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if_wg.c revision 1.130
      1  1.130  riastrad /*	$NetBSD: if_wg.c,v 1.130 2024/07/31 00:25:47 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  1.130  riastrad __KERNEL_RCSID(0, "$NetBSD: if_wg.c,v 1.130 2024/07/31 00:25:47 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  1.129  riastrad 	volatile 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  1.129  riastrad 	struct wg_sockaddr	*volatile wgp_endpoint;
    636    1.1  riastrad 	struct wg_sockaddr	*wgp_endpoint0;
    637   1.49  riastrad 	volatile unsigned	wgp_endpoint_changing;
    638  1.129  riastrad 	volatile 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  1.129  riastrad 	struct wg_session	*volatile 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  1.130  riastrad /*
   1526  1.130  riastrad  * wg_initiator_priority(wg, wgp)
   1527  1.130  riastrad  *
   1528  1.130  riastrad  *	Return true if we claim priority over peer wgp as initiator at
   1529  1.130  riastrad  *	the moment, false if not.  That is, if we and our peer are
   1530  1.130  riastrad  *	trying to initiate a session, do we ignore the peer's attempt
   1531  1.130  riastrad  *	and barge ahead with ours, or discard our attempt and accept
   1532  1.130  riastrad  *	the peer's?
   1533  1.130  riastrad  *
   1534  1.130  riastrad  *	We jointly flip a coin by computing
   1535  1.130  riastrad  *
   1536  1.130  riastrad  *		H(pubkey A) ^ H(pubkey B) ^ H(posix minutes as le64),
   1537  1.130  riastrad  *
   1538  1.130  riastrad  *	and taking the low-order bit.  If our public key hash, as a
   1539  1.130  riastrad  *	256-bit integer in little-endian, is less than the peer's
   1540  1.130  riastrad  *	public key hash, also as a 256-bit integer in little-endian, we
   1541  1.130  riastrad  *	claim priority iff the bit is 0; otherwise we claim priority
   1542  1.130  riastrad  *	iff the bit is 1.
   1543  1.130  riastrad  *
   1544  1.130  riastrad  *	This way, it is essentially arbitrary who claims priority, and
   1545  1.130  riastrad  *	it may change (by a coin toss) minute to minute, but both
   1546  1.130  riastrad  *	parties agree at any given moment -- except possibly at the
   1547  1.130  riastrad  *	boundary of a minute -- who will take priority.
   1548  1.130  riastrad  *
   1549  1.130  riastrad  *	This is an extension to the WireGuard protocol -- as far as I
   1550  1.130  riastrad  *	can tell, the protocol whitepaper has no resolution to this
   1551  1.130  riastrad  *	deadlock scenario.  According to the author, `the deadlock
   1552  1.130  riastrad  *	doesn't happen because of some additional state machine logic,
   1553  1.130  riastrad  *	and on very small chances that it does, it quickly undoes
   1554  1.130  riastrad  *	itself.', but this additional state machine logic does not
   1555  1.130  riastrad  *	appear to be anywhere in the whitepaper, and I don't see how it
   1556  1.130  riastrad  *	can undo itself until both sides have given up and one side is
   1557  1.130  riastrad  *	quicker to initiate the next time around.
   1558  1.130  riastrad  *
   1559  1.130  riastrad  *	XXX It might be prudent to put a prefix in the hash input, so
   1560  1.130  riastrad  *	we avoid accidentally colliding with any other uses of the same
   1561  1.130  riastrad  *	hash on the same input.  But it's best if any changes are
   1562  1.130  riastrad  *	coordinated, so that peers generally agree on what coin is
   1563  1.130  riastrad  *	being tossed, instead of tossing their own independent coins
   1564  1.130  riastrad  *	(which will also converge to working but more slowly over more
   1565  1.130  riastrad  *	handshake retries).
   1566  1.130  riastrad  */
   1567  1.130  riastrad static bool
   1568  1.130  riastrad wg_initiator_priority(struct wg_softc *wg, struct wg_peer *wgp)
   1569  1.130  riastrad {
   1570  1.130  riastrad 	const uint64_t now = time_second/60, now_le = htole64(now);
   1571  1.130  riastrad 	uint8_t h_min;
   1572  1.130  riastrad 	uint8_t h_local[BLAKE2S_MAX_DIGEST];
   1573  1.130  riastrad 	uint8_t h_peer[BLAKE2S_MAX_DIGEST];
   1574  1.130  riastrad 	int borrow;
   1575  1.130  riastrad 	unsigned i;
   1576  1.130  riastrad 
   1577  1.130  riastrad 	blake2s(&h_min, 1, NULL, 0, &now_le, sizeof(now_le));
   1578  1.130  riastrad 	blake2s(h_local, sizeof(h_local), NULL, 0,
   1579  1.130  riastrad 	    wg->wg_pubkey, sizeof(wg->wg_pubkey));
   1580  1.130  riastrad 	blake2s(h_peer, sizeof(h_peer), NULL, 0,
   1581  1.130  riastrad 	    wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey));
   1582  1.130  riastrad 
   1583  1.130  riastrad 	for (borrow = 0, i = 0; i < BLAKE2S_MAX_DIGEST; i++)
   1584  1.130  riastrad 		borrow = (h_local[i] - h_peer[i] + borrow) >> 8;
   1585  1.130  riastrad 
   1586  1.130  riastrad 	return 1 & (h_local[0] ^ h_peer[0] ^ h_min ^ borrow);
   1587  1.130  riastrad }
   1588  1.130  riastrad 
   1589   1.63  riastrad static void __noinline
   1590    1.1  riastrad wg_handle_msg_init(struct wg_softc *wg, const struct wg_msg_init *wgmi,
   1591    1.1  riastrad     const struct sockaddr *src)
   1592    1.1  riastrad {
   1593    1.1  riastrad 	uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.2: Ci */
   1594    1.1  riastrad 	uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.2: Hi */
   1595    1.1  riastrad 	uint8_t cipher_key[WG_CIPHER_KEY_LEN];
   1596    1.1  riastrad 	uint8_t peer_pubkey[WG_STATIC_KEY_LEN];
   1597    1.1  riastrad 	struct wg_peer *wgp;
   1598    1.1  riastrad 	struct wg_session *wgs;
   1599    1.1  riastrad 	int error, ret;
   1600    1.1  riastrad 	struct psref psref_peer;
   1601    1.1  riastrad 	uint8_t mac1[WG_MAC_LEN];
   1602    1.1  riastrad 
   1603    1.1  riastrad 	WG_TRACE("init msg received");
   1604    1.1  riastrad 
   1605   1.44  riastrad 	wg_algo_mac_mac1(mac1, sizeof(mac1),
   1606   1.44  riastrad 	    wg->wg_pubkey, sizeof(wg->wg_pubkey),
   1607   1.44  riastrad 	    (const uint8_t *)wgmi, offsetof(struct wg_msg_init, wgmi_mac1));
   1608   1.44  riastrad 
   1609   1.44  riastrad 	/*
   1610   1.44  riastrad 	 * [W] 5.3: Denial of Service Mitigation & Cookies
   1611   1.44  riastrad 	 * "the responder, ..., must always reject messages with an invalid
   1612   1.44  riastrad 	 *  msg.mac1"
   1613   1.44  riastrad 	 */
   1614   1.44  riastrad 	if (!consttime_memequal(mac1, wgmi->wgmi_mac1, sizeof(mac1))) {
   1615   1.44  riastrad 		WG_DLOG("mac1 is invalid\n");
   1616   1.44  riastrad 		return;
   1617   1.44  riastrad 	}
   1618   1.44  riastrad 
   1619    1.1  riastrad 	/*
   1620    1.1  riastrad 	 * [W] 5.4.2: First Message: Initiator to Responder
   1621    1.1  riastrad 	 * "When the responder receives this message, it does the same
   1622    1.1  riastrad 	 *  operations so that its final state variables are identical,
   1623    1.1  riastrad 	 *  replacing the operands of the DH function to produce equivalent
   1624    1.1  riastrad 	 *  values."
   1625    1.1  riastrad 	 *  Note that the following comments of operations are just copies of
   1626    1.1  riastrad 	 *  the initiator's ones.
   1627    1.1  riastrad 	 */
   1628    1.1  riastrad 
   1629    1.1  riastrad 	/* Ci := HASH(CONSTRUCTION) */
   1630    1.1  riastrad 	/* Hi := HASH(Ci || IDENTIFIER) */
   1631    1.1  riastrad 	wg_init_key_and_hash(ckey, hash);
   1632    1.1  riastrad 	/* Hi := HASH(Hi || Sr^pub) */
   1633    1.1  riastrad 	wg_algo_hash(hash, wg->wg_pubkey, sizeof(wg->wg_pubkey));
   1634    1.1  riastrad 
   1635    1.1  riastrad 	/* [N] 2.2: "e" */
   1636    1.1  riastrad 	/* Ci := KDF1(Ci, Ei^pub) */
   1637    1.1  riastrad 	wg_algo_kdf(ckey, NULL, NULL, ckey, wgmi->wgmi_ephemeral,
   1638    1.1  riastrad 	    sizeof(wgmi->wgmi_ephemeral));
   1639    1.1  riastrad 	/* Hi := HASH(Hi || msg.ephemeral) */
   1640    1.1  riastrad 	wg_algo_hash(hash, wgmi->wgmi_ephemeral, sizeof(wgmi->wgmi_ephemeral));
   1641    1.1  riastrad 
   1642    1.1  riastrad 	WG_DUMP_HASH("ckey", ckey);
   1643    1.1  riastrad 
   1644    1.1  riastrad 	/* [N] 2.2: "es" */
   1645    1.1  riastrad 	/* Ci, k := KDF2(Ci, DH(Ei^priv, Sr^pub)) */
   1646    1.1  riastrad 	wg_algo_dh_kdf(ckey, cipher_key, wg->wg_privkey, wgmi->wgmi_ephemeral);
   1647    1.1  riastrad 
   1648    1.1  riastrad 	WG_DUMP_HASH48("wgmi_static", wgmi->wgmi_static);
   1649    1.1  riastrad 
   1650    1.1  riastrad 	/* [N] 2.2: "s" */
   1651    1.1  riastrad 	/* msg.static := AEAD(k, 0, Si^pub, Hi) */
   1652    1.1  riastrad 	error = wg_algo_aead_dec(peer_pubkey, WG_STATIC_KEY_LEN, cipher_key, 0,
   1653    1.1  riastrad 	    wgmi->wgmi_static, sizeof(wgmi->wgmi_static), hash, sizeof(hash));
   1654    1.1  riastrad 	if (error != 0) {
   1655    1.1  riastrad 		WG_LOG_RATECHECK(&wg->wg_ppsratecheck, LOG_DEBUG,
   1656   1.76  jakllsch 		    "%s: wg_algo_aead_dec for secret key failed\n",
   1657   1.76  jakllsch 		    if_name(&wg->wg_if));
   1658    1.1  riastrad 		return;
   1659    1.1  riastrad 	}
   1660    1.1  riastrad 	/* Hi := HASH(Hi || msg.static) */
   1661    1.1  riastrad 	wg_algo_hash(hash, wgmi->wgmi_static, sizeof(wgmi->wgmi_static));
   1662    1.1  riastrad 
   1663    1.1  riastrad 	wgp = wg_lookup_peer_by_pubkey(wg, peer_pubkey, &psref_peer);
   1664    1.1  riastrad 	if (wgp == NULL) {
   1665    1.1  riastrad 		WG_DLOG("peer not found\n");
   1666    1.1  riastrad 		return;
   1667    1.1  riastrad 	}
   1668    1.1  riastrad 
   1669   1.49  riastrad 	/*
   1670   1.49  riastrad 	 * Lock the peer to serialize access to cookie state.
   1671   1.49  riastrad 	 *
   1672   1.49  riastrad 	 * XXX Can we safely avoid holding the lock across DH?  Take it
   1673   1.49  riastrad 	 * just to verify mac2 and then unlock/DH/lock?
   1674   1.49  riastrad 	 */
   1675   1.49  riastrad 	mutex_enter(wgp->wgp_lock);
   1676   1.49  riastrad 
   1677    1.1  riastrad 	if (__predict_false(wg_is_underload(wg, wgp, WG_MSG_TYPE_INIT))) {
   1678    1.1  riastrad 		WG_TRACE("under load");
   1679    1.1  riastrad 		/*
   1680    1.1  riastrad 		 * [W] 5.3: Denial of Service Mitigation & Cookies
   1681    1.1  riastrad 		 * "the responder, ..., and when under load may reject messages
   1682    1.1  riastrad 		 *  with an invalid msg.mac2.  If the responder receives a
   1683    1.1  riastrad 		 *  message with a valid msg.mac1 yet with an invalid msg.mac2,
   1684    1.1  riastrad 		 *  and is under load, it may respond with a cookie reply
   1685    1.1  riastrad 		 *  message"
   1686    1.1  riastrad 		 */
   1687    1.1  riastrad 		uint8_t zero[WG_MAC_LEN] = {0};
   1688   1.13  riastrad 		if (consttime_memequal(wgmi->wgmi_mac2, zero, sizeof(zero))) {
   1689    1.1  riastrad 			WG_TRACE("sending a cookie message: no cookie included");
   1690  1.108  riastrad 			wg_send_cookie_msg(wg, wgp, wgmi->wgmi_sender,
   1691    1.1  riastrad 			    wgmi->wgmi_mac1, src);
   1692   1.49  riastrad 			goto out;
   1693    1.1  riastrad 		}
   1694    1.1  riastrad 		if (!wgp->wgp_last_sent_cookie_valid) {
   1695    1.1  riastrad 			WG_TRACE("sending a cookie message: no cookie sent ever");
   1696  1.108  riastrad 			wg_send_cookie_msg(wg, wgp, wgmi->wgmi_sender,
   1697    1.1  riastrad 			    wgmi->wgmi_mac1, src);
   1698   1.49  riastrad 			goto out;
   1699    1.1  riastrad 		}
   1700    1.1  riastrad 		uint8_t mac2[WG_MAC_LEN];
   1701    1.1  riastrad 		wg_algo_mac(mac2, sizeof(mac2), wgp->wgp_last_sent_cookie,
   1702    1.1  riastrad 		    WG_COOKIE_LEN, (const uint8_t *)wgmi,
   1703    1.1  riastrad 		    offsetof(struct wg_msg_init, wgmi_mac2), NULL, 0);
   1704   1.13  riastrad 		if (!consttime_memequal(mac2, wgmi->wgmi_mac2, sizeof(mac2))) {
   1705    1.1  riastrad 			WG_DLOG("mac2 is invalid\n");
   1706   1.49  riastrad 			goto out;
   1707    1.1  riastrad 		}
   1708    1.1  riastrad 		WG_TRACE("under load, but continue to sending");
   1709    1.1  riastrad 	}
   1710    1.1  riastrad 
   1711   1.46  riastrad 	/* [N] 2.2: "ss" */
   1712   1.46  riastrad 	/* Ci, k := KDF2(Ci, DH(Si^priv, Sr^pub)) */
   1713   1.46  riastrad 	wg_algo_dh_kdf(ckey, cipher_key, wg->wg_privkey, wgp->wgp_pubkey);
   1714   1.46  riastrad 
   1715   1.46  riastrad 	/* msg.timestamp := AEAD(k, TIMESTAMP(), Hi) */
   1716   1.46  riastrad 	wg_timestamp_t timestamp;
   1717   1.46  riastrad 	error = wg_algo_aead_dec(timestamp, sizeof(timestamp), cipher_key, 0,
   1718   1.46  riastrad 	    wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp),
   1719   1.46  riastrad 	    hash, sizeof(hash));
   1720   1.46  riastrad 	if (error != 0) {
   1721   1.46  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   1722   1.76  jakllsch 		    "%s: peer %s: wg_algo_aead_dec for timestamp failed\n",
   1723   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name);
   1724   1.49  riastrad 		goto out;
   1725   1.46  riastrad 	}
   1726   1.46  riastrad 	/* Hi := HASH(Hi || msg.timestamp) */
   1727   1.46  riastrad 	wg_algo_hash(hash, wgmi->wgmi_timestamp, sizeof(wgmi->wgmi_timestamp));
   1728   1.46  riastrad 
   1729    1.1  riastrad 	/*
   1730   1.14  riastrad 	 * [W] 5.1 "The responder keeps track of the greatest timestamp
   1731   1.14  riastrad 	 *      received per peer and discards packets containing
   1732   1.14  riastrad 	 *      timestamps less than or equal to it."
   1733    1.1  riastrad 	 */
   1734    1.1  riastrad 	ret = memcmp(timestamp, wgp->wgp_timestamp_latest_init,
   1735    1.1  riastrad 	    sizeof(timestamp));
   1736    1.1  riastrad 	if (ret <= 0) {
   1737    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   1738   1.76  jakllsch 		    "%s: peer %s: invalid init msg: timestamp is old\n",
   1739   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name);
   1740    1.1  riastrad 		goto out;
   1741    1.1  riastrad 	}
   1742    1.1  riastrad 	memcpy(wgp->wgp_timestamp_latest_init, timestamp, sizeof(timestamp));
   1743    1.1  riastrad 
   1744   1.49  riastrad 	/*
   1745   1.49  riastrad 	 * Message is good -- we're committing to handle it now, unless
   1746   1.49  riastrad 	 * we were already initiating a session.
   1747   1.49  riastrad 	 */
   1748   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   1749   1.49  riastrad 	switch (wgs->wgs_state) {
   1750   1.49  riastrad 	case WGS_STATE_UNKNOWN:		/* new session initiated by peer */
   1751   1.49  riastrad 		break;
   1752  1.130  riastrad 	case WGS_STATE_INIT_ACTIVE:	/* we're already initiating */
   1753  1.130  riastrad 		if (wg_initiator_priority(wg, wgp)) {
   1754  1.130  riastrad 			WG_TRACE("Session already initializing,"
   1755  1.130  riastrad 			    " ignoring the message");
   1756  1.130  riastrad 			goto out;
   1757  1.130  riastrad 		}
   1758  1.130  riastrad 		WG_TRACE("Yielding session initiation to peer");
   1759  1.130  riastrad 		wg_put_session_index(wg, wgs);
   1760  1.130  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1761  1.130  riastrad 		    wgs->wgs_state);
   1762  1.130  riastrad 		break;
   1763   1.49  riastrad 	case WGS_STATE_INIT_PASSIVE:	/* peer is retrying, start over */
   1764   1.49  riastrad 		WG_TRACE("Session already initializing, destroying old states");
   1765   1.94  riastrad 		/*
   1766   1.94  riastrad 		 * XXX Avoid this -- just resend our response -- if the
   1767   1.94  riastrad 		 * INIT message is identical to the previous one.
   1768   1.94  riastrad 		 */
   1769   1.94  riastrad 		wg_put_session_index(wg, wgs);
   1770   1.94  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1771   1.94  riastrad 		    wgs->wgs_state);
   1772   1.49  riastrad 		break;
   1773   1.49  riastrad 	case WGS_STATE_ESTABLISHED:	/* can't happen */
   1774   1.49  riastrad 		panic("unstable session can't be established");
   1775   1.49  riastrad 	case WGS_STATE_DESTROYING:	/* rekey initiated by peer */
   1776   1.49  riastrad 		WG_TRACE("Session destroying, but force to clear");
   1777   1.94  riastrad 		wg_put_session_index(wg, wgs);
   1778   1.94  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1779   1.94  riastrad 		    wgs->wgs_state);
   1780   1.49  riastrad 		break;
   1781   1.49  riastrad 	default:
   1782   1.49  riastrad 		panic("invalid session state: %d", wgs->wgs_state);
   1783   1.49  riastrad 	}
   1784   1.94  riastrad 
   1785   1.94  riastrad 	/*
   1786   1.94  riastrad 	 * Assign a fresh session index.
   1787   1.94  riastrad 	 */
   1788   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1789   1.94  riastrad 	    wgs->wgs_state);
   1790   1.94  riastrad 	wg_get_session_index(wg, wgs);
   1791   1.49  riastrad 
   1792    1.1  riastrad 	memcpy(wgs->wgs_handshake_hash, hash, sizeof(hash));
   1793    1.1  riastrad 	memcpy(wgs->wgs_chaining_key, ckey, sizeof(ckey));
   1794    1.1  riastrad 	memcpy(wgs->wgs_ephemeral_key_peer, wgmi->wgmi_ephemeral,
   1795    1.1  riastrad 	    sizeof(wgmi->wgmi_ephemeral));
   1796    1.1  riastrad 
   1797  1.122  riastrad 	/*
   1798  1.122  riastrad 	 * The packet is genuine.  Update the peer's endpoint if the
   1799  1.122  riastrad 	 * source address changed.
   1800  1.122  riastrad 	 *
   1801  1.122  riastrad 	 * XXX How to prevent DoS by replaying genuine packets from the
   1802  1.122  riastrad 	 * wrong source address?
   1803  1.122  riastrad 	 */
   1804    1.1  riastrad 	wg_update_endpoint_if_necessary(wgp, src);
   1805    1.1  riastrad 
   1806   1.94  riastrad 	/*
   1807  1.117  riastrad 	 * Even though we don't transition from INIT_PASSIVE to
   1808  1.117  riastrad 	 * ESTABLISHED until we receive the first data packet from the
   1809  1.117  riastrad 	 * initiator, we count the time of the INIT message as the time
   1810  1.117  riastrad 	 * of establishment -- this is used to decide when to erase
   1811  1.117  riastrad 	 * keys, and we want to start counting as soon as we have
   1812  1.117  riastrad 	 * generated keys.
   1813  1.100  riastrad 	 */
   1814  1.104  riastrad 	wgs->wgs_time_established = time_uptime32;
   1815  1.100  riastrad 	wg_schedule_session_dtor_timer(wgp);
   1816  1.100  riastrad 
   1817  1.100  riastrad 	/*
   1818   1.94  riastrad 	 * Respond to the initiator with our ephemeral public key.
   1819   1.94  riastrad 	 */
   1820  1.108  riastrad 	wg_send_handshake_msg_resp(wg, wgp, wgs, wgmi);
   1821    1.1  riastrad 
   1822   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]:"
   1823   1.94  riastrad 	    " calculate keys as responder\n",
   1824   1.94  riastrad 	    wgs->wgs_local_index, wgs->wgs_remote_index);
   1825    1.1  riastrad 	wg_calculate_keys(wgs, false);
   1826    1.1  riastrad 	wg_clear_states(wgs);
   1827    1.1  riastrad 
   1828   1.94  riastrad 	/*
   1829   1.94  riastrad 	 * Session is ready to receive data now that we have received
   1830   1.94  riastrad 	 * the peer initiator's ephemeral key pair, generated our
   1831   1.94  riastrad 	 * responder's ephemeral key pair, and derived a session key.
   1832   1.94  riastrad 	 *
   1833   1.94  riastrad 	 * Transition from UNKNOWN to INIT_PASSIVE to publish it to the
   1834   1.94  riastrad 	 * data rx path, wg_handle_msg_data, where the
   1835   1.94  riastrad 	 * atomic_load_acquire matching this atomic_store_release
   1836   1.94  riastrad 	 * happens.
   1837   1.94  riastrad 	 *
   1838   1.94  riastrad 	 * (Session is not, however, ready to send data until the peer
   1839   1.94  riastrad 	 * has acknowledged our response by sending its first data
   1840   1.94  riastrad 	 * packet.  So don't swap the sessions yet.)
   1841   1.94  riastrad 	 */
   1842   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"] -> WGS_STATE_INIT_PASSIVE\n",
   1843   1.94  riastrad 	    wgs->wgs_local_index, wgs->wgs_remote_index);
   1844   1.94  riastrad 	atomic_store_release(&wgs->wgs_state, WGS_STATE_INIT_PASSIVE);
   1845   1.94  riastrad 	WG_TRACE("WGS_STATE_INIT_PASSIVE");
   1846   1.94  riastrad 
   1847    1.1  riastrad out:
   1848   1.49  riastrad 	mutex_exit(wgp->wgp_lock);
   1849    1.1  riastrad 	wg_put_peer(wgp, &psref_peer);
   1850    1.1  riastrad }
   1851    1.1  riastrad 
   1852    1.1  riastrad static struct socket *
   1853   1.55  riastrad wg_get_so_by_af(struct wg_softc *wg, const int af)
   1854    1.1  riastrad {
   1855    1.1  riastrad 
   1856   1.62  riastrad 	switch (af) {
   1857   1.62  riastrad #ifdef INET
   1858   1.62  riastrad 	case AF_INET:
   1859   1.62  riastrad 		return wg->wg_so4;
   1860   1.62  riastrad #endif
   1861   1.62  riastrad #ifdef INET6
   1862   1.62  riastrad 	case AF_INET6:
   1863   1.62  riastrad 		return wg->wg_so6;
   1864   1.62  riastrad #endif
   1865   1.62  riastrad 	default:
   1866   1.62  riastrad 		panic("wg: no such af: %d", af);
   1867   1.62  riastrad 	}
   1868    1.1  riastrad }
   1869    1.1  riastrad 
   1870    1.1  riastrad static struct socket *
   1871   1.47  riastrad wg_get_so_by_peer(struct wg_peer *wgp, struct wg_sockaddr *wgsa)
   1872    1.1  riastrad {
   1873    1.1  riastrad 
   1874   1.55  riastrad 	return wg_get_so_by_af(wgp->wgp_sc, wgsa_family(wgsa));
   1875    1.1  riastrad }
   1876    1.1  riastrad 
   1877    1.1  riastrad static struct wg_sockaddr *
   1878    1.1  riastrad wg_get_endpoint_sa(struct wg_peer *wgp, struct psref *psref)
   1879    1.1  riastrad {
   1880    1.1  riastrad 	struct wg_sockaddr *wgsa;
   1881    1.1  riastrad 	int s;
   1882    1.1  riastrad 
   1883    1.1  riastrad 	s = pserialize_read_enter();
   1884   1.47  riastrad 	wgsa = atomic_load_consume(&wgp->wgp_endpoint);
   1885    1.1  riastrad 	psref_acquire(psref, &wgsa->wgsa_psref, wg_psref_class);
   1886    1.1  riastrad 	pserialize_read_exit(s);
   1887    1.1  riastrad 
   1888    1.1  riastrad 	return wgsa;
   1889    1.1  riastrad }
   1890    1.1  riastrad 
   1891    1.1  riastrad static void
   1892    1.1  riastrad wg_put_sa(struct wg_peer *wgp, struct wg_sockaddr *wgsa, struct psref *psref)
   1893    1.1  riastrad {
   1894    1.1  riastrad 
   1895    1.1  riastrad 	psref_release(psref, &wgsa->wgsa_psref, wg_psref_class);
   1896    1.1  riastrad }
   1897    1.1  riastrad 
   1898    1.1  riastrad static int
   1899    1.1  riastrad wg_send_so(struct wg_peer *wgp, struct mbuf *m)
   1900    1.1  riastrad {
   1901    1.1  riastrad 	int error;
   1902    1.1  riastrad 	struct socket *so;
   1903    1.1  riastrad 	struct psref psref;
   1904    1.1  riastrad 	struct wg_sockaddr *wgsa;
   1905    1.1  riastrad 
   1906    1.1  riastrad 	wgsa = wg_get_endpoint_sa(wgp, &psref);
   1907   1.47  riastrad 	so = wg_get_so_by_peer(wgp, wgsa);
   1908    1.1  riastrad 	error = sosend(so, wgsatosa(wgsa), NULL, m, NULL, 0, curlwp);
   1909    1.1  riastrad 	wg_put_sa(wgp, wgsa, &psref);
   1910    1.1  riastrad 
   1911    1.1  riastrad 	return error;
   1912    1.1  riastrad }
   1913    1.1  riastrad 
   1914  1.108  riastrad static void
   1915    1.1  riastrad wg_send_handshake_msg_init(struct wg_softc *wg, struct wg_peer *wgp)
   1916    1.1  riastrad {
   1917    1.1  riastrad 	int error;
   1918    1.1  riastrad 	struct mbuf *m;
   1919    1.1  riastrad 	struct wg_msg_init *wgmi;
   1920    1.1  riastrad 	struct wg_session *wgs;
   1921    1.1  riastrad 
   1922   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   1923   1.49  riastrad 
   1924   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   1925   1.49  riastrad 	/* XXX pull dispatch out into wg_task_send_init_message */
   1926   1.49  riastrad 	switch (wgs->wgs_state) {
   1927   1.49  riastrad 	case WGS_STATE_UNKNOWN:		/* new session initiated by us */
   1928   1.49  riastrad 		break;
   1929   1.49  riastrad 	case WGS_STATE_INIT_ACTIVE:	/* we're already initiating, stop */
   1930   1.49  riastrad 		WG_TRACE("Session already initializing, skip starting new one");
   1931  1.108  riastrad 		return;
   1932   1.49  riastrad 	case WGS_STATE_INIT_PASSIVE:	/* peer was trying -- XXX what now? */
   1933   1.94  riastrad 		WG_TRACE("Session already initializing, waiting for peer");
   1934  1.108  riastrad 		return;
   1935   1.49  riastrad 	case WGS_STATE_ESTABLISHED:	/* can't happen */
   1936   1.49  riastrad 		panic("unstable session can't be established");
   1937   1.49  riastrad 	case WGS_STATE_DESTROYING:	/* rekey initiated by us too early */
   1938    1.1  riastrad 		WG_TRACE("Session destroying");
   1939   1.94  riastrad 		wg_put_session_index(wg, wgs);
   1940   1.94  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1941   1.94  riastrad 		    wgs->wgs_state);
   1942   1.94  riastrad 		break;
   1943    1.1  riastrad 	}
   1944   1.94  riastrad 
   1945   1.94  riastrad 	/*
   1946   1.94  riastrad 	 * Assign a fresh session index.
   1947   1.94  riastrad 	 */
   1948   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   1949   1.94  riastrad 	    wgs->wgs_state);
   1950   1.94  riastrad 	wg_get_session_index(wg, wgs);
   1951   1.94  riastrad 
   1952   1.94  riastrad 	/*
   1953   1.94  riastrad 	 * We have initiated a session.  Transition to INIT_ACTIVE.
   1954   1.94  riastrad 	 * This doesn't publish it for use in the data rx path,
   1955   1.94  riastrad 	 * wg_handle_msg_data, or in the data tx path, wg_output -- we
   1956   1.94  riastrad 	 * have to wait for the peer to respond with their ephemeral
   1957   1.94  riastrad 	 * public key before we can derive a session key for tx/rx.
   1958   1.94  riastrad 	 * Hence only atomic_store_relaxed.
   1959   1.94  riastrad 	 */
   1960   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=(unknown)] -> WGS_STATE_INIT_ACTIVE\n",
   1961   1.94  riastrad 	    wgs->wgs_local_index);
   1962   1.94  riastrad 	atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_INIT_ACTIVE);
   1963    1.1  riastrad 
   1964    1.1  riastrad 	m = m_gethdr(M_WAIT, MT_DATA);
   1965   1.69   hannken 	if (sizeof(*wgmi) > MHLEN) {
   1966   1.69   hannken 		m_clget(m, M_WAIT);
   1967   1.69   hannken 		CTASSERT(sizeof(*wgmi) <= MCLBYTES);
   1968   1.69   hannken 	}
   1969    1.1  riastrad 	m->m_pkthdr.len = m->m_len = sizeof(*wgmi);
   1970    1.1  riastrad 	wgmi = mtod(m, struct wg_msg_init *);
   1971    1.1  riastrad 	wg_fill_msg_init(wg, wgp, wgs, wgmi);
   1972    1.1  riastrad 
   1973  1.108  riastrad 	error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
   1974  1.108  riastrad 	if (error) {
   1975  1.108  riastrad 		/*
   1976  1.108  riastrad 		 * Sending out an initiation packet failed; give up on
   1977  1.108  riastrad 		 * this session and toss packet waiting for it if any.
   1978  1.108  riastrad 		 *
   1979  1.108  riastrad 		 * XXX Why don't we just let the periodic handshake
   1980  1.108  riastrad 		 * retry logic work in this case?
   1981  1.108  riastrad 		 */
   1982  1.108  riastrad 		WG_DLOG("send_hs_msg failed, error=%d\n", error);
   1983   1.49  riastrad 		wg_put_session_index(wg, wgs);
   1984   1.79       rin 		m = atomic_swap_ptr(&wgp->wgp_pending, NULL);
   1985  1.126  riastrad 		membar_acquire(); /* matches membar_release in wgintr */
   1986   1.79       rin 		m_freem(m);
   1987  1.108  riastrad 		return;
   1988    1.1  riastrad 	}
   1989    1.1  riastrad 
   1990  1.108  riastrad 	WG_TRACE("init msg sent");
   1991  1.108  riastrad 	if (wgp->wgp_handshake_start_time == 0)
   1992  1.108  riastrad 		wgp->wgp_handshake_start_time = time_uptime;
   1993  1.108  riastrad 	callout_schedule(&wgp->wgp_handshake_timeout_timer,
   1994  1.108  riastrad 	    MIN(wg_rekey_timeout, (unsigned)(INT_MAX / hz)) * hz);
   1995    1.1  riastrad }
   1996    1.1  riastrad 
   1997    1.1  riastrad static void
   1998    1.1  riastrad wg_fill_msg_resp(struct wg_softc *wg, struct wg_peer *wgp,
   1999   1.49  riastrad     struct wg_session *wgs, struct wg_msg_resp *wgmr,
   2000   1.49  riastrad     const struct wg_msg_init *wgmi)
   2001    1.1  riastrad {
   2002    1.1  riastrad 	uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.3: Cr */
   2003    1.1  riastrad 	uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.3: Hr */
   2004    1.1  riastrad 	uint8_t cipher_key[WG_KDF_OUTPUT_LEN];
   2005    1.1  riastrad 	uint8_t pubkey[WG_EPHEMERAL_KEY_LEN];
   2006    1.1  riastrad 	uint8_t privkey[WG_EPHEMERAL_KEY_LEN];
   2007    1.1  riastrad 
   2008   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   2009   1.49  riastrad 	KASSERT(wgs == wgp->wgp_session_unstable);
   2010   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   2011   1.94  riastrad 	    wgs->wgs_state);
   2012   1.49  riastrad 
   2013    1.1  riastrad 	memcpy(hash, wgs->wgs_handshake_hash, sizeof(hash));
   2014    1.1  riastrad 	memcpy(ckey, wgs->wgs_chaining_key, sizeof(ckey));
   2015    1.1  riastrad 
   2016   1.39  riastrad 	wgmr->wgmr_type = htole32(WG_MSG_TYPE_RESP);
   2017   1.49  riastrad 	wgmr->wgmr_sender = wgs->wgs_local_index;
   2018    1.1  riastrad 	wgmr->wgmr_receiver = wgmi->wgmi_sender;
   2019    1.1  riastrad 
   2020    1.1  riastrad 	/* [W] 5.4.3 Second Message: Responder to Initiator */
   2021    1.1  riastrad 
   2022    1.1  riastrad 	/* [N] 2.2: "e" */
   2023    1.1  riastrad 	/* Er^priv, Er^pub := DH-GENERATE() */
   2024    1.1  riastrad 	wg_algo_generate_keypair(pubkey, privkey);
   2025    1.1  riastrad 	/* Cr := KDF1(Cr, Er^pub) */
   2026    1.1  riastrad 	wg_algo_kdf(ckey, NULL, NULL, ckey, pubkey, sizeof(pubkey));
   2027    1.1  riastrad 	/* msg.ephemeral := Er^pub */
   2028    1.1  riastrad 	memcpy(wgmr->wgmr_ephemeral, pubkey, sizeof(wgmr->wgmr_ephemeral));
   2029    1.1  riastrad 	/* Hr := HASH(Hr || msg.ephemeral) */
   2030    1.1  riastrad 	wg_algo_hash(hash, pubkey, sizeof(pubkey));
   2031    1.1  riastrad 
   2032    1.1  riastrad 	WG_DUMP_HASH("ckey", ckey);
   2033    1.1  riastrad 	WG_DUMP_HASH("hash", hash);
   2034    1.1  riastrad 
   2035    1.1  riastrad 	/* [N] 2.2: "ee" */
   2036    1.1  riastrad 	/* Cr := KDF1(Cr, DH(Er^priv, Ei^pub)) */
   2037    1.1  riastrad 	wg_algo_dh_kdf(ckey, NULL, privkey, wgs->wgs_ephemeral_key_peer);
   2038    1.1  riastrad 
   2039    1.1  riastrad 	/* [N] 2.2: "se" */
   2040    1.1  riastrad 	/* Cr := KDF1(Cr, DH(Er^priv, Si^pub)) */
   2041    1.1  riastrad 	wg_algo_dh_kdf(ckey, NULL, privkey, wgp->wgp_pubkey);
   2042    1.1  riastrad 
   2043    1.1  riastrad 	/* [N] 9.2: "psk" */
   2044    1.1  riastrad     {
   2045    1.1  riastrad 	uint8_t kdfout[WG_KDF_OUTPUT_LEN];
   2046    1.1  riastrad 	/* Cr, r, k := KDF3(Cr, Q) */
   2047    1.1  riastrad 	wg_algo_kdf(ckey, kdfout, cipher_key, ckey, wgp->wgp_psk,
   2048    1.1  riastrad 	    sizeof(wgp->wgp_psk));
   2049    1.1  riastrad 	/* Hr := HASH(Hr || r) */
   2050    1.1  riastrad 	wg_algo_hash(hash, kdfout, sizeof(kdfout));
   2051    1.1  riastrad     }
   2052    1.1  riastrad 
   2053    1.1  riastrad 	/* msg.empty := AEAD(k, 0, e, Hr) */
   2054   1.14  riastrad 	wg_algo_aead_enc(wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty),
   2055   1.14  riastrad 	    cipher_key, 0, NULL, 0, hash, sizeof(hash));
   2056    1.1  riastrad 	/* Hr := HASH(Hr || msg.empty) */
   2057    1.1  riastrad 	wg_algo_hash(hash, wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty));
   2058    1.1  riastrad 
   2059    1.1  riastrad 	WG_DUMP_HASH("wgmr_empty", wgmr->wgmr_empty);
   2060    1.1  riastrad 
   2061    1.1  riastrad 	/* [W] 5.4.4: Cookie MACs */
   2062    1.1  riastrad 	/* msg.mac1 := MAC(HASH(LABEL-MAC1 || Sm'^pub), msg_a) */
   2063    1.1  riastrad 	wg_algo_mac_mac1(wgmr->wgmr_mac1, sizeof(wgmi->wgmi_mac1),
   2064    1.1  riastrad 	    wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey),
   2065   1.17  riastrad 	    (const uint8_t *)wgmr, offsetof(struct wg_msg_resp, wgmr_mac1));
   2066    1.1  riastrad 	/* Need mac1 to decrypt a cookie from a cookie message */
   2067    1.1  riastrad 	memcpy(wgp->wgp_last_sent_mac1, wgmr->wgmr_mac1,
   2068    1.1  riastrad 	    sizeof(wgp->wgp_last_sent_mac1));
   2069    1.1  riastrad 	wgp->wgp_last_sent_mac1_valid = true;
   2070    1.1  riastrad 
   2071    1.1  riastrad 	if (wgp->wgp_latest_cookie_time == 0 ||
   2072    1.1  riastrad 	    (time_uptime - wgp->wgp_latest_cookie_time) >= WG_COOKIE_TIME)
   2073    1.1  riastrad 		/* msg.mac2 := 0^16 */
   2074    1.1  riastrad 		memset(wgmr->wgmr_mac2, 0, sizeof(wgmr->wgmr_mac2));
   2075    1.1  riastrad 	else {
   2076    1.1  riastrad 		/* msg.mac2 := MAC(Lm, msg_b) */
   2077    1.1  riastrad 		wg_algo_mac(wgmr->wgmr_mac2, sizeof(wgmi->wgmi_mac2),
   2078    1.1  riastrad 		    wgp->wgp_latest_cookie, WG_COOKIE_LEN,
   2079   1.17  riastrad 		    (const uint8_t *)wgmr,
   2080   1.17  riastrad 		    offsetof(struct wg_msg_resp, wgmr_mac2),
   2081    1.1  riastrad 		    NULL, 0);
   2082    1.1  riastrad 	}
   2083    1.1  riastrad 
   2084    1.1  riastrad 	memcpy(wgs->wgs_handshake_hash, hash, sizeof(hash));
   2085    1.1  riastrad 	memcpy(wgs->wgs_chaining_key, ckey, sizeof(ckey));
   2086    1.1  riastrad 	memcpy(wgs->wgs_ephemeral_key_pub, pubkey, sizeof(pubkey));
   2087    1.1  riastrad 	memcpy(wgs->wgs_ephemeral_key_priv, privkey, sizeof(privkey));
   2088   1.49  riastrad 	wgs->wgs_remote_index = wgmi->wgmi_sender;
   2089   1.49  riastrad 	WG_DLOG("sender=%x\n", wgs->wgs_local_index);
   2090   1.49  riastrad 	WG_DLOG("receiver=%x\n", wgs->wgs_remote_index);
   2091    1.1  riastrad }
   2092    1.1  riastrad 
   2093  1.122  riastrad /*
   2094  1.122  riastrad  * wg_swap_sessions(wg, wgp)
   2095  1.122  riastrad  *
   2096  1.122  riastrad  *	Caller has just finished establishing the unstable session in
   2097  1.122  riastrad  *	wg for peer wgp.  Publish it as the stable session, send queued
   2098  1.122  riastrad  *	packets or keepalives as necessary to kick off the session,
   2099  1.122  riastrad  *	move the previously stable session to unstable, and begin
   2100  1.122  riastrad  *	destroying it.
   2101  1.122  riastrad  */
   2102    1.1  riastrad static void
   2103  1.122  riastrad wg_swap_sessions(struct wg_softc *wg, struct wg_peer *wgp)
   2104    1.1  riastrad {
   2105   1.49  riastrad 	struct wg_session *wgs, *wgs_prev;
   2106  1.122  riastrad 	struct mbuf *m;
   2107    1.1  riastrad 
   2108    1.1  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   2109    1.1  riastrad 
   2110  1.116  riastrad 	/*
   2111  1.116  riastrad 	 * Get the newly established session, to become the new
   2112  1.116  riastrad 	 * session.  Caller must have transitioned from INIT_ACTIVE to
   2113  1.119  riastrad 	 * INIT_PASSIVE or to ESTABLISHED already.  This will become
   2114  1.119  riastrad 	 * the stable session.
   2115  1.116  riastrad 	 */
   2116   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   2117   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_ESTABLISHED, "state=%d",
   2118   1.94  riastrad 	    wgs->wgs_state);
   2119   1.49  riastrad 
   2120  1.116  riastrad 	/*
   2121  1.116  riastrad 	 * Get the stable session, which is either the previously
   2122  1.116  riastrad 	 * established session in the ESTABLISHED state, or has not
   2123  1.116  riastrad 	 * been established at all and is UNKNOWN.  This will become
   2124  1.116  riastrad 	 * the unstable session.
   2125  1.116  riastrad 	 */
   2126   1.49  riastrad 	wgs_prev = wgp->wgp_session_stable;
   2127   1.94  riastrad 	KASSERTMSG((wgs_prev->wgs_state == WGS_STATE_ESTABLISHED ||
   2128   1.94  riastrad 		wgs_prev->wgs_state == WGS_STATE_UNKNOWN),
   2129   1.94  riastrad 	    "state=%d", wgs_prev->wgs_state);
   2130  1.116  riastrad 
   2131  1.116  riastrad 	/*
   2132  1.116  riastrad 	 * Publish the newly established session for the tx path to use
   2133  1.116  riastrad 	 * and make the other one the unstable session to handle
   2134  1.116  riastrad 	 * stragglers in the rx path and later be used for the next
   2135  1.116  riastrad 	 * session's handshake.
   2136  1.116  riastrad 	 */
   2137   1.49  riastrad 	atomic_store_release(&wgp->wgp_session_stable, wgs);
   2138   1.49  riastrad 	wgp->wgp_session_unstable = wgs_prev;
   2139  1.122  riastrad 
   2140  1.122  riastrad 	/*
   2141  1.122  riastrad 	 * Record the handshake time and reset the handshake state.
   2142  1.122  riastrad 	 */
   2143  1.122  riastrad 	getnanotime(&wgp->wgp_last_handshake_time);
   2144  1.122  riastrad 	wgp->wgp_handshake_start_time = 0;
   2145  1.122  riastrad 	wgp->wgp_last_sent_mac1_valid = false;
   2146  1.122  riastrad 	wgp->wgp_last_sent_cookie_valid = false;
   2147  1.122  riastrad 
   2148  1.122  riastrad 	/*
   2149  1.122  riastrad 	 * If we had a data packet queued up, send it.
   2150  1.122  riastrad 	 *
   2151  1.122  riastrad 	 * If not, but we're the initiator, send a keepalive message --
   2152  1.122  riastrad 	 * if we're the initiator we have to send something immediately
   2153  1.122  riastrad 	 * or else the responder will never answer.
   2154  1.122  riastrad 	 */
   2155  1.122  riastrad 	if ((m = atomic_swap_ptr(&wgp->wgp_pending, NULL)) != NULL) {
   2156  1.126  riastrad 		membar_acquire(); /* matches membar_release in wgintr */
   2157  1.128  riastrad 		wg_send_data_msg(wgp, wgs, m); /* consumes m */
   2158  1.128  riastrad 		m = NULL;
   2159  1.122  riastrad 	} else if (wgs->wgs_is_initiator) {
   2160  1.122  riastrad 		wg_send_keepalive_msg(wgp, wgs);
   2161  1.122  riastrad 	}
   2162  1.122  riastrad 
   2163  1.122  riastrad 	/*
   2164  1.122  riastrad 	 * If the previous stable session was established, begin to
   2165  1.122  riastrad 	 * destroy it.
   2166  1.122  riastrad 	 */
   2167  1.122  riastrad 	if (wgs_prev->wgs_state == WGS_STATE_ESTABLISHED) {
   2168  1.122  riastrad 		/*
   2169  1.122  riastrad 		 * Transition ESTABLISHED->DESTROYING.  The session
   2170  1.122  riastrad 		 * will remain usable for the data rx path to process
   2171  1.122  riastrad 		 * packets still in flight to us, but we won't use it
   2172  1.122  riastrad 		 * for data tx.
   2173  1.122  riastrad 		 */
   2174  1.122  riastrad 		WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]"
   2175  1.122  riastrad 		    " -> WGS_STATE_DESTROYING\n",
   2176  1.122  riastrad 		    wgs_prev->wgs_local_index, wgs_prev->wgs_remote_index);
   2177  1.122  riastrad 		atomic_store_relaxed(&wgs_prev->wgs_state,
   2178  1.122  riastrad 		    WGS_STATE_DESTROYING);
   2179  1.122  riastrad 	} else {
   2180  1.122  riastrad 		KASSERTMSG(wgs_prev->wgs_state == WGS_STATE_UNKNOWN,
   2181  1.122  riastrad 		    "state=%d", wgs_prev->wgs_state);
   2182  1.122  riastrad 		wgs_prev->wgs_local_index = 0; /* paranoia */
   2183  1.122  riastrad 		wgs_prev->wgs_remote_index = 0; /* paranoia */
   2184  1.122  riastrad 		wg_clear_states(wgs_prev); /* paranoia */
   2185  1.122  riastrad 		wgs_prev->wgs_state = WGS_STATE_UNKNOWN;
   2186  1.122  riastrad 	}
   2187    1.1  riastrad }
   2188    1.1  riastrad 
   2189   1.63  riastrad static void __noinline
   2190    1.1  riastrad wg_handle_msg_resp(struct wg_softc *wg, const struct wg_msg_resp *wgmr,
   2191    1.1  riastrad     const struct sockaddr *src)
   2192    1.1  riastrad {
   2193    1.1  riastrad 	uint8_t ckey[WG_CHAINING_KEY_LEN]; /* [W] 5.4.3: Cr */
   2194    1.1  riastrad 	uint8_t hash[WG_HASH_LEN]; /* [W] 5.4.3: Kr */
   2195    1.1  riastrad 	uint8_t cipher_key[WG_KDF_OUTPUT_LEN];
   2196    1.1  riastrad 	struct wg_peer *wgp;
   2197    1.1  riastrad 	struct wg_session *wgs;
   2198    1.1  riastrad 	struct psref psref;
   2199    1.1  riastrad 	int error;
   2200    1.1  riastrad 	uint8_t mac1[WG_MAC_LEN];
   2201    1.1  riastrad 
   2202    1.1  riastrad 	wg_algo_mac_mac1(mac1, sizeof(mac1),
   2203    1.1  riastrad 	    wg->wg_pubkey, sizeof(wg->wg_pubkey),
   2204    1.1  riastrad 	    (const uint8_t *)wgmr, offsetof(struct wg_msg_resp, wgmr_mac1));
   2205    1.1  riastrad 
   2206    1.1  riastrad 	/*
   2207    1.1  riastrad 	 * [W] 5.3: Denial of Service Mitigation & Cookies
   2208    1.1  riastrad 	 * "the responder, ..., must always reject messages with an invalid
   2209    1.1  riastrad 	 *  msg.mac1"
   2210    1.1  riastrad 	 */
   2211   1.13  riastrad 	if (!consttime_memequal(mac1, wgmr->wgmr_mac1, sizeof(mac1))) {
   2212    1.1  riastrad 		WG_DLOG("mac1 is invalid\n");
   2213   1.44  riastrad 		return;
   2214   1.44  riastrad 	}
   2215   1.44  riastrad 
   2216   1.44  riastrad 	WG_TRACE("resp msg received");
   2217   1.44  riastrad 	wgs = wg_lookup_session_by_index(wg, wgmr->wgmr_receiver, &psref);
   2218   1.44  riastrad 	if (wgs == NULL) {
   2219   1.44  riastrad 		WG_TRACE("No session found");
   2220   1.44  riastrad 		return;
   2221    1.1  riastrad 	}
   2222    1.1  riastrad 
   2223   1.44  riastrad 	wgp = wgs->wgs_peer;
   2224   1.44  riastrad 
   2225   1.49  riastrad 	mutex_enter(wgp->wgp_lock);
   2226   1.49  riastrad 
   2227   1.49  riastrad 	/* If we weren't waiting for a handshake response, drop it.  */
   2228   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_INIT_ACTIVE) {
   2229   1.49  riastrad 		WG_TRACE("peer sent spurious handshake response, ignoring");
   2230   1.49  riastrad 		goto out;
   2231   1.49  riastrad 	}
   2232   1.49  riastrad 
   2233    1.1  riastrad 	if (__predict_false(wg_is_underload(wg, wgp, WG_MSG_TYPE_RESP))) {
   2234    1.1  riastrad 		WG_TRACE("under load");
   2235    1.1  riastrad 		/*
   2236    1.1  riastrad 		 * [W] 5.3: Denial of Service Mitigation & Cookies
   2237    1.1  riastrad 		 * "the responder, ..., and when under load may reject messages
   2238    1.1  riastrad 		 *  with an invalid msg.mac2.  If the responder receives a
   2239    1.1  riastrad 		 *  message with a valid msg.mac1 yet with an invalid msg.mac2,
   2240    1.1  riastrad 		 *  and is under load, it may respond with a cookie reply
   2241    1.1  riastrad 		 *  message"
   2242    1.1  riastrad 		 */
   2243    1.1  riastrad 		uint8_t zero[WG_MAC_LEN] = {0};
   2244   1.13  riastrad 		if (consttime_memequal(wgmr->wgmr_mac2, zero, sizeof(zero))) {
   2245    1.1  riastrad 			WG_TRACE("sending a cookie message: no cookie included");
   2246  1.108  riastrad 			wg_send_cookie_msg(wg, wgp, wgmr->wgmr_sender,
   2247    1.1  riastrad 			    wgmr->wgmr_mac1, src);
   2248    1.1  riastrad 			goto out;
   2249    1.1  riastrad 		}
   2250    1.1  riastrad 		if (!wgp->wgp_last_sent_cookie_valid) {
   2251    1.1  riastrad 			WG_TRACE("sending a cookie message: no cookie sent ever");
   2252  1.108  riastrad 			wg_send_cookie_msg(wg, wgp, wgmr->wgmr_sender,
   2253    1.1  riastrad 			    wgmr->wgmr_mac1, src);
   2254    1.1  riastrad 			goto out;
   2255    1.1  riastrad 		}
   2256    1.1  riastrad 		uint8_t mac2[WG_MAC_LEN];
   2257    1.1  riastrad 		wg_algo_mac(mac2, sizeof(mac2), wgp->wgp_last_sent_cookie,
   2258    1.1  riastrad 		    WG_COOKIE_LEN, (const uint8_t *)wgmr,
   2259    1.1  riastrad 		    offsetof(struct wg_msg_resp, wgmr_mac2), NULL, 0);
   2260   1.13  riastrad 		if (!consttime_memequal(mac2, wgmr->wgmr_mac2, sizeof(mac2))) {
   2261    1.1  riastrad 			WG_DLOG("mac2 is invalid\n");
   2262    1.1  riastrad 			goto out;
   2263    1.1  riastrad 		}
   2264    1.1  riastrad 		WG_TRACE("under load, but continue to sending");
   2265    1.1  riastrad 	}
   2266    1.1  riastrad 
   2267    1.1  riastrad 	memcpy(hash, wgs->wgs_handshake_hash, sizeof(hash));
   2268    1.1  riastrad 	memcpy(ckey, wgs->wgs_chaining_key, sizeof(ckey));
   2269    1.1  riastrad 
   2270    1.1  riastrad 	/*
   2271    1.1  riastrad 	 * [W] 5.4.3 Second Message: Responder to Initiator
   2272    1.1  riastrad 	 * "When the initiator receives this message, it does the same
   2273    1.1  riastrad 	 *  operations so that its final state variables are identical,
   2274    1.1  riastrad 	 *  replacing the operands of the DH function to produce equivalent
   2275    1.1  riastrad 	 *  values."
   2276    1.1  riastrad 	 *  Note that the following comments of operations are just copies of
   2277    1.1  riastrad 	 *  the initiator's ones.
   2278    1.1  riastrad 	 */
   2279    1.1  riastrad 
   2280    1.1  riastrad 	/* [N] 2.2: "e" */
   2281    1.1  riastrad 	/* Cr := KDF1(Cr, Er^pub) */
   2282    1.1  riastrad 	wg_algo_kdf(ckey, NULL, NULL, ckey, wgmr->wgmr_ephemeral,
   2283    1.1  riastrad 	    sizeof(wgmr->wgmr_ephemeral));
   2284    1.1  riastrad 	/* Hr := HASH(Hr || msg.ephemeral) */
   2285    1.1  riastrad 	wg_algo_hash(hash, wgmr->wgmr_ephemeral, sizeof(wgmr->wgmr_ephemeral));
   2286    1.1  riastrad 
   2287    1.1  riastrad 	WG_DUMP_HASH("ckey", ckey);
   2288    1.1  riastrad 	WG_DUMP_HASH("hash", hash);
   2289    1.1  riastrad 
   2290    1.1  riastrad 	/* [N] 2.2: "ee" */
   2291    1.1  riastrad 	/* Cr := KDF1(Cr, DH(Er^priv, Ei^pub)) */
   2292    1.1  riastrad 	wg_algo_dh_kdf(ckey, NULL, wgs->wgs_ephemeral_key_priv,
   2293    1.1  riastrad 	    wgmr->wgmr_ephemeral);
   2294    1.1  riastrad 
   2295    1.1  riastrad 	/* [N] 2.2: "se" */
   2296    1.1  riastrad 	/* Cr := KDF1(Cr, DH(Er^priv, Si^pub)) */
   2297    1.1  riastrad 	wg_algo_dh_kdf(ckey, NULL, wg->wg_privkey, wgmr->wgmr_ephemeral);
   2298    1.1  riastrad 
   2299    1.1  riastrad 	/* [N] 9.2: "psk" */
   2300    1.1  riastrad     {
   2301    1.1  riastrad 	uint8_t kdfout[WG_KDF_OUTPUT_LEN];
   2302    1.1  riastrad 	/* Cr, r, k := KDF3(Cr, Q) */
   2303    1.1  riastrad 	wg_algo_kdf(ckey, kdfout, cipher_key, ckey, wgp->wgp_psk,
   2304    1.1  riastrad 	    sizeof(wgp->wgp_psk));
   2305    1.1  riastrad 	/* Hr := HASH(Hr || r) */
   2306    1.1  riastrad 	wg_algo_hash(hash, kdfout, sizeof(kdfout));
   2307    1.1  riastrad     }
   2308    1.1  riastrad 
   2309    1.1  riastrad     {
   2310    1.1  riastrad 	uint8_t out[sizeof(wgmr->wgmr_empty)]; /* for safety */
   2311    1.1  riastrad 	/* msg.empty := AEAD(k, 0, e, Hr) */
   2312    1.1  riastrad 	error = wg_algo_aead_dec(out, 0, cipher_key, 0, wgmr->wgmr_empty,
   2313    1.1  riastrad 	    sizeof(wgmr->wgmr_empty), hash, sizeof(hash));
   2314    1.1  riastrad 	WG_DUMP_HASH("wgmr_empty", wgmr->wgmr_empty);
   2315    1.1  riastrad 	if (error != 0) {
   2316    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   2317   1.76  jakllsch 		    "%s: peer %s: wg_algo_aead_dec for empty message failed\n",
   2318   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name);
   2319    1.1  riastrad 		goto out;
   2320    1.1  riastrad 	}
   2321    1.1  riastrad 	/* Hr := HASH(Hr || msg.empty) */
   2322    1.1  riastrad 	wg_algo_hash(hash, wgmr->wgmr_empty, sizeof(wgmr->wgmr_empty));
   2323    1.1  riastrad     }
   2324    1.1  riastrad 
   2325    1.1  riastrad 	memcpy(wgs->wgs_handshake_hash, hash, sizeof(wgs->wgs_handshake_hash));
   2326    1.1  riastrad 	memcpy(wgs->wgs_chaining_key, ckey, sizeof(wgs->wgs_chaining_key));
   2327   1.49  riastrad 	wgs->wgs_remote_index = wgmr->wgmr_sender;
   2328   1.49  riastrad 	WG_DLOG("receiver=%x\n", wgs->wgs_remote_index);
   2329    1.1  riastrad 
   2330  1.122  riastrad 	/*
   2331  1.122  riastrad 	 * The packet is genuine.  Update the peer's endpoint if the
   2332  1.122  riastrad 	 * source address changed.
   2333  1.122  riastrad 	 *
   2334  1.122  riastrad 	 * XXX How to prevent DoS by replaying genuine packets from the
   2335  1.122  riastrad 	 * wrong source address?
   2336  1.122  riastrad 	 */
   2337  1.122  riastrad 	wg_update_endpoint_if_necessary(wgp, src);
   2338  1.122  riastrad 
   2339   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_INIT_ACTIVE, "state=%d",
   2340   1.94  riastrad 	    wgs->wgs_state);
   2341  1.104  riastrad 	wgs->wgs_time_established = time_uptime32;
   2342  1.100  riastrad 	wg_schedule_session_dtor_timer(wgp);
   2343    1.1  riastrad 	wgs->wgs_time_last_data_sent = 0;
   2344    1.1  riastrad 	wgs->wgs_is_initiator = true;
   2345   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"]:"
   2346   1.94  riastrad 	    " calculate keys as initiator\n",
   2347   1.94  riastrad 	    wgs->wgs_local_index, wgs->wgs_remote_index);
   2348    1.1  riastrad 	wg_calculate_keys(wgs, true);
   2349    1.1  riastrad 	wg_clear_states(wgs);
   2350   1.94  riastrad 
   2351   1.94  riastrad 	/*
   2352   1.94  riastrad 	 * Session is ready to receive data now that we have received
   2353   1.94  riastrad 	 * the responder's response.
   2354   1.94  riastrad 	 *
   2355   1.94  riastrad 	 * Transition from INIT_ACTIVE to ESTABLISHED to publish it to
   2356   1.94  riastrad 	 * the data rx path, wg_handle_msg_data.
   2357   1.94  riastrad 	 */
   2358   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=%"PRIx32" -> WGS_STATE_ESTABLISHED\n",
   2359   1.94  riastrad 	    wgs->wgs_local_index, wgs->wgs_remote_index);
   2360   1.94  riastrad 	atomic_store_release(&wgs->wgs_state, WGS_STATE_ESTABLISHED);
   2361    1.1  riastrad 	WG_TRACE("WGS_STATE_ESTABLISHED");
   2362    1.1  riastrad 
   2363   1.96  riastrad 	callout_halt(&wgp->wgp_handshake_timeout_timer, NULL);
   2364   1.18  riastrad 
   2365   1.94  riastrad 	/*
   2366   1.94  riastrad 	 * Session is ready to send data now that we have received the
   2367   1.94  riastrad 	 * responder's response.
   2368   1.94  riastrad 	 *
   2369   1.94  riastrad 	 * Swap the sessions to publish the new one as the stable
   2370   1.94  riastrad 	 * session for the data tx path, wg_output.
   2371   1.94  riastrad 	 */
   2372  1.122  riastrad 	wg_swap_sessions(wg, wgp);
   2373   1.49  riastrad 	KASSERT(wgs == wgp->wgp_session_stable);
   2374    1.1  riastrad 
   2375    1.1  riastrad out:
   2376   1.49  riastrad 	mutex_exit(wgp->wgp_lock);
   2377    1.1  riastrad 	wg_put_session(wgs, &psref);
   2378    1.1  riastrad }
   2379    1.1  riastrad 
   2380  1.108  riastrad static void
   2381    1.1  riastrad wg_send_handshake_msg_resp(struct wg_softc *wg, struct wg_peer *wgp,
   2382   1.49  riastrad     struct wg_session *wgs, const struct wg_msg_init *wgmi)
   2383    1.1  riastrad {
   2384    1.1  riastrad 	int error;
   2385    1.1  riastrad 	struct mbuf *m;
   2386    1.1  riastrad 	struct wg_msg_resp *wgmr;
   2387    1.1  riastrad 
   2388   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   2389   1.49  riastrad 	KASSERT(wgs == wgp->wgp_session_unstable);
   2390   1.94  riastrad 	KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   2391   1.94  riastrad 	    wgs->wgs_state);
   2392   1.49  riastrad 
   2393    1.1  riastrad 	m = m_gethdr(M_WAIT, MT_DATA);
   2394   1.69   hannken 	if (sizeof(*wgmr) > MHLEN) {
   2395   1.69   hannken 		m_clget(m, M_WAIT);
   2396   1.69   hannken 		CTASSERT(sizeof(*wgmr) <= MCLBYTES);
   2397   1.69   hannken 	}
   2398    1.1  riastrad 	m->m_pkthdr.len = m->m_len = sizeof(*wgmr);
   2399    1.1  riastrad 	wgmr = mtod(m, struct wg_msg_resp *);
   2400   1.49  riastrad 	wg_fill_msg_resp(wg, wgp, wgs, wgmr, wgmi);
   2401    1.1  riastrad 
   2402  1.108  riastrad 	error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
   2403  1.108  riastrad 	if (error) {
   2404  1.108  riastrad 		WG_DLOG("send_hs_msg failed, error=%d\n", error);
   2405  1.108  riastrad 		return;
   2406  1.108  riastrad 	}
   2407  1.108  riastrad 
   2408  1.108  riastrad 	WG_TRACE("resp msg sent");
   2409    1.1  riastrad }
   2410    1.1  riastrad 
   2411    1.1  riastrad static struct wg_peer *
   2412    1.1  riastrad wg_lookup_peer_by_pubkey(struct wg_softc *wg,
   2413  1.114  riastrad     const uint8_t pubkey[static WG_STATIC_KEY_LEN], struct psref *psref)
   2414    1.1  riastrad {
   2415    1.1  riastrad 	struct wg_peer *wgp;
   2416    1.1  riastrad 
   2417    1.1  riastrad 	int s = pserialize_read_enter();
   2418   1.37  riastrad 	wgp = thmap_get(wg->wg_peers_bypubkey, pubkey, WG_STATIC_KEY_LEN);
   2419    1.1  riastrad 	if (wgp != NULL)
   2420    1.1  riastrad 		wg_get_peer(wgp, psref);
   2421    1.1  riastrad 	pserialize_read_exit(s);
   2422    1.1  riastrad 
   2423    1.1  riastrad 	return wgp;
   2424    1.1  riastrad }
   2425    1.1  riastrad 
   2426    1.1  riastrad static void
   2427    1.1  riastrad wg_fill_msg_cookie(struct wg_softc *wg, struct wg_peer *wgp,
   2428    1.1  riastrad     struct wg_msg_cookie *wgmc, const uint32_t sender,
   2429  1.114  riastrad     const uint8_t mac1[static WG_MAC_LEN], const struct sockaddr *src)
   2430    1.1  riastrad {
   2431    1.1  riastrad 	uint8_t cookie[WG_COOKIE_LEN];
   2432    1.1  riastrad 	uint8_t key[WG_HASH_LEN];
   2433    1.1  riastrad 	uint8_t addr[sizeof(struct in6_addr)];
   2434    1.1  riastrad 	size_t addrlen;
   2435    1.1  riastrad 	uint16_t uh_sport; /* be */
   2436    1.1  riastrad 
   2437   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   2438   1.49  riastrad 
   2439   1.39  riastrad 	wgmc->wgmc_type = htole32(WG_MSG_TYPE_COOKIE);
   2440    1.1  riastrad 	wgmc->wgmc_receiver = sender;
   2441    1.1  riastrad 	cprng_fast(wgmc->wgmc_salt, sizeof(wgmc->wgmc_salt));
   2442    1.1  riastrad 
   2443    1.1  riastrad 	/*
   2444    1.1  riastrad 	 * [W] 5.4.7: Under Load: Cookie Reply Message
   2445   1.14  riastrad 	 * "The secret variable, Rm, changes every two minutes to a
   2446   1.14  riastrad 	 * random value"
   2447    1.1  riastrad 	 */
   2448   1.98  riastrad 	if ((time_uptime - wgp->wgp_last_cookiesecret_time) >
   2449   1.98  riastrad 	    WG_COOKIESECRET_TIME) {
   2450   1.98  riastrad 		cprng_strong(kern_cprng, wgp->wgp_cookiesecret,
   2451   1.98  riastrad 		    sizeof(wgp->wgp_cookiesecret), 0);
   2452   1.98  riastrad 		wgp->wgp_last_cookiesecret_time = time_uptime;
   2453    1.1  riastrad 	}
   2454    1.1  riastrad 
   2455    1.1  riastrad 	switch (src->sa_family) {
   2456  1.109  riastrad #ifdef INET
   2457    1.1  riastrad 	case AF_INET: {
   2458    1.1  riastrad 		const struct sockaddr_in *sin = satocsin(src);
   2459    1.1  riastrad 		addrlen = sizeof(sin->sin_addr);
   2460    1.1  riastrad 		memcpy(addr, &sin->sin_addr, addrlen);
   2461    1.1  riastrad 		uh_sport = sin->sin_port;
   2462    1.1  riastrad 		break;
   2463    1.1  riastrad 	    }
   2464  1.109  riastrad #endif
   2465    1.1  riastrad #ifdef INET6
   2466    1.1  riastrad 	case AF_INET6: {
   2467    1.1  riastrad 		const struct sockaddr_in6 *sin6 = satocsin6(src);
   2468    1.1  riastrad 		addrlen = sizeof(sin6->sin6_addr);
   2469    1.1  riastrad 		memcpy(addr, &sin6->sin6_addr, addrlen);
   2470    1.1  riastrad 		uh_sport = sin6->sin6_port;
   2471    1.1  riastrad 		break;
   2472    1.1  riastrad 	    }
   2473    1.1  riastrad #endif
   2474    1.1  riastrad 	default:
   2475   1.47  riastrad 		panic("invalid af=%d", src->sa_family);
   2476    1.1  riastrad 	}
   2477    1.1  riastrad 
   2478    1.1  riastrad 	wg_algo_mac(cookie, sizeof(cookie),
   2479   1.98  riastrad 	    wgp->wgp_cookiesecret, sizeof(wgp->wgp_cookiesecret),
   2480   1.17  riastrad 	    addr, addrlen, (const uint8_t *)&uh_sport, sizeof(uh_sport));
   2481    1.1  riastrad 	wg_algo_mac_cookie(key, sizeof(key), wg->wg_pubkey,
   2482    1.1  riastrad 	    sizeof(wg->wg_pubkey));
   2483    1.1  riastrad 	wg_algo_xaead_enc(wgmc->wgmc_cookie, sizeof(wgmc->wgmc_cookie), key,
   2484    1.1  riastrad 	    cookie, sizeof(cookie), mac1, WG_MAC_LEN, wgmc->wgmc_salt);
   2485    1.1  riastrad 
   2486    1.1  riastrad 	/* Need to store to calculate mac2 */
   2487    1.1  riastrad 	memcpy(wgp->wgp_last_sent_cookie, cookie, sizeof(cookie));
   2488    1.1  riastrad 	wgp->wgp_last_sent_cookie_valid = true;
   2489    1.1  riastrad }
   2490    1.1  riastrad 
   2491  1.108  riastrad static void
   2492    1.1  riastrad wg_send_cookie_msg(struct wg_softc *wg, struct wg_peer *wgp,
   2493  1.114  riastrad     const uint32_t sender, const uint8_t mac1[static WG_MAC_LEN],
   2494    1.1  riastrad     const struct sockaddr *src)
   2495    1.1  riastrad {
   2496    1.1  riastrad 	int error;
   2497    1.1  riastrad 	struct mbuf *m;
   2498    1.1  riastrad 	struct wg_msg_cookie *wgmc;
   2499    1.1  riastrad 
   2500   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   2501   1.49  riastrad 
   2502    1.1  riastrad 	m = m_gethdr(M_WAIT, MT_DATA);
   2503   1.69   hannken 	if (sizeof(*wgmc) > MHLEN) {
   2504   1.69   hannken 		m_clget(m, M_WAIT);
   2505   1.69   hannken 		CTASSERT(sizeof(*wgmc) <= MCLBYTES);
   2506   1.69   hannken 	}
   2507    1.1  riastrad 	m->m_pkthdr.len = m->m_len = sizeof(*wgmc);
   2508    1.1  riastrad 	wgmc = mtod(m, struct wg_msg_cookie *);
   2509    1.1  riastrad 	wg_fill_msg_cookie(wg, wgp, wgmc, sender, mac1, src);
   2510    1.1  riastrad 
   2511  1.108  riastrad 	error = wg->wg_ops->send_hs_msg(wgp, m); /* consumes m */
   2512  1.108  riastrad 	if (error) {
   2513  1.108  riastrad 		WG_DLOG("send_hs_msg failed, error=%d\n", error);
   2514  1.108  riastrad 		return;
   2515  1.108  riastrad 	}
   2516  1.108  riastrad 
   2517  1.108  riastrad 	WG_TRACE("cookie msg sent");
   2518    1.1  riastrad }
   2519    1.1  riastrad 
   2520    1.1  riastrad static bool
   2521    1.1  riastrad wg_is_underload(struct wg_softc *wg, struct wg_peer *wgp, int msgtype)
   2522    1.1  riastrad {
   2523    1.1  riastrad #ifdef WG_DEBUG_PARAMS
   2524    1.1  riastrad 	if (wg_force_underload)
   2525    1.1  riastrad 		return true;
   2526    1.1  riastrad #endif
   2527    1.1  riastrad 
   2528    1.1  riastrad 	/*
   2529    1.1  riastrad 	 * XXX we don't have a means of a load estimation.  The purpose of
   2530    1.1  riastrad 	 * the mechanism is a DoS mitigation, so we consider frequent handshake
   2531    1.1  riastrad 	 * messages as (a kind of) load; if a message of the same type comes
   2532    1.1  riastrad 	 * to a peer within 1 second, we consider we are under load.
   2533    1.1  riastrad 	 */
   2534    1.1  riastrad 	time_t last = wgp->wgp_last_msg_received_time[msgtype];
   2535    1.1  riastrad 	wgp->wgp_last_msg_received_time[msgtype] = time_uptime;
   2536    1.1  riastrad 	return (time_uptime - last) == 0;
   2537    1.1  riastrad }
   2538    1.1  riastrad 
   2539    1.1  riastrad static void
   2540    1.1  riastrad wg_calculate_keys(struct wg_session *wgs, const bool initiator)
   2541    1.1  riastrad {
   2542    1.1  riastrad 
   2543   1.49  riastrad 	KASSERT(mutex_owned(wgs->wgs_peer->wgp_lock));
   2544   1.49  riastrad 
   2545   1.14  riastrad 	/*
   2546   1.14  riastrad 	 * [W] 5.4.5: Ti^send = Tr^recv, Ti^recv = Tr^send := KDF2(Ci = Cr, e)
   2547   1.14  riastrad 	 */
   2548    1.1  riastrad 	if (initiator) {
   2549    1.1  riastrad 		wg_algo_kdf(wgs->wgs_tkey_send, wgs->wgs_tkey_recv, NULL,
   2550    1.1  riastrad 		    wgs->wgs_chaining_key, NULL, 0);
   2551    1.1  riastrad 	} else {
   2552    1.1  riastrad 		wg_algo_kdf(wgs->wgs_tkey_recv, wgs->wgs_tkey_send, NULL,
   2553    1.1  riastrad 		    wgs->wgs_chaining_key, NULL, 0);
   2554    1.1  riastrad 	}
   2555    1.1  riastrad 	WG_DUMP_HASH("wgs_tkey_send", wgs->wgs_tkey_send);
   2556    1.1  riastrad 	WG_DUMP_HASH("wgs_tkey_recv", wgs->wgs_tkey_recv);
   2557    1.1  riastrad }
   2558    1.1  riastrad 
   2559   1.22  riastrad static uint64_t
   2560   1.22  riastrad wg_session_get_send_counter(struct wg_session *wgs)
   2561   1.22  riastrad {
   2562   1.22  riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
   2563   1.22  riastrad 	return atomic_load_relaxed(&wgs->wgs_send_counter);
   2564   1.22  riastrad #else
   2565   1.22  riastrad 	uint64_t send_counter;
   2566   1.22  riastrad 
   2567   1.22  riastrad 	mutex_enter(&wgs->wgs_send_counter_lock);
   2568   1.22  riastrad 	send_counter = wgs->wgs_send_counter;
   2569   1.22  riastrad 	mutex_exit(&wgs->wgs_send_counter_lock);
   2570   1.22  riastrad 
   2571   1.22  riastrad 	return send_counter;
   2572   1.22  riastrad #endif
   2573   1.22  riastrad }
   2574   1.22  riastrad 
   2575   1.22  riastrad static uint64_t
   2576   1.22  riastrad wg_session_inc_send_counter(struct wg_session *wgs)
   2577   1.22  riastrad {
   2578   1.22  riastrad #ifdef __HAVE_ATOMIC64_LOADSTORE
   2579   1.22  riastrad 	return atomic_inc_64_nv(&wgs->wgs_send_counter) - 1;
   2580   1.22  riastrad #else
   2581   1.22  riastrad 	uint64_t send_counter;
   2582   1.22  riastrad 
   2583   1.22  riastrad 	mutex_enter(&wgs->wgs_send_counter_lock);
   2584   1.22  riastrad 	send_counter = wgs->wgs_send_counter++;
   2585   1.22  riastrad 	mutex_exit(&wgs->wgs_send_counter_lock);
   2586   1.22  riastrad 
   2587   1.22  riastrad 	return send_counter;
   2588   1.22  riastrad #endif
   2589   1.22  riastrad }
   2590   1.22  riastrad 
   2591    1.1  riastrad static void
   2592    1.1  riastrad wg_clear_states(struct wg_session *wgs)
   2593    1.1  riastrad {
   2594    1.1  riastrad 
   2595   1.49  riastrad 	KASSERT(mutex_owned(wgs->wgs_peer->wgp_lock));
   2596   1.49  riastrad 
   2597    1.1  riastrad 	wgs->wgs_send_counter = 0;
   2598    1.6  riastrad 	sliwin_reset(&wgs->wgs_recvwin->window);
   2599    1.1  riastrad 
   2600    1.1  riastrad #define wgs_clear(v)	explicit_memset(wgs->wgs_##v, 0, sizeof(wgs->wgs_##v))
   2601    1.1  riastrad 	wgs_clear(handshake_hash);
   2602    1.1  riastrad 	wgs_clear(chaining_key);
   2603    1.1  riastrad 	wgs_clear(ephemeral_key_pub);
   2604    1.1  riastrad 	wgs_clear(ephemeral_key_priv);
   2605    1.1  riastrad 	wgs_clear(ephemeral_key_peer);
   2606    1.1  riastrad #undef wgs_clear
   2607    1.1  riastrad }
   2608    1.1  riastrad 
   2609    1.1  riastrad static struct wg_session *
   2610    1.1  riastrad wg_lookup_session_by_index(struct wg_softc *wg, const uint32_t index,
   2611    1.1  riastrad     struct psref *psref)
   2612    1.1  riastrad {
   2613    1.1  riastrad 	struct wg_session *wgs;
   2614    1.1  riastrad 
   2615    1.1  riastrad 	int s = pserialize_read_enter();
   2616   1.37  riastrad 	wgs = thmap_get(wg->wg_sessions_byindex, &index, sizeof index);
   2617   1.49  riastrad 	if (wgs != NULL) {
   2618  1.120  riastrad 		KASSERTMSG(index == wgs->wgs_local_index,
   2619   1.94  riastrad 		    "index=%"PRIx32" wgs->wgs_local_index=%"PRIx32,
   2620  1.120  riastrad 		    index, wgs->wgs_local_index);
   2621    1.1  riastrad 		psref_acquire(psref, &wgs->wgs_psref, wg_psref_class);
   2622   1.49  riastrad 	}
   2623    1.1  riastrad 	pserialize_read_exit(s);
   2624    1.1  riastrad 
   2625    1.1  riastrad 	return wgs;
   2626    1.1  riastrad }
   2627    1.1  riastrad 
   2628    1.1  riastrad static void
   2629    1.1  riastrad wg_send_keepalive_msg(struct wg_peer *wgp, struct wg_session *wgs)
   2630    1.1  riastrad {
   2631    1.1  riastrad 	struct mbuf *m;
   2632    1.1  riastrad 
   2633    1.1  riastrad 	/*
   2634    1.1  riastrad 	 * [W] 6.5 Passive Keepalive
   2635    1.1  riastrad 	 * "A keepalive message is simply a transport data message with
   2636    1.1  riastrad 	 *  a zero-length encapsulated encrypted inner-packet."
   2637    1.1  riastrad 	 */
   2638   1.80  christos 	WG_TRACE("");
   2639    1.1  riastrad 	m = m_gethdr(M_WAIT, MT_DATA);
   2640    1.1  riastrad 	wg_send_data_msg(wgp, wgs, m);
   2641    1.1  riastrad }
   2642    1.1  riastrad 
   2643    1.1  riastrad static bool
   2644    1.1  riastrad wg_need_to_send_init_message(struct wg_session *wgs)
   2645    1.1  riastrad {
   2646    1.1  riastrad 	/*
   2647    1.1  riastrad 	 * [W] 6.2 Transport Message Limits
   2648    1.1  riastrad 	 * "if a peer is the initiator of a current secure session,
   2649    1.1  riastrad 	 *  WireGuard will send a handshake initiation message to begin
   2650    1.1  riastrad 	 *  a new secure session ... if after receiving a transport data
   2651    1.1  riastrad 	 *  message, the current secure session is (REJECT-AFTER-TIME 
   2652    1.1  riastrad 	 *  KEEPALIVE-TIMEOUT  REKEY-TIMEOUT) seconds old and it has
   2653    1.1  riastrad 	 *  not yet acted upon this event."
   2654    1.1  riastrad 	 */
   2655  1.104  riastrad 	return wgs->wgs_is_initiator &&
   2656  1.104  riastrad 	    atomic_load_relaxed(&wgs->wgs_time_last_data_sent) == 0 &&
   2657  1.117  riastrad 	    (time_uptime32 - wgs->wgs_time_established >=
   2658  1.104  riastrad 		(wg_reject_after_time - wg_keepalive_timeout -
   2659  1.104  riastrad 		    wg_rekey_timeout));
   2660    1.1  riastrad }
   2661    1.1  riastrad 
   2662    1.1  riastrad static void
   2663   1.65  christos wg_schedule_peer_task(struct wg_peer *wgp, unsigned int task)
   2664    1.1  riastrad {
   2665    1.1  riastrad 
   2666   1.55  riastrad 	mutex_enter(wgp->wgp_intr_lock);
   2667    1.1  riastrad 	WG_DLOG("tasks=%d, task=%d\n", wgp->wgp_tasks, task);
   2668   1.55  riastrad 	if (wgp->wgp_tasks == 0)
   2669   1.55  riastrad 		/*
   2670   1.55  riastrad 		 * XXX If the current CPU is already loaded -- e.g., if
   2671   1.55  riastrad 		 * there's already a bunch of handshakes queued up --
   2672   1.55  riastrad 		 * consider tossing this over to another CPU to
   2673   1.55  riastrad 		 * distribute the load.
   2674   1.55  riastrad 		 */
   2675   1.55  riastrad 		workqueue_enqueue(wg_wq, &wgp->wgp_work, NULL);
   2676   1.55  riastrad 	wgp->wgp_tasks |= task;
   2677   1.55  riastrad 	mutex_exit(wgp->wgp_intr_lock);
   2678    1.1  riastrad }
   2679    1.1  riastrad 
   2680    1.1  riastrad static void
   2681    1.1  riastrad wg_change_endpoint(struct wg_peer *wgp, const struct sockaddr *new)
   2682    1.1  riastrad {
   2683   1.49  riastrad 	struct wg_sockaddr *wgsa_prev;
   2684    1.1  riastrad 
   2685    1.1  riastrad 	WG_TRACE("Changing endpoint");
   2686    1.1  riastrad 
   2687    1.1  riastrad 	memcpy(wgp->wgp_endpoint0, new, new->sa_len);
   2688   1.49  riastrad 	wgsa_prev = wgp->wgp_endpoint;
   2689   1.49  riastrad 	atomic_store_release(&wgp->wgp_endpoint, wgp->wgp_endpoint0);
   2690   1.49  riastrad 	wgp->wgp_endpoint0 = wgsa_prev;
   2691   1.49  riastrad 	atomic_store_release(&wgp->wgp_endpoint_available, true);
   2692   1.49  riastrad 
   2693    1.1  riastrad 	wg_schedule_peer_task(wgp, WGP_TASK_ENDPOINT_CHANGED);
   2694    1.1  riastrad }
   2695    1.1  riastrad 
   2696    1.2  riastrad static bool
   2697   1.17  riastrad wg_validate_inner_packet(const char *packet, size_t decrypted_len, int *af)
   2698    1.1  riastrad {
   2699    1.2  riastrad 	uint16_t packet_len;
   2700   1.17  riastrad 	const struct ip *ip;
   2701    1.2  riastrad 
   2702   1.81  christos 	if (__predict_false(decrypted_len < sizeof(*ip))) {
   2703   1.81  christos 		WG_DLOG("decrypted_len=%zu < %zu\n", decrypted_len,
   2704   1.81  christos 		    sizeof(*ip));
   2705    1.2  riastrad 		return false;
   2706   1.81  christos 	}
   2707    1.1  riastrad 
   2708   1.17  riastrad 	ip = (const struct ip *)packet;
   2709    1.2  riastrad 	if (ip->ip_v == 4)
   2710    1.2  riastrad 		*af = AF_INET;
   2711    1.2  riastrad 	else if (ip->ip_v == 6)
   2712    1.2  riastrad 		*af = AF_INET6;
   2713   1.81  christos 	else {
   2714   1.81  christos 		WG_DLOG("ip_v=%d\n", ip->ip_v);
   2715    1.2  riastrad 		return false;
   2716   1.81  christos 	}
   2717    1.2  riastrad 
   2718    1.2  riastrad 	WG_DLOG("af=%d\n", *af);
   2719    1.1  riastrad 
   2720   1.62  riastrad 	switch (*af) {
   2721   1.62  riastrad #ifdef INET
   2722   1.62  riastrad 	case AF_INET:
   2723    1.2  riastrad 		packet_len = ntohs(ip->ip_len);
   2724   1.62  riastrad 		break;
   2725   1.62  riastrad #endif
   2726   1.62  riastrad #ifdef INET6
   2727   1.62  riastrad 	case AF_INET6: {
   2728   1.17  riastrad 		const struct ip6_hdr *ip6;
   2729    1.1  riastrad 
   2730   1.81  christos 		if (__predict_false(decrypted_len < sizeof(*ip6))) {
   2731   1.81  christos 			WG_DLOG("decrypted_len=%zu < %zu\n", decrypted_len,
   2732   1.81  christos 			    sizeof(*ip6));
   2733    1.2  riastrad 			return false;
   2734   1.81  christos 		}
   2735    1.1  riastrad 
   2736   1.17  riastrad 		ip6 = (const struct ip6_hdr *)packet;
   2737   1.81  christos 		packet_len = sizeof(*ip6) + ntohs(ip6->ip6_plen);
   2738   1.62  riastrad 		break;
   2739   1.62  riastrad 	}
   2740   1.62  riastrad #endif
   2741   1.62  riastrad 	default:
   2742   1.62  riastrad 		return false;
   2743    1.1  riastrad 	}
   2744    1.2  riastrad 
   2745   1.81  christos 	if (packet_len > decrypted_len) {
   2746   1.81  christos 		WG_DLOG("packet_len %u > decrypted_len %zu\n", packet_len,
   2747   1.81  christos 		    decrypted_len);
   2748    1.1  riastrad 		return false;
   2749   1.81  christos 	}
   2750    1.1  riastrad 
   2751    1.1  riastrad 	return true;
   2752    1.1  riastrad }
   2753    1.1  riastrad 
   2754    1.1  riastrad static bool
   2755    1.1  riastrad wg_validate_route(struct wg_softc *wg, struct wg_peer *wgp_expected,
   2756    1.1  riastrad     int af, char *packet)
   2757    1.1  riastrad {
   2758    1.1  riastrad 	struct sockaddr_storage ss;
   2759    1.1  riastrad 	struct sockaddr *sa;
   2760    1.1  riastrad 	struct psref psref;
   2761    1.1  riastrad 	struct wg_peer *wgp;
   2762    1.1  riastrad 	bool ok;
   2763    1.1  riastrad 
   2764    1.1  riastrad 	/*
   2765    1.1  riastrad 	 * II CRYPTOKEY ROUTING
   2766   1.14  riastrad 	 * "it will only accept it if its source IP resolves in the
   2767   1.14  riastrad 	 *  table to the public key used in the secure session for
   2768   1.14  riastrad 	 *  decrypting it."
   2769    1.1  riastrad 	 */
   2770    1.1  riastrad 
   2771  1.109  riastrad 	switch (af) {
   2772  1.109  riastrad #ifdef INET
   2773  1.109  riastrad 	case AF_INET: {
   2774   1.17  riastrad 		const struct ip *ip = (const struct ip *)packet;
   2775    1.1  riastrad 		struct sockaddr_in *sin = (struct sockaddr_in *)&ss;
   2776    1.1  riastrad 		sockaddr_in_init(sin, &ip->ip_src, 0);
   2777    1.1  riastrad 		sa = sintosa(sin);
   2778  1.109  riastrad 		break;
   2779  1.109  riastrad 	}
   2780  1.109  riastrad #endif
   2781    1.1  riastrad #ifdef INET6
   2782  1.109  riastrad 	case AF_INET6: {
   2783   1.17  riastrad 		const struct ip6_hdr *ip6 = (const struct ip6_hdr *)packet;
   2784    1.1  riastrad 		struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)&ss;
   2785    1.1  riastrad 		sockaddr_in6_init(sin6, &ip6->ip6_src, 0, 0, 0);
   2786    1.1  riastrad 		sa = sin6tosa(sin6);
   2787  1.109  riastrad 		break;
   2788  1.109  riastrad 	}
   2789    1.1  riastrad #endif
   2790  1.109  riastrad 	default:
   2791  1.109  riastrad 		__USE(ss);
   2792  1.109  riastrad 		return false;
   2793    1.1  riastrad 	}
   2794    1.1  riastrad 
   2795    1.1  riastrad 	wgp = wg_pick_peer_by_sa(wg, sa, &psref);
   2796    1.1  riastrad 	ok = (wgp == wgp_expected);
   2797    1.1  riastrad 	if (wgp != NULL)
   2798    1.1  riastrad 		wg_put_peer(wgp, &psref);
   2799    1.1  riastrad 
   2800    1.1  riastrad 	return ok;
   2801    1.1  riastrad }
   2802    1.1  riastrad 
   2803    1.1  riastrad static void
   2804    1.1  riastrad wg_session_dtor_timer(void *arg)
   2805    1.1  riastrad {
   2806    1.1  riastrad 	struct wg_peer *wgp = arg;
   2807    1.1  riastrad 
   2808    1.1  riastrad 	WG_TRACE("enter");
   2809    1.1  riastrad 
   2810  1.100  riastrad 	wg_schedule_session_dtor_timer(wgp);
   2811    1.1  riastrad 	wg_schedule_peer_task(wgp, WGP_TASK_DESTROY_PREV_SESSION);
   2812    1.1  riastrad }
   2813    1.1  riastrad 
   2814    1.1  riastrad static void
   2815    1.1  riastrad wg_schedule_session_dtor_timer(struct wg_peer *wgp)
   2816    1.1  riastrad {
   2817    1.1  riastrad 
   2818  1.100  riastrad 	/*
   2819  1.100  riastrad 	 * If the periodic session destructor is already pending to
   2820  1.100  riastrad 	 * handle the previous session, that's fine -- leave it in
   2821  1.100  riastrad 	 * place; it will be scheduled again.
   2822  1.100  riastrad 	 */
   2823  1.100  riastrad 	if (callout_pending(&wgp->wgp_session_dtor_timer)) {
   2824  1.100  riastrad 		WG_DLOG("session dtor already pending\n");
   2825  1.100  riastrad 		return;
   2826  1.100  riastrad 	}
   2827  1.100  riastrad 
   2828  1.100  riastrad 	WG_DLOG("scheduling session dtor in %u secs\n", wg_reject_after_time);
   2829  1.100  riastrad 	callout_schedule(&wgp->wgp_session_dtor_timer,
   2830  1.100  riastrad 	    wg_reject_after_time*hz);
   2831    1.1  riastrad }
   2832    1.1  riastrad 
   2833    1.1  riastrad static bool
   2834    1.1  riastrad sockaddr_port_match(const struct sockaddr *sa1, const struct sockaddr *sa2)
   2835    1.1  riastrad {
   2836    1.1  riastrad 	if (sa1->sa_family != sa2->sa_family)
   2837    1.1  riastrad 		return false;
   2838    1.1  riastrad 
   2839    1.1  riastrad 	switch (sa1->sa_family) {
   2840   1.62  riastrad #ifdef INET
   2841    1.1  riastrad 	case AF_INET:
   2842    1.1  riastrad 		return satocsin(sa1)->sin_port == satocsin(sa2)->sin_port;
   2843   1.62  riastrad #endif
   2844   1.62  riastrad #ifdef INET6
   2845    1.1  riastrad 	case AF_INET6:
   2846    1.1  riastrad 		return satocsin6(sa1)->sin6_port == satocsin6(sa2)->sin6_port;
   2847   1.62  riastrad #endif
   2848    1.1  riastrad 	default:
   2849   1.62  riastrad 		return false;
   2850    1.1  riastrad 	}
   2851    1.1  riastrad }
   2852    1.1  riastrad 
   2853    1.1  riastrad static void
   2854    1.1  riastrad wg_update_endpoint_if_necessary(struct wg_peer *wgp,
   2855    1.1  riastrad     const struct sockaddr *src)
   2856    1.1  riastrad {
   2857   1.47  riastrad 	struct wg_sockaddr *wgsa;
   2858   1.47  riastrad 	struct psref psref;
   2859   1.47  riastrad 
   2860   1.47  riastrad 	wgsa = wg_get_endpoint_sa(wgp, &psref);
   2861    1.1  riastrad 
   2862    1.1  riastrad #ifdef WG_DEBUG_LOG
   2863    1.1  riastrad 	char oldaddr[128], newaddr[128];
   2864   1.47  riastrad 	sockaddr_format(wgsatosa(wgsa), oldaddr, sizeof(oldaddr));
   2865    1.1  riastrad 	sockaddr_format(src, newaddr, sizeof(newaddr));
   2866    1.1  riastrad 	WG_DLOG("old=%s, new=%s\n", oldaddr, newaddr);
   2867    1.1  riastrad #endif
   2868    1.1  riastrad 
   2869    1.1  riastrad 	/*
   2870    1.1  riastrad 	 * III: "Since the packet has authenticated correctly, the source IP of
   2871    1.1  riastrad 	 * the outer UDP/IP packet is used to update the endpoint for peer..."
   2872    1.1  riastrad 	 */
   2873   1.47  riastrad 	if (__predict_false(sockaddr_cmp(src, wgsatosa(wgsa)) != 0 ||
   2874   1.47  riastrad 		!sockaddr_port_match(src, wgsatosa(wgsa)))) {
   2875    1.1  riastrad 		/* XXX We can't change the endpoint twice in a short period */
   2876   1.49  riastrad 		if (atomic_swap_uint(&wgp->wgp_endpoint_changing, 1) == 0) {
   2877    1.1  riastrad 			wg_change_endpoint(wgp, src);
   2878    1.1  riastrad 		}
   2879    1.1  riastrad 	}
   2880   1.47  riastrad 
   2881   1.47  riastrad 	wg_put_sa(wgp, wgsa, &psref);
   2882    1.1  riastrad }
   2883    1.1  riastrad 
   2884   1.63  riastrad static void __noinline
   2885    1.1  riastrad wg_handle_msg_data(struct wg_softc *wg, struct mbuf *m,
   2886    1.1  riastrad     const struct sockaddr *src)
   2887    1.1  riastrad {
   2888    1.2  riastrad 	struct wg_msg_data *wgmd;
   2889    1.1  riastrad 	char *encrypted_buf = NULL, *decrypted_buf;
   2890    1.1  riastrad 	size_t encrypted_len, decrypted_len;
   2891    1.1  riastrad 	struct wg_session *wgs;
   2892    1.1  riastrad 	struct wg_peer *wgp;
   2893   1.49  riastrad 	int state;
   2894  1.104  riastrad 	uint32_t age;
   2895    1.1  riastrad 	size_t mlen;
   2896    1.1  riastrad 	struct psref psref;
   2897    1.1  riastrad 	int error, af;
   2898    1.1  riastrad 	bool success, free_encrypted_buf = false, ok;
   2899    1.1  riastrad 	struct mbuf *n;
   2900    1.1  riastrad 
   2901   1.26  riastrad 	KASSERT(m->m_len >= sizeof(struct wg_msg_data));
   2902    1.2  riastrad 	wgmd = mtod(m, struct wg_msg_data *);
   2903    1.2  riastrad 
   2904   1.39  riastrad 	KASSERT(wgmd->wgmd_type == htole32(WG_MSG_TYPE_DATA));
   2905    1.1  riastrad 	WG_TRACE("data");
   2906    1.1  riastrad 
   2907   1.49  riastrad 	/* Find the putative session, or drop.  */
   2908    1.1  riastrad 	wgs = wg_lookup_session_by_index(wg, wgmd->wgmd_receiver, &psref);
   2909    1.1  riastrad 	if (wgs == NULL) {
   2910    1.1  riastrad 		WG_TRACE("No session found");
   2911    1.1  riastrad 		m_freem(m);
   2912    1.1  riastrad 		return;
   2913    1.1  riastrad 	}
   2914   1.49  riastrad 
   2915   1.49  riastrad 	/*
   2916   1.49  riastrad 	 * We are only ready to handle data when in INIT_PASSIVE,
   2917   1.49  riastrad 	 * ESTABLISHED, or DESTROYING.  All transitions out of that
   2918   1.49  riastrad 	 * state dissociate the session index and drain psrefs.
   2919   1.94  riastrad 	 *
   2920   1.94  riastrad 	 * atomic_load_acquire matches atomic_store_release in either
   2921   1.94  riastrad 	 * wg_handle_msg_init or wg_handle_msg_resp.  (The transition
   2922   1.94  riastrad 	 * INIT_PASSIVE to ESTABLISHED in wg_task_establish_session
   2923   1.94  riastrad 	 * doesn't make a difference for this rx path.)
   2924   1.49  riastrad 	 */
   2925   1.94  riastrad 	state = atomic_load_acquire(&wgs->wgs_state);
   2926   1.49  riastrad 	switch (state) {
   2927   1.49  riastrad 	case WGS_STATE_UNKNOWN:
   2928   1.49  riastrad 	case WGS_STATE_INIT_ACTIVE:
   2929   1.49  riastrad 		WG_TRACE("not yet ready for data");
   2930   1.49  riastrad 		goto out;
   2931   1.49  riastrad 	case WGS_STATE_INIT_PASSIVE:
   2932   1.49  riastrad 	case WGS_STATE_ESTABLISHED:
   2933   1.49  riastrad 	case WGS_STATE_DESTROYING:
   2934   1.49  riastrad 		break;
   2935   1.49  riastrad 	}
   2936   1.49  riastrad 
   2937   1.49  riastrad 	/*
   2938  1.101  riastrad 	 * Reject if the session is too old.
   2939  1.101  riastrad 	 */
   2940  1.117  riastrad 	age = time_uptime32 - wgs->wgs_time_established;
   2941  1.101  riastrad 	if (__predict_false(age >= wg_reject_after_time)) {
   2942  1.104  riastrad 		WG_DLOG("session %"PRIx32" too old, %"PRIu32" sec\n",
   2943  1.104  riastrad 		    wgmd->wgmd_receiver, age);
   2944  1.101  riastrad 	       goto out;
   2945  1.101  riastrad 	}
   2946  1.101  riastrad 
   2947  1.101  riastrad 	/*
   2948   1.49  riastrad 	 * Get the peer, for rate-limited logs (XXX MPSAFE, dtrace) and
   2949   1.49  riastrad 	 * to update the endpoint if authentication succeeds.
   2950   1.49  riastrad 	 */
   2951    1.1  riastrad 	wgp = wgs->wgs_peer;
   2952    1.1  riastrad 
   2953   1.49  riastrad 	/*
   2954   1.49  riastrad 	 * Reject outrageously wrong sequence numbers before doing any
   2955   1.49  riastrad 	 * crypto work or taking any locks.
   2956   1.49  riastrad 	 */
   2957    1.6  riastrad 	error = sliwin_check_fast(&wgs->wgs_recvwin->window,
   2958   1.39  riastrad 	    le64toh(wgmd->wgmd_counter));
   2959    1.6  riastrad 	if (error) {
   2960    1.6  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   2961   1.76  jakllsch 		    "%s: peer %s: out-of-window packet: %"PRIu64"\n",
   2962   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name,
   2963   1.39  riastrad 		    le64toh(wgmd->wgmd_counter));
   2964    1.6  riastrad 		goto out;
   2965    1.6  riastrad 	}
   2966    1.6  riastrad 
   2967   1.49  riastrad 	/* Ensure the payload and authenticator are contiguous.  */
   2968    1.1  riastrad 	mlen = m_length(m);
   2969    1.1  riastrad 	encrypted_len = mlen - sizeof(*wgmd);
   2970    1.2  riastrad 	if (encrypted_len < WG_AUTHTAG_LEN) {
   2971   1.87       kre 		WG_DLOG("Short encrypted_len: %zu\n", encrypted_len);
   2972    1.2  riastrad 		goto out;
   2973    1.2  riastrad 	}
   2974    1.1  riastrad 	success = m_ensure_contig(&m, sizeof(*wgmd) + encrypted_len);
   2975    1.1  riastrad 	if (success) {
   2976    1.1  riastrad 		encrypted_buf = mtod(m, char *) + sizeof(*wgmd);
   2977    1.1  riastrad 	} else {
   2978    1.1  riastrad 		encrypted_buf = kmem_intr_alloc(encrypted_len, KM_NOSLEEP);
   2979    1.1  riastrad 		if (encrypted_buf == NULL) {
   2980    1.1  riastrad 			WG_DLOG("failed to allocate encrypted_buf\n");
   2981    1.1  riastrad 			goto out;
   2982    1.1  riastrad 		}
   2983    1.2  riastrad 		m_copydata(m, sizeof(*wgmd), encrypted_len, encrypted_buf);
   2984    1.1  riastrad 		free_encrypted_buf = true;
   2985    1.1  riastrad 	}
   2986    1.1  riastrad 	/* m_ensure_contig may change m regardless of its result */
   2987   1.27  riastrad 	KASSERT(m->m_len >= sizeof(*wgmd));
   2988    1.1  riastrad 	wgmd = mtod(m, struct wg_msg_data *);
   2989    1.1  riastrad 
   2990   1.49  riastrad 	/*
   2991   1.49  riastrad 	 * Get a buffer for the plaintext.  Add WG_AUTHTAG_LEN to avoid
   2992   1.49  riastrad 	 * a zero-length buffer (XXX).  Drop if plaintext is longer
   2993   1.49  riastrad 	 * than MCLBYTES (XXX).
   2994   1.49  riastrad 	 */
   2995    1.2  riastrad 	decrypted_len = encrypted_len - WG_AUTHTAG_LEN;
   2996    1.2  riastrad 	if (decrypted_len > MCLBYTES) {
   2997    1.2  riastrad 		/* FIXME handle larger data than MCLBYTES */
   2998    1.2  riastrad 		WG_DLOG("couldn't handle larger data than MCLBYTES\n");
   2999    1.2  riastrad 		goto out;
   3000    1.2  riastrad 	}
   3001   1.14  riastrad 	n = wg_get_mbuf(0, decrypted_len + WG_AUTHTAG_LEN);
   3002    1.1  riastrad 	if (n == NULL) {
   3003    1.1  riastrad 		WG_DLOG("wg_get_mbuf failed\n");
   3004    1.1  riastrad 		goto out;
   3005    1.1  riastrad 	}
   3006    1.1  riastrad 	decrypted_buf = mtod(n, char *);
   3007    1.1  riastrad 
   3008   1.49  riastrad 	/* Decrypt and verify the packet.  */
   3009   1.87       kre 	WG_DLOG("mlen=%zu, encrypted_len=%zu\n", mlen, encrypted_len);
   3010    1.1  riastrad 	error = wg_algo_aead_dec(decrypted_buf,
   3011    1.1  riastrad 	    encrypted_len - WG_AUTHTAG_LEN /* can be 0 */,
   3012   1.39  riastrad 	    wgs->wgs_tkey_recv, le64toh(wgmd->wgmd_counter), encrypted_buf,
   3013    1.1  riastrad 	    encrypted_len, NULL, 0);
   3014    1.1  riastrad 	if (error != 0) {
   3015    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   3016   1.76  jakllsch 		    "%s: peer %s: failed to wg_algo_aead_dec\n",
   3017   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name);
   3018    1.1  riastrad 		m_freem(n);
   3019    1.1  riastrad 		goto out;
   3020    1.1  riastrad 	}
   3021    1.1  riastrad 	WG_DLOG("outsize=%u\n", (u_int)decrypted_len);
   3022    1.1  riastrad 
   3023   1.49  riastrad 	/* Packet is genuine.  Reject it if a replay or just too old.  */
   3024    1.6  riastrad 	mutex_enter(&wgs->wgs_recvwin->lock);
   3025    1.6  riastrad 	error = sliwin_update(&wgs->wgs_recvwin->window,
   3026   1.39  riastrad 	    le64toh(wgmd->wgmd_counter));
   3027    1.6  riastrad 	mutex_exit(&wgs->wgs_recvwin->lock);
   3028    1.6  riastrad 	if (error) {
   3029    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   3030   1.76  jakllsch 		    "%s: peer %s: replay or out-of-window packet: %"PRIu64"\n",
   3031   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name,
   3032   1.39  riastrad 		    le64toh(wgmd->wgmd_counter));
   3033    1.1  riastrad 		m_freem(n);
   3034    1.1  riastrad 		goto out;
   3035    1.1  riastrad 	}
   3036    1.1  riastrad 
   3037   1.49  riastrad 	/* We're done with m now; free it and chuck the pointers.  */
   3038    1.1  riastrad 	m_freem(m);
   3039    1.1  riastrad 	m = NULL;
   3040    1.1  riastrad 	wgmd = NULL;
   3041    1.1  riastrad 
   3042   1.49  riastrad 	/*
   3043  1.103  riastrad 	 * The packet is genuine.  Update the peer's endpoint if the
   3044  1.103  riastrad 	 * source address changed.
   3045  1.103  riastrad 	 *
   3046  1.103  riastrad 	 * XXX How to prevent DoS by replaying genuine packets from the
   3047  1.103  riastrad 	 * wrong source address?
   3048  1.103  riastrad 	 */
   3049  1.103  riastrad 	wg_update_endpoint_if_necessary(wgp, src);
   3050  1.103  riastrad 
   3051  1.103  riastrad 	/*
   3052   1.49  riastrad 	 * Validate the encapsulated packet header and get the address
   3053   1.49  riastrad 	 * family, or drop.
   3054   1.49  riastrad 	 */
   3055    1.2  riastrad 	ok = wg_validate_inner_packet(decrypted_buf, decrypted_len, &af);
   3056    1.1  riastrad 	if (!ok) {
   3057    1.1  riastrad 		m_freem(n);
   3058  1.102  riastrad 		goto update_state;
   3059    1.1  riastrad 	}
   3060    1.1  riastrad 
   3061   1.49  riastrad 	/* Submit it into our network stack if routable.  */
   3062    1.1  riastrad 	ok = wg_validate_route(wg, wgp, af, decrypted_buf);
   3063    1.1  riastrad 	if (ok) {
   3064    1.1  riastrad 		wg->wg_ops->input(&wg->wg_if, n, af);
   3065    1.1  riastrad 	} else {
   3066   1.76  jakllsch 		char addrstr[INET6_ADDRSTRLEN];
   3067   1.76  jakllsch 		memset(addrstr, 0, sizeof(addrstr));
   3068  1.109  riastrad 		switch (af) {
   3069  1.109  riastrad #ifdef INET
   3070  1.109  riastrad 		case AF_INET: {
   3071   1.76  jakllsch 			const struct ip *ip = (const struct ip *)decrypted_buf;
   3072   1.76  jakllsch 			IN_PRINT(addrstr, &ip->ip_src);
   3073  1.109  riastrad 			break;
   3074  1.109  riastrad 		}
   3075  1.109  riastrad #endif
   3076   1.76  jakllsch #ifdef INET6
   3077  1.109  riastrad 		case AF_INET6: {
   3078   1.76  jakllsch 			const struct ip6_hdr *ip6 =
   3079   1.76  jakllsch 			    (const struct ip6_hdr *)decrypted_buf;
   3080   1.76  jakllsch 			IN6_PRINT(addrstr, &ip6->ip6_src);
   3081  1.109  riastrad 			break;
   3082  1.109  riastrad 		}
   3083   1.76  jakllsch #endif
   3084  1.109  riastrad 		default:
   3085  1.109  riastrad 			panic("invalid af=%d", af);
   3086   1.76  jakllsch 		}
   3087    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   3088   1.76  jakllsch 		    "%s: peer %s: invalid source address (%s)\n",
   3089   1.76  jakllsch 		    if_name(&wg->wg_if), wgp->wgp_name, addrstr);
   3090    1.1  riastrad 		m_freem(n);
   3091    1.1  riastrad 		/*
   3092    1.1  riastrad 		 * The inner address is invalid however the session is valid
   3093    1.1  riastrad 		 * so continue the session processing below.
   3094    1.1  riastrad 		 */
   3095    1.1  riastrad 	}
   3096    1.1  riastrad 	n = NULL;
   3097    1.1  riastrad 
   3098  1.102  riastrad update_state:
   3099   1.49  riastrad 	/* Update the state machine if necessary.  */
   3100   1.49  riastrad 	if (__predict_false(state == WGS_STATE_INIT_PASSIVE)) {
   3101   1.49  riastrad 		/*
   3102   1.49  riastrad 		 * We were waiting for the initiator to send their
   3103   1.49  riastrad 		 * first data transport message, and that has happened.
   3104   1.49  riastrad 		 * Schedule a task to establish this session.
   3105   1.49  riastrad 		 */
   3106   1.49  riastrad 		wg_schedule_peer_task(wgp, WGP_TASK_ESTABLISH_SESSION);
   3107    1.1  riastrad 	} else {
   3108    1.1  riastrad 		if (__predict_false(wg_need_to_send_init_message(wgs))) {
   3109    1.1  riastrad 			wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
   3110    1.1  riastrad 		}
   3111    1.1  riastrad 		/*
   3112    1.1  riastrad 		 * [W] 6.5 Passive Keepalive
   3113    1.1  riastrad 		 * "If a peer has received a validly-authenticated transport
   3114    1.1  riastrad 		 *  data message (section 5.4.6), but does not have any packets
   3115    1.1  riastrad 		 *  itself to send back for KEEPALIVE-TIMEOUT seconds, it sends
   3116    1.1  riastrad 		 *  a keepalive message."
   3117    1.1  riastrad 		 */
   3118  1.104  riastrad 		const uint32_t now = time_uptime32;
   3119  1.104  riastrad 		const uint32_t time_last_data_sent =
   3120  1.104  riastrad 		    atomic_load_relaxed(&wgs->wgs_time_last_data_sent);
   3121  1.104  riastrad 		WG_DLOG("time_uptime32=%"PRIu32
   3122  1.104  riastrad 		    " wgs_time_last_data_sent=%"PRIu32"\n",
   3123  1.104  riastrad 		    now, time_last_data_sent);
   3124  1.104  riastrad 		if ((now - time_last_data_sent) >= wg_keepalive_timeout) {
   3125    1.1  riastrad 			WG_TRACE("Schedule sending keepalive message");
   3126    1.1  riastrad 			/*
   3127    1.1  riastrad 			 * We can't send a keepalive message here to avoid
   3128    1.1  riastrad 			 * a deadlock;  we already hold the solock of a socket
   3129    1.1  riastrad 			 * that is used to send the message.
   3130    1.1  riastrad 			 */
   3131   1.14  riastrad 			wg_schedule_peer_task(wgp,
   3132   1.14  riastrad 			    WGP_TASK_SEND_KEEPALIVE_MESSAGE);
   3133    1.1  riastrad 		}
   3134    1.1  riastrad 	}
   3135    1.1  riastrad out:
   3136    1.1  riastrad 	wg_put_session(wgs, &psref);
   3137   1.79       rin 	m_freem(m);
   3138    1.1  riastrad 	if (free_encrypted_buf)
   3139    1.1  riastrad 		kmem_intr_free(encrypted_buf, encrypted_len);
   3140    1.1  riastrad }
   3141    1.1  riastrad 
   3142   1.63  riastrad static void __noinline
   3143    1.1  riastrad wg_handle_msg_cookie(struct wg_softc *wg, const struct wg_msg_cookie *wgmc)
   3144    1.1  riastrad {
   3145    1.1  riastrad 	struct wg_session *wgs;
   3146    1.1  riastrad 	struct wg_peer *wgp;
   3147    1.1  riastrad 	struct psref psref;
   3148    1.1  riastrad 	int error;
   3149    1.1  riastrad 	uint8_t key[WG_HASH_LEN];
   3150    1.1  riastrad 	uint8_t cookie[WG_COOKIE_LEN];
   3151    1.1  riastrad 
   3152    1.1  riastrad 	WG_TRACE("cookie msg received");
   3153   1.49  riastrad 
   3154   1.49  riastrad 	/* Find the putative session.  */
   3155    1.1  riastrad 	wgs = wg_lookup_session_by_index(wg, wgmc->wgmc_receiver, &psref);
   3156    1.1  riastrad 	if (wgs == NULL) {
   3157    1.1  riastrad 		WG_TRACE("No session found");
   3158    1.1  riastrad 		return;
   3159    1.1  riastrad 	}
   3160   1.49  riastrad 
   3161   1.49  riastrad 	/* Lock the peer so we can update the cookie state.  */
   3162    1.1  riastrad 	wgp = wgs->wgs_peer;
   3163   1.49  riastrad 	mutex_enter(wgp->wgp_lock);
   3164    1.1  riastrad 
   3165    1.1  riastrad 	if (!wgp->wgp_last_sent_mac1_valid) {
   3166    1.1  riastrad 		WG_TRACE("No valid mac1 sent (or expired)");
   3167    1.1  riastrad 		goto out;
   3168    1.1  riastrad 	}
   3169    1.1  riastrad 
   3170   1.94  riastrad 	/*
   3171   1.94  riastrad 	 * wgp_last_sent_mac1_valid is only set to true when we are
   3172   1.94  riastrad 	 * transitioning to INIT_ACTIVE or INIT_PASSIVE, and always
   3173   1.94  riastrad 	 * cleared on transition out of them.
   3174   1.94  riastrad 	 */
   3175   1.94  riastrad 	KASSERTMSG((wgs->wgs_state == WGS_STATE_INIT_ACTIVE ||
   3176   1.94  riastrad 		wgs->wgs_state == WGS_STATE_INIT_PASSIVE),
   3177   1.94  riastrad 	    "state=%d", wgs->wgs_state);
   3178   1.94  riastrad 
   3179   1.49  riastrad 	/* Decrypt the cookie and store it for later handshake retry.  */
   3180    1.1  riastrad 	wg_algo_mac_cookie(key, sizeof(key), wgp->wgp_pubkey,
   3181    1.1  riastrad 	    sizeof(wgp->wgp_pubkey));
   3182   1.36  riastrad 	error = wg_algo_xaead_dec(cookie, sizeof(cookie), key,
   3183    1.1  riastrad 	    wgmc->wgmc_cookie, sizeof(wgmc->wgmc_cookie),
   3184    1.1  riastrad 	    wgp->wgp_last_sent_mac1, sizeof(wgp->wgp_last_sent_mac1),
   3185    1.1  riastrad 	    wgmc->wgmc_salt);
   3186    1.1  riastrad 	if (error != 0) {
   3187    1.1  riastrad 		WG_LOG_RATECHECK(&wgp->wgp_ppsratecheck, LOG_DEBUG,
   3188   1.76  jakllsch 		    "%s: peer %s: wg_algo_aead_dec for cookie failed: "
   3189   1.76  jakllsch 		    "error=%d\n", if_name(&wg->wg_if), wgp->wgp_name, error);
   3190    1.1  riastrad 		goto out;
   3191    1.1  riastrad 	}
   3192    1.1  riastrad 	/*
   3193    1.1  riastrad 	 * [W] 6.6: Interaction with Cookie Reply System
   3194    1.1  riastrad 	 * "it should simply store the decrypted cookie value from the cookie
   3195    1.1  riastrad 	 *  reply message, and wait for the expiration of the REKEY-TIMEOUT
   3196    1.1  riastrad 	 *  timer for retrying a handshake initiation message."
   3197    1.1  riastrad 	 */
   3198    1.1  riastrad 	wgp->wgp_latest_cookie_time = time_uptime;
   3199    1.1  riastrad 	memcpy(wgp->wgp_latest_cookie, cookie, sizeof(wgp->wgp_latest_cookie));
   3200    1.1  riastrad out:
   3201   1.49  riastrad 	mutex_exit(wgp->wgp_lock);
   3202    1.1  riastrad 	wg_put_session(wgs, &psref);
   3203    1.1  riastrad }
   3204    1.1  riastrad 
   3205   1.26  riastrad static struct mbuf *
   3206   1.26  riastrad wg_validate_msg_header(struct wg_softc *wg, struct mbuf *m)
   3207    1.2  riastrad {
   3208   1.26  riastrad 	struct wg_msg wgm;
   3209   1.26  riastrad 	size_t mbuflen;
   3210   1.26  riastrad 	size_t msglen;
   3211    1.2  riastrad 
   3212   1.26  riastrad 	/*
   3213   1.26  riastrad 	 * Get the mbuf chain length.  It is already guaranteed, by
   3214   1.26  riastrad 	 * wg_overudp_cb, to be large enough for a struct wg_msg.
   3215   1.26  riastrad 	 */
   3216   1.26  riastrad 	mbuflen = m_length(m);
   3217   1.26  riastrad 	KASSERT(mbuflen >= sizeof(struct wg_msg));
   3218    1.2  riastrad 
   3219   1.26  riastrad 	/*
   3220   1.26  riastrad 	 * Copy the message header (32-bit message type) out -- we'll
   3221   1.26  riastrad 	 * worry about contiguity and alignment later.
   3222   1.26  riastrad 	 */
   3223   1.26  riastrad 	m_copydata(m, 0, sizeof(wgm), &wgm);
   3224   1.39  riastrad 	switch (le32toh(wgm.wgm_type)) {
   3225    1.2  riastrad 	case WG_MSG_TYPE_INIT:
   3226   1.26  riastrad 		msglen = sizeof(struct wg_msg_init);
   3227    1.2  riastrad 		break;
   3228    1.2  riastrad 	case WG_MSG_TYPE_RESP:
   3229   1.26  riastrad 		msglen = sizeof(struct wg_msg_resp);
   3230    1.2  riastrad 		break;
   3231    1.2  riastrad 	case WG_MSG_TYPE_COOKIE:
   3232   1.26  riastrad 		msglen = sizeof(struct wg_msg_cookie);
   3233    1.2  riastrad 		break;
   3234    1.2  riastrad 	case WG_MSG_TYPE_DATA:
   3235   1.26  riastrad 		msglen = sizeof(struct wg_msg_data);
   3236    1.2  riastrad 		break;
   3237    1.2  riastrad 	default:
   3238    1.2  riastrad 		WG_LOG_RATECHECK(&wg->wg_ppsratecheck, LOG_DEBUG,
   3239   1.76  jakllsch 		    "%s: Unexpected msg type: %u\n", if_name(&wg->wg_if),
   3240   1.76  jakllsch 		    le32toh(wgm.wgm_type));
   3241   1.26  riastrad 		goto error;
   3242   1.26  riastrad 	}
   3243   1.26  riastrad 
   3244   1.26  riastrad 	/* Verify the mbuf chain is long enough for this type of message.  */
   3245   1.26  riastrad 	if (__predict_false(mbuflen < msglen)) {
   3246   1.87       kre 		WG_DLOG("Invalid msg size: mbuflen=%zu type=%u\n", mbuflen,
   3247   1.39  riastrad 		    le32toh(wgm.wgm_type));
   3248   1.26  riastrad 		goto error;
   3249   1.26  riastrad 	}
   3250   1.26  riastrad 
   3251   1.26  riastrad 	/* Make the message header contiguous if necessary.  */
   3252   1.26  riastrad 	if (__predict_false(m->m_len < msglen)) {
   3253   1.26  riastrad 		m = m_pullup(m, msglen);
   3254   1.26  riastrad 		if (m == NULL)
   3255   1.26  riastrad 			return NULL;
   3256    1.2  riastrad 	}
   3257    1.2  riastrad 
   3258   1.26  riastrad 	return m;
   3259   1.26  riastrad 
   3260   1.26  riastrad error:
   3261   1.26  riastrad 	m_freem(m);
   3262   1.26  riastrad 	return NULL;
   3263    1.2  riastrad }
   3264    1.2  riastrad 
   3265    1.1  riastrad static void
   3266   1.14  riastrad wg_handle_packet(struct wg_softc *wg, struct mbuf *m,
   3267   1.14  riastrad     const struct sockaddr *src)
   3268    1.1  riastrad {
   3269    1.1  riastrad 	struct wg_msg *wgm;
   3270    1.2  riastrad 
   3271   1.78  riastrad 	KASSERT(curlwp->l_pflag & LP_BOUND);
   3272   1.78  riastrad 
   3273   1.26  riastrad 	m = wg_validate_msg_header(wg, m);
   3274   1.26  riastrad 	if (__predict_false(m == NULL))
   3275    1.2  riastrad 		return;
   3276    1.1  riastrad 
   3277   1.26  riastrad 	KASSERT(m->m_len >= sizeof(struct wg_msg));
   3278    1.1  riastrad 	wgm = mtod(m, struct wg_msg *);
   3279   1.39  riastrad 	switch (le32toh(wgm->wgm_type)) {
   3280    1.1  riastrad 	case WG_MSG_TYPE_INIT:
   3281    1.1  riastrad 		wg_handle_msg_init(wg, (struct wg_msg_init *)wgm, src);
   3282    1.1  riastrad 		break;
   3283    1.1  riastrad 	case WG_MSG_TYPE_RESP:
   3284    1.1  riastrad 		wg_handle_msg_resp(wg, (struct wg_msg_resp *)wgm, src);
   3285    1.1  riastrad 		break;
   3286    1.1  riastrad 	case WG_MSG_TYPE_COOKIE:
   3287    1.1  riastrad 		wg_handle_msg_cookie(wg, (struct wg_msg_cookie *)wgm);
   3288    1.1  riastrad 		break;
   3289    1.1  riastrad 	case WG_MSG_TYPE_DATA:
   3290    1.1  riastrad 		wg_handle_msg_data(wg, m, src);
   3291   1.38  riastrad 		/* wg_handle_msg_data frees m for us */
   3292   1.38  riastrad 		return;
   3293    1.1  riastrad 	default:
   3294   1.39  riastrad 		panic("invalid message type: %d", le32toh(wgm->wgm_type));
   3295    1.1  riastrad 	}
   3296   1.38  riastrad 
   3297   1.38  riastrad 	m_freem(m);
   3298    1.1  riastrad }
   3299    1.1  riastrad 
   3300    1.1  riastrad static void
   3301    1.1  riastrad wg_receive_packets(struct wg_softc *wg, const int af)
   3302    1.1  riastrad {
   3303    1.1  riastrad 
   3304   1.14  riastrad 	for (;;) {
   3305    1.1  riastrad 		int error, flags;
   3306    1.1  riastrad 		struct socket *so;
   3307    1.1  riastrad 		struct mbuf *m = NULL;
   3308    1.1  riastrad 		struct uio dummy_uio;
   3309    1.1  riastrad 		struct mbuf *paddr = NULL;
   3310    1.1  riastrad 		struct sockaddr *src;
   3311    1.1  riastrad 
   3312   1.55  riastrad 		so = wg_get_so_by_af(wg, af);
   3313    1.1  riastrad 		flags = MSG_DONTWAIT;
   3314    1.1  riastrad 		dummy_uio.uio_resid = 1000000000;
   3315    1.1  riastrad 
   3316   1.14  riastrad 		error = so->so_receive(so, &paddr, &dummy_uio, &m, NULL,
   3317   1.14  riastrad 		    &flags);
   3318    1.1  riastrad 		if (error || m == NULL) {
   3319    1.1  riastrad 			//if (error == EWOULDBLOCK)
   3320    1.1  riastrad 			return;
   3321    1.1  riastrad 		}
   3322    1.1  riastrad 
   3323    1.1  riastrad 		KASSERT(paddr != NULL);
   3324   1.27  riastrad 		KASSERT(paddr->m_len >= sizeof(struct sockaddr));
   3325    1.1  riastrad 		src = mtod(paddr, struct sockaddr *);
   3326    1.1  riastrad 
   3327    1.1  riastrad 		wg_handle_packet(wg, m, src);
   3328    1.1  riastrad 	}
   3329    1.1  riastrad }
   3330    1.1  riastrad 
   3331    1.1  riastrad static void
   3332    1.1  riastrad wg_get_peer(struct wg_peer *wgp, struct psref *psref)
   3333    1.1  riastrad {
   3334    1.1  riastrad 
   3335    1.1  riastrad 	psref_acquire(psref, &wgp->wgp_psref, wg_psref_class);
   3336    1.1  riastrad }
   3337    1.1  riastrad 
   3338    1.1  riastrad static void
   3339    1.1  riastrad wg_put_peer(struct wg_peer *wgp, struct psref *psref)
   3340    1.1  riastrad {
   3341    1.1  riastrad 
   3342    1.1  riastrad 	psref_release(psref, &wgp->wgp_psref, wg_psref_class);
   3343    1.1  riastrad }
   3344    1.1  riastrad 
   3345    1.1  riastrad static void
   3346   1.11  riastrad wg_task_send_init_message(struct wg_softc *wg, struct wg_peer *wgp)
   3347   1.11  riastrad {
   3348   1.11  riastrad 	struct wg_session *wgs;
   3349   1.11  riastrad 
   3350   1.11  riastrad 	WG_TRACE("WGP_TASK_SEND_INIT_MESSAGE");
   3351   1.11  riastrad 
   3352   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3353   1.49  riastrad 
   3354   1.49  riastrad 	if (!atomic_load_acquire(&wgp->wgp_endpoint_available)) {
   3355   1.76  jakllsch 		WGLOG(LOG_DEBUG, "%s: No endpoint available\n",
   3356   1.76  jakllsch 		    if_name(&wg->wg_if));
   3357   1.11  riastrad 		/* XXX should do something? */
   3358   1.11  riastrad 		return;
   3359   1.11  riastrad 	}
   3360   1.11  riastrad 
   3361   1.95  riastrad 	/*
   3362   1.95  riastrad 	 * If we already have an established session, there's no need
   3363   1.95  riastrad 	 * to initiate a new one -- unless the rekey-after-time or
   3364   1.95  riastrad 	 * rekey-after-messages limits have passed.
   3365   1.95  riastrad 	 */
   3366   1.49  riastrad 	wgs = wgp->wgp_session_stable;
   3367   1.95  riastrad 	if (wgs->wgs_state == WGS_STATE_ESTABLISHED &&
   3368  1.113  riastrad 	    !atomic_load_relaxed(&wgs->wgs_force_rekey))
   3369   1.95  riastrad 		return;
   3370   1.95  riastrad 
   3371   1.95  riastrad 	/*
   3372   1.95  riastrad 	 * Ensure we're initiating a new session.  If the unstable
   3373   1.95  riastrad 	 * session is already INIT_ACTIVE or INIT_PASSIVE, this does
   3374   1.95  riastrad 	 * nothing.
   3375   1.95  riastrad 	 */
   3376   1.95  riastrad 	wg_send_handshake_msg_init(wg, wgp);
   3377   1.11  riastrad }
   3378   1.11  riastrad 
   3379   1.11  riastrad static void
   3380   1.49  riastrad wg_task_retry_handshake(struct wg_softc *wg, struct wg_peer *wgp)
   3381   1.49  riastrad {
   3382   1.49  riastrad 	struct wg_session *wgs;
   3383   1.49  riastrad 
   3384   1.49  riastrad 	WG_TRACE("WGP_TASK_RETRY_HANDSHAKE");
   3385   1.49  riastrad 
   3386   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3387   1.49  riastrad 	KASSERT(wgp->wgp_handshake_start_time != 0);
   3388   1.49  riastrad 
   3389   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   3390   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_INIT_ACTIVE)
   3391   1.49  riastrad 		return;
   3392   1.49  riastrad 
   3393   1.49  riastrad 	/*
   3394   1.49  riastrad 	 * XXX no real need to assign a new index here, but we do need
   3395   1.49  riastrad 	 * to transition to UNKNOWN temporarily
   3396   1.49  riastrad 	 */
   3397   1.49  riastrad 	wg_put_session_index(wg, wgs);
   3398   1.49  riastrad 
   3399   1.49  riastrad 	/* [W] 6.4 Handshake Initiation Retransmission */
   3400   1.49  riastrad 	if ((time_uptime - wgp->wgp_handshake_start_time) >
   3401   1.49  riastrad 	    wg_rekey_attempt_time) {
   3402   1.49  riastrad 		/* Give up handshaking */
   3403   1.49  riastrad 		wgp->wgp_handshake_start_time = 0;
   3404   1.49  riastrad 		WG_TRACE("give up");
   3405   1.49  riastrad 
   3406   1.49  riastrad 		/*
   3407   1.49  riastrad 		 * If a new data packet comes, handshaking will be retried
   3408   1.49  riastrad 		 * and a new session would be established at that time,
   3409   1.49  riastrad 		 * however we don't want to send pending packets then.
   3410   1.49  riastrad 		 */
   3411   1.49  riastrad 		wg_purge_pending_packets(wgp);
   3412   1.49  riastrad 		return;
   3413   1.49  riastrad 	}
   3414   1.49  riastrad 
   3415   1.49  riastrad 	wg_task_send_init_message(wg, wgp);
   3416   1.49  riastrad }
   3417   1.49  riastrad 
   3418   1.49  riastrad static void
   3419   1.49  riastrad wg_task_establish_session(struct wg_softc *wg, struct wg_peer *wgp)
   3420   1.49  riastrad {
   3421  1.122  riastrad 	struct wg_session *wgs;
   3422   1.49  riastrad 
   3423   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3424   1.49  riastrad 
   3425   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   3426   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_INIT_PASSIVE)
   3427   1.49  riastrad 		/* XXX Can this happen?  */
   3428   1.49  riastrad 		return;
   3429   1.49  riastrad 
   3430   1.49  riastrad 	wgs->wgs_time_last_data_sent = 0;
   3431   1.49  riastrad 	wgs->wgs_is_initiator = false;
   3432   1.94  riastrad 
   3433   1.94  riastrad 	/*
   3434   1.94  riastrad 	 * Session was already ready to receive data.  Transition from
   3435   1.94  riastrad 	 * INIT_PASSIVE to ESTABLISHED just so we can swap the
   3436   1.94  riastrad 	 * sessions.
   3437   1.94  riastrad 	 *
   3438   1.94  riastrad 	 * atomic_store_relaxed because this doesn't affect the data rx
   3439   1.94  riastrad 	 * path, wg_handle_msg_data -- changing from INIT_PASSIVE to
   3440   1.94  riastrad 	 * ESTABLISHED makes no difference to the data rx path, and the
   3441   1.94  riastrad 	 * transition to INIT_PASSIVE with store-release already
   3442   1.94  riastrad 	 * published the state needed by the data rx path.
   3443   1.94  riastrad 	 */
   3444   1.94  riastrad 	WG_DLOG("session[L=%"PRIx32" R=%"PRIx32"] -> WGS_STATE_ESTABLISHED\n",
   3445   1.94  riastrad 	    wgs->wgs_local_index, wgs->wgs_remote_index);
   3446   1.94  riastrad 	atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_ESTABLISHED);
   3447   1.49  riastrad 	WG_TRACE("WGS_STATE_ESTABLISHED");
   3448   1.49  riastrad 
   3449   1.94  riastrad 	/*
   3450   1.94  riastrad 	 * Session is ready to send data too now that we have received
   3451   1.94  riastrad 	 * the peer initiator's first data packet.
   3452   1.94  riastrad 	 *
   3453   1.94  riastrad 	 * Swap the sessions to publish the new one as the stable
   3454   1.94  riastrad 	 * session for the data tx path, wg_output.
   3455   1.94  riastrad 	 */
   3456  1.122  riastrad 	wg_swap_sessions(wg, wgp);
   3457   1.49  riastrad 	KASSERT(wgs == wgp->wgp_session_stable);
   3458   1.49  riastrad }
   3459   1.49  riastrad 
   3460   1.49  riastrad static void
   3461   1.11  riastrad wg_task_endpoint_changed(struct wg_softc *wg, struct wg_peer *wgp)
   3462   1.11  riastrad {
   3463   1.11  riastrad 
   3464   1.11  riastrad 	WG_TRACE("WGP_TASK_ENDPOINT_CHANGED");
   3465   1.11  riastrad 
   3466   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3467   1.49  riastrad 
   3468   1.49  riastrad 	if (atomic_load_relaxed(&wgp->wgp_endpoint_changing)) {
   3469   1.11  riastrad 		pserialize_perform(wgp->wgp_psz);
   3470   1.56  riastrad 		mutex_exit(wgp->wgp_lock);
   3471   1.11  riastrad 		psref_target_destroy(&wgp->wgp_endpoint0->wgsa_psref,
   3472   1.11  riastrad 		    wg_psref_class);
   3473   1.11  riastrad 		psref_target_init(&wgp->wgp_endpoint0->wgsa_psref,
   3474   1.11  riastrad 		    wg_psref_class);
   3475   1.56  riastrad 		mutex_enter(wgp->wgp_lock);
   3476   1.49  riastrad 		atomic_store_release(&wgp->wgp_endpoint_changing, 0);
   3477   1.11  riastrad 	}
   3478   1.11  riastrad }
   3479   1.11  riastrad 
   3480   1.11  riastrad static void
   3481   1.11  riastrad wg_task_send_keepalive_message(struct wg_softc *wg, struct wg_peer *wgp)
   3482   1.11  riastrad {
   3483   1.11  riastrad 	struct wg_session *wgs;
   3484   1.11  riastrad 
   3485   1.11  riastrad 	WG_TRACE("WGP_TASK_SEND_KEEPALIVE_MESSAGE");
   3486   1.11  riastrad 
   3487   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3488   1.49  riastrad 
   3489   1.49  riastrad 	wgs = wgp->wgp_session_stable;
   3490   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_ESTABLISHED)
   3491   1.49  riastrad 		return;
   3492   1.49  riastrad 
   3493   1.11  riastrad 	wg_send_keepalive_msg(wgp, wgs);
   3494   1.11  riastrad }
   3495   1.11  riastrad 
   3496   1.11  riastrad static void
   3497   1.11  riastrad wg_task_destroy_prev_session(struct wg_softc *wg, struct wg_peer *wgp)
   3498   1.11  riastrad {
   3499   1.11  riastrad 	struct wg_session *wgs;
   3500  1.104  riastrad 	uint32_t age;
   3501   1.11  riastrad 
   3502   1.11  riastrad 	WG_TRACE("WGP_TASK_DESTROY_PREV_SESSION");
   3503   1.11  riastrad 
   3504   1.49  riastrad 	KASSERT(mutex_owned(wgp->wgp_lock));
   3505   1.49  riastrad 
   3506  1.100  riastrad 	/*
   3507  1.100  riastrad 	 * If theres's any previous unstable session, i.e., one that
   3508  1.100  riastrad 	 * was ESTABLISHED and is now DESTROYING, older than
   3509  1.100  riastrad 	 * reject-after-time, destroy it.  Upcoming sessions are still
   3510  1.100  riastrad 	 * in INIT_ACTIVE or INIT_PASSIVE -- we don't touch those here.
   3511  1.100  riastrad 	 */
   3512   1.11  riastrad 	wgs = wgp->wgp_session_unstable;
   3513  1.100  riastrad 	KASSERT(wgs->wgs_state != WGS_STATE_ESTABLISHED);
   3514  1.100  riastrad 	if (wgs->wgs_state == WGS_STATE_DESTROYING &&
   3515  1.104  riastrad 	    ((age = (time_uptime32 - wgs->wgs_time_established)) >=
   3516  1.100  riastrad 		wg_reject_after_time)) {
   3517  1.104  riastrad 		WG_DLOG("destroying past session %"PRIu32" sec old\n", age);
   3518   1.49  riastrad 		wg_put_session_index(wg, wgs);
   3519  1.100  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   3520  1.100  riastrad 		    wgs->wgs_state);
   3521  1.100  riastrad 	}
   3522  1.100  riastrad 
   3523  1.100  riastrad 	/*
   3524  1.100  riastrad 	 * If theres's any ESTABLISHED stable session older than
   3525  1.100  riastrad 	 * reject-after-time, destroy it.  (The stable session can also
   3526  1.100  riastrad 	 * be in UNKNOWN state -- nothing to do in that case)
   3527  1.100  riastrad 	 */
   3528  1.100  riastrad 	wgs = wgp->wgp_session_stable;
   3529  1.100  riastrad 	KASSERT(wgs->wgs_state != WGS_STATE_INIT_ACTIVE);
   3530  1.100  riastrad 	KASSERT(wgs->wgs_state != WGS_STATE_INIT_PASSIVE);
   3531  1.100  riastrad 	KASSERT(wgs->wgs_state != WGS_STATE_DESTROYING);
   3532  1.100  riastrad 	if (wgs->wgs_state == WGS_STATE_ESTABLISHED &&
   3533  1.104  riastrad 	    ((age = (time_uptime32 - wgs->wgs_time_established)) >=
   3534  1.100  riastrad 		wg_reject_after_time)) {
   3535  1.104  riastrad 		WG_DLOG("destroying current session %"PRIu32" sec old\n", age);
   3536  1.100  riastrad 		atomic_store_relaxed(&wgs->wgs_state, WGS_STATE_DESTROYING);
   3537  1.100  riastrad 		wg_put_session_index(wg, wgs);
   3538  1.100  riastrad 		KASSERTMSG(wgs->wgs_state == WGS_STATE_UNKNOWN, "state=%d",
   3539  1.100  riastrad 		    wgs->wgs_state);
   3540   1.11  riastrad 	}
   3541  1.100  riastrad 
   3542  1.100  riastrad 	/*
   3543  1.100  riastrad 	 * If there's no sessions left, no need to have the timer run
   3544  1.100  riastrad 	 * until the next time around -- halt it.
   3545  1.100  riastrad 	 *
   3546  1.100  riastrad 	 * It is only ever scheduled with wgp_lock held or in the
   3547  1.100  riastrad 	 * callout itself, and callout_halt prevents rescheudling
   3548  1.100  riastrad 	 * itself, so this never races with rescheduling.
   3549  1.100  riastrad 	 */
   3550  1.100  riastrad 	if (wgp->wgp_session_unstable->wgs_state == WGS_STATE_UNKNOWN &&
   3551  1.100  riastrad 	    wgp->wgp_session_stable->wgs_state == WGS_STATE_UNKNOWN)
   3552  1.100  riastrad 		callout_halt(&wgp->wgp_session_dtor_timer, NULL);
   3553   1.11  riastrad }
   3554   1.11  riastrad 
   3555   1.11  riastrad static void
   3556   1.55  riastrad wg_peer_work(struct work *wk, void *cookie)
   3557    1.1  riastrad {
   3558   1.55  riastrad 	struct wg_peer *wgp = container_of(wk, struct wg_peer, wgp_work);
   3559   1.55  riastrad 	struct wg_softc *wg = wgp->wgp_sc;
   3560   1.65  christos 	unsigned int tasks;
   3561    1.1  riastrad 
   3562   1.55  riastrad 	mutex_enter(wgp->wgp_intr_lock);
   3563   1.55  riastrad 	while ((tasks = wgp->wgp_tasks) != 0) {
   3564   1.55  riastrad 		wgp->wgp_tasks = 0;
   3565   1.55  riastrad 		mutex_exit(wgp->wgp_intr_lock);
   3566    1.1  riastrad 
   3567   1.49  riastrad 		mutex_enter(wgp->wgp_lock);
   3568   1.11  riastrad 		if (ISSET(tasks, WGP_TASK_SEND_INIT_MESSAGE))
   3569   1.11  riastrad 			wg_task_send_init_message(wg, wgp);
   3570   1.49  riastrad 		if (ISSET(tasks, WGP_TASK_RETRY_HANDSHAKE))
   3571   1.49  riastrad 			wg_task_retry_handshake(wg, wgp);
   3572   1.49  riastrad 		if (ISSET(tasks, WGP_TASK_ESTABLISH_SESSION))
   3573   1.49  riastrad 			wg_task_establish_session(wg, wgp);
   3574   1.11  riastrad 		if (ISSET(tasks, WGP_TASK_ENDPOINT_CHANGED))
   3575   1.11  riastrad 			wg_task_endpoint_changed(wg, wgp);
   3576   1.11  riastrad 		if (ISSET(tasks, WGP_TASK_SEND_KEEPALIVE_MESSAGE))
   3577   1.11  riastrad 			wg_task_send_keepalive_message(wg, wgp);
   3578   1.11  riastrad 		if (ISSET(tasks, WGP_TASK_DESTROY_PREV_SESSION))
   3579   1.11  riastrad 			wg_task_destroy_prev_session(wg, wgp);
   3580   1.49  riastrad 		mutex_exit(wgp->wgp_lock);
   3581    1.1  riastrad 
   3582   1.55  riastrad 		mutex_enter(wgp->wgp_intr_lock);
   3583    1.1  riastrad 	}
   3584   1.55  riastrad 	mutex_exit(wgp->wgp_intr_lock);
   3585    1.1  riastrad }
   3586    1.1  riastrad 
   3587    1.1  riastrad static void
   3588   1.55  riastrad wg_job(struct threadpool_job *job)
   3589    1.1  riastrad {
   3590   1.55  riastrad 	struct wg_softc *wg = container_of(job, struct wg_softc, wg_job);
   3591   1.55  riastrad 	int bound, upcalls;
   3592    1.1  riastrad 
   3593   1.55  riastrad 	mutex_enter(wg->wg_intr_lock);
   3594   1.55  riastrad 	while ((upcalls = wg->wg_upcalls) != 0) {
   3595   1.55  riastrad 		wg->wg_upcalls = 0;
   3596   1.55  riastrad 		mutex_exit(wg->wg_intr_lock);
   3597   1.10  riastrad 		bound = curlwp_bind();
   3598   1.55  riastrad 		if (ISSET(upcalls, WG_UPCALL_INET))
   3599    1.1  riastrad 			wg_receive_packets(wg, AF_INET);
   3600   1.55  riastrad 		if (ISSET(upcalls, WG_UPCALL_INET6))
   3601    1.1  riastrad 			wg_receive_packets(wg, AF_INET6);
   3602   1.10  riastrad 		curlwp_bindx(bound);
   3603   1.55  riastrad 		mutex_enter(wg->wg_intr_lock);
   3604    1.1  riastrad 	}
   3605   1.55  riastrad 	threadpool_job_done(job);
   3606   1.55  riastrad 	mutex_exit(wg->wg_intr_lock);
   3607    1.1  riastrad }
   3608    1.1  riastrad 
   3609    1.1  riastrad static int
   3610    1.1  riastrad wg_bind_port(struct wg_softc *wg, const uint16_t port)
   3611    1.1  riastrad {
   3612  1.109  riastrad 	int error = 0;
   3613    1.1  riastrad 	uint16_t old_port = wg->wg_listen_port;
   3614    1.1  riastrad 
   3615    1.1  riastrad 	if (port != 0 && old_port == port)
   3616    1.1  riastrad 		return 0;
   3617    1.1  riastrad 
   3618  1.109  riastrad #ifdef INET
   3619    1.1  riastrad 	struct sockaddr_in _sin, *sin = &_sin;
   3620    1.1  riastrad 	sin->sin_len = sizeof(*sin);
   3621    1.1  riastrad 	sin->sin_family = AF_INET;
   3622    1.1  riastrad 	sin->sin_addr.s_addr = INADDR_ANY;
   3623    1.1  riastrad 	sin->sin_port = htons(port);
   3624    1.1  riastrad 
   3625   1.55  riastrad 	error = sobind(wg->wg_so4, sintosa(sin), curlwp);
   3626  1.109  riastrad 	if (error)
   3627    1.1  riastrad 		return error;
   3628  1.109  riastrad #endif
   3629    1.1  riastrad 
   3630    1.1  riastrad #ifdef INET6
   3631    1.1  riastrad 	struct sockaddr_in6 _sin6, *sin6 = &_sin6;
   3632    1.1  riastrad 	sin6->sin6_len = sizeof(*sin6);
   3633    1.1  riastrad 	sin6->sin6_family = AF_INET6;
   3634    1.1  riastrad 	sin6->sin6_addr = in6addr_any;
   3635    1.1  riastrad 	sin6->sin6_port = htons(port);
   3636    1.1  riastrad 
   3637   1.55  riastrad 	error = sobind(wg->wg_so6, sin6tosa(sin6), curlwp);
   3638  1.109  riastrad 	if (error)
   3639    1.1  riastrad 		return error;
   3640    1.1  riastrad #endif
   3641    1.1  riastrad 
   3642    1.1  riastrad 	wg->wg_listen_port = port;
   3643    1.1  riastrad 
   3644  1.109  riastrad 	return error;
   3645    1.1  riastrad }
   3646    1.1  riastrad 
   3647    1.1  riastrad static void
   3648   1.55  riastrad wg_so_upcall(struct socket *so, void *cookie, int events, int waitflag)
   3649    1.1  riastrad {
   3650   1.55  riastrad 	struct wg_softc *wg = cookie;
   3651    1.1  riastrad 	int reason;
   3652    1.1  riastrad 
   3653    1.1  riastrad 	reason = (so->so_proto->pr_domain->dom_family == AF_INET) ?
   3654   1.55  riastrad 	    WG_UPCALL_INET :
   3655   1.55  riastrad 	    WG_UPCALL_INET6;
   3656   1.55  riastrad 
   3657   1.55  riastrad 	mutex_enter(wg->wg_intr_lock);
   3658   1.55  riastrad 	wg->wg_upcalls |= reason;
   3659   1.55  riastrad 	threadpool_schedule_job(wg->wg_threadpool, &wg->wg_job);
   3660   1.55  riastrad 	mutex_exit(wg->wg_intr_lock);
   3661    1.1  riastrad }
   3662    1.1  riastrad 
   3663    1.1  riastrad static int
   3664    1.1  riastrad wg_overudp_cb(struct mbuf **mp, int offset, struct socket *so,
   3665    1.1  riastrad     struct sockaddr *src, void *arg)
   3666    1.1  riastrad {
   3667    1.1  riastrad 	struct wg_softc *wg = arg;
   3668    1.2  riastrad 	struct wg_msg wgm;
   3669    1.1  riastrad 	struct mbuf *m = *mp;
   3670    1.1  riastrad 
   3671    1.1  riastrad 	WG_TRACE("enter");
   3672    1.1  riastrad 
   3673   1.25  riastrad 	/* Verify the mbuf chain is long enough to have a wg msg header.  */
   3674   1.25  riastrad 	KASSERT(offset <= m_length(m));
   3675   1.25  riastrad 	if (__predict_false(m_length(m) - offset < sizeof(struct wg_msg))) {
   3676   1.28  riastrad 		/* drop on the floor */
   3677   1.25  riastrad 		m_freem(m);
   3678   1.25  riastrad 		return -1;
   3679   1.25  riastrad 	}
   3680   1.25  riastrad 
   3681   1.25  riastrad 	/*
   3682   1.25  riastrad 	 * Copy the message header (32-bit message type) out -- we'll
   3683   1.25  riastrad 	 * worry about contiguity and alignment later.
   3684   1.25  riastrad 	 */
   3685    1.2  riastrad 	m_copydata(m, offset, sizeof(struct wg_msg), &wgm);
   3686   1.39  riastrad 	WG_DLOG("type=%d\n", le32toh(wgm.wgm_type));
   3687    1.2  riastrad 
   3688   1.25  riastrad 	/*
   3689   1.94  riastrad 	 * Handle DATA packets promptly as they arrive, if they are in
   3690   1.94  riastrad 	 * an active session.  Other packets may require expensive
   3691   1.94  riastrad 	 * public-key crypto and are not as sensitive to latency, so
   3692   1.94  riastrad 	 * defer them to the worker thread.
   3693   1.25  riastrad 	 */
   3694   1.39  riastrad 	switch (le32toh(wgm.wgm_type)) {
   3695    1.1  riastrad 	case WG_MSG_TYPE_DATA:
   3696   1.28  riastrad 		/* handle immediately */
   3697    1.1  riastrad 		m_adj(m, offset);
   3698   1.29  riastrad 		if (__predict_false(m->m_len < sizeof(struct wg_msg_data))) {
   3699   1.29  riastrad 			m = m_pullup(m, sizeof(struct wg_msg_data));
   3700   1.29  riastrad 			if (m == NULL)
   3701   1.29  riastrad 				return -1;
   3702   1.29  riastrad 		}
   3703    1.1  riastrad 		wg_handle_msg_data(wg, m, src);
   3704    1.1  riastrad 		*mp = NULL;
   3705    1.1  riastrad 		return 1;
   3706   1.28  riastrad 	case WG_MSG_TYPE_INIT:
   3707   1.28  riastrad 	case WG_MSG_TYPE_RESP:
   3708   1.28  riastrad 	case WG_MSG_TYPE_COOKIE:
   3709   1.28  riastrad 		/* pass through to so_receive in wg_receive_packets */
   3710   1.28  riastrad 		return 0;
   3711    1.1  riastrad 	default:
   3712   1.28  riastrad 		/* drop on the floor */
   3713   1.28  riastrad 		m_freem(m);
   3714   1.28  riastrad 		return -1;
   3715    1.1  riastrad 	}
   3716    1.1  riastrad }
   3717    1.1  riastrad 
   3718    1.1  riastrad static int
   3719   1.55  riastrad wg_socreate(struct wg_softc *wg, int af, struct socket **sop)
   3720    1.1  riastrad {
   3721    1.1  riastrad 	int error;
   3722    1.1  riastrad 	struct socket *so;
   3723    1.1  riastrad 
   3724    1.1  riastrad 	error = socreate(af, &so, SOCK_DGRAM, 0, curlwp, NULL);
   3725    1.1  riastrad 	if (error != 0)
   3726    1.1  riastrad 		return error;
   3727    1.1  riastrad 
   3728    1.1  riastrad 	solock(so);
   3729   1.55  riastrad 	so->so_upcallarg = wg;
   3730    1.1  riastrad 	so->so_upcall = wg_so_upcall;
   3731    1.1  riastrad 	so->so_rcv.sb_flags |= SB_UPCALL;
   3732   1.71     ozaki 	inpcb_register_overudp_cb(sotoinpcb(so), wg_overudp_cb, wg);
   3733    1.1  riastrad 	sounlock(so);
   3734    1.1  riastrad 
   3735    1.1  riastrad 	*sop = so;
   3736    1.1  riastrad 
   3737    1.1  riastrad 	return 0;
   3738    1.1  riastrad }
   3739    1.1  riastrad 
   3740    1.1  riastrad static bool
   3741    1.1  riastrad wg_session_hit_limits(struct wg_session *wgs)
   3742    1.1  riastrad {
   3743    1.1  riastrad 
   3744    1.1  riastrad 	/*
   3745    1.1  riastrad 	 * [W] 6.2: Transport Message Limits
   3746    1.1  riastrad 	 * "After REJECT-AFTER-MESSAGES transport data messages or after the
   3747    1.1  riastrad 	 *  current secure session is REJECT-AFTER-TIME seconds old, whichever
   3748  1.106  riastrad 	 *  comes first, WireGuard will refuse to send or receive any more
   3749  1.106  riastrad 	 *  transport data messages using the current secure session, ..."
   3750    1.1  riastrad 	 */
   3751  1.117  riastrad 	KASSERT(wgs->wgs_time_established != 0 || time_uptime > UINT32_MAX);
   3752  1.117  riastrad 	if (time_uptime32 - wgs->wgs_time_established > wg_reject_after_time) {
   3753    1.1  riastrad 		WG_DLOG("The session hits REJECT_AFTER_TIME\n");
   3754    1.1  riastrad 		return true;
   3755   1.22  riastrad 	} else if (wg_session_get_send_counter(wgs) >
   3756   1.22  riastrad 	    wg_reject_after_messages) {
   3757    1.1  riastrad 		WG_DLOG("The session hits REJECT_AFTER_MESSAGES\n");
   3758    1.1  riastrad 		return true;
   3759    1.1  riastrad 	}
   3760    1.1  riastrad 
   3761    1.1  riastrad 	return false;
   3762    1.1  riastrad }
   3763    1.1  riastrad 
   3764    1.1  riastrad static void
   3765   1.54  riastrad wgintr(void *cookie)
   3766    1.1  riastrad {
   3767   1.54  riastrad 	struct wg_peer *wgp;
   3768    1.1  riastrad 	struct wg_session *wgs;
   3769    1.1  riastrad 	struct mbuf *m;
   3770    1.1  riastrad 	struct psref psref;
   3771    1.1  riastrad 
   3772   1.54  riastrad 	while ((m = pktq_dequeue(wg_pktq)) != NULL) {
   3773   1.54  riastrad 		wgp = M_GETCTX(m, struct wg_peer *);
   3774   1.54  riastrad 		if ((wgs = wg_get_stable_session(wgp, &psref)) == NULL) {
   3775  1.126  riastrad 			/*
   3776  1.126  riastrad 			 * No established session.  If we're the first
   3777  1.126  riastrad 			 * to try sending data, schedule a handshake
   3778  1.126  riastrad 			 * and queue the packet for when the handshake
   3779  1.126  riastrad 			 * is done; otherwise just drop the packet and
   3780  1.126  riastrad 			 * let the ongoing handshake attempt continue.
   3781  1.126  riastrad 			 * We could queue more data packets but it's
   3782  1.126  riastrad 			 * not clear that's worthwhile.
   3783  1.126  riastrad 			 */
   3784   1.54  riastrad 			WG_TRACE("no stable session");
   3785  1.126  riastrad 			membar_release();
   3786  1.126  riastrad 			if ((m = atomic_swap_ptr(&wgp->wgp_pending, m)) ==
   3787  1.126  riastrad 			    NULL) {
   3788  1.126  riastrad 				WG_TRACE("queued first packet;"
   3789  1.126  riastrad 				    " init handshake");
   3790  1.126  riastrad 				wg_schedule_peer_task(wgp,
   3791  1.126  riastrad 				    WGP_TASK_SEND_INIT_MESSAGE);
   3792  1.126  riastrad 			} else {
   3793  1.126  riastrad 				membar_acquire();
   3794  1.126  riastrad 				WG_TRACE("first packet already queued,"
   3795  1.126  riastrad 				    " dropping");
   3796  1.126  riastrad 			}
   3797   1.54  riastrad 			goto next0;
   3798   1.54  riastrad 		}
   3799   1.54  riastrad 		if (__predict_false(wg_session_hit_limits(wgs))) {
   3800   1.54  riastrad 			WG_TRACE("stable session hit limits");
   3801  1.127  riastrad 			membar_release();
   3802  1.127  riastrad 			if ((m = atomic_swap_ptr(&wgp->wgp_pending, m)) ==
   3803  1.127  riastrad 			    NULL) {
   3804  1.127  riastrad 				WG_TRACE("queued first packet in a while;"
   3805  1.127  riastrad 				    " reinit handshake");
   3806  1.127  riastrad 				atomic_store_relaxed(&wgs->wgs_force_rekey,
   3807  1.127  riastrad 				    true);
   3808  1.127  riastrad 				wg_schedule_peer_task(wgp,
   3809  1.127  riastrad 				    WGP_TASK_SEND_INIT_MESSAGE);
   3810  1.127  riastrad 			} else {
   3811  1.127  riastrad 				membar_acquire();
   3812  1.127  riastrad 				WG_TRACE("first packet in already queued,"
   3813  1.127  riastrad 				    " dropping");
   3814  1.127  riastrad 			}
   3815   1.54  riastrad 			goto next1;
   3816   1.54  riastrad 		}
   3817    1.1  riastrad 		wg_send_data_msg(wgp, wgs, m);
   3818   1.54  riastrad 		m = NULL;	/* consumed */
   3819   1.54  riastrad next1:		wg_put_session(wgs, &psref);
   3820   1.79       rin next0:		m_freem(m);
   3821   1.54  riastrad 		/* XXX Yield to avoid userland starvation?  */
   3822    1.1  riastrad 	}
   3823    1.1  riastrad }
   3824    1.1  riastrad 
   3825    1.1  riastrad static void
   3826    1.1  riastrad wg_purge_pending_packets(struct wg_peer *wgp)
   3827    1.1  riastrad {
   3828    1.1  riastrad 	struct mbuf *m;
   3829    1.1  riastrad 
   3830   1.79       rin 	m = atomic_swap_ptr(&wgp->wgp_pending, NULL);
   3831  1.126  riastrad 	membar_acquire();     /* matches membar_release in wgintr */
   3832   1.79       rin 	m_freem(m);
   3833  1.107  riastrad #ifdef ALTQ
   3834  1.107  riastrad 	wg_start(&wgp->wgp_sc->wg_if);
   3835  1.107  riastrad #endif
   3836   1.54  riastrad 	pktq_barrier(wg_pktq);
   3837    1.1  riastrad }
   3838    1.1  riastrad 
   3839    1.1  riastrad static void
   3840    1.1  riastrad wg_handshake_timeout_timer(void *arg)
   3841    1.1  riastrad {
   3842    1.1  riastrad 	struct wg_peer *wgp = arg;
   3843    1.1  riastrad 
   3844    1.1  riastrad 	WG_TRACE("enter");
   3845    1.1  riastrad 
   3846   1.49  riastrad 	wg_schedule_peer_task(wgp, WGP_TASK_RETRY_HANDSHAKE);
   3847    1.1  riastrad }
   3848    1.1  riastrad 
   3849    1.1  riastrad static struct wg_peer *
   3850    1.1  riastrad wg_alloc_peer(struct wg_softc *wg)
   3851    1.1  riastrad {
   3852    1.1  riastrad 	struct wg_peer *wgp;
   3853    1.1  riastrad 
   3854    1.1  riastrad 	wgp = kmem_zalloc(sizeof(*wgp), KM_SLEEP);
   3855    1.1  riastrad 
   3856    1.1  riastrad 	wgp->wgp_sc = wg;
   3857    1.1  riastrad 	callout_init(&wgp->wgp_handshake_timeout_timer, CALLOUT_MPSAFE);
   3858    1.1  riastrad 	callout_setfunc(&wgp->wgp_handshake_timeout_timer,
   3859    1.1  riastrad 	    wg_handshake_timeout_timer, wgp);
   3860    1.1  riastrad 	callout_init(&wgp->wgp_session_dtor_timer, CALLOUT_MPSAFE);
   3861    1.1  riastrad 	callout_setfunc(&wgp->wgp_session_dtor_timer,
   3862    1.1  riastrad 	    wg_session_dtor_timer, wgp);
   3863    1.1  riastrad 	PSLIST_ENTRY_INIT(wgp, wgp_peerlist_entry);
   3864    1.1  riastrad 	wgp->wgp_endpoint_changing = false;
   3865    1.1  riastrad 	wgp->wgp_endpoint_available = false;
   3866    1.1  riastrad 	wgp->wgp_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   3867   1.55  riastrad 	wgp->wgp_intr_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
   3868    1.1  riastrad 	wgp->wgp_psz = pserialize_create();
   3869    1.1  riastrad 	psref_target_init(&wgp->wgp_psref, wg_psref_class);
   3870    1.1  riastrad 
   3871    1.1  riastrad 	wgp->wgp_endpoint = kmem_zalloc(sizeof(*wgp->wgp_endpoint), KM_SLEEP);
   3872    1.1  riastrad 	wgp->wgp_endpoint0 = kmem_zalloc(sizeof(*wgp->wgp_endpoint0), KM_SLEEP);
   3873    1.1  riastrad 	psref_target_init(&wgp->wgp_endpoint->wgsa_psref, wg_psref_class);
   3874    1.1  riastrad 	psref_target_init(&wgp->wgp_endpoint0->wgsa_psref, wg_psref_class);
   3875    1.1  riastrad 
   3876    1.1  riastrad 	struct wg_session *wgs;
   3877   1.14  riastrad 	wgp->wgp_session_stable =
   3878   1.14  riastrad 	    kmem_zalloc(sizeof(*wgp->wgp_session_stable), KM_SLEEP);
   3879   1.14  riastrad 	wgp->wgp_session_unstable =
   3880   1.14  riastrad 	    kmem_zalloc(sizeof(*wgp->wgp_session_unstable), KM_SLEEP);
   3881    1.1  riastrad 	wgs = wgp->wgp_session_stable;
   3882    1.1  riastrad 	wgs->wgs_peer = wgp;
   3883    1.1  riastrad 	wgs->wgs_state = WGS_STATE_UNKNOWN;
   3884    1.1  riastrad 	psref_target_init(&wgs->wgs_psref, wg_psref_class);
   3885   1.22  riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
   3886   1.22  riastrad 	mutex_init(&wgs->wgs_send_counter_lock, MUTEX_DEFAULT, IPL_SOFTNET);
   3887   1.22  riastrad #endif
   3888    1.6  riastrad 	wgs->wgs_recvwin = kmem_zalloc(sizeof(*wgs->wgs_recvwin), KM_SLEEP);
   3889   1.49  riastrad 	mutex_init(&wgs->wgs_recvwin->lock, MUTEX_DEFAULT, IPL_SOFTNET);
   3890    1.6  riastrad 
   3891    1.1  riastrad 	wgs = wgp->wgp_session_unstable;
   3892    1.1  riastrad 	wgs->wgs_peer = wgp;
   3893    1.1  riastrad 	wgs->wgs_state = WGS_STATE_UNKNOWN;
   3894    1.1  riastrad 	psref_target_init(&wgs->wgs_psref, wg_psref_class);
   3895   1.22  riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
   3896   1.22  riastrad 	mutex_init(&wgs->wgs_send_counter_lock, MUTEX_DEFAULT, IPL_SOFTNET);
   3897   1.22  riastrad #endif
   3898    1.6  riastrad 	wgs->wgs_recvwin = kmem_zalloc(sizeof(*wgs->wgs_recvwin), KM_SLEEP);
   3899   1.49  riastrad 	mutex_init(&wgs->wgs_recvwin->lock, MUTEX_DEFAULT, IPL_SOFTNET);
   3900    1.1  riastrad 
   3901    1.1  riastrad 	return wgp;
   3902    1.1  riastrad }
   3903    1.1  riastrad 
   3904    1.1  riastrad static void
   3905    1.1  riastrad wg_destroy_peer(struct wg_peer *wgp)
   3906    1.1  riastrad {
   3907    1.1  riastrad 	struct wg_session *wgs;
   3908    1.1  riastrad 	struct wg_softc *wg = wgp->wgp_sc;
   3909    1.1  riastrad 
   3910   1.37  riastrad 	/* Prevent new packets from this peer on any source address.  */
   3911    1.1  riastrad 	rw_enter(wg->wg_rwlock, RW_WRITER);
   3912    1.1  riastrad 	for (int i = 0; i < wgp->wgp_n_allowedips; i++) {
   3913    1.1  riastrad 		struct wg_allowedip *wga = &wgp->wgp_allowedips[i];
   3914    1.1  riastrad 		struct radix_node_head *rnh = wg_rnh(wg, wga->wga_family);
   3915    1.1  riastrad 		struct radix_node *rn;
   3916    1.1  riastrad 
   3917    1.1  riastrad 		KASSERT(rnh != NULL);
   3918    1.1  riastrad 		rn = rnh->rnh_deladdr(&wga->wga_sa_addr,
   3919    1.1  riastrad 		    &wga->wga_sa_mask, rnh);
   3920    1.1  riastrad 		if (rn == NULL) {
   3921    1.1  riastrad 			char addrstr[128];
   3922    1.1  riastrad 			sockaddr_format(&wga->wga_sa_addr, addrstr,
   3923    1.1  riastrad 			    sizeof(addrstr));
   3924   1.76  jakllsch 			WGLOG(LOG_WARNING, "%s: Couldn't delete %s",
   3925   1.76  jakllsch 			    if_name(&wg->wg_if), addrstr);
   3926    1.1  riastrad 		}
   3927    1.1  riastrad 	}
   3928    1.1  riastrad 	rw_exit(wg->wg_rwlock);
   3929    1.1  riastrad 
   3930   1.38  riastrad 	/* Purge pending packets.  */
   3931   1.38  riastrad 	wg_purge_pending_packets(wgp);
   3932   1.38  riastrad 
   3933   1.37  riastrad 	/* Halt all packet processing and timeouts.  */
   3934    1.1  riastrad 	callout_halt(&wgp->wgp_handshake_timeout_timer, NULL);
   3935    1.1  riastrad 	callout_halt(&wgp->wgp_session_dtor_timer, NULL);
   3936    1.1  riastrad 
   3937   1.55  riastrad 	/* Wait for any queued work to complete.  */
   3938   1.55  riastrad 	workqueue_wait(wg_wq, &wgp->wgp_work);
   3939   1.55  riastrad 
   3940   1.49  riastrad 	wgs = wgp->wgp_session_unstable;
   3941   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_UNKNOWN) {
   3942   1.49  riastrad 		mutex_enter(wgp->wgp_lock);
   3943   1.49  riastrad 		wg_destroy_session(wg, wgs);
   3944   1.49  riastrad 		mutex_exit(wgp->wgp_lock);
   3945   1.37  riastrad 	}
   3946    1.6  riastrad 	mutex_destroy(&wgs->wgs_recvwin->lock);
   3947    1.6  riastrad 	kmem_free(wgs->wgs_recvwin, sizeof(*wgs->wgs_recvwin));
   3948   1.22  riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
   3949   1.22  riastrad 	mutex_destroy(&wgs->wgs_send_counter_lock);
   3950   1.22  riastrad #endif
   3951    1.1  riastrad 	kmem_free(wgs, sizeof(*wgs));
   3952   1.37  riastrad 
   3953    1.1  riastrad 	wgs = wgp->wgp_session_stable;
   3954   1.49  riastrad 	if (wgs->wgs_state != WGS_STATE_UNKNOWN) {
   3955   1.49  riastrad 		mutex_enter(wgp->wgp_lock);
   3956   1.49  riastrad 		wg_destroy_session(wg, wgs);
   3957   1.49  riastrad 		mutex_exit(wgp->wgp_lock);
   3958   1.49  riastrad 	}
   3959    1.6  riastrad 	mutex_destroy(&wgs->wgs_recvwin->lock);
   3960    1.6  riastrad 	kmem_free(wgs->wgs_recvwin, sizeof(*wgs->wgs_recvwin));
   3961   1.22  riastrad #ifndef __HAVE_ATOMIC64_LOADSTORE
   3962   1.22  riastrad 	mutex_destroy(&wgs->wgs_send_counter_lock);
   3963   1.22  riastrad #endif
   3964    1.1  riastrad 	kmem_free(wgs, sizeof(*wgs));
   3965    1.1  riastrad 
   3966    1.1  riastrad 	psref_target_destroy(&wgp->wgp_endpoint->wgsa_psref, wg_psref_class);
   3967    1.1  riastrad 	psref_target_destroy(&wgp->wgp_endpoint0->wgsa_psref, wg_psref_class);
   3968    1.1  riastrad 	kmem_free(wgp->wgp_endpoint, sizeof(*wgp->wgp_endpoint));
   3969    1.1  riastrad 	kmem_free(wgp->wgp_endpoint0, sizeof(*wgp->wgp_endpoint0));
   3970    1.1  riastrad 
   3971    1.1  riastrad 	pserialize_destroy(wgp->wgp_psz);
   3972   1.55  riastrad 	mutex_obj_free(wgp->wgp_intr_lock);
   3973    1.1  riastrad 	mutex_obj_free(wgp->wgp_lock);
   3974    1.1  riastrad 
   3975    1.1  riastrad 	kmem_free(wgp, sizeof(*wgp));
   3976    1.1  riastrad }
   3977    1.1  riastrad 
   3978    1.1  riastrad static void
   3979    1.1  riastrad wg_destroy_all_peers(struct wg_softc *wg)
   3980    1.1  riastrad {
   3981   1.37  riastrad 	struct wg_peer *wgp, *wgp0 __diagused;
   3982   1.37  riastrad 	void *garbage_byname, *garbage_bypubkey;
   3983    1.1  riastrad 
   3984    1.1  riastrad restart:
   3985   1.37  riastrad 	garbage_byname = garbage_bypubkey = NULL;
   3986    1.1  riastrad 	mutex_enter(wg->wg_lock);
   3987    1.1  riastrad 	WG_PEER_WRITER_FOREACH(wgp, wg) {
   3988   1.37  riastrad 		if (wgp->wgp_name[0]) {
   3989   1.37  riastrad 			wgp0 = thmap_del(wg->wg_peers_byname, wgp->wgp_name,
   3990   1.37  riastrad 			    strlen(wgp->wgp_name));
   3991   1.37  riastrad 			KASSERT(wgp0 == wgp);
   3992   1.37  riastrad 			garbage_byname = thmap_stage_gc(wg->wg_peers_byname);
   3993   1.37  riastrad 		}
   3994   1.37  riastrad 		wgp0 = thmap_del(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
   3995   1.37  riastrad 		    sizeof(wgp->wgp_pubkey));
   3996   1.37  riastrad 		KASSERT(wgp0 == wgp);
   3997   1.37  riastrad 		garbage_bypubkey = thmap_stage_gc(wg->wg_peers_bypubkey);
   3998    1.1  riastrad 		WG_PEER_WRITER_REMOVE(wgp);
   3999   1.35  riastrad 		wg->wg_npeers--;
   4000    1.1  riastrad 		mutex_enter(wgp->wgp_lock);
   4001    1.1  riastrad 		pserialize_perform(wgp->wgp_psz);
   4002    1.1  riastrad 		mutex_exit(wgp->wgp_lock);
   4003    1.1  riastrad 		PSLIST_ENTRY_DESTROY(wgp, wgp_peerlist_entry);
   4004    1.1  riastrad 		break;
   4005    1.1  riastrad 	}
   4006    1.1  riastrad 	mutex_exit(wg->wg_lock);
   4007    1.1  riastrad 
   4008    1.1  riastrad 	if (wgp == NULL)
   4009    1.1  riastrad 		return;
   4010    1.1  riastrad 
   4011    1.1  riastrad 	psref_target_destroy(&wgp->wgp_psref, wg_psref_class);
   4012    1.1  riastrad 
   4013    1.1  riastrad 	wg_destroy_peer(wgp);
   4014   1.37  riastrad 	thmap_gc(wg->wg_peers_byname, garbage_byname);
   4015   1.37  riastrad 	thmap_gc(wg->wg_peers_bypubkey, garbage_bypubkey);
   4016    1.1  riastrad 
   4017    1.1  riastrad 	goto restart;
   4018    1.1  riastrad }
   4019    1.1  riastrad 
   4020    1.1  riastrad static int
   4021    1.1  riastrad wg_destroy_peer_name(struct wg_softc *wg, const char *name)
   4022    1.1  riastrad {
   4023   1.37  riastrad 	struct wg_peer *wgp, *wgp0 __diagused;
   4024   1.37  riastrad 	void *garbage_byname, *garbage_bypubkey;
   4025    1.1  riastrad 
   4026    1.1  riastrad 	mutex_enter(wg->wg_lock);
   4027   1.37  riastrad 	wgp = thmap_del(wg->wg_peers_byname, name, strlen(name));
   4028    1.1  riastrad 	if (wgp != NULL) {
   4029   1.37  riastrad 		wgp0 = thmap_del(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
   4030   1.37  riastrad 		    sizeof(wgp->wgp_pubkey));
   4031   1.37  riastrad 		KASSERT(wgp0 == wgp);
   4032   1.37  riastrad 		garbage_byname = thmap_stage_gc(wg->wg_peers_byname);
   4033   1.37  riastrad 		garbage_bypubkey = thmap_stage_gc(wg->wg_peers_bypubkey);
   4034    1.1  riastrad 		WG_PEER_WRITER_REMOVE(wgp);
   4035    1.1  riastrad 		wg->wg_npeers--;
   4036   1.61       roy 		if (wg->wg_npeers == 0)
   4037   1.61       roy 			if_link_state_change(&wg->wg_if, LINK_STATE_DOWN);
   4038    1.1  riastrad 		mutex_enter(wgp->wgp_lock);
   4039    1.1  riastrad 		pserialize_perform(wgp->wgp_psz);
   4040    1.1  riastrad 		mutex_exit(wgp->wgp_lock);
   4041    1.1  riastrad 		PSLIST_ENTRY_DESTROY(wgp, wgp_peerlist_entry);
   4042    1.1  riastrad 	}
   4043    1.1  riastrad 	mutex_exit(wg->wg_lock);
   4044    1.1  riastrad 
   4045    1.1  riastrad 	if (wgp == NULL)
   4046    1.1  riastrad 		return ENOENT;
   4047    1.1  riastrad 
   4048    1.1  riastrad 	psref_target_destroy(&wgp->wgp_psref, wg_psref_class);
   4049    1.1  riastrad 
   4050    1.1  riastrad 	wg_destroy_peer(wgp);
   4051   1.37  riastrad 	thmap_gc(wg->wg_peers_byname, garbage_byname);
   4052   1.37  riastrad 	thmap_gc(wg->wg_peers_bypubkey, garbage_bypubkey);
   4053    1.1  riastrad 
   4054    1.1  riastrad 	return 0;
   4055    1.1  riastrad }
   4056    1.1  riastrad 
   4057    1.1  riastrad static int
   4058    1.1  riastrad wg_if_attach(struct wg_softc *wg)
   4059    1.1  riastrad {
   4060    1.1  riastrad 
   4061    1.1  riastrad 	wg->wg_if.if_addrlen = 0;
   4062    1.1  riastrad 	wg->wg_if.if_mtu = WG_MTU;
   4063   1.33  riastrad 	wg->wg_if.if_flags = IFF_MULTICAST;
   4064   1.61       roy 	wg->wg_if.if_extflags = IFEF_MPSAFE;
   4065    1.1  riastrad 	wg->wg_if.if_ioctl = wg_ioctl;
   4066    1.1  riastrad 	wg->wg_if.if_output = wg_output;
   4067    1.1  riastrad 	wg->wg_if.if_init = wg_init;
   4068   1.60  riastrad #ifdef ALTQ
   4069   1.60  riastrad 	wg->wg_if.if_start = wg_start;
   4070   1.60  riastrad #endif
   4071    1.1  riastrad 	wg->wg_if.if_stop = wg_stop;
   4072   1.24  riastrad 	wg->wg_if.if_type = IFT_OTHER;
   4073    1.1  riastrad 	wg->wg_if.if_dlt = DLT_NULL;
   4074    1.1  riastrad 	wg->wg_if.if_softc = wg;
   4075   1.60  riastrad #ifdef ALTQ
   4076    1.1  riastrad 	IFQ_SET_READY(&wg->wg_if.if_snd);
   4077   1.60  riastrad #endif
   4078   1.64  riastrad 	if_initialize(&wg->wg_if);
   4079    1.1  riastrad 
   4080   1.61       roy 	wg->wg_if.if_link_state = LINK_STATE_DOWN;
   4081    1.1  riastrad 	if_alloc_sadl(&wg->wg_if);
   4082    1.1  riastrad 	if_register(&wg->wg_if);
   4083    1.1  riastrad 
   4084    1.1  riastrad 	bpf_attach(&wg->wg_if, DLT_NULL, sizeof(uint32_t));
   4085    1.1  riastrad 
   4086    1.1  riastrad 	return 0;
   4087    1.1  riastrad }
   4088    1.1  riastrad 
   4089   1.54  riastrad static void
   4090   1.54  riastrad wg_if_detach(struct wg_softc *wg)
   4091   1.54  riastrad {
   4092   1.54  riastrad 	struct ifnet *ifp = &wg->wg_if;
   4093   1.54  riastrad 
   4094   1.54  riastrad 	bpf_detach(ifp);
   4095   1.54  riastrad 	if_detach(ifp);
   4096   1.54  riastrad }
   4097   1.54  riastrad 
   4098    1.1  riastrad static int
   4099    1.1  riastrad wg_clone_create(struct if_clone *ifc, int unit)
   4100    1.1  riastrad {
   4101    1.1  riastrad 	struct wg_softc *wg;
   4102    1.1  riastrad 	int error;
   4103    1.1  riastrad 
   4104   1.58  riastrad 	wg_guarantee_initialized();
   4105   1.58  riastrad 
   4106   1.59  riastrad 	error = wg_count_inc();
   4107   1.59  riastrad 	if (error)
   4108   1.59  riastrad 		return error;
   4109   1.59  riastrad 
   4110   1.54  riastrad 	wg = kmem_zalloc(sizeof(*wg), KM_SLEEP);
   4111    1.1  riastrad 
   4112    1.1  riastrad 	if_initname(&wg->wg_if, ifc->ifc_name, unit);
   4113    1.1  riastrad 
   4114   1.55  riastrad 	PSLIST_INIT(&wg->wg_peers);
   4115   1.55  riastrad 	wg->wg_peers_bypubkey = thmap_create(0, NULL, THMAP_NOCOPY);
   4116   1.55  riastrad 	wg->wg_peers_byname = thmap_create(0, NULL, THMAP_NOCOPY);
   4117   1.55  riastrad 	wg->wg_sessions_byindex = thmap_create(0, NULL, THMAP_NOCOPY);
   4118   1.55  riastrad 	wg->wg_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_NONE);
   4119   1.55  riastrad 	wg->wg_intr_lock = mutex_obj_alloc(MUTEX_DEFAULT, IPL_SOFTNET);
   4120   1.55  riastrad 	wg->wg_rwlock = rw_obj_alloc();
   4121   1.55  riastrad 	threadpool_job_init(&wg->wg_job, wg_job, wg->wg_intr_lock,
   4122   1.55  riastrad 	    "%s", if_name(&wg->wg_if));
   4123   1.55  riastrad 	wg->wg_ops = &wg_ops_rumpkernel;
   4124   1.55  riastrad 
   4125   1.55  riastrad 	error = threadpool_get(&wg->wg_threadpool, PRI_NONE);
   4126   1.54  riastrad 	if (error)
   4127   1.54  riastrad 		goto fail0;
   4128    1.1  riastrad 
   4129   1.55  riastrad #ifdef INET
   4130   1.55  riastrad 	error = wg_socreate(wg, AF_INET, &wg->wg_so4);
   4131   1.55  riastrad 	if (error)
   4132   1.55  riastrad 		goto fail1;
   4133    1.1  riastrad 	rn_inithead((void **)&wg->wg_rtable_ipv4,
   4134    1.1  riastrad 	    offsetof(struct sockaddr_in, sin_addr) * NBBY);
   4135   1.55  riastrad #endif
   4136    1.1  riastrad #ifdef INET6
   4137   1.55  riastrad 	error = wg_socreate(wg, AF_INET6, &wg->wg_so6);
   4138   1.55  riastrad 	if (error)
   4139   1.55  riastrad 		goto fail2;
   4140    1.1  riastrad 	rn_inithead((void **)&wg->wg_rtable_ipv6,
   4141    1.1  riastrad 	    offsetof(struct sockaddr_in6, sin6_addr) * NBBY);
   4142    1.1  riastrad #endif
   4143    1.1  riastrad 
   4144    1.1  riastrad 	error = wg_if_attach(wg);
   4145   1.54  riastrad 	if (error)
   4146   1.55  riastrad 		goto fail3;
   4147    1.1  riastrad 
   4148    1.1  riastrad 	return 0;
   4149   1.54  riastrad 
   4150   1.55  riastrad fail4: __unused
   4151  1.107  riastrad 	wg_destroy_all_peers(wg);
   4152   1.54  riastrad 	wg_if_detach(wg);
   4153  1.107  riastrad fail3:
   4154   1.55  riastrad #ifdef INET6
   4155   1.55  riastrad 	solock(wg->wg_so6);
   4156   1.55  riastrad 	wg->wg_so6->so_rcv.sb_flags &= ~SB_UPCALL;
   4157   1.55  riastrad 	sounlock(wg->wg_so6);
   4158   1.55  riastrad #endif
   4159   1.55  riastrad #ifdef INET
   4160   1.55  riastrad 	solock(wg->wg_so4);
   4161   1.55  riastrad 	wg->wg_so4->so_rcv.sb_flags &= ~SB_UPCALL;
   4162   1.55  riastrad 	sounlock(wg->wg_so4);
   4163   1.55  riastrad #endif
   4164   1.55  riastrad 	mutex_enter(wg->wg_intr_lock);
   4165   1.55  riastrad 	threadpool_cancel_job(wg->wg_threadpool, &wg->wg_job);
   4166   1.55  riastrad 	mutex_exit(wg->wg_intr_lock);
   4167   1.55  riastrad #ifdef INET6
   4168   1.55  riastrad 	if (wg->wg_rtable_ipv6 != NULL)
   4169   1.55  riastrad 		free(wg->wg_rtable_ipv6, M_RTABLE);
   4170   1.55  riastrad 	soclose(wg->wg_so6);
   4171   1.55  riastrad fail2:
   4172   1.55  riastrad #endif
   4173   1.55  riastrad #ifdef INET
   4174   1.55  riastrad 	if (wg->wg_rtable_ipv4 != NULL)
   4175   1.55  riastrad 		free(wg->wg_rtable_ipv4, M_RTABLE);
   4176   1.55  riastrad 	soclose(wg->wg_so4);
   4177   1.55  riastrad fail1:
   4178   1.55  riastrad #endif
   4179   1.55  riastrad 	threadpool_put(wg->wg_threadpool, PRI_NONE);
   4180   1.55  riastrad fail0:	threadpool_job_destroy(&wg->wg_job);
   4181   1.54  riastrad 	rw_obj_free(wg->wg_rwlock);
   4182   1.55  riastrad 	mutex_obj_free(wg->wg_intr_lock);
   4183   1.54  riastrad 	mutex_obj_free(wg->wg_lock);
   4184   1.54  riastrad 	thmap_destroy(wg->wg_sessions_byindex);
   4185   1.54  riastrad 	thmap_destroy(wg->wg_peers_byname);
   4186   1.54  riastrad 	thmap_destroy(wg->wg_peers_bypubkey);
   4187   1.54  riastrad 	PSLIST_DESTROY(&wg->wg_peers);
   4188   1.55  riastrad 	kmem_free(wg, sizeof(*wg));
   4189   1.59  riastrad 	wg_count_dec();
   4190   1.54  riastrad 	return error;
   4191    1.1  riastrad }
   4192    1.1  riastrad 
   4193    1.1  riastrad static int
   4194    1.1  riastrad wg_clone_destroy(struct ifnet *ifp)
   4195    1.1  riastrad {
   4196   1.16  riastrad 	struct wg_softc *wg = container_of(ifp, struct wg_softc, wg_if);
   4197    1.1  riastrad 
   4198    1.1  riastrad #ifdef WG_RUMPKERNEL
   4199    1.1  riastrad 	if (wg_user_mode(wg)) {
   4200    1.1  riastrad 		rumpuser_wg_destroy(wg->wg_user);
   4201    1.1  riastrad 		wg->wg_user = NULL;
   4202    1.1  riastrad 	}
   4203    1.1  riastrad #endif
   4204    1.1  riastrad 
   4205  1.107  riastrad 	wg_destroy_all_peers(wg);
   4206   1.54  riastrad 	wg_if_detach(wg);
   4207   1.55  riastrad #ifdef INET6
   4208   1.55  riastrad 	solock(wg->wg_so6);
   4209   1.55  riastrad 	wg->wg_so6->so_rcv.sb_flags &= ~SB_UPCALL;
   4210   1.55  riastrad 	sounlock(wg->wg_so6);
   4211   1.55  riastrad #endif
   4212   1.55  riastrad #ifdef INET
   4213   1.55  riastrad 	solock(wg->wg_so4);
   4214   1.55  riastrad 	wg->wg_so4->so_rcv.sb_flags &= ~SB_UPCALL;
   4215   1.55  riastrad 	sounlock(wg->wg_so4);
   4216   1.55  riastrad #endif
   4217   1.55  riastrad 	mutex_enter(wg->wg_intr_lock);
   4218   1.55  riastrad 	threadpool_cancel_job(wg->wg_threadpool, &wg->wg_job);
   4219   1.55  riastrad 	mutex_exit(wg->wg_intr_lock);
   4220   1.55  riastrad #ifdef INET6
   4221   1.55  riastrad 	if (wg->wg_rtable_ipv6 != NULL)
   4222   1.55  riastrad 		free(wg->wg_rtable_ipv6, M_RTABLE);
   4223   1.55  riastrad 	soclose(wg->wg_so6);
   4224   1.55  riastrad #endif
   4225   1.55  riastrad #ifdef INET
   4226   1.55  riastrad 	if (wg->wg_rtable_ipv4 != NULL)
   4227   1.55  riastrad 		free(wg->wg_rtable_ipv4, M_RTABLE);
   4228   1.55  riastrad 	soclose(wg->wg_so4);
   4229   1.55  riastrad #endif
   4230   1.55  riastrad 	threadpool_put(wg->wg_threadpool, PRI_NONE);
   4231   1.55  riastrad 	threadpool_job_destroy(&wg->wg_job);
   4232   1.54  riastrad 	rw_obj_free(wg->wg_rwlock);
   4233   1.55  riastrad 	mutex_obj_free(wg->wg_intr_lock);
   4234   1.54  riastrad 	mutex_obj_free(wg->wg_lock);
   4235   1.54  riastrad 	thmap_destroy(wg->wg_sessions_byindex);
   4236   1.54  riastrad 	thmap_destroy(wg->wg_peers_byname);
   4237   1.54  riastrad 	thmap_destroy(wg->wg_peers_bypubkey);
   4238   1.54  riastrad 	PSLIST_DESTROY(&wg->wg_peers);
   4239   1.54  riastrad 	kmem_free(wg, sizeof(*wg));
   4240   1.59  riastrad 	wg_count_dec();
   4241    1.1  riastrad 
   4242    1.1  riastrad 	return 0;
   4243    1.1  riastrad }
   4244    1.1  riastrad 
   4245    1.1  riastrad static struct wg_peer *
   4246    1.1  riastrad wg_pick_peer_by_sa(struct wg_softc *wg, const struct sockaddr *sa,
   4247    1.1  riastrad     struct psref *psref)
   4248    1.1  riastrad {
   4249    1.1  riastrad 	struct radix_node_head *rnh;
   4250    1.1  riastrad 	struct radix_node *rn;
   4251    1.1  riastrad 	struct wg_peer *wgp = NULL;
   4252    1.1  riastrad 	struct wg_allowedip *wga;
   4253    1.1  riastrad 
   4254    1.1  riastrad #ifdef WG_DEBUG_LOG
   4255    1.1  riastrad 	char addrstr[128];
   4256    1.1  riastrad 	sockaddr_format(sa, addrstr, sizeof(addrstr));
   4257    1.1  riastrad 	WG_DLOG("sa=%s\n", addrstr);
   4258    1.1  riastrad #endif
   4259    1.1  riastrad 
   4260    1.1  riastrad 	rw_enter(wg->wg_rwlock, RW_READER);
   4261    1.1  riastrad 
   4262    1.1  riastrad 	rnh = wg_rnh(wg, sa->sa_family);
   4263    1.1  riastrad 	if (rnh == NULL)
   4264    1.1  riastrad 		goto out;
   4265    1.1  riastrad 
   4266    1.1  riastrad 	rn = rnh->rnh_matchaddr(sa, rnh);
   4267    1.1  riastrad 	if (rn == NULL || (rn->rn_flags & RNF_ROOT) != 0)
   4268    1.1  riastrad 		goto out;
   4269    1.1  riastrad 
   4270    1.1  riastrad 	WG_TRACE("success");
   4271    1.1  riastrad 
   4272   1.16  riastrad 	wga = container_of(rn, struct wg_allowedip, wga_nodes[0]);
   4273    1.1  riastrad 	wgp = wga->wga_peer;
   4274    1.1  riastrad 	wg_get_peer(wgp, psref);
   4275    1.1  riastrad 
   4276    1.1  riastrad out:
   4277    1.1  riastrad 	rw_exit(wg->wg_rwlock);
   4278    1.1  riastrad 	return wgp;
   4279    1.1  riastrad }
   4280    1.1  riastrad 
   4281    1.1  riastrad static void
   4282    1.1  riastrad wg_fill_msg_data(struct wg_softc *wg, struct wg_peer *wgp,
   4283    1.1  riastrad     struct wg_session *wgs, struct wg_msg_data *wgmd)
   4284    1.1  riastrad {
   4285    1.1  riastrad 
   4286    1.1  riastrad 	memset(wgmd, 0, sizeof(*wgmd));
   4287   1.39  riastrad 	wgmd->wgmd_type = htole32(WG_MSG_TYPE_DATA);
   4288   1.49  riastrad 	wgmd->wgmd_receiver = wgs->wgs_remote_index;
   4289    1.1  riastrad 	/* [W] 5.4.6: msg.counter := Nm^send */
   4290    1.1  riastrad 	/* [W] 5.4.6: Nm^send := Nm^send + 1 */
   4291   1.39  riastrad 	wgmd->wgmd_counter = htole64(wg_session_inc_send_counter(wgs));
   4292   1.39  riastrad 	WG_DLOG("counter=%"PRIu64"\n", le64toh(wgmd->wgmd_counter));
   4293    1.1  riastrad }
   4294    1.1  riastrad 
   4295    1.1  riastrad static int
   4296    1.1  riastrad wg_output(struct ifnet *ifp, struct mbuf *m, const struct sockaddr *dst,
   4297    1.1  riastrad     const struct rtentry *rt)
   4298    1.1  riastrad {
   4299    1.1  riastrad 	struct wg_softc *wg = ifp->if_softc;
   4300   1.49  riastrad 	struct wg_peer *wgp = NULL;
   4301  1.126  riastrad 	struct psref wgp_psref;
   4302    1.1  riastrad 	int bound;
   4303   1.49  riastrad 	int error;
   4304   1.49  riastrad 
   4305   1.49  riastrad 	bound = curlwp_bind();
   4306    1.1  riastrad 
   4307    1.1  riastrad 	/* TODO make the nest limit configurable via sysctl */
   4308    1.1  riastrad 	error = if_tunnel_check_nesting(ifp, m, 1);
   4309   1.49  riastrad 	if (error) {
   4310   1.76  jakllsch 		WGLOG(LOG_ERR,
   4311   1.76  jakllsch 		    "%s: tunneling loop detected and packet dropped\n",
   4312   1.76  jakllsch 		    if_name(&wg->wg_if));
   4313   1.54  riastrad 		goto out0;
   4314    1.1  riastrad 	}
   4315    1.1  riastrad 
   4316   1.60  riastrad #ifdef ALTQ
   4317   1.60  riastrad 	bool altq = atomic_load_relaxed(&ifp->if_snd.altq_flags)
   4318   1.60  riastrad 	    & ALTQF_ENABLED;
   4319   1.60  riastrad 	if (altq)
   4320   1.60  riastrad 		IFQ_CLASSIFY(&ifp->if_snd, m, dst->sa_family);
   4321   1.60  riastrad #endif
   4322    1.1  riastrad 
   4323    1.1  riastrad 	bpf_mtap_af(ifp, dst->sa_family, m, BPF_D_OUT);
   4324    1.1  riastrad 
   4325    1.1  riastrad 	m->m_flags &= ~(M_BCAST|M_MCAST);
   4326    1.1  riastrad 
   4327   1.49  riastrad 	wgp = wg_pick_peer_by_sa(wg, dst, &wgp_psref);
   4328    1.1  riastrad 	if (wgp == NULL) {
   4329    1.1  riastrad 		WG_TRACE("peer not found");
   4330    1.1  riastrad 		error = EHOSTUNREACH;
   4331   1.54  riastrad 		goto out0;
   4332    1.1  riastrad 	}
   4333    1.1  riastrad 
   4334    1.1  riastrad 	/* Clear checksum-offload flags. */
   4335    1.1  riastrad 	m->m_pkthdr.csum_flags = 0;
   4336    1.1  riastrad 	m->m_pkthdr.csum_data = 0;
   4337    1.1  riastrad 
   4338  1.126  riastrad 	/* Toss it in the queue.  */
   4339   1.60  riastrad #ifdef ALTQ
   4340   1.60  riastrad 	if (altq) {
   4341   1.60  riastrad 		mutex_enter(ifp->if_snd.ifq_lock);
   4342   1.60  riastrad 		if (ALTQ_IS_ENABLED(&ifp->if_snd)) {
   4343   1.60  riastrad 			M_SETCTX(m, wgp);
   4344   1.60  riastrad 			ALTQ_ENQUEUE(&ifp->if_snd, m, error);
   4345   1.60  riastrad 			m = NULL; /* consume */
   4346   1.60  riastrad 		}
   4347   1.60  riastrad 		mutex_exit(ifp->if_snd.ifq_lock);
   4348   1.60  riastrad 		if (m == NULL) {
   4349   1.60  riastrad 			wg_start(ifp);
   4350  1.126  riastrad 			goto out1;
   4351   1.60  riastrad 		}
   4352   1.60  riastrad 	}
   4353   1.60  riastrad #endif
   4354   1.54  riastrad 	kpreempt_disable();
   4355   1.54  riastrad 	const uint32_t h = curcpu()->ci_index;	// pktq_rps_hash(m)
   4356   1.54  riastrad 	M_SETCTX(m, wgp);
   4357   1.54  riastrad 	if (__predict_false(!pktq_enqueue(wg_pktq, m, h))) {
   4358   1.76  jakllsch 		WGLOG(LOG_ERR, "%s: pktq full, dropping\n",
   4359   1.76  jakllsch 		    if_name(&wg->wg_if));
   4360    1.1  riastrad 		error = ENOBUFS;
   4361  1.126  riastrad 		goto out2;
   4362    1.1  riastrad 	}
   4363   1.49  riastrad 	m = NULL;		/* consumed */
   4364   1.49  riastrad 	error = 0;
   4365  1.126  riastrad out2:	kpreempt_enable();
   4366    1.1  riastrad 
   4367   1.60  riastrad #ifdef ALTQ
   4368  1.126  riastrad out1:
   4369   1.60  riastrad #endif
   4370  1.126  riastrad 	wg_put_peer(wgp, &wgp_psref);
   4371   1.79       rin out0:	m_freem(m);
   4372    1.1  riastrad 	curlwp_bindx(bound);
   4373    1.1  riastrad 	return error;
   4374    1.1  riastrad }
   4375    1.1  riastrad 
   4376    1.1  riastrad static int
   4377    1.1  riastrad wg_send_udp(struct wg_peer *wgp, struct mbuf *m)
   4378    1.1  riastrad {
   4379    1.1  riastrad 	struct psref psref;
   4380    1.1  riastrad 	struct wg_sockaddr *wgsa;
   4381    1.1  riastrad 	int error;
   4382   1.47  riastrad 	struct socket *so;
   4383    1.1  riastrad 
   4384   1.47  riastrad 	wgsa = wg_get_endpoint_sa(wgp, &psref);
   4385   1.47  riastrad 	so = wg_get_so_by_peer(wgp, wgsa);
   4386    1.1  riastrad 	solock(so);
   4387  1.109  riastrad 	switch (wgsatosa(wgsa)->sa_family) {
   4388  1.109  riastrad #ifdef INET
   4389  1.109  riastrad 	case AF_INET:
   4390    1.1  riastrad 		error = udp_send(so, m, wgsatosa(wgsa), NULL, curlwp);
   4391  1.109  riastrad 		break;
   4392  1.109  riastrad #endif
   4393    1.1  riastrad #ifdef INET6
   4394  1.109  riastrad 	case AF_INET6:
   4395   1.70     ozaki 		error = udp6_output(sotoinpcb(so), m, wgsatosin6(wgsa),
   4396    1.1  riastrad 		    NULL, curlwp);
   4397  1.109  riastrad 		break;
   4398  1.109  riastrad #endif
   4399  1.109  riastrad 	default:
   4400   1.38  riastrad 		m_freem(m);
   4401   1.47  riastrad 		error = EPFNOSUPPORT;
   4402    1.1  riastrad 	}
   4403   1.47  riastrad 	sounlock(so);
   4404    1.1  riastrad 	wg_put_sa(wgp, wgsa, &psref);
   4405    1.1  riastrad 
   4406    1.1  riastrad 	return error;
   4407    1.1  riastrad }
   4408    1.1  riastrad 
   4409    1.1  riastrad /* Inspired by pppoe_get_mbuf */
   4410    1.1  riastrad static struct mbuf *
   4411    1.1  riastrad wg_get_mbuf(size_t leading_len, size_t len)
   4412    1.1  riastrad {
   4413    1.1  riastrad 	struct mbuf *m;
   4414    1.1  riastrad 
   4415   1.30  riastrad 	KASSERT(leading_len <= MCLBYTES);
   4416   1.30  riastrad 	KASSERT(len <= MCLBYTES - leading_len);
   4417   1.30  riastrad 
   4418    1.1  riastrad 	m = m_gethdr(M_DONTWAIT, MT_DATA);
   4419    1.1  riastrad 	if (m == NULL)
   4420    1.1  riastrad 		return NULL;
   4421    1.1  riastrad 	if (len + leading_len > MHLEN) {
   4422    1.1  riastrad 		m_clget(m, M_DONTWAIT);
   4423    1.1  riastrad 		if ((m->m_flags & M_EXT) == 0) {
   4424    1.1  riastrad 			m_free(m);
   4425    1.1  riastrad 			return NULL;
   4426    1.1  riastrad 		}
   4427    1.1  riastrad 	}
   4428    1.1  riastrad 	m->m_data += leading_len;
   4429    1.1  riastrad 	m->m_pkthdr.len = m->m_len = len;
   4430    1.1  riastrad 
   4431    1.1  riastrad 	return m;
   4432    1.1  riastrad }
   4433    1.1  riastrad 
   4434  1.108  riastrad static void
   4435  1.108  riastrad wg_send_data_msg(struct wg_peer *wgp, struct wg_session *wgs, struct mbuf *m)
   4436    1.1  riastrad {
   4437    1.1  riastrad 	struct wg_softc *wg = wgp->wgp_sc;
   4438    1.1  riastrad 	int error;
   4439    1.1  riastrad 	size_t inner_len, padded_len, encrypted_len;
   4440    1.1  riastrad 	char *padded_buf = NULL;
   4441    1.1  riastrad 	size_t mlen;
   4442    1.1  riastrad 	struct wg_msg_data *wgmd;
   4443    1.1  riastrad 	bool free_padded_buf = false;
   4444    1.1  riastrad 	struct mbuf *n;
   4445   1.62  riastrad 	size_t leading_len = max_hdr + sizeof(struct udphdr);
   4446    1.1  riastrad 
   4447    1.1  riastrad 	mlen = m_length(m);
   4448    1.1  riastrad 	inner_len = mlen;
   4449    1.2  riastrad 	padded_len = roundup(mlen, 16);
   4450    1.2  riastrad 	encrypted_len = padded_len + WG_AUTHTAG_LEN;
   4451   1.87       kre 	WG_DLOG("inner=%zu, padded=%zu, encrypted_len=%zu\n",
   4452    1.1  riastrad 	    inner_len, padded_len, encrypted_len);
   4453    1.1  riastrad 	if (mlen != 0) {
   4454    1.1  riastrad 		bool success;
   4455    1.1  riastrad 		success = m_ensure_contig(&m, padded_len);
   4456    1.1  riastrad 		if (success) {
   4457    1.1  riastrad 			padded_buf = mtod(m, char *);
   4458    1.1  riastrad 		} else {
   4459    1.1  riastrad 			padded_buf = kmem_intr_alloc(padded_len, KM_NOSLEEP);
   4460    1.1  riastrad 			if (padded_buf == NULL) {
   4461    1.1  riastrad 				error = ENOBUFS;
   4462  1.108  riastrad 				goto out;
   4463    1.1  riastrad 			}
   4464    1.1  riastrad 			free_padded_buf = true;
   4465    1.1  riastrad 			m_copydata(m, 0, mlen, padded_buf);
   4466    1.1  riastrad 		}
   4467    1.1  riastrad 		memset(padded_buf + mlen, 0, padded_len - inner_len);
   4468    1.1  riastrad 	}
   4469    1.1  riastrad 
   4470    1.1  riastrad 	n = wg_get_mbuf(leading_len, sizeof(*wgmd) + encrypted_len);
   4471    1.1  riastrad 	if (n == NULL) {
   4472    1.1  riastrad 		error = ENOBUFS;
   4473  1.108  riastrad 		goto out;
   4474    1.1  riastrad 	}
   4475   1.27  riastrad 	KASSERT(n->m_len >= sizeof(*wgmd));
   4476    1.1  riastrad 	wgmd = mtod(n, struct wg_msg_data *);
   4477    1.1  riastrad 	wg_fill_msg_data(wg, wgp, wgs, wgmd);
   4478  1.111  riastrad 
   4479    1.1  riastrad 	/* [W] 5.4.6: AEAD(Tm^send, Nm^send, P, e) */
   4480    1.1  riastrad 	wg_algo_aead_enc((char *)wgmd + sizeof(*wgmd), encrypted_len,
   4481   1.39  riastrad 	    wgs->wgs_tkey_send, le64toh(wgmd->wgmd_counter),
   4482   1.39  riastrad 	    padded_buf, padded_len,
   4483    1.1  riastrad 	    NULL, 0);
   4484    1.1  riastrad 
   4485  1.108  riastrad 	error = wg->wg_ops->send_data_msg(wgp, n); /* consumes n */
   4486  1.108  riastrad 	if (error) {
   4487  1.108  riastrad 		WG_DLOG("send_data_msg failed, error=%d\n", error);
   4488  1.108  riastrad 		goto out;
   4489  1.108  riastrad 	}
   4490  1.108  riastrad 
   4491  1.108  riastrad 	/*
   4492  1.108  riastrad 	 * Packet was sent out -- count it in the interface statistics.
   4493  1.108  riastrad 	 */
   4494  1.108  riastrad 	if_statadd(&wg->wg_if, if_obytes, mlen);
   4495  1.108  riastrad 	if_statinc(&wg->wg_if, if_opackets);
   4496  1.108  riastrad 
   4497  1.108  riastrad 	/*
   4498  1.108  riastrad 	 * Record when we last sent data, for determining when we need
   4499  1.108  riastrad 	 * to send a passive keepalive.
   4500  1.108  riastrad 	 *
   4501  1.108  riastrad 	 * Other logic assumes that wgs_time_last_data_sent is zero iff
   4502  1.108  riastrad 	 * we have never sent data on this session.  Early at boot, if
   4503  1.108  riastrad 	 * wg(4) starts operating within <1sec, or after 136 years of
   4504  1.108  riastrad 	 * uptime, we may observe time_uptime32 = 0.  In that case,
   4505  1.108  riastrad 	 * pretend we observed 1 instead.  That way, we correctly
   4506  1.108  riastrad 	 * indicate we have sent data on this session; the only logic
   4507  1.108  riastrad 	 * this might adversely affect is the keepalive timeout
   4508  1.108  riastrad 	 * detection, which might spuriously send a keepalive during
   4509  1.108  riastrad 	 * one second every 136 years.  All of this is very silly, of
   4510  1.108  riastrad 	 * course, but the cost to guaranteeing wgs_time_last_data_sent
   4511  1.108  riastrad 	 * is nonzero is negligible here.
   4512  1.108  riastrad 	 */
   4513  1.108  riastrad 	const uint32_t now = time_uptime32;
   4514  1.108  riastrad 	atomic_store_relaxed(&wgs->wgs_time_last_data_sent, MAX(now, 1));
   4515  1.108  riastrad 
   4516  1.108  riastrad 	/*
   4517  1.108  riastrad 	 * Check rekey-after-time.
   4518  1.108  riastrad 	 */
   4519  1.108  riastrad 	if (wgs->wgs_is_initiator &&
   4520  1.117  riastrad 	    now - wgs->wgs_time_established >= wg_rekey_after_time) {
   4521  1.108  riastrad 		/*
   4522  1.108  riastrad 		 * [W] 6.2 Transport Message Limits
   4523  1.108  riastrad 		 * "if a peer is the initiator of a current secure
   4524  1.108  riastrad 		 *  session, WireGuard will send a handshake initiation
   4525  1.108  riastrad 		 *  message to begin a new secure session if, after
   4526  1.108  riastrad 		 *  transmitting a transport data message, the current
   4527  1.108  riastrad 		 *  secure session is REKEY-AFTER-TIME seconds old,"
   4528  1.108  riastrad 		 */
   4529  1.108  riastrad 		WG_TRACE("rekey after time");
   4530  1.113  riastrad 		atomic_store_relaxed(&wgs->wgs_force_rekey, true);
   4531  1.108  riastrad 		wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
   4532  1.108  riastrad 	}
   4533  1.108  riastrad 
   4534  1.108  riastrad 	/*
   4535  1.108  riastrad 	 * Check rekey-after-messages.
   4536  1.108  riastrad 	 */
   4537  1.108  riastrad 	if (wg_session_get_send_counter(wgs) >= wg_rekey_after_messages) {
   4538  1.108  riastrad 		/*
   4539  1.108  riastrad 		 * [W] 6.2 Transport Message Limits
   4540  1.108  riastrad 		 * "WireGuard will try to create a new session, by
   4541  1.108  riastrad 		 *  sending a handshake initiation message (section
   4542  1.108  riastrad 		 *  5.4.2), after it has sent REKEY-AFTER-MESSAGES
   4543  1.108  riastrad 		 *  transport data messages..."
   4544  1.108  riastrad 		 */
   4545  1.108  riastrad 		WG_TRACE("rekey after messages");
   4546  1.113  riastrad 		atomic_store_relaxed(&wgs->wgs_force_rekey, true);
   4547  1.108  riastrad 		wg_schedule_peer_task(wgp, WGP_TASK_SEND_INIT_MESSAGE);
   4548    1.1  riastrad 	}
   4549  1.108  riastrad 
   4550  1.108  riastrad out:	m_freem(m);
   4551    1.1  riastrad 	if (free_padded_buf)
   4552    1.1  riastrad 		kmem_intr_free(padded_buf, padded_len);
   4553    1.1  riastrad }
   4554    1.1  riastrad 
   4555    1.1  riastrad static void
   4556    1.1  riastrad wg_input(struct ifnet *ifp, struct mbuf *m, const int af)
   4557    1.1  riastrad {
   4558    1.1  riastrad 	pktqueue_t *pktq;
   4559    1.1  riastrad 	size_t pktlen;
   4560    1.1  riastrad 
   4561    1.1  riastrad 	KASSERT(af == AF_INET || af == AF_INET6);
   4562    1.1  riastrad 
   4563    1.1  riastrad 	WG_TRACE("");
   4564    1.1  riastrad 
   4565    1.1  riastrad 	m_set_rcvif(m, ifp);
   4566    1.1  riastrad 	pktlen = m->m_pkthdr.len;
   4567    1.1  riastrad 
   4568    1.1  riastrad 	bpf_mtap_af(ifp, af, m, BPF_D_IN);
   4569    1.1  riastrad 
   4570    1.1  riastrad 	switch (af) {
   4571  1.109  riastrad #ifdef INET
   4572    1.1  riastrad 	case AF_INET:
   4573    1.1  riastrad 		pktq = ip_pktq;
   4574    1.1  riastrad 		break;
   4575  1.109  riastrad #endif
   4576    1.1  riastrad #ifdef INET6
   4577    1.1  riastrad 	case AF_INET6:
   4578    1.1  riastrad 		pktq = ip6_pktq;
   4579    1.1  riastrad 		break;
   4580    1.1  riastrad #endif
   4581    1.1  riastrad 	default:
   4582    1.1  riastrad 		panic("invalid af=%d", af);
   4583    1.1  riastrad 	}
   4584    1.1  riastrad 
   4585   1.57  riastrad 	kpreempt_disable();
   4586    1.1  riastrad 	const u_int h = curcpu()->ci_index;
   4587    1.1  riastrad 	if (__predict_true(pktq_enqueue(pktq, m, h))) {
   4588    1.4  riastrad 		if_statadd(ifp, if_ibytes, pktlen);
   4589    1.4  riastrad 		if_statinc(ifp, if_ipackets);
   4590    1.1  riastrad 	} else {
   4591    1.1  riastrad 		m_freem(m);
   4592    1.1  riastrad 	}
   4593   1.57  riastrad 	kpreempt_enable();
   4594    1.1  riastrad }
   4595    1.1  riastrad 
   4596    1.1  riastrad static void
   4597  1.114  riastrad wg_calc_pubkey(uint8_t pubkey[static WG_STATIC_KEY_LEN],
   4598  1.114  riastrad     const uint8_t privkey[static WG_STATIC_KEY_LEN])
   4599    1.1  riastrad {
   4600    1.1  riastrad 
   4601    1.1  riastrad 	crypto_scalarmult_base(pubkey, privkey);
   4602    1.1  riastrad }
   4603    1.1  riastrad 
   4604    1.1  riastrad static int
   4605    1.1  riastrad wg_rtable_add_route(struct wg_softc *wg, struct wg_allowedip *wga)
   4606    1.1  riastrad {
   4607    1.1  riastrad 	struct radix_node_head *rnh;
   4608    1.1  riastrad 	struct radix_node *rn;
   4609    1.1  riastrad 	int error = 0;
   4610    1.1  riastrad 
   4611    1.1  riastrad 	rw_enter(wg->wg_rwlock, RW_WRITER);
   4612    1.1  riastrad 	rnh = wg_rnh(wg, wga->wga_family);
   4613    1.1  riastrad 	KASSERT(rnh != NULL);
   4614    1.1  riastrad 	rn = rnh->rnh_addaddr(&wga->wga_sa_addr, &wga->wga_sa_mask, rnh,
   4615    1.1  riastrad 	    wga->wga_nodes);
   4616    1.1  riastrad 	rw_exit(wg->wg_rwlock);
   4617    1.1  riastrad 
   4618    1.1  riastrad 	if (rn == NULL)
   4619    1.1  riastrad 		error = EEXIST;
   4620    1.1  riastrad 
   4621    1.1  riastrad 	return error;
   4622    1.1  riastrad }
   4623    1.1  riastrad 
   4624    1.1  riastrad static int
   4625    1.1  riastrad wg_handle_prop_peer(struct wg_softc *wg, prop_dictionary_t peer,
   4626    1.1  riastrad     struct wg_peer **wgpp)
   4627    1.1  riastrad {
   4628    1.1  riastrad 	int error = 0;
   4629   1.12  riastrad 	const void *pubkey;
   4630    1.1  riastrad 	size_t pubkey_len;
   4631   1.12  riastrad 	const void *psk;
   4632   1.12  riastrad 	size_t psk_len;
   4633    1.1  riastrad 	const char *name = NULL;
   4634    1.1  riastrad 
   4635   1.12  riastrad 	if (prop_dictionary_get_string(peer, "name", &name)) {
   4636    1.1  riastrad 		if (strlen(name) > WG_PEER_NAME_MAXLEN) {
   4637    1.1  riastrad 			error = EINVAL;
   4638    1.1  riastrad 			goto out;
   4639    1.1  riastrad 		}
   4640    1.1  riastrad 	}
   4641    1.1  riastrad 
   4642   1.12  riastrad 	if (!prop_dictionary_get_data(peer, "public_key",
   4643   1.12  riastrad 		&pubkey, &pubkey_len)) {
   4644    1.1  riastrad 		error = EINVAL;
   4645    1.1  riastrad 		goto out;
   4646    1.1  riastrad 	}
   4647    1.1  riastrad #ifdef WG_DEBUG_DUMP
   4648   1.80  christos         if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
   4649   1.80  christos 		char *hex = gethexdump(pubkey, pubkey_len);
   4650   1.87       kre 		log(LOG_DEBUG, "pubkey=%p, pubkey_len=%zu\n%s\n",
   4651   1.80  christos 		    pubkey, pubkey_len, hex);
   4652   1.80  christos 		puthexdump(hex, pubkey, pubkey_len);
   4653   1.80  christos 	}
   4654    1.1  riastrad #endif
   4655    1.1  riastrad 
   4656    1.1  riastrad 	struct wg_peer *wgp = wg_alloc_peer(wg);
   4657    1.1  riastrad 	memcpy(wgp->wgp_pubkey, pubkey, sizeof(wgp->wgp_pubkey));
   4658    1.1  riastrad 	if (name != NULL)
   4659    1.1  riastrad 		strncpy(wgp->wgp_name, name, sizeof(wgp->wgp_name));
   4660    1.1  riastrad 
   4661   1.12  riastrad 	if (prop_dictionary_get_data(peer, "preshared_key", &psk, &psk_len)) {
   4662    1.1  riastrad 		if (psk_len != sizeof(wgp->wgp_psk)) {
   4663    1.1  riastrad 			error = EINVAL;
   4664    1.1  riastrad 			goto out;
   4665    1.1  riastrad 		}
   4666    1.1  riastrad 		memcpy(wgp->wgp_psk, psk, sizeof(wgp->wgp_psk));
   4667    1.1  riastrad 	}
   4668    1.1  riastrad 
   4669   1.12  riastrad 	const void *addr;
   4670    1.1  riastrad 	size_t addr_len;
   4671   1.47  riastrad 	struct wg_sockaddr *wgsa = wgp->wgp_endpoint;
   4672    1.1  riastrad 
   4673   1.12  riastrad 	if (!prop_dictionary_get_data(peer, "endpoint", &addr, &addr_len))
   4674    1.1  riastrad 		goto skip_endpoint;
   4675   1.47  riastrad 	if (addr_len < sizeof(*wgsatosa(wgsa)) ||
   4676   1.47  riastrad 	    addr_len > sizeof(*wgsatoss(wgsa))) {
   4677   1.47  riastrad 		error = EINVAL;
   4678   1.47  riastrad 		goto out;
   4679   1.47  riastrad 	}
   4680   1.47  riastrad 	memcpy(wgsatoss(wgsa), addr, addr_len);
   4681   1.47  riastrad 	switch (wgsa_family(wgsa)) {
   4682  1.109  riastrad #ifdef INET
   4683   1.47  riastrad 	case AF_INET:
   4684  1.109  riastrad 		break;
   4685  1.109  riastrad #endif
   4686    1.1  riastrad #ifdef INET6
   4687   1.47  riastrad 	case AF_INET6:
   4688  1.109  riastrad 		break;
   4689   1.47  riastrad #endif
   4690    1.1  riastrad 	default:
   4691   1.47  riastrad 		error = EPFNOSUPPORT;
   4692   1.47  riastrad 		goto out;
   4693   1.47  riastrad 	}
   4694   1.47  riastrad 	if (addr_len != sockaddr_getsize_by_family(wgsa_family(wgsa))) {
   4695   1.47  riastrad 		error = EINVAL;
   4696   1.47  riastrad 		goto out;
   4697    1.1  riastrad 	}
   4698   1.47  riastrad     {
   4699   1.47  riastrad 	char addrstr[128];
   4700   1.47  riastrad 	sockaddr_format(wgsatosa(wgsa), addrstr, sizeof(addrstr));
   4701   1.47  riastrad 	WG_DLOG("addr=%s\n", addrstr);
   4702   1.47  riastrad     }
   4703    1.1  riastrad 	wgp->wgp_endpoint_available = true;
   4704    1.1  riastrad 
   4705    1.1  riastrad 	prop_array_t allowedips;
   4706    1.1  riastrad skip_endpoint:
   4707    1.1  riastrad 	allowedips = prop_dictionary_get(peer, "allowedips");
   4708    1.1  riastrad 	if (allowedips == NULL)
   4709    1.1  riastrad 		goto skip;
   4710    1.1  riastrad 
   4711    1.1  riastrad 	prop_object_iterator_t _it = prop_array_iterator(allowedips);
   4712    1.1  riastrad 	prop_dictionary_t prop_allowedip;
   4713    1.1  riastrad 	int j = 0;
   4714    1.1  riastrad 	while ((prop_allowedip = prop_object_iterator_next(_it)) != NULL) {
   4715    1.1  riastrad 		struct wg_allowedip *wga = &wgp->wgp_allowedips[j];
   4716    1.1  riastrad 
   4717   1.12  riastrad 		if (!prop_dictionary_get_int(prop_allowedip, "family",
   4718   1.12  riastrad 			&wga->wga_family))
   4719    1.1  riastrad 			continue;
   4720   1.12  riastrad 		if (!prop_dictionary_get_data(prop_allowedip, "ip",
   4721   1.12  riastrad 			&addr, &addr_len))
   4722    1.1  riastrad 			continue;
   4723   1.12  riastrad 		if (!prop_dictionary_get_uint8(prop_allowedip, "cidr",
   4724   1.12  riastrad 			&wga->wga_cidr))
   4725    1.1  riastrad 			continue;
   4726    1.1  riastrad 
   4727    1.1  riastrad 		switch (wga->wga_family) {
   4728  1.109  riastrad #ifdef INET
   4729    1.1  riastrad 		case AF_INET: {
   4730    1.1  riastrad 			struct sockaddr_in sin;
   4731    1.1  riastrad 			char addrstr[128];
   4732    1.1  riastrad 			struct in_addr mask;
   4733    1.1  riastrad 			struct sockaddr_in sin_mask;
   4734    1.1  riastrad 
   4735    1.1  riastrad 			if (addr_len != sizeof(struct in_addr))
   4736    1.1  riastrad 				return EINVAL;
   4737    1.1  riastrad 			memcpy(&wga->wga_addr4, addr, addr_len);
   4738    1.1  riastrad 
   4739    1.9  riastrad 			sockaddr_in_init(&sin, (const struct in_addr *)addr,
   4740    1.9  riastrad 			    0);
   4741    1.1  riastrad 			sockaddr_copy(&wga->wga_sa_addr,
   4742    1.1  riastrad 			    sizeof(sin), sintosa(&sin));
   4743    1.1  riastrad 
   4744    1.9  riastrad 			sockaddr_format(sintosa(&sin),
   4745    1.9  riastrad 			    addrstr, sizeof(addrstr));
   4746    1.1  riastrad 			WG_DLOG("addr=%s/%d\n", addrstr, wga->wga_cidr);
   4747    1.1  riastrad 
   4748    1.1  riastrad 			in_len2mask(&mask, wga->wga_cidr);
   4749    1.1  riastrad 			sockaddr_in_init(&sin_mask, &mask, 0);
   4750    1.1  riastrad 			sockaddr_copy(&wga->wga_sa_mask,
   4751    1.1  riastrad 			    sizeof(sin_mask), sintosa(&sin_mask));
   4752    1.1  riastrad 
   4753    1.1  riastrad 			break;
   4754    1.1  riastrad 		    }
   4755  1.109  riastrad #endif
   4756    1.1  riastrad #ifdef INET6
   4757    1.1  riastrad 		case AF_INET6: {
   4758    1.1  riastrad 			struct sockaddr_in6 sin6;
   4759    1.1  riastrad 			char addrstr[128];
   4760    1.1  riastrad 			struct in6_addr mask;
   4761    1.1  riastrad 			struct sockaddr_in6 sin6_mask;
   4762    1.1  riastrad 
   4763    1.1  riastrad 			if (addr_len != sizeof(struct in6_addr))
   4764    1.1  riastrad 				return EINVAL;
   4765    1.1  riastrad 			memcpy(&wga->wga_addr6, addr, addr_len);
   4766    1.1  riastrad 
   4767    1.9  riastrad 			sockaddr_in6_init(&sin6, (const struct in6_addr *)addr,
   4768    1.9  riastrad 			    0, 0, 0);
   4769    1.1  riastrad 			sockaddr_copy(&wga->wga_sa_addr,
   4770    1.1  riastrad 			    sizeof(sin6), sin6tosa(&sin6));
   4771    1.1  riastrad 
   4772    1.9  riastrad 			sockaddr_format(sin6tosa(&sin6),
   4773    1.9  riastrad 			    addrstr, sizeof(addrstr));
   4774    1.1  riastrad 			WG_DLOG("addr=%s/%d\n", addrstr, wga->wga_cidr);
   4775    1.1  riastrad 
   4776    1.1  riastrad 			in6_prefixlen2mask(&mask, wga->wga_cidr);
   4777    1.1  riastrad 			sockaddr_in6_init(&sin6_mask, &mask, 0, 0, 0);
   4778    1.1  riastrad 			sockaddr_copy(&wga->wga_sa_mask,
   4779    1.1  riastrad 			    sizeof(sin6_mask), sin6tosa(&sin6_mask));
   4780    1.1  riastrad 
   4781    1.1  riastrad 			break;
   4782    1.1  riastrad 		    }
   4783    1.1  riastrad #endif
   4784    1.1  riastrad 		default:
   4785    1.1  riastrad 			error = EINVAL;
   4786    1.1  riastrad 			goto out;
   4787    1.1  riastrad 		}
   4788    1.1  riastrad 		wga->wga_peer = wgp;
   4789    1.1  riastrad 
   4790    1.1  riastrad 		error = wg_rtable_add_route(wg, wga);
   4791    1.1  riastrad 		if (error != 0)
   4792    1.1  riastrad 			goto out;
   4793    1.1  riastrad 
   4794    1.1  riastrad 		j++;
   4795    1.1  riastrad 	}
   4796    1.1  riastrad 	wgp->wgp_n_allowedips = j;
   4797    1.1  riastrad skip:
   4798    1.1  riastrad 	*wgpp = wgp;
   4799    1.1  riastrad out:
   4800    1.1  riastrad 	return error;
   4801    1.1  riastrad }
   4802    1.1  riastrad 
   4803    1.1  riastrad static int
   4804    1.1  riastrad wg_alloc_prop_buf(char **_buf, struct ifdrv *ifd)
   4805    1.1  riastrad {
   4806    1.1  riastrad 	int error;
   4807    1.1  riastrad 	char *buf;
   4808    1.1  riastrad 
   4809   1.87       kre 	WG_DLOG("buf=%p, len=%zu\n", ifd->ifd_data, ifd->ifd_len);
   4810   1.68  riastrad 	if (ifd->ifd_len >= WG_MAX_PROPLEN)
   4811   1.68  riastrad 		return E2BIG;
   4812    1.1  riastrad 	buf = kmem_alloc(ifd->ifd_len + 1, KM_SLEEP);
   4813    1.1  riastrad 	error = copyin(ifd->ifd_data, buf, ifd->ifd_len);
   4814    1.1  riastrad 	if (error != 0)
   4815    1.1  riastrad 		return error;
   4816    1.1  riastrad 	buf[ifd->ifd_len] = '\0';
   4817    1.1  riastrad #ifdef WG_DEBUG_DUMP
   4818   1.80  christos 	if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
   4819   1.80  christos 		log(LOG_DEBUG, "%.*s\n", (int)MIN(INT_MAX, ifd->ifd_len),
   4820   1.80  christos 		    (const char *)buf);
   4821   1.80  christos 	}
   4822    1.1  riastrad #endif
   4823    1.1  riastrad 	*_buf = buf;
   4824    1.1  riastrad 	return 0;
   4825    1.1  riastrad }
   4826    1.1  riastrad 
   4827    1.1  riastrad static int
   4828    1.1  riastrad wg_ioctl_set_private_key(struct wg_softc *wg, struct ifdrv *ifd)
   4829    1.1  riastrad {
   4830    1.1  riastrad 	int error;
   4831    1.1  riastrad 	prop_dictionary_t prop_dict;
   4832    1.1  riastrad 	char *buf = NULL;
   4833   1.12  riastrad 	const void *privkey;
   4834    1.1  riastrad 	size_t privkey_len;
   4835    1.1  riastrad 
   4836    1.1  riastrad 	error = wg_alloc_prop_buf(&buf, ifd);
   4837    1.1  riastrad 	if (error != 0)
   4838    1.1  riastrad 		return error;
   4839    1.1  riastrad 	error = EINVAL;
   4840    1.1  riastrad 	prop_dict = prop_dictionary_internalize(buf);
   4841    1.1  riastrad 	if (prop_dict == NULL)
   4842    1.1  riastrad 		goto out;
   4843   1.12  riastrad 	if (!prop_dictionary_get_data(prop_dict, "private_key",
   4844   1.12  riastrad 		&privkey, &privkey_len))
   4845    1.1  riastrad 		goto out;
   4846    1.1  riastrad #ifdef WG_DEBUG_DUMP
   4847   1.80  christos 	if (wg_debug & WG_DEBUG_FLAGS_DUMP) {
   4848   1.80  christos 		char *hex = gethexdump(privkey, privkey_len);
   4849   1.87       kre 		log(LOG_DEBUG, "privkey=%p, privkey_len=%zu\n%s\n",
   4850   1.80  christos 		    privkey, privkey_len, hex);
   4851   1.80  christos 		puthexdump(hex, privkey, privkey_len);
   4852   1.80  christos 	}
   4853    1.1  riastrad #endif
   4854    1.1  riastrad 	if (privkey_len != WG_STATIC_KEY_LEN)
   4855    1.1  riastrad 		goto out;
   4856    1.1  riastrad 	memcpy(wg->wg_privkey, privkey, WG_STATIC_KEY_LEN);
   4857    1.1  riastrad 	wg_calc_pubkey(wg->wg_pubkey, wg->wg_privkey);
   4858    1.1  riastrad 	error = 0;
   4859    1.1  riastrad 
   4860    1.1  riastrad out:
   4861    1.1  riastrad 	kmem_free(buf, ifd->ifd_len + 1);
   4862    1.1  riastrad 	return error;
   4863    1.1  riastrad }
   4864    1.1  riastrad 
   4865    1.1  riastrad static int
   4866    1.1  riastrad wg_ioctl_set_listen_port(struct wg_softc *wg, struct ifdrv *ifd)
   4867    1.1  riastrad {
   4868    1.1  riastrad 	int error;
   4869    1.1  riastrad 	prop_dictionary_t prop_dict;
   4870    1.1  riastrad 	char *buf = NULL;
   4871   1.12  riastrad 	uint16_t port;
   4872    1.1  riastrad 
   4873    1.1  riastrad 	error = wg_alloc_prop_buf(&buf, ifd);
   4874    1.1  riastrad 	if (error != 0)
   4875    1.1  riastrad 		return error;
   4876    1.1  riastrad 	error = EINVAL;
   4877    1.1  riastrad 	prop_dict = prop_dictionary_internalize(buf);
   4878    1.1  riastrad 	if (prop_dict == NULL)
   4879    1.1  riastrad 		goto out;
   4880   1.12  riastrad 	if (!prop_dictionary_get_uint16(prop_dict, "listen_port", &port))
   4881    1.1  riastrad 		goto out;
   4882    1.1  riastrad 
   4883    1.1  riastrad 	error = wg->wg_ops->bind_port(wg, (uint16_t)port);
   4884    1.1  riastrad 
   4885    1.1  riastrad out:
   4886    1.1  riastrad 	kmem_free(buf, ifd->ifd_len + 1);
   4887    1.1  riastrad 	return error;
   4888    1.1  riastrad }
   4889    1.1  riastrad 
   4890    1.1  riastrad static int
   4891    1.1  riastrad wg_ioctl_add_peer(struct wg_softc *wg, struct ifdrv *ifd)
   4892    1.1  riastrad {
   4893    1.1  riastrad 	int error;
   4894    1.1  riastrad 	prop_dictionary_t prop_dict;
   4895    1.1  riastrad 	char *buf = NULL;
   4896   1.37  riastrad 	struct wg_peer *wgp = NULL, *wgp0 __diagused;
   4897    1.1  riastrad 
   4898    1.1  riastrad 	error = wg_alloc_prop_buf(&buf, ifd);
   4899    1.1  riastrad 	if (error != 0)
   4900    1.1  riastrad 		return error;
   4901    1.1  riastrad 	error = EINVAL;
   4902    1.1  riastrad 	prop_dict = prop_dictionary_internalize(buf);
   4903    1.1  riastrad 	if (prop_dict == NULL)
   4904    1.1  riastrad 		goto out;
   4905    1.1  riastrad 
   4906    1.1  riastrad 	error = wg_handle_prop_peer(wg, prop_dict, &wgp);
   4907    1.1  riastrad 	if (error != 0)
   4908    1.1  riastrad 		goto out;
   4909    1.1  riastrad 
   4910    1.1  riastrad 	mutex_enter(wg->wg_lock);
   4911   1.37  riastrad 	if (thmap_get(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
   4912   1.37  riastrad 		sizeof(wgp->wgp_pubkey)) != NULL ||
   4913   1.37  riastrad 	    (wgp->wgp_name[0] &&
   4914   1.37  riastrad 		thmap_get(wg->wg_peers_byname, wgp->wgp_name,
   4915   1.37  riastrad 		    strlen(wgp->wgp_name)) != NULL)) {
   4916   1.37  riastrad 		mutex_exit(wg->wg_lock);
   4917   1.37  riastrad 		wg_destroy_peer(wgp);
   4918   1.37  riastrad 		error = EEXIST;
   4919   1.37  riastrad 		goto out;
   4920   1.37  riastrad 	}
   4921   1.37  riastrad 	wgp0 = thmap_put(wg->wg_peers_bypubkey, wgp->wgp_pubkey,
   4922   1.37  riastrad 	    sizeof(wgp->wgp_pubkey), wgp);
   4923   1.37  riastrad 	KASSERT(wgp0 == wgp);
   4924   1.37  riastrad 	if (wgp->wgp_name[0]) {
   4925   1.37  riastrad 		wgp0 = thmap_put(wg->wg_peers_byname, wgp->wgp_name,
   4926   1.37  riastrad 		    strlen(wgp->wgp_name), wgp);
   4927   1.37  riastrad 		KASSERT(wgp0 == wgp);
   4928   1.37  riastrad 	}
   4929    1.1  riastrad 	WG_PEER_WRITER_INSERT_HEAD(wgp, wg);
   4930    1.1  riastrad 	wg->wg_npeers++;
   4931    1.1  riastrad 	mutex_exit(wg->wg_lock);
   4932    1.1  riastrad 
   4933   1.61       roy 	if_link_state_change(&wg->wg_if, LINK_STATE_UP);
   4934   1.61       roy 
   4935    1.1  riastrad out:
   4936    1.1  riastrad 	kmem_free(buf, ifd->ifd_len + 1);
   4937    1.1  riastrad 	return error;
   4938    1.1  riastrad }
   4939    1.1  riastrad 
   4940    1.1  riastrad static int
   4941    1.1  riastrad wg_ioctl_delete_peer(struct wg_softc *wg, struct ifdrv *ifd)
   4942    1.1  riastrad {
   4943    1.1  riastrad 	int error;
   4944    1.1  riastrad 	prop_dictionary_t prop_dict;
   4945    1.1  riastrad 	char *buf = NULL;
   4946    1.1  riastrad 	const char *name;
   4947    1.1  riastrad 
   4948    1.1  riastrad 	error = wg_alloc_prop_buf(&buf, ifd);
   4949    1.1  riastrad 	if (error != 0)
   4950    1.1  riastrad 		return error;
   4951    1.1  riastrad 	error = EINVAL;
   4952    1.1  riastrad 	prop_dict = prop_dictionary_internalize(buf);
   4953    1.1  riastrad 	if (prop_dict == NULL)
   4954    1.1  riastrad 		goto out;
   4955    1.1  riastrad 
   4956   1.12  riastrad 	if (!prop_dictionary_get_string(prop_dict, "name", &name))
   4957    1.1  riastrad 		goto out;
   4958    1.1  riastrad 	if (strlen(name) > WG_PEER_NAME_MAXLEN)
   4959    1.1  riastrad 		goto out;
   4960    1.1  riastrad 
   4961    1.1  riastrad 	error = wg_destroy_peer_name(wg, name);
   4962    1.1  riastrad out:
   4963    1.1  riastrad 	kmem_free(buf, ifd->ifd_len + 1);
   4964    1.1  riastrad 	return error;
   4965    1.1  riastrad }
   4966    1.1  riastrad 
   4967   1.74  christos static bool
   4968   1.74  christos wg_is_authorized(struct wg_softc *wg, u_long cmd)
   4969   1.74  christos {
   4970   1.74  christos 	int au = cmd == SIOCGDRVSPEC ?
   4971   1.74  christos 	    KAUTH_REQ_NETWORK_INTERFACE_WG_GETPRIV :
   4972   1.74  christos 	    KAUTH_REQ_NETWORK_INTERFACE_WG_SETPRIV;
   4973   1.74  christos 	return kauth_authorize_network(kauth_cred_get(),
   4974   1.74  christos 	    KAUTH_NETWORK_INTERFACE_WG, au, &wg->wg_if,
   4975   1.74  christos 	    (void *)cmd, NULL) == 0;
   4976   1.74  christos }
   4977   1.74  christos 
   4978    1.1  riastrad static int
   4979    1.1  riastrad wg_ioctl_get(struct wg_softc *wg, struct ifdrv *ifd)
   4980    1.1  riastrad {
   4981    1.1  riastrad 	int error = ENOMEM;
   4982    1.1  riastrad 	prop_dictionary_t prop_dict;
   4983   1.23  riastrad 	prop_array_t peers = NULL;
   4984    1.1  riastrad 	char *buf;
   4985    1.1  riastrad 	struct wg_peer *wgp;
   4986    1.1  riastrad 	int s, i;
   4987    1.1  riastrad 
   4988    1.1  riastrad 	prop_dict = prop_dictionary_create();
   4989    1.1  riastrad 	if (prop_dict == NULL)
   4990    1.1  riastrad 		goto error;
   4991    1.1  riastrad 
   4992   1.74  christos 	if (wg_is_authorized(wg, SIOCGDRVSPEC)) {
   4993   1.73  jakllsch 		if (!prop_dictionary_set_data(prop_dict, "private_key",
   4994   1.73  jakllsch 			wg->wg_privkey, WG_STATIC_KEY_LEN))
   4995   1.73  jakllsch 			goto error;
   4996   1.73  jakllsch 	}
   4997    1.1  riastrad 
   4998    1.1  riastrad 	if (wg->wg_listen_port != 0) {
   4999   1.12  riastrad 		if (!prop_dictionary_set_uint16(prop_dict, "listen_port",
   5000   1.12  riastrad 			wg->wg_listen_port))
   5001    1.1  riastrad 			goto error;
   5002    1.1  riastrad 	}
   5003    1.1  riastrad 
   5004    1.1  riastrad 	if (wg->wg_npeers == 0)
   5005    1.1  riastrad 		goto skip_peers;
   5006    1.1  riastrad 
   5007    1.1  riastrad 	peers = prop_array_create();
   5008   1.12  riastrad 	if (peers == NULL)
   5009   1.12  riastrad 		goto error;
   5010   1.12  riastrad 
   5011    1.1  riastrad 	s = pserialize_read_enter();
   5012    1.1  riastrad 	i = 0;
   5013    1.1  riastrad 	WG_PEER_READER_FOREACH(wgp, wg) {
   5014   1.47  riastrad 		struct wg_sockaddr *wgsa;
   5015   1.47  riastrad 		struct psref wgp_psref, wgsa_psref;
   5016    1.1  riastrad 		prop_dictionary_t prop_peer;
   5017    1.1  riastrad 
   5018   1.47  riastrad 		wg_get_peer(wgp, &wgp_psref);
   5019    1.1  riastrad 		pserialize_read_exit(s);
   5020    1.1  riastrad 
   5021    1.1  riastrad 		prop_peer = prop_dictionary_create();
   5022   1.12  riastrad 		if (prop_peer == NULL)
   5023   1.12  riastrad 			goto next;
   5024    1.1  riastrad 
   5025    1.1  riastrad 		if (strlen(wgp->wgp_name) > 0) {
   5026   1.12  riastrad 			if (!prop_dictionary_set_string(prop_peer, "name",
   5027   1.12  riastrad 				wgp->wgp_name))
   5028   1.12  riastrad 				goto next;
   5029    1.1  riastrad 		}
   5030    1.1  riastrad 
   5031   1.12  riastrad 		if (!prop_dictionary_set_data(prop_peer, "public_key",
   5032   1.12  riastrad 			wgp->wgp_pubkey, sizeof(wgp->wgp_pubkey)))
   5033    1.1  riastrad 			goto next;
   5034    1.1  riastrad 
   5035    1.1  riastrad 		uint8_t psk_zero[WG_PRESHARED_KEY_LEN] = {0};
   5036   1.13  riastrad 		if (!consttime_memequal(wgp->wgp_psk, psk_zero,
   5037   1.13  riastrad 			sizeof(wgp->wgp_psk))) {
   5038   1.74  christos 			if (wg_is_authorized(wg, SIOCGDRVSPEC)) {
   5039   1.73  jakllsch 				if (!prop_dictionary_set_data(prop_peer,
   5040   1.73  jakllsch 					"preshared_key",
   5041   1.73  jakllsch 					wgp->wgp_psk, sizeof(wgp->wgp_psk)))
   5042   1.73  jakllsch 					goto next;
   5043   1.73  jakllsch 			}
   5044    1.1  riastrad 		}
   5045    1.1  riastrad 
   5046   1.47  riastrad 		wgsa = wg_get_endpoint_sa(wgp, &wgsa_psref);
   5047   1.47  riastrad 		CTASSERT(AF_UNSPEC == 0);
   5048   1.47  riastrad 		if (wgsa_family(wgsa) != 0 /*AF_UNSPEC*/ &&
   5049   1.47  riastrad 		    !prop_dictionary_set_data(prop_peer, "endpoint",
   5050   1.47  riastrad 			wgsatoss(wgsa),
   5051   1.47  riastrad 			sockaddr_getsize_by_family(wgsa_family(wgsa)))) {
   5052   1.47  riastrad 			wg_put_sa(wgp, wgsa, &wgsa_psref);
   5053   1.47  riastrad 			goto next;
   5054    1.1  riastrad 		}
   5055   1.47  riastrad 		wg_put_sa(wgp, wgsa, &wgsa_psref);
   5056    1.1  riastrad 
   5057    1.9  riastrad 		const struct timespec *t = &wgp->wgp_last_handshake_time;
   5058    1.9  riastrad 
   5059   1.12  riastrad 		if (!prop_dictionary_set_uint64(prop_peer,
   5060   1.65  christos 			"last_handshake_time_sec", (uint64_t)t->tv_sec))
   5061    1.1  riastrad 			goto next;
   5062   1.12  riastrad 		if (!prop_dictionary_set_uint32(prop_peer,
   5063   1.65  christos 			"last_handshake_time_nsec", (uint32_t)t->tv_nsec))
   5064    1.1  riastrad 			goto next;
   5065    1.1  riastrad 
   5066    1.1  riastrad 		if (wgp->wgp_n_allowedips == 0)
   5067    1.1  riastrad 			goto skip_allowedips;
   5068    1.1  riastrad 
   5069    1.1  riastrad 		prop_array_t allowedips = prop_array_create();
   5070   1.12  riastrad 		if (allowedips == NULL)
   5071   1.12  riastrad 			goto next;
   5072    1.1  riastrad 		for (int j = 0; j < wgp->wgp_n_allowedips; j++) {
   5073    1.1  riastrad 			struct wg_allowedip *wga = &wgp->wgp_allowedips[j];
   5074    1.1  riastrad 			prop_dictionary_t prop_allowedip;
   5075    1.1  riastrad 
   5076    1.1  riastrad 			prop_allowedip = prop_dictionary_create();
   5077    1.1  riastrad 			if (prop_allowedip == NULL)
   5078    1.1  riastrad 				break;
   5079    1.1  riastrad 
   5080   1.12  riastrad 			if (!prop_dictionary_set_int(prop_allowedip, "family",
   5081   1.12  riastrad 				wga->wga_family))
   5082    1.1  riastrad 				goto _next;
   5083   1.12  riastrad 			if (!prop_dictionary_set_uint8(prop_allowedip, "cidr",
   5084   1.12  riastrad 				wga->wga_cidr))
   5085    1.1  riastrad 				goto _next;
   5086    1.1  riastrad 
   5087    1.1  riastrad 			switch (wga->wga_family) {
   5088  1.109  riastrad #ifdef INET
   5089    1.1  riastrad 			case AF_INET:
   5090   1.12  riastrad 				if (!prop_dictionary_set_data(prop_allowedip,
   5091   1.12  riastrad 					"ip", &wga->wga_addr4,
   5092   1.12  riastrad 					sizeof(wga->wga_addr4)))
   5093    1.1  riastrad 					goto _next;
   5094    1.1  riastrad 				break;
   5095  1.109  riastrad #endif
   5096    1.1  riastrad #ifdef INET6
   5097    1.1  riastrad 			case AF_INET6:
   5098   1.12  riastrad 				if (!prop_dictionary_set_data(prop_allowedip,
   5099   1.12  riastrad 					"ip", &wga->wga_addr6,
   5100   1.12  riastrad 					sizeof(wga->wga_addr6)))
   5101    1.1  riastrad 					goto _next;
   5102    1.1  riastrad 				break;
   5103    1.1  riastrad #endif
   5104    1.1  riastrad 			default:
   5105  1.109  riastrad 				panic("invalid af=%d", wga->wga_family);
   5106    1.1  riastrad 			}
   5107    1.1  riastrad 			prop_array_set(allowedips, j, prop_allowedip);
   5108    1.1  riastrad 		_next:
   5109    1.1  riastrad 			prop_object_release(prop_allowedip);
   5110    1.1  riastrad 		}
   5111    1.1  riastrad 		prop_dictionary_set(prop_peer, "allowedips", allowedips);
   5112    1.1  riastrad 		prop_object_release(allowedips);
   5113    1.1  riastrad 
   5114    1.1  riastrad 	skip_allowedips:
   5115    1.1  riastrad 
   5116    1.1  riastrad 		prop_array_set(peers, i, prop_peer);
   5117    1.1  riastrad 	next:
   5118   1.12  riastrad 		if (prop_peer)
   5119   1.12  riastrad 			prop_object_release(prop_peer);
   5120    1.1  riastrad 		i++;
   5121    1.1  riastrad 
   5122    1.1  riastrad 		s = pserialize_read_enter();
   5123   1.47  riastrad 		wg_put_peer(wgp, &wgp_psref);
   5124    1.1  riastrad 	}
   5125    1.1  riastrad 	pserialize_read_exit(s);
   5126    1.1  riastrad 
   5127    1.1  riastrad 	prop_dictionary_set(prop_dict, "peers", peers);
   5128    1.1  riastrad 	prop_object_release(peers);
   5129    1.1  riastrad 	peers = NULL;
   5130    1.1  riastrad 
   5131    1.1  riastrad skip_peers:
   5132    1.1  riastrad 	buf = prop_dictionary_externalize(prop_dict);
   5133    1.1  riastrad 	if (buf == NULL)
   5134    1.1  riastrad 		goto error;
   5135    1.1  riastrad 	if (ifd->ifd_len < (strlen(buf) + 1)) {
   5136    1.1  riastrad 		error = EINVAL;
   5137    1.1  riastrad 		goto error;
   5138    1.1  riastrad 	}
   5139    1.1  riastrad 	error = copyout(buf, ifd->ifd_data, strlen(buf) + 1);
   5140    1.1  riastrad 
   5141    1.1  riastrad 	free(buf, 0);
   5142    1.1  riastrad error:
   5143    1.1  riastrad 	if (peers != NULL)
   5144    1.1  riastrad 		prop_object_release(peers);
   5145    1.1  riastrad 	if (prop_dict != NULL)
   5146    1.1  riastrad 		prop_object_release(prop_dict);
   5147    1.1  riastrad 
   5148    1.1  riastrad 	return error;
   5149    1.1  riastrad }
   5150    1.1  riastrad 
   5151    1.1  riastrad static int
   5152    1.1  riastrad wg_ioctl(struct ifnet *ifp, u_long cmd, void *data)
   5153    1.1  riastrad {
   5154    1.1  riastrad 	struct wg_softc *wg = ifp->if_softc;
   5155    1.1  riastrad 	struct ifreq *ifr = data;
   5156    1.1  riastrad 	struct ifaddr *ifa = data;
   5157    1.1  riastrad 	struct ifdrv *ifd = data;
   5158    1.1  riastrad 	int error = 0;
   5159    1.1  riastrad 
   5160    1.1  riastrad 	switch (cmd) {
   5161    1.1  riastrad 	case SIOCINITIFADDR:
   5162    1.1  riastrad 		if (ifa->ifa_addr->sa_family != AF_LINK &&
   5163    1.1  riastrad 		    (ifp->if_flags & (IFF_UP | IFF_RUNNING)) !=
   5164    1.1  riastrad 		    (IFF_UP | IFF_RUNNING)) {
   5165    1.1  riastrad 			ifp->if_flags |= IFF_UP;
   5166   1.67  riastrad 			error = if_init(ifp);
   5167    1.1  riastrad 		}
   5168   1.14  riastrad 		return error;
   5169    1.1  riastrad 	case SIOCADDMULTI:
   5170    1.1  riastrad 	case SIOCDELMULTI:
   5171    1.1  riastrad 		switch (ifr->ifr_addr.sa_family) {
   5172  1.109  riastrad #ifdef INET
   5173    1.1  riastrad 		case AF_INET:	/* IP supports Multicast */
   5174    1.1  riastrad 			break;
   5175  1.109  riastrad #endif
   5176    1.1  riastrad #ifdef INET6
   5177    1.1  riastrad 		case AF_INET6:	/* IP6 supports Multicast */
   5178    1.1  riastrad 			break;
   5179    1.1  riastrad #endif
   5180    1.1  riastrad 		default:  /* Other protocols doesn't support Multicast */
   5181    1.1  riastrad 			error = EAFNOSUPPORT;
   5182    1.1  riastrad 			break;
   5183    1.1  riastrad 		}
   5184   1.14  riastrad 		return error;
   5185    1.1  riastrad 	case SIOCSDRVSPEC:
   5186   1.74  christos 		if (!wg_is_authorized(wg, cmd)) {
   5187   1.72  jakllsch 			return EPERM;
   5188   1.72  jakllsch 		}
   5189    1.1  riastrad 		switch (ifd->ifd_cmd) {
   5190    1.1  riastrad 		case WG_IOCTL_SET_PRIVATE_KEY:
   5191    1.1  riastrad 			error = wg_ioctl_set_private_key(wg, ifd);
   5192    1.1  riastrad 			break;
   5193    1.1  riastrad 		case WG_IOCTL_SET_LISTEN_PORT:
   5194    1.1  riastrad 			error = wg_ioctl_set_listen_port(wg, ifd);
   5195    1.1  riastrad 			break;
   5196    1.1  riastrad 		case WG_IOCTL_ADD_PEER:
   5197    1.1  riastrad 			error = wg_ioctl_add_peer(wg, ifd);
   5198    1.1  riastrad 			break;
   5199    1.1  riastrad 		case WG_IOCTL_DELETE_PEER:
   5200    1.1  riastrad 			error = wg_ioctl_delete_peer(wg, ifd);
   5201    1.1  riastrad 			break;
   5202    1.1  riastrad 		default:
   5203    1.1  riastrad 			error = EINVAL;
   5204    1.1  riastrad 			break;
   5205    1.1  riastrad 		}
   5206   1.14  riastrad 		return error;
   5207    1.1  riastrad 	case SIOCGDRVSPEC:
   5208   1.14  riastrad 		return wg_ioctl_get(wg, ifd);
   5209    1.1  riastrad 	case SIOCSIFFLAGS:
   5210    1.1  riastrad 		if ((error = ifioctl_common(ifp, cmd, data)) != 0)
   5211    1.1  riastrad 			break;
   5212    1.1  riastrad 		switch (ifp->if_flags & (IFF_UP|IFF_RUNNING)) {
   5213    1.1  riastrad 		case IFF_RUNNING:
   5214    1.1  riastrad 			/*
   5215    1.1  riastrad 			 * If interface is marked down and it is running,
   5216    1.1  riastrad 			 * then stop and disable it.
   5217    1.1  riastrad 			 */
   5218   1.66  riastrad 			if_stop(ifp, 1);
   5219    1.1  riastrad 			break;
   5220    1.1  riastrad 		case IFF_UP:
   5221    1.1  riastrad 			/*
   5222    1.1  riastrad 			 * If interface is marked up and it is stopped, then
   5223    1.1  riastrad 			 * start it.
   5224    1.1  riastrad 			 */
   5225   1.67  riastrad 			error = if_init(ifp);
   5226    1.1  riastrad 			break;
   5227    1.1  riastrad 		default:
   5228    1.1  riastrad 			break;
   5229    1.1  riastrad 		}
   5230   1.14  riastrad 		return error;
   5231    1.1  riastrad #ifdef WG_RUMPKERNEL
   5232    1.1  riastrad 	case SIOCSLINKSTR:
   5233    1.1  riastrad 		error = wg_ioctl_linkstr(wg, ifd);
   5234  1.108  riastrad 		if (error)
   5235  1.108  riastrad 			return error;
   5236  1.108  riastrad 		wg->wg_ops = &wg_ops_rumpuser;
   5237  1.108  riastrad 		return 0;
   5238   1.14  riastrad #endif
   5239   1.14  riastrad 	default:
   5240    1.1  riastrad 		break;
   5241   1.14  riastrad 	}
   5242    1.1  riastrad 
   5243   1.14  riastrad 	error = ifioctl_common(ifp, cmd, data);
   5244    1.1  riastrad 
   5245    1.1  riastrad #ifdef WG_RUMPKERNEL
   5246   1.14  riastrad 	if (!wg_user_mode(wg))
   5247   1.14  riastrad 		return error;
   5248   1.14  riastrad 
   5249   1.14  riastrad 	/* Do the same to the corresponding tun device on the host */
   5250   1.14  riastrad 	/*
   5251   1.14  riastrad 	 * XXX Actually the command has not been handled yet.  It
   5252   1.14  riastrad 	 *     will be handled via pr_ioctl form doifioctl later.
   5253   1.14  riastrad 	 */
   5254   1.14  riastrad 	switch (cmd) {
   5255  1.109  riastrad #ifdef INET
   5256   1.14  riastrad 	case SIOCAIFADDR:
   5257   1.14  riastrad 	case SIOCDIFADDR: {
   5258   1.17  riastrad 		struct in_aliasreq _ifra = *(const struct in_aliasreq *)data;
   5259   1.14  riastrad 		struct in_aliasreq *ifra = &_ifra;
   5260   1.14  riastrad 		KASSERT(error == ENOTTY);
   5261   1.14  riastrad 		strncpy(ifra->ifra_name, rumpuser_wg_get_tunname(wg->wg_user),
   5262   1.14  riastrad 		    IFNAMSIZ);
   5263   1.14  riastrad 		error = rumpuser_wg_ioctl(wg->wg_user, cmd, ifra, AF_INET);
   5264   1.14  riastrad 		if (error == 0)
   5265   1.14  riastrad 			error = ENOTTY;
   5266   1.14  riastrad 		break;
   5267   1.14  riastrad 	}
   5268  1.109  riastrad #endif
   5269    1.1  riastrad #ifdef INET6
   5270   1.14  riastrad 	case SIOCAIFADDR_IN6:
   5271   1.14  riastrad 	case SIOCDIFADDR_IN6: {
   5272   1.17  riastrad 		struct in6_aliasreq _ifra = *(const struct in6_aliasreq *)data;
   5273   1.14  riastrad 		struct in6_aliasreq *ifra = &_ifra;
   5274   1.14  riastrad 		KASSERT(error == ENOTTY);
   5275   1.14  riastrad 		strncpy(ifra->ifra_name, rumpuser_wg_get_tunname(wg->wg_user),
   5276   1.14  riastrad 		    IFNAMSIZ);
   5277   1.14  riastrad 		error = rumpuser_wg_ioctl(wg->wg_user, cmd, ifra, AF_INET6);
   5278   1.14  riastrad 		if (error == 0)
   5279   1.14  riastrad 			error = ENOTTY;
   5280   1.14  riastrad 		break;
   5281   1.14  riastrad 	}
   5282    1.1  riastrad #endif
   5283  1.109  riastrad 	default:
   5284  1.109  riastrad 		break;
   5285   1.14  riastrad 	}
   5286    1.1  riastrad #endif /* WG_RUMPKERNEL */
   5287    1.1  riastrad 
   5288    1.1  riastrad 	return error;
   5289    1.1  riastrad }
   5290    1.1  riastrad 
   5291    1.1  riastrad static int
   5292    1.1  riastrad wg_init(struct ifnet *ifp)
   5293    1.1  riastrad {
   5294    1.1  riastrad 
   5295    1.1  riastrad 	ifp->if_flags |= IFF_RUNNING;
   5296    1.1  riastrad 
   5297    1.1  riastrad 	/* TODO flush pending packets. */
   5298    1.1  riastrad 	return 0;
   5299    1.1  riastrad }
   5300    1.1  riastrad 
   5301   1.60  riastrad #ifdef ALTQ
   5302   1.60  riastrad static void
   5303   1.60  riastrad wg_start(struct ifnet *ifp)
   5304   1.60  riastrad {
   5305   1.60  riastrad 	struct mbuf *m;
   5306   1.60  riastrad 
   5307   1.60  riastrad 	for (;;) {
   5308   1.60  riastrad 		IFQ_DEQUEUE(&ifp->if_snd, m);
   5309   1.60  riastrad 		if (m == NULL)
   5310   1.60  riastrad 			break;
   5311   1.60  riastrad 
   5312   1.60  riastrad 		kpreempt_disable();
   5313   1.60  riastrad 		const uint32_t h = curcpu()->ci_index;	// pktq_rps_hash(m)
   5314   1.60  riastrad 		if (__predict_false(!pktq_enqueue(wg_pktq, m, h))) {
   5315   1.76  jakllsch 			WGLOG(LOG_ERR, "%s: pktq full, dropping\n",
   5316   1.76  jakllsch 			    if_name(ifp));
   5317   1.60  riastrad 			m_freem(m);
   5318   1.60  riastrad 		}
   5319   1.60  riastrad 		kpreempt_enable();
   5320   1.60  riastrad 	}
   5321   1.60  riastrad }
   5322   1.60  riastrad #endif
   5323   1.60  riastrad 
   5324    1.1  riastrad static void
   5325    1.1  riastrad wg_stop(struct ifnet *ifp, int disable)
   5326    1.1  riastrad {
   5327    1.1  riastrad 
   5328    1.1  riastrad 	KASSERT((ifp->if_flags & IFF_RUNNING) != 0);
   5329    1.1  riastrad 	ifp->if_flags &= ~IFF_RUNNING;
   5330    1.1  riastrad 
   5331    1.1  riastrad 	/* Need to do something? */
   5332    1.1  riastrad }
   5333    1.1  riastrad 
   5334    1.8  riastrad #ifdef WG_DEBUG_PARAMS
   5335   1.24  riastrad SYSCTL_SETUP(sysctl_net_wg_setup, "sysctl net.wg setup")
   5336    1.1  riastrad {
   5337    1.1  riastrad 	const struct sysctlnode *node = NULL;
   5338    1.1  riastrad 
   5339    1.8  riastrad 	sysctl_createv(clog, 0, NULL, &node,
   5340    1.8  riastrad 	    CTLFLAG_PERMANENT,
   5341   1.24  riastrad 	    CTLTYPE_NODE, "wg",
   5342   1.24  riastrad 	    SYSCTL_DESCR("wg(4)"),
   5343    1.8  riastrad 	    NULL, 0, NULL, 0,
   5344    1.8  riastrad 	    CTL_NET, CTL_CREATE, CTL_EOL);
   5345    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5346    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5347   1.21  riastrad 	    CTLTYPE_QUAD, "rekey_after_messages",
   5348    1.8  riastrad 	    SYSCTL_DESCR("session liftime by messages"),
   5349    1.8  riastrad 	    NULL, 0, &wg_rekey_after_messages, 0, CTL_CREATE, CTL_EOL);
   5350    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5351    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5352   1.21  riastrad 	    CTLTYPE_INT, "rekey_after_time",
   5353    1.8  riastrad 	    SYSCTL_DESCR("session liftime"),
   5354    1.8  riastrad 	    NULL, 0, &wg_rekey_after_time, 0, CTL_CREATE, CTL_EOL);
   5355    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5356    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5357   1.21  riastrad 	    CTLTYPE_INT, "rekey_timeout",
   5358    1.8  riastrad 	    SYSCTL_DESCR("session handshake retry time"),
   5359    1.8  riastrad 	    NULL, 0, &wg_rekey_timeout, 0, CTL_CREATE, CTL_EOL);
   5360    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5361    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5362   1.21  riastrad 	    CTLTYPE_INT, "rekey_attempt_time",
   5363    1.8  riastrad 	    SYSCTL_DESCR("session handshake timeout"),
   5364    1.8  riastrad 	    NULL, 0, &wg_rekey_attempt_time, 0, CTL_CREATE, CTL_EOL);
   5365    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5366    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5367   1.21  riastrad 	    CTLTYPE_INT, "keepalive_timeout",
   5368    1.8  riastrad 	    SYSCTL_DESCR("keepalive timeout"),
   5369    1.8  riastrad 	    NULL, 0, &wg_keepalive_timeout, 0, CTL_CREATE, CTL_EOL);
   5370    1.8  riastrad 	sysctl_createv(clog, 0, &node, NULL,
   5371    1.8  riastrad 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5372    1.8  riastrad 	    CTLTYPE_BOOL, "force_underload",
   5373    1.8  riastrad 	    SYSCTL_DESCR("force to detemine under load"),
   5374    1.8  riastrad 	    NULL, 0, &wg_force_underload, 0, CTL_CREATE, CTL_EOL);
   5375   1.80  christos 	sysctl_createv(clog, 0, &node, NULL,
   5376   1.80  christos 	    CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
   5377   1.80  christos 	    CTLTYPE_INT, "debug",
   5378   1.84  christos 	    SYSCTL_DESCR("set debug flags 1=log 2=trace 4=dump 8=packet"),
   5379   1.80  christos 	    NULL, 0, &wg_debug, 0, CTL_CREATE, CTL_EOL);
   5380    1.8  riastrad }
   5381    1.1  riastrad #endif
   5382    1.1  riastrad 
   5383    1.1  riastrad #ifdef WG_RUMPKERNEL
   5384    1.1  riastrad static bool
   5385    1.1  riastrad wg_user_mode(struct wg_softc *wg)
   5386    1.1  riastrad {
   5387    1.1  riastrad 
   5388    1.1  riastrad 	return wg->wg_user != NULL;
   5389    1.1  riastrad }
   5390    1.1  riastrad 
   5391    1.1  riastrad static int
   5392    1.1  riastrad wg_ioctl_linkstr(struct wg_softc *wg, struct ifdrv *ifd)
   5393    1.1  riastrad {
   5394    1.1  riastrad 	struct ifnet *ifp = &wg->wg_if;
   5395    1.1  riastrad 	int error;
   5396    1.1  riastrad 
   5397    1.1  riastrad 	if (ifp->if_flags & IFF_UP)
   5398    1.1  riastrad 		return EBUSY;
   5399    1.1  riastrad 
   5400    1.1  riastrad 	if (ifd->ifd_cmd == IFLINKSTR_UNSET) {
   5401    1.1  riastrad 		/* XXX do nothing */
   5402    1.1  riastrad 		return 0;
   5403    1.1  riastrad 	} else if (ifd->ifd_cmd != 0) {
   5404    1.1  riastrad 		return EINVAL;
   5405    1.1  riastrad 	} else if (wg->wg_user != NULL) {
   5406    1.1  riastrad 		return EBUSY;
   5407    1.1  riastrad 	}
   5408    1.1  riastrad 
   5409    1.1  riastrad 	/* Assume \0 included */
   5410    1.1  riastrad 	if (ifd->ifd_len > IFNAMSIZ) {
   5411    1.1  riastrad 		return E2BIG;
   5412    1.1  riastrad 	} else if (ifd->ifd_len < 1) {
   5413    1.1  riastrad 		return EINVAL;
   5414    1.1  riastrad 	}
   5415    1.1  riastrad 
   5416    1.1  riastrad 	char tun_name[IFNAMSIZ];
   5417    1.1  riastrad 	error = copyinstr(ifd->ifd_data, tun_name, ifd->ifd_len, NULL);
   5418    1.1  riastrad 	if (error != 0)
   5419    1.1  riastrad 		return error;
   5420    1.1  riastrad 
   5421    1.1  riastrad 	if (strncmp(tun_name, "tun", 3) != 0)
   5422    1.1  riastrad 		return EINVAL;
   5423    1.1  riastrad 
   5424    1.1  riastrad 	error = rumpuser_wg_create(tun_name, wg, &wg->wg_user);
   5425    1.1  riastrad 
   5426    1.1  riastrad 	return error;
   5427    1.1  riastrad }
   5428    1.1  riastrad 
   5429    1.1  riastrad static int
   5430    1.1  riastrad wg_send_user(struct wg_peer *wgp, struct mbuf *m)
   5431    1.1  riastrad {
   5432    1.1  riastrad 	int error;
   5433    1.1  riastrad 	struct psref psref;
   5434    1.1  riastrad 	struct wg_sockaddr *wgsa;
   5435    1.1  riastrad 	struct wg_softc *wg = wgp->wgp_sc;
   5436    1.1  riastrad 	struct iovec iov[1];
   5437    1.1  riastrad 
   5438    1.1  riastrad 	wgsa = wg_get_endpoint_sa(wgp, &psref);
   5439    1.1  riastrad 
   5440    1.1  riastrad 	iov[0].iov_base = mtod(m, void *);
   5441    1.1  riastrad 	iov[0].iov_len = m->m_len;
   5442    1.1  riastrad 
   5443    1.1  riastrad 	/* Send messages to a peer via an ordinary socket. */
   5444    1.1  riastrad 	error = rumpuser_wg_send_peer(wg->wg_user, wgsatosa(wgsa), iov, 1);
   5445    1.1  riastrad 
   5446    1.1  riastrad 	wg_put_sa(wgp, wgsa, &psref);
   5447    1.1  riastrad 
   5448   1.38  riastrad 	m_freem(m);
   5449   1.38  riastrad 
   5450    1.1  riastrad 	return error;
   5451    1.1  riastrad }
   5452    1.1  riastrad 
   5453    1.1  riastrad static void
   5454    1.1  riastrad wg_input_user(struct ifnet *ifp, struct mbuf *m, const int af)
   5455    1.1  riastrad {
   5456    1.1  riastrad 	struct wg_softc *wg = ifp->if_softc;
   5457    1.1  riastrad 	struct iovec iov[2];
   5458    1.1  riastrad 	struct sockaddr_storage ss;
   5459    1.1  riastrad 
   5460    1.1  riastrad 	KASSERT(af == AF_INET || af == AF_INET6);
   5461    1.1  riastrad 
   5462    1.1  riastrad 	WG_TRACE("");
   5463    1.1  riastrad 
   5464  1.109  riastrad 	switch (af) {
   5465  1.109  riastrad #ifdef INET
   5466  1.109  riastrad 	case AF_INET: {
   5467    1.1  riastrad 		struct sockaddr_in *sin = (struct sockaddr_in *)&ss;
   5468    1.1  riastrad 		struct ip *ip;
   5469   1.27  riastrad 
   5470   1.27  riastrad 		KASSERT(m->m_len >= sizeof(struct ip));
   5471    1.1  riastrad 		ip = mtod(m, struct ip *);
   5472    1.1  riastrad 		sockaddr_in_init(sin, &ip->ip_dst, 0);
   5473  1.109  riastrad 		break;
   5474  1.109  riastrad 	}
   5475  1.109  riastrad #endif
   5476  1.109  riastrad #ifdef INET6
   5477  1.109  riastrad 	case AF_INET6: {
   5478    1.1  riastrad 		struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)&ss;
   5479    1.1  riastrad 		struct ip6_hdr *ip6;
   5480   1.27  riastrad 
   5481   1.27  riastrad 		KASSERT(m->m_len >= sizeof(struct ip6_hdr));
   5482    1.1  riastrad 		ip6 = mtod(m, struct ip6_hdr *);
   5483    1.1  riastrad 		sockaddr_in6_init(sin6, &ip6->ip6_dst, 0, 0, 0);
   5484  1.109  riastrad 		break;
   5485  1.109  riastrad 	}
   5486  1.109  riastrad #endif
   5487  1.109  riastrad 	default:
   5488  1.109  riastrad 		goto out;
   5489    1.1  riastrad 	}
   5490    1.1  riastrad 
   5491    1.1  riastrad 	iov[0].iov_base = &ss;
   5492    1.1  riastrad 	iov[0].iov_len = ss.ss_len;
   5493    1.1  riastrad 	iov[1].iov_base = mtod(m, void *);
   5494    1.1  riastrad 	iov[1].iov_len = m->m_len;
   5495    1.1  riastrad 
   5496    1.1  riastrad 	WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
   5497    1.1  riastrad 
   5498    1.1  riastrad 	/* Send decrypted packets to users via a tun. */
   5499    1.1  riastrad 	rumpuser_wg_send_user(wg->wg_user, iov, 2);
   5500   1.38  riastrad 
   5501  1.109  riastrad out:	m_freem(m);
   5502    1.1  riastrad }
   5503    1.1  riastrad 
   5504    1.1  riastrad static int
   5505    1.1  riastrad wg_bind_port_user(struct wg_softc *wg, const uint16_t port)
   5506    1.1  riastrad {
   5507    1.1  riastrad 	int error;
   5508    1.1  riastrad 	uint16_t old_port = wg->wg_listen_port;
   5509    1.1  riastrad 
   5510    1.1  riastrad 	if (port != 0 && old_port == port)
   5511    1.1  riastrad 		return 0;
   5512    1.1  riastrad 
   5513    1.1  riastrad 	error = rumpuser_wg_sock_bind(wg->wg_user, port);
   5514  1.108  riastrad 	if (error)
   5515  1.108  riastrad 		return error;
   5516  1.108  riastrad 
   5517  1.108  riastrad 	wg->wg_listen_port = port;
   5518  1.108  riastrad 	return 0;
   5519    1.1  riastrad }
   5520    1.1  riastrad 
   5521    1.1  riastrad /*
   5522    1.1  riastrad  * Receive user packets.
   5523    1.1  riastrad  */
   5524    1.1  riastrad void
   5525    1.1  riastrad rumpkern_wg_recv_user(struct wg_softc *wg, struct iovec *iov, size_t iovlen)
   5526    1.1  riastrad {
   5527    1.1  riastrad 	struct ifnet *ifp = &wg->wg_if;
   5528    1.1  riastrad 	struct mbuf *m;
   5529    1.1  riastrad 	const struct sockaddr *dst;
   5530  1.108  riastrad 	int error;
   5531    1.1  riastrad 
   5532    1.1  riastrad 	WG_TRACE("");
   5533    1.1  riastrad 
   5534    1.1  riastrad 	dst = iov[0].iov_base;
   5535    1.1  riastrad 
   5536   1.48  riastrad 	m = m_gethdr(M_DONTWAIT, MT_DATA);
   5537    1.1  riastrad 	if (m == NULL)
   5538    1.1  riastrad 		return;
   5539    1.1  riastrad 	m->m_len = m->m_pkthdr.len = 0;
   5540    1.1  riastrad 	m_copyback(m, 0, iov[1].iov_len, iov[1].iov_base);
   5541    1.1  riastrad 
   5542   1.87       kre 	WG_DLOG("iov_len=%zu\n", iov[1].iov_len);
   5543    1.1  riastrad 	WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
   5544    1.1  riastrad 
   5545  1.108  riastrad 	error = wg_output(ifp, m, dst, NULL); /* consumes m */
   5546  1.108  riastrad 	if (error)
   5547  1.108  riastrad 		WG_DLOG("wg_output failed, error=%d\n", error);
   5548    1.1  riastrad }
   5549    1.1  riastrad 
   5550    1.1  riastrad /*
   5551    1.1  riastrad  * Receive packets from a peer.
   5552    1.1  riastrad  */
   5553    1.1  riastrad void
   5554    1.1  riastrad rumpkern_wg_recv_peer(struct wg_softc *wg, struct iovec *iov, size_t iovlen)
   5555    1.1  riastrad {
   5556    1.1  riastrad 	struct mbuf *m;
   5557    1.1  riastrad 	const struct sockaddr *src;
   5558   1.78  riastrad 	int bound;
   5559    1.1  riastrad 
   5560    1.1  riastrad 	WG_TRACE("");
   5561    1.1  riastrad 
   5562    1.1  riastrad 	src = iov[0].iov_base;
   5563    1.1  riastrad 
   5564   1.48  riastrad 	m = m_gethdr(M_DONTWAIT, MT_DATA);
   5565    1.1  riastrad 	if (m == NULL)
   5566    1.1  riastrad 		return;
   5567    1.1  riastrad 	m->m_len = m->m_pkthdr.len = 0;
   5568    1.1  riastrad 	m_copyback(m, 0, iov[1].iov_len, iov[1].iov_base);
   5569    1.1  riastrad 
   5570   1.87       kre 	WG_DLOG("iov_len=%zu\n", iov[1].iov_len);
   5571    1.1  riastrad 	WG_DUMP_BUF(iov[1].iov_base, iov[1].iov_len);
   5572    1.1  riastrad 
   5573   1.78  riastrad 	bound = curlwp_bind();
   5574    1.1  riastrad 	wg_handle_packet(wg, m, src);
   5575   1.78  riastrad 	curlwp_bindx(bound);
   5576    1.1  riastrad }
   5577    1.1  riastrad #endif /* WG_RUMPKERNEL */
   5578    1.1  riastrad 
   5579    1.1  riastrad /*
   5580    1.1  riastrad  * Module infrastructure
   5581    1.1  riastrad  */
   5582    1.1  riastrad #include "if_module.h"
   5583    1.1  riastrad 
   5584   1.65  christos IF_MODULE(MODULE_CLASS_DRIVER, wg, "sodium,blake2s")
   5585