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npf_build.c revision 1.50.2.2
      1       1.1     rmind /*-
      2      1.49     rmind  * Copyright (c) 2011-2019 The NetBSD Foundation, Inc.
      3       1.1     rmind  * All rights reserved.
      4       1.1     rmind  *
      5       1.1     rmind  * This material is based upon work partially supported by The
      6       1.1     rmind  * NetBSD Foundation under a contract with Mindaugas Rasiukevicius.
      7       1.1     rmind  *
      8       1.1     rmind  * Redistribution and use in source and binary forms, with or without
      9       1.1     rmind  * modification, are permitted provided that the following conditions
     10       1.1     rmind  * are met:
     11       1.1     rmind  * 1. Redistributions of source code must retain the above copyright
     12       1.1     rmind  *    notice, this list of conditions and the following disclaimer.
     13       1.1     rmind  * 2. Redistributions in binary form must reproduce the above copyright
     14       1.1     rmind  *    notice, this list of conditions and the following disclaimer in the
     15       1.1     rmind  *    documentation and/or other materials provided with the distribution.
     16       1.1     rmind  *
     17       1.1     rmind  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     18       1.1     rmind  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     19       1.1     rmind  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     20       1.1     rmind  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     21       1.1     rmind  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     22       1.1     rmind  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     23       1.1     rmind  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     24       1.1     rmind  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     25       1.1     rmind  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     26       1.1     rmind  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     27       1.1     rmind  * POSSIBILITY OF SUCH DAMAGE.
     28       1.1     rmind  */
     29       1.1     rmind 
     30       1.1     rmind /*
     31       1.1     rmind  * npfctl(8) building of the configuration.
     32       1.1     rmind  */
     33       1.1     rmind 
     34       1.1     rmind #include <sys/cdefs.h>
     35  1.50.2.2    martin __RCSID("$NetBSD: npf_build.c,v 1.50.2.2 2019/10/04 08:06:34 martin Exp $");
     36       1.1     rmind 
     37       1.1     rmind #include <sys/types.h>
     38      1.41  christos #define	__FAVOR_BSD
     39      1.37     rmind #include <netinet/tcp.h>
     40       1.1     rmind 
     41       1.1     rmind #include <stdlib.h>
     42       1.1     rmind #include <inttypes.h>
     43       1.1     rmind #include <string.h>
     44      1.29     rmind #include <ctype.h>
     45      1.33     rmind #include <unistd.h>
     46      1.41  christos #include <fcntl.h>
     47      1.14     rmind #include <errno.h>
     48       1.1     rmind #include <err.h>
     49       1.1     rmind 
     50      1.25     rmind #include <pcap/pcap.h>
     51      1.25     rmind 
     52       1.1     rmind #include "npfctl.h"
     53       1.1     rmind 
     54      1.18     rmind #define	MAX_RULE_NESTING	16
     55      1.18     rmind 
     56       1.1     rmind static nl_config_t *		npf_conf = NULL;
     57       1.1     rmind static bool			npf_debug = false;
     58      1.18     rmind static nl_rule_t *		the_rule = NULL;
     59      1.18     rmind 
     60      1.46     rmind static bool			defgroup = false;
     61      1.18     rmind static nl_rule_t *		current_group[MAX_RULE_NESTING];
     62      1.18     rmind static unsigned			rule_nesting_level = 0;
     63      1.43     rmind static unsigned			npfctl_tid_counter = 0;
     64       1.1     rmind 
     65      1.27     rmind static void			npfctl_dump_bpf(struct bpf_program *);
     66      1.27     rmind 
     67       1.1     rmind void
     68       1.1     rmind npfctl_config_init(bool debug)
     69       1.1     rmind {
     70       1.1     rmind 	npf_conf = npf_config_create();
     71       1.1     rmind 	if (npf_conf == NULL) {
     72       1.1     rmind 		errx(EXIT_FAILURE, "npf_config_create failed");
     73       1.1     rmind 	}
     74       1.1     rmind 	npf_debug = debug;
     75      1.18     rmind 	memset(current_group, 0, sizeof(current_group));
     76       1.1     rmind }
     77       1.1     rmind 
     78       1.1     rmind int
     79      1.46     rmind npfctl_config_send(int fd)
     80       1.1     rmind {
     81      1.41  christos 	npf_error_t errinfo;
     82      1.41  christos 	int error = 0;
     83       1.1     rmind 
     84      1.18     rmind 	if (!defgroup) {
     85       1.1     rmind 		errx(EXIT_FAILURE, "default group was not defined");
     86       1.1     rmind 	}
     87      1.46     rmind 	error = npf_config_submit(npf_conf, fd, &errinfo);
     88      1.39     rmind 	if (error == EEXIST) { /* XXX */
     89      1.39     rmind 		errx(EXIT_FAILURE, "(re)load failed: "
     90      1.39     rmind 		    "some table has a duplicate entry?");
     91      1.39     rmind 	}
     92       1.3     rmind 	if (error) {
     93      1.41  christos 		npfctl_print_error(&errinfo);
     94       1.3     rmind 	}
     95      1.41  christos 	npf_config_destroy(npf_conf);
     96      1.41  christos 	return error;
     97      1.41  christos }
     98      1.41  christos 
     99      1.41  christos void
    100      1.41  christos npfctl_config_save(nl_config_t *ncf, const char *outfile)
    101      1.41  christos {
    102      1.41  christos 	void *blob;
    103      1.41  christos 	size_t len;
    104      1.41  christos 	int fd;
    105      1.41  christos 
    106      1.41  christos 	blob = npf_config_export(ncf, &len);
    107      1.41  christos 	if (!blob)
    108      1.41  christos 		err(EXIT_FAILURE, "npf_config_export");
    109      1.41  christos 	if ((fd = open(outfile, O_CREAT | O_TRUNC | O_WRONLY, 0644)) == -1)
    110      1.41  christos 		err(EXIT_FAILURE, "could not open %s", outfile);
    111      1.41  christos 	if (write(fd, blob, len) != (ssize_t)len) {
    112      1.41  christos 		err(EXIT_FAILURE, "write to %s failed", outfile);
    113      1.25     rmind 	}
    114      1.41  christos 	free(blob);
    115      1.41  christos 	close(fd);
    116       1.1     rmind }
    117       1.1     rmind 
    118      1.46     rmind void
    119      1.46     rmind npfctl_config_debug(const char *outfile)
    120      1.46     rmind {
    121      1.46     rmind 	printf("\nConfiguration:\n\n");
    122      1.46     rmind 	_npf_config_dump(npf_conf, STDOUT_FILENO);
    123      1.46     rmind 
    124      1.46     rmind 	printf("\nSaving binary to %s\n", outfile);
    125      1.46     rmind 	npfctl_config_save(npf_conf, outfile);
    126      1.46     rmind 	npf_config_destroy(npf_conf);
    127      1.46     rmind }
    128      1.46     rmind 
    129      1.16     rmind nl_config_t *
    130      1.16     rmind npfctl_config_ref(void)
    131      1.16     rmind {
    132      1.16     rmind 	return npf_conf;
    133      1.16     rmind }
    134      1.16     rmind 
    135      1.18     rmind nl_rule_t *
    136      1.18     rmind npfctl_rule_ref(void)
    137      1.18     rmind {
    138      1.18     rmind 	return the_rule;
    139      1.18     rmind }
    140      1.18     rmind 
    141      1.28     rmind bool
    142      1.13     rmind npfctl_debug_addif(const char *ifname)
    143      1.13     rmind {
    144      1.28     rmind 	const char tname[] = "npftest";
    145      1.13     rmind 	const size_t tnamelen = sizeof(tname) - 1;
    146      1.13     rmind 
    147      1.28     rmind 	if (npf_debug) {
    148      1.28     rmind 		_npf_debug_addif(npf_conf, ifname);
    149      1.28     rmind 		return strncmp(ifname, tname, tnamelen) == 0;
    150      1.13     rmind 	}
    151      1.28     rmind 	return 0;
    152      1.13     rmind }
    153      1.13     rmind 
    154  1.50.2.2    martin nl_table_t *
    155  1.50.2.2    martin npfctl_table_getbyname(nl_config_t *ncf, const char *name)
    156       1.1     rmind {
    157      1.49     rmind 	nl_iter_t i = NPF_ITER_BEGIN;
    158      1.32     rmind 	nl_table_t *tl;
    159      1.32     rmind 
    160      1.32     rmind 	/* XXX dynamic ruleset */
    161  1.50.2.2    martin 	if (!ncf) {
    162  1.50.2.2    martin 		return NULL;
    163      1.32     rmind 	}
    164  1.50.2.2    martin 	while ((tl = npf_table_iterate(ncf, &i)) != NULL) {
    165      1.32     rmind 		const char *tname = npf_table_getname(tl);
    166      1.32     rmind 		if (strcmp(tname, name) == 0) {
    167      1.49     rmind 			break;
    168      1.32     rmind 		}
    169      1.32     rmind 	}
    170  1.50.2.2    martin 	return tl;
    171  1.50.2.2    martin }
    172  1.50.2.2    martin 
    173  1.50.2.2    martin unsigned
    174  1.50.2.2    martin npfctl_table_getid(const char *name)
    175  1.50.2.2    martin {
    176  1.50.2.2    martin 	nl_table_t *tl;
    177  1.50.2.2    martin 
    178  1.50.2.2    martin 	tl = npfctl_table_getbyname(npf_conf, name);
    179  1.50.2.2    martin 	return tl ? npf_table_getid(tl) : (unsigned)-1;
    180       1.1     rmind }
    181       1.1     rmind 
    182      1.47     rmind const char *
    183      1.47     rmind npfctl_table_getname(nl_config_t *ncf, unsigned tid, bool *ifaddr)
    184      1.47     rmind {
    185      1.47     rmind 	const char *name = NULL;
    186      1.49     rmind 	nl_iter_t i = NPF_ITER_BEGIN;
    187      1.47     rmind 	nl_table_t *tl;
    188      1.47     rmind 
    189      1.49     rmind 	while ((tl = npf_table_iterate(ncf, &i)) != NULL) {
    190      1.47     rmind 		if (npf_table_getid(tl) == tid) {
    191      1.47     rmind 			name = npf_table_getname(tl);
    192      1.49     rmind 			break;
    193      1.47     rmind 		}
    194      1.47     rmind 	}
    195      1.47     rmind 	if (!name) {
    196      1.47     rmind 		return NULL;
    197      1.47     rmind 	}
    198      1.47     rmind 	if (!strncmp(name, NPF_IFNET_TABLE_PREF, NPF_IFNET_TABLE_PREFLEN)) {
    199      1.47     rmind 		name += NPF_IFNET_TABLE_PREFLEN;
    200      1.47     rmind 		*ifaddr = true;
    201      1.47     rmind 	} else {
    202      1.47     rmind 		*ifaddr = false;
    203      1.47     rmind 	}
    204      1.47     rmind 	return name;
    205      1.47     rmind }
    206      1.47     rmind 
    207       1.7     rmind static in_port_t
    208       1.1     rmind npfctl_get_singleport(const npfvar_t *vp)
    209       1.1     rmind {
    210       1.1     rmind 	port_range_t *pr;
    211       1.7     rmind 	in_port_t *port;
    212       1.1     rmind 
    213       1.1     rmind 	if (npfvar_get_count(vp) > 1) {
    214       1.1     rmind 		yyerror("multiple ports are not valid");
    215       1.1     rmind 	}
    216       1.1     rmind 	pr = npfvar_get_data(vp, NPFVAR_PORT_RANGE, 0);
    217       1.1     rmind 	if (pr->pr_start != pr->pr_end) {
    218       1.1     rmind 		yyerror("port range is not valid");
    219       1.1     rmind 	}
    220       1.7     rmind 	port = &pr->pr_start;
    221       1.7     rmind 	return *port;
    222       1.1     rmind }
    223       1.1     rmind 
    224       1.1     rmind static fam_addr_mask_t *
    225       1.1     rmind npfctl_get_singlefam(const npfvar_t *vp)
    226       1.1     rmind {
    227      1.47     rmind 	fam_addr_mask_t *am;
    228      1.47     rmind 
    229      1.47     rmind 	if (npfvar_get_type(vp, 0) != NPFVAR_FAM) {
    230      1.47     rmind 		yyerror("map segment must be an address or network");
    231      1.47     rmind 	}
    232      1.47     rmind 	if (npfvar_get_count(vp) > 1) {
    233      1.47     rmind 		yyerror("map segment cannot have multiple static addresses");
    234      1.47     rmind 	}
    235      1.47     rmind 	am = npfvar_get_data(vp, NPFVAR_FAM, 0);
    236      1.47     rmind 	if (am == NULL) {
    237      1.47     rmind 		yyerror("invalid map segment");
    238      1.47     rmind 	}
    239      1.47     rmind 	return am;
    240      1.47     rmind }
    241      1.47     rmind 
    242      1.47     rmind static unsigned
    243      1.47     rmind npfctl_get_singletable(const npfvar_t *vp)
    244      1.47     rmind {
    245      1.47     rmind 	unsigned *tid;
    246      1.47     rmind 
    247       1.1     rmind 	if (npfvar_get_count(vp) > 1) {
    248      1.47     rmind 		yyerror("multiple tables are not valid");
    249       1.1     rmind 	}
    250      1.47     rmind 	tid = npfvar_get_data(vp, NPFVAR_TABLE, 0);
    251      1.47     rmind 	assert(tid != NULL);
    252      1.47     rmind 	return *tid;
    253       1.1     rmind }
    254       1.1     rmind 
    255      1.10     rmind static bool
    256      1.25     rmind npfctl_build_fam(npf_bpf_t *ctx, sa_family_t family,
    257       1.1     rmind     fam_addr_mask_t *fam, int opts)
    258       1.1     rmind {
    259       1.1     rmind 	/*
    260       1.1     rmind 	 * If family is specified, address does not match it and the
    261       1.1     rmind 	 * address is extracted from the interface, then simply ignore.
    262       1.1     rmind 	 * Otherwise, address of invalid family was passed manually.
    263       1.1     rmind 	 */
    264       1.1     rmind 	if (family != AF_UNSPEC && family != fam->fam_family) {
    265      1.15     rmind 		if (!fam->fam_ifindex) {
    266       1.1     rmind 			yyerror("specified address is not of the required "
    267       1.1     rmind 			    "family %d", family);
    268       1.1     rmind 		}
    269      1.10     rmind 		return false;
    270       1.1     rmind 	}
    271      1.30     rmind 
    272      1.25     rmind 	family = fam->fam_family;
    273      1.30     rmind 	if (family != AF_INET && family != AF_INET6) {
    274      1.30     rmind 		yyerror("family %d is not supported", family);
    275      1.30     rmind 	}
    276       1.1     rmind 
    277       1.1     rmind 	/*
    278       1.1     rmind 	 * Optimise 0.0.0.0/0 case to be NOP.  Otherwise, address with
    279       1.1     rmind 	 * zero mask would never match and therefore is not valid.
    280       1.1     rmind 	 */
    281       1.1     rmind 	if (fam->fam_mask == 0) {
    282      1.30     rmind 		static const npf_addr_t zero; /* must be static */
    283      1.10     rmind 
    284       1.1     rmind 		if (memcmp(&fam->fam_addr, &zero, sizeof(npf_addr_t))) {
    285       1.1     rmind 			yyerror("filter criterion would never match");
    286       1.1     rmind 		}
    287      1.10     rmind 		return false;
    288       1.1     rmind 	}
    289       1.1     rmind 
    290      1.25     rmind 	npfctl_bpf_cidr(ctx, opts, family, &fam->fam_addr, fam->fam_mask);
    291      1.10     rmind 	return true;
    292       1.1     rmind }
    293       1.1     rmind 
    294       1.1     rmind static void
    295      1.25     rmind npfctl_build_vars(npf_bpf_t *ctx, sa_family_t family, npfvar_t *vars, int opts)
    296       1.1     rmind {
    297       1.6  christos 	const int type = npfvar_get_type(vars, 0);
    298       1.1     rmind 	size_t i;
    299       1.1     rmind 
    300  1.50.2.1    martin 	npfctl_bpf_group_enter(ctx);
    301       1.1     rmind 	for (i = 0; i < npfvar_get_count(vars); i++) {
    302       1.1     rmind 		void *data = npfvar_get_data(vars, type, i);
    303       1.1     rmind 		assert(data != NULL);
    304       1.1     rmind 
    305       1.1     rmind 		switch (type) {
    306       1.1     rmind 		case NPFVAR_FAM: {
    307       1.1     rmind 			fam_addr_mask_t *fam = data;
    308      1.25     rmind 			npfctl_build_fam(ctx, family, fam, opts);
    309       1.1     rmind 			break;
    310       1.1     rmind 		}
    311       1.1     rmind 		case NPFVAR_PORT_RANGE: {
    312       1.1     rmind 			port_range_t *pr = data;
    313      1.25     rmind 			npfctl_bpf_ports(ctx, opts, pr->pr_start, pr->pr_end);
    314       1.1     rmind 			break;
    315       1.1     rmind 		}
    316       1.1     rmind 		case NPFVAR_TABLE: {
    317      1.32     rmind 			u_int tid;
    318      1.32     rmind 			memcpy(&tid, data, sizeof(u_int));
    319      1.25     rmind 			npfctl_bpf_table(ctx, opts, tid);
    320       1.1     rmind 			break;
    321       1.1     rmind 		}
    322       1.1     rmind 		default:
    323       1.1     rmind 			assert(false);
    324       1.1     rmind 		}
    325       1.1     rmind 	}
    326  1.50.2.1    martin 	npfctl_bpf_group_exit(ctx, (opts & MATCH_INVERT) != 0);
    327       1.1     rmind }
    328       1.1     rmind 
    329      1.25     rmind static void
    330      1.25     rmind npfctl_build_proto(npf_bpf_t *ctx, sa_family_t family, const opt_proto_t *op)
    331       1.1     rmind {
    332       1.1     rmind 	const npfvar_t *popts = op->op_opts;
    333      1.10     rmind 	const int proto = op->op_proto;
    334      1.25     rmind 
    335      1.25     rmind 	/* IP version and/or L4 protocol matching. */
    336      1.25     rmind 	if (family != AF_UNSPEC || proto != -1) {
    337      1.25     rmind 		npfctl_bpf_proto(ctx, family, proto);
    338      1.25     rmind 	}
    339       1.1     rmind 
    340      1.10     rmind 	switch (proto) {
    341       1.1     rmind 	case IPPROTO_TCP:
    342      1.25     rmind 		/* Build TCP flags matching (optional). */
    343      1.25     rmind 		if (popts) {
    344      1.25     rmind 			uint8_t *tf, *tf_mask;
    345      1.25     rmind 
    346      1.25     rmind 			assert(npfvar_get_count(popts) == 2);
    347      1.25     rmind 			tf = npfvar_get_data(popts, NPFVAR_TCPFLAG, 0);
    348      1.25     rmind 			tf_mask = npfvar_get_data(popts, NPFVAR_TCPFLAG, 1);
    349      1.37     rmind 			npfctl_bpf_tcpfl(ctx, *tf, *tf_mask, false);
    350       1.1     rmind 		}
    351       1.1     rmind 		break;
    352       1.1     rmind 	case IPPROTO_ICMP:
    353      1.12       spz 	case IPPROTO_ICMPV6:
    354      1.25     rmind 		/* Build ICMP/ICMPv6 type and/or code matching. */
    355      1.25     rmind 		if (popts) {
    356      1.25     rmind 			int *icmp_type, *icmp_code;
    357      1.25     rmind 
    358      1.25     rmind 			assert(npfvar_get_count(popts) == 2);
    359      1.25     rmind 			icmp_type = npfvar_get_data(popts, NPFVAR_ICMP, 0);
    360      1.25     rmind 			icmp_code = npfvar_get_data(popts, NPFVAR_ICMP, 1);
    361      1.25     rmind 			npfctl_bpf_icmp(ctx, *icmp_type, *icmp_code);
    362      1.12       spz 		}
    363      1.12       spz 		break;
    364      1.25     rmind 	default:
    365      1.25     rmind 		/* No options for other protocols. */
    366       1.1     rmind 		break;
    367      1.10     rmind 	}
    368       1.1     rmind }
    369       1.1     rmind 
    370       1.1     rmind static bool
    371      1.25     rmind npfctl_build_code(nl_rule_t *rl, sa_family_t family, const opt_proto_t *op,
    372      1.27     rmind     const filt_opts_t *fopts)
    373       1.1     rmind {
    374      1.48       tih 	bool noproto, noaddrs, noports, nostate, need_tcpudp = false;
    375       1.7     rmind 	const addr_port_t *apfrom = &fopts->fo_from;
    376       1.7     rmind 	const addr_port_t *apto = &fopts->fo_to;
    377      1.10     rmind 	const int proto = op->op_proto;
    378      1.25     rmind 	npf_bpf_t *bc;
    379      1.42     rmind 	unsigned opts;
    380       1.1     rmind 	size_t len;
    381       1.1     rmind 
    382      1.25     rmind 	/* If none specified, then no byte-code. */
    383      1.25     rmind 	noproto = family == AF_UNSPEC && proto == -1 && !op->op_opts;
    384      1.20     rmind 	noaddrs = !apfrom->ap_netaddr && !apto->ap_netaddr;
    385      1.20     rmind 	noports = !apfrom->ap_portrange && !apto->ap_portrange;
    386      1.48       tih 	nostate = !(npf_rule_getattr(rl) & NPF_RULE_STATEFUL);
    387      1.48       tih 	if (noproto && noaddrs && noports && nostate) {
    388       1.1     rmind 		return false;
    389      1.25     rmind 	}
    390       1.1     rmind 
    391      1.25     rmind 	/*
    392      1.25     rmind 	 * Sanity check: ports can only be used with TCP or UDP protocol.
    393      1.25     rmind 	 * No filter options are supported for other protocols, only the
    394      1.25     rmind 	 * IP addresses are allowed.
    395      1.25     rmind 	 */
    396      1.25     rmind 	if (!noports) {
    397      1.25     rmind 		switch (proto) {
    398      1.25     rmind 		case IPPROTO_TCP:
    399      1.25     rmind 		case IPPROTO_UDP:
    400      1.38     rmind 			break;
    401      1.25     rmind 		case -1:
    402      1.38     rmind 			need_tcpudp = true;
    403      1.25     rmind 			break;
    404      1.25     rmind 		default:
    405      1.25     rmind 			yyerror("invalid filter options for protocol %d", proto);
    406      1.25     rmind 		}
    407      1.25     rmind 	}
    408       1.1     rmind 
    409      1.25     rmind 	bc = npfctl_bpf_create();
    410       1.1     rmind 
    411      1.10     rmind 	/* Build layer 4 protocol blocks. */
    412      1.25     rmind 	npfctl_build_proto(bc, family, op);
    413      1.10     rmind 
    414      1.37     rmind 	/*
    415      1.37     rmind 	 * If this is a stateful rule and TCP flags are not specified,
    416      1.37     rmind 	 * then add "flags S/SAFR" filter for TCP protocol case.
    417      1.37     rmind 	 */
    418      1.37     rmind 	if ((npf_rule_getattr(rl) & NPF_RULE_STATEFUL) != 0 &&
    419      1.37     rmind 	    (proto == -1 || (proto == IPPROTO_TCP && !op->op_opts))) {
    420      1.37     rmind 		npfctl_bpf_tcpfl(bc, TH_SYN,
    421      1.37     rmind 		    TH_SYN | TH_ACK | TH_FIN | TH_RST, proto == -1);
    422      1.37     rmind 	}
    423      1.37     rmind 
    424       1.1     rmind 	/* Build IP address blocks. */
    425      1.42     rmind 	opts = MATCH_SRC | (fopts->fo_finvert ? MATCH_INVERT : 0);
    426      1.42     rmind 	npfctl_build_vars(bc, family, apfrom->ap_netaddr, opts);
    427      1.42     rmind 	opts = MATCH_DST | (fopts->fo_tinvert ? MATCH_INVERT : 0);
    428      1.42     rmind 	npfctl_build_vars(bc, family, apto->ap_netaddr, opts);
    429       1.1     rmind 
    430       1.1     rmind 	/* Build port-range blocks. */
    431      1.38     rmind 	if (need_tcpudp) {
    432      1.38     rmind 		/* TCP/UDP check for the ports. */
    433  1.50.2.1    martin 		npfctl_bpf_group_enter(bc);
    434      1.38     rmind 		npfctl_bpf_proto(bc, AF_UNSPEC, IPPROTO_TCP);
    435      1.38     rmind 		npfctl_bpf_proto(bc, AF_UNSPEC, IPPROTO_UDP);
    436  1.50.2.1    martin 		npfctl_bpf_group_exit(bc, false);
    437      1.38     rmind 	}
    438      1.27     rmind 	npfctl_build_vars(bc, family, apfrom->ap_portrange, MATCH_SRC);
    439      1.27     rmind 	npfctl_build_vars(bc, family, apto->ap_portrange, MATCH_DST);
    440      1.25     rmind 
    441      1.25     rmind 	/* Set the byte-code marks, if any. */
    442      1.25     rmind 	const void *bmarks = npfctl_bpf_bmarks(bc, &len);
    443      1.25     rmind 	if (npf_rule_setinfo(rl, bmarks, len) == -1) {
    444      1.25     rmind 		errx(EXIT_FAILURE, "npf_rule_setinfo failed");
    445      1.25     rmind 	}
    446       1.1     rmind 
    447      1.25     rmind 	/* Complete BPF byte-code and pass to the rule. */
    448      1.25     rmind 	struct bpf_program *bf = npfctl_bpf_complete(bc);
    449      1.40     rmind 	if (bf == NULL) {
    450      1.40     rmind 		npfctl_bpf_destroy(bc);
    451      1.40     rmind 		return true;
    452      1.40     rmind 	}
    453      1.25     rmind 	len = bf->bf_len * sizeof(struct bpf_insn);
    454      1.10     rmind 
    455      1.49     rmind 	if (npf_rule_setcode(rl, NPF_CODE_BPF, bf->bf_insns, len) != 0) {
    456       1.1     rmind 		errx(EXIT_FAILURE, "npf_rule_setcode failed");
    457       1.1     rmind 	}
    458      1.27     rmind 	npfctl_dump_bpf(bf);
    459      1.25     rmind 	npfctl_bpf_destroy(bc);
    460      1.25     rmind 
    461       1.1     rmind 	return true;
    462       1.1     rmind }
    463       1.1     rmind 
    464       1.4     rmind static void
    465      1.27     rmind npfctl_build_pcap(nl_rule_t *rl, const char *filter)
    466      1.27     rmind {
    467      1.27     rmind 	const size_t maxsnaplen = 64 * 1024;
    468      1.27     rmind 	struct bpf_program bf;
    469      1.27     rmind 	size_t len;
    470      1.27     rmind 
    471      1.27     rmind 	if (pcap_compile_nopcap(maxsnaplen, DLT_RAW, &bf,
    472      1.27     rmind 	    filter, 1, PCAP_NETMASK_UNKNOWN) == -1) {
    473      1.27     rmind 		yyerror("invalid pcap-filter(7) syntax");
    474      1.27     rmind 	}
    475      1.27     rmind 	len = bf.bf_len * sizeof(struct bpf_insn);
    476      1.27     rmind 
    477      1.49     rmind 	if (npf_rule_setcode(rl, NPF_CODE_BPF, bf.bf_insns, len) != 0) {
    478      1.27     rmind 		errx(EXIT_FAILURE, "npf_rule_setcode failed");
    479      1.27     rmind 	}
    480      1.27     rmind 	npfctl_dump_bpf(&bf);
    481      1.27     rmind 	pcap_freecode(&bf);
    482      1.27     rmind }
    483      1.27     rmind 
    484      1.27     rmind static void
    485       1.4     rmind npfctl_build_rpcall(nl_rproc_t *rp, const char *name, npfvar_t *args)
    486       1.4     rmind {
    487      1.14     rmind 	npf_extmod_t *extmod;
    488      1.14     rmind 	nl_ext_t *extcall;
    489      1.14     rmind 	int error;
    490       1.4     rmind 
    491      1.14     rmind 	extmod = npf_extmod_get(name, &extcall);
    492      1.14     rmind 	if (extmod == NULL) {
    493       1.4     rmind 		yyerror("unknown rule procedure '%s'", name);
    494       1.4     rmind 	}
    495       1.4     rmind 
    496       1.4     rmind 	for (size_t i = 0; i < npfvar_get_count(args); i++) {
    497      1.14     rmind 		const char *param, *value;
    498      1.14     rmind 		proc_param_t *p;
    499       1.4     rmind 
    500      1.14     rmind 		p = npfvar_get_data(args, NPFVAR_PROC_PARAM, i);
    501      1.14     rmind 		param = p->pp_param;
    502      1.14     rmind 		value = p->pp_value;
    503      1.14     rmind 
    504      1.14     rmind 		error = npf_extmod_param(extmod, extcall, param, value);
    505      1.14     rmind 		switch (error) {
    506      1.14     rmind 		case EINVAL:
    507      1.14     rmind 			yyerror("invalid parameter '%s'", param);
    508      1.14     rmind 		default:
    509      1.14     rmind 			break;
    510       1.4     rmind 		}
    511       1.4     rmind 	}
    512      1.14     rmind 	error = npf_rproc_extcall(rp, extcall);
    513      1.14     rmind 	if (error) {
    514      1.14     rmind 		yyerror(error == EEXIST ?
    515      1.14     rmind 		    "duplicate procedure call" : "unexpected error");
    516      1.14     rmind 	}
    517       1.4     rmind }
    518       1.4     rmind 
    519       1.1     rmind /*
    520       1.1     rmind  * npfctl_build_rproc: create and insert a rule procedure.
    521       1.1     rmind  */
    522       1.1     rmind void
    523       1.4     rmind npfctl_build_rproc(const char *name, npfvar_t *procs)
    524       1.1     rmind {
    525       1.1     rmind 	nl_rproc_t *rp;
    526       1.4     rmind 	size_t i;
    527       1.1     rmind 
    528       1.1     rmind 	rp = npf_rproc_create(name);
    529       1.1     rmind 	if (rp == NULL) {
    530      1.23  christos 		errx(EXIT_FAILURE, "%s failed", __func__);
    531       1.1     rmind 	}
    532       1.4     rmind 
    533       1.4     rmind 	for (i = 0; i < npfvar_get_count(procs); i++) {
    534      1.14     rmind 		proc_call_t *pc = npfvar_get_data(procs, NPFVAR_PROC, i);
    535      1.14     rmind 		npfctl_build_rpcall(rp, pc->pc_name, pc->pc_opts);
    536       1.4     rmind 	}
    537      1.46     rmind 	npf_rproc_insert(npf_conf, rp);
    538       1.1     rmind }
    539       1.1     rmind 
    540  1.50.2.2    martin /*
    541  1.50.2.2    martin  * npfctl_build_maprset: create and insert a NAT ruleset.
    542  1.50.2.2    martin  */
    543      1.22     rmind void
    544      1.28     rmind npfctl_build_maprset(const char *name, int attr, const char *ifname)
    545      1.22     rmind {
    546      1.22     rmind 	const int attr_di = (NPF_RULE_IN | NPF_RULE_OUT);
    547      1.22     rmind 	nl_rule_t *rl;
    548  1.50.2.2    martin 	bool natset;
    549  1.50.2.2    martin 	int err;
    550  1.50.2.2    martin 
    551  1.50.2.2    martin 	/* Validate the prefix. */
    552  1.50.2.2    martin 	err = npfctl_nat_ruleset_p(name, &natset);
    553  1.50.2.2    martin 	if (!natset) {
    554  1.50.2.2    martin 		yyerror("NAT ruleset names must be prefixed with `"
    555  1.50.2.2    martin 		    NPF_RULESET_MAP_PREF "`");
    556  1.50.2.2    martin 	}
    557  1.50.2.2    martin 	if (err) {
    558  1.50.2.2    martin 		yyerror("NAT ruleset is missing a name (only prefix found)");
    559  1.50.2.2    martin 	}
    560      1.22     rmind 
    561      1.22     rmind 	/* If no direction is not specified, then both. */
    562      1.22     rmind 	if ((attr & attr_di) == 0) {
    563      1.22     rmind 		attr |= attr_di;
    564      1.22     rmind 	}
    565  1.50.2.2    martin 
    566      1.22     rmind 	/* Allow only "in/out" attributes. */
    567      1.45     rmind 	attr = NPF_RULE_GROUP | NPF_RULE_DYNAMIC | (attr & attr_di);
    568      1.28     rmind 	rl = npf_rule_create(name, attr, ifname);
    569      1.49     rmind 	npf_rule_setprio(rl, NPF_PRI_LAST);
    570      1.49     rmind 	npf_nat_insert(npf_conf, rl);
    571      1.22     rmind }
    572      1.22     rmind 
    573       1.1     rmind /*
    574      1.46     rmind  * npfctl_build_group: create a group, update the current group pointer
    575      1.46     rmind  * and increase the nesting level.
    576       1.1     rmind  */
    577       1.1     rmind void
    578      1.28     rmind npfctl_build_group(const char *name, int attr, const char *ifname, bool def)
    579       1.1     rmind {
    580       1.1     rmind 	const int attr_di = (NPF_RULE_IN | NPF_RULE_OUT);
    581       1.1     rmind 	nl_rule_t *rl;
    582       1.1     rmind 
    583      1.18     rmind 	if (def || (attr & attr_di) == 0) {
    584      1.18     rmind 		attr |= attr_di;
    585      1.18     rmind 	}
    586      1.18     rmind 
    587      1.28     rmind 	rl = npf_rule_create(name, attr | NPF_RULE_GROUP, ifname);
    588      1.18     rmind 	npf_rule_setprio(rl, NPF_PRI_LAST);
    589      1.18     rmind 	if (def) {
    590      1.18     rmind 		if (defgroup) {
    591       1.1     rmind 			yyerror("multiple default groups are not valid");
    592       1.1     rmind 		}
    593      1.18     rmind 		if (rule_nesting_level) {
    594      1.18     rmind 			yyerror("default group can only be at the top level");
    595      1.18     rmind 		}
    596      1.46     rmind 		defgroup = true;
    597      1.18     rmind 	}
    598       1.1     rmind 
    599      1.18     rmind 	/* Set the current group and increase the nesting level. */
    600      1.18     rmind 	if (rule_nesting_level >= MAX_RULE_NESTING) {
    601      1.18     rmind 		yyerror("rule nesting limit reached");
    602       1.1     rmind 	}
    603      1.18     rmind 	current_group[++rule_nesting_level] = rl;
    604      1.18     rmind }
    605       1.1     rmind 
    606      1.18     rmind void
    607      1.18     rmind npfctl_build_group_end(void)
    608      1.18     rmind {
    609      1.46     rmind 	nl_rule_t *parent, *group;
    610      1.46     rmind 
    611      1.18     rmind 	assert(rule_nesting_level > 0);
    612      1.46     rmind 	parent = current_group[rule_nesting_level - 1];
    613      1.46     rmind 	group = current_group[rule_nesting_level];
    614      1.18     rmind 	current_group[rule_nesting_level--] = NULL;
    615      1.46     rmind 
    616      1.46     rmind 	/* Note: if the parent is NULL, then it is a global rule. */
    617      1.46     rmind 	npf_rule_insert(npf_conf, parent, group);
    618       1.1     rmind }
    619       1.1     rmind 
    620       1.1     rmind /*
    621      1.26     rmind  * npfctl_build_rule: create a rule, build byte-code from filter options,
    622      1.18     rmind  * if any, and insert into the ruleset of current group, or set the rule.
    623       1.1     rmind  */
    624       1.1     rmind void
    625      1.28     rmind npfctl_build_rule(uint32_t attr, const char *ifname, sa_family_t family,
    626      1.27     rmind     const opt_proto_t *op, const filt_opts_t *fopts,
    627      1.27     rmind     const char *pcap_filter, const char *rproc)
    628       1.1     rmind {
    629       1.1     rmind 	nl_rule_t *rl;
    630       1.1     rmind 
    631      1.19     rmind 	attr |= (npf_conf ? 0 : NPF_RULE_DYNAMIC);
    632      1.21     rmind 
    633      1.28     rmind 	rl = npf_rule_create(NULL, attr, ifname);
    634      1.27     rmind 	if (pcap_filter) {
    635      1.27     rmind 		npfctl_build_pcap(rl, pcap_filter);
    636      1.27     rmind 	} else {
    637      1.27     rmind 		npfctl_build_code(rl, family, op, fopts);
    638      1.27     rmind 	}
    639      1.27     rmind 
    640      1.18     rmind 	if (rproc) {
    641      1.18     rmind 		npf_rule_setproc(rl, rproc);
    642      1.18     rmind 	}
    643      1.18     rmind 
    644      1.18     rmind 	if (npf_conf) {
    645      1.18     rmind 		nl_rule_t *cg = current_group[rule_nesting_level];
    646      1.18     rmind 
    647      1.18     rmind 		if (rproc && !npf_rproc_exists_p(npf_conf, rproc)) {
    648      1.18     rmind 			yyerror("rule procedure '%s' is not defined", rproc);
    649      1.18     rmind 		}
    650      1.18     rmind 		assert(cg != NULL);
    651      1.18     rmind 		npf_rule_setprio(rl, NPF_PRI_LAST);
    652      1.18     rmind 		npf_rule_insert(npf_conf, cg, rl);
    653      1.18     rmind 	} else {
    654      1.18     rmind 		/* We have parsed a single rule - set it. */
    655      1.18     rmind 		the_rule = rl;
    656       1.1     rmind 	}
    657       1.1     rmind }
    658       1.1     rmind 
    659       1.1     rmind /*
    660      1.14     rmind  * npfctl_build_nat: create a single NAT policy of a specified
    661      1.13     rmind  * type with a given filter options.
    662      1.13     rmind  */
    663      1.36     rmind static nl_nat_t *
    664      1.36     rmind npfctl_build_nat(int type, const char *ifname, const addr_port_t *ap,
    665      1.49     rmind     const opt_proto_t *op, const filt_opts_t *fopts, unsigned flags)
    666      1.13     rmind {
    667      1.44     rmind 	const opt_proto_t def_op = { .op_proto = -1, .op_opts = NULL };
    668      1.47     rmind 	fam_addr_mask_t *am;
    669      1.47     rmind 	sa_family_t family;
    670      1.13     rmind 	in_port_t port;
    671      1.13     rmind 	nl_nat_t *nat;
    672      1.47     rmind 	unsigned tid;
    673      1.13     rmind 
    674      1.35     rmind 	if (ap->ap_portrange) {
    675      1.45     rmind 		/*
    676      1.45     rmind 		 * The port forwarding case.  In such case, there has to
    677      1.45     rmind 		 * be a single port used for translation; we keep the port
    678      1.45     rmind 		 * translation on, but disable the port map.
    679      1.45     rmind 		 */
    680      1.35     rmind 		port = npfctl_get_singleport(ap->ap_portrange);
    681      1.47     rmind 		flags = (flags & ~NPF_NAT_PORTMAP) | NPF_NAT_PORTS;
    682      1.35     rmind 	} else {
    683      1.13     rmind 		port = 0;
    684      1.13     rmind 	}
    685      1.44     rmind 	if (!op) {
    686      1.44     rmind 		op = &def_op;
    687      1.44     rmind 	}
    688      1.13     rmind 
    689      1.47     rmind 	nat = npf_nat_create(type, flags, ifname);
    690      1.47     rmind 
    691      1.47     rmind 	switch (npfvar_get_type(ap->ap_netaddr, 0)) {
    692      1.47     rmind 	case NPFVAR_FAM:
    693      1.47     rmind 		/* Translation address. */
    694      1.47     rmind 		am = npfctl_get_singlefam(ap->ap_netaddr);
    695      1.47     rmind 		family = am->fam_family;
    696      1.47     rmind 		npf_nat_setaddr(nat, family, &am->fam_addr, am->fam_mask);
    697      1.47     rmind 		break;
    698      1.47     rmind 	case NPFVAR_TABLE:
    699      1.47     rmind 		/* Translation table. */
    700      1.47     rmind 		family = AF_UNSPEC;
    701      1.47     rmind 		tid = npfctl_get_singletable(ap->ap_netaddr);
    702      1.47     rmind 		npf_nat_settable(nat, tid);
    703      1.47     rmind 		break;
    704      1.47     rmind 	default:
    705      1.47     rmind 		yyerror("map must have a valid translation address");
    706      1.47     rmind 		abort();
    707      1.47     rmind 	}
    708      1.47     rmind 	npf_nat_setport(nat, port);
    709      1.47     rmind 	npfctl_build_code(nat, family, op, fopts);
    710      1.36     rmind 	return nat;
    711      1.13     rmind }
    712      1.13     rmind 
    713      1.49     rmind static void
    714      1.49     rmind npfctl_dnat_check(const addr_port_t *ap, const unsigned algo)
    715      1.49     rmind {
    716      1.49     rmind 	int type = npfvar_get_type(ap->ap_netaddr, 0);
    717      1.49     rmind 	fam_addr_mask_t *am;
    718      1.49     rmind 
    719      1.49     rmind 	switch (algo) {
    720      1.49     rmind 	case NPF_ALGO_NETMAP:
    721      1.49     rmind 		if (type == NPFVAR_FAM) {
    722      1.49     rmind 			break;
    723      1.49     rmind 		}
    724      1.49     rmind 		yyerror("translation address using NETMAP must be "
    725      1.49     rmind 		    "a network and not a dynamic pool");
    726      1.49     rmind 		break;
    727      1.49     rmind 	case NPF_ALGO_IPHASH:
    728      1.49     rmind 	case NPF_ALGO_RR:
    729      1.49     rmind 	case NPF_ALGO_NONE:
    730      1.49     rmind 		if (type != NPFVAR_FAM) {
    731      1.49     rmind 			break;
    732      1.49     rmind 		}
    733      1.49     rmind 		am = npfctl_get_singlefam(ap->ap_netaddr);
    734      1.49     rmind 		if (am->fam_mask == NPF_NO_NETMASK) {
    735      1.49     rmind 			break;
    736      1.49     rmind 		}
    737      1.49     rmind 		yyerror("translation address, given the specified algorithm, "
    738      1.49     rmind 		    "must be a pool or a single address");
    739      1.49     rmind 		break;
    740      1.49     rmind 	default:
    741      1.49     rmind 		yyerror("invalid algorithm specified for dynamic NAT");
    742      1.49     rmind 	}
    743      1.49     rmind }
    744      1.49     rmind 
    745      1.13     rmind /*
    746      1.14     rmind  * npfctl_build_natseg: validate and create NAT policies.
    747       1.1     rmind  */
    748       1.1     rmind void
    749      1.45     rmind npfctl_build_natseg(int sd, int type, unsigned mflags, const char *ifname,
    750      1.44     rmind     const addr_port_t *ap1, const addr_port_t *ap2, const opt_proto_t *op,
    751      1.47     rmind     const filt_opts_t *fopts, unsigned algo)
    752       1.1     rmind {
    753      1.36     rmind 	fam_addr_mask_t *am1 = NULL, *am2 = NULL;
    754      1.36     rmind 	nl_nat_t *nt1 = NULL, *nt2 = NULL;
    755       1.7     rmind 	filt_opts_t imfopts;
    756      1.36     rmind 	uint16_t adj = 0;
    757      1.47     rmind 	unsigned flags;
    758      1.13     rmind 	bool binat;
    759       1.1     rmind 
    760      1.28     rmind 	assert(ifname != NULL);
    761       1.7     rmind 
    762      1.13     rmind 	/*
    763      1.47     rmind 	 * Validate that mapping has the translation address(es) set.
    764      1.47     rmind 	 */
    765      1.47     rmind 	if ((type & NPF_NATIN) != 0 && ap1->ap_netaddr == NULL) {
    766      1.47     rmind 		yyerror("inbound network segment is not specified");
    767      1.47     rmind 	}
    768      1.47     rmind 	if ((type & NPF_NATOUT) != 0 && ap2->ap_netaddr == NULL) {
    769      1.47     rmind 		yyerror("outbound network segment is not specified");
    770      1.47     rmind 	}
    771      1.47     rmind 
    772      1.47     rmind 	/*
    773      1.13     rmind 	 * Bi-directional NAT is a combination of inbound NAT and outbound
    774      1.35     rmind 	 * NAT policies with the translation segments inverted respectively.
    775      1.13     rmind 	 */
    776      1.13     rmind 	binat = (NPF_NATIN | NPF_NATOUT) == type;
    777       1.7     rmind 
    778      1.35     rmind 	switch (sd) {
    779      1.35     rmind 	case NPFCTL_NAT_DYNAMIC:
    780      1.35     rmind 		/*
    781      1.47     rmind 		 * Dynamic NAT: stateful translation -- traditional NAPT
    782      1.47     rmind 		 * is expected.  Unless it is bi-directional NAT, perform
    783      1.47     rmind 		 * the port mapping.
    784      1.35     rmind 		 */
    785      1.35     rmind 		flags = !binat ? (NPF_NAT_PORTS | NPF_NAT_PORTMAP) : 0;
    786      1.49     rmind 		if (type & NPF_NATIN) {
    787      1.49     rmind 			npfctl_dnat_check(ap1, algo);
    788      1.49     rmind 		}
    789      1.49     rmind 		if (type & NPF_NATOUT) {
    790      1.49     rmind 			npfctl_dnat_check(ap2, algo);
    791      1.47     rmind 		}
    792      1.35     rmind 		break;
    793      1.35     rmind 	case NPFCTL_NAT_STATIC:
    794      1.47     rmind 		/*
    795      1.47     rmind 		 * Static NAT: stateless translation.
    796      1.47     rmind 		 */
    797      1.35     rmind 		flags = NPF_NAT_STATIC;
    798      1.47     rmind 
    799      1.47     rmind 		/* Note: translation address/network cannot be a table. */
    800      1.47     rmind 		am1 = npfctl_get_singlefam(ap1->ap_netaddr);
    801      1.47     rmind 		am2 = npfctl_get_singlefam(ap2->ap_netaddr);
    802      1.47     rmind 
    803      1.47     rmind 		/* Validate the algorithm. */
    804      1.47     rmind 		switch (algo) {
    805      1.47     rmind 		case NPF_ALGO_NPT66:
    806      1.47     rmind 			if (am1->fam_mask != am2->fam_mask) {
    807      1.47     rmind 				yyerror("asymmetric NPTv6 is not supported");
    808      1.47     rmind 			}
    809      1.47     rmind 			adj = npfctl_npt66_calcadj(am1->fam_mask,
    810      1.47     rmind 			    &am1->fam_addr, &am2->fam_addr);
    811      1.47     rmind 			break;
    812      1.47     rmind 		case NPF_ALGO_NETMAP:
    813      1.47     rmind 			if (am1->fam_mask != am2->fam_mask) {
    814      1.47     rmind 				yyerror("net-to-net mapping using the "
    815      1.47     rmind 				    "NETMAP algorithm must be 1:1");
    816      1.47     rmind 			}
    817      1.47     rmind 			break;
    818      1.47     rmind 		case NPF_ALGO_NONE:
    819      1.47     rmind 			if (am1->fam_mask != NPF_NO_NETMASK ||
    820      1.47     rmind 			    am2->fam_mask != NPF_NO_NETMASK) {
    821      1.47     rmind 				yyerror("static net-to-net translation "
    822      1.47     rmind 				    "must have an algorithm specified");
    823      1.47     rmind 			}
    824      1.47     rmind 			break;
    825      1.47     rmind 		default:
    826      1.47     rmind 			yyerror("invalid algorithm specified for static NAT");
    827      1.47     rmind 		}
    828      1.35     rmind 		break;
    829      1.35     rmind 	default:
    830      1.35     rmind 		abort();
    831      1.35     rmind 	}
    832      1.35     rmind 
    833       1.7     rmind 	/*
    834      1.45     rmind 	 * Apply the flag modifications.
    835      1.45     rmind 	 */
    836      1.45     rmind 	if (mflags & NPF_NAT_PORTS) {
    837      1.45     rmind 		flags &= ~(NPF_NAT_PORTS | NPF_NAT_PORTMAP);
    838      1.45     rmind 	}
    839      1.45     rmind 
    840      1.45     rmind 	/*
    841      1.13     rmind 	 * If the filter criteria is not specified explicitly, apply implicit
    842      1.14     rmind 	 * filtering according to the given network segments.
    843      1.13     rmind 	 *
    844      1.13     rmind 	 * Note: filled below, depending on the type.
    845       1.7     rmind 	 */
    846      1.14     rmind 	if (__predict_true(!fopts)) {
    847       1.7     rmind 		fopts = &imfopts;
    848       1.1     rmind 	}
    849       1.1     rmind 
    850      1.13     rmind 	if (type & NPF_NATIN) {
    851      1.13     rmind 		memset(&imfopts, 0, sizeof(filt_opts_t));
    852      1.13     rmind 		memcpy(&imfopts.fo_to, ap2, sizeof(addr_port_t));
    853      1.44     rmind 		nt1 = npfctl_build_nat(NPF_NATIN, ifname, ap1, op, fopts, flags);
    854      1.13     rmind 	}
    855      1.13     rmind 	if (type & NPF_NATOUT) {
    856      1.13     rmind 		memset(&imfopts, 0, sizeof(filt_opts_t));
    857      1.13     rmind 		memcpy(&imfopts.fo_from, ap1, sizeof(addr_port_t));
    858      1.44     rmind 		nt2 = npfctl_build_nat(NPF_NATOUT, ifname, ap2, op, fopts, flags);
    859      1.36     rmind 	}
    860      1.36     rmind 
    861      1.49     rmind 	switch (algo) {
    862      1.49     rmind 	case NPF_ALGO_NONE:
    863      1.49     rmind 		break;
    864      1.49     rmind 	case NPF_ALGO_NPT66:
    865      1.47     rmind 		/*
    866      1.47     rmind 		 * NPTv6 is a special case using special adjustment value.
    867      1.47     rmind 		 * It is always bidirectional NAT.
    868      1.47     rmind 		 */
    869      1.47     rmind 		assert(nt1 && nt2);
    870      1.36     rmind 		npf_nat_setnpt66(nt1, ~adj);
    871      1.36     rmind 		npf_nat_setnpt66(nt2, adj);
    872      1.49     rmind 		break;
    873      1.49     rmind 	default:
    874      1.47     rmind 		/*
    875      1.47     rmind 		 * Set the algorithm.
    876      1.47     rmind 		 */
    877      1.47     rmind 		if (nt1) {
    878      1.47     rmind 			npf_nat_setalgo(nt1, algo);
    879      1.47     rmind 		}
    880      1.47     rmind 		if (nt2) {
    881      1.47     rmind 			npf_nat_setalgo(nt2, algo);
    882      1.47     rmind 		}
    883       1.1     rmind 	}
    884      1.46     rmind 
    885  1.50.2.2    martin 	if (npf_conf) {
    886  1.50.2.2    martin 		if (nt1) {
    887  1.50.2.2    martin 			npf_rule_setprio(nt1, NPF_PRI_LAST);
    888  1.50.2.2    martin 			npf_nat_insert(npf_conf, nt1);
    889  1.50.2.2    martin 		}
    890  1.50.2.2    martin 		if (nt2) {
    891  1.50.2.2    martin 			npf_rule_setprio(nt2, NPF_PRI_LAST);
    892  1.50.2.2    martin 			npf_nat_insert(npf_conf, nt2);
    893  1.50.2.2    martin 		}
    894  1.50.2.2    martin 	} else {
    895  1.50.2.2    martin 		// XXX/TODO: need to refactor a bit to enable this..
    896  1.50.2.2    martin 		if (nt1 && nt2) {
    897  1.50.2.2    martin 			errx(EXIT_FAILURE, "bidirectional NAT is currently "
    898  1.50.2.2    martin 			    "not yet supported in the dynamic rules");
    899  1.50.2.2    martin 		}
    900  1.50.2.2    martin 		the_rule = nt1 ? nt1 : nt2;
    901      1.46     rmind 	}
    902       1.1     rmind }
    903       1.1     rmind 
    904       1.1     rmind /*
    905       1.1     rmind  * npfctl_fill_table: fill NPF table with entries from a specified file.
    906       1.1     rmind  */
    907       1.1     rmind static void
    908  1.50.2.2    martin npfctl_fill_table(nl_table_t *tl, u_int type, const char *fname, FILE *fp)
    909       1.1     rmind {
    910       1.1     rmind 	char *buf = NULL;
    911       1.1     rmind 	int l = 0;
    912       1.1     rmind 	size_t n;
    913       1.1     rmind 
    914  1.50.2.2    martin 	if (fp == NULL && (fp = fopen(fname, "r")) == NULL) {
    915       1.1     rmind 		err(EXIT_FAILURE, "open '%s'", fname);
    916       1.1     rmind 	}
    917       1.1     rmind 	while (l++, getline(&buf, &n, fp) != -1) {
    918      1.11     rmind 		fam_addr_mask_t fam;
    919      1.11     rmind 		int alen;
    920       1.1     rmind 
    921       1.1     rmind 		if (*buf == '\n' || *buf == '#') {
    922       1.1     rmind 			continue;
    923       1.1     rmind 		}
    924      1.11     rmind 
    925      1.11     rmind 		if (!npfctl_parse_cidr(buf, &fam, &alen)) {
    926      1.11     rmind 			errx(EXIT_FAILURE,
    927      1.11     rmind 			    "%s:%d: invalid table entry", fname, l);
    928      1.11     rmind 		}
    929      1.47     rmind 		if (type != NPF_TABLE_LPM && fam.fam_mask != NPF_NO_NETMASK) {
    930      1.33     rmind 			errx(EXIT_FAILURE, "%s:%d: mask used with the "
    931      1.47     rmind 			    "table type other than \"lpm\"", fname, l);
    932       1.1     rmind 		}
    933       1.1     rmind 
    934      1.46     rmind 		npf_table_add_entry(tl, fam.fam_family,
    935      1.46     rmind 		    &fam.fam_addr, fam.fam_mask);
    936      1.33     rmind 	}
    937      1.46     rmind 	free(buf);
    938       1.1     rmind }
    939       1.1     rmind 
    940       1.1     rmind /*
    941  1.50.2.2    martin  * npfctl_load_table: create an NPF table and fill with contents from a file.
    942  1.50.2.2    martin  */
    943  1.50.2.2    martin nl_table_t *
    944  1.50.2.2    martin npfctl_load_table(const char *tname, int tid, u_int type,
    945  1.50.2.2    martin     const char *fname, FILE *fp)
    946  1.50.2.2    martin {
    947  1.50.2.2    martin 	nl_table_t *tl;
    948  1.50.2.2    martin 
    949  1.50.2.2    martin 	tl = npf_table_create(tname, tid, type);
    950  1.50.2.2    martin 	if (tl && fname) {
    951  1.50.2.2    martin 		npfctl_fill_table(tl, type, fname, fp);
    952  1.50.2.2    martin 	}
    953  1.50.2.2    martin 
    954  1.50.2.2    martin 	return tl;
    955  1.50.2.2    martin }
    956  1.50.2.2    martin 
    957  1.50.2.2    martin /*
    958       1.1     rmind  * npfctl_build_table: create an NPF table, add to the configuration and,
    959       1.1     rmind  * if required, fill with contents from a file.
    960       1.1     rmind  */
    961       1.1     rmind void
    962      1.29     rmind npfctl_build_table(const char *tname, u_int type, const char *fname)
    963       1.1     rmind {
    964       1.1     rmind 	nl_table_t *tl;
    965       1.1     rmind 
    966  1.50.2.2    martin 	if (type == NPF_TABLE_CONST && !fname) {
    967      1.47     rmind 		yyerror("table type 'const' must be loaded from a file");
    968       1.1     rmind 	}
    969      1.46     rmind 
    970  1.50.2.2    martin 	tl = npfctl_load_table(tname, npfctl_tid_counter++, type, fname, NULL);
    971  1.50.2.2    martin 	assert(tl != NULL);
    972  1.50.2.2    martin 
    973      1.46     rmind 	if (npf_table_insert(npf_conf, tl)) {
    974      1.46     rmind 		yyerror("table '%s' is already defined", tname);
    975      1.46     rmind 	}
    976       1.1     rmind }
    977      1.23  christos 
    978      1.47     rmind /*
    979      1.47     rmind  * npfctl_ifnet_table: get a variable with ifaddr-table; auto-create
    980      1.47     rmind  * the table on first reference.
    981      1.47     rmind  */
    982      1.43     rmind npfvar_t *
    983      1.43     rmind npfctl_ifnet_table(const char *ifname)
    984      1.43     rmind {
    985      1.43     rmind 	char tname[NPF_TABLE_MAXNAMELEN];
    986      1.43     rmind 	nl_table_t *tl;
    987  1.50.2.2    martin 	unsigned tid;
    988      1.43     rmind 
    989      1.47     rmind 	snprintf(tname, sizeof(tname), NPF_IFNET_TABLE_PREF "%s", ifname);
    990  1.50.2.2    martin 	if (!npf_conf) {
    991  1.50.2.2    martin 		errx(EXIT_FAILURE, "expression `ifaddrs(%s)` is currently "
    992  1.50.2.2    martin 		    "not yet supported in dynamic rules", ifname);
    993  1.50.2.2    martin 	}
    994      1.43     rmind 
    995      1.43     rmind 	tid = npfctl_table_getid(tname);
    996      1.43     rmind 	if (tid == (unsigned)-1) {
    997      1.43     rmind 		tid = npfctl_tid_counter++;
    998      1.47     rmind 		tl = npf_table_create(tname, tid, NPF_TABLE_IFADDR);
    999      1.43     rmind 		(void)npf_table_insert(npf_conf, tl);
   1000      1.43     rmind 	}
   1001  1.50.2.2    martin 	return npfvar_create_element(NPFVAR_TABLE, &tid, sizeof(unsigned));
   1002      1.43     rmind }
   1003      1.43     rmind 
   1004      1.23  christos /*
   1005      1.25     rmind  * npfctl_build_alg: create an NPF application level gateway and add it
   1006      1.23  christos  * to the configuration.
   1007      1.23  christos  */
   1008      1.23  christos void
   1009      1.23  christos npfctl_build_alg(const char *al_name)
   1010      1.23  christos {
   1011      1.49     rmind 	if (npf_alg_load(npf_conf, al_name) != 0) {
   1012      1.49     rmind 		yyerror("ALG '%s' is already loaded", al_name);
   1013      1.49     rmind 	}
   1014      1.49     rmind }
   1015      1.49     rmind 
   1016      1.49     rmind void
   1017      1.49     rmind npfctl_setparam(const char *name, int val)
   1018      1.49     rmind {
   1019      1.49     rmind 	if (strcmp(name, "bpf.jit") == 0) {
   1020      1.49     rmind 		npfctl_bpfjit(val != 0);
   1021      1.50     rmind 		return;
   1022      1.49     rmind 	}
   1023      1.49     rmind 	if (npf_param_set(npf_conf, name, val) != 0) {
   1024      1.49     rmind 		yyerror("invalid parameter `%s` or its value", name);
   1025      1.23  christos 	}
   1026      1.23  christos }
   1027      1.27     rmind 
   1028      1.27     rmind static void
   1029      1.27     rmind npfctl_dump_bpf(struct bpf_program *bf)
   1030      1.27     rmind {
   1031      1.27     rmind 	if (npf_debug) {
   1032      1.27     rmind 		extern char *yytext;
   1033      1.27     rmind 		extern int yylineno;
   1034      1.27     rmind 
   1035      1.27     rmind 		int rule_line = yylineno - (int)(*yytext == '\n');
   1036      1.27     rmind 		printf("\nRULE AT LINE %d\n", rule_line);
   1037      1.27     rmind 		bpf_dump(bf, 0);
   1038      1.27     rmind 	}
   1039      1.27     rmind }
   1040