factor out EAP into Identity and Authenticate states
[cyrus-sasl.git] / mech_eap / init_sec_context.c
1 /*
2  * Copyright (c) 2010, 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 #include "gssapiP_eap.h"
34
35 static OM_uint32
36 policyVariableToFlag(enum eapol_bool_var variable)
37 {
38     OM_uint32 flag = 0;
39
40     switch (variable) {
41     case EAPOL_eapSuccess:
42         flag = CTX_FLAG_EAP_SUCCESS;
43         break;
44     case EAPOL_eapRestart:
45         flag = CTX_FLAG_EAP_RESTART;
46         break;
47     case EAPOL_eapFail:
48         flag = CTX_FLAG_EAP_FAIL;
49         break;
50     case EAPOL_eapResp:
51         flag = CTX_FLAG_EAP_RESP;
52         break;
53     case EAPOL_eapNoResp:
54         flag = CTX_FLAG_EAP_NO_RESP;
55         break;
56     case EAPOL_eapReq:
57         flag = CTX_FLAG_EAP_REQ;
58         break;
59     case EAPOL_portEnabled:
60         flag = CTX_FLAG_EAP_PORT_ENABLED;
61         break;
62     case EAPOL_altAccept:
63         flag = CTX_FLAG_EAP_ALT_ACCEPT;
64         break;
65     case EAPOL_altReject:
66         flag = CTX_FLAG_EAP_ALT_REJECT;
67         break;
68     }
69
70     return flag;
71 }
72
73 static struct eap_peer_config *
74 peerGetConfig(void *ctx)
75 {
76     gss_ctx_id_t gssCtx = (gss_ctx_id_t)ctx;
77
78     return &gssCtx->initiatorCtx.eapPeerConfig;
79 }
80
81 static Boolean
82 peerGetBool(void *data, enum eapol_bool_var variable)
83 {
84     gss_ctx_id_t ctx = data;
85     OM_uint32 flag;
86
87     if (ctx == GSS_C_NO_CONTEXT)
88         return FALSE;
89
90     flag = policyVariableToFlag(variable);
91
92     return ((ctx->flags & flag) != 0);
93 }
94
95 static void
96 peerSetBool(void *data, enum eapol_bool_var variable,
97             Boolean value)
98 {
99     gss_ctx_id_t ctx = data;
100     OM_uint32 flag;
101
102     if (ctx == GSS_C_NO_CONTEXT)
103         return;
104
105     flag = policyVariableToFlag(variable);
106
107     if (value)
108         ctx->flags |= flag;
109     else
110         ctx->flags &= ~(flag);
111 }
112
113 static unsigned int
114 peerGetInt(void *data, enum eapol_int_var variable)
115 {
116     gss_ctx_id_t ctx = data;
117
118     if (ctx == GSS_C_NO_CONTEXT)
119         return FALSE;
120
121     assert(CTX_IS_INITIATOR(ctx));
122
123     switch (variable) {
124     case EAPOL_idleWhile:
125         return ctx->initiatorCtx.idleWhile;
126         break;
127     }
128
129     return 0;
130 }
131
132 static void
133 peerSetInt(void *data, enum eapol_int_var variable,
134            unsigned int value)
135 {
136     gss_ctx_id_t ctx = data;
137
138     if (ctx == GSS_C_NO_CONTEXT)
139         return;
140
141     assert(CTX_IS_INITIATOR(ctx));
142
143     switch (variable) {
144     case EAPOL_idleWhile:
145         ctx->initiatorCtx.idleWhile = value;
146         break;
147     }
148 }
149
150 static struct wpabuf *
151 peerGetEapReqData(void *ctx)
152 {
153     gss_ctx_id_t gssCtx = (gss_ctx_id_t)ctx;
154
155     return &gssCtx->initiatorCtx.reqData;
156 }
157
158 static void
159 peerSetConfigBlob(void *ctx, struct wpa_config_blob *blob)
160 {
161 }
162
163 static const struct wpa_config_blob *
164 peerGetConfigBlob(void *ctx, const char *name)
165 {
166     return NULL;
167 }
168
169 static void
170 peerNotifyPending(void *ctx)
171 {
172 }
173
174 static struct eapol_callbacks gssEapPolicyCallbacks = {
175     peerGetConfig,
176     peerGetBool,
177     peerSetBool,
178     peerGetInt,
179     peerSetInt,
180     peerGetEapReqData,
181     peerSetConfigBlob,
182     peerGetConfigBlob,
183     peerNotifyPending,
184 };
185
186 extern int wpa_debug_level;
187
188 static OM_uint32
189 peerConfigInit(OM_uint32 *minor,
190                gss_cred_id_t cred,
191                gss_ctx_id_t ctx)
192 {
193     krb5_context krbContext;
194     struct eap_peer_config *eapPeerConfig = &ctx->initiatorCtx.eapPeerConfig;
195     krb5_error_code code;
196     char *identity;
197
198     GSSEAP_KRB_INIT(&krbContext);
199
200     eapPeerConfig->fragment_size = 1024;
201     wpa_debug_level = 0;
202
203     code = krb5_unparse_name(krbContext, cred->name->krbPrincipal, &identity);
204     if (code != 0) {
205         *minor = code;
206         return GSS_S_FAILURE;
207     }
208
209     eapPeerConfig->identity = (unsigned char *)identity;
210     eapPeerConfig->identity_len = strlen(identity);
211     eapPeerConfig->password = (unsigned char *)cred->password.value;
212     eapPeerConfig->password_len = cred->password.length;
213
214     return GSS_S_COMPLETE;
215 }
216
217 static OM_uint32
218 peerConfigFree(OM_uint32 *minor,
219                gss_ctx_id_t ctx)
220 {
221     krb5_context krbContext;
222     struct eap_peer_config *eapPeerConfig = &ctx->initiatorCtx.eapPeerConfig;
223
224     GSSEAP_KRB_INIT(&krbContext);
225
226     krb5_free_unparsed_name(krbContext, (char *)eapPeerConfig->identity);
227
228     return GSS_S_COMPLETE;
229 }
230
231 static OM_uint32
232 initReady(OM_uint32 *minor, gss_ctx_id_t ctx)
233 {
234     OM_uint32 major;
235     const unsigned char *key;
236     size_t keyLength;
237
238     /* Cache encryption type derived from selected mechanism OID */
239     major = gssEapOidToEnctype(minor, ctx->mechanismUsed, &ctx->encryptionType);
240     if (GSS_ERROR(major))
241         return major;
242
243     if (ctx->encryptionType != ENCTYPE_NULL &&
244         eap_key_available(ctx->initiatorCtx.eap)) {
245         key = eap_get_eapKeyData(ctx->initiatorCtx.eap, &keyLength);
246
247         major = gssEapDeriveRfc3961Key(minor, key, keyLength,
248                                        ctx->encryptionType, &ctx->rfc3961Key);
249         if (GSS_ERROR(major))
250             return major;
251
252         major = rfc3961ChecksumTypeForKey(minor, &ctx->rfc3961Key,
253                                            &ctx->checksumType);
254         if (GSS_ERROR(major))
255             return major;
256     } else {
257         /*
258          * draft-howlett-eap-gss says that integrity/confidentialty should
259          * always be advertised as available, but if we have no keying
260          * material it seems confusing to the caller to advertise this.
261          */
262         ctx->gssFlags &= ~(GSS_C_INTEG_FLAG | GSS_C_CONF_FLAG);
263     }
264
265     major = sequenceInit(minor,
266                          &ctx->seqState,
267                          ctx->recvSeq,
268                          ((ctx->gssFlags & GSS_C_REPLAY_FLAG) != 0),
269                          ((ctx->gssFlags & GSS_C_SEQUENCE_FLAG) != 0),
270                          TRUE);
271     if (GSS_ERROR(major))
272         return major;
273
274     return GSS_S_COMPLETE;
275 }
276
277 static gss_buffer_desc emptyBuffer = GSS_C_EMPTY_BUFFER;
278
279 static OM_uint32
280 eapGssSmInitIdentity(OM_uint32 *minor,
281                      gss_cred_id_t cred,
282                      gss_ctx_id_t ctx,
283                      gss_name_t target,
284                      gss_OID mech,
285                      OM_uint32 reqFlags,
286                      OM_uint32 timeReq,
287                      gss_channel_bindings_t chanBindings,
288                      gss_buffer_t inputToken,
289                      gss_buffer_t outputToken)
290 {
291     int initialContextToken;
292     time_t now;
293     OM_uint32 major;
294
295     initialContextToken = (inputToken == GSS_C_NO_BUFFER ||
296                            inputToken->length == 0);
297     if (!initialContextToken)
298         return GSS_S_DEFECTIVE_TOKEN;
299
300     time(&now);
301     if (timeReq == 0 || timeReq == GSS_C_INDEFINITE)
302         ctx->expiryTime = 0;
303     else
304         ctx->expiryTime = now + timeReq;
305
306     major = gss_duplicate_name(minor, cred->name, &ctx->initiatorName);
307     if (GSS_ERROR(major))
308         return major;
309
310     major = gss_duplicate_name(minor, target, &ctx->acceptorName);
311     if (GSS_ERROR(major))
312         return major;
313
314     if (mech == GSS_C_NULL_OID || oidEqual(mech, GSS_EAP_MECHANISM)) {
315         major = gssEapDefaultMech(minor, &ctx->mechanismUsed);
316     } else if (gssEapIsConcreteMechanismOid(mech)) {
317         if (!gssEapInternalizeOid(mech, &ctx->mechanismUsed))
318             major = duplicateOid(minor, mech, &ctx->mechanismUsed);
319     } else {
320         major = GSS_S_BAD_MECH;
321     }
322     if (GSS_ERROR(major))
323         return major;
324
325     /* If credentials were provided, check they're usable with this mech */
326     if (!gssEapCredAvailable(cred, ctx->mechanismUsed))
327         return GSS_S_BAD_MECH;
328
329     major = duplicateBuffer(minor, &emptyBuffer, outputToken);
330     if (GSS_ERROR(major))
331         return major;
332
333     ctx->state = EAP_STATE_AUTHENTICATE;
334
335     return GSS_S_CONTINUE_NEEDED;
336 }
337
338 static OM_uint32
339 eapGssSmInitAuthenticate(OM_uint32 *minor,
340                          gss_cred_id_t cred,
341                          gss_ctx_id_t ctx,
342                          gss_name_t target,
343                          gss_OID mech,
344                          OM_uint32 reqFlags,
345                          OM_uint32 timeReq,
346                          gss_channel_bindings_t chanBindings,
347                          gss_buffer_t inputToken,
348                          gss_buffer_t outputToken)
349 {
350     OM_uint32 major;
351     OM_uint32 tmpMinor;
352     int code;
353     struct wpabuf *resp = NULL;
354
355     major = peerConfigInit(minor, cred, ctx);
356     if (GSS_ERROR(major))
357         goto cleanup;
358
359     if (ctx->initiatorCtx.eap == NULL) {
360         struct eap_config eapConfig;
361
362         memset(&eapConfig, 0, sizeof(eapConfig));
363         ctx->flags |= CTX_FLAG_EAP_PORT_ENABLED;
364
365         ctx->initiatorCtx.eap = eap_peer_sm_init(ctx,
366                                                  &gssEapPolicyCallbacks,
367                                                  ctx,
368                                                  &eapConfig);
369         if (ctx->initiatorCtx.eap == NULL) {
370             major = GSS_S_FAILURE;
371             goto cleanup;
372         }
373     }
374
375     ctx->flags |= CTX_FLAG_EAP_REQ; /* we have a Request from the acceptor */
376
377     wpabuf_set(&ctx->initiatorCtx.reqData,
378                inputToken->value, inputToken->length);
379
380     major = GSS_S_CONTINUE_NEEDED;
381
382     code = eap_peer_sm_step(ctx->initiatorCtx.eap);
383     if (ctx->flags & CTX_FLAG_EAP_RESP) {
384
385         ctx->flags &= ~(CTX_FLAG_EAP_RESP);
386
387         resp = eap_get_eapRespData(ctx->initiatorCtx.eap);
388         if (resp != NULL) {
389         }
390     } else if (ctx->flags & CTX_FLAG_EAP_SUCCESS) {
391         major = initReady(minor, ctx);
392         if (GSS_ERROR(major))
393             goto cleanup;
394
395         ctx->flags &= ~(CTX_FLAG_EAP_SUCCESS);
396         major = GSS_S_CONTINUE_NEEDED;
397         ctx->state = EAP_STATE_GSS_CHANNEL_BINDINGS;
398     } else if (ctx->flags & CTX_FLAG_EAP_FAIL) {
399         major = GSS_S_DEFECTIVE_CREDENTIAL;
400     } else if (code == 0) {
401         major = GSS_S_FAILURE;
402     }
403
404 cleanup:
405     if (resp != NULL) {
406         OM_uint32 tmpMajor;
407         gss_buffer_desc respBuf;
408
409         assert(major == GSS_S_CONTINUE_NEEDED);
410
411         respBuf.length = wpabuf_len(resp);
412         respBuf.value = (void *)wpabuf_head(resp);
413
414         tmpMajor = duplicateBuffer(&tmpMinor, &respBuf, outputToken);
415         if (GSS_ERROR(tmpMajor)) {
416             major = tmpMajor;
417             *minor = tmpMinor;
418         }
419     }
420
421     wpabuf_set(&ctx->initiatorCtx.reqData, NULL, 0);
422     peerConfigFree(&tmpMinor, ctx);
423
424     return major;
425 }
426
427 static OM_uint32
428 eapGssSmInitGssChannelBindings(OM_uint32 *minor,
429                                gss_cred_id_t cred,
430                                gss_ctx_id_t ctx,
431                                gss_name_t target,
432                                gss_OID mech,
433                                OM_uint32 reqFlags,
434                                OM_uint32 timeReq,
435                                gss_channel_bindings_t chanBindings,
436                                gss_buffer_t inputToken,
437                                gss_buffer_t outputToken)
438 {
439     OM_uint32 major;
440     gss_iov_buffer_desc iov[2];
441     gss_buffer_desc buf;
442
443     iov[0].type = GSS_IOV_BUFFER_TYPE_DATA;
444     iov[0].buffer.length = 0;
445     iov[0].buffer.value = NULL;
446
447     iov[1].type = GSS_IOV_BUFFER_TYPE_HEADER | GSS_IOV_BUFFER_FLAG_ALLOCATE;
448     iov[1].buffer.length = 0;
449     iov[1].buffer.value = NULL;
450
451     if (chanBindings != GSS_C_NO_CHANNEL_BINDINGS)
452         iov[0].buffer = chanBindings->application_data;
453
454     major = gssEapWrapOrGetMIC(minor, ctx, FALSE, FALSE, iov, 2,
455                                TOK_TYPE_GSS_CB);
456     if (GSS_ERROR(major))
457         goto cleanup;
458
459     /* Skip past token ID */
460     assert(iov[1].buffer.length > 2);
461     assert(load_uint16_be(iov[1].buffer.value) == TOK_TYPE_GSS_CB);
462
463     buf.length = iov[1].buffer.length - 2;
464     buf.value = (unsigned char *)iov[1].buffer.value + 2;
465
466     major = duplicateBuffer(minor, &buf, outputToken);
467     if (GSS_ERROR(major))
468         goto cleanup;
469
470     major = GSS_S_COMPLETE;
471     ctx->state = EAP_STATE_ESTABLISHED;
472
473 cleanup:
474     gssEapReleaseIov(iov, 2);
475
476     return major;
477 }
478
479 static OM_uint32
480 eapGssSmInitEstablished(OM_uint32 *minor,
481                         gss_cred_id_t cred,
482                         gss_ctx_id_t ctx,
483                         gss_name_t target,
484                         gss_OID mech,
485                         OM_uint32 reqFlags,
486                         OM_uint32 timeReq,
487                         gss_channel_bindings_t chanBindings,
488                         gss_buffer_t inputToken,
489                         gss_buffer_t outputToken)
490 {
491     /* Called with already established context */
492     *minor = EINVAL;
493     return GSS_S_BAD_STATUS;
494 }
495
496 static struct gss_eap_initiator_sm {
497     enum gss_eap_token_type inputTokenType;
498     enum gss_eap_token_type outputTokenType;
499     OM_uint32 (*processToken)(OM_uint32 *,
500                               gss_cred_id_t,
501                               gss_ctx_id_t,
502                               gss_name_t,
503                               gss_OID,
504                               OM_uint32,
505                               OM_uint32,
506                               gss_channel_bindings_t,
507                               gss_buffer_t,
508                               gss_buffer_t);
509 } eapGssInitiatorSm[] = {
510     { TOK_TYPE_NONE,    TOK_TYPE_EAP_RESP,  eapGssSmInitIdentity            },
511     { TOK_TYPE_EAP_REQ, TOK_TYPE_EAP_RESP,  eapGssSmInitAuthenticate        },
512     { TOK_TYPE_NONE,    TOK_TYPE_GSS_CB,    eapGssSmInitGssChannelBindings  },
513     { TOK_TYPE_NONE,    TOK_TYPE_NONE,      eapGssSmInitEstablished         },
514 };
515
516 OM_uint32
517 gss_init_sec_context(OM_uint32 *minor,
518                      gss_cred_id_t cred,
519                      gss_ctx_id_t *context_handle,
520                      gss_name_t target_name,
521                      gss_OID mech_type,
522                      OM_uint32 req_flags,
523                      OM_uint32 time_req,
524                      gss_channel_bindings_t input_chan_bindings,
525                      gss_buffer_t input_token,
526                      gss_OID *actual_mech_type,
527                      gss_buffer_t output_token,
528                      OM_uint32 *ret_flags,
529                      OM_uint32 *time_rec)
530 {
531     OM_uint32 major;
532     OM_uint32 tmpMajor, tmpMinor;
533     gss_ctx_id_t ctx = *context_handle;
534     struct gss_eap_initiator_sm *sm = NULL;
535     gss_buffer_desc innerInputToken;
536     gss_buffer_desc innerOutputToken = GSS_C_EMPTY_BUFFER;
537
538     *minor = 0;
539
540     output_token->length = 0;
541     output_token->value = NULL;
542
543     if (cred != GSS_C_NO_CREDENTIAL && !(cred->flags & CRED_FLAG_INITIATE)) {
544         return GSS_S_NO_CRED;
545     }
546
547     if (ctx == GSS_C_NO_CONTEXT) {
548         if (input_token != GSS_C_NO_BUFFER && input_token->length != 0) {
549             return GSS_S_DEFECTIVE_TOKEN;
550         }
551
552         major = gssEapAllocContext(minor, &ctx);
553         if (GSS_ERROR(major))
554             return major;
555
556         ctx->flags |= CTX_FLAG_INITIATOR;
557
558         *context_handle = ctx;
559     }
560
561     GSSEAP_MUTEX_LOCK(&ctx->mutex);
562
563     sm = &eapGssInitiatorSm[ctx->state];
564
565     if (input_token != GSS_C_NO_BUFFER) {
566         major = gssEapVerifyToken(minor, ctx, input_token,
567                                   sm->inputTokenType, &innerInputToken);
568         if (GSS_ERROR(major))
569             goto cleanup;
570     } else {
571         innerInputToken.length = 0;
572         innerInputToken.value = NULL;
573     }
574
575     /*
576      * Advance through state machine whilst empty tokens are emitted and
577      * the status is not GSS_S_COMPLETE or an error status.
578      */
579     do {
580         sm = &eapGssInitiatorSm[ctx->state];
581
582         major = (sm->processToken)(minor,
583                                    cred,
584                                    ctx,
585                                    target_name,
586                                    mech_type,
587                                    req_flags,
588                                    time_req,
589                                    input_chan_bindings,
590                                    &innerInputToken,
591                                    &innerOutputToken);
592         if (GSS_ERROR(major))
593             goto cleanup;
594     } while (major == GSS_S_CONTINUE_NEEDED && innerOutputToken.value == NULL);
595
596     if (actual_mech_type != NULL) {
597         if (!gssEapInternalizeOid(ctx->mechanismUsed, actual_mech_type))
598             duplicateOid(&tmpMinor, ctx->mechanismUsed, actual_mech_type);
599     }
600     if (innerOutputToken.value != NULL) {
601         tmpMajor = gssEapMakeToken(&tmpMinor, ctx, &innerOutputToken,
602                                    sm->outputTokenType, output_token);
603         if (GSS_ERROR(tmpMajor)) {
604             major = tmpMajor;
605             *minor = tmpMinor;
606             goto cleanup;
607         }
608     }
609     if (ret_flags != NULL)
610         *ret_flags = ctx->gssFlags;
611     if (time_rec != NULL)
612         gss_context_time(&tmpMinor, ctx, time_rec);
613
614     assert(ctx->state == EAP_STATE_ESTABLISHED || major == GSS_S_CONTINUE_NEEDED);
615
616 cleanup:
617     GSSEAP_MUTEX_UNLOCK(&ctx->mutex);
618
619     if (GSS_ERROR(major))
620         gssEapReleaseContext(&tmpMinor, context_handle);
621
622     gss_release_buffer(&tmpMinor, &innerOutputToken);
623
624     return major;
625 }