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autotrust.c
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/*
* validator/autotrust.c - RFC5011 trust anchor management for unbound.
*
* Copyright (c) 2009, NLnet Labs. All rights reserved.
*
* This software is open source.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
*
* Redistributions of source code must retain the above copyright notice,
* this list of conditions and the following disclaimer.
*
* Redistributions in binary form must reproduce the above copyright notice,
* this list of conditions and the following disclaimer in the documentation
* and/or other materials provided with the distribution.
*
* Neither the name of the NLNET LABS nor the names of its contributors may
* be used to endorse or promote products derived from this software without
* specific prior written permission.
*
* THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
* "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
* LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
* A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
* HOLDER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
* SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED
* TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
* PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
* LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
* NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
* SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
*/
/**
* \file
*
* Contains autotrust implementation. The implementation was taken from
* the autotrust daemon (BSD licensed), written by Matthijs Mekking.
* It was modified to fit into unbound. The state table process is the same.
*/
#include "config.h"
#include "validator/autotrust.h"
#include "validator/val_anchor.h"
#include "validator/val_utils.h"
#include "validator/val_sigcrypt.h"
#include "util/data/dname.h"
#include "util/data/packed_rrset.h"
#include "util/log.h"
#include "util/module.h"
#include "util/net_help.h"
#include "util/config_file.h"
#include "util/regional.h"
#include "util/random.h"
#include "util/data/msgparse.h"
#include "services/mesh.h"
#include "services/cache/rrset.h"
#include "validator/val_kcache.h"
#include "sldns/sbuffer.h"
#include "sldns/wire2str.h"
#include "sldns/str2wire.h"
#include "sldns/keyraw.h"
#include "sldns/rrdef.h"
#include <stdarg.h>
#include <ctype.h>
/** number of times a key must be seen before it can become valid */
#define MIN_PENDINGCOUNT 2
/** Event: Revoked */
static void do_revoked(struct module_env* env, struct autr_ta* anchor, int* c);
struct autr_global_data* autr_global_create(void)
{
struct autr_global_data* global;
global = (struct autr_global_data*)malloc(sizeof(*global));
if(!global)
return NULL;
rbtree_init(&global->probe, &probetree_cmp);
return global;
}
void autr_global_delete(struct autr_global_data* global)
{
if(!global)
return;
/* elements deleted by parent */
free(global);
}
int probetree_cmp(const void* x, const void* y)
{
struct trust_anchor* a = (struct trust_anchor*)x;
struct trust_anchor* b = (struct trust_anchor*)y;
log_assert(a->autr && b->autr);
if(a->autr->next_probe_time < b->autr->next_probe_time)
return -1;
if(a->autr->next_probe_time > b->autr->next_probe_time)
return 1;
/* time is equal, sort on trust point identity */
return anchor_cmp(x, y);
}
size_t
autr_get_num_anchors(struct val_anchors* anchors)
{
size_t res = 0;
if(!anchors)
return 0;
lock_basic_lock(&anchors->lock);
if(anchors->autr)
res = anchors->autr->probe.count;
lock_basic_unlock(&anchors->lock);
return res;
}
/** Position in string */
static int
position_in_string(char *str, const char* sub)
{
char* pos = strstr(str, sub);
if(pos)
return (int)(pos-str)+(int)strlen(sub);
return -1;
}
/** Debug routine to print pretty key information */
static void
verbose_key(struct autr_ta* ta, enum verbosity_value level,
const char* format, ...) ATTR_FORMAT(printf, 3, 4);
/**
* Implementation of debug pretty key print
* @param ta: trust anchor key with DNSKEY data.
* @param level: verbosity level to print at.
* @param format: printf style format string.
*/
static void
verbose_key(struct autr_ta* ta, enum verbosity_value level,
const char* format, ...)
{
va_list args;
va_start(args, format);
if(verbosity >= level) {
char* str = sldns_wire2str_dname(ta->rr, ta->dname_len);
int keytag = (int)sldns_calc_keytag_raw(sldns_wirerr_get_rdata(
ta->rr, ta->rr_len, ta->dname_len),
sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len,
ta->dname_len));
char msg[MAXSYSLOGMSGLEN];
vsnprintf(msg, sizeof(msg), format, args);
verbose(level, "%s key %d %s", str?str:"??", keytag, msg);
free(str);
}
va_end(args);
}
/**
* Parse comments
* @param str: to parse
* @param ta: trust key autotrust metadata
* @return false on failure.
*/
static int
parse_comments(char* str, struct autr_ta* ta)
{
int len = (int)strlen(str), pos = 0, timestamp = 0;
char* comment = (char*) malloc(sizeof(char)*len+1);
char* comments = comment;
if(!comment) {
log_err("malloc failure in parse");
return 0;
}
/* skip over whitespace and data at start of line */
while (*str != '\0' && *str != ';')
str++;
if (*str == ';')
str++;
/* copy comments */
while (*str != '\0')
{
*comments = *str;
comments++;
str++;
}
*comments = '\0';
comments = comment;
/* read state */
pos = position_in_string(comments, "state=");
if (pos >= (int) strlen(comments))
{
log_err("parse error");
free(comment);
return 0;
}
if (pos <= 0)
ta->s = AUTR_STATE_VALID;
else
{
int s = (int) comments[pos] - '0';
switch(s)
{
case AUTR_STATE_START:
case AUTR_STATE_ADDPEND:
case AUTR_STATE_VALID:
case AUTR_STATE_MISSING:
case AUTR_STATE_REVOKED:
case AUTR_STATE_REMOVED:
ta->s = s;
break;
default:
verbose_key(ta, VERB_OPS, "has undefined "
"state, considered NewKey");
ta->s = AUTR_STATE_START;
break;
}
}
/* read pending count */
pos = position_in_string(comments, "count=");
if (pos >= (int) strlen(comments))
{
log_err("parse error");
free(comment);
return 0;
}
if (pos <= 0)
ta->pending_count = 0;
else
{
comments += pos;
ta->pending_count = (uint8_t)atoi(comments);
}
/* read last change */
pos = position_in_string(comments, "lastchange=");
if (pos >= (int) strlen(comments))
{
log_err("parse error");
free(comment);
return 0;
}
if (pos >= 0)
{
comments += pos;
timestamp = atoi(comments);
}
if (pos < 0 || !timestamp)
ta->last_change = 0;
else
ta->last_change = (time_t)timestamp;
free(comment);
return 1;
}
/** Check if a line contains data (besides comments) */
static int
str_contains_data(char* str, char comment)
{
while (*str != '\0') {
if (*str == comment || *str == '\n')
return 0;
if (*str != ' ' && *str != '\t')
return 1;
str++;
}
return 0;
}
/** Get DNSKEY flags
* rdata without rdatalen in front of it. */
static int
dnskey_flags(uint16_t t, uint8_t* rdata, size_t len)
{
uint16_t f;
if(t != LDNS_RR_TYPE_DNSKEY)
return 0;
if(len < 2)
return 0;
memmove(&f, rdata, 2);
f = ntohs(f);
return (int)f;
}
/** Check if KSK DNSKEY.
* pass rdata without rdatalen in front of it */
static int
rr_is_dnskey_sep(uint16_t t, uint8_t* rdata, size_t len)
{
return (dnskey_flags(t, rdata, len)&DNSKEY_BIT_SEP);
}
/** Check if TA is KSK DNSKEY */
static int
ta_is_dnskey_sep(struct autr_ta* ta)
{
return (dnskey_flags(
sldns_wirerr_get_type(ta->rr, ta->rr_len, ta->dname_len),
sldns_wirerr_get_rdata(ta->rr, ta->rr_len, ta->dname_len),
sldns_wirerr_get_rdatalen(ta->rr, ta->rr_len, ta->dname_len)
) & DNSKEY_BIT_SEP);
}
/** Check if REVOKED DNSKEY
* pass rdata without rdatalen in front of it */
static int
rr_is_dnskey_revoked(uint16_t t, uint8_t* rdata, size_t len)
{
return (dnskey_flags(t, rdata, len)&LDNS_KEY_REVOKE_KEY);
}
/** create ta */
static struct autr_ta*
autr_ta_create(uint8_t* rr, size_t rr_len, size_t dname_len)
{
struct autr_ta* ta = (struct autr_ta*)calloc(1, sizeof(*ta));
if(!ta) {
free(rr);
return NULL;
}
ta->rr = rr;
ta->rr_len = rr_len;
ta->dname_len = dname_len;
return ta;
}
/** create tp */
static struct trust_anchor*
autr_tp_create(struct val_anchors* anchors, uint8_t* own, size_t own_len,
uint16_t dc)
{
struct trust_anchor* tp = (struct trust_anchor*)calloc(1, sizeof(*tp));
if(!tp) return NULL;
tp->name = memdup(own, own_len);
if(!tp->name) {
free(tp);
return NULL;
}
tp->namelen = own_len;
tp->namelabs = dname_count_labels(tp->name);
tp->node.key = tp;
tp->dclass = dc;
tp->autr = (struct autr_point_data*)calloc(1, sizeof(*tp->autr));
if(!tp->autr) {
free(tp->name);
free(tp);
return NULL;
}
tp->autr->pnode.key = tp;
lock_basic_lock(&anchors->lock);
if(!rbtree_insert(anchors->tree, &tp->node)) {
lock_basic_unlock(&anchors->lock);
log_err("trust anchor presented twice");
free(tp->name);
free(tp->autr);
free(tp);
return NULL;
}
if(!rbtree_insert(&anchors->autr->probe, &tp->autr->pnode)) {
(void)rbtree_delete(anchors->tree, tp);
lock_basic_unlock(&anchors->lock);
log_err("trust anchor in probetree twice");
free(tp->name);
free(tp->autr);
free(tp);
return NULL;
}
lock_basic_init(&tp->lock);
lock_protect(&tp->lock, tp, sizeof(*tp));
lock_protect(&tp->lock, tp->autr, sizeof(*tp->autr));
lock_basic_unlock(&anchors->lock);
return tp;
}
/** delete assembled rrsets */
static void
autr_rrset_delete(struct ub_packed_rrset_key* r)
{
if(r) {
free(r->rk.dname);
free(r->entry.data);
free(r);
}
}
void autr_point_delete(struct trust_anchor* tp)
{
if(!tp)
return;
lock_unprotect(&tp->lock, tp);
lock_unprotect(&tp->lock, tp->autr);
lock_basic_destroy(&tp->lock);
autr_rrset_delete(tp->ds_rrset);
autr_rrset_delete(tp->dnskey_rrset);
if(tp->autr) {
struct autr_ta* p = tp->autr->keys, *np;
while(p) {
np = p->next;
free(p->rr);
free(p);
p = np;
}
free(tp->autr->file);
free(tp->autr);
}
free(tp->name);
free(tp);
}
/** find or add a new trust point for autotrust */
static struct trust_anchor*
find_add_tp(struct val_anchors* anchors, uint8_t* rr, size_t rr_len,
size_t dname_len)
{
struct trust_anchor* tp;
tp = anchor_find(anchors, rr, dname_count_labels(rr), dname_len,
sldns_wirerr_get_class(rr, rr_len, dname_len));
if(tp) {
if(!tp->autr) {
log_err("anchor cannot be with and without autotrust");
lock_basic_unlock(&tp->lock);
return NULL;
}
return tp;
}
tp = autr_tp_create(anchors, rr, dname_len, sldns_wirerr_get_class(rr,
rr_len, dname_len));
if(!tp)
return NULL;
lock_basic_lock(&tp->lock);
return tp;
}
/** Add trust anchor from RR */
static struct autr_ta*
add_trustanchor_frm_rr(struct val_anchors* anchors, uint8_t* rr, size_t rr_len,
size_t dname_len, struct trust_anchor** tp)
{
struct autr_ta* ta = autr_ta_create(rr, rr_len, dname_len);
if(!ta)
return NULL;
*tp = find_add_tp(anchors, rr, rr_len, dname_len);
if(!*tp) {
free(ta->rr);
free(ta);
return NULL;
}
/* add ta to tp */
ta->next = (*tp)->autr->keys;
(*tp)->autr->keys = ta;
lock_basic_unlock(&(*tp)->lock);
return ta;
}
/**
* Add new trust anchor from a string in file.
* @param anchors: all anchors
* @param str: string with anchor and comments, if any comments.
* @param tp: trust point returned.
* @param origin: what to use for @
* @param origin_len: length of origin
* @param prev: previous rr name
* @param prev_len: length of prev
* @param skip: if true, the result is NULL, but not an error, skip it.
* @return new key in trust point.
*/
static struct autr_ta*
add_trustanchor_frm_str(struct val_anchors* anchors, char* str,
struct trust_anchor** tp, uint8_t* origin, size_t origin_len,
uint8_t** prev, size_t* prev_len, int* skip)
{
uint8_t rr[LDNS_RR_BUF_SIZE];
size_t rr_len = sizeof(rr), dname_len;
uint8_t* drr;
int lstatus;
if (!str_contains_data(str, ';')) {
*skip = 1;
return NULL; /* empty line */
}
if(0 != (lstatus = sldns_str2wire_rr_buf(str, rr, &rr_len, &dname_len,
0, origin, origin_len, *prev, *prev_len)))
{
log_err("ldns error while converting string to RR at%d: %s: %s",
LDNS_WIREPARSE_OFFSET(lstatus),
sldns_get_errorstr_parse(lstatus), str);
return NULL;
}
free(*prev);
*prev = memdup(rr, dname_len);
*prev_len = dname_len;
if(!*prev) {
log_err("malloc failure in add_trustanchor");
return NULL;
}
if(sldns_wirerr_get_type(rr, rr_len, dname_len)!=LDNS_RR_TYPE_DNSKEY &&
sldns_wirerr_get_type(rr, rr_len, dname_len)!=LDNS_RR_TYPE_DS) {
*skip = 1;
return NULL; /* only DS and DNSKEY allowed */
}
drr = memdup(rr, rr_len);
if(!drr) {
log_err("malloc failure in add trustanchor");
return NULL;
}
return add_trustanchor_frm_rr(anchors, drr, rr_len, dname_len, tp);
}
/**
* Load single anchor
* @param anchors: all points.
* @param str: comments line
* @param fname: filename
* @param origin: the $ORIGIN.
* @param origin_len: length of origin
* @param prev: passed to ldns.
* @param prev_len: length of prev
* @param skip: if true, the result is NULL, but not an error, skip it.
* @return false on failure, otherwise the tp read.
*/
static struct trust_anchor*
load_trustanchor(struct val_anchors* anchors, char* str, const char* fname,
uint8_t* origin, size_t origin_len, uint8_t** prev, size_t* prev_len,
int* skip)
{
struct autr_ta* ta = NULL;
struct trust_anchor* tp = NULL;
ta = add_trustanchor_frm_str(anchors, str, &tp, origin, origin_len,
prev, prev_len, skip);
if(!ta)
return NULL;
lock_basic_lock(&tp->lock);
if(!parse_comments(str, ta)) {
lock_basic_unlock(&tp->lock);
return NULL;
}
if(!tp->autr->file) {
tp->autr->file = strdup(fname);
if(!tp->autr->file) {
lock_basic_unlock(&tp->lock);
log_err("malloc failure");
return NULL;
}
}
lock_basic_unlock(&tp->lock);
return tp;
}
/** iterator for DSes from keylist. return true if a next element exists */
static int
assemble_iterate_ds(struct autr_ta** list, uint8_t** rr, size_t* rr_len,
size_t* dname_len)
{
while(*list) {
if(sldns_wirerr_get_type((*list)->rr, (*list)->rr_len,
(*list)->dname_len) == LDNS_RR_TYPE_DS) {
*rr = (*list)->rr;
*rr_len = (*list)->rr_len;
*dname_len = (*list)->dname_len;
*list = (*list)->next;
return 1;
}
*list = (*list)->next;
}
return 0;
}
/** iterator for DNSKEYs from keylist. return true if a next element exists */
static int
assemble_iterate_dnskey(struct autr_ta** list, uint8_t** rr, size_t* rr_len,
size_t* dname_len)
{
while(*list) {
if(sldns_wirerr_get_type((*list)->rr, (*list)->rr_len,
(*list)->dname_len) != LDNS_RR_TYPE_DS &&
((*list)->s == AUTR_STATE_VALID ||
(*list)->s == AUTR_STATE_MISSING)) {
*rr = (*list)->rr;
*rr_len = (*list)->rr_len;
*dname_len = (*list)->dname_len;
*list = (*list)->next;
return 1;
}
*list = (*list)->next;
}
return 0;
}
/** see if iterator-list has any elements in it, or it is empty */
static int
assemble_iterate_hasfirst(int iter(struct autr_ta**, uint8_t**, size_t*,
size_t*), struct autr_ta* list)
{
uint8_t* rr = NULL;
size_t rr_len = 0, dname_len = 0;
return iter(&list, &rr, &rr_len, &dname_len);
}
/** number of elements in iterator list */
static size_t
assemble_iterate_count(int iter(struct autr_ta**, uint8_t**, size_t*,
size_t*), struct autr_ta* list)
{
uint8_t* rr = NULL;
size_t i = 0, rr_len = 0, dname_len = 0;
while(iter(&list, &rr, &rr_len, &dname_len)) {
i++;
}
return i;
}
/**
* Create a ub_packed_rrset_key allocated on the heap.
* It therefore does not have the correct ID value, and cannot be used
* inside the cache. It can be used in storage outside of the cache.
* Keys for the cache have to be obtained from alloc.h .
* @param iter: iterator over the elements in the list. It filters elements.
* @param list: the list.
* @return key allocated or NULL on failure.
*/
static struct ub_packed_rrset_key*
ub_packed_rrset_heap_key(int iter(struct autr_ta**, uint8_t**, size_t*,
size_t*), struct autr_ta* list)
{
uint8_t* rr = NULL;
size_t rr_len = 0, dname_len = 0;
struct ub_packed_rrset_key* k;
if(!iter(&list, &rr, &rr_len, &dname_len))
return NULL;
k = (struct ub_packed_rrset_key*)calloc(1, sizeof(*k));
if(!k)
return NULL;
k->rk.type = htons(sldns_wirerr_get_type(rr, rr_len, dname_len));
k->rk.rrset_class = htons(sldns_wirerr_get_class(rr, rr_len, dname_len));
k->rk.dname_len = dname_len;
k->rk.dname = memdup(rr, dname_len);
if(!k->rk.dname) {
free(k);
return NULL;
}
return k;
}
/**
* Create packed_rrset data on the heap.
* @param iter: iterator over the elements in the list. It filters elements.
* @param list: the list.
* @return data allocated or NULL on failure.
*/
static struct packed_rrset_data*
packed_rrset_heap_data(int iter(struct autr_ta**, uint8_t**, size_t*,
size_t*), struct autr_ta* list)
{
uint8_t* rr = NULL;
size_t rr_len = 0, dname_len = 0;
struct packed_rrset_data* data;
size_t count=0, rrsig_count=0, len=0, i, total;
uint8_t* nextrdata;
struct autr_ta* list_i;
time_t ttl = 0;
list_i = list;
while(iter(&list_i, &rr, &rr_len, &dname_len)) {
if(sldns_wirerr_get_type(rr, rr_len, dname_len) ==
LDNS_RR_TYPE_RRSIG)
rrsig_count++;
else count++;
/* sizeof the rdlength + rdatalen */
len += 2 + sldns_wirerr_get_rdatalen(rr, rr_len, dname_len);
ttl = (time_t)sldns_wirerr_get_ttl(rr, rr_len, dname_len);
}
if(count == 0 && rrsig_count == 0)
return NULL;
/* allocate */
total = count + rrsig_count;
len += sizeof(*data) + total*(sizeof(size_t) + sizeof(time_t) +
sizeof(uint8_t*));
data = (struct packed_rrset_data*)calloc(1, len);
if(!data)
return NULL;
/* fill it */
data->ttl = ttl;
data->count = count;
data->rrsig_count = rrsig_count;
data->rr_len = (size_t*)((uint8_t*)data +
sizeof(struct packed_rrset_data));
data->rr_data = (uint8_t**)&(data->rr_len[total]);
data->rr_ttl = (time_t*)&(data->rr_data[total]);
nextrdata = (uint8_t*)&(data->rr_ttl[total]);
/* fill out len, ttl, fields */
list_i = list;
i = 0;
while(iter(&list_i, &rr, &rr_len, &dname_len)) {
data->rr_ttl[i] = (time_t)sldns_wirerr_get_ttl(rr, rr_len,
dname_len);
if(data->rr_ttl[i] < data->ttl)
data->ttl = data->rr_ttl[i];
data->rr_len[i] = 2 /* the rdlength */ +
sldns_wirerr_get_rdatalen(rr, rr_len, dname_len);
i++;
}
/* fixup rest of ptrs */
for(i=0; i<total; i++) {
data->rr_data[i] = nextrdata;
nextrdata += data->rr_len[i];
}
/* copy data in there */
list_i = list;
i = 0;
while(iter(&list_i, &rr, &rr_len, &dname_len)) {
log_assert(data->rr_data[i]);
memmove(data->rr_data[i],
sldns_wirerr_get_rdatawl(rr, rr_len, dname_len),
data->rr_len[i]);
i++;
}
if(data->rrsig_count && data->count == 0) {
data->count = data->rrsig_count; /* rrset type is RRSIG */
data->rrsig_count = 0;
}
return data;
}
/**
* Assemble the trust anchors into DS and DNSKEY packed rrsets.
* Uses only VALID and MISSING DNSKEYs.
* Read the sldns_rrs and builds packed rrsets
* @param tp: the trust point. Must be locked.
* @return false on malloc failure.
*/
static int
autr_assemble(struct trust_anchor* tp)
{
struct ub_packed_rrset_key* ubds=NULL, *ubdnskey=NULL;
/* make packed rrset keys - malloced with no ID number, they
* are not in the cache */
/* make packed rrset data (if there is a key) */
if(assemble_iterate_hasfirst(assemble_iterate_ds, tp->autr->keys)) {
ubds = ub_packed_rrset_heap_key(
assemble_iterate_ds, tp->autr->keys);
if(!ubds)
goto error_cleanup;
ubds->entry.data = packed_rrset_heap_data(
assemble_iterate_ds, tp->autr->keys);
if(!ubds->entry.data)
goto error_cleanup;
}
/* make packed DNSKEY data */
if(assemble_iterate_hasfirst(assemble_iterate_dnskey, tp->autr->keys)) {
ubdnskey = ub_packed_rrset_heap_key(
assemble_iterate_dnskey, tp->autr->keys);
if(!ubdnskey)
goto error_cleanup;
ubdnskey->entry.data = packed_rrset_heap_data(
assemble_iterate_dnskey, tp->autr->keys);
if(!ubdnskey->entry.data) {
error_cleanup:
autr_rrset_delete(ubds);
autr_rrset_delete(ubdnskey);
return 0;
}
}
/* we have prepared the new keys so nothing can go wrong any more.
* And we are sure we cannot be left without trustanchor after
* any errors. Put in the new keys and remove old ones. */
/* free the old data */
autr_rrset_delete(tp->ds_rrset);
autr_rrset_delete(tp->dnskey_rrset);
/* assign the data to replace the old */
tp->ds_rrset = ubds;
tp->dnskey_rrset = ubdnskey;
tp->numDS = assemble_iterate_count(assemble_iterate_ds,
tp->autr->keys);
tp->numDNSKEY = assemble_iterate_count(assemble_iterate_dnskey,
tp->autr->keys);
return 1;
}
/** parse integer */
static unsigned int
parse_int(char* line, int* ret)
{
char *e;
unsigned int x = (unsigned int)strtol(line, &e, 10);
if(line == e) {
*ret = -1; /* parse error */
return 0;
}
*ret = 1; /* matched */
return x;
}
/** parse id sequence for anchor */
static struct trust_anchor*
parse_id(struct val_anchors* anchors, char* line)
{
struct trust_anchor *tp;
int r;
uint16_t dclass;
uint8_t* dname;
size_t dname_len;
/* read the owner name */
char* next = strchr(line, ' ');
if(!next)
return NULL;
next[0] = 0;
dname = sldns_str2wire_dname(line, &dname_len);
if(!dname)
return NULL;
/* read the class */
dclass = parse_int(next+1, &r);
if(r == -1) {
free(dname);
return NULL;
}
/* find the trust point */
tp = autr_tp_create(anchors, dname, dname_len, dclass);
free(dname);
return tp;
}
/**
* Parse variable from trustanchor header
* @param line: to parse
* @param anchors: the anchor is added to this, if "id:" is seen.
* @param anchor: the anchor as result value or previously returned anchor
* value to read the variable lines into.
* @return: 0 no match, -1 failed syntax error, +1 success line read.
* +2 revoked trust anchor file.
*/
static int
parse_var_line(char* line, struct val_anchors* anchors,
struct trust_anchor** anchor)
{
struct trust_anchor* tp = *anchor;
int r = 0;
if(strncmp(line, ";;id: ", 6) == 0) {
*anchor = parse_id(anchors, line+6);
if(!*anchor) return -1;
else return 1;
} else if(strncmp(line, ";;REVOKED", 9) == 0) {
if(tp) {
log_err("REVOKED statement must be at start of file");
return -1;
}
return 2;
} else if(strncmp(line, ";;last_queried: ", 16) == 0) {
if(!tp) return -1;
lock_basic_lock(&tp->lock);
tp->autr->last_queried = (time_t)parse_int(line+16, &r);
lock_basic_unlock(&tp->lock);
} else if(strncmp(line, ";;last_success: ", 16) == 0) {
if(!tp) return -1;
lock_basic_lock(&tp->lock);
tp->autr->last_success = (time_t)parse_int(line+16, &r);
lock_basic_unlock(&tp->lock);
} else if(strncmp(line, ";;next_probe_time: ", 19) == 0) {
if(!tp) return -1;
lock_basic_lock(&anchors->lock);
lock_basic_lock(&tp->lock);
(void)rbtree_delete(&anchors->autr->probe, tp);
tp->autr->next_probe_time = (time_t)parse_int(line+19, &r);
(void)rbtree_insert(&anchors->autr->probe, &tp->autr->pnode);
lock_basic_unlock(&tp->lock);
lock_basic_unlock(&anchors->lock);
} else if(strncmp(line, ";;query_failed: ", 16) == 0) {
if(!tp) return -1;
lock_basic_lock(&tp->lock);
tp->autr->query_failed = (uint8_t)parse_int(line+16, &r);
lock_basic_unlock(&tp->lock);
} else if(strncmp(line, ";;query_interval: ", 18) == 0) {
if(!tp) return -1;
lock_basic_lock(&tp->lock);
tp->autr->query_interval = (time_t)parse_int(line+18, &r);
lock_basic_unlock(&tp->lock);
} else if(strncmp(line, ";;retry_time: ", 14) == 0) {
if(!tp) return -1;
lock_basic_lock(&tp->lock);
tp->autr->retry_time = (time_t)parse_int(line+14, &r);
lock_basic_unlock(&tp->lock);
}
return r;
}
/** handle origin lines */
static int
handle_origin(char* line, uint8_t** origin, size_t* origin_len)
{
size_t len = 0;
while(isspace((unsigned char)*line))
line++;
if(strncmp(line, "$ORIGIN", 7) != 0)
return 0;
free(*origin);
line += 7;
while(isspace((unsigned char)*line))
line++;
*origin = sldns_str2wire_dname(line, &len);
*origin_len = len;
if(!*origin)
log_warn("malloc failure or parse error in $ORIGIN");
return 1;
}
/** Read one line and put multiline RRs onto one line string */
static int
read_multiline(char* buf, size_t len, FILE* in, int* linenr)
{
char* pos = buf;
size_t left = len;
int depth = 0;
buf[len-1] = 0;
while(left > 0 && fgets(pos, (int)left, in) != NULL) {
size_t i, poslen = strlen(pos);
(*linenr)++;
/* check what the new depth is after the line */
/* this routine cannot handle braces inside quotes,
say for TXT records, but this routine only has to read keys */
for(i=0; i<poslen; i++) {
if(pos[i] == '(') {
depth++;
} else if(pos[i] == ')') {
if(depth == 0) {
log_err("mismatch: too many ')'");
return -1;
}
depth--;
} else if(pos[i] == ';') {
break;
}
}
/* normal oneline or last line: keeps newline and comments */
if(depth == 0) {
return 1;
}
/* more lines expected, snip off comments and newline */
if(poslen>0)
pos[poslen-1] = 0; /* strip newline */
if(strchr(pos, ';'))
strchr(pos, ';')[0] = 0; /* strip comments */
/* move to paste other lines behind this one */
poslen = strlen(pos);
pos += poslen;
left -= poslen;
/* the newline is changed into a space */
if(left <= 2 /* space and eos */) {
log_err("line too long");
return -1;
}
pos[0] = ' ';
pos[1] = 0;
pos += 1;
left -= 1;
}
if(depth != 0) {
log_err("mismatch: too many '('");
return -1;
}
if(pos != buf)
return 1;
return 0;
}
int autr_read_file(struct val_anchors* anchors, const char* nm)
{
/* the file descriptor */
FILE* fd;
/* keep track of line numbers */
int line_nr = 0;
/* single line */
char line[10240];
/* trust point being read */
struct trust_anchor *tp = NULL, *tp2;
int r;
/* for $ORIGIN parsing */
uint8_t *origin=NULL, *prev=NULL;
size_t origin_len=0, prev_len=0;
if (!(fd = fopen(nm, "r"))) {