Coverage Report

Created: 2026-07-24 06:26

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl/include/crypto/md32_common.inc
Line
Count
Source
1
/*
2
 * Copyright 1999-2026 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
/*-
11
 * This is a generic 32 bit "collector" for message digest algorithms.
12
 * Whenever needed it collects input character stream into chunks of
13
 * 32 bit values and invokes a block function that performs actual hash
14
 * calculations.
15
 *
16
 * Porting guide.
17
 *
18
 * Obligatory macros:
19
 *
20
 * DATA_ORDER_IS_BIG_ENDIAN or DATA_ORDER_IS_LITTLE_ENDIAN
21
 *      this macro defines byte order of input stream.
22
 * HASH_CBLOCK
23
 *      size of a unit chunk HASH_BLOCK operates on.
24
 * HASH_LONG
25
 *      has to be at least 32 bit wide.
26
 * HASH_CTX
27
 *      context structure that at least contains following
28
 *      members:
29
 *              typedef struct {
30
 *                      ...
31
 *                      HASH_LONG       Nl,Nh;
32
 *                      either {
33
 *                      HASH_LONG       data[HASH_LBLOCK];
34
 *                      unsigned char   data[HASH_CBLOCK];
35
 *                      };
36
 *                      unsigned int    num;
37
 *                      ...
38
 *                      } HASH_CTX;
39
 *      data[] vector is expected to be zeroed upon first call to
40
 *      HASH_UPDATE.
41
 * HASH_UPDATE
42
 *      name of "Update" function, implemented here.
43
 * HASH_TRANSFORM
44
 *      name of "Transform" function, implemented here.
45
 * HASH_FINAL
46
 *      name of "Final" function, implemented here.
47
 * HASH_BLOCK_DATA_ORDER
48
 *      name of "block" function capable of treating *unaligned* input
49
 *      message in original (data) byte order, implemented externally.
50
 * HASH_MAKE_STRING
51
 *      macro converting context variables to an ASCII hash string.
52
 *
53
 * MD5 example:
54
 *
55
 *      #define DATA_ORDER_IS_LITTLE_ENDIAN
56
 *
57
 *      #define HASH_LONG               MD5_LONG
58
 *      #define HASH_CTX                MD5_CTX
59
 *      #define HASH_CBLOCK             MD5_CBLOCK
60
 *      #define HASH_UPDATE             MD5_Update
61
 *      #define HASH_TRANSFORM          MD5_Transform
62
 *      #define HASH_FINAL              MD5_Final
63
 *      #define HASH_BLOCK_DATA_ORDER   md5_block_data_order
64
 */
65
66
#ifndef OSSL_CRYPTO_MD32_COMMON_H
67
#define OSSL_CRYPTO_MD32_COMMON_H
68
#pragma once
69
70
#include <openssl/crypto.h>
71
/*
72
 * For ossl_(un)likely
73
 */
74
#include <internal/common.h>
75
76
#if !defined(DATA_ORDER_IS_BIG_ENDIAN) && !defined(DATA_ORDER_IS_LITTLE_ENDIAN)
77
#error "DATA_ORDER must be defined!"
78
#endif
79
80
#ifndef HASH_CBLOCK
81
#error "HASH_CBLOCK must be defined!"
82
#endif
83
#ifndef HASH_LONG
84
#error "HASH_LONG must be defined!"
85
#endif
86
#ifndef HASH_CTX
87
#error "HASH_CTX must be defined!"
88
#endif
89
90
#ifndef HASH_UPDATE
91
#error "HASH_UPDATE must be defined!"
92
#endif
93
#ifndef HASH_TRANSFORM
94
#error "HASH_TRANSFORM must be defined!"
95
#endif
96
#ifndef HASH_FINAL
97
#error "HASH_FINAL must be defined!"
98
#endif
99
100
#ifndef HASH_BLOCK_DATA_ORDER
101
#error "HASH_BLOCK_DATA_ORDER must be defined!"
102
#endif
103
104
7.27G
#define ROTATE(a, n) (((a) << (n)) | (((a) & 0xffffffff) >> (32 - (n))))
105
106
#ifndef PEDANTIC
107
#if defined(__GNUC__) && !defined(OPENSSL_NO_ASM) && !defined(OPENSSL_NO_INLINE_ASM)
108
#if defined(__riscv_zbb) || defined(__riscv_zbkb)
109
#if __riscv_xlen == 64
110
#undef ROTATE
111
#define ROTATE(x, n) ({ MD32_REG_T ret;            \
112
                       asm ("roriw %0, %1, %2"        \
113
                       : "=r"(ret)                    \
114
                       : "r"(x), "i"(32 - (n))); ret; })
115
#endif
116
#if __riscv_xlen == 32
117
#undef ROTATE
118
#define ROTATE(x, n) ({ MD32_REG_T ret;            \
119
                       asm ("rori %0, %1, %2"         \
120
                       : "=r"(ret)                    \
121
                       : "r"(x), "i"(32 - (n))); ret; })
122
#endif
123
#endif
124
#endif
125
#endif
126
127
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
128
129
220M
#define HOST_c2l(c, l) (l = (((unsigned long)(*((c)++))) << 24), \
130
220M
    l |= (((unsigned long)(*((c)++))) << 16),                    \
131
220M
    l |= (((unsigned long)(*((c)++))) << 8),                     \
132
220M
    l |= (((unsigned long)(*((c)++)))))
133
54.0k
#define HOST_l2c(l, c) (*((c)++) = (unsigned char)(((l) >> 24) & 0xff), \
134
54.0k
    *((c)++) = (unsigned char)(((l) >> 16) & 0xff),                     \
135
54.0k
    *((c)++) = (unsigned char)(((l) >> 8) & 0xff),                      \
136
54.0k
    *((c)++) = (unsigned char)(((l)) & 0xff),                           \
137
54.0k
    l)
138
139
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
140
141
71.1M
#define HOST_c2l(c, l) (l = (((unsigned long)(*((c)++)))), \
142
71.1M
    l |= (((unsigned long)(*((c)++))) << 8),               \
143
71.1M
    l |= (((unsigned long)(*((c)++))) << 16),              \
144
71.1M
    l |= (((unsigned long)(*((c)++))) << 24))
145
1.08k
#define HOST_l2c(l, c) (*((c)++) = (unsigned char)(((l)) & 0xff), \
146
1.08k
    *((c)++) = (unsigned char)(((l) >> 8) & 0xff),                \
147
1.08k
    *((c)++) = (unsigned char)(((l) >> 16) & 0xff),               \
148
1.08k
    *((c)++) = (unsigned char)(((l) >> 24) & 0xff),               \
149
1.08k
    l)
150
151
#endif
152
153
/*
154
 * Time for some action :-)
155
 */
156
157
#ifdef HASH_UPDATE_THUNK
158
int HASH_UPDATE(void *cp, const unsigned char *data_, size_t len);
159
int HASH_UPDATE(void *cp, const unsigned char *data_, size_t len)
160
#else
161
int HASH_UPDATE(HASH_CTX *c, const void *data_, size_t len)
162
#endif
163
11.2k
{
164
#ifdef HASH_UPDATE_THUNK
165
10.6k
    HASH_CTX *c = (HASH_CTX *)cp;
166
#endif
167
11.2k
    const unsigned char *data = data_;
168
11.2k
    unsigned char *p;
169
11.2k
    HASH_LONG l;
170
11.2k
    size_t n;
171
172
11.2k
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
11.2k
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
11.2k
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
11.2k
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
11.2k
    c->Nl = l;
181
182
11.2k
    n = c->num;
183
11.2k
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
11.2k
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
11.2k
    if (n > 0) {
215
        /* Process chunks */
216
11.2k
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
11.2k
        n *= HASH_CBLOCK;
218
11.2k
        data += n;
219
11.2k
        len -= n;
220
11.2k
    }
221
    /* Buffer any left over data */
222
11.2k
    if (len != 0) {
223
405
        p = (unsigned char *)c->data;
224
405
        c->num = (unsigned int)len;
225
405
        memcpy(p, data, len);
226
405
    }
227
11.2k
    return 1;
228
11.2k
}
MD4_Update
Line
Count
Source
163
104
{
164
#ifdef HASH_UPDATE_THUNK
165
    HASH_CTX *c = (HASH_CTX *)cp;
166
#endif
167
104
    const unsigned char *data = data_;
168
104
    unsigned char *p;
169
104
    HASH_LONG l;
170
104
    size_t n;
171
172
104
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
104
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
104
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
104
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
104
    c->Nl = l;
181
182
104
    n = c->num;
183
104
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
104
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
104
    if (n > 0) {
215
        /* Process chunks */
216
104
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
104
        n *= HASH_CBLOCK;
218
104
        data += n;
219
104
        len -= n;
220
104
    }
221
    /* Buffer any left over data */
222
104
    if (len != 0) {
223
41
        p = (unsigned char *)c->data;
224
41
        c->num = (unsigned int)len;
225
41
        memcpy(p, data, len);
226
41
    }
227
104
    return 1;
228
104
}
MD5_Update
Line
Count
Source
163
168
{
164
#ifdef HASH_UPDATE_THUNK
165
    HASH_CTX *c = (HASH_CTX *)cp;
166
#endif
167
168
    const unsigned char *data = data_;
168
168
    unsigned char *p;
169
168
    HASH_LONG l;
170
168
    size_t n;
171
172
168
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
168
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
168
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
168
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
168
    c->Nl = l;
181
182
168
    n = c->num;
183
168
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
168
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
168
    if (n > 0) {
215
        /* Process chunks */
216
168
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
168
        n *= HASH_CBLOCK;
218
168
        data += n;
219
168
        len -= n;
220
168
    }
221
    /* Buffer any left over data */
222
168
    if (len != 0) {
223
56
        p = (unsigned char *)c->data;
224
56
        c->num = (unsigned int)len;
225
56
        memcpy(p, data, len);
226
56
    }
227
168
    return 1;
228
168
}
RIPEMD160_Update
Line
Count
Source
163
76
{
164
#ifdef HASH_UPDATE_THUNK
165
    HASH_CTX *c = (HASH_CTX *)cp;
166
#endif
167
76
    const unsigned char *data = data_;
168
76
    unsigned char *p;
169
76
    HASH_LONG l;
170
76
    size_t n;
171
172
76
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
76
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
76
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
76
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
76
    c->Nl = l;
181
182
76
    n = c->num;
183
76
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
76
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
76
    if (n > 0) {
215
        /* Process chunks */
216
76
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
76
        n *= HASH_CBLOCK;
218
76
        data += n;
219
76
        len -= n;
220
76
    }
221
    /* Buffer any left over data */
222
76
    if (len != 0) {
223
32
        p = (unsigned char *)c->data;
224
32
        c->num = (unsigned int)len;
225
32
        memcpy(p, data, len);
226
32
    }
227
76
    return 1;
228
76
}
SHA1_Update_thunk
Line
Count
Source
163
210
{
164
210
#ifdef HASH_UPDATE_THUNK
165
210
    HASH_CTX *c = (HASH_CTX *)cp;
166
210
#endif
167
210
    const unsigned char *data = data_;
168
210
    unsigned char *p;
169
210
    HASH_LONG l;
170
210
    size_t n;
171
172
210
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
210
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
210
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
210
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
210
    c->Nl = l;
181
182
210
    n = c->num;
183
210
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
210
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
210
    if (n > 0) {
215
        /* Process chunks */
216
210
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
210
        n *= HASH_CBLOCK;
218
210
        data += n;
219
210
        len -= n;
220
210
    }
221
    /* Buffer any left over data */
222
210
    if (len != 0) {
223
75
        p = (unsigned char *)c->data;
224
75
        c->num = (unsigned int)len;
225
75
        memcpy(p, data, len);
226
75
    }
227
210
    return 1;
228
210
}
SHA256_Update_thunk
Line
Count
Source
163
10.4k
{
164
10.4k
#ifdef HASH_UPDATE_THUNK
165
10.4k
    HASH_CTX *c = (HASH_CTX *)cp;
166
10.4k
#endif
167
10.4k
    const unsigned char *data = data_;
168
10.4k
    unsigned char *p;
169
10.4k
    HASH_LONG l;
170
10.4k
    size_t n;
171
172
10.4k
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
10.4k
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
10.4k
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
10.4k
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
10.4k
    c->Nl = l;
181
182
10.4k
    n = c->num;
183
10.4k
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
10.4k
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
10.4k
    if (n > 0) {
215
        /* Process chunks */
216
10.4k
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
10.4k
        n *= HASH_CBLOCK;
218
10.4k
        data += n;
219
10.4k
        len -= n;
220
10.4k
    }
221
    /* Buffer any left over data */
222
10.4k
    if (len != 0) {
223
124
        p = (unsigned char *)c->data;
224
124
        c->num = (unsigned int)len;
225
124
        memcpy(p, data, len);
226
124
    }
227
10.4k
    return 1;
228
10.4k
}
ossl_sm3_update
Line
Count
Source
163
182
{
164
#ifdef HASH_UPDATE_THUNK
165
    HASH_CTX *c = (HASH_CTX *)cp;
166
#endif
167
182
    const unsigned char *data = data_;
168
182
    unsigned char *p;
169
182
    HASH_LONG l;
170
182
    size_t n;
171
172
182
    if (ossl_unlikely(len == 0))
173
0
        return 1;
174
175
182
    l = (c->Nl + (((HASH_LONG)len) << 3)) & 0xffffffffUL;
176
182
    if (ossl_unlikely(l < c->Nl)) /* overflow */
177
0
        c->Nh++;
178
182
    c->Nh += (HASH_LONG)(len >> 29); /* might cause compiler warning on
179
                                      * 16-bit */
180
182
    c->Nl = l;
181
182
182
    n = c->num;
183
182
    if (ossl_likely(n != 0)) {
184
        /* Gets here if we already have buffered input data */
185
0
        p = (unsigned char *)c->data;
186
187
0
        if (len >= HASH_CBLOCK || len + n >= HASH_CBLOCK) {
188
            /*
189
             * If there is enough input to fill the buffer then fill the
190
             * buffer and process a single chunk.
191
             */
192
0
            memcpy(p + n, data, HASH_CBLOCK - n);
193
0
            HASH_BLOCK_DATA_ORDER(c, p, 1);
194
0
            n = HASH_CBLOCK - n;
195
0
            data += n;
196
0
            len -= n;
197
0
            c->num = 0;
198
            /*
199
             * We use memset rather than OPENSSL_cleanse() here deliberately.
200
             * Using OPENSSL_cleanse() here could be a performance issue. It
201
             * will get properly cleansed on finalisation so this isn't a
202
             * security problem.
203
             */
204
0
            memset(p, 0, HASH_CBLOCK); /* keep it zeroed */
205
0
        } else {
206
            /* Otherwise just keep filling the buffer */
207
0
            memcpy(p + n, data, len);
208
0
            c->num += (unsigned int)len;
209
0
            return 1;
210
0
        }
211
0
    }
212
213
182
    n = len / HASH_CBLOCK; /* Get number of input chunks (e.g. multiple of 512 bits for SHA256) */
214
182
    if (n > 0) {
215
        /* Process chunks */
216
182
        HASH_BLOCK_DATA_ORDER(c, data, n);
217
182
        n *= HASH_CBLOCK;
218
182
        data += n;
219
182
        len -= n;
220
182
    }
221
    /* Buffer any left over data */
222
182
    if (len != 0) {
223
77
        p = (unsigned char *)c->data;
224
77
        c->num = (unsigned int)len;
225
77
        memcpy(p, data, len);
226
77
    }
227
182
    return 1;
228
182
}
229
230
void HASH_TRANSFORM(HASH_CTX *c, const unsigned char *data)
231
0
{
232
0
    HASH_BLOCK_DATA_ORDER(c, data, 1); /* Process a single chunk */
233
0
}
Unexecuted instantiation: MD4_Transform
Unexecuted instantiation: MD5_Transform
Unexecuted instantiation: RIPEMD160_Transform
Unexecuted instantiation: SHA1_Transform
Unexecuted instantiation: SHA256_Transform
Unexecuted instantiation: ossl_sm3_transform
234
235
int HASH_FINAL(unsigned char *md, HASH_CTX *c)
236
5.61k
{
237
5.61k
    unsigned char *p = (unsigned char *)c->data;
238
5.61k
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
5.61k
    p[n] = 0x80; /* there is always room for one */
245
5.61k
    n++;
246
247
5.61k
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
164
        memset(p + n, 0, HASH_CBLOCK - n);
253
164
        n = 0;
254
164
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
164
    }
256
    /* Add zero padding - but leave enough room for L */
257
5.61k
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
5.61k
    p += HASH_CBLOCK - 8;
261
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
5.44k
    (void)HOST_l2c(c->Nh, p);
263
5.44k
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
174
    (void)HOST_l2c(c->Nl, p);
266
174
    (void)HOST_l2c(c->Nh, p);
267
#endif
268
5.61k
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
5.61k
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
5.61k
    c->num = 0;
272
5.61k
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
5.61k
    HASH_MAKE_STRING(c, md);
278
5.24k
#endif
279
280
5.24k
    return 1;
281
5.61k
}
MD4_Final
Line
Count
Source
236
52
{
237
52
    unsigned char *p = (unsigned char *)c->data;
238
52
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
52
    p[n] = 0x80; /* there is always room for one */
245
52
    n++;
246
247
52
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
18
        memset(p + n, 0, HASH_CBLOCK - n);
253
18
        n = 0;
254
18
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
18
    }
256
    /* Add zero padding - but leave enough room for L */
257
52
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
52
    p += HASH_CBLOCK - 8;
261
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
    (void)HOST_l2c(c->Nh, p);
263
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
52
    (void)HOST_l2c(c->Nl, p);
266
52
    (void)HOST_l2c(c->Nh, p);
267
52
#endif
268
52
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
52
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
52
    c->num = 0;
272
52
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
52
    HASH_MAKE_STRING(c, md);
278
52
#endif
279
280
52
    return 1;
281
52
}
MD5_Final
Line
Count
Source
236
84
{
237
84
    unsigned char *p = (unsigned char *)c->data;
238
84
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
84
    p[n] = 0x80; /* there is always room for one */
245
84
    n++;
246
247
84
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
21
        memset(p + n, 0, HASH_CBLOCK - n);
253
21
        n = 0;
254
21
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
21
    }
256
    /* Add zero padding - but leave enough room for L */
257
84
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
84
    p += HASH_CBLOCK - 8;
261
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
    (void)HOST_l2c(c->Nh, p);
263
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
84
    (void)HOST_l2c(c->Nl, p);
266
84
    (void)HOST_l2c(c->Nh, p);
267
84
#endif
268
84
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
84
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
84
    c->num = 0;
272
84
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
84
    HASH_MAKE_STRING(c, md);
278
84
#endif
279
280
84
    return 1;
281
84
}
RIPEMD160_Final
Line
Count
Source
236
38
{
237
38
    unsigned char *p = (unsigned char *)c->data;
238
38
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
38
    p[n] = 0x80; /* there is always room for one */
245
38
    n++;
246
247
38
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
14
        memset(p + n, 0, HASH_CBLOCK - n);
253
14
        n = 0;
254
14
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
14
    }
256
    /* Add zero padding - but leave enough room for L */
257
38
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
38
    p += HASH_CBLOCK - 8;
261
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
    (void)HOST_l2c(c->Nh, p);
263
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
38
    (void)HOST_l2c(c->Nl, p);
266
38
    (void)HOST_l2c(c->Nh, p);
267
38
#endif
268
38
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
38
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
38
    c->num = 0;
272
38
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
38
    HASH_MAKE_STRING(c, md);
278
38
#endif
279
280
38
    return 1;
281
38
}
SHA1_Final
Line
Count
Source
236
105
{
237
105
    unsigned char *p = (unsigned char *)c->data;
238
105
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
105
    p[n] = 0x80; /* there is always room for one */
245
105
    n++;
246
247
105
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
29
        memset(p + n, 0, HASH_CBLOCK - n);
253
29
        n = 0;
254
29
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
29
    }
256
    /* Add zero padding - but leave enough room for L */
257
105
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
105
    p += HASH_CBLOCK - 8;
261
105
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
105
    (void)HOST_l2c(c->Nh, p);
263
105
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
    (void)HOST_l2c(c->Nl, p);
266
    (void)HOST_l2c(c->Nh, p);
267
#endif
268
105
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
105
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
105
    c->num = 0;
272
105
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
105
    HASH_MAKE_STRING(c, md);
278
105
#endif
279
280
105
    return 1;
281
105
}
SHA256_Final
Line
Count
Source
236
5.24k
{
237
5.24k
    unsigned char *p = (unsigned char *)c->data;
238
5.24k
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
5.24k
    p[n] = 0x80; /* there is always room for one */
245
5.24k
    n++;
246
247
5.24k
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
33
        memset(p + n, 0, HASH_CBLOCK - n);
253
33
        n = 0;
254
33
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
33
    }
256
    /* Add zero padding - but leave enough room for L */
257
5.24k
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
5.24k
    p += HASH_CBLOCK - 8;
261
5.24k
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
5.24k
    (void)HOST_l2c(c->Nh, p);
263
5.24k
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
    (void)HOST_l2c(c->Nl, p);
266
    (void)HOST_l2c(c->Nh, p);
267
#endif
268
5.24k
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
5.24k
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
5.24k
    c->num = 0;
272
5.24k
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
5.24k
    HASH_MAKE_STRING(c, md);
278
5.24k
#endif
279
280
5.24k
    return 1;
281
5.24k
}
ossl_sm3_final
Line
Count
Source
236
91
{
237
91
    unsigned char *p = (unsigned char *)c->data;
238
91
    size_t n = c->num;
239
240
    /*
241
     * Pad the input by adding a 1 bit + K zero bits + input length (L)
242
     * as a 64 bit value. K must align the data to a chunk boundary.
243
     */
244
91
    p[n] = 0x80; /* there is always room for one */
245
91
    n++;
246
247
91
    if (n > (HASH_CBLOCK - 8)) {
248
        /*
249
         * If there is not enough room in the buffer to add L, then fill the
250
         * current buffer with zeros, and process the chunk
251
         */
252
49
        memset(p + n, 0, HASH_CBLOCK - n);
253
49
        n = 0;
254
49
        HASH_BLOCK_DATA_ORDER(c, p, 1);
255
49
    }
256
    /* Add zero padding - but leave enough room for L */
257
91
    memset(p + n, 0, HASH_CBLOCK - 8 - n);
258
259
    /* Add the 64 bit L value to the end of the buffer */
260
91
    p += HASH_CBLOCK - 8;
261
91
#if defined(DATA_ORDER_IS_BIG_ENDIAN)
262
91
    (void)HOST_l2c(c->Nh, p);
263
91
    (void)HOST_l2c(c->Nl, p);
264
#elif defined(DATA_ORDER_IS_LITTLE_ENDIAN)
265
    (void)HOST_l2c(c->Nl, p);
266
    (void)HOST_l2c(c->Nh, p);
267
#endif
268
91
    p -= HASH_CBLOCK;
269
    /* Process the final padded chunk */
270
91
    HASH_BLOCK_DATA_ORDER(c, p, 1);
271
91
    c->num = 0;
272
91
    OPENSSL_cleanse(p, HASH_CBLOCK);
273
274
#ifndef HASH_MAKE_STRING
275
#error "HASH_MAKE_STRING must be defined!"
276
#else
277
91
    HASH_MAKE_STRING(c, md);
278
91
#endif
279
280
91
    return 1;
281
91
}
282
283
#ifndef MD32_REG_T
284
#if defined(__alpha) || defined(__sparcv9) || defined(__mips)
285
#define MD32_REG_T long
286
/*
287
 * This comment was originally written for MD5, which is why it
288
 * discusses A-D. But it basically applies to all 32-bit digests,
289
 * which is why it was moved to common header file.
290
 *
291
 * In case you wonder why A-D are declared as long and not
292
 * as MD5_LONG. Doing so results in slight performance
293
 * boost on LP64 architectures. The catch is we don't
294
 * really care if 32 MSBs of a 64-bit register get polluted
295
 * with eventual overflows as we *save* only 32 LSBs in
296
 * *either* case. Now declaring 'em long excuses the compiler
297
 * from keeping 32 MSBs zeroed resulting in 13% performance
298
 * improvement under SPARC Solaris7/64 and 5% under AlphaLinux.
299
 * Well, to be honest it should say that this *prevents*
300
 * performance degradation.
301
 */
302
#else
303
/*
304
 * Above is not absolute and there are LP64 compilers that
305
 * generate better code if MD32_REG_T is defined int. The above
306
 * pre-processor condition reflects the circumstances under which
307
 * the conclusion was made and is subject to further extension.
308
 */
309
#define MD32_REG_T int
310
#endif
311
#endif
312
313
#endif