/src/openssl/crypto/cmac/cmac.c
Line  | Count  | Source (jump to first uncovered line)  | 
1  |  | /*  | 
2  |  |  * Copyright 2010-2024 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  |  |  * CMAC low level APIs are deprecated for public use, but still ok for internal  | 
12  |  |  * use.  | 
13  |  |  */  | 
14  |  | #include "internal/deprecated.h"  | 
15  |  |  | 
16  |  | #include <stdio.h>  | 
17  |  | #include <stdlib.h>  | 
18  |  | #include <string.h>  | 
19  |  | #include "internal/cryptlib.h"  | 
20  |  | #include <openssl/cmac.h>  | 
21  |  | #include <openssl/err.h>  | 
22  |  | #include "crypto/cmac.h"  | 
23  |  |  | 
24  | 0  | #define LOCAL_BUF_SIZE 2048  | 
25  |  | struct CMAC_CTX_st { | 
26  |  |     /* Cipher context to use */  | 
27  |  |     EVP_CIPHER_CTX *cctx;  | 
28  |  |     /* Keys k1 and k2 */  | 
29  |  |     unsigned char k1[EVP_MAX_BLOCK_LENGTH];  | 
30  |  |     unsigned char k2[EVP_MAX_BLOCK_LENGTH];  | 
31  |  |     /* Temporary block */  | 
32  |  |     unsigned char tbl[EVP_MAX_BLOCK_LENGTH];  | 
33  |  |     /* Last (possibly partial) block */  | 
34  |  |     unsigned char last_block[EVP_MAX_BLOCK_LENGTH];  | 
35  |  |     /* Number of bytes in last block: -1 means context not initialised */  | 
36  |  |     int nlast_block;  | 
37  |  | };  | 
38  |  |  | 
39  |  | /* Make temporary keys K1 and K2 */  | 
40  |  |  | 
41  |  | static void make_kn(unsigned char *k1, const unsigned char *l, int bl)  | 
42  | 0  | { | 
43  | 0  |     int i;  | 
44  | 0  |     unsigned char c = l[0], carry = c >> 7, cnext;  | 
45  |  |  | 
46  |  |     /* Shift block to left, including carry */  | 
47  | 0  |     for (i = 0; i < bl - 1; i++, c = cnext)  | 
48  | 0  |         k1[i] = (c << 1) | ((cnext = l[i + 1]) >> 7);  | 
49  |  |  | 
50  |  |     /* If MSB set fixup with R */  | 
51  | 0  |     k1[i] = (c << 1) ^ ((0 - carry) & (bl == 16 ? 0x87 : 0x1b));  | 
52  | 0  | }  | 
53  |  |  | 
54  |  | CMAC_CTX *CMAC_CTX_new(void)  | 
55  | 0  | { | 
56  | 0  |     CMAC_CTX *ctx;  | 
57  |  | 
  | 
58  | 0  |     if ((ctx = OPENSSL_malloc(sizeof(*ctx))) == NULL)  | 
59  | 0  |         return NULL;  | 
60  | 0  |     ctx->cctx = EVP_CIPHER_CTX_new();  | 
61  | 0  |     if (ctx->cctx == NULL) { | 
62  | 0  |         OPENSSL_free(ctx);  | 
63  | 0  |         return NULL;  | 
64  | 0  |     }  | 
65  | 0  |     ctx->nlast_block = -1;  | 
66  | 0  |     return ctx;  | 
67  | 0  | }  | 
68  |  |  | 
69  |  | void CMAC_CTX_cleanup(CMAC_CTX *ctx)  | 
70  | 0  | { | 
71  | 0  |     EVP_CIPHER_CTX_reset(ctx->cctx);  | 
72  | 0  |     OPENSSL_cleanse(ctx->tbl, EVP_MAX_BLOCK_LENGTH);  | 
73  | 0  |     OPENSSL_cleanse(ctx->k1, EVP_MAX_BLOCK_LENGTH);  | 
74  | 0  |     OPENSSL_cleanse(ctx->k2, EVP_MAX_BLOCK_LENGTH);  | 
75  | 0  |     OPENSSL_cleanse(ctx->last_block, EVP_MAX_BLOCK_LENGTH);  | 
76  | 0  |     ctx->nlast_block = -1;  | 
77  | 0  | }  | 
78  |  |  | 
79  |  | EVP_CIPHER_CTX *CMAC_CTX_get0_cipher_ctx(CMAC_CTX *ctx)  | 
80  | 0  | { | 
81  | 0  |     return ctx->cctx;  | 
82  | 0  | }  | 
83  |  |  | 
84  |  | void CMAC_CTX_free(CMAC_CTX *ctx)  | 
85  | 0  | { | 
86  | 0  |     if (!ctx)  | 
87  | 0  |         return;  | 
88  | 0  |     CMAC_CTX_cleanup(ctx);  | 
89  | 0  |     EVP_CIPHER_CTX_free(ctx->cctx);  | 
90  | 0  |     OPENSSL_free(ctx);  | 
91  | 0  | }  | 
92  |  |  | 
93  |  | int CMAC_CTX_copy(CMAC_CTX *out, const CMAC_CTX *in)  | 
94  | 0  | { | 
95  | 0  |     int bl;  | 
96  |  | 
  | 
97  | 0  |     if (in->nlast_block == -1)  | 
98  | 0  |         return 0;  | 
99  | 0  |     if ((bl = EVP_CIPHER_CTX_get_block_size(in->cctx)) == 0)  | 
100  | 0  |         return 0;  | 
101  | 0  |     if (!EVP_CIPHER_CTX_copy(out->cctx, in->cctx))  | 
102  | 0  |         return 0;  | 
103  | 0  |     memcpy(out->k1, in->k1, bl);  | 
104  | 0  |     memcpy(out->k2, in->k2, bl);  | 
105  | 0  |     memcpy(out->tbl, in->tbl, bl);  | 
106  | 0  |     memcpy(out->last_block, in->last_block, bl);  | 
107  | 0  |     out->nlast_block = in->nlast_block;  | 
108  | 0  |     return 1;  | 
109  | 0  | }  | 
110  |  |  | 
111  |  | int ossl_cmac_init(CMAC_CTX *ctx, const void *key, size_t keylen,  | 
112  |  |                    const EVP_CIPHER *cipher, ENGINE *impl,  | 
113  |  |                    const OSSL_PARAM param[])  | 
114  | 0  | { | 
115  | 0  |     static const unsigned char zero_iv[EVP_MAX_BLOCK_LENGTH] = { 0 }; | 
116  | 0  |     int block_len;  | 
117  |  |  | 
118  |  |     /* All zeros means restart */  | 
119  | 0  |     if (!key && !cipher && !impl && keylen == 0) { | 
120  |  |         /* Not initialised */  | 
121  | 0  |         if (ctx->nlast_block == -1)  | 
122  | 0  |             return 0;  | 
123  | 0  |         if (!EVP_EncryptInit_ex2(ctx->cctx, NULL, NULL, zero_iv, param))  | 
124  | 0  |             return 0;  | 
125  | 0  |         block_len = EVP_CIPHER_CTX_get_block_size(ctx->cctx);  | 
126  | 0  |         if (block_len == 0)  | 
127  | 0  |             return 0;  | 
128  | 0  |         memset(ctx->tbl, 0, block_len);  | 
129  | 0  |         ctx->nlast_block = 0;  | 
130  | 0  |         return 1;  | 
131  | 0  |     }  | 
132  |  |     /* Initialise context */  | 
133  | 0  |     if (cipher != NULL) { | 
134  |  |         /* Ensure we can't use this ctx until we also have a key */  | 
135  | 0  |         ctx->nlast_block = -1;  | 
136  | 0  |         if (impl != NULL) { | 
137  | 0  |             if (!EVP_EncryptInit_ex(ctx->cctx, cipher, impl, NULL, NULL))  | 
138  | 0  |                 return 0;  | 
139  | 0  |         } else { | 
140  | 0  |             if (!EVP_EncryptInit_ex2(ctx->cctx, cipher, NULL, NULL, param))  | 
141  | 0  |                 return 0;  | 
142  | 0  |         }  | 
143  | 0  |     }  | 
144  |  |     /* Non-NULL key means initialisation complete */  | 
145  | 0  |     if (key != NULL) { | 
146  | 0  |         int bl;  | 
147  |  |  | 
148  |  |         /* If anything fails then ensure we can't use this ctx */  | 
149  | 0  |         ctx->nlast_block = -1;  | 
150  | 0  |         if (EVP_CIPHER_CTX_get0_cipher(ctx->cctx) == NULL)  | 
151  | 0  |             return 0;  | 
152  | 0  |         if (EVP_CIPHER_CTX_set_key_length(ctx->cctx, keylen) <= 0)  | 
153  | 0  |             return 0;  | 
154  | 0  |         if (!EVP_EncryptInit_ex2(ctx->cctx, NULL, key, zero_iv, param))  | 
155  | 0  |             return 0;  | 
156  | 0  |         if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) < 0)  | 
157  | 0  |             return 0;  | 
158  | 0  |         if (EVP_Cipher(ctx->cctx, ctx->tbl, zero_iv, bl) <= 0)  | 
159  | 0  |             return 0;  | 
160  | 0  |         make_kn(ctx->k1, ctx->tbl, bl);  | 
161  | 0  |         make_kn(ctx->k2, ctx->k1, bl);  | 
162  | 0  |         OPENSSL_cleanse(ctx->tbl, bl);  | 
163  |  |         /* Reset context again ready for first data block */  | 
164  | 0  |         if (!EVP_EncryptInit_ex2(ctx->cctx, NULL, NULL, zero_iv, param))  | 
165  | 0  |             return 0;  | 
166  |  |         /* Zero tbl so resume works */  | 
167  | 0  |         memset(ctx->tbl, 0, bl);  | 
168  | 0  |         ctx->nlast_block = 0;  | 
169  | 0  |     }  | 
170  | 0  |     return 1;  | 
171  | 0  | }  | 
172  |  |  | 
173  |  | int CMAC_Init(CMAC_CTX *ctx, const void *key, size_t keylen,  | 
174  |  |               const EVP_CIPHER *cipher, ENGINE *impl)  | 
175  | 0  | { | 
176  | 0  |     return ossl_cmac_init(ctx, key, keylen, cipher, impl, NULL);  | 
177  | 0  | }  | 
178  |  |  | 
179  |  | int CMAC_Update(CMAC_CTX *ctx, const void *in, size_t dlen)  | 
180  | 0  | { | 
181  | 0  |     const unsigned char *data = in;  | 
182  | 0  |     int bl;  | 
183  | 0  |     size_t max_burst_blocks, cipher_blocks;  | 
184  | 0  |     unsigned char buf[LOCAL_BUF_SIZE];  | 
185  |  | 
  | 
186  | 0  |     if (ctx->nlast_block == -1)  | 
187  | 0  |         return 0;  | 
188  | 0  |     if (dlen == 0)  | 
189  | 0  |         return 1;  | 
190  | 0  |     if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) == 0)  | 
191  | 0  |         return 0;  | 
192  |  |     /* Copy into partial block if we need to */  | 
193  | 0  |     if (ctx->nlast_block > 0) { | 
194  | 0  |         size_t nleft;  | 
195  |  | 
  | 
196  | 0  |         nleft = bl - ctx->nlast_block;  | 
197  | 0  |         if (dlen < nleft)  | 
198  | 0  |             nleft = dlen;  | 
199  | 0  |         memcpy(ctx->last_block + ctx->nlast_block, data, nleft);  | 
200  | 0  |         dlen -= nleft;  | 
201  | 0  |         ctx->nlast_block += nleft;  | 
202  |  |         /* If no more to process return */  | 
203  | 0  |         if (dlen == 0)  | 
204  | 0  |             return 1;  | 
205  | 0  |         data += nleft;  | 
206  |  |         /* Else not final block so encrypt it */  | 
207  | 0  |         if (EVP_Cipher(ctx->cctx, ctx->tbl, ctx->last_block, bl) <= 0)  | 
208  | 0  |             return 0;  | 
209  | 0  |     }  | 
210  |  |     /* Encrypt all but one of the complete blocks left */  | 
211  |  |  | 
212  | 0  |     max_burst_blocks = LOCAL_BUF_SIZE / bl;  | 
213  | 0  |     cipher_blocks = (dlen - 1) / bl;  | 
214  | 0  |     if (max_burst_blocks == 0) { | 
215  |  |         /*  | 
216  |  |          * When block length is greater than local buffer size,  | 
217  |  |          * use ctx->tbl as cipher output.  | 
218  |  |          */  | 
219  | 0  |         while (dlen > (size_t)bl) { | 
220  | 0  |             if (EVP_Cipher(ctx->cctx, ctx->tbl, data, bl) <= 0)  | 
221  | 0  |                 return 0;  | 
222  | 0  |             dlen -= bl;  | 
223  | 0  |             data += bl;  | 
224  | 0  |         }  | 
225  | 0  |     } else { | 
226  | 0  |         while (cipher_blocks > max_burst_blocks) { | 
227  | 0  |             if (EVP_Cipher(ctx->cctx, buf, data, max_burst_blocks * bl) <= 0)  | 
228  | 0  |                 return 0;  | 
229  | 0  |             dlen -= max_burst_blocks * bl;  | 
230  | 0  |             data += max_burst_blocks * bl;  | 
231  | 0  |             cipher_blocks -= max_burst_blocks;  | 
232  | 0  |         }  | 
233  | 0  |         if (cipher_blocks > 0) { | 
234  | 0  |             if (EVP_Cipher(ctx->cctx, buf, data, cipher_blocks * bl) <= 0)  | 
235  | 0  |                 return 0;  | 
236  | 0  |             dlen -= cipher_blocks * bl;  | 
237  | 0  |             data += cipher_blocks * bl;  | 
238  | 0  |             memcpy(ctx->tbl, &buf[(cipher_blocks - 1) * bl], bl);  | 
239  | 0  |         }  | 
240  | 0  |     }  | 
241  |  |     /* Copy any data left to last block buffer */  | 
242  | 0  |     memcpy(ctx->last_block, data, dlen);  | 
243  | 0  |     ctx->nlast_block = dlen;  | 
244  | 0  |     return 1;  | 
245  |  | 
  | 
246  | 0  | }  | 
247  |  |  | 
248  |  | int CMAC_Final(CMAC_CTX *ctx, unsigned char *out, size_t *poutlen)  | 
249  | 0  | { | 
250  | 0  |     int i, bl, lb;  | 
251  |  | 
  | 
252  | 0  |     if (ctx->nlast_block == -1)  | 
253  | 0  |         return 0;  | 
254  | 0  |     if ((bl = EVP_CIPHER_CTX_get_block_size(ctx->cctx)) == 0)  | 
255  | 0  |         return 0;  | 
256  | 0  |     if (poutlen != NULL)  | 
257  | 0  |         *poutlen = (size_t)bl;  | 
258  | 0  |     if (!out)  | 
259  | 0  |         return 1;  | 
260  | 0  |     lb = ctx->nlast_block;  | 
261  |  |     /* Is last block complete? */  | 
262  | 0  |     if (lb == bl) { | 
263  | 0  |         for (i = 0; i < bl; i++)  | 
264  | 0  |             out[i] = ctx->last_block[i] ^ ctx->k1[i];  | 
265  | 0  |     } else { | 
266  | 0  |         ctx->last_block[lb] = 0x80;  | 
267  | 0  |         if (bl - lb > 1)  | 
268  | 0  |             memset(ctx->last_block + lb + 1, 0, bl - lb - 1);  | 
269  | 0  |         for (i = 0; i < bl; i++)  | 
270  | 0  |             out[i] = ctx->last_block[i] ^ ctx->k2[i];  | 
271  | 0  |     }  | 
272  | 0  |     if (EVP_Cipher(ctx->cctx, out, out, bl) <= 0) { | 
273  | 0  |         OPENSSL_cleanse(out, bl);  | 
274  | 0  |         return 0;  | 
275  | 0  |     }  | 
276  | 0  |     return 1;  | 
277  | 0  | }  | 
278  |  |  | 
279  |  | int CMAC_resume(CMAC_CTX *ctx)  | 
280  | 0  | { | 
281  | 0  |     if (ctx->nlast_block == -1)  | 
282  | 0  |         return 0;  | 
283  |  |     /*  | 
284  |  |      * The buffer "tbl" contains the last fully encrypted block which is the  | 
285  |  |      * last IV (or all zeroes if no last encrypted block). The last block has  | 
286  |  |      * not been modified since CMAC_final(). So reinitialising using the last  | 
287  |  |      * decrypted block will allow CMAC to continue after calling  | 
288  |  |      * CMAC_Final().  | 
289  |  |      */  | 
290  | 0  |     return EVP_EncryptInit_ex(ctx->cctx, NULL, NULL, NULL, ctx->tbl);  | 
291  | 0  | }  |