/src/gnutls/lib/x509/privkey_pkcs8.c
Line  | Count  | Source (jump to first uncovered line)  | 
1  |  | /*  | 
2  |  |  * Copyright (C) 2003-2016 Free Software Foundation, Inc.  | 
3  |  |  * Copyright (C) 2014-2017 Red Hat  | 
4  |  |  * Copyright (C) 2014-2016 Nikos Mavrogiannopoulos  | 
5  |  |  *  | 
6  |  |  * Author: Nikos Mavrogiannopoulos  | 
7  |  |  *  | 
8  |  |  * This file is part of GnuTLS.  | 
9  |  |  *  | 
10  |  |  * The GnuTLS is free software; you can redistribute it and/or  | 
11  |  |  * modify it under the terms of the GNU Lesser General Public License  | 
12  |  |  * as published by the Free Software Foundation; either version 2.1 of  | 
13  |  |  * the License, or (at your option) any later version.  | 
14  |  |  *  | 
15  |  |  * This library is distributed in the hope that it will be useful, but  | 
16  |  |  * WITHOUT ANY WARRANTY; without even the implied warranty of  | 
17  |  |  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the GNU  | 
18  |  |  * Lesser General Public License for more details.  | 
19  |  |  *  | 
20  |  |  * You should have received a copy of the GNU Lesser General Public License  | 
21  |  |  * along with this program.  If not, see <https://www.gnu.org/licenses/>  | 
22  |  |  *  | 
23  |  |  */  | 
24  |  |  | 
25  |  | #include "gnutls_int.h"  | 
26  |  |  | 
27  |  | #include "datum.h"  | 
28  |  | #include "global.h"  | 
29  |  | #include "errors.h"  | 
30  |  | #include "common.h"  | 
31  |  | #include "x509.h"  | 
32  |  | #include "x509_b64.h"  | 
33  |  | #include "x509_int.h"  | 
34  |  | #include "pkcs7_int.h"  | 
35  |  | #include "algorithms.h"  | 
36  |  | #include "num.h"  | 
37  |  | #include "random.h"  | 
38  |  | #include "pk.h"  | 
39  |  | #include "attributes.h"  | 
40  |  | #include "prov-seed.h"  | 
41  |  | #include "intprops.h"  | 
42  |  |  | 
43  |  | static int _decode_pkcs8_ecc_key(asn1_node pkcs8_asn,  | 
44  |  |          gnutls_x509_privkey_t pkey);  | 
45  |  | static int pkcs8_key_info(const gnutls_datum_t *raw_key,  | 
46  |  |         const struct pkcs_cipher_schema_st **p,  | 
47  |  |         struct pbkdf2_params *kdf_params, char **oid);  | 
48  |  |  | 
49  |  | static int decode_private_key_info(const gnutls_datum_t *der,  | 
50  |  |            gnutls_x509_privkey_t pkey);  | 
51  |  |  | 
52  | 0  | #define PEM_PKCS8 "ENCRYPTED PRIVATE KEY"  | 
53  | 0  | #define PEM_UNENCRYPTED_PKCS8 "PRIVATE KEY"  | 
54  |  |  | 
55  |  | /* Returns a negative error code if the encryption schema in  | 
56  |  |  * the OID is not supported. The schema ID is returned.  | 
57  |  |  */  | 
58  |  | /* Encodes a private key to the raw format PKCS #8 needs.  | 
59  |  |  * For RSA it is a PKCS #1 DER private key and for DSA it is  | 
60  |  |  * an ASN.1 INTEGER of the x value.  | 
61  |  |  */  | 
62  |  | inline static int _encode_privkey(gnutls_x509_privkey_t pkey,  | 
63  |  |           gnutls_datum_t *raw)  | 
64  | 0  | { | 
65  | 0  |   int ret;  | 
66  | 0  |   asn1_node spk = NULL;  | 
67  |  | 
  | 
68  | 0  |   switch (pkey->params.algo) { | 
69  | 0  |   case GNUTLS_PK_EDDSA_ED25519:  | 
70  | 0  |   case GNUTLS_PK_EDDSA_ED448:  | 
71  | 0  |   case GNUTLS_PK_ECDH_X25519:  | 
72  | 0  |   case GNUTLS_PK_ECDH_X448:  | 
73  |  |     /* we encode as octet string (which is going to be stored inside  | 
74  |  |      * another octet string). No comments. */  | 
75  | 0  |     ret = _gnutls_x509_encode_string(ASN1_ETYPE_OCTET_STRING,  | 
76  | 0  |              pkey->params.raw_priv.data,  | 
77  | 0  |              pkey->params.raw_priv.size,  | 
78  | 0  |              raw);  | 
79  | 0  |     if (ret < 0)  | 
80  | 0  |       gnutls_assert();  | 
81  | 0  |     return ret;  | 
82  | 0  |   case GNUTLS_PK_MLDSA44:  | 
83  | 0  |   case GNUTLS_PK_MLDSA65:  | 
84  | 0  |   case GNUTLS_PK_MLDSA87: { | 
85  | 0  |     gnutls_datum_t concatenated_key = { NULL, 0 }; | 
86  | 0  |     size_t concatenated_key_size = 0;  | 
87  |  | 
  | 
88  | 0  |     if (!INT_ADD_OK(pkey->params.raw_priv.size,  | 
89  | 0  |         pkey->params.raw_pub.size,  | 
90  | 0  |         &concatenated_key_size))  | 
91  | 0  |       return gnutls_assert_val(GNUTLS_E_INVALID_REQUEST);  | 
92  | 0  |     ret = _gnutls_set_datum(&concatenated_key,  | 
93  | 0  |           pkey->params.raw_priv.data,  | 
94  | 0  |           pkey->params.raw_priv.size);  | 
95  | 0  |     if (ret < 0)  | 
96  | 0  |       return gnutls_assert_val(ret);  | 
97  | 0  |     concatenated_key.data = gnutls_realloc_fast(  | 
98  | 0  |       concatenated_key.data, concatenated_key_size);  | 
99  | 0  |     if (!concatenated_key.data)  | 
100  | 0  |       return gnutls_assert_val(GNUTLS_E_MEMORY_ERROR);  | 
101  | 0  |     concatenated_key.size = concatenated_key_size;  | 
102  | 0  |     memcpy(&concatenated_key.data[pkey->params.raw_priv.size],  | 
103  | 0  |            pkey->params.raw_pub.data, pkey->params.raw_pub.size);  | 
104  | 0  |     ret = _gnutls_x509_encode_string(ASN1_ETYPE_OCTET_STRING,  | 
105  | 0  |              concatenated_key.data,  | 
106  | 0  |              concatenated_key.size, raw);  | 
107  | 0  |     _gnutls_free_key_datum(&concatenated_key);  | 
108  | 0  |     if (ret < 0)  | 
109  | 0  |       gnutls_assert();  | 
110  | 0  |     return ret;  | 
111  | 0  |   }  | 
112  | 0  |   case GNUTLS_PK_GOST_01:  | 
113  | 0  |   case GNUTLS_PK_GOST_12_256:  | 
114  | 0  |   case GNUTLS_PK_GOST_12_512:  | 
115  | 0  |     if ((ret = asn1_create_element(_gnutls_get_gnutls_asn(),  | 
116  | 0  |                  "GNUTLS.GOSTPrivateKey",  | 
117  | 0  |                  &spk)) != ASN1_SUCCESS) { | 
118  | 0  |       gnutls_assert();  | 
119  | 0  |       ret = _gnutls_asn2err(ret);  | 
120  | 0  |       goto error;  | 
121  | 0  |     }  | 
122  |  |  | 
123  | 0  |     ret = _gnutls_x509_write_key_int_le(  | 
124  | 0  |       spk, "", pkey->params.params[GOST_K]);  | 
125  | 0  |     if (ret < 0) { | 
126  | 0  |       gnutls_assert();  | 
127  | 0  |       goto error;  | 
128  | 0  |     }  | 
129  |  |  | 
130  | 0  |     ret = _gnutls_x509_der_encode(spk, "", raw, 0);  | 
131  | 0  |     if (ret < 0) { | 
132  | 0  |       gnutls_assert();  | 
133  | 0  |       goto error;  | 
134  | 0  |     }  | 
135  |  |  | 
136  | 0  |     asn1_delete_structure2(&spk, ASN1_DELETE_FLAG_ZEROIZE);  | 
137  | 0  |     break;  | 
138  |  |  | 
139  | 0  |   case GNUTLS_PK_RSA:  | 
140  | 0  |   case GNUTLS_PK_RSA_PSS:  | 
141  | 0  |   case GNUTLS_PK_RSA_OAEP:  | 
142  | 0  |   case GNUTLS_PK_ECDSA:  | 
143  | 0  |     ret = _gnutls_x509_export_int2(pkey->key, GNUTLS_X509_FMT_DER,  | 
144  | 0  |                  "", raw);  | 
145  | 0  |     if (ret < 0) { | 
146  | 0  |       gnutls_assert();  | 
147  | 0  |       goto error;  | 
148  | 0  |     }  | 
149  |  |  | 
150  | 0  |     break;  | 
151  | 0  |   case GNUTLS_PK_DSA:  | 
152  |  |     /* DSAPublicKey == INTEGER */  | 
153  | 0  |     if ((ret = asn1_create_element(_gnutls_get_gnutls_asn(),  | 
154  | 0  |                  "GNUTLS.DSAPublicKey", &spk)) !=  | 
155  | 0  |         ASN1_SUCCESS) { | 
156  | 0  |       gnutls_assert();  | 
157  | 0  |       return _gnutls_asn2err(ret);  | 
158  | 0  |     }  | 
159  |  |  | 
160  | 0  |     ret = _gnutls_x509_write_int(spk, "", pkey->params.params[4],  | 
161  | 0  |                1);  | 
162  | 0  |     if (ret < 0) { | 
163  | 0  |       gnutls_assert();  | 
164  | 0  |       goto error;  | 
165  | 0  |     }  | 
166  | 0  |     ret = _gnutls_x509_der_encode(spk, "", raw, 0);  | 
167  | 0  |     if (ret < 0) { | 
168  | 0  |       gnutls_assert();  | 
169  | 0  |       goto error;  | 
170  | 0  |     }  | 
171  |  |  | 
172  | 0  |     asn1_delete_structure2(&spk, ASN1_DELETE_FLAG_ZEROIZE);  | 
173  | 0  |     break;  | 
174  |  |  | 
175  | 0  |   default:  | 
176  | 0  |     gnutls_assert();  | 
177  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
178  | 0  |   }  | 
179  |  |  | 
180  | 0  |   return 0;  | 
181  |  |  | 
182  | 0  | error:  | 
183  | 0  |   asn1_delete_structure2(&spk, ASN1_DELETE_FLAG_ZEROIZE);  | 
184  | 0  |   asn1_delete_structure(&spk);  | 
185  | 0  |   return ret;  | 
186  | 0  | }  | 
187  |  |  | 
188  |  | /*   | 
189  |  |  * Encodes a PKCS #1 private key to a PKCS #8 private key  | 
190  |  |  * info. The output will be allocated and stored into der. Also  | 
191  |  |  * the asn1_node of private key info will be returned.  | 
192  |  |  */  | 
193  |  | static int encode_to_private_key_info(gnutls_x509_privkey_t pkey,  | 
194  |  |               gnutls_datum_t *der, asn1_node *pkey_info)  | 
195  | 0  | { | 
196  | 0  |   int result, len;  | 
197  | 0  |   uint8_t null = 0;  | 
198  | 0  |   const char *oid;  | 
199  | 0  |   gnutls_datum_t algo_params = { NULL, 0 }; | 
200  | 0  |   gnutls_datum_t algo_privkey = { NULL, 0 }; | 
201  |  | 
  | 
202  | 0  |   oid = gnutls_pk_get_oid(pkey->params.algo);  | 
203  | 0  |   if (oid == NULL) { | 
204  | 0  |     gnutls_assert();  | 
205  | 0  |     return GNUTLS_E_UNIMPLEMENTED_FEATURE;  | 
206  | 0  |   }  | 
207  |  |  | 
208  | 0  |   result = _gnutls_x509_write_pubkey_params(&pkey->params, &algo_params);  | 
209  | 0  |   if (result < 0) { | 
210  | 0  |     gnutls_assert();  | 
211  | 0  |     return result;  | 
212  | 0  |   }  | 
213  |  |  | 
214  | 0  |   if ((result = asn1_create_element(_gnutls_get_pkix(),  | 
215  | 0  |             "PKIX1.pkcs-8-PrivateKeyInfo",  | 
216  | 0  |             pkey_info)) != ASN1_SUCCESS) { | 
217  | 0  |     gnutls_assert();  | 
218  | 0  |     result = _gnutls_asn2err(result);  | 
219  | 0  |     goto error;  | 
220  | 0  |   }  | 
221  |  |  | 
222  |  |   /* Write the version.  | 
223  |  |    */  | 
224  | 0  |   result = asn1_write_value(*pkey_info, "version", &null, 1);  | 
225  | 0  |   if (result != ASN1_SUCCESS) { | 
226  | 0  |     gnutls_assert();  | 
227  | 0  |     result = _gnutls_asn2err(result);  | 
228  | 0  |     goto error;  | 
229  | 0  |   }  | 
230  |  |  | 
231  |  |   /* write the privateKeyAlgorithm  | 
232  |  |    * fields. (OID+NULL data)  | 
233  |  |    */  | 
234  | 0  |   result = asn1_write_value(*pkey_info, "privateKeyAlgorithm.algorithm",  | 
235  | 0  |           oid, 1);  | 
236  | 0  |   if (result != ASN1_SUCCESS) { | 
237  | 0  |     gnutls_assert();  | 
238  | 0  |     result = _gnutls_asn2err(result);  | 
239  | 0  |     goto error;  | 
240  | 0  |   }  | 
241  |  |  | 
242  | 0  |   result = asn1_write_value(*pkey_info, "privateKeyAlgorithm.parameters",  | 
243  | 0  |           algo_params.data, algo_params.size);  | 
244  | 0  |   _gnutls_free_key_datum(&algo_params);  | 
245  |  | 
  | 
246  | 0  |   if (result != ASN1_SUCCESS) { | 
247  | 0  |     gnutls_assert();  | 
248  | 0  |     result = _gnutls_asn2err(result);  | 
249  | 0  |     goto error;  | 
250  | 0  |   }  | 
251  |  |  | 
252  |  |   /* Write the raw private key  | 
253  |  |    */  | 
254  | 0  |   result = _encode_privkey(pkey, &algo_privkey);  | 
255  | 0  |   if (result < 0) { | 
256  | 0  |     gnutls_assert();  | 
257  | 0  |     goto error;  | 
258  | 0  |   }  | 
259  |  |  | 
260  | 0  |   result = asn1_write_value(*pkey_info, "privateKey", algo_privkey.data,  | 
261  | 0  |           algo_privkey.size);  | 
262  | 0  |   _gnutls_free_key_datum(&algo_privkey);  | 
263  |  | 
  | 
264  | 0  |   if (result != ASN1_SUCCESS) { | 
265  | 0  |     gnutls_assert();  | 
266  | 0  |     result = _gnutls_asn2err(result);  | 
267  | 0  |     goto error;  | 
268  | 0  |   }  | 
269  |  |  | 
270  | 0  |   if ((pkey->params.pkflags & GNUTLS_PK_FLAG_PROVABLE) &&  | 
271  | 0  |       pkey->params.seed_size > 0) { | 
272  | 0  |     gnutls_datum_t seed_info;  | 
273  |  |     /* rfc8479 attribute encoding */  | 
274  |  | 
  | 
275  | 0  |     result = _x509_encode_provable_seed(pkey, &seed_info);  | 
276  | 0  |     if (result < 0) { | 
277  | 0  |       gnutls_assert();  | 
278  | 0  |       goto error;  | 
279  | 0  |     }  | 
280  |  |  | 
281  | 0  |     result = _x509_set_attribute(*pkey_info, "attributes",  | 
282  | 0  |                OID_ATTR_PROV_SEED, &seed_info);  | 
283  | 0  |     gnutls_free(seed_info.data);  | 
284  | 0  |     if (result < 0) { | 
285  | 0  |       gnutls_assert();  | 
286  | 0  |       goto error;  | 
287  | 0  |     }  | 
288  | 0  |   } else { | 
289  |  |     /* Append an empty Attributes field.  | 
290  |  |      */  | 
291  | 0  |     result = asn1_write_value(*pkey_info, "attributes", NULL, 0);  | 
292  | 0  |     if (result != ASN1_SUCCESS) { | 
293  | 0  |       gnutls_assert();  | 
294  | 0  |       result = _gnutls_asn2err(result);  | 
295  | 0  |       goto error;  | 
296  | 0  |     }  | 
297  | 0  |   }  | 
298  |  |  | 
299  |  |   /* DER Encode the generated private key info.  | 
300  |  |    */  | 
301  | 0  |   len = 0;  | 
302  | 0  |   result = asn1_der_coding(*pkey_info, "", NULL, &len, NULL);  | 
303  | 0  |   if (result != ASN1_MEM_ERROR) { | 
304  | 0  |     gnutls_assert();  | 
305  | 0  |     result = _gnutls_asn2err(result);  | 
306  | 0  |     goto error;  | 
307  | 0  |   }  | 
308  |  |  | 
309  |  |   /* allocate data for the der  | 
310  |  |    */  | 
311  | 0  |   der->size = len;  | 
312  | 0  |   der->data = gnutls_malloc(len);  | 
313  | 0  |   if (der->data == NULL) { | 
314  | 0  |     gnutls_assert();  | 
315  | 0  |     return GNUTLS_E_MEMORY_ERROR;  | 
316  | 0  |   }  | 
317  |  |  | 
318  | 0  |   result = asn1_der_coding(*pkey_info, "", der->data, &len, NULL);  | 
319  | 0  |   if (result != ASN1_SUCCESS) { | 
320  | 0  |     gnutls_assert();  | 
321  | 0  |     result = _gnutls_asn2err(result);  | 
322  | 0  |     goto error;  | 
323  | 0  |   }  | 
324  |  |  | 
325  | 0  |   return 0;  | 
326  |  |  | 
327  | 0  | error:  | 
328  | 0  |   asn1_delete_structure2(pkey_info, ASN1_DELETE_FLAG_ZEROIZE);  | 
329  | 0  |   _gnutls_free_datum(&algo_params);  | 
330  | 0  |   _gnutls_free_key_datum(&algo_privkey);  | 
331  | 0  |   return result;  | 
332  | 0  | }  | 
333  |  |  | 
334  |  | /* Converts a PKCS #8 private key info to  | 
335  |  |  * a PKCS #8 EncryptedPrivateKeyInfo.  | 
336  |  |  */  | 
337  |  | static int encode_to_pkcs8_key(schema_id schema, const gnutls_datum_t *der_key,  | 
338  |  |              const char *password, asn1_node *out)  | 
339  | 0  | { | 
340  | 0  |   int result;  | 
341  | 0  |   gnutls_datum_t key = { NULL, 0 }; | 
342  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
343  | 0  |   asn1_node pkcs8_asn = NULL;  | 
344  | 0  |   struct pbkdf2_params kdf_params;  | 
345  | 0  |   struct pbe_enc_params enc_params;  | 
346  | 0  |   const struct pkcs_cipher_schema_st *s;  | 
347  |  | 
  | 
348  | 0  |   s = _gnutls_pkcs_schema_get(schema);  | 
349  | 0  |   if (s == NULL || s->decrypt_only) { | 
350  | 0  |     return gnutls_assert_val(GNUTLS_E_INVALID_REQUEST);  | 
351  | 0  |   }  | 
352  |  |  | 
353  | 0  |   if ((result = asn1_create_element(  | 
354  | 0  |          _gnutls_get_pkix(), "PKIX1.pkcs-8-EncryptedPrivateKeyInfo",  | 
355  | 0  |          &pkcs8_asn)) != ASN1_SUCCESS) { | 
356  | 0  |     gnutls_assert();  | 
357  | 0  |     return _gnutls_asn2err(result);  | 
358  | 0  |   }  | 
359  |  |  | 
360  |  |   /* Write the encryption schema OID  | 
361  |  |    */  | 
362  | 0  |   result = asn1_write_value(pkcs8_asn, "encryptionAlgorithm.algorithm",  | 
363  | 0  |           s->write_oid, 1);  | 
364  |  | 
  | 
365  | 0  |   if (result != ASN1_SUCCESS) { | 
366  | 0  |     gnutls_assert();  | 
367  | 0  |     result = _gnutls_asn2err(result);  | 
368  | 0  |     goto error;  | 
369  | 0  |   }  | 
370  |  |  | 
371  |  |   /* Generate a symmetric key.  | 
372  |  |    */  | 
373  |  |  | 
374  | 0  |   result = _gnutls_pkcs_generate_key(schema, password, &kdf_params,  | 
375  | 0  |              &enc_params, &key);  | 
376  | 0  |   if (result < 0) { | 
377  | 0  |     gnutls_assert();  | 
378  | 0  |     goto error;  | 
379  | 0  |   }  | 
380  |  |  | 
381  | 0  |   result = _gnutls_pkcs_write_schema_params(  | 
382  | 0  |     schema, pkcs8_asn, "encryptionAlgorithm.parameters",  | 
383  | 0  |     &kdf_params, &enc_params);  | 
384  | 0  |   if (result < 0) { | 
385  | 0  |     gnutls_assert();  | 
386  | 0  |     goto error;  | 
387  | 0  |   }  | 
388  |  |  | 
389  |  |   /* Parameters have been encoded. Now  | 
390  |  |    * encrypt the Data.  | 
391  |  |    */  | 
392  | 0  |   result =  | 
393  | 0  |     _gnutls_pkcs_raw_encrypt_data(der_key, &enc_params, &key, &tmp);  | 
394  | 0  |   if (result < 0) { | 
395  | 0  |     gnutls_assert();  | 
396  | 0  |     goto error;  | 
397  | 0  |   }  | 
398  |  |  | 
399  |  |   /* write the encrypted data.  | 
400  |  |    */  | 
401  | 0  |   result = asn1_write_value(pkcs8_asn, "encryptedData", tmp.data,  | 
402  | 0  |           tmp.size);  | 
403  | 0  |   if (result != ASN1_SUCCESS) { | 
404  | 0  |     gnutls_assert();  | 
405  | 0  |     result = _gnutls_asn2err(result);  | 
406  | 0  |     goto error;  | 
407  | 0  |   }  | 
408  |  |  | 
409  | 0  |   _gnutls_free_datum(&tmp);  | 
410  | 0  |   _gnutls_free_key_datum(&key);  | 
411  |  | 
  | 
412  | 0  |   *out = pkcs8_asn;  | 
413  |  | 
  | 
414  | 0  |   return 0;  | 
415  |  |  | 
416  | 0  | error:  | 
417  | 0  |   _gnutls_free_key_datum(&key);  | 
418  | 0  |   _gnutls_free_datum(&tmp);  | 
419  | 0  |   asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
420  | 0  |   return result;  | 
421  | 0  | }  | 
422  |  |  | 
423  |  | /**  | 
424  |  |  * gnutls_x509_privkey_export_pkcs8:  | 
425  |  |  * @key: Holds the key  | 
426  |  |  * @format: the format of output params. One of PEM or DER.  | 
427  |  |  * @password: the password that will be used to encrypt the key.  | 
428  |  |  * @flags: an ORed sequence of gnutls_pkcs_encrypt_flags_t  | 
429  |  |  * @output_data: will contain a private key PEM or DER encoded  | 
430  |  |  * @output_data_size: holds the size of output_data (and will be  | 
431  |  |  *   replaced by the actual size of parameters)  | 
432  |  |  *  | 
433  |  |  * This function will export the private key to a PKCS8 structure.  | 
434  |  |  * Both RSA and DSA keys can be exported. For DSA keys we use  | 
435  |  |  * PKCS #11 definitions. If the flags do not specify the encryption  | 
436  |  |  * cipher, then the default 3DES (PBES2) will be used.  | 
437  |  |  *  | 
438  |  |  * The @password can be either ASCII or UTF-8 in the default PBES2  | 
439  |  |  * encryption schemas, or ASCII for the PKCS12 schemas.  | 
440  |  |  *  | 
441  |  |  * If the buffer provided is not long enough to hold the output, then  | 
442  |  |  * *output_data_size is updated and GNUTLS_E_SHORT_MEMORY_BUFFER will  | 
443  |  |  * be returned.  | 
444  |  |  *  | 
445  |  |  * If the structure is PEM encoded, it will have a header  | 
446  |  |  * of "BEGIN ENCRYPTED PRIVATE KEY" or "BEGIN PRIVATE KEY" if  | 
447  |  |  * encryption is not used.  | 
448  |  |  *  | 
449  |  |  * Returns: In case of failure a negative error code will be  | 
450  |  |  *   returned, and 0 on success.  | 
451  |  |  **/  | 
452  |  | int gnutls_x509_privkey_export_pkcs8(gnutls_x509_privkey_t key,  | 
453  |  |              gnutls_x509_crt_fmt_t format,  | 
454  |  |              const char *password, unsigned int flags,  | 
455  |  |              void *output_data,  | 
456  |  |              size_t *output_data_size)  | 
457  | 0  | { | 
458  | 0  |   asn1_node pkcs8_asn = NULL, pkey_info;  | 
459  | 0  |   int ret;  | 
460  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
461  | 0  |   schema_id schema;  | 
462  |  | 
  | 
463  | 0  |   if (key == NULL) { | 
464  | 0  |     gnutls_assert();  | 
465  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
466  | 0  |   }  | 
467  |  |  | 
468  |  |   /* Get the private key info  | 
469  |  |    * tmp holds the DER encoding.  | 
470  |  |    */  | 
471  | 0  |   ret = encode_to_private_key_info(key, &tmp, &pkey_info);  | 
472  | 0  |   if (ret < 0) { | 
473  | 0  |     gnutls_assert();  | 
474  | 0  |     return ret;  | 
475  | 0  |   }  | 
476  |  |  | 
477  | 0  |   schema = _gnutls_pkcs_flags_to_schema(flags);  | 
478  |  | 
  | 
479  | 0  |   if (((flags & GNUTLS_PKCS_PLAIN) || password == NULL) &&  | 
480  | 0  |       !(flags & GNUTLS_PKCS_NULL_PASSWORD)) { | 
481  | 0  |     _gnutls_free_datum(&tmp);  | 
482  |  | 
  | 
483  | 0  |     ret = _gnutls_x509_export_int(pkey_info, format,  | 
484  | 0  |                 PEM_UNENCRYPTED_PKCS8,  | 
485  | 0  |                 output_data, output_data_size);  | 
486  |  | 
  | 
487  | 0  |     asn1_delete_structure2(&pkey_info, ASN1_DELETE_FLAG_ZEROIZE);  | 
488  | 0  |   } else { | 
489  | 0  |     asn1_delete_structure2(  | 
490  | 0  |       &pkey_info,  | 
491  | 0  |       ASN1_DELETE_FLAG_ZEROIZE); /* we don't need it */  | 
492  |  | 
  | 
493  | 0  |     ret = encode_to_pkcs8_key(schema, &tmp, password, &pkcs8_asn);  | 
494  | 0  |     _gnutls_free_key_datum(&tmp);  | 
495  |  | 
  | 
496  | 0  |     if (ret < 0) { | 
497  | 0  |       gnutls_assert();  | 
498  | 0  |       return ret;  | 
499  | 0  |     }  | 
500  |  |  | 
501  | 0  |     ret = _gnutls_x509_export_int(pkcs8_asn, format, PEM_PKCS8,  | 
502  | 0  |                 output_data, output_data_size);  | 
503  |  | 
  | 
504  | 0  |     asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
505  | 0  |   }  | 
506  |  |  | 
507  | 0  |   return ret;  | 
508  | 0  | }  | 
509  |  |  | 
510  |  | /**  | 
511  |  |  * gnutls_pkcs8_info:  | 
512  |  |  * @data: Holds the PKCS #8 data  | 
513  |  |  * @format: the format of the PKCS #8 data  | 
514  |  |  * @schema: indicate the schema as one of %gnutls_pkcs_encrypt_flags_t  | 
515  |  |  * @cipher: the cipher used as %gnutls_cipher_algorithm_t  | 
516  |  |  * @salt: PBKDF2 salt (if non-NULL then @salt_size initially holds its size)  | 
517  |  |  * @salt_size: PBKDF2 salt size  | 
518  |  |  * @iter_count: PBKDF2 iteration count  | 
519  |  |  * @oid: if non-NULL it will contain an allocated null-terminated variable with the OID  | 
520  |  |  *  | 
521  |  |  * This function will provide information on the algorithms used  | 
522  |  |  * in a particular PKCS #8 structure. If the structure algorithms  | 
523  |  |  * are unknown the code %GNUTLS_E_UNKNOWN_CIPHER_TYPE will be returned,  | 
524  |  |  * and only @oid, will be set. That is, @oid will be set on encrypted PKCS #8  | 
525  |  |  * structures whether supported or not. It must be deinitialized using gnutls_free().  | 
526  |  |  * The other variables are only set on supported structures.  | 
527  |  |  *  | 
528  |  |  * Returns: %GNUTLS_E_INVALID_REQUEST if the provided structure isn't an encrypted key,  | 
529  |  |  *  %GNUTLS_E_UNKNOWN_CIPHER_TYPE if the structure's encryption isn't supported, or  | 
530  |  |  *  another negative error code in case of a failure. Zero on success.  | 
531  |  |  *  | 
532  |  |  * Since: 3.4.0  | 
533  |  |  **/  | 
534  |  | int gnutls_pkcs8_info(const gnutls_datum_t *data, gnutls_x509_crt_fmt_t format,  | 
535  |  |           unsigned int *schema, unsigned int *cipher, void *salt,  | 
536  |  |           unsigned int *salt_size, unsigned int *iter_count,  | 
537  |  |           char **oid)  | 
538  | 0  | { | 
539  | 0  |   int ret = 0, need_free = 0;  | 
540  | 0  |   gnutls_datum_t _data;  | 
541  | 0  |   const struct pkcs_cipher_schema_st *p = NULL;  | 
542  | 0  |   struct pbkdf2_params kdf;  | 
543  |  | 
  | 
544  | 0  |   memset(&kdf, 0, sizeof(kdf));  | 
545  |  | 
  | 
546  | 0  |   if (oid)  | 
547  | 0  |     *oid = NULL;  | 
548  |  | 
  | 
549  | 0  |   _data.data = data->data;  | 
550  | 0  |   _data.size = data->size;  | 
551  |  |  | 
552  |  |   /* If the Certificate is in PEM format then decode it  | 
553  |  |    */  | 
554  | 0  |   if (format == GNUTLS_X509_FMT_PEM) { | 
555  |  |     /* Try the first header   | 
556  |  |      */  | 
557  | 0  |     ret = _gnutls_fbase64_decode(PEM_UNENCRYPTED_PKCS8, data->data,  | 
558  | 0  |                data->size, &_data);  | 
559  |  | 
  | 
560  | 0  |     if (ret < 0) { /* Try the encrypted header  | 
561  |  |          */  | 
562  | 0  |       ret = _gnutls_fbase64_decode(PEM_PKCS8, data->data,  | 
563  | 0  |                  data->size, &_data);  | 
564  |  | 
  | 
565  | 0  |       if (ret < 0) { | 
566  | 0  |         gnutls_assert();  | 
567  | 0  |         return ret;  | 
568  | 0  |       }  | 
569  | 0  |     }  | 
570  |  |  | 
571  | 0  |     need_free = 1;  | 
572  | 0  |   }  | 
573  |  |  | 
574  | 0  |   ret = pkcs8_key_info(&_data, &p, &kdf, oid);  | 
575  | 0  |   if (ret == GNUTLS_E_DECRYPTION_FAILED)  | 
576  | 0  |     ret = GNUTLS_E_INVALID_REQUEST;  | 
577  | 0  |   if (ret < 0) { | 
578  | 0  |     gnutls_assert();  | 
579  | 0  |     goto cleanup;  | 
580  | 0  |   }  | 
581  |  |  | 
582  | 0  |   assert(p != NULL);  | 
583  |  |  | 
584  | 0  |   if (need_free)  | 
585  | 0  |     _gnutls_free_datum(&_data);  | 
586  |  | 
  | 
587  | 0  |   if (schema)  | 
588  | 0  |     *schema = p->flag;  | 
589  |  | 
  | 
590  | 0  |   if (cipher)  | 
591  | 0  |     *cipher = p->cipher;  | 
592  |  | 
  | 
593  | 0  |   if (iter_count)  | 
594  | 0  |     *iter_count = kdf.iter_count;  | 
595  |  | 
  | 
596  | 0  |   if (salt) { | 
597  | 0  |     if (*salt_size >= (unsigned)kdf.salt_size) { | 
598  | 0  |       memcpy(salt, kdf.salt, kdf.salt_size);  | 
599  | 0  |     } else { | 
600  | 0  |       *salt_size = kdf.salt_size;  | 
601  | 0  |       ret = gnutls_assert_val(GNUTLS_E_SHORT_MEMORY_BUFFER);  | 
602  | 0  |       goto cleanup;  | 
603  | 0  |     }  | 
604  | 0  |   }  | 
605  |  |  | 
606  | 0  |   if (salt_size)  | 
607  | 0  |     *salt_size = kdf.salt_size;  | 
608  |  | 
  | 
609  | 0  |   return 0;  | 
610  |  |  | 
611  | 0  | cleanup:  | 
612  | 0  |   if (ret != GNUTLS_E_UNKNOWN_CIPHER_TYPE && oid) { | 
613  | 0  |     gnutls_free(*oid);  | 
614  | 0  |   }  | 
615  | 0  |   if (need_free)  | 
616  | 0  |     _gnutls_free_datum(&_data);  | 
617  | 0  |   return ret;  | 
618  | 0  | }  | 
619  |  |  | 
620  |  | /**  | 
621  |  |  * gnutls_x509_privkey_export2_pkcs8:  | 
622  |  |  * @key: Holds the key  | 
623  |  |  * @format: the format of output params. One of PEM or DER.  | 
624  |  |  * @password: the password that will be used to encrypt the key.  | 
625  |  |  * @flags: an ORed sequence of gnutls_pkcs_encrypt_flags_t  | 
626  |  |  * @out: will contain a private key PEM or DER encoded  | 
627  |  |  *  | 
628  |  |  * This function will export the private key to a PKCS8 structure.  | 
629  |  |  * Both RSA and DSA keys can be exported. For DSA keys we use  | 
630  |  |  * PKCS #11 definitions. If the flags do not specify the encryption  | 
631  |  |  * cipher, then the default 3DES (PBES2) will be used.  | 
632  |  |  *  | 
633  |  |  * The @password can be either ASCII or UTF-8 in the default PBES2  | 
634  |  |  * encryption schemas, or ASCII for the PKCS12 schemas.  | 
635  |  |  *  | 
636  |  |  * The output buffer is allocated using gnutls_malloc().  | 
637  |  |  *  | 
638  |  |  * If the structure is PEM encoded, it will have a header  | 
639  |  |  * of "BEGIN ENCRYPTED PRIVATE KEY" or "BEGIN PRIVATE KEY" if  | 
640  |  |  * encryption is not used.  | 
641  |  |  *  | 
642  |  |  * Returns: In case of failure a negative error code will be  | 
643  |  |  *   returned, and 0 on success.  | 
644  |  |  *  | 
645  |  |  * Since 3.1.3  | 
646  |  |  **/  | 
647  |  | int gnutls_x509_privkey_export2_pkcs8(gnutls_x509_privkey_t key,  | 
648  |  |               gnutls_x509_crt_fmt_t format,  | 
649  |  |               const char *password, unsigned int flags,  | 
650  |  |               gnutls_datum_t *out)  | 
651  | 0  | { | 
652  | 0  |   asn1_node pkcs8_asn = NULL, pkey_info;  | 
653  | 0  |   int ret;  | 
654  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
655  | 0  |   schema_id schema;  | 
656  |  | 
  | 
657  | 0  |   if (key == NULL) { | 
658  | 0  |     gnutls_assert();  | 
659  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
660  | 0  |   }  | 
661  |  |  | 
662  |  |   /* Get the private key info  | 
663  |  |    * tmp holds the DER encoding.  | 
664  |  |    */  | 
665  | 0  |   ret = encode_to_private_key_info(key, &tmp, &pkey_info);  | 
666  | 0  |   if (ret < 0) { | 
667  | 0  |     gnutls_assert();  | 
668  | 0  |     return ret;  | 
669  | 0  |   }  | 
670  |  |  | 
671  | 0  |   schema = _gnutls_pkcs_flags_to_schema(flags);  | 
672  |  | 
  | 
673  | 0  |   if (((flags & GNUTLS_PKCS_PLAIN) || password == NULL) &&  | 
674  | 0  |       !(flags & GNUTLS_PKCS_NULL_PASSWORD)) { | 
675  | 0  |     _gnutls_free_key_datum(&tmp);  | 
676  |  | 
  | 
677  | 0  |     ret = _gnutls_x509_export_int2(pkey_info, format,  | 
678  | 0  |                  PEM_UNENCRYPTED_PKCS8, out);  | 
679  |  | 
  | 
680  | 0  |     asn1_delete_structure2(&pkey_info, ASN1_DELETE_FLAG_ZEROIZE);  | 
681  | 0  |   } else { | 
682  | 0  |     asn1_delete_structure2(  | 
683  | 0  |       &pkey_info,  | 
684  | 0  |       ASN1_DELETE_FLAG_ZEROIZE); /* we don't need it */  | 
685  |  | 
  | 
686  | 0  |     ret = encode_to_pkcs8_key(schema, &tmp, password, &pkcs8_asn);  | 
687  | 0  |     _gnutls_free_key_datum(&tmp);  | 
688  |  | 
  | 
689  | 0  |     if (ret < 0) { | 
690  | 0  |       gnutls_assert();  | 
691  | 0  |       return ret;  | 
692  | 0  |     }  | 
693  |  |  | 
694  | 0  |     ret = _gnutls_x509_export_int2(pkcs8_asn, format, PEM_PKCS8,  | 
695  | 0  |                  out);  | 
696  |  | 
  | 
697  | 0  |     asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
698  | 0  |   }  | 
699  |  |  | 
700  | 0  |   return ret;  | 
701  | 0  | }  | 
702  |  |  | 
703  |  | /* We've gotten this far. In the real world it's almost certain  | 
704  |  |    * that we're dealing with a good file, but wrong password.  | 
705  |  |    * Sadly like 90% of random data is somehow valid DER for the  | 
706  |  |    * a first small number of bytes, so no easy way to guarantee. */  | 
707  |  | #define CHECK_ERR_FOR_ENCRYPTED(result)                     \  | 
708  | 0  |   if (result == GNUTLS_E_ASN1_ELEMENT_NOT_FOUND ||    \  | 
709  | 0  |       result == GNUTLS_E_ASN1_IDENTIFIER_NOT_FOUND || \  | 
710  | 0  |       result == GNUTLS_E_ASN1_DER_ERROR ||            \  | 
711  | 0  |       result == GNUTLS_E_ASN1_VALUE_NOT_FOUND ||      \  | 
712  | 0  |       result == GNUTLS_E_ASN1_GENERIC_ERROR ||        \  | 
713  | 0  |       result == GNUTLS_E_ASN1_VALUE_NOT_VALID ||      \  | 
714  | 0  |       result == GNUTLS_E_ASN1_TAG_ERROR ||            \  | 
715  | 0  |       result == GNUTLS_E_ASN1_TAG_IMPLICIT ||         \  | 
716  | 0  |       result == GNUTLS_E_ASN1_TYPE_ANY_ERROR ||       \  | 
717  | 0  |       result == GNUTLS_E_ASN1_SYNTAX_ERROR ||         \  | 
718  | 0  |       result == GNUTLS_E_ASN1_DER_OVERFLOW) {         \ | 
719  | 0  |     result = GNUTLS_E_DECRYPTION_FAILED;        \  | 
720  | 0  |   }  | 
721  |  |  | 
722  |  | static int pkcs8_key_decrypt(const gnutls_datum_t *raw_key, asn1_node pkcs8_asn,  | 
723  |  |            const char *password, gnutls_x509_privkey_t pkey)  | 
724  | 0  | { | 
725  | 0  |   int result, len;  | 
726  | 0  |   char enc_oid[MAX_OID_SIZE];  | 
727  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
728  | 0  |   int params_start, params_end, params_len;  | 
729  | 0  |   struct pbkdf2_params kdf_params;  | 
730  | 0  |   struct pbe_enc_params enc_params;  | 
731  | 0  |   schema_id schema;  | 
732  |  |  | 
733  |  |   /* Check the encryption schema OID  | 
734  |  |    */  | 
735  | 0  |   len = sizeof(enc_oid);  | 
736  | 0  |   result = asn1_read_value(pkcs8_asn, "encryptionAlgorithm.algorithm",  | 
737  | 0  |          enc_oid, &len);  | 
738  | 0  |   if (result != ASN1_SUCCESS) { | 
739  | 0  |     gnutls_assert();  | 
740  | 0  |     goto error;  | 
741  | 0  |   }  | 
742  |  |  | 
743  | 0  |   if ((result = _gnutls_check_pkcs_cipher_schema(enc_oid)) < 0) { | 
744  | 0  |     gnutls_assert();  | 
745  | 0  |     goto error;  | 
746  | 0  |   }  | 
747  |  |  | 
748  | 0  |   schema = result;  | 
749  |  |  | 
750  |  |   /* Get the DER encoding of the parameters.  | 
751  |  |    */  | 
752  | 0  |   result = asn1_der_decoding_startEnd(pkcs8_asn, raw_key->data,  | 
753  | 0  |               raw_key->size,  | 
754  | 0  |               "encryptionAlgorithm.parameters",  | 
755  | 0  |               ¶ms_start, ¶ms_end);  | 
756  | 0  |   if (result != ASN1_SUCCESS) { | 
757  | 0  |     gnutls_assert();  | 
758  | 0  |     result = _gnutls_asn2err(result);  | 
759  | 0  |     goto error;  | 
760  | 0  |   }  | 
761  | 0  |   params_len = params_end - params_start + 1;  | 
762  |  | 
  | 
763  | 0  |   result = _gnutls_read_pkcs_schema_params(&schema, password,  | 
764  | 0  |              &raw_key->data[params_start],  | 
765  | 0  |              params_len, &kdf_params,  | 
766  | 0  |              &enc_params);  | 
767  |  | 
  | 
768  | 0  |   if (result < 0) { | 
769  | 0  |     gnutls_assert();  | 
770  | 0  |     goto error;  | 
771  | 0  |   }  | 
772  |  |  | 
773  |  |   /* Parameters have been decoded. Now  | 
774  |  |    * decrypt the EncryptedData.  | 
775  |  |    */  | 
776  | 0  |   result = _gnutls_pkcs_raw_decrypt_data(schema, pkcs8_asn,  | 
777  | 0  |                  "encryptedData", password,  | 
778  | 0  |                  &kdf_params, &enc_params, &tmp);  | 
779  | 0  |   if (result < 0) { | 
780  | 0  |     gnutls_assert();  | 
781  | 0  |     result = GNUTLS_E_DECRYPTION_FAILED;  | 
782  | 0  |     goto error;  | 
783  | 0  |   }  | 
784  |  |  | 
785  | 0  |   result = decode_private_key_info(&tmp, pkey);  | 
786  | 0  |   _gnutls_free_key_datum(&tmp);  | 
787  |  | 
  | 
788  | 0  |   CHECK_ERR_FOR_ENCRYPTED(result);  | 
789  | 0  |   if (result < 0) { | 
790  | 0  |     gnutls_assert();  | 
791  | 0  |     goto error;  | 
792  | 0  |   }  | 
793  |  |  | 
794  | 0  |   return 0;  | 
795  |  |  | 
796  | 0  | error:  | 
797  | 0  |   return result;  | 
798  | 0  | }  | 
799  |  |  | 
800  |  | static int check_for_decrypted(const gnutls_datum_t *der)  | 
801  | 0  | { | 
802  | 0  |   int result;  | 
803  | 0  |   asn1_node pkcs8_asn = NULL;  | 
804  |  | 
  | 
805  | 0  |   if ((result = asn1_create_element(_gnutls_get_pkix(),  | 
806  | 0  |             "PKIX1.pkcs-8-PrivateKeyInfo",  | 
807  | 0  |             &pkcs8_asn)) != ASN1_SUCCESS) { | 
808  | 0  |     gnutls_assert();  | 
809  | 0  |     return _gnutls_asn2err(result);  | 
810  | 0  |   }  | 
811  |  |  | 
812  | 0  |   result =  | 
813  | 0  |     _asn1_strict_der_decode(&pkcs8_asn, der->data, der->size, NULL);  | 
814  | 0  |   if (result != ASN1_SUCCESS) { | 
815  | 0  |     gnutls_assert();  | 
816  | 0  |     result = _gnutls_asn2err(result);  | 
817  | 0  |     goto error;  | 
818  | 0  |   }  | 
819  |  |  | 
820  | 0  |   result = 0;  | 
821  | 0  | error:  | 
822  | 0  |   asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
823  | 0  |   return result;  | 
824  | 0  | }  | 
825  |  |  | 
826  |  | static int pkcs8_key_info(const gnutls_datum_t *raw_key,  | 
827  |  |         const struct pkcs_cipher_schema_st **p,  | 
828  |  |         struct pbkdf2_params *kdf_params, char **oid)  | 
829  | 0  | { | 
830  | 0  |   int result, len;  | 
831  | 0  |   char enc_oid[MAX_OID_SIZE * 2];  | 
832  | 0  |   int params_start, params_end, params_len;  | 
833  | 0  |   struct pbe_enc_params enc_params;  | 
834  | 0  |   schema_id schema;  | 
835  | 0  |   asn1_node pkcs8_asn = NULL;  | 
836  |  | 
  | 
837  | 0  |   memset(&enc_params, 0, sizeof(enc_params));  | 
838  |  | 
  | 
839  | 0  |   result = check_for_decrypted(raw_key);  | 
840  | 0  |   if (result == 0)  | 
841  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
842  |  |  | 
843  | 0  |   if ((result = asn1_create_element(  | 
844  | 0  |          _gnutls_get_pkix(), "PKIX1.pkcs-8-EncryptedPrivateKeyInfo",  | 
845  | 0  |          &pkcs8_asn)) != ASN1_SUCCESS) { | 
846  | 0  |     gnutls_assert();  | 
847  | 0  |     result = _gnutls_asn2err(result);  | 
848  | 0  |     goto error;  | 
849  | 0  |   }  | 
850  |  |  | 
851  | 0  |   result = _asn1_strict_der_decode(&pkcs8_asn, raw_key->data,  | 
852  | 0  |            raw_key->size, NULL);  | 
853  | 0  |   if (result != ASN1_SUCCESS) { | 
854  | 0  |     gnutls_assert();  | 
855  | 0  |     result = _gnutls_asn2err(result);  | 
856  | 0  |     goto error;  | 
857  | 0  |   }  | 
858  |  |  | 
859  |  |   /* Check the encryption schema OID  | 
860  |  |    */  | 
861  | 0  |   len = sizeof(enc_oid);  | 
862  | 0  |   result = asn1_read_value(pkcs8_asn, "encryptionAlgorithm.algorithm",  | 
863  | 0  |          enc_oid, &len);  | 
864  | 0  |   if (result != ASN1_SUCCESS) { | 
865  | 0  |     gnutls_assert();  | 
866  | 0  |     goto error;  | 
867  | 0  |   }  | 
868  |  |  | 
869  | 0  |   if (oid) { | 
870  | 0  |     *oid = gnutls_strdup(enc_oid);  | 
871  | 0  |   }  | 
872  |  | 
  | 
873  | 0  |   if ((result = _gnutls_check_pkcs_cipher_schema(enc_oid)) < 0) { | 
874  | 0  |     gnutls_assert();  | 
875  | 0  |     goto error;  | 
876  | 0  |   }  | 
877  |  |  | 
878  | 0  |   schema = result;  | 
879  |  |  | 
880  |  |   /* Get the DER encoding of the parameters.  | 
881  |  |    */  | 
882  | 0  |   result = asn1_der_decoding_startEnd(pkcs8_asn, raw_key->data,  | 
883  | 0  |               raw_key->size,  | 
884  | 0  |               "encryptionAlgorithm.parameters",  | 
885  | 0  |               ¶ms_start, ¶ms_end);  | 
886  | 0  |   if (result != ASN1_SUCCESS) { | 
887  | 0  |     gnutls_assert();  | 
888  | 0  |     result = _gnutls_asn2err(result);  | 
889  | 0  |     goto error;  | 
890  | 0  |   }  | 
891  | 0  |   params_len = params_end - params_start + 1;  | 
892  |  | 
  | 
893  | 0  |   result = _gnutls_read_pkcs_schema_params(&schema, NULL,  | 
894  | 0  |              &raw_key->data[params_start],  | 
895  | 0  |              params_len, kdf_params,  | 
896  | 0  |              &enc_params);  | 
897  |  | 
  | 
898  | 0  |   if (result < 0) { | 
899  | 0  |     gnutls_assert();  | 
900  | 0  |     if (oid && enc_params.pbes2_oid[0] != 0) { | 
901  | 0  |       snprintf(enc_oid, sizeof(enc_oid), "%s/%s", *oid,  | 
902  | 0  |          enc_params.pbes2_oid);  | 
903  | 0  |       gnutls_free(*oid);  | 
904  | 0  |       *oid = gnutls_strdup(enc_oid);  | 
905  | 0  |     }  | 
906  | 0  |     goto error;  | 
907  | 0  |   }  | 
908  |  |  | 
909  | 0  |   *p = _gnutls_pkcs_schema_get(schema);  | 
910  | 0  |   if (*p == NULL) { | 
911  | 0  |     gnutls_assert();  | 
912  | 0  |     result = GNUTLS_E_UNKNOWN_CIPHER_TYPE;  | 
913  | 0  |     goto error;  | 
914  | 0  |   }  | 
915  |  |  | 
916  | 0  |   result = 0;  | 
917  |  | 
  | 
918  | 0  | error:  | 
919  | 0  |   asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
920  | 0  |   return result;  | 
921  | 0  | }  | 
922  |  |  | 
923  |  | /* Converts a PKCS #8 key to  | 
924  |  |  * an internal structure (gnutls_private_key)  | 
925  |  |  * (normally a PKCS #1 encoded RSA key)  | 
926  |  |  */  | 
927  |  | static int pkcs8_key_decode(const gnutls_datum_t *raw_key, const char *password,  | 
928  |  |           gnutls_x509_privkey_t pkey, unsigned int decrypt)  | 
929  | 0  | { | 
930  | 0  |   int result;  | 
931  | 0  |   asn1_node pkcs8_asn = NULL;  | 
932  |  | 
  | 
933  | 0  |   if ((result = asn1_create_element(  | 
934  | 0  |          _gnutls_get_pkix(), "PKIX1.pkcs-8-EncryptedPrivateKeyInfo",  | 
935  | 0  |          &pkcs8_asn)) != ASN1_SUCCESS) { | 
936  | 0  |     gnutls_assert();  | 
937  | 0  |     result = _gnutls_asn2err(result);  | 
938  | 0  |     goto error;  | 
939  | 0  |   }  | 
940  |  |  | 
941  | 0  |   result = _asn1_strict_der_decode(&pkcs8_asn, raw_key->data,  | 
942  | 0  |            raw_key->size, NULL);  | 
943  | 0  |   if (result != ASN1_SUCCESS) { | 
944  | 0  |     gnutls_assert();  | 
945  | 0  |     result = _gnutls_asn2err(result);  | 
946  | 0  |     goto error;  | 
947  | 0  |   }  | 
948  |  |  | 
949  | 0  |   if (decrypt)  | 
950  | 0  |     result = pkcs8_key_decrypt(raw_key, pkcs8_asn, password, pkey);  | 
951  | 0  |   else  | 
952  | 0  |     result = 0;  | 
953  |  | 
  | 
954  | 0  | error:  | 
955  | 0  |   asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
956  | 0  |   return result;  | 
957  | 0  | }  | 
958  |  |  | 
959  |  | /* Decodes an RSA privateKey from a PKCS8 structure.  | 
960  |  |  */  | 
961  |  | static int _decode_pkcs8_rsa_key(asn1_node pkcs8_asn,  | 
962  |  |          gnutls_x509_privkey_t pkey)  | 
963  | 0  | { | 
964  | 0  |   int ret;  | 
965  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
966  |  | 
  | 
967  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn, "privateKey", &tmp);  | 
968  | 0  |   if (ret < 0) { | 
969  | 0  |     gnutls_assert();  | 
970  | 0  |     goto error;  | 
971  | 0  |   }  | 
972  |  |  | 
973  | 0  |   pkey->key = _gnutls_privkey_decode_pkcs1_rsa_key(&tmp, pkey);  | 
974  | 0  |   _gnutls_free_key_datum(&tmp);  | 
975  |  | 
  | 
976  | 0  |   if (pkey->key == NULL) { | 
977  | 0  |     ret = GNUTLS_E_PK_INVALID_PRIVKEY;  | 
978  | 0  |     gnutls_assert();  | 
979  | 0  |     goto error;  | 
980  | 0  |   }  | 
981  |  |  | 
982  | 0  |   ret = 0;  | 
983  |  | 
  | 
984  | 0  | error:  | 
985  | 0  |   return ret;  | 
986  | 0  | }  | 
987  |  |  | 
988  |  | /* Decodes an RSA-PSS privateKey from a PKCS8 structure.  | 
989  |  |  */  | 
990  |  | static int _decode_pkcs8_rsa_pss_key(asn1_node pkcs8_asn,  | 
991  |  |              gnutls_x509_privkey_t pkey)  | 
992  | 0  | { | 
993  | 0  |   int ret;  | 
994  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
995  | 0  |   gnutls_x509_spki_st params;  | 
996  |  | 
  | 
997  | 0  |   memset(¶ms, 0, sizeof(params));  | 
998  |  | 
  | 
999  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn,  | 
1000  | 0  |               "privateKeyAlgorithm.parameters", &tmp);  | 
1001  | 0  |   if (ret < 0) { | 
1002  | 0  |     if (ret == GNUTLS_E_ASN1_VALUE_NOT_FOUND ||  | 
1003  | 0  |         ret == GNUTLS_E_ASN1_ELEMENT_NOT_FOUND)  | 
1004  | 0  |       goto skip_params;  | 
1005  |  |  | 
1006  | 0  |     gnutls_assert();  | 
1007  | 0  |     goto error;  | 
1008  | 0  |   }  | 
1009  |  |  | 
1010  | 0  |   ret = _gnutls_x509_read_rsa_pss_params(tmp.data, tmp.size, ¶ms);  | 
1011  | 0  |   _gnutls_free_key_datum(&tmp);  | 
1012  |  | 
  | 
1013  | 0  |   if (ret < 0) { | 
1014  | 0  |     gnutls_assert();  | 
1015  | 0  |     goto error;  | 
1016  | 0  |   }  | 
1017  |  |  | 
1018  | 0  | skip_params:  | 
1019  | 0  |   ret = _decode_pkcs8_rsa_key(pkcs8_asn, pkey);  | 
1020  | 0  |   if (ret < 0) { | 
1021  | 0  |     gnutls_assert();  | 
1022  | 0  |     goto error;  | 
1023  | 0  |   }  | 
1024  |  |  | 
1025  | 0  |   pkey->params.algo = GNUTLS_PK_RSA_PSS;  | 
1026  | 0  |   ret = _gnutls_x509_spki_copy(&pkey->params.spki, ¶ms);  | 
1027  | 0  |   if (ret < 0) { | 
1028  | 0  |     gnutls_assert();  | 
1029  | 0  |     goto error;  | 
1030  | 0  |   }  | 
1031  |  |  | 
1032  | 0  |   ret = 0;  | 
1033  |  | 
  | 
1034  | 0  | error:  | 
1035  | 0  |   return ret;  | 
1036  | 0  | }  | 
1037  |  |  | 
1038  |  | /* Decodes an RSA-OAEP privateKey from a PKCS8 structure.  | 
1039  |  |  */  | 
1040  |  | static int _decode_pkcs8_rsa_oaep_key(asn1_node pkcs8_asn,  | 
1041  |  |               gnutls_x509_privkey_t pkey)  | 
1042  | 0  | { | 
1043  | 0  |   int ret;  | 
1044  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
1045  | 0  |   gnutls_x509_spki_st params;  | 
1046  |  | 
  | 
1047  | 0  |   memset(¶ms, 0, sizeof(params));  | 
1048  |  | 
  | 
1049  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn,  | 
1050  | 0  |               "privateKeyAlgorithm.parameters", &tmp);  | 
1051  | 0  |   if (ret < 0) { | 
1052  | 0  |     if (ret == GNUTLS_E_ASN1_VALUE_NOT_FOUND ||  | 
1053  | 0  |         ret == GNUTLS_E_ASN1_ELEMENT_NOT_FOUND)  | 
1054  | 0  |       goto skip_params;  | 
1055  |  |  | 
1056  | 0  |     gnutls_assert();  | 
1057  | 0  |     goto error;  | 
1058  | 0  |   }  | 
1059  |  |  | 
1060  | 0  |   ret = _gnutls_x509_read_rsa_oaep_params(tmp.data, tmp.size, ¶ms);  | 
1061  | 0  |   _gnutls_free_key_datum(&tmp);  | 
1062  |  | 
  | 
1063  | 0  |   if (ret < 0) { | 
1064  | 0  |     gnutls_assert();  | 
1065  | 0  |     goto error;  | 
1066  | 0  |   }  | 
1067  |  |  | 
1068  | 0  | skip_params:  | 
1069  | 0  |   ret = _decode_pkcs8_rsa_key(pkcs8_asn, pkey);  | 
1070  | 0  |   if (ret < 0) { | 
1071  | 0  |     gnutls_assert();  | 
1072  | 0  |     goto error;  | 
1073  | 0  |   }  | 
1074  |  |  | 
1075  | 0  |   pkey->params.algo = GNUTLS_PK_RSA_OAEP;  | 
1076  |  |   /* Take ownership of allocated members of params */  | 
1077  | 0  |   pkey->params.spki = params;  | 
1078  |  | 
  | 
1079  | 0  |   ret = 0;  | 
1080  |  | 
  | 
1081  | 0  | error:  | 
1082  | 0  |   return ret;  | 
1083  | 0  | }  | 
1084  |  |  | 
1085  |  | /* Decodes an ECC privateKey from a PKCS8 structure.  | 
1086  |  |  */  | 
1087  |  | static int _decode_pkcs8_ecc_key(asn1_node pkcs8_asn,  | 
1088  |  |          gnutls_x509_privkey_t pkey)  | 
1089  | 0  | { | 
1090  | 0  |   int ret;  | 
1091  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
1092  | 0  |   unsigned char oid[MAX_OID_SIZE];  | 
1093  | 0  |   unsigned curve = GNUTLS_ECC_CURVE_INVALID;  | 
1094  | 0  |   int len, result;  | 
1095  |  |  | 
1096  |  |   /* openssl PKCS #8 files with ECC keys place the curve in  | 
1097  |  |    * privateKeyAlgorithm.parameters instead of the ECPrivateKey.parameters.  | 
1098  |  |    */  | 
1099  | 0  |   len = sizeof(oid);  | 
1100  | 0  |   result = asn1_read_value(pkcs8_asn, "privateKeyAlgorithm.parameters",  | 
1101  | 0  |          oid, &len);  | 
1102  | 0  |   if (result == ASN1_SUCCESS) { | 
1103  | 0  |     ret = _gnutls_x509_read_ecc_params(oid, len, &curve);  | 
1104  | 0  |     if (ret < 0) { | 
1105  | 0  |       _gnutls_debug_log("PKCS#8: unknown curve OID %s\n", | 
1106  | 0  |             oid);  | 
1107  | 0  |       curve = GNUTLS_ECC_CURVE_INVALID;  | 
1108  | 0  |     }  | 
1109  | 0  |   }  | 
1110  |  | 
  | 
1111  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn, "privateKey", &tmp);  | 
1112  | 0  |   if (ret < 0) { | 
1113  | 0  |     gnutls_assert();  | 
1114  | 0  |     goto error;  | 
1115  | 0  |   }  | 
1116  |  |  | 
1117  | 0  |   ret = _gnutls_privkey_decode_ecc_key(&pkey->key, &tmp, pkey, curve);  | 
1118  | 0  |   _gnutls_free_key_datum(&tmp);  | 
1119  |  | 
  | 
1120  | 0  |   if (ret < 0) { | 
1121  | 0  |     gnutls_assert();  | 
1122  | 0  |     goto error;  | 
1123  | 0  |   }  | 
1124  |  |  | 
1125  | 0  |   ret = 0;  | 
1126  |  | 
  | 
1127  | 0  | error:  | 
1128  | 0  |   return ret;  | 
1129  | 0  | }  | 
1130  |  |  | 
1131  |  | static int _decode_pkcs8_eddsa_key(asn1_node pkcs8_asn,  | 
1132  |  |            gnutls_x509_privkey_t pkey, const char *oid)  | 
1133  | 0  | { | 
1134  | 0  |   int ret;  | 
1135  | 0  |   gnutls_datum_t tmp;  | 
1136  | 0  |   gnutls_ecc_curve_t curve = GNUTLS_ECC_CURVE_INVALID;  | 
1137  | 0  |   const gnutls_ecc_curve_entry_st *ce;  | 
1138  |  | 
  | 
1139  | 0  |   gnutls_pk_params_init(&pkey->params);  | 
1140  |  | 
  | 
1141  | 0  |   curve = gnutls_oid_to_ecc_curve(oid);  | 
1142  | 0  |   if (curve == GNUTLS_ECC_CURVE_INVALID) { | 
1143  | 0  |     _gnutls_debug_log("PKCS#8: unknown curve OID %s\n", oid); | 
1144  | 0  |     return gnutls_assert_val(GNUTLS_E_ECC_UNSUPPORTED_CURVE);  | 
1145  | 0  |   }  | 
1146  |  |  | 
1147  | 0  |   ce = _gnutls_ecc_curve_get_params(curve);  | 
1148  | 0  |   if (_curve_is_eddsa(ce)) { | 
1149  | 0  |     ret = _gnutls_x509_read_string(pkcs8_asn, "privateKey", &tmp,  | 
1150  | 0  |                  ASN1_ETYPE_OCTET_STRING, 1);  | 
1151  | 0  |     if (ret < 0) { | 
1152  | 0  |       gnutls_assert();  | 
1153  | 0  |       return gnutls_assert_val(ret);  | 
1154  | 0  |     }  | 
1155  |  |  | 
1156  | 0  |     if (tmp.size != ce->size) { | 
1157  | 0  |       gnutls_free(tmp.data);  | 
1158  | 0  |       return gnutls_assert_val(GNUTLS_E_ILLEGAL_PARAMETER);  | 
1159  | 0  |     }  | 
1160  | 0  |     gnutls_free(pkey->params.raw_priv.data);  | 
1161  | 0  |     switch (curve) { | 
1162  | 0  |     case GNUTLS_ECC_CURVE_ED25519:  | 
1163  | 0  |       pkey->params.algo = GNUTLS_PK_EDDSA_ED25519;  | 
1164  | 0  |       break;  | 
1165  | 0  |     case GNUTLS_ECC_CURVE_ED448:  | 
1166  | 0  |       pkey->params.algo = GNUTLS_PK_EDDSA_ED448;  | 
1167  | 0  |       break;  | 
1168  | 0  |     default:  | 
1169  | 0  |       return gnutls_assert_val(GNUTLS_E_INTERNAL_ERROR);  | 
1170  | 0  |     }  | 
1171  | 0  |     pkey->params.raw_priv.data = tmp.data;  | 
1172  | 0  |     pkey->params.raw_priv.size = tmp.size;  | 
1173  | 0  |     pkey->params.curve = curve;  | 
1174  |  | 
  | 
1175  | 0  |     tmp.data = NULL;  | 
1176  | 0  |     return 0;  | 
1177  | 0  |   } else { | 
1178  | 0  |     return gnutls_assert_val(GNUTLS_E_ECC_UNSUPPORTED_CURVE);  | 
1179  | 0  |   }  | 
1180  | 0  | }  | 
1181  |  |  | 
1182  |  | static int _decode_pkcs8_modern_ecdh_key(asn1_node pkcs8_asn,  | 
1183  |  |            gnutls_x509_privkey_t pkey,  | 
1184  |  |            const char *oid)  | 
1185  | 0  | { | 
1186  | 0  |   int ret;  | 
1187  | 0  |   gnutls_datum_t tmp;  | 
1188  | 0  |   gnutls_ecc_curve_t curve = GNUTLS_ECC_CURVE_INVALID;  | 
1189  | 0  |   const gnutls_ecc_curve_entry_st *ce;  | 
1190  |  | 
  | 
1191  | 0  |   gnutls_pk_params_init(&pkey->params);  | 
1192  |  | 
  | 
1193  | 0  |   curve = gnutls_oid_to_ecc_curve(oid);  | 
1194  | 0  |   if (curve == GNUTLS_ECC_CURVE_INVALID) { | 
1195  | 0  |     _gnutls_debug_log("PKCS#8: unknown curve OID %s\n", oid); | 
1196  | 0  |     return gnutls_assert_val(GNUTLS_E_ECC_UNSUPPORTED_CURVE);  | 
1197  | 0  |   }  | 
1198  |  |  | 
1199  | 0  |   ce = _gnutls_ecc_curve_get_params(curve);  | 
1200  | 0  |   if (_curve_is_modern_ecdh(ce)) { | 
1201  | 0  |     ret = _gnutls_x509_read_string(pkcs8_asn, "privateKey", &tmp,  | 
1202  | 0  |                  ASN1_ETYPE_OCTET_STRING, 1);  | 
1203  | 0  |     if (ret < 0) { | 
1204  | 0  |       gnutls_assert();  | 
1205  | 0  |       return gnutls_assert_val(ret);  | 
1206  | 0  |     }  | 
1207  |  |  | 
1208  | 0  |     if (tmp.size != ce->size) { | 
1209  | 0  |       gnutls_free(tmp.data);  | 
1210  | 0  |       return gnutls_assert_val(GNUTLS_E_ILLEGAL_PARAMETER);  | 
1211  | 0  |     }  | 
1212  | 0  |     gnutls_free(pkey->params.raw_priv.data);  | 
1213  | 0  |     switch (curve) { | 
1214  | 0  |     case GNUTLS_ECC_CURVE_X25519:  | 
1215  | 0  |       pkey->params.algo = GNUTLS_PK_ECDH_X25519;  | 
1216  | 0  |       break;  | 
1217  | 0  |     case GNUTLS_ECC_CURVE_X448:  | 
1218  | 0  |       pkey->params.algo = GNUTLS_PK_ECDH_X448;  | 
1219  | 0  |       break;  | 
1220  | 0  |     default:  | 
1221  | 0  |       return gnutls_assert_val(GNUTLS_E_INTERNAL_ERROR);  | 
1222  | 0  |     }  | 
1223  | 0  |     pkey->params.raw_priv.data = tmp.data;  | 
1224  | 0  |     pkey->params.raw_priv.size = tmp.size;  | 
1225  | 0  |     pkey->params.curve = curve;  | 
1226  |  | 
  | 
1227  | 0  |     tmp.data = NULL;  | 
1228  | 0  |     return 0;  | 
1229  | 0  |   } else { | 
1230  | 0  |     return gnutls_assert_val(GNUTLS_E_ECC_UNSUPPORTED_CURVE);  | 
1231  | 0  |   }  | 
1232  | 0  | }  | 
1233  |  |  | 
1234  |  | /* Converts a GOST key to  | 
1235  |  |  * an internal structure (gnutls_private_key)  | 
1236  |  |  */  | 
1237  |  | static int _privkey_decode_gost_key(const gnutls_datum_t *raw_key,  | 
1238  |  |             gnutls_x509_privkey_t pkey)  | 
1239  | 0  | { | 
1240  | 0  |   int ret;  | 
1241  | 0  |   int ecc_size = gnutls_ecc_curve_get_size(pkey->params.curve);  | 
1242  |  |  | 
1243  |  |   /* Just to be sure here */  | 
1244  | 0  |   if (ecc_size <= 0) { | 
1245  | 0  |     gnutls_assert();  | 
1246  | 0  |     ret = GNUTLS_E_ECC_UNSUPPORTED_CURVE;  | 
1247  | 0  |     goto error;  | 
1248  | 0  |   }  | 
1249  |  |  | 
1250  |  |   /* Private key form described in R 50.1.112-2016.  | 
1251  |  |    * Private key can come up as masked value concatenated with several masks.  | 
1252  |  |    * each part is of ecc_size bytes. Key will be unmasked in pk_fixup */  | 
1253  | 0  |   if (raw_key->size % ecc_size == 0) { | 
1254  | 0  |     ret = _gnutls_mpi_init_scan_le(&pkey->params.params[GOST_K],  | 
1255  | 0  |                  raw_key->data, raw_key->size);  | 
1256  | 0  |     if (ret < 0) { | 
1257  | 0  |       gnutls_assert();  | 
1258  | 0  |       goto error;  | 
1259  | 0  |     }  | 
1260  | 0  |   } else if (raw_key->data[0] == ASN1_TAG_INTEGER) { | 
1261  | 0  |     asn1_node pkey_asn;  | 
1262  |  |  | 
1263  |  |     /* Very old format: INTEGER packed in OCTET STRING */  | 
1264  | 0  |     if ((ret = asn1_create_element(_gnutls_get_gnutls_asn(),  | 
1265  | 0  |                  "GNUTLS.GOSTPrivateKeyOld",  | 
1266  | 0  |                  &pkey_asn)) != ASN1_SUCCESS) { | 
1267  | 0  |       gnutls_assert();  | 
1268  | 0  |       ret = _gnutls_asn2err(ret);  | 
1269  | 0  |       goto error;  | 
1270  | 0  |     }  | 
1271  |  |  | 
1272  | 0  |     ret = _asn1_strict_der_decode(&pkey_asn, raw_key->data,  | 
1273  | 0  |                 raw_key->size, NULL);  | 
1274  | 0  |     if (ret != ASN1_SUCCESS) { | 
1275  | 0  |       gnutls_assert();  | 
1276  | 0  |       ret = _gnutls_asn2err(ret);  | 
1277  | 0  |       asn1_delete_structure2(&pkey_asn,  | 
1278  | 0  |                  ASN1_DELETE_FLAG_ZEROIZE);  | 
1279  | 0  |       goto error;  | 
1280  | 0  |     }  | 
1281  |  |  | 
1282  | 0  |     ret = _gnutls_x509_read_key_int(pkey_asn, "",  | 
1283  | 0  |             &pkey->params.params[GOST_K]);  | 
1284  | 0  |     if (ret < 0) { | 
1285  | 0  |       gnutls_assert();  | 
1286  | 0  |       asn1_delete_structure2(&pkey_asn,  | 
1287  | 0  |                  ASN1_DELETE_FLAG_ZEROIZE);  | 
1288  | 0  |       goto error;  | 
1289  | 0  |     }  | 
1290  | 0  |     asn1_delete_structure2(&pkey_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
1291  | 0  |   } else if (raw_key->data[0] == ASN1_TAG_OCTET_STRING) { | 
1292  | 0  |     asn1_node pkey_asn;  | 
1293  |  |  | 
1294  |  |     /* format: OCTET STRING packed in OCTET STRING */  | 
1295  | 0  |     if ((ret = asn1_create_element(_gnutls_get_gnutls_asn(),  | 
1296  | 0  |                  "GNUTLS.GOSTPrivateKey",  | 
1297  | 0  |                  &pkey_asn)) != ASN1_SUCCESS) { | 
1298  | 0  |       gnutls_assert();  | 
1299  | 0  |       ret = _gnutls_asn2err(ret);  | 
1300  | 0  |       goto error;  | 
1301  | 0  |     }  | 
1302  |  |  | 
1303  | 0  |     ret = _asn1_strict_der_decode(&pkey_asn, raw_key->data,  | 
1304  | 0  |                 raw_key->size, NULL);  | 
1305  | 0  |     if (ret != ASN1_SUCCESS) { | 
1306  | 0  |       gnutls_assert();  | 
1307  | 0  |       ret = _gnutls_asn2err(ret);  | 
1308  | 0  |       asn1_delete_structure2(&pkey_asn,  | 
1309  | 0  |                  ASN1_DELETE_FLAG_ZEROIZE);  | 
1310  | 0  |       goto error;  | 
1311  | 0  |     }  | 
1312  |  |  | 
1313  | 0  |     ret = _gnutls_x509_read_key_int_le(  | 
1314  | 0  |       pkey_asn, "", &pkey->params.params[GOST_K]);  | 
1315  | 0  |     if (ret < 0) { | 
1316  | 0  |       gnutls_assert();  | 
1317  | 0  |       asn1_delete_structure2(&pkey_asn,  | 
1318  | 0  |                  ASN1_DELETE_FLAG_ZEROIZE);  | 
1319  | 0  |       goto error;  | 
1320  | 0  |     }  | 
1321  | 0  |     asn1_delete_structure2(&pkey_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
1322  | 0  |   } else { | 
1323  | 0  |     gnutls_assert();  | 
1324  | 0  |     ret = GNUTLS_E_PARSING_ERROR;  | 
1325  | 0  |     goto error;  | 
1326  | 0  |   }  | 
1327  |  |  | 
1328  | 0  |   pkey->params.params_nr++;  | 
1329  |  | 
  | 
1330  | 0  |   return 0;  | 
1331  |  |  | 
1332  | 0  | error:  | 
1333  | 0  |   return ret;  | 
1334  | 0  | }  | 
1335  |  |  | 
1336  |  | /* Decodes a GOST privateKey from a PKCS8 structure.  | 
1337  |  |  */  | 
1338  |  | static int _decode_pkcs8_gost_key(asn1_node pkcs8_asn,  | 
1339  |  |           gnutls_x509_privkey_t pkey,  | 
1340  |  |           gnutls_pk_algorithm_t algo)  | 
1341  | 0  | { | 
1342  | 0  |   int ret;  | 
1343  | 0  |   gnutls_datum_t tmp;  | 
1344  | 0  |   unsigned char  | 
1345  | 0  |     oid[3 *  | 
1346  | 0  |         MAX_OID_SIZE]; /* GOST parameters can have 3 OIDs at most */  | 
1347  | 0  |   int len, result;  | 
1348  |  | 
  | 
1349  | 0  |   gnutls_pk_params_init(&pkey->params);  | 
1350  |  | 
  | 
1351  | 0  |   len = sizeof(oid);  | 
1352  | 0  |   result = asn1_read_value(pkcs8_asn, "privateKeyAlgorithm.parameters",  | 
1353  | 0  |          oid, &len);  | 
1354  | 0  |   if (result != ASN1_SUCCESS) { | 
1355  | 0  |     gnutls_assert();  | 
1356  | 0  |     ret = GNUTLS_E_PARSING_ERROR;  | 
1357  | 0  |     goto error;  | 
1358  | 0  |   } else { | 
1359  | 0  |     ret = _gnutls_x509_read_gost_params(oid, len, &pkey->params,  | 
1360  | 0  |                 algo);  | 
1361  | 0  |     if (ret < 0) { | 
1362  | 0  |       gnutls_assert();  | 
1363  | 0  |       goto error;  | 
1364  | 0  |     }  | 
1365  | 0  |   }  | 
1366  |  |  | 
1367  |  |   /* Will be fixed later by pk_fixup */  | 
1368  | 0  |   ret = _gnutls_mpi_init(&pkey->params.params[GOST_X]);  | 
1369  | 0  |   if (ret < 0) { | 
1370  | 0  |     gnutls_assert();  | 
1371  | 0  |     goto error;  | 
1372  | 0  |   }  | 
1373  | 0  |   pkey->params.params_nr++;  | 
1374  |  | 
  | 
1375  | 0  |   ret = _gnutls_mpi_init(&pkey->params.params[GOST_Y]);  | 
1376  | 0  |   if (ret < 0) { | 
1377  | 0  |     gnutls_assert();  | 
1378  | 0  |     goto error;  | 
1379  | 0  |   }  | 
1380  | 0  |   pkey->params.params_nr++;  | 
1381  |  | 
  | 
1382  | 0  |   _gnutls_mpi_set_ui(pkey->params.params[GOST_X], 0);  | 
1383  | 0  |   _gnutls_mpi_set_ui(pkey->params.params[GOST_Y], 0);  | 
1384  |  | 
  | 
1385  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn, "privateKey", &tmp);  | 
1386  | 0  |   if (ret < 0) { | 
1387  | 0  |     gnutls_assert();  | 
1388  | 0  |     goto error;  | 
1389  | 0  |   }  | 
1390  |  |  | 
1391  | 0  |   ret = _privkey_decode_gost_key(&tmp, pkey);  | 
1392  | 0  |   _gnutls_free_key_datum(&tmp);  | 
1393  |  | 
  | 
1394  | 0  |   if (ret < 0) { | 
1395  | 0  |     gnutls_assert();  | 
1396  | 0  |     goto error;  | 
1397  | 0  |   }  | 
1398  |  |  | 
1399  | 0  |   pkey->params.algo = algo;  | 
1400  |  | 
  | 
1401  | 0  |   return 0;  | 
1402  |  |  | 
1403  | 0  | error:  | 
1404  | 0  |   gnutls_pk_params_clear(&pkey->params);  | 
1405  | 0  |   gnutls_pk_params_release(&pkey->params);  | 
1406  |  | 
  | 
1407  | 0  |   return ret;  | 
1408  | 0  | }  | 
1409  |  |  | 
1410  |  | /* Decodes an DSA privateKey and params from a PKCS8 structure.  | 
1411  |  |  */  | 
1412  |  | static int _decode_pkcs8_dsa_key(asn1_node pkcs8_asn,  | 
1413  |  |          gnutls_x509_privkey_t pkey)  | 
1414  | 0  | { | 
1415  | 0  |   int ret;  | 
1416  | 0  |   gnutls_datum_t tmp = { NULL, 0 }; | 
1417  |  | 
  | 
1418  | 0  |   gnutls_pk_params_init(&pkey->params);  | 
1419  |  | 
  | 
1420  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn, "privateKey", &tmp);  | 
1421  | 0  |   if (ret < 0) { | 
1422  | 0  |     gnutls_assert();  | 
1423  | 0  |     goto error;  | 
1424  | 0  |   }  | 
1425  |  |  | 
1426  | 0  |   ret = _gnutls_x509_read_der_int(tmp.data, tmp.size,  | 
1427  | 0  |           &pkey->params.params[4]);  | 
1428  | 0  |   _gnutls_free_key_datum(&tmp);  | 
1429  |  | 
  | 
1430  | 0  |   if (ret < 0) { | 
1431  | 0  |     gnutls_assert();  | 
1432  | 0  |     goto error;  | 
1433  | 0  |   }  | 
1434  |  |  | 
1435  | 0  |   ret = _gnutls_x509_read_value(pkcs8_asn,  | 
1436  | 0  |               "privateKeyAlgorithm.parameters", &tmp);  | 
1437  | 0  |   if (ret < 0) { | 
1438  | 0  |     gnutls_assert();  | 
1439  | 0  |     goto error;  | 
1440  | 0  |   }  | 
1441  |  |  | 
1442  | 0  |   ret = _gnutls_x509_read_pubkey_params(GNUTLS_PK_DSA, tmp.data, tmp.size,  | 
1443  | 0  |                 &pkey->params);  | 
1444  | 0  |   _gnutls_free_datum(&tmp);  | 
1445  | 0  |   if (ret < 0) { | 
1446  | 0  |     gnutls_assert();  | 
1447  | 0  |     goto error;  | 
1448  | 0  |   }  | 
1449  |  |  | 
1450  | 0  |   if (_gnutls_mpi_cmp_ui(pkey->params.params[0], 0) == 0) { | 
1451  | 0  |     gnutls_assert();  | 
1452  | 0  |     ret = GNUTLS_E_ILLEGAL_PARAMETER;  | 
1453  | 0  |     goto error;  | 
1454  | 0  |   }  | 
1455  |  |  | 
1456  |  |   /* the public key can be generated as g^x mod p */  | 
1457  | 0  |   ret = _gnutls_mpi_init(&pkey->params.params[3]);  | 
1458  | 0  |   if (ret < 0) { | 
1459  | 0  |     gnutls_assert();  | 
1460  | 0  |     goto error;  | 
1461  | 0  |   }  | 
1462  |  |  | 
1463  | 0  |   ret = _gnutls_mpi_powm(pkey->params.params[3], pkey->params.params[2],  | 
1464  | 0  |              pkey->params.params[4], pkey->params.params[0]);  | 
1465  | 0  |   if (ret < 0) { | 
1466  | 0  |     gnutls_assert();  | 
1467  | 0  |     goto error;  | 
1468  | 0  |   }  | 
1469  |  |  | 
1470  | 0  |   pkey->params.algo = GNUTLS_PK_DSA;  | 
1471  | 0  |   pkey->params.params_nr = DSA_PRIVATE_PARAMS;  | 
1472  |  | 
  | 
1473  | 0  |   ret = _gnutls_asn1_encode_privkey(&pkey->key, &pkey->params);  | 
1474  | 0  |   if (ret < 0) { | 
1475  | 0  |     gnutls_assert();  | 
1476  | 0  |     goto error;  | 
1477  | 0  |   }  | 
1478  |  |  | 
1479  | 0  |   return 0;  | 
1480  |  |  | 
1481  | 0  | error:  | 
1482  | 0  |   if (pkey->params.params_nr != DSA_PRIVATE_PARAMS)  | 
1483  | 0  |     _gnutls_mpi_release(&pkey->params.params[4]);  | 
1484  | 0  |   return ret;  | 
1485  | 0  | }  | 
1486  |  |  | 
1487  |  | static int _decode_pkcs8_ml_dsa_key(asn1_node pkcs8_asn,  | 
1488  |  |             gnutls_x509_privkey_t pkey,  | 
1489  |  |             gnutls_pk_algorithm_t algo)  | 
1490  | 0  | { | 
1491  | 0  |   int ret;  | 
1492  | 0  |   size_t raw_pub_size, raw_priv_size;  | 
1493  |  | 
  | 
1494  | 0  |   switch (algo) { | 
1495  | 0  |   case GNUTLS_PK_MLDSA44:  | 
1496  | 0  |     raw_priv_size = MLDSA44_PRIVKEY_SIZE;  | 
1497  | 0  |     raw_pub_size = MLDSA44_PUBKEY_SIZE;  | 
1498  | 0  |     break;  | 
1499  | 0  |   case GNUTLS_PK_MLDSA65:  | 
1500  | 0  |     raw_priv_size = MLDSA65_PRIVKEY_SIZE;  | 
1501  | 0  |     raw_pub_size = MLDSA65_PUBKEY_SIZE;  | 
1502  | 0  |     break;  | 
1503  | 0  |   case GNUTLS_PK_MLDSA87:  | 
1504  | 0  |     raw_priv_size = MLDSA87_PRIVKEY_SIZE;  | 
1505  | 0  |     raw_pub_size = MLDSA87_PUBKEY_SIZE;  | 
1506  | 0  |     break;  | 
1507  | 0  |   default:  | 
1508  | 0  |     return gnutls_assert_val(  | 
1509  | 0  |       GNUTLS_E_UNSUPPORTED_SIGNATURE_ALGORITHM);  | 
1510  | 0  |   }  | 
1511  |  |  | 
1512  |  |   /* TODO: support OneAsymmetricKey to read public key from a  | 
1513  |  |    * separate field  | 
1514  |  |    */  | 
1515  |  |  | 
1516  | 0  |   gnutls_pk_params_init(&pkey->params);  | 
1517  | 0  |   pkey->params.algo = algo;  | 
1518  |  | 
  | 
1519  | 0  |   ret = _gnutls_x509_read_string(pkcs8_asn, "privateKey",  | 
1520  | 0  |                &pkey->params.raw_priv,  | 
1521  | 0  |                ASN1_ETYPE_OCTET_STRING, 1);  | 
1522  | 0  |   if (ret < 0) { | 
1523  | 0  |     gnutls_assert();  | 
1524  | 0  |     goto error;  | 
1525  | 0  |   }  | 
1526  |  |  | 
1527  | 0  |   if (pkey->params.raw_priv.size != raw_priv_size + raw_pub_size) { | 
1528  | 0  |     ret = gnutls_assert_val(GNUTLS_E_ASN1_DER_ERROR);  | 
1529  | 0  |     goto error;  | 
1530  | 0  |   }  | 
1531  |  |  | 
1532  | 0  |   ret = _gnutls_set_datum(&pkey->params.raw_pub,  | 
1533  | 0  |         &pkey->params.raw_priv.data[raw_priv_size],  | 
1534  | 0  |         raw_pub_size);  | 
1535  | 0  |   if (ret < 0) { | 
1536  | 0  |     gnutls_assert();  | 
1537  | 0  |     goto error;  | 
1538  | 0  |   }  | 
1539  |  |  | 
1540  | 0  |   pkey->params.raw_priv.size = raw_priv_size;  | 
1541  |  | 
  | 
1542  | 0  |   return GNUTLS_E_SUCCESS;  | 
1543  |  |  | 
1544  | 0  | error:  | 
1545  | 0  |   gnutls_pk_params_clear(&pkey->params);  | 
1546  | 0  |   gnutls_pk_params_release(&pkey->params);  | 
1547  |  | 
  | 
1548  | 0  |   return ret;  | 
1549  | 0  | }  | 
1550  |  |  | 
1551  |  | static int decode_private_key_info(const gnutls_datum_t *der,  | 
1552  |  |            gnutls_x509_privkey_t pkey)  | 
1553  | 0  | { | 
1554  | 0  |   int result, len;  | 
1555  | 0  |   char oid[MAX_OID_SIZE];  | 
1556  | 0  |   asn1_node pkcs8_asn = NULL;  | 
1557  | 0  |   gnutls_datum_t sder;  | 
1558  | 0  |   int ret;  | 
1559  |  | 
  | 
1560  | 0  |   if ((result = asn1_create_element(_gnutls_get_pkix(),  | 
1561  | 0  |             "PKIX1.pkcs-8-PrivateKeyInfo",  | 
1562  | 0  |             &pkcs8_asn)) != ASN1_SUCCESS) { | 
1563  | 0  |     gnutls_assert();  | 
1564  | 0  |     result = _gnutls_asn2err(result);  | 
1565  | 0  |     goto error;  | 
1566  | 0  |   }  | 
1567  |  |  | 
1568  | 0  |   result =  | 
1569  | 0  |     _asn1_strict_der_decode(&pkcs8_asn, der->data, der->size, NULL);  | 
1570  | 0  |   if (result != ASN1_SUCCESS) { | 
1571  | 0  |     gnutls_assert();  | 
1572  | 0  |     result = _gnutls_asn2err(result);  | 
1573  | 0  |     goto error;  | 
1574  | 0  |   }  | 
1575  |  |  | 
1576  |  |   /* Check the private key algorithm OID  | 
1577  |  |    */  | 
1578  | 0  |   len = sizeof(oid);  | 
1579  | 0  |   result = asn1_read_value(pkcs8_asn, "privateKeyAlgorithm.algorithm",  | 
1580  | 0  |          oid, &len);  | 
1581  | 0  |   if (result != ASN1_SUCCESS) { | 
1582  | 0  |     gnutls_assert();  | 
1583  | 0  |     result = _gnutls_asn2err(result);  | 
1584  | 0  |     goto error;  | 
1585  | 0  |   }  | 
1586  |  |  | 
1587  | 0  |   pkey->params.algo = gnutls_oid_to_pk(oid);  | 
1588  | 0  |   if (pkey->params.algo == GNUTLS_PK_UNKNOWN) { | 
1589  | 0  |     gnutls_assert();  | 
1590  | 0  |     _gnutls_debug_log(  | 
1591  | 0  |       "PKCS #8 private key OID '%s' is unsupported.\n", oid);  | 
1592  | 0  |     result = GNUTLS_E_UNKNOWN_PK_ALGORITHM;  | 
1593  | 0  |     goto error;  | 
1594  | 0  |   }  | 
1595  |  |  | 
1596  |  |   /* Get the DER encoding of the actual private key.  | 
1597  |  |    */  | 
1598  |  |  | 
1599  | 0  |   switch (pkey->params.algo) { | 
1600  | 0  |   case GNUTLS_PK_RSA:  | 
1601  | 0  |     result = _decode_pkcs8_rsa_key(pkcs8_asn, pkey);  | 
1602  | 0  |     break;  | 
1603  | 0  |   case GNUTLS_PK_RSA_PSS:  | 
1604  | 0  |     result = _decode_pkcs8_rsa_pss_key(pkcs8_asn, pkey);  | 
1605  | 0  |     break;  | 
1606  | 0  |   case GNUTLS_PK_RSA_OAEP:  | 
1607  | 0  |     result = _decode_pkcs8_rsa_oaep_key(pkcs8_asn, pkey);  | 
1608  | 0  |     break;  | 
1609  | 0  |   case GNUTLS_PK_DSA:  | 
1610  | 0  |     result = _decode_pkcs8_dsa_key(pkcs8_asn, pkey);  | 
1611  | 0  |     break;  | 
1612  | 0  |   case GNUTLS_PK_ECDSA:  | 
1613  | 0  |     result = _decode_pkcs8_ecc_key(pkcs8_asn, pkey);  | 
1614  | 0  |     break;  | 
1615  | 0  |   case GNUTLS_PK_EDDSA_ED25519:  | 
1616  | 0  |   case GNUTLS_PK_EDDSA_ED448:  | 
1617  | 0  |     result = _decode_pkcs8_eddsa_key(pkcs8_asn, pkey, oid);  | 
1618  | 0  |     break;  | 
1619  | 0  |   case GNUTLS_PK_ECDH_X25519:  | 
1620  | 0  |   case GNUTLS_PK_ECDH_X448:  | 
1621  | 0  |     result = _decode_pkcs8_modern_ecdh_key(pkcs8_asn, pkey, oid);  | 
1622  | 0  |     break;  | 
1623  | 0  |   case GNUTLS_PK_GOST_01:  | 
1624  | 0  |   case GNUTLS_PK_GOST_12_256:  | 
1625  | 0  |   case GNUTLS_PK_GOST_12_512:  | 
1626  | 0  |     result = _decode_pkcs8_gost_key(pkcs8_asn, pkey,  | 
1627  | 0  |             pkey->params.algo);  | 
1628  | 0  |     break;  | 
1629  | 0  |   case GNUTLS_PK_MLDSA44:  | 
1630  | 0  |   case GNUTLS_PK_MLDSA65:  | 
1631  | 0  |   case GNUTLS_PK_MLDSA87:  | 
1632  | 0  |     result = _decode_pkcs8_ml_dsa_key(pkcs8_asn, pkey,  | 
1633  | 0  |               pkey->params.algo);  | 
1634  | 0  |     break;  | 
1635  | 0  |   default:  | 
1636  | 0  |     result = gnutls_assert_val(GNUTLS_E_UNIMPLEMENTED_FEATURE);  | 
1637  | 0  |     goto error;  | 
1638  | 0  |   }  | 
1639  |  |  | 
1640  | 0  |   if (result < 0) { | 
1641  | 0  |     gnutls_assert();  | 
1642  | 0  |     goto error;  | 
1643  | 0  |   }  | 
1644  |  |  | 
1645  |  |   /* check for provable parameters attribute */  | 
1646  | 0  |   ret = _x509_parse_attribute(pkcs8_asn, "attributes", OID_ATTR_PROV_SEED,  | 
1647  | 0  |             0, 1, &sder);  | 
1648  | 0  |   if (ret >= 0) { /* ignore it when not being present */ | 
1649  | 0  |     ret = _x509_decode_provable_seed(pkey, &sder);  | 
1650  | 0  |     gnutls_free(sder.data);  | 
1651  | 0  |     if (ret < 0) { | 
1652  | 0  |       gnutls_assert();  | 
1653  | 0  |     }  | 
1654  | 0  |   }  | 
1655  |  | 
  | 
1656  | 0  |   result = 0;  | 
1657  |  | 
  | 
1658  | 0  | error:  | 
1659  | 0  |   asn1_delete_structure2(&pkcs8_asn, ASN1_DELETE_FLAG_ZEROIZE);  | 
1660  | 0  |   return result;  | 
1661  | 0  | }  | 
1662  |  |  | 
1663  |  | /**  | 
1664  |  |  * gnutls_x509_privkey_import_pkcs8:  | 
1665  |  |  * @key: The data to store the parsed key  | 
1666  |  |  * @data: The DER or PEM encoded key.  | 
1667  |  |  * @format: One of DER or PEM  | 
1668  |  |  * @password: the password to decrypt the key (if it is encrypted).  | 
1669  |  |  * @flags: 0 if encrypted or GNUTLS_PKCS_PLAIN if not encrypted.  | 
1670  |  |  *  | 
1671  |  |  * This function will convert the given DER or PEM encoded PKCS8 2.0  | 
1672  |  |  * encrypted key to the native gnutls_x509_privkey_t format. The  | 
1673  |  |  * output will be stored in @key.  Both RSA and DSA keys can be  | 
1674  |  |  * imported, and flags can only be used to indicate an unencrypted  | 
1675  |  |  * key.  | 
1676  |  |  *  | 
1677  |  |  * The @password can be either ASCII or UTF-8 in the default PBES2  | 
1678  |  |  * encryption schemas, or ASCII for the PKCS12 schemas.  | 
1679  |  |  *  | 
1680  |  |  * If the Certificate is PEM encoded it should have a header of  | 
1681  |  |  * "ENCRYPTED PRIVATE KEY", or "PRIVATE KEY". You only need to  | 
1682  |  |  * specify the flags if the key is DER encoded, since in that case  | 
1683  |  |  * the encryption status cannot be auto-detected.  | 
1684  |  |  *  | 
1685  |  |  * If the %GNUTLS_PKCS_PLAIN flag is specified and the supplied data  | 
1686  |  |  * are encrypted then %GNUTLS_E_DECRYPTION_FAILED is returned.  | 
1687  |  |  *  | 
1688  |  |  * Returns: On success, %GNUTLS_E_SUCCESS (0) is returned, otherwise a  | 
1689  |  |  *   negative error value.  | 
1690  |  |  **/  | 
1691  |  | int gnutls_x509_privkey_import_pkcs8(gnutls_x509_privkey_t key,  | 
1692  |  |              const gnutls_datum_t *data,  | 
1693  |  |              gnutls_x509_crt_fmt_t format,  | 
1694  |  |              const char *password, unsigned int flags)  | 
1695  | 0  | { | 
1696  | 0  |   int result = 0, need_free = 0;  | 
1697  | 0  |   gnutls_datum_t _data;  | 
1698  |  | 
  | 
1699  | 0  |   if (key == NULL) { | 
1700  | 0  |     gnutls_assert();  | 
1701  | 0  |     return GNUTLS_E_INVALID_REQUEST;  | 
1702  | 0  |   }  | 
1703  |  |  | 
1704  | 0  |   _data.data = data->data;  | 
1705  | 0  |   _data.size = data->size;  | 
1706  |  | 
  | 
1707  | 0  |   key->params.algo = GNUTLS_PK_UNKNOWN;  | 
1708  |  |  | 
1709  |  |   /* If the Certificate is in PEM format then decode it  | 
1710  |  |    */  | 
1711  | 0  |   if (format == GNUTLS_X509_FMT_PEM) { | 
1712  |  |     /* Try the first header   | 
1713  |  |      */  | 
1714  | 0  |     result = _gnutls_fbase64_decode(PEM_UNENCRYPTED_PKCS8,  | 
1715  | 0  |             data->data, data->size, &_data);  | 
1716  |  | 
  | 
1717  | 0  |     if (result < 0) { /* Try the encrypted header  | 
1718  |  |            */  | 
1719  | 0  |       result = _gnutls_fbase64_decode(PEM_PKCS8, data->data,  | 
1720  | 0  |               data->size, &_data);  | 
1721  |  | 
  | 
1722  | 0  |       if (result < 0) { | 
1723  | 0  |         gnutls_assert();  | 
1724  | 0  |         return result;  | 
1725  | 0  |       }  | 
1726  | 0  |     } else if (flags == 0)  | 
1727  | 0  |       flags |= GNUTLS_PKCS_PLAIN;  | 
1728  |  |  | 
1729  | 0  |     need_free = 1;  | 
1730  | 0  |   }  | 
1731  |  |  | 
1732  | 0  |   if (key->expanded) { | 
1733  | 0  |     _gnutls_x509_privkey_reinit(key);  | 
1734  | 0  |   }  | 
1735  | 0  |   key->expanded = 1;  | 
1736  |  |  | 
1737  |  |   /* Here we don't check for password == NULL to maintain a backwards  | 
1738  |  |    * compatibility behavior, with old versions that were encrypting using  | 
1739  |  |    * a NULL password.  | 
1740  |  |    */  | 
1741  | 0  |   if (flags & GNUTLS_PKCS_PLAIN) { | 
1742  | 0  |     result = decode_private_key_info(&_data, key);  | 
1743  | 0  |     if (result < 0) { /* check if it is encrypted */ | 
1744  | 0  |       if (pkcs8_key_decode(&_data, "", key, 0) == 0)  | 
1745  | 0  |         result = GNUTLS_E_DECRYPTION_FAILED;  | 
1746  | 0  |     }  | 
1747  | 0  |   } else { /* encrypted. */ | 
1748  | 0  |     result = pkcs8_key_decode(&_data, password, key, 1);  | 
1749  | 0  |   }  | 
1750  |  | 
  | 
1751  | 0  |   if (result < 0) { | 
1752  | 0  |     gnutls_assert();  | 
1753  | 0  |     goto cleanup;  | 
1754  | 0  |   }  | 
1755  |  |  | 
1756  |  |   /* This part is necessary to get the public key on certain algorithms.  | 
1757  |  |    * In the import above we only get the private key. */  | 
1758  | 0  |   result =  | 
1759  | 0  |     _gnutls_pk_fixup(key->params.algo, GNUTLS_IMPORT, &key->params);  | 
1760  | 0  |   if (result < 0) { | 
1761  | 0  |     gnutls_assert();  | 
1762  | 0  |     goto cleanup;  | 
1763  | 0  |   }  | 
1764  |  |  | 
1765  | 0  |   if (need_free)  | 
1766  | 0  |     _gnutls_free_datum(&_data);  | 
1767  |  |  | 
1768  |  |   /* The key has now been decoded.  | 
1769  |  |    */  | 
1770  | 0  |   return 0;  | 
1771  |  |  | 
1772  | 0  | cleanup:  | 
1773  | 0  |   asn1_delete_structure2(&key->key, ASN1_DELETE_FLAG_ZEROIZE);  | 
1774  | 0  |   key->params.algo = GNUTLS_PK_UNKNOWN;  | 
1775  | 0  |   if (need_free) { | 
1776  | 0  |     zeroize_temp_key(_data.data, _data.size);  | 
1777  | 0  |     _gnutls_free_datum(&_data);  | 
1778  | 0  |   }  | 
1779  | 0  |   return result;  | 
1780  | 0  | }  |