/src/openssl/providers/implementations/kdfs/krb5kdf.c
Line  | Count  | Source  | 
1  |  | /*  | 
2  |  |  * Copyright 2018-2025 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  |  |  * DES low level APIs are deprecated for public use, but still ok for internal  | 
12  |  |  * use.  We access the DES_set_odd_parity(3) function here.  | 
13  |  |  */  | 
14  |  | #include "internal/deprecated.h"  | 
15  |  |  | 
16  |  | #include <stdlib.h>  | 
17  |  | #include <stdarg.h>  | 
18  |  | #include <string.h>  | 
19  |  |  | 
20  |  | #include <openssl/core_names.h>  | 
21  |  | #include <openssl/des.h>  | 
22  |  | #include <openssl/evp.h>  | 
23  |  | #include <openssl/kdf.h>  | 
24  |  | #include <openssl/proverr.h>  | 
25  |  |  | 
26  |  | #include "internal/cryptlib.h"  | 
27  |  | #include "crypto/evp.h"  | 
28  |  | #include "internal/numbers.h"  | 
29  |  | #include "prov/implementations.h"  | 
30  |  | #include "prov/provider_ctx.h"  | 
31  |  | #include "prov/provider_util.h"  | 
32  |  | #include "prov/providercommon.h"  | 
33  |  | #include "providers/implementations/kdfs/krb5kdf.inc"  | 
34  |  |  | 
35  |  | /* KRB5 KDF defined in RFC 3961, Section 5.1 */  | 
36  |  |  | 
37  |  | static OSSL_FUNC_kdf_newctx_fn krb5kdf_new;  | 
38  |  | static OSSL_FUNC_kdf_dupctx_fn krb5kdf_dup;  | 
39  |  | static OSSL_FUNC_kdf_freectx_fn krb5kdf_free;  | 
40  |  | static OSSL_FUNC_kdf_reset_fn krb5kdf_reset;  | 
41  |  | static OSSL_FUNC_kdf_derive_fn krb5kdf_derive;  | 
42  |  | static OSSL_FUNC_kdf_settable_ctx_params_fn krb5kdf_settable_ctx_params;  | 
43  |  | static OSSL_FUNC_kdf_set_ctx_params_fn krb5kdf_set_ctx_params;  | 
44  |  | static OSSL_FUNC_kdf_gettable_ctx_params_fn krb5kdf_gettable_ctx_params;  | 
45  |  | static OSSL_FUNC_kdf_get_ctx_params_fn krb5kdf_get_ctx_params;  | 
46  |  |  | 
47  |  | static int KRB5KDF(const EVP_CIPHER *cipher, ENGINE *engine,  | 
48  |  |                    const unsigned char *key, size_t key_len,  | 
49  |  |                    const unsigned char *constant, size_t constant_len,  | 
50  |  |                    unsigned char *okey, size_t okey_len);  | 
51  |  |  | 
52  |  | typedef struct { | 
53  |  |     void *provctx;  | 
54  |  |     PROV_CIPHER cipher;  | 
55  |  |     unsigned char *key;  | 
56  |  |     size_t key_len;  | 
57  |  |     unsigned char *constant;  | 
58  |  |     size_t constant_len;  | 
59  |  | } KRB5KDF_CTX;  | 
60  |  |  | 
61  |  | static void *krb5kdf_new(void *provctx)  | 
62  | 0  | { | 
63  | 0  |     KRB5KDF_CTX *ctx;  | 
64  |  | 
  | 
65  | 0  |     if (!ossl_prov_is_running())  | 
66  | 0  |         return NULL;  | 
67  |  |  | 
68  | 0  |     if ((ctx = OPENSSL_zalloc(sizeof(*ctx))) == NULL)  | 
69  | 0  |         return NULL;  | 
70  | 0  |     ctx->provctx = provctx;  | 
71  | 0  |     return ctx;  | 
72  | 0  | }  | 
73  |  |  | 
74  |  | static void krb5kdf_free(void *vctx)  | 
75  | 0  | { | 
76  | 0  |     KRB5KDF_CTX *ctx = (KRB5KDF_CTX *)vctx;  | 
77  |  | 
  | 
78  | 0  |     if (ctx != NULL) { | 
79  | 0  |         krb5kdf_reset(ctx);  | 
80  | 0  |         OPENSSL_free(ctx);  | 
81  | 0  |     }  | 
82  | 0  | }  | 
83  |  |  | 
84  |  | static void krb5kdf_reset(void *vctx)  | 
85  | 0  | { | 
86  | 0  |     KRB5KDF_CTX *ctx = (KRB5KDF_CTX *)vctx;  | 
87  | 0  |     void *provctx = ctx->provctx;  | 
88  |  | 
  | 
89  | 0  |     ossl_prov_cipher_reset(&ctx->cipher);  | 
90  | 0  |     OPENSSL_clear_free(ctx->key, ctx->key_len);  | 
91  | 0  |     OPENSSL_clear_free(ctx->constant, ctx->constant_len);  | 
92  | 0  |     memset(ctx, 0, sizeof(*ctx));  | 
93  | 0  |     ctx->provctx = provctx;  | 
94  | 0  | }  | 
95  |  |  | 
96  |  | static int krb5kdf_set_membuf(unsigned char **dst, size_t *dst_len,  | 
97  |  |                               const OSSL_PARAM *p)  | 
98  | 0  | { | 
99  | 0  |     OPENSSL_clear_free(*dst, *dst_len);  | 
100  | 0  |     *dst = NULL;  | 
101  | 0  |     *dst_len = 0;  | 
102  | 0  |     return OSSL_PARAM_get_octet_string(p, (void **)dst, 0, dst_len);  | 
103  | 0  | }  | 
104  |  |  | 
105  |  | static void *krb5kdf_dup(void *vctx)  | 
106  | 0  | { | 
107  | 0  |     const KRB5KDF_CTX *src = (const KRB5KDF_CTX *)vctx;  | 
108  | 0  |     KRB5KDF_CTX *dest;  | 
109  |  | 
  | 
110  | 0  |     dest = krb5kdf_new(src->provctx);  | 
111  | 0  |     if (dest != NULL) { | 
112  | 0  |         if (!ossl_prov_memdup(src->key, src->key_len,  | 
113  | 0  |                               &dest->key, &dest->key_len)  | 
114  | 0  |                 || !ossl_prov_memdup(src->constant, src->constant_len,  | 
115  | 0  |                                      &dest->constant , &dest->constant_len)  | 
116  | 0  |                 || !ossl_prov_cipher_copy(&dest->cipher, &src->cipher))  | 
117  | 0  |             goto err;  | 
118  | 0  |     }  | 
119  | 0  |     return dest;  | 
120  |  |  | 
121  | 0  |  err:  | 
122  | 0  |     krb5kdf_free(dest);  | 
123  | 0  |     return NULL;  | 
124  | 0  | }  | 
125  |  |  | 
126  |  | static int krb5kdf_derive(void *vctx, unsigned char *key, size_t keylen,  | 
127  |  |                           const OSSL_PARAM params[])  | 
128  | 0  | { | 
129  | 0  |     KRB5KDF_CTX *ctx = (KRB5KDF_CTX *)vctx;  | 
130  | 0  |     const EVP_CIPHER *cipher;  | 
131  | 0  |     ENGINE *engine;  | 
132  |  | 
  | 
133  | 0  |     if (!ossl_prov_is_running() || !krb5kdf_set_ctx_params(ctx, params))  | 
134  | 0  |         return 0;  | 
135  |  |  | 
136  | 0  |     cipher = ossl_prov_cipher_cipher(&ctx->cipher);  | 
137  | 0  |     if (cipher == NULL) { | 
138  | 0  |         ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_CIPHER);  | 
139  | 0  |         return 0;  | 
140  | 0  |     }  | 
141  | 0  |     if (ctx->key == NULL) { | 
142  | 0  |         ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_KEY);  | 
143  | 0  |         return 0;  | 
144  | 0  |     }  | 
145  | 0  |     if (ctx->constant == NULL) { | 
146  | 0  |         ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_CONSTANT);  | 
147  | 0  |         return 0;  | 
148  | 0  |     }  | 
149  | 0  |     engine = ossl_prov_cipher_engine(&ctx->cipher);  | 
150  | 0  |     return KRB5KDF(cipher, engine, ctx->key, ctx->key_len,  | 
151  | 0  |                    ctx->constant, ctx->constant_len,  | 
152  | 0  |                    key, keylen);  | 
153  | 0  | }  | 
154  |  |  | 
155  |  | static int krb5kdf_set_ctx_params(void *vctx, const OSSL_PARAM params[])  | 
156  | 0  | { | 
157  | 0  |     struct krb5kdf_set_ctx_params_st p;  | 
158  | 0  |     KRB5KDF_CTX *ctx = vctx;  | 
159  | 0  |     OSSL_LIB_CTX *provctx;  | 
160  |  | 
  | 
161  | 0  |     if (ctx == NULL || !krb5kdf_set_ctx_params_decoder(params, &p))  | 
162  | 0  |         return 0;  | 
163  |  |  | 
164  | 0  |     provctx = PROV_LIBCTX_OF(ctx->provctx);  | 
165  |  | 
  | 
166  | 0  |     if (!ossl_prov_cipher_load(&ctx->cipher, p.cipher, p.propq, p.engine, provctx))  | 
167  | 0  |         return 0;  | 
168  |  |  | 
169  | 0  |     if (p.key != NULL && !krb5kdf_set_membuf(&ctx->key, &ctx->key_len, p.key))  | 
170  | 0  |         return 0;  | 
171  |  |  | 
172  | 0  |     if (p.cnst != NULL  | 
173  | 0  |             && !krb5kdf_set_membuf(&ctx->constant, &ctx->constant_len, p.cnst))  | 
174  | 0  |         return 0;  | 
175  |  |  | 
176  | 0  |     return 1;  | 
177  | 0  | }  | 
178  |  |  | 
179  |  | static const OSSL_PARAM *krb5kdf_settable_ctx_params(ossl_unused void *ctx,  | 
180  |  |                                                      ossl_unused void *provctx)  | 
181  | 0  | { | 
182  | 0  |      return krb5kdf_set_ctx_params_list;  | 
183  | 0  | }  | 
184  |  |  | 
185  |  | static int krb5kdf_get_ctx_params(void *vctx, OSSL_PARAM params[])  | 
186  | 0  | { | 
187  | 0  |     struct krb5kdf_get_ctx_params_st p;  | 
188  | 0  |     KRB5KDF_CTX *ctx = (KRB5KDF_CTX *)vctx;  | 
189  |  | 
  | 
190  | 0  |     if (ctx == NULL || !krb5kdf_get_ctx_params_decoder(params, &p))  | 
191  | 0  |         return 0;  | 
192  |  |  | 
193  | 0  |     if (p.size != NULL) { | 
194  | 0  |         const EVP_CIPHER *cipher = ossl_prov_cipher_cipher(&ctx->cipher);  | 
195  | 0  |         size_t len;  | 
196  |  | 
  | 
197  | 0  |         if (cipher != NULL)  | 
198  | 0  |             len = EVP_CIPHER_get_key_length(cipher);  | 
199  | 0  |         else  | 
200  | 0  |             len = EVP_MAX_KEY_LENGTH;  | 
201  |  | 
  | 
202  | 0  |         if (!OSSL_PARAM_set_size_t(p.size, len))  | 
203  | 0  |             return 0;  | 
204  | 0  |     }  | 
205  | 0  |     return 1;  | 
206  | 0  | }  | 
207  |  |  | 
208  |  | static const OSSL_PARAM *krb5kdf_gettable_ctx_params(ossl_unused void *ctx,  | 
209  |  |                                                      ossl_unused void *provctx)  | 
210  | 0  | { | 
211  | 0  |     return krb5kdf_get_ctx_params_list;  | 
212  | 0  | }  | 
213  |  |  | 
214  |  | const OSSL_DISPATCH ossl_kdf_krb5kdf_functions[] = { | 
215  |  |     { OSSL_FUNC_KDF_NEWCTX, (void(*)(void))krb5kdf_new }, | 
216  |  |     { OSSL_FUNC_KDF_DUPCTX, (void(*)(void))krb5kdf_dup }, | 
217  |  |     { OSSL_FUNC_KDF_FREECTX, (void(*)(void))krb5kdf_free }, | 
218  |  |     { OSSL_FUNC_KDF_RESET, (void(*)(void))krb5kdf_reset }, | 
219  |  |     { OSSL_FUNC_KDF_DERIVE, (void(*)(void))krb5kdf_derive }, | 
220  |  |     { OSSL_FUNC_KDF_SETTABLE_CTX_PARAMS, | 
221  |  |       (void(*)(void))krb5kdf_settable_ctx_params },  | 
222  |  |     { OSSL_FUNC_KDF_SET_CTX_PARAMS, | 
223  |  |       (void(*)(void))krb5kdf_set_ctx_params },  | 
224  |  |     { OSSL_FUNC_KDF_GETTABLE_CTX_PARAMS, | 
225  |  |       (void(*)(void))krb5kdf_gettable_ctx_params },  | 
226  |  |     { OSSL_FUNC_KDF_GET_CTX_PARAMS, | 
227  |  |       (void(*)(void))krb5kdf_get_ctx_params },  | 
228  |  |     OSSL_DISPATCH_END  | 
229  |  | };  | 
230  |  |  | 
231  |  | #ifndef OPENSSL_NO_DES  | 
232  |  | /*  | 
233  |  |  * DES3 is a special case, it requires a random-to-key function and its  | 
234  |  |  * input truncated to 21 bytes of the 24 produced by the cipher.  | 
235  |  |  * See RFC3961 6.3.1  | 
236  |  |  */  | 
237  |  | static int fixup_des3_key(unsigned char *key)  | 
238  | 0  | { | 
239  | 0  |     unsigned char *cblock;  | 
240  | 0  |     int i, j;  | 
241  |  | 
  | 
242  | 0  |     for (i = 2; i >= 0; i--) { | 
243  | 0  |         cblock = &key[i * 8];  | 
244  | 0  |         memmove(cblock, &key[i * 7], 7);  | 
245  | 0  |         cblock[7] = 0;  | 
246  | 0  |         for (j = 0; j < 7; j++)  | 
247  | 0  |             cblock[7] |= (cblock[j] & 1) << (j + 1);  | 
248  | 0  |         DES_set_odd_parity((DES_cblock *)cblock);  | 
249  | 0  |     }  | 
250  |  |  | 
251  |  |     /* fail if keys are such that triple des degrades to single des */  | 
252  | 0  |     if (CRYPTO_memcmp(&key[0], &key[8], 8) == 0 ||  | 
253  | 0  |         CRYPTO_memcmp(&key[8], &key[16], 8) == 0) { | 
254  | 0  |         return 0;  | 
255  | 0  |     }  | 
256  |  |  | 
257  | 0  |     return 1;  | 
258  | 0  | }  | 
259  |  | #endif  | 
260  |  |  | 
261  |  | /*  | 
262  |  |  * N-fold(K) where blocksize is N, and constant_len is K  | 
263  |  |  * Note: Here |= denotes concatenation  | 
264  |  |  *  | 
265  |  |  * L = lcm(N,K)  | 
266  |  |  * R = L/K  | 
267  |  |  *  | 
268  |  |  * for r: 1 -> R  | 
269  |  |  *   s |= constant rot 13*(r-1))  | 
270  |  |  *  | 
271  |  |  * block = 0  | 
272  |  |  * for k: 1 -> K  | 
273  |  |  *   block += s[N(k-1)..(N-1)k] (ones'-complement addition)  | 
274  |  |  *  | 
275  |  |  * Optimizing for space we compute:  | 
276  |  |  * for each l in L-1 -> 0:  | 
277  |  |  *   s[l] = (constant rot 13*(l/K))[l%k]  | 
278  |  |  *   block[l % N] += s[l] (with carry)  | 
279  |  |  * finally add carry if any  | 
280  |  |  */  | 
281  |  | static void n_fold(unsigned char *block, unsigned int blocksize,  | 
282  |  |                    const unsigned char *constant, unsigned int constant_len)  | 
283  | 0  | { | 
284  | 0  |     unsigned int tmp, gcd, remainder, lcm, carry;  | 
285  | 0  |     int b, l;  | 
286  |  | 
  | 
287  | 0  |     if (constant_len == blocksize) { | 
288  | 0  |         memcpy(block, constant, constant_len);  | 
289  | 0  |         return;  | 
290  | 0  |     }  | 
291  |  |  | 
292  |  |     /* Least Common Multiple of lengths: LCM(a,b)*/  | 
293  | 0  |     gcd = blocksize;  | 
294  | 0  |     remainder = constant_len;  | 
295  |  |     /* Calculate Great Common Divisor first GCD(a,b) */  | 
296  | 0  |     while (remainder != 0) { | 
297  | 0  |         tmp = gcd % remainder;  | 
298  | 0  |         gcd = remainder;  | 
299  | 0  |         remainder = tmp;  | 
300  | 0  |     }  | 
301  |  |     /* resulting a is the GCD, LCM(a,b) = |a*b|/GCD(a,b) */  | 
302  | 0  |     lcm = blocksize * constant_len / gcd;  | 
303  |  |  | 
304  |  |     /* now spread out the bits */  | 
305  | 0  |     memset(block, 0, blocksize);  | 
306  |  |  | 
307  |  |     /* last to first to be able to bring carry forward */  | 
308  | 0  |     carry = 0;  | 
309  | 0  |     for (l = lcm - 1; l >= 0; l--) { | 
310  | 0  |         unsigned int rotbits, rshift, rbyte;  | 
311  |  |  | 
312  |  |         /* destination byte in block is l % N */  | 
313  | 0  |         b = l % blocksize;  | 
314  |  |         /* Our virtual s buffer is R = L/K long (K = constant_len) */  | 
315  |  |         /* So we rotate backwards from R-1 to 0 (none) rotations */  | 
316  | 0  |         rotbits = 13 * (l / constant_len);  | 
317  |  |         /* find the byte on s where rotbits falls onto */  | 
318  | 0  |         rbyte = l - (rotbits / 8);  | 
319  |  |         /* calculate how much shift on that byte */  | 
320  | 0  |         rshift = rotbits & 0x07;  | 
321  |  |         /* rbyte % constant_len gives us the unrotated byte in the  | 
322  |  |          * constant buffer, get also the previous byte then  | 
323  |  |          * appropriately shift them to get the rotated byte we need */  | 
324  | 0  |         tmp = (constant[(rbyte-1) % constant_len] << (8 - rshift)  | 
325  | 0  |                | constant[rbyte % constant_len] >> rshift)  | 
326  | 0  |               & 0xff;  | 
327  |  |         /* add with carry to any value placed by previous passes */  | 
328  | 0  |         tmp += carry + block[b];  | 
329  | 0  |         block[b] = tmp & 0xff;  | 
330  |  |         /* save any carry that may be left */  | 
331  | 0  |         carry = tmp >> 8;  | 
332  | 0  |     }  | 
333  |  |  | 
334  |  |     /* if any carry is left at the end, add it through the number */  | 
335  | 0  |     for (b = blocksize - 1; b >= 0 && carry != 0; b--) { | 
336  | 0  |         carry += block[b];  | 
337  | 0  |         block[b] = carry & 0xff;  | 
338  | 0  |         carry >>= 8;  | 
339  | 0  |     }  | 
340  | 0  | }  | 
341  |  |  | 
342  |  | static int cipher_init(EVP_CIPHER_CTX *ctx,  | 
343  |  |                        const EVP_CIPHER *cipher, ENGINE *engine,  | 
344  |  |                        const unsigned char *key, size_t key_len)  | 
345  | 0  | { | 
346  | 0  |     int klen, ret;  | 
347  |  | 
  | 
348  | 0  |     ret = EVP_EncryptInit_ex(ctx, cipher, engine, NULL, NULL);  | 
349  | 0  |     if (!ret)  | 
350  | 0  |         goto out;  | 
351  |  |     /* set the key len for the odd variable key len cipher */  | 
352  | 0  |     klen = EVP_CIPHER_CTX_get_key_length(ctx);  | 
353  | 0  |     if (key_len != (size_t)klen) { | 
354  | 0  |         ret = EVP_CIPHER_CTX_set_key_length(ctx, (int)key_len);  | 
355  | 0  |         if (ret <= 0) { | 
356  | 0  |             ret = 0;  | 
357  | 0  |             goto out;  | 
358  | 0  |         }  | 
359  | 0  |     }  | 
360  | 0  |     ret = EVP_EncryptInit_ex(ctx, NULL, NULL, key, NULL);  | 
361  | 0  |     if (!ret)  | 
362  | 0  |         goto out;  | 
363  |  |     /* we never want padding, either the length requested is a multiple of  | 
364  |  |      * the cipher block size or we are passed a cipher that can cope with  | 
365  |  |      * partial blocks via techniques like cipher text stealing */  | 
366  | 0  |     ret = EVP_CIPHER_CTX_set_padding(ctx, 0);  | 
367  | 0  |     if (!ret)  | 
368  | 0  |         goto out;  | 
369  |  |  | 
370  | 0  | out:  | 
371  | 0  |     return ret;  | 
372  | 0  | }  | 
373  |  |  | 
374  |  | static int KRB5KDF(const EVP_CIPHER *cipher, ENGINE *engine,  | 
375  |  |                    const unsigned char *key, size_t key_len,  | 
376  |  |                    const unsigned char *constant, size_t constant_len,  | 
377  |  |                    unsigned char *okey, size_t okey_len)  | 
378  | 0  | { | 
379  | 0  |     EVP_CIPHER_CTX *ctx = NULL;  | 
380  | 0  |     unsigned char block[EVP_MAX_BLOCK_LENGTH * 2];  | 
381  | 0  |     unsigned char *plainblock, *cipherblock;  | 
382  | 0  |     size_t blocksize;  | 
383  | 0  |     size_t cipherlen;  | 
384  | 0  |     size_t osize;  | 
385  | 0  | #ifndef OPENSSL_NO_DES  | 
386  | 0  |     int des3_no_fixup = 0;  | 
387  | 0  | #endif  | 
388  | 0  |     int ret;  | 
389  |  | 
  | 
390  | 0  |     if (key_len != okey_len) { | 
391  | 0  | #ifndef OPENSSL_NO_DES  | 
392  |  |         /* special case for 3des, where the caller may be requesting  | 
393  |  |          * the random raw key, instead of the fixed up key  */  | 
394  | 0  |         if (EVP_CIPHER_get_nid(cipher) == NID_des_ede3_cbc &&  | 
395  | 0  |             key_len == 24 && okey_len == 21) { | 
396  | 0  |                 des3_no_fixup = 1;  | 
397  | 0  |         } else { | 
398  | 0  | #endif  | 
399  | 0  |             ERR_raise(ERR_LIB_PROV, PROV_R_WRONG_OUTPUT_BUFFER_SIZE);  | 
400  | 0  |             return 0;  | 
401  | 0  | #ifndef OPENSSL_NO_DES  | 
402  | 0  |         }  | 
403  | 0  | #endif  | 
404  | 0  |     }  | 
405  |  |  | 
406  | 0  |     ctx = EVP_CIPHER_CTX_new();  | 
407  | 0  |     if (ctx == NULL)  | 
408  | 0  |         return 0;  | 
409  |  |  | 
410  | 0  |     ret = cipher_init(ctx, cipher, engine, key, key_len);  | 
411  | 0  |     if (!ret)  | 
412  | 0  |         goto out;  | 
413  |  |  | 
414  |  |     /* Initialize input block */  | 
415  | 0  |     blocksize = EVP_CIPHER_CTX_get_block_size(ctx);  | 
416  |  | 
  | 
417  | 0  |     if (blocksize == 0) { | 
418  | 0  |         ERR_raise(ERR_LIB_PROV, PROV_R_MISSING_CIPHER);  | 
419  | 0  |         ret = 0;  | 
420  | 0  |         goto out;  | 
421  | 0  |     }  | 
422  |  |  | 
423  | 0  |     if (constant_len > blocksize) { | 
424  | 0  |         ERR_raise(ERR_LIB_PROV, PROV_R_INVALID_CONSTANT_LENGTH);  | 
425  | 0  |         ret = 0;  | 
426  | 0  |         goto out;  | 
427  | 0  |     }  | 
428  |  |  | 
429  | 0  |     n_fold(block, (unsigned int)blocksize, constant, (unsigned int)constant_len);  | 
430  | 0  |     plainblock = block;  | 
431  | 0  |     cipherblock = block + EVP_MAX_BLOCK_LENGTH;  | 
432  |  | 
  | 
433  | 0  |     for (osize = 0; osize < okey_len; osize += cipherlen) { | 
434  | 0  |         int olen;  | 
435  |  | 
  | 
436  | 0  |         ret = EVP_EncryptUpdate(ctx, cipherblock, &olen,  | 
437  | 0  |                                 plainblock, (int)blocksize);  | 
438  | 0  |         if (!ret)  | 
439  | 0  |             goto out;  | 
440  | 0  |         cipherlen = olen;  | 
441  | 0  |         ret = EVP_EncryptFinal_ex(ctx, cipherblock, &olen);  | 
442  | 0  |         if (!ret)  | 
443  | 0  |             goto out;  | 
444  | 0  |         if (olen != 0) { | 
445  | 0  |             ERR_raise(ERR_LIB_PROV, PROV_R_WRONG_FINAL_BLOCK_LENGTH);  | 
446  | 0  |             ret = 0;  | 
447  | 0  |             goto out;  | 
448  | 0  |         }  | 
449  |  |  | 
450  |  |         /* write cipherblock out */  | 
451  | 0  |         if (cipherlen > okey_len - osize)  | 
452  | 0  |             cipherlen = okey_len - osize;  | 
453  | 0  |         memcpy(okey + osize, cipherblock, cipherlen);  | 
454  |  | 
  | 
455  | 0  |         if (okey_len > osize + cipherlen) { | 
456  |  |             /* we need to reinitialize cipher context per spec */  | 
457  | 0  |             ret = EVP_CIPHER_CTX_reset(ctx);  | 
458  | 0  |             if (!ret)  | 
459  | 0  |                 goto out;  | 
460  | 0  |             ret = cipher_init(ctx, cipher, engine, key, key_len);  | 
461  | 0  |             if (!ret)  | 
462  | 0  |                 goto out;  | 
463  |  |  | 
464  |  |             /* also swap block offsets so last ciphertext becomes new  | 
465  |  |              * plaintext */  | 
466  | 0  |             plainblock = cipherblock;  | 
467  | 0  |             if (cipherblock == block) { | 
468  | 0  |                 cipherblock += EVP_MAX_BLOCK_LENGTH;  | 
469  | 0  |             } else { | 
470  | 0  |                 cipherblock = block;  | 
471  | 0  |             }  | 
472  | 0  |         }  | 
473  | 0  |     }  | 
474  |  |  | 
475  | 0  | #ifndef OPENSSL_NO_DES  | 
476  | 0  |     if (EVP_CIPHER_get_nid(cipher) == NID_des_ede3_cbc && !des3_no_fixup) { | 
477  | 0  |         ret = fixup_des3_key(okey);  | 
478  | 0  |         if (!ret) { | 
479  | 0  |             ERR_raise(ERR_LIB_PROV, PROV_R_FAILED_TO_GENERATE_KEY);  | 
480  | 0  |             goto out;  | 
481  | 0  |         }  | 
482  | 0  |     }  | 
483  | 0  | #endif  | 
484  |  |  | 
485  | 0  |     ret = 1;  | 
486  |  | 
  | 
487  | 0  | out:  | 
488  | 0  |     EVP_CIPHER_CTX_free(ctx);  | 
489  | 0  |     OPENSSL_cleanse(block, EVP_MAX_BLOCK_LENGTH * 2);  | 
490  | 0  |     return ret;  | 
491  | 0  | }  |