1 /* 2 * CDDL HEADER START 3 * 4 * The contents of this file are subject to the terms of the 5 * Common Development and Distribution License (the "License"). 6 * You may not use this file except in compliance with the License. 7 * 8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 9 * or http://www.opensolaris.org/os/licensing. 10 * See the License for the specific language governing permissions 11 * and limitations under the License. 12 * 13 * When distributing Covered Code, include this CDDL HEADER in each 14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 15 * If applicable, add the following below this CDDL HEADER, with the 16 * fields enclosed by brackets "[]" replaced with your own identifying 17 * information: Portions Copyright [yyyy] [name of copyright owner] 18 * 19 * CDDL HEADER END 20 */ 21 22 /* 23 * Copyright 2008 Sun Microsystems, Inc. All rights reserved. 24 * Use is subject to license terms. 25 */ 26 27 #pragma ident "@(#)sockcommon_sops.c 1.1 07/06/14 SMI" 28 29 #include <sys/types.h> 30 #include <sys/param.h> 31 #include <sys/systm.h> 32 #include <sys/sysmacros.h> 33 #include <sys/debug.h> 34 #include <sys/cmn_err.h> 35 36 #include <sys/stropts.h> 37 #include <sys/socket.h> 38 #include <sys/socketvar.h> 39 40 #define _SUN_TPI_VERSION 2 41 #include <sys/tihdr.h> 42 #include <sys/sockio.h> 43 #include <sys/sodirect.h> 44 #include <sys/kmem_impl.h> 45 46 #include <sys/strsubr.h> 47 #include <sys/strsun.h> 48 #include <sys/ddi.h> 49 #include <netinet/in.h> 50 #include <inet/ip.h> 51 52 #include <fs/sockfs/sockcommon.h> 53 54 #include <sys/socket_proto.h> 55 56 #include <fs/sockfs/socktpi_impl.h> 57 #include <sys/tihdr.h> 58 #include <fs/sockfs/nl7c.h> 59 #include <inet/kssl/ksslapi.h> 60 61 62 extern int xnet_skip_checks; 63 extern int xnet_check_print; 64 65 static void so_queue_oob(sock_upper_handle_t, mblk_t *, size_t); 66 67 68 /*ARGSUSED*/ 69 int 70 so_accept_notsupp(struct sonode *lso, int fflag, 71 struct cred *cr, struct sonode **nsop) 72 { 73 return (EOPNOTSUPP); 74 } 75 76 /*ARGSUSED*/ 77 int 78 so_listen_notsupp(struct sonode *so, int backlog, struct cred *cr) 79 { 80 return (EOPNOTSUPP); 81 } 82 83 /*ARGSUSED*/ 84 int 85 so_getsockname_notsupp(struct sonode *so, struct sockaddr *sa, 86 socklen_t *len, struct cred *cr) 87 { 88 return (EOPNOTSUPP); 89 } 90 91 /*ARGSUSED*/ 92 int 93 so_getpeername_notsupp(struct sonode *so, struct sockaddr *addr, 94 socklen_t *addrlen, boolean_t accept, struct cred *cr) 95 { 96 return (EOPNOTSUPP); 97 } 98 99 /*ARGSUSED*/ 100 int 101 so_shutdown_notsupp(struct sonode *so, int how, struct cred *cr) 102 { 103 return (EOPNOTSUPP); 104 } 105 106 /*ARGSUSED*/ 107 int 108 so_sendmblk_notsupp(struct sonode *so, struct msghdr *msg, int fflag, 109 struct cred *cr, mblk_t **mpp) 110 { 111 return (EOPNOTSUPP); 112 } 113 114 /* 115 * Generic Socket Ops 116 */ 117 118 /* ARGSUSED */ 119 int 120 so_init(struct sonode *so, struct sonode *pso, struct cred *cr, int flags) 121 { 122 return (socket_init_common(so, pso, flags, cr)); 123 } 124 125 int 126 so_bind(struct sonode *so, struct sockaddr *name, socklen_t namelen, 127 int flags, struct cred *cr) 128 { 129 int error; 130 131 SO_BLOCK_FALLBACK(so, SOP_BIND(so, name, namelen, flags, cr)); 132 133 ASSERT(flags == _SOBIND_XPG4_2 || flags == _SOBIND_SOCKBSD); 134 135 /* X/Open requires this check */ 136 if ((so->so_state & SS_CANTSENDMORE) && !xnet_skip_checks) { 137 if (xnet_check_print) { 138 printf("sockfs: X/Open bind state check " 139 "caused EINVAL\n"); 140 } 141 error = EINVAL; 142 goto done; 143 } 144 145 /* 146 * a bind to a NULL address is interpreted as unbind. So just 147 * do the downcall. 148 */ 149 if (name == NULL) 150 goto dobind; 151 152 switch (so->so_family) { 153 case AF_INET: 154 if ((size_t)namelen != sizeof (sin_t)) { 155 error = name->sa_family != so->so_family ? 156 EAFNOSUPPORT : EINVAL; 157 eprintsoline(so, error); 158 goto done; 159 } 160 161 if ((flags & _SOBIND_XPG4_2) && 162 (name->sa_family != so->so_family)) { 163 /* 164 * This check has to be made for X/Open 165 * sockets however application failures have 166 * been observed when it is applied to 167 * all sockets. 168 */ 169 error = EAFNOSUPPORT; 170 eprintsoline(so, error); 171 goto done; 172 } 173 /* 174 * Force a zero sa_family to match so_family. 175 * 176 * Some programs like inetd(1M) don't set the 177 * family field. Other programs leave 178 * sin_family set to garbage - SunOS 4.X does 179 * not check the family field on a bind. 180 * We use the family field that 181 * was passed in to the socket() call. 182 */ 183 name->sa_family = so->so_family; 184 break; 185 186 case AF_INET6: { 187 #ifdef DEBUG 188 sin6_t *sin6 = (sin6_t *)name; 189 #endif 190 if ((size_t)namelen != sizeof (sin6_t)) { 191 error = name->sa_family != so->so_family ? 192 EAFNOSUPPORT : EINVAL; 193 eprintsoline(so, error); 194 goto done; 195 } 196 197 if (name->sa_family != so->so_family) { 198 /* 199 * With IPv6 we require the family to match 200 * unlike in IPv4. 201 */ 202 error = EAFNOSUPPORT; 203 eprintsoline(so, error); 204 goto done; 205 } 206 #ifdef DEBUG 207 /* 208 * Verify that apps don't forget to clear 209 * sin6_scope_id etc 210 */ 211 if (sin6->sin6_scope_id != 0 && 212 !IN6_IS_ADDR_LINKSCOPE(&sin6->sin6_addr)) { 213 zcmn_err(getzoneid(), CE_WARN, 214 "bind with uninitialized sin6_scope_id " 215 "(%d) on socket. Pid = %d\n", 216 (int)sin6->sin6_scope_id, 217 (int)curproc->p_pid); 218 } 219 if (sin6->__sin6_src_id != 0) { 220 zcmn_err(getzoneid(), CE_WARN, 221 "bind with uninitialized __sin6_src_id " 222 "(%d) on socket. Pid = %d\n", 223 (int)sin6->__sin6_src_id, 224 (int)curproc->p_pid); 225 } 226 #endif /* DEBUG */ 227 228 break; 229 } 230 default: 231 /* Just pass the request to the protocol */ 232 goto dobind; 233 } 234 235 /* 236 * First we check if either NCA or KSSL has been enabled for 237 * the requested address, and if so, we fall back to TPI. 238 * If neither of those two services are enabled, then we just 239 * pass the request to the protocol. 240 * 241 * Note that KSSL can only be enabled on a socket if NCA is NOT 242 * enabled for that socket, hence the else-statement below. 243 */ 244 if (nl7c_enabled && ((so->so_family == AF_INET || 245 so->so_family == AF_INET6) && 246 nl7c_lookup_addr(name, namelen) != NULL)) { 247 /* 248 * NL7C is not supported in non-global zones, 249 * we enforce this restriction here. 250 */ 251 if (so->so_zoneid == GLOBAL_ZONEID) { 252 /* NCA should be used, so fall back to TPI */ 253 error = so_tpi_fallback(so, cr); 254 SO_UNBLOCK_FALLBACK(so); 255 if (error) 256 return (error); 257 else 258 return (SOP_BIND(so, name, namelen, flags, cr)); 259 } 260 } else if (so->so_type == SOCK_STREAM) { 261 /* Check if KSSL has been configured for this address */ 262 kssl_ent_t ent; 263 kssl_endpt_type_t type; 264 struct T_bind_req bind_req; 265 mblk_t *mp; 266 267 /* 268 * TODO: Check with KSSL team if we could add a function call 269 * that only queries whether KSSL is enabled for the given 270 * address. 271 */ 272 bind_req.PRIM_type = T_BIND_REQ; 273 bind_req.ADDR_length = namelen; 274 bind_req.ADDR_offset = (t_scalar_t)sizeof (bind_req); 275 mp = soallocproto2(&bind_req, sizeof (bind_req), 276 name, namelen, 0, _ALLOC_SLEEP); 277 278 type = kssl_check_proxy(mp, so, &ent); 279 freemsg(mp); 280 281 if (type != KSSL_NO_PROXY) { 282 /* 283 * KSSL has been configured for this address, so 284 * we must fall back to TPI. 285 */ 286 kssl_release_ent(ent, so, type); 287 error = so_tpi_fallback(so, cr); 288 SO_UNBLOCK_FALLBACK(so); 289 if (error) 290 return (error); 291 else 292 return (SOP_BIND(so, name, namelen, flags, cr)); 293 } 294 } 295 296 dobind: 297 error = (*so->so_downcalls->sd_bind) 298 (so->so_proto_handle, name, namelen, cr); 299 done: 300 SO_UNBLOCK_FALLBACK(so); 301 302 return (error); 303 } 304 305 int 306 so_listen(struct sonode *so, int backlog, struct cred *cr) 307 { 308 int error = 0; 309 310 ASSERT(MUTEX_NOT_HELD(&so->so_lock)); 311 SO_BLOCK_FALLBACK(so, SOP_LISTEN(so, backlog, cr)); 312 313 error = (*so->so_downcalls->sd_listen)(so->so_proto_handle, backlog, 314 cr); 315 316 SO_UNBLOCK_FALLBACK(so); 317 318 return (error); 319 } 320 321 322 int 323 so_connect(struct sonode *so, const struct sockaddr *name, 324 socklen_t namelen, int fflag, int flags, struct cred *cr) 325 { 326 int error = 0; 327 sock_connid_t id; 328 329 ASSERT(MUTEX_NOT_HELD(&so->so_lock)); 330 SO_BLOCK_FALLBACK(so, SOP_CONNECT(so, name, namelen, fflag, flags, cr)); 331 332 /* 333 * If there is a pending error, return error 334 * This can happen if a non blocking operation caused an error. 335 */ 336 337 if (so->so_error != 0) { 338 mutex_enter(&so->so_lock); 339 error = sogeterr(so, B_TRUE); 340 mutex_exit(&so->so_lock); 341 if (error != 0) 342 goto done; 343 } 344 345 error = (*so->so_downcalls->sd_connect)(so->so_proto_handle, 346 name, namelen, &id, cr); 347 348 if (error == EINPROGRESS) 349 error = so_wait_connected(so, fflag & (FNONBLOCK|FNDELAY), id); 350 351 done: 352 SO_UNBLOCK_FALLBACK(so); 353 return (error); 354 } 355 356 /*ARGSUSED*/ 357 int 358 so_accept(struct sonode *so, int fflag, struct cred *cr, struct sonode **nsop) 359 { 360 int error = 0; 361 struct sonode *nso; 362 363 *nsop = NULL; 364 365 SO_BLOCK_FALLBACK(so, SOP_ACCEPT(so, fflag, cr, nsop)); 366 if ((so->so_state & SS_ACCEPTCONN) == 0) { 367 SO_UNBLOCK_FALLBACK(so); 368 return ((so->so_type == SOCK_DGRAM || so->so_type == SOCK_RAW) ? 369 EOPNOTSUPP : EINVAL); 370 } 371 372 if ((error = so_acceptq_dequeue(so, (fflag & (FNONBLOCK|FNDELAY)), 373 &nso)) == 0) { 374 ASSERT(nso != NULL); 375 376 /* finish the accept */ 377 error = (*so->so_downcalls->sd_accept)(so->so_proto_handle, 378 nso->so_proto_handle, (sock_upper_handle_t)nso, cr); 379 if (error != 0) { 380 (void) socket_close(nso, 0, cr); 381 socket_destroy(nso); 382 } else { 383 *nsop = nso; 384 } 385 } 386 387 SO_UNBLOCK_FALLBACK(so); 388 return (error); 389 } 390 391 int 392 so_sendmsg(struct sonode *so, struct nmsghdr *msg, struct uio *uiop, 393 struct cred *cr) 394 { 395 int error, flags; 396 boolean_t dontblock; 397 ssize_t orig_resid; 398 mblk_t *mp; 399 400 SO_BLOCK_FALLBACK(so, SOP_SENDMSG(so, msg, uiop, cr)); 401 402 flags = msg->msg_flags; 403 error = 0; 404 dontblock = (flags & MSG_DONTWAIT) || 405 (uiop->uio_fmode & (FNONBLOCK|FNDELAY)); 406 407 if (!(flags & MSG_XPG4_2) && msg->msg_controllen != 0) { 408 /* 409 * Old way of passing fd's is not supported 410 */ 411 SO_UNBLOCK_FALLBACK(so); 412 return (EOPNOTSUPP); 413 } 414 415 if ((so->so_mode & SM_ATOMIC) && 416 uiop->uio_resid > so->so_proto_props.sopp_maxpsz && 417 so->so_proto_props.sopp_maxpsz != -1) { 418 SO_UNBLOCK_FALLBACK(so); 419 return (EMSGSIZE); 420 } 421 422 /* 423 * For atomic sends we will only do one iteration. 424 */ 425 do { 426 if (so->so_state & SS_CANTSENDMORE) { 427 error = EPIPE; 428 break; 429 } 430 431 if (so->so_error != 0) { 432 mutex_enter(&so->so_lock); 433 error = sogeterr(so, B_TRUE); 434 mutex_exit(&so->so_lock); 435 if (error != 0) 436 break; 437 } 438 439 /* 440 * Send down OOB messages even if the send path is being 441 * flow controlled (assuming the protocol supports OOB data). 442 */ 443 if (flags & MSG_OOB) { 444 if ((so->so_mode & SM_EXDATA) == 0) { 445 error = EOPNOTSUPP; 446 break; 447 } 448 } else if (so->so_snd_qfull) { 449 /* 450 * Need to wait until the protocol is ready to receive 451 * more data for transmission. 452 */ 453 if ((error = so_snd_wait_qnotfull(so, dontblock)) != 0) 454 break; 455 } 456 457 /* 458 * Time to send data to the protocol. We either copy the 459 * data into mblks or pass the uio directly to the protocol. 460 * We decide what to do based on the available down calls. 461 */ 462 if (so->so_downcalls->sd_send_uio != NULL) { 463 error = (*so->so_downcalls->sd_send_uio) 464 (so->so_proto_handle, uiop, msg, cr); 465 if (error != 0) 466 break; 467 } else { 468 /* save the resid in case of failure */ 469 orig_resid = uiop->uio_resid; 470 471 if ((mp = socopyinuio(uiop, 472 so->so_proto_props.sopp_maxpsz, 473 so->so_proto_props.sopp_wroff, 474 so->so_proto_props.sopp_maxblk, 475 so->so_proto_props.sopp_tail, &error)) == NULL) { 476 break; 477 } 478 ASSERT(uiop->uio_resid >= 0); 479 480 error = (*so->so_downcalls->sd_send) 481 (so->so_proto_handle, mp, msg, cr); 482 if (error != 0) { 483 /* 484 * The send failed. We do not have to free the 485 * mblks, because that is the protocol's 486 * responsibility. However, uio_resid must 487 * remain accurate, so adjust that here. 488 */ 489 uiop->uio_resid = orig_resid; 490 break; 491 } 492 } 493 } while (uiop->uio_resid > 0); 494 495 SO_UNBLOCK_FALLBACK(so); 496 497 return (error); 498 } 499 500 int 501 so_sendmblk(struct sonode *so, struct nmsghdr *msg, int fflag, 502 struct cred *cr, mblk_t **mpp) 503 { 504 int error; 505 boolean_t dontblock; 506 size_t size; 507 mblk_t *mp = *mpp; 508 509 SO_BLOCK_FALLBACK(so, SOP_SENDMBLK(so, msg, fflag, cr, mpp)); 510 511 error = 0; 512 dontblock = (msg->msg_flags & MSG_DONTWAIT) || 513 (fflag & (FNONBLOCK|FNDELAY)); 514 size = msgdsize(mp); 515 516 if ((so->so_mode & SM_SENDFILESUPP) == 0 || 517 so->so_downcalls->sd_send == NULL) { 518 SO_UNBLOCK_FALLBACK(so); 519 return (EOPNOTSUPP); 520 } 521 522 if ((so->so_mode & SM_ATOMIC) && 523 size > so->so_proto_props.sopp_maxpsz && 524 so->so_proto_props.sopp_maxpsz != -1) { 525 SO_UNBLOCK_FALLBACK(so); 526 return (EMSGSIZE); 527 } 528 529 while (mp != NULL) { 530 mblk_t *nmp, *last_mblk; 531 size_t mlen; 532 533 if (so->so_state & SS_CANTSENDMORE) { 534 error = EPIPE; 535 break; 536 } 537 if (so->so_error != 0) { 538 mutex_enter(&so->so_lock); 539 error = sogeterr(so, B_TRUE); 540 mutex_exit(&so->so_lock); 541 if (error != 0) 542 break; 543 } 544 if (so->so_snd_qfull) { 545 /* 546 * Need to wait until the protocol is ready to receive 547 * more data for transmission. 548 */ 549 if ((error = so_snd_wait_qnotfull(so, dontblock)) != 0) 550 break; 551 } 552 553 /* 554 * We only allow so_maxpsz of data to be sent down to 555 * the protocol at time. 556 */ 557 mlen = MBLKL(mp); 558 nmp = mp->b_cont; 559 last_mblk = mp; 560 while (nmp != NULL) { 561 mlen += MBLKL(nmp); 562 if (mlen > so->so_proto_props.sopp_maxpsz) { 563 last_mblk->b_cont = NULL; 564 break; 565 } 566 last_mblk = nmp; 567 nmp = nmp->b_cont; 568 } 569 570 error = (*so->so_downcalls->sd_send) 571 (so->so_proto_handle, mp, msg, cr); 572 if (error != 0) { 573 /* 574 * The send failed. The protocol will free the mblks 575 * that were sent down. Let the caller deal with the 576 * rest. 577 */ 578 *mpp = nmp; 579 break; 580 } 581 582 *mpp = mp = nmp; 583 } 584 585 SO_UNBLOCK_FALLBACK(so); 586 587 return (error); 588 } 589 590 int 591 so_shutdown(struct sonode *so, int how, struct cred *cr) 592 { 593 int error; 594 595 SO_BLOCK_FALLBACK(so, SOP_SHUTDOWN(so, how, cr)); 596 597 /* 598 * SunOS 4.X has no check for datagram sockets. 599 * 5.X checks that it is connected (ENOTCONN) 600 * X/Open requires that we check the connected state. 601 */ 602 if (!(so->so_state & SS_ISCONNECTED)) { 603 if (!xnet_skip_checks) { 604 error = ENOTCONN; 605 if (xnet_check_print) { 606 printf("sockfs: X/Open shutdown check " 607 "caused ENOTCONN\n"); 608 } 609 } 610 goto done; 611 } 612 613 error = ((*so->so_downcalls->sd_shutdown)(so->so_proto_handle, 614 how, cr)); 615 616 /* 617 * Protocol agreed to shutdown. We need to flush the 618 * receive buffer if the receive side is being shutdown. 619 */ 620 if (error == 0 && how != SHUT_WR) { 621 mutex_enter(&so->so_lock); 622 /* wait for active reader to finish */ 623 (void) so_lock_read(so, 0); 624 625 so_rcv_flush(so); 626 627 so_unlock_read(so); 628 mutex_exit(&so->so_lock); 629 } 630 631 done: 632 SO_UNBLOCK_FALLBACK(so); 633 return (error); 634 } 635 636 int 637 so_getsockname(struct sonode *so, struct sockaddr *addr, 638 socklen_t *addrlen, struct cred *cr) 639 { 640 int error; 641 642 SO_BLOCK_FALLBACK(so, SOP_GETSOCKNAME(so, addr, addrlen, cr)); 643 644 error = (*so->so_downcalls->sd_getsockname) 645 (so->so_proto_handle, addr, addrlen, cr); 646 647 SO_UNBLOCK_FALLBACK(so); 648 return (error); 649 } 650 651 int 652 so_getpeername(struct sonode *so, struct sockaddr *addr, 653 socklen_t *addrlen, boolean_t accept, struct cred *cr) 654 { 655 int error; 656 657 SO_BLOCK_FALLBACK(so, SOP_GETPEERNAME(so, addr, addrlen, accept, cr)); 658 659 if (accept) { 660 error = (*so->so_downcalls->sd_getpeername) 661 (so->so_proto_handle, addr, addrlen, cr); 662 } else if (!(so->so_state & SS_ISCONNECTED)) { 663 error = ENOTCONN; 664 } else if ((so->so_state & SS_CANTSENDMORE) && !xnet_skip_checks) { 665 /* Added this check for X/Open */ 666 error = EINVAL; 667 if (xnet_check_print) { 668 printf("sockfs: X/Open getpeername check => EINVAL\n"); 669 } 670 } else { 671 error = (*so->so_downcalls->sd_getpeername) 672 (so->so_proto_handle, addr, addrlen, cr); 673 } 674 675 SO_UNBLOCK_FALLBACK(so); 676 return (error); 677 } 678 679 int 680 so_getsockopt(struct sonode *so, int level, int option_name, 681 void *optval, socklen_t *optlenp, int flags, struct cred *cr) 682 { 683 int error = 0; 684 685 ASSERT(MUTEX_NOT_HELD(&so->so_lock)); 686 SO_BLOCK_FALLBACK(so, 687 SOP_GETSOCKOPT(so, level, option_name, optval, optlenp, flags, cr)); 688 689 error = socket_getopt_common(so, level, option_name, optval, optlenp, 690 flags); 691 if (error < 0) { 692 error = (*so->so_downcalls->sd_getsockopt) 693 (so->so_proto_handle, level, option_name, optval, optlenp, 694 cr); 695 if (error == ENOPROTOOPT) { 696 if (level == SOL_SOCKET) { 697 /* 698 * If a protocol does not support a particular 699 * socket option, set can fail (not allowed) 700 * but get can not fail. This is the previous 701 * sockfs bahvior. 702 */ 703 switch (option_name) { 704 case SO_LINGER: 705 if (*optlenp < (t_uscalar_t) 706 sizeof (struct linger)) { 707 error = EINVAL; 708 break; 709 } 710 error = 0; 711 bzero(optval, sizeof (struct linger)); 712 *optlenp = sizeof (struct linger); 713 break; 714 case SO_RCVTIMEO: 715 case SO_SNDTIMEO: 716 if (*optlenp < (t_uscalar_t) 717 sizeof (struct timeval)) { 718 error = EINVAL; 719 break; 720 } 721 error = 0; 722 bzero(optval, sizeof (struct timeval)); 723 *optlenp = sizeof (struct timeval); 724 break; 725 case SO_SND_BUFINFO: 726 if (*optlenp < (t_uscalar_t) 727 sizeof (struct so_snd_bufinfo)) { 728 error = EINVAL; 729 break; 730 } 731 error = 0; 732 bzero(optval, 733 sizeof (struct so_snd_bufinfo)); 734 *optlenp = 735 sizeof (struct so_snd_bufinfo); 736 break; 737 case SO_DEBUG: 738 case SO_REUSEADDR: 739 case SO_KEEPALIVE: 740 case SO_DONTROUTE: 741 case SO_BROADCAST: 742 case SO_USELOOPBACK: 743 case SO_OOBINLINE: 744 case SO_DGRAM_ERRIND: 745 case SO_SNDBUF: 746 case SO_RCVBUF: 747 error = 0; 748 *((int32_t *)optval) = 0; 749 *optlenp = sizeof (int32_t); 750 break; 751 default: 752 break; 753 } 754 } 755 } 756 } 757 758 SO_UNBLOCK_FALLBACK(so); 759 return (error); 760 } 761 762 int 763 so_setsockopt(struct sonode *so, int level, int option_name, 764 const void *optval, socklen_t optlen, struct cred *cr) 765 { 766 int error = 0; 767 768 SO_BLOCK_FALLBACK(so, 769 SOP_SETSOCKOPT(so, level, option_name, optval, optlen, cr)); 770 771 /* X/Open requires this check */ 772 if (so->so_state & SS_CANTSENDMORE && !xnet_skip_checks) { 773 SO_UNBLOCK_FALLBACK(so); 774 if (xnet_check_print) 775 printf("sockfs: X/Open setsockopt check => EINVAL\n"); 776 return (EINVAL); 777 } 778 779 if (level == SOL_SOCKET) { 780 switch (option_name) { 781 case SO_RCVTIMEO: 782 case SO_SNDTIMEO: { 783 struct timeval *tl = (struct timeval *)optval; 784 clock_t t_usec; 785 786 if (optlen != (t_uscalar_t)sizeof (struct timeval)) { 787 SO_UNBLOCK_FALLBACK(so); 788 return (EINVAL); 789 } 790 t_usec = tl->tv_sec * 1000 * 1000 + tl->tv_usec; 791 mutex_enter(&so->so_lock); 792 if (option_name == SO_RCVTIMEO) 793 so->so_rcvtimeo = drv_usectohz(t_usec); 794 else 795 so->so_sndtimeo = drv_usectohz(t_usec); 796 mutex_exit(&so->so_lock); 797 SO_UNBLOCK_FALLBACK(so); 798 return (0); 799 } 800 case SO_RCVBUF: 801 /* 802 * XXX XPG 4.2 applications retrieve SO_RCVBUF from 803 * sockfs since the transport might adjust the value 804 * and not return exactly what was set by the 805 * application. 806 */ 807 so->so_xpg_rcvbuf = *(int32_t *)optval; 808 break; 809 } 810 } 811 error = (*so->so_downcalls->sd_setsockopt) 812 (so->so_proto_handle, level, option_name, optval, optlen, cr); 813 814 SO_UNBLOCK_FALLBACK(so); 815 return (error); 816 } 817 818 int 819 so_ioctl(struct sonode *so, int cmd, intptr_t arg, int mode, 820 struct cred *cr, int32_t *rvalp) 821 { 822 int error = 0; 823 824 SO_BLOCK_FALLBACK(so, SOP_IOCTL(so, cmd, arg, mode, cr, rvalp)); 825 826 /* 827 * If there is a pending error, return error 828 * This can happen if a non blocking operation caused an error. 829 */ 830 if (so->so_error != 0) { 831 mutex_enter(&so->so_lock); 832 error = sogeterr(so, B_TRUE); 833 mutex_exit(&so->so_lock); 834 if (error != 0) 835 goto done; 836 } 837 838 /* 839 * calling strioc can result in the socket falling back to TPI, 840 * if that is supported. 841 */ 842 if ((error = socket_ioctl_common(so, cmd, arg, mode, cr, rvalp)) < 0 && 843 (error = socket_strioc_common(so, cmd, arg, mode, cr, rvalp)) < 0) { 844 error = (*so->so_downcalls->sd_ioctl)(so->so_proto_handle, 845 cmd, arg, mode, rvalp, cr); 846 } 847 848 done: 849 SO_UNBLOCK_FALLBACK(so); 850 851 return (error); 852 } 853 854 int 855 so_poll(struct sonode *so, short events, int anyyet, short *reventsp, 856 struct pollhead **phpp) 857 { 858 int state = so->so_state; 859 *reventsp = 0; 860 861 if (so->so_error != 0 && 862 ((POLLIN|POLLRDNORM|POLLOUT) & events) != 0) { 863 *reventsp = (POLLIN|POLLRDNORM|POLLOUT) & events; 864 return (0); 865 } 866 867 /* 868 * As long as there is buffer to send data, and the socket is 869 * in a state where it can send data (i.e., connected for 870 * connection oriented protocols), then turn on POLLOUT events 871 */ 872 if (!so->so_snd_qfull && ((so->so_mode & SM_CONNREQUIRED) == 0 || 873 state & SS_ISCONNECTED)) { 874 *reventsp |= POLLOUT & events; 875 } 876 877 /* 878 * Turn on POLLIN whenever there is data on the receive queue, 879 * or the socket is in a state where no more data will be received. 880 * Also, if the socket is accepting connections, flip the bit if 881 * there is something on the queue. 882 * 883 * We do an initial check for events without holding locks. However, 884 * if there are no event available, then we redo the check for POLLIN 885 * events under the lock. 886 */ 887 888 /* Pending connections */ 889 if (so->so_acceptq_len > 0) 890 *reventsp |= (POLLIN|POLLRDNORM) & events; 891 892 /* Data */ 893 /* so_downcalls is null for sctp */ 894 if (so->so_downcalls != NULL && so->so_downcalls->sd_poll != NULL) { 895 *reventsp |= (*so->so_downcalls->sd_poll) 896 (so->so_proto_handle, events & SO_PROTO_POLLEV, anyyet, 897 CRED()) & events; 898 ASSERT((*reventsp & ~events) == 0); 899 /* do not recheck events */ 900 events &= ~SO_PROTO_POLLEV; 901 } else { 902 if (SO_HAVE_DATA(so)) 903 *reventsp |= (POLLIN|POLLRDNORM) & events; 904 905 /* Urgent data */ 906 if ((state & SS_OOBPEND) != 0) 907 *reventsp |= (POLLRDBAND) & events; 908 } 909 910 if (!*reventsp && !anyyet) { 911 /* Check for read events again, but this time under lock */ 912 if (events & (POLLIN|POLLRDNORM)) { 913 mutex_enter(&so->so_lock); 914 if (SO_HAVE_DATA(so) || so->so_acceptq_len > 0) { 915 mutex_exit(&so->so_lock); 916 *reventsp |= (POLLIN|POLLRDNORM) & events; 917 return (0); 918 } else { 919 so->so_pollev |= SO_POLLEV_IN; 920 mutex_exit(&so->so_lock); 921 } 922 } 923 *phpp = &so->so_poll_list; 924 } 925 return (0); 926 } 927 928 /* 929 * Generic Upcalls 930 */ 931 void 932 so_connected(sock_upper_handle_t sock_handle, sock_connid_t id, 933 cred_t *peer_cred, pid_t peer_cpid) 934 { 935 struct sonode *so = (struct sonode *)sock_handle; 936 937 mutex_enter(&so->so_lock); 938 ASSERT(so->so_proto_handle != NULL); 939 940 if (peer_cred != NULL) { 941 if (so->so_peercred != NULL) 942 crfree(so->so_peercred); 943 crhold(peer_cred); 944 so->so_peercred = peer_cred; 945 so->so_cpid = peer_cpid; 946 } 947 948 so->so_proto_connid = id; 949 soisconnected(so); 950 /* 951 * Wake ones who're waiting for conn to become established. 952 */ 953 so_notify_connected(so); 954 } 955 956 int 957 so_disconnected(sock_upper_handle_t sock_handle, sock_connid_t id, int error) 958 { 959 struct sonode *so = (struct sonode *)sock_handle; 960 961 mutex_enter(&so->so_lock); 962 963 so->so_proto_connid = id; 964 soisdisconnected(so, error); 965 so_notify_disconnected(so, error); 966 967 return (0); 968 } 969 970 void 971 so_opctl(sock_upper_handle_t sock_handle, sock_opctl_action_t action, 972 uintptr_t arg) 973 { 974 struct sonode *so = (struct sonode *)sock_handle; 975 976 switch (action) { 977 case SOCK_OPCTL_SHUT_SEND: 978 mutex_enter(&so->so_lock); 979 socantsendmore(so); 980 so_notify_disconnecting(so); 981 break; 982 case SOCK_OPCTL_SHUT_RECV: { 983 mutex_enter(&so->so_lock); 984 socantrcvmore(so); 985 so_notify_eof(so); 986 break; 987 } 988 case SOCK_OPCTL_ENAB_ACCEPT: 989 mutex_enter(&so->so_lock); 990 so->so_state |= SS_ACCEPTCONN; 991 so->so_backlog = (unsigned int)arg; 992 mutex_exit(&so->so_lock); 993 break; 994 default: 995 ASSERT(0); 996 break; 997 } 998 } 999 1000 void 1001 so_txq_full(sock_upper_handle_t sock_handle, boolean_t qfull) 1002 { 1003 struct sonode *so = (struct sonode *)sock_handle; 1004 1005 if (qfull) { 1006 so_snd_qfull(so); 1007 } else { 1008 so_snd_qnotfull(so); 1009 mutex_enter(&so->so_lock); 1010 so_notify_writable(so); 1011 } 1012 } 1013 1014 sock_upper_handle_t 1015 so_newconn(sock_upper_handle_t parenthandle, 1016 sock_lower_handle_t proto_handle, sock_downcalls_t *sock_downcalls, 1017 struct cred *peer_cred, pid_t peer_cpid, sock_upcalls_t **sock_upcallsp) 1018 { 1019 struct sonode *so = (struct sonode *)parenthandle; 1020 struct sonode *nso; 1021 int error; 1022 1023 ASSERT(proto_handle != NULL); 1024 1025 if ((so->so_state & SS_ACCEPTCONN) == 0 || 1026 so->so_acceptq_len >= so->so_backlog) 1027 return (NULL); 1028 1029 nso = socket_newconn(so, proto_handle, sock_downcalls, SOCKET_NOSLEEP, 1030 &error); 1031 if (nso == NULL) 1032 return (NULL); 1033 1034 if (peer_cred != NULL) { 1035 crhold(peer_cred); 1036 nso->so_peercred = peer_cred; 1037 nso->so_cpid = peer_cpid; 1038 } 1039 1040 (void) so_acceptq_enqueue(so, nso); 1041 mutex_enter(&so->so_lock); 1042 so_notify_newconn(so); 1043 1044 *sock_upcallsp = &so_upcalls; 1045 1046 return ((sock_upper_handle_t)nso); 1047 } 1048 1049 void 1050 so_set_prop(sock_upper_handle_t sock_handle, struct sock_proto_props *soppp) 1051 { 1052 struct sonode *so; 1053 1054 so = (struct sonode *)sock_handle; 1055 1056 mutex_enter(&so->so_lock); 1057 1058 if (soppp->sopp_flags & SOCKOPT_MAXBLK) 1059 so->so_proto_props.sopp_maxblk = soppp->sopp_maxblk; 1060 if (soppp->sopp_flags & SOCKOPT_WROFF) 1061 so->so_proto_props.sopp_wroff = soppp->sopp_wroff; 1062 if (soppp->sopp_flags & SOCKOPT_TAIL) 1063 so->so_proto_props.sopp_tail = soppp->sopp_tail; 1064 if (soppp->sopp_flags & SOCKOPT_RCVHIWAT) 1065 so->so_proto_props.sopp_rxhiwat = soppp->sopp_rxhiwat; 1066 if (soppp->sopp_flags & SOCKOPT_RCVLOWAT) 1067 so->so_proto_props.sopp_rxlowat = soppp->sopp_rxlowat; 1068 if (soppp->sopp_flags & SOCKOPT_MAXPSZ) 1069 so->so_proto_props.sopp_maxpsz = soppp->sopp_maxpsz; 1070 if (soppp->sopp_flags & SOCKOPT_MINPSZ) 1071 so->so_proto_props.sopp_minpsz = soppp->sopp_minpsz; 1072 if (soppp->sopp_flags & SOCKOPT_ZCOPY) { 1073 if (soppp->sopp_zcopyflag & ZCVMSAFE) { 1074 so->so_proto_props.sopp_zcopyflag |= STZCVMSAFE; 1075 so->so_proto_props.sopp_zcopyflag &= ~STZCVMUNSAFE; 1076 } else if (soppp->sopp_zcopyflag & ZCVMUNSAFE) { 1077 so->so_proto_props.sopp_zcopyflag |= STZCVMUNSAFE; 1078 so->so_proto_props.sopp_zcopyflag &= ~STZCVMSAFE; 1079 } 1080 1081 if (soppp->sopp_zcopyflag & COPYCACHED) { 1082 so->so_proto_props.sopp_zcopyflag |= STRCOPYCACHED; 1083 } 1084 } 1085 if (soppp->sopp_flags & SOCKOPT_OOBINLINE) 1086 so->so_proto_props.sopp_oobinline = soppp->sopp_oobinline; 1087 if (soppp->sopp_flags & SOCKOPT_RCVTIMER) 1088 so->so_proto_props.sopp_rcvtimer = soppp->sopp_rcvtimer; 1089 if (soppp->sopp_flags & SOCKOPT_RCVTHRESH) 1090 so->so_proto_props.sopp_rcvthresh = soppp->sopp_rcvthresh; 1091 if (soppp->sopp_flags & SOCKOPT_MAXADDRLEN) 1092 so->so_proto_props.sopp_maxaddrlen = soppp->sopp_maxaddrlen; 1093 1094 mutex_exit(&so->so_lock); 1095 1096 #ifdef DEBUG 1097 soppp->sopp_flags &= ~(SOCKOPT_MAXBLK | SOCKOPT_WROFF | SOCKOPT_TAIL | 1098 SOCKOPT_RCVHIWAT | SOCKOPT_RCVLOWAT | SOCKOPT_MAXPSZ | 1099 SOCKOPT_ZCOPY | SOCKOPT_OOBINLINE | SOCKOPT_RCVTIMER | 1100 SOCKOPT_RCVTHRESH | SOCKOPT_MAXADDRLEN | SOCKOPT_MINPSZ); 1101 ASSERT(soppp->sopp_flags == 0); 1102 #endif 1103 } 1104 1105 /* ARGSUSED */ 1106 ssize_t 1107 so_queue_msg(sock_upper_handle_t sock_handle, mblk_t *mp, 1108 size_t msg_size, int flags, int *errorp, boolean_t *force_pushp) 1109 { 1110 struct sonode *so = (struct sonode *)sock_handle; 1111 boolean_t force_push = B_TRUE; 1112 int space_left; 1113 sodirect_t *sodp = so->so_direct; 1114 1115 ASSERT(errorp != NULL); 1116 *errorp = 0; 1117 if (mp == NULL) { 1118 if (msg_size > 0) { 1119 ASSERT(so->so_downcalls->sd_recv_uio != NULL); 1120 mutex_enter(&so->so_lock); 1121 /* the notify functions will drop the lock */ 1122 if (flags & MSG_OOB) 1123 so_notify_oobdata(so, IS_SO_OOB_INLINE(so)); 1124 else 1125 so_notify_data(so, msg_size); 1126 return (0); 1127 } 1128 /* 1129 * recv space check 1130 */ 1131 mutex_enter(&so->so_lock); 1132 space_left = so->so_rcvbuf - so->so_rcv_queued; 1133 if (space_left <= 0) { 1134 so->so_flowctrld = B_TRUE; 1135 *errorp = ENOSPC; 1136 space_left = -1; 1137 } 1138 goto done_unlock; 1139 } 1140 1141 ASSERT(mp->b_next == NULL); 1142 ASSERT(DB_TYPE(mp) == M_DATA || DB_TYPE(mp) == M_PROTO); 1143 ASSERT(msg_size == msgdsize(mp)); 1144 1145 if (flags & MSG_OOB) { 1146 so_queue_oob(sock_handle, mp, msg_size); 1147 return (0); 1148 } 1149 1150 if (force_pushp != NULL) 1151 force_push = *force_pushp; 1152 1153 if (DB_TYPE(mp) == M_PROTO && !__TPI_PRIM_ISALIGNED(mp->b_rptr)) { 1154 /* The read pointer is not aligned correctly for TPI */ 1155 zcmn_err(getzoneid(), CE_WARN, 1156 "sockfs: Unaligned TPI message received. rptr = %p\n", 1157 (void *)mp->b_rptr); 1158 freemsg(mp); 1159 mutex_enter(sodp->sod_lockp); 1160 SOD_UIOAFINI(sodp); 1161 mutex_exit(sodp->sod_lockp); 1162 1163 return (so->so_rcvbuf - so->so_rcv_queued); 1164 } 1165 1166 mutex_enter(&so->so_lock); 1167 if (so->so_state & (SS_FALLBACK_PENDING | SS_FALLBACK_COMP)) { 1168 SOD_DISABLE(sodp); 1169 mutex_exit(&so->so_lock); 1170 *errorp = EOPNOTSUPP; 1171 return (-1); 1172 } 1173 if (so->so_state & SS_CANTRCVMORE) { 1174 freemsg(mp); 1175 SOD_DISABLE(sodp); 1176 mutex_exit(&so->so_lock); 1177 return (0); 1178 } 1179 1180 /* process the mblk via I/OAT if capable */ 1181 if (sodp != NULL && (sodp->sod_state & SOD_ENABLED)) { 1182 if (DB_TYPE(mp) == M_DATA) { 1183 (void) sod_uioa_mblk_init(sodp, mp, msg_size); 1184 } else { 1185 SOD_UIOAFINI(sodp); 1186 } 1187 } 1188 1189 if (mp->b_next == NULL) { 1190 so_enqueue_msg(so, mp, msg_size); 1191 } else { 1192 do { 1193 mblk_t *nmp; 1194 1195 if ((nmp = mp->b_next) != NULL) { 1196 mp->b_next = NULL; 1197 } 1198 so_enqueue_msg(so, mp, msgdsize(mp)); 1199 mp = nmp; 1200 } while (mp != NULL); 1201 } 1202 1203 space_left = so->so_rcvbuf - so->so_rcv_queued; 1204 if (space_left <= 0) { 1205 so->so_flowctrld = B_TRUE; 1206 *errorp = ENOSPC; 1207 space_left = -1; 1208 } 1209 1210 if (force_push || so->so_rcv_queued >= so->so_rcv_thresh || 1211 so->so_rcv_queued >= so->so_rcv_wanted || 1212 (sodp != NULL && so->so_rcv_queued >= sodp->sod_want)) { 1213 SOCKET_TIMER_CANCEL(so); 1214 /* 1215 * so_notify_data will release the lock 1216 */ 1217 so_notify_data(so, so->so_rcv_queued); 1218 1219 if (force_pushp != NULL) 1220 *force_pushp = B_TRUE; 1221 goto done; 1222 } else if (so->so_rcv_timer_tid == 0) { 1223 /* Make sure the recv push timer is running */ 1224 SOCKET_TIMER_START(so); 1225 } 1226 1227 done_unlock: 1228 mutex_exit(&so->so_lock); 1229 done: 1230 return (space_left); 1231 } 1232 1233 /* 1234 * Set the offset of where the oob data is relative to the bytes in 1235 * queued. Also generate SIGURG 1236 */ 1237 void 1238 so_signal_oob(sock_upper_handle_t sock_handle, ssize_t offset) 1239 { 1240 struct sonode *so; 1241 1242 ASSERT(offset >= 0); 1243 so = (struct sonode *)sock_handle; 1244 mutex_enter(&so->so_lock); 1245 SOD_UIOAFINI(so->so_direct); 1246 1247 /* 1248 * New urgent data on the way so forget about any old 1249 * urgent data. 1250 */ 1251 so->so_state &= ~(SS_HAVEOOBDATA|SS_HADOOBDATA); 1252 1253 /* 1254 * Record that urgent data is pending. 1255 */ 1256 so->so_state |= SS_OOBPEND; 1257 1258 if (so->so_oobmsg != NULL) { 1259 dprintso(so, 1, ("sock: discarding old oob\n")); 1260 freemsg(so->so_oobmsg); 1261 so->so_oobmsg = NULL; 1262 } 1263 1264 /* 1265 * set the offset where the urgent byte is 1266 */ 1267 so->so_oobmark = so->so_rcv_queued + offset; 1268 if (so->so_oobmark == 0) 1269 so->so_state |= SS_RCVATMARK; 1270 else 1271 so->so_state &= ~SS_RCVATMARK; 1272 1273 so_notify_oobsig(so); 1274 } 1275 1276 /* 1277 * Queue the OOB byte 1278 */ 1279 static void 1280 so_queue_oob(sock_upper_handle_t sock_handle, mblk_t *mp, size_t len) 1281 { 1282 struct sonode *so; 1283 1284 so = (struct sonode *)sock_handle; 1285 mutex_enter(&so->so_lock); 1286 SOD_UIOAFINI(so->so_direct); 1287 1288 ASSERT(mp != NULL); 1289 if (!IS_SO_OOB_INLINE(so)) { 1290 so->so_oobmsg = mp; 1291 so->so_state |= SS_HAVEOOBDATA; 1292 } else { 1293 so_enqueue_msg(so, mp, len); 1294 } 1295 1296 so_notify_oobdata(so, IS_SO_OOB_INLINE(so)); 1297 } 1298 1299 int 1300 so_close(struct sonode *so, int flag, struct cred *cr) 1301 { 1302 int error; 1303 1304 error = (*so->so_downcalls->sd_close)(so->so_proto_handle, flag, cr); 1305 1306 /* 1307 * At this point there will be no more upcalls from the protocol 1308 */ 1309 mutex_enter(&so->so_lock); 1310 1311 ASSERT(so_verify_oobstate(so)); 1312 1313 so_rcv_flush(so); 1314 mutex_exit(&so->so_lock); 1315 1316 return (error); 1317 } 1318 1319 void 1320 so_zcopy_notify(sock_upper_handle_t sock_handle) 1321 { 1322 struct sonode *so = (struct sonode *)sock_handle; 1323 1324 mutex_enter(&so->so_lock); 1325 so->so_copyflag |= STZCNOTIFY; 1326 cv_broadcast(&so->so_copy_cv); 1327 mutex_exit(&so->so_lock); 1328 } 1329 1330 void 1331 so_set_error(sock_upper_handle_t sock_handle, int error) 1332 { 1333 struct sonode *so = (struct sonode *)sock_handle; 1334 1335 mutex_enter(&so->so_lock); 1336 1337 soseterror(so, error); 1338 1339 so_notify_error(so); 1340 } 1341 1342 /* 1343 * so_recvmsg - read data from the socket 1344 * 1345 * There are two ways of obtaining data; either we ask the protocol to 1346 * copy directly into the supplied buffer, or we copy data from the 1347 * sonode's receive queue. The decision which one to use depends on 1348 * whether the protocol has a sd_recv_uio down call. 1349 */ 1350 int 1351 so_recvmsg(struct sonode *so, struct nmsghdr *msg, struct uio *uiop, 1352 struct cred *cr) 1353 { 1354 rval_t rval; 1355 int flags = 0; 1356 t_uscalar_t controllen, namelen; 1357 int error = 0; 1358 int ret; 1359 mblk_t *mctlp = NULL; 1360 union T_primitives *tpr; 1361 void *control; 1362 ssize_t saved_resid; 1363 struct uio *suiop; 1364 1365 SO_BLOCK_FALLBACK(so, SOP_RECVMSG(so, msg, uiop, cr)); 1366 1367 if ((so->so_state & (SS_ISCONNECTED|SS_CANTRCVMORE)) == 0 && 1368 (so->so_mode & SM_CONNREQUIRED)) { 1369 SO_UNBLOCK_FALLBACK(so); 1370 return (ENOTCONN); 1371 } 1372 1373 if (msg->msg_flags & MSG_PEEK) 1374 msg->msg_flags &= ~MSG_WAITALL; 1375 1376 if (so->so_mode & SM_ATOMIC) 1377 msg->msg_flags |= MSG_TRUNC; 1378 1379 if (msg->msg_flags & MSG_OOB) { 1380 if ((so->so_mode & SM_EXDATA) == 0) { 1381 error = EOPNOTSUPP; 1382 } else if (so->so_downcalls->sd_recv_uio != NULL) { 1383 error = (*so->so_downcalls->sd_recv_uio) 1384 (so->so_proto_handle, uiop, msg, cr); 1385 } else { 1386 error = sorecvoob(so, msg, uiop, msg->msg_flags, 1387 IS_SO_OOB_INLINE(so)); 1388 } 1389 SO_UNBLOCK_FALLBACK(so); 1390 return (error); 1391 } 1392 1393 /* 1394 * If the protocol has the recv down call, then pass the request 1395 * down. 1396 */ 1397 if (so->so_downcalls->sd_recv_uio != NULL) { 1398 error = (*so->so_downcalls->sd_recv_uio) 1399 (so->so_proto_handle, uiop, msg, cr); 1400 SO_UNBLOCK_FALLBACK(so); 1401 return (error); 1402 } 1403 1404 /* 1405 * Reading data from the socket buffer 1406 */ 1407 flags = msg->msg_flags; 1408 msg->msg_flags = 0; 1409 1410 /* 1411 * Set msg_controllen and msg_namelen to zero here to make it 1412 * simpler in the cases that no control or name is returned. 1413 */ 1414 controllen = msg->msg_controllen; 1415 namelen = msg->msg_namelen; 1416 msg->msg_controllen = 0; 1417 msg->msg_namelen = 0; 1418 1419 mutex_enter(&so->so_lock); 1420 /* Set SOREADLOCKED */ 1421 error = so_lock_read_intr(so, 1422 uiop->uio_fmode | ((flags & MSG_DONTWAIT) ? FNONBLOCK : 0)); 1423 mutex_exit(&so->so_lock); 1424 if (error) { 1425 SO_UNBLOCK_FALLBACK(so); 1426 return (error); 1427 } 1428 1429 suiop = sod_rcv_init(so, flags, &uiop); 1430 retry: 1431 saved_resid = uiop->uio_resid; 1432 error = so_dequeue_msg(so, &mctlp, uiop, &rval, flags); 1433 if (error != 0) { 1434 goto out; 1435 } 1436 /* 1437 * For datagrams the MOREDATA flag is used to set MSG_TRUNC. 1438 * For non-datagrams MOREDATA is used to set MSG_EOR. 1439 */ 1440 ASSERT(!(rval.r_val1 & MORECTL)); 1441 if ((rval.r_val1 & MOREDATA) && (so->so_mode & SM_ATOMIC)) 1442 msg->msg_flags |= MSG_TRUNC; 1443 if (mctlp == NULL) { 1444 dprintso(so, 1, ("so_recvmsg: got M_DATA\n")); 1445 1446 mutex_enter(&so->so_lock); 1447 /* Set MSG_EOR based on MOREDATA */ 1448 if (!(rval.r_val1 & MOREDATA)) { 1449 if (so->so_state & SS_SAVEDEOR) { 1450 msg->msg_flags |= MSG_EOR; 1451 so->so_state &= ~SS_SAVEDEOR; 1452 } 1453 } 1454 /* 1455 * If some data was received (i.e. not EOF) and the 1456 * read/recv* has not been satisfied wait for some more. 1457 */ 1458 if ((flags & MSG_WAITALL) && !(msg->msg_flags & MSG_EOR) && 1459 uiop->uio_resid != saved_resid && uiop->uio_resid > 0) { 1460 mutex_exit(&so->so_lock); 1461 goto retry; 1462 } 1463 1464 goto out_locked; 1465 } 1466 /* strsock_proto has already verified length and alignment */ 1467 tpr = (union T_primitives *)mctlp->b_rptr; 1468 dprintso(so, 1, ("so_recvmsg: type %d\n", tpr->type)); 1469 switch (tpr->type) { 1470 case T_DATA_IND: { 1471 /* 1472 * Set msg_flags to MSG_EOR based on 1473 * MORE_flag and MOREDATA. 1474 */ 1475 mutex_enter(&so->so_lock); 1476 so->so_state &= ~SS_SAVEDEOR; 1477 if (!(tpr->data_ind.MORE_flag & 1)) { 1478 if (!(rval.r_val1 & MOREDATA)) 1479 msg->msg_flags |= MSG_EOR; 1480 else 1481 so->so_state |= SS_SAVEDEOR; 1482 } 1483 freemsg(mctlp); 1484 /* 1485 * If some data was received (i.e. not EOF) and the 1486 * read/recv* has not been satisfied wait for some more. 1487 */ 1488 if ((flags & MSG_WAITALL) && !(msg->msg_flags & MSG_EOR) && 1489 uiop->uio_resid != saved_resid && uiop->uio_resid > 0) { 1490 mutex_exit(&so->so_lock); 1491 goto retry; 1492 } 1493 goto out_locked; 1494 } 1495 case T_UNITDATA_IND: { 1496 void *addr; 1497 t_uscalar_t addrlen; 1498 void *abuf; 1499 t_uscalar_t optlen; 1500 void *opt; 1501 1502 if (namelen != 0) { 1503 /* Caller wants source address */ 1504 addrlen = tpr->unitdata_ind.SRC_length; 1505 addr = sogetoff(mctlp, tpr->unitdata_ind.SRC_offset, 1506 addrlen, 1); 1507 if (addr == NULL) { 1508 freemsg(mctlp); 1509 error = EPROTO; 1510 eprintsoline(so, error); 1511 goto out; 1512 } 1513 ASSERT(so->so_family != AF_UNIX); 1514 } 1515 optlen = tpr->unitdata_ind.OPT_length; 1516 if (optlen != 0) { 1517 t_uscalar_t ncontrollen; 1518 1519 /* 1520 * Extract any source address option. 1521 * Determine how large cmsg buffer is needed. 1522 */ 1523 opt = sogetoff(mctlp, tpr->unitdata_ind.OPT_offset, 1524 optlen, __TPI_ALIGN_SIZE); 1525 1526 if (opt == NULL) { 1527 freemsg(mctlp); 1528 error = EPROTO; 1529 eprintsoline(so, error); 1530 goto out; 1531 } 1532 if (so->so_family == AF_UNIX) 1533 so_getopt_srcaddr(opt, optlen, &addr, &addrlen); 1534 ncontrollen = so_cmsglen(mctlp, opt, optlen, 1535 !(flags & MSG_XPG4_2)); 1536 if (controllen != 0) 1537 controllen = ncontrollen; 1538 else if (ncontrollen != 0) 1539 msg->msg_flags |= MSG_CTRUNC; 1540 } else { 1541 controllen = 0; 1542 } 1543 1544 if (namelen != 0) { 1545 /* 1546 * Return address to caller. 1547 * Caller handles truncation if length 1548 * exceeds msg_namelen. 1549 * NOTE: AF_UNIX NUL termination is ensured by 1550 * the sender's copyin_name(). 1551 */ 1552 abuf = kmem_alloc(addrlen, KM_SLEEP); 1553 1554 bcopy(addr, abuf, addrlen); 1555 msg->msg_name = abuf; 1556 msg->msg_namelen = addrlen; 1557 } 1558 1559 if (controllen != 0) { 1560 /* 1561 * Return control msg to caller. 1562 * Caller handles truncation if length 1563 * exceeds msg_controllen. 1564 */ 1565 control = kmem_zalloc(controllen, KM_SLEEP); 1566 1567 error = so_opt2cmsg(mctlp, opt, optlen, 1568 !(flags & MSG_XPG4_2), control, controllen); 1569 if (error) { 1570 freemsg(mctlp); 1571 if (msg->msg_namelen != 0) 1572 kmem_free(msg->msg_name, 1573 msg->msg_namelen); 1574 kmem_free(control, controllen); 1575 eprintsoline(so, error); 1576 goto out; 1577 } 1578 msg->msg_control = control; 1579 msg->msg_controllen = controllen; 1580 } 1581 1582 freemsg(mctlp); 1583 goto out; 1584 } 1585 case T_OPTDATA_IND: { 1586 struct T_optdata_req *tdr; 1587 void *opt; 1588 t_uscalar_t optlen; 1589 1590 tdr = (struct T_optdata_req *)mctlp->b_rptr; 1591 optlen = tdr->OPT_length; 1592 if (optlen != 0) { 1593 t_uscalar_t ncontrollen; 1594 /* 1595 * Determine how large cmsg buffer is needed. 1596 */ 1597 opt = sogetoff(mctlp, 1598 tpr->optdata_ind.OPT_offset, optlen, 1599 __TPI_ALIGN_SIZE); 1600 1601 if (opt == NULL) { 1602 freemsg(mctlp); 1603 error = EPROTO; 1604 eprintsoline(so, error); 1605 goto out; 1606 } 1607 1608 ncontrollen = so_cmsglen(mctlp, opt, optlen, 1609 !(flags & MSG_XPG4_2)); 1610 if (controllen != 0) 1611 controllen = ncontrollen; 1612 else if (ncontrollen != 0) 1613 msg->msg_flags |= MSG_CTRUNC; 1614 } else { 1615 controllen = 0; 1616 } 1617 1618 if (controllen != 0) { 1619 /* 1620 * Return control msg to caller. 1621 * Caller handles truncation if length 1622 * exceeds msg_controllen. 1623 */ 1624 control = kmem_zalloc(controllen, KM_SLEEP); 1625 1626 error = so_opt2cmsg(mctlp, opt, optlen, 1627 !(flags & MSG_XPG4_2), control, controllen); 1628 if (error) { 1629 freemsg(mctlp); 1630 kmem_free(control, controllen); 1631 eprintsoline(so, error); 1632 goto out; 1633 } 1634 msg->msg_control = control; 1635 msg->msg_controllen = controllen; 1636 } 1637 1638 /* 1639 * Set msg_flags to MSG_EOR based on 1640 * DATA_flag and MOREDATA. 1641 */ 1642 mutex_enter(&so->so_lock); 1643 so->so_state &= ~SS_SAVEDEOR; 1644 if (!(tpr->data_ind.MORE_flag & 1)) { 1645 if (!(rval.r_val1 & MOREDATA)) 1646 msg->msg_flags |= MSG_EOR; 1647 else 1648 so->so_state |= SS_SAVEDEOR; 1649 } 1650 freemsg(mctlp); 1651 /* 1652 * If some data was received (i.e. not EOF) and the 1653 * read/recv* has not been satisfied wait for some more. 1654 * Not possible to wait if control info was received. 1655 */ 1656 if ((flags & MSG_WAITALL) && !(msg->msg_flags & MSG_EOR) && 1657 controllen == 0 && 1658 uiop->uio_resid != saved_resid && uiop->uio_resid > 0) { 1659 mutex_exit(&so->so_lock); 1660 goto retry; 1661 } 1662 goto out_locked; 1663 } 1664 default: 1665 cmn_err(CE_CONT, "so_recvmsg bad type %x \n", 1666 tpr->type); 1667 freemsg(mctlp); 1668 error = EPROTO; 1669 ASSERT(0); 1670 } 1671 out: 1672 mutex_enter(&so->so_lock); 1673 out_locked: 1674 /* The sod_lockp pointers to the sonode so_lock */ 1675 ret = sod_rcv_done(so, suiop, uiop); 1676 if (ret != 0 && error == 0) 1677 error = ret; 1678 1679 so_unlock_read(so); /* Clear SOREADLOCKED */ 1680 mutex_exit(&so->so_lock); 1681 1682 SO_UNBLOCK_FALLBACK(so); 1683 1684 return (error); 1685 } 1686 1687 sonodeops_t so_sonodeops = { 1688 so_init, /* sop_init */ 1689 so_accept, /* sop_accept */ 1690 so_bind, /* sop_bind */ 1691 so_listen, /* sop_listen */ 1692 so_connect, /* sop_connect */ 1693 so_recvmsg, /* sop_recvmsg */ 1694 so_sendmsg, /* sop_sendmsg */ 1695 so_sendmblk, /* sop_sendmblk */ 1696 so_getpeername, /* sop_getpeername */ 1697 so_getsockname, /* sop_getsockname */ 1698 so_shutdown, /* sop_shutdown */ 1699 so_getsockopt, /* sop_getsockopt */ 1700 so_setsockopt, /* sop_setsockopt */ 1701 so_ioctl, /* sop_ioctl */ 1702 so_poll, /* sop_poll */ 1703 so_close, /* sop_close */ 1704 }; 1705 1706 sock_upcalls_t so_upcalls = { 1707 so_newconn, 1708 so_connected, 1709 so_disconnected, 1710 so_opctl, 1711 so_queue_msg, 1712 so_set_prop, 1713 so_txq_full, 1714 so_signal_oob, 1715 so_zcopy_notify, 1716 so_set_error 1717 }; 1718