Coverage Report

Created: 2026-04-29 06:57

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl/ssl/quic/quic_port.c
Line
Count
Source
1
/*
2
 * Copyright 2023-2026 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
#include "internal/quic_port.h"
11
#include "internal/quic_channel.h"
12
#include "internal/quic_lcidm.h"
13
#include "internal/quic_srtm.h"
14
#include "internal/quic_txp.h"
15
#include "internal/ssl_unwrap.h"
16
#include "quic_port_local.h"
17
#include "quic_channel_local.h"
18
#include "quic_engine_local.h"
19
#include "quic_local.h"
20
#include "../ssl_local.h"
21
#include <openssl/rand.h>
22
23
/*
24
 * QUIC Port Structure
25
 * ===================
26
 */
27
0
#define INIT_DCID_LEN 8
28
29
static int port_init(QUIC_PORT *port);
30
static void port_cleanup(QUIC_PORT *port);
31
static OSSL_TIME get_time(void *arg);
32
static void port_default_packet_handler(QUIC_URXE *e, void *arg,
33
    const QUIC_CONN_ID *dcid);
34
static void port_rx_pre(QUIC_PORT *port);
35
36
/**
37
 * @struct validation_token
38
 * @brief Represents a validation token for secure connection handling.
39
 *
40
 * This struct is used to store information related to a validation token.
41
 *
42
 * @var validation_token::is_retry
43
 * True iff this validation token is for a token sent in a RETRY packet.
44
 * Otherwise, this token is from a NEW_TOKEN_packet. Iff this value is true,
45
 * then ODCID and RSCID are set.
46
 *
47
 * @var validation_token::timestamp
48
 * Time that the validation token was minted.
49
 *
50
 * @var validation_token::odcid
51
 * An original connection ID (`QUIC_CONN_ID`) used to identify the QUIC
52
 * connection. This ID helps associate the token with a specific connection.
53
 * This will only be valid for validation tokens from RETRY packets.
54
 *
55
 * @var validation_token::rscid
56
 * DCID that the client will use as the DCID of the subsequent initial packet
57
 * i.e the "new" DCID.
58
 * This will only be valid for validation tokens from RETRY packets.
59
 *
60
 * @var validation_token::remote_addr_len
61
 * Length of the following character array.
62
 *
63
 * @var validation_token::remote_addr
64
 * A character array holding the raw address of the client requesting the
65
 * connection.
66
 */
67
typedef struct validation_token {
68
    OSSL_TIME timestamp;
69
    QUIC_CONN_ID odcid;
70
    QUIC_CONN_ID rscid;
71
    size_t remote_addr_len;
72
    unsigned char *remote_addr;
73
    unsigned char is_retry;
74
} QUIC_VALIDATION_TOKEN;
75
76
/*
77
 * Maximum length of a marshalled validation token.
78
 *
79
 * - timestamp is 8 bytes
80
 * - odcid and rscid are maximally 42 bytes in total
81
 * - remote_addr_len is a size_t (8 bytes)
82
 * - remote_addr is in the worst case 110 bytes (in the case of using a
83
 *   maximally sized AF_UNIX socket)
84
 * - is_retry is a single byte
85
 */
86
0
#define MARSHALLED_TOKEN_MAX_LEN 169
87
88
/*
89
 * Maximum length of an encrypted marshalled validation token.
90
 *
91
 * This will include the size of the marshalled validation token plus a 16 byte
92
 * tag and a 12 byte IV, so in total 197 bytes.
93
 */
94
0
#define ENCRYPTED_TOKEN_MAX_LEN (MARSHALLED_TOKEN_MAX_LEN + 16 + 12)
95
96
/* Arbitrary choice of default idle timeout (not an RFC value). */
97
0
#define DEFAULT_IDLE_TIMEOUT 30000
98
99
0
#define DEFAULT_INIT_CONN_RXFC_WND (768 * 1024)
100
0
#define DEFAULT_INIT_STREAM_RXFC_WND (512 * 1024)
101
102
0
#define DEFAULT_INIT_CONN_MAX_STREAMS 100
103
104
0
DEFINE_LIST_OF_IMPL(ch, QUIC_CHANNEL);
Unexecuted instantiation: quic_port.c:ossl_list_ch_head
Unexecuted instantiation: quic_port.c:ossl_list_ch_next
105
0
DEFINE_LIST_OF_IMPL(incoming_ch, QUIC_CHANNEL);
Unexecuted instantiation: quic_port.c:ossl_list_incoming_ch_insert_tail
Unexecuted instantiation: quic_port.c:ossl_list_incoming_ch_head
Unexecuted instantiation: quic_port.c:ossl_list_incoming_ch_remove
106
0
DEFINE_LIST_OF_IMPL(port, QUIC_PORT);
Unexecuted instantiation: quic_port.c:ossl_list_port_insert_tail
Unexecuted instantiation: quic_port.c:ossl_list_port_remove
107
108
QUIC_PORT *ossl_quic_port_new(const QUIC_PORT_ARGS *args)
109
0
{
110
0
    QUIC_PORT *port;
111
112
0
    if ((port = OPENSSL_zalloc(sizeof(QUIC_PORT))) == NULL)
113
0
        return NULL;
114
115
0
    port->engine = args->engine;
116
0
    port->channel_ctx = args->channel_ctx;
117
0
    port->is_multi_conn = args->is_multi_conn;
118
0
    port->validate_addr = args->do_addr_validation;
119
0
    port->get_conn_user_ssl = args->get_conn_user_ssl;
120
0
    port->user_ssl_arg = args->user_ssl_arg;
121
122
0
    if (!port_init(port)) {
123
0
        OPENSSL_free(port);
124
0
        return NULL;
125
0
    }
126
127
0
    return port;
128
0
}
129
130
void ossl_quic_port_free(QUIC_PORT *port)
131
0
{
132
0
    if (port == NULL)
133
0
        return;
134
135
0
    port_cleanup(port);
136
0
    OPENSSL_free(port);
137
0
}
138
139
static int port_init(QUIC_PORT *port)
140
0
{
141
0
    size_t rx_short_dcid_len = (port->is_multi_conn ? INIT_DCID_LEN : 0);
142
0
    int key_len = -1;
143
0
    EVP_CIPHER *cipher = NULL;
144
0
    unsigned char *token_key = NULL;
145
0
    int ret = 0;
146
147
0
    if (port->engine == NULL || port->channel_ctx == NULL)
148
0
        goto err;
149
150
0
    if ((port->err_state = OSSL_ERR_STATE_new()) == NULL)
151
0
        goto err;
152
153
0
    if ((port->demux = ossl_quic_demux_new(/*BIO=*/NULL,
154
0
             /*Short CID Len=*/rx_short_dcid_len,
155
0
             get_time, port))
156
0
        == NULL)
157
0
        goto err;
158
159
0
    ossl_quic_demux_set_default_handler(port->demux,
160
0
        port_default_packet_handler,
161
0
        port);
162
163
0
    if ((port->srtm = ossl_quic_srtm_new(port->engine->libctx,
164
0
             port->engine->propq))
165
0
        == NULL)
166
0
        goto err;
167
168
0
    if ((port->lcidm = ossl_quic_lcidm_new(port->engine->libctx,
169
0
             rx_short_dcid_len))
170
0
        == NULL)
171
0
        goto err;
172
173
0
    port->rx_short_dcid_len = (unsigned char)rx_short_dcid_len;
174
0
    port->tx_init_dcid_len = INIT_DCID_LEN;
175
176
0
    port->max_idle_timeout = DEFAULT_IDLE_TIMEOUT;
177
178
    /*
179
     * We tell the peer we can handle at most this many bytes in a datagram payload.
180
     * However, currently the QUIC_DEMUX in the QRX uses the BIO's MTU as upper bound
181
     * on an incoming datagram size.
182
     */
183
0
    port->max_udp_payload_size = QUIC_MIN_INITIAL_DGRAM_LEN;
184
0
    port->init_max_data = DEFAULT_INIT_CONN_RXFC_WND;
185
0
    port->init_max_stream_data_bidi_local = DEFAULT_INIT_STREAM_RXFC_WND;
186
0
    port->init_max_stream_data_bidi_remote = DEFAULT_INIT_STREAM_RXFC_WND;
187
0
    port->init_max_stream_data_uni = DEFAULT_INIT_STREAM_RXFC_WND;
188
0
    port->init_max_streams_bidi = DEFAULT_INIT_CONN_MAX_STREAMS;
189
0
    port->init_max_streams_uni = DEFAULT_INIT_CONN_MAX_STREAMS;
190
0
    port->ack_delay_exponent = QUIC_DEFAULT_ACK_DELAY_EXP;
191
192
    /*
193
     * Our maximum ACK delay on the TX side. This is up to us to choose. Note that
194
     * this could differ from QUIC_DEFAULT_MAX_DELAY in future as that is a protocol
195
     * value which determines the value of the maximum ACK delay if the
196
     * max_ack_delay transport parameter is not set.
197
     */
198
0
    port->max_ack_delay = QUIC_DEFAULT_MAX_ACK_DELAY;
199
0
    port->disable_active_migration = 1;
200
0
    port->active_conn_id_limit = QUIC_MIN_ACTIVE_CONN_ID_LIMIT;
201
202
0
    port->state = QUIC_PORT_STATE_RUNNING;
203
204
0
    ossl_list_port_insert_tail(&port->engine->port_list, port);
205
0
    port->on_engine_list = 1;
206
0
    port->bio_changed = 1;
207
208
    /* Generate random key for token encryption */
209
0
    if ((port->token_ctx = EVP_CIPHER_CTX_new()) == NULL
210
0
        || (cipher = EVP_CIPHER_fetch(port->engine->libctx,
211
0
                "AES-256-GCM", NULL))
212
0
            == NULL
213
0
        || !EVP_EncryptInit_ex(port->token_ctx, cipher, NULL, NULL, NULL)
214
0
        || (key_len = EVP_CIPHER_CTX_get_key_length(port->token_ctx)) <= 0
215
0
        || (token_key = OPENSSL_malloc(key_len)) == NULL
216
0
        || !RAND_priv_bytes_ex(port->engine->libctx, token_key, key_len, 0)
217
0
        || !EVP_EncryptInit_ex(port->token_ctx, NULL, NULL, token_key, NULL))
218
0
        goto err;
219
220
0
    ret = 1;
221
0
err:
222
0
    EVP_CIPHER_free(cipher);
223
0
    if (key_len >= 1)
224
0
        OPENSSL_clear_free(token_key, key_len);
225
0
    else
226
0
        OPENSSL_free(token_key);
227
0
    if (!ret)
228
0
        port_cleanup(port);
229
0
    return ret;
230
0
}
231
232
static void port_cleanup(QUIC_PORT *port)
233
0
{
234
0
    assert(ossl_list_ch_num(&port->channel_list) == 0);
235
236
0
    ossl_quic_demux_free(port->demux);
237
0
    port->demux = NULL;
238
239
0
    ossl_quic_srtm_free(port->srtm);
240
0
    port->srtm = NULL;
241
242
0
    ossl_quic_lcidm_free(port->lcidm);
243
0
    port->lcidm = NULL;
244
245
0
    OSSL_ERR_STATE_free(port->err_state);
246
0
    port->err_state = NULL;
247
248
0
    if (port->on_engine_list) {
249
0
        ossl_list_port_remove(&port->engine->port_list, port);
250
0
        port->on_engine_list = 0;
251
0
    }
252
253
0
    EVP_CIPHER_CTX_free(port->token_ctx);
254
0
    port->token_ctx = NULL;
255
0
}
256
257
static void port_transition_failed(QUIC_PORT *port)
258
0
{
259
0
    if (port->state == QUIC_PORT_STATE_FAILED)
260
0
        return;
261
262
0
    port->state = QUIC_PORT_STATE_FAILED;
263
0
}
264
265
int ossl_quic_port_is_running(const QUIC_PORT *port)
266
0
{
267
0
    return port->state == QUIC_PORT_STATE_RUNNING;
268
0
}
269
270
QUIC_ENGINE *ossl_quic_port_get0_engine(QUIC_PORT *port)
271
0
{
272
0
    return port->engine;
273
0
}
274
275
QUIC_REACTOR *ossl_quic_port_get0_reactor(QUIC_PORT *port)
276
0
{
277
0
    return ossl_quic_engine_get0_reactor(port->engine);
278
0
}
279
280
QUIC_DEMUX *ossl_quic_port_get0_demux(QUIC_PORT *port)
281
0
{
282
0
    return port->demux;
283
0
}
284
285
CRYPTO_MUTEX *ossl_quic_port_get0_mutex(QUIC_PORT *port)
286
0
{
287
0
    return ossl_quic_engine_get0_mutex(port->engine);
288
0
}
289
290
OSSL_TIME ossl_quic_port_get_time(QUIC_PORT *port)
291
0
{
292
0
    return ossl_quic_engine_get_time(port->engine);
293
0
}
294
295
static OSSL_TIME get_time(void *port)
296
0
{
297
0
    return ossl_quic_port_get_time((QUIC_PORT *)port);
298
0
}
299
300
int ossl_quic_port_get_rx_short_dcid_len(const QUIC_PORT *port)
301
0
{
302
0
    return port->rx_short_dcid_len;
303
0
}
304
305
int ossl_quic_port_get_tx_init_dcid_len(const QUIC_PORT *port)
306
0
{
307
0
    return port->tx_init_dcid_len;
308
0
}
309
310
size_t ossl_quic_port_get_num_incoming_channels(const QUIC_PORT *port)
311
0
{
312
0
    return ossl_list_incoming_ch_num(&port->incoming_channel_list);
313
0
}
314
315
/*
316
 * QUIC Port: Network BIO Configuration
317
 * ====================================
318
 */
319
320
/* Determines whether we can support a given poll descriptor. */
321
static int validate_poll_descriptor(const BIO_POLL_DESCRIPTOR *d)
322
0
{
323
0
    if (d->type == BIO_POLL_DESCRIPTOR_TYPE_SOCK_FD && d->value.fd < 0) {
324
0
        ERR_raise(ERR_LIB_SSL, ERR_R_PASSED_INVALID_ARGUMENT);
325
0
        return 0;
326
0
    }
327
328
0
    return 1;
329
0
}
330
331
BIO *ossl_quic_port_get_net_rbio(QUIC_PORT *port)
332
0
{
333
0
    return port->net_rbio;
334
0
}
335
336
BIO *ossl_quic_port_get_net_wbio(QUIC_PORT *port)
337
0
{
338
0
    return port->net_wbio;
339
0
}
340
341
static int port_update_poll_desc(QUIC_PORT *port, BIO *net_bio, int for_write)
342
0
{
343
0
    BIO_POLL_DESCRIPTOR d = { 0 };
344
345
0
    if (net_bio == NULL
346
0
        || (!for_write && !BIO_get_rpoll_descriptor(net_bio, &d))
347
0
        || (for_write && !BIO_get_wpoll_descriptor(net_bio, &d)))
348
        /* Non-pollable BIO */
349
0
        d.type = BIO_POLL_DESCRIPTOR_TYPE_NONE;
350
351
0
    if (!validate_poll_descriptor(&d))
352
0
        return 0;
353
354
    /*
355
     * TODO(QUIC MULTIPORT): We currently only support one port per
356
     * engine/domain. This is necessitated because QUIC_REACTOR only supports a
357
     * single pollable currently. In the future, once complete polling
358
     * infrastructure has been implemented, this limitation can be removed.
359
     *
360
     * For now, just update the descriptor on the engine's reactor as we are
361
     * guaranteed to be the only port under it.
362
     */
363
0
    if (for_write)
364
0
        ossl_quic_reactor_set_poll_w(&port->engine->rtor, &d);
365
0
    else
366
0
        ossl_quic_reactor_set_poll_r(&port->engine->rtor, &d);
367
368
0
    return 1;
369
0
}
370
371
int ossl_quic_port_update_poll_descriptors(QUIC_PORT *port, int force)
372
0
{
373
0
    int ok = 1;
374
375
0
    if (!force && !port->bio_changed)
376
0
        return 0;
377
378
0
    if (!port_update_poll_desc(port, port->net_rbio, /*for_write=*/0))
379
0
        ok = 0;
380
381
0
    if (!port_update_poll_desc(port, port->net_wbio, /*for_write=*/1))
382
0
        ok = 0;
383
384
0
    port->bio_changed = 0;
385
0
    return ok;
386
0
}
387
388
/*
389
 * We need to determine our addressing mode. There are basically two ways we can
390
 * use L4 addresses:
391
 *
392
 *   - Addressed mode, in which our BIO_sendmmsg calls have destination
393
 *     addresses attached to them which we expect the underlying network BIO to
394
 *     handle;
395
 *
396
 *   - Unaddressed mode, in which the BIO provided to us on the network side
397
 *     neither provides us with L4 addresses nor is capable of honouring ones we
398
 *     provide. We don't know where the QUIC traffic we send ends up exactly and
399
 *     trust the application to know what it is doing.
400
 *
401
 * Addressed mode is preferred because it enables support for connection
402
 * migration, multipath, etc. in the future. Addressed mode is automatically
403
 * enabled if we are using e.g. BIO_s_datagram, with or without BIO_s_connect.
404
 *
405
 * If we are passed a BIO_s_dgram_pair (or some custom BIO) we may have to use
406
 * unaddressed mode unless that BIO supports capability flags indicating it can
407
 * provide and honour L4 addresses.
408
 *
409
 * Our strategy for determining address mode is simple: we probe the underlying
410
 * network BIOs for their capabilities. If the network BIOs support what we
411
 * need, we use addressed mode. Otherwise, we use unaddressed mode.
412
 *
413
 * If addressed mode is chosen, we require an initial peer address to be set. If
414
 * this is not set, we fail. If unaddressed mode is used, we do not require
415
 * this, as such an address is superfluous, though it can be set if desired.
416
 */
417
static void port_update_addressing_mode(QUIC_PORT *port)
418
0
{
419
0
    long rcaps = 0, wcaps = 0;
420
421
0
    if (port->net_rbio != NULL)
422
0
        rcaps = BIO_dgram_get_effective_caps(port->net_rbio);
423
424
0
    if (port->net_wbio != NULL)
425
0
        wcaps = BIO_dgram_get_effective_caps(port->net_wbio);
426
427
0
    port->addressed_mode_r = ((rcaps & BIO_DGRAM_CAP_PROVIDES_SRC_ADDR) != 0);
428
0
    port->addressed_mode_w = ((wcaps & BIO_DGRAM_CAP_HANDLES_DST_ADDR) != 0);
429
0
    port->bio_changed = 1;
430
0
}
431
432
int ossl_quic_port_is_addressed_r(const QUIC_PORT *port)
433
0
{
434
0
    return port->addressed_mode_r;
435
0
}
436
437
int ossl_quic_port_is_addressed_w(const QUIC_PORT *port)
438
0
{
439
0
    return port->addressed_mode_w;
440
0
}
441
442
int ossl_quic_port_is_addressed(const QUIC_PORT *port)
443
0
{
444
0
    return ossl_quic_port_is_addressed_r(port) && ossl_quic_port_is_addressed_w(port);
445
0
}
446
447
/*
448
 * QUIC_PORT does not ref any BIO it is provided with, nor is any ref
449
 * transferred to it. The caller (e.g., QUIC_CONNECTION) is responsible for
450
 * ensuring the BIO lasts until the channel is freed or the BIO is switched out
451
 * for another BIO by a subsequent successful call to this function.
452
 */
453
int ossl_quic_port_set_net_rbio(QUIC_PORT *port, BIO *net_rbio)
454
0
{
455
0
    if (port->net_rbio == net_rbio)
456
0
        return 1;
457
458
0
    if (!port_update_poll_desc(port, net_rbio, /*for_write=*/0))
459
0
        return 0;
460
461
0
    ossl_quic_demux_set_bio(port->demux, net_rbio);
462
0
    port->net_rbio = net_rbio;
463
0
    port_update_addressing_mode(port);
464
0
    return 1;
465
0
}
466
467
int ossl_quic_port_set_net_wbio(QUIC_PORT *port, BIO *net_wbio)
468
0
{
469
0
    QUIC_CHANNEL *ch;
470
471
0
    if (port->net_wbio == net_wbio)
472
0
        return 1;
473
474
0
    if (!port_update_poll_desc(port, net_wbio, /*for_write=*/1))
475
0
        return 0;
476
477
0
    OSSL_LIST_FOREACH(ch, ch, &port->channel_list)
478
0
    ossl_qtx_set_bio(ch->qtx, net_wbio);
479
480
0
    port->net_wbio = net_wbio;
481
0
    port_update_addressing_mode(port);
482
0
    return 1;
483
0
}
484
485
SSL_CTX *ossl_quic_port_get_channel_ctx(QUIC_PORT *port)
486
0
{
487
0
    return port->channel_ctx;
488
0
}
489
490
/*
491
 * QUIC Port: Channel Lifecycle
492
 * ============================
493
 */
494
495
static SSL *port_new_handshake_layer(QUIC_PORT *port, QUIC_CHANNEL *ch)
496
0
{
497
0
    SSL *tls = NULL;
498
0
    SSL_CONNECTION *tls_conn = NULL;
499
0
    SSL *user_ssl = NULL;
500
0
    QUIC_CONNECTION *qc = NULL;
501
0
    QUIC_LISTENER *ql = NULL;
502
503
    /*
504
     * It only makes sense to call this function if we know how to associate
505
     * the handshake layer we are about to create with some user_ssl object.
506
     */
507
0
    if (!ossl_assert(port->get_conn_user_ssl != NULL))
508
0
        return NULL;
509
0
    user_ssl = port->get_conn_user_ssl(ch, port->user_ssl_arg);
510
0
    if (user_ssl == NULL)
511
0
        return NULL;
512
0
    qc = (QUIC_CONNECTION *)user_ssl;
513
0
    ql = (QUIC_LISTENER *)port->user_ssl_arg;
514
515
    /*
516
     * We expect the user_ssl to be newly created so it must not have an
517
     * existing qc->tls
518
     */
519
0
    if (!ossl_assert(qc->tls == NULL)) {
520
0
        SSL_free(user_ssl);
521
0
        return NULL;
522
0
    }
523
524
0
    tls = ossl_ssl_connection_new_int(port->channel_ctx, user_ssl, TLS_method());
525
0
    qc->tls = tls;
526
0
    if (tls == NULL || (tls_conn = SSL_CONNECTION_FROM_SSL(tls)) == NULL) {
527
0
        SSL_free(user_ssl);
528
0
        return NULL;
529
0
    }
530
531
0
    if (ql != NULL && ql->obj.ssl.ctx->new_pending_conn_cb != NULL)
532
0
        if (!ql->obj.ssl.ctx->new_pending_conn_cb(ql->obj.ssl.ctx, user_ssl,
533
0
                ql->obj.ssl.ctx->new_pending_conn_arg)) {
534
0
            SSL_free(user_ssl);
535
0
            return NULL;
536
0
        }
537
538
    /* Override the user_ssl of the inner connection. */
539
0
    tls_conn->s3.flags |= TLS1_FLAGS_QUIC | TLS1_FLAGS_QUIC_INTERNAL;
540
541
    /* Restrict options derived from the SSL_CTX. */
542
0
    tls_conn->options &= OSSL_QUIC_PERMITTED_OPTIONS_CONN;
543
0
    tls_conn->pha_enabled = 0;
544
0
    return tls;
545
0
}
546
547
static QUIC_CHANNEL *port_make_channel(QUIC_PORT *port, SSL *tls, OSSL_QRX *qrx,
548
    int is_server, int is_tserver)
549
0
{
550
0
    QUIC_CHANNEL_ARGS args = { 0 };
551
0
    QUIC_CHANNEL *ch;
552
553
0
    args.port = port;
554
0
    args.is_server = is_server;
555
0
    args.lcidm = port->lcidm;
556
0
    args.srtm = port->srtm;
557
0
    args.qrx = qrx;
558
0
    args.is_tserver_ch = is_tserver;
559
560
0
    args.max_idle_timeout = port->max_idle_timeout;
561
0
    args.max_udp_payload_size = port->max_udp_payload_size;
562
0
    args.init_max_data = port->init_max_data;
563
0
    args.init_max_stream_data_bidi_local = port->init_max_stream_data_bidi_local;
564
0
    args.init_max_stream_data_bidi_remote = port->init_max_stream_data_bidi_remote;
565
0
    args.init_max_stream_data_uni = port->init_max_stream_data_uni;
566
0
    args.init_max_streams_bidi = port->init_max_streams_bidi;
567
0
    args.init_max_streams_uni = port->init_max_streams_uni;
568
0
    args.ack_delay_exponent = port->ack_delay_exponent;
569
0
    args.max_ack_delay = port->max_ack_delay;
570
0
    args.disable_active_migration = port->disable_active_migration;
571
0
    args.active_conn_id_limit = port->active_conn_id_limit;
572
573
    /*
574
     * Creating a new channel is made a bit tricky here as there is a
575
     * bit of a circular dependency.  Initializing a channel requires that
576
     * the ch->tls and optionally the qlog_title be configured prior to
577
     * initialization, but we need the channel at least partially configured
578
     * to create the new handshake layer, so we have to do this in a few steps.
579
     */
580
581
    /*
582
     * start by allocation and provisioning as much of the channel as we can
583
     */
584
0
    ch = ossl_quic_channel_alloc(&args);
585
0
    if (ch == NULL)
586
0
        return NULL;
587
588
0
    if (tls != NULL) {
589
0
        ch->tls = tls;
590
0
    } else {
591
0
        if (ossl_quic_port_test_and_set_peeloff(port, PEELOFF_ACCEPT)) {
592
            /*
593
             * We're using the normal SSL_accept_connection_path
594
             */
595
0
            ch->tls = port_new_handshake_layer(port, ch);
596
0
            if (ch->tls == NULL) {
597
0
                ossl_quic_channel_free(ch);
598
0
                return NULL;
599
0
            }
600
0
        } else {
601
            /*
602
             * We're deferring user ssl creation until SSL_listen_ex is called
603
             */
604
0
            ch->tls = NULL;
605
0
        }
606
0
    }
607
0
#ifndef OPENSSL_NO_QLOG
608
    /*
609
     * If we're using qlog, make sure the tls get further configured properly
610
     */
611
0
    ch->use_qlog = 1;
612
0
    if (ch->tls != NULL && ch->tls->ctx->qlog_title != NULL) {
613
0
        OPENSSL_free(ch->qlog_title);
614
0
        if ((ch->qlog_title = OPENSSL_strdup(ch->tls->ctx->qlog_title)) == NULL) {
615
0
            ossl_quic_channel_free(ch);
616
0
            return NULL;
617
0
        }
618
0
    }
619
0
#endif
620
621
    /*
622
     * And finally init the channel struct
623
     */
624
0
    if (!ossl_quic_channel_init(ch)) {
625
0
        OPENSSL_free(ch);
626
0
        return NULL;
627
0
    }
628
629
0
    ossl_qtx_set_bio(ch->qtx, port->net_wbio);
630
0
    return ch;
631
0
}
632
633
QUIC_CHANNEL *ossl_quic_port_create_outgoing(QUIC_PORT *port, SSL *tls)
634
0
{
635
0
    return port_make_channel(port, tls, NULL, /* is_server= */ 0,
636
0
        /* is_tserver= */ 0);
637
0
}
638
639
QUIC_CHANNEL *ossl_quic_port_create_incoming(QUIC_PORT *port, SSL *tls)
640
0
{
641
0
    QUIC_CHANNEL *ch;
642
643
0
    assert(port->tserver_ch == NULL);
644
645
    /*
646
     * pass -1 for qrx to indicate port will create qrx
647
     * later in port_default_packet_handler() when calling port_bind_channel().
648
     */
649
0
    ch = port_make_channel(port, tls, NULL, /* is_server= */ 1,
650
0
        /* is_tserver_ch */ 1);
651
0
    port->tserver_ch = ch;
652
0
    port->allow_incoming = 1;
653
0
    return ch;
654
0
}
655
656
QUIC_CHANNEL *ossl_quic_port_pop_incoming(QUIC_PORT *port)
657
0
{
658
0
    QUIC_CHANNEL *ch;
659
660
0
    ch = ossl_list_incoming_ch_head(&port->incoming_channel_list);
661
0
    if (ch == NULL)
662
0
        return NULL;
663
664
0
    ossl_list_incoming_ch_remove(&port->incoming_channel_list, ch);
665
0
    return ch;
666
0
}
667
668
int ossl_quic_port_have_incoming(QUIC_PORT *port)
669
0
{
670
0
    return ossl_list_incoming_ch_head(&port->incoming_channel_list) != NULL;
671
0
}
672
673
void ossl_quic_port_drop_incoming(QUIC_PORT *port)
674
0
{
675
0
    QUIC_CHANNEL *ch;
676
0
    SSL *tls;
677
0
    SSL *user_ssl;
678
0
    SSL_CONNECTION *sc;
679
680
0
    for (;;) {
681
0
        ch = ossl_quic_port_pop_incoming(port);
682
0
        if (ch == NULL)
683
0
            break;
684
685
0
        tls = ossl_quic_channel_get0_tls(ch);
686
        /*
687
         * The user ssl may or may not have been created via the
688
         * get_conn_user_ssl callback in the QUIC stack.  The
689
         * differentiation being if the user_ssl pointer and tls pointer
690
         * are different.  If they are, then the user_ssl needs freeing here
691
         * which sends us through ossl_quic_free, which then drops the actual
692
         * ch->tls ref and frees the channel
693
         */
694
0
        sc = SSL_CONNECTION_FROM_SSL(tls);
695
0
        if (sc == NULL)
696
0
            break;
697
698
0
        user_ssl = SSL_CONNECTION_GET_USER_SSL(sc);
699
0
        if (user_ssl == tls) {
700
0
            ossl_quic_channel_free(ch);
701
0
            SSL_free(tls);
702
0
        } else {
703
0
            SSL_free(user_ssl);
704
0
        }
705
0
    }
706
0
}
707
708
void ossl_quic_port_set_allow_incoming(QUIC_PORT *port, int allow_incoming)
709
0
{
710
0
    port->allow_incoming = allow_incoming;
711
0
}
712
713
int ossl_quic_port_test_and_set_peeloff(QUIC_PORT *port, int using_peeloff)
714
0
{
715
716
    /*
717
     * Peeloff state must be one of PEELOFF_LISTEN or PEELOFF_ACCEPT
718
     */
719
0
    if (using_peeloff != PEELOFF_LISTEN && using_peeloff != PEELOFF_ACCEPT)
720
0
        return 0;
721
722
    /*
723
     * We can only set the peeloff state if its not already been set
724
     * or if we're setting it to the already set value
725
     * i.e. this is a trapdoor, once we set using_peeloff to LISTEN or ACCEPT
726
     * Then the only thing we can set that port too in the future is the same value.
727
     */
728
0
    if (port->peeloff_mode != using_peeloff && port->peeloff_mode != PEELOFF_UNSET)
729
0
        return 0;
730
0
    port->peeloff_mode = using_peeloff;
731
0
    return 1;
732
0
}
733
734
/*
735
 * QUIC Port: Ticker-Mutator
736
 * =========================
737
 */
738
739
/*
740
 * Tick function for this port. This does everything related to network I/O for
741
 * this port's network BIOs, and services child channels.
742
 */
743
void ossl_quic_port_subtick(QUIC_PORT *port, QUIC_TICK_RESULT *res,
744
    uint32_t flags)
745
0
{
746
0
    QUIC_CHANNEL *ch;
747
748
0
    res->net_read_desired = ossl_quic_port_is_running(port);
749
0
    res->net_write_desired = 0;
750
0
    res->notify_other_threads = 0;
751
0
    res->tick_deadline = ossl_time_infinite();
752
753
0
    if (!port->engine->inhibit_tick) {
754
        /* Handle any incoming data from network. */
755
0
        if (ossl_quic_port_is_running(port))
756
0
            port_rx_pre(port);
757
758
        /* Iterate through all channels and service them. */
759
0
        OSSL_LIST_FOREACH(ch, ch, &port->channel_list)
760
0
        {
761
0
            QUIC_TICK_RESULT subr = { 0 };
762
763
0
            ossl_quic_channel_subtick(ch, &subr, flags);
764
0
            ossl_quic_tick_result_merge_into(res, &subr);
765
0
        }
766
0
    }
767
0
}
768
769
/* Process incoming datagrams, if any. */
770
static void port_rx_pre(QUIC_PORT *port)
771
0
{
772
0
    int ret;
773
774
    /*
775
     * Originally, this check (don't RX before we have sent anything if we are
776
     * not a server, because there can't be anything) was just intended as a
777
     * minor optimisation. However, it is actually required on Windows, and
778
     * removing this check will cause Windows to break.
779
     *
780
     * The reason is that under Win32, recvfrom() does not work on a UDP socket
781
     * which has not had bind() called (???). However, calling sendto() will
782
     * automatically bind an unbound UDP socket. Therefore, if we call a Winsock
783
     * recv-type function before calling a Winsock send-type function, that call
784
     * will fail with WSAEINVAL, which we will regard as a permanent network
785
     * error.
786
     *
787
     * Therefore, this check is essential as we do not require our API users to
788
     * bind a socket first when using the API in client mode.
789
     */
790
0
    if (!port->allow_incoming && !port->have_sent_any_pkt)
791
0
        return;
792
793
    /*
794
     * Get DEMUX to BIO_recvmmsg from the network and queue incoming datagrams
795
     * to the appropriate QRX instances.
796
     */
797
0
    ret = ossl_quic_demux_pump(port->demux);
798
0
    if (ret == QUIC_DEMUX_PUMP_RES_PERMANENT_FAIL)
799
        /*
800
         * We don't care about transient failure, but permanent failure means we
801
         * should tear down the port. All connections skip straight to the
802
         * Terminated state as there is no point trying to send CONNECTION_CLOSE
803
         * frames if the network BIO is not operating correctly.
804
         */
805
0
        ossl_quic_port_raise_net_error(port, NULL);
806
0
}
807
808
/*
809
 * Handles an incoming connection request and potentially decides to make a
810
 * connection from it. If a new connection is made, the new channel is written
811
 * to *new_ch.
812
 */
813
static void port_bind_channel(QUIC_PORT *port, const BIO_ADDR *peer,
814
    const QUIC_CONN_ID *dcid,
815
    const QUIC_CONN_ID *odcid, OSSL_QRX *qrx,
816
    QUIC_CHANNEL **new_ch)
817
0
{
818
0
    QUIC_CHANNEL *ch;
819
820
    /*
821
     * If we're running with a simulated tserver, it will already have
822
     * a dummy channel created, use that instead
823
     */
824
0
    if (port->tserver_ch != NULL) {
825
0
        ch = port->tserver_ch;
826
0
        port->tserver_ch = NULL;
827
0
        if (peer != NULL && BIO_ADDR_family(peer) != AF_UNSPEC)
828
0
            ossl_quic_channel_set_peer_addr(ch, peer);
829
830
0
        ossl_quic_channel_bind_qrx(ch, qrx);
831
0
        ossl_qrx_set_msg_callback(ch->qrx, ch->msg_callback,
832
0
            ch->msg_callback_ssl);
833
0
        ossl_qrx_set_msg_callback_arg(ch->qrx, ch->msg_callback_arg);
834
0
    } else {
835
0
        ch = port_make_channel(port, NULL, qrx, /* is_server= */ 1,
836
0
            /* is_tserver */ 0);
837
0
    }
838
839
0
    if (ch == NULL)
840
0
        return;
841
842
    /*
843
     * If we didn't provide a qrx here that means we need to set our initial
844
     * secret here, since we just created a qrx
845
     * Normally its not needed, as the initial secret gets added when we send
846
     * our first server hello, but if we get a huge client hello, crossing
847
     * multiple datagrams, we don't have a chance to do that, and datagrams
848
     * after the first won't get decoded properly, for lack of secrets
849
     */
850
0
    if (qrx == NULL)
851
0
        if (!ossl_quic_provide_initial_secret(ch->port->engine->libctx,
852
0
                ch->port->engine->propq,
853
0
                dcid, /* is_server */ 1,
854
0
                ch->qrx, NULL)) {
855
0
            ossl_quic_channel_free(ch);
856
0
            return;
857
0
        }
858
859
0
    if (odcid->id_len != 0) {
860
        /*
861
         * If we have an odcid, then we went through server address validation
862
         * and as such, this channel need not conform to the 3x validation cap
863
         * See RFC 9000 s. 8.1
864
         */
865
0
        ossl_quic_tx_packetiser_set_validated(ch->txp);
866
0
        if (!ossl_quic_bind_channel(ch, peer, dcid, odcid)) {
867
0
            ossl_quic_channel_free(ch);
868
0
            return;
869
0
        }
870
0
    } else {
871
        /*
872
         * No odcid means we didn't do server validation, so we need to
873
         * generate a cid via ossl_quic_channel_on_new_conn
874
         */
875
0
        if (!ossl_quic_channel_on_new_conn(ch, peer, dcid)) {
876
0
            ossl_quic_channel_free(ch);
877
0
            return;
878
0
        }
879
0
    }
880
881
0
    ossl_list_incoming_ch_insert_tail(&port->incoming_channel_list, ch);
882
0
    *new_ch = ch;
883
0
}
884
885
static int port_try_handle_stateless_reset(QUIC_PORT *port, const QUIC_URXE *e)
886
0
{
887
0
    size_t i;
888
0
    const unsigned char *data = ossl_quic_urxe_data(e);
889
0
    void *opaque = NULL;
890
891
    /*
892
     * Perform some fast and cheap checks for a packet not being a stateless
893
     * reset token.  RFC 9000 s. 10.3 specifies this layout for stateless
894
     * reset packets:
895
     *
896
     *  Stateless Reset {
897
     *      Fixed Bits (2) = 1,
898
     *      Unpredictable Bits (38..),
899
     *      Stateless Reset Token (128),
900
     *  }
901
     *
902
     * It also specifies:
903
     *      However, endpoints MUST treat any packet ending in a valid
904
     *      stateless reset token as a Stateless Reset, as other QUIC
905
     *      versions might allow the use of a long header.
906
     *
907
     * We can rapidly check for the minimum length and that the first pair
908
     * of bits in the first byte are 01 or 11.
909
     *
910
     * The function returns 1 if it is a stateless reset packet, 0 if it isn't
911
     * and -1 if an error was encountered.
912
     */
913
0
    if (e->data_len < QUIC_STATELESS_RESET_TOKEN_LEN + 5
914
0
        || (0100 & *data) != 0100)
915
0
        return 0;
916
917
0
    for (i = 0;; ++i) {
918
0
        if (!ossl_quic_srtm_lookup(port->srtm,
919
0
                (const QUIC_STATELESS_RESET_TOKEN *)(data + e->data_len
920
0
                    - sizeof(QUIC_STATELESS_RESET_TOKEN)),
921
0
                i, &opaque, NULL))
922
0
            break;
923
924
0
        assert(opaque != NULL);
925
0
        ossl_quic_channel_on_stateless_reset((QUIC_CHANNEL *)opaque);
926
0
    }
927
928
0
    return i > 0;
929
0
}
930
931
static void cleanup_validation_token(QUIC_VALIDATION_TOKEN *token)
932
0
{
933
0
    OPENSSL_free(token->remote_addr);
934
0
}
935
936
/**
937
 * @brief Generates a validation token for a RETRY/NEW_TOKEN packet.
938
 *
939
 *
940
 * @param peer  Address of the client peer receiving the packet.
941
 * @param odcid DCID of the connection attempt.
942
 * @param rscid Retry source connection ID of the connection attempt.
943
 * @param token Address of token to fill data.
944
 *
945
 * @return 1 if validation token is filled successfully, 0 otherwise.
946
 */
947
static int generate_token(BIO_ADDR *peer, QUIC_CONN_ID odcid,
948
    QUIC_CONN_ID rscid, QUIC_VALIDATION_TOKEN *token,
949
    int is_retry)
950
0
{
951
0
    token->is_retry = is_retry;
952
0
    token->timestamp = ossl_time_now();
953
0
    token->remote_addr = NULL;
954
0
    token->odcid = odcid;
955
0
    token->rscid = rscid;
956
957
0
    if (!BIO_ADDR_rawaddress(peer, NULL, &token->remote_addr_len)
958
0
        || token->remote_addr_len == 0
959
0
        || (token->remote_addr = OPENSSL_malloc(token->remote_addr_len)) == NULL
960
0
        || !BIO_ADDR_rawaddress(peer, token->remote_addr,
961
0
            &token->remote_addr_len)) {
962
0
        cleanup_validation_token(token);
963
0
        return 0;
964
0
    }
965
966
0
    return 1;
967
0
}
968
969
/**
970
 * @brief Marshals a validation token into a new buffer.
971
 *
972
 * |buffer| should already be allocated and at least MARSHALLED_TOKEN_MAX_LEN
973
 * bytes long. Stores the length of data stored in |buffer| in |buffer_len|.
974
 *
975
 * @param token      Validation token.
976
 * @param buffer     Address to store the marshalled token.
977
 * @param buffer_len Size of data stored in |buffer|.
978
 */
979
static int marshal_validation_token(QUIC_VALIDATION_TOKEN *token,
980
    unsigned char *buffer, size_t *buffer_len)
981
0
{
982
0
    WPACKET wpkt = { 0 };
983
0
    BUF_MEM *buf_mem = BUF_MEM_new();
984
985
0
    if (buffer == NULL || buf_mem == NULL
986
0
        || (token->is_retry != 0 && token->is_retry != 1)) {
987
0
        BUF_MEM_free(buf_mem);
988
0
        return 0;
989
0
    }
990
991
0
    if (!WPACKET_init(&wpkt, buf_mem)
992
0
        || !WPACKET_put_bytes_u8(&wpkt, token->is_retry)
993
0
        || !WPACKET_memcpy(&wpkt, &token->timestamp,
994
0
            sizeof(token->timestamp))
995
0
        || (token->is_retry
996
0
            && (!WPACKET_sub_memcpy_u8(&wpkt, &token->odcid.id,
997
0
                    token->odcid.id_len)
998
0
                || !WPACKET_sub_memcpy_u8(&wpkt, &token->rscid.id,
999
0
                    token->rscid.id_len)))
1000
0
        || !WPACKET_sub_memcpy_u8(&wpkt, token->remote_addr, token->remote_addr_len)
1001
0
        || !WPACKET_get_total_written(&wpkt, buffer_len)
1002
0
        || *buffer_len > MARSHALLED_TOKEN_MAX_LEN
1003
0
        || !WPACKET_finish(&wpkt)) {
1004
0
        WPACKET_cleanup(&wpkt);
1005
0
        BUF_MEM_free(buf_mem);
1006
0
        return 0;
1007
0
    }
1008
1009
0
    memcpy(buffer, buf_mem->data, *buffer_len);
1010
0
    BUF_MEM_free(buf_mem);
1011
0
    return 1;
1012
0
}
1013
1014
/**
1015
 * @brief Encrypts a validation token using AES-256-GCM
1016
 *
1017
 * @param port       The QUIC port containing the encryption key
1018
 * @param plaintext  The data to encrypt
1019
 * @param pt_len     Length of the plaintext
1020
 * @param ciphertext Buffer to receive encrypted data. If NULL, ct_len will be
1021
 *                   set to the required buffer size and function returns
1022
 *                   immediately.
1023
 * @param ct_len     Pointer to size_t that will receive the ciphertext length.
1024
 *                   This also includes bytes for QUIC_RETRY_INTEGRITY_TAG_LEN.
1025
 *
1026
 * @return 1 on success, 0 on failure
1027
 *
1028
 * The ciphertext format is:
1029
 * [EVP_GCM_IV_LEN bytes IV][encrypted data][EVP_GCM_TAG_LEN bytes tag]
1030
 */
1031
static int encrypt_validation_token(const QUIC_PORT *port,
1032
    const unsigned char *plaintext,
1033
    size_t pt_len,
1034
    unsigned char *ciphertext,
1035
    size_t *ct_len)
1036
0
{
1037
0
    int iv_len, len, ret = 0;
1038
0
    int tag_len;
1039
0
    unsigned char *iv = ciphertext, *data, *tag;
1040
1041
0
    if ((tag_len = EVP_CIPHER_CTX_get_tag_length(port->token_ctx)) <= 0
1042
0
        || (iv_len = EVP_CIPHER_CTX_get_iv_length(port->token_ctx)) <= 0)
1043
0
        goto err;
1044
1045
0
    *ct_len = iv_len + pt_len + tag_len + QUIC_RETRY_INTEGRITY_TAG_LEN;
1046
0
    if (ciphertext == NULL) {
1047
0
        ret = 1;
1048
0
        goto err;
1049
0
    }
1050
1051
0
    data = ciphertext + iv_len;
1052
0
    tag = data + pt_len;
1053
1054
0
    if (!RAND_bytes_ex(port->engine->libctx, ciphertext, iv_len, 0)
1055
0
        || !EVP_EncryptInit_ex(port->token_ctx, NULL, NULL, NULL, iv)
1056
0
        || !EVP_EncryptUpdate(port->token_ctx, data, &len, plaintext, (int)pt_len)
1057
0
        || !EVP_EncryptFinal_ex(port->token_ctx, data + pt_len, &len)
1058
0
        || !EVP_CIPHER_CTX_ctrl(port->token_ctx, EVP_CTRL_GCM_GET_TAG, tag_len, tag))
1059
0
        goto err;
1060
1061
0
    ret = 1;
1062
0
err:
1063
0
    return ret;
1064
0
}
1065
1066
/**
1067
 * @brief Decrypts a validation token using AES-256-GCM
1068
 *
1069
 * @param port       The QUIC port containing the decryption key
1070
 * @param ciphertext The encrypted data (including IV and tag)
1071
 * @param ct_len     Length of the ciphertext
1072
 * @param plaintext  Buffer to receive decrypted data. If NULL, pt_len will be
1073
 *                   set to the required buffer size.
1074
 * @param pt_len     Pointer to size_t that will receive the plaintext length
1075
 *
1076
 * @return 1 on success, 0 on failure
1077
 *
1078
 * Expected ciphertext format:
1079
 * [EVP_GCM_IV_LEN bytes IV][encrypted data][EVP_GCM_TAG_LEN bytes tag]
1080
 */
1081
static int decrypt_validation_token(const QUIC_PORT *port,
1082
    const unsigned char *ciphertext,
1083
    size_t ct_len,
1084
    unsigned char *plaintext,
1085
    size_t *pt_len)
1086
0
{
1087
0
    int iv_len, len = 0, ret = 0;
1088
0
    int tag_len;
1089
0
    const unsigned char *iv = ciphertext, *data, *tag;
1090
1091
0
    if ((tag_len = EVP_CIPHER_CTX_get_tag_length(port->token_ctx)) <= 0
1092
0
        || (iv_len = EVP_CIPHER_CTX_get_iv_length(port->token_ctx)) <= 0)
1093
0
        goto err;
1094
1095
    /* Prevent decryption of a buffer that is not within reasonable bounds */
1096
0
    if (ct_len < (size_t)(iv_len + tag_len) || ct_len > ENCRYPTED_TOKEN_MAX_LEN)
1097
0
        goto err;
1098
1099
0
    *pt_len = ct_len - iv_len - tag_len;
1100
0
    if (plaintext == NULL) {
1101
0
        ret = 1;
1102
0
        goto err;
1103
0
    }
1104
1105
0
    data = ciphertext + iv_len;
1106
0
    tag = ciphertext + ct_len - tag_len;
1107
1108
0
    if (!EVP_DecryptInit_ex(port->token_ctx, NULL, NULL, NULL, iv)
1109
0
        || !EVP_DecryptUpdate(port->token_ctx, plaintext, &len, data,
1110
0
            (int)(ct_len - iv_len - tag_len))
1111
0
        || !EVP_CIPHER_CTX_ctrl(port->token_ctx, EVP_CTRL_GCM_SET_TAG, tag_len,
1112
0
            (void *)tag)
1113
0
        || !EVP_DecryptFinal_ex(port->token_ctx, plaintext + len, &len))
1114
0
        goto err;
1115
1116
0
    ret = 1;
1117
1118
0
err:
1119
0
    return ret;
1120
0
}
1121
1122
/**
1123
 * @brief Parses contents of a buffer into a validation token.
1124
 *
1125
 * VALIDATION_TOKEN should already be initialized. Does some basic sanity checks.
1126
 *
1127
 * @param token   Validation token to fill data in.
1128
 * @param buf     Buffer of previously marshaled validation token.
1129
 * @param buf_len Length of |buf|.
1130
 */
1131
static int parse_validation_token(QUIC_VALIDATION_TOKEN *token,
1132
    const unsigned char *buf, size_t buf_len)
1133
0
{
1134
0
    PACKET pkt, subpkt;
1135
1136
0
    if (buf == NULL || token == NULL)
1137
0
        return 0;
1138
1139
0
    token->remote_addr = NULL;
1140
1141
0
    if (!PACKET_buf_init(&pkt, buf, buf_len)
1142
0
        || !PACKET_copy_bytes(&pkt, &token->is_retry, sizeof(token->is_retry))
1143
0
        || !(token->is_retry == 0 || token->is_retry == 1)
1144
0
        || !PACKET_copy_bytes(&pkt, (unsigned char *)&token->timestamp,
1145
0
            sizeof(token->timestamp))
1146
0
        || (token->is_retry
1147
0
            && (!PACKET_get_length_prefixed_1(&pkt, &subpkt)
1148
0
                || (token->odcid.id_len = (unsigned char)PACKET_remaining(&subpkt))
1149
0
                    > QUIC_MAX_CONN_ID_LEN
1150
0
                || !PACKET_copy_bytes(&subpkt,
1151
0
                    (unsigned char *)&token->odcid.id,
1152
0
                    token->odcid.id_len)
1153
0
                || !PACKET_get_length_prefixed_1(&pkt, &subpkt)
1154
0
                || (token->rscid.id_len = (unsigned char)PACKET_remaining(&subpkt))
1155
0
                    > QUIC_MAX_CONN_ID_LEN
1156
0
                || !PACKET_copy_bytes(&subpkt, (unsigned char *)&token->rscid.id,
1157
0
                    token->rscid.id_len)))
1158
0
        || !PACKET_get_length_prefixed_1(&pkt, &subpkt)
1159
0
        || (token->remote_addr_len = PACKET_remaining(&subpkt)) == 0
1160
0
        || (token->remote_addr = OPENSSL_malloc(token->remote_addr_len)) == NULL
1161
0
        || !PACKET_copy_bytes(&subpkt, token->remote_addr, token->remote_addr_len)
1162
0
        || PACKET_remaining(&pkt) != 0) {
1163
0
        cleanup_validation_token(token);
1164
0
        return 0;
1165
0
    }
1166
1167
0
    return 1;
1168
0
}
1169
1170
/**
1171
 * @brief Sends a QUIC Retry packet to a client.
1172
 *
1173
 * This function constructs and sends a Retry packet to the specified client
1174
 * using the provided connection header information. The Retry packet
1175
 * includes a generated validation token and a new connection ID, following
1176
 * the QUIC protocol specifications for connection establishment.
1177
 *
1178
 * @param port        Pointer to the QUIC port from which to send the packet.
1179
 * @param peer        Address of the client peer receiving the packet.
1180
 * @param client_hdr  Header of the client's initial packet, containing
1181
 *                    connection IDs and other relevant information.
1182
 *
1183
 * This function performs the following steps:
1184
 * - Generates a validation token for the client.
1185
 * - Sets the destination and source connection IDs.
1186
 * - Calculates the integrity tag and sets the token length.
1187
 * - Encodes and sends the packet via the BIO network interface.
1188
 *
1189
 * Error handling is included for failures in CID generation, encoding, and
1190
 * network transmiss
1191
 */
1192
static void port_send_retry(QUIC_PORT *port,
1193
    BIO_ADDR *peer,
1194
    QUIC_PKT_HDR *client_hdr)
1195
0
{
1196
0
    BIO_MSG msg[1];
1197
    /*
1198
     * Buffer is used for both marshalling the token as well as for the RETRY
1199
     * packet. The size of buffer should not be less than
1200
     * MARSHALLED_TOKEN_MAX_LEN.
1201
     */
1202
0
    unsigned char buffer[512];
1203
0
    unsigned char ct_buf[ENCRYPTED_TOKEN_MAX_LEN];
1204
0
    WPACKET wpkt;
1205
0
    size_t written, token_buf_len, ct_len;
1206
0
    QUIC_PKT_HDR hdr = { 0 };
1207
0
    QUIC_VALIDATION_TOKEN token = { 0 };
1208
0
    int ok;
1209
1210
0
    if (!ossl_assert(sizeof(buffer) >= MARSHALLED_TOKEN_MAX_LEN))
1211
0
        return;
1212
    /*
1213
     * 17.2.5.1 Sending a Retry packet
1214
     *   dst ConnId is src ConnId we got from client
1215
     *   src ConnId comes from local conn ID manager
1216
     */
1217
0
    memset(&hdr, 0, sizeof(QUIC_PKT_HDR));
1218
0
    hdr.dst_conn_id = client_hdr->src_conn_id;
1219
    /*
1220
     * this is the random connection ID, we expect client is
1221
     * going to send the ID with next INITIAL packet which
1222
     * will also come with token we generate here.
1223
     */
1224
0
    ok = ossl_quic_lcidm_get_unused_cid(port->lcidm, &hdr.src_conn_id);
1225
0
    if (ok == 0)
1226
0
        goto err;
1227
1228
0
    memset(&token, 0, sizeof(QUIC_VALIDATION_TOKEN));
1229
1230
    /* Generate retry validation token */
1231
0
    if (!generate_token(peer, client_hdr->dst_conn_id,
1232
0
            hdr.src_conn_id, &token, 1)
1233
0
        || !marshal_validation_token(&token, buffer, &token_buf_len)
1234
0
        || !encrypt_validation_token(port, buffer, token_buf_len, NULL,
1235
0
            &ct_len)
1236
0
        || ct_len > ENCRYPTED_TOKEN_MAX_LEN
1237
0
        || !encrypt_validation_token(port, buffer, token_buf_len, ct_buf,
1238
0
            &ct_len)
1239
0
        || !ossl_assert(ct_len >= QUIC_RETRY_INTEGRITY_TAG_LEN))
1240
0
        goto err;
1241
1242
0
    hdr.dst_conn_id = client_hdr->src_conn_id;
1243
0
    hdr.type = QUIC_PKT_TYPE_RETRY;
1244
0
    hdr.fixed = 1;
1245
0
    hdr.version = 1;
1246
0
    hdr.len = ct_len;
1247
0
    hdr.data = ct_buf;
1248
0
    ok = ossl_quic_calculate_retry_integrity_tag(port->engine->libctx,
1249
0
        port->engine->propq, &hdr,
1250
0
        &client_hdr->dst_conn_id,
1251
0
        ct_buf + ct_len
1252
0
            - QUIC_RETRY_INTEGRITY_TAG_LEN);
1253
0
    if (ok == 0)
1254
0
        goto err;
1255
1256
0
    hdr.token = hdr.data;
1257
0
    hdr.token_len = hdr.len;
1258
1259
0
    msg[0].data = buffer;
1260
0
    msg[0].peer = peer;
1261
0
    msg[0].local = NULL;
1262
0
    msg[0].flags = 0;
1263
1264
0
    ok = WPACKET_init_static_len(&wpkt, buffer, sizeof(buffer), 0);
1265
0
    if (ok == 0)
1266
0
        goto err;
1267
1268
0
    ok = ossl_quic_wire_encode_pkt_hdr(&wpkt, client_hdr->dst_conn_id.id_len,
1269
0
        &hdr, NULL);
1270
0
    if (ok == 0)
1271
0
        goto err;
1272
1273
0
    ok = WPACKET_get_total_written(&wpkt, &msg[0].data_len);
1274
0
    if (ok == 0)
1275
0
        goto err;
1276
1277
0
    ok = WPACKET_finish(&wpkt);
1278
0
    if (ok == 0)
1279
0
        goto err;
1280
1281
    /*
1282
     * TODO(QUIC FUTURE) need to retry this in the event it return EAGAIN
1283
     * on a non-blocking BIO
1284
     */
1285
0
    if (!BIO_sendmmsg(port->net_wbio, msg, sizeof(BIO_MSG), 1, 0, &written))
1286
0
        ERR_raise_data(ERR_LIB_SSL, SSL_R_QUIC_NETWORK_ERROR,
1287
0
            "port retry send failed due to network BIO I/O error");
1288
1289
0
err:
1290
0
    cleanup_validation_token(&token);
1291
0
}
1292
1293
/**
1294
 * @brief Sends a QUIC Version Negotiation packet to the specified peer.
1295
 *
1296
 * This function constructs and sends a Version Negotiation packet using
1297
 * the connection IDs from the client's initial packet header. The
1298
 * Version Negotiation packet indicates support for QUIC version 1.
1299
 *
1300
 * @param port      Pointer to the QUIC_PORT structure representing the port
1301
 *                  context used for network communication.
1302
 * @param peer      Pointer to the BIO_ADDR structure specifying the address
1303
 *                  of the peer to which the Version Negotiation packet
1304
 *                  will be sent.
1305
 * @param client_hdr Pointer to the QUIC_PKT_HDR structure containing the
1306
 *                  client's packet header used to extract connection IDs.
1307
 *
1308
 * @note The function will raise an error if sending the message fails.
1309
 */
1310
static void port_send_version_negotiation(QUIC_PORT *port, BIO_ADDR *peer,
1311
    QUIC_PKT_HDR *client_hdr)
1312
0
{
1313
0
    BIO_MSG msg[1];
1314
0
    unsigned char buffer[1024];
1315
0
    QUIC_PKT_HDR hdr;
1316
0
    WPACKET wpkt;
1317
0
    uint32_t supported_versions[1];
1318
0
    size_t written;
1319
0
    size_t i;
1320
1321
0
    memset(&hdr, 0, sizeof(QUIC_PKT_HDR));
1322
    /*
1323
     * Reverse the source and dst conn ids
1324
     */
1325
0
    hdr.dst_conn_id = client_hdr->src_conn_id;
1326
0
    hdr.src_conn_id = client_hdr->dst_conn_id;
1327
1328
    /*
1329
     * This is our list of supported protocol versions
1330
     * Currently only QUIC_VERSION_1
1331
     */
1332
0
    supported_versions[0] = QUIC_VERSION_1;
1333
1334
    /*
1335
     * Fill out the header fields
1336
     * Note: Version negotiation packets, must, unlike
1337
     * other packet types have a version of 0
1338
     */
1339
0
    hdr.type = QUIC_PKT_TYPE_VERSION_NEG;
1340
0
    hdr.version = 0;
1341
0
    hdr.token = 0;
1342
0
    hdr.token_len = 0;
1343
0
    hdr.len = sizeof(supported_versions);
1344
0
    hdr.data = (unsigned char *)supported_versions;
1345
1346
0
    msg[0].data = buffer;
1347
0
    msg[0].peer = peer;
1348
0
    msg[0].local = NULL;
1349
0
    msg[0].flags = 0;
1350
1351
0
    if (!WPACKET_init_static_len(&wpkt, buffer, sizeof(buffer), 0))
1352
0
        return;
1353
1354
0
    if (!ossl_quic_wire_encode_pkt_hdr(&wpkt, client_hdr->dst_conn_id.id_len,
1355
0
            &hdr, NULL))
1356
0
        return;
1357
1358
    /*
1359
     * Add the array of supported versions to the end of the packet
1360
     */
1361
0
    for (i = 0; i < OSSL_NELEM(supported_versions); i++) {
1362
0
        if (!WPACKET_put_bytes_u32(&wpkt, supported_versions[i]))
1363
0
            return;
1364
0
    }
1365
1366
0
    if (!WPACKET_get_total_written(&wpkt, &msg[0].data_len))
1367
0
        return;
1368
1369
0
    if (!WPACKET_finish(&wpkt))
1370
0
        return;
1371
1372
    /*
1373
     * Send it back to the client attempting to connect
1374
     * TODO(QUIC FUTURE): Need to handle the EAGAIN case here, if the
1375
     * BIO_sendmmsg call falls in a retryable manner
1376
     */
1377
0
    if (!BIO_sendmmsg(port->net_wbio, msg, sizeof(BIO_MSG), 1, 0, &written))
1378
0
        ERR_raise_data(ERR_LIB_SSL, SSL_R_QUIC_NETWORK_ERROR,
1379
0
            "port version negotiation send failed");
1380
0
}
1381
1382
/**
1383
 * @brief definitions of token lifetimes
1384
 *
1385
 * RETRY tokens are only valid for 10 seconds
1386
 * NEW_TOKEN tokens have a lifetime of 3600 sec (1 hour)
1387
 */
1388
1389
0
#define RETRY_LIFETIME 10
1390
0
#define NEW_TOKEN_LIFETIME 3600
1391
/**
1392
 * @brief Validates a received token in a QUIC packet header.
1393
 *
1394
 * This function checks the validity of a token contained in the provided
1395
 * QUIC packet header (`QUIC_PKT_HDR *hdr`). The validation process involves
1396
 * verifying that the token matches an expected format and value. If the
1397
 * token is from a RETRY packet, the function extracts the original connection
1398
 * ID (ODCID)/original source connection ID (SCID) and stores it in the provided
1399
 * parameters. If the token is from a NEW_TOKEN packet, the values will be
1400
 * derived instead.
1401
 *
1402
 * @param hdr   Pointer to the QUIC packet header containing the token.
1403
 * @param port  Pointer to the QUIC port from which to send the packet.
1404
 * @param peer  Address of the client peer receiving the packet.
1405
 * @param odcid Pointer to the connection ID structure to store the ODCID if the
1406
 *              token is valid.
1407
 * @param scid  Pointer to the connection ID structure to store the SCID if the
1408
 *              token is valid.
1409
 *
1410
 * @return      1 if the token is valid and ODCID/SCID are successfully set.
1411
 *              0 otherwise.
1412
 *
1413
 * The function performs the following checks:
1414
 * - Token length meets the required minimum.
1415
 * - Buffer matches expected format.
1416
 * - Peer address matches previous connection address.
1417
 * - Token has not expired. Currently set to 10 seconds for tokens from RETRY
1418
 *   packets and 60 minutes for tokens from NEW_TOKEN packets. This may be
1419
 *   configurable in the future.
1420
 */
1421
static int port_validate_token(QUIC_PKT_HDR *hdr, QUIC_PORT *port,
1422
    BIO_ADDR *peer, QUIC_CONN_ID *odcid, uint8_t *gen_new_token)
1423
0
{
1424
0
    int ret = 0;
1425
0
    QUIC_VALIDATION_TOKEN token = { 0 };
1426
0
    uint64_t time_diff;
1427
0
    size_t remote_addr_len, dec_token_len;
1428
0
    unsigned char *remote_addr = NULL, dec_token[MARSHALLED_TOKEN_MAX_LEN];
1429
0
    OSSL_TIME now = ossl_time_now();
1430
1431
0
    *gen_new_token = 0;
1432
1433
0
    if (!decrypt_validation_token(port, hdr->token, hdr->token_len, NULL,
1434
0
            &dec_token_len)
1435
0
        || dec_token_len > MARSHALLED_TOKEN_MAX_LEN
1436
0
        || !decrypt_validation_token(port, hdr->token, hdr->token_len,
1437
0
            dec_token, &dec_token_len)
1438
0
        || !parse_validation_token(&token, dec_token, dec_token_len))
1439
0
        goto err;
1440
1441
    /*
1442
     * Validate token timestamp. Current time should not be before the token
1443
     * timestamp.
1444
     */
1445
0
    if (ossl_time_compare(now, token.timestamp) < 0)
1446
0
        goto err;
1447
0
    time_diff = ossl_time2seconds(ossl_time_abs_difference(token.timestamp,
1448
0
        now));
1449
0
    if ((token.is_retry && time_diff > RETRY_LIFETIME)
1450
0
        || (!token.is_retry && time_diff > NEW_TOKEN_LIFETIME))
1451
0
        goto err;
1452
1453
    /* Validate remote address */
1454
0
    if (!BIO_ADDR_rawaddress(peer, NULL, &remote_addr_len)
1455
0
        || remote_addr_len != token.remote_addr_len
1456
0
        || (remote_addr = OPENSSL_malloc(remote_addr_len)) == NULL
1457
0
        || !BIO_ADDR_rawaddress(peer, remote_addr, &remote_addr_len)
1458
0
        || memcmp(remote_addr, token.remote_addr, remote_addr_len) != 0)
1459
0
        goto err;
1460
1461
    /*
1462
     * Set ODCID and SCID. If the token is from a RETRY packet, retrieve both
1463
     * from the token. Otherwise, generate a new ODCID and use the header's
1464
     * source connection ID for SCID.
1465
     */
1466
0
    if (token.is_retry) {
1467
        /*
1468
         * We're parsing a packet header before its gone through AEAD validation
1469
         * here, so there is a chance we are dealing with corrupted data. Make
1470
         * Sure the dcid encoded in the token matches the headers dcid to
1471
         * mitigate that.
1472
         * TODO(QUIC FUTURE): Consider handling AEAD validation at the port
1473
         * level rather than the QRX/channel level to eliminate the need for
1474
         * this.
1475
         */
1476
0
        if (token.rscid.id_len != hdr->dst_conn_id.id_len
1477
0
            || memcmp(&token.rscid.id, &hdr->dst_conn_id.id,
1478
0
                   token.rscid.id_len)
1479
0
                != 0)
1480
0
            goto err;
1481
0
        *odcid = token.odcid;
1482
0
    } else {
1483
0
        if (!ossl_quic_lcidm_get_unused_cid(port->lcidm, odcid))
1484
0
            goto err;
1485
0
    }
1486
1487
    /*
1488
     * Determine if we need to send a NEW_TOKEN frame
1489
     * If we validated a retry token, we should always
1490
     * send a NEW_TOKEN frame to the client
1491
     *
1492
     * If however, we validated a NEW_TOKEN, which may be
1493
     * reused multiple times, only send a NEW_TOKEN frame
1494
     * if the existing received token has less than 10% of its lifetime
1495
     * remaining.  This prevents us from constantly sending
1496
     * NEW_TOKEN frames on every connection when not needed
1497
     */
1498
0
    if (token.is_retry) {
1499
0
        *gen_new_token = 1;
1500
0
    } else {
1501
0
        if (time_diff > ((NEW_TOKEN_LIFETIME * 9) / 10))
1502
0
            *gen_new_token = 1;
1503
0
    }
1504
1505
0
    ret = 1;
1506
0
err:
1507
0
    cleanup_validation_token(&token);
1508
0
    OPENSSL_free(remote_addr);
1509
0
    return ret;
1510
0
}
1511
1512
static void generate_new_token(QUIC_CHANNEL *ch, BIO_ADDR *peer)
1513
0
{
1514
0
    QUIC_CONN_ID rscid = { 0 };
1515
0
    QUIC_VALIDATION_TOKEN token;
1516
0
    unsigned char buffer[ENCRYPTED_TOKEN_MAX_LEN];
1517
0
    unsigned char *ct_buf;
1518
0
    size_t ct_len;
1519
0
    size_t token_buf_len = 0;
1520
1521
    /* Clients never send a NEW_TOKEN */
1522
0
    if (!ch->is_server)
1523
0
        return;
1524
1525
0
    ct_buf = OPENSSL_zalloc(ENCRYPTED_TOKEN_MAX_LEN);
1526
0
    if (ct_buf == NULL)
1527
0
        return;
1528
1529
    /*
1530
     * NEW_TOKEN tokens may be used for multiple subsequent connections
1531
     * within their timeout period, so don't reserve an rscid here
1532
     * like we do for retry tokens, instead, just fill it with random
1533
     * data, as we won't use it anyway
1534
     */
1535
0
    rscid.id_len = 8;
1536
0
    if (!RAND_bytes_ex(ch->port->engine->libctx, rscid.id, 8, 0)) {
1537
0
        OPENSSL_free(ct_buf);
1538
0
        return;
1539
0
    }
1540
1541
0
    memset(&token, 0, sizeof(QUIC_VALIDATION_TOKEN));
1542
1543
0
    if (!generate_token(peer, ch->init_dcid, rscid, &token, 0)
1544
0
        || !marshal_validation_token(&token, buffer, &token_buf_len)
1545
0
        || !encrypt_validation_token(ch->port, buffer, token_buf_len, NULL,
1546
0
            &ct_len)
1547
0
        || ct_len > ENCRYPTED_TOKEN_MAX_LEN
1548
0
        || !encrypt_validation_token(ch->port, buffer, token_buf_len, ct_buf,
1549
0
            &ct_len)
1550
0
        || !ossl_assert(ct_len >= QUIC_RETRY_INTEGRITY_TAG_LEN)) {
1551
0
        OPENSSL_free(ct_buf);
1552
0
        cleanup_validation_token(&token);
1553
0
        return;
1554
0
    }
1555
1556
0
    ch->pending_new_token = ct_buf;
1557
0
    ch->pending_new_token_len = ct_len;
1558
1559
0
    cleanup_validation_token(&token);
1560
0
}
1561
1562
/*
1563
 * This is called by the demux when we get a packet not destined for any known
1564
 * DCID.
1565
 */
1566
static void port_default_packet_handler(QUIC_URXE *e, void *arg,
1567
    const QUIC_CONN_ID *dcid)
1568
0
{
1569
0
    QUIC_PORT *port = arg;
1570
0
    PACKET pkt;
1571
0
    QUIC_PKT_HDR hdr;
1572
0
    QUIC_CHANNEL *ch = NULL, *new_ch = NULL;
1573
0
    QUIC_CONN_ID odcid;
1574
0
    uint8_t gen_new_token = 0;
1575
0
    OSSL_QRX *qrx = NULL;
1576
0
    OSSL_QRX *qrx_src = NULL;
1577
0
    OSSL_QRX_ARGS qrx_args = { 0 };
1578
0
    uint64_t cause_flags = 0;
1579
0
    OSSL_QRX_PKT *qrx_pkt = NULL;
1580
1581
    /* Don't handle anything if we are no longer running. */
1582
0
    if (!ossl_quic_port_is_running(port))
1583
0
        goto undesirable;
1584
1585
0
    if (port_try_handle_stateless_reset(port, e))
1586
0
        goto undesirable;
1587
1588
0
    if (dcid != NULL
1589
0
        && ossl_quic_lcidm_lookup(port->lcidm, dcid, NULL,
1590
0
            (void **)&ch)) {
1591
0
        assert(ch != NULL);
1592
0
        ossl_quic_channel_inject(ch, e);
1593
0
        return;
1594
0
    }
1595
1596
    /*
1597
     * If we have an incoming packet which doesn't match any existing connection
1598
     * we assume this is an attempt to make a new connection.
1599
     */
1600
0
    if (!port->allow_incoming)
1601
0
        goto undesirable;
1602
1603
    /*
1604
     * packet without destination connection id is invalid/corrupted here.
1605
     * stop wasting CPU cycles now.
1606
     */
1607
0
    if (dcid == NULL)
1608
0
        goto undesirable;
1609
1610
    /*
1611
     * We have got a packet for an unknown DCID. This might be an attempt to
1612
     * open a new connection.
1613
     */
1614
0
    if (e->data_len < QUIC_MIN_INITIAL_DGRAM_LEN)
1615
0
        goto undesirable;
1616
1617
0
    if (!PACKET_buf_init(&pkt, ossl_quic_urxe_data(e), e->data_len))
1618
0
        goto undesirable;
1619
1620
    /*
1621
     * We set short_conn_id_len to SIZE_MAX here which will cause the decode
1622
     * operation to fail if we get a 1-RTT packet. This is fine since we only
1623
     * care about Initial packets.
1624
     */
1625
0
    if (!ossl_quic_wire_decode_pkt_hdr(&pkt, SIZE_MAX, 1, 0, &hdr, NULL,
1626
0
            &cause_flags)) {
1627
        /*
1628
         * If we fail due to a bad version, we know the packet up to the version
1629
         * number was decoded, and we use it below to send a version
1630
         * negotiation packet
1631
         */
1632
0
        if ((cause_flags & QUIC_PKT_HDR_DECODE_BAD_VERSION) == 0)
1633
0
            goto undesirable;
1634
0
    }
1635
1636
0
    switch (hdr.version) {
1637
0
    case QUIC_VERSION_1:
1638
0
        break;
1639
1640
0
    case QUIC_VERSION_NONE:
1641
0
    default:
1642
1643
        /*
1644
         * If we get here, then we have a bogus version, and might need
1645
         * to send a version negotiation packet.  According to
1646
         * RFC 9000 s. 6 and 14.1, we only do so however, if the UDP datagram
1647
         * is a minimum of 1200 bytes in size
1648
         */
1649
0
        if (e->data_len < 1200)
1650
0
            goto undesirable;
1651
1652
        /*
1653
         * If we don't get a supported version, respond with a ver
1654
         * negotiation packet, and discard
1655
         * TODO(QUIC FUTURE): Rate limit the reception of these
1656
         */
1657
0
        port_send_version_negotiation(port, &e->peer, &hdr);
1658
0
        goto undesirable;
1659
0
    }
1660
1661
    /*
1662
     * We only care about Initial packets which might be trying to establish a
1663
     * connection.
1664
     */
1665
0
    if (hdr.type != QUIC_PKT_TYPE_INITIAL)
1666
0
        goto undesirable;
1667
1668
0
    odcid.id_len = 0;
1669
1670
    /*
1671
     * Create qrx now so we can check integrity of packet
1672
     * which does not belong to any channel.
1673
     */
1674
0
    qrx_args.libctx = port->engine->libctx;
1675
0
    qrx_args.demux = port->demux;
1676
0
    qrx_args.short_conn_id_len = dcid->id_len;
1677
0
    qrx_args.max_deferred = 32;
1678
0
    qrx = ossl_qrx_new(&qrx_args);
1679
0
    if (qrx == NULL)
1680
0
        goto undesirable;
1681
1682
    /*
1683
     * Derive secrets for qrx only.
1684
     */
1685
0
    if (!ossl_quic_provide_initial_secret(port->engine->libctx,
1686
0
            port->engine->propq,
1687
0
            &hdr.dst_conn_id,
1688
0
            /* is_server */ 1,
1689
0
            qrx, NULL))
1690
0
        goto undesirable;
1691
1692
0
    if (ossl_qrx_validate_initial_packet(qrx, e, (const QUIC_CONN_ID *)dcid) == 0)
1693
0
        goto undesirable;
1694
1695
0
    if (port->validate_addr == 0) {
1696
        /*
1697
         * Forget qrx, because it becomes (almost) useless here. We must let
1698
         * channel to create a new QRX for connection ID server chooses. The
1699
         * validation keys for new DCID will be derived by
1700
         * ossl_quic_channel_on_new_conn() when we will be creating channel.
1701
         * See RFC 9000 section 7.2 negotiating connection id to better
1702
         * understand what's going on here.
1703
         *
1704
         * Did we say qrx is almost useless? Why? Because qrx remembers packets
1705
         * we just validated. Those packets must be injected to channel we are
1706
         * going to create. We use qrx_src alias so we can read packets from
1707
         * qrx and inject them to channel.
1708
         */
1709
0
        qrx_src = qrx;
1710
0
        qrx = NULL;
1711
0
    }
1712
    /*
1713
     * TODO(QUIC FUTURE): there should be some logic similar to accounting half-open
1714
     * states in TCP. If we reach certain threshold, then we want to
1715
     * validate clients.
1716
     */
1717
0
    if (port->validate_addr == 1 && hdr.token == NULL) {
1718
0
        port_send_retry(port, &e->peer, &hdr);
1719
0
        goto undesirable;
1720
0
    }
1721
1722
    /*
1723
     * Note, even if we don't enforce the sending of retry frames for
1724
     * server address validation, we may still get a token if we sent
1725
     * a NEW_TOKEN frame during a prior connection, which we should still
1726
     * validate here
1727
     */
1728
0
    if (hdr.token != NULL
1729
0
        && port_validate_token(&hdr, port, &e->peer,
1730
0
               &odcid, &gen_new_token)
1731
0
            == 0) {
1732
        /*
1733
         * RFC 9000 s 8.1.3
1734
         * When a server receives an Initial packet with an address
1735
         * validation token, it MUST attempt to validate the token,
1736
         * unless it has already completed address validation.
1737
         * If the token is invalid, then the server SHOULD proceed as
1738
         * if the client did not have a validated address,
1739
         * including potentially sending a Retry packet
1740
         * Note: If address validation is disabled, just act like
1741
         * the request is valid
1742
         */
1743
0
        if (port->validate_addr == 1) {
1744
            /*
1745
             * Again: we should consider saving initial encryption level
1746
             * secrets to token here to save some CPU cycles.
1747
             */
1748
0
            port_send_retry(port, &e->peer, &hdr);
1749
0
            goto undesirable;
1750
0
        }
1751
1752
        /*
1753
         * client is under amplification limit, until it completes
1754
         * handshake.
1755
         *
1756
         * forget qrx so channel can create a new one
1757
         * with valid initial encryption level keys.
1758
         */
1759
0
        qrx_src = qrx;
1760
0
        qrx = NULL;
1761
0
    }
1762
1763
0
    port_bind_channel(port, &e->peer, &hdr.dst_conn_id,
1764
0
        &odcid, qrx, &new_ch);
1765
1766
    /*
1767
     * if packet validates it gets moved to channel, we've just bound
1768
     * to port.
1769
     */
1770
0
    if (new_ch == NULL)
1771
0
        goto undesirable;
1772
1773
    /*
1774
     * Generate a token for sending in a later NEW_TOKEN frame
1775
     */
1776
0
    if (gen_new_token == 1)
1777
0
        generate_new_token(new_ch, &e->peer);
1778
1779
0
    if (qrx != NULL) {
1780
        /*
1781
         * The qrx belongs to channel now, so don't free it.
1782
         */
1783
0
        qrx = NULL;
1784
0
    } else {
1785
        /*
1786
         * We still need to salvage packets from almost forgotten qrx
1787
         * and pass them to channel.
1788
         */
1789
0
        while (ossl_qrx_read_pkt(qrx_src, &qrx_pkt) == 1)
1790
0
            ossl_quic_channel_inject_pkt(new_ch, qrx_pkt);
1791
0
        ossl_qrx_update_pn_space(qrx_src, new_ch->qrx);
1792
0
    }
1793
1794
    /*
1795
     * If function reaches this place, then packet got validated in
1796
     * ossl_qrx_validate_initial_packet(). Keep in mind the function
1797
     * ossl_qrx_validate_initial_packet() decrypts the packet to validate it.
1798
     * If packet validation was successful (and it was because we are here),
1799
     * then the function puts the packet to qrx->rx_pending. We must not call
1800
     * ossl_qrx_inject_urxe() here now, because we don't want to insert
1801
     * the packet to qrx->urx_pending which keeps packet waiting for decryption.
1802
     *
1803
     * We are going to call ossl_quic_demux_release_urxe() to dispose buffer
1804
     * which still holds encrypted data.
1805
     */
1806
1807
0
undesirable:
1808
0
    ossl_qrx_free(qrx);
1809
0
    ossl_qrx_free(qrx_src);
1810
0
    ossl_quic_demux_release_urxe(port->demux, e);
1811
0
}
1812
1813
void ossl_quic_port_raise_net_error(QUIC_PORT *port,
1814
    QUIC_CHANNEL *triggering_ch)
1815
0
{
1816
0
    QUIC_CHANNEL *ch;
1817
1818
0
    if (!ossl_quic_port_is_running(port))
1819
0
        return;
1820
1821
    /*
1822
     * Immediately capture any triggering error on the error stack, with a
1823
     * cover error.
1824
     */
1825
0
    ERR_raise_data(ERR_LIB_SSL, SSL_R_QUIC_NETWORK_ERROR,
1826
0
        "port failed due to network BIO I/O error");
1827
0
    OSSL_ERR_STATE_save(port->err_state);
1828
1829
0
    port_transition_failed(port);
1830
1831
    /* Give the triggering channel (if any) the first notification. */
1832
0
    if (triggering_ch != NULL)
1833
0
        ossl_quic_channel_raise_net_error(triggering_ch);
1834
1835
0
    OSSL_LIST_FOREACH(ch, ch, &port->channel_list)
1836
0
    if (ch != triggering_ch)
1837
0
        ossl_quic_channel_raise_net_error(ch);
1838
0
}
1839
1840
void ossl_quic_port_restore_err_state(const QUIC_PORT *port)
1841
0
{
1842
0
    ERR_clear_error();
1843
0
    OSSL_ERR_STATE_restore(port->err_state);
1844
0
}
1845
1846
void ossl_quic_port_set_max_idle_timeout(QUIC_PORT *port, uint64_t ms)
1847
0
{
1848
0
    port->max_idle_timeout = ms;
1849
0
}
1850
1851
uint64_t ossl_quic_port_get_max_idle_timeout(const QUIC_PORT *port)
1852
0
{
1853
0
    return port->max_idle_timeout;
1854
0
}
1855
1856
void ossl_quic_port_set_max_udp_payload_size(QUIC_PORT *port, uint64_t size)
1857
0
{
1858
0
    port->max_udp_payload_size = size;
1859
0
}
1860
1861
uint64_t ossl_quic_port_get_max_udp_payload_size(const QUIC_PORT *port)
1862
0
{
1863
0
    return port->max_udp_payload_size;
1864
0
}
1865
1866
void ossl_quic_port_set_init_max_data(QUIC_PORT *port, uint64_t max_data)
1867
0
{
1868
0
    port->init_max_data = max_data;
1869
0
}
1870
1871
uint64_t ossl_quic_port_get_init_max_data(const QUIC_PORT *port)
1872
0
{
1873
0
    return port->init_max_data;
1874
0
}
1875
1876
void ossl_quic_port_set_init_max_stream_data(QUIC_PORT *port, uint64_t max_data, int is_uni, int is_remote)
1877
0
{
1878
0
    if (is_uni) {
1879
0
        port->init_max_stream_data_uni = max_data;
1880
0
    } else {
1881
0
        if (is_remote)
1882
0
            port->init_max_stream_data_bidi_remote = max_data;
1883
0
        else
1884
0
            port->init_max_stream_data_bidi_local = max_data;
1885
0
    }
1886
0
}
1887
1888
uint64_t ossl_quic_port_get_init_max_stream_data(const QUIC_PORT *port, int is_uni, int is_remote)
1889
0
{
1890
0
    if (is_uni)
1891
0
        return port->init_max_stream_data_uni;
1892
0
    else
1893
0
        return is_remote ? port->init_max_stream_data_bidi_remote : port->init_max_stream_data_bidi_local;
1894
0
}
1895
1896
void ossl_quic_port_set_init_max_streams(QUIC_PORT *port, uint64_t max_streams, int is_uni)
1897
0
{
1898
0
    if (is_uni) {
1899
0
        port->init_max_streams_uni = max_streams;
1900
0
    } else {
1901
0
        port->init_max_streams_bidi = max_streams;
1902
0
    }
1903
0
}
1904
1905
uint64_t ossl_quic_port_get_init_max_streams(const QUIC_PORT *port, int is_uni)
1906
0
{
1907
0
    return is_uni ? port->init_max_streams_uni : port->init_max_streams_bidi;
1908
0
}
1909
1910
void ossl_quic_port_set_ack_delay_exponent(QUIC_PORT *port, uint64_t exp)
1911
0
{
1912
0
    port->ack_delay_exponent = (unsigned char)exp;
1913
0
}
1914
1915
uint64_t ossl_quic_port_get_ack_delay_exponent(const QUIC_PORT *port)
1916
0
{
1917
0
    return port->ack_delay_exponent;
1918
0
}
1919
1920
void ossl_quic_port_set_max_ack_delay(QUIC_PORT *port, uint64_t ms)
1921
0
{
1922
0
    port->max_ack_delay = ms;
1923
0
}
1924
1925
uint64_t ossl_quic_port_get_max_ack_delay(const QUIC_PORT *port)
1926
0
{
1927
0
    return port->max_ack_delay;
1928
0
}
1929
1930
void ossl_quic_port_set_disable_active_migration(QUIC_PORT *port, uint64_t disable)
1931
0
{
1932
0
    port->disable_active_migration = (unsigned char)disable;
1933
0
}
1934
1935
uint64_t ossl_quic_port_get_disable_active_migration(const QUIC_PORT *port)
1936
0
{
1937
0
    return port->disable_active_migration;
1938
0
}
1939
1940
void ossl_quic_port_set_active_conn_id_limit(QUIC_PORT *port, uint64_t limit)
1941
0
{
1942
0
    port->active_conn_id_limit = limit;
1943
0
}
1944
1945
uint64_t ossl_quic_port_get_active_conn_id_limit(const QUIC_PORT *port)
1946
0
{
1947
0
    return port->active_conn_id_limit;
1948
0
}