if_wg.c revision 1.127 1 1.127 riastrad /* $NetBSD: if_wg.c,v 1.127 2024/07/29 19:46:25 riastradh Exp $ */
2 1.1 riastrad
3 1.1 riastrad /*
4 1.1 riastrad * Copyright (C) Ryota Ozaki <ozaki.ryota (at) gmail.com>
5 1.1 riastrad * All rights reserved.
6 1.1 riastrad *
7 1.1 riastrad * Redistribution and use in source and binary forms, with or without
8 1.1 riastrad * modification, are permitted provided that the following conditions
9 1.1 riastrad * are met:
10 1.1 riastrad * 1. Redistributions of source code must retain the above copyright
11 1.1 riastrad * notice, this list of conditions and the following disclaimer.
12 1.1 riastrad * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 riastrad * notice, this list of conditions and the following disclaimer in the
14 1.1 riastrad * documentation and/or other materials provided with the distribution.
15 1.1 riastrad * 3. Neither the name of the project nor the names of its contributors
16 1.1 riastrad * may be used to endorse or promote products derived from this software
17 1.1 riastrad * without specific prior written permission.
18 1.1 riastrad *
19 1.1 riastrad * THIS SOFTWARE IS PROVIDED BY THE PROJECT AND CONTRIBUTORS ``AS IS'' AND
20 1.1 riastrad * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
21 1.1 riastrad * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
22 1.1 riastrad * ARE DISCLAIMED. IN NO EVENT SHALL THE PROJECT OR CONTRIBUTORS BE LIABLE
23 1.1 riastrad * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
24 1.1 riastrad * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
25 1.1 riastrad * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
26 1.1 riastrad * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
27 1.1 riastrad * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
28 1.1 riastrad * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
29 1.1 riastrad * SUCH DAMAGE.
30 1.1 riastrad */
31 1.1 riastrad
32 1.1 riastrad /*
33 1.24 riastrad * This network interface aims to implement the WireGuard protocol.
34 1.24 riastrad * The implementation is based on the paper of WireGuard as of
35 1.24 riastrad * 2018-06-30 [1]. The paper is referred in the source code with label
36 1.24 riastrad * [W]. Also the specification of the Noise protocol framework as of
37 1.24 riastrad * 2018-07-11 [2] is referred with label [N].
38 1.1 riastrad *
39 1.1 riastrad * [1] https://www.wireguard.com/papers/wireguard.pdf
40 1.1 riastrad * [2] http://noiseprotocol.org/noise.pdf
41 1.1 riastrad */
42 1.1 riastrad
43 1.1 riastrad #include <sys/cdefs.h>
44 1.127 riastrad __KERNEL_RCSID(0, "$NetBSD: if_wg.c,v 1.127 2024/07/29 19:46:25 riastradh Exp $");
45 1.1 riastrad
46 1.1 riastrad #ifdef _KERNEL_OPT
47 1.60 riastrad #include "opt_altq_enabled.h"
48 1.1 riastrad #include "opt_inet.h"
49 1.1 riastrad #endif
50 1.1 riastrad
51 1.1 riastrad #include <sys/param.h>
52 1.32 riastrad #include <sys/types.h>
53 1.32 riastrad
54 1.32 riastrad #include <sys/atomic.h>
55 1.32 riastrad #include <sys/callout.h>
56 1.32 riastrad #include <sys/cprng.h>
57 1.32 riastrad #include <sys/cpu.h>
58 1.32 riastrad #include <sys/device.h>
59 1.32 riastrad #include <sys/domain.h>
60 1.1 riastrad #include <sys/errno.h>
61 1.32 riastrad #include <sys/intr.h>
62 1.1 riastrad #include <sys/ioctl.h>
63 1.32 riastrad #include <sys/kernel.h>
64 1.1 riastrad #include <sys/kmem.h>
65 1.32 riastrad #include <sys/mbuf.h>
66 1.1 riastrad #include <sys/module.h>
67 1.1 riastrad #include <sys/mutex.h>
68 1.58 riastrad #include <sys/once.h>
69 1.32 riastrad #include <sys/percpu.h>
70 1.1 riastrad #include <sys/pserialize.h>
71 1.1 riastrad #include <sys/psref.h>
72 1.32 riastrad #include <sys/queue.h>
73 1.32 riastrad #include <sys/rwlock.h>
74 1.32 riastrad #include <sys/socket.h>
75 1.32 riastrad #include <sys/socketvar.h>
76 1.32 riastrad #include <sys/sockio.h>
77 1.1 riastrad #include <sys/sysctl.h>
78 1.32 riastrad #include <sys/syslog.h>
79 1.32 riastrad #include <sys/systm.h>
80 1.37 riastrad #include <sys/thmap.h>
81 1.55 riastrad #include <sys/threadpool.h>
82 1.32 riastrad #include <sys/time.h>
83 1.32 riastrad #include <sys/timespec.h>
84 1.55 riastrad #include <sys/workqueue.h>
85 1.1 riastrad
86 1.86 christos #include <lib/libkern/libkern.h>
87 1.86 christos
88 1.1 riastrad #include <net/bpf.h>
89 1.1 riastrad #include <net/if.h>
90 1.1 riastrad #include <net/if_types.h>
91 1.32 riastrad #include <net/if_wg.h>
92 1.54 riastrad #include <net/pktqueue.h>
93 1.1 riastrad #include <net/route.h>
94 1.1 riastrad
95 1.109 riastrad #ifdef INET
96 1.1 riastrad #include <netinet/in.h>
97 1.32 riastrad #include <netinet/in_pcb.h>
98 1.32 riastrad #include <netinet/in_var.h>
99 1.1 riastrad #include <netinet/ip.h>
100 1.1 riastrad #include <netinet/ip_var.h>
101 1.1 riastrad #include <netinet/udp.h>
102 1.1 riastrad #include <netinet/udp_var.h>
103 1.109 riastrad #endif /* INET */
104 1.1 riastrad
105 1.1 riastrad #ifdef INET6
106 1.32 riastrad #include <netinet/ip6.h>
107 1.32 riastrad #include <netinet6/in6_pcb.h>
108 1.1 riastrad #include <netinet6/in6_var.h>
109 1.1 riastrad #include <netinet6/ip6_var.h>
110 1.1 riastrad #include <netinet6/udp6_var.h>
111 1.109 riastrad #endif /* INET6 */
112 1.1 riastrad
113 1.1 riastrad #include <prop/proplib.h>
114 1.1 riastrad
115 1.1 riastrad #include <crypto/blake2/blake2s.h>
116 1.1 riastrad #include <crypto/sodium/crypto_aead_chacha20poly1305.h>
117 1.1 riastrad #include <crypto/sodium/crypto_aead_xchacha20poly1305.h>
118 1.32 riastrad #include <crypto/sodium/crypto_scalarmult.h>
119 1.1 riastrad
120 1.1 riastrad #include "ioconf.h"
121 1.1 riastrad
122 1.1 riastrad #ifdef WG_RUMPKERNEL
123 1.1 riastrad #include "wg_user.h"
124 1.1 riastrad #endif
125 1.1 riastrad
126 1.105 riastrad #ifndef time_uptime32
127 1.105 riastrad #define time_uptime32 ((uint32_t)time_uptime)
128 1.105 riastrad #endif
129 1.105 riastrad
130 1.1 riastrad /*
131 1.1 riastrad * Data structures
132 1.1 riastrad * - struct wg_softc is an instance of wg interfaces
133 1.1 riastrad * - It has a list of peers (struct wg_peer)
134 1.55 riastrad * - It has a threadpool job that sends/receives handshake messages and
135 1.1 riastrad * runs event handlers
136 1.1 riastrad * - It has its own two routing tables: one is for IPv4 and the other IPv6
137 1.1 riastrad * - struct wg_peer is a representative of a peer
138 1.55 riastrad * - It has a struct work to handle handshakes and timer tasks
139 1.1 riastrad * - It has a pair of session instances (struct wg_session)
140 1.1 riastrad * - It has a pair of endpoint instances (struct wg_sockaddr)
141 1.1 riastrad * - Normally one endpoint is used and the second one is used only on
142 1.1 riastrad * a peer migration (a change of peer's IP address)
143 1.1 riastrad * - It has a list of IP addresses and sub networks called allowedips
144 1.1 riastrad * (struct wg_allowedip)
145 1.1 riastrad * - A packets sent over a session is allowed if its destination matches
146 1.1 riastrad * any IP addresses or sub networks of the list
147 1.1 riastrad * - struct wg_session represents a session of a secure tunnel with a peer
148 1.1 riastrad * - Two instances of sessions belong to a peer; a stable session and a
149 1.1 riastrad * unstable session
150 1.49 riastrad * - A handshake process of a session always starts with a unstable instance
151 1.1 riastrad * - Once a session is established, its instance becomes stable and the
152 1.1 riastrad * other becomes unstable instead
153 1.1 riastrad * - Data messages are always sent via a stable session
154 1.1 riastrad *
155 1.1 riastrad * Locking notes:
156 1.49 riastrad * - Each wg has a mutex(9) wg_lock, and a rwlock(9) wg_rwlock
157 1.49 riastrad * - Changes to the peer list are serialized by wg_lock
158 1.49 riastrad * - The peer list may be read with pserialize(9) and psref(9)
159 1.1 riastrad * - The rwlock (wg_rwlock) protects the routing tables (wg_rtable_ipv[46])
160 1.49 riastrad * => XXX replace by pserialize when routing table is psz-safe
161 1.49 riastrad * - Each peer (struct wg_peer, wgp) has a mutex wgp_lock, which can be taken
162 1.49 riastrad * only in thread context and serializes:
163 1.49 riastrad * - the stable and unstable session pointers
164 1.49 riastrad * - all unstable session state
165 1.49 riastrad * - Packet processing may be done in softint context:
166 1.49 riastrad * - The stable session can be read under pserialize(9) or psref(9)
167 1.49 riastrad * - The stable session is always ESTABLISHED
168 1.14 riastrad * - On a session swap, we must wait for all readers to release a
169 1.14 riastrad * reference to a stable session before changing wgs_state and
170 1.14 riastrad * session states
171 1.49 riastrad * - Lock order: wg_lock -> wgp_lock
172 1.1 riastrad */
173 1.1 riastrad
174 1.1 riastrad
175 1.14 riastrad #define WGLOG(level, fmt, args...) \
176 1.14 riastrad log(level, "%s: " fmt, __func__, ##args)
177 1.1 riastrad
178 1.85 christos #define WG_DEBUG
179 1.80 christos
180 1.1 riastrad /* Debug options */
181 1.1 riastrad #ifdef WG_DEBUG
182 1.1 riastrad /* Output debug logs */
183 1.1 riastrad #ifndef WG_DEBUG_LOG
184 1.1 riastrad #define WG_DEBUG_LOG
185 1.1 riastrad #endif
186 1.1 riastrad /* Output trace logs */
187 1.1 riastrad #ifndef WG_DEBUG_TRACE
188 1.1 riastrad #define WG_DEBUG_TRACE
189 1.1 riastrad #endif
190 1.1 riastrad /* Output hash values, etc. */
191 1.1 riastrad #ifndef WG_DEBUG_DUMP
192 1.1 riastrad #define WG_DEBUG_DUMP
193 1.1 riastrad #endif
194 1.1 riastrad /* Make some internal parameters configurable for testing and debugging */
195 1.1 riastrad #ifndef WG_DEBUG_PARAMS
196 1.1 riastrad #define WG_DEBUG_PARAMS
197 1.1 riastrad #endif
198 1.83 kre #endif /* WG_DEBUG */
199 1.83 kre
200 1.83 kre #ifndef WG_DEBUG
201 1.83 kre # if defined(WG_DEBUG_LOG) || defined(WG_DEBUG_TRACE) || \
202 1.111 riastrad defined(WG_DEBUG_DUMP) || defined(WG_DEBUG_PARAMS)
203 1.83 kre # define WG_DEBUG
204 1.83 kre # endif
205 1.83 kre #endif
206 1.83 kre
207 1.83 kre #ifdef WG_DEBUG
208 1.80 christos int wg_debug;
209 1.80 christos #define WG_DEBUG_FLAGS_LOG 1
210 1.80 christos #define WG_DEBUG_FLAGS_TRACE 2
211 1.80 christos #define WG_DEBUG_FLAGS_DUMP 4
212 1.1 riastrad #endif
213 1.1 riastrad
214 1.1 riastrad #ifdef WG_DEBUG_TRACE
215 1.80 christos #define WG_TRACE(msg) do { \
216 1.80 christos if (wg_debug & WG_DEBUG_FLAGS_TRACE) \
217 1.80 christos log(LOG_DEBUG, "%s:%d: %s\n", __func__, __LINE__, (msg)); \
218 1.80 christos } while (0)
219 1.1 riastrad #else
220 1.1 riastrad #define WG_TRACE(msg) __nothing
221 1.1 riastrad #endif
222 1.1 riastrad
223 1.1 riastrad #ifdef WG_DEBUG_LOG
224 1.80 christos #define WG_DLOG(fmt, args...) do { \
225 1.80 christos if (wg_debug & WG_DEBUG_FLAGS_LOG) \
226 1.80 christos log(LOG_DEBUG, "%s: " fmt, __func__, ##args); \
227 1.80 christos } while (0)
228 1.1 riastrad #else
229 1.1 riastrad #define WG_DLOG(fmt, args...) __nothing
230 1.1 riastrad #endif
231 1.1 riastrad
232 1.1 riastrad #define WG_LOG_RATECHECK(wgprc, level, fmt, args...) do { \
233 1.81 christos if (ppsratecheck(&(wgprc)->wgprc_lasttime, \
234 1.1 riastrad &(wgprc)->wgprc_curpps, 1)) { \
235 1.1 riastrad log(level, fmt, ##args); \
236 1.1 riastrad } \
237 1.1 riastrad } while (0)
238 1.1 riastrad
239 1.1 riastrad #ifdef WG_DEBUG_PARAMS
240 1.1 riastrad static bool wg_force_underload = false;
241 1.1 riastrad #endif
242 1.1 riastrad
243 1.1 riastrad #ifdef WG_DEBUG_DUMP
244 1.7 riastrad
245 1.89 kre static char enomem[10] = "[enomem]";
246 1.89 kre
247 1.93 christos #define MAX_HDUMP_LEN 10000 /* large enough */
248 1.93 christos
249 1.112 riastrad /*
250 1.112 riastrad * gethexdump(p, n)
251 1.112 riastrad *
252 1.112 riastrad * Allocate a string returning a hexdump of bytes p[0..n),
253 1.112 riastrad * truncated to MAX_HDUMP_LEN. Must be freed with puthexdump.
254 1.112 riastrad *
255 1.112 riastrad * We use this instead of libkern hexdump() because the result is
256 1.112 riastrad * logged with log(LOG_DEBUG, ...), which puts a priority tag on
257 1.112 riastrad * every message, so it can't be done incrementally.
258 1.112 riastrad */
259 1.53 riastrad static char *
260 1.84 christos gethexdump(const void *vp, size_t n)
261 1.53 riastrad {
262 1.53 riastrad char *buf;
263 1.84 christos const uint8_t *p = vp;
264 1.93 christos size_t i, alloc;
265 1.53 riastrad
266 1.93 christos alloc = n;
267 1.93 christos if (n > MAX_HDUMP_LEN)
268 1.93 christos alloc = MAX_HDUMP_LEN;
269 1.112 riastrad buf = kmem_alloc(3*alloc + 5, KM_NOSLEEP);
270 1.53 riastrad if (buf == NULL)
271 1.89 kre return enomem;
272 1.93 christos for (i = 0; i < alloc; i++)
273 1.112 riastrad snprintf(buf + 3*i, 3 + 1, " %02hhx", p[i]);
274 1.93 christos if (alloc != n)
275 1.112 riastrad snprintf(buf + 3*i, 4 + 1, " ...");
276 1.53 riastrad return buf;
277 1.53 riastrad }
278 1.53 riastrad
279 1.53 riastrad static void
280 1.53 riastrad puthexdump(char *buf, const void *p, size_t n)
281 1.53 riastrad {
282 1.53 riastrad
283 1.89 kre if (buf == NULL || buf == enomem)
284 1.53 riastrad return;
285 1.93 christos if (n > MAX_HDUMP_LEN)
286 1.93 christos n = MAX_HDUMP_LEN;
287 1.112 riastrad kmem_free(buf, 3*n + 5);
288 1.53 riastrad }
289 1.53 riastrad
290 1.7 riastrad #ifdef WG_RUMPKERNEL
291 1.1 riastrad static void
292 1.1 riastrad wg_dump_buf(const char *func, const char *buf, const size_t size)
293 1.1 riastrad {
294 1.80 christos if ((wg_debug & WG_DEBUG_FLAGS_DUMP) == 0)
295 1.80 christos return;
296 1.80 christos
297 1.53 riastrad char *hex = gethexdump(buf, size);
298 1.1 riastrad
299 1.89 kre log(LOG_DEBUG, "%s: %s\n", func, hex);
300 1.53 riastrad puthexdump(hex, buf, size);
301 1.1 riastrad }
302 1.7 riastrad #endif
303 1.1 riastrad
304 1.1 riastrad static void
305 1.1 riastrad wg_dump_hash(const uint8_t *func, const uint8_t *name, const uint8_t *hash,
306 1.1 riastrad const size_t size)
307 1.1 riastrad {
308 1.80 christos if ((wg_debug & WG_DEBUG_FLAGS_DUMP) == 0)
309 1.80 christos return;
310 1.80 christos
311 1.53 riastrad char *hex = gethexdump(hash, size);
312 1.1 riastrad
313 1.89 kre log(LOG_DEBUG, "%s: %s: %s\n", func, name, hex);
314 1.53 riastrad puthexdump(hex, hash, size);
315 1.1 riastrad }
316 1.1 riastrad
317 1.1 riastrad #define WG_DUMP_HASH(name, hash) \
318 1.1 riastrad wg_dump_hash(__func__, name, hash, WG_HASH_LEN)
319 1.1 riastrad #define WG_DUMP_HASH48(name, hash) \
320 1.1 riastrad wg_dump_hash(__func__, name, hash, 48)
321 1.1 riastrad #define WG_DUMP_BUF(buf, size) \
322 1.1 riastrad wg_dump_buf(__func__, buf, size)
323 1.1 riastrad #else
324 1.1 riastrad #define WG_DUMP_HASH(name, hash) __nothing
325 1.1 riastrad #define WG_DUMP_HASH48(name, hash) __nothing
326 1.1 riastrad #define WG_DUMP_BUF(buf, size) __nothing
327 1.1 riastrad #endif /* WG_DEBUG_DUMP */
328 1.1 riastrad
329 1.75 andvar /* chosen somewhat arbitrarily -- fits in signed 16 bits NUL-terminated */
330 1.68 riastrad #define WG_MAX_PROPLEN 32766
331 1.68 riastrad
332 1.1 riastrad #define WG_MTU 1420
333 1.1 riastrad #define WG_ALLOWEDIPS 16
334 1.1 riastrad
335 1.1 riastrad #define CURVE25519_KEY_LEN 32
336 1.110 riastrad #define TAI64N_LEN (sizeof(uint32_t) * 3)
337 1.1 riastrad #define POLY1305_AUTHTAG_LEN 16
338 1.1 riastrad #define HMAC_BLOCK_LEN 64
339 1.1 riastrad
340 1.1 riastrad /* [N] 4.1: "DHLEN must be 32 or greater." WireGuard chooses 32. */
341 1.1 riastrad /* [N] 4.3: Hash functions */
342 1.1 riastrad #define NOISE_DHLEN 32
343 1.1 riastrad /* [N] 4.3: "Must be 32 or 64." WireGuard chooses 32. */
344 1.1 riastrad #define NOISE_HASHLEN 32
345 1.1 riastrad #define NOISE_BLOCKLEN 64
346 1.1 riastrad #define NOISE_HKDF_OUTPUT_LEN NOISE_HASHLEN
347 1.1 riastrad /* [N] 5.1: "k" */
348 1.1 riastrad #define NOISE_CIPHER_KEY_LEN 32
349 1.1 riastrad /*
350 1.1 riastrad * [N] 9.2: "psk"
351 1.1 riastrad * "... psk is a 32-byte secret value provided by the application."
352 1.1 riastrad */
353 1.1 riastrad #define NOISE_PRESHARED_KEY_LEN 32
354 1.1 riastrad
355 1.1 riastrad #define WG_STATIC_KEY_LEN CURVE25519_KEY_LEN
356 1.1 riastrad #define WG_TIMESTAMP_LEN TAI64N_LEN
357 1.1 riastrad
358 1.1 riastrad #define WG_PRESHARED_KEY_LEN NOISE_PRESHARED_KEY_LEN
359 1.1 riastrad
360 1.1 riastrad #define WG_COOKIE_LEN 16
361 1.1 riastrad #define WG_MAC_LEN 16
362 1.98 riastrad #define WG_COOKIESECRET_LEN 32
363 1.1 riastrad
364 1.1 riastrad #define WG_EPHEMERAL_KEY_LEN CURVE25519_KEY_LEN
365 1.1 riastrad /* [N] 5.2: "ck: A chaining key of HASHLEN bytes" */
366 1.1 riastrad #define WG_CHAINING_KEY_LEN NOISE_HASHLEN
367 1.1 riastrad /* [N] 5.2: "h: A hash output of HASHLEN bytes" */
368 1.1 riastrad #define WG_HASH_LEN NOISE_HASHLEN
369 1.1 riastrad #define WG_CIPHER_KEY_LEN NOISE_CIPHER_KEY_LEN
370 1.1 riastrad #define WG_DH_OUTPUT_LEN NOISE_DHLEN
371 1.1 riastrad #define WG_KDF_OUTPUT_LEN NOISE_HKDF_OUTPUT_LEN
372 1.1 riastrad #define WG_AUTHTAG_LEN POLY1305_AUTHTAG_LEN
373 1.1 riastrad #define WG_DATA_KEY_LEN 32
374 1.1 riastrad #define WG_SALT_LEN 24
375 1.1 riastrad
376 1.1 riastrad /*
377 1.1 riastrad * The protocol messages
378 1.1 riastrad */
379 1.14 riastrad struct wg_msg {
380 1.1 riastrad uint32_t wgm_type;
381 1.1 riastrad } __packed;
382 1.1 riastrad
383 1.1 riastrad /* [W] 5.4.2 First Message: Initiator to Responder */
384 1.1 riastrad struct wg_msg_init {
385 1.1 riastrad uint32_t wgmi_type;
386 1.1 riastrad uint32_t wgmi_sender;
387 1.1 riastrad uint8_t wgmi_ephemeral[WG_EPHEMERAL_KEY_LEN];
388 1.1 riastrad uint8_t wgmi_static[WG_STATIC_KEY_LEN + WG_AUTHTAG_LEN];
389 1.1 riastrad uint8_t wgmi_timestamp[WG_TIMESTAMP_LEN + WG_AUTHTAG_LEN];
390 1.1 riastrad uint8_t wgmi_mac1[WG_MAC_LEN];
391 1.1 riastrad uint8_t wgmi_mac2[WG_MAC_LEN];
392 1.1 riastrad } __packed;
393 1.1 riastrad
394 1.1 riastrad /* [W] 5.4.3 Second Message: Responder to Initiator */
395 1.1 riastrad struct wg_msg_resp {
396 1.1 riastrad uint32_t wgmr_type;
397 1.1 riastrad uint32_t wgmr_sender;
398 1.1 riastrad uint32_t wgmr_receiver;
399 1.1 riastrad uint8_t wgmr_ephemeral[WG_EPHEMERAL_KEY_LEN];
400 1.1 riastrad uint8_t wgmr_empty[0 + WG_AUTHTAG_LEN];
401 1.1 riastrad uint8_t wgmr_mac1[WG_MAC_LEN];
402 1.1 riastrad uint8_t wgmr_mac2[WG_MAC_LEN];
403 1.1 riastrad } __packed;
404 1.1 riastrad
405 1.1 riastrad /* [W] 5.4.6 Subsequent Messages: Transport Data Messages */
406 1.1 riastrad struct wg_msg_data {
407 1.1 riastrad uint32_t wgmd_type;
408 1.1 riastrad uint32_t wgmd_receiver;
409 1.1 riastrad uint64_t wgmd_counter;
410 1.114 riastrad uint32_t wgmd_packet[];
411 1.1 riastrad } __packed;
412 1.1 riastrad
413 1.1 riastrad /* [W] 5.4.7 Under Load: Cookie Reply Message */
414 1.1 riastrad struct wg_msg_cookie {
415 1.1 riastrad uint32_t wgmc_type;
416 1.1 riastrad uint32_t wgmc_receiver;
417 1.1 riastrad uint8_t wgmc_salt[WG_SALT_LEN];
418 1.1 riastrad uint8_t wgmc_cookie[WG_COOKIE_LEN + WG_AUTHTAG_LEN];
419 1.1 riastrad } __packed;
420 1.1 riastrad
421 1.1 riastrad #define WG_MSG_TYPE_INIT 1
422 1.1 riastrad #define WG_MSG_TYPE_RESP 2
423 1.1 riastrad #define WG_MSG_TYPE_COOKIE 3
424 1.1 riastrad #define WG_MSG_TYPE_DATA 4
425 1.1 riastrad #define WG_MSG_TYPE_MAX WG_MSG_TYPE_DATA
426 1.1 riastrad
427 1.6 riastrad /* Sliding windows */
428 1.6 riastrad
429 1.6 riastrad #define SLIWIN_BITS 2048u
430 1.6 riastrad #define SLIWIN_TYPE uint32_t
431 1.110 riastrad #define SLIWIN_BPW (NBBY*sizeof(SLIWIN_TYPE))
432 1.6 riastrad #define SLIWIN_WORDS howmany(SLIWIN_BITS, SLIWIN_BPW)
433 1.6 riastrad #define SLIWIN_NPKT (SLIWIN_BITS - NBBY*sizeof(SLIWIN_TYPE))
434 1.6 riastrad
435 1.6 riastrad struct sliwin {
436 1.6 riastrad SLIWIN_TYPE B[SLIWIN_WORDS];
437 1.6 riastrad uint64_t T;
438 1.6 riastrad };
439 1.6 riastrad
440 1.121 riastrad /*
441 1.121 riastrad * sliwin_reset(W)
442 1.121 riastrad *
443 1.121 riastrad * Reset sliding window state to a blank history with no observed
444 1.121 riastrad * sequence numbers.
445 1.121 riastrad *
446 1.121 riastrad * Caller must have exclusive access to W.
447 1.121 riastrad */
448 1.6 riastrad static void
449 1.6 riastrad sliwin_reset(struct sliwin *W)
450 1.6 riastrad {
451 1.6 riastrad
452 1.6 riastrad memset(W, 0, sizeof(*W));
453 1.6 riastrad }
454 1.6 riastrad
455 1.121 riastrad /*
456 1.121 riastrad * sliwin_check_fast(W, S)
457 1.121 riastrad *
458 1.121 riastrad * Do a fast check of the sliding window W to validate sequence
459 1.121 riastrad * number S. No state is recorded. Return 0 on accept, nonzero
460 1.121 riastrad * error code on reject.
461 1.121 riastrad *
462 1.121 riastrad * May be called concurrently with other calls to
463 1.121 riastrad * sliwin_check_fast and sliwin_update.
464 1.121 riastrad */
465 1.6 riastrad static int
466 1.6 riastrad sliwin_check_fast(const volatile struct sliwin *W, uint64_t S)
467 1.6 riastrad {
468 1.6 riastrad
469 1.6 riastrad /*
470 1.6 riastrad * If it's more than one window older than the highest sequence
471 1.6 riastrad * number we've seen, reject.
472 1.6 riastrad */
473 1.20 riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
474 1.6 riastrad if (S + SLIWIN_NPKT < atomic_load_relaxed(&W->T))
475 1.6 riastrad return EAUTH;
476 1.20 riastrad #endif
477 1.6 riastrad
478 1.6 riastrad /*
479 1.6 riastrad * Otherwise, we need to take the lock to decide, so don't
480 1.6 riastrad * reject just yet. Caller must serialize a call to
481 1.6 riastrad * sliwin_update in this case.
482 1.6 riastrad */
483 1.6 riastrad return 0;
484 1.6 riastrad }
485 1.6 riastrad
486 1.121 riastrad /*
487 1.121 riastrad * sliwin_update(W, S)
488 1.121 riastrad *
489 1.121 riastrad * Check the sliding window W to validate sequence number S, and
490 1.121 riastrad * if accepted, update it to reflect having observed S. Return 0
491 1.121 riastrad * on accept, nonzero error code on reject.
492 1.121 riastrad *
493 1.121 riastrad * May be called concurrently with other calls to
494 1.121 riastrad * sliwin_check_fast, but caller must exclude other calls to
495 1.121 riastrad * sliwin_update.
496 1.121 riastrad */
497 1.6 riastrad static int
498 1.6 riastrad sliwin_update(struct sliwin *W, uint64_t S)
499 1.6 riastrad {
500 1.6 riastrad unsigned word, bit;
501 1.6 riastrad
502 1.6 riastrad /*
503 1.6 riastrad * If it's more than one window older than the highest sequence
504 1.6 riastrad * number we've seen, reject.
505 1.6 riastrad */
506 1.6 riastrad if (S + SLIWIN_NPKT < W->T)
507 1.6 riastrad return EAUTH;
508 1.6 riastrad
509 1.6 riastrad /*
510 1.6 riastrad * If it's higher than the highest sequence number we've seen,
511 1.6 riastrad * advance the window.
512 1.6 riastrad */
513 1.6 riastrad if (S > W->T) {
514 1.6 riastrad uint64_t i = W->T / SLIWIN_BPW;
515 1.6 riastrad uint64_t j = S / SLIWIN_BPW;
516 1.6 riastrad unsigned k;
517 1.6 riastrad
518 1.6 riastrad for (k = 0; k < MIN(j - i, SLIWIN_WORDS); k++)
519 1.6 riastrad W->B[(i + k + 1) % SLIWIN_WORDS] = 0;
520 1.20 riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
521 1.6 riastrad atomic_store_relaxed(&W->T, S);
522 1.20 riastrad #else
523 1.20 riastrad W->T = S;
524 1.20 riastrad #endif
525 1.6 riastrad }
526 1.6 riastrad
527 1.6 riastrad /* Test and set the bit -- if already set, reject. */
528 1.6 riastrad word = (S / SLIWIN_BPW) % SLIWIN_WORDS;
529 1.6 riastrad bit = S % SLIWIN_BPW;
530 1.6 riastrad if (W->B[word] & (1UL << bit))
531 1.6 riastrad return EAUTH;
532 1.65 christos W->B[word] |= 1U << bit;
533 1.6 riastrad
534 1.6 riastrad /* Accept! */
535 1.6 riastrad return 0;
536 1.6 riastrad }
537 1.6 riastrad
538 1.1 riastrad struct wg_session {
539 1.1 riastrad struct wg_peer *wgs_peer;
540 1.1 riastrad struct psref_target
541 1.1 riastrad wgs_psref;
542 1.1 riastrad
543 1.1 riastrad int wgs_state;
544 1.1 riastrad #define WGS_STATE_UNKNOWN 0
545 1.1 riastrad #define WGS_STATE_INIT_ACTIVE 1
546 1.1 riastrad #define WGS_STATE_INIT_PASSIVE 2
547 1.1 riastrad #define WGS_STATE_ESTABLISHED 3
548 1.1 riastrad #define WGS_STATE_DESTROYING 4
549 1.1 riastrad
550 1.117 riastrad uint32_t wgs_time_established;
551 1.104 riastrad volatile uint32_t
552 1.104 riastrad wgs_time_last_data_sent;
553 1.113 riastrad volatile bool wgs_force_rekey;
554 1.1 riastrad bool wgs_is_initiator;
555 1.1 riastrad
556 1.49 riastrad uint32_t wgs_local_index;
557 1.49 riastrad uint32_t wgs_remote_index;
558 1.22 riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
559 1.1 riastrad volatile uint64_t
560 1.1 riastrad wgs_send_counter;
561 1.22 riastrad #else
562 1.22 riastrad kmutex_t wgs_send_counter_lock;
563 1.22 riastrad uint64_t wgs_send_counter;
564 1.22 riastrad #endif
565 1.6 riastrad
566 1.6 riastrad struct {
567 1.6 riastrad kmutex_t lock;
568 1.6 riastrad struct sliwin window;
569 1.6 riastrad } *wgs_recvwin;
570 1.1 riastrad
571 1.1 riastrad uint8_t wgs_handshake_hash[WG_HASH_LEN];
572 1.1 riastrad uint8_t wgs_chaining_key[WG_CHAINING_KEY_LEN];
573 1.1 riastrad uint8_t wgs_ephemeral_key_pub[WG_EPHEMERAL_KEY_LEN];
574 1.1 riastrad uint8_t wgs_ephemeral_key_priv[WG_EPHEMERAL_KEY_LEN];
575 1.1 riastrad uint8_t wgs_ephemeral_key_peer[WG_EPHEMERAL_KEY_LEN];
576 1.1 riastrad uint8_t wgs_tkey_send[WG_DATA_KEY_LEN];
577 1.1 riastrad uint8_t wgs_tkey_recv[WG_DATA_KEY_LEN];
578 1.1 riastrad };
579 1.1 riastrad
580 1.1 riastrad struct wg_sockaddr {
581 1.1 riastrad union {
582 1.1 riastrad struct sockaddr_storage _ss;
583 1.1 riastrad struct sockaddr _sa;
584 1.1 riastrad struct sockaddr_in _sin;
585 1.1 riastrad struct sockaddr_in6 _sin6;
586 1.1 riastrad };
587 1.1 riastrad struct psref_target wgsa_psref;
588 1.1 riastrad };
589 1.1 riastrad
590 1.47 riastrad #define wgsatoss(wgsa) (&(wgsa)->_ss)
591 1.1 riastrad #define wgsatosa(wgsa) (&(wgsa)->_sa)
592 1.1 riastrad #define wgsatosin(wgsa) (&(wgsa)->_sin)
593 1.1 riastrad #define wgsatosin6(wgsa) (&(wgsa)->_sin6)
594 1.1 riastrad
595 1.47 riastrad #define wgsa_family(wgsa) (wgsatosa(wgsa)->sa_family)
596 1.47 riastrad
597 1.1 riastrad struct wg_peer;
598 1.1 riastrad struct wg_allowedip {
599 1.1 riastrad struct radix_node wga_nodes[2];
600 1.1 riastrad struct wg_sockaddr _wga_sa_addr;
601 1.1 riastrad struct wg_sockaddr _wga_sa_mask;
602 1.1 riastrad #define wga_sa_addr _wga_sa_addr._sa
603 1.1 riastrad #define wga_sa_mask _wga_sa_mask._sa
604 1.1 riastrad
605 1.1 riastrad int wga_family;
606 1.1 riastrad uint8_t wga_cidr;
607 1.1 riastrad union {
608 1.1 riastrad struct in_addr _ip4;
609 1.1 riastrad struct in6_addr _ip6;
610 1.1 riastrad } wga_addr;
611 1.1 riastrad #define wga_addr4 wga_addr._ip4
612 1.1 riastrad #define wga_addr6 wga_addr._ip6
613 1.1 riastrad
614 1.1 riastrad struct wg_peer *wga_peer;
615 1.1 riastrad };
616 1.1 riastrad
617 1.1 riastrad typedef uint8_t wg_timestamp_t[WG_TIMESTAMP_LEN];
618 1.1 riastrad
619 1.1 riastrad struct wg_ppsratecheck {
620 1.1 riastrad struct timeval wgprc_lasttime;
621 1.1 riastrad int wgprc_curpps;
622 1.1 riastrad };
623 1.1 riastrad
624 1.1 riastrad struct wg_softc;
625 1.1 riastrad struct wg_peer {
626 1.1 riastrad struct wg_softc *wgp_sc;
627 1.1 riastrad char wgp_name[WG_PEER_NAME_MAXLEN + 1];
628 1.1 riastrad struct pslist_entry wgp_peerlist_entry;
629 1.1 riastrad pserialize_t wgp_psz;
630 1.1 riastrad struct psref_target wgp_psref;
631 1.1 riastrad kmutex_t *wgp_lock;
632 1.55 riastrad kmutex_t *wgp_intr_lock;
633 1.1 riastrad
634 1.1 riastrad uint8_t wgp_pubkey[WG_STATIC_KEY_LEN];
635 1.1 riastrad struct wg_sockaddr *wgp_endpoint;
636 1.1 riastrad struct wg_sockaddr *wgp_endpoint0;
637 1.49 riastrad volatile unsigned wgp_endpoint_changing;
638 1.1 riastrad bool wgp_endpoint_available;
639 1.1 riastrad
640 1.1 riastrad /* The preshared key (optional) */
641 1.1 riastrad uint8_t wgp_psk[WG_PRESHARED_KEY_LEN];
642 1.1 riastrad
643 1.1 riastrad struct wg_session *wgp_session_stable;
644 1.1 riastrad struct wg_session *wgp_session_unstable;
645 1.1 riastrad
646 1.54 riastrad /* first outgoing packet awaiting session initiation */
647 1.99 riastrad struct mbuf *volatile wgp_pending;
648 1.54 riastrad
649 1.1 riastrad /* timestamp in big-endian */
650 1.1 riastrad wg_timestamp_t wgp_timestamp_latest_init;
651 1.1 riastrad
652 1.1 riastrad struct timespec wgp_last_handshake_time;
653 1.1 riastrad
654 1.1 riastrad callout_t wgp_handshake_timeout_timer;
655 1.1 riastrad callout_t wgp_session_dtor_timer;
656 1.1 riastrad
657 1.1 riastrad time_t wgp_handshake_start_time;
658 1.1 riastrad
659 1.14 riastrad int wgp_n_allowedips;
660 1.1 riastrad struct wg_allowedip wgp_allowedips[WG_ALLOWEDIPS];
661 1.1 riastrad
662 1.1 riastrad time_t wgp_latest_cookie_time;
663 1.1 riastrad uint8_t wgp_latest_cookie[WG_COOKIE_LEN];
664 1.1 riastrad uint8_t wgp_last_sent_mac1[WG_MAC_LEN];
665 1.1 riastrad bool wgp_last_sent_mac1_valid;
666 1.1 riastrad uint8_t wgp_last_sent_cookie[WG_COOKIE_LEN];
667 1.1 riastrad bool wgp_last_sent_cookie_valid;
668 1.1 riastrad
669 1.1 riastrad time_t wgp_last_msg_received_time[WG_MSG_TYPE_MAX];
670 1.1 riastrad
671 1.98 riastrad time_t wgp_last_cookiesecret_time;
672 1.98 riastrad uint8_t wgp_cookiesecret[WG_COOKIESECRET_LEN];
673 1.1 riastrad
674 1.1 riastrad struct wg_ppsratecheck wgp_ppsratecheck;
675 1.1 riastrad
676 1.55 riastrad struct work wgp_work;
677 1.55 riastrad unsigned int wgp_tasks;
678 1.1 riastrad #define WGP_TASK_SEND_INIT_MESSAGE __BIT(0)
679 1.49 riastrad #define WGP_TASK_RETRY_HANDSHAKE __BIT(1)
680 1.49 riastrad #define WGP_TASK_ESTABLISH_SESSION __BIT(2)
681 1.49 riastrad #define WGP_TASK_ENDPOINT_CHANGED __BIT(3)
682 1.49 riastrad #define WGP_TASK_SEND_KEEPALIVE_MESSAGE __BIT(4)
683 1.49 riastrad #define WGP_TASK_DESTROY_PREV_SESSION __BIT(5)
684 1.1 riastrad };
685 1.1 riastrad
686 1.1 riastrad struct wg_ops;
687 1.1 riastrad
688 1.1 riastrad struct wg_softc {
689 1.1 riastrad struct ifnet wg_if;
690 1.1 riastrad LIST_ENTRY(wg_softc) wg_list;
691 1.1 riastrad kmutex_t *wg_lock;
692 1.55 riastrad kmutex_t *wg_intr_lock;
693 1.1 riastrad krwlock_t *wg_rwlock;
694 1.1 riastrad
695 1.1 riastrad uint8_t wg_privkey[WG_STATIC_KEY_LEN];
696 1.1 riastrad uint8_t wg_pubkey[WG_STATIC_KEY_LEN];
697 1.1 riastrad
698 1.1 riastrad int wg_npeers;
699 1.1 riastrad struct pslist_head wg_peers;
700 1.37 riastrad struct thmap *wg_peers_bypubkey;
701 1.37 riastrad struct thmap *wg_peers_byname;
702 1.37 riastrad struct thmap *wg_sessions_byindex;
703 1.1 riastrad uint16_t wg_listen_port;
704 1.1 riastrad
705 1.55 riastrad struct threadpool *wg_threadpool;
706 1.1 riastrad
707 1.55 riastrad struct threadpool_job wg_job;
708 1.55 riastrad int wg_upcalls;
709 1.55 riastrad #define WG_UPCALL_INET __BIT(0)
710 1.55 riastrad #define WG_UPCALL_INET6 __BIT(1)
711 1.55 riastrad
712 1.55 riastrad #ifdef INET
713 1.55 riastrad struct socket *wg_so4;
714 1.1 riastrad struct radix_node_head *wg_rtable_ipv4;
715 1.55 riastrad #endif
716 1.55 riastrad #ifdef INET6
717 1.55 riastrad struct socket *wg_so6;
718 1.1 riastrad struct radix_node_head *wg_rtable_ipv6;
719 1.55 riastrad #endif
720 1.1 riastrad
721 1.1 riastrad struct wg_ppsratecheck wg_ppsratecheck;
722 1.1 riastrad
723 1.1 riastrad struct wg_ops *wg_ops;
724 1.1 riastrad
725 1.1 riastrad #ifdef WG_RUMPKERNEL
726 1.1 riastrad struct wg_user *wg_user;
727 1.1 riastrad #endif
728 1.1 riastrad };
729 1.1 riastrad
730 1.21 riastrad /* [W] 6.1 Preliminaries */
731 1.21 riastrad #define WG_REKEY_AFTER_MESSAGES (1ULL << 60)
732 1.21 riastrad #define WG_REJECT_AFTER_MESSAGES (UINT64_MAX - (1 << 13))
733 1.1 riastrad #define WG_REKEY_AFTER_TIME 120
734 1.1 riastrad #define WG_REJECT_AFTER_TIME 180
735 1.1 riastrad #define WG_REKEY_ATTEMPT_TIME 90
736 1.1 riastrad #define WG_REKEY_TIMEOUT 5
737 1.1 riastrad #define WG_KEEPALIVE_TIMEOUT 10
738 1.1 riastrad
739 1.1 riastrad #define WG_COOKIE_TIME 120
740 1.98 riastrad #define WG_COOKIESECRET_TIME (2 * 60)
741 1.1 riastrad
742 1.1 riastrad static uint64_t wg_rekey_after_messages = WG_REKEY_AFTER_MESSAGES;
743 1.1 riastrad static uint64_t wg_reject_after_messages = WG_REJECT_AFTER_MESSAGES;
744 1.21 riastrad static unsigned wg_rekey_after_time = WG_REKEY_AFTER_TIME;
745 1.21 riastrad static unsigned wg_reject_after_time = WG_REJECT_AFTER_TIME;
746 1.21 riastrad static unsigned wg_rekey_attempt_time = WG_REKEY_ATTEMPT_TIME;
747 1.21 riastrad static unsigned wg_rekey_timeout = WG_REKEY_TIMEOUT;
748 1.21 riastrad static unsigned wg_keepalive_timeout = WG_KEEPALIVE_TIMEOUT;
749 1.1 riastrad
750 1.1 riastrad static struct mbuf *
751 1.1 riastrad wg_get_mbuf(size_t, size_t);
752 1.1 riastrad
753 1.108 riastrad static void wg_send_data_msg(struct wg_peer *, struct wg_session *,
754 1.1 riastrad struct mbuf *);
755 1.108 riastrad static void wg_send_cookie_msg(struct wg_softc *, struct wg_peer *,
756 1.114 riastrad const uint32_t, const uint8_t[static WG_MAC_LEN],
757 1.77 mrg const struct sockaddr *);
758 1.108 riastrad static void wg_send_handshake_msg_resp(struct wg_softc *, struct wg_peer *,
759 1.49 riastrad struct wg_session *, const struct wg_msg_init *);
760 1.1 riastrad static void wg_send_keepalive_msg(struct wg_peer *, struct wg_session *);
761 1.1 riastrad
762 1.1 riastrad static struct wg_peer *
763 1.1 riastrad wg_pick_peer_by_sa(struct wg_softc *, const struct sockaddr *,
764 1.1 riastrad struct psref *);
765 1.1 riastrad static struct wg_peer *
766 1.1 riastrad wg_lookup_peer_by_pubkey(struct wg_softc *,
767 1.114 riastrad const uint8_t[static WG_STATIC_KEY_LEN], struct psref *);
768 1.1 riastrad
769 1.1 riastrad static struct wg_session *
770 1.1 riastrad wg_lookup_session_by_index(struct wg_softc *,
771 1.1 riastrad const uint32_t, struct psref *);
772 1.1 riastrad
773 1.1 riastrad static void wg_update_endpoint_if_necessary(struct wg_peer *,
774 1.1 riastrad const struct sockaddr *);
775 1.1 riastrad
776 1.1 riastrad static void wg_schedule_session_dtor_timer(struct wg_peer *);
777 1.1 riastrad
778 1.1 riastrad static bool wg_is_underload(struct wg_softc *, struct wg_peer *, int);
779 1.1 riastrad static void wg_calculate_keys(struct wg_session *, const bool);
780 1.1 riastrad
781 1.1 riastrad static void wg_clear_states(struct wg_session *);
782 1.1 riastrad
783 1.1 riastrad static void wg_get_peer(struct wg_peer *, struct psref *);
784 1.1 riastrad static void wg_put_peer(struct wg_peer *, struct psref *);
785 1.1 riastrad
786 1.1 riastrad static int wg_send_so(struct wg_peer *, struct mbuf *);
787 1.1 riastrad static int wg_send_udp(struct wg_peer *, struct mbuf *);
788 1.1 riastrad static int wg_output(struct ifnet *, struct mbuf *,
789 1.1 riastrad const struct sockaddr *, const struct rtentry *);
790 1.1 riastrad static void wg_input(struct ifnet *, struct mbuf *, const int);
791 1.1 riastrad static int wg_ioctl(struct ifnet *, u_long, void *);
792 1.1 riastrad static int wg_bind_port(struct wg_softc *, const uint16_t);
793 1.1 riastrad static int wg_init(struct ifnet *);
794 1.60 riastrad #ifdef ALTQ
795 1.60 riastrad static void wg_start(struct ifnet *);
796 1.60 riastrad #endif
797 1.1 riastrad static void wg_stop(struct ifnet *, int);
798 1.1 riastrad
799 1.55 riastrad static void wg_peer_work(struct work *, void *);
800 1.55 riastrad static void wg_job(struct threadpool_job *);
801 1.54 riastrad static void wgintr(void *);
802 1.49 riastrad static void wg_purge_pending_packets(struct wg_peer *);
803 1.49 riastrad
804 1.1 riastrad static int wg_clone_create(struct if_clone *, int);
805 1.1 riastrad static int wg_clone_destroy(struct ifnet *);
806 1.1 riastrad
807 1.1 riastrad struct wg_ops {
808 1.1 riastrad int (*send_hs_msg)(struct wg_peer *, struct mbuf *);
809 1.1 riastrad int (*send_data_msg)(struct wg_peer *, struct mbuf *);
810 1.1 riastrad void (*input)(struct ifnet *, struct mbuf *, const int);
811 1.1 riastrad int (*bind_port)(struct wg_softc *, const uint16_t);
812 1.1 riastrad };
813 1.1 riastrad
814 1.1 riastrad struct wg_ops wg_ops_rumpkernel = {
815 1.1 riastrad .send_hs_msg = wg_send_so,
816 1.1 riastrad .send_data_msg = wg_send_udp,
817 1.1 riastrad .input = wg_input,
818 1.1 riastrad .bind_port = wg_bind_port,
819 1.1 riastrad };
820 1.1 riastrad
821 1.1 riastrad #ifdef WG_RUMPKERNEL
822 1.1 riastrad static bool wg_user_mode(struct wg_softc *);
823 1.1 riastrad static int wg_ioctl_linkstr(struct wg_softc *, struct ifdrv *);
824 1.1 riastrad
825 1.1 riastrad static int wg_send_user(struct wg_peer *, struct mbuf *);
826 1.1 riastrad static void wg_input_user(struct ifnet *, struct mbuf *, const int);
827 1.1 riastrad static int wg_bind_port_user(struct wg_softc *, const uint16_t);
828 1.1 riastrad
829 1.1 riastrad struct wg_ops wg_ops_rumpuser = {
830 1.1 riastrad .send_hs_msg = wg_send_user,
831 1.1 riastrad .send_data_msg = wg_send_user,
832 1.1 riastrad .input = wg_input_user,
833 1.1 riastrad .bind_port = wg_bind_port_user,
834 1.1 riastrad };
835 1.1 riastrad #endif
836 1.1 riastrad
837 1.1 riastrad #define WG_PEER_READER_FOREACH(wgp, wg) \
838 1.1 riastrad PSLIST_READER_FOREACH((wgp), &(wg)->wg_peers, struct wg_peer, \
839 1.1 riastrad wgp_peerlist_entry)
840 1.1 riastrad #define WG_PEER_WRITER_FOREACH(wgp, wg) \
841 1.1 riastrad PSLIST_WRITER_FOREACH((wgp), &(wg)->wg_peers, struct wg_peer, \
842 1.1 riastrad wgp_peerlist_entry)
843 1.1 riastrad #define WG_PEER_WRITER_INSERT_HEAD(wgp, wg) \
844 1.1 riastrad PSLIST_WRITER_INSERT_HEAD(&(wg)->wg_peers, (wgp), wgp_peerlist_entry)
845 1.1 riastrad #define WG_PEER_WRITER_REMOVE(wgp) \
846 1.1 riastrad PSLIST_WRITER_REMOVE((wgp), wgp_peerlist_entry)
847 1.1 riastrad
848 1.1 riastrad struct wg_route {
849 1.1 riastrad struct radix_node wgr_nodes[2];
850 1.1 riastrad struct wg_peer *wgr_peer;
851 1.1 riastrad };
852 1.1 riastrad
853 1.1 riastrad static struct radix_node_head *
854 1.1 riastrad wg_rnh(struct wg_softc *wg, const int family)
855 1.1 riastrad {
856 1.1 riastrad
857 1.1 riastrad switch (family) {
858 1.109 riastrad #ifdef INET
859 1.1 riastrad case AF_INET:
860 1.1 riastrad return wg->wg_rtable_ipv4;
861 1.109 riastrad #endif
862 1.1 riastrad #ifdef INET6
863 1.1 riastrad case AF_INET6:
864 1.1 riastrad return wg->wg_rtable_ipv6;
865 1.1 riastrad #endif
866 1.1 riastrad default:
867 1.1 riastrad return NULL;
868 1.1 riastrad }
869 1.1 riastrad }
870 1.1 riastrad
871 1.1 riastrad
872 1.1 riastrad /*
873 1.1 riastrad * Global variables
874 1.1 riastrad */
875 1.59 riastrad static volatile unsigned wg_count __cacheline_aligned;
876 1.1 riastrad
877 1.1 riastrad struct psref_class *wg_psref_class __read_mostly;
878 1.1 riastrad
879 1.1 riastrad static struct if_clone wg_cloner =
880 1.1 riastrad IF_CLONE_INITIALIZER("wg", wg_clone_create, wg_clone_destroy);
881 1.1 riastrad
882 1.54 riastrad static struct pktqueue *wg_pktq __read_mostly;
883 1.55 riastrad static struct workqueue *wg_wq __read_mostly;
884 1.1 riastrad
885 1.1 riastrad void wgattach(int);
886 1.1 riastrad /* ARGSUSED */
887 1.1 riastrad void
888 1.1 riastrad wgattach(int count)
889 1.1 riastrad {
890 1.1 riastrad /*
891 1.1 riastrad * Nothing to do here, initialization is handled by the
892 1.1 riastrad * module initialization code in wginit() below).
893 1.1 riastrad */
894 1.1 riastrad }
895 1.1 riastrad
896 1.1 riastrad static void
897 1.1 riastrad wginit(void)
898 1.1 riastrad {
899 1.1 riastrad
900 1.1 riastrad wg_psref_class = psref_class_create("wg", IPL_SOFTNET);
901 1.1 riastrad
902 1.58 riastrad if_clone_attach(&wg_cloner);
903 1.58 riastrad }
904 1.58 riastrad
905 1.58 riastrad /*
906 1.58 riastrad * XXX Kludge: This should just happen in wginit, but workqueue_create
907 1.58 riastrad * cannot be run until after CPUs have been detected, and wginit runs
908 1.58 riastrad * before configure.
909 1.58 riastrad */
910 1.58 riastrad static int
911 1.58 riastrad wginitqueues(void)
912 1.58 riastrad {
913 1.58 riastrad int error __diagused;
914 1.58 riastrad
915 1.54 riastrad wg_pktq = pktq_create(IFQ_MAXLEN, wgintr, NULL);
916 1.54 riastrad KASSERT(wg_pktq != NULL);
917 1.54 riastrad
918 1.55 riastrad error = workqueue_create(&wg_wq, "wgpeer", wg_peer_work, NULL,
919 1.55 riastrad PRI_NONE, IPL_SOFTNET, WQ_MPSAFE|WQ_PERCPU);
920 1.108 riastrad KASSERTMSG(error == 0, "error=%d", error);
921 1.55 riastrad
922 1.58 riastrad return 0;
923 1.58 riastrad }
924 1.58 riastrad
925 1.58 riastrad static void
926 1.58 riastrad wg_guarantee_initialized(void)
927 1.58 riastrad {
928 1.58 riastrad static ONCE_DECL(init);
929 1.58 riastrad int error __diagused;
930 1.58 riastrad
931 1.58 riastrad error = RUN_ONCE(&init, wginitqueues);
932 1.108 riastrad KASSERTMSG(error == 0, "error=%d", error);
933 1.1 riastrad }
934 1.1 riastrad
935 1.1 riastrad static int
936 1.59 riastrad wg_count_inc(void)
937 1.59 riastrad {
938 1.59 riastrad unsigned o, n;
939 1.59 riastrad
940 1.59 riastrad do {
941 1.59 riastrad o = atomic_load_relaxed(&wg_count);
942 1.59 riastrad if (o == UINT_MAX)
943 1.59 riastrad return ENFILE;
944 1.59 riastrad n = o + 1;
945 1.59 riastrad } while (atomic_cas_uint(&wg_count, o, n) != o);
946 1.59 riastrad
947 1.59 riastrad return 0;
948 1.59 riastrad }
949 1.59 riastrad
950 1.59 riastrad static void
951 1.59 riastrad wg_count_dec(void)
952 1.59 riastrad {
953 1.59 riastrad unsigned c __diagused;
954 1.59 riastrad
955 1.118 riastrad membar_release(); /* match atomic_load_acquire in wgdetach */
956 1.59 riastrad c = atomic_dec_uint_nv(&wg_count);
957 1.59 riastrad KASSERT(c != UINT_MAX);
958 1.59 riastrad }
959 1.59 riastrad
960 1.59 riastrad static int
961 1.1 riastrad wgdetach(void)
962 1.1 riastrad {
963 1.1 riastrad
964 1.59 riastrad /* Prevent new interface creation. */
965 1.59 riastrad if_clone_detach(&wg_cloner);
966 1.59 riastrad
967 1.118 riastrad /*
968 1.118 riastrad * Check whether there are any existing interfaces. Matches
969 1.118 riastrad * membar_release and atomic_dec_uint_nv in wg_count_dec.
970 1.118 riastrad */
971 1.118 riastrad if (atomic_load_acquire(&wg_count)) {
972 1.59 riastrad /* Back out -- reattach the cloner. */
973 1.59 riastrad if_clone_attach(&wg_cloner);
974 1.59 riastrad return EBUSY;
975 1.1 riastrad }
976 1.1 riastrad
977 1.59 riastrad /* No interfaces left. Nuke it. */
978 1.92 riastrad if (wg_wq)
979 1.92 riastrad workqueue_destroy(wg_wq);
980 1.92 riastrad if (wg_pktq)
981 1.92 riastrad pktq_destroy(wg_pktq);
982 1.59 riastrad psref_class_destroy(wg_psref_class);
983 1.1 riastrad
984 1.59 riastrad return 0;
985 1.1 riastrad }
986 1.1 riastrad
987 1.1 riastrad static void
988 1.114 riastrad wg_init_key_and_hash(uint8_t ckey[static WG_CHAINING_KEY_LEN],
989 1.114 riastrad uint8_t hash[static WG_HASH_LEN])
990 1.1 riastrad {
991 1.1 riastrad /* [W] 5.4: CONSTRUCTION */
992 1.1 riastrad const char *signature = "Noise_IKpsk2_25519_ChaChaPoly_BLAKE2s";
993 1.1 riastrad /* [W] 5.4: IDENTIFIER */
994 1.1 riastrad const char *id = "WireGuard v1 zx2c4 Jason (at) zx2c4.com";
995 1.1 riastrad struct blake2s state;
996 1.1 riastrad
997 1.1 riastrad blake2s(ckey, WG_CHAINING_KEY_LEN, NULL, 0,
998 1.1 riastrad signature, strlen(signature));
999 1.1 riastrad
1000 1.1 riastrad CTASSERT(WG_HASH_LEN == WG_CHAINING_KEY_LEN);
1001 1.1 riastrad memcpy(hash, ckey, WG_CHAINING_KEY_LEN);
1002 1.1 riastrad
1003 1.1 riastrad blake2s_init(&state, WG_HASH_LEN, NULL, 0);
1004 1.1 riastrad blake2s_update(&state, ckey, WG_CHAINING_KEY_LEN);
1005 1.1 riastrad blake2s_update(&state, id, strlen(id));
1006 1.1 riastrad blake2s_final(&state, hash);
1007 1.1 riastrad
1008 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1009 1.1 riastrad WG_DUMP_HASH("hash", hash);
1010 1.1 riastrad }
1011 1.1 riastrad
1012 1.1 riastrad static void
1013 1.114 riastrad wg_algo_hash(uint8_t hash[static WG_HASH_LEN], const uint8_t input[],
1014 1.1 riastrad const size_t inputsize)
1015 1.1 riastrad {
1016 1.1 riastrad struct blake2s state;
1017 1.1 riastrad
1018 1.1 riastrad blake2s_init(&state, WG_HASH_LEN, NULL, 0);
1019 1.1 riastrad blake2s_update(&state, hash, WG_HASH_LEN);
1020 1.1 riastrad blake2s_update(&state, input, inputsize);
1021 1.1 riastrad blake2s_final(&state, hash);
1022 1.1 riastrad }
1023 1.1 riastrad
1024 1.1 riastrad static void
1025 1.1 riastrad wg_algo_mac(uint8_t out[], const size_t outsize,
1026 1.1 riastrad const uint8_t key[], const size_t keylen,
1027 1.1 riastrad const uint8_t input1[], const size_t input1len,
1028 1.1 riastrad const uint8_t input2[], const size_t input2len)
1029 1.1 riastrad {
1030 1.1 riastrad struct blake2s state;
1031 1.1 riastrad
1032 1.1 riastrad blake2s_init(&state, outsize, key, keylen);
1033 1.1 riastrad
1034 1.1 riastrad blake2s_update(&state, input1, input1len);
1035 1.1 riastrad if (input2 != NULL)
1036 1.1 riastrad blake2s_update(&state, input2, input2len);
1037 1.1 riastrad blake2s_final(&state, out);
1038 1.1 riastrad }
1039 1.1 riastrad
1040 1.1 riastrad static void
1041 1.1 riastrad wg_algo_mac_mac1(uint8_t out[], const size_t outsize,
1042 1.1 riastrad const uint8_t input1[], const size_t input1len,
1043 1.1 riastrad const uint8_t input2[], const size_t input2len)
1044 1.1 riastrad {
1045 1.1 riastrad struct blake2s state;
1046 1.1 riastrad /* [W] 5.4: LABEL-MAC1 */
1047 1.1 riastrad const char *label = "mac1----";
1048 1.1 riastrad uint8_t key[WG_HASH_LEN];
1049 1.1 riastrad
1050 1.1 riastrad blake2s_init(&state, sizeof(key), NULL, 0);
1051 1.1 riastrad blake2s_update(&state, label, strlen(label));
1052 1.1 riastrad blake2s_update(&state, input1, input1len);
1053 1.1 riastrad blake2s_final(&state, key);
1054 1.1 riastrad
1055 1.1 riastrad blake2s_init(&state, outsize, key, sizeof(key));
1056 1.1 riastrad if (input2 != NULL)
1057 1.1 riastrad blake2s_update(&state, input2, input2len);
1058 1.1 riastrad blake2s_final(&state, out);
1059 1.1 riastrad }
1060 1.1 riastrad
1061 1.1 riastrad static void
1062 1.1 riastrad wg_algo_mac_cookie(uint8_t out[], const size_t outsize,
1063 1.1 riastrad const uint8_t input1[], const size_t input1len)
1064 1.1 riastrad {
1065 1.1 riastrad struct blake2s state;
1066 1.1 riastrad /* [W] 5.4: LABEL-COOKIE */
1067 1.1 riastrad const char *label = "cookie--";
1068 1.1 riastrad
1069 1.1 riastrad blake2s_init(&state, outsize, NULL, 0);
1070 1.1 riastrad blake2s_update(&state, label, strlen(label));
1071 1.1 riastrad blake2s_update(&state, input1, input1len);
1072 1.1 riastrad blake2s_final(&state, out);
1073 1.1 riastrad }
1074 1.1 riastrad
1075 1.1 riastrad static void
1076 1.114 riastrad wg_algo_generate_keypair(uint8_t pubkey[static WG_EPHEMERAL_KEY_LEN],
1077 1.114 riastrad uint8_t privkey[static WG_EPHEMERAL_KEY_LEN])
1078 1.1 riastrad {
1079 1.1 riastrad
1080 1.1 riastrad CTASSERT(WG_EPHEMERAL_KEY_LEN == crypto_scalarmult_curve25519_BYTES);
1081 1.1 riastrad
1082 1.3 riastrad cprng_strong(kern_cprng, privkey, WG_EPHEMERAL_KEY_LEN, 0);
1083 1.1 riastrad crypto_scalarmult_base(pubkey, privkey);
1084 1.1 riastrad }
1085 1.1 riastrad
1086 1.1 riastrad static void
1087 1.114 riastrad wg_algo_dh(uint8_t out[static WG_DH_OUTPUT_LEN],
1088 1.114 riastrad const uint8_t privkey[static WG_STATIC_KEY_LEN],
1089 1.114 riastrad const uint8_t pubkey[static WG_STATIC_KEY_LEN])
1090 1.1 riastrad {
1091 1.1 riastrad
1092 1.1 riastrad CTASSERT(WG_STATIC_KEY_LEN == crypto_scalarmult_curve25519_BYTES);
1093 1.1 riastrad
1094 1.19 riastrad int ret __diagused = crypto_scalarmult(out, privkey, pubkey);
1095 1.1 riastrad KASSERT(ret == 0);
1096 1.1 riastrad }
1097 1.1 riastrad
1098 1.1 riastrad static void
1099 1.1 riastrad wg_algo_hmac(uint8_t out[], const size_t outlen,
1100 1.1 riastrad const uint8_t key[], const size_t keylen,
1101 1.1 riastrad const uint8_t in[], const size_t inlen)
1102 1.1 riastrad {
1103 1.1 riastrad #define IPAD 0x36
1104 1.1 riastrad #define OPAD 0x5c
1105 1.1 riastrad uint8_t hmackey[HMAC_BLOCK_LEN] = {0};
1106 1.1 riastrad uint8_t ipad[HMAC_BLOCK_LEN];
1107 1.1 riastrad uint8_t opad[HMAC_BLOCK_LEN];
1108 1.65 christos size_t i;
1109 1.1 riastrad struct blake2s state;
1110 1.1 riastrad
1111 1.1 riastrad KASSERT(outlen == WG_HASH_LEN);
1112 1.1 riastrad KASSERT(keylen <= HMAC_BLOCK_LEN);
1113 1.1 riastrad
1114 1.1 riastrad memcpy(hmackey, key, keylen);
1115 1.1 riastrad
1116 1.1 riastrad for (i = 0; i < sizeof(hmackey); i++) {
1117 1.1 riastrad ipad[i] = hmackey[i] ^ IPAD;
1118 1.1 riastrad opad[i] = hmackey[i] ^ OPAD;
1119 1.1 riastrad }
1120 1.1 riastrad
1121 1.1 riastrad blake2s_init(&state, WG_HASH_LEN, NULL, 0);
1122 1.1 riastrad blake2s_update(&state, ipad, sizeof(ipad));
1123 1.1 riastrad blake2s_update(&state, in, inlen);
1124 1.1 riastrad blake2s_final(&state, out);
1125 1.1 riastrad
1126 1.1 riastrad blake2s_init(&state, WG_HASH_LEN, NULL, 0);
1127 1.1 riastrad blake2s_update(&state, opad, sizeof(opad));
1128 1.1 riastrad blake2s_update(&state, out, WG_HASH_LEN);
1129 1.1 riastrad blake2s_final(&state, out);
1130 1.1 riastrad #undef IPAD
1131 1.1 riastrad #undef OPAD
1132 1.1 riastrad }
1133 1.1 riastrad
1134 1.1 riastrad static void
1135 1.114 riastrad wg_algo_kdf(uint8_t out1[static WG_KDF_OUTPUT_LEN],
1136 1.114 riastrad uint8_t out2[WG_KDF_OUTPUT_LEN],
1137 1.114 riastrad uint8_t out3[WG_KDF_OUTPUT_LEN],
1138 1.114 riastrad const uint8_t ckey[static WG_CHAINING_KEY_LEN],
1139 1.1 riastrad const uint8_t input[], const size_t inputlen)
1140 1.1 riastrad {
1141 1.1 riastrad uint8_t tmp1[WG_KDF_OUTPUT_LEN], tmp2[WG_KDF_OUTPUT_LEN + 1];
1142 1.1 riastrad uint8_t one[1];
1143 1.1 riastrad
1144 1.1 riastrad /*
1145 1.14 riastrad * [N] 4.3: "an input_key_material byte sequence with length
1146 1.14 riastrad * either zero bytes, 32 bytes, or DHLEN bytes."
1147 1.1 riastrad */
1148 1.1 riastrad KASSERT(inputlen == 0 || inputlen == 32 || inputlen == NOISE_DHLEN);
1149 1.1 riastrad
1150 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1151 1.1 riastrad if (input != NULL)
1152 1.1 riastrad WG_DUMP_HASH("input", input);
1153 1.1 riastrad wg_algo_hmac(tmp1, sizeof(tmp1), ckey, WG_CHAINING_KEY_LEN,
1154 1.1 riastrad input, inputlen);
1155 1.1 riastrad WG_DUMP_HASH("tmp1", tmp1);
1156 1.1 riastrad one[0] = 1;
1157 1.1 riastrad wg_algo_hmac(out1, WG_KDF_OUTPUT_LEN, tmp1, sizeof(tmp1),
1158 1.1 riastrad one, sizeof(one));
1159 1.1 riastrad WG_DUMP_HASH("out1", out1);
1160 1.1 riastrad if (out2 == NULL)
1161 1.1 riastrad return;
1162 1.1 riastrad memcpy(tmp2, out1, WG_KDF_OUTPUT_LEN);
1163 1.1 riastrad tmp2[WG_KDF_OUTPUT_LEN] = 2;
1164 1.1 riastrad wg_algo_hmac(out2, WG_KDF_OUTPUT_LEN, tmp1, sizeof(tmp1),
1165 1.1 riastrad tmp2, sizeof(tmp2));
1166 1.1 riastrad WG_DUMP_HASH("out2", out2);
1167 1.1 riastrad if (out3 == NULL)
1168 1.1 riastrad return;
1169 1.1 riastrad memcpy(tmp2, out2, WG_KDF_OUTPUT_LEN);
1170 1.1 riastrad tmp2[WG_KDF_OUTPUT_LEN] = 3;
1171 1.1 riastrad wg_algo_hmac(out3, WG_KDF_OUTPUT_LEN, tmp1, sizeof(tmp1),
1172 1.1 riastrad tmp2, sizeof(tmp2));
1173 1.1 riastrad WG_DUMP_HASH("out3", out3);
1174 1.1 riastrad }
1175 1.1 riastrad
1176 1.63 riastrad static void __noinline
1177 1.114 riastrad wg_algo_dh_kdf(uint8_t ckey[static WG_CHAINING_KEY_LEN],
1178 1.1 riastrad uint8_t cipher_key[WG_CIPHER_KEY_LEN],
1179 1.114 riastrad const uint8_t local_key[static WG_STATIC_KEY_LEN],
1180 1.114 riastrad const uint8_t remote_key[static WG_STATIC_KEY_LEN])
1181 1.1 riastrad {
1182 1.1 riastrad uint8_t dhout[WG_DH_OUTPUT_LEN];
1183 1.1 riastrad
1184 1.1 riastrad wg_algo_dh(dhout, local_key, remote_key);
1185 1.1 riastrad wg_algo_kdf(ckey, cipher_key, NULL, ckey, dhout, sizeof(dhout));
1186 1.1 riastrad
1187 1.1 riastrad WG_DUMP_HASH("dhout", dhout);
1188 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1189 1.1 riastrad if (cipher_key != NULL)
1190 1.1 riastrad WG_DUMP_HASH("cipher_key", cipher_key);
1191 1.1 riastrad }
1192 1.1 riastrad
1193 1.1 riastrad static void
1194 1.114 riastrad wg_algo_aead_enc(uint8_t out[], size_t expected_outsize,
1195 1.114 riastrad const uint8_t key[static crypto_aead_chacha20poly1305_ietf_KEYBYTES],
1196 1.114 riastrad const uint64_t counter,
1197 1.114 riastrad const uint8_t plain[], const size_t plainsize,
1198 1.1 riastrad const uint8_t auth[], size_t authlen)
1199 1.1 riastrad {
1200 1.1 riastrad uint8_t nonce[(32 + 64) / 8] = {0};
1201 1.1 riastrad long long unsigned int outsize;
1202 1.1 riastrad int error __diagused;
1203 1.1 riastrad
1204 1.39 riastrad le64enc(&nonce[4], counter);
1205 1.1 riastrad
1206 1.1 riastrad error = crypto_aead_chacha20poly1305_ietf_encrypt(out, &outsize, plain,
1207 1.1 riastrad plainsize, auth, authlen, NULL, nonce, key);
1208 1.1 riastrad KASSERT(error == 0);
1209 1.1 riastrad KASSERT(outsize == expected_outsize);
1210 1.1 riastrad }
1211 1.1 riastrad
1212 1.1 riastrad static int
1213 1.114 riastrad wg_algo_aead_dec(uint8_t out[], size_t expected_outsize,
1214 1.114 riastrad const uint8_t key[static crypto_aead_chacha20poly1305_ietf_KEYBYTES],
1215 1.114 riastrad const uint64_t counter,
1216 1.114 riastrad const uint8_t encrypted[], const size_t encryptedsize,
1217 1.114 riastrad const uint8_t auth[], size_t authlen)
1218 1.1 riastrad {
1219 1.1 riastrad uint8_t nonce[(32 + 64) / 8] = {0};
1220 1.1 riastrad long long unsigned int outsize;
1221 1.1 riastrad int error;
1222 1.1 riastrad
1223 1.39 riastrad le64enc(&nonce[4], counter);
1224 1.1 riastrad
1225 1.1 riastrad error = crypto_aead_chacha20poly1305_ietf_decrypt(out, &outsize, NULL,
1226 1.1 riastrad encrypted, encryptedsize, auth, authlen, nonce, key);
1227 1.1 riastrad if (error == 0)
1228 1.1 riastrad KASSERT(outsize == expected_outsize);
1229 1.1 riastrad return error;
1230 1.1 riastrad }
1231 1.1 riastrad
1232 1.1 riastrad static void
1233 1.1 riastrad wg_algo_xaead_enc(uint8_t out[], const size_t expected_outsize,
1234 1.114 riastrad const uint8_t key[static crypto_aead_xchacha20poly1305_ietf_KEYBYTES],
1235 1.114 riastrad const uint8_t plain[], const size_t plainsize,
1236 1.1 riastrad const uint8_t auth[], size_t authlen,
1237 1.114 riastrad const uint8_t nonce[static WG_SALT_LEN])
1238 1.1 riastrad {
1239 1.1 riastrad long long unsigned int outsize;
1240 1.1 riastrad int error __diagused;
1241 1.1 riastrad
1242 1.1 riastrad CTASSERT(WG_SALT_LEN == crypto_aead_xchacha20poly1305_ietf_NPUBBYTES);
1243 1.14 riastrad error = crypto_aead_xchacha20poly1305_ietf_encrypt(out, &outsize,
1244 1.14 riastrad plain, plainsize, auth, authlen, NULL, nonce, key);
1245 1.1 riastrad KASSERT(error == 0);
1246 1.1 riastrad KASSERT(outsize == expected_outsize);
1247 1.1 riastrad }
1248 1.1 riastrad
1249 1.1 riastrad static int
1250 1.1 riastrad wg_algo_xaead_dec(uint8_t out[], const size_t expected_outsize,
1251 1.114 riastrad const uint8_t key[static crypto_aead_xchacha20poly1305_ietf_KEYBYTES],
1252 1.114 riastrad const uint8_t encrypted[], const size_t encryptedsize,
1253 1.1 riastrad const uint8_t auth[], size_t authlen,
1254 1.114 riastrad const uint8_t nonce[static WG_SALT_LEN])
1255 1.1 riastrad {
1256 1.1 riastrad long long unsigned int outsize;
1257 1.1 riastrad int error;
1258 1.1 riastrad
1259 1.1 riastrad error = crypto_aead_xchacha20poly1305_ietf_decrypt(out, &outsize, NULL,
1260 1.1 riastrad encrypted, encryptedsize, auth, authlen, nonce, key);
1261 1.1 riastrad if (error == 0)
1262 1.1 riastrad KASSERT(outsize == expected_outsize);
1263 1.1 riastrad return error;
1264 1.1 riastrad }
1265 1.1 riastrad
1266 1.1 riastrad static void
1267 1.15 riastrad wg_algo_tai64n(wg_timestamp_t timestamp)
1268 1.1 riastrad {
1269 1.1 riastrad struct timespec ts;
1270 1.1 riastrad
1271 1.1 riastrad /* FIXME strict TAI64N (https://cr.yp.to/libtai/tai64.html) */
1272 1.1 riastrad getnanotime(&ts);
1273 1.1 riastrad /* TAI64 label in external TAI64 format */
1274 1.65 christos be32enc(timestamp, 0x40000000U + (uint32_t)(ts.tv_sec >> 32));
1275 1.1 riastrad /* second beginning from 1970 TAI */
1276 1.65 christos be32enc(timestamp + 4, (uint32_t)(ts.tv_sec & 0xffffffffU));
1277 1.1 riastrad /* nanosecond in big-endian format */
1278 1.65 christos be32enc(timestamp + 8, (uint32_t)ts.tv_nsec);
1279 1.1 riastrad }
1280 1.1 riastrad
1281 1.49 riastrad /*
1282 1.49 riastrad * wg_get_stable_session(wgp, psref)
1283 1.49 riastrad *
1284 1.49 riastrad * Get a passive reference to the current stable session, or
1285 1.49 riastrad * return NULL if there is no current stable session.
1286 1.49 riastrad *
1287 1.49 riastrad * The pointer is always there but the session is not necessarily
1288 1.49 riastrad * ESTABLISHED; if it is not ESTABLISHED, return NULL. However,
1289 1.49 riastrad * the session may transition from ESTABLISHED to DESTROYING while
1290 1.49 riastrad * holding the passive reference.
1291 1.49 riastrad */
1292 1.1 riastrad static struct wg_session *
1293 1.49 riastrad wg_get_stable_session(struct wg_peer *wgp, struct psref *psref)
1294 1.1 riastrad {
1295 1.1 riastrad int s;
1296 1.1 riastrad struct wg_session *wgs;
1297 1.1 riastrad
1298 1.1 riastrad s = pserialize_read_enter();
1299 1.49 riastrad wgs = atomic_load_consume(&wgp->wgp_session_stable);
1300 1.123 riastrad if (__predict_false(atomic_load_relaxed(&wgs->wgs_state) !=
1301 1.123 riastrad WGS_STATE_ESTABLISHED))
1302 1.49 riastrad wgs = NULL;
1303 1.49 riastrad else
1304 1.49 riastrad psref_acquire(psref, &wgs->wgs_psref, wg_psref_class);
1305 1.1 riastrad pserialize_read_exit(s);
1306 1.1 riastrad
1307 1.1 riastrad return wgs;
1308 1.1 riastrad }
1309 1.1 riastrad
1310 1.1 riastrad static void
1311 1.49 riastrad wg_put_session(struct wg_session *wgs, struct psref *psref)
1312 1.1 riastrad {
1313 1.1 riastrad
1314 1.49 riastrad psref_release(psref, &wgs->wgs_psref, wg_psref_class);
1315 1.1 riastrad }
1316 1.1 riastrad
1317 1.1 riastrad static void
1318 1.49 riastrad wg_destroy_session(struct wg_softc *wg, struct wg_session *wgs)
1319 1.1 riastrad {
1320 1.49 riastrad struct wg_peer *wgp = wgs->wgs_peer;
1321 1.49 riastrad struct wg_session *wgs0 __diagused;
1322 1.49 riastrad void *garbage;
1323 1.49 riastrad
1324 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1325 1.49 riastrad KASSERT(wgs->wgs_state != WGS_STATE_UNKNOWN);
1326 1.1 riastrad
1327 1.49 riastrad /* Remove the session from the table. */
1328 1.49 riastrad wgs0 = thmap_del(wg->wg_sessions_byindex,
1329 1.49 riastrad &wgs->wgs_local_index, sizeof(wgs->wgs_local_index));
1330 1.49 riastrad KASSERT(wgs0 == wgs);
1331 1.49 riastrad garbage = thmap_stage_gc(wg->wg_sessions_byindex);
1332 1.1 riastrad
1333 1.49 riastrad /* Wait for passive references to drain. */
1334 1.49 riastrad pserialize_perform(wgp->wgp_psz);
1335 1.49 riastrad psref_target_destroy(&wgs->wgs_psref, wg_psref_class);
1336 1.1 riastrad
1337 1.94 riastrad /*
1338 1.94 riastrad * Free memory, zero state, and transition to UNKNOWN. We have
1339 1.94 riastrad * exclusive access to the session now, so there is no need for
1340 1.94 riastrad * an atomic store.
1341 1.94 riastrad */
1342 1.49 riastrad thmap_gc(wg->wg_sessions_byindex, garbage);
1343 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"] -> WGS_STATE_UNKNOWN\n",
1344 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
1345 1.94 riastrad wgs->wgs_local_index = 0;
1346 1.94 riastrad wgs->wgs_remote_index = 0;
1347 1.49 riastrad wg_clear_states(wgs);
1348 1.49 riastrad wgs->wgs_state = WGS_STATE_UNKNOWN;
1349 1.113 riastrad wgs->wgs_force_rekey = false;
1350 1.1 riastrad }
1351 1.1 riastrad
1352 1.49 riastrad /*
1353 1.49 riastrad * wg_get_session_index(wg, wgs)
1354 1.49 riastrad *
1355 1.49 riastrad * Choose a session index for wgs->wgs_local_index, and store it
1356 1.49 riastrad * in wg's table of sessions by index.
1357 1.49 riastrad *
1358 1.49 riastrad * wgs must be the unstable session of its peer, and must be
1359 1.49 riastrad * transitioning out of the UNKNOWN state.
1360 1.49 riastrad */
1361 1.1 riastrad static void
1362 1.49 riastrad wg_get_session_index(struct wg_softc *wg, struct wg_session *wgs)
1363 1.1 riastrad {
1364 1.49 riastrad struct wg_peer *wgp __diagused = wgs->wgs_peer;
1365 1.37 riastrad struct wg_session *wgs0;
1366 1.37 riastrad uint32_t index;
1367 1.37 riastrad
1368 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1369 1.49 riastrad KASSERT(wgs == wgp->wgp_session_unstable);
1370 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1371 1.94 riastrad wgs->wgs_state);
1372 1.37 riastrad
1373 1.49 riastrad do {
1374 1.49 riastrad /* Pick a uniform random index. */
1375 1.49 riastrad index = cprng_strong32();
1376 1.49 riastrad
1377 1.49 riastrad /* Try to take it. */
1378 1.49 riastrad wgs->wgs_local_index = index;
1379 1.49 riastrad wgs0 = thmap_put(wg->wg_sessions_byindex,
1380 1.49 riastrad &wgs->wgs_local_index, sizeof wgs->wgs_local_index, wgs);
1381 1.37 riastrad
1382 1.49 riastrad /* If someone else beat us, start over. */
1383 1.49 riastrad } while (__predict_false(wgs0 != wgs));
1384 1.49 riastrad }
1385 1.37 riastrad
1386 1.49 riastrad /*
1387 1.49 riastrad * wg_put_session_index(wg, wgs)
1388 1.49 riastrad *
1389 1.49 riastrad * Remove wgs from the table of sessions by index, wait for any
1390 1.49 riastrad * passive references to drain, and transition the session to the
1391 1.49 riastrad * UNKNOWN state.
1392 1.49 riastrad *
1393 1.49 riastrad * wgs must be the unstable session of its peer, and must not be
1394 1.49 riastrad * UNKNOWN or ESTABLISHED.
1395 1.49 riastrad */
1396 1.49 riastrad static void
1397 1.49 riastrad wg_put_session_index(struct wg_softc *wg, struct wg_session *wgs)
1398 1.49 riastrad {
1399 1.52 riastrad struct wg_peer *wgp __diagused = wgs->wgs_peer;
1400 1.37 riastrad
1401 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1402 1.49 riastrad KASSERT(wgs->wgs_state != WGS_STATE_UNKNOWN);
1403 1.49 riastrad KASSERT(wgs->wgs_state != WGS_STATE_ESTABLISHED);
1404 1.37 riastrad
1405 1.49 riastrad wg_destroy_session(wg, wgs);
1406 1.49 riastrad psref_target_init(&wgs->wgs_psref, wg_psref_class);
1407 1.37 riastrad }
1408 1.37 riastrad
1409 1.1 riastrad /*
1410 1.1 riastrad * Handshake patterns
1411 1.1 riastrad *
1412 1.1 riastrad * [W] 5: "These messages use the "IK" pattern from Noise"
1413 1.1 riastrad * [N] 7.5. Interactive handshake patterns (fundamental)
1414 1.1 riastrad * "The first character refers to the initiators static key:"
1415 1.1 riastrad * "I = Static key for initiator Immediately transmitted to responder,
1416 1.1 riastrad * despite reduced or absent identity hiding"
1417 1.1 riastrad * "The second character refers to the responders static key:"
1418 1.1 riastrad * "K = Static key for responder Known to initiator"
1419 1.1 riastrad * "IK:
1420 1.1 riastrad * <- s
1421 1.1 riastrad * ...
1422 1.1 riastrad * -> e, es, s, ss
1423 1.1 riastrad * <- e, ee, se"
1424 1.1 riastrad * [N] 9.4. Pattern modifiers
1425 1.1 riastrad * "IKpsk2:
1426 1.1 riastrad * <- s
1427 1.1 riastrad * ...
1428 1.1 riastrad * -> e, es, s, ss
1429 1.1 riastrad * <- e, ee, se, psk"
1430 1.1 riastrad */
1431 1.1 riastrad static void
1432 1.1 riastrad wg_fill_msg_init(struct wg_softc *wg, struct wg_peer *wgp,
1433 1.1 riastrad struct wg_session *wgs, struct wg_msg_init *wgmi)
1434 1.1 riastrad {
1435 1.1 riastrad uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.2: Ci */
1436 1.1 riastrad uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.2: Hi */
1437 1.1 riastrad uint8_t cipher_key[WG_CIPHER_KEY_LEN];
1438 1.1 riastrad uint8_t pubkey[WG_EPHEMERAL_KEY_LEN];
1439 1.1 riastrad uint8_t privkey[WG_EPHEMERAL_KEY_LEN];
1440 1.1 riastrad
1441 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1442 1.49 riastrad KASSERT(wgs == wgp->wgp_session_unstable);
1443 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_INIT_ACTIVE, "state=%d",
1444 1.94 riastrad wgs->wgs_state);
1445 1.49 riastrad
1446 1.39 riastrad wgmi->wgmi_type = htole32(WG_MSG_TYPE_INIT);
1447 1.49 riastrad wgmi->wgmi_sender = wgs->wgs_local_index;
1448 1.1 riastrad
1449 1.1 riastrad /* [W] 5.4.2: First Message: Initiator to Responder */
1450 1.1 riastrad
1451 1.1 riastrad /* Ci := HASH(CONSTRUCTION) */
1452 1.1 riastrad /* Hi := HASH(Ci || IDENTIFIER) */
1453 1.1 riastrad wg_init_key_and_hash(ckey, hash);
1454 1.1 riastrad /* Hi := HASH(Hi || Sr^pub) */
1455 1.1 riastrad wg_algo_hash(hash, wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey));
1456 1.1 riastrad
1457 1.1 riastrad WG_DUMP_HASH("hash", hash);
1458 1.1 riastrad
1459 1.1 riastrad /* [N] 2.2: "e" */
1460 1.1 riastrad /* Ei^priv, Ei^pub := DH-GENERATE() */
1461 1.1 riastrad wg_algo_generate_keypair(pubkey, privkey);
1462 1.1 riastrad /* Ci := KDF1(Ci, Ei^pub) */
1463 1.1 riastrad wg_algo_kdf(ckey, NULL, NULL, ckey, pubkey, sizeof(pubkey));
1464 1.1 riastrad /* msg.ephemeral := Ei^pub */
1465 1.1 riastrad memcpy(wgmi->wgmi_ephemeral, pubkey, sizeof(wgmi->wgmi_ephemeral));
1466 1.1 riastrad /* Hi := HASH(Hi || msg.ephemeral) */
1467 1.1 riastrad wg_algo_hash(hash, pubkey, sizeof(pubkey));
1468 1.1 riastrad
1469 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1470 1.1 riastrad WG_DUMP_HASH("hash", hash);
1471 1.1 riastrad
1472 1.1 riastrad /* [N] 2.2: "es" */
1473 1.1 riastrad /* Ci, k := KDF2(Ci, DH(Ei^priv, Sr^pub)) */
1474 1.1 riastrad wg_algo_dh_kdf(ckey, cipher_key, privkey, wgp->wgp_pubkey);
1475 1.1 riastrad
1476 1.1 riastrad /* [N] 2.2: "s" */
1477 1.1 riastrad /* msg.static := AEAD(k, 0, Si^pub, Hi) */
1478 1.1 riastrad wg_algo_aead_enc(wgmi->wgmi_static, sizeof(wgmi->wgmi_static),
1479 1.1 riastrad cipher_key, 0, wg->wg_pubkey, sizeof(wg->wg_pubkey),
1480 1.1 riastrad hash, sizeof(hash));
1481 1.1 riastrad /* Hi := HASH(Hi || msg.static) */
1482 1.1 riastrad wg_algo_hash(hash, wgmi->wgmi_static, sizeof(wgmi->wgmi_static));
1483 1.1 riastrad
1484 1.1 riastrad WG_DUMP_HASH48("wgmi_static", wgmi->wgmi_static);
1485 1.1 riastrad
1486 1.1 riastrad /* [N] 2.2: "ss" */
1487 1.1 riastrad /* Ci, k := KDF2(Ci, DH(Si^priv, Sr^pub)) */
1488 1.1 riastrad wg_algo_dh_kdf(ckey, cipher_key, wg->wg_privkey, wgp->wgp_pubkey);
1489 1.1 riastrad
1490 1.1 riastrad /* msg.timestamp := AEAD(k, TIMESTAMP(), Hi) */
1491 1.1 riastrad wg_timestamp_t timestamp;
1492 1.1 riastrad wg_algo_tai64n(timestamp);
1493 1.1 riastrad wg_algo_aead_enc(wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp),
1494 1.1 riastrad cipher_key, 0, timestamp, sizeof(timestamp), hash, sizeof(hash));
1495 1.1 riastrad /* Hi := HASH(Hi || msg.timestamp) */
1496 1.1 riastrad wg_algo_hash(hash, wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp));
1497 1.1 riastrad
1498 1.1 riastrad /* [W] 5.4.4 Cookie MACs */
1499 1.1 riastrad wg_algo_mac_mac1(wgmi->wgmi_mac1, sizeof(wgmi->wgmi_mac1),
1500 1.1 riastrad wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey),
1501 1.17 riastrad (const uint8_t *)wgmi, offsetof(struct wg_msg_init, wgmi_mac1));
1502 1.1 riastrad /* Need mac1 to decrypt a cookie from a cookie message */
1503 1.1 riastrad memcpy(wgp->wgp_last_sent_mac1, wgmi->wgmi_mac1,
1504 1.1 riastrad sizeof(wgp->wgp_last_sent_mac1));
1505 1.1 riastrad wgp->wgp_last_sent_mac1_valid = true;
1506 1.1 riastrad
1507 1.1 riastrad if (wgp->wgp_latest_cookie_time == 0 ||
1508 1.1 riastrad (time_uptime - wgp->wgp_latest_cookie_time) >= WG_COOKIE_TIME)
1509 1.1 riastrad memset(wgmi->wgmi_mac2, 0, sizeof(wgmi->wgmi_mac2));
1510 1.1 riastrad else {
1511 1.1 riastrad wg_algo_mac(wgmi->wgmi_mac2, sizeof(wgmi->wgmi_mac2),
1512 1.1 riastrad wgp->wgp_latest_cookie, WG_COOKIE_LEN,
1513 1.17 riastrad (const uint8_t *)wgmi,
1514 1.17 riastrad offsetof(struct wg_msg_init, wgmi_mac2),
1515 1.1 riastrad NULL, 0);
1516 1.1 riastrad }
1517 1.1 riastrad
1518 1.1 riastrad memcpy(wgs->wgs_ephemeral_key_pub, pubkey, sizeof(pubkey));
1519 1.1 riastrad memcpy(wgs->wgs_ephemeral_key_priv, privkey, sizeof(privkey));
1520 1.1 riastrad memcpy(wgs->wgs_handshake_hash, hash, sizeof(hash));
1521 1.1 riastrad memcpy(wgs->wgs_chaining_key, ckey, sizeof(ckey));
1522 1.49 riastrad WG_DLOG("%s: sender=%x\n", __func__, wgs->wgs_local_index);
1523 1.1 riastrad }
1524 1.1 riastrad
1525 1.63 riastrad static void __noinline
1526 1.1 riastrad wg_handle_msg_init(struct wg_softc *wg, const struct wg_msg_init *wgmi,
1527 1.1 riastrad const struct sockaddr *src)
1528 1.1 riastrad {
1529 1.1 riastrad uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.2: Ci */
1530 1.1 riastrad uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.2: Hi */
1531 1.1 riastrad uint8_t cipher_key[WG_CIPHER_KEY_LEN];
1532 1.1 riastrad uint8_t peer_pubkey[WG_STATIC_KEY_LEN];
1533 1.1 riastrad struct wg_peer *wgp;
1534 1.1 riastrad struct wg_session *wgs;
1535 1.1 riastrad int error, ret;
1536 1.1 riastrad struct psref psref_peer;
1537 1.1 riastrad uint8_t mac1[WG_MAC_LEN];
1538 1.1 riastrad
1539 1.1 riastrad WG_TRACE("init msg received");
1540 1.1 riastrad
1541 1.44 riastrad wg_algo_mac_mac1(mac1, sizeof(mac1),
1542 1.44 riastrad wg->wg_pubkey, sizeof(wg->wg_pubkey),
1543 1.44 riastrad (const uint8_t *)wgmi, offsetof(struct wg_msg_init, wgmi_mac1));
1544 1.44 riastrad
1545 1.44 riastrad /*
1546 1.44 riastrad * [W] 5.3: Denial of Service Mitigation & Cookies
1547 1.44 riastrad * "the responder, ..., must always reject messages with an invalid
1548 1.44 riastrad * msg.mac1"
1549 1.44 riastrad */
1550 1.44 riastrad if (!consttime_memequal(mac1, wgmi->wgmi_mac1, sizeof(mac1))) {
1551 1.44 riastrad WG_DLOG("mac1 is invalid\n");
1552 1.44 riastrad return;
1553 1.44 riastrad }
1554 1.44 riastrad
1555 1.1 riastrad /*
1556 1.1 riastrad * [W] 5.4.2: First Message: Initiator to Responder
1557 1.1 riastrad * "When the responder receives this message, it does the same
1558 1.1 riastrad * operations so that its final state variables are identical,
1559 1.1 riastrad * replacing the operands of the DH function to produce equivalent
1560 1.1 riastrad * values."
1561 1.1 riastrad * Note that the following comments of operations are just copies of
1562 1.1 riastrad * the initiator's ones.
1563 1.1 riastrad */
1564 1.1 riastrad
1565 1.1 riastrad /* Ci := HASH(CONSTRUCTION) */
1566 1.1 riastrad /* Hi := HASH(Ci || IDENTIFIER) */
1567 1.1 riastrad wg_init_key_and_hash(ckey, hash);
1568 1.1 riastrad /* Hi := HASH(Hi || Sr^pub) */
1569 1.1 riastrad wg_algo_hash(hash, wg->wg_pubkey, sizeof(wg->wg_pubkey));
1570 1.1 riastrad
1571 1.1 riastrad /* [N] 2.2: "e" */
1572 1.1 riastrad /* Ci := KDF1(Ci, Ei^pub) */
1573 1.1 riastrad wg_algo_kdf(ckey, NULL, NULL, ckey, wgmi->wgmi_ephemeral,
1574 1.1 riastrad sizeof(wgmi->wgmi_ephemeral));
1575 1.1 riastrad /* Hi := HASH(Hi || msg.ephemeral) */
1576 1.1 riastrad wg_algo_hash(hash, wgmi->wgmi_ephemeral, sizeof(wgmi->wgmi_ephemeral));
1577 1.1 riastrad
1578 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1579 1.1 riastrad
1580 1.1 riastrad /* [N] 2.2: "es" */
1581 1.1 riastrad /* Ci, k := KDF2(Ci, DH(Ei^priv, Sr^pub)) */
1582 1.1 riastrad wg_algo_dh_kdf(ckey, cipher_key, wg->wg_privkey, wgmi->wgmi_ephemeral);
1583 1.1 riastrad
1584 1.1 riastrad WG_DUMP_HASH48("wgmi_static", wgmi->wgmi_static);
1585 1.1 riastrad
1586 1.1 riastrad /* [N] 2.2: "s" */
1587 1.1 riastrad /* msg.static := AEAD(k, 0, Si^pub, Hi) */
1588 1.1 riastrad error = wg_algo_aead_dec(peer_pubkey, WG_STATIC_KEY_LEN, cipher_key, 0,
1589 1.1 riastrad wgmi->wgmi_static, sizeof(wgmi->wgmi_static), hash, sizeof(hash));
1590 1.1 riastrad if (error != 0) {
1591 1.1 riastrad WG_LOG_RATECHECK(&wg->wg_ppsratecheck, LOG_DEBUG,
1592 1.76 jakllsch "%s: wg_algo_aead_dec for secret key failed\n",
1593 1.76 jakllsch if_name(&wg->wg_if));
1594 1.1 riastrad return;
1595 1.1 riastrad }
1596 1.1 riastrad /* Hi := HASH(Hi || msg.static) */
1597 1.1 riastrad wg_algo_hash(hash, wgmi->wgmi_static, sizeof(wgmi->wgmi_static));
1598 1.1 riastrad
1599 1.1 riastrad wgp = wg_lookup_peer_by_pubkey(wg, peer_pubkey, &psref_peer);
1600 1.1 riastrad if (wgp == NULL) {
1601 1.1 riastrad WG_DLOG("peer not found\n");
1602 1.1 riastrad return;
1603 1.1 riastrad }
1604 1.1 riastrad
1605 1.49 riastrad /*
1606 1.49 riastrad * Lock the peer to serialize access to cookie state.
1607 1.49 riastrad *
1608 1.49 riastrad * XXX Can we safely avoid holding the lock across DH? Take it
1609 1.49 riastrad * just to verify mac2 and then unlock/DH/lock?
1610 1.49 riastrad */
1611 1.49 riastrad mutex_enter(wgp->wgp_lock);
1612 1.49 riastrad
1613 1.1 riastrad if (__predict_false(wg_is_underload(wg, wgp, WG_MSG_TYPE_INIT))) {
1614 1.1 riastrad WG_TRACE("under load");
1615 1.1 riastrad /*
1616 1.1 riastrad * [W] 5.3: Denial of Service Mitigation & Cookies
1617 1.1 riastrad * "the responder, ..., and when under load may reject messages
1618 1.1 riastrad * with an invalid msg.mac2. If the responder receives a
1619 1.1 riastrad * message with a valid msg.mac1 yet with an invalid msg.mac2,
1620 1.1 riastrad * and is under load, it may respond with a cookie reply
1621 1.1 riastrad * message"
1622 1.1 riastrad */
1623 1.1 riastrad uint8_t zero[WG_MAC_LEN] = {0};
1624 1.13 riastrad if (consttime_memequal(wgmi->wgmi_mac2, zero, sizeof(zero))) {
1625 1.1 riastrad WG_TRACE("sending a cookie message: no cookie included");
1626 1.108 riastrad wg_send_cookie_msg(wg, wgp, wgmi->wgmi_sender,
1627 1.1 riastrad wgmi->wgmi_mac1, src);
1628 1.49 riastrad goto out;
1629 1.1 riastrad }
1630 1.1 riastrad if (!wgp->wgp_last_sent_cookie_valid) {
1631 1.1 riastrad WG_TRACE("sending a cookie message: no cookie sent ever");
1632 1.108 riastrad wg_send_cookie_msg(wg, wgp, wgmi->wgmi_sender,
1633 1.1 riastrad wgmi->wgmi_mac1, src);
1634 1.49 riastrad goto out;
1635 1.1 riastrad }
1636 1.1 riastrad uint8_t mac2[WG_MAC_LEN];
1637 1.1 riastrad wg_algo_mac(mac2, sizeof(mac2), wgp->wgp_last_sent_cookie,
1638 1.1 riastrad WG_COOKIE_LEN, (const uint8_t *)wgmi,
1639 1.1 riastrad offsetof(struct wg_msg_init, wgmi_mac2), NULL, 0);
1640 1.13 riastrad if (!consttime_memequal(mac2, wgmi->wgmi_mac2, sizeof(mac2))) {
1641 1.1 riastrad WG_DLOG("mac2 is invalid\n");
1642 1.49 riastrad goto out;
1643 1.1 riastrad }
1644 1.1 riastrad WG_TRACE("under load, but continue to sending");
1645 1.1 riastrad }
1646 1.1 riastrad
1647 1.46 riastrad /* [N] 2.2: "ss" */
1648 1.46 riastrad /* Ci, k := KDF2(Ci, DH(Si^priv, Sr^pub)) */
1649 1.46 riastrad wg_algo_dh_kdf(ckey, cipher_key, wg->wg_privkey, wgp->wgp_pubkey);
1650 1.46 riastrad
1651 1.46 riastrad /* msg.timestamp := AEAD(k, TIMESTAMP(), Hi) */
1652 1.46 riastrad wg_timestamp_t timestamp;
1653 1.46 riastrad error = wg_algo_aead_dec(timestamp, sizeof(timestamp), cipher_key, 0,
1654 1.46 riastrad wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp),
1655 1.46 riastrad hash, sizeof(hash));
1656 1.46 riastrad if (error != 0) {
1657 1.46 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
1658 1.76 jakllsch "%s: peer %s: wg_algo_aead_dec for timestamp failed\n",
1659 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name);
1660 1.49 riastrad goto out;
1661 1.46 riastrad }
1662 1.46 riastrad /* Hi := HASH(Hi || msg.timestamp) */
1663 1.46 riastrad wg_algo_hash(hash, wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp));
1664 1.46 riastrad
1665 1.1 riastrad /*
1666 1.14 riastrad * [W] 5.1 "The responder keeps track of the greatest timestamp
1667 1.14 riastrad * received per peer and discards packets containing
1668 1.14 riastrad * timestamps less than or equal to it."
1669 1.1 riastrad */
1670 1.1 riastrad ret = memcmp(timestamp, wgp->wgp_timestamp_latest_init,
1671 1.1 riastrad sizeof(timestamp));
1672 1.1 riastrad if (ret <= 0) {
1673 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
1674 1.76 jakllsch "%s: peer %s: invalid init msg: timestamp is old\n",
1675 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name);
1676 1.1 riastrad goto out;
1677 1.1 riastrad }
1678 1.1 riastrad memcpy(wgp->wgp_timestamp_latest_init, timestamp, sizeof(timestamp));
1679 1.1 riastrad
1680 1.49 riastrad /*
1681 1.49 riastrad * Message is good -- we're committing to handle it now, unless
1682 1.49 riastrad * we were already initiating a session.
1683 1.49 riastrad */
1684 1.49 riastrad wgs = wgp->wgp_session_unstable;
1685 1.49 riastrad switch (wgs->wgs_state) {
1686 1.49 riastrad case WGS_STATE_UNKNOWN: /* new session initiated by peer */
1687 1.49 riastrad break;
1688 1.49 riastrad case WGS_STATE_INIT_ACTIVE: /* we're already initiating, drop */
1689 1.94 riastrad /* XXX Who wins if both sides send INIT? */
1690 1.49 riastrad WG_TRACE("Session already initializing, ignoring the message");
1691 1.49 riastrad goto out;
1692 1.49 riastrad case WGS_STATE_INIT_PASSIVE: /* peer is retrying, start over */
1693 1.49 riastrad WG_TRACE("Session already initializing, destroying old states");
1694 1.94 riastrad /*
1695 1.94 riastrad * XXX Avoid this -- just resend our response -- if the
1696 1.94 riastrad * INIT message is identical to the previous one.
1697 1.94 riastrad */
1698 1.94 riastrad wg_put_session_index(wg, wgs);
1699 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1700 1.94 riastrad wgs->wgs_state);
1701 1.49 riastrad break;
1702 1.49 riastrad case WGS_STATE_ESTABLISHED: /* can't happen */
1703 1.49 riastrad panic("unstable session can't be established");
1704 1.49 riastrad case WGS_STATE_DESTROYING: /* rekey initiated by peer */
1705 1.49 riastrad WG_TRACE("Session destroying, but force to clear");
1706 1.94 riastrad wg_put_session_index(wg, wgs);
1707 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1708 1.94 riastrad wgs->wgs_state);
1709 1.49 riastrad break;
1710 1.49 riastrad default:
1711 1.49 riastrad panic("invalid session state: %d", wgs->wgs_state);
1712 1.49 riastrad }
1713 1.94 riastrad
1714 1.94 riastrad /*
1715 1.94 riastrad * Assign a fresh session index.
1716 1.94 riastrad */
1717 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1718 1.94 riastrad wgs->wgs_state);
1719 1.94 riastrad wg_get_session_index(wg, wgs);
1720 1.49 riastrad
1721 1.1 riastrad memcpy(wgs->wgs_handshake_hash, hash, sizeof(hash));
1722 1.1 riastrad memcpy(wgs->wgs_chaining_key, ckey, sizeof(ckey));
1723 1.1 riastrad memcpy(wgs->wgs_ephemeral_key_peer, wgmi->wgmi_ephemeral,
1724 1.1 riastrad sizeof(wgmi->wgmi_ephemeral));
1725 1.1 riastrad
1726 1.122 riastrad /*
1727 1.122 riastrad * The packet is genuine. Update the peer's endpoint if the
1728 1.122 riastrad * source address changed.
1729 1.122 riastrad *
1730 1.122 riastrad * XXX How to prevent DoS by replaying genuine packets from the
1731 1.122 riastrad * wrong source address?
1732 1.122 riastrad */
1733 1.1 riastrad wg_update_endpoint_if_necessary(wgp, src);
1734 1.1 riastrad
1735 1.94 riastrad /*
1736 1.117 riastrad * Even though we don't transition from INIT_PASSIVE to
1737 1.117 riastrad * ESTABLISHED until we receive the first data packet from the
1738 1.117 riastrad * initiator, we count the time of the INIT message as the time
1739 1.117 riastrad * of establishment -- this is used to decide when to erase
1740 1.117 riastrad * keys, and we want to start counting as soon as we have
1741 1.117 riastrad * generated keys.
1742 1.100 riastrad */
1743 1.104 riastrad wgs->wgs_time_established = time_uptime32;
1744 1.100 riastrad wg_schedule_session_dtor_timer(wgp);
1745 1.100 riastrad
1746 1.100 riastrad /*
1747 1.94 riastrad * Respond to the initiator with our ephemeral public key.
1748 1.94 riastrad */
1749 1.108 riastrad wg_send_handshake_msg_resp(wg, wgp, wgs, wgmi);
1750 1.1 riastrad
1751 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]:"
1752 1.94 riastrad " calculate keys as responder\n",
1753 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
1754 1.1 riastrad wg_calculate_keys(wgs, false);
1755 1.1 riastrad wg_clear_states(wgs);
1756 1.1 riastrad
1757 1.94 riastrad /*
1758 1.94 riastrad * Session is ready to receive data now that we have received
1759 1.94 riastrad * the peer initiator's ephemeral key pair, generated our
1760 1.94 riastrad * responder's ephemeral key pair, and derived a session key.
1761 1.94 riastrad *
1762 1.94 riastrad * Transition from UNKNOWN to INIT_PASSIVE to publish it to the
1763 1.94 riastrad * data rx path, wg_handle_msg_data, where the
1764 1.94 riastrad * atomic_load_acquire matching this atomic_store_release
1765 1.94 riastrad * happens.
1766 1.94 riastrad *
1767 1.94 riastrad * (Session is not, however, ready to send data until the peer
1768 1.94 riastrad * has acknowledged our response by sending its first data
1769 1.94 riastrad * packet. So don't swap the sessions yet.)
1770 1.94 riastrad */
1771 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"] -> WGS_STATE_INIT_PASSIVE\n",
1772 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
1773 1.94 riastrad atomic_store_release(&wgs->wgs_state, WGS_STATE_INIT_PASSIVE);
1774 1.94 riastrad WG_TRACE("WGS_STATE_INIT_PASSIVE");
1775 1.94 riastrad
1776 1.1 riastrad out:
1777 1.49 riastrad mutex_exit(wgp->wgp_lock);
1778 1.1 riastrad wg_put_peer(wgp, &psref_peer);
1779 1.1 riastrad }
1780 1.1 riastrad
1781 1.1 riastrad static struct socket *
1782 1.55 riastrad wg_get_so_by_af(struct wg_softc *wg, const int af)
1783 1.1 riastrad {
1784 1.1 riastrad
1785 1.62 riastrad switch (af) {
1786 1.62 riastrad #ifdef INET
1787 1.62 riastrad case AF_INET:
1788 1.62 riastrad return wg->wg_so4;
1789 1.62 riastrad #endif
1790 1.62 riastrad #ifdef INET6
1791 1.62 riastrad case AF_INET6:
1792 1.62 riastrad return wg->wg_so6;
1793 1.62 riastrad #endif
1794 1.62 riastrad default:
1795 1.62 riastrad panic("wg: no such af: %d", af);
1796 1.62 riastrad }
1797 1.1 riastrad }
1798 1.1 riastrad
1799 1.1 riastrad static struct socket *
1800 1.47 riastrad wg_get_so_by_peer(struct wg_peer *wgp, struct wg_sockaddr *wgsa)
1801 1.1 riastrad {
1802 1.1 riastrad
1803 1.55 riastrad return wg_get_so_by_af(wgp->wgp_sc, wgsa_family(wgsa));
1804 1.1 riastrad }
1805 1.1 riastrad
1806 1.1 riastrad static struct wg_sockaddr *
1807 1.1 riastrad wg_get_endpoint_sa(struct wg_peer *wgp, struct psref *psref)
1808 1.1 riastrad {
1809 1.1 riastrad struct wg_sockaddr *wgsa;
1810 1.1 riastrad int s;
1811 1.1 riastrad
1812 1.1 riastrad s = pserialize_read_enter();
1813 1.47 riastrad wgsa = atomic_load_consume(&wgp->wgp_endpoint);
1814 1.1 riastrad psref_acquire(psref, &wgsa->wgsa_psref, wg_psref_class);
1815 1.1 riastrad pserialize_read_exit(s);
1816 1.1 riastrad
1817 1.1 riastrad return wgsa;
1818 1.1 riastrad }
1819 1.1 riastrad
1820 1.1 riastrad static void
1821 1.1 riastrad wg_put_sa(struct wg_peer *wgp, struct wg_sockaddr *wgsa, struct psref *psref)
1822 1.1 riastrad {
1823 1.1 riastrad
1824 1.1 riastrad psref_release(psref, &wgsa->wgsa_psref, wg_psref_class);
1825 1.1 riastrad }
1826 1.1 riastrad
1827 1.1 riastrad static int
1828 1.1 riastrad wg_send_so(struct wg_peer *wgp, struct mbuf *m)
1829 1.1 riastrad {
1830 1.1 riastrad int error;
1831 1.1 riastrad struct socket *so;
1832 1.1 riastrad struct psref psref;
1833 1.1 riastrad struct wg_sockaddr *wgsa;
1834 1.1 riastrad
1835 1.1 riastrad wgsa = wg_get_endpoint_sa(wgp, &psref);
1836 1.47 riastrad so = wg_get_so_by_peer(wgp, wgsa);
1837 1.1 riastrad error = sosend(so, wgsatosa(wgsa), NULL, m, NULL, 0, curlwp);
1838 1.1 riastrad wg_put_sa(wgp, wgsa, &psref);
1839 1.1 riastrad
1840 1.1 riastrad return error;
1841 1.1 riastrad }
1842 1.1 riastrad
1843 1.108 riastrad static void
1844 1.1 riastrad wg_send_handshake_msg_init(struct wg_softc *wg, struct wg_peer *wgp)
1845 1.1 riastrad {
1846 1.1 riastrad int error;
1847 1.1 riastrad struct mbuf *m;
1848 1.1 riastrad struct wg_msg_init *wgmi;
1849 1.1 riastrad struct wg_session *wgs;
1850 1.1 riastrad
1851 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1852 1.49 riastrad
1853 1.49 riastrad wgs = wgp->wgp_session_unstable;
1854 1.49 riastrad /* XXX pull dispatch out into wg_task_send_init_message */
1855 1.49 riastrad switch (wgs->wgs_state) {
1856 1.49 riastrad case WGS_STATE_UNKNOWN: /* new session initiated by us */
1857 1.49 riastrad break;
1858 1.49 riastrad case WGS_STATE_INIT_ACTIVE: /* we're already initiating, stop */
1859 1.49 riastrad WG_TRACE("Session already initializing, skip starting new one");
1860 1.108 riastrad return;
1861 1.49 riastrad case WGS_STATE_INIT_PASSIVE: /* peer was trying -- XXX what now? */
1862 1.94 riastrad WG_TRACE("Session already initializing, waiting for peer");
1863 1.108 riastrad return;
1864 1.49 riastrad case WGS_STATE_ESTABLISHED: /* can't happen */
1865 1.49 riastrad panic("unstable session can't be established");
1866 1.49 riastrad case WGS_STATE_DESTROYING: /* rekey initiated by us too early */
1867 1.1 riastrad WG_TRACE("Session destroying");
1868 1.94 riastrad wg_put_session_index(wg, wgs);
1869 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1870 1.94 riastrad wgs->wgs_state);
1871 1.94 riastrad break;
1872 1.1 riastrad }
1873 1.94 riastrad
1874 1.94 riastrad /*
1875 1.94 riastrad * Assign a fresh session index.
1876 1.94 riastrad */
1877 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1878 1.94 riastrad wgs->wgs_state);
1879 1.94 riastrad wg_get_session_index(wg, wgs);
1880 1.94 riastrad
1881 1.94 riastrad /*
1882 1.94 riastrad * We have initiated a session. Transition to INIT_ACTIVE.
1883 1.94 riastrad * This doesn't publish it for use in the data rx path,
1884 1.94 riastrad * wg_handle_msg_data, or in the data tx path, wg_output -- we
1885 1.94 riastrad * have to wait for the peer to respond with their ephemeral
1886 1.94 riastrad * public key before we can derive a session key for tx/rx.
1887 1.94 riastrad * Hence only atomic_store_relaxed.
1888 1.94 riastrad */
1889 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=(unknown)] -> WGS_STATE_INIT_ACTIVE\n",
1890 1.94 riastrad wgs->wgs_local_index);
1891 1.94 riastrad atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_INIT_ACTIVE);
1892 1.1 riastrad
1893 1.1 riastrad m = m_gethdr(M_WAIT, MT_DATA);
1894 1.69 hannken if (sizeof(*wgmi) > MHLEN) {
1895 1.69 hannken m_clget(m, M_WAIT);
1896 1.69 hannken CTASSERT(sizeof(*wgmi) <= MCLBYTES);
1897 1.69 hannken }
1898 1.1 riastrad m->m_pkthdr.len = m->m_len = sizeof(*wgmi);
1899 1.1 riastrad wgmi = mtod(m, struct wg_msg_init *);
1900 1.1 riastrad wg_fill_msg_init(wg, wgp, wgs, wgmi);
1901 1.1 riastrad
1902 1.108 riastrad error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
1903 1.108 riastrad if (error) {
1904 1.108 riastrad /*
1905 1.108 riastrad * Sending out an initiation packet failed; give up on
1906 1.108 riastrad * this session and toss packet waiting for it if any.
1907 1.108 riastrad *
1908 1.108 riastrad * XXX Why don't we just let the periodic handshake
1909 1.108 riastrad * retry logic work in this case?
1910 1.108 riastrad */
1911 1.108 riastrad WG_DLOG("send_hs_msg failed, error=%d\n", error);
1912 1.49 riastrad wg_put_session_index(wg, wgs);
1913 1.79 rin m = atomic_swap_ptr(&wgp->wgp_pending, NULL);
1914 1.126 riastrad membar_acquire(); /* matches membar_release in wgintr */
1915 1.79 rin m_freem(m);
1916 1.108 riastrad return;
1917 1.1 riastrad }
1918 1.1 riastrad
1919 1.108 riastrad WG_TRACE("init msg sent");
1920 1.108 riastrad if (wgp->wgp_handshake_start_time == 0)
1921 1.108 riastrad wgp->wgp_handshake_start_time = time_uptime;
1922 1.108 riastrad callout_schedule(&wgp->wgp_handshake_timeout_timer,
1923 1.108 riastrad MIN(wg_rekey_timeout, (unsigned)(INT_MAX / hz)) * hz);
1924 1.1 riastrad }
1925 1.1 riastrad
1926 1.1 riastrad static void
1927 1.1 riastrad wg_fill_msg_resp(struct wg_softc *wg, struct wg_peer *wgp,
1928 1.49 riastrad struct wg_session *wgs, struct wg_msg_resp *wgmr,
1929 1.49 riastrad const struct wg_msg_init *wgmi)
1930 1.1 riastrad {
1931 1.1 riastrad uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.3: Cr */
1932 1.1 riastrad uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.3: Hr */
1933 1.1 riastrad uint8_t cipher_key[WG_KDF_OUTPUT_LEN];
1934 1.1 riastrad uint8_t pubkey[WG_EPHEMERAL_KEY_LEN];
1935 1.1 riastrad uint8_t privkey[WG_EPHEMERAL_KEY_LEN];
1936 1.1 riastrad
1937 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
1938 1.49 riastrad KASSERT(wgs == wgp->wgp_session_unstable);
1939 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
1940 1.94 riastrad wgs->wgs_state);
1941 1.49 riastrad
1942 1.1 riastrad memcpy(hash, wgs->wgs_handshake_hash, sizeof(hash));
1943 1.1 riastrad memcpy(ckey, wgs->wgs_chaining_key, sizeof(ckey));
1944 1.1 riastrad
1945 1.39 riastrad wgmr->wgmr_type = htole32(WG_MSG_TYPE_RESP);
1946 1.49 riastrad wgmr->wgmr_sender = wgs->wgs_local_index;
1947 1.1 riastrad wgmr->wgmr_receiver = wgmi->wgmi_sender;
1948 1.1 riastrad
1949 1.1 riastrad /* [W] 5.4.3 Second Message: Responder to Initiator */
1950 1.1 riastrad
1951 1.1 riastrad /* [N] 2.2: "e" */
1952 1.1 riastrad /* Er^priv, Er^pub := DH-GENERATE() */
1953 1.1 riastrad wg_algo_generate_keypair(pubkey, privkey);
1954 1.1 riastrad /* Cr := KDF1(Cr, Er^pub) */
1955 1.1 riastrad wg_algo_kdf(ckey, NULL, NULL, ckey, pubkey, sizeof(pubkey));
1956 1.1 riastrad /* msg.ephemeral := Er^pub */
1957 1.1 riastrad memcpy(wgmr->wgmr_ephemeral, pubkey, sizeof(wgmr->wgmr_ephemeral));
1958 1.1 riastrad /* Hr := HASH(Hr || msg.ephemeral) */
1959 1.1 riastrad wg_algo_hash(hash, pubkey, sizeof(pubkey));
1960 1.1 riastrad
1961 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
1962 1.1 riastrad WG_DUMP_HASH("hash", hash);
1963 1.1 riastrad
1964 1.1 riastrad /* [N] 2.2: "ee" */
1965 1.1 riastrad /* Cr := KDF1(Cr, DH(Er^priv, Ei^pub)) */
1966 1.1 riastrad wg_algo_dh_kdf(ckey, NULL, privkey, wgs->wgs_ephemeral_key_peer);
1967 1.1 riastrad
1968 1.1 riastrad /* [N] 2.2: "se" */
1969 1.1 riastrad /* Cr := KDF1(Cr, DH(Er^priv, Si^pub)) */
1970 1.1 riastrad wg_algo_dh_kdf(ckey, NULL, privkey, wgp->wgp_pubkey);
1971 1.1 riastrad
1972 1.1 riastrad /* [N] 9.2: "psk" */
1973 1.1 riastrad {
1974 1.1 riastrad uint8_t kdfout[WG_KDF_OUTPUT_LEN];
1975 1.1 riastrad /* Cr, r, k := KDF3(Cr, Q) */
1976 1.1 riastrad wg_algo_kdf(ckey, kdfout, cipher_key, ckey, wgp->wgp_psk,
1977 1.1 riastrad sizeof(wgp->wgp_psk));
1978 1.1 riastrad /* Hr := HASH(Hr || r) */
1979 1.1 riastrad wg_algo_hash(hash, kdfout, sizeof(kdfout));
1980 1.1 riastrad }
1981 1.1 riastrad
1982 1.1 riastrad /* msg.empty := AEAD(k, 0, e, Hr) */
1983 1.14 riastrad wg_algo_aead_enc(wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty),
1984 1.14 riastrad cipher_key, 0, NULL, 0, hash, sizeof(hash));
1985 1.1 riastrad /* Hr := HASH(Hr || msg.empty) */
1986 1.1 riastrad wg_algo_hash(hash, wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty));
1987 1.1 riastrad
1988 1.1 riastrad WG_DUMP_HASH("wgmr_empty", wgmr->wgmr_empty);
1989 1.1 riastrad
1990 1.1 riastrad /* [W] 5.4.4: Cookie MACs */
1991 1.1 riastrad /* msg.mac1 := MAC(HASH(LABEL-MAC1 || Sm'^pub), msg_a) */
1992 1.1 riastrad wg_algo_mac_mac1(wgmr->wgmr_mac1, sizeof(wgmi->wgmi_mac1),
1993 1.1 riastrad wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey),
1994 1.17 riastrad (const uint8_t *)wgmr, offsetof(struct wg_msg_resp, wgmr_mac1));
1995 1.1 riastrad /* Need mac1 to decrypt a cookie from a cookie message */
1996 1.1 riastrad memcpy(wgp->wgp_last_sent_mac1, wgmr->wgmr_mac1,
1997 1.1 riastrad sizeof(wgp->wgp_last_sent_mac1));
1998 1.1 riastrad wgp->wgp_last_sent_mac1_valid = true;
1999 1.1 riastrad
2000 1.1 riastrad if (wgp->wgp_latest_cookie_time == 0 ||
2001 1.1 riastrad (time_uptime - wgp->wgp_latest_cookie_time) >= WG_COOKIE_TIME)
2002 1.1 riastrad /* msg.mac2 := 0^16 */
2003 1.1 riastrad memset(wgmr->wgmr_mac2, 0, sizeof(wgmr->wgmr_mac2));
2004 1.1 riastrad else {
2005 1.1 riastrad /* msg.mac2 := MAC(Lm, msg_b) */
2006 1.1 riastrad wg_algo_mac(wgmr->wgmr_mac2, sizeof(wgmi->wgmi_mac2),
2007 1.1 riastrad wgp->wgp_latest_cookie, WG_COOKIE_LEN,
2008 1.17 riastrad (const uint8_t *)wgmr,
2009 1.17 riastrad offsetof(struct wg_msg_resp, wgmr_mac2),
2010 1.1 riastrad NULL, 0);
2011 1.1 riastrad }
2012 1.1 riastrad
2013 1.1 riastrad memcpy(wgs->wgs_handshake_hash, hash, sizeof(hash));
2014 1.1 riastrad memcpy(wgs->wgs_chaining_key, ckey, sizeof(ckey));
2015 1.1 riastrad memcpy(wgs->wgs_ephemeral_key_pub, pubkey, sizeof(pubkey));
2016 1.1 riastrad memcpy(wgs->wgs_ephemeral_key_priv, privkey, sizeof(privkey));
2017 1.49 riastrad wgs->wgs_remote_index = wgmi->wgmi_sender;
2018 1.49 riastrad WG_DLOG("sender=%x\n", wgs->wgs_local_index);
2019 1.49 riastrad WG_DLOG("receiver=%x\n", wgs->wgs_remote_index);
2020 1.1 riastrad }
2021 1.1 riastrad
2022 1.122 riastrad /*
2023 1.122 riastrad * wg_swap_sessions(wg, wgp)
2024 1.122 riastrad *
2025 1.122 riastrad * Caller has just finished establishing the unstable session in
2026 1.122 riastrad * wg for peer wgp. Publish it as the stable session, send queued
2027 1.122 riastrad * packets or keepalives as necessary to kick off the session,
2028 1.122 riastrad * move the previously stable session to unstable, and begin
2029 1.122 riastrad * destroying it.
2030 1.122 riastrad */
2031 1.1 riastrad static void
2032 1.122 riastrad wg_swap_sessions(struct wg_softc *wg, struct wg_peer *wgp)
2033 1.1 riastrad {
2034 1.49 riastrad struct wg_session *wgs, *wgs_prev;
2035 1.122 riastrad struct mbuf *m;
2036 1.1 riastrad
2037 1.1 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
2038 1.1 riastrad
2039 1.116 riastrad /*
2040 1.116 riastrad * Get the newly established session, to become the new
2041 1.116 riastrad * session. Caller must have transitioned from INIT_ACTIVE to
2042 1.119 riastrad * INIT_PASSIVE or to ESTABLISHED already. This will become
2043 1.119 riastrad * the stable session.
2044 1.116 riastrad */
2045 1.49 riastrad wgs = wgp->wgp_session_unstable;
2046 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_ESTABLISHED, "state=%d",
2047 1.94 riastrad wgs->wgs_state);
2048 1.49 riastrad
2049 1.116 riastrad /*
2050 1.116 riastrad * Get the stable session, which is either the previously
2051 1.116 riastrad * established session in the ESTABLISHED state, or has not
2052 1.116 riastrad * been established at all and is UNKNOWN. This will become
2053 1.116 riastrad * the unstable session.
2054 1.116 riastrad */
2055 1.49 riastrad wgs_prev = wgp->wgp_session_stable;
2056 1.94 riastrad KASSERTMSG((wgs_prev->wgs_state == WGS_STATE_ESTABLISHED ||
2057 1.94 riastrad wgs_prev->wgs_state == WGS_STATE_UNKNOWN),
2058 1.94 riastrad "state=%d", wgs_prev->wgs_state);
2059 1.116 riastrad
2060 1.116 riastrad /*
2061 1.116 riastrad * Publish the newly established session for the tx path to use
2062 1.116 riastrad * and make the other one the unstable session to handle
2063 1.116 riastrad * stragglers in the rx path and later be used for the next
2064 1.116 riastrad * session's handshake.
2065 1.116 riastrad */
2066 1.49 riastrad atomic_store_release(&wgp->wgp_session_stable, wgs);
2067 1.49 riastrad wgp->wgp_session_unstable = wgs_prev;
2068 1.122 riastrad
2069 1.122 riastrad /*
2070 1.122 riastrad * Record the handshake time and reset the handshake state.
2071 1.122 riastrad */
2072 1.122 riastrad getnanotime(&wgp->wgp_last_handshake_time);
2073 1.122 riastrad wgp->wgp_handshake_start_time = 0;
2074 1.122 riastrad wgp->wgp_last_sent_mac1_valid = false;
2075 1.122 riastrad wgp->wgp_last_sent_cookie_valid = false;
2076 1.122 riastrad
2077 1.122 riastrad /*
2078 1.122 riastrad * If we had a data packet queued up, send it.
2079 1.122 riastrad *
2080 1.122 riastrad * If not, but we're the initiator, send a keepalive message --
2081 1.122 riastrad * if we're the initiator we have to send something immediately
2082 1.122 riastrad * or else the responder will never answer.
2083 1.122 riastrad */
2084 1.122 riastrad if ((m = atomic_swap_ptr(&wgp->wgp_pending, NULL)) != NULL) {
2085 1.126 riastrad membar_acquire(); /* matches membar_release in wgintr */
2086 1.122 riastrad kpreempt_disable();
2087 1.122 riastrad const uint32_t h = curcpu()->ci_index; // pktq_rps_hash(m)
2088 1.122 riastrad M_SETCTX(m, wgp);
2089 1.122 riastrad if (__predict_false(!pktq_enqueue(wg_pktq, m, h))) {
2090 1.122 riastrad WGLOG(LOG_ERR, "%s: pktq full, dropping\n",
2091 1.122 riastrad if_name(&wg->wg_if));
2092 1.122 riastrad m_freem(m);
2093 1.122 riastrad }
2094 1.122 riastrad kpreempt_enable();
2095 1.122 riastrad } else if (wgs->wgs_is_initiator) {
2096 1.122 riastrad wg_send_keepalive_msg(wgp, wgs);
2097 1.122 riastrad }
2098 1.122 riastrad
2099 1.122 riastrad /*
2100 1.122 riastrad * If the previous stable session was established, begin to
2101 1.122 riastrad * destroy it.
2102 1.122 riastrad */
2103 1.122 riastrad if (wgs_prev->wgs_state == WGS_STATE_ESTABLISHED) {
2104 1.122 riastrad /*
2105 1.122 riastrad * Transition ESTABLISHED->DESTROYING. The session
2106 1.122 riastrad * will remain usable for the data rx path to process
2107 1.122 riastrad * packets still in flight to us, but we won't use it
2108 1.122 riastrad * for data tx.
2109 1.122 riastrad */
2110 1.122 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]"
2111 1.122 riastrad " -> WGS_STATE_DESTROYING\n",
2112 1.122 riastrad wgs_prev->wgs_local_index, wgs_prev->wgs_remote_index);
2113 1.122 riastrad atomic_store_relaxed(&wgs_prev->wgs_state,
2114 1.122 riastrad WGS_STATE_DESTROYING);
2115 1.122 riastrad } else {
2116 1.122 riastrad KASSERTMSG(wgs_prev->wgs_state == WGS_STATE_UNKNOWN,
2117 1.122 riastrad "state=%d", wgs_prev->wgs_state);
2118 1.122 riastrad wgs_prev->wgs_local_index = 0; /* paranoia */
2119 1.122 riastrad wgs_prev->wgs_remote_index = 0; /* paranoia */
2120 1.122 riastrad wg_clear_states(wgs_prev); /* paranoia */
2121 1.122 riastrad wgs_prev->wgs_state = WGS_STATE_UNKNOWN;
2122 1.122 riastrad }
2123 1.1 riastrad }
2124 1.1 riastrad
2125 1.63 riastrad static void __noinline
2126 1.1 riastrad wg_handle_msg_resp(struct wg_softc *wg, const struct wg_msg_resp *wgmr,
2127 1.1 riastrad const struct sockaddr *src)
2128 1.1 riastrad {
2129 1.1 riastrad uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.3: Cr */
2130 1.1 riastrad uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.3: Kr */
2131 1.1 riastrad uint8_t cipher_key[WG_KDF_OUTPUT_LEN];
2132 1.1 riastrad struct wg_peer *wgp;
2133 1.1 riastrad struct wg_session *wgs;
2134 1.1 riastrad struct psref psref;
2135 1.1 riastrad int error;
2136 1.1 riastrad uint8_t mac1[WG_MAC_LEN];
2137 1.1 riastrad
2138 1.1 riastrad wg_algo_mac_mac1(mac1, sizeof(mac1),
2139 1.1 riastrad wg->wg_pubkey, sizeof(wg->wg_pubkey),
2140 1.1 riastrad (const uint8_t *)wgmr, offsetof(struct wg_msg_resp, wgmr_mac1));
2141 1.1 riastrad
2142 1.1 riastrad /*
2143 1.1 riastrad * [W] 5.3: Denial of Service Mitigation & Cookies
2144 1.1 riastrad * "the responder, ..., must always reject messages with an invalid
2145 1.1 riastrad * msg.mac1"
2146 1.1 riastrad */
2147 1.13 riastrad if (!consttime_memequal(mac1, wgmr->wgmr_mac1, sizeof(mac1))) {
2148 1.1 riastrad WG_DLOG("mac1 is invalid\n");
2149 1.44 riastrad return;
2150 1.44 riastrad }
2151 1.44 riastrad
2152 1.44 riastrad WG_TRACE("resp msg received");
2153 1.44 riastrad wgs = wg_lookup_session_by_index(wg, wgmr->wgmr_receiver, &psref);
2154 1.44 riastrad if (wgs == NULL) {
2155 1.44 riastrad WG_TRACE("No session found");
2156 1.44 riastrad return;
2157 1.1 riastrad }
2158 1.1 riastrad
2159 1.44 riastrad wgp = wgs->wgs_peer;
2160 1.44 riastrad
2161 1.49 riastrad mutex_enter(wgp->wgp_lock);
2162 1.49 riastrad
2163 1.49 riastrad /* If we weren't waiting for a handshake response, drop it. */
2164 1.49 riastrad if (wgs->wgs_state != WGS_STATE_INIT_ACTIVE) {
2165 1.49 riastrad WG_TRACE("peer sent spurious handshake response, ignoring");
2166 1.49 riastrad goto out;
2167 1.49 riastrad }
2168 1.49 riastrad
2169 1.1 riastrad if (__predict_false(wg_is_underload(wg, wgp, WG_MSG_TYPE_RESP))) {
2170 1.1 riastrad WG_TRACE("under load");
2171 1.1 riastrad /*
2172 1.1 riastrad * [W] 5.3: Denial of Service Mitigation & Cookies
2173 1.1 riastrad * "the responder, ..., and when under load may reject messages
2174 1.1 riastrad * with an invalid msg.mac2. If the responder receives a
2175 1.1 riastrad * message with a valid msg.mac1 yet with an invalid msg.mac2,
2176 1.1 riastrad * and is under load, it may respond with a cookie reply
2177 1.1 riastrad * message"
2178 1.1 riastrad */
2179 1.1 riastrad uint8_t zero[WG_MAC_LEN] = {0};
2180 1.13 riastrad if (consttime_memequal(wgmr->wgmr_mac2, zero, sizeof(zero))) {
2181 1.1 riastrad WG_TRACE("sending a cookie message: no cookie included");
2182 1.108 riastrad wg_send_cookie_msg(wg, wgp, wgmr->wgmr_sender,
2183 1.1 riastrad wgmr->wgmr_mac1, src);
2184 1.1 riastrad goto out;
2185 1.1 riastrad }
2186 1.1 riastrad if (!wgp->wgp_last_sent_cookie_valid) {
2187 1.1 riastrad WG_TRACE("sending a cookie message: no cookie sent ever");
2188 1.108 riastrad wg_send_cookie_msg(wg, wgp, wgmr->wgmr_sender,
2189 1.1 riastrad wgmr->wgmr_mac1, src);
2190 1.1 riastrad goto out;
2191 1.1 riastrad }
2192 1.1 riastrad uint8_t mac2[WG_MAC_LEN];
2193 1.1 riastrad wg_algo_mac(mac2, sizeof(mac2), wgp->wgp_last_sent_cookie,
2194 1.1 riastrad WG_COOKIE_LEN, (const uint8_t *)wgmr,
2195 1.1 riastrad offsetof(struct wg_msg_resp, wgmr_mac2), NULL, 0);
2196 1.13 riastrad if (!consttime_memequal(mac2, wgmr->wgmr_mac2, sizeof(mac2))) {
2197 1.1 riastrad WG_DLOG("mac2 is invalid\n");
2198 1.1 riastrad goto out;
2199 1.1 riastrad }
2200 1.1 riastrad WG_TRACE("under load, but continue to sending");
2201 1.1 riastrad }
2202 1.1 riastrad
2203 1.1 riastrad memcpy(hash, wgs->wgs_handshake_hash, sizeof(hash));
2204 1.1 riastrad memcpy(ckey, wgs->wgs_chaining_key, sizeof(ckey));
2205 1.1 riastrad
2206 1.1 riastrad /*
2207 1.1 riastrad * [W] 5.4.3 Second Message: Responder to Initiator
2208 1.1 riastrad * "When the initiator receives this message, it does the same
2209 1.1 riastrad * operations so that its final state variables are identical,
2210 1.1 riastrad * replacing the operands of the DH function to produce equivalent
2211 1.1 riastrad * values."
2212 1.1 riastrad * Note that the following comments of operations are just copies of
2213 1.1 riastrad * the initiator's ones.
2214 1.1 riastrad */
2215 1.1 riastrad
2216 1.1 riastrad /* [N] 2.2: "e" */
2217 1.1 riastrad /* Cr := KDF1(Cr, Er^pub) */
2218 1.1 riastrad wg_algo_kdf(ckey, NULL, NULL, ckey, wgmr->wgmr_ephemeral,
2219 1.1 riastrad sizeof(wgmr->wgmr_ephemeral));
2220 1.1 riastrad /* Hr := HASH(Hr || msg.ephemeral) */
2221 1.1 riastrad wg_algo_hash(hash, wgmr->wgmr_ephemeral, sizeof(wgmr->wgmr_ephemeral));
2222 1.1 riastrad
2223 1.1 riastrad WG_DUMP_HASH("ckey", ckey);
2224 1.1 riastrad WG_DUMP_HASH("hash", hash);
2225 1.1 riastrad
2226 1.1 riastrad /* [N] 2.2: "ee" */
2227 1.1 riastrad /* Cr := KDF1(Cr, DH(Er^priv, Ei^pub)) */
2228 1.1 riastrad wg_algo_dh_kdf(ckey, NULL, wgs->wgs_ephemeral_key_priv,
2229 1.1 riastrad wgmr->wgmr_ephemeral);
2230 1.1 riastrad
2231 1.1 riastrad /* [N] 2.2: "se" */
2232 1.1 riastrad /* Cr := KDF1(Cr, DH(Er^priv, Si^pub)) */
2233 1.1 riastrad wg_algo_dh_kdf(ckey, NULL, wg->wg_privkey, wgmr->wgmr_ephemeral);
2234 1.1 riastrad
2235 1.1 riastrad /* [N] 9.2: "psk" */
2236 1.1 riastrad {
2237 1.1 riastrad uint8_t kdfout[WG_KDF_OUTPUT_LEN];
2238 1.1 riastrad /* Cr, r, k := KDF3(Cr, Q) */
2239 1.1 riastrad wg_algo_kdf(ckey, kdfout, cipher_key, ckey, wgp->wgp_psk,
2240 1.1 riastrad sizeof(wgp->wgp_psk));
2241 1.1 riastrad /* Hr := HASH(Hr || r) */
2242 1.1 riastrad wg_algo_hash(hash, kdfout, sizeof(kdfout));
2243 1.1 riastrad }
2244 1.1 riastrad
2245 1.1 riastrad {
2246 1.1 riastrad uint8_t out[sizeof(wgmr->wgmr_empty)]; /* for safety */
2247 1.1 riastrad /* msg.empty := AEAD(k, 0, e, Hr) */
2248 1.1 riastrad error = wg_algo_aead_dec(out, 0, cipher_key, 0, wgmr->wgmr_empty,
2249 1.1 riastrad sizeof(wgmr->wgmr_empty), hash, sizeof(hash));
2250 1.1 riastrad WG_DUMP_HASH("wgmr_empty", wgmr->wgmr_empty);
2251 1.1 riastrad if (error != 0) {
2252 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
2253 1.76 jakllsch "%s: peer %s: wg_algo_aead_dec for empty message failed\n",
2254 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name);
2255 1.1 riastrad goto out;
2256 1.1 riastrad }
2257 1.1 riastrad /* Hr := HASH(Hr || msg.empty) */
2258 1.1 riastrad wg_algo_hash(hash, wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty));
2259 1.1 riastrad }
2260 1.1 riastrad
2261 1.1 riastrad memcpy(wgs->wgs_handshake_hash, hash, sizeof(wgs->wgs_handshake_hash));
2262 1.1 riastrad memcpy(wgs->wgs_chaining_key, ckey, sizeof(wgs->wgs_chaining_key));
2263 1.49 riastrad wgs->wgs_remote_index = wgmr->wgmr_sender;
2264 1.49 riastrad WG_DLOG("receiver=%x\n", wgs->wgs_remote_index);
2265 1.1 riastrad
2266 1.122 riastrad /*
2267 1.122 riastrad * The packet is genuine. Update the peer's endpoint if the
2268 1.122 riastrad * source address changed.
2269 1.122 riastrad *
2270 1.122 riastrad * XXX How to prevent DoS by replaying genuine packets from the
2271 1.122 riastrad * wrong source address?
2272 1.122 riastrad */
2273 1.122 riastrad wg_update_endpoint_if_necessary(wgp, src);
2274 1.122 riastrad
2275 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_INIT_ACTIVE, "state=%d",
2276 1.94 riastrad wgs->wgs_state);
2277 1.104 riastrad wgs->wgs_time_established = time_uptime32;
2278 1.100 riastrad wg_schedule_session_dtor_timer(wgp);
2279 1.1 riastrad wgs->wgs_time_last_data_sent = 0;
2280 1.1 riastrad wgs->wgs_is_initiator = true;
2281 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]:"
2282 1.94 riastrad " calculate keys as initiator\n",
2283 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
2284 1.1 riastrad wg_calculate_keys(wgs, true);
2285 1.1 riastrad wg_clear_states(wgs);
2286 1.94 riastrad
2287 1.94 riastrad /*
2288 1.94 riastrad * Session is ready to receive data now that we have received
2289 1.94 riastrad * the responder's response.
2290 1.94 riastrad *
2291 1.94 riastrad * Transition from INIT_ACTIVE to ESTABLISHED to publish it to
2292 1.94 riastrad * the data rx path, wg_handle_msg_data.
2293 1.94 riastrad */
2294 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32" -> WGS_STATE_ESTABLISHED\n",
2295 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
2296 1.94 riastrad atomic_store_release(&wgs->wgs_state, WGS_STATE_ESTABLISHED);
2297 1.1 riastrad WG_TRACE("WGS_STATE_ESTABLISHED");
2298 1.1 riastrad
2299 1.96 riastrad callout_halt(&wgp->wgp_handshake_timeout_timer, NULL);
2300 1.18 riastrad
2301 1.94 riastrad /*
2302 1.94 riastrad * Session is ready to send data now that we have received the
2303 1.94 riastrad * responder's response.
2304 1.94 riastrad *
2305 1.94 riastrad * Swap the sessions to publish the new one as the stable
2306 1.94 riastrad * session for the data tx path, wg_output.
2307 1.94 riastrad */
2308 1.122 riastrad wg_swap_sessions(wg, wgp);
2309 1.49 riastrad KASSERT(wgs == wgp->wgp_session_stable);
2310 1.1 riastrad
2311 1.1 riastrad out:
2312 1.49 riastrad mutex_exit(wgp->wgp_lock);
2313 1.1 riastrad wg_put_session(wgs, &psref);
2314 1.1 riastrad }
2315 1.1 riastrad
2316 1.108 riastrad static void
2317 1.1 riastrad wg_send_handshake_msg_resp(struct wg_softc *wg, struct wg_peer *wgp,
2318 1.49 riastrad struct wg_session *wgs, const struct wg_msg_init *wgmi)
2319 1.1 riastrad {
2320 1.1 riastrad int error;
2321 1.1 riastrad struct mbuf *m;
2322 1.1 riastrad struct wg_msg_resp *wgmr;
2323 1.1 riastrad
2324 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
2325 1.49 riastrad KASSERT(wgs == wgp->wgp_session_unstable);
2326 1.94 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
2327 1.94 riastrad wgs->wgs_state);
2328 1.49 riastrad
2329 1.1 riastrad m = m_gethdr(M_WAIT, MT_DATA);
2330 1.69 hannken if (sizeof(*wgmr) > MHLEN) {
2331 1.69 hannken m_clget(m, M_WAIT);
2332 1.69 hannken CTASSERT(sizeof(*wgmr) <= MCLBYTES);
2333 1.69 hannken }
2334 1.1 riastrad m->m_pkthdr.len = m->m_len = sizeof(*wgmr);
2335 1.1 riastrad wgmr = mtod(m, struct wg_msg_resp *);
2336 1.49 riastrad wg_fill_msg_resp(wg, wgp, wgs, wgmr, wgmi);
2337 1.1 riastrad
2338 1.108 riastrad error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
2339 1.108 riastrad if (error) {
2340 1.108 riastrad WG_DLOG("send_hs_msg failed, error=%d\n", error);
2341 1.108 riastrad return;
2342 1.108 riastrad }
2343 1.108 riastrad
2344 1.108 riastrad WG_TRACE("resp msg sent");
2345 1.1 riastrad }
2346 1.1 riastrad
2347 1.1 riastrad static struct wg_peer *
2348 1.1 riastrad wg_lookup_peer_by_pubkey(struct wg_softc *wg,
2349 1.114 riastrad const uint8_t pubkey[static WG_STATIC_KEY_LEN], struct psref *psref)
2350 1.1 riastrad {
2351 1.1 riastrad struct wg_peer *wgp;
2352 1.1 riastrad
2353 1.1 riastrad int s = pserialize_read_enter();
2354 1.37 riastrad wgp = thmap_get(wg->wg_peers_bypubkey, pubkey, WG_STATIC_KEY_LEN);
2355 1.1 riastrad if (wgp != NULL)
2356 1.1 riastrad wg_get_peer(wgp, psref);
2357 1.1 riastrad pserialize_read_exit(s);
2358 1.1 riastrad
2359 1.1 riastrad return wgp;
2360 1.1 riastrad }
2361 1.1 riastrad
2362 1.1 riastrad static void
2363 1.1 riastrad wg_fill_msg_cookie(struct wg_softc *wg, struct wg_peer *wgp,
2364 1.1 riastrad struct wg_msg_cookie *wgmc, const uint32_t sender,
2365 1.114 riastrad const uint8_t mac1[static WG_MAC_LEN], const struct sockaddr *src)
2366 1.1 riastrad {
2367 1.1 riastrad uint8_t cookie[WG_COOKIE_LEN];
2368 1.1 riastrad uint8_t key[WG_HASH_LEN];
2369 1.1 riastrad uint8_t addr[sizeof(struct in6_addr)];
2370 1.1 riastrad size_t addrlen;
2371 1.1 riastrad uint16_t uh_sport; /* be */
2372 1.1 riastrad
2373 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
2374 1.49 riastrad
2375 1.39 riastrad wgmc->wgmc_type = htole32(WG_MSG_TYPE_COOKIE);
2376 1.1 riastrad wgmc->wgmc_receiver = sender;
2377 1.1 riastrad cprng_fast(wgmc->wgmc_salt, sizeof(wgmc->wgmc_salt));
2378 1.1 riastrad
2379 1.1 riastrad /*
2380 1.1 riastrad * [W] 5.4.7: Under Load: Cookie Reply Message
2381 1.14 riastrad * "The secret variable, Rm, changes every two minutes to a
2382 1.14 riastrad * random value"
2383 1.1 riastrad */
2384 1.98 riastrad if ((time_uptime - wgp->wgp_last_cookiesecret_time) >
2385 1.98 riastrad WG_COOKIESECRET_TIME) {
2386 1.98 riastrad cprng_strong(kern_cprng, wgp->wgp_cookiesecret,
2387 1.98 riastrad sizeof(wgp->wgp_cookiesecret), 0);
2388 1.98 riastrad wgp->wgp_last_cookiesecret_time = time_uptime;
2389 1.1 riastrad }
2390 1.1 riastrad
2391 1.1 riastrad switch (src->sa_family) {
2392 1.109 riastrad #ifdef INET
2393 1.1 riastrad case AF_INET: {
2394 1.1 riastrad const struct sockaddr_in *sin = satocsin(src);
2395 1.1 riastrad addrlen = sizeof(sin->sin_addr);
2396 1.1 riastrad memcpy(addr, &sin->sin_addr, addrlen);
2397 1.1 riastrad uh_sport = sin->sin_port;
2398 1.1 riastrad break;
2399 1.1 riastrad }
2400 1.109 riastrad #endif
2401 1.1 riastrad #ifdef INET6
2402 1.1 riastrad case AF_INET6: {
2403 1.1 riastrad const struct sockaddr_in6 *sin6 = satocsin6(src);
2404 1.1 riastrad addrlen = sizeof(sin6->sin6_addr);
2405 1.1 riastrad memcpy(addr, &sin6->sin6_addr, addrlen);
2406 1.1 riastrad uh_sport = sin6->sin6_port;
2407 1.1 riastrad break;
2408 1.1 riastrad }
2409 1.1 riastrad #endif
2410 1.1 riastrad default:
2411 1.47 riastrad panic("invalid af=%d", src->sa_family);
2412 1.1 riastrad }
2413 1.1 riastrad
2414 1.1 riastrad wg_algo_mac(cookie, sizeof(cookie),
2415 1.98 riastrad wgp->wgp_cookiesecret, sizeof(wgp->wgp_cookiesecret),
2416 1.17 riastrad addr, addrlen, (const uint8_t *)&uh_sport, sizeof(uh_sport));
2417 1.1 riastrad wg_algo_mac_cookie(key, sizeof(key), wg->wg_pubkey,
2418 1.1 riastrad sizeof(wg->wg_pubkey));
2419 1.1 riastrad wg_algo_xaead_enc(wgmc->wgmc_cookie, sizeof(wgmc->wgmc_cookie), key,
2420 1.1 riastrad cookie, sizeof(cookie), mac1, WG_MAC_LEN, wgmc->wgmc_salt);
2421 1.1 riastrad
2422 1.1 riastrad /* Need to store to calculate mac2 */
2423 1.1 riastrad memcpy(wgp->wgp_last_sent_cookie, cookie, sizeof(cookie));
2424 1.1 riastrad wgp->wgp_last_sent_cookie_valid = true;
2425 1.1 riastrad }
2426 1.1 riastrad
2427 1.108 riastrad static void
2428 1.1 riastrad wg_send_cookie_msg(struct wg_softc *wg, struct wg_peer *wgp,
2429 1.114 riastrad const uint32_t sender, const uint8_t mac1[static WG_MAC_LEN],
2430 1.1 riastrad const struct sockaddr *src)
2431 1.1 riastrad {
2432 1.1 riastrad int error;
2433 1.1 riastrad struct mbuf *m;
2434 1.1 riastrad struct wg_msg_cookie *wgmc;
2435 1.1 riastrad
2436 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
2437 1.49 riastrad
2438 1.1 riastrad m = m_gethdr(M_WAIT, MT_DATA);
2439 1.69 hannken if (sizeof(*wgmc) > MHLEN) {
2440 1.69 hannken m_clget(m, M_WAIT);
2441 1.69 hannken CTASSERT(sizeof(*wgmc) <= MCLBYTES);
2442 1.69 hannken }
2443 1.1 riastrad m->m_pkthdr.len = m->m_len = sizeof(*wgmc);
2444 1.1 riastrad wgmc = mtod(m, struct wg_msg_cookie *);
2445 1.1 riastrad wg_fill_msg_cookie(wg, wgp, wgmc, sender, mac1, src);
2446 1.1 riastrad
2447 1.108 riastrad error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
2448 1.108 riastrad if (error) {
2449 1.108 riastrad WG_DLOG("send_hs_msg failed, error=%d\n", error);
2450 1.108 riastrad return;
2451 1.108 riastrad }
2452 1.108 riastrad
2453 1.108 riastrad WG_TRACE("cookie msg sent");
2454 1.1 riastrad }
2455 1.1 riastrad
2456 1.1 riastrad static bool
2457 1.1 riastrad wg_is_underload(struct wg_softc *wg, struct wg_peer *wgp, int msgtype)
2458 1.1 riastrad {
2459 1.1 riastrad #ifdef WG_DEBUG_PARAMS
2460 1.1 riastrad if (wg_force_underload)
2461 1.1 riastrad return true;
2462 1.1 riastrad #endif
2463 1.1 riastrad
2464 1.1 riastrad /*
2465 1.1 riastrad * XXX we don't have a means of a load estimation. The purpose of
2466 1.1 riastrad * the mechanism is a DoS mitigation, so we consider frequent handshake
2467 1.1 riastrad * messages as (a kind of) load; if a message of the same type comes
2468 1.1 riastrad * to a peer within 1 second, we consider we are under load.
2469 1.1 riastrad */
2470 1.1 riastrad time_t last = wgp->wgp_last_msg_received_time[msgtype];
2471 1.1 riastrad wgp->wgp_last_msg_received_time[msgtype] = time_uptime;
2472 1.1 riastrad return (time_uptime - last) == 0;
2473 1.1 riastrad }
2474 1.1 riastrad
2475 1.1 riastrad static void
2476 1.1 riastrad wg_calculate_keys(struct wg_session *wgs, const bool initiator)
2477 1.1 riastrad {
2478 1.1 riastrad
2479 1.49 riastrad KASSERT(mutex_owned(wgs->wgs_peer->wgp_lock));
2480 1.49 riastrad
2481 1.14 riastrad /*
2482 1.14 riastrad * [W] 5.4.5: Ti^send = Tr^recv, Ti^recv = Tr^send := KDF2(Ci = Cr, e)
2483 1.14 riastrad */
2484 1.1 riastrad if (initiator) {
2485 1.1 riastrad wg_algo_kdf(wgs->wgs_tkey_send, wgs->wgs_tkey_recv, NULL,
2486 1.1 riastrad wgs->wgs_chaining_key, NULL, 0);
2487 1.1 riastrad } else {
2488 1.1 riastrad wg_algo_kdf(wgs->wgs_tkey_recv, wgs->wgs_tkey_send, NULL,
2489 1.1 riastrad wgs->wgs_chaining_key, NULL, 0);
2490 1.1 riastrad }
2491 1.1 riastrad WG_DUMP_HASH("wgs_tkey_send", wgs->wgs_tkey_send);
2492 1.1 riastrad WG_DUMP_HASH("wgs_tkey_recv", wgs->wgs_tkey_recv);
2493 1.1 riastrad }
2494 1.1 riastrad
2495 1.22 riastrad static uint64_t
2496 1.22 riastrad wg_session_get_send_counter(struct wg_session *wgs)
2497 1.22 riastrad {
2498 1.22 riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
2499 1.22 riastrad return atomic_load_relaxed(&wgs->wgs_send_counter);
2500 1.22 riastrad #else
2501 1.22 riastrad uint64_t send_counter;
2502 1.22 riastrad
2503 1.22 riastrad mutex_enter(&wgs->wgs_send_counter_lock);
2504 1.22 riastrad send_counter = wgs->wgs_send_counter;
2505 1.22 riastrad mutex_exit(&wgs->wgs_send_counter_lock);
2506 1.22 riastrad
2507 1.22 riastrad return send_counter;
2508 1.22 riastrad #endif
2509 1.22 riastrad }
2510 1.22 riastrad
2511 1.22 riastrad static uint64_t
2512 1.22 riastrad wg_session_inc_send_counter(struct wg_session *wgs)
2513 1.22 riastrad {
2514 1.22 riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
2515 1.22 riastrad return atomic_inc_64_nv(&wgs->wgs_send_counter) - 1;
2516 1.22 riastrad #else
2517 1.22 riastrad uint64_t send_counter;
2518 1.22 riastrad
2519 1.22 riastrad mutex_enter(&wgs->wgs_send_counter_lock);
2520 1.22 riastrad send_counter = wgs->wgs_send_counter++;
2521 1.22 riastrad mutex_exit(&wgs->wgs_send_counter_lock);
2522 1.22 riastrad
2523 1.22 riastrad return send_counter;
2524 1.22 riastrad #endif
2525 1.22 riastrad }
2526 1.22 riastrad
2527 1.1 riastrad static void
2528 1.1 riastrad wg_clear_states(struct wg_session *wgs)
2529 1.1 riastrad {
2530 1.1 riastrad
2531 1.49 riastrad KASSERT(mutex_owned(wgs->wgs_peer->wgp_lock));
2532 1.49 riastrad
2533 1.1 riastrad wgs->wgs_send_counter = 0;
2534 1.6 riastrad sliwin_reset(&wgs->wgs_recvwin->window);
2535 1.1 riastrad
2536 1.1 riastrad #define wgs_clear(v) explicit_memset(wgs->wgs_##v, 0, sizeof(wgs->wgs_##v))
2537 1.1 riastrad wgs_clear(handshake_hash);
2538 1.1 riastrad wgs_clear(chaining_key);
2539 1.1 riastrad wgs_clear(ephemeral_key_pub);
2540 1.1 riastrad wgs_clear(ephemeral_key_priv);
2541 1.1 riastrad wgs_clear(ephemeral_key_peer);
2542 1.1 riastrad #undef wgs_clear
2543 1.1 riastrad }
2544 1.1 riastrad
2545 1.1 riastrad static struct wg_session *
2546 1.1 riastrad wg_lookup_session_by_index(struct wg_softc *wg, const uint32_t index,
2547 1.1 riastrad struct psref *psref)
2548 1.1 riastrad {
2549 1.1 riastrad struct wg_session *wgs;
2550 1.1 riastrad
2551 1.1 riastrad int s = pserialize_read_enter();
2552 1.37 riastrad wgs = thmap_get(wg->wg_sessions_byindex, &index, sizeof index);
2553 1.49 riastrad if (wgs != NULL) {
2554 1.120 riastrad KASSERTMSG(index == wgs->wgs_local_index,
2555 1.94 riastrad "index=%"PRIx32" wgs->wgs_local_index=%"PRIx32,
2556 1.120 riastrad index, wgs->wgs_local_index);
2557 1.1 riastrad psref_acquire(psref, &wgs->wgs_psref, wg_psref_class);
2558 1.49 riastrad }
2559 1.1 riastrad pserialize_read_exit(s);
2560 1.1 riastrad
2561 1.1 riastrad return wgs;
2562 1.1 riastrad }
2563 1.1 riastrad
2564 1.1 riastrad static void
2565 1.1 riastrad wg_send_keepalive_msg(struct wg_peer *wgp, struct wg_session *wgs)
2566 1.1 riastrad {
2567 1.1 riastrad struct mbuf *m;
2568 1.1 riastrad
2569 1.1 riastrad /*
2570 1.1 riastrad * [W] 6.5 Passive Keepalive
2571 1.1 riastrad * "A keepalive message is simply a transport data message with
2572 1.1 riastrad * a zero-length encapsulated encrypted inner-packet."
2573 1.1 riastrad */
2574 1.80 christos WG_TRACE("");
2575 1.1 riastrad m = m_gethdr(M_WAIT, MT_DATA);
2576 1.1 riastrad wg_send_data_msg(wgp, wgs, m);
2577 1.1 riastrad }
2578 1.1 riastrad
2579 1.1 riastrad static bool
2580 1.1 riastrad wg_need_to_send_init_message(struct wg_session *wgs)
2581 1.1 riastrad {
2582 1.1 riastrad /*
2583 1.1 riastrad * [W] 6.2 Transport Message Limits
2584 1.1 riastrad * "if a peer is the initiator of a current secure session,
2585 1.1 riastrad * WireGuard will send a handshake initiation message to begin
2586 1.1 riastrad * a new secure session ... if after receiving a transport data
2587 1.1 riastrad * message, the current secure session is (REJECT-AFTER-TIME
2588 1.1 riastrad * KEEPALIVE-TIMEOUT REKEY-TIMEOUT) seconds old and it has
2589 1.1 riastrad * not yet acted upon this event."
2590 1.1 riastrad */
2591 1.104 riastrad return wgs->wgs_is_initiator &&
2592 1.104 riastrad atomic_load_relaxed(&wgs->wgs_time_last_data_sent) == 0 &&
2593 1.117 riastrad (time_uptime32 - wgs->wgs_time_established >=
2594 1.104 riastrad (wg_reject_after_time - wg_keepalive_timeout -
2595 1.104 riastrad wg_rekey_timeout));
2596 1.1 riastrad }
2597 1.1 riastrad
2598 1.1 riastrad static void
2599 1.65 christos wg_schedule_peer_task(struct wg_peer *wgp, unsigned int task)
2600 1.1 riastrad {
2601 1.1 riastrad
2602 1.55 riastrad mutex_enter(wgp->wgp_intr_lock);
2603 1.1 riastrad WG_DLOG("tasks=%d, task=%d\n", wgp->wgp_tasks, task);
2604 1.55 riastrad if (wgp->wgp_tasks == 0)
2605 1.55 riastrad /*
2606 1.55 riastrad * XXX If the current CPU is already loaded -- e.g., if
2607 1.55 riastrad * there's already a bunch of handshakes queued up --
2608 1.55 riastrad * consider tossing this over to another CPU to
2609 1.55 riastrad * distribute the load.
2610 1.55 riastrad */
2611 1.55 riastrad workqueue_enqueue(wg_wq, &wgp->wgp_work, NULL);
2612 1.55 riastrad wgp->wgp_tasks |= task;
2613 1.55 riastrad mutex_exit(wgp->wgp_intr_lock);
2614 1.1 riastrad }
2615 1.1 riastrad
2616 1.1 riastrad static void
2617 1.1 riastrad wg_change_endpoint(struct wg_peer *wgp, const struct sockaddr *new)
2618 1.1 riastrad {
2619 1.49 riastrad struct wg_sockaddr *wgsa_prev;
2620 1.1 riastrad
2621 1.1 riastrad WG_TRACE("Changing endpoint");
2622 1.1 riastrad
2623 1.1 riastrad memcpy(wgp->wgp_endpoint0, new, new->sa_len);
2624 1.49 riastrad wgsa_prev = wgp->wgp_endpoint;
2625 1.49 riastrad atomic_store_release(&wgp->wgp_endpoint, wgp->wgp_endpoint0);
2626 1.49 riastrad wgp->wgp_endpoint0 = wgsa_prev;
2627 1.49 riastrad atomic_store_release(&wgp->wgp_endpoint_available, true);
2628 1.49 riastrad
2629 1.1 riastrad wg_schedule_peer_task(wgp, WGP_TASK_ENDPOINT_CHANGED);
2630 1.1 riastrad }
2631 1.1 riastrad
2632 1.2 riastrad static bool
2633 1.17 riastrad wg_validate_inner_packet(const char *packet, size_t decrypted_len, int *af)
2634 1.1 riastrad {
2635 1.2 riastrad uint16_t packet_len;
2636 1.17 riastrad const struct ip *ip;
2637 1.2 riastrad
2638 1.81 christos if (__predict_false(decrypted_len < sizeof(*ip))) {
2639 1.81 christos WG_DLOG("decrypted_len=%zu < %zu\n", decrypted_len,
2640 1.81 christos sizeof(*ip));
2641 1.2 riastrad return false;
2642 1.81 christos }
2643 1.1 riastrad
2644 1.17 riastrad ip = (const struct ip *)packet;
2645 1.2 riastrad if (ip->ip_v == 4)
2646 1.2 riastrad *af = AF_INET;
2647 1.2 riastrad else if (ip->ip_v == 6)
2648 1.2 riastrad *af = AF_INET6;
2649 1.81 christos else {
2650 1.81 christos WG_DLOG("ip_v=%d\n", ip->ip_v);
2651 1.2 riastrad return false;
2652 1.81 christos }
2653 1.2 riastrad
2654 1.2 riastrad WG_DLOG("af=%d\n", *af);
2655 1.1 riastrad
2656 1.62 riastrad switch (*af) {
2657 1.62 riastrad #ifdef INET
2658 1.62 riastrad case AF_INET:
2659 1.2 riastrad packet_len = ntohs(ip->ip_len);
2660 1.62 riastrad break;
2661 1.62 riastrad #endif
2662 1.62 riastrad #ifdef INET6
2663 1.62 riastrad case AF_INET6: {
2664 1.17 riastrad const struct ip6_hdr *ip6;
2665 1.1 riastrad
2666 1.81 christos if (__predict_false(decrypted_len < sizeof(*ip6))) {
2667 1.81 christos WG_DLOG("decrypted_len=%zu < %zu\n", decrypted_len,
2668 1.81 christos sizeof(*ip6));
2669 1.2 riastrad return false;
2670 1.81 christos }
2671 1.1 riastrad
2672 1.17 riastrad ip6 = (const struct ip6_hdr *)packet;
2673 1.81 christos packet_len = sizeof(*ip6) + ntohs(ip6->ip6_plen);
2674 1.62 riastrad break;
2675 1.62 riastrad }
2676 1.62 riastrad #endif
2677 1.62 riastrad default:
2678 1.62 riastrad return false;
2679 1.1 riastrad }
2680 1.2 riastrad
2681 1.81 christos if (packet_len > decrypted_len) {
2682 1.81 christos WG_DLOG("packet_len %u > decrypted_len %zu\n", packet_len,
2683 1.81 christos decrypted_len);
2684 1.1 riastrad return false;
2685 1.81 christos }
2686 1.1 riastrad
2687 1.1 riastrad return true;
2688 1.1 riastrad }
2689 1.1 riastrad
2690 1.1 riastrad static bool
2691 1.1 riastrad wg_validate_route(struct wg_softc *wg, struct wg_peer *wgp_expected,
2692 1.1 riastrad int af, char *packet)
2693 1.1 riastrad {
2694 1.1 riastrad struct sockaddr_storage ss;
2695 1.1 riastrad struct sockaddr *sa;
2696 1.1 riastrad struct psref psref;
2697 1.1 riastrad struct wg_peer *wgp;
2698 1.1 riastrad bool ok;
2699 1.1 riastrad
2700 1.1 riastrad /*
2701 1.1 riastrad * II CRYPTOKEY ROUTING
2702 1.14 riastrad * "it will only accept it if its source IP resolves in the
2703 1.14 riastrad * table to the public key used in the secure session for
2704 1.14 riastrad * decrypting it."
2705 1.1 riastrad */
2706 1.1 riastrad
2707 1.109 riastrad switch (af) {
2708 1.109 riastrad #ifdef INET
2709 1.109 riastrad case AF_INET: {
2710 1.17 riastrad const struct ip *ip = (const struct ip *)packet;
2711 1.1 riastrad struct sockaddr_in *sin = (struct sockaddr_in *)&ss;
2712 1.1 riastrad sockaddr_in_init(sin, &ip->ip_src, 0);
2713 1.1 riastrad sa = sintosa(sin);
2714 1.109 riastrad break;
2715 1.109 riastrad }
2716 1.109 riastrad #endif
2717 1.1 riastrad #ifdef INET6
2718 1.109 riastrad case AF_INET6: {
2719 1.17 riastrad const struct ip6_hdr *ip6 = (const struct ip6_hdr *)packet;
2720 1.1 riastrad struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)&ss;
2721 1.1 riastrad sockaddr_in6_init(sin6, &ip6->ip6_src, 0, 0, 0);
2722 1.1 riastrad sa = sin6tosa(sin6);
2723 1.109 riastrad break;
2724 1.109 riastrad }
2725 1.1 riastrad #endif
2726 1.109 riastrad default:
2727 1.109 riastrad __USE(ss);
2728 1.109 riastrad return false;
2729 1.1 riastrad }
2730 1.1 riastrad
2731 1.1 riastrad wgp = wg_pick_peer_by_sa(wg, sa, &psref);
2732 1.1 riastrad ok = (wgp == wgp_expected);
2733 1.1 riastrad if (wgp != NULL)
2734 1.1 riastrad wg_put_peer(wgp, &psref);
2735 1.1 riastrad
2736 1.1 riastrad return ok;
2737 1.1 riastrad }
2738 1.1 riastrad
2739 1.1 riastrad static void
2740 1.1 riastrad wg_session_dtor_timer(void *arg)
2741 1.1 riastrad {
2742 1.1 riastrad struct wg_peer *wgp = arg;
2743 1.1 riastrad
2744 1.1 riastrad WG_TRACE("enter");
2745 1.1 riastrad
2746 1.100 riastrad wg_schedule_session_dtor_timer(wgp);
2747 1.1 riastrad wg_schedule_peer_task(wgp, WGP_TASK_DESTROY_PREV_SESSION);
2748 1.1 riastrad }
2749 1.1 riastrad
2750 1.1 riastrad static void
2751 1.1 riastrad wg_schedule_session_dtor_timer(struct wg_peer *wgp)
2752 1.1 riastrad {
2753 1.1 riastrad
2754 1.100 riastrad /*
2755 1.100 riastrad * If the periodic session destructor is already pending to
2756 1.100 riastrad * handle the previous session, that's fine -- leave it in
2757 1.100 riastrad * place; it will be scheduled again.
2758 1.100 riastrad */
2759 1.100 riastrad if (callout_pending(&wgp->wgp_session_dtor_timer)) {
2760 1.100 riastrad WG_DLOG("session dtor already pending\n");
2761 1.100 riastrad return;
2762 1.100 riastrad }
2763 1.100 riastrad
2764 1.100 riastrad WG_DLOG("scheduling session dtor in %u secs\n", wg_reject_after_time);
2765 1.100 riastrad callout_schedule(&wgp->wgp_session_dtor_timer,
2766 1.100 riastrad wg_reject_after_time*hz);
2767 1.1 riastrad }
2768 1.1 riastrad
2769 1.1 riastrad static bool
2770 1.1 riastrad sockaddr_port_match(const struct sockaddr *sa1, const struct sockaddr *sa2)
2771 1.1 riastrad {
2772 1.1 riastrad if (sa1->sa_family != sa2->sa_family)
2773 1.1 riastrad return false;
2774 1.1 riastrad
2775 1.1 riastrad switch (sa1->sa_family) {
2776 1.62 riastrad #ifdef INET
2777 1.1 riastrad case AF_INET:
2778 1.1 riastrad return satocsin(sa1)->sin_port == satocsin(sa2)->sin_port;
2779 1.62 riastrad #endif
2780 1.62 riastrad #ifdef INET6
2781 1.1 riastrad case AF_INET6:
2782 1.1 riastrad return satocsin6(sa1)->sin6_port == satocsin6(sa2)->sin6_port;
2783 1.62 riastrad #endif
2784 1.1 riastrad default:
2785 1.62 riastrad return false;
2786 1.1 riastrad }
2787 1.1 riastrad }
2788 1.1 riastrad
2789 1.1 riastrad static void
2790 1.1 riastrad wg_update_endpoint_if_necessary(struct wg_peer *wgp,
2791 1.1 riastrad const struct sockaddr *src)
2792 1.1 riastrad {
2793 1.47 riastrad struct wg_sockaddr *wgsa;
2794 1.47 riastrad struct psref psref;
2795 1.47 riastrad
2796 1.47 riastrad wgsa = wg_get_endpoint_sa(wgp, &psref);
2797 1.1 riastrad
2798 1.1 riastrad #ifdef WG_DEBUG_LOG
2799 1.1 riastrad char oldaddr[128], newaddr[128];
2800 1.47 riastrad sockaddr_format(wgsatosa(wgsa), oldaddr, sizeof(oldaddr));
2801 1.1 riastrad sockaddr_format(src, newaddr, sizeof(newaddr));
2802 1.1 riastrad WG_DLOG("old=%s, new=%s\n", oldaddr, newaddr);
2803 1.1 riastrad #endif
2804 1.1 riastrad
2805 1.1 riastrad /*
2806 1.1 riastrad * III: "Since the packet has authenticated correctly, the source IP of
2807 1.1 riastrad * the outer UDP/IP packet is used to update the endpoint for peer..."
2808 1.1 riastrad */
2809 1.47 riastrad if (__predict_false(sockaddr_cmp(src, wgsatosa(wgsa)) != 0 ||
2810 1.47 riastrad !sockaddr_port_match(src, wgsatosa(wgsa)))) {
2811 1.1 riastrad /* XXX We can't change the endpoint twice in a short period */
2812 1.49 riastrad if (atomic_swap_uint(&wgp->wgp_endpoint_changing, 1) == 0) {
2813 1.1 riastrad wg_change_endpoint(wgp, src);
2814 1.1 riastrad }
2815 1.1 riastrad }
2816 1.47 riastrad
2817 1.47 riastrad wg_put_sa(wgp, wgsa, &psref);
2818 1.1 riastrad }
2819 1.1 riastrad
2820 1.63 riastrad static void __noinline
2821 1.1 riastrad wg_handle_msg_data(struct wg_softc *wg, struct mbuf *m,
2822 1.1 riastrad const struct sockaddr *src)
2823 1.1 riastrad {
2824 1.2 riastrad struct wg_msg_data *wgmd;
2825 1.1 riastrad char *encrypted_buf = NULL, *decrypted_buf;
2826 1.1 riastrad size_t encrypted_len, decrypted_len;
2827 1.1 riastrad struct wg_session *wgs;
2828 1.1 riastrad struct wg_peer *wgp;
2829 1.49 riastrad int state;
2830 1.104 riastrad uint32_t age;
2831 1.1 riastrad size_t mlen;
2832 1.1 riastrad struct psref psref;
2833 1.1 riastrad int error, af;
2834 1.1 riastrad bool success, free_encrypted_buf = false, ok;
2835 1.1 riastrad struct mbuf *n;
2836 1.1 riastrad
2837 1.26 riastrad KASSERT(m->m_len >= sizeof(struct wg_msg_data));
2838 1.2 riastrad wgmd = mtod(m, struct wg_msg_data *);
2839 1.2 riastrad
2840 1.39 riastrad KASSERT(wgmd->wgmd_type == htole32(WG_MSG_TYPE_DATA));
2841 1.1 riastrad WG_TRACE("data");
2842 1.1 riastrad
2843 1.49 riastrad /* Find the putative session, or drop. */
2844 1.1 riastrad wgs = wg_lookup_session_by_index(wg, wgmd->wgmd_receiver, &psref);
2845 1.1 riastrad if (wgs == NULL) {
2846 1.1 riastrad WG_TRACE("No session found");
2847 1.1 riastrad m_freem(m);
2848 1.1 riastrad return;
2849 1.1 riastrad }
2850 1.49 riastrad
2851 1.49 riastrad /*
2852 1.49 riastrad * We are only ready to handle data when in INIT_PASSIVE,
2853 1.49 riastrad * ESTABLISHED, or DESTROYING. All transitions out of that
2854 1.49 riastrad * state dissociate the session index and drain psrefs.
2855 1.94 riastrad *
2856 1.94 riastrad * atomic_load_acquire matches atomic_store_release in either
2857 1.94 riastrad * wg_handle_msg_init or wg_handle_msg_resp. (The transition
2858 1.94 riastrad * INIT_PASSIVE to ESTABLISHED in wg_task_establish_session
2859 1.94 riastrad * doesn't make a difference for this rx path.)
2860 1.49 riastrad */
2861 1.94 riastrad state = atomic_load_acquire(&wgs->wgs_state);
2862 1.49 riastrad switch (state) {
2863 1.49 riastrad case WGS_STATE_UNKNOWN:
2864 1.49 riastrad case WGS_STATE_INIT_ACTIVE:
2865 1.49 riastrad WG_TRACE("not yet ready for data");
2866 1.49 riastrad goto out;
2867 1.49 riastrad case WGS_STATE_INIT_PASSIVE:
2868 1.49 riastrad case WGS_STATE_ESTABLISHED:
2869 1.49 riastrad case WGS_STATE_DESTROYING:
2870 1.49 riastrad break;
2871 1.49 riastrad }
2872 1.49 riastrad
2873 1.49 riastrad /*
2874 1.101 riastrad * Reject if the session is too old.
2875 1.101 riastrad */
2876 1.117 riastrad age = time_uptime32 - wgs->wgs_time_established;
2877 1.101 riastrad if (__predict_false(age >= wg_reject_after_time)) {
2878 1.104 riastrad WG_DLOG("session %"PRIx32" too old, %"PRIu32" sec\n",
2879 1.104 riastrad wgmd->wgmd_receiver, age);
2880 1.101 riastrad goto out;
2881 1.101 riastrad }
2882 1.101 riastrad
2883 1.101 riastrad /*
2884 1.49 riastrad * Get the peer, for rate-limited logs (XXX MPSAFE, dtrace) and
2885 1.49 riastrad * to update the endpoint if authentication succeeds.
2886 1.49 riastrad */
2887 1.1 riastrad wgp = wgs->wgs_peer;
2888 1.1 riastrad
2889 1.49 riastrad /*
2890 1.49 riastrad * Reject outrageously wrong sequence numbers before doing any
2891 1.49 riastrad * crypto work or taking any locks.
2892 1.49 riastrad */
2893 1.6 riastrad error = sliwin_check_fast(&wgs->wgs_recvwin->window,
2894 1.39 riastrad le64toh(wgmd->wgmd_counter));
2895 1.6 riastrad if (error) {
2896 1.6 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
2897 1.76 jakllsch "%s: peer %s: out-of-window packet: %"PRIu64"\n",
2898 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name,
2899 1.39 riastrad le64toh(wgmd->wgmd_counter));
2900 1.6 riastrad goto out;
2901 1.6 riastrad }
2902 1.6 riastrad
2903 1.49 riastrad /* Ensure the payload and authenticator are contiguous. */
2904 1.1 riastrad mlen = m_length(m);
2905 1.1 riastrad encrypted_len = mlen - sizeof(*wgmd);
2906 1.2 riastrad if (encrypted_len < WG_AUTHTAG_LEN) {
2907 1.87 kre WG_DLOG("Short encrypted_len: %zu\n", encrypted_len);
2908 1.2 riastrad goto out;
2909 1.2 riastrad }
2910 1.1 riastrad success = m_ensure_contig(&m, sizeof(*wgmd) + encrypted_len);
2911 1.1 riastrad if (success) {
2912 1.1 riastrad encrypted_buf = mtod(m, char *) + sizeof(*wgmd);
2913 1.1 riastrad } else {
2914 1.1 riastrad encrypted_buf = kmem_intr_alloc(encrypted_len, KM_NOSLEEP);
2915 1.1 riastrad if (encrypted_buf == NULL) {
2916 1.1 riastrad WG_DLOG("failed to allocate encrypted_buf\n");
2917 1.1 riastrad goto out;
2918 1.1 riastrad }
2919 1.2 riastrad m_copydata(m, sizeof(*wgmd), encrypted_len, encrypted_buf);
2920 1.1 riastrad free_encrypted_buf = true;
2921 1.1 riastrad }
2922 1.1 riastrad /* m_ensure_contig may change m regardless of its result */
2923 1.27 riastrad KASSERT(m->m_len >= sizeof(*wgmd));
2924 1.1 riastrad wgmd = mtod(m, struct wg_msg_data *);
2925 1.1 riastrad
2926 1.49 riastrad /*
2927 1.49 riastrad * Get a buffer for the plaintext. Add WG_AUTHTAG_LEN to avoid
2928 1.49 riastrad * a zero-length buffer (XXX). Drop if plaintext is longer
2929 1.49 riastrad * than MCLBYTES (XXX).
2930 1.49 riastrad */
2931 1.2 riastrad decrypted_len = encrypted_len - WG_AUTHTAG_LEN;
2932 1.2 riastrad if (decrypted_len > MCLBYTES) {
2933 1.2 riastrad /* FIXME handle larger data than MCLBYTES */
2934 1.2 riastrad WG_DLOG("couldn't handle larger data than MCLBYTES\n");
2935 1.2 riastrad goto out;
2936 1.2 riastrad }
2937 1.14 riastrad n = wg_get_mbuf(0, decrypted_len + WG_AUTHTAG_LEN);
2938 1.1 riastrad if (n == NULL) {
2939 1.1 riastrad WG_DLOG("wg_get_mbuf failed\n");
2940 1.1 riastrad goto out;
2941 1.1 riastrad }
2942 1.1 riastrad decrypted_buf = mtod(n, char *);
2943 1.1 riastrad
2944 1.49 riastrad /* Decrypt and verify the packet. */
2945 1.87 kre WG_DLOG("mlen=%zu, encrypted_len=%zu\n", mlen, encrypted_len);
2946 1.1 riastrad error = wg_algo_aead_dec(decrypted_buf,
2947 1.1 riastrad encrypted_len - WG_AUTHTAG_LEN /* can be 0 */,
2948 1.39 riastrad wgs->wgs_tkey_recv, le64toh(wgmd->wgmd_counter), encrypted_buf,
2949 1.1 riastrad encrypted_len, NULL, 0);
2950 1.1 riastrad if (error != 0) {
2951 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
2952 1.76 jakllsch "%s: peer %s: failed to wg_algo_aead_dec\n",
2953 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name);
2954 1.1 riastrad m_freem(n);
2955 1.1 riastrad goto out;
2956 1.1 riastrad }
2957 1.1 riastrad WG_DLOG("outsize=%u\n", (u_int)decrypted_len);
2958 1.1 riastrad
2959 1.49 riastrad /* Packet is genuine. Reject it if a replay or just too old. */
2960 1.6 riastrad mutex_enter(&wgs->wgs_recvwin->lock);
2961 1.6 riastrad error = sliwin_update(&wgs->wgs_recvwin->window,
2962 1.39 riastrad le64toh(wgmd->wgmd_counter));
2963 1.6 riastrad mutex_exit(&wgs->wgs_recvwin->lock);
2964 1.6 riastrad if (error) {
2965 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
2966 1.76 jakllsch "%s: peer %s: replay or out-of-window packet: %"PRIu64"\n",
2967 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name,
2968 1.39 riastrad le64toh(wgmd->wgmd_counter));
2969 1.1 riastrad m_freem(n);
2970 1.1 riastrad goto out;
2971 1.1 riastrad }
2972 1.1 riastrad
2973 1.49 riastrad /* We're done with m now; free it and chuck the pointers. */
2974 1.1 riastrad m_freem(m);
2975 1.1 riastrad m = NULL;
2976 1.1 riastrad wgmd = NULL;
2977 1.1 riastrad
2978 1.49 riastrad /*
2979 1.103 riastrad * The packet is genuine. Update the peer's endpoint if the
2980 1.103 riastrad * source address changed.
2981 1.103 riastrad *
2982 1.103 riastrad * XXX How to prevent DoS by replaying genuine packets from the
2983 1.103 riastrad * wrong source address?
2984 1.103 riastrad */
2985 1.103 riastrad wg_update_endpoint_if_necessary(wgp, src);
2986 1.103 riastrad
2987 1.103 riastrad /*
2988 1.49 riastrad * Validate the encapsulated packet header and get the address
2989 1.49 riastrad * family, or drop.
2990 1.49 riastrad */
2991 1.2 riastrad ok = wg_validate_inner_packet(decrypted_buf, decrypted_len, &af);
2992 1.1 riastrad if (!ok) {
2993 1.1 riastrad m_freem(n);
2994 1.102 riastrad goto update_state;
2995 1.1 riastrad }
2996 1.1 riastrad
2997 1.49 riastrad /* Submit it into our network stack if routable. */
2998 1.1 riastrad ok = wg_validate_route(wg, wgp, af, decrypted_buf);
2999 1.1 riastrad if (ok) {
3000 1.1 riastrad wg->wg_ops->input(&wg->wg_if, n, af);
3001 1.1 riastrad } else {
3002 1.76 jakllsch char addrstr[INET6_ADDRSTRLEN];
3003 1.76 jakllsch memset(addrstr, 0, sizeof(addrstr));
3004 1.109 riastrad switch (af) {
3005 1.109 riastrad #ifdef INET
3006 1.109 riastrad case AF_INET: {
3007 1.76 jakllsch const struct ip *ip = (const struct ip *)decrypted_buf;
3008 1.76 jakllsch IN_PRINT(addrstr, &ip->ip_src);
3009 1.109 riastrad break;
3010 1.109 riastrad }
3011 1.109 riastrad #endif
3012 1.76 jakllsch #ifdef INET6
3013 1.109 riastrad case AF_INET6: {
3014 1.76 jakllsch const struct ip6_hdr *ip6 =
3015 1.76 jakllsch (const struct ip6_hdr *)decrypted_buf;
3016 1.76 jakllsch IN6_PRINT(addrstr, &ip6->ip6_src);
3017 1.109 riastrad break;
3018 1.109 riastrad }
3019 1.76 jakllsch #endif
3020 1.109 riastrad default:
3021 1.109 riastrad panic("invalid af=%d", af);
3022 1.76 jakllsch }
3023 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
3024 1.76 jakllsch "%s: peer %s: invalid source address (%s)\n",
3025 1.76 jakllsch if_name(&wg->wg_if), wgp->wgp_name, addrstr);
3026 1.1 riastrad m_freem(n);
3027 1.1 riastrad /*
3028 1.1 riastrad * The inner address is invalid however the session is valid
3029 1.1 riastrad * so continue the session processing below.
3030 1.1 riastrad */
3031 1.1 riastrad }
3032 1.1 riastrad n = NULL;
3033 1.1 riastrad
3034 1.102 riastrad update_state:
3035 1.49 riastrad /* Update the state machine if necessary. */
3036 1.49 riastrad if (__predict_false(state == WGS_STATE_INIT_PASSIVE)) {
3037 1.49 riastrad /*
3038 1.49 riastrad * We were waiting for the initiator to send their
3039 1.49 riastrad * first data transport message, and that has happened.
3040 1.49 riastrad * Schedule a task to establish this session.
3041 1.49 riastrad */
3042 1.49 riastrad wg_schedule_peer_task(wgp, WGP_TASK_ESTABLISH_SESSION);
3043 1.1 riastrad } else {
3044 1.1 riastrad if (__predict_false(wg_need_to_send_init_message(wgs))) {
3045 1.1 riastrad wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
3046 1.1 riastrad }
3047 1.1 riastrad /*
3048 1.1 riastrad * [W] 6.5 Passive Keepalive
3049 1.1 riastrad * "If a peer has received a validly-authenticated transport
3050 1.1 riastrad * data message (section 5.4.6), but does not have any packets
3051 1.1 riastrad * itself to send back for KEEPALIVE-TIMEOUT seconds, it sends
3052 1.1 riastrad * a keepalive message."
3053 1.1 riastrad */
3054 1.104 riastrad const uint32_t now = time_uptime32;
3055 1.104 riastrad const uint32_t time_last_data_sent =
3056 1.104 riastrad atomic_load_relaxed(&wgs->wgs_time_last_data_sent);
3057 1.104 riastrad WG_DLOG("time_uptime32=%"PRIu32
3058 1.104 riastrad " wgs_time_last_data_sent=%"PRIu32"\n",
3059 1.104 riastrad now, time_last_data_sent);
3060 1.104 riastrad if ((now - time_last_data_sent) >= wg_keepalive_timeout) {
3061 1.1 riastrad WG_TRACE("Schedule sending keepalive message");
3062 1.1 riastrad /*
3063 1.1 riastrad * We can't send a keepalive message here to avoid
3064 1.1 riastrad * a deadlock; we already hold the solock of a socket
3065 1.1 riastrad * that is used to send the message.
3066 1.1 riastrad */
3067 1.14 riastrad wg_schedule_peer_task(wgp,
3068 1.14 riastrad WGP_TASK_SEND_KEEPALIVE_MESSAGE);
3069 1.1 riastrad }
3070 1.1 riastrad }
3071 1.1 riastrad out:
3072 1.1 riastrad wg_put_session(wgs, &psref);
3073 1.79 rin m_freem(m);
3074 1.1 riastrad if (free_encrypted_buf)
3075 1.1 riastrad kmem_intr_free(encrypted_buf, encrypted_len);
3076 1.1 riastrad }
3077 1.1 riastrad
3078 1.63 riastrad static void __noinline
3079 1.1 riastrad wg_handle_msg_cookie(struct wg_softc *wg, const struct wg_msg_cookie *wgmc)
3080 1.1 riastrad {
3081 1.1 riastrad struct wg_session *wgs;
3082 1.1 riastrad struct wg_peer *wgp;
3083 1.1 riastrad struct psref psref;
3084 1.1 riastrad int error;
3085 1.1 riastrad uint8_t key[WG_HASH_LEN];
3086 1.1 riastrad uint8_t cookie[WG_COOKIE_LEN];
3087 1.1 riastrad
3088 1.1 riastrad WG_TRACE("cookie msg received");
3089 1.49 riastrad
3090 1.49 riastrad /* Find the putative session. */
3091 1.1 riastrad wgs = wg_lookup_session_by_index(wg, wgmc->wgmc_receiver, &psref);
3092 1.1 riastrad if (wgs == NULL) {
3093 1.1 riastrad WG_TRACE("No session found");
3094 1.1 riastrad return;
3095 1.1 riastrad }
3096 1.49 riastrad
3097 1.49 riastrad /* Lock the peer so we can update the cookie state. */
3098 1.1 riastrad wgp = wgs->wgs_peer;
3099 1.49 riastrad mutex_enter(wgp->wgp_lock);
3100 1.1 riastrad
3101 1.1 riastrad if (!wgp->wgp_last_sent_mac1_valid) {
3102 1.1 riastrad WG_TRACE("No valid mac1 sent (or expired)");
3103 1.1 riastrad goto out;
3104 1.1 riastrad }
3105 1.1 riastrad
3106 1.94 riastrad /*
3107 1.94 riastrad * wgp_last_sent_mac1_valid is only set to true when we are
3108 1.94 riastrad * transitioning to INIT_ACTIVE or INIT_PASSIVE, and always
3109 1.94 riastrad * cleared on transition out of them.
3110 1.94 riastrad */
3111 1.94 riastrad KASSERTMSG((wgs->wgs_state == WGS_STATE_INIT_ACTIVE ||
3112 1.94 riastrad wgs->wgs_state == WGS_STATE_INIT_PASSIVE),
3113 1.94 riastrad "state=%d", wgs->wgs_state);
3114 1.94 riastrad
3115 1.49 riastrad /* Decrypt the cookie and store it for later handshake retry. */
3116 1.1 riastrad wg_algo_mac_cookie(key, sizeof(key), wgp->wgp_pubkey,
3117 1.1 riastrad sizeof(wgp->wgp_pubkey));
3118 1.36 riastrad error = wg_algo_xaead_dec(cookie, sizeof(cookie), key,
3119 1.1 riastrad wgmc->wgmc_cookie, sizeof(wgmc->wgmc_cookie),
3120 1.1 riastrad wgp->wgp_last_sent_mac1, sizeof(wgp->wgp_last_sent_mac1),
3121 1.1 riastrad wgmc->wgmc_salt);
3122 1.1 riastrad if (error != 0) {
3123 1.1 riastrad WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
3124 1.76 jakllsch "%s: peer %s: wg_algo_aead_dec for cookie failed: "
3125 1.76 jakllsch "error=%d\n", if_name(&wg->wg_if), wgp->wgp_name, error);
3126 1.1 riastrad goto out;
3127 1.1 riastrad }
3128 1.1 riastrad /*
3129 1.1 riastrad * [W] 6.6: Interaction with Cookie Reply System
3130 1.1 riastrad * "it should simply store the decrypted cookie value from the cookie
3131 1.1 riastrad * reply message, and wait for the expiration of the REKEY-TIMEOUT
3132 1.1 riastrad * timer for retrying a handshake initiation message."
3133 1.1 riastrad */
3134 1.1 riastrad wgp->wgp_latest_cookie_time = time_uptime;
3135 1.1 riastrad memcpy(wgp->wgp_latest_cookie, cookie, sizeof(wgp->wgp_latest_cookie));
3136 1.1 riastrad out:
3137 1.49 riastrad mutex_exit(wgp->wgp_lock);
3138 1.1 riastrad wg_put_session(wgs, &psref);
3139 1.1 riastrad }
3140 1.1 riastrad
3141 1.26 riastrad static struct mbuf *
3142 1.26 riastrad wg_validate_msg_header(struct wg_softc *wg, struct mbuf *m)
3143 1.2 riastrad {
3144 1.26 riastrad struct wg_msg wgm;
3145 1.26 riastrad size_t mbuflen;
3146 1.26 riastrad size_t msglen;
3147 1.2 riastrad
3148 1.26 riastrad /*
3149 1.26 riastrad * Get the mbuf chain length. It is already guaranteed, by
3150 1.26 riastrad * wg_overudp_cb, to be large enough for a struct wg_msg.
3151 1.26 riastrad */
3152 1.26 riastrad mbuflen = m_length(m);
3153 1.26 riastrad KASSERT(mbuflen >= sizeof(struct wg_msg));
3154 1.2 riastrad
3155 1.26 riastrad /*
3156 1.26 riastrad * Copy the message header (32-bit message type) out -- we'll
3157 1.26 riastrad * worry about contiguity and alignment later.
3158 1.26 riastrad */
3159 1.26 riastrad m_copydata(m, 0, sizeof(wgm), &wgm);
3160 1.39 riastrad switch (le32toh(wgm.wgm_type)) {
3161 1.2 riastrad case WG_MSG_TYPE_INIT:
3162 1.26 riastrad msglen = sizeof(struct wg_msg_init);
3163 1.2 riastrad break;
3164 1.2 riastrad case WG_MSG_TYPE_RESP:
3165 1.26 riastrad msglen = sizeof(struct wg_msg_resp);
3166 1.2 riastrad break;
3167 1.2 riastrad case WG_MSG_TYPE_COOKIE:
3168 1.26 riastrad msglen = sizeof(struct wg_msg_cookie);
3169 1.2 riastrad break;
3170 1.2 riastrad case WG_MSG_TYPE_DATA:
3171 1.26 riastrad msglen = sizeof(struct wg_msg_data);
3172 1.2 riastrad break;
3173 1.2 riastrad default:
3174 1.2 riastrad WG_LOG_RATECHECK(&wg->wg_ppsratecheck, LOG_DEBUG,
3175 1.76 jakllsch "%s: Unexpected msg type: %u\n", if_name(&wg->wg_if),
3176 1.76 jakllsch le32toh(wgm.wgm_type));
3177 1.26 riastrad goto error;
3178 1.26 riastrad }
3179 1.26 riastrad
3180 1.26 riastrad /* Verify the mbuf chain is long enough for this type of message. */
3181 1.26 riastrad if (__predict_false(mbuflen < msglen)) {
3182 1.87 kre WG_DLOG("Invalid msg size: mbuflen=%zu type=%u\n", mbuflen,
3183 1.39 riastrad le32toh(wgm.wgm_type));
3184 1.26 riastrad goto error;
3185 1.26 riastrad }
3186 1.26 riastrad
3187 1.26 riastrad /* Make the message header contiguous if necessary. */
3188 1.26 riastrad if (__predict_false(m->m_len < msglen)) {
3189 1.26 riastrad m = m_pullup(m, msglen);
3190 1.26 riastrad if (m == NULL)
3191 1.26 riastrad return NULL;
3192 1.2 riastrad }
3193 1.2 riastrad
3194 1.26 riastrad return m;
3195 1.26 riastrad
3196 1.26 riastrad error:
3197 1.26 riastrad m_freem(m);
3198 1.26 riastrad return NULL;
3199 1.2 riastrad }
3200 1.2 riastrad
3201 1.1 riastrad static void
3202 1.14 riastrad wg_handle_packet(struct wg_softc *wg, struct mbuf *m,
3203 1.14 riastrad const struct sockaddr *src)
3204 1.1 riastrad {
3205 1.1 riastrad struct wg_msg *wgm;
3206 1.2 riastrad
3207 1.78 riastrad KASSERT(curlwp->l_pflag & LP_BOUND);
3208 1.78 riastrad
3209 1.26 riastrad m = wg_validate_msg_header(wg, m);
3210 1.26 riastrad if (__predict_false(m == NULL))
3211 1.2 riastrad return;
3212 1.1 riastrad
3213 1.26 riastrad KASSERT(m->m_len >= sizeof(struct wg_msg));
3214 1.1 riastrad wgm = mtod(m, struct wg_msg *);
3215 1.39 riastrad switch (le32toh(wgm->wgm_type)) {
3216 1.1 riastrad case WG_MSG_TYPE_INIT:
3217 1.1 riastrad wg_handle_msg_init(wg, (struct wg_msg_init *)wgm, src);
3218 1.1 riastrad break;
3219 1.1 riastrad case WG_MSG_TYPE_RESP:
3220 1.1 riastrad wg_handle_msg_resp(wg, (struct wg_msg_resp *)wgm, src);
3221 1.1 riastrad break;
3222 1.1 riastrad case WG_MSG_TYPE_COOKIE:
3223 1.1 riastrad wg_handle_msg_cookie(wg, (struct wg_msg_cookie *)wgm);
3224 1.1 riastrad break;
3225 1.1 riastrad case WG_MSG_TYPE_DATA:
3226 1.1 riastrad wg_handle_msg_data(wg, m, src);
3227 1.38 riastrad /* wg_handle_msg_data frees m for us */
3228 1.38 riastrad return;
3229 1.1 riastrad default:
3230 1.39 riastrad panic("invalid message type: %d", le32toh(wgm->wgm_type));
3231 1.1 riastrad }
3232 1.38 riastrad
3233 1.38 riastrad m_freem(m);
3234 1.1 riastrad }
3235 1.1 riastrad
3236 1.1 riastrad static void
3237 1.1 riastrad wg_receive_packets(struct wg_softc *wg, const int af)
3238 1.1 riastrad {
3239 1.1 riastrad
3240 1.14 riastrad for (;;) {
3241 1.1 riastrad int error, flags;
3242 1.1 riastrad struct socket *so;
3243 1.1 riastrad struct mbuf *m = NULL;
3244 1.1 riastrad struct uio dummy_uio;
3245 1.1 riastrad struct mbuf *paddr = NULL;
3246 1.1 riastrad struct sockaddr *src;
3247 1.1 riastrad
3248 1.55 riastrad so = wg_get_so_by_af(wg, af);
3249 1.1 riastrad flags = MSG_DONTWAIT;
3250 1.1 riastrad dummy_uio.uio_resid = 1000000000;
3251 1.1 riastrad
3252 1.14 riastrad error = so->so_receive(so, &paddr, &dummy_uio, &m, NULL,
3253 1.14 riastrad &flags);
3254 1.1 riastrad if (error || m == NULL) {
3255 1.1 riastrad //if (error == EWOULDBLOCK)
3256 1.1 riastrad return;
3257 1.1 riastrad }
3258 1.1 riastrad
3259 1.1 riastrad KASSERT(paddr != NULL);
3260 1.27 riastrad KASSERT(paddr->m_len >= sizeof(struct sockaddr));
3261 1.1 riastrad src = mtod(paddr, struct sockaddr *);
3262 1.1 riastrad
3263 1.1 riastrad wg_handle_packet(wg, m, src);
3264 1.1 riastrad }
3265 1.1 riastrad }
3266 1.1 riastrad
3267 1.1 riastrad static void
3268 1.1 riastrad wg_get_peer(struct wg_peer *wgp, struct psref *psref)
3269 1.1 riastrad {
3270 1.1 riastrad
3271 1.1 riastrad psref_acquire(psref, &wgp->wgp_psref, wg_psref_class);
3272 1.1 riastrad }
3273 1.1 riastrad
3274 1.1 riastrad static void
3275 1.1 riastrad wg_put_peer(struct wg_peer *wgp, struct psref *psref)
3276 1.1 riastrad {
3277 1.1 riastrad
3278 1.1 riastrad psref_release(psref, &wgp->wgp_psref, wg_psref_class);
3279 1.1 riastrad }
3280 1.1 riastrad
3281 1.1 riastrad static void
3282 1.11 riastrad wg_task_send_init_message(struct wg_softc *wg, struct wg_peer *wgp)
3283 1.11 riastrad {
3284 1.11 riastrad struct wg_session *wgs;
3285 1.11 riastrad
3286 1.11 riastrad WG_TRACE("WGP_TASK_SEND_INIT_MESSAGE");
3287 1.11 riastrad
3288 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3289 1.49 riastrad
3290 1.49 riastrad if (!atomic_load_acquire(&wgp->wgp_endpoint_available)) {
3291 1.76 jakllsch WGLOG(LOG_DEBUG, "%s: No endpoint available\n",
3292 1.76 jakllsch if_name(&wg->wg_if));
3293 1.11 riastrad /* XXX should do something? */
3294 1.11 riastrad return;
3295 1.11 riastrad }
3296 1.11 riastrad
3297 1.95 riastrad /*
3298 1.95 riastrad * If we already have an established session, there's no need
3299 1.95 riastrad * to initiate a new one -- unless the rekey-after-time or
3300 1.95 riastrad * rekey-after-messages limits have passed.
3301 1.95 riastrad */
3302 1.49 riastrad wgs = wgp->wgp_session_stable;
3303 1.95 riastrad if (wgs->wgs_state == WGS_STATE_ESTABLISHED &&
3304 1.113 riastrad !atomic_load_relaxed(&wgs->wgs_force_rekey))
3305 1.95 riastrad return;
3306 1.95 riastrad
3307 1.95 riastrad /*
3308 1.95 riastrad * Ensure we're initiating a new session. If the unstable
3309 1.95 riastrad * session is already INIT_ACTIVE or INIT_PASSIVE, this does
3310 1.95 riastrad * nothing.
3311 1.95 riastrad */
3312 1.95 riastrad wg_send_handshake_msg_init(wg, wgp);
3313 1.11 riastrad }
3314 1.11 riastrad
3315 1.11 riastrad static void
3316 1.49 riastrad wg_task_retry_handshake(struct wg_softc *wg, struct wg_peer *wgp)
3317 1.49 riastrad {
3318 1.49 riastrad struct wg_session *wgs;
3319 1.49 riastrad
3320 1.49 riastrad WG_TRACE("WGP_TASK_RETRY_HANDSHAKE");
3321 1.49 riastrad
3322 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3323 1.49 riastrad KASSERT(wgp->wgp_handshake_start_time != 0);
3324 1.49 riastrad
3325 1.49 riastrad wgs = wgp->wgp_session_unstable;
3326 1.49 riastrad if (wgs->wgs_state != WGS_STATE_INIT_ACTIVE)
3327 1.49 riastrad return;
3328 1.49 riastrad
3329 1.49 riastrad /*
3330 1.49 riastrad * XXX no real need to assign a new index here, but we do need
3331 1.49 riastrad * to transition to UNKNOWN temporarily
3332 1.49 riastrad */
3333 1.49 riastrad wg_put_session_index(wg, wgs);
3334 1.49 riastrad
3335 1.49 riastrad /* [W] 6.4 Handshake Initiation Retransmission */
3336 1.49 riastrad if ((time_uptime - wgp->wgp_handshake_start_time) >
3337 1.49 riastrad wg_rekey_attempt_time) {
3338 1.49 riastrad /* Give up handshaking */
3339 1.49 riastrad wgp->wgp_handshake_start_time = 0;
3340 1.49 riastrad WG_TRACE("give up");
3341 1.49 riastrad
3342 1.49 riastrad /*
3343 1.49 riastrad * If a new data packet comes, handshaking will be retried
3344 1.49 riastrad * and a new session would be established at that time,
3345 1.49 riastrad * however we don't want to send pending packets then.
3346 1.49 riastrad */
3347 1.49 riastrad wg_purge_pending_packets(wgp);
3348 1.49 riastrad return;
3349 1.49 riastrad }
3350 1.49 riastrad
3351 1.49 riastrad wg_task_send_init_message(wg, wgp);
3352 1.49 riastrad }
3353 1.49 riastrad
3354 1.49 riastrad static void
3355 1.49 riastrad wg_task_establish_session(struct wg_softc *wg, struct wg_peer *wgp)
3356 1.49 riastrad {
3357 1.122 riastrad struct wg_session *wgs;
3358 1.49 riastrad
3359 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3360 1.49 riastrad
3361 1.49 riastrad wgs = wgp->wgp_session_unstable;
3362 1.49 riastrad if (wgs->wgs_state != WGS_STATE_INIT_PASSIVE)
3363 1.49 riastrad /* XXX Can this happen? */
3364 1.49 riastrad return;
3365 1.49 riastrad
3366 1.49 riastrad wgs->wgs_time_last_data_sent = 0;
3367 1.49 riastrad wgs->wgs_is_initiator = false;
3368 1.94 riastrad
3369 1.94 riastrad /*
3370 1.94 riastrad * Session was already ready to receive data. Transition from
3371 1.94 riastrad * INIT_PASSIVE to ESTABLISHED just so we can swap the
3372 1.94 riastrad * sessions.
3373 1.94 riastrad *
3374 1.94 riastrad * atomic_store_relaxed because this doesn't affect the data rx
3375 1.94 riastrad * path, wg_handle_msg_data -- changing from INIT_PASSIVE to
3376 1.94 riastrad * ESTABLISHED makes no difference to the data rx path, and the
3377 1.94 riastrad * transition to INIT_PASSIVE with store-release already
3378 1.94 riastrad * published the state needed by the data rx path.
3379 1.94 riastrad */
3380 1.94 riastrad WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"] -> WGS_STATE_ESTABLISHED\n",
3381 1.94 riastrad wgs->wgs_local_index, wgs->wgs_remote_index);
3382 1.94 riastrad atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_ESTABLISHED);
3383 1.49 riastrad WG_TRACE("WGS_STATE_ESTABLISHED");
3384 1.49 riastrad
3385 1.94 riastrad /*
3386 1.94 riastrad * Session is ready to send data too now that we have received
3387 1.94 riastrad * the peer initiator's first data packet.
3388 1.94 riastrad *
3389 1.94 riastrad * Swap the sessions to publish the new one as the stable
3390 1.94 riastrad * session for the data tx path, wg_output.
3391 1.94 riastrad */
3392 1.122 riastrad wg_swap_sessions(wg, wgp);
3393 1.49 riastrad KASSERT(wgs == wgp->wgp_session_stable);
3394 1.49 riastrad }
3395 1.49 riastrad
3396 1.49 riastrad static void
3397 1.11 riastrad wg_task_endpoint_changed(struct wg_softc *wg, struct wg_peer *wgp)
3398 1.11 riastrad {
3399 1.11 riastrad
3400 1.11 riastrad WG_TRACE("WGP_TASK_ENDPOINT_CHANGED");
3401 1.11 riastrad
3402 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3403 1.49 riastrad
3404 1.49 riastrad if (atomic_load_relaxed(&wgp->wgp_endpoint_changing)) {
3405 1.11 riastrad pserialize_perform(wgp->wgp_psz);
3406 1.56 riastrad mutex_exit(wgp->wgp_lock);
3407 1.11 riastrad psref_target_destroy(&wgp->wgp_endpoint0->wgsa_psref,
3408 1.11 riastrad wg_psref_class);
3409 1.11 riastrad psref_target_init(&wgp->wgp_endpoint0->wgsa_psref,
3410 1.11 riastrad wg_psref_class);
3411 1.56 riastrad mutex_enter(wgp->wgp_lock);
3412 1.49 riastrad atomic_store_release(&wgp->wgp_endpoint_changing, 0);
3413 1.11 riastrad }
3414 1.11 riastrad }
3415 1.11 riastrad
3416 1.11 riastrad static void
3417 1.11 riastrad wg_task_send_keepalive_message(struct wg_softc *wg, struct wg_peer *wgp)
3418 1.11 riastrad {
3419 1.11 riastrad struct wg_session *wgs;
3420 1.11 riastrad
3421 1.11 riastrad WG_TRACE("WGP_TASK_SEND_KEEPALIVE_MESSAGE");
3422 1.11 riastrad
3423 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3424 1.49 riastrad
3425 1.49 riastrad wgs = wgp->wgp_session_stable;
3426 1.49 riastrad if (wgs->wgs_state != WGS_STATE_ESTABLISHED)
3427 1.49 riastrad return;
3428 1.49 riastrad
3429 1.11 riastrad wg_send_keepalive_msg(wgp, wgs);
3430 1.11 riastrad }
3431 1.11 riastrad
3432 1.11 riastrad static void
3433 1.11 riastrad wg_task_destroy_prev_session(struct wg_softc *wg, struct wg_peer *wgp)
3434 1.11 riastrad {
3435 1.11 riastrad struct wg_session *wgs;
3436 1.104 riastrad uint32_t age;
3437 1.11 riastrad
3438 1.11 riastrad WG_TRACE("WGP_TASK_DESTROY_PREV_SESSION");
3439 1.11 riastrad
3440 1.49 riastrad KASSERT(mutex_owned(wgp->wgp_lock));
3441 1.49 riastrad
3442 1.100 riastrad /*
3443 1.100 riastrad * If theres's any previous unstable session, i.e., one that
3444 1.100 riastrad * was ESTABLISHED and is now DESTROYING, older than
3445 1.100 riastrad * reject-after-time, destroy it. Upcoming sessions are still
3446 1.100 riastrad * in INIT_ACTIVE or INIT_PASSIVE -- we don't touch those here.
3447 1.100 riastrad */
3448 1.11 riastrad wgs = wgp->wgp_session_unstable;
3449 1.100 riastrad KASSERT(wgs->wgs_state != WGS_STATE_ESTABLISHED);
3450 1.100 riastrad if (wgs->wgs_state == WGS_STATE_DESTROYING &&
3451 1.104 riastrad ((age = (time_uptime32 - wgs->wgs_time_established)) >=
3452 1.100 riastrad wg_reject_after_time)) {
3453 1.104 riastrad WG_DLOG("destroying past session %"PRIu32" sec old\n", age);
3454 1.49 riastrad wg_put_session_index(wg, wgs);
3455 1.100 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
3456 1.100 riastrad wgs->wgs_state);
3457 1.100 riastrad }
3458 1.100 riastrad
3459 1.100 riastrad /*
3460 1.100 riastrad * If theres's any ESTABLISHED stable session older than
3461 1.100 riastrad * reject-after-time, destroy it. (The stable session can also
3462 1.100 riastrad * be in UNKNOWN state -- nothing to do in that case)
3463 1.100 riastrad */
3464 1.100 riastrad wgs = wgp->wgp_session_stable;
3465 1.100 riastrad KASSERT(wgs->wgs_state != WGS_STATE_INIT_ACTIVE);
3466 1.100 riastrad KASSERT(wgs->wgs_state != WGS_STATE_INIT_PASSIVE);
3467 1.100 riastrad KASSERT(wgs->wgs_state != WGS_STATE_DESTROYING);
3468 1.100 riastrad if (wgs->wgs_state == WGS_STATE_ESTABLISHED &&
3469 1.104 riastrad ((age = (time_uptime32 - wgs->wgs_time_established)) >=
3470 1.100 riastrad wg_reject_after_time)) {
3471 1.104 riastrad WG_DLOG("destroying current session %"PRIu32" sec old\n", age);
3472 1.100 riastrad atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_DESTROYING);
3473 1.100 riastrad wg_put_session_index(wg, wgs);
3474 1.100 riastrad KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
3475 1.100 riastrad wgs->wgs_state);
3476 1.11 riastrad }
3477 1.100 riastrad
3478 1.100 riastrad /*
3479 1.100 riastrad * If there's no sessions left, no need to have the timer run
3480 1.100 riastrad * until the next time around -- halt it.
3481 1.100 riastrad *
3482 1.100 riastrad * It is only ever scheduled with wgp_lock held or in the
3483 1.100 riastrad * callout itself, and callout_halt prevents rescheudling
3484 1.100 riastrad * itself, so this never races with rescheduling.
3485 1.100 riastrad */
3486 1.100 riastrad if (wgp->wgp_session_unstable->wgs_state == WGS_STATE_UNKNOWN &&
3487 1.100 riastrad wgp->wgp_session_stable->wgs_state == WGS_STATE_UNKNOWN)
3488 1.100 riastrad callout_halt(&wgp->wgp_session_dtor_timer, NULL);
3489 1.11 riastrad }
3490 1.11 riastrad
3491 1.11 riastrad static void
3492 1.55 riastrad wg_peer_work(struct work *wk, void *cookie)
3493 1.1 riastrad {
3494 1.55 riastrad struct wg_peer *wgp = container_of(wk, struct wg_peer, wgp_work);
3495 1.55 riastrad struct wg_softc *wg = wgp->wgp_sc;
3496 1.65 christos unsigned int tasks;
3497 1.1 riastrad
3498 1.55 riastrad mutex_enter(wgp->wgp_intr_lock);
3499 1.55 riastrad while ((tasks = wgp->wgp_tasks) != 0) {
3500 1.55 riastrad wgp->wgp_tasks = 0;
3501 1.55 riastrad mutex_exit(wgp->wgp_intr_lock);
3502 1.1 riastrad
3503 1.49 riastrad mutex_enter(wgp->wgp_lock);
3504 1.11 riastrad if (ISSET(tasks, WGP_TASK_SEND_INIT_MESSAGE))
3505 1.11 riastrad wg_task_send_init_message(wg, wgp);
3506 1.49 riastrad if (ISSET(tasks, WGP_TASK_RETRY_HANDSHAKE))
3507 1.49 riastrad wg_task_retry_handshake(wg, wgp);
3508 1.49 riastrad if (ISSET(tasks, WGP_TASK_ESTABLISH_SESSION))
3509 1.49 riastrad wg_task_establish_session(wg, wgp);
3510 1.11 riastrad if (ISSET(tasks, WGP_TASK_ENDPOINT_CHANGED))
3511 1.11 riastrad wg_task_endpoint_changed(wg, wgp);
3512 1.11 riastrad if (ISSET(tasks, WGP_TASK_SEND_KEEPALIVE_MESSAGE))
3513 1.11 riastrad wg_task_send_keepalive_message(wg, wgp);
3514 1.11 riastrad if (ISSET(tasks, WGP_TASK_DESTROY_PREV_SESSION))
3515 1.11 riastrad wg_task_destroy_prev_session(wg, wgp);
3516 1.49 riastrad mutex_exit(wgp->wgp_lock);
3517 1.1 riastrad
3518 1.55 riastrad mutex_enter(wgp->wgp_intr_lock);
3519 1.1 riastrad }
3520 1.55 riastrad mutex_exit(wgp->wgp_intr_lock);
3521 1.1 riastrad }
3522 1.1 riastrad
3523 1.1 riastrad static void
3524 1.55 riastrad wg_job(struct threadpool_job *job)
3525 1.1 riastrad {
3526 1.55 riastrad struct wg_softc *wg = container_of(job, struct wg_softc, wg_job);
3527 1.55 riastrad int bound, upcalls;
3528 1.1 riastrad
3529 1.55 riastrad mutex_enter(wg->wg_intr_lock);
3530 1.55 riastrad while ((upcalls = wg->wg_upcalls) != 0) {
3531 1.55 riastrad wg->wg_upcalls = 0;
3532 1.55 riastrad mutex_exit(wg->wg_intr_lock);
3533 1.10 riastrad bound = curlwp_bind();
3534 1.55 riastrad if (ISSET(upcalls, WG_UPCALL_INET))
3535 1.1 riastrad wg_receive_packets(wg, AF_INET);
3536 1.55 riastrad if (ISSET(upcalls, WG_UPCALL_INET6))
3537 1.1 riastrad wg_receive_packets(wg, AF_INET6);
3538 1.10 riastrad curlwp_bindx(bound);
3539 1.55 riastrad mutex_enter(wg->wg_intr_lock);
3540 1.1 riastrad }
3541 1.55 riastrad threadpool_job_done(job);
3542 1.55 riastrad mutex_exit(wg->wg_intr_lock);
3543 1.1 riastrad }
3544 1.1 riastrad
3545 1.1 riastrad static int
3546 1.1 riastrad wg_bind_port(struct wg_softc *wg, const uint16_t port)
3547 1.1 riastrad {
3548 1.109 riastrad int error = 0;
3549 1.1 riastrad uint16_t old_port = wg->wg_listen_port;
3550 1.1 riastrad
3551 1.1 riastrad if (port != 0 && old_port == port)
3552 1.1 riastrad return 0;
3553 1.1 riastrad
3554 1.109 riastrad #ifdef INET
3555 1.1 riastrad struct sockaddr_in _sin, *sin = &_sin;
3556 1.1 riastrad sin->sin_len = sizeof(*sin);
3557 1.1 riastrad sin->sin_family = AF_INET;
3558 1.1 riastrad sin->sin_addr.s_addr = INADDR_ANY;
3559 1.1 riastrad sin->sin_port = htons(port);
3560 1.1 riastrad
3561 1.55 riastrad error = sobind(wg->wg_so4, sintosa(sin), curlwp);
3562 1.109 riastrad if (error)
3563 1.1 riastrad return error;
3564 1.109 riastrad #endif
3565 1.1 riastrad
3566 1.1 riastrad #ifdef INET6
3567 1.1 riastrad struct sockaddr_in6 _sin6, *sin6 = &_sin6;
3568 1.1 riastrad sin6->sin6_len = sizeof(*sin6);
3569 1.1 riastrad sin6->sin6_family = AF_INET6;
3570 1.1 riastrad sin6->sin6_addr = in6addr_any;
3571 1.1 riastrad sin6->sin6_port = htons(port);
3572 1.1 riastrad
3573 1.55 riastrad error = sobind(wg->wg_so6, sin6tosa(sin6), curlwp);
3574 1.109 riastrad if (error)
3575 1.1 riastrad return error;
3576 1.1 riastrad #endif
3577 1.1 riastrad
3578 1.1 riastrad wg->wg_listen_port = port;
3579 1.1 riastrad
3580 1.109 riastrad return error;
3581 1.1 riastrad }
3582 1.1 riastrad
3583 1.1 riastrad static void
3584 1.55 riastrad wg_so_upcall(struct socket *so, void *cookie, int events, int waitflag)
3585 1.1 riastrad {
3586 1.55 riastrad struct wg_softc *wg = cookie;
3587 1.1 riastrad int reason;
3588 1.1 riastrad
3589 1.1 riastrad reason = (so->so_proto->pr_domain->dom_family == AF_INET) ?
3590 1.55 riastrad WG_UPCALL_INET :
3591 1.55 riastrad WG_UPCALL_INET6;
3592 1.55 riastrad
3593 1.55 riastrad mutex_enter(wg->wg_intr_lock);
3594 1.55 riastrad wg->wg_upcalls |= reason;
3595 1.55 riastrad threadpool_schedule_job(wg->wg_threadpool, &wg->wg_job);
3596 1.55 riastrad mutex_exit(wg->wg_intr_lock);
3597 1.1 riastrad }
3598 1.1 riastrad
3599 1.1 riastrad static int
3600 1.1 riastrad wg_overudp_cb(struct mbuf **mp, int offset, struct socket *so,
3601 1.1 riastrad struct sockaddr *src, void *arg)
3602 1.1 riastrad {
3603 1.1 riastrad struct wg_softc *wg = arg;
3604 1.2 riastrad struct wg_msg wgm;
3605 1.1 riastrad struct mbuf *m = *mp;
3606 1.1 riastrad
3607 1.1 riastrad WG_TRACE("enter");
3608 1.1 riastrad
3609 1.25 riastrad /* Verify the mbuf chain is long enough to have a wg msg header. */
3610 1.25 riastrad KASSERT(offset <= m_length(m));
3611 1.25 riastrad if (__predict_false(m_length(m) - offset < sizeof(struct wg_msg))) {
3612 1.28 riastrad /* drop on the floor */
3613 1.25 riastrad m_freem(m);
3614 1.25 riastrad return -1;
3615 1.25 riastrad }
3616 1.25 riastrad
3617 1.25 riastrad /*
3618 1.25 riastrad * Copy the message header (32-bit message type) out -- we'll
3619 1.25 riastrad * worry about contiguity and alignment later.
3620 1.25 riastrad */
3621 1.2 riastrad m_copydata(m, offset, sizeof(struct wg_msg), &wgm);
3622 1.39 riastrad WG_DLOG("type=%d\n", le32toh(wgm.wgm_type));
3623 1.2 riastrad
3624 1.25 riastrad /*
3625 1.94 riastrad * Handle DATA packets promptly as they arrive, if they are in
3626 1.94 riastrad * an active session. Other packets may require expensive
3627 1.94 riastrad * public-key crypto and are not as sensitive to latency, so
3628 1.94 riastrad * defer them to the worker thread.
3629 1.25 riastrad */
3630 1.39 riastrad switch (le32toh(wgm.wgm_type)) {
3631 1.1 riastrad case WG_MSG_TYPE_DATA:
3632 1.28 riastrad /* handle immediately */
3633 1.1 riastrad m_adj(m, offset);
3634 1.29 riastrad if (__predict_false(m->m_len < sizeof(struct wg_msg_data))) {
3635 1.29 riastrad m = m_pullup(m, sizeof(struct wg_msg_data));
3636 1.29 riastrad if (m == NULL)
3637 1.29 riastrad return -1;
3638 1.29 riastrad }
3639 1.1 riastrad wg_handle_msg_data(wg, m, src);
3640 1.1 riastrad *mp = NULL;
3641 1.1 riastrad return 1;
3642 1.28 riastrad case WG_MSG_TYPE_INIT:
3643 1.28 riastrad case WG_MSG_TYPE_RESP:
3644 1.28 riastrad case WG_MSG_TYPE_COOKIE:
3645 1.28 riastrad /* pass through to so_receive in wg_receive_packets */
3646 1.28 riastrad return 0;
3647 1.1 riastrad default:
3648 1.28 riastrad /* drop on the floor */
3649 1.28 riastrad m_freem(m);
3650 1.28 riastrad return -1;
3651 1.1 riastrad }
3652 1.1 riastrad }
3653 1.1 riastrad
3654 1.1 riastrad static int
3655 1.55 riastrad wg_socreate(struct wg_softc *wg, int af, struct socket **sop)
3656 1.1 riastrad {
3657 1.1 riastrad int error;
3658 1.1 riastrad struct socket *so;
3659 1.1 riastrad
3660 1.1 riastrad error = socreate(af, &so, SOCK_DGRAM, 0, curlwp, NULL);
3661 1.1 riastrad if (error != 0)
3662 1.1 riastrad return error;
3663 1.1 riastrad
3664 1.1 riastrad solock(so);
3665 1.55 riastrad so->so_upcallarg = wg;
3666 1.1 riastrad so->so_upcall = wg_so_upcall;
3667 1.1 riastrad so->so_rcv.sb_flags |= SB_UPCALL;
3668 1.71 ozaki inpcb_register_overudp_cb(sotoinpcb(so), wg_overudp_cb, wg);
3669 1.1 riastrad sounlock(so);
3670 1.1 riastrad
3671 1.1 riastrad *sop = so;
3672 1.1 riastrad
3673 1.1 riastrad return 0;
3674 1.1 riastrad }
3675 1.1 riastrad
3676 1.1 riastrad static bool
3677 1.1 riastrad wg_session_hit_limits(struct wg_session *wgs)
3678 1.1 riastrad {
3679 1.1 riastrad
3680 1.1 riastrad /*
3681 1.1 riastrad * [W] 6.2: Transport Message Limits
3682 1.1 riastrad * "After REJECT-AFTER-MESSAGES transport data messages or after the
3683 1.1 riastrad * current secure session is REJECT-AFTER-TIME seconds old, whichever
3684 1.106 riastrad * comes first, WireGuard will refuse to send or receive any more
3685 1.106 riastrad * transport data messages using the current secure session, ..."
3686 1.1 riastrad */
3687 1.117 riastrad KASSERT(wgs->wgs_time_established != 0 || time_uptime > UINT32_MAX);
3688 1.117 riastrad if (time_uptime32 - wgs->wgs_time_established > wg_reject_after_time) {
3689 1.1 riastrad WG_DLOG("The session hits REJECT_AFTER_TIME\n");
3690 1.1 riastrad return true;
3691 1.22 riastrad } else if (wg_session_get_send_counter(wgs) >
3692 1.22 riastrad wg_reject_after_messages) {
3693 1.1 riastrad WG_DLOG("The session hits REJECT_AFTER_MESSAGES\n");
3694 1.1 riastrad return true;
3695 1.1 riastrad }
3696 1.1 riastrad
3697 1.1 riastrad return false;
3698 1.1 riastrad }
3699 1.1 riastrad
3700 1.1 riastrad static void
3701 1.54 riastrad wgintr(void *cookie)
3702 1.1 riastrad {
3703 1.54 riastrad struct wg_peer *wgp;
3704 1.1 riastrad struct wg_session *wgs;
3705 1.1 riastrad struct mbuf *m;
3706 1.1 riastrad struct psref psref;
3707 1.1 riastrad
3708 1.54 riastrad while ((m = pktq_dequeue(wg_pktq)) != NULL) {
3709 1.54 riastrad wgp = M_GETCTX(m, struct wg_peer *);
3710 1.54 riastrad if ((wgs = wg_get_stable_session(wgp, &psref)) == NULL) {
3711 1.126 riastrad /*
3712 1.126 riastrad * No established session. If we're the first
3713 1.126 riastrad * to try sending data, schedule a handshake
3714 1.126 riastrad * and queue the packet for when the handshake
3715 1.126 riastrad * is done; otherwise just drop the packet and
3716 1.126 riastrad * let the ongoing handshake attempt continue.
3717 1.126 riastrad * We could queue more data packets but it's
3718 1.126 riastrad * not clear that's worthwhile.
3719 1.126 riastrad */
3720 1.54 riastrad WG_TRACE("no stable session");
3721 1.126 riastrad membar_release();
3722 1.126 riastrad if ((m = atomic_swap_ptr(&wgp->wgp_pending, m)) ==
3723 1.126 riastrad NULL) {
3724 1.126 riastrad WG_TRACE("queued first packet;"
3725 1.126 riastrad " init handshake");
3726 1.126 riastrad wg_schedule_peer_task(wgp,
3727 1.126 riastrad WGP_TASK_SEND_INIT_MESSAGE);
3728 1.126 riastrad } else {
3729 1.126 riastrad membar_acquire();
3730 1.126 riastrad WG_TRACE("first packet already queued,"
3731 1.126 riastrad " dropping");
3732 1.126 riastrad }
3733 1.54 riastrad goto next0;
3734 1.54 riastrad }
3735 1.54 riastrad if (__predict_false(wg_session_hit_limits(wgs))) {
3736 1.54 riastrad WG_TRACE("stable session hit limits");
3737 1.127 riastrad membar_release();
3738 1.127 riastrad if ((m = atomic_swap_ptr(&wgp->wgp_pending, m)) ==
3739 1.127 riastrad NULL) {
3740 1.127 riastrad WG_TRACE("queued first packet in a while;"
3741 1.127 riastrad " reinit handshake");
3742 1.127 riastrad atomic_store_relaxed(&wgs->wgs_force_rekey,
3743 1.127 riastrad true);
3744 1.127 riastrad wg_schedule_peer_task(wgp,
3745 1.127 riastrad WGP_TASK_SEND_INIT_MESSAGE);
3746 1.127 riastrad } else {
3747 1.127 riastrad membar_acquire();
3748 1.127 riastrad WG_TRACE("first packet in already queued,"
3749 1.127 riastrad " dropping");
3750 1.127 riastrad }
3751 1.54 riastrad goto next1;
3752 1.54 riastrad }
3753 1.1 riastrad wg_send_data_msg(wgp, wgs, m);
3754 1.54 riastrad m = NULL; /* consumed */
3755 1.54 riastrad next1: wg_put_session(wgs, &psref);
3756 1.79 rin next0: m_freem(m);
3757 1.54 riastrad /* XXX Yield to avoid userland starvation? */
3758 1.1 riastrad }
3759 1.1 riastrad }
3760 1.1 riastrad
3761 1.1 riastrad static void
3762 1.1 riastrad wg_purge_pending_packets(struct wg_peer *wgp)
3763 1.1 riastrad {
3764 1.1 riastrad struct mbuf *m;
3765 1.1 riastrad
3766 1.79 rin m = atomic_swap_ptr(&wgp->wgp_pending, NULL);
3767 1.126 riastrad membar_acquire(); /* matches membar_release in wgintr */
3768 1.79 rin m_freem(m);
3769 1.107 riastrad #ifdef ALTQ
3770 1.107 riastrad wg_start(&wgp->wgp_sc->wg_if);
3771 1.107 riastrad #endif
3772 1.54 riastrad pktq_barrier(wg_pktq);
3773 1.1 riastrad }
3774 1.1 riastrad
3775 1.1 riastrad static void
3776 1.1 riastrad wg_handshake_timeout_timer(void *arg)
3777 1.1 riastrad {
3778 1.1 riastrad struct wg_peer *wgp = arg;
3779 1.1 riastrad
3780 1.1 riastrad WG_TRACE("enter");
3781 1.1 riastrad
3782 1.49 riastrad wg_schedule_peer_task(wgp, WGP_TASK_RETRY_HANDSHAKE);
3783 1.1 riastrad }
3784 1.1 riastrad
3785 1.1 riastrad static struct wg_peer *
3786 1.1 riastrad wg_alloc_peer(struct wg_softc *wg)
3787 1.1 riastrad {
3788 1.1 riastrad struct wg_peer *wgp;
3789 1.1 riastrad
3790 1.1 riastrad wgp = kmem_zalloc(sizeof(*wgp), KM_SLEEP);
3791 1.1 riastrad
3792 1.1 riastrad wgp->wgp_sc = wg;
3793 1.1 riastrad callout_init(&wgp->wgp_handshake_timeout_timer, CALLOUT_MPSAFE);
3794 1.1 riastrad callout_setfunc(&wgp->wgp_handshake_timeout_timer,
3795 1.1 riastrad wg_handshake_timeout_timer, wgp);
3796 1.1 riastrad callout_init(&wgp->wgp_session_dtor_timer, CALLOUT_MPSAFE);
3797 1.1 riastrad callout_setfunc(&wgp->wgp_session_dtor_timer,
3798 1.1 riastrad wg_session_dtor_timer, wgp);
3799 1.1 riastrad PSLIST_ENTRY_INIT(wgp, wgp_peerlist_entry);
3800 1.1 riastrad wgp->wgp_endpoint_changing = false;
3801 1.1 riastrad wgp->wgp_endpoint_available = false;
3802 1.1 riastrad wgp->wgp_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
3803 1.55 riastrad wgp->wgp_intr_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
3804 1.1 riastrad wgp->wgp_psz = pserialize_create();
3805 1.1 riastrad psref_target_init(&wgp->wgp_psref, wg_psref_class);
3806 1.1 riastrad
3807 1.1 riastrad wgp->wgp_endpoint = kmem_zalloc(sizeof(*wgp->wgp_endpoint), KM_SLEEP);
3808 1.1 riastrad wgp->wgp_endpoint0 = kmem_zalloc(sizeof(*wgp->wgp_endpoint0), KM_SLEEP);
3809 1.1 riastrad psref_target_init(&wgp->wgp_endpoint->wgsa_psref, wg_psref_class);
3810 1.1 riastrad psref_target_init(&wgp->wgp_endpoint0->wgsa_psref, wg_psref_class);
3811 1.1 riastrad
3812 1.1 riastrad struct wg_session *wgs;
3813 1.14 riastrad wgp->wgp_session_stable =
3814 1.14 riastrad kmem_zalloc(sizeof(*wgp->wgp_session_stable), KM_SLEEP);
3815 1.14 riastrad wgp->wgp_session_unstable =
3816 1.14 riastrad kmem_zalloc(sizeof(*wgp->wgp_session_unstable), KM_SLEEP);
3817 1.1 riastrad wgs = wgp->wgp_session_stable;
3818 1.1 riastrad wgs->wgs_peer = wgp;
3819 1.1 riastrad wgs->wgs_state = WGS_STATE_UNKNOWN;
3820 1.1 riastrad psref_target_init(&wgs->wgs_psref, wg_psref_class);
3821 1.22 riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
3822 1.22 riastrad mutex_init(&wgs->wgs_send_counter_lock, MUTEX_DEFAULT, IPL_SOFTNET);
3823 1.22 riastrad #endif
3824 1.6 riastrad wgs->wgs_recvwin = kmem_zalloc(sizeof(*wgs->wgs_recvwin), KM_SLEEP);
3825 1.49 riastrad mutex_init(&wgs->wgs_recvwin->lock, MUTEX_DEFAULT, IPL_SOFTNET);
3826 1.6 riastrad
3827 1.1 riastrad wgs = wgp->wgp_session_unstable;
3828 1.1 riastrad wgs->wgs_peer = wgp;
3829 1.1 riastrad wgs->wgs_state = WGS_STATE_UNKNOWN;
3830 1.1 riastrad psref_target_init(&wgs->wgs_psref, wg_psref_class);
3831 1.22 riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
3832 1.22 riastrad mutex_init(&wgs->wgs_send_counter_lock, MUTEX_DEFAULT, IPL_SOFTNET);
3833 1.22 riastrad #endif
3834 1.6 riastrad wgs->wgs_recvwin = kmem_zalloc(sizeof(*wgs->wgs_recvwin), KM_SLEEP);
3835 1.49 riastrad mutex_init(&wgs->wgs_recvwin->lock, MUTEX_DEFAULT, IPL_SOFTNET);
3836 1.1 riastrad
3837 1.1 riastrad return wgp;
3838 1.1 riastrad }
3839 1.1 riastrad
3840 1.1 riastrad static void
3841 1.1 riastrad wg_destroy_peer(struct wg_peer *wgp)
3842 1.1 riastrad {
3843 1.1 riastrad struct wg_session *wgs;
3844 1.1 riastrad struct wg_softc *wg = wgp->wgp_sc;
3845 1.1 riastrad
3846 1.37 riastrad /* Prevent new packets from this peer on any source address. */
3847 1.1 riastrad rw_enter(wg->wg_rwlock, RW_WRITER);
3848 1.1 riastrad for (int i = 0; i < wgp->wgp_n_allowedips; i++) {
3849 1.1 riastrad struct wg_allowedip *wga = &wgp->wgp_allowedips[i];
3850 1.1 riastrad struct radix_node_head *rnh = wg_rnh(wg, wga->wga_family);
3851 1.1 riastrad struct radix_node *rn;
3852 1.1 riastrad
3853 1.1 riastrad KASSERT(rnh != NULL);
3854 1.1 riastrad rn = rnh->rnh_deladdr(&wga->wga_sa_addr,
3855 1.1 riastrad &wga->wga_sa_mask, rnh);
3856 1.1 riastrad if (rn == NULL) {
3857 1.1 riastrad char addrstr[128];
3858 1.1 riastrad sockaddr_format(&wga->wga_sa_addr, addrstr,
3859 1.1 riastrad sizeof(addrstr));
3860 1.76 jakllsch WGLOG(LOG_WARNING, "%s: Couldn't delete %s",
3861 1.76 jakllsch if_name(&wg->wg_if), addrstr);
3862 1.1 riastrad }
3863 1.1 riastrad }
3864 1.1 riastrad rw_exit(wg->wg_rwlock);
3865 1.1 riastrad
3866 1.38 riastrad /* Purge pending packets. */
3867 1.38 riastrad wg_purge_pending_packets(wgp);
3868 1.38 riastrad
3869 1.37 riastrad /* Halt all packet processing and timeouts. */
3870 1.1 riastrad callout_halt(&wgp->wgp_handshake_timeout_timer, NULL);
3871 1.1 riastrad callout_halt(&wgp->wgp_session_dtor_timer, NULL);
3872 1.1 riastrad
3873 1.55 riastrad /* Wait for any queued work to complete. */
3874 1.55 riastrad workqueue_wait(wg_wq, &wgp->wgp_work);
3875 1.55 riastrad
3876 1.49 riastrad wgs = wgp->wgp_session_unstable;
3877 1.49 riastrad if (wgs->wgs_state != WGS_STATE_UNKNOWN) {
3878 1.49 riastrad mutex_enter(wgp->wgp_lock);
3879 1.49 riastrad wg_destroy_session(wg, wgs);
3880 1.49 riastrad mutex_exit(wgp->wgp_lock);
3881 1.37 riastrad }
3882 1.6 riastrad mutex_destroy(&wgs->wgs_recvwin->lock);
3883 1.6 riastrad kmem_free(wgs->wgs_recvwin, sizeof(*wgs->wgs_recvwin));
3884 1.22 riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
3885 1.22 riastrad mutex_destroy(&wgs->wgs_send_counter_lock);
3886 1.22 riastrad #endif
3887 1.1 riastrad kmem_free(wgs, sizeof(*wgs));
3888 1.37 riastrad
3889 1.1 riastrad wgs = wgp->wgp_session_stable;
3890 1.49 riastrad if (wgs->wgs_state != WGS_STATE_UNKNOWN) {
3891 1.49 riastrad mutex_enter(wgp->wgp_lock);
3892 1.49 riastrad wg_destroy_session(wg, wgs);
3893 1.49 riastrad mutex_exit(wgp->wgp_lock);
3894 1.49 riastrad }
3895 1.6 riastrad mutex_destroy(&wgs->wgs_recvwin->lock);
3896 1.6 riastrad kmem_free(wgs->wgs_recvwin, sizeof(*wgs->wgs_recvwin));
3897 1.22 riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
3898 1.22 riastrad mutex_destroy(&wgs->wgs_send_counter_lock);
3899 1.22 riastrad #endif
3900 1.1 riastrad kmem_free(wgs, sizeof(*wgs));
3901 1.1 riastrad
3902 1.1 riastrad psref_target_destroy(&wgp->wgp_endpoint->wgsa_psref, wg_psref_class);
3903 1.1 riastrad psref_target_destroy(&wgp->wgp_endpoint0->wgsa_psref, wg_psref_class);
3904 1.1 riastrad kmem_free(wgp->wgp_endpoint, sizeof(*wgp->wgp_endpoint));
3905 1.1 riastrad kmem_free(wgp->wgp_endpoint0, sizeof(*wgp->wgp_endpoint0));
3906 1.1 riastrad
3907 1.1 riastrad pserialize_destroy(wgp->wgp_psz);
3908 1.55 riastrad mutex_obj_free(wgp->wgp_intr_lock);
3909 1.1 riastrad mutex_obj_free(wgp->wgp_lock);
3910 1.1 riastrad
3911 1.1 riastrad kmem_free(wgp, sizeof(*wgp));
3912 1.1 riastrad }
3913 1.1 riastrad
3914 1.1 riastrad static void
3915 1.1 riastrad wg_destroy_all_peers(struct wg_softc *wg)
3916 1.1 riastrad {
3917 1.37 riastrad struct wg_peer *wgp, *wgp0 __diagused;
3918 1.37 riastrad void *garbage_byname, *garbage_bypubkey;
3919 1.1 riastrad
3920 1.1 riastrad restart:
3921 1.37 riastrad garbage_byname = garbage_bypubkey = NULL;
3922 1.1 riastrad mutex_enter(wg->wg_lock);
3923 1.1 riastrad WG_PEER_WRITER_FOREACH(wgp, wg) {
3924 1.37 riastrad if (wgp->wgp_name[0]) {
3925 1.37 riastrad wgp0 = thmap_del(wg->wg_peers_byname, wgp->wgp_name,
3926 1.37 riastrad strlen(wgp->wgp_name));
3927 1.37 riastrad KASSERT(wgp0 == wgp);
3928 1.37 riastrad garbage_byname = thmap_stage_gc(wg->wg_peers_byname);
3929 1.37 riastrad }
3930 1.37 riastrad wgp0 = thmap_del(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
3931 1.37 riastrad sizeof(wgp->wgp_pubkey));
3932 1.37 riastrad KASSERT(wgp0 == wgp);
3933 1.37 riastrad garbage_bypubkey = thmap_stage_gc(wg->wg_peers_bypubkey);
3934 1.1 riastrad WG_PEER_WRITER_REMOVE(wgp);
3935 1.35 riastrad wg->wg_npeers--;
3936 1.1 riastrad mutex_enter(wgp->wgp_lock);
3937 1.1 riastrad pserialize_perform(wgp->wgp_psz);
3938 1.1 riastrad mutex_exit(wgp->wgp_lock);
3939 1.1 riastrad PSLIST_ENTRY_DESTROY(wgp, wgp_peerlist_entry);
3940 1.1 riastrad break;
3941 1.1 riastrad }
3942 1.1 riastrad mutex_exit(wg->wg_lock);
3943 1.1 riastrad
3944 1.1 riastrad if (wgp == NULL)
3945 1.1 riastrad return;
3946 1.1 riastrad
3947 1.1 riastrad psref_target_destroy(&wgp->wgp_psref, wg_psref_class);
3948 1.1 riastrad
3949 1.1 riastrad wg_destroy_peer(wgp);
3950 1.37 riastrad thmap_gc(wg->wg_peers_byname, garbage_byname);
3951 1.37 riastrad thmap_gc(wg->wg_peers_bypubkey, garbage_bypubkey);
3952 1.1 riastrad
3953 1.1 riastrad goto restart;
3954 1.1 riastrad }
3955 1.1 riastrad
3956 1.1 riastrad static int
3957 1.1 riastrad wg_destroy_peer_name(struct wg_softc *wg, const char *name)
3958 1.1 riastrad {
3959 1.37 riastrad struct wg_peer *wgp, *wgp0 __diagused;
3960 1.37 riastrad void *garbage_byname, *garbage_bypubkey;
3961 1.1 riastrad
3962 1.1 riastrad mutex_enter(wg->wg_lock);
3963 1.37 riastrad wgp = thmap_del(wg->wg_peers_byname, name, strlen(name));
3964 1.1 riastrad if (wgp != NULL) {
3965 1.37 riastrad wgp0 = thmap_del(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
3966 1.37 riastrad sizeof(wgp->wgp_pubkey));
3967 1.37 riastrad KASSERT(wgp0 == wgp);
3968 1.37 riastrad garbage_byname = thmap_stage_gc(wg->wg_peers_byname);
3969 1.37 riastrad garbage_bypubkey = thmap_stage_gc(wg->wg_peers_bypubkey);
3970 1.1 riastrad WG_PEER_WRITER_REMOVE(wgp);
3971 1.1 riastrad wg->wg_npeers--;
3972 1.61 roy if (wg->wg_npeers == 0)
3973 1.61 roy if_link_state_change(&wg->wg_if, LINK_STATE_DOWN);
3974 1.1 riastrad mutex_enter(wgp->wgp_lock);
3975 1.1 riastrad pserialize_perform(wgp->wgp_psz);
3976 1.1 riastrad mutex_exit(wgp->wgp_lock);
3977 1.1 riastrad PSLIST_ENTRY_DESTROY(wgp, wgp_peerlist_entry);
3978 1.1 riastrad }
3979 1.1 riastrad mutex_exit(wg->wg_lock);
3980 1.1 riastrad
3981 1.1 riastrad if (wgp == NULL)
3982 1.1 riastrad return ENOENT;
3983 1.1 riastrad
3984 1.1 riastrad psref_target_destroy(&wgp->wgp_psref, wg_psref_class);
3985 1.1 riastrad
3986 1.1 riastrad wg_destroy_peer(wgp);
3987 1.37 riastrad thmap_gc(wg->wg_peers_byname, garbage_byname);
3988 1.37 riastrad thmap_gc(wg->wg_peers_bypubkey, garbage_bypubkey);
3989 1.1 riastrad
3990 1.1 riastrad return 0;
3991 1.1 riastrad }
3992 1.1 riastrad
3993 1.1 riastrad static int
3994 1.1 riastrad wg_if_attach(struct wg_softc *wg)
3995 1.1 riastrad {
3996 1.1 riastrad
3997 1.1 riastrad wg->wg_if.if_addrlen = 0;
3998 1.1 riastrad wg->wg_if.if_mtu = WG_MTU;
3999 1.33 riastrad wg->wg_if.if_flags = IFF_MULTICAST;
4000 1.61 roy wg->wg_if.if_extflags = IFEF_MPSAFE;
4001 1.1 riastrad wg->wg_if.if_ioctl = wg_ioctl;
4002 1.1 riastrad wg->wg_if.if_output = wg_output;
4003 1.1 riastrad wg->wg_if.if_init = wg_init;
4004 1.60 riastrad #ifdef ALTQ
4005 1.60 riastrad wg->wg_if.if_start = wg_start;
4006 1.60 riastrad #endif
4007 1.1 riastrad wg->wg_if.if_stop = wg_stop;
4008 1.24 riastrad wg->wg_if.if_type = IFT_OTHER;
4009 1.1 riastrad wg->wg_if.if_dlt = DLT_NULL;
4010 1.1 riastrad wg->wg_if.if_softc = wg;
4011 1.60 riastrad #ifdef ALTQ
4012 1.1 riastrad IFQ_SET_READY(&wg->wg_if.if_snd);
4013 1.60 riastrad #endif
4014 1.64 riastrad if_initialize(&wg->wg_if);
4015 1.1 riastrad
4016 1.61 roy wg->wg_if.if_link_state = LINK_STATE_DOWN;
4017 1.1 riastrad if_alloc_sadl(&wg->wg_if);
4018 1.1 riastrad if_register(&wg->wg_if);
4019 1.1 riastrad
4020 1.1 riastrad bpf_attach(&wg->wg_if, DLT_NULL, sizeof(uint32_t));
4021 1.1 riastrad
4022 1.1 riastrad return 0;
4023 1.1 riastrad }
4024 1.1 riastrad
4025 1.54 riastrad static void
4026 1.54 riastrad wg_if_detach(struct wg_softc *wg)
4027 1.54 riastrad {
4028 1.54 riastrad struct ifnet *ifp = &wg->wg_if;
4029 1.54 riastrad
4030 1.54 riastrad bpf_detach(ifp);
4031 1.54 riastrad if_detach(ifp);
4032 1.54 riastrad }
4033 1.54 riastrad
4034 1.1 riastrad static int
4035 1.1 riastrad wg_clone_create(struct if_clone *ifc, int unit)
4036 1.1 riastrad {
4037 1.1 riastrad struct wg_softc *wg;
4038 1.1 riastrad int error;
4039 1.1 riastrad
4040 1.58 riastrad wg_guarantee_initialized();
4041 1.58 riastrad
4042 1.59 riastrad error = wg_count_inc();
4043 1.59 riastrad if (error)
4044 1.59 riastrad return error;
4045 1.59 riastrad
4046 1.54 riastrad wg = kmem_zalloc(sizeof(*wg), KM_SLEEP);
4047 1.1 riastrad
4048 1.1 riastrad if_initname(&wg->wg_if, ifc->ifc_name, unit);
4049 1.1 riastrad
4050 1.55 riastrad PSLIST_INIT(&wg->wg_peers);
4051 1.55 riastrad wg->wg_peers_bypubkey = thmap_create(0, NULL, THMAP_NOCOPY);
4052 1.55 riastrad wg->wg_peers_byname = thmap_create(0, NULL, THMAP_NOCOPY);
4053 1.55 riastrad wg->wg_sessions_byindex = thmap_create(0, NULL, THMAP_NOCOPY);
4054 1.55 riastrad wg->wg_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
4055 1.55 riastrad wg->wg_intr_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
4056 1.55 riastrad wg->wg_rwlock = rw_obj_alloc();
4057 1.55 riastrad threadpool_job_init(&wg->wg_job, wg_job, wg->wg_intr_lock,
4058 1.55 riastrad "%s", if_name(&wg->wg_if));
4059 1.55 riastrad wg->wg_ops = &wg_ops_rumpkernel;
4060 1.55 riastrad
4061 1.55 riastrad error = threadpool_get(&wg->wg_threadpool, PRI_NONE);
4062 1.54 riastrad if (error)
4063 1.54 riastrad goto fail0;
4064 1.1 riastrad
4065 1.55 riastrad #ifdef INET
4066 1.55 riastrad error = wg_socreate(wg, AF_INET, &wg->wg_so4);
4067 1.55 riastrad if (error)
4068 1.55 riastrad goto fail1;
4069 1.1 riastrad rn_inithead((void **)&wg->wg_rtable_ipv4,
4070 1.1 riastrad offsetof(struct sockaddr_in, sin_addr) * NBBY);
4071 1.55 riastrad #endif
4072 1.1 riastrad #ifdef INET6
4073 1.55 riastrad error = wg_socreate(wg, AF_INET6, &wg->wg_so6);
4074 1.55 riastrad if (error)
4075 1.55 riastrad goto fail2;
4076 1.1 riastrad rn_inithead((void **)&wg->wg_rtable_ipv6,
4077 1.1 riastrad offsetof(struct sockaddr_in6, sin6_addr) * NBBY);
4078 1.1 riastrad #endif
4079 1.1 riastrad
4080 1.1 riastrad error = wg_if_attach(wg);
4081 1.54 riastrad if (error)
4082 1.55 riastrad goto fail3;
4083 1.1 riastrad
4084 1.1 riastrad return 0;
4085 1.54 riastrad
4086 1.55 riastrad fail4: __unused
4087 1.107 riastrad wg_destroy_all_peers(wg);
4088 1.54 riastrad wg_if_detach(wg);
4089 1.107 riastrad fail3:
4090 1.55 riastrad #ifdef INET6
4091 1.55 riastrad solock(wg->wg_so6);
4092 1.55 riastrad wg->wg_so6->so_rcv.sb_flags &= ~SB_UPCALL;
4093 1.55 riastrad sounlock(wg->wg_so6);
4094 1.55 riastrad #endif
4095 1.55 riastrad #ifdef INET
4096 1.55 riastrad solock(wg->wg_so4);
4097 1.55 riastrad wg->wg_so4->so_rcv.sb_flags &= ~SB_UPCALL;
4098 1.55 riastrad sounlock(wg->wg_so4);
4099 1.55 riastrad #endif
4100 1.55 riastrad mutex_enter(wg->wg_intr_lock);
4101 1.55 riastrad threadpool_cancel_job(wg->wg_threadpool, &wg->wg_job);
4102 1.55 riastrad mutex_exit(wg->wg_intr_lock);
4103 1.55 riastrad #ifdef INET6
4104 1.55 riastrad if (wg->wg_rtable_ipv6 != NULL)
4105 1.55 riastrad free(wg->wg_rtable_ipv6, M_RTABLE);
4106 1.55 riastrad soclose(wg->wg_so6);
4107 1.55 riastrad fail2:
4108 1.55 riastrad #endif
4109 1.55 riastrad #ifdef INET
4110 1.55 riastrad if (wg->wg_rtable_ipv4 != NULL)
4111 1.55 riastrad free(wg->wg_rtable_ipv4, M_RTABLE);
4112 1.55 riastrad soclose(wg->wg_so4);
4113 1.55 riastrad fail1:
4114 1.55 riastrad #endif
4115 1.55 riastrad threadpool_put(wg->wg_threadpool, PRI_NONE);
4116 1.55 riastrad fail0: threadpool_job_destroy(&wg->wg_job);
4117 1.54 riastrad rw_obj_free(wg->wg_rwlock);
4118 1.55 riastrad mutex_obj_free(wg->wg_intr_lock);
4119 1.54 riastrad mutex_obj_free(wg->wg_lock);
4120 1.54 riastrad thmap_destroy(wg->wg_sessions_byindex);
4121 1.54 riastrad thmap_destroy(wg->wg_peers_byname);
4122 1.54 riastrad thmap_destroy(wg->wg_peers_bypubkey);
4123 1.54 riastrad PSLIST_DESTROY(&wg->wg_peers);
4124 1.55 riastrad kmem_free(wg, sizeof(*wg));
4125 1.59 riastrad wg_count_dec();
4126 1.54 riastrad return error;
4127 1.1 riastrad }
4128 1.1 riastrad
4129 1.1 riastrad static int
4130 1.1 riastrad wg_clone_destroy(struct ifnet *ifp)
4131 1.1 riastrad {
4132 1.16 riastrad struct wg_softc *wg = container_of(ifp, struct wg_softc, wg_if);
4133 1.1 riastrad
4134 1.1 riastrad #ifdef WG_RUMPKERNEL
4135 1.1 riastrad if (wg_user_mode(wg)) {
4136 1.1 riastrad rumpuser_wg_destroy(wg->wg_user);
4137 1.1 riastrad wg->wg_user = NULL;
4138 1.1 riastrad }
4139 1.1 riastrad #endif
4140 1.1 riastrad
4141 1.107 riastrad wg_destroy_all_peers(wg);
4142 1.54 riastrad wg_if_detach(wg);
4143 1.55 riastrad #ifdef INET6
4144 1.55 riastrad solock(wg->wg_so6);
4145 1.55 riastrad wg->wg_so6->so_rcv.sb_flags &= ~SB_UPCALL;
4146 1.55 riastrad sounlock(wg->wg_so6);
4147 1.55 riastrad #endif
4148 1.55 riastrad #ifdef INET
4149 1.55 riastrad solock(wg->wg_so4);
4150 1.55 riastrad wg->wg_so4->so_rcv.sb_flags &= ~SB_UPCALL;
4151 1.55 riastrad sounlock(wg->wg_so4);
4152 1.55 riastrad #endif
4153 1.55 riastrad mutex_enter(wg->wg_intr_lock);
4154 1.55 riastrad threadpool_cancel_job(wg->wg_threadpool, &wg->wg_job);
4155 1.55 riastrad mutex_exit(wg->wg_intr_lock);
4156 1.55 riastrad #ifdef INET6
4157 1.55 riastrad if (wg->wg_rtable_ipv6 != NULL)
4158 1.55 riastrad free(wg->wg_rtable_ipv6, M_RTABLE);
4159 1.55 riastrad soclose(wg->wg_so6);
4160 1.55 riastrad #endif
4161 1.55 riastrad #ifdef INET
4162 1.55 riastrad if (wg->wg_rtable_ipv4 != NULL)
4163 1.55 riastrad free(wg->wg_rtable_ipv4, M_RTABLE);
4164 1.55 riastrad soclose(wg->wg_so4);
4165 1.55 riastrad #endif
4166 1.55 riastrad threadpool_put(wg->wg_threadpool, PRI_NONE);
4167 1.55 riastrad threadpool_job_destroy(&wg->wg_job);
4168 1.54 riastrad rw_obj_free(wg->wg_rwlock);
4169 1.55 riastrad mutex_obj_free(wg->wg_intr_lock);
4170 1.54 riastrad mutex_obj_free(wg->wg_lock);
4171 1.54 riastrad thmap_destroy(wg->wg_sessions_byindex);
4172 1.54 riastrad thmap_destroy(wg->wg_peers_byname);
4173 1.54 riastrad thmap_destroy(wg->wg_peers_bypubkey);
4174 1.54 riastrad PSLIST_DESTROY(&wg->wg_peers);
4175 1.54 riastrad kmem_free(wg, sizeof(*wg));
4176 1.59 riastrad wg_count_dec();
4177 1.1 riastrad
4178 1.1 riastrad return 0;
4179 1.1 riastrad }
4180 1.1 riastrad
4181 1.1 riastrad static struct wg_peer *
4182 1.1 riastrad wg_pick_peer_by_sa(struct wg_softc *wg, const struct sockaddr *sa,
4183 1.1 riastrad struct psref *psref)
4184 1.1 riastrad {
4185 1.1 riastrad struct radix_node_head *rnh;
4186 1.1 riastrad struct radix_node *rn;
4187 1.1 riastrad struct wg_peer *wgp = NULL;
4188 1.1 riastrad struct wg_allowedip *wga;
4189 1.1 riastrad
4190 1.1 riastrad #ifdef WG_DEBUG_LOG
4191 1.1 riastrad char addrstr[128];
4192 1.1 riastrad sockaddr_format(sa, addrstr, sizeof(addrstr));
4193 1.1 riastrad WG_DLOG("sa=%s\n", addrstr);
4194 1.1 riastrad #endif
4195 1.1 riastrad
4196 1.1 riastrad rw_enter(wg->wg_rwlock, RW_READER);
4197 1.1 riastrad
4198 1.1 riastrad rnh = wg_rnh(wg, sa->sa_family);
4199 1.1 riastrad if (rnh == NULL)
4200 1.1 riastrad goto out;
4201 1.1 riastrad
4202 1.1 riastrad rn = rnh->rnh_matchaddr(sa, rnh);
4203 1.1 riastrad if (rn == NULL || (rn->rn_flags & RNF_ROOT) != 0)
4204 1.1 riastrad goto out;
4205 1.1 riastrad
4206 1.1 riastrad WG_TRACE("success");
4207 1.1 riastrad
4208 1.16 riastrad wga = container_of(rn, struct wg_allowedip, wga_nodes[0]);
4209 1.1 riastrad wgp = wga->wga_peer;
4210 1.1 riastrad wg_get_peer(wgp, psref);
4211 1.1 riastrad
4212 1.1 riastrad out:
4213 1.1 riastrad rw_exit(wg->wg_rwlock);
4214 1.1 riastrad return wgp;
4215 1.1 riastrad }
4216 1.1 riastrad
4217 1.1 riastrad static void
4218 1.1 riastrad wg_fill_msg_data(struct wg_softc *wg, struct wg_peer *wgp,
4219 1.1 riastrad struct wg_session *wgs, struct wg_msg_data *wgmd)
4220 1.1 riastrad {
4221 1.1 riastrad
4222 1.1 riastrad memset(wgmd, 0, sizeof(*wgmd));
4223 1.39 riastrad wgmd->wgmd_type = htole32(WG_MSG_TYPE_DATA);
4224 1.49 riastrad wgmd->wgmd_receiver = wgs->wgs_remote_index;
4225 1.1 riastrad /* [W] 5.4.6: msg.counter := Nm^send */
4226 1.1 riastrad /* [W] 5.4.6: Nm^send := Nm^send + 1 */
4227 1.39 riastrad wgmd->wgmd_counter = htole64(wg_session_inc_send_counter(wgs));
4228 1.39 riastrad WG_DLOG("counter=%"PRIu64"\n", le64toh(wgmd->wgmd_counter));
4229 1.1 riastrad }
4230 1.1 riastrad
4231 1.1 riastrad static int
4232 1.1 riastrad wg_output(struct ifnet *ifp, struct mbuf *m, const struct sockaddr *dst,
4233 1.1 riastrad const struct rtentry *rt)
4234 1.1 riastrad {
4235 1.1 riastrad struct wg_softc *wg = ifp->if_softc;
4236 1.49 riastrad struct wg_peer *wgp = NULL;
4237 1.126 riastrad struct psref wgp_psref;
4238 1.1 riastrad int bound;
4239 1.49 riastrad int error;
4240 1.49 riastrad
4241 1.49 riastrad bound = curlwp_bind();
4242 1.1 riastrad
4243 1.1 riastrad /* TODO make the nest limit configurable via sysctl */
4244 1.1 riastrad error = if_tunnel_check_nesting(ifp, m, 1);
4245 1.49 riastrad if (error) {
4246 1.76 jakllsch WGLOG(LOG_ERR,
4247 1.76 jakllsch "%s: tunneling loop detected and packet dropped\n",
4248 1.76 jakllsch if_name(&wg->wg_if));
4249 1.54 riastrad goto out0;
4250 1.1 riastrad }
4251 1.1 riastrad
4252 1.60 riastrad #ifdef ALTQ
4253 1.60 riastrad bool altq = atomic_load_relaxed(&ifp->if_snd.altq_flags)
4254 1.60 riastrad & ALTQF_ENABLED;
4255 1.60 riastrad if (altq)
4256 1.60 riastrad IFQ_CLASSIFY(&ifp->if_snd, m, dst->sa_family);
4257 1.60 riastrad #endif
4258 1.1 riastrad
4259 1.1 riastrad bpf_mtap_af(ifp, dst->sa_family, m, BPF_D_OUT);
4260 1.1 riastrad
4261 1.1 riastrad m->m_flags &= ~(M_BCAST|M_MCAST);
4262 1.1 riastrad
4263 1.49 riastrad wgp = wg_pick_peer_by_sa(wg, dst, &wgp_psref);
4264 1.1 riastrad if (wgp == NULL) {
4265 1.1 riastrad WG_TRACE("peer not found");
4266 1.1 riastrad error = EHOSTUNREACH;
4267 1.54 riastrad goto out0;
4268 1.1 riastrad }
4269 1.1 riastrad
4270 1.1 riastrad /* Clear checksum-offload flags. */
4271 1.1 riastrad m->m_pkthdr.csum_flags = 0;
4272 1.1 riastrad m->m_pkthdr.csum_data = 0;
4273 1.1 riastrad
4274 1.126 riastrad /* Toss it in the queue. */
4275 1.60 riastrad #ifdef ALTQ
4276 1.60 riastrad if (altq) {
4277 1.60 riastrad mutex_enter(ifp->if_snd.ifq_lock);
4278 1.60 riastrad if (ALTQ_IS_ENABLED(&ifp->if_snd)) {
4279 1.60 riastrad M_SETCTX(m, wgp);
4280 1.60 riastrad ALTQ_ENQUEUE(&ifp->if_snd, m, error);
4281 1.60 riastrad m = NULL; /* consume */
4282 1.60 riastrad }
4283 1.60 riastrad mutex_exit(ifp->if_snd.ifq_lock);
4284 1.60 riastrad if (m == NULL) {
4285 1.60 riastrad wg_start(ifp);
4286 1.126 riastrad goto out1;
4287 1.60 riastrad }
4288 1.60 riastrad }
4289 1.60 riastrad #endif
4290 1.54 riastrad kpreempt_disable();
4291 1.54 riastrad const uint32_t h = curcpu()->ci_index; // pktq_rps_hash(m)
4292 1.54 riastrad M_SETCTX(m, wgp);
4293 1.54 riastrad if (__predict_false(!pktq_enqueue(wg_pktq, m, h))) {
4294 1.76 jakllsch WGLOG(LOG_ERR, "%s: pktq full, dropping\n",
4295 1.76 jakllsch if_name(&wg->wg_if));
4296 1.1 riastrad error = ENOBUFS;
4297 1.126 riastrad goto out2;
4298 1.1 riastrad }
4299 1.49 riastrad m = NULL; /* consumed */
4300 1.49 riastrad error = 0;
4301 1.126 riastrad out2: kpreempt_enable();
4302 1.1 riastrad
4303 1.60 riastrad #ifdef ALTQ
4304 1.126 riastrad out1:
4305 1.60 riastrad #endif
4306 1.126 riastrad wg_put_peer(wgp, &wgp_psref);
4307 1.79 rin out0: m_freem(m);
4308 1.1 riastrad curlwp_bindx(bound);
4309 1.1 riastrad return error;
4310 1.1 riastrad }
4311 1.1 riastrad
4312 1.1 riastrad static int
4313 1.1 riastrad wg_send_udp(struct wg_peer *wgp, struct mbuf *m)
4314 1.1 riastrad {
4315 1.1 riastrad struct psref psref;
4316 1.1 riastrad struct wg_sockaddr *wgsa;
4317 1.1 riastrad int error;
4318 1.47 riastrad struct socket *so;
4319 1.1 riastrad
4320 1.47 riastrad wgsa = wg_get_endpoint_sa(wgp, &psref);
4321 1.47 riastrad so = wg_get_so_by_peer(wgp, wgsa);
4322 1.1 riastrad solock(so);
4323 1.109 riastrad switch (wgsatosa(wgsa)->sa_family) {
4324 1.109 riastrad #ifdef INET
4325 1.109 riastrad case AF_INET:
4326 1.1 riastrad error = udp_send(so, m, wgsatosa(wgsa), NULL, curlwp);
4327 1.109 riastrad break;
4328 1.109 riastrad #endif
4329 1.1 riastrad #ifdef INET6
4330 1.109 riastrad case AF_INET6:
4331 1.70 ozaki error = udp6_output(sotoinpcb(so), m, wgsatosin6(wgsa),
4332 1.1 riastrad NULL, curlwp);
4333 1.109 riastrad break;
4334 1.109 riastrad #endif
4335 1.109 riastrad default:
4336 1.38 riastrad m_freem(m);
4337 1.47 riastrad error = EPFNOSUPPORT;
4338 1.1 riastrad }
4339 1.47 riastrad sounlock(so);
4340 1.1 riastrad wg_put_sa(wgp, wgsa, &psref);
4341 1.1 riastrad
4342 1.1 riastrad return error;
4343 1.1 riastrad }
4344 1.1 riastrad
4345 1.1 riastrad /* Inspired by pppoe_get_mbuf */
4346 1.1 riastrad static struct mbuf *
4347 1.1 riastrad wg_get_mbuf(size_t leading_len, size_t len)
4348 1.1 riastrad {
4349 1.1 riastrad struct mbuf *m;
4350 1.1 riastrad
4351 1.30 riastrad KASSERT(leading_len <= MCLBYTES);
4352 1.30 riastrad KASSERT(len <= MCLBYTES - leading_len);
4353 1.30 riastrad
4354 1.1 riastrad m = m_gethdr(M_DONTWAIT, MT_DATA);
4355 1.1 riastrad if (m == NULL)
4356 1.1 riastrad return NULL;
4357 1.1 riastrad if (len + leading_len > MHLEN) {
4358 1.1 riastrad m_clget(m, M_DONTWAIT);
4359 1.1 riastrad if ((m->m_flags & M_EXT) == 0) {
4360 1.1 riastrad m_free(m);
4361 1.1 riastrad return NULL;
4362 1.1 riastrad }
4363 1.1 riastrad }
4364 1.1 riastrad m->m_data += leading_len;
4365 1.1 riastrad m->m_pkthdr.len = m->m_len = len;
4366 1.1 riastrad
4367 1.1 riastrad return m;
4368 1.1 riastrad }
4369 1.1 riastrad
4370 1.108 riastrad static void
4371 1.108 riastrad wg_send_data_msg(struct wg_peer *wgp, struct wg_session *wgs, struct mbuf *m)
4372 1.1 riastrad {
4373 1.1 riastrad struct wg_softc *wg = wgp->wgp_sc;
4374 1.1 riastrad int error;
4375 1.1 riastrad size_t inner_len, padded_len, encrypted_len;
4376 1.1 riastrad char *padded_buf = NULL;
4377 1.1 riastrad size_t mlen;
4378 1.1 riastrad struct wg_msg_data *wgmd;
4379 1.1 riastrad bool free_padded_buf = false;
4380 1.1 riastrad struct mbuf *n;
4381 1.62 riastrad size_t leading_len = max_hdr + sizeof(struct udphdr);
4382 1.1 riastrad
4383 1.1 riastrad mlen = m_length(m);
4384 1.1 riastrad inner_len = mlen;
4385 1.2 riastrad padded_len = roundup(mlen, 16);
4386 1.2 riastrad encrypted_len = padded_len + WG_AUTHTAG_LEN;
4387 1.87 kre WG_DLOG("inner=%zu, padded=%zu, encrypted_len=%zu\n",
4388 1.1 riastrad inner_len, padded_len, encrypted_len);
4389 1.1 riastrad if (mlen != 0) {
4390 1.1 riastrad bool success;
4391 1.1 riastrad success = m_ensure_contig(&m, padded_len);
4392 1.1 riastrad if (success) {
4393 1.1 riastrad padded_buf = mtod(m, char *);
4394 1.1 riastrad } else {
4395 1.1 riastrad padded_buf = kmem_intr_alloc(padded_len, KM_NOSLEEP);
4396 1.1 riastrad if (padded_buf == NULL) {
4397 1.1 riastrad error = ENOBUFS;
4398 1.108 riastrad goto out;
4399 1.1 riastrad }
4400 1.1 riastrad free_padded_buf = true;
4401 1.1 riastrad m_copydata(m, 0, mlen, padded_buf);
4402 1.1 riastrad }
4403 1.1 riastrad memset(padded_buf + mlen, 0, padded_len - inner_len);
4404 1.1 riastrad }
4405 1.1 riastrad
4406 1.1 riastrad n = wg_get_mbuf(leading_len, sizeof(*wgmd) + encrypted_len);
4407 1.1 riastrad if (n == NULL) {
4408 1.1 riastrad error = ENOBUFS;
4409 1.108 riastrad goto out;
4410 1.1 riastrad }
4411 1.27 riastrad KASSERT(n->m_len >= sizeof(*wgmd));
4412 1.1 riastrad wgmd = mtod(n, struct wg_msg_data *);
4413 1.1 riastrad wg_fill_msg_data(wg, wgp, wgs, wgmd);
4414 1.111 riastrad
4415 1.1 riastrad /* [W] 5.4.6: AEAD(Tm^send, Nm^send, P, e) */
4416 1.1 riastrad wg_algo_aead_enc((char *)wgmd + sizeof(*wgmd), encrypted_len,
4417 1.39 riastrad wgs->wgs_tkey_send, le64toh(wgmd->wgmd_counter),
4418 1.39 riastrad padded_buf, padded_len,
4419 1.1 riastrad NULL, 0);
4420 1.1 riastrad
4421 1.108 riastrad error = wg->wg_ops->send_data_msg(wgp, n); /* consumes n */
4422 1.108 riastrad if (error) {
4423 1.108 riastrad WG_DLOG("send_data_msg failed, error=%d\n", error);
4424 1.108 riastrad goto out;
4425 1.108 riastrad }
4426 1.108 riastrad
4427 1.108 riastrad /*
4428 1.108 riastrad * Packet was sent out -- count it in the interface statistics.
4429 1.108 riastrad */
4430 1.108 riastrad if_statadd(&wg->wg_if, if_obytes, mlen);
4431 1.108 riastrad if_statinc(&wg->wg_if, if_opackets);
4432 1.108 riastrad
4433 1.108 riastrad /*
4434 1.108 riastrad * Record when we last sent data, for determining when we need
4435 1.108 riastrad * to send a passive keepalive.
4436 1.108 riastrad *
4437 1.108 riastrad * Other logic assumes that wgs_time_last_data_sent is zero iff
4438 1.108 riastrad * we have never sent data on this session. Early at boot, if
4439 1.108 riastrad * wg(4) starts operating within <1sec, or after 136 years of
4440 1.108 riastrad * uptime, we may observe time_uptime32 = 0. In that case,
4441 1.108 riastrad * pretend we observed 1 instead. That way, we correctly
4442 1.108 riastrad * indicate we have sent data on this session; the only logic
4443 1.108 riastrad * this might adversely affect is the keepalive timeout
4444 1.108 riastrad * detection, which might spuriously send a keepalive during
4445 1.108 riastrad * one second every 136 years. All of this is very silly, of
4446 1.108 riastrad * course, but the cost to guaranteeing wgs_time_last_data_sent
4447 1.108 riastrad * is nonzero is negligible here.
4448 1.108 riastrad */
4449 1.108 riastrad const uint32_t now = time_uptime32;
4450 1.108 riastrad atomic_store_relaxed(&wgs->wgs_time_last_data_sent, MAX(now, 1));
4451 1.108 riastrad
4452 1.108 riastrad /*
4453 1.108 riastrad * Check rekey-after-time.
4454 1.108 riastrad */
4455 1.108 riastrad if (wgs->wgs_is_initiator &&
4456 1.117 riastrad now - wgs->wgs_time_established >= wg_rekey_after_time) {
4457 1.108 riastrad /*
4458 1.108 riastrad * [W] 6.2 Transport Message Limits
4459 1.108 riastrad * "if a peer is the initiator of a current secure
4460 1.108 riastrad * session, WireGuard will send a handshake initiation
4461 1.108 riastrad * message to begin a new secure session if, after
4462 1.108 riastrad * transmitting a transport data message, the current
4463 1.108 riastrad * secure session is REKEY-AFTER-TIME seconds old,"
4464 1.108 riastrad */
4465 1.108 riastrad WG_TRACE("rekey after time");
4466 1.113 riastrad atomic_store_relaxed(&wgs->wgs_force_rekey, true);
4467 1.108 riastrad wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
4468 1.108 riastrad }
4469 1.108 riastrad
4470 1.108 riastrad /*
4471 1.108 riastrad * Check rekey-after-messages.
4472 1.108 riastrad */
4473 1.108 riastrad if (wg_session_get_send_counter(wgs) >= wg_rekey_after_messages) {
4474 1.108 riastrad /*
4475 1.108 riastrad * [W] 6.2 Transport Message Limits
4476 1.108 riastrad * "WireGuard will try to create a new session, by
4477 1.108 riastrad * sending a handshake initiation message (section
4478 1.108 riastrad * 5.4.2), after it has sent REKEY-AFTER-MESSAGES
4479 1.108 riastrad * transport data messages..."
4480 1.108 riastrad */
4481 1.108 riastrad WG_TRACE("rekey after messages");
4482 1.113 riastrad atomic_store_relaxed(&wgs->wgs_force_rekey, true);
4483 1.108 riastrad wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
4484 1.1 riastrad }
4485 1.108 riastrad
4486 1.108 riastrad out: m_freem(m);
4487 1.1 riastrad if (free_padded_buf)
4488 1.1 riastrad kmem_intr_free(padded_buf, padded_len);
4489 1.1 riastrad }
4490 1.1 riastrad
4491 1.1 riastrad static void
4492 1.1 riastrad wg_input(struct ifnet *ifp, struct mbuf *m, const int af)
4493 1.1 riastrad {
4494 1.1 riastrad pktqueue_t *pktq;
4495 1.1 riastrad size_t pktlen;
4496 1.1 riastrad
4497 1.1 riastrad KASSERT(af == AF_INET || af == AF_INET6);
4498 1.1 riastrad
4499 1.1 riastrad WG_TRACE("");
4500 1.1 riastrad
4501 1.1 riastrad m_set_rcvif(m, ifp);
4502 1.1 riastrad pktlen = m->m_pkthdr.len;
4503 1.1 riastrad
4504 1.1 riastrad bpf_mtap_af(ifp, af, m, BPF_D_IN);
4505 1.1 riastrad
4506 1.1 riastrad switch (af) {
4507 1.109 riastrad #ifdef INET
4508 1.1 riastrad case AF_INET:
4509 1.1 riastrad pktq = ip_pktq;
4510 1.1 riastrad break;
4511 1.109 riastrad #endif
4512 1.1 riastrad #ifdef INET6
4513 1.1 riastrad case AF_INET6:
4514 1.1 riastrad pktq = ip6_pktq;
4515 1.1 riastrad break;
4516 1.1 riastrad #endif
4517 1.1 riastrad default:
4518 1.1 riastrad panic("invalid af=%d", af);
4519 1.1 riastrad }
4520 1.1 riastrad
4521 1.57 riastrad kpreempt_disable();
4522 1.1 riastrad const u_int h = curcpu()->ci_index;
4523 1.1 riastrad if (__predict_true(pktq_enqueue(pktq, m, h))) {
4524 1.4 riastrad if_statadd(ifp, if_ibytes, pktlen);
4525 1.4 riastrad if_statinc(ifp, if_ipackets);
4526 1.1 riastrad } else {
4527 1.1 riastrad m_freem(m);
4528 1.1 riastrad }
4529 1.57 riastrad kpreempt_enable();
4530 1.1 riastrad }
4531 1.1 riastrad
4532 1.1 riastrad static void
4533 1.114 riastrad wg_calc_pubkey(uint8_t pubkey[static WG_STATIC_KEY_LEN],
4534 1.114 riastrad const uint8_t privkey[static WG_STATIC_KEY_LEN])
4535 1.1 riastrad {
4536 1.1 riastrad
4537 1.1 riastrad crypto_scalarmult_base(pubkey, privkey);
4538 1.1 riastrad }
4539 1.1 riastrad
4540 1.1 riastrad static int
4541 1.1 riastrad wg_rtable_add_route(struct wg_softc *wg, struct wg_allowedip *wga)
4542 1.1 riastrad {
4543 1.1 riastrad struct radix_node_head *rnh;
4544 1.1 riastrad struct radix_node *rn;
4545 1.1 riastrad int error = 0;
4546 1.1 riastrad
4547 1.1 riastrad rw_enter(wg->wg_rwlock, RW_WRITER);
4548 1.1 riastrad rnh = wg_rnh(wg, wga->wga_family);
4549 1.1 riastrad KASSERT(rnh != NULL);
4550 1.1 riastrad rn = rnh->rnh_addaddr(&wga->wga_sa_addr, &wga->wga_sa_mask, rnh,
4551 1.1 riastrad wga->wga_nodes);
4552 1.1 riastrad rw_exit(wg->wg_rwlock);
4553 1.1 riastrad
4554 1.1 riastrad if (rn == NULL)
4555 1.1 riastrad error = EEXIST;
4556 1.1 riastrad
4557 1.1 riastrad return error;
4558 1.1 riastrad }
4559 1.1 riastrad
4560 1.1 riastrad static int
4561 1.1 riastrad wg_handle_prop_peer(struct wg_softc *wg, prop_dictionary_t peer,
4562 1.1 riastrad struct wg_peer **wgpp)
4563 1.1 riastrad {
4564 1.1 riastrad int error = 0;
4565 1.12 riastrad const void *pubkey;
4566 1.1 riastrad size_t pubkey_len;
4567 1.12 riastrad const void *psk;
4568 1.12 riastrad size_t psk_len;
4569 1.1 riastrad const char *name = NULL;
4570 1.1 riastrad
4571 1.12 riastrad if (prop_dictionary_get_string(peer, "name", &name)) {
4572 1.1 riastrad if (strlen(name) > WG_PEER_NAME_MAXLEN) {
4573 1.1 riastrad error = EINVAL;
4574 1.1 riastrad goto out;
4575 1.1 riastrad }
4576 1.1 riastrad }
4577 1.1 riastrad
4578 1.12 riastrad if (!prop_dictionary_get_data(peer, "public_key",
4579 1.12 riastrad &pubkey, &pubkey_len)) {
4580 1.1 riastrad error = EINVAL;
4581 1.1 riastrad goto out;
4582 1.1 riastrad }
4583 1.1 riastrad #ifdef WG_DEBUG_DUMP
4584 1.80 christos if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
4585 1.80 christos char *hex = gethexdump(pubkey, pubkey_len);
4586 1.87 kre log(LOG_DEBUG, "pubkey=%p, pubkey_len=%zu\n%s\n",
4587 1.80 christos pubkey, pubkey_len, hex);
4588 1.80 christos puthexdump(hex, pubkey, pubkey_len);
4589 1.80 christos }
4590 1.1 riastrad #endif
4591 1.1 riastrad
4592 1.1 riastrad struct wg_peer *wgp = wg_alloc_peer(wg);
4593 1.1 riastrad memcpy(wgp->wgp_pubkey, pubkey, sizeof(wgp->wgp_pubkey));
4594 1.1 riastrad if (name != NULL)
4595 1.1 riastrad strncpy(wgp->wgp_name, name, sizeof(wgp->wgp_name));
4596 1.1 riastrad
4597 1.12 riastrad if (prop_dictionary_get_data(peer, "preshared_key", &psk, &psk_len)) {
4598 1.1 riastrad if (psk_len != sizeof(wgp->wgp_psk)) {
4599 1.1 riastrad error = EINVAL;
4600 1.1 riastrad goto out;
4601 1.1 riastrad }
4602 1.1 riastrad memcpy(wgp->wgp_psk, psk, sizeof(wgp->wgp_psk));
4603 1.1 riastrad }
4604 1.1 riastrad
4605 1.12 riastrad const void *addr;
4606 1.1 riastrad size_t addr_len;
4607 1.47 riastrad struct wg_sockaddr *wgsa = wgp->wgp_endpoint;
4608 1.1 riastrad
4609 1.12 riastrad if (!prop_dictionary_get_data(peer, "endpoint", &addr, &addr_len))
4610 1.1 riastrad goto skip_endpoint;
4611 1.47 riastrad if (addr_len < sizeof(*wgsatosa(wgsa)) ||
4612 1.47 riastrad addr_len > sizeof(*wgsatoss(wgsa))) {
4613 1.47 riastrad error = EINVAL;
4614 1.47 riastrad goto out;
4615 1.47 riastrad }
4616 1.47 riastrad memcpy(wgsatoss(wgsa), addr, addr_len);
4617 1.47 riastrad switch (wgsa_family(wgsa)) {
4618 1.109 riastrad #ifdef INET
4619 1.47 riastrad case AF_INET:
4620 1.109 riastrad break;
4621 1.109 riastrad #endif
4622 1.1 riastrad #ifdef INET6
4623 1.47 riastrad case AF_INET6:
4624 1.109 riastrad break;
4625 1.47 riastrad #endif
4626 1.1 riastrad default:
4627 1.47 riastrad error = EPFNOSUPPORT;
4628 1.47 riastrad goto out;
4629 1.47 riastrad }
4630 1.47 riastrad if (addr_len != sockaddr_getsize_by_family(wgsa_family(wgsa))) {
4631 1.47 riastrad error = EINVAL;
4632 1.47 riastrad goto out;
4633 1.1 riastrad }
4634 1.47 riastrad {
4635 1.47 riastrad char addrstr[128];
4636 1.47 riastrad sockaddr_format(wgsatosa(wgsa), addrstr, sizeof(addrstr));
4637 1.47 riastrad WG_DLOG("addr=%s\n", addrstr);
4638 1.47 riastrad }
4639 1.1 riastrad wgp->wgp_endpoint_available = true;
4640 1.1 riastrad
4641 1.1 riastrad prop_array_t allowedips;
4642 1.1 riastrad skip_endpoint:
4643 1.1 riastrad allowedips = prop_dictionary_get(peer, "allowedips");
4644 1.1 riastrad if (allowedips == NULL)
4645 1.1 riastrad goto skip;
4646 1.1 riastrad
4647 1.1 riastrad prop_object_iterator_t _it = prop_array_iterator(allowedips);
4648 1.1 riastrad prop_dictionary_t prop_allowedip;
4649 1.1 riastrad int j = 0;
4650 1.1 riastrad while ((prop_allowedip = prop_object_iterator_next(_it)) != NULL) {
4651 1.1 riastrad struct wg_allowedip *wga = &wgp->wgp_allowedips[j];
4652 1.1 riastrad
4653 1.12 riastrad if (!prop_dictionary_get_int(prop_allowedip, "family",
4654 1.12 riastrad &wga->wga_family))
4655 1.1 riastrad continue;
4656 1.12 riastrad if (!prop_dictionary_get_data(prop_allowedip, "ip",
4657 1.12 riastrad &addr, &addr_len))
4658 1.1 riastrad continue;
4659 1.12 riastrad if (!prop_dictionary_get_uint8(prop_allowedip, "cidr",
4660 1.12 riastrad &wga->wga_cidr))
4661 1.1 riastrad continue;
4662 1.1 riastrad
4663 1.1 riastrad switch (wga->wga_family) {
4664 1.109 riastrad #ifdef INET
4665 1.1 riastrad case AF_INET: {
4666 1.1 riastrad struct sockaddr_in sin;
4667 1.1 riastrad char addrstr[128];
4668 1.1 riastrad struct in_addr mask;
4669 1.1 riastrad struct sockaddr_in sin_mask;
4670 1.1 riastrad
4671 1.1 riastrad if (addr_len != sizeof(struct in_addr))
4672 1.1 riastrad return EINVAL;
4673 1.1 riastrad memcpy(&wga->wga_addr4, addr, addr_len);
4674 1.1 riastrad
4675 1.9 riastrad sockaddr_in_init(&sin, (const struct in_addr *)addr,
4676 1.9 riastrad 0);
4677 1.1 riastrad sockaddr_copy(&wga->wga_sa_addr,
4678 1.1 riastrad sizeof(sin), sintosa(&sin));
4679 1.1 riastrad
4680 1.9 riastrad sockaddr_format(sintosa(&sin),
4681 1.9 riastrad addrstr, sizeof(addrstr));
4682 1.1 riastrad WG_DLOG("addr=%s/%d\n", addrstr, wga->wga_cidr);
4683 1.1 riastrad
4684 1.1 riastrad in_len2mask(&mask, wga->wga_cidr);
4685 1.1 riastrad sockaddr_in_init(&sin_mask, &mask, 0);
4686 1.1 riastrad sockaddr_copy(&wga->wga_sa_mask,
4687 1.1 riastrad sizeof(sin_mask), sintosa(&sin_mask));
4688 1.1 riastrad
4689 1.1 riastrad break;
4690 1.1 riastrad }
4691 1.109 riastrad #endif
4692 1.1 riastrad #ifdef INET6
4693 1.1 riastrad case AF_INET6: {
4694 1.1 riastrad struct sockaddr_in6 sin6;
4695 1.1 riastrad char addrstr[128];
4696 1.1 riastrad struct in6_addr mask;
4697 1.1 riastrad struct sockaddr_in6 sin6_mask;
4698 1.1 riastrad
4699 1.1 riastrad if (addr_len != sizeof(struct in6_addr))
4700 1.1 riastrad return EINVAL;
4701 1.1 riastrad memcpy(&wga->wga_addr6, addr, addr_len);
4702 1.1 riastrad
4703 1.9 riastrad sockaddr_in6_init(&sin6, (const struct in6_addr *)addr,
4704 1.9 riastrad 0, 0, 0);
4705 1.1 riastrad sockaddr_copy(&wga->wga_sa_addr,
4706 1.1 riastrad sizeof(sin6), sin6tosa(&sin6));
4707 1.1 riastrad
4708 1.9 riastrad sockaddr_format(sin6tosa(&sin6),
4709 1.9 riastrad addrstr, sizeof(addrstr));
4710 1.1 riastrad WG_DLOG("addr=%s/%d\n", addrstr, wga->wga_cidr);
4711 1.1 riastrad
4712 1.1 riastrad in6_prefixlen2mask(&mask, wga->wga_cidr);
4713 1.1 riastrad sockaddr_in6_init(&sin6_mask, &mask, 0, 0, 0);
4714 1.1 riastrad sockaddr_copy(&wga->wga_sa_mask,
4715 1.1 riastrad sizeof(sin6_mask), sin6tosa(&sin6_mask));
4716 1.1 riastrad
4717 1.1 riastrad break;
4718 1.1 riastrad }
4719 1.1 riastrad #endif
4720 1.1 riastrad default:
4721 1.1 riastrad error = EINVAL;
4722 1.1 riastrad goto out;
4723 1.1 riastrad }
4724 1.1 riastrad wga->wga_peer = wgp;
4725 1.1 riastrad
4726 1.1 riastrad error = wg_rtable_add_route(wg, wga);
4727 1.1 riastrad if (error != 0)
4728 1.1 riastrad goto out;
4729 1.1 riastrad
4730 1.1 riastrad j++;
4731 1.1 riastrad }
4732 1.1 riastrad wgp->wgp_n_allowedips = j;
4733 1.1 riastrad skip:
4734 1.1 riastrad *wgpp = wgp;
4735 1.1 riastrad out:
4736 1.1 riastrad return error;
4737 1.1 riastrad }
4738 1.1 riastrad
4739 1.1 riastrad static int
4740 1.1 riastrad wg_alloc_prop_buf(char **_buf, struct ifdrv *ifd)
4741 1.1 riastrad {
4742 1.1 riastrad int error;
4743 1.1 riastrad char *buf;
4744 1.1 riastrad
4745 1.87 kre WG_DLOG("buf=%p, len=%zu\n", ifd->ifd_data, ifd->ifd_len);
4746 1.68 riastrad if (ifd->ifd_len >= WG_MAX_PROPLEN)
4747 1.68 riastrad return E2BIG;
4748 1.1 riastrad buf = kmem_alloc(ifd->ifd_len + 1, KM_SLEEP);
4749 1.1 riastrad error = copyin(ifd->ifd_data, buf, ifd->ifd_len);
4750 1.1 riastrad if (error != 0)
4751 1.1 riastrad return error;
4752 1.1 riastrad buf[ifd->ifd_len] = '\0';
4753 1.1 riastrad #ifdef WG_DEBUG_DUMP
4754 1.80 christos if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
4755 1.80 christos log(LOG_DEBUG, "%.*s\n", (int)MIN(INT_MAX, ifd->ifd_len),
4756 1.80 christos (const char *)buf);
4757 1.80 christos }
4758 1.1 riastrad #endif
4759 1.1 riastrad *_buf = buf;
4760 1.1 riastrad return 0;
4761 1.1 riastrad }
4762 1.1 riastrad
4763 1.1 riastrad static int
4764 1.1 riastrad wg_ioctl_set_private_key(struct wg_softc *wg, struct ifdrv *ifd)
4765 1.1 riastrad {
4766 1.1 riastrad int error;
4767 1.1 riastrad prop_dictionary_t prop_dict;
4768 1.1 riastrad char *buf = NULL;
4769 1.12 riastrad const void *privkey;
4770 1.1 riastrad size_t privkey_len;
4771 1.1 riastrad
4772 1.1 riastrad error = wg_alloc_prop_buf(&buf, ifd);
4773 1.1 riastrad if (error != 0)
4774 1.1 riastrad return error;
4775 1.1 riastrad error = EINVAL;
4776 1.1 riastrad prop_dict = prop_dictionary_internalize(buf);
4777 1.1 riastrad if (prop_dict == NULL)
4778 1.1 riastrad goto out;
4779 1.12 riastrad if (!prop_dictionary_get_data(prop_dict, "private_key",
4780 1.12 riastrad &privkey, &privkey_len))
4781 1.1 riastrad goto out;
4782 1.1 riastrad #ifdef WG_DEBUG_DUMP
4783 1.80 christos if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
4784 1.80 christos char *hex = gethexdump(privkey, privkey_len);
4785 1.87 kre log(LOG_DEBUG, "privkey=%p, privkey_len=%zu\n%s\n",
4786 1.80 christos privkey, privkey_len, hex);
4787 1.80 christos puthexdump(hex, privkey, privkey_len);
4788 1.80 christos }
4789 1.1 riastrad #endif
4790 1.1 riastrad if (privkey_len != WG_STATIC_KEY_LEN)
4791 1.1 riastrad goto out;
4792 1.1 riastrad memcpy(wg->wg_privkey, privkey, WG_STATIC_KEY_LEN);
4793 1.1 riastrad wg_calc_pubkey(wg->wg_pubkey, wg->wg_privkey);
4794 1.1 riastrad error = 0;
4795 1.1 riastrad
4796 1.1 riastrad out:
4797 1.1 riastrad kmem_free(buf, ifd->ifd_len + 1);
4798 1.1 riastrad return error;
4799 1.1 riastrad }
4800 1.1 riastrad
4801 1.1 riastrad static int
4802 1.1 riastrad wg_ioctl_set_listen_port(struct wg_softc *wg, struct ifdrv *ifd)
4803 1.1 riastrad {
4804 1.1 riastrad int error;
4805 1.1 riastrad prop_dictionary_t prop_dict;
4806 1.1 riastrad char *buf = NULL;
4807 1.12 riastrad uint16_t port;
4808 1.1 riastrad
4809 1.1 riastrad error = wg_alloc_prop_buf(&buf, ifd);
4810 1.1 riastrad if (error != 0)
4811 1.1 riastrad return error;
4812 1.1 riastrad error = EINVAL;
4813 1.1 riastrad prop_dict = prop_dictionary_internalize(buf);
4814 1.1 riastrad if (prop_dict == NULL)
4815 1.1 riastrad goto out;
4816 1.12 riastrad if (!prop_dictionary_get_uint16(prop_dict, "listen_port", &port))
4817 1.1 riastrad goto out;
4818 1.1 riastrad
4819 1.1 riastrad error = wg->wg_ops->bind_port(wg, (uint16_t)port);
4820 1.1 riastrad
4821 1.1 riastrad out:
4822 1.1 riastrad kmem_free(buf, ifd->ifd_len + 1);
4823 1.1 riastrad return error;
4824 1.1 riastrad }
4825 1.1 riastrad
4826 1.1 riastrad static int
4827 1.1 riastrad wg_ioctl_add_peer(struct wg_softc *wg, struct ifdrv *ifd)
4828 1.1 riastrad {
4829 1.1 riastrad int error;
4830 1.1 riastrad prop_dictionary_t prop_dict;
4831 1.1 riastrad char *buf = NULL;
4832 1.37 riastrad struct wg_peer *wgp = NULL, *wgp0 __diagused;
4833 1.1 riastrad
4834 1.1 riastrad error = wg_alloc_prop_buf(&buf, ifd);
4835 1.1 riastrad if (error != 0)
4836 1.1 riastrad return error;
4837 1.1 riastrad error = EINVAL;
4838 1.1 riastrad prop_dict = prop_dictionary_internalize(buf);
4839 1.1 riastrad if (prop_dict == NULL)
4840 1.1 riastrad goto out;
4841 1.1 riastrad
4842 1.1 riastrad error = wg_handle_prop_peer(wg, prop_dict, &wgp);
4843 1.1 riastrad if (error != 0)
4844 1.1 riastrad goto out;
4845 1.1 riastrad
4846 1.1 riastrad mutex_enter(wg->wg_lock);
4847 1.37 riastrad if (thmap_get(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
4848 1.37 riastrad sizeof(wgp->wgp_pubkey)) != NULL ||
4849 1.37 riastrad (wgp->wgp_name[0] &&
4850 1.37 riastrad thmap_get(wg->wg_peers_byname, wgp->wgp_name,
4851 1.37 riastrad strlen(wgp->wgp_name)) != NULL)) {
4852 1.37 riastrad mutex_exit(wg->wg_lock);
4853 1.37 riastrad wg_destroy_peer(wgp);
4854 1.37 riastrad error = EEXIST;
4855 1.37 riastrad goto out;
4856 1.37 riastrad }
4857 1.37 riastrad wgp0 = thmap_put(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
4858 1.37 riastrad sizeof(wgp->wgp_pubkey), wgp);
4859 1.37 riastrad KASSERT(wgp0 == wgp);
4860 1.37 riastrad if (wgp->wgp_name[0]) {
4861 1.37 riastrad wgp0 = thmap_put(wg->wg_peers_byname, wgp->wgp_name,
4862 1.37 riastrad strlen(wgp->wgp_name), wgp);
4863 1.37 riastrad KASSERT(wgp0 == wgp);
4864 1.37 riastrad }
4865 1.1 riastrad WG_PEER_WRITER_INSERT_HEAD(wgp, wg);
4866 1.1 riastrad wg->wg_npeers++;
4867 1.1 riastrad mutex_exit(wg->wg_lock);
4868 1.1 riastrad
4869 1.61 roy if_link_state_change(&wg->wg_if, LINK_STATE_UP);
4870 1.61 roy
4871 1.1 riastrad out:
4872 1.1 riastrad kmem_free(buf, ifd->ifd_len + 1);
4873 1.1 riastrad return error;
4874 1.1 riastrad }
4875 1.1 riastrad
4876 1.1 riastrad static int
4877 1.1 riastrad wg_ioctl_delete_peer(struct wg_softc *wg, struct ifdrv *ifd)
4878 1.1 riastrad {
4879 1.1 riastrad int error;
4880 1.1 riastrad prop_dictionary_t prop_dict;
4881 1.1 riastrad char *buf = NULL;
4882 1.1 riastrad const char *name;
4883 1.1 riastrad
4884 1.1 riastrad error = wg_alloc_prop_buf(&buf, ifd);
4885 1.1 riastrad if (error != 0)
4886 1.1 riastrad return error;
4887 1.1 riastrad error = EINVAL;
4888 1.1 riastrad prop_dict = prop_dictionary_internalize(buf);
4889 1.1 riastrad if (prop_dict == NULL)
4890 1.1 riastrad goto out;
4891 1.1 riastrad
4892 1.12 riastrad if (!prop_dictionary_get_string(prop_dict, "name", &name))
4893 1.1 riastrad goto out;
4894 1.1 riastrad if (strlen(name) > WG_PEER_NAME_MAXLEN)
4895 1.1 riastrad goto out;
4896 1.1 riastrad
4897 1.1 riastrad error = wg_destroy_peer_name(wg, name);
4898 1.1 riastrad out:
4899 1.1 riastrad kmem_free(buf, ifd->ifd_len + 1);
4900 1.1 riastrad return error;
4901 1.1 riastrad }
4902 1.1 riastrad
4903 1.74 christos static bool
4904 1.74 christos wg_is_authorized(struct wg_softc *wg, u_long cmd)
4905 1.74 christos {
4906 1.74 christos int au = cmd == SIOCGDRVSPEC ?
4907 1.74 christos KAUTH_REQ_NETWORK_INTERFACE_WG_GETPRIV :
4908 1.74 christos KAUTH_REQ_NETWORK_INTERFACE_WG_SETPRIV;
4909 1.74 christos return kauth_authorize_network(kauth_cred_get(),
4910 1.74 christos KAUTH_NETWORK_INTERFACE_WG, au, &wg->wg_if,
4911 1.74 christos (void *)cmd, NULL) == 0;
4912 1.74 christos }
4913 1.74 christos
4914 1.1 riastrad static int
4915 1.1 riastrad wg_ioctl_get(struct wg_softc *wg, struct ifdrv *ifd)
4916 1.1 riastrad {
4917 1.1 riastrad int error = ENOMEM;
4918 1.1 riastrad prop_dictionary_t prop_dict;
4919 1.23 riastrad prop_array_t peers = NULL;
4920 1.1 riastrad char *buf;
4921 1.1 riastrad struct wg_peer *wgp;
4922 1.1 riastrad int s, i;
4923 1.1 riastrad
4924 1.1 riastrad prop_dict = prop_dictionary_create();
4925 1.1 riastrad if (prop_dict == NULL)
4926 1.1 riastrad goto error;
4927 1.1 riastrad
4928 1.74 christos if (wg_is_authorized(wg, SIOCGDRVSPEC)) {
4929 1.73 jakllsch if (!prop_dictionary_set_data(prop_dict, "private_key",
4930 1.73 jakllsch wg->wg_privkey, WG_STATIC_KEY_LEN))
4931 1.73 jakllsch goto error;
4932 1.73 jakllsch }
4933 1.1 riastrad
4934 1.1 riastrad if (wg->wg_listen_port != 0) {
4935 1.12 riastrad if (!prop_dictionary_set_uint16(prop_dict, "listen_port",
4936 1.12 riastrad wg->wg_listen_port))
4937 1.1 riastrad goto error;
4938 1.1 riastrad }
4939 1.1 riastrad
4940 1.1 riastrad if (wg->wg_npeers == 0)
4941 1.1 riastrad goto skip_peers;
4942 1.1 riastrad
4943 1.1 riastrad peers = prop_array_create();
4944 1.12 riastrad if (peers == NULL)
4945 1.12 riastrad goto error;
4946 1.12 riastrad
4947 1.1 riastrad s = pserialize_read_enter();
4948 1.1 riastrad i = 0;
4949 1.1 riastrad WG_PEER_READER_FOREACH(wgp, wg) {
4950 1.47 riastrad struct wg_sockaddr *wgsa;
4951 1.47 riastrad struct psref wgp_psref, wgsa_psref;
4952 1.1 riastrad prop_dictionary_t prop_peer;
4953 1.1 riastrad
4954 1.47 riastrad wg_get_peer(wgp, &wgp_psref);
4955 1.1 riastrad pserialize_read_exit(s);
4956 1.1 riastrad
4957 1.1 riastrad prop_peer = prop_dictionary_create();
4958 1.12 riastrad if (prop_peer == NULL)
4959 1.12 riastrad goto next;
4960 1.1 riastrad
4961 1.1 riastrad if (strlen(wgp->wgp_name) > 0) {
4962 1.12 riastrad if (!prop_dictionary_set_string(prop_peer, "name",
4963 1.12 riastrad wgp->wgp_name))
4964 1.12 riastrad goto next;
4965 1.1 riastrad }
4966 1.1 riastrad
4967 1.12 riastrad if (!prop_dictionary_set_data(prop_peer, "public_key",
4968 1.12 riastrad wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey)))
4969 1.1 riastrad goto next;
4970 1.1 riastrad
4971 1.1 riastrad uint8_t psk_zero[WG_PRESHARED_KEY_LEN] = {0};
4972 1.13 riastrad if (!consttime_memequal(wgp->wgp_psk, psk_zero,
4973 1.13 riastrad sizeof(wgp->wgp_psk))) {
4974 1.74 christos if (wg_is_authorized(wg, SIOCGDRVSPEC)) {
4975 1.73 jakllsch if (!prop_dictionary_set_data(prop_peer,
4976 1.73 jakllsch "preshared_key",
4977 1.73 jakllsch wgp->wgp_psk, sizeof(wgp->wgp_psk)))
4978 1.73 jakllsch goto next;
4979 1.73 jakllsch }
4980 1.1 riastrad }
4981 1.1 riastrad
4982 1.47 riastrad wgsa = wg_get_endpoint_sa(wgp, &wgsa_psref);
4983 1.47 riastrad CTASSERT(AF_UNSPEC == 0);
4984 1.47 riastrad if (wgsa_family(wgsa) != 0 /*AF_UNSPEC*/ &&
4985 1.47 riastrad !prop_dictionary_set_data(prop_peer, "endpoint",
4986 1.47 riastrad wgsatoss(wgsa),
4987 1.47 riastrad sockaddr_getsize_by_family(wgsa_family(wgsa)))) {
4988 1.47 riastrad wg_put_sa(wgp, wgsa, &wgsa_psref);
4989 1.47 riastrad goto next;
4990 1.1 riastrad }
4991 1.47 riastrad wg_put_sa(wgp, wgsa, &wgsa_psref);
4992 1.1 riastrad
4993 1.9 riastrad const struct timespec *t = &wgp->wgp_last_handshake_time;
4994 1.9 riastrad
4995 1.12 riastrad if (!prop_dictionary_set_uint64(prop_peer,
4996 1.65 christos "last_handshake_time_sec", (uint64_t)t->tv_sec))
4997 1.1 riastrad goto next;
4998 1.12 riastrad if (!prop_dictionary_set_uint32(prop_peer,
4999 1.65 christos "last_handshake_time_nsec", (uint32_t)t->tv_nsec))
5000 1.1 riastrad goto next;
5001 1.1 riastrad
5002 1.1 riastrad if (wgp->wgp_n_allowedips == 0)
5003 1.1 riastrad goto skip_allowedips;
5004 1.1 riastrad
5005 1.1 riastrad prop_array_t allowedips = prop_array_create();
5006 1.12 riastrad if (allowedips == NULL)
5007 1.12 riastrad goto next;
5008 1.1 riastrad for (int j = 0; j < wgp->wgp_n_allowedips; j++) {
5009 1.1 riastrad struct wg_allowedip *wga = &wgp->wgp_allowedips[j];
5010 1.1 riastrad prop_dictionary_t prop_allowedip;
5011 1.1 riastrad
5012 1.1 riastrad prop_allowedip = prop_dictionary_create();
5013 1.1 riastrad if (prop_allowedip == NULL)
5014 1.1 riastrad break;
5015 1.1 riastrad
5016 1.12 riastrad if (!prop_dictionary_set_int(prop_allowedip, "family",
5017 1.12 riastrad wga->wga_family))
5018 1.1 riastrad goto _next;
5019 1.12 riastrad if (!prop_dictionary_set_uint8(prop_allowedip, "cidr",
5020 1.12 riastrad wga->wga_cidr))
5021 1.1 riastrad goto _next;
5022 1.1 riastrad
5023 1.1 riastrad switch (wga->wga_family) {
5024 1.109 riastrad #ifdef INET
5025 1.1 riastrad case AF_INET:
5026 1.12 riastrad if (!prop_dictionary_set_data(prop_allowedip,
5027 1.12 riastrad "ip", &wga->wga_addr4,
5028 1.12 riastrad sizeof(wga->wga_addr4)))
5029 1.1 riastrad goto _next;
5030 1.1 riastrad break;
5031 1.109 riastrad #endif
5032 1.1 riastrad #ifdef INET6
5033 1.1 riastrad case AF_INET6:
5034 1.12 riastrad if (!prop_dictionary_set_data(prop_allowedip,
5035 1.12 riastrad "ip", &wga->wga_addr6,
5036 1.12 riastrad sizeof(wga->wga_addr6)))
5037 1.1 riastrad goto _next;
5038 1.1 riastrad break;
5039 1.1 riastrad #endif
5040 1.1 riastrad default:
5041 1.109 riastrad panic("invalid af=%d", wga->wga_family);
5042 1.1 riastrad }
5043 1.1 riastrad prop_array_set(allowedips, j, prop_allowedip);
5044 1.1 riastrad _next:
5045 1.1 riastrad prop_object_release(prop_allowedip);
5046 1.1 riastrad }
5047 1.1 riastrad prop_dictionary_set(prop_peer, "allowedips", allowedips);
5048 1.1 riastrad prop_object_release(allowedips);
5049 1.1 riastrad
5050 1.1 riastrad skip_allowedips:
5051 1.1 riastrad
5052 1.1 riastrad prop_array_set(peers, i, prop_peer);
5053 1.1 riastrad next:
5054 1.12 riastrad if (prop_peer)
5055 1.12 riastrad prop_object_release(prop_peer);
5056 1.1 riastrad i++;
5057 1.1 riastrad
5058 1.1 riastrad s = pserialize_read_enter();
5059 1.47 riastrad wg_put_peer(wgp, &wgp_psref);
5060 1.1 riastrad }
5061 1.1 riastrad pserialize_read_exit(s);
5062 1.1 riastrad
5063 1.1 riastrad prop_dictionary_set(prop_dict, "peers", peers);
5064 1.1 riastrad prop_object_release(peers);
5065 1.1 riastrad peers = NULL;
5066 1.1 riastrad
5067 1.1 riastrad skip_peers:
5068 1.1 riastrad buf = prop_dictionary_externalize(prop_dict);
5069 1.1 riastrad if (buf == NULL)
5070 1.1 riastrad goto error;
5071 1.1 riastrad if (ifd->ifd_len < (strlen(buf) + 1)) {
5072 1.1 riastrad error = EINVAL;
5073 1.1 riastrad goto error;
5074 1.1 riastrad }
5075 1.1 riastrad error = copyout(buf, ifd->ifd_data, strlen(buf) + 1);
5076 1.1 riastrad
5077 1.1 riastrad free(buf, 0);
5078 1.1 riastrad error:
5079 1.1 riastrad if (peers != NULL)
5080 1.1 riastrad prop_object_release(peers);
5081 1.1 riastrad if (prop_dict != NULL)
5082 1.1 riastrad prop_object_release(prop_dict);
5083 1.1 riastrad
5084 1.1 riastrad return error;
5085 1.1 riastrad }
5086 1.1 riastrad
5087 1.1 riastrad static int
5088 1.1 riastrad wg_ioctl(struct ifnet *ifp, u_long cmd, void *data)
5089 1.1 riastrad {
5090 1.1 riastrad struct wg_softc *wg = ifp->if_softc;
5091 1.1 riastrad struct ifreq *ifr = data;
5092 1.1 riastrad struct ifaddr *ifa = data;
5093 1.1 riastrad struct ifdrv *ifd = data;
5094 1.1 riastrad int error = 0;
5095 1.1 riastrad
5096 1.1 riastrad switch (cmd) {
5097 1.1 riastrad case SIOCINITIFADDR:
5098 1.1 riastrad if (ifa->ifa_addr->sa_family != AF_LINK &&
5099 1.1 riastrad (ifp->if_flags & (IFF_UP | IFF_RUNNING)) !=
5100 1.1 riastrad (IFF_UP | IFF_RUNNING)) {
5101 1.1 riastrad ifp->if_flags |= IFF_UP;
5102 1.67 riastrad error = if_init(ifp);
5103 1.1 riastrad }
5104 1.14 riastrad return error;
5105 1.1 riastrad case SIOCADDMULTI:
5106 1.1 riastrad case SIOCDELMULTI:
5107 1.1 riastrad switch (ifr->ifr_addr.sa_family) {
5108 1.109 riastrad #ifdef INET
5109 1.1 riastrad case AF_INET: /* IP supports Multicast */
5110 1.1 riastrad break;
5111 1.109 riastrad #endif
5112 1.1 riastrad #ifdef INET6
5113 1.1 riastrad case AF_INET6: /* IP6 supports Multicast */
5114 1.1 riastrad break;
5115 1.1 riastrad #endif
5116 1.1 riastrad default: /* Other protocols doesn't support Multicast */
5117 1.1 riastrad error = EAFNOSUPPORT;
5118 1.1 riastrad break;
5119 1.1 riastrad }
5120 1.14 riastrad return error;
5121 1.1 riastrad case SIOCSDRVSPEC:
5122 1.74 christos if (!wg_is_authorized(wg, cmd)) {
5123 1.72 jakllsch return EPERM;
5124 1.72 jakllsch }
5125 1.1 riastrad switch (ifd->ifd_cmd) {
5126 1.1 riastrad case WG_IOCTL_SET_PRIVATE_KEY:
5127 1.1 riastrad error = wg_ioctl_set_private_key(wg, ifd);
5128 1.1 riastrad break;
5129 1.1 riastrad case WG_IOCTL_SET_LISTEN_PORT:
5130 1.1 riastrad error = wg_ioctl_set_listen_port(wg, ifd);
5131 1.1 riastrad break;
5132 1.1 riastrad case WG_IOCTL_ADD_PEER:
5133 1.1 riastrad error = wg_ioctl_add_peer(wg, ifd);
5134 1.1 riastrad break;
5135 1.1 riastrad case WG_IOCTL_DELETE_PEER:
5136 1.1 riastrad error = wg_ioctl_delete_peer(wg, ifd);
5137 1.1 riastrad break;
5138 1.1 riastrad default:
5139 1.1 riastrad error = EINVAL;
5140 1.1 riastrad break;
5141 1.1 riastrad }
5142 1.14 riastrad return error;
5143 1.1 riastrad case SIOCGDRVSPEC:
5144 1.14 riastrad return wg_ioctl_get(wg, ifd);
5145 1.1 riastrad case SIOCSIFFLAGS:
5146 1.1 riastrad if ((error = ifioctl_common(ifp, cmd, data)) != 0)
5147 1.1 riastrad break;
5148 1.1 riastrad switch (ifp->if_flags & (IFF_UP|IFF_RUNNING)) {
5149 1.1 riastrad case IFF_RUNNING:
5150 1.1 riastrad /*
5151 1.1 riastrad * If interface is marked down and it is running,
5152 1.1 riastrad * then stop and disable it.
5153 1.1 riastrad */
5154 1.66 riastrad if_stop(ifp, 1);
5155 1.1 riastrad break;
5156 1.1 riastrad case IFF_UP:
5157 1.1 riastrad /*
5158 1.1 riastrad * If interface is marked up and it is stopped, then
5159 1.1 riastrad * start it.
5160 1.1 riastrad */
5161 1.67 riastrad error = if_init(ifp);
5162 1.1 riastrad break;
5163 1.1 riastrad default:
5164 1.1 riastrad break;
5165 1.1 riastrad }
5166 1.14 riastrad return error;
5167 1.1 riastrad #ifdef WG_RUMPKERNEL
5168 1.1 riastrad case SIOCSLINKSTR:
5169 1.1 riastrad error = wg_ioctl_linkstr(wg, ifd);
5170 1.108 riastrad if (error)
5171 1.108 riastrad return error;
5172 1.108 riastrad wg->wg_ops = &wg_ops_rumpuser;
5173 1.108 riastrad return 0;
5174 1.14 riastrad #endif
5175 1.14 riastrad default:
5176 1.1 riastrad break;
5177 1.14 riastrad }
5178 1.1 riastrad
5179 1.14 riastrad error = ifioctl_common(ifp, cmd, data);
5180 1.1 riastrad
5181 1.1 riastrad #ifdef WG_RUMPKERNEL
5182 1.14 riastrad if (!wg_user_mode(wg))
5183 1.14 riastrad return error;
5184 1.14 riastrad
5185 1.14 riastrad /* Do the same to the corresponding tun device on the host */
5186 1.14 riastrad /*
5187 1.14 riastrad * XXX Actually the command has not been handled yet. It
5188 1.14 riastrad * will be handled via pr_ioctl form doifioctl later.
5189 1.14 riastrad */
5190 1.14 riastrad switch (cmd) {
5191 1.109 riastrad #ifdef INET
5192 1.14 riastrad case SIOCAIFADDR:
5193 1.14 riastrad case SIOCDIFADDR: {
5194 1.17 riastrad struct in_aliasreq _ifra = *(const struct in_aliasreq *)data;
5195 1.14 riastrad struct in_aliasreq *ifra = &_ifra;
5196 1.14 riastrad KASSERT(error == ENOTTY);
5197 1.14 riastrad strncpy(ifra->ifra_name, rumpuser_wg_get_tunname(wg->wg_user),
5198 1.14 riastrad IFNAMSIZ);
5199 1.14 riastrad error = rumpuser_wg_ioctl(wg->wg_user, cmd, ifra, AF_INET);
5200 1.14 riastrad if (error == 0)
5201 1.14 riastrad error = ENOTTY;
5202 1.14 riastrad break;
5203 1.14 riastrad }
5204 1.109 riastrad #endif
5205 1.1 riastrad #ifdef INET6
5206 1.14 riastrad case SIOCAIFADDR_IN6:
5207 1.14 riastrad case SIOCDIFADDR_IN6: {
5208 1.17 riastrad struct in6_aliasreq _ifra = *(const struct in6_aliasreq *)data;
5209 1.14 riastrad struct in6_aliasreq *ifra = &_ifra;
5210 1.14 riastrad KASSERT(error == ENOTTY);
5211 1.14 riastrad strncpy(ifra->ifra_name, rumpuser_wg_get_tunname(wg->wg_user),
5212 1.14 riastrad IFNAMSIZ);
5213 1.14 riastrad error = rumpuser_wg_ioctl(wg->wg_user, cmd, ifra, AF_INET6);
5214 1.14 riastrad if (error == 0)
5215 1.14 riastrad error = ENOTTY;
5216 1.14 riastrad break;
5217 1.14 riastrad }
5218 1.1 riastrad #endif
5219 1.109 riastrad default:
5220 1.109 riastrad break;
5221 1.14 riastrad }
5222 1.1 riastrad #endif /* WG_RUMPKERNEL */
5223 1.1 riastrad
5224 1.1 riastrad return error;
5225 1.1 riastrad }
5226 1.1 riastrad
5227 1.1 riastrad static int
5228 1.1 riastrad wg_init(struct ifnet *ifp)
5229 1.1 riastrad {
5230 1.1 riastrad
5231 1.1 riastrad ifp->if_flags |= IFF_RUNNING;
5232 1.1 riastrad
5233 1.1 riastrad /* TODO flush pending packets. */
5234 1.1 riastrad return 0;
5235 1.1 riastrad }
5236 1.1 riastrad
5237 1.60 riastrad #ifdef ALTQ
5238 1.60 riastrad static void
5239 1.60 riastrad wg_start(struct ifnet *ifp)
5240 1.60 riastrad {
5241 1.60 riastrad struct mbuf *m;
5242 1.60 riastrad
5243 1.60 riastrad for (;;) {
5244 1.60 riastrad IFQ_DEQUEUE(&ifp->if_snd, m);
5245 1.60 riastrad if (m == NULL)
5246 1.60 riastrad break;
5247 1.60 riastrad
5248 1.60 riastrad kpreempt_disable();
5249 1.60 riastrad const uint32_t h = curcpu()->ci_index; // pktq_rps_hash(m)
5250 1.60 riastrad if (__predict_false(!pktq_enqueue(wg_pktq, m, h))) {
5251 1.76 jakllsch WGLOG(LOG_ERR, "%s: pktq full, dropping\n",
5252 1.76 jakllsch if_name(ifp));
5253 1.60 riastrad m_freem(m);
5254 1.60 riastrad }
5255 1.60 riastrad kpreempt_enable();
5256 1.60 riastrad }
5257 1.60 riastrad }
5258 1.60 riastrad #endif
5259 1.60 riastrad
5260 1.1 riastrad static void
5261 1.1 riastrad wg_stop(struct ifnet *ifp, int disable)
5262 1.1 riastrad {
5263 1.1 riastrad
5264 1.1 riastrad KASSERT((ifp->if_flags & IFF_RUNNING) != 0);
5265 1.1 riastrad ifp->if_flags &= ~IFF_RUNNING;
5266 1.1 riastrad
5267 1.1 riastrad /* Need to do something? */
5268 1.1 riastrad }
5269 1.1 riastrad
5270 1.8 riastrad #ifdef WG_DEBUG_PARAMS
5271 1.24 riastrad SYSCTL_SETUP(sysctl_net_wg_setup, "sysctl net.wg setup")
5272 1.1 riastrad {
5273 1.1 riastrad const struct sysctlnode *node = NULL;
5274 1.1 riastrad
5275 1.8 riastrad sysctl_createv(clog, 0, NULL, &node,
5276 1.8 riastrad CTLFLAG_PERMANENT,
5277 1.24 riastrad CTLTYPE_NODE, "wg",
5278 1.24 riastrad SYSCTL_DESCR("wg(4)"),
5279 1.8 riastrad NULL, 0, NULL, 0,
5280 1.8 riastrad CTL_NET, CTL_CREATE, CTL_EOL);
5281 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5282 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5283 1.21 riastrad CTLTYPE_QUAD, "rekey_after_messages",
5284 1.8 riastrad SYSCTL_DESCR("session liftime by messages"),
5285 1.8 riastrad NULL, 0, &wg_rekey_after_messages, 0, CTL_CREATE, CTL_EOL);
5286 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5287 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5288 1.21 riastrad CTLTYPE_INT, "rekey_after_time",
5289 1.8 riastrad SYSCTL_DESCR("session liftime"),
5290 1.8 riastrad NULL, 0, &wg_rekey_after_time, 0, CTL_CREATE, CTL_EOL);
5291 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5292 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5293 1.21 riastrad CTLTYPE_INT, "rekey_timeout",
5294 1.8 riastrad SYSCTL_DESCR("session handshake retry time"),
5295 1.8 riastrad NULL, 0, &wg_rekey_timeout, 0, CTL_CREATE, CTL_EOL);
5296 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5297 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5298 1.21 riastrad CTLTYPE_INT, "rekey_attempt_time",
5299 1.8 riastrad SYSCTL_DESCR("session handshake timeout"),
5300 1.8 riastrad NULL, 0, &wg_rekey_attempt_time, 0, CTL_CREATE, CTL_EOL);
5301 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5302 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5303 1.21 riastrad CTLTYPE_INT, "keepalive_timeout",
5304 1.8 riastrad SYSCTL_DESCR("keepalive timeout"),
5305 1.8 riastrad NULL, 0, &wg_keepalive_timeout, 0, CTL_CREATE, CTL_EOL);
5306 1.8 riastrad sysctl_createv(clog, 0, &node, NULL,
5307 1.8 riastrad CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5308 1.8 riastrad CTLTYPE_BOOL, "force_underload",
5309 1.8 riastrad SYSCTL_DESCR("force to detemine under load"),
5310 1.8 riastrad NULL, 0, &wg_force_underload, 0, CTL_CREATE, CTL_EOL);
5311 1.80 christos sysctl_createv(clog, 0, &node, NULL,
5312 1.80 christos CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
5313 1.80 christos CTLTYPE_INT, "debug",
5314 1.84 christos SYSCTL_DESCR("set debug flags 1=log 2=trace 4=dump 8=packet"),
5315 1.80 christos NULL, 0, &wg_debug, 0, CTL_CREATE, CTL_EOL);
5316 1.8 riastrad }
5317 1.1 riastrad #endif
5318 1.1 riastrad
5319 1.1 riastrad #ifdef WG_RUMPKERNEL
5320 1.1 riastrad static bool
5321 1.1 riastrad wg_user_mode(struct wg_softc *wg)
5322 1.1 riastrad {
5323 1.1 riastrad
5324 1.1 riastrad return wg->wg_user != NULL;
5325 1.1 riastrad }
5326 1.1 riastrad
5327 1.1 riastrad static int
5328 1.1 riastrad wg_ioctl_linkstr(struct wg_softc *wg, struct ifdrv *ifd)
5329 1.1 riastrad {
5330 1.1 riastrad struct ifnet *ifp = &wg->wg_if;
5331 1.1 riastrad int error;
5332 1.1 riastrad
5333 1.1 riastrad if (ifp->if_flags & IFF_UP)
5334 1.1 riastrad return EBUSY;
5335 1.1 riastrad
5336 1.1 riastrad if (ifd->ifd_cmd == IFLINKSTR_UNSET) {
5337 1.1 riastrad /* XXX do nothing */
5338 1.1 riastrad return 0;
5339 1.1 riastrad } else if (ifd->ifd_cmd != 0) {
5340 1.1 riastrad return EINVAL;
5341 1.1 riastrad } else if (wg->wg_user != NULL) {
5342 1.1 riastrad return EBUSY;
5343 1.1 riastrad }
5344 1.1 riastrad
5345 1.1 riastrad /* Assume \0 included */
5346 1.1 riastrad if (ifd->ifd_len > IFNAMSIZ) {
5347 1.1 riastrad return E2BIG;
5348 1.1 riastrad } else if (ifd->ifd_len < 1) {
5349 1.1 riastrad return EINVAL;
5350 1.1 riastrad }
5351 1.1 riastrad
5352 1.1 riastrad char tun_name[IFNAMSIZ];
5353 1.1 riastrad error = copyinstr(ifd->ifd_data, tun_name, ifd->ifd_len, NULL);
5354 1.1 riastrad if (error != 0)
5355 1.1 riastrad return error;
5356 1.1 riastrad
5357 1.1 riastrad if (strncmp(tun_name, "tun", 3) != 0)
5358 1.1 riastrad return EINVAL;
5359 1.1 riastrad
5360 1.1 riastrad error = rumpuser_wg_create(tun_name, wg, &wg->wg_user);
5361 1.1 riastrad
5362 1.1 riastrad return error;
5363 1.1 riastrad }
5364 1.1 riastrad
5365 1.1 riastrad static int
5366 1.1 riastrad wg_send_user(struct wg_peer *wgp, struct mbuf *m)
5367 1.1 riastrad {
5368 1.1 riastrad int error;
5369 1.1 riastrad struct psref psref;
5370 1.1 riastrad struct wg_sockaddr *wgsa;
5371 1.1 riastrad struct wg_softc *wg = wgp->wgp_sc;
5372 1.1 riastrad struct iovec iov[1];
5373 1.1 riastrad
5374 1.1 riastrad wgsa = wg_get_endpoint_sa(wgp, &psref);
5375 1.1 riastrad
5376 1.1 riastrad iov[0].iov_base = mtod(m, void *);
5377 1.1 riastrad iov[0].iov_len = m->m_len;
5378 1.1 riastrad
5379 1.1 riastrad /* Send messages to a peer via an ordinary socket. */
5380 1.1 riastrad error = rumpuser_wg_send_peer(wg->wg_user, wgsatosa(wgsa), iov, 1);
5381 1.1 riastrad
5382 1.1 riastrad wg_put_sa(wgp, wgsa, &psref);
5383 1.1 riastrad
5384 1.38 riastrad m_freem(m);
5385 1.38 riastrad
5386 1.1 riastrad return error;
5387 1.1 riastrad }
5388 1.1 riastrad
5389 1.1 riastrad static void
5390 1.1 riastrad wg_input_user(struct ifnet *ifp, struct mbuf *m, const int af)
5391 1.1 riastrad {
5392 1.1 riastrad struct wg_softc *wg = ifp->if_softc;
5393 1.1 riastrad struct iovec iov[2];
5394 1.1 riastrad struct sockaddr_storage ss;
5395 1.1 riastrad
5396 1.1 riastrad KASSERT(af == AF_INET || af == AF_INET6);
5397 1.1 riastrad
5398 1.1 riastrad WG_TRACE("");
5399 1.1 riastrad
5400 1.109 riastrad switch (af) {
5401 1.109 riastrad #ifdef INET
5402 1.109 riastrad case AF_INET: {
5403 1.1 riastrad struct sockaddr_in *sin = (struct sockaddr_in *)&ss;
5404 1.1 riastrad struct ip *ip;
5405 1.27 riastrad
5406 1.27 riastrad KASSERT(m->m_len >= sizeof(struct ip));
5407 1.1 riastrad ip = mtod(m, struct ip *);
5408 1.1 riastrad sockaddr_in_init(sin, &ip->ip_dst, 0);
5409 1.109 riastrad break;
5410 1.109 riastrad }
5411 1.109 riastrad #endif
5412 1.109 riastrad #ifdef INET6
5413 1.109 riastrad case AF_INET6: {
5414 1.1 riastrad struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)&ss;
5415 1.1 riastrad struct ip6_hdr *ip6;
5416 1.27 riastrad
5417 1.27 riastrad KASSERT(m->m_len >= sizeof(struct ip6_hdr));
5418 1.1 riastrad ip6 = mtod(m, struct ip6_hdr *);
5419 1.1 riastrad sockaddr_in6_init(sin6, &ip6->ip6_dst, 0, 0, 0);
5420 1.109 riastrad break;
5421 1.109 riastrad }
5422 1.109 riastrad #endif
5423 1.109 riastrad default:
5424 1.109 riastrad goto out;
5425 1.1 riastrad }
5426 1.1 riastrad
5427 1.1 riastrad iov[0].iov_base = &ss;
5428 1.1 riastrad iov[0].iov_len = ss.ss_len;
5429 1.1 riastrad iov[1].iov_base = mtod(m, void *);
5430 1.1 riastrad iov[1].iov_len = m->m_len;
5431 1.1 riastrad
5432 1.1 riastrad WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
5433 1.1 riastrad
5434 1.1 riastrad /* Send decrypted packets to users via a tun. */
5435 1.1 riastrad rumpuser_wg_send_user(wg->wg_user, iov, 2);
5436 1.38 riastrad
5437 1.109 riastrad out: m_freem(m);
5438 1.1 riastrad }
5439 1.1 riastrad
5440 1.1 riastrad static int
5441 1.1 riastrad wg_bind_port_user(struct wg_softc *wg, const uint16_t port)
5442 1.1 riastrad {
5443 1.1 riastrad int error;
5444 1.1 riastrad uint16_t old_port = wg->wg_listen_port;
5445 1.1 riastrad
5446 1.1 riastrad if (port != 0 && old_port == port)
5447 1.1 riastrad return 0;
5448 1.1 riastrad
5449 1.1 riastrad error = rumpuser_wg_sock_bind(wg->wg_user, port);
5450 1.108 riastrad if (error)
5451 1.108 riastrad return error;
5452 1.108 riastrad
5453 1.108 riastrad wg->wg_listen_port = port;
5454 1.108 riastrad return 0;
5455 1.1 riastrad }
5456 1.1 riastrad
5457 1.1 riastrad /*
5458 1.1 riastrad * Receive user packets.
5459 1.1 riastrad */
5460 1.1 riastrad void
5461 1.1 riastrad rumpkern_wg_recv_user(struct wg_softc *wg, struct iovec *iov, size_t iovlen)
5462 1.1 riastrad {
5463 1.1 riastrad struct ifnet *ifp = &wg->wg_if;
5464 1.1 riastrad struct mbuf *m;
5465 1.1 riastrad const struct sockaddr *dst;
5466 1.108 riastrad int error;
5467 1.1 riastrad
5468 1.1 riastrad WG_TRACE("");
5469 1.1 riastrad
5470 1.1 riastrad dst = iov[0].iov_base;
5471 1.1 riastrad
5472 1.48 riastrad m = m_gethdr(M_DONTWAIT, MT_DATA);
5473 1.1 riastrad if (m == NULL)
5474 1.1 riastrad return;
5475 1.1 riastrad m->m_len = m->m_pkthdr.len = 0;
5476 1.1 riastrad m_copyback(m, 0, iov[1].iov_len, iov[1].iov_base);
5477 1.1 riastrad
5478 1.87 kre WG_DLOG("iov_len=%zu\n", iov[1].iov_len);
5479 1.1 riastrad WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
5480 1.1 riastrad
5481 1.108 riastrad error = wg_output(ifp, m, dst, NULL); /* consumes m */
5482 1.108 riastrad if (error)
5483 1.108 riastrad WG_DLOG("wg_output failed, error=%d\n", error);
5484 1.1 riastrad }
5485 1.1 riastrad
5486 1.1 riastrad /*
5487 1.1 riastrad * Receive packets from a peer.
5488 1.1 riastrad */
5489 1.1 riastrad void
5490 1.1 riastrad rumpkern_wg_recv_peer(struct wg_softc *wg, struct iovec *iov, size_t iovlen)
5491 1.1 riastrad {
5492 1.1 riastrad struct mbuf *m;
5493 1.1 riastrad const struct sockaddr *src;
5494 1.78 riastrad int bound;
5495 1.1 riastrad
5496 1.1 riastrad WG_TRACE("");
5497 1.1 riastrad
5498 1.1 riastrad src = iov[0].iov_base;
5499 1.1 riastrad
5500 1.48 riastrad m = m_gethdr(M_DONTWAIT, MT_DATA);
5501 1.1 riastrad if (m == NULL)
5502 1.1 riastrad return;
5503 1.1 riastrad m->m_len = m->m_pkthdr.len = 0;
5504 1.1 riastrad m_copyback(m, 0, iov[1].iov_len, iov[1].iov_base);
5505 1.1 riastrad
5506 1.87 kre WG_DLOG("iov_len=%zu\n", iov[1].iov_len);
5507 1.1 riastrad WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
5508 1.1 riastrad
5509 1.78 riastrad bound = curlwp_bind();
5510 1.1 riastrad wg_handle_packet(wg, m, src);
5511 1.78 riastrad curlwp_bindx(bound);
5512 1.1 riastrad }
5513 1.1 riastrad #endif /* WG_RUMPKERNEL */
5514 1.1 riastrad
5515 1.1 riastrad /*
5516 1.1 riastrad * Module infrastructure
5517 1.1 riastrad */
5518 1.1 riastrad #include "if_module.h"
5519 1.1 riastrad
5520 1.65 christos IF_MODULE(MODULE_CLASS_DRIVER, wg, "sodium,blake2s")
5521