fil.c revision 1.29 1 1.29 christos /* $NetBSD: fil.c,v 1.29 2019/06/28 23:25:12 christos Exp $ */
2 1.1 christos
3 1.1 christos /*
4 1.1 christos * Copyright (C) 2012 by Darren Reed.
5 1.1 christos *
6 1.1 christos * See the IPFILTER.LICENCE file for details on licencing.
7 1.1 christos *
8 1.3 darrenr * Id: fil.c,v 1.1.1.2 2012/07/22 13:45:07 darrenr Exp $
9 1.1 christos *
10 1.1 christos */
11 1.1 christos #if defined(KERNEL) || defined(_KERNEL)
12 1.1 christos # undef KERNEL
13 1.1 christos # undef _KERNEL
14 1.1 christos # define KERNEL 1
15 1.1 christos # define _KERNEL 1
16 1.1 christos #endif
17 1.1 christos #include <sys/errno.h>
18 1.1 christos #include <sys/types.h>
19 1.1 christos #include <sys/param.h>
20 1.1 christos #include <sys/time.h>
21 1.1 christos #if defined(_KERNEL) && defined(__FreeBSD_version) && \
22 1.1 christos (__FreeBSD_version >= 220000)
23 1.1 christos # if (__FreeBSD_version >= 400000)
24 1.1 christos # if !defined(IPFILTER_LKM)
25 1.1 christos # include "opt_inet6.h"
26 1.1 christos # endif
27 1.1 christos # if (__FreeBSD_version == 400019)
28 1.1 christos # define CSUM_DELAY_DATA
29 1.1 christos # endif
30 1.1 christos # endif
31 1.1 christos # include <sys/filio.h>
32 1.1 christos #else
33 1.1 christos # include <sys/ioctl.h>
34 1.1 christos #endif
35 1.1 christos #if (defined(__SVR4) || defined(__svr4__)) && defined(sun)
36 1.1 christos # include <sys/filio.h>
37 1.1 christos #endif
38 1.1 christos #if !defined(_AIX51)
39 1.1 christos # include <sys/fcntl.h>
40 1.1 christos #endif
41 1.1 christos #if defined(_KERNEL)
42 1.1 christos # include <sys/systm.h>
43 1.1 christos # include <sys/file.h>
44 1.1 christos #else
45 1.1 christos # include <stdio.h>
46 1.1 christos # include <string.h>
47 1.1 christos # include <stdlib.h>
48 1.1 christos # include <stddef.h>
49 1.1 christos # include <sys/file.h>
50 1.1 christos # define _KERNEL
51 1.1 christos # ifdef __OpenBSD__
52 1.1 christos struct file;
53 1.1 christos # endif
54 1.1 christos # include <sys/uio.h>
55 1.1 christos # undef _KERNEL
56 1.1 christos #endif
57 1.1 christos #if !defined(__SVR4) && !defined(__svr4__) && !defined(__hpux) && \
58 1.1 christos !defined(linux)
59 1.1 christos # include <sys/mbuf.h>
60 1.1 christos #else
61 1.1 christos # if !defined(linux)
62 1.1 christos # include <sys/byteorder.h>
63 1.1 christos # endif
64 1.1 christos # if (SOLARIS2 < 5) && defined(sun)
65 1.1 christos # include <sys/dditypes.h>
66 1.1 christos # endif
67 1.1 christos #endif
68 1.1 christos #ifdef __hpux
69 1.1 christos # define _NET_ROUTE_INCLUDED
70 1.1 christos #endif
71 1.1 christos #if !defined(linux)
72 1.1 christos # include <sys/protosw.h>
73 1.1 christos #endif
74 1.1 christos #include <sys/socket.h>
75 1.1 christos #include <net/if.h>
76 1.1 christos #ifdef sun
77 1.1 christos # include <net/af.h>
78 1.1 christos #endif
79 1.1 christos #include <netinet/in.h>
80 1.1 christos #include <netinet/in_systm.h>
81 1.1 christos #include <netinet/ip.h>
82 1.1 christos #if defined(__sgi) && defined(IFF_DRVRLOCK) /* IRIX 6 */
83 1.1 christos # include <sys/hashing.h>
84 1.1 christos # include <netinet/in_var.h>
85 1.1 christos #endif
86 1.1 christos #include <netinet/tcp.h>
87 1.1 christos #if (!defined(__sgi) && !defined(AIX)) || defined(_KERNEL)
88 1.1 christos # include <netinet/udp.h>
89 1.1 christos # include <netinet/ip_icmp.h>
90 1.1 christos #endif
91 1.1 christos #ifdef __hpux
92 1.1 christos # undef _NET_ROUTE_INCLUDED
93 1.1 christos #endif
94 1.1 christos #ifdef __osf__
95 1.1 christos # undef _RADIX_H_
96 1.1 christos #endif
97 1.1 christos #include "netinet/ip_compat.h"
98 1.1 christos #ifdef USE_INET6
99 1.1 christos # include <netinet/icmp6.h>
100 1.1 christos # if !SOLARIS && defined(_KERNEL) && !defined(__osf__) && !defined(__hpux)
101 1.1 christos # include <netinet6/in6_var.h>
102 1.1 christos # endif
103 1.1 christos #endif
104 1.1 christos #include "netinet/ip_fil.h"
105 1.1 christos #include "netinet/ip_nat.h"
106 1.1 christos #include "netinet/ip_frag.h"
107 1.1 christos #include "netinet/ip_state.h"
108 1.1 christos #include "netinet/ip_proxy.h"
109 1.1 christos #include "netinet/ip_auth.h"
110 1.1 christos #ifdef IPFILTER_SCAN
111 1.1 christos # include "netinet/ip_scan.h"
112 1.1 christos #endif
113 1.1 christos #include "netinet/ip_sync.h"
114 1.1 christos #include "netinet/ip_lookup.h"
115 1.1 christos #include "netinet/ip_pool.h"
116 1.1 christos #include "netinet/ip_htable.h"
117 1.1 christos #ifdef IPFILTER_COMPILED
118 1.1 christos # include "netinet/ip_rules.h"
119 1.1 christos #endif
120 1.1 christos #if defined(IPFILTER_BPF) && defined(_KERNEL)
121 1.1 christos # include <net/bpf.h>
122 1.1 christos #endif
123 1.1 christos #if defined(__FreeBSD_version) && (__FreeBSD_version >= 300000)
124 1.1 christos # include <sys/malloc.h>
125 1.1 christos #endif
126 1.1 christos #include "netinet/ipl.h"
127 1.1 christos
128 1.1 christos #if defined(__NetBSD__) && (__NetBSD_Version__ >= 104230000)
129 1.1 christos # include <sys/callout.h>
130 1.1 christos extern struct callout ipf_slowtimer_ch;
131 1.1 christos #endif
132 1.1 christos #if defined(__OpenBSD__)
133 1.1 christos # include <sys/timeout.h>
134 1.1 christos extern struct timeout ipf_slowtimer_ch;
135 1.1 christos #endif
136 1.24 maxv #if defined(__NetBSD__)
137 1.24 maxv #include <netinet/in_offload.h>
138 1.24 maxv #endif
139 1.1 christos /* END OF INCLUDES */
140 1.1 christos
141 1.1 christos #if !defined(lint)
142 1.2 christos #if defined(__NetBSD__)
143 1.2 christos #include <sys/cdefs.h>
144 1.29 christos __KERNEL_RCSID(0, "$NetBSD: fil.c,v 1.29 2019/06/28 23:25:12 christos Exp $");
145 1.2 christos #else
146 1.1 christos static const char sccsid[] = "@(#)fil.c 1.36 6/5/96 (C) 1993-2000 Darren Reed";
147 1.3 darrenr static const char rcsid[] = "@(#)Id: fil.c,v 1.1.1.2 2012/07/22 13:45:07 darrenr Exp $";
148 1.2 christos #endif
149 1.1 christos #endif
150 1.1 christos
151 1.1 christos #ifndef _KERNEL
152 1.1 christos # include "ipf.h"
153 1.1 christos # include "ipt.h"
154 1.1 christos extern int opts;
155 1.1 christos extern int blockreason;
156 1.1 christos #endif /* _KERNEL */
157 1.1 christos
158 1.1 christos #define LBUMP(x) softc->x++
159 1.1 christos #define LBUMPD(x, y) do { softc->x.y++; DT(y); } while (0)
160 1.1 christos
161 1.2 christos static INLINE int ipf_check_ipf(fr_info_t *, frentry_t *, int);
162 1.2 christos static u_32_t ipf_checkcipso(fr_info_t *, u_char *, int);
163 1.2 christos static u_32_t ipf_checkripso(u_char *);
164 1.2 christos static u_32_t ipf_decaps(fr_info_t *, u_32_t, int);
165 1.2 christos #ifdef IPFILTER_LOG
166 1.2 christos static frentry_t *ipf_dolog(fr_info_t *, u_32_t *);
167 1.2 christos #endif
168 1.3 darrenr static int ipf_flushlist(ipf_main_softc_t *, int *, frentry_t **);
169 1.3 darrenr static int ipf_flush_groups(ipf_main_softc_t *, frgroup_t **, int);
170 1.2 christos static ipfunc_t ipf_findfunc(ipfunc_t);
171 1.2 christos static void *ipf_findlookup(ipf_main_softc_t *, int, frentry_t *,
172 1.2 christos i6addr_t *, i6addr_t *);
173 1.2 christos static frentry_t *ipf_firewall(fr_info_t *, u_32_t *);
174 1.2 christos static int ipf_fr_matcharray(fr_info_t *, int *);
175 1.2 christos static int ipf_frruleiter(ipf_main_softc_t *, void *, int, void *);
176 1.2 christos static void ipf_funcfini(ipf_main_softc_t *, frentry_t *);;
177 1.2 christos static int ipf_funcinit(ipf_main_softc_t *, frentry_t *);
178 1.2 christos static int ipf_geniter(ipf_main_softc_t *, ipftoken_t *,
179 1.2 christos ipfgeniter_t *);
180 1.2 christos static void ipf_getstat(ipf_main_softc_t *,
181 1.2 christos struct friostat *, int);
182 1.3 darrenr static int ipf_group_flush(ipf_main_softc_t *, frgroup_t *);
183 1.3 darrenr static void ipf_group_free(frgroup_t *);
184 1.2 christos static int ipf_grpmapfini(struct ipf_main_softc_s *, frentry_t *);
185 1.2 christos static int ipf_grpmapinit(struct ipf_main_softc_s *, frentry_t *);
186 1.3 darrenr static frentry_t *ipf_nextrule(ipf_main_softc_t *, int, int,
187 1.3 darrenr frentry_t *, int);
188 1.2 christos static int ipf_portcheck(frpcmp_t *, u_32_t);
189 1.2 christos static INLINE int ipf_pr_ah(fr_info_t *);
190 1.2 christos static INLINE void ipf_pr_esp(fr_info_t *);
191 1.2 christos static INLINE void ipf_pr_gre(fr_info_t *);
192 1.2 christos static INLINE void ipf_pr_udp(fr_info_t *);
193 1.2 christos static INLINE void ipf_pr_tcp(fr_info_t *);
194 1.2 christos static INLINE void ipf_pr_icmp(fr_info_t *);
195 1.2 christos static INLINE void ipf_pr_ipv4hdr(fr_info_t *);
196 1.2 christos static INLINE void ipf_pr_short(fr_info_t *, int);
197 1.2 christos static INLINE int ipf_pr_tcpcommon(fr_info_t *);
198 1.2 christos static INLINE int ipf_pr_udpcommon(fr_info_t *);
199 1.2 christos static void ipf_rule_delete(ipf_main_softc_t *, frentry_t *f,
200 1.2 christos int, int);
201 1.2 christos static void ipf_rule_expire_insert(ipf_main_softc_t *,
202 1.2 christos frentry_t *, int);
203 1.2 christos static int ipf_synclist(ipf_main_softc_t *, frentry_t *, void *);
204 1.3 darrenr static void ipf_token_flush(ipf_main_softc_t *);
205 1.3 darrenr static void ipf_token_unlink(ipf_main_softc_t *, ipftoken_t *);
206 1.2 christos static ipftuneable_t *ipf_tune_findbyname(ipftuneable_t *, const char *);
207 1.2 christos static ipftuneable_t *ipf_tune_findbycookie(ipftuneable_t **, void *,
208 1.2 christos void **);
209 1.2 christos static int ipf_updateipid(fr_info_t *);
210 1.2 christos static int ipf_settimeout(struct ipf_main_softc_s *,
211 1.2 christos struct ipftuneable *, ipftuneval_t *);
212 1.1 christos
213 1.1 christos
214 1.1 christos /*
215 1.1 christos * bit values for identifying presence of individual IP options
216 1.1 christos * All of these tables should be ordered by increasing key value on the left
217 1.1 christos * hand side to allow for binary searching of the array and include a trailer
218 1.1 christos * with a 0 for the bitmask for linear searches to easily find the end with.
219 1.1 christos */
220 1.1 christos static const struct optlist ipopts[20] = {
221 1.1 christos { IPOPT_NOP, 0x000001 },
222 1.1 christos { IPOPT_RR, 0x000002 },
223 1.1 christos { IPOPT_ZSU, 0x000004 },
224 1.1 christos { IPOPT_MTUP, 0x000008 },
225 1.1 christos { IPOPT_MTUR, 0x000010 },
226 1.1 christos { IPOPT_ENCODE, 0x000020 },
227 1.1 christos { IPOPT_TS, 0x000040 },
228 1.1 christos { IPOPT_TR, 0x000080 },
229 1.1 christos { IPOPT_SECURITY, 0x000100 },
230 1.1 christos { IPOPT_LSRR, 0x000200 },
231 1.1 christos { IPOPT_E_SEC, 0x000400 },
232 1.1 christos { IPOPT_CIPSO, 0x000800 },
233 1.1 christos { IPOPT_SATID, 0x001000 },
234 1.1 christos { IPOPT_SSRR, 0x002000 },
235 1.1 christos { IPOPT_ADDEXT, 0x004000 },
236 1.1 christos { IPOPT_VISA, 0x008000 },
237 1.1 christos { IPOPT_IMITD, 0x010000 },
238 1.1 christos { IPOPT_EIP, 0x020000 },
239 1.1 christos { IPOPT_FINN, 0x040000 },
240 1.1 christos { 0, 0x000000 }
241 1.1 christos };
242 1.1 christos
243 1.1 christos #ifdef USE_INET6
244 1.19 christos static const struct optlist ip6exthdr[] = {
245 1.1 christos { IPPROTO_HOPOPTS, 0x000001 },
246 1.1 christos { IPPROTO_IPV6, 0x000002 },
247 1.1 christos { IPPROTO_ROUTING, 0x000004 },
248 1.1 christos { IPPROTO_FRAGMENT, 0x000008 },
249 1.1 christos { IPPROTO_ESP, 0x000010 },
250 1.1 christos { IPPROTO_AH, 0x000020 },
251 1.1 christos { IPPROTO_NONE, 0x000040 },
252 1.1 christos { IPPROTO_DSTOPTS, 0x000080 },
253 1.1 christos { IPPROTO_MOBILITY, 0x000100 },
254 1.1 christos { 0, 0 }
255 1.1 christos };
256 1.1 christos #endif
257 1.1 christos
258 1.1 christos /*
259 1.1 christos * bit values for identifying presence of individual IP security options
260 1.1 christos */
261 1.1 christos static const struct optlist secopt[8] = {
262 1.1 christos { IPSO_CLASS_RES4, 0x01 },
263 1.1 christos { IPSO_CLASS_TOPS, 0x02 },
264 1.1 christos { IPSO_CLASS_SECR, 0x04 },
265 1.1 christos { IPSO_CLASS_RES3, 0x08 },
266 1.1 christos { IPSO_CLASS_CONF, 0x10 },
267 1.1 christos { IPSO_CLASS_UNCL, 0x20 },
268 1.1 christos { IPSO_CLASS_RES2, 0x40 },
269 1.1 christos { IPSO_CLASS_RES1, 0x80 }
270 1.1 christos };
271 1.1 christos
272 1.1 christos char ipfilter_version[] = IPL_VERSION;
273 1.1 christos
274 1.1 christos int ipf_features = 0
275 1.1 christos #ifdef IPFILTER_LKM
276 1.1 christos | IPF_FEAT_LKM
277 1.1 christos #endif
278 1.1 christos #ifdef IPFILTER_LOG
279 1.1 christos | IPF_FEAT_LOG
280 1.1 christos #endif
281 1.1 christos | IPF_FEAT_LOOKUP
282 1.1 christos #ifdef IPFILTER_BPF
283 1.1 christos | IPF_FEAT_BPF
284 1.1 christos #endif
285 1.1 christos #ifdef IPFILTER_COMPILED
286 1.1 christos | IPF_FEAT_COMPILED
287 1.1 christos #endif
288 1.1 christos #ifdef IPFILTER_CKSUM
289 1.1 christos | IPF_FEAT_CKSUM
290 1.1 christos #endif
291 1.1 christos | IPF_FEAT_SYNC
292 1.1 christos #ifdef IPFILTER_SCAN
293 1.1 christos | IPF_FEAT_SCAN
294 1.1 christos #endif
295 1.1 christos #ifdef USE_INET6
296 1.1 christos | IPF_FEAT_IPV6
297 1.1 christos #endif
298 1.1 christos ;
299 1.1 christos
300 1.1 christos
301 1.1 christos /*
302 1.1 christos * Table of functions available for use with call rules.
303 1.1 christos */
304 1.1 christos static ipfunc_resolve_t ipf_availfuncs[] = {
305 1.1 christos { "srcgrpmap", ipf_srcgrpmap, ipf_grpmapinit, ipf_grpmapfini },
306 1.1 christos { "dstgrpmap", ipf_dstgrpmap, ipf_grpmapinit, ipf_grpmapfini },
307 1.2 christos { "", NULL, NULL, NULL }
308 1.1 christos };
309 1.1 christos
310 1.23 maxv static const ipftuneable_t ipf_main_tuneables[] = {
311 1.1 christos { { (void *)offsetof(struct ipf_main_softc_s, ipf_flags) },
312 1.1 christos "ipf_flags", 0, 0xffffffff,
313 1.1 christos stsizeof(ipf_main_softc_t, ipf_flags),
314 1.1 christos 0, NULL, NULL },
315 1.1 christos { { (void *)offsetof(struct ipf_main_softc_s, ipf_active) },
316 1.1 christos "active", 0, 0,
317 1.1 christos stsizeof(ipf_main_softc_t, ipf_active),
318 1.1 christos IPFT_RDONLY, NULL, NULL },
319 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_control_forwarding) },
320 1.1 christos "control_forwarding", 0, 1,
321 1.1 christos stsizeof(ipf_main_softc_t, ipf_control_forwarding),
322 1.1 christos 0, NULL, NULL },
323 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_update_ipid) },
324 1.1 christos "update_ipid", 0, 1,
325 1.1 christos stsizeof(ipf_main_softc_t, ipf_update_ipid),
326 1.1 christos 0, NULL, NULL },
327 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_chksrc) },
328 1.1 christos "chksrc", 0, 1,
329 1.1 christos stsizeof(ipf_main_softc_t, ipf_chksrc),
330 1.1 christos 0, NULL, NULL },
331 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_minttl) },
332 1.1 christos "min_ttl", 0, 1,
333 1.1 christos stsizeof(ipf_main_softc_t, ipf_minttl),
334 1.1 christos 0, NULL, NULL },
335 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_icmpminfragmtu) },
336 1.1 christos "icmp_minfragmtu", 0, 1,
337 1.1 christos stsizeof(ipf_main_softc_t, ipf_icmpminfragmtu),
338 1.1 christos 0, NULL, NULL },
339 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_pass) },
340 1.1 christos "default_pass", 0, 0xffffffff,
341 1.1 christos stsizeof(ipf_main_softc_t, ipf_pass),
342 1.1 christos 0, NULL, NULL },
343 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcpidletimeout) },
344 1.1 christos "tcp_idle_timeout", 1, 0x7fffffff,
345 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcpidletimeout),
346 1.1 christos 0, NULL, ipf_settimeout },
347 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcpclosewait) },
348 1.1 christos "tcp_close_wait", 1, 0x7fffffff,
349 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcpclosewait),
350 1.1 christos 0, NULL, ipf_settimeout },
351 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcplastack) },
352 1.1 christos "tcp_last_ack", 1, 0x7fffffff,
353 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcplastack),
354 1.1 christos 0, NULL, ipf_settimeout },
355 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcptimeout) },
356 1.1 christos "tcp_timeout", 1, 0x7fffffff,
357 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcptimeout),
358 1.1 christos 0, NULL, ipf_settimeout },
359 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcpsynsent) },
360 1.1 christos "tcp_syn_sent", 1, 0x7fffffff,
361 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcpsynsent),
362 1.1 christos 0, NULL, ipf_settimeout },
363 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcpsynrecv) },
364 1.1 christos "tcp_syn_received", 1, 0x7fffffff,
365 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcpsynrecv),
366 1.1 christos 0, NULL, ipf_settimeout },
367 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcpclosed) },
368 1.1 christos "tcp_closed", 1, 0x7fffffff,
369 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcpclosed),
370 1.1 christos 0, NULL, ipf_settimeout },
371 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcphalfclosed) },
372 1.1 christos "tcp_half_closed", 1, 0x7fffffff,
373 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcphalfclosed),
374 1.1 christos 0, NULL, ipf_settimeout },
375 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_tcptimewait) },
376 1.1 christos "tcp_time_wait", 1, 0x7fffffff,
377 1.1 christos stsizeof(ipf_main_softc_t, ipf_tcptimewait),
378 1.1 christos 0, NULL, ipf_settimeout },
379 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_udptimeout) },
380 1.1 christos "udp_timeout", 1, 0x7fffffff,
381 1.1 christos stsizeof(ipf_main_softc_t, ipf_udptimeout),
382 1.1 christos 0, NULL, ipf_settimeout },
383 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_udpacktimeout) },
384 1.1 christos "udp_ack_timeout", 1, 0x7fffffff,
385 1.1 christos stsizeof(ipf_main_softc_t, ipf_udpacktimeout),
386 1.1 christos 0, NULL, ipf_settimeout },
387 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_icmptimeout) },
388 1.1 christos "icmp_timeout", 1, 0x7fffffff,
389 1.1 christos stsizeof(ipf_main_softc_t, ipf_icmptimeout),
390 1.1 christos 0, NULL, ipf_settimeout },
391 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_icmpacktimeout) },
392 1.1 christos "icmp_ack_timeout", 1, 0x7fffffff,
393 1.1 christos stsizeof(ipf_main_softc_t, ipf_icmpacktimeout),
394 1.1 christos 0, NULL, ipf_settimeout },
395 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_iptimeout) },
396 1.1 christos "ip_timeout", 1, 0x7fffffff,
397 1.1 christos stsizeof(ipf_main_softc_t, ipf_iptimeout),
398 1.1 christos 0, NULL, ipf_settimeout },
399 1.1 christos #if defined(INSTANCES) && defined(_KERNEL)
400 1.1 christos { { (void *)offsetof(ipf_main_softc_t, ipf_get_loopback) },
401 1.1 christos "intercept_loopback", 0, 1,
402 1.1 christos stsizeof(ipf_main_softc_t, ipf_get_loopback),
403 1.1 christos 0, NULL, ipf_set_loopback },
404 1.1 christos #endif
405 1.1 christos { { 0 },
406 1.1 christos NULL, 0, 0,
407 1.1 christos 0,
408 1.1 christos 0, NULL, NULL }
409 1.1 christos };
410 1.1 christos
411 1.1 christos
412 1.1 christos /*
413 1.1 christos * The next section of code is a a collection of small routines that set
414 1.1 christos * fields in the fr_info_t structure passed based on properties of the
415 1.1 christos * current packet. There are different routines for the same protocol
416 1.1 christos * for each of IPv4 and IPv6. Adding a new protocol, for which there
417 1.1 christos * will "special" inspection for setup, is now more easily done by adding
418 1.1 christos * a new routine and expanding the ipf_pr_ipinit*() function rather than by
419 1.1 christos * adding more code to a growing switch statement.
420 1.1 christos */
421 1.1 christos #ifdef USE_INET6
422 1.2 christos static INLINE int ipf_pr_ah6(fr_info_t *);
423 1.2 christos static INLINE void ipf_pr_esp6(fr_info_t *);
424 1.2 christos static INLINE void ipf_pr_gre6(fr_info_t *);
425 1.2 christos static INLINE void ipf_pr_udp6(fr_info_t *);
426 1.2 christos static INLINE void ipf_pr_tcp6(fr_info_t *);
427 1.2 christos static INLINE void ipf_pr_icmp6(fr_info_t *);
428 1.2 christos static INLINE void ipf_pr_ipv6hdr(fr_info_t *);
429 1.2 christos static INLINE void ipf_pr_short6(fr_info_t *, int);
430 1.2 christos static INLINE int ipf_pr_hopopts6(fr_info_t *);
431 1.2 christos static INLINE int ipf_pr_mobility6(fr_info_t *);
432 1.2 christos static INLINE int ipf_pr_routing6(fr_info_t *);
433 1.2 christos static INLINE int ipf_pr_dstopts6(fr_info_t *);
434 1.2 christos static INLINE int ipf_pr_fragment6(fr_info_t *);
435 1.2 christos static INLINE struct ip6_ext *ipf_pr_ipv6exthdr(fr_info_t *, int, int);
436 1.1 christos
437 1.1 christos
438 1.1 christos /* ------------------------------------------------------------------------ */
439 1.1 christos /* Function: ipf_pr_short6 */
440 1.1 christos /* Returns: void */
441 1.1 christos /* Parameters: fin(I) - pointer to packet information */
442 1.1 christos /* xmin(I) - minimum header size */
443 1.1 christos /* */
444 1.1 christos /* IPv6 Only */
445 1.1 christos /* This is function enforces the 'is a packet too short to be legit' rule */
446 1.1 christos /* for IPv6 and marks the packet with FI_SHORT if so. See function comment */
447 1.1 christos /* for ipf_pr_short() for more details. */
448 1.1 christos /* ------------------------------------------------------------------------ */
449 1.1 christos static INLINE void
450 1.2 christos ipf_pr_short6(fr_info_t *fin, int xmin)
451 1.1 christos {
452 1.1 christos
453 1.1 christos if (fin->fin_dlen < xmin)
454 1.1 christos fin->fin_flx |= FI_SHORT;
455 1.1 christos }
456 1.1 christos
457 1.1 christos
458 1.1 christos /* ------------------------------------------------------------------------ */
459 1.1 christos /* Function: ipf_pr_ipv6hdr */
460 1.1 christos /* Returns: void */
461 1.1 christos /* Parameters: fin(I) - pointer to packet information */
462 1.1 christos /* */
463 1.1 christos /* IPv6 Only */
464 1.1 christos /* Copy values from the IPv6 header into the fr_info_t struct and call the */
465 1.1 christos /* per-protocol analyzer if it exists. In validating the packet, a protocol*/
466 1.1 christos /* analyzer may pullup or free the packet itself so we need to be vigiliant */
467 1.1 christos /* of that possibility arising. */
468 1.1 christos /* ------------------------------------------------------------------------ */
469 1.1 christos static INLINE void
470 1.2 christos ipf_pr_ipv6hdr(fr_info_t *fin)
471 1.1 christos {
472 1.1 christos ip6_t *ip6 = (ip6_t *)fin->fin_ip;
473 1.1 christos int p, go = 1, i, hdrcount;
474 1.1 christos fr_ip_t *fi = &fin->fin_fi;
475 1.1 christos
476 1.1 christos fin->fin_off = 0;
477 1.1 christos
478 1.1 christos fi->fi_tos = 0;
479 1.1 christos fi->fi_optmsk = 0;
480 1.1 christos fi->fi_secmsk = 0;
481 1.1 christos fi->fi_auth = 0;
482 1.1 christos
483 1.1 christos p = ip6->ip6_nxt;
484 1.1 christos fin->fin_crc = p;
485 1.1 christos fi->fi_ttl = ip6->ip6_hlim;
486 1.1 christos fi->fi_src.in6 = ip6->ip6_src;
487 1.1 christos fin->fin_crc += fi->fi_src.i6[0];
488 1.1 christos fin->fin_crc += fi->fi_src.i6[1];
489 1.1 christos fin->fin_crc += fi->fi_src.i6[2];
490 1.1 christos fin->fin_crc += fi->fi_src.i6[3];
491 1.1 christos fi->fi_dst.in6 = ip6->ip6_dst;
492 1.1 christos fin->fin_crc += fi->fi_dst.i6[0];
493 1.1 christos fin->fin_crc += fi->fi_dst.i6[1];
494 1.1 christos fin->fin_crc += fi->fi_dst.i6[2];
495 1.1 christos fin->fin_crc += fi->fi_dst.i6[3];
496 1.1 christos fin->fin_id = 0;
497 1.1 christos if (IN6_IS_ADDR_MULTICAST(&fi->fi_dst.in6))
498 1.1 christos fin->fin_flx |= FI_MULTICAST|FI_MBCAST;
499 1.1 christos
500 1.1 christos hdrcount = 0;
501 1.1 christos while (go && !(fin->fin_flx & FI_SHORT)) {
502 1.1 christos switch (p)
503 1.1 christos {
504 1.1 christos case IPPROTO_UDP :
505 1.1 christos ipf_pr_udp6(fin);
506 1.1 christos go = 0;
507 1.1 christos break;
508 1.1 christos
509 1.1 christos case IPPROTO_TCP :
510 1.1 christos ipf_pr_tcp6(fin);
511 1.1 christos go = 0;
512 1.1 christos break;
513 1.1 christos
514 1.1 christos case IPPROTO_ICMPV6 :
515 1.1 christos ipf_pr_icmp6(fin);
516 1.1 christos go = 0;
517 1.1 christos break;
518 1.1 christos
519 1.1 christos case IPPROTO_GRE :
520 1.1 christos ipf_pr_gre6(fin);
521 1.1 christos go = 0;
522 1.1 christos break;
523 1.1 christos
524 1.1 christos case IPPROTO_HOPOPTS :
525 1.1 christos p = ipf_pr_hopopts6(fin);
526 1.1 christos break;
527 1.1 christos
528 1.1 christos case IPPROTO_MOBILITY :
529 1.1 christos p = ipf_pr_mobility6(fin);
530 1.1 christos break;
531 1.1 christos
532 1.1 christos case IPPROTO_DSTOPTS :
533 1.1 christos p = ipf_pr_dstopts6(fin);
534 1.1 christos break;
535 1.1 christos
536 1.1 christos case IPPROTO_ROUTING :
537 1.1 christos p = ipf_pr_routing6(fin);
538 1.1 christos break;
539 1.1 christos
540 1.1 christos case IPPROTO_AH :
541 1.1 christos p = ipf_pr_ah6(fin);
542 1.1 christos break;
543 1.1 christos
544 1.1 christos case IPPROTO_ESP :
545 1.1 christos ipf_pr_esp6(fin);
546 1.1 christos go = 0;
547 1.1 christos break;
548 1.1 christos
549 1.1 christos case IPPROTO_IPV6 :
550 1.1 christos for (i = 0; ip6exthdr[i].ol_bit != 0; i++)
551 1.1 christos if (ip6exthdr[i].ol_val == p) {
552 1.1 christos fin->fin_flx |= ip6exthdr[i].ol_bit;
553 1.1 christos break;
554 1.1 christos }
555 1.1 christos go = 0;
556 1.1 christos break;
557 1.1 christos
558 1.1 christos case IPPROTO_NONE :
559 1.1 christos go = 0;
560 1.1 christos break;
561 1.1 christos
562 1.1 christos case IPPROTO_FRAGMENT :
563 1.1 christos p = ipf_pr_fragment6(fin);
564 1.1 christos /*
565 1.1 christos * Given that the only fragments we want to let through
566 1.1 christos * (where fin_off != 0) are those where the non-first
567 1.1 christos * fragments only have data, we can safely stop looking
568 1.1 christos * at headers if this is a non-leading fragment.
569 1.1 christos */
570 1.1 christos if (fin->fin_off != 0)
571 1.1 christos go = 0;
572 1.1 christos break;
573 1.1 christos
574 1.1 christos default :
575 1.1 christos go = 0;
576 1.1 christos break;
577 1.1 christos }
578 1.1 christos hdrcount++;
579 1.1 christos
580 1.1 christos /*
581 1.1 christos * It is important to note that at this point, for the
582 1.1 christos * extension headers (go != 0), the entire header may not have
583 1.1 christos * been pulled up when the code gets to this point. This is
584 1.1 christos * only done for "go != 0" because the other header handlers
585 1.1 christos * will all pullup their complete header. The other indicator
586 1.1 christos * of an incomplete packet is that this was just an extension
587 1.1 christos * header.
588 1.1 christos */
589 1.1 christos if ((go != 0) && (p != IPPROTO_NONE) &&
590 1.1 christos (ipf_pr_pullup(fin, 0) == -1)) {
591 1.1 christos p = IPPROTO_NONE;
592 1.1 christos break;
593 1.1 christos }
594 1.1 christos }
595 1.1 christos
596 1.1 christos /*
597 1.1 christos * Some of the above functions, like ipf_pr_esp6(), can call ipf_pullup
598 1.1 christos * and destroy whatever packet was here. The caller of this function
599 1.1 christos * expects us to return if there is a problem with ipf_pullup.
600 1.1 christos */
601 1.1 christos if (fin->fin_m == NULL) {
602 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
603 1.1 christos
604 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_bad);
605 1.1 christos return;
606 1.1 christos }
607 1.1 christos
608 1.1 christos fi->fi_p = p;
609 1.1 christos
610 1.1 christos /*
611 1.1 christos * IPv6 fragment case 1 - see comment for ipf_pr_fragment6().
612 1.1 christos * "go != 0" imples the above loop hasn't arrived at a layer 4 header.
613 1.1 christos */
614 1.1 christos if ((go != 0) && (fin->fin_flx & FI_FRAG) && (fin->fin_off == 0)) {
615 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
616 1.1 christos
617 1.1 christos fin->fin_flx |= FI_BAD;
618 1.19 christos DT2(ipf_fi_bad_ipv6_frag_1, fr_info_t *, fin, int, go);
619 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_badfrag);
620 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_v6_bad);
621 1.1 christos }
622 1.1 christos }
623 1.1 christos
624 1.1 christos
625 1.1 christos /* ------------------------------------------------------------------------ */
626 1.1 christos /* Function: ipf_pr_ipv6exthdr */
627 1.1 christos /* Returns: struct ip6_ext * - pointer to the start of the next header */
628 1.1 christos /* or NULL if there is a prolblem. */
629 1.1 christos /* Parameters: fin(I) - pointer to packet information */
630 1.1 christos /* multiple(I) - flag indicating yes/no if multiple occurances */
631 1.1 christos /* of this extension header are allowed. */
632 1.1 christos /* proto(I) - protocol number for this extension header */
633 1.1 christos /* */
634 1.1 christos /* IPv6 Only */
635 1.1 christos /* This function embodies a number of common checks that all IPv6 extension */
636 1.1 christos /* headers must be subjected to. For example, making sure the packet is */
637 1.1 christos /* big enough for it to be in, checking if it is repeated and setting a */
638 1.1 christos /* flag to indicate its presence. */
639 1.1 christos /* ------------------------------------------------------------------------ */
640 1.1 christos static INLINE struct ip6_ext *
641 1.2 christos ipf_pr_ipv6exthdr(fr_info_t *fin, int multiple, int proto)
642 1.1 christos {
643 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
644 1.1 christos struct ip6_ext *hdr;
645 1.1 christos u_short shift;
646 1.1 christos int i;
647 1.1 christos
648 1.1 christos fin->fin_flx |= FI_V6EXTHDR;
649 1.1 christos
650 1.1 christos /* 8 is default length of extension hdr */
651 1.1 christos if ((fin->fin_dlen - 8) < 0) {
652 1.1 christos fin->fin_flx |= FI_SHORT;
653 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_ext_short);
654 1.1 christos return NULL;
655 1.1 christos }
656 1.1 christos
657 1.1 christos if (ipf_pr_pullup(fin, 8) == -1) {
658 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_ext_pullup);
659 1.1 christos return NULL;
660 1.1 christos }
661 1.1 christos
662 1.1 christos hdr = fin->fin_dp;
663 1.1 christos switch (proto)
664 1.1 christos {
665 1.1 christos case IPPROTO_FRAGMENT :
666 1.1 christos shift = 8;
667 1.1 christos break;
668 1.1 christos default :
669 1.1 christos shift = 8 + (hdr->ip6e_len << 3);
670 1.1 christos break;
671 1.1 christos }
672 1.1 christos
673 1.1 christos if (shift > fin->fin_dlen) { /* Nasty extension header length? */
674 1.1 christos fin->fin_flx |= FI_BAD;
675 1.19 christos DT3(ipf_fi_bad_pr_ipv6exthdr_len, fr_info_t *, fin, u_short, shift, u_short, fin->fin_dlen);
676 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_ext_hlen);
677 1.1 christos return NULL;
678 1.1 christos }
679 1.1 christos
680 1.1 christos fin->fin_dp = (char *)fin->fin_dp + shift;
681 1.1 christos fin->fin_dlen -= shift;
682 1.1 christos
683 1.1 christos /*
684 1.1 christos * If we have seen a fragment header, do not set any flags to indicate
685 1.1 christos * the presence of this extension header as it has no impact on the
686 1.1 christos * end result until after it has been defragmented.
687 1.1 christos */
688 1.1 christos if (fin->fin_flx & FI_FRAG)
689 1.1 christos return hdr;
690 1.1 christos
691 1.1 christos for (i = 0; ip6exthdr[i].ol_bit != 0; i++)
692 1.1 christos if (ip6exthdr[i].ol_val == proto) {
693 1.1 christos /*
694 1.1 christos * Most IPv6 extension headers are only allowed once.
695 1.1 christos */
696 1.1 christos if ((multiple == 0) &&
697 1.19 christos ((fin->fin_optmsk & ip6exthdr[i].ol_bit) != 0)) {
698 1.1 christos fin->fin_flx |= FI_BAD;
699 1.19 christos DT2(ipf_fi_bad_ipv6exthdr_once, fr_info_t *, fin, u_int, (fin->fin_optmsk & ip6exthdr[i].ol_bit));
700 1.19 christos } else
701 1.1 christos fin->fin_optmsk |= ip6exthdr[i].ol_bit;
702 1.1 christos break;
703 1.1 christos }
704 1.1 christos
705 1.1 christos return hdr;
706 1.1 christos }
707 1.1 christos
708 1.1 christos
709 1.1 christos /* ------------------------------------------------------------------------ */
710 1.1 christos /* Function: ipf_pr_hopopts6 */
711 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
712 1.1 christos /* Parameters: fin(I) - pointer to packet information */
713 1.1 christos /* */
714 1.1 christos /* IPv6 Only */
715 1.1 christos /* This is function checks pending hop by hop options extension header */
716 1.1 christos /* ------------------------------------------------------------------------ */
717 1.1 christos static INLINE int
718 1.2 christos ipf_pr_hopopts6(fr_info_t *fin)
719 1.1 christos {
720 1.1 christos struct ip6_ext *hdr;
721 1.1 christos
722 1.1 christos hdr = ipf_pr_ipv6exthdr(fin, 0, IPPROTO_HOPOPTS);
723 1.1 christos if (hdr == NULL)
724 1.1 christos return IPPROTO_NONE;
725 1.1 christos return hdr->ip6e_nxt;
726 1.1 christos }
727 1.1 christos
728 1.1 christos
729 1.1 christos /* ------------------------------------------------------------------------ */
730 1.1 christos /* Function: ipf_pr_mobility6 */
731 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
732 1.1 christos /* Parameters: fin(I) - pointer to packet information */
733 1.1 christos /* */
734 1.1 christos /* IPv6 Only */
735 1.1 christos /* This is function checks the IPv6 mobility extension header */
736 1.1 christos /* ------------------------------------------------------------------------ */
737 1.1 christos static INLINE int
738 1.2 christos ipf_pr_mobility6(fr_info_t *fin)
739 1.1 christos {
740 1.1 christos struct ip6_ext *hdr;
741 1.1 christos
742 1.1 christos hdr = ipf_pr_ipv6exthdr(fin, 0, IPPROTO_MOBILITY);
743 1.1 christos if (hdr == NULL)
744 1.1 christos return IPPROTO_NONE;
745 1.1 christos return hdr->ip6e_nxt;
746 1.1 christos }
747 1.1 christos
748 1.1 christos
749 1.1 christos /* ------------------------------------------------------------------------ */
750 1.1 christos /* Function: ipf_pr_routing6 */
751 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
752 1.1 christos /* Parameters: fin(I) - pointer to packet information */
753 1.1 christos /* */
754 1.1 christos /* IPv6 Only */
755 1.1 christos /* This is function checks pending routing extension header */
756 1.1 christos /* ------------------------------------------------------------------------ */
757 1.1 christos static INLINE int
758 1.2 christos ipf_pr_routing6(fr_info_t *fin)
759 1.1 christos {
760 1.1 christos struct ip6_routing *hdr;
761 1.1 christos
762 1.1 christos hdr = (struct ip6_routing *)ipf_pr_ipv6exthdr(fin, 0, IPPROTO_ROUTING);
763 1.1 christos if (hdr == NULL)
764 1.1 christos return IPPROTO_NONE;
765 1.1 christos
766 1.1 christos switch (hdr->ip6r_type)
767 1.1 christos {
768 1.1 christos case 0 :
769 1.1 christos /*
770 1.1 christos * Nasty extension header length?
771 1.1 christos */
772 1.1 christos if (((hdr->ip6r_len >> 1) < hdr->ip6r_segleft) ||
773 1.1 christos (hdr->ip6r_segleft && (hdr->ip6r_len & 1))) {
774 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
775 1.1 christos
776 1.1 christos fin->fin_flx |= FI_BAD;
777 1.19 christos DT1(ipf_fi_bad_routing6, fr_info_t *, fin);
778 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_rh_bad);
779 1.1 christos return IPPROTO_NONE;
780 1.1 christos }
781 1.1 christos break;
782 1.1 christos
783 1.1 christos default :
784 1.1 christos break;
785 1.1 christos }
786 1.1 christos
787 1.1 christos return hdr->ip6r_nxt;
788 1.1 christos }
789 1.1 christos
790 1.1 christos
791 1.1 christos /* ------------------------------------------------------------------------ */
792 1.1 christos /* Function: ipf_pr_fragment6 */
793 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
794 1.1 christos /* Parameters: fin(I) - pointer to packet information */
795 1.1 christos /* */
796 1.1 christos /* IPv6 Only */
797 1.1 christos /* Examine the IPv6 fragment header and extract fragment offset information.*/
798 1.1 christos /* */
799 1.1 christos /* Fragments in IPv6 are extraordinarily difficult to deal with - much more */
800 1.1 christos /* so than in IPv4. There are 5 cases of fragments with IPv6 that all */
801 1.1 christos /* packets with a fragment header can fit into. They are as follows: */
802 1.1 christos /* */
803 1.1 christos /* 1. [IPv6][0-n EH][FH][0-n EH] (no L4HDR present) */
804 1.1 christos /* 2. [IPV6][0-n EH][FH][0-n EH][L4HDR part] (short) */
805 1.1 christos /* 3. [IPV6][0-n EH][FH][L4HDR part][0-n data] (short) */
806 1.1 christos /* 4. [IPV6][0-n EH][FH][0-n EH][L4HDR][0-n data] */
807 1.1 christos /* 5. [IPV6][0-n EH][FH][data] */
808 1.1 christos /* */
809 1.1 christos /* IPV6 = IPv6 header, FH = Fragment Header, */
810 1.1 christos /* 0-n EH = 0 or more extension headers, 0-n data = 0 or more bytes of data */
811 1.1 christos /* */
812 1.1 christos /* Packets that match 1, 2, 3 will be dropped as the only reasonable */
813 1.1 christos /* scenario in which they happen is in extreme circumstances that are most */
814 1.1 christos /* likely to be an indication of an attack rather than normal traffic. */
815 1.1 christos /* A type 3 packet may be sent by an attacked after a type 4 packet. There */
816 1.1 christos /* are two rules that can be used to guard against type 3 packets: L4 */
817 1.1 christos /* headers must always be in a packet that has the offset field set to 0 */
818 1.1 christos /* and no packet is allowed to overlay that where offset = 0. */
819 1.1 christos /* ------------------------------------------------------------------------ */
820 1.1 christos static INLINE int
821 1.2 christos ipf_pr_fragment6(fr_info_t *fin)
822 1.1 christos {
823 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
824 1.1 christos struct ip6_frag *frag;
825 1.1 christos
826 1.1 christos fin->fin_flx |= FI_FRAG;
827 1.1 christos
828 1.1 christos frag = (struct ip6_frag *)ipf_pr_ipv6exthdr(fin, 0, IPPROTO_FRAGMENT);
829 1.1 christos if (frag == NULL) {
830 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_frag_bad);
831 1.1 christos return IPPROTO_NONE;
832 1.1 christos }
833 1.1 christos
834 1.1 christos if ((frag->ip6f_offlg & IP6F_MORE_FRAG) != 0) {
835 1.1 christos /*
836 1.1 christos * Any fragment that isn't the last fragment must have its
837 1.1 christos * length as a multiple of 8.
838 1.1 christos */
839 1.19 christos if ((fin->fin_plen & 7) != 0) {
840 1.1 christos fin->fin_flx |= FI_BAD;
841 1.19 christos DT2(ipf_fi_bad_frag_not_8, fr_info_t *, fin, u_int, (fin->fin_plen & 7));
842 1.19 christos }
843 1.1 christos }
844 1.1 christos
845 1.1 christos fin->fin_fraghdr = frag;
846 1.1 christos fin->fin_id = frag->ip6f_ident;
847 1.1 christos fin->fin_off = ntohs(frag->ip6f_offlg & IP6F_OFF_MASK);
848 1.1 christos if (fin->fin_off != 0)
849 1.1 christos fin->fin_flx |= FI_FRAGBODY;
850 1.1 christos
851 1.1 christos /*
852 1.1 christos * Jumbograms aren't handled, so the max. length is 64k
853 1.1 christos */
854 1.19 christos if ((fin->fin_off << 3) + fin->fin_dlen > 65535) {
855 1.1 christos fin->fin_flx |= FI_BAD;
856 1.19 christos DT2(ipf_fi_bad_jumbogram, fr_info_t *, fin, u_int, ((fin->fin_off << 3) + fin->fin_dlen));
857 1.19 christos }
858 1.1 christos
859 1.1 christos /*
860 1.1 christos * We don't know where the transport layer header (or whatever is next
861 1.1 christos * is), as it could be behind destination options (amongst others) so
862 1.1 christos * return the fragment header as the type of packet this is. Note that
863 1.1 christos * this effectively disables the fragment cache for > 1 protocol at a
864 1.1 christos * time.
865 1.1 christos */
866 1.1 christos return frag->ip6f_nxt;
867 1.1 christos }
868 1.1 christos
869 1.1 christos
870 1.1 christos /* ------------------------------------------------------------------------ */
871 1.1 christos /* Function: ipf_pr_dstopts6 */
872 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
873 1.1 christos /* Parameters: fin(I) - pointer to packet information */
874 1.1 christos /* */
875 1.1 christos /* IPv6 Only */
876 1.1 christos /* This is function checks pending destination options extension header */
877 1.1 christos /* ------------------------------------------------------------------------ */
878 1.1 christos static INLINE int
879 1.2 christos ipf_pr_dstopts6(fr_info_t *fin)
880 1.1 christos {
881 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
882 1.1 christos struct ip6_ext *hdr;
883 1.1 christos
884 1.1 christos hdr = ipf_pr_ipv6exthdr(fin, 0, IPPROTO_DSTOPTS);
885 1.1 christos if (hdr == NULL) {
886 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_dst_bad);
887 1.1 christos return IPPROTO_NONE;
888 1.1 christos }
889 1.1 christos return hdr->ip6e_nxt;
890 1.1 christos }
891 1.1 christos
892 1.1 christos
893 1.1 christos /* ------------------------------------------------------------------------ */
894 1.1 christos /* Function: ipf_pr_icmp6 */
895 1.1 christos /* Returns: void */
896 1.1 christos /* Parameters: fin(I) - pointer to packet information */
897 1.1 christos /* */
898 1.1 christos /* IPv6 Only */
899 1.1 christos /* This routine is mainly concerned with determining the minimum valid size */
900 1.1 christos /* for an ICMPv6 packet. */
901 1.1 christos /* ------------------------------------------------------------------------ */
902 1.1 christos static INLINE void
903 1.2 christos ipf_pr_icmp6(fr_info_t *fin)
904 1.1 christos {
905 1.1 christos int minicmpsz = sizeof(struct icmp6_hdr);
906 1.1 christos struct icmp6_hdr *icmp6;
907 1.1 christos
908 1.1 christos if (ipf_pr_pullup(fin, ICMP6ERR_MINPKTLEN - sizeof(ip6_t)) == -1) {
909 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
910 1.1 christos
911 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_icmp6_pullup);
912 1.1 christos return;
913 1.1 christos }
914 1.1 christos
915 1.1 christos if (fin->fin_dlen > 1) {
916 1.1 christos ip6_t *ip6;
917 1.1 christos
918 1.1 christos icmp6 = fin->fin_dp;
919 1.1 christos
920 1.1 christos fin->fin_data[0] = *(u_short *)icmp6;
921 1.1 christos
922 1.1 christos if ((icmp6->icmp6_type & ICMP6_INFOMSG_MASK) != 0)
923 1.1 christos fin->fin_flx |= FI_ICMPQUERY;
924 1.1 christos
925 1.1 christos switch (icmp6->icmp6_type)
926 1.1 christos {
927 1.1 christos case ICMP6_ECHO_REPLY :
928 1.1 christos case ICMP6_ECHO_REQUEST :
929 1.1 christos if (fin->fin_dlen >= 6)
930 1.1 christos fin->fin_data[1] = icmp6->icmp6_id;
931 1.1 christos minicmpsz = ICMP6ERR_MINPKTLEN - sizeof(ip6_t);
932 1.1 christos break;
933 1.1 christos
934 1.1 christos case ICMP6_DST_UNREACH :
935 1.1 christos case ICMP6_PACKET_TOO_BIG :
936 1.1 christos case ICMP6_TIME_EXCEEDED :
937 1.1 christos case ICMP6_PARAM_PROB :
938 1.1 christos fin->fin_flx |= FI_ICMPERR;
939 1.1 christos minicmpsz = ICMP6ERR_IPICMPHLEN - sizeof(ip6_t);
940 1.1 christos if (fin->fin_plen < ICMP6ERR_IPICMPHLEN)
941 1.1 christos break;
942 1.1 christos
943 1.1 christos if (M_LEN(fin->fin_m) < fin->fin_plen) {
944 1.1 christos if (ipf_coalesce(fin) != 1)
945 1.1 christos return;
946 1.1 christos }
947 1.1 christos
948 1.1 christos if (ipf_pr_pullup(fin, ICMP6ERR_MINPKTLEN) == -1)
949 1.1 christos return;
950 1.1 christos
951 1.1 christos /*
952 1.1 christos * If the destination of this packet doesn't match the
953 1.1 christos * source of the original packet then this packet is
954 1.1 christos * not correct.
955 1.1 christos */
956 1.1 christos icmp6 = fin->fin_dp;
957 1.1 christos ip6 = (ip6_t *)((char *)icmp6 + ICMPERR_ICMPHLEN);
958 1.1 christos if (IP6_NEQ(&fin->fin_fi.fi_dst,
959 1.19 christos &ip6->ip6_src)) {
960 1.1 christos fin->fin_flx |= FI_BAD;
961 1.19 christos DT1(ipf_fi_bad_icmp6, fr_info_t *, fin);
962 1.19 christos }
963 1.1 christos break;
964 1.1 christos default :
965 1.1 christos break;
966 1.1 christos }
967 1.1 christos }
968 1.1 christos
969 1.1 christos ipf_pr_short6(fin, minicmpsz);
970 1.3 darrenr if ((fin->fin_flx & (FI_SHORT|FI_BAD)) == 0) {
971 1.3 darrenr u_char p = fin->fin_p;
972 1.3 darrenr
973 1.3 darrenr fin->fin_p = IPPROTO_ICMPV6;
974 1.3 darrenr ipf_checkv6sum(fin);
975 1.3 darrenr fin->fin_p = p;
976 1.3 darrenr }
977 1.1 christos }
978 1.1 christos
979 1.1 christos
980 1.1 christos /* ------------------------------------------------------------------------ */
981 1.1 christos /* Function: ipf_pr_udp6 */
982 1.1 christos /* Returns: void */
983 1.1 christos /* Parameters: fin(I) - pointer to packet information */
984 1.1 christos /* */
985 1.1 christos /* IPv6 Only */
986 1.1 christos /* Analyse the packet for IPv6/UDP properties. */
987 1.1 christos /* Is not expected to be called for fragmented packets. */
988 1.1 christos /* ------------------------------------------------------------------------ */
989 1.1 christos static INLINE void
990 1.2 christos ipf_pr_udp6(fr_info_t *fin)
991 1.1 christos {
992 1.1 christos
993 1.1 christos if (ipf_pr_udpcommon(fin) == 0) {
994 1.1 christos u_char p = fin->fin_p;
995 1.1 christos
996 1.1 christos fin->fin_p = IPPROTO_UDP;
997 1.1 christos ipf_checkv6sum(fin);
998 1.1 christos fin->fin_p = p;
999 1.1 christos }
1000 1.1 christos }
1001 1.1 christos
1002 1.1 christos
1003 1.1 christos /* ------------------------------------------------------------------------ */
1004 1.1 christos /* Function: ipf_pr_tcp6 */
1005 1.1 christos /* Returns: void */
1006 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1007 1.1 christos /* */
1008 1.1 christos /* IPv6 Only */
1009 1.1 christos /* Analyse the packet for IPv6/TCP properties. */
1010 1.1 christos /* Is not expected to be called for fragmented packets. */
1011 1.1 christos /* ------------------------------------------------------------------------ */
1012 1.1 christos static INLINE void
1013 1.2 christos ipf_pr_tcp6(fr_info_t *fin)
1014 1.1 christos {
1015 1.1 christos
1016 1.1 christos if (ipf_pr_tcpcommon(fin) == 0) {
1017 1.1 christos u_char p = fin->fin_p;
1018 1.1 christos
1019 1.3 darrenr fin->fin_p = IPPROTO_TCP;
1020 1.1 christos ipf_checkv6sum(fin);
1021 1.1 christos fin->fin_p = p;
1022 1.1 christos }
1023 1.1 christos }
1024 1.1 christos
1025 1.1 christos
1026 1.1 christos /* ------------------------------------------------------------------------ */
1027 1.1 christos /* Function: ipf_pr_esp6 */
1028 1.1 christos /* Returns: void */
1029 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1030 1.1 christos /* */
1031 1.1 christos /* IPv6 Only */
1032 1.1 christos /* Analyse the packet for ESP properties. */
1033 1.1 christos /* The minimum length is taken to be the SPI (32bits) plus a tail (32bits) */
1034 1.1 christos /* even though the newer ESP packets must also have a sequence number that */
1035 1.1 christos /* is 32bits as well, it is not possible(?) to determine the version from a */
1036 1.1 christos /* simple packet header. */
1037 1.1 christos /* ------------------------------------------------------------------------ */
1038 1.1 christos static INLINE void
1039 1.2 christos ipf_pr_esp6(fr_info_t *fin)
1040 1.1 christos {
1041 1.1 christos
1042 1.1 christos if ((fin->fin_off == 0) && (ipf_pr_pullup(fin, 8) == -1)) {
1043 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1044 1.1 christos
1045 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_esp_pullup);
1046 1.1 christos return;
1047 1.1 christos }
1048 1.1 christos }
1049 1.1 christos
1050 1.1 christos
1051 1.1 christos /* ------------------------------------------------------------------------ */
1052 1.1 christos /* Function: ipf_pr_ah6 */
1053 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
1054 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1055 1.1 christos /* */
1056 1.1 christos /* IPv6 Only */
1057 1.1 christos /* Analyse the packet for AH properties. */
1058 1.1 christos /* The minimum length is taken to be the combination of all fields in the */
1059 1.1 christos /* header being present and no authentication data (null algorithm used.) */
1060 1.1 christos /* ------------------------------------------------------------------------ */
1061 1.1 christos static INLINE int
1062 1.2 christos ipf_pr_ah6(fr_info_t *fin)
1063 1.1 christos {
1064 1.1 christos authhdr_t *ah;
1065 1.1 christos
1066 1.1 christos fin->fin_flx |= FI_AH;
1067 1.1 christos
1068 1.1 christos ah = (authhdr_t *)ipf_pr_ipv6exthdr(fin, 0, IPPROTO_HOPOPTS);
1069 1.1 christos if (ah == NULL) {
1070 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1071 1.1 christos
1072 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_ah_bad);
1073 1.1 christos return IPPROTO_NONE;
1074 1.1 christos }
1075 1.1 christos
1076 1.1 christos ipf_pr_short6(fin, sizeof(*ah));
1077 1.1 christos
1078 1.1 christos /*
1079 1.1 christos * No need for another pullup, ipf_pr_ipv6exthdr() will pullup
1080 1.1 christos * enough data to satisfy ah_next (the very first one.)
1081 1.1 christos */
1082 1.1 christos return ah->ah_next;
1083 1.1 christos }
1084 1.1 christos
1085 1.1 christos
1086 1.1 christos /* ------------------------------------------------------------------------ */
1087 1.1 christos /* Function: ipf_pr_gre6 */
1088 1.1 christos /* Returns: void */
1089 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1090 1.1 christos /* */
1091 1.1 christos /* Analyse the packet for GRE properties. */
1092 1.1 christos /* ------------------------------------------------------------------------ */
1093 1.1 christos static INLINE void
1094 1.2 christos ipf_pr_gre6(fr_info_t *fin)
1095 1.1 christos {
1096 1.1 christos grehdr_t *gre;
1097 1.1 christos
1098 1.1 christos if (ipf_pr_pullup(fin, sizeof(grehdr_t)) == -1) {
1099 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1100 1.1 christos
1101 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v6_gre_pullup);
1102 1.1 christos return;
1103 1.1 christos }
1104 1.1 christos
1105 1.1 christos gre = fin->fin_dp;
1106 1.1 christos if (GRE_REV(gre->gr_flags) == 1)
1107 1.1 christos fin->fin_data[0] = gre->gr_call;
1108 1.1 christos }
1109 1.1 christos #endif /* USE_INET6 */
1110 1.1 christos
1111 1.1 christos
1112 1.1 christos /* ------------------------------------------------------------------------ */
1113 1.1 christos /* Function: ipf_pr_pullup */
1114 1.1 christos /* Returns: int - 0 == pullup succeeded, -1 == failure */
1115 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1116 1.1 christos /* plen(I) - length (excluding L3 header) to pullup */
1117 1.1 christos /* */
1118 1.1 christos /* Short inline function to cut down on code duplication to perform a call */
1119 1.1 christos /* to ipf_pullup to ensure there is the required amount of data, */
1120 1.1 christos /* consecutively in the packet buffer. */
1121 1.1 christos /* */
1122 1.1 christos /* This function pulls up 'extra' data at the location of fin_dp. fin_dp */
1123 1.1 christos /* points to the first byte after the complete layer 3 header, which will */
1124 1.1 christos /* include all of the known extension headers for IPv6 or options for IPv4. */
1125 1.1 christos /* */
1126 1.1 christos /* Since fr_pullup() expects the total length of bytes to be pulled up, it */
1127 1.1 christos /* is necessary to add those we can already assume to be pulled up (fin_dp */
1128 1.1 christos /* - fin_ip) to what is passed through. */
1129 1.1 christos /* ------------------------------------------------------------------------ */
1130 1.1 christos int
1131 1.2 christos ipf_pr_pullup(fr_info_t *fin, int plen)
1132 1.1 christos {
1133 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1134 1.1 christos
1135 1.1 christos if (fin->fin_m != NULL) {
1136 1.1 christos if (fin->fin_dp != NULL)
1137 1.1 christos plen += (char *)fin->fin_dp -
1138 1.1 christos ((char *)fin->fin_ip + fin->fin_hlen);
1139 1.1 christos plen += fin->fin_hlen;
1140 1.3 darrenr if (M_LEN(fin->fin_m) < plen + fin->fin_ipoff) {
1141 1.1 christos #if defined(_KERNEL)
1142 1.1 christos if (ipf_pullup(fin->fin_m, fin, plen) == NULL) {
1143 1.1 christos DT(ipf_pullup_fail);
1144 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_pull[1]);
1145 1.1 christos return -1;
1146 1.1 christos }
1147 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_pull[0]);
1148 1.1 christos #else
1149 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_pull[1]);
1150 1.1 christos /*
1151 1.1 christos * Fake ipf_pullup failing
1152 1.1 christos */
1153 1.1 christos fin->fin_reason = FRB_PULLUP;
1154 1.1 christos *fin->fin_mp = NULL;
1155 1.1 christos fin->fin_m = NULL;
1156 1.1 christos fin->fin_ip = NULL;
1157 1.1 christos return -1;
1158 1.1 christos #endif
1159 1.1 christos }
1160 1.1 christos }
1161 1.1 christos return 0;
1162 1.1 christos }
1163 1.1 christos
1164 1.1 christos
1165 1.1 christos /* ------------------------------------------------------------------------ */
1166 1.1 christos /* Function: ipf_pr_short */
1167 1.1 christos /* Returns: void */
1168 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1169 1.1 christos /* xmin(I) - minimum header size */
1170 1.1 christos /* */
1171 1.1 christos /* Check if a packet is "short" as defined by xmin. The rule we are */
1172 1.1 christos /* applying here is that the packet must not be fragmented within the layer */
1173 1.1 christos /* 4 header. That is, it must not be a fragment that has its offset set to */
1174 1.1 christos /* start within the layer 4 header (hdrmin) or if it is at offset 0, the */
1175 1.1 christos /* entire layer 4 header must be present (min). */
1176 1.1 christos /* ------------------------------------------------------------------------ */
1177 1.1 christos static INLINE void
1178 1.2 christos ipf_pr_short(fr_info_t *fin, int xmin)
1179 1.1 christos {
1180 1.1 christos
1181 1.1 christos if (fin->fin_off == 0) {
1182 1.1 christos if (fin->fin_dlen < xmin)
1183 1.1 christos fin->fin_flx |= FI_SHORT;
1184 1.1 christos } else if (fin->fin_off < xmin) {
1185 1.1 christos fin->fin_flx |= FI_SHORT;
1186 1.1 christos }
1187 1.1 christos }
1188 1.1 christos
1189 1.1 christos
1190 1.1 christos /* ------------------------------------------------------------------------ */
1191 1.1 christos /* Function: ipf_pr_icmp */
1192 1.1 christos /* Returns: void */
1193 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1194 1.1 christos /* */
1195 1.1 christos /* IPv4 Only */
1196 1.1 christos /* Do a sanity check on the packet for ICMP (v4). In nearly all cases, */
1197 1.1 christos /* except extrememly bad packets, both type and code will be present. */
1198 1.1 christos /* The expected minimum size of an ICMP packet is very much dependent on */
1199 1.1 christos /* the type of it. */
1200 1.1 christos /* */
1201 1.1 christos /* XXX - other ICMP sanity checks? */
1202 1.1 christos /* ------------------------------------------------------------------------ */
1203 1.1 christos static INLINE void
1204 1.2 christos ipf_pr_icmp(fr_info_t *fin)
1205 1.1 christos {
1206 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1207 1.1 christos int minicmpsz = sizeof(struct icmp);
1208 1.1 christos icmphdr_t *icmp;
1209 1.1 christos ip_t *oip;
1210 1.1 christos
1211 1.1 christos ipf_pr_short(fin, ICMPERR_ICMPHLEN);
1212 1.1 christos
1213 1.1 christos if (fin->fin_off != 0) {
1214 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_icmp_frag);
1215 1.1 christos return;
1216 1.1 christos }
1217 1.1 christos
1218 1.1 christos if (ipf_pr_pullup(fin, ICMPERR_ICMPHLEN) == -1) {
1219 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_icmp_pullup);
1220 1.1 christos return;
1221 1.1 christos }
1222 1.1 christos
1223 1.1 christos icmp = fin->fin_dp;
1224 1.1 christos
1225 1.1 christos fin->fin_data[0] = *(u_short *)icmp;
1226 1.1 christos fin->fin_data[1] = icmp->icmp_id;
1227 1.1 christos
1228 1.1 christos switch (icmp->icmp_type)
1229 1.1 christos {
1230 1.1 christos case ICMP_ECHOREPLY :
1231 1.1 christos case ICMP_ECHO :
1232 1.1 christos /* Router discovery messaes - RFC 1256 */
1233 1.1 christos case ICMP_ROUTERADVERT :
1234 1.1 christos case ICMP_ROUTERSOLICIT :
1235 1.1 christos fin->fin_flx |= FI_ICMPQUERY;
1236 1.1 christos minicmpsz = ICMP_MINLEN;
1237 1.1 christos break;
1238 1.1 christos /*
1239 1.1 christos * type(1) + code(1) + cksum(2) + id(2) seq(2) +
1240 1.1 christos * 3 * timestamp(3 * 4)
1241 1.1 christos */
1242 1.1 christos case ICMP_TSTAMP :
1243 1.1 christos case ICMP_TSTAMPREPLY :
1244 1.1 christos fin->fin_flx |= FI_ICMPQUERY;
1245 1.1 christos minicmpsz = 20;
1246 1.1 christos break;
1247 1.1 christos /*
1248 1.1 christos * type(1) + code(1) + cksum(2) + id(2) seq(2) +
1249 1.1 christos * mask(4)
1250 1.1 christos */
1251 1.1 christos case ICMP_IREQ :
1252 1.1 christos case ICMP_IREQREPLY :
1253 1.1 christos case ICMP_MASKREQ :
1254 1.1 christos case ICMP_MASKREPLY :
1255 1.1 christos fin->fin_flx |= FI_ICMPQUERY;
1256 1.1 christos minicmpsz = 12;
1257 1.1 christos break;
1258 1.1 christos /*
1259 1.1 christos * type(1) + code(1) + cksum(2) + id(2) seq(2) + ip(20+)
1260 1.1 christos */
1261 1.1 christos case ICMP_UNREACH :
1262 1.1 christos #ifdef icmp_nextmtu
1263 1.1 christos if (icmp->icmp_code == ICMP_UNREACH_NEEDFRAG) {
1264 1.19 christos if (icmp->icmp_nextmtu < softc->ipf_icmpminfragmtu) {
1265 1.1 christos fin->fin_flx |= FI_BAD;
1266 1.19 christos DT3(ipf_fi_bad_icmp_nextmtu, fr_info_t *, fin, u_int, icmp->icmp_nextmtu, u_int, softc->ipf_icmpminfragmtu);
1267 1.19 christos }
1268 1.1 christos }
1269 1.1 christos #endif
1270 1.25 mrg /* FALLTHROUGH */
1271 1.1 christos case ICMP_SOURCEQUENCH :
1272 1.1 christos case ICMP_REDIRECT :
1273 1.1 christos case ICMP_TIMXCEED :
1274 1.1 christos case ICMP_PARAMPROB :
1275 1.1 christos fin->fin_flx |= FI_ICMPERR;
1276 1.1 christos if (ipf_coalesce(fin) != 1) {
1277 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_icmp_coalesce);
1278 1.1 christos return;
1279 1.1 christos }
1280 1.1 christos
1281 1.1 christos /*
1282 1.1 christos * ICMP error packets should not be generated for IP
1283 1.1 christos * packets that are a fragment that isn't the first
1284 1.1 christos * fragment.
1285 1.1 christos */
1286 1.1 christos oip = (ip_t *)((char *)fin->fin_dp + ICMPERR_ICMPHLEN);
1287 1.19 christos if ((ntohs(oip->ip_off) & IP_OFFMASK) != 0) {
1288 1.1 christos fin->fin_flx |= FI_BAD;
1289 1.19 christos DT2(ipf_fi_bad_icmp_err, fr_info_t, fin, u_int, (ntohs(oip->ip_off) & IP_OFFMASK));
1290 1.19 christos }
1291 1.1 christos
1292 1.1 christos /*
1293 1.1 christos * If the destination of this packet doesn't match the
1294 1.1 christos * source of the original packet then this packet is
1295 1.1 christos * not correct.
1296 1.1 christos */
1297 1.19 christos if (oip->ip_src.s_addr != fin->fin_daddr) {
1298 1.1 christos fin->fin_flx |= FI_BAD;
1299 1.19 christos DT1(ipf_fi_bad_src_ne_dst, fr_info_t *, fin);
1300 1.19 christos }
1301 1.1 christos break;
1302 1.1 christos default :
1303 1.1 christos break;
1304 1.1 christos }
1305 1.1 christos
1306 1.1 christos ipf_pr_short(fin, minicmpsz);
1307 1.1 christos
1308 1.1 christos ipf_checkv4sum(fin);
1309 1.1 christos }
1310 1.1 christos
1311 1.1 christos
1312 1.1 christos /* ------------------------------------------------------------------------ */
1313 1.1 christos /* Function: ipf_pr_tcpcommon */
1314 1.1 christos /* Returns: int - 0 = header ok, 1 = bad packet, -1 = buffer error */
1315 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1316 1.1 christos /* */
1317 1.1 christos /* TCP header sanity checking. Look for bad combinations of TCP flags, */
1318 1.1 christos /* and make some checks with how they interact with other fields. */
1319 1.1 christos /* If compiled with IPFILTER_CKSUM, check to see if the TCP checksum is */
1320 1.1 christos /* valid and mark the packet as bad if not. */
1321 1.1 christos /* ------------------------------------------------------------------------ */
1322 1.1 christos static INLINE int
1323 1.2 christos ipf_pr_tcpcommon(fr_info_t *fin)
1324 1.1 christos {
1325 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1326 1.1 christos int flags, tlen;
1327 1.1 christos tcphdr_t *tcp;
1328 1.1 christos
1329 1.1 christos fin->fin_flx |= FI_TCPUDP;
1330 1.1 christos if (fin->fin_off != 0) {
1331 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_frag);
1332 1.1 christos return 0;
1333 1.1 christos }
1334 1.1 christos
1335 1.1 christos if (ipf_pr_pullup(fin, sizeof(*tcp)) == -1) {
1336 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_pullup);
1337 1.1 christos return -1;
1338 1.1 christos }
1339 1.1 christos
1340 1.1 christos tcp = fin->fin_dp;
1341 1.1 christos if (fin->fin_dlen > 3) {
1342 1.1 christos fin->fin_sport = ntohs(tcp->th_sport);
1343 1.1 christos fin->fin_dport = ntohs(tcp->th_dport);
1344 1.1 christos }
1345 1.1 christos
1346 1.1 christos if ((fin->fin_flx & FI_SHORT) != 0) {
1347 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_short);
1348 1.1 christos return 1;
1349 1.1 christos }
1350 1.1 christos
1351 1.1 christos /*
1352 1.1 christos * Use of the TCP data offset *must* result in a value that is at
1353 1.1 christos * least the same size as the TCP header.
1354 1.1 christos */
1355 1.1 christos tlen = TCP_OFF(tcp) << 2;
1356 1.1 christos if (tlen < sizeof(tcphdr_t)) {
1357 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_small);
1358 1.1 christos fin->fin_flx |= FI_BAD;
1359 1.19 christos DT3(ipf_fi_bad_tlen, fr_info_t, fin, u_int, tlen, u_int, sizeof(tcphdr_t));
1360 1.1 christos return 1;
1361 1.1 christos }
1362 1.1 christos
1363 1.1 christos flags = tcp->th_flags;
1364 1.1 christos fin->fin_tcpf = tcp->th_flags;
1365 1.1 christos
1366 1.1 christos /*
1367 1.1 christos * If the urgent flag is set, then the urgent pointer must
1368 1.1 christos * also be set and vice versa. Good TCP packets do not have
1369 1.1 christos * just one of these set.
1370 1.1 christos */
1371 1.1 christos if ((flags & TH_URG) != 0 && (tcp->th_urp == 0)) {
1372 1.1 christos fin->fin_flx |= FI_BAD;
1373 1.19 christos DT3(ipf_fi_bad_th_urg, fr_info_t*, fin, u_int, (flags & TH_URG), u_int, tcp->th_urp);
1374 1.1 christos #if 0
1375 1.1 christos } else if ((flags & TH_URG) == 0 && (tcp->th_urp != 0)) {
1376 1.1 christos /*
1377 1.1 christos * Ignore this case (#if 0) as it shows up in "real"
1378 1.1 christos * traffic with bogus values in the urgent pointer field.
1379 1.1 christos */
1380 1.1 christos fin->fin_flx |= FI_BAD;
1381 1.19 christos DT3(ipf_fi_bad_th_urg0, fr_info_t *, fin, u_int, (flags & TH_URG), u_int, tcp->th_urp);
1382 1.1 christos #endif
1383 1.1 christos } else if (((flags & (TH_SYN|TH_FIN)) != 0) &&
1384 1.1 christos ((flags & (TH_RST|TH_ACK)) == TH_RST)) {
1385 1.1 christos /* TH_FIN|TH_RST|TH_ACK seems to appear "naturally" */
1386 1.1 christos fin->fin_flx |= FI_BAD;
1387 1.19 christos DT1(ipf_fi_bad_th_fin_rst_ack, fr_info_t, fin);
1388 1.1 christos #if 1
1389 1.1 christos } else if (((flags & TH_SYN) != 0) &&
1390 1.1 christos ((flags & (TH_URG|TH_PUSH)) != 0)) {
1391 1.1 christos /*
1392 1.1 christos * SYN with URG and PUSH set is not for normal TCP but it is
1393 1.1 christos * possible(?) with T/TCP...but who uses T/TCP?
1394 1.1 christos */
1395 1.1 christos fin->fin_flx |= FI_BAD;
1396 1.19 christos DT1(ipf_fi_bad_th_syn_urg_psh, fr_info_t *, fin);
1397 1.1 christos #endif
1398 1.1 christos } else if (!(flags & TH_ACK)) {
1399 1.1 christos /*
1400 1.1 christos * If the ack bit isn't set, then either the SYN or
1401 1.1 christos * RST bit must be set. If the SYN bit is set, then
1402 1.1 christos * we expect the ACK field to be 0. If the ACK is
1403 1.1 christos * not set and if URG, PSH or FIN are set, consdier
1404 1.1 christos * that to indicate a bad TCP packet.
1405 1.1 christos */
1406 1.1 christos if ((flags == TH_SYN) && (tcp->th_ack != 0)) {
1407 1.1 christos /*
1408 1.1 christos * Cisco PIX sets the ACK field to a random value.
1409 1.1 christos * In light of this, do not set FI_BAD until a patch
1410 1.1 christos * is available from Cisco to ensure that
1411 1.1 christos * interoperability between existing systems is
1412 1.1 christos * achieved.
1413 1.1 christos */
1414 1.1 christos /*fin->fin_flx |= FI_BAD*/;
1415 1.19 christos /*DT1(ipf_fi_bad_th_syn_ack, fr_info_t *, fin);*/
1416 1.1 christos } else if (!(flags & (TH_RST|TH_SYN))) {
1417 1.1 christos fin->fin_flx |= FI_BAD;
1418 1.19 christos DT1(ipf_fi_bad_th_rst_syn, fr_info_t *, fin);
1419 1.1 christos } else if ((flags & (TH_URG|TH_PUSH|TH_FIN)) != 0) {
1420 1.1 christos fin->fin_flx |= FI_BAD;
1421 1.19 christos DT1(ipf_fi_bad_th_urg_push_fin, fr_info_t *, fin);
1422 1.1 christos }
1423 1.1 christos }
1424 1.1 christos if (fin->fin_flx & FI_BAD) {
1425 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_bad_flags);
1426 1.1 christos return 1;
1427 1.1 christos }
1428 1.1 christos
1429 1.1 christos /*
1430 1.1 christos * At this point, it's not exactly clear what is to be gained by
1431 1.1 christos * marking up which TCP options are and are not present. The one we
1432 1.1 christos * are most interested in is the TCP window scale. This is only in
1433 1.1 christos * a SYN packet [RFC1323] so we don't need this here...?
1434 1.1 christos * Now if we were to analyse the header for passive fingerprinting,
1435 1.1 christos * then that might add some weight to adding this...
1436 1.1 christos */
1437 1.1 christos if (tlen == sizeof(tcphdr_t)) {
1438 1.1 christos return 0;
1439 1.1 christos }
1440 1.1 christos
1441 1.1 christos if (ipf_pr_pullup(fin, tlen) == -1) {
1442 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_tcp_pullup);
1443 1.1 christos return -1;
1444 1.1 christos }
1445 1.1 christos
1446 1.1 christos #if 0
1447 1.1 christos tcp = fin->fin_dp;
1448 1.1 christos ip = fin->fin_ip;
1449 1.1 christos s = (u_char *)(tcp + 1);
1450 1.1 christos off = IP_HL(ip) << 2;
1451 1.1 christos # ifdef _KERNEL
1452 1.1 christos if (fin->fin_mp != NULL) {
1453 1.1 christos mb_t *m = *fin->fin_mp;
1454 1.1 christos
1455 1.1 christos if (off + tlen > M_LEN(m))
1456 1.1 christos return;
1457 1.1 christos }
1458 1.1 christos # endif
1459 1.1 christos for (tlen -= (int)sizeof(*tcp); tlen > 0; ) {
1460 1.1 christos opt = *s;
1461 1.1 christos if (opt == '\0')
1462 1.1 christos break;
1463 1.1 christos else if (opt == TCPOPT_NOP)
1464 1.1 christos ol = 1;
1465 1.1 christos else {
1466 1.1 christos if (tlen < 2)
1467 1.1 christos break;
1468 1.1 christos ol = (int)*(s + 1);
1469 1.1 christos if (ol < 2 || ol > tlen)
1470 1.1 christos break;
1471 1.1 christos }
1472 1.1 christos
1473 1.1 christos for (i = 9, mv = 4; mv >= 0; ) {
1474 1.1 christos op = ipopts + i;
1475 1.1 christos if (opt == (u_char)op->ol_val) {
1476 1.1 christos optmsk |= op->ol_bit;
1477 1.1 christos break;
1478 1.1 christos }
1479 1.1 christos }
1480 1.1 christos tlen -= ol;
1481 1.1 christos s += ol;
1482 1.1 christos }
1483 1.1 christos #endif /* 0 */
1484 1.1 christos
1485 1.1 christos return 0;
1486 1.1 christos }
1487 1.1 christos
1488 1.1 christos
1489 1.1 christos
1490 1.1 christos /* ------------------------------------------------------------------------ */
1491 1.1 christos /* Function: ipf_pr_udpcommon */
1492 1.1 christos /* Returns: int - 0 = header ok, 1 = bad packet */
1493 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1494 1.1 christos /* */
1495 1.1 christos /* Extract the UDP source and destination ports, if present. If compiled */
1496 1.1 christos /* with IPFILTER_CKSUM, check to see if the UDP checksum is valid. */
1497 1.1 christos /* ------------------------------------------------------------------------ */
1498 1.1 christos static INLINE int
1499 1.2 christos ipf_pr_udpcommon(fr_info_t *fin)
1500 1.1 christos {
1501 1.1 christos udphdr_t *udp;
1502 1.1 christos
1503 1.1 christos fin->fin_flx |= FI_TCPUDP;
1504 1.1 christos
1505 1.1 christos if (!fin->fin_off && (fin->fin_dlen > 3)) {
1506 1.1 christos if (ipf_pr_pullup(fin, sizeof(*udp)) == -1) {
1507 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1508 1.1 christos
1509 1.1 christos fin->fin_flx |= FI_SHORT;
1510 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_udp_pullup);
1511 1.1 christos return 1;
1512 1.1 christos }
1513 1.1 christos
1514 1.1 christos udp = fin->fin_dp;
1515 1.1 christos
1516 1.1 christos fin->fin_sport = ntohs(udp->uh_sport);
1517 1.1 christos fin->fin_dport = ntohs(udp->uh_dport);
1518 1.1 christos }
1519 1.1 christos
1520 1.1 christos return 0;
1521 1.1 christos }
1522 1.1 christos
1523 1.1 christos
1524 1.1 christos /* ------------------------------------------------------------------------ */
1525 1.1 christos /* Function: ipf_pr_tcp */
1526 1.1 christos /* Returns: void */
1527 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1528 1.1 christos /* */
1529 1.1 christos /* IPv4 Only */
1530 1.1 christos /* Analyse the packet for IPv4/TCP properties. */
1531 1.1 christos /* ------------------------------------------------------------------------ */
1532 1.1 christos static INLINE void
1533 1.2 christos ipf_pr_tcp(fr_info_t *fin)
1534 1.1 christos {
1535 1.1 christos
1536 1.1 christos ipf_pr_short(fin, sizeof(tcphdr_t));
1537 1.1 christos
1538 1.1 christos if (ipf_pr_tcpcommon(fin) == 0)
1539 1.1 christos ipf_checkv4sum(fin);
1540 1.1 christos }
1541 1.1 christos
1542 1.1 christos
1543 1.1 christos /* ------------------------------------------------------------------------ */
1544 1.1 christos /* Function: ipf_pr_udp */
1545 1.1 christos /* Returns: void */
1546 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1547 1.1 christos /* */
1548 1.1 christos /* IPv4 Only */
1549 1.1 christos /* Analyse the packet for IPv4/UDP properties. */
1550 1.1 christos /* ------------------------------------------------------------------------ */
1551 1.1 christos static INLINE void
1552 1.2 christos ipf_pr_udp(fr_info_t *fin)
1553 1.1 christos {
1554 1.1 christos
1555 1.1 christos ipf_pr_short(fin, sizeof(udphdr_t));
1556 1.1 christos
1557 1.1 christos if (ipf_pr_udpcommon(fin) == 0)
1558 1.1 christos ipf_checkv4sum(fin);
1559 1.1 christos }
1560 1.1 christos
1561 1.1 christos
1562 1.1 christos /* ------------------------------------------------------------------------ */
1563 1.1 christos /* Function: ipf_pr_esp */
1564 1.1 christos /* Returns: void */
1565 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1566 1.1 christos /* */
1567 1.1 christos /* Analyse the packet for ESP properties. */
1568 1.1 christos /* The minimum length is taken to be the SPI (32bits) plus a tail (32bits) */
1569 1.1 christos /* even though the newer ESP packets must also have a sequence number that */
1570 1.1 christos /* is 32bits as well, it is not possible(?) to determine the version from a */
1571 1.1 christos /* simple packet header. */
1572 1.1 christos /* ------------------------------------------------------------------------ */
1573 1.1 christos static INLINE void
1574 1.2 christos ipf_pr_esp(fr_info_t *fin)
1575 1.1 christos {
1576 1.1 christos
1577 1.1 christos if (fin->fin_off == 0) {
1578 1.1 christos ipf_pr_short(fin, 8);
1579 1.1 christos if (ipf_pr_pullup(fin, 8) == -1) {
1580 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1581 1.1 christos
1582 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_esp_pullup);
1583 1.1 christos }
1584 1.1 christos }
1585 1.1 christos }
1586 1.1 christos
1587 1.1 christos
1588 1.1 christos /* ------------------------------------------------------------------------ */
1589 1.1 christos /* Function: ipf_pr_ah */
1590 1.1 christos /* Returns: int - value of the next header or IPPROTO_NONE if error */
1591 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1592 1.1 christos /* */
1593 1.1 christos /* Analyse the packet for AH properties. */
1594 1.1 christos /* The minimum length is taken to be the combination of all fields in the */
1595 1.1 christos /* header being present and no authentication data (null algorithm used.) */
1596 1.1 christos /* ------------------------------------------------------------------------ */
1597 1.1 christos static INLINE int
1598 1.2 christos ipf_pr_ah(fr_info_t *fin)
1599 1.1 christos {
1600 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1601 1.1 christos authhdr_t *ah;
1602 1.1 christos int len;
1603 1.1 christos
1604 1.1 christos fin->fin_flx |= FI_AH;
1605 1.1 christos ipf_pr_short(fin, sizeof(*ah));
1606 1.1 christos
1607 1.1 christos if (((fin->fin_flx & FI_SHORT) != 0) || (fin->fin_off != 0)) {
1608 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_ah_bad);
1609 1.1 christos return IPPROTO_NONE;
1610 1.1 christos }
1611 1.1 christos
1612 1.1 christos if (ipf_pr_pullup(fin, sizeof(*ah)) == -1) {
1613 1.1 christos DT(fr_v4_ah_pullup_1);
1614 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_v4_ah_pullup);
1615 1.1 christos return IPPROTO_NONE;
1616 1.1 christos }
1617 1.1 christos
1618 1.1 christos ah = (authhdr_t *)fin->fin_dp;
1619 1.1 christos
1620 1.1 christos len = (ah->ah_plen + 2) << 2;
1621 1.1 christos ipf_pr_short(fin, len);
1622 1.1 christos if (ipf_pr_pullup(fin, len) == -1) {
1623 1.1 christos DT(fr_v4_ah_pullup_2);
1624 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_v4_ah_pullup);
1625 1.1 christos return IPPROTO_NONE;
1626 1.1 christos }
1627 1.1 christos
1628 1.1 christos /*
1629 1.1 christos * Adjust fin_dp and fin_dlen for skipping over the authentication
1630 1.1 christos * header.
1631 1.1 christos */
1632 1.1 christos fin->fin_dp = (char *)fin->fin_dp + len;
1633 1.1 christos fin->fin_dlen -= len;
1634 1.1 christos return ah->ah_next;
1635 1.1 christos }
1636 1.1 christos
1637 1.1 christos
1638 1.1 christos /* ------------------------------------------------------------------------ */
1639 1.1 christos /* Function: ipf_pr_gre */
1640 1.1 christos /* Returns: void */
1641 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1642 1.1 christos /* */
1643 1.1 christos /* Analyse the packet for GRE properties. */
1644 1.1 christos /* ------------------------------------------------------------------------ */
1645 1.1 christos static INLINE void
1646 1.2 christos ipf_pr_gre(fr_info_t *fin)
1647 1.1 christos {
1648 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1649 1.1 christos grehdr_t *gre;
1650 1.1 christos
1651 1.1 christos ipf_pr_short(fin, sizeof(grehdr_t));
1652 1.1 christos
1653 1.1 christos if (fin->fin_off != 0) {
1654 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_gre_frag);
1655 1.1 christos return;
1656 1.1 christos }
1657 1.1 christos
1658 1.1 christos if (ipf_pr_pullup(fin, sizeof(grehdr_t)) == -1) {
1659 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_gre_pullup);
1660 1.1 christos return;
1661 1.1 christos }
1662 1.1 christos
1663 1.1 christos gre = fin->fin_dp;
1664 1.1 christos if (GRE_REV(gre->gr_flags) == 1)
1665 1.1 christos fin->fin_data[0] = gre->gr_call;
1666 1.1 christos }
1667 1.1 christos
1668 1.1 christos
1669 1.1 christos /* ------------------------------------------------------------------------ */
1670 1.1 christos /* Function: ipf_pr_ipv4hdr */
1671 1.1 christos /* Returns: void */
1672 1.1 christos /* Parameters: fin(I) - pointer to packet information */
1673 1.1 christos /* */
1674 1.1 christos /* IPv4 Only */
1675 1.1 christos /* Analyze the IPv4 header and set fields in the fr_info_t structure. */
1676 1.1 christos /* Check all options present and flag their presence if any exist. */
1677 1.1 christos /* ------------------------------------------------------------------------ */
1678 1.1 christos static INLINE void
1679 1.2 christos ipf_pr_ipv4hdr(fr_info_t *fin)
1680 1.1 christos {
1681 1.1 christos u_short optmsk = 0, secmsk = 0, auth = 0;
1682 1.1 christos int hlen, ol, mv, p, i;
1683 1.1 christos const struct optlist *op;
1684 1.1 christos u_char *s, opt;
1685 1.1 christos u_short off;
1686 1.1 christos fr_ip_t *fi;
1687 1.1 christos ip_t *ip;
1688 1.1 christos
1689 1.1 christos fi = &fin->fin_fi;
1690 1.1 christos hlen = fin->fin_hlen;
1691 1.1 christos
1692 1.1 christos ip = fin->fin_ip;
1693 1.1 christos p = ip->ip_p;
1694 1.1 christos fi->fi_p = p;
1695 1.1 christos fin->fin_crc = p;
1696 1.1 christos fi->fi_tos = ip->ip_tos;
1697 1.1 christos fin->fin_id = ip->ip_id;
1698 1.1 christos off = ntohs(ip->ip_off);
1699 1.1 christos
1700 1.1 christos /* Get both TTL and protocol */
1701 1.1 christos fi->fi_p = ip->ip_p;
1702 1.1 christos fi->fi_ttl = ip->ip_ttl;
1703 1.1 christos
1704 1.1 christos /* Zero out bits not used in IPv6 address */
1705 1.1 christos fi->fi_src.i6[1] = 0;
1706 1.1 christos fi->fi_src.i6[2] = 0;
1707 1.1 christos fi->fi_src.i6[3] = 0;
1708 1.1 christos fi->fi_dst.i6[1] = 0;
1709 1.1 christos fi->fi_dst.i6[2] = 0;
1710 1.1 christos fi->fi_dst.i6[3] = 0;
1711 1.1 christos
1712 1.1 christos fi->fi_saddr = ip->ip_src.s_addr;
1713 1.1 christos fin->fin_crc += fi->fi_saddr;
1714 1.1 christos fi->fi_daddr = ip->ip_dst.s_addr;
1715 1.1 christos fin->fin_crc += fi->fi_daddr;
1716 1.21 christos if (IN_CLASSD(fi->fi_daddr))
1717 1.1 christos fin->fin_flx |= FI_MULTICAST|FI_MBCAST;
1718 1.1 christos
1719 1.1 christos /*
1720 1.1 christos * set packet attribute flags based on the offset and
1721 1.1 christos * calculate the byte offset that it represents.
1722 1.1 christos */
1723 1.1 christos off &= IP_MF|IP_OFFMASK;
1724 1.1 christos if (off != 0) {
1725 1.29 christos fi->fi_flx |= FI_FRAG;
1726 1.29 christos off &= IP_OFFMASK;
1727 1.29 christos if (off != 0) {
1728 1.29 christos int morefrag = off & IP_MF;
1729 1.29 christos
1730 1.29 christos if (off == 1 && p == IPPROTO_TCP) {
1731 1.29 christos fin->fin_flx |= FI_SHORT; /* RFC 3128 */
1732 1.29 christos DT1(ipf_fi_tcp_frag_off_1, fr_info_t *, fin);
1733 1.29 christos }
1734 1.1 christos
1735 1.29 christos fin->fin_flx |= FI_FRAGBODY;
1736 1.29 christos off <<= 3;
1737 1.29 christos if ((off + fin->fin_dlen > 65535) ||
1738 1.29 christos (fin->fin_dlen == 0) ||
1739 1.29 christos ((morefrag != 0) && ((fin->fin_dlen & 7) != 0))) {
1740 1.29 christos /*
1741 1.29 christos * The length of the packet, starting at its
1742 1.29 christos * offset cannot exceed 65535 (0xffff) as the
1743 1.29 christos * length of an IP packet is only 16 bits.
1744 1.29 christos *
1745 1.29 christos * Any fragment that isn't the last fragment
1746 1.29 christos * must have a length greater than 0 and it
1747 1.29 christos * must be an even multiple of 8.
1748 1.29 christos */
1749 1.29 christos fi->fi_flx |= FI_BAD;
1750 1.29 christos DT1(ipf_fi_bad_fragbody_gt_65535, fr_info_t *, fin);
1751 1.29 christos }
1752 1.1 christos }
1753 1.1 christos }
1754 1.1 christos fin->fin_off = off;
1755 1.1 christos
1756 1.1 christos /*
1757 1.1 christos * Call per-protocol setup and checking
1758 1.1 christos */
1759 1.1 christos if (p == IPPROTO_AH) {
1760 1.1 christos /*
1761 1.1 christos * Treat AH differently because we expect there to be another
1762 1.1 christos * layer 4 header after it.
1763 1.1 christos */
1764 1.1 christos p = ipf_pr_ah(fin);
1765 1.1 christos }
1766 1.1 christos
1767 1.1 christos switch (p)
1768 1.1 christos {
1769 1.1 christos case IPPROTO_UDP :
1770 1.1 christos ipf_pr_udp(fin);
1771 1.1 christos break;
1772 1.1 christos case IPPROTO_TCP :
1773 1.1 christos ipf_pr_tcp(fin);
1774 1.1 christos break;
1775 1.1 christos case IPPROTO_ICMP :
1776 1.1 christos ipf_pr_icmp(fin);
1777 1.1 christos break;
1778 1.1 christos case IPPROTO_ESP :
1779 1.1 christos ipf_pr_esp(fin);
1780 1.1 christos break;
1781 1.1 christos case IPPROTO_GRE :
1782 1.1 christos ipf_pr_gre(fin);
1783 1.1 christos break;
1784 1.1 christos }
1785 1.1 christos
1786 1.1 christos ip = fin->fin_ip;
1787 1.1 christos if (ip == NULL)
1788 1.1 christos return;
1789 1.1 christos
1790 1.1 christos /*
1791 1.1 christos * If it is a standard IP header (no options), set the flag fields
1792 1.1 christos * which relate to options to 0.
1793 1.1 christos */
1794 1.1 christos if (hlen == sizeof(*ip)) {
1795 1.1 christos fi->fi_optmsk = 0;
1796 1.1 christos fi->fi_secmsk = 0;
1797 1.1 christos fi->fi_auth = 0;
1798 1.1 christos return;
1799 1.1 christos }
1800 1.1 christos
1801 1.1 christos /*
1802 1.1 christos * So the IP header has some IP options attached. Walk the entire
1803 1.1 christos * list of options present with this packet and set flags to indicate
1804 1.1 christos * which ones are here and which ones are not. For the somewhat out
1805 1.1 christos * of date and obscure security classification options, set a flag to
1806 1.1 christos * represent which classification is present.
1807 1.1 christos */
1808 1.1 christos fi->fi_flx |= FI_OPTIONS;
1809 1.1 christos
1810 1.1 christos for (s = (u_char *)(ip + 1), hlen -= (int)sizeof(*ip); hlen > 0; ) {
1811 1.1 christos opt = *s;
1812 1.1 christos if (opt == '\0')
1813 1.1 christos break;
1814 1.1 christos else if (opt == IPOPT_NOP)
1815 1.1 christos ol = 1;
1816 1.1 christos else {
1817 1.1 christos if (hlen < 2)
1818 1.1 christos break;
1819 1.1 christos ol = (int)*(s + 1);
1820 1.1 christos if (ol < 2 || ol > hlen)
1821 1.1 christos break;
1822 1.1 christos }
1823 1.1 christos for (i = 9, mv = 4; mv >= 0; ) {
1824 1.1 christos op = ipopts + i;
1825 1.1 christos
1826 1.1 christos if ((opt == (u_char)op->ol_val) && (ol > 4)) {
1827 1.1 christos u_32_t doi;
1828 1.1 christos
1829 1.1 christos switch (opt)
1830 1.1 christos {
1831 1.1 christos case IPOPT_SECURITY :
1832 1.1 christos if (optmsk & op->ol_bit) {
1833 1.1 christos fin->fin_flx |= FI_BAD;
1834 1.19 christos DT2(ipf_fi_bad_ipopt_security, fr_info_t *, fin, u_short, (optmsk & op->ol_bit));
1835 1.1 christos } else {
1836 1.1 christos doi = ipf_checkripso(s);
1837 1.1 christos secmsk = doi >> 16;
1838 1.1 christos auth = doi & 0xffff;
1839 1.1 christos }
1840 1.1 christos break;
1841 1.1 christos
1842 1.1 christos case IPOPT_CIPSO :
1843 1.1 christos
1844 1.1 christos if (optmsk & op->ol_bit) {
1845 1.1 christos fin->fin_flx |= FI_BAD;
1846 1.19 christos DT2(ipf_fi_bad_ipopt_cipso, fr_info_t *, fin, u_short, (optmsk & op->ol_bit));
1847 1.1 christos } else {
1848 1.1 christos doi = ipf_checkcipso(fin,
1849 1.1 christos s, ol);
1850 1.1 christos secmsk = doi >> 16;
1851 1.1 christos auth = doi & 0xffff;
1852 1.1 christos }
1853 1.1 christos break;
1854 1.1 christos }
1855 1.1 christos optmsk |= op->ol_bit;
1856 1.1 christos }
1857 1.1 christos
1858 1.1 christos if (opt < op->ol_val)
1859 1.1 christos i -= mv;
1860 1.1 christos else
1861 1.1 christos i += mv;
1862 1.1 christos mv--;
1863 1.1 christos }
1864 1.1 christos hlen -= ol;
1865 1.1 christos s += ol;
1866 1.1 christos }
1867 1.1 christos
1868 1.1 christos /*
1869 1.1 christos *
1870 1.1 christos */
1871 1.1 christos if (auth && !(auth & 0x0100))
1872 1.1 christos auth &= 0xff00;
1873 1.1 christos fi->fi_optmsk = optmsk;
1874 1.1 christos fi->fi_secmsk = secmsk;
1875 1.1 christos fi->fi_auth = auth;
1876 1.1 christos }
1877 1.1 christos
1878 1.1 christos
1879 1.1 christos /* ------------------------------------------------------------------------ */
1880 1.1 christos /* Function: ipf_checkripso */
1881 1.1 christos /* Returns: void */
1882 1.1 christos /* Parameters: s(I) - pointer to start of RIPSO option */
1883 1.1 christos /* */
1884 1.1 christos /* ------------------------------------------------------------------------ */
1885 1.1 christos static u_32_t
1886 1.2 christos ipf_checkripso(u_char *s)
1887 1.1 christos {
1888 1.1 christos const struct optlist *sp;
1889 1.1 christos u_short secmsk = 0, auth = 0;
1890 1.1 christos u_char sec;
1891 1.1 christos int j, m;
1892 1.1 christos
1893 1.1 christos sec = *(s + 2); /* classification */
1894 1.1 christos for (j = 3, m = 2; m >= 0; ) {
1895 1.1 christos sp = secopt + j;
1896 1.1 christos if (sec == sp->ol_val) {
1897 1.1 christos secmsk |= sp->ol_bit;
1898 1.1 christos auth = *(s + 3);
1899 1.1 christos auth *= 256;
1900 1.1 christos auth += *(s + 4);
1901 1.1 christos break;
1902 1.1 christos }
1903 1.1 christos if (sec < sp->ol_val)
1904 1.1 christos j -= m;
1905 1.1 christos else
1906 1.1 christos j += m;
1907 1.1 christos m--;
1908 1.1 christos }
1909 1.1 christos
1910 1.1 christos return (secmsk << 16) | auth;
1911 1.1 christos }
1912 1.1 christos
1913 1.1 christos
1914 1.1 christos /* ------------------------------------------------------------------------ */
1915 1.1 christos /* Function: ipf_checkcipso */
1916 1.1 christos /* Returns: u_32_t - 0 = failure, else the doi from the header */
1917 1.1 christos /* Parameters: fin(IO) - pointer to packet information */
1918 1.1 christos /* s(I) - pointer to start of CIPSO option */
1919 1.1 christos /* ol(I) - length of CIPSO option field */
1920 1.1 christos /* */
1921 1.1 christos /* This function returns the domain of integrity (DOI) field from the CIPSO */
1922 1.1 christos /* header and returns that whilst also storing the highest sensitivity */
1923 1.1 christos /* value found in the fr_info_t structure. */
1924 1.1 christos /* */
1925 1.1 christos /* No attempt is made to extract the category bitmaps as these are defined */
1926 1.1 christos /* by the user (rather than the protocol) and can be rather numerous on the */
1927 1.1 christos /* end nodes. */
1928 1.1 christos /* ------------------------------------------------------------------------ */
1929 1.1 christos static u_32_t
1930 1.2 christos ipf_checkcipso(fr_info_t *fin, u_char *s, int ol)
1931 1.1 christos {
1932 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
1933 1.1 christos fr_ip_t *fi;
1934 1.1 christos u_32_t doi;
1935 1.1 christos u_char *t, tag, tlen, sensitivity;
1936 1.1 christos int len;
1937 1.1 christos
1938 1.1 christos if (ol < 6 || ol > 40) {
1939 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_cipso_bad);
1940 1.1 christos fin->fin_flx |= FI_BAD;
1941 1.19 christos DT2(ipf_fi_bad_checkcipso_ol, fr_info_t *, fin, u_int, ol);
1942 1.1 christos return 0;
1943 1.1 christos }
1944 1.1 christos
1945 1.1 christos fi = &fin->fin_fi;
1946 1.1 christos fi->fi_sensitivity = 0;
1947 1.1 christos /*
1948 1.1 christos * The DOI field MUST be there.
1949 1.1 christos */
1950 1.1 christos bcopy(s + 2, &doi, sizeof(doi));
1951 1.1 christos
1952 1.1 christos t = (u_char *)s + 6;
1953 1.1 christos for (len = ol - 6; len >= 2; len -= tlen, t+= tlen) {
1954 1.1 christos tag = *t;
1955 1.1 christos tlen = *(t + 1);
1956 1.1 christos if (tlen > len || tlen < 4 || tlen > 34) {
1957 1.1 christos LBUMPD(ipf_stats[fin->fin_out], fr_v4_cipso_tlen);
1958 1.1 christos fin->fin_flx |= FI_BAD;
1959 1.19 christos DT2(ipf_fi_bad_checkcipso_tlen, fr_info_t *, fin, u_int, tlen);
1960 1.1 christos return 0;
1961 1.1 christos }
1962 1.1 christos
1963 1.1 christos sensitivity = 0;
1964 1.1 christos /*
1965 1.1 christos * Tag numbers 0, 1, 2, 5 are laid out in the CIPSO Internet
1966 1.1 christos * draft (16 July 1992) that has expired.
1967 1.1 christos */
1968 1.1 christos if (tag == 0) {
1969 1.1 christos fin->fin_flx |= FI_BAD;
1970 1.19 christos DT2(ipf_fi_bad_checkcipso_tag, fr_info_t *, fin, u_int, tag);
1971 1.1 christos continue;
1972 1.1 christos } else if (tag == 1) {
1973 1.1 christos if (*(t + 2) != 0) {
1974 1.1 christos fin->fin_flx |= FI_BAD;
1975 1.19 christos DT2(ipf_fi_bad_checkcipso_tag1_t2, fr_info_t *, fin, u_int, (*t + 2));
1976 1.1 christos continue;
1977 1.1 christos }
1978 1.1 christos sensitivity = *(t + 3);
1979 1.1 christos /* Category bitmap for categories 0-239 */
1980 1.1 christos
1981 1.1 christos } else if (tag == 4) {
1982 1.1 christos if (*(t + 2) != 0) {
1983 1.1 christos fin->fin_flx |= FI_BAD;
1984 1.19 christos DT2(ipf_fi_bad_checkcipso_tag4_t2, fr_info_t *, fin, u_int, (*t + 2));
1985 1.1 christos continue;
1986 1.1 christos }
1987 1.1 christos sensitivity = *(t + 3);
1988 1.1 christos /* Enumerated categories, 16bits each, upto 15 */
1989 1.1 christos
1990 1.1 christos } else if (tag == 5) {
1991 1.1 christos if (*(t + 2) != 0) {
1992 1.1 christos fin->fin_flx |= FI_BAD;
1993 1.19 christos DT2(ipf_fi_bad_checkcipso_tag5_t2, fr_info_t *, fin, u_int, (*t + 2));
1994 1.1 christos continue;
1995 1.1 christos }
1996 1.1 christos sensitivity = *(t + 3);
1997 1.1 christos /* Range of categories (2*16bits), up to 7 pairs */
1998 1.1 christos
1999 1.1 christos } else if (tag > 127) {
2000 1.1 christos /* Custom defined DOI */
2001 1.1 christos ;
2002 1.1 christos } else {
2003 1.19 christos DT2(ipf_fi_bad_checkcipso_tag127, fr_info_t *, fin, u_int, tag);
2004 1.1 christos fin->fin_flx |= FI_BAD;
2005 1.1 christos continue;
2006 1.1 christos }
2007 1.1 christos
2008 1.1 christos if (sensitivity > fi->fi_sensitivity)
2009 1.1 christos fi->fi_sensitivity = sensitivity;
2010 1.1 christos }
2011 1.1 christos
2012 1.1 christos return doi;
2013 1.1 christos }
2014 1.1 christos
2015 1.1 christos
2016 1.1 christos /* ------------------------------------------------------------------------ */
2017 1.1 christos /* Function: ipf_makefrip */
2018 1.1 christos /* Returns: int - 0 == packet ok, -1 == packet freed */
2019 1.1 christos /* Parameters: hlen(I) - length of IP packet header */
2020 1.1 christos /* ip(I) - pointer to the IP header */
2021 1.1 christos /* fin(IO) - pointer to packet information */
2022 1.1 christos /* */
2023 1.1 christos /* Compact the IP header into a structure which contains just the info. */
2024 1.1 christos /* which is useful for comparing IP headers with and store this information */
2025 1.1 christos /* in the fr_info_t structure pointer to by fin. At present, it is assumed */
2026 1.1 christos /* this function will be called with either an IPv4 or IPv6 packet. */
2027 1.1 christos /* ------------------------------------------------------------------------ */
2028 1.1 christos int
2029 1.2 christos ipf_makefrip(int hlen, ip_t *ip, fr_info_t *fin)
2030 1.1 christos {
2031 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
2032 1.1 christos int v;
2033 1.1 christos
2034 1.1 christos fin->fin_depth = 0;
2035 1.1 christos fin->fin_hlen = (u_short)hlen;
2036 1.1 christos fin->fin_ip = ip;
2037 1.1 christos fin->fin_rule = 0xffffffff;
2038 1.1 christos fin->fin_group[0] = -1;
2039 1.1 christos fin->fin_group[1] = '\0';
2040 1.1 christos fin->fin_dp = (char *)ip + hlen;
2041 1.1 christos
2042 1.1 christos v = fin->fin_v;
2043 1.1 christos if (v == 4) {
2044 1.1 christos fin->fin_plen = ntohs(ip->ip_len);
2045 1.1 christos fin->fin_dlen = fin->fin_plen - hlen;
2046 1.1 christos ipf_pr_ipv4hdr(fin);
2047 1.1 christos #ifdef USE_INET6
2048 1.1 christos } else if (v == 6) {
2049 1.1 christos fin->fin_plen = ntohs(((ip6_t *)ip)->ip6_plen);
2050 1.1 christos fin->fin_dlen = fin->fin_plen;
2051 1.1 christos fin->fin_plen += hlen;
2052 1.1 christos
2053 1.1 christos ipf_pr_ipv6hdr(fin);
2054 1.1 christos #endif
2055 1.1 christos }
2056 1.1 christos if (fin->fin_ip == NULL) {
2057 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_ip_freed);
2058 1.1 christos return -1;
2059 1.1 christos }
2060 1.1 christos return 0;
2061 1.1 christos }
2062 1.1 christos
2063 1.1 christos
2064 1.1 christos /* ------------------------------------------------------------------------ */
2065 1.1 christos /* Function: ipf_portcheck */
2066 1.1 christos /* Returns: int - 1 == port matched, 0 == port match failed */
2067 1.1 christos /* Parameters: frp(I) - pointer to port check `expression' */
2068 1.1 christos /* pop(I) - port number to evaluate */
2069 1.1 christos /* */
2070 1.1 christos /* Perform a comparison of a port number against some other(s), using a */
2071 1.1 christos /* structure with compare information stored in it. */
2072 1.1 christos /* ------------------------------------------------------------------------ */
2073 1.1 christos static INLINE int
2074 1.2 christos ipf_portcheck(frpcmp_t *frp, u_32_t pop)
2075 1.1 christos {
2076 1.1 christos int err = 1;
2077 1.1 christos u_32_t po;
2078 1.1 christos
2079 1.1 christos po = frp->frp_port;
2080 1.1 christos
2081 1.1 christos /*
2082 1.1 christos * Do opposite test to that required and continue if that succeeds.
2083 1.1 christos */
2084 1.1 christos switch (frp->frp_cmp)
2085 1.1 christos {
2086 1.1 christos case FR_EQUAL :
2087 1.1 christos if (pop != po) /* EQUAL */
2088 1.1 christos err = 0;
2089 1.1 christos break;
2090 1.1 christos case FR_NEQUAL :
2091 1.1 christos if (pop == po) /* NOTEQUAL */
2092 1.1 christos err = 0;
2093 1.1 christos break;
2094 1.1 christos case FR_LESST :
2095 1.1 christos if (pop >= po) /* LESSTHAN */
2096 1.1 christos err = 0;
2097 1.1 christos break;
2098 1.1 christos case FR_GREATERT :
2099 1.1 christos if (pop <= po) /* GREATERTHAN */
2100 1.1 christos err = 0;
2101 1.1 christos break;
2102 1.1 christos case FR_LESSTE :
2103 1.1 christos if (pop > po) /* LT or EQ */
2104 1.1 christos err = 0;
2105 1.1 christos break;
2106 1.1 christos case FR_GREATERTE :
2107 1.1 christos if (pop < po) /* GT or EQ */
2108 1.1 christos err = 0;
2109 1.1 christos break;
2110 1.1 christos case FR_OUTRANGE :
2111 1.1 christos if (pop >= po && pop <= frp->frp_top) /* Out of range */
2112 1.1 christos err = 0;
2113 1.1 christos break;
2114 1.1 christos case FR_INRANGE :
2115 1.1 christos if (pop <= po || pop >= frp->frp_top) /* In range */
2116 1.1 christos err = 0;
2117 1.1 christos break;
2118 1.1 christos case FR_INCRANGE :
2119 1.1 christos if (pop < po || pop > frp->frp_top) /* Inclusive range */
2120 1.1 christos err = 0;
2121 1.1 christos break;
2122 1.1 christos default :
2123 1.1 christos break;
2124 1.1 christos }
2125 1.1 christos return err;
2126 1.1 christos }
2127 1.1 christos
2128 1.1 christos
2129 1.1 christos /* ------------------------------------------------------------------------ */
2130 1.1 christos /* Function: ipf_tcpudpchk */
2131 1.1 christos /* Returns: int - 1 == protocol matched, 0 == check failed */
2132 1.1 christos /* Parameters: fda(I) - pointer to packet information */
2133 1.1 christos /* ft(I) - pointer to structure with comparison data */
2134 1.1 christos /* */
2135 1.1 christos /* Compares the current pcket (assuming it is TCP/UDP) information with a */
2136 1.1 christos /* structure containing information that we want to match against. */
2137 1.1 christos /* ------------------------------------------------------------------------ */
2138 1.1 christos int
2139 1.2 christos ipf_tcpudpchk(fr_ip_t *fi, frtuc_t *ft)
2140 1.1 christos {
2141 1.1 christos int err = 1;
2142 1.1 christos
2143 1.1 christos /*
2144 1.1 christos * Both ports should *always* be in the first fragment.
2145 1.1 christos * So far, I cannot find any cases where they can not be.
2146 1.1 christos *
2147 1.1 christos * compare destination ports
2148 1.1 christos */
2149 1.1 christos if (ft->ftu_dcmp)
2150 1.1 christos err = ipf_portcheck(&ft->ftu_dst, fi->fi_ports[1]);
2151 1.1 christos
2152 1.1 christos /*
2153 1.1 christos * compare source ports
2154 1.1 christos */
2155 1.1 christos if (err && ft->ftu_scmp)
2156 1.1 christos err = ipf_portcheck(&ft->ftu_src, fi->fi_ports[0]);
2157 1.1 christos
2158 1.1 christos /*
2159 1.1 christos * If we don't have all the TCP/UDP header, then how can we
2160 1.1 christos * expect to do any sort of match on it ? If we were looking for
2161 1.1 christos * TCP flags, then NO match. If not, then match (which should
2162 1.1 christos * satisfy the "short" class too).
2163 1.1 christos */
2164 1.1 christos if (err && (fi->fi_p == IPPROTO_TCP)) {
2165 1.1 christos if (fi->fi_flx & FI_SHORT)
2166 1.1 christos return !(ft->ftu_tcpf | ft->ftu_tcpfm);
2167 1.1 christos /*
2168 1.1 christos * Match the flags ? If not, abort this match.
2169 1.1 christos */
2170 1.1 christos if (ft->ftu_tcpfm &&
2171 1.1 christos ft->ftu_tcpf != (fi->fi_tcpf & ft->ftu_tcpfm)) {
2172 1.1 christos FR_DEBUG(("f. %#x & %#x != %#x\n", fi->fi_tcpf,
2173 1.1 christos ft->ftu_tcpfm, ft->ftu_tcpf));
2174 1.1 christos err = 0;
2175 1.1 christos }
2176 1.1 christos }
2177 1.1 christos return err;
2178 1.1 christos }
2179 1.1 christos
2180 1.1 christos
2181 1.1 christos /* ------------------------------------------------------------------------ */
2182 1.1 christos /* Function: ipf_check_ipf */
2183 1.1 christos /* Returns: int - 0 == match, else no match */
2184 1.1 christos /* Parameters: fin(I) - pointer to packet information */
2185 1.1 christos /* fr(I) - pointer to filter rule */
2186 1.1 christos /* portcmp(I) - flag indicating whether to attempt matching on */
2187 1.1 christos /* TCP/UDP port data. */
2188 1.1 christos /* */
2189 1.1 christos /* Check to see if a packet matches an IPFilter rule. Checks of addresses, */
2190 1.1 christos /* port numbers, etc, for "standard" IPFilter rules are all orchestrated in */
2191 1.1 christos /* this function. */
2192 1.1 christos /* ------------------------------------------------------------------------ */
2193 1.1 christos static INLINE int
2194 1.2 christos ipf_check_ipf(fr_info_t *fin, frentry_t *fr, int portcmp)
2195 1.1 christos {
2196 1.1 christos u_32_t *ld, *lm, *lip;
2197 1.1 christos fripf_t *fri;
2198 1.1 christos fr_ip_t *fi;
2199 1.1 christos int i;
2200 1.1 christos
2201 1.1 christos fi = &fin->fin_fi;
2202 1.1 christos fri = fr->fr_ipf;
2203 1.1 christos lip = (u_32_t *)fi;
2204 1.1 christos lm = (u_32_t *)&fri->fri_mip;
2205 1.1 christos ld = (u_32_t *)&fri->fri_ip;
2206 1.1 christos
2207 1.1 christos /*
2208 1.1 christos * first 32 bits to check coversion:
2209 1.1 christos * IP version, TOS, TTL, protocol
2210 1.1 christos */
2211 1.1 christos i = ((*lip & *lm) != *ld);
2212 1.1 christos FR_DEBUG(("0. %#08x & %#08x != %#08x\n",
2213 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2214 1.1 christos if (i)
2215 1.1 christos return 1;
2216 1.1 christos
2217 1.1 christos /*
2218 1.1 christos * Next 32 bits is a constructed bitmask indicating which IP options
2219 1.1 christos * are present (if any) in this packet.
2220 1.1 christos */
2221 1.1 christos lip++, lm++, ld++;
2222 1.1 christos i = ((*lip & *lm) != *ld);
2223 1.1 christos FR_DEBUG(("1. %#08x & %#08x != %#08x\n",
2224 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2225 1.1 christos if (i != 0)
2226 1.1 christos return 1;
2227 1.1 christos
2228 1.1 christos lip++, lm++, ld++;
2229 1.1 christos /*
2230 1.1 christos * Unrolled loops (4 each, for 32 bits) for address checks.
2231 1.1 christos */
2232 1.1 christos /*
2233 1.1 christos * Check the source address.
2234 1.1 christos */
2235 1.1 christos if (fr->fr_satype == FRI_LOOKUP) {
2236 1.1 christos i = (*fr->fr_srcfunc)(fin->fin_main_soft, fr->fr_srcptr,
2237 1.1 christos fi->fi_v, lip, fin->fin_plen);
2238 1.1 christos if (i == -1)
2239 1.1 christos return 1;
2240 1.1 christos lip += 3;
2241 1.1 christos lm += 3;
2242 1.1 christos ld += 3;
2243 1.1 christos } else {
2244 1.1 christos i = ((*lip & *lm) != *ld);
2245 1.1 christos FR_DEBUG(("2a. %#08x & %#08x != %#08x\n",
2246 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2247 1.1 christos if (fi->fi_v == 6) {
2248 1.1 christos lip++, lm++, ld++;
2249 1.1 christos i |= ((*lip & *lm) != *ld);
2250 1.1 christos FR_DEBUG(("2b. %#08x & %#08x != %#08x\n",
2251 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2252 1.1 christos lip++, lm++, ld++;
2253 1.1 christos i |= ((*lip & *lm) != *ld);
2254 1.1 christos FR_DEBUG(("2c. %#08x & %#08x != %#08x\n",
2255 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2256 1.1 christos lip++, lm++, ld++;
2257 1.1 christos i |= ((*lip & *lm) != *ld);
2258 1.1 christos FR_DEBUG(("2d. %#08x & %#08x != %#08x\n",
2259 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2260 1.1 christos } else {
2261 1.1 christos lip += 3;
2262 1.1 christos lm += 3;
2263 1.1 christos ld += 3;
2264 1.1 christos }
2265 1.1 christos }
2266 1.1 christos i ^= (fr->fr_flags & FR_NOTSRCIP) >> 6;
2267 1.1 christos if (i != 0)
2268 1.1 christos return 1;
2269 1.1 christos
2270 1.1 christos /*
2271 1.1 christos * Check the destination address.
2272 1.1 christos */
2273 1.1 christos lip++, lm++, ld++;
2274 1.1 christos if (fr->fr_datype == FRI_LOOKUP) {
2275 1.1 christos i = (*fr->fr_dstfunc)(fin->fin_main_soft, fr->fr_dstptr,
2276 1.1 christos fi->fi_v, lip, fin->fin_plen);
2277 1.1 christos if (i == -1)
2278 1.1 christos return 1;
2279 1.1 christos lip += 3;
2280 1.1 christos lm += 3;
2281 1.1 christos ld += 3;
2282 1.1 christos } else {
2283 1.1 christos i = ((*lip & *lm) != *ld);
2284 1.1 christos FR_DEBUG(("3a. %#08x & %#08x != %#08x\n",
2285 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2286 1.1 christos if (fi->fi_v == 6) {
2287 1.1 christos lip++, lm++, ld++;
2288 1.1 christos i |= ((*lip & *lm) != *ld);
2289 1.1 christos FR_DEBUG(("3b. %#08x & %#08x != %#08x\n",
2290 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2291 1.1 christos lip++, lm++, ld++;
2292 1.1 christos i |= ((*lip & *lm) != *ld);
2293 1.1 christos FR_DEBUG(("3c. %#08x & %#08x != %#08x\n",
2294 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2295 1.1 christos lip++, lm++, ld++;
2296 1.1 christos i |= ((*lip & *lm) != *ld);
2297 1.1 christos FR_DEBUG(("3d. %#08x & %#08x != %#08x\n",
2298 1.1 christos ntohl(*lip), ntohl(*lm), ntohl(*ld)));
2299 1.1 christos } else {
2300 1.1 christos lip += 3;
2301 1.1 christos lm += 3;
2302 1.1 christos ld += 3;
2303 1.1 christos }
2304 1.1 christos }
2305 1.1 christos i ^= (fr->fr_flags & FR_NOTDSTIP) >> 7;
2306 1.1 christos if (i != 0)
2307 1.1 christos return 1;
2308 1.1 christos /*
2309 1.1 christos * IP addresses matched. The next 32bits contains:
2310 1.1 christos * mast of old IP header security & authentication bits.
2311 1.1 christos */
2312 1.1 christos lip++, lm++, ld++;
2313 1.1 christos i = (*ld - (*lip & *lm));
2314 1.1 christos FR_DEBUG(("4. %#08x & %#08x != %#08x\n", *lip, *lm, *ld));
2315 1.1 christos
2316 1.1 christos /*
2317 1.1 christos * Next we have 32 bits of packet flags.
2318 1.1 christos */
2319 1.1 christos lip++, lm++, ld++;
2320 1.1 christos i |= (*ld - (*lip & *lm));
2321 1.1 christos FR_DEBUG(("5. %#08x & %#08x != %#08x\n", *lip, *lm, *ld));
2322 1.1 christos
2323 1.1 christos if (i == 0) {
2324 1.1 christos /*
2325 1.1 christos * If a fragment, then only the first has what we're
2326 1.1 christos * looking for here...
2327 1.1 christos */
2328 1.1 christos if (portcmp) {
2329 1.1 christos if (!ipf_tcpudpchk(&fin->fin_fi, &fr->fr_tuc))
2330 1.1 christos i = 1;
2331 1.1 christos } else {
2332 1.1 christos if (fr->fr_dcmp || fr->fr_scmp ||
2333 1.1 christos fr->fr_tcpf || fr->fr_tcpfm)
2334 1.1 christos i = 1;
2335 1.1 christos if (fr->fr_icmpm || fr->fr_icmp) {
2336 1.1 christos if (((fi->fi_p != IPPROTO_ICMP) &&
2337 1.1 christos (fi->fi_p != IPPROTO_ICMPV6)) ||
2338 1.1 christos fin->fin_off || (fin->fin_dlen < 2))
2339 1.1 christos i = 1;
2340 1.1 christos else if ((fin->fin_data[0] & fr->fr_icmpm) !=
2341 1.1 christos fr->fr_icmp) {
2342 1.1 christos FR_DEBUG(("i. %#x & %#x != %#x\n",
2343 1.1 christos fin->fin_data[0],
2344 1.1 christos fr->fr_icmpm, fr->fr_icmp));
2345 1.1 christos i = 1;
2346 1.1 christos }
2347 1.1 christos }
2348 1.1 christos }
2349 1.1 christos }
2350 1.1 christos return i;
2351 1.1 christos }
2352 1.1 christos
2353 1.1 christos
2354 1.1 christos /* ------------------------------------------------------------------------ */
2355 1.1 christos /* Function: ipf_scanlist */
2356 1.1 christos /* Returns: int - result flags of scanning filter list */
2357 1.1 christos /* Parameters: fin(I) - pointer to packet information */
2358 1.1 christos /* pass(I) - default result to return for filtering */
2359 1.1 christos /* */
2360 1.1 christos /* Check the input/output list of rules for a match to the current packet. */
2361 1.1 christos /* If a match is found, the value of fr_flags from the rule becomes the */
2362 1.1 christos /* return value and fin->fin_fr points to the matched rule. */
2363 1.1 christos /* */
2364 1.1 christos /* This function may be called recusively upto 16 times (limit inbuilt.) */
2365 1.1 christos /* When unwinding, it should finish up with fin_depth as 0. */
2366 1.1 christos /* */
2367 1.1 christos /* Could be per interface, but this gets real nasty when you don't have, */
2368 1.1 christos /* or can't easily change, the kernel source code to . */
2369 1.1 christos /* ------------------------------------------------------------------------ */
2370 1.1 christos int
2371 1.2 christos ipf_scanlist(fr_info_t *fin, u_32_t pass)
2372 1.1 christos {
2373 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
2374 1.1 christos int rulen, portcmp, off, skip;
2375 1.1 christos struct frentry *fr, *fnext;
2376 1.1 christos u_32_t passt, passo;
2377 1.1 christos
2378 1.1 christos /*
2379 1.1 christos * Do not allow nesting deeper than 16 levels.
2380 1.1 christos */
2381 1.1 christos if (fin->fin_depth >= 16)
2382 1.1 christos return pass;
2383 1.1 christos
2384 1.1 christos fr = fin->fin_fr;
2385 1.1 christos
2386 1.1 christos /*
2387 1.1 christos * If there are no rules in this list, return now.
2388 1.1 christos */
2389 1.1 christos if (fr == NULL)
2390 1.1 christos return pass;
2391 1.1 christos
2392 1.1 christos skip = 0;
2393 1.1 christos portcmp = 0;
2394 1.1 christos fin->fin_depth++;
2395 1.1 christos fin->fin_fr = NULL;
2396 1.1 christos off = fin->fin_off;
2397 1.1 christos
2398 1.1 christos if ((fin->fin_flx & FI_TCPUDP) && (fin->fin_dlen > 3) && !off)
2399 1.1 christos portcmp = 1;
2400 1.1 christos
2401 1.1 christos for (rulen = 0; fr; fr = fnext, rulen++) {
2402 1.1 christos fnext = fr->fr_next;
2403 1.1 christos if (skip != 0) {
2404 1.1 christos FR_VERBOSE(("SKIP %d (%#x)\n", skip, fr->fr_flags));
2405 1.1 christos skip--;
2406 1.1 christos continue;
2407 1.1 christos }
2408 1.1 christos
2409 1.1 christos /*
2410 1.1 christos * In all checks below, a null (zero) value in the
2411 1.1 christos * filter struture is taken to mean a wildcard.
2412 1.1 christos *
2413 1.1 christos * check that we are working for the right interface
2414 1.1 christos */
2415 1.1 christos #ifdef _KERNEL
2416 1.1 christos if (fr->fr_ifa && fr->fr_ifa != fin->fin_ifp)
2417 1.1 christos continue;
2418 1.1 christos #else
2419 1.1 christos if (opts & (OPT_VERBOSE|OPT_DEBUG))
2420 1.1 christos printf("\n");
2421 1.1 christos FR_VERBOSE(("%c", FR_ISSKIP(pass) ? 's' :
2422 1.1 christos FR_ISPASS(pass) ? 'p' :
2423 1.1 christos FR_ISACCOUNT(pass) ? 'A' :
2424 1.1 christos FR_ISAUTH(pass) ? 'a' :
2425 1.1 christos (pass & FR_NOMATCH) ? 'n' :'b'));
2426 1.1 christos if (fr->fr_ifa && fr->fr_ifa != fin->fin_ifp)
2427 1.1 christos continue;
2428 1.1 christos FR_VERBOSE((":i"));
2429 1.1 christos #endif
2430 1.1 christos
2431 1.1 christos switch (fr->fr_type)
2432 1.1 christos {
2433 1.1 christos case FR_T_IPF :
2434 1.1 christos case FR_T_IPF_BUILTIN :
2435 1.1 christos if (ipf_check_ipf(fin, fr, portcmp))
2436 1.1 christos continue;
2437 1.1 christos break;
2438 1.1 christos #if defined(IPFILTER_BPF)
2439 1.1 christos case FR_T_BPFOPC :
2440 1.1 christos case FR_T_BPFOPC_BUILTIN :
2441 1.1 christos {
2442 1.1 christos u_char *mc;
2443 1.1 christos int wlen;
2444 1.1 christos
2445 1.1 christos if (*fin->fin_mp == NULL)
2446 1.1 christos continue;
2447 1.1 christos if (fin->fin_family != fr->fr_family)
2448 1.1 christos continue;
2449 1.1 christos mc = (u_char *)fin->fin_m;
2450 1.1 christos wlen = fin->fin_dlen + fin->fin_hlen;
2451 1.1 christos if (!bpf_filter(fr->fr_data, mc, wlen, 0))
2452 1.1 christos continue;
2453 1.1 christos break;
2454 1.1 christos }
2455 1.1 christos #endif
2456 1.1 christos case FR_T_CALLFUNC_BUILTIN :
2457 1.1 christos {
2458 1.1 christos frentry_t *f;
2459 1.1 christos
2460 1.1 christos f = (*fr->fr_func)(fin, &pass);
2461 1.1 christos if (f != NULL)
2462 1.1 christos fr = f;
2463 1.1 christos else
2464 1.1 christos continue;
2465 1.1 christos break;
2466 1.1 christos }
2467 1.1 christos
2468 1.1 christos case FR_T_IPFEXPR :
2469 1.1 christos case FR_T_IPFEXPR_BUILTIN :
2470 1.1 christos if (fin->fin_family != fr->fr_family)
2471 1.1 christos continue;
2472 1.1 christos if (ipf_fr_matcharray(fin, fr->fr_data) == 0)
2473 1.1 christos continue;
2474 1.1 christos break;
2475 1.1 christos
2476 1.1 christos default :
2477 1.1 christos break;
2478 1.1 christos }
2479 1.1 christos
2480 1.1 christos if ((fin->fin_out == 0) && (fr->fr_nattag.ipt_num[0] != 0)) {
2481 1.1 christos if (fin->fin_nattag == NULL)
2482 1.1 christos continue;
2483 1.1 christos if (ipf_matchtag(&fr->fr_nattag, fin->fin_nattag) == 0)
2484 1.1 christos continue;
2485 1.1 christos }
2486 1.1 christos FR_VERBOSE(("=%d/%d.%d *", fr->fr_grhead, fr->fr_group, rulen));
2487 1.1 christos
2488 1.1 christos passt = fr->fr_flags;
2489 1.1 christos
2490 1.1 christos /*
2491 1.1 christos * If the rule is a "call now" rule, then call the function
2492 1.1 christos * in the rule, if it exists and use the results from that.
2493 1.1 christos * If the function pointer is bad, just make like we ignore
2494 1.1 christos * it, except for increasing the hit counter.
2495 1.1 christos */
2496 1.1 christos if ((passt & FR_CALLNOW) != 0) {
2497 1.1 christos frentry_t *frs;
2498 1.1 christos
2499 1.1 christos ATOMIC_INC64(fr->fr_hits);
2500 1.1 christos if ((fr->fr_func == NULL) ||
2501 1.1 christos (fr->fr_func == (ipfunc_t)-1))
2502 1.1 christos continue;
2503 1.1 christos
2504 1.1 christos frs = fin->fin_fr;
2505 1.1 christos fin->fin_fr = fr;
2506 1.1 christos fr = (*fr->fr_func)(fin, &passt);
2507 1.1 christos if (fr == NULL) {
2508 1.1 christos fin->fin_fr = frs;
2509 1.1 christos continue;
2510 1.1 christos }
2511 1.1 christos passt = fr->fr_flags;
2512 1.1 christos }
2513 1.1 christos fin->fin_fr = fr;
2514 1.1 christos
2515 1.1 christos #ifdef IPFILTER_LOG
2516 1.1 christos /*
2517 1.1 christos * Just log this packet...
2518 1.1 christos */
2519 1.1 christos if ((passt & FR_LOGMASK) == FR_LOG) {
2520 1.1 christos if (ipf_log_pkt(fin, passt) == -1) {
2521 1.1 christos if (passt & FR_LOGORBLOCK) {
2522 1.1 christos DT(frb_logfail);
2523 1.1 christos passt &= ~FR_CMDMASK;
2524 1.1 christos passt |= FR_BLOCK|FR_QUICK;
2525 1.1 christos fin->fin_reason = FRB_LOGFAIL;
2526 1.1 christos }
2527 1.1 christos }
2528 1.1 christos }
2529 1.1 christos #endif /* IPFILTER_LOG */
2530 1.1 christos
2531 1.1 christos MUTEX_ENTER(&fr->fr_lock);
2532 1.1 christos fr->fr_bytes += (U_QUAD_T)fin->fin_plen;
2533 1.1 christos fr->fr_hits++;
2534 1.1 christos MUTEX_EXIT(&fr->fr_lock);
2535 1.1 christos fin->fin_rule = rulen;
2536 1.1 christos
2537 1.1 christos passo = pass;
2538 1.1 christos if (FR_ISSKIP(passt)) {
2539 1.1 christos skip = fr->fr_arg;
2540 1.1 christos continue;
2541 1.3 darrenr } else if (((passt & FR_LOGMASK) != FR_LOG) &&
2542 1.3 darrenr ((passt & FR_LOGMASK) != FR_DECAPSULATE)) {
2543 1.1 christos pass = passt;
2544 1.1 christos }
2545 1.1 christos
2546 1.1 christos if (passt & (FR_RETICMP|FR_FAKEICMP))
2547 1.1 christos fin->fin_icode = fr->fr_icode;
2548 1.1 christos
2549 1.1 christos if (fr->fr_group != -1) {
2550 1.1 christos (void) strncpy(fin->fin_group,
2551 1.1 christos FR_NAME(fr, fr_group),
2552 1.1 christos strlen(FR_NAME(fr, fr_group)));
2553 1.1 christos } else {
2554 1.1 christos fin->fin_group[0] = '\0';
2555 1.1 christos }
2556 1.1 christos
2557 1.3 darrenr FR_DEBUG(("pass %#x/%#x/%x\n", passo, pass, passt));
2558 1.1 christos
2559 1.3 darrenr if (fr->fr_grphead != NULL) {
2560 1.3 darrenr fin->fin_fr = fr->fr_grphead->fg_start;
2561 1.1 christos FR_VERBOSE(("group %s\n", FR_NAME(fr, fr_grhead)));
2562 1.1 christos
2563 1.3 darrenr if (FR_ISDECAPS(passt))
2564 1.1 christos passt = ipf_decaps(fin, pass, fr->fr_icode);
2565 1.1 christos else
2566 1.1 christos passt = ipf_scanlist(fin, pass);
2567 1.1 christos
2568 1.1 christos if (fin->fin_fr == NULL) {
2569 1.1 christos fin->fin_rule = rulen;
2570 1.1 christos if (fr->fr_group != -1)
2571 1.1 christos (void) strncpy(fin->fin_group,
2572 1.1 christos fr->fr_names +
2573 1.1 christos fr->fr_group,
2574 1.1 christos strlen(fr->fr_names +
2575 1.1 christos fr->fr_group));
2576 1.1 christos fin->fin_fr = fr;
2577 1.1 christos passt = pass;
2578 1.1 christos }
2579 1.1 christos pass = passt;
2580 1.1 christos }
2581 1.1 christos
2582 1.1 christos if (pass & FR_QUICK) {
2583 1.1 christos /*
2584 1.1 christos * Finally, if we've asked to track state for this
2585 1.1 christos * packet, set it up. Add state for "quick" rules
2586 1.1 christos * here so that if the action fails we can consider
2587 1.1 christos * the rule to "not match" and keep on processing
2588 1.1 christos * filter rules.
2589 1.1 christos */
2590 1.1 christos if ((pass & FR_KEEPSTATE) && !FR_ISAUTH(pass) &&
2591 1.1 christos !(fin->fin_flx & FI_STATE)) {
2592 1.1 christos int out = fin->fin_out;
2593 1.1 christos
2594 1.1 christos fin->fin_fr = fr;
2595 1.1 christos if (ipf_state_add(softc, fin, NULL, 0) == 0) {
2596 1.1 christos LBUMPD(ipf_stats[out], fr_ads);
2597 1.1 christos } else {
2598 1.1 christos LBUMPD(ipf_stats[out], fr_bads);
2599 1.1 christos pass = passo;
2600 1.1 christos continue;
2601 1.1 christos }
2602 1.1 christos }
2603 1.1 christos break;
2604 1.1 christos }
2605 1.1 christos }
2606 1.1 christos fin->fin_depth--;
2607 1.1 christos return pass;
2608 1.1 christos }
2609 1.1 christos
2610 1.1 christos
2611 1.1 christos /* ------------------------------------------------------------------------ */
2612 1.1 christos /* Function: ipf_acctpkt */
2613 1.1 christos /* Returns: frentry_t* - always returns NULL */
2614 1.1 christos /* Parameters: fin(I) - pointer to packet information */
2615 1.1 christos /* passp(IO) - pointer to current/new filter decision (unused) */
2616 1.1 christos /* */
2617 1.1 christos /* Checks a packet against accounting rules, if there are any for the given */
2618 1.1 christos /* IP protocol version. */
2619 1.1 christos /* */
2620 1.1 christos /* N.B.: this function returns NULL to match the prototype used by other */
2621 1.1 christos /* functions called from the IPFilter "mainline" in ipf_check(). */
2622 1.1 christos /* ------------------------------------------------------------------------ */
2623 1.1 christos frentry_t *
2624 1.2 christos ipf_acctpkt(fr_info_t *fin, u_32_t *passp)
2625 1.1 christos {
2626 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
2627 1.1 christos char group[FR_GROUPLEN];
2628 1.1 christos frentry_t *fr, *frsave;
2629 1.1 christos u_32_t pass, rulen;
2630 1.1 christos
2631 1.1 christos passp = passp;
2632 1.1 christos fr = softc->ipf_acct[fin->fin_out][softc->ipf_active];
2633 1.1 christos
2634 1.1 christos if (fr != NULL) {
2635 1.1 christos frsave = fin->fin_fr;
2636 1.1 christos bcopy(fin->fin_group, group, FR_GROUPLEN);
2637 1.1 christos rulen = fin->fin_rule;
2638 1.1 christos fin->fin_fr = fr;
2639 1.1 christos pass = ipf_scanlist(fin, FR_NOMATCH);
2640 1.1 christos if (FR_ISACCOUNT(pass)) {
2641 1.1 christos LBUMPD(ipf_stats[0], fr_acct);
2642 1.1 christos }
2643 1.1 christos fin->fin_fr = frsave;
2644 1.1 christos bcopy(group, fin->fin_group, FR_GROUPLEN);
2645 1.1 christos fin->fin_rule = rulen;
2646 1.1 christos }
2647 1.1 christos return NULL;
2648 1.1 christos }
2649 1.1 christos
2650 1.1 christos
2651 1.1 christos /* ------------------------------------------------------------------------ */
2652 1.1 christos /* Function: ipf_firewall */
2653 1.1 christos /* Returns: frentry_t* - returns pointer to matched rule, if no matches */
2654 1.1 christos /* were found, returns NULL. */
2655 1.1 christos /* Parameters: fin(I) - pointer to packet information */
2656 1.1 christos /* passp(IO) - pointer to current/new filter decision (unused) */
2657 1.1 christos /* */
2658 1.1 christos /* Applies an appropriate set of firewall rules to the packet, to see if */
2659 1.1 christos /* there are any matches. The first check is to see if a match can be seen */
2660 1.1 christos /* in the cache. If not, then search an appropriate list of rules. Once a */
2661 1.1 christos /* matching rule is found, take any appropriate actions as defined by the */
2662 1.1 christos /* rule - except logging. */
2663 1.1 christos /* ------------------------------------------------------------------------ */
2664 1.1 christos static frentry_t *
2665 1.2 christos ipf_firewall(fr_info_t *fin, u_32_t *passp)
2666 1.1 christos {
2667 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
2668 1.1 christos frentry_t *fr;
2669 1.1 christos u_32_t pass;
2670 1.1 christos int out;
2671 1.1 christos
2672 1.1 christos out = fin->fin_out;
2673 1.1 christos pass = *passp;
2674 1.1 christos
2675 1.1 christos /*
2676 1.1 christos * This rule cache will only affect packets that are not being
2677 1.1 christos * statefully filtered.
2678 1.1 christos */
2679 1.1 christos fin->fin_fr = softc->ipf_rules[out][softc->ipf_active];
2680 1.1 christos if (fin->fin_fr != NULL)
2681 1.1 christos pass = ipf_scanlist(fin, softc->ipf_pass);
2682 1.1 christos
2683 1.1 christos if ((pass & FR_NOMATCH)) {
2684 1.1 christos LBUMPD(ipf_stats[out], fr_nom);
2685 1.1 christos }
2686 1.1 christos fr = fin->fin_fr;
2687 1.1 christos
2688 1.1 christos /*
2689 1.1 christos * Apply packets per second rate-limiting to a rule as required.
2690 1.1 christos */
2691 1.1 christos if ((fr != NULL) && (fr->fr_pps != 0) &&
2692 1.1 christos !ppsratecheck(&fr->fr_lastpkt, &fr->fr_curpps, fr->fr_pps)) {
2693 1.1 christos DT2(frb_ppsrate, fr_info_t *, fin, frentry_t *, fr);
2694 1.1 christos pass &= ~(FR_CMDMASK|FR_RETICMP|FR_RETRST);
2695 1.1 christos pass |= FR_BLOCK;
2696 1.1 christos LBUMPD(ipf_stats[out], fr_ppshit);
2697 1.1 christos fin->fin_reason = FRB_PPSRATE;
2698 1.1 christos }
2699 1.1 christos
2700 1.1 christos /*
2701 1.1 christos * If we fail to add a packet to the authorization queue, then we
2702 1.1 christos * drop the packet later. However, if it was added then pretend
2703 1.1 christos * we've dropped it already.
2704 1.1 christos */
2705 1.1 christos if (FR_ISAUTH(pass)) {
2706 1.1 christos if (ipf_auth_new(fin->fin_m, fin) != 0) {
2707 1.1 christos DT1(frb_authnew, fr_info_t *, fin);
2708 1.1 christos fin->fin_m = *fin->fin_mp = NULL;
2709 1.1 christos fin->fin_reason = FRB_AUTHNEW;
2710 1.1 christos fin->fin_error = 0;
2711 1.1 christos } else {
2712 1.1 christos IPFERROR(1);
2713 1.1 christos fin->fin_error = ENOSPC;
2714 1.1 christos }
2715 1.1 christos }
2716 1.1 christos
2717 1.1 christos if ((fr != NULL) && (fr->fr_func != NULL) &&
2718 1.1 christos (fr->fr_func != (ipfunc_t)-1) && !(pass & FR_CALLNOW))
2719 1.1 christos (void) (*fr->fr_func)(fin, &pass);
2720 1.1 christos
2721 1.1 christos /*
2722 1.1 christos * If a rule is a pre-auth rule, check again in the list of rules
2723 1.1 christos * loaded for authenticated use. It does not particulary matter
2724 1.1 christos * if this search fails because a "preauth" result, from a rule,
2725 1.1 christos * is treated as "not a pass", hence the packet is blocked.
2726 1.1 christos */
2727 1.1 christos if (FR_ISPREAUTH(pass)) {
2728 1.1 christos pass = ipf_auth_pre_scanlist(softc, fin, pass);
2729 1.1 christos }
2730 1.1 christos
2731 1.1 christos /*
2732 1.1 christos * If the rule has "keep frag" and the packet is actually a fragment,
2733 1.1 christos * then create a fragment state entry.
2734 1.1 christos */
2735 1.20 christos if (pass & FR_KEEPFRAG) {
2736 1.1 christos if (fin->fin_flx & FI_FRAG) {
2737 1.1 christos if (ipf_frag_new(softc, fin, pass) == -1) {
2738 1.1 christos LBUMP(ipf_stats[out].fr_bnfr);
2739 1.1 christos } else {
2740 1.1 christos LBUMP(ipf_stats[out].fr_nfr);
2741 1.1 christos }
2742 1.1 christos } else {
2743 1.1 christos LBUMP(ipf_stats[out].fr_cfr);
2744 1.1 christos }
2745 1.1 christos }
2746 1.1 christos
2747 1.1 christos fr = fin->fin_fr;
2748 1.1 christos *passp = pass;
2749 1.1 christos
2750 1.1 christos return fr;
2751 1.1 christos }
2752 1.1 christos
2753 1.1 christos
2754 1.1 christos /* ------------------------------------------------------------------------ */
2755 1.1 christos /* Function: ipf_check */
2756 1.1 christos /* Returns: int - 0 == packet allowed through, */
2757 1.1 christos /* User space: */
2758 1.1 christos /* -1 == packet blocked */
2759 1.1 christos /* 1 == packet not matched */
2760 1.1 christos /* -2 == requires authentication */
2761 1.1 christos /* Kernel: */
2762 1.1 christos /* > 0 == filter error # for packet */
2763 1.1 christos /* Parameters: ip(I) - pointer to start of IPv4/6 packet */
2764 1.1 christos /* hlen(I) - length of header */
2765 1.1 christos /* ifp(I) - pointer to interface this packet is on */
2766 1.1 christos /* out(I) - 0 == packet going in, 1 == packet going out */
2767 1.1 christos /* mp(IO) - pointer to caller's buffer pointer that holds this */
2768 1.1 christos /* IP packet. */
2769 1.1 christos /* Solaris & HP-UX ONLY : */
2770 1.1 christos /* qpi(I) - pointer to STREAMS queue information for this */
2771 1.1 christos /* interface & direction. */
2772 1.1 christos /* */
2773 1.1 christos /* ipf_check() is the master function for all IPFilter packet processing. */
2774 1.1 christos /* It orchestrates: Network Address Translation (NAT), checking for packet */
2775 1.1 christos /* authorisation (or pre-authorisation), presence of related state info., */
2776 1.1 christos /* generating log entries, IP packet accounting, routing of packets as */
2777 1.1 christos /* directed by firewall rules and of course whether or not to allow the */
2778 1.1 christos /* packet to be further processed by the kernel. */
2779 1.1 christos /* */
2780 1.1 christos /* For packets blocked, the contents of "mp" will be NULL'd and the buffer */
2781 1.1 christos /* freed. Packets passed may be returned with the pointer pointed to by */
2782 1.1 christos /* by "mp" changed to a new buffer. */
2783 1.1 christos /* ------------------------------------------------------------------------ */
2784 1.1 christos int
2785 1.2 christos ipf_check(void *ctx, ip_t *ip, int hlen, void *ifp, int out,
2786 1.1 christos #if defined(_KERNEL) && defined(MENTAT)
2787 1.2 christos void *qif,
2788 1.1 christos #endif
2789 1.2 christos mb_t **mp)
2790 1.1 christos {
2791 1.1 christos /*
2792 1.1 christos * The above really sucks, but short of writing a diff
2793 1.1 christos */
2794 1.1 christos ipf_main_softc_t *softc = ctx;
2795 1.1 christos fr_info_t frinfo;
2796 1.1 christos fr_info_t *fin = &frinfo;
2797 1.1 christos u_32_t pass = softc->ipf_pass;
2798 1.1 christos frentry_t *fr = NULL;
2799 1.1 christos int v = IP_V(ip);
2800 1.1 christos mb_t *mc = NULL;
2801 1.1 christos mb_t *m;
2802 1.1 christos /*
2803 1.1 christos * The first part of ipf_check() deals with making sure that what goes
2804 1.1 christos * into the filtering engine makes some sense. Information about the
2805 1.1 christos * the packet is distilled, collected into a fr_info_t structure and
2806 1.1 christos * the an attempt to ensure the buffer the packet is in is big enough
2807 1.1 christos * to hold all the required packet headers.
2808 1.1 christos */
2809 1.1 christos #ifdef _KERNEL
2810 1.1 christos # ifdef MENTAT
2811 1.1 christos qpktinfo_t *qpi = qif;
2812 1.1 christos
2813 1.1 christos # ifdef __sparc
2814 1.1 christos if ((u_int)ip & 0x3)
2815 1.1 christos return 2;
2816 1.1 christos # endif
2817 1.1 christos # else
2818 1.1 christos SPL_INT(s);
2819 1.1 christos # endif
2820 1.1 christos
2821 1.1 christos if (softc->ipf_running <= 0) {
2822 1.1 christos return 0;
2823 1.1 christos }
2824 1.1 christos
2825 1.1 christos bzero((char *)fin, sizeof(*fin));
2826 1.1 christos
2827 1.1 christos # ifdef MENTAT
2828 1.3 darrenr if (qpi->qpi_flags & QF_BROADCAST)
2829 1.3 darrenr fin->fin_flx |= FI_MBCAST|FI_BROADCAST;
2830 1.3 darrenr if (qpi->qpi_flags & QF_MULTICAST)
2831 1.3 darrenr fin->fin_flx |= FI_MBCAST|FI_MULTICAST;
2832 1.1 christos m = qpi->qpi_m;
2833 1.1 christos fin->fin_qfm = m;
2834 1.1 christos fin->fin_qpi = qpi;
2835 1.1 christos # else /* MENTAT */
2836 1.1 christos
2837 1.1 christos m = *mp;
2838 1.1 christos
2839 1.1 christos # if defined(M_MCAST)
2840 1.1 christos if ((m->m_flags & M_MCAST) != 0)
2841 1.1 christos fin->fin_flx |= FI_MBCAST|FI_MULTICAST;
2842 1.1 christos # endif
2843 1.1 christos # if defined(M_MLOOP)
2844 1.1 christos if ((m->m_flags & M_MLOOP) != 0)
2845 1.1 christos fin->fin_flx |= FI_MBCAST|FI_MULTICAST;
2846 1.1 christos # endif
2847 1.1 christos # if defined(M_BCAST)
2848 1.1 christos if ((m->m_flags & M_BCAST) != 0)
2849 1.1 christos fin->fin_flx |= FI_MBCAST|FI_BROADCAST;
2850 1.1 christos # endif
2851 1.1 christos # ifdef M_CANFASTFWD
2852 1.1 christos /*
2853 1.1 christos * XXX For now, IP Filter and fast-forwarding of cached flows
2854 1.1 christos * XXX are mutually exclusive. Eventually, IP Filter should
2855 1.1 christos * XXX get a "can-fast-forward" filter rule.
2856 1.1 christos */
2857 1.1 christos m->m_flags &= ~M_CANFASTFWD;
2858 1.1 christos # endif /* M_CANFASTFWD */
2859 1.1 christos # if defined(CSUM_DELAY_DATA) && (!defined(__FreeBSD_version) || \
2860 1.1 christos (__FreeBSD_version < 501108))
2861 1.1 christos /*
2862 1.1 christos * disable delayed checksums.
2863 1.1 christos */
2864 1.1 christos if (m->m_pkthdr.csum_flags & CSUM_DELAY_DATA) {
2865 1.24 maxv in_undefer_cksum_tcpudp(m);
2866 1.1 christos m->m_pkthdr.csum_flags &= ~CSUM_DELAY_DATA;
2867 1.1 christos }
2868 1.1 christos # endif /* CSUM_DELAY_DATA */
2869 1.1 christos # endif /* MENTAT */
2870 1.1 christos #else
2871 1.1 christos bzero((char *)fin, sizeof(*fin));
2872 1.1 christos m = *mp;
2873 1.1 christos # if defined(M_MCAST)
2874 1.1 christos if ((m->m_flags & M_MCAST) != 0)
2875 1.1 christos fin->fin_flx |= FI_MBCAST|FI_MULTICAST;
2876 1.1 christos # endif
2877 1.1 christos # if defined(M_MLOOP)
2878 1.1 christos if ((m->m_flags & M_MLOOP) != 0)
2879 1.1 christos fin->fin_flx |= FI_MBCAST|FI_MULTICAST;
2880 1.1 christos # endif
2881 1.1 christos # if defined(M_BCAST)
2882 1.1 christos if ((m->m_flags & M_BCAST) != 0)
2883 1.1 christos fin->fin_flx |= FI_MBCAST|FI_BROADCAST;
2884 1.1 christos # endif
2885 1.1 christos #endif /* _KERNEL */
2886 1.1 christos
2887 1.1 christos fin->fin_v = v;
2888 1.1 christos fin->fin_m = m;
2889 1.1 christos fin->fin_ip = ip;
2890 1.1 christos fin->fin_mp = mp;
2891 1.1 christos fin->fin_out = out;
2892 1.1 christos fin->fin_ifp = ifp;
2893 1.1 christos fin->fin_error = ENETUNREACH;
2894 1.1 christos fin->fin_hlen = (u_short)hlen;
2895 1.1 christos fin->fin_dp = (char *)ip + hlen;
2896 1.1 christos fin->fin_main_soft = softc;
2897 1.1 christos
2898 1.1 christos fin->fin_ipoff = (char *)ip - MTOD(m, char *);
2899 1.1 christos
2900 1.1 christos SPL_NET(s);
2901 1.1 christos
2902 1.1 christos #ifdef USE_INET6
2903 1.1 christos if (v == 6) {
2904 1.1 christos LBUMP(ipf_stats[out].fr_ipv6);
2905 1.1 christos /*
2906 1.1 christos * Jumbo grams are quite likely too big for internal buffer
2907 1.1 christos * structures to handle comfortably, for now, so just drop
2908 1.1 christos * them.
2909 1.1 christos */
2910 1.1 christos if (((ip6_t *)ip)->ip6_plen == 0) {
2911 1.1 christos DT1(frb_jumbo, ip6_t *, (ip6_t *)ip);
2912 1.1 christos pass = FR_BLOCK|FR_NOMATCH;
2913 1.1 christos fin->fin_reason = FRB_JUMBO;
2914 1.1 christos goto finished;
2915 1.1 christos }
2916 1.1 christos fin->fin_family = AF_INET6;
2917 1.1 christos } else
2918 1.1 christos #endif
2919 1.1 christos {
2920 1.1 christos fin->fin_family = AF_INET;
2921 1.1 christos }
2922 1.1 christos
2923 1.1 christos if (ipf_makefrip(hlen, ip, fin) == -1) {
2924 1.1 christos DT1(frb_makefrip, fr_info_t *, fin);
2925 1.1 christos pass = FR_BLOCK|FR_NOMATCH;
2926 1.1 christos fin->fin_reason = FRB_MAKEFRIP;
2927 1.1 christos goto finished;
2928 1.1 christos }
2929 1.1 christos
2930 1.1 christos /*
2931 1.1 christos * For at least IPv6 packets, if a m_pullup() fails then this pointer
2932 1.1 christos * becomes NULL and so we have no packet to free.
2933 1.1 christos */
2934 1.1 christos if (*fin->fin_mp == NULL)
2935 1.1 christos goto finished;
2936 1.1 christos
2937 1.1 christos if (!out) {
2938 1.1 christos if (v == 4) {
2939 1.1 christos if (softc->ipf_chksrc && !ipf_verifysrc(fin)) {
2940 1.1 christos LBUMPD(ipf_stats[0], fr_v4_badsrc);
2941 1.1 christos fin->fin_flx |= FI_BADSRC;
2942 1.1 christos }
2943 1.1 christos if (fin->fin_ip->ip_ttl < softc->ipf_minttl) {
2944 1.1 christos LBUMPD(ipf_stats[0], fr_v4_badttl);
2945 1.1 christos fin->fin_flx |= FI_LOWTTL;
2946 1.1 christos }
2947 1.1 christos }
2948 1.1 christos #ifdef USE_INET6
2949 1.1 christos else if (v == 6) {
2950 1.1 christos if (((ip6_t *)ip)->ip6_hlim < softc->ipf_minttl) {
2951 1.1 christos LBUMPD(ipf_stats[0], fr_v6_badttl);
2952 1.1 christos fin->fin_flx |= FI_LOWTTL;
2953 1.1 christos }
2954 1.1 christos }
2955 1.1 christos #endif
2956 1.1 christos }
2957 1.1 christos
2958 1.1 christos if (fin->fin_flx & FI_SHORT) {
2959 1.1 christos LBUMPD(ipf_stats[out], fr_short);
2960 1.1 christos }
2961 1.1 christos
2962 1.1 christos READ_ENTER(&softc->ipf_mutex);
2963 1.1 christos
2964 1.1 christos if (!out) {
2965 1.1 christos switch (fin->fin_v)
2966 1.1 christos {
2967 1.1 christos case 4 :
2968 1.1 christos if (ipf_nat_checkin(fin, &pass) == -1) {
2969 1.1 christos goto filterdone;
2970 1.1 christos }
2971 1.1 christos break;
2972 1.1 christos #ifdef USE_INET6
2973 1.1 christos case 6 :
2974 1.1 christos if (ipf_nat6_checkin(fin, &pass) == -1) {
2975 1.1 christos goto filterdone;
2976 1.1 christos }
2977 1.1 christos break;
2978 1.1 christos #endif
2979 1.1 christos default :
2980 1.1 christos break;
2981 1.1 christos }
2982 1.1 christos }
2983 1.1 christos /*
2984 1.1 christos * Check auth now.
2985 1.1 christos * If a packet is found in the auth table, then skip checking
2986 1.1 christos * the access lists for permission but we do need to consider
2987 1.1 christos * the result as if it were from the ACL's. In addition, being
2988 1.1 christos * found in the auth table means it has been seen before, so do
2989 1.1 christos * not pass it through accounting (again), lest it be counted twice.
2990 1.1 christos */
2991 1.1 christos fr = ipf_auth_check(fin, &pass);
2992 1.1 christos if (!out && (fr == NULL))
2993 1.1 christos (void) ipf_acctpkt(fin, NULL);
2994 1.1 christos
2995 1.1 christos if (fr == NULL) {
2996 1.1 christos if ((fin->fin_flx & FI_FRAG) != 0)
2997 1.1 christos fr = ipf_frag_known(fin, &pass);
2998 1.1 christos
2999 1.1 christos if (fr == NULL)
3000 1.1 christos fr = ipf_state_check(fin, &pass);
3001 1.1 christos }
3002 1.1 christos
3003 1.1 christos if ((pass & FR_NOMATCH) || (fr == NULL))
3004 1.1 christos fr = ipf_firewall(fin, &pass);
3005 1.1 christos
3006 1.1 christos /*
3007 1.1 christos * If we've asked to track state for this packet, set it up.
3008 1.1 christos * Here rather than ipf_firewall because ipf_checkauth may decide
3009 1.1 christos * to return a packet for "keep state"
3010 1.1 christos */
3011 1.1 christos if ((pass & FR_KEEPSTATE) && (fin->fin_m != NULL) &&
3012 1.1 christos !(fin->fin_flx & FI_STATE)) {
3013 1.1 christos if (ipf_state_add(softc, fin, NULL, 0) == 0) {
3014 1.1 christos LBUMP(ipf_stats[out].fr_ads);
3015 1.1 christos } else {
3016 1.1 christos LBUMP(ipf_stats[out].fr_bads);
3017 1.1 christos if (FR_ISPASS(pass)) {
3018 1.1 christos DT(frb_stateadd);
3019 1.1 christos pass &= ~FR_CMDMASK;
3020 1.1 christos pass |= FR_BLOCK;
3021 1.1 christos fin->fin_reason = FRB_STATEADD;
3022 1.1 christos }
3023 1.1 christos }
3024 1.1 christos }
3025 1.1 christos
3026 1.1 christos fin->fin_fr = fr;
3027 1.1 christos if ((fr != NULL) && !(fin->fin_flx & FI_STATE)) {
3028 1.1 christos fin->fin_dif = &fr->fr_dif;
3029 1.1 christos fin->fin_tif = &fr->fr_tifs[fin->fin_rev];
3030 1.1 christos }
3031 1.1 christos
3032 1.1 christos /*
3033 1.1 christos * Only count/translate packets which will be passed on, out the
3034 1.1 christos * interface.
3035 1.1 christos */
3036 1.1 christos if (out && FR_ISPASS(pass)) {
3037 1.1 christos (void) ipf_acctpkt(fin, NULL);
3038 1.1 christos
3039 1.1 christos switch (fin->fin_v)
3040 1.1 christos {
3041 1.1 christos case 4 :
3042 1.1 christos if (ipf_nat_checkout(fin, &pass) == -1) {
3043 1.1 christos ;
3044 1.1 christos } else if ((softc->ipf_update_ipid != 0) && (v == 4)) {
3045 1.1 christos if (ipf_updateipid(fin) == -1) {
3046 1.1 christos DT(frb_updateipid);
3047 1.1 christos LBUMP(ipf_stats[1].fr_ipud);
3048 1.1 christos pass &= ~FR_CMDMASK;
3049 1.1 christos pass |= FR_BLOCK;
3050 1.1 christos fin->fin_reason = FRB_UPDATEIPID;
3051 1.1 christos } else {
3052 1.1 christos LBUMP(ipf_stats[0].fr_ipud);
3053 1.1 christos }
3054 1.1 christos }
3055 1.1 christos break;
3056 1.1 christos #ifdef USE_INET6
3057 1.1 christos case 6 :
3058 1.1 christos (void) ipf_nat6_checkout(fin, &pass);
3059 1.1 christos break;
3060 1.1 christos #endif
3061 1.1 christos default :
3062 1.1 christos break;
3063 1.1 christos }
3064 1.1 christos }
3065 1.1 christos
3066 1.1 christos filterdone:
3067 1.1 christos #ifdef IPFILTER_LOG
3068 1.1 christos if ((softc->ipf_flags & FF_LOGGING) || (pass & FR_LOGMASK)) {
3069 1.1 christos (void) ipf_dolog(fin, &pass);
3070 1.1 christos }
3071 1.1 christos #endif
3072 1.1 christos
3073 1.1 christos /*
3074 1.1 christos * The FI_STATE flag is cleared here so that calling ipf_state_check
3075 1.1 christos * will work when called from inside of fr_fastroute. Although
3076 1.1 christos * there is a similar flag, FI_NATED, for NAT, it does have the same
3077 1.1 christos * impact on code execution.
3078 1.1 christos */
3079 1.1 christos fin->fin_flx &= ~FI_STATE;
3080 1.1 christos
3081 1.1 christos #if defined(FASTROUTE_RECURSION)
3082 1.1 christos /*
3083 1.1 christos * Up the reference on fr_lock and exit ipf_mutex. The generation of
3084 1.1 christos * a packet below can sometimes cause a recursive call into IPFilter.
3085 1.1 christos * On those platforms where that does happen, we need to hang onto
3086 1.1 christos * the filter rule just in case someone decides to remove or flush it
3087 1.1 christos * in the meantime.
3088 1.1 christos */
3089 1.1 christos if (fr != NULL) {
3090 1.1 christos MUTEX_ENTER(&fr->fr_lock);
3091 1.1 christos fr->fr_ref++;
3092 1.1 christos MUTEX_EXIT(&fr->fr_lock);
3093 1.1 christos }
3094 1.18 christos
3095 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
3096 1.1 christos #endif
3097 1.1 christos
3098 1.1 christos if ((pass & FR_RETMASK) != 0) {
3099 1.1 christos /*
3100 1.1 christos * Should we return an ICMP packet to indicate error
3101 1.1 christos * status passing through the packet filter ?
3102 1.1 christos * WARNING: ICMP error packets AND TCP RST packets should
3103 1.1 christos * ONLY be sent in repsonse to incoming packets. Sending
3104 1.1 christos * them in response to outbound packets can result in a
3105 1.1 christos * panic on some operating systems.
3106 1.1 christos */
3107 1.1 christos if (!out) {
3108 1.1 christos if (pass & FR_RETICMP) {
3109 1.1 christos int dst;
3110 1.1 christos
3111 1.1 christos if ((pass & FR_RETMASK) == FR_FAKEICMP)
3112 1.1 christos dst = 1;
3113 1.1 christos else
3114 1.1 christos dst = 0;
3115 1.1 christos (void) ipf_send_icmp_err(ICMP_UNREACH, fin,
3116 1.1 christos dst);
3117 1.1 christos LBUMP(ipf_stats[0].fr_ret);
3118 1.1 christos } else if (((pass & FR_RETMASK) == FR_RETRST) &&
3119 1.1 christos !(fin->fin_flx & FI_SHORT)) {
3120 1.1 christos if (((fin->fin_flx & FI_OOW) != 0) ||
3121 1.1 christos (ipf_send_reset(fin) == 0)) {
3122 1.1 christos LBUMP(ipf_stats[1].fr_ret);
3123 1.1 christos }
3124 1.1 christos }
3125 1.1 christos
3126 1.1 christos /*
3127 1.1 christos * When using return-* with auth rules, the auth code
3128 1.1 christos * takes over disposing of this packet.
3129 1.1 christos */
3130 1.1 christos if (FR_ISAUTH(pass) && (fin->fin_m != NULL)) {
3131 1.1 christos DT1(frb_authcapture, fr_info_t *, fin);
3132 1.1 christos fin->fin_m = *fin->fin_mp = NULL;
3133 1.1 christos fin->fin_reason = FRB_AUTHCAPTURE;
3134 1.1 christos m = NULL;
3135 1.1 christos }
3136 1.1 christos } else {
3137 1.1 christos if (pass & FR_RETRST) {
3138 1.1 christos fin->fin_error = ECONNRESET;
3139 1.1 christos }
3140 1.1 christos }
3141 1.1 christos }
3142 1.1 christos
3143 1.1 christos /*
3144 1.1 christos * After the above so that ICMP unreachables and TCP RSTs get
3145 1.1 christos * created properly.
3146 1.1 christos */
3147 1.1 christos if (FR_ISBLOCK(pass) && (fin->fin_flx & FI_NEWNAT))
3148 1.1 christos ipf_nat_uncreate(fin);
3149 1.1 christos
3150 1.1 christos /*
3151 1.1 christos * If we didn't drop off the bottom of the list of rules (and thus
3152 1.1 christos * the 'current' rule fr is not NULL), then we may have some extra
3153 1.1 christos * instructions about what to do with a packet.
3154 1.1 christos * Once we're finished return to our caller, freeing the packet if
3155 1.1 christos * we are dropping it.
3156 1.1 christos */
3157 1.1 christos if (fr != NULL) {
3158 1.1 christos frdest_t *fdp;
3159 1.1 christos
3160 1.1 christos /*
3161 1.1 christos * Generate a duplicated packet first because ipf_fastroute
3162 1.1 christos * can lead to fin_m being free'd... not good.
3163 1.1 christos */
3164 1.1 christos fdp = fin->fin_dif;
3165 1.1 christos if ((fdp != NULL) && (fdp->fd_ptr != NULL) &&
3166 1.13 christos (fdp->fd_ptr != (void *)-1) && (fin->fin_m != NULL)) {
3167 1.1 christos mc = M_COPY(fin->fin_m);
3168 1.1 christos if (mc != NULL)
3169 1.1 christos ipf_fastroute(mc, &mc, fin, fdp);
3170 1.1 christos }
3171 1.1 christos
3172 1.1 christos fdp = fin->fin_tif;
3173 1.1 christos if (!out && (pass & FR_FASTROUTE)) {
3174 1.1 christos /*
3175 1.1 christos * For fastroute rule, no destination interface defined
3176 1.1 christos * so pass NULL as the frdest_t parameter
3177 1.1 christos */
3178 1.1 christos (void) ipf_fastroute(fin->fin_m, mp, fin, NULL);
3179 1.1 christos m = *mp = NULL;
3180 1.1 christos } else if ((fdp != NULL) && (fdp->fd_ptr != NULL) &&
3181 1.1 christos (fdp->fd_ptr != (struct ifnet *)-1)) {
3182 1.1 christos /* this is for to rules: */
3183 1.1 christos ipf_fastroute(fin->fin_m, mp, fin, fdp);
3184 1.1 christos m = *mp = NULL;
3185 1.1 christos }
3186 1.1 christos
3187 1.1 christos #if defined(FASTROUTE_RECURSION)
3188 1.1 christos (void) ipf_derefrule(softc, &fr);
3189 1.1 christos #endif
3190 1.1 christos }
3191 1.1 christos #if !defined(FASTROUTE_RECURSION)
3192 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
3193 1.1 christos #endif
3194 1.1 christos
3195 1.1 christos finished:
3196 1.1 christos if (!FR_ISPASS(pass)) {
3197 1.1 christos LBUMP(ipf_stats[out].fr_block);
3198 1.1 christos if (*mp != NULL) {
3199 1.2 christos #ifdef _KERNEL
3200 1.1 christos FREE_MB_T(*mp);
3201 1.2 christos #endif
3202 1.1 christos m = *mp = NULL;
3203 1.1 christos }
3204 1.1 christos } else {
3205 1.1 christos LBUMP(ipf_stats[out].fr_pass);
3206 1.1 christos #if defined(_KERNEL) && defined(__sgi)
3207 1.1 christos if ((fin->fin_hbuf != NULL) &&
3208 1.1 christos (mtod(fin->fin_m, struct ip *) != fin->fin_ip)) {
3209 1.1 christos COPYBACK(fin->fin_m, 0, fin->fin_plen, fin->fin_hbuf);
3210 1.1 christos }
3211 1.1 christos #endif
3212 1.1 christos }
3213 1.1 christos
3214 1.1 christos SPL_X(s);
3215 1.1 christos
3216 1.1 christos #ifdef _KERNEL
3217 1.3 darrenr if (FR_ISPASS(pass))
3218 1.3 darrenr return 0;
3219 1.3 darrenr LBUMP(ipf_stats[out].fr_blocked[fin->fin_reason]);
3220 1.3 darrenr return fin->fin_error;
3221 1.1 christos #else /* _KERNEL */
3222 1.1 christos if (*mp != NULL)
3223 1.1 christos (*mp)->mb_ifp = fin->fin_ifp;
3224 1.1 christos blockreason = fin->fin_reason;
3225 1.1 christos FR_VERBOSE(("fin_flx %#x pass %#x ", fin->fin_flx, pass));
3226 1.1 christos /*if ((pass & FR_CMDMASK) == (softc->ipf_pass & FR_CMDMASK))*/
3227 1.1 christos if ((pass & FR_NOMATCH) != 0)
3228 1.1 christos return 1;
3229 1.1 christos
3230 1.1 christos if ((pass & FR_RETMASK) != 0)
3231 1.1 christos switch (pass & FR_RETMASK)
3232 1.1 christos {
3233 1.1 christos case FR_RETRST :
3234 1.1 christos return 3;
3235 1.1 christos case FR_RETICMP :
3236 1.1 christos return 4;
3237 1.1 christos case FR_FAKEICMP :
3238 1.1 christos return 5;
3239 1.1 christos }
3240 1.1 christos
3241 1.1 christos switch (pass & FR_CMDMASK)
3242 1.1 christos {
3243 1.1 christos case FR_PASS :
3244 1.1 christos return 0;
3245 1.1 christos case FR_BLOCK :
3246 1.1 christos return -1;
3247 1.1 christos case FR_AUTH :
3248 1.1 christos return -2;
3249 1.1 christos case FR_ACCOUNT :
3250 1.1 christos return -3;
3251 1.1 christos case FR_PREAUTH :
3252 1.1 christos return -4;
3253 1.1 christos }
3254 1.1 christos return 2;
3255 1.1 christos #endif /* _KERNEL */
3256 1.1 christos }
3257 1.1 christos
3258 1.1 christos
3259 1.1 christos #ifdef IPFILTER_LOG
3260 1.1 christos /* ------------------------------------------------------------------------ */
3261 1.1 christos /* Function: ipf_dolog */
3262 1.1 christos /* Returns: frentry_t* - returns contents of fin_fr (no change made) */
3263 1.1 christos /* Parameters: fin(I) - pointer to packet information */
3264 1.1 christos /* passp(IO) - pointer to current/new filter decision (unused) */
3265 1.1 christos /* */
3266 1.1 christos /* Checks flags set to see how a packet should be logged, if it is to be */
3267 1.1 christos /* logged. Adjust statistics based on its success or not. */
3268 1.1 christos /* ------------------------------------------------------------------------ */
3269 1.1 christos frentry_t *
3270 1.2 christos ipf_dolog(fr_info_t *fin, u_32_t *passp)
3271 1.1 christos {
3272 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
3273 1.1 christos u_32_t pass;
3274 1.1 christos int out;
3275 1.1 christos
3276 1.1 christos out = fin->fin_out;
3277 1.1 christos pass = *passp;
3278 1.1 christos
3279 1.1 christos if ((softc->ipf_flags & FF_LOGNOMATCH) && (pass & FR_NOMATCH)) {
3280 1.1 christos pass |= FF_LOGNOMATCH;
3281 1.1 christos LBUMPD(ipf_stats[out], fr_npkl);
3282 1.1 christos goto logit;
3283 1.1 christos
3284 1.1 christos } else if (((pass & FR_LOGMASK) == FR_LOGP) ||
3285 1.1 christos (FR_ISPASS(pass) && (softc->ipf_flags & FF_LOGPASS))) {
3286 1.1 christos if ((pass & FR_LOGMASK) != FR_LOGP)
3287 1.1 christos pass |= FF_LOGPASS;
3288 1.1 christos LBUMPD(ipf_stats[out], fr_ppkl);
3289 1.1 christos goto logit;
3290 1.1 christos
3291 1.1 christos } else if (((pass & FR_LOGMASK) == FR_LOGB) ||
3292 1.1 christos (FR_ISBLOCK(pass) && (softc->ipf_flags & FF_LOGBLOCK))) {
3293 1.1 christos if ((pass & FR_LOGMASK) != FR_LOGB)
3294 1.1 christos pass |= FF_LOGBLOCK;
3295 1.1 christos LBUMPD(ipf_stats[out], fr_bpkl);
3296 1.1 christos
3297 1.1 christos logit:
3298 1.1 christos if (ipf_log_pkt(fin, pass) == -1) {
3299 1.1 christos /*
3300 1.1 christos * If the "or-block" option has been used then
3301 1.1 christos * block the packet if we failed to log it.
3302 1.1 christos */
3303 1.1 christos if ((pass & FR_LOGORBLOCK) && FR_ISPASS(pass)) {
3304 1.1 christos DT1(frb_logfail2, u_int, pass);
3305 1.1 christos pass &= ~FR_CMDMASK;
3306 1.1 christos pass |= FR_BLOCK;
3307 1.1 christos fin->fin_reason = FRB_LOGFAIL2;
3308 1.1 christos }
3309 1.1 christos }
3310 1.1 christos *passp = pass;
3311 1.1 christos }
3312 1.1 christos
3313 1.1 christos return fin->fin_fr;
3314 1.1 christos }
3315 1.1 christos #endif /* IPFILTER_LOG */
3316 1.1 christos
3317 1.1 christos
3318 1.1 christos /* ------------------------------------------------------------------------ */
3319 1.1 christos /* Function: ipf_cksum */
3320 1.1 christos /* Returns: u_short - IP header checksum */
3321 1.1 christos /* Parameters: addr(I) - pointer to start of buffer to checksum */
3322 1.1 christos /* len(I) - length of buffer in bytes */
3323 1.1 christos /* */
3324 1.1 christos /* Calculate the two's complement 16 bit checksum of the buffer passed. */
3325 1.1 christos /* */
3326 1.1 christos /* N.B.: addr should be 16bit aligned. */
3327 1.1 christos /* ------------------------------------------------------------------------ */
3328 1.1 christos u_short
3329 1.2 christos ipf_cksum(u_short *addr, int len)
3330 1.1 christos {
3331 1.1 christos u_32_t sum = 0;
3332 1.1 christos
3333 1.1 christos for (sum = 0; len > 1; len -= 2)
3334 1.1 christos sum += *addr++;
3335 1.1 christos
3336 1.1 christos /* mop up an odd byte, if necessary */
3337 1.1 christos if (len == 1)
3338 1.1 christos sum += *(u_char *)addr;
3339 1.1 christos
3340 1.1 christos /*
3341 1.1 christos * add back carry outs from top 16 bits to low 16 bits
3342 1.1 christos */
3343 1.1 christos sum = (sum >> 16) + (sum & 0xffff); /* add hi 16 to low 16 */
3344 1.1 christos sum += (sum >> 16); /* add carry */
3345 1.1 christos return (u_short)(~sum);
3346 1.1 christos }
3347 1.1 christos
3348 1.1 christos
3349 1.1 christos /* ------------------------------------------------------------------------ */
3350 1.1 christos /* Function: fr_cksum */
3351 1.1 christos /* Returns: u_short - layer 4 checksum */
3352 1.1 christos /* Parameters: fin(I) - pointer to packet information */
3353 1.1 christos /* ip(I) - pointer to IP header */
3354 1.1 christos /* l4proto(I) - protocol to caclulate checksum for */
3355 1.1 christos /* l4hdr(I) - pointer to layer 4 header */
3356 1.1 christos /* */
3357 1.1 christos /* Calculates the TCP checksum for the packet held in "m", using the data */
3358 1.1 christos /* in the IP header "ip" to seed it. */
3359 1.1 christos /* */
3360 1.1 christos /* NB: This function assumes we've pullup'd enough for all of the IP header */
3361 1.1 christos /* and the TCP header. We also assume that data blocks aren't allocated in */
3362 1.1 christos /* odd sizes. */
3363 1.1 christos /* */
3364 1.1 christos /* Expects ip_len and ip_off to be in network byte order when called. */
3365 1.1 christos /* ------------------------------------------------------------------------ */
3366 1.1 christos u_short
3367 1.2 christos fr_cksum(fr_info_t *fin, ip_t *ip, int l4proto, void *l4hdr)
3368 1.1 christos {
3369 1.1 christos u_short *sp, slen, sumsave, *csump;
3370 1.1 christos u_int sum, sum2;
3371 1.1 christos int hlen;
3372 1.1 christos int off;
3373 1.1 christos #ifdef USE_INET6
3374 1.1 christos ip6_t *ip6;
3375 1.1 christos #endif
3376 1.1 christos
3377 1.1 christos csump = NULL;
3378 1.1 christos sumsave = 0;
3379 1.1 christos sp = NULL;
3380 1.1 christos slen = 0;
3381 1.1 christos hlen = 0;
3382 1.1 christos sum = 0;
3383 1.1 christos
3384 1.1 christos sum = htons((u_short)l4proto);
3385 1.1 christos /*
3386 1.1 christos * Add up IP Header portion
3387 1.1 christos */
3388 1.1 christos #ifdef USE_INET6
3389 1.1 christos if (IP_V(ip) == 4) {
3390 1.1 christos #endif
3391 1.1 christos hlen = IP_HL(ip) << 2;
3392 1.1 christos off = hlen;
3393 1.1 christos sp = (u_short *)&ip->ip_src;
3394 1.1 christos sum += *sp++; /* ip_src */
3395 1.1 christos sum += *sp++;
3396 1.1 christos sum += *sp++; /* ip_dst */
3397 1.1 christos sum += *sp++;
3398 1.1 christos #ifdef USE_INET6
3399 1.1 christos } else if (IP_V(ip) == 6) {
3400 1.1 christos ip6 = (ip6_t *)ip;
3401 1.1 christos hlen = sizeof(*ip6);
3402 1.1 christos off = ((char *)fin->fin_dp - (char *)fin->fin_ip);
3403 1.1 christos sp = (u_short *)&ip6->ip6_src;
3404 1.1 christos sum += *sp++; /* ip6_src */
3405 1.1 christos sum += *sp++;
3406 1.1 christos sum += *sp++;
3407 1.1 christos sum += *sp++;
3408 1.1 christos sum += *sp++;
3409 1.1 christos sum += *sp++;
3410 1.1 christos sum += *sp++;
3411 1.1 christos sum += *sp++;
3412 1.3 darrenr /* This needs to be routing header aware. */
3413 1.1 christos sum += *sp++; /* ip6_dst */
3414 1.1 christos sum += *sp++;
3415 1.1 christos sum += *sp++;
3416 1.1 christos sum += *sp++;
3417 1.1 christos sum += *sp++;
3418 1.1 christos sum += *sp++;
3419 1.1 christos sum += *sp++;
3420 1.1 christos sum += *sp++;
3421 1.1 christos } else {
3422 1.1 christos return 0xffff;
3423 1.1 christos }
3424 1.1 christos #endif
3425 1.1 christos slen = fin->fin_plen - off;
3426 1.1 christos sum += htons(slen);
3427 1.1 christos
3428 1.1 christos switch (l4proto)
3429 1.1 christos {
3430 1.1 christos case IPPROTO_UDP :
3431 1.1 christos csump = &((udphdr_t *)l4hdr)->uh_sum;
3432 1.1 christos break;
3433 1.1 christos
3434 1.1 christos case IPPROTO_TCP :
3435 1.1 christos csump = &((tcphdr_t *)l4hdr)->th_sum;
3436 1.1 christos break;
3437 1.1 christos case IPPROTO_ICMP :
3438 1.1 christos csump = &((icmphdr_t *)l4hdr)->icmp_cksum;
3439 1.1 christos sum = 0; /* Pseudo-checksum is not included */
3440 1.1 christos break;
3441 1.3 darrenr #ifdef USE_INET6
3442 1.3 darrenr case IPPROTO_ICMPV6 :
3443 1.3 darrenr csump = &((struct icmp6_hdr *)l4hdr)->icmp6_cksum;
3444 1.3 darrenr break;
3445 1.3 darrenr #endif
3446 1.1 christos default :
3447 1.1 christos break;
3448 1.1 christos }
3449 1.1 christos
3450 1.1 christos if (csump != NULL) {
3451 1.1 christos sumsave = *csump;
3452 1.1 christos *csump = 0;
3453 1.1 christos }
3454 1.1 christos
3455 1.1 christos sum2 = ipf_pcksum(fin, off, sum);
3456 1.1 christos if (csump != NULL)
3457 1.1 christos *csump = sumsave;
3458 1.1 christos return sum2;
3459 1.1 christos }
3460 1.1 christos
3461 1.1 christos
3462 1.1 christos /* ------------------------------------------------------------------------ */
3463 1.1 christos /* Function: ipf_findgroup */
3464 1.1 christos /* Returns: frgroup_t * - NULL = group not found, else pointer to group */
3465 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3466 1.3 darrenr /* group(I) - group name to search for */
3467 1.1 christos /* unit(I) - device to which this group belongs */
3468 1.1 christos /* set(I) - which set of rules (inactive/inactive) this is */
3469 1.1 christos /* fgpp(O) - pointer to place to store pointer to the pointer */
3470 1.1 christos /* to where to add the next (last) group or where */
3471 1.1 christos /* to delete group from. */
3472 1.1 christos /* */
3473 1.1 christos /* Search amongst the defined groups for a particular group number. */
3474 1.1 christos /* ------------------------------------------------------------------------ */
3475 1.1 christos frgroup_t *
3476 1.2 christos ipf_findgroup(ipf_main_softc_t *softc, char *group, minor_t unit, int set,
3477 1.2 christos frgroup_t ***fgpp)
3478 1.1 christos {
3479 1.1 christos frgroup_t *fg, **fgp;
3480 1.1 christos
3481 1.1 christos /*
3482 1.1 christos * Which list of groups to search in is dependent on which list of
3483 1.1 christos * rules are being operated on.
3484 1.1 christos */
3485 1.1 christos fgp = &softc->ipf_groups[unit][set];
3486 1.1 christos
3487 1.1 christos while ((fg = *fgp) != NULL) {
3488 1.1 christos if (strncmp(group, fg->fg_name, FR_GROUPLEN) == 0)
3489 1.1 christos break;
3490 1.1 christos else
3491 1.1 christos fgp = &fg->fg_next;
3492 1.1 christos }
3493 1.1 christos if (fgpp != NULL)
3494 1.1 christos *fgpp = fgp;
3495 1.1 christos return fg;
3496 1.1 christos }
3497 1.1 christos
3498 1.1 christos
3499 1.1 christos /* ------------------------------------------------------------------------ */
3500 1.1 christos /* Function: ipf_group_add */
3501 1.1 christos /* Returns: frgroup_t * - NULL == did not create group, */
3502 1.1 christos /* != NULL == pointer to the group */
3503 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3504 1.3 darrenr /* num(I) - group number to add */
3505 1.1 christos /* head(I) - rule pointer that is using this as the head */
3506 1.1 christos /* flags(I) - rule flags which describe the type of rule it is */
3507 1.1 christos /* unit(I) - device to which this group will belong to */
3508 1.1 christos /* set(I) - which set of rules (inactive/inactive) this is */
3509 1.1 christos /* Write Locks: ipf_mutex */
3510 1.1 christos /* */
3511 1.1 christos /* Add a new group head, or if it already exists, increase the reference */
3512 1.1 christos /* count to it. */
3513 1.1 christos /* ------------------------------------------------------------------------ */
3514 1.1 christos frgroup_t *
3515 1.2 christos ipf_group_add(ipf_main_softc_t *softc, char *group, void *head, u_32_t flags,
3516 1.2 christos minor_t unit, int set)
3517 1.1 christos {
3518 1.1 christos frgroup_t *fg, **fgp;
3519 1.1 christos u_32_t gflags;
3520 1.1 christos
3521 1.1 christos if (group == NULL)
3522 1.1 christos return NULL;
3523 1.1 christos
3524 1.1 christos if (unit == IPL_LOGIPF && *group == '\0')
3525 1.1 christos return NULL;
3526 1.1 christos
3527 1.1 christos fgp = NULL;
3528 1.1 christos gflags = flags & FR_INOUT;
3529 1.1 christos
3530 1.1 christos fg = ipf_findgroup(softc, group, unit, set, &fgp);
3531 1.1 christos if (fg != NULL) {
3532 1.3 darrenr if (fg->fg_head == NULL && head != NULL)
3533 1.3 darrenr fg->fg_head = head;
3534 1.1 christos if (fg->fg_flags == 0)
3535 1.1 christos fg->fg_flags = gflags;
3536 1.1 christos else if (gflags != fg->fg_flags)
3537 1.1 christos return NULL;
3538 1.1 christos fg->fg_ref++;
3539 1.1 christos return fg;
3540 1.1 christos }
3541 1.1 christos
3542 1.1 christos KMALLOC(fg, frgroup_t *);
3543 1.1 christos if (fg != NULL) {
3544 1.1 christos fg->fg_head = head;
3545 1.1 christos fg->fg_start = NULL;
3546 1.1 christos fg->fg_next = *fgp;
3547 1.1 christos bcopy(group, fg->fg_name, strlen(group) + 1);
3548 1.1 christos fg->fg_flags = gflags;
3549 1.1 christos fg->fg_ref = 1;
3550 1.3 darrenr fg->fg_set = &softc->ipf_groups[unit][set];
3551 1.1 christos *fgp = fg;
3552 1.1 christos }
3553 1.1 christos return fg;
3554 1.1 christos }
3555 1.1 christos
3556 1.1 christos
3557 1.1 christos /* ------------------------------------------------------------------------ */
3558 1.1 christos /* Function: ipf_group_del */
3559 1.1 christos /* Returns: int - number of rules deleted */
3560 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3561 1.3 darrenr /* group(I) - group name to delete */
3562 1.3 darrenr /* fr(I) - filter rule from which group is referenced */
3563 1.1 christos /* Write Locks: ipf_mutex */
3564 1.1 christos /* */
3565 1.3 darrenr /* This function is called whenever a reference to a group is to be dropped */
3566 1.3 darrenr /* and thus its reference count needs to be lowered and the group free'd if */
3567 1.3 darrenr /* the reference count reaches zero. Passing in fr is really for the sole */
3568 1.3 darrenr /* purpose of knowing when the head rule is being deleted. */
3569 1.1 christos /* ------------------------------------------------------------------------ */
3570 1.3 darrenr void
3571 1.3 darrenr ipf_group_del(ipf_main_softc_t *softc, frgroup_t *group, frentry_t *fr)
3572 1.1 christos {
3573 1.1 christos
3574 1.3 darrenr if (group->fg_head == fr)
3575 1.3 darrenr group->fg_head = NULL;
3576 1.3 darrenr
3577 1.3 darrenr group->fg_ref--;
3578 1.3 darrenr if ((group->fg_ref == 0) && (group->fg_start == NULL))
3579 1.3 darrenr ipf_group_free(group);
3580 1.3 darrenr }
3581 1.1 christos
3582 1.1 christos
3583 1.3 darrenr /* ------------------------------------------------------------------------ */
3584 1.3 darrenr /* Function: ipf_group_free */
3585 1.3 darrenr /* Returns: Nil */
3586 1.3 darrenr /* Parameters: group(I) - pointer to filter rule group */
3587 1.3 darrenr /* */
3588 1.3 darrenr /* Remove the group from the list of groups and free it. */
3589 1.3 darrenr /* ------------------------------------------------------------------------ */
3590 1.3 darrenr static void
3591 1.3 darrenr ipf_group_free(frgroup_t *group)
3592 1.3 darrenr {
3593 1.3 darrenr frgroup_t **gp;
3594 1.3 darrenr
3595 1.3 darrenr for (gp = group->fg_set; *gp != NULL; gp = &(*gp)->fg_next) {
3596 1.3 darrenr if (*gp == group) {
3597 1.3 darrenr *gp = group->fg_next;
3598 1.3 darrenr break;
3599 1.3 darrenr }
3600 1.1 christos }
3601 1.3 darrenr KFREE(group);
3602 1.3 darrenr }
3603 1.3 darrenr
3604 1.3 darrenr
3605 1.3 darrenr /* ------------------------------------------------------------------------ */
3606 1.3 darrenr /* Function: ipf_group_flush */
3607 1.3 darrenr /* Returns: int - number of rules flush from group */
3608 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3609 1.3 darrenr /* Parameters: group(I) - pointer to filter rule group */
3610 1.3 darrenr /* */
3611 1.3 darrenr /* Remove all of the rules that currently are listed under the given group. */
3612 1.3 darrenr /* ------------------------------------------------------------------------ */
3613 1.3 darrenr static int
3614 1.3 darrenr ipf_group_flush(ipf_main_softc_t *softc, frgroup_t *group)
3615 1.3 darrenr {
3616 1.3 darrenr int gone = 0;
3617 1.3 darrenr
3618 1.3 darrenr (void) ipf_flushlist(softc, &gone, &group->fg_start);
3619 1.1 christos
3620 1.1 christos return gone;
3621 1.1 christos }
3622 1.1 christos
3623 1.1 christos
3624 1.1 christos /* ------------------------------------------------------------------------ */
3625 1.1 christos /* Function: ipf_getrulen */
3626 1.1 christos /* Returns: frentry_t * - NULL == not found, else pointer to rule n */
3627 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3628 1.1 christos /* Parameters: unit(I) - device for which to count the rule's number */
3629 1.1 christos /* flags(I) - which set of rules to find the rule in */
3630 1.1 christos /* group(I) - group name */
3631 1.1 christos /* n(I) - rule number to find */
3632 1.1 christos /* */
3633 1.1 christos /* Find rule # n in group # g and return a pointer to it. Return NULl if */
3634 1.1 christos /* group # g doesn't exist or there are less than n rules in the group. */
3635 1.1 christos /* ------------------------------------------------------------------------ */
3636 1.1 christos frentry_t *
3637 1.2 christos ipf_getrulen(ipf_main_softc_t *softc, int unit, char *group, u_32_t n)
3638 1.1 christos {
3639 1.1 christos frentry_t *fr;
3640 1.1 christos frgroup_t *fg;
3641 1.1 christos
3642 1.1 christos fg = ipf_findgroup(softc, group, unit, softc->ipf_active, NULL);
3643 1.1 christos if (fg == NULL)
3644 1.1 christos return NULL;
3645 1.1 christos for (fr = fg->fg_start; fr && n; fr = fr->fr_next, n--)
3646 1.1 christos ;
3647 1.1 christos if (n != 0)
3648 1.1 christos return NULL;
3649 1.1 christos return fr;
3650 1.1 christos }
3651 1.1 christos
3652 1.1 christos
3653 1.1 christos /* ------------------------------------------------------------------------ */
3654 1.1 christos /* Function: ipf_flushlist */
3655 1.1 christos /* Returns: int - >= 0 - number of flushed rules */
3656 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3657 1.1 christos /* nfreedp(O) - pointer to int where flush count is stored */
3658 1.1 christos /* listp(I) - pointer to list to flush pointer */
3659 1.1 christos /* Write Locks: ipf_mutex */
3660 1.1 christos /* */
3661 1.1 christos /* Recursively flush rules from the list, descending groups as they are */
3662 1.1 christos /* encountered. if a rule is the head of a group and it has lost all its */
3663 1.1 christos /* group members, then also delete the group reference. nfreedp is needed */
3664 1.1 christos /* to store the accumulating count of rules removed, whereas the returned */
3665 1.1 christos /* value is just the number removed from the current list. The latter is */
3666 1.1 christos /* needed to correctly adjust reference counts on rules that define groups. */
3667 1.1 christos /* */
3668 1.1 christos /* NOTE: Rules not loaded from user space cannot be flushed. */
3669 1.1 christos /* ------------------------------------------------------------------------ */
3670 1.1 christos static int
3671 1.3 darrenr ipf_flushlist(ipf_main_softc_t *softc, int *nfreedp, frentry_t **listp)
3672 1.1 christos {
3673 1.1 christos int freed = 0;
3674 1.1 christos frentry_t *fp;
3675 1.1 christos
3676 1.1 christos while ((fp = *listp) != NULL) {
3677 1.1 christos if ((fp->fr_type & FR_T_BUILTIN) ||
3678 1.1 christos !(fp->fr_flags & FR_COPIED)) {
3679 1.1 christos listp = &fp->fr_next;
3680 1.1 christos continue;
3681 1.1 christos }
3682 1.1 christos *listp = fp->fr_next;
3683 1.1 christos if (fp->fr_next != NULL)
3684 1.1 christos fp->fr_next->fr_pnext = fp->fr_pnext;
3685 1.1 christos fp->fr_pnext = NULL;
3686 1.1 christos
3687 1.3 darrenr if (fp->fr_grphead != NULL) {
3688 1.3 darrenr freed += ipf_group_flush(softc, fp->fr_grphead);
3689 1.1 christos fp->fr_names[fp->fr_grhead] = '\0';
3690 1.1 christos }
3691 1.1 christos
3692 1.3 darrenr if (fp->fr_icmpgrp != NULL) {
3693 1.3 darrenr freed += ipf_group_flush(softc, fp->fr_icmpgrp);
3694 1.1 christos fp->fr_names[fp->fr_icmphead] = '\0';
3695 1.1 christos }
3696 1.1 christos
3697 1.1 christos if (fp->fr_srctrack.ht_max_nodes)
3698 1.1 christos ipf_rb_ht_flush(&fp->fr_srctrack);
3699 1.1 christos
3700 1.1 christos fp->fr_next = NULL;
3701 1.1 christos
3702 1.1 christos ASSERT(fp->fr_ref > 0);
3703 1.1 christos if (ipf_derefrule(softc, &fp) == 0)
3704 1.1 christos freed++;
3705 1.1 christos }
3706 1.1 christos *nfreedp += freed;
3707 1.1 christos return freed;
3708 1.1 christos }
3709 1.1 christos
3710 1.1 christos
3711 1.1 christos /* ------------------------------------------------------------------------ */
3712 1.1 christos /* Function: ipf_flush */
3713 1.1 christos /* Returns: int - >= 0 - number of flushed rules */
3714 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
3715 1.3 darrenr /* unit(I) - device for which to flush rules */
3716 1.1 christos /* flags(I) - which set of rules to flush */
3717 1.1 christos /* */
3718 1.1 christos /* Calls flushlist() for all filter rules (accounting, firewall - both IPv4 */
3719 1.1 christos /* and IPv6) as defined by the value of flags. */
3720 1.1 christos /* ------------------------------------------------------------------------ */
3721 1.1 christos int
3722 1.2 christos ipf_flush(ipf_main_softc_t *softc, minor_t unit, int flags)
3723 1.1 christos {
3724 1.1 christos int flushed = 0, set;
3725 1.1 christos
3726 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
3727 1.1 christos
3728 1.1 christos set = softc->ipf_active;
3729 1.1 christos if ((flags & FR_INACTIVE) == FR_INACTIVE)
3730 1.1 christos set = 1 - set;
3731 1.1 christos
3732 1.1 christos if (flags & FR_OUTQUE) {
3733 1.3 darrenr ipf_flushlist(softc, &flushed, &softc->ipf_rules[1][set]);
3734 1.3 darrenr ipf_flushlist(softc, &flushed, &softc->ipf_acct[1][set]);
3735 1.1 christos }
3736 1.1 christos if (flags & FR_INQUE) {
3737 1.3 darrenr ipf_flushlist(softc, &flushed, &softc->ipf_rules[0][set]);
3738 1.3 darrenr ipf_flushlist(softc, &flushed, &softc->ipf_acct[0][set]);
3739 1.1 christos }
3740 1.1 christos
3741 1.3 darrenr flushed += ipf_flush_groups(softc, &softc->ipf_groups[unit][set],
3742 1.1 christos flags & (FR_INQUE|FR_OUTQUE));
3743 1.1 christos
3744 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
3745 1.1 christos
3746 1.1 christos if (unit == IPL_LOGIPF) {
3747 1.1 christos int tmp;
3748 1.1 christos
3749 1.1 christos tmp = ipf_flush(softc, IPL_LOGCOUNT, flags);
3750 1.1 christos if (tmp >= 0)
3751 1.1 christos flushed += tmp;
3752 1.1 christos }
3753 1.1 christos return flushed;
3754 1.1 christos }
3755 1.1 christos
3756 1.1 christos
3757 1.1 christos /* ------------------------------------------------------------------------ */
3758 1.1 christos /* Function: ipf_flush_groups */
3759 1.1 christos /* Returns: int - >= 0 - number of flushed rules */
3760 1.3 darrenr /* Parameters: softc(I) - soft context pointerto work with */
3761 1.3 darrenr /* grhead(I) - pointer to the start of the group list to flush */
3762 1.3 darrenr /* flags(I) - which set of rules to flush */
3763 1.3 darrenr /* */
3764 1.3 darrenr /* Walk through all of the groups under the given group head and remove all */
3765 1.3 darrenr /* of those that match the flags passed in. The for loop here is bit more */
3766 1.3 darrenr /* complicated than usual because the removal of a rule with ipf_derefrule */
3767 1.3 darrenr /* may end up removing not only the structure pointed to by "fg" but also */
3768 1.3 darrenr /* what is fg_next and fg_next after that. So if a filter rule is actually */
3769 1.3 darrenr /* removed from the group then it is necessary to start again. */
3770 1.1 christos /* ------------------------------------------------------------------------ */
3771 1.1 christos static int
3772 1.3 darrenr ipf_flush_groups( ipf_main_softc_t *softc, frgroup_t **grhead, int flags)
3773 1.1 christos {
3774 1.3 darrenr frentry_t *fr, **frp;
3775 1.1 christos frgroup_t *fg, **fgp;
3776 1.1 christos int flushed = 0;
3777 1.3 darrenr int removed = 0;
3778 1.1 christos
3779 1.3 darrenr for (fgp = grhead; (fg = *fgp) != NULL; ) {
3780 1.3 darrenr while ((fg != NULL) && ((fg->fg_flags & flags) == 0))
3781 1.3 darrenr fg = fg->fg_next;
3782 1.3 darrenr if (fg == NULL)
3783 1.3 darrenr break;
3784 1.3 darrenr removed = 0;
3785 1.1 christos frp = &fg->fg_start;
3786 1.3 darrenr while ((removed == 0) && ((fr = *frp) != NULL)) {
3787 1.1 christos if ((fr->fr_flags & flags) == 0) {
3788 1.1 christos frp = &fr->fr_next;
3789 1.3 darrenr } else {
3790 1.3 darrenr if (fr->fr_next != NULL)
3791 1.3 darrenr fr->fr_next->fr_pnext = fr->fr_pnext;
3792 1.3 darrenr *frp = fr->fr_next;
3793 1.3 darrenr fr->fr_pnext = NULL;
3794 1.3 darrenr fr->fr_next = NULL;
3795 1.3 darrenr (void) ipf_derefrule(softc, &fr);
3796 1.3 darrenr flushed++;
3797 1.3 darrenr removed++;
3798 1.1 christos }
3799 1.1 christos }
3800 1.3 darrenr if (removed == 0)
3801 1.3 darrenr fgp = &fg->fg_next;
3802 1.1 christos }
3803 1.1 christos return flushed;
3804 1.1 christos }
3805 1.1 christos
3806 1.1 christos
3807 1.1 christos /* ------------------------------------------------------------------------ */
3808 1.1 christos /* Function: memstr */
3809 1.1 christos /* Returns: char * - NULL if failed, != NULL pointer to matching bytes */
3810 1.1 christos /* Parameters: src(I) - pointer to byte sequence to match */
3811 1.1 christos /* dst(I) - pointer to byte sequence to search */
3812 1.1 christos /* slen(I) - match length */
3813 1.1 christos /* dlen(I) - length available to search in */
3814 1.1 christos /* */
3815 1.1 christos /* Search dst for a sequence of bytes matching those at src and extend for */
3816 1.1 christos /* slen bytes. */
3817 1.1 christos /* ------------------------------------------------------------------------ */
3818 1.1 christos char *
3819 1.2 christos memstr(const char *src, char *dst, size_t slen, size_t dlen)
3820 1.1 christos {
3821 1.1 christos char *s = NULL;
3822 1.1 christos
3823 1.1 christos while (dlen >= slen) {
3824 1.2 christos if (memcmp(src, dst, slen) == 0) {
3825 1.1 christos s = dst;
3826 1.1 christos break;
3827 1.1 christos }
3828 1.1 christos dst++;
3829 1.1 christos dlen--;
3830 1.1 christos }
3831 1.1 christos return s;
3832 1.1 christos }
3833 1.15 christos
3834 1.15 christos
3835 1.1 christos /* ------------------------------------------------------------------------ */
3836 1.1 christos /* Function: ipf_fixskip */
3837 1.1 christos /* Returns: Nil */
3838 1.1 christos /* Parameters: listp(IO) - pointer to start of list with skip rule */
3839 1.1 christos /* rp(I) - rule added/removed with skip in it. */
3840 1.1 christos /* addremove(I) - adjustment (-1/+1) to make to skip count, */
3841 1.1 christos /* depending on whether a rule was just added */
3842 1.1 christos /* or removed. */
3843 1.1 christos /* */
3844 1.1 christos /* Adjust all the rules in a list which would have skip'd past the position */
3845 1.1 christos /* where we are inserting to skip to the right place given the change. */
3846 1.1 christos /* ------------------------------------------------------------------------ */
3847 1.1 christos void
3848 1.2 christos ipf_fixskip(frentry_t **listp, frentry_t *rp, int addremove)
3849 1.1 christos {
3850 1.1 christos int rules, rn;
3851 1.1 christos frentry_t *fp;
3852 1.1 christos
3853 1.1 christos rules = 0;
3854 1.1 christos for (fp = *listp; (fp != NULL) && (fp != rp); fp = fp->fr_next)
3855 1.1 christos rules++;
3856 1.1 christos
3857 1.1 christos if (!fp)
3858 1.1 christos return;
3859 1.1 christos
3860 1.1 christos for (rn = 0, fp = *listp; fp && (fp != rp); fp = fp->fr_next, rn++)
3861 1.1 christos if (FR_ISSKIP(fp->fr_flags) && (rn + fp->fr_arg >= rules))
3862 1.1 christos fp->fr_arg += addremove;
3863 1.1 christos }
3864 1.1 christos
3865 1.1 christos
3866 1.1 christos #ifdef _KERNEL
3867 1.1 christos /* ------------------------------------------------------------------------ */
3868 1.1 christos /* Function: count4bits */
3869 1.1 christos /* Returns: int - >= 0 - number of consecutive bits in input */
3870 1.1 christos /* Parameters: ip(I) - 32bit IP address */
3871 1.1 christos /* */
3872 1.1 christos /* IPv4 ONLY */
3873 1.1 christos /* count consecutive 1's in bit mask. If the mask generated by counting */
3874 1.1 christos /* consecutive 1's is different to that passed, return -1, else return # */
3875 1.1 christos /* of bits. */
3876 1.1 christos /* ------------------------------------------------------------------------ */
3877 1.1 christos int
3878 1.2 christos count4bits(u_32_t ip)
3879 1.1 christos {
3880 1.1 christos u_32_t ipn;
3881 1.1 christos int cnt = 0, i, j;
3882 1.1 christos
3883 1.1 christos ip = ipn = ntohl(ip);
3884 1.1 christos for (i = 32; i; i--, ipn *= 2)
3885 1.1 christos if (ipn & 0x80000000)
3886 1.1 christos cnt++;
3887 1.1 christos else
3888 1.1 christos break;
3889 1.1 christos ipn = 0;
3890 1.1 christos for (i = 32, j = cnt; i; i--, j--) {
3891 1.1 christos ipn *= 2;
3892 1.1 christos if (j > 0)
3893 1.1 christos ipn++;
3894 1.1 christos }
3895 1.1 christos if (ipn == ip)
3896 1.1 christos return cnt;
3897 1.1 christos return -1;
3898 1.1 christos }
3899 1.1 christos
3900 1.1 christos
3901 1.1 christos /* ------------------------------------------------------------------------ */
3902 1.1 christos /* Function: count6bits */
3903 1.1 christos /* Returns: int - >= 0 - number of consecutive bits in input */
3904 1.1 christos /* Parameters: msk(I) - pointer to start of IPv6 bitmask */
3905 1.1 christos /* */
3906 1.1 christos /* IPv6 ONLY */
3907 1.1 christos /* count consecutive 1's in bit mask. */
3908 1.1 christos /* ------------------------------------------------------------------------ */
3909 1.1 christos # ifdef USE_INET6
3910 1.1 christos int
3911 1.2 christos count6bits(u_32_t *msk)
3912 1.1 christos {
3913 1.1 christos int i = 0, k;
3914 1.1 christos u_32_t j;
3915 1.1 christos
3916 1.1 christos for (k = 3; k >= 0; k--)
3917 1.1 christos if (msk[k] == 0xffffffff)
3918 1.1 christos i += 32;
3919 1.1 christos else {
3920 1.1 christos for (j = msk[k]; j; j <<= 1)
3921 1.1 christos if (j & 0x80000000)
3922 1.1 christos i++;
3923 1.1 christos }
3924 1.1 christos return i;
3925 1.1 christos }
3926 1.1 christos # endif
3927 1.1 christos #endif /* _KERNEL */
3928 1.1 christos
3929 1.1 christos
3930 1.1 christos /* ------------------------------------------------------------------------ */
3931 1.1 christos /* Function: ipf_synclist */
3932 1.1 christos /* Returns: int - 0 = no failures, else indication of first failure */
3933 1.1 christos /* Parameters: fr(I) - start of filter list to sync interface names for */
3934 1.1 christos /* ifp(I) - interface pointer for limiting sync lookups */
3935 1.1 christos /* Write Locks: ipf_mutex */
3936 1.1 christos /* */
3937 1.1 christos /* Walk through a list of filter rules and resolve any interface names into */
3938 1.1 christos /* pointers. Where dynamic addresses are used, also update the IP address */
3939 1.1 christos /* used in the rule. The interface pointer is used to limit the lookups to */
3940 1.1 christos /* a specific set of matching names if it is non-NULL. */
3941 1.1 christos /* Errors can occur when resolving the destination name of to/dup-to fields */
3942 1.1 christos /* when the name points to a pool and that pool doest not exist. If this */
3943 1.1 christos /* does happen then it is necessary to check if there are any lookup refs */
3944 1.1 christos /* that need to be dropped before returning with an error. */
3945 1.1 christos /* ------------------------------------------------------------------------ */
3946 1.1 christos static int
3947 1.2 christos ipf_synclist(ipf_main_softc_t *softc, frentry_t *fr, void *ifp)
3948 1.1 christos {
3949 1.1 christos frentry_t *frt, *start = fr;
3950 1.1 christos frdest_t *fdp;
3951 1.1 christos char *name;
3952 1.1 christos int error;
3953 1.1 christos void *ifa;
3954 1.1 christos int v, i;
3955 1.1 christos
3956 1.1 christos error = 0;
3957 1.1 christos
3958 1.1 christos for (; fr; fr = fr->fr_next) {
3959 1.1 christos if (fr->fr_family == AF_INET)
3960 1.1 christos v = 4;
3961 1.1 christos else if (fr->fr_family == AF_INET6)
3962 1.1 christos v = 6;
3963 1.1 christos else
3964 1.1 christos v = 0;
3965 1.1 christos
3966 1.1 christos /*
3967 1.1 christos * Lookup all the interface names that are part of the rule.
3968 1.1 christos */
3969 1.1 christos for (i = 0; i < 4; i++) {
3970 1.1 christos if ((ifp != NULL) && (fr->fr_ifas[i] != ifp))
3971 1.1 christos continue;
3972 1.1 christos if (fr->fr_ifnames[i] == -1)
3973 1.1 christos continue;
3974 1.1 christos name = FR_NAME(fr, fr_ifnames[i]);
3975 1.1 christos fr->fr_ifas[i] = ipf_resolvenic(softc, name, v);
3976 1.1 christos }
3977 1.1 christos
3978 1.1 christos if ((fr->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) {
3979 1.1 christos if (fr->fr_satype != FRI_NORMAL &&
3980 1.1 christos fr->fr_satype != FRI_LOOKUP) {
3981 1.1 christos ifa = ipf_resolvenic(softc, fr->fr_names +
3982 1.1 christos fr->fr_sifpidx, v);
3983 1.1 christos ipf_ifpaddr(softc, v, fr->fr_satype, ifa,
3984 1.1 christos &fr->fr_src6, &fr->fr_smsk6);
3985 1.1 christos }
3986 1.1 christos if (fr->fr_datype != FRI_NORMAL &&
3987 1.1 christos fr->fr_datype != FRI_LOOKUP) {
3988 1.1 christos ifa = ipf_resolvenic(softc, fr->fr_names +
3989 1.1 christos fr->fr_sifpidx, v);
3990 1.1 christos ipf_ifpaddr(softc, v, fr->fr_datype, ifa,
3991 1.1 christos &fr->fr_dst6, &fr->fr_dmsk6);
3992 1.1 christos }
3993 1.1 christos }
3994 1.1 christos
3995 1.1 christos fdp = &fr->fr_tifs[0];
3996 1.1 christos if ((ifp == NULL) || (fdp->fd_ptr == ifp)) {
3997 1.1 christos error = ipf_resolvedest(softc, fr->fr_names, fdp, v);
3998 1.1 christos if (error != 0)
3999 1.1 christos goto unwind;
4000 1.1 christos }
4001 1.1 christos
4002 1.1 christos fdp = &fr->fr_tifs[1];
4003 1.1 christos if ((ifp == NULL) || (fdp->fd_ptr == ifp)) {
4004 1.1 christos error = ipf_resolvedest(softc, fr->fr_names, fdp, v);
4005 1.1 christos if (error != 0)
4006 1.1 christos goto unwind;
4007 1.1 christos }
4008 1.1 christos
4009 1.1 christos fdp = &fr->fr_dif;
4010 1.1 christos if ((ifp == NULL) || (fdp->fd_ptr == ifp)) {
4011 1.1 christos error = ipf_resolvedest(softc, fr->fr_names, fdp, v);
4012 1.1 christos if (error != 0)
4013 1.1 christos goto unwind;
4014 1.1 christos }
4015 1.1 christos
4016 1.1 christos if (((fr->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) &&
4017 1.1 christos (fr->fr_satype == FRI_LOOKUP) && (fr->fr_srcptr == NULL)) {
4018 1.1 christos fr->fr_srcptr = ipf_lookup_res_num(softc,
4019 1.1 christos fr->fr_srctype,
4020 1.1 christos IPL_LOGIPF,
4021 1.1 christos fr->fr_srcnum,
4022 1.1 christos &fr->fr_srcfunc);
4023 1.1 christos }
4024 1.1 christos if (((fr->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) &&
4025 1.1 christos (fr->fr_datype == FRI_LOOKUP) && (fr->fr_dstptr == NULL)) {
4026 1.1 christos fr->fr_dstptr = ipf_lookup_res_num(softc,
4027 1.1 christos fr->fr_dsttype,
4028 1.1 christos IPL_LOGIPF,
4029 1.1 christos fr->fr_dstnum,
4030 1.1 christos &fr->fr_dstfunc);
4031 1.1 christos }
4032 1.1 christos }
4033 1.1 christos return 0;
4034 1.1 christos
4035 1.1 christos unwind:
4036 1.1 christos for (frt = start; frt != fr; fr = fr->fr_next) {
4037 1.1 christos if (((frt->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) &&
4038 1.1 christos (frt->fr_satype == FRI_LOOKUP) && (frt->fr_srcptr != NULL))
4039 1.1 christos ipf_lookup_deref(softc, frt->fr_srctype,
4040 1.1 christos frt->fr_srcptr);
4041 1.1 christos if (((frt->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) &&
4042 1.1 christos (frt->fr_datype == FRI_LOOKUP) && (frt->fr_dstptr != NULL))
4043 1.1 christos ipf_lookup_deref(softc, frt->fr_dsttype,
4044 1.1 christos frt->fr_dstptr);
4045 1.1 christos }
4046 1.1 christos return error;
4047 1.1 christos }
4048 1.1 christos
4049 1.1 christos
4050 1.1 christos /* ------------------------------------------------------------------------ */
4051 1.1 christos /* Function: ipf_sync */
4052 1.1 christos /* Returns: void */
4053 1.1 christos /* Parameters: Nil */
4054 1.1 christos /* */
4055 1.1 christos /* ipf_sync() is called when we suspect that the interface list or */
4056 1.1 christos /* information about interfaces (like IP#) has changed. Go through all */
4057 1.1 christos /* filter rules, NAT entries and the state table and check if anything */
4058 1.1 christos /* needs to be changed/updated. */
4059 1.1 christos /* ------------------------------------------------------------------------ */
4060 1.1 christos int
4061 1.2 christos ipf_sync(ipf_main_softc_t *softc, void *ifp)
4062 1.1 christos {
4063 1.1 christos int i;
4064 1.1 christos
4065 1.1 christos # if !SOLARIS
4066 1.1 christos ipf_nat_sync(softc, ifp);
4067 1.1 christos ipf_state_sync(softc, ifp);
4068 1.1 christos ipf_lookup_sync(softc, ifp);
4069 1.1 christos # endif
4070 1.1 christos
4071 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
4072 1.1 christos (void) ipf_synclist(softc, softc->ipf_acct[0][softc->ipf_active], ifp);
4073 1.1 christos (void) ipf_synclist(softc, softc->ipf_acct[1][softc->ipf_active], ifp);
4074 1.1 christos (void) ipf_synclist(softc, softc->ipf_rules[0][softc->ipf_active], ifp);
4075 1.1 christos (void) ipf_synclist(softc, softc->ipf_rules[1][softc->ipf_active], ifp);
4076 1.1 christos
4077 1.1 christos for (i = 0; i < IPL_LOGSIZE; i++) {
4078 1.1 christos frgroup_t *g;
4079 1.1 christos
4080 1.1 christos for (g = softc->ipf_groups[i][0]; g != NULL; g = g->fg_next)
4081 1.1 christos (void) ipf_synclist(softc, g->fg_start, ifp);
4082 1.1 christos for (g = softc->ipf_groups[i][1]; g != NULL; g = g->fg_next)
4083 1.1 christos (void) ipf_synclist(softc, g->fg_start, ifp);
4084 1.1 christos }
4085 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
4086 1.1 christos
4087 1.1 christos return 0;
4088 1.1 christos }
4089 1.1 christos
4090 1.1 christos
4091 1.1 christos /*
4092 1.1 christos * In the functions below, bcopy() is called because the pointer being
4093 1.1 christos * copied _from_ in this instance is a pointer to a char buf (which could
4094 1.1 christos * end up being unaligned) and on the kernel's local stack.
4095 1.1 christos */
4096 1.1 christos /* ------------------------------------------------------------------------ */
4097 1.1 christos /* Function: copyinptr */
4098 1.1 christos /* Returns: int - 0 = success, else failure */
4099 1.1 christos /* Parameters: src(I) - pointer to the source address */
4100 1.1 christos /* dst(I) - destination address */
4101 1.1 christos /* size(I) - number of bytes to copy */
4102 1.1 christos /* */
4103 1.1 christos /* Copy a block of data in from user space, given a pointer to the pointer */
4104 1.1 christos /* to start copying from (src) and a pointer to where to store it (dst). */
4105 1.1 christos /* NB: src - pointer to user space pointer, dst - kernel space pointer */
4106 1.1 christos /* ------------------------------------------------------------------------ */
4107 1.1 christos int
4108 1.2 christos copyinptr(ipf_main_softc_t *softc, void *src, void *dst, size_t size)
4109 1.1 christos {
4110 1.2 christos void *ca;
4111 1.1 christos int error;
4112 1.1 christos
4113 1.1 christos # if SOLARIS
4114 1.1 christos error = COPYIN(src, &ca, sizeof(ca));
4115 1.1 christos if (error != 0)
4116 1.1 christos return error;
4117 1.1 christos # else
4118 1.2 christos bcopy(src, (void *)&ca, sizeof(ca));
4119 1.1 christos # endif
4120 1.1 christos error = COPYIN(ca, dst, size);
4121 1.1 christos if (error != 0) {
4122 1.1 christos IPFERROR(3);
4123 1.1 christos error = EFAULT;
4124 1.1 christos }
4125 1.1 christos return error;
4126 1.1 christos }
4127 1.1 christos
4128 1.1 christos
4129 1.1 christos /* ------------------------------------------------------------------------ */
4130 1.1 christos /* Function: copyoutptr */
4131 1.1 christos /* Returns: int - 0 = success, else failure */
4132 1.1 christos /* Parameters: src(I) - pointer to the source address */
4133 1.1 christos /* dst(I) - destination address */
4134 1.1 christos /* size(I) - number of bytes to copy */
4135 1.1 christos /* */
4136 1.1 christos /* Copy a block of data out to user space, given a pointer to the pointer */
4137 1.1 christos /* to start copying from (src) and a pointer to where to store it (dst). */
4138 1.1 christos /* NB: src - kernel space pointer, dst - pointer to user space pointer. */
4139 1.1 christos /* ------------------------------------------------------------------------ */
4140 1.1 christos int
4141 1.2 christos copyoutptr(ipf_main_softc_t *softc, void *src, void *dst, size_t size)
4142 1.1 christos {
4143 1.2 christos void *ca;
4144 1.1 christos int error;
4145 1.1 christos
4146 1.2 christos bcopy(dst, &ca, sizeof(ca));
4147 1.1 christos error = COPYOUT(src, ca, size);
4148 1.1 christos if (error != 0) {
4149 1.1 christos IPFERROR(4);
4150 1.1 christos error = EFAULT;
4151 1.1 christos }
4152 1.1 christos return error;
4153 1.1 christos }
4154 1.1 christos #ifdef _KERNEL
4155 1.1 christos #endif
4156 1.1 christos
4157 1.1 christos
4158 1.1 christos /* ------------------------------------------------------------------------ */
4159 1.1 christos /* Function: ipf_lock */
4160 1.1 christos /* Returns: int - 0 = success, else error */
4161 1.1 christos /* Parameters: data(I) - pointer to lock value to set */
4162 1.1 christos /* lockp(O) - pointer to location to store old lock value */
4163 1.1 christos /* */
4164 1.1 christos /* Get the new value for the lock integer, set it and return the old value */
4165 1.1 christos /* in *lockp. */
4166 1.1 christos /* ------------------------------------------------------------------------ */
4167 1.1 christos int
4168 1.2 christos ipf_lock(void *data, int *lockp)
4169 1.1 christos {
4170 1.1 christos int arg, err;
4171 1.1 christos
4172 1.1 christos err = BCOPYIN(data, &arg, sizeof(arg));
4173 1.1 christos if (err != 0)
4174 1.1 christos return EFAULT;
4175 1.1 christos err = BCOPYOUT(lockp, data, sizeof(*lockp));
4176 1.1 christos if (err != 0)
4177 1.1 christos return EFAULT;
4178 1.1 christos *lockp = arg;
4179 1.1 christos return 0;
4180 1.1 christos }
4181 1.1 christos
4182 1.1 christos
4183 1.1 christos /* ------------------------------------------------------------------------ */
4184 1.1 christos /* Function: ipf_getstat */
4185 1.1 christos /* Returns: Nil */
4186 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
4187 1.1 christos /* fiop(I) - pointer to ipfilter stats structure */
4188 1.1 christos /* rev(I) - version claim by program doing ioctl */
4189 1.1 christos /* */
4190 1.1 christos /* Stores a copy of current pointers, counters, etc, in the friostat */
4191 1.1 christos /* structure. */
4192 1.1 christos /* If IPFILTER_COMPAT is compiled, we pretend to be whatever version the */
4193 1.1 christos /* program is looking for. This ensure that validation of the version it */
4194 1.1 christos /* expects will always succeed. Thus kernels with IPFILTER_COMPAT will */
4195 1.1 christos /* allow older binaries to work but kernels without it will not. */
4196 1.1 christos /* ------------------------------------------------------------------------ */
4197 1.1 christos /*ARGSUSED*/
4198 1.1 christos static void
4199 1.2 christos ipf_getstat(ipf_main_softc_t *softc, friostat_t *fiop, int rev)
4200 1.1 christos {
4201 1.1 christos int i;
4202 1.1 christos
4203 1.1 christos bcopy((char *)softc->ipf_stats, (char *)fiop->f_st,
4204 1.1 christos sizeof(ipf_statistics_t) * 2);
4205 1.1 christos fiop->f_locks[IPL_LOGSTATE] = -1;
4206 1.1 christos fiop->f_locks[IPL_LOGNAT] = -1;
4207 1.1 christos fiop->f_locks[IPL_LOGIPF] = -1;
4208 1.1 christos fiop->f_locks[IPL_LOGAUTH] = -1;
4209 1.1 christos
4210 1.1 christos fiop->f_ipf[0][0] = softc->ipf_rules[0][0];
4211 1.1 christos fiop->f_acct[0][0] = softc->ipf_acct[0][0];
4212 1.1 christos fiop->f_ipf[0][1] = softc->ipf_rules[0][1];
4213 1.1 christos fiop->f_acct[0][1] = softc->ipf_acct[0][1];
4214 1.1 christos fiop->f_ipf[1][0] = softc->ipf_rules[1][0];
4215 1.1 christos fiop->f_acct[1][0] = softc->ipf_acct[1][0];
4216 1.1 christos fiop->f_ipf[1][1] = softc->ipf_rules[1][1];
4217 1.1 christos fiop->f_acct[1][1] = softc->ipf_acct[1][1];
4218 1.1 christos
4219 1.1 christos fiop->f_ticks = softc->ipf_ticks;
4220 1.1 christos fiop->f_active = softc->ipf_active;
4221 1.1 christos fiop->f_froute[0] = softc->ipf_frouteok[0];
4222 1.1 christos fiop->f_froute[1] = softc->ipf_frouteok[1];
4223 1.1 christos fiop->f_rb_no_mem = softc->ipf_rb_no_mem;
4224 1.1 christos fiop->f_rb_node_max = softc->ipf_rb_node_max;
4225 1.1 christos
4226 1.1 christos fiop->f_running = softc->ipf_running;
4227 1.1 christos for (i = 0; i < IPL_LOGSIZE; i++) {
4228 1.1 christos fiop->f_groups[i][0] = softc->ipf_groups[i][0];
4229 1.1 christos fiop->f_groups[i][1] = softc->ipf_groups[i][1];
4230 1.1 christos }
4231 1.1 christos #ifdef IPFILTER_LOG
4232 1.1 christos fiop->f_log_ok = ipf_log_logok(softc, IPL_LOGIPF);
4233 1.1 christos fiop->f_log_fail = ipf_log_failures(softc, IPL_LOGIPF);
4234 1.1 christos fiop->f_logging = 1;
4235 1.1 christos #else
4236 1.1 christos fiop->f_log_ok = 0;
4237 1.1 christos fiop->f_log_fail = 0;
4238 1.1 christos fiop->f_logging = 0;
4239 1.1 christos #endif
4240 1.1 christos fiop->f_defpass = softc->ipf_pass;
4241 1.1 christos fiop->f_features = ipf_features;
4242 1.1 christos
4243 1.1 christos #ifdef IPFILTER_COMPAT
4244 1.14 christos snprintf(fiop->f_version, sizeof(fiop->f_version),
4245 1.14 christos "IP Filter: v%d.%d.%d", (rev / 1000000) % 100,
4246 1.14 christos (rev / 10000) % 100, (rev / 100) % 100);
4247 1.1 christos #else
4248 1.1 christos rev = rev;
4249 1.1 christos (void) strncpy(fiop->f_version, ipfilter_version,
4250 1.1 christos sizeof(fiop->f_version));
4251 1.14 christos fiop->f_version[sizeof(fiop->f_version) - 1] = '\0';
4252 1.1 christos #endif
4253 1.1 christos }
4254 1.1 christos
4255 1.1 christos
4256 1.1 christos #ifdef USE_INET6
4257 1.1 christos int icmptoicmp6types[ICMP_MAXTYPE+1] = {
4258 1.1 christos ICMP6_ECHO_REPLY, /* 0: ICMP_ECHOREPLY */
4259 1.1 christos -1, /* 1: UNUSED */
4260 1.1 christos -1, /* 2: UNUSED */
4261 1.1 christos ICMP6_DST_UNREACH, /* 3: ICMP_UNREACH */
4262 1.1 christos -1, /* 4: ICMP_SOURCEQUENCH */
4263 1.1 christos ND_REDIRECT, /* 5: ICMP_REDIRECT */
4264 1.1 christos -1, /* 6: UNUSED */
4265 1.1 christos -1, /* 7: UNUSED */
4266 1.1 christos ICMP6_ECHO_REQUEST, /* 8: ICMP_ECHO */
4267 1.1 christos -1, /* 9: UNUSED */
4268 1.1 christos -1, /* 10: UNUSED */
4269 1.1 christos ICMP6_TIME_EXCEEDED, /* 11: ICMP_TIMXCEED */
4270 1.1 christos ICMP6_PARAM_PROB, /* 12: ICMP_PARAMPROB */
4271 1.1 christos -1, /* 13: ICMP_TSTAMP */
4272 1.1 christos -1, /* 14: ICMP_TSTAMPREPLY */
4273 1.1 christos -1, /* 15: ICMP_IREQ */
4274 1.1 christos -1, /* 16: ICMP_IREQREPLY */
4275 1.1 christos -1, /* 17: ICMP_MASKREQ */
4276 1.1 christos -1, /* 18: ICMP_MASKREPLY */
4277 1.1 christos };
4278 1.1 christos
4279 1.1 christos
4280 1.1 christos int icmptoicmp6unreach[ICMP_MAX_UNREACH] = {
4281 1.1 christos ICMP6_DST_UNREACH_ADDR, /* 0: ICMP_UNREACH_NET */
4282 1.1 christos ICMP6_DST_UNREACH_ADDR, /* 1: ICMP_UNREACH_HOST */
4283 1.1 christos -1, /* 2: ICMP_UNREACH_PROTOCOL */
4284 1.1 christos ICMP6_DST_UNREACH_NOPORT, /* 3: ICMP_UNREACH_PORT */
4285 1.1 christos -1, /* 4: ICMP_UNREACH_NEEDFRAG */
4286 1.1 christos ICMP6_DST_UNREACH_NOTNEIGHBOR, /* 5: ICMP_UNREACH_SRCFAIL */
4287 1.1 christos ICMP6_DST_UNREACH_ADDR, /* 6: ICMP_UNREACH_NET_UNKNOWN */
4288 1.1 christos ICMP6_DST_UNREACH_ADDR, /* 7: ICMP_UNREACH_HOST_UNKNOWN */
4289 1.1 christos -1, /* 8: ICMP_UNREACH_ISOLATED */
4290 1.1 christos ICMP6_DST_UNREACH_ADMIN, /* 9: ICMP_UNREACH_NET_PROHIB */
4291 1.1 christos ICMP6_DST_UNREACH_ADMIN, /* 10: ICMP_UNREACH_HOST_PROHIB */
4292 1.1 christos -1, /* 11: ICMP_UNREACH_TOSNET */
4293 1.1 christos -1, /* 12: ICMP_UNREACH_TOSHOST */
4294 1.1 christos ICMP6_DST_UNREACH_ADMIN, /* 13: ICMP_UNREACH_ADMIN_PROHIBIT */
4295 1.1 christos };
4296 1.1 christos int icmpreplytype6[ICMP6_MAXTYPE + 1];
4297 1.1 christos #endif
4298 1.1 christos
4299 1.1 christos int icmpreplytype4[ICMP_MAXTYPE + 1];
4300 1.1 christos
4301 1.1 christos
4302 1.1 christos /* ------------------------------------------------------------------------ */
4303 1.1 christos /* Function: ipf_matchicmpqueryreply */
4304 1.1 christos /* Returns: int - 1 if "icmp" is a valid reply to "ic" else 0. */
4305 1.1 christos /* Parameters: v(I) - IP protocol version (4 or 6) */
4306 1.1 christos /* ic(I) - ICMP information */
4307 1.1 christos /* icmp(I) - ICMP packet header */
4308 1.1 christos /* rev(I) - direction (0 = forward/1 = reverse) of packet */
4309 1.1 christos /* */
4310 1.1 christos /* Check if the ICMP packet defined by the header pointed to by icmp is a */
4311 1.1 christos /* reply to one as described by what's in ic. If it is a match, return 1, */
4312 1.1 christos /* else return 0 for no match. */
4313 1.1 christos /* ------------------------------------------------------------------------ */
4314 1.1 christos int
4315 1.2 christos ipf_matchicmpqueryreply(int v, icmpinfo_t *ic, icmphdr_t *icmp, int rev)
4316 1.1 christos {
4317 1.1 christos int ictype;
4318 1.1 christos
4319 1.1 christos ictype = ic->ici_type;
4320 1.1 christos
4321 1.1 christos if (v == 4) {
4322 1.1 christos /*
4323 1.1 christos * If we matched its type on the way in, then when going out
4324 1.1 christos * it will still be the same type.
4325 1.1 christos */
4326 1.1 christos if ((!rev && (icmp->icmp_type == ictype)) ||
4327 1.1 christos (rev && (icmpreplytype4[ictype] == icmp->icmp_type))) {
4328 1.1 christos if (icmp->icmp_type != ICMP_ECHOREPLY)
4329 1.1 christos return 1;
4330 1.1 christos if (icmp->icmp_id == ic->ici_id)
4331 1.1 christos return 1;
4332 1.1 christos }
4333 1.1 christos }
4334 1.1 christos #ifdef USE_INET6
4335 1.1 christos else if (v == 6) {
4336 1.1 christos if ((!rev && (icmp->icmp_type == ictype)) ||
4337 1.1 christos (rev && (icmpreplytype6[ictype] == icmp->icmp_type))) {
4338 1.1 christos if (icmp->icmp_type != ICMP6_ECHO_REPLY)
4339 1.1 christos return 1;
4340 1.1 christos if (icmp->icmp_id == ic->ici_id)
4341 1.1 christos return 1;
4342 1.1 christos }
4343 1.1 christos }
4344 1.1 christos #endif
4345 1.1 christos return 0;
4346 1.1 christos }
4347 1.1 christos
4348 1.19 christos /* ------------------------------------------------------------------------ */
4349 1.19 christos /* Function: ipf_rule_compare */
4350 1.19 christos /* Parameters: fr1(I) - first rule structure to compare */
4351 1.19 christos /* fr2(I) - second rule structure to compare */
4352 1.19 christos /* Returns: int - 0 == rules are the same, else mismatch */
4353 1.19 christos /* */
4354 1.19 christos /* Compare two rules and return 0 if they match or a number indicating */
4355 1.19 christos /* which of the individual checks failed. */
4356 1.19 christos /* ------------------------------------------------------------------------ */
4357 1.19 christos static int
4358 1.19 christos ipf_rule_compare(frentry_t *fr1, frentry_t *fr2)
4359 1.19 christos {
4360 1.19 christos if (fr1->fr_cksum != fr2->fr_cksum)
4361 1.19 christos return 1;
4362 1.19 christos if (fr1->fr_size != fr2->fr_size)
4363 1.19 christos return 2;
4364 1.19 christos if (fr1->fr_dsize != fr2->fr_dsize)
4365 1.19 christos return 3;
4366 1.19 christos if (memcmp(&fr1->fr_func, &fr2->fr_func,
4367 1.19 christos fr1->fr_size - offsetof(struct frentry, fr_func)) != 0)
4368 1.19 christos return 4;
4369 1.19 christos if (fr1->fr_data && !fr2->fr_data)
4370 1.19 christos return 5;
4371 1.19 christos if (!fr1->fr_data && fr2->fr_data)
4372 1.19 christos return 6;
4373 1.19 christos if (fr1->fr_data) {
4374 1.19 christos if (memcmp(fr1->fr_caddr, fr2->fr_caddr, fr1->fr_dsize))
4375 1.19 christos return 7;
4376 1.19 christos }
4377 1.19 christos return 0;
4378 1.19 christos }
4379 1.19 christos
4380 1.1 christos
4381 1.1 christos /* ------------------------------------------------------------------------ */
4382 1.1 christos /* Function: frrequest */
4383 1.1 christos /* Returns: int - 0 == success, > 0 == errno value */
4384 1.1 christos /* Parameters: unit(I) - device for which this is for */
4385 1.1 christos /* req(I) - ioctl command (SIOC*) */
4386 1.1 christos /* data(I) - pointr to ioctl data */
4387 1.1 christos /* set(I) - 1 or 0 (filter set) */
4388 1.1 christos /* makecopy(I) - flag indicating whether data points to a rule */
4389 1.1 christos /* in kernel space & hence doesn't need copying. */
4390 1.1 christos /* */
4391 1.1 christos /* This function handles all the requests which operate on the list of */
4392 1.1 christos /* filter rules. This includes adding, deleting, insertion. It is also */
4393 1.1 christos /* responsible for creating groups when a "head" rule is loaded. Interface */
4394 1.1 christos /* names are resolved here and other sanity checks are made on the content */
4395 1.1 christos /* of the rule structure being loaded. If a rule has user defined timeouts */
4396 1.1 christos /* then make sure they are created and initialised before exiting. */
4397 1.1 christos /* ------------------------------------------------------------------------ */
4398 1.1 christos int
4399 1.2 christos frrequest(ipf_main_softc_t *softc, int unit, ioctlcmd_t req, void *data,
4400 1.2 christos int set, int makecopy)
4401 1.1 christos {
4402 1.1 christos int error = 0, in, family, addrem, need_free = 0;
4403 1.1 christos frentry_t frd, *fp, *f, **fprev, **ftail;
4404 1.11 martin void *ptr, *uptr;
4405 1.1 christos u_int *p, *pp;
4406 1.1 christos frgroup_t *fg;
4407 1.1 christos char *group;
4408 1.1 christos
4409 1.1 christos ptr = NULL;
4410 1.1 christos fg = NULL;
4411 1.1 christos fp = &frd;
4412 1.1 christos if (makecopy != 0) {
4413 1.1 christos bzero(fp, sizeof(frd));
4414 1.1 christos error = ipf_inobj(softc, data, NULL, fp, IPFOBJ_FRENTRY);
4415 1.1 christos if (error) {
4416 1.1 christos return error;
4417 1.1 christos }
4418 1.1 christos if ((fp->fr_type & FR_T_BUILTIN) != 0) {
4419 1.1 christos IPFERROR(6);
4420 1.1 christos return EINVAL;
4421 1.1 christos }
4422 1.1 christos KMALLOCS(f, frentry_t *, fp->fr_size);
4423 1.1 christos if (f == NULL) {
4424 1.1 christos IPFERROR(131);
4425 1.1 christos return ENOMEM;
4426 1.1 christos }
4427 1.1 christos bzero(f, fp->fr_size);
4428 1.1 christos error = ipf_inobjsz(softc, data, f, IPFOBJ_FRENTRY,
4429 1.1 christos fp->fr_size);
4430 1.1 christos if (error) {
4431 1.1 christos KFREES(f, fp->fr_size);
4432 1.1 christos return error;
4433 1.1 christos }
4434 1.1 christos
4435 1.1 christos fp = f;
4436 1.1 christos f = NULL;
4437 1.15 christos fp->fr_next = NULL;
4438 1.1 christos fp->fr_dnext = NULL;
4439 1.15 christos fp->fr_pnext = NULL;
4440 1.15 christos fp->fr_pdnext = NULL;
4441 1.15 christos fp->fr_grp = NULL;
4442 1.15 christos fp->fr_grphead = NULL;
4443 1.15 christos fp->fr_icmpgrp = NULL;
4444 1.15 christos fp->fr_isc = (void *)-1;
4445 1.15 christos fp->fr_ptr = NULL;
4446 1.1 christos fp->fr_ref = 0;
4447 1.1 christos fp->fr_flags |= FR_COPIED;
4448 1.1 christos } else {
4449 1.1 christos fp = (frentry_t *)data;
4450 1.1 christos if ((fp->fr_type & FR_T_BUILTIN) == 0) {
4451 1.1 christos IPFERROR(7);
4452 1.1 christos return EINVAL;
4453 1.1 christos }
4454 1.1 christos fp->fr_flags &= ~FR_COPIED;
4455 1.1 christos }
4456 1.1 christos
4457 1.1 christos if (((fp->fr_dsize == 0) && (fp->fr_data != NULL)) ||
4458 1.1 christos ((fp->fr_dsize != 0) && (fp->fr_data == NULL))) {
4459 1.1 christos IPFERROR(8);
4460 1.1 christos error = EINVAL;
4461 1.1 christos goto donenolock;
4462 1.1 christos }
4463 1.1 christos
4464 1.1 christos family = fp->fr_family;
4465 1.1 christos uptr = fp->fr_data;
4466 1.1 christos
4467 1.1 christos if (req == (ioctlcmd_t)SIOCINAFR || req == (ioctlcmd_t)SIOCINIFR ||
4468 1.1 christos req == (ioctlcmd_t)SIOCADAFR || req == (ioctlcmd_t)SIOCADIFR)
4469 1.1 christos addrem = 0;
4470 1.1 christos else if (req == (ioctlcmd_t)SIOCRMAFR || req == (ioctlcmd_t)SIOCRMIFR)
4471 1.1 christos addrem = 1;
4472 1.1 christos else if (req == (ioctlcmd_t)SIOCZRLST)
4473 1.1 christos addrem = 2;
4474 1.1 christos else {
4475 1.1 christos IPFERROR(9);
4476 1.1 christos error = EINVAL;
4477 1.1 christos goto donenolock;
4478 1.1 christos }
4479 1.1 christos
4480 1.1 christos /*
4481 1.1 christos * Only filter rules for IPv4 or IPv6 are accepted.
4482 1.1 christos */
4483 1.1 christos if (family == AF_INET) {
4484 1.1 christos /*EMPTY*/;
4485 1.1 christos #ifdef USE_INET6
4486 1.1 christos } else if (family == AF_INET6) {
4487 1.1 christos /*EMPTY*/;
4488 1.1 christos #endif
4489 1.1 christos } else if (family != 0) {
4490 1.1 christos IPFERROR(10);
4491 1.1 christos error = EINVAL;
4492 1.1 christos goto donenolock;
4493 1.1 christos }
4494 1.1 christos
4495 1.1 christos /*
4496 1.1 christos * If the rule is being loaded from user space, i.e. we had to copy it
4497 1.1 christos * into kernel space, then do not trust the function pointer in the
4498 1.1 christos * rule.
4499 1.1 christos */
4500 1.1 christos if ((makecopy == 1) && (fp->fr_func != NULL)) {
4501 1.1 christos if (ipf_findfunc(fp->fr_func) == NULL) {
4502 1.1 christos IPFERROR(11);
4503 1.1 christos error = ESRCH;
4504 1.1 christos goto donenolock;
4505 1.1 christos }
4506 1.1 christos
4507 1.1 christos if (addrem == 0) {
4508 1.1 christos error = ipf_funcinit(softc, fp);
4509 1.1 christos if (error != 0)
4510 1.1 christos goto donenolock;
4511 1.1 christos }
4512 1.1 christos }
4513 1.1 christos if ((fp->fr_flags & FR_CALLNOW) &&
4514 1.3 darrenr ((fp->fr_func == NULL) || (fp->fr_func == (ipfunc_t)-1))) {
4515 1.1 christos IPFERROR(142);
4516 1.1 christos error = ESRCH;
4517 1.1 christos goto donenolock;
4518 1.1 christos }
4519 1.1 christos if (((fp->fr_flags & FR_CMDMASK) == FR_CALL) &&
4520 1.3 darrenr ((fp->fr_func == NULL) || (fp->fr_func == (ipfunc_t)-1))) {
4521 1.1 christos IPFERROR(143);
4522 1.1 christos error = ESRCH;
4523 1.1 christos goto donenolock;
4524 1.1 christos }
4525 1.1 christos
4526 1.1 christos ptr = NULL;
4527 1.1 christos
4528 1.1 christos if (FR_ISACCOUNT(fp->fr_flags))
4529 1.1 christos unit = IPL_LOGCOUNT;
4530 1.1 christos
4531 1.1 christos /*
4532 1.1 christos * Check that each group name in the rule has a start index that
4533 1.1 christos * is valid.
4534 1.1 christos */
4535 1.1 christos if (fp->fr_icmphead != -1) {
4536 1.1 christos if ((fp->fr_icmphead < 0) ||
4537 1.1 christos (fp->fr_icmphead >= fp->fr_namelen)) {
4538 1.1 christos IPFERROR(136);
4539 1.1 christos error = EINVAL;
4540 1.1 christos goto donenolock;
4541 1.1 christos }
4542 1.1 christos if (!strcmp(FR_NAME(fp, fr_icmphead), "0"))
4543 1.1 christos fp->fr_names[fp->fr_icmphead] = '\0';
4544 1.1 christos }
4545 1.1 christos
4546 1.1 christos if (fp->fr_grhead != -1) {
4547 1.1 christos if ((fp->fr_grhead < 0) ||
4548 1.1 christos (fp->fr_grhead >= fp->fr_namelen)) {
4549 1.1 christos IPFERROR(137);
4550 1.1 christos error = EINVAL;
4551 1.1 christos goto donenolock;
4552 1.1 christos }
4553 1.1 christos if (!strcmp(FR_NAME(fp, fr_grhead), "0"))
4554 1.1 christos fp->fr_names[fp->fr_grhead] = '\0';
4555 1.1 christos }
4556 1.1 christos
4557 1.1 christos if (fp->fr_group != -1) {
4558 1.1 christos if ((fp->fr_group < 0) ||
4559 1.1 christos (fp->fr_group >= fp->fr_namelen)) {
4560 1.1 christos IPFERROR(138);
4561 1.1 christos error = EINVAL;
4562 1.1 christos goto donenolock;
4563 1.1 christos }
4564 1.1 christos if ((req != (int)SIOCZRLST) && (fp->fr_group != -1)) {
4565 1.1 christos /*
4566 1.1 christos * Allow loading rules that are in groups to cause
4567 1.1 christos * them to be created if they don't already exit.
4568 1.1 christos */
4569 1.1 christos group = FR_NAME(fp, fr_group);
4570 1.3 darrenr if (addrem == 0) {
4571 1.3 darrenr fg = ipf_group_add(softc, group, NULL,
4572 1.3 darrenr fp->fr_flags, unit, set);
4573 1.16 khorben if (fg == NULL) {
4574 1.16 khorben IPFERROR(152);
4575 1.16 khorben error = ESRCH;
4576 1.16 khorben goto donenolock;
4577 1.16 khorben }
4578 1.3 darrenr fp->fr_grp = fg;
4579 1.3 darrenr } else {
4580 1.3 darrenr fg = ipf_findgroup(softc, group, unit,
4581 1.3 darrenr set, NULL);
4582 1.1 christos if (fg == NULL) {
4583 1.1 christos IPFERROR(12);
4584 1.1 christos error = ESRCH;
4585 1.1 christos goto donenolock;
4586 1.1 christos }
4587 1.1 christos }
4588 1.3 darrenr
4589 1.3 darrenr if (fg->fg_flags == 0) {
4590 1.1 christos fg->fg_flags = fp->fr_flags & FR_INOUT;
4591 1.3 darrenr } else if (fg->fg_flags != (fp->fr_flags & FR_INOUT)) {
4592 1.1 christos IPFERROR(13);
4593 1.1 christos error = ESRCH;
4594 1.1 christos goto donenolock;
4595 1.1 christos }
4596 1.1 christos }
4597 1.1 christos } else {
4598 1.1 christos /*
4599 1.1 christos * If a rule is going to be part of a group then it does
4600 1.1 christos * not matter whether it is an in or out rule, but if it
4601 1.1 christos * isn't in a group, then it does...
4602 1.1 christos */
4603 1.1 christos if ((fp->fr_flags & (FR_INQUE|FR_OUTQUE)) == 0) {
4604 1.1 christos IPFERROR(14);
4605 1.1 christos error = EINVAL;
4606 1.1 christos goto donenolock;
4607 1.1 christos }
4608 1.1 christos }
4609 1.1 christos in = (fp->fr_flags & FR_INQUE) ? 0 : 1;
4610 1.1 christos
4611 1.1 christos /*
4612 1.1 christos * Work out which rule list this change is being applied to.
4613 1.1 christos */
4614 1.1 christos ftail = NULL;
4615 1.1 christos fprev = NULL;
4616 1.2 christos if (unit == IPL_LOGAUTH) {
4617 1.2 christos if ((fp->fr_tifs[0].fd_ptr != NULL) ||
4618 1.1 christos (fp->fr_tifs[1].fd_ptr != NULL) ||
4619 1.2 christos (fp->fr_dif.fd_ptr != NULL) ||
4620 1.1 christos (fp->fr_flags & FR_FASTROUTE)) {
4621 1.2 christos IPFERROR(145);
4622 1.1 christos error = EINVAL;
4623 1.1 christos goto donenolock;
4624 1.1 christos }
4625 1.2 christos fprev = ipf_auth_rulehead(softc);
4626 1.1 christos } else {
4627 1.1 christos if (FR_ISACCOUNT(fp->fr_flags))
4628 1.1 christos fprev = &softc->ipf_acct[in][set];
4629 1.1 christos else if ((fp->fr_flags & (FR_OUTQUE|FR_INQUE)) != 0)
4630 1.1 christos fprev = &softc->ipf_rules[in][set];
4631 1.1 christos }
4632 1.1 christos if (fprev == NULL) {
4633 1.1 christos IPFERROR(15);
4634 1.1 christos error = ESRCH;
4635 1.1 christos goto donenolock;
4636 1.1 christos }
4637 1.1 christos
4638 1.1 christos if (fg != NULL)
4639 1.1 christos fprev = &fg->fg_start;
4640 1.1 christos
4641 1.1 christos /*
4642 1.1 christos * Copy in extra data for the rule.
4643 1.1 christos */
4644 1.1 christos if (fp->fr_dsize != 0) {
4645 1.1 christos if (makecopy != 0) {
4646 1.1 christos KMALLOCS(ptr, void *, fp->fr_dsize);
4647 1.1 christos if (ptr == NULL) {
4648 1.1 christos IPFERROR(16);
4649 1.1 christos error = ENOMEM;
4650 1.1 christos goto donenolock;
4651 1.1 christos }
4652 1.1 christos
4653 1.1 christos /*
4654 1.1 christos * The bcopy case is for when the data is appended
4655 1.1 christos * to the rule by ipf_in_compat().
4656 1.1 christos */
4657 1.1 christos if (uptr >= (void *)fp &&
4658 1.1 christos uptr < (void *)((char *)fp + fp->fr_size)) {
4659 1.1 christos bcopy(uptr, ptr, fp->fr_dsize);
4660 1.1 christos error = 0;
4661 1.1 christos } else {
4662 1.1 christos error = COPYIN(uptr, ptr, fp->fr_dsize);
4663 1.1 christos if (error != 0) {
4664 1.1 christos IPFERROR(17);
4665 1.1 christos error = EFAULT;
4666 1.1 christos goto donenolock;
4667 1.1 christos }
4668 1.1 christos }
4669 1.1 christos } else {
4670 1.1 christos ptr = uptr;
4671 1.1 christos }
4672 1.1 christos fp->fr_data = ptr;
4673 1.1 christos } else {
4674 1.1 christos fp->fr_data = NULL;
4675 1.1 christos }
4676 1.1 christos
4677 1.1 christos /*
4678 1.1 christos * Perform per-rule type sanity checks of their members.
4679 1.1 christos * All code after this needs to be aware that allocated memory
4680 1.1 christos * may need to be free'd before exiting.
4681 1.1 christos */
4682 1.1 christos switch (fp->fr_type & ~FR_T_BUILTIN)
4683 1.1 christos {
4684 1.1 christos #if defined(IPFILTER_BPF)
4685 1.1 christos case FR_T_BPFOPC :
4686 1.1 christos if (fp->fr_dsize == 0) {
4687 1.1 christos IPFERROR(19);
4688 1.1 christos error = EINVAL;
4689 1.1 christos break;
4690 1.1 christos }
4691 1.1 christos if (!bpf_validate(ptr, fp->fr_dsize/sizeof(struct bpf_insn))) {
4692 1.1 christos IPFERROR(20);
4693 1.1 christos error = EINVAL;
4694 1.1 christos break;
4695 1.1 christos }
4696 1.1 christos break;
4697 1.1 christos #endif
4698 1.1 christos case FR_T_IPF :
4699 1.1 christos /*
4700 1.1 christos * Preparation for error case at the bottom of this function.
4701 1.1 christos */
4702 1.1 christos if (fp->fr_datype == FRI_LOOKUP)
4703 1.1 christos fp->fr_dstptr = NULL;
4704 1.1 christos if (fp->fr_satype == FRI_LOOKUP)
4705 1.1 christos fp->fr_srcptr = NULL;
4706 1.1 christos
4707 1.1 christos if (fp->fr_dsize != sizeof(fripf_t)) {
4708 1.1 christos IPFERROR(21);
4709 1.1 christos error = EINVAL;
4710 1.1 christos break;
4711 1.1 christos }
4712 1.1 christos
4713 1.1 christos /*
4714 1.1 christos * Allowing a rule with both "keep state" and "with oow" is
4715 1.1 christos * pointless because adding a state entry to the table will
4716 1.1 christos * fail with the out of window (oow) flag set.
4717 1.1 christos */
4718 1.1 christos if ((fp->fr_flags & FR_KEEPSTATE) && (fp->fr_flx & FI_OOW)) {
4719 1.1 christos IPFERROR(22);
4720 1.1 christos error = EINVAL;
4721 1.1 christos break;
4722 1.1 christos }
4723 1.1 christos
4724 1.1 christos switch (fp->fr_satype)
4725 1.1 christos {
4726 1.1 christos case FRI_BROADCAST :
4727 1.1 christos case FRI_DYNAMIC :
4728 1.1 christos case FRI_NETWORK :
4729 1.1 christos case FRI_NETMASKED :
4730 1.1 christos case FRI_PEERADDR :
4731 1.1 christos if (fp->fr_sifpidx < 0) {
4732 1.1 christos IPFERROR(23);
4733 1.1 christos error = EINVAL;
4734 1.1 christos }
4735 1.1 christos break;
4736 1.1 christos case FRI_LOOKUP :
4737 1.1 christos fp->fr_srcptr = ipf_findlookup(softc, unit, fp,
4738 1.1 christos &fp->fr_src6,
4739 1.1 christos &fp->fr_smsk6);
4740 1.1 christos if (fp->fr_srcfunc == NULL) {
4741 1.1 christos IPFERROR(132);
4742 1.1 christos error = ESRCH;
4743 1.1 christos break;
4744 1.1 christos }
4745 1.1 christos break;
4746 1.1 christos case FRI_NORMAL :
4747 1.1 christos break;
4748 1.1 christos default :
4749 1.1 christos IPFERROR(133);
4750 1.1 christos error = EINVAL;
4751 1.1 christos break;
4752 1.1 christos }
4753 1.1 christos if (error != 0)
4754 1.1 christos break;
4755 1.1 christos
4756 1.1 christos switch (fp->fr_datype)
4757 1.1 christos {
4758 1.1 christos case FRI_BROADCAST :
4759 1.1 christos case FRI_DYNAMIC :
4760 1.1 christos case FRI_NETWORK :
4761 1.1 christos case FRI_NETMASKED :
4762 1.1 christos case FRI_PEERADDR :
4763 1.1 christos if (fp->fr_difpidx < 0) {
4764 1.1 christos IPFERROR(24);
4765 1.1 christos error = EINVAL;
4766 1.1 christos }
4767 1.1 christos break;
4768 1.1 christos case FRI_LOOKUP :
4769 1.1 christos fp->fr_dstptr = ipf_findlookup(softc, unit, fp,
4770 1.1 christos &fp->fr_dst6,
4771 1.1 christos &fp->fr_dmsk6);
4772 1.1 christos if (fp->fr_dstfunc == NULL) {
4773 1.1 christos IPFERROR(134);
4774 1.1 christos error = ESRCH;
4775 1.1 christos }
4776 1.1 christos break;
4777 1.1 christos case FRI_NORMAL :
4778 1.1 christos break;
4779 1.1 christos default :
4780 1.1 christos IPFERROR(135);
4781 1.1 christos error = EINVAL;
4782 1.1 christos }
4783 1.1 christos break;
4784 1.1 christos
4785 1.1 christos case FR_T_NONE :
4786 1.1 christos case FR_T_CALLFUNC :
4787 1.1 christos case FR_T_COMPIPF :
4788 1.1 christos break;
4789 1.1 christos
4790 1.1 christos case FR_T_IPFEXPR :
4791 1.1 christos if (ipf_matcharray_verify(fp->fr_data, fp->fr_dsize) == -1) {
4792 1.1 christos IPFERROR(25);
4793 1.1 christos error = EINVAL;
4794 1.1 christos }
4795 1.1 christos break;
4796 1.1 christos
4797 1.1 christos default :
4798 1.1 christos IPFERROR(26);
4799 1.1 christos error = EINVAL;
4800 1.1 christos break;
4801 1.1 christos }
4802 1.1 christos if (error != 0)
4803 1.1 christos goto donenolock;
4804 1.1 christos
4805 1.1 christos if (fp->fr_tif.fd_name != -1) {
4806 1.1 christos if ((fp->fr_tif.fd_name < 0) ||
4807 1.1 christos (fp->fr_tif.fd_name >= fp->fr_namelen)) {
4808 1.1 christos IPFERROR(139);
4809 1.1 christos error = EINVAL;
4810 1.1 christos goto donenolock;
4811 1.1 christos }
4812 1.1 christos }
4813 1.1 christos
4814 1.1 christos if (fp->fr_dif.fd_name != -1) {
4815 1.1 christos if ((fp->fr_dif.fd_name < 0) ||
4816 1.1 christos (fp->fr_dif.fd_name >= fp->fr_namelen)) {
4817 1.1 christos IPFERROR(140);
4818 1.1 christos error = EINVAL;
4819 1.1 christos goto donenolock;
4820 1.1 christos }
4821 1.1 christos }
4822 1.1 christos
4823 1.1 christos if (fp->fr_rif.fd_name != -1) {
4824 1.1 christos if ((fp->fr_rif.fd_name < 0) ||
4825 1.1 christos (fp->fr_rif.fd_name >= fp->fr_namelen)) {
4826 1.1 christos IPFERROR(141);
4827 1.1 christos error = EINVAL;
4828 1.1 christos goto donenolock;
4829 1.1 christos }
4830 1.1 christos }
4831 1.1 christos
4832 1.1 christos /*
4833 1.1 christos * Lookup all the interface names that are part of the rule.
4834 1.1 christos */
4835 1.1 christos error = ipf_synclist(softc, fp, NULL);
4836 1.1 christos if (error != 0)
4837 1.1 christos goto donenolock;
4838 1.1 christos fp->fr_statecnt = 0;
4839 1.1 christos if (fp->fr_srctrack.ht_max_nodes != 0)
4840 1.1 christos ipf_rb_ht_init(&fp->fr_srctrack);
4841 1.1 christos
4842 1.1 christos /*
4843 1.1 christos * Look for an existing matching filter rule, but don't include the
4844 1.1 christos * next or interface pointer in the comparison (fr_next, fr_ifa).
4845 1.1 christos * This elminates rules which are indentical being loaded. Checksum
4846 1.1 christos * the constant part of the filter rule to make comparisons quicker
4847 1.1 christos * (this meaning no pointers are included).
4848 1.1 christos */
4849 1.1 christos for (fp->fr_cksum = 0, p = (u_int *)&fp->fr_func, pp = &fp->fr_cksum;
4850 1.1 christos p < pp; p++)
4851 1.1 christos fp->fr_cksum += *p;
4852 1.2 christos pp = (u_int *)((char *)fp->fr_caddr + fp->fr_dsize);
4853 1.1 christos for (p = (u_int *)fp->fr_data; p < pp; p++)
4854 1.1 christos fp->fr_cksum += *p;
4855 1.1 christos
4856 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
4857 1.1 christos
4858 1.1 christos /*
4859 1.1 christos * Now that the filter rule lists are locked, we can walk the
4860 1.1 christos * chain of them without fear.
4861 1.1 christos */
4862 1.1 christos ftail = fprev;
4863 1.1 christos for (f = *ftail; (f = *ftail) != NULL; ftail = &f->fr_next) {
4864 1.1 christos if (fp->fr_collect <= f->fr_collect) {
4865 1.1 christos ftail = fprev;
4866 1.1 christos f = NULL;
4867 1.1 christos break;
4868 1.1 christos }
4869 1.1 christos fprev = ftail;
4870 1.1 christos }
4871 1.1 christos
4872 1.1 christos for (; (f = *ftail) != NULL; ftail = &f->fr_next) {
4873 1.3 darrenr DT2(rule_cmp, frentry_t *, fp, frentry_t *, f);
4874 1.19 christos if (ipf_rule_compare(fp, f) == 0)
4875 1.1 christos break;
4876 1.1 christos }
4877 1.1 christos
4878 1.1 christos /*
4879 1.1 christos * If zero'ing statistics, copy current to caller and zero.
4880 1.1 christos */
4881 1.1 christos if (addrem == 2) {
4882 1.1 christos if (f == NULL) {
4883 1.1 christos IPFERROR(27);
4884 1.1 christos error = ESRCH;
4885 1.1 christos } else {
4886 1.1 christos /*
4887 1.1 christos * Copy and reduce lock because of impending copyout.
4888 1.1 christos * Well we should, but if we do then the atomicity of
4889 1.1 christos * this call and the correctness of fr_hits and
4890 1.1 christos * fr_bytes cannot be guaranteed. As it is, this code
4891 1.1 christos * only resets them to 0 if they are successfully
4892 1.1 christos * copied out into user space.
4893 1.1 christos */
4894 1.1 christos bcopy((char *)f, (char *)fp, f->fr_size);
4895 1.1 christos /* MUTEX_DOWNGRADE(&softc->ipf_mutex); */
4896 1.1 christos
4897 1.1 christos /*
4898 1.1 christos * When we copy this rule back out, set the data
4899 1.1 christos * pointer to be what it was in user space.
4900 1.1 christos */
4901 1.1 christos fp->fr_data = uptr;
4902 1.1 christos error = ipf_outobj(softc, data, fp, IPFOBJ_FRENTRY);
4903 1.1 christos
4904 1.1 christos if (error == 0) {
4905 1.22 mrg if ((f->fr_dsize != 0) && (uptr != NULL)) {
4906 1.1 christos error = COPYOUT(f->fr_data, uptr,
4907 1.1 christos f->fr_dsize);
4908 1.1 christos if (error != 0) {
4909 1.1 christos IPFERROR(28);
4910 1.1 christos error = EFAULT;
4911 1.1 christos }
4912 1.22 mrg }
4913 1.1 christos if (error == 0) {
4914 1.1 christos f->fr_hits = 0;
4915 1.1 christos f->fr_bytes = 0;
4916 1.1 christos }
4917 1.1 christos }
4918 1.1 christos }
4919 1.1 christos
4920 1.1 christos if (makecopy != 0) {
4921 1.1 christos if (ptr != NULL) {
4922 1.1 christos KFREES(ptr, fp->fr_dsize);
4923 1.1 christos }
4924 1.1 christos KFREES(fp, fp->fr_size);
4925 1.1 christos }
4926 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
4927 1.1 christos return error;
4928 1.1 christos }
4929 1.1 christos
4930 1.1 christos if (!f) {
4931 1.1 christos /*
4932 1.1 christos * At the end of this, ftail must point to the place where the
4933 1.1 christos * new rule is to be saved/inserted/added.
4934 1.1 christos * For SIOCAD*FR, this should be the last rule in the group of
4935 1.1 christos * rules that have equal fr_collect fields.
4936 1.1 christos * For SIOCIN*FR, ...
4937 1.1 christos */
4938 1.1 christos if (req == (ioctlcmd_t)SIOCADAFR ||
4939 1.1 christos req == (ioctlcmd_t)SIOCADIFR) {
4940 1.1 christos
4941 1.1 christos for (ftail = fprev; (f = *ftail) != NULL; ) {
4942 1.1 christos if (f->fr_collect > fp->fr_collect)
4943 1.1 christos break;
4944 1.1 christos ftail = &f->fr_next;
4945 1.15 christos fprev = ftail;
4946 1.1 christos }
4947 1.15 christos ftail = fprev;
4948 1.1 christos f = NULL;
4949 1.1 christos ptr = NULL;
4950 1.1 christos } else if (req == (ioctlcmd_t)SIOCINAFR ||
4951 1.1 christos req == (ioctlcmd_t)SIOCINIFR) {
4952 1.1 christos while ((f = *fprev) != NULL) {
4953 1.1 christos if (f->fr_collect >= fp->fr_collect)
4954 1.1 christos break;
4955 1.1 christos fprev = &f->fr_next;
4956 1.1 christos }
4957 1.1 christos ftail = fprev;
4958 1.1 christos if (fp->fr_hits != 0) {
4959 1.1 christos while (fp->fr_hits && (f = *ftail)) {
4960 1.1 christos if (f->fr_collect != fp->fr_collect)
4961 1.1 christos break;
4962 1.1 christos fprev = ftail;
4963 1.1 christos ftail = &f->fr_next;
4964 1.1 christos fp->fr_hits--;
4965 1.1 christos }
4966 1.1 christos }
4967 1.1 christos f = NULL;
4968 1.1 christos ptr = NULL;
4969 1.1 christos }
4970 1.1 christos }
4971 1.1 christos
4972 1.1 christos /*
4973 1.1 christos * Request to remove a rule.
4974 1.1 christos */
4975 1.1 christos if (addrem == 1) {
4976 1.1 christos if (!f) {
4977 1.1 christos IPFERROR(29);
4978 1.1 christos error = ESRCH;
4979 1.1 christos } else {
4980 1.1 christos /*
4981 1.1 christos * Do not allow activity from user space to interfere
4982 1.1 christos * with rules not loaded that way.
4983 1.1 christos */
4984 1.1 christos if ((makecopy == 1) && !(f->fr_flags & FR_COPIED)) {
4985 1.1 christos IPFERROR(30);
4986 1.1 christos error = EPERM;
4987 1.1 christos goto done;
4988 1.1 christos }
4989 1.1 christos
4990 1.1 christos /*
4991 1.1 christos * Return EBUSY if the rule is being reference by
4992 1.1 christos * something else (eg state information.)
4993 1.1 christos */
4994 1.1 christos if (f->fr_ref > 1) {
4995 1.1 christos IPFERROR(31);
4996 1.1 christos error = EBUSY;
4997 1.1 christos goto done;
4998 1.1 christos }
4999 1.1 christos #ifdef IPFILTER_SCAN
5000 1.1 christos if (f->fr_isctag != -1 &&
5001 1.1 christos (f->fr_isc != (struct ipscan *)-1))
5002 1.1 christos ipf_scan_detachfr(f);
5003 1.1 christos #endif
5004 1.1 christos
5005 1.1 christos if (unit == IPL_LOGAUTH) {
5006 1.1 christos error = ipf_auth_precmd(softc, req, f, ftail);
5007 1.1 christos goto done;
5008 1.1 christos }
5009 1.1 christos
5010 1.1 christos ipf_rule_delete(softc, f, unit, set);
5011 1.1 christos
5012 1.1 christos need_free = makecopy;
5013 1.1 christos }
5014 1.1 christos } else {
5015 1.1 christos /*
5016 1.1 christos * Not removing, so we must be adding/inserting a rule.
5017 1.1 christos */
5018 1.1 christos if (f != NULL) {
5019 1.1 christos IPFERROR(32);
5020 1.1 christos error = EEXIST;
5021 1.1 christos goto done;
5022 1.1 christos }
5023 1.1 christos if (unit == IPL_LOGAUTH) {
5024 1.1 christos error = ipf_auth_precmd(softc, req, fp, ftail);
5025 1.1 christos goto done;
5026 1.1 christos }
5027 1.1 christos
5028 1.1 christos MUTEX_NUKE(&fp->fr_lock);
5029 1.1 christos MUTEX_INIT(&fp->fr_lock, "filter rule lock");
5030 1.1 christos if (fp->fr_die != 0)
5031 1.1 christos ipf_rule_expire_insert(softc, fp, set);
5032 1.1 christos
5033 1.1 christos fp->fr_hits = 0;
5034 1.1 christos if (makecopy != 0)
5035 1.1 christos fp->fr_ref = 1;
5036 1.1 christos fp->fr_pnext = ftail;
5037 1.1 christos fp->fr_next = *ftail;
5038 1.15 christos if (fp->fr_next != NULL)
5039 1.15 christos fp->fr_next->fr_pnext = &fp->fr_next;
5040 1.1 christos *ftail = fp;
5041 1.1 christos if (addrem == 0)
5042 1.1 christos ipf_fixskip(ftail, fp, 1);
5043 1.1 christos
5044 1.1 christos fp->fr_icmpgrp = NULL;
5045 1.1 christos if (fp->fr_icmphead != -1) {
5046 1.1 christos group = FR_NAME(fp, fr_icmphead);
5047 1.1 christos fg = ipf_group_add(softc, group, fp, 0, unit, set);
5048 1.3 darrenr fp->fr_icmpgrp = fg;
5049 1.1 christos }
5050 1.1 christos
5051 1.3 darrenr fp->fr_grphead = NULL;
5052 1.1 christos if (fp->fr_grhead != -1) {
5053 1.1 christos group = FR_NAME(fp, fr_grhead);
5054 1.1 christos fg = ipf_group_add(softc, group, fp, fp->fr_flags,
5055 1.1 christos unit, set);
5056 1.3 darrenr fp->fr_grphead = fg;
5057 1.1 christos }
5058 1.1 christos }
5059 1.1 christos done:
5060 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
5061 1.1 christos donenolock:
5062 1.1 christos if (need_free || (error != 0)) {
5063 1.1 christos if ((fp->fr_type & ~FR_T_BUILTIN) == FR_T_IPF) {
5064 1.1 christos if ((fp->fr_satype == FRI_LOOKUP) &&
5065 1.1 christos (fp->fr_srcptr != NULL))
5066 1.1 christos ipf_lookup_deref(softc, fp->fr_srctype,
5067 1.1 christos fp->fr_srcptr);
5068 1.1 christos if ((fp->fr_datype == FRI_LOOKUP) &&
5069 1.1 christos (fp->fr_dstptr != NULL))
5070 1.1 christos ipf_lookup_deref(softc, fp->fr_dsttype,
5071 1.1 christos fp->fr_dstptr);
5072 1.1 christos }
5073 1.3 darrenr if (fp->fr_grp != NULL) {
5074 1.3 darrenr WRITE_ENTER(&softc->ipf_mutex);
5075 1.3 darrenr ipf_group_del(softc, fp->fr_grp, fp);
5076 1.3 darrenr RWLOCK_EXIT(&softc->ipf_mutex);
5077 1.3 darrenr }
5078 1.1 christos if ((ptr != NULL) && (makecopy != 0)) {
5079 1.1 christos KFREES(ptr, fp->fr_dsize);
5080 1.1 christos }
5081 1.1 christos KFREES(fp, fp->fr_size);
5082 1.1 christos }
5083 1.1 christos return (error);
5084 1.1 christos }
5085 1.1 christos
5086 1.1 christos
5087 1.1 christos /* ------------------------------------------------------------------------ */
5088 1.1 christos /* Function: ipf_rule_delete */
5089 1.1 christos /* Returns: Nil */
5090 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5091 1.1 christos /* f(I) - pointer to the rule being deleted */
5092 1.1 christos /* ftail(I) - pointer to the pointer to f */
5093 1.1 christos /* unit(I) - device for which this is for */
5094 1.1 christos /* set(I) - 1 or 0 (filter set) */
5095 1.1 christos /* */
5096 1.1 christos /* This function attempts to do what it can to delete a filter rule: remove */
5097 1.1 christos /* it from any linked lists and remove any groups it is responsible for. */
5098 1.1 christos /* But in the end, removing a rule can only drop the reference count - we */
5099 1.1 christos /* must use that as the guide for whether or not it can be freed. */
5100 1.1 christos /* ------------------------------------------------------------------------ */
5101 1.1 christos static void
5102 1.2 christos ipf_rule_delete(ipf_main_softc_t *softc, frentry_t *f, int unit, int set)
5103 1.1 christos {
5104 1.1 christos
5105 1.1 christos /*
5106 1.1 christos * If fr_pdnext is set, then the rule is on the expire list, so
5107 1.1 christos * remove it from there.
5108 1.1 christos */
5109 1.1 christos if (f->fr_pdnext != NULL) {
5110 1.1 christos *f->fr_pdnext = f->fr_dnext;
5111 1.1 christos if (f->fr_dnext != NULL)
5112 1.1 christos f->fr_dnext->fr_pdnext = f->fr_pdnext;
5113 1.1 christos f->fr_pdnext = NULL;
5114 1.1 christos f->fr_dnext = NULL;
5115 1.1 christos }
5116 1.1 christos
5117 1.1 christos ipf_fixskip(f->fr_pnext, f, -1);
5118 1.1 christos if (f->fr_pnext != NULL)
5119 1.1 christos *f->fr_pnext = f->fr_next;
5120 1.1 christos if (f->fr_next != NULL)
5121 1.1 christos f->fr_next->fr_pnext = f->fr_pnext;
5122 1.1 christos f->fr_pnext = NULL;
5123 1.1 christos f->fr_next = NULL;
5124 1.1 christos
5125 1.1 christos (void) ipf_derefrule(softc, &f);
5126 1.1 christos }
5127 1.1 christos
5128 1.1 christos /* ------------------------------------------------------------------------ */
5129 1.1 christos /* Function: ipf_rule_expire_insert */
5130 1.1 christos /* Returns: Nil */
5131 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5132 1.1 christos /* f(I) - pointer to rule to be added to expire list */
5133 1.1 christos /* set(I) - 1 or 0 (filter set) */
5134 1.1 christos /* */
5135 1.1 christos /* If the new rule has a given expiration time, insert it into the list of */
5136 1.1 christos /* expiring rules with the ones to be removed first added to the front of */
5137 1.1 christos /* the list. The insertion is O(n) but it is kept sorted for quick scans at */
5138 1.1 christos /* expiration interval checks. */
5139 1.1 christos /* ------------------------------------------------------------------------ */
5140 1.1 christos static void
5141 1.2 christos ipf_rule_expire_insert(ipf_main_softc_t *softc, frentry_t *f, int set)
5142 1.1 christos {
5143 1.1 christos frentry_t *fr;
5144 1.1 christos
5145 1.1 christos /*
5146 1.1 christos */
5147 1.1 christos
5148 1.1 christos f->fr_die = softc->ipf_ticks + IPF_TTLVAL(f->fr_die);
5149 1.1 christos for (fr = softc->ipf_rule_explist[set]; fr != NULL;
5150 1.1 christos fr = fr->fr_dnext) {
5151 1.1 christos if (f->fr_die < fr->fr_die)
5152 1.1 christos break;
5153 1.1 christos if (fr->fr_dnext == NULL) {
5154 1.1 christos /*
5155 1.1 christos * We've got to the last rule and everything
5156 1.1 christos * wanted to be expired before this new node,
5157 1.1 christos * so we have to tack it on the end...
5158 1.1 christos */
5159 1.1 christos fr->fr_dnext = f;
5160 1.1 christos f->fr_pdnext = &fr->fr_dnext;
5161 1.1 christos fr = NULL;
5162 1.1 christos break;
5163 1.1 christos }
5164 1.1 christos }
5165 1.1 christos
5166 1.1 christos if (softc->ipf_rule_explist[set] == NULL) {
5167 1.1 christos softc->ipf_rule_explist[set] = f;
5168 1.1 christos f->fr_pdnext = &softc->ipf_rule_explist[set];
5169 1.1 christos } else if (fr != NULL) {
5170 1.1 christos f->fr_dnext = fr;
5171 1.1 christos f->fr_pdnext = fr->fr_pdnext;
5172 1.1 christos fr->fr_pdnext = &f->fr_dnext;
5173 1.1 christos }
5174 1.1 christos }
5175 1.1 christos
5176 1.1 christos
5177 1.1 christos /* ------------------------------------------------------------------------ */
5178 1.1 christos /* Function: ipf_findlookup */
5179 1.1 christos /* Returns: NULL = failure, else success */
5180 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5181 1.1 christos /* unit(I) - ipf device we want to find match for */
5182 1.1 christos /* fp(I) - rule for which lookup is for */
5183 1.1 christos /* addrp(I) - pointer to lookup information in address struct */
5184 1.1 christos /* maskp(O) - pointer to lookup information for storage */
5185 1.1 christos /* */
5186 1.1 christos /* When using pools and hash tables to store addresses for matching in */
5187 1.1 christos /* rules, it is necessary to resolve both the object referred to by the */
5188 1.1 christos /* name or address (and return that pointer) and also provide the means by */
5189 1.1 christos /* which to determine if an address belongs to that object to make the */
5190 1.1 christos /* packet matching quicker. */
5191 1.1 christos /* ------------------------------------------------------------------------ */
5192 1.1 christos static void *
5193 1.2 christos ipf_findlookup(ipf_main_softc_t *softc, int unit, frentry_t *fr,
5194 1.2 christos i6addr_t *addrp, i6addr_t *maskp)
5195 1.1 christos {
5196 1.1 christos void *ptr = NULL;
5197 1.1 christos
5198 1.1 christos switch (addrp->iplookupsubtype)
5199 1.1 christos {
5200 1.1 christos case 0 :
5201 1.1 christos ptr = ipf_lookup_res_num(softc, unit, addrp->iplookuptype,
5202 1.1 christos addrp->iplookupnum,
5203 1.1 christos &maskp->iplookupfunc);
5204 1.1 christos break;
5205 1.1 christos case 1 :
5206 1.1 christos if (addrp->iplookupname < 0)
5207 1.1 christos break;
5208 1.1 christos if (addrp->iplookupname >= fr->fr_namelen)
5209 1.1 christos break;
5210 1.1 christos ptr = ipf_lookup_res_name(softc, unit, addrp->iplookuptype,
5211 1.1 christos fr->fr_names + addrp->iplookupname,
5212 1.1 christos &maskp->iplookupfunc);
5213 1.1 christos break;
5214 1.1 christos default :
5215 1.1 christos break;
5216 1.1 christos }
5217 1.1 christos
5218 1.1 christos return ptr;
5219 1.1 christos }
5220 1.1 christos
5221 1.1 christos
5222 1.1 christos /* ------------------------------------------------------------------------ */
5223 1.1 christos /* Function: ipf_funcinit */
5224 1.1 christos /* Returns: int - 0 == success, else ESRCH: cannot resolve rule details */
5225 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5226 1.1 christos /* fr(I) - pointer to filter rule */
5227 1.1 christos /* */
5228 1.1 christos /* If a rule is a call rule, then check if the function it points to needs */
5229 1.1 christos /* an init function to be called now the rule has been loaded. */
5230 1.1 christos /* ------------------------------------------------------------------------ */
5231 1.1 christos static int
5232 1.2 christos ipf_funcinit(ipf_main_softc_t *softc, frentry_t *fr)
5233 1.1 christos {
5234 1.1 christos ipfunc_resolve_t *ft;
5235 1.1 christos int err;
5236 1.1 christos
5237 1.1 christos IPFERROR(34);
5238 1.1 christos err = ESRCH;
5239 1.1 christos
5240 1.1 christos for (ft = ipf_availfuncs; ft->ipfu_addr != NULL; ft++)
5241 1.1 christos if (ft->ipfu_addr == fr->fr_func) {
5242 1.1 christos err = 0;
5243 1.1 christos if (ft->ipfu_init != NULL)
5244 1.1 christos err = (*ft->ipfu_init)(softc, fr);
5245 1.1 christos break;
5246 1.1 christos }
5247 1.1 christos return err;
5248 1.1 christos }
5249 1.1 christos
5250 1.1 christos
5251 1.1 christos /* ------------------------------------------------------------------------ */
5252 1.1 christos /* Function: ipf_funcfini */
5253 1.1 christos /* Returns: Nil */
5254 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5255 1.1 christos /* fr(I) - pointer to filter rule */
5256 1.1 christos /* */
5257 1.1 christos /* For a given filter rule, call the matching "fini" function if the rule */
5258 1.1 christos /* is using a known function that would have resulted in the "init" being */
5259 1.1 christos /* called for ealier. */
5260 1.1 christos /* ------------------------------------------------------------------------ */
5261 1.1 christos static void
5262 1.2 christos ipf_funcfini(ipf_main_softc_t *softc, frentry_t *fr)
5263 1.1 christos {
5264 1.1 christos ipfunc_resolve_t *ft;
5265 1.1 christos
5266 1.1 christos for (ft = ipf_availfuncs; ft->ipfu_addr != NULL; ft++)
5267 1.1 christos if (ft->ipfu_addr == fr->fr_func) {
5268 1.1 christos if (ft->ipfu_fini != NULL)
5269 1.1 christos (void) (*ft->ipfu_fini)(softc, fr);
5270 1.1 christos break;
5271 1.1 christos }
5272 1.1 christos }
5273 1.1 christos
5274 1.1 christos
5275 1.1 christos /* ------------------------------------------------------------------------ */
5276 1.1 christos /* Function: ipf_findfunc */
5277 1.1 christos /* Returns: ipfunc_t - pointer to function if found, else NULL */
5278 1.1 christos /* Parameters: funcptr(I) - function pointer to lookup */
5279 1.1 christos /* */
5280 1.1 christos /* Look for a function in the table of known functions. */
5281 1.1 christos /* ------------------------------------------------------------------------ */
5282 1.1 christos static ipfunc_t
5283 1.2 christos ipf_findfunc(ipfunc_t funcptr)
5284 1.1 christos {
5285 1.1 christos ipfunc_resolve_t *ft;
5286 1.1 christos
5287 1.1 christos for (ft = ipf_availfuncs; ft->ipfu_addr != NULL; ft++)
5288 1.1 christos if (ft->ipfu_addr == funcptr)
5289 1.1 christos return funcptr;
5290 1.1 christos return NULL;
5291 1.1 christos }
5292 1.1 christos
5293 1.1 christos
5294 1.1 christos /* ------------------------------------------------------------------------ */
5295 1.1 christos /* Function: ipf_resolvefunc */
5296 1.1 christos /* Returns: int - 0 == success, else error */
5297 1.1 christos /* Parameters: data(IO) - ioctl data pointer to ipfunc_resolve_t struct */
5298 1.1 christos /* */
5299 1.1 christos /* Copy in a ipfunc_resolve_t structure and then fill in the missing field. */
5300 1.1 christos /* This will either be the function name (if the pointer is set) or the */
5301 1.1 christos /* function pointer if the name is set. When found, fill in the other one */
5302 1.1 christos /* so that the entire, complete, structure can be copied back to user space.*/
5303 1.1 christos /* ------------------------------------------------------------------------ */
5304 1.1 christos int
5305 1.2 christos ipf_resolvefunc(ipf_main_softc_t *softc, void *data)
5306 1.1 christos {
5307 1.1 christos ipfunc_resolve_t res, *ft;
5308 1.1 christos int error;
5309 1.1 christos
5310 1.1 christos error = BCOPYIN(data, &res, sizeof(res));
5311 1.1 christos if (error != 0) {
5312 1.1 christos IPFERROR(123);
5313 1.1 christos return EFAULT;
5314 1.1 christos }
5315 1.1 christos
5316 1.1 christos if (res.ipfu_addr == NULL && res.ipfu_name[0] != '\0') {
5317 1.1 christos for (ft = ipf_availfuncs; ft->ipfu_addr != NULL; ft++)
5318 1.1 christos if (strncmp(res.ipfu_name, ft->ipfu_name,
5319 1.1 christos sizeof(res.ipfu_name)) == 0) {
5320 1.1 christos res.ipfu_addr = ft->ipfu_addr;
5321 1.1 christos res.ipfu_init = ft->ipfu_init;
5322 1.1 christos if (COPYOUT(&res, data, sizeof(res)) != 0) {
5323 1.1 christos IPFERROR(35);
5324 1.1 christos return EFAULT;
5325 1.1 christos }
5326 1.1 christos return 0;
5327 1.1 christos }
5328 1.1 christos }
5329 1.1 christos if (res.ipfu_addr != NULL && res.ipfu_name[0] == '\0') {
5330 1.1 christos for (ft = ipf_availfuncs; ft->ipfu_addr != NULL; ft++)
5331 1.1 christos if (ft->ipfu_addr == res.ipfu_addr) {
5332 1.1 christos (void) strncpy(res.ipfu_name, ft->ipfu_name,
5333 1.1 christos sizeof(res.ipfu_name));
5334 1.1 christos res.ipfu_init = ft->ipfu_init;
5335 1.1 christos if (COPYOUT(&res, data, sizeof(res)) != 0) {
5336 1.1 christos IPFERROR(36);
5337 1.1 christos return EFAULT;
5338 1.1 christos }
5339 1.1 christos return 0;
5340 1.1 christos }
5341 1.1 christos }
5342 1.1 christos IPFERROR(37);
5343 1.1 christos return ESRCH;
5344 1.1 christos }
5345 1.1 christos
5346 1.1 christos
5347 1.1 christos #if !defined(_KERNEL) || (!defined(__NetBSD__) && !defined(__OpenBSD__) && \
5348 1.1 christos !defined(__FreeBSD__)) || \
5349 1.1 christos FREEBSD_LT_REV(501000) || NETBSD_LT_REV(105000000) || \
5350 1.1 christos OPENBSD_LT_REV(200006)
5351 1.1 christos /*
5352 1.1 christos * From: NetBSD
5353 1.1 christos * ppsratecheck(): packets (or events) per second limitation.
5354 1.1 christos */
5355 1.1 christos int
5356 1.1 christos ppsratecheck(lasttime, curpps, maxpps)
5357 1.1 christos struct timeval *lasttime;
5358 1.1 christos int *curpps;
5359 1.1 christos int maxpps; /* maximum pps allowed */
5360 1.1 christos {
5361 1.1 christos struct timeval tv, delta;
5362 1.1 christos int rv;
5363 1.1 christos
5364 1.1 christos GETKTIME(&tv);
5365 1.1 christos
5366 1.1 christos delta.tv_sec = tv.tv_sec - lasttime->tv_sec;
5367 1.1 christos delta.tv_usec = tv.tv_usec - lasttime->tv_usec;
5368 1.1 christos if (delta.tv_usec < 0) {
5369 1.1 christos delta.tv_sec--;
5370 1.1 christos delta.tv_usec += 1000000;
5371 1.1 christos }
5372 1.1 christos
5373 1.1 christos /*
5374 1.1 christos * check for 0,0 is so that the message will be seen at least once.
5375 1.1 christos * if more than one second have passed since the last update of
5376 1.1 christos * lasttime, reset the counter.
5377 1.1 christos *
5378 1.1 christos * we do increment *curpps even in *curpps < maxpps case, as some may
5379 1.1 christos * try to use *curpps for stat purposes as well.
5380 1.1 christos */
5381 1.1 christos if ((lasttime->tv_sec == 0 && lasttime->tv_usec == 0) ||
5382 1.1 christos delta.tv_sec >= 1) {
5383 1.1 christos *lasttime = tv;
5384 1.1 christos *curpps = 0;
5385 1.1 christos rv = 1;
5386 1.1 christos } else if (maxpps < 0)
5387 1.1 christos rv = 1;
5388 1.1 christos else if (*curpps < maxpps)
5389 1.1 christos rv = 1;
5390 1.1 christos else
5391 1.1 christos rv = 0;
5392 1.1 christos *curpps = *curpps + 1;
5393 1.1 christos
5394 1.1 christos return (rv);
5395 1.1 christos }
5396 1.1 christos #endif
5397 1.1 christos
5398 1.1 christos
5399 1.1 christos /* ------------------------------------------------------------------------ */
5400 1.1 christos /* Function: ipf_derefrule */
5401 1.1 christos /* Returns: int - 0 == rule freed up, else rule not freed */
5402 1.1 christos /* Parameters: fr(I) - pointer to filter rule */
5403 1.1 christos /* */
5404 1.1 christos /* Decrement the reference counter to a rule by one. If it reaches zero, */
5405 1.1 christos /* free it and any associated storage space being used by it. */
5406 1.1 christos /* ------------------------------------------------------------------------ */
5407 1.1 christos int
5408 1.2 christos ipf_derefrule(ipf_main_softc_t *softc, frentry_t **frp)
5409 1.1 christos {
5410 1.1 christos frentry_t *fr;
5411 1.1 christos frdest_t *fdp;
5412 1.1 christos
5413 1.1 christos fr = *frp;
5414 1.1 christos *frp = NULL;
5415 1.1 christos
5416 1.1 christos MUTEX_ENTER(&fr->fr_lock);
5417 1.1 christos fr->fr_ref--;
5418 1.1 christos if (fr->fr_ref == 0) {
5419 1.1 christos MUTEX_EXIT(&fr->fr_lock);
5420 1.1 christos MUTEX_DESTROY(&fr->fr_lock);
5421 1.1 christos
5422 1.1 christos ipf_funcfini(softc, fr);
5423 1.1 christos
5424 1.1 christos fdp = &fr->fr_tif;
5425 1.1 christos if (fdp->fd_type == FRD_DSTLIST)
5426 1.1 christos ipf_lookup_deref(softc, IPLT_DSTLIST, fdp->fd_ptr);
5427 1.1 christos
5428 1.1 christos fdp = &fr->fr_rif;
5429 1.1 christos if (fdp->fd_type == FRD_DSTLIST)
5430 1.1 christos ipf_lookup_deref(softc, IPLT_DSTLIST, fdp->fd_ptr);
5431 1.1 christos
5432 1.1 christos fdp = &fr->fr_dif;
5433 1.1 christos if (fdp->fd_type == FRD_DSTLIST)
5434 1.1 christos ipf_lookup_deref(softc, IPLT_DSTLIST, fdp->fd_ptr);
5435 1.1 christos
5436 1.1 christos if ((fr->fr_type & ~FR_T_BUILTIN) == FR_T_IPF &&
5437 1.1 christos fr->fr_satype == FRI_LOOKUP)
5438 1.1 christos ipf_lookup_deref(softc, fr->fr_srctype, fr->fr_srcptr);
5439 1.1 christos if ((fr->fr_type & ~FR_T_BUILTIN) == FR_T_IPF &&
5440 1.1 christos fr->fr_datype == FRI_LOOKUP)
5441 1.1 christos ipf_lookup_deref(softc, fr->fr_dsttype, fr->fr_dstptr);
5442 1.1 christos
5443 1.3 darrenr if (fr->fr_grp != NULL)
5444 1.3 darrenr ipf_group_del(softc, fr->fr_grp, fr);
5445 1.3 darrenr
5446 1.3 darrenr if (fr->fr_grphead != NULL)
5447 1.3 darrenr ipf_group_del(softc, fr->fr_grphead, fr);
5448 1.3 darrenr
5449 1.3 darrenr if (fr->fr_icmpgrp != NULL)
5450 1.3 darrenr ipf_group_del(softc, fr->fr_icmpgrp, fr);
5451 1.3 darrenr
5452 1.1 christos if ((fr->fr_flags & FR_COPIED) != 0) {
5453 1.1 christos if (fr->fr_dsize) {
5454 1.1 christos KFREES(fr->fr_data, fr->fr_dsize);
5455 1.1 christos }
5456 1.1 christos KFREES(fr, fr->fr_size);
5457 1.1 christos return 0;
5458 1.1 christos }
5459 1.1 christos return 1;
5460 1.1 christos } else {
5461 1.1 christos MUTEX_EXIT(&fr->fr_lock);
5462 1.1 christos }
5463 1.1 christos return -1;
5464 1.1 christos }
5465 1.1 christos
5466 1.1 christos
5467 1.1 christos /* ------------------------------------------------------------------------ */
5468 1.1 christos /* Function: ipf_grpmapinit */
5469 1.1 christos /* Returns: int - 0 == success, else ESRCH because table entry not found*/
5470 1.1 christos /* Parameters: fr(I) - pointer to rule to find hash table for */
5471 1.1 christos /* */
5472 1.1 christos /* Looks for group hash table fr_arg and stores a pointer to it in fr_ptr. */
5473 1.1 christos /* fr_ptr is later used by ipf_srcgrpmap and ipf_dstgrpmap. */
5474 1.1 christos /* ------------------------------------------------------------------------ */
5475 1.1 christos static int
5476 1.2 christos ipf_grpmapinit(ipf_main_softc_t *softc, frentry_t *fr)
5477 1.1 christos {
5478 1.1 christos char name[FR_GROUPLEN];
5479 1.1 christos iphtable_t *iph;
5480 1.1 christos
5481 1.14 christos (void) snprintf(name, sizeof(name), "%d", fr->fr_arg);
5482 1.1 christos iph = ipf_lookup_find_htable(softc, IPL_LOGIPF, name);
5483 1.1 christos if (iph == NULL) {
5484 1.1 christos IPFERROR(38);
5485 1.1 christos return ESRCH;
5486 1.1 christos }
5487 1.1 christos if ((iph->iph_flags & FR_INOUT) != (fr->fr_flags & FR_INOUT)) {
5488 1.1 christos IPFERROR(39);
5489 1.1 christos return ESRCH;
5490 1.1 christos }
5491 1.1 christos iph->iph_ref++;
5492 1.1 christos fr->fr_ptr = iph;
5493 1.1 christos return 0;
5494 1.1 christos }
5495 1.1 christos
5496 1.1 christos
5497 1.1 christos /* ------------------------------------------------------------------------ */
5498 1.1 christos /* Function: ipf_grpmapfini */
5499 1.1 christos /* Returns: int - 0 == success, else ESRCH because table entry not found*/
5500 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
5501 1.1 christos /* fr(I) - pointer to rule to release hash table for */
5502 1.1 christos /* */
5503 1.1 christos /* For rules that have had ipf_grpmapinit called, ipf_lookup_deref needs to */
5504 1.1 christos /* be called to undo what ipf_grpmapinit caused to be done. */
5505 1.1 christos /* ------------------------------------------------------------------------ */
5506 1.1 christos static int
5507 1.2 christos ipf_grpmapfini(ipf_main_softc_t *softc, frentry_t *fr)
5508 1.1 christos {
5509 1.1 christos iphtable_t *iph;
5510 1.1 christos iph = fr->fr_ptr;
5511 1.1 christos if (iph != NULL)
5512 1.1 christos ipf_lookup_deref(softc, IPLT_HASH, iph);
5513 1.1 christos return 0;
5514 1.1 christos }
5515 1.1 christos
5516 1.1 christos
5517 1.1 christos /* ------------------------------------------------------------------------ */
5518 1.1 christos /* Function: ipf_srcgrpmap */
5519 1.1 christos /* Returns: frentry_t * - pointer to "new last matching" rule or NULL */
5520 1.1 christos /* Parameters: fin(I) - pointer to packet information */
5521 1.1 christos /* passp(IO) - pointer to current/new filter decision (unused) */
5522 1.1 christos /* */
5523 1.1 christos /* Look for a rule group head in a hash table, using the source address as */
5524 1.1 christos /* the key, and descend into that group and continue matching rules against */
5525 1.1 christos /* the packet. */
5526 1.1 christos /* ------------------------------------------------------------------------ */
5527 1.1 christos frentry_t *
5528 1.2 christos ipf_srcgrpmap(fr_info_t *fin, u_32_t *passp)
5529 1.1 christos {
5530 1.1 christos frgroup_t *fg;
5531 1.1 christos void *rval;
5532 1.1 christos
5533 1.1 christos rval = ipf_iphmfindgroup(fin->fin_main_soft, fin->fin_fr->fr_ptr,
5534 1.1 christos &fin->fin_src);
5535 1.1 christos if (rval == NULL)
5536 1.1 christos return NULL;
5537 1.1 christos
5538 1.1 christos fg = rval;
5539 1.1 christos fin->fin_fr = fg->fg_start;
5540 1.1 christos (void) ipf_scanlist(fin, *passp);
5541 1.1 christos return fin->fin_fr;
5542 1.1 christos }
5543 1.1 christos
5544 1.1 christos
5545 1.1 christos /* ------------------------------------------------------------------------ */
5546 1.1 christos /* Function: ipf_dstgrpmap */
5547 1.1 christos /* Returns: frentry_t * - pointer to "new last matching" rule or NULL */
5548 1.1 christos /* Parameters: fin(I) - pointer to packet information */
5549 1.1 christos /* passp(IO) - pointer to current/new filter decision (unused) */
5550 1.1 christos /* */
5551 1.1 christos /* Look for a rule group head in a hash table, using the destination */
5552 1.1 christos /* address as the key, and descend into that group and continue matching */
5553 1.1 christos /* rules against the packet. */
5554 1.1 christos /* ------------------------------------------------------------------------ */
5555 1.1 christos frentry_t *
5556 1.2 christos ipf_dstgrpmap(fr_info_t *fin, u_32_t *passp)
5557 1.1 christos {
5558 1.1 christos frgroup_t *fg;
5559 1.1 christos void *rval;
5560 1.1 christos
5561 1.1 christos rval = ipf_iphmfindgroup(fin->fin_main_soft, fin->fin_fr->fr_ptr,
5562 1.1 christos &fin->fin_dst);
5563 1.1 christos if (rval == NULL)
5564 1.1 christos return NULL;
5565 1.1 christos
5566 1.1 christos fg = rval;
5567 1.1 christos fin->fin_fr = fg->fg_start;
5568 1.1 christos (void) ipf_scanlist(fin, *passp);
5569 1.1 christos return fin->fin_fr;
5570 1.1 christos }
5571 1.1 christos
5572 1.1 christos /*
5573 1.1 christos * Queue functions
5574 1.1 christos * ===============
5575 1.1 christos * These functions manage objects on queues for efficient timeouts. There
5576 1.1 christos * are a number of system defined queues as well as user defined timeouts.
5577 1.1 christos * It is expected that a lock is held in the domain in which the queue
5578 1.1 christos * belongs (i.e. either state or NAT) when calling any of these functions
5579 1.1 christos * that prevents ipf_freetimeoutqueue() from being called at the same time
5580 1.1 christos * as any other.
5581 1.1 christos */
5582 1.1 christos
5583 1.1 christos
5584 1.1 christos /* ------------------------------------------------------------------------ */
5585 1.1 christos /* Function: ipf_addtimeoutqueue */
5586 1.1 christos /* Returns: struct ifqtq * - NULL if malloc fails, else pointer to */
5587 1.1 christos /* timeout queue with given interval. */
5588 1.1 christos /* Parameters: parent(I) - pointer to pointer to parent node of this list */
5589 1.1 christos /* of interface queues. */
5590 1.1 christos /* seconds(I) - timeout value in seconds for this queue. */
5591 1.1 christos /* */
5592 1.1 christos /* This routine first looks for a timeout queue that matches the interval */
5593 1.1 christos /* being requested. If it finds one, increments the reference counter and */
5594 1.1 christos /* returns a pointer to it. If none are found, it allocates a new one and */
5595 1.1 christos /* inserts it at the top of the list. */
5596 1.1 christos /* */
5597 1.1 christos /* Locking. */
5598 1.1 christos /* It is assumed that the caller of this function has an appropriate lock */
5599 1.1 christos /* held (exclusively) in the domain that encompases 'parent'. */
5600 1.1 christos /* ------------------------------------------------------------------------ */
5601 1.1 christos ipftq_t *
5602 1.2 christos ipf_addtimeoutqueue(ipf_main_softc_t *softc, ipftq_t **parent, u_int seconds)
5603 1.1 christos {
5604 1.1 christos ipftq_t *ifq;
5605 1.1 christos u_int period;
5606 1.1 christos
5607 1.1 christos period = seconds * IPF_HZ_DIVIDE;
5608 1.1 christos
5609 1.1 christos MUTEX_ENTER(&softc->ipf_timeoutlock);
5610 1.1 christos for (ifq = *parent; ifq != NULL; ifq = ifq->ifq_next) {
5611 1.1 christos if (ifq->ifq_ttl == period) {
5612 1.1 christos /*
5613 1.1 christos * Reset the delete flag, if set, so the structure
5614 1.1 christos * gets reused rather than freed and reallocated.
5615 1.1 christos */
5616 1.1 christos MUTEX_ENTER(&ifq->ifq_lock);
5617 1.1 christos ifq->ifq_flags &= ~IFQF_DELETE;
5618 1.1 christos ifq->ifq_ref++;
5619 1.1 christos MUTEX_EXIT(&ifq->ifq_lock);
5620 1.1 christos MUTEX_EXIT(&softc->ipf_timeoutlock);
5621 1.1 christos
5622 1.1 christos return ifq;
5623 1.1 christos }
5624 1.1 christos }
5625 1.1 christos
5626 1.1 christos KMALLOC(ifq, ipftq_t *);
5627 1.1 christos if (ifq != NULL) {
5628 1.1 christos MUTEX_NUKE(&ifq->ifq_lock);
5629 1.1 christos IPFTQ_INIT(ifq, period, "ipftq mutex");
5630 1.1 christos ifq->ifq_next = *parent;
5631 1.1 christos ifq->ifq_pnext = parent;
5632 1.1 christos ifq->ifq_flags = IFQF_USER;
5633 1.1 christos ifq->ifq_ref++;
5634 1.1 christos *parent = ifq;
5635 1.1 christos softc->ipf_userifqs++;
5636 1.1 christos }
5637 1.1 christos MUTEX_EXIT(&softc->ipf_timeoutlock);
5638 1.1 christos return ifq;
5639 1.1 christos }
5640 1.1 christos
5641 1.1 christos
5642 1.1 christos /* ------------------------------------------------------------------------ */
5643 1.1 christos /* Function: ipf_deletetimeoutqueue */
5644 1.1 christos /* Returns: int - new reference count value of the timeout queue */
5645 1.1 christos /* Parameters: ifq(I) - timeout queue which is losing a reference. */
5646 1.1 christos /* Locks: ifq->ifq_lock */
5647 1.1 christos /* */
5648 1.1 christos /* This routine must be called when we're discarding a pointer to a timeout */
5649 1.1 christos /* queue object, taking care of the reference counter. */
5650 1.1 christos /* */
5651 1.1 christos /* Now that this just sets a DELETE flag, it requires the expire code to */
5652 1.1 christos /* check the list of user defined timeout queues and call the free function */
5653 1.1 christos /* below (currently commented out) to stop memory leaking. It is done this */
5654 1.1 christos /* way because the locking may not be sufficient to safely do a free when */
5655 1.1 christos /* this function is called. */
5656 1.1 christos /* ------------------------------------------------------------------------ */
5657 1.1 christos int
5658 1.2 christos ipf_deletetimeoutqueue(ipftq_t *ifq)
5659 1.1 christos {
5660 1.1 christos
5661 1.1 christos ifq->ifq_ref--;
5662 1.1 christos if ((ifq->ifq_ref == 0) && ((ifq->ifq_flags & IFQF_USER) != 0)) {
5663 1.1 christos ifq->ifq_flags |= IFQF_DELETE;
5664 1.1 christos }
5665 1.1 christos
5666 1.1 christos return ifq->ifq_ref;
5667 1.1 christos }
5668 1.1 christos
5669 1.1 christos
5670 1.1 christos /* ------------------------------------------------------------------------ */
5671 1.1 christos /* Function: ipf_freetimeoutqueue */
5672 1.1 christos /* Parameters: ifq(I) - timeout queue which is losing a reference. */
5673 1.1 christos /* Returns: Nil */
5674 1.1 christos /* */
5675 1.1 christos /* Locking: */
5676 1.1 christos /* It is assumed that the caller of this function has an appropriate lock */
5677 1.1 christos /* held (exclusively) in the domain that encompases the callers "domain". */
5678 1.1 christos /* The ifq_lock for this structure should not be held. */
5679 1.1 christos /* */
5680 1.1 christos /* Remove a user defined timeout queue from the list of queues it is in and */
5681 1.1 christos /* tidy up after this is done. */
5682 1.1 christos /* ------------------------------------------------------------------------ */
5683 1.1 christos void
5684 1.2 christos ipf_freetimeoutqueue(ipf_main_softc_t *softc, ipftq_t *ifq)
5685 1.1 christos {
5686 1.1 christos
5687 1.1 christos if (((ifq->ifq_flags & IFQF_DELETE) == 0) || (ifq->ifq_ref != 0) ||
5688 1.1 christos ((ifq->ifq_flags & IFQF_USER) == 0)) {
5689 1.1 christos printf("ipf_freetimeoutqueue(%lx) flags 0x%x ttl %d ref %d\n",
5690 1.1 christos (u_long)ifq, ifq->ifq_flags, ifq->ifq_ttl,
5691 1.1 christos ifq->ifq_ref);
5692 1.1 christos return;
5693 1.1 christos }
5694 1.1 christos
5695 1.1 christos /*
5696 1.1 christos * Remove from its position in the list.
5697 1.1 christos */
5698 1.1 christos *ifq->ifq_pnext = ifq->ifq_next;
5699 1.1 christos if (ifq->ifq_next != NULL)
5700 1.1 christos ifq->ifq_next->ifq_pnext = ifq->ifq_pnext;
5701 1.1 christos ifq->ifq_next = NULL;
5702 1.1 christos ifq->ifq_pnext = NULL;
5703 1.1 christos
5704 1.1 christos MUTEX_DESTROY(&ifq->ifq_lock);
5705 1.1 christos ATOMIC_DEC(softc->ipf_userifqs);
5706 1.1 christos KFREE(ifq);
5707 1.1 christos }
5708 1.1 christos
5709 1.1 christos
5710 1.1 christos /* ------------------------------------------------------------------------ */
5711 1.1 christos /* Function: ipf_deletequeueentry */
5712 1.1 christos /* Returns: Nil */
5713 1.1 christos /* Parameters: tqe(I) - timeout queue entry to delete */
5714 1.1 christos /* */
5715 1.1 christos /* Remove a tail queue entry from its queue and make it an orphan. */
5716 1.1 christos /* ipf_deletetimeoutqueue is called to make sure the reference count on the */
5717 1.1 christos /* queue is correct. We can't, however, call ipf_freetimeoutqueue because */
5718 1.1 christos /* the correct lock(s) may not be held that would make it safe to do so. */
5719 1.1 christos /* ------------------------------------------------------------------------ */
5720 1.1 christos void
5721 1.2 christos ipf_deletequeueentry(ipftqent_t *tqe)
5722 1.1 christos {
5723 1.1 christos ipftq_t *ifq;
5724 1.1 christos
5725 1.1 christos ifq = tqe->tqe_ifq;
5726 1.1 christos
5727 1.1 christos MUTEX_ENTER(&ifq->ifq_lock);
5728 1.1 christos
5729 1.1 christos if (tqe->tqe_pnext != NULL) {
5730 1.1 christos *tqe->tqe_pnext = tqe->tqe_next;
5731 1.1 christos if (tqe->tqe_next != NULL)
5732 1.1 christos tqe->tqe_next->tqe_pnext = tqe->tqe_pnext;
5733 1.1 christos else /* we must be the tail anyway */
5734 1.1 christos ifq->ifq_tail = tqe->tqe_pnext;
5735 1.1 christos
5736 1.1 christos tqe->tqe_pnext = NULL;
5737 1.1 christos tqe->tqe_ifq = NULL;
5738 1.1 christos }
5739 1.1 christos
5740 1.1 christos (void) ipf_deletetimeoutqueue(ifq);
5741 1.1 christos ASSERT(ifq->ifq_ref > 0);
5742 1.1 christos
5743 1.1 christos MUTEX_EXIT(&ifq->ifq_lock);
5744 1.1 christos }
5745 1.1 christos
5746 1.1 christos
5747 1.1 christos /* ------------------------------------------------------------------------ */
5748 1.1 christos /* Function: ipf_queuefront */
5749 1.1 christos /* Returns: Nil */
5750 1.1 christos /* Parameters: tqe(I) - pointer to timeout queue entry */
5751 1.1 christos /* */
5752 1.1 christos /* Move a queue entry to the front of the queue, if it isn't already there. */
5753 1.1 christos /* ------------------------------------------------------------------------ */
5754 1.1 christos void
5755 1.2 christos ipf_queuefront(ipftqent_t *tqe)
5756 1.1 christos {
5757 1.1 christos ipftq_t *ifq;
5758 1.1 christos
5759 1.1 christos ifq = tqe->tqe_ifq;
5760 1.1 christos if (ifq == NULL)
5761 1.1 christos return;
5762 1.1 christos
5763 1.1 christos MUTEX_ENTER(&ifq->ifq_lock);
5764 1.1 christos if (ifq->ifq_head != tqe) {
5765 1.1 christos *tqe->tqe_pnext = tqe->tqe_next;
5766 1.1 christos if (tqe->tqe_next)
5767 1.1 christos tqe->tqe_next->tqe_pnext = tqe->tqe_pnext;
5768 1.1 christos else
5769 1.1 christos ifq->ifq_tail = tqe->tqe_pnext;
5770 1.1 christos
5771 1.1 christos tqe->tqe_next = ifq->ifq_head;
5772 1.1 christos ifq->ifq_head->tqe_pnext = &tqe->tqe_next;
5773 1.1 christos ifq->ifq_head = tqe;
5774 1.1 christos tqe->tqe_pnext = &ifq->ifq_head;
5775 1.1 christos }
5776 1.1 christos MUTEX_EXIT(&ifq->ifq_lock);
5777 1.1 christos }
5778 1.1 christos
5779 1.1 christos
5780 1.1 christos /* ------------------------------------------------------------------------ */
5781 1.1 christos /* Function: ipf_queueback */
5782 1.1 christos /* Returns: Nil */
5783 1.1 christos /* Parameters: ticks(I) - ipf tick time to use with this call */
5784 1.1 christos /* tqe(I) - pointer to timeout queue entry */
5785 1.1 christos /* */
5786 1.1 christos /* Move a queue entry to the back of the queue, if it isn't already there. */
5787 1.1 christos /* We use use ticks to calculate the expiration and mark for when we last */
5788 1.1 christos /* touched the structure. */
5789 1.1 christos /* ------------------------------------------------------------------------ */
5790 1.1 christos void
5791 1.2 christos ipf_queueback(u_long ticks, ipftqent_t *tqe)
5792 1.1 christos {
5793 1.1 christos ipftq_t *ifq;
5794 1.1 christos
5795 1.1 christos ifq = tqe->tqe_ifq;
5796 1.1 christos if (ifq == NULL)
5797 1.1 christos return;
5798 1.1 christos tqe->tqe_die = ticks + ifq->ifq_ttl;
5799 1.1 christos tqe->tqe_touched = ticks;
5800 1.1 christos
5801 1.1 christos MUTEX_ENTER(&ifq->ifq_lock);
5802 1.1 christos if (tqe->tqe_next != NULL) { /* at the end already ? */
5803 1.1 christos /*
5804 1.1 christos * Remove from list
5805 1.1 christos */
5806 1.1 christos *tqe->tqe_pnext = tqe->tqe_next;
5807 1.1 christos tqe->tqe_next->tqe_pnext = tqe->tqe_pnext;
5808 1.1 christos
5809 1.1 christos /*
5810 1.1 christos * Make it the last entry.
5811 1.1 christos */
5812 1.1 christos tqe->tqe_next = NULL;
5813 1.1 christos tqe->tqe_pnext = ifq->ifq_tail;
5814 1.1 christos *ifq->ifq_tail = tqe;
5815 1.1 christos ifq->ifq_tail = &tqe->tqe_next;
5816 1.1 christos }
5817 1.1 christos MUTEX_EXIT(&ifq->ifq_lock);
5818 1.1 christos }
5819 1.1 christos
5820 1.1 christos
5821 1.1 christos /* ------------------------------------------------------------------------ */
5822 1.1 christos /* Function: ipf_queueappend */
5823 1.1 christos /* Returns: Nil */
5824 1.1 christos /* Parameters: ticks(I) - ipf tick time to use with this call */
5825 1.1 christos /* tqe(I) - pointer to timeout queue entry */
5826 1.1 christos /* ifq(I) - pointer to timeout queue */
5827 1.1 christos /* parent(I) - owing object pointer */
5828 1.1 christos /* */
5829 1.1 christos /* Add a new item to this queue and put it on the very end. */
5830 1.1 christos /* We use use ticks to calculate the expiration and mark for when we last */
5831 1.1 christos /* touched the structure. */
5832 1.1 christos /* ------------------------------------------------------------------------ */
5833 1.1 christos void
5834 1.2 christos ipf_queueappend(u_long ticks, ipftqent_t *tqe, ipftq_t *ifq, void *parent)
5835 1.1 christos {
5836 1.1 christos
5837 1.1 christos MUTEX_ENTER(&ifq->ifq_lock);
5838 1.1 christos tqe->tqe_parent = parent;
5839 1.1 christos tqe->tqe_pnext = ifq->ifq_tail;
5840 1.1 christos *ifq->ifq_tail = tqe;
5841 1.1 christos ifq->ifq_tail = &tqe->tqe_next;
5842 1.1 christos tqe->tqe_next = NULL;
5843 1.1 christos tqe->tqe_ifq = ifq;
5844 1.1 christos tqe->tqe_die = ticks + ifq->ifq_ttl;
5845 1.1 christos tqe->tqe_touched = ticks;
5846 1.1 christos ifq->ifq_ref++;
5847 1.1 christos MUTEX_EXIT(&ifq->ifq_lock);
5848 1.1 christos }
5849 1.1 christos
5850 1.1 christos
5851 1.1 christos /* ------------------------------------------------------------------------ */
5852 1.1 christos /* Function: ipf_movequeue */
5853 1.1 christos /* Returns: Nil */
5854 1.1 christos /* Parameters: tq(I) - pointer to timeout queue information */
5855 1.1 christos /* oifp(I) - old timeout queue entry was on */
5856 1.1 christos /* nifp(I) - new timeout queue to put entry on */
5857 1.1 christos /* */
5858 1.1 christos /* Move a queue entry from one timeout queue to another timeout queue. */
5859 1.1 christos /* If it notices that the current entry is already last and does not need */
5860 1.1 christos /* to move queue, the return. */
5861 1.1 christos /* ------------------------------------------------------------------------ */
5862 1.1 christos void
5863 1.2 christos ipf_movequeue(u_long ticks, ipftqent_t *tqe, ipftq_t *oifq, ipftq_t *nifq)
5864 1.1 christos {
5865 1.1 christos
5866 1.1 christos /*
5867 1.1 christos * If the queue hasn't changed and we last touched this entry at the
5868 1.1 christos * same ipf time, then we're not going to achieve anything by either
5869 1.1 christos * changing the ttl or moving it on the queue.
5870 1.1 christos */
5871 1.1 christos if (oifq == nifq && tqe->tqe_touched == ticks)
5872 1.1 christos return;
5873 1.1 christos
5874 1.1 christos /*
5875 1.1 christos * For any of this to be outside the lock, there is a risk that two
5876 1.1 christos * packets entering simultaneously, with one changing to a different
5877 1.1 christos * queue and one not, could end up with things in a bizarre state.
5878 1.1 christos */
5879 1.1 christos MUTEX_ENTER(&oifq->ifq_lock);
5880 1.1 christos
5881 1.1 christos tqe->tqe_touched = ticks;
5882 1.1 christos tqe->tqe_die = ticks + nifq->ifq_ttl;
5883 1.1 christos /*
5884 1.1 christos * Is the operation here going to be a no-op ?
5885 1.1 christos */
5886 1.1 christos if (oifq == nifq) {
5887 1.1 christos if ((tqe->tqe_next == NULL) ||
5888 1.1 christos (tqe->tqe_next->tqe_die == tqe->tqe_die)) {
5889 1.1 christos MUTEX_EXIT(&oifq->ifq_lock);
5890 1.1 christos return;
5891 1.1 christos }
5892 1.1 christos }
5893 1.1 christos
5894 1.1 christos /*
5895 1.1 christos * Remove from the old queue
5896 1.1 christos */
5897 1.1 christos *tqe->tqe_pnext = tqe->tqe_next;
5898 1.1 christos if (tqe->tqe_next)
5899 1.1 christos tqe->tqe_next->tqe_pnext = tqe->tqe_pnext;
5900 1.1 christos else
5901 1.1 christos oifq->ifq_tail = tqe->tqe_pnext;
5902 1.1 christos tqe->tqe_next = NULL;
5903 1.1 christos
5904 1.1 christos /*
5905 1.1 christos * If we're moving from one queue to another, release the
5906 1.1 christos * lock on the old queue and get a lock on the new queue.
5907 1.1 christos * For user defined queues, if we're moving off it, call
5908 1.1 christos * delete in case it can now be freed.
5909 1.1 christos */
5910 1.1 christos if (oifq != nifq) {
5911 1.1 christos tqe->tqe_ifq = NULL;
5912 1.1 christos
5913 1.1 christos (void) ipf_deletetimeoutqueue(oifq);
5914 1.1 christos
5915 1.1 christos MUTEX_EXIT(&oifq->ifq_lock);
5916 1.1 christos
5917 1.1 christos MUTEX_ENTER(&nifq->ifq_lock);
5918 1.1 christos
5919 1.1 christos tqe->tqe_ifq = nifq;
5920 1.1 christos nifq->ifq_ref++;
5921 1.1 christos }
5922 1.1 christos
5923 1.1 christos /*
5924 1.1 christos * Add to the bottom of the new queue
5925 1.1 christos */
5926 1.1 christos tqe->tqe_pnext = nifq->ifq_tail;
5927 1.1 christos *nifq->ifq_tail = tqe;
5928 1.1 christos nifq->ifq_tail = &tqe->tqe_next;
5929 1.1 christos MUTEX_EXIT(&nifq->ifq_lock);
5930 1.1 christos }
5931 1.1 christos
5932 1.1 christos
5933 1.1 christos /* ------------------------------------------------------------------------ */
5934 1.1 christos /* Function: ipf_updateipid */
5935 1.1 christos /* Returns: int - 0 == success, -1 == error (packet should be droppped) */
5936 1.1 christos /* Parameters: fin(I) - pointer to packet information */
5937 1.1 christos /* */
5938 1.1 christos /* When we are doing NAT, change the IP of every packet to represent a */
5939 1.1 christos /* single sequence of packets coming from the host, hiding any host */
5940 1.1 christos /* specific sequencing that might otherwise be revealed. If the packet is */
5941 1.1 christos /* a fragment, then store the 'new' IPid in the fragment cache and look up */
5942 1.1 christos /* the fragment cache for non-leading fragments. If a non-leading fragment */
5943 1.1 christos /* has no match in the cache, return an error. */
5944 1.1 christos /* ------------------------------------------------------------------------ */
5945 1.1 christos static int
5946 1.2 christos ipf_updateipid(fr_info_t *fin)
5947 1.1 christos {
5948 1.1 christos u_short id, ido, sums;
5949 1.1 christos u_32_t sumd, sum;
5950 1.1 christos ip_t *ip;
5951 1.1 christos
5952 1.1 christos if (fin->fin_off != 0) {
5953 1.1 christos sum = ipf_frag_ipidknown(fin);
5954 1.1 christos if (sum == 0xffffffff)
5955 1.1 christos return -1;
5956 1.1 christos sum &= 0xffff;
5957 1.1 christos id = (u_short)sum;
5958 1.1 christos } else {
5959 1.1 christos id = ipf_nextipid(fin);
5960 1.1 christos if (fin->fin_off == 0 && (fin->fin_flx & FI_FRAG) != 0)
5961 1.1 christos (void) ipf_frag_ipidnew(fin, (u_32_t)id);
5962 1.1 christos }
5963 1.1 christos
5964 1.1 christos ip = fin->fin_ip;
5965 1.1 christos ido = ntohs(ip->ip_id);
5966 1.1 christos if (id == ido)
5967 1.1 christos return 0;
5968 1.1 christos ip->ip_id = htons(id);
5969 1.1 christos CALC_SUMD(ido, id, sumd); /* DESTRUCTIVE MACRO! id,ido change */
5970 1.1 christos sum = (~ntohs(ip->ip_sum)) & 0xffff;
5971 1.1 christos sum += sumd;
5972 1.1 christos sum = (sum >> 16) + (sum & 0xffff);
5973 1.1 christos sum = (sum >> 16) + (sum & 0xffff);
5974 1.1 christos sums = ~(u_short)sum;
5975 1.1 christos ip->ip_sum = htons(sums);
5976 1.1 christos return 0;
5977 1.1 christos }
5978 1.1 christos
5979 1.1 christos
5980 1.1 christos #ifdef NEED_FRGETIFNAME
5981 1.1 christos /* ------------------------------------------------------------------------ */
5982 1.1 christos /* Function: ipf_getifname */
5983 1.1 christos /* Returns: char * - pointer to interface name */
5984 1.1 christos /* Parameters: ifp(I) - pointer to network interface */
5985 1.1 christos /* buffer(O) - pointer to where to store interface name */
5986 1.1 christos /* */
5987 1.1 christos /* Constructs an interface name in the buffer passed. The buffer passed is */
5988 1.1 christos /* expected to be at least LIFNAMSIZ in bytes big. If buffer is passed in */
5989 1.1 christos /* as a NULL pointer then return a pointer to a static array. */
5990 1.1 christos /* ------------------------------------------------------------------------ */
5991 1.1 christos char *
5992 1.1 christos ipf_getifname(ifp, buffer)
5993 1.1 christos struct ifnet *ifp;
5994 1.1 christos char *buffer;
5995 1.1 christos {
5996 1.1 christos static char namebuf[LIFNAMSIZ];
5997 1.1 christos # if defined(MENTAT) || defined(__FreeBSD__) || defined(__osf__) || \
5998 1.1 christos defined(__sgi) || defined(linux) || defined(_AIX51) || \
5999 1.1 christos (defined(sun) && !defined(__SVR4) && !defined(__svr4__))
6000 1.1 christos int unit, space;
6001 1.1 christos char temp[20];
6002 1.1 christos char *s;
6003 1.1 christos # endif
6004 1.1 christos
6005 1.1 christos if (buffer == NULL)
6006 1.1 christos buffer = namebuf;
6007 1.1 christos (void) strncpy(buffer, ifp->if_name, LIFNAMSIZ);
6008 1.1 christos buffer[LIFNAMSIZ - 1] = '\0';
6009 1.1 christos # if defined(MENTAT) || defined(__FreeBSD__) || defined(__osf__) || \
6010 1.1 christos defined(__sgi) || defined(_AIX51) || \
6011 1.1 christos (defined(sun) && !defined(__SVR4) && !defined(__svr4__))
6012 1.1 christos for (s = buffer; *s; s++)
6013 1.1 christos ;
6014 1.1 christos unit = ifp->if_unit;
6015 1.1 christos space = LIFNAMSIZ - (s - buffer);
6016 1.1 christos if ((space > 0) && (unit >= 0)) {
6017 1.14 christos snprintf(temp, sizeof(temp), "%d", unit);
6018 1.1 christos (void) strncpy(s, temp, space);
6019 1.14 christos s[space - 1] = '\0';
6020 1.1 christos }
6021 1.1 christos # endif
6022 1.1 christos return buffer;
6023 1.1 christos }
6024 1.1 christos #endif
6025 1.1 christos
6026 1.1 christos
6027 1.1 christos /* ------------------------------------------------------------------------ */
6028 1.1 christos /* Function: ipf_ioctlswitch */
6029 1.1 christos /* Returns: int - -1 continue processing, else ioctl return value */
6030 1.1 christos /* Parameters: unit(I) - device unit opened */
6031 1.1 christos /* data(I) - pointer to ioctl data */
6032 1.1 christos /* cmd(I) - ioctl command */
6033 1.1 christos /* mode(I) - mode value */
6034 1.1 christos /* uid(I) - uid making the ioctl call */
6035 1.1 christos /* ctx(I) - pointer to context data */
6036 1.1 christos /* */
6037 1.1 christos /* Based on the value of unit, call the appropriate ioctl handler or return */
6038 1.1 christos /* EIO if ipfilter is not running. Also checks if write perms are req'd */
6039 1.1 christos /* for the device in order to execute the ioctl. A special case is made */
6040 1.1 christos /* SIOCIPFINTERROR so that the same code isn't required in every handler. */
6041 1.3 darrenr /* The context data pointer is passed through as this is used as the key */
6042 1.3 darrenr /* for locating a matching token for continued access for walking lists, */
6043 1.3 darrenr /* etc. */
6044 1.1 christos /* ------------------------------------------------------------------------ */
6045 1.1 christos int
6046 1.2 christos ipf_ioctlswitch(ipf_main_softc_t *softc, int unit, void *data, ioctlcmd_t cmd,
6047 1.2 christos int mode, int uid, void *ctx)
6048 1.1 christos {
6049 1.1 christos int error = 0;
6050 1.1 christos
6051 1.1 christos switch (cmd)
6052 1.1 christos {
6053 1.1 christos case SIOCIPFINTERROR :
6054 1.1 christos error = BCOPYOUT(&softc->ipf_interror, data,
6055 1.1 christos sizeof(softc->ipf_interror));
6056 1.1 christos if (error != 0) {
6057 1.1 christos IPFERROR(40);
6058 1.1 christos error = EFAULT;
6059 1.1 christos }
6060 1.1 christos return error;
6061 1.1 christos default :
6062 1.1 christos break;
6063 1.1 christos }
6064 1.1 christos
6065 1.1 christos switch (unit)
6066 1.1 christos {
6067 1.1 christos case IPL_LOGIPF :
6068 1.1 christos error = ipf_ipf_ioctl(softc, data, cmd, mode, uid, ctx);
6069 1.1 christos break;
6070 1.1 christos case IPL_LOGNAT :
6071 1.1 christos if (softc->ipf_running > 0) {
6072 1.1 christos error = ipf_nat_ioctl(softc, data, cmd, mode,
6073 1.1 christos uid, ctx);
6074 1.1 christos } else {
6075 1.1 christos IPFERROR(42);
6076 1.1 christos error = EIO;
6077 1.1 christos }
6078 1.1 christos break;
6079 1.1 christos case IPL_LOGSTATE :
6080 1.1 christos if (softc->ipf_running > 0) {
6081 1.1 christos error = ipf_state_ioctl(softc, data, cmd, mode,
6082 1.1 christos uid, ctx);
6083 1.1 christos } else {
6084 1.1 christos IPFERROR(43);
6085 1.1 christos error = EIO;
6086 1.1 christos }
6087 1.1 christos break;
6088 1.1 christos case IPL_LOGAUTH :
6089 1.1 christos if (softc->ipf_running > 0) {
6090 1.1 christos error = ipf_auth_ioctl(softc, data, cmd, mode,
6091 1.1 christos uid, ctx);
6092 1.1 christos } else {
6093 1.1 christos IPFERROR(44);
6094 1.1 christos error = EIO;
6095 1.1 christos }
6096 1.1 christos break;
6097 1.1 christos case IPL_LOGSYNC :
6098 1.1 christos if (softc->ipf_running > 0) {
6099 1.1 christos error = ipf_sync_ioctl(softc, data, cmd, mode,
6100 1.1 christos uid, ctx);
6101 1.1 christos } else {
6102 1.1 christos error = EIO;
6103 1.1 christos IPFERROR(45);
6104 1.1 christos }
6105 1.1 christos break;
6106 1.1 christos case IPL_LOGSCAN :
6107 1.1 christos #ifdef IPFILTER_SCAN
6108 1.1 christos if (softc->ipf_running > 0)
6109 1.1 christos error = ipf_scan_ioctl(softc, data, cmd, mode,
6110 1.1 christos uid, ctx);
6111 1.1 christos else
6112 1.1 christos #endif
6113 1.1 christos {
6114 1.1 christos error = EIO;
6115 1.1 christos IPFERROR(46);
6116 1.1 christos }
6117 1.1 christos break;
6118 1.1 christos case IPL_LOGLOOKUP :
6119 1.1 christos if (softc->ipf_running > 0) {
6120 1.1 christos error = ipf_lookup_ioctl(softc, data, cmd, mode,
6121 1.1 christos uid, ctx);
6122 1.1 christos } else {
6123 1.1 christos error = EIO;
6124 1.1 christos IPFERROR(47);
6125 1.1 christos }
6126 1.1 christos break;
6127 1.1 christos default :
6128 1.1 christos IPFERROR(48);
6129 1.1 christos error = EIO;
6130 1.1 christos break;
6131 1.1 christos }
6132 1.1 christos
6133 1.1 christos return error;
6134 1.1 christos }
6135 1.1 christos
6136 1.1 christos
6137 1.1 christos /*
6138 1.1 christos * This array defines the expected size of objects coming into the kernel
6139 1.1 christos * for the various recognised object types. The first column is flags (see
6140 1.1 christos * below), 2nd column is current size, 3rd column is the version number of
6141 1.1 christos * when the current size became current.
6142 1.1 christos * Flags:
6143 1.1 christos * 1 = minimum size, not absolute size
6144 1.1 christos */
6145 1.1 christos static int ipf_objbytes[IPFOBJ_COUNT][3] = {
6146 1.3 darrenr { 1, sizeof(struct frentry), 5010000 }, /* 0 */
6147 1.1 christos { 1, sizeof(struct friostat), 5010000 },
6148 1.1 christos { 0, sizeof(struct fr_info), 5010000 },
6149 1.1 christos { 0, sizeof(struct ipf_authstat), 4010100 },
6150 1.1 christos { 0, sizeof(struct ipfrstat), 5010000 },
6151 1.3 darrenr { 1, sizeof(struct ipnat), 5010000 }, /* 5 */
6152 1.1 christos { 0, sizeof(struct natstat), 5010000 },
6153 1.1 christos { 0, sizeof(struct ipstate_save), 5010000 },
6154 1.1 christos { 1, sizeof(struct nat_save), 5010000 },
6155 1.1 christos { 0, sizeof(struct natlookup), 5010000 },
6156 1.3 darrenr { 1, sizeof(struct ipstate), 5010000 }, /* 10 */
6157 1.1 christos { 0, sizeof(struct ips_stat), 5010000 },
6158 1.1 christos { 0, sizeof(struct frauth), 5010000 },
6159 1.1 christos { 0, sizeof(struct ipftune), 4010100 },
6160 1.1 christos { 0, sizeof(struct nat), 5010000 },
6161 1.3 darrenr { 0, sizeof(struct ipfruleiter), 4011400 }, /* 15 */
6162 1.1 christos { 0, sizeof(struct ipfgeniter), 4011400 },
6163 1.1 christos { 0, sizeof(struct ipftable), 4011400 },
6164 1.1 christos { 0, sizeof(struct ipflookupiter), 4011400 },
6165 1.1 christos { 0, sizeof(struct ipftq) * IPF_TCP_NSTATES },
6166 1.3 darrenr { 1, 0, 0 }, /* IPFEXPR */
6167 1.1 christos { 0, 0, 0 }, /* PROXYCTL */
6168 1.1 christos { 0, sizeof (struct fripf), 5010000 }
6169 1.1 christos };
6170 1.1 christos
6171 1.1 christos
6172 1.1 christos /* ------------------------------------------------------------------------ */
6173 1.1 christos /* Function: ipf_inobj */
6174 1.1 christos /* Returns: int - 0 = success, else failure */
6175 1.1 christos /* Parameters: softc(I) - soft context pointerto work with */
6176 1.1 christos /* data(I) - pointer to ioctl data */
6177 1.1 christos /* objp(O) - where to store ipfobj structure */
6178 1.1 christos /* ptr(I) - pointer to data to copy out */
6179 1.1 christos /* type(I) - type of structure being moved */
6180 1.1 christos /* */
6181 1.1 christos /* Copy in the contents of what the ipfobj_t points to. In future, we */
6182 1.1 christos /* add things to check for version numbers, sizes, etc, to make it backward */
6183 1.1 christos /* compatible at the ABI for user land. */
6184 1.1 christos /* If objp is not NULL then we assume that the caller wants to see what is */
6185 1.1 christos /* in the ipfobj_t structure being copied in. As an example, this can tell */
6186 1.1 christos /* the caller what version of ipfilter the ioctl program was written to. */
6187 1.1 christos /* ------------------------------------------------------------------------ */
6188 1.1 christos int
6189 1.2 christos ipf_inobj(ipf_main_softc_t *softc, void *data, ipfobj_t *objp, void *ptr,
6190 1.2 christos int type)
6191 1.1 christos {
6192 1.1 christos ipfobj_t obj;
6193 1.1 christos int error;
6194 1.1 christos int size;
6195 1.1 christos
6196 1.1 christos if ((type < 0) || (type >= IPFOBJ_COUNT)) {
6197 1.1 christos IPFERROR(49);
6198 1.1 christos return EINVAL;
6199 1.1 christos }
6200 1.1 christos
6201 1.1 christos if (objp == NULL)
6202 1.1 christos objp = &obj;
6203 1.1 christos error = BCOPYIN(data, objp, sizeof(*objp));
6204 1.1 christos if (error != 0) {
6205 1.1 christos IPFERROR(124);
6206 1.1 christos return EFAULT;
6207 1.1 christos }
6208 1.1 christos
6209 1.1 christos if (objp->ipfo_type != type) {
6210 1.1 christos IPFERROR(50);
6211 1.1 christos return EINVAL;
6212 1.1 christos }
6213 1.1 christos
6214 1.1 christos if (objp->ipfo_rev >= ipf_objbytes[type][2]) {
6215 1.1 christos if ((ipf_objbytes[type][0] & 1) != 0) {
6216 1.1 christos if (objp->ipfo_size < ipf_objbytes[type][1]) {
6217 1.1 christos IPFERROR(51);
6218 1.1 christos return EINVAL;
6219 1.1 christos }
6220 1.1 christos size = ipf_objbytes[type][1];
6221 1.1 christos } else if (objp->ipfo_size == ipf_objbytes[type][1]) {
6222 1.1 christos size = objp->ipfo_size;
6223 1.1 christos } else {
6224 1.1 christos IPFERROR(52);
6225 1.1 christos return EINVAL;
6226 1.1 christos }
6227 1.1 christos error = COPYIN(objp->ipfo_ptr, ptr, size);
6228 1.1 christos if (error != 0) {
6229 1.1 christos IPFERROR(55);
6230 1.1 christos error = EFAULT;
6231 1.1 christos }
6232 1.1 christos } else {
6233 1.1 christos #ifdef IPFILTER_COMPAT
6234 1.1 christos error = ipf_in_compat(softc, objp, ptr, 0);
6235 1.1 christos #else
6236 1.1 christos IPFERROR(54);
6237 1.1 christos error = EINVAL;
6238 1.1 christos #endif
6239 1.1 christos }
6240 1.1 christos return error;
6241 1.1 christos }
6242 1.1 christos
6243 1.1 christos
6244 1.1 christos /* ------------------------------------------------------------------------ */
6245 1.1 christos /* Function: ipf_inobjsz */
6246 1.1 christos /* Returns: int - 0 = success, else failure */
6247 1.1 christos /* Parameters: softc(I) - soft context pointerto work with */
6248 1.1 christos /* data(I) - pointer to ioctl data */
6249 1.1 christos /* ptr(I) - pointer to store real data in */
6250 1.1 christos /* type(I) - type of structure being moved */
6251 1.1 christos /* sz(I) - size of data to copy */
6252 1.1 christos /* */
6253 1.1 christos /* As per ipf_inobj, except the size of the object to copy in is passed in */
6254 1.1 christos /* but it must not be smaller than the size defined for the type and the */
6255 1.1 christos /* type must allow for varied sized objects. The extra requirement here is */
6256 1.1 christos /* that sz must match the size of the object being passed in - this is not */
6257 1.1 christos /* not possible nor required in ipf_inobj(). */
6258 1.1 christos /* ------------------------------------------------------------------------ */
6259 1.1 christos int
6260 1.2 christos ipf_inobjsz(ipf_main_softc_t *softc, void *data, void *ptr, int type, int sz)
6261 1.1 christos {
6262 1.1 christos ipfobj_t obj;
6263 1.1 christos int error;
6264 1.1 christos
6265 1.1 christos if ((type < 0) || (type >= IPFOBJ_COUNT)) {
6266 1.1 christos IPFERROR(56);
6267 1.1 christos return EINVAL;
6268 1.1 christos }
6269 1.1 christos
6270 1.1 christos error = BCOPYIN(data, &obj, sizeof(obj));
6271 1.1 christos if (error != 0) {
6272 1.1 christos IPFERROR(125);
6273 1.1 christos return EFAULT;
6274 1.1 christos }
6275 1.1 christos
6276 1.1 christos if (obj.ipfo_type != type) {
6277 1.1 christos IPFERROR(58);
6278 1.1 christos return EINVAL;
6279 1.1 christos }
6280 1.1 christos
6281 1.1 christos if (obj.ipfo_rev >= ipf_objbytes[type][2]) {
6282 1.1 christos if (((ipf_objbytes[type][0] & 1) == 0) ||
6283 1.1 christos (sz < ipf_objbytes[type][1])) {
6284 1.1 christos IPFERROR(57);
6285 1.1 christos return EINVAL;
6286 1.1 christos }
6287 1.1 christos error = COPYIN(obj.ipfo_ptr, ptr, sz);
6288 1.1 christos if (error != 0) {
6289 1.1 christos IPFERROR(61);
6290 1.1 christos error = EFAULT;
6291 1.1 christos }
6292 1.1 christos } else {
6293 1.1 christos #ifdef IPFILTER_COMPAT
6294 1.1 christos error = ipf_in_compat(softc, &obj, ptr, sz);
6295 1.1 christos #else
6296 1.1 christos IPFERROR(60);
6297 1.1 christos error = EINVAL;
6298 1.1 christos #endif
6299 1.1 christos }
6300 1.1 christos return error;
6301 1.1 christos }
6302 1.1 christos
6303 1.1 christos
6304 1.1 christos /* ------------------------------------------------------------------------ */
6305 1.1 christos /* Function: ipf_outobjsz */
6306 1.1 christos /* Returns: int - 0 = success, else failure */
6307 1.1 christos /* Parameters: data(I) - pointer to ioctl data */
6308 1.1 christos /* ptr(I) - pointer to store real data in */
6309 1.1 christos /* type(I) - type of structure being moved */
6310 1.1 christos /* sz(I) - size of data to copy */
6311 1.1 christos /* */
6312 1.1 christos /* As per ipf_outobj, except the size of the object to copy out is passed in*/
6313 1.1 christos /* but it must not be smaller than the size defined for the type and the */
6314 1.1 christos /* type must allow for varied sized objects. The extra requirement here is */
6315 1.1 christos /* that sz must match the size of the object being passed in - this is not */
6316 1.1 christos /* not possible nor required in ipf_outobj(). */
6317 1.1 christos /* ------------------------------------------------------------------------ */
6318 1.1 christos int
6319 1.2 christos ipf_outobjsz(ipf_main_softc_t *softc, void *data, void *ptr, int type, int sz)
6320 1.1 christos {
6321 1.1 christos ipfobj_t obj;
6322 1.1 christos int error;
6323 1.1 christos
6324 1.1 christos if ((type < 0) || (type >= IPFOBJ_COUNT)) {
6325 1.1 christos IPFERROR(62);
6326 1.1 christos return EINVAL;
6327 1.1 christos }
6328 1.1 christos
6329 1.1 christos error = BCOPYIN(data, &obj, sizeof(obj));
6330 1.1 christos if (error != 0) {
6331 1.1 christos IPFERROR(127);
6332 1.1 christos return EFAULT;
6333 1.1 christos }
6334 1.1 christos
6335 1.1 christos if (obj.ipfo_type != type) {
6336 1.1 christos IPFERROR(63);
6337 1.1 christos return EINVAL;
6338 1.1 christos }
6339 1.1 christos
6340 1.1 christos if (obj.ipfo_rev >= ipf_objbytes[type][2]) {
6341 1.1 christos if (((ipf_objbytes[type][0] & 1) == 0) ||
6342 1.1 christos (sz < ipf_objbytes[type][1])) {
6343 1.1 christos IPFERROR(146);
6344 1.1 christos return EINVAL;
6345 1.1 christos }
6346 1.1 christos error = COPYOUT(ptr, obj.ipfo_ptr, sz);
6347 1.1 christos if (error != 0) {
6348 1.1 christos IPFERROR(66);
6349 1.1 christos error = EFAULT;
6350 1.1 christos }
6351 1.1 christos } else {
6352 1.1 christos #ifdef IPFILTER_COMPAT
6353 1.1 christos error = ipf_out_compat(softc, &obj, ptr);
6354 1.1 christos #else
6355 1.1 christos IPFERROR(65);
6356 1.1 christos error = EINVAL;
6357 1.1 christos #endif
6358 1.1 christos }
6359 1.1 christos return error;
6360 1.1 christos }
6361 1.1 christos
6362 1.1 christos
6363 1.1 christos /* ------------------------------------------------------------------------ */
6364 1.1 christos /* Function: ipf_outobj */
6365 1.1 christos /* Returns: int - 0 = success, else failure */
6366 1.1 christos /* Parameters: data(I) - pointer to ioctl data */
6367 1.1 christos /* ptr(I) - pointer to store real data in */
6368 1.1 christos /* type(I) - type of structure being moved */
6369 1.1 christos /* */
6370 1.1 christos /* Copy out the contents of what ptr is to where ipfobj points to. In */
6371 1.1 christos /* future, we add things to check for version numbers, sizes, etc, to make */
6372 1.1 christos /* it backward compatible at the ABI for user land. */
6373 1.1 christos /* ------------------------------------------------------------------------ */
6374 1.1 christos int
6375 1.2 christos ipf_outobj(ipf_main_softc_t *softc, void *data, void *ptr, int type)
6376 1.1 christos {
6377 1.1 christos ipfobj_t obj;
6378 1.1 christos int error;
6379 1.1 christos
6380 1.1 christos if ((type < 0) || (type >= IPFOBJ_COUNT)) {
6381 1.1 christos IPFERROR(67);
6382 1.1 christos return EINVAL;
6383 1.1 christos }
6384 1.1 christos
6385 1.1 christos error = BCOPYIN(data, &obj, sizeof(obj));
6386 1.1 christos if (error != 0) {
6387 1.1 christos IPFERROR(126);
6388 1.1 christos return EFAULT;
6389 1.1 christos }
6390 1.1 christos
6391 1.1 christos if (obj.ipfo_type != type) {
6392 1.1 christos IPFERROR(68);
6393 1.1 christos return EINVAL;
6394 1.1 christos }
6395 1.1 christos
6396 1.1 christos if (obj.ipfo_rev >= ipf_objbytes[type][2]) {
6397 1.1 christos if ((ipf_objbytes[type][0] & 1) != 0) {
6398 1.1 christos if (obj.ipfo_size < ipf_objbytes[type][1]) {
6399 1.1 christos IPFERROR(69);
6400 1.1 christos return EINVAL;
6401 1.1 christos }
6402 1.1 christos } else if (obj.ipfo_size != ipf_objbytes[type][1]) {
6403 1.1 christos IPFERROR(70);
6404 1.1 christos return EINVAL;
6405 1.1 christos }
6406 1.1 christos
6407 1.1 christos error = COPYOUT(ptr, obj.ipfo_ptr, obj.ipfo_size);
6408 1.1 christos if (error != 0) {
6409 1.1 christos IPFERROR(73);
6410 1.1 christos error = EFAULT;
6411 1.1 christos }
6412 1.1 christos } else {
6413 1.1 christos #ifdef IPFILTER_COMPAT
6414 1.1 christos error = ipf_out_compat(softc, &obj, ptr);
6415 1.1 christos #else
6416 1.1 christos IPFERROR(72);
6417 1.1 christos error = EINVAL;
6418 1.1 christos #endif
6419 1.1 christos }
6420 1.1 christos return error;
6421 1.1 christos }
6422 1.1 christos
6423 1.1 christos
6424 1.1 christos /* ------------------------------------------------------------------------ */
6425 1.1 christos /* Function: ipf_outobjk */
6426 1.1 christos /* Returns: int - 0 = success, else failure */
6427 1.1 christos /* Parameters: obj(I) - pointer to data description structure */
6428 1.1 christos /* ptr(I) - pointer to kernel data to copy out */
6429 1.1 christos /* */
6430 1.1 christos /* In the above functions, the ipfobj_t structure is copied into the kernel,*/
6431 1.1 christos /* telling ipfilter how to copy out data. In this instance, the ipfobj_t is */
6432 1.1 christos /* already populated with information and now we just need to use it. */
6433 1.1 christos /* There is no need for this function to have a "type" parameter as there */
6434 1.1 christos /* is no point in validating information that comes from the kernel with */
6435 1.1 christos /* itself. */
6436 1.1 christos /* ------------------------------------------------------------------------ */
6437 1.3 darrenr int
6438 1.3 darrenr ipf_outobjk(ipf_main_softc_t *softc, ipfobj_t *obj, void *ptr)
6439 1.1 christos {
6440 1.1 christos int type = obj->ipfo_type;
6441 1.1 christos int error;
6442 1.1 christos
6443 1.1 christos if ((type < 0) || (type >= IPFOBJ_COUNT)) {
6444 1.1 christos IPFERROR(147);
6445 1.1 christos return EINVAL;
6446 1.1 christos }
6447 1.1 christos
6448 1.1 christos if (obj->ipfo_rev >= ipf_objbytes[type][2]) {
6449 1.1 christos if ((ipf_objbytes[type][0] & 1) != 0) {
6450 1.1 christos if (obj->ipfo_size < ipf_objbytes[type][1]) {
6451 1.1 christos IPFERROR(148);
6452 1.1 christos return EINVAL;
6453 1.1 christos }
6454 1.1 christos
6455 1.1 christos } else if (obj->ipfo_size != ipf_objbytes[type][1]) {
6456 1.1 christos IPFERROR(149);
6457 1.1 christos return EINVAL;
6458 1.1 christos }
6459 1.1 christos
6460 1.1 christos error = COPYOUT(ptr, obj->ipfo_ptr, obj->ipfo_size);
6461 1.1 christos if (error != 0) {
6462 1.1 christos IPFERROR(150);
6463 1.1 christos error = EFAULT;
6464 1.1 christos }
6465 1.1 christos } else {
6466 1.1 christos #ifdef IPFILTER_COMPAT
6467 1.1 christos error = ipf_out_compat(softc, obj, ptr);
6468 1.1 christos #else
6469 1.1 christos IPFERROR(151);
6470 1.1 christos error = EINVAL;
6471 1.1 christos #endif
6472 1.1 christos }
6473 1.1 christos return error;
6474 1.1 christos }
6475 1.1 christos
6476 1.1 christos
6477 1.1 christos /* ------------------------------------------------------------------------ */
6478 1.1 christos /* Function: ipf_checkl4sum */
6479 1.1 christos /* Returns: int - 0 = good, -1 = bad, 1 = cannot check */
6480 1.1 christos /* Parameters: fin(I) - pointer to packet information */
6481 1.1 christos /* */
6482 1.1 christos /* If possible, calculate the layer 4 checksum for the packet. If this is */
6483 1.1 christos /* not possible, return without indicating a failure or success but in a */
6484 1.3 darrenr /* way that is ditinguishable. This function should only be called by the */
6485 1.3 darrenr /* ipf_checkv6sum() for each platform. */
6486 1.1 christos /* ------------------------------------------------------------------------ */
6487 1.1 christos int
6488 1.2 christos ipf_checkl4sum(fr_info_t *fin)
6489 1.1 christos {
6490 1.1 christos u_short sum, hdrsum, *csump;
6491 1.1 christos udphdr_t *udp;
6492 1.1 christos int dosum;
6493 1.1 christos
6494 1.1 christos /*
6495 1.1 christos * If the TCP packet isn't a fragment, isn't too short and otherwise
6496 1.1 christos * isn't already considered "bad", then validate the checksum. If
6497 1.1 christos * this check fails then considered the packet to be "bad".
6498 1.1 christos */
6499 1.1 christos if ((fin->fin_flx & (FI_FRAG|FI_SHORT|FI_BAD)) != 0)
6500 1.1 christos return 1;
6501 1.1 christos
6502 1.1 christos csump = NULL;
6503 1.1 christos hdrsum = 0;
6504 1.1 christos dosum = 0;
6505 1.1 christos sum = 0;
6506 1.1 christos
6507 1.3 darrenr switch (fin->fin_p)
6508 1.3 darrenr {
6509 1.3 darrenr case IPPROTO_TCP :
6510 1.3 darrenr csump = &((tcphdr_t *)fin->fin_dp)->th_sum;
6511 1.3 darrenr dosum = 1;
6512 1.3 darrenr break;
6513 1.3 darrenr
6514 1.3 darrenr case IPPROTO_UDP :
6515 1.3 darrenr udp = fin->fin_dp;
6516 1.3 darrenr if (udp->uh_sum != 0) {
6517 1.3 darrenr csump = &udp->uh_sum;
6518 1.1 christos dosum = 1;
6519 1.3 darrenr }
6520 1.3 darrenr break;
6521 1.1 christos
6522 1.3 darrenr #ifdef USE_INET6
6523 1.3 darrenr case IPPROTO_ICMPV6 :
6524 1.3 darrenr csump = &((struct icmp6_hdr *)fin->fin_dp)->icmp6_cksum;
6525 1.3 darrenr dosum = 1;
6526 1.3 darrenr break;
6527 1.3 darrenr #endif
6528 1.1 christos
6529 1.3 darrenr case IPPROTO_ICMP :
6530 1.3 darrenr csump = &((struct icmp *)fin->fin_dp)->icmp_cksum;
6531 1.3 darrenr dosum = 1;
6532 1.3 darrenr break;
6533 1.1 christos
6534 1.3 darrenr default :
6535 1.3 darrenr return 1;
6536 1.3 darrenr /*NOTREACHED*/
6537 1.3 darrenr }
6538 1.1 christos
6539 1.3 darrenr if (csump != NULL)
6540 1.3 darrenr hdrsum = *csump;
6541 1.1 christos
6542 1.3 darrenr if (dosum) {
6543 1.3 darrenr sum = fr_cksum(fin, fin->fin_ip, fin->fin_p, fin->fin_dp);
6544 1.1 christos }
6545 1.1 christos #if !defined(_KERNEL)
6546 1.1 christos if (sum == hdrsum) {
6547 1.1 christos FR_DEBUG(("checkl4sum: %hx == %hx\n", sum, hdrsum));
6548 1.1 christos } else {
6549 1.1 christos FR_DEBUG(("checkl4sum: %hx != %hx\n", sum, hdrsum));
6550 1.1 christos }
6551 1.1 christos #endif
6552 1.3 darrenr DT2(l4sums, u_short, hdrsum, u_short, sum);
6553 1.1 christos if (hdrsum == sum) {
6554 1.3 darrenr fin->fin_cksum = FI_CK_SUMOK;
6555 1.1 christos return 0;
6556 1.1 christos }
6557 1.3 darrenr fin->fin_cksum = FI_CK_BAD;
6558 1.1 christos return -1;
6559 1.1 christos }
6560 1.1 christos
6561 1.1 christos
6562 1.1 christos /* ------------------------------------------------------------------------ */
6563 1.1 christos /* Function: ipf_ifpfillv4addr */
6564 1.1 christos /* Returns: int - 0 = address update, -1 = address not updated */
6565 1.1 christos /* Parameters: atype(I) - type of network address update to perform */
6566 1.1 christos /* sin(I) - pointer to source of address information */
6567 1.1 christos /* mask(I) - pointer to source of netmask information */
6568 1.1 christos /* inp(I) - pointer to destination address store */
6569 1.1 christos /* inpmask(I) - pointer to destination netmask store */
6570 1.1 christos /* */
6571 1.1 christos /* Given a type of network address update (atype) to perform, copy */
6572 1.1 christos /* information from sin/mask into inp/inpmask. If ipnmask is NULL then no */
6573 1.1 christos /* netmask update is performed unless FRI_NETMASKED is passed as atype, in */
6574 1.1 christos /* which case the operation fails. For all values of atype other than */
6575 1.1 christos /* FRI_NETMASKED, if inpmask is non-NULL then the mask is set to an all 1s */
6576 1.1 christos /* value. */
6577 1.1 christos /* ------------------------------------------------------------------------ */
6578 1.1 christos int
6579 1.2 christos ipf_ifpfillv4addr(int atype, struct sockaddr_in *sin, struct sockaddr_in *mask,
6580 1.2 christos struct in_addr *inp, struct in_addr *inpmask)
6581 1.1 christos {
6582 1.1 christos if (inpmask != NULL && atype != FRI_NETMASKED)
6583 1.1 christos inpmask->s_addr = 0xffffffff;
6584 1.1 christos
6585 1.1 christos if (atype == FRI_NETWORK || atype == FRI_NETMASKED) {
6586 1.1 christos if (atype == FRI_NETMASKED) {
6587 1.1 christos if (inpmask == NULL)
6588 1.1 christos return -1;
6589 1.1 christos inpmask->s_addr = mask->sin_addr.s_addr;
6590 1.1 christos }
6591 1.1 christos inp->s_addr = sin->sin_addr.s_addr & mask->sin_addr.s_addr;
6592 1.1 christos } else {
6593 1.1 christos inp->s_addr = sin->sin_addr.s_addr;
6594 1.1 christos }
6595 1.1 christos return 0;
6596 1.1 christos }
6597 1.1 christos
6598 1.1 christos
6599 1.1 christos #ifdef USE_INET6
6600 1.1 christos /* ------------------------------------------------------------------------ */
6601 1.1 christos /* Function: ipf_ifpfillv6addr */
6602 1.1 christos /* Returns: int - 0 = address update, -1 = address not updated */
6603 1.1 christos /* Parameters: atype(I) - type of network address update to perform */
6604 1.1 christos /* sin(I) - pointer to source of address information */
6605 1.1 christos /* mask(I) - pointer to source of netmask information */
6606 1.1 christos /* inp(I) - pointer to destination address store */
6607 1.1 christos /* inpmask(I) - pointer to destination netmask store */
6608 1.1 christos /* */
6609 1.1 christos /* Given a type of network address update (atype) to perform, copy */
6610 1.1 christos /* information from sin/mask into inp/inpmask. If ipnmask is NULL then no */
6611 1.1 christos /* netmask update is performed unless FRI_NETMASKED is passed as atype, in */
6612 1.1 christos /* which case the operation fails. For all values of atype other than */
6613 1.1 christos /* FRI_NETMASKED, if inpmask is non-NULL then the mask is set to an all 1s */
6614 1.1 christos /* value. */
6615 1.1 christos /* ------------------------------------------------------------------------ */
6616 1.1 christos int
6617 1.2 christos ipf_ifpfillv6addr(int atype, struct sockaddr_in6 *sin,
6618 1.2 christos struct sockaddr_in6 *mask, i6addr_t *inp, i6addr_t *inpmask)
6619 1.1 christos {
6620 1.1 christos i6addr_t *src, *and;
6621 1.1 christos
6622 1.1 christos src = (i6addr_t *)&sin->sin6_addr;
6623 1.1 christos and = (i6addr_t *)&mask->sin6_addr;
6624 1.1 christos
6625 1.1 christos if (inpmask != NULL && atype != FRI_NETMASKED) {
6626 1.1 christos inpmask->i6[0] = 0xffffffff;
6627 1.1 christos inpmask->i6[1] = 0xffffffff;
6628 1.1 christos inpmask->i6[2] = 0xffffffff;
6629 1.1 christos inpmask->i6[3] = 0xffffffff;
6630 1.1 christos }
6631 1.1 christos
6632 1.1 christos if (atype == FRI_NETWORK || atype == FRI_NETMASKED) {
6633 1.1 christos if (atype == FRI_NETMASKED) {
6634 1.1 christos if (inpmask == NULL)
6635 1.1 christos return -1;
6636 1.1 christos inpmask->i6[0] = and->i6[0];
6637 1.1 christos inpmask->i6[1] = and->i6[1];
6638 1.1 christos inpmask->i6[2] = and->i6[2];
6639 1.1 christos inpmask->i6[3] = and->i6[3];
6640 1.1 christos }
6641 1.1 christos
6642 1.1 christos inp->i6[0] = src->i6[0] & and->i6[0];
6643 1.1 christos inp->i6[1] = src->i6[1] & and->i6[1];
6644 1.1 christos inp->i6[2] = src->i6[2] & and->i6[2];
6645 1.1 christos inp->i6[3] = src->i6[3] & and->i6[3];
6646 1.1 christos } else {
6647 1.1 christos inp->i6[0] = src->i6[0];
6648 1.1 christos inp->i6[1] = src->i6[1];
6649 1.1 christos inp->i6[2] = src->i6[2];
6650 1.1 christos inp->i6[3] = src->i6[3];
6651 1.1 christos }
6652 1.1 christos return 0;
6653 1.1 christos }
6654 1.1 christos #endif
6655 1.1 christos
6656 1.1 christos
6657 1.1 christos /* ------------------------------------------------------------------------ */
6658 1.1 christos /* Function: ipf_matchtag */
6659 1.1 christos /* Returns: 0 == mismatch, 1 == match. */
6660 1.1 christos /* Parameters: tag1(I) - pointer to first tag to compare */
6661 1.1 christos /* tag2(I) - pointer to second tag to compare */
6662 1.1 christos /* */
6663 1.1 christos /* Returns true (non-zero) or false(0) if the two tag structures can be */
6664 1.1 christos /* considered to be a match or not match, respectively. The tag is 16 */
6665 1.1 christos /* bytes long (16 characters) but that is overlayed with 4 32bit ints so */
6666 1.1 christos /* compare the ints instead, for speed. tag1 is the master of the */
6667 1.1 christos /* comparison. This function should only be called with both tag1 and tag2 */
6668 1.1 christos /* as non-NULL pointers. */
6669 1.1 christos /* ------------------------------------------------------------------------ */
6670 1.1 christos int
6671 1.2 christos ipf_matchtag(ipftag_t *tag1, ipftag_t *tag2)
6672 1.1 christos {
6673 1.1 christos if (tag1 == tag2)
6674 1.1 christos return 1;
6675 1.1 christos
6676 1.1 christos if ((tag1->ipt_num[0] == 0) && (tag2->ipt_num[0] == 0))
6677 1.1 christos return 1;
6678 1.1 christos
6679 1.1 christos if ((tag1->ipt_num[0] == tag2->ipt_num[0]) &&
6680 1.1 christos (tag1->ipt_num[1] == tag2->ipt_num[1]) &&
6681 1.1 christos (tag1->ipt_num[2] == tag2->ipt_num[2]) &&
6682 1.1 christos (tag1->ipt_num[3] == tag2->ipt_num[3]))
6683 1.1 christos return 1;
6684 1.1 christos return 0;
6685 1.1 christos }
6686 1.1 christos
6687 1.1 christos
6688 1.1 christos /* ------------------------------------------------------------------------ */
6689 1.1 christos /* Function: ipf_coalesce */
6690 1.1 christos /* Returns: 1 == success, -1 == failure, 0 == no change */
6691 1.1 christos /* Parameters: fin(I) - pointer to packet information */
6692 1.1 christos /* */
6693 1.1 christos /* Attempt to get all of the packet data into a single, contiguous buffer. */
6694 1.1 christos /* If this call returns a failure then the buffers have also been freed. */
6695 1.1 christos /* ------------------------------------------------------------------------ */
6696 1.1 christos int
6697 1.2 christos ipf_coalesce(fr_info_t *fin)
6698 1.1 christos {
6699 1.1 christos
6700 1.1 christos if ((fin->fin_flx & FI_COALESCE) != 0)
6701 1.1 christos return 1;
6702 1.1 christos
6703 1.1 christos /*
6704 1.1 christos * If the mbuf pointers indicate that there is no mbuf to work with,
6705 1.1 christos * return but do not indicate success or failure.
6706 1.1 christos */
6707 1.1 christos if (fin->fin_m == NULL || fin->fin_mp == NULL)
6708 1.1 christos return 0;
6709 1.1 christos
6710 1.1 christos #if defined(_KERNEL)
6711 1.1 christos if (ipf_pullup(fin->fin_m, fin, fin->fin_plen) == NULL) {
6712 1.1 christos ipf_main_softc_t *softc = fin->fin_main_soft;
6713 1.1 christos
6714 1.1 christos DT1(frb_coalesce, fr_info_t *, fin);
6715 1.1 christos LBUMP(ipf_stats[fin->fin_out].fr_badcoalesces);
6716 1.1 christos # ifdef MENTAT
6717 1.1 christos FREE_MB_T(*fin->fin_mp);
6718 1.1 christos # endif
6719 1.1 christos fin->fin_reason = FRB_COALESCE;
6720 1.1 christos *fin->fin_mp = NULL;
6721 1.1 christos fin->fin_m = NULL;
6722 1.1 christos return -1;
6723 1.1 christos }
6724 1.1 christos #else
6725 1.1 christos fin = fin; /* LINT */
6726 1.1 christos #endif
6727 1.1 christos return 1;
6728 1.1 christos }
6729 1.1 christos
6730 1.1 christos
6731 1.1 christos /*
6732 1.1 christos * The following table lists all of the tunable variables that can be
6733 1.1 christos * accessed via SIOCIPFGET/SIOCIPFSET/SIOCIPFGETNEXt. The format of each row
6734 1.1 christos * in the table below is as follows:
6735 1.1 christos *
6736 1.1 christos * pointer to value, name of value, minimum, maximum, size of the value's
6737 1.1 christos * container, value attribute flags
6738 1.1 christos *
6739 1.1 christos * For convienience, IPFT_RDONLY means the value is read-only, IPFT_WRDISABLED
6740 1.1 christos * means the value can only be written to when IPFilter is loaded but disabled.
6741 1.1 christos * The obvious implication is if neither of these are set then the value can be
6742 1.1 christos * changed at any time without harm.
6743 1.1 christos */
6744 1.1 christos
6745 1.1 christos
6746 1.1 christos /* ------------------------------------------------------------------------ */
6747 1.1 christos /* Function: ipf_tune_findbycookie */
6748 1.1 christos /* Returns: NULL = search failed, else pointer to tune struct */
6749 1.1 christos /* Parameters: cookie(I) - cookie value to search for amongst tuneables */
6750 1.1 christos /* next(O) - pointer to place to store the cookie for the */
6751 1.1 christos /* "next" tuneable, if it is desired. */
6752 1.1 christos /* */
6753 1.1 christos /* This function is used to walk through all of the existing tunables with */
6754 1.1 christos /* successive calls. It searches the known tunables for the one which has */
6755 1.1 christos /* a matching value for "cookie" - ie its address. When returning a match, */
6756 1.1 christos /* the next one to be found may be returned inside next. */
6757 1.1 christos /* ------------------------------------------------------------------------ */
6758 1.1 christos static ipftuneable_t *
6759 1.2 christos ipf_tune_findbycookie(ipftuneable_t **ptop, void *cookie, void **next)
6760 1.1 christos {
6761 1.1 christos ipftuneable_t *ta, **tap;
6762 1.1 christos
6763 1.1 christos for (ta = *ptop; ta->ipft_name != NULL; ta++)
6764 1.1 christos if (ta == cookie) {
6765 1.1 christos if (next != NULL) {
6766 1.1 christos /*
6767 1.1 christos * If the next entry in the array has a name
6768 1.1 christos * present, then return a pointer to it for
6769 1.1 christos * where to go next, else return a pointer to
6770 1.1 christos * the dynaminc list as a key to search there
6771 1.1 christos * next. This facilitates a weak linking of
6772 1.1 christos * the two "lists" together.
6773 1.1 christos */
6774 1.1 christos if ((ta + 1)->ipft_name != NULL)
6775 1.1 christos *next = ta + 1;
6776 1.1 christos else
6777 1.1 christos *next = ptop;
6778 1.1 christos }
6779 1.1 christos return ta;
6780 1.1 christos }
6781 1.1 christos
6782 1.1 christos for (tap = ptop; (ta = *tap) != NULL; tap = &ta->ipft_next)
6783 1.1 christos if (tap == cookie) {
6784 1.1 christos if (next != NULL)
6785 1.1 christos *next = &ta->ipft_next;
6786 1.1 christos return ta;
6787 1.1 christos }
6788 1.1 christos
6789 1.1 christos if (next != NULL)
6790 1.1 christos *next = NULL;
6791 1.1 christos return NULL;
6792 1.1 christos }
6793 1.1 christos
6794 1.1 christos
6795 1.1 christos /* ------------------------------------------------------------------------ */
6796 1.1 christos /* Function: ipf_tune_findbyname */
6797 1.1 christos /* Returns: NULL = search failed, else pointer to tune struct */
6798 1.1 christos /* Parameters: name(I) - name of the tuneable entry to find. */
6799 1.1 christos /* */
6800 1.1 christos /* Search the static array of tuneables and the list of dynamic tuneables */
6801 1.1 christos /* for an entry with a matching name. If we can find one, return a pointer */
6802 1.1 christos /* to the matching structure. */
6803 1.1 christos /* ------------------------------------------------------------------------ */
6804 1.1 christos static ipftuneable_t *
6805 1.2 christos ipf_tune_findbyname(ipftuneable_t *top, const char *name)
6806 1.1 christos {
6807 1.1 christos ipftuneable_t *ta;
6808 1.1 christos
6809 1.1 christos for (ta = top; ta != NULL; ta = ta->ipft_next)
6810 1.1 christos if (!strcmp(ta->ipft_name, name)) {
6811 1.1 christos return ta;
6812 1.1 christos }
6813 1.1 christos
6814 1.1 christos return NULL;
6815 1.1 christos }
6816 1.1 christos
6817 1.1 christos
6818 1.1 christos /* ------------------------------------------------------------------------ */
6819 1.1 christos /* Function: ipf_tune_add_array */
6820 1.1 christos /* Returns: int - 0 == success, else failure */
6821 1.1 christos /* Parameters: newtune - pointer to new tune array to add to tuneables */
6822 1.1 christos /* */
6823 1.1 christos /* Appends tune structures from the array passed in (newtune) to the end of */
6824 1.1 christos /* the current list of "dynamic" tuneable parameters. */
6825 1.1 christos /* If any entry to be added is already present (by name) then the operation */
6826 1.1 christos /* is aborted - entries that have been added are removed before returning. */
6827 1.1 christos /* An entry with no name (NULL) is used as the indication that the end of */
6828 1.1 christos /* the array has been reached. */
6829 1.1 christos /* ------------------------------------------------------------------------ */
6830 1.1 christos int
6831 1.2 christos ipf_tune_add_array(ipf_main_softc_t *softc, ipftuneable_t *newtune)
6832 1.1 christos {
6833 1.1 christos ipftuneable_t *nt, *dt;
6834 1.1 christos int error = 0;
6835 1.1 christos
6836 1.1 christos for (nt = newtune; nt->ipft_name != NULL; nt++) {
6837 1.1 christos error = ipf_tune_add(softc, nt);
6838 1.1 christos if (error != 0) {
6839 1.1 christos for (dt = newtune; dt != nt; dt++) {
6840 1.1 christos (void) ipf_tune_del(softc, dt);
6841 1.1 christos }
6842 1.1 christos }
6843 1.1 christos }
6844 1.1 christos
6845 1.1 christos return error;
6846 1.1 christos }
6847 1.1 christos
6848 1.1 christos
6849 1.1 christos /* ------------------------------------------------------------------------ */
6850 1.1 christos /* Function: ipf_tune_array_link */
6851 1.1 christos /* Returns: 0 == success, -1 == failure */
6852 1.1 christos /* Parameters: softc(I) - soft context pointerto work with */
6853 1.1 christos /* array(I) - pointer to an array of tuneables */
6854 1.1 christos /* */
6855 1.1 christos /* Given an array of tunables (array), append them to the current list of */
6856 1.1 christos /* tuneables for this context (softc->ipf_tuners.) To properly prepare the */
6857 1.1 christos /* the array for being appended to the list, initialise all of the next */
6858 1.1 christos /* pointers so we don't need to walk parts of it with ++ and others with */
6859 1.1 christos /* next. The array is expected to have an entry with a NULL name as the */
6860 1.1 christos /* terminator. Trying to add an array with no non-NULL names will return as */
6861 1.1 christos /* a failure. */
6862 1.1 christos /* ------------------------------------------------------------------------ */
6863 1.1 christos int
6864 1.2 christos ipf_tune_array_link(ipf_main_softc_t *softc, ipftuneable_t *array)
6865 1.1 christos {
6866 1.1 christos ipftuneable_t *t, **p;
6867 1.1 christos
6868 1.1 christos t = array;
6869 1.1 christos if (t->ipft_name == NULL)
6870 1.1 christos return -1;
6871 1.1 christos
6872 1.1 christos for (; t[1].ipft_name != NULL; t++)
6873 1.1 christos t[0].ipft_next = &t[1];
6874 1.1 christos t->ipft_next = NULL;
6875 1.1 christos
6876 1.1 christos /*
6877 1.1 christos * Since a pointer to the last entry isn't kept, we need to find it
6878 1.1 christos * each time we want to add new variables to the list.
6879 1.1 christos */
6880 1.1 christos for (p = &softc->ipf_tuners; (t = *p) != NULL; p = &t->ipft_next)
6881 1.1 christos if (t->ipft_name == NULL)
6882 1.1 christos break;
6883 1.1 christos *p = array;
6884 1.1 christos
6885 1.1 christos return 0;
6886 1.1 christos }
6887 1.1 christos
6888 1.1 christos
6889 1.1 christos /* ------------------------------------------------------------------------ */
6890 1.1 christos /* Function: ipf_tune_array_unlink */
6891 1.1 christos /* Returns: 0 == success, -1 == failure */
6892 1.1 christos /* Parameters: softc(I) - soft context pointerto work with */
6893 1.1 christos /* array(I) - pointer to an array of tuneables */
6894 1.1 christos /* */
6895 1.1 christos /* ------------------------------------------------------------------------ */
6896 1.1 christos int
6897 1.2 christos ipf_tune_array_unlink(ipf_main_softc_t *softc, ipftuneable_t *array)
6898 1.1 christos {
6899 1.1 christos ipftuneable_t *t, **p;
6900 1.1 christos
6901 1.1 christos for (p = &softc->ipf_tuners; (t = *p) != NULL; p = &t->ipft_next)
6902 1.1 christos if (t == array)
6903 1.1 christos break;
6904 1.1 christos if (t == NULL)
6905 1.1 christos return -1;
6906 1.1 christos
6907 1.1 christos for (; t[1].ipft_name != NULL; t++)
6908 1.1 christos ;
6909 1.1 christos
6910 1.1 christos *p = t->ipft_next;
6911 1.1 christos
6912 1.1 christos return 0;
6913 1.1 christos }
6914 1.1 christos
6915 1.1 christos
6916 1.1 christos /* ------------------------------------------------------------------------ */
6917 1.1 christos /* Function: ipf_tune_array_copy */
6918 1.1 christos /* Returns: NULL = failure, else pointer to new array */
6919 1.1 christos /* Parameters: base(I) - pointer to structure base */
6920 1.1 christos /* size(I) - size of the array at template */
6921 1.1 christos /* template(I) - original array to copy */
6922 1.1 christos /* */
6923 1.1 christos /* Allocate memory for a new set of tuneable values and copy everything */
6924 1.1 christos /* from template into the new region of memory. The new region is full of */
6925 1.1 christos /* uninitialised pointers (ipft_next) so set them up. Now, ipftp_offset... */
6926 1.1 christos /* */
6927 1.1 christos /* NOTE: the following assumes that sizeof(long) == sizeof(void *) */
6928 1.1 christos /* In the array template, ipftp_offset is the offset (in bytes) of the */
6929 1.1 christos /* location of the tuneable value inside the structure pointed to by base. */
6930 1.1 christos /* As ipftp_offset is a union over the pointers to the tuneable values, if */
6931 1.1 christos /* we add base to the copy's ipftp_offset, copy ends up with a pointer in */
6932 1.1 christos /* ipftp_void that points to the stored value. */
6933 1.1 christos /* ------------------------------------------------------------------------ */
6934 1.1 christos ipftuneable_t *
6935 1.23 maxv ipf_tune_array_copy(void *base, size_t size, const ipftuneable_t *template)
6936 1.1 christos {
6937 1.1 christos ipftuneable_t *copy;
6938 1.1 christos int i;
6939 1.1 christos
6940 1.1 christos
6941 1.1 christos KMALLOCS(copy, ipftuneable_t *, size);
6942 1.1 christos if (copy == NULL) {
6943 1.1 christos return NULL;
6944 1.1 christos }
6945 1.1 christos bcopy(template, copy, size);
6946 1.1 christos
6947 1.1 christos for (i = 0; copy[i].ipft_name; i++) {
6948 1.1 christos copy[i].ipft_una.ipftp_offset += (u_long)base;
6949 1.1 christos copy[i].ipft_next = copy + i + 1;
6950 1.1 christos }
6951 1.1 christos
6952 1.1 christos return copy;
6953 1.1 christos }
6954 1.1 christos
6955 1.1 christos
6956 1.1 christos /* ------------------------------------------------------------------------ */
6957 1.1 christos /* Function: ipf_tune_add */
6958 1.1 christos /* Returns: int - 0 == success, else failure */
6959 1.1 christos /* Parameters: newtune - pointer to new tune entry to add to tuneables */
6960 1.1 christos /* */
6961 1.1 christos /* Appends tune structures from the array passed in (newtune) to the end of */
6962 1.1 christos /* the current list of "dynamic" tuneable parameters. Once added, the */
6963 1.1 christos /* owner of the object is not expected to ever change "ipft_next". */
6964 1.1 christos /* ------------------------------------------------------------------------ */
6965 1.1 christos int
6966 1.2 christos ipf_tune_add(ipf_main_softc_t *softc, ipftuneable_t *newtune)
6967 1.1 christos {
6968 1.1 christos ipftuneable_t *ta, **tap;
6969 1.1 christos
6970 1.1 christos ta = ipf_tune_findbyname(softc->ipf_tuners, newtune->ipft_name);
6971 1.1 christos if (ta != NULL) {
6972 1.1 christos IPFERROR(74);
6973 1.1 christos return EEXIST;
6974 1.1 christos }
6975 1.1 christos
6976 1.1 christos for (tap = &softc->ipf_tuners; *tap != NULL; tap = &(*tap)->ipft_next)
6977 1.1 christos ;
6978 1.1 christos
6979 1.1 christos newtune->ipft_next = NULL;
6980 1.1 christos *tap = newtune;
6981 1.1 christos return 0;
6982 1.1 christos }
6983 1.1 christos
6984 1.1 christos
6985 1.1 christos /* ------------------------------------------------------------------------ */
6986 1.1 christos /* Function: ipf_tune_del */
6987 1.1 christos /* Returns: int - 0 == success, else failure */
6988 1.1 christos /* Parameters: oldtune - pointer to tune entry to remove from the list of */
6989 1.1 christos /* current dynamic tuneables */
6990 1.1 christos /* */
6991 1.1 christos /* Search for the tune structure, by pointer, in the list of those that are */
6992 1.1 christos /* dynamically added at run time. If found, adjust the list so that this */
6993 1.1 christos /* structure is no longer part of it. */
6994 1.1 christos /* ------------------------------------------------------------------------ */
6995 1.1 christos int
6996 1.2 christos ipf_tune_del(ipf_main_softc_t *softc, ipftuneable_t *oldtune)
6997 1.1 christos {
6998 1.1 christos ipftuneable_t *ta, **tap;
6999 1.1 christos int error = 0;
7000 1.1 christos
7001 1.1 christos for (tap = &softc->ipf_tuners; (ta = *tap) != NULL;
7002 1.1 christos tap = &ta->ipft_next) {
7003 1.1 christos if (ta == oldtune) {
7004 1.1 christos *tap = oldtune->ipft_next;
7005 1.1 christos oldtune->ipft_next = NULL;
7006 1.1 christos break;
7007 1.1 christos }
7008 1.1 christos }
7009 1.1 christos
7010 1.1 christos if (ta == NULL) {
7011 1.1 christos error = ESRCH;
7012 1.1 christos IPFERROR(75);
7013 1.1 christos }
7014 1.1 christos return error;
7015 1.1 christos }
7016 1.1 christos
7017 1.1 christos
7018 1.1 christos /* ------------------------------------------------------------------------ */
7019 1.1 christos /* Function: ipf_tune_del_array */
7020 1.1 christos /* Returns: int - 0 == success, else failure */
7021 1.1 christos /* Parameters: oldtune - pointer to tuneables array */
7022 1.1 christos /* */
7023 1.1 christos /* Remove each tuneable entry in the array from the list of "dynamic" */
7024 1.1 christos /* tunables. If one entry should fail to be found, an error will be */
7025 1.1 christos /* returned and no further ones removed. */
7026 1.1 christos /* An entry with a NULL name is used as the indicator of the last entry in */
7027 1.1 christos /* the array. */
7028 1.1 christos /* ------------------------------------------------------------------------ */
7029 1.1 christos int
7030 1.2 christos ipf_tune_del_array(ipf_main_softc_t *softc, ipftuneable_t *oldtune)
7031 1.1 christos {
7032 1.1 christos ipftuneable_t *ot;
7033 1.1 christos int error = 0;
7034 1.1 christos
7035 1.1 christos for (ot = oldtune; ot->ipft_name != NULL; ot++) {
7036 1.1 christos error = ipf_tune_del(softc, ot);
7037 1.1 christos if (error != 0)
7038 1.1 christos break;
7039 1.1 christos }
7040 1.1 christos
7041 1.1 christos return error;
7042 1.1 christos
7043 1.1 christos }
7044 1.1 christos
7045 1.1 christos
7046 1.1 christos /* ------------------------------------------------------------------------ */
7047 1.1 christos /* Function: ipf_tune */
7048 1.1 christos /* Returns: int - 0 == success, else failure */
7049 1.1 christos /* Parameters: cmd(I) - ioctl command number */
7050 1.1 christos /* data(I) - pointer to ioctl data structure */
7051 1.1 christos /* */
7052 1.1 christos /* Implement handling of SIOCIPFGETNEXT, SIOCIPFGET and SIOCIPFSET. These */
7053 1.1 christos /* three ioctls provide the means to access and control global variables */
7054 1.1 christos /* within IPFilter, allowing (for example) timeouts and table sizes to be */
7055 1.1 christos /* changed without rebooting, reloading or recompiling. The initialisation */
7056 1.1 christos /* and 'destruction' routines of the various components of ipfilter are all */
7057 1.1 christos /* each responsible for handling their own values being too big. */
7058 1.1 christos /* ------------------------------------------------------------------------ */
7059 1.1 christos int
7060 1.2 christos ipf_ipftune(ipf_main_softc_t *softc, ioctlcmd_t cmd, void *data)
7061 1.1 christos {
7062 1.1 christos ipftuneable_t *ta;
7063 1.1 christos ipftune_t tu;
7064 1.1 christos void *cookie;
7065 1.1 christos int error;
7066 1.1 christos
7067 1.1 christos error = ipf_inobj(softc, data, NULL, &tu, IPFOBJ_TUNEABLE);
7068 1.1 christos if (error != 0)
7069 1.1 christos return error;
7070 1.1 christos
7071 1.1 christos tu.ipft_name[sizeof(tu.ipft_name) - 1] = '\0';
7072 1.1 christos cookie = tu.ipft_cookie;
7073 1.1 christos ta = NULL;
7074 1.1 christos
7075 1.1 christos switch (cmd)
7076 1.1 christos {
7077 1.1 christos case SIOCIPFGETNEXT :
7078 1.1 christos /*
7079 1.1 christos * If cookie is non-NULL, assume it to be a pointer to the last
7080 1.1 christos * entry we looked at, so find it (if possible) and return a
7081 1.1 christos * pointer to the next one after it. The last entry in the
7082 1.1 christos * the table is a NULL entry, so when we get to it, set cookie
7083 1.1 christos * to NULL and return that, indicating end of list, erstwhile
7084 1.1 christos * if we come in with cookie set to NULL, we are starting anew
7085 1.1 christos * at the front of the list.
7086 1.1 christos */
7087 1.1 christos if (cookie != NULL) {
7088 1.1 christos ta = ipf_tune_findbycookie(&softc->ipf_tuners,
7089 1.1 christos cookie, &tu.ipft_cookie);
7090 1.1 christos } else {
7091 1.1 christos ta = softc->ipf_tuners;
7092 1.1 christos tu.ipft_cookie = ta + 1;
7093 1.1 christos }
7094 1.1 christos if (ta != NULL) {
7095 1.1 christos /*
7096 1.1 christos * Entry found, but does the data pointed to by that
7097 1.1 christos * row fit in what we can return?
7098 1.1 christos */
7099 1.1 christos if (ta->ipft_sz > sizeof(tu.ipft_un)) {
7100 1.1 christos IPFERROR(76);
7101 1.1 christos return EINVAL;
7102 1.1 christos }
7103 1.1 christos
7104 1.1 christos tu.ipft_vlong = 0;
7105 1.1 christos if (ta->ipft_sz == sizeof(u_long))
7106 1.1 christos tu.ipft_vlong = *ta->ipft_plong;
7107 1.1 christos else if (ta->ipft_sz == sizeof(u_int))
7108 1.1 christos tu.ipft_vint = *ta->ipft_pint;
7109 1.1 christos else if (ta->ipft_sz == sizeof(u_short))
7110 1.1 christos tu.ipft_vshort = *ta->ipft_pshort;
7111 1.1 christos else if (ta->ipft_sz == sizeof(u_char))
7112 1.1 christos tu.ipft_vchar = *ta->ipft_pchar;
7113 1.1 christos
7114 1.1 christos tu.ipft_sz = ta->ipft_sz;
7115 1.1 christos tu.ipft_min = ta->ipft_min;
7116 1.1 christos tu.ipft_max = ta->ipft_max;
7117 1.1 christos tu.ipft_flags = ta->ipft_flags;
7118 1.1 christos bcopy(ta->ipft_name, tu.ipft_name,
7119 1.1 christos MIN(sizeof(tu.ipft_name),
7120 1.1 christos strlen(ta->ipft_name) + 1));
7121 1.1 christos }
7122 1.1 christos error = ipf_outobj(softc, data, &tu, IPFOBJ_TUNEABLE);
7123 1.1 christos break;
7124 1.1 christos
7125 1.1 christos case SIOCIPFGET :
7126 1.1 christos case SIOCIPFSET :
7127 1.1 christos /*
7128 1.1 christos * Search by name or by cookie value for a particular entry
7129 1.1 christos * in the tuning paramter table.
7130 1.1 christos */
7131 1.1 christos IPFERROR(77);
7132 1.1 christos error = ESRCH;
7133 1.1 christos if (cookie != NULL) {
7134 1.1 christos ta = ipf_tune_findbycookie(&softc->ipf_tuners,
7135 1.1 christos cookie, NULL);
7136 1.1 christos if (ta != NULL)
7137 1.1 christos error = 0;
7138 1.1 christos } else if (tu.ipft_name[0] != '\0') {
7139 1.1 christos ta = ipf_tune_findbyname(softc->ipf_tuners,
7140 1.1 christos tu.ipft_name);
7141 1.1 christos if (ta != NULL)
7142 1.1 christos error = 0;
7143 1.1 christos }
7144 1.1 christos if (error != 0)
7145 1.1 christos break;
7146 1.1 christos
7147 1.1 christos if (cmd == (ioctlcmd_t)SIOCIPFGET) {
7148 1.1 christos /*
7149 1.1 christos * Fetch the tuning parameters for a particular value
7150 1.1 christos */
7151 1.1 christos tu.ipft_vlong = 0;
7152 1.1 christos if (ta->ipft_sz == sizeof(u_long))
7153 1.1 christos tu.ipft_vlong = *ta->ipft_plong;
7154 1.1 christos else if (ta->ipft_sz == sizeof(u_int))
7155 1.1 christos tu.ipft_vint = *ta->ipft_pint;
7156 1.1 christos else if (ta->ipft_sz == sizeof(u_short))
7157 1.1 christos tu.ipft_vshort = *ta->ipft_pshort;
7158 1.1 christos else if (ta->ipft_sz == sizeof(u_char))
7159 1.1 christos tu.ipft_vchar = *ta->ipft_pchar;
7160 1.1 christos tu.ipft_cookie = ta;
7161 1.1 christos tu.ipft_sz = ta->ipft_sz;
7162 1.1 christos tu.ipft_min = ta->ipft_min;
7163 1.1 christos tu.ipft_max = ta->ipft_max;
7164 1.1 christos tu.ipft_flags = ta->ipft_flags;
7165 1.1 christos error = ipf_outobj(softc, data, &tu, IPFOBJ_TUNEABLE);
7166 1.1 christos
7167 1.1 christos } else if (cmd == (ioctlcmd_t)SIOCIPFSET) {
7168 1.1 christos /*
7169 1.1 christos * Set an internal parameter. The hard part here is
7170 1.1 christos * getting the new value safely and correctly out of
7171 1.1 christos * the kernel (given we only know its size, not type.)
7172 1.1 christos */
7173 1.1 christos u_long in;
7174 1.1 christos
7175 1.1 christos if (((ta->ipft_flags & IPFT_WRDISABLED) != 0) &&
7176 1.1 christos (softc->ipf_running > 0)) {
7177 1.1 christos IPFERROR(78);
7178 1.1 christos error = EBUSY;
7179 1.1 christos break;
7180 1.1 christos }
7181 1.1 christos
7182 1.1 christos in = tu.ipft_vlong;
7183 1.1 christos if (in < ta->ipft_min || in > ta->ipft_max) {
7184 1.1 christos IPFERROR(79);
7185 1.1 christos error = EINVAL;
7186 1.1 christos break;
7187 1.1 christos }
7188 1.1 christos
7189 1.1 christos if (ta->ipft_func != NULL) {
7190 1.1 christos SPL_INT(s);
7191 1.1 christos
7192 1.1 christos SPL_NET(s);
7193 1.1 christos error = (*ta->ipft_func)(softc, ta,
7194 1.1 christos &tu.ipft_un);
7195 1.1 christos SPL_X(s);
7196 1.1 christos
7197 1.1 christos } else if (ta->ipft_sz == sizeof(u_long)) {
7198 1.1 christos tu.ipft_vlong = *ta->ipft_plong;
7199 1.1 christos *ta->ipft_plong = in;
7200 1.1 christos
7201 1.1 christos } else if (ta->ipft_sz == sizeof(u_int)) {
7202 1.1 christos tu.ipft_vint = *ta->ipft_pint;
7203 1.1 christos *ta->ipft_pint = (u_int)(in & 0xffffffff);
7204 1.1 christos
7205 1.1 christos } else if (ta->ipft_sz == sizeof(u_short)) {
7206 1.1 christos tu.ipft_vshort = *ta->ipft_pshort;
7207 1.1 christos *ta->ipft_pshort = (u_short)(in & 0xffff);
7208 1.1 christos
7209 1.1 christos } else if (ta->ipft_sz == sizeof(u_char)) {
7210 1.1 christos tu.ipft_vchar = *ta->ipft_pchar;
7211 1.1 christos *ta->ipft_pchar = (u_char)(in & 0xff);
7212 1.1 christos }
7213 1.1 christos error = ipf_outobj(softc, data, &tu, IPFOBJ_TUNEABLE);
7214 1.1 christos }
7215 1.1 christos break;
7216 1.1 christos
7217 1.1 christos default :
7218 1.1 christos IPFERROR(80);
7219 1.1 christos error = EINVAL;
7220 1.1 christos break;
7221 1.1 christos }
7222 1.1 christos
7223 1.1 christos return error;
7224 1.1 christos }
7225 1.1 christos
7226 1.1 christos
7227 1.1 christos /* ------------------------------------------------------------------------ */
7228 1.1 christos /* Function: ipf_zerostats */
7229 1.1 christos /* Returns: int - 0 = success, else failure */
7230 1.1 christos /* Parameters: data(O) - pointer to pointer for copying data back to */
7231 1.1 christos /* */
7232 1.1 christos /* Copies the current statistics out to userspace and then zero's the */
7233 1.1 christos /* current ones in the kernel. The lock is only held across the bzero() as */
7234 1.1 christos /* the copyout may result in paging (ie network activity.) */
7235 1.1 christos /* ------------------------------------------------------------------------ */
7236 1.1 christos int
7237 1.2 christos ipf_zerostats(ipf_main_softc_t *softc, void *data)
7238 1.1 christos {
7239 1.1 christos friostat_t fio;
7240 1.1 christos ipfobj_t obj;
7241 1.1 christos int error;
7242 1.1 christos
7243 1.1 christos error = ipf_inobj(softc, data, &obj, &fio, IPFOBJ_IPFSTAT);
7244 1.1 christos if (error != 0)
7245 1.1 christos return error;
7246 1.1 christos ipf_getstat(softc, &fio, obj.ipfo_rev);
7247 1.1 christos error = ipf_outobj(softc, data, &fio, IPFOBJ_IPFSTAT);
7248 1.1 christos if (error != 0)
7249 1.1 christos return error;
7250 1.1 christos
7251 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
7252 1.1 christos bzero(&softc->ipf_stats, sizeof(softc->ipf_stats));
7253 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
7254 1.1 christos
7255 1.1 christos return 0;
7256 1.1 christos }
7257 1.1 christos
7258 1.1 christos
7259 1.1 christos /* ------------------------------------------------------------------------ */
7260 1.1 christos /* Function: ipf_resolvedest */
7261 1.1 christos /* Returns: Nil */
7262 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
7263 1.1 christos /* base(I) - where strings are stored */
7264 1.1 christos /* fdp(IO) - pointer to destination information to resolve */
7265 1.1 christos /* v(I) - IP protocol version to match */
7266 1.1 christos /* */
7267 1.1 christos /* Looks up an interface name in the frdest structure pointed to by fdp and */
7268 1.1 christos /* if a matching name can be found for the particular IP protocol version */
7269 1.1 christos /* then store the interface pointer in the frdest struct. If no match is */
7270 1.1 christos /* found, then set the interface pointer to be -1 as NULL is considered to */
7271 1.1 christos /* indicate there is no information at all in the structure. */
7272 1.1 christos /* ------------------------------------------------------------------------ */
7273 1.1 christos int
7274 1.2 christos ipf_resolvedest(ipf_main_softc_t *softc, char *base, frdest_t *fdp, int v)
7275 1.1 christos {
7276 1.1 christos int errval = 0;
7277 1.1 christos void *ifp;
7278 1.1 christos
7279 1.1 christos ifp = NULL;
7280 1.1 christos
7281 1.1 christos if (fdp->fd_name != -1) {
7282 1.1 christos if (fdp->fd_type == FRD_DSTLIST) {
7283 1.1 christos ifp = ipf_lookup_res_name(softc, IPL_LOGIPF,
7284 1.1 christos IPLT_DSTLIST,
7285 1.1 christos base + fdp->fd_name,
7286 1.1 christos NULL);
7287 1.1 christos if (ifp == NULL) {
7288 1.1 christos IPFERROR(144);
7289 1.1 christos errval = ESRCH;
7290 1.1 christos }
7291 1.1 christos } else {
7292 1.1 christos ifp = GETIFP(base + fdp->fd_name, v);
7293 1.1 christos }
7294 1.1 christos }
7295 1.1 christos fdp->fd_ptr = ifp;
7296 1.1 christos
7297 1.1 christos return errval;
7298 1.1 christos }
7299 1.1 christos
7300 1.1 christos
7301 1.1 christos /* ------------------------------------------------------------------------ */
7302 1.1 christos /* Function: ipf_resolvenic */
7303 1.1 christos /* Returns: void* - NULL = wildcard name, -1 = failed to find NIC, else */
7304 1.1 christos /* pointer to interface structure for NIC */
7305 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7306 1.1 christos /* name(I) - complete interface name */
7307 1.1 christos /* v(I) - IP protocol version */
7308 1.1 christos /* */
7309 1.1 christos /* Look for a network interface structure that firstly has a matching name */
7310 1.1 christos /* to that passed in and that is also being used for that IP protocol */
7311 1.1 christos /* version (necessary on some platforms where there are separate listings */
7312 1.1 christos /* for both IPv4 and IPv6 on the same physical NIC. */
7313 1.2 christos /* */
7314 1.1 christos /* ------------------------------------------------------------------------ */
7315 1.1 christos void *
7316 1.2 christos ipf_resolvenic(ipf_main_softc_t *softc, char *name, int v)
7317 1.1 christos {
7318 1.1 christos void *nic;
7319 1.1 christos
7320 1.3 darrenr softc = softc; /* gcc -Wextra */
7321 1.1 christos if (name[0] == '\0')
7322 1.1 christos return NULL;
7323 1.1 christos
7324 1.1 christos if ((name[1] == '\0') && ((name[0] == '-') || (name[0] == '*'))) {
7325 1.1 christos return NULL;
7326 1.1 christos }
7327 1.1 christos
7328 1.1 christos nic = GETIFP(name, v);
7329 1.1 christos if (nic == NULL)
7330 1.1 christos nic = (void *)-1;
7331 1.1 christos return nic;
7332 1.1 christos }
7333 1.1 christos
7334 1.1 christos
7335 1.1 christos /* ------------------------------------------------------------------------ */
7336 1.1 christos /* Function: ipf_token_expire */
7337 1.1 christos /* Returns: None. */
7338 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
7339 1.1 christos /* */
7340 1.1 christos /* This function is run every ipf tick to see if there are any tokens that */
7341 1.1 christos /* have been held for too long and need to be freed up. */
7342 1.1 christos /* ------------------------------------------------------------------------ */
7343 1.1 christos void
7344 1.2 christos ipf_token_expire(ipf_main_softc_t *softc)
7345 1.1 christos {
7346 1.1 christos ipftoken_t *it;
7347 1.1 christos
7348 1.1 christos WRITE_ENTER(&softc->ipf_tokens);
7349 1.1 christos while ((it = softc->ipf_token_head) != NULL) {
7350 1.1 christos if (it->ipt_die > softc->ipf_ticks)
7351 1.1 christos break;
7352 1.1 christos
7353 1.3 darrenr ipf_token_deref(softc, it);
7354 1.3 darrenr }
7355 1.3 darrenr RWLOCK_EXIT(&softc->ipf_tokens);
7356 1.3 darrenr }
7357 1.3 darrenr
7358 1.3 darrenr
7359 1.3 darrenr /* ------------------------------------------------------------------------ */
7360 1.3 darrenr /* Function: ipf_token_flush */
7361 1.3 darrenr /* Returns: None. */
7362 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
7363 1.3 darrenr /* */
7364 1.3 darrenr /* Loop through all of the existing tokens and call deref to see if they */
7365 1.3 darrenr /* can be freed. Normally a function like this might just loop on */
7366 1.3 darrenr /* ipf_token_head but there is a chance that a token might have a ref count */
7367 1.3 darrenr /* of greater than one and in that case the the reference would drop twice */
7368 1.3 darrenr /* by code that is only entitled to drop it once. */
7369 1.3 darrenr /* ------------------------------------------------------------------------ */
7370 1.3 darrenr static void
7371 1.4 darrenr ipf_token_flush(ipf_main_softc_t *softc)
7372 1.3 darrenr {
7373 1.3 darrenr ipftoken_t *it, *next;
7374 1.3 darrenr
7375 1.3 darrenr WRITE_ENTER(&softc->ipf_tokens);
7376 1.3 darrenr for (it = softc->ipf_token_head; it != NULL; it = next) {
7377 1.3 darrenr next = it->ipt_next;
7378 1.3 darrenr (void) ipf_token_deref(softc, it);
7379 1.1 christos }
7380 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7381 1.1 christos }
7382 1.1 christos
7383 1.1 christos
7384 1.1 christos /* ------------------------------------------------------------------------ */
7385 1.3 darrenr /* Function: ipf_token_del */
7386 1.1 christos /* Returns: int - 0 = success, else error */
7387 1.3 darrenr /* Parameters: softc(I)- pointer to soft context main structure */
7388 1.1 christos /* type(I) - the token type to match */
7389 1.1 christos /* uid(I) - uid owning the token */
7390 1.1 christos /* ptr(I) - context pointer for the token */
7391 1.1 christos /* */
7392 1.1 christos /* This function looks for a a token in the current list that matches up */
7393 1.1 christos /* the fields (type, uid, ptr). If none is found, ESRCH is returned, else */
7394 1.3 darrenr /* call ipf_token_dewref() to remove it from the list. In the event that */
7395 1.3 darrenr /* the token has a reference held elsewhere, setting ipt_complete to 2 */
7396 1.3 darrenr /* enables debugging to distinguish between the two paths that ultimately */
7397 1.3 darrenr /* lead to a token to be deleted. */
7398 1.1 christos /* ------------------------------------------------------------------------ */
7399 1.1 christos int
7400 1.2 christos ipf_token_del(ipf_main_softc_t *softc, int type, int uid, void *ptr)
7401 1.1 christos {
7402 1.1 christos ipftoken_t *it;
7403 1.1 christos int error;
7404 1.1 christos
7405 1.1 christos IPFERROR(82);
7406 1.1 christos error = ESRCH;
7407 1.1 christos
7408 1.1 christos WRITE_ENTER(&softc->ipf_tokens);
7409 1.3 darrenr for (it = softc->ipf_token_head; it != NULL; it = it->ipt_next) {
7410 1.1 christos if (ptr == it->ipt_ctx && type == it->ipt_type &&
7411 1.1 christos uid == it->ipt_uid) {
7412 1.3 darrenr it->ipt_complete = 2;
7413 1.3 darrenr ipf_token_deref(softc, it);
7414 1.1 christos error = 0;
7415 1.1 christos break;
7416 1.3 darrenr }
7417 1.1 christos }
7418 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7419 1.1 christos
7420 1.1 christos return error;
7421 1.1 christos }
7422 1.1 christos
7423 1.1 christos
7424 1.1 christos /* ------------------------------------------------------------------------ */
7425 1.1 christos /* Function: ipf_token_mark_complete */
7426 1.1 christos /* Returns: None. */
7427 1.1 christos /* Parameters: token(I) - pointer to token structure */
7428 1.1 christos /* */
7429 1.3 darrenr /* Mark a token as being ineligable for being found with ipf_token_find. */
7430 1.1 christos /* ------------------------------------------------------------------------ */
7431 1.1 christos void
7432 1.2 christos ipf_token_mark_complete(ipftoken_t *token)
7433 1.1 christos {
7434 1.3 darrenr if (token->ipt_complete == 0)
7435 1.3 darrenr token->ipt_complete = 1;
7436 1.1 christos }
7437 1.1 christos
7438 1.1 christos
7439 1.1 christos /* ------------------------------------------------------------------------ */
7440 1.1 christos /* Function: ipf_token_find */
7441 1.1 christos /* Returns: ipftoken_t * - NULL if no memory, else pointer to token */
7442 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7443 1.1 christos /* type(I) - the token type to match */
7444 1.1 christos /* uid(I) - uid owning the token */
7445 1.1 christos /* ptr(I) - context pointer for the token */
7446 1.1 christos /* */
7447 1.1 christos /* This function looks for a live token in the list of current tokens that */
7448 1.1 christos /* matches the tuple (type, uid, ptr). If one cannot be found then one is */
7449 1.1 christos /* allocated. If one is found then it is moved to the top of the list of */
7450 1.1 christos /* currently active tokens. */
7451 1.1 christos /* ------------------------------------------------------------------------ */
7452 1.1 christos ipftoken_t *
7453 1.2 christos ipf_token_find(ipf_main_softc_t *softc, int type, int uid, void *ptr)
7454 1.1 christos {
7455 1.1 christos ipftoken_t *it, *new;
7456 1.1 christos
7457 1.1 christos KMALLOC(new, ipftoken_t *);
7458 1.3 darrenr if (new != NULL)
7459 1.3 darrenr bzero((char *)new, sizeof(*new));
7460 1.1 christos
7461 1.1 christos WRITE_ENTER(&softc->ipf_tokens);
7462 1.1 christos for (it = softc->ipf_token_head; it != NULL; it = it->ipt_next) {
7463 1.3 darrenr if ((ptr == it->ipt_ctx) && (type == it->ipt_type) &&
7464 1.3 darrenr (uid == it->ipt_uid) && (it->ipt_complete < 2))
7465 1.1 christos break;
7466 1.1 christos }
7467 1.1 christos
7468 1.1 christos if (it == NULL) {
7469 1.1 christos it = new;
7470 1.1 christos new = NULL;
7471 1.1 christos if (it == NULL) {
7472 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7473 1.1 christos return NULL;
7474 1.1 christos }
7475 1.1 christos it->ipt_ctx = ptr;
7476 1.1 christos it->ipt_uid = uid;
7477 1.1 christos it->ipt_type = type;
7478 1.3 darrenr it->ipt_ref = 1;
7479 1.1 christos } else {
7480 1.1 christos if (new != NULL) {
7481 1.1 christos KFREE(new);
7482 1.1 christos new = NULL;
7483 1.1 christos }
7484 1.1 christos
7485 1.3 darrenr if (it->ipt_complete > 0)
7486 1.3 darrenr it = NULL;
7487 1.3 darrenr else
7488 1.3 darrenr ipf_token_unlink(softc, it);
7489 1.1 christos }
7490 1.1 christos
7491 1.3 darrenr if (it != NULL) {
7492 1.1 christos it->ipt_pnext = softc->ipf_token_tail;
7493 1.1 christos *softc->ipf_token_tail = it;
7494 1.1 christos softc->ipf_token_tail = &it->ipt_next;
7495 1.1 christos it->ipt_next = NULL;
7496 1.3 darrenr it->ipt_ref++;
7497 1.1 christos
7498 1.1 christos it->ipt_die = softc->ipf_ticks + 20;
7499 1.1 christos }
7500 1.1 christos
7501 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7502 1.1 christos
7503 1.1 christos return it;
7504 1.1 christos }
7505 1.1 christos
7506 1.1 christos
7507 1.1 christos /* ------------------------------------------------------------------------ */
7508 1.1 christos /* Function: ipf_token_unlink */
7509 1.1 christos /* Returns: None. */
7510 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
7511 1.1 christos /* token(I) - pointer to token structure */
7512 1.1 christos /* Write Locks: ipf_tokens */
7513 1.1 christos /* */
7514 1.1 christos /* This function unlinks a token structure from the linked list of tokens */
7515 1.1 christos /* that "own" it. The head pointer never needs to be explicitly adjusted */
7516 1.1 christos /* but the tail does due to the linked list implementation. */
7517 1.1 christos /* ------------------------------------------------------------------------ */
7518 1.1 christos static void
7519 1.2 christos ipf_token_unlink(ipf_main_softc_t *softc, ipftoken_t *token)
7520 1.1 christos {
7521 1.1 christos
7522 1.1 christos if (softc->ipf_token_tail == &token->ipt_next)
7523 1.1 christos softc->ipf_token_tail = token->ipt_pnext;
7524 1.1 christos
7525 1.1 christos *token->ipt_pnext = token->ipt_next;
7526 1.1 christos if (token->ipt_next != NULL)
7527 1.1 christos token->ipt_next->ipt_pnext = token->ipt_pnext;
7528 1.3 darrenr token->ipt_next = NULL;
7529 1.3 darrenr token->ipt_pnext = NULL;
7530 1.1 christos }
7531 1.1 christos
7532 1.1 christos
7533 1.1 christos /* ------------------------------------------------------------------------ */
7534 1.1 christos /* Function: ipf_token_deref */
7535 1.3 darrenr /* Returns: int - 0 == token freed, else reference count */
7536 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
7537 1.1 christos /* token(I) - pointer to token structure */
7538 1.1 christos /* Write Locks: ipf_tokens */
7539 1.1 christos /* */
7540 1.1 christos /* Drop the reference count on the token structure and if it drops to zero, */
7541 1.1 christos /* call the dereference function for the token type because it is then */
7542 1.1 christos /* possible to free the token data structure. */
7543 1.1 christos /* ------------------------------------------------------------------------ */
7544 1.3 darrenr int
7545 1.2 christos ipf_token_deref(ipf_main_softc_t *softc, ipftoken_t *token)
7546 1.1 christos {
7547 1.1 christos void *data, **datap;
7548 1.1 christos
7549 1.3 darrenr ASSERT(token->ipt_ref > 0);
7550 1.1 christos token->ipt_ref--;
7551 1.1 christos if (token->ipt_ref > 0)
7552 1.3 darrenr return token->ipt_ref;
7553 1.1 christos
7554 1.1 christos data = token->ipt_data;
7555 1.1 christos datap = &data;
7556 1.1 christos
7557 1.1 christos if ((data != NULL) && (data != (void *)-1)) {
7558 1.1 christos switch (token->ipt_type)
7559 1.1 christos {
7560 1.1 christos case IPFGENITER_IPF :
7561 1.1 christos (void) ipf_derefrule(softc, (frentry_t **)datap);
7562 1.1 christos break;
7563 1.1 christos case IPFGENITER_IPNAT :
7564 1.1 christos WRITE_ENTER(&softc->ipf_nat);
7565 1.3 darrenr ipf_nat_rule_deref(softc, (ipnat_t **)datap);
7566 1.1 christos RWLOCK_EXIT(&softc->ipf_nat);
7567 1.1 christos break;
7568 1.1 christos case IPFGENITER_NAT :
7569 1.1 christos ipf_nat_deref(softc, (nat_t **)datap);
7570 1.1 christos break;
7571 1.1 christos case IPFGENITER_STATE :
7572 1.1 christos ipf_state_deref(softc, (ipstate_t **)datap);
7573 1.1 christos break;
7574 1.1 christos case IPFGENITER_FRAG :
7575 1.1 christos ipf_frag_pkt_deref(softc, (ipfr_t **)datap);
7576 1.1 christos break;
7577 1.1 christos case IPFGENITER_NATFRAG :
7578 1.1 christos ipf_frag_nat_deref(softc, (ipfr_t **)datap);
7579 1.1 christos break;
7580 1.1 christos case IPFGENITER_HOSTMAP :
7581 1.1 christos WRITE_ENTER(&softc->ipf_nat);
7582 1.3 darrenr ipf_nat_hostmapdel(softc, (hostmap_t **)datap);
7583 1.1 christos RWLOCK_EXIT(&softc->ipf_nat);
7584 1.1 christos break;
7585 1.1 christos default :
7586 1.1 christos ipf_lookup_iterderef(softc, token->ipt_type, data);
7587 1.1 christos break;
7588 1.1 christos }
7589 1.1 christos }
7590 1.1 christos
7591 1.3 darrenr ipf_token_unlink(softc, token);
7592 1.1 christos KFREE(token);
7593 1.3 darrenr return 0;
7594 1.1 christos }
7595 1.1 christos
7596 1.1 christos
7597 1.1 christos /* ------------------------------------------------------------------------ */
7598 1.3 darrenr /* Function: ipf_nextrule */
7599 1.3 darrenr /* Returns: frentry_t * - NULL == no more rules, else pointer to next */
7600 1.3 darrenr /* Parameters: softc(I) - pointer to soft context main structure */
7601 1.3 darrenr /* fr(I) - pointer to filter rule */
7602 1.3 darrenr /* out(I) - 1 == out rules, 0 == input rules */
7603 1.1 christos /* */
7604 1.3 darrenr /* Starting with "fr", find the next rule to visit. This includes visiting */
7605 1.3 darrenr /* the list of rule groups if either fr is NULL (empty list) or it is the */
7606 1.3 darrenr /* last rule in the list. When walking rule lists, it is either input or */
7607 1.3 darrenr /* output rules that are returned, never both. */
7608 1.1 christos /* ------------------------------------------------------------------------ */
7609 1.3 darrenr static frentry_t *
7610 1.3 darrenr ipf_nextrule(ipf_main_softc_t *softc, int active, int unit,
7611 1.3 darrenr frentry_t *fr, int out)
7612 1.1 christos {
7613 1.3 darrenr frentry_t *next;
7614 1.3 darrenr frgroup_t *fg;
7615 1.3 darrenr
7616 1.3 darrenr if (fr != NULL && fr->fr_group != -1) {
7617 1.3 darrenr fg = ipf_findgroup(softc, fr->fr_names + fr->fr_group,
7618 1.3 darrenr unit, active, NULL);
7619 1.3 darrenr if (fg != NULL)
7620 1.3 darrenr fg = fg->fg_next;
7621 1.3 darrenr } else {
7622 1.3 darrenr fg = softc->ipf_groups[unit][active];
7623 1.3 darrenr }
7624 1.1 christos
7625 1.3 darrenr while (fg != NULL) {
7626 1.3 darrenr next = fg->fg_start;
7627 1.3 darrenr while (next != NULL) {
7628 1.3 darrenr if (out) {
7629 1.3 darrenr if (next->fr_flags & FR_OUTQUE)
7630 1.3 darrenr return next;
7631 1.3 darrenr } else if (next->fr_flags & FR_INQUE) {
7632 1.3 darrenr return next;
7633 1.3 darrenr }
7634 1.3 darrenr next = next->fr_next;
7635 1.3 darrenr }
7636 1.3 darrenr if (next == NULL)
7637 1.3 darrenr fg = fg->fg_next;
7638 1.3 darrenr }
7639 1.1 christos
7640 1.3 darrenr return NULL;
7641 1.1 christos }
7642 1.1 christos
7643 1.1 christos /* ------------------------------------------------------------------------ */
7644 1.1 christos /* Function: ipf_getnextrule */
7645 1.1 christos /* Returns: int - 0 = success, else error */
7646 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7647 1.1 christos /* t(I) - pointer to destination information to resolve */
7648 1.1 christos /* ptr(I) - pointer to ipfobj_t to copyin from user space */
7649 1.1 christos /* */
7650 1.1 christos /* This function's first job is to bring in the ipfruleiter_t structure via */
7651 1.1 christos /* the ipfobj_t structure to determine what should be the next rule to */
7652 1.1 christos /* return. Once the ipfruleiter_t has been brought in, it then tries to */
7653 1.1 christos /* find the 'next rule'. This may include searching rule group lists or */
7654 1.1 christos /* just be as simple as looking at the 'next' field in the rule structure. */
7655 1.1 christos /* When we have found the rule to return, increase its reference count and */
7656 1.1 christos /* if we used an existing rule to get here, decrease its reference count. */
7657 1.1 christos /* ------------------------------------------------------------------------ */
7658 1.1 christos int
7659 1.2 christos ipf_getnextrule(ipf_main_softc_t *softc, ipftoken_t *t, void *ptr)
7660 1.1 christos {
7661 1.1 christos frentry_t *fr, *next, zero;
7662 1.1 christos ipfruleiter_t it;
7663 1.1 christos int error, out;
7664 1.1 christos frgroup_t *fg;
7665 1.1 christos ipfobj_t obj;
7666 1.3 darrenr int predict;
7667 1.1 christos char *dst;
7668 1.3 darrenr int unit;
7669 1.1 christos
7670 1.1 christos if (t == NULL || ptr == NULL) {
7671 1.1 christos IPFERROR(84);
7672 1.1 christos return EFAULT;
7673 1.1 christos }
7674 1.1 christos
7675 1.1 christos error = ipf_inobj(softc, ptr, &obj, &it, IPFOBJ_IPFITER);
7676 1.1 christos if (error != 0)
7677 1.1 christos return error;
7678 1.1 christos
7679 1.1 christos if ((it.iri_inout < 0) || (it.iri_inout > 3)) {
7680 1.1 christos IPFERROR(85);
7681 1.1 christos return EINVAL;
7682 1.1 christos }
7683 1.1 christos if ((it.iri_active != 0) && (it.iri_active != 1)) {
7684 1.1 christos IPFERROR(86);
7685 1.1 christos return EINVAL;
7686 1.1 christos }
7687 1.1 christos if (it.iri_nrules == 0) {
7688 1.1 christos IPFERROR(87);
7689 1.1 christos return ENOSPC;
7690 1.1 christos }
7691 1.1 christos if (it.iri_rule == NULL) {
7692 1.1 christos IPFERROR(88);
7693 1.1 christos return EFAULT;
7694 1.1 christos }
7695 1.1 christos
7696 1.1 christos fg = NULL;
7697 1.1 christos fr = t->ipt_data;
7698 1.3 darrenr if ((it.iri_inout & F_OUT) != 0)
7699 1.3 darrenr out = 1;
7700 1.3 darrenr else
7701 1.3 darrenr out = 0;
7702 1.3 darrenr if ((it.iri_inout & F_ACIN) != 0)
7703 1.3 darrenr unit = IPL_LOGCOUNT;
7704 1.3 darrenr else
7705 1.3 darrenr unit = IPL_LOGIPF;
7706 1.1 christos
7707 1.1 christos READ_ENTER(&softc->ipf_mutex);
7708 1.1 christos if (fr == NULL) {
7709 1.1 christos if (*it.iri_group == '\0') {
7710 1.3 darrenr if (unit == IPL_LOGCOUNT) {
7711 1.1 christos next = softc->ipf_acct[out][it.iri_active];
7712 1.3 darrenr } else {
7713 1.1 christos next = softc->ipf_rules[out][it.iri_active];
7714 1.3 darrenr }
7715 1.3 darrenr if (next == NULL)
7716 1.3 darrenr next = ipf_nextrule(softc, it.iri_active,
7717 1.3 darrenr unit, NULL, out);
7718 1.1 christos } else {
7719 1.3 darrenr fg = ipf_findgroup(softc, it.iri_group, unit,
7720 1.3 darrenr it.iri_active, NULL);
7721 1.1 christos if (fg != NULL)
7722 1.1 christos next = fg->fg_start;
7723 1.1 christos else
7724 1.1 christos next = NULL;
7725 1.1 christos }
7726 1.1 christos } else {
7727 1.1 christos next = fr->fr_next;
7728 1.3 darrenr if (next == NULL)
7729 1.3 darrenr next = ipf_nextrule(softc, it.iri_active, unit,
7730 1.3 darrenr fr, out);
7731 1.1 christos }
7732 1.1 christos
7733 1.3 darrenr if (next != NULL && next->fr_next != NULL)
7734 1.3 darrenr predict = 1;
7735 1.3 darrenr else if (ipf_nextrule(softc, it.iri_active, unit, next, out) != NULL)
7736 1.3 darrenr predict = 1;
7737 1.3 darrenr else
7738 1.3 darrenr predict = 0;
7739 1.3 darrenr
7740 1.3 darrenr if (fr != NULL)
7741 1.3 darrenr (void) ipf_derefrule(softc, &fr);
7742 1.3 darrenr
7743 1.1 christos obj.ipfo_type = IPFOBJ_FRENTRY;
7744 1.1 christos dst = (char *)it.iri_rule;
7745 1.1 christos
7746 1.1 christos if (next != NULL) {
7747 1.1 christos obj.ipfo_size = next->fr_size;
7748 1.1 christos MUTEX_ENTER(&next->fr_lock);
7749 1.1 christos next->fr_ref++;
7750 1.1 christos MUTEX_EXIT(&next->fr_lock);
7751 1.1 christos t->ipt_data = next;
7752 1.1 christos } else {
7753 1.1 christos obj.ipfo_size = sizeof(frentry_t);
7754 1.1 christos bzero(&zero, sizeof(zero));
7755 1.1 christos next = &zero;
7756 1.1 christos t->ipt_data = NULL;
7757 1.1 christos }
7758 1.3 darrenr it.iri_rule = predict ? next : NULL;
7759 1.3 darrenr if (predict == 0)
7760 1.1 christos ipf_token_mark_complete(t);
7761 1.1 christos
7762 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
7763 1.1 christos
7764 1.1 christos obj.ipfo_ptr = dst;
7765 1.1 christos error = ipf_outobjk(softc, &obj, next);
7766 1.1 christos if (error == 0 && t->ipt_data != NULL) {
7767 1.1 christos dst += obj.ipfo_size;
7768 1.1 christos if (next->fr_data != NULL) {
7769 1.1 christos ipfobj_t dobj;
7770 1.1 christos
7771 1.3 darrenr if (next->fr_type == FR_T_IPFEXPR)
7772 1.3 darrenr dobj.ipfo_type = IPFOBJ_IPFEXPR;
7773 1.3 darrenr else
7774 1.3 darrenr dobj.ipfo_type = IPFOBJ_FRIPF;
7775 1.1 christos dobj.ipfo_size = next->fr_dsize;
7776 1.1 christos dobj.ipfo_rev = obj.ipfo_rev;
7777 1.1 christos dobj.ipfo_ptr = dst;
7778 1.1 christos error = ipf_outobjk(softc, &dobj, next->fr_data);
7779 1.1 christos }
7780 1.1 christos }
7781 1.1 christos
7782 1.1 christos if ((fr != NULL) && (next == &zero))
7783 1.1 christos (void) ipf_derefrule(softc, &fr);
7784 1.1 christos
7785 1.1 christos return error;
7786 1.1 christos }
7787 1.1 christos
7788 1.1 christos
7789 1.1 christos /* ------------------------------------------------------------------------ */
7790 1.1 christos /* Function: ipf_frruleiter */
7791 1.1 christos /* Returns: int - 0 = success, else error */
7792 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7793 1.1 christos /* data(I) - the token type to match */
7794 1.1 christos /* uid(I) - uid owning the token */
7795 1.1 christos /* ptr(I) - context pointer for the token */
7796 1.1 christos /* */
7797 1.1 christos /* This function serves as a stepping stone between ipf_ipf_ioctl and */
7798 1.1 christos /* ipf_getnextrule. It's role is to find the right token in the kernel for */
7799 1.1 christos /* the process doing the ioctl and use that to ask for the next rule. */
7800 1.1 christos /* ------------------------------------------------------------------------ */
7801 1.1 christos static int
7802 1.2 christos ipf_frruleiter(ipf_main_softc_t *softc, void *data, int uid, void *ctx)
7803 1.1 christos {
7804 1.1 christos ipftoken_t *token;
7805 1.3 darrenr ipfruleiter_t it;
7806 1.3 darrenr ipfobj_t obj;
7807 1.1 christos int error;
7808 1.1 christos
7809 1.1 christos token = ipf_token_find(softc, IPFGENITER_IPF, uid, ctx);
7810 1.1 christos if (token != NULL) {
7811 1.1 christos error = ipf_getnextrule(softc, token, data);
7812 1.1 christos WRITE_ENTER(&softc->ipf_tokens);
7813 1.3 darrenr ipf_token_deref(softc, token);
7814 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7815 1.1 christos } else {
7816 1.3 darrenr error = ipf_inobj(softc, data, &obj, &it, IPFOBJ_IPFITER);
7817 1.3 darrenr if (error != 0)
7818 1.3 darrenr return error;
7819 1.3 darrenr it.iri_rule = NULL;
7820 1.3 darrenr error = ipf_outobj(softc, data, &it, IPFOBJ_IPFITER);
7821 1.1 christos }
7822 1.1 christos
7823 1.1 christos return error;
7824 1.1 christos }
7825 1.1 christos
7826 1.1 christos
7827 1.1 christos /* ------------------------------------------------------------------------ */
7828 1.1 christos /* Function: ipf_geniter */
7829 1.1 christos /* Returns: int - 0 = success, else error */
7830 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
7831 1.1 christos /* token(I) - pointer to ipftoken_t structure */
7832 1.1 christos /* itp(I) - pointer to iterator data */
7833 1.1 christos /* */
7834 1.1 christos /* Decide which iterator function to call using information passed through */
7835 1.1 christos /* the ipfgeniter_t structure at itp. */
7836 1.1 christos /* ------------------------------------------------------------------------ */
7837 1.1 christos static int
7838 1.2 christos ipf_geniter(ipf_main_softc_t *softc, ipftoken_t *token, ipfgeniter_t *itp)
7839 1.1 christos {
7840 1.1 christos int error;
7841 1.1 christos
7842 1.1 christos switch (itp->igi_type)
7843 1.1 christos {
7844 1.1 christos case IPFGENITER_FRAG :
7845 1.1 christos error = ipf_frag_pkt_next(softc, token, itp);
7846 1.1 christos break;
7847 1.1 christos default :
7848 1.1 christos IPFERROR(92);
7849 1.1 christos error = EINVAL;
7850 1.1 christos break;
7851 1.1 christos }
7852 1.1 christos
7853 1.1 christos return error;
7854 1.1 christos }
7855 1.1 christos
7856 1.1 christos
7857 1.1 christos /* ------------------------------------------------------------------------ */
7858 1.1 christos /* Function: ipf_genericiter */
7859 1.1 christos /* Returns: int - 0 = success, else error */
7860 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7861 1.1 christos /* data(I) - the token type to match */
7862 1.1 christos /* uid(I) - uid owning the token */
7863 1.1 christos /* ptr(I) - context pointer for the token */
7864 1.1 christos /* */
7865 1.1 christos /* Handle the SIOCGENITER ioctl for the ipfilter device. The primary role */
7866 1.1 christos /* ------------------------------------------------------------------------ */
7867 1.1 christos int
7868 1.2 christos ipf_genericiter(ipf_main_softc_t *softc, void *data, int uid, void *ctx)
7869 1.1 christos {
7870 1.1 christos ipftoken_t *token;
7871 1.1 christos ipfgeniter_t iter;
7872 1.1 christos int error;
7873 1.1 christos
7874 1.1 christos error = ipf_inobj(softc, data, NULL, &iter, IPFOBJ_GENITER);
7875 1.1 christos if (error != 0)
7876 1.1 christos return error;
7877 1.1 christos
7878 1.1 christos token = ipf_token_find(softc, iter.igi_type, uid, ctx);
7879 1.1 christos if (token != NULL) {
7880 1.1 christos token->ipt_subtype = iter.igi_type;
7881 1.1 christos error = ipf_geniter(softc, token, &iter);
7882 1.1 christos WRITE_ENTER(&softc->ipf_tokens);
7883 1.3 darrenr ipf_token_deref(softc, token);
7884 1.1 christos RWLOCK_EXIT(&softc->ipf_tokens);
7885 1.1 christos } else {
7886 1.1 christos IPFERROR(93);
7887 1.1 christos error = 0;
7888 1.1 christos }
7889 1.1 christos
7890 1.1 christos return error;
7891 1.1 christos }
7892 1.1 christos
7893 1.1 christos
7894 1.1 christos /* ------------------------------------------------------------------------ */
7895 1.1 christos /* Function: ipf_ipf_ioctl */
7896 1.1 christos /* Returns: int - 0 = success, else error */
7897 1.1 christos /* Parameters: softc(I)- pointer to soft context main structure */
7898 1.1 christos /* data(I) - the token type to match */
7899 1.1 christos /* cmd(I) - the ioctl command number */
7900 1.1 christos /* mode(I) - mode flags for the ioctl */
7901 1.1 christos /* uid(I) - uid owning the token */
7902 1.1 christos /* ptr(I) - context pointer for the token */
7903 1.1 christos /* */
7904 1.1 christos /* This function handles all of the ioctl command that are actually isssued */
7905 1.1 christos /* to the /dev/ipl device. */
7906 1.1 christos /* ------------------------------------------------------------------------ */
7907 1.1 christos int
7908 1.2 christos ipf_ipf_ioctl(ipf_main_softc_t *softc, void *data, ioctlcmd_t cmd, int mode,
7909 1.2 christos int uid, void *ctx)
7910 1.1 christos {
7911 1.1 christos friostat_t fio;
7912 1.1 christos int error, tmp;
7913 1.1 christos ipfobj_t obj;
7914 1.1 christos SPL_INT(s);
7915 1.1 christos
7916 1.1 christos switch (cmd)
7917 1.1 christos {
7918 1.1 christos case SIOCFRENB :
7919 1.1 christos if (!(mode & FWRITE)) {
7920 1.1 christos IPFERROR(94);
7921 1.1 christos error = EPERM;
7922 1.1 christos } else {
7923 1.1 christos error = BCOPYIN(data, &tmp, sizeof(tmp));
7924 1.1 christos if (error != 0) {
7925 1.1 christos IPFERROR(95);
7926 1.1 christos error = EFAULT;
7927 1.1 christos break;
7928 1.1 christos }
7929 1.1 christos
7930 1.1 christos WRITE_ENTER(&softc->ipf_global);
7931 1.1 christos if (tmp) {
7932 1.1 christos if (softc->ipf_running > 0)
7933 1.1 christos error = 0;
7934 1.1 christos else
7935 1.1 christos error = ipfattach(softc);
7936 1.1 christos if (error == 0)
7937 1.1 christos softc->ipf_running = 1;
7938 1.1 christos else
7939 1.1 christos (void) ipfdetach(softc);
7940 1.1 christos } else {
7941 1.1 christos if (softc->ipf_running == 1)
7942 1.1 christos error = ipfdetach(softc);
7943 1.1 christos else
7944 1.1 christos error = 0;
7945 1.1 christos if (error == 0)
7946 1.1 christos softc->ipf_running = -1;
7947 1.1 christos }
7948 1.1 christos RWLOCK_EXIT(&softc->ipf_global);
7949 1.1 christos }
7950 1.1 christos break;
7951 1.1 christos
7952 1.1 christos case SIOCIPFSET :
7953 1.1 christos if (!(mode & FWRITE)) {
7954 1.1 christos IPFERROR(96);
7955 1.1 christos error = EPERM;
7956 1.1 christos break;
7957 1.1 christos }
7958 1.1 christos /* FALLTHRU */
7959 1.1 christos case SIOCIPFGETNEXT :
7960 1.1 christos case SIOCIPFGET :
7961 1.1 christos error = ipf_ipftune(softc, cmd, (void *)data);
7962 1.1 christos break;
7963 1.1 christos
7964 1.1 christos case SIOCSETFF :
7965 1.1 christos if (!(mode & FWRITE)) {
7966 1.1 christos IPFERROR(97);
7967 1.1 christos error = EPERM;
7968 1.1 christos } else {
7969 1.1 christos error = BCOPYIN(data, &softc->ipf_flags,
7970 1.1 christos sizeof(softc->ipf_flags));
7971 1.1 christos if (error != 0) {
7972 1.1 christos IPFERROR(98);
7973 1.1 christos error = EFAULT;
7974 1.1 christos }
7975 1.1 christos }
7976 1.1 christos break;
7977 1.1 christos
7978 1.1 christos case SIOCGETFF :
7979 1.1 christos error = BCOPYOUT(&softc->ipf_flags, data,
7980 1.1 christos sizeof(softc->ipf_flags));
7981 1.1 christos if (error != 0) {
7982 1.1 christos IPFERROR(99);
7983 1.1 christos error = EFAULT;
7984 1.1 christos }
7985 1.1 christos break;
7986 1.1 christos
7987 1.1 christos case SIOCFUNCL :
7988 1.1 christos error = ipf_resolvefunc(softc, (void *)data);
7989 1.1 christos break;
7990 1.1 christos
7991 1.1 christos case SIOCINAFR :
7992 1.1 christos case SIOCRMAFR :
7993 1.1 christos case SIOCADAFR :
7994 1.1 christos case SIOCZRLST :
7995 1.1 christos if (!(mode & FWRITE)) {
7996 1.1 christos IPFERROR(100);
7997 1.1 christos error = EPERM;
7998 1.1 christos } else {
7999 1.2 christos error = frrequest(softc, IPL_LOGIPF, cmd, data,
8000 1.1 christos softc->ipf_active, 1);
8001 1.1 christos }
8002 1.1 christos break;
8003 1.1 christos
8004 1.1 christos case SIOCINIFR :
8005 1.1 christos case SIOCRMIFR :
8006 1.1 christos case SIOCADIFR :
8007 1.1 christos if (!(mode & FWRITE)) {
8008 1.1 christos IPFERROR(101);
8009 1.1 christos error = EPERM;
8010 1.1 christos } else {
8011 1.2 christos error = frrequest(softc, IPL_LOGIPF, cmd, data,
8012 1.1 christos 1 - softc->ipf_active, 1);
8013 1.1 christos }
8014 1.1 christos break;
8015 1.1 christos
8016 1.1 christos case SIOCSWAPA :
8017 1.1 christos if (!(mode & FWRITE)) {
8018 1.1 christos IPFERROR(102);
8019 1.1 christos error = EPERM;
8020 1.1 christos } else {
8021 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
8022 1.1 christos error = BCOPYOUT(&softc->ipf_active, data,
8023 1.1 christos sizeof(softc->ipf_active));
8024 1.1 christos if (error != 0) {
8025 1.1 christos IPFERROR(103);
8026 1.1 christos error = EFAULT;
8027 1.1 christos } else {
8028 1.1 christos softc->ipf_active = 1 - softc->ipf_active;
8029 1.1 christos }
8030 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
8031 1.1 christos }
8032 1.1 christos break;
8033 1.1 christos
8034 1.1 christos case SIOCGETFS :
8035 1.1 christos error = ipf_inobj(softc, (void *)data, &obj, &fio,
8036 1.1 christos IPFOBJ_IPFSTAT);
8037 1.1 christos if (error != 0)
8038 1.1 christos break;
8039 1.1 christos ipf_getstat(softc, &fio, obj.ipfo_rev);
8040 1.1 christos error = ipf_outobj(softc, (void *)data, &fio, IPFOBJ_IPFSTAT);
8041 1.1 christos break;
8042 1.1 christos
8043 1.1 christos case SIOCFRZST :
8044 1.1 christos if (!(mode & FWRITE)) {
8045 1.1 christos IPFERROR(104);
8046 1.1 christos error = EPERM;
8047 1.1 christos } else
8048 1.2 christos error = ipf_zerostats(softc, data);
8049 1.1 christos break;
8050 1.1 christos
8051 1.1 christos case SIOCIPFFL :
8052 1.1 christos if (!(mode & FWRITE)) {
8053 1.1 christos IPFERROR(105);
8054 1.1 christos error = EPERM;
8055 1.1 christos } else {
8056 1.1 christos error = BCOPYIN(data, &tmp, sizeof(tmp));
8057 1.1 christos if (!error) {
8058 1.1 christos tmp = ipf_flush(softc, IPL_LOGIPF, tmp);
8059 1.1 christos error = BCOPYOUT(&tmp, data, sizeof(tmp));
8060 1.1 christos if (error != 0) {
8061 1.1 christos IPFERROR(106);
8062 1.1 christos error = EFAULT;
8063 1.1 christos }
8064 1.1 christos } else {
8065 1.1 christos IPFERROR(107);
8066 1.1 christos error = EFAULT;
8067 1.1 christos }
8068 1.1 christos }
8069 1.1 christos break;
8070 1.1 christos
8071 1.1 christos #ifdef USE_INET6
8072 1.1 christos case SIOCIPFL6 :
8073 1.1 christos if (!(mode & FWRITE)) {
8074 1.1 christos IPFERROR(108);
8075 1.1 christos error = EPERM;
8076 1.1 christos } else {
8077 1.1 christos error = BCOPYIN(data, &tmp, sizeof(tmp));
8078 1.1 christos if (!error) {
8079 1.1 christos tmp = ipf_flush(softc, IPL_LOGIPF, tmp);
8080 1.1 christos error = BCOPYOUT(&tmp, data, sizeof(tmp));
8081 1.1 christos if (error != 0) {
8082 1.1 christos IPFERROR(109);
8083 1.1 christos error = EFAULT;
8084 1.1 christos }
8085 1.1 christos } else {
8086 1.1 christos IPFERROR(110);
8087 1.1 christos error = EFAULT;
8088 1.1 christos }
8089 1.1 christos }
8090 1.1 christos break;
8091 1.1 christos #endif
8092 1.1 christos
8093 1.1 christos case SIOCSTLCK :
8094 1.1 christos if (!(mode & FWRITE)) {
8095 1.1 christos IPFERROR(122);
8096 1.1 christos error = EPERM;
8097 1.1 christos } else {
8098 1.1 christos error = BCOPYIN(data, &tmp, sizeof(tmp));
8099 1.1 christos if (error == 0) {
8100 1.1 christos ipf_state_setlock(softc->ipf_state_soft, tmp);
8101 1.1 christos ipf_nat_setlock(softc->ipf_nat_soft, tmp);
8102 1.1 christos ipf_frag_setlock(softc->ipf_frag_soft, tmp);
8103 1.1 christos ipf_auth_setlock(softc->ipf_auth_soft, tmp);
8104 1.1 christos } else {
8105 1.1 christos IPFERROR(111);
8106 1.1 christos error = EFAULT;
8107 1.1 christos }
8108 1.1 christos }
8109 1.1 christos break;
8110 1.1 christos
8111 1.1 christos #ifdef IPFILTER_LOG
8112 1.1 christos case SIOCIPFFB :
8113 1.1 christos if (!(mode & FWRITE)) {
8114 1.1 christos IPFERROR(112);
8115 1.1 christos error = EPERM;
8116 1.1 christos } else {
8117 1.1 christos tmp = ipf_log_clear(softc, IPL_LOGIPF);
8118 1.1 christos error = BCOPYOUT(&tmp, data, sizeof(tmp));
8119 1.1 christos if (error) {
8120 1.1 christos IPFERROR(113);
8121 1.1 christos error = EFAULT;
8122 1.1 christos }
8123 1.1 christos }
8124 1.1 christos break;
8125 1.1 christos #endif /* IPFILTER_LOG */
8126 1.1 christos
8127 1.1 christos case SIOCFRSYN :
8128 1.1 christos if (!(mode & FWRITE)) {
8129 1.1 christos IPFERROR(114);
8130 1.1 christos error = EPERM;
8131 1.1 christos } else {
8132 1.1 christos WRITE_ENTER(&softc->ipf_global);
8133 1.1 christos #if (defined(MENTAT) && defined(_KERNEL)) && !defined(INSTANCES)
8134 1.1 christos error = ipfsync();
8135 1.1 christos #else
8136 1.1 christos ipf_sync(softc, NULL);
8137 1.1 christos error = 0;
8138 1.1 christos #endif
8139 1.1 christos RWLOCK_EXIT(&softc->ipf_global);
8140 1.1 christos
8141 1.1 christos }
8142 1.1 christos break;
8143 1.1 christos
8144 1.1 christos case SIOCGFRST :
8145 1.1 christos error = ipf_outobj(softc, (void *)data,
8146 1.1 christos ipf_frag_stats(softc->ipf_frag_soft),
8147 1.1 christos IPFOBJ_FRAGSTAT);
8148 1.1 christos break;
8149 1.1 christos
8150 1.1 christos #ifdef IPFILTER_LOG
8151 1.1 christos case FIONREAD :
8152 1.1 christos tmp = ipf_log_bytesused(softc, IPL_LOGIPF);
8153 1.1 christos error = BCOPYOUT(&tmp, data, sizeof(tmp));
8154 1.1 christos break;
8155 1.1 christos #endif
8156 1.1 christos
8157 1.1 christos case SIOCIPFITER :
8158 1.1 christos SPL_SCHED(s);
8159 1.1 christos error = ipf_frruleiter(softc, data, uid, ctx);
8160 1.1 christos SPL_X(s);
8161 1.1 christos break;
8162 1.1 christos
8163 1.1 christos case SIOCGENITER :
8164 1.1 christos SPL_SCHED(s);
8165 1.1 christos error = ipf_genericiter(softc, data, uid, ctx);
8166 1.1 christos SPL_X(s);
8167 1.1 christos break;
8168 1.1 christos
8169 1.1 christos case SIOCIPFDELTOK :
8170 1.1 christos error = BCOPYIN(data, &tmp, sizeof(tmp));
8171 1.1 christos if (error == 0) {
8172 1.1 christos SPL_SCHED(s);
8173 1.1 christos error = ipf_token_del(softc, tmp, uid, ctx);
8174 1.1 christos SPL_X(s);
8175 1.1 christos }
8176 1.1 christos break;
8177 1.1 christos
8178 1.1 christos default :
8179 1.1 christos IPFERROR(115);
8180 1.1 christos error = EINVAL;
8181 1.1 christos break;
8182 1.1 christos }
8183 1.1 christos
8184 1.1 christos return error;
8185 1.1 christos }
8186 1.1 christos
8187 1.1 christos
8188 1.1 christos /* ------------------------------------------------------------------------ */
8189 1.1 christos /* Function: ipf_decaps */
8190 1.1 christos /* Returns: int - -1 == decapsulation failed, else bit mask of */
8191 1.1 christos /* flags indicating packet filtering decision. */
8192 1.1 christos /* Parameters: fin(I) - pointer to packet information */
8193 1.1 christos /* pass(I) - IP protocol version to match */
8194 1.1 christos /* l5proto(I) - layer 5 protocol to decode UDP data as. */
8195 1.1 christos /* */
8196 1.1 christos /* This function is called for packets that are wrapt up in other packets, */
8197 1.1 christos /* for example, an IP packet that is the entire data segment for another IP */
8198 1.1 christos /* packet. If the basic constraints for this are satisfied, change the */
8199 1.1 christos /* buffer to point to the start of the inner packet and start processing */
8200 1.1 christos /* rules belonging to the head group this rule specifies. */
8201 1.1 christos /* ------------------------------------------------------------------------ */
8202 1.1 christos u_32_t
8203 1.2 christos ipf_decaps(fr_info_t *fin, u_32_t pass, int l5proto)
8204 1.1 christos {
8205 1.1 christos fr_info_t fin2, *fino = NULL;
8206 1.1 christos int elen, hlen, nh;
8207 1.1 christos grehdr_t gre;
8208 1.1 christos ip_t *ip;
8209 1.1 christos mb_t *m;
8210 1.1 christos
8211 1.1 christos if ((fin->fin_flx & FI_COALESCE) == 0)
8212 1.1 christos if (ipf_coalesce(fin) == -1)
8213 1.1 christos goto cantdecaps;
8214 1.1 christos
8215 1.1 christos m = fin->fin_m;
8216 1.1 christos hlen = fin->fin_hlen;
8217 1.1 christos
8218 1.1 christos switch (fin->fin_p)
8219 1.1 christos {
8220 1.1 christos case IPPROTO_UDP :
8221 1.1 christos /*
8222 1.1 christos * In this case, the specific protocol being decapsulated
8223 1.1 christos * inside UDP frames comes from the rule.
8224 1.1 christos */
8225 1.1 christos nh = fin->fin_fr->fr_icode;
8226 1.1 christos break;
8227 1.1 christos
8228 1.1 christos case IPPROTO_GRE : /* 47 */
8229 1.1 christos bcopy(fin->fin_dp, (char *)&gre, sizeof(gre));
8230 1.1 christos hlen += sizeof(grehdr_t);
8231 1.1 christos if (gre.gr_R|gre.gr_s)
8232 1.1 christos goto cantdecaps;
8233 1.1 christos if (gre.gr_C)
8234 1.1 christos hlen += 4;
8235 1.1 christos if (gre.gr_K)
8236 1.1 christos hlen += 4;
8237 1.1 christos if (gre.gr_S)
8238 1.1 christos hlen += 4;
8239 1.1 christos
8240 1.1 christos nh = IPPROTO_IP;
8241 1.1 christos
8242 1.1 christos /*
8243 1.1 christos * If the routing options flag is set, validate that it is
8244 1.1 christos * there and bounce over it.
8245 1.1 christos */
8246 1.1 christos #if 0
8247 1.1 christos /* This is really heavy weight and lots of room for error, */
8248 1.1 christos /* so for now, put it off and get the simple stuff right. */
8249 1.1 christos if (gre.gr_R) {
8250 1.1 christos u_char off, len, *s;
8251 1.1 christos u_short af;
8252 1.1 christos int end;
8253 1.1 christos
8254 1.1 christos end = 0;
8255 1.1 christos s = fin->fin_dp;
8256 1.1 christos s += hlen;
8257 1.1 christos aplen = fin->fin_plen - hlen;
8258 1.1 christos while (aplen > 3) {
8259 1.1 christos af = (s[0] << 8) | s[1];
8260 1.1 christos off = s[2];
8261 1.1 christos len = s[3];
8262 1.1 christos aplen -= 4;
8263 1.1 christos s += 4;
8264 1.1 christos if (af == 0 && len == 0) {
8265 1.1 christos end = 1;
8266 1.1 christos break;
8267 1.1 christos }
8268 1.1 christos if (aplen < len)
8269 1.1 christos break;
8270 1.1 christos s += len;
8271 1.1 christos aplen -= len;
8272 1.1 christos }
8273 1.1 christos if (end != 1)
8274 1.1 christos goto cantdecaps;
8275 1.1 christos hlen = s - (u_char *)fin->fin_dp;
8276 1.1 christos }
8277 1.1 christos #endif
8278 1.1 christos break;
8279 1.1 christos
8280 1.1 christos #ifdef IPPROTO_IPIP
8281 1.1 christos case IPPROTO_IPIP : /* 4 */
8282 1.1 christos #endif
8283 1.1 christos nh = IPPROTO_IP;
8284 1.1 christos break;
8285 1.1 christos
8286 1.1 christos default : /* Includes ESP, AH is special for IPv4 */
8287 1.1 christos goto cantdecaps;
8288 1.1 christos }
8289 1.1 christos
8290 1.1 christos switch (nh)
8291 1.1 christos {
8292 1.1 christos case IPPROTO_IP :
8293 1.1 christos case IPPROTO_IPV6 :
8294 1.1 christos break;
8295 1.1 christos default :
8296 1.1 christos goto cantdecaps;
8297 1.1 christos }
8298 1.1 christos
8299 1.1 christos bcopy((char *)fin, (char *)&fin2, sizeof(fin2));
8300 1.1 christos fino = fin;
8301 1.1 christos fin = &fin2;
8302 1.1 christos elen = hlen;
8303 1.1 christos #if defined(MENTAT) && defined(_KERNEL)
8304 1.1 christos m->b_rptr += elen;
8305 1.1 christos #else
8306 1.1 christos m->m_data += elen;
8307 1.1 christos m->m_len -= elen;
8308 1.1 christos #endif
8309 1.1 christos fin->fin_plen -= elen;
8310 1.1 christos
8311 1.1 christos ip = (ip_t *)((char *)fin->fin_ip + elen);
8312 1.1 christos
8313 1.1 christos /*
8314 1.1 christos * Make sure we have at least enough data for the network layer
8315 1.1 christos * header.
8316 1.1 christos */
8317 1.1 christos if (IP_V(ip) == 4)
8318 1.1 christos hlen = IP_HL(ip) << 2;
8319 1.1 christos #ifdef USE_INET6
8320 1.1 christos else if (IP_V(ip) == 6)
8321 1.1 christos hlen = sizeof(ip6_t);
8322 1.1 christos #endif
8323 1.1 christos else
8324 1.1 christos goto cantdecaps2;
8325 1.1 christos
8326 1.1 christos if (fin->fin_plen < hlen)
8327 1.1 christos goto cantdecaps2;
8328 1.1 christos
8329 1.1 christos fin->fin_dp = (char *)ip + hlen;
8330 1.1 christos
8331 1.1 christos if (IP_V(ip) == 4) {
8332 1.1 christos /*
8333 1.1 christos * Perform IPv4 header checksum validation.
8334 1.1 christos */
8335 1.1 christos if (ipf_cksum((u_short *)ip, hlen))
8336 1.1 christos goto cantdecaps2;
8337 1.1 christos }
8338 1.1 christos
8339 1.1 christos if (ipf_makefrip(hlen, ip, fin) == -1) {
8340 1.1 christos cantdecaps2:
8341 1.1 christos if (m != NULL) {
8342 1.1 christos #if defined(MENTAT) && defined(_KERNEL)
8343 1.1 christos m->b_rptr -= elen;
8344 1.1 christos #else
8345 1.1 christos m->m_data -= elen;
8346 1.1 christos m->m_len += elen;
8347 1.1 christos #endif
8348 1.1 christos }
8349 1.1 christos cantdecaps:
8350 1.1 christos DT1(frb_decapfrip, fr_info_t *, fin);
8351 1.1 christos pass &= ~FR_CMDMASK;
8352 1.1 christos pass |= FR_BLOCK|FR_QUICK;
8353 1.1 christos fin->fin_reason = FRB_DECAPFRIP;
8354 1.1 christos return -1;
8355 1.1 christos }
8356 1.1 christos
8357 1.1 christos pass = ipf_scanlist(fin, pass);
8358 1.1 christos
8359 1.1 christos /*
8360 1.1 christos * Copy the packet filter "result" fields out of the fr_info_t struct
8361 1.1 christos * that is local to the decapsulation processing and back into the
8362 1.1 christos * one we were called with.
8363 1.1 christos */
8364 1.1 christos fino->fin_flx = fin->fin_flx;
8365 1.1 christos fino->fin_rev = fin->fin_rev;
8366 1.1 christos fino->fin_icode = fin->fin_icode;
8367 1.1 christos fino->fin_rule = fin->fin_rule;
8368 1.1 christos (void) strncpy(fino->fin_group, fin->fin_group, FR_GROUPLEN);
8369 1.1 christos fino->fin_fr = fin->fin_fr;
8370 1.1 christos fino->fin_error = fin->fin_error;
8371 1.1 christos fino->fin_mp = fin->fin_mp;
8372 1.1 christos fino->fin_m = fin->fin_m;
8373 1.1 christos m = fin->fin_m;
8374 1.1 christos if (m != NULL) {
8375 1.1 christos #if defined(MENTAT) && defined(_KERNEL)
8376 1.1 christos m->b_rptr -= elen;
8377 1.1 christos #else
8378 1.1 christos m->m_data -= elen;
8379 1.1 christos m->m_len += elen;
8380 1.1 christos #endif
8381 1.1 christos }
8382 1.1 christos return pass;
8383 1.1 christos }
8384 1.1 christos
8385 1.1 christos
8386 1.1 christos /* ------------------------------------------------------------------------ */
8387 1.1 christos /* Function: ipf_matcharray_load */
8388 1.1 christos /* Returns: int - 0 = success, else error */
8389 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
8390 1.1 christos /* data(I) - pointer to ioctl data */
8391 1.1 christos /* objp(I) - ipfobj_t structure to load data into */
8392 1.1 christos /* arrayptr(I) - pointer to location to store array pointer */
8393 1.1 christos /* */
8394 1.1 christos /* This function loads in a mathing array through the ipfobj_t struct that */
8395 1.1 christos /* describes it. Sanity checking and array size limitations are enforced */
8396 1.1 christos /* in this function to prevent userspace from trying to load in something */
8397 1.1 christos /* that is insanely big. Once the size of the array is known, the memory */
8398 1.1 christos /* required is malloc'd and returned through changing *arrayptr. The */
8399 1.1 christos /* contents of the array are verified before returning. Only in the event */
8400 1.1 christos /* of a successful call is the caller required to free up the malloc area. */
8401 1.1 christos /* ------------------------------------------------------------------------ */
8402 1.1 christos int
8403 1.2 christos ipf_matcharray_load(ipf_main_softc_t *softc, void *data, ipfobj_t *objp,
8404 1.2 christos int **arrayptr)
8405 1.1 christos {
8406 1.1 christos int arraysize, *array, error;
8407 1.1 christos
8408 1.1 christos *arrayptr = NULL;
8409 1.1 christos
8410 1.1 christos error = BCOPYIN(data, objp, sizeof(*objp));
8411 1.1 christos if (error != 0) {
8412 1.1 christos IPFERROR(116);
8413 1.1 christos return EFAULT;
8414 1.1 christos }
8415 1.1 christos
8416 1.1 christos if (objp->ipfo_type != IPFOBJ_IPFEXPR) {
8417 1.1 christos IPFERROR(117);
8418 1.1 christos return EINVAL;
8419 1.1 christos }
8420 1.1 christos
8421 1.1 christos if (((objp->ipfo_size & 3) != 0) || (objp->ipfo_size == 0) ||
8422 1.1 christos (objp->ipfo_size > 1024)) {
8423 1.1 christos IPFERROR(118);
8424 1.1 christos return EINVAL;
8425 1.1 christos }
8426 1.1 christos
8427 1.1 christos arraysize = objp->ipfo_size * sizeof(*array);
8428 1.1 christos KMALLOCS(array, int *, arraysize);
8429 1.1 christos if (array == NULL) {
8430 1.1 christos IPFERROR(119);
8431 1.1 christos return ENOMEM;
8432 1.1 christos }
8433 1.1 christos
8434 1.1 christos error = COPYIN(objp->ipfo_ptr, array, arraysize);
8435 1.1 christos if (error != 0) {
8436 1.1 christos KFREES(array, arraysize);
8437 1.1 christos IPFERROR(120);
8438 1.1 christos return EFAULT;
8439 1.1 christos }
8440 1.1 christos
8441 1.1 christos if (ipf_matcharray_verify(array, arraysize) != 0) {
8442 1.1 christos KFREES(array, arraysize);
8443 1.1 christos IPFERROR(121);
8444 1.1 christos return EINVAL;
8445 1.1 christos }
8446 1.1 christos
8447 1.1 christos *arrayptr = array;
8448 1.1 christos return 0;
8449 1.1 christos }
8450 1.1 christos
8451 1.1 christos
8452 1.1 christos /* ------------------------------------------------------------------------ */
8453 1.1 christos /* Function: ipf_matcharray_verify */
8454 1.1 christos /* Returns: Nil */
8455 1.1 christos /* Parameters: array(I) - pointer to matching array */
8456 1.1 christos /* arraysize(I) - number of elements in the array */
8457 1.1 christos /* */
8458 1.1 christos /* Verify the contents of a matching array by stepping through each element */
8459 1.1 christos /* in it. The actual commands in the array are not verified for */
8460 1.1 christos /* correctness, only that all of the sizes are correctly within limits. */
8461 1.1 christos /* ------------------------------------------------------------------------ */
8462 1.1 christos int
8463 1.2 christos ipf_matcharray_verify(int *array, int arraysize)
8464 1.1 christos {
8465 1.3 darrenr int i, nelem, maxidx;
8466 1.3 darrenr ipfexp_t *e;
8467 1.1 christos
8468 1.1 christos nelem = arraysize / sizeof(*array);
8469 1.1 christos
8470 1.1 christos /*
8471 1.1 christos * Currently, it makes no sense to have an array less than 6
8472 1.1 christos * elements long - the initial size at the from, a single operation
8473 1.1 christos * (minimum 4 in length) and a trailer, for a total of 6.
8474 1.1 christos */
8475 1.1 christos if ((array[0] < 6) || (arraysize < 24) || (arraysize > 4096)) {
8476 1.1 christos return -1;
8477 1.1 christos }
8478 1.1 christos
8479 1.1 christos /*
8480 1.1 christos * Verify the size of data pointed to by array with how long
8481 1.1 christos * the array claims to be itself.
8482 1.1 christos */
8483 1.1 christos if (array[0] * sizeof(*array) != arraysize) {
8484 1.1 christos return -1;
8485 1.1 christos }
8486 1.1 christos
8487 1.1 christos maxidx = nelem - 1;
8488 1.1 christos /*
8489 1.1 christos * The last opcode in this array should be an IPF_EXP_END.
8490 1.1 christos */
8491 1.1 christos if (array[maxidx] != IPF_EXP_END) {
8492 1.1 christos return -1;
8493 1.1 christos }
8494 1.1 christos
8495 1.1 christos for (i = 1; i < maxidx; ) {
8496 1.3 darrenr e = (ipfexp_t *)(array + i);
8497 1.1 christos
8498 1.1 christos /*
8499 1.1 christos * The length of the bits to check must be at least 1
8500 1.1 christos * (or else there is nothing to comapre with!) and it
8501 1.1 christos * cannot exceed the length of the data present.
8502 1.1 christos */
8503 1.3 darrenr if ((e->ipfe_size < 1 ) ||
8504 1.3 darrenr (e->ipfe_size + i > maxidx)) {
8505 1.1 christos return -1;
8506 1.1 christos }
8507 1.3 darrenr i += e->ipfe_size;
8508 1.1 christos }
8509 1.1 christos return 0;
8510 1.1 christos }
8511 1.1 christos
8512 1.1 christos
8513 1.1 christos /* ------------------------------------------------------------------------ */
8514 1.1 christos /* Function: ipf_fr_matcharray */
8515 1.1 christos /* Returns: int - 0 = match failed, else positive match */
8516 1.1 christos /* Parameters: fin(I) - pointer to packet information */
8517 1.1 christos /* array(I) - pointer to matching array */
8518 1.1 christos /* */
8519 1.1 christos /* This function is used to apply a matching array against a packet and */
8520 1.1 christos /* return an indication of whether or not the packet successfully matches */
8521 1.1 christos /* all of the commands in it. */
8522 1.1 christos /* ------------------------------------------------------------------------ */
8523 1.1 christos static int
8524 1.2 christos ipf_fr_matcharray(fr_info_t *fin, int *array)
8525 1.1 christos {
8526 1.3 darrenr int i, n, *x, rv, p;
8527 1.3 darrenr ipfexp_t *e;
8528 1.1 christos
8529 1.3 darrenr rv = 0;
8530 1.1 christos n = array[0];
8531 1.1 christos x = array + 1;
8532 1.1 christos
8533 1.3 darrenr for (; n > 0; x += 3 + x[3], rv = 0) {
8534 1.3 darrenr e = (ipfexp_t *)x;
8535 1.3 darrenr if (e->ipfe_cmd == IPF_EXP_END)
8536 1.3 darrenr break;
8537 1.3 darrenr n -= e->ipfe_size;
8538 1.1 christos
8539 1.1 christos /*
8540 1.1 christos * The upper 16 bits currently store the protocol value.
8541 1.1 christos * This is currently used with TCP and UDP port compares and
8542 1.1 christos * allows "tcp.port = 80" without requiring an explicit
8543 1.1 christos " "ip.pr = tcp" first.
8544 1.1 christos */
8545 1.3 darrenr p = e->ipfe_cmd >> 16;
8546 1.1 christos if ((p != 0) && (p != fin->fin_p))
8547 1.1 christos break;
8548 1.1 christos
8549 1.3 darrenr switch (e->ipfe_cmd)
8550 1.1 christos {
8551 1.1 christos case IPF_EXP_IP_PR :
8552 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8553 1.3 darrenr rv |= (fin->fin_p == e->ipfe_arg0[i]);
8554 1.1 christos }
8555 1.1 christos break;
8556 1.1 christos
8557 1.1 christos case IPF_EXP_IP_SRCADDR :
8558 1.1 christos if (fin->fin_v != 4)
8559 1.1 christos break;
8560 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8561 1.3 darrenr rv |= ((fin->fin_saddr &
8562 1.3 darrenr e->ipfe_arg0[i * 2 + 1]) ==
8563 1.3 darrenr e->ipfe_arg0[i * 2]);
8564 1.1 christos }
8565 1.1 christos break;
8566 1.1 christos
8567 1.1 christos case IPF_EXP_IP_DSTADDR :
8568 1.1 christos if (fin->fin_v != 4)
8569 1.1 christos break;
8570 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8571 1.3 darrenr rv |= ((fin->fin_daddr &
8572 1.3 darrenr e->ipfe_arg0[i * 2 + 1]) ==
8573 1.3 darrenr e->ipfe_arg0[i * 2]);
8574 1.1 christos }
8575 1.1 christos break;
8576 1.1 christos
8577 1.1 christos case IPF_EXP_IP_ADDR :
8578 1.1 christos if (fin->fin_v != 4)
8579 1.1 christos break;
8580 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8581 1.3 darrenr rv |= ((fin->fin_saddr &
8582 1.3 darrenr e->ipfe_arg0[i * 2 + 1]) ==
8583 1.3 darrenr e->ipfe_arg0[i * 2]) ||
8584 1.3 darrenr ((fin->fin_daddr &
8585 1.3 darrenr e->ipfe_arg0[i * 2 + 1]) ==
8586 1.3 darrenr e->ipfe_arg0[i * 2]);
8587 1.1 christos }
8588 1.1 christos break;
8589 1.1 christos
8590 1.1 christos #ifdef USE_INET6
8591 1.1 christos case IPF_EXP_IP6_SRCADDR :
8592 1.1 christos if (fin->fin_v != 6)
8593 1.1 christos break;
8594 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8595 1.3 darrenr rv |= IP6_MASKEQ(&fin->fin_src6,
8596 1.3 darrenr &e->ipfe_arg0[i * 8 + 4],
8597 1.3 darrenr &e->ipfe_arg0[i * 8]);
8598 1.1 christos }
8599 1.1 christos break;
8600 1.1 christos
8601 1.1 christos case IPF_EXP_IP6_DSTADDR :
8602 1.1 christos if (fin->fin_v != 6)
8603 1.1 christos break;
8604 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8605 1.3 darrenr rv |= IP6_MASKEQ(&fin->fin_dst6,
8606 1.3 darrenr &e->ipfe_arg0[i * 8 + 4],
8607 1.3 darrenr &e->ipfe_arg0[i * 8]);
8608 1.1 christos }
8609 1.1 christos break;
8610 1.1 christos
8611 1.1 christos case IPF_EXP_IP6_ADDR :
8612 1.1 christos if (fin->fin_v != 6)
8613 1.1 christos break;
8614 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8615 1.3 darrenr rv |= IP6_MASKEQ(&fin->fin_src6,
8616 1.3 darrenr &e->ipfe_arg0[i * 8 + 4],
8617 1.3 darrenr &e->ipfe_arg0[i * 8]) ||
8618 1.3 darrenr IP6_MASKEQ(&fin->fin_dst6,
8619 1.3 darrenr &e->ipfe_arg0[i * 8 + 4],
8620 1.3 darrenr &e->ipfe_arg0[i * 8]);
8621 1.1 christos }
8622 1.1 christos break;
8623 1.1 christos #endif
8624 1.1 christos
8625 1.1 christos case IPF_EXP_UDP_PORT :
8626 1.1 christos case IPF_EXP_TCP_PORT :
8627 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8628 1.3 darrenr rv |= (fin->fin_sport == e->ipfe_arg0[i]) ||
8629 1.3 darrenr (fin->fin_dport == e->ipfe_arg0[i]);
8630 1.1 christos }
8631 1.1 christos break;
8632 1.1 christos
8633 1.1 christos case IPF_EXP_UDP_SPORT :
8634 1.1 christos case IPF_EXP_TCP_SPORT :
8635 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8636 1.3 darrenr rv |= (fin->fin_sport == e->ipfe_arg0[i]);
8637 1.1 christos }
8638 1.1 christos break;
8639 1.1 christos
8640 1.1 christos case IPF_EXP_UDP_DPORT :
8641 1.1 christos case IPF_EXP_TCP_DPORT :
8642 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8643 1.3 darrenr rv |= (fin->fin_dport == e->ipfe_arg0[i]);
8644 1.1 christos }
8645 1.1 christos break;
8646 1.1 christos
8647 1.1 christos case IPF_EXP_TCP_FLAGS :
8648 1.3 darrenr for (i = 0; !rv && i < e->ipfe_narg; i++) {
8649 1.3 darrenr rv |= ((fin->fin_tcpf &
8650 1.3 darrenr e->ipfe_arg0[i * 2 + 1]) ==
8651 1.3 darrenr e->ipfe_arg0[i * 2]);
8652 1.1 christos }
8653 1.1 christos break;
8654 1.1 christos }
8655 1.3 darrenr rv ^= e->ipfe_not;
8656 1.1 christos
8657 1.3 darrenr if (rv == 0)
8658 1.1 christos break;
8659 1.1 christos }
8660 1.1 christos
8661 1.3 darrenr return rv;
8662 1.1 christos }
8663 1.1 christos
8664 1.1 christos
8665 1.1 christos /* ------------------------------------------------------------------------ */
8666 1.1 christos /* Function: ipf_queueflush */
8667 1.1 christos /* Returns: int - number of entries flushed (0 = none) */
8668 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
8669 1.1 christos /* deletefn(I) - function to call to delete entry */
8670 1.1 christos /* ipfqs(I) - top of the list of ipf internal queues */
8671 1.1 christos /* userqs(I) - top of the list of user defined timeouts */
8672 1.1 christos /* */
8673 1.1 christos /* This fucntion gets called when the state/NAT hash tables fill up and we */
8674 1.1 christos /* need to try a bit harder to free up some space. The algorithm used here */
8675 1.1 christos /* split into two parts but both halves have the same goal: to reduce the */
8676 1.1 christos /* number of connections considered to be "active" to the low watermark. */
8677 1.1 christos /* There are two steps in doing this: */
8678 1.1 christos /* 1) Remove any TCP connections that are already considered to be "closed" */
8679 1.1 christos /* but have not yet been removed from the state table. The two states */
8680 1.1 christos /* TCPS_TIME_WAIT and TCPS_CLOSED are considered to be the perfect */
8681 1.1 christos /* candidates for this style of removal. If freeing up entries in */
8682 1.1 christos /* CLOSED or both CLOSED and TIME_WAIT brings us to the low watermark, */
8683 1.1 christos /* we do not go on to step 2. */
8684 1.1 christos /* */
8685 1.1 christos /* 2) Look for the oldest entries on each timeout queue and free them if */
8686 1.1 christos /* they are within the given window we are considering. Where the */
8687 1.1 christos /* window starts and the steps taken to increase its size depend upon */
8688 1.1 christos /* how long ipf has been running (ipf_ticks.) Anything modified in the */
8689 1.1 christos /* last 30 seconds is not touched. */
8690 1.1 christos /* touched */
8691 1.1 christos /* die ipf_ticks 30*1.5 1800*1.5 | 43200*1.5 */
8692 1.1 christos /* | | | | | | */
8693 1.1 christos /* future <--+----------+--------+-----------+-----+-----+-----------> past */
8694 1.1 christos /* now \_int=30s_/ \_int=1hr_/ \_int=12hr */
8695 1.1 christos /* */
8696 1.1 christos /* Points to note: */
8697 1.1 christos /* - tqe_die is the time, in the future, when entries die. */
8698 1.1 christos /* - tqe_die - ipf_ticks is how long left the connection has to live in ipf */
8699 1.1 christos /* ticks. */
8700 1.1 christos /* - tqe_touched is when the entry was last used by NAT/state */
8701 1.1 christos /* - the closer tqe_touched is to ipf_ticks, the further tqe_die will be */
8702 1.1 christos /* ipf_ticks any given timeout queue and vice versa. */
8703 1.1 christos /* - both tqe_die and tqe_touched increase over time */
8704 1.1 christos /* - timeout queues are sorted with the highest value of tqe_die at the */
8705 1.1 christos /* bottom and therefore the smallest values of each are at the top */
8706 1.1 christos /* - the pointer passed in as ipfqs should point to an array of timeout */
8707 1.1 christos /* queues representing each of the TCP states */
8708 1.1 christos /* */
8709 1.1 christos /* We start by setting up a maximum range to scan for things to move of */
8710 1.1 christos /* iend (newest) to istart (oldest) in chunks of "interval". If nothing is */
8711 1.1 christos /* found in that range, "interval" is adjusted (so long as it isn't 30) and */
8712 1.1 christos /* we start again with a new value for "iend" and "istart". This is */
8713 1.1 christos /* continued until we either finish the scan of 30 second intervals or the */
8714 1.1 christos /* low water mark is reached. */
8715 1.1 christos /* ------------------------------------------------------------------------ */
8716 1.1 christos int
8717 1.2 christos ipf_queueflush(ipf_main_softc_t *softc, ipftq_delete_fn_t deletefn,
8718 1.2 christos ipftq_t *ipfqs, ipftq_t *userqs, u_int *activep, int size, int low)
8719 1.1 christos {
8720 1.1 christos u_long interval, istart, iend;
8721 1.1 christos ipftq_t *ifq, *ifqnext;
8722 1.1 christos ipftqent_t *tqe, *tqn;
8723 1.1 christos int removed = 0;
8724 1.1 christos
8725 1.1 christos for (tqn = ipfqs[IPF_TCPS_CLOSED].ifq_head; ((tqe = tqn) != NULL); ) {
8726 1.1 christos tqn = tqe->tqe_next;
8727 1.1 christos if ((*deletefn)(softc, tqe->tqe_parent) == 0)
8728 1.1 christos removed++;
8729 1.1 christos }
8730 1.1 christos if ((*activep * 100 / size) > low) {
8731 1.1 christos for (tqn = ipfqs[IPF_TCPS_TIME_WAIT].ifq_head;
8732 1.1 christos ((tqe = tqn) != NULL); ) {
8733 1.1 christos tqn = tqe->tqe_next;
8734 1.1 christos if ((*deletefn)(softc, tqe->tqe_parent) == 0)
8735 1.1 christos removed++;
8736 1.1 christos }
8737 1.1 christos }
8738 1.1 christos
8739 1.1 christos if ((*activep * 100 / size) <= low) {
8740 1.1 christos return removed;
8741 1.1 christos }
8742 1.1 christos
8743 1.1 christos /*
8744 1.1 christos * NOTE: Use of "* 15 / 10" is required here because if "* 1.5" is
8745 1.1 christos * used then the operations are upgraded to floating point
8746 1.1 christos * and kernels don't like floating point...
8747 1.1 christos */
8748 1.1 christos if (softc->ipf_ticks > IPF_TTLVAL(43200 * 15 / 10)) {
8749 1.1 christos istart = IPF_TTLVAL(86400 * 4);
8750 1.1 christos interval = IPF_TTLVAL(43200);
8751 1.1 christos } else if (softc->ipf_ticks > IPF_TTLVAL(1800 * 15 / 10)) {
8752 1.1 christos istart = IPF_TTLVAL(43200);
8753 1.1 christos interval = IPF_TTLVAL(1800);
8754 1.1 christos } else if (softc->ipf_ticks > IPF_TTLVAL(30 * 15 / 10)) {
8755 1.1 christos istart = IPF_TTLVAL(1800);
8756 1.1 christos interval = IPF_TTLVAL(30);
8757 1.1 christos } else {
8758 1.1 christos return 0;
8759 1.1 christos }
8760 1.1 christos if (istart > softc->ipf_ticks) {
8761 1.1 christos if (softc->ipf_ticks - interval < interval)
8762 1.1 christos istart = interval;
8763 1.1 christos else
8764 1.1 christos istart = (softc->ipf_ticks / interval) * interval;
8765 1.1 christos }
8766 1.1 christos
8767 1.1 christos iend = softc->ipf_ticks - interval;
8768 1.1 christos
8769 1.1 christos while ((*activep * 100 / size) > low) {
8770 1.1 christos u_long try;
8771 1.1 christos
8772 1.1 christos try = softc->ipf_ticks - istart;
8773 1.1 christos
8774 1.1 christos for (ifq = ipfqs; ifq != NULL; ifq = ifq->ifq_next) {
8775 1.1 christos for (tqn = ifq->ifq_head; ((tqe = tqn) != NULL); ) {
8776 1.1 christos if (try < tqe->tqe_touched)
8777 1.1 christos break;
8778 1.1 christos tqn = tqe->tqe_next;
8779 1.1 christos if ((*deletefn)(softc, tqe->tqe_parent) == 0)
8780 1.1 christos removed++;
8781 1.1 christos }
8782 1.1 christos }
8783 1.1 christos
8784 1.1 christos for (ifq = userqs; ifq != NULL; ifq = ifqnext) {
8785 1.1 christos ifqnext = ifq->ifq_next;
8786 1.1 christos
8787 1.1 christos for (tqn = ifq->ifq_head; ((tqe = tqn) != NULL); ) {
8788 1.1 christos if (try < tqe->tqe_touched)
8789 1.1 christos break;
8790 1.1 christos tqn = tqe->tqe_next;
8791 1.1 christos if ((*deletefn)(softc, tqe->tqe_parent) == 0)
8792 1.1 christos removed++;
8793 1.1 christos }
8794 1.1 christos }
8795 1.1 christos
8796 1.1 christos if (try >= iend) {
8797 1.1 christos if (interval == IPF_TTLVAL(43200)) {
8798 1.1 christos interval = IPF_TTLVAL(1800);
8799 1.1 christos } else if (interval == IPF_TTLVAL(1800)) {
8800 1.1 christos interval = IPF_TTLVAL(30);
8801 1.1 christos } else {
8802 1.1 christos break;
8803 1.1 christos }
8804 1.1 christos if (interval >= softc->ipf_ticks)
8805 1.1 christos break;
8806 1.1 christos
8807 1.1 christos iend = softc->ipf_ticks - interval;
8808 1.1 christos }
8809 1.1 christos istart -= interval;
8810 1.1 christos }
8811 1.1 christos
8812 1.1 christos return removed;
8813 1.1 christos }
8814 1.1 christos
8815 1.1 christos
8816 1.1 christos /* ------------------------------------------------------------------------ */
8817 1.1 christos /* Function: ipf_deliverlocal */
8818 1.1 christos /* Returns: int - 1 = local address, 0 = non-local address */
8819 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
8820 1.1 christos /* ipversion(I) - IP protocol version (4 or 6) */
8821 1.1 christos /* ifp(I) - network interface pointer */
8822 1.1 christos /* ipaddr(I) - IPv4/6 destination address */
8823 1.1 christos /* */
8824 1.1 christos /* This fucntion is used to determine in the address "ipaddr" belongs to */
8825 1.1 christos /* the network interface represented by ifp. */
8826 1.1 christos /* ------------------------------------------------------------------------ */
8827 1.1 christos int
8828 1.2 christos ipf_deliverlocal(ipf_main_softc_t *softc, int ipversion, void *ifp,
8829 1.2 christos i6addr_t *ipaddr)
8830 1.1 christos {
8831 1.1 christos i6addr_t addr;
8832 1.1 christos int islocal = 0;
8833 1.1 christos
8834 1.1 christos if (ipversion == 4) {
8835 1.1 christos if (ipf_ifpaddr(softc, 4, FRI_NORMAL, ifp, &addr, NULL) == 0) {
8836 1.1 christos if (addr.in4.s_addr == ipaddr->in4.s_addr)
8837 1.1 christos islocal = 1;
8838 1.1 christos }
8839 1.1 christos
8840 1.1 christos #ifdef USE_INET6
8841 1.1 christos } else if (ipversion == 6) {
8842 1.1 christos if (ipf_ifpaddr(softc, 6, FRI_NORMAL, ifp, &addr, NULL) == 0) {
8843 1.1 christos if (IP6_EQ(&addr, ipaddr))
8844 1.1 christos islocal = 1;
8845 1.1 christos }
8846 1.1 christos #endif
8847 1.1 christos }
8848 1.1 christos
8849 1.1 christos return islocal;
8850 1.1 christos }
8851 1.1 christos
8852 1.1 christos
8853 1.1 christos /* ------------------------------------------------------------------------ */
8854 1.1 christos /* Function: ipf_settimeout */
8855 1.1 christos /* Returns: int - 0 = success, -1 = failure */
8856 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
8857 1.1 christos /* t(I) - pointer to tuneable array entry */
8858 1.1 christos /* p(I) - pointer to values passed in to apply */
8859 1.1 christos /* */
8860 1.1 christos /* This function is called to set the timeout values for each distinct */
8861 1.1 christos /* queue timeout that is available. When called, it calls into both the */
8862 1.1 christos /* state and NAT code, telling them to update their timeout queues. */
8863 1.1 christos /* ------------------------------------------------------------------------ */
8864 1.1 christos static int
8865 1.2 christos ipf_settimeout(struct ipf_main_softc_s *softc, ipftuneable_t *t,
8866 1.2 christos ipftuneval_t *p)
8867 1.1 christos {
8868 1.1 christos
8869 1.1 christos /*
8870 1.1 christos * ipf_interror should be set by the functions called here, not
8871 1.1 christos * by this function - it's just a middle man.
8872 1.1 christos */
8873 1.1 christos if (ipf_state_settimeout(softc, t, p) == -1)
8874 1.1 christos return -1;
8875 1.1 christos if (ipf_nat_settimeout(softc, t, p) == -1)
8876 1.1 christos return -1;
8877 1.1 christos return 0;
8878 1.1 christos }
8879 1.1 christos
8880 1.1 christos
8881 1.1 christos /* ------------------------------------------------------------------------ */
8882 1.1 christos /* Function: ipf_apply_timeout */
8883 1.1 christos /* Returns: int - 0 = success, -1 = failure */
8884 1.1 christos /* Parameters: head(I) - pointer to tuneable array entry */
8885 1.1 christos /* seconds(I) - pointer to values passed in to apply */
8886 1.1 christos /* */
8887 1.1 christos /* This function applies a timeout of "seconds" to the timeout queue that */
8888 1.1 christos /* is pointed to by "head". All entries on this list have an expiration */
8889 1.1 christos /* set to be the current tick value of ipf plus the ttl. Given that this */
8890 1.1 christos /* function should only be called when the delta is non-zero, the task is */
8891 1.1 christos /* to walk the entire list and apply the change. The sort order will not */
8892 1.1 christos /* change. The only catch is that this is O(n) across the list, so if the */
8893 1.1 christos /* queue has lots of entries (10s of thousands or 100s of thousands), it */
8894 1.1 christos /* could take a relatively long time to work through them all. */
8895 1.1 christos /* ------------------------------------------------------------------------ */
8896 1.1 christos void
8897 1.2 christos ipf_apply_timeout(ipftq_t *head, u_int seconds)
8898 1.1 christos {
8899 1.1 christos u_int oldtimeout, newtimeout;
8900 1.1 christos ipftqent_t *tqe;
8901 1.1 christos int delta;
8902 1.1 christos
8903 1.1 christos MUTEX_ENTER(&head->ifq_lock);
8904 1.1 christos oldtimeout = head->ifq_ttl;
8905 1.1 christos newtimeout = IPF_TTLVAL(seconds);
8906 1.1 christos delta = oldtimeout - newtimeout;
8907 1.1 christos
8908 1.1 christos head->ifq_ttl = newtimeout;
8909 1.1 christos
8910 1.1 christos for (tqe = head->ifq_head; tqe != NULL; tqe = tqe->tqe_next) {
8911 1.1 christos tqe->tqe_die += delta;
8912 1.1 christos }
8913 1.1 christos MUTEX_EXIT(&head->ifq_lock);
8914 1.1 christos }
8915 1.1 christos
8916 1.1 christos
8917 1.1 christos /* ------------------------------------------------------------------------ */
8918 1.1 christos /* Function: ipf_settimeout_tcp */
8919 1.1 christos /* Returns: int - 0 = successfully applied, -1 = failed */
8920 1.1 christos /* Parameters: t(I) - pointer to tuneable to change */
8921 1.1 christos /* p(I) - pointer to new timeout information */
8922 1.1 christos /* tab(I) - pointer to table of TCP queues */
8923 1.1 christos /* */
8924 1.1 christos /* This function applies the new timeout (p) to the TCP tunable (t) and */
8925 1.1 christos /* updates all of the entries on the relevant timeout queue by calling */
8926 1.1 christos /* ipf_apply_timeout(). */
8927 1.1 christos /* ------------------------------------------------------------------------ */
8928 1.1 christos int
8929 1.2 christos ipf_settimeout_tcp(ipftuneable_t *t, ipftuneval_t *p, ipftq_t *tab)
8930 1.1 christos {
8931 1.1 christos if (!strcmp(t->ipft_name, "tcp_idle_timeout") ||
8932 1.1 christos !strcmp(t->ipft_name, "tcp_established")) {
8933 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_ESTABLISHED], p->ipftu_int);
8934 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_close_wait")) {
8935 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_CLOSE_WAIT], p->ipftu_int);
8936 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_last_ack")) {
8937 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_LAST_ACK], p->ipftu_int);
8938 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_timeout")) {
8939 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_LISTEN], p->ipftu_int);
8940 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_HALF_ESTAB], p->ipftu_int);
8941 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_CLOSING], p->ipftu_int);
8942 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_listen")) {
8943 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_LISTEN], p->ipftu_int);
8944 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_half_established")) {
8945 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_HALF_ESTAB], p->ipftu_int);
8946 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_closing")) {
8947 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_CLOSING], p->ipftu_int);
8948 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_syn_received")) {
8949 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_SYN_RECEIVED], p->ipftu_int);
8950 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_syn_sent")) {
8951 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_SYN_SENT], p->ipftu_int);
8952 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_closed")) {
8953 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_CLOSED], p->ipftu_int);
8954 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_half_closed")) {
8955 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_CLOSED], p->ipftu_int);
8956 1.1 christos } else if (!strcmp(t->ipft_name, "tcp_time_wait")) {
8957 1.1 christos ipf_apply_timeout(&tab[IPF_TCPS_TIME_WAIT], p->ipftu_int);
8958 1.1 christos } else {
8959 1.1 christos /*
8960 1.1 christos * ipf_interror isn't set here because it should be set
8961 1.1 christos * by whatever called this function.
8962 1.1 christos */
8963 1.1 christos return -1;
8964 1.1 christos }
8965 1.1 christos return 0;
8966 1.1 christos }
8967 1.1 christos
8968 1.1 christos
8969 1.1 christos /* ------------------------------------------------------------------------ */
8970 1.1 christos /* Function: ipf_main_soft_create */
8971 1.1 christos /* Returns: NULL = failure, else success */
8972 1.1 christos /* Parameters: arg(I) - pointer to soft context structure if already allocd */
8973 1.1 christos /* */
8974 1.1 christos /* Create the foundation soft context structure. In circumstances where it */
8975 1.1 christos /* is not required to dynamically allocate the context, a pointer can be */
8976 1.1 christos /* passed in (rather than NULL) to a structure to be initialised. */
8977 1.1 christos /* The main thing of interest is that a number of locks are initialised */
8978 1.1 christos /* here instead of in the where might be expected - in the relevant create */
8979 1.1 christos /* function elsewhere. This is done because the current locking design has */
8980 1.1 christos /* some areas where these locks are used outside of their module. */
8981 1.1 christos /* Possibly the most important exercise that is done here is setting of all */
8982 1.1 christos /* the timeout values, allowing them to be changed before init(). */
8983 1.1 christos /* ------------------------------------------------------------------------ */
8984 1.1 christos void *
8985 1.2 christos ipf_main_soft_create(void *arg)
8986 1.1 christos {
8987 1.1 christos ipf_main_softc_t *softc;
8988 1.1 christos
8989 1.1 christos if (arg == NULL) {
8990 1.1 christos KMALLOC(softc, ipf_main_softc_t *);
8991 1.1 christos if (softc == NULL)
8992 1.1 christos return NULL;
8993 1.1 christos } else {
8994 1.1 christos softc = arg;
8995 1.1 christos }
8996 1.1 christos
8997 1.1 christos bzero((char *)softc, sizeof(*softc));
8998 1.1 christos
8999 1.1 christos /*
9000 1.1 christos * This serves as a flag as to whether or not the softc should be
9001 1.1 christos * free'd when _destroy is called.
9002 1.1 christos */
9003 1.1 christos softc->ipf_dynamic_softc = (arg == NULL) ? 1 : 0;
9004 1.1 christos
9005 1.1 christos softc->ipf_tuners = ipf_tune_array_copy(softc,
9006 1.1 christos sizeof(ipf_main_tuneables),
9007 1.1 christos ipf_main_tuneables);
9008 1.1 christos if (softc->ipf_tuners == NULL) {
9009 1.3 darrenr ipf_main_soft_destroy(softc);
9010 1.1 christos return NULL;
9011 1.1 christos }
9012 1.1 christos
9013 1.1 christos MUTEX_INIT(&softc->ipf_rw, "ipf rw mutex");
9014 1.1 christos MUTEX_INIT(&softc->ipf_timeoutlock, "ipf timeout lock");
9015 1.1 christos RWLOCK_INIT(&softc->ipf_global, "ipf filter load/unload mutex");
9016 1.1 christos RWLOCK_INIT(&softc->ipf_mutex, "ipf filter rwlock");
9017 1.1 christos RWLOCK_INIT(&softc->ipf_tokens, "ipf token rwlock");
9018 1.1 christos RWLOCK_INIT(&softc->ipf_state, "ipf state rwlock");
9019 1.1 christos RWLOCK_INIT(&softc->ipf_nat, "ipf IP NAT rwlock");
9020 1.1 christos RWLOCK_INIT(&softc->ipf_poolrw, "ipf pool rwlock");
9021 1.1 christos RWLOCK_INIT(&softc->ipf_frag, "ipf frag rwlock");
9022 1.1 christos
9023 1.1 christos softc->ipf_token_head = NULL;
9024 1.1 christos softc->ipf_token_tail = &softc->ipf_token_head;
9025 1.1 christos
9026 1.1 christos softc->ipf_tcpidletimeout = FIVE_DAYS;
9027 1.1 christos softc->ipf_tcpclosewait = IPF_TTLVAL(2 * TCP_MSL);
9028 1.1 christos softc->ipf_tcplastack = IPF_TTLVAL(30);
9029 1.1 christos softc->ipf_tcptimewait = IPF_TTLVAL(2 * TCP_MSL);
9030 1.1 christos softc->ipf_tcptimeout = IPF_TTLVAL(2 * TCP_MSL);
9031 1.1 christos softc->ipf_tcpsynsent = IPF_TTLVAL(2 * TCP_MSL);
9032 1.1 christos softc->ipf_tcpsynrecv = IPF_TTLVAL(2 * TCP_MSL);
9033 1.1 christos softc->ipf_tcpclosed = IPF_TTLVAL(30);
9034 1.1 christos softc->ipf_tcphalfclosed = IPF_TTLVAL(2 * 3600);
9035 1.1 christos softc->ipf_udptimeout = IPF_TTLVAL(120);
9036 1.1 christos softc->ipf_udpacktimeout = IPF_TTLVAL(12);
9037 1.1 christos softc->ipf_icmptimeout = IPF_TTLVAL(60);
9038 1.1 christos softc->ipf_icmpacktimeout = IPF_TTLVAL(6);
9039 1.1 christos softc->ipf_iptimeout = IPF_TTLVAL(60);
9040 1.1 christos
9041 1.1 christos #if defined(IPFILTER_DEFAULT_BLOCK)
9042 1.1 christos softc->ipf_pass = FR_BLOCK|FR_NOMATCH;
9043 1.1 christos #else
9044 1.1 christos softc->ipf_pass = (IPF_DEFAULT_PASS)|FR_NOMATCH;
9045 1.1 christos #endif
9046 1.1 christos softc->ipf_minttl = 4;
9047 1.1 christos softc->ipf_icmpminfragmtu = 68;
9048 1.1 christos softc->ipf_flags = IPF_LOGGING;
9049 1.1 christos
9050 1.1 christos return softc;
9051 1.1 christos }
9052 1.1 christos
9053 1.1 christos /* ------------------------------------------------------------------------ */
9054 1.1 christos /* Function: ipf_main_soft_init */
9055 1.1 christos /* Returns: 0 = success, -1 = failure */
9056 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9057 1.1 christos /* */
9058 1.1 christos /* A null-op function that exists as a placeholder so that the flow in */
9059 1.1 christos /* other functions is obvious. */
9060 1.1 christos /* ------------------------------------------------------------------------ */
9061 1.1 christos /*ARGSUSED*/
9062 1.1 christos int
9063 1.2 christos ipf_main_soft_init(ipf_main_softc_t *softc)
9064 1.1 christos {
9065 1.1 christos return 0;
9066 1.1 christos }
9067 1.1 christos
9068 1.1 christos
9069 1.1 christos /* ------------------------------------------------------------------------ */
9070 1.1 christos /* Function: ipf_main_soft_destroy */
9071 1.1 christos /* Returns: void */
9072 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9073 1.1 christos /* */
9074 1.1 christos /* Undo everything that we did in ipf_main_soft_create. */
9075 1.1 christos /* */
9076 1.1 christos /* The most important check that needs to be made here is whether or not */
9077 1.1 christos /* the structure was allocated by ipf_main_soft_create() by checking what */
9078 1.1 christos /* value is stored in ipf_dynamic_main. */
9079 1.1 christos /* ------------------------------------------------------------------------ */
9080 1.1 christos /*ARGSUSED*/
9081 1.1 christos void
9082 1.3 darrenr ipf_main_soft_destroy(ipf_main_softc_t *softc)
9083 1.1 christos {
9084 1.1 christos
9085 1.1 christos RW_DESTROY(&softc->ipf_frag);
9086 1.1 christos RW_DESTROY(&softc->ipf_poolrw);
9087 1.1 christos RW_DESTROY(&softc->ipf_nat);
9088 1.1 christos RW_DESTROY(&softc->ipf_state);
9089 1.1 christos RW_DESTROY(&softc->ipf_tokens);
9090 1.1 christos RW_DESTROY(&softc->ipf_mutex);
9091 1.1 christos RW_DESTROY(&softc->ipf_global);
9092 1.1 christos MUTEX_DESTROY(&softc->ipf_timeoutlock);
9093 1.1 christos MUTEX_DESTROY(&softc->ipf_rw);
9094 1.1 christos
9095 1.1 christos if (softc->ipf_tuners != NULL) {
9096 1.1 christos KFREES(softc->ipf_tuners, sizeof(ipf_main_tuneables));
9097 1.1 christos }
9098 1.1 christos if (softc->ipf_dynamic_softc == 1) {
9099 1.1 christos KFREE(softc);
9100 1.1 christos }
9101 1.1 christos }
9102 1.1 christos
9103 1.1 christos
9104 1.1 christos /* ------------------------------------------------------------------------ */
9105 1.1 christos /* Function: ipf_main_soft_fini */
9106 1.1 christos /* Returns: 0 = success, -1 = failure */
9107 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9108 1.1 christos /* */
9109 1.1 christos /* Clean out the rules which have been added since _init was last called, */
9110 1.1 christos /* the only dynamic part of the mainline. */
9111 1.1 christos /* ------------------------------------------------------------------------ */
9112 1.1 christos int
9113 1.2 christos ipf_main_soft_fini(ipf_main_softc_t *softc)
9114 1.1 christos {
9115 1.1 christos (void) ipf_flush(softc, IPL_LOGIPF, FR_INQUE|FR_OUTQUE|FR_INACTIVE);
9116 1.1 christos (void) ipf_flush(softc, IPL_LOGIPF, FR_INQUE|FR_OUTQUE);
9117 1.1 christos (void) ipf_flush(softc, IPL_LOGCOUNT, FR_INQUE|FR_OUTQUE|FR_INACTIVE);
9118 1.1 christos (void) ipf_flush(softc, IPL_LOGCOUNT, FR_INQUE|FR_OUTQUE);
9119 1.1 christos
9120 1.1 christos return 0;
9121 1.1 christos }
9122 1.1 christos
9123 1.1 christos
9124 1.1 christos /* ------------------------------------------------------------------------ */
9125 1.1 christos /* Function: ipf_main_load */
9126 1.1 christos /* Returns: 0 = success, -1 = failure */
9127 1.1 christos /* Parameters: none */
9128 1.1 christos /* */
9129 1.1 christos /* Handle global initialisation that needs to be done for the base part of */
9130 1.1 christos /* IPFilter. At present this just amounts to initialising some ICMP lookup */
9131 1.1 christos /* arrays that get used by the state/NAT code. */
9132 1.1 christos /* ------------------------------------------------------------------------ */
9133 1.1 christos int
9134 1.2 christos ipf_main_load(void)
9135 1.1 christos {
9136 1.1 christos int i;
9137 1.1 christos
9138 1.1 christos /* fill icmp reply type table */
9139 1.1 christos for (i = 0; i <= ICMP_MAXTYPE; i++)
9140 1.1 christos icmpreplytype4[i] = -1;
9141 1.1 christos icmpreplytype4[ICMP_ECHO] = ICMP_ECHOREPLY;
9142 1.1 christos icmpreplytype4[ICMP_TSTAMP] = ICMP_TSTAMPREPLY;
9143 1.1 christos icmpreplytype4[ICMP_IREQ] = ICMP_IREQREPLY;
9144 1.1 christos icmpreplytype4[ICMP_MASKREQ] = ICMP_MASKREPLY;
9145 1.1 christos
9146 1.1 christos #ifdef USE_INET6
9147 1.1 christos /* fill icmp reply type table */
9148 1.1 christos for (i = 0; i <= ICMP6_MAXTYPE; i++)
9149 1.1 christos icmpreplytype6[i] = -1;
9150 1.1 christos icmpreplytype6[ICMP6_ECHO_REQUEST] = ICMP6_ECHO_REPLY;
9151 1.1 christos icmpreplytype6[ICMP6_MEMBERSHIP_QUERY] = ICMP6_MEMBERSHIP_REPORT;
9152 1.1 christos icmpreplytype6[ICMP6_NI_QUERY] = ICMP6_NI_REPLY;
9153 1.1 christos icmpreplytype6[ND_ROUTER_SOLICIT] = ND_ROUTER_ADVERT;
9154 1.1 christos icmpreplytype6[ND_NEIGHBOR_SOLICIT] = ND_NEIGHBOR_ADVERT;
9155 1.1 christos #endif
9156 1.1 christos
9157 1.1 christos return 0;
9158 1.1 christos }
9159 1.1 christos
9160 1.1 christos
9161 1.1 christos /* ------------------------------------------------------------------------ */
9162 1.1 christos /* Function: ipf_main_unload */
9163 1.1 christos /* Returns: 0 = success, -1 = failure */
9164 1.1 christos /* Parameters: none */
9165 1.1 christos /* */
9166 1.1 christos /* A null-op function that exists as a placeholder so that the flow in */
9167 1.1 christos /* other functions is obvious. */
9168 1.1 christos /* ------------------------------------------------------------------------ */
9169 1.1 christos int
9170 1.2 christos ipf_main_unload(void)
9171 1.1 christos {
9172 1.1 christos return 0;
9173 1.1 christos }
9174 1.1 christos
9175 1.1 christos
9176 1.1 christos /* ------------------------------------------------------------------------ */
9177 1.1 christos /* Function: ipf_load_all */
9178 1.1 christos /* Returns: 0 = success, -1 = failure */
9179 1.1 christos /* Parameters: none */
9180 1.1 christos /* */
9181 1.1 christos /* Work through all of the subsystems inside IPFilter and call the load */
9182 1.1 christos /* function for each in an order that won't lead to a crash :) */
9183 1.1 christos /* ------------------------------------------------------------------------ */
9184 1.1 christos int
9185 1.2 christos ipf_load_all(void)
9186 1.1 christos {
9187 1.1 christos if (ipf_main_load() == -1)
9188 1.1 christos return -1;
9189 1.1 christos
9190 1.1 christos if (ipf_state_main_load() == -1)
9191 1.1 christos return -1;
9192 1.1 christos
9193 1.1 christos if (ipf_nat_main_load() == -1)
9194 1.1 christos return -1;
9195 1.1 christos
9196 1.1 christos if (ipf_frag_main_load() == -1)
9197 1.1 christos return -1;
9198 1.1 christos
9199 1.1 christos if (ipf_auth_main_load() == -1)
9200 1.1 christos return -1;
9201 1.1 christos
9202 1.1 christos if (ipf_proxy_main_load() == -1)
9203 1.1 christos return -1;
9204 1.1 christos
9205 1.1 christos return 0;
9206 1.1 christos }
9207 1.1 christos
9208 1.1 christos
9209 1.1 christos /* ------------------------------------------------------------------------ */
9210 1.1 christos /* Function: ipf_unload_all */
9211 1.1 christos /* Returns: 0 = success, -1 = failure */
9212 1.1 christos /* Parameters: none */
9213 1.1 christos /* */
9214 1.1 christos /* Work through all of the subsystems inside IPFilter and call the unload */
9215 1.1 christos /* function for each in an order that won't lead to a crash :) */
9216 1.1 christos /* ------------------------------------------------------------------------ */
9217 1.1 christos int
9218 1.2 christos ipf_unload_all(void)
9219 1.1 christos {
9220 1.1 christos if (ipf_proxy_main_unload() == -1)
9221 1.1 christos return -1;
9222 1.1 christos
9223 1.1 christos if (ipf_auth_main_unload() == -1)
9224 1.1 christos return -1;
9225 1.1 christos
9226 1.1 christos if (ipf_frag_main_unload() == -1)
9227 1.1 christos return -1;
9228 1.1 christos
9229 1.1 christos if (ipf_nat_main_unload() == -1)
9230 1.1 christos return -1;
9231 1.1 christos
9232 1.1 christos if (ipf_state_main_unload() == -1)
9233 1.1 christos return -1;
9234 1.1 christos
9235 1.1 christos if (ipf_main_unload() == -1)
9236 1.1 christos return -1;
9237 1.1 christos
9238 1.1 christos return 0;
9239 1.1 christos }
9240 1.1 christos
9241 1.1 christos
9242 1.1 christos /* ------------------------------------------------------------------------ */
9243 1.1 christos /* Function: ipf_create_all */
9244 1.1 christos /* Returns: NULL = failure, else success */
9245 1.1 christos /* Parameters: arg(I) - pointer to soft context main structure */
9246 1.1 christos /* */
9247 1.1 christos /* Work through all of the subsystems inside IPFilter and call the create */
9248 1.1 christos /* function for each in an order that won't lead to a crash :) */
9249 1.1 christos /* ------------------------------------------------------------------------ */
9250 1.1 christos ipf_main_softc_t *
9251 1.2 christos ipf_create_all(void *arg)
9252 1.1 christos {
9253 1.1 christos ipf_main_softc_t *softc;
9254 1.1 christos
9255 1.1 christos softc = ipf_main_soft_create(arg);
9256 1.1 christos if (softc == NULL)
9257 1.1 christos return NULL;
9258 1.1 christos
9259 1.2 christos #ifdef IPFILTER_LOG
9260 1.1 christos softc->ipf_log_soft = ipf_log_soft_create(softc);
9261 1.1 christos if (softc->ipf_log_soft == NULL) {
9262 1.1 christos ipf_destroy_all(softc);
9263 1.1 christos return NULL;
9264 1.1 christos }
9265 1.2 christos #endif
9266 1.1 christos
9267 1.1 christos softc->ipf_lookup_soft = ipf_lookup_soft_create(softc);
9268 1.1 christos if (softc->ipf_lookup_soft == NULL) {
9269 1.1 christos ipf_destroy_all(softc);
9270 1.1 christos return NULL;
9271 1.1 christos }
9272 1.1 christos
9273 1.1 christos softc->ipf_sync_soft = ipf_sync_soft_create(softc);
9274 1.1 christos if (softc->ipf_sync_soft == NULL) {
9275 1.1 christos ipf_destroy_all(softc);
9276 1.1 christos return NULL;
9277 1.1 christos }
9278 1.1 christos
9279 1.1 christos softc->ipf_state_soft = ipf_state_soft_create(softc);
9280 1.1 christos if (softc->ipf_state_soft == NULL) {
9281 1.1 christos ipf_destroy_all(softc);
9282 1.1 christos return NULL;
9283 1.1 christos }
9284 1.1 christos
9285 1.1 christos softc->ipf_nat_soft = ipf_nat_soft_create(softc);
9286 1.1 christos if (softc->ipf_nat_soft == NULL) {
9287 1.1 christos ipf_destroy_all(softc);
9288 1.1 christos return NULL;
9289 1.1 christos }
9290 1.1 christos
9291 1.1 christos softc->ipf_frag_soft = ipf_frag_soft_create(softc);
9292 1.1 christos if (softc->ipf_frag_soft == NULL) {
9293 1.1 christos ipf_destroy_all(softc);
9294 1.1 christos return NULL;
9295 1.1 christos }
9296 1.1 christos
9297 1.1 christos softc->ipf_auth_soft = ipf_auth_soft_create(softc);
9298 1.1 christos if (softc->ipf_auth_soft == NULL) {
9299 1.1 christos ipf_destroy_all(softc);
9300 1.1 christos return NULL;
9301 1.1 christos }
9302 1.1 christos
9303 1.1 christos softc->ipf_proxy_soft = ipf_proxy_soft_create(softc);
9304 1.1 christos if (softc->ipf_proxy_soft == NULL) {
9305 1.1 christos ipf_destroy_all(softc);
9306 1.1 christos return NULL;
9307 1.1 christos }
9308 1.1 christos
9309 1.1 christos return softc;
9310 1.1 christos }
9311 1.1 christos
9312 1.1 christos
9313 1.1 christos /* ------------------------------------------------------------------------ */
9314 1.1 christos /* Function: ipf_destroy_all */
9315 1.1 christos /* Returns: void */
9316 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9317 1.1 christos /* */
9318 1.1 christos /* Work through all of the subsystems inside IPFilter and call the destroy */
9319 1.1 christos /* function for each in an order that won't lead to a crash :) */
9320 1.1 christos /* */
9321 1.1 christos /* Every one of these functions is expected to succeed, so there is no */
9322 1.1 christos /* checking of return values. */
9323 1.1 christos /* ------------------------------------------------------------------------ */
9324 1.1 christos void
9325 1.2 christos ipf_destroy_all(ipf_main_softc_t *softc)
9326 1.1 christos {
9327 1.1 christos
9328 1.1 christos if (softc->ipf_state_soft != NULL) {
9329 1.1 christos ipf_state_soft_destroy(softc, softc->ipf_state_soft);
9330 1.1 christos softc->ipf_state_soft = NULL;
9331 1.1 christos }
9332 1.1 christos
9333 1.1 christos if (softc->ipf_nat_soft != NULL) {
9334 1.1 christos ipf_nat_soft_destroy(softc, softc->ipf_nat_soft);
9335 1.1 christos softc->ipf_nat_soft = NULL;
9336 1.1 christos }
9337 1.1 christos
9338 1.1 christos if (softc->ipf_frag_soft != NULL) {
9339 1.1 christos ipf_frag_soft_destroy(softc, softc->ipf_frag_soft);
9340 1.1 christos softc->ipf_frag_soft = NULL;
9341 1.1 christos }
9342 1.1 christos
9343 1.1 christos if (softc->ipf_auth_soft != NULL) {
9344 1.1 christos ipf_auth_soft_destroy(softc, softc->ipf_auth_soft);
9345 1.1 christos softc->ipf_auth_soft = NULL;
9346 1.1 christos }
9347 1.1 christos
9348 1.1 christos if (softc->ipf_proxy_soft != NULL) {
9349 1.1 christos ipf_proxy_soft_destroy(softc, softc->ipf_proxy_soft);
9350 1.1 christos softc->ipf_proxy_soft = NULL;
9351 1.1 christos }
9352 1.1 christos
9353 1.1 christos if (softc->ipf_sync_soft != NULL) {
9354 1.1 christos ipf_sync_soft_destroy(softc, softc->ipf_sync_soft);
9355 1.1 christos softc->ipf_sync_soft = NULL;
9356 1.1 christos }
9357 1.1 christos
9358 1.1 christos if (softc->ipf_lookup_soft != NULL) {
9359 1.1 christos ipf_lookup_soft_destroy(softc, softc->ipf_lookup_soft);
9360 1.1 christos softc->ipf_lookup_soft = NULL;
9361 1.1 christos }
9362 1.1 christos
9363 1.2 christos #ifdef IPFILTER_LOG
9364 1.1 christos if (softc->ipf_log_soft != NULL) {
9365 1.1 christos ipf_log_soft_destroy(softc, softc->ipf_log_soft);
9366 1.1 christos softc->ipf_log_soft = NULL;
9367 1.1 christos }
9368 1.2 christos #endif
9369 1.1 christos
9370 1.3 darrenr ipf_main_soft_destroy(softc);
9371 1.1 christos }
9372 1.1 christos
9373 1.1 christos
9374 1.1 christos /* ------------------------------------------------------------------------ */
9375 1.1 christos /* Function: ipf_init_all */
9376 1.1 christos /* Returns: 0 = success, -1 = failure */
9377 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9378 1.1 christos /* */
9379 1.1 christos /* Work through all of the subsystems inside IPFilter and call the init */
9380 1.1 christos /* function for each in an order that won't lead to a crash :) */
9381 1.1 christos /* ------------------------------------------------------------------------ */
9382 1.1 christos int
9383 1.2 christos ipf_init_all(ipf_main_softc_t *softc)
9384 1.1 christos {
9385 1.1 christos
9386 1.1 christos if (ipf_main_soft_init(softc) == -1)
9387 1.1 christos return -1;
9388 1.1 christos
9389 1.2 christos #ifdef IPFILTER_LOG
9390 1.1 christos if (ipf_log_soft_init(softc, softc->ipf_log_soft) == -1)
9391 1.1 christos return -1;
9392 1.2 christos #endif
9393 1.1 christos
9394 1.1 christos if (ipf_lookup_soft_init(softc, softc->ipf_lookup_soft) == -1)
9395 1.1 christos return -1;
9396 1.1 christos
9397 1.1 christos if (ipf_sync_soft_init(softc, softc->ipf_sync_soft) == -1)
9398 1.1 christos return -1;
9399 1.1 christos
9400 1.1 christos if (ipf_state_soft_init(softc, softc->ipf_state_soft) == -1)
9401 1.1 christos return -1;
9402 1.1 christos
9403 1.1 christos if (ipf_nat_soft_init(softc, softc->ipf_nat_soft) == -1)
9404 1.1 christos return -1;
9405 1.1 christos
9406 1.1 christos if (ipf_frag_soft_init(softc, softc->ipf_frag_soft) == -1)
9407 1.1 christos return -1;
9408 1.1 christos
9409 1.1 christos if (ipf_auth_soft_init(softc, softc->ipf_auth_soft) == -1)
9410 1.1 christos return -1;
9411 1.1 christos
9412 1.1 christos if (ipf_proxy_soft_init(softc, softc->ipf_proxy_soft) == -1)
9413 1.1 christos return -1;
9414 1.1 christos
9415 1.1 christos return 0;
9416 1.1 christos }
9417 1.1 christos
9418 1.1 christos
9419 1.1 christos /* ------------------------------------------------------------------------ */
9420 1.1 christos /* Function: ipf_fini_all */
9421 1.1 christos /* Returns: 0 = success, -1 = failure */
9422 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9423 1.1 christos /* */
9424 1.1 christos /* Work through all of the subsystems inside IPFilter and call the fini */
9425 1.1 christos /* function for each in an order that won't lead to a crash :) */
9426 1.1 christos /* ------------------------------------------------------------------------ */
9427 1.1 christos int
9428 1.2 christos ipf_fini_all(ipf_main_softc_t *softc)
9429 1.1 christos {
9430 1.1 christos
9431 1.3 darrenr ipf_token_flush(softc);
9432 1.3 darrenr
9433 1.1 christos if (ipf_proxy_soft_fini(softc, softc->ipf_proxy_soft) == -1)
9434 1.1 christos return -1;
9435 1.1 christos
9436 1.1 christos if (ipf_auth_soft_fini(softc, softc->ipf_auth_soft) == -1)
9437 1.1 christos return -1;
9438 1.1 christos
9439 1.1 christos if (ipf_frag_soft_fini(softc, softc->ipf_frag_soft) == -1)
9440 1.1 christos return -1;
9441 1.1 christos
9442 1.1 christos if (ipf_nat_soft_fini(softc, softc->ipf_nat_soft) == -1)
9443 1.1 christos return -1;
9444 1.1 christos
9445 1.1 christos if (ipf_state_soft_fini(softc, softc->ipf_state_soft) == -1)
9446 1.1 christos return -1;
9447 1.1 christos
9448 1.1 christos if (ipf_sync_soft_fini(softc, softc->ipf_sync_soft) == -1)
9449 1.1 christos return -1;
9450 1.1 christos
9451 1.1 christos if (ipf_lookup_soft_fini(softc, softc->ipf_lookup_soft) == -1)
9452 1.1 christos return -1;
9453 1.1 christos
9454 1.2 christos #ifdef IPFILTER_LOG
9455 1.1 christos if (ipf_log_soft_fini(softc, softc->ipf_log_soft) == -1)
9456 1.1 christos return -1;
9457 1.2 christos #endif
9458 1.1 christos
9459 1.1 christos if (ipf_main_soft_fini(softc) == -1)
9460 1.1 christos return -1;
9461 1.1 christos
9462 1.1 christos return 0;
9463 1.1 christos }
9464 1.1 christos
9465 1.1 christos
9466 1.1 christos /* ------------------------------------------------------------------------ */
9467 1.1 christos /* Function: ipf_rule_expire */
9468 1.1 christos /* Returns: Nil */
9469 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9470 1.1 christos /* */
9471 1.1 christos /* At present this function exists just to support temporary addition of */
9472 1.1 christos /* firewall rules. Both inactive and active lists are scanned for items to */
9473 1.1 christos /* purge, as by rights, the expiration is computed as soon as the rule is */
9474 1.1 christos /* loaded in. */
9475 1.1 christos /* ------------------------------------------------------------------------ */
9476 1.1 christos void
9477 1.2 christos ipf_rule_expire(ipf_main_softc_t *softc)
9478 1.1 christos {
9479 1.1 christos frentry_t *fr;
9480 1.1 christos
9481 1.1 christos if ((softc->ipf_rule_explist[0] == NULL) &&
9482 1.1 christos (softc->ipf_rule_explist[1] == NULL))
9483 1.1 christos return;
9484 1.1 christos
9485 1.1 christos WRITE_ENTER(&softc->ipf_mutex);
9486 1.1 christos
9487 1.1 christos while ((fr = softc->ipf_rule_explist[0]) != NULL) {
9488 1.1 christos /*
9489 1.1 christos * Because the list is kept sorted on insertion, the fist
9490 1.1 christos * one that dies in the future means no more work to do.
9491 1.1 christos */
9492 1.1 christos if (fr->fr_die > softc->ipf_ticks)
9493 1.1 christos break;
9494 1.1 christos ipf_rule_delete(softc, fr, IPL_LOGIPF, 0);
9495 1.1 christos }
9496 1.1 christos
9497 1.1 christos while ((fr = softc->ipf_rule_explist[1]) != NULL) {
9498 1.1 christos /*
9499 1.1 christos * Because the list is kept sorted on insertion, the fist
9500 1.1 christos * one that dies in the future means no more work to do.
9501 1.1 christos */
9502 1.1 christos if (fr->fr_die > softc->ipf_ticks)
9503 1.1 christos break;
9504 1.1 christos ipf_rule_delete(softc, fr, IPL_LOGIPF, 1);
9505 1.1 christos }
9506 1.1 christos
9507 1.1 christos RWLOCK_EXIT(&softc->ipf_mutex);
9508 1.1 christos }
9509 1.1 christos
9510 1.1 christos
9511 1.7 christos static int ipf_ht_node_cmp(const struct host_node_s *, const struct host_node_s *);
9512 1.2 christos static void ipf_ht_node_make_key(host_track_t *, host_node_t *, int,
9513 1.2 christos i6addr_t *);
9514 1.1 christos
9515 1.3 darrenr RBI_CODE(ipf_rb, host_node_t, hn_entry, ipf_ht_node_cmp)
9516 1.1 christos
9517 1.1 christos
9518 1.1 christos /* ------------------------------------------------------------------------ */
9519 1.1 christos /* Function: ipf_ht_node_cmp */
9520 1.1 christos /* Returns: int - 0 == nodes are the same, .. */
9521 1.1 christos /* Parameters: k1(I) - pointer to first key to compare */
9522 1.1 christos /* k2(I) - pointer to second key to compare */
9523 1.1 christos /* */
9524 1.1 christos /* The "key" for the node is a combination of two fields: the address */
9525 1.1 christos /* family and the address itself. */
9526 1.1 christos /* */
9527 1.1 christos /* Because we're not actually interpreting the address data, it isn't */
9528 1.1 christos /* necessary to convert them to/from network/host byte order. The mask is */
9529 1.1 christos /* just used to remove bits that aren't significant - it doesn't matter */
9530 1.1 christos /* where they are, as long as they're always in the same place. */
9531 1.1 christos /* */
9532 1.1 christos /* As with IP6_EQ, comparing IPv6 addresses starts at the bottom because */
9533 1.1 christos /* this is where individual ones will differ the most - but not true for */
9534 1.1 christos /* for /48's, etc. */
9535 1.1 christos /* ------------------------------------------------------------------------ */
9536 1.1 christos static int
9537 1.7 christos ipf_ht_node_cmp(const struct host_node_s *k1, const struct host_node_s *k2)
9538 1.1 christos {
9539 1.1 christos int i;
9540 1.1 christos
9541 1.1 christos i = (k2->hn_addr.adf_family - k1->hn_addr.adf_family);
9542 1.1 christos if (i != 0)
9543 1.1 christos return i;
9544 1.1 christos
9545 1.1 christos if (k1->hn_addr.adf_family == AF_INET)
9546 1.1 christos return (k2->hn_addr.adf_addr.in4.s_addr -
9547 1.1 christos k1->hn_addr.adf_addr.in4.s_addr);
9548 1.1 christos
9549 1.1 christos i = k2->hn_addr.adf_addr.i6[3] - k1->hn_addr.adf_addr.i6[3];
9550 1.1 christos if (i != 0)
9551 1.1 christos return i;
9552 1.1 christos i = k2->hn_addr.adf_addr.i6[2] - k1->hn_addr.adf_addr.i6[2];
9553 1.1 christos if (i != 0)
9554 1.1 christos return i;
9555 1.1 christos i = k2->hn_addr.adf_addr.i6[1] - k1->hn_addr.adf_addr.i6[1];
9556 1.1 christos if (i != 0)
9557 1.1 christos return i;
9558 1.1 christos i = k2->hn_addr.adf_addr.i6[0] - k1->hn_addr.adf_addr.i6[0];
9559 1.1 christos return i;
9560 1.1 christos }
9561 1.1 christos
9562 1.1 christos
9563 1.1 christos /* ------------------------------------------------------------------------ */
9564 1.1 christos /* Function: ipf_ht_node_make_key */
9565 1.1 christos /* Returns: Nil */
9566 1.1 christos /* parameters: htp(I) - pointer to address tracking structure */
9567 1.1 christos /* key(I) - where to store masked address for lookup */
9568 1.1 christos /* family(I) - protocol family of address */
9569 1.1 christos /* addr(I) - pointer to network address */
9570 1.1 christos /* */
9571 1.1 christos /* Using the "netmask" (number of bits) stored parent host tracking struct, */
9572 1.1 christos /* copy the address passed in into the key structure whilst masking out the */
9573 1.1 christos /* bits that we don't want. */
9574 1.1 christos /* */
9575 1.1 christos /* Because the parser will set ht_netmask to 128 if there is no protocol */
9576 1.1 christos /* specified (the parser doesn't know if it should be a v4 or v6 rule), we */
9577 1.1 christos /* have to be wary of that and not allow 32-128 to happen. */
9578 1.1 christos /* ------------------------------------------------------------------------ */
9579 1.1 christos static void
9580 1.2 christos ipf_ht_node_make_key(host_track_t *htp, host_node_t *key, int family,
9581 1.2 christos i6addr_t *addr)
9582 1.1 christos {
9583 1.1 christos key->hn_addr.adf_family = family;
9584 1.1 christos if (family == AF_INET) {
9585 1.1 christos u_32_t mask;
9586 1.1 christos int bits;
9587 1.1 christos
9588 1.1 christos key->hn_addr.adf_len = sizeof(key->hn_addr.adf_addr.in4);
9589 1.1 christos bits = htp->ht_netmask;
9590 1.1 christos if (bits >= 32) {
9591 1.1 christos mask = 0xffffffff;
9592 1.1 christos } else {
9593 1.1 christos mask = htonl(0xffffffff << (32 - bits));
9594 1.1 christos }
9595 1.1 christos key->hn_addr.adf_addr.in4.s_addr = addr->in4.s_addr & mask;
9596 1.2 christos #ifdef USE_INET6
9597 1.1 christos } else {
9598 1.1 christos int bits = htp->ht_netmask;
9599 1.1 christos
9600 1.1 christos key->hn_addr.adf_len = sizeof(key->hn_addr.adf_addr.in6);
9601 1.1 christos if (bits > 96) {
9602 1.1 christos key->hn_addr.adf_addr.i6[3] = addr->i6[3] &
9603 1.1 christos htonl(0xffffffff << (128 - bits));
9604 1.1 christos key->hn_addr.adf_addr.i6[2] = addr->i6[2];
9605 1.1 christos key->hn_addr.adf_addr.i6[1] = addr->i6[2];
9606 1.1 christos key->hn_addr.adf_addr.i6[0] = addr->i6[2];
9607 1.1 christos } else if (bits > 64) {
9608 1.1 christos key->hn_addr.adf_addr.i6[3] = 0;
9609 1.1 christos key->hn_addr.adf_addr.i6[2] = addr->i6[2] &
9610 1.1 christos htonl(0xffffffff << (96 - bits));
9611 1.1 christos key->hn_addr.adf_addr.i6[1] = addr->i6[1];
9612 1.1 christos key->hn_addr.adf_addr.i6[0] = addr->i6[0];
9613 1.1 christos } else if (bits > 32) {
9614 1.1 christos key->hn_addr.adf_addr.i6[3] = 0;
9615 1.1 christos key->hn_addr.adf_addr.i6[2] = 0;
9616 1.1 christos key->hn_addr.adf_addr.i6[1] = addr->i6[1] &
9617 1.1 christos htonl(0xffffffff << (64 - bits));
9618 1.1 christos key->hn_addr.adf_addr.i6[0] = addr->i6[0];
9619 1.1 christos } else {
9620 1.1 christos key->hn_addr.adf_addr.i6[3] = 0;
9621 1.1 christos key->hn_addr.adf_addr.i6[2] = 0;
9622 1.1 christos key->hn_addr.adf_addr.i6[1] = 0;
9623 1.1 christos key->hn_addr.adf_addr.i6[0] = addr->i6[0] &
9624 1.1 christos htonl(0xffffffff << (32 - bits));
9625 1.1 christos }
9626 1.2 christos #endif
9627 1.1 christos }
9628 1.1 christos }
9629 1.1 christos
9630 1.1 christos
9631 1.1 christos /* ------------------------------------------------------------------------ */
9632 1.1 christos /* Function: ipf_ht_node_add */
9633 1.1 christos /* Returns: int - 0 == success, -1 == failure */
9634 1.1 christos /* Parameters: softc(I) - pointer to soft context main structure */
9635 1.1 christos /* htp(I) - pointer to address tracking structure */
9636 1.1 christos /* family(I) - protocol family of address */
9637 1.1 christos /* addr(I) - pointer to network address */
9638 1.1 christos /* */
9639 1.1 christos /* NOTE: THIS FUNCTION MUST BE CALLED WITH AN EXCLUSIVE LOCK THAT PREVENTS */
9640 1.1 christos /* ipf_ht_node_del FROM RUNNING CONCURRENTLY ON THE SAME htp. */
9641 1.1 christos /* */
9642 1.1 christos /* After preparing the key with the address information to find, look in */
9643 1.1 christos /* the red-black tree to see if the address is known. A successful call to */
9644 1.1 christos /* this function can mean one of two things: a new node was added to the */
9645 1.1 christos /* tree or a matching node exists and we're able to bump up its activity. */
9646 1.1 christos /* ------------------------------------------------------------------------ */
9647 1.1 christos int
9648 1.2 christos ipf_ht_node_add(ipf_main_softc_t *softc, host_track_t *htp, int family,
9649 1.2 christos i6addr_t *addr)
9650 1.1 christos {
9651 1.1 christos host_node_t *h;
9652 1.1 christos host_node_t k;
9653 1.1 christos
9654 1.1 christos ipf_ht_node_make_key(htp, &k, family, addr);
9655 1.1 christos
9656 1.1 christos h = RBI_SEARCH(ipf_rb, &htp->ht_root, &k);
9657 1.1 christos if (h == NULL) {
9658 1.1 christos if (htp->ht_cur_nodes >= htp->ht_max_nodes)
9659 1.1 christos return -1;
9660 1.1 christos KMALLOC(h, host_node_t *);
9661 1.1 christos if (h == NULL) {
9662 1.1 christos DT(ipf_rb_no_mem);
9663 1.1 christos LBUMP(ipf_rb_no_mem);
9664 1.1 christos return -1;
9665 1.1 christos }
9666 1.1 christos
9667 1.1 christos /*
9668 1.1 christos * If there was a macro to initialise the RB node then that
9669 1.1 christos * would get used here, but there isn't...
9670 1.1 christos */
9671 1.1 christos bzero((char *)h, sizeof(*h));
9672 1.1 christos h->hn_addr = k.hn_addr;
9673 1.1 christos h->hn_addr.adf_family = k.hn_addr.adf_family;
9674 1.1 christos RBI_INSERT(ipf_rb, &htp->ht_root, h);
9675 1.1 christos htp->ht_cur_nodes++;
9676 1.1 christos } else {
9677 1.1 christos if ((htp->ht_max_per_node != 0) &&
9678 1.1 christos (h->hn_active >= htp->ht_max_per_node)) {
9679 1.1 christos DT(ipf_rb_node_max);
9680 1.1 christos LBUMP(ipf_rb_node_max);
9681 1.1 christos return -1;
9682 1.1 christos }
9683 1.1 christos }
9684 1.1 christos
9685 1.1 christos h->hn_active++;
9686 1.1 christos
9687 1.1 christos return 0;
9688 1.1 christos }
9689 1.1 christos
9690 1.1 christos
9691 1.1 christos /* ------------------------------------------------------------------------ */
9692 1.1 christos /* Function: ipf_ht_node_del */
9693 1.1 christos /* Returns: int - 0 == success, -1 == failure */
9694 1.1 christos /* parameters: htp(I) - pointer to address tracking structure */
9695 1.1 christos /* family(I) - protocol family of address */
9696 1.1 christos /* addr(I) - pointer to network address */
9697 1.1 christos /* */
9698 1.1 christos /* NOTE: THIS FUNCTION MUST BE CALLED WITH AN EXCLUSIVE LOCK THAT PREVENTS */
9699 1.1 christos /* ipf_ht_node_add FROM RUNNING CONCURRENTLY ON THE SAME htp. */
9700 1.1 christos /* */
9701 1.7 christos /* Try and find the address passed in amongst the leaves on this tree to */
9702 1.1 christos /* be friend. If found then drop the active account for that node drops by */
9703 1.1 christos /* one. If that count reaches 0, it is time to free it all up. */
9704 1.1 christos /* ------------------------------------------------------------------------ */
9705 1.1 christos int
9706 1.2 christos ipf_ht_node_del(host_track_t *htp, int family, i6addr_t *addr)
9707 1.1 christos {
9708 1.1 christos host_node_t *h;
9709 1.1 christos host_node_t k;
9710 1.1 christos
9711 1.1 christos ipf_ht_node_make_key(htp, &k, family, addr);
9712 1.1 christos
9713 1.1 christos h = RBI_SEARCH(ipf_rb, &htp->ht_root, &k);
9714 1.1 christos if (h == NULL) {
9715 1.1 christos return -1;
9716 1.1 christos } else {
9717 1.1 christos h->hn_active--;
9718 1.1 christos if (h->hn_active == 0) {
9719 1.1 christos (void) RBI_DELETE(ipf_rb, &htp->ht_root, h);
9720 1.1 christos htp->ht_cur_nodes--;
9721 1.1 christos KFREE(h);
9722 1.1 christos }
9723 1.1 christos }
9724 1.1 christos
9725 1.1 christos return 0;
9726 1.1 christos }
9727 1.1 christos
9728 1.1 christos
9729 1.1 christos /* ------------------------------------------------------------------------ */
9730 1.1 christos /* Function: ipf_rb_ht_init */
9731 1.1 christos /* Returns: Nil */
9732 1.1 christos /* Parameters: head(I) - pointer to host tracking structure */
9733 1.1 christos /* */
9734 1.1 christos /* Initialise the host tracking structure to be ready for use above. */
9735 1.1 christos /* ------------------------------------------------------------------------ */
9736 1.1 christos void
9737 1.2 christos ipf_rb_ht_init(host_track_t *head)
9738 1.1 christos {
9739 1.8 christos memset(head, 0, sizeof(*head));
9740 1.1 christos RBI_INIT(ipf_rb, &head->ht_root);
9741 1.1 christos }
9742 1.1 christos
9743 1.1 christos
9744 1.1 christos /* ------------------------------------------------------------------------ */
9745 1.1 christos /* Function: ipf_rb_ht_freenode */
9746 1.1 christos /* Returns: Nil */
9747 1.1 christos /* Parameters: head(I) - pointer to host tracking structure */
9748 1.1 christos /* arg(I) - additional argument from walk caller */
9749 1.1 christos /* */
9750 1.1 christos /* Free an actual host_node_t structure. */
9751 1.1 christos /* ------------------------------------------------------------------------ */
9752 1.1 christos void
9753 1.2 christos ipf_rb_ht_freenode(host_node_t *node, void *arg)
9754 1.1 christos {
9755 1.1 christos KFREE(node);
9756 1.1 christos }
9757 1.1 christos
9758 1.1 christos
9759 1.1 christos /* ------------------------------------------------------------------------ */
9760 1.1 christos /* Function: ipf_rb_ht_flush */
9761 1.1 christos /* Returns: Nil */
9762 1.1 christos /* Parameters: head(I) - pointer to host tracking structure */
9763 1.1 christos /* */
9764 1.1 christos /* Remove all of the nodes in the tree tracking hosts by calling a walker */
9765 1.1 christos /* and free'ing each one. */
9766 1.1 christos /* ------------------------------------------------------------------------ */
9767 1.1 christos void
9768 1.2 christos ipf_rb_ht_flush(host_track_t *head)
9769 1.1 christos {
9770 1.7 christos /* XXX - May use node members after freeing the node. */
9771 1.1 christos RBI_WALK(ipf_rb, &head->ht_root, ipf_rb_ht_freenode, NULL);
9772 1.1 christos }
9773 1.1 christos
9774 1.1 christos
9775 1.1 christos /* ------------------------------------------------------------------------ */
9776 1.1 christos /* Function: ipf_slowtimer */
9777 1.1 christos /* Returns: Nil */
9778 1.1 christos /* Parameters: ptr(I) - pointer to main ipf soft context structure */
9779 1.1 christos /* */
9780 1.1 christos /* Slowly expire held state for fragments. Timeouts are set * in */
9781 1.1 christos /* expectation of this being called twice per second. */
9782 1.1 christos /* ------------------------------------------------------------------------ */
9783 1.1 christos void
9784 1.2 christos ipf_slowtimer(ipf_main_softc_t *softc)
9785 1.1 christos {
9786 1.1 christos
9787 1.1 christos ipf_token_expire(softc);
9788 1.1 christos ipf_frag_expire(softc);
9789 1.1 christos ipf_state_expire(softc);
9790 1.1 christos ipf_nat_expire(softc);
9791 1.1 christos ipf_auth_expire(softc);
9792 1.1 christos ipf_lookup_expire(softc);
9793 1.1 christos ipf_rule_expire(softc);
9794 1.1 christos ipf_sync_expire(softc);
9795 1.1 christos softc->ipf_ticks++;
9796 1.1 christos # if defined(__OpenBSD__)
9797 1.1 christos timeout_add(&ipf_slowtimer_ch, hz/2);
9798 1.1 christos # endif
9799 1.1 christos }
9800 1.3 darrenr
9801 1.3 darrenr
9802 1.3 darrenr /* ------------------------------------------------------------------------ */
9803 1.3 darrenr /* Function: ipf_inet_mask_add */
9804 1.3 darrenr /* Returns: Nil */
9805 1.3 darrenr /* Parameters: bits(I) - pointer to nat context information */
9806 1.3 darrenr /* mtab(I) - pointer to mask hash table structure */
9807 1.3 darrenr /* */
9808 1.3 darrenr /* When called, bits represents the mask of a new NAT rule that has just */
9809 1.3 darrenr /* been added. This function inserts a bitmask into the array of masks to */
9810 1.3 darrenr /* search when searching for a matching NAT rule for a packet. */
9811 1.3 darrenr /* Prevention of duplicate masks is achieved by checking the use count for */
9812 1.3 darrenr /* a given netmask. */
9813 1.3 darrenr /* ------------------------------------------------------------------------ */
9814 1.3 darrenr void
9815 1.4 darrenr ipf_inet_mask_add(int bits, ipf_v4_masktab_t *mtab)
9816 1.3 darrenr {
9817 1.3 darrenr u_32_t mask;
9818 1.3 darrenr int i, j;
9819 1.3 darrenr
9820 1.3 darrenr mtab->imt4_masks[bits]++;
9821 1.3 darrenr if (mtab->imt4_masks[bits] > 1)
9822 1.3 darrenr return;
9823 1.3 darrenr
9824 1.3 darrenr if (bits == 0)
9825 1.3 darrenr mask = 0;
9826 1.3 darrenr else
9827 1.3 darrenr mask = 0xffffffff << (32 - bits);
9828 1.3 darrenr
9829 1.3 darrenr for (i = 0; i < 33; i++) {
9830 1.3 darrenr if (ntohl(mtab->imt4_active[i]) < mask) {
9831 1.3 darrenr for (j = 32; j > i; j--)
9832 1.3 darrenr mtab->imt4_active[j] = mtab->imt4_active[j - 1];
9833 1.3 darrenr mtab->imt4_active[i] = htonl(mask);
9834 1.3 darrenr break;
9835 1.3 darrenr }
9836 1.3 darrenr }
9837 1.3 darrenr mtab->imt4_max++;
9838 1.3 darrenr }
9839 1.3 darrenr
9840 1.3 darrenr
9841 1.3 darrenr /* ------------------------------------------------------------------------ */
9842 1.3 darrenr /* Function: ipf_inet_mask_del */
9843 1.3 darrenr /* Returns: Nil */
9844 1.3 darrenr /* Parameters: bits(I) - number of bits set in the netmask */
9845 1.3 darrenr /* mtab(I) - pointer to mask hash table structure */
9846 1.3 darrenr /* */
9847 1.3 darrenr /* Remove the 32bit bitmask represented by "bits" from the collection of */
9848 1.3 darrenr /* netmasks stored inside of mtab. */
9849 1.3 darrenr /* ------------------------------------------------------------------------ */
9850 1.3 darrenr void
9851 1.5 darrenr ipf_inet_mask_del(int bits, ipf_v4_masktab_t *mtab)
9852 1.3 darrenr {
9853 1.3 darrenr u_32_t mask;
9854 1.3 darrenr int i, j;
9855 1.3 darrenr
9856 1.3 darrenr mtab->imt4_masks[bits]--;
9857 1.3 darrenr if (mtab->imt4_masks[bits] > 0)
9858 1.3 darrenr return;
9859 1.3 darrenr
9860 1.3 darrenr mask = htonl(0xffffffff << (32 - bits));
9861 1.3 darrenr for (i = 0; i < 33; i++) {
9862 1.3 darrenr if (mtab->imt4_active[i] == mask) {
9863 1.3 darrenr for (j = i + 1; j < 33; j++)
9864 1.3 darrenr mtab->imt4_active[j - 1] = mtab->imt4_active[j];
9865 1.3 darrenr break;
9866 1.3 darrenr }
9867 1.3 darrenr }
9868 1.3 darrenr mtab->imt4_max--;
9869 1.3 darrenr ASSERT(mtab->imt4_max >= 0);
9870 1.3 darrenr }
9871 1.3 darrenr
9872 1.3 darrenr
9873 1.3 darrenr #ifdef USE_INET6
9874 1.3 darrenr /* ------------------------------------------------------------------------ */
9875 1.3 darrenr /* Function: ipf_inet6_mask_add */
9876 1.3 darrenr /* Returns: Nil */
9877 1.3 darrenr /* Parameters: bits(I) - number of bits set in mask */
9878 1.3 darrenr /* mask(I) - pointer to mask to add */
9879 1.3 darrenr /* mtab(I) - pointer to mask hash table structure */
9880 1.3 darrenr /* */
9881 1.3 darrenr /* When called, bitcount represents the mask of a IPv6 NAT map rule that */
9882 1.3 darrenr /* has just been added. This function inserts a bitmask into the array of */
9883 1.3 darrenr /* masks to search when searching for a matching NAT rule for a packet. */
9884 1.3 darrenr /* Prevention of duplicate masks is achieved by checking the use count for */
9885 1.3 darrenr /* a given netmask. */
9886 1.3 darrenr /* ------------------------------------------------------------------------ */
9887 1.3 darrenr void
9888 1.4 darrenr ipf_inet6_mask_add(int bits, i6addr_t *mask, ipf_v6_masktab_t *mtab)
9889 1.3 darrenr {
9890 1.3 darrenr i6addr_t zero;
9891 1.3 darrenr int i, j;
9892 1.3 darrenr
9893 1.3 darrenr mtab->imt6_masks[bits]++;
9894 1.3 darrenr if (mtab->imt6_masks[bits] > 1)
9895 1.3 darrenr return;
9896 1.3 darrenr
9897 1.3 darrenr if (bits == 0) {
9898 1.3 darrenr mask = &zero;
9899 1.3 darrenr zero.i6[0] = 0;
9900 1.3 darrenr zero.i6[1] = 0;
9901 1.3 darrenr zero.i6[2] = 0;
9902 1.3 darrenr zero.i6[3] = 0;
9903 1.3 darrenr }
9904 1.3 darrenr
9905 1.3 darrenr for (i = 0; i < 129; i++) {
9906 1.3 darrenr if (IP6_LT(&mtab->imt6_active[i], mask)) {
9907 1.3 darrenr for (j = 128; j > i; j--)
9908 1.3 darrenr mtab->imt6_active[j] = mtab->imt6_active[j - 1];
9909 1.3 darrenr mtab->imt6_active[i] = *mask;
9910 1.3 darrenr break;
9911 1.3 darrenr }
9912 1.3 darrenr }
9913 1.3 darrenr mtab->imt6_max++;
9914 1.3 darrenr }
9915 1.3 darrenr
9916 1.3 darrenr
9917 1.3 darrenr /* ------------------------------------------------------------------------ */
9918 1.3 darrenr /* Function: ipf_inet6_mask_del */
9919 1.3 darrenr /* Returns: Nil */
9920 1.3 darrenr /* Parameters: bits(I) - number of bits set in mask */
9921 1.3 darrenr /* mask(I) - pointer to mask to remove */
9922 1.3 darrenr /* mtab(I) - pointer to mask hash table structure */
9923 1.3 darrenr /* */
9924 1.3 darrenr /* Remove the 128bit bitmask represented by "bits" from the collection of */
9925 1.3 darrenr /* netmasks stored inside of mtab. */
9926 1.3 darrenr /* ------------------------------------------------------------------------ */
9927 1.3 darrenr void
9928 1.4 darrenr ipf_inet6_mask_del(int bits, i6addr_t *mask, ipf_v6_masktab_t *mtab)
9929 1.3 darrenr {
9930 1.3 darrenr i6addr_t zero;
9931 1.3 darrenr int i, j;
9932 1.3 darrenr
9933 1.3 darrenr mtab->imt6_masks[bits]--;
9934 1.3 darrenr if (mtab->imt6_masks[bits] > 0)
9935 1.3 darrenr return;
9936 1.3 darrenr
9937 1.3 darrenr if (bits == 0)
9938 1.3 darrenr mask = &zero;
9939 1.3 darrenr zero.i6[0] = 0;
9940 1.3 darrenr zero.i6[1] = 0;
9941 1.3 darrenr zero.i6[2] = 0;
9942 1.3 darrenr zero.i6[3] = 0;
9943 1.3 darrenr
9944 1.3 darrenr for (i = 0; i < 129; i++) {
9945 1.3 darrenr if (IP6_EQ(&mtab->imt6_active[i], mask)) {
9946 1.3 darrenr for (j = i + 1; j < 129; j++) {
9947 1.3 darrenr mtab->imt6_active[j - 1] = mtab->imt6_active[j];
9948 1.3 darrenr if (IP6_EQ(&mtab->imt6_active[j - 1], &zero))
9949 1.3 darrenr break;
9950 1.3 darrenr }
9951 1.3 darrenr break;
9952 1.3 darrenr }
9953 1.3 darrenr }
9954 1.3 darrenr mtab->imt6_max--;
9955 1.3 darrenr ASSERT(mtab->imt6_max >= 0);
9956 1.3 darrenr }
9957 1.3 darrenr #endif
9958