npf_build.c revision 1.14 1 1.14 rmind /* $NetBSD: npf_build.c,v 1.14 2012/09/16 13:47:41 rmind Exp $ */
2 1.1 rmind
3 1.1 rmind /*-
4 1.1 rmind * Copyright (c) 2011-2012 The NetBSD Foundation, Inc.
5 1.1 rmind * All rights reserved.
6 1.1 rmind *
7 1.1 rmind * This material is based upon work partially supported by The
8 1.1 rmind * NetBSD Foundation under a contract with Mindaugas Rasiukevicius.
9 1.1 rmind *
10 1.1 rmind * Redistribution and use in source and binary forms, with or without
11 1.1 rmind * modification, are permitted provided that the following conditions
12 1.1 rmind * are met:
13 1.1 rmind * 1. Redistributions of source code must retain the above copyright
14 1.1 rmind * notice, this list of conditions and the following disclaimer.
15 1.1 rmind * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 rmind * notice, this list of conditions and the following disclaimer in the
17 1.1 rmind * documentation and/or other materials provided with the distribution.
18 1.1 rmind *
19 1.1 rmind * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.1 rmind * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.1 rmind * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.1 rmind * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.1 rmind * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.1 rmind * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.1 rmind * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.1 rmind * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.1 rmind * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.1 rmind * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.1 rmind * POSSIBILITY OF SUCH DAMAGE.
30 1.1 rmind */
31 1.1 rmind
32 1.1 rmind /*
33 1.1 rmind * npfctl(8) building of the configuration.
34 1.1 rmind */
35 1.1 rmind
36 1.1 rmind #include <sys/cdefs.h>
37 1.14 rmind __RCSID("$NetBSD: npf_build.c,v 1.14 2012/09/16 13:47:41 rmind Exp $");
38 1.1 rmind
39 1.1 rmind #include <sys/types.h>
40 1.1 rmind #include <sys/ioctl.h>
41 1.1 rmind
42 1.1 rmind #include <stdlib.h>
43 1.1 rmind #include <inttypes.h>
44 1.1 rmind #include <string.h>
45 1.14 rmind #include <errno.h>
46 1.1 rmind #include <err.h>
47 1.1 rmind
48 1.1 rmind #include "npfctl.h"
49 1.1 rmind
50 1.1 rmind static nl_config_t * npf_conf = NULL;
51 1.1 rmind static nl_rule_t * current_group = NULL;
52 1.1 rmind static bool npf_debug = false;
53 1.1 rmind static bool defgroup_set = false;
54 1.1 rmind
55 1.1 rmind void
56 1.1 rmind npfctl_config_init(bool debug)
57 1.1 rmind {
58 1.1 rmind
59 1.1 rmind npf_conf = npf_config_create();
60 1.1 rmind if (npf_conf == NULL) {
61 1.1 rmind errx(EXIT_FAILURE, "npf_config_create failed");
62 1.1 rmind }
63 1.1 rmind npf_debug = debug;
64 1.1 rmind }
65 1.1 rmind
66 1.1 rmind int
67 1.13 rmind npfctl_config_send(int fd, const char *out)
68 1.1 rmind {
69 1.1 rmind int error;
70 1.1 rmind
71 1.13 rmind if (out) {
72 1.13 rmind _npf_config_setsubmit(npf_conf, out);
73 1.13 rmind printf("\nSaving to %s\n", out);
74 1.1 rmind }
75 1.1 rmind if (!defgroup_set) {
76 1.1 rmind errx(EXIT_FAILURE, "default group was not defined");
77 1.1 rmind }
78 1.1 rmind error = npf_config_submit(npf_conf, fd);
79 1.3 rmind if (error) {
80 1.3 rmind nl_error_t ne;
81 1.3 rmind _npf_config_error(npf_conf, &ne);
82 1.3 rmind npfctl_print_error(&ne);
83 1.3 rmind }
84 1.1 rmind npf_config_destroy(npf_conf);
85 1.1 rmind return error;
86 1.1 rmind }
87 1.1 rmind
88 1.13 rmind unsigned long
89 1.13 rmind npfctl_debug_addif(const char *ifname)
90 1.13 rmind {
91 1.13 rmind char tname[] = "npftest";
92 1.13 rmind const size_t tnamelen = sizeof(tname) - 1;
93 1.13 rmind
94 1.13 rmind if (!npf_debug || strncmp(ifname, tname, tnamelen) != 0) {
95 1.13 rmind return 0;
96 1.13 rmind }
97 1.13 rmind struct ifaddrs ifa = {
98 1.13 rmind .ifa_name = __UNCONST(ifname),
99 1.13 rmind .ifa_flags = 0
100 1.13 rmind };
101 1.13 rmind unsigned long if_idx = atol(ifname + tnamelen) + 1;
102 1.13 rmind _npf_debug_addif(npf_conf, &ifa, if_idx);
103 1.13 rmind return if_idx;
104 1.13 rmind }
105 1.13 rmind
106 1.1 rmind bool
107 1.1 rmind npfctl_table_exists_p(const char *id)
108 1.1 rmind {
109 1.1 rmind return npf_table_exists_p(npf_conf, atoi(id));
110 1.1 rmind }
111 1.1 rmind
112 1.7 rmind static in_port_t
113 1.1 rmind npfctl_get_singleport(const npfvar_t *vp)
114 1.1 rmind {
115 1.1 rmind port_range_t *pr;
116 1.7 rmind in_port_t *port;
117 1.1 rmind
118 1.1 rmind if (npfvar_get_count(vp) > 1) {
119 1.1 rmind yyerror("multiple ports are not valid");
120 1.1 rmind }
121 1.1 rmind pr = npfvar_get_data(vp, NPFVAR_PORT_RANGE, 0);
122 1.1 rmind if (pr->pr_start != pr->pr_end) {
123 1.1 rmind yyerror("port range is not valid");
124 1.1 rmind }
125 1.7 rmind port = &pr->pr_start;
126 1.7 rmind return *port;
127 1.1 rmind }
128 1.1 rmind
129 1.1 rmind static fam_addr_mask_t *
130 1.1 rmind npfctl_get_singlefam(const npfvar_t *vp)
131 1.1 rmind {
132 1.1 rmind if (npfvar_get_count(vp) > 1) {
133 1.1 rmind yyerror("multiple addresses are not valid");
134 1.1 rmind }
135 1.1 rmind return npfvar_get_data(vp, NPFVAR_FAM, 0);
136 1.1 rmind }
137 1.1 rmind
138 1.10 rmind static bool
139 1.1 rmind npfctl_build_fam(nc_ctx_t *nc, sa_family_t family,
140 1.1 rmind fam_addr_mask_t *fam, int opts)
141 1.1 rmind {
142 1.1 rmind /*
143 1.1 rmind * If family is specified, address does not match it and the
144 1.1 rmind * address is extracted from the interface, then simply ignore.
145 1.1 rmind * Otherwise, address of invalid family was passed manually.
146 1.1 rmind */
147 1.1 rmind if (family != AF_UNSPEC && family != fam->fam_family) {
148 1.1 rmind if (!fam->fam_interface) {
149 1.1 rmind yyerror("specified address is not of the required "
150 1.1 rmind "family %d", family);
151 1.1 rmind }
152 1.10 rmind return false;
153 1.1 rmind }
154 1.1 rmind
155 1.1 rmind /*
156 1.1 rmind * Optimise 0.0.0.0/0 case to be NOP. Otherwise, address with
157 1.1 rmind * zero mask would never match and therefore is not valid.
158 1.1 rmind */
159 1.1 rmind if (fam->fam_mask == 0) {
160 1.1 rmind npf_addr_t zero;
161 1.10 rmind
162 1.1 rmind memset(&zero, 0, sizeof(npf_addr_t));
163 1.1 rmind if (memcmp(&fam->fam_addr, &zero, sizeof(npf_addr_t))) {
164 1.1 rmind yyerror("filter criterion would never match");
165 1.1 rmind }
166 1.10 rmind return false;
167 1.1 rmind }
168 1.1 rmind
169 1.1 rmind switch (fam->fam_family) {
170 1.1 rmind case AF_INET:
171 1.1 rmind npfctl_gennc_v4cidr(nc, opts,
172 1.1 rmind &fam->fam_addr, fam->fam_mask);
173 1.1 rmind break;
174 1.1 rmind case AF_INET6:
175 1.1 rmind npfctl_gennc_v6cidr(nc, opts,
176 1.1 rmind &fam->fam_addr, fam->fam_mask);
177 1.1 rmind break;
178 1.1 rmind default:
179 1.1 rmind yyerror("family %d is not supported", fam->fam_family);
180 1.1 rmind }
181 1.10 rmind return true;
182 1.1 rmind }
183 1.1 rmind
184 1.1 rmind static void
185 1.1 rmind npfctl_build_vars(nc_ctx_t *nc, sa_family_t family, npfvar_t *vars, int opts)
186 1.1 rmind {
187 1.6 christos const int type = npfvar_get_type(vars, 0);
188 1.1 rmind size_t i;
189 1.1 rmind
190 1.1 rmind npfctl_ncgen_group(nc);
191 1.1 rmind for (i = 0; i < npfvar_get_count(vars); i++) {
192 1.1 rmind void *data = npfvar_get_data(vars, type, i);
193 1.1 rmind assert(data != NULL);
194 1.1 rmind
195 1.1 rmind switch (type) {
196 1.1 rmind case NPFVAR_FAM: {
197 1.1 rmind fam_addr_mask_t *fam = data;
198 1.1 rmind npfctl_build_fam(nc, family, fam, opts);
199 1.1 rmind break;
200 1.1 rmind }
201 1.1 rmind case NPFVAR_PORT_RANGE: {
202 1.1 rmind port_range_t *pr = data;
203 1.1 rmind if (opts & NC_MATCH_TCP) {
204 1.1 rmind npfctl_gennc_ports(nc, opts & ~NC_MATCH_UDP,
205 1.1 rmind pr->pr_start, pr->pr_end);
206 1.1 rmind }
207 1.1 rmind if (opts & NC_MATCH_UDP) {
208 1.1 rmind npfctl_gennc_ports(nc, opts & ~NC_MATCH_TCP,
209 1.1 rmind pr->pr_start, pr->pr_end);
210 1.1 rmind }
211 1.1 rmind break;
212 1.1 rmind }
213 1.1 rmind case NPFVAR_TABLE: {
214 1.1 rmind u_int tid = atoi(data);
215 1.1 rmind npfctl_gennc_tbl(nc, opts, tid);
216 1.1 rmind break;
217 1.1 rmind }
218 1.1 rmind default:
219 1.1 rmind assert(false);
220 1.1 rmind }
221 1.1 rmind }
222 1.1 rmind npfctl_ncgen_endgroup(nc);
223 1.1 rmind }
224 1.1 rmind
225 1.1 rmind static int
226 1.10 rmind npfctl_build_proto(nc_ctx_t *nc, sa_family_t family,
227 1.10 rmind const opt_proto_t *op, bool nof, bool nop)
228 1.1 rmind {
229 1.1 rmind const npfvar_t *popts = op->op_opts;
230 1.10 rmind const int proto = op->op_proto;
231 1.1 rmind int pflag = 0;
232 1.1 rmind
233 1.10 rmind switch (proto) {
234 1.1 rmind case IPPROTO_TCP:
235 1.1 rmind pflag = NC_MATCH_TCP;
236 1.1 rmind if (!popts) {
237 1.1 rmind break;
238 1.1 rmind }
239 1.1 rmind assert(npfvar_get_count(popts) == 2);
240 1.1 rmind
241 1.1 rmind /* Build TCP flags block (optional). */
242 1.1 rmind uint8_t *tf, *tf_mask;
243 1.1 rmind
244 1.1 rmind tf = npfvar_get_data(popts, NPFVAR_TCPFLAG, 0);
245 1.1 rmind tf_mask = npfvar_get_data(popts, NPFVAR_TCPFLAG, 1);
246 1.1 rmind npfctl_gennc_tcpfl(nc, *tf, *tf_mask);
247 1.10 rmind nop = false;
248 1.1 rmind break;
249 1.1 rmind case IPPROTO_UDP:
250 1.1 rmind pflag = NC_MATCH_UDP;
251 1.1 rmind break;
252 1.1 rmind case IPPROTO_ICMP:
253 1.1 rmind /*
254 1.1 rmind * Build ICMP block.
255 1.1 rmind */
256 1.10 rmind if (!nop) {
257 1.10 rmind goto invop;
258 1.10 rmind }
259 1.1 rmind assert(npfvar_get_count(popts) == 2);
260 1.1 rmind
261 1.1 rmind int *icmp_type, *icmp_code;
262 1.1 rmind icmp_type = npfvar_get_data(popts, NPFVAR_ICMP, 0);
263 1.1 rmind icmp_code = npfvar_get_data(popts, NPFVAR_ICMP, 1);
264 1.1 rmind npfctl_gennc_icmp(nc, *icmp_type, *icmp_code);
265 1.10 rmind nop = false;
266 1.1 rmind break;
267 1.12 spz case IPPROTO_ICMPV6:
268 1.12 spz /*
269 1.12 spz * Build ICMP block.
270 1.12 spz */
271 1.12 spz if (!nop) {
272 1.12 spz goto invop;
273 1.12 spz }
274 1.12 spz assert(npfvar_get_count(popts) == 2);
275 1.12 spz
276 1.12 spz int *icmp6_type, *icmp6_code;
277 1.12 spz icmp6_type = npfvar_get_data(popts, NPFVAR_ICMP6, 0);
278 1.12 spz icmp6_code = npfvar_get_data(popts, NPFVAR_ICMP6, 1);
279 1.12 spz npfctl_gennc_icmp6(nc, *icmp6_type, *icmp6_code);
280 1.12 spz nop = false;
281 1.12 spz break;
282 1.1 rmind case -1:
283 1.1 rmind pflag = NC_MATCH_TCP | NC_MATCH_UDP;
284 1.10 rmind nop = false;
285 1.1 rmind break;
286 1.1 rmind default:
287 1.10 rmind /*
288 1.10 rmind * No filter options are supported for other protcols.
289 1.10 rmind */
290 1.10 rmind if (nof && nop) {
291 1.10 rmind break;
292 1.10 rmind }
293 1.10 rmind invop:
294 1.10 rmind yyerror("invalid filter options for protocol %d", proto);
295 1.10 rmind }
296 1.10 rmind
297 1.10 rmind /*
298 1.10 rmind * Build the protocol block, unless other blocks will implicitly
299 1.10 rmind * perform the family/protocol checks for us.
300 1.10 rmind */
301 1.10 rmind if ((family != AF_UNSPEC && nof) || (proto != -1 && nop)) {
302 1.10 rmind uint8_t addrlen;
303 1.10 rmind
304 1.10 rmind switch (family) {
305 1.10 rmind case AF_INET:
306 1.10 rmind addrlen = sizeof(struct in_addr);
307 1.10 rmind break;
308 1.10 rmind case AF_INET6:
309 1.10 rmind addrlen = sizeof(struct in6_addr);
310 1.10 rmind break;
311 1.10 rmind default:
312 1.10 rmind addrlen = 0;
313 1.10 rmind }
314 1.10 rmind npfctl_gennc_proto(nc, nof ? addrlen : 0, nop ? proto : 0xff);
315 1.1 rmind }
316 1.1 rmind return pflag;
317 1.1 rmind }
318 1.1 rmind
319 1.1 rmind static bool
320 1.1 rmind npfctl_build_ncode(nl_rule_t *rl, sa_family_t family, const opt_proto_t *op,
321 1.1 rmind const filt_opts_t *fopts, bool invert)
322 1.1 rmind {
323 1.7 rmind const addr_port_t *apfrom = &fopts->fo_from;
324 1.7 rmind const addr_port_t *apto = &fopts->fo_to;
325 1.10 rmind const int proto = op->op_proto;
326 1.10 rmind bool nof, nop;
327 1.1 rmind nc_ctx_t *nc;
328 1.1 rmind void *code;
329 1.1 rmind size_t len;
330 1.1 rmind
331 1.10 rmind /*
332 1.10 rmind * If none specified, no n-code.
333 1.10 rmind */
334 1.10 rmind nof = !apfrom->ap_netaddr && !apto->ap_netaddr;
335 1.10 rmind nop = !apfrom->ap_portrange && !apto->ap_portrange;
336 1.10 rmind if (family == AF_UNSPEC && proto == -1 && !op->op_opts && nof && nop)
337 1.1 rmind return false;
338 1.1 rmind
339 1.1 rmind int srcflag = NC_MATCH_SRC;
340 1.1 rmind int dstflag = NC_MATCH_DST;
341 1.1 rmind
342 1.1 rmind if (invert) {
343 1.1 rmind srcflag = NC_MATCH_DST;
344 1.1 rmind dstflag = NC_MATCH_SRC;
345 1.1 rmind }
346 1.1 rmind
347 1.1 rmind nc = npfctl_ncgen_create();
348 1.1 rmind
349 1.10 rmind /* Build layer 4 protocol blocks. */
350 1.10 rmind int pflag = npfctl_build_proto(nc, family, op, nof, nop);
351 1.10 rmind
352 1.1 rmind /* Build IP address blocks. */
353 1.7 rmind npfctl_build_vars(nc, family, apfrom->ap_netaddr, srcflag);
354 1.7 rmind npfctl_build_vars(nc, family, apto->ap_netaddr, dstflag);
355 1.1 rmind
356 1.1 rmind /* Build port-range blocks. */
357 1.10 rmind npfctl_build_vars(nc, family, apfrom->ap_portrange, srcflag | pflag);
358 1.10 rmind npfctl_build_vars(nc, family, apto->ap_portrange, dstflag | pflag);
359 1.1 rmind
360 1.1 rmind /*
361 1.1 rmind * Complete n-code (destroys the context) and pass to the rule.
362 1.1 rmind */
363 1.1 rmind code = npfctl_ncgen_complete(nc, &len);
364 1.1 rmind if (npf_debug) {
365 1.1 rmind extern int yylineno;
366 1.7 rmind printf("RULE AT LINE %d\n", yylineno);
367 1.1 rmind npfctl_ncgen_print(code, len);
368 1.1 rmind }
369 1.10 rmind assert(code && len > 0);
370 1.10 rmind
371 1.1 rmind if (npf_rule_setcode(rl, NPF_CODE_NCODE, code, len) == -1) {
372 1.1 rmind errx(EXIT_FAILURE, "npf_rule_setcode failed");
373 1.1 rmind }
374 1.1 rmind free(code);
375 1.1 rmind return true;
376 1.1 rmind }
377 1.1 rmind
378 1.4 rmind static void
379 1.4 rmind npfctl_build_rpcall(nl_rproc_t *rp, const char *name, npfvar_t *args)
380 1.4 rmind {
381 1.14 rmind npf_extmod_t *extmod;
382 1.14 rmind nl_ext_t *extcall;
383 1.14 rmind int error;
384 1.4 rmind
385 1.14 rmind extmod = npf_extmod_get(name, &extcall);
386 1.14 rmind if (extmod == NULL) {
387 1.4 rmind yyerror("unknown rule procedure '%s'", name);
388 1.4 rmind }
389 1.4 rmind
390 1.4 rmind for (size_t i = 0; i < npfvar_get_count(args); i++) {
391 1.14 rmind const char *param, *value;
392 1.14 rmind proc_param_t *p;
393 1.4 rmind
394 1.14 rmind p = npfvar_get_data(args, NPFVAR_PROC_PARAM, i);
395 1.14 rmind param = p->pp_param;
396 1.14 rmind value = p->pp_value;
397 1.14 rmind
398 1.14 rmind error = npf_extmod_param(extmod, extcall, param, value);
399 1.14 rmind switch (error) {
400 1.14 rmind case EINVAL:
401 1.14 rmind yyerror("invalid parameter '%s'", param);
402 1.14 rmind default:
403 1.14 rmind break;
404 1.4 rmind }
405 1.4 rmind }
406 1.14 rmind error = npf_rproc_extcall(rp, extcall);
407 1.14 rmind if (error) {
408 1.14 rmind yyerror(error == EEXIST ?
409 1.14 rmind "duplicate procedure call" : "unexpected error");
410 1.14 rmind }
411 1.4 rmind }
412 1.4 rmind
413 1.1 rmind /*
414 1.1 rmind * npfctl_build_rproc: create and insert a rule procedure.
415 1.1 rmind */
416 1.1 rmind void
417 1.4 rmind npfctl_build_rproc(const char *name, npfvar_t *procs)
418 1.1 rmind {
419 1.1 rmind nl_rproc_t *rp;
420 1.4 rmind size_t i;
421 1.1 rmind
422 1.1 rmind rp = npf_rproc_create(name);
423 1.1 rmind if (rp == NULL) {
424 1.1 rmind errx(EXIT_FAILURE, "npf_rproc_create failed");
425 1.1 rmind }
426 1.1 rmind npf_rproc_insert(npf_conf, rp);
427 1.4 rmind
428 1.4 rmind for (i = 0; i < npfvar_get_count(procs); i++) {
429 1.14 rmind proc_call_t *pc = npfvar_get_data(procs, NPFVAR_PROC, i);
430 1.14 rmind npfctl_build_rpcall(rp, pc->pc_name, pc->pc_opts);
431 1.4 rmind }
432 1.1 rmind }
433 1.1 rmind
434 1.1 rmind /*
435 1.1 rmind * npfctl_build_group: create a group, insert into the global ruleset
436 1.1 rmind * and update the current group pointer.
437 1.1 rmind */
438 1.1 rmind void
439 1.1 rmind npfctl_build_group(const char *name, int attr, u_int if_idx)
440 1.1 rmind {
441 1.1 rmind const int attr_di = (NPF_RULE_IN | NPF_RULE_OUT);
442 1.1 rmind nl_rule_t *rl;
443 1.1 rmind
444 1.1 rmind if (attr & NPF_RULE_DEFAULT) {
445 1.1 rmind if (defgroup_set) {
446 1.1 rmind yyerror("multiple default groups are not valid");
447 1.1 rmind }
448 1.1 rmind defgroup_set = true;
449 1.1 rmind attr |= attr_di;
450 1.1 rmind
451 1.1 rmind } else if ((attr & attr_di) == 0) {
452 1.1 rmind attr |= attr_di;
453 1.1 rmind }
454 1.1 rmind
455 1.5 rmind rl = npf_rule_create(name, attr | NPF_RULE_FINAL, if_idx);
456 1.1 rmind npf_rule_insert(npf_conf, NULL, rl, NPF_PRI_NEXT);
457 1.1 rmind current_group = rl;
458 1.1 rmind }
459 1.1 rmind
460 1.1 rmind /*
461 1.1 rmind * npfctl_build_rule: create a rule, build n-code from filter options,
462 1.1 rmind * if any, and insert into the ruleset of current group.
463 1.1 rmind */
464 1.1 rmind void
465 1.1 rmind npfctl_build_rule(int attr, u_int if_idx, sa_family_t family,
466 1.1 rmind const opt_proto_t *op, const filt_opts_t *fopts, const char *rproc)
467 1.1 rmind {
468 1.1 rmind nl_rule_t *rl;
469 1.1 rmind
470 1.1 rmind rl = npf_rule_create(NULL, attr, if_idx);
471 1.1 rmind npfctl_build_ncode(rl, family, op, fopts, false);
472 1.1 rmind if (rproc && npf_rule_setproc(npf_conf, rl, rproc) != 0) {
473 1.1 rmind yyerror("rule procedure '%s' is not defined", rproc);
474 1.1 rmind }
475 1.1 rmind assert(current_group != NULL);
476 1.1 rmind npf_rule_insert(npf_conf, current_group, rl, NPF_PRI_NEXT);
477 1.1 rmind }
478 1.1 rmind
479 1.1 rmind /*
480 1.14 rmind * npfctl_build_nat: create a single NAT policy of a specified
481 1.13 rmind * type with a given filter options.
482 1.13 rmind */
483 1.13 rmind static void
484 1.13 rmind npfctl_build_nat(int type, u_int if_idx, sa_family_t family,
485 1.13 rmind const addr_port_t *ap, const filt_opts_t *fopts, bool binat)
486 1.13 rmind {
487 1.13 rmind const opt_proto_t op = { .op_proto = -1, .op_opts = NULL };
488 1.13 rmind fam_addr_mask_t *am;
489 1.13 rmind in_port_t port;
490 1.13 rmind nl_nat_t *nat;
491 1.13 rmind
492 1.13 rmind if (!ap->ap_netaddr) {
493 1.13 rmind yyerror("%s network segment is not specified",
494 1.13 rmind type == NPF_NATIN ? "inbound" : "outbound");
495 1.13 rmind }
496 1.13 rmind am = npfctl_get_singlefam(ap->ap_netaddr);
497 1.13 rmind if (am->fam_family != family) {
498 1.13 rmind yyerror("IPv6 NAT is not supported");
499 1.13 rmind }
500 1.13 rmind
501 1.13 rmind switch (type) {
502 1.13 rmind case NPF_NATOUT:
503 1.13 rmind /*
504 1.13 rmind * Outbound NAT (or source NAT) policy, usually used for the
505 1.13 rmind * traditional NAPT. If it is a half for bi-directional NAT,
506 1.13 rmind * then no port translation with mapping.
507 1.13 rmind */
508 1.13 rmind nat = npf_nat_create(NPF_NATOUT, !binat ?
509 1.13 rmind (NPF_NAT_PORTS | NPF_NAT_PORTMAP) : 0,
510 1.13 rmind if_idx, &am->fam_addr, am->fam_family, 0);
511 1.13 rmind break;
512 1.13 rmind case NPF_NATIN:
513 1.13 rmind /*
514 1.13 rmind * Inbound NAT (or destination NAT). Unless bi-NAT, a port
515 1.13 rmind * must be specified, since it has to be redirection.
516 1.13 rmind */
517 1.13 rmind port = 0;
518 1.13 rmind if (!binat) {
519 1.13 rmind if (!ap->ap_portrange) {
520 1.13 rmind yyerror("inbound port is not specified");
521 1.13 rmind }
522 1.13 rmind port = npfctl_get_singleport(ap->ap_portrange);
523 1.13 rmind }
524 1.13 rmind nat = npf_nat_create(NPF_NATIN, !binat ? NPF_NAT_PORTS : 0,
525 1.13 rmind if_idx, &am->fam_addr, am->fam_family, port);
526 1.13 rmind break;
527 1.13 rmind default:
528 1.13 rmind assert(false);
529 1.13 rmind }
530 1.13 rmind
531 1.13 rmind npfctl_build_ncode(nat, family, &op, fopts, false);
532 1.13 rmind npf_nat_insert(npf_conf, nat, NPF_PRI_NEXT);
533 1.13 rmind }
534 1.13 rmind
535 1.13 rmind /*
536 1.14 rmind * npfctl_build_natseg: validate and create NAT policies.
537 1.1 rmind */
538 1.1 rmind void
539 1.13 rmind npfctl_build_natseg(int sd, int type, u_int if_idx, const addr_port_t *ap1,
540 1.7 rmind const addr_port_t *ap2, const filt_opts_t *fopts)
541 1.1 rmind {
542 1.13 rmind sa_family_t af = AF_INET;
543 1.7 rmind filt_opts_t imfopts;
544 1.13 rmind bool binat;
545 1.1 rmind
546 1.7 rmind if (sd == NPFCTL_NAT_STATIC) {
547 1.7 rmind yyerror("static NAT is not yet supported");
548 1.7 rmind }
549 1.7 rmind assert(sd == NPFCTL_NAT_DYNAMIC);
550 1.7 rmind assert(if_idx != 0);
551 1.7 rmind
552 1.13 rmind /*
553 1.13 rmind * Bi-directional NAT is a combination of inbound NAT and outbound
554 1.13 rmind * NAT policies. Note that the translation address is local IP and
555 1.13 rmind * the filter criteria is inverted accordingly.
556 1.13 rmind */
557 1.13 rmind binat = (NPF_NATIN | NPF_NATOUT) == type;
558 1.7 rmind
559 1.7 rmind /*
560 1.13 rmind * If the filter criteria is not specified explicitly, apply implicit
561 1.14 rmind * filtering according to the given network segments.
562 1.13 rmind *
563 1.13 rmind * Note: filled below, depending on the type.
564 1.7 rmind */
565 1.14 rmind if (__predict_true(!fopts)) {
566 1.7 rmind fopts = &imfopts;
567 1.1 rmind }
568 1.1 rmind
569 1.13 rmind if (type & NPF_NATIN) {
570 1.13 rmind memset(&imfopts, 0, sizeof(filt_opts_t));
571 1.13 rmind memcpy(&imfopts.fo_to, ap2, sizeof(addr_port_t));
572 1.13 rmind npfctl_build_nat(NPF_NATIN, if_idx, af, ap1, fopts, binat);
573 1.13 rmind }
574 1.13 rmind if (type & NPF_NATOUT) {
575 1.13 rmind memset(&imfopts, 0, sizeof(filt_opts_t));
576 1.13 rmind memcpy(&imfopts.fo_from, ap1, sizeof(addr_port_t));
577 1.13 rmind npfctl_build_nat(NPF_NATOUT, if_idx, af, ap2, fopts, binat);
578 1.1 rmind }
579 1.1 rmind }
580 1.1 rmind
581 1.1 rmind /*
582 1.1 rmind * npfctl_fill_table: fill NPF table with entries from a specified file.
583 1.1 rmind */
584 1.1 rmind static void
585 1.11 rmind npfctl_fill_table(nl_table_t *tl, u_int type, const char *fname)
586 1.1 rmind {
587 1.1 rmind char *buf = NULL;
588 1.1 rmind int l = 0;
589 1.1 rmind FILE *fp;
590 1.1 rmind size_t n;
591 1.1 rmind
592 1.1 rmind fp = fopen(fname, "r");
593 1.1 rmind if (fp == NULL) {
594 1.1 rmind err(EXIT_FAILURE, "open '%s'", fname);
595 1.1 rmind }
596 1.1 rmind while (l++, getline(&buf, &n, fp) != -1) {
597 1.11 rmind fam_addr_mask_t fam;
598 1.11 rmind int alen;
599 1.1 rmind
600 1.1 rmind if (*buf == '\n' || *buf == '#') {
601 1.1 rmind continue;
602 1.1 rmind }
603 1.11 rmind
604 1.11 rmind if (!npfctl_parse_cidr(buf, &fam, &alen)) {
605 1.11 rmind errx(EXIT_FAILURE,
606 1.11 rmind "%s:%d: invalid table entry", fname, l);
607 1.11 rmind }
608 1.11 rmind if (type == NPF_TABLE_HASH && fam.fam_mask != NPF_NO_NETMASK) {
609 1.11 rmind errx(EXIT_FAILURE,
610 1.11 rmind "%s:%d: mask used with the hash table", fname, l);
611 1.1 rmind }
612 1.1 rmind
613 1.1 rmind /* Create and add a table entry. */
614 1.11 rmind npf_table_add_entry(tl, alen, &fam.fam_addr, fam.fam_mask);
615 1.1 rmind }
616 1.1 rmind if (buf != NULL) {
617 1.1 rmind free(buf);
618 1.1 rmind }
619 1.1 rmind }
620 1.1 rmind
621 1.1 rmind /*
622 1.1 rmind * npfctl_build_table: create an NPF table, add to the configuration and,
623 1.1 rmind * if required, fill with contents from a file.
624 1.1 rmind */
625 1.1 rmind void
626 1.1 rmind npfctl_build_table(const char *tid, u_int type, const char *fname)
627 1.1 rmind {
628 1.1 rmind nl_table_t *tl;
629 1.1 rmind u_int id;
630 1.1 rmind
631 1.1 rmind id = atoi(tid);
632 1.1 rmind tl = npf_table_create(id, type);
633 1.1 rmind assert(tl != NULL);
634 1.1 rmind
635 1.1 rmind if (npf_table_insert(npf_conf, tl)) {
636 1.1 rmind errx(EXIT_FAILURE, "table '%d' is already defined\n", id);
637 1.1 rmind }
638 1.1 rmind
639 1.1 rmind if (fname) {
640 1.11 rmind npfctl_fill_table(tl, type, fname);
641 1.1 rmind }
642 1.1 rmind }
643