radix.c revision 1.17 1 1.17 itojun /* $NetBSD: radix.c,v 1.17 2001/01/10 01:16:59 itojun Exp $ */
2 1.7 cgd
3 1.1 cgd /*
4 1.6 mycroft * Copyright (c) 1988, 1989, 1993
5 1.6 mycroft * The Regents of the University of California. All rights reserved.
6 1.1 cgd *
7 1.1 cgd * Redistribution and use in source and binary forms, with or without
8 1.1 cgd * modification, are permitted provided that the following conditions
9 1.1 cgd * are met:
10 1.1 cgd * 1. Redistributions of source code must retain the above copyright
11 1.1 cgd * notice, this list of conditions and the following disclaimer.
12 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 cgd * notice, this list of conditions and the following disclaimer in the
14 1.1 cgd * documentation and/or other materials provided with the distribution.
15 1.1 cgd * 3. All advertising materials mentioning features or use of this software
16 1.1 cgd * must display the following acknowledgement:
17 1.1 cgd * This product includes software developed by the University of
18 1.1 cgd * California, Berkeley and its contributors.
19 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
20 1.1 cgd * may be used to endorse or promote products derived from this software
21 1.1 cgd * without specific prior written permission.
22 1.1 cgd *
23 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 cgd * SUCH DAMAGE.
34 1.1 cgd *
35 1.13 fvdl * @(#)radix.c 8.6 (Berkeley) 10/17/95
36 1.1 cgd */
37 1.1 cgd
38 1.1 cgd /*
39 1.1 cgd * Routines to build and maintain radix trees for routing lookups.
40 1.1 cgd */
41 1.12 christos #ifndef _NET_RADIX_H_
42 1.4 mycroft #include <sys/param.h>
43 1.12 christos #ifdef _KERNEL
44 1.4 mycroft #include <sys/systm.h>
45 1.4 mycroft #include <sys/malloc.h>
46 1.1 cgd #define M_DONTWAIT M_NOWAIT
47 1.6 mycroft #include <sys/domain.h>
48 1.9 mycroft #else
49 1.9 mycroft #include <stdlib.h>
50 1.6 mycroft #endif
51 1.9 mycroft #include <sys/syslog.h>
52 1.4 mycroft #include <net/radix.h>
53 1.12 christos #endif
54 1.6 mycroft
55 1.6 mycroft int max_keylen;
56 1.6 mycroft struct radix_mask *rn_mkfreelist;
57 1.1 cgd struct radix_node_head *mask_rnhead;
58 1.9 mycroft static char *addmask_key;
59 1.9 mycroft static char normal_chars[] = {0, 0x80, 0xc0, 0xe0, 0xf0, 0xf8, 0xfc, 0xfe, -1};
60 1.6 mycroft static char *rn_zeros, *rn_ones;
61 1.6 mycroft
62 1.6 mycroft #define rn_masktop (mask_rnhead->rnh_treetop)
63 1.1 cgd #undef Bcmp
64 1.1 cgd #define Bcmp(a, b, l) (l == 0 ? 0 : bcmp((caddr_t)(a), (caddr_t)(b), (u_long)l))
65 1.10 christos
66 1.15 itojun static int rn_satisfies_leaf __P((char *, struct radix_node *, int));
67 1.10 christos static int rn_lexobetter __P((void *, void *));
68 1.10 christos static struct radix_mask *rn_new_radix_mask __P((struct radix_node *,
69 1.12 christos struct radix_mask *));
70 1.12 christos
71 1.1 cgd /*
72 1.1 cgd * The data structure for the keys is a radix tree with one way
73 1.1 cgd * branching removed. The index rn_b at an internal node n represents a bit
74 1.1 cgd * position to be tested. The tree is arranged so that all descendants
75 1.1 cgd * of a node n have keys whose bits all agree up to position rn_b - 1.
76 1.1 cgd * (We say the index of n is rn_b.)
77 1.1 cgd *
78 1.1 cgd * There is at least one descendant which has a one bit at position rn_b,
79 1.1 cgd * and at least one with a zero there.
80 1.1 cgd *
81 1.1 cgd * A route is determined by a pair of key and mask. We require that the
82 1.1 cgd * bit-wise logical and of the key and mask to be the key.
83 1.1 cgd * We define the index of a route to associated with the mask to be
84 1.1 cgd * the first bit number in the mask where 0 occurs (with bit number 0
85 1.1 cgd * representing the highest order bit).
86 1.1 cgd *
87 1.1 cgd * We say a mask is normal if every bit is 0, past the index of the mask.
88 1.1 cgd * If a node n has a descendant (k, m) with index(m) == index(n) == rn_b,
89 1.1 cgd * and m is a normal mask, then the route applies to every descendant of n.
90 1.1 cgd * If the index(m) < rn_b, this implies the trailing last few bits of k
91 1.1 cgd * before bit b are all 0, (and hence consequently true of every descendant
92 1.1 cgd * of n), so the route applies to all descendants of the node as well.
93 1.9 mycroft *
94 1.9 mycroft * Similar logic shows that a non-normal mask m such that
95 1.1 cgd * index(m) <= index(n) could potentially apply to many children of n.
96 1.1 cgd * Thus, for each non-host route, we attach its mask to a list at an internal
97 1.1 cgd * node as high in the tree as we can go.
98 1.9 mycroft *
99 1.9 mycroft * The present version of the code makes use of normal routes in short-
100 1.9 mycroft * circuiting an explict mask and compare operation when testing whether
101 1.9 mycroft * a key satisfies a normal route, and also in remembering the unique leaf
102 1.9 mycroft * that governs a subtree.
103 1.1 cgd */
104 1.1 cgd
105 1.1 cgd struct radix_node *
106 1.6 mycroft rn_search(v_arg, head)
107 1.6 mycroft void *v_arg;
108 1.1 cgd struct radix_node *head;
109 1.1 cgd {
110 1.14 augustss struct radix_node *x;
111 1.14 augustss caddr_t v;
112 1.1 cgd
113 1.6 mycroft for (x = head, v = v_arg; x->rn_b >= 0;) {
114 1.1 cgd if (x->rn_bmask & v[x->rn_off])
115 1.1 cgd x = x->rn_r;
116 1.1 cgd else
117 1.1 cgd x = x->rn_l;
118 1.1 cgd }
119 1.6 mycroft return (x);
120 1.13 fvdl }
121 1.1 cgd
122 1.1 cgd struct radix_node *
123 1.6 mycroft rn_search_m(v_arg, head, m_arg)
124 1.1 cgd struct radix_node *head;
125 1.6 mycroft void *v_arg, *m_arg;
126 1.1 cgd {
127 1.14 augustss struct radix_node *x;
128 1.14 augustss caddr_t v = v_arg, m = m_arg;
129 1.1 cgd
130 1.1 cgd for (x = head; x->rn_b >= 0;) {
131 1.1 cgd if ((x->rn_bmask & m[x->rn_off]) &&
132 1.1 cgd (x->rn_bmask & v[x->rn_off]))
133 1.1 cgd x = x->rn_r;
134 1.1 cgd else
135 1.1 cgd x = x->rn_l;
136 1.1 cgd }
137 1.1 cgd return x;
138 1.13 fvdl }
139 1.1 cgd
140 1.6 mycroft int
141 1.6 mycroft rn_refines(m_arg, n_arg)
142 1.6 mycroft void *m_arg, *n_arg;
143 1.6 mycroft {
144 1.14 augustss caddr_t m = m_arg, n = n_arg;
145 1.14 augustss caddr_t lim, lim2 = lim = n + *(u_char *)n;
146 1.6 mycroft int longer = (*(u_char *)n++) - (int)(*(u_char *)m++);
147 1.6 mycroft int masks_are_equal = 1;
148 1.6 mycroft
149 1.6 mycroft if (longer > 0)
150 1.6 mycroft lim -= longer;
151 1.6 mycroft while (n < lim) {
152 1.6 mycroft if (*n & ~(*m))
153 1.6 mycroft return 0;
154 1.6 mycroft if (*n++ != *m++)
155 1.6 mycroft masks_are_equal = 0;
156 1.6 mycroft }
157 1.6 mycroft while (n < lim2)
158 1.6 mycroft if (*n++)
159 1.6 mycroft return 0;
160 1.6 mycroft if (masks_are_equal && (longer < 0))
161 1.6 mycroft for (lim2 = m - longer; m < lim2; )
162 1.6 mycroft if (*m++)
163 1.6 mycroft return 1;
164 1.6 mycroft return (!masks_are_equal);
165 1.6 mycroft }
166 1.1 cgd
167 1.9 mycroft struct radix_node *
168 1.9 mycroft rn_lookup(v_arg, m_arg, head)
169 1.9 mycroft void *v_arg, *m_arg;
170 1.9 mycroft struct radix_node_head *head;
171 1.9 mycroft {
172 1.14 augustss struct radix_node *x;
173 1.9 mycroft caddr_t netmask = 0;
174 1.9 mycroft
175 1.9 mycroft if (m_arg) {
176 1.9 mycroft if ((x = rn_addmask(m_arg, 1, head->rnh_treetop->rn_off)) == 0)
177 1.9 mycroft return (0);
178 1.9 mycroft netmask = x->rn_key;
179 1.9 mycroft }
180 1.9 mycroft x = rn_match(v_arg, head);
181 1.9 mycroft if (x && netmask) {
182 1.9 mycroft while (x && x->rn_mask != netmask)
183 1.9 mycroft x = x->rn_dupedkey;
184 1.9 mycroft }
185 1.9 mycroft return x;
186 1.9 mycroft }
187 1.9 mycroft
188 1.10 christos static int
189 1.15 itojun rn_satisfies_leaf(trial, leaf, skip)
190 1.9 mycroft char *trial;
191 1.14 augustss struct radix_node *leaf;
192 1.9 mycroft int skip;
193 1.9 mycroft {
194 1.14 augustss char *cp = trial, *cp2 = leaf->rn_key, *cp3 = leaf->rn_mask;
195 1.9 mycroft char *cplim;
196 1.9 mycroft int length = min(*(u_char *)cp, *(u_char *)cp2);
197 1.9 mycroft
198 1.9 mycroft if (cp3 == 0)
199 1.9 mycroft cp3 = rn_ones;
200 1.9 mycroft else
201 1.9 mycroft length = min(length, *(u_char *)cp3);
202 1.9 mycroft cplim = cp + length; cp3 += skip; cp2 += skip;
203 1.9 mycroft for (cp += skip; cp < cplim; cp++, cp2++, cp3++)
204 1.9 mycroft if ((*cp ^ *cp2) & *cp3)
205 1.9 mycroft return 0;
206 1.9 mycroft return 1;
207 1.9 mycroft }
208 1.1 cgd
209 1.1 cgd struct radix_node *
210 1.6 mycroft rn_match(v_arg, head)
211 1.6 mycroft void *v_arg;
212 1.6 mycroft struct radix_node_head *head;
213 1.1 cgd {
214 1.6 mycroft caddr_t v = v_arg;
215 1.14 augustss struct radix_node *t = head->rnh_treetop, *x;
216 1.14 augustss caddr_t cp = v, cp2;
217 1.9 mycroft caddr_t cplim;
218 1.6 mycroft struct radix_node *saved_t, *top = t;
219 1.1 cgd int off = t->rn_off, vlen = *(u_char *)cp, matched_off;
220 1.14 augustss int test, b, rn_b;
221 1.1 cgd
222 1.1 cgd /*
223 1.6 mycroft * Open code rn_search(v, top) to avoid overhead of extra
224 1.1 cgd * subroutine call.
225 1.1 cgd */
226 1.1 cgd for (; t->rn_b >= 0; ) {
227 1.1 cgd if (t->rn_bmask & cp[t->rn_off])
228 1.1 cgd t = t->rn_r;
229 1.1 cgd else
230 1.1 cgd t = t->rn_l;
231 1.1 cgd }
232 1.1 cgd /*
233 1.1 cgd * See if we match exactly as a host destination
234 1.9 mycroft * or at least learn how many bits match, for normal mask finesse.
235 1.9 mycroft *
236 1.9 mycroft * It doesn't hurt us to limit how many bytes to check
237 1.9 mycroft * to the length of the mask, since if it matches we had a genuine
238 1.9 mycroft * match and the leaf we have is the most specific one anyway;
239 1.9 mycroft * if it didn't match with a shorter length it would fail
240 1.9 mycroft * with a long one. This wins big for class B&C netmasks which
241 1.9 mycroft * are probably the most common case...
242 1.1 cgd */
243 1.9 mycroft if (t->rn_mask)
244 1.9 mycroft vlen = *(u_char *)t->rn_mask;
245 1.1 cgd cp += off; cp2 = t->rn_key + off; cplim = v + vlen;
246 1.1 cgd for (; cp < cplim; cp++, cp2++)
247 1.1 cgd if (*cp != *cp2)
248 1.1 cgd goto on1;
249 1.1 cgd /*
250 1.1 cgd * This extra grot is in case we are explicitly asked
251 1.1 cgd * to look up the default. Ugh!
252 1.1 cgd */
253 1.1 cgd if ((t->rn_flags & RNF_ROOT) && t->rn_dupedkey)
254 1.1 cgd t = t->rn_dupedkey;
255 1.1 cgd return t;
256 1.1 cgd on1:
257 1.9 mycroft test = (*cp ^ *cp2) & 0xff; /* find first bit that differs */
258 1.9 mycroft for (b = 7; (test >>= 1) > 0;)
259 1.9 mycroft b--;
260 1.1 cgd matched_off = cp - v;
261 1.9 mycroft b += matched_off << 3;
262 1.9 mycroft rn_b = -1 - b;
263 1.9 mycroft /*
264 1.9 mycroft * If there is a host route in a duped-key chain, it will be first.
265 1.9 mycroft */
266 1.9 mycroft if ((saved_t = t)->rn_mask == 0)
267 1.9 mycroft t = t->rn_dupedkey;
268 1.9 mycroft for (; t; t = t->rn_dupedkey)
269 1.1 cgd /*
270 1.9 mycroft * Even if we don't match exactly as a host,
271 1.1 cgd * we may match if the leaf we wound up at is
272 1.1 cgd * a route to a net.
273 1.1 cgd */
274 1.9 mycroft if (t->rn_flags & RNF_NORMAL) {
275 1.9 mycroft if (rn_b <= t->rn_b)
276 1.9 mycroft return t;
277 1.15 itojun } else if (rn_satisfies_leaf(v, t, matched_off))
278 1.9 mycroft return t;
279 1.1 cgd t = saved_t;
280 1.1 cgd /* start searching up the tree */
281 1.1 cgd do {
282 1.14 augustss struct radix_mask *m;
283 1.1 cgd t = t->rn_p;
284 1.12 christos m = t->rn_mklist;
285 1.12 christos if (m) {
286 1.1 cgd /*
287 1.9 mycroft * If non-contiguous masks ever become important
288 1.9 mycroft * we can restore the masking and open coding of
289 1.9 mycroft * the search and satisfaction test and put the
290 1.9 mycroft * calculation of "off" back before the "do".
291 1.1 cgd */
292 1.1 cgd do {
293 1.9 mycroft if (m->rm_flags & RNF_NORMAL) {
294 1.9 mycroft if (rn_b <= m->rm_b)
295 1.9 mycroft return (m->rm_leaf);
296 1.9 mycroft } else {
297 1.9 mycroft off = min(t->rn_off, matched_off);
298 1.9 mycroft x = rn_search_m(v, t, m->rm_mask);
299 1.9 mycroft while (x && x->rn_mask != m->rm_mask)
300 1.9 mycroft x = x->rn_dupedkey;
301 1.15 itojun if (x && rn_satisfies_leaf(v, x, off))
302 1.17 itojun return x;
303 1.9 mycroft }
304 1.15 itojun m = m->rm_mklist;
305 1.12 christos } while (m);
306 1.1 cgd }
307 1.6 mycroft } while (t != top);
308 1.1 cgd return 0;
309 1.13 fvdl }
310 1.1 cgd
311 1.1 cgd #ifdef RN_DEBUG
312 1.1 cgd int rn_nodenum;
313 1.1 cgd struct radix_node *rn_clist;
314 1.1 cgd int rn_saveinfo;
315 1.6 mycroft int rn_debug = 1;
316 1.1 cgd #endif
317 1.1 cgd
318 1.1 cgd struct radix_node *
319 1.1 cgd rn_newpair(v, b, nodes)
320 1.6 mycroft void *v;
321 1.6 mycroft int b;
322 1.1 cgd struct radix_node nodes[2];
323 1.1 cgd {
324 1.14 augustss struct radix_node *tt = nodes, *t = tt + 1;
325 1.1 cgd t->rn_b = b; t->rn_bmask = 0x80 >> (b & 7);
326 1.1 cgd t->rn_l = tt; t->rn_off = b >> 3;
327 1.6 mycroft tt->rn_b = -1; tt->rn_key = (caddr_t)v; tt->rn_p = t;
328 1.1 cgd tt->rn_flags = t->rn_flags = RNF_ACTIVE;
329 1.1 cgd #ifdef RN_DEBUG
330 1.1 cgd tt->rn_info = rn_nodenum++; t->rn_info = rn_nodenum++;
331 1.1 cgd tt->rn_twin = t; tt->rn_ybro = rn_clist; rn_clist = tt;
332 1.1 cgd #endif
333 1.1 cgd return t;
334 1.1 cgd }
335 1.1 cgd
336 1.1 cgd struct radix_node *
337 1.6 mycroft rn_insert(v_arg, head, dupentry, nodes)
338 1.6 mycroft void *v_arg;
339 1.6 mycroft struct radix_node_head *head;
340 1.1 cgd int *dupentry;
341 1.1 cgd struct radix_node nodes[2];
342 1.1 cgd {
343 1.6 mycroft caddr_t v = v_arg;
344 1.6 mycroft struct radix_node *top = head->rnh_treetop;
345 1.6 mycroft int head_off = top->rn_off, vlen = (int)*((u_char *)v);
346 1.14 augustss struct radix_node *t = rn_search(v_arg, top);
347 1.14 augustss caddr_t cp = v + head_off;
348 1.14 augustss int b;
349 1.1 cgd struct radix_node *tt;
350 1.1 cgd /*
351 1.9 mycroft * Find first bit at which v and t->rn_key differ
352 1.1 cgd */
353 1.1 cgd {
354 1.14 augustss caddr_t cp2 = t->rn_key + head_off;
355 1.14 augustss int cmp_res;
356 1.1 cgd caddr_t cplim = v + vlen;
357 1.1 cgd
358 1.1 cgd while (cp < cplim)
359 1.1 cgd if (*cp2++ != *cp++)
360 1.1 cgd goto on1;
361 1.1 cgd *dupentry = 1;
362 1.1 cgd return t;
363 1.1 cgd on1:
364 1.1 cgd *dupentry = 0;
365 1.1 cgd cmp_res = (cp[-1] ^ cp2[-1]) & 0xff;
366 1.1 cgd for (b = (cp - v) << 3; cmp_res; b--)
367 1.1 cgd cmp_res >>= 1;
368 1.1 cgd }
369 1.1 cgd {
370 1.14 augustss struct radix_node *p, *x = top;
371 1.1 cgd cp = v;
372 1.1 cgd do {
373 1.1 cgd p = x;
374 1.1 cgd if (cp[x->rn_off] & x->rn_bmask)
375 1.1 cgd x = x->rn_r;
376 1.1 cgd else x = x->rn_l;
377 1.1 cgd } while (b > (unsigned) x->rn_b); /* x->rn_b < b && x->rn_b >= 0 */
378 1.1 cgd #ifdef RN_DEBUG
379 1.1 cgd if (rn_debug)
380 1.9 mycroft log(LOG_DEBUG, "rn_insert: Going In:\n"), traverse(p);
381 1.1 cgd #endif
382 1.6 mycroft t = rn_newpair(v_arg, b, nodes); tt = t->rn_l;
383 1.1 cgd if ((cp[p->rn_off] & p->rn_bmask) == 0)
384 1.1 cgd p->rn_l = t;
385 1.1 cgd else
386 1.1 cgd p->rn_r = t;
387 1.1 cgd x->rn_p = t; t->rn_p = p; /* frees x, p as temp vars below */
388 1.1 cgd if ((cp[t->rn_off] & t->rn_bmask) == 0) {
389 1.1 cgd t->rn_r = x;
390 1.1 cgd } else {
391 1.1 cgd t->rn_r = tt; t->rn_l = x;
392 1.1 cgd }
393 1.1 cgd #ifdef RN_DEBUG
394 1.1 cgd if (rn_debug)
395 1.9 mycroft log(LOG_DEBUG, "rn_insert: Coming Out:\n"), traverse(p);
396 1.1 cgd #endif
397 1.1 cgd }
398 1.1 cgd return (tt);
399 1.1 cgd }
400 1.1 cgd
401 1.1 cgd struct radix_node *
402 1.6 mycroft rn_addmask(n_arg, search, skip)
403 1.6 mycroft int search, skip;
404 1.6 mycroft void *n_arg;
405 1.1 cgd {
406 1.6 mycroft caddr_t netmask = (caddr_t)n_arg;
407 1.14 augustss struct radix_node *x;
408 1.14 augustss caddr_t cp, cplim;
409 1.14 augustss int b = 0, mlen, j;
410 1.9 mycroft int maskduplicated, m0, isnormal;
411 1.9 mycroft struct radix_node *saved_x;
412 1.9 mycroft static int last_zeroed = 0;
413 1.9 mycroft
414 1.9 mycroft if ((mlen = *(u_char *)netmask) > max_keylen)
415 1.9 mycroft mlen = max_keylen;
416 1.9 mycroft if (skip == 0)
417 1.9 mycroft skip = 1;
418 1.9 mycroft if (mlen <= skip)
419 1.9 mycroft return (mask_rnhead->rnh_nodes);
420 1.9 mycroft if (skip > 1)
421 1.9 mycroft Bcopy(rn_ones + 1, addmask_key + 1, skip - 1);
422 1.9 mycroft if ((m0 = mlen) > skip)
423 1.9 mycroft Bcopy(netmask + skip, addmask_key + skip, mlen - skip);
424 1.9 mycroft /*
425 1.9 mycroft * Trim trailing zeroes.
426 1.9 mycroft */
427 1.9 mycroft for (cp = addmask_key + mlen; (cp > addmask_key) && cp[-1] == 0;)
428 1.9 mycroft cp--;
429 1.9 mycroft mlen = cp - addmask_key;
430 1.9 mycroft if (mlen <= skip) {
431 1.9 mycroft if (m0 >= last_zeroed)
432 1.9 mycroft last_zeroed = mlen;
433 1.9 mycroft return (mask_rnhead->rnh_nodes);
434 1.9 mycroft }
435 1.9 mycroft if (m0 < last_zeroed)
436 1.9 mycroft Bzero(addmask_key + m0, last_zeroed - m0);
437 1.9 mycroft *addmask_key = last_zeroed = mlen;
438 1.9 mycroft x = rn_search(addmask_key, rn_masktop);
439 1.9 mycroft if (Bcmp(addmask_key, x->rn_key, mlen) != 0)
440 1.9 mycroft x = 0;
441 1.9 mycroft if (x || search)
442 1.9 mycroft return (x);
443 1.6 mycroft R_Malloc(x, struct radix_node *, max_keylen + 2 * sizeof (*x));
444 1.9 mycroft if ((saved_x = x) == 0)
445 1.1 cgd return (0);
446 1.6 mycroft Bzero(x, max_keylen + 2 * sizeof (*x));
447 1.9 mycroft netmask = cp = (caddr_t)(x + 2);
448 1.9 mycroft Bcopy(addmask_key, cp, mlen);
449 1.9 mycroft x = rn_insert(cp, mask_rnhead, &maskduplicated, x);
450 1.9 mycroft if (maskduplicated) {
451 1.16 enami log(LOG_ERR, "rn_addmask: mask impossibly already in tree\n");
452 1.9 mycroft Free(saved_x);
453 1.9 mycroft return (x);
454 1.9 mycroft }
455 1.9 mycroft /*
456 1.9 mycroft * Calculate index of mask, and check for normalcy.
457 1.9 mycroft */
458 1.9 mycroft cplim = netmask + mlen; isnormal = 1;
459 1.9 mycroft for (cp = netmask + skip; (cp < cplim) && *(u_char *)cp == 0xff;)
460 1.9 mycroft cp++;
461 1.1 cgd if (cp != cplim) {
462 1.9 mycroft for (j = 0x80; (j & *cp) != 0; j >>= 1)
463 1.9 mycroft b++;
464 1.9 mycroft if (*cp != normal_chars[b] || cp != (cplim - 1))
465 1.9 mycroft isnormal = 0;
466 1.1 cgd }
467 1.9 mycroft b += (cp - netmask) << 3;
468 1.1 cgd x->rn_b = -1 - b;
469 1.9 mycroft if (isnormal)
470 1.9 mycroft x->rn_flags |= RNF_NORMAL;
471 1.1 cgd return (x);
472 1.1 cgd }
473 1.1 cgd
474 1.9 mycroft static int /* XXX: arbitrary ordering for non-contiguous masks */
475 1.9 mycroft rn_lexobetter(m_arg, n_arg)
476 1.9 mycroft void *m_arg, *n_arg;
477 1.9 mycroft {
478 1.14 augustss u_char *mp = m_arg, *np = n_arg, *lim;
479 1.9 mycroft
480 1.9 mycroft if (*mp > *np)
481 1.9 mycroft return 1; /* not really, but need to check longer one first */
482 1.9 mycroft if (*mp == *np)
483 1.9 mycroft for (lim = mp + *mp; mp < lim;)
484 1.9 mycroft if (*mp++ > *np++)
485 1.9 mycroft return 1;
486 1.9 mycroft return 0;
487 1.9 mycroft }
488 1.9 mycroft
489 1.9 mycroft static struct radix_mask *
490 1.9 mycroft rn_new_radix_mask(tt, next)
491 1.14 augustss struct radix_node *tt;
492 1.14 augustss struct radix_mask *next;
493 1.9 mycroft {
494 1.14 augustss struct radix_mask *m;
495 1.9 mycroft
496 1.9 mycroft MKGet(m);
497 1.9 mycroft if (m == 0) {
498 1.9 mycroft log(LOG_ERR, "Mask for route not entered\n");
499 1.9 mycroft return (0);
500 1.9 mycroft }
501 1.9 mycroft Bzero(m, sizeof *m);
502 1.9 mycroft m->rm_b = tt->rn_b;
503 1.9 mycroft m->rm_flags = tt->rn_flags;
504 1.9 mycroft if (tt->rn_flags & RNF_NORMAL)
505 1.9 mycroft m->rm_leaf = tt;
506 1.9 mycroft else
507 1.9 mycroft m->rm_mask = tt->rn_mask;
508 1.9 mycroft m->rm_mklist = next;
509 1.9 mycroft tt->rn_mklist = m;
510 1.9 mycroft return m;
511 1.9 mycroft }
512 1.9 mycroft
513 1.1 cgd struct radix_node *
514 1.6 mycroft rn_addroute(v_arg, n_arg, head, treenodes)
515 1.6 mycroft void *v_arg, *n_arg;
516 1.6 mycroft struct radix_node_head *head;
517 1.1 cgd struct radix_node treenodes[2];
518 1.1 cgd {
519 1.6 mycroft caddr_t v = (caddr_t)v_arg, netmask = (caddr_t)n_arg;
520 1.14 augustss struct radix_node *t, *x = 0, *tt;
521 1.6 mycroft struct radix_node *saved_tt, *top = head->rnh_treetop;
522 1.10 christos short b = 0, b_leaf = 0;
523 1.9 mycroft int keyduplicated;
524 1.9 mycroft caddr_t mmask;
525 1.1 cgd struct radix_mask *m, **mp;
526 1.1 cgd
527 1.1 cgd /*
528 1.1 cgd * In dealing with non-contiguous masks, there may be
529 1.1 cgd * many different routes which have the same mask.
530 1.1 cgd * We will find it useful to have a unique pointer to
531 1.1 cgd * the mask to speed avoiding duplicate references at
532 1.1 cgd * nodes and possibly save time in calculating indices.
533 1.1 cgd */
534 1.1 cgd if (netmask) {
535 1.9 mycroft if ((x = rn_addmask(netmask, 0, top->rn_off)) == 0)
536 1.9 mycroft return (0);
537 1.9 mycroft b_leaf = x->rn_b;
538 1.9 mycroft b = -1 - x->rn_b;
539 1.1 cgd netmask = x->rn_key;
540 1.1 cgd }
541 1.1 cgd /*
542 1.1 cgd * Deal with duplicated keys: attach node to previous instance
543 1.1 cgd */
544 1.1 cgd saved_tt = tt = rn_insert(v, head, &keyduplicated, treenodes);
545 1.1 cgd if (keyduplicated) {
546 1.9 mycroft for (t = tt; tt; t = tt, tt = tt->rn_dupedkey) {
547 1.1 cgd if (tt->rn_mask == netmask)
548 1.1 cgd return (0);
549 1.6 mycroft if (netmask == 0 ||
550 1.9 mycroft (tt->rn_mask &&
551 1.9 mycroft ((b_leaf < tt->rn_b) || /* index(netmask) > node */
552 1.9 mycroft rn_refines(netmask, tt->rn_mask) ||
553 1.9 mycroft rn_lexobetter(netmask, tt->rn_mask))))
554 1.6 mycroft break;
555 1.9 mycroft }
556 1.1 cgd /*
557 1.1 cgd * If the mask is not duplicated, we wouldn't
558 1.1 cgd * find it among possible duplicate key entries
559 1.1 cgd * anyway, so the above test doesn't hurt.
560 1.1 cgd *
561 1.6 mycroft * We sort the masks for a duplicated key the same way as
562 1.6 mycroft * in a masklist -- most specific to least specific.
563 1.6 mycroft * This may require the unfortunate nuisance of relocating
564 1.1 cgd * the head of the list.
565 1.12 christos *
566 1.12 christos * We also reverse, or doubly link the list through the
567 1.12 christos * parent pointer.
568 1.1 cgd */
569 1.9 mycroft if (tt == saved_tt) {
570 1.6 mycroft struct radix_node *xx = x;
571 1.6 mycroft /* link in at head of list */
572 1.6 mycroft (tt = treenodes)->rn_dupedkey = t;
573 1.6 mycroft tt->rn_flags = t->rn_flags;
574 1.6 mycroft tt->rn_p = x = t->rn_p;
575 1.12 christos t->rn_p = tt;
576 1.6 mycroft if (x->rn_l == t) x->rn_l = tt; else x->rn_r = tt;
577 1.6 mycroft saved_tt = tt; x = xx;
578 1.6 mycroft } else {
579 1.6 mycroft (tt = treenodes)->rn_dupedkey = t->rn_dupedkey;
580 1.6 mycroft t->rn_dupedkey = tt;
581 1.12 christos tt->rn_p = t;
582 1.12 christos if (tt->rn_dupedkey)
583 1.12 christos tt->rn_dupedkey->rn_p = tt;
584 1.6 mycroft }
585 1.1 cgd #ifdef RN_DEBUG
586 1.1 cgd t=tt+1; tt->rn_info = rn_nodenum++; t->rn_info = rn_nodenum++;
587 1.1 cgd tt->rn_twin = t; tt->rn_ybro = rn_clist; rn_clist = tt;
588 1.1 cgd #endif
589 1.1 cgd tt->rn_key = (caddr_t) v;
590 1.1 cgd tt->rn_b = -1;
591 1.9 mycroft tt->rn_flags = RNF_ACTIVE;
592 1.1 cgd }
593 1.1 cgd /*
594 1.1 cgd * Put mask in tree.
595 1.1 cgd */
596 1.1 cgd if (netmask) {
597 1.1 cgd tt->rn_mask = netmask;
598 1.1 cgd tt->rn_b = x->rn_b;
599 1.9 mycroft tt->rn_flags |= x->rn_flags & RNF_NORMAL;
600 1.1 cgd }
601 1.1 cgd t = saved_tt->rn_p;
602 1.9 mycroft if (keyduplicated)
603 1.9 mycroft goto on2;
604 1.1 cgd b_leaf = -1 - t->rn_b;
605 1.1 cgd if (t->rn_r == saved_tt) x = t->rn_l; else x = t->rn_r;
606 1.1 cgd /* Promote general routes from below */
607 1.1 cgd if (x->rn_b < 0) {
608 1.9 mycroft for (mp = &t->rn_mklist; x; x = x->rn_dupedkey)
609 1.1 cgd if (x->rn_mask && (x->rn_b >= b_leaf) && x->rn_mklist == 0) {
610 1.10 christos *mp = m = rn_new_radix_mask(x, 0);
611 1.10 christos if (m)
612 1.9 mycroft mp = &m->rm_mklist;
613 1.1 cgd }
614 1.1 cgd } else if (x->rn_mklist) {
615 1.1 cgd /*
616 1.1 cgd * Skip over masks whose index is > that of new node
617 1.1 cgd */
618 1.12 christos for (mp = &x->rn_mklist; (m = *mp); mp = &m->rm_mklist)
619 1.1 cgd if (m->rm_b >= b_leaf)
620 1.1 cgd break;
621 1.1 cgd t->rn_mklist = m; *mp = 0;
622 1.1 cgd }
623 1.9 mycroft on2:
624 1.1 cgd /* Add new route to highest possible ancestor's list */
625 1.1 cgd if ((netmask == 0) || (b > t->rn_b ))
626 1.1 cgd return tt; /* can't lift at all */
627 1.1 cgd b_leaf = tt->rn_b;
628 1.1 cgd do {
629 1.1 cgd x = t;
630 1.1 cgd t = t->rn_p;
631 1.6 mycroft } while (b <= t->rn_b && x != top);
632 1.1 cgd /*
633 1.1 cgd * Search through routes associated with node to
634 1.1 cgd * insert new route according to index.
635 1.9 mycroft * Need same criteria as when sorting dupedkeys to avoid
636 1.9 mycroft * double loop on deletion.
637 1.1 cgd */
638 1.12 christos for (mp = &x->rn_mklist; (m = *mp); mp = &m->rm_mklist) {
639 1.1 cgd if (m->rm_b < b_leaf)
640 1.1 cgd continue;
641 1.1 cgd if (m->rm_b > b_leaf)
642 1.1 cgd break;
643 1.9 mycroft if (m->rm_flags & RNF_NORMAL) {
644 1.9 mycroft mmask = m->rm_leaf->rn_mask;
645 1.9 mycroft if (tt->rn_flags & RNF_NORMAL) {
646 1.16 enami log(LOG_ERR, "Non-unique normal route,"
647 1.16 enami " mask not entered\n");
648 1.9 mycroft return tt;
649 1.9 mycroft }
650 1.9 mycroft } else
651 1.9 mycroft mmask = m->rm_mask;
652 1.9 mycroft if (mmask == netmask) {
653 1.1 cgd m->rm_refs++;
654 1.1 cgd tt->rn_mklist = m;
655 1.1 cgd return tt;
656 1.1 cgd }
657 1.9 mycroft if (rn_refines(netmask, mmask) || rn_lexobetter(netmask, mmask))
658 1.6 mycroft break;
659 1.1 cgd }
660 1.9 mycroft *mp = rn_new_radix_mask(tt, *mp);
661 1.1 cgd return tt;
662 1.1 cgd }
663 1.1 cgd
664 1.1 cgd struct radix_node *
665 1.6 mycroft rn_delete(v_arg, netmask_arg, head)
666 1.6 mycroft void *v_arg, *netmask_arg;
667 1.6 mycroft struct radix_node_head *head;
668 1.1 cgd {
669 1.14 augustss struct radix_node *t, *p, *x, *tt;
670 1.1 cgd struct radix_mask *m, *saved_m, **mp;
671 1.6 mycroft struct radix_node *dupedkey, *saved_tt, *top;
672 1.6 mycroft caddr_t v, netmask;
673 1.6 mycroft int b, head_off, vlen;
674 1.1 cgd
675 1.6 mycroft v = v_arg;
676 1.6 mycroft netmask = netmask_arg;
677 1.6 mycroft x = head->rnh_treetop;
678 1.6 mycroft tt = rn_search(v, x);
679 1.6 mycroft head_off = x->rn_off;
680 1.6 mycroft vlen = *(u_char *)v;
681 1.6 mycroft saved_tt = tt;
682 1.6 mycroft top = x;
683 1.1 cgd if (tt == 0 ||
684 1.1 cgd Bcmp(v + head_off, tt->rn_key + head_off, vlen - head_off))
685 1.1 cgd return (0);
686 1.1 cgd /*
687 1.1 cgd * Delete our route from mask lists.
688 1.1 cgd */
689 1.9 mycroft if (netmask) {
690 1.9 mycroft if ((x = rn_addmask(netmask, 1, head_off)) == 0)
691 1.9 mycroft return (0);
692 1.9 mycroft netmask = x->rn_key;
693 1.1 cgd while (tt->rn_mask != netmask)
694 1.1 cgd if ((tt = tt->rn_dupedkey) == 0)
695 1.1 cgd return (0);
696 1.1 cgd }
697 1.1 cgd if (tt->rn_mask == 0 || (saved_m = m = tt->rn_mklist) == 0)
698 1.1 cgd goto on1;
699 1.9 mycroft if (tt->rn_flags & RNF_NORMAL) {
700 1.9 mycroft if (m->rm_leaf != tt || m->rm_refs > 0) {
701 1.9 mycroft log(LOG_ERR, "rn_delete: inconsistent annotation\n");
702 1.9 mycroft return 0; /* dangling ref could cause disaster */
703 1.9 mycroft }
704 1.9 mycroft } else {
705 1.9 mycroft if (m->rm_mask != tt->rn_mask) {
706 1.9 mycroft log(LOG_ERR, "rn_delete: inconsistent annotation\n");
707 1.9 mycroft goto on1;
708 1.9 mycroft }
709 1.9 mycroft if (--m->rm_refs >= 0)
710 1.9 mycroft goto on1;
711 1.1 cgd }
712 1.1 cgd b = -1 - tt->rn_b;
713 1.1 cgd t = saved_tt->rn_p;
714 1.1 cgd if (b > t->rn_b)
715 1.1 cgd goto on1; /* Wasn't lifted at all */
716 1.1 cgd do {
717 1.1 cgd x = t;
718 1.1 cgd t = t->rn_p;
719 1.6 mycroft } while (b <= t->rn_b && x != top);
720 1.12 christos for (mp = &x->rn_mklist; (m = *mp); mp = &m->rm_mklist)
721 1.1 cgd if (m == saved_m) {
722 1.1 cgd *mp = m->rm_mklist;
723 1.1 cgd MKFree(m);
724 1.1 cgd break;
725 1.1 cgd }
726 1.9 mycroft if (m == 0) {
727 1.9 mycroft log(LOG_ERR, "rn_delete: couldn't find our annotation\n");
728 1.9 mycroft if (tt->rn_flags & RNF_NORMAL)
729 1.9 mycroft return (0); /* Dangling ref to us */
730 1.9 mycroft }
731 1.1 cgd on1:
732 1.1 cgd /*
733 1.1 cgd * Eliminate us from tree
734 1.1 cgd */
735 1.1 cgd if (tt->rn_flags & RNF_ROOT)
736 1.1 cgd return (0);
737 1.1 cgd #ifdef RN_DEBUG
738 1.1 cgd /* Get us out of the creation list */
739 1.1 cgd for (t = rn_clist; t && t->rn_ybro != tt; t = t->rn_ybro) {}
740 1.1 cgd if (t) t->rn_ybro = tt->rn_ybro;
741 1.6 mycroft #endif
742 1.1 cgd t = tt->rn_p;
743 1.12 christos dupedkey = saved_tt->rn_dupedkey;
744 1.12 christos if (dupedkey) {
745 1.12 christos /*
746 1.12 christos * Here, tt is the deletion target, and
747 1.12 christos * saved_tt is the head of the dupedkey chain.
748 1.12 christos */
749 1.1 cgd if (tt == saved_tt) {
750 1.1 cgd x = dupedkey; x->rn_p = t;
751 1.1 cgd if (t->rn_l == tt) t->rn_l = x; else t->rn_r = x;
752 1.6 mycroft } else {
753 1.12 christos /* find node in front of tt on the chain */
754 1.6 mycroft for (x = p = saved_tt; p && p->rn_dupedkey != tt;)
755 1.6 mycroft p = p->rn_dupedkey;
756 1.12 christos if (p) {
757 1.12 christos p->rn_dupedkey = tt->rn_dupedkey;
758 1.12 christos if (tt->rn_dupedkey)
759 1.12 christos tt->rn_dupedkey->rn_p = p;
760 1.12 christos } else log(LOG_ERR, "rn_delete: couldn't find us\n");
761 1.6 mycroft }
762 1.6 mycroft t = tt + 1;
763 1.6 mycroft if (t->rn_flags & RNF_ACTIVE) {
764 1.1 cgd #ifndef RN_DEBUG
765 1.6 mycroft *++x = *t; p = t->rn_p;
766 1.1 cgd #else
767 1.6 mycroft b = t->rn_info; *++x = *t; t->rn_info = b; p = t->rn_p;
768 1.1 cgd #endif
769 1.1 cgd if (p->rn_l == t) p->rn_l = x; else p->rn_r = x;
770 1.1 cgd x->rn_l->rn_p = x; x->rn_r->rn_p = x;
771 1.1 cgd }
772 1.1 cgd goto out;
773 1.1 cgd }
774 1.1 cgd if (t->rn_l == tt) x = t->rn_r; else x = t->rn_l;
775 1.1 cgd p = t->rn_p;
776 1.1 cgd if (p->rn_r == t) p->rn_r = x; else p->rn_l = x;
777 1.1 cgd x->rn_p = p;
778 1.1 cgd /*
779 1.1 cgd * Demote routes attached to us.
780 1.1 cgd */
781 1.1 cgd if (t->rn_mklist) {
782 1.1 cgd if (x->rn_b >= 0) {
783 1.12 christos for (mp = &x->rn_mklist; (m = *mp);)
784 1.1 cgd mp = &m->rm_mklist;
785 1.1 cgd *mp = t->rn_mklist;
786 1.1 cgd } else {
787 1.9 mycroft /* If there are any key,mask pairs in a sibling
788 1.9 mycroft duped-key chain, some subset will appear sorted
789 1.9 mycroft in the same order attached to our mklist */
790 1.9 mycroft for (m = t->rn_mklist; m && x; x = x->rn_dupedkey)
791 1.9 mycroft if (m == x->rn_mklist) {
792 1.9 mycroft struct radix_mask *mm = m->rm_mklist;
793 1.1 cgd x->rn_mklist = 0;
794 1.9 mycroft if (--(m->rm_refs) < 0)
795 1.9 mycroft MKFree(m);
796 1.9 mycroft m = mm;
797 1.9 mycroft }
798 1.9 mycroft if (m)
799 1.11 christos log(LOG_ERR, "%s %p at %p\n",
800 1.17 itojun "rn_delete: Orphaned Mask", m, x);
801 1.1 cgd }
802 1.1 cgd }
803 1.1 cgd /*
804 1.1 cgd * We may be holding an active internal node in the tree.
805 1.1 cgd */
806 1.1 cgd x = tt + 1;
807 1.1 cgd if (t != x) {
808 1.1 cgd #ifndef RN_DEBUG
809 1.1 cgd *t = *x;
810 1.1 cgd #else
811 1.1 cgd b = t->rn_info; *t = *x; t->rn_info = b;
812 1.1 cgd #endif
813 1.1 cgd t->rn_l->rn_p = t; t->rn_r->rn_p = t;
814 1.1 cgd p = x->rn_p;
815 1.1 cgd if (p->rn_l == x) p->rn_l = t; else p->rn_r = t;
816 1.1 cgd }
817 1.1 cgd out:
818 1.1 cgd tt->rn_flags &= ~RNF_ACTIVE;
819 1.1 cgd tt[1].rn_flags &= ~RNF_ACTIVE;
820 1.1 cgd return (tt);
821 1.1 cgd }
822 1.1 cgd
823 1.6 mycroft int
824 1.6 mycroft rn_walktree(h, f, w)
825 1.6 mycroft struct radix_node_head *h;
826 1.14 augustss int (*f) __P((struct radix_node *, void *));
827 1.6 mycroft void *w;
828 1.6 mycroft {
829 1.6 mycroft int error;
830 1.6 mycroft struct radix_node *base, *next;
831 1.14 augustss struct radix_node *rn = h->rnh_treetop;
832 1.6 mycroft /*
833 1.6 mycroft * This gets complicated because we may delete the node
834 1.6 mycroft * while applying the function f to it, so we need to calculate
835 1.6 mycroft * the successor node in advance.
836 1.6 mycroft */
837 1.6 mycroft /* First time through node, go left */
838 1.6 mycroft while (rn->rn_b >= 0)
839 1.6 mycroft rn = rn->rn_l;
840 1.6 mycroft for (;;) {
841 1.6 mycroft base = rn;
842 1.6 mycroft /* If at right child go back up, otherwise, go right */
843 1.6 mycroft while (rn->rn_p->rn_r == rn && (rn->rn_flags & RNF_ROOT) == 0)
844 1.6 mycroft rn = rn->rn_p;
845 1.6 mycroft /* Find the next *leaf* since next node might vanish, too */
846 1.6 mycroft for (rn = rn->rn_p->rn_r; rn->rn_b >= 0;)
847 1.6 mycroft rn = rn->rn_l;
848 1.6 mycroft next = rn;
849 1.6 mycroft /* Process leaves */
850 1.10 christos while ((rn = base) != NULL) {
851 1.6 mycroft base = rn->rn_dupedkey;
852 1.6 mycroft if (!(rn->rn_flags & RNF_ROOT) && (error = (*f)(rn, w)))
853 1.6 mycroft return (error);
854 1.6 mycroft }
855 1.6 mycroft rn = next;
856 1.6 mycroft if (rn->rn_flags & RNF_ROOT)
857 1.6 mycroft return (0);
858 1.6 mycroft }
859 1.6 mycroft /* NOTREACHED */
860 1.6 mycroft }
861 1.6 mycroft
862 1.6 mycroft int
863 1.6 mycroft rn_inithead(head, off)
864 1.6 mycroft void **head;
865 1.6 mycroft int off;
866 1.1 cgd {
867 1.14 augustss struct radix_node_head *rnh;
868 1.15 itojun
869 1.1 cgd if (*head)
870 1.1 cgd return (1);
871 1.1 cgd R_Malloc(rnh, struct radix_node_head *, sizeof (*rnh));
872 1.1 cgd if (rnh == 0)
873 1.1 cgd return (0);
874 1.15 itojun *head = rnh;
875 1.15 itojun return rn_inithead0(rnh, off);
876 1.15 itojun }
877 1.15 itojun
878 1.15 itojun int
879 1.15 itojun rn_inithead0(rnh, off)
880 1.15 itojun struct radix_node_head *rnh;
881 1.15 itojun int off;
882 1.15 itojun {
883 1.15 itojun struct radix_node *t, *tt, *ttt;
884 1.15 itojun
885 1.1 cgd Bzero(rnh, sizeof (*rnh));
886 1.1 cgd t = rn_newpair(rn_zeros, off, rnh->rnh_nodes);
887 1.1 cgd ttt = rnh->rnh_nodes + 2;
888 1.1 cgd t->rn_r = ttt;
889 1.1 cgd t->rn_p = t;
890 1.1 cgd tt = t->rn_l;
891 1.1 cgd tt->rn_flags = t->rn_flags = RNF_ROOT | RNF_ACTIVE;
892 1.1 cgd tt->rn_b = -1 - off;
893 1.1 cgd *ttt = *tt;
894 1.1 cgd ttt->rn_key = rn_ones;
895 1.6 mycroft rnh->rnh_addaddr = rn_addroute;
896 1.6 mycroft rnh->rnh_deladdr = rn_delete;
897 1.6 mycroft rnh->rnh_matchaddr = rn_match;
898 1.9 mycroft rnh->rnh_lookup = rn_lookup;
899 1.6 mycroft rnh->rnh_walktree = rn_walktree;
900 1.1 cgd rnh->rnh_treetop = t;
901 1.1 cgd return (1);
902 1.6 mycroft }
903 1.6 mycroft
904 1.6 mycroft void
905 1.6 mycroft rn_init()
906 1.6 mycroft {
907 1.6 mycroft char *cp, *cplim;
908 1.8 jtc #ifdef _KERNEL
909 1.6 mycroft struct domain *dom;
910 1.6 mycroft
911 1.6 mycroft for (dom = domains; dom; dom = dom->dom_next)
912 1.6 mycroft if (dom->dom_maxrtkey > max_keylen)
913 1.6 mycroft max_keylen = dom->dom_maxrtkey;
914 1.6 mycroft #endif
915 1.6 mycroft if (max_keylen == 0) {
916 1.9 mycroft log(LOG_ERR,
917 1.9 mycroft "rn_init: radix functions require max_keylen be set\n");
918 1.6 mycroft return;
919 1.6 mycroft }
920 1.6 mycroft R_Malloc(rn_zeros, char *, 3 * max_keylen);
921 1.6 mycroft if (rn_zeros == NULL)
922 1.6 mycroft panic("rn_init");
923 1.6 mycroft Bzero(rn_zeros, 3 * max_keylen);
924 1.6 mycroft rn_ones = cp = rn_zeros + max_keylen;
925 1.9 mycroft addmask_key = cplim = rn_ones + max_keylen;
926 1.6 mycroft while (cp < cplim)
927 1.6 mycroft *cp++ = -1;
928 1.6 mycroft if (rn_inithead((void **)&mask_rnhead, 0) == 0)
929 1.6 mycroft panic("rn_init 2");
930 1.1 cgd }
931