Coverage Report

Created: 2026-07-14 18:13

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/bitcoin/src/netaddress.cpp
Line
Count
Source
1
// Copyright (c) 2009-2010 Satoshi Nakamoto
2
// Copyright (c) 2009-present The Bitcoin Core developers
3
// Distributed under the MIT software license, see the accompanying
4
// file COPYING or http://www.opensource.org/licenses/mit-license.php.
5
6
#include <netaddress.h>
7
8
#include <crypto/common.h>
9
#include <crypto/sha3.h>
10
#include <hash.h>
11
#include <prevector.h>
12
#include <tinyformat.h>
13
#include <util/strencodings.h>
14
#include <util/string.h>
15
16
#include <algorithm>
17
#include <array>
18
#include <cstdint>
19
#include <ios>
20
#include <iterator>
21
#include <string_view>
22
#include <tuple>
23
24
using util::ContainsNoNUL;
25
using util::HasPrefix;
26
27
CNetAddr::BIP155Network CNetAddr::GetBIP155Network() const
28
1.16M
{
29
1.16M
    switch (m_net) {
  Branch (29:13): [True: 0, False: 1.16M]
30
913k
    case NET_IPV4:
  Branch (30:5): [True: 913k, False: 248k]
31
913k
        return BIP155Network::IPV4;
32
247k
    case NET_IPV6:
  Branch (32:5): [True: 247k, False: 914k]
33
247k
        return BIP155Network::IPV6;
34
233
    case NET_ONION:
  Branch (34:5): [True: 233, False: 1.16M]
35
233
        return BIP155Network::TORV3;
36
439
    case NET_I2P:
  Branch (36:5): [True: 439, False: 1.16M]
37
439
        return BIP155Network::I2P;
38
65
    case NET_CJDNS:
  Branch (38:5): [True: 65, False: 1.16M]
39
65
        return BIP155Network::CJDNS;
40
0
    case NET_INTERNAL:   // should have been handled before calling this function
  Branch (40:5): [True: 0, False: 1.16M]
41
0
    case NET_UNROUTABLE: // m_net is never and should not be set to NET_UNROUTABLE
  Branch (41:5): [True: 0, False: 1.16M]
42
0
    case NET_MAX:        // m_net is never and should not be set to NET_MAX
  Branch (42:5): [True: 0, False: 1.16M]
43
0
        assert(false);
  Branch (43:9): [Folded - Ignored]
44
1.16M
    } // no default case, so the compiler can warn about missing cases
45
46
1.16M
    assert(false);
  Branch (46:5): [Folded - Ignored]
47
0
}
48
49
bool CNetAddr::SetNetFromBIP155Network(uint8_t possible_bip155_net, size_t address_size)
50
423k
{
51
423k
    switch (possible_bip155_net) {
  Branch (51:13): [True: 140k, False: 283k]
52
44.5k
    case BIP155Network::IPV4:
  Branch (52:5): [True: 44.5k, False: 378k]
53
44.5k
        if (address_size == ADDR_IPV4_SIZE) {
  Branch (53:13): [True: 44.5k, False: 48]
54
44.5k
            m_net = NET_IPV4;
55
44.5k
            return true;
56
44.5k
        }
57
48
        throw std::ios_base::failure(
58
48
            strprintf("BIP155 IPv4 address with length %u (should be %u)", address_size,
59
48
                      ADDR_IPV4_SIZE));
60
46.6k
    case BIP155Network::IPV6:
  Branch (60:5): [True: 46.6k, False: 376k]
61
46.6k
        if (address_size == ADDR_IPV6_SIZE) {
  Branch (61:13): [True: 46.6k, False: 21]
62
46.6k
            m_net = NET_IPV6;
63
46.6k
            return true;
64
46.6k
        }
65
21
        throw std::ios_base::failure(
66
21
            strprintf("BIP155 IPv6 address with length %u (should be %u)", address_size,
67
21
                      ADDR_IPV6_SIZE));
68
78.0k
    case BIP155Network::TORV3:
  Branch (68:5): [True: 78.0k, False: 345k]
69
78.0k
        if (address_size == ADDR_TORV3_SIZE) {
  Branch (69:13): [True: 78.0k, False: 13]
70
78.0k
            m_net = NET_ONION;
71
78.0k
            return true;
72
78.0k
        }
73
13
        throw std::ios_base::failure(
74
13
            strprintf("BIP155 TORv3 address with length %u (should be %u)", address_size,
75
13
                      ADDR_TORV3_SIZE));
76
52.8k
    case BIP155Network::I2P:
  Branch (76:5): [True: 52.8k, False: 370k]
77
52.8k
        if (address_size == ADDR_I2P_SIZE) {
  Branch (77:13): [True: 52.8k, False: 20]
78
52.8k
            m_net = NET_I2P;
79
52.8k
            return true;
80
52.8k
        }
81
20
        throw std::ios_base::failure(
82
20
            strprintf("BIP155 I2P address with length %u (should be %u)", address_size,
83
20
                      ADDR_I2P_SIZE));
84
61.2k
    case BIP155Network::CJDNS:
  Branch (84:5): [True: 61.2k, False: 362k]
85
61.2k
        if (address_size == ADDR_CJDNS_SIZE) {
  Branch (85:13): [True: 61.2k, False: 22]
86
61.2k
            m_net = NET_CJDNS;
87
61.2k
            return true;
88
61.2k
        }
89
22
        throw std::ios_base::failure(
90
22
            strprintf("BIP155 CJDNS address with length %u (should be %u)", address_size,
91
22
                      ADDR_CJDNS_SIZE));
92
423k
    }
93
94
    // Don't throw on addresses with unknown network ids (maybe from the future).
95
    // Instead silently drop them and have the unserialization code consume
96
    // subsequent ones which may be known to us.
97
140k
    return false;
98
423k
}
99
100
/**
101
 * Construct an unspecified IPv6 network address (::/128).
102
 *
103
 * @note This address is considered invalid by CNetAddr::IsValid()
104
 */
105
2.07M
CNetAddr::CNetAddr() = default;
106
107
void CNetAddr::SetIP(const CNetAddr& ipIn)
108
0
{
109
    // Size check.
110
0
    switch (ipIn.m_net) {
  Branch (110:13): [True: 0, False: 0]
111
0
    case NET_IPV4:
  Branch (111:5): [True: 0, False: 0]
112
0
        assert(ipIn.m_addr.size() == ADDR_IPV4_SIZE);
  Branch (112:9): [True: 0, False: 0]
113
0
        break;
114
0
    case NET_IPV6:
  Branch (114:5): [True: 0, False: 0]
115
0
        assert(ipIn.m_addr.size() == ADDR_IPV6_SIZE);
  Branch (115:9): [True: 0, False: 0]
116
0
        break;
117
0
    case NET_ONION:
  Branch (117:5): [True: 0, False: 0]
118
0
        assert(ipIn.m_addr.size() == ADDR_TORV3_SIZE);
  Branch (118:9): [True: 0, False: 0]
119
0
        break;
120
0
    case NET_I2P:
  Branch (120:5): [True: 0, False: 0]
121
0
        assert(ipIn.m_addr.size() == ADDR_I2P_SIZE);
  Branch (121:9): [True: 0, False: 0]
122
0
        break;
123
0
    case NET_CJDNS:
  Branch (123:5): [True: 0, False: 0]
124
0
        assert(ipIn.m_addr.size() == ADDR_CJDNS_SIZE);
  Branch (124:9): [True: 0, False: 0]
125
0
        break;
126
0
    case NET_INTERNAL:
  Branch (126:5): [True: 0, False: 0]
127
0
        assert(ipIn.m_addr.size() == ADDR_INTERNAL_SIZE);
  Branch (127:9): [True: 0, False: 0]
128
0
        break;
129
0
    case NET_UNROUTABLE:
  Branch (129:5): [True: 0, False: 0]
130
0
    case NET_MAX:
  Branch (130:5): [True: 0, False: 0]
131
0
        assert(false);
  Branch (131:9): [Folded - Ignored]
132
0
    } // no default case, so the compiler can warn about missing cases
133
134
0
    m_net = ipIn.m_net;
135
0
    m_addr = ipIn.m_addr;
136
0
}
137
138
void CNetAddr::SetLegacyIPv6(std::span<const uint8_t> ipv6)
139
261k
{
140
261k
    assert(ipv6.size() == ADDR_IPV6_SIZE);
  Branch (140:5): [True: 261k, False: 0]
141
142
261k
    size_t skip{0};
143
144
261k
    if (HasPrefix(ipv6, IPV4_IN_IPV6_PREFIX)) {
  Branch (144:9): [True: 152k, False: 109k]
145
        // IPv4-in-IPv6
146
152k
        m_net = NET_IPV4;
147
152k
        skip = sizeof(IPV4_IN_IPV6_PREFIX);
148
152k
    } else if (HasPrefix(ipv6, TORV2_IN_IPV6_PREFIX)) {
  Branch (148:16): [True: 0, False: 109k]
149
        // TORv2-in-IPv6 (unsupported). Unserialize as !IsValid(), thus ignoring them.
150
        // Mimic a default-constructed CNetAddr object which is !IsValid() and thus
151
        // will not be gossiped, but continue reading next addresses from the stream.
152
0
        m_net = NET_IPV6;
153
0
        m_addr.assign(ADDR_IPV6_SIZE, 0x0);
154
0
        return;
155
109k
    } else if (HasPrefix(ipv6, INTERNAL_IN_IPV6_PREFIX)) {
  Branch (155:16): [True: 0, False: 109k]
156
        // Internal-in-IPv6
157
0
        m_net = NET_INTERNAL;
158
0
        skip = sizeof(INTERNAL_IN_IPV6_PREFIX);
159
109k
    } else {
160
        // IPv6
161
109k
        m_net = NET_IPV6;
162
109k
    }
163
164
261k
    m_addr.assign(ipv6.begin() + skip, ipv6.end());
165
261k
}
166
167
/**
168
 * Create an "internal" address that represents a name or FQDN. AddrMan uses
169
 * these fake addresses to keep track of which DNS seeds were used.
170
 * @returns Whether or not the operation was successful.
171
 * @see NET_INTERNAL, INTERNAL_IN_IPV6_PREFIX, CNetAddr::IsInternal(), CNetAddr::IsRFC4193()
172
 */
173
bool CNetAddr::SetInternal(const std::string &name)
174
0
{
175
0
    if (name.empty()) {
  Branch (175:9): [True: 0, False: 0]
176
0
        return false;
177
0
    }
178
0
    m_net = NET_INTERNAL;
179
0
    unsigned char hash[32] = {};
180
0
    CSHA256().Write((const unsigned char*)name.data(), name.size()).Finalize(hash);
181
0
    m_addr.assign(hash, hash + ADDR_INTERNAL_SIZE);
182
0
    return true;
183
0
}
184
185
namespace torv3 {
186
// https://gitlab.torproject.org/tpo/core/torspec/-/tree/main/spec/rend-spec
187
static constexpr size_t CHECKSUM_LEN = 2;
188
static const unsigned char VERSION[] = {3};
189
static constexpr size_t TOTAL_LEN = ADDR_TORV3_SIZE + CHECKSUM_LEN + sizeof(VERSION);
190
191
static void Checksum(std::span<const uint8_t> addr_pubkey, uint8_t (&checksum)[CHECKSUM_LEN])
192
0
{
193
    // TORv3 CHECKSUM = H(".onion checksum" | PUBKEY | VERSION)[:2]
194
0
    static const unsigned char prefix[] = ".onion checksum";
195
0
    static constexpr size_t prefix_len = 15;
196
197
0
    SHA3_256 hasher;
198
199
0
    hasher.Write(std::span{prefix}.first(prefix_len));
200
0
    hasher.Write(addr_pubkey);
201
0
    hasher.Write(VERSION);
202
203
0
    uint8_t checksum_full[SHA3_256::OUTPUT_SIZE];
204
205
0
    hasher.Finalize(checksum_full);
206
207
0
    memcpy(checksum, checksum_full, sizeof(checksum));
208
0
}
209
210
}; // namespace torv3
211
212
bool CNetAddr::SetSpecial(std::string_view addr)
213
156k
{
214
156k
    if (!ContainsNoNUL(addr)) {
  Branch (214:9): [True: 0, False: 156k]
215
0
        return false;
216
0
    }
217
218
156k
    if (SetTor(addr)) {
  Branch (218:9): [True: 0, False: 156k]
219
0
        return true;
220
0
    }
221
222
156k
    if (SetI2P(addr)) {
  Branch (222:9): [True: 0, False: 156k]
223
0
        return true;
224
0
    }
225
226
156k
    return false;
227
156k
}
228
229
bool CNetAddr::SetTor(std::string_view addr)
230
156k
{
231
156k
    if (!addr.ends_with(".onion")) return false;
  Branch (231:9): [True: 156k, False: 0]
232
0
    addr.remove_suffix(6);
233
0
    auto input = DecodeBase32(addr);
234
235
0
    if (!input) {
  Branch (235:9): [True: 0, False: 0]
236
0
        return false;
237
0
    }
238
239
0
    if (input->size() == torv3::TOTAL_LEN) {
  Branch (239:9): [True: 0, False: 0]
240
0
        std::span<const uint8_t> input_pubkey{input->data(), ADDR_TORV3_SIZE};
241
0
        std::span<const uint8_t> input_checksum{input->data() + ADDR_TORV3_SIZE, torv3::CHECKSUM_LEN};
242
0
        std::span<const uint8_t> input_version{input->data() + ADDR_TORV3_SIZE + torv3::CHECKSUM_LEN, sizeof(torv3::VERSION)};
243
244
0
        if (!std::ranges::equal(input_version, torv3::VERSION)) {
  Branch (244:13): [True: 0, False: 0]
245
0
            return false;
246
0
        }
247
248
0
        uint8_t calculated_checksum[torv3::CHECKSUM_LEN];
249
0
        torv3::Checksum(input_pubkey, calculated_checksum);
250
251
0
        if (!std::ranges::equal(input_checksum, calculated_checksum)) {
  Branch (251:13): [True: 0, False: 0]
252
0
            return false;
253
0
        }
254
255
0
        m_net = NET_ONION;
256
0
        m_addr.assign(input_pubkey.begin(), input_pubkey.end());
257
0
        return true;
258
0
    }
259
260
0
    return false;
261
0
}
262
263
bool CNetAddr::SetI2P(std::string_view addr)
264
156k
{
265
    // I2P addresses that we support consist of 52 base32 characters + ".b32.i2p".
266
156k
    static constexpr size_t b32_len{52};
267
156k
    static const char* suffix{".b32.i2p"};
268
156k
    static constexpr size_t suffix_len{8};
269
270
156k
    if (addr.size() != b32_len + suffix_len || ToLower(addr.substr(b32_len)) != suffix) {
  Branch (270:9): [True: 156k, False: 0]
  Branch (270:9): [True: 156k, False: 0]
  Branch (270:48): [True: 0, False: 0]
271
156k
        return false;
272
156k
    }
273
274
    // Remove the ".b32.i2p" suffix and pad to a multiple of 8 chars, so DecodeBase32()
275
    // can decode it.
276
0
    const std::string b32_padded{tfm::format("%s====", addr.substr(0, b32_len))};
277
278
0
    auto address_bytes = DecodeBase32(b32_padded);
279
280
0
    if (!address_bytes || address_bytes->size() != ADDR_I2P_SIZE) {
  Branch (280:9): [True: 0, False: 0]
  Branch (280:27): [True: 0, False: 0]
281
0
        return false;
282
0
    }
283
284
0
    m_net = NET_I2P;
285
0
    m_addr.assign(address_bytes->begin(), address_bytes->end());
286
287
0
    return true;
288
0
}
289
290
CNetAddr::CNetAddr(const struct in_addr& ipv4Addr)
291
533k
{
292
533k
    m_net = NET_IPV4;
293
533k
    const uint8_t* ptr = reinterpret_cast<const uint8_t*>(&ipv4Addr);
294
533k
    m_addr.assign(ptr, ptr + ADDR_IPV4_SIZE);
295
533k
}
296
297
CNetAddr::CNetAddr(const struct in6_addr& ipv6Addr, const uint32_t scope)
298
54
{
299
54
    SetLegacyIPv6({reinterpret_cast<const uint8_t*>(&ipv6Addr), sizeof(ipv6Addr)});
300
54
    m_scope_id = scope;
301
54
}
302
303
bool CNetAddr::IsBindAny() const
304
108
{
305
108
    if (!IsIPv4() && !IsIPv6()) {
  Branch (305:9): [True: 27, False: 81]
  Branch (305:22): [True: 0, False: 27]
306
0
        return false;
307
0
    }
308
513
    return std::all_of(m_addr.begin(), m_addr.end(), [](uint8_t b) { return b == 0; });
309
108
}
310
311
bool CNetAddr::IsRFC1918() const
312
4.46M
{
313
4.46M
    return IsIPv4() && (
  Branch (313:12): [True: 2.84M, False: 1.61M]
314
2.84M
        m_addr[0] == 10 ||
  Branch (314:9): [True: 1.15k, False: 2.84M]
315
2.84M
        (m_addr[0] == 192 && m_addr[1] == 168) ||
  Branch (315:10): [True: 7.58k, False: 2.83M]
  Branch (315:30): [True: 58, False: 7.52k]
316
2.84M
        (m_addr[0] == 172 && m_addr[1] >= 16 && m_addr[1] <= 31));
  Branch (316:10): [True: 14.4k, False: 2.83M]
  Branch (316:30): [True: 14.1k, False: 315]
  Branch (316:49): [True: 60, False: 14.0k]
317
4.46M
}
318
319
bool CNetAddr::IsRFC2544() const
320
4.46M
{
321
4.46M
    return IsIPv4() && m_addr[0] == 198 && (m_addr[1] == 18 || m_addr[1] == 19);
  Branch (321:12): [True: 2.84M, False: 1.61M]
  Branch (321:24): [True: 4.89k, False: 2.84M]
  Branch (321:45): [True: 88, False: 4.80k]
  Branch (321:64): [True: 80, False: 4.72k]
322
4.46M
}
323
324
bool CNetAddr::IsRFC3927() const
325
4.46M
{
326
4.46M
    return IsIPv4() && HasPrefix(m_addr, std::array<uint8_t, 2>{169, 254});
  Branch (326:12): [True: 2.84M, False: 1.61M]
  Branch (326:24): [True: 94, False: 2.84M]
327
4.46M
}
328
329
bool CNetAddr::IsRFC6598() const
330
4.46M
{
331
4.46M
    return IsIPv4() && m_addr[0] == 100 && m_addr[1] >= 64 && m_addr[1] <= 127;
  Branch (331:12): [True: 2.84M, False: 1.61M]
  Branch (331:24): [True: 4.08k, False: 2.84M]
  Branch (331:44): [True: 2.51k, False: 1.57k]
  Branch (331:63): [True: 112, False: 2.40k]
332
4.46M
}
333
334
bool CNetAddr::IsRFC5737() const
335
4.46M
{
336
4.46M
    return IsIPv4() && (HasPrefix(m_addr, std::array<uint8_t, 3>{192, 0, 2}) ||
  Branch (336:12): [True: 2.84M, False: 1.61M]
  Branch (336:25): [True: 0, False: 2.84M]
337
2.84M
                        HasPrefix(m_addr, std::array<uint8_t, 3>{198, 51, 100}) ||
  Branch (337:25): [True: 0, False: 2.84M]
338
2.84M
                        HasPrefix(m_addr, std::array<uint8_t, 3>{203, 0, 113}));
  Branch (338:25): [True: 0, False: 2.84M]
339
4.46M
}
340
341
bool CNetAddr::IsRFC3849() const
342
5.21M
{
343
5.21M
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 4>{0x20, 0x01, 0x0D, 0xB8});
  Branch (343:12): [True: 1.48M, False: 3.72M]
  Branch (343:24): [True: 0, False: 1.48M]
344
5.21M
}
345
346
bool CNetAddr::IsRFC3964() const
347
532k
{
348
532k
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 2>{0x20, 0x02});
  Branch (348:12): [True: 532k, False: 0]
  Branch (348:24): [True: 264, False: 532k]
349
532k
}
350
351
bool CNetAddr::IsRFC6052() const
352
532k
{
353
532k
    return IsIPv6() &&
  Branch (353:12): [True: 532k, False: 0]
354
532k
           HasPrefix(m_addr, std::array<uint8_t, 12>{0x00, 0x64, 0xFF, 0x9B, 0x00, 0x00,
  Branch (354:12): [True: 0, False: 532k]
355
532k
                                                     0x00, 0x00, 0x00, 0x00, 0x00, 0x00});
356
532k
}
357
358
bool CNetAddr::IsRFC4380() const
359
532k
{
360
532k
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 4>{0x20, 0x01, 0x00, 0x00});
  Branch (360:12): [True: 532k, False: 0]
  Branch (360:24): [True: 289, False: 532k]
361
532k
}
362
363
bool CNetAddr::IsRFC4862() const
364
4.46M
{
365
4.46M
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 8>{0xFE, 0x80, 0x00, 0x00,
  Branch (365:12): [True: 1.48M, False: 2.97M]
  Branch (365:24): [True: 84, False: 1.48M]
366
1.48M
                                                                0x00, 0x00, 0x00, 0x00});
367
4.46M
}
368
369
bool CNetAddr::IsRFC4193() const
370
4.46M
{
371
4.46M
    return IsIPv6() && (m_addr[0] & 0xFE) == 0xFC;
  Branch (371:12): [True: 1.48M, False: 2.97M]
  Branch (371:24): [True: 380, False: 1.48M]
372
4.46M
}
373
374
bool CNetAddr::IsRFC6145() const
375
533k
{
376
533k
    return IsIPv6() &&
  Branch (376:12): [True: 533k, False: 0]
377
533k
           HasPrefix(m_addr, std::array<uint8_t, 12>{0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  Branch (377:12): [True: 27, False: 532k]
378
533k
                                                     0x00, 0x00, 0xFF, 0xFF, 0x00, 0x00});
379
533k
}
380
381
bool CNetAddr::IsRFC4843() const
382
4.46M
{
383
4.46M
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 3>{0x20, 0x01, 0x00}) &&
  Branch (383:12): [True: 1.48M, False: 2.97M]
  Branch (383:24): [True: 771, False: 1.48M]
384
4.46M
           (m_addr[3] & 0xF0) == 0x10;
  Branch (384:12): [True: 0, False: 771]
385
4.46M
}
386
387
bool CNetAddr::IsRFC7343() const
388
4.46M
{
389
4.46M
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 3>{0x20, 0x01, 0x00}) &&
  Branch (389:12): [True: 1.48M, False: 2.97M]
  Branch (389:24): [True: 771, False: 1.48M]
390
4.46M
           (m_addr[3] & 0xF0) == 0x20;
  Branch (390:12): [True: 98, False: 673]
391
4.46M
}
392
393
bool CNetAddr::IsHeNet() const
394
135k
{
395
135k
    return IsIPv6() && HasPrefix(m_addr, std::array<uint8_t, 4>{0x20, 0x01, 0x04, 0x70});
  Branch (395:12): [True: 135k, False: 0]
  Branch (395:24): [True: 0, False: 135k]
396
135k
}
397
398
bool CNetAddr::IsLocal() const
399
5.14M
{
400
    // IPv4 loopback (127.0.0.0/8 or 0.0.0.0/8)
401
5.14M
    if (IsIPv4() && (m_addr[0] == 127 || m_addr[0] == 0)) {
  Branch (401:9): [True: 3.39M, False: 1.74M]
  Branch (401:22): [True: 1.24M, False: 2.14M]
  Branch (401:42): [True: 1.79k, False: 2.14M]
402
1.25M
        return true;
403
1.25M
    }
404
405
    // IPv6 loopback (::1/128)
406
3.89M
    static const unsigned char pchLocal[16] = {0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,1};
407
3.89M
    if (IsIPv6() && memcmp(m_addr.data(), pchLocal, sizeof(pchLocal)) == 0) {
  Branch (407:9): [True: 1.61M, False: 2.27M]
  Branch (407:21): [True: 114, False: 1.61M]
408
114
        return true;
409
114
    }
410
411
3.89M
    return false;
412
3.89M
}
413
414
/**
415
 * @returns Whether or not this network address is a valid address that @a could
416
 *          be used to refer to an actual host.
417
 *
418
 * @note A valid address may or may not be publicly routable on the global
419
 *       internet. As in, the set of valid addresses is a superset of the set of
420
 *       publicly routable addresses.
421
 *
422
 * @see CNetAddr::IsRoutable()
423
 */
424
bool CNetAddr::IsValid() const
425
5.76M
{
426
    // unspecified IPv6 address (::/128)
427
5.76M
    unsigned char ipNone6[16] = {};
428
5.76M
    if (IsIPv6() && memcmp(m_addr.data(), ipNone6, sizeof(ipNone6)) == 0) {
  Branch (428:9): [True: 1.91M, False: 3.84M]
  Branch (428:21): [True: 428k, False: 1.48M]
429
428k
        return false;
430
428k
    }
431
432
5.33M
    if (IsCJDNS() && !HasCJDNSPrefix()) {
  Branch (432:9): [True: 121k, False: 5.21M]
  Branch (432:22): [True: 120k, False: 891]
433
120k
        return false;
434
120k
    }
435
436
    // documentation IPv6 address
437
5.21M
    if (IsRFC3849())
  Branch (437:9): [True: 0, False: 5.21M]
438
0
        return false;
439
440
5.21M
    if (IsInternal())
  Branch (440:9): [True: 0, False: 5.21M]
441
0
        return false;
442
443
5.21M
    if (IsIPv4()) {
  Branch (443:9): [True: 3.59M, False: 1.62M]
444
3.59M
        const uint32_t addr = ReadBE32(m_addr.data());
445
3.59M
        if (addr == INADDR_ANY || addr == INADDR_NONE) {
  Branch (445:13): [True: 18.4E, False: 3.59M]
  Branch (445:35): [True: 0, False: 3.59M]
446
58
            return false;
447
58
        }
448
3.59M
    }
449
450
5.21M
    return true;
451
5.21M
}
452
453
/**
454
 * @returns Whether or not this network address is publicly routable on the
455
 *          global internet.
456
 *
457
 * @note A routable address is always valid. As in, the set of routable addresses
458
 *       is a subset of the set of valid addresses.
459
 *
460
 * @see CNetAddr::IsValid()
461
 */
462
bool CNetAddr::IsRoutable() const
463
5.00M
{
464
5.00M
    return IsValid() && !(IsRFC1918() || IsRFC2544() || IsRFC3927() || IsRFC4862() || IsRFC6598() || IsRFC5737() || IsRFC4193() || IsRFC4843() || IsRFC7343() || IsLocal() || IsInternal());
  Branch (464:12): [True: 4.46M, False: 537k]
  Branch (464:27): [True: 1.27k, False: 4.46M]
  Branch (464:42): [True: 168, False: 4.46M]
  Branch (464:57): [True: 18.4E, False: 4.46M]
  Branch (464:72): [True: 84, False: 4.46M]
  Branch (464:87): [True: 326, False: 4.46M]
  Branch (464:102): [True: 18.4E, False: 4.46M]
  Branch (464:117): [True: 380, False: 4.46M]
  Branch (464:132): [True: 0, False: 4.46M]
  Branch (464:147): [True: 98, False: 4.46M]
  Branch (464:162): [True: 883k, False: 3.57M]
  Branch (464:175): [True: 0, False: 3.57M]
465
5.00M
}
466
467
/**
468
 * @returns Whether or not this is a dummy address that represents a name.
469
 *
470
 * @see CNetAddr::SetInternal(const std::string &)
471
 */
472
bool CNetAddr::IsInternal() const
473
13.1M
{
474
13.1M
   return m_net == NET_INTERNAL;
475
13.1M
}
476
477
bool CNetAddr::IsAddrV1Compatible() const
478
2.19M
{
479
2.19M
    switch (m_net) {
  Branch (479:13): [True: 0, False: 2.19M]
480
965k
    case NET_IPV4:
  Branch (480:5): [True: 965k, False: 1.22M]
481
1.80M
    case NET_IPV6:
  Branch (481:5): [True: 842k, False: 1.35M]
482
1.80M
    case NET_INTERNAL:
  Branch (482:5): [True: 0, False: 2.19M]
483
1.80M
        return true;
484
156k
    case NET_ONION:
  Branch (484:5): [True: 156k, False: 2.03M]
485
264k
    case NET_I2P:
  Branch (485:5): [True: 108k, False: 2.08M]
486
385k
    case NET_CJDNS:
  Branch (486:5): [True: 121k, False: 2.07M]
487
385k
        return false;
488
0
    case NET_UNROUTABLE: // m_net is never and should not be set to NET_UNROUTABLE
  Branch (488:5): [True: 0, False: 2.19M]
489
0
    case NET_MAX:        // m_net is never and should not be set to NET_MAX
  Branch (489:5): [True: 0, False: 2.19M]
490
0
        assert(false);
  Branch (490:9): [Folded - Ignored]
491
2.19M
    } // no default case, so the compiler can warn about missing cases
492
493
2.19M
    assert(false);
  Branch (493:5): [Folded - Ignored]
494
0
}
495
496
enum Network CNetAddr::GetNetwork() const
497
977k
{
498
977k
    if (IsInternal())
  Branch (498:9): [True: 0, False: 977k]
499
0
        return NET_INTERNAL;
500
501
977k
    if (!IsRoutable())
  Branch (501:9): [True: 218k, False: 759k]
502
218k
        return NET_UNROUTABLE;
503
504
759k
    return m_net;
505
977k
}
506
507
static std::string IPv4ToString(std::span<const uint8_t> a)
508
1.27M
{
509
1.27M
    return strprintf("%u.%u.%u.%u", a[0], a[1], a[2], a[3]);
510
1.27M
}
511
512
// Return an IPv6 address text representation with zero compression as described in RFC 5952
513
// ("A Recommendation for IPv6 Address Text Representation").
514
static std::string IPv6ToString(std::span<const uint8_t> a, uint32_t scope_id)
515
126k
{
516
126k
    assert(a.size() == ADDR_IPV6_SIZE);
  Branch (516:5): [True: 126k, False: 0]
517
126k
    const std::array groups{
518
126k
        ReadBE16(&a[0]),
519
126k
        ReadBE16(&a[2]),
520
126k
        ReadBE16(&a[4]),
521
126k
        ReadBE16(&a[6]),
522
126k
        ReadBE16(&a[8]),
523
126k
        ReadBE16(&a[10]),
524
126k
        ReadBE16(&a[12]),
525
126k
        ReadBE16(&a[14]),
526
126k
    };
527
528
    // The zero compression implementation is inspired by Rust's std::net::Ipv6Addr, see
529
    // https://github.com/rust-lang/rust/blob/cc4103089f40a163f6d143f06359cba7043da29b/library/std/src/net/ip.rs#L1635-L1683
530
126k
    struct ZeroSpan {
531
126k
        size_t start_index{0};
532
126k
        size_t len{0};
533
126k
    };
534
535
    // Find longest sequence of consecutive all-zero fields. Use first zero sequence if two or more
536
    // zero sequences of equal length are found.
537
126k
    ZeroSpan longest, current;
538
1.14M
    for (size_t i{0}; i < groups.size(); ++i) {
  Branch (538:23): [True: 1.01M, False: 126k]
539
1.01M
        if (groups[i] != 0) {
  Branch (539:13): [True: 998k, False: 17.0k]
540
998k
            current = {i + 1, 0};
541
998k
            continue;
542
998k
        }
543
17.0k
        current.len += 1;
544
17.0k
        if (current.len > longest.len) {
  Branch (544:13): [True: 15.9k, False: 1.13k]
545
15.9k
            longest = current;
546
15.9k
        }
547
17.0k
    }
548
549
126k
    std::string r;
550
126k
    r.reserve(39);
551
1.14M
    for (size_t i{0}; i < groups.size(); ++i) {
  Branch (551:23): [True: 1.01M, False: 126k]
552
        // Replace the longest sequence of consecutive all-zero fields with two colons ("::").
553
1.01M
        if (longest.len >= 2 && i >= longest.start_index && i < longest.start_index + longest.len) {
  Branch (553:13): [True: 28.5k, False: 987k]
  Branch (553:33): [True: 16.5k, False: 12.0k]
  Branch (553:61): [True: 15.4k, False: 1.09k]
554
15.4k
            if (i == longest.start_index) {
  Branch (554:17): [True: 3.57k, False: 11.8k]
555
3.57k
                r += "::";
556
3.57k
            }
557
15.4k
            continue;
558
15.4k
        }
559
1.00M
        r += strprintf("%s%x", ((!r.empty() && r.back() != ':') ? ":" : ""), groups[i]);
  Branch (559:34): [True: 873k, False: 126k]
  Branch (559:48): [True: 873k, False: 347]
560
1.00M
    }
561
562
126k
    if (scope_id != 0) {
  Branch (562:9): [True: 0, False: 126k]
563
0
        r += strprintf("%%%u", scope_id);
564
0
    }
565
566
126k
    return r;
567
126k
}
568
569
std::string OnionToString(std::span<const uint8_t> addr)
570
0
{
571
0
    uint8_t checksum[torv3::CHECKSUM_LEN];
572
0
    torv3::Checksum(addr, checksum);
573
    // TORv3 onion_address = base32(PUBKEY | CHECKSUM | VERSION) + ".onion"
574
0
    prevector<torv3::TOTAL_LEN, uint8_t> address{addr.begin(), addr.end()};
575
0
    address.insert(address.end(), checksum, checksum + torv3::CHECKSUM_LEN);
576
0
    address.insert(address.end(), torv3::VERSION, torv3::VERSION + sizeof(torv3::VERSION));
577
0
    return EncodeBase32(address) + ".onion";
578
0
}
579
580
std::string CNetAddr::ToStringAddr() const
581
1.40M
{
582
1.40M
    switch (m_net) {
  Branch (582:13): [True: 2, False: 1.40M]
583
1.27M
    case NET_IPV4:
  Branch (583:5): [True: 1.27M, False: 126k]
584
1.27M
        return IPv4ToString(m_addr);
585
126k
    case NET_IPV6:
  Branch (585:5): [True: 126k, False: 1.27M]
586
126k
        return IPv6ToString(m_addr, m_scope_id);
587
0
    case NET_ONION:
  Branch (587:5): [True: 0, False: 1.40M]
588
0
        return OnionToString(m_addr);
589
0
    case NET_I2P:
  Branch (589:5): [True: 0, False: 1.40M]
590
0
        return EncodeBase32(m_addr, false /* don't pad with = */) + ".b32.i2p";
591
0
    case NET_CJDNS:
  Branch (591:5): [True: 0, False: 1.40M]
592
0
        return IPv6ToString(m_addr, 0);
593
0
    case NET_INTERNAL:
  Branch (593:5): [True: 0, False: 1.40M]
594
0
        return EncodeBase32(m_addr) + ".internal";
595
0
    case NET_UNROUTABLE: // m_net is never and should not be set to NET_UNROUTABLE
  Branch (595:5): [True: 0, False: 1.40M]
596
0
    case NET_MAX:        // m_net is never and should not be set to NET_MAX
  Branch (596:5): [True: 0, False: 1.40M]
597
0
        assert(false);
  Branch (597:9): [Folded - Ignored]
598
1.40M
    } // no default case, so the compiler can warn about missing cases
599
600
1.40M
    assert(false);
  Branch (600:5): [Folded - Ignored]
601
0
}
602
603
bool operator==(const CNetAddr& a, const CNetAddr& b)
604
1.02M
{
605
1.02M
    return a.m_net == b.m_net && a.m_addr == b.m_addr;
  Branch (605:12): [True: 722k, False: 301k]
  Branch (605:34): [True: 361k, False: 361k]
606
1.02M
}
607
608
bool operator<(const CNetAddr& a, const CNetAddr& b)
609
284k
{
610
284k
    return std::tie(a.m_net, a.m_addr) < std::tie(b.m_net, b.m_addr);
611
284k
}
612
613
/**
614
 * Try to get our IPv4 address.
615
 *
616
 * @param[out] pipv4Addr The in_addr struct to which to copy.
617
 *
618
 * @returns Whether or not the operation was successful, in particular, whether
619
 *          or not our address was an IPv4 address.
620
 *
621
 * @see CNetAddr::IsIPv4()
622
 */
623
bool CNetAddr::GetInAddr(struct in_addr* pipv4Addr) const
624
2.90k
{
625
2.90k
    if (!IsIPv4())
  Branch (625:9): [True: 0, False: 2.90k]
626
0
        return false;
627
2.90k
    assert(sizeof(*pipv4Addr) == m_addr.size());
  Branch (627:5): [True: 2.90k, False: 0]
628
2.90k
    memcpy(pipv4Addr, m_addr.data(), m_addr.size());
629
2.90k
    return true;
630
2.90k
}
631
632
/**
633
 * Try to get our IPv6 (or CJDNS) address.
634
 *
635
 * @param[out] pipv6Addr The in6_addr struct to which to copy.
636
 *
637
 * @returns Whether or not the operation was successful, in particular, whether
638
 *          or not our address was an IPv6 address.
639
 *
640
 * @see CNetAddr::IsIPv6()
641
 */
642
bool CNetAddr::GetIn6Addr(struct in6_addr* pipv6Addr) const
643
27
{
644
27
    if (!IsIPv6() && !IsCJDNS()) {
  Branch (644:9): [True: 0, False: 27]
  Branch (644:22): [True: 0, False: 0]
645
0
        return false;
646
0
    }
647
27
    assert(sizeof(*pipv6Addr) == m_addr.size());
  Branch (647:5): [True: 27, False: 0]
648
27
    memcpy(pipv6Addr, m_addr.data(), m_addr.size());
649
27
    return true;
650
27
}
651
652
bool CNetAddr::HasLinkedIPv4() const
653
1.23M
{
654
1.23M
    return IsRoutable() && (IsIPv4() || IsRFC6145() || IsRFC6052() || IsRFC3964() || IsRFC4380());
  Branch (654:12): [True: 1.23M, False: 0]
  Branch (654:29): [True: 706k, False: 532k]
  Branch (654:41): [True: 21, False: 532k]
  Branch (654:56): [True: 0, False: 532k]
  Branch (654:71): [True: 209, False: 532k]
  Branch (654:86): [True: 223, False: 532k]
655
1.23M
}
656
657
uint32_t CNetAddr::GetLinkedIPv4() const
658
179k
{
659
179k
    if (IsIPv4()) {
  Branch (659:9): [True: 179k, False: 127]
660
179k
        return ReadBE32(m_addr.data());
661
179k
    } else if (IsRFC6052() || IsRFC6145()) {
  Branch (661:16): [True: 0, False: 127]
  Branch (661:31): [True: 6, False: 121]
662
        // mapped IPv4, SIIT translated IPv4: the IPv4 address is the last 4 bytes of the address
663
6
        return ReadBE32(std::span{m_addr}.last(ADDR_IPV4_SIZE).data());
664
121
    } else if (IsRFC3964()) {
  Branch (664:16): [True: 55, False: 66]
665
        // 6to4 tunneled IPv4: the IPv4 address is in bytes 2-6
666
55
        return ReadBE32(std::span{m_addr}.subspan(2, ADDR_IPV4_SIZE).data());
667
66
    } else if (IsRFC4380()) {
  Branch (667:16): [True: 66, False: 0]
668
        // Teredo tunneled IPv4: the IPv4 address is in the last 4 bytes of the address, but bitflipped
669
66
        return ~ReadBE32(std::span{m_addr}.last(ADDR_IPV4_SIZE).data());
670
66
    }
671
179k
    assert(false);
  Branch (671:5): [Folded - Ignored]
672
0
}
673
674
Network CNetAddr::GetNetClass() const
675
1.62M
{
676
    // Make sure that if we return NET_IPV6, then IsIPv6() is true. The callers expect that.
677
678
    // Check for "internal" first because such addresses are also !IsRoutable()
679
    // and we don't want to return NET_UNROUTABLE in that case.
680
1.62M
    if (IsInternal()) {
  Branch (680:9): [True: 0, False: 1.62M]
681
0
        return NET_INTERNAL;
682
0
    }
683
1.62M
    if (!IsRoutable()) {
  Branch (683:9): [True: 704k, False: 924k]
684
704k
        return NET_UNROUTABLE;
685
704k
    }
686
924k
    if (HasLinkedIPv4()) {
  Branch (686:9): [True: 527k, False: 397k]
687
527k
        return NET_IPV4;
688
527k
    }
689
397k
    return m_net;
690
924k
}
691
692
std::vector<unsigned char> CNetAddr::GetAddrBytes() const
693
2.18M
{
694
2.18M
    if (IsAddrV1Compatible()) {
  Branch (694:9): [True: 1.80M, False: 383k]
695
1.80M
        uint8_t serialized[V1_SERIALIZATION_SIZE];
696
1.80M
        SerializeV1Array(serialized);
697
1.80M
        return {std::begin(serialized), std::end(serialized)};
698
1.80M
    }
699
383k
    return std::vector<unsigned char>(m_addr.begin(), m_addr.end());
700
2.18M
}
701
702
// private extensions to enum Network, only returned by GetExtNetwork,
703
// and only used in GetReachabilityFrom
704
static const int NET_TEREDO = NET_MAX;
705
int static GetExtNetwork(const CNetAddr& addr)
706
0
{
707
0
    if (addr.IsRFC4380())
  Branch (707:9): [True: 0, False: 0]
708
0
        return NET_TEREDO;
709
0
    return addr.GetNetwork();
710
0
}
711
712
/** Calculates a metric for how reachable (*this) is from a given partner */
713
int CNetAddr::GetReachabilityFrom(const CNetAddr& paddrPartner) const
714
0
{
715
0
    enum Reachability {
716
0
        REACH_UNREACHABLE,
717
0
        REACH_DEFAULT,
718
0
        REACH_TEREDO,
719
0
        REACH_IPV6_WEAK,
720
0
        REACH_IPV4,
721
0
        REACH_IPV6_STRONG,
722
0
        REACH_PRIVATE
723
0
    };
724
725
0
    if (!IsRoutable() || IsInternal())
  Branch (725:9): [True: 0, False: 0]
  Branch (725:26): [True: 0, False: 0]
726
0
        return REACH_UNREACHABLE;
727
728
0
    int ourNet = GetExtNetwork(*this);
729
0
    int theirNet = GetExtNetwork(paddrPartner);
730
0
    bool fTunnel = IsRFC3964() || IsRFC6052() || IsRFC6145();
  Branch (730:20): [True: 0, False: 0]
  Branch (730:35): [True: 0, False: 0]
  Branch (730:50): [True: 0, False: 0]
731
732
0
    switch(theirNet) {
733
0
    case NET_IPV4:
  Branch (733:5): [True: 0, False: 0]
734
0
        switch(ourNet) {
735
0
        default:       return REACH_DEFAULT;
  Branch (735:9): [True: 0, False: 0]
736
0
        case NET_IPV4: return REACH_IPV4;
  Branch (736:9): [True: 0, False: 0]
737
0
        }
738
0
    case NET_IPV6:
  Branch (738:5): [True: 0, False: 0]
739
0
        switch(ourNet) {
740
0
        default:         return REACH_DEFAULT;
  Branch (740:9): [True: 0, False: 0]
741
0
        case NET_TEREDO: return REACH_TEREDO;
  Branch (741:9): [True: 0, False: 0]
742
0
        case NET_IPV4:   return REACH_IPV4;
  Branch (742:9): [True: 0, False: 0]
743
0
        case NET_IPV6:   return fTunnel ? REACH_IPV6_WEAK : REACH_IPV6_STRONG; // only prefer giving our IPv6 address if it's not tunnelled
  Branch (743:9): [True: 0, False: 0]
  Branch (743:33): [True: 0, False: 0]
744
0
        }
745
0
    case NET_ONION:
  Branch (745:5): [True: 0, False: 0]
746
0
        switch(ourNet) {
747
0
        default:         return REACH_DEFAULT;
  Branch (747:9): [True: 0, False: 0]
748
0
        case NET_IPV4:   return REACH_IPV4; // Tor users can connect to IPv4 as well
  Branch (748:9): [True: 0, False: 0]
749
0
        case NET_ONION:    return REACH_PRIVATE;
  Branch (749:9): [True: 0, False: 0]
750
0
        }
751
0
    case NET_I2P:
  Branch (751:5): [True: 0, False: 0]
752
0
        switch (ourNet) {
753
0
        case NET_I2P: return REACH_PRIVATE;
  Branch (753:9): [True: 0, False: 0]
754
0
        default: return REACH_DEFAULT;
  Branch (754:9): [True: 0, False: 0]
755
0
        }
756
0
    case NET_CJDNS:
  Branch (756:5): [True: 0, False: 0]
757
0
        switch (ourNet) {
758
0
        case NET_CJDNS: return REACH_PRIVATE;
  Branch (758:9): [True: 0, False: 0]
759
0
        default: return REACH_DEFAULT;
  Branch (759:9): [True: 0, False: 0]
760
0
        }
761
0
    case NET_TEREDO:
  Branch (761:5): [True: 0, False: 0]
762
0
        switch(ourNet) {
763
0
        default:          return REACH_DEFAULT;
  Branch (763:9): [True: 0, False: 0]
764
0
        case NET_TEREDO:  return REACH_TEREDO;
  Branch (764:9): [True: 0, False: 0]
765
0
        case NET_IPV6:    return REACH_IPV6_WEAK;
  Branch (765:9): [True: 0, False: 0]
766
0
        case NET_IPV4:    return REACH_IPV4;
  Branch (766:9): [True: 0, False: 0]
767
0
        }
768
0
    case NET_UNROUTABLE:
  Branch (768:5): [True: 0, False: 0]
769
0
    default:
  Branch (769:5): [True: 0, False: 0]
770
0
        switch(ourNet) {
771
0
        default:          return REACH_DEFAULT;
  Branch (771:9): [True: 0, False: 0]
772
0
        case NET_TEREDO:  return REACH_TEREDO;
  Branch (772:9): [True: 0, False: 0]
773
0
        case NET_IPV6:    return REACH_IPV6_WEAK;
  Branch (773:9): [True: 0, False: 0]
774
0
        case NET_IPV4:    return REACH_IPV4;
  Branch (774:9): [True: 0, False: 0]
775
0
        case NET_ONION:     return REACH_PRIVATE; // either from Tor, or don't care about our address
  Branch (775:9): [True: 0, False: 0]
776
0
        }
777
0
    }
778
0
}
779
780
1.46M
CService::CService() : port(0)
781
1.46M
{
782
1.46M
}
783
784
304k
CService::CService(const CNetAddr& cip, uint16_t portIn) : CNetAddr(cip), port(portIn)
785
304k
{
786
304k
}
787
788
0
CService::CService(const struct in_addr& ipv4Addr, uint16_t portIn) : CNetAddr(ipv4Addr), port(portIn)
789
0
{
790
0
}
791
792
0
CService::CService(const struct in6_addr& ipv6Addr, uint16_t portIn) : CNetAddr(ipv6Addr), port(portIn)
793
0
{
794
0
}
795
796
380k
CService::CService(const struct sockaddr_in& addr) : CNetAddr(addr.sin_addr), port(ntohs(addr.sin_port))
797
380k
{
798
380k
    assert(addr.sin_family == AF_INET);
  Branch (798:5): [True: 380k, False: 18.4E]
799
380k
}
800
801
0
CService::CService(const struct sockaddr_in6 &addr) : CNetAddr(addr.sin6_addr, addr.sin6_scope_id), port(ntohs(addr.sin6_port))
802
0
{
803
0
   assert(addr.sin6_family == AF_INET6);
  Branch (803:4): [True: 0, False: 0]
804
0
}
805
806
bool CService::SetSockAddr(const struct sockaddr *paddr, socklen_t addrlen)
807
380k
{
808
380k
    switch (paddr->sa_family) {
809
380k
    case AF_INET:
  Branch (809:5): [True: 380k, False: 0]
810
380k
        if (addrlen != sizeof(struct sockaddr_in)) return false;
  Branch (810:13): [True: 0, False: 380k]
811
380k
        *this = CService(*(const struct sockaddr_in*)paddr);
812
380k
        return true;
813
0
    case AF_INET6:
  Branch (813:5): [True: 0, False: 380k]
814
0
        if (addrlen != sizeof(struct sockaddr_in6)) return false;
  Branch (814:13): [True: 0, False: 0]
815
0
        *this = CService(*(const struct sockaddr_in6*)paddr);
816
0
        return true;
817
0
    default:
  Branch (817:5): [True: 0, False: 380k]
818
0
        return false;
819
380k
    }
820
380k
}
821
822
sa_family_t CService::GetSAFamily() const
823
2.82k
{
824
2.82k
    switch (m_net) {
825
2.79k
    case NET_IPV4:
  Branch (825:5): [True: 2.79k, False: 27]
826
2.79k
        return AF_INET;
827
27
    case NET_IPV6:
  Branch (827:5): [True: 27, False: 2.79k]
828
27
    case NET_CJDNS:
  Branch (828:5): [True: 0, False: 2.82k]
829
27
        return AF_INET6;
830
0
    default:
  Branch (830:5): [True: 0, False: 2.82k]
831
0
        return AF_UNSPEC;
832
2.82k
    }
833
2.82k
}
834
835
uint16_t CService::GetPort() const
836
324k
{
837
324k
    return port;
838
324k
}
839
840
bool operator==(const CService& a, const CService& b)
841
406k
{
842
406k
    return static_cast<CNetAddr>(a) == static_cast<CNetAddr>(b) && a.port == b.port;
  Branch (842:12): [True: 77.0k, False: 329k]
  Branch (842:68): [True: 39.0k, False: 38.0k]
843
406k
}
844
845
bool operator<(const CService& a, const CService& b)
846
284k
{
847
284k
    return static_cast<CNetAddr>(a) < static_cast<CNetAddr>(b) || (static_cast<CNetAddr>(a) == static_cast<CNetAddr>(b) && a.port < b.port);
  Branch (847:12): [True: 42, False: 284k]
  Branch (847:68): [True: 284k, False: 18.4E]
  Branch (847:124): [True: 207k, False: 76.2k]
848
284k
}
849
850
/**
851
 * Obtain the IPv4/6 socket address this represents.
852
 *
853
 * @param[out] paddr The obtained socket address.
854
 * @param[in,out] addrlen The size, in bytes, of the address structure pointed
855
 *                        to by paddr. The value that's pointed to by this
856
 *                        parameter might change after calling this function if
857
 *                        the size of the corresponding address structure
858
 *                        changed.
859
 *
860
 * @returns Whether or not the operation was successful.
861
 */
862
bool CService::GetSockAddr(struct sockaddr* paddr, socklen_t *addrlen) const
863
2.87k
{
864
2.87k
    if (IsIPv4()) {
  Branch (864:9): [True: 2.84k, False: 27]
865
2.84k
        if (*addrlen < (socklen_t)sizeof(struct sockaddr_in))
  Branch (865:13): [True: 0, False: 2.84k]
866
0
            return false;
867
2.84k
        *addrlen = sizeof(struct sockaddr_in);
868
2.84k
        struct sockaddr_in *paddrin = (struct sockaddr_in*)paddr;
869
2.84k
        memset(paddrin, 0, *addrlen);
870
2.84k
        if (!GetInAddr(&paddrin->sin_addr))
  Branch (870:13): [True: 0, False: 2.84k]
871
0
            return false;
872
2.84k
        paddrin->sin_family = AF_INET;
873
2.84k
        paddrin->sin_port = htons(port);
874
2.84k
        return true;
875
2.84k
    }
876
27
    if (IsIPv6() || IsCJDNS()) {
  Branch (876:9): [True: 27, False: 0]
  Branch (876:21): [True: 0, False: 0]
877
27
        if (*addrlen < (socklen_t)sizeof(struct sockaddr_in6))
  Branch (877:13): [True: 0, False: 27]
878
0
            return false;
879
27
        *addrlen = sizeof(struct sockaddr_in6);
880
27
        struct sockaddr_in6 *paddrin6 = (struct sockaddr_in6*)paddr;
881
27
        memset(paddrin6, 0, *addrlen);
882
27
        if (!GetIn6Addr(&paddrin6->sin6_addr))
  Branch (882:13): [True: 0, False: 27]
883
0
            return false;
884
27
        paddrin6->sin6_scope_id = m_scope_id;
885
27
        paddrin6->sin6_family = AF_INET6;
886
27
        paddrin6->sin6_port = htons(port);
887
27
        return true;
888
27
    }
889
0
    return false;
890
27
}
891
892
/**
893
 * @returns An identifier unique to this service's address and port number.
894
 */
895
std::vector<unsigned char> CService::GetKey() const
896
1.00M
{
897
1.00M
    auto key = GetAddrBytes();
898
1.00M
    key.push_back(port / 0x100); // most significant byte of our port
899
1.00M
    key.push_back(port & 0x0FF); // least significant byte of our port
900
1.00M
    return key;
901
1.00M
}
902
903
std::string CService::ToStringAddrPort() const
904
1.34M
{
905
1.34M
    const auto port_str = strprintf("%u", port);
906
907
1.34M
    if (IsIPv4() || IsTor() || IsI2P() || IsInternal()) {
  Branch (907:9): [True: 1.21M, False: 126k]
  Branch (907:21): [True: 0, False: 126k]
  Branch (907:32): [True: 0, False: 126k]
  Branch (907:43): [True: 0, False: 126k]
908
1.21M
        return ToStringAddr() + ":" + port_str;
909
1.21M
    } else {
910
126k
        return "[" + ToStringAddr() + "]:" + port_str;
911
126k
    }
912
1.34M
}
913
914
CSubNet::CSubNet():
915
54
    valid(false)
916
54
{
917
54
    memset(netmask, 0, sizeof(netmask));
918
54
}
919
920
27
CSubNet::CSubNet(const CNetAddr& addr, uint8_t mask) : CSubNet()
921
27
{
922
27
    valid = (addr.IsIPv4() && mask <= ADDR_IPV4_SIZE * 8) ||
  Branch (922:14): [True: 27, False: 0]
  Branch (922:31): [True: 27, False: 0]
923
27
            (addr.IsIPv6() && mask <= ADDR_IPV6_SIZE * 8);
  Branch (923:14): [True: 0, False: 0]
  Branch (923:31): [True: 0, False: 0]
924
27
    if (!valid) {
  Branch (924:9): [True: 0, False: 27]
925
0
        return;
926
0
    }
927
928
27
    assert(mask <= sizeof(netmask) * 8);
  Branch (928:5): [True: 27, False: 0]
929
930
27
    network = addr;
931
932
27
    uint8_t n = mask;
933
135
    for (size_t i = 0; i < network.m_addr.size(); ++i) {
  Branch (933:24): [True: 108, False: 27]
934
108
        const uint8_t bits = n < 8 ? n : 8;
  Branch (934:30): [True: 81, False: 27]
935
108
        netmask[i] = (uint8_t)((uint8_t)0xFF << (8 - bits)); // Set first bits.
936
108
        network.m_addr[i] &= netmask[i]; // Normalize network according to netmask.
937
108
        n -= bits;
938
108
    }
939
27
}
940
941
/**
942
 * @returns The number of 1-bits in the prefix of the specified subnet mask. If
943
 *          the specified subnet mask is not a valid one, -1.
944
 */
945
static inline int NetmaskBits(uint8_t x)
946
459
{
947
459
    switch(x) {
948
0
    case 0x00: return 0;
  Branch (948:5): [True: 0, False: 459]
949
0
    case 0x80: return 1;
  Branch (949:5): [True: 0, False: 459]
950
0
    case 0xc0: return 2;
  Branch (950:5): [True: 0, False: 459]
951
0
    case 0xe0: return 3;
  Branch (951:5): [True: 0, False: 459]
952
0
    case 0xf0: return 4;
  Branch (952:5): [True: 0, False: 459]
953
0
    case 0xf8: return 5;
  Branch (953:5): [True: 0, False: 459]
954
0
    case 0xfc: return 6;
  Branch (954:5): [True: 0, False: 459]
955
0
    case 0xfe: return 7;
  Branch (955:5): [True: 0, False: 459]
956
459
    case 0xff: return 8;
  Branch (956:5): [True: 459, False: 0]
957
0
    default: return -1;
  Branch (957:5): [True: 0, False: 459]
958
459
    }
959
459
}
960
961
0
CSubNet::CSubNet(const CNetAddr& addr, const CNetAddr& mask) : CSubNet()
962
0
{
963
0
    valid = (addr.IsIPv4() || addr.IsIPv6()) && addr.m_net == mask.m_net;
  Branch (963:14): [True: 0, False: 0]
  Branch (963:31): [True: 0, False: 0]
  Branch (963:49): [True: 0, False: 0]
964
0
    if (!valid) {
  Branch (964:9): [True: 0, False: 0]
965
0
        return;
966
0
    }
967
    // Check if `mask` contains 1-bits after 0-bits (which is an invalid netmask).
968
0
    bool zeros_found = false;
969
0
    for (auto b : mask.m_addr) {
  Branch (969:17): [True: 0, False: 0]
970
0
        const int num_bits = NetmaskBits(b);
971
0
        if (num_bits == -1 || (zeros_found && num_bits != 0)) {
  Branch (971:13): [True: 0, False: 0]
  Branch (971:32): [True: 0, False: 0]
  Branch (971:47): [True: 0, False: 0]
972
0
            valid = false;
973
0
            return;
974
0
        }
975
0
        if (num_bits < 8) {
  Branch (975:13): [True: 0, False: 0]
976
0
            zeros_found = true;
977
0
        }
978
0
    }
979
980
0
    assert(mask.m_addr.size() <= sizeof(netmask));
  Branch (980:5): [True: 0, False: 0]
981
982
0
    memcpy(netmask, mask.m_addr.data(), mask.m_addr.size());
983
984
0
    network = addr;
985
986
    // Normalize network according to netmask
987
0
    for (size_t x = 0; x < network.m_addr.size(); ++x) {
  Branch (987:24): [True: 0, False: 0]
988
0
        network.m_addr[x] &= netmask[x];
989
0
    }
990
0
}
991
992
27
CSubNet::CSubNet(const CNetAddr& addr) : CSubNet()
993
27
{
994
27
    switch (addr.m_net) {
  Branch (994:13): [True: 0, False: 27]
995
0
    case NET_IPV4:
  Branch (995:5): [True: 0, False: 27]
996
27
    case NET_IPV6:
  Branch (996:5): [True: 27, False: 0]
997
27
        valid = true;
998
27
        assert(addr.m_addr.size() <= sizeof(netmask));
  Branch (998:9): [True: 27, False: 0]
999
27
        memset(netmask, 0xFF, addr.m_addr.size());
1000
27
        break;
1001
0
    case NET_ONION:
  Branch (1001:5): [True: 0, False: 27]
1002
0
    case NET_I2P:
  Branch (1002:5): [True: 0, False: 27]
1003
0
    case NET_CJDNS:
  Branch (1003:5): [True: 0, False: 27]
1004
0
        valid = true;
1005
0
        break;
1006
0
    case NET_INTERNAL:
  Branch (1006:5): [True: 0, False: 27]
1007
0
    case NET_UNROUTABLE:
  Branch (1007:5): [True: 0, False: 27]
1008
0
    case NET_MAX:
  Branch (1008:5): [True: 0, False: 27]
1009
0
        return;
1010
27
    }
1011
1012
27
    network = addr;
1013
27
}
1014
1015
/**
1016
 * @returns True if this subnet is valid, the specified address is valid, and
1017
 *          the specified address belongs in this subnet.
1018
 */
1019
bool CSubNet::Match(const CNetAddr &addr) const
1020
334k
{
1021
334k
    if (!valid || !addr.IsValid() || network.m_net != addr.m_net)
  Branch (1021:9): [True: 18.4E, False: 334k]
  Branch (1021:19): [True: 0, False: 334k]
  Branch (1021:38): [True: 0, False: 334k]
1022
0
        return false;
1023
1024
334k
    switch (network.m_net) {
  Branch (1024:13): [True: 18.4E, False: 334k]
1025
334k
    case NET_IPV4:
  Branch (1025:5): [True: 334k, False: 18.4E]
1026
334k
    case NET_IPV6:
  Branch (1026:5): [True: 0, False: 334k]
1027
334k
        break;
1028
0
    case NET_ONION:
  Branch (1028:5): [True: 0, False: 334k]
1029
0
    case NET_I2P:
  Branch (1029:5): [True: 0, False: 334k]
1030
0
    case NET_CJDNS:
  Branch (1030:5): [True: 0, False: 334k]
1031
0
    case NET_INTERNAL:
  Branch (1031:5): [True: 0, False: 334k]
1032
0
        return addr == network;
1033
0
    case NET_UNROUTABLE:
  Branch (1033:5): [True: 0, False: 334k]
1034
0
    case NET_MAX:
  Branch (1034:5): [True: 0, False: 334k]
1035
0
        return false;
1036
334k
    }
1037
1038
334k
    assert(network.m_addr.size() == addr.m_addr.size());
  Branch (1038:5): [True: 335k, False: 18.4E]
1039
1.67M
    for (size_t x = 0; x < addr.m_addr.size(); ++x) {
  Branch (1039:24): [True: 1.34M, False: 335k]
1040
1.34M
        if ((addr.m_addr[x] & netmask[x]) != network.m_addr[x]) {
  Branch (1040:13): [True: 0, False: 1.34M]
1041
0
            return false;
1042
0
        }
1043
1.34M
    }
1044
335k
    return true;
1045
335k
}
1046
1047
std::string CSubNet::ToString() const
1048
54
{
1049
54
    std::string suffix;
1050
1051
54
    switch (network.m_net) {
  Branch (1051:13): [True: 0, False: 54]
1052
27
    case NET_IPV4:
  Branch (1052:5): [True: 27, False: 27]
1053
54
    case NET_IPV6: {
  Branch (1053:5): [True: 27, False: 27]
1054
54
        assert(network.m_addr.size() <= sizeof(netmask));
  Branch (1054:9): [True: 54, False: 0]
1055
1056
54
        uint8_t cidr = 0;
1057
1058
513
        for (size_t i = 0; i < network.m_addr.size(); ++i) {
  Branch (1058:28): [True: 486, False: 27]
1059
486
            if (netmask[i] == 0x00) {
  Branch (1059:17): [True: 27, False: 459]
1060
27
                break;
1061
27
            }
1062
459
            cidr += NetmaskBits(netmask[i]);
1063
459
        }
1064
1065
54
        suffix = strprintf("/%u", cidr);
1066
54
        break;
1067
54
    }
1068
0
    case NET_ONION:
  Branch (1068:5): [True: 0, False: 54]
1069
0
    case NET_I2P:
  Branch (1069:5): [True: 0, False: 54]
1070
0
    case NET_CJDNS:
  Branch (1070:5): [True: 0, False: 54]
1071
0
    case NET_INTERNAL:
  Branch (1071:5): [True: 0, False: 54]
1072
0
    case NET_UNROUTABLE:
  Branch (1072:5): [True: 0, False: 54]
1073
0
    case NET_MAX:
  Branch (1073:5): [True: 0, False: 54]
1074
0
        break;
1075
54
    }
1076
1077
54
    return network.ToStringAddr() + suffix;
1078
54
}
1079
1080
bool CSubNet::IsValid() const
1081
0
{
1082
0
    return valid;
1083
0
}
1084
1085
bool operator==(const CSubNet& a, const CSubNet& b)
1086
0
{
1087
0
    return a.valid == b.valid && a.network == b.network && !memcmp(a.netmask, b.netmask, 16);
  Branch (1087:12): [True: 0, False: 0]
  Branch (1087:34): [True: 0, False: 0]
  Branch (1087:60): [True: 0, False: 0]
1088
0
}
1089
1090
bool operator<(const CSubNet& a, const CSubNet& b)
1091
0
{
1092
0
    return (a.network < b.network || (a.network == b.network && memcmp(a.netmask, b.netmask, 16) < 0));
  Branch (1092:13): [True: 0, False: 0]
  Branch (1092:39): [True: 0, False: 0]
  Branch (1092:65): [True: 0, False: 0]
1093
0
}