remove unnecessary cred lock in acceptor
[moonshot.git] / moonshot / mech_eap / accept_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 acceptor (server). These functions
35  * wrap around libradsec and (thus) talk to a RADIUS server or proxy.
36  */
37
38 #include "gssapiP_eap.h"
39
40 #ifdef GSSEAP_ENABLE_REAUTH
41 static OM_uint32
42 eapGssSmAcceptGssReauth(OM_uint32 *minor,
43                         gss_cred_id_t cred,
44                         gss_ctx_id_t ctx,
45                         gss_name_t target,
46                         gss_OID mech,
47                         OM_uint32 reqFlags,
48                         OM_uint32 timeReq,
49                         gss_channel_bindings_t chanBindings,
50                         gss_buffer_t inputToken,
51                         gss_buffer_t outputToken,
52                         OM_uint32 *smFlags);
53 #endif
54
55 /*
56  * Mark an acceptor context as ready for cryptographic operations
57  */
58 static OM_uint32
59 acceptReadyEap(OM_uint32 *minor, gss_ctx_id_t ctx, gss_cred_id_t cred)
60 {
61     OM_uint32 major, tmpMinor;
62     VALUE_PAIR *vp;
63     gss_buffer_desc nameBuf = GSS_C_EMPTY_BUFFER;
64
65     /* Cache encryption type derived from selected mechanism OID */
66     major = gssEapOidToEnctype(minor, ctx->mechanismUsed,
67                                &ctx->encryptionType);
68     if (GSS_ERROR(major))
69         return major;
70
71     gssEapReleaseName(&tmpMinor, &ctx->initiatorName);
72
73     major = gssEapRadiusGetRawAvp(minor, ctx->acceptorCtx.vps,
74                                   PW_USER_NAME, 0, &vp);
75     if (major == GSS_S_COMPLETE && vp->length) {
76         nameBuf.length = vp->length;
77         nameBuf.value = vp->vp_strvalue;
78     } else {
79         ctx->gssFlags |= GSS_C_ANON_FLAG;
80     }
81
82     major = gssEapImportName(minor, &nameBuf,
83                              (ctx->gssFlags & GSS_C_ANON_FLAG) ?
84                                 GSS_C_NT_ANONYMOUS : GSS_C_NT_USER_NAME,
85                              ctx->mechanismUsed,
86                              &ctx->initiatorName);
87     if (GSS_ERROR(major))
88         return major;
89
90     major = gssEapRadiusGetRawAvp(minor, ctx->acceptorCtx.vps,
91                                   PW_MS_MPPE_SEND_KEY, VENDORPEC_MS, &vp);
92     if (GSS_ERROR(major)) {
93         *minor = GSSEAP_KEY_UNAVAILABLE;
94         return GSS_S_UNAVAILABLE;
95     }
96
97     major = gssEapDeriveRfc3961Key(minor,
98                                    vp->vp_octets,
99                                    vp->length,
100                                    ctx->encryptionType,
101                                    &ctx->rfc3961Key);
102     if (GSS_ERROR(major))
103         return major;
104
105     major = rfc3961ChecksumTypeForKey(minor, &ctx->rfc3961Key,
106                                        &ctx->checksumType);
107     if (GSS_ERROR(major))
108         return major;
109
110     major = sequenceInit(minor,
111                          &ctx->seqState, ctx->recvSeq,
112                          ((ctx->gssFlags & GSS_C_REPLAY_FLAG) != 0),
113                          ((ctx->gssFlags & GSS_C_SEQUENCE_FLAG) != 0),
114                          TRUE);
115     if (GSS_ERROR(major))
116         return major;
117
118     major = gssEapCreateAttrContext(minor, cred, ctx,
119                                     &ctx->initiatorName->attrCtx,
120                                     &ctx->expiryTime);
121     if (GSS_ERROR(major))
122         return major;
123
124     if (ctx->expiryTime != 0 && ctx->expiryTime < time(NULL)) {
125         *minor = GSSEAP_CRED_EXPIRED;
126         return GSS_S_CREDENTIALS_EXPIRED;
127     }
128
129     *minor = 0;
130     return GSS_S_COMPLETE;
131 }
132
133 static OM_uint32
134 eapGssSmAcceptAcceptorName(OM_uint32 *minor,
135                            gss_cred_id_t cred GSSEAP_UNUSED,
136                            gss_ctx_id_t ctx,
137                            gss_name_t target GSSEAP_UNUSED,
138                            gss_OID mech GSSEAP_UNUSED,
139                            OM_uint32 reqFlags GSSEAP_UNUSED,
140                            OM_uint32 timeReq GSSEAP_UNUSED,
141                            gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
142                            gss_buffer_t inputToken GSSEAP_UNUSED,
143                            gss_buffer_t outputToken,
144                            OM_uint32 *smFlags GSSEAP_UNUSED)
145 {
146     OM_uint32 major;
147
148     /* XXX TODO import and validate name from inputToken */
149
150     if (ctx->acceptorName != GSS_C_NO_NAME) {
151         /* Send desired target name to acceptor */
152         major = gssEapDisplayName(minor, ctx->acceptorName,
153                                   outputToken, NULL);
154         if (GSS_ERROR(major))
155             return major;
156     }
157
158     return GSS_S_CONTINUE_NEEDED;
159 }
160
161 #ifdef GSSEAP_DEBUG
162 static OM_uint32
163 eapGssSmAcceptVendorInfo(OM_uint32 *minor,
164                          gss_cred_id_t cred GSSEAP_UNUSED,
165                          gss_ctx_id_t ctx GSSEAP_UNUSED,
166                          gss_name_t target GSSEAP_UNUSED,
167                          gss_OID mech GSSEAP_UNUSED,
168                          OM_uint32 reqFlags GSSEAP_UNUSED,
169                          OM_uint32 timeReq GSSEAP_UNUSED,
170                          gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
171                          gss_buffer_t inputToken,
172                          gss_buffer_t outputToken GSSEAP_UNUSED,
173                          OM_uint32 *smFlags GSSEAP_UNUSED)
174 {
175     fprintf(stderr, "GSS-EAP: vendor: %.*s\n",
176             (int)inputToken->length, (char *)inputToken->value);
177
178     *minor = 0;
179     return GSS_S_CONTINUE_NEEDED;
180 }
181 #endif
182
183
184 /*
185  * Emit a identity EAP request to force the initiator (peer) to identify
186  * itself.
187  */
188 static OM_uint32
189 eapGssSmAcceptIdentity(OM_uint32 *minor,
190                        gss_cred_id_t cred,
191                        gss_ctx_id_t ctx,
192                        gss_name_t target GSSEAP_UNUSED,
193                        gss_OID mech GSSEAP_UNUSED,
194                        OM_uint32 reqFlags GSSEAP_UNUSED,
195                        OM_uint32 timeReq GSSEAP_UNUSED,
196                        gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
197                        gss_buffer_t inputToken,
198                        gss_buffer_t outputToken,
199                        OM_uint32 *smFlags)
200 {
201     OM_uint32 major;
202     struct wpabuf *reqData;
203     gss_buffer_desc pktBuffer;
204
205     if (!gssEapCredAvailable(cred, ctx->mechanismUsed)) {
206         *minor = GSSEAP_CRED_MECH_MISMATCH;
207         return GSS_S_BAD_MECH;
208     }
209
210     if (inputToken != GSS_C_NO_BUFFER && inputToken->length != 0) {
211         *minor = GSSEAP_WRONG_SIZE;
212         return GSS_S_DEFECTIVE_TOKEN;
213     }
214
215     reqData = eap_msg_alloc(EAP_VENDOR_IETF, EAP_TYPE_IDENTITY, 0,
216                             EAP_CODE_REQUEST, 0);
217     if (reqData == NULL) {
218         *minor = ENOMEM;
219         return GSS_S_FAILURE;
220     }
221
222     pktBuffer.length = wpabuf_len(reqData);
223     pktBuffer.value = (void *)wpabuf_head(reqData);
224
225     major = duplicateBuffer(minor, &pktBuffer, outputToken);
226     if (GSS_ERROR(major))
227         return major;
228
229     wpabuf_free(reqData);
230
231     GSSEAP_SM_TRANSITION_NEXT(ctx);
232
233     *minor = 0;
234     *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
235
236     return GSS_S_CONTINUE_NEEDED;
237 }
238
239 /*
240  * Returns TRUE if the input token contains an EAP identity response.
241  */
242 static int
243 isIdentityResponseP(gss_buffer_t inputToken)
244 {
245     struct wpabuf respData;
246
247     wpabuf_set(&respData, inputToken->value, inputToken->length);
248
249     return (eap_get_type(&respData) == EAP_TYPE_IDENTITY);
250 }
251
252 /*
253  * Save the asserted initiator identity from the EAP identity response.
254  */
255 static OM_uint32
256 importInitiatorIdentity(OM_uint32 *minor,
257                         gss_ctx_id_t ctx,
258                         gss_buffer_t inputToken)
259 {
260     OM_uint32 tmpMinor;
261     struct wpabuf respData;
262     const unsigned char *pos;
263     size_t len;
264     gss_buffer_desc nameBuf;
265
266     wpabuf_set(&respData, inputToken->value, inputToken->length);
267
268     pos = eap_hdr_validate(EAP_VENDOR_IETF, EAP_TYPE_IDENTITY,
269                            &respData, &len);
270     if (pos == NULL) {
271         *minor = GSSEAP_PEER_BAD_MESSAGE;
272         return GSS_S_DEFECTIVE_TOKEN;
273     }
274
275     nameBuf.value = (void *)pos;
276     nameBuf.length = len;
277
278     gssEapReleaseName(&tmpMinor, &ctx->initiatorName);
279
280     return gssEapImportName(minor, &nameBuf, GSS_C_NT_USER_NAME,
281                             ctx->mechanismUsed, &ctx->initiatorName);
282 }
283
284 /*
285  * Pass the asserted initiator identity to the authentication server.
286  */
287 static OM_uint32
288 setInitiatorIdentity(OM_uint32 *minor,
289                      gss_ctx_id_t ctx,
290                      VALUE_PAIR **vps)
291 {
292     OM_uint32 major, tmpMinor;
293     gss_buffer_desc nameBuf;
294
295     /*
296      * We should have got an EAP identity response, but if we didn't, then
297      * we will just avoid sending User-Name. Note that radsecproxy requires
298      * User-Name to be sent on every request (presumably so it can remain
299      * stateless).
300      */
301     if (ctx->initiatorName != GSS_C_NO_NAME) {
302         major = gssEapDisplayName(minor, ctx->initiatorName, &nameBuf, NULL);
303         if (GSS_ERROR(major))
304             return major;
305
306         major = gssEapRadiusAddAvp(minor, vps, PW_USER_NAME, 0, &nameBuf);
307         if (GSS_ERROR(major))
308             return major;
309
310         gss_release_buffer(&tmpMinor, &nameBuf);
311     }
312
313     *minor = 0;
314     return GSS_S_COMPLETE;
315 }
316
317 /*
318  * Pass the asserted acceptor identity to the authentication server.
319  */
320 static OM_uint32
321 setAcceptorIdentity(OM_uint32 *minor,
322                     gss_ctx_id_t ctx,
323                     VALUE_PAIR **vps)
324 {
325     OM_uint32 major;
326     gss_buffer_desc nameBuf;
327     krb5_context krbContext = NULL;
328     krb5_principal krbPrinc;
329     struct rs_context *rc = ctx->acceptorCtx.radContext;
330
331     GSSEAP_ASSERT(rc != NULL);
332
333     if (ctx->acceptorName == GSS_C_NO_NAME) {
334         *minor = 0;
335         return GSS_S_COMPLETE;
336     }
337
338     if ((ctx->acceptorName->flags & NAME_FLAG_SERVICE) == 0) {
339         *minor = GSSEAP_BAD_SERVICE_NAME;
340         return GSS_S_BAD_NAME;
341     }
342
343     GSSEAP_KRB_INIT(&krbContext);
344
345     krbPrinc = ctx->acceptorName->krbPrincipal;
346     GSSEAP_ASSERT(krbPrinc != NULL);
347     GSSEAP_ASSERT(KRB_PRINC_LENGTH(krbPrinc) >= 2);
348
349     /* Acceptor-Service-Name */
350     krbPrincComponentToGssBuffer(krbPrinc, 0, &nameBuf);
351
352     major = gssEapRadiusAddAvp(minor, vps,
353                                PW_GSS_ACCEPTOR_SERVICE_NAME,
354                                VENDORPEC_UKERNA,
355                                &nameBuf);
356     if (GSS_ERROR(major))
357         return major;
358
359     /* Acceptor-Host-Name */
360     krbPrincComponentToGssBuffer(krbPrinc, 1, &nameBuf);
361
362     major = gssEapRadiusAddAvp(minor, vps,
363                                PW_GSS_ACCEPTOR_HOST_NAME,
364                                VENDORPEC_UKERNA,
365                                &nameBuf);
366     if (GSS_ERROR(major))
367         return major;
368
369     if (KRB_PRINC_LENGTH(krbPrinc) > 2) {
370         /* Acceptor-Service-Specific */
371         krb5_principal_data ssiPrinc = *krbPrinc;
372         char *ssi;
373
374         KRB_PRINC_LENGTH(&ssiPrinc) -= 2;
375         KRB_PRINC_NAME(&ssiPrinc) += 2;
376
377         *minor = krb5_unparse_name_flags(krbContext, &ssiPrinc,
378                                          KRB5_PRINCIPAL_UNPARSE_NO_REALM, &ssi);
379         if (*minor != 0)
380             return GSS_S_FAILURE;
381
382         nameBuf.value = ssi;
383         nameBuf.length = strlen(ssi);
384
385         major = gssEapRadiusAddAvp(minor, vps,
386                                    PW_GSS_ACCEPTOR_SERVICE_SPECIFIC,
387                                    VENDORPEC_UKERNA,
388                                    &nameBuf);
389
390         if (GSS_ERROR(major)) {
391             krb5_free_unparsed_name(krbContext, ssi);
392             return major;
393         }
394         krb5_free_unparsed_name(krbContext, ssi);
395     }
396
397     krbPrincRealmToGssBuffer(krbPrinc, &nameBuf);
398     if (nameBuf.length != 0) {
399         /* Acceptor-Realm-Name */
400         major = gssEapRadiusAddAvp(minor, vps,
401                                    PW_GSS_ACCEPTOR_REALM_NAME,
402                                    VENDORPEC_UKERNA,
403                                    &nameBuf);
404         if (GSS_ERROR(major))
405             return major;
406     }
407
408     *minor = 0;
409     return GSS_S_COMPLETE;
410 }
411
412 /*
413  * Allocate a RadSec handle
414  */
415 static OM_uint32
416 createRadiusHandle(OM_uint32 *minor,
417                    gss_cred_id_t cred,
418                    gss_ctx_id_t ctx)
419 {
420     struct gss_eap_acceptor_ctx *actx = &ctx->acceptorCtx;
421     struct rs_error *err;
422     const char *configStanza = "gss-eap";
423     OM_uint32 major;
424
425     GSSEAP_ASSERT(actx->radContext == NULL);
426     GSSEAP_ASSERT(actx->radConn == NULL);
427     GSSEAP_ASSERT(cred != GSS_C_NO_CREDENTIAL);
428
429     major = gssEapCreateRadiusContext(minor, cred, &actx->radContext);
430     if (GSS_ERROR(major))
431         return major;
432
433     if (cred->radiusConfigStanza.value != NULL)
434         configStanza = (const char *)cred->radiusConfigStanza.value;
435
436     if (rs_conn_create(actx->radContext, &actx->radConn, configStanza) != 0) {
437         err = rs_err_conn_pop(actx->radConn);
438         return gssEapRadiusMapError(minor, err);
439     }
440
441     if (actx->radServer != NULL) {
442         if (rs_conn_select_peer(actx->radConn, actx->radServer) != 0) {
443             err = rs_err_conn_pop(actx->radConn);
444             return gssEapRadiusMapError(minor, err);
445         }
446     }
447
448     *minor = 0;
449     return GSS_S_COMPLETE;
450 }
451
452 /*
453  * Process a EAP response from the initiator.
454  */
455 static OM_uint32
456 eapGssSmAcceptAuthenticate(OM_uint32 *minor,
457                            gss_cred_id_t cred,
458                            gss_ctx_id_t ctx,
459                            gss_name_t target GSSEAP_UNUSED,
460                            gss_OID mech GSSEAP_UNUSED,
461                            OM_uint32 reqFlags GSSEAP_UNUSED,
462                            OM_uint32 timeReq GSSEAP_UNUSED,
463                            gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
464                            gss_buffer_t inputToken,
465                            gss_buffer_t outputToken,
466                            OM_uint32 *smFlags)
467 {
468     OM_uint32 major, tmpMinor;
469     struct rs_connection *rconn;
470     struct rs_request *request = NULL;
471     struct rs_packet *req = NULL, *resp = NULL;
472     struct radius_packet *frreq, *frresp;
473
474     if (ctx->acceptorCtx.radContext == NULL) {
475         /* May be NULL from an imported partial context */
476         major = createRadiusHandle(minor, cred, ctx);
477         if (GSS_ERROR(major))
478             goto cleanup;
479     }
480
481     if (isIdentityResponseP(inputToken)) {
482         major = importInitiatorIdentity(minor, ctx, inputToken);
483         if (GSS_ERROR(major))
484             return major;
485     }
486
487     rconn = ctx->acceptorCtx.radConn;
488
489     if (rs_packet_create_authn_request(rconn, &req, NULL, NULL) != 0) {
490         major = gssEapRadiusMapError(minor, rs_err_conn_pop(rconn));
491         goto cleanup;
492     }
493     frreq = rs_packet_frpkt(req);
494
495     major = setInitiatorIdentity(minor, ctx, &frreq->vps);
496     if (GSS_ERROR(major))
497         goto cleanup;
498
499     major = setAcceptorIdentity(minor, ctx, &frreq->vps);
500     if (GSS_ERROR(major))
501         goto cleanup;
502
503     major = gssEapRadiusAddAvp(minor, &frreq->vps,
504                                PW_EAP_MESSAGE, 0, inputToken);
505     if (GSS_ERROR(major))
506         goto cleanup;
507
508     if (ctx->acceptorCtx.state.length != 0) {
509         major = gssEapRadiusAddAvp(minor, &frreq->vps, PW_STATE, 0,
510                                    &ctx->acceptorCtx.state);
511         if (GSS_ERROR(major))
512             goto cleanup;
513
514         gss_release_buffer(&tmpMinor, &ctx->acceptorCtx.state);
515     }
516
517     if (rs_request_create(rconn, &request) != 0) {
518         major = gssEapRadiusMapError(minor, rs_err_conn_pop(rconn));
519         goto cleanup;
520     }
521
522     rs_request_add_reqpkt(request, req);
523     req = NULL;
524
525     if (rs_request_send(request, &resp) != 0) {
526         major = gssEapRadiusMapError(minor, rs_err_conn_pop(rconn));
527         goto cleanup;
528     }
529
530     GSSEAP_ASSERT(resp != NULL);
531
532     frresp = rs_packet_frpkt(resp);
533     switch (frresp->code) {
534     case PW_ACCESS_CHALLENGE:
535     case PW_AUTHENTICATION_ACK:
536         break;
537     case PW_AUTHENTICATION_REJECT:
538         *minor = GSSEAP_RADIUS_AUTH_FAILURE;
539         major = GSS_S_DEFECTIVE_CREDENTIAL;
540         goto cleanup;
541         break;
542     default:
543         *minor = GSSEAP_UNKNOWN_RADIUS_CODE;
544         major = GSS_S_FAILURE;
545         goto cleanup;
546         break;
547     }
548
549     major = gssEapRadiusGetAvp(minor, frresp->vps, PW_EAP_MESSAGE, 0,
550                                outputToken, TRUE);
551     if (major == GSS_S_UNAVAILABLE && frresp->code == PW_ACCESS_CHALLENGE) {
552         *minor = GSSEAP_MISSING_EAP_REQUEST;
553         major = GSS_S_DEFECTIVE_TOKEN;
554         goto cleanup;
555     } else if (GSS_ERROR(major))
556         goto cleanup;
557
558     if (frresp->code == PW_ACCESS_CHALLENGE) {
559         major = gssEapRadiusGetAvp(minor, frresp->vps, PW_STATE, 0,
560                                    &ctx->acceptorCtx.state, TRUE);
561         if (GSS_ERROR(major) && *minor != GSSEAP_NO_SUCH_ATTR)
562             goto cleanup;
563     } else {
564         ctx->acceptorCtx.vps = frresp->vps;
565         frresp->vps = NULL;
566
567         major = acceptReadyEap(minor, ctx, cred);
568         if (GSS_ERROR(major))
569             goto cleanup;
570
571         GSSEAP_SM_TRANSITION_NEXT(ctx);
572     }
573
574     major = GSS_S_CONTINUE_NEEDED;
575     *minor = 0;
576     *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
577
578 cleanup:
579     if (request != NULL)
580         rs_request_destroy(request);
581     if (req != NULL)
582         rs_packet_destroy(req);
583     if (resp != NULL)
584         rs_packet_destroy(resp);
585     if (GSSEAP_SM_STATE(ctx) == GSSEAP_STATE_INITIATOR_EXTS) {
586         GSSEAP_ASSERT(major == GSS_S_CONTINUE_NEEDED);
587
588         rs_conn_destroy(ctx->acceptorCtx.radConn);
589         ctx->acceptorCtx.radConn = NULL;
590     }
591
592     return major;
593 }
594
595 static OM_uint32
596 eapGssSmAcceptGssFlags(OM_uint32 *minor,
597                        gss_cred_id_t cred GSSEAP_UNUSED,
598                        gss_ctx_id_t ctx,
599                        gss_name_t target GSSEAP_UNUSED,
600                        gss_OID mech GSSEAP_UNUSED,
601                        OM_uint32 reqFlags GSSEAP_UNUSED,
602                        OM_uint32 timeReq GSSEAP_UNUSED,
603                        gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
604                        gss_buffer_t inputToken,
605                        gss_buffer_t outputToken GSSEAP_UNUSED,
606                        OM_uint32 *smFlags GSSEAP_UNUSED)
607 {
608     unsigned char *p;
609     OM_uint32 initiatorGssFlags;
610
611     GSSEAP_ASSERT((ctx->flags & CTX_FLAG_KRB_REAUTH) == 0);
612
613     if (inputToken->length < 4) {
614         *minor = GSSEAP_TOK_TRUNC;
615         return GSS_S_DEFECTIVE_TOKEN;
616     }
617
618     /* allow flags to grow for future expansion */
619     p = (unsigned char *)inputToken->value + inputToken->length - 4;
620
621     initiatorGssFlags = load_uint32_be(p);
622     initiatorGssFlags &= GSSEAP_WIRE_FLAGS_MASK;
623
624     ctx->gssFlags |= initiatorGssFlags;
625
626     return GSS_S_CONTINUE_NEEDED;
627 }
628
629 static OM_uint32
630 eapGssSmAcceptGssChannelBindings(OM_uint32 *minor,
631                                  gss_cred_id_t cred GSSEAP_UNUSED,
632                                  gss_ctx_id_t ctx,
633                                  gss_name_t target GSSEAP_UNUSED,
634                                  gss_OID mech GSSEAP_UNUSED,
635                                  OM_uint32 reqFlags GSSEAP_UNUSED,
636                                  OM_uint32 timeReq GSSEAP_UNUSED,
637                                  gss_channel_bindings_t chanBindings,
638                                  gss_buffer_t inputToken,
639                                  gss_buffer_t outputToken GSSEAP_UNUSED,
640                                  OM_uint32 *smFlags GSSEAP_UNUSED)
641 {
642     OM_uint32 major;
643     gss_iov_buffer_desc iov[2];
644
645     iov[0].type = GSS_IOV_BUFFER_TYPE_DATA | GSS_IOV_BUFFER_FLAG_ALLOCATE;
646     iov[0].buffer.length = 0;
647     iov[0].buffer.value = NULL;
648
649     iov[1].type = GSS_IOV_BUFFER_TYPE_STREAM | GSS_IOV_BUFFER_FLAG_ALLOCATED;
650
651     /* XXX necessary because decrypted in place and we verify it later */
652     major = duplicateBuffer(minor, inputToken, &iov[1].buffer);
653     if (GSS_ERROR(major))
654         return major;
655
656     major = gssEapUnwrapOrVerifyMIC(minor, ctx, NULL, NULL,
657                                     iov, 2, TOK_TYPE_WRAP);
658     if (GSS_ERROR(major)) {
659         gssEapReleaseIov(iov, 2);
660         return major;
661     }
662
663     if (chanBindings != GSS_C_NO_CHANNEL_BINDINGS &&
664         !bufferEqual(&iov[0].buffer, &chanBindings->application_data)) {
665         major = GSS_S_BAD_BINDINGS;
666         *minor = GSSEAP_BINDINGS_MISMATCH;
667     } else {
668         major = GSS_S_CONTINUE_NEEDED;
669         *minor = 0;
670     }
671
672     gssEapReleaseIov(iov, 2);
673
674     return major;
675 }
676
677 static OM_uint32
678 eapGssSmAcceptInitiatorMIC(OM_uint32 *minor,
679                            gss_cred_id_t cred GSSEAP_UNUSED,
680                            gss_ctx_id_t ctx,
681                            gss_name_t target GSSEAP_UNUSED,
682                            gss_OID mech GSSEAP_UNUSED,
683                            OM_uint32 reqFlags GSSEAP_UNUSED,
684                            OM_uint32 timeReq GSSEAP_UNUSED,
685                            gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
686                            gss_buffer_t inputToken,
687                            gss_buffer_t outputToken GSSEAP_UNUSED,
688                            OM_uint32 *smFlags GSSEAP_UNUSED)
689 {
690     OM_uint32 major;
691
692     major = gssEapVerifyTokenMIC(minor, ctx, inputToken);
693     if (GSS_ERROR(major))
694         return major;
695
696     GSSEAP_SM_TRANSITION_NEXT(ctx);
697
698     *minor = 0;
699     return GSS_S_CONTINUE_NEEDED;
700 }
701
702 #ifdef GSSEAP_ENABLE_REAUTH
703 static OM_uint32
704 eapGssSmAcceptReauthCreds(OM_uint32 *minor,
705                           gss_cred_id_t cred,
706                           gss_ctx_id_t ctx,
707                           gss_name_t target GSSEAP_UNUSED,
708                           gss_OID mech GSSEAP_UNUSED,
709                           OM_uint32 reqFlags GSSEAP_UNUSED,
710                           OM_uint32 timeReq GSSEAP_UNUSED,
711                           gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
712                           gss_buffer_t inputToken GSSEAP_UNUSED,
713                           gss_buffer_t outputToken,
714                           OM_uint32 *smFlags GSSEAP_UNUSED)
715 {
716     OM_uint32 major;
717
718     /*
719      * If we're built with fast reauthentication enabled, then
720      * fabricate a ticket from the initiator to ourselves.
721      */
722     major = gssEapMakeReauthCreds(minor, ctx, cred, outputToken);
723     if (major == GSS_S_UNAVAILABLE)
724         major = GSS_S_COMPLETE;
725     if (major == GSS_S_COMPLETE)
726         major = GSS_S_CONTINUE_NEEDED;
727
728     return major;
729 }
730 #endif
731
732 static OM_uint32
733 eapGssSmAcceptAcceptorMIC(OM_uint32 *minor,
734                           gss_cred_id_t cred GSSEAP_UNUSED,
735                           gss_ctx_id_t ctx,
736                           gss_name_t target GSSEAP_UNUSED,
737                           gss_OID mech GSSEAP_UNUSED,
738                           OM_uint32 reqFlags GSSEAP_UNUSED,
739                           OM_uint32 timeReq GSSEAP_UNUSED,
740                           gss_channel_bindings_t chanBindings GSSEAP_UNUSED,
741                           gss_buffer_t inputToken GSSEAP_UNUSED,
742                           gss_buffer_t outputToken,
743                           OM_uint32 *smFlags)
744 {
745     OM_uint32 major;
746
747     major = gssEapMakeTokenMIC(minor, ctx, outputToken);
748     if (GSS_ERROR(major))
749         return major;
750
751     GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_ESTABLISHED);
752
753     *minor = 0;
754     *smFlags |= SM_FLAG_OUTPUT_TOKEN_CRITICAL;
755
756     return GSS_S_COMPLETE;
757 }
758
759 static struct gss_eap_sm eapGssAcceptorSm[] = {
760     {
761         ITOK_TYPE_ACCEPTOR_NAME_REQ,
762         ITOK_TYPE_ACCEPTOR_NAME_RESP,
763         GSSEAP_STATE_INITIAL,
764         0,
765         eapGssSmAcceptAcceptorName
766     },
767 #ifdef GSSEAP_DEBUG
768     {
769         ITOK_TYPE_VENDOR_INFO,
770         ITOK_TYPE_NONE,
771         GSSEAP_STATE_INITIAL,
772         0,
773         eapGssSmAcceptVendorInfo,
774     },
775 #endif
776 #ifdef GSSEAP_ENABLE_REAUTH
777     {
778         ITOK_TYPE_REAUTH_REQ,
779         ITOK_TYPE_REAUTH_RESP,
780         GSSEAP_STATE_INITIAL,
781         0,
782         eapGssSmAcceptGssReauth,
783     },
784 #endif
785     {
786         ITOK_TYPE_NONE,
787         ITOK_TYPE_EAP_REQ,
788         GSSEAP_STATE_INITIAL,
789         SM_ITOK_FLAG_REQUIRED,
790         eapGssSmAcceptIdentity,
791     },
792     {
793         ITOK_TYPE_EAP_RESP,
794         ITOK_TYPE_EAP_REQ,
795         GSSEAP_STATE_AUTHENTICATE,
796         SM_ITOK_FLAG_REQUIRED,
797         eapGssSmAcceptAuthenticate
798     },
799     {
800         ITOK_TYPE_GSS_FLAGS,
801         ITOK_TYPE_NONE,
802         GSSEAP_STATE_INITIATOR_EXTS,
803         0,
804         eapGssSmAcceptGssFlags
805     },
806     {
807         ITOK_TYPE_GSS_CHANNEL_BINDINGS,
808         ITOK_TYPE_NONE,
809         GSSEAP_STATE_INITIATOR_EXTS,
810         SM_ITOK_FLAG_REQUIRED,
811         eapGssSmAcceptGssChannelBindings,
812     },
813     {
814         ITOK_TYPE_INITIATOR_MIC,
815         ITOK_TYPE_NONE,
816         GSSEAP_STATE_INITIATOR_EXTS,
817         SM_ITOK_FLAG_REQUIRED,
818         eapGssSmAcceptInitiatorMIC,
819     },
820 #ifdef GSSEAP_ENABLE_REAUTH
821     {
822         ITOK_TYPE_NONE,
823         ITOK_TYPE_REAUTH_CREDS,
824         GSSEAP_STATE_ACCEPTOR_EXTS,
825         0,
826         eapGssSmAcceptReauthCreds,
827     },
828 #endif
829     {
830         ITOK_TYPE_NONE,
831         ITOK_TYPE_ACCEPTOR_MIC,
832         GSSEAP_STATE_ACCEPTOR_EXTS,
833         0,
834         eapGssSmAcceptAcceptorMIC
835     },
836 };
837
838 OM_uint32
839 gssEapAcceptSecContext(OM_uint32 *minor,
840                        gss_ctx_id_t ctx,
841                        gss_cred_id_t cred,
842                        gss_buffer_t input_token,
843                        gss_channel_bindings_t input_chan_bindings,
844                        gss_name_t *src_name,
845                        gss_OID *mech_type,
846                        gss_buffer_t output_token,
847                        OM_uint32 *ret_flags,
848                        OM_uint32 *time_rec,
849                        gss_cred_id_t *delegated_cred_handle)
850 {
851     OM_uint32 major, tmpMinor;
852
853     if (cred == GSS_C_NO_CREDENTIAL) {
854         if (ctx->cred == GSS_C_NO_CREDENTIAL) {
855             major = gssEapAcquireCred(minor,
856                                       GSS_C_NO_NAME,
857                                       GSS_C_INDEFINITE,
858                                       GSS_C_NO_OID_SET,
859                                       GSS_C_ACCEPT,
860                                       &ctx->cred,
861                                       NULL,
862                                       NULL);
863             if (GSS_ERROR(major))
864                 goto cleanup;
865         }
866
867         cred = ctx->cred;
868     }
869
870     /*
871      * Previously we acquired the credential mutex here, but it should not be
872      * necessary as the acceptor does not access any mutable elements of the
873      * credential handle.
874      */
875
876     /*
877      * Calling gssEapInquireCred() forces the default acceptor credential name
878      * to be resolved.
879      */
880     major = gssEapInquireCred(minor, cred, &ctx->acceptorName, NULL, NULL, NULL);
881     if (GSS_ERROR(major))
882         goto cleanup;
883
884     major = gssEapSmStep(minor,
885                          cred,
886                          ctx,
887                          GSS_C_NO_NAME,
888                          GSS_C_NO_OID,
889                          0,
890                          GSS_C_INDEFINITE,
891                          input_chan_bindings,
892                          input_token,
893                          output_token,
894                          eapGssAcceptorSm,
895                          sizeof(eapGssAcceptorSm) / sizeof(eapGssAcceptorSm[0]));
896     if (GSS_ERROR(major))
897         goto cleanup;
898
899     if (mech_type != NULL) {
900         OM_uint32 tmpMajor;
901
902         tmpMajor = gssEapCanonicalizeOid(&tmpMinor, ctx->mechanismUsed, 0, mech_type);
903         if (GSS_ERROR(tmpMajor)) {
904             major = tmpMajor;
905             *minor = tmpMinor;
906             goto cleanup;
907         }
908     }
909     if (ret_flags != NULL)
910         *ret_flags = ctx->gssFlags;
911     if (delegated_cred_handle != NULL)
912         *delegated_cred_handle = GSS_C_NO_CREDENTIAL;
913
914     if (major == GSS_S_COMPLETE) {
915         if (src_name != NULL && ctx->initiatorName != GSS_C_NO_NAME) {
916             major = gssEapDuplicateName(&tmpMinor, ctx->initiatorName, src_name);
917             if (GSS_ERROR(major))
918                 goto cleanup;
919         }
920         if (time_rec != NULL) {
921             major = gssEapContextTime(&tmpMinor, ctx, time_rec);
922             if (GSS_ERROR(major))
923                 goto cleanup;
924         }
925     }
926
927     GSSEAP_ASSERT(CTX_IS_ESTABLISHED(ctx) || major == GSS_S_CONTINUE_NEEDED);
928
929 cleanup:
930     return major;
931 }
932
933 #ifdef GSSEAP_ENABLE_REAUTH
934 static OM_uint32
935 acceptReadyKrb(OM_uint32 *minor,
936                gss_ctx_id_t ctx,
937                gss_cred_id_t cred,
938                const gss_name_t initiator,
939                const gss_OID mech,
940                OM_uint32 timeRec)
941 {
942     OM_uint32 major;
943
944     major = gssEapGlueToMechName(minor, ctx, initiator, &ctx->initiatorName);
945     if (GSS_ERROR(major))
946         return major;
947
948     major = gssEapReauthComplete(minor, ctx, cred, mech, timeRec);
949     if (GSS_ERROR(major))
950         return major;
951
952     *minor = 0;
953     return GSS_S_COMPLETE;
954 }
955
956 static OM_uint32
957 eapGssSmAcceptGssReauth(OM_uint32 *minor,
958                         gss_cred_id_t cred,
959                         gss_ctx_id_t ctx,
960                         gss_name_t target GSSEAP_UNUSED,
961                         gss_OID mech,
962                         OM_uint32 reqFlags GSSEAP_UNUSED,
963                         OM_uint32 timeReq GSSEAP_UNUSED,
964                         gss_channel_bindings_t chanBindings,
965                         gss_buffer_t inputToken,
966                         gss_buffer_t outputToken,
967                         OM_uint32 *smFlags)
968 {
969     OM_uint32 major, tmpMinor;
970     gss_name_t krbInitiator = GSS_C_NO_NAME;
971     OM_uint32 gssFlags, timeRec = GSS_C_INDEFINITE;
972
973     /*
974      * If we're built with fast reauthentication support, it's valid
975      * for an initiator to send a GSS reauthentication token as its
976      * initial context token, causing us to short-circuit the state
977      * machine and process Kerberos GSS messages instead.
978      */
979
980     ctx->flags |= CTX_FLAG_KRB_REAUTH;
981
982     major = gssAcceptSecContext(minor,
983                                 &ctx->reauthCtx,
984                                 cred->reauthCred,
985                                 inputToken,
986                                 chanBindings,
987                                 &krbInitiator,
988                                 &mech,
989                                 outputToken,
990                                 &gssFlags,
991                                 &timeRec,
992                                 NULL);
993     if (major == GSS_S_COMPLETE) {
994         major = acceptReadyKrb(minor, ctx, cred,
995                                krbInitiator, mech, timeRec);
996         if (major == GSS_S_COMPLETE) {
997             GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_ESTABLISHED);
998         }
999         ctx->gssFlags = gssFlags;
1000     } else if (GSS_ERROR(major) &&
1001         (*smFlags & SM_FLAG_INPUT_TOKEN_CRITICAL) == 0) {
1002         /* pretend reauthentication attempt never happened */
1003         gssDeleteSecContext(&tmpMinor, &ctx->reauthCtx, GSS_C_NO_BUFFER);
1004         ctx->flags &= ~(CTX_FLAG_KRB_REAUTH);
1005         GSSEAP_SM_TRANSITION(ctx, GSSEAP_STATE_INITIAL);
1006         major = GSS_S_CONTINUE_NEEDED;
1007     }
1008
1009     gssReleaseName(&tmpMinor, &krbInitiator);
1010
1011     return major;
1012 }
1013 #endif /* GSSEAP_ENABLE_REAUTH */
1014
1015 OM_uint32 GSSAPI_CALLCONV
1016 gss_accept_sec_context(OM_uint32 *minor,
1017                        gss_ctx_id_t *context_handle,
1018                        gss_cred_id_t cred,
1019                        gss_buffer_t input_token,
1020                        gss_channel_bindings_t input_chan_bindings,
1021                        gss_name_t *src_name,
1022                        gss_OID *mech_type,
1023                        gss_buffer_t output_token,
1024                        OM_uint32 *ret_flags,
1025                        OM_uint32 *time_rec,
1026                        gss_cred_id_t *delegated_cred_handle)
1027 {
1028     OM_uint32 major, tmpMinor;
1029     gss_ctx_id_t ctx = *context_handle;
1030
1031     *minor = 0;
1032
1033     output_token->length = 0;
1034     output_token->value = NULL;
1035
1036     if (src_name != NULL)
1037         *src_name = GSS_C_NO_NAME;
1038
1039     if (input_token == GSS_C_NO_BUFFER || input_token->length == 0) {
1040         *minor = GSSEAP_TOK_TRUNC;
1041         return GSS_S_DEFECTIVE_TOKEN;
1042     }
1043
1044     if (ctx == GSS_C_NO_CONTEXT) {
1045         major = gssEapAllocContext(minor, &ctx);
1046         if (GSS_ERROR(major))
1047             return major;
1048
1049         *context_handle = ctx;
1050     }
1051
1052     GSSEAP_MUTEX_LOCK(&ctx->mutex);
1053
1054     major = gssEapAcceptSecContext(minor,
1055                                    ctx,
1056                                    cred,
1057                                    input_token,
1058                                    input_chan_bindings,
1059                                    src_name,
1060                                    mech_type,
1061                                    output_token,
1062                                    ret_flags,
1063                                    time_rec,
1064                                    delegated_cred_handle);
1065
1066     GSSEAP_MUTEX_UNLOCK(&ctx->mutex);
1067
1068     if (GSS_ERROR(major))
1069         gssEapReleaseContext(&tmpMinor, context_handle);
1070
1071     return major;
1072 }