Coverage Report

Created: 2026-07-19 06:36

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/openssl/crypto/x509/v3_addr.c
Line
Count
Source
1
/*
2
 * Copyright 2006-2026 The OpenSSL Project Authors. All Rights Reserved.
3
 *
4
 * Licensed under the Apache License 2.0 (the "License").  You may not use
5
 * this file except in compliance with the License.  You can obtain a copy
6
 * in the file LICENSE in the source distribution or at
7
 * https://www.openssl.org/source/license.html
8
 */
9
10
/*
11
 * Implementation of RFC 3779 section 2.2.
12
 */
13
14
#include <stdio.h>
15
#include <stdlib.h>
16
#include <assert.h>
17
#include <string.h>
18
19
#include <openssl/conf.h>
20
#include <openssl/asn1.h>
21
#include <openssl/asn1t.h>
22
#include <openssl/buffer.h>
23
#include <openssl/x509v3.h>
24
#include "internal/cryptlib.h"
25
#include "crypto/asn1.h"
26
#include "crypto/x509.h"
27
#include "ext_dat.h"
28
#include "x509_local.h"
29
30
#ifndef OPENSSL_NO_RFC3779
31
32
/*
33
 * OpenSSL ASN.1 template translation of RFC 3779 2.2.3.
34
 */
35
36
ASN1_SEQUENCE(IPAddressRange) = {
37
    ASN1_SIMPLE(IPAddressRange, min, ASN1_BIT_STRING),
38
    ASN1_SIMPLE(IPAddressRange, max, ASN1_BIT_STRING)
39
0
} ASN1_SEQUENCE_END(IPAddressRange)
40
0
41
0
ASN1_CHOICE(IPAddressOrRange) = {
42
0
    ASN1_SIMPLE(IPAddressOrRange, u.addressPrefix, ASN1_BIT_STRING),
43
0
    ASN1_SIMPLE(IPAddressOrRange, u.addressRange, IPAddressRange)
44
0
} ASN1_CHOICE_END(IPAddressOrRange)
45
0
46
0
ASN1_CHOICE(IPAddressChoice) = {
47
0
    ASN1_SIMPLE(IPAddressChoice, u.inherit, ASN1_NULL),
48
0
    ASN1_SEQUENCE_OF(IPAddressChoice, u.addressesOrRanges, IPAddressOrRange)
49
0
} ASN1_CHOICE_END(IPAddressChoice)
50
0
51
0
ASN1_SEQUENCE(IPAddressFamily) = {
52
0
    ASN1_SIMPLE(IPAddressFamily, addressFamily, ASN1_OCTET_STRING),
53
0
    ASN1_SIMPLE(IPAddressFamily, ipAddressChoice, IPAddressChoice)
54
0
} ASN1_SEQUENCE_END(IPAddressFamily)
55
0
56
0
ASN1_ITEM_TEMPLATE(IPAddrBlocks) = ASN1_EX_TEMPLATE_TYPE(ASN1_TFLG_SEQUENCE_OF, 0,
57
0
    IPAddrBlocks, IPAddressFamily)
58
0
static_ASN1_ITEM_TEMPLATE_END(IPAddrBlocks)
59
60
    IMPLEMENT_ASN1_FUNCTIONS(IPAddressRange)
61
IMPLEMENT_ASN1_FUNCTIONS(IPAddressOrRange)
62
IMPLEMENT_ASN1_FUNCTIONS(IPAddressChoice)
63
IMPLEMENT_ASN1_FUNCTIONS(IPAddressFamily)
64
65
/*
66
 * How much buffer space do we need for a raw address?
67
 */
68
#define ADDR_RAW_BUF_LEN 16
69
70
/*
71
 * What's the address length associated with this AFI?
72
 */
73
static int length_from_afi(const unsigned afi)
74
0
{
75
0
    switch (afi) {
76
0
    case IANA_AFI_IPV4:
77
0
        return 4;
78
0
    case IANA_AFI_IPV6:
79
0
        return 16;
80
0
    default:
81
0
        return 0;
82
0
    }
83
0
}
84
85
/*
86
 * Extract the AFI from an IPAddressFamily.
87
 */
88
unsigned int X509v3_addr_get_afi(const IPAddressFamily *f)
89
0
{
90
0
    if (f == NULL
91
0
        || f->addressFamily == NULL
92
0
        || f->addressFamily->data == NULL
93
0
        || f->addressFamily->length < 2)
94
0
        return 0;
95
0
    return (f->addressFamily->data[0] << 8) | f->addressFamily->data[1];
96
0
}
97
98
/*
99
 * Expand the bitstring form of an address into a raw byte array.
100
 * At the moment this is coded for simplicity, not speed.
101
 */
102
static int addr_expand(unsigned char *addr,
103
    const ASN1_BIT_STRING *bs,
104
    const int length, const unsigned char fill)
105
0
{
106
0
    if (bs->length < 0 || bs->length > length)
107
0
        return 0;
108
0
    if (bs->length > 0) {
109
0
        memcpy(addr, bs->data, bs->length);
110
0
        if ((bs->flags & 7) != 0) {
111
0
            unsigned char mask = 0xFF >> (8 - (bs->flags & 7));
112
113
0
            if (fill == 0)
114
0
                addr[bs->length - 1] &= ~mask;
115
0
            else
116
0
                addr[bs->length - 1] |= mask;
117
0
        }
118
0
    }
119
0
    memset(addr + bs->length, fill, length - bs->length);
120
0
    return 1;
121
0
}
122
123
/*
124
 * Extract the prefix length from a bitstring.
125
 */
126
0
#define addr_prefixlen(bs) ((int)((bs)->length * 8 - ((bs)->flags & 7)))
127
128
/*
129
 * i2r handler for one address bitstring.
130
 */
131
static int i2r_address(BIO *out,
132
    const unsigned afi,
133
    const unsigned char fill, const ASN1_BIT_STRING *bs)
134
0
{
135
0
    unsigned char addr[ADDR_RAW_BUF_LEN];
136
0
    int i, n;
137
138
0
    if (bs->length < 0)
139
0
        return 0;
140
0
    switch (afi) {
141
0
    case IANA_AFI_IPV4:
142
0
        if (!addr_expand(addr, bs, 4, fill))
143
0
            return 0;
144
0
        BIO_printf(out, "%d.%d.%d.%d", addr[0], addr[1], addr[2], addr[3]);
145
0
        break;
146
0
    case IANA_AFI_IPV6:
147
0
        if (!addr_expand(addr, bs, 16, fill))
148
0
            return 0;
149
0
        for (n = 16; n > 1 && addr[n - 1] == 0x00 && addr[n - 2] == 0x00;
150
0
            n -= 2)
151
0
            ;
152
0
        for (i = 0; i < n; i += 2)
153
0
            BIO_printf(out, "%x%s", (addr[i] << 8) | addr[i + 1],
154
0
                (i < 14 ? ":" : ""));
155
0
        if (i < 16)
156
0
            BIO_puts(out, ":");
157
0
        if (i == 0)
158
0
            BIO_puts(out, ":");
159
0
        break;
160
0
    default:
161
0
        for (i = 0; i < bs->length; i++)
162
0
            BIO_printf(out, "%s%02x", (i > 0 ? ":" : ""), bs->data[i]);
163
0
        BIO_printf(out, "[%d]", (int)(bs->flags & 7));
164
0
        break;
165
0
    }
166
0
    return 1;
167
0
}
168
169
/*
170
 * i2r handler for a sequence of addresses and ranges.
171
 */
172
static int i2r_IPAddressOrRanges(BIO *out,
173
    const int indent,
174
    const IPAddressOrRanges *aors,
175
    const unsigned afi)
176
0
{
177
0
    int i;
178
179
0
    for (i = 0; i < sk_IPAddressOrRange_num(aors); i++) {
180
0
        const IPAddressOrRange *aor = sk_IPAddressOrRange_value(aors, i);
181
182
0
        BIO_printf(out, "%*s", indent, "");
183
0
        switch (aor->type) {
184
0
        case IPAddressOrRange_addressPrefix:
185
0
            if (!i2r_address(out, afi, 0x00, aor->u.addressPrefix))
186
0
                return 0;
187
0
            BIO_printf(out, "/%d\n", addr_prefixlen(aor->u.addressPrefix));
188
0
            continue;
189
0
        case IPAddressOrRange_addressRange:
190
0
            if (!i2r_address(out, afi, 0x00, aor->u.addressRange->min))
191
0
                return 0;
192
0
            BIO_puts(out, "-");
193
0
            if (!i2r_address(out, afi, 0xFF, aor->u.addressRange->max))
194
0
                return 0;
195
0
            BIO_puts(out, "\n");
196
0
            continue;
197
0
        }
198
0
    }
199
0
    return 1;
200
0
}
201
202
/*
203
 * i2r handler for an IPAddrBlocks extension.
204
 */
205
static int i2r_IPAddrBlocks(const X509V3_EXT_METHOD *method,
206
    void *ext, BIO *out, int indent)
207
0
{
208
0
    const IPAddrBlocks *addr = ext;
209
0
    int i;
210
211
0
    for (i = 0; i < sk_IPAddressFamily_num(addr); i++) {
212
0
        IPAddressFamily *f = sk_IPAddressFamily_value(addr, i);
213
0
        const unsigned int afi = X509v3_addr_get_afi(f);
214
215
0
        switch (afi) {
216
0
        case IANA_AFI_IPV4:
217
0
            BIO_printf(out, "%*sIPv4", indent, "");
218
0
            break;
219
0
        case IANA_AFI_IPV6:
220
0
            BIO_printf(out, "%*sIPv6", indent, "");
221
0
            break;
222
0
        default:
223
0
            BIO_printf(out, "%*sUnknown AFI %u", indent, "", afi);
224
0
            break;
225
0
        }
226
0
        if (f->addressFamily->length > 2) {
227
0
            switch (f->addressFamily->data[2]) {
228
0
            case 1:
229
0
                BIO_puts(out, " (Unicast)");
230
0
                break;
231
0
            case 2:
232
0
                BIO_puts(out, " (Multicast)");
233
0
                break;
234
0
            case 3:
235
0
                BIO_puts(out, " (Unicast/Multicast)");
236
0
                break;
237
0
            case 4:
238
0
                BIO_puts(out, " (MPLS)");
239
0
                break;
240
0
            case 64:
241
0
                BIO_puts(out, " (Tunnel)");
242
0
                break;
243
0
            case 65:
244
0
                BIO_puts(out, " (VPLS)");
245
0
                break;
246
0
            case 66:
247
0
                BIO_puts(out, " (BGP MDT)");
248
0
                break;
249
0
            case 128:
250
0
                BIO_puts(out, " (MPLS-labeled VPN)");
251
0
                break;
252
0
            default:
253
0
                BIO_printf(out, " (Unknown SAFI %u)",
254
0
                    (unsigned)f->addressFamily->data[2]);
255
0
                break;
256
0
            }
257
0
        }
258
0
        switch (f->ipAddressChoice->type) {
259
0
        case IPAddressChoice_inherit:
260
0
            BIO_puts(out, ": inherit\n");
261
0
            break;
262
0
        case IPAddressChoice_addressesOrRanges:
263
0
            BIO_puts(out, ":\n");
264
0
            if (!i2r_IPAddressOrRanges(out,
265
0
                    indent + 2,
266
0
                    f->ipAddressChoice->u.addressesOrRanges, afi))
267
0
                return 0;
268
0
            break;
269
0
        }
270
0
    }
271
0
    return 1;
272
0
}
273
274
/*
275
 * Sort comparison function for a sequence of IPAddressOrRange
276
 * elements.
277
 *
278
 * There's no sane answer we can give if addr_expand() fails, and an
279
 * assertion failure on externally supplied data is seriously uncool,
280
 * so we just arbitrarily declare that if given invalid inputs this
281
 * function returns -1.  If this messes up your preferred sort order
282
 * for garbage input, tough noogies.
283
 */
284
static int IPAddressOrRange_cmp(const IPAddressOrRange *a,
285
    const IPAddressOrRange *b, const int length)
286
0
{
287
0
    unsigned char addr_a[ADDR_RAW_BUF_LEN], addr_b[ADDR_RAW_BUF_LEN];
288
0
    int prefixlen_a = 0, prefixlen_b = 0;
289
0
    int r;
290
291
0
    switch (a->type) {
292
0
    case IPAddressOrRange_addressPrefix:
293
0
        if (!addr_expand(addr_a, a->u.addressPrefix, length, 0x00))
294
0
            return -1;
295
0
        prefixlen_a = addr_prefixlen(a->u.addressPrefix);
296
0
        break;
297
0
    case IPAddressOrRange_addressRange:
298
0
        if (!addr_expand(addr_a, a->u.addressRange->min, length, 0x00))
299
0
            return -1;
300
0
        prefixlen_a = length * 8;
301
0
        break;
302
0
    default:
303
0
        return -1;
304
0
    }
305
306
0
    switch (b->type) {
307
0
    case IPAddressOrRange_addressPrefix:
308
0
        if (!addr_expand(addr_b, b->u.addressPrefix, length, 0x00))
309
0
            return -1;
310
0
        prefixlen_b = addr_prefixlen(b->u.addressPrefix);
311
0
        break;
312
0
    case IPAddressOrRange_addressRange:
313
0
        if (!addr_expand(addr_b, b->u.addressRange->min, length, 0x00))
314
0
            return -1;
315
0
        prefixlen_b = length * 8;
316
0
        break;
317
0
    default:
318
0
        return -1;
319
0
    }
320
321
0
    if ((r = memcmp(addr_a, addr_b, length)) != 0)
322
0
        return r;
323
0
    else
324
0
        return prefixlen_a - prefixlen_b;
325
0
}
326
327
/*
328
 * IPv4-specific closure over IPAddressOrRange_cmp, since sk_sort()
329
 * comparison routines are only allowed two arguments.
330
 */
331
static int v4IPAddressOrRange_cmp(const IPAddressOrRange *const *a,
332
    const IPAddressOrRange *const *b)
333
0
{
334
0
    return IPAddressOrRange_cmp(*a, *b, 4);
335
0
}
336
337
/*
338
 * IPv6-specific closure over IPAddressOrRange_cmp, since sk_sort()
339
 * comparison routines are only allowed two arguments.
340
 */
341
static int v6IPAddressOrRange_cmp(const IPAddressOrRange *const *a,
342
    const IPAddressOrRange *const *b)
343
0
{
344
0
    return IPAddressOrRange_cmp(*a, *b, 16);
345
0
}
346
347
/*
348
 * Calculate whether a range collapses to a prefix.
349
 * See last paragraph of RFC 3779 2.2.3.7.
350
 */
351
static int range_should_be_prefix(const unsigned char *min,
352
    const unsigned char *max, const int length)
353
0
{
354
0
    unsigned char mask;
355
0
    int i, j;
356
357
    /*
358
     * It is the responsibility of the caller to confirm min <= max. We don't
359
     * use ossl_assert() here since we have no way of signalling an error from
360
     * this function - so we just use a plain assert instead.
361
     */
362
0
    assert(memcmp(min, max, length) <= 0);
363
364
0
    for (i = 0; i < length && min[i] == max[i]; i++)
365
0
        ;
366
0
    for (j = length - 1; j >= 0 && min[j] == 0x00 && max[j] == 0xFF; j--)
367
0
        ;
368
0
    if (i < j)
369
0
        return -1;
370
0
    if (i > j)
371
0
        return i * 8;
372
0
    mask = min[i] ^ max[i];
373
0
    switch (mask) {
374
0
    case 0x01:
375
0
        j = 7;
376
0
        break;
377
0
    case 0x03:
378
0
        j = 6;
379
0
        break;
380
0
    case 0x07:
381
0
        j = 5;
382
0
        break;
383
0
    case 0x0F:
384
0
        j = 4;
385
0
        break;
386
0
    case 0x1F:
387
0
        j = 3;
388
0
        break;
389
0
    case 0x3F:
390
0
        j = 2;
391
0
        break;
392
0
    case 0x7F:
393
0
        j = 1;
394
0
        break;
395
0
    default:
396
0
        return -1;
397
0
    }
398
0
    if ((min[i] & mask) != 0 || (max[i] & mask) != mask)
399
0
        return -1;
400
0
    else
401
0
        return i * 8 + j;
402
0
}
403
404
/*
405
 * Construct a prefix.
406
 */
407
static int make_addressPrefix(IPAddressOrRange **result, unsigned char *addr,
408
    const int prefixlen, const int afilen)
409
0
{
410
0
    int bytelen = (prefixlen + 7) / 8, bitlen = prefixlen % 8;
411
0
    IPAddressOrRange *aor;
412
0
    unsigned char *prefix = NULL;
413
0
    uint8_t unused_bits = 0;
414
415
0
    if (bitlen > 0)
416
0
        unused_bits = 8 - bitlen;
417
418
0
    if (prefixlen < 0 || prefixlen > (afilen * 8))
419
0
        return 0;
420
0
    if ((aor = IPAddressOrRange_new()) == NULL)
421
0
        return 0;
422
0
    aor->type = IPAddressOrRange_addressPrefix;
423
0
    if (aor->u.addressPrefix == NULL && (aor->u.addressPrefix = ASN1_BIT_STRING_new()) == NULL)
424
0
        goto err;
425
0
    if (bytelen > 0) {
426
0
        prefix = OPENSSL_malloc(bytelen);
427
0
        if (prefix == NULL)
428
0
            goto err;
429
0
        memcpy(prefix, addr, bytelen);
430
0
        if (unused_bits)
431
0
            prefix[bytelen - 1] &= ~(0xFF >> bitlen);
432
0
    }
433
0
    if (!ASN1_BIT_STRING_set1(aor->u.addressPrefix, prefix, bytelen, unused_bits))
434
0
        goto err;
435
0
    *result = aor;
436
437
0
    OPENSSL_free(prefix);
438
0
    return 1;
439
440
0
err:
441
0
    OPENSSL_free(prefix);
442
0
    IPAddressOrRange_free(aor);
443
0
    return 0;
444
0
}
445
446
/*
447
 * Construct a range.  If it can be expressed as a prefix,
448
 * return a prefix instead.  Doing this here simplifies
449
 * the rest of the code considerably.
450
 */
451
static int make_addressRange(IPAddressOrRange **result,
452
    unsigned char *min,
453
    unsigned char *max, const int length)
454
0
{
455
0
    IPAddressOrRange *aor;
456
0
    int i, prefixlen;
457
458
0
    if (memcmp(min, max, length) > 0)
459
0
        return 0;
460
461
0
    if ((prefixlen = range_should_be_prefix(min, max, length)) >= 0)
462
0
        return make_addressPrefix(result, min, prefixlen, length);
463
464
0
    if ((aor = IPAddressOrRange_new()) == NULL)
465
0
        return 0;
466
0
    aor->type = IPAddressOrRange_addressRange;
467
0
    if ((aor->u.addressRange = IPAddressRange_new()) == NULL)
468
0
        goto err;
469
0
    if (aor->u.addressRange->min == NULL && (aor->u.addressRange->min = ASN1_BIT_STRING_new()) == NULL)
470
0
        goto err;
471
0
    if (aor->u.addressRange->max == NULL && (aor->u.addressRange->max = ASN1_BIT_STRING_new()) == NULL)
472
0
        goto err;
473
474
0
    for (i = length; i > 0 && min[i - 1] == 0x00; --i)
475
0
        ;
476
0
    if (!ASN1_BIT_STRING_set1(aor->u.addressRange->min, min, i, 0))
477
0
        goto err;
478
0
    if (i > 0) {
479
0
        unsigned char b = min[i - 1];
480
0
        int j = 1;
481
482
0
        while ((b & (0xFFU >> j)) != 0)
483
0
            ++j;
484
0
        aor->u.addressRange->min->flags |= 8 - j;
485
0
    }
486
487
0
    for (i = length; i > 0 && max[i - 1] == 0xFF; --i)
488
0
        ;
489
0
    if (!ASN1_BIT_STRING_set1(aor->u.addressRange->max, max, i, 0))
490
0
        goto err;
491
0
    if (i > 0) {
492
0
        unsigned char b = max[i - 1];
493
0
        int j = 1;
494
495
0
        while ((b & (0xFFU >> j)) != (0xFFU >> j))
496
0
            ++j;
497
0
        aor->u.addressRange->max->flags |= 8 - j;
498
0
    }
499
500
0
    *result = aor;
501
0
    return 1;
502
503
0
err:
504
0
    IPAddressOrRange_free(aor);
505
0
    return 0;
506
0
}
507
508
/*
509
 * Construct a new address family or find an existing one.
510
 */
511
static IPAddressFamily *make_IPAddressFamily(IPAddrBlocks *addr,
512
    const unsigned afi,
513
    const unsigned *safi)
514
0
{
515
0
    IPAddressFamily *f;
516
0
    unsigned char key[3];
517
0
    int keylen;
518
0
    int i;
519
520
0
    key[0] = (afi >> 8) & 0xFF;
521
0
    key[1] = afi & 0xFF;
522
0
    if (safi != NULL) {
523
0
        key[2] = *safi & 0xFF;
524
0
        keylen = 3;
525
0
    } else {
526
0
        keylen = 2;
527
0
    }
528
529
0
    for (i = 0; i < sk_IPAddressFamily_num(addr); i++) {
530
0
        f = sk_IPAddressFamily_value(addr, i);
531
0
        if (f->addressFamily->length == keylen && !memcmp(f->addressFamily->data, key, keylen))
532
0
            return f;
533
0
    }
534
535
0
    if ((f = IPAddressFamily_new()) == NULL)
536
0
        goto err;
537
0
    if (f->ipAddressChoice == NULL && (f->ipAddressChoice = IPAddressChoice_new()) == NULL)
538
0
        goto err;
539
0
    if (f->addressFamily == NULL && (f->addressFamily = ASN1_OCTET_STRING_new()) == NULL)
540
0
        goto err;
541
0
    if (!ASN1_OCTET_STRING_set(f->addressFamily, key, keylen))
542
0
        goto err;
543
0
    if (!sk_IPAddressFamily_push(addr, f))
544
0
        goto err;
545
546
0
    return f;
547
548
0
err:
549
0
    IPAddressFamily_free(f);
550
0
    return NULL;
551
0
}
552
553
/*
554
 * Add an inheritance element.
555
 */
556
int X509v3_addr_add_inherit(IPAddrBlocks *addr,
557
    unsigned afi, const unsigned *safi)
558
0
{
559
0
    IPAddressFamily *f = make_IPAddressFamily(addr, afi, safi);
560
561
0
    if (f == NULL || f->ipAddressChoice == NULL || (f->ipAddressChoice->type == IPAddressChoice_addressesOrRanges && f->ipAddressChoice->u.addressesOrRanges != NULL))
562
0
        return 0;
563
0
    if (f->ipAddressChoice->type == IPAddressChoice_inherit && f->ipAddressChoice->u.inherit != NULL)
564
0
        return 1;
565
0
    if (f->ipAddressChoice->u.inherit == NULL && (f->ipAddressChoice->u.inherit = ASN1_NULL_new()) == NULL)
566
0
        return 0;
567
0
    f->ipAddressChoice->type = IPAddressChoice_inherit;
568
0
    return 1;
569
0
}
570
571
/*
572
 * Construct an IPAddressOrRange sequence, or return an existing one.
573
 */
574
static IPAddressOrRanges *make_prefix_or_range(IPAddrBlocks *addr,
575
    const unsigned afi,
576
    const unsigned *safi)
577
0
{
578
0
    IPAddressFamily *f = make_IPAddressFamily(addr, afi, safi);
579
0
    IPAddressOrRanges *aors = NULL;
580
581
0
    if (f == NULL || f->ipAddressChoice == NULL || (f->ipAddressChoice->type == IPAddressChoice_inherit && f->ipAddressChoice->u.inherit != NULL))
582
0
        return NULL;
583
0
    if (f->ipAddressChoice->type == IPAddressChoice_addressesOrRanges)
584
0
        aors = f->ipAddressChoice->u.addressesOrRanges;
585
0
    if (aors != NULL)
586
0
        return aors;
587
0
    if ((aors = sk_IPAddressOrRange_new_null()) == NULL)
588
0
        return NULL;
589
0
    switch (afi) {
590
0
    case IANA_AFI_IPV4:
591
0
        (void)sk_IPAddressOrRange_set_cmp_func(aors, v4IPAddressOrRange_cmp);
592
0
        break;
593
0
    case IANA_AFI_IPV6:
594
0
        (void)sk_IPAddressOrRange_set_cmp_func(aors, v6IPAddressOrRange_cmp);
595
0
        break;
596
0
    }
597
0
    f->ipAddressChoice->type = IPAddressChoice_addressesOrRanges;
598
0
    f->ipAddressChoice->u.addressesOrRanges = aors;
599
0
    return aors;
600
0
}
601
602
/*
603
 * Add a prefix.
604
 */
605
int X509v3_addr_add_prefix(IPAddrBlocks *addr,
606
    const unsigned afi,
607
    const unsigned *safi,
608
    unsigned char *a, int prefixlen)
609
0
{
610
0
    IPAddressOrRanges *aors = make_prefix_or_range(addr, afi, safi);
611
0
    IPAddressOrRange *aor;
612
613
0
    if (aors == NULL
614
0
        || !make_addressPrefix(&aor, a, prefixlen, length_from_afi(afi)))
615
0
        return 0;
616
0
    if (sk_IPAddressOrRange_push(aors, aor))
617
0
        return 1;
618
0
    IPAddressOrRange_free(aor);
619
0
    return 0;
620
0
}
621
622
/*
623
 * Add a range.
624
 */
625
int X509v3_addr_add_range(IPAddrBlocks *addr,
626
    unsigned afi,
627
    const unsigned *safi,
628
    unsigned char *min, unsigned char *max)
629
0
{
630
0
    IPAddressOrRanges *aors = make_prefix_or_range(addr, afi, safi);
631
0
    IPAddressOrRange *aor;
632
0
    int length = length_from_afi(afi);
633
634
0
    if (aors == NULL)
635
0
        return 0;
636
0
    if (!make_addressRange(&aor, min, max, length))
637
0
        return 0;
638
0
    if (sk_IPAddressOrRange_push(aors, aor))
639
0
        return 1;
640
0
    IPAddressOrRange_free(aor);
641
0
    return 0;
642
0
}
643
644
/*
645
 * Extract min and max values from an IPAddressOrRange.
646
 */
647
static int extract_min_max(IPAddressOrRange *aor,
648
    unsigned char *min, unsigned char *max, int length)
649
0
{
650
0
    if (aor == NULL || min == NULL || max == NULL)
651
0
        return 0;
652
0
    switch (aor->type) {
653
0
    case IPAddressOrRange_addressPrefix:
654
0
        return (addr_expand(min, aor->u.addressPrefix, length, 0x00) && addr_expand(max, aor->u.addressPrefix, length, 0xFF));
655
0
    case IPAddressOrRange_addressRange:
656
0
        return (addr_expand(min, aor->u.addressRange->min, length, 0x00) && addr_expand(max, aor->u.addressRange->max, length, 0xFF));
657
0
    }
658
0
    return 0;
659
0
}
660
661
/*
662
 * Public wrapper for extract_min_max().
663
 */
664
int X509v3_addr_get_range(IPAddressOrRange *aor,
665
    unsigned afi,
666
    unsigned char *min,
667
    unsigned char *max, int length)
668
0
{
669
0
    int afi_length = length_from_afi(afi);
670
671
0
    if (aor == NULL || min == NULL || max == NULL || afi_length == 0 || length < afi_length || (aor->type != IPAddressOrRange_addressPrefix && aor->type != IPAddressOrRange_addressRange) || !extract_min_max(aor, min, max, afi_length))
672
0
        return 0;
673
674
0
    return afi_length;
675
0
}
676
677
/*
678
 * Sort comparison function for a sequence of IPAddressFamily.
679
 *
680
 * The last paragraph of RFC 3779 2.2.3.3 is slightly ambiguous about
681
 * the ordering: I can read it as meaning that IPv6 without a SAFI
682
 * comes before IPv4 with a SAFI, which seems pretty weird.  The
683
 * examples in appendix B suggest that the author intended the
684
 * null-SAFI rule to apply only within a single AFI, which is what I
685
 * would have expected and is what the following code implements.
686
 */
687
static int IPAddressFamily_cmp(const IPAddressFamily *const *a_,
688
    const IPAddressFamily *const *b_)
689
0
{
690
0
    const ASN1_OCTET_STRING *a = (*a_)->addressFamily;
691
0
    const ASN1_OCTET_STRING *b = (*b_)->addressFamily;
692
0
    int cmp, len = (a->length <= b->length) ? a->length : b->length;
693
694
0
    if (len > 0) {
695
0
        cmp = memcmp(a->data, b->data, len);
696
0
        if (cmp != 0)
697
0
            return cmp;
698
0
    }
699
700
0
    return a->length - b->length;
701
0
}
702
703
static int IPAddressFamily_check_len(const IPAddressFamily *f)
704
0
{
705
0
    if (f->addressFamily->length < 2 || f->addressFamily->length > 3)
706
0
        return 0;
707
0
    else
708
0
        return 1;
709
0
}
710
711
/*
712
 * Check whether an IPAddrBLocks is in canonical form.
713
 */
714
int X509v3_addr_is_canonical(IPAddrBlocks *addr)
715
0
{
716
0
    unsigned char a_min[ADDR_RAW_BUF_LEN], a_max[ADDR_RAW_BUF_LEN];
717
0
    unsigned char b_min[ADDR_RAW_BUF_LEN], b_max[ADDR_RAW_BUF_LEN];
718
0
    IPAddressOrRanges *aors;
719
0
    int i, j, k;
720
721
    /*
722
     * Empty extension is canonical.
723
     */
724
0
    if (addr == NULL)
725
0
        return 1;
726
727
    /*
728
     * Check whether the top-level list is in order.
729
     */
730
0
    for (i = 0; i < sk_IPAddressFamily_num(addr) - 1; i++) {
731
0
        const IPAddressFamily *a = sk_IPAddressFamily_value(addr, i);
732
0
        const IPAddressFamily *b = sk_IPAddressFamily_value(addr, i + 1);
733
734
0
        if (!IPAddressFamily_check_len(a) || !IPAddressFamily_check_len(b))
735
0
            return 0;
736
737
0
        if (IPAddressFamily_cmp(&a, &b) >= 0)
738
0
            return 0;
739
0
    }
740
741
    /*
742
     * Top level's ok, now check each address family.
743
     */
744
0
    for (i = 0; i < sk_IPAddressFamily_num(addr); i++) {
745
0
        IPAddressFamily *f = sk_IPAddressFamily_value(addr, i);
746
0
        int length = length_from_afi(X509v3_addr_get_afi(f));
747
748
        /*
749
         * Inheritance is canonical.  Anything other than inheritance or
750
         * a SEQUENCE OF IPAddressOrRange is an ASN.1 error or something.
751
         */
752
0
        if (f == NULL || f->ipAddressChoice == NULL)
753
0
            return 0;
754
0
        switch (f->ipAddressChoice->type) {
755
0
        case IPAddressChoice_inherit:
756
0
            continue;
757
0
        case IPAddressChoice_addressesOrRanges:
758
0
            break;
759
0
        default:
760
0
            return 0;
761
0
        }
762
763
0
        if (!IPAddressFamily_check_len(f))
764
0
            return 0;
765
766
        /*
767
         * It's an IPAddressOrRanges sequence, check it.
768
         */
769
0
        aors = f->ipAddressChoice->u.addressesOrRanges;
770
0
        if (sk_IPAddressOrRange_num(aors) == 0)
771
0
            return 0;
772
773
0
        for (j = 0; j < sk_IPAddressOrRange_num(aors) - 1; j++) {
774
0
            IPAddressOrRange *a = sk_IPAddressOrRange_value(aors, j);
775
0
            IPAddressOrRange *b = sk_IPAddressOrRange_value(aors, j + 1);
776
777
0
            if (!extract_min_max(a, a_min, a_max, length) || !extract_min_max(b, b_min, b_max, length))
778
0
                return 0;
779
780
            /*
781
             * Punt misordered list, overlapping start, or inverted range.
782
             */
783
0
            if (memcmp(a_min, b_min, length) >= 0 || memcmp(a_min, a_max, length) > 0 || memcmp(b_min, b_max, length) > 0)
784
0
                return 0;
785
786
            /*
787
             * Punt if adjacent or overlapping.  Check for adjacency by
788
             * subtracting one from b_min first.
789
             */
790
0
            for (k = length - 1; k >= 0 && b_min[k]-- == 0x00; k--)
791
0
                ;
792
0
            if (memcmp(a_max, b_min, length) >= 0)
793
0
                return 0;
794
795
            /*
796
             * Check for range that should be expressed as a prefix.
797
             */
798
0
            if (a->type == IPAddressOrRange_addressRange && range_should_be_prefix(a_min, a_max, length) >= 0)
799
0
                return 0;
800
0
        }
801
802
        /*
803
         * Check range to see if it's inverted or should be a
804
         * prefix.
805
         */
806
0
        j = sk_IPAddressOrRange_num(aors) - 1;
807
0
        {
808
0
            IPAddressOrRange *a = sk_IPAddressOrRange_value(aors, j);
809
810
0
            if (a != NULL && a->type == IPAddressOrRange_addressRange) {
811
0
                if (!extract_min_max(a, a_min, a_max, length))
812
0
                    return 0;
813
0
                if (memcmp(a_min, a_max, length) > 0 || range_should_be_prefix(a_min, a_max, length) >= 0)
814
0
                    return 0;
815
0
            }
816
0
        }
817
0
    }
818
819
    /*
820
     * If we made it through all that, we're happy.
821
     */
822
0
    return 1;
823
0
}
824
825
/*
826
 * Whack an IPAddressOrRanges into canonical form.
827
 *
828
 * After the initial sort, the merge runs as a single linear sweep
829
 * over the list using a write index.  Adjacent entries are folded
830
 * into the previous output by replacing it with a freshly built
831
 * merged range; both old entries are then freed and the source slot
832
 * is left NULL so the asn1 free machinery does not double-free on a
833
 * subsequent abort.  Total cost is O(N log N) sort + O(N) merge,
834
 * with no stack deletes inside the loop.
835
 */
836
static int IPAddressOrRanges_canonize(IPAddressOrRanges *aors,
837
    const unsigned afi)
838
0
{
839
0
    int length = length_from_afi(afi);
840
0
    int read, write = 0, n;
841
842
0
    sk_IPAddressOrRange_sort(aors);
843
0
    n = sk_IPAddressOrRange_num(aors);
844
845
    /*
846
     * Error paths below all `return 0` directly.  Slots at
847
     * [write..read-1] are NULL (from earlier iterations) and slots at
848
     * [read..n-1] still hold their original entries; the caller's
849
     * normal teardown walks the whole stack and frees each non-NULL
850
     * slot safely, so leaving the stack in this mixed state is sound.
851
     */
852
0
    for (read = 0; read < n; read++) {
853
0
        IPAddressOrRange *cur = sk_IPAddressOrRange_value(aors, read);
854
0
        unsigned char c_min[ADDR_RAW_BUF_LEN], c_max[ADDR_RAW_BUF_LEN];
855
856
0
        if (!extract_min_max(cur, c_min, c_max, length))
857
0
            return 0;
858
859
        /*
860
         * Punt inverted range.
861
         */
862
0
        if (memcmp(c_min, c_max, length) > 0)
863
0
            return 0;
864
865
0
        if (write > 0) {
866
0
            IPAddressOrRange *prev = sk_IPAddressOrRange_value(aors,
867
0
                write - 1);
868
0
            unsigned char p_min[ADDR_RAW_BUF_LEN], p_max[ADDR_RAW_BUF_LEN];
869
0
            unsigned char c_min_minus_one[ADDR_RAW_BUF_LEN];
870
0
            int j;
871
872
0
            if (!extract_min_max(prev, p_min, p_max, length))
873
0
                return 0;
874
875
            /*
876
             * Reject overlap with the previous accepted entry.
877
             */
878
0
            if (memcmp(p_max, c_min, length) >= 0)
879
0
                return 0;
880
881
            /*
882
             * Adjacency test: does c_min - 1 equal p_max?  Work on a
883
             * scratch copy so the original c_min stays intact for use
884
             * as the lower bound if we end up keeping cur.
885
             */
886
0
            memcpy(c_min_minus_one, c_min, length);
887
0
            for (j = length - 1;
888
0
                j >= 0 && c_min_minus_one[j]-- == 0x00;
889
0
                j--)
890
0
                ;
891
0
            if (memcmp(p_max, c_min_minus_one, length) == 0) {
892
0
                IPAddressOrRange *merged;
893
894
0
                if (!make_addressRange(&merged, p_min, c_max, length))
895
0
                    return 0;
896
                /*
897
                 * Replace prev with merged, free the originals, and
898
                 * NULL the source slot so the stack does not retain a
899
                 * second reference to cur.
900
                 */
901
0
                (void)sk_IPAddressOrRange_set(aors, write - 1, merged);
902
0
                IPAddressOrRange_free(prev);
903
0
                IPAddressOrRange_free(cur);
904
0
                (void)sk_IPAddressOrRange_set(aors, read, NULL);
905
0
                continue;
906
0
            }
907
0
        }
908
909
        /*
910
         * Keep cur.  Slide it forward into the write slot if we have
911
         * fallen behind, and NULL the source slot to avoid duplicate
912
         * ownership.
913
         */
914
0
        if (write != read) {
915
0
            (void)sk_IPAddressOrRange_set(aors, write, cur);
916
0
            (void)sk_IPAddressOrRange_set(aors, read, NULL);
917
0
        }
918
0
        write++;
919
0
    }
920
921
    /*
922
     * Compaction succeeded: every slot at [write..n-1] is NULL, so
923
     * popping the tail leaves the canonicalised list at [0..write-1].
924
     */
925
0
    while (sk_IPAddressOrRange_num(aors) > write)
926
0
        (void)sk_IPAddressOrRange_pop(aors);
927
0
    return 1;
928
0
}
929
930
/*
931
 * Whack an IPAddrBlocks extension into canonical form.
932
 */
933
int X509v3_addr_canonize(IPAddrBlocks *addr)
934
0
{
935
0
    int i;
936
937
0
    if (addr == NULL) {
938
0
        ERR_raise(ERR_LIB_X509V3, X509V3_R_INVALID_NULL_ARGUMENT);
939
0
        return 0;
940
0
    }
941
942
0
    for (i = 0; i < sk_IPAddressFamily_num(addr); i++) {
943
0
        IPAddressFamily *f = sk_IPAddressFamily_value(addr, i);
944
945
0
        if (!IPAddressFamily_check_len(f))
946
0
            return 0;
947
948
0
        if (f->ipAddressChoice->type == IPAddressChoice_addressesOrRanges && !IPAddressOrRanges_canonize(f->ipAddressChoice->u.addressesOrRanges, X509v3_addr_get_afi(f)))
949
0
            return 0;
950
0
    }
951
0
    (void)sk_IPAddressFamily_set_cmp_func(addr, IPAddressFamily_cmp);
952
0
    sk_IPAddressFamily_sort(addr);
953
0
    if (!ossl_assert(X509v3_addr_is_canonical(addr)))
954
0
        return 0;
955
0
    return 1;
956
0
}
957
958
/*
959
 * v2i handler for the IPAddrBlocks extension.
960
 */
961
static void *v2i_IPAddrBlocks(const struct v3_ext_method *method,
962
    struct v3_ext_ctx *ctx,
963
    STACK_OF(CONF_VALUE) *values)
964
0
{
965
0
    static const char v4addr_chars[] = "0123456789.";
966
0
    static const char v6addr_chars[] = "0123456789.:abcdefABCDEF";
967
0
    IPAddrBlocks *addr = NULL;
968
0
    char *s = NULL, *t;
969
0
    int i;
970
971
0
    if ((addr = sk_IPAddressFamily_new(IPAddressFamily_cmp)) == NULL) {
972
0
        ERR_raise(ERR_LIB_X509V3, ERR_R_CRYPTO_LIB);
973
0
        return NULL;
974
0
    }
975
976
0
    for (i = 0; i < sk_CONF_VALUE_num(values); i++) {
977
0
        CONF_VALUE *val = sk_CONF_VALUE_value(values, i);
978
0
        unsigned char min[ADDR_RAW_BUF_LEN], max[ADDR_RAW_BUF_LEN];
979
0
        unsigned afi, *safi = NULL, safi_;
980
0
        const char *addr_chars = NULL;
981
0
        int prefixlen, i1, i2, delim, length;
982
983
0
        if (!ossl_v3_name_cmp(val->name, "IPv4")) {
984
0
            afi = IANA_AFI_IPV4;
985
0
        } else if (!ossl_v3_name_cmp(val->name, "IPv6")) {
986
0
            afi = IANA_AFI_IPV6;
987
0
        } else if (!ossl_v3_name_cmp(val->name, "IPv4-SAFI")) {
988
0
            afi = IANA_AFI_IPV4;
989
0
            safi = &safi_;
990
0
        } else if (!ossl_v3_name_cmp(val->name, "IPv6-SAFI")) {
991
0
            afi = IANA_AFI_IPV6;
992
0
            safi = &safi_;
993
0
        } else {
994
0
            ERR_raise_data(ERR_LIB_X509V3, X509V3_R_EXTENSION_NAME_ERROR,
995
0
                "%s", val->name);
996
0
            goto err;
997
0
        }
998
999
0
        switch (afi) {
1000
0
        case IANA_AFI_IPV4:
1001
0
            addr_chars = v4addr_chars;
1002
0
            break;
1003
0
        case IANA_AFI_IPV6:
1004
0
            addr_chars = v6addr_chars;
1005
0
            break;
1006
0
        }
1007
1008
0
        length = length_from_afi(afi);
1009
1010
        /*
1011
         * Handle SAFI, if any, and OPENSSL_strdup() so we can null-terminate
1012
         * the other input values.
1013
         */
1014
0
        if (safi != NULL) {
1015
0
            if (val->value == NULL) {
1016
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_MISSING_VALUE);
1017
0
                goto err;
1018
0
            }
1019
0
            *safi = strtoul(val->value, &t, 0);
1020
0
            t += strspn(t, " \t");
1021
0
            if (*safi > 0xFF || *t++ != ':') {
1022
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_INVALID_SAFI);
1023
0
                X509V3_conf_add_error_name_value(val);
1024
0
                goto err;
1025
0
            }
1026
0
            t += strspn(t, " \t");
1027
0
            s = OPENSSL_strdup(t);
1028
0
        } else {
1029
0
            s = OPENSSL_strdup(val->value);
1030
0
        }
1031
0
        if (s == NULL)
1032
0
            goto err;
1033
1034
        /*
1035
         * Check for inheritance.  Not worth additional complexity to
1036
         * optimize this (seldom-used) case.
1037
         */
1038
0
        if (strcmp(s, "inherit") == 0) {
1039
0
            if (!X509v3_addr_add_inherit(addr, afi, safi)) {
1040
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_INVALID_INHERITANCE);
1041
0
                X509V3_conf_add_error_name_value(val);
1042
0
                goto err;
1043
0
            }
1044
0
            OPENSSL_free(s);
1045
0
            s = NULL;
1046
0
            continue;
1047
0
        }
1048
1049
0
        i1 = (int)strspn(s, addr_chars);
1050
0
        i2 = i1 + (int)strspn(s + i1, " \t");
1051
0
        delim = s[i2++];
1052
0
        s[i1] = '\0';
1053
1054
0
        if (ossl_a2i_ipadd(min, s) != length) {
1055
0
            ERR_raise(ERR_LIB_X509V3, X509V3_R_INVALID_IPADDRESS);
1056
0
            X509V3_conf_add_error_name_value(val);
1057
0
            goto err;
1058
0
        }
1059
1060
0
        switch (delim) {
1061
0
        case '/':
1062
0
            prefixlen = (int)strtoul(s + i2, &t, 10);
1063
0
            if (t == s + i2
1064
0
                || *t != '\0'
1065
0
                || prefixlen > (length * 8)
1066
0
                || prefixlen < 0) {
1067
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_EXTENSION_VALUE_ERROR);
1068
0
                X509V3_conf_add_error_name_value(val);
1069
0
                goto err;
1070
0
            }
1071
0
            if (!X509v3_addr_add_prefix(addr, afi, safi, min, prefixlen)) {
1072
0
                ERR_raise(ERR_LIB_X509V3, ERR_R_X509V3_LIB);
1073
0
                goto err;
1074
0
            }
1075
0
            break;
1076
0
        case '-':
1077
0
            i1 = i2 + (int)strspn(s + i2, " \t");
1078
0
            i2 = i1 + (int)strspn(s + i1, addr_chars);
1079
0
            if (i1 == i2 || s[i2] != '\0') {
1080
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_EXTENSION_VALUE_ERROR);
1081
0
                X509V3_conf_add_error_name_value(val);
1082
0
                goto err;
1083
0
            }
1084
0
            if (ossl_a2i_ipadd(max, s + i1) != length) {
1085
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_INVALID_IPADDRESS);
1086
0
                X509V3_conf_add_error_name_value(val);
1087
0
                goto err;
1088
0
            }
1089
0
            if (memcmp(min, max, length_from_afi(afi)) > 0) {
1090
0
                ERR_raise(ERR_LIB_X509V3, X509V3_R_EXTENSION_VALUE_ERROR);
1091
0
                X509V3_conf_add_error_name_value(val);
1092
0
                goto err;
1093
0
            }
1094
0
            if (!X509v3_addr_add_range(addr, afi, safi, min, max)) {
1095
0
                ERR_raise(ERR_LIB_X509V3, ERR_R_X509V3_LIB);
1096
0
                goto err;
1097
0
            }
1098
0
            break;
1099
0
        case '\0':
1100
0
            if (!X509v3_addr_add_prefix(addr, afi, safi, min, length * 8)) {
1101
0
                ERR_raise(ERR_LIB_X509V3, ERR_R_X509V3_LIB);
1102
0
                goto err;
1103
0
            }
1104
0
            break;
1105
0
        default:
1106
0
            ERR_raise(ERR_LIB_X509V3, X509V3_R_EXTENSION_VALUE_ERROR);
1107
0
            X509V3_conf_add_error_name_value(val);
1108
0
            goto err;
1109
0
        }
1110
1111
0
        OPENSSL_free(s);
1112
0
        s = NULL;
1113
0
    }
1114
1115
    /*
1116
     * Canonize the result, then we're done.
1117
     */
1118
0
    if (!X509v3_addr_canonize(addr))
1119
0
        goto err;
1120
0
    return addr;
1121
1122
0
err:
1123
0
    OPENSSL_free(s);
1124
0
    sk_IPAddressFamily_pop_free(addr, IPAddressFamily_free);
1125
0
    return NULL;
1126
0
}
1127
1128
/*
1129
 * OpenSSL dispatch
1130
 */
1131
const X509V3_EXT_METHOD ossl_v3_addr = {
1132
    NID_sbgp_ipAddrBlock, /* nid */
1133
    0, /* flags */
1134
    ASN1_ITEM_ref(IPAddrBlocks), /* template */
1135
    0, 0, 0, 0, /* old functions, ignored */
1136
    0, /* i2s */
1137
    0, /* s2i */
1138
    0, /* i2v */
1139
    v2i_IPAddrBlocks, /* v2i */
1140
    i2r_IPAddrBlocks, /* i2r */
1141
    0, /* r2i */
1142
    NULL /* extension-specific data */
1143
};
1144
1145
/*
1146
 * Figure out whether extension sues inheritance.
1147
 */
1148
int X509v3_addr_inherits(IPAddrBlocks *addr)
1149
0
{
1150
0
    int i;
1151
1152
0
    if (addr == NULL)
1153
0
        return 0;
1154
0
    for (i = 0; i < sk_IPAddressFamily_num(addr); i++) {
1155
0
        IPAddressFamily *f = sk_IPAddressFamily_value(addr, i);
1156
1157
0
        if (f->ipAddressChoice->type == IPAddressChoice_inherit)
1158
0
            return 1;
1159
0
    }
1160
0
    return 0;
1161
0
}
1162
1163
/*
1164
 * Figure out whether parent contains child.
1165
 */
1166
static int addr_contains(IPAddressOrRanges *parent,
1167
    IPAddressOrRanges *child, int length)
1168
0
{
1169
0
    unsigned char p_min[ADDR_RAW_BUF_LEN], p_max[ADDR_RAW_BUF_LEN];
1170
0
    unsigned char c_min[ADDR_RAW_BUF_LEN], c_max[ADDR_RAW_BUF_LEN];
1171
0
    int p, c;
1172
1173
0
    if (child == NULL || parent == child)
1174
0
        return 1;
1175
0
    if (parent == NULL)
1176
0
        return 0;
1177
1178
0
    p = 0;
1179
0
    for (c = 0; c < sk_IPAddressOrRange_num(child); c++) {
1180
0
        if (!extract_min_max(sk_IPAddressOrRange_value(child, c),
1181
0
                c_min, c_max, length))
1182
0
            return 0;
1183
0
        for (;; p++) {
1184
0
            if (p >= sk_IPAddressOrRange_num(parent))
1185
0
                return 0;
1186
0
            if (!extract_min_max(sk_IPAddressOrRange_value(parent, p),
1187
0
                    p_min, p_max, length))
1188
0
                return 0;
1189
0
            if (memcmp(p_max, c_max, length) < 0)
1190
0
                continue;
1191
0
            if (memcmp(p_min, c_min, length) > 0)
1192
0
                return 0;
1193
0
            break;
1194
0
        }
1195
0
    }
1196
1197
0
    return 1;
1198
0
}
1199
1200
/*
1201
 * Test whether a is a subset of b.
1202
 */
1203
int X509v3_addr_subset(IPAddrBlocks *a, IPAddrBlocks *b)
1204
0
{
1205
0
    int i;
1206
1207
0
    if (a == NULL || a == b)
1208
0
        return 1;
1209
0
    if (b == NULL || X509v3_addr_inherits(a) || X509v3_addr_inherits(b))
1210
0
        return 0;
1211
0
    (void)sk_IPAddressFamily_set_cmp_func(b, IPAddressFamily_cmp);
1212
0
    sk_IPAddressFamily_sort(b);
1213
    /* Could sort a here too and get O(|a|) running time instead of O(|a| ln |b|) */
1214
0
    for (i = 0; i < sk_IPAddressFamily_num(a); i++) {
1215
0
        IPAddressFamily *fa = sk_IPAddressFamily_value(a, i);
1216
0
        int j = sk_IPAddressFamily_find(b, fa);
1217
0
        IPAddressFamily *fb = sk_IPAddressFamily_value(b, j);
1218
1219
0
        if (fb == NULL)
1220
0
            return 0;
1221
0
        if (!IPAddressFamily_check_len(fa) || !IPAddressFamily_check_len(fb))
1222
0
            return 0;
1223
0
        if (!addr_contains(fb->ipAddressChoice->u.addressesOrRanges,
1224
0
                fa->ipAddressChoice->u.addressesOrRanges,
1225
0
                length_from_afi(X509v3_addr_get_afi(fb))))
1226
0
            return 0;
1227
0
    }
1228
0
    return 1;
1229
0
}
1230
1231
/*
1232
 * Validation error handling via callback.
1233
 */
1234
#define validation_err(_err_)            \
1235
0
    do {                                 \
1236
0
        if (ctx != NULL) {               \
1237
0
            ctx->error = _err_;          \
1238
0
            ctx->error_depth = i;        \
1239
0
            ctx->current_cert = x;       \
1240
0
            rv = ctx->verify_cb(0, ctx); \
1241
0
        } else {                         \
1242
0
            rv = 0;                      \
1243
0
        }                                \
1244
0
        if (rv == 0)                     \
1245
0
            goto done;                   \
1246
0
    } while (0)
1247
1248
/*
1249
 * Core code for RFC 3779 2.3 path validation.
1250
 *
1251
 * Returns 1 for success, 0 on error.
1252
 *
1253
 * When returning 0, ctx->error MUST be set to an appropriate value other than
1254
 * X509_V_OK.
1255
 */
1256
static int addr_validate_path_internal(X509_STORE_CTX *ctx,
1257
    const STACK_OF(X509) *chain,
1258
    IPAddrBlocks *ext)
1259
0
{
1260
0
    IPAddrBlocks *child = NULL;
1261
0
    int i, j, ret = 0, rv;
1262
0
    X509 *x;
1263
1264
0
    if (!ossl_assert(chain != NULL && sk_X509_num(chain) > 0)
1265
0
        || !ossl_assert(ctx != NULL || ext != NULL)
1266
0
        || !ossl_assert(ctx == NULL || ctx->verify_cb != NULL)) {
1267
0
        if (ctx != NULL)
1268
0
            ctx->error = X509_V_ERR_UNSPECIFIED;
1269
0
        return 0;
1270
0
    }
1271
1272
    /*
1273
     * Figure out where to start.  If we don't have an extension to
1274
     * check, we're done.  Otherwise, check canonical form and
1275
     * set up for walking up the chain.
1276
     */
1277
0
    if (ext != NULL) {
1278
0
        i = -1;
1279
0
        x = NULL;
1280
0
    } else {
1281
0
        i = 0;
1282
0
        x = sk_X509_value(chain, i);
1283
0
        if ((ext = x->rfc3779_addr) == NULL)
1284
0
            return 1; /* Return success */
1285
0
    }
1286
0
    if (!X509v3_addr_is_canonical(ext))
1287
0
        validation_err(X509_V_ERR_INVALID_EXTENSION);
1288
0
    (void)sk_IPAddressFamily_set_cmp_func(ext, IPAddressFamily_cmp);
1289
0
    if ((child = sk_IPAddressFamily_dup(ext)) == NULL) {
1290
0
        ERR_raise(ERR_LIB_X509V3, ERR_R_CRYPTO_LIB);
1291
0
        if (ctx != NULL)
1292
0
            ctx->error = X509_V_ERR_OUT_OF_MEM;
1293
0
        goto done;
1294
0
    }
1295
0
    sk_IPAddressFamily_sort(child);
1296
1297
    /*
1298
     * Now walk up the chain.  No cert may list resources that its
1299
     * parent doesn't list.
1300
     */
1301
0
    for (i++; i < sk_X509_num(chain); i++) {
1302
0
        x = sk_X509_value(chain, i);
1303
0
        if (!X509v3_addr_is_canonical(x->rfc3779_addr))
1304
0
            validation_err(X509_V_ERR_INVALID_EXTENSION);
1305
0
        if (x->rfc3779_addr == NULL) {
1306
0
            for (j = 0; j < sk_IPAddressFamily_num(child); j++) {
1307
0
                IPAddressFamily *fc = sk_IPAddressFamily_value(child, j);
1308
1309
0
                if (!IPAddressFamily_check_len(fc))
1310
0
                    goto done;
1311
1312
0
                if (fc->ipAddressChoice->type != IPAddressChoice_inherit) {
1313
0
                    validation_err(X509_V_ERR_UNNESTED_RESOURCE);
1314
0
                    break;
1315
0
                }
1316
0
            }
1317
0
            continue;
1318
0
        }
1319
0
        (void)sk_IPAddressFamily_set_cmp_func(x->rfc3779_addr,
1320
0
            IPAddressFamily_cmp);
1321
0
        sk_IPAddressFamily_sort(x->rfc3779_addr);
1322
0
        for (j = 0; j < sk_IPAddressFamily_num(child); j++) {
1323
0
            IPAddressFamily *fc = sk_IPAddressFamily_value(child, j);
1324
0
            int k = sk_IPAddressFamily_find(x->rfc3779_addr, fc);
1325
0
            IPAddressFamily *fp = sk_IPAddressFamily_value(x->rfc3779_addr, k);
1326
1327
0
            if (fp == NULL) {
1328
0
                if (fc->ipAddressChoice->type == IPAddressChoice_addressesOrRanges) {
1329
0
                    validation_err(X509_V_ERR_UNNESTED_RESOURCE);
1330
0
                    break;
1331
0
                }
1332
0
                continue;
1333
0
            }
1334
1335
0
            if (!IPAddressFamily_check_len(fc) || !IPAddressFamily_check_len(fp))
1336
0
                goto done;
1337
1338
0
            if (fp->ipAddressChoice->type == IPAddressChoice_addressesOrRanges) {
1339
0
                if (fc->ipAddressChoice->type == IPAddressChoice_inherit
1340
0
                    || addr_contains(fp->ipAddressChoice->u.addressesOrRanges,
1341
0
                        fc->ipAddressChoice->u.addressesOrRanges,
1342
0
                        length_from_afi(X509v3_addr_get_afi(fc))))
1343
0
                    (void)sk_IPAddressFamily_set(child, j, fp);
1344
0
                else
1345
0
                    validation_err(X509_V_ERR_UNNESTED_RESOURCE);
1346
0
            }
1347
0
        }
1348
0
    }
1349
1350
    /*
1351
     * Trust anchor can't inherit.
1352
     */
1353
0
    if (x->rfc3779_addr != NULL) {
1354
0
        for (j = 0; j < sk_IPAddressFamily_num(x->rfc3779_addr); j++) {
1355
0
            IPAddressFamily *fp = sk_IPAddressFamily_value(x->rfc3779_addr, j);
1356
1357
0
            if (!IPAddressFamily_check_len(fp))
1358
0
                goto done;
1359
1360
0
            if (fp->ipAddressChoice->type == IPAddressChoice_inherit
1361
0
                && sk_IPAddressFamily_find(child, fp) >= 0)
1362
0
                validation_err(X509_V_ERR_UNNESTED_RESOURCE);
1363
0
        }
1364
0
    }
1365
0
    ret = 1;
1366
0
done:
1367
0
    sk_IPAddressFamily_free(child);
1368
0
    return ret;
1369
0
}
1370
1371
#undef validation_err
1372
1373
/*
1374
 * RFC 3779 2.3 path validation -- called from X509_verify_cert().
1375
 */
1376
int X509v3_addr_validate_path(X509_STORE_CTX *ctx)
1377
0
{
1378
0
    if (ctx->chain == NULL
1379
0
        || sk_X509_num(ctx->chain) == 0
1380
0
        || ctx->verify_cb == NULL) {
1381
0
        ctx->error = X509_V_ERR_UNSPECIFIED;
1382
0
        return 0;
1383
0
    }
1384
0
    return addr_validate_path_internal(ctx, ctx->chain, NULL);
1385
0
}
1386
1387
/*
1388
 * RFC 3779 2.3 path validation of an extension.
1389
 * Test whether chain covers extension.
1390
 */
1391
int X509v3_addr_validate_resource_set(const STACK_OF(X509) *chain,
1392
    IPAddrBlocks *ext, int allow_inheritance)
1393
0
{
1394
0
    if (ext == NULL)
1395
0
        return 1;
1396
0
    if (chain == NULL || sk_X509_num(chain) == 0)
1397
0
        return 0;
1398
0
    if (!allow_inheritance && X509v3_addr_inherits(ext))
1399
0
        return 0;
1400
0
    return addr_validate_path_internal(NULL, chain, ext);
1401
0
}
1402
1403
#endif /* OPENSSL_NO_RFC3779 */