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1 /*
2 * Copyright 2015-2021 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 #ifndef OSSL_CRYPTO_EVP_H
11 # define OSSL_CRYPTO_EVP_H
12 # pragma once
13
14 # include <openssl/evp.h>
15 # include <openssl/core_dispatch.h>
16 # include "internal/refcount.h"
17 # include "crypto/ecx.h"
18
19 /*
20 * Don't free up md_ctx->pctx in EVP_MD_CTX_reset, use the reserved flag
21 * values in evp.h
22 */
23 #define EVP_MD_CTX_FLAG_KEEP_PKEY_CTX 0x0400
24
25 /*
26 * An EVP_PKEY_CTX can have the following support states:
27 *
28 * Supports legacy implementations only:
29 *
30 * engine != NULL || keytype == NULL
31 *
32 * Supports provided implementations:
33 *
34 * engine == NULL && keytype != NULL
35 */
36 #define evp_pkey_ctx_is_legacy(ctx) \
37 ((ctx)->engine != NULL || (ctx)->keytype == NULL)
38 #define evp_pkey_ctx_is_provided(ctx) \
39 (!evp_pkey_ctx_is_legacy(ctx))
40
41 struct evp_pkey_ctx_st {
42 /* Actual operation */
43 int operation;
44
45 /*
46 * Library context, property query, keytype and keymgmt associated with
47 * this context
48 */
49 OSSL_LIB_CTX *libctx;
50 char *propquery;
51 const char *keytype;
52 EVP_KEYMGMT *keymgmt;
53
54 union {
55 struct {
56 void *genctx;
57 } keymgmt;
58
59 struct {
60 EVP_KEYEXCH *exchange;
61 void *exchprovctx;
62 } kex;
63
64 struct {
65 EVP_SIGNATURE *signature;
66 void *sigprovctx;
67 } sig;
68
69 struct {
70 EVP_ASYM_CIPHER *cipher;
71 void *ciphprovctx;
72 } ciph;
73 struct {
74 EVP_KEM *kem;
75 void *kemprovctx;
76 } encap;
77 } op;
78
79 /*
80 * Cached parameters. Inits of operations that depend on these should
81 * call evp_pkey_ctx_use_delayed_data() when the operation has been set
82 * up properly.
83 */
84 struct {
85 /* Distinguishing Identifier, ISO/IEC 15946-3, FIPS 196 */
86 char *dist_id_name; /* The name used with EVP_PKEY_CTX_ctrl_str() */
87 void *dist_id; /* The distinguishing ID itself */
88 size_t dist_id_len; /* The length of the distinguishing ID */
89
90 /* Indicators of what has been set. Keep them together! */
91 unsigned int dist_id_set : 1;
92 } cached_parameters;
93
94 /* Application specific data, usually used by the callback */
95 void *app_data;
96 /* Keygen callback */
97 EVP_PKEY_gen_cb *pkey_gencb;
98 /* implementation specific keygen data */
99 int *keygen_info;
100 int keygen_info_count;
101
102 /* Legacy fields below */
103
104 /* EVP_PKEY identity */
105 int legacy_keytype;
106 /* Method associated with this operation */
107 const EVP_PKEY_METHOD *pmeth;
108 /* Engine that implements this method or NULL if builtin */
109 ENGINE *engine;
110 /* Key: may be NULL */
111 EVP_PKEY *pkey;
112 /* Peer key for key agreement, may be NULL */
113 EVP_PKEY *peerkey;
114 /* Algorithm specific data */
115 void *data;
116 /* Indicator if digest_custom needs to be called */
117 unsigned int flag_call_digest_custom:1;
118 /*
119 * Used to support taking custody of memory in the case of a provider being
120 * used with the deprecated EVP_PKEY_CTX_set_rsa_keygen_pubexp() API. This
121 * member should NOT be used for any other purpose and should be removed
122 * when said deprecated API is excised completely.
123 */
124 BIGNUM *rsa_pubexp;
125 } /* EVP_PKEY_CTX */ ;
126
127 #define EVP_PKEY_FLAG_DYNAMIC 1
128
129 struct evp_pkey_method_st {
130 int pkey_id;
131 int flags;
132 int (*init) (EVP_PKEY_CTX *ctx);
133 int (*copy) (EVP_PKEY_CTX *dst, const EVP_PKEY_CTX *src);
134 void (*cleanup) (EVP_PKEY_CTX *ctx);
135 int (*paramgen_init) (EVP_PKEY_CTX *ctx);
136 int (*paramgen) (EVP_PKEY_CTX *ctx, EVP_PKEY *pkey);
137 int (*keygen_init) (EVP_PKEY_CTX *ctx);
138 int (*keygen) (EVP_PKEY_CTX *ctx, EVP_PKEY *pkey);
139 int (*sign_init) (EVP_PKEY_CTX *ctx);
140 int (*sign) (EVP_PKEY_CTX *ctx, unsigned char *sig, size_t *siglen,
141 const unsigned char *tbs, size_t tbslen);
142 int (*verify_init) (EVP_PKEY_CTX *ctx);
143 int (*verify) (EVP_PKEY_CTX *ctx,
144 const unsigned char *sig, size_t siglen,
145 const unsigned char *tbs, size_t tbslen);
146 int (*verify_recover_init) (EVP_PKEY_CTX *ctx);
147 int (*verify_recover) (EVP_PKEY_CTX *ctx,
148 unsigned char *rout, size_t *routlen,
149 const unsigned char *sig, size_t siglen);
150 int (*signctx_init) (EVP_PKEY_CTX *ctx, EVP_MD_CTX *mctx);
151 int (*signctx) (EVP_PKEY_CTX *ctx, unsigned char *sig, size_t *siglen,
152 EVP_MD_CTX *mctx);
153 int (*verifyctx_init) (EVP_PKEY_CTX *ctx, EVP_MD_CTX *mctx);
154 int (*verifyctx) (EVP_PKEY_CTX *ctx, const unsigned char *sig, int siglen,
155 EVP_MD_CTX *mctx);
156 int (*encrypt_init) (EVP_PKEY_CTX *ctx);
157 int (*encrypt) (EVP_PKEY_CTX *ctx, unsigned char *out, size_t *outlen,
158 const unsigned char *in, size_t inlen);
159 int (*decrypt_init) (EVP_PKEY_CTX *ctx);
160 int (*decrypt) (EVP_PKEY_CTX *ctx, unsigned char *out, size_t *outlen,
161 const unsigned char *in, size_t inlen);
162 int (*derive_init) (EVP_PKEY_CTX *ctx);
163 int (*derive) (EVP_PKEY_CTX *ctx, unsigned char *key, size_t *keylen);
164 int (*ctrl) (EVP_PKEY_CTX *ctx, int type, int p1, void *p2);
165 int (*ctrl_str) (EVP_PKEY_CTX *ctx, const char *type, const char *value);
166 int (*digestsign) (EVP_MD_CTX *ctx, unsigned char *sig, size_t *siglen,
167 const unsigned char *tbs, size_t tbslen);
168 int (*digestverify) (EVP_MD_CTX *ctx, const unsigned char *sig,
169 size_t siglen, const unsigned char *tbs,
170 size_t tbslen);
171 int (*check) (EVP_PKEY *pkey);
172 int (*public_check) (EVP_PKEY *pkey);
173 int (*param_check) (EVP_PKEY *pkey);
174
175 int (*digest_custom) (EVP_PKEY_CTX *ctx, EVP_MD_CTX *mctx);
176 } /* EVP_PKEY_METHOD */ ;
177
178 DEFINE_STACK_OF_CONST(EVP_PKEY_METHOD)
179
180 void evp_pkey_set_cb_translate(BN_GENCB *cb, EVP_PKEY_CTX *ctx);
181
182 const EVP_PKEY_METHOD *dh_pkey_method(void);
183 const EVP_PKEY_METHOD *dhx_pkey_method(void);
184 const EVP_PKEY_METHOD *dsa_pkey_method(void);
185 const EVP_PKEY_METHOD *ec_pkey_method(void);
186 const EVP_PKEY_METHOD *ecx25519_pkey_method(void);
187 const EVP_PKEY_METHOD *ecx448_pkey_method(void);
188 const EVP_PKEY_METHOD *ed25519_pkey_method(void);
189 const EVP_PKEY_METHOD *ed448_pkey_method(void);
190 const EVP_PKEY_METHOD *ossl_rsa_pkey_method(void);
191 const EVP_PKEY_METHOD *ossl_rsa_pss_pkey_method(void);
192
193 struct evp_mac_st {
194 OSSL_PROVIDER *prov;
195 int name_id;
196
197 CRYPTO_REF_COUNT refcnt;
198 CRYPTO_RWLOCK *lock;
199
200 OSSL_FUNC_mac_newctx_fn *newctx;
201 OSSL_FUNC_mac_dupctx_fn *dupctx;
202 OSSL_FUNC_mac_freectx_fn *freectx;
203 OSSL_FUNC_mac_init_fn *init;
204 OSSL_FUNC_mac_update_fn *update;
205 OSSL_FUNC_mac_final_fn *final;
206 OSSL_FUNC_mac_gettable_params_fn *gettable_params;
207 OSSL_FUNC_mac_gettable_ctx_params_fn *gettable_ctx_params;
208 OSSL_FUNC_mac_settable_ctx_params_fn *settable_ctx_params;
209 OSSL_FUNC_mac_get_params_fn *get_params;
210 OSSL_FUNC_mac_get_ctx_params_fn *get_ctx_params;
211 OSSL_FUNC_mac_set_ctx_params_fn *set_ctx_params;
212 };
213
214 struct evp_kdf_st {
215 OSSL_PROVIDER *prov;
216 int name_id;
217 CRYPTO_REF_COUNT refcnt;
218 CRYPTO_RWLOCK *lock;
219
220 OSSL_FUNC_kdf_newctx_fn *newctx;
221 OSSL_FUNC_kdf_dupctx_fn *dupctx;
222 OSSL_FUNC_kdf_freectx_fn *freectx;
223 OSSL_FUNC_kdf_reset_fn *reset;
224 OSSL_FUNC_kdf_derive_fn *derive;
225 OSSL_FUNC_kdf_gettable_params_fn *gettable_params;
226 OSSL_FUNC_kdf_gettable_ctx_params_fn *gettable_ctx_params;
227 OSSL_FUNC_kdf_settable_ctx_params_fn *settable_ctx_params;
228 OSSL_FUNC_kdf_get_params_fn *get_params;
229 OSSL_FUNC_kdf_get_ctx_params_fn *get_ctx_params;
230 OSSL_FUNC_kdf_set_ctx_params_fn *set_ctx_params;
231 };
232
233 struct evp_md_st {
234 /* nid */
235 int type;
236
237 /* Legacy structure members */
238 /* TODO(3.0): Remove these */
239 int pkey_type;
240 int md_size;
241 unsigned long flags;
242 int (*init) (EVP_MD_CTX *ctx);
243 int (*update) (EVP_MD_CTX *ctx, const void *data, size_t count);
244 int (*final) (EVP_MD_CTX *ctx, unsigned char *md);
245 int (*copy) (EVP_MD_CTX *to, const EVP_MD_CTX *from);
246 int (*cleanup) (EVP_MD_CTX *ctx);
247 int block_size;
248 int ctx_size; /* how big does the ctx->md_data need to be */
249 /* control function */
250 int (*md_ctrl) (EVP_MD_CTX *ctx, int cmd, int p1, void *p2);
251
252 /* New structure members */
253 /* TODO(3.0): Remove above comment when legacy has gone */
254 int name_id;
255 OSSL_PROVIDER *prov;
256 CRYPTO_REF_COUNT refcnt;
257 CRYPTO_RWLOCK *lock;
258 OSSL_FUNC_digest_newctx_fn *newctx;
259 OSSL_FUNC_digest_init_fn *dinit;
260 OSSL_FUNC_digest_update_fn *dupdate;
261 OSSL_FUNC_digest_final_fn *dfinal;
262 OSSL_FUNC_digest_digest_fn *digest;
263 OSSL_FUNC_digest_freectx_fn *freectx;
264 OSSL_FUNC_digest_dupctx_fn *dupctx;
265 OSSL_FUNC_digest_get_params_fn *get_params;
266 OSSL_FUNC_digest_set_ctx_params_fn *set_ctx_params;
267 OSSL_FUNC_digest_get_ctx_params_fn *get_ctx_params;
268 OSSL_FUNC_digest_gettable_params_fn *gettable_params;
269 OSSL_FUNC_digest_settable_ctx_params_fn *settable_ctx_params;
270 OSSL_FUNC_digest_gettable_ctx_params_fn *gettable_ctx_params;
271
272 } /* EVP_MD */ ;
273
274 struct evp_cipher_st {
275 int nid;
276
277 int block_size;
278 /* Default value for variable length ciphers */
279 int key_len;
280 int iv_len;
281
282 /* Legacy structure members */
283 /* TODO(3.0): Remove these */
284 /* Various flags */
285 unsigned long flags;
286 /* init key */
287 int (*init) (EVP_CIPHER_CTX *ctx, const unsigned char *key,
288 const unsigned char *iv, int enc);
289 /* encrypt/decrypt data */
290 int (*do_cipher) (EVP_CIPHER_CTX *ctx, unsigned char *out,
291 const unsigned char *in, size_t inl);
292 /* cleanup ctx */
293 int (*cleanup) (EVP_CIPHER_CTX *);
294 /* how big ctx->cipher_data needs to be */
295 int ctx_size;
296 /* Populate a ASN1_TYPE with parameters */
297 int (*set_asn1_parameters) (EVP_CIPHER_CTX *, ASN1_TYPE *);
298 /* Get parameters from a ASN1_TYPE */
299 int (*get_asn1_parameters) (EVP_CIPHER_CTX *, ASN1_TYPE *);
300 /* Miscellaneous operations */
301 int (*ctrl) (EVP_CIPHER_CTX *, int type, int arg, void *ptr);
302 /* Application data */
303 void *app_data;
304
305 /* New structure members */
306 /* TODO(3.0): Remove above comment when legacy has gone */
307 int name_id;
308 OSSL_PROVIDER *prov;
309 CRYPTO_REF_COUNT refcnt;
310 CRYPTO_RWLOCK *lock;
311 OSSL_FUNC_cipher_newctx_fn *newctx;
312 OSSL_FUNC_cipher_encrypt_init_fn *einit;
313 OSSL_FUNC_cipher_decrypt_init_fn *dinit;
314 OSSL_FUNC_cipher_update_fn *cupdate;
315 OSSL_FUNC_cipher_final_fn *cfinal;
316 OSSL_FUNC_cipher_cipher_fn *ccipher;
317 OSSL_FUNC_cipher_freectx_fn *freectx;
318 OSSL_FUNC_cipher_dupctx_fn *dupctx;
319 OSSL_FUNC_cipher_get_params_fn *get_params;
320 OSSL_FUNC_cipher_get_ctx_params_fn *get_ctx_params;
321 OSSL_FUNC_cipher_set_ctx_params_fn *set_ctx_params;
322 OSSL_FUNC_cipher_gettable_params_fn *gettable_params;
323 OSSL_FUNC_cipher_gettable_ctx_params_fn *gettable_ctx_params;
324 OSSL_FUNC_cipher_settable_ctx_params_fn *settable_ctx_params;
325 } /* EVP_CIPHER */ ;
326
327 /* Macros to code block cipher wrappers */
328
329 /* Wrapper functions for each cipher mode */
330
331 #define EVP_C_DATA(kstruct, ctx) \
332 ((kstruct *)EVP_CIPHER_CTX_get_cipher_data(ctx))
333
334 #define BLOCK_CIPHER_ecb_loop() \
335 size_t i, bl; \
336 bl = EVP_CIPHER_CTX_cipher(ctx)->block_size; \
337 if (inl < bl) return 1;\
338 inl -= bl; \
339 for (i=0; i <= inl; i+=bl)
340
341 #define BLOCK_CIPHER_func_ecb(cname, cprefix, kstruct, ksched) \
342 static int cname##_ecb_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out, const unsigned char *in, size_t inl) \
343 {\
344 BLOCK_CIPHER_ecb_loop() \
345 cprefix##_ecb_encrypt(in + i, out + i, &EVP_C_DATA(kstruct,ctx)->ksched, EVP_CIPHER_CTX_encrypting(ctx)); \
346 return 1;\
347 }
348
349 #define EVP_MAXCHUNK ((size_t)1<<(sizeof(long)*8-2))
350
351 #define BLOCK_CIPHER_func_ofb(cname, cprefix, cbits, kstruct, ksched) \
352 static int cname##_ofb_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out, const unsigned char *in, size_t inl) \
353 {\
354 while(inl>=EVP_MAXCHUNK) {\
355 int num = EVP_CIPHER_CTX_num(ctx);\
356 cprefix##_ofb##cbits##_encrypt(in, out, (long)EVP_MAXCHUNK, &EVP_C_DATA(kstruct,ctx)->ksched, ctx->iv, &num); \
357 EVP_CIPHER_CTX_set_num(ctx, num);\
358 inl-=EVP_MAXCHUNK;\
359 in +=EVP_MAXCHUNK;\
360 out+=EVP_MAXCHUNK;\
361 }\
362 if (inl) {\
363 int num = EVP_CIPHER_CTX_num(ctx);\
364 cprefix##_ofb##cbits##_encrypt(in, out, (long)inl, &EVP_C_DATA(kstruct,ctx)->ksched, ctx->iv, &num); \
365 EVP_CIPHER_CTX_set_num(ctx, num);\
366 }\
367 return 1;\
368 }
369
370 #define BLOCK_CIPHER_func_cbc(cname, cprefix, kstruct, ksched) \
371 static int cname##_cbc_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out, const unsigned char *in, size_t inl) \
372 {\
373 while(inl>=EVP_MAXCHUNK) \
374 {\
375 cprefix##_cbc_encrypt(in, out, (long)EVP_MAXCHUNK, &EVP_C_DATA(kstruct,ctx)->ksched, ctx->iv, EVP_CIPHER_CTX_encrypting(ctx));\
376 inl-=EVP_MAXCHUNK;\
377 in +=EVP_MAXCHUNK;\
378 out+=EVP_MAXCHUNK;\
379 }\
380 if (inl)\
381 cprefix##_cbc_encrypt(in, out, (long)inl, &EVP_C_DATA(kstruct,ctx)->ksched, ctx->iv, EVP_CIPHER_CTX_encrypting(ctx));\
382 return 1;\
383 }
384
385 #define BLOCK_CIPHER_func_cfb(cname, cprefix, cbits, kstruct, ksched) \
386 static int cname##_cfb##cbits##_cipher(EVP_CIPHER_CTX *ctx, unsigned char *out, const unsigned char *in, size_t inl) \
387 {\
388 size_t chunk = EVP_MAXCHUNK;\
389 if (cbits == 1) chunk >>= 3;\
390 if (inl < chunk) chunk = inl;\
391 while (inl && inl >= chunk)\
392 {\
393 int num = EVP_CIPHER_CTX_num(ctx);\
394 cprefix##_cfb##cbits##_encrypt(in, out, (long) \
395 ((cbits == 1) \
396 && !EVP_CIPHER_CTX_test_flags(ctx, EVP_CIPH_FLAG_LENGTH_BITS) \
397 ? chunk*8 : chunk), \
398 &EVP_C_DATA(kstruct, ctx)->ksched, ctx->iv,\
399 &num, EVP_CIPHER_CTX_encrypting(ctx));\
400 EVP_CIPHER_CTX_set_num(ctx, num);\
401 inl -= chunk;\
402 in += chunk;\
403 out += chunk;\
404 if (inl < chunk) chunk = inl;\
405 }\
406 return 1;\
407 }
408
409 #define BLOCK_CIPHER_all_funcs(cname, cprefix, cbits, kstruct, ksched) \
410 BLOCK_CIPHER_func_cbc(cname, cprefix, kstruct, ksched) \
411 BLOCK_CIPHER_func_cfb(cname, cprefix, cbits, kstruct, ksched) \
412 BLOCK_CIPHER_func_ecb(cname, cprefix, kstruct, ksched) \
413 BLOCK_CIPHER_func_ofb(cname, cprefix, cbits, kstruct, ksched)
414
415 #define BLOCK_CIPHER_def1(cname, nmode, mode, MODE, kstruct, nid, block_size, \
416 key_len, iv_len, flags, init_key, cleanup, \
417 set_asn1, get_asn1, ctrl) \
418 static const EVP_CIPHER cname##_##mode = { \
419 nid##_##nmode, block_size, key_len, iv_len, \
420 flags | EVP_CIPH_##MODE##_MODE, \
421 init_key, \
422 cname##_##mode##_cipher, \
423 cleanup, \
424 sizeof(kstruct), \
425 set_asn1, get_asn1,\
426 ctrl, \
427 NULL \
428 }; \
429 const EVP_CIPHER *EVP_##cname##_##mode(void) { return &cname##_##mode; }
430
431 #define BLOCK_CIPHER_def_cbc(cname, kstruct, nid, block_size, key_len, \
432 iv_len, flags, init_key, cleanup, set_asn1, \
433 get_asn1, ctrl) \
434 BLOCK_CIPHER_def1(cname, cbc, cbc, CBC, kstruct, nid, block_size, key_len, \
435 iv_len, flags, init_key, cleanup, set_asn1, get_asn1, ctrl)
436
437 #define BLOCK_CIPHER_def_cfb(cname, kstruct, nid, key_len, \
438 iv_len, cbits, flags, init_key, cleanup, \
439 set_asn1, get_asn1, ctrl) \
440 BLOCK_CIPHER_def1(cname, cfb##cbits, cfb##cbits, CFB, kstruct, nid, 1, \
441 key_len, iv_len, flags, init_key, cleanup, set_asn1, \
442 get_asn1, ctrl)
443
444 #define BLOCK_CIPHER_def_ofb(cname, kstruct, nid, key_len, \
445 iv_len, cbits, flags, init_key, cleanup, \
446 set_asn1, get_asn1, ctrl) \
447 BLOCK_CIPHER_def1(cname, ofb##cbits, ofb, OFB, kstruct, nid, 1, \
448 key_len, iv_len, flags, init_key, cleanup, set_asn1, \
449 get_asn1, ctrl)
450
451 #define BLOCK_CIPHER_def_ecb(cname, kstruct, nid, block_size, key_len, \
452 flags, init_key, cleanup, set_asn1, \
453 get_asn1, ctrl) \
454 BLOCK_CIPHER_def1(cname, ecb, ecb, ECB, kstruct, nid, block_size, key_len, \
455 0, flags, init_key, cleanup, set_asn1, get_asn1, ctrl)
456
457 #define BLOCK_CIPHER_defs(cname, kstruct, \
458 nid, block_size, key_len, iv_len, cbits, flags, \
459 init_key, cleanup, set_asn1, get_asn1, ctrl) \
460 BLOCK_CIPHER_def_cbc(cname, kstruct, nid, block_size, key_len, iv_len, flags, \
461 init_key, cleanup, set_asn1, get_asn1, ctrl) \
462 BLOCK_CIPHER_def_cfb(cname, kstruct, nid, key_len, iv_len, cbits, \
463 flags, init_key, cleanup, set_asn1, get_asn1, ctrl) \
464 BLOCK_CIPHER_def_ofb(cname, kstruct, nid, key_len, iv_len, cbits, \
465 flags, init_key, cleanup, set_asn1, get_asn1, ctrl) \
466 BLOCK_CIPHER_def_ecb(cname, kstruct, nid, block_size, key_len, flags, \
467 init_key, cleanup, set_asn1, get_asn1, ctrl)
468
469 /*-
470 #define BLOCK_CIPHER_defs(cname, kstruct, \
471 nid, block_size, key_len, iv_len, flags,\
472 init_key, cleanup, set_asn1, get_asn1, ctrl)\
473 static const EVP_CIPHER cname##_cbc = {\
474 nid##_cbc, block_size, key_len, iv_len, \
475 flags | EVP_CIPH_CBC_MODE,\
476 init_key,\
477 cname##_cbc_cipher,\
478 cleanup,\
479 sizeof(EVP_CIPHER_CTX)-sizeof((((EVP_CIPHER_CTX *)NULL)->c))+\
480 sizeof((((EVP_CIPHER_CTX *)NULL)->c.kstruct)),\
481 set_asn1, get_asn1,\
482 ctrl, \
483 NULL \
484 };\
485 const EVP_CIPHER *EVP_##cname##_cbc(void) { return &cname##_cbc; }\
486 static const EVP_CIPHER cname##_cfb = {\
487 nid##_cfb64, 1, key_len, iv_len, \
488 flags | EVP_CIPH_CFB_MODE,\
489 init_key,\
490 cname##_cfb_cipher,\
491 cleanup,\
492 sizeof(EVP_CIPHER_CTX)-sizeof((((EVP_CIPHER_CTX *)NULL)->c))+\
493 sizeof((((EVP_CIPHER_CTX *)NULL)->c.kstruct)),\
494 set_asn1, get_asn1,\
495 ctrl,\
496 NULL \
497 };\
498 const EVP_CIPHER *EVP_##cname##_cfb(void) { return &cname##_cfb; }\
499 static const EVP_CIPHER cname##_ofb = {\
500 nid##_ofb64, 1, key_len, iv_len, \
501 flags | EVP_CIPH_OFB_MODE,\
502 init_key,\
503 cname##_ofb_cipher,\
504 cleanup,\
505 sizeof(EVP_CIPHER_CTX)-sizeof((((EVP_CIPHER_CTX *)NULL)->c))+\
506 sizeof((((EVP_CIPHER_CTX *)NULL)->c.kstruct)),\
507 set_asn1, get_asn1,\
508 ctrl,\
509 NULL \
510 };\
511 const EVP_CIPHER *EVP_##cname##_ofb(void) { return &cname##_ofb; }\
512 static const EVP_CIPHER cname##_ecb = {\
513 nid##_ecb, block_size, key_len, iv_len, \
514 flags | EVP_CIPH_ECB_MODE,\
515 init_key,\
516 cname##_ecb_cipher,\
517 cleanup,\
518 sizeof(EVP_CIPHER_CTX)-sizeof((((EVP_CIPHER_CTX *)NULL)->c))+\
519 sizeof((((EVP_CIPHER_CTX *)NULL)->c.kstruct)),\
520 set_asn1, get_asn1,\
521 ctrl,\
522 NULL \
523 };\
524 const EVP_CIPHER *EVP_##cname##_ecb(void) { return &cname##_ecb; }
525 */
526
527 #define IMPLEMENT_BLOCK_CIPHER(cname, ksched, cprefix, kstruct, nid, \
528 block_size, key_len, iv_len, cbits, \
529 flags, init_key, \
530 cleanup, set_asn1, get_asn1, ctrl) \
531 BLOCK_CIPHER_all_funcs(cname, cprefix, cbits, kstruct, ksched) \
532 BLOCK_CIPHER_defs(cname, kstruct, nid, block_size, key_len, iv_len, \
533 cbits, flags, init_key, cleanup, set_asn1, \
534 get_asn1, ctrl)
535
536 #define IMPLEMENT_CFBR(cipher,cprefix,kstruct,ksched,keysize,cbits,iv_len,fl) \
537 BLOCK_CIPHER_func_cfb(cipher##_##keysize,cprefix,cbits,kstruct,ksched) \
538 BLOCK_CIPHER_def_cfb(cipher##_##keysize,kstruct, \
539 NID_##cipher##_##keysize, keysize/8, iv_len, cbits, \
540 (fl)|EVP_CIPH_FLAG_DEFAULT_ASN1, \
541 cipher##_init_key, NULL, NULL, NULL, NULL)
542
543 typedef struct {
544 unsigned char iv[EVP_MAX_IV_LENGTH];
545 unsigned int iv_len;
546 unsigned int tag_len;
547 } evp_cipher_aead_asn1_params;
548
549 int evp_cipher_param_to_asn1_ex(EVP_CIPHER_CTX *c, ASN1_TYPE *type,
550 evp_cipher_aead_asn1_params *params);
551
552 int evp_cipher_asn1_to_param_ex(EVP_CIPHER_CTX *c, ASN1_TYPE *type,
553 evp_cipher_aead_asn1_params *params);
554
555 /*
556 * To support transparent execution of operation in backends other
557 * than the "origin" key, we support transparent export/import to
558 * those providers, and maintain a cache of the imported keydata,
559 * so we don't need to redo the export/import every time we perform
560 * the same operation in that same provider.
561 * This requires that the "origin" backend (whether it's a legacy or a
562 * provider "origin") implements exports, and that the target provider
563 * has an EVP_KEYMGMT that implements import.
564 */
565 typedef struct {
566 EVP_KEYMGMT *keymgmt;
567 void *keydata;
568 } OP_CACHE_ELEM;
569
570 DEFINE_STACK_OF(OP_CACHE_ELEM)
571
572 /*
573 * An EVP_PKEY can have the following states:
574 *
575 * untyped & empty:
576 *
577 * type == EVP_PKEY_NONE && keymgmt == NULL
578 *
579 * typed & empty:
580 *
581 * (type != EVP_PKEY_NONE && pkey.ptr == NULL) ## legacy (libcrypto only)
582 * || (keymgmt != NULL && keydata == NULL) ## provider side
583 *
584 * fully assigned:
585 *
586 * (type != EVP_PKEY_NONE && pkey.ptr != NULL) ## legacy (libcrypto only)
587 * || (keymgmt != NULL && keydata != NULL) ## provider side
588 *
589 * The easiest way to detect a legacy key is:
590 *
591 * keymgmt == NULL && type != EVP_PKEY_NONE
592 *
593 * The easiest way to detect a provider side key is:
594 *
595 * keymgmt != NULL
596 */
597 #define evp_pkey_is_blank(pk) \
598 ((pk)->type == EVP_PKEY_NONE && (pk)->keymgmt == NULL)
599 #define evp_pkey_is_typed(pk) \
600 ((pk)->type != EVP_PKEY_NONE || (pk)->keymgmt != NULL)
601 #ifndef FIPS_MODULE
602 # define evp_pkey_is_assigned(pk) \
603 ((pk)->pkey.ptr != NULL || (pk)->keydata != NULL)
604 #else
605 # define evp_pkey_is_assigned(pk) \
606 ((pk)->keydata != NULL)
607 #endif
608 #define evp_pkey_is_legacy(pk) \
609 ((pk)->type != EVP_PKEY_NONE && (pk)->keymgmt == NULL)
610 #define evp_pkey_is_provided(pk) \
611 ((pk)->keymgmt != NULL)
612
613 struct evp_pkey_st {
614 /* == Legacy attributes == */
615 int type;
616 int save_type;
617
618 # ifndef FIPS_MODULE
619 /*
620 * Legacy key "origin" is composed of a pointer to an EVP_PKEY_ASN1_METHOD,
621 * a pointer to a low level key and possibly a pointer to an engine.
622 */
623 const EVP_PKEY_ASN1_METHOD *ameth;
624 ENGINE *engine;
625 ENGINE *pmeth_engine; /* If not NULL public key ENGINE to use */
626 union {
627 void *ptr;
628 struct rsa_st *rsa; /* RSA */
629 # ifndef OPENSSL_NO_DSA
630 struct dsa_st *dsa; /* DSA */
631 # endif
632 # ifndef OPENSSL_NO_DH
633 struct dh_st *dh; /* DH */
634 # endif
635 # ifndef OPENSSL_NO_EC
636 struct ec_key_st *ec; /* ECC */
637 ECX_KEY *ecx; /* X25519, X448, Ed25519, Ed448 */
638 # endif
639 } pkey;
640 # endif
641
642 /* == Common attributes == */
643 /* If these are modified, so must evp_pkey_downgrade() */
644 CRYPTO_REF_COUNT references;
645 CRYPTO_RWLOCK *lock;
646 STACK_OF(X509_ATTRIBUTE) *attributes; /* [ 0 ] */
647 int save_parameters;
648 #ifndef FIPS_MODULE
649 CRYPTO_EX_DATA ex_data;
650 #endif
651
652 /* == Provider attributes == */
653
654 /*
655 * Provider keydata "origin" is composed of a pointer to an EVP_KEYMGMT
656 * and a pointer to the provider side key data. This is never used at
657 * the same time as the legacy key data above.
658 */
659 EVP_KEYMGMT *keymgmt;
660 void *keydata;
661 /*
662 * If any libcrypto code does anything that may modify the keydata
663 * contents, this dirty counter must be incremented.
664 */
665 size_t dirty_cnt;
666
667 /*
668 * To support transparent execution of operation in backends other
669 * than the "origin" key, we support transparent export/import to
670 * those providers, and maintain a cache of the imported keydata,
671 * so we don't need to redo the export/import every time we perform
672 * the same operation in that same provider.
673 */
674 STACK_OF(OP_CACHE_ELEM) *operation_cache;
675
676 /*
677 * We keep a copy of that "origin"'s dirty count, so we know if the
678 * operation cache needs flushing.
679 */
680 size_t dirty_cnt_copy;
681
682 /* Cache of key object information */
683 struct {
684 int bits;
685 int security_bits;
686 int size;
687 } cache;
688 } /* EVP_PKEY */ ;
689
690 #define EVP_PKEY_CTX_IS_SIGNATURE_OP(ctx) \
691 ((ctx)->operation == EVP_PKEY_OP_SIGN \
692 || (ctx)->operation == EVP_PKEY_OP_SIGNCTX \
693 || (ctx)->operation == EVP_PKEY_OP_VERIFY \
694 || (ctx)->operation == EVP_PKEY_OP_VERIFYCTX \
695 || (ctx)->operation == EVP_PKEY_OP_VERIFYRECOVER)
696
697 #define EVP_PKEY_CTX_IS_DERIVE_OP(ctx) \
698 ((ctx)->operation == EVP_PKEY_OP_DERIVE)
699
700 #define EVP_PKEY_CTX_IS_ASYM_CIPHER_OP(ctx) \
701 ((ctx)->operation == EVP_PKEY_OP_ENCRYPT \
702 || (ctx)->operation == EVP_PKEY_OP_DECRYPT)
703
704 #define EVP_PKEY_CTX_IS_GEN_OP(ctx) \
705 ((ctx)->operation == EVP_PKEY_OP_PARAMGEN \
706 || (ctx)->operation == EVP_PKEY_OP_KEYGEN)
707
708 #define EVP_PKEY_CTX_IS_FROMDATA_OP(ctx) \
709 ((ctx)->operation == EVP_PKEY_OP_FROMDATA)
710
711 #define EVP_PKEY_CTX_IS_KEM_OP(ctx) \
712 ((ctx)->operation == EVP_PKEY_OP_ENCAPSULATE \
713 || (ctx)->operation == EVP_PKEY_OP_DECAPSULATE)
714
715 void openssl_add_all_ciphers_int(void);
716 void openssl_add_all_digests_int(void);
717 void evp_cleanup_int(void);
718 void evp_app_cleanup_int(void);
719 void *evp_pkey_export_to_provider(EVP_PKEY *pk, OSSL_LIB_CTX *libctx,
720 EVP_KEYMGMT **keymgmt,
721 const char *propquery);
722 #ifndef FIPS_MODULE
723 int evp_pkey_copy_downgraded(EVP_PKEY **dest, const EVP_PKEY *src);
724 int evp_pkey_downgrade(EVP_PKEY *pk);
725 void evp_pkey_free_legacy(EVP_PKEY *x);
726 #endif
727
728 /*
729 * KEYMGMT utility functions
730 */
731
732 /*
733 * Key import structure and helper function, to be used as an export callback
734 */
735 struct evp_keymgmt_util_try_import_data_st {
736 EVP_KEYMGMT *keymgmt;
737 void *keydata;
738
739 int selection;
740 };
741 int evp_keymgmt_util_try_import(const OSSL_PARAM params[], void *arg);
742 int evp_keymgmt_util_assign_pkey(EVP_PKEY *pkey, EVP_KEYMGMT *keymgmt,
743 void *keydata);
744 EVP_PKEY *evp_keymgmt_util_make_pkey(EVP_KEYMGMT *keymgmt, void *keydata);
745
746 int evp_keymgmt_util_export(const EVP_PKEY *pk, int selection,
747 OSSL_CALLBACK *export_cb, void *export_cbarg);
748 void *evp_keymgmt_util_export_to_provider(EVP_PKEY *pk, EVP_KEYMGMT *keymgmt);
749 OP_CACHE_ELEM *evp_keymgmt_util_find_operation_cache(EVP_PKEY *pk,
750 EVP_KEYMGMT *keymgmt);
751 int evp_keymgmt_util_clear_operation_cache(EVP_PKEY *pk, int locking);
752 int evp_keymgmt_util_cache_keydata(EVP_PKEY *pk,
753 EVP_KEYMGMT *keymgmt, void *keydata);
754 void evp_keymgmt_util_cache_keyinfo(EVP_PKEY *pk);
755 void *evp_keymgmt_util_fromdata(EVP_PKEY *target, EVP_KEYMGMT *keymgmt,
756 int selection, const OSSL_PARAM params[]);
757 int evp_keymgmt_util_has(EVP_PKEY *pk, int selection);
758 int evp_keymgmt_util_match(EVP_PKEY *pk1, EVP_PKEY *pk2, int selection);
759 int evp_keymgmt_util_copy(EVP_PKEY *to, EVP_PKEY *from, int selection);
760 void *evp_keymgmt_util_gen(EVP_PKEY *target, EVP_KEYMGMT *keymgmt,
761 void *genctx, OSSL_CALLBACK *cb, void *cbarg);
762 int evp_keymgmt_util_get_deflt_digest_name(EVP_KEYMGMT *keymgmt,
763 void *keydata,
764 char *mdname, size_t mdname_sz);
765
766 /*
767 * KEYMGMT provider interface functions
768 */
769 void *evp_keymgmt_newdata(const EVP_KEYMGMT *keymgmt);
770 void evp_keymgmt_freedata(const EVP_KEYMGMT *keymgmt, void *keyddata);
771 int evp_keymgmt_get_params(const EVP_KEYMGMT *keymgmt,
772 void *keydata, OSSL_PARAM params[]);
773 int evp_keymgmt_set_params(const EVP_KEYMGMT *keymgmt,
774 void *keydata, const OSSL_PARAM params[]);
775 void *evp_keymgmt_gen_init(const EVP_KEYMGMT *keymgmt, int selection);
776 int evp_keymgmt_gen_set_template(const EVP_KEYMGMT *keymgmt, void *genctx,
777 void *template);
778 int evp_keymgmt_gen_set_params(const EVP_KEYMGMT *keymgmt, void *genctx,
779 const OSSL_PARAM params[]);
780 void *evp_keymgmt_gen(const EVP_KEYMGMT *keymgmt, void *genctx,
781 OSSL_CALLBACK *cb, void *cbarg);
782 void evp_keymgmt_gen_cleanup(const EVP_KEYMGMT *keymgmt, void *genctx);
783
784 void *evp_keymgmt_load(const EVP_KEYMGMT *keymgmt,
785 const void *objref, size_t objref_sz);
786
787 int evp_keymgmt_has(const EVP_KEYMGMT *keymgmt, void *keyddata, int selection);
788 int evp_keymgmt_validate(const EVP_KEYMGMT *keymgmt, void *keydata,
789 int selection, int checktype);
790 int evp_keymgmt_match(const EVP_KEYMGMT *keymgmt,
791 const void *keydata1, const void *keydata2,
792 int selection);
793
794 int evp_keymgmt_import(const EVP_KEYMGMT *keymgmt, void *keydata,
795 int selection, const OSSL_PARAM params[]);
796 const OSSL_PARAM *evp_keymgmt_import_types(const EVP_KEYMGMT *keymgmt,
797 int selection);
798 int evp_keymgmt_export(const EVP_KEYMGMT *keymgmt, void *keydata,
799 int selection, OSSL_CALLBACK *param_cb, void *cbarg);
800 const OSSL_PARAM *evp_keymgmt_export_types(const EVP_KEYMGMT *keymgmt,
801 int selection);
802 int evp_keymgmt_copy(const EVP_KEYMGMT *keymgmt,
803 void *keydata_to, const void *keydata_from,
804 int selection);
805
806 /* Pulling defines out of C source files */
807
808 # define EVP_RC4_KEY_SIZE 16
809 # ifndef TLS1_1_VERSION
810 # define TLS1_1_VERSION 0x0302
811 # endif
812
813 void evp_encode_ctx_set_flags(EVP_ENCODE_CTX *ctx, unsigned int flags);
814
815 /* EVP_ENCODE_CTX flags */
816 /* Don't generate new lines when encoding */
817 #define EVP_ENCODE_CTX_NO_NEWLINES 1
818 /* Use the SRP base64 alphabet instead of the standard one */
819 #define EVP_ENCODE_CTX_USE_SRP_ALPHABET 2
820
821 const EVP_CIPHER *evp_get_cipherbyname_ex(OSSL_LIB_CTX *libctx,
822 const char *name);
823 const EVP_MD *evp_get_digestbyname_ex(OSSL_LIB_CTX *libctx,
824 const char *name);
825
826 int pkcs5_pbkdf2_hmac_ex(const char *pass, int passlen,
827 const unsigned char *salt, int saltlen, int iter,
828 const EVP_MD *digest, int keylen, unsigned char *out,
829 OSSL_LIB_CTX *libctx, const char *propq);
830
831 # ifndef FIPS_MODULE
832 /*
833 * Internal helpers for stricter EVP_PKEY_CTX_{set,get}_params().
834 *
835 * Return 1 on success, 0 or negative for errors.
836 *
837 * In particular they return -2 if any of the params is not supported.
838 *
839 * They are not available in FIPS_MODULE as they depend on
840 * - EVP_PKEY_CTX_{get,set}_params()
841 * - EVP_PKEY_CTX_{gettable,settable}_params()
842 *
843 */
844 int evp_pkey_ctx_set_params_strict(EVP_PKEY_CTX *ctx, OSSL_PARAM *params);
845 int evp_pkey_ctx_get_params_strict(EVP_PKEY_CTX *ctx, OSSL_PARAM *params);
846
847 EVP_MD_CTX *evp_md_ctx_new_ex(EVP_PKEY *pkey, const ASN1_OCTET_STRING *id,
848 OSSL_LIB_CTX *libctx, const char *propq);
849 int evp_pkey_name2type(const char *name);
850 const char *evp_pkey_type2name(int type);
851
852 int evp_pkey_ctx_set1_id_prov(EVP_PKEY_CTX *ctx, const void *id, int len);
853 int evp_pkey_ctx_get1_id_prov(EVP_PKEY_CTX *ctx, void *id);
854 int evp_pkey_ctx_get1_id_len_prov(EVP_PKEY_CTX *ctx, size_t *id_len);
855
856 int evp_pkey_ctx_use_cached_data(EVP_PKEY_CTX *ctx);
857 # endif /* !defined(FIPS_MODULE) */
858
859 void evp_method_store_flush(OSSL_LIB_CTX *libctx);
860 int evp_set_default_properties_int(OSSL_LIB_CTX *libctx, const char *propq,
861 int loadconfig);
862
863 void evp_md_ctx_clear_digest(EVP_MD_CTX *ctx, int force);
864
865 EVP_PKEY *evp_privatekey_from_binary(int keytype, EVP_PKEY **a,
866 const unsigned char **pp, long length,
867 OSSL_LIB_CTX *libctx, const char *propq);
868
869 /* Three possible states: */
870 # define EVP_PKEY_STATE_UNKNOWN 0
871 # define EVP_PKEY_STATE_LEGACY 1
872 # define EVP_PKEY_STATE_PROVIDER 2
873 int evp_pkey_ctx_state(const EVP_PKEY_CTX *ctx);
874
875 /* These two must ONLY be called for provider side operations */
876 int evp_pkey_ctx_ctrl_to_param(EVP_PKEY_CTX *ctx,
877 int keytype, int optype,
878 int cmd, int p1, void *p2);
879 int evp_pkey_ctx_ctrl_str_to_param(EVP_PKEY_CTX *ctx,
880 const char *name, const char *value);
881
882 /* These two must ONLY be called for legacy operations */
883 int evp_pkey_ctx_set_params_to_ctrl(EVP_PKEY_CTX *ctx, OSSL_PARAM *params);
884 int evp_pkey_ctx_get_params_to_ctrl(EVP_PKEY_CTX *ctx, OSSL_PARAM *params);
885
886 /* This must ONLY be called for legacy EVP_PKEYs */
887 int evp_pkey_get_params_to_ctrl(const EVP_PKEY *pkey, OSSL_PARAM *params);
888
889 #endif /* OSSL_CRYPTO_EVP_H */