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PowerDNS / pdns / 18743945403

23 Oct 2025 09:29AM UTC coverage: 65.845% (+0.02%) from 65.829%
18743945403

Pull #16356

github

web-flow
Merge 8a2027ef1 into efa3637e8
Pull Request #16356: auth 5.0: backport "pdnsutil: fix b2b-migrate to from sql to non-sql"

42073 of 92452 branches covered (45.51%)

Branch coverage included in aggregate %.

128008 of 165855 relevant lines covered (77.18%)

6379935.17 hits per line

Source File
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78.84
/pdns/iputils.hh
1
/*
2
 * This file is part of PowerDNS or dnsdist.
3
 * Copyright -- PowerDNS.COM B.V. and its contributors
4
 *
5
 * This program is free software; you can redistribute it and/or modify
6
 * it under the terms of version 2 of the GNU General Public License as
7
 * published by the Free Software Foundation.
8
 *
9
 * In addition, for the avoidance of any doubt, permission is granted to
10
 * link this program with OpenSSL and to (re)distribute the binaries
11
 * produced as the result of such linking.
12
 *
13
 * This program is distributed in the hope that it will be useful,
14
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
15
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
16
 * GNU General Public License for more details.
17
 *
18
 * You should have received a copy of the GNU General Public License
19
 * along with this program; if not, write to the Free Software
20
 * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301 USA.
21
 */
22
#pragma once
23
#include <string>
24
#include <sys/socket.h>
25
#include <netinet/in.h>
26
#include <arpa/inet.h>
27
#include <iostream>
28
#include <cstdio>
29
#include <functional>
30
#include "pdnsexception.hh"
31
#include "misc.hh"
32
#include <netdb.h>
33
#include <sstream>
34
#include <sys/un.h>
35

36
#include "namespaces.hh"
37

38
#ifdef __APPLE__
39
#include <libkern/OSByteOrder.h>
40

41
#define htobe16(x) OSSwapHostToBigInt16(x)
42
#define htole16(x) OSSwapHostToLittleInt16(x)
43
#define be16toh(x) OSSwapBigToHostInt16(x)
44
#define le16toh(x) OSSwapLittleToHostInt16(x)
45

46
#define htobe32(x) OSSwapHostToBigInt32(x)
47
#define htole32(x) OSSwapHostToLittleInt32(x)
48
#define be32toh(x) OSSwapBigToHostInt32(x)
49
#define le32toh(x) OSSwapLittleToHostInt32(x)
50

51
#define htobe64(x) OSSwapHostToBigInt64(x)
52
#define htole64(x) OSSwapHostToLittleInt64(x)
53
#define be64toh(x) OSSwapBigToHostInt64(x)
54
#define le64toh(x) OSSwapLittleToHostInt64(x)
55
#endif
56

57
#ifdef __sun
58

59
#define htobe16(x) BE_16(x)
60
#define htole16(x) LE_16(x)
61
#define be16toh(x) BE_IN16(&(x))
62
#define le16toh(x) LE_IN16(&(x))
63

64
#define htobe32(x) BE_32(x)
65
#define htole32(x) LE_32(x)
66
#define be32toh(x) BE_IN32(&(x))
67
#define le32toh(x) LE_IN32(&(x))
68

69
#define htobe64(x) BE_64(x)
70
#define htole64(x) LE_64(x)
71
#define be64toh(x) BE_IN64(&(x))
72
#define le64toh(x) LE_IN64(&(x))
73

74
#endif
75

76
#ifdef __FreeBSD__
77
#include <sys/endian.h>
78
#endif
79

80
#if defined(__NetBSD__) && defined(IP_PKTINFO) && !defined(IP_SENDSRCADDR)
81
// The IP_PKTINFO option in NetBSD was incompatible with Linux until a
82
// change that also introduced IP_SENDSRCADDR for FreeBSD compatibility.
83
#undef IP_PKTINFO
84
#endif
85

86
union ComboAddress
87
{
88
  sockaddr_in sin4{};
89
  sockaddr_in6 sin6;
90

91
  bool operator==(const ComboAddress& rhs) const
92
  {
38,309,327✔
93
    if (std::tie(sin4.sin_family, sin4.sin_port) != std::tie(rhs.sin4.sin_family, rhs.sin4.sin_port)) {
38,309,327✔
94
      return false;
15,535,318✔
95
    }
15,535,318✔
96
    if (sin4.sin_family == AF_INET) {
22,774,009✔
97
      return sin4.sin_addr.s_addr == rhs.sin4.sin_addr.s_addr;
11,642,524✔
98
    }
11,642,524✔
99
    return memcmp(&sin6.sin6_addr.s6_addr, &rhs.sin6.sin6_addr.s6_addr, sizeof(sin6.sin6_addr.s6_addr)) == 0;
11,131,485✔
100
  }
22,774,009✔
101

102
  bool operator!=(const ComboAddress& rhs) const
103
  {
6,013,734✔
104
    return (!operator==(rhs));
6,013,734✔
105
  }
6,013,734✔
106

107
  bool operator<(const ComboAddress& rhs) const
108
  {
2,103,689✔
109
    if (sin4.sin_family == 0) {
2,103,689✔
110
      return false;
75,626✔
111
    }
75,626✔
112
    if (std::tie(sin4.sin_family, sin4.sin_port) < std::tie(rhs.sin4.sin_family, rhs.sin4.sin_port)) {
2,028,063✔
113
      return true;
23,444✔
114
    }
23,444✔
115
    if (std::tie(sin4.sin_family, sin4.sin_port) > std::tie(rhs.sin4.sin_family, rhs.sin4.sin_port)) {
2,004,619✔
116
      return false;
10,902✔
117
    }
10,902✔
118
    if (sin4.sin_family == AF_INET) {
1,993,764✔
119
      return sin4.sin_addr.s_addr < rhs.sin4.sin_addr.s_addr;
1,405,580✔
120
    }
1,405,580✔
121
    return memcmp(&sin6.sin6_addr.s6_addr, &rhs.sin6.sin6_addr.s6_addr, sizeof(sin6.sin6_addr.s6_addr)) < 0;
2,148,071,819✔
122
  }
1,993,717✔
123

124
  bool operator>(const ComboAddress& rhs) const
125
  {
5✔
126
    return rhs.operator<(*this);
5✔
127
  }
5✔
128

129
  struct addressPortOnlyHash
130
  {
131
    uint32_t operator()(const ComboAddress& address) const
132
    {
×
133
      // NOLINTBEGIN(cppcoreguidelines-pro-type-reinterpret-cast)
134
      if (address.sin4.sin_family == AF_INET) {
×
135
        const auto* start = reinterpret_cast<const unsigned char*>(&address.sin4.sin_addr.s_addr);
×
136
        auto tmp = burtle(start, 4, 0);
×
137
        return burtle(reinterpret_cast<const uint8_t*>(&address.sin4.sin_port), 2, tmp);
×
138
      }
×
139
      const auto* start = reinterpret_cast<const unsigned char*>(&address.sin6.sin6_addr.s6_addr);
×
140
      auto tmp = burtle(start, 16, 0);
×
141
      return burtle(reinterpret_cast<const unsigned char*>(&address.sin6.sin6_port), 2, tmp);
×
142
      // NOLINTEND(cppcoreguidelines-pro-type-reinterpret-cast)
143
    }
×
144
  };
145

146
  struct addressOnlyHash
147
  {
148
    uint32_t operator()(const ComboAddress& address) const
149
    {
619,380✔
150
      const unsigned char* start = nullptr;
619,380✔
151
      uint32_t len = 0;
619,380✔
152
      // NOLINTBEGIN(cppcoreguidelines-pro-type-reinterpret-cast)
153
      if (address.sin4.sin_family == AF_INET) {
619,380✔
154
        start = reinterpret_cast<const unsigned char*>(&address.sin4.sin_addr.s_addr);
618,429✔
155
        len = 4;
618,429✔
156
      }
618,429✔
157
      else {
951✔
158
        start = reinterpret_cast<const unsigned char*>(&address.sin6.sin6_addr.s6_addr);
951✔
159
        len = 16;
951✔
160
      }
951✔
161
      // NOLINTEND(cppcoreguidelines-pro-type-reinterpret-cast)
162
      return burtle(start, len, 0);
619,380✔
163
    }
619,380✔
164
  };
165

166
  struct addressOnlyLessThan
167
  {
168
    bool operator()(const ComboAddress& lhs, const ComboAddress& rhs) const
169
    {
2,308✔
170
      if (lhs.sin4.sin_family < rhs.sin4.sin_family) {
2,308✔
171
        return true;
37✔
172
      }
37✔
173
      if (lhs.sin4.sin_family > rhs.sin4.sin_family) {
2,271✔
174
        return false;
6✔
175
      }
6✔
176
      if (lhs.sin4.sin_family == AF_INET) {
2,265✔
177
        return lhs.sin4.sin_addr.s_addr < rhs.sin4.sin_addr.s_addr;
2,209✔
178
      }
2,209✔
179
      return memcmp(&lhs.sin6.sin6_addr.s6_addr, &rhs.sin6.sin6_addr.s6_addr, sizeof(lhs.sin6.sin6_addr.s6_addr)) < 0;
56✔
180
    }
2,265✔
181
  };
182

183
  struct addressOnlyEqual
184
  {
185
    bool operator()(const ComboAddress& lhs, const ComboAddress& rhs) const
186
    {
667✔
187
      if (lhs.sin4.sin_family != rhs.sin4.sin_family) {
667!
188
        return false;
×
189
      }
×
190
      if (lhs.sin4.sin_family == AF_INET) {
667!
191
        return lhs.sin4.sin_addr.s_addr == rhs.sin4.sin_addr.s_addr;
667✔
192
      }
667✔
193
      return memcmp(&lhs.sin6.sin6_addr.s6_addr, &rhs.sin6.sin6_addr.s6_addr, sizeof(lhs.sin6.sin6_addr.s6_addr)) == 0;
×
194
    }
667✔
195
  };
196

197
  [[nodiscard]] socklen_t getSocklen() const
198
  {
1,764,164✔
199
    if (sin4.sin_family == AF_INET) {
1,764,164✔
200
      return sizeof(sin4);
417,305✔
201
    }
417,305✔
202
    return sizeof(sin6);
1,346,859✔
203
  }
1,764,164✔
204

205
  ComboAddress()
206
  {
113,008,315✔
207
    sin4.sin_family = AF_INET;
113,008,315✔
208
    sin4.sin_addr.s_addr = 0;
113,008,315✔
209
    sin4.sin_port = 0;
113,008,315✔
210
    sin6.sin6_scope_id = 0;
113,008,315✔
211
    sin6.sin6_flowinfo = 0;
113,008,315✔
212
  }
113,008,315✔
213

214
  ComboAddress(const struct sockaddr* socketAddress, socklen_t salen)
215
  {
110✔
216
    setSockaddr(socketAddress, salen);
110✔
217
  };
110✔
218

219
  ComboAddress(const struct sockaddr_in6* socketAddress)
220
  {
4✔
221
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
222
    setSockaddr(reinterpret_cast<const struct sockaddr*>(socketAddress), sizeof(struct sockaddr_in6));
4✔
223
  };
4✔
224

225
  ComboAddress(const struct sockaddr_in* socketAddress)
226
  {
2✔
227
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
228
    setSockaddr(reinterpret_cast<const struct sockaddr*>(socketAddress), sizeof(struct sockaddr_in));
2✔
229
  };
2✔
230

231
  void setSockaddr(const struct sockaddr* socketAddress, socklen_t salen)
232
  {
388✔
233
    if (salen > sizeof(struct sockaddr_in6)) {
388!
234
      throw PDNSException("ComboAddress can't handle other than sockaddr_in or sockaddr_in6");
×
235
    }
×
236
    memcpy(this, socketAddress, salen);
388✔
237
  }
388✔
238

239
  // 'port' sets a default value in case 'str' does not set a port
240
  explicit ComboAddress(const string& str, uint16_t port = 0)
241
  {
2,005,145✔
242
    memset(&sin6, 0, sizeof(sin6));
2,005,145✔
243
    sin4.sin_family = AF_INET;
2,005,145✔
244
    sin4.sin_port = 0;
2,005,145✔
245
    if (makeIPv4sockaddr(str, &sin4) != 0) {
2,005,145✔
246
      sin6.sin6_family = AF_INET6;
934,898✔
247
      if (makeIPv6sockaddr(str, &sin6) < 0) {
934,898✔
248
        throw PDNSException("Unable to convert presentation address '" + str + "'");
109✔
249
      }
109✔
250
    }
934,898✔
251
    if (sin4.sin_port == 0) { // 'str' overrides port!
2,005,036✔
252
      sin4.sin_port = htons(port);
1,730,731✔
253
    }
1,730,731✔
254
  }
2,005,036✔
255

256
  [[nodiscard]] bool isIPv6() const
257
  {
161,386,374✔
258
    return sin4.sin_family == AF_INET6;
161,386,374✔
259
  }
161,386,374✔
260
  [[nodiscard]] bool isIPv4() const
261
  {
295,925,081✔
262
    return sin4.sin_family == AF_INET;
295,925,081✔
263
  }
295,925,081✔
264

265
  [[nodiscard]] bool isMappedIPv4() const
266
  {
×
267
    if (sin4.sin_family != AF_INET6) {
×
268
      return false;
×
269
    }
×
270

271
    int iter = 0;
×
272
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
273
    const auto* ptr = reinterpret_cast<const unsigned char*>(&sin6.sin6_addr.s6_addr);
×
274
    for (iter = 0; iter < 10; ++iter) {
×
275
      if (ptr[iter] != 0) { // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
×
276
        return false;
×
277
      }
×
278
    }
×
279
    for (; iter < 12; ++iter) {
×
280
      if (ptr[iter] != 0xff) { // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
×
281
        return false;
×
282
      }
×
283
    }
×
284
    return true;
×
285
  }
×
286

287
  [[nodiscard]] bool isUnspecified() const
288
  {
1,654✔
289
    const ComboAddress unspecifiedV4("0.0.0.0:0");
1,654✔
290
    const ComboAddress unspecifiedV6("[::]:0");
1,654✔
291
    return *this == unspecifiedV4 || *this == unspecifiedV6;
1,654!
292
  }
1,654✔
293

294
  [[nodiscard]] ComboAddress mapToIPv4() const
295
  {
×
296
    if (!isMappedIPv4()) {
×
297
      throw PDNSException("ComboAddress can't map non-mapped IPv6 address back to IPv4");
×
298
    }
×
299
    ComboAddress ret;
×
300
    ret.sin4.sin_family = AF_INET;
×
301
    ret.sin4.sin_port = sin4.sin_port;
×
302

303
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
304
    const auto* ptr = reinterpret_cast<const unsigned char*>(&sin6.sin6_addr.s6_addr);
×
305
    ptr += (sizeof(sin6.sin6_addr.s6_addr) - sizeof(ret.sin4.sin_addr.s_addr)); // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
×
306
    memcpy(&ret.sin4.sin_addr.s_addr, ptr, sizeof(ret.sin4.sin_addr.s_addr));
×
307
    return ret;
×
308
  }
×
309

310
  [[nodiscard]] string toString() const
311
  {
1,381,728✔
312
    std::array<char, 1024> host{};
1,381,728✔
313
    if (sin4.sin_family != 0) {
1,381,730✔
314
      // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
315
      int retval = getnameinfo(reinterpret_cast<const struct sockaddr*>(this), getSocklen(), host.data(), host.size(), nullptr, 0, NI_NUMERICHOST);
1,381,711✔
316
      if (retval == 0) {
1,381,732✔
317
        return host.data();
1,381,731✔
318
      }
1,381,731✔
319
      return "invalid " + string(gai_strerror(retval));
15,032,385,530✔
320
    }
1,381,711✔
321
    return "invalid";
2,147,483,663✔
322
  }
1,381,728✔
323

324
  //! Ignores any interface specifiers possibly available in the sockaddr data.
325
  [[nodiscard]] string toStringNoInterface() const
326
  {
5,049✔
327
    std::array<char, 1024> host{};
5,049✔
328
    if (sin4.sin_family == AF_INET) {
5,049✔
329
      const auto* ret = inet_ntop(sin4.sin_family, &sin4.sin_addr, host.data(), host.size());
4,320✔
330
      if (ret != nullptr) {
4,320!
331
        return host.data();
4,320✔
332
      }
4,320✔
333
    }
4,320✔
334
    else if (sin4.sin_family == AF_INET6) {
729!
335
      const auto* ret = inet_ntop(sin4.sin_family, &sin6.sin6_addr, host.data(), host.size());
729✔
336
      if (ret != nullptr) {
729!
337
        return host.data();
729✔
338
      }
729✔
339
    }
729✔
340
    else {
×
341
      return "invalid";
×
342
    }
×
343
    return "invalid " + stringerror();
×
344
  }
5,049✔
345

346
  [[nodiscard]] string toStringReversed() const
347
  {
70✔
348
    if (isIPv4()) {
70✔
349
      const auto address = ntohl(sin4.sin_addr.s_addr);
34✔
350
      auto aaa = (address >> 0) & 0xFF;
34✔
351
      auto bbb = (address >> 8) & 0xFF;
34✔
352
      auto ccc = (address >> 16) & 0xFF;
34✔
353
      auto ddd = (address >> 24) & 0xFF;
34✔
354
      return std::to_string(aaa) + "." + std::to_string(bbb) + "." + std::to_string(ccc) + "." + std::to_string(ddd);
34✔
355
    }
34✔
356
    const auto* addr = &sin6.sin6_addr;
36✔
357
    std::stringstream res{};
36✔
358
    res << std::hex;
36✔
359
    for (int i = 15; i >= 0; i--) {
612✔
360
      auto byte = addr->s6_addr[i]; // NOLINT(cppcoreguidelines-pro-bounds-constant-array-index)
576✔
361
      res << ((byte >> 0) & 0xF) << ".";
576✔
362
      res << ((byte >> 4) & 0xF);
576✔
363
      if (i != 0) {
576✔
364
        res << ".";
540✔
365
      }
540✔
366
    }
576✔
367
    return res.str();
36✔
368
  }
70✔
369

370
  [[nodiscard]] string toStringWithPort() const
371
  {
19,235✔
372
    if (sin4.sin_family == AF_INET) {
19,235✔
373
      return toString() + ":" + std::to_string(ntohs(sin4.sin_port));
18,902✔
374
    }
18,902✔
375
    return "[" + toString() + "]:" + std::to_string(ntohs(sin4.sin_port));
333✔
376
  }
19,235✔
377

378
  [[nodiscard]] string toStringWithPortExcept(int port) const
379
  {
2,812✔
380
    if (ntohs(sin4.sin_port) == port) {
2,812✔
381
      return toString();
322✔
382
    }
322✔
383
    if (sin4.sin_family == AF_INET) {
2,490✔
384
      return toString() + ":" + std::to_string(ntohs(sin4.sin_port));
2,460✔
385
    }
2,460✔
386
    return "[" + toString() + "]:" + std::to_string(ntohs(sin4.sin_port));
30✔
387
  }
2,490✔
388

389
  [[nodiscard]] string toLogString() const
390
  {
1,737✔
391
    return toStringWithPortExcept(53);
1,737✔
392
  }
1,737✔
393

394
  [[nodiscard]] string toStructuredLogString() const
395
  {
479✔
396
    return toStringWithPort();
479✔
397
  }
479✔
398

399
  [[nodiscard]] string toByteString() const
400
  {
336✔
401
    // NOLINTBEGIN(cppcoreguidelines-pro-type-reinterpret-cast)
402
    if (isIPv4()) {
336✔
403
      return {reinterpret_cast<const char*>(&sin4.sin_addr.s_addr), sizeof(sin4.sin_addr.s_addr)};
318✔
404
    }
318✔
405
    return {reinterpret_cast<const char*>(&sin6.sin6_addr.s6_addr), sizeof(sin6.sin6_addr.s6_addr)};
18✔
406
    // NOLINTEND(cppcoreguidelines-pro-type-reinterpret-cast)
407
  }
336✔
408

409
  void truncate(unsigned int bits) noexcept;
410

411
  [[nodiscard]] uint16_t getNetworkOrderPort() const noexcept
412
  {
1,030,812✔
413
    return sin4.sin_port;
1,030,812✔
414
  }
1,030,812✔
415
  [[nodiscard]] uint16_t getPort() const noexcept
416
  {
1,030,814✔
417
    return ntohs(getNetworkOrderPort());
1,030,814✔
418
  }
1,030,814✔
419
  void setPort(uint16_t port)
420
  {
291,963✔
421
    sin4.sin_port = htons(port);
291,963✔
422
  }
291,963✔
423

424
  void reset()
425
  {
772,181✔
426
    memset(&sin6, 0, sizeof(sin6));
772,181✔
427
  }
772,181✔
428

429
  //! Get the total number of address bits (either 32 or 128 depending on IP version)
430
  [[nodiscard]] uint8_t getBits() const
431
  {
95,030,072✔
432
    if (isIPv4()) {
95,030,072✔
433
      return 32;
42,982,746✔
434
    }
42,982,746✔
435
    if (isIPv6()) {
52,047,333✔
436
      return 128;
52,047,321✔
437
    }
52,047,321✔
438
    return 0;
6,442,450,950✔
439
  }
52,047,326✔
440
  /** Get the value of the bit at the provided bit index. When the index >= 0,
441
      the index is relative to the LSB starting at index zero. When the index < 0,
442
      the index is relative to the MSB starting at index -1 and counting down.
443
   */
444
  [[nodiscard]] bool getBit(int index) const
445
  {
162,138,922✔
446
    if (isIPv4()) {
162,138,934✔
447
      if (index >= 32) {
52,866,079!
448
        return false;
×
449
      }
×
450
      if (index < 0) {
52,866,084✔
451
        if (index < -32) {
40,164,935!
452
          return false;
×
453
        }
×
454
        index = 32 + index;
40,164,935✔
455
      }
40,164,935✔
456

457
      uint32_t ls_addr = ntohl(sin4.sin_addr.s_addr);
52,866,079✔
458

459
      return ((ls_addr & (1U << index)) != 0x00000000);
52,866,079✔
460
    }
52,866,079✔
461
    if (isIPv6()) {
2,256,756,508✔
462
      if (index >= 128) {
109,272,852!
463
        return false;
×
464
      }
×
465
      if (index < 0) {
109,272,852✔
466
        if (index < -128) {
92,494,485!
467
          return false;
×
468
        }
×
469
        index = 128 + index;
92,494,485✔
470
      }
92,494,485✔
471

472
      const auto* ls_addr = reinterpret_cast<const uint8_t*>(sin6.sin6_addr.s6_addr); // NOLINT(cppcoreguidelines-pro-type-reinterpret-cast)
109,272,852✔
473
      uint8_t byte_idx = index / 8;
109,272,852✔
474
      uint8_t bit_idx = index % 8;
109,272,852✔
475

476
      return ((ls_addr[15 - byte_idx] & (1U << bit_idx)) != 0x00); // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
109,272,852✔
477
    }
109,272,852✔
478
    return false;
4,294,967,294✔
479
  }
2,256,756,502✔
480

481
  /*! Returns a comma-separated string of IP addresses
482
   *
483
   * \param c  An stl container with ComboAddresses
484
   * \param withPort  Also print the port (default true)
485
   * \param portExcept  Print the port, except when this is the port (default 53)
486
   */
487
  template <template <class...> class Container, class... Args>
488
  static string caContainerToString(const Container<ComboAddress, Args...>& container, const bool withPort = true, const uint16_t portExcept = 53)
489
  {
110✔
490
    vector<string> strs;
110✔
491
    for (const auto& address : container) {
247✔
492
      if (withPort) {
247✔
493
        strs.push_back(address.toStringWithPortExcept(portExcept));
80✔
494
        continue;
80✔
495
      }
80✔
496
      strs.push_back(address.toString());
167✔
497
    }
167✔
498
    return boost::join(strs, ",");
110✔
499
  };
110✔
500
};
501

502
union SockaddrWrapper
503
{
504
  sockaddr_in sin4{};
505
  sockaddr_in6 sin6;
506
  sockaddr_un sinun;
507

508
  [[nodiscard]] socklen_t getSocklen() const
509
  {
28✔
510
    if (sin4.sin_family == AF_INET) {
28!
511
      return sizeof(sin4);
28✔
512
    }
28✔
513
    if (sin6.sin6_family == AF_INET6) {
×
514
      return sizeof(sin6);
×
515
    }
×
516
    if (sinun.sun_family == AF_UNIX) {
×
517
      return sizeof(sinun);
×
518
    }
×
519
    return 0;
×
520
  }
×
521

522
  SockaddrWrapper()
523
  {
×
524
    sin4.sin_family = AF_INET;
×
525
    sin4.sin_addr.s_addr = 0;
×
526
    sin4.sin_port = 0;
×
527
  }
×
528

529
  SockaddrWrapper(const struct sockaddr* socketAddress, socklen_t salen)
530
  {
×
531
    setSockaddr(socketAddress, salen);
×
532
  };
×
533

534
  SockaddrWrapper(const struct sockaddr_in6* socketAddress)
535
  {
×
536
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
×
537
    setSockaddr(reinterpret_cast<const struct sockaddr*>(socketAddress), sizeof(struct sockaddr_in6));
×
538
  };
×
539

540
  SockaddrWrapper(const struct sockaddr_in* socketAddress)
541
  {
×
542
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
×
543
    setSockaddr(reinterpret_cast<const struct sockaddr*>(socketAddress), sizeof(struct sockaddr_in));
×
544
  };
×
545

546
  SockaddrWrapper(const struct sockaddr_un* socketAddress)
547
  {
×
548
    // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
×
549
    setSockaddr(reinterpret_cast<const struct sockaddr*>(socketAddress), sizeof(struct sockaddr_un));
×
550
  };
×
551

552
  void setSockaddr(const struct sockaddr* socketAddress, socklen_t salen)
553
  {
×
554
    if (salen > sizeof(struct sockaddr_un)) {
×
555
      throw PDNSException("ComboAddress can't handle other than sockaddr_in, sockaddr_in6 or sockaddr_un");
×
556
    }
×
557
    memcpy(this, socketAddress, salen);
×
558
  }
×
559

560
  explicit SockaddrWrapper(const string& str, uint16_t port = 0)
561
  {
89✔
562
    memset(&sinun, 0, sizeof(sinun));
89✔
563
    sin4.sin_family = AF_INET;
89✔
564
    sin4.sin_port = 0;
89✔
565
    if (str == "\"\"" || str == "''") {
89✔
566
      throw PDNSException("Stray quotation marks in address.");
10✔
567
    }
10✔
568
    if (makeIPv4sockaddr(str, &sin4) != 0) {
79✔
569
      sin6.sin6_family = AF_INET6;
45✔
570
      if (makeIPv6sockaddr(str, &sin6) < 0) {
45✔
571
        sinun.sun_family = AF_UNIX;
25✔
572
        // only attempt Unix socket address if address candidate does not contain a port
573
        if (str.find(':') != string::npos || makeUNsockaddr(str, &sinun) < 0) {
25!
574
          throw PDNSException("Unable to convert presentation address '" + str + "'");
20✔
575
        }
20✔
576
      }
25✔
577
    }
45✔
578
    if (sinun.sun_family != AF_UNIX && sin4.sin_port == 0) { // 'str' overrides port!
59✔
579
      sin4.sin_port = htons(port);
34✔
580
    }
34✔
581
  }
59✔
582

583
  [[nodiscard]] bool isIPv6() const
584
  {
×
585
    return sin4.sin_family == AF_INET6;
×
586
  }
×
587
  [[nodiscard]] bool isIPv4() const
588
  {
×
589
    return sin4.sin_family == AF_INET;
×
590
  }
×
591
  [[nodiscard]] bool isUnixSocket() const
592
  {
1,537✔
593
    return sin4.sin_family == AF_UNIX;
1,537✔
594
  }
1,537✔
595

596
  [[nodiscard]] string toString() const
597
  {
14✔
598
    if (sinun.sun_family == AF_UNIX) {
14!
599
      return sinun.sun_path;
×
600
    }
×
601
    std::array<char, 1024> host{};
14✔
602
    if (sin4.sin_family != 0) {
14!
603
      // NOLINTNEXTLINE(cppcoreguidelines-pro-type-reinterpret-cast)
604
      int retval = getnameinfo(reinterpret_cast<const struct sockaddr*>(this), getSocklen(), host.data(), host.size(), nullptr, 0, NI_NUMERICHOST);
14✔
605
      if (retval == 0) {
14!
606
        return host.data();
14✔
607
      }
14✔
608
      return "invalid " + string(gai_strerror(retval));
×
609
    }
14✔
610
    return "invalid";
×
611
  }
14✔
612

613
  [[nodiscard]] string toStringWithPort() const
614
  {
14✔
615
    if (sinun.sun_family == AF_UNIX) {
14!
616
      return toString();
×
617
    }
×
618
    if (sin4.sin_family == AF_INET) {
14!
619
      return toString() + ":" + std::to_string(ntohs(sin4.sin_port));
14✔
620
    }
14✔
621
    return "[" + toString() + "]:" + std::to_string(ntohs(sin4.sin_port));
×
622
  }
14✔
623

624
  void reset()
625
  {
×
626
    memset(&sinun, 0, sizeof(sinun));
×
627
  }
×
628
};
629

630
/** This exception is thrown by the Netmask class and by extension by the NetmaskGroup class */
631
class NetmaskException : public PDNSException
632
{
633
public:
634
  NetmaskException(const string& arg) :
635
    PDNSException(arg) {}
339✔
636
};
637

638
inline ComboAddress makeComboAddress(const string& str)
639
{
708,384✔
640
  ComboAddress address;
708,384✔
641
  address.sin4.sin_family = AF_INET;
708,384✔
642
  if (inet_pton(AF_INET, str.c_str(), &address.sin4.sin_addr) <= 0) {
708,384✔
643
    address.sin4.sin_family = AF_INET6;
342,353✔
644
    if (makeIPv6sockaddr(str, &address.sin6) < 0) {
342,353✔
645
      throw NetmaskException("Unable to convert '" + str + "' to a netmask");
339✔
646
    }
339✔
647
  }
342,353✔
648
  return address;
708,045✔
649
}
708,384✔
650

651
inline ComboAddress makeComboAddressFromRaw(uint8_t version, const char* raw, size_t len)
652
{
291✔
653
  ComboAddress address;
291✔
654

655
  if (version == 4) {
291✔
656
    address.sin4.sin_family = AF_INET;
180✔
657
    if (len != sizeof(address.sin4.sin_addr)) {
180!
658
      throw NetmaskException("invalid raw address length");
×
659
    }
×
660
    memcpy(&address.sin4.sin_addr, raw, sizeof(address.sin4.sin_addr));
180✔
661
  }
180✔
662
  else if (version == 6) {
111!
663
    address.sin6.sin6_family = AF_INET6;
111✔
664
    if (len != sizeof(address.sin6.sin6_addr)) {
111!
665
      throw NetmaskException("invalid raw address length");
×
666
    }
×
667
    memcpy(&address.sin6.sin6_addr, raw, sizeof(address.sin6.sin6_addr));
111✔
668
  }
111✔
669
  else {
×
670
    throw NetmaskException("invalid address family");
×
671
  }
×
672

673
  return address;
291✔
674
}
291✔
675

676
inline ComboAddress makeComboAddressFromRaw(uint8_t version, const string& str)
677
{
119✔
678
  return makeComboAddressFromRaw(version, str.c_str(), str.size());
119✔
679
}
119✔
680

681
/** This class represents a netmask and can be queried to see if a certain
682
    IP address is matched by this mask */
683
class Netmask
684
{
685
public:
686
  Netmask()
687
  {
5,119,111✔
688
    d_network.sin4.sin_family = 0; // disable this doing anything useful
5,119,111✔
689
    d_network.sin4.sin_port = 0; // this guarantees d_network compares identical
5,119,111✔
690
  }
5,119,111✔
691

692
  Netmask(const ComboAddress& network, uint8_t bits = 0xff) :
693
    d_network(network)
14,322,084✔
694
  {
37,449,696✔
695
    d_network.sin4.sin_port = 0;
37,449,696✔
696
    setBits(bits);
37,449,696✔
697
  }
37,449,696✔
698

699
  Netmask(const sockaddr_in* network, uint8_t bits = 0xff) :
700
    d_network(network)
701
  {
×
702
    d_network.sin4.sin_port = 0;
×
703
    setBits(bits);
×
704
  }
×
705
  Netmask(const sockaddr_in6* network, uint8_t bits = 0xff) :
706
    d_network(network)
707
  {
×
708
    d_network.sin4.sin_port = 0;
×
709
    setBits(bits);
×
710
  }
×
711
  void setBits(uint8_t value)
712
  {
38,157,753✔
713
    d_bits = d_network.isIPv4() ? std::min(value, static_cast<uint8_t>(32U)) : std::min(value, static_cast<uint8_t>(128U));
38,157,753✔
714

715
    if (d_bits < 32) {
38,157,753✔
716
      d_mask = ~(0xFFFFFFFF >> d_bits);
8,041,268✔
717
    }
8,041,268✔
718
    else {
30,116,485✔
719
      // note that d_mask is unused for IPv6
720
      d_mask = 0xFFFFFFFF;
30,116,485✔
721
    }
30,116,485✔
722

723
    if (isIPv4()) {
38,157,753✔
724
      d_network.sin4.sin_addr.s_addr = htonl(ntohl(d_network.sin4.sin_addr.s_addr) & d_mask);
15,874,309✔
725
    }
15,874,309✔
726
    else if (isIPv6()) {
22,283,451✔
727
      uint8_t bytes = d_bits / 8;
21,034,825✔
728
      auto* address = reinterpret_cast<uint8_t*>(&d_network.sin6.sin6_addr.s6_addr); // NOLINT(cppcoreguidelines-pro-type-reinterpret-cast)
21,034,825✔
729
      uint8_t bits = d_bits % 8;
21,034,825✔
730
      auto mask = static_cast<uint8_t>(~(0xFF >> bits));
21,034,825✔
731

732
      if (bytes < sizeof(d_network.sin6.sin6_addr.s6_addr)) {
21,034,825✔
733
        address[bytes] &= mask; // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
17,073,698✔
734
      }
17,073,698✔
735

736
      for (size_t idx = bytes + 1; idx < sizeof(d_network.sin6.sin6_addr.s6_addr); ++idx) {
156,865,271✔
737
        address[idx] = 0; // NOLINT(cppcoreguidelines-pro-bounds-pointer-arithmetic)
135,830,446✔
738
      }
135,830,446✔
739
    }
21,034,825✔
740
  }
38,157,753✔
741

742
  enum stringType
743
  {
744
    humanString,
745
    byteString,
746
  };
747
  //! Constructor supplies the mask, which cannot be changed
748
  Netmask(const string& mask, stringType type = humanString)
749
  {
708,402✔
750
    if (type == byteString) {
708,402✔
751
      uint8_t afi = mask.at(0);
56✔
752
      size_t len = afi == 4 ? 4 : 16;
56!
753
      uint8_t bits = mask.at(len + 1);
56✔
754

755
      d_network = makeComboAddressFromRaw(afi, mask.substr(1, len));
56✔
756

757
      setBits(bits);
56✔
758
    }
56✔
759
    else {
708,346✔
760
      pair<string, string> split = splitField(mask, '/');
708,346✔
761
      d_network = makeComboAddress(split.first);
708,346✔
762

763
      if (!split.second.empty()) {
708,346✔
764
        setBits(pdns::checked_stoi<uint8_t>(split.second));
370,686✔
765
      }
370,686✔
766
      else if (d_network.sin4.sin_family == AF_INET) {
337,660✔
767
        setBits(32);
332,541✔
768
      }
332,541✔
769
      else {
5,119✔
770
        setBits(128);
5,119✔
771
      }
5,119✔
772
    }
708,346✔
773
  }
708,402✔
774

775
  [[nodiscard]] bool match(const ComboAddress& address) const
776
  {
79✔
777
    return match(&address);
79✔
778
  }
79✔
779

780
  //! If this IP address in socket address matches
781
  bool match(const ComboAddress* address) const
782
  {
114✔
783
    if (d_network.sin4.sin_family != address->sin4.sin_family) {
114!
784
      return false;
×
785
    }
×
786
    if (d_network.sin4.sin_family == AF_INET) {
114✔
787
      return match4(htonl((unsigned int)address->sin4.sin_addr.s_addr));
84✔
788
    }
84✔
789
    if (d_network.sin6.sin6_family == AF_INET6) {
30!
790
      uint8_t bytes = d_bits / 8;
30✔
791
      uint8_t index = 0;
30✔
792
      // NOLINTBEGIN(cppcoreguidelines-pro-type-reinterpret-cast)
793
      const auto* lhs = reinterpret_cast<const uint8_t*>(&d_network.sin6.sin6_addr.s6_addr);
30✔
794
      const auto* rhs = reinterpret_cast<const uint8_t*>(&address->sin6.sin6_addr.s6_addr);
30✔
795
      // NOLINTEND(cppcoreguidelines-pro-type-reinterpret-cast)
796

797
      // NOLINTBEGIN(cppcoreguidelines-pro-bounds-pointer-arithmetic)
798
      for (index = 0; index < bytes; ++index) {
160✔
799
        if (lhs[index] != rhs[index]) {
140✔
800
          return false;
10✔
801
        }
10✔
802
      }
140✔
803
      // still here, now match remaining bits
804
      uint8_t bits = d_bits % 8;
20✔
805
      auto mask = static_cast<uint8_t>(~(0xFF >> bits));
20✔
806

807
      return ((lhs[index]) == (rhs[index] & mask));
20✔
808
      // NOLINTEND(cppcoreguidelines-pro-bounds-pointer-arithmetic)
809
    }
30✔
810
    return false;
×
811
  }
30✔
812

813
  //! If this ASCII IP address matches
814
  [[nodiscard]] bool match(const string& arg) const
815
  {
35✔
816
    ComboAddress address = makeComboAddress(arg);
35✔
817
    return match(&address);
35✔
818
  }
35✔
819

820
  //! If this IP address in native format matches
821
  [[nodiscard]] bool match4(uint32_t arg) const
822
  {
84✔
823
    return (arg & d_mask) == (ntohl(d_network.sin4.sin_addr.s_addr));
84✔
824
  }
84✔
825

826
  [[nodiscard]] string toString() const
827
  {
2,945✔
828
    return d_network.toStringNoInterface() + "/" + std::to_string((unsigned int)d_bits);
2,945✔
829
  }
2,945✔
830

831
  [[nodiscard]] string toStringNoMask() const
832
  {
1,501✔
833
    return d_network.toStringNoInterface();
1,501✔
834
  }
1,501✔
835

836
  [[nodiscard]] string toByteString() const
837
  {
88✔
838
    ostringstream tmp;
88✔
839

840
    tmp << (d_network.isIPv4() ? "\x04" : "\x06")
88✔
841
        << d_network.toByteString()
88✔
842
        << getBits();
88✔
843

844
    return tmp.str();
88✔
845
  }
88✔
846

847
  [[nodiscard]] const ComboAddress& getNetwork() const
848
  {
35,055,910✔
849
    return d_network;
35,055,910✔
850
  }
35,055,910✔
851

852
  [[nodiscard]] const ComboAddress& getMaskedNetwork() const
853
  {
34,951,313✔
854
    return getNetwork();
34,951,313✔
855
  }
34,951,313✔
856

857
  [[nodiscard]] uint8_t getBits() const
858
  {
93,837,022✔
859
    return d_bits;
93,837,022✔
860
  }
93,837,022✔
861

862
  [[nodiscard]] bool isIPv6() const
863
  {
23,357,225✔
864
    return d_network.sin6.sin6_family == AF_INET6;
23,357,225✔
865
  }
23,357,225✔
866

867
  [[nodiscard]] bool isIPv4() const
868
  {
40,666,785✔
869
    return d_network.sin4.sin_family == AF_INET;
40,666,785✔
870
  }
40,666,785✔
871

872
  bool operator<(const Netmask& rhs) const
873
  {
1,612,094✔
874
    if (empty() && !rhs.empty()) {
1,612,094✔
875
      return false;
6✔
876
    }
6✔
877
    if (!empty() && rhs.empty()) {
1,612,088✔
878
      return true;
3,180✔
879
    }
3,180✔
880
    if (d_bits > rhs.d_bits) {
1,608,908✔
881
      return true;
297,748✔
882
    }
297,748✔
883
    if (d_bits < rhs.d_bits) {
1,311,160✔
884
      return false;
154,892✔
885
    }
154,892✔
886

887
    return d_network < rhs.d_network;
1,156,268✔
888
  }
1,311,160✔
889

890
  bool operator>(const Netmask& rhs) const
891
  {
30✔
892
    return rhs.operator<(*this);
30✔
893
  }
30✔
894

895
  bool operator==(const Netmask& rhs) const
896
  {
32,081,373✔
897
    return std::tie(d_network, d_bits) == std::tie(rhs.d_network, rhs.d_bits);
32,081,373✔
898
  }
32,081,373✔
899

900
  bool operator!=(const Netmask& rhs) const
901
  {
56✔
902
    return !operator==(rhs);
56✔
903
  }
56✔
904

905
  [[nodiscard]] bool empty() const
906
  {
6,391,721✔
907
    return d_network.sin4.sin_family == 0;
6,391,721✔
908
  }
6,391,721✔
909

910
  //! Get normalized version of the netmask. This means that all address bits below the network bits are zero.
911
  [[nodiscard]] Netmask getNormalized() const
912
  {
34,903,786✔
913
    return {getMaskedNetwork(), d_bits};
34,903,786✔
914
  }
34,903,786✔
915
  //! Get Netmask for super network of this one (i.e. with fewer network bits)
916
  [[nodiscard]] Netmask getSuper(uint8_t bits) const
917
  {
700,177✔
918
    return {d_network, std::min(d_bits, bits)};
700,177✔
919
  }
700,177✔
920

921
  //! Get the total number of address bits for this netmask (either 32 or 128 depending on IP version)
922
  [[nodiscard]] uint8_t getFullBits() const
923
  {
1,471,552✔
924
    return d_network.getBits();
1,471,552✔
925
  }
1,471,552✔
926

927
  /** Get the value of the bit at the provided bit index. When the index >= 0,
928
      the index is relative to the LSB starting at index zero. When the index < 0,
929
      the index is relative to the MSB starting at index -1 and counting down.
930
      When the index points outside the network bits, it always yields zero.
931
   */
932
  [[nodiscard]] bool getBit(int bit) const
933
  {
132,659,407✔
934
    if (bit < -d_bits) {
132,659,407!
935
      return false;
×
936
    }
×
937
    if (bit >= 0) {
132,659,407!
938
      if (isIPv4()) {
×
939
        if (bit >= 32 || bit < (32 - d_bits)) {
×
940
          return false;
×
941
        }
×
942
      }
×
943
      if (isIPv6()) {
×
944
        if (bit >= 128 || bit < (128 - d_bits)) {
×
945
          return false;
×
946
        }
×
947
      }
×
948
    }
×
949
    return d_network.getBit(bit);
132,659,407✔
950
  }
132,659,407✔
951

952
  struct Hash
953
  {
954
    size_t operator()(const Netmask& netmask) const
955
    {
×
956
      return burtle(&netmask.d_bits, 1, ComboAddress::addressOnlyHash()(netmask.d_network));
×
957
    }
×
958
  };
959

960
private:
961
  ComboAddress d_network;
962
  uint32_t d_mask{0};
963
  uint8_t d_bits{0};
964
};
965

966
namespace std
967
{
968
template <>
969
struct hash<Netmask>
970
{
971
  auto operator()(const Netmask& netmask) const
972
  {
×
973
    return Netmask::Hash{}(netmask);
×
974
  }
×
975
};
976
}
977

978
/** Binary tree map implementation with <Netmask,T> pair.
979
 *
980
 * This is an binary tree implementation for storing attributes for IPv4 and IPv6 prefixes.
981
 * The most simple use case is simple NetmaskTree<bool> used by NetmaskGroup, which only
982
 * wants to know if given IP address is matched in the prefixes stored.
983
 *
984
 * This element is useful for anything that needs to *STORE* prefixes, and *MATCH* IP addresses
985
 * to a *LIST* of *PREFIXES*. Not the other way round.
986
 *
987
 * You can store IPv4 and IPv6 addresses to same tree, separate payload storage is kept per AFI.
988
 * Network prefixes (Netmasks) are always recorded in normalized fashion, meaning that only
989
 * the network bits are set. This is what is returned in the insert() and lookup() return
990
 * values.
991
 *
992
 * Use swap if you need to move the tree to another NetmaskTree instance, it is WAY faster
993
 * than using copy ctor or assignment operator, since it moves the nodes and tree root to
994
 * new home instead of actually recreating the tree.
995
 *
996
 * Please see NetmaskGroup for example of simple use case. Other usecases can be found
997
 * from GeoIPBackend and Sortlist, and from dnsdist.
998
 */
999
template <typename T, class K = Netmask>
1000
class NetmaskTree
1001
{
1002
public:
1003
  class Iterator;
1004

1005
  using key_type = K;
1006
  using value_type = T;
1007
  using node_type = std::pair<const key_type, value_type>;
1008
  using size_type = size_t;
1009
  using iterator = class Iterator;
1010

1011
private:
1012
  /** Single node in tree, internal use only.
1013
   */
1014
  class TreeNode : boost::noncopyable
1015
  {
1016
  public:
1017
    explicit TreeNode() noexcept :
1018
      parent(nullptr), node(), assigned(false), d_bits(0)
36,758✔
1019
    {
58,852✔
1020
    }
58,852✔
1021
    explicit TreeNode(const key_type& key) :
1022
      parent(nullptr), node({key.getNormalized(), value_type()}), assigned(false), d_bits(key.getFullBits())
604,627✔
1023
    {
1,472,671✔
1024
    }
1,472,671✔
1025

1026
    //<! Makes a left leaf node with specified key.
1027
    TreeNode* make_left(const key_type& key)
1028
    {
2,574✔
1029
      d_bits = node.first.getBits();
2,574✔
1030
      left = make_unique<TreeNode>(key);
2,574✔
1031
      left->parent = this;
2,574✔
1032
      return left.get();
2,574✔
1033
    }
2,574✔
1034

1035
    //<! Makes a right leaf node with specified key.
1036
    TreeNode* make_right(const key_type& key)
1037
    {
24,976✔
1038
      d_bits = node.first.getBits();
24,976✔
1039
      right = make_unique<TreeNode>(key);
24,976✔
1040
      right->parent = this;
24,976✔
1041
      return right.get();
24,976✔
1042
    }
24,976✔
1043

1044
    //<! Splits branch at indicated bit position by inserting key
1045
    TreeNode* split(const key_type& key, int bits)
1046
    {
5,302✔
1047
      if (parent == nullptr) {
5,302!
1048
        // not to be called on the root node
1049
        throw std::logic_error(
×
1050
          "NetmaskTree::TreeNode::split(): must not be called on root node");
×
1051
      }
×
1052

1053
      // determine reference from parent
1054
      unique_ptr<TreeNode>& parent_ref = (parent->left.get() == this ? parent->left : parent->right);
5,302!
1055
      if (parent_ref.get() != this) {
5,302!
1056
        throw std::logic_error(
×
1057
          "NetmaskTree::TreeNode::split(): parent node reference is invalid");
×
1058
      }
×
1059

1060
      // create new tree node for the new key and
1061
      // attach the new node under our former parent
1062
      auto new_intermediate_node = make_unique<TreeNode>(key);
5,302✔
1063
      new_intermediate_node->d_bits = bits;
5,302✔
1064
      new_intermediate_node->parent = parent;
5,302✔
1065
      auto* new_intermediate_node_raw = new_intermediate_node.get();
5,302✔
1066

1067
      // hereafter new_intermediate points to "this"
1068
      // ie the child of the new intermediate node
1069
      std::swap(parent_ref, new_intermediate_node);
5,302✔
1070
      // and we now assign this to current_node so
1071
      // it's clear it no longer refers to the new
1072
      // intermediate node
1073
      std::unique_ptr<TreeNode> current_node = std::move(new_intermediate_node);
5,302✔
1074

1075
      // attach "this" node below the new node
1076
      // (left or right depending on bit)
1077
      // technically the raw pointer escapes the duration of the
1078
      // unique pointer, but just below we store the unique pointer
1079
      // in the parent, so it lives as long as necessary
1080
      // coverity[escape]
1081
      current_node->parent = new_intermediate_node_raw;
5,302✔
1082
      if (current_node->node.first.getBit(-1 - bits)) {
5,302✔
1083
        new_intermediate_node_raw->right = std::move(current_node);
188✔
1084
      }
188✔
1085
      else {
5,114✔
1086
        new_intermediate_node_raw->left = std::move(current_node);
5,114✔
1087
      }
5,114✔
1088

1089
      return new_intermediate_node_raw;
5,302✔
1090
    }
5,302✔
1091

1092
    //<! Forks branch for new key at indicated bit position
1093
    TreeNode* fork(const key_type& key, int bits)
1094
    {
700,687✔
1095
      if (parent == nullptr) {
700,687!
1096
        // not to be called on the root node
1097
        throw std::logic_error(
×
1098
          "NetmaskTree::TreeNode::fork(): must not be called on root node");
×
1099
      }
×
1100

1101
      // determine reference from parent
1102
      unique_ptr<TreeNode>& parent_ref = (parent->left.get() == this ? parent->left : parent->right);
700,687!
1103
      if (parent_ref.get() != this) {
700,687!
1104
        throw std::logic_error(
×
1105
          "NetmaskTree::TreeNode::fork(): parent node reference is invalid");
×
1106
      }
×
1107

1108
      // create new tree node for the branch point
1109

1110
      // the current node will now be a child of the new branch node
1111
      // (hereafter new_child1 points to "this")
1112
      unique_ptr<TreeNode> new_child1 = std::move(parent_ref);
700,687✔
1113
      // attach the branch node under our former parent
1114
      parent_ref = make_unique<TreeNode>(node.first.getSuper(bits));
700,687✔
1115
      auto* branch_node = parent_ref.get();
700,687✔
1116
      branch_node->d_bits = bits;
700,687✔
1117
      branch_node->parent = parent;
700,687✔
1118

1119
      // create second new leaf node for the new key
1120
      unique_ptr<TreeNode> new_child2 = make_unique<TreeNode>(key);
700,687✔
1121
      TreeNode* new_node = new_child2.get();
700,687✔
1122

1123
      // attach the new child nodes below the branch node
1124
      // (left or right depending on bit)
1125
      new_child1->parent = branch_node;
700,687✔
1126
      new_child2->parent = branch_node;
700,687✔
1127
      if (new_child1->node.first.getBit(-1 - bits)) {
700,687✔
1128
        branch_node->right = std::move(new_child1);
4,231✔
1129
        branch_node->left = std::move(new_child2);
4,231✔
1130
      }
4,231✔
1131
      else {
696,456✔
1132
        branch_node->right = std::move(new_child2);
696,456✔
1133
        branch_node->left = std::move(new_child1);
696,456✔
1134
      }
696,456✔
1135
      // now we have attached the new unique pointers to the tree:
1136
      // - branch_node is below its parent
1137
      // - new_child1 (ourselves) is below branch_node
1138
      // - new_child2, the new leaf node, is below branch_node as well
1139

1140
      return new_node;
700,687✔
1141
    }
700,687✔
1142

1143
    //<! Traverse left branch depth-first
1144
    TreeNode* traverse_l()
1145
    {
202,290✔
1146
      TreeNode* tnode = this;
202,290✔
1147

1148
      while (tnode->left) {
380,386!
1149
        tnode = tnode->left.get();
178,096✔
1150
      }
178,096✔
1151
      return tnode;
202,290✔
1152
    }
202,290✔
1153

1154
    //<! Traverse tree depth-first and in-order (L-N-R)
1155
    TreeNode* traverse_lnr()
1156
    {
383,577✔
1157
      TreeNode* tnode = this;
383,577✔
1158

1159
      // precondition: descended left as deep as possible
1160
      if (tnode->right) {
383,577✔
1161
        // descend right
1162
        tnode = tnode->right.get();
170,582✔
1163
        // descend left as deep as possible and return next node
1164
        return tnode->traverse_l();
170,582✔
1165
      }
170,582✔
1166

1167
      // ascend to parent
1168
      while (tnode->parent != nullptr) {
383,577✔
1169
        TreeNode* prev_child = tnode;
350,713✔
1170
        tnode = tnode->parent;
350,713✔
1171

1172
        // return this node, but only when we come from the left child branch
1173
        if (tnode->left && tnode->left.get() == prev_child) {
350,713✔
1174
          return tnode;
180,131✔
1175
        }
180,131✔
1176
      }
350,713✔
1177
      return nullptr;
32,864✔
1178
    }
212,995✔
1179

1180
    //<! Traverse only assigned nodes
1181
    TreeNode* traverse_lnr_assigned()
1182
    {
144,936✔
1183
      TreeNode* tnode = traverse_lnr();
144,936✔
1184

1185
      while (tnode != nullptr && !tnode->assigned) {
254,604!
1186
        tnode = tnode->traverse_lnr();
109,668✔
1187
      }
109,668✔
1188
      return tnode;
144,936✔
1189
    }
144,936✔
1190

1191
    unique_ptr<TreeNode> left;
1192
    unique_ptr<TreeNode> right;
1193
    TreeNode* parent;
1194

1195
    node_type node;
1196
    bool assigned; //<! Whether this node is assigned-to by the application
1197

1198
    int d_bits; //<! How many bits have been used so far
1199
  };
1200

1201
  void cleanup_tree(TreeNode* node)
1202
  {
47,278✔
1203
    // only cleanup this node if it has no children and node not assigned
1204
    if (!(node->left || node->right || node->assigned)) {
47,278!
1205
      // get parent node ptr
1206
      TreeNode* pparent = node->parent;
24,681✔
1207
      // delete this node
1208
      if (pparent) {
24,681✔
1209
        if (pparent->left.get() == node) {
24,654✔
1210
          pparent->left.reset();
3,389✔
1211
        }
3,389✔
1212
        else {
21,265✔
1213
          pparent->right.reset();
21,265✔
1214
        }
21,265✔
1215
        // now recurse up to the parent
1216
        cleanup_tree(pparent);
24,654✔
1217
      }
24,654✔
1218
    }
24,681✔
1219
  }
47,278✔
1220

1221
  void copyTree(const NetmaskTree& rhs)
1222
  {
31,708✔
1223
    try {
31,708✔
1224
      TreeNode* node = rhs.d_root.get();
31,708✔
1225
      if (node != nullptr) {
31,708!
1226
        node = node->traverse_l();
31,708✔
1227
      }
31,708✔
1228
      while (node != nullptr) {
160,681✔
1229
        if (node->assigned) {
128,973✔
1230
          insert(node->node.first).second = node->node.second;
66,397✔
1231
        }
66,397✔
1232
        node = node->traverse_lnr();
128,973✔
1233
      }
128,973✔
1234
    }
31,708✔
1235
    catch (const NetmaskException&) {
31,708✔
1236
      abort();
×
1237
    }
×
1238
    catch (const std::logic_error&) {
31,708✔
1239
      abort();
×
1240
    }
×
1241
  }
31,708✔
1242

1243
public:
1244
  class Iterator
1245
  {
1246
  public:
1247
    using value_type = node_type;
1248
    using reference = node_type&;
1249
    using pointer = node_type*;
1250
    using iterator_category = std::forward_iterator_tag;
1251
    using difference_type = size_type;
1252

1253
  private:
1254
    friend class NetmaskTree;
1255

1256
    const NetmaskTree* d_tree;
1257
    TreeNode* d_node;
1258

1259
    Iterator(const NetmaskTree* tree, TreeNode* node) :
1260
      d_tree(tree), d_node(node)
2,346✔
1261
    {
2,698✔
1262
    }
2,698✔
1263

1264
  public:
1265
    Iterator() :
1266
      d_tree(nullptr), d_node(nullptr) {}
×
1267

1268
    Iterator& operator++() // prefix
1269
    {
141,587✔
1270
      if (d_node == nullptr) {
141,587!
1271
        throw std::logic_error(
×
1272
          "NetmaskTree::Iterator::operator++: iterator is invalid");
×
1273
      }
×
1274
      d_node = d_node->traverse_lnr_assigned();
141,587✔
1275
      return *this;
141,587✔
1276
    }
141,587✔
1277
    Iterator operator++(int) // postfix
1278
    {
×
1279
      Iterator tmp(*this);
×
1280
      operator++();
×
1281
      return tmp;
×
1282
    }
×
1283

1284
    reference operator*()
1285
    {
78,163✔
1286
      if (d_node == nullptr) {
78,163!
1287
        throw std::logic_error(
×
1288
          "NetmaskTree::Iterator::operator*: iterator is invalid");
×
1289
      }
×
1290
      return d_node->node;
78,163✔
1291
    }
78,163✔
1292

1293
    pointer operator->()
1294
    {
328✔
1295
      if (d_node == nullptr) {
328!
1296
        throw std::logic_error(
×
1297
          "NetmaskTree::Iterator::operator->: iterator is invalid");
×
1298
      }
×
1299
      return &d_node->node;
328✔
1300
    }
328✔
1301

1302
    bool operator==(const Iterator& rhs)
1303
    {
142,936✔
1304
      return (d_tree == rhs.d_tree && d_node == rhs.d_node);
142,936!
1305
    }
142,936✔
1306
    bool operator!=(const Iterator& rhs)
1307
    {
142,936✔
1308
      return !(*this == rhs);
142,936✔
1309
    }
142,936✔
1310
  };
1311

1312
  NetmaskTree() noexcept :
1313
    d_root(new TreeNode()), d_left(nullptr)
7,320✔
1314
  {
24,353✔
1315
  }
24,353✔
1316

1317
  NetmaskTree(const NetmaskTree& rhs) :
1318
    d_root(new TreeNode()), d_left(nullptr)
29,253✔
1319
  {
31,690✔
1320
    copyTree(rhs);
31,690✔
1321
  }
31,690✔
1322

1323
  ~NetmaskTree() = default;
68,238✔
1324

1325
  NetmaskTree& operator=(const NetmaskTree& rhs)
1326
  {
18✔
1327
    if (this != &rhs) {
18!
1328
      clear();
18✔
1329
      copyTree(rhs);
18✔
1330
    }
18✔
1331
    return *this;
18✔
1332
  }
18✔
1333

1334
  NetmaskTree(NetmaskTree&&) noexcept = default;
29,820✔
1335
  NetmaskTree& operator=(NetmaskTree&&) noexcept = default;
3,392✔
1336

1337
  [[nodiscard]] iterator begin() const
1338
  {
1,294✔
1339
    return Iterator(this, d_left);
1,294✔
1340
  }
1,294✔
1341
  [[nodiscard]] iterator end() const
1342
  {
1,294✔
1343
    return Iterator(this, nullptr);
1,294✔
1344
  }
1,294✔
1345
  iterator begin()
1346
  {
55✔
1347
    return Iterator(this, d_left);
55✔
1348
  }
55✔
1349
  iterator end()
1350
  {
55✔
1351
    return Iterator(this, nullptr);
55✔
1352
  }
55✔
1353

1354
  node_type& insert(const string& mask)
1355
  {
15✔
1356
    return insert(key_type(mask));
15✔
1357
  }
15✔
1358

1359
  //<! Creates new value-pair in tree and returns it.
1360
  node_type& insert(const key_type& key)
1361
  {
772,822✔
1362
    TreeNode* node{};
772,822✔
1363
    bool is_left = true;
772,822✔
1364

1365
    // we turn left on IPv4 and right on IPv6
1366
    if (key.isIPv4()) {
772,822!
1367
      node = d_root->left.get();
398,083✔
1368
      if (node == nullptr) {
398,083✔
1369

1370
        d_root->left = make_unique<TreeNode>(key);
22,922✔
1371
        node = d_root->left.get();
22,922✔
1372
        node->assigned = true;
22,922✔
1373
        node->parent = d_root.get();
22,922✔
1374
        d_size++;
22,922✔
1375
        d_left = node;
22,922✔
1376
        return node->node;
22,922✔
1377
      }
22,922✔
1378
    }
398,083✔
1379
    else if (key.isIPv6()) {
374,739!
1380
      node = d_root->right.get();
374,739✔
1381
      if (node == nullptr) {
374,739!
1382

1383
        d_root->right = make_unique<TreeNode>(key);
15,523✔
1384
        node = d_root->right.get();
15,523✔
1385
        node->assigned = true;
15,523✔
1386
        node->parent = d_root.get();
15,523✔
1387
        d_size++;
15,523✔
1388
        if (!d_root->left) {
15,523✔
1389
          d_left = node;
25✔
1390
        }
25✔
1391
        return node->node;
15,523✔
1392
      }
15,523✔
1393
      if (d_root->left) {
359,216!
1394
        is_left = false;
359,204✔
1395
      }
359,204✔
1396
    }
359,216✔
1397
    else {
×
1398
      throw NetmaskException("invalid address family");
×
1399
    }
×
1400

1401
    // we turn left on 0 and right on 1
1402
    int bits = 0;
734,377✔
1403
    for (; bits < key.getBits(); bits++) {
32,648,281✔
1404
      bool vall = key.getBit(-1 - bits);
32,642,141✔
1405

1406
      if (bits >= node->d_bits) {
32,642,141✔
1407
        // the end of the current node is reached; continue with the next
1408
        if (vall) {
5,000,867✔
1409
          if (node->left || node->assigned) {
4,846,238!
1410
            is_left = false;
4,846,238✔
1411
          }
4,846,238✔
1412
          if (!node->right) {
4,846,238!
1413
            // the right branch doesn't exist yet; attach our key here
1414
            node = node->make_right(key);
1,859✔
1415
            break;
1,859✔
1416
          }
1,859✔
1417
          node = node->right.get();
4,844,379✔
1418
        }
4,844,379✔
1419
        else {
154,629✔
1420
          if (!node->left) {
154,629✔
1421
            // the left branch doesn't exist yet; attach our key here
1422
            node = node->make_left(key);
56✔
1423
            break;
56✔
1424
          }
56✔
1425
          node = node->left.get();
154,573✔
1426
        }
154,573✔
1427
        continue;
4,998,952✔
1428
      }
5,000,867✔
1429
      if (bits >= node->node.first.getBits()) {
27,641,274✔
1430
        // the matching branch ends here, yet the key netmask has more bits; add a
1431
        // child node below the existing branch leaf.
1432
        if (vall) {
25,635!
1433
          if (node->assigned) {
23,117!
1434
            is_left = false;
23,117✔
1435
          }
23,117✔
1436
          node = node->make_right(key);
23,117✔
1437
        }
23,117✔
1438
        else {
2,518✔
1439
          node = node->make_left(key);
2,518✔
1440
        }
2,518✔
1441
        break;
25,635✔
1442
      }
25,635✔
1443
      bool valr = node->node.first.getBit(-1 - bits);
27,615,639✔
1444
      if (vall != valr) {
27,615,639✔
1445
        if (vall) {
700,687✔
1446
          is_left = false;
696,456✔
1447
        }
696,456✔
1448
        // the branch matches just upto this point, yet continues in a different
1449
        // direction; fork the branch.
1450
        node = node->fork(key, bits);
700,687✔
1451
        break;
700,687✔
1452
      }
700,687✔
1453
    }
27,615,639✔
1454

1455
    if (node->node.first.getBits() > key.getBits()) {
734,377!
1456
      // key is a super-network of the matching node; split the branch and
1457
      // insert a node for the key above the matching node.
1458
      node = node->split(key, key.getBits());
5,302✔
1459
    }
5,302✔
1460

1461
    if (node->left) {
734,377!
1462
      is_left = false;
5,864✔
1463
    }
5,864✔
1464

1465
    node_type& value = node->node;
734,377✔
1466

1467
    if (!node->assigned) {
734,377!
1468
      // only increment size if not assigned before
1469
      d_size++;
733,824✔
1470
      // update the pointer to the left-most tree node
1471
      if (is_left) {
733,824✔
1472
        d_left = node;
781✔
1473
      }
781✔
1474
      node->assigned = true;
733,824✔
1475
    }
733,824✔
1476
    else {
553✔
1477
      // tree node exists for this value
1478
      if (is_left && d_left != node) {
553!
1479
        throw std::logic_error(
×
1480
          "NetmaskTree::insert(): lost track of left-most node in tree");
×
1481
      }
×
1482
    }
553✔
1483

1484
    return value;
734,377✔
1485
  }
734,377✔
1486

1487
  //<! Creates or updates value
1488
  void insert_or_assign(const key_type& mask, const value_type& value)
1489
  {
69✔
1490
    insert(mask).second = value;
69✔
1491
  }
69✔
1492

1493
  void insert_or_assign(const string& mask, const value_type& value)
1494
  {
×
1495
    insert(key_type(mask)).second = value;
×
1496
  }
×
1497

1498
  //<! check if given key is present in TreeMap
1499
  [[nodiscard]] bool has_key(const key_type& key) const
1500
  {
80✔
1501
    const node_type* ptr = lookup(key);
80✔
1502
    return ptr && ptr->first == key;
80!
1503
  }
80✔
1504

1505
  //<! Returns "best match" for key_type, which might not be value
1506
  [[nodiscard]] node_type* lookup(const key_type& value) const
1507
  {
332,519✔
1508
    uint8_t max_bits = value.getBits();
332,519✔
1509
    return lookupImpl(value, max_bits);
332,519✔
1510
  }
332,519✔
1511

1512
  //<! Perform best match lookup for value, using at most max_bits
1513
  [[nodiscard]] node_type* lookup(const ComboAddress& value, int max_bits = 128) const
1514
  {
1,649,938✔
1515
    uint8_t addr_bits = value.getBits();
1,649,938✔
1516
    if (max_bits < 0 || max_bits > addr_bits) {
1,649,948!
1517
      max_bits = addr_bits;
992,639✔
1518
    }
992,639✔
1519

1520
    return lookupImpl(key_type(value, max_bits), max_bits);
1,649,938✔
1521
  }
1,649,938✔
1522

1523
  //<! Removes key from TreeMap.
1524
  void erase(const key_type& key)
1525
  {
22,631✔
1526
    TreeNode* node = nullptr;
22,631✔
1527

1528
    if (key.isIPv4()) {
22,631✔
1529
      node = d_root->left.get();
22,596✔
1530
    }
22,596✔
1531
    else if (key.isIPv6()) {
35!
1532
      node = d_root->right.get();
35✔
1533
    }
35✔
1534
    else {
×
1535
      throw NetmaskException("invalid address family");
×
1536
    }
×
1537
    // no tree, no value
1538
    if (node == nullptr) {
22,631!
1539
      return;
×
1540
    }
×
1541
    int bits = 0;
22,631✔
1542
    for (; node && bits < key.getBits(); bits++) {
574,292!
1543
      bool vall = key.getBit(-1 - bits);
551,666✔
1544
      if (bits >= node->d_bits) {
551,666✔
1545
        // the end of the current node is reached; continue with the next
1546
        if (vall) {
356,718!
1547
          node = node->right.get();
244,732✔
1548
        }
244,732✔
1549
        else {
111,986✔
1550
          node = node->left.get();
111,986✔
1551
        }
111,986✔
1552
        continue;
356,718✔
1553
      }
356,718✔
1554
      if (bits >= node->node.first.getBits()) {
194,948!
1555
        // the matching branch ends here
1556
        if (key.getBits() != node->node.first.getBits()) {
×
1557
          node = nullptr;
×
1558
        }
×
1559
        break;
×
1560
      }
×
1561
      bool valr = node->node.first.getBit(-1 - bits);
194,948✔
1562
      if (vall != valr) {
194,948✔
1563
        // the branch matches just upto this point, yet continues in a different
1564
        // direction
1565
        node = nullptr;
5✔
1566
        break;
5✔
1567
      }
5✔
1568
    }
194,948✔
1569
    if (node) {
22,631✔
1570
      if (d_size == 0) {
22,624!
1571
        throw std::logic_error(
×
1572
          "NetmaskTree::erase(): size of tree is zero before erase");
×
1573
      }
×
1574
      d_size--;
22,624✔
1575
      node->assigned = false;
22,624✔
1576
      node->node.second = value_type();
22,624✔
1577

1578
      if (node == d_left) {
22,624!
1579
        d_left = d_left->traverse_lnr_assigned();
3,349✔
1580
      }
3,349✔
1581
      cleanup_tree(node);
22,624✔
1582
    }
22,624✔
1583
  }
22,631✔
1584

1585
  void erase(const string& key)
1586
  {
15✔
1587
    erase(key_type(key));
15✔
1588
  }
15✔
1589

1590
  //<! checks whether the container is empty.
1591
  [[nodiscard]] bool empty() const
1592
  {
130,198✔
1593
    return (d_size == 0);
130,198✔
1594
  }
130,198✔
1595

1596
  //<! returns the number of elements
1597
  [[nodiscard]] size_type size() const
1598
  {
700,841✔
1599
    return d_size;
700,841✔
1600
  }
700,841✔
1601

1602
  //<! See if given ComboAddress matches any prefix
1603
  [[nodiscard]] bool match(const ComboAddress& value) const
1604
  {
3,045✔
1605
    return (lookup(value) != nullptr);
3,045✔
1606
  }
3,045✔
1607

1608
  [[nodiscard]] bool match(const std::string& value) const
1609
  {
×
1610
    return match(ComboAddress(value));
×
1611
  }
×
1612

1613
  //<! Clean out the tree
1614
  void clear()
1615
  {
2,809✔
1616
    d_root = make_unique<TreeNode>();
2,809✔
1617
    d_left = nullptr;
2,809✔
1618
    d_size = 0;
2,809✔
1619
  }
2,809✔
1620

1621
  //<! swaps the contents with another NetmaskTree
1622
  void swap(NetmaskTree& rhs) noexcept
1623
  {
211✔
1624
    std::swap(d_root, rhs.d_root);
211✔
1625
    std::swap(d_left, rhs.d_left);
211✔
1626
    std::swap(d_size, rhs.d_size);
211✔
1627
  }
211✔
1628

1629
private:
1630
  [[nodiscard]] node_type* lookupImpl(const key_type& value, uint8_t max_bits) const
1631
  {
1,982,433✔
1632
    TreeNode* node = nullptr;
1,982,433✔
1633

1634
    if (value.isIPv4()) {
1,982,456!
1635
      node = d_root->left.get();
1,222,325✔
1636
    }
1,222,325✔
1637
    else if (value.isIPv6()) {
4,295,727,424!
1638
      node = d_root->right.get();
760,127✔
1639
    }
760,127✔
1640
    else {
6,442,450,944✔
1641
      throw NetmaskException("invalid address family");
6,442,450,944✔
1642
    }
6,442,450,944✔
1643
    if (node == nullptr) {
1,982,452!
1644
      return nullptr;
251,890✔
1645
    }
251,890✔
1646

1647
    node_type* ret = nullptr;
1,730,562✔
1648

1649
    int bits = 0;
1,730,562✔
1650
    for (; bits < max_bits; bits++) {
57,589,755✔
1651
      bool vall = value.getBit(-1 - bits);
57,123,390✔
1652
      if (bits >= node->d_bits) {
57,123,390✔
1653
        // the end of the current node is reached; continue with the next
1654
        // (we keep track of last assigned node)
1655
        if (node->assigned && bits == node->node.first.getBits()) {
12,754,004!
1656
          ret = &node->node;
1,134,089✔
1657
        }
1,134,089✔
1658
        if (vall) {
12,754,004✔
1659
          if (!node->right) {
5,716,645!
1660
            break;
19,267✔
1661
          }
19,267✔
1662
          node = node->right.get();
5,697,378✔
1663
        }
5,697,378✔
1664
        else {
7,037,359✔
1665
          if (!node->left) {
7,037,359!
1666
            break;
19,460✔
1667
          }
19,460✔
1668
          node = node->left.get();
7,017,899✔
1669
        }
7,017,899✔
1670
        continue;
12,715,277✔
1671
      }
12,754,004✔
1672
      if (bits >= node->node.first.getBits()) {
44,369,386✔
1673
        // the matching branch ends here
1674
        break;
375,545✔
1675
      }
375,545✔
1676
      bool valr = node->node.first.getBit(-1 - bits);
43,993,841✔
1677
      if (vall != valr) {
43,993,841!
1678
        // the branch matches just upto this point, yet continues in a different
1679
        // direction
1680
        break;
849,939✔
1681
      }
849,939✔
1682
    }
43,993,841✔
1683
    // needed if we did not find one in loop
1684
    if (node->assigned && bits == node->node.first.getBits()) {
1,730,566!
1685
      ret = &node->node;
879,094✔
1686
    }
879,094✔
1687
    // this can be nullptr.
1688
    return ret;
1,730,562✔
1689
  }
1,982,452✔
1690

1691
  unique_ptr<TreeNode> d_root; //<! Root of our tree
1692
  TreeNode* d_left;
1693
  size_type d_size{0};
1694
};
1695

1696
/** This class represents a group of supplemental Netmask classes. An IP address matches
1697
    if it is matched by one or more of the Netmask objects within.
1698
*/
1699
class NetmaskGroup
1700
{
1701
public:
1702
  NetmaskGroup() noexcept = default;
11,935✔
1703

1704
  //! If this IP address is matched by any of the classes within
1705

1706
  bool match(const ComboAddress* address) const
1707
  {
212,580✔
1708
    const auto& ret = tree.lookup(*address);
212,580✔
1709
    if (ret != nullptr) {
212,580✔
1710
      return ret->second;
21,653✔
1711
    }
21,653✔
1712
    return false;
190,927✔
1713
  }
212,580✔
1714

1715
  [[nodiscard]] bool match(const ComboAddress& address) const
1716
  {
198,930✔
1717
    return match(&address);
198,930✔
1718
  }
198,930✔
1719

1720
  bool lookup(const ComboAddress* address, Netmask* nmp) const
1721
  {
×
1722
    const auto& ret = tree.lookup(*address);
×
1723
    if (ret != nullptr) {
×
1724
      if (nmp != nullptr) {
×
1725
        *nmp = ret->first;
×
1726
      }
×
1727
      return ret->second;
×
1728
    }
×
1729
    return false;
×
1730
  }
×
1731

1732
  bool lookup(const ComboAddress& address, Netmask* nmp) const
1733
  {
×
1734
    return lookup(&address, nmp);
×
1735
  }
×
1736

1737
  //! Add this string to the list of possible matches
1738
  void addMask(const string& address, bool positive = true)
1739
  {
15,098✔
1740
    if (!address.empty() && address[0] == '!') {
15,098!
1741
      addMask(Netmask(address.substr(1)), false);
1,299✔
1742
    }
1,299✔
1743
    else {
13,799✔
1744
      addMask(Netmask(address), positive);
13,799✔
1745
    }
13,799✔
1746
  }
15,098✔
1747

1748
  //! Add this Netmask to the list of possible matches
1749
  void addMask(const Netmask& netmask, bool positive = true)
1750
  {
14,868✔
1751
    tree.insert(netmask).second = positive;
14,868✔
1752
  }
14,868✔
1753

1754
  void addMasks(const NetmaskGroup& group, boost::optional<bool> positive)
1755
  {
2✔
1756
    for (const auto& entry : group.tree) {
2✔
1757
      addMask(entry.first, positive ? *positive : entry.second);
2!
1758
    }
2✔
1759
  }
2✔
1760

1761
  //! Delete this Netmask from the list of possible matches
1762
  void deleteMask(const Netmask& netmask)
1763
  {
×
1764
    tree.erase(netmask);
×
1765
  }
×
1766

1767
  void deleteMasks(const NetmaskGroup& group)
1768
  {
×
1769
    for (const auto& entry : group.tree) {
×
1770
      deleteMask(entry.first);
×
1771
    }
×
1772
  }
×
1773

1774
  void deleteMask(const std::string& address)
1775
  {
×
1776
    if (!address.empty()) {
×
1777
      deleteMask(Netmask(address));
×
1778
    }
×
1779
  }
×
1780

1781
  void clear()
1782
  {
1,592✔
1783
    tree.clear();
1,592✔
1784
  }
1,592✔
1785

1786
  [[nodiscard]] bool empty() const
1787
  {
128,725✔
1788
    return tree.empty();
128,725✔
1789
  }
128,725✔
1790

1791
  [[nodiscard]] size_t size() const
1792
  {
326✔
1793
    return tree.size();
326✔
1794
  }
326✔
1795

1796
  [[nodiscard]] string toString() const
1797
  {
31✔
1798
    ostringstream str;
31✔
1799
    for (auto iter = tree.begin(); iter != tree.end(); ++iter) {
195✔
1800
      if (iter != tree.begin()) {
164✔
1801
        str << ", ";
133✔
1802
      }
133✔
1803
      if (!(iter->second)) {
164✔
1804
        str << "!";
30✔
1805
      }
30✔
1806
      str << iter->first.toString();
164✔
1807
    }
164✔
1808
    return str.str();
31✔
1809
  }
31✔
1810

1811
  [[nodiscard]] std::vector<std::string> toStringVector() const
1812
  {
985✔
1813
    std::vector<std::string> out;
985✔
1814
    out.reserve(tree.size());
985✔
1815
    for (const auto& entry : tree) {
1,668✔
1816
      out.push_back((entry.second ? "" : "!") + entry.first.toString());
1,668!
1817
    }
1,668✔
1818
    return out;
985✔
1819
  }
985✔
1820

1821
  void toMasks(const string& ips)
1822
  {
1,734✔
1823
    vector<string> parts;
1,734✔
1824
    stringtok(parts, ips, ", \t");
1,734✔
1825

1826
    for (const auto& part : parts) {
2,601✔
1827
      addMask(part);
2,273✔
1828
    }
2,273✔
1829
  }
1,734✔
1830

1831
private:
1832
  NetmaskTree<bool> tree;
1833
};
1834

1835
struct SComboAddress
1836
{
1837
  SComboAddress(const ComboAddress& orig) :
1838
    ca(orig) {}
4,841✔
1839
  ComboAddress ca;
1840
  bool operator<(const SComboAddress& rhs) const
1841
  {
×
1842
    return ComboAddress::addressOnlyLessThan()(ca, rhs.ca);
×
1843
  }
×
1844
  operator const ComboAddress&() const
1845
  {
×
1846
    return ca;
×
1847
  }
×
1848
};
1849

1850
class NetworkError : public runtime_error
1851
{
1852
public:
1853
  NetworkError(const string& why = "Network Error") :
1854
    runtime_error(why.c_str())
8✔
1855
  {}
213✔
1856
  NetworkError(const char* why = "Network Error") :
1857
    runtime_error(why)
28✔
1858
  {}
28✔
1859
};
1860

1861
class AddressAndPortRange
1862
{
1863
public:
1864
  AddressAndPortRange() :
1865
    d_addrMask(0), d_portMask(0)
1,287✔
1866
  {
1,287✔
1867
    d_addr.sin4.sin_family = 0; // disable this doing anything useful
1,287✔
1868
    d_addr.sin4.sin_port = 0; // this guarantees d_network compares identical
1,287✔
1869
  }
1,287✔
1870

1871
  AddressAndPortRange(ComboAddress address, uint8_t addrMask, uint8_t portMask = 0) :
1872
    d_addr(address), d_addrMask(addrMask), d_portMask(portMask)
291,544✔
1873
  {
291,544✔
1874
    if (!d_addr.isIPv4()) {
291,544✔
1875
      d_portMask = 0;
66,523✔
1876
    }
66,523✔
1877

1878
    uint16_t port = d_addr.getPort();
291,544✔
1879
    if (d_portMask < 16) {
291,544✔
1880
      auto mask = static_cast<uint16_t>(~(0xFFFF >> d_portMask));
88,814✔
1881
      port = port & mask;
88,814✔
1882
    }
88,814✔
1883

1884
    if (d_addrMask < d_addr.getBits()) {
291,544✔
1885
      if (d_portMask > 0) {
2,170!
1886
        throw std::runtime_error("Trying to create a AddressAndPortRange with a reduced address mask (" + std::to_string(d_addrMask) + ") and a port range (" + std::to_string(d_portMask) + ")");
×
1887
      }
×
1888
      d_addr = Netmask(d_addr, d_addrMask).getMaskedNetwork();
2,170✔
1889
    }
2,170✔
1890
    d_addr.setPort(port);
291,544✔
1891
  }
291,544✔
1892

1893
  [[nodiscard]] uint8_t getFullBits() const
1894
  {
60,337,775✔
1895
    return d_addr.getBits() + 16;
60,337,775✔
1896
  }
60,337,775✔
1897

1898
  [[nodiscard]] uint8_t getBits() const
1899
  {
15,656,758✔
1900
    if (d_addrMask < d_addr.getBits()) {
15,656,758✔
1901
      return d_addrMask;
34,300✔
1902
    }
34,300✔
1903

1904
    return d_addr.getBits() + d_portMask;
15,622,458✔
1905
  }
15,656,758✔
1906

1907
  /** Get the value of the bit at the provided bit index. When the index >= 0,
1908
      the index is relative to the LSB starting at index zero. When the index < 0,
1909
      the index is relative to the MSB starting at index -1 and counting down.
1910
  */
1911
  [[nodiscard]] bool getBit(int index) const
1912
  {
30,168,316✔
1913
    if (index >= getFullBits()) {
30,168,316!
1914
      return false;
×
1915
    }
×
1916
    if (index < 0) {
30,168,316!
1917
      index = getFullBits() + index;
30,168,316✔
1918
    }
30,168,316✔
1919

1920
    if (index < 16) {
30,168,316✔
1921
      /* we are into the port bits */
1922
      uint16_t port = d_addr.getPort();
688,807✔
1923
      return ((port & (1U << index)) != 0x0000);
688,807✔
1924
    }
688,807✔
1925

1926
    index -= 16;
29,479,509✔
1927

1928
    return d_addr.getBit(index);
29,479,509✔
1929
  }
30,168,316✔
1930

1931
  [[nodiscard]] bool isIPv4() const
1932
  {
269,854✔
1933
    return d_addr.isIPv4();
269,854✔
1934
  }
269,854✔
1935

1936
  [[nodiscard]] bool isIPv6() const
1937
  {
65,569✔
1938
    return d_addr.isIPv6();
65,569✔
1939
  }
65,569✔
1940

1941
  [[nodiscard]] AddressAndPortRange getNormalized() const
1942
  {
1,143✔
1943
    return {d_addr, d_addrMask, d_portMask};
1,143✔
1944
  }
1,143✔
1945

1946
  [[nodiscard]] AddressAndPortRange getSuper(uint8_t bits) const
1947
  {
510✔
1948
    if (bits <= d_addrMask) {
510!
1949
      return {d_addr, bits, 0};
510✔
1950
    }
510✔
1951
    if (bits <= d_addrMask + d_portMask) {
×
1952
      return {d_addr, d_addrMask, static_cast<uint8_t>(d_portMask - (bits - d_addrMask))};
×
1953
    }
×
1954

1955
    return {d_addr, d_addrMask, d_portMask};
×
1956
  }
×
1957

1958
  [[nodiscard]] const ComboAddress& getNetwork() const
1959
  {
348✔
1960
    return d_addr;
348✔
1961
  }
348✔
1962

1963
  [[nodiscard]] string toString() const
1964
  {
55✔
1965
    if (d_addrMask < d_addr.getBits() || d_portMask == 0) {
55✔
1966
      return d_addr.toStringNoInterface() + "/" + std::to_string(d_addrMask);
54✔
1967
    }
54✔
1968
    return d_addr.toStringNoInterface() + ":" + std::to_string(d_addr.getPort()) + "/" + std::to_string(d_portMask);
1✔
1969
  }
55✔
1970

1971
  [[nodiscard]] bool empty() const
1972
  {
×
1973
    return d_addr.sin4.sin_family == 0;
×
1974
  }
×
1975

1976
  bool operator==(const AddressAndPortRange& rhs) const
1977
  {
20,559✔
1978
    return std::tie(d_addr, d_addrMask, d_portMask) == std::tie(rhs.d_addr, rhs.d_addrMask, rhs.d_portMask);
20,559✔
1979
  }
20,559✔
1980

1981
  bool operator<(const AddressAndPortRange& rhs) const
1982
  {
×
1983
    if (empty() && !rhs.empty()) {
×
1984
      return false;
×
1985
    }
×
1986

1987
    if (!empty() && rhs.empty()) {
×
1988
      return true;
×
1989
    }
×
1990

1991
    if (d_addrMask > rhs.d_addrMask) {
×
1992
      return true;
×
1993
    }
×
1994

1995
    if (d_addrMask < rhs.d_addrMask) {
×
1996
      return false;
×
1997
    }
×
1998

1999
    if (d_addr < rhs.d_addr) {
×
2000
      return true;
×
2001
    }
×
2002

2003
    if (d_addr > rhs.d_addr) {
×
2004
      return false;
×
2005
    }
×
2006

2007
    if (d_portMask > rhs.d_portMask) {
×
2008
      return true;
×
2009
    }
×
2010

2011
    if (d_portMask < rhs.d_portMask) {
×
2012
      return false;
×
2013
    }
×
2014

2015
    return d_addr.getPort() < rhs.d_addr.getPort();
×
2016
  }
×
2017

2018
  bool operator>(const AddressAndPortRange& rhs) const
2019
  {
×
2020
    return rhs.operator<(*this);
×
2021
  }
×
2022

2023
  struct hash
2024
  {
2025
    uint32_t operator()(const AddressAndPortRange& apr) const
2026
    {
28,748✔
2027
      ComboAddress::addressOnlyHash hashOp;
28,748✔
2028
      uint16_t port = apr.d_addr.getPort();
28,748✔
2029
      /* it's fine to hash the whole address and port because the non-relevant parts have
2030
         been masked to 0 */
2031
      return burtle(reinterpret_cast<const unsigned char*>(&port), sizeof(port), hashOp(apr.d_addr)); // NOLINT(cppcoreguidelines-pro-type-reinterpret-cast)
28,748✔
2032
    }
28,748✔
2033
  };
2034

2035
private:
2036
  ComboAddress d_addr;
2037
  uint8_t d_addrMask;
2038
  /* only used for v4 addresses */
2039
  uint8_t d_portMask;
2040
};
2041

2042
int SSocket(int family, int type, int flags);
2043
int SConnect(int sockfd, const ComboAddress& remote);
2044
/* tries to connect to remote for a maximum of timeout seconds.
2045
   sockfd should be set to non-blocking beforehand.
2046
   returns 0 on success (the socket is writable), throw a
2047
   runtime_error otherwise */
2048
int SConnectWithTimeout(int sockfd, const ComboAddress& remote, const struct timeval& timeout);
2049
int SBind(int sockfd, const ComboAddress& local);
2050
int SAccept(int sockfd, ComboAddress& remote);
2051
int SListen(int sockfd, int limit);
2052
int SSetsockopt(int sockfd, int level, int opname, int value);
2053
void setSocketIgnorePMTU(int sockfd, int family);
2054
void setSocketForcePMTU(int sockfd, int family);
2055
bool setReusePort(int sockfd);
2056

2057
#if defined(IP_PKTINFO)
2058
#define GEN_IP_PKTINFO IP_PKTINFO
113✔
2059
#elif defined(IP_RECVDSTADDR)
2060
#define GEN_IP_PKTINFO IP_RECVDSTADDR
2061
#endif
2062

2063
bool IsAnyAddress(const ComboAddress& addr);
2064
bool HarvestDestinationAddress(const struct msghdr* msgh, ComboAddress* destination);
2065
bool HarvestTimestamp(struct msghdr* msgh, struct timeval* timeval);
2066
void fillMSGHdr(struct msghdr* msgh, struct iovec* iov, cmsgbuf_aligned* cbuf, size_t cbufsize, char* data, size_t datalen, ComboAddress* addr);
2067
int sendOnNBSocket(int fileDesc, const struct msghdr* msgh);
2068
size_t sendMsgWithOptions(int socketDesc, const void* buffer, size_t len, const ComboAddress* dest, const ComboAddress* local, unsigned int localItf, int flags);
2069

2070
/* requires a non-blocking, connected TCP socket */
2071
bool isTCPSocketUsable(int sock);
2072

2073
extern template class NetmaskTree<bool>;
2074
ComboAddress parseIPAndPort(const std::string& input, uint16_t port);
2075

2076
std::set<std::string> getListOfNetworkInterfaces();
2077
std::vector<ComboAddress> getListOfAddressesOfNetworkInterface(const std::string& itf);
2078
std::vector<Netmask> getListOfRangesOfNetworkInterface(const std::string& itf);
2079

2080
/* These functions throw if the value was already set to a higher value,
2081
   or on error */
2082
void setSocketBuffer(int fileDesc, int optname, uint32_t size);
2083
void setSocketReceiveBuffer(int fileDesc, uint32_t size);
2084
void setSocketSendBuffer(int fileDesc, uint32_t size);
2085
uint32_t raiseSocketReceiveBufferToMax(int socket);
2086
uint32_t raiseSocketSendBufferToMax(int socket);
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