, "refs/heads/", fn, cb_data);
2158}
2159
2160int for_each_remote_ref(each_ref_fn fn, void *cb_data)
2161{
2162        return for_each_ref_in("refs/remotes/", fn, cb_data);
2163}
2164
2165int for_each_remote_ref_submodule(const char *submodule, each_ref_fn fn, void *cb_data)
2166{
2167        return for_each_ref_in_submodule(submodule, "refs/remotes/", fn, cb_data);
2168}
2169
2170int for_each_replace_ref(each_ref_fn fn, void *cb_data)
2171{
2172        return do_for_each_ref(&ref_cache, git_replace_ref_base, fn,
2173                               strlen(git_replace_ref_base), 0, cb_data);
2174}
2175
2176int head_ref_namespaced(each_ref_fn fn, void *cb_data)
2177{
2178        struct strbuf buf = STRBUF_INIT;
2179        int ret = 0;
2180        struct object_id oid;
2181        int flag;
2182
2183        strbuf_addf(&buf, "%sHEAD", get_git_namespace());
2184        if (!read_ref_full(buf.buf, RESOLVE_REF_READING, oid.hash, &flag))
2185                ret = fn(buf.buf, &oid, flag, cb_data);
2186        strbuf_release(&buf);
2187
2188        return ret;
2189}
2190
2191int for_each_namespaced_ref(each_ref_fn fn, void *cb_data)
2192{
2193        struct strbuf buf = STRBUF_INIT;
2194        int ret;
2195        strbuf_addf(&buf, "%srefs/", get_git_namespace());
2196        ret = do_for_each_ref(&ref_cache, buf.buf, fn, 0, 0, cb_data);
2197        strbuf_release(&buf);
2198        return ret;
2199}
2200
2201int for_each_glob_ref_in(each_ref_fn fn, const char *pattern,
2202        const char *prefix, void *cb_data)
2203{
2204        struct strbuf real_pattern = STRBUF_INIT;
2205        struct ref_filter filter;
2206        int ret;
2207
2208        if (!prefix && !starts_with(pattern, "refs/"))
2209                strbuf_addstr(&real_pattern, "refs/");
2210        else if (prefix)
2211                strbuf_addstr(&real_pattern, prefix);
2212        strbuf_addstr(&real_pattern, pattern);
2213
2214        if (!has_glob_specials(pattern)) {
2215                /* Append implied '/' '*' if not present. */
2216                strbuf_complete(&real_pattern, '/');
2217                /* No need to check for '*', there is none. */
2218                strbuf_addch(&real_pattern, '*');
2219        }
2220
2221        filter.pattern = real_pattern.buf;
2222        filter.fn = fn;
2223        filter.cb_data = cb_data;
2224        ret = for_each_ref(filter_refs, &filter);
2225
2226        strbuf_release(&real_pattern);
2227        return ret;
2228}
2229
2230int for_each_glob_ref(each_ref_fn fn, const char *pattern, void *cb_data)
2231{
2232        return for_each_glob_ref_in(fn, pattern, NULL, cb_data);
2233}
2234
2235int for_each_rawref(each_ref_fn fn, void *cb_data)
2236{
2237        return do_for_each_ref(&ref_cache, "", fn, 0,
2238                               DO_FOR_EACH_INCLUDE_BROKEN, cb_data);
2239}
2240
2241const char *prettify_refname(const char *name)
2242{
2243        return name + (
2244                starts_with(name, "refs/heads/") ? 11 :
2245                starts_with(name, "refs/tags/") ? 10 :
2246                starts_with(name, "refs/remotes/") ? 13 :
2247                0);
2248}
2249
2250static const char *ref_rev_parse_rules[] = {
2251        "%.*s",
2252        "refs/%.*s",
2253        "refs/tags/%.*s",
2254        "refs/heads/%.*s",
2255        "refs/remotes/%.*s",
2256        "refs/remotes/%.*s/HEAD",
2257        NULL
2258};
2259
2260int refname_match(const char *abbrev_name, const char *full_name)
2261{
2262        const char **p;
2263        const int abbrev_name_len = strlen(abbrev_name);
2264
2265        for (p = ref_rev_parse_rules; *p; p++) {
2266                if (!strcmp(full_name, mkpath(*p, abbrev_name_len, abbrev_name))) {
2267                        return 1;
2268                }
2269        }
2270
2271        return 0;
2272}
2273
2274static void unlock_ref(struct ref_lock *lock)
2275{
2276        /* Do not free lock->lk -- atexit() still looks at them */
2277        if (lock->lk)
2278                rollback_lock_file(lock->lk);
2279        free(lock->ref_name);
2280        free(lock->orig_ref_name);
2281        free(lock);
2282}
2283
2284/*
2285 * Verify that the reference locked by lock has the value old_sha1.
2286 * Fail if the reference doesn't exist and mustexist is set. Return 0
2287 * on success. On error, write an error message to err, set errno, and
2288 * return a negative value.
2289 */
2290static int verify_lock(struct ref_lock *lock,
2291                       const unsigned char *old_sha1, int mustexist,
2292                       struct strbuf *err)
2293{
2294        assert(err);
2295
2296        if (read_ref_full(lock->ref_name,
2297                          mustexist ? RESOLVE_REF_READING : 0,
2298                          lock->old_oid.hash, NULL)) {
2299                int save_errno = errno;
2300                strbuf_addf(err, "can't verify ref %s", lock->ref_name);
2301                errno = save_errno;
2302                return -1;
2303        }
2304        if (hashcmp(lock->old_oid.hash, old_sha1)) {
2305                strbuf_addf(err, "ref %s is at %s but expected %s",
2306                            lock->ref_name,
2307                            sha1_to_hex(lock->old_oid.hash),
2308                            sha1_to_hex(old_sha1));
2309                errno = EBUSY;
2310                return -1;
2311        }
2312        return 0;
2313}
2314
2315static int remove_empty_directories(struct strbuf *path)
2316{
2317        /*
2318         * we want to create a file but there is a directory there;
2319         * if that is an empty directory (or a directory that contains
2320         * only empty directories), remove them.
2321         */
2322        return remove_dir_recursively(path, REMOVE_DIR_EMPTY_ONLY);
2323}
2324
2325/*
2326 * *string and *len will only be substituted, and *string returned (for
2327 * later free()ing) if the string passed in is a magic short-hand form
2328 * to name a branch.
2329 */
2330static char *substitute_branch_name(const char **string, int *len)
2331{
2332        struct strbuf buf = STRBUF_INIT;
2333        int ret = interpret_branch_name(*string, *len, &buf);
2334
2335        if (ret == *len) {
2336                size_t size;
2337                *string = strbuf_detach(&buf, &size);
2338                *len = size;
2339                return (char *)*string;
2340        }
2341
2342        return NULL;
2343}
2344
2345int dwim_ref(const char *str, int len, unsigned char *sha1, char **ref)
2346{
2347        char *last_branch = substitute_branch_name(&str, &len);
2348        const char **p, *r;
2349        int refs_found = 0;
2350
2351        *ref = NULL;
2352        for (p = ref_rev_parse_rules; *p; p++) {
2353                char fullref[PATH_MAX];
2354                unsigned char sha1_from_ref[20];
2355                unsigned char *this_result;
2356                int flag;
2357
2358                this_result = refs_found ? sha1_from_ref : sha1;
2359                mksnpath(fullref, sizeof(fullref), *p, len, str);
2360                r = resolve_ref_unsafe(fullref, RESOLVE_REF_READING,
2361                                       this_result, &flag);
2362                if (r) {
2363                        if (!refs_found++)
2364                                *ref = xstrdup(r);
2365                        if (!warn_ambiguous_refs)
2366                                break;
2367                } else if ((flag & REF_ISSYMREF) && strcmp(fullref, "HEAD")) {
2368                        warning("ignoring dangling symref %s.", fullref);
2369                } else if ((flag & REF_ISBROKEN) && strchr(fullref, '/')) {
2370                        warning("ignoring broken ref %s.", fullref);
2371                }
2372        }
2373        free(last_branch);
2374        return refs_found;
2375}
2376
2377int dwim_log(const char *str, int len, unsigned char *sha1, char **log)
2378{
2379        char *last_branch = substitute_branch_name(&str, &len);
2380        const char **p;
2381        int logs_found = 0;
2382
2383        *log = NULL;
2384        for (p = ref_rev_parse_rules; *p; p++) {
2385                unsigned char hash[20];
2386                char path[PATH_MAX];
2387                const char *ref, *it;
2388
2389                mksnpath(path, sizeof(path), *p, len, str);
2390                ref = resolve_ref_unsafe(path, RESOLVE_REF_READING,
2391                                         hash, NULL);
2392                if (!ref)
2393                        continue;
2394                if (reflog_exists(path))
2395                        it = path;
2396                else if (strcmp(ref, path) && reflog_exists(ref))
2397                        it = ref;
2398                else
2399                        continue;
2400                if (!logs_found++) {
2401                        *log = xstrdup(it);
2402                        hashcpy(sha1, hash);
2403                }
2404                if (!warn_ambiguous_refs)
2405                        break;
2406        }
2407        free(last_branch);
2408        return logs_found;
2409}
2410
2411/*
2412 * Locks a ref returning the lock on success and NULL on failure.
2413 * On failure errno is set to something meaningful.
2414 */
2415static struct ref_lock *lock_ref_sha1_basic(const char *refname,
2416                                            const unsigned char *old_sha1,
2417                                            const struct string_list *extras,
2418                                            const struct string_list *skip,
2419                                            unsigned int flags, int *type_p,
2420                                            struct strbuf *err)
2421{
2422        struct strbuf ref_file = STRBUF_INIT;
2423        struct strbuf orig_ref_file = STRBUF_INIT;
2424        const char *orig_refname = refname;
2425        struct ref_lock *lock;
2426        int last_errno = 0;
2427        int type, lflags;
2428        int mustexist = (old_sha1 && !is_null_sha1(old_sha1));
2429        int resolve_flags = 0;
2430        int attempts_remaining = 3;
2431
2432        assert(err);
2433
2434        lock = xcalloc(1, sizeof(struct ref_lock));
2435
2436        if (mustexist)
2437                resolve_flags |= RESOLVE_REF_READING;
2438        if (flags & REF_DELETING) {
2439                resolve_flags |= RESOLVE_REF_ALLOW_BAD_NAME;
2440                if (flags & REF_NODEREF)
2441                        resolve_flags |= RESOLVE_REF_NO_RECURSE;
2442        }
2443
2444        refname = resolve_ref_unsafe(refname, resolve_flags,
2445                                     lock->old_oid.hash, &type);
2446        if (!refname && errno == EISDIR) {
2447                /*
2448                 * we are trying to lock foo but we used to
2449                 * have foo/bar which now does not exist;
2450                 * it is normal for the empty directory 'foo'
2451                 * to remain.
2452                 */
2453                strbuf_git_path(&orig_ref_file, "%s", orig_refname);
2454                if (remove_empty_directories(&orig_ref_file)) {
2455                        last_errno = errno;
2456                        if (!verify_refname_available_dir(orig_refname, extras, skip,
2457                                                          get_loose_refs(&ref_cache), err))
2458                                strbuf_addf(err, "there are still refs under '%s'",
2459                                            orig_refname);
2460                        goto error_return;
2461                }
2462                refname = resolve_ref_unsafe(orig_refname, resolve_flags,
2463                                             lock->old_oid.hash, &type);
2464        }
2465        if (type_p)
2466            *type_p = type;
2467        if (!refname) {
2468                last_errno = errno;
2469                if (last_errno != ENOTDIR ||
2470                    !verify_refname_available_dir(orig_refname, extras, skip,
2471                                                  get_loose_refs(&ref_cache), err))
2472                        strbuf_addf(err, "unable to resolve reference %s: %s",
2473                                    orig_refname, strerror(last_errno));
2474
2475                goto error_return;
2476        }
2477        /*
2478         * If the ref did not exist and we are creating it, make sure
2479         * there is no existing packed ref whose name begins with our
2480         * refname, nor a packed ref whose name is a proper prefix of
2481         * our refname.
2482         */
2483        if (is_null_oid(&lock->old_oid) &&
2484            verify_refname_available_dir(refname, extras, skip,
2485                                         get_packed_refs(&ref_cache), err)) {
2486                last_errno = ENOTDIR;
2487                goto error_return;
2488        }
2489
2490        lock->lk = xcalloc(1, sizeof(struct lock_file));
2491
2492        lflags = 0;
2493        if (flags & REF_NODEREF) {
2494                refname = orig_refname;
2495                lflags |= LOCK_NO_DEREF;
2496        }
2497        lock->ref_name = xstrdup(refname);
2498        lock->orig_ref_name = xstrdup(orig_refname);
2499        strbuf_git_path(&ref_file, "%s", refname);
2500
2501 retry:
2502        switch (safe_create_leading_directories_const(ref_file.buf)) {
2503        case SCLD_OK:
2504                break; /* success */
2505        case SCLD_VANISHED:
2506                if (--attempts_remaining > 0)
2507                        goto retry;
2508                /* fall through */
2509        default:
2510                last_errno = errno;
2511                strbuf_addf(err, "unable to create directory for %s",
2512                            ref_file.buf);
2513                goto error_return;
2514        }
2515
2516        if (hold_lock_file_for_update(lock->lk, ref_file.buf, lflags) < 0) {
2517                last_errno = errno;
2518                if (errno == ENOENT && --attempts_remaining > 0)
2519                        /*
2520                         * Maybe somebody just deleted one of the
2521                         * directories leading to ref_file.  Try
2522                         * again:
2523                         */
2524                        goto retry;
2525                else {
2526                        unable_to_lock_message(ref_file.buf, errno, err);
2527                        goto error_return;
2528                }
2529        }
2530        if (old_sha1 && verify_lock(lock, old_sha1, mustexist, err)) {
2531                last_errno = errno;
2532                goto error_return;
2533        }
2534        goto out;
2535
2536 error_return:
2537        unlock_ref(lock);
2538        lock = NULL;
2539
2540 out:
2541        strbuf_release(&ref_file);
2542        strbuf_release(&orig_ref_file);
2543        errno = last_errno;
2544        return lock;
2545}
2546
2547/*
2548 * Write an entry to the packed-refs file for the specified refname.
2549 * If peeled is non-NULL, write it as the entry's peeled value.
2550 */
2551static void write_packed_entry(FILE *fh, char *refname, unsigned char *sha1,
2552                               unsigned char *peeled)
2553{
2554        fprintf_or_die(fh, "%s %s\n", sha1_to_hex(sha1), refname);
2555        if (peeled)
2556                fprintf_or_die(fh, "^%s\n", sha1_to_hex(peeled));
2557}
2558
2559/*
2560 * An each_ref_entry_fn that writes the entry to a packed-refs file.
2561 */
2562static int write_packed_entry_fn(struct ref_entry *entry, void *cb_data)
2563{
2564        enum peel_status peel_status = peel_entry(entry, 0);
2565
2566        if (peel_status != PEEL_PEELED && peel_status != PEEL_NON_TAG)
2567                error("internal error: %s is not a valid packed reference!",
2568                      entry->name);
2569        write_packed_entry(cb_data, entry->name, entry->u.value.oid.hash,
2570                           peel_status == PEEL_PEELED ?
2571                           entry->u.value.peeled.hash : NULL);
2572        return 0;
2573}
2574
2575/*
2576 * Lock the packed-refs file for writing. Flags is passed to
2577 * hold_lock_file_for_update(). Return 0 on success. On errors, set
2578 * errno appropriately and return a nonzero value.
2579 */
2580static int lock_packed_refs(int flags)
2581{
2582        static int timeout_configured = 0;
2583        static int timeout_value = 1000;
2584
2585        struct packed_ref_cache *packed_ref_cache;
2586
2587        if (!timeout_configured) {
2588                git_config_get_int("core.packedrefstimeout", &timeout_value);
2589                timeout_configured = 1;
2590        }
2591
2592        if (hold_lock_file_for_update_timeout(
2593                            &packlock, git_path("packed-refs"),
2594                            flags, timeout_value) < 0)
2595                return -1;
2596        /*
2597         * Get the current packed-refs while holding the lock.  If the
2598         * packed-refs file has been modified since we last read it,
2599         * this will automatically invalidate the cache and re-read
2600         * the packed-refs file.
2601         */
2602        packed_ref_cache = get_packed_ref_cache(&ref_cache);
2603        packed_ref_cache->lock = &packlock;
2604        /* Increment the reference count to prevent it from being freed: */
2605        acquire_packed_ref_cache(packed_ref_cache);
2606        return 0;
2607}
2608
2609/*
2610 * Write the current version of the packed refs cache from memory to
2611 * disk. The packed-refs file must already be locked for writing (see
2612 * lock_packed_refs()). Return zero on success. On errors, set errno
2613 * and return a nonzero value
2614 */
2615static int commit_packed_refs(void)
2616{
2617        struct packed_ref_cache *packed_ref_cache =
2618                get_packed_ref_cache(&ref_cache);
2619        int error = 0;
2620        int save_errno = 0;
2621        FILE *out;
2622
2623        if (!packed_ref_cache->lock)
2624                die("internal error: packed-refs not locked");
2625
2626        out = fdopen_lock_file(packed_ref_cache->lock, "w");
2627        if (!out)
2628                die_errno("unable to fdopen packed-refs descriptor");
2629
2630        fprintf_or_die(out, "%s", PACKED_REFS_HEADER);
2631        do_for_each_entry_in_dir(get_packed_ref_dir(packed_ref_cache),
2632                                 0, write_packed_entry_fn, out);
2633
2634        if (commit_lock_file(packed_ref_cache->lock)) {
2635                save_errno = errno;
2636                error = -1;
2637        }
2638        packed_ref_cache->lock = NULL;
2639        release_packed_ref_cache(packed_ref_cache);
2640        errno = save_errno;
2641        return error;
2642}
2643
2644/*
2645 * Rollback the lockfile for the packed-refs file, and discard the
2646 * in-memory packed reference cache.  (The packed-refs file will be
2647 * read anew if it is needed again after this function is called.)
2648 */
2649static void rollback_packed_refs(void)
2650{
2651        struct packed_ref_cache *packed_ref_cache =
2652                get_packed_ref_cache(&ref_cache);
2653
2654        if (!packed_ref_cache->lock)
2655                die("internal error: packed-refs not locked");
2656        rollback_lock_file(packed_ref_cache->lock);
2657        packed_ref_cache->lock = NULL;
2658        release_packed_ref_cache(packed_ref_cache);
2659        clear_packed_ref_cache(&ref_cache);
2660}
2661
2662struct ref_to_prune {
2663        struct ref_to_prune *next;
2664        unsigned char sha1[20];
2665        char name[FLEX_ARRAY];
2666};
2667
2668struct pack_refs_cb_data {
2669        unsigned int flags;
2670        struct ref_dir *packed_refs;
2671        struct ref_to_prune *ref_to_prune;
2672};
2673
2674static int is_per_worktree_ref(const char *refname);
2675
2676/*
2677 * An each_ref_entry_fn that is run over loose references only.  If
2678 * the loose reference can be packed, add an entry in the packed ref
2679 * cache.  If the reference should be pruned, also add it to
2680 * ref_to_prune in the pack_refs_cb_data.
2681 */
2682static int pack_if_possible_fn(struct ref_entry *entry, void *cb_data)
2683{
2684        struct pack_refs_cb_data *cb = cb_data;
2685        enum peel_status peel_status;
2686        struct ref_entry *packed_entry;
2687        int is_tag_ref = starts_with(entry->name, "refs/tags/");
2688
2689        /* Do not pack per-worktree refs: */
2690        if (is_per_worktree_ref(entry->name))
2691                return 0;
2692
2693        /* ALWAYS pack tags */
2694        if (!(cb->flags & PACK_REFS_ALL) && !is_tag_ref)
2695                return 0;
2696
2697        /* Do not pack symbolic or broken refs: */
2698        if ((entry->flag & REF_ISSYMREF) || !ref_resolves_to_object(entry))
2699                return 0;
2700
2701        /* Add a packed ref cache entry equivalent to the loose entry. */
2702        peel_status = peel_entry(entry, 1);
2703        if (peel_status != PEEL_PEELED && peel_status != PEEL_NON_TAG)
2704                die("internal error peeling reference %s (%s)",
2705                    entry->name, oid_to_hex(&entry->u.value.oid));
2706        packed_entry = find_ref(cb->packed_refs, entry->name);
2707        if (packed_entry) {
2708                /* Overwrite existing packed entry with info from loose entry */
2709                packed_entry->flag = REF_ISPACKED | REF_KNOWS_PEELED;
2710                oidcpy(&packed_entry->u.value.oid, &entry->u.value.oid);
2711        } else {
2712                packed_entry = create_ref_entry(entry->name, entry->u.value.oid.hash,
2713                                                REF_ISPACKED | REF_KNOWS_PEELED, 0);
2714                add_ref(cb->packed_refs, packed_entry);
2715        }
2716        oidcpy(&packed_entry->u.value.peeled, &entry->u.value.peeled);
2717
2718        /* Schedule the loose reference for pruning if requested. */
2719        if ((cb->flags & PACK_REFS_PRUNE)) {
2720                int namelen = strlen(entry->name) + 1;
2721                struct ref_to_prune *n = xcalloc(1, sizeof(*n) + namelen);
2722                hashcpy(n->sha1, entry->u.value.oid.hash);
2723                memcpy(n->name, entry->name, namelen); /* includes NUL */
2724                n->next = cb->ref_to_prune;
2725                cb->ref_to_prune = n;
2726        }
2727        return 0;
2728}
2729
2730/*
2731 * Remove empty parents, but spare refs/ and immediate subdirs.
2732 * Note: munges *name.
2733 */
2734static void try_remove_empty_parents(char *name)
2735{
2736        char *p, *q;
2737        int i;
2738        p = name;
2739        for (i = 0; i < 2; i++) { /* refs/{heads,tags,...}/ */
2740                while (*p && *p != '/')
2741                        p++;
2742                /* tolerate duplicate slashes; see check_refname_format() */
2743                while (*p == '/')
2744                        p++;
2745        }
2746        for (q = p; *q; q++)
2747                ;
2748        while (1) {
2749                while (q > p && *q != '/')
2750                        q--;
2751                while (q > p && *(q-1) == '/')
2752                        q--;
2753                if (q == p)
2754                        break;
2755                *q = '\0';
2756                if (rmdir(git_path("%s", name)))
2757                        break;
2758        }
2759}
2760
2761/* make sure nobody touched the ref, and unlink */
2762static void prune_ref(struct ref_to_prune *r)
2763{
2764        struct ref_transaction *transaction;
2765        struct strbuf err = STRBUF_INIT;
2766
2767        if (check_refname_format(r->name, 0))
2768                return;
2769
2770        transaction = ref_transaction_begin(&err);
2771        if (!transaction ||
2772            ref_transaction_delete(transaction, r->name, r->sha1,
2773                                   REF_ISPRUNING, NULL, &err) ||
2774            ref_transaction_commit(transaction, &err)) {
2775                ref_transaction_free(transaction);
2776                error("%s", err.buf);
2777                strbuf_release(&err);
2778                return;
2779        }
2780        ref_transaction_free(transaction);
2781        strbuf_release(&err);
2782        try_remove_empty_parents(r->name);
2783}
2784
2785static void prune_refs(struct ref_to_prune *r)
2786{
2787        while (r) {
2788                prune_ref(r);
2789                r = r->next;
2790        }
2791}
2792
2793int pack_refs(unsigned int flags)
2794{
2795        struct pack_refs_cb_data cbdata;
2796
2797        memset(&cbdata, 0, sizeof(cbdata));
2798        cbdata.flags = flags;
2799
2800        lock_packed_refs(LOCK_DIE_ON_ERROR);
2801        cbdata.packed_refs = get_packed_refs(&ref_cache);
2802
2803        do_for_each_entry_in_dir(get_loose_refs(&ref_cache), 0,
2804                                 pack_if_possible_fn, &cbdata);
2805
2806        if (commit_packed_refs())
2807                die_errno("unable to overwrite old ref-pack file");
2808
2809        prune_refs(cbdata.ref_to_prune);
2810        return 0;
2811}
2812
2813/*
2814 * Rewrite the packed-refs file, omitting any refs listed in
2815 * 'refnames'. On error, leave packed-refs unchanged, write an error
2816 * message to 'err', and return a nonzero value.
2817 *
2818 * The refs in 'refnames' needn't be sorted. `err` must not be NULL.
2819 */
2820static int repack_without_refs(struct string_list *refnames, struct strbuf *err)
2821{
2822        struct ref_dir *packed;
2823        struct string_list_item *refname;
2824        int ret, needs_repacking = 0, removed = 0;
2825
2826        assert(err);
2827
2828        /* Look for a packed ref */
2829        for_each_string_list_item(refname, refnames) {
2830                if (get_packed_ref(refname->string)) {
2831                        needs_repacking = 1;
2832                        break;
2833                }
2834        }
2835
2836        /* Avoid locking if we have nothing to do */
2837        if (!needs_repacking)
2838                return 0; /* no refname exists in packed refs */
2839
2840        if (lock_packed_refs(0)) {
2841                unable_to_lock_message(git_path("packed-refs"), errno, err);
2842                return -1;
2843        }
2844        packed = get_packed_refs(&ref_cache);
2845
2846        /* Remove refnames from the cache */
2847        for_each_string_list_item(refname, refnames)
2848                if (remove_entry(packed, refname->string) != -1)
2849                        removed = 1;
2850        if (!removed) {
2851                /*
2852                 * All packed entries disappeared while we were
2853                 * acquiring the lock.
2854                 */
2855                rollback_packed_refs();
2856                return 0;
2857        }
2858
2859        /* Write what remains */
2860        ret = commit_packed_refs();
2861        if (ret)
2862                strbuf_addf(err, "unable to overwrite old ref-pack file: %s",
2863                            strerror(errno));
2864        return ret;
2865}
2866
2867static int delete_ref_loose(struct ref_lock *lock, int flag, struct strbuf *err)
2868{
2869        assert(err);
2870
2871        if (!(flag & REF_ISPACKED) || flag & REF_ISSYMREF) {
2872                /*
2873                 * loose.  The loose file name is the same as the
2874                 * lockfile name, minus ".lock":
2875                 */
2876                char *loose_filename = get_locked_file_path(lock->lk);
2877                int res = unlink_or_msg(loose_filename, err);
2878                free(loose_filename);
2879                if (res)
2880                        return 1;
2881        }
2882        return 0;
2883}
2884
2885static int is_per_worktree_ref(const char *refname)
2886{
2887        return !strcmp(refname, "HEAD") ||
2888                starts_with(refname, "refs/bisect/");
2889}
2890
2891static int is_pseudoref_syntax(const char *refname)
2892{
2893        const char *c;
2894
2895        for (c = refname; *c; c++) {
2896                if (!isupper(*c) && *c != '-' && *c != '_')
2897                        return 0;
2898        }
2899
2900        return 1;
2901}
2902
2903enum ref_type ref_type(const char *refname)
2904{
2905        if (is_per_worktree_ref(refname))
2906                return REF_TYPE_PER_WORKTREE;
2907        if (is_pseudoref_syntax(refname))
2908                return REF_TYPE_PSEUDOREF;
2909       return REF_TYPE_NORMAL;
2910}
2911
2912static int write_pseudoref(const char *pseudoref, const unsigned char *sha1,
2913                           const unsigned char *old_sha1, struct strbuf *err)
2914{
2915        const char *filename;
2916        int fd;
2917        static struct lock_file lock;
2918        struct strbuf buf = STRBUF_INIT;
2919        int ret = -1;
2920
2921        strbuf_addf(&buf, "%s\n", sha1_to_hex(sha1));
2922
2923        filename = git_path("%s", pseudoref);
2924        fd = hold_lock_file_for_update(&lock, filename, LOCK_DIE_ON_ERROR);
2925        if (fd < 0) {
2926                strbuf_addf(err, "Could not open '%s' for writing: %s",
2927                            filename, strerror(errno));
2928                return -1;
2929        }
2930
2931        if (old_sha1) {
2932                unsigned char actual_old_sha1[20];
2933
2934                if (read_ref(pseudoref, actual_old_sha1))
2935                        die("could not read ref '%s'", pseudoref);
2936                if (hashcmp(actual_old_sha1, old_sha1)) {
2937                        strbuf_addf(err, "Unexpected sha1 when writing %s", pseudoref);
2938                        rollback_lock_file(&lock);
2939                        goto done;
2940                }
2941        }
2942
2943        if (write_in_full(fd, buf.buf, buf.len) != buf.len) {
2944                strbuf_addf(err, "Could not write to '%s'", filename);
2945                rollback_lock_file(&lock);
2946                goto done;
2947        }
2948
2949        commit_lock_file(&lock);
2950        ret = 0;
2951done:
2952        strbuf_release(&buf);
2953        return ret;
2954}
2955
2956static int delete_pseudoref(const char *pseudoref, const unsigned char *old_sha1)
2957{
2958        static struct lock_file lock;
2959        const char *filename;
2960
2961        filename = git_path("%s", pseudoref);
2962
2963        if (old_sha1 && !is_null_sha1(old_sha1)) {
2964                int fd;
2965                unsigned char actual_old_sha1[20];
2966
2967                fd = hold_lock_file_for_update(&lock, filename,
2968                                               LOCK_DIE_ON_ERROR);
2969                if (fd < 0)
2970                        die_errno(_("Could not open '%s' for writing"), filename);
2971                if (read_ref(pseudoref, actual_old_sha1))
2972                        die("could not read ref '%s'", pseudoref);
2973                if (hashcmp(actual_old_sha1, old_sha1)) {
2974                        warning("Unexpected sha1 when deleting %s", pseudoref);
2975                        rollback_lock_file(&lock);
2976                        return -1;
2977                }
2978
2979                unlink(filename);
2980                rollback_lock_file(&lock);
2981        } else {
2982                unlink(filename);
2983        }
2984
2985        return 0;
2986}
2987
2988int delete_ref(const char *refname, const unsigned char *old_sha1,
2989               unsigned int flags)
2990{
2991        struct ref_transaction *transaction;
2992        struct strbuf err = STRBUF_INIT;
2993
2994        if (ref_type(refname) == REF_TYPE_PSEUDOREF)
2995                return delete_pseudoref(refname, old_sha1);
2996
2997        transaction = ref_transaction_begin(&err);
2998        if (!transaction ||
2999            ref_transaction_delete(transaction, refname, old_sha1,
3000                                   flags, NULL, &err) ||
3001            ref_transaction_commit(transaction, &err)) {
3002                error("%s", err.buf);
3003                ref_transaction_free(transaction);
3004                strbuf_release(&err);
3005                return 1;
3006        }
3007        ref_transaction_free(transaction);
3008        strbuf_release(&err);
3009        return 0;
3010}
3011
3012int delete_refs(struct string_list *refnames)
3013{
3014        struct strbuf err = STRBUF_INIT;
3015        int i, result = 0;
3016
3017        if (!refnames->nr)
3018                return 0;
3019
3020        result = repack_without_refs(refnames, &err);
3021        if (result) {
3022                /*
3023                 * If we failed to rewrite the packed-refs file, then
3024                 * it is unsafe to try to remove loose refs, because
3025                 * doing so might expose an obsolete packed value for
3026                 * a reference that might even point at an object that
3027                 * has been garbage collected.
3028                 */
3029                if (refnames->nr == 1)
3030                        error(_("could not delete reference %s: %s"),
3031                              refnames->items[0].string, err.buf);
3032                else
3033                        error(_("could not delete references: %s"), err.buf);
3034
3035                goto out;
3036        }
3037
3038        for (i = 0; i < refnames->nr; i++) {
3039                const char *refname = refnames->items[i].string;
3040
3041                if (delete_ref(refname, NULL, 0))
3042                        result |= error(_("could not remove reference %s"), refname);
3043        }
3044
3045out:
3046        strbuf_release(&err);
3047        return result;
3048}
3049
3050/*
3051 * People using contrib's git-new-workdir have .git/logs/refs ->
3052 * /some/other/path/.git/logs/refs, and that may live on another device.
3053 *
3054 * IOW, to avoid cross device rename errors, the temporary renamed log must
3055 * live into logs/refs.
3056 */
3057#define TMP_RENAMED_LOG  "logs/refs/.tmp-renamed-log"
3058
3059static int rename_tmp_log(const char *newrefname)
3060{
3061        int attempts_remaining = 4;
3062        struct strbuf path = STRBUF_INIT;
3063        int ret = -1;
3064
3065 retry:
3066        strbuf_reset(&path);
3067        strbuf_git_path(&path, "logs/%s", newrefname);
3068        switch (safe_create_leading_directories_const(path.buf)) {
3069        case SCLD_OK:
3070                break; /* success */
3071        case SCLD_VANISHED:
3072                if (--attempts_remaining > 0)
3073                        goto retry;
3074                /* fall through */
3075        default:
3076                error("unable to create directory for %s", newrefname);
3077                goto out;
3078        }
3079
3080        if (rename(git_path(TMP_RENAMED_LOG), path.buf)) {
3081                if ((errno==EISDIR || errno==ENOTDIR) && --attempts_remaining > 0) {
3082                        /*
3083                         * rename(a, b) when b is an existing
3084                         * directory ought to result in ISDIR, but
3085                         * Solaris 5.8 gives ENOTDIR.  Sheesh.
3086                         */
3087                        if (remove_empty_directories(&path)) {
3088                                error("Directory not empty: logs/%s", newrefname);
3089                                goto out;
3090                        }
3091                        goto retry;
3092                } else if (errno == ENOENT && --attempts_remaining > 0) {
3093                        /*
3094                         * Maybe another process just deleted one of
3095                         * the directories in the path to newrefname.
3096                         * Try again from the beginning.
3097                         */
3098                        goto retry;
3099                } else {
3100                        error("unable to move logfile "TMP_RENAMED_LOG" to logs/%s: %s",
3101                                newrefname, strerror(errno));
3102                        goto out;
3103                }
3104        }
3105        ret = 0;
3106out:
3107        strbuf_release(&path);
3108        return ret;
3109}
3110
3111/*
3112 * Return 0 if a reference named refname could be created without
3113 * conflicting with the name of an existing reference. Otherwise,
3114 * return a negative value and write an explanation to err. If extras
3115 * is non-NULL, it is a list of additional refnames with which refname
3116 * is not allowed to conflict. If skip is non-NULL, ignore potential
3117 * conflicts with refs in skip (e.g., because they are scheduled for
3118 * deletion in the same operation). Behavior is undefined if the same
3119 * name is listed in both extras and skip.
3120 *
3121 * Two reference names conflict if one of them exactly matches the
3122 * leading components of the other; e.g., "foo/bar" conflicts with
3123 * both "foo" and with "foo/bar/baz" but not with "foo/bar" or
3124 * "foo/barbados".
3125 *
3126 * extras and skip must be sorted.
3127 */
3128static int verify_refname_available(const char *newname,
3129                                    struct string_list *extras,
3130                                    struct string_list *skip,
3131                                    struct strbuf *err)
3132{
3133        struct ref_dir *packed_refs = get_packed_refs(&ref_cache);
3134        struct ref_dir *loose_refs = get_loose_refs(&ref_cache);
3135
3136        if (verify_refname_available_dir(newname, extras, skip,
3137                                         packed_refs, err) ||
3138            verify_refname_available_dir(newname, extras, skip,
3139                                         loose_refs, err))
3140                return -1;
3141
3142        return 0;
3143}
3144
3145static int rename_ref_available(const char *oldname, const char *newname)
3146{
3147        struct string_list skip = STRING_LIST_INIT_NODUP;
3148        struct strbuf err = STRBUF_INIT;
3149        int ret;
3150
3151        string_list_insert(&skip, oldname);
3152        ret = !verify_refname_available(newname, NULL, &skip, &err);
3153        if (!ret)
3154                error("%s", err.buf);
3155
3156        string_list_clear(&skip, 0);
3157        strbuf_release(&err);
3158        return ret;
3159}
3160
3161static int write_ref_to_lockfile(struct ref_lock *lock,
3162                                 const unsigned char *sha1, struct strbuf *err);
3163static int commit_ref_update(struct ref_lock *lock,
3164                             const unsigned char *sha1, const char *logmsg,
3165                             int flags, struct strbuf *err);
3166
3167int rename_ref(const char *oldrefname, const char *newrefname, const char *logmsg)
3168{
3169        unsigned char sha1[20], orig_sha1[20];
3170        int flag = 0, logmoved = 0;
3171        struct ref_lock *lock;
3172        struct stat loginfo;
3173        int log = !lstat(git_path("logs/%s", oldrefname), &loginfo);
3174        const char *symref = NULL;
3175        struct strbuf err = STRBUF_INIT;
3176
3177        if (log && S_ISLNK(loginfo.st_mode))
3178                return error("reflog for %s is a symlink", oldrefname);
3179
3180        symref = resolve_ref_unsafe(oldrefname, RESOLVE_REF_READING,
3181                                    orig_sha1, &flag);
3182        if (flag & REF_ISSYMREF)
3183                return error("refname %s is a symbolic ref, renaming it is not supported",
3184                        oldrefname);
3185        if (!symref)
3186                return error("refname %s not found", oldrefname);
3187
3188        if (!rename_ref_available(oldrefname, newrefname))
3189                return 1;
3190
3191        if (log && rename(git_path("logs/%s", oldrefname), git_path(TMP_RENAMED_LOG)))
3192                return error("unable to move logfile logs/%s to "TMP_RENAMED_LOG": %s",
3193                        oldrefname, strerror(errno));
3194
3195        if (delete_ref(oldrefname, orig_sha1, REF_NODEREF)) {
3196                error("unable to delete old %s", oldrefname);
3197                goto rollback;
3198        }
3199
3200        if (!read_ref_full(newrefname, RESOLVE_REF_READING, sha1, NULL) &&
3201            delete_ref(newrefname, sha1, REF_NODEREF)) {
3202                if (errno==EISDIR) {
3203                        struct strbuf path = STRBUF_INIT;
3204                        int result;
3205
3206                        strbuf_git_path(&path, "%s", newrefname);
3207                        result = remove_empty_directories(&path);
3208                        strbuf_release(&path);
3209
3210                        if (result) {
3211                                error("Directory not empty: %s", newrefname);
3212                                goto rollback;
3213                        }
3214                } else {
3215                        error("unable to delete existing %s", newrefname);
3216                        goto rollback;
3217                }
3218        }
3219
3220        if (log && rename_tmp_log(newrefname))
3221                goto rollback;
3222
3223        logmoved = log;
3224
3225        lock = lock_ref_sha1_basic(newrefname, NULL, NULL, NULL, 0, NULL, &err);
3226        if (!lock) {
3227                error("unable to rename '%s' to '%s': %s", oldrefname, newrefname, err.buf);
3228                strbuf_release(&err);
3229                goto rollback;
3230        }
3231        hashcpy(lock->old_oid.hash, orig_sha1);
3232
3233        if (write_ref_to_lockfile(lock, orig_sha1, &err) ||
3234            commit_ref_update(lock, orig_sha1, logmsg, 0, &err)) {
3235                error("unable to write current sha1 into %s: %s", newrefname, err.buf);
3236                strbuf_release(&err);
3237                goto rollback;
3238        }
3239
3240        return 0;
3241
3242 rollback:
3243        lock = lock_ref_sha1_basic(oldrefname, NULL, NULL, NULL, 0, NULL, &err);
3244        if (!lock) {
3245                error("unable to lock %s for rollback: %s", oldrefname, err.buf);
3246                strbuf_release(&err);
3247                goto rollbacklog;
3248        }
3249
3250        flag = log_all_ref_updates;
3251        log_all_ref_updates = 0;
3252        if (write_ref_to_lockfile(lock, orig_sha1, &err) ||
3253            commit_ref_update(lock, orig_sha1, NULL, 0, &err)) {
3254                error("unable to write current sha1 into %s: %s", oldrefname, err.buf);
3255                strbuf_release(&err);
3256        }
3257        log_all_ref_updates = flag;
3258
3259 rollbacklog:
3260        if (logmoved && rename(git_path("logs/%s", newrefname), git_path("logs/%s", oldrefname)))
3261                error("unable to restore logfile %s from %s: %s",
3262                        oldrefname, newrefname, strerror(errno));
3263        if (!logmoved && log &&
3264            rename(git_path(TMP_RENAMED_LOG), git_path("logs/%s", oldrefname)))
3265                error("unable to restore logfile %s from "TMP_RENAMED_LOG": %s",
3266                        oldrefname, strerror(errno));
3267
3268        return 1;
3269}
3270
3271static int close_ref(struct ref_lock *lock)
3272{
3273        if (close_lock_file(lock->lk))
3274                return -1;
3275        return 0;
3276}
3277
3278static int commit_ref(struct ref_lock *lock)
3279{
3280        if (commit_lock_file(lock->lk))
3281                return -1;
3282        return 0;
3283}
3284
3285/*
3286 * copy the reflog message msg to buf, which has been allocated sufficiently
3287 * large, while cleaning up the whitespaces.  Especially, convert LF to space,
3288 * because reflog file is one line per entry.
3289 */
3290static int copy_reflog_msg(char *buf, const char *msg)
3291{
3292        char *cp = buf;
3293        char c;
3294        int wasspace = 1;
3295
3296        *cp++ = '\t';
3297        while ((c = *msg++)) {
3298                if (wasspace && isspace(c))
3299                        continue;
3300                wasspace = isspace(c);
3301                if (wasspace)
3302                        c = ' ';
3303                *cp++ = c;
3304        }
3305        while (buf < cp && isspace(cp[-1]))
3306                cp--;
3307        *cp++ = '\n';
3308        return cp - buf;
3309}
3310
3311static int should_autocreate_reflog(const char *refname)
3312{
3313        if (!log_all_ref_updates)
3314                return 0;
3315        return starts_with(refname, "refs/heads/") ||
3316                starts_with(refname, "refs/remotes/") ||
3317                starts_with(refname, "refs/notes/") ||
3318                !strcmp(refname, "HEAD");
3319}
3320
3321/*
3322 * Create a reflog for a ref.  If force_create = 0, the reflog will
3323 * only be created for certain refs (those for which
3324 * should_autocreate_reflog returns non-zero.  Otherwise, create it
3325 * regardless of the ref name.  Fill in *err and return -1 on failure.
3326 */
3327static int log_ref_setup(const char *refname, struct strbuf *logfile, struct strbuf *err, int force_create)
3328{
3329        int logfd, oflags = O_APPEND | O_WRONLY;
3330
3331        strbuf_git_path(logfile, "logs/%s", refname);
3332        if (force_create || should_autocreate_reflog(refname)) {
3333                if (safe_create_leading_directories(logfile->buf) < 0) {
3334                        strbuf_addf(err, "unable to create directory for %s: "
3335                                    "%s", logfile->buf, strerror(errno));
3336                        return -1;
3337                }
3338                oflags |= O_CREAT;
3339        }
3340
3341        logfd = open(logfile->buf, oflags, 0666);
3342        if (logfd < 0) {
3343                if (!(oflags & O_CREAT) && (errno == ENOENT || errno == EISDIR))
3344                        return 0;
3345
3346                if (errno == EISDIR) {
3347                        if (remove_empty_directories(logfile)) {
3348                                strbuf_addf(err, "There are still logs under "
3349                                            "'%s'", logfile->buf);
3350                                return -1;
3351                        }
3352                        logfd = open(logfile->buf, oflags, 0666);
3353                }
3354
3355                if (logfd < 0) {
3356                        strbuf_addf(err, "unable to append to %s: %s",
3357                                    logfile->buf, strerror(errno));
3358                        return -1;
3359                }
3360        }
3361
3362        adjust_shared_perm(logfile->buf);
3363        close(logfd);
3364        return 0;
3365}
3366
3367
3368int safe_create_reflog(const char *refname, int force_create, struct strbuf *err)
3369{
3370        int ret;
3371        struct strbuf sb = STRBUF_INIT;
3372
3373        ret = log_ref_setup(refname, &sb, err, force_create);
3374        strbuf_release(&sb);
3375        return ret;
3376}
3377
3378static int log_ref_write_fd(int fd, const unsigned char *old_sha1,
3379                            const unsigned char *new_sha1,
3380                            const char *committer, const char *msg)
3381{
3382        int msglen, written;
3383        unsigned maxlen, len;
3384        char *logrec;
3385
3386        msglen = msg ? strlen(msg) : 0;
3387        maxlen = strlen(committer) + msglen + 100;
3388        logrec = xmalloc(maxlen);
3389        len = xsnprintf(logrec, maxlen, "%s %s %s\n",
3390                        sha1_to_hex(old_sha1),
3391                        sha1_to_hex(new_sha1),
3392                        committer);
3393        if (msglen)
3394                len += copy_reflog_msg(logrec + len - 1, msg) - 1;
3395
3396        written = len <= maxlen ? write_in_full(fd, logrec, len) : -1;
3397        free(logrec);
3398        if (written != len)
3399                return -1;
3400
3401        return 0;
3402}
3403
3404static int log_ref_write_1(const char *refname, const unsigned char *old_sha1,
3405                           const unsigned char *new_sha1, const char *msg,
3406                           struct strbuf *logfile, int flags,
3407                           struct strbuf *err)
3408{
3409        int logfd, result, oflags = O_APPEND | O_WRONLY;
3410
3411        if (log_all_ref_updates < 0)
3412                log_all_ref_updates = !is_bare_repository();
3413
3414        result = log_ref_setup(refname, logfile, err, flags & REF_FORCE_CREATE_REFLOG);
3415
3416        if (result)
3417                return result;
3418
3419        logfd = open(logfile->buf, oflags);
3420        if (logfd < 0)
3421                return 0;
3422        result = log_ref_write_fd(logfd, old_sha1, new_sha1,
3423                                  git_committer_info(0), msg);
3424        if (result) {
3425                strbuf_addf(err, "unable to append to %s: %s", logfile->buf,
3426                            strerror(errno));
3427                close(logfd);
3428                return -1;
3429        }
3430        if (close(logfd)) {
3431                strbuf_addf(err, "unable to append to %s: %s", logfile->buf,
3432                            strerror(errno));
3433                return -1;
3434        }
3435        return 0;
3436}
3437
3438static int log_ref_write(const char *refname, const unsigned char *old_sha1,
3439                         const unsigned char *new_sha1, const char *msg,
3440                         int flags, struct strbuf *err)
3441{
3442        struct strbuf sb = STRBUF_INIT;
3443        int ret = log_ref_write_1(refname, old_sha1, new_sha1, msg, &sb, flags,
3444                                  err);
3445        strbuf_release(&sb);
3446        return ret;
3447}
3448
3449int is_branch(const char *refname)
3450{
3451        return !strcmp(refname, "HEAD") || starts_with(refname, "refs/heads/");
3452}
3453
3454/*
3455 * Write sha1 into the open lockfile, then close the lockfile. On
3456 * errors, rollback the lockfile, fill in *err and
3457 * return -1.
3458 */
3459static int write_ref_to_lockfile(struct ref_lock *lock,
3460                                 const unsigned char *sha1, struct strbuf *err)
3461{
3462        static char term = '\n';
3463        struct object *o;
3464        int fd;
3465
3466        o = parse_object(sha1);
3467        if (!o) {
3468                strbuf_addf(err,
3469                            "Trying to write ref %s with nonexistent object %s",
3470                            lock->ref_name, sha1_to_hex(sha1));
3471                unlock_ref(lock);
3472                return -1;
3473        }
3474        if (o->type != OBJ_COMMIT && is_branch(lock->ref_name)) {
3475                strbuf_addf(err,
3476                            "Trying to write non-commit object %s to branch %s",
3477                            sha1_to_hex(sha1), lock->ref_name);
3478                unlock_ref(lock);
3479                return -1;
3480        }
3481        fd = get_lock_file_fd(lock->lk);
3482        if (write_in_full(fd, sha1_to_hex(sha1), 40) != 40 ||
3483            write_in_full(fd, &term, 1) != 1 ||
3484            close_ref(lock) < 0) {
3485                strbuf_addf(err,
3486                            "Couldn't write %s", get_lock_file_path(lock->lk));
3487                unlock_ref(lock);
3488                return -1;
3489        }
3490        return 0;
3491}
3492
3493/*
3494 * Commit a change to a loose reference that has already been written
3495 * to the loose reference lockfile. Also update the reflogs if
3496 * necessary, using the specified lockmsg (which can be NULL).
3497 */
3498static int commit_ref_update(struct ref_lock *lock,
3499                             const unsigned char *sha1, const char *logmsg,
3500                             int flags, struct strbuf *err)
3501{
3502        clear_loose_ref_cache(&ref_cache);
3503        if (log_ref_write(lock->ref_name, lock->old_oid.hash, sha1, logmsg, flags, err) < 0 ||
3504            (strcmp(lock->ref_name, lock->orig_ref_name) &&
3505             log_ref_write(lock->orig_ref_name, lock->old_oid.hash, sha1, logmsg, flags, err) < 0)) {
3506                char *old_msg = strbuf_detach(err, NULL);
3507                strbuf_addf(err, "Cannot update the ref '%s': %s",
3508                            lock->ref_name, old_msg);
3509                free(old_msg);
3510                unlock_ref(lock);
3511                return -1;
3512        }
3513        if (strcmp(lock->orig_ref_name, "HEAD") != 0) {
3514                /*
3515                 * Special hack: If a branch is updated directly and HEAD
3516                 * points to it (may happen on the remote side of a push
3517                 * for example) then logically the HEAD reflog should be
3518                 * updated too.
3519                 * A generic solution implies reverse symref information,
3520                 * but finding all symrefs pointing to the given branch
3521                 * would be rather costly for this rare event (the direct
3522                 * update of a branch) to be worth it.  So let's cheat and
3523                 * check with HEAD only which should cover 99% of all usage
3524                 * scenarios (even 100% of the default ones).
3525                 */
3526                unsigned char head_sha1[20];
3527                int head_flag;
3528                const char *head_ref;
3529                head_ref = resolve_ref_unsafe("HEAD", RESOLVE_REF_READING,
3530                                              head_sha1, &head_flag);
3531                if (head_ref && (head_flag & REF_ISSYMREF) &&
3532                    !strcmp(head_ref, lock->ref_name)) {
3533                        struct strbuf log_err = STRBUF_INIT;
3534                        if (log_ref_write("HEAD", lock->old_oid.hash, sha1,
3535                                          logmsg, 0, &log_err)) {
3536                                error("%s", log_err.buf);
3537                                strbuf_release(&log_err);
3538                        }
3539                }
3540        }
3541        if (commit_ref(lock)) {
3542                error("Couldn't set %s", lock->ref_name);
3543                unlock_ref(lock);
3544                return -1;
3545        }
3546
3547        unlock_ref(lock);
3548        return 0;
3549}
3550
3551int create_symref(const char *ref_target, const char *refs_heads_master,
3552                  const char *logmsg)
3553{
3554        char *lockpath = NULL;
3555        char ref[1000];
3556        int fd, len, written;
3557        char *git_HEAD = git_pathdup("%s", ref_target);
3558        unsigned char old_sha1[20], new_sha1[20];
3559        struct strbuf err = STRBUF_INIT;
3560
3561        if (logmsg && read_ref(ref_target, old_sha1))
3562                hashclr(old_sha1);
3563
3564        if (safe_create_leading_directories(git_HEAD) < 0)
3565                return error("unable to create directory for %s", git_HEAD);
3566
3567#ifndef NO_SYMLINK_HEAD
3568        if (prefer_symlink_refs) {
3569                unlink(git_HEAD);
3570                if (!symlink(refs_heads_master, git_HEAD))
3571                        goto done;
3572                fprintf(stderr, "no symlink - falling back to symbolic ref\n");
3573        }
3574#endif
3575
3576        len = snprintf(ref, sizeof(ref), "ref: %s\n", refs_heads_master);
3577        if (sizeof(ref) <= len) {
3578                error("refname too long: %s", refs_heads_master);
3579                goto error_free_return;
3580        }
3581        lockpath = mkpathdup("%s.lock", git_HEAD);
3582        fd = open(lockpath, O_CREAT | O_EXCL | O_WRONLY, 0666);
3583        if (fd < 0) {
3584                error("Unable to open %s for writing", lockpath);
3585                goto error_free_return;
3586        }
3587        written = write_in_full(fd, ref, len);
3588        if (close(fd) != 0 || written != len) {
3589                error("Unable to write to %s", lockpath);
3590                goto error_unlink_return;
3591        }
3592        if (rename(lockpath, git_HEAD) < 0) {
3593                error("Unable to create %s", git_HEAD);
3594                goto error_unlink_return;
3595        }
3596        if (adjust_shared_perm(git_HEAD)) {
3597                error("Unable to fix permissions on %s", lockpath);
3598        error_unlink_return:
3599                unlink_or_warn(lockpath);
3600        error_free_return:
3601                free(lockpath);
3602                free(git_HEAD);
3603                return -1;
3604        }
3605        free(lockpath);
3606
3607#ifndef NO_SYMLINK_HEAD
3608        done:
3609#endif
3610        if (logmsg && !read_ref(refs_heads_master, new_sha1) &&
3611                log_ref_write(ref_target, old_sha1, new_sha1, logmsg, 0, &err)) {
3612                error("%s", err.buf);
3613                strbuf_release(&err);
3614        }
3615
3616        free(git_HEAD);
3617        return 0;
3618}
3619
3620struct read_ref_at_cb {
3621        const char *refname;
3622        unsigned long at_time;
3623        int cnt;
3624        int reccnt;
3625        unsigned char *sha1;
3626        int found_it;
3627
3628        unsigned char osha1[20];
3629        unsigned char nsha1[20];
3630        int tz;
3631        unsigned long date;
3632        char **msg;
3633        unsigned long *cutoff_time;
3634        int *cutoff_tz;
3635        int *cutoff_cnt;
3636};
3637
3638static int read_ref_at_ent(unsigned char *osha1, unsigned char *nsha1,
3639                const char *email, unsigned long timestamp, int tz,
3640                const char *message, void *cb_data)
3641{
3642        struct read_ref_at_cb *cb = cb_data;
3643
3644        cb->reccnt++;
3645        cb->tz = tz;
3646        cb->date = timestamp;
3647
3648        if (timestamp <= cb->at_time || cb->cnt == 0) {
3649                if (cb->msg)
3650                        *cb->msg = xstrdup(message);
3651                if (cb->cutoff_time)
3652                        *cb->cutoff_time = timestamp;
3653                if (cb->cutoff_tz)
3654                        *cb->cutoff_tz = tz;
3655                if (cb->cutoff_cnt)
3656                        *cb->cutoff_cnt = cb->reccnt - 1;
3657                /*
3658                 * we have not yet updated cb->[n|o]sha1 so they still
3659                 * hold the values for the previous record.
3660                 */
3661                if (!is_null_sha1(cb->osha1)) {
3662                        hashcpy(cb->sha1, nsha1);
3663                        if (hashcmp(cb->osha1, nsha1))
3664                                warning("Log for ref %s has gap after %s.",
3665                                        cb->refname, show_date(cb->date, cb->tz, DATE_MODE(RFC2822)));
3666                }
3667                else if (cb->date == cb->at_time)
3668                        hashcpy(cb->sha1, nsha1);
3669                else if (hashcmp(nsha1, cb->sha1))
3670                        warning("Log for ref %s unexpectedly ended on %s.",
3671                                cb->refname, show_date(cb->date, cb->tz,
3672                                                       DATE_MODE(RFC2822)));
3673                hashcpy(cb->osha1, osha1);
3674                hashcpy(cb->nsha1, nsha1);
3675                cb->found_it = 1;
3676                return 1;
3677        }
3678        hashcpy(cb->osha1, osha1);
3679        hashcpy(cb->nsha1, nsha1);
3680        if (cb->cnt > 0)
3681                cb->cnt--;
3682        return 0;
3683}
3684
3685static int read_ref_at_ent_oldest(unsigned char *osha1, unsigned char *nsha1,
3686                                  const char *email, unsigned long timestamp,
3687                                  int tz, const char *message, void *cb_data)
3688{
3689        struct read_ref_at_cb *cb = cb_data;
3690
3691        if (cb->msg)
3692                *cb->msg = xstrdup(message);
3693        if (cb->cutoff_time)
3694                *cb->cutoff_time = timestamp;
3695        if (cb->cutoff_tz)
3696                *cb->cutoff_tz = tz;
3697        if (cb->cutoff_cnt)
3698                *cb->cutoff_cnt = cb->reccnt;
3699        hashcpy(cb->sha1, osha1);
3700        if (is_null_sha1(cb->sha1))
3701                hashcpy(cb->sha1, nsha1);
3702        /* We just want the first entry */
3703        return 1;
3704}
3705
3706int read_ref_at(const char *refname, unsigned int flags, unsigned long at_time, int cnt,
3707                unsigned char *sha1, char **msg,
3708                unsigned long *cutoff_time, int *cutoff_tz, int *cutoff_cnt)
3709{
3710        struct read_ref_at_cb cb;
3711
3712        memset(&cb, 0, sizeof(cb));
3713        cb.refname = refname;
3714        cb.at_time = at_time;
3715        cb.cnt = cnt;
3716        cb.msg = msg;
3717        cb.cutoff_time = cutoff_time;
3718        cb.cutoff_tz = cutoff_tz;
3719        cb.cutoff_cnt = cutoff_cnt;
3720        cb.sha1 = sha1;
3721
3722        for_each_reflog_ent_reverse(refname, read_ref_at_ent, &cb);
3723
3724        if (!cb.reccnt) {
3725                if (flags & GET_SHA1_QUIETLY)
3726                        exit(128);
3727                else
3728                        die("Log for %s is empty.", refname);
3729        }
3730        if (cb.found_it)
3731                return 0;
3732
3733        for_each_reflog_ent(refname, read_ref_at_ent_oldest, &cb);
3734
3735        return 1;
3736}
3737
3738int reflog_exists(const char *refname)
3739{
3740        struct stat st;
3741
3742        return !lstat(git_path("logs/%s", refname), &st) &&
3743                S_ISREG(st.st_mode);
3744}
3745
3746int delete_reflog(const char *refname)
3747{
3748        return remove_path(git_path("logs/%s", refname));
3749}
3750
3751static int show_one_reflog_ent(struct strbuf *sb, each_reflog_ent_fn fn, void *cb_data)
3752{
3753        unsigned char osha1[20], nsha1[20];
3754        char *email_end, *message;
3755        unsigned long timestamp;
3756        int tz;
3757
3758        /* old SP new SP name <email> SP time TAB msg LF */
3759        if (sb->len < 83 || sb->buf[sb->len - 1] != '\n' ||
3760            get_sha1_hex(sb->buf, osha1) || sb->buf[40] != ' ' ||
3761            get_sha1_hex(sb->buf + 41, nsha1) || sb->buf[81] != ' ' ||
3762            !(email_end = strchr(sb->buf + 82, '>')) ||
3763            email_end[1] != ' ' ||
3764            !(timestamp = strtoul(email_end + 2, &message, 10)) ||
3765            !message || message[0] != ' ' ||
3766            (message[1] != '+' && message[1] != '-') ||
3767            !isdigit(message[2]) || !isdigit(message[3]) ||
3768            !isdigit(message[4]) || !isdigit(message[5]))
3769                return 0; /* corrupt? */
3770        email_end[1] = '\0';
3771        tz = strtol(message + 1, NULL, 10);
3772        if (message[6] != '\t')
3773                message += 6;
3774        else
3775                message += 7;
3776        return fn(osha1, nsha1, sb->buf + 82, timestamp, tz, message, cb_data);
3777}
3778
3779static char *find_beginning_of_line(char *bob, char *scan)
3780{
3781        while (bob < scan && *(--scan) != '\n')
3782                ; /* keep scanning backwards */
3783        /*
3784         * Return either beginning of the buffer, or LF at the end of
3785         * the previous line.
3786         */
3787        return scan;
3788}
3789
3790int for_each_reflog_ent_reverse(const char *refname, each_reflog_ent_fn fn, void *cb_data)
3791{
3792        struct strbuf sb = STRBUF_INIT;
3793        FILE *logfp;
3794        long pos;
3795        int ret = 0, at_tail = 1;
3796
3797        logfp = fopen(git_path("logs/%s", refname), "r");
3798        if (!logfp)
3799                return -1;
3800
3801        /* Jump to the end */
3802        if (fseek(logfp, 0, SEEK_END) < 0)
3803                return error("cannot seek back reflog for %s: %s",
3804                             refname, strerror(errno));
3805        pos = ftell(logfp);
3806        while (!ret && 0 < pos) {
3807                int cnt;
3808                size_t nread;
3809                char buf[BUFSIZ];
3810                char *endp, *scanp;
3811
3812                /* Fill next block from the end */
3813                cnt = (sizeof(buf) < pos) ? sizeof(buf) : pos;
3814                if (fseek(logfp, pos - cnt, SEEK_SET))
3815                        return error("cannot seek back reflog for %s: %s",
3816                                     refname, strerror(errno));
3817                nread = fread(buf, cnt, 1, logfp);
3818                if (nread != 1)
3819                        return error("cannot read %d bytes from reflog for %s: %s",
3820                                     cnt, refname, strerror(errno));
3821                pos -= cnt;
3822
3823                scanp = endp = buf + cnt;
3824                if (at_tail && scanp[-1] == '\n')
3825                        /* Looking at the final LF at the end of the file */
3826                        scanp--;
3827                at_tail = 0;
3828
3829                while (buf < scanp) {
3830                        /*
3831                         * terminating LF of the previous line, or the beginning
3832                         * of the buffer.
3833                         */
3834                        char *bp;
3835
3836                        bp = find_beginning_of_line(buf, scanp);
3837
3838                        if (*bp == '\n') {
3839                                /*
3840                                 * The newline is the end of the previous line,
3841                                 * so we know we have complete line starting
3842                                 * at (bp + 1). Prefix it onto any prior data
3843                                 * we collected for the line and process it.
3844                                 */
3845                                strbuf_splice(&sb, 0, 0, bp + 1, endp - (bp + 1));
3846                                scanp = bp;
3847                                endp = bp + 1;
3848                                ret = show_one_reflog_ent(&sb, fn, cb_data);
3849                                strbuf_reset(&sb);
3850                                if (ret)
3851                                        break;
3852                        } else if (!pos) {
3853                                /*
3854                                 * We are at the start of the buffer, and the
3855                                 * start of the file; there is no previous
3856                                 * line, and we have everything for this one.
3857                                 * Process it, and we can end the loop.
3858                                 */
3859                                strbuf_splice(&sb, 0, 0, buf, endp - buf);
3860                                ret = show_one_reflog_ent(&sb, fn, cb_data);
3861                                strbuf_reset(&sb);
3862                                break;
3863                        }
3864
3865                        if (bp == buf) {
3866                                /*
3867                                 * We are at the start of the buffer, and there
3868                                 * is more file to read backwards. Which means
3869                                 * we are in the middle of a line. Note that we
3870                                 * may get here even if *bp was a newline; that
3871                                 * just means we are at the exact end of the
3872                                 * previous line, rather than some spot in the
3873                                 * middle.
3874                                 *
3875                                 * Save away what we have to be combined with
3876                                 * the data from the next read.
3877                                 */
3878                                strbuf_splice(&sb, 0, 0, buf, endp - buf);
3879                                break;
3880                        }
3881                }
3882
3883        }
3884        if (!ret && sb.len)
3885                die("BUG: reverse reflog parser had leftover data");
3886
3887        fclose(logfp);
3888        strbuf_release(&sb);
3889        return ret;
3890}
3891
3892int for_each_reflog_ent(const char *refname, each_reflog_ent_fn fn, void *cb_data)
3893{
3894        FILE *logfp;
3895        struct strbuf sb = STRBUF_INIT;
3896        int ret = 0;
3897
3898        logfp = fopen(git_path("logs/%s", refname), "r");
3899        if (!logfp)
3900                return -1;
3901
3902        while (!ret && !strbuf_getwholeline(&sb, logfp, '\n'))
3903                ret = show_one_reflog_ent(&sb, fn, cb_data);
3904        fclose(logfp);
3905        strbuf_release(&sb);
3906        return ret;
3907}
3908/*
3909 * Call fn for each reflog in the namespace indicated by name.  name
3910 * must be empty or end with '/'.  Name will be used as a scratch
3911 * space, but its contents will be restored before return.
3912 */
3913static int do_for_each_reflog(struct strbuf *name, each_ref_fn fn, void *cb_data)
3914{
3915        DIR *d = opendir(git_path("logs/%s", name->buf));
3916        int retval = 0;
3917        struct dirent *de;
3918        int oldlen = name->len;
3919
3920        if (!d)
3921                return name->len ? errno : 0;
3922
3923        while ((de = readdir(d)) != NULL) {
3924                struct stat st;
3925
3926                if (de->d_name[0] == '.')
3927                        continue;
3928                if (ends_with(de->d_name, ".lock"))
3929                        continue;
3930                strbuf_addstr(name, de->d_name);
3931                if (stat(git_path("logs/%s", name->buf), &st) < 0) {
3932                        ; /* silently ignore */
3933                } else {
3934                        if (S_ISDIR(st.st_mode)) {
3935                                strbuf_addch(name, '/');
3936                                retval = do_for_each_reflog(name, fn, cb_data);
3937                        } else {
3938                                struct object_id oid;
3939
3940                                if (read_ref_full(name->buf, 0, oid.hash, NULL))
3941                                        retval = error("bad ref for %s", name->buf);
3942                                else
3943                                        retval = fn(name->buf, &oid, 0, cb_data);
3944                        }
3945                        if (retval)
3946                                break;
3947                }
3948                strbuf_setlen(name, oldlen);
3949        }
3950        closedir(d);
3951        return retval;
3952}
3953
3954int for_each_reflog(each_ref_fn fn, void *cb_data)
3955{
3956        int retval;
3957        struct strbuf name;
3958        strbuf_init(&name, PATH_MAX);
3959        retval = do_for_each_reflog(&name, fn, cb_data);
3960        strbuf_release(&name);
3961        return retval;
3962}
3963
3964/**
3965 * Information needed for a single ref update. Set new_sha1 to the new
3966 * value or to null_sha1 to delete the ref. To check the old value
3967 * while the ref is locked, set (flags & REF_HAVE_OLD) and set
3968 * old_sha1 to the old value, or to null_sha1 to ensure the ref does
3969 * not exist before update.
3970 */
3971struct ref_update {
3972        /*
3973         * If (flags & REF_HAVE_NEW), set the reference to this value:
3974         */
3975        unsigned char new_sha1[20];
3976        /*
3977         * If (flags & REF_HAVE_OLD), check that the reference
3978         * previously had this value:
3979         */
3980        unsigned char old_sha1[20];
3981        /*
3982         * One or more of REF_HAVE_NEW, REF_HAVE_OLD, REF_NODEREF,
3983         * REF_DELETING, and REF_ISPRUNING:
3984         */
3985        unsigned int flags;
3986        struct ref_lock *lock;
3987        int type;
3988        char *msg;
3989        const char refname[FLEX_ARRAY];
3990};
3991
3992/*
3993 * Transaction states.
3994 * OPEN:   The transaction is in a valid state and can accept new updates.
3995 *         An OPEN transaction can be committed.
3996 * CLOSED: A closed transaction is no longer active and no other operations
3997 *         than free can be used on it in this state.
3998 *         A transaction can either become closed by successfully committing
3999 *         an active transaction or if there is a failure while building
4000 *         the transaction thus rendering it failed/inactive.
4001 */
4002enum ref_transaction_state {
4003        REF_TRANSACTION_OPEN   = 0,
4004        REF_TRANSACTION_CLOSED = 1
4005};
4006
4007/*
4008 * Data structure for holding a reference transaction, which can
4009 * consist of checks and updates to multiple references, carried out
4010 * as atomically as possible.  This structure is opaque to callers.
4011 */
4012struct ref_transaction {
4013        struct ref_update **updates;
4014        size_t alloc;
4015        size_t nr;
4016        enum ref_transaction_state state;
4017};
4018
4019struct ref_transaction *ref_transaction_begin(struct strbuf *err)
4020{
4021        assert(err);
4022
4023        return xcalloc(1, sizeof(struct ref_transaction));
4024}
4025
4026void ref_transaction_free(struct ref_transaction *transaction)
4027{
4028        int i;
4029
4030        if (!transaction)
4031                return;
4032
4033        for (i = 0; i < transaction->nr; i++) {
4034                free(transaction->updates[i]->msg);
4035                free(transaction->updates[i]);
4036        }
4037        free(transaction->updates);
4038        free(transaction);
4039}
4040
4041static struct ref_update *add_update(struct ref_transaction *transaction,
4042                                     const char *refname)
4043{
4044        size_t len = strlen(refname) + 1;
4045        struct ref_update *update = xcalloc(1, sizeof(*update) + len);
4046
4047        memcpy((char *)update->refname, refname, len); /* includes NUL */
4048        ALLOC_GROW(transaction->updates, transaction->nr + 1, transaction->alloc);
4049        transaction->updates[transaction->nr++] = update;
4050        return update;
4051}
4052
4053int ref_transaction_update(struct ref_transaction *transaction,
4054                           const char *refname,
4055                           const unsigned char *new_sha1,
4056                           const unsigned char *old_sha1,
4057                           unsigned int flags, const char *msg,
4058                           struct strbuf *err)
4059{
4060        struct ref_update *update;
4061
4062        assert(err);
4063
4064        if (transaction->state != REF_TRANSACTION_OPEN)
4065                die("BUG: update called for transaction that is not open");
4066
4067        if (new_sha1 && !is_null_sha1(new_sha1) &&
4068            check_refname_format(refname, REFNAME_ALLOW_ONELEVEL)) {
4069                strbuf_addf(err, "refusing to update ref with bad name %s",
4070                            refname);
4071                return -1;
4072        }
4073
4074        update = add_update(transaction, refname);
4075        if (new_sha1) {
4076                hashcpy(update->new_sha1, new_sha1);
4077                flags |= REF_HAVE_NEW;
4078        }
4079        if (old_sha1) {
4080                hashcpy(update->old_sha1, old_sha1);
4081                flags |= REF_HAVE_OLD;
4082        }
4083        update->flags = flags;
4084        if (msg)
4085                update->msg = xstrdup(msg);
4086        return 0;
4087}
4088
4089int ref_transaction_create(struct ref_transaction *transaction,
4090                           const char *refname,
4091                           const unsigned char *new_sha1,
4092                           unsigned int flags, const char *msg,
4093                           struct strbuf *err)
4094{
4095        if (!new_sha1 || is_null_sha1(new_sha1))
4096                die("BUG: create called without valid new_sha1");
4097        return ref_transaction_update(transaction, refname, new_sha1,
4098                                      null_sha1, flags, msg, err);
4099}
4100
4101int ref_transaction_delete(struct ref_transaction *transaction,
4102                           const char *refname,
4103                           const unsigned char *old_sha1,
4104                           unsigned int flags, const char *msg,
4105                           struct strbuf *err)
4106{
4107        if (old_sha1 && is_null_sha1(old_sha1))
4108                die("BUG: delete called with old_sha1 set to zeros");
4109        return ref_transaction_update(transaction, refname,
4110                                      null_sha1, old_sha1,
4111                                      flags, msg, err);
4112}
4113
4114int ref_transaction_verify(struct ref_transaction *transaction,
4115                           const char *refname,
4116                           const unsigned char *old_sha1,
4117                           unsigned int flags,
4118                           struct strbuf *err)
4119{
4120        if (!old_sha1)
4121                die("BUG: verify called with old_sha1 set to NULL");
4122        return ref_transaction_update(transaction, refname,
4123                                      NULL, old_sha1,
4124                                      flags, NULL, err);
4125}
4126
4127int update_ref(const char *msg, const char *refname,
4128               const unsigned char *new_sha1, const unsigned char *old_sha1,
4129               unsigned int flags, enum action_on_err onerr)
4130{
4131        struct ref_transaction *t = NULL;
4132        struct strbuf err = STRBUF_INIT;
4133        int ret = 0;
4134
4135        if (ref_type(refname) == REF_TYPE_PSEUDOREF) {
4136                ret = write_pseudoref(refname, new_sha1, old_sha1, &err);
4137        } else {
4138                t = ref_transaction_begin(&err);
4139                if (!t ||
4140                    ref_transaction_update(t, refname, new_sha1, old_sha1,
4141                                           flags, msg, &err) ||
4142                    ref_transaction_commit(t, &err)) {
4143                        ret = 1;
4144                        ref_transaction_free(t);
4145                }
4146        }
4147        if (ret) {
4148                const char *str = "update_ref failed for ref '%s': %s";
4149
4150                switch (onerr) {
4151                case UPDATE_REFS_MSG_ON_ERR:
4152                        error(str, refname, err.buf);
4153                        break;
4154                case UPDATE_REFS_DIE_ON_ERR:
4155                        die(str, refname, err.buf);
4156                        break;
4157                case UPDATE_REFS_QUIET_ON_ERR:
4158                        break;
4159                }
4160                strbuf_release(&err);
4161                return 1;
4162        }
4163        strbuf_release(&err);
4164        if (t)
4165                ref_transaction_free(t);
4166        return 0;
4167}
4168
4169static int ref_update_reject_duplicates(struct string_list *refnames,
4170                                        struct strbuf *err)
4171{
4172        int i, n = refnames->nr;
4173
4174        assert(err);
4175
4176        for (i = 1; i < n; i++)
4177                if (!strcmp(refnames->items[i - 1].string, refnames->items[i].string)) {
4178                        strbuf_addf(err,
4179                                    "Multiple updates for ref '%s' not allowed.",
4180                                    refnames->items[i].string);
4181                        return 1;
4182                }
4183        return 0;
4184}
4185
4186int ref_transaction_commit(struct ref_transaction *transaction,
4187                           struct strbuf *err)
4188{
4189        int ret = 0, i;
4190        int n = transaction->nr;
4191        struct ref_update **updates = transaction->updates;
4192        struct string_list refs_to_delete = STRING_LIST_INIT_NODUP;
4193        struct string_list_item *ref_to_delete;
4194        struct string_list affected_refnames = STRING_LIST_INIT_NODUP;
4195
4196        assert(err);
4197
4198        if (transaction->state != REF_TRANSACTION_OPEN)
4199                die("BUG: commit called for transaction that is not open");
4200
4201        if (!n) {
4202                transaction->state = REF_TRANSACTION_CLOSED;
4203                return 0;
4204        }
4205
4206        /* Fail if a refname appears more than once in the transaction: */
4207        for (i = 0; i < n; i++)
4208                string_list_append(&affected_refnames, updates[i]->refname);
4209        string_list_sort(&affected_refnames);
4210        if (ref_update_reject_duplicates(&affected_refnames, err)) {
4211                ret = TRANSACTION_GENERIC_ERROR;
4212                goto cleanup;
4213        }
4214
4215        /*
4216         * Acquire all locks, verify old values if provided, check
4217         * that new values are valid, and write new values to the
4218         * lockfiles, ready to be activated. Only keep one lockfile
4219         * open at a time to avoid running out of file descriptors.
4220         */
4221        for (i = 0; i < n; i++) {
4222                struct ref_update *update = updates[i];
4223
4224                if ((update->flags & REF_HAVE_NEW) &&
4225                    is_null_sha1(update->new_sha1))
4226                        update->flags |= REF_DELETING;
4227                update->lock = lock_ref_sha1_basic(
4228                                update->refname,
4229                                ((update->flags & REF_HAVE_OLD) ?
4230                                 update->old_sha1 : NULL),
4231                                &affected_refnames, NULL,
4232                                update->flags,
4233                                &update->type,
4234                                err);
4235                if (!update->lock) {
4236                        char *reason;
4237
4238                        ret = (errno == ENOTDIR)
4239                                ? TRANSACTION_NAME_CONFLICT
4240                                : TRANSACTION_GENERIC_ERROR;
4241                        reason = strbuf_detach(err, NULL);
4242                        strbuf_addf(err, "cannot lock ref '%s': %s",
4243                                    update->refname, reason);
4244                        free(reason);
4245                        goto cleanup;
4246                }
4247                if ((update->flags & REF_HAVE_NEW) &&
4248                    !(update->flags & REF_DELETING)) {
4249                        int overwriting_symref = ((update->type & REF_ISSYMREF) &&
4250                                                  (update->flags & REF_NODEREF));
4251
4252                        if (!overwriting_symref &&
4253                            !hashcmp(update->lock->old_oid.hash, update->new_sha1)) {
4254                                /*
4255                                 * The reference already has the desired
4256                                 * value, so we don't need to write it.
4257                                 */
4258                        } else if (write_ref_to_lockfile(update->lock,
4259                                                         update->new_sha1,
4260                                                         err)) {
4261                                char *write_err = strbuf_detach(err, NULL);
4262
4263                                /*
4264                                 * The lock was freed upon failure of
4265                                 * write_ref_to_lockfile():
4266                                 */
4267                                update->lock = NULL;
4268                                strbuf_addf(err,
4269                                            "cannot update the ref '%s': %s",
4270                                            update->refname, write_err);
4271                                free(write_err);
4272                                ret = TRANSACTION_GENERIC_ERROR;
4273                                goto cleanup;
4274                        } else {
4275                                update->flags |= REF_NEEDS_COMMIT;
4276                        }
4277                }
4278                if (!(update->flags & REF_NEEDS_COMMIT)) {
4279                        /*
4280                         * We didn't have to write anything to the lockfile.
4281                         * Close it to free up the file descriptor:
4282                         */
4283                        if (close_ref(update->lock)) {
4284                                strbuf_addf(err, "Couldn't close %s.lock",
4285                                            update->refname);
4286                                goto cleanup;
4287                        }
4288                }
4289        }
4290
4291        /* Perform updates first so live commits remain referenced */
4292        for (i = 0; i < n; i++) {
4293                struct ref_update *update = updates[i];
4294
4295                if (update->flags & REF_NEEDS_COMMIT) {
4296                        if (commit_ref_update(update->lock,
4297                                              update->new_sha1, update->msg,
4298                                              update->flags, err)) {
4299                                /* freed by commit_ref_update(): */
4300                                update->lock = NULL;
4301                                ret = TRANSACTION_GENERIC_ERROR;
4302                                goto cleanup;
4303                        } else {
4304                                /* freed by commit_ref_update(): */
4305                                update->lock = NULL;
4306                        }
4307                }
4308        }
4309
4310        /* Perform deletes now that updates are safely completed */
4311        for (i = 0; i < n; i++) {
4312                struct ref_update *update = updates[i];
4313
4314                if (update->flags & REF_DELETING) {
4315                        if (delete_ref_loose(update->lock, update->type, err)) {
4316                                ret = TRANSACTION_GENERIC_ERROR;
4317                                goto cleanup;
4318                        }
4319
4320                        if (!(update->flags & REF_ISPRUNING))
4321                                string_list_append(&refs_to_delete,
4322                                                   update->lock->ref_name);
4323                }
4324        }
4325
4326        if (repack_without_refs(&refs_to_delete, err)) {
4327                ret = TRANSACTION_GENERIC_ERROR;
4328                goto cleanup;
4329        }
4330        for_each_string_list_item(ref_to_delete, &refs_to_delete)
4331                unlink_or_warn(git_path("logs/%s", ref_to_delete->string));
4332        clear_loose_ref_cache(&ref_cache);
4333
4334cleanup:
4335        transaction->state = REF_TRANSACTION_CLOSED;
4336
4337        for (i = 0; i < n; i++)
4338                if (updates[i]->lock)
4339                        unlock_ref(updates[i]->lock);
4340        string_list_clear(&refs_to_delete, 0);
4341        string_list_clear(&affected_refnames, 0);
4342        return ret;
4343}
4344
4345static int ref_present(const char *refname,
4346                       const struct object_id *oid, int flags, void *cb_data)
4347{
4348        struct string_list *affected_refnames = cb_data;
4349
4350        return string_list_has_string(affected_refnames, refname);
4351}
4352
4353int initial_ref_transaction_commit(struct ref_transaction *transaction,
4354                                   struct strbuf *err)
4355{
4356        int ret = 0, i;
4357        int n = transaction->nr;
4358        struct ref_update **updates = transaction->updates;
4359        struct string_list affected_refnames = STRING_LIST_INIT_NODUP;
4360
4361        assert(err);
4362
4363        if (transaction->state != REF_TRANSACTION_OPEN)
4364                die("BUG: commit called for transaction that is not open");
4365
4366        /* Fail if a refname appears more than once in the transaction: */
4367        for (i = 0; i < n; i++)
4368                string_list_append(&affected_refnames, updates[i]->refname);
4369        string_list_sort(&affected_refnames);
4370        if (ref_update_reject_duplicates(&affected_refnames, err)) {
4371                ret = TRANSACTION_GENERIC_ERROR;
4372                goto cleanup;
4373        }
4374
4375        /*
4376         * It's really undefined to call this function in an active
4377         * repository or when there are existing references: we are
4378         * only locking and changing packed-refs, so (1) any
4379         * simultaneous processes might try to change a reference at
4380         * the same time we do, and (2) any existing loose versions of
4381         * the references that we are setting would have precedence
4382         * over our values. But some remote helpers create the remote
4383         * "HEAD" and "master" branches before calling this function,
4384         * so here we really only check that none of the references
4385         * that we are creating already exists.
4386         */
4387        if (for_each_rawref(ref_present, &affected_refnames))
4388                die("BUG: initial ref transaction called with existing refs");
4389
4390        for (i = 0; i < n; i++) {
4391                struct ref_update *update = updates[i];
4392
4393                if ((update->flags & REF_HAVE_OLD) &&
4394                    !is_null_sha1(update->old_sha1))
4395                        die("BUG: initial ref transaction with old_sha1 set");
4396                if (verify_refname_available(update->refname,
4397                                             &affected_refnames, NULL,
4398                                             err)) {
4399                        ret = TRANSACTION_NAME_CONFLICT;
4400                        goto cleanup;
4401                }
4402        }
4403
4404        if (lock_packed_refs(0)) {
4405                strbuf_addf(err, "unable to lock packed-refs file: %s",
4406                            strerror(errno));
4407                ret = TRANSACTION_GENERIC_ERROR;
4408                goto cleanup;
4409        }
4410
4411        for (i = 0; i < n; i++) {
4412                struct ref_update *update = updates[i];
4413
4414                if ((update->flags & REF_HAVE_NEW) &&
4415                    !is_null_sha1(update->new_sha1))
4416                        add_packed_ref(update->refname, update->new_sha1);
4417        }
4418
4419        if (commit_packed_refs()) {
4420                strbuf_addf(err, "unable to commit packed-refs file: %s",
4421                            strerror(errno));
4422                ret = TRANSACTION_GENERIC_ERROR;
4423                goto cleanup;
4424        }
4425
4426cleanup:
4427        transaction->state = REF_TRANSACTION_CLOSED;
4428        string_list_clear(&affected_refnames, 0);
4429        return ret;
4430}
4431
4432char *shorten_unambiguous_ref(const char *refname, int strict)
4433{
4434        int i;
4435        static char **scanf_fmts;
4436        static int nr_rules;
4437        char *short_name;
4438
4439        if (!nr_rules) {
4440                /*
4441                 * Pre-generate scanf formats from ref_rev_parse_rules[].
4442                 * Generate a format suitable for scanf from a
4443                 * ref_rev_parse_rules rule by interpolating "%s" at the
4444                 * location of the "%.*s".
4445                 */
4446                size_t total_len = 0;
4447                size_t offset = 0;
4448
4449                /* the rule list is NULL terminated, count them first */
4450                for (nr_rules = 0; ref_rev_parse_rules[nr_rules]; nr_rules++)
4451                        /* -2 for strlen("%.*s") - strlen("%s"); +1 for NUL */
4452                        total_len += strlen(ref_rev_parse_rules[nr_rules]) - 2 + 1;
4453
4454                scanf_fmts = xmalloc(nr_rules * sizeof(char *) + total_len);
4455
4456                offset = 0;
4457                for (i = 0; i < nr_rules; i++) {
4458                        assert(offset < total_len);
4459                        scanf_fmts[i] = (char *)&scanf_fmts[nr_rules] + offset;
4460                        offset += snprintf(scanf_fmts[i], total_len - offset,
4461                                           ref_rev_parse_rules[i], 2, "%s") + 1;
4462                }
4463        }
4464
4465        /* bail out if there are no rules */
4466        if (!nr_rules)
4467                return xstrdup(refname);
4468
4469        /* buffer for scanf result, at most refname must fit */
4470        short_name = xstrdup(refname);
4471
4472        /* skip first rule, it will always match */
4473        for (i = nr_rules - 1; i > 0 ; --i) {
4474                int j;
4475                int rules_to_fail = i;
4476                int short_name_len;
4477
4478                if (1 != sscanf(refname, scanf_fmts[i], short_name))
4479                        continue;
4480
4481                short_name_len = strlen(short_name);
4482
4483                /*
4484                 * in strict mode, all (except the matched one) rules
4485                 * must fail to resolve to a valid non-ambiguous ref
4486                 */
4487                if (strict)
4488                        rules_to_fail = nr_rules;
4489
4490                /*
4491                 * check if the short name resolves to a valid ref,
4492                 * but use only rules prior to the matched one
4493                 */
4494                for (j = 0; j < rules_to_fail; j++) {
4495                        const char *rule = ref_rev_parse_rules[j];
4496                        char refname[PATH_MAX];
4497
4498                        /* skip matched rule */
4499                        if (i == j)
4500                                continue;
4501
4502                        /*
4503                         * the short name is ambiguous, if it resolves
4504                         * (with this previous rule) to a valid ref
4505                         * read_ref() returns 0 on success
4506                         */
4507                        mksnpath(refname, sizeof(refname),
4508                                 rule, short_name_len, short_name);
4509                        if (ref_exists(refname))
4510                                break;
4511                }
4512
4513                /*
4514                 * short name is non-ambiguous if all previous rules
4515                 * haven't resolved to a valid ref
4516                 */
4517                if (j == rules_to_fail)
4518                        return short_name;
4519        }
4520
4521        free(short_name);
4522        return xstrdup(refname);
4523}
4524
4525static struct string_list *hide_refs;
4526
4527int parse_hide_refs_config(const char *var, const char *value, const char *section)
4528{
4529        if (!strcmp("transfer.hiderefs", var) ||
4530            /* NEEDSWORK: use parse_config_key() once both are merged */
4531            (starts_with(var, section) && var[strlen(section)] == '.' &&
4532             !strcmp(var + strlen(section), ".hiderefs"))) {
4533                char *ref;
4534                int len;
4535
4536                if (!value)
4537                        return config_error_nonbool(var);
4538                ref = xstrdup(value);
4539                len = strlen(ref);
4540                while (len && ref[len - 1] == '/')
4541                        ref[--len] = '\0';
4542                if (!hide_refs) {
4543                        hide_refs = xcalloc(1, sizeof(*hide_refs));
4544                        hide_refs->strdup_strings = 1;
4545                }
4546                string_list_append(hide_refs, ref);
4547        }
4548        return 0;
4549}
4550
4551int ref_is_hidden(const char *refname)
4552{
4553        int i;
4554
4555        if (!hide_refs)
4556                return 0;
4557        for (i = hide_refs->nr - 1; i >= 0; i--) {
4558                const char *match = hide_refs->items[i].string;
4559                int neg = 0;
4560                int len;
4561
4562                if (*match == '!') {
4563                        neg = 1;
4564                        match++;
4565                }
4566
4567                if (!starts_with(refname, match))
4568                        continue;
4569                len = strlen(match);
4570                if (!refname[len] || refname[len] == '/')
4571                        return !neg;
4572        }
4573        return 0;
4574}
4575
4576struct expire_reflog_cb {
4577        unsigned int flags;
4578        reflog_expiry_should_prune_fn *should_prune_fn;
4579        void *policy_cb;
4580        FILE *newlog;
4581        unsigned char last_kept_sha1[20];
4582};
4583
4584static int expire_reflog_ent(unsigned char *osha1, unsigned char *nsha1,
4585                             const char *email, unsigned long timestamp, int tz,
4586                             const char *message, void *cb_data)
4587{
4588        struct expire_reflog_cb *cb = cb_data;
4589        struct expire_reflog_policy_cb *policy_cb = cb->policy_cb;
4590
4591        if (cb->flags & EXPIRE_REFLOGS_REWRITE)
4592                osha1 = cb->last_kept_sha1;
4593
4594        if ((*cb->should_prune_fn)(osha1, nsha1, email, timestamp, tz,
4595                                   message, policy_cb)) {
4596                if (!cb->newlog)
4597                        printf("would prune %s", message);
4598                else if (cb->flags & EXPIRE_REFLOGS_VERBOSE)
4599                        printf("prune %s", message);
4600        } else {
4601                if (cb->newlog) {
4602                        fprintf(cb->newlog, "%s %s %s %lu %+05d\t%s",
4603                                sha1_to_hex(osha1), sha1_to_hex(nsha1),
4604                                email, timestamp, tz, message);
4605                        hashcpy(cb->last_kept_sha1, nsha1);
4606                }
4607                if (cb->flags & EXPIRE_REFLOGS_VERBOSE)
4608                        printf("keep %s", message);
4609        }
4610        return 0;
4611}
4612
4613int reflog_expire(const char *refname, const unsigned char *sha1,
4614                 unsigned int flags,
4615                 reflog_expiry_prepare_fn prepare_fn,
4616                 reflog_expiry_should_prune_fn should_prune_fn,
4617                 reflog_expiry_cleanup_fn cleanup_fn,
4618                 void *policy_cb_data)
4619{
4620        static struct lock_file reflog_lock;
4621        struct expire_reflog_cb cb;
4622        struct ref_lock *lock;
4623        char *log_file;
4624        int status = 0;
4625        int type;
4626        struct strbuf err = STRBUF_INIT;
4627
4628        memset(&cb, 0, sizeof(cb));
4629        cb.flags = flags;
4630        cb.policy_cb = policy_cb_data;
4631        cb.should_prune_fn = should_prune_fn;
4632
4633        /*
4634         * The reflog file is locked by holding the lock on the
4635         * reference itself, plus we might need to update the
4636         * reference if --updateref was specified:
4637         */
4638        lock = lock_ref_sha1_basic(refname, sha1, NULL, NULL, 0, &type, &err);
4639        if (!lock) {
4640                error("cannot lock ref '%s': %s", refname, err.buf);
4641                strbuf_release(&err);
4642                return -1;
4643        }
4644        if (!reflog_exists(refname)) {
4645                unlock_ref(lock);
4646                return 0;
4647        }
4648
4649        log_file = git_pathdup("logs/%s", refname);
4650        if (!(flags & EXPIRE_REFLOGS_DRY_RUN)) {
4651                /*
4652                 * Even though holding $GIT_DIR/logs/$reflog.lock has
4653                 * no locking implications, we use the lock_file
4654                 * machinery here anyway because it does a lot of the
4655                 * work we need, including cleaning up if the program
4656                 * exits unexpectedly.
4657                 */
4658                if (hold_lock_file_for_update(&reflog_lock, log_file, 0) < 0) {
4659                        struct strbuf err = STRBUF_INIT;
4660                        unable_to_lock_message(log_file, errno, &err);
4661                        error("%s", err.buf);
4662                        strbuf_release(&err);
4663                        goto failure;
4664                }
4665                cb.newlog = fdopen_lock_file(&reflog_lock, "w");
4666                if (!cb.newlog) {
4667                        error("cannot fdopen %s (%s)",
4668                              get_lock_file_path(&reflog_lock), strerror(errno));
4669                        goto failure;
4670                }
4671        }
4672
4673        (*prepare_fn)(refname, sha1, cb.policy_cb);
4674        for_each_reflog_ent(refname, expire_reflog_ent, &cb);
4675        (*cleanup_fn)(cb.policy_cb);
4676
4677        if (!(flags & EXPIRE_REFLOGS_DRY_RUN)) {
4678                /*
4679                 * It doesn't make sense to adjust a reference pointed
4680                 * to by a symbolic ref based on expiring entries in
4681                 * the symbolic reference's reflog. Nor can we update
4682                 * a reference if there are no remaining reflog
4683                 * entries.
4684                 */
4685                int update = (flags & EXPIRE_REFLOGS_UPDATE_REF) &&
4686                        !(type & REF_ISSYMREF) &&
4687                        !is_null_sha1(cb.last_kept_sha1);
4688
4689                if (close_lock_file(&reflog_lock)) {
4690                        status |= error("couldn't write %s: %s", log_file,
4691                                        strerror(errno));
4692                } else if (update &&
4693                           (write_in_full(get_lock_file_fd(lock->lk),
4694                                sha1_to_hex(cb.last_kept_sha1), 40) != 40 ||
4695                            write_str_in_full(get_lock_file_fd(lock->lk), "\n") != 1 ||
4696                            close_ref(lock) < 0)) {
4697                        status |= error("couldn't write %s",
4698                                        get_lock_file_path(lock->lk));
4699                        rollback_lock_file(&reflog_lock);
4700                } else if (commit_lock_file(&reflog_lock)) {
4701                        status |= error("unable to commit reflog '%s' (%s)",
4702                                        log_file, strerror(errno));
4703                } else if (update && commit_ref(lock)) {
4704                        status |= error("couldn't set %s", lock->ref_name);
4705                }
4706        }
4707        free(log_file);
4708        unlock_ref(lock);
4709        return status;
4710
4711 failure:
4712        rollback_lock_file(&reflog_lock);
4713        free(log_file);
4714        unlock_ref(lock);
4715        return -1;
4716}