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https://git.telodendria.io/Telodendria/Cytoplasm.git
synced 2024-11-21 11:50:46 +03:00
[ADD] Raw SHA inputs, hashtypes to ShaToHex
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parent
f5ce4f5238
commit
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4 changed files with 61 additions and 14 deletions
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@ -41,6 +41,16 @@
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* due to the lack of a 64-bit integer type, so that hash
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* function has been omitted.
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*/
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#include <stddef.h>
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/**
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* This is an enum to be used to identify the type of SHA used.
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*/
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typedef enum HashType
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{
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HASH_SHA1,
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HASH_SHA256
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} HashType;
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/**
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* This function takes a pointer to a NULL-terminated C string, and
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@ -64,6 +74,20 @@ extern unsigned char * Sha256(char *);
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*/
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extern unsigned char * Sha1(char *);
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/**
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* This function behaves just like
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* .Fn Sha256 ,
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* except that it allows for a generic byte array, instead of a string.
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*/
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extern unsigned char * Sha256Raw(unsigned char *, size_t);
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/**
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* This function behaves just like
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* .Fn Sha1 ,
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* except that it allows for a generic byte array, instead of a string.
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*/
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extern unsigned char * Sha1Raw(unsigned char *, size_t);
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/**
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* Convert a SHA byte buffer into a hex string. These hex strings
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* are typically what is transmitted, stored, and compared, however
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@ -71,6 +95,6 @@ extern unsigned char * Sha1(char *);
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* bytes directly, which is why the conversion to a hex string is
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* a separate step.
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*/
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extern char * ShaToHex(unsigned char *);
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extern char * ShaToHex(unsigned char *, HashType);
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#endif /* CYTOPLASM_SHA_H */
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33
src/Sha.c
33
src/Sha.c
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@ -28,21 +28,44 @@
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#include <string.h>
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char *
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ShaToHex(unsigned char *bytes)
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ShaToHex(unsigned char *bytes, HashType type)
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{
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size_t i = 0;
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char *str = Malloc(((strlen((char *) bytes) * 2) + 1) * sizeof(char));
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size_t i = 0, size;
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char *str;
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switch (type)
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{
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case HASH_SHA1:
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size = 20;
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break;
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case HASH_SHA256:
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size = 32;
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break;
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default:
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return NULL;
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}
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str = Malloc(((size * 2) + 1) * sizeof(char));
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if (!str)
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{
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return NULL;
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}
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while (bytes[i] != '\0')
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for (i = 0; i < size; i++)
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{
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snprintf(str + (2 * i), 3, "%02x", bytes[i]);
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i++;
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}
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return str;
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}
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unsigned char *
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Sha256(char *str)
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{
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return Sha256Raw((unsigned char *) str, str ? strlen(str) : 0);
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}
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unsigned char *
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Sha1(char *str)
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{
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return Sha1Raw((unsigned char *) str, str ? strlen(str) : 0);
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}
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@ -34,7 +34,7 @@
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#include <openssl/sha.h>
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unsigned char *
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Sha1(char *str)
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Sha1Raw(unsigned char *str, size_t len)
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{
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unsigned char *digest;
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if (!str)
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@ -43,7 +43,7 @@ Sha1(char *str)
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}
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digest = Malloc(20 + 1);
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SHA1((unsigned char *) str, strlen(str), digest);
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SHA1(str, len, digest);
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digest[20] = '\0';
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return digest;
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}
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@ -261,7 +261,7 @@ Sha1Calculate(Sha1Context * ctx, unsigned char *out)
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}
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unsigned char *
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Sha1(char *str)
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Sha1Raw(unsigned char *str, size_t len)
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{
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Sha1Context ctx;
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unsigned char *out;
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@ -278,7 +278,7 @@ Sha1(char *str)
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}
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Sha1Init(&ctx);
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Sha1Update(&ctx, str, strlen(str));
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Sha1Update(&ctx, str, len);
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Sha1Calculate(&ctx, out);
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out[160 / 8] = '\0';
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@ -36,7 +36,7 @@
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#include <openssl/sha.h>
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unsigned char *
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Sha256(char *str)
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Sha256Raw(unsigned char *str, size_t len)
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{
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unsigned char *digest;
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if (!str)
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@ -45,7 +45,7 @@ Sha256(char *str)
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}
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digest = Malloc(32 + 1);
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SHA256((unsigned char *) str, strlen(str), digest);
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SHA256(str, len, digest);
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digest[32] = '\0';
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return digest;
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}
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@ -192,7 +192,7 @@ Sha256Process(Sha256Context * context, unsigned char *data, size_t length)
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}
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unsigned char *
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Sha256(char *str)
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Sha256Raw(unsigned char *str, size_t len)
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{
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Sha256Context context;
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size_t i;
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@ -228,7 +228,7 @@ Sha256(char *str)
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context.length = 0;
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memset(context.buffer, 0, 64);
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Sha256Process(&context, (unsigned char *) str, strlen(str));
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Sha256Process(&context, str, len);
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memset(fill, 0, 64);
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fill[0] = 0x80;
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