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29 #include <sys/param.h>
31 #include <sys/systm.h>
32 #include <sys/kernel.h>
34 #include <sys/mcache.h>
35 #include <sys/resourcevar.h>
36 #include <sys/socket.h>
37 #include <sys/socketvar.h>
38 #include <sys/syslog.h>
39 #include <sys/domain.h>
40 #include <sys/protosw.h>
41 #include <sys/sysctl.h>
43 #include <kern/zalloc.h>
44 #include <kern/locks.h>
46 #include <mach/thread_act.h>
50 #include <net/if_var.h>
51 #include <netinet/in.h>
52 #include <netinet/in_pcb.h>
53 #include <netinet/in_var.h>
54 #include <netinet/tcp.h>
55 #include <netinet/tcp_fsm.h>
56 #include <netinet/tcp_seq.h>
57 #include <netinet/tcp_var.h>
58 #include <netinet/mptcp_var.h>
59 #include <netinet/mptcp.h>
60 #include <netinet/mptcp_seq.h>
61 #include <netinet/mptcp_timer.h>
62 #include <libkern/crypto/sha1.h>
64 #include <netinet6/in6_pcb.h>
65 #include <netinet6/ip6protosw.h>
67 #include <dev/random/randomdev.h>
70 * Notes on MPTCP implementation.
72 * MPTCP is implemented as <SOCK_STREAM,IPPROTO_TCP> protocol in PF_MULTIPATH
73 * communication domain. The structure mtcbinfo describes the MPTCP instance
74 * of a Multipath protocol in that domain. It is used to keep track of all
75 * MPTCP PCB instances in the system, and is protected by the global lock
78 * An MPTCP socket is opened by calling socket(PF_MULTIPATH, SOCK_STREAM,
79 * IPPROTO_TCP). Upon success, a Multipath PCB gets allocated and along with
80 * it comes an MPTCP Session and an MPTCP PCB. All three structures are
81 * allocated from the same memory block, and each structure has a pointer
82 * to the adjacent ones. The layout is defined by the mpp_mtp structure.
83 * The socket lock (mpp_lock) is used to protect accesses to the Multipath
84 * PCB (mppcb) as well as the MPTCP Session (mptses).
86 * The MPTCP Session is an MPTCP-specific extension to the Multipath PCB;
87 * in particular, the list of subflows as well as the MPTCP thread.
89 * A functioning MPTCP Session consists of one or more subflow sockets. Each
90 * subflow socket is essentially a regular PF_INET/PF_INET6 TCP socket, and is
91 * represented by the mptsub structure. Because each subflow requires access
92 * to the MPTCP Session, the MPTCP socket's so_usecount is bumped up for each
93 * subflow. This gets decremented prior to the subflow's destruction. The
94 * subflow lock (mpts_lock) is used to protect accesses to the subflow.
96 * To handle events (read, write, control) from the subflows, an MPTCP thread
97 * is created; currently, there is one thread per MPTCP Session. In order to
98 * prevent the MPTCP socket from being destroyed while being accessed by the
99 * MPTCP thread, we bump up the MPTCP socket's so_usecount for the thread,
100 * which will be decremented prior to the thread's termination. The thread
101 * lock (mpte_thread_lock) is used to synchronize its signalling.
103 * Lock ordering is defined as follows:
105 * mtcbinfo (mppi_lock)
111 * It is not a requirement that all of the above locks need to be acquired
112 * in succession, but the correct lock ordering must be followed when there
113 * are more than one locks that need to be held. The MPTCP thread lock is
114 * is not constrained by this arrangement, because none of the other locks
115 * is ever acquired while holding mpte_thread_lock; therefore it may be called
116 * at any moment to signal the thread.
118 * An MPTCP socket will be destroyed when its so_usecount drops to zero; this
119 * work is done by the MPTCP garbage collector which is invoked on demand by
120 * the PF_MULTIPATH garbage collector. This process will take place once all
121 * of the subflows have been destroyed, and the MPTCP thread be instructed to
125 static void mptcp_sesdestroy(struct mptses
*);
126 static void mptcp_thread_signal_locked(struct mptses
*);
127 static void mptcp_thread_terminate_signal(struct mptses
*);
128 static void mptcp_thread_dowork(struct mptses
*);
129 static void mptcp_thread_func(void *, wait_result_t
);
130 static void mptcp_thread_destroy(struct mptses
*);
131 static void mptcp_key_pool_init(void);
132 static void mptcp_attach_to_subf(struct socket
*, struct mptcb
*, uint8_t);
133 static void mptcp_detach_mptcb_from_subf(struct mptcb
*, struct socket
*);
134 static void mptcp_conn_properties(struct mptcb
*);
136 static uint32_t mptcp_gc(struct mppcbinfo
*);
137 static int mptcp_subflow_socreate(struct mptses
*, struct mptsub
*,
138 int, struct proc
*, struct socket
**);
139 static int mptcp_subflow_soclose(struct mptsub
*, struct socket
*);
140 static int mptcp_subflow_soconnectx(struct mptses
*, struct mptsub
*);
141 static int mptcp_subflow_soreceive(struct socket
*, struct sockaddr
**,
142 struct uio
*, struct mbuf
**, struct mbuf
**, int *);
143 static void mptcp_subflow_rupcall(struct socket
*, void *, int);
144 static void mptcp_subflow_input(struct mptses
*, struct mptsub
*);
145 static void mptcp_subflow_wupcall(struct socket
*, void *, int);
146 static void mptcp_subflow_eupcall(struct socket
*, void *, uint32_t);
147 static void mptcp_update_last_owner(struct mptsub
*, struct socket
*);
148 static void mptcp_output_needed(struct mptses
*mpte
, struct mptsub
*to_mpts
);
149 static void mptcp_get_rtt_measurement(struct mptsub
*, struct mptses
*);
150 static void mptcp_drop_tfo_data(struct mptses
*, struct mptsub
*);
153 * Possible return values for subflow event handlers. Note that success
154 * values must be greater or equal than MPTS_EVRET_OK. Values less than that
155 * indicate errors or actions which require immediate attention; they will
156 * prevent the rest of the handlers from processing their respective events
157 * until the next round of events processing.
160 MPTS_EVRET_DELETE
= 1, /* delete this subflow */
161 MPTS_EVRET_OK
= 2, /* OK */
162 MPTS_EVRET_CONNECT_PENDING
= 3, /* resume pended connects */
163 MPTS_EVRET_DISCONNECT_FALLBACK
= 4, /* abort all but preferred */
166 static ev_ret_t
mptcp_subflow_events(struct mptses
*, struct mptsub
*, uint64_t *);
167 static ev_ret_t
mptcp_subflow_connreset_ev(struct mptses
*, struct mptsub
*, uint64_t *);
168 static ev_ret_t
mptcp_subflow_cantrcvmore_ev(struct mptses
*, struct mptsub
*, uint64_t *);
169 static ev_ret_t
mptcp_subflow_cantsendmore_ev(struct mptses
*, struct mptsub
*, uint64_t *);
170 static ev_ret_t
mptcp_subflow_timeout_ev(struct mptses
*, struct mptsub
*, uint64_t *);
171 static ev_ret_t
mptcp_subflow_nosrcaddr_ev(struct mptses
*, struct mptsub
*, uint64_t *);
172 static ev_ret_t
mptcp_subflow_failover_ev(struct mptses
*, struct mptsub
*, uint64_t *);
173 static ev_ret_t
mptcp_subflow_ifdenied_ev(struct mptses
*, struct mptsub
*, uint64_t *);
174 static ev_ret_t
mptcp_subflow_suspend_ev(struct mptses
*, struct mptsub
*, uint64_t *);
175 static ev_ret_t
mptcp_subflow_resume_ev(struct mptses
*, struct mptsub
*, uint64_t *);
176 static ev_ret_t
mptcp_subflow_connected_ev(struct mptses
*, struct mptsub
*, uint64_t *);
177 static ev_ret_t
mptcp_subflow_disconnected_ev(struct mptses
*, struct mptsub
*, uint64_t *);
178 static ev_ret_t
mptcp_subflow_mpstatus_ev(struct mptses
*, struct mptsub
*, uint64_t *);
179 static ev_ret_t
mptcp_subflow_mustrst_ev(struct mptses
*, struct mptsub
*, uint64_t *);
180 static ev_ret_t
mptcp_fastjoin_ev(struct mptses
*, struct mptsub
*, uint64_t *);
181 static ev_ret_t
mptcp_deleteok_ev(struct mptses
*, struct mptsub
*, uint64_t *);
182 static ev_ret_t
mptcp_subflow_mpcantrcvmore_ev(struct mptses
*, struct mptsub
*, uint64_t *);
184 static const char *mptcp_evret2str(ev_ret_t
);
186 static mptcp_key_t
*mptcp_reserve_key(void);
187 static int mptcp_do_sha1(mptcp_key_t
*, char *, int);
188 static void mptcp_init_local_parms(struct mptcb
*);
190 static unsigned int mptsub_zone_size
; /* size of mptsub */
191 static struct zone
*mptsub_zone
; /* zone for mptsub */
193 static unsigned int mptopt_zone_size
; /* size of mptopt */
194 static struct zone
*mptopt_zone
; /* zone for mptopt */
196 static unsigned int mpt_subauth_entry_size
; /* size of subf auth entry */
197 static struct zone
*mpt_subauth_zone
; /* zone of subf auth entry */
199 struct mppcbinfo mtcbinfo
;
201 static struct mptcp_keys_pool_head mptcp_keys_pool
;
203 #define MPTCP_SUBFLOW_WRITELEN (8 * 1024) /* bytes to write each time */
204 #define MPTCP_SUBFLOW_READLEN (8 * 1024) /* bytes to read each time */
206 SYSCTL_DECL(_net_inet
);
208 SYSCTL_NODE(_net_inet
, OID_AUTO
, mptcp
, CTLFLAG_RW
|CTLFLAG_LOCKED
, 0, "MPTCP");
210 uint32_t mptcp_dbg_area
= 0; /* more noise if greater than 1 */
211 SYSCTL_UINT(_net_inet_mptcp
, OID_AUTO
, dbg_area
, CTLFLAG_RW
|CTLFLAG_LOCKED
,
212 &mptcp_dbg_area
, 0, "MPTCP debug area");
214 uint32_t mptcp_dbg_level
= 0;
215 SYSCTL_INT(_net_inet_mptcp
, OID_AUTO
, dbg_level
, CTLFLAG_RW
| CTLFLAG_LOCKED
,
216 &mptcp_dbg_level
, 0, "MPTCP debug level");
219 SYSCTL_UINT(_net_inet_mptcp
, OID_AUTO
, pcbcount
, CTLFLAG_RD
|CTLFLAG_LOCKED
,
220 &mtcbinfo
.mppi_count
, 0, "Number of active PCBs");
223 * Since there is one kernel thread per mptcp socket, imposing an artificial
224 * limit on number of allowed mptcp sockets.
226 uint32_t mptcp_socket_limit
= MPPCB_LIMIT
;
227 SYSCTL_UINT(_net_inet_mptcp
, OID_AUTO
, sk_lim
, CTLFLAG_RW
|CTLFLAG_LOCKED
,
228 &mptcp_socket_limit
, 0, "MPTCP socket limit");
231 * SYSCTL to turn on delayed cellular subflow start.
233 uint32_t mptcp_delayed_subf_start
= 0;
234 SYSCTL_UINT(_net_inet_mptcp
, OID_AUTO
, delayed
, CTLFLAG_RW
|CTLFLAG_LOCKED
,
235 &mptcp_delayed_subf_start
, 0, "MPTCP Delayed Subflow start");
238 * sysctl to use network status hints from symptomsd
240 uint32_t mptcp_use_symptomsd
= 1;
241 SYSCTL_UINT(_net_inet_mptcp
, OID_AUTO
, usesymptoms
, CTLFLAG_RW
|CTLFLAG_LOCKED
,
242 &mptcp_use_symptomsd
, 0, "MPTCP Use SymptomsD");
244 static struct protosw mptcp_subflow_protosw
;
245 static struct pr_usrreqs mptcp_subflow_usrreqs
;
247 static struct ip6protosw mptcp_subflow_protosw6
;
248 static struct pr_usrreqs mptcp_subflow_usrreqs6
;
251 typedef struct mptcp_subflow_event_entry
{
252 uint64_t sofilt_hint_mask
;
253 ev_ret_t (*sofilt_hint_ev_hdlr
)(
256 uint64_t *p_mpsofilt_hint
);
260 * XXX The order of the event handlers below is really
262 * SO_FILT_HINT_DELETEOK event has to be handled first,
263 * else we may end up missing on this event.
264 * Please read radar://24043716 for more details.
266 static mptsub_ev_entry_t mpsub_ev_entry_tbl
[] = {
268 .sofilt_hint_mask
= SO_FILT_HINT_DELETEOK
,
269 .sofilt_hint_ev_hdlr
= mptcp_deleteok_ev
,
272 .sofilt_hint_mask
= SO_FILT_HINT_MPCANTRCVMORE
,
273 .sofilt_hint_ev_hdlr
= mptcp_subflow_mpcantrcvmore_ev
,
276 .sofilt_hint_mask
= SO_FILT_HINT_MPFAILOVER
,
277 .sofilt_hint_ev_hdlr
= mptcp_subflow_failover_ev
,
280 .sofilt_hint_mask
= SO_FILT_HINT_CONNRESET
,
281 .sofilt_hint_ev_hdlr
= mptcp_subflow_connreset_ev
,
284 .sofilt_hint_mask
= SO_FILT_HINT_MUSTRST
,
285 .sofilt_hint_ev_hdlr
= mptcp_subflow_mustrst_ev
,
288 .sofilt_hint_mask
= SO_FILT_HINT_CANTRCVMORE
,
289 .sofilt_hint_ev_hdlr
= mptcp_subflow_cantrcvmore_ev
,
291 { .sofilt_hint_mask
= SO_FILT_HINT_CANTSENDMORE
,
292 .sofilt_hint_ev_hdlr
= mptcp_subflow_cantsendmore_ev
,
295 .sofilt_hint_mask
= SO_FILT_HINT_TIMEOUT
,
296 .sofilt_hint_ev_hdlr
= mptcp_subflow_timeout_ev
,
299 .sofilt_hint_mask
= SO_FILT_HINT_NOSRCADDR
,
300 .sofilt_hint_ev_hdlr
= mptcp_subflow_nosrcaddr_ev
,
303 .sofilt_hint_mask
= SO_FILT_HINT_IFDENIED
,
304 .sofilt_hint_ev_hdlr
= mptcp_subflow_ifdenied_ev
,
307 .sofilt_hint_mask
= SO_FILT_HINT_SUSPEND
,
308 .sofilt_hint_ev_hdlr
= mptcp_subflow_suspend_ev
,
311 .sofilt_hint_mask
= SO_FILT_HINT_RESUME
,
312 .sofilt_hint_ev_hdlr
= mptcp_subflow_resume_ev
,
315 .sofilt_hint_mask
= SO_FILT_HINT_CONNECTED
,
316 .sofilt_hint_ev_hdlr
= mptcp_subflow_connected_ev
,
319 .sofilt_hint_mask
= SO_FILT_HINT_MPSTATUS
,
320 .sofilt_hint_ev_hdlr
= mptcp_subflow_mpstatus_ev
,
323 .sofilt_hint_mask
= SO_FILT_HINT_DISCONNECTED
,
324 .sofilt_hint_ev_hdlr
= mptcp_subflow_disconnected_ev
,
327 .sofilt_hint_mask
= SO_FILT_HINT_MPFASTJ
,
328 .sofilt_hint_ev_hdlr
= mptcp_fastjoin_ev
,
333 * Protocol pr_init callback.
336 mptcp_init(struct protosw
*pp
, struct domain
*dp
)
339 static int mptcp_initialized
= 0;
342 struct ip6protosw
*prp6
;
345 VERIFY((pp
->pr_flags
& (PR_INITIALIZED
|PR_ATTACHED
)) == PR_ATTACHED
);
347 /* do this only once */
348 if (mptcp_initialized
)
350 mptcp_initialized
= 1;
353 * Since PF_MULTIPATH gets initialized after PF_INET/INET6,
354 * we must be able to find IPPROTO_TCP entries for both.
356 prp
= pffindproto_locked(PF_INET
, IPPROTO_TCP
, SOCK_STREAM
);
358 bcopy(prp
, &mptcp_subflow_protosw
, sizeof (*prp
));
359 bcopy(prp
->pr_usrreqs
, &mptcp_subflow_usrreqs
,
360 sizeof (mptcp_subflow_usrreqs
));
361 mptcp_subflow_protosw
.pr_entry
.tqe_next
= NULL
;
362 mptcp_subflow_protosw
.pr_entry
.tqe_prev
= NULL
;
363 mptcp_subflow_protosw
.pr_usrreqs
= &mptcp_subflow_usrreqs
;
364 mptcp_subflow_usrreqs
.pru_soreceive
= mptcp_subflow_soreceive
;
365 mptcp_subflow_usrreqs
.pru_rcvoob
= pru_rcvoob_notsupp
;
367 * Socket filters shouldn't attach/detach to/from this protosw
368 * since pr_protosw is to be used instead, which points to the
369 * real protocol; if they do, it is a bug and we should panic.
371 mptcp_subflow_protosw
.pr_filter_head
.tqh_first
=
372 (struct socket_filter
*)(uintptr_t)0xdeadbeefdeadbeef;
373 mptcp_subflow_protosw
.pr_filter_head
.tqh_last
=
374 (struct socket_filter
**)(uintptr_t)0xdeadbeefdeadbeef;
377 prp6
= (struct ip6protosw
*)pffindproto_locked(PF_INET6
,
378 IPPROTO_TCP
, SOCK_STREAM
);
379 VERIFY(prp6
!= NULL
);
380 bcopy(prp6
, &mptcp_subflow_protosw6
, sizeof (*prp6
));
381 bcopy(prp6
->pr_usrreqs
, &mptcp_subflow_usrreqs6
,
382 sizeof (mptcp_subflow_usrreqs6
));
383 mptcp_subflow_protosw6
.pr_entry
.tqe_next
= NULL
;
384 mptcp_subflow_protosw6
.pr_entry
.tqe_prev
= NULL
;
385 mptcp_subflow_protosw6
.pr_usrreqs
= &mptcp_subflow_usrreqs6
;
386 mptcp_subflow_usrreqs6
.pru_soreceive
= mptcp_subflow_soreceive
;
387 mptcp_subflow_usrreqs6
.pru_rcvoob
= pru_rcvoob_notsupp
;
389 * Socket filters shouldn't attach/detach to/from this protosw
390 * since pr_protosw is to be used instead, which points to the
391 * real protocol; if they do, it is a bug and we should panic.
393 mptcp_subflow_protosw6
.pr_filter_head
.tqh_first
=
394 (struct socket_filter
*)(uintptr_t)0xdeadbeefdeadbeef;
395 mptcp_subflow_protosw6
.pr_filter_head
.tqh_last
=
396 (struct socket_filter
**)(uintptr_t)0xdeadbeefdeadbeef;
399 bzero(&mtcbinfo
, sizeof (mtcbinfo
));
400 TAILQ_INIT(&mtcbinfo
.mppi_pcbs
);
401 mtcbinfo
.mppi_size
= sizeof (struct mpp_mtp
);
402 if ((mtcbinfo
.mppi_zone
= zinit(mtcbinfo
.mppi_size
,
403 1024 * mtcbinfo
.mppi_size
, 8192, "mptcb")) == NULL
) {
404 panic("%s: unable to allocate MPTCP PCB zone\n", __func__
);
407 zone_change(mtcbinfo
.mppi_zone
, Z_CALLERACCT
, FALSE
);
408 zone_change(mtcbinfo
.mppi_zone
, Z_EXPAND
, TRUE
);
410 mtcbinfo
.mppi_lock_grp_attr
= lck_grp_attr_alloc_init();
411 mtcbinfo
.mppi_lock_grp
= lck_grp_alloc_init("mppcb",
412 mtcbinfo
.mppi_lock_grp_attr
);
413 mtcbinfo
.mppi_lock_attr
= lck_attr_alloc_init();
414 lck_mtx_init(&mtcbinfo
.mppi_lock
, mtcbinfo
.mppi_lock_grp
,
415 mtcbinfo
.mppi_lock_attr
);
417 mtcbinfo
.mppi_gc
= mptcp_gc
;
418 mtcbinfo
.mppi_timer
= mptcp_timer
;
419 mtcbinfo
.mppi_pcbe_create
= mptcp_sescreate
;
421 /* attach to MP domain for garbage collection to take place */
422 mp_pcbinfo_attach(&mtcbinfo
);
424 mptsub_zone_size
= sizeof (struct mptsub
);
425 if ((mptsub_zone
= zinit(mptsub_zone_size
, 1024 * mptsub_zone_size
,
426 8192, "mptsub")) == NULL
) {
427 panic("%s: unable to allocate MPTCP subflow zone\n", __func__
);
430 zone_change(mptsub_zone
, Z_CALLERACCT
, FALSE
);
431 zone_change(mptsub_zone
, Z_EXPAND
, TRUE
);
433 mptopt_zone_size
= sizeof (struct mptopt
);
434 if ((mptopt_zone
= zinit(mptopt_zone_size
, 128 * mptopt_zone_size
,
435 1024, "mptopt")) == NULL
) {
436 panic("%s: unable to allocate MPTCP option zone\n", __func__
);
439 zone_change(mptopt_zone
, Z_CALLERACCT
, FALSE
);
440 zone_change(mptopt_zone
, Z_EXPAND
, TRUE
);
442 mpt_subauth_entry_size
= sizeof (struct mptcp_subf_auth_entry
);
443 if ((mpt_subauth_zone
= zinit(mpt_subauth_entry_size
,
444 1024 * mpt_subauth_entry_size
, 8192, "mptauth")) == NULL
) {
445 panic("%s: unable to allocate MPTCP address auth zone \n",
449 zone_change(mpt_subauth_zone
, Z_CALLERACCT
, FALSE
);
450 zone_change(mpt_subauth_zone
, Z_EXPAND
, TRUE
);
452 /* Set up a list of unique keys */
453 mptcp_key_pool_init();
457 * Create an MPTCP session, called as a result of opening a MPTCP socket.
460 mptcp_sescreate(struct socket
*mp_so
, struct mppcb
*mpp
)
462 struct mppcbinfo
*mppi
;
468 mppi
= mpp
->mpp_pcbinfo
;
469 VERIFY(mppi
!= NULL
);
471 __IGNORE_WCASTALIGN(mpte
= &((struct mpp_mtp
*)mpp
)->mpp_ses
);
472 __IGNORE_WCASTALIGN(mp_tp
= &((struct mpp_mtp
*)mpp
)->mtcb
);
474 /* MPTCP Multipath PCB Extension */
475 bzero(mpte
, sizeof (*mpte
));
476 VERIFY(mpp
->mpp_pcbe
== NULL
);
477 mpp
->mpp_pcbe
= mpte
;
478 mpte
->mpte_mppcb
= mpp
;
479 mpte
->mpte_mptcb
= mp_tp
;
481 TAILQ_INIT(&mpte
->mpte_sopts
);
482 TAILQ_INIT(&mpte
->mpte_subflows
);
483 mpte
->mpte_associd
= SAE_ASSOCID_ANY
;
484 mpte
->mpte_connid_last
= SAE_CONNID_ANY
;
486 lck_mtx_init(&mpte
->mpte_thread_lock
, mppi
->mppi_lock_grp
,
487 mppi
->mppi_lock_attr
);
492 * This can be rather expensive if we have lots of MPTCP sockets,
493 * but we need a kernel thread for this model to work. Perhaps we
494 * could amortize the costs by having one worker thread per a group
497 if (kernel_thread_start(mptcp_thread_func
, mpte
,
498 &mpte
->mpte_thread
) != KERN_SUCCESS
) {
502 mp_so
->so_usecount
++; /* for thread */
504 /* MPTCP Protocol Control Block */
505 bzero(mp_tp
, sizeof (*mp_tp
));
506 lck_mtx_init(&mp_tp
->mpt_lock
, mppi
->mppi_lock_grp
,
507 mppi
->mppi_lock_attr
);
508 mp_tp
->mpt_mpte
= mpte
;
509 mp_tp
->mpt_state
= MPTCPS_CLOSED
;
512 lck_mtx_destroy(&mpte
->mpte_thread_lock
, mppi
->mppi_lock_grp
);
513 DTRACE_MPTCP5(session__create
, struct socket
*, mp_so
,
514 struct sockbuf
*, &mp_so
->so_rcv
,
515 struct sockbuf
*, &mp_so
->so_snd
,
516 struct mppcb
*, mpp
, int, error
);
518 return ((error
!= 0) ? NULL
: mpte
);
522 * Destroy an MPTCP session.
525 mptcp_sesdestroy(struct mptses
*mpte
)
529 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
531 mp_tp
= mpte
->mpte_mptcb
;
532 VERIFY(mp_tp
!= NULL
);
535 * MPTCP Multipath PCB Extension section
537 mptcp_flush_sopts(mpte
);
538 VERIFY(TAILQ_EMPTY(&mpte
->mpte_subflows
) && mpte
->mpte_numflows
== 0);
540 lck_mtx_destroy(&mpte
->mpte_thread_lock
,
541 mpte
->mpte_mppcb
->mpp_pcbinfo
->mppi_lock_grp
);
544 * MPTCP Protocol Control Block section
546 lck_mtx_destroy(&mp_tp
->mpt_lock
,
547 mpte
->mpte_mppcb
->mpp_pcbinfo
->mppi_lock_grp
);
549 DTRACE_MPTCP2(session__destroy
, struct mptses
*, mpte
,
550 struct mptcb
*, mp_tp
);
554 * Allocate an MPTCP socket option structure.
557 mptcp_sopt_alloc(int how
)
561 mpo
= (how
== M_WAITOK
) ? zalloc(mptopt_zone
) :
562 zalloc_noblock(mptopt_zone
);
564 bzero(mpo
, mptopt_zone_size
);
571 * Free an MPTCP socket option structure.
574 mptcp_sopt_free(struct mptopt
*mpo
)
576 VERIFY(!(mpo
->mpo_flags
& MPOF_ATTACHED
));
578 zfree(mptopt_zone
, mpo
);
582 * Add a socket option to the MPTCP socket option list.
585 mptcp_sopt_insert(struct mptses
*mpte
, struct mptopt
*mpo
)
587 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
588 VERIFY(!(mpo
->mpo_flags
& MPOF_ATTACHED
));
589 mpo
->mpo_flags
|= MPOF_ATTACHED
;
590 TAILQ_INSERT_TAIL(&mpte
->mpte_sopts
, mpo
, mpo_entry
);
594 * Remove a socket option from the MPTCP socket option list.
597 mptcp_sopt_remove(struct mptses
*mpte
, struct mptopt
*mpo
)
599 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
600 VERIFY(mpo
->mpo_flags
& MPOF_ATTACHED
);
601 mpo
->mpo_flags
&= ~MPOF_ATTACHED
;
602 TAILQ_REMOVE(&mpte
->mpte_sopts
, mpo
, mpo_entry
);
606 * Search for an existing <sopt_level,sopt_name> socket option.
609 mptcp_sopt_find(struct mptses
*mpte
, struct sockopt
*sopt
)
613 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
615 TAILQ_FOREACH(mpo
, &mpte
->mpte_sopts
, mpo_entry
) {
616 if (mpo
->mpo_level
== sopt
->sopt_level
&&
617 mpo
->mpo_name
== sopt
->sopt_name
)
620 VERIFY(mpo
== NULL
|| sopt
->sopt_valsize
== sizeof (int));
626 * Flushes all recorded socket options from an MP socket.
629 mptcp_flush_sopts(struct mptses
*mpte
)
631 struct mptopt
*mpo
, *tmpo
;
633 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
635 TAILQ_FOREACH_SAFE(mpo
, &mpte
->mpte_sopts
, mpo_entry
, tmpo
) {
636 mptcp_sopt_remove(mpte
, mpo
);
637 mptcp_sopt_free(mpo
);
639 VERIFY(TAILQ_EMPTY(&mpte
->mpte_sopts
));
643 * Allocate a MPTCP subflow structure.
646 mptcp_subflow_alloc(int how
)
650 mpts
= (how
== M_WAITOK
) ? zalloc(mptsub_zone
) :
651 zalloc_noblock(mptsub_zone
);
653 bzero(mpts
, mptsub_zone_size
);
654 lck_mtx_init(&mpts
->mpts_lock
, mtcbinfo
.mppi_lock_grp
,
655 mtcbinfo
.mppi_lock_attr
);
662 * Deallocate a subflow structure, called when all of the references held
663 * on it have been released. This implies that the subflow has been deleted.
666 mptcp_subflow_free(struct mptsub
*mpts
)
668 MPTS_LOCK_ASSERT_HELD(mpts
);
670 VERIFY(mpts
->mpts_refcnt
== 0);
671 VERIFY(!(mpts
->mpts_flags
& MPTSF_ATTACHED
));
672 VERIFY(mpts
->mpts_mpte
== NULL
);
673 VERIFY(mpts
->mpts_socket
== NULL
);
675 if (mpts
->mpts_src_sl
!= NULL
) {
676 sockaddrlist_free(mpts
->mpts_src_sl
);
677 mpts
->mpts_src_sl
= NULL
;
679 if (mpts
->mpts_dst_sl
!= NULL
) {
680 sockaddrlist_free(mpts
->mpts_dst_sl
);
681 mpts
->mpts_dst_sl
= NULL
;
684 lck_mtx_destroy(&mpts
->mpts_lock
, mtcbinfo
.mppi_lock_grp
);
686 zfree(mptsub_zone
, mpts
);
690 * Create an MPTCP subflow socket.
693 mptcp_subflow_socreate(struct mptses
*mpte
, struct mptsub
*mpts
, int dom
,
694 struct proc
*p
, struct socket
**so
)
696 struct mptopt smpo
, *mpo
, *tmpo
;
697 struct socket
*mp_so
;
701 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
702 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
705 * Create the subflow socket (multipath subflow, non-blocking.)
707 * This will cause SOF_MP_SUBFLOW socket flag to be set on the subflow
708 * socket; it will be cleared when the socket is peeled off or closed.
709 * It also indicates to the underlying TCP to handle MPTCP options.
710 * A multipath subflow socket implies SS_NOFDREF state.
712 if ((error
= socreate_internal(dom
, so
, SOCK_STREAM
,
713 IPPROTO_TCP
, p
, SOCF_ASYNC
| SOCF_MP_SUBFLOW
, PROC_NULL
)) != 0) {
714 mptcplog((LOG_ERR
, "MPTCP Socket: subflow socreate mp_so 0x%llx"
715 " unable to create subflow socket error %d\n",
716 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), error
),
717 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_ERR
);
722 VERIFY((*so
)->so_flags
& SOF_MP_SUBFLOW
);
723 VERIFY(((*so
)->so_state
& (SS_NBIO
|SS_NOFDREF
)) ==
724 (SS_NBIO
|SS_NOFDREF
));
726 /* prevent the socket buffers from being compressed */
727 (*so
)->so_rcv
.sb_flags
|= SB_NOCOMPRESS
;
728 (*so
)->so_snd
.sb_flags
|= SB_NOCOMPRESS
;
730 /* Inherit preconnect and TFO data flags */
731 if (mp_so
->so_flags1
& SOF1_PRECONNECT_DATA
)
732 (*so
)->so_flags1
|= SOF1_PRECONNECT_DATA
;
734 if (mp_so
->so_flags1
& SOF1_DATA_IDEMPOTENT
)
735 (*so
)->so_flags1
|= SOF1_DATA_IDEMPOTENT
;
737 bzero(&smpo
, sizeof (smpo
));
738 smpo
.mpo_flags
|= MPOF_SUBFLOW_OK
;
739 smpo
.mpo_level
= SOL_SOCKET
;
742 /* disable SIGPIPE */
743 smpo
.mpo_name
= SO_NOSIGPIPE
;
744 if ((error
= mptcp_subflow_sosetopt(mpte
, *so
, &smpo
)) != 0)
747 /* find out if the subflow's source address goes away */
748 smpo
.mpo_name
= SO_NOADDRERR
;
749 if ((error
= mptcp_subflow_sosetopt(mpte
, *so
, &smpo
)) != 0)
752 /* enable keepalive */
753 smpo
.mpo_name
= SO_KEEPALIVE
;
754 if ((error
= mptcp_subflow_sosetopt(mpte
, *so
, &smpo
)) != 0)
758 * Limit the receive socket buffer size to 64k.
760 * We need to take into consideration the window scale option
761 * which could be negotiated in one subflow but disabled in
763 * XXX This can be improved in the future.
765 smpo
.mpo_name
= SO_RCVBUF
;
766 smpo
.mpo_intval
= MPTCP_RWIN_MAX
;
767 if ((error
= mptcp_subflow_sosetopt(mpte
, *so
, &smpo
)) != 0)
770 /* N.B.: set by sosetopt */
771 VERIFY(!((*so
)->so_rcv
.sb_flags
& SB_AUTOSIZE
));
772 /* Prevent automatic socket buffer sizing. */
773 (*so
)->so_snd
.sb_flags
&= ~SB_AUTOSIZE
;
775 smpo
.mpo_level
= IPPROTO_TCP
;
776 smpo
.mpo_intval
= mptcp_subflow_keeptime
;
777 smpo
.mpo_name
= TCP_KEEPALIVE
;
778 if ((error
= mptcp_subflow_sosetopt(mpte
, *so
, &smpo
)) != 0)
781 /* replay setsockopt(2) on the subflow sockets for eligible options */
782 TAILQ_FOREACH_SAFE(mpo
, &mpte
->mpte_sopts
, mpo_entry
, tmpo
) {
785 if (!(mpo
->mpo_flags
& MPOF_SUBFLOW_OK
))
789 * Skip those that are handled internally; these options
790 * should not have been recorded and marked with the
791 * MPOF_SUBFLOW_OK by mptcp_setopt(), but just in case.
793 if (mpo
->mpo_level
== SOL_SOCKET
&&
794 (mpo
->mpo_name
== SO_NOSIGPIPE
||
795 mpo
->mpo_name
== SO_NOADDRERR
||
796 mpo
->mpo_name
== SO_KEEPALIVE
))
799 interim
= (mpo
->mpo_flags
& MPOF_INTERIM
);
800 if (mptcp_subflow_sosetopt(mpte
, *so
, mpo
) != 0 && interim
) {
802 mptcplog((LOG_ERR
, "MPTCP Socket: subflow socreate"
804 " sopt %s val %d interim record removed\n",
805 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
806 mptcp_sopt2str(mpo
->mpo_level
, mpo
->mpo_name
,
807 buf
, sizeof (buf
)), mpo
->mpo_intval
),
808 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_ERR
);
809 mptcp_sopt_remove(mpte
, mpo
);
810 mptcp_sopt_free(mpo
);
816 * We need to receive everything that the subflow socket has,
817 * so use a customized socket receive function. We will undo
818 * this when the socket is peeled off or closed.
820 mpts
->mpts_oprotosw
= (*so
)->so_proto
;
823 (*so
)->so_proto
= &mptcp_subflow_protosw
;
827 (*so
)->so_proto
= (struct protosw
*)&mptcp_subflow_protosw6
;
836 socket_unlock(*so
, 0);
838 DTRACE_MPTCP4(subflow__create
, struct mptses
*, mpte
,
839 struct mptsub
*, mpts
, int, dom
, int, error
);
845 * Close an MPTCP subflow socket.
847 * Note that this may be called on an embryonic subflow, and the only
848 * thing that is guaranteed valid is the protocol-user request.
851 mptcp_subflow_soclose(struct mptsub
*mpts
, struct socket
*so
)
853 MPTS_LOCK_ASSERT_HELD(mpts
);
856 VERIFY(so
->so_flags
& SOF_MP_SUBFLOW
);
857 VERIFY((so
->so_state
& (SS_NBIO
|SS_NOFDREF
)) == (SS_NBIO
|SS_NOFDREF
));
859 /* restore protocol-user requests */
860 VERIFY(mpts
->mpts_oprotosw
!= NULL
);
861 so
->so_proto
= mpts
->mpts_oprotosw
;
862 socket_unlock(so
, 0);
864 mpts
->mpts_socket
= NULL
; /* may already be NULL */
866 DTRACE_MPTCP5(subflow__close
, struct mptsub
*, mpts
,
868 struct sockbuf
*, &so
->so_rcv
,
869 struct sockbuf
*, &so
->so_snd
,
870 struct mptses
*, mpts
->mpts_mpte
);
872 return (soclose(so
));
876 * Connect an MPTCP subflow socket.
878 * This may be called inline as part of adding a subflow, or asynchronously
879 * by the thread (upon progressing to MPTCPF_JOIN_READY). Note that in the
880 * pending connect case, the subflow socket may have been bound to an interface
881 * and/or a source IP address which may no longer be around by the time this
882 * routine is called; in that case the connect attempt will most likely fail.
885 mptcp_subflow_soconnectx(struct mptses
*mpte
, struct mptsub
*mpts
)
890 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
891 MPTS_LOCK_ASSERT_HELD(mpts
);
893 VERIFY((mpts
->mpts_flags
& (MPTSF_CONNECTING
|MPTSF_CONNECTED
)) ==
895 VERIFY(mpts
->mpts_socket
!= NULL
);
896 so
= mpts
->mpts_socket
;
897 af
= mpts
->mpts_family
;
899 if (af
== AF_INET
|| af
== AF_INET6
) {
900 struct sockaddr_entry
*dst_se
;
901 char dbuf
[MAX_IPv6_STR_LEN
];
903 dst_se
= TAILQ_FIRST(&mpts
->mpts_dst_sl
->sl_head
);
904 VERIFY(dst_se
!= NULL
);
906 mptcplog((LOG_DEBUG
, "MPTCP Socket: connectx mp_so 0x%llx "
907 "dst %s[%d] cid %d [pended %s]\n",
908 (u_int64_t
)VM_KERNEL_ADDRPERM(mpte
->mpte_mppcb
->mpp_socket
),
909 inet_ntop(af
, ((af
== AF_INET
) ?
910 (void *)&SIN(dst_se
->se_addr
)->sin_addr
.s_addr
:
911 (void *)&SIN6(dst_se
->se_addr
)->sin6_addr
),
912 dbuf
, sizeof (dbuf
)), ((af
== AF_INET
) ?
913 ntohs(SIN(dst_se
->se_addr
)->sin_port
) :
914 ntohs(SIN6(dst_se
->se_addr
)->sin6_port
)),
916 ((mpts
->mpts_flags
& MPTSF_CONNECT_PENDING
) ?
918 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
921 mpts
->mpts_flags
&= ~MPTSF_CONNECT_PENDING
;
924 mptcp_attach_to_subf(so
, mpte
->mpte_mptcb
, mpte
->mpte_addrid_last
);
926 /* connect the subflow socket */
927 error
= soconnectxlocked(so
, &mpts
->mpts_src_sl
, &mpts
->mpts_dst_sl
,
928 mpts
->mpts_mpcr
.mpcr_proc
, mpts
->mpts_mpcr
.mpcr_ifscope
,
929 mpte
->mpte_associd
, NULL
, CONNREQF_MPTCP
,
930 &mpts
->mpts_mpcr
, sizeof (mpts
->mpts_mpcr
), NULL
, NULL
);
931 socket_unlock(so
, 0);
933 /* Allocate a unique address id per subflow */
934 mpte
->mpte_addrid_last
++;
935 if (mpte
->mpte_addrid_last
== 0)
936 mpte
->mpte_addrid_last
++;
938 DTRACE_MPTCP3(subflow__connect
, struct mptses
*, mpte
,
939 struct mptsub
*, mpts
, int, error
);
945 * MPTCP subflow socket receive routine, derived from soreceive().
948 mptcp_subflow_soreceive(struct socket
*so
, struct sockaddr
**psa
,
949 struct uio
*uio
, struct mbuf
**mp0
, struct mbuf
**controlp
, int *flagsp
)
952 int flags
, error
= 0;
953 struct proc
*p
= current_proc();
954 struct mbuf
*m
, **mp
= mp0
;
955 struct mbuf
*nextrecord
;
958 VERIFY(so
->so_proto
->pr_flags
& PR_CONNREQUIRED
);
960 #ifdef MORE_LOCKING_DEBUG
961 if (so
->so_usecount
== 1) {
962 panic("%s: so=%x no other reference on socket\n", __func__
, so
);
967 * We return all that is there in the subflow's socket receive buffer
968 * to the MPTCP layer, so we require that the caller passes in the
969 * expected parameters.
971 if (mp
== NULL
|| controlp
!= NULL
) {
972 socket_unlock(so
, 1);
979 flags
= *flagsp
&~ MSG_EOR
;
983 if (flags
& (MSG_PEEK
|MSG_OOB
|MSG_NEEDSA
|MSG_WAITALL
|MSG_WAITSTREAM
)) {
984 socket_unlock(so
, 1);
987 flags
|= (MSG_DONTWAIT
|MSG_NBIO
);
990 * If a recv attempt is made on a previously-accepted socket
991 * that has been marked as inactive (disconnected), reject
994 if (so
->so_flags
& SOF_DEFUNCT
) {
995 struct sockbuf
*sb
= &so
->so_rcv
;
998 SODEFUNCTLOG(("%s[%d]: defunct so 0x%llx [%d,%d] (%d)\n",
999 __func__
, proc_pid(p
), (uint64_t)VM_KERNEL_ADDRPERM(so
),
1000 SOCK_DOM(so
), SOCK_TYPE(so
), error
));
1002 * This socket should have been disconnected and flushed
1003 * prior to being returned from sodefunct(); there should
1004 * be no data on its receive list, so panic otherwise.
1006 if (so
->so_state
& SS_DEFUNCT
)
1007 sb_empty_assert(sb
, __func__
);
1008 socket_unlock(so
, 1);
1013 * See if the socket has been closed (SS_NOFDREF|SS_CANTRCVMORE)
1014 * and if so just return to the caller. This could happen when
1015 * soreceive() is called by a socket upcall function during the
1016 * time the socket is freed. The socket buffer would have been
1017 * locked across the upcall, therefore we cannot put this thread
1018 * to sleep (else we will deadlock) or return EWOULDBLOCK (else
1019 * we may livelock), because the lock on the socket buffer will
1020 * only be released when the upcall routine returns to its caller.
1021 * Because the socket has been officially closed, there can be
1022 * no further read on it.
1024 * A multipath subflow socket would have its SS_NOFDREF set by
1025 * default, so check for SOF_MP_SUBFLOW socket flag; when the
1026 * socket is closed for real, SOF_MP_SUBFLOW would be cleared.
1028 if ((so
->so_state
& (SS_NOFDREF
| SS_CANTRCVMORE
)) ==
1029 (SS_NOFDREF
| SS_CANTRCVMORE
) && !(so
->so_flags
& SOF_MP_SUBFLOW
)) {
1030 socket_unlock(so
, 1);
1035 * For consistency with soreceive() semantics, we need to obey
1036 * SB_LOCK in case some other code path has locked the buffer.
1038 error
= sblock(&so
->so_rcv
, 0);
1040 socket_unlock(so
, 1);
1044 m
= so
->so_rcv
.sb_mb
;
1047 * Panic if we notice inconsistencies in the socket's
1048 * receive list; both sb_mb and sb_cc should correctly
1049 * reflect the contents of the list, otherwise we may
1050 * end up with false positives during select() or poll()
1051 * which could put the application in a bad state.
1053 SB_MB_CHECK(&so
->so_rcv
);
1055 if (so
->so_error
!= 0) {
1056 error
= so
->so_error
;
1061 if (so
->so_state
& SS_CANTRCVMORE
) {
1065 if (!(so
->so_state
& (SS_ISCONNECTED
|SS_ISCONNECTING
))) {
1071 * MSG_DONTWAIT is implicitly defined and this routine will
1072 * never block, so return EWOULDBLOCK when there is nothing.
1074 error
= EWOULDBLOCK
;
1078 OSIncrementAtomicLong(&p
->p_stats
->p_ru
.ru_msgrcv
);
1079 SBLASTRECORDCHK(&so
->so_rcv
, "mptcp_subflow_soreceive 1");
1080 SBLASTMBUFCHK(&so
->so_rcv
, "mptcp_subflow_soreceive 1");
1083 nextrecord
= m
->m_nextpkt
;
1084 sbfree(&so
->so_rcv
, m
);
1089 so
->so_rcv
.sb_mb
= m
= m
->m_next
;
1094 m
->m_nextpkt
= nextrecord
;
1095 if (nextrecord
== NULL
)
1096 so
->so_rcv
.sb_lastrecord
= m
;
1098 m
= so
->so_rcv
.sb_mb
= nextrecord
;
1099 SB_EMPTY_FIXUP(&so
->so_rcv
);
1101 SBLASTRECORDCHK(&so
->so_rcv
, "mptcp_subflow_soreceive 2");
1102 SBLASTMBUFCHK(&so
->so_rcv
, "mptcp_subflow_soreceive 2");
1105 DTRACE_MPTCP3(subflow__receive
, struct socket
*, so
,
1106 struct sockbuf
*, &so
->so_rcv
, struct sockbuf
*, &so
->so_snd
);
1107 /* notify protocol that we drained all the data */
1108 if ((so
->so_proto
->pr_flags
& PR_WANTRCVD
) && so
->so_pcb
!= NULL
)
1109 (*so
->so_proto
->pr_usrreqs
->pru_rcvd
)(so
, flags
);
1115 sbunlock(&so
->so_rcv
, FALSE
); /* will unlock socket */
1122 * Prepare an MPTCP subflow socket for peeloff(2); basically undo
1123 * the work done earlier when the subflow socket was created.
1126 mptcp_subflow_sopeeloff(struct mptses
*mpte
, struct mptsub
*mpts
,
1130 struct socket
*mp_so
;
1133 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1134 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
1135 MPTS_LOCK_ASSERT_HELD(mpts
);
1138 VERIFY(so
->so_flags
& SOF_MP_SUBFLOW
);
1139 VERIFY((so
->so_state
& (SS_NBIO
|SS_NOFDREF
)) == (SS_NBIO
|SS_NOFDREF
));
1141 /* inherit MPTCP socket states */
1142 if (!(mp_so
->so_state
& SS_NBIO
))
1143 so
->so_state
&= ~SS_NBIO
;
1146 * At this point, the socket is not yet closed, as there is at least
1147 * one outstanding usecount previously held by mpts_socket from
1148 * socreate(). Atomically clear SOF_MP_SUBFLOW and SS_NOFDREF here.
1150 so
->so_flags
&= ~SOF_MP_SUBFLOW
;
1151 so
->so_state
&= ~SS_NOFDREF
;
1152 so
->so_flags
&= ~SOF_MPTCP_TRUE
;
1154 /* allow socket buffers to be compressed */
1155 so
->so_rcv
.sb_flags
&= ~SB_NOCOMPRESS
;
1156 so
->so_snd
.sb_flags
&= ~SB_NOCOMPRESS
;
1159 * Allow socket buffer auto sizing.
1161 * This will increase the current 64k buffer size to whatever is best.
1163 if (!(so
->so_rcv
.sb_flags
& SB_USRSIZE
))
1164 so
->so_rcv
.sb_flags
|= SB_AUTOSIZE
;
1165 if (!(so
->so_snd
.sb_flags
& SB_USRSIZE
))
1166 so
->so_snd
.sb_flags
|= SB_AUTOSIZE
;
1168 /* restore protocol-user requests */
1169 VERIFY(mpts
->mpts_oprotosw
!= NULL
);
1170 so
->so_proto
= mpts
->mpts_oprotosw
;
1172 bzero(&smpo
, sizeof (smpo
));
1173 smpo
.mpo_flags
|= MPOF_SUBFLOW_OK
;
1174 smpo
.mpo_level
= SOL_SOCKET
;
1176 /* inherit SOF_NOSIGPIPE from parent MP socket */
1177 p
= (mp_so
->so_flags
& SOF_NOSIGPIPE
);
1178 c
= (so
->so_flags
& SOF_NOSIGPIPE
);
1179 smpo
.mpo_intval
= ((p
- c
) > 0) ? 1 : 0;
1180 smpo
.mpo_name
= SO_NOSIGPIPE
;
1182 (void) mptcp_subflow_sosetopt(mpte
, so
, &smpo
);
1184 /* inherit SOF_NOADDRAVAIL from parent MP socket */
1185 p
= (mp_so
->so_flags
& SOF_NOADDRAVAIL
);
1186 c
= (so
->so_flags
& SOF_NOADDRAVAIL
);
1187 smpo
.mpo_intval
= ((p
- c
) > 0) ? 1 : 0;
1188 smpo
.mpo_name
= SO_NOADDRERR
;
1190 (void) mptcp_subflow_sosetopt(mpte
, so
, &smpo
);
1192 /* inherit SO_KEEPALIVE from parent MP socket */
1193 p
= (mp_so
->so_options
& SO_KEEPALIVE
);
1194 c
= (so
->so_options
& SO_KEEPALIVE
);
1195 smpo
.mpo_intval
= ((p
- c
) > 0) ? 1 : 0;
1196 smpo
.mpo_name
= SO_KEEPALIVE
;
1198 (void) mptcp_subflow_sosetopt(mpte
, so
, &smpo
);
1200 /* unset TCP level default keepalive option */
1201 p
= (intotcpcb(sotoinpcb(mp_so
)))->t_keepidle
;
1202 c
= (intotcpcb(sotoinpcb(so
)))->t_keepidle
;
1203 smpo
.mpo_level
= IPPROTO_TCP
;
1204 smpo
.mpo_intval
= 0;
1205 smpo
.mpo_name
= TCP_KEEPALIVE
;
1207 (void) mptcp_subflow_sosetopt(mpte
, so
, &smpo
);
1208 socket_unlock(so
, 0);
1210 DTRACE_MPTCP5(subflow__peeloff
, struct mptses
*, mpte
,
1211 struct mptsub
*, mpts
, struct socket
*, so
,
1212 struct sockbuf
*, &so
->so_rcv
, struct sockbuf
*, &so
->so_snd
);
1216 * Establish an initial MPTCP connection (if first subflow and not yet
1217 * connected), or add a subflow to an existing MPTCP connection.
1220 mptcp_subflow_add(struct mptses
*mpte
, struct mptsub
*mpts
,
1221 struct proc
*p
, uint32_t ifscope
)
1223 struct sockaddr_entry
*se
, *src_se
= NULL
, *dst_se
= NULL
;
1224 struct socket
*mp_so
, *so
= NULL
;
1225 struct mptsub_connreq mpcr
;
1226 struct mptcb
*mp_tp
;
1229 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1230 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
1231 mp_tp
= mpte
->mpte_mptcb
;
1234 if (mp_tp
->mpt_state
>= MPTCPS_CLOSE_WAIT
) {
1235 /* If the remote end sends Data FIN, refuse subflow adds */
1243 VERIFY(!(mpts
->mpts_flags
& (MPTSF_CONNECTING
|MPTSF_CONNECTED
)));
1244 VERIFY(mpts
->mpts_mpte
== NULL
);
1245 VERIFY(mpts
->mpts_socket
== NULL
);
1246 VERIFY(mpts
->mpts_dst_sl
!= NULL
);
1247 VERIFY(mpts
->mpts_connid
== SAE_CONNID_ANY
);
1249 /* select source (if specified) and destination addresses */
1250 if ((error
= in_selectaddrs(AF_UNSPEC
, &mpts
->mpts_src_sl
, &src_se
,
1251 &mpts
->mpts_dst_sl
, &dst_se
)) != 0)
1254 VERIFY(mpts
->mpts_dst_sl
!= NULL
&& dst_se
!= NULL
);
1255 VERIFY(src_se
== NULL
|| mpts
->mpts_src_sl
!= NULL
);
1256 af
= mpts
->mpts_family
= dst_se
->se_addr
->sa_family
;
1257 VERIFY(src_se
== NULL
|| src_se
->se_addr
->sa_family
== af
);
1258 VERIFY(af
== AF_INET
|| af
== AF_INET6
);
1261 * If the source address is not specified, allocate a storage for
1262 * it, so that later on we can fill it in with the actual source
1263 * IP address chosen by the underlying layer for the subflow after
1266 if (mpts
->mpts_src_sl
== NULL
) {
1268 sockaddrlist_dup(mpts
->mpts_dst_sl
, M_WAITOK
);
1269 if (mpts
->mpts_src_sl
== NULL
) {
1273 se
= TAILQ_FIRST(&mpts
->mpts_src_sl
->sl_head
);
1274 VERIFY(se
!= NULL
&& se
->se_addr
!= NULL
&&
1275 se
->se_addr
->sa_len
== dst_se
->se_addr
->sa_len
);
1276 bzero(se
->se_addr
, se
->se_addr
->sa_len
);
1277 se
->se_addr
->sa_len
= dst_se
->se_addr
->sa_len
;
1278 se
->se_addr
->sa_family
= dst_se
->se_addr
->sa_family
;
1281 /* create the subflow socket */
1282 if ((error
= mptcp_subflow_socreate(mpte
, mpts
, af
, p
, &so
)) != 0)
1286 * Increment the counter, while avoiding 0 (SAE_CONNID_ANY) and
1287 * -1 (SAE_CONNID_ALL).
1289 mpte
->mpte_connid_last
++;
1290 if (mpte
->mpte_connid_last
== SAE_CONNID_ALL
||
1291 mpte
->mpte_connid_last
== SAE_CONNID_ANY
)
1292 mpte
->mpte_connid_last
++;
1294 mpts
->mpts_connid
= mpte
->mpte_connid_last
;
1295 VERIFY(mpts
->mpts_connid
!= SAE_CONNID_ANY
&&
1296 mpts
->mpts_connid
!= SAE_CONNID_ALL
);
1298 mpts
->mpts_rel_seq
= 1;
1300 /* Allocate a unique address id per subflow */
1301 mpte
->mpte_addrid_last
++;
1302 if (mpte
->mpte_addrid_last
== 0)
1303 mpte
->mpte_addrid_last
++;
1305 /* bind subflow socket to the specified interface */
1306 if (ifscope
!= IFSCOPE_NONE
) {
1308 error
= inp_bindif(sotoinpcb(so
), ifscope
, &mpts
->mpts_outif
);
1310 socket_unlock(so
, 0);
1311 (void) mptcp_subflow_soclose(mpts
, so
);
1314 VERIFY(mpts
->mpts_outif
!= NULL
);
1315 mpts
->mpts_flags
|= MPTSF_BOUND_IF
;
1317 mptcplog((LOG_DEBUG
, "MPTCP Socket: subflow_add mp_so 0x%llx "
1318 "bindif %s[%d] cid d\n",
1319 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
1320 mpts
->mpts_outif
->if_xname
,
1321 ifscope
, mpts
->mpts_connid
),
1322 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
1323 socket_unlock(so
, 0);
1326 /* if source address and/or port is specified, bind to it */
1327 if (src_se
!= NULL
) {
1328 struct sockaddr
*sa
= src_se
->se_addr
;
1329 uint32_t mpts_flags
= 0;
1334 if (SIN(sa
)->sin_addr
.s_addr
!= INADDR_ANY
)
1335 mpts_flags
|= MPTSF_BOUND_IP
;
1336 if ((lport
= SIN(sa
)->sin_port
) != 0)
1337 mpts_flags
|= MPTSF_BOUND_PORT
;
1341 VERIFY(af
== AF_INET6
);
1342 if (!IN6_IS_ADDR_UNSPECIFIED(&SIN6(sa
)->sin6_addr
))
1343 mpts_flags
|= MPTSF_BOUND_IP
;
1344 if ((lport
= SIN6(sa
)->sin6_port
) != 0)
1345 mpts_flags
|= MPTSF_BOUND_PORT
;
1350 error
= sobindlock(so
, sa
, 1); /* will lock/unlock socket */
1352 (void) mptcp_subflow_soclose(mpts
, so
);
1355 mpts
->mpts_flags
|= mpts_flags
;
1357 if (af
== AF_INET
|| af
== AF_INET6
) {
1358 char sbuf
[MAX_IPv6_STR_LEN
];
1360 mptcplog((LOG_DEBUG
, "MPTCP Socket: subflow_add "
1361 "mp_so 0x%llx bindip %s[%d] cid %d\n",
1362 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
1363 inet_ntop(af
, ((af
== AF_INET
) ?
1364 (void *)&SIN(sa
)->sin_addr
.s_addr
:
1365 (void *)&SIN6(sa
)->sin6_addr
), sbuf
, sizeof (sbuf
)),
1366 ntohs(lport
), mpts
->mpts_connid
),
1367 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
1372 * Insert the subflow into the list, and associate the MPTCP PCB
1373 * as well as the the subflow socket. From this point on, removing
1374 * the subflow needs to be done via mptcp_subflow_del().
1376 TAILQ_INSERT_TAIL(&mpte
->mpte_subflows
, mpts
, mpts_entry
);
1377 mpte
->mpte_numflows
++;
1379 atomic_bitset_32(&mpts
->mpts_flags
, MPTSF_ATTACHED
);
1380 mpts
->mpts_mpte
= mpte
;
1381 mpts
->mpts_socket
= so
;
1382 MPTS_ADDREF_LOCKED(mpts
); /* for being in MPTCP subflow list */
1383 MPTS_ADDREF_LOCKED(mpts
); /* for subflow socket */
1384 mp_so
->so_usecount
++; /* for subflow socket */
1386 /* register for subflow socket read/write events */
1387 (void) sock_setupcalls(so
, mptcp_subflow_rupcall
, mpts
,
1388 mptcp_subflow_wupcall
, mpts
);
1391 * Register for subflow socket control events; ignore
1392 * SO_FILT_HINT_CONNINFO_UPDATED from below since we
1393 * will generate it here.
1395 (void) sock_catchevents(so
, mptcp_subflow_eupcall
, mpts
,
1396 SO_FILT_HINT_CONNRESET
| SO_FILT_HINT_CANTRCVMORE
|
1397 SO_FILT_HINT_CANTSENDMORE
| SO_FILT_HINT_TIMEOUT
|
1398 SO_FILT_HINT_NOSRCADDR
| SO_FILT_HINT_IFDENIED
|
1399 SO_FILT_HINT_SUSPEND
| SO_FILT_HINT_RESUME
|
1400 SO_FILT_HINT_CONNECTED
| SO_FILT_HINT_DISCONNECTED
|
1401 SO_FILT_HINT_MPFAILOVER
| SO_FILT_HINT_MPSTATUS
|
1402 SO_FILT_HINT_MUSTRST
| SO_FILT_HINT_MPFASTJ
|
1403 SO_FILT_HINT_DELETEOK
| SO_FILT_HINT_MPCANTRCVMORE
);
1406 VERIFY(!(mpts
->mpts_flags
&
1407 (MPTSF_CONNECTING
|MPTSF_CONNECTED
|MPTSF_CONNECT_PENDING
)));
1409 bzero(&mpcr
, sizeof (mpcr
));
1411 mpcr
.mpcr_ifscope
= ifscope
;
1413 * Indicate to the TCP subflow whether or not it should establish
1414 * the initial MPTCP connection, or join an existing one. Fill
1415 * in the connection request structure with additional info needed
1416 * by the underlying TCP (to be used in the TCP options, etc.)
1419 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
&& mpte
->mpte_numflows
== 1) {
1420 if (mp_tp
->mpt_state
== MPTCPS_CLOSED
) {
1421 mptcp_init_local_parms(mp_tp
);
1424 soisconnecting(mp_so
);
1425 mpcr
.mpcr_type
= MPTSUB_CONNREQ_MP_ENABLE
;
1427 if (!(mp_tp
->mpt_flags
& MPTCPF_JOIN_READY
))
1428 mpts
->mpts_flags
|= MPTSF_CONNECT_PENDING
;
1430 /* avoid starting up cellular subflow unless required */
1431 if ((mptcp_delayed_subf_start
) &&
1432 (IFNET_IS_CELLULAR(mpts
->mpts_outif
))) {
1433 mpts
->mpts_flags
|= MPTSF_CONNECT_PENDING
;
1436 mpcr
.mpcr_type
= MPTSUB_CONNREQ_MP_ADD
;
1439 /* If fastjoin or fastopen is requested, set state in mpts */
1440 if (mpte
->mpte_nummpcapflows
== 0) {
1441 if (so
->so_flags1
& SOF1_PRECONNECT_DATA
) {
1443 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
1444 mpts
->mpts_flags
|= MPTSF_TFO_REQD
;
1445 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
1450 if (so
->so_flags
& SOF_MPTCP_FASTJOIN
) {
1452 if (mp_tp
->mpt_state
== MPTCPS_ESTABLISHED
) {
1453 mpts
->mpts_flags
|= MPTSF_FASTJ_REQD
;
1454 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
1460 mpts
->mpts_mpcr
= mpcr
;
1461 mpts
->mpts_flags
|= MPTSF_CONNECTING
;
1463 if (af
== AF_INET
|| af
== AF_INET6
) {
1464 char dbuf
[MAX_IPv6_STR_LEN
];
1466 mptcplog((LOG_DEBUG
, "MPTCP Socket: %s "
1467 "mp_so 0x%llx dst %s[%d] cid %d "
1468 "[pending %s]\n", __func__
,
1469 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
1470 inet_ntop(af
, ((af
== AF_INET
) ?
1471 (void *)&SIN(dst_se
->se_addr
)->sin_addr
.s_addr
:
1472 (void *)&SIN6(dst_se
->se_addr
)->sin6_addr
),
1473 dbuf
, sizeof (dbuf
)), ((af
== AF_INET
) ?
1474 ntohs(SIN(dst_se
->se_addr
)->sin_port
) :
1475 ntohs(SIN6(dst_se
->se_addr
)->sin6_port
)),
1477 ((mpts
->mpts_flags
& MPTSF_CONNECT_PENDING
) ?
1479 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
1482 /* connect right away if first attempt, or if join can be done now */
1483 if (!(mpts
->mpts_flags
& MPTSF_CONNECT_PENDING
))
1484 error
= mptcp_subflow_soconnectx(mpte
, mpts
);
1489 soevent(mp_so
, SO_FILT_HINT_LOCKED
|
1490 SO_FILT_HINT_CONNINFO_UPDATED
);
1496 * Delete/remove a subflow from an MPTCP. The underlying subflow socket
1497 * will no longer be accessible after a subflow is deleted, thus this
1498 * should occur only after the subflow socket has been disconnected.
1499 * If peeloff(2) is called, leave the socket open.
1502 mptcp_subflow_del(struct mptses
*mpte
, struct mptsub
*mpts
, boolean_t close
)
1504 struct socket
*mp_so
, *so
;
1506 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1507 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
1510 so
= mpts
->mpts_socket
;
1513 if (close
&& !((mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
1514 (mpts
->mpts_flags
& MPTSF_USER_DISCONNECT
))) {
1516 mptcplog((LOG_DEBUG
, "MPTCP Socket: subflow_del returning"
1517 " mp_so 0x%llx flags %x\n",
1518 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), mpts
->mpts_flags
),
1519 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
1523 mptcplog((LOG_DEBUG
, "MPTCP Socket: subflow_del mp_so 0x%llx "
1524 "[u=%d,r=%d] cid %d [close %s] %d %x error %d\n",
1525 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
1527 mp_so
->so_retaincnt
, mpts
->mpts_connid
,
1528 (close
? "YES" : "NO"), mpts
->mpts_soerror
,
1531 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
1533 VERIFY(mpts
->mpts_mpte
== mpte
);
1534 VERIFY(mpts
->mpts_connid
!= SAE_CONNID_ANY
&&
1535 mpts
->mpts_connid
!= SAE_CONNID_ALL
);
1537 VERIFY(mpts
->mpts_flags
& MPTSF_ATTACHED
);
1538 atomic_bitclear_32(&mpts
->mpts_flags
, MPTSF_ATTACHED
);
1539 TAILQ_REMOVE(&mpte
->mpte_subflows
, mpts
, mpts_entry
);
1540 VERIFY(mpte
->mpte_numflows
!= 0);
1541 mpte
->mpte_numflows
--;
1542 if (mpte
->mpte_active_sub
== mpts
)
1543 mpte
->mpte_active_sub
= NULL
;
1546 * Drop references held by this subflow socket; there
1547 * will be no further upcalls made from this point.
1549 (void) sock_setupcalls(so
, NULL
, NULL
, NULL
, NULL
);
1550 (void) sock_catchevents(so
, NULL
, NULL
, 0);
1552 mptcp_detach_mptcb_from_subf(mpte
->mpte_mptcb
, so
);
1555 (void) mptcp_subflow_soclose(mpts
, so
);
1557 VERIFY(mp_so
->so_usecount
!= 0);
1558 mp_so
->so_usecount
--; /* for subflow socket */
1559 mpts
->mpts_mpte
= NULL
;
1560 mpts
->mpts_socket
= NULL
;
1563 MPTS_REMREF(mpts
); /* for MPTCP subflow list */
1564 MPTS_REMREF(mpts
); /* for subflow socket */
1566 soevent(mp_so
, SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNINFO_UPDATED
);
1570 * Disconnect a subflow socket.
1573 mptcp_subflow_disconnect(struct mptses
*mpte
, struct mptsub
*mpts
,
1577 struct mptcb
*mp_tp
;
1580 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1581 MPTS_LOCK_ASSERT_HELD(mpts
);
1583 VERIFY(mpts
->mpts_mpte
== mpte
);
1584 VERIFY(mpts
->mpts_socket
!= NULL
);
1585 VERIFY(mpts
->mpts_connid
!= SAE_CONNID_ANY
&&
1586 mpts
->mpts_connid
!= SAE_CONNID_ALL
);
1588 if (mpts
->mpts_flags
& (MPTSF_DISCONNECTING
|MPTSF_DISCONNECTED
))
1591 mpts
->mpts_flags
|= MPTSF_DISCONNECTING
;
1594 * If this is coming from disconnectx(2) or issued as part of
1595 * closing the MPTCP socket, the subflow shouldn't stick around.
1596 * Otherwise let it linger around in case the upper layers need
1597 * to retrieve its conninfo.
1600 mpts
->mpts_flags
|= MPTSF_DELETEOK
;
1602 so
= mpts
->mpts_socket
;
1603 mp_tp
= mpte
->mpte_mptcb
;
1605 if (mp_tp
->mpt_state
> MPTCPS_ESTABLISHED
)
1610 if (!(so
->so_state
& (SS_ISDISCONNECTING
| SS_ISDISCONNECTED
)) &&
1611 (so
->so_state
& SS_ISCONNECTED
)) {
1612 mptcplog((LOG_DEBUG
, "MPTCP Socket %s: cid %d fin %d "
1613 "[linger %s]\n", __func__
, mpts
->mpts_connid
, send_dfin
,
1614 (deleteok
? "NO" : "YES")),
1615 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
1618 mptcp_send_dfin(so
);
1619 (void) soshutdownlock(so
, SHUT_RD
);
1620 (void) soshutdownlock(so
, SHUT_WR
);
1621 (void) sodisconnectlocked(so
);
1623 socket_unlock(so
, 0);
1625 * Generate a disconnect event for this subflow socket, in case
1626 * the lower layer doesn't do it; this is needed because the
1627 * subflow socket deletion relies on it. This will also end up
1628 * generating SO_FILT_HINT_CONNINFO_UPDATED on the MPTCP socket;
1629 * we cannot do that here because subflow lock is currently held.
1631 mptcp_subflow_eupcall(so
, mpts
, SO_FILT_HINT_DISCONNECTED
);
1635 * Subflow socket read upcall.
1637 * Called when the associated subflow socket posted a read event. The subflow
1638 * socket lock has been released prior to invoking the callback. Note that the
1639 * upcall may occur synchronously as a result of MPTCP performing an action on
1640 * it, or asynchronously as a result of an event happening at the subflow layer.
1641 * Therefore, to maintain lock ordering, the only lock that can be acquired
1642 * here is the thread lock, for signalling purposes.
1645 mptcp_subflow_rupcall(struct socket
*so
, void *arg
, int waitf
)
1647 #pragma unused(so, waitf)
1648 struct mptsub
*mpts
= arg
;
1649 struct mptses
*mpte
= mpts
->mpts_mpte
;
1652 * mpte should never be NULL, except in a race with
1658 lck_mtx_lock(&mpte
->mpte_thread_lock
);
1659 mptcp_thread_signal_locked(mpte
);
1660 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
1664 * Subflow socket input.
1666 * Called in the context of the MPTCP thread, for reading data from the
1667 * underlying subflow socket and delivering it to MPTCP.
1670 mptcp_subflow_input(struct mptses
*mpte
, struct mptsub
*mpts
)
1672 struct mbuf
*m
= NULL
;
1675 struct mptsub
*mpts_alt
= NULL
;
1677 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1678 MPTS_LOCK_ASSERT_HELD(mpts
);
1680 DTRACE_MPTCP2(subflow__input
, struct mptses
*, mpte
,
1681 struct mptsub
*, mpts
);
1683 if (!(mpts
->mpts_flags
& MPTSF_CONNECTED
))
1686 so
= mpts
->mpts_socket
;
1688 error
= sock_receive_internal(so
, NULL
, &m
, 0, NULL
);
1689 if (error
!= 0 && error
!= EWOULDBLOCK
) {
1690 mptcplog((LOG_ERR
, "MPTCP Receiver: %s cid %d error %d\n",
1691 __func__
, mpts
->mpts_connid
, error
),
1692 MPTCP_RECEIVER_DBG
, MPTCP_LOGLVL_ERR
);
1694 mpts_alt
= mptcp_get_subflow(mpte
, mpts
, NULL
);
1695 if (mpts_alt
== NULL
) {
1696 if (mptcp_delayed_subf_start
) {
1697 mpts_alt
= mptcp_get_pending_subflow(mpte
,
1700 mptcplog((LOG_DEBUG
,"MPTCP Receiver:"
1701 " %s: pending %d\n",
1702 __func__
, mpts_alt
->mpts_connid
),
1703 MPTCP_RECEIVER_DBG
, MPTCP_LOGLVL_ERR
);
1705 mptcplog((LOG_ERR
, "MPTCP Receiver:"
1706 " %s: no pending flow for cid %d",
1707 __func__
, mpts
->mpts_connid
),
1708 MPTCP_RECEIVER_DBG
, MPTCP_LOGLVL_ERR
);
1711 mptcplog((LOG_ERR
, "MPTCP Receiver: %s: no alt"
1712 " path for cid %d\n", __func__
,
1714 MPTCP_RECEIVER_DBG
, MPTCP_LOGLVL_ERR
);
1716 if (error
== ENODATA
) {
1718 * Don't ignore ENODATA so as to discover
1719 * nasty middleboxes.
1721 struct socket
*mp_so
=
1722 mpte
->mpte_mppcb
->mpp_socket
;
1723 mp_so
->so_error
= ENODATA
;
1728 } else if (error
== 0) {
1729 mptcplog((LOG_DEBUG
, "MPTCP Receiver: %s: cid %d \n",
1730 __func__
, mpts
->mpts_connid
),
1731 MPTCP_RECEIVER_DBG
, MPTCP_LOGLVL_VERBOSE
);
1734 /* In fallback, make sure to accept data on all but one subflow */
1735 if ((mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) &&
1736 (!(mpts
->mpts_flags
& MPTSF_ACTIVE
))) {
1743 /* Did we receive data on the backup subflow? */
1744 if (!(mpts
->mpts_flags
& MPTSF_ACTIVE
))
1745 mpts
->mpts_peerswitch
++;
1747 mpts
->mpts_peerswitch
= 0;
1750 * Release subflow lock since this may trigger MPTCP to send,
1751 * possibly on a different subflow. An extra reference has
1752 * been held on the subflow by the MPTCP thread before coming
1753 * here, so we can be sure that it won't go away, in the event
1754 * the MP socket lock gets released.
1757 mptcp_input(mpte
, m
);
1763 * Subflow socket write upcall.
1765 * Called when the associated subflow socket posted a read event. The subflow
1766 * socket lock has been released prior to invoking the callback. Note that the
1767 * upcall may occur synchronously as a result of MPTCP performing an action on
1768 * it, or asynchronously as a result of an event happening at the subflow layer.
1769 * Therefore, to maintain lock ordering, the only lock that can be acquired
1770 * here is the thread lock, for signalling purposes.
1773 mptcp_subflow_wupcall(struct socket
*so
, void *arg
, int waitf
)
1775 #pragma unused(so, waitf)
1776 struct mptsub
*mpts
= arg
;
1777 struct mptses
*mpte
= mpts
->mpts_mpte
;
1780 * mpte should never be NULL except in a race with
1781 * mptcp_subflow_del which doesn't hold socket lock across critical
1782 * section. This upcall is made after releasing the socket lock.
1783 * Interleaving of socket operations becomes possible therefore.
1788 lck_mtx_lock(&mpte
->mpte_thread_lock
);
1789 mptcp_thread_signal_locked(mpte
);
1790 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
1794 * Subflow socket output.
1796 * Called for sending data from MPTCP to the underlying subflow socket.
1799 mptcp_subflow_output(struct mptses
*mpte
, struct mptsub
*mpts
)
1801 struct socket
*mp_so
, *so
;
1802 size_t sb_cc
= 0, tot_sent
= 0;
1805 u_int64_t mpt_dsn
= 0;
1806 struct mptcb
*mp_tp
= mpte
->mpte_mptcb
;
1807 struct mbuf
*mpt_mbuf
= NULL
;
1809 struct mbuf
*head
, *tail
;
1810 int tcp_zero_len_write
= 0;
1812 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
1813 MPTS_LOCK_ASSERT_HELD(mpts
);
1814 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
1815 so
= mpts
->mpts_socket
;
1817 DTRACE_MPTCP2(subflow__output
, struct mptses
*, mpte
,
1818 struct mptsub
*, mpts
);
1820 /* subflow socket is suspended? */
1821 if (mpts
->mpts_flags
& MPTSF_SUSPENDED
) {
1822 mptcplog((LOG_ERR
, "MPTCP Sender: %s mp_so 0x%llx cid %d is "
1823 "flow controlled\n", __func__
,
1824 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), mpts
->mpts_connid
),
1825 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_ERR
);
1829 /* subflow socket is not MPTCP capable? */
1830 if (!(mpts
->mpts_flags
& MPTSF_MP_CAPABLE
) &&
1831 !(mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) &&
1832 !(mpts
->mpts_flags
& MPTSF_FASTJ_SEND
) &&
1833 !(mpts
->mpts_flags
& MPTSF_TFO_REQD
)) {
1834 mptcplog((LOG_ERR
, "MPTCP Sender: %s mp_so 0x%llx cid %d not "
1835 "MPTCP capable\n", __func__
,
1836 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), mpts
->mpts_connid
),
1837 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_ERR
);
1841 /* Remove Addr Option is not sent reliably as per I-D */
1842 if (mpte
->mpte_flags
& MPTE_SND_REM_ADDR
) {
1843 struct tcpcb
*tp
= intotcpcb(sotoinpcb(so
));
1844 tp
->t_rem_aid
= mpte
->mpte_lost_aid
;
1845 if (mptcp_remaddr_enable
)
1846 tp
->t_mpflags
|= TMPF_SND_REM_ADDR
;
1847 mpte
->mpte_flags
&= ~MPTE_SND_REM_ADDR
;
1850 if (mpts
->mpts_flags
& MPTSF_TFO_REQD
) {
1851 mptcp_drop_tfo_data(mpte
, mpts
);
1855 * The mbuf chains containing the metadata (as well as pointing to
1856 * the user data sitting at the MPTCP output queue) would then be
1857 * sent down to the subflow socket.
1859 * Some notes on data sequencing:
1861 * a. Each mbuf must be a M_PKTHDR.
1862 * b. MPTCP metadata is stored in the mptcp_pktinfo structure
1863 * in the mbuf pkthdr structure.
1864 * c. Each mbuf containing the MPTCP metadata must have its
1865 * pkt_flags marked with the PKTF_MPTCP flag.
1868 /* First, drop acknowledged data */
1869 sb_mb
= mp_so
->so_snd
.sb_mb
;
1870 if (sb_mb
== NULL
) {
1874 VERIFY(sb_mb
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
);
1877 while (mpt_mbuf
&& mpt_mbuf
->m_pkthdr
.mp_rlen
== 0) {
1878 if (((so
->so_state
& SS_ISCONNECTED
) == 0) &&
1879 (mpt_mbuf
->m_next
== NULL
) &&
1880 (so
->so_flags1
& SOF1_PRECONNECT_DATA
)) {
1882 * If TFO, allow connection establishment with zero
1885 tcp_zero_len_write
= 1;
1886 goto zero_len_write
;
1888 mpt_mbuf
= mpt_mbuf
->m_next
;
1890 if (mpt_mbuf
&& (mpt_mbuf
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
)) {
1891 mpt_dsn
= mpt_mbuf
->m_pkthdr
.mp_dsn
;
1897 if (MPTCP_SEQ_LT(mpt_dsn
, mp_tp
->mpt_snduna
)) {
1899 len
= mp_tp
->mpt_snduna
- mpt_dsn
;
1901 sbdrop(&mp_so
->so_snd
, (int)len
);
1906 * In degraded mode, we don't receive data acks, so force free
1907 * mbufs less than snd_nxt
1909 if (mp_so
->so_snd
.sb_mb
== NULL
) {
1914 mpt_dsn
= mp_so
->so_snd
.sb_mb
->m_pkthdr
.mp_dsn
;
1915 if ((mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) &&
1916 (mp_tp
->mpt_flags
& MPTCPF_POST_FALLBACK_SYNC
) &&
1917 MPTCP_SEQ_LT(mpt_dsn
, mp_tp
->mpt_sndnxt
)) {
1919 len
= mp_tp
->mpt_sndnxt
- mpt_dsn
;
1920 sbdrop(&mp_so
->so_snd
, (int)len
);
1921 mp_tp
->mpt_snduna
= mp_tp
->mpt_sndnxt
;
1924 if ((mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) &&
1925 !(mp_tp
->mpt_flags
& MPTCPF_POST_FALLBACK_SYNC
)) {
1926 mp_tp
->mpt_flags
|= MPTCPF_POST_FALLBACK_SYNC
;
1927 so
->so_flags1
|= SOF1_POST_FALLBACK_SYNC
;
1928 if (mp_tp
->mpt_flags
& MPTCPF_RECVD_MPFAIL
)
1929 mpts
->mpts_sndnxt
= mp_tp
->mpt_dsn_at_csum_fail
;
1933 * Adjust the subflow's notion of next byte to send based on
1934 * the last unacknowledged byte
1936 if (MPTCP_SEQ_LT(mpts
->mpts_sndnxt
, mp_tp
->mpt_snduna
)) {
1937 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
1941 * Adjust the top level notion of next byte used for retransmissions
1944 if (MPTCP_SEQ_LT(mp_tp
->mpt_sndnxt
, mp_tp
->mpt_snduna
)) {
1945 mp_tp
->mpt_sndnxt
= mp_tp
->mpt_snduna
;
1949 /* Now determine the offset from which to start transmitting data */
1950 sb_mb
= mp_so
->so_snd
.sb_mb
;
1951 sb_cc
= mp_so
->so_snd
.sb_cc
;
1952 if (sb_mb
== NULL
) {
1956 if (MPTCP_SEQ_LT(mpts
->mpts_sndnxt
, mp_tp
->mpt_sndmax
)) {
1957 off
= mpts
->mpts_sndnxt
- mp_tp
->mpt_snduna
;
1958 sb_cc
-= (size_t)off
;
1967 while (mpt_mbuf
&& ((mpt_mbuf
->m_pkthdr
.mp_rlen
== 0) ||
1968 (mpt_mbuf
->m_pkthdr
.mp_rlen
<= (u_int32_t
)off
))) {
1969 off
-= mpt_mbuf
->m_pkthdr
.mp_rlen
;
1970 mpt_mbuf
= mpt_mbuf
->m_next
;
1972 if (mpts
->mpts_flags
& MPTSF_MP_DEGRADED
)
1973 mptcplog((LOG_DEBUG
, "MPTCP Sender: %s cid = %d "
1974 "snduna = %llu sndnxt = %llu probe %d\n",
1975 __func__
, mpts
->mpts_connid
,
1976 mp_tp
->mpt_snduna
, mpts
->mpts_sndnxt
,
1977 mpts
->mpts_probecnt
),
1978 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
1980 VERIFY((mpt_mbuf
== NULL
) || (mpt_mbuf
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
));
1984 while (tot_sent
< sb_cc
) {
1988 mlen
= mpt_mbuf
->m_pkthdr
.mp_rlen
;
1994 panic("%s: unexpected %lu %lu \n", __func__
,
1998 m
= m_copym_mode(mpt_mbuf
, (int)off
, mlen
, M_DONTWAIT
,
1999 M_COPYM_MUST_COPY_HDR
);
2005 /* Create a DSN mapping for the data (m_copym does it) */
2006 mpt_dsn
= mpt_mbuf
->m_pkthdr
.mp_dsn
;
2007 VERIFY(m
->m_flags
& M_PKTHDR
);
2008 m
->m_pkthdr
.pkt_flags
|= PKTF_MPTCP
;
2009 m
->m_pkthdr
.pkt_flags
&= ~PKTF_MPSO
;
2010 m
->m_pkthdr
.mp_dsn
= mpt_dsn
+ off
;
2011 m
->m_pkthdr
.mp_rseq
= mpts
->mpts_rel_seq
;
2012 m
->m_pkthdr
.mp_rlen
= mlen
;
2013 mpts
->mpts_rel_seq
+= mlen
;
2014 m
->m_pkthdr
.len
= mlen
;
2025 mpt_mbuf
= mpt_mbuf
->m_next
;
2029 struct tcpcb
*tp
= intotcpcb(sotoinpcb(so
));
2031 if ((mpts
->mpts_flags
& MPTSF_TFO_REQD
) &&
2032 (tp
->t_tfo_stats
== 0)) {
2033 tp
->t_mpflags
|= TMPF_TFO_REQUEST
;
2034 } else if (mpts
->mpts_flags
& MPTSF_FASTJ_SEND
) {
2035 tp
->t_mpflags
|= TMPF_FASTJOIN_SEND
;
2038 error
= sock_sendmbuf(so
, NULL
, head
, 0, NULL
);
2040 DTRACE_MPTCP7(send
, struct mbuf
*, head
, struct socket
*, so
,
2041 struct sockbuf
*, &so
->so_rcv
,
2042 struct sockbuf
*, &so
->so_snd
,
2043 struct mptses
*, mpte
, struct mptsub
*, mpts
,
2045 } else if (tcp_zero_len_write
== 1) {
2048 /* Opting to call pru_send as no mbuf at subflow level */
2049 error
= (*so
->so_proto
->pr_usrreqs
->pru_send
)
2050 (so
, 0, NULL
, NULL
, NULL
, current_proc());
2051 socket_unlock(so
, 1);
2054 if ((error
== 0) || (error
== EWOULDBLOCK
)) {
2055 mpts
->mpts_sndnxt
+= tot_sent
;
2057 if (mpts
->mpts_probesoon
&& mpts
->mpts_maxseg
&& tot_sent
) {
2058 tcpstat
.tcps_mp_num_probes
++;
2059 if (tot_sent
< mpts
->mpts_maxseg
)
2060 mpts
->mpts_probecnt
+= 1;
2062 mpts
->mpts_probecnt
+=
2063 tot_sent
/mpts
->mpts_maxseg
;
2068 if (MPTCP_SEQ_LT(mp_tp
->mpt_sndnxt
, mpts
->mpts_sndnxt
)) {
2069 if (MPTCP_DATASEQ_HIGH32(mpts
->mpts_sndnxt
) >
2070 MPTCP_DATASEQ_HIGH32(mp_tp
->mpt_sndnxt
))
2071 mp_tp
->mpt_flags
|= MPTCPF_SND_64BITDSN
;
2072 mp_tp
->mpt_sndnxt
= mpts
->mpts_sndnxt
;
2074 mptcp_cancel_timer(mp_tp
, MPTT_REXMT
);
2077 if (so
->so_flags1
& SOF1_PRECONNECT_DATA
)
2078 so
->so_flags1
&= ~SOF1_PRECONNECT_DATA
;
2080 /* Send once in SYN_SENT state to avoid sending SYN spam */
2081 if (mpts
->mpts_flags
& MPTSF_FASTJ_SEND
) {
2082 so
->so_flags
&= ~SOF_MPTCP_FASTJOIN
;
2083 mpts
->mpts_flags
&= ~MPTSF_FASTJ_SEND
;
2086 if ((mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) ||
2087 (mpts
->mpts_probesoon
!= 0))
2088 mptcplog((LOG_DEBUG
, "MPTCP Sender: %s cid %d "
2089 "wrote %d %d probe %d probedelta %d\n",
2090 __func__
, mpts
->mpts_connid
, (int)tot_sent
,
2091 (int) sb_cc
, mpts
->mpts_probecnt
,
2092 (tcp_now
- mpts
->mpts_probesoon
)),
2093 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
2095 mptcplog((LOG_ERR
, "MPTCP Sender: %s cid %d error %d len %zd\n",
2096 __func__
, mpts
->mpts_connid
, error
, tot_sent
),
2097 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_ERR
);
2104 * Subflow socket control event upcall.
2106 * Called when the associated subflow socket posted one or more control events.
2107 * The subflow socket lock has been released prior to invoking the callback.
2108 * Note that the upcall may occur synchronously as a result of MPTCP performing
2109 * an action on it, or asynchronously as a result of an event happening at the
2110 * subflow layer. Therefore, to maintain lock ordering, the only lock that can
2111 * be acquired here is the thread lock, for signalling purposes.
2114 mptcp_subflow_eupcall(struct socket
*so
, void *arg
, uint32_t events
)
2117 struct mptsub
*mpts
= arg
;
2118 struct mptses
*mpte
= mpts
->mpts_mpte
;
2120 VERIFY(mpte
!= NULL
);
2122 lck_mtx_lock(&mpte
->mpte_thread_lock
);
2123 atomic_bitset_32(&mpts
->mpts_evctl
, events
);
2124 mptcp_thread_signal_locked(mpte
);
2125 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
2129 * Subflow socket control events.
2131 * Called for handling events related to the underlying subflow socket.
2134 mptcp_subflow_events(struct mptses
*mpte
, struct mptsub
*mpts
,
2135 uint64_t *p_mpsofilt_hint
)
2137 uint32_t events
, save_events
;
2138 ev_ret_t ret
= MPTS_EVRET_OK
;
2140 int mpsub_ev_entry_count
= sizeof(mpsub_ev_entry_tbl
)/
2141 sizeof(mpsub_ev_entry_tbl
[0]);
2142 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2143 MPTS_LOCK_ASSERT_HELD(mpts
);
2145 /* bail if there's nothing to process */
2146 if ((events
= mpts
->mpts_evctl
) == 0)
2149 if (events
& (SO_FILT_HINT_CONNRESET
|SO_FILT_HINT_MUSTRST
|
2150 SO_FILT_HINT_CANTRCVMORE
|SO_FILT_HINT_CANTSENDMORE
|
2151 SO_FILT_HINT_TIMEOUT
|SO_FILT_HINT_NOSRCADDR
|
2152 SO_FILT_HINT_IFDENIED
|SO_FILT_HINT_SUSPEND
|
2153 SO_FILT_HINT_DISCONNECTED
)) {
2154 events
|= SO_FILT_HINT_MPFAILOVER
;
2157 save_events
= events
;
2159 DTRACE_MPTCP3(subflow__events
, struct mptses
*, mpte
,
2160 struct mptsub
*, mpts
, uint32_t, events
);
2162 mptcplog((LOG_DEBUG
, "MPTCP Events: %s cid %d events=%b\n", __func__
,
2163 mpts
->mpts_connid
, events
, SO_FILT_HINT_BITS
),
2164 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_VERBOSE
);
2167 * Process all the socket filter hints and reset the hint
2168 * once it is handled
2170 for (i
= 0; (i
< mpsub_ev_entry_count
) && events
; i
++) {
2172 * Always execute the DISCONNECTED event, because it will wakeup
2175 if ((events
& mpsub_ev_entry_tbl
[i
].sofilt_hint_mask
) &&
2176 (ret
>= MPTS_EVRET_OK
||
2177 mpsub_ev_entry_tbl
[i
].sofilt_hint_mask
== SO_FILT_HINT_DISCONNECTED
)) {
2179 mpsub_ev_entry_tbl
[i
].sofilt_hint_ev_hdlr(mpte
, mpts
, p_mpsofilt_hint
);
2180 events
&= ~mpsub_ev_entry_tbl
[i
].sofilt_hint_mask
;
2181 ret
= ((error
>= MPTS_EVRET_OK
) ? MAX(error
, ret
) : error
);
2186 * We should be getting only events specified via sock_catchevents(),
2187 * so loudly complain if we have any unprocessed one(s).
2189 if (events
!= 0 || ret
< MPTS_EVRET_OK
) {
2190 mptcplog((LOG_ERR
, "MPTCP Events %s%s: cid %d evret %s (%d)"
2191 " unhandled events=%b\n",
2192 (events
!= 0) && (ret
== MPTS_EVRET_OK
) ? "MPTCP_ERROR " : "",
2193 __func__
, mpts
->mpts_connid
,
2194 mptcp_evret2str(ret
), ret
, events
, SO_FILT_HINT_BITS
),
2195 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2198 /* clear the ones we've processed */
2199 atomic_bitclear_32(&mpts
->mpts_evctl
, save_events
);
2204 * Handle SO_FILT_HINT_CONNRESET subflow socket event.
2207 mptcp_subflow_connreset_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2208 uint64_t *p_mpsofilt_hint
)
2210 struct socket
*mp_so
, *so
;
2211 struct mptcb
*mp_tp
;
2214 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2215 MPTS_LOCK_ASSERT_HELD(mpts
);
2216 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2217 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2218 mp_tp
= mpte
->mpte_mptcb
;
2219 so
= mpts
->mpts_socket
;
2221 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
2222 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
2224 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2225 "%s: cid %d [linger %s]\n", __func__
,
2226 mpts
->mpts_connid
, (linger
? "YES" : "NO")),
2227 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2230 * We got a TCP RST for this subflow connection.
2232 * Right now, we simply propagate ECONNREFUSED to the MPTCP socket
2233 * client if the MPTCP connection has not been established or
2234 * if the connection has only one subflow and is a connection being
2235 * resumed. Otherwise we close the socket.
2237 mptcp_subflow_disconnect(mpte
, mpts
, !linger
);
2240 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
2241 mpts
->mpts_soerror
= mp_so
->so_error
= ECONNREFUSED
;
2242 } else if (mpte
->mpte_nummpcapflows
< 1) {
2243 mpts
->mpts_soerror
= mp_so
->so_error
= ECONNRESET
;
2244 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNRESET
;
2249 * Keep the subflow socket around, unless the MPTCP socket has
2250 * been detached or the subflow has been disconnected explicitly,
2251 * in which case it should be deleted right away.
2253 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
2257 * Handle SO_FILT_HINT_CANTRCVMORE subflow socket event.
2260 mptcp_subflow_cantrcvmore_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2261 uint64_t *p_mpsofilt_hint
)
2263 #pragma unused(p_mpsofilt_hint)
2266 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2267 MPTS_LOCK_ASSERT_HELD(mpts
);
2269 so
= mpts
->mpts_socket
;
2271 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2272 "%s: cid %d\n", __func__
, mpts
->mpts_connid
),
2273 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2276 * We got a FIN for this subflow connection. This subflow socket
2277 * is no longer available for receiving data;
2278 * The FIN may arrive with data. The data is handed up to the
2279 * mptcp socket and the subflow is disconnected.
2282 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2286 * Handle SO_FILT_HINT_CANTSENDMORE subflow socket event.
2289 mptcp_subflow_cantsendmore_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2290 uint64_t *p_mpsofilt_hint
)
2292 #pragma unused(p_mpsofilt_hint)
2295 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2296 MPTS_LOCK_ASSERT_HELD(mpts
);
2298 so
= mpts
->mpts_socket
;
2300 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2301 "%s: cid %d\n", __func__
, mpts
->mpts_connid
),
2302 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2304 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2308 * Handle SO_FILT_HINT_TIMEOUT subflow socket event.
2311 mptcp_subflow_timeout_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2312 uint64_t *p_mpsofilt_hint
)
2314 #pragma unused(p_mpsofilt_hint)
2315 struct socket
*mp_so
, *so
;
2316 struct mptcb
*mp_tp
;
2319 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2320 MPTS_LOCK_ASSERT_HELD(mpts
);
2321 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2322 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2323 mp_tp
= mpte
->mpte_mptcb
;
2324 so
= mpts
->mpts_socket
;
2326 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
2327 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
2329 mptcplog((LOG_NOTICE
, "MPTCP Events: "
2330 "%s: cid %d [linger %s]\n", __func__
,
2331 mpts
->mpts_connid
, (linger
? "YES" : "NO")),
2332 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2334 if (mpts
->mpts_soerror
== 0)
2335 mpts
->mpts_soerror
= ETIMEDOUT
;
2338 * The subflow connection has timed out.
2340 * Right now, we simply propagate ETIMEDOUT to the MPTCP socket
2341 * client if the MPTCP connection has not been established. Otherwise
2344 mptcp_subflow_disconnect(mpte
, mpts
, !linger
);
2347 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
2348 mp_so
->so_error
= ETIMEDOUT
;
2353 * Keep the subflow socket around, unless the MPTCP socket has
2354 * been detached or the subflow has been disconnected explicitly,
2355 * in which case it should be deleted right away.
2357 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
2361 * Handle SO_FILT_HINT_NOSRCADDR subflow socket event.
2364 mptcp_subflow_nosrcaddr_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2365 uint64_t *p_mpsofilt_hint
)
2367 #pragma unused(p_mpsofilt_hint)
2368 struct socket
*mp_so
, *so
;
2369 struct mptcb
*mp_tp
;
2371 struct tcpcb
*tp
= NULL
;
2373 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2374 MPTS_LOCK_ASSERT_HELD(mpts
);
2376 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2377 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2378 mp_tp
= mpte
->mpte_mptcb
;
2379 so
= mpts
->mpts_socket
;
2381 /* Not grabbing socket lock as t_local_aid is write once only */
2382 tp
= intotcpcb(sotoinpcb(so
));
2384 * This overwrites any previous mpte_lost_aid to avoid storing
2385 * too much state when the typical case has only two subflows.
2387 mpte
->mpte_flags
|= MPTE_SND_REM_ADDR
;
2388 mpte
->mpte_lost_aid
= tp
->t_local_aid
;
2390 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
2391 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
2393 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2394 "%s cid %d [linger %s]\n", __func__
,
2395 mpts
->mpts_connid
, (linger
? "YES" : "NO")),
2396 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2398 if (mpts
->mpts_soerror
== 0)
2399 mpts
->mpts_soerror
= EADDRNOTAVAIL
;
2402 * The subflow connection has lost its source address.
2404 * Right now, we simply propagate EADDRNOTAVAIL to the MPTCP socket
2405 * client if the MPTCP connection has not been established. If it
2406 * has been established with one subflow , we keep the MPTCP
2407 * connection valid without any subflows till closed by application.
2408 * This lets tcp connection manager decide whether to close this or
2409 * not as it reacts to reachability changes too.
2411 mptcp_subflow_disconnect(mpte
, mpts
, !linger
);
2414 if ((mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) &&
2415 (mp_so
->so_flags
& SOF_NOADDRAVAIL
)) {
2416 mp_so
->so_error
= EADDRNOTAVAIL
;
2421 * Keep the subflow socket around, unless the MPTCP socket has
2422 * been detached or the subflow has been disconnected explicitly,
2423 * in which case it should be deleted right away.
2425 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
2429 * Handle SO_FILT_HINT_MPCANTRCVMORE subflow socket event that
2430 * indicates that the remote side sent a Data FIN
2433 mptcp_subflow_mpcantrcvmore_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2434 uint64_t *p_mpsofilt_hint
)
2436 struct socket
*so
, *mp_so
;
2437 struct mptcb
*mp_tp
;
2439 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2440 MPTS_LOCK_ASSERT_HELD(mpts
);
2441 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2442 so
= mpts
->mpts_socket
;
2443 mp_tp
= mpte
->mpte_mptcb
;
2445 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2446 "%s: cid %d\n", __func__
, mpts
->mpts_connid
),
2447 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2450 * We got a Data FIN for the MPTCP connection.
2451 * The FIN may arrive with data. The data is handed up to the
2452 * mptcp socket and the user is notified so that it may close
2453 * the socket if needed.
2456 if (mp_tp
->mpt_state
== MPTCPS_CLOSE_WAIT
) {
2457 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CANTRCVMORE
;
2460 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2464 * Handle SO_FILT_HINT_MPFAILOVER subflow socket event
2467 mptcp_subflow_failover_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2468 uint64_t *p_mpsofilt_hint
)
2470 struct mptsub
*mpts_alt
= NULL
;
2471 struct socket
*so
= NULL
;
2472 struct socket
*mp_so
;
2473 int altpath_exists
= 0;
2475 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2476 MPTS_LOCK_ASSERT_HELD(mpts
);
2477 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2478 mptcplog((LOG_NOTICE
, "MPTCP Events: "
2479 "%s: mp_so 0x%llx\n", __func__
,
2480 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
)),
2481 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2484 mpts_alt
= mptcp_get_subflow(mpte
, mpts
, NULL
);
2487 * If there is no alternate eligible subflow, ignore the
2490 if (mpts_alt
== NULL
) {
2491 mptcplog((LOG_WARNING
, "MPTCP Events: "
2492 "%s: no alternate path\n", __func__
),
2493 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2495 if (mptcp_delayed_subf_start
) {
2496 mpts_alt
= mptcp_get_pending_subflow(mpte
, mpts
);
2497 if (mpts_alt
!= NULL
) {
2498 MPTS_LOCK(mpts_alt
);
2499 (void) mptcp_subflow_soconnectx(mpte
,
2501 MPTS_UNLOCK(mpts_alt
);
2507 MPTS_LOCK(mpts_alt
);
2509 so
= mpts_alt
->mpts_socket
;
2510 if (mpts_alt
->mpts_flags
& MPTSF_FAILINGOVER
) {
2512 /* All data acknowledged and no RTT spike */
2513 if ((so
->so_snd
.sb_cc
== 0) &&
2514 (mptcp_no_rto_spike(so
))) {
2515 so
->so_flags
&= ~SOF_MP_TRYFAILOVER
;
2516 mpts_alt
->mpts_flags
&= ~MPTSF_FAILINGOVER
;
2518 /* no alternate path available */
2521 socket_unlock(so
, 1);
2523 if (altpath_exists
) {
2524 mptcplog((LOG_INFO
, "MPTCP Events: "
2526 __func__
, mpts_alt
->mpts_connid
),
2527 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2528 mpts_alt
->mpts_flags
|= MPTSF_ACTIVE
;
2529 mpts_alt
->mpts_peerswitch
= 0;
2530 struct mptcb
*mp_tp
= mpte
->mpte_mptcb
;
2531 /* Bring the subflow's notion of snd_nxt into the send window */
2533 mpts_alt
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
2535 mpte
->mpte_active_sub
= mpts_alt
;
2538 socket_unlock(so
, 1);
2540 MPTS_UNLOCK(mpts_alt
);
2542 if (altpath_exists
) {
2543 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNINFO_UPDATED
;
2544 mptcplog((LOG_NOTICE
, "MPTCP Events: "
2545 "%s: mp_so 0x%llx switched from "
2546 "%d to %d\n", __func__
,
2547 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
2548 mpts
->mpts_connid
, mpts_alt
->mpts_connid
),
2549 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2550 tcpstat
.tcps_mp_switches
++;
2554 if (altpath_exists
) {
2555 mpts
->mpts_flags
|= MPTSF_FAILINGOVER
;
2556 mpts
->mpts_flags
&= ~MPTSF_ACTIVE
;
2558 mptcplog((LOG_DEBUG
, "MPTCP Events %s: no alt cid = %d\n",
2559 __func__
, mpts
->mpts_connid
),
2560 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2562 so
= mpts
->mpts_socket
;
2564 so
->so_flags
&= ~SOF_MP_TRYFAILOVER
;
2565 socket_unlock(so
, 1);
2567 MPTS_LOCK_ASSERT_HELD(mpts
);
2568 return (MPTS_EVRET_OK
);
2572 * Handle SO_FILT_HINT_IFDENIED subflow socket event.
2575 mptcp_subflow_ifdenied_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2576 uint64_t *p_mpsofilt_hint
)
2578 struct socket
*mp_so
, *so
;
2579 struct mptcb
*mp_tp
;
2582 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2583 MPTS_LOCK_ASSERT_HELD(mpts
);
2584 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2585 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2586 mp_tp
= mpte
->mpte_mptcb
;
2587 so
= mpts
->mpts_socket
;
2589 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
2590 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
2592 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2593 "%s: cid %d [linger %s]\n", __func__
,
2594 mpts
->mpts_connid
, (linger
? "YES" : "NO")),
2595 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2597 if (mpts
->mpts_soerror
== 0)
2598 mpts
->mpts_soerror
= EHOSTUNREACH
;
2601 * The subflow connection cannot use the outgoing interface.
2603 * Right now, we simply propagate EHOSTUNREACH to the MPTCP socket
2604 * client if the MPTCP connection has not been established. If it
2605 * has been established, let the upper layer call disconnectx.
2607 mptcp_subflow_disconnect(mpte
, mpts
, !linger
);
2608 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_IFDENIED
;
2611 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
2612 mp_so
->so_error
= EHOSTUNREACH
;
2617 * Keep the subflow socket around, unless the MPTCP socket has
2618 * been detached or the subflow has been disconnected explicitly,
2619 * in which case it should be deleted right away.
2621 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
2625 * Handle SO_FILT_HINT_SUSPEND subflow socket event.
2628 mptcp_subflow_suspend_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2629 uint64_t *p_mpsofilt_hint
)
2631 #pragma unused(p_mpsofilt_hint)
2634 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2635 MPTS_LOCK_ASSERT_HELD(mpts
);
2637 so
= mpts
->mpts_socket
;
2639 /* the subflow connection is being flow controlled */
2640 mpts
->mpts_flags
|= MPTSF_SUSPENDED
;
2642 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2643 "%s: cid %d\n", __func__
,
2644 mpts
->mpts_connid
), MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2646 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2650 * Handle SO_FILT_HINT_RESUME subflow socket event.
2653 mptcp_subflow_resume_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2654 uint64_t *p_mpsofilt_hint
)
2656 #pragma unused(p_mpsofilt_hint)
2659 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2660 MPTS_LOCK_ASSERT_HELD(mpts
);
2662 so
= mpts
->mpts_socket
;
2664 /* the subflow connection is no longer flow controlled */
2665 mpts
->mpts_flags
&= ~MPTSF_SUSPENDED
;
2667 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2668 "%s: cid %d\n", __func__
, mpts
->mpts_connid
),
2669 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2671 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2675 * Handle SO_FILT_HINT_CONNECTED subflow socket event.
2678 mptcp_subflow_connected_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2679 uint64_t *p_mpsofilt_hint
)
2681 char buf0
[MAX_IPv6_STR_LEN
], buf1
[MAX_IPv6_STR_LEN
];
2682 struct sockaddr_entry
*src_se
, *dst_se
;
2683 struct sockaddr_storage src
;
2684 struct socket
*mp_so
, *so
;
2685 struct mptcb
*mp_tp
;
2686 struct ifnet
*outifp
;
2688 boolean_t mpok
= FALSE
;
2689 boolean_t cell
= FALSE
;
2690 boolean_t wifi
= FALSE
;
2691 boolean_t wired
= FALSE
;
2693 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2694 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2695 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2696 mp_tp
= mpte
->mpte_mptcb
;
2698 MPTS_LOCK_ASSERT_HELD(mpts
);
2699 so
= mpts
->mpts_socket
;
2700 af
= mpts
->mpts_family
;
2702 if (mpts
->mpts_flags
& MPTSF_CONNECTED
)
2703 return (MPTS_EVRET_OK
);
2705 if ((mpts
->mpts_flags
& MPTSF_DISCONNECTED
) ||
2706 (mpts
->mpts_flags
& MPTSF_DISCONNECTING
)) {
2708 if (!(so
->so_state
& (SS_ISDISCONNECTING
| SS_ISDISCONNECTED
)) &&
2709 (so
->so_state
& SS_ISCONNECTED
)) {
2710 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2711 "%s: cid %d disconnect before tcp connect\n",
2712 __func__
, mpts
->mpts_connid
),
2713 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
2714 (void) soshutdownlock(so
, SHUT_RD
);
2715 (void) soshutdownlock(so
, SHUT_WR
);
2716 (void) sodisconnectlocked(so
);
2718 socket_unlock(so
, 0);
2719 return (MPTS_EVRET_OK
);
2723 * The subflow connection has been connected. Find out whether it
2724 * is connected as a regular TCP or as a MPTCP subflow. The idea is:
2726 * a. If MPTCP connection is not yet established, then this must be
2727 * the first subflow connection. If MPTCP failed to negotiate,
2728 * indicate to the MPTCP socket client via EPROTO, that the
2729 * underlying TCP connection may be peeled off via peeloff(2).
2730 * Otherwise, mark the MPTCP socket as connected.
2732 * b. If MPTCP connection has been established, then this must be
2733 * one of the subsequent subflow connections. If MPTCP failed
2734 * to negotiate, disconnect the connection since peeloff(2)
2735 * is no longer possible.
2737 * Right now, we simply unblock any waiters at the MPTCP socket layer
2738 * if the MPTCP connection has not been established.
2742 if (so
->so_state
& SS_ISDISCONNECTED
) {
2744 * With MPTCP joins, a connection is connected at the subflow
2745 * level, but the 4th ACK from the server elevates the MPTCP
2746 * subflow to connected state. So there is a small window
2747 * where the subflow could get disconnected before the
2748 * connected event is processed.
2750 socket_unlock(so
, 0);
2751 return (MPTS_EVRET_OK
);
2754 mpts
->mpts_soerror
= 0;
2755 mpts
->mpts_flags
&= ~MPTSF_CONNECTING
;
2756 mpts
->mpts_flags
|= MPTSF_CONNECTED
;
2758 if (!(so
->so_flags1
& SOF1_DATA_IDEMPOTENT
))
2759 mpts
->mpts_flags
&= ~MPTSF_TFO_REQD
;
2761 struct tcpcb
*tp
= sototcpcb(so
);
2762 if (tp
->t_mpflags
& TMPF_MPTCP_TRUE
)
2763 mpts
->mpts_flags
|= MPTSF_MP_CAPABLE
;
2765 tp
->t_mpflags
&= ~TMPF_TFO_REQUEST
;
2767 VERIFY(mpts
->mpts_dst_sl
!= NULL
);
2768 dst_se
= TAILQ_FIRST(&mpts
->mpts_dst_sl
->sl_head
);
2769 VERIFY(dst_se
!= NULL
&& dst_se
->se_addr
!= NULL
&&
2770 dst_se
->se_addr
->sa_family
== af
);
2772 VERIFY(mpts
->mpts_src_sl
!= NULL
);
2773 src_se
= TAILQ_FIRST(&mpts
->mpts_src_sl
->sl_head
);
2774 VERIFY(src_se
!= NULL
&& src_se
->se_addr
!= NULL
&&
2775 src_se
->se_addr
->sa_family
== af
);
2777 /* get/check source IP address */
2780 error
= in_getsockaddr_s(so
, &src
);
2782 struct sockaddr_in
*ms
= SIN(src_se
->se_addr
);
2783 struct sockaddr_in
*s
= SIN(&src
);
2785 VERIFY(s
->sin_len
== ms
->sin_len
);
2786 VERIFY(ms
->sin_family
== AF_INET
);
2788 if ((mpts
->mpts_flags
& MPTSF_BOUND_IP
) &&
2789 bcmp(&ms
->sin_addr
, &s
->sin_addr
,
2790 sizeof (ms
->sin_addr
)) != 0) {
2791 mptcplog((LOG_ERR
, "MPTCP Events: "
2793 "address %s (expected %s)\n", __func__
,
2794 mpts
->mpts_connid
, inet_ntop(AF_INET
,
2795 (void *)&s
->sin_addr
.s_addr
, buf0
,
2796 sizeof (buf0
)), inet_ntop(AF_INET
,
2797 (void *)&ms
->sin_addr
.s_addr
, buf1
,
2799 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2801 bcopy(s
, ms
, sizeof (*s
));
2807 error
= in6_getsockaddr_s(so
, &src
);
2809 struct sockaddr_in6
*ms
= SIN6(src_se
->se_addr
);
2810 struct sockaddr_in6
*s
= SIN6(&src
);
2812 VERIFY(s
->sin6_len
== ms
->sin6_len
);
2813 VERIFY(ms
->sin6_family
== AF_INET6
);
2815 if ((mpts
->mpts_flags
& MPTSF_BOUND_IP
) &&
2816 bcmp(&ms
->sin6_addr
, &s
->sin6_addr
,
2817 sizeof (ms
->sin6_addr
)) != 0) {
2818 mptcplog((LOG_ERR
, "MPTCP Events: "
2820 "address %s (expected %s)\n", __func__
,
2821 mpts
->mpts_connid
, inet_ntop(AF_INET6
,
2822 (void *)&s
->sin6_addr
, buf0
,
2823 sizeof (buf0
)), inet_ntop(AF_INET6
,
2824 (void *)&ms
->sin6_addr
, buf1
,
2826 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2828 bcopy(s
, ms
, sizeof (*s
));
2839 mptcplog((LOG_ERR
, "MPTCP Events "
2840 "%s: cid %d getsockaddr failed (%d)\n",
2841 __func__
, mpts
->mpts_connid
, error
),
2842 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2845 /* get/verify the outbound interface */
2846 outifp
= sotoinpcb(so
)->inp_last_outifp
; /* could be NULL */
2847 if (mpts
->mpts_flags
& MPTSF_BOUND_IF
) {
2848 VERIFY(mpts
->mpts_outif
!= NULL
);
2849 if (mpts
->mpts_outif
!= outifp
) {
2850 mptcplog((LOG_ERR
, "MPTCP Events: %s: cid %d outif %s "
2851 "(expected %s)\n", __func__
, mpts
->mpts_connid
,
2852 ((outifp
!= NULL
) ? outifp
->if_xname
: "NULL"),
2853 mpts
->mpts_outif
->if_xname
),
2854 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_ERR
);
2857 outifp
= mpts
->mpts_outif
;
2860 mpts
->mpts_outif
= outifp
;
2863 mpts
->mpts_srtt
= (intotcpcb(sotoinpcb(so
)))->t_srtt
;
2864 mpts
->mpts_rxtcur
= (intotcpcb(sotoinpcb(so
)))->t_rxtcur
;
2865 mpts
->mpts_maxseg
= (intotcpcb(sotoinpcb(so
)))->t_maxseg
;
2867 cell
= IFNET_IS_CELLULAR(mpts
->mpts_outif
);
2868 wifi
= (!cell
&& IFNET_IS_WIFI(mpts
->mpts_outif
));
2869 wired
= (!wifi
&& IFNET_IS_WIRED(mpts
->mpts_outif
));
2872 mpts
->mpts_linktype
|= MPTSL_CELL
;
2874 mpts
->mpts_linktype
|= MPTSL_WIFI
;
2876 mpts
->mpts_linktype
|= MPTSL_WIRED
;
2878 socket_unlock(so
, 0);
2880 mptcplog((LOG_DEBUG
, "MPTCP Sender: %s: cid %d "
2881 "establishment srtt %d \n", __func__
,
2882 mpts
->mpts_connid
, (mpts
->mpts_srtt
>> 5)),
2883 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
2886 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
2887 "%s: cid %d outif %s %s[%d] -> %s[%d] "
2888 "is %s\n", __func__
, mpts
->mpts_connid
, ((outifp
!= NULL
) ?
2889 outifp
->if_xname
: "NULL"), inet_ntop(af
, (af
== AF_INET
) ?
2890 (void *)&SIN(src_se
->se_addr
)->sin_addr
.s_addr
:
2891 (void *)&SIN6(src_se
->se_addr
)->sin6_addr
, buf0
, sizeof (buf0
)),
2892 ((af
== AF_INET
) ? ntohs(SIN(src_se
->se_addr
)->sin_port
) :
2893 ntohs(SIN6(src_se
->se_addr
)->sin6_port
)),
2894 inet_ntop(af
, ((af
== AF_INET
) ?
2895 (void *)&SIN(dst_se
->se_addr
)->sin_addr
.s_addr
:
2896 (void *)&SIN6(dst_se
->se_addr
)->sin6_addr
), buf1
, sizeof (buf1
)),
2897 ((af
== AF_INET
) ? ntohs(SIN(dst_se
->se_addr
)->sin_port
) :
2898 ntohs(SIN6(dst_se
->se_addr
)->sin6_port
)),
2899 ((mpts
->mpts_flags
& MPTSF_MP_CAPABLE
) ?
2900 "MPTCP capable" : "a regular TCP")),
2901 (MPTCP_SOCKET_DBG
| MPTCP_EVENTS_DBG
), MPTCP_LOGLVL_LOG
);
2903 mpok
= (mpts
->mpts_flags
& MPTSF_MP_CAPABLE
);
2906 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNINFO_UPDATED
;
2909 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
2910 /* case (a) above */
2912 mp_tp
->mpt_flags
|= MPTCPF_PEEL_OFF
;
2913 (void) mptcp_drop(mpte
, mp_tp
, EPROTO
);
2917 mptcplog((LOG_DEBUG
, "MPTCP State: "
2918 "MPTCPS_ESTABLISHED for mp_so 0x%llx \n",
2919 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
)),
2920 MPTCP_STATE_DBG
, MPTCP_LOGLVL_LOG
);
2921 mp_tp
->mpt_state
= MPTCPS_ESTABLISHED
;
2922 mpte
->mpte_associd
= mpts
->mpts_connid
;
2923 DTRACE_MPTCP2(state__change
,
2924 struct mptcb
*, mp_tp
,
2925 uint32_t, 0 /* event */);
2927 (void) mptcp_setconnorder(mpte
, mpts
->mpts_connid
, 1);
2928 soisconnected(mp_so
);
2932 mpts
->mpts_flags
|= MPTSF_MPCAP_CTRSET
;
2933 mpte
->mpte_nummpcapflows
++;
2934 MPT_LOCK_SPIN(mp_tp
);
2935 /* With TFO, sndnxt may be initialized earlier */
2936 if (mpts
->mpts_sndnxt
== 0)
2937 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
2942 if (mptcp_rwnotify
&& (mpte
->mpte_nummpcapflows
== 0)) {
2943 /* Experimental code, disabled by default. */
2949 * In case of additional flows, the MPTCP socket is not
2950 * MPTSF_MP_CAPABLE until an ACK is received from server
2951 * for 3-way handshake. TCP would have guaranteed that this
2952 * is an MPTCP subflow.
2955 mpts
->mpts_flags
|= MPTSF_MPCAP_CTRSET
;
2956 mpts
->mpts_flags
&= ~MPTSF_FASTJ_REQD
;
2957 mpte
->mpte_nummpcapflows
++;
2958 MPT_LOCK_SPIN(mp_tp
);
2959 /* With Fastjoin, sndnxt is updated before connected_ev */
2960 if (mpts
->mpts_sndnxt
== 0) {
2961 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
2962 mpts
->mpts_rel_seq
= 1;
2965 mptcp_output_needed(mpte
, mpts
);
2971 MPTS_LOCK_ASSERT_HELD(mpts
);
2973 return (MPTS_EVRET_OK
); /* keep the subflow socket around */
2977 * Handle SO_FILT_HINT_DISCONNECTED subflow socket event.
2980 mptcp_subflow_disconnected_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
2981 uint64_t *p_mpsofilt_hint
)
2983 struct socket
*mp_so
, *so
;
2984 struct mptcb
*mp_tp
;
2987 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
2988 MPTS_LOCK_ASSERT_HELD(mpts
);
2989 VERIFY(mpte
->mpte_mppcb
!= NULL
);
2990 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
2991 mp_tp
= mpte
->mpte_mptcb
;
2992 so
= mpts
->mpts_socket
;
2994 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
2995 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
2997 mptcplog((LOG_DEBUG
, "MPTCP Events: "
2998 "%s: cid %d [linger %s]\n", __func__
,
2999 mpts
->mpts_connid
, (linger
? "YES" : "NO")),
3000 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3002 if (mpts
->mpts_flags
& MPTSF_DISCONNECTED
)
3003 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
3006 * Clear flags that are used by getconninfo to return state.
3007 * Retain like MPTSF_DELETEOK for internal purposes.
3009 mpts
->mpts_flags
&= ~(MPTSF_CONNECTING
|MPTSF_CONNECT_PENDING
|
3010 MPTSF_CONNECTED
|MPTSF_DISCONNECTING
|MPTSF_PREFERRED
|
3011 MPTSF_MP_CAPABLE
|MPTSF_MP_READY
|MPTSF_MP_DEGRADED
|
3012 MPTSF_SUSPENDED
|MPTSF_ACTIVE
);
3013 mpts
->mpts_flags
|= MPTSF_DISCONNECTED
;
3016 * The subflow connection has been disconnected.
3018 * Right now, we simply unblock any waiters at the MPTCP socket layer
3019 * if the MPTCP connection has not been established.
3021 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNINFO_UPDATED
;
3023 if (mpts
->mpts_flags
& MPTSF_MPCAP_CTRSET
) {
3024 mpte
->mpte_nummpcapflows
--;
3025 if (mpte
->mpte_active_sub
== mpts
) {
3026 mpte
->mpte_active_sub
= NULL
;
3027 mptcplog((LOG_DEBUG
, "MPTCP Events: "
3028 "%s: resetting active subflow \n",
3029 __func__
), MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3031 mpts
->mpts_flags
&= ~MPTSF_MPCAP_CTRSET
;
3035 if (mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) {
3038 soisdisconnected(mp_so
);
3045 * The underlying subflow socket has been disconnected;
3046 * it is no longer useful to us. Keep the subflow socket
3047 * around, unless the MPTCP socket has been detached or
3048 * the subflow has been disconnected explicitly, in which
3049 * case it should be deleted right away.
3051 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
3055 * Handle SO_FILT_HINT_MPSTATUS subflow socket event
3058 mptcp_subflow_mpstatus_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
3059 uint64_t *p_mpsofilt_hint
)
3061 struct socket
*mp_so
, *so
;
3062 struct mptcb
*mp_tp
;
3063 ev_ret_t ret
= MPTS_EVRET_OK
;
3065 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3066 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3067 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3068 mp_tp
= mpte
->mpte_mptcb
;
3070 MPTS_LOCK_ASSERT_HELD(mpts
);
3071 so
= mpts
->mpts_socket
;
3076 if (sototcpcb(so
)->t_mpflags
& TMPF_MPTCP_TRUE
)
3077 mpts
->mpts_flags
|= MPTSF_MP_CAPABLE
;
3079 mpts
->mpts_flags
&= ~MPTSF_MP_CAPABLE
;
3081 if (sototcpcb(so
)->t_mpflags
& TMPF_TCP_FALLBACK
) {
3082 if (mpts
->mpts_flags
& MPTSF_MP_DEGRADED
)
3084 mpts
->mpts_flags
|= MPTSF_MP_DEGRADED
;
3087 mpts
->mpts_flags
&= ~MPTSF_MP_DEGRADED
;
3089 if (sototcpcb(so
)->t_mpflags
& TMPF_MPTCP_READY
)
3090 mpts
->mpts_flags
|= MPTSF_MP_READY
;
3092 mpts
->mpts_flags
&= ~MPTSF_MP_READY
;
3094 if (mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) {
3095 mp_tp
->mpt_flags
|= MPTCPF_FALLBACK_TO_TCP
;
3096 mp_tp
->mpt_flags
&= ~MPTCPF_JOIN_READY
;
3099 if (mp_tp
->mpt_flags
& MPTCPF_FALLBACK_TO_TCP
) {
3100 VERIFY(!(mp_tp
->mpt_flags
& MPTCPF_JOIN_READY
));
3101 ret
= MPTS_EVRET_DISCONNECT_FALLBACK
;
3102 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
|
3103 SO_FILT_HINT_CONNINFO_UPDATED
;
3104 } else if (mpts
->mpts_flags
& MPTSF_MP_READY
) {
3105 mp_tp
->mpt_flags
|= MPTCPF_JOIN_READY
;
3106 ret
= MPTS_EVRET_CONNECT_PENDING
;
3108 *p_mpsofilt_hint
|= SO_FILT_HINT_LOCKED
|
3109 SO_FILT_HINT_CONNINFO_UPDATED
;
3112 mptcplog((LOG_DEBUG
, "MPTCP Events: "
3113 "%s: mp_so 0x%llx mpt_flags=%b cid %d "
3114 "mptsf=%b\n", __func__
,
3115 (u_int64_t
)VM_KERNEL_ADDRPERM(mpte
->mpte_mppcb
->mpp_socket
),
3116 mp_tp
->mpt_flags
, MPTCPF_BITS
, mpts
->mpts_connid
,
3117 mpts
->mpts_flags
, MPTSF_BITS
),
3118 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3122 socket_unlock(so
, 0);
3127 * Handle SO_FILT_HINT_MUSTRST subflow socket event
3130 mptcp_subflow_mustrst_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
3131 uint64_t *p_mpsofilt_hint
)
3133 struct socket
*mp_so
, *so
;
3134 struct mptcb
*mp_tp
;
3138 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3139 MPTS_LOCK_ASSERT_HELD(mpts
);
3140 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3141 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3142 mp_tp
= mpte
->mpte_mptcb
;
3143 so
= mpts
->mpts_socket
;
3145 linger
= (!(mpts
->mpts_flags
& MPTSF_DELETEOK
) &&
3146 !(mp_so
->so_flags
& SOF_PCBCLEARING
));
3148 if (mpts
->mpts_soerror
== 0)
3149 mpts
->mpts_soerror
= ECONNABORTED
;
3151 /* We got an invalid option or a fast close */
3153 struct tcptemp
*t_template
;
3154 struct inpcb
*inp
= sotoinpcb(so
);
3155 struct tcpcb
*tp
= NULL
;
3157 tp
= intotcpcb(inp
);
3158 so
->so_error
= ECONNABORTED
;
3160 t_template
= tcp_maketemplate(tp
);
3162 struct tcp_respond_args tra
;
3164 bzero(&tra
, sizeof(tra
));
3165 if (inp
->inp_flags
& INP_BOUND_IF
)
3166 tra
.ifscope
= inp
->inp_boundifp
->if_index
;
3168 tra
.ifscope
= IFSCOPE_NONE
;
3169 tra
.awdl_unrestricted
= 1;
3171 tcp_respond(tp
, t_template
->tt_ipgen
,
3172 &t_template
->tt_t
, (struct mbuf
*)NULL
,
3173 tp
->rcv_nxt
, tp
->snd_una
, TH_RST
, &tra
);
3174 (void) m_free(dtom(t_template
));
3175 mptcplog((LOG_DEBUG
, "MPTCP Events: "
3176 "%s: mp_so 0x%llx cid %d \n",
3177 __func__
, (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3178 so
, mpts
->mpts_connid
),
3179 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3181 socket_unlock(so
, 0);
3182 mptcp_subflow_disconnect(mpte
, mpts
, !linger
);
3184 *p_mpsofilt_hint
|= (SO_FILT_HINT_LOCKED
| SO_FILT_HINT_CONNINFO_UPDATED
);
3186 if (!(mp_tp
->mpt_flags
& MPTCPF_FALLBACK_TO_TCP
))
3187 *p_mpsofilt_hint
|= SO_FILT_HINT_CONNRESET
;
3190 if ((mp_tp
->mpt_state
< MPTCPS_ESTABLISHED
) ||
3191 (mp_tp
->mpt_state
== MPTCPS_FASTCLOSE_WAIT
)) {
3192 mp_so
->so_error
= ECONNABORTED
;
3195 * Ideally there should be a state transition for when a FASTCLOSE
3196 * is received. Right now we keep the connection in MPTCPS_ESTABLISHED
3197 * state and only go to terminal state when the user level code calls
3198 * close after processing the SO_FILT_HINT_CONNRESET event.
3200 if (mp_tp
->mpt_gc_ticks
== MPT_GC_TICKS
)
3201 mp_tp
->mpt_gc_ticks
= MPT_GC_TICKS_FAST
;
3205 * Keep the subflow socket around unless the subflow has been
3206 * disconnected explicitly.
3208 return (linger
? MPTS_EVRET_OK
: MPTS_EVRET_DELETE
);
3212 mptcp_fastjoin_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
3213 uint64_t *p_mpsofilt_hint
)
3215 #pragma unused(p_mpsofilt_hint)
3216 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3217 MPTS_LOCK_ASSERT_HELD(mpts
);
3218 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3220 if (mpte
->mpte_nummpcapflows
== 0) {
3221 struct mptcb
*mp_tp
= mpte
->mpte_mptcb
;
3222 mptcplog((LOG_DEBUG
,"MPTCP Events: %s: %llx %llx \n",
3223 __func__
, mp_tp
->mpt_snduna
, mpts
->mpts_sndnxt
),
3224 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3226 mpte
->mpte_active_sub
= mpts
;
3227 mpts
->mpts_flags
|= (MPTSF_FASTJ_SEND
| MPTSF_ACTIVE
);
3230 * If mptcp_subflow_output is called before fastjoin_ev
3231 * then mpts->mpts_sndnxt is initialized to mp_tp->mpt_snduna
3232 * and further mpts->mpts_sndnxt is incremented by len copied.
3234 if (mpts
->mpts_sndnxt
== 0) {
3235 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
3240 return (MPTS_EVRET_OK
);
3244 mptcp_deleteok_ev(struct mptses
*mpte
, struct mptsub
*mpts
,
3245 uint64_t *p_mpsofilt_hint
)
3247 #pragma unused(p_mpsofilt_hint)
3248 MPTE_LOCK_ASSERT_HELD(mpte
);
3249 MPTS_LOCK_ASSERT_HELD(mpts
);
3250 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3252 mptcplog((LOG_DEBUG
, "MPTCP Events: "
3253 "%s cid %d\n", __func__
, mpts
->mpts_connid
),
3254 MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
3256 mpts
->mpts_flags
|= MPTSF_DELETEOK
;
3257 if (mpts
->mpts_flags
& MPTSF_DISCONNECTED
)
3258 return (MPTS_EVRET_DELETE
);
3260 return (MPTS_EVRET_OK
);
3264 mptcp_evret2str(ev_ret_t ret
)
3266 const char *c
= "UNKNOWN";
3269 case MPTS_EVRET_DELETE
:
3270 c
= "MPTS_EVRET_DELETE";
3272 case MPTS_EVRET_CONNECT_PENDING
:
3273 c
= "MPTS_EVRET_CONNECT_PENDING";
3275 case MPTS_EVRET_DISCONNECT_FALLBACK
:
3276 c
= "MPTS_EVRET_DISCONNECT_FALLBACK";
3279 c
= "MPTS_EVRET_OK";
3288 * Add a reference to a subflow structure; used by MPTS_ADDREF().
3291 mptcp_subflow_addref(struct mptsub
*mpts
, int locked
)
3296 MPTS_LOCK_ASSERT_HELD(mpts
);
3298 if (++mpts
->mpts_refcnt
== 0) {
3299 panic("%s: mpts %p wraparound refcnt\n", __func__
, mpts
);
3307 * Remove a reference held on a subflow structure; used by MPTS_REMREF();
3310 mptcp_subflow_remref(struct mptsub
*mpts
)
3313 if (mpts
->mpts_refcnt
== 0) {
3314 panic("%s: mpts %p negative refcnt\n", __func__
, mpts
);
3317 if (--mpts
->mpts_refcnt
> 0) {
3321 /* callee will unlock and destroy lock */
3322 mptcp_subflow_free(mpts
);
3326 * Issues SOPT_SET on an MPTCP subflow socket; socket must already be locked,
3327 * caller must ensure that the option can be issued on subflow sockets, via
3328 * MPOF_SUBFLOW_OK flag.
3331 mptcp_subflow_sosetopt(struct mptses
*mpte
, struct socket
*so
,
3334 struct socket
*mp_so
;
3335 struct sockopt sopt
;
3339 VERIFY(mpo
->mpo_flags
& MPOF_SUBFLOW_OK
);
3340 mpo
->mpo_flags
&= ~MPOF_INTERIM
;
3342 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3343 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3345 bzero(&sopt
, sizeof (sopt
));
3346 sopt
.sopt_dir
= SOPT_SET
;
3347 sopt
.sopt_level
= mpo
->mpo_level
;
3348 sopt
.sopt_name
= mpo
->mpo_name
;
3349 sopt
.sopt_val
= CAST_USER_ADDR_T(&mpo
->mpo_intval
);
3350 sopt
.sopt_valsize
= sizeof (int);
3351 sopt
.sopt_p
= kernproc
;
3353 error
= sosetoptlock(so
, &sopt
, 0); /* already locked */
3355 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3356 "%s: mp_so 0x%llx sopt %s "
3357 "val %d set successful\n", __func__
,
3358 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3359 mptcp_sopt2str(mpo
->mpo_level
, mpo
->mpo_name
,
3360 buf
, sizeof (buf
)), mpo
->mpo_intval
),
3361 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3363 mptcplog((LOG_ERR
, "MPTCP Socket: "
3364 "%s: mp_so 0x%llx sopt %s "
3365 "val %d set error %d\n", __func__
,
3366 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3367 mptcp_sopt2str(mpo
->mpo_level
, mpo
->mpo_name
,
3368 buf
, sizeof (buf
)), mpo
->mpo_intval
, error
),
3369 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3375 * Issues SOPT_GET on an MPTCP subflow socket; socket must already be locked,
3376 * caller must ensure that the option can be issued on subflow sockets, via
3377 * MPOF_SUBFLOW_OK flag.
3380 mptcp_subflow_sogetopt(struct mptses
*mpte
, struct socket
*so
,
3383 struct socket
*mp_so
;
3384 struct sockopt sopt
;
3388 VERIFY(mpo
->mpo_flags
& MPOF_SUBFLOW_OK
);
3389 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3390 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3392 bzero(&sopt
, sizeof (sopt
));
3393 sopt
.sopt_dir
= SOPT_GET
;
3394 sopt
.sopt_level
= mpo
->mpo_level
;
3395 sopt
.sopt_name
= mpo
->mpo_name
;
3396 sopt
.sopt_val
= CAST_USER_ADDR_T(&mpo
->mpo_intval
);
3397 sopt
.sopt_valsize
= sizeof (int);
3398 sopt
.sopt_p
= kernproc
;
3400 error
= sogetoptlock(so
, &sopt
, 0); /* already locked */
3402 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3403 "%s: mp_so 0x%llx sopt %s "
3404 "val %d get successful\n", __func__
,
3405 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3406 mptcp_sopt2str(mpo
->mpo_level
, mpo
->mpo_name
,
3407 buf
, sizeof (buf
)), mpo
->mpo_intval
),
3408 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3410 mptcplog((LOG_ERR
, "MPTCP Socket: "
3411 "%s: mp_so 0x%llx sopt %s get error %d\n",
3412 __func__
, (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3413 mptcp_sopt2str(mpo
->mpo_level
,
3414 mpo
->mpo_name
, buf
, sizeof (buf
)), error
),
3415 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_ERR
);
3422 * MPTCP garbage collector.
3424 * This routine is called by the MP domain on-demand, periodic callout,
3425 * which is triggered when a MPTCP socket is closed. The callout will
3426 * repeat as long as this routine returns a non-zero value.
3429 mptcp_gc(struct mppcbinfo
*mppi
)
3431 struct mppcb
*mpp
, *tmpp
;
3432 uint32_t active
= 0;
3434 lck_mtx_assert(&mppi
->mppi_lock
, LCK_MTX_ASSERT_OWNED
);
3436 TAILQ_FOREACH_SAFE(mpp
, &mppi
->mppi_pcbs
, mpp_entry
, tmpp
) {
3437 struct socket
*mp_so
;
3438 struct mptses
*mpte
;
3439 struct mptcb
*mp_tp
;
3441 VERIFY(mpp
->mpp_flags
& MPP_ATTACHED
);
3442 mp_so
= mpp
->mpp_socket
;
3443 VERIFY(mp_so
!= NULL
);
3444 mpte
= mptompte(mpp
);
3445 VERIFY(mpte
!= NULL
);
3446 mp_tp
= mpte
->mpte_mptcb
;
3447 VERIFY(mp_tp
!= NULL
);
3449 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3450 "%s: mp_so 0x%llx found "
3451 "(u=%d,r=%d,s=%d)\n", __func__
,
3452 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), mp_so
->so_usecount
,
3453 mp_so
->so_retaincnt
, mpp
->mpp_state
),
3454 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3456 if (!lck_mtx_try_lock(&mpp
->mpp_lock
)) {
3457 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3458 "%s: mp_so 0x%llx skipped "
3459 "(u=%d,r=%d)\n", __func__
,
3460 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3461 mp_so
->so_usecount
, mp_so
->so_retaincnt
),
3462 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3467 /* check again under the lock */
3468 if (mp_so
->so_usecount
> 1) {
3469 boolean_t wakeup
= FALSE
;
3470 struct mptsub
*mpts
, *tmpts
;
3472 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3473 "%s: mp_so 0x%llx skipped "
3474 "[u=%d,r=%d] %d %d\n", __func__
,
3475 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3476 mp_so
->so_usecount
, mp_so
->so_retaincnt
,
3477 mp_tp
->mpt_gc_ticks
,
3479 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3482 if (mp_tp
->mpt_state
>= MPTCPS_FIN_WAIT_1
) {
3483 if (mp_tp
->mpt_gc_ticks
> 0)
3484 mp_tp
->mpt_gc_ticks
--;
3485 if (mp_tp
->mpt_gc_ticks
== 0) {
3487 if (mp_tp
->mpt_localkey
!= NULL
) {
3489 mp_tp
->mpt_localkey
);
3490 mp_tp
->mpt_localkey
= NULL
;
3496 TAILQ_FOREACH_SAFE(mpts
,
3497 &mpte
->mpte_subflows
, mpts_entry
, tmpts
) {
3499 mpts
->mpts_flags
|= MPTSF_DELETEOK
;
3500 if (mpts
->mpts_soerror
== 0)
3501 mpts
->mpts_soerror
= ETIMEDOUT
;
3502 mptcp_subflow_eupcall(mpts
->mpts_socket
,
3503 mpts
, SO_FILT_HINT_DISCONNECTED
);
3507 lck_mtx_unlock(&mpp
->mpp_lock
);
3512 if (mpp
->mpp_state
!= MPPCB_STATE_DEAD
) {
3513 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3514 "%s: mp_so 0x%llx skipped "
3515 "[u=%d,r=%d,s=%d]\n", __func__
,
3516 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3517 mp_so
->so_usecount
, mp_so
->so_retaincnt
,
3519 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3520 lck_mtx_unlock(&mpp
->mpp_lock
);
3526 * The PCB has been detached, and there is exactly 1 refnct
3527 * held by the MPTCP thread. Signal that thread to terminate,
3528 * after which the last refcnt will be released. That will
3529 * allow it to be destroyed below during the next round.
3531 if (mp_so
->so_usecount
== 1) {
3532 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3533 "%s: mp_so 0x%llx scheduled for "
3534 "termination [u=%d,r=%d]\n", __func__
,
3535 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3536 mp_so
->so_usecount
, mp_so
->so_retaincnt
),
3537 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3539 /* signal MPTCP thread to terminate */
3540 mptcp_thread_terminate_signal(mpte
);
3541 lck_mtx_unlock(&mpp
->mpp_lock
);
3546 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3547 "%s: mp_so 0x%llx destroyed [u=%d,r=%d]\n",
3548 __func__
, (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
),
3549 mp_so
->so_usecount
, mp_so
->so_retaincnt
),
3550 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3552 DTRACE_MPTCP4(dispose
, struct socket
*, mp_so
,
3553 struct sockbuf
*, &mp_so
->so_rcv
,
3554 struct sockbuf
*, &mp_so
->so_snd
,
3555 struct mppcb
*, mpp
);
3564 * Drop a MPTCP connection, reporting the specified error.
3567 mptcp_drop(struct mptses
*mpte
, struct mptcb
*mp_tp
, int errno
)
3569 struct socket
*mp_so
;
3571 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3572 MPT_LOCK_ASSERT_HELD(mp_tp
);
3573 VERIFY(mpte
->mpte_mptcb
== mp_tp
);
3574 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3576 mp_tp
->mpt_state
= MPTCPS_TERMINATE
;
3577 DTRACE_MPTCP2(state__change
, struct mptcb
*, mp_tp
,
3578 uint32_t, 0 /* event */);
3580 if (errno
== ETIMEDOUT
&& mp_tp
->mpt_softerror
!= 0)
3581 errno
= mp_tp
->mpt_softerror
;
3582 mp_so
->so_error
= errno
;
3584 return (mptcp_close(mpte
, mp_tp
));
3588 * Close a MPTCP control block.
3591 mptcp_close(struct mptses
*mpte
, struct mptcb
*mp_tp
)
3593 struct socket
*mp_so
= NULL
;
3594 struct mptsub
*mpts
= NULL
, *tmpts
= NULL
;
3596 MPTE_LOCK_ASSERT_HELD(mpte
); /* same as MP socket lock */
3597 MPT_LOCK_ASSERT_HELD(mp_tp
);
3598 VERIFY(mpte
->mpte_mptcb
== mp_tp
);
3599 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3600 if (mp_tp
->mpt_localkey
!= NULL
) {
3601 mptcp_free_key(mp_tp
->mpt_localkey
);
3602 mp_tp
->mpt_localkey
= NULL
;
3606 soisdisconnected(mp_so
);
3609 if (mp_tp
->mpt_flags
& MPTCPF_PEEL_OFF
) {
3614 /* Clean up all subflows */
3615 TAILQ_FOREACH_SAFE(mpts
, &mpte
->mpte_subflows
, mpts_entry
, tmpts
) {
3617 mpts
->mpts_flags
|= MPTSF_USER_DISCONNECT
;
3618 mptcp_subflow_disconnect(mpte
, mpts
, TRUE
);
3620 mptcp_subflow_del(mpte
, mpts
, TRUE
);
3628 mptcp_notify_close(struct socket
*so
)
3630 soevent(so
, (SO_FILT_HINT_LOCKED
| SO_FILT_HINT_DISCONNECTED
));
3634 * Signal MPTCP thread to wake up.
3637 mptcp_thread_signal(struct mptses
*mpte
)
3639 lck_mtx_lock(&mpte
->mpte_thread_lock
);
3640 mptcp_thread_signal_locked(mpte
);
3641 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
3645 * Signal MPTCP thread to wake up (locked version)
3648 mptcp_thread_signal_locked(struct mptses
*mpte
)
3650 lck_mtx_assert(&mpte
->mpte_thread_lock
, LCK_MTX_ASSERT_OWNED
);
3652 mpte
->mpte_thread_reqs
++;
3653 if (!mpte
->mpte_thread_active
&& mpte
->mpte_thread
!= THREAD_NULL
)
3654 wakeup_one((caddr_t
)&mpte
->mpte_thread
);
3658 * Signal MPTCP thread to terminate.
3661 mptcp_thread_terminate_signal(struct mptses
*mpte
)
3663 lck_mtx_lock(&mpte
->mpte_thread_lock
);
3664 if (mpte
->mpte_thread
!= THREAD_NULL
) {
3665 mpte
->mpte_thread
= THREAD_NULL
;
3666 mpte
->mpte_thread_reqs
++;
3667 if (!mpte
->mpte_thread_active
)
3668 wakeup_one((caddr_t
)&mpte
->mpte_thread
);
3670 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
3674 * MPTCP thread workloop.
3677 mptcp_thread_dowork(struct mptses
*mpte
)
3679 struct socket
*mp_so
;
3680 struct mptsub
*mpts
, *tmpts
;
3681 boolean_t connect_pending
= FALSE
, disconnect_fallback
= FALSE
;
3682 uint64_t mpsofilt_hint_mask
= 0;
3684 MPTE_LOCK(mpte
); /* same as MP socket lock */
3685 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3686 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3687 VERIFY(mp_so
!= NULL
);
3689 TAILQ_FOREACH_SAFE(mpts
, &mpte
->mpte_subflows
, mpts_entry
, tmpts
) {
3693 MPTS_ADDREF_LOCKED(mpts
); /* for us */
3695 /* Update process ownership based on parent mptcp socket */
3696 mptcp_update_last_owner(mpts
, mp_so
);
3698 mptcp_subflow_input(mpte
, mpts
);
3700 mptcp_get_rtt_measurement(mpts
, mpte
);
3702 ret
= mptcp_subflow_events(mpte
, mpts
, &mpsofilt_hint_mask
);
3704 if (mpts
->mpts_flags
& MPTSF_ACTIVE
) {
3705 mptcplog((LOG_DEBUG
, "MPTCP Socket: "
3706 "%s: cid %d \n", __func__
,
3708 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3709 (void) mptcp_subflow_output(mpte
, mpts
);
3713 * If MPTCP socket is closed, disconnect all subflows.
3714 * This will generate a disconnect event which will
3715 * be handled during the next iteration, causing a
3716 * non-zero error to be returned above.
3718 if (mp_so
->so_flags
& SOF_PCBCLEARING
)
3719 mptcp_subflow_disconnect(mpte
, mpts
, FALSE
);
3726 case MPTS_EVRET_DELETE
:
3727 mptcp_subflow_del(mpte
, mpts
, TRUE
);
3729 case MPTS_EVRET_CONNECT_PENDING
:
3730 connect_pending
= TRUE
;
3732 case MPTS_EVRET_DISCONNECT_FALLBACK
:
3733 disconnect_fallback
= TRUE
;
3736 mptcplog((LOG_DEBUG
,
3737 "MPTCP Socket: %s: mptcp_subflow_events "
3738 "returned invalid value: %d\n", __func__
,
3740 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_VERBOSE
);
3743 MPTS_REMREF(mpts
); /* ours */
3746 if (mpsofilt_hint_mask
) {
3747 soevent(mp_so
, mpsofilt_hint_mask
);
3750 if (!connect_pending
&& !disconnect_fallback
) {
3755 TAILQ_FOREACH_SAFE(mpts
, &mpte
->mpte_subflows
, mpts_entry
, tmpts
) {
3757 if (disconnect_fallback
) {
3758 struct socket
*so
= NULL
;
3759 struct inpcb
*inp
= NULL
;
3760 struct tcpcb
*tp
= NULL
;
3762 if (mpts
->mpts_flags
& MPTSF_MP_DEGRADED
) {
3767 mpts
->mpts_flags
|= MPTSF_MP_DEGRADED
;
3769 if (mpts
->mpts_flags
& (MPTSF_DISCONNECTING
|
3770 MPTSF_DISCONNECTED
|MPTSF_CONNECT_PENDING
)) {
3775 if (mpts
->mpts_flags
& MPTSF_TFO_REQD
)
3776 mptcp_drop_tfo_data(mpte
, mpts
);
3778 so
= mpts
->mpts_socket
;
3781 * The MPTCP connection has degraded to a fallback
3782 * mode, so there is no point in keeping this subflow
3783 * regardless of its MPTCP-readiness state, unless it
3784 * is the primary one which we use for fallback. This
3785 * assumes that the subflow used for fallback is the
3790 inp
= sotoinpcb(so
);
3791 tp
= intotcpcb(inp
);
3793 ~(TMPF_MPTCP_READY
|TMPF_MPTCP_TRUE
);
3794 tp
->t_mpflags
|= TMPF_TCP_FALLBACK
;
3796 if (mpts
->mpts_flags
& MPTSF_ACTIVE
) {
3797 socket_unlock(so
, 1);
3801 tp
->t_mpflags
|= TMPF_RESET
;
3802 soevent(so
, SO_FILT_HINT_LOCKED
| SO_FILT_HINT_MUSTRST
);
3803 socket_unlock(so
, 1);
3805 } else if (connect_pending
) {
3807 * If delayed subflow start is set and cellular,
3808 * delay the connect till a retransmission timeout
3811 if ((mptcp_delayed_subf_start
) &&
3812 (IFNET_IS_CELLULAR(mpts
->mpts_outif
))) {
3818 * The MPTCP connection has progressed to a state
3819 * where it supports full multipath semantics; allow
3820 * additional joins to be attempted for all subflows
3821 * that are in the PENDING state.
3823 if (mpts
->mpts_flags
& MPTSF_CONNECT_PENDING
) {
3824 (void) mptcp_subflow_soconnectx(mpte
, mpts
);
3837 mptcp_thread_func(void *v
, wait_result_t w
)
3840 struct mptses
*mpte
= v
;
3841 struct timespec
*ts
= NULL
;
3843 VERIFY(mpte
!= NULL
);
3845 lck_mtx_lock_spin(&mpte
->mpte_thread_lock
);
3848 lck_mtx_assert(&mpte
->mpte_thread_lock
, LCK_MTX_ASSERT_OWNED
);
3850 if (mpte
->mpte_thread
!= THREAD_NULL
) {
3851 (void) msleep(&mpte
->mpte_thread
,
3852 &mpte
->mpte_thread_lock
, (PZERO
- 1) | PSPIN
,
3856 /* MPTCP socket is closed? */
3857 if (mpte
->mpte_thread
== THREAD_NULL
) {
3858 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
3859 /* callee will destroy thread lock */
3860 mptcp_thread_destroy(mpte
);
3865 mpte
->mpte_thread_active
= 1;
3867 uint32_t reqs
= mpte
->mpte_thread_reqs
;
3869 lck_mtx_unlock(&mpte
->mpte_thread_lock
);
3870 mptcp_thread_dowork(mpte
);
3871 lck_mtx_lock_spin(&mpte
->mpte_thread_lock
);
3873 /* if there's no pending request, we're done */
3874 if (reqs
== mpte
->mpte_thread_reqs
||
3875 mpte
->mpte_thread
== THREAD_NULL
)
3878 mpte
->mpte_thread_reqs
= 0;
3879 mpte
->mpte_thread_active
= 0;
3884 * Destroy a MTCP thread, to be called in the MPTCP thread context
3885 * upon receiving an indication to self-terminate. This routine
3886 * will not return, as the current thread is terminated at the end.
3889 mptcp_thread_destroy(struct mptses
*mpte
)
3891 struct socket
*mp_so
;
3893 MPTE_LOCK(mpte
); /* same as MP socket lock */
3894 VERIFY(mpte
->mpte_thread
== THREAD_NULL
);
3895 VERIFY(mpte
->mpte_mppcb
!= NULL
);
3897 mptcp_sesdestroy(mpte
);
3899 mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
3900 VERIFY(mp_so
!= NULL
);
3901 VERIFY(mp_so
->so_usecount
!= 0);
3902 mp_so
->so_usecount
--; /* for thread */
3903 mpte
->mpte_mppcb
->mpp_flags
|= MPP_DEFUNCT
;
3906 /* for the extra refcnt from kernel_thread_start() */
3907 thread_deallocate(current_thread());
3908 /* this is the end */
3909 thread_terminate(current_thread());
3914 * Protocol pr_lock callback.
3917 mptcp_lock(struct socket
*mp_so
, int refcount
, void *lr
)
3919 struct mppcb
*mpp
= sotomppcb(mp_so
);
3923 lr_saved
= __builtin_return_address(0);
3928 panic("%s: so=%p NO PCB! lr=%p lrh= %s\n", __func__
,
3929 mp_so
, lr_saved
, solockhistory_nr(mp_so
));
3932 lck_mtx_lock(&mpp
->mpp_lock
);
3934 if (mp_so
->so_usecount
< 0) {
3935 panic("%s: so=%p so_pcb=%p lr=%p ref=%x lrh= %s\n", __func__
,
3936 mp_so
, mp_so
->so_pcb
, lr_saved
, mp_so
->so_usecount
,
3937 solockhistory_nr(mp_so
));
3941 mp_so
->so_usecount
++;
3942 mp_so
->lock_lr
[mp_so
->next_lock_lr
] = lr_saved
;
3943 mp_so
->next_lock_lr
= (mp_so
->next_lock_lr
+ 1) % SO_LCKDBG_MAX
;
3949 * Protocol pr_unlock callback.
3952 mptcp_unlock(struct socket
*mp_so
, int refcount
, void *lr
)
3954 struct mppcb
*mpp
= sotomppcb(mp_so
);
3958 lr_saved
= __builtin_return_address(0);
3963 panic("%s: so=%p NO PCB usecount=%x lr=%p lrh= %s\n", __func__
,
3964 mp_so
, mp_so
->so_usecount
, lr_saved
,
3965 solockhistory_nr(mp_so
));
3968 lck_mtx_assert(&mpp
->mpp_lock
, LCK_MTX_ASSERT_OWNED
);
3971 mp_so
->so_usecount
--;
3973 if (mp_so
->so_usecount
< 0) {
3974 panic("%s: so=%p usecount=%x lrh= %s\n", __func__
,
3975 mp_so
, mp_so
->so_usecount
, solockhistory_nr(mp_so
));
3978 mp_so
->unlock_lr
[mp_so
->next_unlock_lr
] = lr_saved
;
3979 mp_so
->next_unlock_lr
= (mp_so
->next_unlock_lr
+ 1) % SO_LCKDBG_MAX
;
3980 lck_mtx_unlock(&mpp
->mpp_lock
);
3986 * Protocol pr_getlock callback.
3989 mptcp_getlock(struct socket
*mp_so
, int locktype
)
3991 #pragma unused(locktype)
3992 struct mppcb
*mpp
= sotomppcb(mp_so
);
3995 panic("%s: so=%p NULL so_pcb %s\n", __func__
, mp_so
,
3996 solockhistory_nr(mp_so
));
3999 if (mp_so
->so_usecount
< 0) {
4000 panic("%s: so=%p usecount=%x lrh= %s\n", __func__
,
4001 mp_so
, mp_so
->so_usecount
, solockhistory_nr(mp_so
));
4004 return (&mpp
->mpp_lock
);
4008 * Key generation functions
4011 mptcp_generate_unique_key(struct mptcp_key_entry
*key_entry
)
4013 struct mptcp_key_entry
*key_elm
;
4015 read_random(&key_entry
->mkey_value
, sizeof (key_entry
->mkey_value
));
4016 if (key_entry
->mkey_value
== 0)
4018 mptcp_do_sha1(&key_entry
->mkey_value
, key_entry
->mkey_digest
,
4019 sizeof (key_entry
->mkey_digest
));
4021 LIST_FOREACH(key_elm
, &mptcp_keys_pool
, mkey_next
) {
4022 if (key_elm
->mkey_value
== key_entry
->mkey_value
) {
4025 if (bcmp(key_elm
->mkey_digest
, key_entry
->mkey_digest
, 4) ==
4032 static mptcp_key_t
*
4033 mptcp_reserve_key(void)
4035 struct mptcp_key_entry
*key_elm
;
4036 struct mptcp_key_entry
*found_elm
= NULL
;
4038 lck_mtx_lock(&mptcp_keys_pool
.mkph_lock
);
4039 LIST_FOREACH(key_elm
, &mptcp_keys_pool
, mkey_next
) {
4040 if (key_elm
->mkey_flags
== MKEYF_FREE
) {
4041 key_elm
->mkey_flags
= MKEYF_INUSE
;
4042 found_elm
= key_elm
;
4046 lck_mtx_unlock(&mptcp_keys_pool
.mkph_lock
);
4049 return (&found_elm
->mkey_value
);
4052 key_elm
= (struct mptcp_key_entry
*)
4053 zalloc(mptcp_keys_pool
.mkph_key_entry_zone
);
4054 key_elm
->mkey_flags
= MKEYF_INUSE
;
4056 lck_mtx_lock(&mptcp_keys_pool
.mkph_lock
);
4057 mptcp_generate_unique_key(key_elm
);
4058 LIST_INSERT_HEAD(&mptcp_keys_pool
, key_elm
, mkey_next
);
4059 mptcp_keys_pool
.mkph_count
+= 1;
4060 lck_mtx_unlock(&mptcp_keys_pool
.mkph_lock
);
4061 return (&key_elm
->mkey_value
);
4065 mptcp_get_stored_digest(mptcp_key_t
*key
)
4067 struct mptcp_key_entry
*key_holder
;
4068 caddr_t digest
= NULL
;
4070 lck_mtx_lock(&mptcp_keys_pool
.mkph_lock
);
4071 key_holder
= (struct mptcp_key_entry
*)(void *)((caddr_t
)key
-
4072 offsetof(struct mptcp_key_entry
, mkey_value
));
4073 if (key_holder
->mkey_flags
!= MKEYF_INUSE
)
4074 panic_plain("%s", __func__
);
4075 digest
= &key_holder
->mkey_digest
[0];
4076 lck_mtx_unlock(&mptcp_keys_pool
.mkph_lock
);
4081 mptcp_free_key(mptcp_key_t
*key
)
4083 struct mptcp_key_entry
*key_holder
;
4084 struct mptcp_key_entry
*key_elm
;
4085 int pt
= RandomULong();
4087 lck_mtx_lock(&mptcp_keys_pool
.mkph_lock
);
4088 key_holder
= (struct mptcp_key_entry
*)(void*)((caddr_t
)key
-
4089 offsetof(struct mptcp_key_entry
, mkey_value
));
4090 key_holder
->mkey_flags
= MKEYF_FREE
;
4092 LIST_REMOVE(key_holder
, mkey_next
);
4093 mptcp_keys_pool
.mkph_count
-= 1;
4095 /* Free half the time */
4097 zfree(mptcp_keys_pool
.mkph_key_entry_zone
, key_holder
);
4099 /* Insert it at random point to avoid early reuse */
4101 if (mptcp_keys_pool
.mkph_count
> 1) {
4102 pt
= pt
% (mptcp_keys_pool
.mkph_count
- 1);
4103 LIST_FOREACH(key_elm
, &mptcp_keys_pool
, mkey_next
) {
4105 LIST_INSERT_AFTER(key_elm
, key_holder
,
4111 panic("missed insertion");
4113 LIST_INSERT_HEAD(&mptcp_keys_pool
, key_holder
,
4116 mptcp_keys_pool
.mkph_count
+= 1;
4118 lck_mtx_unlock(&mptcp_keys_pool
.mkph_lock
);
4122 mptcp_key_pool_init(void)
4125 struct mptcp_key_entry
*key_entry
;
4127 LIST_INIT(&mptcp_keys_pool
);
4128 mptcp_keys_pool
.mkph_count
= 0;
4130 mptcp_keys_pool
.mkph_key_elm_sz
= (vm_size_t
)
4131 (sizeof (struct mptcp_key_entry
));
4132 mptcp_keys_pool
.mkph_key_entry_zone
= zinit(
4133 mptcp_keys_pool
.mkph_key_elm_sz
,
4134 MPTCP_MX_KEY_ALLOCS
* mptcp_keys_pool
.mkph_key_elm_sz
,
4135 MPTCP_MX_PREALLOC_ZONE_SZ
, "mptkeys");
4136 if (mptcp_keys_pool
.mkph_key_entry_zone
== NULL
) {
4137 panic("%s: unable to allocate MPTCP keys zone \n", __func__
);
4140 zone_change(mptcp_keys_pool
.mkph_key_entry_zone
, Z_CALLERACCT
, FALSE
);
4141 zone_change(mptcp_keys_pool
.mkph_key_entry_zone
, Z_EXPAND
, TRUE
);
4143 for (i
= 0; i
< MPTCP_KEY_PREALLOCS_MX
; i
++) {
4144 key_entry
= (struct mptcp_key_entry
*)
4145 zalloc(mptcp_keys_pool
.mkph_key_entry_zone
);
4146 key_entry
->mkey_flags
= MKEYF_FREE
;
4147 mptcp_generate_unique_key(key_entry
);
4148 LIST_INSERT_HEAD(&mptcp_keys_pool
, key_entry
, mkey_next
);
4149 mptcp_keys_pool
.mkph_count
+= 1;
4151 lck_mtx_init(&mptcp_keys_pool
.mkph_lock
, mtcbinfo
.mppi_lock_grp
,
4152 mtcbinfo
.mppi_lock_attr
);
4156 * MPTCP Join support
4160 mptcp_attach_to_subf(struct socket
*so
, struct mptcb
*mp_tp
,
4163 struct tcpcb
*tp
= sototcpcb(so
);
4164 struct mptcp_subf_auth_entry
*sauth_entry
;
4165 MPT_LOCK_ASSERT_NOTHELD(mp_tp
);
4167 MPT_LOCK_SPIN(mp_tp
);
4168 tp
->t_mptcb
= mp_tp
;
4170 * The address ID of the first flow is implicitly 0.
4172 if (mp_tp
->mpt_state
== MPTCPS_CLOSED
) {
4173 tp
->t_local_aid
= 0;
4175 tp
->t_local_aid
= addr_id
;
4176 tp
->t_mpflags
|= (TMPF_PREESTABLISHED
| TMPF_JOINED_FLOW
);
4177 so
->so_flags
|= SOF_MP_SEC_SUBFLOW
;
4180 sauth_entry
= zalloc(mpt_subauth_zone
);
4181 sauth_entry
->msae_laddr_id
= tp
->t_local_aid
;
4182 sauth_entry
->msae_raddr_id
= 0;
4183 sauth_entry
->msae_raddr_rand
= 0;
4185 sauth_entry
->msae_laddr_rand
= RandomULong();
4186 if (sauth_entry
->msae_laddr_rand
== 0)
4188 MPT_LOCK_SPIN(mp_tp
);
4189 LIST_INSERT_HEAD(&mp_tp
->mpt_subauth_list
, sauth_entry
, msae_next
);
4194 mptcp_detach_mptcb_from_subf(struct mptcb
*mp_tp
, struct socket
*so
)
4196 struct mptcp_subf_auth_entry
*sauth_entry
;
4197 struct tcpcb
*tp
= NULL
;
4203 socket_unlock(so
, 0);
4208 LIST_FOREACH(sauth_entry
, &mp_tp
->mpt_subauth_list
, msae_next
) {
4209 if (sauth_entry
->msae_laddr_id
== tp
->t_local_aid
) {
4215 LIST_REMOVE(sauth_entry
, msae_next
);
4220 zfree(mpt_subauth_zone
, sauth_entry
);
4223 socket_unlock(so
, 0);
4227 mptcp_get_rands(mptcp_addr_id addr_id
, struct mptcb
*mp_tp
, u_int32_t
*lrand
,
4230 struct mptcp_subf_auth_entry
*sauth_entry
;
4231 MPT_LOCK_ASSERT_NOTHELD(mp_tp
);
4234 LIST_FOREACH(sauth_entry
, &mp_tp
->mpt_subauth_list
, msae_next
) {
4235 if (sauth_entry
->msae_laddr_id
== addr_id
) {
4237 *lrand
= sauth_entry
->msae_laddr_rand
;
4239 *rrand
= sauth_entry
->msae_raddr_rand
;
4247 mptcp_set_raddr_rand(mptcp_addr_id laddr_id
, struct mptcb
*mp_tp
,
4248 mptcp_addr_id raddr_id
, u_int32_t raddr_rand
)
4250 struct mptcp_subf_auth_entry
*sauth_entry
;
4251 MPT_LOCK_ASSERT_NOTHELD(mp_tp
);
4254 LIST_FOREACH(sauth_entry
, &mp_tp
->mpt_subauth_list
, msae_next
) {
4255 if (sauth_entry
->msae_laddr_id
== laddr_id
) {
4256 if ((sauth_entry
->msae_raddr_id
!= 0) &&
4257 (sauth_entry
->msae_raddr_id
!= raddr_id
)) {
4258 mptcplog((LOG_ERR
, "MPTCP Socket: %s mismatched"
4259 " address ids %d %d \n", __func__
, raddr_id
,
4260 sauth_entry
->msae_raddr_id
),
4261 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
4265 sauth_entry
->msae_raddr_id
= raddr_id
;
4266 if ((sauth_entry
->msae_raddr_rand
!= 0) &&
4267 (sauth_entry
->msae_raddr_rand
!= raddr_rand
)) {
4268 mptcplog((LOG_ERR
, "MPTCP Socket: "
4269 "%s: dup SYN_ACK %d %d \n",
4270 __func__
, raddr_rand
,
4271 sauth_entry
->msae_raddr_rand
),
4272 MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
4276 sauth_entry
->msae_raddr_rand
= raddr_rand
;
4285 * SHA1 support for MPTCP
4288 mptcp_do_sha1(mptcp_key_t
*key
, char *sha_digest
, int digest_len
)
4291 const unsigned char *sha1_base
;
4294 if (digest_len
!= SHA1_RESULTLEN
) {
4298 sha1_base
= (const unsigned char *) key
;
4299 sha1_size
= sizeof (mptcp_key_t
);
4300 SHA1Init(&sha1ctxt
);
4301 SHA1Update(&sha1ctxt
, sha1_base
, sha1_size
);
4302 SHA1Final(sha_digest
, &sha1ctxt
);
4307 mptcp_hmac_sha1(mptcp_key_t key1
, mptcp_key_t key2
,
4308 u_int32_t rand1
, u_int32_t rand2
, u_char
*digest
, int digest_len
)
4311 mptcp_key_t key_ipad
[8] = {0}; /* key XOR'd with inner pad */
4312 mptcp_key_t key_opad
[8] = {0}; /* key XOR'd with outer pad */
4316 bzero(digest
, digest_len
);
4318 /* Set up the Key for HMAC */
4325 /* Set up the message for HMAC */
4329 /* Key is 512 block length, so no need to compute hash */
4331 /* Compute SHA1(Key XOR opad, SHA1(Key XOR ipad, data)) */
4333 for (i
= 0; i
< 8; i
++) {
4334 key_ipad
[i
] ^= 0x3636363636363636;
4335 key_opad
[i
] ^= 0x5c5c5c5c5c5c5c5c;
4338 /* Perform inner SHA1 */
4339 SHA1Init(&sha1ctxt
);
4340 SHA1Update(&sha1ctxt
, (unsigned char *)key_ipad
, sizeof (key_ipad
));
4341 SHA1Update(&sha1ctxt
, (unsigned char *)data
, sizeof (data
));
4342 SHA1Final(digest
, &sha1ctxt
);
4344 /* Perform outer SHA1 */
4345 SHA1Init(&sha1ctxt
);
4346 SHA1Update(&sha1ctxt
, (unsigned char *)key_opad
, sizeof (key_opad
));
4347 SHA1Update(&sha1ctxt
, (unsigned char *)digest
, SHA1_RESULTLEN
);
4348 SHA1Final(digest
, &sha1ctxt
);
4352 * corresponds to MAC-B = MAC (Key=(Key-B+Key-A), Msg=(R-B+R-A))
4353 * corresponds to MAC-A = MAC (Key=(Key-A+Key-B), Msg=(R-A+R-B))
4356 mptcp_get_hmac(mptcp_addr_id aid
, struct mptcb
*mp_tp
, u_char
*digest
,
4359 uint32_t lrand
, rrand
;
4360 mptcp_key_t localkey
, remotekey
;
4361 MPT_LOCK_ASSERT_NOTHELD(mp_tp
);
4363 if (digest_len
!= SHA1_RESULTLEN
)
4367 mptcp_get_rands(aid
, mp_tp
, &lrand
, &rrand
);
4368 MPT_LOCK_SPIN(mp_tp
);
4369 localkey
= *mp_tp
->mpt_localkey
;
4370 remotekey
= mp_tp
->mpt_remotekey
;
4372 mptcp_hmac_sha1(localkey
, remotekey
, lrand
, rrand
, digest
,
4377 mptcp_get_trunced_hmac(mptcp_addr_id aid
, struct mptcb
*mp_tp
)
4379 u_char digest
[SHA1_RESULTLEN
];
4380 u_int64_t trunced_digest
;
4382 mptcp_get_hmac(aid
, mp_tp
, &digest
[0], sizeof (digest
));
4383 bcopy(digest
, &trunced_digest
, 8);
4384 return (trunced_digest
);
4388 * Authentication data generation
4391 mptcp_generate_token(char *sha_digest
, int sha_digest_len
, caddr_t token
,
4394 VERIFY(token_len
== sizeof (u_int32_t
));
4395 VERIFY(sha_digest_len
== SHA1_RESULTLEN
);
4397 /* Most significant 32 bits of the SHA1 hash */
4398 bcopy(sha_digest
, token
, sizeof (u_int32_t
));
4403 mptcp_generate_idsn(char *sha_digest
, int sha_digest_len
, caddr_t idsn
,
4406 VERIFY(idsn_len
== sizeof (u_int64_t
));
4407 VERIFY(sha_digest_len
== SHA1_RESULTLEN
);
4410 * Least significant 64 bits of the SHA1 hash
4413 idsn
[7] = sha_digest
[12];
4414 idsn
[6] = sha_digest
[13];
4415 idsn
[5] = sha_digest
[14];
4416 idsn
[4] = sha_digest
[15];
4417 idsn
[3] = sha_digest
[16];
4418 idsn
[2] = sha_digest
[17];
4419 idsn
[1] = sha_digest
[18];
4420 idsn
[0] = sha_digest
[19];
4425 mptcp_conn_properties(struct mptcb
*mp_tp
)
4427 /* There is only Version 0 at this time */
4428 mp_tp
->mpt_version
= MPTCP_STD_VERSION_0
;
4430 /* Set DSS checksum flag */
4432 mp_tp
->mpt_flags
|= MPTCPF_CHECKSUM
;
4434 /* Set up receive window */
4435 mp_tp
->mpt_rcvwnd
= mptcp_sbspace(mp_tp
);
4437 /* Set up gc ticks */
4438 mp_tp
->mpt_gc_ticks
= MPT_GC_TICKS
;
4442 mptcp_init_local_parms(struct mptcb
*mp_tp
)
4444 caddr_t local_digest
= NULL
;
4446 mp_tp
->mpt_localkey
= mptcp_reserve_key();
4447 local_digest
= mptcp_get_stored_digest(mp_tp
->mpt_localkey
);
4448 mptcp_generate_token(local_digest
, SHA1_RESULTLEN
,
4449 (caddr_t
)&mp_tp
->mpt_localtoken
, sizeof (mp_tp
->mpt_localtoken
));
4450 mptcp_generate_idsn(local_digest
, SHA1_RESULTLEN
,
4451 (caddr_t
)&mp_tp
->mpt_local_idsn
, sizeof (u_int64_t
));
4453 /* The subflow SYN is also first MPTCP byte */
4454 mp_tp
->mpt_snduna
= mp_tp
->mpt_sndmax
= mp_tp
->mpt_local_idsn
+ 1;
4455 mp_tp
->mpt_sndnxt
= mp_tp
->mpt_snduna
;
4457 mptcp_conn_properties(mp_tp
);
4461 mptcp_init_remote_parms(struct mptcb
*mp_tp
)
4463 char remote_digest
[MPTCP_SHA1_RESULTLEN
];
4464 MPT_LOCK_ASSERT_HELD(mp_tp
);
4466 /* Only Version 0 is supported for auth purposes */
4467 if (mp_tp
->mpt_version
!= MPTCP_STD_VERSION_0
)
4470 /* Setup local and remote tokens and Initial DSNs */
4472 if (!mptcp_do_sha1(&mp_tp
->mpt_remotekey
, remote_digest
,
4474 mptcplog((LOG_ERR
, "MPTCP Socket: %s: unexpected failure",
4475 __func__
), MPTCP_SOCKET_DBG
, MPTCP_LOGLVL_LOG
);
4478 mptcp_generate_token(remote_digest
, SHA1_RESULTLEN
,
4479 (caddr_t
)&mp_tp
->mpt_remotetoken
, sizeof (mp_tp
->mpt_remotetoken
));
4480 mptcp_generate_idsn(remote_digest
, SHA1_RESULTLEN
,
4481 (caddr_t
)&mp_tp
->mpt_remote_idsn
, sizeof (u_int64_t
));
4482 mp_tp
->mpt_rcvatmark
= mp_tp
->mpt_rcvnxt
= mp_tp
->mpt_remote_idsn
+ 1;
4491 mptcp_get_localtoken(void* mptcb_arg
)
4493 struct mptcb
*mp_tp
= (struct mptcb
*)mptcb_arg
;
4494 return (mp_tp
->mpt_localtoken
);
4498 mptcp_get_remotetoken(void* mptcb_arg
)
4500 struct mptcb
*mp_tp
= (struct mptcb
*)mptcb_arg
;
4501 return (mp_tp
->mpt_remotetoken
);
4505 mptcp_get_localkey(void* mptcb_arg
)
4507 struct mptcb
*mp_tp
= (struct mptcb
*)mptcb_arg
;
4508 if (mp_tp
->mpt_localkey
!= NULL
)
4509 return (*mp_tp
->mpt_localkey
);
4515 mptcp_get_remotekey(void* mptcb_arg
)
4517 struct mptcb
*mp_tp
= (struct mptcb
*)mptcb_arg
;
4518 return (mp_tp
->mpt_remotekey
);
4522 mptcp_send_dfin(struct socket
*so
)
4524 struct tcpcb
*tp
= NULL
;
4525 struct inpcb
*inp
= NULL
;
4527 inp
= sotoinpcb(so
);
4531 tp
= intotcpcb(inp
);
4535 if (!(tp
->t_mpflags
& TMPF_RESET
))
4536 tp
->t_mpflags
|= TMPF_SEND_DFIN
;
4540 * Data Sequence Mapping routines
4543 mptcp_insert_dsn(struct mppcb
*mpp
, struct mbuf
*m
)
4545 struct mptcb
*mp_tp
;
4550 __IGNORE_WCASTALIGN(mp_tp
= &((struct mpp_mtp
*)mpp
)->mtcb
);
4553 VERIFY(m
->m_flags
& M_PKTHDR
);
4554 m
->m_pkthdr
.pkt_flags
|= (PKTF_MPTCP
| PKTF_MPSO
);
4555 m
->m_pkthdr
.mp_dsn
= mp_tp
->mpt_sndmax
;
4556 m
->m_pkthdr
.mp_rlen
= m_pktlen(m
);
4557 mp_tp
->mpt_sndmax
+= m_pktlen(m
);
4564 mptcp_preproc_sbdrop(struct socket
*so
, struct mbuf
*m
, unsigned int len
)
4566 u_int32_t sub_len
= 0;
4569 if (so
->so_flags1
& SOF1_DATA_IDEMPOTENT
) {
4570 /* TFO makes things complicated. */
4571 if (so
->so_flags1
& SOF1_TFO_REWIND
) {
4573 so
->so_flags1
&= ~SOF1_TFO_REWIND
;
4578 VERIFY(m
->m_flags
& M_PKTHDR
);
4580 if (m
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
) {
4581 sub_len
= m
->m_pkthdr
.mp_rlen
;
4583 if (sub_len
< len
) {
4584 m
->m_pkthdr
.mp_dsn
+= sub_len
;
4585 if (!(m
->m_pkthdr
.pkt_flags
& PKTF_MPSO
)) {
4586 m
->m_pkthdr
.mp_rseq
+= sub_len
;
4588 m
->m_pkthdr
.mp_rlen
= 0;
4591 /* sub_len >= len */
4593 m
->m_pkthdr
.mp_dsn
+= len
;
4594 if (!(m
->m_pkthdr
.pkt_flags
& PKTF_MPSO
)) {
4596 m
->m_pkthdr
.mp_rseq
+= len
;
4598 mptcplog((LOG_DEBUG
, "MPTCP Sender: "
4599 "%s: dsn 0x%llx ssn %u len %d %d\n",
4601 m
->m_pkthdr
.mp_dsn
, m
->m_pkthdr
.mp_rseq
,
4602 m
->m_pkthdr
.mp_rlen
, len
),
4603 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
4604 m
->m_pkthdr
.mp_rlen
-= len
;
4608 panic("%s: MPTCP tag not set", __func__
);
4615 /* Obtain the DSN mapping stored in the mbuf */
4617 mptcp_output_getm_dsnmap32(struct socket
*so
, int off
, uint32_t datalen
,
4618 u_int32_t
*dsn
, u_int32_t
*relseq
, u_int16_t
*data_len
, u_int64_t
*dsn64p
)
4622 mptcp_output_getm_dsnmap64(so
, off
, datalen
, &dsn64
, relseq
, data_len
);
4623 *dsn
= (u_int32_t
)MPTCP_DATASEQ_LOW32(dsn64
);
4628 mptcp_output_getm_dsnmap64(struct socket
*so
, int off
, uint32_t datalen
,
4629 u_int64_t
*dsn
, u_int32_t
*relseq
, u_int16_t
*data_len
)
4631 struct mbuf
*m
= so
->so_snd
.sb_mb
;
4632 struct mbuf
*mnext
= NULL
;
4633 uint32_t runlen
= 0;
4635 uint32_t contig_len
= 0;
4643 * In the subflow socket, the DSN sequencing can be discontiguous,
4644 * but the subflow sequence mapping is contiguous. Use the subflow
4645 * sequence property to find the right mbuf and corresponding dsn
4650 VERIFY(m
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
);
4651 VERIFY(m
->m_flags
& M_PKTHDR
);
4653 if ((unsigned int)off
>= m
->m_pkthdr
.mp_rlen
) {
4654 off
-= m
->m_pkthdr
.mp_rlen
;
4662 panic("%s: bad offset", __func__
);
4666 dsn64
= m
->m_pkthdr
.mp_dsn
+ off
;
4668 *relseq
= m
->m_pkthdr
.mp_rseq
+ off
;
4671 * Now find the last contiguous byte and its length from
4674 runlen
= m
->m_pkthdr
.mp_rlen
- off
;
4675 contig_len
= runlen
;
4677 /* If datalen does not span multiple mbufs, return */
4678 if (datalen
<= runlen
) {
4679 *data_len
= min(datalen
, UINT16_MAX
);
4684 while (datalen
> runlen
) {
4685 if (mnext
== NULL
) {
4686 panic("%s: bad datalen = %d, %d %d", __func__
, datalen
,
4690 VERIFY(mnext
->m_flags
& M_PKTHDR
);
4691 VERIFY(mnext
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
);
4694 * case A. contiguous DSN stream
4695 * case B. discontiguous DSN stream
4697 if (mnext
->m_pkthdr
.mp_dsn
== (dsn64
+ runlen
)) {
4699 runlen
+= mnext
->m_pkthdr
.mp_rlen
;
4700 contig_len
+= mnext
->m_pkthdr
.mp_rlen
;
4701 mptcplog((LOG_DEBUG
, "MPTCP Sender: %s: contig \n",
4702 __func__
), MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
4705 mptcplog((LOG_DEBUG
, "MPTCP Sender: "
4706 "%s: discontig datalen %d contig_len %d cc %d \n",
4707 __func__
, datalen
, contig_len
, so
->so_snd
.sb_cc
),
4708 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
4711 mnext
= mnext
->m_next
;
4713 datalen
= min(datalen
, UINT16_MAX
);
4714 *data_len
= min(datalen
, contig_len
);
4715 mptcplog((LOG_DEBUG
, "MPTCP Sender: "
4716 "%s: %llu %u %d %d \n", __func__
,
4717 *dsn
, *relseq
, *data_len
, off
),
4718 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
4722 * MPTCP's notion of the next insequence Data Sequence number is adjusted
4723 * here. It must be called from mptcp_adj_rmap() which is called only after
4724 * reassembly of out of order data. The rcvnxt variable must
4725 * be updated only when atleast some insequence new data is received.
4728 mptcp_adj_rcvnxt(struct tcpcb
*tp
, struct mbuf
*m
)
4730 struct mptcb
*mp_tp
= tptomptp(tp
);
4735 if ((MPTCP_SEQ_GEQ(mp_tp
->mpt_rcvnxt
, m
->m_pkthdr
.mp_dsn
)) &&
4736 (MPTCP_SEQ_LEQ(mp_tp
->mpt_rcvnxt
, (m
->m_pkthdr
.mp_dsn
+
4737 m
->m_pkthdr
.mp_rlen
)))) {
4738 mp_tp
->mpt_rcvnxt
= m
->m_pkthdr
.mp_dsn
+ m
->m_pkthdr
.mp_rlen
;
4744 * Note that this is called only from tcp_input() via mptcp_input_preproc()
4745 * tcp_input() may trim data after the dsn mapping is inserted into the mbuf.
4746 * When it trims data tcp_input calls m_adj() which does not remove the
4747 * m_pkthdr even if the m_len becomes 0 as a result of trimming the mbuf.
4748 * The dsn map insertion cannot be delayed after trim, because data can be in
4749 * the reassembly queue for a while and the DSN option info in tp will be
4750 * overwritten for every new packet received.
4751 * The dsn map will be adjusted just prior to appending to subflow sockbuf
4752 * with mptcp_adj_rmap()
4755 mptcp_insert_rmap(struct tcpcb
*tp
, struct mbuf
*m
)
4757 VERIFY(!(m
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
));
4759 if (tp
->t_mpflags
& TMPF_EMBED_DSN
) {
4760 VERIFY(m
->m_flags
& M_PKTHDR
);
4761 m
->m_pkthdr
.mp_dsn
= tp
->t_rcv_map
.mpt_dsn
;
4762 m
->m_pkthdr
.mp_rseq
= tp
->t_rcv_map
.mpt_sseq
;
4763 m
->m_pkthdr
.mp_rlen
= tp
->t_rcv_map
.mpt_len
;
4764 m
->m_pkthdr
.pkt_flags
|= PKTF_MPTCP
;
4765 tp
->t_mpflags
&= ~TMPF_EMBED_DSN
;
4766 tp
->t_mpflags
|= TMPF_MPTCP_ACKNOW
;
4771 mptcp_adj_rmap(struct socket
*so
, struct mbuf
*m
)
4774 u_int32_t sseq
, datalen
;
4775 struct tcpcb
*tp
= intotcpcb(sotoinpcb(so
));
4776 u_int32_t old_rcvnxt
= 0;
4778 if (m_pktlen(m
) == 0)
4781 if (m
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
) {
4782 VERIFY(m
->m_flags
& M_PKTHDR
);
4784 dsn
= m
->m_pkthdr
.mp_dsn
;
4785 sseq
= m
->m_pkthdr
.mp_rseq
+ tp
->irs
;
4786 datalen
= m
->m_pkthdr
.mp_rlen
;
4788 /* data arrived without an DSS option mapping */
4790 /* initial subflow can fallback right after SYN handshake */
4791 mptcp_notify_mpfail(so
);
4795 /* In the common case, data is in window and in sequence */
4796 if (m
->m_pkthdr
.len
== (int)datalen
) {
4797 mptcp_adj_rcvnxt(tp
, m
);
4801 old_rcvnxt
= tp
->rcv_nxt
- m
->m_pkthdr
.len
;
4802 if (SEQ_GT(old_rcvnxt
, sseq
)) {
4803 /* data trimmed from the left */
4804 int off
= old_rcvnxt
- sseq
;
4805 m
->m_pkthdr
.mp_dsn
+= off
;
4806 m
->m_pkthdr
.mp_rseq
+= off
;
4807 m
->m_pkthdr
.mp_rlen
= m
->m_pkthdr
.len
;
4808 } else if (old_rcvnxt
== sseq
) {
4810 * data was trimmed from the right
4812 m
->m_pkthdr
.mp_rlen
= m
->m_pkthdr
.len
;
4814 mptcp_notify_mpfail(so
);
4817 mptcp_adj_rcvnxt(tp
, m
);
4822 * Following routines help with failure detection and failover of data
4823 * transfer from one subflow to another.
4826 mptcp_act_on_txfail(struct socket
*so
)
4828 struct tcpcb
*tp
= NULL
;
4829 struct inpcb
*inp
= sotoinpcb(so
);
4834 tp
= intotcpcb(inp
);
4838 if (so
->so_flags
& SOF_MP_TRYFAILOVER
) {
4842 so
->so_flags
|= SOF_MP_TRYFAILOVER
;
4843 soevent(so
, (SO_FILT_HINT_LOCKED
| SO_FILT_HINT_MPFAILOVER
));
4847 * Support for MP_FAIL option
4850 mptcp_get_map_for_dsn(struct socket
*so
, u_int64_t dsn_fail
, u_int32_t
*tcp_seq
)
4852 struct mbuf
*m
= so
->so_snd
.sb_mb
;
4861 VERIFY(m
->m_pkthdr
.pkt_flags
& PKTF_MPTCP
);
4862 VERIFY(m
->m_flags
& M_PKTHDR
);
4863 dsn
= m
->m_pkthdr
.mp_dsn
;
4864 datalen
= m
->m_pkthdr
.mp_rlen
;
4865 if (MPTCP_SEQ_LEQ(dsn
, dsn_fail
) &&
4866 (MPTCP_SEQ_GEQ(dsn
+ datalen
, dsn_fail
))) {
4867 off
= dsn_fail
- dsn
;
4868 *tcp_seq
= m
->m_pkthdr
.mp_rseq
+ off
;
4869 mptcplog((LOG_DEBUG
, "MPTCP Sender: %s: %llu %llu \n",
4870 __func__
, dsn
, dsn_fail
),
4871 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
4879 * If there was no mbuf data and a fallback to TCP occurred, there's
4880 * not much else to do.
4883 mptcplog((LOG_ERR
, "MPTCP Sender: "
4884 "%s: %llu not found \n", __func__
, dsn_fail
),
4885 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
4890 * Support for sending contiguous MPTCP bytes in subflow
4891 * Also for preventing sending data with ACK in 3-way handshake
4894 mptcp_adj_sendlen(struct socket
*so
, int32_t off
, int32_t len
)
4896 u_int64_t mdss_dsn
= 0;
4897 u_int32_t mdss_subflow_seq
= 0;
4898 u_int16_t mdss_data_len
= 0;
4903 mptcp_output_getm_dsnmap64(so
, off
, (u_int32_t
)len
,
4904 &mdss_dsn
, &mdss_subflow_seq
, &mdss_data_len
);
4907 * Special case handling for Fast Join. We want to send data right
4908 * after ACK of the 3-way handshake, but not piggyback the data
4909 * with the 3rd ACK of the 3WHS. TMPF_FASTJOINBY2_SEND and
4910 * mdss_data_len control this.
4912 struct tcpcb
*tp
= NULL
;
4913 tp
= intotcpcb(sotoinpcb(so
));
4914 if ((tp
->t_mpflags
& TMPF_JOINED_FLOW
) &&
4915 (tp
->t_mpflags
& TMPF_PREESTABLISHED
) &&
4916 (!(tp
->t_mpflags
& TMPF_RECVD_JOIN
)) &&
4917 (tp
->t_mpflags
& TMPF_SENT_JOIN
) &&
4918 (!(tp
->t_mpflags
& TMPF_MPTCP_TRUE
)) &&
4919 (!(tp
->t_mpflags
& TMPF_FASTJOINBY2_SEND
))) {
4921 tp
->t_mpflags
|= TMPF_FASTJOINBY2_SEND
;
4924 if ((tp
->t_state
> TCPS_SYN_SENT
) &&
4925 (tp
->t_mpflags
& TMPF_TFO_REQUEST
)) {
4927 tp
->t_mpflags
&= ~TMPF_TFO_REQUEST
;
4929 return (mdss_data_len
);
4933 mptcp_sbspace(struct mptcb
*mpt
)
4939 MPT_LOCK_ASSERT_HELD(mpt
);
4940 MPTE_LOCK_ASSERT_HELD(mpt
->mpt_mpte
);
4942 sb
= &mpt
->mpt_mpte
->mpte_mppcb
->mpp_socket
->so_rcv
;
4943 rcvbuf
= sb
->sb_hiwat
;
4944 space
= ((int32_t)imin((rcvbuf
- sb
->sb_cc
),
4945 (sb
->sb_mbmax
- sb
->sb_mbcnt
)));
4948 /* XXX check if it's too small? */
4954 * Support Fallback to Regular TCP
4957 mptcp_notify_mpready(struct socket
*so
)
4959 struct tcpcb
*tp
= NULL
;
4964 tp
= intotcpcb(sotoinpcb(so
));
4969 DTRACE_MPTCP4(multipath__ready
, struct socket
*, so
,
4970 struct sockbuf
*, &so
->so_rcv
, struct sockbuf
*, &so
->so_snd
,
4971 struct tcpcb
*, tp
);
4973 if (!(tp
->t_mpflags
& TMPF_MPTCP_TRUE
))
4976 if (tp
->t_mpflags
& TMPF_MPTCP_READY
)
4979 tp
->t_mpflags
&= ~TMPF_TCP_FALLBACK
;
4980 tp
->t_mpflags
|= TMPF_MPTCP_READY
;
4982 soevent(so
, (SO_FILT_HINT_LOCKED
| SO_FILT_HINT_MPSTATUS
));
4986 mptcp_notify_mpfail(struct socket
*so
)
4988 struct tcpcb
*tp
= NULL
;
4993 tp
= intotcpcb(sotoinpcb(so
));
4998 DTRACE_MPTCP4(multipath__failed
, struct socket
*, so
,
4999 struct sockbuf
*, &so
->so_rcv
, struct sockbuf
*, &so
->so_snd
,
5000 struct tcpcb
*, tp
);
5002 if (tp
->t_mpflags
& TMPF_TCP_FALLBACK
)
5005 tp
->t_mpflags
&= ~(TMPF_MPTCP_READY
|TMPF_MPTCP_TRUE
);
5006 tp
->t_mpflags
|= TMPF_TCP_FALLBACK
;
5008 soevent(so
, (SO_FILT_HINT_LOCKED
| SO_FILT_HINT_MPSTATUS
));
5012 * Keepalive helper function
5015 mptcp_ok_to_keepalive(struct mptcb
*mp_tp
)
5018 VERIFY(mp_tp
!= NULL
);
5020 if (mp_tp
->mpt_state
>= MPTCPS_CLOSE_WAIT
) {
5028 * MPTCP t_maxseg adjustment function
5031 mptcp_adj_mss(struct tcpcb
*tp
, boolean_t mtudisc
)
5034 struct mptcb
*mp_tp
= tptomptp(tp
);
5036 #define MPTCP_COMPUTE_LEN { \
5037 mss_lower = sizeof (struct mptcp_dss_ack_opt); \
5039 if (mp_tp->mpt_flags & MPTCPF_CHECKSUM) \
5042 /* adjust to 32-bit boundary + EOL */ \
5044 MPT_UNLOCK(mp_tp); \
5050 * For the first subflow and subsequent subflows, adjust mss for
5051 * most common MPTCP option size, for case where tcp_mss is called
5052 * during option processing and MTU discovery.
5054 if ((tp
->t_mpflags
& TMPF_PREESTABLISHED
) &&
5055 (!(tp
->t_mpflags
& TMPF_JOINED_FLOW
))) {
5059 if ((tp
->t_mpflags
& TMPF_PREESTABLISHED
) &&
5060 (tp
->t_mpflags
& TMPF_SENT_JOIN
)) {
5064 if ((mtudisc
) && (tp
->t_mpflags
& TMPF_MPTCP_TRUE
)) {
5072 * Update the pid, upid, uuid of the subflow so, based on parent so
5075 mptcp_update_last_owner(struct mptsub
*mpts
, struct socket
*parent_mpso
)
5077 struct socket
*subflow_so
= mpts
->mpts_socket
;
5079 MPTS_LOCK_ASSERT_HELD(mpts
);
5081 socket_lock(subflow_so
, 0);
5082 if ((subflow_so
->last_pid
!= parent_mpso
->last_pid
) ||
5083 (subflow_so
->last_upid
!= parent_mpso
->last_upid
)) {
5084 subflow_so
->last_upid
= parent_mpso
->last_upid
;
5085 subflow_so
->last_pid
= parent_mpso
->last_pid
;
5086 uuid_copy(subflow_so
->last_uuid
, parent_mpso
->last_uuid
);
5088 so_update_policy(subflow_so
);
5089 socket_unlock(subflow_so
, 0);
5093 fill_mptcp_subflow(struct socket
*so
, mptcp_flow_t
*flow
, struct mptsub
*mpts
)
5097 tcp_getconninfo(so
, &flow
->flow_ci
);
5098 inp
= sotoinpcb(so
);
5100 if ((inp
->inp_vflag
& INP_IPV6
) != 0) {
5101 flow
->flow_src
.ss_family
= AF_INET6
;
5102 flow
->flow_dst
.ss_family
= AF_INET6
;
5103 flow
->flow_src
.ss_len
= sizeof(struct sockaddr_in6
);
5104 flow
->flow_dst
.ss_len
= sizeof(struct sockaddr_in6
);
5105 SIN6(&flow
->flow_src
)->sin6_port
= inp
->in6p_lport
;
5106 SIN6(&flow
->flow_dst
)->sin6_port
= inp
->in6p_fport
;
5107 SIN6(&flow
->flow_src
)->sin6_addr
= inp
->in6p_laddr
;
5108 SIN6(&flow
->flow_dst
)->sin6_addr
= inp
->in6p_faddr
;
5111 if ((inp
->inp_vflag
& INP_IPV4
) != 0) {
5112 flow
->flow_src
.ss_family
= AF_INET
;
5113 flow
->flow_dst
.ss_family
= AF_INET
;
5114 flow
->flow_src
.ss_len
= sizeof(struct sockaddr_in
);
5115 flow
->flow_dst
.ss_len
= sizeof(struct sockaddr_in
);
5116 SIN(&flow
->flow_src
)->sin_port
= inp
->inp_lport
;
5117 SIN(&flow
->flow_dst
)->sin_port
= inp
->inp_fport
;
5118 SIN(&flow
->flow_src
)->sin_addr
= inp
->inp_laddr
;
5119 SIN(&flow
->flow_dst
)->sin_addr
= inp
->inp_faddr
;
5121 flow
->flow_len
= sizeof(*flow
);
5122 flow
->flow_tcpci_offset
= offsetof(mptcp_flow_t
, flow_ci
);
5123 flow
->flow_flags
= mpts
->mpts_flags
;
5124 flow
->flow_cid
= mpts
->mpts_connid
;
5125 flow
->flow_sndnxt
= mpts
->mpts_sndnxt
;
5126 flow
->flow_relseq
= mpts
->mpts_rel_seq
;
5127 flow
->flow_soerror
= mpts
->mpts_soerror
;
5128 flow
->flow_probecnt
= mpts
->mpts_probecnt
;
5129 flow
->flow_peerswitch
= mpts
->mpts_peerswitch
;
5133 mptcp_pcblist SYSCTL_HANDLER_ARGS
5135 #pragma unused(oidp, arg1, arg2)
5139 struct mptses
*mpte
;
5140 struct mptcb
*mp_tp
;
5141 struct mptsub
*mpts
;
5143 conninfo_mptcp_t mptcpci
;
5144 mptcp_flow_t
*flows
= NULL
;
5146 if (req
->newptr
!= USER_ADDR_NULL
)
5149 lck_mtx_lock(&mtcbinfo
.mppi_lock
);
5150 n
= mtcbinfo
.mppi_count
;
5151 if (req
->oldptr
== USER_ADDR_NULL
) {
5152 lck_mtx_unlock(&mtcbinfo
.mppi_lock
);
5153 req
->oldidx
= (n
+ n
/8) * sizeof(conninfo_mptcp_t
) +
5154 4 * (n
+ n
/8) * sizeof(mptcp_flow_t
);
5157 TAILQ_FOREACH(mpp
, &mtcbinfo
.mppi_pcbs
, mpp_entry
) {
5159 lck_mtx_lock(&mpp
->mpp_lock
);
5160 VERIFY(mpp
->mpp_flags
& MPP_ATTACHED
);
5161 if (mpp
->mpp_flags
& MPP_DEFUNCT
) {
5162 lck_mtx_unlock(&mpp
->mpp_lock
);
5165 mpte
= mptompte(mpp
);
5166 VERIFY(mpte
!= NULL
);
5167 mp_tp
= mpte
->mpte_mptcb
;
5168 VERIFY(mp_tp
!= NULL
);
5170 bzero(&mptcpci
, sizeof(mptcpci
));
5172 mptcpci
.mptcpci_state
= mp_tp
->mpt_state
;
5173 mptcpci
.mptcpci_flags
= mp_tp
->mpt_flags
;
5174 mptcpci
.mptcpci_ltoken
= mp_tp
->mpt_localtoken
;
5175 mptcpci
.mptcpci_rtoken
= mp_tp
->mpt_remotetoken
;
5176 mptcpci
.mptcpci_notsent_lowat
= mp_tp
->mpt_notsent_lowat
;
5177 mptcpci
.mptcpci_snduna
= mp_tp
->mpt_snduna
;
5178 mptcpci
.mptcpci_sndnxt
= mp_tp
->mpt_sndnxt
;
5179 mptcpci
.mptcpci_sndmax
= mp_tp
->mpt_sndmax
;
5180 mptcpci
.mptcpci_lidsn
= mp_tp
->mpt_local_idsn
;
5181 mptcpci
.mptcpci_sndwnd
= mp_tp
->mpt_sndwnd
;
5182 mptcpci
.mptcpci_rcvnxt
= mp_tp
->mpt_rcvnxt
;
5183 mptcpci
.mptcpci_rcvatmark
= mp_tp
->mpt_rcvatmark
;
5184 mptcpci
.mptcpci_ridsn
= mp_tp
->mpt_remote_idsn
;
5185 mptcpci
.mptcpci_rcvwnd
= mp_tp
->mpt_rcvwnd
;
5188 mptcpci
.mptcpci_nflows
= mpte
->mpte_numflows
;
5189 mptcpci
.mptcpci_mpte_flags
= mpte
->mpte_flags
;
5190 mptcpci
.mptcpci_mpte_addrid
= mpte
->mpte_addrid_last
;
5191 mptcpci
.mptcpci_flow_offset
=
5192 offsetof(conninfo_mptcp_t
, mptcpci_flows
);
5194 len
= sizeof(*flows
) * mpte
->mpte_numflows
;
5195 if (mpte
->mpte_numflows
!= 0) {
5196 flows
= _MALLOC(len
, M_TEMP
, M_WAITOK
| M_ZERO
);
5197 if (flows
== NULL
) {
5198 lck_mtx_unlock(&mpp
->mpp_lock
);
5201 mptcpci
.mptcpci_len
= sizeof(mptcpci
) +
5202 sizeof(*flows
) * (mptcpci
.mptcpci_nflows
- 1);
5203 error
= SYSCTL_OUT(req
, &mptcpci
,
5204 sizeof(mptcpci
) - sizeof(mptcp_flow_t
));
5206 mptcpci
.mptcpci_len
= sizeof(mptcpci
);
5207 error
= SYSCTL_OUT(req
, &mptcpci
, sizeof(mptcpci
));
5210 lck_mtx_unlock(&mpp
->mpp_lock
);
5211 FREE(flows
, M_TEMP
);
5215 TAILQ_FOREACH(mpts
, &mpte
->mpte_subflows
, mpts_entry
) {
5217 so
= mpts
->mpts_socket
;
5219 fill_mptcp_subflow(so
, &flows
[f
], mpts
);
5220 socket_unlock(so
, 0);
5224 lck_mtx_unlock(&mpp
->mpp_lock
);
5226 error
= SYSCTL_OUT(req
, flows
, len
);
5227 FREE(flows
, M_TEMP
);
5232 lck_mtx_unlock(&mtcbinfo
.mppi_lock
);
5237 SYSCTL_PROC(_net_inet_mptcp
, OID_AUTO
, pcblist
, CTLFLAG_RD
| CTLFLAG_LOCKED
,
5238 0, 0, mptcp_pcblist
, "S,conninfo_mptcp_t",
5239 "List of active MPTCP connections");
5242 * Check the health of the other subflows and do an mptcp_output if
5243 * there is no other active or functional subflow at the time of
5244 * call of this function.
5247 mptcp_output_needed(struct mptses
*mpte
, struct mptsub
*to_mpts
)
5249 struct mptsub
*from_mpts
= NULL
;
5251 MPTE_LOCK_ASSERT_HELD(mpte
);
5253 MPTS_UNLOCK(to_mpts
);
5255 from_mpts
= mpte
->mpte_active_sub
;
5257 if (from_mpts
== NULL
)
5260 MPTS_LOCK(from_mpts
);
5262 if ((from_mpts
->mpts_flags
& MPTSF_DISCONNECTED
) ||
5263 (from_mpts
->mpts_flags
& MPTSF_DISCONNECTING
)) {
5264 MPTS_UNLOCK(from_mpts
);
5268 MPTS_UNLOCK(from_mpts
);
5278 * Set notsent lowat mark on the MPTCB
5281 mptcp_set_notsent_lowat(struct mptses
*mpte
, int optval
)
5283 struct mptcb
*mp_tp
= NULL
;
5286 if (mpte
->mpte_mppcb
->mpp_flags
& MPP_ATTACHED
)
5287 mp_tp
= mpte
->mpte_mptcb
;
5290 mp_tp
->mpt_notsent_lowat
= optval
;
5298 mptcp_get_notsent_lowat(struct mptses
*mpte
)
5300 struct mptcb
*mp_tp
= NULL
;
5302 if (mpte
->mpte_mppcb
->mpp_flags
& MPP_ATTACHED
)
5303 mp_tp
= mpte
->mpte_mptcb
;
5306 return mp_tp
->mpt_notsent_lowat
;
5312 mptcp_notsent_lowat_check(struct socket
*so
) {
5313 struct mptses
*mpte
;
5315 struct mptcb
*mp_tp
;
5316 struct mptsub
*mpts
;
5320 mpp
= sotomppcb(so
);
5321 if (mpp
== NULL
|| mpp
->mpp_state
== MPPCB_STATE_DEAD
) {
5325 mpte
= mptompte(mpp
);
5326 mp_tp
= mpte
->mpte_mptcb
;
5329 notsent
= so
->so_snd
.sb_cc
;
5331 if ((notsent
== 0) ||
5332 ((notsent
- (mp_tp
->mpt_sndnxt
- mp_tp
->mpt_snduna
)) <=
5333 mp_tp
->mpt_notsent_lowat
)) {
5334 mptcplog((LOG_DEBUG
, "MPTCP Sender: "
5335 "lowat %d notsent %d actual %d \n",
5336 mp_tp
->mpt_notsent_lowat
, notsent
,
5337 notsent
- (mp_tp
->mpt_sndnxt
- mp_tp
->mpt_snduna
)),
5338 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
5344 /* When Nagle's algorithm is not disabled, it is better
5345 * to wakeup the client even before there is atleast one
5346 * maxseg of data to write.
5348 TAILQ_FOREACH(mpts
, &mpte
->mpte_subflows
, mpts_entry
) {
5351 if (mpts
->mpts_flags
& MPTSF_ACTIVE
) {
5352 struct socket
*subf_so
= mpts
->mpts_socket
;
5353 socket_lock(subf_so
, 0);
5354 struct tcpcb
*tp
= intotcpcb(sotoinpcb(subf_so
));
5356 notsent
= so
->so_snd
.sb_cc
-
5357 (tp
->snd_nxt
- tp
->snd_una
);
5359 if ((tp
->t_flags
& TF_NODELAY
) == 0 &&
5360 notsent
> 0 && (notsent
<= (int)tp
->t_maxseg
)) {
5363 mptcplog((LOG_DEBUG
, "MPTCP Sender: lowat %d notsent %d"
5364 " nodelay false \n",
5365 mp_tp
->mpt_notsent_lowat
, notsent
),
5366 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_VERBOSE
);
5367 socket_unlock(subf_so
, 0);
5377 mptcp_get_rtt_measurement(struct mptsub
*mpts
, struct mptses
*mpte
)
5379 MPTE_LOCK_ASSERT_HELD(mpte
);
5380 MPTS_LOCK_ASSERT_HELD(mpts
);
5382 struct socket
*subflow_so
= mpts
->mpts_socket
;
5383 socket_lock(subflow_so
, 0);
5384 mpts
->mpts_srtt
= (intotcpcb(sotoinpcb(subflow_so
)))->t_srtt
;
5385 mpts
->mpts_rxtcur
= (intotcpcb(sotoinpcb(subflow_so
)))->t_rxtcur
;
5386 socket_unlock(subflow_so
, 0);
5389 /* Using Symptoms Advisory to detect poor WiFi or poor Cell */
5390 static kern_ctl_ref mptcp_kern_ctrl_ref
= NULL
;
5391 static uint32_t mptcp_kern_skt_inuse
= 0;
5392 symptoms_advisory_t mptcp_advisory
;
5395 mptcp_symptoms_ctl_connect(kern_ctl_ref kctlref
, struct sockaddr_ctl
*sac
,
5398 #pragma unused(kctlref, sac, unitinfo)
5400 * We don't need to do anything here. But we can atleast ensure
5401 * only one user opens the MPTCP_KERN_CTL_NAME control socket.
5403 if (OSCompareAndSwap(0, 1, &mptcp_kern_skt_inuse
))
5410 mptcp_symptoms_ctl_disconnect(kern_ctl_ref kctlref
, u_int32_t kcunit
,
5413 #pragma unused(kctlref, kcunit, unitinfo)
5414 if (OSCompareAndSwap(1, 0, &mptcp_kern_skt_inuse
)) {
5415 /* TBD needs to be locked if the size grows more than an int */
5416 bzero(&mptcp_advisory
, sizeof(mptcp_advisory
));
5425 mptcp_symptoms_ctl_send(kern_ctl_ref kctlref
, u_int32_t kcunit
, void *unitinfo
,
5426 mbuf_t m
, int flags
)
5428 #pragma unused(kctlref, kcunit, unitinfo, flags)
5429 symptoms_advisory_t
*sa
= NULL
;
5431 if (mbuf_pkthdr_len(m
) < sizeof(*sa
)) {
5436 if (mbuf_len(m
) >= sizeof(*sa
))
5441 if (mptcp_advisory
.sa_nwk_status_int
!= sa
->sa_nwk_status_int
) {
5443 * we could use this notification to notify all mptcp pcbs
5444 * of the change in network status. But its difficult to
5445 * define if sending REMOVE_ADDR or MP_PRIO is appropriate
5446 * given that these are only soft indicators of the network
5447 * state. Leaving this as TBD for now.
5451 if (sa
->sa_nwk_status
!= SYMPTOMS_ADVISORY_NOCOMMENT
) {
5452 mptcplog((LOG_DEBUG
, "MPTCP Events: %s wifi %d,%d cell %d,%d\n",
5453 __func__
, sa
->sa_wifi_status
, mptcp_advisory
.sa_wifi_status
,
5454 sa
->sa_cell_status
, mptcp_advisory
.sa_cell_status
),
5455 MPTCP_SOCKET_DBG
| MPTCP_EVENTS_DBG
,
5458 if ((sa
->sa_wifi_status
&
5459 (SYMPTOMS_ADVISORY_WIFI_BAD
| SYMPTOMS_ADVISORY_WIFI_OK
)) !=
5460 (SYMPTOMS_ADVISORY_WIFI_BAD
| SYMPTOMS_ADVISORY_WIFI_OK
)) {
5461 mptcp_advisory
.sa_wifi_status
= sa
->sa_wifi_status
;
5464 if ((sa
->sa_cell_status
&
5465 (SYMPTOMS_ADVISORY_CELL_BAD
| SYMPTOMS_ADVISORY_CELL_OK
)) !=
5466 (SYMPTOMS_ADVISORY_CELL_BAD
| SYMPTOMS_ADVISORY_CELL_OK
)) {
5467 mptcp_advisory
.sa_cell_status
= sa
->sa_cell_status
;
5470 mptcplog((LOG_DEBUG
, "MPTCP Events: %s NOCOMMENT "
5471 "wifi %d cell %d\n", __func__
,
5472 mptcp_advisory
.sa_wifi_status
,
5473 mptcp_advisory
.sa_cell_status
),
5474 MPTCP_SOCKET_DBG
| MPTCP_EVENTS_DBG
, MPTCP_LOGLVL_LOG
);
5480 mptcp_control_register(void)
5482 /* Set up the advisory control socket */
5483 struct kern_ctl_reg mptcp_kern_ctl
;
5485 bzero(&mptcp_kern_ctl
, sizeof(mptcp_kern_ctl
));
5486 strlcpy(mptcp_kern_ctl
.ctl_name
, MPTCP_KERN_CTL_NAME
,
5487 sizeof(mptcp_kern_ctl
.ctl_name
));
5488 mptcp_kern_ctl
.ctl_connect
= mptcp_symptoms_ctl_connect
;
5489 mptcp_kern_ctl
.ctl_disconnect
= mptcp_symptoms_ctl_disconnect
;
5490 mptcp_kern_ctl
.ctl_send
= mptcp_symptoms_ctl_send
;
5491 mptcp_kern_ctl
.ctl_flags
= CTL_FLAG_PRIVILEGED
;
5493 (void)ctl_register(&mptcp_kern_ctl
, &mptcp_kern_ctrl_ref
);
5497 mptcp_is_wifi_unusable(void)
5499 /* a false return val indicates there is no info or wifi is ok */
5500 return (mptcp_advisory
.sa_wifi_status
& SYMPTOMS_ADVISORY_WIFI_BAD
);
5504 mptcp_is_cell_unusable(void)
5506 /* a false return val indicates there is no info or cell is ok */
5507 return (mptcp_advisory
.sa_cell_status
& SYMPTOMS_ADVISORY_CELL_BAD
);
5511 mptcp_use_symptoms_hints(struct mptsub
* best
, struct mptsub
*second_best
)
5513 struct mptsub
*cellsub
= NULL
;
5514 struct mptsub
*wifisub
= NULL
;
5515 struct mptsub
*wiredsub
= NULL
;
5517 VERIFY ((best
!= NULL
) && (second_best
!= NULL
));
5519 if (!mptcp_use_symptomsd
)
5522 if (!mptcp_kern_skt_inuse
)
5526 * There could be devices with more than one wifi interface or
5527 * more than one wired or cell interfaces.
5528 * TBD: SymptomsD is unavailable on such platforms as of now.
5529 * Try to prefer best when possible in general.
5530 * Also, SymptomsD sends notifications about wifi only when it
5533 if (best
->mpts_linktype
& MPTSL_WIFI
)
5535 else if (best
->mpts_linktype
& MPTSL_CELL
)
5537 else if (best
->mpts_linktype
& MPTSL_WIRED
)
5541 * On platforms with wired paths, don't use hints about wifi or cell.
5542 * Currently, SymptomsD is not available on platforms with wired paths.
5547 if ((wifisub
== NULL
) && (second_best
->mpts_linktype
& MPTSL_WIFI
))
5548 wifisub
= second_best
;
5550 if ((cellsub
== NULL
) && (second_best
->mpts_linktype
& MPTSL_CELL
))
5551 cellsub
= second_best
;
5553 if ((wiredsub
== NULL
) && (second_best
->mpts_linktype
& MPTSL_WIRED
))
5554 wiredsub
= second_best
;
5556 if ((wifisub
== best
) && mptcp_is_wifi_unusable()) {
5557 tcpstat
.tcps_mp_sel_symtomsd
++;
5558 if (mptcp_is_cell_unusable()) {
5559 mptcplog((LOG_DEBUG
, "MPTCP Sender: SymptomsD hint"
5560 " suggests both Wifi and Cell are bad. Wired %s.",
5561 (wiredsub
== NULL
) ? "none" : "present"),
5562 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
5565 mptcplog((LOG_DEBUG
, "MPTCP Sender: SymptomsD hint"
5566 " suggests Wifi bad, Cell good. Wired %s.",
5567 (wiredsub
== NULL
) ? "none" : "present"),
5568 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
5569 return ((wiredsub
!= NULL
) ? wiredsub
: cellsub
);
5573 if ((cellsub
== best
) && (mptcp_is_cell_unusable())) {
5574 tcpstat
.tcps_mp_sel_symtomsd
++;
5575 if (mptcp_is_wifi_unusable()) {
5576 mptcplog((LOG_DEBUG
, "MPTCP Sender: SymptomsD hint"
5577 " suggests both Cell and Wifi are bad. Wired %s.",
5578 (wiredsub
== NULL
) ? "none" : "present"),
5579 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
5582 mptcplog((LOG_DEBUG
, "MPTCP Sender: SymptomsD hint"
5583 " suggests Cell bad, Wifi good. Wired %s.",
5584 (wiredsub
== NULL
) ? "none" : "present"),
5585 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);
5586 return ((wiredsub
!= NULL
) ? wiredsub
: wifisub
);
5590 /* little is known about the state of the network or wifi is good */
5594 /* If TFO data is succesfully acked, it must be dropped from the mptcp so */
5596 mptcp_drop_tfo_data(struct mptses
*mpte
, struct mptsub
*mpts
)
5598 struct socket
*mp_so
= mpte
->mpte_mppcb
->mpp_socket
;
5599 struct socket
*so
= mpts
->mpts_socket
;
5600 struct tcpcb
*tp
= intotcpcb(sotoinpcb(so
));
5601 struct mptcb
*mp_tp
= mpte
->mpte_mptcb
;
5603 /* If data was sent with SYN, rewind state */
5604 if (tp
->t_tfo_stats
& TFO_S_SYN_DATA_ACKED
) {
5605 mpts
->mpts_flags
&= ~MPTSF_TFO_REQD
;
5606 tp
->t_mpflags
&= ~TMPF_TFO_REQUEST
;
5608 u_int64_t mp_droplen
= mpts
->mpts_sndnxt
- mp_tp
->mpt_snduna
;
5609 unsigned int tcp_droplen
= tp
->snd_una
- tp
->iss
- 1;
5610 VERIFY(mp_droplen
<= (UINT_MAX
));
5611 VERIFY(mp_droplen
>= tcp_droplen
);
5613 if (mp_droplen
> tcp_droplen
) {
5614 /* handle partial TCP ack */
5615 mp_so
->so_flags1
|= SOF1_TFO_REWIND
;
5616 mp_tp
->mpt_sndnxt
= mp_tp
->mpt_snduna
+ (mp_droplen
- tcp_droplen
);
5617 mpts
->mpts_sndnxt
= mp_tp
->mpt_sndnxt
;
5618 mp_droplen
= tcp_droplen
;
5620 /* all data on SYN was acked */
5621 mpts
->mpts_rel_seq
= 1;
5622 mp_tp
->mpt_sndnxt
= mp_tp
->mpt_snduna
;
5623 mpts
->mpts_sndnxt
= mp_tp
->mpt_snduna
;
5625 mp_tp
->mpt_sndmax
-= tcp_droplen
;
5628 if (mp_droplen
!= 0) {
5629 VERIFY(mp_so
->so_snd
.sb_mb
!= NULL
);
5630 sbdrop(&mp_so
->so_snd
, (int)mp_droplen
);
5632 mptcplog((LOG_ERR
, "MPTCP Sender: %s mp_so 0x%llx cid %d "
5633 "TFO tcp len %d mptcp len %d\n", __func__
,
5634 (u_int64_t
)VM_KERNEL_ADDRPERM(mp_so
), mpts
->mpts_connid
,
5635 tcp_droplen
, mp_droplen
),
5636 MPTCP_SENDER_DBG
, MPTCP_LOGLVL_LOG
);