/src/openssl35/crypto/x509/x_pubkey.c
Line | Count | Source |
1 | | /* |
2 | | * Copyright 1995-2024 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 | | * DSA low level APIs are deprecated for public use, but still ok for |
12 | | * internal use. |
13 | | */ |
14 | | #include "internal/deprecated.h" |
15 | | |
16 | | #include <stdio.h> |
17 | | #include "internal/cryptlib.h" |
18 | | #include <openssl/asn1t.h> |
19 | | #include <openssl/x509.h> |
20 | | #include <openssl/engine.h> |
21 | | #include "crypto/asn1.h" |
22 | | #include "crypto/evp.h" |
23 | | #include "crypto/x509.h" |
24 | | #include <openssl/rsa.h> |
25 | | #include <openssl/dsa.h> |
26 | | #include <openssl/decoder.h> |
27 | | #include <openssl/encoder.h> |
28 | | #include "internal/provider.h" |
29 | | #include "internal/sizes.h" |
30 | | |
31 | | struct X509_pubkey_st { |
32 | | X509_ALGOR *algor; |
33 | | ASN1_BIT_STRING *public_key; |
34 | | |
35 | | EVP_PKEY *pkey; |
36 | | |
37 | | /* extra data for the callback, used by d2i_PUBKEY_ex */ |
38 | | OSSL_LIB_CTX *libctx; |
39 | | char *propq; |
40 | | |
41 | | /* Flag to force legacy keys */ |
42 | | unsigned int flag_force_legacy : 1; |
43 | | }; |
44 | | |
45 | | static int x509_pubkey_decode(EVP_PKEY **pk, const X509_PUBKEY *key); |
46 | | |
47 | | static int x509_pubkey_set0_libctx(X509_PUBKEY *x, OSSL_LIB_CTX *libctx, |
48 | | const char *propq) |
49 | 2.79M | { |
50 | 2.79M | if (x != NULL) { |
51 | 2.79M | x->libctx = libctx; |
52 | 2.79M | OPENSSL_free(x->propq); |
53 | 2.79M | x->propq = NULL; |
54 | 2.79M | if (propq != NULL) { |
55 | 0 | x->propq = OPENSSL_strdup(propq); |
56 | 0 | if (x->propq == NULL) |
57 | 0 | return 0; |
58 | 0 | } |
59 | 2.79M | } |
60 | 2.79M | return 1; |
61 | 2.79M | } |
62 | | |
63 | | ASN1_SEQUENCE(X509_PUBKEY_INTERNAL) = { |
64 | | ASN1_SIMPLE(X509_PUBKEY, algor, X509_ALGOR), |
65 | | ASN1_SIMPLE(X509_PUBKEY, public_key, ASN1_BIT_STRING) |
66 | 6.30M | } static_ASN1_SEQUENCE_END_name(X509_PUBKEY, X509_PUBKEY_INTERNAL) |
67 | | |
68 | | X509_PUBKEY |
69 | | * ossl_d2i_X509_PUBKEY_INTERNAL(const unsigned char **pp, long len, OSSL_LIB_CTX *libctx, const char *propq) |
70 | 1.08M | { |
71 | 1.08M | X509_PUBKEY *xpub = OPENSSL_zalloc(sizeof(*xpub)); |
72 | | |
73 | 1.08M | if (xpub == NULL) |
74 | 0 | return NULL; |
75 | 1.08M | return (X509_PUBKEY *)ASN1_item_d2i_ex((ASN1_VALUE **)&xpub, pp, len, |
76 | 1.08M | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL), |
77 | 1.08M | libctx, propq); |
78 | 1.08M | } |
79 | | |
80 | | void ossl_X509_PUBKEY_INTERNAL_free(X509_PUBKEY *xpub) |
81 | 2.07M | { |
82 | 2.07M | ASN1_item_free((ASN1_VALUE *)xpub, ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL)); |
83 | 2.07M | } |
84 | | |
85 | | static void x509_pubkey_ex_free(ASN1_VALUE **pval, const ASN1_ITEM *it) |
86 | 2.79M | { |
87 | 2.79M | X509_PUBKEY *pubkey; |
88 | | |
89 | 2.79M | if (pval != NULL && (pubkey = (X509_PUBKEY *)*pval) != NULL) { |
90 | 2.79M | X509_ALGOR_free(pubkey->algor); |
91 | 2.79M | ASN1_BIT_STRING_free(pubkey->public_key); |
92 | 2.79M | EVP_PKEY_free(pubkey->pkey); |
93 | 2.79M | OPENSSL_free(pubkey->propq); |
94 | 2.79M | OPENSSL_free(pubkey); |
95 | 2.79M | *pval = NULL; |
96 | 2.79M | } |
97 | 2.79M | } |
98 | | |
99 | | static int x509_pubkey_ex_populate(ASN1_VALUE **pval, const ASN1_ITEM *it) |
100 | 4.01M | { |
101 | 4.01M | X509_PUBKEY *pubkey = (X509_PUBKEY *)*pval; |
102 | | |
103 | 4.01M | return (pubkey->algor != NULL |
104 | 2.79M | || (pubkey->algor = X509_ALGOR_new()) != NULL) |
105 | 4.01M | && (pubkey->public_key != NULL |
106 | 2.79M | || (pubkey->public_key = ASN1_BIT_STRING_new()) != NULL); |
107 | 4.01M | } |
108 | | |
109 | | static int x509_pubkey_ex_new_ex(ASN1_VALUE **pval, const ASN1_ITEM *it, |
110 | | OSSL_LIB_CTX *libctx, const char *propq) |
111 | 1.25M | { |
112 | 1.25M | X509_PUBKEY *ret; |
113 | | |
114 | 1.25M | if ((ret = OPENSSL_zalloc(sizeof(*ret))) == NULL) |
115 | 0 | return 0; |
116 | 1.25M | if (!x509_pubkey_ex_populate((ASN1_VALUE **)&ret, NULL) |
117 | 1.25M | || !x509_pubkey_set0_libctx(ret, libctx, propq)) { |
118 | 0 | x509_pubkey_ex_free((ASN1_VALUE **)&ret, NULL); |
119 | 0 | ret = NULL; |
120 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_X509_LIB); |
121 | 1.25M | } else { |
122 | 1.25M | *pval = (ASN1_VALUE *)ret; |
123 | 1.25M | } |
124 | | |
125 | 1.25M | return ret != NULL; |
126 | 1.25M | } |
127 | | |
128 | | static int x509_pubkey_ex_d2i_ex(ASN1_VALUE **pval, |
129 | | const unsigned char **in, long len, |
130 | | const ASN1_ITEM *it, int tag, int aclass, |
131 | | char opt, ASN1_TLC *ctx, OSSL_LIB_CTX *libctx, |
132 | | const char *propq) |
133 | 2.45M | { |
134 | 2.45M | const unsigned char *in_saved = *in; |
135 | 2.45M | size_t publen; |
136 | 2.45M | X509_PUBKEY *pubkey; |
137 | 2.45M | int ret; |
138 | 2.45M | OSSL_DECODER_CTX *dctx = NULL; |
139 | 2.45M | unsigned char *tmpbuf = NULL; |
140 | | |
141 | 2.45M | if (*pval == NULL && !x509_pubkey_ex_new_ex(pval, it, libctx, propq)) |
142 | 0 | return 0; |
143 | 2.45M | if (!x509_pubkey_ex_populate(pval, NULL)) { |
144 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_X509_LIB); |
145 | 0 | return 0; |
146 | 0 | } |
147 | | |
148 | | /* This ensures that |*in| advances properly no matter what */ |
149 | 2.45M | if ((ret = asn1_item_embed_d2i(pval, in, len, |
150 | 2.45M | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL), |
151 | 2.45M | tag, aclass, opt, ctx, 0, |
152 | 2.45M | NULL, NULL)) |
153 | 2.45M | <= 0) { |
154 | 403k | x509_pubkey_ex_free(pval, it); |
155 | 403k | return ret; |
156 | 403k | } |
157 | | |
158 | 2.04M | publen = *in - in_saved; |
159 | 2.04M | if (!ossl_assert(publen > 0)) { |
160 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_INTERNAL_ERROR); |
161 | 0 | return 0; |
162 | 0 | } |
163 | | |
164 | 2.04M | pubkey = (X509_PUBKEY *)*pval; |
165 | 2.04M | EVP_PKEY_free(pubkey->pkey); |
166 | 2.04M | pubkey->pkey = NULL; |
167 | | |
168 | | /* |
169 | | * Opportunistically decode the key but remove any non fatal errors |
170 | | * from the queue. Subsequent explicit attempts to decode/use the key |
171 | | * will return an appropriate error. |
172 | | */ |
173 | 2.04M | ERR_set_mark(); |
174 | | |
175 | | /* |
176 | | * Try to decode with legacy method first. This ensures that engines |
177 | | * aren't overridden by providers. |
178 | | */ |
179 | 2.04M | if ((ret = x509_pubkey_decode(&pubkey->pkey, pubkey)) == -1) { |
180 | | /* -1 indicates a fatal error, like malloc failure */ |
181 | 0 | ERR_clear_last_mark(); |
182 | 0 | goto end; |
183 | 0 | } |
184 | | |
185 | | /* Try to decode it into an EVP_PKEY with OSSL_DECODER */ |
186 | 2.04M | if (ret <= 0 && !pubkey->flag_force_legacy) { |
187 | 1.08M | const unsigned char *p; |
188 | 1.08M | char txtoidname[OSSL_MAX_NAME_SIZE]; |
189 | 1.08M | size_t slen = publen; |
190 | | |
191 | | /* |
192 | | * The decoders don't know how to handle anything other than Universal |
193 | | * class so we modify the data accordingly. |
194 | | */ |
195 | 1.08M | if (aclass != V_ASN1_UNIVERSAL) { |
196 | 285k | tmpbuf = OPENSSL_memdup(in_saved, publen); |
197 | 285k | if (tmpbuf == NULL) |
198 | 0 | return 0; |
199 | 285k | in_saved = tmpbuf; |
200 | 285k | *tmpbuf = V_ASN1_CONSTRUCTED | V_ASN1_SEQUENCE; |
201 | 285k | } |
202 | 1.08M | p = in_saved; |
203 | | |
204 | 1.08M | if (OBJ_obj2txt(txtoidname, sizeof(txtoidname), |
205 | 1.08M | pubkey->algor->algorithm, 0) |
206 | 1.08M | <= 0) { |
207 | 13 | ERR_clear_last_mark(); |
208 | 13 | goto end; |
209 | 13 | } |
210 | 1.08M | if ((dctx = OSSL_DECODER_CTX_new_for_pkey(&pubkey->pkey, |
211 | 1.08M | "DER", "SubjectPublicKeyInfo", |
212 | 1.08M | txtoidname, EVP_PKEY_PUBLIC_KEY, |
213 | 1.08M | pubkey->libctx, |
214 | 1.08M | pubkey->propq)) |
215 | 1.08M | != NULL) |
216 | | /* |
217 | | * As said higher up, we're being opportunistic. In other words, |
218 | | * we don't care if we fail. |
219 | | */ |
220 | 1.08M | if (OSSL_DECODER_from_data(dctx, &p, &slen)) { |
221 | 527k | if (slen != 0) { |
222 | | /* |
223 | | * If we successfully decoded then we *must* consume all the |
224 | | * bytes. |
225 | | */ |
226 | 0 | ERR_clear_last_mark(); |
227 | 0 | ERR_raise(ERR_LIB_ASN1, EVP_R_DECODE_ERROR); |
228 | 0 | goto end; |
229 | 0 | } |
230 | 527k | } |
231 | 1.08M | } |
232 | | |
233 | 2.04M | ERR_pop_to_mark(); |
234 | 2.04M | ret = 1; |
235 | 2.04M | end: |
236 | 2.04M | OSSL_DECODER_CTX_free(dctx); |
237 | 2.04M | OPENSSL_free(tmpbuf); |
238 | 2.04M | return ret; |
239 | 2.04M | } |
240 | | |
241 | | static int x509_pubkey_ex_i2d(const ASN1_VALUE **pval, unsigned char **out, |
242 | | const ASN1_ITEM *it, int tag, int aclass) |
243 | 624k | { |
244 | 624k | return ASN1_item_ex_i2d(pval, out, ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL), |
245 | 624k | tag, aclass); |
246 | 624k | } |
247 | | |
248 | | static int x509_pubkey_ex_print(BIO *out, const ASN1_VALUE **pval, int indent, |
249 | | const char *fname, const ASN1_PCTX *pctx) |
250 | 70.6k | { |
251 | 70.6k | return ASN1_item_print(out, *pval, indent, |
252 | 70.6k | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL), pctx); |
253 | 70.6k | } |
254 | | |
255 | | static const ASN1_EXTERN_FUNCS x509_pubkey_ff = { |
256 | | NULL, |
257 | | NULL, |
258 | | x509_pubkey_ex_free, |
259 | | 0, /* Default clear behaviour is OK */ |
260 | | NULL, |
261 | | x509_pubkey_ex_i2d, |
262 | | x509_pubkey_ex_print, |
263 | | x509_pubkey_ex_new_ex, |
264 | | x509_pubkey_ex_d2i_ex, |
265 | | }; |
266 | | |
267 | 10.4M | IMPLEMENT_EXTERN_ASN1(X509_PUBKEY, V_ASN1_SEQUENCE, x509_pubkey_ff) |
268 | | IMPLEMENT_ASN1_FUNCTIONS(X509_PUBKEY) |
269 | | |
270 | | X509_PUBKEY *X509_PUBKEY_new_ex(OSSL_LIB_CTX *libctx, const char *propq) |
271 | 0 | { |
272 | 0 | X509_PUBKEY *pubkey = NULL; |
273 | |
|
274 | 0 | pubkey = (X509_PUBKEY *)ASN1_item_new_ex(X509_PUBKEY_it(), libctx, propq); |
275 | 0 | if (!x509_pubkey_set0_libctx(pubkey, libctx, propq)) { |
276 | 0 | X509_PUBKEY_free(pubkey); |
277 | 0 | pubkey = NULL; |
278 | 0 | } |
279 | 0 | return pubkey; |
280 | 0 | } |
281 | | |
282 | | /* |
283 | | * X509_PUBKEY_dup() must be implemented manually, because there is no |
284 | | * support for it in ASN1_EXTERN_FUNCS. |
285 | | */ |
286 | | X509_PUBKEY *X509_PUBKEY_dup(const X509_PUBKEY *a) |
287 | 0 | { |
288 | 0 | X509_PUBKEY *pubkey = OPENSSL_zalloc(sizeof(*pubkey)); |
289 | |
|
290 | 0 | if (pubkey == NULL) |
291 | 0 | return NULL; |
292 | 0 | if (!x509_pubkey_set0_libctx(pubkey, a->libctx, a->propq)) { |
293 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_X509_LIB); |
294 | 0 | x509_pubkey_ex_free((ASN1_VALUE **)&pubkey, |
295 | 0 | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL)); |
296 | 0 | return NULL; |
297 | 0 | } |
298 | 0 | if ((pubkey->algor = X509_ALGOR_dup(a->algor)) == NULL |
299 | 0 | || (pubkey->public_key = ASN1_BIT_STRING_new()) == NULL |
300 | 0 | || !ASN1_BIT_STRING_set(pubkey->public_key, |
301 | 0 | a->public_key->data, |
302 | 0 | a->public_key->length)) { |
303 | 0 | x509_pubkey_ex_free((ASN1_VALUE **)&pubkey, |
304 | 0 | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL)); |
305 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB); |
306 | 0 | return NULL; |
307 | 0 | } |
308 | | |
309 | 0 | if (a->pkey != NULL) { |
310 | 0 | ERR_set_mark(); |
311 | 0 | pubkey->pkey = EVP_PKEY_dup(a->pkey); |
312 | 0 | if (pubkey->pkey == NULL) { |
313 | 0 | pubkey->flag_force_legacy = 1; |
314 | 0 | if (x509_pubkey_decode(&pubkey->pkey, pubkey) <= 0) { |
315 | 0 | x509_pubkey_ex_free((ASN1_VALUE **)&pubkey, |
316 | 0 | ASN1_ITEM_rptr(X509_PUBKEY_INTERNAL)); |
317 | 0 | ERR_clear_last_mark(); |
318 | 0 | return NULL; |
319 | 0 | } |
320 | 0 | } |
321 | 0 | ERR_pop_to_mark(); |
322 | 0 | } |
323 | 0 | return pubkey; |
324 | 0 | } |
325 | | |
326 | | int X509_PUBKEY_set(X509_PUBKEY **x, EVP_PKEY *pkey) |
327 | 0 | { |
328 | 0 | X509_PUBKEY *pk = NULL; |
329 | |
|
330 | 0 | if (x == NULL || pkey == NULL) { |
331 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER); |
332 | 0 | return 0; |
333 | 0 | } |
334 | | |
335 | 0 | if (pkey->ameth != NULL) { |
336 | 0 | if ((pk = X509_PUBKEY_new()) == NULL) { |
337 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_ASN1_LIB); |
338 | 0 | goto error; |
339 | 0 | } |
340 | 0 | if (pkey->ameth->pub_encode != NULL) { |
341 | 0 | if (!pkey->ameth->pub_encode(pk, pkey)) { |
342 | 0 | ERR_raise(ERR_LIB_X509, X509_R_PUBLIC_KEY_ENCODE_ERROR); |
343 | 0 | goto error; |
344 | 0 | } |
345 | 0 | } else { |
346 | 0 | ERR_raise(ERR_LIB_X509, X509_R_METHOD_NOT_SUPPORTED); |
347 | 0 | goto error; |
348 | 0 | } |
349 | 0 | } else if (evp_pkey_is_provided(pkey)) { |
350 | 0 | unsigned char *der = NULL; |
351 | 0 | size_t derlen = 0; |
352 | 0 | OSSL_ENCODER_CTX *ectx = OSSL_ENCODER_CTX_new_for_pkey(pkey, EVP_PKEY_PUBLIC_KEY, |
353 | 0 | "DER", "SubjectPublicKeyInfo", |
354 | 0 | NULL); |
355 | |
|
356 | 0 | if (OSSL_ENCODER_to_data(ectx, &der, &derlen)) { |
357 | 0 | const unsigned char *pder = der; |
358 | |
|
359 | 0 | pk = d2i_X509_PUBKEY(NULL, &pder, (long)derlen); |
360 | 0 | } |
361 | |
|
362 | 0 | OSSL_ENCODER_CTX_free(ectx); |
363 | 0 | OPENSSL_free(der); |
364 | 0 | } |
365 | | |
366 | 0 | if (pk == NULL) { |
367 | 0 | ERR_raise(ERR_LIB_X509, X509_R_UNSUPPORTED_ALGORITHM); |
368 | 0 | goto error; |
369 | 0 | } |
370 | | |
371 | 0 | X509_PUBKEY_free(*x); |
372 | 0 | if (!EVP_PKEY_up_ref(pkey)) { |
373 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR); |
374 | 0 | goto error; |
375 | 0 | } |
376 | 0 | *x = pk; |
377 | | |
378 | | /* |
379 | | * pk->pkey is NULL when using the legacy routine, but is non-NULL when |
380 | | * going through the encoder, and for all intents and purposes, it's |
381 | | * a perfect copy of the public key portions of |pkey|, just not the same |
382 | | * instance. If that's all there was to pkey then we could simply return |
383 | | * early, right here. However, some application might very well depend on |
384 | | * the passed |pkey| being used and none other, so we spend a few more |
385 | | * cycles throwing away the newly created |pk->pkey| and replace it with |
386 | | * |pkey|. |
387 | | */ |
388 | 0 | if (pk->pkey != NULL) |
389 | 0 | EVP_PKEY_free(pk->pkey); |
390 | |
|
391 | 0 | pk->pkey = pkey; |
392 | 0 | return 1; |
393 | | |
394 | 0 | error: |
395 | 0 | X509_PUBKEY_free(pk); |
396 | 0 | return 0; |
397 | 0 | } |
398 | | |
399 | | /* |
400 | | * Attempt to decode a public key. |
401 | | * Returns 1 on success, 0 for a decode failure and -1 for a fatal |
402 | | * error e.g. malloc failure. |
403 | | * |
404 | | * This function is #legacy. |
405 | | */ |
406 | | static int x509_pubkey_decode(EVP_PKEY **ppkey, const X509_PUBKEY *key) |
407 | 1.66M | { |
408 | 1.66M | EVP_PKEY *pkey; |
409 | 1.66M | int nid; |
410 | | |
411 | 1.66M | nid = OBJ_obj2nid(key->algor->algorithm); |
412 | 1.66M | if (!key->flag_force_legacy) { |
413 | 875k | #ifndef OPENSSL_NO_ENGINE |
414 | 875k | ENGINE *e = NULL; |
415 | | |
416 | 875k | e = ENGINE_get_pkey_meth_engine(nid); |
417 | 875k | if (e == NULL) |
418 | 875k | return 0; |
419 | 0 | ENGINE_finish(e); |
420 | | #else |
421 | | return 0; |
422 | | #endif |
423 | 0 | } |
424 | | |
425 | 789k | pkey = EVP_PKEY_new(); |
426 | 789k | if (pkey == NULL) { |
427 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_EVP_LIB); |
428 | 0 | return -1; |
429 | 0 | } |
430 | | |
431 | 789k | if (!EVP_PKEY_set_type(pkey, nid)) { |
432 | 0 | ERR_raise(ERR_LIB_X509, X509_R_UNSUPPORTED_ALGORITHM); |
433 | 0 | goto error; |
434 | 0 | } |
435 | | |
436 | 789k | if (pkey->ameth->pub_decode) { |
437 | | /* |
438 | | * Treat any failure of pub_decode as a decode error. In |
439 | | * future we could have different return codes for decode |
440 | | * errors and fatal errors such as malloc failure. |
441 | | */ |
442 | 789k | if (!pkey->ameth->pub_decode(pkey, key)) |
443 | 353k | goto error; |
444 | 789k | } else { |
445 | 0 | ERR_raise(ERR_LIB_X509, X509_R_METHOD_NOT_SUPPORTED); |
446 | 0 | goto error; |
447 | 0 | } |
448 | | |
449 | 436k | *ppkey = pkey; |
450 | 436k | return 1; |
451 | | |
452 | 353k | error: |
453 | 353k | EVP_PKEY_free(pkey); |
454 | 353k | return 0; |
455 | 789k | } |
456 | | |
457 | | EVP_PKEY *X509_PUBKEY_get0(const X509_PUBKEY *key) |
458 | 2.23M | { |
459 | 2.23M | if (key == NULL) { |
460 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_PASSED_NULL_PARAMETER); |
461 | 0 | return NULL; |
462 | 0 | } |
463 | | |
464 | 2.23M | if (key->pkey == NULL) { |
465 | | /* We failed to decode the key when we loaded it, or it was never set */ |
466 | 504k | ERR_raise(ERR_LIB_EVP, EVP_R_DECODE_ERROR); |
467 | 504k | return NULL; |
468 | 504k | } |
469 | | |
470 | 1.72M | return key->pkey; |
471 | 2.23M | } |
472 | | |
473 | | EVP_PKEY *X509_PUBKEY_get(const X509_PUBKEY *key) |
474 | 971k | { |
475 | 971k | EVP_PKEY *ret = X509_PUBKEY_get0(key); |
476 | | |
477 | 971k | if (ret != NULL && !EVP_PKEY_up_ref(ret)) { |
478 | 0 | ERR_raise(ERR_LIB_X509, ERR_R_INTERNAL_ERROR); |
479 | 0 | ret = NULL; |
480 | 0 | } |
481 | 971k | return ret; |
482 | 971k | } |
483 | | |
484 | | /* |
485 | | * Now three pseudo ASN1 routines that take an EVP_PKEY structure and encode |
486 | | * or decode as X509_PUBKEY |
487 | | */ |
488 | | static EVP_PKEY *d2i_PUBKEY_int(EVP_PKEY **a, |
489 | | const unsigned char **pp, long length, |
490 | | OSSL_LIB_CTX *libctx, const char *propq, |
491 | | unsigned int force_legacy, |
492 | | X509_PUBKEY *(*d2i_x509_pubkey)(X509_PUBKEY **a, |
493 | | const unsigned char **in, |
494 | | long len)) |
495 | 1.22M | { |
496 | 1.22M | X509_PUBKEY *xpk, *xpk2 = NULL, **pxpk = NULL; |
497 | 1.22M | EVP_PKEY *pktmp = NULL; |
498 | 1.22M | const unsigned char *q; |
499 | | |
500 | 1.22M | q = *pp; |
501 | | |
502 | | /* |
503 | | * If libctx or propq are non-NULL, we take advantage of the reuse |
504 | | * feature. It's not generally recommended, but is safe enough for |
505 | | * newly created structures. |
506 | | */ |
507 | 1.22M | if (libctx != NULL || propq != NULL || force_legacy) { |
508 | 1.22M | xpk2 = OPENSSL_zalloc(sizeof(*xpk2)); |
509 | 1.22M | if (xpk2 == NULL) |
510 | 0 | return NULL; |
511 | 1.22M | if (!x509_pubkey_set0_libctx(xpk2, libctx, propq)) |
512 | 0 | goto end; |
513 | 1.22M | xpk2->flag_force_legacy = !!force_legacy; |
514 | 1.22M | pxpk = &xpk2; |
515 | 1.22M | } |
516 | 1.22M | xpk = d2i_x509_pubkey(pxpk, &q, length); |
517 | 1.22M | if (xpk == NULL) |
518 | 260k | goto end; |
519 | 967k | pktmp = X509_PUBKEY_get(xpk); |
520 | 967k | X509_PUBKEY_free(xpk); |
521 | 967k | xpk2 = NULL; /* We know that xpk == xpk2 */ |
522 | 967k | if (pktmp == NULL) |
523 | 437k | goto end; |
524 | 529k | *pp = q; |
525 | 529k | if (a != NULL) { |
526 | 0 | EVP_PKEY_free(*a); |
527 | 0 | *a = pktmp; |
528 | 0 | } |
529 | 1.22M | end: |
530 | 1.22M | X509_PUBKEY_free(xpk2); |
531 | 1.22M | return pktmp; |
532 | 529k | } |
533 | | |
534 | | /* For the algorithm specific d2i functions further down */ |
535 | | EVP_PKEY *ossl_d2i_PUBKEY_legacy(EVP_PKEY **a, const unsigned char **pp, |
536 | | long length) |
537 | 1.22M | { |
538 | 1.22M | return d2i_PUBKEY_int(a, pp, length, NULL, NULL, 1, d2i_X509_PUBKEY); |
539 | 1.22M | } |
540 | | |
541 | | EVP_PKEY *d2i_PUBKEY_ex(EVP_PKEY **a, const unsigned char **pp, long length, |
542 | | OSSL_LIB_CTX *libctx, const char *propq) |
543 | 7 | { |
544 | 7 | return d2i_PUBKEY_int(a, pp, length, libctx, propq, 0, d2i_X509_PUBKEY); |
545 | 7 | } |
546 | | |
547 | | EVP_PKEY *d2i_PUBKEY(EVP_PKEY **a, const unsigned char **pp, long length) |
548 | 0 | { |
549 | 0 | return d2i_PUBKEY_ex(a, pp, length, NULL, NULL); |
550 | 0 | } |
551 | | |
552 | | int i2d_PUBKEY(const EVP_PKEY *a, unsigned char **pp) |
553 | 0 | { |
554 | 0 | int ret = -1; |
555 | |
|
556 | 0 | if (a == NULL) |
557 | 0 | return 0; |
558 | 0 | if (a->ameth != NULL) { |
559 | 0 | X509_PUBKEY *xpk = NULL; |
560 | |
|
561 | 0 | if ((xpk = X509_PUBKEY_new()) == NULL) |
562 | 0 | return -1; |
563 | | |
564 | | /* pub_encode() only encode parameters, not the key itself */ |
565 | 0 | if (a->ameth->pub_encode != NULL && a->ameth->pub_encode(xpk, a)) { |
566 | 0 | xpk->pkey = (EVP_PKEY *)a; |
567 | 0 | ret = i2d_X509_PUBKEY(xpk, pp); |
568 | 0 | xpk->pkey = NULL; |
569 | 0 | } |
570 | 0 | X509_PUBKEY_free(xpk); |
571 | 0 | } else if (a->keymgmt != NULL) { |
572 | 0 | OSSL_ENCODER_CTX *ctx = OSSL_ENCODER_CTX_new_for_pkey(a, EVP_PKEY_PUBLIC_KEY, |
573 | 0 | "DER", "SubjectPublicKeyInfo", |
574 | 0 | NULL); |
575 | 0 | BIO *out = BIO_new(BIO_s_mem()); |
576 | 0 | BUF_MEM *buf = NULL; |
577 | |
|
578 | 0 | if (OSSL_ENCODER_CTX_get_num_encoders(ctx) != 0 |
579 | 0 | && out != NULL |
580 | 0 | && OSSL_ENCODER_to_bio(ctx, out) |
581 | 0 | && BIO_get_mem_ptr(out, &buf) > 0) { |
582 | 0 | ret = buf->length; |
583 | |
|
584 | 0 | if (pp != NULL) { |
585 | 0 | if (*pp == NULL) { |
586 | 0 | *pp = (unsigned char *)buf->data; |
587 | 0 | buf->length = 0; |
588 | 0 | buf->data = NULL; |
589 | 0 | } else { |
590 | 0 | memcpy(*pp, buf->data, ret); |
591 | 0 | *pp += ret; |
592 | 0 | } |
593 | 0 | } |
594 | 0 | } |
595 | 0 | BIO_free(out); |
596 | 0 | OSSL_ENCODER_CTX_free(ctx); |
597 | 0 | } |
598 | | |
599 | 0 | return ret; |
600 | 0 | } |
601 | | |
602 | | /* |
603 | | * The following are equivalents but which return RSA and DSA keys |
604 | | */ |
605 | | RSA *d2i_RSA_PUBKEY(RSA **a, const unsigned char **pp, long length) |
606 | 176k | { |
607 | 176k | EVP_PKEY *pkey; |
608 | 176k | RSA *key = NULL; |
609 | 176k | const unsigned char *q; |
610 | | |
611 | 176k | q = *pp; |
612 | 176k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
613 | 176k | if (pkey == NULL) |
614 | 52.4k | return NULL; |
615 | 123k | key = EVP_PKEY_get1_RSA(pkey); |
616 | 123k | EVP_PKEY_free(pkey); |
617 | 123k | if (key == NULL) |
618 | 0 | return NULL; |
619 | 123k | *pp = q; |
620 | 123k | if (a != NULL) { |
621 | 0 | RSA_free(*a); |
622 | 0 | *a = key; |
623 | 0 | } |
624 | 123k | return key; |
625 | 123k | } |
626 | | |
627 | | int i2d_RSA_PUBKEY(const RSA *a, unsigned char **pp) |
628 | 0 | { |
629 | 0 | EVP_PKEY *pktmp; |
630 | 0 | int ret; |
631 | 0 | if (!a) |
632 | 0 | return 0; |
633 | 0 | pktmp = EVP_PKEY_new(); |
634 | 0 | if (pktmp == NULL) { |
635 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
636 | 0 | return -1; |
637 | 0 | } |
638 | 0 | (void)EVP_PKEY_assign_RSA(pktmp, (RSA *)a); |
639 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
640 | 0 | pktmp->pkey.ptr = NULL; |
641 | 0 | EVP_PKEY_free(pktmp); |
642 | 0 | return ret; |
643 | 0 | } |
644 | | |
645 | | #ifndef OPENSSL_NO_DH |
646 | | DH *ossl_d2i_DH_PUBKEY(DH **a, const unsigned char **pp, long length) |
647 | 25.4k | { |
648 | 25.4k | EVP_PKEY *pkey; |
649 | 25.4k | DH *key = NULL; |
650 | 25.4k | const unsigned char *q; |
651 | | |
652 | 25.4k | q = *pp; |
653 | 25.4k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
654 | 25.4k | if (pkey == NULL) |
655 | 19.8k | return NULL; |
656 | 5.59k | if (EVP_PKEY_get_id(pkey) == EVP_PKEY_DH) |
657 | 5.59k | key = EVP_PKEY_get1_DH(pkey); |
658 | 5.59k | EVP_PKEY_free(pkey); |
659 | 5.59k | if (key == NULL) |
660 | 0 | return NULL; |
661 | 5.59k | *pp = q; |
662 | 5.59k | if (a != NULL) { |
663 | 0 | DH_free(*a); |
664 | 0 | *a = key; |
665 | 0 | } |
666 | 5.59k | return key; |
667 | 5.59k | } |
668 | | |
669 | | int ossl_i2d_DH_PUBKEY(const DH *a, unsigned char **pp) |
670 | 0 | { |
671 | 0 | EVP_PKEY *pktmp; |
672 | 0 | int ret; |
673 | 0 | if (!a) |
674 | 0 | return 0; |
675 | 0 | pktmp = EVP_PKEY_new(); |
676 | 0 | if (pktmp == NULL) { |
677 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
678 | 0 | return -1; |
679 | 0 | } |
680 | 0 | (void)EVP_PKEY_assign_DH(pktmp, (DH *)a); |
681 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
682 | 0 | pktmp->pkey.ptr = NULL; |
683 | 0 | EVP_PKEY_free(pktmp); |
684 | 0 | return ret; |
685 | 0 | } |
686 | | |
687 | | DH *ossl_d2i_DHx_PUBKEY(DH **a, const unsigned char **pp, long length) |
688 | 66.7k | { |
689 | 66.7k | EVP_PKEY *pkey; |
690 | 66.7k | DH *key = NULL; |
691 | 66.7k | const unsigned char *q; |
692 | | |
693 | 66.7k | q = *pp; |
694 | 66.7k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
695 | 66.7k | if (pkey == NULL) |
696 | 43.5k | return NULL; |
697 | 23.1k | if (EVP_PKEY_get_id(pkey) == EVP_PKEY_DHX) |
698 | 23.1k | key = EVP_PKEY_get1_DH(pkey); |
699 | 23.1k | EVP_PKEY_free(pkey); |
700 | 23.1k | if (key == NULL) |
701 | 0 | return NULL; |
702 | 23.1k | *pp = q; |
703 | 23.1k | if (a != NULL) { |
704 | 0 | DH_free(*a); |
705 | 0 | *a = key; |
706 | 0 | } |
707 | 23.1k | return key; |
708 | 23.1k | } |
709 | | |
710 | | int ossl_i2d_DHx_PUBKEY(const DH *a, unsigned char **pp) |
711 | 0 | { |
712 | 0 | EVP_PKEY *pktmp; |
713 | 0 | int ret; |
714 | 0 | if (!a) |
715 | 0 | return 0; |
716 | 0 | pktmp = EVP_PKEY_new(); |
717 | 0 | if (pktmp == NULL) { |
718 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
719 | 0 | return -1; |
720 | 0 | } |
721 | 0 | (void)EVP_PKEY_assign(pktmp, EVP_PKEY_DHX, (DH *)a); |
722 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
723 | 0 | pktmp->pkey.ptr = NULL; |
724 | 0 | EVP_PKEY_free(pktmp); |
725 | 0 | return ret; |
726 | 0 | } |
727 | | #endif |
728 | | |
729 | | #ifndef OPENSSL_NO_DSA |
730 | | DSA *d2i_DSA_PUBKEY(DSA **a, const unsigned char **pp, long length) |
731 | 139k | { |
732 | 139k | EVP_PKEY *pkey; |
733 | 139k | DSA *key = NULL; |
734 | 139k | const unsigned char *q; |
735 | | |
736 | 139k | q = *pp; |
737 | 139k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
738 | 139k | if (pkey == NULL) |
739 | 67.4k | return NULL; |
740 | 71.9k | key = EVP_PKEY_get1_DSA(pkey); |
741 | 71.9k | EVP_PKEY_free(pkey); |
742 | 71.9k | if (key == NULL) |
743 | 0 | return NULL; |
744 | 71.9k | *pp = q; |
745 | 71.9k | if (a != NULL) { |
746 | 0 | DSA_free(*a); |
747 | 0 | *a = key; |
748 | 0 | } |
749 | 71.9k | return key; |
750 | 71.9k | } |
751 | | |
752 | | /* Called from decoders; disallows provided DSA keys without parameters. */ |
753 | | DSA *ossl_d2i_DSA_PUBKEY(DSA **a, const unsigned char **pp, long length) |
754 | 139k | { |
755 | 139k | DSA *key = NULL; |
756 | 139k | const unsigned char *data; |
757 | 139k | const BIGNUM *p, *q, *g; |
758 | | |
759 | 139k | data = *pp; |
760 | 139k | key = d2i_DSA_PUBKEY(NULL, &data, length); |
761 | 139k | if (key == NULL) |
762 | 67.4k | return NULL; |
763 | 71.9k | DSA_get0_pqg(key, &p, &q, &g); |
764 | 71.9k | if (p == NULL || q == NULL || g == NULL) { |
765 | 1.43k | DSA_free(key); |
766 | 1.43k | return NULL; |
767 | 1.43k | } |
768 | 70.5k | *pp = data; |
769 | 70.5k | if (a != NULL) { |
770 | 0 | DSA_free(*a); |
771 | 0 | *a = key; |
772 | 0 | } |
773 | 70.5k | return key; |
774 | 71.9k | } |
775 | | |
776 | | int i2d_DSA_PUBKEY(const DSA *a, unsigned char **pp) |
777 | 0 | { |
778 | 0 | EVP_PKEY *pktmp; |
779 | 0 | int ret; |
780 | 0 | if (!a) |
781 | 0 | return 0; |
782 | 0 | pktmp = EVP_PKEY_new(); |
783 | 0 | if (pktmp == NULL) { |
784 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
785 | 0 | return -1; |
786 | 0 | } |
787 | 0 | (void)EVP_PKEY_assign_DSA(pktmp, (DSA *)a); |
788 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
789 | 0 | pktmp->pkey.ptr = NULL; |
790 | 0 | EVP_PKEY_free(pktmp); |
791 | 0 | return ret; |
792 | 0 | } |
793 | | #endif |
794 | | |
795 | | #ifndef OPENSSL_NO_EC |
796 | | EC_KEY *d2i_EC_PUBKEY(EC_KEY **a, const unsigned char **pp, long length) |
797 | 688k | { |
798 | 688k | EVP_PKEY *pkey; |
799 | 688k | EC_KEY *key = NULL; |
800 | 688k | const unsigned char *q; |
801 | 688k | int type; |
802 | | |
803 | 688k | q = *pp; |
804 | 688k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
805 | 688k | if (pkey == NULL) |
806 | 386k | return NULL; |
807 | 301k | type = EVP_PKEY_get_id(pkey); |
808 | 301k | if (type == EVP_PKEY_EC || type == EVP_PKEY_SM2) |
809 | 301k | key = EVP_PKEY_get1_EC_KEY(pkey); |
810 | 301k | EVP_PKEY_free(pkey); |
811 | 301k | if (key == NULL) |
812 | 0 | return NULL; |
813 | 301k | *pp = q; |
814 | 301k | if (a != NULL) { |
815 | 0 | EC_KEY_free(*a); |
816 | 0 | *a = key; |
817 | 0 | } |
818 | 301k | return key; |
819 | 301k | } |
820 | | |
821 | | int i2d_EC_PUBKEY(const EC_KEY *a, unsigned char **pp) |
822 | 0 | { |
823 | 0 | EVP_PKEY *pktmp; |
824 | 0 | int ret; |
825 | |
|
826 | 0 | if (a == NULL) |
827 | 0 | return 0; |
828 | 0 | if ((pktmp = EVP_PKEY_new()) == NULL) { |
829 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
830 | 0 | return -1; |
831 | 0 | } |
832 | 0 | (void)EVP_PKEY_assign_EC_KEY(pktmp, (EC_KEY *)a); |
833 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
834 | 0 | pktmp->pkey.ptr = NULL; |
835 | 0 | EVP_PKEY_free(pktmp); |
836 | 0 | return ret; |
837 | 0 | } |
838 | | |
839 | | #ifndef OPENSSL_NO_ECX |
840 | | ECX_KEY *ossl_d2i_ED25519_PUBKEY(ECX_KEY **a, |
841 | | const unsigned char **pp, long length) |
842 | 35.6k | { |
843 | 35.6k | EVP_PKEY *pkey; |
844 | 35.6k | ECX_KEY *key = NULL; |
845 | 35.6k | const unsigned char *q; |
846 | | |
847 | 35.6k | q = *pp; |
848 | 35.6k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
849 | 35.6k | if (pkey == NULL) |
850 | 35.3k | return NULL; |
851 | 334 | key = ossl_evp_pkey_get1_ED25519(pkey); |
852 | 334 | EVP_PKEY_free(pkey); |
853 | 334 | if (key == NULL) |
854 | 0 | return NULL; |
855 | 334 | *pp = q; |
856 | 334 | if (a != NULL) { |
857 | 0 | ossl_ecx_key_free(*a); |
858 | 0 | *a = key; |
859 | 0 | } |
860 | 334 | return key; |
861 | 334 | } |
862 | | |
863 | | int ossl_i2d_ED25519_PUBKEY(const ECX_KEY *a, unsigned char **pp) |
864 | 0 | { |
865 | 0 | EVP_PKEY *pktmp; |
866 | 0 | int ret; |
867 | |
|
868 | 0 | if (a == NULL) |
869 | 0 | return 0; |
870 | 0 | if ((pktmp = EVP_PKEY_new()) == NULL) { |
871 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
872 | 0 | return -1; |
873 | 0 | } |
874 | 0 | (void)EVP_PKEY_assign(pktmp, EVP_PKEY_ED25519, (ECX_KEY *)a); |
875 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
876 | 0 | pktmp->pkey.ptr = NULL; |
877 | 0 | EVP_PKEY_free(pktmp); |
878 | 0 | return ret; |
879 | 0 | } |
880 | | |
881 | | ECX_KEY *ossl_d2i_ED448_PUBKEY(ECX_KEY **a, |
882 | | const unsigned char **pp, long length) |
883 | 29.4k | { |
884 | 29.4k | EVP_PKEY *pkey; |
885 | 29.4k | ECX_KEY *key = NULL; |
886 | 29.4k | const unsigned char *q; |
887 | | |
888 | 29.4k | q = *pp; |
889 | 29.4k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
890 | 29.4k | if (pkey == NULL) |
891 | 29.0k | return NULL; |
892 | 335 | if (EVP_PKEY_get_id(pkey) == EVP_PKEY_ED448) |
893 | 335 | key = ossl_evp_pkey_get1_ED448(pkey); |
894 | 335 | EVP_PKEY_free(pkey); |
895 | 335 | if (key == NULL) |
896 | 0 | return NULL; |
897 | 335 | *pp = q; |
898 | 335 | if (a != NULL) { |
899 | 0 | ossl_ecx_key_free(*a); |
900 | 0 | *a = key; |
901 | 0 | } |
902 | 335 | return key; |
903 | 335 | } |
904 | | |
905 | | int ossl_i2d_ED448_PUBKEY(const ECX_KEY *a, unsigned char **pp) |
906 | 0 | { |
907 | 0 | EVP_PKEY *pktmp; |
908 | 0 | int ret; |
909 | |
|
910 | 0 | if (a == NULL) |
911 | 0 | return 0; |
912 | 0 | if ((pktmp = EVP_PKEY_new()) == NULL) { |
913 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
914 | 0 | return -1; |
915 | 0 | } |
916 | 0 | (void)EVP_PKEY_assign(pktmp, EVP_PKEY_ED448, (ECX_KEY *)a); |
917 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
918 | 0 | pktmp->pkey.ptr = NULL; |
919 | 0 | EVP_PKEY_free(pktmp); |
920 | 0 | return ret; |
921 | 0 | } |
922 | | |
923 | | ECX_KEY *ossl_d2i_X25519_PUBKEY(ECX_KEY **a, |
924 | | const unsigned char **pp, long length) |
925 | 33.4k | { |
926 | 33.4k | EVP_PKEY *pkey; |
927 | 33.4k | ECX_KEY *key = NULL; |
928 | 33.4k | const unsigned char *q; |
929 | | |
930 | 33.4k | q = *pp; |
931 | 33.4k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
932 | 33.4k | if (pkey == NULL) |
933 | 31.8k | return NULL; |
934 | 1.64k | if (EVP_PKEY_get_id(pkey) == EVP_PKEY_X25519) |
935 | 1.64k | key = ossl_evp_pkey_get1_X25519(pkey); |
936 | 1.64k | EVP_PKEY_free(pkey); |
937 | 1.64k | if (key == NULL) |
938 | 0 | return NULL; |
939 | 1.64k | *pp = q; |
940 | 1.64k | if (a != NULL) { |
941 | 0 | ossl_ecx_key_free(*a); |
942 | 0 | *a = key; |
943 | 0 | } |
944 | 1.64k | return key; |
945 | 1.64k | } |
946 | | |
947 | | int ossl_i2d_X25519_PUBKEY(const ECX_KEY *a, unsigned char **pp) |
948 | 0 | { |
949 | 0 | EVP_PKEY *pktmp; |
950 | 0 | int ret; |
951 | |
|
952 | 0 | if (a == NULL) |
953 | 0 | return 0; |
954 | 0 | if ((pktmp = EVP_PKEY_new()) == NULL) { |
955 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
956 | 0 | return -1; |
957 | 0 | } |
958 | 0 | (void)EVP_PKEY_assign(pktmp, EVP_PKEY_X25519, (ECX_KEY *)a); |
959 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
960 | 0 | pktmp->pkey.ptr = NULL; |
961 | 0 | EVP_PKEY_free(pktmp); |
962 | 0 | return ret; |
963 | 0 | } |
964 | | |
965 | | ECX_KEY *ossl_d2i_X448_PUBKEY(ECX_KEY **a, |
966 | | const unsigned char **pp, long length) |
967 | 32.6k | { |
968 | 32.6k | EVP_PKEY *pkey; |
969 | 32.6k | ECX_KEY *key = NULL; |
970 | 32.6k | const unsigned char *q; |
971 | | |
972 | 32.6k | q = *pp; |
973 | 32.6k | pkey = ossl_d2i_PUBKEY_legacy(NULL, &q, length); |
974 | 32.6k | if (pkey == NULL) |
975 | 31.7k | return NULL; |
976 | 891 | if (EVP_PKEY_get_id(pkey) == EVP_PKEY_X448) |
977 | 891 | key = ossl_evp_pkey_get1_X448(pkey); |
978 | 891 | EVP_PKEY_free(pkey); |
979 | 891 | if (key == NULL) |
980 | 0 | return NULL; |
981 | 891 | *pp = q; |
982 | 891 | if (a != NULL) { |
983 | 0 | ossl_ecx_key_free(*a); |
984 | 0 | *a = key; |
985 | 0 | } |
986 | 891 | return key; |
987 | 891 | } |
988 | | |
989 | | int ossl_i2d_X448_PUBKEY(const ECX_KEY *a, unsigned char **pp) |
990 | 0 | { |
991 | 0 | EVP_PKEY *pktmp; |
992 | 0 | int ret; |
993 | |
|
994 | 0 | if (a == NULL) |
995 | 0 | return 0; |
996 | 0 | if ((pktmp = EVP_PKEY_new()) == NULL) { |
997 | 0 | ERR_raise(ERR_LIB_ASN1, ERR_R_EVP_LIB); |
998 | 0 | return -1; |
999 | 0 | } |
1000 | 0 | (void)EVP_PKEY_assign(pktmp, EVP_PKEY_X448, (ECX_KEY *)a); |
1001 | 0 | ret = i2d_PUBKEY(pktmp, pp); |
1002 | 0 | pktmp->pkey.ptr = NULL; |
1003 | 0 | EVP_PKEY_free(pktmp); |
1004 | 0 | return ret; |
1005 | 0 | } |
1006 | | |
1007 | | #endif /* OPENSSL_NO_ECX */ |
1008 | | #endif |
1009 | | |
1010 | | void X509_PUBKEY_set0_public_key(X509_PUBKEY *pub, |
1011 | | unsigned char *penc, int penclen) |
1012 | 0 | { |
1013 | 0 | ASN1_STRING_set0(pub->public_key, penc, penclen); |
1014 | 0 | ossl_asn1_string_set_bits_left(pub->public_key, 0); |
1015 | 0 | } |
1016 | | |
1017 | | int X509_PUBKEY_set0_param(X509_PUBKEY *pub, ASN1_OBJECT *aobj, |
1018 | | int ptype, void *pval, |
1019 | | unsigned char *penc, int penclen) |
1020 | 0 | { |
1021 | 0 | if (!X509_ALGOR_set0(pub->algor, aobj, ptype, pval)) |
1022 | 0 | return 0; |
1023 | 0 | if (penc != NULL) |
1024 | 0 | X509_PUBKEY_set0_public_key(pub, penc, penclen); |
1025 | 0 | return 1; |
1026 | 0 | } |
1027 | | |
1028 | | int X509_PUBKEY_get0_param(ASN1_OBJECT **ppkalg, |
1029 | | const unsigned char **pk, int *ppklen, |
1030 | | X509_ALGOR **pa, const X509_PUBKEY *pub) |
1031 | 1.99M | { |
1032 | 1.99M | if (ppkalg) |
1033 | 38.8k | *ppkalg = pub->algor->algorithm; |
1034 | 1.99M | if (pk) { |
1035 | 970k | *pk = pub->public_key->data; |
1036 | 970k | *ppklen = pub->public_key->length; |
1037 | 970k | } |
1038 | 1.99M | if (pa) |
1039 | 1.95M | *pa = pub->algor; |
1040 | 1.99M | return 1; |
1041 | 1.99M | } |
1042 | | |
1043 | | ASN1_BIT_STRING *X509_get0_pubkey_bitstr(const X509 *x) |
1044 | 601 | { |
1045 | 601 | if (x == NULL) |
1046 | 0 | return NULL; |
1047 | 601 | return x->cert_info.key->public_key; |
1048 | 601 | } |
1049 | | |
1050 | | /* Returns 1 for equal, 0, for non-equal, < 0 on error */ |
1051 | | int X509_PUBKEY_eq(const X509_PUBKEY *a, const X509_PUBKEY *b) |
1052 | 0 | { |
1053 | 0 | X509_ALGOR *algA, *algB; |
1054 | 0 | EVP_PKEY *pA, *pB; |
1055 | |
|
1056 | 0 | if (a == b) |
1057 | 0 | return 1; |
1058 | 0 | if (a == NULL || b == NULL) |
1059 | 0 | return 0; |
1060 | 0 | if (!X509_PUBKEY_get0_param(NULL, NULL, NULL, &algA, a) || algA == NULL |
1061 | 0 | || !X509_PUBKEY_get0_param(NULL, NULL, NULL, &algB, b) || algB == NULL) |
1062 | 0 | return -2; |
1063 | 0 | if (X509_ALGOR_cmp(algA, algB) != 0) |
1064 | 0 | return 0; |
1065 | 0 | if ((pA = X509_PUBKEY_get0(a)) == NULL |
1066 | 0 | || (pB = X509_PUBKEY_get0(b)) == NULL) |
1067 | 0 | return -2; |
1068 | 0 | return EVP_PKEY_eq(pA, pB); |
1069 | 0 | } |
1070 | | |
1071 | | int ossl_x509_PUBKEY_get0_libctx(OSSL_LIB_CTX **plibctx, const char **ppropq, |
1072 | | const X509_PUBKEY *key) |
1073 | 637k | { |
1074 | 637k | if (plibctx) |
1075 | 637k | *plibctx = key->libctx; |
1076 | 637k | if (ppropq) |
1077 | 637k | *ppropq = key->propq; |
1078 | 637k | return 1; |
1079 | 637k | } |