1 /***************************************************************************
2 * _ _ ____ _
3 * Project ___| | | | _ \| |
4 * / __| | | | |_) | |
5 * | (__| |_| | _ <| |___
6 * \___|\___/|_| \_\_____|
7 *
8 * Copyright (C) 1998 - 2018, Daniel Stenberg, <daniel@haxx.se>, et al.
9 *
10 * This software is licensed as described in the file COPYING, which
11 * you should have received as part of this distribution. The terms
12 * are also available at https://curl.haxx.se/docs/copyright.html.
13 *
14 * You may opt to use, copy, modify, merge, publish, distribute and/or sell
15 * copies of the Software, and permit persons to whom the Software is
16 * furnished to do so, under the terms of the COPYING file.
17 *
18 * This software is distributed on an "AS IS" basis, WITHOUT WARRANTY OF ANY
19 * KIND, either express or implied.
20 *
21 ***************************************************************************/
22
23 /*
24 * Source file for all NSS-specific code for the TLS/SSL layer. No code
25 * but vtls.c should ever call or use these functions.
26 */
27
28 #include "curl_setup.h"
29
30 #ifdef USE_NSS
31
32 #include "urldata.h"
33 #include "sendf.h"
34 #include "formdata.h" /* for the boundary function */
35 #include "url.h" /* for the ssl config check function */
36 #include "connect.h"
37 #include "strcase.h"
38 #include "select.h"
39 #include "vtls.h"
40 #include "llist.h"
41 #include "curl_printf.h"
42 #include "nssg.h"
43 #include <nspr.h>
44 #include <nss.h>
45 #include <ssl.h>
46 #include <sslerr.h>
47 #include <secerr.h>
48 #include <secmod.h>
49 #include <sslproto.h>
50 #include <prtypes.h>
51 #include <pk11pub.h>
52 #include <prio.h>
53 #include <secitem.h>
54 #include <secport.h>
55 #include <certdb.h>
56 #include <base64.h>
57 #include <cert.h>
58 #include <prerror.h>
59 #include <keyhi.h> /* for SECKEY_DestroyPublicKey() */
60 #include <private/pprio.h> /* for PR_ImportTCPSocket */
61
62 #define NSSVERNUM ((NSS_VMAJOR<<16)|(NSS_VMINOR<<8)|NSS_VPATCH)
63
64 #if NSSVERNUM >= 0x030f00 /* 3.15.0 */
65 #include <ocsp.h>
66 #endif
67
68 #include "strcase.h"
69 #include "warnless.h"
70 #include "x509asn1.h"
71
72 /* The last #include files should be: */
73 #include "curl_memory.h"
74 #include "memdebug.h"
75
76 #define SSL_DIR "/etc/pki/nssdb"
77
78 /* enough to fit the string "PEM Token #[0|1]" */
79 #define SLOTSIZE 13
80
81 struct ssl_backend_data {
82 PRFileDesc *handle;
83 char *client_nickname;
84 struct Curl_easy *data;
85 struct curl_llist obj_list;
86 PK11GenericObject *obj_clicert;
87 };
88
89 #define BACKEND connssl->backend
90
91 static PRLock *nss_initlock = NULL;
92 static PRLock *nss_crllock = NULL;
93 static PRLock *nss_findslot_lock = NULL;
94 static PRLock *nss_trustload_lock = NULL;
95 static struct curl_llist nss_crl_list;
96 static NSSInitContext *nss_context = NULL;
97 static volatile int initialized = 0;
98
99 /* type used to wrap pointers as list nodes */
100 struct ptr_list_wrap {
101 void *ptr;
102 struct curl_llist_element node;
103 };
104
105 typedef struct {
106 const char *name;
107 int num;
108 } cipher_s;
109
110 #define PK11_SETATTRS(_attr, _idx, _type, _val, _len) do { \
111 CK_ATTRIBUTE *ptr = (_attr) + ((_idx)++); \
112 ptr->type = (_type); \
113 ptr->pValue = (_val); \
114 ptr->ulValueLen = (_len); \
115 } WHILE_FALSE
116
117 #define CERT_NewTempCertificate __CERT_NewTempCertificate
118
119 #define NUM_OF_CIPHERS sizeof(cipherlist)/sizeof(cipherlist[0])
120 static const cipher_s cipherlist[] = {
121 /* SSL2 cipher suites */
122 {"rc4", SSL_EN_RC4_128_WITH_MD5},
123 {"rc4-md5", SSL_EN_RC4_128_WITH_MD5},
124 {"rc4export", SSL_EN_RC4_128_EXPORT40_WITH_MD5},
125 {"rc2", SSL_EN_RC2_128_CBC_WITH_MD5},
126 {"rc2export", SSL_EN_RC2_128_CBC_EXPORT40_WITH_MD5},
127 {"des", SSL_EN_DES_64_CBC_WITH_MD5},
128 {"desede3", SSL_EN_DES_192_EDE3_CBC_WITH_MD5},
129 /* SSL3/TLS cipher suites */
130 {"rsa_rc4_128_md5", SSL_RSA_WITH_RC4_128_MD5},
131 {"rsa_rc4_128_sha", SSL_RSA_WITH_RC4_128_SHA},
132 {"rsa_3des_sha", SSL_RSA_WITH_3DES_EDE_CBC_SHA},
133 {"rsa_des_sha", SSL_RSA_WITH_DES_CBC_SHA},
134 {"rsa_rc4_40_md5", SSL_RSA_EXPORT_WITH_RC4_40_MD5},
135 {"rsa_rc2_40_md5", SSL_RSA_EXPORT_WITH_RC2_CBC_40_MD5},
136 {"rsa_null_md5", SSL_RSA_WITH_NULL_MD5},
137 {"rsa_null_sha", SSL_RSA_WITH_NULL_SHA},
138 {"fips_3des_sha", SSL_RSA_FIPS_WITH_3DES_EDE_CBC_SHA},
139 {"fips_des_sha", SSL_RSA_FIPS_WITH_DES_CBC_SHA},
140 {"fortezza", SSL_FORTEZZA_DMS_WITH_FORTEZZA_CBC_SHA},
141 {"fortezza_rc4_128_sha", SSL_FORTEZZA_DMS_WITH_RC4_128_SHA},
142 {"fortezza_null", SSL_FORTEZZA_DMS_WITH_NULL_SHA},
143 /* TLS 1.0: Exportable 56-bit Cipher Suites. */
144 {"rsa_des_56_sha", TLS_RSA_EXPORT1024_WITH_DES_CBC_SHA},
145 {"rsa_rc4_56_sha", TLS_RSA_EXPORT1024_WITH_RC4_56_SHA},
146 /* AES ciphers. */
147 {"dhe_dss_aes_128_cbc_sha", TLS_DHE_DSS_WITH_AES_128_CBC_SHA},
148 {"dhe_dss_aes_256_cbc_sha", TLS_DHE_DSS_WITH_AES_256_CBC_SHA},
149 {"dhe_rsa_aes_128_cbc_sha", TLS_DHE_RSA_WITH_AES_128_CBC_SHA},
150 {"dhe_rsa_aes_256_cbc_sha", TLS_DHE_RSA_WITH_AES_256_CBC_SHA},
151 {"rsa_aes_128_sha", TLS_RSA_WITH_AES_128_CBC_SHA},
152 {"rsa_aes_256_sha", TLS_RSA_WITH_AES_256_CBC_SHA},
153 /* ECC ciphers. */
154 {"ecdh_ecdsa_null_sha", TLS_ECDH_ECDSA_WITH_NULL_SHA},
155 {"ecdh_ecdsa_rc4_128_sha", TLS_ECDH_ECDSA_WITH_RC4_128_SHA},
156 {"ecdh_ecdsa_3des_sha", TLS_ECDH_ECDSA_WITH_3DES_EDE_CBC_SHA},
157 {"ecdh_ecdsa_aes_128_sha", TLS_ECDH_ECDSA_WITH_AES_128_CBC_SHA},
158 {"ecdh_ecdsa_aes_256_sha", TLS_ECDH_ECDSA_WITH_AES_256_CBC_SHA},
159 {"ecdhe_ecdsa_null_sha", TLS_ECDHE_ECDSA_WITH_NULL_SHA},
160 {"ecdhe_ecdsa_rc4_128_sha", TLS_ECDHE_ECDSA_WITH_RC4_128_SHA},
161 {"ecdhe_ecdsa_3des_sha", TLS_ECDHE_ECDSA_WITH_3DES_EDE_CBC_SHA},
162 {"ecdhe_ecdsa_aes_128_sha", TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA},
163 {"ecdhe_ecdsa_aes_256_sha", TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA},
164 {"ecdh_rsa_null_sha", TLS_ECDH_RSA_WITH_NULL_SHA},
165 {"ecdh_rsa_128_sha", TLS_ECDH_RSA_WITH_RC4_128_SHA},
166 {"ecdh_rsa_3des_sha", TLS_ECDH_RSA_WITH_3DES_EDE_CBC_SHA},
167 {"ecdh_rsa_aes_128_sha", TLS_ECDH_RSA_WITH_AES_128_CBC_SHA},
168 {"ecdh_rsa_aes_256_sha", TLS_ECDH_RSA_WITH_AES_256_CBC_SHA},
169 {"ecdhe_rsa_null", TLS_ECDHE_RSA_WITH_NULL_SHA},
170 {"ecdhe_rsa_rc4_128_sha", TLS_ECDHE_RSA_WITH_RC4_128_SHA},
171 {"ecdhe_rsa_3des_sha", TLS_ECDHE_RSA_WITH_3DES_EDE_CBC_SHA},
172 {"ecdhe_rsa_aes_128_sha", TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA},
173 {"ecdhe_rsa_aes_256_sha", TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA},
174 {"ecdh_anon_null_sha", TLS_ECDH_anon_WITH_NULL_SHA},
175 {"ecdh_anon_rc4_128sha", TLS_ECDH_anon_WITH_RC4_128_SHA},
176 {"ecdh_anon_3des_sha", TLS_ECDH_anon_WITH_3DES_EDE_CBC_SHA},
177 {"ecdh_anon_aes_128_sha", TLS_ECDH_anon_WITH_AES_128_CBC_SHA},
178 {"ecdh_anon_aes_256_sha", TLS_ECDH_anon_WITH_AES_256_CBC_SHA},
179 #ifdef TLS_RSA_WITH_NULL_SHA256
180 /* new HMAC-SHA256 cipher suites specified in RFC */
181 {"rsa_null_sha_256", TLS_RSA_WITH_NULL_SHA256},
182 {"rsa_aes_128_cbc_sha_256", TLS_RSA_WITH_AES_128_CBC_SHA256},
183 {"rsa_aes_256_cbc_sha_256", TLS_RSA_WITH_AES_256_CBC_SHA256},
184 {"dhe_rsa_aes_128_cbc_sha_256", TLS_DHE_RSA_WITH_AES_128_CBC_SHA256},
185 {"dhe_rsa_aes_256_cbc_sha_256", TLS_DHE_RSA_WITH_AES_256_CBC_SHA256},
186 {"ecdhe_ecdsa_aes_128_cbc_sha_256", TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256},
187 {"ecdhe_rsa_aes_128_cbc_sha_256", TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256},
188 #endif
189 #ifdef TLS_RSA_WITH_AES_128_GCM_SHA256
190 /* AES GCM cipher suites in RFC 5288 and RFC 5289 */
191 {"rsa_aes_128_gcm_sha_256", TLS_RSA_WITH_AES_128_GCM_SHA256},
192 {"dhe_rsa_aes_128_gcm_sha_256", TLS_DHE_RSA_WITH_AES_128_GCM_SHA256},
193 {"dhe_dss_aes_128_gcm_sha_256", TLS_DHE_DSS_WITH_AES_128_GCM_SHA256},
194 {"ecdhe_ecdsa_aes_128_gcm_sha_256", TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256},
195 {"ecdh_ecdsa_aes_128_gcm_sha_256", TLS_ECDH_ECDSA_WITH_AES_128_GCM_SHA256},
196 {"ecdhe_rsa_aes_128_gcm_sha_256", TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256},
197 {"ecdh_rsa_aes_128_gcm_sha_256", TLS_ECDH_RSA_WITH_AES_128_GCM_SHA256},
198 #endif
199 #ifdef TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384
200 /* cipher suites using SHA384 */
201 {"rsa_aes_256_gcm_sha_384", TLS_RSA_WITH_AES_256_GCM_SHA384},
202 {"dhe_rsa_aes_256_gcm_sha_384", TLS_DHE_RSA_WITH_AES_256_GCM_SHA384},
203 {"dhe_dss_aes_256_gcm_sha_384", TLS_DHE_DSS_WITH_AES_256_GCM_SHA384},
204 {"ecdhe_ecdsa_aes_256_sha_384", TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384},
205 {"ecdhe_rsa_aes_256_sha_384", TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384},
206 {"ecdhe_ecdsa_aes_256_gcm_sha_384", TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384},
207 {"ecdhe_rsa_aes_256_gcm_sha_384", TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384},
208 #endif
209 #ifdef TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256
210 /* chacha20-poly1305 cipher suites */
211 {"ecdhe_rsa_chacha20_poly1305_sha_256",
212 TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256},
213 {"ecdhe_ecdsa_chacha20_poly1305_sha_256",
214 TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256},
215 {"dhe_rsa_chacha20_poly1305_sha_256",
216 TLS_DHE_RSA_WITH_CHACHA20_POLY1305_SHA256},
217 #endif
218 };
219
220 #ifdef WIN32
221 static const char *pem_library = "nsspem.dll";
222 static const char *trust_library = "nssckbi.dll";
223 #else
224 static const char *pem_library = "libnsspem.so";
225 static const char *trust_library = "libnssckbi.so";
226 #endif
227
228 static SECMODModule *pem_module = NULL;
229 static SECMODModule *trust_module = NULL;
230
231 /* NSPR I/O layer we use to detect blocking direction during SSL handshake */
232 static PRDescIdentity nspr_io_identity = PR_INVALID_IO_LAYER;
233 static PRIOMethods nspr_io_methods;
234
nss_error_to_name(PRErrorCode code)235 static const char *nss_error_to_name(PRErrorCode code)
236 {
237 const char *name = PR_ErrorToName(code);
238 if(name)
239 return name;
240
241 return "unknown error";
242 }
243
nss_print_error_message(struct Curl_easy * data,PRUint32 err)244 static void nss_print_error_message(struct Curl_easy *data, PRUint32 err)
245 {
246 failf(data, "%s", PR_ErrorToString(err, PR_LANGUAGE_I_DEFAULT));
247 }
248
nss_sslver_to_name(PRUint16 nssver)249 static char *nss_sslver_to_name(PRUint16 nssver)
250 {
251 switch(nssver) {
252 case SSL_LIBRARY_VERSION_2:
253 return strdup("SSLv2");
254 case SSL_LIBRARY_VERSION_3_0:
255 return strdup("SSLv3");
256 case SSL_LIBRARY_VERSION_TLS_1_0:
257 return strdup("TLSv1.0");
258 #ifdef SSL_LIBRARY_VERSION_TLS_1_1
259 case SSL_LIBRARY_VERSION_TLS_1_1:
260 return strdup("TLSv1.1");
261 #endif
262 #ifdef SSL_LIBRARY_VERSION_TLS_1_2
263 case SSL_LIBRARY_VERSION_TLS_1_2:
264 return strdup("TLSv1.2");
265 #endif
266 #ifdef SSL_LIBRARY_VERSION_TLS_1_3
267 case SSL_LIBRARY_VERSION_TLS_1_3:
268 return strdup("TLSv1.3");
269 #endif
270 default:
271 return curl_maprintf("0x%04x", nssver);
272 }
273 }
274
set_ciphers(struct Curl_easy * data,PRFileDesc * model,char * cipher_list)275 static SECStatus set_ciphers(struct Curl_easy *data, PRFileDesc * model,
276 char *cipher_list)
277 {
278 unsigned int i;
279 PRBool cipher_state[NUM_OF_CIPHERS];
280 PRBool found;
281 char *cipher;
282
283 /* use accessors to avoid dynamic linking issues after an update of NSS */
284 const PRUint16 num_implemented_ciphers = SSL_GetNumImplementedCiphers();
285 const PRUint16 *implemented_ciphers = SSL_GetImplementedCiphers();
286 if(!implemented_ciphers)
287 return SECFailure;
288
289 /* First disable all ciphers. This uses a different max value in case
290 * NSS adds more ciphers later we don't want them available by
291 * accident
292 */
293 for(i = 0; i < num_implemented_ciphers; i++) {
294 SSL_CipherPrefSet(model, implemented_ciphers[i], PR_FALSE);
295 }
296
297 /* Set every entry in our list to false */
298 for(i = 0; i < NUM_OF_CIPHERS; i++) {
299 cipher_state[i] = PR_FALSE;
300 }
301
302 cipher = cipher_list;
303
304 while(cipher_list && (cipher_list[0])) {
305 while((*cipher) && (ISSPACE(*cipher)))
306 ++cipher;
307
308 cipher_list = strchr(cipher, ',');
309 if(cipher_list) {
310 *cipher_list++ = '\0';
311 }
312
313 found = PR_FALSE;
314
315 for(i = 0; i<NUM_OF_CIPHERS; i++) {
316 if(strcasecompare(cipher, cipherlist[i].name)) {
317 cipher_state[i] = PR_TRUE;
318 found = PR_TRUE;
319 break;
320 }
321 }
322
323 if(found == PR_FALSE) {
324 failf(data, "Unknown cipher in list: %s", cipher);
325 return SECFailure;
326 }
327
328 if(cipher_list) {
329 cipher = cipher_list;
330 }
331 }
332
333 /* Finally actually enable the selected ciphers */
334 for(i = 0; i<NUM_OF_CIPHERS; i++) {
335 if(!cipher_state[i])
336 continue;
337
338 if(SSL_CipherPrefSet(model, cipherlist[i].num, PR_TRUE) != SECSuccess) {
339 failf(data, "cipher-suite not supported by NSS: %s", cipherlist[i].name);
340 return SECFailure;
341 }
342 }
343
344 return SECSuccess;
345 }
346
347 /*
348 * Return true if at least one cipher-suite is enabled. Used to determine
349 * if we need to call NSS_SetDomesticPolicy() to enable the default ciphers.
350 */
any_cipher_enabled(void)351 static bool any_cipher_enabled(void)
352 {
353 unsigned int i;
354
355 for(i = 0; i<NUM_OF_CIPHERS; i++) {
356 PRInt32 policy = 0;
357 SSL_CipherPolicyGet(cipherlist[i].num, &policy);
358 if(policy)
359 return TRUE;
360 }
361
362 return FALSE;
363 }
364
365 /*
366 * Determine whether the nickname passed in is a filename that needs to
367 * be loaded as a PEM or a regular NSS nickname.
368 *
369 * returns 1 for a file
370 * returns 0 for not a file (NSS nickname)
371 */
is_file(const char * filename)372 static int is_file(const char *filename)
373 {
374 struct_stat st;
375
376 if(filename == NULL)
377 return 0;
378
379 if(stat(filename, &st) == 0)
380 if(S_ISREG(st.st_mode))
381 return 1;
382
383 return 0;
384 }
385
386 /* Check if the given string is filename or nickname of a certificate. If the
387 * given string is recognized as filename, return NULL. If the given string is
388 * recognized as nickname, return a duplicated string. The returned string
389 * should be later deallocated using free(). If the OOM failure occurs, we
390 * return NULL, too.
391 */
dup_nickname(struct Curl_easy * data,const char * str)392 static char *dup_nickname(struct Curl_easy *data, const char *str)
393 {
394 const char *n;
395
396 if(!is_file(str))
397 /* no such file exists, use the string as nickname */
398 return strdup(str);
399
400 /* search the first slash; we require at least one slash in a file name */
401 n = strchr(str, '/');
402 if(!n) {
403 infof(data, "warning: certificate file name \"%s\" handled as nickname; "
404 "please use \"./%s\" to force file name\n", str, str);
405 return strdup(str);
406 }
407
408 /* we'll use the PEM reader to read the certificate from file */
409 return NULL;
410 }
411
412 /* Lock/unlock wrapper for PK11_FindSlotByName() to work around race condition
413 * in nssSlot_IsTokenPresent() causing spurious SEC_ERROR_NO_TOKEN. For more
414 * details, go to <https://bugzilla.mozilla.org/1297397>.
415 */
nss_find_slot_by_name(const char * slot_name)416 static PK11SlotInfo* nss_find_slot_by_name(const char *slot_name)
417 {
418 PK11SlotInfo *slot;
419 PR_Lock(nss_findslot_lock);
420 slot = PK11_FindSlotByName(slot_name);
421 PR_Unlock(nss_findslot_lock);
422 return slot;
423 }
424
425 /* wrap 'ptr' as list node and tail-insert into 'list' */
insert_wrapped_ptr(struct curl_llist * list,void * ptr)426 static CURLcode insert_wrapped_ptr(struct curl_llist *list, void *ptr)
427 {
428 struct ptr_list_wrap *wrap = malloc(sizeof(*wrap));
429 if(!wrap)
430 return CURLE_OUT_OF_MEMORY;
431
432 wrap->ptr = ptr;
433 Curl_llist_insert_next(list, list->tail, wrap, &wrap->node);
434 return CURLE_OK;
435 }
436
437 /* Call PK11_CreateGenericObject() with the given obj_class and filename. If
438 * the call succeeds, append the object handle to the list of objects so that
439 * the object can be destroyed in Curl_nss_close(). */
nss_create_object(struct ssl_connect_data * connssl,CK_OBJECT_CLASS obj_class,const char * filename,bool cacert)440 static CURLcode nss_create_object(struct ssl_connect_data *connssl,
441 CK_OBJECT_CLASS obj_class,
442 const char *filename, bool cacert)
443 {
444 PK11SlotInfo *slot;
445 PK11GenericObject *obj;
446 CK_BBOOL cktrue = CK_TRUE;
447 CK_BBOOL ckfalse = CK_FALSE;
448 CK_ATTRIBUTE attrs[/* max count of attributes */ 4];
449 int attr_cnt = 0;
450 CURLcode result = (cacert)
451 ? CURLE_SSL_CACERT_BADFILE
452 : CURLE_SSL_CERTPROBLEM;
453
454 const int slot_id = (cacert) ? 0 : 1;
455 char *slot_name = aprintf("PEM Token #%d", slot_id);
456 if(!slot_name)
457 return CURLE_OUT_OF_MEMORY;
458
459 slot = nss_find_slot_by_name(slot_name);
460 free(slot_name);
461 if(!slot)
462 return result;
463
464 PK11_SETATTRS(attrs, attr_cnt, CKA_CLASS, &obj_class, sizeof(obj_class));
465 PK11_SETATTRS(attrs, attr_cnt, CKA_TOKEN, &cktrue, sizeof(CK_BBOOL));
466 PK11_SETATTRS(attrs, attr_cnt, CKA_LABEL, (unsigned char *)filename,
467 (CK_ULONG)strlen(filename) + 1);
468
469 if(CKO_CERTIFICATE == obj_class) {
470 CK_BBOOL *pval = (cacert) ? (&cktrue) : (&ckfalse);
471 PK11_SETATTRS(attrs, attr_cnt, CKA_TRUST, pval, sizeof(*pval));
472 }
473
474 /* PK11_CreateManagedGenericObject() was introduced in NSS 3.34 because
475 * PK11_DestroyGenericObject() does not release resources allocated by
476 * PK11_CreateGenericObject() early enough. */
477 obj =
478 #ifdef HAVE_PK11_CREATEMANAGEDGENERICOBJECT
479 PK11_CreateManagedGenericObject
480 #else
481 PK11_CreateGenericObject
482 #endif
483 (slot, attrs, attr_cnt, PR_FALSE);
484
485 PK11_FreeSlot(slot);
486 if(!obj)
487 return result;
488
489 if(insert_wrapped_ptr(&BACKEND->obj_list, obj) != CURLE_OK) {
490 PK11_DestroyGenericObject(obj);
491 return CURLE_OUT_OF_MEMORY;
492 }
493
494 if(!cacert && CKO_CERTIFICATE == obj_class)
495 /* store reference to a client certificate */
496 BACKEND->obj_clicert = obj;
497
498 return CURLE_OK;
499 }
500
501 /* Destroy the NSS object whose handle is given by ptr. This function is
502 * a callback of Curl_llist_alloc() used by Curl_llist_destroy() to destroy
503 * NSS objects in Curl_nss_close() */
nss_destroy_object(void * user,void * ptr)504 static void nss_destroy_object(void *user, void *ptr)
505 {
506 struct ptr_list_wrap *wrap = (struct ptr_list_wrap *) ptr;
507 PK11GenericObject *obj = (PK11GenericObject *) wrap->ptr;
508 (void) user;
509 PK11_DestroyGenericObject(obj);
510 free(wrap);
511 }
512
513 /* same as nss_destroy_object() but for CRL items */
nss_destroy_crl_item(void * user,void * ptr)514 static void nss_destroy_crl_item(void *user, void *ptr)
515 {
516 struct ptr_list_wrap *wrap = (struct ptr_list_wrap *) ptr;
517 SECItem *crl_der = (SECItem *) wrap->ptr;
518 (void) user;
519 SECITEM_FreeItem(crl_der, PR_TRUE);
520 free(wrap);
521 }
522
nss_load_cert(struct ssl_connect_data * ssl,const char * filename,PRBool cacert)523 static CURLcode nss_load_cert(struct ssl_connect_data *ssl,
524 const char *filename, PRBool cacert)
525 {
526 CURLcode result = (cacert)
527 ? CURLE_SSL_CACERT_BADFILE
528 : CURLE_SSL_CERTPROBLEM;
529
530 /* libnsspem.so leaks memory if the requested file does not exist. For more
531 * details, go to <https://bugzilla.redhat.com/734760>. */
532 if(is_file(filename))
533 result = nss_create_object(ssl, CKO_CERTIFICATE, filename, cacert);
534
535 if(!result && !cacert) {
536 /* we have successfully loaded a client certificate */
537 CERTCertificate *cert;
538 char *nickname = NULL;
539 char *n = strrchr(filename, '/');
540 if(n)
541 n++;
542
543 /* The following undocumented magic helps to avoid a SIGSEGV on call
544 * of PK11_ReadRawAttribute() from SelectClientCert() when using an
545 * immature version of libnsspem.so. For more details, go to
546 * <https://bugzilla.redhat.com/733685>. */
547 nickname = aprintf("PEM Token #1:%s", n);
548 if(nickname) {
549 cert = PK11_FindCertFromNickname(nickname, NULL);
550 if(cert)
551 CERT_DestroyCertificate(cert);
552
553 free(nickname);
554 }
555 }
556
557 return result;
558 }
559
560 /* add given CRL to cache if it is not already there */
nss_cache_crl(SECItem * crl_der)561 static CURLcode nss_cache_crl(SECItem *crl_der)
562 {
563 CERTCertDBHandle *db = CERT_GetDefaultCertDB();
564 CERTSignedCrl *crl = SEC_FindCrlByDERCert(db, crl_der, 0);
565 if(crl) {
566 /* CRL already cached */
567 SEC_DestroyCrl(crl);
568 SECITEM_FreeItem(crl_der, PR_TRUE);
569 return CURLE_OK;
570 }
571
572 /* acquire lock before call of CERT_CacheCRL() and accessing nss_crl_list */
573 PR_Lock(nss_crllock);
574
575 /* store the CRL item so that we can free it in Curl_nss_cleanup() */
576 if(insert_wrapped_ptr(&nss_crl_list, crl_der) != CURLE_OK) {
577 SECITEM_FreeItem(crl_der, PR_TRUE);
578 PR_Unlock(nss_crllock);
579 return CURLE_OUT_OF_MEMORY;
580 }
581
582 if(SECSuccess != CERT_CacheCRL(db, crl_der)) {
583 /* unable to cache CRL */
584 PR_Unlock(nss_crllock);
585 return CURLE_SSL_CRL_BADFILE;
586 }
587
588 /* we need to clear session cache, so that the CRL could take effect */
589 SSL_ClearSessionCache();
590 PR_Unlock(nss_crllock);
591 return CURLE_OK;
592 }
593
nss_load_crl(const char * crlfilename)594 static CURLcode nss_load_crl(const char *crlfilename)
595 {
596 PRFileDesc *infile;
597 PRFileInfo info;
598 SECItem filedata = { 0, NULL, 0 };
599 SECItem *crl_der = NULL;
600 char *body;
601
602 infile = PR_Open(crlfilename, PR_RDONLY, 0);
603 if(!infile)
604 return CURLE_SSL_CRL_BADFILE;
605
606 if(PR_SUCCESS != PR_GetOpenFileInfo(infile, &info))
607 goto fail;
608
609 if(!SECITEM_AllocItem(NULL, &filedata, info.size + /* zero ended */ 1))
610 goto fail;
611
612 if(info.size != PR_Read(infile, filedata.data, info.size))
613 goto fail;
614
615 crl_der = SECITEM_AllocItem(NULL, NULL, 0U);
616 if(!crl_der)
617 goto fail;
618
619 /* place a trailing zero right after the visible data */
620 body = (char *)filedata.data;
621 body[--filedata.len] = '\0';
622
623 body = strstr(body, "-----BEGIN");
624 if(body) {
625 /* assume ASCII */
626 char *trailer;
627 char *begin = PORT_Strchr(body, '\n');
628 if(!begin)
629 begin = PORT_Strchr(body, '\r');
630 if(!begin)
631 goto fail;
632
633 trailer = strstr(++begin, "-----END");
634 if(!trailer)
635 goto fail;
636
637 /* retrieve DER from ASCII */
638 *trailer = '\0';
639 if(ATOB_ConvertAsciiToItem(crl_der, begin))
640 goto fail;
641
642 SECITEM_FreeItem(&filedata, PR_FALSE);
643 }
644 else
645 /* assume DER */
646 *crl_der = filedata;
647
648 PR_Close(infile);
649 return nss_cache_crl(crl_der);
650
651 fail:
652 PR_Close(infile);
653 SECITEM_FreeItem(crl_der, PR_TRUE);
654 SECITEM_FreeItem(&filedata, PR_FALSE);
655 return CURLE_SSL_CRL_BADFILE;
656 }
657
nss_load_key(struct connectdata * conn,int sockindex,char * key_file)658 static CURLcode nss_load_key(struct connectdata *conn, int sockindex,
659 char *key_file)
660 {
661 PK11SlotInfo *slot, *tmp;
662 SECStatus status;
663 CURLcode result;
664 struct ssl_connect_data *ssl = conn->ssl;
665 struct Curl_easy *data = conn->data;
666
667 (void)sockindex; /* unused */
668
669 result = nss_create_object(ssl, CKO_PRIVATE_KEY, key_file, FALSE);
670 if(result) {
671 PR_SetError(SEC_ERROR_BAD_KEY, 0);
672 return result;
673 }
674
675 slot = nss_find_slot_by_name("PEM Token #1");
676 if(!slot)
677 return CURLE_SSL_CERTPROBLEM;
678
679 /* This will force the token to be seen as re-inserted */
680 tmp = SECMOD_WaitForAnyTokenEvent(pem_module, 0, 0);
681 if(tmp)
682 PK11_FreeSlot(tmp);
683 PK11_IsPresent(slot);
684
685 status = PK11_Authenticate(slot, PR_TRUE, SSL_SET_OPTION(key_passwd));
686 PK11_FreeSlot(slot);
687
688 return (SECSuccess == status) ? CURLE_OK : CURLE_SSL_CERTPROBLEM;
689 }
690
display_error(struct connectdata * conn,PRInt32 err,const char * filename)691 static int display_error(struct connectdata *conn, PRInt32 err,
692 const char *filename)
693 {
694 switch(err) {
695 case SEC_ERROR_BAD_PASSWORD:
696 failf(conn->data, "Unable to load client key: Incorrect password");
697 return 1;
698 case SEC_ERROR_UNKNOWN_CERT:
699 failf(conn->data, "Unable to load certificate %s", filename);
700 return 1;
701 default:
702 break;
703 }
704 return 0; /* The caller will print a generic error */
705 }
706
cert_stuff(struct connectdata * conn,int sockindex,char * cert_file,char * key_file)707 static CURLcode cert_stuff(struct connectdata *conn, int sockindex,
708 char *cert_file, char *key_file)
709 {
710 struct Curl_easy *data = conn->data;
711 CURLcode result;
712
713 if(cert_file) {
714 result = nss_load_cert(&conn->ssl[sockindex], cert_file, PR_FALSE);
715 if(result) {
716 const PRErrorCode err = PR_GetError();
717 if(!display_error(conn, err, cert_file)) {
718 const char *err_name = nss_error_to_name(err);
719 failf(data, "unable to load client cert: %d (%s)", err, err_name);
720 }
721
722 return result;
723 }
724 }
725
726 if(key_file || (is_file(cert_file))) {
727 if(key_file)
728 result = nss_load_key(conn, sockindex, key_file);
729 else
730 /* In case the cert file also has the key */
731 result = nss_load_key(conn, sockindex, cert_file);
732 if(result) {
733 const PRErrorCode err = PR_GetError();
734 if(!display_error(conn, err, key_file)) {
735 const char *err_name = nss_error_to_name(err);
736 failf(data, "unable to load client key: %d (%s)", err, err_name);
737 }
738
739 return result;
740 }
741 }
742
743 return CURLE_OK;
744 }
745
nss_get_password(PK11SlotInfo * slot,PRBool retry,void * arg)746 static char *nss_get_password(PK11SlotInfo *slot, PRBool retry, void *arg)
747 {
748 (void)slot; /* unused */
749
750 if(retry || NULL == arg)
751 return NULL;
752 else
753 return (char *)PORT_Strdup((char *)arg);
754 }
755
756 /* bypass the default SSL_AuthCertificate() hook in case we do not want to
757 * verify peer */
nss_auth_cert_hook(void * arg,PRFileDesc * fd,PRBool checksig,PRBool isServer)758 static SECStatus nss_auth_cert_hook(void *arg, PRFileDesc *fd, PRBool checksig,
759 PRBool isServer)
760 {
761 struct connectdata *conn = (struct connectdata *)arg;
762
763 #ifdef SSL_ENABLE_OCSP_STAPLING
764 if(SSL_CONN_CONFIG(verifystatus)) {
765 SECStatus cacheResult;
766
767 const SECItemArray *csa = SSL_PeerStapledOCSPResponses(fd);
768 if(!csa) {
769 failf(conn->data, "Invalid OCSP response");
770 return SECFailure;
771 }
772
773 if(csa->len == 0) {
774 failf(conn->data, "No OCSP response received");
775 return SECFailure;
776 }
777
778 cacheResult = CERT_CacheOCSPResponseFromSideChannel(
779 CERT_GetDefaultCertDB(), SSL_PeerCertificate(fd),
780 PR_Now(), &csa->items[0], arg
781 );
782
783 if(cacheResult != SECSuccess) {
784 failf(conn->data, "Invalid OCSP response");
785 return cacheResult;
786 }
787 }
788 #endif
789
790 if(!SSL_CONN_CONFIG(verifypeer)) {
791 infof(conn->data, "skipping SSL peer certificate verification\n");
792 return SECSuccess;
793 }
794
795 return SSL_AuthCertificate(CERT_GetDefaultCertDB(), fd, checksig, isServer);
796 }
797
798 /**
799 * Inform the application that the handshake is complete.
800 */
HandshakeCallback(PRFileDesc * sock,void * arg)801 static void HandshakeCallback(PRFileDesc *sock, void *arg)
802 {
803 struct connectdata *conn = (struct connectdata*) arg;
804 unsigned int buflenmax = 50;
805 unsigned char buf[50];
806 unsigned int buflen;
807 SSLNextProtoState state;
808
809 if(!conn->bits.tls_enable_npn && !conn->bits.tls_enable_alpn) {
810 return;
811 }
812
813 if(SSL_GetNextProto(sock, &state, buf, &buflen, buflenmax) == SECSuccess) {
814
815 switch(state) {
816 #if NSSVERNUM >= 0x031a00 /* 3.26.0 */
817 /* used by NSS internally to implement 0-RTT */
818 case SSL_NEXT_PROTO_EARLY_VALUE:
819 /* fall through! */
820 #endif
821 case SSL_NEXT_PROTO_NO_SUPPORT:
822 case SSL_NEXT_PROTO_NO_OVERLAP:
823 infof(conn->data, "ALPN/NPN, server did not agree to a protocol\n");
824 return;
825 #ifdef SSL_ENABLE_ALPN
826 case SSL_NEXT_PROTO_SELECTED:
827 infof(conn->data, "ALPN, server accepted to use %.*s\n", buflen, buf);
828 break;
829 #endif
830 case SSL_NEXT_PROTO_NEGOTIATED:
831 infof(conn->data, "NPN, server accepted to use %.*s\n", buflen, buf);
832 break;
833 }
834
835 #ifdef USE_NGHTTP2
836 if(buflen == NGHTTP2_PROTO_VERSION_ID_LEN &&
837 !memcmp(NGHTTP2_PROTO_VERSION_ID, buf, NGHTTP2_PROTO_VERSION_ID_LEN)) {
838 conn->negnpn = CURL_HTTP_VERSION_2;
839 }
840 else
841 #endif
842 if(buflen == ALPN_HTTP_1_1_LENGTH &&
843 !memcmp(ALPN_HTTP_1_1, buf, ALPN_HTTP_1_1_LENGTH)) {
844 conn->negnpn = CURL_HTTP_VERSION_1_1;
845 }
846 }
847 }
848
849 #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
CanFalseStartCallback(PRFileDesc * sock,void * client_data,PRBool * canFalseStart)850 static SECStatus CanFalseStartCallback(PRFileDesc *sock, void *client_data,
851 PRBool *canFalseStart)
852 {
853 struct connectdata *conn = client_data;
854 struct Curl_easy *data = conn->data;
855
856 SSLChannelInfo channelInfo;
857 SSLCipherSuiteInfo cipherInfo;
858
859 SECStatus rv;
860 PRBool negotiatedExtension;
861
862 *canFalseStart = PR_FALSE;
863
864 if(SSL_GetChannelInfo(sock, &channelInfo, sizeof(channelInfo)) != SECSuccess)
865 return SECFailure;
866
867 if(SSL_GetCipherSuiteInfo(channelInfo.cipherSuite, &cipherInfo,
868 sizeof(cipherInfo)) != SECSuccess)
869 return SECFailure;
870
871 /* Prevent version downgrade attacks from TLS 1.2, and avoid False Start for
872 * TLS 1.3 and later. See https://bugzilla.mozilla.org/show_bug.cgi?id=861310
873 */
874 if(channelInfo.protocolVersion != SSL_LIBRARY_VERSION_TLS_1_2)
875 goto end;
876
877 /* Only allow ECDHE key exchange algorithm.
878 * See https://bugzilla.mozilla.org/show_bug.cgi?id=952863 */
879 if(cipherInfo.keaType != ssl_kea_ecdh)
880 goto end;
881
882 /* Prevent downgrade attacks on the symmetric cipher. We do not allow CBC
883 * mode due to BEAST, POODLE, and other attacks on the MAC-then-Encrypt
884 * design. See https://bugzilla.mozilla.org/show_bug.cgi?id=1109766 */
885 if(cipherInfo.symCipher != ssl_calg_aes_gcm)
886 goto end;
887
888 /* Enforce ALPN or NPN to do False Start, as an indicator of server
889 * compatibility. */
890 rv = SSL_HandshakeNegotiatedExtension(sock, ssl_app_layer_protocol_xtn,
891 &negotiatedExtension);
892 if(rv != SECSuccess || !negotiatedExtension) {
893 rv = SSL_HandshakeNegotiatedExtension(sock, ssl_next_proto_nego_xtn,
894 &negotiatedExtension);
895 }
896
897 if(rv != SECSuccess || !negotiatedExtension)
898 goto end;
899
900 *canFalseStart = PR_TRUE;
901
902 infof(data, "Trying TLS False Start\n");
903
904 end:
905 return SECSuccess;
906 }
907 #endif
908
display_cert_info(struct Curl_easy * data,CERTCertificate * cert)909 static void display_cert_info(struct Curl_easy *data,
910 CERTCertificate *cert)
911 {
912 char *subject, *issuer, *common_name;
913 PRExplodedTime printableTime;
914 char timeString[256];
915 PRTime notBefore, notAfter;
916
917 subject = CERT_NameToAscii(&cert->subject);
918 issuer = CERT_NameToAscii(&cert->issuer);
919 common_name = CERT_GetCommonName(&cert->subject);
920 infof(data, "\tsubject: %s\n", subject);
921
922 CERT_GetCertTimes(cert, ¬Before, ¬After);
923 PR_ExplodeTime(notBefore, PR_GMTParameters, &printableTime);
924 PR_FormatTime(timeString, 256, "%b %d %H:%M:%S %Y GMT", &printableTime);
925 infof(data, "\tstart date: %s\n", timeString);
926 PR_ExplodeTime(notAfter, PR_GMTParameters, &printableTime);
927 PR_FormatTime(timeString, 256, "%b %d %H:%M:%S %Y GMT", &printableTime);
928 infof(data, "\texpire date: %s\n", timeString);
929 infof(data, "\tcommon name: %s\n", common_name);
930 infof(data, "\tissuer: %s\n", issuer);
931
932 PR_Free(subject);
933 PR_Free(issuer);
934 PR_Free(common_name);
935 }
936
display_conn_info(struct connectdata * conn,PRFileDesc * sock)937 static CURLcode display_conn_info(struct connectdata *conn, PRFileDesc *sock)
938 {
939 CURLcode result = CURLE_OK;
940 SSLChannelInfo channel;
941 SSLCipherSuiteInfo suite;
942 CERTCertificate *cert;
943 CERTCertificate *cert2;
944 CERTCertificate *cert3;
945 PRTime now;
946 int i;
947
948 if(SSL_GetChannelInfo(sock, &channel, sizeof(channel)) ==
949 SECSuccess && channel.length == sizeof(channel) &&
950 channel.cipherSuite) {
951 if(SSL_GetCipherSuiteInfo(channel.cipherSuite,
952 &suite, sizeof(suite)) == SECSuccess) {
953 infof(conn->data, "SSL connection using %s\n", suite.cipherSuiteName);
954 }
955 }
956
957 cert = SSL_PeerCertificate(sock);
958 if(cert) {
959 infof(conn->data, "Server certificate:\n");
960
961 if(!conn->data->set.ssl.certinfo) {
962 display_cert_info(conn->data, cert);
963 CERT_DestroyCertificate(cert);
964 }
965 else {
966 /* Count certificates in chain. */
967 now = PR_Now();
968 i = 1;
969 if(!cert->isRoot) {
970 cert2 = CERT_FindCertIssuer(cert, now, certUsageSSLCA);
971 while(cert2) {
972 i++;
973 if(cert2->isRoot) {
974 CERT_DestroyCertificate(cert2);
975 break;
976 }
977 cert3 = CERT_FindCertIssuer(cert2, now, certUsageSSLCA);
978 CERT_DestroyCertificate(cert2);
979 cert2 = cert3;
980 }
981 }
982
983 result = Curl_ssl_init_certinfo(conn->data, i);
984 if(!result) {
985 for(i = 0; cert; cert = cert2) {
986 result = Curl_extract_certinfo(conn, i++, (char *)cert->derCert.data,
987 (char *)cert->derCert.data +
988 cert->derCert.len);
989 if(result)
990 break;
991
992 if(cert->isRoot) {
993 CERT_DestroyCertificate(cert);
994 break;
995 }
996
997 cert2 = CERT_FindCertIssuer(cert, now, certUsageSSLCA);
998 CERT_DestroyCertificate(cert);
999 }
1000 }
1001 }
1002 }
1003
1004 return result;
1005 }
1006
BadCertHandler(void * arg,PRFileDesc * sock)1007 static SECStatus BadCertHandler(void *arg, PRFileDesc *sock)
1008 {
1009 struct connectdata *conn = (struct connectdata *)arg;
1010 struct Curl_easy *data = conn->data;
1011 PRErrorCode err = PR_GetError();
1012 CERTCertificate *cert;
1013
1014 /* remember the cert verification result */
1015 if(SSL_IS_PROXY())
1016 data->set.proxy_ssl.certverifyresult = err;
1017 else
1018 data->set.ssl.certverifyresult = err;
1019
1020 if(err == SSL_ERROR_BAD_CERT_DOMAIN && !SSL_CONN_CONFIG(verifyhost))
1021 /* we are asked not to verify the host name */
1022 return SECSuccess;
1023
1024 /* print only info about the cert, the error is printed off the callback */
1025 cert = SSL_PeerCertificate(sock);
1026 if(cert) {
1027 infof(data, "Server certificate:\n");
1028 display_cert_info(data, cert);
1029 CERT_DestroyCertificate(cert);
1030 }
1031
1032 return SECFailure;
1033 }
1034
1035 /**
1036 *
1037 * Check that the Peer certificate's issuer certificate matches the one found
1038 * by issuer_nickname. This is not exactly the way OpenSSL and GNU TLS do the
1039 * issuer check, so we provide comments that mimic the OpenSSL
1040 * X509_check_issued function (in x509v3/v3_purp.c)
1041 */
check_issuer_cert(PRFileDesc * sock,char * issuer_nickname)1042 static SECStatus check_issuer_cert(PRFileDesc *sock,
1043 char *issuer_nickname)
1044 {
1045 CERTCertificate *cert, *cert_issuer, *issuer;
1046 SECStatus res = SECSuccess;
1047 void *proto_win = NULL;
1048
1049 cert = SSL_PeerCertificate(sock);
1050 cert_issuer = CERT_FindCertIssuer(cert, PR_Now(), certUsageObjectSigner);
1051
1052 proto_win = SSL_RevealPinArg(sock);
1053 issuer = PK11_FindCertFromNickname(issuer_nickname, proto_win);
1054
1055 if((!cert_issuer) || (!issuer))
1056 res = SECFailure;
1057 else if(SECITEM_CompareItem(&cert_issuer->derCert,
1058 &issuer->derCert) != SECEqual)
1059 res = SECFailure;
1060
1061 CERT_DestroyCertificate(cert);
1062 CERT_DestroyCertificate(issuer);
1063 CERT_DestroyCertificate(cert_issuer);
1064 return res;
1065 }
1066
cmp_peer_pubkey(struct ssl_connect_data * connssl,const char * pinnedpubkey)1067 static CURLcode cmp_peer_pubkey(struct ssl_connect_data *connssl,
1068 const char *pinnedpubkey)
1069 {
1070 CURLcode result = CURLE_SSL_PINNEDPUBKEYNOTMATCH;
1071 struct Curl_easy *data = BACKEND->data;
1072 CERTCertificate *cert;
1073
1074 if(!pinnedpubkey)
1075 /* no pinned public key specified */
1076 return CURLE_OK;
1077
1078 /* get peer certificate */
1079 cert = SSL_PeerCertificate(BACKEND->handle);
1080 if(cert) {
1081 /* extract public key from peer certificate */
1082 SECKEYPublicKey *pubkey = CERT_ExtractPublicKey(cert);
1083 if(pubkey) {
1084 /* encode the public key as DER */
1085 SECItem *cert_der = PK11_DEREncodePublicKey(pubkey);
1086 if(cert_der) {
1087 /* compare the public key with the pinned public key */
1088 result = Curl_pin_peer_pubkey(data, pinnedpubkey, cert_der->data,
1089 cert_der->len);
1090 SECITEM_FreeItem(cert_der, PR_TRUE);
1091 }
1092 SECKEY_DestroyPublicKey(pubkey);
1093 }
1094 CERT_DestroyCertificate(cert);
1095 }
1096
1097 /* report the resulting status */
1098 switch(result) {
1099 case CURLE_OK:
1100 infof(data, "pinned public key verified successfully!\n");
1101 break;
1102 case CURLE_SSL_PINNEDPUBKEYNOTMATCH:
1103 failf(data, "failed to verify pinned public key");
1104 break;
1105 default:
1106 /* OOM, etc. */
1107 break;
1108 }
1109
1110 return result;
1111 }
1112
1113 /**
1114 *
1115 * Callback to pick the SSL client certificate.
1116 */
SelectClientCert(void * arg,PRFileDesc * sock,struct CERTDistNamesStr * caNames,struct CERTCertificateStr ** pRetCert,struct SECKEYPrivateKeyStr ** pRetKey)1117 static SECStatus SelectClientCert(void *arg, PRFileDesc *sock,
1118 struct CERTDistNamesStr *caNames,
1119 struct CERTCertificateStr **pRetCert,
1120 struct SECKEYPrivateKeyStr **pRetKey)
1121 {
1122 struct ssl_connect_data *connssl = (struct ssl_connect_data *)arg;
1123 struct Curl_easy *data = BACKEND->data;
1124 const char *nickname = BACKEND->client_nickname;
1125 static const char pem_slotname[] = "PEM Token #1";
1126
1127 if(BACKEND->obj_clicert) {
1128 /* use the cert/key provided by PEM reader */
1129 SECItem cert_der = { 0, NULL, 0 };
1130 void *proto_win = SSL_RevealPinArg(sock);
1131 struct CERTCertificateStr *cert;
1132 struct SECKEYPrivateKeyStr *key;
1133
1134 PK11SlotInfo *slot = nss_find_slot_by_name(pem_slotname);
1135 if(NULL == slot) {
1136 failf(data, "NSS: PK11 slot not found: %s", pem_slotname);
1137 return SECFailure;
1138 }
1139
1140 if(PK11_ReadRawAttribute(PK11_TypeGeneric, BACKEND->obj_clicert, CKA_VALUE,
1141 &cert_der) != SECSuccess) {
1142 failf(data, "NSS: CKA_VALUE not found in PK11 generic object");
1143 PK11_FreeSlot(slot);
1144 return SECFailure;
1145 }
1146
1147 cert = PK11_FindCertFromDERCertItem(slot, &cert_der, proto_win);
1148 SECITEM_FreeItem(&cert_der, PR_FALSE);
1149 if(NULL == cert) {
1150 failf(data, "NSS: client certificate from file not found");
1151 PK11_FreeSlot(slot);
1152 return SECFailure;
1153 }
1154
1155 key = PK11_FindPrivateKeyFromCert(slot, cert, NULL);
1156 PK11_FreeSlot(slot);
1157 if(NULL == key) {
1158 failf(data, "NSS: private key from file not found");
1159 CERT_DestroyCertificate(cert);
1160 return SECFailure;
1161 }
1162
1163 infof(data, "NSS: client certificate from file\n");
1164 display_cert_info(data, cert);
1165
1166 *pRetCert = cert;
1167 *pRetKey = key;
1168 return SECSuccess;
1169 }
1170
1171 /* use the default NSS hook */
1172 if(SECSuccess != NSS_GetClientAuthData((void *)nickname, sock, caNames,
1173 pRetCert, pRetKey)
1174 || NULL == *pRetCert) {
1175
1176 if(NULL == nickname)
1177 failf(data, "NSS: client certificate not found (nickname not "
1178 "specified)");
1179 else
1180 failf(data, "NSS: client certificate not found: %s", nickname);
1181
1182 return SECFailure;
1183 }
1184
1185 /* get certificate nickname if any */
1186 nickname = (*pRetCert)->nickname;
1187 if(NULL == nickname)
1188 nickname = "[unknown]";
1189
1190 if(!strncmp(nickname, pem_slotname, sizeof(pem_slotname) - 1U)) {
1191 failf(data, "NSS: refusing previously loaded certificate from file: %s",
1192 nickname);
1193 return SECFailure;
1194 }
1195
1196 if(NULL == *pRetKey) {
1197 failf(data, "NSS: private key not found for certificate: %s", nickname);
1198 return SECFailure;
1199 }
1200
1201 infof(data, "NSS: using client certificate: %s\n", nickname);
1202 display_cert_info(data, *pRetCert);
1203 return SECSuccess;
1204 }
1205
1206 /* update blocking direction in case of PR_WOULD_BLOCK_ERROR */
nss_update_connecting_state(ssl_connect_state state,void * secret)1207 static void nss_update_connecting_state(ssl_connect_state state, void *secret)
1208 {
1209 struct ssl_connect_data *connssl = (struct ssl_connect_data *)secret;
1210 if(PR_GetError() != PR_WOULD_BLOCK_ERROR)
1211 /* an unrelated error is passing by */
1212 return;
1213
1214 switch(connssl->connecting_state) {
1215 case ssl_connect_2:
1216 case ssl_connect_2_reading:
1217 case ssl_connect_2_writing:
1218 break;
1219 default:
1220 /* we are not called from an SSL handshake */
1221 return;
1222 }
1223
1224 /* update the state accordingly */
1225 connssl->connecting_state = state;
1226 }
1227
1228 /* recv() wrapper we use to detect blocking direction during SSL handshake */
nspr_io_recv(PRFileDesc * fd,void * buf,PRInt32 amount,PRIntn flags,PRIntervalTime timeout)1229 static PRInt32 nspr_io_recv(PRFileDesc *fd, void *buf, PRInt32 amount,
1230 PRIntn flags, PRIntervalTime timeout)
1231 {
1232 const PRRecvFN recv_fn = fd->lower->methods->recv;
1233 const PRInt32 rv = recv_fn(fd->lower, buf, amount, flags, timeout);
1234 if(rv < 0)
1235 /* check for PR_WOULD_BLOCK_ERROR and update blocking direction */
1236 nss_update_connecting_state(ssl_connect_2_reading, fd->secret);
1237 return rv;
1238 }
1239
1240 /* send() wrapper we use to detect blocking direction during SSL handshake */
nspr_io_send(PRFileDesc * fd,const void * buf,PRInt32 amount,PRIntn flags,PRIntervalTime timeout)1241 static PRInt32 nspr_io_send(PRFileDesc *fd, const void *buf, PRInt32 amount,
1242 PRIntn flags, PRIntervalTime timeout)
1243 {
1244 const PRSendFN send_fn = fd->lower->methods->send;
1245 const PRInt32 rv = send_fn(fd->lower, buf, amount, flags, timeout);
1246 if(rv < 0)
1247 /* check for PR_WOULD_BLOCK_ERROR and update blocking direction */
1248 nss_update_connecting_state(ssl_connect_2_writing, fd->secret);
1249 return rv;
1250 }
1251
1252 /* close() wrapper to avoid assertion failure due to fd->secret != NULL */
nspr_io_close(PRFileDesc * fd)1253 static PRStatus nspr_io_close(PRFileDesc *fd)
1254 {
1255 const PRCloseFN close_fn = PR_GetDefaultIOMethods()->close;
1256 fd->secret = NULL;
1257 return close_fn(fd);
1258 }
1259
1260 /* load a PKCS #11 module */
nss_load_module(SECMODModule ** pmod,const char * library,const char * name)1261 static CURLcode nss_load_module(SECMODModule **pmod, const char *library,
1262 const char *name)
1263 {
1264 char *config_string;
1265 SECMODModule *module = *pmod;
1266 if(module)
1267 /* already loaded */
1268 return CURLE_OK;
1269
1270 config_string = aprintf("library=%s name=%s", library, name);
1271 if(!config_string)
1272 return CURLE_OUT_OF_MEMORY;
1273
1274 module = SECMOD_LoadUserModule(config_string, NULL, PR_FALSE);
1275 free(config_string);
1276
1277 if(module && module->loaded) {
1278 /* loaded successfully */
1279 *pmod = module;
1280 return CURLE_OK;
1281 }
1282
1283 if(module)
1284 SECMOD_DestroyModule(module);
1285 return CURLE_FAILED_INIT;
1286 }
1287
1288 /* unload a PKCS #11 module */
nss_unload_module(SECMODModule ** pmod)1289 static void nss_unload_module(SECMODModule **pmod)
1290 {
1291 SECMODModule *module = *pmod;
1292 if(!module)
1293 /* not loaded */
1294 return;
1295
1296 if(SECMOD_UnloadUserModule(module) != SECSuccess)
1297 /* unload failed */
1298 return;
1299
1300 SECMOD_DestroyModule(module);
1301 *pmod = NULL;
1302 }
1303
1304 /* data might be NULL */
nss_init_core(struct Curl_easy * data,const char * cert_dir)1305 static CURLcode nss_init_core(struct Curl_easy *data, const char *cert_dir)
1306 {
1307 NSSInitParameters initparams;
1308
1309 if(nss_context != NULL)
1310 return CURLE_OK;
1311
1312 memset((void *) &initparams, '\0', sizeof(initparams));
1313 initparams.length = sizeof(initparams);
1314
1315 if(cert_dir) {
1316 char *certpath = aprintf("sql:%s", cert_dir);
1317 if(!certpath)
1318 return CURLE_OUT_OF_MEMORY;
1319
1320 infof(data, "Initializing NSS with certpath: %s\n", certpath);
1321 nss_context = NSS_InitContext(certpath, "", "", "", &initparams,
1322 NSS_INIT_READONLY | NSS_INIT_PK11RELOAD);
1323 free(certpath);
1324
1325 if(nss_context != NULL)
1326 return CURLE_OK;
1327
1328 infof(data, "Unable to initialize NSS database\n");
1329 }
1330
1331 infof(data, "Initializing NSS with certpath: none\n");
1332 nss_context = NSS_InitContext("", "", "", "", &initparams, NSS_INIT_READONLY
1333 | NSS_INIT_NOCERTDB | NSS_INIT_NOMODDB | NSS_INIT_FORCEOPEN
1334 | NSS_INIT_NOROOTINIT | NSS_INIT_OPTIMIZESPACE | NSS_INIT_PK11RELOAD);
1335 if(nss_context != NULL)
1336 return CURLE_OK;
1337
1338 infof(data, "Unable to initialize NSS\n");
1339 return CURLE_SSL_CACERT_BADFILE;
1340 }
1341
1342 /* data might be NULL */
nss_init(struct Curl_easy * data)1343 static CURLcode nss_init(struct Curl_easy *data)
1344 {
1345 char *cert_dir;
1346 struct_stat st;
1347 CURLcode result;
1348
1349 if(initialized)
1350 return CURLE_OK;
1351
1352 /* list of all CRL items we need to destroy in Curl_nss_cleanup() */
1353 Curl_llist_init(&nss_crl_list, nss_destroy_crl_item);
1354
1355 /* First we check if $SSL_DIR points to a valid dir */
1356 cert_dir = getenv("SSL_DIR");
1357 if(cert_dir) {
1358 if((stat(cert_dir, &st) != 0) ||
1359 (!S_ISDIR(st.st_mode))) {
1360 cert_dir = NULL;
1361 }
1362 }
1363
1364 /* Now we check if the default location is a valid dir */
1365 if(!cert_dir) {
1366 if((stat(SSL_DIR, &st) == 0) &&
1367 (S_ISDIR(st.st_mode))) {
1368 cert_dir = (char *)SSL_DIR;
1369 }
1370 }
1371
1372 if(nspr_io_identity == PR_INVALID_IO_LAYER) {
1373 /* allocate an identity for our own NSPR I/O layer */
1374 nspr_io_identity = PR_GetUniqueIdentity("libcurl");
1375 if(nspr_io_identity == PR_INVALID_IO_LAYER)
1376 return CURLE_OUT_OF_MEMORY;
1377
1378 /* the default methods just call down to the lower I/O layer */
1379 memcpy(&nspr_io_methods, PR_GetDefaultIOMethods(),
1380 sizeof(nspr_io_methods));
1381
1382 /* override certain methods in the table by our wrappers */
1383 nspr_io_methods.recv = nspr_io_recv;
1384 nspr_io_methods.send = nspr_io_send;
1385 nspr_io_methods.close = nspr_io_close;
1386 }
1387
1388 result = nss_init_core(data, cert_dir);
1389 if(result)
1390 return result;
1391
1392 if(!any_cipher_enabled())
1393 NSS_SetDomesticPolicy();
1394
1395 initialized = 1;
1396
1397 return CURLE_OK;
1398 }
1399
1400 /**
1401 * Global SSL init
1402 *
1403 * @retval 0 error initializing SSL
1404 * @retval 1 SSL initialized successfully
1405 */
Curl_nss_init(void)1406 static int Curl_nss_init(void)
1407 {
1408 /* curl_global_init() is not thread-safe so this test is ok */
1409 if(nss_initlock == NULL) {
1410 PR_Init(PR_USER_THREAD, PR_PRIORITY_NORMAL, 256);
1411 nss_initlock = PR_NewLock();
1412 nss_crllock = PR_NewLock();
1413 nss_findslot_lock = PR_NewLock();
1414 nss_trustload_lock = PR_NewLock();
1415 }
1416
1417 /* We will actually initialize NSS later */
1418
1419 return 1;
1420 }
1421
1422 /* data might be NULL */
Curl_nss_force_init(struct Curl_easy * data)1423 CURLcode Curl_nss_force_init(struct Curl_easy *data)
1424 {
1425 CURLcode result;
1426 if(!nss_initlock) {
1427 if(data)
1428 failf(data, "unable to initialize NSS, curl_global_init() should have "
1429 "been called with CURL_GLOBAL_SSL or CURL_GLOBAL_ALL");
1430 return CURLE_FAILED_INIT;
1431 }
1432
1433 PR_Lock(nss_initlock);
1434 result = nss_init(data);
1435 PR_Unlock(nss_initlock);
1436
1437 return result;
1438 }
1439
1440 /* Global cleanup */
Curl_nss_cleanup(void)1441 static void Curl_nss_cleanup(void)
1442 {
1443 /* This function isn't required to be threadsafe and this is only done
1444 * as a safety feature.
1445 */
1446 PR_Lock(nss_initlock);
1447 if(initialized) {
1448 /* Free references to client certificates held in the SSL session cache.
1449 * Omitting this hampers destruction of the security module owning
1450 * the certificates. */
1451 SSL_ClearSessionCache();
1452
1453 nss_unload_module(&pem_module);
1454 nss_unload_module(&trust_module);
1455 NSS_ShutdownContext(nss_context);
1456 nss_context = NULL;
1457 }
1458
1459 /* destroy all CRL items */
1460 Curl_llist_destroy(&nss_crl_list, NULL);
1461
1462 PR_Unlock(nss_initlock);
1463
1464 PR_DestroyLock(nss_initlock);
1465 PR_DestroyLock(nss_crllock);
1466 PR_DestroyLock(nss_findslot_lock);
1467 PR_DestroyLock(nss_trustload_lock);
1468 nss_initlock = NULL;
1469
1470 initialized = 0;
1471 }
1472
1473 /*
1474 * This function uses SSL_peek to determine connection status.
1475 *
1476 * Return codes:
1477 * 1 means the connection is still in place
1478 * 0 means the connection has been closed
1479 * -1 means the connection status is unknown
1480 */
Curl_nss_check_cxn(struct connectdata * conn)1481 static int Curl_nss_check_cxn(struct connectdata *conn)
1482 {
1483 struct ssl_connect_data *connssl = &conn->ssl[FIRSTSOCKET];
1484 int rc;
1485 char buf;
1486
1487 rc =
1488 PR_Recv(BACKEND->handle, (void *)&buf, 1, PR_MSG_PEEK,
1489 PR_SecondsToInterval(1));
1490 if(rc > 0)
1491 return 1; /* connection still in place */
1492
1493 if(rc == 0)
1494 return 0; /* connection has been closed */
1495
1496 return -1; /* connection status unknown */
1497 }
1498
nss_close(struct ssl_connect_data * connssl)1499 static void nss_close(struct ssl_connect_data *connssl)
1500 {
1501 /* before the cleanup, check whether we are using a client certificate */
1502 const bool client_cert = (BACKEND->client_nickname != NULL)
1503 || (BACKEND->obj_clicert != NULL);
1504
1505 free(BACKEND->client_nickname);
1506 BACKEND->client_nickname = NULL;
1507
1508 /* destroy all NSS objects in order to avoid failure of NSS shutdown */
1509 Curl_llist_destroy(&BACKEND->obj_list, NULL);
1510 BACKEND->obj_clicert = NULL;
1511
1512 if(BACKEND->handle) {
1513 if(client_cert)
1514 /* A server might require different authentication based on the
1515 * particular path being requested by the client. To support this
1516 * scenario, we must ensure that a connection will never reuse the
1517 * authentication data from a previous connection. */
1518 SSL_InvalidateSession(BACKEND->handle);
1519
1520 PR_Close(BACKEND->handle);
1521 BACKEND->handle = NULL;
1522 }
1523 }
1524
1525 /*
1526 * This function is called when an SSL connection is closed.
1527 */
Curl_nss_close(struct connectdata * conn,int sockindex)1528 static void Curl_nss_close(struct connectdata *conn, int sockindex)
1529 {
1530 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
1531 struct ssl_connect_data *connssl_proxy = &conn->proxy_ssl[sockindex];
1532
1533 if(BACKEND->handle || connssl_proxy->backend->handle) {
1534 /* NSS closes the socket we previously handed to it, so we must mark it
1535 as closed to avoid double close */
1536 fake_sclose(conn->sock[sockindex]);
1537 conn->sock[sockindex] = CURL_SOCKET_BAD;
1538 }
1539
1540 if(BACKEND->handle)
1541 /* nss_close(connssl) will transitively close also
1542 connssl_proxy->backend->handle if both are used. Clear it to avoid
1543 a double close leading to crash. */
1544 connssl_proxy->backend->handle = NULL;
1545
1546 nss_close(connssl);
1547 nss_close(connssl_proxy);
1548 }
1549
1550 /* return true if NSS can provide error code (and possibly msg) for the
1551 error */
is_nss_error(CURLcode err)1552 static bool is_nss_error(CURLcode err)
1553 {
1554 switch(err) {
1555 case CURLE_PEER_FAILED_VERIFICATION:
1556 case CURLE_SSL_CERTPROBLEM:
1557 case CURLE_SSL_CONNECT_ERROR:
1558 case CURLE_SSL_ISSUER_ERROR:
1559 return true;
1560
1561 default:
1562 return false;
1563 }
1564 }
1565
1566 /* return true if the given error code is related to a client certificate */
is_cc_error(PRInt32 err)1567 static bool is_cc_error(PRInt32 err)
1568 {
1569 switch(err) {
1570 case SSL_ERROR_BAD_CERT_ALERT:
1571 case SSL_ERROR_EXPIRED_CERT_ALERT:
1572 case SSL_ERROR_REVOKED_CERT_ALERT:
1573 return true;
1574
1575 default:
1576 return false;
1577 }
1578 }
1579
1580 static Curl_recv nss_recv;
1581 static Curl_send nss_send;
1582
nss_load_ca_certificates(struct connectdata * conn,int sockindex)1583 static CURLcode nss_load_ca_certificates(struct connectdata *conn,
1584 int sockindex)
1585 {
1586 struct Curl_easy *data = conn->data;
1587 const char *cafile = SSL_CONN_CONFIG(CAfile);
1588 const char *capath = SSL_CONN_CONFIG(CApath);
1589 bool use_trust_module;
1590 CURLcode result = CURLE_OK;
1591
1592 /* treat empty string as unset */
1593 if(cafile && !cafile[0])
1594 cafile = NULL;
1595 if(capath && !capath[0])
1596 capath = NULL;
1597
1598 infof(data, " CAfile: %s\n CApath: %s\n",
1599 cafile ? cafile : "none",
1600 capath ? capath : "none");
1601
1602 /* load libnssckbi.so if no other trust roots were specified */
1603 use_trust_module = !cafile && !capath;
1604
1605 PR_Lock(nss_trustload_lock);
1606 if(use_trust_module && !trust_module) {
1607 /* libnssckbi.so needed but not yet loaded --> load it! */
1608 result = nss_load_module(&trust_module, trust_library, "trust");
1609 infof(data, "%s %s\n", (result) ? "failed to load" : "loaded",
1610 trust_library);
1611 if(result == CURLE_FAILED_INIT)
1612 /* If libnssckbi.so is not available (or fails to load), one can still
1613 use CA certificates stored in NSS database. Ignore the failure. */
1614 result = CURLE_OK;
1615 }
1616 else if(!use_trust_module && trust_module) {
1617 /* libnssckbi.so not needed but already loaded --> unload it! */
1618 infof(data, "unloading %s\n", trust_library);
1619 nss_unload_module(&trust_module);
1620 }
1621 PR_Unlock(nss_trustload_lock);
1622
1623 if(cafile)
1624 result = nss_load_cert(&conn->ssl[sockindex], cafile, PR_TRUE);
1625
1626 if(result)
1627 return result;
1628
1629 if(capath) {
1630 struct_stat st;
1631 if(stat(capath, &st) == -1)
1632 return CURLE_SSL_CACERT_BADFILE;
1633
1634 if(S_ISDIR(st.st_mode)) {
1635 PRDirEntry *entry;
1636 PRDir *dir = PR_OpenDir(capath);
1637 if(!dir)
1638 return CURLE_SSL_CACERT_BADFILE;
1639
1640 while((entry = PR_ReadDir(dir, PR_SKIP_BOTH | PR_SKIP_HIDDEN))) {
1641 char *fullpath = aprintf("%s/%s", capath, entry->name);
1642 if(!fullpath) {
1643 PR_CloseDir(dir);
1644 return CURLE_OUT_OF_MEMORY;
1645 }
1646
1647 if(CURLE_OK != nss_load_cert(&conn->ssl[sockindex], fullpath, PR_TRUE))
1648 /* This is purposefully tolerant of errors so non-PEM files can
1649 * be in the same directory */
1650 infof(data, "failed to load '%s' from CURLOPT_CAPATH\n", fullpath);
1651
1652 free(fullpath);
1653 }
1654
1655 PR_CloseDir(dir);
1656 }
1657 else
1658 infof(data, "warning: CURLOPT_CAPATH not a directory (%s)\n", capath);
1659 }
1660
1661 return CURLE_OK;
1662 }
1663
nss_sslver_from_curl(PRUint16 * nssver,long version)1664 static CURLcode nss_sslver_from_curl(PRUint16 *nssver, long version)
1665 {
1666 switch(version) {
1667 case CURL_SSLVERSION_SSLv2:
1668 *nssver = SSL_LIBRARY_VERSION_2;
1669 return CURLE_OK;
1670
1671 case CURL_SSLVERSION_SSLv3:
1672 *nssver = SSL_LIBRARY_VERSION_3_0;
1673 return CURLE_OK;
1674
1675 case CURL_SSLVERSION_TLSv1_0:
1676 *nssver = SSL_LIBRARY_VERSION_TLS_1_0;
1677 return CURLE_OK;
1678
1679 case CURL_SSLVERSION_TLSv1_1:
1680 #ifdef SSL_LIBRARY_VERSION_TLS_1_1
1681 *nssver = SSL_LIBRARY_VERSION_TLS_1_1;
1682 return CURLE_OK;
1683 #else
1684 return CURLE_SSL_CONNECT_ERROR;
1685 #endif
1686
1687 case CURL_SSLVERSION_TLSv1_2:
1688 #ifdef SSL_LIBRARY_VERSION_TLS_1_2
1689 *nssver = SSL_LIBRARY_VERSION_TLS_1_2;
1690 return CURLE_OK;
1691 #else
1692 return CURLE_SSL_CONNECT_ERROR;
1693 #endif
1694
1695 case CURL_SSLVERSION_TLSv1_3:
1696 #ifdef SSL_LIBRARY_VERSION_TLS_1_3
1697 *nssver = SSL_LIBRARY_VERSION_TLS_1_3;
1698 return CURLE_OK;
1699 #else
1700 return CURLE_SSL_CONNECT_ERROR;
1701 #endif
1702
1703 default:
1704 return CURLE_SSL_CONNECT_ERROR;
1705 }
1706 }
1707
nss_init_sslver(SSLVersionRange * sslver,struct Curl_easy * data,struct connectdata * conn)1708 static CURLcode nss_init_sslver(SSLVersionRange *sslver,
1709 struct Curl_easy *data,
1710 struct connectdata *conn)
1711 {
1712 CURLcode result;
1713 const long min = SSL_CONN_CONFIG(version);
1714 const long max = SSL_CONN_CONFIG(version_max);
1715
1716 /* map CURL_SSLVERSION_DEFAULT to NSS default */
1717 if(min == CURL_SSLVERSION_DEFAULT || max == CURL_SSLVERSION_MAX_DEFAULT) {
1718 /* map CURL_SSLVERSION_DEFAULT to NSS default */
1719 if(SSL_VersionRangeGetDefault(ssl_variant_stream, sslver) != SECSuccess)
1720 return CURLE_SSL_CONNECT_ERROR;
1721 /* ... but make sure we use at least TLSv1.0 according to libcurl API */
1722 if(sslver->min < SSL_LIBRARY_VERSION_TLS_1_0)
1723 sslver->min = SSL_LIBRARY_VERSION_TLS_1_0;
1724 }
1725
1726 switch(min) {
1727 case CURL_SSLVERSION_TLSv1:
1728 case CURL_SSLVERSION_DEFAULT:
1729 break;
1730 default:
1731 result = nss_sslver_from_curl(&sslver->min, min);
1732 if(result) {
1733 failf(data, "unsupported min version passed via CURLOPT_SSLVERSION");
1734 return result;
1735 }
1736 }
1737
1738 switch(max) {
1739 case CURL_SSLVERSION_MAX_NONE:
1740 case CURL_SSLVERSION_MAX_DEFAULT:
1741 break;
1742 default:
1743 result = nss_sslver_from_curl(&sslver->max, max >> 16);
1744 if(result) {
1745 failf(data, "unsupported max version passed via CURLOPT_SSLVERSION");
1746 return result;
1747 }
1748 }
1749
1750 return CURLE_OK;
1751 }
1752
nss_fail_connect(struct ssl_connect_data * connssl,struct Curl_easy * data,CURLcode curlerr)1753 static CURLcode nss_fail_connect(struct ssl_connect_data *connssl,
1754 struct Curl_easy *data,
1755 CURLcode curlerr)
1756 {
1757 PRErrorCode err = 0;
1758
1759 if(is_nss_error(curlerr)) {
1760 /* read NSPR error code */
1761 err = PR_GetError();
1762 if(is_cc_error(err))
1763 curlerr = CURLE_SSL_CERTPROBLEM;
1764
1765 /* print the error number and error string */
1766 infof(data, "NSS error %d (%s)\n", err, nss_error_to_name(err));
1767
1768 /* print a human-readable message describing the error if available */
1769 nss_print_error_message(data, err);
1770 }
1771
1772 /* cleanup on connection failure */
1773 Curl_llist_destroy(&BACKEND->obj_list, NULL);
1774
1775 return curlerr;
1776 }
1777
1778 /* Switch the SSL socket into blocking or non-blocking mode. */
nss_set_blocking(struct ssl_connect_data * connssl,struct Curl_easy * data,bool blocking)1779 static CURLcode nss_set_blocking(struct ssl_connect_data *connssl,
1780 struct Curl_easy *data,
1781 bool blocking)
1782 {
1783 static PRSocketOptionData sock_opt;
1784 sock_opt.option = PR_SockOpt_Nonblocking;
1785 sock_opt.value.non_blocking = !blocking;
1786
1787 if(PR_SetSocketOption(BACKEND->handle, &sock_opt) != PR_SUCCESS)
1788 return nss_fail_connect(connssl, data, CURLE_SSL_CONNECT_ERROR);
1789
1790 return CURLE_OK;
1791 }
1792
nss_setup_connect(struct connectdata * conn,int sockindex)1793 static CURLcode nss_setup_connect(struct connectdata *conn, int sockindex)
1794 {
1795 PRFileDesc *model = NULL;
1796 PRFileDesc *nspr_io = NULL;
1797 PRFileDesc *nspr_io_stub = NULL;
1798 PRBool ssl_no_cache;
1799 PRBool ssl_cbc_random_iv;
1800 struct Curl_easy *data = conn->data;
1801 curl_socket_t sockfd = conn->sock[sockindex];
1802 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
1803 CURLcode result;
1804 bool second_layer = FALSE;
1805 SSLVersionRange sslver_supported;
1806
1807 SSLVersionRange sslver = {
1808 SSL_LIBRARY_VERSION_TLS_1_0, /* min */
1809 #ifdef SSL_LIBRARY_VERSION_TLS_1_3
1810 SSL_LIBRARY_VERSION_TLS_1_3 /* max */
1811 #elif defined SSL_LIBRARY_VERSION_TLS_1_2
1812 SSL_LIBRARY_VERSION_TLS_1_2
1813 #elif defined SSL_LIBRARY_VERSION_TLS_1_1
1814 SSL_LIBRARY_VERSION_TLS_1_1
1815 #else
1816 SSL_LIBRARY_VERSION_TLS_1_0
1817 #endif
1818 };
1819
1820 BACKEND->data = data;
1821
1822 /* list of all NSS objects we need to destroy in Curl_nss_close() */
1823 Curl_llist_init(&BACKEND->obj_list, nss_destroy_object);
1824
1825 /* FIXME. NSS doesn't support multiple databases open at the same time. */
1826 PR_Lock(nss_initlock);
1827 result = nss_init(conn->data);
1828 if(result) {
1829 PR_Unlock(nss_initlock);
1830 goto error;
1831 }
1832
1833 PK11_SetPasswordFunc(nss_get_password);
1834
1835 result = nss_load_module(&pem_module, pem_library, "PEM");
1836 PR_Unlock(nss_initlock);
1837 if(result == CURLE_FAILED_INIT)
1838 infof(data, "WARNING: failed to load NSS PEM library %s. Using "
1839 "OpenSSL PEM certificates will not work.\n", pem_library);
1840 else if(result)
1841 goto error;
1842
1843 result = CURLE_SSL_CONNECT_ERROR;
1844
1845 model = PR_NewTCPSocket();
1846 if(!model)
1847 goto error;
1848 model = SSL_ImportFD(NULL, model);
1849
1850 if(SSL_OptionSet(model, SSL_SECURITY, PR_TRUE) != SECSuccess)
1851 goto error;
1852 if(SSL_OptionSet(model, SSL_HANDSHAKE_AS_SERVER, PR_FALSE) != SECSuccess)
1853 goto error;
1854 if(SSL_OptionSet(model, SSL_HANDSHAKE_AS_CLIENT, PR_TRUE) != SECSuccess)
1855 goto error;
1856
1857 /* do not use SSL cache if disabled or we are not going to verify peer */
1858 ssl_no_cache = (SSL_SET_OPTION(primary.sessionid)
1859 && SSL_CONN_CONFIG(verifypeer)) ? PR_FALSE : PR_TRUE;
1860 if(SSL_OptionSet(model, SSL_NO_CACHE, ssl_no_cache) != SECSuccess)
1861 goto error;
1862
1863 /* enable/disable the requested SSL version(s) */
1864 if(nss_init_sslver(&sslver, data, conn) != CURLE_OK)
1865 goto error;
1866 if(SSL_VersionRangeGetSupported(ssl_variant_stream,
1867 &sslver_supported) != SECSuccess)
1868 goto error;
1869 if(sslver_supported.max < sslver.max && sslver_supported.max >= sslver.min) {
1870 char *sslver_req_str, *sslver_supp_str;
1871 sslver_req_str = nss_sslver_to_name(sslver.max);
1872 sslver_supp_str = nss_sslver_to_name(sslver_supported.max);
1873 if(sslver_req_str && sslver_supp_str)
1874 infof(data, "Falling back from %s to max supported SSL version (%s)\n",
1875 sslver_req_str, sslver_supp_str);
1876 free(sslver_req_str);
1877 free(sslver_supp_str);
1878 sslver.max = sslver_supported.max;
1879 }
1880 if(SSL_VersionRangeSet(model, &sslver) != SECSuccess)
1881 goto error;
1882
1883 ssl_cbc_random_iv = !SSL_SET_OPTION(enable_beast);
1884 #ifdef SSL_CBC_RANDOM_IV
1885 /* unless the user explicitly asks to allow the protocol vulnerability, we
1886 use the work-around */
1887 if(SSL_OptionSet(model, SSL_CBC_RANDOM_IV, ssl_cbc_random_iv) != SECSuccess)
1888 infof(data, "warning: failed to set SSL_CBC_RANDOM_IV = %d\n",
1889 ssl_cbc_random_iv);
1890 #else
1891 if(ssl_cbc_random_iv)
1892 infof(data, "warning: support for SSL_CBC_RANDOM_IV not compiled in\n");
1893 #endif
1894
1895 if(SSL_CONN_CONFIG(cipher_list)) {
1896 if(set_ciphers(data, model, SSL_CONN_CONFIG(cipher_list)) != SECSuccess) {
1897 result = CURLE_SSL_CIPHER;
1898 goto error;
1899 }
1900 }
1901
1902 if(!SSL_CONN_CONFIG(verifypeer) && SSL_CONN_CONFIG(verifyhost))
1903 infof(data, "warning: ignoring value of ssl.verifyhost\n");
1904
1905 /* bypass the default SSL_AuthCertificate() hook in case we do not want to
1906 * verify peer */
1907 if(SSL_AuthCertificateHook(model, nss_auth_cert_hook, conn) != SECSuccess)
1908 goto error;
1909
1910 /* not checked yet */
1911 if(SSL_IS_PROXY())
1912 data->set.proxy_ssl.certverifyresult = 0;
1913 else
1914 data->set.ssl.certverifyresult = 0;
1915
1916 if(SSL_BadCertHook(model, BadCertHandler, conn) != SECSuccess)
1917 goto error;
1918
1919 if(SSL_HandshakeCallback(model, HandshakeCallback, conn) != SECSuccess)
1920 goto error;
1921
1922 {
1923 const CURLcode rv = nss_load_ca_certificates(conn, sockindex);
1924 if((rv == CURLE_SSL_CACERT_BADFILE) && !SSL_CONN_CONFIG(verifypeer))
1925 /* not a fatal error because we are not going to verify the peer */
1926 infof(data, "warning: CA certificates failed to load\n");
1927 else if(rv) {
1928 result = rv;
1929 goto error;
1930 }
1931 }
1932
1933 if(SSL_SET_OPTION(CRLfile)) {
1934 const CURLcode rv = nss_load_crl(SSL_SET_OPTION(CRLfile));
1935 if(rv) {
1936 result = rv;
1937 goto error;
1938 }
1939 infof(data, " CRLfile: %s\n", SSL_SET_OPTION(CRLfile));
1940 }
1941
1942 if(SSL_SET_OPTION(cert)) {
1943 char *nickname = dup_nickname(data, SSL_SET_OPTION(cert));
1944 if(nickname) {
1945 /* we are not going to use libnsspem.so to read the client cert */
1946 BACKEND->obj_clicert = NULL;
1947 }
1948 else {
1949 CURLcode rv = cert_stuff(conn, sockindex, SSL_SET_OPTION(cert),
1950 SSL_SET_OPTION(key));
1951 if(rv) {
1952 /* failf() is already done in cert_stuff() */
1953 result = rv;
1954 goto error;
1955 }
1956 }
1957
1958 /* store the nickname for SelectClientCert() called during handshake */
1959 BACKEND->client_nickname = nickname;
1960 }
1961 else
1962 BACKEND->client_nickname = NULL;
1963
1964 if(SSL_GetClientAuthDataHook(model, SelectClientCert,
1965 (void *)connssl) != SECSuccess) {
1966 result = CURLE_SSL_CERTPROBLEM;
1967 goto error;
1968 }
1969
1970 if(conn->proxy_ssl[sockindex].use) {
1971 DEBUGASSERT(ssl_connection_complete == conn->proxy_ssl[sockindex].state);
1972 DEBUGASSERT(conn->proxy_ssl[sockindex].backend->handle != NULL);
1973 nspr_io = conn->proxy_ssl[sockindex].backend->handle;
1974 second_layer = TRUE;
1975 }
1976 else {
1977 /* wrap OS file descriptor by NSPR's file descriptor abstraction */
1978 nspr_io = PR_ImportTCPSocket(sockfd);
1979 if(!nspr_io)
1980 goto error;
1981 }
1982
1983 /* create our own NSPR I/O layer */
1984 nspr_io_stub = PR_CreateIOLayerStub(nspr_io_identity, &nspr_io_methods);
1985 if(!nspr_io_stub) {
1986 if(!second_layer)
1987 PR_Close(nspr_io);
1988 goto error;
1989 }
1990
1991 /* make the per-connection data accessible from NSPR I/O callbacks */
1992 nspr_io_stub->secret = (void *)connssl;
1993
1994 /* push our new layer to the NSPR I/O stack */
1995 if(PR_PushIOLayer(nspr_io, PR_TOP_IO_LAYER, nspr_io_stub) != PR_SUCCESS) {
1996 if(!second_layer)
1997 PR_Close(nspr_io);
1998 PR_Close(nspr_io_stub);
1999 goto error;
2000 }
2001
2002 /* import our model socket onto the current I/O stack */
2003 BACKEND->handle = SSL_ImportFD(model, nspr_io);
2004 if(!BACKEND->handle) {
2005 if(!second_layer)
2006 PR_Close(nspr_io);
2007 goto error;
2008 }
2009
2010 PR_Close(model); /* We don't need this any more */
2011 model = NULL;
2012
2013 /* This is the password associated with the cert that we're using */
2014 if(SSL_SET_OPTION(key_passwd)) {
2015 SSL_SetPKCS11PinArg(BACKEND->handle, SSL_SET_OPTION(key_passwd));
2016 }
2017
2018 #ifdef SSL_ENABLE_OCSP_STAPLING
2019 if(SSL_CONN_CONFIG(verifystatus)) {
2020 if(SSL_OptionSet(BACKEND->handle, SSL_ENABLE_OCSP_STAPLING, PR_TRUE)
2021 != SECSuccess)
2022 goto error;
2023 }
2024 #endif
2025
2026 #ifdef SSL_ENABLE_NPN
2027 if(SSL_OptionSet(BACKEND->handle, SSL_ENABLE_NPN, conn->bits.tls_enable_npn
2028 ? PR_TRUE : PR_FALSE) != SECSuccess)
2029 goto error;
2030 #endif
2031
2032 #ifdef SSL_ENABLE_ALPN
2033 if(SSL_OptionSet(BACKEND->handle, SSL_ENABLE_ALPN, conn->bits.tls_enable_alpn
2034 ? PR_TRUE : PR_FALSE) != SECSuccess)
2035 goto error;
2036 #endif
2037
2038 #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
2039 if(data->set.ssl.falsestart) {
2040 if(SSL_OptionSet(BACKEND->handle, SSL_ENABLE_FALSE_START, PR_TRUE)
2041 != SECSuccess)
2042 goto error;
2043
2044 if(SSL_SetCanFalseStartCallback(BACKEND->handle, CanFalseStartCallback,
2045 conn) != SECSuccess)
2046 goto error;
2047 }
2048 #endif
2049
2050 #if defined(SSL_ENABLE_NPN) || defined(SSL_ENABLE_ALPN)
2051 if(conn->bits.tls_enable_npn || conn->bits.tls_enable_alpn) {
2052 int cur = 0;
2053 unsigned char protocols[128];
2054
2055 #ifdef USE_NGHTTP2
2056 if(data->set.httpversion >= CURL_HTTP_VERSION_2 &&
2057 (!SSL_IS_PROXY() || !conn->bits.tunnel_proxy)) {
2058 protocols[cur++] = NGHTTP2_PROTO_VERSION_ID_LEN;
2059 memcpy(&protocols[cur], NGHTTP2_PROTO_VERSION_ID,
2060 NGHTTP2_PROTO_VERSION_ID_LEN);
2061 cur += NGHTTP2_PROTO_VERSION_ID_LEN;
2062 }
2063 #endif
2064 protocols[cur++] = ALPN_HTTP_1_1_LENGTH;
2065 memcpy(&protocols[cur], ALPN_HTTP_1_1, ALPN_HTTP_1_1_LENGTH);
2066 cur += ALPN_HTTP_1_1_LENGTH;
2067
2068 if(SSL_SetNextProtoNego(BACKEND->handle, protocols, cur) != SECSuccess)
2069 goto error;
2070 }
2071 #endif
2072
2073
2074 /* Force handshake on next I/O */
2075 if(SSL_ResetHandshake(BACKEND->handle, /* asServer */ PR_FALSE)
2076 != SECSuccess)
2077 goto error;
2078
2079 /* propagate hostname to the TLS layer */
2080 if(SSL_SetURL(BACKEND->handle, SSL_IS_PROXY() ? conn->http_proxy.host.name :
2081 conn->host.name) != SECSuccess)
2082 goto error;
2083
2084 /* prevent NSS from re-using the session for a different hostname */
2085 if(SSL_SetSockPeerID(BACKEND->handle, SSL_IS_PROXY() ?
2086 conn->http_proxy.host.name : conn->host.name)
2087 != SECSuccess)
2088 goto error;
2089
2090 return CURLE_OK;
2091
2092 error:
2093 if(model)
2094 PR_Close(model);
2095
2096 return nss_fail_connect(connssl, data, result);
2097 }
2098
nss_do_connect(struct connectdata * conn,int sockindex)2099 static CURLcode nss_do_connect(struct connectdata *conn, int sockindex)
2100 {
2101 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
2102 struct Curl_easy *data = conn->data;
2103 CURLcode result = CURLE_SSL_CONNECT_ERROR;
2104 PRUint32 timeout;
2105 long * const certverifyresult = SSL_IS_PROXY() ?
2106 &data->set.proxy_ssl.certverifyresult : &data->set.ssl.certverifyresult;
2107 const char * const pinnedpubkey = SSL_IS_PROXY() ?
2108 data->set.str[STRING_SSL_PINNEDPUBLICKEY_PROXY] :
2109 data->set.str[STRING_SSL_PINNEDPUBLICKEY_ORIG];
2110
2111
2112 /* check timeout situation */
2113 const time_t time_left = Curl_timeleft(data, NULL, TRUE);
2114 if(time_left < 0) {
2115 failf(data, "timed out before SSL handshake");
2116 result = CURLE_OPERATION_TIMEDOUT;
2117 goto error;
2118 }
2119
2120 /* Force the handshake now */
2121 timeout = PR_MillisecondsToInterval((PRUint32) time_left);
2122 if(SSL_ForceHandshakeWithTimeout(BACKEND->handle, timeout) != SECSuccess) {
2123 if(PR_GetError() == PR_WOULD_BLOCK_ERROR)
2124 /* blocking direction is updated by nss_update_connecting_state() */
2125 return CURLE_AGAIN;
2126 else if(*certverifyresult == SSL_ERROR_BAD_CERT_DOMAIN)
2127 result = CURLE_PEER_FAILED_VERIFICATION;
2128 else if(*certverifyresult != 0)
2129 result = CURLE_PEER_FAILED_VERIFICATION;
2130 goto error;
2131 }
2132
2133 result = display_conn_info(conn, BACKEND->handle);
2134 if(result)
2135 goto error;
2136
2137 if(SSL_SET_OPTION(issuercert)) {
2138 SECStatus ret = SECFailure;
2139 char *nickname = dup_nickname(data, SSL_SET_OPTION(issuercert));
2140 if(nickname) {
2141 /* we support only nicknames in case of issuercert for now */
2142 ret = check_issuer_cert(BACKEND->handle, nickname);
2143 free(nickname);
2144 }
2145
2146 if(SECFailure == ret) {
2147 infof(data, "SSL certificate issuer check failed\n");
2148 result = CURLE_SSL_ISSUER_ERROR;
2149 goto error;
2150 }
2151 else {
2152 infof(data, "SSL certificate issuer check ok\n");
2153 }
2154 }
2155
2156 result = cmp_peer_pubkey(connssl, pinnedpubkey);
2157 if(result)
2158 /* status already printed */
2159 goto error;
2160
2161 return CURLE_OK;
2162
2163 error:
2164 return nss_fail_connect(connssl, data, result);
2165 }
2166
nss_connect_common(struct connectdata * conn,int sockindex,bool * done)2167 static CURLcode nss_connect_common(struct connectdata *conn, int sockindex,
2168 bool *done)
2169 {
2170 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
2171 struct Curl_easy *data = conn->data;
2172 const bool blocking = (done == NULL);
2173 CURLcode result;
2174
2175 if(connssl->state == ssl_connection_complete) {
2176 if(!blocking)
2177 *done = TRUE;
2178 return CURLE_OK;
2179 }
2180
2181 if(connssl->connecting_state == ssl_connect_1) {
2182 result = nss_setup_connect(conn, sockindex);
2183 if(result)
2184 /* we do not expect CURLE_AGAIN from nss_setup_connect() */
2185 return result;
2186
2187 connssl->connecting_state = ssl_connect_2;
2188 }
2189
2190 /* enable/disable blocking mode before handshake */
2191 result = nss_set_blocking(connssl, data, blocking);
2192 if(result)
2193 return result;
2194
2195 result = nss_do_connect(conn, sockindex);
2196 switch(result) {
2197 case CURLE_OK:
2198 break;
2199 case CURLE_AGAIN:
2200 if(!blocking)
2201 /* CURLE_AGAIN in non-blocking mode is not an error */
2202 return CURLE_OK;
2203 /* FALLTHROUGH */
2204 default:
2205 return result;
2206 }
2207
2208 if(blocking) {
2209 /* in blocking mode, set NSS non-blocking mode _after_ SSL handshake */
2210 result = nss_set_blocking(connssl, data, /* blocking */ FALSE);
2211 if(result)
2212 return result;
2213 }
2214 else
2215 /* signal completed SSL handshake */
2216 *done = TRUE;
2217
2218 connssl->state = ssl_connection_complete;
2219 conn->recv[sockindex] = nss_recv;
2220 conn->send[sockindex] = nss_send;
2221
2222 /* ssl_connect_done is never used outside, go back to the initial state */
2223 connssl->connecting_state = ssl_connect_1;
2224
2225 return CURLE_OK;
2226 }
2227
Curl_nss_connect(struct connectdata * conn,int sockindex)2228 static CURLcode Curl_nss_connect(struct connectdata *conn, int sockindex)
2229 {
2230 return nss_connect_common(conn, sockindex, /* blocking */ NULL);
2231 }
2232
Curl_nss_connect_nonblocking(struct connectdata * conn,int sockindex,bool * done)2233 static CURLcode Curl_nss_connect_nonblocking(struct connectdata *conn,
2234 int sockindex, bool *done)
2235 {
2236 return nss_connect_common(conn, sockindex, done);
2237 }
2238
nss_send(struct connectdata * conn,int sockindex,const void * mem,size_t len,CURLcode * curlcode)2239 static ssize_t nss_send(struct connectdata *conn, /* connection data */
2240 int sockindex, /* socketindex */
2241 const void *mem, /* send this data */
2242 size_t len, /* amount to write */
2243 CURLcode *curlcode)
2244 {
2245 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
2246 ssize_t rc;
2247
2248 /* The SelectClientCert() hook uses this for infof() and failf() but the
2249 handle stored in nss_setup_connect() could have already been freed. */
2250 BACKEND->data = conn->data;
2251
2252 rc = PR_Send(BACKEND->handle, mem, (int)len, 0, PR_INTERVAL_NO_WAIT);
2253 if(rc < 0) {
2254 PRInt32 err = PR_GetError();
2255 if(err == PR_WOULD_BLOCK_ERROR)
2256 *curlcode = CURLE_AGAIN;
2257 else {
2258 /* print the error number and error string */
2259 const char *err_name = nss_error_to_name(err);
2260 infof(conn->data, "SSL write: error %d (%s)\n", err, err_name);
2261
2262 /* print a human-readable message describing the error if available */
2263 nss_print_error_message(conn->data, err);
2264
2265 *curlcode = (is_cc_error(err))
2266 ? CURLE_SSL_CERTPROBLEM
2267 : CURLE_SEND_ERROR;
2268 }
2269
2270 return -1;
2271 }
2272
2273 return rc; /* number of bytes */
2274 }
2275
nss_recv(struct connectdata * conn,int sockindex,char * buf,size_t buffersize,CURLcode * curlcode)2276 static ssize_t nss_recv(struct connectdata *conn, /* connection data */
2277 int sockindex, /* socketindex */
2278 char *buf, /* store read data here */
2279 size_t buffersize, /* max amount to read */
2280 CURLcode *curlcode)
2281 {
2282 struct ssl_connect_data *connssl = &conn->ssl[sockindex];
2283 ssize_t nread;
2284
2285 /* The SelectClientCert() hook uses this for infof() and failf() but the
2286 handle stored in nss_setup_connect() could have already been freed. */
2287 BACKEND->data = conn->data;
2288
2289 nread = PR_Recv(BACKEND->handle, buf, (int)buffersize, 0,
2290 PR_INTERVAL_NO_WAIT);
2291 if(nread < 0) {
2292 /* failed SSL read */
2293 PRInt32 err = PR_GetError();
2294
2295 if(err == PR_WOULD_BLOCK_ERROR)
2296 *curlcode = CURLE_AGAIN;
2297 else {
2298 /* print the error number and error string */
2299 const char *err_name = nss_error_to_name(err);
2300 infof(conn->data, "SSL read: errno %d (%s)\n", err, err_name);
2301
2302 /* print a human-readable message describing the error if available */
2303 nss_print_error_message(conn->data, err);
2304
2305 *curlcode = (is_cc_error(err))
2306 ? CURLE_SSL_CERTPROBLEM
2307 : CURLE_RECV_ERROR;
2308 }
2309
2310 return -1;
2311 }
2312
2313 return nread;
2314 }
2315
Curl_nss_version(char * buffer,size_t size)2316 static size_t Curl_nss_version(char *buffer, size_t size)
2317 {
2318 return msnprintf(buffer, size, "NSS/%s", NSS_VERSION);
2319 }
2320
2321 /* data might be NULL */
Curl_nss_seed(struct Curl_easy * data)2322 static int Curl_nss_seed(struct Curl_easy *data)
2323 {
2324 /* make sure that NSS is initialized */
2325 return !!Curl_nss_force_init(data);
2326 }
2327
2328 /* data might be NULL */
Curl_nss_random(struct Curl_easy * data,unsigned char * entropy,size_t length)2329 static CURLcode Curl_nss_random(struct Curl_easy *data,
2330 unsigned char *entropy,
2331 size_t length)
2332 {
2333 Curl_nss_seed(data); /* Initiate the seed if not already done */
2334
2335 if(SECSuccess != PK11_GenerateRandom(entropy, curlx_uztosi(length)))
2336 /* signal a failure */
2337 return CURLE_FAILED_INIT;
2338
2339 return CURLE_OK;
2340 }
2341
Curl_nss_md5sum(unsigned char * tmp,size_t tmplen,unsigned char * md5sum,size_t md5len)2342 static CURLcode Curl_nss_md5sum(unsigned char *tmp, /* input */
2343 size_t tmplen,
2344 unsigned char *md5sum, /* output */
2345 size_t md5len)
2346 {
2347 PK11Context *MD5pw = PK11_CreateDigestContext(SEC_OID_MD5);
2348 unsigned int MD5out;
2349
2350 PK11_DigestOp(MD5pw, tmp, curlx_uztoui(tmplen));
2351 PK11_DigestFinal(MD5pw, md5sum, &MD5out, curlx_uztoui(md5len));
2352 PK11_DestroyContext(MD5pw, PR_TRUE);
2353
2354 return CURLE_OK;
2355 }
2356
Curl_nss_sha256sum(const unsigned char * tmp,size_t tmplen,unsigned char * sha256sum,size_t sha256len)2357 static CURLcode Curl_nss_sha256sum(const unsigned char *tmp, /* input */
2358 size_t tmplen,
2359 unsigned char *sha256sum, /* output */
2360 size_t sha256len)
2361 {
2362 PK11Context *SHA256pw = PK11_CreateDigestContext(SEC_OID_SHA256);
2363 unsigned int SHA256out;
2364
2365 PK11_DigestOp(SHA256pw, tmp, curlx_uztoui(tmplen));
2366 PK11_DigestFinal(SHA256pw, sha256sum, &SHA256out, curlx_uztoui(sha256len));
2367 PK11_DestroyContext(SHA256pw, PR_TRUE);
2368
2369 return CURLE_OK;
2370 }
2371
Curl_nss_cert_status_request(void)2372 static bool Curl_nss_cert_status_request(void)
2373 {
2374 #ifdef SSL_ENABLE_OCSP_STAPLING
2375 return TRUE;
2376 #else
2377 return FALSE;
2378 #endif
2379 }
2380
Curl_nss_false_start(void)2381 static bool Curl_nss_false_start(void)
2382 {
2383 #if NSSVERNUM >= 0x030f04 /* 3.15.4 */
2384 return TRUE;
2385 #else
2386 return FALSE;
2387 #endif
2388 }
2389
Curl_nss_get_internals(struct ssl_connect_data * connssl,CURLINFO info UNUSED_PARAM)2390 static void *Curl_nss_get_internals(struct ssl_connect_data *connssl,
2391 CURLINFO info UNUSED_PARAM)
2392 {
2393 (void)info;
2394 return BACKEND->handle;
2395 }
2396
2397 const struct Curl_ssl Curl_ssl_nss = {
2398 { CURLSSLBACKEND_NSS, "nss" }, /* info */
2399
2400 SSLSUPP_CA_PATH |
2401 SSLSUPP_CERTINFO |
2402 SSLSUPP_PINNEDPUBKEY |
2403 SSLSUPP_HTTPS_PROXY,
2404
2405 sizeof(struct ssl_backend_data),
2406
2407 Curl_nss_init, /* init */
2408 Curl_nss_cleanup, /* cleanup */
2409 Curl_nss_version, /* version */
2410 Curl_nss_check_cxn, /* check_cxn */
2411 /* NSS has no shutdown function provided and thus always fail */
2412 Curl_none_shutdown, /* shutdown */
2413 Curl_none_data_pending, /* data_pending */
2414 Curl_nss_random, /* random */
2415 Curl_nss_cert_status_request, /* cert_status_request */
2416 Curl_nss_connect, /* connect */
2417 Curl_nss_connect_nonblocking, /* connect_nonblocking */
2418 Curl_nss_get_internals, /* get_internals */
2419 Curl_nss_close, /* close_one */
2420 Curl_none_close_all, /* close_all */
2421 /* NSS has its own session ID cache */
2422 Curl_none_session_free, /* session_free */
2423 Curl_none_set_engine, /* set_engine */
2424 Curl_none_set_engine_default, /* set_engine_default */
2425 Curl_none_engines_list, /* engines_list */
2426 Curl_nss_false_start, /* false_start */
2427 Curl_nss_md5sum, /* md5sum */
2428 Curl_nss_sha256sum /* sha256sum */
2429 };
2430
2431 #endif /* USE_NSS */
2432