1 /* 2 * Copyright (c) 1990 The Regents of the University of California. 3 * All rights reserved. 4 * 5 * Redistribution and use in source and binary forms, with or without 6 * modification, are permitted provided that: (1) source code distributions 7 * retain the above copyright notice and this paragraph in its entirety, (2) 8 * distributions including binary code include the above copyright notice and 9 * this paragraph in its entirety in the documentation or other materials 10 * provided with the distribution, and (3) all advertising materials mentioning 11 * features or use of this software display the following acknowledgement: 12 * ``This product includes software developed by the University of California, 13 * Lawrence Berkeley Laboratory and its contributors.'' Neither the name of 14 * the University nor the names of its contributors may be used to endorse 15 * or promote products derived from this software without specific prior 16 * written permission. 17 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED 18 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF 19 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE. 20 */ 21 #ifndef lint 22 char copyright[] = 23 "@(#) Copyright (c) 1990 The Regents of the University of California.\n\ 24 All rights reserved.\n"; 25 #endif /* not lint */ 26 27 #ifndef lint 28 static char rcsid[] = 29 "@(#) $Header: /home/ncvs/src/usr.sbin/rarpd/rarpd.c,v 1.4 1995/05/30 03:51:25 rgrimes Exp $ (LBL)"; 30 #endif 31 32 33 /* 34 * rarpd - Reverse ARP Daemon 35 * 36 * Usage: rarpd -a [ -f ] [ hostname ] 37 * rarpd [ -f ] interface [ hostname ] 38 * 39 * 'hostname' is optional solely for backwards compatibility with Sun's rarpd. 40 * Currently, the argument is ignored. 41 */ 42 43 #include <stdio.h> 44 #include <syslog.h> 45 #include <string.h> 46 #include <strings.h> 47 #include <sys/types.h> 48 /* SunOS 4.x defines this while 3.x does not. */ 49 #ifdef __sys_types_h 50 #define SUNOS4 51 #endif 52 #include <sys/time.h> 53 #include <net/bpf.h> 54 #include <sys/socket.h> 55 #include <sys/ioctl.h> 56 #include <net/if.h> 57 #include <netinet/in.h> 58 #include <netinet/if_ether.h> 59 #include <sys/errno.h> 60 #include <sys/file.h> 61 #include <netdb.h> 62 63 #ifdef SUNOS4 64 #include <dirent.h> 65 #else 66 #include <sys/dir.h> 67 #endif 68 69 /* 70 * Map field names in ether_arp struct. What a pain in the neck. 71 */ 72 #if !defined(SUNOS4) && !defined(__FreeBSD__) 73 #undef arp_sha 74 #undef arp_spa 75 #undef arp_tha 76 #undef arp_tpa 77 #define arp_sha arp_xsha 78 #define arp_spa arp_xspa 79 #define arp_tha arp_xtha 80 #define arp_tpa arp_xtpa 81 #endif 82 83 #ifndef __GNUC__ 84 #define inline 85 #endif 86 87 extern int errno; 88 extern int ether_ntohost __P((char *, struct ether_addr *)); 89 90 /* 91 * The structure for each interface. 92 */ 93 struct if_info { 94 int ii_fd; /* BPF file descriptor */ 95 u_char ii_eaddr[6]; /* Ethernet address of this interface */ 96 u_long ii_ipaddr; /* IP address of this interface */ 97 u_long ii_netmask; /* subnet or net mask */ 98 struct if_info *ii_next; 99 }; 100 101 /* 102 * The list of all interfaces that are being listened to. rarp_loop() 103 * "selects" on the descriptors in this list. 104 */ 105 struct if_info *iflist; 106 107 extern char *malloc(); 108 extern void exit(); 109 110 u_long ipaddrtonetmask(); 111 void init_one(); 112 void init_all(); 113 void rarp_loop(); 114 void lookup_eaddr(); 115 void lookup_ipaddr(); 116 117 void 118 main(argc, argv) 119 int argc; 120 char **argv; 121 { 122 int op, pid; 123 char *ifname, *hostname, *name; 124 125 int aflag = 0; /* listen on "all" interfaces */ 126 int fflag = 0; /* don't fork */ 127 128 extern char *optarg; 129 extern int optind, opterr; 130 131 if (name = strrchr(argv[0], '/')) 132 ++name; 133 else 134 name = argv[0]; 135 if (*name == '-') 136 ++name; 137 138 /* 139 * All error reporting is done through syslogs. 140 */ 141 openlog(name, LOG_PID, LOG_DAEMON); 142 143 opterr = 0; 144 while ((op = getopt(argc, argv, "af")) != EOF) { 145 switch (op) { 146 case 'a': 147 ++aflag; 148 break; 149 150 case 'f': 151 ++fflag; 152 break; 153 154 default: 155 usage(); 156 /* NOTREACHED */ 157 } 158 } 159 ifname = argv[optind++]; 160 hostname = ifname ? argv[optind] : 0; 161 if ((aflag && ifname) || (!aflag && ifname == 0)) 162 usage(); 163 164 if (aflag) 165 init_all(); 166 else 167 init_one(ifname); 168 169 if (!fflag) 170 if (daemon(0,0)) { 171 perror("fork"); 172 exit(0); 173 } 174 rarp_loop(); 175 } 176 177 /* 178 * Add 'ifname' to the interface list. Lookup its IP address and network 179 * mask and Ethernet address, and open a BPF file for it. 180 */ 181 void 182 init_one(ifname) 183 char *ifname; 184 { 185 struct if_info *p; 186 187 188 p = (struct if_info *)malloc(sizeof(*p)); 189 p->ii_next = iflist; 190 iflist = p; 191 192 p->ii_fd = rarp_open(ifname); 193 lookup_eaddr(p->ii_fd, p->ii_eaddr); 194 lookup_ipaddr(ifname, &p->ii_ipaddr, &p->ii_netmask); 195 } 196 197 /* 198 * Initialize all "candidate" interfaces that are in the system 199 * configuration list. A "candidate" is up, not loopback and not 200 * point to point. 201 */ 202 void 203 init_all() 204 { 205 int fd; 206 int ifflags; 207 struct ifreq ibuf[8], tmp_ibuf, *ifptr, *n; 208 struct ifconf ifc; 209 210 if ((fd = socket(AF_INET, SOCK_DGRAM, 0)) < 0) { 211 syslog(LOG_ERR, "socket: %m"); 212 exit(1); 213 } 214 ifc.ifc_len = sizeof ibuf; 215 ifc.ifc_buf = (caddr_t)ibuf; 216 if (ioctl(fd, SIOCGIFCONF, (char *)&ifc) < 0 || 217 ifc.ifc_len < sizeof(struct ifreq)) { 218 syslog(LOG_ERR, "SIOCGIFCONF: %m"); 219 exit(1); 220 } 221 ifptr = ifc.ifc_req; 222 ifflags = ifptr->ifr_flags; 223 n = (struct ifreq *) (ifc.ifc_buf + ifc.ifc_len); 224 while (ifptr < n) { 225 bcopy((char *)ifptr, (char *)&tmp_ibuf, sizeof(struct ifreq)); 226 if (ioctl(fd, SIOCGIFFLAGS, (char *)&tmp_ibuf) < 0) { 227 syslog(LOG_ERR, "SIOCGIFFLAGS: %m"); 228 exit(1); 229 } 230 if (ifptr->ifr_flags == ifflags && (tmp_ibuf.ifr_flags & 231 (IFF_UP | IFF_LOOPBACK | IFF_POINTOPOINT)) == IFF_UP) 232 init_one(ifptr->ifr_name); 233 if(ifptr->ifr_addr.sa_len) /* Dohw! */ 234 ifptr = (struct ifreq *) ((caddr_t) ifptr + 235 ifptr->ifr_addr.sa_len - 236 sizeof(struct sockaddr)); 237 ifptr++; 238 } 239 (void)close(fd); 240 } 241 242 usage() 243 { 244 (void)fprintf(stderr, "usage: rarpd [ -af ] [ interface ]\n"); 245 exit(1); 246 } 247 248 static int 249 bpf_open() 250 { 251 int fd; 252 int n = 0; 253 char device[sizeof "/dev/bpf000"]; 254 255 /* 256 * Go through all the minors and find one that isn't in use. 257 */ 258 do { 259 (void)sprintf(device, "/dev/bpf%d", n++); 260 fd = open(device, O_RDWR); 261 } while (fd < 0 && errno == EBUSY); 262 263 if (fd < 0) { 264 syslog(LOG_ERR, "%s: %m", device); 265 exit(-1); 266 } 267 return fd; 268 } 269 270 /* 271 * Open a BPF file and attach it to the interface named 'device'. 272 * Set immediate mode, and set a filter that accepts only RARP requests. 273 */ 274 int 275 rarp_open(device) 276 char *device; 277 { 278 int fd; 279 struct ifreq ifr; 280 int immediate, link_type; 281 282 static struct bpf_insn insns[] = { 283 BPF_STMT(BPF_LD+BPF_H+BPF_ABS, 12), 284 BPF_JUMP(BPF_JMP+BPF_JEQ+BPF_K, ETHERTYPE_REVARP, 0, 3), 285 BPF_STMT(BPF_LD+BPF_H+BPF_ABS, 20), 286 BPF_JUMP(BPF_JMP+BPF_JEQ+BPF_K, ARPOP_REVREQUEST, 0, 1), 287 BPF_STMT(BPF_RET+BPF_K, sizeof(struct ether_arp) + 288 sizeof(struct ether_header)), 289 BPF_STMT(BPF_RET+BPF_K, 0), 290 }; 291 292 static struct bpf_program filter = { 293 sizeof insns / sizeof(insns[0]), 294 (struct bpf_insn *)&insns 295 }; 296 297 fd = bpf_open(); 298 /* 299 * Set immediate mode so packets are processed as they arrive. 300 */ 301 immediate = 1; 302 if (ioctl(fd, BIOCIMMEDIATE, &immediate) < 0) { 303 syslog(LOG_ERR, "BIOCIMMEDIATE: %m"); 304 exit(1); 305 } 306 (void)strncpy(ifr.ifr_name, device, sizeof ifr.ifr_name); 307 if (ioctl(fd, BIOCSETIF, (caddr_t)&ifr) < 0) { 308 syslog(LOG_ERR, "BIOCSETIF: %m"); 309 exit(1); 310 } 311 /* 312 * Check that the data link layer is an Ethernet; this code won't 313 * work with anything else. 314 */ 315 if (ioctl(fd, BIOCGDLT, &link_type) < 0) { 316 syslog(LOG_ERR, "BIOCGDLP: %m"); 317 exit(1); 318 } 319 if (link_type != DLT_EN10MB) { 320 syslog(LOG_ERR, "%s not on ethernet", device); 321 exit(1); 322 } 323 /* 324 * Set filter program. 325 */ 326 if (ioctl(fd, BIOCSETF, (caddr_t)&filter) < 0) { 327 syslog(LOG_ERR, "BIOCSETF: %m"); 328 exit(1); 329 } 330 return fd; 331 } 332 333 /* 334 * Perform various sanity checks on the RARP request packet. Return 335 * false on failure and log the reason. 336 */ 337 static int 338 rarp_check(p, len) 339 u_char *p; 340 int len; 341 { 342 struct ether_header *ep = (struct ether_header *)p; 343 struct ether_arp *ap = (struct ether_arp *)(p + sizeof(*ep)); 344 345 if (len < sizeof(*ep) + sizeof(*ap)) { 346 syslog(LOG_ERR, "truncated request"); 347 return 0; 348 } 349 /* 350 * XXX This test might be better off broken out... 351 */ 352 if (ep->ether_type != htons(ETHERTYPE_REVARP) || 353 ap->arp_hrd != htons(ARPHRD_ETHER) || 354 ap->arp_op != htons(ARPOP_REVREQUEST) || 355 ap->arp_pro != htons(ETHERTYPE_IP) || 356 ap->arp_hln != 6 || ap->arp_pln != 4) { 357 syslog(LOG_DEBUG, "request fails sanity check"); 358 return 0; 359 } 360 if (bcmp((char *)&ep->ether_shost, (char *)&ap->arp_sha, 6) != 0) { 361 syslog(LOG_DEBUG, "ether/arp sender address mismatch"); 362 return 0; 363 } 364 if (bcmp((char *)&ap->arp_sha, (char *)&ap->arp_tha, 6) != 0) { 365 syslog(LOG_DEBUG, "ether/arp target address mismatch"); 366 return 0; 367 } 368 return 1; 369 } 370 371 #ifndef FD_SETSIZE 372 #define FD_SET(n, fdp) ((fdp)->fds_bits[0] |= (1 << (n))) 373 #define FD_ISSET(n, fdp) ((fdp)->fds_bits[0] & (1 << (n))) 374 #define FD_ZERO(fdp) ((fdp)->fds_bits[0] = 0) 375 #endif 376 377 /* 378 * Loop indefinitely listening for RARP requests on the 379 * interfaces in 'iflist'. 380 */ 381 void 382 rarp_loop() 383 { 384 struct bpf_hdr *bhp; 385 u_char *pkt; 386 int cc, fd; 387 fd_set fds, listeners; 388 int bufsize, maxfd = 0; 389 struct if_info *ii; 390 391 if (iflist == 0) { 392 syslog(LOG_ERR, "no interfaces"); 393 exit(1); 394 } 395 if (ioctl(iflist->ii_fd, BIOCGBLEN, (caddr_t)&bufsize) < 0) { 396 syslog(LOG_ERR, "BIOCGBLEN: %m"); 397 exit(1); 398 } 399 bhp = (struct bpf_hdr *)malloc((unsigned)bufsize); 400 401 /* 402 * Find the highest numbered file descriptor for select(). 403 * Initialize the set of descriptors to listen to. 404 */ 405 FD_ZERO(&fds); 406 for (ii = iflist; ii; ii = ii->ii_next) { 407 FD_SET(ii->ii_fd, &fds); 408 if (ii->ii_fd > maxfd) 409 maxfd = ii->ii_fd; 410 } 411 while (1) { 412 listeners = fds; 413 if (select(maxfd + 1, &listeners, (struct fd_set *)0, 414 (struct fd_set *)0, (struct timeval *)0) < 0) { 415 syslog(LOG_ERR, "select: %m"); 416 exit(1); 417 } 418 for (ii = iflist; ii; ii = ii->ii_next) { 419 fd = ii->ii_fd; 420 if (FD_ISSET(fd, &listeners)) { 421 again: 422 cc = read(fd, (char *)bhp, bufsize); 423 /* 424 * Due to a SunOS bug, after 2^31 bytes, the 425 * file offset overflows and read fails with 426 * EINVAL. The lseek() to 0 will fix things. 427 */ 428 if (cc < 0) { 429 if (errno == EINVAL && 430 (long)(lseek(fd, 0L, SEEK_CUR) + bufsize) < 0) { 431 (void)lseek(fd, 0, 0); 432 goto again; 433 } 434 syslog(LOG_ERR, "read: %m"); 435 exit(1); 436 } 437 pkt = (u_char *)bhp + bhp->bh_hdrlen; 438 439 if (rarp_check(pkt, (int)bhp->bh_datalen)) 440 rarp_process(ii, pkt); 441 } 442 } 443 } 444 } 445 446 #ifndef TFTP_DIR 447 #define TFTP_DIR "/tftpboot" 448 #endif 449 450 /* 451 * True if this server can boot the host whose IP address is 'addr'. 452 * This check is made by looking in the tftp directory for the 453 * configuration file. 454 */ 455 rarp_bootable(addr) 456 u_long addr; 457 { 458 459 #ifdef SUNOS4 460 register struct dirent *dent; 461 #else 462 register struct direct *dent; 463 #endif 464 register DIR *d; 465 char ipname[9]; 466 static DIR *dd = 0; 467 468 /* 469 * XXX Need to htonl() the IP address or it'll 470 * come out backwards. 471 */ 472 (void)sprintf(ipname, "%08X", htonl(addr)); 473 /* 474 * If directory is already open, rewind it. Otherwise, open it. 475 */ 476 if (d = dd) 477 rewinddir(d); 478 else { 479 if (chdir(TFTP_DIR) == -1) { 480 syslog(LOG_ERR, "chdir: %m"); 481 exit(1); 482 } 483 d = opendir("."); 484 if (d == 0) { 485 syslog(LOG_ERR, "opendir: %m"); 486 exit(1); 487 } 488 dd = d; 489 } 490 while (dent = readdir(d)) 491 if (strncmp(dent->d_name, ipname, 8) == 0) 492 return 1; 493 return 0; 494 495 } 496 497 /* 498 * Given a list of IP addresses, 'alist', return the first address that 499 * is on network 'net'; 'netmask' is a mask indicating the network portion 500 * of the address. 501 */ 502 u_long 503 choose_ipaddr(alist, net, netmask) 504 u_long **alist; 505 u_long net; 506 u_long netmask; 507 { 508 for (; *alist; ++alist) { 509 if ((**alist & netmask) == net) 510 return **alist; 511 } 512 return 0; 513 } 514 515 /* 516 * A one entry ip/ethernet address cache. 517 */ 518 static u_long cache_ipaddr; 519 static u_char cache_eaddr[6]; 520 521 /* 522 * Answer the RARP request in 'pkt', on the interface 'ii'. 'pkt' has 523 * already been checked for validity. The reply is overlaid on the request. 524 */ 525 rarp_process(ii, pkt) 526 struct if_info *ii; 527 u_char *pkt; 528 { 529 struct ether_header *ep; 530 struct hostent *hp; 531 u_long target_ipaddr; 532 char ename[256]; 533 534 ep = (struct ether_header *)pkt; 535 /* 536 * If the address in the one element cache, don't bother 537 * looking up names. 538 */ 539 if (bcmp((char *)cache_eaddr, (char *)&ep->ether_shost, 6) == 0) 540 target_ipaddr = cache_ipaddr; 541 else { 542 if (ether_ntohost(ename, (struct ether_addr *)&ep->ether_shost) != 0 || 543 (hp = gethostbyname(ename)) == 0) 544 return; 545 /* 546 * Choose correct address from list. 547 */ 548 if (hp->h_addrtype != AF_INET) { 549 syslog(LOG_ERR, "cannot handle non IP addresses"); 550 exit(1); 551 } 552 target_ipaddr = choose_ipaddr((u_long **)hp->h_addr_list, 553 ii->ii_ipaddr & ii->ii_netmask, 554 ii->ii_netmask); 555 if (target_ipaddr == 0) { 556 syslog(LOG_ERR, "cannot find %s on %08x", 557 ename, ii->ii_ipaddr & ii->ii_netmask); 558 return; 559 } 560 bcopy((char *)&ep->ether_shost, (char *)cache_eaddr, 6); 561 cache_ipaddr = target_ipaddr; 562 } 563 if (rarp_bootable(target_ipaddr)) 564 rarp_reply(ii, ep, target_ipaddr); 565 } 566 567 /* 568 * Lookup the ethernet address of the interface attached to the BPF 569 * file descriptor 'fd'; return it in 'eaddr'. 570 */ 571 void 572 lookup_eaddr(fd, eaddr) 573 int fd; 574 u_char *eaddr; 575 { 576 struct ifreq ifr; 577 578 /* Use BPF descriptor to get ethernet address. */ 579 if (ioctl(fd, SIOCGIFADDR, (char *)&ifr) < 0) { 580 syslog(LOG_ERR, "SIOCGIFADDR: %m"); 581 exit(1); 582 } 583 bcopy((char *)&ifr.ifr_addr.sa_data[0], (char *)eaddr, 6); 584 } 585 586 /* 587 * Lookup the IP address and network mask of the interface named 'ifname'. 588 */ 589 void 590 lookup_ipaddr(ifname, addrp, netmaskp) 591 char *ifname; 592 u_long *addrp; 593 u_long *netmaskp; 594 { 595 int fd; 596 struct ifreq ifr; 597 598 /* Use data gram socket to get IP address. */ 599 if ((fd = socket(AF_INET, SOCK_DGRAM, 0)) < 0) { 600 syslog(LOG_ERR, "socket: %m"); 601 exit(1); 602 } 603 (void)strncpy(ifr.ifr_name, ifname, sizeof ifr.ifr_name); 604 if (ioctl(fd, SIOCGIFADDR, (char *)&ifr) < 0) { 605 syslog(LOG_ERR, "SIOCGIFADDR: %m"); 606 exit(1); 607 } 608 *addrp = ((struct sockaddr_in *)&ifr.ifr_addr)->sin_addr.s_addr; 609 if (ioctl(fd, SIOCGIFNETMASK, (char *)&ifr) < 0) { 610 perror("SIOCGIFNETMASK"); 611 exit(1); 612 } 613 *netmaskp = ((struct sockaddr_in *)&ifr.ifr_addr)->sin_addr.s_addr; 614 /* 615 * If SIOCGIFNETMASK didn't work, figure out a mask from 616 * the IP address class. 617 */ 618 if (*netmaskp == 0) 619 *netmaskp = ipaddrtonetmask(*addrp); 620 621 (void)close(fd); 622 } 623 624 /* 625 * Poke the kernel arp tables with the ethernet/ip address combinataion 626 * given. When processing a reply, we must do this so that the booting 627 * host (i.e. the guy running rarpd), won't try to ARP for the hardware 628 * address of the guy being booted (he cannot answer the ARP). 629 */ 630 update_arptab(ep, ipaddr) 631 u_char *ep; 632 u_long ipaddr; 633 { 634 #ifdef SIOCSARP 635 int s; 636 struct arpreq request; 637 struct sockaddr_in *sin; 638 639 request.arp_flags = 0; 640 sin = (struct sockaddr_in *)&request.arp_pa; 641 sin->sin_family = AF_INET; 642 sin->sin_addr.s_addr = ipaddr; 643 request.arp_ha.sa_family = AF_UNSPEC; 644 bcopy((char *)ep, (char *)request.arp_ha.sa_data, 6); 645 646 s = socket(AF_INET, SOCK_DGRAM, 0); 647 if (ioctl(s, SIOCSARP, (caddr_t)&request) < 0) 648 syslog(LOG_ERR, "SIOCSARP: %m"); 649 (void)close(s); 650 #else 651 if (arptab_set(ep, ipaddr) > 0) 652 syslog(LOG_ERR, "couldn't update arp table"); 653 #endif 654 } 655 656 /* 657 * Build a reverse ARP packet and sent it out on the interface. 658 * 'ep' points to a valid ARPOP_REVREQUEST. The ARPOP_REVREPLY is built 659 * on top of the request, then written to the network. 660 * 661 * RFC 903 defines the ether_arp fields as follows. The following comments 662 * are taken (more or less) straight from this document. 663 * 664 * ARPOP_REVREQUEST 665 * 666 * arp_sha is the hardware address of the sender of the packet. 667 * arp_spa is undefined. 668 * arp_tha is the 'target' hardware address. 669 * In the case where the sender wishes to determine his own 670 * protocol address, this, like arp_sha, will be the hardware 671 * address of the sender. 672 * arp_tpa is undefined. 673 * 674 * ARPOP_REVREPLY 675 * 676 * arp_sha is the hardware address of the responder (the sender of the 677 * reply packet). 678 * arp_spa is the protocol address of the responder (see the note below). 679 * arp_tha is the hardware address of the target, and should be the same as 680 * that which was given in the request. 681 * arp_tpa is the protocol address of the target, that is, the desired address. 682 * 683 * Note that the requirement that arp_spa be filled in with the responder's 684 * protocol is purely for convenience. For instance, if a system were to use 685 * both ARP and RARP, then the inclusion of the valid protocol-hardware 686 * address pair (arp_spa, arp_sha) may eliminate the need for a subsequent 687 * ARP request. 688 */ 689 rarp_reply(ii, ep, ipaddr) 690 struct if_info *ii; 691 struct ether_header *ep; 692 u_long ipaddr; 693 { 694 int n; 695 struct ether_arp *ap = (struct ether_arp *)(ep + 1); 696 int len, raw_sock; 697 698 update_arptab((u_char *)&ap->arp_sha, ipaddr); 699 700 /* 701 * Build the rarp reply by modifying the rarp request in place. 702 */ 703 ap->arp_op = htons(ARPOP_REVREPLY); 704 705 /* 706 * XXX Using htons(ETHERTYPE_REVARP) doesn't work: you wind 707 * up transmitting 0x3580 instead of the correct value of 708 * 0x8035. What makes no sense is that the NetBSD people 709 * do in fact use htons(ETHERTYPE_REVARP) in their rarpd. 710 * (Thank god for tcpdump or I would never have figured this 711 * out.) 712 */ 713 ep->ether_type = ETHERTYPE_REVARP; 714 715 bcopy((char *)&ap->arp_sha, (char *)&ep->ether_dhost, 6); 716 bcopy((char *)ii->ii_eaddr, (char *)&ep->ether_shost, 6); 717 bcopy((char *)ii->ii_eaddr, (char *)&ap->arp_sha, 6); 718 719 bcopy((char *)&ipaddr, (char *)ap->arp_tpa, 4); 720 /* Target hardware is unchanged. */ 721 bcopy((char *)&ii->ii_ipaddr, (char *)ap->arp_spa, 4); 722 723 len = sizeof(*ep) + sizeof(*ap); 724 n = write(ii->ii_fd, (char *)ep, len); 725 if (n != len) { 726 syslog(LOG_ERR, "write: only %d of %d bytes written", n, len); 727 } 728 } 729 730 /* 731 * Get the netmask of an IP address. This routine is used if 732 * SIOCGIFNETMASK doesn't work. 733 */ 734 u_long 735 ipaddrtonetmask(addr) 736 u_long addr; 737 { 738 if (IN_CLASSA(addr)) 739 return IN_CLASSA_NET; 740 if (IN_CLASSB(addr)) 741 return IN_CLASSB_NET; 742 if (IN_CLASSC(addr)) 743 return IN_CLASSC_NET; 744 syslog(LOG_DEBUG, "unknown IP address class: %08X", addr); 745 exit(1); 746 /* NOTREACHED */ 747 } 748