hex: introduce functions to print arbitrary hashes
Currently, we have functions that turn an arbitrary SHA-1 value or an object ID into hex format, either using a static buffer or with a user-provided buffer. Add variants of these functions that can handle an arbitrary hash algorithm, specified by constant. Update the documentation as well. While we're at it, remove the "extern" declaration from this family of functions, since it's not needed and our style now recommends against it. We use the variant taking the algorithm structure pointer as the internal variant, since taking an algorithm pointer is the easiest way to handle all of the variants in use. Note that we maintain these functions because there are hashes which must change based on the hash algorithm in use but are not object IDs (such as pack checksums). Signed-off-by: brian m. carlson <sandals@crustytoothpaste.net> Signed-off-by: Junio C Hamano <gitster@pobox.com>
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15
cache.h
15
cache.h
@ -1361,9 +1361,9 @@ extern int get_oid_hex(const char *hex, struct object_id *sha1);
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extern int hex_to_bytes(unsigned char *binary, const char *hex, size_t len);
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extern int hex_to_bytes(unsigned char *binary, const char *hex, size_t len);
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/*
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/*
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* Convert a binary sha1 to its hex equivalent. The `_r` variant is reentrant,
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* Convert a binary hash to its hex equivalent. The `_r` variant is reentrant,
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* and writes the NUL-terminated output to the buffer `out`, which must be at
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* and writes the NUL-terminated output to the buffer `out`, which must be at
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* least `GIT_SHA1_HEXSZ + 1` bytes, and returns a pointer to out for
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* least `GIT_MAX_HEXSZ + 1` bytes, and returns a pointer to out for
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* convenience.
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* convenience.
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*
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*
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* The non-`_r` variant returns a static buffer, but uses a ring of 4
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* The non-`_r` variant returns a static buffer, but uses a ring of 4
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@ -1371,10 +1371,13 @@ extern int hex_to_bytes(unsigned char *binary, const char *hex, size_t len);
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*
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*
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* printf("%s -> %s", sha1_to_hex(one), sha1_to_hex(two));
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* printf("%s -> %s", sha1_to_hex(one), sha1_to_hex(two));
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*/
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*/
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extern char *sha1_to_hex_r(char *out, const unsigned char *sha1);
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char *hash_to_hex_algop_r(char *buffer, const unsigned char *hash, const struct git_hash_algo *);
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extern char *oid_to_hex_r(char *out, const struct object_id *oid);
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char *sha1_to_hex_r(char *out, const unsigned char *sha1);
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extern char *sha1_to_hex(const unsigned char *sha1); /* static buffer result! */
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char *oid_to_hex_r(char *out, const struct object_id *oid);
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extern char *oid_to_hex(const struct object_id *oid); /* same static buffer as sha1_to_hex */
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char *hash_to_hex_algop(const unsigned char *hash, const struct git_hash_algo *); /* static buffer result! */
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char *sha1_to_hex(const unsigned char *sha1); /* same static buffer */
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char *hash_to_hex(const unsigned char *hash); /* same static buffer */
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char *oid_to_hex(const struct object_id *oid); /* same static buffer */
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/*
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/*
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* Parse a 40-character hexadecimal object ID starting from hex, updating the
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* Parse a 40-character hexadecimal object ID starting from hex, updating the
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32
hex.c
32
hex.c
@ -73,14 +73,15 @@ int parse_oid_hex(const char *hex, struct object_id *oid, const char **end)
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return ret;
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return ret;
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}
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}
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char *sha1_to_hex_r(char *buffer, const unsigned char *sha1)
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char *hash_to_hex_algop_r(char *buffer, const unsigned char *hash,
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const struct git_hash_algo *algop)
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{
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{
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static const char hex[] = "0123456789abcdef";
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static const char hex[] = "0123456789abcdef";
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char *buf = buffer;
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char *buf = buffer;
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int i;
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int i;
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for (i = 0; i < the_hash_algo->rawsz; i++) {
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for (i = 0; i < algop->rawsz; i++) {
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unsigned int val = *sha1++;
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unsigned int val = *hash++;
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*buf++ = hex[val >> 4];
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*buf++ = hex[val >> 4];
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*buf++ = hex[val & 0xf];
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*buf++ = hex[val & 0xf];
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}
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}
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@ -89,20 +90,35 @@ char *sha1_to_hex_r(char *buffer, const unsigned char *sha1)
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return buffer;
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return buffer;
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}
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}
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char *oid_to_hex_r(char *buffer, const struct object_id *oid)
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char *sha1_to_hex_r(char *buffer, const unsigned char *sha1)
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{
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{
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return sha1_to_hex_r(buffer, oid->hash);
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return hash_to_hex_algop_r(buffer, sha1, &hash_algos[GIT_HASH_SHA1]);
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}
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}
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char *sha1_to_hex(const unsigned char *sha1)
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char *oid_to_hex_r(char *buffer, const struct object_id *oid)
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{
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return hash_to_hex_algop_r(buffer, oid->hash, the_hash_algo);
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}
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char *hash_to_hex_algop(const unsigned char *hash, const struct git_hash_algo *algop)
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{
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{
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static int bufno;
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static int bufno;
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static char hexbuffer[4][GIT_MAX_HEXSZ + 1];
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static char hexbuffer[4][GIT_MAX_HEXSZ + 1];
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bufno = (bufno + 1) % ARRAY_SIZE(hexbuffer);
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bufno = (bufno + 1) % ARRAY_SIZE(hexbuffer);
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return sha1_to_hex_r(hexbuffer[bufno], sha1);
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return hash_to_hex_algop_r(hexbuffer[bufno], hash, algop);
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}
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char *sha1_to_hex(const unsigned char *sha1)
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{
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return hash_to_hex_algop(sha1, &hash_algos[GIT_HASH_SHA1]);
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}
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char *hash_to_hex(const unsigned char *hash)
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{
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return hash_to_hex_algop(hash, the_hash_algo);
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}
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}
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char *oid_to_hex(const struct object_id *oid)
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char *oid_to_hex(const struct object_id *oid)
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{
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{
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return sha1_to_hex(oid->hash);
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return hash_to_hex_algop(oid->hash, the_hash_algo);
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}
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}
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