integrity protect extension token exchange
[mech_eap.orig] / mech_eap / init_sec_context.c
1 /*
2  * Copyright (c) 2011, JANET(UK)
3  * All rights reserved.
4  *
5  * Redistribution and use in source and binary forms, with or without
6  * modification, are permitted provided that the following conditions
7  * are met:
8  *
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  *
12  * 2. Redistributions in binary form must reproduce the above copyright
13  *    notice, this list of conditions and the following disclaimer in the
14  *    documentation and/or other materials provided with the distribution.
15  *
16  * 3. Neither the name of JANET(UK) nor the names of its contributors
17  *    may be used to endorse or promote products derived from this software
18  *    without specific prior written permission.
19  *
20  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
21  * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
22  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
23  * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT HOLDER OR CONTRIBUTORS BE LIABLE
24  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
25  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
26  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
28  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
29  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
30  * SUCH DAMAGE.
31  */
32
33 /*
34  * Establish a security context on the initiator (client). These functions
35  * wrap around libeap.
36  */
37
38 #include "gssapiP_eap.h"
39
40 static OM_uint32
41 policyVariableToFlag(enum eapol_bool_var variable)
42 {
43     OM_uint32 flag = 0;
44
45     switch (variable) {
46     case EAPOL_eapSuccess:
47         flag = CTX_FLAG_EAP_SUCCESS;
48         break;
49     case EAPOL_eapRestart:
50         flag = CTX_FLAG_EAP_RESTART;
51         break;
52     case EAPOL_eapFail:
53         flag = CTX_FLAG_EAP_FAIL;
54         break;
55     case EAPOL_eapResp:
56         flag = CTX_FLAG_EAP_RESP;
57         break;
58     case EAPOL_eapNoResp:
59         flag = CTX_FLAG_EAP_NO_RESP;
60         break;
61     case EAPOL_eapReq:
62         flag = CTX_FLAG_EAP_REQ;
63         break;
64     case EAPOL_portEnabled:
65         flag = CTX_FLAG_EAP_PORT_ENABLED;
66         break;
67     case EAPOL_altAccept:
68         flag = CTX_FLAG_EAP_ALT_ACCEPT;
69         break;
70     case EAPOL_altReject:
71         flag = CTX_FLAG_EAP_ALT_REJECT;
72         break;
73     }
74
75     return flag;
76 }
77
78 static struct eap_peer_config *
79 peerGetConfig(void *ctx)
80 {
81     gss_ctx_id_t gssCtx = (gss_ctx_id_t)ctx;
82
83     return &gssCtx->initiatorCtx.eapPeerConfig;
84 }
85
86 static Boolean
87 peerGetBool(void *data, enum eapol_bool_var variable)
88 {
89     gss_ctx_id_t ctx = data;
90     OM_uint32 flag;
91
92     if (ctx == GSS_C_NO_CONTEXT)
93         return FALSE;
94
95     flag = policyVariableToFlag(variable);
96
97     return ((ctx->flags & flag) != 0);
98 }
99
100 static void
101 peerSetBool(void *data, enum eapol_bool_var variable,
102             Boolean value)
103 {
104     gss_ctx_id_t ctx = data;
105     OM_uint32 flag;
106
107     if (ctx == GSS_C_NO_CONTEXT)
108         return;
109
110     flag = policyVariableToFlag(variable);
111
112     if (value)
113         ctx->flags |= flag;
114     else
115         ctx->flags &= ~(flag);
116 }
117
118 static unsigned int
119 peerGetInt(void *data, enum eapol_int_var variable)
120 {
121     gss_ctx_id_t ctx = data;
122
123     if (ctx == GSS_C_NO_CONTEXT)
124         return FALSE;
125
126     assert(CTX_IS_INITIATOR(ctx));
127
128     switch (variable) {
129     case EAPOL_idleWhile:
130         return ctx->initiatorCtx.idleWhile;
131         break;
132     }
133
134     return 0;
135 }
136
137 static void
138 peerSetInt(void *data, enum eapol_int_var variable,
139            unsigned int value)
140 {
141     gss_ctx_id_t ctx = data;
142
143     if (ctx == GSS_C_NO_CONTEXT)
144         return;
145
146     assert(CTX_IS_INITIATOR(ctx));
147
148     switch (variable) {
149     case EAPOL_idleWhile:
150         ctx->initiatorCtx.idleWhile = value;
151         break;
152     }
153 }
154
155 static struct wpabuf *
156 peerGetEapReqData(void *ctx)
157 {
158     gss_ctx_id_t gssCtx = (gss_ctx_id_t)ctx;
159
160     return &gssCtx->initiatorCtx.reqData;
161 }
162
163 static void
164 peerSetConfigBlob(void *ctx GSSEAP_UNUSED,
165                   struct wpa_config_blob *blob GSSEAP_UNUSED)
166 {
167 }
168
169 static const struct wpa_config_blob *
170 peerGetConfigBlob(void *ctx GSSEAP_UNUSED,
171                   const char *name GSSEAP_UNUSED)
172 {
173     return NULL;
174 }
175
176 static void
177 peerNotifyPending(void *ctx GSSEAP_UNUSED)
178 {
179 }
180
181 static struct eapol_callbacks gssEapPolicyCallbacks = {
182     peerGetConfig,
183     peerGetBool,
184     peerSetBool,
185     peerGetInt,
186     peerSetInt,
187     peerGetEapReqData,
188     peerSetConfigBlob,
189     peerGetConfigBlob,
190     peerNotifyPending,
191 };
192
193 #ifdef GSSEAP_DEBUG
194 extern int wpa_debug_level;
195 #endif
196
197 static OM_uint32
198 peerConfigInit(OM_uint32 *minor,
199                gss_cred_id_t cred,
200                gss_ctx_id_t ctx)
201 {
202     OM_uint32 major;
203     krb5_context krbContext;
204     struct eap_peer_config *eapPeerConfig = &ctx->initiatorCtx.eapPeerConfig;
205     gss_buffer_desc identity = GSS_C_EMPTY_BUFFER;
206     gss_buffer_desc realm = GSS_C_EMPTY_BUFFER;
207
208     eapPeerConfig->identity = NULL;
209     eapPeerConfig->identity_len = 0;
210     eapPeerConfig->anonymous_identity = NULL;
211     eapPeerConfig->anonymous_identity_len = 0;
212     eapPeerConfig->password = NULL;
213     eapPeerConfig->password_len = 0;
214
215     assert(cred != GSS_C_NO_CREDENTIAL);
216
217     GSSEAP_KRB_INIT(&krbContext);
218
219     eapPeerConfig->fragment_size = 1024;
220 #ifdef GSSEAP_DEBUG
221     wpa_debug_level = 0;
222 #endif
223
224     assert(cred->name != GSS_C_NO_NAME);
225
226     if ((cred->name->flags & (NAME_FLAG_NAI | NAME_FLAG_SERVICE)) == 0) {
227         *minor = GSSEAP_BAD_INITIATOR_NAME;
228         return GSS_S_BAD_NAME;
229     }
230
231     /* identity */
232     major = gssEapDisplayName(minor, cred->name, &identity, NULL);
233     if (GSS_ERROR(major))
234         return major;
235
236     eapPeerConfig->identity = (unsigned char *)identity.value;
237     eapPeerConfig->identity_len = identity.length;
238
239     krbPrincRealmToGssBuffer(cred->name->krbPrincipal, &realm);
240
241     /* anonymous_identity */
242     eapPeerConfig->anonymous_identity = GSSEAP_MALLOC(realm.length + 2);
243     if (eapPeerConfig->anonymous_identity == NULL) {
244         *minor = ENOMEM;
245         return GSS_S_FAILURE;
246     }
247
248     eapPeerConfig->anonymous_identity[0] = '@';
249     memcpy(eapPeerConfig->anonymous_identity + 1, realm.value, realm.length);
250     eapPeerConfig->anonymous_identity[1 + realm.length] = '\0';
251     eapPeerConfig->anonymous_identity_len = 1 + realm.length;
252
253     /* password */
254     eapPeerConfig->password = (unsigned char *)cred->password.value;
255     eapPeerConfig->password_len = cred->password.length;
256
257     *minor = 0;
258     return GSS_S_COMPLETE;
259 }
260
261 static OM_uint32
262 peerConfigFree(OM_uint32 *minor,
263                gss_ctx_id_t ctx)
264 {
265     struct eap_peer_config *eapPeerConfig = &ctx->initiatorCtx.eapPeerConfig;
266
267     if (eapPeerConfig->identity != NULL) {
268         GSSEAP_FREE(eapPeerConfig->identity);
269         eapPeerConfig->identity = NULL;
270         eapPeerConfig->identity_len = 0;
271     }
272
273     if (eapPeerConfig->anonymous_identity != NULL) {
274         GSSEAP_FREE(eapPeerConfig->anonymous_identity);
275         eapPeerConfig->anonymous_identity = NULL;
276         eapPeerConfig->anonymous_identity_len = 0;
277     }
278
279     *minor = 0;
280     return GSS_S_COMPLETE;
281 }
282
283 /*
284  * Mark an initiator context as ready for cryptographic operations
285  */
286 static OM_uint32
287 initReady(OM_uint32 *minor, gss_ctx_id_t ctx, OM_uint32 reqFlags)
288 {
289     OM_uint32 major;
290     const unsigned char *key;
291     size_t keyLength;
292
293 #if 1
294     /* XXX actually check for mutual auth */
295     if (reqFlags & GSS_C_MUTUAL_FLAG)
296         ctx->gssFlags |= GSS_C_MUTUAL_FLAG;
297 #endif
298
299     /* Cache encryption type derived from selected mechanism OID */
300     major = gssEapOidToEnctype(minor, ctx->mechanismUsed, &ctx->encryptionType);
301     if (GSS_ERROR(major))
302         return major;
303
304     if (!eap_key_available(ctx->initiatorCtx.eap)) {
305         *minor = GSSEAP_KEY_UNAVAILABLE;
306         return GSS_S_UNAVAILABLE;
307     }
308
309     key = eap_get_eapKeyData(ctx->initiatorCtx.eap, &keyLength);
310
311     if (keyLength < EAP_EMSK_LEN) {
312         *minor = GSSEAP_KEY_TOO_SHORT;
313         return GSS_S_UNAVAILABLE;
314     }
315
316     major = gssEapDeriveRfc3961Key(minor,
317                                    &key[EAP_EMSK_LEN / 2],
318                                    EAP_EMSK_LEN / 2,
319                                    ctx->encryptionType,
320                                    &ctx->rfc3961Key);
321        if (GSS_ERROR(major))
322            return major;
323
324     major = rfc3961ChecksumTypeForKey(minor, &ctx->rfc3961Key,
325                                       &ctx->checksumType);
326     if (GSS_ERROR(major))
327         return major;
328
329     major = sequenceInit(minor,
330                          &ctx->seqState,
331                          ctx->recvSeq,
332                          ((ctx->gssFlags & GSS_C_REPLAY_FLAG) != 0),
333                          ((ctx->gssFlags & GSS_C_SEQUENCE_FLAG) != 0),
334                          TRUE);
335     if (GSS_ERROR(major))
336         return major;
337
338     *minor = 0;
339     return GSS_S_COMPLETE;
340 }
341
342 static OM_uint32
343 initBegin(OM_uint32 *minor,
344           gss_cred_id_t cred,
345           gss_ctx_id_t ctx,
346           gss_name_t target,
347           gss_OID mech,
348           OM_uint32 reqFlags GSSEAP_UNUSED,
349           OM_uint32 timeReq,
350           gss_channel_bindings_t chanBindings GSSEAP_UNUSED)
351 {
352     OM_uint32 major;
353
354     assert(cred != GSS_C_NO_CREDENTIAL);
355
356     if (cred->expiryTime)
357         ctx->expiryTime = cred->expiryTime;
358     else if (timeReq == 0 || timeReq == GSS_C_INDEFINITE)
359         ctx->expiryTime = 0;
360     else
361         ctx->expiryTime = time(NULL) + timeReq;
362
363     /*
364      * The credential mutex protects its name, however we need to
365      * explicitly lock the acceptor name (unlikely as it may be
366      * that it has attributes set on it).
367      */
368     major = gssEapDuplicateName(minor, cred->name, &ctx->initiatorName);
369     if (GSS_ERROR(major))
370         return major;
371
372     if (target != GSS_C_NO_NAME) {
373         GSSEAP_MUTEX_LOCK(&target->mutex);
374
375         major = gssEapDuplicateName(minor, target, &ctx->acceptorName);
376         if (GSS_ERROR(major)) {
377             GSSEAP_MUTEX_UNLOCK(&target->mutex);
378             return major;
379         }
380
381         GSSEAP_MUTEX_UNLOCK(&target->mutex);
382     }
383
384     major = gssEapCanonicalizeOid(minor,
385                                   mech,
386                                   OID_FLAG_NULL_VALID | OID_FLAG_MAP_NULL_TO_DEFAULT_MECH,
387                                   &ctx->mechanismUsed);
388     if (GSS_ERROR(major))
389         return major;
390
391     /* If credentials were provided, check they're usable with this mech */
392     if (!gssEapCredAvailable(cred, ctx->mechanismUsed)) {
393         *minor = GSSEAP_CRED_MECH_MISMATCH;
394         return GSS_S_BAD_MECH;
395     }
396
397     *minor = 0;
398     return GSS_S_COMPLETE;
399 }
400
401 static OM_uint32
402 eapGssSmInitError(OM_uint32 *minor,
403                   gss_cred_id_t cred GSSEAP_UNUSED,
404                   gss_ctx_id_t ctx GSSEAP_UNUSED,
405                   gss_name_t target GSSEAP_UNUSED,
406                   gss_OID mech GSSEAP_UNUSED,
407                   OM_uint32 reqFlags GSSEAP_UNUSED,
408                   OM_uint32 timeReq GSSEAP_UNUSED,
409                   gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
410                   gss_buffer_t inputToken,
411                   gss_buffer_t outputToken GSSEAP_UNUSED,
412                   OM_uint32 *smFlags GSSEAP_UNUSED)
413 {
414     OM_uint32 major;
415     unsigned char *p;
416
417     if (inputToken->length < 8) {
418         *minor = GSSEAP_TOK_TRUNC;
419         return GSS_S_DEFECTIVE_TOKEN;
420     }
421
422     p = (unsigned char *)inputToken->value;
423
424     major = load_uint32_be(&p[0]);
425     *minor = ERROR_TABLE_BASE_eapg + load_uint32_be(&p[4]);
426
427     if (!GSS_ERROR(major) || !IS_WIRE_ERROR(*minor)) {
428         major = GSS_S_FAILURE;
429         *minor = GSSEAP_BAD_ERROR_TOKEN;
430     }
431
432     assert(GSS_ERROR(major));
433
434     return major;
435 }
436
437 #ifdef GSSEAP_ENABLE_REAUTH
438 static OM_uint32
439 eapGssSmInitGssReauth(OM_uint32 *minor,
440                       gss_cred_id_t cred,
441                       gss_ctx_id_t ctx,
442                       gss_name_t target,
443                       gss_OID mech GSSEAP_UNUSED,
444                       OM_uint32 reqFlags,
445                       OM_uint32 timeReq,
446                       gss_channel_bindings_t chanBindings,
447                       gss_buffer_t inputToken,
448                       gss_buffer_t outputToken,
449                       OM_uint32 *smFlags GSSEAP_UNUSED)
450 {
451     OM_uint32 major, tmpMinor;
452     gss_name_t mechTarget = GSS_C_NO_NAME;
453     gss_OID actualMech = GSS_C_NO_OID;
454     OM_uint32 gssFlags, timeRec;
455
456     assert(cred != GSS_C_NO_CREDENTIAL);
457
458     if (GSSEAP_SM_STATE(ctx) == GSSEAP_STATE_INITIAL) {
459         if (!gssEapCanReauthP(cred, target, timeReq))
460             return GSS_S_CONTINUE_NEEDED;
461
462         ctx->flags |= CTX_FLAG_KRB_REAUTH;
463     } else if ((ctx->flags & CTX_FLAG_KRB_REAUTH) == 0) {
464         major = GSS_S_DEFECTIVE_TOKEN;
465         *minor = GSSEAP_WRONG_ITOK;
466         goto cleanup;
467     }
468
469     major = gssEapMechToGlueName(minor, target, &mechTarget);
470     if (GSS_ERROR(major))
471         goto cleanup;
472
473     major = gssInitSecContext(minor,
474                               cred->reauthCred,
475                               &ctx->reauthCtx,
476                               mechTarget,
477                               (gss_OID)gss_mech_krb5,
478                               reqFlags | GSS_C_MUTUAL_FLAG,
479                               timeReq,
480                               chanBindings,
481                               inputToken,
482                               &actualMech,
483                               outputToken,
484                               &gssFlags,
485                               &timeRec);
486     if (GSS_ERROR(major))
487         goto cleanup;
488
489     ctx->gssFlags = gssFlags;
490
491     if (major == GSS_S_COMPLETE) {
492         assert(GSSEAP_SM_STATE(ctx) == GSSEAP_STATE_REAUTHENTICATE);
493
494         major = gssEapReauthComplete(minor, ctx, cred, actualMech, timeRec);
495         if (GSS_ERROR(major))
496             goto cleanup;
497         GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_ESTABLISHED);
498     } else {
499         GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_REAUTHENTICATE);
500     }
501
502 cleanup:
503     gssReleaseName(&tmpMinor, &mechTarget);
504
505     return major;
506 }
507 #endif /* GSSEAP_ENABLE_REAUTH */
508
509 #ifdef GSSEAP_DEBUG
510 static OM_uint32
511 eapGssSmInitVendorInfo(OM_uint32 *minor,
512                        gss_cred_id_t cred GSSEAP_UNUSED,
513                        gss_ctx_id_t ctx GSSEAP_UNUSED,
514                        gss_name_t target GSSEAP_UNUSED,
515                        gss_OID mech GSSEAP_UNUSED,
516                        OM_uint32 reqFlags GSSEAP_UNUSED,
517                        OM_uint32 timeReq GSSEAP_UNUSED,
518                        gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
519                        gss_buffer_t inputToken GSSEAP_UNUSED,
520                        gss_buffer_t outputToken,
521                        OM_uint32 *smFlags GSSEAP_UNUSED)
522 {
523     OM_uint32 major;
524
525     major = makeStringBuffer(minor, "JANET(UK)", outputToken);
526     if (GSS_ERROR(major))
527         return major;
528
529     return GSS_S_CONTINUE_NEEDED;
530 }
531 #endif
532
533 static OM_uint32
534 eapGssSmInitAcceptorName(OM_uint32 *minor,
535                          gss_cred_id_t cred GSSEAP_UNUSED,
536                          gss_ctx_id_t ctx,
537                          gss_name_t target GSSEAP_UNUSED,
538                          gss_OID mech GSSEAP_UNUSED,
539                          OM_uint32 reqFlags GSSEAP_UNUSED,
540                          OM_uint32 timeReq GSSEAP_UNUSED,
541                          gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
542                          gss_buffer_t inputToken GSSEAP_UNUSED,
543                          gss_buffer_t outputToken,
544                          OM_uint32 *smFlags GSSEAP_UNUSED)
545 {
546     OM_uint32 major;
547
548     if (GSSEAP_SM_STATE(ctx) == GSSEAP_STATE_INITIAL &&
549         ctx->acceptorName != GSS_C_NO_NAME) {
550
551         /* Send desired target name to acceptor */
552         major = gssEapDisplayName(minor, ctx->acceptorName,
553                                   outputToken, NULL);
554         if (GSS_ERROR(major))
555             return major;
556     } else if (inputToken != GSS_C_NO_BUFFER &&
557                ctx->acceptorName == GSS_C_NO_NAME) {
558         /* Accept target name hint from acceptor */
559         major = gssEapImportName(minor, inputToken,
560                                  GSS_C_NT_USER_NAME,
561                                  ctx->mechanismUsed,
562                                  &ctx->acceptorName);
563         if (GSS_ERROR(major))
564             return major;
565     }
566
567     /*
568      * Currently, other parts of the code assume that the acceptor name
569      * is available, hence this check.
570      */
571     if (ctx->acceptorName == GSS_C_NO_NAME) {
572         *minor = GSSEAP_NO_ACCEPTOR_NAME;
573         return GSS_S_FAILURE;
574     }
575
576     return GSS_S_CONTINUE_NEEDED;
577 }
578
579 static OM_uint32
580 eapGssSmInitIdentity(OM_uint32 *minor,
581                      gss_cred_id_t cred GSSEAP_UNUSED,
582                      gss_ctx_id_t ctx,
583                      gss_name_t target GSSEAP_UNUSED,
584                      gss_OID mech GSSEAP_UNUSED,
585                      OM_uint32 reqFlags GSSEAP_UNUSED,
586                      OM_uint32 timeReq GSSEAP_UNUSED,
587                      gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
588                      gss_buffer_t inputToken GSSEAP_UNUSED,
589                      gss_buffer_t outputToken GSSEAP_UNUSED,
590                      OM_uint32 *smFlags)
591 {
592     struct eap_config eapConfig;
593
594 #ifdef GSSEAP_ENABLE_REAUTH
595     if (GSSEAP_SM_STATE(ctx) == GSSEAP_STATE_REAUTHENTICATE) {
596         OM_uint32 tmpMinor;
597
598         /* server didn't support reauthentication, sent EAP request */
599         gssDeleteSecContext(&tmpMinor, &ctx->reauthCtx, GSS_C_NO_BUFFER);
600         ctx->flags &= ~(CTX_FLAG_KRB_REAUTH);
601         GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_INITIAL);
602     } else
603 #endif
604         *smFlags |= SM_FLAG_FORCE_SEND_TOKEN;
605
606     assert((ctx->flags & CTX_FLAG_KRB_REAUTH) == 0);
607     assert(inputToken == GSS_C_NO_BUFFER);
608
609     memset(&eapConfig, 0, sizeof(eapConfig));
610
611     ctx->initiatorCtx.eap = eap_peer_sm_init(ctx,
612                                              &gssEapPolicyCallbacks,
613                                              ctx,
614                                              &eapConfig);
615     if (ctx->initiatorCtx.eap == NULL) {
616         *minor = GSSEAP_PEER_SM_INIT_FAILURE;
617         return GSS_S_FAILURE;
618     }
619
620     ctx->flags |= CTX_FLAG_EAP_RESTART | CTX_FLAG_EAP_PORT_ENABLED;
621
622     /* poke EAP state machine */
623     if (eap_peer_sm_step(ctx->initiatorCtx.eap) != 0) {
624         *minor = GSSEAP_PEER_SM_STEP_FAILURE;
625         return GSS_S_FAILURE;
626     }
627
628     GSSEAP_SM_TRANSITION_NEXT(ctx);
629
630     *minor = 0;
631
632     return GSS_S_CONTINUE_NEEDED;
633 }
634
635 static OM_uint32
636 eapGssSmInitAuthenticate(OM_uint32 *minor,
637                          gss_cred_id_t cred,
638                          gss_ctx_id_t ctx,
639                          gss_name_t target GSSEAP_UNUSED,
640                          gss_OID mech GSSEAP_UNUSED,
641                          OM_uint32 reqFlags GSSEAP_UNUSED,
642                          OM_uint32 timeReq GSSEAP_UNUSED,
643                          gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
644                          gss_buffer_t inputToken GSSEAP_UNUSED,
645                          gss_buffer_t outputToken,
646                          OM_uint32 *smFlags)
647 {
648     OM_uint32 major;
649     OM_uint32 tmpMinor;
650     int code;
651     struct wpabuf *resp = NULL;
652
653     *minor = 0;
654
655     assert(inputToken != GSS_C_NO_BUFFER);
656
657     major = peerConfigInit(minor, cred, ctx);
658     if (GSS_ERROR(major))
659         goto cleanup;
660
661     assert(ctx->initiatorCtx.eap != NULL);
662     assert(ctx->flags & CTX_FLAG_EAP_PORT_ENABLED);
663
664     ctx->flags |= CTX_FLAG_EAP_REQ; /* we have a Request from the acceptor */
665
666     wpabuf_set(&ctx->initiatorCtx.reqData,
667                inputToken->value, inputToken->length);
668
669     major = GSS_S_CONTINUE_NEEDED;
670
671     code = eap_peer_sm_step(ctx->initiatorCtx.eap);
672     if (ctx->flags & CTX_FLAG_EAP_RESP) {
673         ctx->flags &= ~(CTX_FLAG_EAP_RESP);
674
675         resp = eap_get_eapRespData(ctx->initiatorCtx.eap);
676     } else if (ctx->flags & CTX_FLAG_EAP_SUCCESS) {
677         major = initReady(minor, ctx, reqFlags);
678         if (GSS_ERROR(major))
679             goto cleanup;
680
681         ctx->flags &= ~(CTX_FLAG_EAP_SUCCESS);
682         major = GSS_S_CONTINUE_NEEDED;
683         GSSEAP_SM_TRANSITION_NEXT(ctx);
684     } else if (ctx->flags & CTX_FLAG_EAP_FAIL) {
685         major = GSS_S_DEFECTIVE_CREDENTIAL;
686         *minor = GSSEAP_PEER_AUTH_FAILURE;
687     } else {
688         major = GSS_S_DEFECTIVE_TOKEN;
689         *minor = GSSEAP_PEER_BAD_MESSAGE;
690     }
691
692 cleanup:
693     if (resp != NULL) {
694         OM_uint32 tmpMajor;
695         gss_buffer_desc respBuf;
696
697         assert(major == GSS_S_CONTINUE_NEEDED);
698
699         respBuf.length = wpabuf_len(resp);
700         respBuf.value = (void *)wpabuf_head(resp);
701
702         tmpMajor = duplicateBuffer(&tmpMinor, &respBuf, outputToken);
703         if (GSS_ERROR(tmpMajor)) {
704             major = tmpMajor;
705             *minor = tmpMinor;
706         }
707
708         *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
709     }
710
711     wpabuf_set(&ctx->initiatorCtx.reqData, NULL, 0);
712     peerConfigFree(&tmpMinor, ctx);
713
714     return major;
715 }
716
717 static OM_uint32
718 eapGssSmInitGssFlags(OM_uint32 *minor,
719                      gss_cred_id_t cred GSSEAP_UNUSED,
720                      gss_ctx_id_t ctx,
721                      gss_name_t target GSSEAP_UNUSED,
722                      gss_OID mech GSSEAP_UNUSED,
723                      OM_uint32 reqFlags GSSEAP_UNUSED,
724                      OM_uint32 timeReq GSSEAP_UNUSED,
725                      gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
726                      gss_buffer_t inputToken GSSEAP_UNUSED,
727                      gss_buffer_t outputToken,
728                      OM_uint32 *smFlags GSSEAP_UNUSED)
729 {
730     unsigned char wireFlags[4];
731     gss_buffer_desc flagsBuf;
732
733     store_uint32_be(ctx->gssFlags & GSSEAP_WIRE_FLAGS_MASK, wireFlags);
734
735     flagsBuf.length = sizeof(wireFlags);
736     flagsBuf.value = wireFlags;
737
738     return duplicateBuffer(minor, &flagsBuf, outputToken);
739 }
740
741 static OM_uint32
742 eapGssSmInitGssChannelBindings(OM_uint32 *minor,
743                                gss_cred_id_t cred GSSEAP_UNUSED,
744                                gss_ctx_id_t ctx,
745                                gss_name_t target GSSEAP_UNUSED,
746                                gss_OID mech GSSEAP_UNUSED,
747                                OM_uint32 reqFlags GSSEAP_UNUSED,
748                                OM_uint32 timeReq GSSEAP_UNUSED,
749                                gss_channel_bindings_t chanBindings,
750                                gss_buffer_t inputToken GSSEAP_UNUSED,
751                                gss_buffer_t outputToken,
752                                OM_uint32 *smFlags)
753 {
754     OM_uint32 major;
755     gss_buffer_desc buffer = GSS_C_EMPTY_BUFFER;
756
757     if (chanBindings != GSS_C_NO_CHANNEL_BINDINGS)
758         buffer = chanBindings->application_data;
759
760     major = gssEapWrap(minor, ctx, TRUE, GSS_C_QOP_DEFAULT,
761                        &buffer, NULL, outputToken);
762     if (GSS_ERROR(major))
763         return major;
764
765     assert(outputToken->value != NULL);
766
767     *minor = 0;
768     *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
769
770     return GSS_S_CONTINUE_NEEDED;
771 }
772
773 static OM_uint32
774 eapGssSmInitInitiatorMIC(OM_uint32 *minor,
775                          gss_cred_id_t cred GSSEAP_UNUSED,
776                          gss_ctx_id_t ctx,
777                          gss_name_t target GSSEAP_UNUSED,
778                          gss_OID mech GSSEAP_UNUSED,
779                          OM_uint32 reqFlags GSSEAP_UNUSED,
780                          OM_uint32 timeReq GSSEAP_UNUSED,
781                          gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
782                          gss_buffer_t inputToken GSSEAP_UNUSED,
783                          gss_buffer_t outputToken,
784                          OM_uint32 *smFlags)
785 {
786     OM_uint32 major;
787
788     major = gssEapMakeTokenMIC(minor, ctx, outputToken);
789     if (GSS_ERROR(major))
790         return major;
791
792     GSSEAP_SM_TRANSITION_NEXT(ctx);
793
794     *minor = 0;
795     *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
796
797     return GSS_S_CONTINUE_NEEDED;
798 }
799  
800 #ifdef GSSEAP_ENABLE_REAUTH
801 static OM_uint32
802 eapGssSmInitReauthCreds(OM_uint32 *minor,
803                         gss_cred_id_t cred,
804                         gss_ctx_id_t ctx,
805                         gss_name_t target GSSEAP_UNUSED,
806                         gss_OID mech GSSEAP_UNUSED,
807                         OM_uint32 reqFlags GSSEAP_UNUSED,
808                         OM_uint32 timeReq GSSEAP_UNUSED,
809                         gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
810                         gss_buffer_t inputToken,
811                         gss_buffer_t outputToken GSSEAP_UNUSED,
812                         OM_uint32 *smFlags GSSEAP_UNUSED)
813 {
814     OM_uint32 major;
815
816     if (ctx->gssFlags & GSS_C_MUTUAL_FLAG) {
817         major = gssEapStoreReauthCreds(minor, ctx, cred, inputToken);
818         if (GSS_ERROR(major))
819             return major;
820     }
821
822     *minor = 0;
823     return GSS_S_CONTINUE_NEEDED;
824 }
825 #endif /* GSSEAP_ENABLE_REAUTH */
826
827 static OM_uint32
828 eapGssSmInitAcceptorMIC(OM_uint32 *minor,
829                         gss_cred_id_t cred GSSEAP_UNUSED,
830                         gss_ctx_id_t ctx,
831                         gss_name_t target GSSEAP_UNUSED,
832                         gss_OID mech GSSEAP_UNUSED,
833                         OM_uint32 reqFlags GSSEAP_UNUSED,
834                         OM_uint32 timeReq GSSEAP_UNUSED,
835                         gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
836                         gss_buffer_t inputToken,
837                         gss_buffer_t outputToken GSSEAP_UNUSED,
838                         OM_uint32 *smFlags GSSEAP_UNUSED)
839 {
840     OM_uint32 major;
841
842     major = gssEapVerifyTokenMIC(minor, ctx, inputToken);
843     if (GSS_ERROR(major))
844         return major;
845
846     GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_ESTABLISHED);
847
848     *minor = 0;
849
850     return GSS_S_COMPLETE;
851 }
852
853 static struct gss_eap_sm eapGssInitiatorSm[] = {
854     {
855         ITOK_TYPE_CONTEXT_ERR,
856         ITOK_TYPE_NONE,
857         GSSEAP_STATE_ALL & ~(GSSEAP_STATE_INITIAL),
858         0,
859         eapGssSmInitError
860     },
861     {
862         ITOK_TYPE_ACCEPTOR_NAME_RESP,
863         ITOK_TYPE_ACCEPTOR_NAME_REQ,
864         GSSEAP_STATE_INITIAL | GSSEAP_STATE_AUTHENTICATE,
865         0,
866         eapGssSmInitAcceptorName
867     },
868 #ifdef GSSEAP_DEBUG
869     {
870         ITOK_TYPE_NONE,
871         ITOK_TYPE_VENDOR_INFO,
872         GSSEAP_STATE_INITIAL,
873         0,
874         eapGssSmInitVendorInfo
875     },
876 #endif
877 #ifdef GSSEAP_ENABLE_REAUTH
878     {
879         ITOK_TYPE_REAUTH_RESP,
880         ITOK_TYPE_REAUTH_REQ,
881         GSSEAP_STATE_INITIAL | GSSEAP_STATE_REAUTHENTICATE,
882         0,
883         eapGssSmInitGssReauth
884     },
885 #endif
886     {
887         ITOK_TYPE_NONE,
888         ITOK_TYPE_NONE,
889 #ifdef GSSEAP_ENABLE_REAUTH
890         GSSEAP_STATE_REAUTHENTICATE |
891 #endif
892         GSSEAP_STATE_INITIAL,
893         SM_ITOK_FLAG_REQUIRED,
894         eapGssSmInitIdentity
895     },
896     {
897         ITOK_TYPE_EAP_REQ,
898         ITOK_TYPE_EAP_RESP,
899         GSSEAP_STATE_AUTHENTICATE,
900         SM_ITOK_FLAG_REQUIRED,
901         eapGssSmInitAuthenticate
902     },
903     {
904         ITOK_TYPE_NONE,
905         ITOK_TYPE_GSS_FLAGS,
906         GSSEAP_STATE_INITIATOR_EXTS,
907         0,
908         eapGssSmInitGssFlags
909     },
910     {
911         ITOK_TYPE_NONE,
912         ITOK_TYPE_GSS_CHANNEL_BINDINGS,
913         GSSEAP_STATE_INITIATOR_EXTS,
914         SM_ITOK_FLAG_REQUIRED,
915         eapGssSmInitGssChannelBindings
916     },
917     {
918         ITOK_TYPE_NONE,
919         ITOK_TYPE_INITIATOR_MIC,
920         GSSEAP_STATE_INITIATOR_EXTS,
921         SM_ITOK_FLAG_REQUIRED,
922         eapGssSmInitInitiatorMIC
923     },
924 #ifdef GSSEAP_ENABLE_REAUTH
925     {
926         ITOK_TYPE_REAUTH_CREDS,
927         ITOK_TYPE_NONE,
928         GSSEAP_STATE_ACCEPTOR_EXTS,
929         0,
930         eapGssSmInitReauthCreds
931     },
932 #endif
933     /* other extensions go here */
934     {
935         ITOK_TYPE_ACCEPTOR_MIC,
936         ITOK_TYPE_NONE,
937         GSSEAP_STATE_ACCEPTOR_EXTS,
938         SM_ITOK_FLAG_REQUIRED,
939         eapGssSmInitAcceptorMIC
940     }
941 };
942
943 OM_uint32
944 gss_init_sec_context(OM_uint32 *minor,
945                      gss_cred_id_t cred,
946                      gss_ctx_id_t *context_handle,
947                      gss_name_t target_name,
948                      gss_OID mech_type,
949                      OM_uint32 req_flags,
950                      OM_uint32 time_req,
951                      gss_channel_bindings_t input_chan_bindings,
952                      gss_buffer_t input_token,
953                      gss_OID *actual_mech_type,
954                      gss_buffer_t output_token,
955                      OM_uint32 *ret_flags,
956                      OM_uint32 *time_rec)
957 {
958     OM_uint32 major, tmpMinor;
959     gss_ctx_id_t ctx = *context_handle;
960     int initialContextToken = 0;
961
962     *minor = 0;
963
964     output_token->length = 0;
965     output_token->value = NULL;
966
967     if (ctx == GSS_C_NO_CONTEXT) {
968         if (input_token != GSS_C_NO_BUFFER && input_token->length != 0) {
969             *minor = GSSEAP_WRONG_SIZE;
970             return GSS_S_DEFECTIVE_TOKEN;
971         }
972
973         major = gssEapAllocContext(minor, &ctx);
974         if (GSS_ERROR(major))
975             return major;
976
977         ctx->flags |= CTX_FLAG_INITIATOR;
978         initialContextToken = 1;
979
980         *context_handle = ctx;
981     }
982
983     GSSEAP_MUTEX_LOCK(&ctx->mutex);
984
985     if (cred == GSS_C_NO_CREDENTIAL) {
986         if (ctx->defaultCred == GSS_C_NO_CREDENTIAL) {
987             major = gssEapAcquireCred(minor,
988                                       GSS_C_NO_NAME,
989                                       GSS_C_NO_BUFFER,
990                                       time_req,
991                                       GSS_C_NO_OID_SET,
992                                       GSS_C_INITIATE,
993                                       &ctx->defaultCred,
994                                       NULL,
995                                       NULL);
996             if (GSS_ERROR(major))
997                 goto cleanup;
998         }
999
1000         cred = ctx->defaultCred;
1001     }
1002
1003     GSSEAP_MUTEX_LOCK(&cred->mutex);
1004
1005     if ((cred->flags & CRED_FLAG_INITIATE) == 0) {
1006         major = GSS_S_NO_CRED;
1007         *minor = GSSEAP_CRED_USAGE_MISMATCH;
1008         goto cleanup;
1009     }
1010
1011     if (initialContextToken) {
1012         major = initBegin(minor, cred, ctx, target_name, mech_type,
1013                           req_flags, time_req, input_chan_bindings);
1014         if (GSS_ERROR(major))
1015             goto cleanup;
1016     }
1017
1018     major = gssEapSmStep(minor,
1019                          cred,
1020                          ctx,
1021                          target_name,
1022                          mech_type,
1023                          req_flags,
1024                          time_req,
1025                          input_chan_bindings,
1026                          input_token,
1027                          output_token,
1028                          eapGssInitiatorSm,
1029                          sizeof(eapGssInitiatorSm) / sizeof(eapGssInitiatorSm[0]));
1030     if (GSS_ERROR(major))
1031         goto cleanup;
1032
1033     if (actual_mech_type != NULL) {
1034         OM_uint32 tmpMajor;
1035
1036         tmpMajor = gssEapCanonicalizeOid(&tmpMinor, ctx->mechanismUsed, 0, actual_mech_type);
1037         if (GSS_ERROR(tmpMajor)) {
1038             major = tmpMajor;
1039             *minor = tmpMinor;
1040             goto cleanup;
1041         }
1042     }
1043     if (ret_flags != NULL)
1044         *ret_flags = ctx->gssFlags;
1045     if (time_rec != NULL)
1046         gssEapContextTime(&tmpMinor, ctx, time_rec);
1047
1048     assert(CTX_IS_ESTABLISHED(ctx) || major == GSS_S_CONTINUE_NEEDED);
1049
1050 cleanup:
1051     if (cred != GSS_C_NO_CREDENTIAL)
1052         GSSEAP_MUTEX_UNLOCK(&cred->mutex);
1053     GSSEAP_MUTEX_UNLOCK(&ctx->mutex);
1054
1055     if (GSS_ERROR(major))
1056         gssEapReleaseContext(&tmpMinor, context_handle);
1057
1058     return major;
1059 }