1b2e60773SJohn Baldwin /*- 2b2e60773SJohn Baldwin * SPDX-License-Identifier: BSD-2-Clause 3b2e60773SJohn Baldwin * 4b2e60773SJohn Baldwin * Copyright (c) 2014-2019 Netflix Inc. 5b2e60773SJohn Baldwin * 6b2e60773SJohn Baldwin * Redistribution and use in source and binary forms, with or without 7b2e60773SJohn Baldwin * modification, are permitted provided that the following conditions 8b2e60773SJohn Baldwin * are met: 9b2e60773SJohn Baldwin * 1. Redistributions of source code must retain the above copyright 10b2e60773SJohn Baldwin * notice, this list of conditions and the following disclaimer. 11b2e60773SJohn Baldwin * 2. Redistributions in binary form must reproduce the above copyright 12b2e60773SJohn Baldwin * notice, this list of conditions and the following disclaimer in the 13b2e60773SJohn Baldwin * documentation and/or other materials provided with the distribution. 14b2e60773SJohn Baldwin * 15b2e60773SJohn Baldwin * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 16b2e60773SJohn Baldwin * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 17b2e60773SJohn Baldwin * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 18b2e60773SJohn Baldwin * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 19b2e60773SJohn Baldwin * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 20b2e60773SJohn Baldwin * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 21b2e60773SJohn Baldwin * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 22b2e60773SJohn Baldwin * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 23b2e60773SJohn Baldwin * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 24b2e60773SJohn Baldwin * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 25b2e60773SJohn Baldwin * SUCH DAMAGE. 26b2e60773SJohn Baldwin */ 27b2e60773SJohn Baldwin 28b2e60773SJohn Baldwin #include <sys/cdefs.h> 29b2e60773SJohn Baldwin __FBSDID("$FreeBSD$"); 30b2e60773SJohn Baldwin 31b2e60773SJohn Baldwin #include "opt_inet.h" 32b2e60773SJohn Baldwin #include "opt_inet6.h" 3328d0a740SAndrew Gallatin #include "opt_kern_tls.h" 34ed5e13cfSAndrew Gallatin #include "opt_ratelimit.h" 35b2e60773SJohn Baldwin #include "opt_rss.h" 36b2e60773SJohn Baldwin 37b2e60773SJohn Baldwin #include <sys/param.h> 38b2e60773SJohn Baldwin #include <sys/kernel.h> 3902bc3865SAndrew Gallatin #include <sys/domainset.h> 40470e851cSJohn Baldwin #include <sys/endian.h> 41b2e60773SJohn Baldwin #include <sys/ktls.h> 42b2e60773SJohn Baldwin #include <sys/lock.h> 43b2e60773SJohn Baldwin #include <sys/mbuf.h> 44b2e60773SJohn Baldwin #include <sys/mutex.h> 45b2e60773SJohn Baldwin #include <sys/rmlock.h> 46b2e60773SJohn Baldwin #include <sys/proc.h> 47b2e60773SJohn Baldwin #include <sys/protosw.h> 48b2e60773SJohn Baldwin #include <sys/refcount.h> 49b2e60773SJohn Baldwin #include <sys/smp.h> 50b2e60773SJohn Baldwin #include <sys/socket.h> 51b2e60773SJohn Baldwin #include <sys/socketvar.h> 52b2e60773SJohn Baldwin #include <sys/sysctl.h> 53b2e60773SJohn Baldwin #include <sys/taskqueue.h> 54b2e60773SJohn Baldwin #include <sys/kthread.h> 55b2e60773SJohn Baldwin #include <sys/uio.h> 56b2e60773SJohn Baldwin #include <sys/vmmeter.h> 57b2e60773SJohn Baldwin #if defined(__aarch64__) || defined(__amd64__) || defined(__i386__) 58b2e60773SJohn Baldwin #include <machine/pcb.h> 59b2e60773SJohn Baldwin #endif 60b2e60773SJohn Baldwin #include <machine/vmparam.h> 6190746943SGleb Smirnoff #include <net/if.h> 6290746943SGleb Smirnoff #include <net/if_var.h> 63b2e60773SJohn Baldwin #ifdef RSS 64b2e60773SJohn Baldwin #include <net/netisr.h> 65b2e60773SJohn Baldwin #include <net/rss_config.h> 66b2e60773SJohn Baldwin #endif 67454d3896SAlexander V. Chernikov #include <net/route.h> 68454d3896SAlexander V. Chernikov #include <net/route/nhop.h> 69b2e60773SJohn Baldwin #if defined(INET) || defined(INET6) 70b2e60773SJohn Baldwin #include <netinet/in.h> 71b2e60773SJohn Baldwin #include <netinet/in_pcb.h> 72b2e60773SJohn Baldwin #endif 73b2e60773SJohn Baldwin #include <netinet/tcp_var.h> 749e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 759e14430dSJohn Baldwin #include <netinet/tcp_offload.h> 769e14430dSJohn Baldwin #endif 77470e851cSJohn Baldwin #include <opencrypto/cryptodev.h> 78470e851cSJohn Baldwin #include <opencrypto/ktls.h> 79b2e60773SJohn Baldwin #include <vm/uma_dbg.h> 80b2e60773SJohn Baldwin #include <vm/vm.h> 81b2e60773SJohn Baldwin #include <vm/vm_pageout.h> 82b2e60773SJohn Baldwin #include <vm/vm_page.h> 8398215005SAndrew Gallatin #include <vm/vm_pagequeue.h> 84b2e60773SJohn Baldwin 85b2e60773SJohn Baldwin struct ktls_wq { 86b2e60773SJohn Baldwin struct mtx mtx; 873c0e5685SJohn Baldwin STAILQ_HEAD(, mbuf) m_head; 883c0e5685SJohn Baldwin STAILQ_HEAD(, socket) so_head; 89b2e60773SJohn Baldwin bool running; 9049f6925cSMark Johnston int lastallocfail; 91b2e60773SJohn Baldwin } __aligned(CACHE_LINE_SIZE); 92b2e60773SJohn Baldwin 9398215005SAndrew Gallatin struct ktls_alloc_thread { 9498215005SAndrew Gallatin uint64_t wakeups; 9598215005SAndrew Gallatin uint64_t allocs; 9698215005SAndrew Gallatin struct thread *td; 9798215005SAndrew Gallatin int running; 9898215005SAndrew Gallatin }; 9998215005SAndrew Gallatin 10002bc3865SAndrew Gallatin struct ktls_domain_info { 10102bc3865SAndrew Gallatin int count; 10202bc3865SAndrew Gallatin int cpu[MAXCPU]; 10398215005SAndrew Gallatin struct ktls_alloc_thread alloc_td; 10402bc3865SAndrew Gallatin }; 10502bc3865SAndrew Gallatin 10602bc3865SAndrew Gallatin struct ktls_domain_info ktls_domains[MAXMEMDOM]; 107b2e60773SJohn Baldwin static struct ktls_wq *ktls_wq; 108b2e60773SJohn Baldwin static struct proc *ktls_proc; 109b2e60773SJohn Baldwin static uma_zone_t ktls_session_zone; 11049f6925cSMark Johnston static uma_zone_t ktls_buffer_zone; 111b2e60773SJohn Baldwin static uint16_t ktls_cpuid_lookup[MAXCPU]; 112a72ee355SJohn Baldwin static int ktls_init_state; 113a72ee355SJohn Baldwin static struct sx ktls_init_lock; 114a72ee355SJohn Baldwin SX_SYSINIT(ktls_init_lock, &ktls_init_lock, "ktls init"); 115b2e60773SJohn Baldwin 1167029da5cSPawel Biernacki SYSCTL_NODE(_kern_ipc, OID_AUTO, tls, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, 117b2e60773SJohn Baldwin "Kernel TLS offload"); 1187029da5cSPawel Biernacki SYSCTL_NODE(_kern_ipc_tls, OID_AUTO, stats, CTLFLAG_RW | CTLFLAG_MPSAFE, 0, 119b2e60773SJohn Baldwin "Kernel TLS offload stats"); 120b2e60773SJohn Baldwin 121b2e60773SJohn Baldwin #ifdef RSS 122b2e60773SJohn Baldwin static int ktls_bind_threads = 1; 123b2e60773SJohn Baldwin #else 124b2e60773SJohn Baldwin static int ktls_bind_threads; 125b2e60773SJohn Baldwin #endif 126b2e60773SJohn Baldwin SYSCTL_INT(_kern_ipc_tls, OID_AUTO, bind_threads, CTLFLAG_RDTUN, 127b2e60773SJohn Baldwin &ktls_bind_threads, 0, 1284dc1b17dSMark Johnston "Bind crypto threads to cores (1) or cores and domains (2) at boot"); 129b2e60773SJohn Baldwin 130b2e60773SJohn Baldwin static u_int ktls_maxlen = 16384; 13149f6925cSMark Johnston SYSCTL_UINT(_kern_ipc_tls, OID_AUTO, maxlen, CTLFLAG_RDTUN, 132b2e60773SJohn Baldwin &ktls_maxlen, 0, "Maximum TLS record size"); 133b2e60773SJohn Baldwin 134b2e60773SJohn Baldwin static int ktls_number_threads; 135b2e60773SJohn Baldwin SYSCTL_INT(_kern_ipc_tls_stats, OID_AUTO, threads, CTLFLAG_RD, 136b2e60773SJohn Baldwin &ktls_number_threads, 0, 137b2e60773SJohn Baldwin "Number of TLS threads in thread-pool"); 138b2e60773SJohn Baldwin 13928d0a740SAndrew Gallatin unsigned int ktls_ifnet_max_rexmit_pct = 2; 14028d0a740SAndrew Gallatin SYSCTL_UINT(_kern_ipc_tls, OID_AUTO, ifnet_max_rexmit_pct, CTLFLAG_RWTUN, 14128d0a740SAndrew Gallatin &ktls_ifnet_max_rexmit_pct, 2, 14228d0a740SAndrew Gallatin "Max percent bytes retransmitted before ifnet TLS is disabled"); 14328d0a740SAndrew Gallatin 144b2e60773SJohn Baldwin static bool ktls_offload_enable; 145b5aa9ad4SMark Johnston SYSCTL_BOOL(_kern_ipc_tls, OID_AUTO, enable, CTLFLAG_RWTUN, 146b2e60773SJohn Baldwin &ktls_offload_enable, 0, 147b2e60773SJohn Baldwin "Enable support for kernel TLS offload"); 148b2e60773SJohn Baldwin 149b2e60773SJohn Baldwin static bool ktls_cbc_enable = true; 150b5aa9ad4SMark Johnston SYSCTL_BOOL(_kern_ipc_tls, OID_AUTO, cbc_enable, CTLFLAG_RWTUN, 151b2e60773SJohn Baldwin &ktls_cbc_enable, 1, 152b2e60773SJohn Baldwin "Enable Support of AES-CBC crypto for kernel TLS"); 153b2e60773SJohn Baldwin 15449f6925cSMark Johnston static bool ktls_sw_buffer_cache = true; 15549f6925cSMark Johnston SYSCTL_BOOL(_kern_ipc_tls, OID_AUTO, sw_buffer_cache, CTLFLAG_RDTUN, 15649f6925cSMark Johnston &ktls_sw_buffer_cache, 1, 15749f6925cSMark Johnston "Enable caching of output buffers for SW encryption"); 15849f6925cSMark Johnston 15998215005SAndrew Gallatin static int ktls_max_alloc = 128; 16098215005SAndrew Gallatin SYSCTL_INT(_kern_ipc_tls, OID_AUTO, max_alloc, CTLFLAG_RWTUN, 16198215005SAndrew Gallatin &ktls_max_alloc, 128, 16298215005SAndrew Gallatin "Max number of 16k buffers to allocate in thread context"); 16398215005SAndrew Gallatin 1641755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_tasks_active); 165b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls, OID_AUTO, tasks_active, CTLFLAG_RD, 166b2e60773SJohn Baldwin &ktls_tasks_active, "Number of active tasks"); 167b2e60773SJohn Baldwin 1689f03d2c0SJohn Baldwin static COUNTER_U64_DEFINE_EARLY(ktls_cnt_tx_pending); 1699f03d2c0SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, sw_tx_pending, CTLFLAG_RD, 1709f03d2c0SJohn Baldwin &ktls_cnt_tx_pending, 1719f03d2c0SJohn Baldwin "Number of TLS 1.0 records waiting for earlier TLS records"); 1729f03d2c0SJohn Baldwin 1731755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_cnt_tx_queued); 1743c0e5685SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, sw_tx_inqueue, CTLFLAG_RD, 1753c0e5685SJohn Baldwin &ktls_cnt_tx_queued, 1763c0e5685SJohn Baldwin "Number of TLS records in queue to tasks for SW encryption"); 1773c0e5685SJohn Baldwin 1781755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_cnt_rx_queued); 1793c0e5685SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, sw_rx_inqueue, CTLFLAG_RD, 1803c0e5685SJohn Baldwin &ktls_cnt_rx_queued, 1813c0e5685SJohn Baldwin "Number of TLS sockets in queue to tasks for SW decryption"); 182b2e60773SJohn Baldwin 1831755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_offload_total); 184b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, offload_total, 185b2e60773SJohn Baldwin CTLFLAG_RD, &ktls_offload_total, 186b2e60773SJohn Baldwin "Total successful TLS setups (parameters set)"); 187b2e60773SJohn Baldwin 1881755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_offload_enable_calls); 189b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, enable_calls, 190b2e60773SJohn Baldwin CTLFLAG_RD, &ktls_offload_enable_calls, 191b2e60773SJohn Baldwin "Total number of TLS enable calls made"); 192b2e60773SJohn Baldwin 1931755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_offload_active); 194b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, active, CTLFLAG_RD, 195b2e60773SJohn Baldwin &ktls_offload_active, "Total Active TLS sessions"); 196b2e60773SJohn Baldwin 1971755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_offload_corrupted_records); 1983c0e5685SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, corrupted_records, CTLFLAG_RD, 1993c0e5685SJohn Baldwin &ktls_offload_corrupted_records, "Total corrupted TLS records received"); 2003c0e5685SJohn Baldwin 2011755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_offload_failed_crypto); 202b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, failed_crypto, CTLFLAG_RD, 203b2e60773SJohn Baldwin &ktls_offload_failed_crypto, "Total TLS crypto failures"); 204b2e60773SJohn Baldwin 2051755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_switch_to_ifnet); 206b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, switch_to_ifnet, CTLFLAG_RD, 207b2e60773SJohn Baldwin &ktls_switch_to_ifnet, "TLS sessions switched from SW to ifnet"); 208b2e60773SJohn Baldwin 2091755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_switch_to_sw); 210b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, switch_to_sw, CTLFLAG_RD, 211b2e60773SJohn Baldwin &ktls_switch_to_sw, "TLS sessions switched from ifnet to SW"); 212b2e60773SJohn Baldwin 2131755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_switch_failed); 214b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, switch_failed, CTLFLAG_RD, 215b2e60773SJohn Baldwin &ktls_switch_failed, "TLS sessions unable to switch between SW and ifnet"); 216b2e60773SJohn Baldwin 21728d0a740SAndrew Gallatin static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_disable_fail); 21828d0a740SAndrew Gallatin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, ifnet_disable_failed, CTLFLAG_RD, 21928d0a740SAndrew Gallatin &ktls_ifnet_disable_fail, "TLS sessions unable to switch to SW from ifnet"); 22028d0a740SAndrew Gallatin 22128d0a740SAndrew Gallatin static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_disable_ok); 22228d0a740SAndrew Gallatin SYSCTL_COUNTER_U64(_kern_ipc_tls_stats, OID_AUTO, ifnet_disable_ok, CTLFLAG_RD, 22328d0a740SAndrew Gallatin &ktls_ifnet_disable_ok, "TLS sessions able to switch to SW from ifnet"); 22428d0a740SAndrew Gallatin 2257029da5cSPawel Biernacki SYSCTL_NODE(_kern_ipc_tls, OID_AUTO, sw, CTLFLAG_RD | CTLFLAG_MPSAFE, 0, 226b2e60773SJohn Baldwin "Software TLS session stats"); 2277029da5cSPawel Biernacki SYSCTL_NODE(_kern_ipc_tls, OID_AUTO, ifnet, CTLFLAG_RD | CTLFLAG_MPSAFE, 0, 228b2e60773SJohn Baldwin "Hardware (ifnet) TLS session stats"); 2299e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 2307029da5cSPawel Biernacki SYSCTL_NODE(_kern_ipc_tls, OID_AUTO, toe, CTLFLAG_RD | CTLFLAG_MPSAFE, 0, 2319e14430dSJohn Baldwin "TOE TLS session stats"); 2329e14430dSJohn Baldwin #endif 233b2e60773SJohn Baldwin 2341755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_sw_cbc); 235b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_sw, OID_AUTO, cbc, CTLFLAG_RD, &ktls_sw_cbc, 236b2e60773SJohn Baldwin "Active number of software TLS sessions using AES-CBC"); 237b2e60773SJohn Baldwin 2381755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_sw_gcm); 239b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_sw, OID_AUTO, gcm, CTLFLAG_RD, &ktls_sw_gcm, 240b2e60773SJohn Baldwin "Active number of software TLS sessions using AES-GCM"); 241b2e60773SJohn Baldwin 2429c64fc40SJohn Baldwin static COUNTER_U64_DEFINE_EARLY(ktls_sw_chacha20); 2439c64fc40SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_sw, OID_AUTO, chacha20, CTLFLAG_RD, 2449c64fc40SJohn Baldwin &ktls_sw_chacha20, 2459c64fc40SJohn Baldwin "Active number of software TLS sessions using Chacha20-Poly1305"); 2469c64fc40SJohn Baldwin 2471755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_cbc); 248b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, cbc, CTLFLAG_RD, 249b2e60773SJohn Baldwin &ktls_ifnet_cbc, 250b2e60773SJohn Baldwin "Active number of ifnet TLS sessions using AES-CBC"); 251b2e60773SJohn Baldwin 2521755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_gcm); 253b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, gcm, CTLFLAG_RD, 254b2e60773SJohn Baldwin &ktls_ifnet_gcm, 255b2e60773SJohn Baldwin "Active number of ifnet TLS sessions using AES-GCM"); 256b2e60773SJohn Baldwin 2579c64fc40SJohn Baldwin static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_chacha20); 2589c64fc40SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, chacha20, CTLFLAG_RD, 2599c64fc40SJohn Baldwin &ktls_ifnet_chacha20, 2609c64fc40SJohn Baldwin "Active number of ifnet TLS sessions using Chacha20-Poly1305"); 2619c64fc40SJohn Baldwin 2621755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_reset); 263b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, reset, CTLFLAG_RD, 264b2e60773SJohn Baldwin &ktls_ifnet_reset, "TLS sessions updated to a new ifnet send tag"); 265b2e60773SJohn Baldwin 2661755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_reset_dropped); 267b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, reset_dropped, CTLFLAG_RD, 268b2e60773SJohn Baldwin &ktls_ifnet_reset_dropped, 269b2e60773SJohn Baldwin "TLS sessions dropped after failing to update ifnet send tag"); 270b2e60773SJohn Baldwin 2711755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_ifnet_reset_failed); 272b2e60773SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_ifnet, OID_AUTO, reset_failed, CTLFLAG_RD, 273b2e60773SJohn Baldwin &ktls_ifnet_reset_failed, 274b2e60773SJohn Baldwin "TLS sessions that failed to allocate a new ifnet send tag"); 275b2e60773SJohn Baldwin 276b2e60773SJohn Baldwin static int ktls_ifnet_permitted; 277b2e60773SJohn Baldwin SYSCTL_UINT(_kern_ipc_tls_ifnet, OID_AUTO, permitted, CTLFLAG_RWTUN, 278b2e60773SJohn Baldwin &ktls_ifnet_permitted, 1, 279b2e60773SJohn Baldwin "Whether to permit hardware (ifnet) TLS sessions"); 280b2e60773SJohn Baldwin 2819e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 2821755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_toe_cbc); 2839e14430dSJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_toe, OID_AUTO, cbc, CTLFLAG_RD, 2849e14430dSJohn Baldwin &ktls_toe_cbc, 2859e14430dSJohn Baldwin "Active number of TOE TLS sessions using AES-CBC"); 2869e14430dSJohn Baldwin 2871755b2b9SMark Johnston static COUNTER_U64_DEFINE_EARLY(ktls_toe_gcm); 2889e14430dSJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_toe, OID_AUTO, gcm, CTLFLAG_RD, 2899e14430dSJohn Baldwin &ktls_toe_gcm, 2909e14430dSJohn Baldwin "Active number of TOE TLS sessions using AES-GCM"); 2919c64fc40SJohn Baldwin 29290972f04SJohn Baldwin static COUNTER_U64_DEFINE_EARLY(ktls_toe_chacha20); 2939c64fc40SJohn Baldwin SYSCTL_COUNTER_U64(_kern_ipc_tls_toe, OID_AUTO, chacha20, CTLFLAG_RD, 2949c64fc40SJohn Baldwin &ktls_toe_chacha20, 2959c64fc40SJohn Baldwin "Active number of TOE TLS sessions using Chacha20-Poly1305"); 2969e14430dSJohn Baldwin #endif 2979e14430dSJohn Baldwin 298b2e60773SJohn Baldwin static MALLOC_DEFINE(M_KTLS, "ktls", "Kernel TLS"); 299b2e60773SJohn Baldwin 300b2e60773SJohn Baldwin static void ktls_cleanup(struct ktls_session *tls); 301b2e60773SJohn Baldwin #if defined(INET) || defined(INET6) 302b2e60773SJohn Baldwin static void ktls_reset_send_tag(void *context, int pending); 303b2e60773SJohn Baldwin #endif 304b2e60773SJohn Baldwin static void ktls_work_thread(void *ctx); 30598215005SAndrew Gallatin static void ktls_alloc_thread(void *ctx); 306b2e60773SJohn Baldwin 307b2e60773SJohn Baldwin #if defined(INET) || defined(INET6) 308a2fba2a7SBjoern A. Zeeb static u_int 309b2e60773SJohn Baldwin ktls_get_cpu(struct socket *so) 310b2e60773SJohn Baldwin { 311b2e60773SJohn Baldwin struct inpcb *inp; 31202bc3865SAndrew Gallatin #ifdef NUMA 31302bc3865SAndrew Gallatin struct ktls_domain_info *di; 31402bc3865SAndrew Gallatin #endif 315a2fba2a7SBjoern A. Zeeb u_int cpuid; 316b2e60773SJohn Baldwin 317b2e60773SJohn Baldwin inp = sotoinpcb(so); 318b2e60773SJohn Baldwin #ifdef RSS 319b2e60773SJohn Baldwin cpuid = rss_hash2cpuid(inp->inp_flowid, inp->inp_flowtype); 320b2e60773SJohn Baldwin if (cpuid != NETISR_CPUID_NONE) 321b2e60773SJohn Baldwin return (cpuid); 322b2e60773SJohn Baldwin #endif 323b2e60773SJohn Baldwin /* 324b2e60773SJohn Baldwin * Just use the flowid to shard connections in a repeatable 32521e3c1fbSJohn Baldwin * fashion. Note that TLS 1.0 sessions rely on the 326b2e60773SJohn Baldwin * serialization provided by having the same connection use 327b2e60773SJohn Baldwin * the same queue. 328b2e60773SJohn Baldwin */ 32902bc3865SAndrew Gallatin #ifdef NUMA 33002bc3865SAndrew Gallatin if (ktls_bind_threads > 1 && inp->inp_numa_domain != M_NODOM) { 33102bc3865SAndrew Gallatin di = &ktls_domains[inp->inp_numa_domain]; 33202bc3865SAndrew Gallatin cpuid = di->cpu[inp->inp_flowid % di->count]; 33302bc3865SAndrew Gallatin } else 33402bc3865SAndrew Gallatin #endif 335b2e60773SJohn Baldwin cpuid = ktls_cpuid_lookup[inp->inp_flowid % ktls_number_threads]; 336b2e60773SJohn Baldwin return (cpuid); 337b2e60773SJohn Baldwin } 338b2e60773SJohn Baldwin #endif 339b2e60773SJohn Baldwin 34049f6925cSMark Johnston static int 34149f6925cSMark Johnston ktls_buffer_import(void *arg, void **store, int count, int domain, int flags) 34249f6925cSMark Johnston { 34349f6925cSMark Johnston vm_page_t m; 34449f6925cSMark Johnston int i; 34549f6925cSMark Johnston 34649f6925cSMark Johnston KASSERT((ktls_maxlen & PAGE_MASK) == 0, 34749f6925cSMark Johnston ("%s: ktls max length %d is not page size-aligned", 34849f6925cSMark Johnston __func__, ktls_maxlen)); 34949f6925cSMark Johnston 35049f6925cSMark Johnston for (i = 0; i < count; i++) { 35149f6925cSMark Johnston m = vm_page_alloc_contig_domain(NULL, 0, domain, 35249f6925cSMark Johnston VM_ALLOC_NORMAL | VM_ALLOC_NOOBJ | VM_ALLOC_WIRED | 35349f6925cSMark Johnston VM_ALLOC_NODUMP | malloc2vm_flags(flags), 35449f6925cSMark Johnston atop(ktls_maxlen), 0, ~0ul, PAGE_SIZE, 0, 35549f6925cSMark Johnston VM_MEMATTR_DEFAULT); 35649f6925cSMark Johnston if (m == NULL) 35749f6925cSMark Johnston break; 35849f6925cSMark Johnston store[i] = (void *)PHYS_TO_DMAP(VM_PAGE_TO_PHYS(m)); 35949f6925cSMark Johnston } 36049f6925cSMark Johnston return (i); 36149f6925cSMark Johnston } 36249f6925cSMark Johnston 36349f6925cSMark Johnston static void 36449f6925cSMark Johnston ktls_buffer_release(void *arg __unused, void **store, int count) 36549f6925cSMark Johnston { 36649f6925cSMark Johnston vm_page_t m; 36749f6925cSMark Johnston int i, j; 36849f6925cSMark Johnston 36949f6925cSMark Johnston for (i = 0; i < count; i++) { 37049f6925cSMark Johnston m = PHYS_TO_VM_PAGE(DMAP_TO_PHYS((vm_offset_t)store[i])); 37149f6925cSMark Johnston for (j = 0; j < atop(ktls_maxlen); j++) { 37249f6925cSMark Johnston (void)vm_page_unwire_noq(m + j); 37349f6925cSMark Johnston vm_page_free(m + j); 37449f6925cSMark Johnston } 37549f6925cSMark Johnston } 37649f6925cSMark Johnston } 37749f6925cSMark Johnston 37849f6925cSMark Johnston static void 37949f6925cSMark Johnston ktls_free_mext_contig(struct mbuf *m) 38049f6925cSMark Johnston { 38149f6925cSMark Johnston M_ASSERTEXTPG(m); 38249f6925cSMark Johnston uma_zfree(ktls_buffer_zone, (void *)PHYS_TO_DMAP(m->m_epg_pa[0])); 38349f6925cSMark Johnston } 38449f6925cSMark Johnston 385a72ee355SJohn Baldwin static int 386a72ee355SJohn Baldwin ktls_init(void) 387b2e60773SJohn Baldwin { 388b2e60773SJohn Baldwin struct thread *td; 389b2e60773SJohn Baldwin struct pcpu *pc; 39002bc3865SAndrew Gallatin int count, domain, error, i; 391b2e60773SJohn Baldwin 392b2e60773SJohn Baldwin ktls_wq = malloc(sizeof(*ktls_wq) * (mp_maxid + 1), M_KTLS, 393b2e60773SJohn Baldwin M_WAITOK | M_ZERO); 394b2e60773SJohn Baldwin 395b2e60773SJohn Baldwin ktls_session_zone = uma_zcreate("ktls_session", 396b2e60773SJohn Baldwin sizeof(struct ktls_session), 397b2e60773SJohn Baldwin NULL, NULL, NULL, NULL, 398b2e60773SJohn Baldwin UMA_ALIGN_CACHE, 0); 399b2e60773SJohn Baldwin 40049f6925cSMark Johnston if (ktls_sw_buffer_cache) { 40149f6925cSMark Johnston ktls_buffer_zone = uma_zcache_create("ktls_buffers", 40249f6925cSMark Johnston roundup2(ktls_maxlen, PAGE_SIZE), NULL, NULL, NULL, NULL, 40349f6925cSMark Johnston ktls_buffer_import, ktls_buffer_release, NULL, 40449f6925cSMark Johnston UMA_ZONE_FIRSTTOUCH); 40549f6925cSMark Johnston } 40649f6925cSMark Johnston 407b2e60773SJohn Baldwin /* 408b2e60773SJohn Baldwin * Initialize the workqueues to run the TLS work. We create a 409b2e60773SJohn Baldwin * work queue for each CPU. 410b2e60773SJohn Baldwin */ 411b2e60773SJohn Baldwin CPU_FOREACH(i) { 4123c0e5685SJohn Baldwin STAILQ_INIT(&ktls_wq[i].m_head); 4133c0e5685SJohn Baldwin STAILQ_INIT(&ktls_wq[i].so_head); 414b2e60773SJohn Baldwin mtx_init(&ktls_wq[i].mtx, "ktls work queue", NULL, MTX_DEF); 415b2e60773SJohn Baldwin if (ktls_bind_threads > 1) { 416b2e60773SJohn Baldwin pc = pcpu_find(i); 41702bc3865SAndrew Gallatin domain = pc->pc_domain; 41802bc3865SAndrew Gallatin count = ktls_domains[domain].count; 41902bc3865SAndrew Gallatin ktls_domains[domain].cpu[count] = i; 42002bc3865SAndrew Gallatin ktls_domains[domain].count++; 421b2e60773SJohn Baldwin } 422b2e60773SJohn Baldwin ktls_cpuid_lookup[ktls_number_threads] = i; 423b2e60773SJohn Baldwin ktls_number_threads++; 424b2e60773SJohn Baldwin } 42502bc3865SAndrew Gallatin 42602bc3865SAndrew Gallatin /* 427a72ee355SJohn Baldwin * If we somehow have an empty domain, fall back to choosing 428a72ee355SJohn Baldwin * among all KTLS threads. 429a72ee355SJohn Baldwin */ 430a72ee355SJohn Baldwin if (ktls_bind_threads > 1) { 431a72ee355SJohn Baldwin for (i = 0; i < vm_ndomains; i++) { 432a72ee355SJohn Baldwin if (ktls_domains[i].count == 0) { 433a72ee355SJohn Baldwin ktls_bind_threads = 1; 434a72ee355SJohn Baldwin break; 435a72ee355SJohn Baldwin } 436a72ee355SJohn Baldwin } 437a72ee355SJohn Baldwin } 438a72ee355SJohn Baldwin 439a72ee355SJohn Baldwin /* Start kthreads for each workqueue. */ 440a72ee355SJohn Baldwin CPU_FOREACH(i) { 441a72ee355SJohn Baldwin error = kproc_kthread_add(ktls_work_thread, &ktls_wq[i], 442a72ee355SJohn Baldwin &ktls_proc, &td, 0, 0, "KTLS", "thr_%d", i); 443a72ee355SJohn Baldwin if (error) { 444a72ee355SJohn Baldwin printf("Can't add KTLS thread %d error %d\n", i, error); 445a72ee355SJohn Baldwin return (error); 446a72ee355SJohn Baldwin } 447a72ee355SJohn Baldwin } 448a72ee355SJohn Baldwin 449a72ee355SJohn Baldwin /* 45098215005SAndrew Gallatin * Start an allocation thread per-domain to perform blocking allocations 45198215005SAndrew Gallatin * of 16k physically contiguous TLS crypto destination buffers. 45298215005SAndrew Gallatin */ 45398215005SAndrew Gallatin if (ktls_sw_buffer_cache) { 45498215005SAndrew Gallatin for (domain = 0; domain < vm_ndomains; domain++) { 45598215005SAndrew Gallatin if (VM_DOMAIN_EMPTY(domain)) 45698215005SAndrew Gallatin continue; 45798215005SAndrew Gallatin if (CPU_EMPTY(&cpuset_domain[domain])) 45898215005SAndrew Gallatin continue; 45998215005SAndrew Gallatin error = kproc_kthread_add(ktls_alloc_thread, 46098215005SAndrew Gallatin &ktls_domains[domain], &ktls_proc, 46198215005SAndrew Gallatin &ktls_domains[domain].alloc_td.td, 46298215005SAndrew Gallatin 0, 0, "KTLS", "alloc_%d", domain); 463a72ee355SJohn Baldwin if (error) { 464a72ee355SJohn Baldwin printf("Can't add KTLS alloc thread %d error %d\n", 46598215005SAndrew Gallatin domain, error); 466a72ee355SJohn Baldwin return (error); 46702bc3865SAndrew Gallatin } 46802bc3865SAndrew Gallatin } 4694dc1b17dSMark Johnston } 47002bc3865SAndrew Gallatin 47189b65087SMark Johnston if (bootverbose) 472b2e60773SJohn Baldwin printf("KTLS: Initialized %d threads\n", ktls_number_threads); 473a72ee355SJohn Baldwin return (0); 474b2e60773SJohn Baldwin } 475a72ee355SJohn Baldwin 476a72ee355SJohn Baldwin static int 477a72ee355SJohn Baldwin ktls_start_kthreads(void) 478a72ee355SJohn Baldwin { 479a72ee355SJohn Baldwin int error, state; 480a72ee355SJohn Baldwin 481a72ee355SJohn Baldwin start: 482a72ee355SJohn Baldwin state = atomic_load_acq_int(&ktls_init_state); 483a72ee355SJohn Baldwin if (__predict_true(state > 0)) 484a72ee355SJohn Baldwin return (0); 485a72ee355SJohn Baldwin if (state < 0) 486a72ee355SJohn Baldwin return (ENXIO); 487a72ee355SJohn Baldwin 488a72ee355SJohn Baldwin sx_xlock(&ktls_init_lock); 489a72ee355SJohn Baldwin if (ktls_init_state != 0) { 490a72ee355SJohn Baldwin sx_xunlock(&ktls_init_lock); 491a72ee355SJohn Baldwin goto start; 492a72ee355SJohn Baldwin } 493a72ee355SJohn Baldwin 494a72ee355SJohn Baldwin error = ktls_init(); 495a72ee355SJohn Baldwin if (error == 0) 496a72ee355SJohn Baldwin state = 1; 497a72ee355SJohn Baldwin else 498a72ee355SJohn Baldwin state = -1; 499a72ee355SJohn Baldwin atomic_store_rel_int(&ktls_init_state, state); 500a72ee355SJohn Baldwin sx_xunlock(&ktls_init_lock); 501a72ee355SJohn Baldwin return (error); 502a72ee355SJohn Baldwin } 503b2e60773SJohn Baldwin 504b2e60773SJohn Baldwin #if defined(INET) || defined(INET6) 505b2e60773SJohn Baldwin static int 506b2e60773SJohn Baldwin ktls_create_session(struct socket *so, struct tls_enable *en, 507b2e60773SJohn Baldwin struct ktls_session **tlsp) 508b2e60773SJohn Baldwin { 509b2e60773SJohn Baldwin struct ktls_session *tls; 510b2e60773SJohn Baldwin int error; 511b2e60773SJohn Baldwin 5127d29eb9aSJohn Baldwin /* Only TLS 1.0 - 1.3 are supported. */ 513b2e60773SJohn Baldwin if (en->tls_vmajor != TLS_MAJOR_VER_ONE) 514b2e60773SJohn Baldwin return (EINVAL); 515b2e60773SJohn Baldwin if (en->tls_vminor < TLS_MINOR_VER_ZERO || 5166554362cSAndrew Gallatin en->tls_vminor > TLS_MINOR_VER_THREE) 517b2e60773SJohn Baldwin return (EINVAL); 518b2e60773SJohn Baldwin 519b2e60773SJohn Baldwin if (en->auth_key_len < 0 || en->auth_key_len > TLS_MAX_PARAM_SIZE) 520b2e60773SJohn Baldwin return (EINVAL); 521b2e60773SJohn Baldwin if (en->cipher_key_len < 0 || en->cipher_key_len > TLS_MAX_PARAM_SIZE) 522b2e60773SJohn Baldwin return (EINVAL); 5236554362cSAndrew Gallatin if (en->iv_len < 0 || en->iv_len > sizeof(tls->params.iv)) 524b2e60773SJohn Baldwin return (EINVAL); 525b2e60773SJohn Baldwin 526b2e60773SJohn Baldwin /* All supported algorithms require a cipher key. */ 527b2e60773SJohn Baldwin if (en->cipher_key_len == 0) 528b2e60773SJohn Baldwin return (EINVAL); 529b2e60773SJohn Baldwin 530b2e60773SJohn Baldwin /* No flags are currently supported. */ 531b2e60773SJohn Baldwin if (en->flags != 0) 532b2e60773SJohn Baldwin return (EINVAL); 533b2e60773SJohn Baldwin 534b2e60773SJohn Baldwin /* Common checks for supported algorithms. */ 535b2e60773SJohn Baldwin switch (en->cipher_algorithm) { 536b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 537b2e60773SJohn Baldwin /* 538b2e60773SJohn Baldwin * auth_algorithm isn't used, but permit GMAC values 539b2e60773SJohn Baldwin * for compatibility. 540b2e60773SJohn Baldwin */ 541b2e60773SJohn Baldwin switch (en->auth_algorithm) { 542b2e60773SJohn Baldwin case 0: 543c0341432SJohn Baldwin #ifdef COMPAT_FREEBSD12 544c0341432SJohn Baldwin /* XXX: Really 13.0-current COMPAT. */ 545b2e60773SJohn Baldwin case CRYPTO_AES_128_NIST_GMAC: 546b2e60773SJohn Baldwin case CRYPTO_AES_192_NIST_GMAC: 547b2e60773SJohn Baldwin case CRYPTO_AES_256_NIST_GMAC: 548c0341432SJohn Baldwin #endif 549b2e60773SJohn Baldwin break; 550b2e60773SJohn Baldwin default: 551b2e60773SJohn Baldwin return (EINVAL); 552b2e60773SJohn Baldwin } 553b2e60773SJohn Baldwin if (en->auth_key_len != 0) 554b2e60773SJohn Baldwin return (EINVAL); 5556554362cSAndrew Gallatin if ((en->tls_vminor == TLS_MINOR_VER_TWO && 5566554362cSAndrew Gallatin en->iv_len != TLS_AEAD_GCM_LEN) || 5576554362cSAndrew Gallatin (en->tls_vminor == TLS_MINOR_VER_THREE && 5586554362cSAndrew Gallatin en->iv_len != TLS_1_3_GCM_IV_LEN)) 559b2e60773SJohn Baldwin return (EINVAL); 560b2e60773SJohn Baldwin break; 561b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 562b2e60773SJohn Baldwin switch (en->auth_algorithm) { 563b2e60773SJohn Baldwin case CRYPTO_SHA1_HMAC: 564b2e60773SJohn Baldwin /* 565b2e60773SJohn Baldwin * TLS 1.0 requires an implicit IV. TLS 1.1+ 566b2e60773SJohn Baldwin * all use explicit IVs. 567b2e60773SJohn Baldwin */ 568b2e60773SJohn Baldwin if (en->tls_vminor == TLS_MINOR_VER_ZERO) { 569b2e60773SJohn Baldwin if (en->iv_len != TLS_CBC_IMPLICIT_IV_LEN) 570b2e60773SJohn Baldwin return (EINVAL); 571b2e60773SJohn Baldwin break; 572b2e60773SJohn Baldwin } 573b2e60773SJohn Baldwin 574b2e60773SJohn Baldwin /* FALLTHROUGH */ 575b2e60773SJohn Baldwin case CRYPTO_SHA2_256_HMAC: 576b2e60773SJohn Baldwin case CRYPTO_SHA2_384_HMAC: 577b2e60773SJohn Baldwin /* Ignore any supplied IV. */ 578b2e60773SJohn Baldwin en->iv_len = 0; 579b2e60773SJohn Baldwin break; 580b2e60773SJohn Baldwin default: 581b2e60773SJohn Baldwin return (EINVAL); 582b2e60773SJohn Baldwin } 583b2e60773SJohn Baldwin if (en->auth_key_len == 0) 584b2e60773SJohn Baldwin return (EINVAL); 585a63752ccSJohn Baldwin if (en->tls_vminor != TLS_MINOR_VER_ZERO && 586a63752ccSJohn Baldwin en->tls_vminor != TLS_MINOR_VER_ONE && 587a63752ccSJohn Baldwin en->tls_vminor != TLS_MINOR_VER_TWO) 588a63752ccSJohn Baldwin return (EINVAL); 589b2e60773SJohn Baldwin break; 5909c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 5919c64fc40SJohn Baldwin if (en->auth_algorithm != 0 || en->auth_key_len != 0) 5929c64fc40SJohn Baldwin return (EINVAL); 5939c64fc40SJohn Baldwin if (en->tls_vminor != TLS_MINOR_VER_TWO && 5949c64fc40SJohn Baldwin en->tls_vminor != TLS_MINOR_VER_THREE) 5959c64fc40SJohn Baldwin return (EINVAL); 5969c64fc40SJohn Baldwin if (en->iv_len != TLS_CHACHA20_IV_LEN) 5979c64fc40SJohn Baldwin return (EINVAL); 5989c64fc40SJohn Baldwin break; 599b2e60773SJohn Baldwin default: 600b2e60773SJohn Baldwin return (EINVAL); 601b2e60773SJohn Baldwin } 602b2e60773SJohn Baldwin 603a72ee355SJohn Baldwin error = ktls_start_kthreads(); 604a72ee355SJohn Baldwin if (error != 0) 605a72ee355SJohn Baldwin return (error); 606a72ee355SJohn Baldwin 607b2e60773SJohn Baldwin tls = uma_zalloc(ktls_session_zone, M_WAITOK | M_ZERO); 608b2e60773SJohn Baldwin 609b2e60773SJohn Baldwin counter_u64_add(ktls_offload_active, 1); 610b2e60773SJohn Baldwin 611b2e60773SJohn Baldwin refcount_init(&tls->refcount, 1); 612b2e60773SJohn Baldwin TASK_INIT(&tls->reset_tag_task, 0, ktls_reset_send_tag, tls); 613b2e60773SJohn Baldwin 614b2e60773SJohn Baldwin tls->wq_index = ktls_get_cpu(so); 615b2e60773SJohn Baldwin 616b2e60773SJohn Baldwin tls->params.cipher_algorithm = en->cipher_algorithm; 617b2e60773SJohn Baldwin tls->params.auth_algorithm = en->auth_algorithm; 618b2e60773SJohn Baldwin tls->params.tls_vmajor = en->tls_vmajor; 619b2e60773SJohn Baldwin tls->params.tls_vminor = en->tls_vminor; 620b2e60773SJohn Baldwin tls->params.flags = en->flags; 621b2e60773SJohn Baldwin tls->params.max_frame_len = min(TLS_MAX_MSG_SIZE_V10_2, ktls_maxlen); 622b2e60773SJohn Baldwin 623b2e60773SJohn Baldwin /* Set the header and trailer lengths. */ 624b2e60773SJohn Baldwin tls->params.tls_hlen = sizeof(struct tls_record_layer); 625b2e60773SJohn Baldwin switch (en->cipher_algorithm) { 626b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 6276554362cSAndrew Gallatin /* 6286554362cSAndrew Gallatin * TLS 1.2 uses a 4 byte implicit IV with an explicit 8 byte 6296554362cSAndrew Gallatin * nonce. TLS 1.3 uses a 12 byte implicit IV. 6306554362cSAndrew Gallatin */ 6316554362cSAndrew Gallatin if (en->tls_vminor < TLS_MINOR_VER_THREE) 6326554362cSAndrew Gallatin tls->params.tls_hlen += sizeof(uint64_t); 633b2e60773SJohn Baldwin tls->params.tls_tlen = AES_GMAC_HASH_LEN; 634b2e60773SJohn Baldwin tls->params.tls_bs = 1; 635b2e60773SJohn Baldwin break; 636b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 637b2e60773SJohn Baldwin switch (en->auth_algorithm) { 638b2e60773SJohn Baldwin case CRYPTO_SHA1_HMAC: 639b2e60773SJohn Baldwin if (en->tls_vminor == TLS_MINOR_VER_ZERO) { 640b2e60773SJohn Baldwin /* Implicit IV, no nonce. */ 6419f03d2c0SJohn Baldwin tls->sequential_records = true; 6429f03d2c0SJohn Baldwin tls->next_seqno = be64dec(en->rec_seq); 6439f03d2c0SJohn Baldwin STAILQ_INIT(&tls->pending_records); 644b2e60773SJohn Baldwin } else { 645b2e60773SJohn Baldwin tls->params.tls_hlen += AES_BLOCK_LEN; 646b2e60773SJohn Baldwin } 647b2e60773SJohn Baldwin tls->params.tls_tlen = AES_BLOCK_LEN + 648b2e60773SJohn Baldwin SHA1_HASH_LEN; 649b2e60773SJohn Baldwin break; 650b2e60773SJohn Baldwin case CRYPTO_SHA2_256_HMAC: 651b2e60773SJohn Baldwin tls->params.tls_hlen += AES_BLOCK_LEN; 652b2e60773SJohn Baldwin tls->params.tls_tlen = AES_BLOCK_LEN + 653b2e60773SJohn Baldwin SHA2_256_HASH_LEN; 654b2e60773SJohn Baldwin break; 655b2e60773SJohn Baldwin case CRYPTO_SHA2_384_HMAC: 656b2e60773SJohn Baldwin tls->params.tls_hlen += AES_BLOCK_LEN; 657b2e60773SJohn Baldwin tls->params.tls_tlen = AES_BLOCK_LEN + 658b2e60773SJohn Baldwin SHA2_384_HASH_LEN; 659b2e60773SJohn Baldwin break; 660b2e60773SJohn Baldwin default: 661b2e60773SJohn Baldwin panic("invalid hmac"); 662b2e60773SJohn Baldwin } 663b2e60773SJohn Baldwin tls->params.tls_bs = AES_BLOCK_LEN; 664b2e60773SJohn Baldwin break; 6659c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 6669c64fc40SJohn Baldwin /* 6679c64fc40SJohn Baldwin * Chacha20 uses a 12 byte implicit IV. 6689c64fc40SJohn Baldwin */ 6699c64fc40SJohn Baldwin tls->params.tls_tlen = POLY1305_HASH_LEN; 6709c64fc40SJohn Baldwin tls->params.tls_bs = 1; 6719c64fc40SJohn Baldwin break; 672b2e60773SJohn Baldwin default: 673b2e60773SJohn Baldwin panic("invalid cipher"); 674b2e60773SJohn Baldwin } 675b2e60773SJohn Baldwin 6769c64fc40SJohn Baldwin /* 6779c64fc40SJohn Baldwin * TLS 1.3 includes optional padding which we do not support, 6789c64fc40SJohn Baldwin * and also puts the "real" record type at the end of the 6799c64fc40SJohn Baldwin * encrypted data. 6809c64fc40SJohn Baldwin */ 6819c64fc40SJohn Baldwin if (en->tls_vminor == TLS_MINOR_VER_THREE) 6829c64fc40SJohn Baldwin tls->params.tls_tlen += sizeof(uint8_t); 6839c64fc40SJohn Baldwin 684b2e60773SJohn Baldwin KASSERT(tls->params.tls_hlen <= MBUF_PEXT_HDR_LEN, 685b2e60773SJohn Baldwin ("TLS header length too long: %d", tls->params.tls_hlen)); 686b2e60773SJohn Baldwin KASSERT(tls->params.tls_tlen <= MBUF_PEXT_TRAIL_LEN, 687b2e60773SJohn Baldwin ("TLS trailer length too long: %d", tls->params.tls_tlen)); 688b2e60773SJohn Baldwin 689b2e60773SJohn Baldwin if (en->auth_key_len != 0) { 690b2e60773SJohn Baldwin tls->params.auth_key_len = en->auth_key_len; 691b2e60773SJohn Baldwin tls->params.auth_key = malloc(en->auth_key_len, M_KTLS, 692b2e60773SJohn Baldwin M_WAITOK); 693b2e60773SJohn Baldwin error = copyin(en->auth_key, tls->params.auth_key, 694b2e60773SJohn Baldwin en->auth_key_len); 695b2e60773SJohn Baldwin if (error) 696b2e60773SJohn Baldwin goto out; 697b2e60773SJohn Baldwin } 698b2e60773SJohn Baldwin 699b2e60773SJohn Baldwin tls->params.cipher_key_len = en->cipher_key_len; 700b2e60773SJohn Baldwin tls->params.cipher_key = malloc(en->cipher_key_len, M_KTLS, M_WAITOK); 701b2e60773SJohn Baldwin error = copyin(en->cipher_key, tls->params.cipher_key, 702b2e60773SJohn Baldwin en->cipher_key_len); 703b2e60773SJohn Baldwin if (error) 704b2e60773SJohn Baldwin goto out; 705b2e60773SJohn Baldwin 706b2e60773SJohn Baldwin /* 7079c64fc40SJohn Baldwin * This holds the implicit portion of the nonce for AEAD 7089c64fc40SJohn Baldwin * ciphers and the initial implicit IV for TLS 1.0. The 7099c64fc40SJohn Baldwin * explicit portions of the IV are generated in ktls_frame(). 710b2e60773SJohn Baldwin */ 711b2e60773SJohn Baldwin if (en->iv_len != 0) { 712b2e60773SJohn Baldwin tls->params.iv_len = en->iv_len; 713b2e60773SJohn Baldwin error = copyin(en->iv, tls->params.iv, en->iv_len); 714b2e60773SJohn Baldwin if (error) 715b2e60773SJohn Baldwin goto out; 7167d29eb9aSJohn Baldwin 7177d29eb9aSJohn Baldwin /* 7189c64fc40SJohn Baldwin * For TLS 1.2 with GCM, generate an 8-byte nonce as a 7199c64fc40SJohn Baldwin * counter to generate unique explicit IVs. 7207d29eb9aSJohn Baldwin * 7217d29eb9aSJohn Baldwin * Store this counter in the last 8 bytes of the IV 7227d29eb9aSJohn Baldwin * array so that it is 8-byte aligned. 7237d29eb9aSJohn Baldwin */ 7247d29eb9aSJohn Baldwin if (en->cipher_algorithm == CRYPTO_AES_NIST_GCM_16 && 7257d29eb9aSJohn Baldwin en->tls_vminor == TLS_MINOR_VER_TWO) 7267d29eb9aSJohn Baldwin arc4rand(tls->params.iv + 8, sizeof(uint64_t), 0); 727b2e60773SJohn Baldwin } 728b2e60773SJohn Baldwin 729b2e60773SJohn Baldwin *tlsp = tls; 730b2e60773SJohn Baldwin return (0); 731b2e60773SJohn Baldwin 732b2e60773SJohn Baldwin out: 733b2e60773SJohn Baldwin ktls_cleanup(tls); 734b2e60773SJohn Baldwin return (error); 735b2e60773SJohn Baldwin } 736b2e60773SJohn Baldwin 737b2e60773SJohn Baldwin static struct ktls_session * 738b2e60773SJohn Baldwin ktls_clone_session(struct ktls_session *tls) 739b2e60773SJohn Baldwin { 740b2e60773SJohn Baldwin struct ktls_session *tls_new; 741b2e60773SJohn Baldwin 742b2e60773SJohn Baldwin tls_new = uma_zalloc(ktls_session_zone, M_WAITOK | M_ZERO); 743b2e60773SJohn Baldwin 744b2e60773SJohn Baldwin counter_u64_add(ktls_offload_active, 1); 745b2e60773SJohn Baldwin 746b2e60773SJohn Baldwin refcount_init(&tls_new->refcount, 1); 74795c51fafSAndrew Gallatin TASK_INIT(&tls_new->reset_tag_task, 0, ktls_reset_send_tag, tls_new); 748b2e60773SJohn Baldwin 749b2e60773SJohn Baldwin /* Copy fields from existing session. */ 750b2e60773SJohn Baldwin tls_new->params = tls->params; 751b2e60773SJohn Baldwin tls_new->wq_index = tls->wq_index; 752b2e60773SJohn Baldwin 753b2e60773SJohn Baldwin /* Deep copy keys. */ 754b2e60773SJohn Baldwin if (tls_new->params.auth_key != NULL) { 755b2e60773SJohn Baldwin tls_new->params.auth_key = malloc(tls->params.auth_key_len, 756b2e60773SJohn Baldwin M_KTLS, M_WAITOK); 757b2e60773SJohn Baldwin memcpy(tls_new->params.auth_key, tls->params.auth_key, 758b2e60773SJohn Baldwin tls->params.auth_key_len); 759b2e60773SJohn Baldwin } 760b2e60773SJohn Baldwin 761b2e60773SJohn Baldwin tls_new->params.cipher_key = malloc(tls->params.cipher_key_len, M_KTLS, 762b2e60773SJohn Baldwin M_WAITOK); 763b2e60773SJohn Baldwin memcpy(tls_new->params.cipher_key, tls->params.cipher_key, 764b2e60773SJohn Baldwin tls->params.cipher_key_len); 765b2e60773SJohn Baldwin 766b2e60773SJohn Baldwin return (tls_new); 767b2e60773SJohn Baldwin } 768b2e60773SJohn Baldwin #endif 769b2e60773SJohn Baldwin 770b2e60773SJohn Baldwin static void 771b2e60773SJohn Baldwin ktls_cleanup(struct ktls_session *tls) 772b2e60773SJohn Baldwin { 773b2e60773SJohn Baldwin 774b2e60773SJohn Baldwin counter_u64_add(ktls_offload_active, -1); 7759e14430dSJohn Baldwin switch (tls->mode) { 7769e14430dSJohn Baldwin case TCP_TLS_MODE_SW: 777b2e60773SJohn Baldwin switch (tls->params.cipher_algorithm) { 778b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 779b2e60773SJohn Baldwin counter_u64_add(ktls_sw_cbc, -1); 780b2e60773SJohn Baldwin break; 781b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 782b2e60773SJohn Baldwin counter_u64_add(ktls_sw_gcm, -1); 783b2e60773SJohn Baldwin break; 7849c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 7859c64fc40SJohn Baldwin counter_u64_add(ktls_sw_chacha20, -1); 7869c64fc40SJohn Baldwin break; 787b2e60773SJohn Baldwin } 78821e3c1fbSJohn Baldwin ktls_ocf_free(tls); 7899e14430dSJohn Baldwin break; 7909e14430dSJohn Baldwin case TCP_TLS_MODE_IFNET: 791b2e60773SJohn Baldwin switch (tls->params.cipher_algorithm) { 792b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 793b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_cbc, -1); 794b2e60773SJohn Baldwin break; 795b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 796b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_gcm, -1); 797b2e60773SJohn Baldwin break; 7989c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 7999c64fc40SJohn Baldwin counter_u64_add(ktls_ifnet_chacha20, -1); 8009c64fc40SJohn Baldwin break; 801b2e60773SJohn Baldwin } 8029675d889SAndrew Gallatin if (tls->snd_tag != NULL) 803b2e60773SJohn Baldwin m_snd_tag_rele(tls->snd_tag); 8049e14430dSJohn Baldwin break; 8059e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 8069e14430dSJohn Baldwin case TCP_TLS_MODE_TOE: 8079e14430dSJohn Baldwin switch (tls->params.cipher_algorithm) { 8089e14430dSJohn Baldwin case CRYPTO_AES_CBC: 8099e14430dSJohn Baldwin counter_u64_add(ktls_toe_cbc, -1); 8109e14430dSJohn Baldwin break; 8119e14430dSJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 8129e14430dSJohn Baldwin counter_u64_add(ktls_toe_gcm, -1); 8139e14430dSJohn Baldwin break; 8149c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 8159c64fc40SJohn Baldwin counter_u64_add(ktls_toe_chacha20, -1); 8169c64fc40SJohn Baldwin break; 8179e14430dSJohn Baldwin } 8189e14430dSJohn Baldwin break; 8199e14430dSJohn Baldwin #endif 820b2e60773SJohn Baldwin } 821b2e60773SJohn Baldwin if (tls->params.auth_key != NULL) { 8224a711b8dSJohn Baldwin zfree(tls->params.auth_key, M_KTLS); 823b2e60773SJohn Baldwin tls->params.auth_key = NULL; 824b2e60773SJohn Baldwin tls->params.auth_key_len = 0; 825b2e60773SJohn Baldwin } 826b2e60773SJohn Baldwin if (tls->params.cipher_key != NULL) { 8274a711b8dSJohn Baldwin zfree(tls->params.cipher_key, M_KTLS); 828b2e60773SJohn Baldwin tls->params.cipher_key = NULL; 829b2e60773SJohn Baldwin tls->params.cipher_key_len = 0; 830b2e60773SJohn Baldwin } 831b2e60773SJohn Baldwin explicit_bzero(tls->params.iv, sizeof(tls->params.iv)); 832b2e60773SJohn Baldwin } 833b2e60773SJohn Baldwin 834b2e60773SJohn Baldwin #if defined(INET) || defined(INET6) 8359e14430dSJohn Baldwin 8369e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 8379e14430dSJohn Baldwin static int 838f1f93475SJohn Baldwin ktls_try_toe(struct socket *so, struct ktls_session *tls, int direction) 8399e14430dSJohn Baldwin { 8409e14430dSJohn Baldwin struct inpcb *inp; 8419e14430dSJohn Baldwin struct tcpcb *tp; 8429e14430dSJohn Baldwin int error; 8439e14430dSJohn Baldwin 8449e14430dSJohn Baldwin inp = so->so_pcb; 8459e14430dSJohn Baldwin INP_WLOCK(inp); 8469e14430dSJohn Baldwin if (inp->inp_flags2 & INP_FREED) { 8479e14430dSJohn Baldwin INP_WUNLOCK(inp); 8489e14430dSJohn Baldwin return (ECONNRESET); 8499e14430dSJohn Baldwin } 8509e14430dSJohn Baldwin if (inp->inp_flags & (INP_TIMEWAIT | INP_DROPPED)) { 8519e14430dSJohn Baldwin INP_WUNLOCK(inp); 8529e14430dSJohn Baldwin return (ECONNRESET); 8539e14430dSJohn Baldwin } 8549e14430dSJohn Baldwin if (inp->inp_socket == NULL) { 8559e14430dSJohn Baldwin INP_WUNLOCK(inp); 8569e14430dSJohn Baldwin return (ECONNRESET); 8579e14430dSJohn Baldwin } 8589e14430dSJohn Baldwin tp = intotcpcb(inp); 8596bcf3c46SJohn Baldwin if (!(tp->t_flags & TF_TOE)) { 8609e14430dSJohn Baldwin INP_WUNLOCK(inp); 8619e14430dSJohn Baldwin return (EOPNOTSUPP); 8629e14430dSJohn Baldwin } 8639e14430dSJohn Baldwin 864f1f93475SJohn Baldwin error = tcp_offload_alloc_tls_session(tp, tls, direction); 8659e14430dSJohn Baldwin INP_WUNLOCK(inp); 8669e14430dSJohn Baldwin if (error == 0) { 8679e14430dSJohn Baldwin tls->mode = TCP_TLS_MODE_TOE; 8689e14430dSJohn Baldwin switch (tls->params.cipher_algorithm) { 8699e14430dSJohn Baldwin case CRYPTO_AES_CBC: 8709e14430dSJohn Baldwin counter_u64_add(ktls_toe_cbc, 1); 8719e14430dSJohn Baldwin break; 8729e14430dSJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 8739e14430dSJohn Baldwin counter_u64_add(ktls_toe_gcm, 1); 8749e14430dSJohn Baldwin break; 8759c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 8769c64fc40SJohn Baldwin counter_u64_add(ktls_toe_chacha20, 1); 8779c64fc40SJohn Baldwin break; 8789e14430dSJohn Baldwin } 8799e14430dSJohn Baldwin } 8809e14430dSJohn Baldwin return (error); 8819e14430dSJohn Baldwin } 8829e14430dSJohn Baldwin #endif 8839e14430dSJohn Baldwin 884b2e60773SJohn Baldwin /* 885b2e60773SJohn Baldwin * Common code used when first enabling ifnet TLS on a connection or 886b2e60773SJohn Baldwin * when allocating a new ifnet TLS session due to a routing change. 887b2e60773SJohn Baldwin * This function allocates a new TLS send tag on whatever interface 888b2e60773SJohn Baldwin * the connection is currently routed over. 889b2e60773SJohn Baldwin */ 890b2e60773SJohn Baldwin static int 891b2e60773SJohn Baldwin ktls_alloc_snd_tag(struct inpcb *inp, struct ktls_session *tls, bool force, 892b2e60773SJohn Baldwin struct m_snd_tag **mstp) 893b2e60773SJohn Baldwin { 894b2e60773SJohn Baldwin union if_snd_tag_alloc_params params; 895b2e60773SJohn Baldwin struct ifnet *ifp; 896983066f0SAlexander V. Chernikov struct nhop_object *nh; 897b2e60773SJohn Baldwin struct tcpcb *tp; 898b2e60773SJohn Baldwin int error; 899b2e60773SJohn Baldwin 900b2e60773SJohn Baldwin INP_RLOCK(inp); 901b2e60773SJohn Baldwin if (inp->inp_flags2 & INP_FREED) { 902b2e60773SJohn Baldwin INP_RUNLOCK(inp); 903b2e60773SJohn Baldwin return (ECONNRESET); 904b2e60773SJohn Baldwin } 905b2e60773SJohn Baldwin if (inp->inp_flags & (INP_TIMEWAIT | INP_DROPPED)) { 906b2e60773SJohn Baldwin INP_RUNLOCK(inp); 907b2e60773SJohn Baldwin return (ECONNRESET); 908b2e60773SJohn Baldwin } 909b2e60773SJohn Baldwin if (inp->inp_socket == NULL) { 910b2e60773SJohn Baldwin INP_RUNLOCK(inp); 911b2e60773SJohn Baldwin return (ECONNRESET); 912b2e60773SJohn Baldwin } 913b2e60773SJohn Baldwin tp = intotcpcb(inp); 914b2e60773SJohn Baldwin 915b2e60773SJohn Baldwin /* 916b2e60773SJohn Baldwin * Check administrative controls on ifnet TLS to determine if 917b2e60773SJohn Baldwin * ifnet TLS should be denied. 918b2e60773SJohn Baldwin * 919b2e60773SJohn Baldwin * - Always permit 'force' requests. 920b2e60773SJohn Baldwin * - ktls_ifnet_permitted == 0: always deny. 921b2e60773SJohn Baldwin */ 922b2e60773SJohn Baldwin if (!force && ktls_ifnet_permitted == 0) { 923b2e60773SJohn Baldwin INP_RUNLOCK(inp); 924b2e60773SJohn Baldwin return (ENXIO); 925b2e60773SJohn Baldwin } 926b2e60773SJohn Baldwin 927b2e60773SJohn Baldwin /* 928b2e60773SJohn Baldwin * XXX: Use the cached route in the inpcb to find the 929b2e60773SJohn Baldwin * interface. This should perhaps instead use 930b2e60773SJohn Baldwin * rtalloc1_fib(dst, 0, 0, fibnum). Since KTLS is only 931b2e60773SJohn Baldwin * enabled after a connection has completed key negotiation in 932b2e60773SJohn Baldwin * userland, the cached route will be present in practice. 933b2e60773SJohn Baldwin */ 934983066f0SAlexander V. Chernikov nh = inp->inp_route.ro_nh; 935983066f0SAlexander V. Chernikov if (nh == NULL) { 936b2e60773SJohn Baldwin INP_RUNLOCK(inp); 937b2e60773SJohn Baldwin return (ENXIO); 938b2e60773SJohn Baldwin } 939983066f0SAlexander V. Chernikov ifp = nh->nh_ifp; 940b2e60773SJohn Baldwin if_ref(ifp); 941b2e60773SJohn Baldwin 942521eac97SJohn Baldwin /* 943521eac97SJohn Baldwin * Allocate a TLS + ratelimit tag if the connection has an 944521eac97SJohn Baldwin * existing pacing rate. 945521eac97SJohn Baldwin */ 946521eac97SJohn Baldwin if (tp->t_pacing_rate != -1 && 947521eac97SJohn Baldwin (ifp->if_capenable & IFCAP_TXTLS_RTLMT) != 0) { 948521eac97SJohn Baldwin params.hdr.type = IF_SND_TAG_TYPE_TLS_RATE_LIMIT; 949521eac97SJohn Baldwin params.tls_rate_limit.inp = inp; 950521eac97SJohn Baldwin params.tls_rate_limit.tls = tls; 951521eac97SJohn Baldwin params.tls_rate_limit.max_rate = tp->t_pacing_rate; 952521eac97SJohn Baldwin } else { 953b2e60773SJohn Baldwin params.hdr.type = IF_SND_TAG_TYPE_TLS; 954521eac97SJohn Baldwin params.tls.inp = inp; 955521eac97SJohn Baldwin params.tls.tls = tls; 956521eac97SJohn Baldwin } 957b2e60773SJohn Baldwin params.hdr.flowid = inp->inp_flowid; 958b2e60773SJohn Baldwin params.hdr.flowtype = inp->inp_flowtype; 95998085baeSAndrew Gallatin params.hdr.numa_domain = inp->inp_numa_domain; 960b2e60773SJohn Baldwin INP_RUNLOCK(inp); 961b2e60773SJohn Baldwin 9623f43ada9SGleb Smirnoff if ((ifp->if_capenable & IFCAP_MEXTPG) == 0) { 963b2e60773SJohn Baldwin error = EOPNOTSUPP; 964b2e60773SJohn Baldwin goto out; 965b2e60773SJohn Baldwin } 966b2e60773SJohn Baldwin if (inp->inp_vflag & INP_IPV6) { 967b2e60773SJohn Baldwin if ((ifp->if_capenable & IFCAP_TXTLS6) == 0) { 968b2e60773SJohn Baldwin error = EOPNOTSUPP; 969b2e60773SJohn Baldwin goto out; 970b2e60773SJohn Baldwin } 971b2e60773SJohn Baldwin } else { 972b2e60773SJohn Baldwin if ((ifp->if_capenable & IFCAP_TXTLS4) == 0) { 973b2e60773SJohn Baldwin error = EOPNOTSUPP; 974b2e60773SJohn Baldwin goto out; 975b2e60773SJohn Baldwin } 976b2e60773SJohn Baldwin } 97736e0a362SJohn Baldwin error = m_snd_tag_alloc(ifp, ¶ms, mstp); 978b2e60773SJohn Baldwin out: 979b2e60773SJohn Baldwin if_rele(ifp); 980b2e60773SJohn Baldwin return (error); 981b2e60773SJohn Baldwin } 982b2e60773SJohn Baldwin 983b2e60773SJohn Baldwin static int 984b2e60773SJohn Baldwin ktls_try_ifnet(struct socket *so, struct ktls_session *tls, bool force) 985b2e60773SJohn Baldwin { 986b2e60773SJohn Baldwin struct m_snd_tag *mst; 987b2e60773SJohn Baldwin int error; 988b2e60773SJohn Baldwin 989b2e60773SJohn Baldwin error = ktls_alloc_snd_tag(so->so_pcb, tls, force, &mst); 990b2e60773SJohn Baldwin if (error == 0) { 9919e14430dSJohn Baldwin tls->mode = TCP_TLS_MODE_IFNET; 992b2e60773SJohn Baldwin tls->snd_tag = mst; 993b2e60773SJohn Baldwin switch (tls->params.cipher_algorithm) { 994b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 995b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_cbc, 1); 996b2e60773SJohn Baldwin break; 997b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 998b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_gcm, 1); 999b2e60773SJohn Baldwin break; 10009c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 10019c64fc40SJohn Baldwin counter_u64_add(ktls_ifnet_chacha20, 1); 10029c64fc40SJohn Baldwin break; 1003b2e60773SJohn Baldwin } 1004b2e60773SJohn Baldwin } 1005b2e60773SJohn Baldwin return (error); 1006b2e60773SJohn Baldwin } 1007b2e60773SJohn Baldwin 1008b2e60773SJohn Baldwin static int 10093c0e5685SJohn Baldwin ktls_try_sw(struct socket *so, struct ktls_session *tls, int direction) 1010b2e60773SJohn Baldwin { 101121e3c1fbSJohn Baldwin int error; 1012b2e60773SJohn Baldwin 101321e3c1fbSJohn Baldwin error = ktls_ocf_try(so, tls, direction); 101421e3c1fbSJohn Baldwin if (error) 101521e3c1fbSJohn Baldwin return (error); 10169e14430dSJohn Baldwin tls->mode = TCP_TLS_MODE_SW; 1017b2e60773SJohn Baldwin switch (tls->params.cipher_algorithm) { 1018b2e60773SJohn Baldwin case CRYPTO_AES_CBC: 1019b2e60773SJohn Baldwin counter_u64_add(ktls_sw_cbc, 1); 1020b2e60773SJohn Baldwin break; 1021b2e60773SJohn Baldwin case CRYPTO_AES_NIST_GCM_16: 1022b2e60773SJohn Baldwin counter_u64_add(ktls_sw_gcm, 1); 1023b2e60773SJohn Baldwin break; 10249c64fc40SJohn Baldwin case CRYPTO_CHACHA20_POLY1305: 10259c64fc40SJohn Baldwin counter_u64_add(ktls_sw_chacha20, 1); 10269c64fc40SJohn Baldwin break; 1027b2e60773SJohn Baldwin } 1028b2e60773SJohn Baldwin return (0); 1029b2e60773SJohn Baldwin } 1030b2e60773SJohn Baldwin 10313c0e5685SJohn Baldwin /* 10323c0e5685SJohn Baldwin * KTLS RX stores data in the socket buffer as a list of TLS records, 10333c0e5685SJohn Baldwin * where each record is stored as a control message containg the TLS 10343c0e5685SJohn Baldwin * header followed by data mbufs containing the decrypted data. This 10353c0e5685SJohn Baldwin * is different from KTLS TX which always uses an mb_ext_pgs mbuf for 10363c0e5685SJohn Baldwin * both encrypted and decrypted data. TLS records decrypted by a NIC 10373c0e5685SJohn Baldwin * should be queued to the socket buffer as records, but encrypted 10383c0e5685SJohn Baldwin * data which needs to be decrypted by software arrives as a stream of 10393c0e5685SJohn Baldwin * regular mbufs which need to be converted. In addition, there may 10403c0e5685SJohn Baldwin * already be pending encrypted data in the socket buffer when KTLS RX 10413c0e5685SJohn Baldwin * is enabled. 10423c0e5685SJohn Baldwin * 10433c0e5685SJohn Baldwin * To manage not-yet-decrypted data for KTLS RX, the following scheme 10443c0e5685SJohn Baldwin * is used: 10453c0e5685SJohn Baldwin * 10463c0e5685SJohn Baldwin * - A single chain of NOTREADY mbufs is hung off of sb_mtls. 10473c0e5685SJohn Baldwin * 10483c0e5685SJohn Baldwin * - ktls_check_rx checks this chain of mbufs reading the TLS header 10493c0e5685SJohn Baldwin * from the first mbuf. Once all of the data for that TLS record is 10503c0e5685SJohn Baldwin * queued, the socket is queued to a worker thread. 10513c0e5685SJohn Baldwin * 10523c0e5685SJohn Baldwin * - The worker thread calls ktls_decrypt to decrypt TLS records in 10533c0e5685SJohn Baldwin * the TLS chain. Each TLS record is detached from the TLS chain, 10543c0e5685SJohn Baldwin * decrypted, and inserted into the regular socket buffer chain as 10553c0e5685SJohn Baldwin * record starting with a control message holding the TLS header and 10563c0e5685SJohn Baldwin * a chain of mbufs holding the encrypted data. 10573c0e5685SJohn Baldwin */ 10583c0e5685SJohn Baldwin 10593c0e5685SJohn Baldwin static void 10603c0e5685SJohn Baldwin sb_mark_notready(struct sockbuf *sb) 10613c0e5685SJohn Baldwin { 10623c0e5685SJohn Baldwin struct mbuf *m; 10633c0e5685SJohn Baldwin 10643c0e5685SJohn Baldwin m = sb->sb_mb; 10653c0e5685SJohn Baldwin sb->sb_mtls = m; 10663c0e5685SJohn Baldwin sb->sb_mb = NULL; 10673c0e5685SJohn Baldwin sb->sb_mbtail = NULL; 10683c0e5685SJohn Baldwin sb->sb_lastrecord = NULL; 10693c0e5685SJohn Baldwin for (; m != NULL; m = m->m_next) { 10703c0e5685SJohn Baldwin KASSERT(m->m_nextpkt == NULL, ("%s: m_nextpkt != NULL", 10713c0e5685SJohn Baldwin __func__)); 10723c0e5685SJohn Baldwin KASSERT((m->m_flags & M_NOTAVAIL) == 0, ("%s: mbuf not avail", 10733c0e5685SJohn Baldwin __func__)); 10743c0e5685SJohn Baldwin KASSERT(sb->sb_acc >= m->m_len, ("%s: sb_acc < m->m_len", 10753c0e5685SJohn Baldwin __func__)); 10763c0e5685SJohn Baldwin m->m_flags |= M_NOTREADY; 10773c0e5685SJohn Baldwin sb->sb_acc -= m->m_len; 10783c0e5685SJohn Baldwin sb->sb_tlscc += m->m_len; 10793c0e5685SJohn Baldwin sb->sb_mtlstail = m; 10803c0e5685SJohn Baldwin } 10813c0e5685SJohn Baldwin KASSERT(sb->sb_acc == 0 && sb->sb_tlscc == sb->sb_ccc, 10823c0e5685SJohn Baldwin ("%s: acc %u tlscc %u ccc %u", __func__, sb->sb_acc, sb->sb_tlscc, 10833c0e5685SJohn Baldwin sb->sb_ccc)); 10843c0e5685SJohn Baldwin } 10853c0e5685SJohn Baldwin 1086b2e60773SJohn Baldwin int 1087f1f93475SJohn Baldwin ktls_enable_rx(struct socket *so, struct tls_enable *en) 1088f1f93475SJohn Baldwin { 1089f1f93475SJohn Baldwin struct ktls_session *tls; 1090f1f93475SJohn Baldwin int error; 1091f1f93475SJohn Baldwin 1092f1f93475SJohn Baldwin if (!ktls_offload_enable) 1093f1f93475SJohn Baldwin return (ENOTSUP); 10946685e259SMichael Tuexen if (SOLISTENING(so)) 10956685e259SMichael Tuexen return (EINVAL); 1096f1f93475SJohn Baldwin 1097f1f93475SJohn Baldwin counter_u64_add(ktls_offload_enable_calls, 1); 1098f1f93475SJohn Baldwin 1099f1f93475SJohn Baldwin /* 1100f1f93475SJohn Baldwin * This should always be true since only the TCP socket option 1101f1f93475SJohn Baldwin * invokes this function. 1102f1f93475SJohn Baldwin */ 1103f1f93475SJohn Baldwin if (so->so_proto->pr_protocol != IPPROTO_TCP) 1104f1f93475SJohn Baldwin return (EINVAL); 1105f1f93475SJohn Baldwin 1106f1f93475SJohn Baldwin /* 1107f1f93475SJohn Baldwin * XXX: Don't overwrite existing sessions. We should permit 1108f1f93475SJohn Baldwin * this to support rekeying in the future. 1109f1f93475SJohn Baldwin */ 1110f1f93475SJohn Baldwin if (so->so_rcv.sb_tls_info != NULL) 1111f1f93475SJohn Baldwin return (EALREADY); 1112f1f93475SJohn Baldwin 1113f1f93475SJohn Baldwin if (en->cipher_algorithm == CRYPTO_AES_CBC && !ktls_cbc_enable) 1114f1f93475SJohn Baldwin return (ENOTSUP); 1115f1f93475SJohn Baldwin 11163c0e5685SJohn Baldwin /* TLS 1.3 is not yet supported. */ 11173c0e5685SJohn Baldwin if (en->tls_vmajor == TLS_MAJOR_VER_ONE && 11183c0e5685SJohn Baldwin en->tls_vminor == TLS_MINOR_VER_THREE) 11193c0e5685SJohn Baldwin return (ENOTSUP); 11203c0e5685SJohn Baldwin 1121f1f93475SJohn Baldwin error = ktls_create_session(so, en, &tls); 1122f1f93475SJohn Baldwin if (error) 1123f1f93475SJohn Baldwin return (error); 1124f1f93475SJohn Baldwin 1125f1f93475SJohn Baldwin #ifdef TCP_OFFLOAD 1126f1f93475SJohn Baldwin error = ktls_try_toe(so, tls, KTLS_RX); 11273c0e5685SJohn Baldwin if (error) 1128f1f93475SJohn Baldwin #endif 11293c0e5685SJohn Baldwin error = ktls_try_sw(so, tls, KTLS_RX); 1130f1f93475SJohn Baldwin 1131f1f93475SJohn Baldwin if (error) { 1132f1f93475SJohn Baldwin ktls_cleanup(tls); 1133f1f93475SJohn Baldwin return (error); 1134f1f93475SJohn Baldwin } 1135f1f93475SJohn Baldwin 1136f1f93475SJohn Baldwin /* Mark the socket as using TLS offload. */ 1137f1f93475SJohn Baldwin SOCKBUF_LOCK(&so->so_rcv); 11383c0e5685SJohn Baldwin so->so_rcv.sb_tls_seqno = be64dec(en->rec_seq); 1139f1f93475SJohn Baldwin so->so_rcv.sb_tls_info = tls; 11403c0e5685SJohn Baldwin so->so_rcv.sb_flags |= SB_TLS_RX; 11413c0e5685SJohn Baldwin 11423c0e5685SJohn Baldwin /* Mark existing data as not ready until it can be decrypted. */ 1143faf0224fSJohn Baldwin if (tls->mode != TCP_TLS_MODE_TOE) { 11443c0e5685SJohn Baldwin sb_mark_notready(&so->so_rcv); 11453c0e5685SJohn Baldwin ktls_check_rx(&so->so_rcv); 1146faf0224fSJohn Baldwin } 1147f1f93475SJohn Baldwin SOCKBUF_UNLOCK(&so->so_rcv); 1148f1f93475SJohn Baldwin 1149f1f93475SJohn Baldwin counter_u64_add(ktls_offload_total, 1); 1150f1f93475SJohn Baldwin 1151f1f93475SJohn Baldwin return (0); 1152f1f93475SJohn Baldwin } 1153f1f93475SJohn Baldwin 1154f1f93475SJohn Baldwin int 1155b2e60773SJohn Baldwin ktls_enable_tx(struct socket *so, struct tls_enable *en) 1156b2e60773SJohn Baldwin { 1157b2e60773SJohn Baldwin struct ktls_session *tls; 1158521eac97SJohn Baldwin struct inpcb *inp; 1159b2e60773SJohn Baldwin int error; 1160b2e60773SJohn Baldwin 1161b2e60773SJohn Baldwin if (!ktls_offload_enable) 1162b2e60773SJohn Baldwin return (ENOTSUP); 11636685e259SMichael Tuexen if (SOLISTENING(so)) 11646685e259SMichael Tuexen return (EINVAL); 1165b2e60773SJohn Baldwin 1166b2e60773SJohn Baldwin counter_u64_add(ktls_offload_enable_calls, 1); 1167b2e60773SJohn Baldwin 1168b2e60773SJohn Baldwin /* 1169b2e60773SJohn Baldwin * This should always be true since only the TCP socket option 1170b2e60773SJohn Baldwin * invokes this function. 1171b2e60773SJohn Baldwin */ 1172b2e60773SJohn Baldwin if (so->so_proto->pr_protocol != IPPROTO_TCP) 1173b2e60773SJohn Baldwin return (EINVAL); 1174b2e60773SJohn Baldwin 1175b2e60773SJohn Baldwin /* 1176b2e60773SJohn Baldwin * XXX: Don't overwrite existing sessions. We should permit 1177b2e60773SJohn Baldwin * this to support rekeying in the future. 1178b2e60773SJohn Baldwin */ 1179b2e60773SJohn Baldwin if (so->so_snd.sb_tls_info != NULL) 1180b2e60773SJohn Baldwin return (EALREADY); 1181b2e60773SJohn Baldwin 1182b2e60773SJohn Baldwin if (en->cipher_algorithm == CRYPTO_AES_CBC && !ktls_cbc_enable) 1183b2e60773SJohn Baldwin return (ENOTSUP); 1184b2e60773SJohn Baldwin 1185b2e60773SJohn Baldwin /* TLS requires ext pgs */ 1186b2e60773SJohn Baldwin if (mb_use_ext_pgs == 0) 1187b2e60773SJohn Baldwin return (ENXIO); 1188b2e60773SJohn Baldwin 1189b2e60773SJohn Baldwin error = ktls_create_session(so, en, &tls); 1190b2e60773SJohn Baldwin if (error) 1191b2e60773SJohn Baldwin return (error); 1192b2e60773SJohn Baldwin 11939e14430dSJohn Baldwin /* Prefer TOE -> ifnet TLS -> software TLS. */ 11949e14430dSJohn Baldwin #ifdef TCP_OFFLOAD 1195f1f93475SJohn Baldwin error = ktls_try_toe(so, tls, KTLS_TX); 11969e14430dSJohn Baldwin if (error) 11979e14430dSJohn Baldwin #endif 1198b2e60773SJohn Baldwin error = ktls_try_ifnet(so, tls, false); 1199b2e60773SJohn Baldwin if (error) 12003c0e5685SJohn Baldwin error = ktls_try_sw(so, tls, KTLS_TX); 1201b2e60773SJohn Baldwin 1202b2e60773SJohn Baldwin if (error) { 1203b2e60773SJohn Baldwin ktls_cleanup(tls); 1204b2e60773SJohn Baldwin return (error); 1205b2e60773SJohn Baldwin } 1206b2e60773SJohn Baldwin 1207f94acf52SMark Johnston error = SOCK_IO_SEND_LOCK(so, SBL_WAIT); 1208b2e60773SJohn Baldwin if (error) { 1209b2e60773SJohn Baldwin ktls_cleanup(tls); 1210b2e60773SJohn Baldwin return (error); 1211b2e60773SJohn Baldwin } 1212b2e60773SJohn Baldwin 1213521eac97SJohn Baldwin /* 1214521eac97SJohn Baldwin * Write lock the INP when setting sb_tls_info so that 1215521eac97SJohn Baldwin * routines in tcp_ratelimit.c can read sb_tls_info while 1216521eac97SJohn Baldwin * holding the INP lock. 1217521eac97SJohn Baldwin */ 1218521eac97SJohn Baldwin inp = so->so_pcb; 1219521eac97SJohn Baldwin INP_WLOCK(inp); 1220b2e60773SJohn Baldwin SOCKBUF_LOCK(&so->so_snd); 1221ec1db6e1SJohn Baldwin so->so_snd.sb_tls_seqno = be64dec(en->rec_seq); 1222b2e60773SJohn Baldwin so->so_snd.sb_tls_info = tls; 12239e14430dSJohn Baldwin if (tls->mode != TCP_TLS_MODE_SW) 1224b2e60773SJohn Baldwin so->so_snd.sb_flags |= SB_TLS_IFNET; 1225b2e60773SJohn Baldwin SOCKBUF_UNLOCK(&so->so_snd); 1226521eac97SJohn Baldwin INP_WUNLOCK(inp); 1227f94acf52SMark Johnston SOCK_IO_SEND_UNLOCK(so); 1228b2e60773SJohn Baldwin 1229b2e60773SJohn Baldwin counter_u64_add(ktls_offload_total, 1); 1230b2e60773SJohn Baldwin 1231b2e60773SJohn Baldwin return (0); 1232b2e60773SJohn Baldwin } 1233b2e60773SJohn Baldwin 1234b2e60773SJohn Baldwin int 1235bf256782SMark Johnston ktls_get_rx_mode(struct socket *so, int *modep) 1236f1f93475SJohn Baldwin { 1237f1f93475SJohn Baldwin struct ktls_session *tls; 1238f1f93475SJohn Baldwin struct inpcb *inp; 1239f1f93475SJohn Baldwin 12406685e259SMichael Tuexen if (SOLISTENING(so)) 12416685e259SMichael Tuexen return (EINVAL); 1242f1f93475SJohn Baldwin inp = so->so_pcb; 1243f1f93475SJohn Baldwin INP_WLOCK_ASSERT(inp); 1244bf256782SMark Johnston SOCK_RECVBUF_LOCK(so); 1245f1f93475SJohn Baldwin tls = so->so_rcv.sb_tls_info; 1246f1f93475SJohn Baldwin if (tls == NULL) 1247bf256782SMark Johnston *modep = TCP_TLS_MODE_NONE; 1248f1f93475SJohn Baldwin else 1249bf256782SMark Johnston *modep = tls->mode; 1250bf256782SMark Johnston SOCK_RECVBUF_UNLOCK(so); 1251bf256782SMark Johnston return (0); 1252f1f93475SJohn Baldwin } 1253f1f93475SJohn Baldwin 1254f1f93475SJohn Baldwin int 1255bf256782SMark Johnston ktls_get_tx_mode(struct socket *so, int *modep) 1256b2e60773SJohn Baldwin { 1257b2e60773SJohn Baldwin struct ktls_session *tls; 1258b2e60773SJohn Baldwin struct inpcb *inp; 1259b2e60773SJohn Baldwin 12606685e259SMichael Tuexen if (SOLISTENING(so)) 12616685e259SMichael Tuexen return (EINVAL); 1262b2e60773SJohn Baldwin inp = so->so_pcb; 1263b2e60773SJohn Baldwin INP_WLOCK_ASSERT(inp); 1264bf256782SMark Johnston SOCK_SENDBUF_LOCK(so); 1265b2e60773SJohn Baldwin tls = so->so_snd.sb_tls_info; 1266b2e60773SJohn Baldwin if (tls == NULL) 1267bf256782SMark Johnston *modep = TCP_TLS_MODE_NONE; 1268b2e60773SJohn Baldwin else 1269bf256782SMark Johnston *modep = tls->mode; 1270bf256782SMark Johnston SOCK_SENDBUF_UNLOCK(so); 1271bf256782SMark Johnston return (0); 1272b2e60773SJohn Baldwin } 1273b2e60773SJohn Baldwin 1274b2e60773SJohn Baldwin /* 1275b2e60773SJohn Baldwin * Switch between SW and ifnet TLS sessions as requested. 1276b2e60773SJohn Baldwin */ 1277b2e60773SJohn Baldwin int 1278b2e60773SJohn Baldwin ktls_set_tx_mode(struct socket *so, int mode) 1279b2e60773SJohn Baldwin { 1280b2e60773SJohn Baldwin struct ktls_session *tls, *tls_new; 1281b2e60773SJohn Baldwin struct inpcb *inp; 1282b2e60773SJohn Baldwin int error; 1283b2e60773SJohn Baldwin 12846685e259SMichael Tuexen if (SOLISTENING(so)) 12856685e259SMichael Tuexen return (EINVAL); 12869e14430dSJohn Baldwin switch (mode) { 12879e14430dSJohn Baldwin case TCP_TLS_MODE_SW: 12889e14430dSJohn Baldwin case TCP_TLS_MODE_IFNET: 12899e14430dSJohn Baldwin break; 12909e14430dSJohn Baldwin default: 12919e14430dSJohn Baldwin return (EINVAL); 12929e14430dSJohn Baldwin } 1293b2e60773SJohn Baldwin 1294b2e60773SJohn Baldwin inp = so->so_pcb; 1295b2e60773SJohn Baldwin INP_WLOCK_ASSERT(inp); 1296b2e60773SJohn Baldwin SOCKBUF_LOCK(&so->so_snd); 1297b2e60773SJohn Baldwin tls = so->so_snd.sb_tls_info; 1298b2e60773SJohn Baldwin if (tls == NULL) { 1299b2e60773SJohn Baldwin SOCKBUF_UNLOCK(&so->so_snd); 1300b2e60773SJohn Baldwin return (0); 1301b2e60773SJohn Baldwin } 1302b2e60773SJohn Baldwin 13039e14430dSJohn Baldwin if (tls->mode == mode) { 1304b2e60773SJohn Baldwin SOCKBUF_UNLOCK(&so->so_snd); 1305b2e60773SJohn Baldwin return (0); 1306b2e60773SJohn Baldwin } 1307b2e60773SJohn Baldwin 1308b2e60773SJohn Baldwin tls = ktls_hold(tls); 1309b2e60773SJohn Baldwin SOCKBUF_UNLOCK(&so->so_snd); 1310b2e60773SJohn Baldwin INP_WUNLOCK(inp); 1311b2e60773SJohn Baldwin 1312b2e60773SJohn Baldwin tls_new = ktls_clone_session(tls); 1313b2e60773SJohn Baldwin 1314b2e60773SJohn Baldwin if (mode == TCP_TLS_MODE_IFNET) 1315b2e60773SJohn Baldwin error = ktls_try_ifnet(so, tls_new, true); 1316b2e60773SJohn Baldwin else 13173c0e5685SJohn Baldwin error = ktls_try_sw(so, tls_new, KTLS_TX); 1318b2e60773SJohn Baldwin if (error) { 1319b2e60773SJohn Baldwin counter_u64_add(ktls_switch_failed, 1); 1320b2e60773SJohn Baldwin ktls_free(tls_new); 1321b2e60773SJohn Baldwin ktls_free(tls); 1322b2e60773SJohn Baldwin INP_WLOCK(inp); 1323b2e60773SJohn Baldwin return (error); 1324b2e60773SJohn Baldwin } 1325b2e60773SJohn Baldwin 1326f94acf52SMark Johnston error = SOCK_IO_SEND_LOCK(so, SBL_WAIT); 1327b2e60773SJohn Baldwin if (error) { 1328b2e60773SJohn Baldwin counter_u64_add(ktls_switch_failed, 1); 1329b2e60773SJohn Baldwin ktls_free(tls_new); 1330b2e60773SJohn Baldwin ktls_free(tls); 1331b2e60773SJohn Baldwin INP_WLOCK(inp); 1332b2e60773SJohn Baldwin return (error); 1333b2e60773SJohn Baldwin } 1334b2e60773SJohn Baldwin 1335b2e60773SJohn Baldwin /* 1336b2e60773SJohn Baldwin * If we raced with another session change, keep the existing 1337b2e60773SJohn Baldwin * session. 1338b2e60773SJohn Baldwin */ 1339b2e60773SJohn Baldwin if (tls != so->so_snd.sb_tls_info) { 1340b2e60773SJohn Baldwin counter_u64_add(ktls_switch_failed, 1); 1341f94acf52SMark Johnston SOCK_IO_SEND_UNLOCK(so); 1342b2e60773SJohn Baldwin ktls_free(tls_new); 1343b2e60773SJohn Baldwin ktls_free(tls); 1344b2e60773SJohn Baldwin INP_WLOCK(inp); 1345b2e60773SJohn Baldwin return (EBUSY); 1346b2e60773SJohn Baldwin } 1347b2e60773SJohn Baldwin 1348b2e60773SJohn Baldwin SOCKBUF_LOCK(&so->so_snd); 1349b2e60773SJohn Baldwin so->so_snd.sb_tls_info = tls_new; 13509e14430dSJohn Baldwin if (tls_new->mode != TCP_TLS_MODE_SW) 1351b2e60773SJohn Baldwin so->so_snd.sb_flags |= SB_TLS_IFNET; 1352b2e60773SJohn Baldwin SOCKBUF_UNLOCK(&so->so_snd); 1353f94acf52SMark Johnston SOCK_IO_SEND_UNLOCK(so); 1354b2e60773SJohn Baldwin 1355b2e60773SJohn Baldwin /* 1356b2e60773SJohn Baldwin * Drop two references on 'tls'. The first is for the 1357b2e60773SJohn Baldwin * ktls_hold() above. The second drops the reference from the 1358b2e60773SJohn Baldwin * socket buffer. 1359b2e60773SJohn Baldwin */ 1360b2e60773SJohn Baldwin KASSERT(tls->refcount >= 2, ("too few references on old session")); 1361b2e60773SJohn Baldwin ktls_free(tls); 1362b2e60773SJohn Baldwin ktls_free(tls); 1363b2e60773SJohn Baldwin 1364b2e60773SJohn Baldwin if (mode == TCP_TLS_MODE_IFNET) 1365b2e60773SJohn Baldwin counter_u64_add(ktls_switch_to_ifnet, 1); 1366b2e60773SJohn Baldwin else 1367b2e60773SJohn Baldwin counter_u64_add(ktls_switch_to_sw, 1); 1368b2e60773SJohn Baldwin 1369b2e60773SJohn Baldwin INP_WLOCK(inp); 1370b2e60773SJohn Baldwin return (0); 1371b2e60773SJohn Baldwin } 1372b2e60773SJohn Baldwin 1373b2e60773SJohn Baldwin /* 1374b2e60773SJohn Baldwin * Try to allocate a new TLS send tag. This task is scheduled when 1375b2e60773SJohn Baldwin * ip_output detects a route change while trying to transmit a packet 1376b2e60773SJohn Baldwin * holding a TLS record. If a new tag is allocated, replace the tag 1377b2e60773SJohn Baldwin * in the TLS session. Subsequent packets on the connection will use 1378b2e60773SJohn Baldwin * the new tag. If a new tag cannot be allocated, drop the 1379b2e60773SJohn Baldwin * connection. 1380b2e60773SJohn Baldwin */ 1381b2e60773SJohn Baldwin static void 1382b2e60773SJohn Baldwin ktls_reset_send_tag(void *context, int pending) 1383b2e60773SJohn Baldwin { 1384b2e60773SJohn Baldwin struct epoch_tracker et; 1385b2e60773SJohn Baldwin struct ktls_session *tls; 1386b2e60773SJohn Baldwin struct m_snd_tag *old, *new; 1387b2e60773SJohn Baldwin struct inpcb *inp; 1388b2e60773SJohn Baldwin struct tcpcb *tp; 1389b2e60773SJohn Baldwin int error; 1390b2e60773SJohn Baldwin 1391b2e60773SJohn Baldwin MPASS(pending == 1); 1392b2e60773SJohn Baldwin 1393b2e60773SJohn Baldwin tls = context; 1394b2e60773SJohn Baldwin inp = tls->inp; 1395b2e60773SJohn Baldwin 1396b2e60773SJohn Baldwin /* 1397b2e60773SJohn Baldwin * Free the old tag first before allocating a new one. 1398b2e60773SJohn Baldwin * ip[6]_output_send() will treat a NULL send tag the same as 1399b2e60773SJohn Baldwin * an ifp mismatch and drop packets until a new tag is 1400b2e60773SJohn Baldwin * allocated. 1401b2e60773SJohn Baldwin * 1402b2e60773SJohn Baldwin * Write-lock the INP when changing tls->snd_tag since 1403b2e60773SJohn Baldwin * ip[6]_output_send() holds a read-lock when reading the 1404b2e60773SJohn Baldwin * pointer. 1405b2e60773SJohn Baldwin */ 1406b2e60773SJohn Baldwin INP_WLOCK(inp); 1407b2e60773SJohn Baldwin old = tls->snd_tag; 1408b2e60773SJohn Baldwin tls->snd_tag = NULL; 1409b2e60773SJohn Baldwin INP_WUNLOCK(inp); 1410b2e60773SJohn Baldwin if (old != NULL) 1411b2e60773SJohn Baldwin m_snd_tag_rele(old); 1412b2e60773SJohn Baldwin 1413b2e60773SJohn Baldwin error = ktls_alloc_snd_tag(inp, tls, true, &new); 1414b2e60773SJohn Baldwin 1415b2e60773SJohn Baldwin if (error == 0) { 1416b2e60773SJohn Baldwin INP_WLOCK(inp); 1417b2e60773SJohn Baldwin tls->snd_tag = new; 1418b2e60773SJohn Baldwin mtx_pool_lock(mtxpool_sleep, tls); 1419b2e60773SJohn Baldwin tls->reset_pending = false; 1420b2e60773SJohn Baldwin mtx_pool_unlock(mtxpool_sleep, tls); 1421b2e60773SJohn Baldwin if (!in_pcbrele_wlocked(inp)) 1422b2e60773SJohn Baldwin INP_WUNLOCK(inp); 1423b2e60773SJohn Baldwin 1424b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_reset, 1); 1425b2e60773SJohn Baldwin 1426b2e60773SJohn Baldwin /* 1427b2e60773SJohn Baldwin * XXX: Should we kick tcp_output explicitly now that 1428b2e60773SJohn Baldwin * the send tag is fixed or just rely on timers? 1429b2e60773SJohn Baldwin */ 1430b2e60773SJohn Baldwin } else { 14311a496125SGleb Smirnoff NET_EPOCH_ENTER(et); 1432b2e60773SJohn Baldwin INP_WLOCK(inp); 1433b2e60773SJohn Baldwin if (!in_pcbrele_wlocked(inp)) { 1434b2e60773SJohn Baldwin if (!(inp->inp_flags & INP_TIMEWAIT) && 1435b2e60773SJohn Baldwin !(inp->inp_flags & INP_DROPPED)) { 1436b2e60773SJohn Baldwin tp = intotcpcb(inp); 14371f69a509SHans Petter Selasky CURVNET_SET(tp->t_vnet); 1438b2e60773SJohn Baldwin tp = tcp_drop(tp, ECONNABORTED); 14391f69a509SHans Petter Selasky CURVNET_RESTORE(); 1440b2e60773SJohn Baldwin if (tp != NULL) 1441b2e60773SJohn Baldwin INP_WUNLOCK(inp); 1442b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_reset_dropped, 1); 1443b2e60773SJohn Baldwin } else 1444b2e60773SJohn Baldwin INP_WUNLOCK(inp); 1445b2e60773SJohn Baldwin } 14461a496125SGleb Smirnoff NET_EPOCH_EXIT(et); 1447b2e60773SJohn Baldwin 1448b2e60773SJohn Baldwin counter_u64_add(ktls_ifnet_reset_failed, 1); 1449b2e60773SJohn Baldwin 1450b2e60773SJohn Baldwin /* 1451b2e60773SJohn Baldwin * Leave reset_pending true to avoid future tasks while 1452b2e60773SJohn Baldwin * the socket goes away. 1453b2e60773SJohn Baldwin */ 1454b2e60773SJohn Baldwin } 1455b2e60773SJohn Baldwin 1456b2e60773SJohn Baldwin ktls_free(tls); 1457b2e60773SJohn Baldwin } 1458b2e60773SJohn Baldwin 1459b2e60773SJohn Baldwin int 1460b2e60773SJohn Baldwin ktls_output_eagain(struct inpcb *inp, struct ktls_session *tls) 1461b2e60773SJohn Baldwin { 1462b2e60773SJohn Baldwin 1463b2e60773SJohn Baldwin if (inp == NULL) 1464b2e60773SJohn Baldwin return (ENOBUFS); 1465b2e60773SJohn Baldwin 1466b2e60773SJohn Baldwin INP_LOCK_ASSERT(inp); 1467b2e60773SJohn Baldwin 1468b2e60773SJohn Baldwin /* 1469b2e60773SJohn Baldwin * See if we should schedule a task to update the send tag for 1470b2e60773SJohn Baldwin * this session. 1471b2e60773SJohn Baldwin */ 1472b2e60773SJohn Baldwin mtx_pool_lock(mtxpool_sleep, tls); 1473b2e60773SJohn Baldwin if (!tls->reset_pending) { 1474b2e60773SJohn Baldwin (void) ktls_hold(tls); 1475b2e60773SJohn Baldwin in_pcbref(inp); 1476b2e60773SJohn Baldwin tls->inp = inp; 1477b2e60773SJohn Baldwin tls->reset_pending = true; 1478b2e60773SJohn Baldwin taskqueue_enqueue(taskqueue_thread, &tls->reset_tag_task); 1479b2e60773SJohn Baldwin } 1480b2e60773SJohn Baldwin mtx_pool_unlock(mtxpool_sleep, tls); 1481b2e60773SJohn Baldwin return (ENOBUFS); 1482b2e60773SJohn Baldwin } 1483521eac97SJohn Baldwin 1484521eac97SJohn Baldwin #ifdef RATELIMIT 1485521eac97SJohn Baldwin int 1486521eac97SJohn Baldwin ktls_modify_txrtlmt(struct ktls_session *tls, uint64_t max_pacing_rate) 1487521eac97SJohn Baldwin { 1488521eac97SJohn Baldwin union if_snd_tag_modify_params params = { 1489521eac97SJohn Baldwin .rate_limit.max_rate = max_pacing_rate, 1490521eac97SJohn Baldwin .rate_limit.flags = M_NOWAIT, 1491521eac97SJohn Baldwin }; 1492521eac97SJohn Baldwin struct m_snd_tag *mst; 1493521eac97SJohn Baldwin 1494521eac97SJohn Baldwin /* Can't get to the inp, but it should be locked. */ 1495521eac97SJohn Baldwin /* INP_LOCK_ASSERT(inp); */ 1496521eac97SJohn Baldwin 1497521eac97SJohn Baldwin MPASS(tls->mode == TCP_TLS_MODE_IFNET); 1498521eac97SJohn Baldwin 1499521eac97SJohn Baldwin if (tls->snd_tag == NULL) { 1500521eac97SJohn Baldwin /* 1501521eac97SJohn Baldwin * Resetting send tag, ignore this change. The 1502521eac97SJohn Baldwin * pending reset may or may not see this updated rate 1503521eac97SJohn Baldwin * in the tcpcb. If it doesn't, we will just lose 1504521eac97SJohn Baldwin * this rate change. 1505521eac97SJohn Baldwin */ 1506521eac97SJohn Baldwin return (0); 1507521eac97SJohn Baldwin } 1508521eac97SJohn Baldwin 1509521eac97SJohn Baldwin MPASS(tls->snd_tag != NULL); 1510c782ea8bSJohn Baldwin MPASS(tls->snd_tag->sw->type == IF_SND_TAG_TYPE_TLS_RATE_LIMIT); 1511521eac97SJohn Baldwin 1512521eac97SJohn Baldwin mst = tls->snd_tag; 1513c782ea8bSJohn Baldwin return (mst->sw->snd_tag_modify(mst, ¶ms)); 1514521eac97SJohn Baldwin } 1515521eac97SJohn Baldwin #endif 1516b2e60773SJohn Baldwin #endif 1517b2e60773SJohn Baldwin 1518b2e60773SJohn Baldwin void 1519b2e60773SJohn Baldwin ktls_destroy(struct ktls_session *tls) 1520b2e60773SJohn Baldwin { 1521b2e60773SJohn Baldwin 15229f03d2c0SJohn Baldwin if (tls->sequential_records) { 15239f03d2c0SJohn Baldwin struct mbuf *m, *n; 15249f03d2c0SJohn Baldwin int page_count; 15259f03d2c0SJohn Baldwin 15269f03d2c0SJohn Baldwin STAILQ_FOREACH_SAFE(m, &tls->pending_records, m_epg_stailq, n) { 15279f03d2c0SJohn Baldwin page_count = m->m_epg_enc_cnt; 15289f03d2c0SJohn Baldwin while (page_count > 0) { 15299f03d2c0SJohn Baldwin KASSERT(page_count >= m->m_epg_nrdy, 15309f03d2c0SJohn Baldwin ("%s: too few pages", __func__)); 15319f03d2c0SJohn Baldwin page_count -= m->m_epg_nrdy; 15329f03d2c0SJohn Baldwin m = m_free(m); 15339f03d2c0SJohn Baldwin } 15349f03d2c0SJohn Baldwin } 15359f03d2c0SJohn Baldwin } 1536b2e60773SJohn Baldwin ktls_cleanup(tls); 1537b2e60773SJohn Baldwin uma_zfree(ktls_session_zone, tls); 1538b2e60773SJohn Baldwin } 1539b2e60773SJohn Baldwin 1540b2e60773SJohn Baldwin void 1541b2e60773SJohn Baldwin ktls_seq(struct sockbuf *sb, struct mbuf *m) 1542b2e60773SJohn Baldwin { 1543b2e60773SJohn Baldwin 1544b2e60773SJohn Baldwin for (; m != NULL; m = m->m_next) { 15456edfd179SGleb Smirnoff KASSERT((m->m_flags & M_EXTPG) != 0, 1546b2e60773SJohn Baldwin ("ktls_seq: mapped mbuf %p", m)); 1547b2e60773SJohn Baldwin 15487b6c99d0SGleb Smirnoff m->m_epg_seqno = sb->sb_tls_seqno; 1549b2e60773SJohn Baldwin sb->sb_tls_seqno++; 1550b2e60773SJohn Baldwin } 1551b2e60773SJohn Baldwin } 1552b2e60773SJohn Baldwin 1553b2e60773SJohn Baldwin /* 1554b2e60773SJohn Baldwin * Add TLS framing (headers and trailers) to a chain of mbufs. Each 1555b2e60773SJohn Baldwin * mbuf in the chain must be an unmapped mbuf. The payload of the 1556b2e60773SJohn Baldwin * mbuf must be populated with the payload of each TLS record. 1557b2e60773SJohn Baldwin * 1558b2e60773SJohn Baldwin * The record_type argument specifies the TLS record type used when 1559b2e60773SJohn Baldwin * populating the TLS header. 1560b2e60773SJohn Baldwin * 1561b2e60773SJohn Baldwin * The enq_count argument on return is set to the number of pages of 1562b2e60773SJohn Baldwin * payload data for this entire chain that need to be encrypted via SW 1563b2e60773SJohn Baldwin * encryption. The returned value should be passed to ktls_enqueue 1564c2a8fd6fSJohn Baldwin * when scheduling encryption of this chain of mbufs. To handle the 1565c2a8fd6fSJohn Baldwin * special case of empty fragments for TLS 1.0 sessions, an empty 1566c2a8fd6fSJohn Baldwin * fragment counts as one page. 1567b2e60773SJohn Baldwin */ 1568f85e1a80SGleb Smirnoff void 1569b2e60773SJohn Baldwin ktls_frame(struct mbuf *top, struct ktls_session *tls, int *enq_cnt, 1570b2e60773SJohn Baldwin uint8_t record_type) 1571b2e60773SJohn Baldwin { 1572b2e60773SJohn Baldwin struct tls_record_layer *tlshdr; 1573b2e60773SJohn Baldwin struct mbuf *m; 15747d29eb9aSJohn Baldwin uint64_t *noncep; 1575b2e60773SJohn Baldwin uint16_t tls_len; 1576b2e60773SJohn Baldwin int maxlen; 1577b2e60773SJohn Baldwin 1578b2e60773SJohn Baldwin maxlen = tls->params.max_frame_len; 1579b2e60773SJohn Baldwin *enq_cnt = 0; 1580b2e60773SJohn Baldwin for (m = top; m != NULL; m = m->m_next) { 1581b2e60773SJohn Baldwin /* 1582c2a8fd6fSJohn Baldwin * All mbufs in the chain should be TLS records whose 1583c2a8fd6fSJohn Baldwin * payload does not exceed the maximum frame length. 1584c2a8fd6fSJohn Baldwin * 1585c2a8fd6fSJohn Baldwin * Empty TLS records are permitted when using CBC. 1586b2e60773SJohn Baldwin */ 1587c2a8fd6fSJohn Baldwin KASSERT(m->m_len <= maxlen && 1588c2a8fd6fSJohn Baldwin (tls->params.cipher_algorithm == CRYPTO_AES_CBC ? 1589c2a8fd6fSJohn Baldwin m->m_len >= 0 : m->m_len > 0), 1590f85e1a80SGleb Smirnoff ("ktls_frame: m %p len %d\n", m, m->m_len)); 1591c2a8fd6fSJohn Baldwin 1592b2e60773SJohn Baldwin /* 1593b2e60773SJohn Baldwin * TLS frames require unmapped mbufs to store session 1594b2e60773SJohn Baldwin * info. 1595b2e60773SJohn Baldwin */ 15966edfd179SGleb Smirnoff KASSERT((m->m_flags & M_EXTPG) != 0, 1597b2e60773SJohn Baldwin ("ktls_frame: mapped mbuf %p (top = %p)\n", m, top)); 1598b2e60773SJohn Baldwin 1599f85e1a80SGleb Smirnoff tls_len = m->m_len; 1600b2e60773SJohn Baldwin 1601b2e60773SJohn Baldwin /* Save a reference to the session. */ 16027b6c99d0SGleb Smirnoff m->m_epg_tls = ktls_hold(tls); 1603b2e60773SJohn Baldwin 16047b6c99d0SGleb Smirnoff m->m_epg_hdrlen = tls->params.tls_hlen; 16057b6c99d0SGleb Smirnoff m->m_epg_trllen = tls->params.tls_tlen; 1606b2e60773SJohn Baldwin if (tls->params.cipher_algorithm == CRYPTO_AES_CBC) { 1607b2e60773SJohn Baldwin int bs, delta; 1608b2e60773SJohn Baldwin 1609b2e60773SJohn Baldwin /* 1610b2e60773SJohn Baldwin * AES-CBC pads messages to a multiple of the 1611b2e60773SJohn Baldwin * block size. Note that the padding is 1612b2e60773SJohn Baldwin * applied after the digest and the encryption 1613b2e60773SJohn Baldwin * is done on the "plaintext || mac || padding". 1614b2e60773SJohn Baldwin * At least one byte of padding is always 1615b2e60773SJohn Baldwin * present. 1616b2e60773SJohn Baldwin * 1617b2e60773SJohn Baldwin * Compute the final trailer length assuming 1618b2e60773SJohn Baldwin * at most one block of padding. 161921e3c1fbSJohn Baldwin * tls->params.tls_tlen is the maximum 1620b2e60773SJohn Baldwin * possible trailer length (padding + digest). 1621b2e60773SJohn Baldwin * delta holds the number of excess padding 1622b2e60773SJohn Baldwin * bytes if the maximum were used. Those 1623b2e60773SJohn Baldwin * extra bytes are removed. 1624b2e60773SJohn Baldwin */ 1625b2e60773SJohn Baldwin bs = tls->params.tls_bs; 1626b2e60773SJohn Baldwin delta = (tls_len + tls->params.tls_tlen) & (bs - 1); 16277b6c99d0SGleb Smirnoff m->m_epg_trllen -= delta; 1628b2e60773SJohn Baldwin } 16297b6c99d0SGleb Smirnoff m->m_len += m->m_epg_hdrlen + m->m_epg_trllen; 1630b2e60773SJohn Baldwin 1631b2e60773SJohn Baldwin /* Populate the TLS header. */ 16320c103266SGleb Smirnoff tlshdr = (void *)m->m_epg_hdr; 1633b2e60773SJohn Baldwin tlshdr->tls_vmajor = tls->params.tls_vmajor; 16346554362cSAndrew Gallatin 16356554362cSAndrew Gallatin /* 16366554362cSAndrew Gallatin * TLS 1.3 masquarades as TLS 1.2 with a record type 16376554362cSAndrew Gallatin * of TLS_RLTYPE_APP. 16386554362cSAndrew Gallatin */ 16396554362cSAndrew Gallatin if (tls->params.tls_vminor == TLS_MINOR_VER_THREE && 16406554362cSAndrew Gallatin tls->params.tls_vmajor == TLS_MAJOR_VER_ONE) { 16416554362cSAndrew Gallatin tlshdr->tls_vminor = TLS_MINOR_VER_TWO; 16426554362cSAndrew Gallatin tlshdr->tls_type = TLS_RLTYPE_APP; 16436554362cSAndrew Gallatin /* save the real record type for later */ 16447b6c99d0SGleb Smirnoff m->m_epg_record_type = record_type; 16450c103266SGleb Smirnoff m->m_epg_trail[0] = record_type; 16466554362cSAndrew Gallatin } else { 1647b2e60773SJohn Baldwin tlshdr->tls_vminor = tls->params.tls_vminor; 1648b2e60773SJohn Baldwin tlshdr->tls_type = record_type; 16496554362cSAndrew Gallatin } 1650b2e60773SJohn Baldwin tlshdr->tls_length = htons(m->m_len - sizeof(*tlshdr)); 1651b2e60773SJohn Baldwin 1652b2e60773SJohn Baldwin /* 16537d29eb9aSJohn Baldwin * Store nonces / explicit IVs after the end of the 16547d29eb9aSJohn Baldwin * TLS header. 16557d29eb9aSJohn Baldwin * 16567d29eb9aSJohn Baldwin * For GCM with TLS 1.2, an 8 byte nonce is copied 16577d29eb9aSJohn Baldwin * from the end of the IV. The nonce is then 16587d29eb9aSJohn Baldwin * incremented for use by the next record. 16597d29eb9aSJohn Baldwin * 16607d29eb9aSJohn Baldwin * For CBC, a random nonce is inserted for TLS 1.1+. 1661b2e60773SJohn Baldwin */ 16627d29eb9aSJohn Baldwin if (tls->params.cipher_algorithm == CRYPTO_AES_NIST_GCM_16 && 16637d29eb9aSJohn Baldwin tls->params.tls_vminor == TLS_MINOR_VER_TWO) { 16647d29eb9aSJohn Baldwin noncep = (uint64_t *)(tls->params.iv + 8); 16657d29eb9aSJohn Baldwin be64enc(tlshdr + 1, *noncep); 16667d29eb9aSJohn Baldwin (*noncep)++; 16677d29eb9aSJohn Baldwin } else if (tls->params.cipher_algorithm == CRYPTO_AES_CBC && 1668b2e60773SJohn Baldwin tls->params.tls_vminor >= TLS_MINOR_VER_ONE) 1669b2e60773SJohn Baldwin arc4rand(tlshdr + 1, AES_BLOCK_LEN, 0); 1670b2e60773SJohn Baldwin 1671b2e60773SJohn Baldwin /* 1672b2e60773SJohn Baldwin * When using SW encryption, mark the mbuf not ready. 1673b2e60773SJohn Baldwin * It will be marked ready via sbready() after the 1674b2e60773SJohn Baldwin * record has been encrypted. 1675b2e60773SJohn Baldwin * 1676b2e60773SJohn Baldwin * When using ifnet TLS, unencrypted TLS records are 1677b2e60773SJohn Baldwin * sent down the stack to the NIC. 1678b2e60773SJohn Baldwin */ 16799e14430dSJohn Baldwin if (tls->mode == TCP_TLS_MODE_SW) { 1680b2e60773SJohn Baldwin m->m_flags |= M_NOTREADY; 1681c2a8fd6fSJohn Baldwin if (__predict_false(tls_len == 0)) { 1682c2a8fd6fSJohn Baldwin /* TLS 1.0 empty fragment. */ 1683d16cb228SJohn Baldwin m->m_epg_nrdy = 1; 1684c2a8fd6fSJohn Baldwin } else 1685d16cb228SJohn Baldwin m->m_epg_nrdy = m->m_epg_npgs; 1686d16cb228SJohn Baldwin *enq_cnt += m->m_epg_nrdy; 1687b2e60773SJohn Baldwin } 1688b2e60773SJohn Baldwin } 1689b2e60773SJohn Baldwin } 1690b2e60773SJohn Baldwin 1691b2e60773SJohn Baldwin void 16923c0e5685SJohn Baldwin ktls_check_rx(struct sockbuf *sb) 16933c0e5685SJohn Baldwin { 16943c0e5685SJohn Baldwin struct tls_record_layer hdr; 16953c0e5685SJohn Baldwin struct ktls_wq *wq; 16963c0e5685SJohn Baldwin struct socket *so; 16973c0e5685SJohn Baldwin bool running; 16983c0e5685SJohn Baldwin 16993c0e5685SJohn Baldwin SOCKBUF_LOCK_ASSERT(sb); 17003c0e5685SJohn Baldwin KASSERT(sb->sb_flags & SB_TLS_RX, ("%s: sockbuf %p isn't TLS RX", 17013c0e5685SJohn Baldwin __func__, sb)); 17023c0e5685SJohn Baldwin so = __containerof(sb, struct socket, so_rcv); 17033c0e5685SJohn Baldwin 17043c0e5685SJohn Baldwin if (sb->sb_flags & SB_TLS_RX_RUNNING) 17053c0e5685SJohn Baldwin return; 17063c0e5685SJohn Baldwin 17073c0e5685SJohn Baldwin /* Is there enough queued for a TLS header? */ 17083c0e5685SJohn Baldwin if (sb->sb_tlscc < sizeof(hdr)) { 17093c0e5685SJohn Baldwin if ((sb->sb_state & SBS_CANTRCVMORE) != 0 && sb->sb_tlscc != 0) 17103c0e5685SJohn Baldwin so->so_error = EMSGSIZE; 17113c0e5685SJohn Baldwin return; 17123c0e5685SJohn Baldwin } 17133c0e5685SJohn Baldwin 17143c0e5685SJohn Baldwin m_copydata(sb->sb_mtls, 0, sizeof(hdr), (void *)&hdr); 17153c0e5685SJohn Baldwin 17163c0e5685SJohn Baldwin /* Is the entire record queued? */ 17173c0e5685SJohn Baldwin if (sb->sb_tlscc < sizeof(hdr) + ntohs(hdr.tls_length)) { 17183c0e5685SJohn Baldwin if ((sb->sb_state & SBS_CANTRCVMORE) != 0) 17193c0e5685SJohn Baldwin so->so_error = EMSGSIZE; 17203c0e5685SJohn Baldwin return; 17213c0e5685SJohn Baldwin } 17223c0e5685SJohn Baldwin 17233c0e5685SJohn Baldwin sb->sb_flags |= SB_TLS_RX_RUNNING; 17243c0e5685SJohn Baldwin 17253c0e5685SJohn Baldwin soref(so); 17263c0e5685SJohn Baldwin wq = &ktls_wq[so->so_rcv.sb_tls_info->wq_index]; 17273c0e5685SJohn Baldwin mtx_lock(&wq->mtx); 17283c0e5685SJohn Baldwin STAILQ_INSERT_TAIL(&wq->so_head, so, so_ktls_rx_list); 17293c0e5685SJohn Baldwin running = wq->running; 17303c0e5685SJohn Baldwin mtx_unlock(&wq->mtx); 17313c0e5685SJohn Baldwin if (!running) 17323c0e5685SJohn Baldwin wakeup(wq); 17333c0e5685SJohn Baldwin counter_u64_add(ktls_cnt_rx_queued, 1); 17343c0e5685SJohn Baldwin } 17353c0e5685SJohn Baldwin 17363c0e5685SJohn Baldwin static struct mbuf * 17373c0e5685SJohn Baldwin ktls_detach_record(struct sockbuf *sb, int len) 17383c0e5685SJohn Baldwin { 17393c0e5685SJohn Baldwin struct mbuf *m, *n, *top; 17403c0e5685SJohn Baldwin int remain; 17413c0e5685SJohn Baldwin 17423c0e5685SJohn Baldwin SOCKBUF_LOCK_ASSERT(sb); 17433c0e5685SJohn Baldwin MPASS(len <= sb->sb_tlscc); 17443c0e5685SJohn Baldwin 17453c0e5685SJohn Baldwin /* 17463c0e5685SJohn Baldwin * If TLS chain is the exact size of the record, 17473c0e5685SJohn Baldwin * just grab the whole record. 17483c0e5685SJohn Baldwin */ 17493c0e5685SJohn Baldwin top = sb->sb_mtls; 17503c0e5685SJohn Baldwin if (sb->sb_tlscc == len) { 17513c0e5685SJohn Baldwin sb->sb_mtls = NULL; 17523c0e5685SJohn Baldwin sb->sb_mtlstail = NULL; 17533c0e5685SJohn Baldwin goto out; 17543c0e5685SJohn Baldwin } 17553c0e5685SJohn Baldwin 17563c0e5685SJohn Baldwin /* 17573c0e5685SJohn Baldwin * While it would be nice to use m_split() here, we need 17583c0e5685SJohn Baldwin * to know exactly what m_split() allocates to update the 17593c0e5685SJohn Baldwin * accounting, so do it inline instead. 17603c0e5685SJohn Baldwin */ 17613c0e5685SJohn Baldwin remain = len; 17623c0e5685SJohn Baldwin for (m = top; remain > m->m_len; m = m->m_next) 17633c0e5685SJohn Baldwin remain -= m->m_len; 17643c0e5685SJohn Baldwin 17653c0e5685SJohn Baldwin /* Easy case: don't have to split 'm'. */ 17663c0e5685SJohn Baldwin if (remain == m->m_len) { 17673c0e5685SJohn Baldwin sb->sb_mtls = m->m_next; 17683c0e5685SJohn Baldwin if (sb->sb_mtls == NULL) 17693c0e5685SJohn Baldwin sb->sb_mtlstail = NULL; 17703c0e5685SJohn Baldwin m->m_next = NULL; 17713c0e5685SJohn Baldwin goto out; 17723c0e5685SJohn Baldwin } 17733c0e5685SJohn Baldwin 17743c0e5685SJohn Baldwin /* 17753c0e5685SJohn Baldwin * Need to allocate an mbuf to hold the remainder of 'm'. Try 17763c0e5685SJohn Baldwin * with M_NOWAIT first. 17773c0e5685SJohn Baldwin */ 17783c0e5685SJohn Baldwin n = m_get(M_NOWAIT, MT_DATA); 17793c0e5685SJohn Baldwin if (n == NULL) { 17803c0e5685SJohn Baldwin /* 17813c0e5685SJohn Baldwin * Use M_WAITOK with socket buffer unlocked. If 17823c0e5685SJohn Baldwin * 'sb_mtls' changes while the lock is dropped, return 17833c0e5685SJohn Baldwin * NULL to force the caller to retry. 17843c0e5685SJohn Baldwin */ 17853c0e5685SJohn Baldwin SOCKBUF_UNLOCK(sb); 17863c0e5685SJohn Baldwin 17873c0e5685SJohn Baldwin n = m_get(M_WAITOK, MT_DATA); 17883c0e5685SJohn Baldwin 17893c0e5685SJohn Baldwin SOCKBUF_LOCK(sb); 17903c0e5685SJohn Baldwin if (sb->sb_mtls != top) { 17913c0e5685SJohn Baldwin m_free(n); 17923c0e5685SJohn Baldwin return (NULL); 17933c0e5685SJohn Baldwin } 17943c0e5685SJohn Baldwin } 17953c0e5685SJohn Baldwin n->m_flags |= M_NOTREADY; 17963c0e5685SJohn Baldwin 17973c0e5685SJohn Baldwin /* Store remainder in 'n'. */ 17983c0e5685SJohn Baldwin n->m_len = m->m_len - remain; 17993c0e5685SJohn Baldwin if (m->m_flags & M_EXT) { 18003c0e5685SJohn Baldwin n->m_data = m->m_data + remain; 18013c0e5685SJohn Baldwin mb_dupcl(n, m); 18023c0e5685SJohn Baldwin } else { 18033c0e5685SJohn Baldwin bcopy(mtod(m, caddr_t) + remain, mtod(n, caddr_t), n->m_len); 18043c0e5685SJohn Baldwin } 18053c0e5685SJohn Baldwin 18063c0e5685SJohn Baldwin /* Trim 'm' and update accounting. */ 18073c0e5685SJohn Baldwin m->m_len -= n->m_len; 18083c0e5685SJohn Baldwin sb->sb_tlscc -= n->m_len; 18093c0e5685SJohn Baldwin sb->sb_ccc -= n->m_len; 18103c0e5685SJohn Baldwin 18113c0e5685SJohn Baldwin /* Account for 'n'. */ 18123c0e5685SJohn Baldwin sballoc_ktls_rx(sb, n); 18133c0e5685SJohn Baldwin 18143c0e5685SJohn Baldwin /* Insert 'n' into the TLS chain. */ 18153c0e5685SJohn Baldwin sb->sb_mtls = n; 18163c0e5685SJohn Baldwin n->m_next = m->m_next; 18173c0e5685SJohn Baldwin if (sb->sb_mtlstail == m) 18183c0e5685SJohn Baldwin sb->sb_mtlstail = n; 18193c0e5685SJohn Baldwin 18203c0e5685SJohn Baldwin /* Detach the record from the TLS chain. */ 18213c0e5685SJohn Baldwin m->m_next = NULL; 18223c0e5685SJohn Baldwin 18233c0e5685SJohn Baldwin out: 18243c0e5685SJohn Baldwin MPASS(m_length(top, NULL) == len); 18253c0e5685SJohn Baldwin for (m = top; m != NULL; m = m->m_next) 18263c0e5685SJohn Baldwin sbfree_ktls_rx(sb, m); 18273c0e5685SJohn Baldwin sb->sb_tlsdcc = len; 18283c0e5685SJohn Baldwin sb->sb_ccc += len; 18293c0e5685SJohn Baldwin SBCHECK(sb); 18303c0e5685SJohn Baldwin return (top); 18313c0e5685SJohn Baldwin } 18323c0e5685SJohn Baldwin 18333c0e5685SJohn Baldwin static void 18343c0e5685SJohn Baldwin ktls_decrypt(struct socket *so) 18353c0e5685SJohn Baldwin { 18363c0e5685SJohn Baldwin char tls_header[MBUF_PEXT_HDR_LEN]; 18373c0e5685SJohn Baldwin struct ktls_session *tls; 18383c0e5685SJohn Baldwin struct sockbuf *sb; 18393c0e5685SJohn Baldwin struct tls_record_layer *hdr; 18403c0e5685SJohn Baldwin struct tls_get_record tgr; 18413c0e5685SJohn Baldwin struct mbuf *control, *data, *m; 18423c0e5685SJohn Baldwin uint64_t seqno; 18433c0e5685SJohn Baldwin int error, remain, tls_len, trail_len; 18443c0e5685SJohn Baldwin 18453c0e5685SJohn Baldwin hdr = (struct tls_record_layer *)tls_header; 18463c0e5685SJohn Baldwin sb = &so->so_rcv; 18473c0e5685SJohn Baldwin SOCKBUF_LOCK(sb); 18483c0e5685SJohn Baldwin KASSERT(sb->sb_flags & SB_TLS_RX_RUNNING, 18493c0e5685SJohn Baldwin ("%s: socket %p not running", __func__, so)); 18503c0e5685SJohn Baldwin 18513c0e5685SJohn Baldwin tls = sb->sb_tls_info; 18523c0e5685SJohn Baldwin MPASS(tls != NULL); 18533c0e5685SJohn Baldwin 18543c0e5685SJohn Baldwin for (;;) { 18553c0e5685SJohn Baldwin /* Is there enough queued for a TLS header? */ 18563c0e5685SJohn Baldwin if (sb->sb_tlscc < tls->params.tls_hlen) 18573c0e5685SJohn Baldwin break; 18583c0e5685SJohn Baldwin 18593c0e5685SJohn Baldwin m_copydata(sb->sb_mtls, 0, tls->params.tls_hlen, tls_header); 18603c0e5685SJohn Baldwin tls_len = sizeof(*hdr) + ntohs(hdr->tls_length); 18613c0e5685SJohn Baldwin 18623c0e5685SJohn Baldwin if (hdr->tls_vmajor != tls->params.tls_vmajor || 18633c0e5685SJohn Baldwin hdr->tls_vminor != tls->params.tls_vminor) 18643c0e5685SJohn Baldwin error = EINVAL; 18653c0e5685SJohn Baldwin else if (tls_len < tls->params.tls_hlen || tls_len > 18663c0e5685SJohn Baldwin tls->params.tls_hlen + TLS_MAX_MSG_SIZE_V10_2 + 18673c0e5685SJohn Baldwin tls->params.tls_tlen) 18683c0e5685SJohn Baldwin error = EMSGSIZE; 18693c0e5685SJohn Baldwin else 18703c0e5685SJohn Baldwin error = 0; 18713c0e5685SJohn Baldwin if (__predict_false(error != 0)) { 18723c0e5685SJohn Baldwin /* 18733c0e5685SJohn Baldwin * We have a corrupted record and are likely 18743c0e5685SJohn Baldwin * out of sync. The connection isn't 18753c0e5685SJohn Baldwin * recoverable at this point, so abort it. 18763c0e5685SJohn Baldwin */ 18773c0e5685SJohn Baldwin SOCKBUF_UNLOCK(sb); 18783c0e5685SJohn Baldwin counter_u64_add(ktls_offload_corrupted_records, 1); 18793c0e5685SJohn Baldwin 18803c0e5685SJohn Baldwin CURVNET_SET(so->so_vnet); 18813c0e5685SJohn Baldwin so->so_proto->pr_usrreqs->pru_abort(so); 18823c0e5685SJohn Baldwin so->so_error = error; 18833c0e5685SJohn Baldwin CURVNET_RESTORE(); 18843c0e5685SJohn Baldwin goto deref; 18853c0e5685SJohn Baldwin } 18863c0e5685SJohn Baldwin 18873c0e5685SJohn Baldwin /* Is the entire record queued? */ 18883c0e5685SJohn Baldwin if (sb->sb_tlscc < tls_len) 18893c0e5685SJohn Baldwin break; 18903c0e5685SJohn Baldwin 18913c0e5685SJohn Baldwin /* 18923c0e5685SJohn Baldwin * Split out the portion of the mbuf chain containing 18933c0e5685SJohn Baldwin * this TLS record. 18943c0e5685SJohn Baldwin */ 18953c0e5685SJohn Baldwin data = ktls_detach_record(sb, tls_len); 18963c0e5685SJohn Baldwin if (data == NULL) 18973c0e5685SJohn Baldwin continue; 18983c0e5685SJohn Baldwin MPASS(sb->sb_tlsdcc == tls_len); 18993c0e5685SJohn Baldwin 19003c0e5685SJohn Baldwin seqno = sb->sb_tls_seqno; 19013c0e5685SJohn Baldwin sb->sb_tls_seqno++; 19023c0e5685SJohn Baldwin SBCHECK(sb); 19033c0e5685SJohn Baldwin SOCKBUF_UNLOCK(sb); 19043c0e5685SJohn Baldwin 19053c0e5685SJohn Baldwin error = tls->sw_decrypt(tls, hdr, data, seqno, &trail_len); 19063c0e5685SJohn Baldwin if (error) { 19073c0e5685SJohn Baldwin counter_u64_add(ktls_offload_failed_crypto, 1); 19083c0e5685SJohn Baldwin 19093c0e5685SJohn Baldwin SOCKBUF_LOCK(sb); 19103c0e5685SJohn Baldwin if (sb->sb_tlsdcc == 0) { 19113c0e5685SJohn Baldwin /* 19123c0e5685SJohn Baldwin * sbcut/drop/flush discarded these 19133c0e5685SJohn Baldwin * mbufs. 19143c0e5685SJohn Baldwin */ 19153c0e5685SJohn Baldwin m_freem(data); 19163c0e5685SJohn Baldwin break; 19173c0e5685SJohn Baldwin } 19183c0e5685SJohn Baldwin 19193c0e5685SJohn Baldwin /* 19203c0e5685SJohn Baldwin * Drop this TLS record's data, but keep 19213c0e5685SJohn Baldwin * decrypting subsequent records. 19223c0e5685SJohn Baldwin */ 19233c0e5685SJohn Baldwin sb->sb_ccc -= tls_len; 19243c0e5685SJohn Baldwin sb->sb_tlsdcc = 0; 19253c0e5685SJohn Baldwin 19263c0e5685SJohn Baldwin CURVNET_SET(so->so_vnet); 19273c0e5685SJohn Baldwin so->so_error = EBADMSG; 19283c0e5685SJohn Baldwin sorwakeup_locked(so); 19293c0e5685SJohn Baldwin CURVNET_RESTORE(); 19303c0e5685SJohn Baldwin 19313c0e5685SJohn Baldwin m_freem(data); 19323c0e5685SJohn Baldwin 19333c0e5685SJohn Baldwin SOCKBUF_LOCK(sb); 19343c0e5685SJohn Baldwin continue; 19353c0e5685SJohn Baldwin } 19363c0e5685SJohn Baldwin 19373c0e5685SJohn Baldwin /* Allocate the control mbuf. */ 19383c0e5685SJohn Baldwin tgr.tls_type = hdr->tls_type; 19393c0e5685SJohn Baldwin tgr.tls_vmajor = hdr->tls_vmajor; 19403c0e5685SJohn Baldwin tgr.tls_vminor = hdr->tls_vminor; 19413c0e5685SJohn Baldwin tgr.tls_length = htobe16(tls_len - tls->params.tls_hlen - 19423c0e5685SJohn Baldwin trail_len); 19433c0e5685SJohn Baldwin control = sbcreatecontrol_how(&tgr, sizeof(tgr), 19443c0e5685SJohn Baldwin TLS_GET_RECORD, IPPROTO_TCP, M_WAITOK); 19453c0e5685SJohn Baldwin 19463c0e5685SJohn Baldwin SOCKBUF_LOCK(sb); 19473c0e5685SJohn Baldwin if (sb->sb_tlsdcc == 0) { 19483c0e5685SJohn Baldwin /* sbcut/drop/flush discarded these mbufs. */ 19493c0e5685SJohn Baldwin MPASS(sb->sb_tlscc == 0); 19503c0e5685SJohn Baldwin m_freem(data); 19513c0e5685SJohn Baldwin m_freem(control); 19523c0e5685SJohn Baldwin break; 19533c0e5685SJohn Baldwin } 19543c0e5685SJohn Baldwin 19553c0e5685SJohn Baldwin /* 19563c0e5685SJohn Baldwin * Clear the 'dcc' accounting in preparation for 19573c0e5685SJohn Baldwin * adding the decrypted record. 19583c0e5685SJohn Baldwin */ 19593c0e5685SJohn Baldwin sb->sb_ccc -= tls_len; 19603c0e5685SJohn Baldwin sb->sb_tlsdcc = 0; 19613c0e5685SJohn Baldwin SBCHECK(sb); 19623c0e5685SJohn Baldwin 19633c0e5685SJohn Baldwin /* If there is no payload, drop all of the data. */ 19643c0e5685SJohn Baldwin if (tgr.tls_length == htobe16(0)) { 19653c0e5685SJohn Baldwin m_freem(data); 19663c0e5685SJohn Baldwin data = NULL; 19673c0e5685SJohn Baldwin } else { 19683c0e5685SJohn Baldwin /* Trim header. */ 19693c0e5685SJohn Baldwin remain = tls->params.tls_hlen; 19703c0e5685SJohn Baldwin while (remain > 0) { 19713c0e5685SJohn Baldwin if (data->m_len > remain) { 19723c0e5685SJohn Baldwin data->m_data += remain; 19733c0e5685SJohn Baldwin data->m_len -= remain; 19743c0e5685SJohn Baldwin break; 19753c0e5685SJohn Baldwin } 19763c0e5685SJohn Baldwin remain -= data->m_len; 19773c0e5685SJohn Baldwin data = m_free(data); 19783c0e5685SJohn Baldwin } 19793c0e5685SJohn Baldwin 19803c0e5685SJohn Baldwin /* Trim trailer and clear M_NOTREADY. */ 19813c0e5685SJohn Baldwin remain = be16toh(tgr.tls_length); 19823c0e5685SJohn Baldwin m = data; 19833c0e5685SJohn Baldwin for (m = data; remain > m->m_len; m = m->m_next) { 19843c0e5685SJohn Baldwin m->m_flags &= ~M_NOTREADY; 19853c0e5685SJohn Baldwin remain -= m->m_len; 19863c0e5685SJohn Baldwin } 19873c0e5685SJohn Baldwin m->m_len = remain; 19883c0e5685SJohn Baldwin m_freem(m->m_next); 19893c0e5685SJohn Baldwin m->m_next = NULL; 19903c0e5685SJohn Baldwin m->m_flags &= ~M_NOTREADY; 19913c0e5685SJohn Baldwin 19923c0e5685SJohn Baldwin /* Set EOR on the final mbuf. */ 19933c0e5685SJohn Baldwin m->m_flags |= M_EOR; 19943c0e5685SJohn Baldwin } 19953c0e5685SJohn Baldwin 19963c0e5685SJohn Baldwin sbappendcontrol_locked(sb, data, control, 0); 19973c0e5685SJohn Baldwin } 19983c0e5685SJohn Baldwin 19993c0e5685SJohn Baldwin sb->sb_flags &= ~SB_TLS_RX_RUNNING; 20003c0e5685SJohn Baldwin 20013c0e5685SJohn Baldwin if ((sb->sb_state & SBS_CANTRCVMORE) != 0 && sb->sb_tlscc > 0) 20023c0e5685SJohn Baldwin so->so_error = EMSGSIZE; 20033c0e5685SJohn Baldwin 20043c0e5685SJohn Baldwin sorwakeup_locked(so); 20053c0e5685SJohn Baldwin 20063c0e5685SJohn Baldwin deref: 20073c0e5685SJohn Baldwin SOCKBUF_UNLOCK_ASSERT(sb); 20083c0e5685SJohn Baldwin 20093c0e5685SJohn Baldwin CURVNET_SET(so->so_vnet); 20103c0e5685SJohn Baldwin SOCK_LOCK(so); 20113c0e5685SJohn Baldwin sorele(so); 20123c0e5685SJohn Baldwin CURVNET_RESTORE(); 20133c0e5685SJohn Baldwin } 20143c0e5685SJohn Baldwin 20153c0e5685SJohn Baldwin void 2016d90fe9d0SGleb Smirnoff ktls_enqueue_to_free(struct mbuf *m) 2017b2e60773SJohn Baldwin { 2018b2e60773SJohn Baldwin struct ktls_wq *wq; 2019b2e60773SJohn Baldwin bool running; 2020b2e60773SJohn Baldwin 2021b2e60773SJohn Baldwin /* Mark it for freeing. */ 20227b6c99d0SGleb Smirnoff m->m_epg_flags |= EPG_FLAG_2FREE; 20237b6c99d0SGleb Smirnoff wq = &ktls_wq[m->m_epg_tls->wq_index]; 2024b2e60773SJohn Baldwin mtx_lock(&wq->mtx); 20253c0e5685SJohn Baldwin STAILQ_INSERT_TAIL(&wq->m_head, m, m_epg_stailq); 2026b2e60773SJohn Baldwin running = wq->running; 2027b2e60773SJohn Baldwin mtx_unlock(&wq->mtx); 2028b2e60773SJohn Baldwin if (!running) 2029b2e60773SJohn Baldwin wakeup(wq); 2030b2e60773SJohn Baldwin } 2031b2e60773SJohn Baldwin 203249f6925cSMark Johnston static void * 203349f6925cSMark Johnston ktls_buffer_alloc(struct ktls_wq *wq, struct mbuf *m) 203449f6925cSMark Johnston { 203549f6925cSMark Johnston void *buf; 203698215005SAndrew Gallatin int domain, running; 203749f6925cSMark Johnston 203849f6925cSMark Johnston if (m->m_epg_npgs <= 2) 203949f6925cSMark Johnston return (NULL); 204049f6925cSMark Johnston if (ktls_buffer_zone == NULL) 204149f6925cSMark Johnston return (NULL); 204249f6925cSMark Johnston if ((u_int)(ticks - wq->lastallocfail) < hz) { 204349f6925cSMark Johnston /* 204449f6925cSMark Johnston * Rate-limit allocation attempts after a failure. 204549f6925cSMark Johnston * ktls_buffer_import() will acquire a per-domain mutex to check 204649f6925cSMark Johnston * the free page queues and may fail consistently if memory is 204749f6925cSMark Johnston * fragmented. 204849f6925cSMark Johnston */ 204949f6925cSMark Johnston return (NULL); 205049f6925cSMark Johnston } 205149f6925cSMark Johnston buf = uma_zalloc(ktls_buffer_zone, M_NOWAIT | M_NORECLAIM); 205298215005SAndrew Gallatin if (buf == NULL) { 205398215005SAndrew Gallatin domain = PCPU_GET(domain); 205449f6925cSMark Johnston wq->lastallocfail = ticks; 205598215005SAndrew Gallatin 205698215005SAndrew Gallatin /* 205798215005SAndrew Gallatin * Note that this check is "racy", but the races are 205898215005SAndrew Gallatin * harmless, and are either a spurious wakeup if 205998215005SAndrew Gallatin * multiple threads fail allocations before the alloc 206098215005SAndrew Gallatin * thread wakes, or waiting an extra second in case we 206198215005SAndrew Gallatin * see an old value of running == true. 206298215005SAndrew Gallatin */ 206398215005SAndrew Gallatin if (!VM_DOMAIN_EMPTY(domain)) { 206498215005SAndrew Gallatin running = atomic_load_int(&ktls_domains[domain].alloc_td.running); 206598215005SAndrew Gallatin if (!running) 206698215005SAndrew Gallatin wakeup(&ktls_domains[domain].alloc_td); 206798215005SAndrew Gallatin } 206898215005SAndrew Gallatin } 206949f6925cSMark Johnston return (buf); 207049f6925cSMark Johnston } 207149f6925cSMark Johnston 2072470e851cSJohn Baldwin static int 2073470e851cSJohn Baldwin ktls_encrypt_record(struct ktls_wq *wq, struct mbuf *m, 2074470e851cSJohn Baldwin struct ktls_session *tls, struct ktls_ocf_encrypt_state *state) 2075470e851cSJohn Baldwin { 2076470e851cSJohn Baldwin vm_page_t pg; 2077470e851cSJohn Baldwin int error, i, len, off; 2078470e851cSJohn Baldwin 2079470e851cSJohn Baldwin KASSERT((m->m_flags & (M_EXTPG | M_NOTREADY)) == (M_EXTPG | M_NOTREADY), 2080470e851cSJohn Baldwin ("%p not unready & nomap mbuf\n", m)); 2081470e851cSJohn Baldwin KASSERT(ptoa(m->m_epg_npgs) <= ktls_maxlen, 2082470e851cSJohn Baldwin ("page count %d larger than maximum frame length %d", m->m_epg_npgs, 2083470e851cSJohn Baldwin ktls_maxlen)); 2084470e851cSJohn Baldwin 2085470e851cSJohn Baldwin /* Anonymous mbufs are encrypted in place. */ 2086470e851cSJohn Baldwin if ((m->m_epg_flags & EPG_FLAG_ANON) != 0) 2087470e851cSJohn Baldwin return (tls->sw_encrypt(state, tls, m, NULL, 0)); 2088470e851cSJohn Baldwin 2089470e851cSJohn Baldwin /* 2090470e851cSJohn Baldwin * For file-backed mbufs (from sendfile), anonymous wired 2091470e851cSJohn Baldwin * pages are allocated and used as the encryption destination. 2092470e851cSJohn Baldwin */ 2093470e851cSJohn Baldwin if ((state->cbuf = ktls_buffer_alloc(wq, m)) != NULL) { 2094470e851cSJohn Baldwin len = ptoa(m->m_epg_npgs - 1) + m->m_epg_last_len - 2095470e851cSJohn Baldwin m->m_epg_1st_off; 2096470e851cSJohn Baldwin state->dst_iov[0].iov_base = (char *)state->cbuf + 2097470e851cSJohn Baldwin m->m_epg_1st_off; 2098470e851cSJohn Baldwin state->dst_iov[0].iov_len = len; 2099470e851cSJohn Baldwin state->parray[0] = DMAP_TO_PHYS((vm_offset_t)state->cbuf); 2100470e851cSJohn Baldwin i = 1; 2101470e851cSJohn Baldwin } else { 2102470e851cSJohn Baldwin off = m->m_epg_1st_off; 2103470e851cSJohn Baldwin for (i = 0; i < m->m_epg_npgs; i++, off = 0) { 2104*a4667e09SMark Johnston pg = vm_page_alloc_noobj(VM_ALLOC_NODUMP | 2105*a4667e09SMark Johnston VM_ALLOC_WIRED | VM_ALLOC_WAITOK); 2106470e851cSJohn Baldwin len = m_epg_pagelen(m, i, off); 2107470e851cSJohn Baldwin state->parray[i] = VM_PAGE_TO_PHYS(pg); 2108470e851cSJohn Baldwin state->dst_iov[i].iov_base = 2109470e851cSJohn Baldwin (char *)PHYS_TO_DMAP(state->parray[i]) + off; 2110470e851cSJohn Baldwin state->dst_iov[i].iov_len = len; 2111470e851cSJohn Baldwin } 2112470e851cSJohn Baldwin } 2113470e851cSJohn Baldwin KASSERT(i + 1 <= nitems(state->dst_iov), ("dst_iov is too small")); 2114470e851cSJohn Baldwin state->dst_iov[i].iov_base = m->m_epg_trail; 2115470e851cSJohn Baldwin state->dst_iov[i].iov_len = m->m_epg_trllen; 2116470e851cSJohn Baldwin 2117470e851cSJohn Baldwin error = tls->sw_encrypt(state, tls, m, state->dst_iov, i + 1); 2118470e851cSJohn Baldwin 2119470e851cSJohn Baldwin if (__predict_false(error != 0)) { 2120470e851cSJohn Baldwin /* Free the anonymous pages. */ 2121470e851cSJohn Baldwin if (state->cbuf != NULL) 2122470e851cSJohn Baldwin uma_zfree(ktls_buffer_zone, state->cbuf); 2123470e851cSJohn Baldwin else { 2124470e851cSJohn Baldwin for (i = 0; i < m->m_epg_npgs; i++) { 2125470e851cSJohn Baldwin pg = PHYS_TO_VM_PAGE(state->parray[i]); 2126470e851cSJohn Baldwin (void)vm_page_unwire_noq(pg); 2127470e851cSJohn Baldwin vm_page_free(pg); 2128470e851cSJohn Baldwin } 2129470e851cSJohn Baldwin } 2130470e851cSJohn Baldwin } 2131470e851cSJohn Baldwin return (error); 2132470e851cSJohn Baldwin } 2133470e851cSJohn Baldwin 21349f03d2c0SJohn Baldwin /* Number of TLS records in a batch passed to ktls_enqueue(). */ 21359f03d2c0SJohn Baldwin static u_int 21369f03d2c0SJohn Baldwin ktls_batched_records(struct mbuf *m) 21379f03d2c0SJohn Baldwin { 21389f03d2c0SJohn Baldwin int page_count, records; 21399f03d2c0SJohn Baldwin 21409f03d2c0SJohn Baldwin records = 0; 21419f03d2c0SJohn Baldwin page_count = m->m_epg_enc_cnt; 21429f03d2c0SJohn Baldwin while (page_count > 0) { 21439f03d2c0SJohn Baldwin records++; 21449f03d2c0SJohn Baldwin page_count -= m->m_epg_nrdy; 21459f03d2c0SJohn Baldwin m = m->m_next; 21469f03d2c0SJohn Baldwin } 21479f03d2c0SJohn Baldwin KASSERT(page_count == 0, ("%s: mismatched page count", __func__)); 21489f03d2c0SJohn Baldwin return (records); 21499f03d2c0SJohn Baldwin } 21509f03d2c0SJohn Baldwin 2151b2e60773SJohn Baldwin void 2152b2e60773SJohn Baldwin ktls_enqueue(struct mbuf *m, struct socket *so, int page_count) 2153b2e60773SJohn Baldwin { 21549f03d2c0SJohn Baldwin struct ktls_session *tls; 2155b2e60773SJohn Baldwin struct ktls_wq *wq; 21569f03d2c0SJohn Baldwin int queued; 2157b2e60773SJohn Baldwin bool running; 2158b2e60773SJohn Baldwin 21596edfd179SGleb Smirnoff KASSERT(((m->m_flags & (M_EXTPG | M_NOTREADY)) == 21606edfd179SGleb Smirnoff (M_EXTPG | M_NOTREADY)), 2161b2e60773SJohn Baldwin ("ktls_enqueue: %p not unready & nomap mbuf\n", m)); 2162b2e60773SJohn Baldwin KASSERT(page_count != 0, ("enqueueing TLS mbuf with zero page count")); 2163b2e60773SJohn Baldwin 21647b6c99d0SGleb Smirnoff KASSERT(m->m_epg_tls->mode == TCP_TLS_MODE_SW, ("!SW TLS mbuf")); 2165b2e60773SJohn Baldwin 21667b6c99d0SGleb Smirnoff m->m_epg_enc_cnt = page_count; 2167b2e60773SJohn Baldwin 2168b2e60773SJohn Baldwin /* 2169b2e60773SJohn Baldwin * Save a pointer to the socket. The caller is responsible 2170b2e60773SJohn Baldwin * for taking an additional reference via soref(). 2171b2e60773SJohn Baldwin */ 21727b6c99d0SGleb Smirnoff m->m_epg_so = so; 2173b2e60773SJohn Baldwin 21749f03d2c0SJohn Baldwin queued = 1; 21759f03d2c0SJohn Baldwin tls = m->m_epg_tls; 21769f03d2c0SJohn Baldwin wq = &ktls_wq[tls->wq_index]; 2177b2e60773SJohn Baldwin mtx_lock(&wq->mtx); 21789f03d2c0SJohn Baldwin if (__predict_false(tls->sequential_records)) { 21799f03d2c0SJohn Baldwin /* 21809f03d2c0SJohn Baldwin * For TLS 1.0, records must be encrypted 21819f03d2c0SJohn Baldwin * sequentially. For a given connection, all records 21829f03d2c0SJohn Baldwin * queued to the associated work queue are processed 21839f03d2c0SJohn Baldwin * sequentially. However, sendfile(2) might complete 21849f03d2c0SJohn Baldwin * I/O requests spanning multiple TLS records out of 21859f03d2c0SJohn Baldwin * order. Here we ensure TLS records are enqueued to 21869f03d2c0SJohn Baldwin * the work queue in FIFO order. 21879f03d2c0SJohn Baldwin * 21889f03d2c0SJohn Baldwin * tls->next_seqno holds the sequence number of the 21899f03d2c0SJohn Baldwin * next TLS record that should be enqueued to the work 21909f03d2c0SJohn Baldwin * queue. If this next record is not tls->next_seqno, 21919f03d2c0SJohn Baldwin * it must be a future record, so insert it, sorted by 21929f03d2c0SJohn Baldwin * TLS sequence number, into tls->pending_records and 21939f03d2c0SJohn Baldwin * return. 21949f03d2c0SJohn Baldwin * 21959f03d2c0SJohn Baldwin * If this TLS record matches tls->next_seqno, place 21969f03d2c0SJohn Baldwin * it in the work queue and then check 21979f03d2c0SJohn Baldwin * tls->pending_records to see if any 21989f03d2c0SJohn Baldwin * previously-queued records are now ready for 21999f03d2c0SJohn Baldwin * encryption. 22009f03d2c0SJohn Baldwin */ 22019f03d2c0SJohn Baldwin if (m->m_epg_seqno != tls->next_seqno) { 22029f03d2c0SJohn Baldwin struct mbuf *n, *p; 22039f03d2c0SJohn Baldwin 22049f03d2c0SJohn Baldwin p = NULL; 22059f03d2c0SJohn Baldwin STAILQ_FOREACH(n, &tls->pending_records, m_epg_stailq) { 22069f03d2c0SJohn Baldwin if (n->m_epg_seqno > m->m_epg_seqno) 22079f03d2c0SJohn Baldwin break; 22089f03d2c0SJohn Baldwin p = n; 22099f03d2c0SJohn Baldwin } 22109f03d2c0SJohn Baldwin if (n == NULL) 22119f03d2c0SJohn Baldwin STAILQ_INSERT_TAIL(&tls->pending_records, m, 22129f03d2c0SJohn Baldwin m_epg_stailq); 22139f03d2c0SJohn Baldwin else if (p == NULL) 22149f03d2c0SJohn Baldwin STAILQ_INSERT_HEAD(&tls->pending_records, m, 22159f03d2c0SJohn Baldwin m_epg_stailq); 22169f03d2c0SJohn Baldwin else 22179f03d2c0SJohn Baldwin STAILQ_INSERT_AFTER(&tls->pending_records, p, m, 22189f03d2c0SJohn Baldwin m_epg_stailq); 22199f03d2c0SJohn Baldwin mtx_unlock(&wq->mtx); 22209f03d2c0SJohn Baldwin counter_u64_add(ktls_cnt_tx_pending, 1); 22219f03d2c0SJohn Baldwin return; 22229f03d2c0SJohn Baldwin } 22239f03d2c0SJohn Baldwin 22249f03d2c0SJohn Baldwin tls->next_seqno += ktls_batched_records(m); 22253c0e5685SJohn Baldwin STAILQ_INSERT_TAIL(&wq->m_head, m, m_epg_stailq); 22269f03d2c0SJohn Baldwin 22279f03d2c0SJohn Baldwin while (!STAILQ_EMPTY(&tls->pending_records)) { 22289f03d2c0SJohn Baldwin struct mbuf *n; 22299f03d2c0SJohn Baldwin 22309f03d2c0SJohn Baldwin n = STAILQ_FIRST(&tls->pending_records); 22319f03d2c0SJohn Baldwin if (n->m_epg_seqno != tls->next_seqno) 22329f03d2c0SJohn Baldwin break; 22339f03d2c0SJohn Baldwin 22349f03d2c0SJohn Baldwin queued++; 22359f03d2c0SJohn Baldwin STAILQ_REMOVE_HEAD(&tls->pending_records, m_epg_stailq); 22369f03d2c0SJohn Baldwin tls->next_seqno += ktls_batched_records(n); 22379f03d2c0SJohn Baldwin STAILQ_INSERT_TAIL(&wq->m_head, n, m_epg_stailq); 22389f03d2c0SJohn Baldwin } 22399f03d2c0SJohn Baldwin counter_u64_add(ktls_cnt_tx_pending, -(queued - 1)); 22409f03d2c0SJohn Baldwin } else 22419f03d2c0SJohn Baldwin STAILQ_INSERT_TAIL(&wq->m_head, m, m_epg_stailq); 22429f03d2c0SJohn Baldwin 2243b2e60773SJohn Baldwin running = wq->running; 2244b2e60773SJohn Baldwin mtx_unlock(&wq->mtx); 2245b2e60773SJohn Baldwin if (!running) 2246b2e60773SJohn Baldwin wakeup(wq); 22479f03d2c0SJohn Baldwin counter_u64_add(ktls_cnt_tx_queued, queued); 2248b2e60773SJohn Baldwin } 2249b2e60773SJohn Baldwin 2250470e851cSJohn Baldwin /* 2251470e851cSJohn Baldwin * Once a file-backed mbuf (from sendfile) has been encrypted, free 2252470e851cSJohn Baldwin * the pages from the file and replace them with the anonymous pages 2253470e851cSJohn Baldwin * allocated in ktls_encrypt_record(). 2254470e851cSJohn Baldwin */ 2255470e851cSJohn Baldwin static void 2256470e851cSJohn Baldwin ktls_finish_nonanon(struct mbuf *m, struct ktls_ocf_encrypt_state *state) 2257470e851cSJohn Baldwin { 2258470e851cSJohn Baldwin int i; 2259470e851cSJohn Baldwin 2260470e851cSJohn Baldwin MPASS((m->m_epg_flags & EPG_FLAG_ANON) == 0); 2261470e851cSJohn Baldwin 2262470e851cSJohn Baldwin /* Free the old pages. */ 2263470e851cSJohn Baldwin m->m_ext.ext_free(m); 2264470e851cSJohn Baldwin 2265470e851cSJohn Baldwin /* Replace them with the new pages. */ 2266470e851cSJohn Baldwin if (state->cbuf != NULL) { 2267470e851cSJohn Baldwin for (i = 0; i < m->m_epg_npgs; i++) 2268470e851cSJohn Baldwin m->m_epg_pa[i] = state->parray[0] + ptoa(i); 2269470e851cSJohn Baldwin 2270470e851cSJohn Baldwin /* Contig pages should go back to the cache. */ 2271470e851cSJohn Baldwin m->m_ext.ext_free = ktls_free_mext_contig; 2272470e851cSJohn Baldwin } else { 2273470e851cSJohn Baldwin for (i = 0; i < m->m_epg_npgs; i++) 2274470e851cSJohn Baldwin m->m_epg_pa[i] = state->parray[i]; 2275470e851cSJohn Baldwin 2276470e851cSJohn Baldwin /* Use the basic free routine. */ 2277470e851cSJohn Baldwin m->m_ext.ext_free = mb_free_mext_pgs; 2278470e851cSJohn Baldwin } 2279470e851cSJohn Baldwin 2280470e851cSJohn Baldwin /* Pages are now writable. */ 2281470e851cSJohn Baldwin m->m_epg_flags |= EPG_FLAG_ANON; 2282470e851cSJohn Baldwin } 22836b313a3aSJohn Baldwin 2284b2e60773SJohn Baldwin static __noinline void 228549f6925cSMark Johnston ktls_encrypt(struct ktls_wq *wq, struct mbuf *top) 2286b2e60773SJohn Baldwin { 2287470e851cSJohn Baldwin struct ktls_ocf_encrypt_state state; 2288b2e60773SJohn Baldwin struct ktls_session *tls; 2289b2e60773SJohn Baldwin struct socket *so; 2290d90fe9d0SGleb Smirnoff struct mbuf *m; 2291470e851cSJohn Baldwin int error, npages, total_pages; 2292b2e60773SJohn Baldwin 22937b6c99d0SGleb Smirnoff so = top->m_epg_so; 22947b6c99d0SGleb Smirnoff tls = top->m_epg_tls; 2295d90fe9d0SGleb Smirnoff KASSERT(tls != NULL, ("tls = NULL, top = %p\n", top)); 2296d90fe9d0SGleb Smirnoff KASSERT(so != NULL, ("so = NULL, top = %p\n", top)); 2297b2e60773SJohn Baldwin #ifdef INVARIANTS 22987b6c99d0SGleb Smirnoff top->m_epg_so = NULL; 2299b2e60773SJohn Baldwin #endif 23007b6c99d0SGleb Smirnoff total_pages = top->m_epg_enc_cnt; 2301b2e60773SJohn Baldwin npages = 0; 2302b2e60773SJohn Baldwin 2303b2e60773SJohn Baldwin /* 2304b2e60773SJohn Baldwin * Encrypt the TLS records in the chain of mbufs starting with 2305b2e60773SJohn Baldwin * 'top'. 'total_pages' gives us a total count of pages and is 2306b2e60773SJohn Baldwin * used to know when we have finished encrypting the TLS 2307b2e60773SJohn Baldwin * records originally queued with 'top'. 2308b2e60773SJohn Baldwin * 2309b2e60773SJohn Baldwin * NB: These mbufs are queued in the socket buffer and 2310b2e60773SJohn Baldwin * 'm_next' is traversing the mbufs in the socket buffer. The 2311b2e60773SJohn Baldwin * socket buffer lock is not held while traversing this chain. 2312b2e60773SJohn Baldwin * Since the mbufs are all marked M_NOTREADY their 'm_next' 2313b2e60773SJohn Baldwin * pointers should be stable. However, the 'm_next' of the 2314b2e60773SJohn Baldwin * last mbuf encrypted is not necessarily NULL. It can point 2315b2e60773SJohn Baldwin * to other mbufs appended while 'top' was on the TLS work 2316b2e60773SJohn Baldwin * queue. 2317b2e60773SJohn Baldwin * 2318b2e60773SJohn Baldwin * Each mbuf holds an entire TLS record. 2319b2e60773SJohn Baldwin */ 2320b2e60773SJohn Baldwin error = 0; 2321b2e60773SJohn Baldwin for (m = top; npages != total_pages; m = m->m_next) { 23227b6c99d0SGleb Smirnoff KASSERT(m->m_epg_tls == tls, 2323b2e60773SJohn Baldwin ("different TLS sessions in a single mbuf chain: %p vs %p", 23247b6c99d0SGleb Smirnoff tls, m->m_epg_tls)); 23257b6c99d0SGleb Smirnoff KASSERT(npages + m->m_epg_npgs <= total_pages, 2326b2e60773SJohn Baldwin ("page count mismatch: top %p, total_pages %d, m %p", top, 2327b2e60773SJohn Baldwin total_pages, m)); 2328b2e60773SJohn Baldwin 2329470e851cSJohn Baldwin error = ktls_encrypt_record(wq, m, tls, &state); 233021e3c1fbSJohn Baldwin if (error) { 233121e3c1fbSJohn Baldwin counter_u64_add(ktls_offload_failed_crypto, 1); 233221e3c1fbSJohn Baldwin break; 233321e3c1fbSJohn Baldwin } 233421e3c1fbSJohn Baldwin 2335470e851cSJohn Baldwin if ((m->m_epg_flags & EPG_FLAG_ANON) == 0) 2336470e851cSJohn Baldwin ktls_finish_nonanon(m, &state); 2337470e851cSJohn Baldwin 2338d16cb228SJohn Baldwin npages += m->m_epg_nrdy; 2339b2e60773SJohn Baldwin 2340b2e60773SJohn Baldwin /* 2341b2e60773SJohn Baldwin * Drop a reference to the session now that it is no 2342b2e60773SJohn Baldwin * longer needed. Existing code depends on encrypted 2343b2e60773SJohn Baldwin * records having no associated session vs 2344b2e60773SJohn Baldwin * yet-to-be-encrypted records having an associated 2345b2e60773SJohn Baldwin * session. 2346b2e60773SJohn Baldwin */ 23477b6c99d0SGleb Smirnoff m->m_epg_tls = NULL; 2348b2e60773SJohn Baldwin ktls_free(tls); 2349b2e60773SJohn Baldwin } 2350b2e60773SJohn Baldwin 2351b2e60773SJohn Baldwin CURVNET_SET(so->so_vnet); 2352b2e60773SJohn Baldwin if (error == 0) { 2353b2e60773SJohn Baldwin (void)(*so->so_proto->pr_usrreqs->pru_ready)(so, top, npages); 2354b2e60773SJohn Baldwin } else { 2355b2e60773SJohn Baldwin so->so_proto->pr_usrreqs->pru_abort(so); 2356b2e60773SJohn Baldwin so->so_error = EIO; 2357b2e60773SJohn Baldwin mb_free_notready(top, total_pages); 2358b2e60773SJohn Baldwin } 2359b2e60773SJohn Baldwin 2360b2e60773SJohn Baldwin SOCK_LOCK(so); 2361b2e60773SJohn Baldwin sorele(so); 2362b2e60773SJohn Baldwin CURVNET_RESTORE(); 2363b2e60773SJohn Baldwin } 2364b2e60773SJohn Baldwin 2365470e851cSJohn Baldwin void 2366470e851cSJohn Baldwin ktls_encrypt_cb(struct ktls_ocf_encrypt_state *state, int error) 2367470e851cSJohn Baldwin { 2368470e851cSJohn Baldwin struct ktls_session *tls; 2369470e851cSJohn Baldwin struct socket *so; 2370470e851cSJohn Baldwin struct mbuf *m; 2371470e851cSJohn Baldwin int npages; 2372470e851cSJohn Baldwin 2373470e851cSJohn Baldwin m = state->m; 2374470e851cSJohn Baldwin 2375470e851cSJohn Baldwin if ((m->m_epg_flags & EPG_FLAG_ANON) == 0) 2376470e851cSJohn Baldwin ktls_finish_nonanon(m, state); 2377470e851cSJohn Baldwin 2378470e851cSJohn Baldwin so = state->so; 2379470e851cSJohn Baldwin free(state, M_KTLS); 2380470e851cSJohn Baldwin 2381470e851cSJohn Baldwin /* 2382470e851cSJohn Baldwin * Drop a reference to the session now that it is no longer 2383470e851cSJohn Baldwin * needed. Existing code depends on encrypted records having 2384470e851cSJohn Baldwin * no associated session vs yet-to-be-encrypted records having 2385470e851cSJohn Baldwin * an associated session. 2386470e851cSJohn Baldwin */ 2387470e851cSJohn Baldwin tls = m->m_epg_tls; 2388470e851cSJohn Baldwin m->m_epg_tls = NULL; 2389470e851cSJohn Baldwin ktls_free(tls); 2390470e851cSJohn Baldwin 2391470e851cSJohn Baldwin if (error != 0) 2392470e851cSJohn Baldwin counter_u64_add(ktls_offload_failed_crypto, 1); 2393470e851cSJohn Baldwin 2394470e851cSJohn Baldwin CURVNET_SET(so->so_vnet); 2395470e851cSJohn Baldwin npages = m->m_epg_nrdy; 2396470e851cSJohn Baldwin 2397470e851cSJohn Baldwin if (error == 0) { 2398470e851cSJohn Baldwin (void)(*so->so_proto->pr_usrreqs->pru_ready)(so, m, npages); 2399470e851cSJohn Baldwin } else { 2400470e851cSJohn Baldwin so->so_proto->pr_usrreqs->pru_abort(so); 2401470e851cSJohn Baldwin so->so_error = EIO; 2402470e851cSJohn Baldwin mb_free_notready(m, npages); 2403470e851cSJohn Baldwin } 2404470e851cSJohn Baldwin 2405470e851cSJohn Baldwin SOCK_LOCK(so); 2406470e851cSJohn Baldwin sorele(so); 2407470e851cSJohn Baldwin CURVNET_RESTORE(); 2408470e851cSJohn Baldwin } 2409470e851cSJohn Baldwin 2410470e851cSJohn Baldwin /* 2411470e851cSJohn Baldwin * Similar to ktls_encrypt, but used with asynchronous OCF backends 2412470e851cSJohn Baldwin * (coprocessors) where encryption does not use host CPU resources and 2413470e851cSJohn Baldwin * it can be beneficial to queue more requests than CPUs. 2414470e851cSJohn Baldwin */ 2415470e851cSJohn Baldwin static __noinline void 2416470e851cSJohn Baldwin ktls_encrypt_async(struct ktls_wq *wq, struct mbuf *top) 2417470e851cSJohn Baldwin { 2418470e851cSJohn Baldwin struct ktls_ocf_encrypt_state *state; 2419470e851cSJohn Baldwin struct ktls_session *tls; 2420470e851cSJohn Baldwin struct socket *so; 2421470e851cSJohn Baldwin struct mbuf *m, *n; 2422470e851cSJohn Baldwin int error, mpages, npages, total_pages; 2423470e851cSJohn Baldwin 2424470e851cSJohn Baldwin so = top->m_epg_so; 2425470e851cSJohn Baldwin tls = top->m_epg_tls; 2426470e851cSJohn Baldwin KASSERT(tls != NULL, ("tls = NULL, top = %p\n", top)); 2427470e851cSJohn Baldwin KASSERT(so != NULL, ("so = NULL, top = %p\n", top)); 2428470e851cSJohn Baldwin #ifdef INVARIANTS 2429470e851cSJohn Baldwin top->m_epg_so = NULL; 2430470e851cSJohn Baldwin #endif 2431470e851cSJohn Baldwin total_pages = top->m_epg_enc_cnt; 2432470e851cSJohn Baldwin npages = 0; 2433470e851cSJohn Baldwin 2434470e851cSJohn Baldwin error = 0; 2435470e851cSJohn Baldwin for (m = top; npages != total_pages; m = n) { 2436470e851cSJohn Baldwin KASSERT(m->m_epg_tls == tls, 2437470e851cSJohn Baldwin ("different TLS sessions in a single mbuf chain: %p vs %p", 2438470e851cSJohn Baldwin tls, m->m_epg_tls)); 2439470e851cSJohn Baldwin KASSERT(npages + m->m_epg_npgs <= total_pages, 2440470e851cSJohn Baldwin ("page count mismatch: top %p, total_pages %d, m %p", top, 2441470e851cSJohn Baldwin total_pages, m)); 2442470e851cSJohn Baldwin 2443470e851cSJohn Baldwin state = malloc(sizeof(*state), M_KTLS, M_WAITOK | M_ZERO); 2444470e851cSJohn Baldwin soref(so); 2445470e851cSJohn Baldwin state->so = so; 2446470e851cSJohn Baldwin state->m = m; 2447470e851cSJohn Baldwin 2448470e851cSJohn Baldwin mpages = m->m_epg_nrdy; 2449470e851cSJohn Baldwin n = m->m_next; 2450470e851cSJohn Baldwin 2451470e851cSJohn Baldwin error = ktls_encrypt_record(wq, m, tls, state); 2452470e851cSJohn Baldwin if (error) { 2453470e851cSJohn Baldwin counter_u64_add(ktls_offload_failed_crypto, 1); 2454470e851cSJohn Baldwin free(state, M_KTLS); 2455470e851cSJohn Baldwin CURVNET_SET(so->so_vnet); 2456470e851cSJohn Baldwin SOCK_LOCK(so); 2457470e851cSJohn Baldwin sorele(so); 2458470e851cSJohn Baldwin CURVNET_RESTORE(); 2459470e851cSJohn Baldwin break; 2460470e851cSJohn Baldwin } 2461470e851cSJohn Baldwin 2462470e851cSJohn Baldwin npages += mpages; 2463470e851cSJohn Baldwin } 2464470e851cSJohn Baldwin 2465470e851cSJohn Baldwin CURVNET_SET(so->so_vnet); 2466470e851cSJohn Baldwin if (error != 0) { 2467470e851cSJohn Baldwin so->so_proto->pr_usrreqs->pru_abort(so); 2468470e851cSJohn Baldwin so->so_error = EIO; 2469470e851cSJohn Baldwin mb_free_notready(m, total_pages - npages); 2470470e851cSJohn Baldwin } 2471470e851cSJohn Baldwin 2472470e851cSJohn Baldwin SOCK_LOCK(so); 2473470e851cSJohn Baldwin sorele(so); 2474470e851cSJohn Baldwin CURVNET_RESTORE(); 2475470e851cSJohn Baldwin } 2476470e851cSJohn Baldwin 2477a72ee355SJohn Baldwin static int 2478a72ee355SJohn Baldwin ktls_bind_domain(int domain) 2479a72ee355SJohn Baldwin { 2480a72ee355SJohn Baldwin int error; 2481a72ee355SJohn Baldwin 2482a72ee355SJohn Baldwin error = cpuset_setthread(curthread->td_tid, &cpuset_domain[domain]); 2483a72ee355SJohn Baldwin if (error != 0) 2484a72ee355SJohn Baldwin return (error); 2485a72ee355SJohn Baldwin curthread->td_domain.dr_policy = DOMAINSET_PREF(domain); 2486a72ee355SJohn Baldwin return (0); 2487a72ee355SJohn Baldwin } 2488a72ee355SJohn Baldwin 2489b2e60773SJohn Baldwin static void 249098215005SAndrew Gallatin ktls_alloc_thread(void *ctx) 249198215005SAndrew Gallatin { 249298215005SAndrew Gallatin struct ktls_domain_info *ktls_domain = ctx; 249398215005SAndrew Gallatin struct ktls_alloc_thread *sc = &ktls_domain->alloc_td; 249498215005SAndrew Gallatin void **buf; 249598215005SAndrew Gallatin struct sysctl_oid *oid; 249698215005SAndrew Gallatin char name[80]; 2497a72ee355SJohn Baldwin int domain, error, i, nbufs; 249898215005SAndrew Gallatin 2499a72ee355SJohn Baldwin domain = ktls_domain - ktls_domains; 250098215005SAndrew Gallatin if (bootverbose) 2501a72ee355SJohn Baldwin printf("Starting KTLS alloc thread for domain %d\n", domain); 2502a72ee355SJohn Baldwin error = ktls_bind_domain(domain); 2503a72ee355SJohn Baldwin if (error) 2504a72ee355SJohn Baldwin printf("Unable to bind KTLS alloc thread for domain %d: error %d\n", 2505a72ee355SJohn Baldwin domain, error); 2506a72ee355SJohn Baldwin snprintf(name, sizeof(name), "domain%d", domain); 250798215005SAndrew Gallatin oid = SYSCTL_ADD_NODE(NULL, SYSCTL_STATIC_CHILDREN(_kern_ipc_tls), OID_AUTO, 250898215005SAndrew Gallatin name, CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, ""); 250998215005SAndrew Gallatin SYSCTL_ADD_U64(NULL, SYSCTL_CHILDREN(oid), OID_AUTO, "allocs", 251098215005SAndrew Gallatin CTLFLAG_RD, &sc->allocs, 0, "buffers allocated"); 251198215005SAndrew Gallatin SYSCTL_ADD_U64(NULL, SYSCTL_CHILDREN(oid), OID_AUTO, "wakeups", 251298215005SAndrew Gallatin CTLFLAG_RD, &sc->wakeups, 0, "thread wakeups"); 251398215005SAndrew Gallatin SYSCTL_ADD_INT(NULL, SYSCTL_CHILDREN(oid), OID_AUTO, "running", 251498215005SAndrew Gallatin CTLFLAG_RD, &sc->running, 0, "thread running"); 251598215005SAndrew Gallatin 251698215005SAndrew Gallatin buf = NULL; 251798215005SAndrew Gallatin nbufs = 0; 251898215005SAndrew Gallatin for (;;) { 251998215005SAndrew Gallatin atomic_store_int(&sc->running, 0); 252009066b98SAndrew Gallatin tsleep(sc, PZERO | PNOLOCK, "-", 0); 252198215005SAndrew Gallatin atomic_store_int(&sc->running, 1); 252298215005SAndrew Gallatin sc->wakeups++; 252398215005SAndrew Gallatin if (nbufs != ktls_max_alloc) { 252498215005SAndrew Gallatin free(buf, M_KTLS); 252598215005SAndrew Gallatin nbufs = atomic_load_int(&ktls_max_alloc); 252698215005SAndrew Gallatin buf = malloc(sizeof(void *) * nbufs, M_KTLS, 252798215005SAndrew Gallatin M_WAITOK | M_ZERO); 252898215005SAndrew Gallatin } 252998215005SAndrew Gallatin /* 253098215005SAndrew Gallatin * Below we allocate nbufs with different allocation 253198215005SAndrew Gallatin * flags than we use when allocating normally during 253298215005SAndrew Gallatin * encryption in the ktls worker thread. We specify 253398215005SAndrew Gallatin * M_NORECLAIM in the worker thread. However, we omit 253498215005SAndrew Gallatin * that flag here and add M_WAITOK so that the VM 253598215005SAndrew Gallatin * system is permitted to perform expensive work to 253698215005SAndrew Gallatin * defragment memory. We do this here, as it does not 253798215005SAndrew Gallatin * matter if this thread blocks. If we block a ktls 253898215005SAndrew Gallatin * worker thread, we risk developing backlogs of 253998215005SAndrew Gallatin * buffers to be encrypted, leading to surges of 254098215005SAndrew Gallatin * traffic and potential NIC output drops. 254198215005SAndrew Gallatin */ 254298215005SAndrew Gallatin for (i = 0; i < nbufs; i++) { 254398215005SAndrew Gallatin buf[i] = uma_zalloc(ktls_buffer_zone, M_WAITOK); 254498215005SAndrew Gallatin sc->allocs++; 254598215005SAndrew Gallatin } 254698215005SAndrew Gallatin for (i = 0; i < nbufs; i++) { 254798215005SAndrew Gallatin uma_zfree(ktls_buffer_zone, buf[i]); 254898215005SAndrew Gallatin buf[i] = NULL; 254998215005SAndrew Gallatin } 255098215005SAndrew Gallatin } 255198215005SAndrew Gallatin } 255298215005SAndrew Gallatin 255398215005SAndrew Gallatin static void 2554b2e60773SJohn Baldwin ktls_work_thread(void *ctx) 2555b2e60773SJohn Baldwin { 2556b2e60773SJohn Baldwin struct ktls_wq *wq = ctx; 2557d90fe9d0SGleb Smirnoff struct mbuf *m, *n; 25583c0e5685SJohn Baldwin struct socket *so, *son; 25593c0e5685SJohn Baldwin STAILQ_HEAD(, mbuf) local_m_head; 25603c0e5685SJohn Baldwin STAILQ_HEAD(, socket) local_so_head; 2561a72ee355SJohn Baldwin int cpu; 2562a72ee355SJohn Baldwin 2563a72ee355SJohn Baldwin cpu = wq - ktls_wq; 2564a72ee355SJohn Baldwin if (bootverbose) 2565a72ee355SJohn Baldwin printf("Starting KTLS worker thread for CPU %d\n", cpu); 2566a72ee355SJohn Baldwin 2567a72ee355SJohn Baldwin /* 2568a72ee355SJohn Baldwin * Bind to a core. If ktls_bind_threads is > 1, then 2569a72ee355SJohn Baldwin * we bind to the NUMA domain instead. 2570a72ee355SJohn Baldwin */ 2571a72ee355SJohn Baldwin if (ktls_bind_threads) { 2572a72ee355SJohn Baldwin int error; 2573b2e60773SJohn Baldwin 257402bc3865SAndrew Gallatin if (ktls_bind_threads > 1) { 2575a72ee355SJohn Baldwin struct pcpu *pc = pcpu_find(cpu); 2576a72ee355SJohn Baldwin 2577a72ee355SJohn Baldwin error = ktls_bind_domain(pc->pc_domain); 2578a72ee355SJohn Baldwin } else { 2579a72ee355SJohn Baldwin cpuset_t mask; 2580a72ee355SJohn Baldwin 2581a72ee355SJohn Baldwin CPU_SETOF(cpu, &mask); 2582a72ee355SJohn Baldwin error = cpuset_setthread(curthread->td_tid, &mask); 2583a72ee355SJohn Baldwin } 2584a72ee355SJohn Baldwin if (error) 2585a72ee355SJohn Baldwin printf("Unable to bind KTLS worker thread for CPU %d: error %d\n", 2586a72ee355SJohn Baldwin cpu, error); 258702bc3865SAndrew Gallatin } 2588b2e60773SJohn Baldwin #if defined(__aarch64__) || defined(__amd64__) || defined(__i386__) 2589b2e60773SJohn Baldwin fpu_kern_thread(0); 2590b2e60773SJohn Baldwin #endif 2591b2e60773SJohn Baldwin for (;;) { 2592b2e60773SJohn Baldwin mtx_lock(&wq->mtx); 25933c0e5685SJohn Baldwin while (STAILQ_EMPTY(&wq->m_head) && 25943c0e5685SJohn Baldwin STAILQ_EMPTY(&wq->so_head)) { 2595b2e60773SJohn Baldwin wq->running = false; 2596b2e60773SJohn Baldwin mtx_sleep(wq, &wq->mtx, 0, "-", 0); 2597b2e60773SJohn Baldwin wq->running = true; 2598b2e60773SJohn Baldwin } 2599b2e60773SJohn Baldwin 26003c0e5685SJohn Baldwin STAILQ_INIT(&local_m_head); 26013c0e5685SJohn Baldwin STAILQ_CONCAT(&local_m_head, &wq->m_head); 26023c0e5685SJohn Baldwin STAILQ_INIT(&local_so_head); 26033c0e5685SJohn Baldwin STAILQ_CONCAT(&local_so_head, &wq->so_head); 2604b2e60773SJohn Baldwin mtx_unlock(&wq->mtx); 2605b2e60773SJohn Baldwin 26063c0e5685SJohn Baldwin STAILQ_FOREACH_SAFE(m, &local_m_head, m_epg_stailq, n) { 26077b6c99d0SGleb Smirnoff if (m->m_epg_flags & EPG_FLAG_2FREE) { 26087b6c99d0SGleb Smirnoff ktls_free(m->m_epg_tls); 2609904a08f3SMateusz Guzik m_free_raw(m); 2610eeec8348SGleb Smirnoff } else { 2611470e851cSJohn Baldwin if (m->m_epg_tls->sync_dispatch) 261249f6925cSMark Johnston ktls_encrypt(wq, m); 2613470e851cSJohn Baldwin else 2614470e851cSJohn Baldwin ktls_encrypt_async(wq, m); 26153c0e5685SJohn Baldwin counter_u64_add(ktls_cnt_tx_queued, -1); 2616b2e60773SJohn Baldwin } 2617b2e60773SJohn Baldwin } 26183c0e5685SJohn Baldwin 26193c0e5685SJohn Baldwin STAILQ_FOREACH_SAFE(so, &local_so_head, so_ktls_rx_list, son) { 26203c0e5685SJohn Baldwin ktls_decrypt(so); 26213c0e5685SJohn Baldwin counter_u64_add(ktls_cnt_rx_queued, -1); 26223c0e5685SJohn Baldwin } 2623b2e60773SJohn Baldwin } 2624b2e60773SJohn Baldwin } 262528d0a740SAndrew Gallatin 26264150a5a8SAndrew Gallatin #if defined(INET) || defined(INET6) 262728d0a740SAndrew Gallatin static void 262828d0a740SAndrew Gallatin ktls_disable_ifnet_help(void *context, int pending __unused) 262928d0a740SAndrew Gallatin { 263028d0a740SAndrew Gallatin struct ktls_session *tls; 263128d0a740SAndrew Gallatin struct inpcb *inp; 263228d0a740SAndrew Gallatin struct tcpcb *tp; 263328d0a740SAndrew Gallatin struct socket *so; 263428d0a740SAndrew Gallatin int err; 263528d0a740SAndrew Gallatin 263628d0a740SAndrew Gallatin tls = context; 263728d0a740SAndrew Gallatin inp = tls->inp; 263828d0a740SAndrew Gallatin if (inp == NULL) 263928d0a740SAndrew Gallatin return; 264028d0a740SAndrew Gallatin INP_WLOCK(inp); 264128d0a740SAndrew Gallatin so = inp->inp_socket; 264228d0a740SAndrew Gallatin MPASS(so != NULL); 264328d0a740SAndrew Gallatin if ((inp->inp_flags & (INP_TIMEWAIT | INP_DROPPED)) || 264428d0a740SAndrew Gallatin (inp->inp_flags2 & INP_FREED)) { 264528d0a740SAndrew Gallatin goto out; 264628d0a740SAndrew Gallatin } 264728d0a740SAndrew Gallatin 264828d0a740SAndrew Gallatin if (so->so_snd.sb_tls_info != NULL) 264928d0a740SAndrew Gallatin err = ktls_set_tx_mode(so, TCP_TLS_MODE_SW); 265028d0a740SAndrew Gallatin else 265128d0a740SAndrew Gallatin err = ENXIO; 265228d0a740SAndrew Gallatin if (err == 0) { 265328d0a740SAndrew Gallatin counter_u64_add(ktls_ifnet_disable_ok, 1); 265428d0a740SAndrew Gallatin /* ktls_set_tx_mode() drops inp wlock, so recheck flags */ 265528d0a740SAndrew Gallatin if ((inp->inp_flags & (INP_TIMEWAIT | INP_DROPPED)) == 0 && 265628d0a740SAndrew Gallatin (inp->inp_flags2 & INP_FREED) == 0 && 265728d0a740SAndrew Gallatin (tp = intotcpcb(inp)) != NULL && 265828d0a740SAndrew Gallatin tp->t_fb->tfb_hwtls_change != NULL) 265928d0a740SAndrew Gallatin (*tp->t_fb->tfb_hwtls_change)(tp, 0); 266028d0a740SAndrew Gallatin } else { 266128d0a740SAndrew Gallatin counter_u64_add(ktls_ifnet_disable_fail, 1); 266228d0a740SAndrew Gallatin } 266328d0a740SAndrew Gallatin 266428d0a740SAndrew Gallatin out: 266528d0a740SAndrew Gallatin SOCK_LOCK(so); 266628d0a740SAndrew Gallatin sorele(so); 266728d0a740SAndrew Gallatin if (!in_pcbrele_wlocked(inp)) 266828d0a740SAndrew Gallatin INP_WUNLOCK(inp); 266928d0a740SAndrew Gallatin ktls_free(tls); 267028d0a740SAndrew Gallatin } 267128d0a740SAndrew Gallatin 267228d0a740SAndrew Gallatin /* 267328d0a740SAndrew Gallatin * Called when re-transmits are becoming a substantial portion of the 267428d0a740SAndrew Gallatin * sends on this connection. When this happens, we transition the 267528d0a740SAndrew Gallatin * connection to software TLS. This is needed because most inline TLS 267628d0a740SAndrew Gallatin * NICs keep crypto state only for in-order transmits. This means 267728d0a740SAndrew Gallatin * that to handle a TCP rexmit (which is out-of-order), the NIC must 267828d0a740SAndrew Gallatin * re-DMA the entire TLS record up to and including the current 267928d0a740SAndrew Gallatin * segment. This means that when re-transmitting the last ~1448 byte 268028d0a740SAndrew Gallatin * segment of a 16KB TLS record, we could wind up re-DMA'ing an order 268128d0a740SAndrew Gallatin * of magnitude more data than we are sending. This can cause the 268228d0a740SAndrew Gallatin * PCIe link to saturate well before the network, which can cause 268328d0a740SAndrew Gallatin * output drops, and a general loss of capacity. 268428d0a740SAndrew Gallatin */ 268528d0a740SAndrew Gallatin void 268628d0a740SAndrew Gallatin ktls_disable_ifnet(void *arg) 268728d0a740SAndrew Gallatin { 268828d0a740SAndrew Gallatin struct tcpcb *tp; 268928d0a740SAndrew Gallatin struct inpcb *inp; 269028d0a740SAndrew Gallatin struct socket *so; 269128d0a740SAndrew Gallatin struct ktls_session *tls; 269228d0a740SAndrew Gallatin 269328d0a740SAndrew Gallatin tp = arg; 269428d0a740SAndrew Gallatin inp = tp->t_inpcb; 269528d0a740SAndrew Gallatin INP_WLOCK_ASSERT(inp); 269628d0a740SAndrew Gallatin so = inp->inp_socket; 269728d0a740SAndrew Gallatin SOCK_LOCK(so); 269828d0a740SAndrew Gallatin tls = so->so_snd.sb_tls_info; 269928d0a740SAndrew Gallatin if (tls->disable_ifnet_pending) { 270028d0a740SAndrew Gallatin SOCK_UNLOCK(so); 270128d0a740SAndrew Gallatin return; 270228d0a740SAndrew Gallatin } 270328d0a740SAndrew Gallatin 270428d0a740SAndrew Gallatin /* 270528d0a740SAndrew Gallatin * note that disable_ifnet_pending is never cleared; disabling 270628d0a740SAndrew Gallatin * ifnet can only be done once per session, so we never want 270728d0a740SAndrew Gallatin * to do it again 270828d0a740SAndrew Gallatin */ 270928d0a740SAndrew Gallatin 271028d0a740SAndrew Gallatin (void)ktls_hold(tls); 271128d0a740SAndrew Gallatin in_pcbref(inp); 271228d0a740SAndrew Gallatin soref(so); 271328d0a740SAndrew Gallatin tls->disable_ifnet_pending = true; 271428d0a740SAndrew Gallatin tls->inp = inp; 271528d0a740SAndrew Gallatin SOCK_UNLOCK(so); 271628d0a740SAndrew Gallatin TASK_INIT(&tls->disable_ifnet_task, 0, ktls_disable_ifnet_help, tls); 271728d0a740SAndrew Gallatin (void)taskqueue_enqueue(taskqueue_thread, &tls->disable_ifnet_task); 271828d0a740SAndrew Gallatin } 27194150a5a8SAndrew Gallatin #endif 2720