1 /*- 2 * SPDX-License-Identifier: BSD-2-Clause 3 * 4 * Copyright (C) 2013-2014 Universita` di Pisa. All rights reserved. 5 * 6 * Redistribution and use in source and binary forms, with or without 7 * modification, are permitted provided that the following conditions 8 * are met: 9 * 1. Redistributions of source code must retain the above copyright 10 * notice, this list of conditions and the following disclaimer. 11 * 2. Redistributions in binary form must reproduce the above copyright 12 * notice, this list of conditions and the following disclaimer in the 13 * documentation and/or other materials provided with the distribution. 14 * 15 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND 16 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 17 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 18 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE 19 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 20 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 21 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 22 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 23 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 24 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 25 * SUCH DAMAGE. 26 */ 27 28 #include "opt_inet.h" 29 #include "opt_inet6.h" 30 31 #include <sys/param.h> 32 #include <sys/module.h> 33 #include <sys/errno.h> 34 #include <sys/eventhandler.h> 35 #include <sys/jail.h> 36 #include <sys/poll.h> /* POLLIN, POLLOUT */ 37 #include <sys/kernel.h> /* types used in module initialization */ 38 #include <sys/conf.h> /* DEV_MODULE_ORDERED */ 39 #include <sys/endian.h> 40 #include <sys/syscallsubr.h> /* kern_ioctl() */ 41 42 #include <sys/rwlock.h> 43 44 #include <vm/vm.h> /* vtophys */ 45 #include <vm/pmap.h> /* vtophys */ 46 #include <vm/vm_param.h> 47 #include <vm/vm_object.h> 48 #include <vm/vm_page.h> 49 #include <vm/vm_pager.h> 50 #include <vm/uma.h> 51 52 53 #include <sys/malloc.h> 54 #include <sys/socket.h> /* sockaddrs */ 55 #include <sys/selinfo.h> 56 #include <sys/kthread.h> /* kthread_add() */ 57 #include <sys/proc.h> /* PROC_LOCK() */ 58 #include <sys/unistd.h> /* RFNOWAIT */ 59 #include <sys/sched.h> /* sched_bind() */ 60 #include <sys/smp.h> /* mp_maxid */ 61 #include <sys/taskqueue.h> /* taskqueue_enqueue(), taskqueue_create(), ... */ 62 #include <net/if.h> 63 #include <net/if_var.h> 64 #include <net/if_types.h> /* IFT_ETHER */ 65 #include <net/ethernet.h> /* ether_ifdetach */ 66 #include <net/if_dl.h> /* LLADDR */ 67 #include <machine/bus.h> /* bus_dmamap_* */ 68 #include <netinet/in.h> /* in6_cksum_pseudo() */ 69 #include <machine/in_cksum.h> /* in_pseudo(), in_cksum_hdr() */ 70 71 #include <net/netmap.h> 72 #include <dev/netmap/netmap_kern.h> 73 #include <net/netmap_virt.h> 74 #include <dev/netmap/netmap_mem2.h> 75 76 77 /* ======================== FREEBSD-SPECIFIC ROUTINES ================== */ 78 79 static void 80 nm_kqueue_notify(void *opaque, int pending) 81 { 82 struct nm_selinfo *si = opaque; 83 84 /* We use a non-zero hint to distinguish this notification call 85 * from the call done in kqueue_scan(), which uses hint=0. 86 */ 87 KNOTE_UNLOCKED(&si->si.si_note, /*hint=*/0x100); 88 } 89 90 int nm_os_selinfo_init(NM_SELINFO_T *si, const char *name) { 91 int err; 92 93 TASK_INIT(&si->ntfytask, 0, nm_kqueue_notify, si); 94 si->ntfytq = taskqueue_create(name, M_NOWAIT, 95 taskqueue_thread_enqueue, &si->ntfytq); 96 if (si->ntfytq == NULL) 97 return -ENOMEM; 98 err = taskqueue_start_threads(&si->ntfytq, 1, PI_NET, "tq %s", name); 99 if (err) { 100 taskqueue_free(si->ntfytq); 101 si->ntfytq = NULL; 102 return err; 103 } 104 105 snprintf(si->mtxname, sizeof(si->mtxname), "nmkl%s", name); 106 mtx_init(&si->m, si->mtxname, NULL, MTX_DEF); 107 knlist_init_mtx(&si->si.si_note, &si->m); 108 si->kqueue_users = 0; 109 110 return (0); 111 } 112 113 void 114 nm_os_selinfo_uninit(NM_SELINFO_T *si) 115 { 116 if (si->ntfytq == NULL) { 117 return; /* si was not initialized */ 118 } 119 taskqueue_drain(si->ntfytq, &si->ntfytask); 120 taskqueue_free(si->ntfytq); 121 si->ntfytq = NULL; 122 seldrain(&si->si); 123 knlist_delete(&si->si.si_note, curthread, /*islocked=*/0); 124 knlist_destroy(&si->si.si_note); 125 /* now we don't need the mutex anymore */ 126 mtx_destroy(&si->m); 127 } 128 129 void * 130 nm_os_malloc(size_t size) 131 { 132 return malloc(size, M_DEVBUF, M_NOWAIT | M_ZERO); 133 } 134 135 void * 136 nm_os_realloc(void *addr, size_t new_size, size_t old_size __unused) 137 { 138 return realloc(addr, new_size, M_DEVBUF, M_NOWAIT | M_ZERO); 139 } 140 141 void 142 nm_os_free(void *addr) 143 { 144 free(addr, M_DEVBUF); 145 } 146 147 void 148 nm_os_ifnet_lock(void) 149 { 150 IFNET_RLOCK(); 151 } 152 153 void 154 nm_os_ifnet_unlock(void) 155 { 156 IFNET_RUNLOCK(); 157 } 158 159 static int netmap_use_count = 0; 160 161 void 162 nm_os_get_module(void) 163 { 164 netmap_use_count++; 165 } 166 167 void 168 nm_os_put_module(void) 169 { 170 netmap_use_count--; 171 } 172 173 static void 174 netmap_ifnet_arrival_handler(void *arg __unused, if_t ifp) 175 { 176 netmap_undo_zombie(ifp); 177 } 178 179 static void 180 netmap_ifnet_departure_handler(void *arg __unused, if_t ifp) 181 { 182 netmap_make_zombie(ifp); 183 } 184 185 static eventhandler_tag nm_ifnet_ah_tag; 186 static eventhandler_tag nm_ifnet_dh_tag; 187 188 int 189 nm_os_ifnet_init(void) 190 { 191 nm_ifnet_ah_tag = 192 EVENTHANDLER_REGISTER(ifnet_arrival_event, 193 netmap_ifnet_arrival_handler, 194 NULL, EVENTHANDLER_PRI_ANY); 195 nm_ifnet_dh_tag = 196 EVENTHANDLER_REGISTER(ifnet_departure_event, 197 netmap_ifnet_departure_handler, 198 NULL, EVENTHANDLER_PRI_ANY); 199 return 0; 200 } 201 202 void 203 nm_os_ifnet_fini(void) 204 { 205 EVENTHANDLER_DEREGISTER(ifnet_arrival_event, 206 nm_ifnet_ah_tag); 207 EVENTHANDLER_DEREGISTER(ifnet_departure_event, 208 nm_ifnet_dh_tag); 209 } 210 211 unsigned 212 nm_os_ifnet_mtu(if_t ifp) 213 { 214 return if_getmtu(ifp); 215 } 216 217 rawsum_t 218 nm_os_csum_raw(uint8_t *data, size_t len, rawsum_t cur_sum) 219 { 220 /* TODO XXX please use the FreeBSD implementation for this. */ 221 uint16_t *words = (uint16_t *)data; 222 int nw = len / 2; 223 int i; 224 225 for (i = 0; i < nw; i++) 226 cur_sum += be16toh(words[i]); 227 228 if (len & 1) 229 cur_sum += (data[len-1] << 8); 230 231 return cur_sum; 232 } 233 234 /* Fold a raw checksum: 'cur_sum' is in host byte order, while the 235 * return value is in network byte order. 236 */ 237 uint16_t 238 nm_os_csum_fold(rawsum_t cur_sum) 239 { 240 /* TODO XXX please use the FreeBSD implementation for this. */ 241 while (cur_sum >> 16) 242 cur_sum = (cur_sum & 0xFFFF) + (cur_sum >> 16); 243 244 return htobe16((~cur_sum) & 0xFFFF); 245 } 246 247 uint16_t nm_os_csum_ipv4(struct nm_iphdr *iph) 248 { 249 #if 0 250 return in_cksum_hdr((void *)iph); 251 #else 252 return nm_os_csum_fold(nm_os_csum_raw((uint8_t*)iph, sizeof(struct nm_iphdr), 0)); 253 #endif 254 } 255 256 void 257 nm_os_csum_tcpudp_ipv4(struct nm_iphdr *iph, void *data, 258 size_t datalen, uint16_t *check) 259 { 260 #ifdef INET 261 uint16_t pseudolen = datalen + iph->protocol; 262 263 /* Compute and insert the pseudo-header checksum. */ 264 *check = in_pseudo(iph->saddr, iph->daddr, 265 htobe16(pseudolen)); 266 /* Compute the checksum on TCP/UDP header + payload 267 * (includes the pseudo-header). 268 */ 269 *check = nm_os_csum_fold(nm_os_csum_raw(data, datalen, 0)); 270 #else 271 static int notsupported = 0; 272 if (!notsupported) { 273 notsupported = 1; 274 nm_prerr("inet4 segmentation not supported"); 275 } 276 #endif 277 } 278 279 void 280 nm_os_csum_tcpudp_ipv6(struct nm_ipv6hdr *ip6h, void *data, 281 size_t datalen, uint16_t *check) 282 { 283 #ifdef INET6 284 *check = in6_cksum_pseudo((void*)ip6h, datalen, ip6h->nexthdr, 0); 285 *check = nm_os_csum_fold(nm_os_csum_raw(data, datalen, 0)); 286 #else 287 static int notsupported = 0; 288 if (!notsupported) { 289 notsupported = 1; 290 nm_prerr("inet6 segmentation not supported"); 291 } 292 #endif 293 } 294 295 /* on FreeBSD we send up one packet at a time */ 296 void * 297 nm_os_send_up(if_t ifp, struct mbuf *m, struct mbuf *prev) 298 { 299 NA(ifp)->if_input(ifp, m); 300 return NULL; 301 } 302 303 int 304 nm_os_mbuf_has_csum_offld(struct mbuf *m) 305 { 306 return m->m_pkthdr.csum_flags & (CSUM_TCP | CSUM_UDP | CSUM_SCTP | 307 CSUM_TCP_IPV6 | CSUM_UDP_IPV6 | 308 CSUM_SCTP_IPV6); 309 } 310 311 int 312 nm_os_mbuf_has_seg_offld(struct mbuf *m) 313 { 314 return m->m_pkthdr.csum_flags & CSUM_TSO; 315 } 316 317 static void 318 freebsd_generic_rx_handler(if_t ifp, struct mbuf *m) 319 { 320 int stolen; 321 322 if (unlikely(!NM_NA_VALID(ifp))) { 323 nm_prlim(1, "Warning: RX packet intercepted, but no" 324 " emulated adapter"); 325 return; 326 } 327 328 do { 329 struct mbuf *n; 330 331 n = m->m_nextpkt; 332 m->m_nextpkt = NULL; 333 stolen = generic_rx_handler(ifp, m); 334 if (!stolen) { 335 NA(ifp)->if_input(ifp, m); 336 } 337 m = n; 338 } while (m != NULL); 339 } 340 341 /* 342 * Intercept the rx routine in the standard device driver. 343 * Second argument is non-zero to intercept, 0 to restore 344 */ 345 int 346 nm_os_catch_rx(struct netmap_generic_adapter *gna, int intercept) 347 { 348 struct netmap_adapter *na = &gna->up.up; 349 if_t ifp = na->ifp; 350 int ret = 0; 351 352 nm_os_ifnet_lock(); 353 if (intercept) { 354 if_setcapenablebit(ifp, IFCAP_NETMAP, 0); 355 if_setinputfn(ifp, freebsd_generic_rx_handler); 356 } else { 357 if_setcapenablebit(ifp, 0, IFCAP_NETMAP); 358 if_setinputfn(ifp, na->if_input); 359 } 360 nm_os_ifnet_unlock(); 361 362 return ret; 363 } 364 365 366 /* 367 * Intercept the packet steering routine in the tx path, 368 * so that we can decide which queue is used for an mbuf. 369 * Second argument is non-zero to intercept, 0 to restore. 370 * On freebsd we just intercept if_transmit. 371 */ 372 int 373 nm_os_catch_tx(struct netmap_generic_adapter *gna, int intercept) 374 { 375 struct netmap_adapter *na = &gna->up.up; 376 if_t ifp = netmap_generic_getifp(gna); 377 378 nm_os_ifnet_lock(); 379 if (intercept) { 380 na->if_transmit = if_gettransmitfn(ifp); 381 if_settransmitfn(ifp, netmap_transmit); 382 } else { 383 if_settransmitfn(ifp, na->if_transmit); 384 } 385 nm_os_ifnet_unlock(); 386 387 return 0; 388 } 389 390 391 /* 392 * Transmit routine used by generic_netmap_txsync(). Returns 0 on success 393 * and non-zero on error (which may be packet drops or other errors). 394 * addr and len identify the netmap buffer, m is the (preallocated) 395 * mbuf to use for transmissions. 396 * 397 * Zero-copy transmission is possible if netmap is attached directly to a 398 * hardware interface: when cleaning we simply wait for the mbuf cluster 399 * refcount to decrement to 1, indicating that the driver has completed 400 * transmission and is done with the buffer. However, this approach can 401 * lead to queue deadlocks when attaching to software interfaces (e.g., 402 * if_bridge) since we cannot rely on member ports to promptly reclaim 403 * transmitted mbufs. Since there is no easy way to distinguish these 404 * cases, we currently always copy the buffer. 405 * 406 * On multiqueue cards, we can force the queue using 407 * if (M_HASHTYPE_GET(m) != M_HASHTYPE_NONE) 408 * i = m->m_pkthdr.flowid % adapter->num_queues; 409 * else 410 * i = curcpu % adapter->num_queues; 411 */ 412 int 413 nm_os_generic_xmit_frame(struct nm_os_gen_arg *a) 414 { 415 int ret; 416 u_int len = a->len; 417 if_t ifp = a->ifp; 418 struct mbuf *m = a->m; 419 420 M_ASSERTPKTHDR(m); 421 KASSERT((m->m_flags & M_EXT) != 0, 422 ("%s: mbuf %p has no cluster", __func__, m)); 423 424 if (MBUF_REFCNT(m) != 1) { 425 nm_prerr("invalid refcnt %d for %p", MBUF_REFCNT(m), m); 426 panic("in generic_xmit_frame"); 427 } 428 if (unlikely(m->m_ext.ext_size < len)) { 429 nm_prlim(2, "size %d < len %d", m->m_ext.ext_size, len); 430 len = m->m_ext.ext_size; 431 } 432 433 m_copyback(m, 0, len, a->addr); 434 m->m_len = m->m_pkthdr.len = len; 435 SET_MBUF_REFCNT(m, 2); 436 M_HASHTYPE_SET(m, M_HASHTYPE_OPAQUE); 437 m->m_pkthdr.flowid = a->ring_nr; 438 m->m_pkthdr.rcvif = ifp; /* used for tx notification */ 439 CURVNET_SET(if_getvnet(ifp)); 440 ret = NA(ifp)->if_transmit(ifp, m); 441 CURVNET_RESTORE(); 442 return ret ? -1 : 0; 443 } 444 445 struct netmap_adapter * 446 netmap_getna(if_t ifp) 447 { 448 return (NA(ifp)); 449 } 450 451 /* 452 * The following two functions are empty until we have a generic 453 * way to extract the info from the ifp 454 */ 455 int 456 nm_os_generic_find_num_desc(if_t ifp, unsigned int *tx, unsigned int *rx) 457 { 458 return 0; 459 } 460 461 462 void 463 nm_os_generic_find_num_queues(if_t ifp, u_int *txq, u_int *rxq) 464 { 465 unsigned num_rings = netmap_generic_rings ? netmap_generic_rings : 1; 466 467 *txq = num_rings; 468 *rxq = num_rings; 469 } 470 471 void 472 nm_os_generic_set_features(struct netmap_generic_adapter *gna) 473 { 474 475 gna->rxsg = 1; /* Supported through m_copydata. */ 476 gna->txqdisc = 0; /* Not supported. */ 477 } 478 479 void 480 nm_os_mitigation_init(struct nm_generic_mit *mit, int idx, struct netmap_adapter *na) 481 { 482 mit->mit_pending = 0; 483 mit->mit_ring_idx = idx; 484 mit->mit_na = na; 485 } 486 487 488 void 489 nm_os_mitigation_start(struct nm_generic_mit *mit) 490 { 491 } 492 493 494 void 495 nm_os_mitigation_restart(struct nm_generic_mit *mit) 496 { 497 } 498 499 500 int 501 nm_os_mitigation_active(struct nm_generic_mit *mit) 502 { 503 504 return 0; 505 } 506 507 508 void 509 nm_os_mitigation_cleanup(struct nm_generic_mit *mit) 510 { 511 } 512 513 static int 514 nm_vi_dummy(if_t ifp, u_long cmd, caddr_t addr) 515 { 516 517 return EINVAL; 518 } 519 520 static void 521 nm_vi_start(if_t ifp) 522 { 523 panic("nm_vi_start() must not be called"); 524 } 525 526 /* 527 * Index manager of persistent virtual interfaces. 528 * It is used to decide the lowest byte of the MAC address. 529 * We use the same algorithm with management of bridge port index. 530 */ 531 #define NM_VI_MAX 255 532 static struct { 533 uint8_t index[NM_VI_MAX]; /* XXX just for a reasonable number */ 534 uint8_t active; 535 struct mtx lock; 536 } nm_vi_indices; 537 538 void 539 nm_os_vi_init_index(void) 540 { 541 int i; 542 for (i = 0; i < NM_VI_MAX; i++) 543 nm_vi_indices.index[i] = i; 544 nm_vi_indices.active = 0; 545 mtx_init(&nm_vi_indices.lock, "nm_vi_indices_lock", NULL, MTX_DEF); 546 } 547 548 /* return -1 if no index available */ 549 static int 550 nm_vi_get_index(void) 551 { 552 int ret; 553 554 mtx_lock(&nm_vi_indices.lock); 555 ret = nm_vi_indices.active == NM_VI_MAX ? -1 : 556 nm_vi_indices.index[nm_vi_indices.active++]; 557 mtx_unlock(&nm_vi_indices.lock); 558 return ret; 559 } 560 561 static void 562 nm_vi_free_index(uint8_t val) 563 { 564 int i, lim; 565 566 mtx_lock(&nm_vi_indices.lock); 567 lim = nm_vi_indices.active; 568 for (i = 0; i < lim; i++) { 569 if (nm_vi_indices.index[i] == val) { 570 /* swap index[lim-1] and j */ 571 int tmp = nm_vi_indices.index[lim-1]; 572 nm_vi_indices.index[lim-1] = val; 573 nm_vi_indices.index[i] = tmp; 574 nm_vi_indices.active--; 575 break; 576 } 577 } 578 if (lim == nm_vi_indices.active) 579 nm_prerr("Index %u not found", val); 580 mtx_unlock(&nm_vi_indices.lock); 581 } 582 #undef NM_VI_MAX 583 584 /* 585 * Implementation of a netmap-capable virtual interface that 586 * registered to the system. 587 * It is based on if_tap.c and ip_fw_log.c in FreeBSD 9. 588 * 589 * Note: Linux sets refcount to 0 on allocation of net_device, 590 * then increments it on registration to the system. 591 * FreeBSD sets refcount to 1 on if_alloc(), and does not 592 * increment this refcount on if_attach(). 593 */ 594 int 595 nm_os_vi_persist(const char *name, if_t *ret) 596 { 597 if_t ifp; 598 u_short macaddr_hi; 599 uint32_t macaddr_mid; 600 u_char eaddr[6]; 601 int unit = nm_vi_get_index(); /* just to decide MAC address */ 602 603 if (unit < 0) 604 return EBUSY; 605 /* 606 * We use the same MAC address generation method with tap 607 * except for the highest octet is 00:be instead of 00:bd 608 */ 609 macaddr_hi = htons(0x00be); /* XXX tap + 1 */ 610 macaddr_mid = (uint32_t) ticks; 611 bcopy(&macaddr_hi, eaddr, sizeof(short)); 612 bcopy(&macaddr_mid, &eaddr[2], sizeof(uint32_t)); 613 eaddr[5] = (uint8_t)unit; 614 615 ifp = if_alloc(IFT_ETHER); 616 if_initname(ifp, name, IF_DUNIT_NONE); 617 if_setflags(ifp, IFF_UP | IFF_SIMPLEX | IFF_MULTICAST); 618 if_setinitfn(ifp, (void *)nm_vi_dummy); 619 if_setioctlfn(ifp, nm_vi_dummy); 620 if_setstartfn(ifp, nm_vi_start); 621 if_setmtu(ifp, ETHERMTU); 622 if_setsendqlen(ifp, ifqmaxlen); 623 if_setcapabilitiesbit(ifp, IFCAP_LINKSTATE, 0); 624 if_setcapenablebit(ifp, IFCAP_LINKSTATE, 0); 625 626 ether_ifattach(ifp, eaddr); 627 *ret = ifp; 628 return 0; 629 } 630 631 /* unregister from the system and drop the final refcount */ 632 void 633 nm_os_vi_detach(if_t ifp) 634 { 635 nm_vi_free_index(((char *)if_getlladdr(ifp))[5]); 636 ether_ifdetach(ifp); 637 if_free(ifp); 638 } 639 640 #ifdef WITH_EXTMEM 641 #include <vm/vm_map.h> 642 #include <vm/vm_extern.h> 643 #include <vm/vm_kern.h> 644 struct nm_os_extmem { 645 vm_object_t obj; 646 vm_offset_t kva; 647 vm_offset_t size; 648 uintptr_t scan; 649 }; 650 651 void 652 nm_os_extmem_delete(struct nm_os_extmem *e) 653 { 654 nm_prinf("freeing %zx bytes", (size_t)e->size); 655 vm_map_remove(kernel_map, e->kva, e->kva + e->size); 656 nm_os_free(e); 657 } 658 659 char * 660 nm_os_extmem_nextpage(struct nm_os_extmem *e) 661 { 662 char *rv = NULL; 663 if (e->scan < e->kva + e->size) { 664 rv = (char *)e->scan; 665 e->scan += PAGE_SIZE; 666 } 667 return rv; 668 } 669 670 int 671 nm_os_extmem_isequal(struct nm_os_extmem *e1, struct nm_os_extmem *e2) 672 { 673 return (e1->obj == e2->obj); 674 } 675 676 int 677 nm_os_extmem_nr_pages(struct nm_os_extmem *e) 678 { 679 return e->size >> PAGE_SHIFT; 680 } 681 682 struct nm_os_extmem * 683 nm_os_extmem_create(unsigned long p, struct nmreq_pools_info *pi, int *perror) 684 { 685 vm_map_t map; 686 vm_map_entry_t entry; 687 vm_object_t obj; 688 vm_prot_t prot; 689 vm_pindex_t index; 690 boolean_t wired; 691 struct nm_os_extmem *e = NULL; 692 int rv, error = 0; 693 694 e = nm_os_malloc(sizeof(*e)); 695 if (e == NULL) { 696 error = ENOMEM; 697 goto out; 698 } 699 700 map = &curthread->td_proc->p_vmspace->vm_map; 701 rv = vm_map_lookup(&map, p, VM_PROT_RW, &entry, 702 &obj, &index, &prot, &wired); 703 if (rv != KERN_SUCCESS) { 704 nm_prerr("address %lx not found", p); 705 error = vm_mmap_to_errno(rv); 706 goto out_free; 707 } 708 vm_object_reference(obj); 709 710 /* check that we are given the whole vm_object ? */ 711 vm_map_lookup_done(map, entry); 712 713 e->obj = obj; 714 /* Wire the memory and add the vm_object to the kernel map, 715 * to make sure that it is not freed even if all the processes 716 * that are mmap()ing should munmap() it. 717 */ 718 e->kva = vm_map_min(kernel_map); 719 e->size = obj->size << PAGE_SHIFT; 720 rv = vm_map_find(kernel_map, obj, 0, &e->kva, e->size, 0, 721 VMFS_OPTIMAL_SPACE, VM_PROT_READ | VM_PROT_WRITE, 722 VM_PROT_READ | VM_PROT_WRITE, 0); 723 if (rv != KERN_SUCCESS) { 724 nm_prerr("vm_map_find(%zx) failed", (size_t)e->size); 725 error = vm_mmap_to_errno(rv); 726 goto out_rel; 727 } 728 rv = vm_map_wire(kernel_map, e->kva, e->kva + e->size, 729 VM_MAP_WIRE_SYSTEM | VM_MAP_WIRE_NOHOLES); 730 if (rv != KERN_SUCCESS) { 731 nm_prerr("vm_map_wire failed"); 732 error = vm_mmap_to_errno(rv); 733 goto out_rem; 734 } 735 736 e->scan = e->kva; 737 738 return e; 739 740 out_rem: 741 vm_map_remove(kernel_map, e->kva, e->kva + e->size); 742 e->obj = NULL; /* reference consumed by vm_map_remove() */ 743 out_rel: 744 vm_object_deallocate(e->obj); 745 e->obj = NULL; 746 out_free: 747 nm_os_free(e); 748 out: 749 if (perror) 750 *perror = error; 751 return NULL; 752 } 753 #endif /* WITH_EXTMEM */ 754 755 /* ================== PTNETMAP GUEST SUPPORT ==================== */ 756 757 #ifdef WITH_PTNETMAP 758 #include <sys/bus.h> 759 #include <sys/rman.h> 760 #include <machine/bus.h> /* bus_dmamap_* */ 761 #include <machine/resource.h> 762 #include <dev/pci/pcivar.h> 763 #include <dev/pci/pcireg.h> 764 /* 765 * ptnetmap memory device (memdev) for freebsd guest, 766 * ssed to expose host netmap memory to the guest through a PCI BAR. 767 */ 768 769 /* 770 * ptnetmap memdev private data structure 771 */ 772 struct ptnetmap_memdev { 773 device_t dev; 774 struct resource *pci_io; 775 struct resource *pci_mem; 776 struct netmap_mem_d *nm_mem; 777 }; 778 779 static int ptn_memdev_probe(device_t); 780 static int ptn_memdev_attach(device_t); 781 static int ptn_memdev_detach(device_t); 782 static int ptn_memdev_shutdown(device_t); 783 784 static device_method_t ptn_memdev_methods[] = { 785 DEVMETHOD(device_probe, ptn_memdev_probe), 786 DEVMETHOD(device_attach, ptn_memdev_attach), 787 DEVMETHOD(device_detach, ptn_memdev_detach), 788 DEVMETHOD(device_shutdown, ptn_memdev_shutdown), 789 DEVMETHOD_END 790 }; 791 792 static driver_t ptn_memdev_driver = { 793 PTNETMAP_MEMDEV_NAME, 794 ptn_memdev_methods, 795 sizeof(struct ptnetmap_memdev), 796 }; 797 798 /* We use (SI_ORDER_MIDDLE+1) here, see DEV_MODULE_ORDERED() invocation 799 * below. */ 800 DRIVER_MODULE_ORDERED(ptn_memdev, pci, ptn_memdev_driver, NULL, NULL, 801 SI_ORDER_MIDDLE + 1); 802 803 /* 804 * Map host netmap memory through PCI-BAR in the guest OS, 805 * returning physical (nm_paddr) and virtual (nm_addr) addresses 806 * of the netmap memory mapped in the guest. 807 */ 808 int 809 nm_os_pt_memdev_iomap(struct ptnetmap_memdev *ptn_dev, vm_paddr_t *nm_paddr, 810 void **nm_addr, uint64_t *mem_size) 811 { 812 int rid; 813 814 nm_prinf("ptn_memdev_driver iomap"); 815 816 rid = PCIR_BAR(PTNETMAP_MEM_PCI_BAR); 817 *mem_size = bus_read_4(ptn_dev->pci_io, PTNET_MDEV_IO_MEMSIZE_HI); 818 *mem_size = bus_read_4(ptn_dev->pci_io, PTNET_MDEV_IO_MEMSIZE_LO) | 819 (*mem_size << 32); 820 821 /* map memory allocator */ 822 ptn_dev->pci_mem = bus_alloc_resource(ptn_dev->dev, SYS_RES_MEMORY, 823 &rid, 0, ~0, *mem_size, RF_ACTIVE); 824 if (ptn_dev->pci_mem == NULL) { 825 *nm_paddr = 0; 826 *nm_addr = NULL; 827 return ENOMEM; 828 } 829 830 *nm_paddr = rman_get_start(ptn_dev->pci_mem); 831 *nm_addr = rman_get_virtual(ptn_dev->pci_mem); 832 833 nm_prinf("=== BAR %d start %lx len %lx mem_size %lx ===", 834 PTNETMAP_MEM_PCI_BAR, 835 (unsigned long)(*nm_paddr), 836 (unsigned long)rman_get_size(ptn_dev->pci_mem), 837 (unsigned long)*mem_size); 838 return (0); 839 } 840 841 uint32_t 842 nm_os_pt_memdev_ioread(struct ptnetmap_memdev *ptn_dev, unsigned int reg) 843 { 844 return bus_read_4(ptn_dev->pci_io, reg); 845 } 846 847 /* Unmap host netmap memory. */ 848 void 849 nm_os_pt_memdev_iounmap(struct ptnetmap_memdev *ptn_dev) 850 { 851 nm_prinf("ptn_memdev_driver iounmap"); 852 853 if (ptn_dev->pci_mem) { 854 bus_release_resource(ptn_dev->dev, SYS_RES_MEMORY, 855 PCIR_BAR(PTNETMAP_MEM_PCI_BAR), ptn_dev->pci_mem); 856 ptn_dev->pci_mem = NULL; 857 } 858 } 859 860 /* Device identification routine, return BUS_PROBE_DEFAULT on success, 861 * positive on failure */ 862 static int 863 ptn_memdev_probe(device_t dev) 864 { 865 if (pci_get_vendor(dev) != PTNETMAP_PCI_VENDOR_ID) 866 return (ENXIO); 867 if (pci_get_device(dev) != PTNETMAP_PCI_DEVICE_ID) 868 return (ENXIO); 869 870 device_set_descf(dev, "%s PCI adapter", PTNETMAP_MEMDEV_NAME); 871 872 return (BUS_PROBE_DEFAULT); 873 } 874 875 /* Device initialization routine. */ 876 static int 877 ptn_memdev_attach(device_t dev) 878 { 879 struct ptnetmap_memdev *ptn_dev; 880 int rid; 881 uint16_t mem_id; 882 883 ptn_dev = device_get_softc(dev); 884 ptn_dev->dev = dev; 885 886 pci_enable_busmaster(dev); 887 888 rid = PCIR_BAR(PTNETMAP_IO_PCI_BAR); 889 ptn_dev->pci_io = bus_alloc_resource_any(dev, SYS_RES_IOPORT, &rid, 890 RF_ACTIVE); 891 if (ptn_dev->pci_io == NULL) { 892 device_printf(dev, "cannot map I/O space\n"); 893 return (ENXIO); 894 } 895 896 mem_id = bus_read_4(ptn_dev->pci_io, PTNET_MDEV_IO_MEMID); 897 898 /* create guest allocator */ 899 ptn_dev->nm_mem = netmap_mem_pt_guest_attach(ptn_dev, mem_id); 900 if (ptn_dev->nm_mem == NULL) { 901 ptn_memdev_detach(dev); 902 return (ENOMEM); 903 } 904 netmap_mem_get(ptn_dev->nm_mem); 905 906 nm_prinf("ptnetmap memdev attached, host memid: %u", mem_id); 907 908 return (0); 909 } 910 911 /* Device removal routine. */ 912 static int 913 ptn_memdev_detach(device_t dev) 914 { 915 struct ptnetmap_memdev *ptn_dev; 916 917 ptn_dev = device_get_softc(dev); 918 919 if (ptn_dev->nm_mem) { 920 nm_prinf("ptnetmap memdev detached, host memid %u", 921 netmap_mem_get_id(ptn_dev->nm_mem)); 922 netmap_mem_put(ptn_dev->nm_mem); 923 ptn_dev->nm_mem = NULL; 924 } 925 if (ptn_dev->pci_mem) { 926 bus_release_resource(dev, SYS_RES_MEMORY, 927 PCIR_BAR(PTNETMAP_MEM_PCI_BAR), ptn_dev->pci_mem); 928 ptn_dev->pci_mem = NULL; 929 } 930 if (ptn_dev->pci_io) { 931 bus_release_resource(dev, SYS_RES_IOPORT, 932 PCIR_BAR(PTNETMAP_IO_PCI_BAR), ptn_dev->pci_io); 933 ptn_dev->pci_io = NULL; 934 } 935 936 return (0); 937 } 938 939 static int 940 ptn_memdev_shutdown(device_t dev) 941 { 942 return bus_generic_shutdown(dev); 943 } 944 945 #endif /* WITH_PTNETMAP */ 946 947 /* 948 * In order to track whether pages are still mapped, we hook into 949 * the standard cdev_pager and intercept the constructor and 950 * destructor. 951 */ 952 953 struct netmap_vm_handle_t { 954 struct cdev *dev; 955 struct netmap_priv_d *priv; 956 }; 957 958 959 static int 960 netmap_dev_pager_ctor(void *handle, vm_ooffset_t size, vm_prot_t prot, 961 vm_ooffset_t foff, struct ucred *cred, u_short *color) 962 { 963 struct netmap_vm_handle_t *vmh = handle; 964 965 if (netmap_verbose) 966 nm_prinf("handle %p size %jd prot %d foff %jd", 967 handle, (intmax_t)size, prot, (intmax_t)foff); 968 if (color) 969 *color = 0; 970 dev_ref(vmh->dev); 971 return 0; 972 } 973 974 975 static void 976 netmap_dev_pager_dtor(void *handle) 977 { 978 struct netmap_vm_handle_t *vmh = handle; 979 struct cdev *dev = vmh->dev; 980 struct netmap_priv_d *priv = vmh->priv; 981 982 if (netmap_verbose) 983 nm_prinf("handle %p", handle); 984 netmap_dtor(priv); 985 free(vmh, M_DEVBUF); 986 dev_rel(dev); 987 } 988 989 990 static int 991 netmap_dev_pager_fault(vm_object_t object, vm_ooffset_t offset, 992 int prot, vm_page_t *mres) 993 { 994 struct netmap_vm_handle_t *vmh = object->handle; 995 struct netmap_priv_d *priv = vmh->priv; 996 struct netmap_adapter *na = priv->np_na; 997 vm_paddr_t paddr; 998 vm_page_t page; 999 vm_memattr_t memattr; 1000 1001 nm_prdis("object %p offset %jd prot %d mres %p", 1002 object, (intmax_t)offset, prot, mres); 1003 memattr = object->memattr; 1004 paddr = netmap_mem_ofstophys(na->nm_mem, offset); 1005 if (paddr == 0) 1006 return VM_PAGER_FAIL; 1007 1008 if (((*mres)->flags & PG_FICTITIOUS) != 0) { 1009 /* 1010 * If the passed in result page is a fake page, update it with 1011 * the new physical address. 1012 */ 1013 page = *mres; 1014 vm_page_updatefake(page, paddr, memattr); 1015 } else { 1016 /* 1017 * Replace the passed in reqpage page with our own fake page and 1018 * free up the all of the original pages. 1019 */ 1020 VM_OBJECT_WUNLOCK(object); 1021 page = vm_page_getfake(paddr, memattr); 1022 VM_OBJECT_WLOCK(object); 1023 vm_page_replace(page, object, (*mres)->pindex, *mres); 1024 *mres = page; 1025 } 1026 page->valid = VM_PAGE_BITS_ALL; 1027 return (VM_PAGER_OK); 1028 } 1029 1030 static void 1031 netmap_dev_pager_path(void *handle, char *path, size_t len) 1032 { 1033 struct netmap_vm_handle_t *vmh = handle; 1034 struct cdev *dev = vmh->dev; 1035 1036 dev_copyname(dev, path, len); 1037 } 1038 1039 static struct cdev_pager_ops netmap_cdev_pager_ops = { 1040 .cdev_pg_ctor = netmap_dev_pager_ctor, 1041 .cdev_pg_dtor = netmap_dev_pager_dtor, 1042 .cdev_pg_fault = netmap_dev_pager_fault, 1043 .cdev_pg_path = netmap_dev_pager_path, 1044 }; 1045 1046 1047 static int 1048 netmap_mmap_single(struct cdev *cdev, vm_ooffset_t *foff, 1049 vm_size_t objsize, vm_object_t *objp, int prot) 1050 { 1051 int error; 1052 struct netmap_vm_handle_t *vmh; 1053 struct netmap_priv_d *priv; 1054 vm_object_t obj; 1055 1056 if (netmap_verbose) 1057 nm_prinf("cdev %p foff %jd size %jd objp %p prot %d", cdev, 1058 (intmax_t )*foff, (intmax_t )objsize, objp, prot); 1059 1060 vmh = malloc(sizeof(struct netmap_vm_handle_t), M_DEVBUF, 1061 M_NOWAIT | M_ZERO); 1062 if (vmh == NULL) 1063 return ENOMEM; 1064 vmh->dev = cdev; 1065 1066 NMG_LOCK(); 1067 error = devfs_get_cdevpriv((void**)&priv); 1068 if (error) 1069 goto err_unlock; 1070 if (priv->np_nifp == NULL) { 1071 error = EINVAL; 1072 goto err_unlock; 1073 } 1074 vmh->priv = priv; 1075 priv->np_refs++; 1076 NMG_UNLOCK(); 1077 1078 obj = cdev_pager_allocate(vmh, OBJT_DEVICE, 1079 &netmap_cdev_pager_ops, objsize, prot, 1080 *foff, NULL); 1081 if (obj == NULL) { 1082 nm_prerr("cdev_pager_allocate failed"); 1083 error = EINVAL; 1084 goto err_deref; 1085 } 1086 1087 *objp = obj; 1088 return 0; 1089 1090 err_deref: 1091 NMG_LOCK(); 1092 priv->np_refs--; 1093 err_unlock: 1094 NMG_UNLOCK(); 1095 // err: 1096 free(vmh, M_DEVBUF); 1097 return error; 1098 } 1099 1100 /* 1101 * On FreeBSD the close routine is only called on the last close on 1102 * the device (/dev/netmap) so we cannot do anything useful. 1103 * To track close() on individual file descriptors we pass netmap_dtor() to 1104 * devfs_set_cdevpriv() on open(). The FreeBSD kernel will call the destructor 1105 * when the last fd pointing to the device is closed. 1106 * 1107 * Note that FreeBSD does not even munmap() on close() so we also have 1108 * to track mmap() ourselves, and postpone the call to 1109 * netmap_dtor() is called when the process has no open fds and no active 1110 * memory maps on /dev/netmap, as in linux. 1111 */ 1112 static int 1113 netmap_close(struct cdev *dev, int fflag, int devtype, struct thread *td) 1114 { 1115 if (netmap_verbose) 1116 nm_prinf("dev %p fflag 0x%x devtype %d td %p", 1117 dev, fflag, devtype, td); 1118 return 0; 1119 } 1120 1121 1122 static int 1123 netmap_open(struct cdev *dev, int oflags, int devtype, struct thread *td) 1124 { 1125 struct netmap_priv_d *priv; 1126 int error; 1127 1128 (void)dev; 1129 (void)oflags; 1130 (void)devtype; 1131 (void)td; 1132 1133 NMG_LOCK(); 1134 priv = netmap_priv_new(); 1135 if (priv == NULL) { 1136 error = ENOMEM; 1137 goto out; 1138 } 1139 error = devfs_set_cdevpriv(priv, netmap_dtor); 1140 if (error) { 1141 netmap_priv_delete(priv); 1142 } 1143 out: 1144 NMG_UNLOCK(); 1145 return error; 1146 } 1147 1148 /******************** kthread wrapper ****************/ 1149 #include <sys/sysproto.h> 1150 u_int 1151 nm_os_ncpus(void) 1152 { 1153 return mp_maxid + 1; 1154 } 1155 1156 struct nm_kctx_ctx { 1157 /* Userspace thread (kthread creator). */ 1158 struct thread *user_td; 1159 1160 /* worker function and parameter */ 1161 nm_kctx_worker_fn_t worker_fn; 1162 void *worker_private; 1163 1164 struct nm_kctx *nmk; 1165 1166 /* integer to manage multiple worker contexts (e.g., RX or TX on ptnetmap) */ 1167 long type; 1168 }; 1169 1170 struct nm_kctx { 1171 struct thread *worker; 1172 struct mtx worker_lock; 1173 struct nm_kctx_ctx worker_ctx; 1174 int run; /* used to stop kthread */ 1175 int attach_user; /* kthread attached to user_process */ 1176 int affinity; 1177 }; 1178 1179 static void 1180 nm_kctx_worker(void *data) 1181 { 1182 struct nm_kctx *nmk = data; 1183 struct nm_kctx_ctx *ctx = &nmk->worker_ctx; 1184 1185 if (nmk->affinity >= 0) { 1186 thread_lock(curthread); 1187 sched_bind(curthread, nmk->affinity); 1188 thread_unlock(curthread); 1189 } 1190 1191 while (nmk->run) { 1192 /* 1193 * check if the parent process dies 1194 * (when kthread is attached to user process) 1195 */ 1196 if (ctx->user_td) { 1197 PROC_LOCK(curproc); 1198 thread_suspend_check(0); 1199 PROC_UNLOCK(curproc); 1200 } else { 1201 kthread_suspend_check(); 1202 } 1203 1204 /* Continuously execute worker process. */ 1205 ctx->worker_fn(ctx->worker_private); /* worker body */ 1206 } 1207 1208 kthread_exit(); 1209 } 1210 1211 void 1212 nm_os_kctx_worker_setaff(struct nm_kctx *nmk, int affinity) 1213 { 1214 nmk->affinity = affinity; 1215 } 1216 1217 struct nm_kctx * 1218 nm_os_kctx_create(struct nm_kctx_cfg *cfg, void *opaque) 1219 { 1220 struct nm_kctx *nmk = NULL; 1221 1222 nmk = malloc(sizeof(*nmk), M_DEVBUF, M_NOWAIT | M_ZERO); 1223 if (!nmk) 1224 return NULL; 1225 1226 mtx_init(&nmk->worker_lock, "nm_kthread lock", NULL, MTX_DEF); 1227 nmk->worker_ctx.worker_fn = cfg->worker_fn; 1228 nmk->worker_ctx.worker_private = cfg->worker_private; 1229 nmk->worker_ctx.type = cfg->type; 1230 nmk->affinity = -1; 1231 1232 /* attach kthread to user process (ptnetmap) */ 1233 nmk->attach_user = cfg->attach_user; 1234 1235 return nmk; 1236 } 1237 1238 int 1239 nm_os_kctx_worker_start(struct nm_kctx *nmk) 1240 { 1241 struct proc *p = NULL; 1242 int error = 0; 1243 1244 /* Temporarily disable this function as it is currently broken 1245 * and causes kernel crashes. The failure can be triggered by 1246 * the "vale_polling_enable_disable" test in ctrl-api-test.c. */ 1247 return EOPNOTSUPP; 1248 1249 if (nmk->worker) 1250 return EBUSY; 1251 1252 /* check if we want to attach kthread to user process */ 1253 if (nmk->attach_user) { 1254 nmk->worker_ctx.user_td = curthread; 1255 p = curthread->td_proc; 1256 } 1257 1258 /* enable kthread main loop */ 1259 nmk->run = 1; 1260 /* create kthread */ 1261 if((error = kthread_add(nm_kctx_worker, nmk, p, 1262 &nmk->worker, RFNOWAIT /* to be checked */, 0, "nm-kthread-%ld", 1263 nmk->worker_ctx.type))) { 1264 goto err; 1265 } 1266 1267 nm_prinf("nm_kthread started td %p", nmk->worker); 1268 1269 return 0; 1270 err: 1271 nm_prerr("nm_kthread start failed err %d", error); 1272 nmk->worker = NULL; 1273 return error; 1274 } 1275 1276 void 1277 nm_os_kctx_worker_stop(struct nm_kctx *nmk) 1278 { 1279 if (!nmk->worker) 1280 return; 1281 1282 /* tell to kthread to exit from main loop */ 1283 nmk->run = 0; 1284 1285 /* wake up kthread if it sleeps */ 1286 kthread_resume(nmk->worker); 1287 1288 nmk->worker = NULL; 1289 } 1290 1291 void 1292 nm_os_kctx_destroy(struct nm_kctx *nmk) 1293 { 1294 if (!nmk) 1295 return; 1296 1297 if (nmk->worker) 1298 nm_os_kctx_worker_stop(nmk); 1299 1300 free(nmk, M_DEVBUF); 1301 } 1302 1303 /******************** kqueue support ****************/ 1304 1305 /* 1306 * In addition to calling selwakeuppri(), nm_os_selwakeup() also 1307 * needs to call knote() to wake up kqueue listeners. 1308 * This operation is deferred to a taskqueue in order to avoid possible 1309 * lock order reversals; these may happen because knote() grabs a 1310 * private lock associated to the 'si' (see struct selinfo, 1311 * struct nm_selinfo, and nm_os_selinfo_init), and nm_os_selwakeup() 1312 * can be called while holding the lock associated to a different 1313 * 'si'. 1314 * When calling knote() we use a non-zero 'hint' argument to inform 1315 * the netmap_knrw() function that it is being called from 1316 * 'nm_os_selwakeup'; this is necessary because when netmap_knrw() is 1317 * called by the kevent subsystem (i.e. kevent_scan()) we also need to 1318 * call netmap_poll(). 1319 * 1320 * The netmap_kqfilter() function registers one or another f_event 1321 * depending on read or write mode. A pointer to the struct 1322 * 'netmap_priv_d' is stored into kn->kn_hook, so that it can later 1323 * be passed to netmap_poll(). We pass NULL as a third argument to 1324 * netmap_poll(), so that the latter only runs the txsync/rxsync 1325 * (if necessary), and skips the nm_os_selrecord() calls. 1326 */ 1327 1328 1329 void 1330 nm_os_selwakeup(struct nm_selinfo *si) 1331 { 1332 selwakeuppri(&si->si, PI_NET); 1333 if (si->kqueue_users > 0) { 1334 taskqueue_enqueue(si->ntfytq, &si->ntfytask); 1335 } 1336 } 1337 1338 void 1339 nm_os_selrecord(struct thread *td, struct nm_selinfo *si) 1340 { 1341 selrecord(td, &si->si); 1342 } 1343 1344 static void 1345 netmap_knrdetach(struct knote *kn) 1346 { 1347 struct netmap_priv_d *priv = (struct netmap_priv_d *)kn->kn_hook; 1348 struct nm_selinfo *si = priv->np_si[NR_RX]; 1349 1350 knlist_remove(&si->si.si_note, kn, /*islocked=*/0); 1351 NMG_LOCK(); 1352 KASSERT(si->kqueue_users > 0, ("kqueue_user underflow on %s", 1353 si->mtxname)); 1354 si->kqueue_users--; 1355 nm_prinf("kqueue users for %s: %d", si->mtxname, si->kqueue_users); 1356 NMG_UNLOCK(); 1357 } 1358 1359 static void 1360 netmap_knwdetach(struct knote *kn) 1361 { 1362 struct netmap_priv_d *priv = (struct netmap_priv_d *)kn->kn_hook; 1363 struct nm_selinfo *si = priv->np_si[NR_TX]; 1364 1365 knlist_remove(&si->si.si_note, kn, /*islocked=*/0); 1366 NMG_LOCK(); 1367 si->kqueue_users--; 1368 nm_prinf("kqueue users for %s: %d", si->mtxname, si->kqueue_users); 1369 NMG_UNLOCK(); 1370 } 1371 1372 /* 1373 * Callback triggered by netmap notifications (see netmap_notify()), 1374 * and by the application calling kevent(). In the former case we 1375 * just return 1 (events ready), since we are not able to do better. 1376 * In the latter case we use netmap_poll() to see which events are 1377 * ready. 1378 */ 1379 static int 1380 netmap_knrw(struct knote *kn, long hint, int events) 1381 { 1382 struct netmap_priv_d *priv; 1383 int revents; 1384 1385 if (hint != 0) { 1386 /* Called from netmap_notify(), typically from a 1387 * thread different from the one issuing kevent(). 1388 * Assume we are ready. */ 1389 return 1; 1390 } 1391 1392 /* Called from kevent(). */ 1393 priv = kn->kn_hook; 1394 revents = netmap_poll(priv, events, /*thread=*/NULL); 1395 1396 return (events & revents) ? 1 : 0; 1397 } 1398 1399 static int 1400 netmap_knread(struct knote *kn, long hint) 1401 { 1402 return netmap_knrw(kn, hint, POLLIN); 1403 } 1404 1405 static int 1406 netmap_knwrite(struct knote *kn, long hint) 1407 { 1408 return netmap_knrw(kn, hint, POLLOUT); 1409 } 1410 1411 static int 1412 netmap_kncopy(struct knote *kn, struct proc *p1) 1413 { 1414 struct netmap_priv_d *priv; 1415 struct nm_selinfo *si; 1416 1417 priv = kn->kn_hook; 1418 si = priv->np_si[kn->kn_filter == EVFILT_WRITE ? NR_TX : NR_RX]; 1419 NMG_LOCK(); 1420 si->kqueue_users++; 1421 NMG_UNLOCK(); 1422 return (0); 1423 } 1424 1425 static const struct filterops netmap_rfiltops = { 1426 .f_isfd = 1, 1427 .f_detach = netmap_knrdetach, 1428 .f_event = netmap_knread, 1429 .f_copy = netmap_kncopy, 1430 }; 1431 1432 static const struct filterops netmap_wfiltops = { 1433 .f_isfd = 1, 1434 .f_detach = netmap_knwdetach, 1435 .f_event = netmap_knwrite, 1436 .f_copy = netmap_kncopy, 1437 }; 1438 1439 /* 1440 * This is called when a thread invokes kevent() to record 1441 * a change in the configuration of the kqueue(). 1442 * The 'priv' is the one associated to the open netmap device. 1443 */ 1444 static int 1445 netmap_kqfilter(struct cdev *dev, struct knote *kn) 1446 { 1447 struct netmap_priv_d *priv; 1448 int error; 1449 struct netmap_adapter *na; 1450 struct nm_selinfo *si; 1451 int ev = kn->kn_filter; 1452 1453 if (ev != EVFILT_READ && ev != EVFILT_WRITE) { 1454 nm_prerr("bad filter request %d", ev); 1455 return 1; 1456 } 1457 error = devfs_get_cdevpriv((void**)&priv); 1458 if (error) { 1459 nm_prerr("device not yet setup"); 1460 return 1; 1461 } 1462 na = priv->np_na; 1463 if (na == NULL) { 1464 nm_prerr("no netmap adapter for this file descriptor"); 1465 return 1; 1466 } 1467 /* the si is indicated in the priv */ 1468 si = priv->np_si[(ev == EVFILT_WRITE) ? NR_TX : NR_RX]; 1469 kn->kn_fop = (ev == EVFILT_WRITE) ? 1470 &netmap_wfiltops : &netmap_rfiltops; 1471 kn->kn_hook = priv; 1472 NMG_LOCK(); 1473 si->kqueue_users++; 1474 nm_prinf("kqueue users for %s: %d", si->mtxname, si->kqueue_users); 1475 NMG_UNLOCK(); 1476 knlist_add(&si->si.si_note, kn, /*islocked=*/0); 1477 1478 return 0; 1479 } 1480 1481 static int 1482 freebsd_netmap_poll(struct cdev *cdevi __unused, int events, struct thread *td) 1483 { 1484 struct netmap_priv_d *priv; 1485 if (devfs_get_cdevpriv((void **)&priv)) { 1486 return POLLERR; 1487 } 1488 return netmap_poll(priv, events, td); 1489 } 1490 1491 static int 1492 freebsd_netmap_ioctl(struct cdev *dev __unused, u_long cmd, caddr_t data, 1493 int ffla __unused, struct thread *td) 1494 { 1495 int error; 1496 struct netmap_priv_d *priv; 1497 1498 CURVNET_SET(TD_TO_VNET(td)); 1499 error = devfs_get_cdevpriv((void **)&priv); 1500 if (error) { 1501 /* XXX ENOENT should be impossible, since the priv 1502 * is now created in the open */ 1503 if (error == ENOENT) 1504 error = ENXIO; 1505 goto out; 1506 } 1507 error = netmap_ioctl(priv, cmd, data, td, /*nr_body_is_user=*/1); 1508 out: 1509 CURVNET_RESTORE(); 1510 1511 return error; 1512 } 1513 1514 void 1515 nm_os_onattach(if_t ifp) 1516 { 1517 if_setcapabilitiesbit(ifp, IFCAP_NETMAP, 0); 1518 } 1519 1520 void 1521 nm_os_onenter(if_t ifp) 1522 { 1523 struct netmap_adapter *na = NA(ifp); 1524 1525 na->if_transmit = if_gettransmitfn(ifp); 1526 if_settransmitfn(ifp, netmap_transmit); 1527 if_setcapenablebit(ifp, IFCAP_NETMAP, 0); 1528 } 1529 1530 void 1531 nm_os_onexit(if_t ifp) 1532 { 1533 struct netmap_adapter *na = NA(ifp); 1534 1535 if_settransmitfn(ifp, na->if_transmit); 1536 if_setcapenablebit(ifp, 0, IFCAP_NETMAP); 1537 } 1538 1539 extern struct cdevsw netmap_cdevsw; /* XXX used in netmap.c, should go elsewhere */ 1540 struct cdevsw netmap_cdevsw = { 1541 .d_version = D_VERSION, 1542 .d_name = "netmap", 1543 .d_open = netmap_open, 1544 .d_mmap_single = netmap_mmap_single, 1545 .d_ioctl = freebsd_netmap_ioctl, 1546 .d_poll = freebsd_netmap_poll, 1547 .d_kqfilter = netmap_kqfilter, 1548 .d_close = netmap_close, 1549 }; 1550 /*--- end of kqueue support ----*/ 1551 1552 /* 1553 * Kernel entry point. 1554 * 1555 * Initialize/finalize the module and return. 1556 * 1557 * Return 0 on success, errno on failure. 1558 */ 1559 static int 1560 netmap_loader(__unused struct module *module, int event, __unused void *arg) 1561 { 1562 int error = 0; 1563 1564 switch (event) { 1565 case MOD_LOAD: 1566 error = netmap_init(); 1567 break; 1568 1569 case MOD_UNLOAD: 1570 /* 1571 * if some one is still using netmap, 1572 * then the module can not be unloaded. 1573 */ 1574 if (netmap_use_count) { 1575 nm_prerr("netmap module can not be unloaded - netmap_use_count: %d", 1576 netmap_use_count); 1577 error = EBUSY; 1578 break; 1579 } 1580 netmap_fini(); 1581 break; 1582 1583 default: 1584 error = EOPNOTSUPP; 1585 break; 1586 } 1587 1588 return (error); 1589 } 1590 1591 #ifdef DEV_MODULE_ORDERED 1592 /* 1593 * The netmap module contains three drivers: (i) the netmap character device 1594 * driver; (ii) the ptnetmap memdev PCI device driver, (iii) the ptnet PCI 1595 * device driver. The attach() routines of both (ii) and (iii) need the 1596 * lock of the global allocator, and such lock is initialized in netmap_init(), 1597 * which is part of (i). 1598 * Therefore, we make sure that (i) is loaded before (ii) and (iii), using 1599 * the 'order' parameter of driver declaration macros. For (i), we specify 1600 * SI_ORDER_MIDDLE, while higher orders are used with the DRIVER_MODULE_ORDERED 1601 * macros for (ii) and (iii). 1602 */ 1603 DEV_MODULE_ORDERED(netmap, netmap_loader, NULL, SI_ORDER_MIDDLE); 1604 #else /* !DEV_MODULE_ORDERED */ 1605 DEV_MODULE(netmap, netmap_loader, NULL); 1606 #endif /* DEV_MODULE_ORDERED */ 1607 MODULE_DEPEND(netmap, pci, 1, 1, 1); 1608 MODULE_VERSION(netmap, 1); 1609 /* reduce conditional code */ 1610 // linux API, use for the knlist in FreeBSD 1611 /* use a private mutex for the knlist */ 1612