1 /* $NetBSD: radix.c,v 1.7 1994/06/29 06:36:33 cgd Exp $ */ 2 3 /* 4 * Copyright (c) 1988, 1989, 1993 5 * The Regents of the University of California. All rights reserved. 6 * 7 * Redistribution and use in source and binary forms, with or without 8 * modification, are permitted provided that the following conditions 9 * are met: 10 * 1. Redistributions of source code must retain the above copyright 11 * notice, this list of conditions and the following disclaimer. 12 * 2. Redistributions in binary form must reproduce the above copyright 13 * notice, this list of conditions and the following disclaimer in the 14 * documentation and/or other materials provided with the distribution. 15 * 3. All advertising materials mentioning features or use of this software 16 * must display the following acknowledgement: 17 * This product includes software developed by the University of 18 * California, Berkeley and its contributors. 19 * 4. Neither the name of the University nor the names of its contributors 20 * may be used to endorse or promote products derived from this software 21 * without specific prior written permission. 22 * 23 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 24 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 25 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 26 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 27 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 28 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 29 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 30 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 31 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 32 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 33 * SUCH DAMAGE. 34 * 35 * @(#)radix.c 8.2 (Berkeley) 1/4/94 36 */ 37 38 /* 39 * Routines to build and maintain radix trees for routing lookups. 40 */ 41 #ifndef RNF_NORMAL 42 #include <sys/param.h> 43 #include <sys/systm.h> 44 #include <sys/malloc.h> 45 #define M_DONTWAIT M_NOWAIT 46 #ifdef KERNEL 47 #include <sys/domain.h> 48 #endif 49 #endif 50 51 #include <net/radix.h> 52 53 int max_keylen; 54 struct radix_mask *rn_mkfreelist; 55 struct radix_node_head *mask_rnhead; 56 static int gotOddMasks; 57 static char *maskedKey; 58 static char *rn_zeros, *rn_ones; 59 60 #define rn_masktop (mask_rnhead->rnh_treetop) 61 #undef Bcmp 62 #define Bcmp(a, b, l) (l == 0 ? 0 : bcmp((caddr_t)(a), (caddr_t)(b), (u_long)l)) 63 /* 64 * The data structure for the keys is a radix tree with one way 65 * branching removed. The index rn_b at an internal node n represents a bit 66 * position to be tested. The tree is arranged so that all descendants 67 * of a node n have keys whose bits all agree up to position rn_b - 1. 68 * (We say the index of n is rn_b.) 69 * 70 * There is at least one descendant which has a one bit at position rn_b, 71 * and at least one with a zero there. 72 * 73 * A route is determined by a pair of key and mask. We require that the 74 * bit-wise logical and of the key and mask to be the key. 75 * We define the index of a route to associated with the mask to be 76 * the first bit number in the mask where 0 occurs (with bit number 0 77 * representing the highest order bit). 78 * 79 * We say a mask is normal if every bit is 0, past the index of the mask. 80 * If a node n has a descendant (k, m) with index(m) == index(n) == rn_b, 81 * and m is a normal mask, then the route applies to every descendant of n. 82 * If the index(m) < rn_b, this implies the trailing last few bits of k 83 * before bit b are all 0, (and hence consequently true of every descendant 84 * of n), so the route applies to all descendants of the node as well. 85 * 86 * The present version of the code makes no use of normal routes, 87 * but similar logic shows that a non-normal mask m such that 88 * index(m) <= index(n) could potentially apply to many children of n. 89 * Thus, for each non-host route, we attach its mask to a list at an internal 90 * node as high in the tree as we can go. 91 */ 92 93 struct radix_node * 94 rn_search(v_arg, head) 95 void *v_arg; 96 struct radix_node *head; 97 { 98 register struct radix_node *x; 99 register caddr_t v; 100 101 for (x = head, v = v_arg; x->rn_b >= 0;) { 102 if (x->rn_bmask & v[x->rn_off]) 103 x = x->rn_r; 104 else 105 x = x->rn_l; 106 } 107 return (x); 108 }; 109 110 struct radix_node * 111 rn_search_m(v_arg, head, m_arg) 112 struct radix_node *head; 113 void *v_arg, *m_arg; 114 { 115 register struct radix_node *x; 116 register caddr_t v = v_arg, m = m_arg; 117 118 for (x = head; x->rn_b >= 0;) { 119 if ((x->rn_bmask & m[x->rn_off]) && 120 (x->rn_bmask & v[x->rn_off])) 121 x = x->rn_r; 122 else 123 x = x->rn_l; 124 } 125 return x; 126 }; 127 128 int 129 rn_refines(m_arg, n_arg) 130 void *m_arg, *n_arg; 131 { 132 register caddr_t m = m_arg, n = n_arg; 133 register caddr_t lim, lim2 = lim = n + *(u_char *)n; 134 int longer = (*(u_char *)n++) - (int)(*(u_char *)m++); 135 int masks_are_equal = 1; 136 137 if (longer > 0) 138 lim -= longer; 139 while (n < lim) { 140 if (*n & ~(*m)) 141 return 0; 142 if (*n++ != *m++) 143 masks_are_equal = 0; 144 145 } 146 while (n < lim2) 147 if (*n++) 148 return 0; 149 if (masks_are_equal && (longer < 0)) 150 for (lim2 = m - longer; m < lim2; ) 151 if (*m++) 152 return 1; 153 return (!masks_are_equal); 154 } 155 156 157 struct radix_node * 158 rn_match(v_arg, head) 159 void *v_arg; 160 struct radix_node_head *head; 161 { 162 caddr_t v = v_arg; 163 register struct radix_node *t = head->rnh_treetop, *x; 164 register caddr_t cp = v, cp2, cp3; 165 caddr_t cplim, mstart; 166 struct radix_node *saved_t, *top = t; 167 int off = t->rn_off, vlen = *(u_char *)cp, matched_off; 168 169 /* 170 * Open code rn_search(v, top) to avoid overhead of extra 171 * subroutine call. 172 */ 173 for (; t->rn_b >= 0; ) { 174 if (t->rn_bmask & cp[t->rn_off]) 175 t = t->rn_r; 176 else 177 t = t->rn_l; 178 } 179 /* 180 * See if we match exactly as a host destination 181 */ 182 cp += off; cp2 = t->rn_key + off; cplim = v + vlen; 183 for (; cp < cplim; cp++, cp2++) 184 if (*cp != *cp2) 185 goto on1; 186 /* 187 * This extra grot is in case we are explicitly asked 188 * to look up the default. Ugh! 189 */ 190 if ((t->rn_flags & RNF_ROOT) && t->rn_dupedkey) 191 t = t->rn_dupedkey; 192 return t; 193 on1: 194 matched_off = cp - v; 195 saved_t = t; 196 do { 197 if (t->rn_mask) { 198 /* 199 * Even if we don't match exactly as a hosts; 200 * we may match if the leaf we wound up at is 201 * a route to a net. 202 */ 203 cp3 = matched_off + t->rn_mask; 204 cp2 = matched_off + t->rn_key; 205 for (; cp < cplim; cp++) 206 if ((*cp2++ ^ *cp) & *cp3++) 207 break; 208 if (cp == cplim) 209 return t; 210 cp = matched_off + v; 211 } 212 } while (t = t->rn_dupedkey); 213 t = saved_t; 214 /* start searching up the tree */ 215 do { 216 register struct radix_mask *m; 217 t = t->rn_p; 218 if (m = t->rn_mklist) { 219 /* 220 * After doing measurements here, it may 221 * turn out to be faster to open code 222 * rn_search_m here instead of always 223 * copying and masking. 224 */ 225 off = min(t->rn_off, matched_off); 226 mstart = maskedKey + off; 227 do { 228 cp2 = mstart; 229 cp3 = m->rm_mask + off; 230 for (cp = v + off; cp < cplim;) 231 *cp2++ = *cp++ & *cp3++; 232 x = rn_search(maskedKey, t); 233 while (x && x->rn_mask != m->rm_mask) 234 x = x->rn_dupedkey; 235 if (x && 236 (Bcmp(mstart, x->rn_key + off, 237 vlen - off) == 0)) 238 return x; 239 } while (m = m->rm_mklist); 240 } 241 } while (t != top); 242 return 0; 243 }; 244 245 #ifdef RN_DEBUG 246 int rn_nodenum; 247 struct radix_node *rn_clist; 248 int rn_saveinfo; 249 int rn_debug = 1; 250 #endif 251 252 struct radix_node * 253 rn_newpair(v, b, nodes) 254 void *v; 255 int b; 256 struct radix_node nodes[2]; 257 { 258 register struct radix_node *tt = nodes, *t = tt + 1; 259 t->rn_b = b; t->rn_bmask = 0x80 >> (b & 7); 260 t->rn_l = tt; t->rn_off = b >> 3; 261 tt->rn_b = -1; tt->rn_key = (caddr_t)v; tt->rn_p = t; 262 tt->rn_flags = t->rn_flags = RNF_ACTIVE; 263 #ifdef RN_DEBUG 264 tt->rn_info = rn_nodenum++; t->rn_info = rn_nodenum++; 265 tt->rn_twin = t; tt->rn_ybro = rn_clist; rn_clist = tt; 266 #endif 267 return t; 268 } 269 270 struct radix_node * 271 rn_insert(v_arg, head, dupentry, nodes) 272 void *v_arg; 273 struct radix_node_head *head; 274 int *dupentry; 275 struct radix_node nodes[2]; 276 { 277 caddr_t v = v_arg; 278 struct radix_node *top = head->rnh_treetop; 279 int head_off = top->rn_off, vlen = (int)*((u_char *)v); 280 register struct radix_node *t = rn_search(v_arg, top); 281 register caddr_t cp = v + head_off; 282 register int b; 283 struct radix_node *tt; 284 /* 285 *find first bit at which v and t->rn_key differ 286 */ 287 { 288 register caddr_t cp2 = t->rn_key + head_off; 289 register int cmp_res; 290 caddr_t cplim = v + vlen; 291 292 while (cp < cplim) 293 if (*cp2++ != *cp++) 294 goto on1; 295 *dupentry = 1; 296 return t; 297 on1: 298 *dupentry = 0; 299 cmp_res = (cp[-1] ^ cp2[-1]) & 0xff; 300 for (b = (cp - v) << 3; cmp_res; b--) 301 cmp_res >>= 1; 302 } 303 { 304 register struct radix_node *p, *x = top; 305 cp = v; 306 do { 307 p = x; 308 if (cp[x->rn_off] & x->rn_bmask) 309 x = x->rn_r; 310 else x = x->rn_l; 311 } while (b > (unsigned) x->rn_b); /* x->rn_b < b && x->rn_b >= 0 */ 312 #ifdef RN_DEBUG 313 if (rn_debug) 314 printf("Going In:\n"), traverse(p); 315 #endif 316 t = rn_newpair(v_arg, b, nodes); tt = t->rn_l; 317 if ((cp[p->rn_off] & p->rn_bmask) == 0) 318 p->rn_l = t; 319 else 320 p->rn_r = t; 321 x->rn_p = t; t->rn_p = p; /* frees x, p as temp vars below */ 322 if ((cp[t->rn_off] & t->rn_bmask) == 0) { 323 t->rn_r = x; 324 } else { 325 t->rn_r = tt; t->rn_l = x; 326 } 327 #ifdef RN_DEBUG 328 if (rn_debug) 329 printf("Coming out:\n"), traverse(p); 330 #endif 331 } 332 return (tt); 333 } 334 335 struct radix_node * 336 rn_addmask(n_arg, search, skip) 337 int search, skip; 338 void *n_arg; 339 { 340 caddr_t netmask = (caddr_t)n_arg; 341 register struct radix_node *x; 342 register caddr_t cp, cplim; 343 register int b, mlen, j; 344 int maskduplicated; 345 346 mlen = *(u_char *)netmask; 347 if (search) { 348 x = rn_search(netmask, rn_masktop); 349 mlen = *(u_char *)netmask; 350 if (Bcmp(netmask, x->rn_key, mlen) == 0) 351 return (x); 352 } 353 R_Malloc(x, struct radix_node *, max_keylen + 2 * sizeof (*x)); 354 if (x == 0) 355 return (0); 356 Bzero(x, max_keylen + 2 * sizeof (*x)); 357 cp = (caddr_t)(x + 2); 358 Bcopy(netmask, cp, mlen); 359 netmask = cp; 360 x = rn_insert(netmask, mask_rnhead, &maskduplicated, x); 361 /* 362 * Calculate index of mask. 363 */ 364 cplim = netmask + mlen; 365 for (cp = netmask + skip; cp < cplim; cp++) 366 if (*(u_char *)cp != 0xff) 367 break; 368 b = (cp - netmask) << 3; 369 if (cp != cplim) { 370 if (*cp != 0) { 371 gotOddMasks = 1; 372 for (j = 0x80; j; b++, j >>= 1) 373 if ((j & *cp) == 0) 374 break; 375 } 376 } 377 x->rn_b = -1 - b; 378 return (x); 379 } 380 381 struct radix_node * 382 rn_addroute(v_arg, n_arg, head, treenodes) 383 void *v_arg, *n_arg; 384 struct radix_node_head *head; 385 struct radix_node treenodes[2]; 386 { 387 caddr_t v = (caddr_t)v_arg, netmask = (caddr_t)n_arg; 388 register struct radix_node *t, *x, *tt; 389 struct radix_node *saved_tt, *top = head->rnh_treetop; 390 short b = 0, b_leaf; 391 int mlen, keyduplicated; 392 caddr_t cplim; 393 struct radix_mask *m, **mp; 394 395 /* 396 * In dealing with non-contiguous masks, there may be 397 * many different routes which have the same mask. 398 * We will find it useful to have a unique pointer to 399 * the mask to speed avoiding duplicate references at 400 * nodes and possibly save time in calculating indices. 401 */ 402 if (netmask) { 403 x = rn_search(netmask, rn_masktop); 404 mlen = *(u_char *)netmask; 405 if (Bcmp(netmask, x->rn_key, mlen) != 0) { 406 x = rn_addmask(netmask, 0, top->rn_off); 407 if (x == 0) 408 return (0); 409 } 410 netmask = x->rn_key; 411 b = -1 - x->rn_b; 412 } 413 /* 414 * Deal with duplicated keys: attach node to previous instance 415 */ 416 saved_tt = tt = rn_insert(v, head, &keyduplicated, treenodes); 417 if (keyduplicated) { 418 do { 419 if (tt->rn_mask == netmask) 420 return (0); 421 t = tt; 422 if (netmask == 0 || 423 (tt->rn_mask && rn_refines(netmask, tt->rn_mask))) 424 break; 425 } while (tt = tt->rn_dupedkey); 426 /* 427 * If the mask is not duplicated, we wouldn't 428 * find it among possible duplicate key entries 429 * anyway, so the above test doesn't hurt. 430 * 431 * We sort the masks for a duplicated key the same way as 432 * in a masklist -- most specific to least specific. 433 * This may require the unfortunate nuisance of relocating 434 * the head of the list. 435 */ 436 if (tt && t == saved_tt) { 437 struct radix_node *xx = x; 438 /* link in at head of list */ 439 (tt = treenodes)->rn_dupedkey = t; 440 tt->rn_flags = t->rn_flags; 441 tt->rn_p = x = t->rn_p; 442 if (x->rn_l == t) x->rn_l = tt; else x->rn_r = tt; 443 saved_tt = tt; x = xx; 444 } else { 445 (tt = treenodes)->rn_dupedkey = t->rn_dupedkey; 446 t->rn_dupedkey = tt; 447 } 448 #ifdef RN_DEBUG 449 t=tt+1; tt->rn_info = rn_nodenum++; t->rn_info = rn_nodenum++; 450 tt->rn_twin = t; tt->rn_ybro = rn_clist; rn_clist = tt; 451 #endif 452 t = saved_tt; 453 tt->rn_key = (caddr_t) v; 454 tt->rn_b = -1; 455 tt->rn_flags = t->rn_flags & ~RNF_ROOT; 456 } 457 /* 458 * Put mask in tree. 459 */ 460 if (netmask) { 461 tt->rn_mask = netmask; 462 tt->rn_b = x->rn_b; 463 } 464 t = saved_tt->rn_p; 465 b_leaf = -1 - t->rn_b; 466 if (t->rn_r == saved_tt) x = t->rn_l; else x = t->rn_r; 467 /* Promote general routes from below */ 468 if (x->rn_b < 0) { 469 if (x->rn_mask && (x->rn_b >= b_leaf) && x->rn_mklist == 0) { 470 MKGet(m); 471 if (m) { 472 Bzero(m, sizeof *m); 473 m->rm_b = x->rn_b; 474 m->rm_mask = x->rn_mask; 475 x->rn_mklist = t->rn_mklist = m; 476 } 477 } 478 } else if (x->rn_mklist) { 479 /* 480 * Skip over masks whose index is > that of new node 481 */ 482 for (mp = &x->rn_mklist; m = *mp; mp = &m->rm_mklist) 483 if (m->rm_b >= b_leaf) 484 break; 485 t->rn_mklist = m; *mp = 0; 486 } 487 /* Add new route to highest possible ancestor's list */ 488 if ((netmask == 0) || (b > t->rn_b )) 489 return tt; /* can't lift at all */ 490 b_leaf = tt->rn_b; 491 do { 492 x = t; 493 t = t->rn_p; 494 } while (b <= t->rn_b && x != top); 495 /* 496 * Search through routes associated with node to 497 * insert new route according to index. 498 * For nodes of equal index, place more specific 499 * masks first. 500 */ 501 cplim = netmask + mlen; 502 for (mp = &x->rn_mklist; m = *mp; mp = &m->rm_mklist) { 503 if (m->rm_b < b_leaf) 504 continue; 505 if (m->rm_b > b_leaf) 506 break; 507 if (m->rm_mask == netmask) { 508 m->rm_refs++; 509 tt->rn_mklist = m; 510 return tt; 511 } 512 if (rn_refines(netmask, m->rm_mask)) 513 break; 514 } 515 MKGet(m); 516 if (m == 0) { 517 printf("Mask for route not entered\n"); 518 return (tt); 519 } 520 Bzero(m, sizeof *m); 521 m->rm_b = b_leaf; 522 m->rm_mask = netmask; 523 m->rm_mklist = *mp; 524 *mp = m; 525 tt->rn_mklist = m; 526 return tt; 527 } 528 529 struct radix_node * 530 rn_delete(v_arg, netmask_arg, head) 531 void *v_arg, *netmask_arg; 532 struct radix_node_head *head; 533 { 534 register struct radix_node *t, *p, *x, *tt; 535 struct radix_mask *m, *saved_m, **mp; 536 struct radix_node *dupedkey, *saved_tt, *top; 537 caddr_t v, netmask; 538 int b, head_off, vlen; 539 540 v = v_arg; 541 netmask = netmask_arg; 542 x = head->rnh_treetop; 543 tt = rn_search(v, x); 544 head_off = x->rn_off; 545 vlen = *(u_char *)v; 546 saved_tt = tt; 547 top = x; 548 if (tt == 0 || 549 Bcmp(v + head_off, tt->rn_key + head_off, vlen - head_off)) 550 return (0); 551 /* 552 * Delete our route from mask lists. 553 */ 554 if (dupedkey = tt->rn_dupedkey) { 555 if (netmask) 556 netmask = rn_search(netmask, rn_masktop)->rn_key; 557 while (tt->rn_mask != netmask) 558 if ((tt = tt->rn_dupedkey) == 0) 559 return (0); 560 } 561 if (tt->rn_mask == 0 || (saved_m = m = tt->rn_mklist) == 0) 562 goto on1; 563 if (m->rm_mask != tt->rn_mask) { 564 printf("rn_delete: inconsistent annotation\n"); 565 goto on1; 566 } 567 if (--m->rm_refs >= 0) 568 goto on1; 569 b = -1 - tt->rn_b; 570 t = saved_tt->rn_p; 571 if (b > t->rn_b) 572 goto on1; /* Wasn't lifted at all */ 573 do { 574 x = t; 575 t = t->rn_p; 576 } while (b <= t->rn_b && x != top); 577 for (mp = &x->rn_mklist; m = *mp; mp = &m->rm_mklist) 578 if (m == saved_m) { 579 *mp = m->rm_mklist; 580 MKFree(m); 581 break; 582 } 583 if (m == 0) 584 printf("rn_delete: couldn't find our annotation\n"); 585 on1: 586 /* 587 * Eliminate us from tree 588 */ 589 if (tt->rn_flags & RNF_ROOT) 590 return (0); 591 #ifdef RN_DEBUG 592 /* Get us out of the creation list */ 593 for (t = rn_clist; t && t->rn_ybro != tt; t = t->rn_ybro) {} 594 if (t) t->rn_ybro = tt->rn_ybro; 595 #endif 596 t = tt->rn_p; 597 if (dupedkey) { 598 if (tt == saved_tt) { 599 x = dupedkey; x->rn_p = t; 600 if (t->rn_l == tt) t->rn_l = x; else t->rn_r = x; 601 } else { 602 for (x = p = saved_tt; p && p->rn_dupedkey != tt;) 603 p = p->rn_dupedkey; 604 if (p) p->rn_dupedkey = tt->rn_dupedkey; 605 else printf("rn_delete: couldn't find us\n"); 606 } 607 t = tt + 1; 608 if (t->rn_flags & RNF_ACTIVE) { 609 #ifndef RN_DEBUG 610 *++x = *t; p = t->rn_p; 611 #else 612 b = t->rn_info; *++x = *t; t->rn_info = b; p = t->rn_p; 613 #endif 614 if (p->rn_l == t) p->rn_l = x; else p->rn_r = x; 615 x->rn_l->rn_p = x; x->rn_r->rn_p = x; 616 } 617 goto out; 618 } 619 if (t->rn_l == tt) x = t->rn_r; else x = t->rn_l; 620 p = t->rn_p; 621 if (p->rn_r == t) p->rn_r = x; else p->rn_l = x; 622 x->rn_p = p; 623 /* 624 * Demote routes attached to us. 625 */ 626 if (t->rn_mklist) { 627 if (x->rn_b >= 0) { 628 for (mp = &x->rn_mklist; m = *mp;) 629 mp = &m->rm_mklist; 630 *mp = t->rn_mklist; 631 } else { 632 for (m = t->rn_mklist; m;) { 633 struct radix_mask *mm = m->rm_mklist; 634 if (m == x->rn_mklist && (--(m->rm_refs) < 0)) { 635 x->rn_mklist = 0; 636 MKFree(m); 637 } else 638 printf("%s %x at %x\n", 639 "rn_delete: Orphaned Mask", m, x); 640 m = mm; 641 } 642 } 643 } 644 /* 645 * We may be holding an active internal node in the tree. 646 */ 647 x = tt + 1; 648 if (t != x) { 649 #ifndef RN_DEBUG 650 *t = *x; 651 #else 652 b = t->rn_info; *t = *x; t->rn_info = b; 653 #endif 654 t->rn_l->rn_p = t; t->rn_r->rn_p = t; 655 p = x->rn_p; 656 if (p->rn_l == x) p->rn_l = t; else p->rn_r = t; 657 } 658 out: 659 tt->rn_flags &= ~RNF_ACTIVE; 660 tt[1].rn_flags &= ~RNF_ACTIVE; 661 return (tt); 662 } 663 664 int 665 rn_walktree(h, f, w) 666 struct radix_node_head *h; 667 register int (*f)(); 668 void *w; 669 { 670 int error; 671 struct radix_node *base, *next; 672 register struct radix_node *rn = h->rnh_treetop; 673 /* 674 * This gets complicated because we may delete the node 675 * while applying the function f to it, so we need to calculate 676 * the successor node in advance. 677 */ 678 /* First time through node, go left */ 679 while (rn->rn_b >= 0) 680 rn = rn->rn_l; 681 for (;;) { 682 base = rn; 683 /* If at right child go back up, otherwise, go right */ 684 while (rn->rn_p->rn_r == rn && (rn->rn_flags & RNF_ROOT) == 0) 685 rn = rn->rn_p; 686 /* Find the next *leaf* since next node might vanish, too */ 687 for (rn = rn->rn_p->rn_r; rn->rn_b >= 0;) 688 rn = rn->rn_l; 689 next = rn; 690 /* Process leaves */ 691 while (rn = base) { 692 base = rn->rn_dupedkey; 693 if (!(rn->rn_flags & RNF_ROOT) && (error = (*f)(rn, w))) 694 return (error); 695 } 696 rn = next; 697 if (rn->rn_flags & RNF_ROOT) 698 return (0); 699 } 700 /* NOTREACHED */ 701 } 702 703 int 704 rn_inithead(head, off) 705 void **head; 706 int off; 707 { 708 register struct radix_node_head *rnh; 709 register struct radix_node *t, *tt, *ttt; 710 if (*head) 711 return (1); 712 R_Malloc(rnh, struct radix_node_head *, sizeof (*rnh)); 713 if (rnh == 0) 714 return (0); 715 Bzero(rnh, sizeof (*rnh)); 716 *head = rnh; 717 t = rn_newpair(rn_zeros, off, rnh->rnh_nodes); 718 ttt = rnh->rnh_nodes + 2; 719 t->rn_r = ttt; 720 t->rn_p = t; 721 tt = t->rn_l; 722 tt->rn_flags = t->rn_flags = RNF_ROOT | RNF_ACTIVE; 723 tt->rn_b = -1 - off; 724 *ttt = *tt; 725 ttt->rn_key = rn_ones; 726 rnh->rnh_addaddr = rn_addroute; 727 rnh->rnh_deladdr = rn_delete; 728 rnh->rnh_matchaddr = rn_match; 729 rnh->rnh_walktree = rn_walktree; 730 rnh->rnh_treetop = t; 731 return (1); 732 } 733 734 void 735 rn_init() 736 { 737 char *cp, *cplim; 738 #ifdef KERNEL 739 struct domain *dom; 740 741 for (dom = domains; dom; dom = dom->dom_next) 742 if (dom->dom_maxrtkey > max_keylen) 743 max_keylen = dom->dom_maxrtkey; 744 #endif 745 if (max_keylen == 0) { 746 printf("rn_init: radix functions require max_keylen be set\n"); 747 return; 748 } 749 R_Malloc(rn_zeros, char *, 3 * max_keylen); 750 if (rn_zeros == NULL) 751 panic("rn_init"); 752 Bzero(rn_zeros, 3 * max_keylen); 753 rn_ones = cp = rn_zeros + max_keylen; 754 maskedKey = cplim = rn_ones + max_keylen; 755 while (cp < cplim) 756 *cp++ = -1; 757 if (rn_inithead((void **)&mask_rnhead, 0) == 0) 758 panic("rn_init 2"); 759 } 760