libbb/pw_encrypt_sha: forgot to move &ctx to 1st param here in sha hash rework
Signed-off-by: Denys Vlasenko <dvlasenk@redhat.com>
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@ -3,7 +3,7 @@
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*/
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/* Prefix for optional rounds specification. */
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static const char str_rounds[] = "rounds=%u$";
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static const char str_rounds[] ALIGN1 = "rounds=%u$";
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/* Maximum salt string length. */
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#define SALT_LEN_MAX 16
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@ -19,8 +19,8 @@ NOINLINE
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sha_crypt(/*const*/ char *key_data, /*const*/ char *salt_data)
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{
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void (*sha_begin)(void *ctx) FAST_FUNC;
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void (*sha_hash)(const void *buffer, size_t len, void *ctx) FAST_FUNC;
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void (*sha_end)(void *resbuf, void *ctx) FAST_FUNC;
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void (*sha_hash)(void *ctx, const void *buffer, size_t len) FAST_FUNC;
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void (*sha_end)(void *ctx, void *resbuf) FAST_FUNC;
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int _32or64;
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char *result, *resptr;
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@ -103,40 +103,40 @@ sha_crypt(/*const*/ char *key_data, /*const*/ char *salt_data)
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/* Add KEY, SALT. */
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sha_begin(&ctx);
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sha_hash(key_data, key_len, &ctx);
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sha_hash(salt_data, salt_len, &ctx);
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sha_hash(&ctx, key_data, key_len);
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sha_hash(&ctx, salt_data, salt_len);
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/* Compute alternate SHA sum with input KEY, SALT, and KEY.
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The final result will be added to the first context. */
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sha_begin(&alt_ctx);
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sha_hash(key_data, key_len, &alt_ctx);
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sha_hash(salt_data, salt_len, &alt_ctx);
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sha_hash(key_data, key_len, &alt_ctx);
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sha_end(alt_result, &alt_ctx);
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sha_hash(&alt_ctx, key_data, key_len);
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sha_hash(&alt_ctx, salt_data, salt_len);
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sha_hash(&alt_ctx, key_data, key_len);
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sha_end(&alt_ctx, alt_result);
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/* Add result of this to the other context. */
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/* Add for any character in the key one byte of the alternate sum. */
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for (cnt = key_len; cnt > _32or64; cnt -= _32or64)
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sha_hash(alt_result, _32or64, &ctx);
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sha_hash(alt_result, cnt, &ctx);
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sha_hash(&ctx, alt_result, _32or64);
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sha_hash(&ctx, alt_result, cnt);
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/* Take the binary representation of the length of the key and for every
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1 add the alternate sum, for every 0 the key. */
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for (cnt = key_len; cnt != 0; cnt >>= 1)
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if ((cnt & 1) != 0)
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sha_hash(alt_result, _32or64, &ctx);
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sha_hash(&ctx, alt_result, _32or64);
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else
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sha_hash(key_data, key_len, &ctx);
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sha_hash(&ctx, key_data, key_len);
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/* Create intermediate result. */
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sha_end(alt_result, &ctx);
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sha_end(&ctx, alt_result);
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/* Start computation of P byte sequence. */
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/* For every character in the password add the entire password. */
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sha_begin(&alt_ctx);
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for (cnt = 0; cnt < key_len; ++cnt)
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sha_hash(key_data, key_len, &alt_ctx);
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sha_end(temp_result, &alt_ctx);
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sha_hash(&alt_ctx, key_data, key_len);
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sha_end(&alt_ctx, temp_result);
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/* NB: past this point, raw key_data is not used anymore */
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@ -153,8 +153,8 @@ sha_crypt(/*const*/ char *key_data, /*const*/ char *salt_data)
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/* For every character in the password add the entire password. */
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sha_begin(&alt_ctx);
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for (cnt = 0; cnt < 16 + alt_result[0]; ++cnt)
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sha_hash(salt_data, salt_len, &alt_ctx);
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sha_end(temp_result, &alt_ctx);
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sha_hash(&alt_ctx, salt_data, salt_len);
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sha_end(&alt_ctx, temp_result);
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/* NB: past this point, raw salt_data is not used anymore */
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@ -174,22 +174,22 @@ sha_crypt(/*const*/ char *key_data, /*const*/ char *salt_data)
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/* Add key or last result. */
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if ((cnt & 1) != 0)
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sha_hash(p_bytes, key_len, &ctx);
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sha_hash(&ctx, p_bytes, key_len);
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else
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sha_hash(alt_result, _32or64, &ctx);
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sha_hash(&ctx, alt_result, _32or64);
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/* Add salt for numbers not divisible by 3. */
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if (cnt % 3 != 0)
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sha_hash(s_bytes, salt_len, &ctx);
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sha_hash(&ctx, s_bytes, salt_len);
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/* Add key for numbers not divisible by 7. */
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if (cnt % 7 != 0)
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sha_hash(p_bytes, key_len, &ctx);
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sha_hash(&ctx, p_bytes, key_len);
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/* Add key or last result. */
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if ((cnt & 1) != 0)
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sha_hash(alt_result, _32or64, &ctx);
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sha_hash(&ctx, alt_result, _32or64);
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else
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sha_hash(p_bytes, key_len, &ctx);
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sha_hash(&ctx, p_bytes, key_len);
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sha_end(alt_result, &ctx);
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sha_end(&ctx, alt_result);
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}
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/* Append encrypted password to result buffer */
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