xref: /aosp_15_r20/external/webrtc/rtc_base/win32.cc (revision d9f758449e529ab9291ac668be2861e7a55c2422)
1 /*
2  *  Copyright 2004 The WebRTC Project Authors. All rights reserved.
3  *
4  *  Use of this source code is governed by a BSD-style license
5  *  that can be found in the LICENSE file in the root of the source
6  *  tree. An additional intellectual property rights grant can be found
7  *  in the file PATENTS.  All contributing project authors may
8  *  be found in the AUTHORS file in the root of the source tree.
9  */
10 
11 #include "rtc_base/win32.h"
12 
13 #include <winsock2.h>
14 #include <ws2tcpip.h>
15 
16 #include <algorithm>
17 
18 #include "rtc_base/arraysize.h"
19 #include "rtc_base/byte_order.h"
20 #include "rtc_base/checks.h"
21 #include "rtc_base/logging.h"
22 #include "rtc_base/string_utils.h"
23 
24 namespace rtc {
25 
26 // Helper function declarations for inet_ntop/inet_pton.
27 static const char* inet_ntop_v4(const void* src, char* dst, socklen_t size);
28 static const char* inet_ntop_v6(const void* src, char* dst, socklen_t size);
29 static int inet_pton_v4(const char* src, void* dst);
30 static int inet_pton_v6(const char* src, void* dst);
31 
32 // Implementation of inet_ntop (create a printable representation of an
33 // ip address). XP doesn't have its own inet_ntop, and
34 // WSAAddressToString requires both IPv6 to be  installed and for Winsock
35 // to be initialized.
win32_inet_ntop(int af,const void * src,char * dst,socklen_t size)36 const char* win32_inet_ntop(int af,
37                             const void* src,
38                             char* dst,
39                             socklen_t size) {
40   if (!src || !dst) {
41     return nullptr;
42   }
43   switch (af) {
44     case AF_INET: {
45       return inet_ntop_v4(src, dst, size);
46     }
47     case AF_INET6: {
48       return inet_ntop_v6(src, dst, size);
49     }
50   }
51   return nullptr;
52 }
53 
54 // As above, but for inet_pton. Implements inet_pton for v4 and v6.
55 // Note that our inet_ntop will output normal 'dotted' v4 addresses only.
win32_inet_pton(int af,const char * src,void * dst)56 int win32_inet_pton(int af, const char* src, void* dst) {
57   if (!src || !dst) {
58     return 0;
59   }
60   if (af == AF_INET) {
61     return inet_pton_v4(src, dst);
62   } else if (af == AF_INET6) {
63     return inet_pton_v6(src, dst);
64   }
65   return -1;
66 }
67 
68 // Helper function for inet_ntop for IPv4 addresses.
69 // Outputs "dotted-quad" decimal notation.
inet_ntop_v4(const void * src,char * dst,socklen_t size)70 const char* inet_ntop_v4(const void* src, char* dst, socklen_t size) {
71   if (size < INET_ADDRSTRLEN) {
72     return nullptr;
73   }
74   const struct in_addr* as_in_addr =
75       reinterpret_cast<const struct in_addr*>(src);
76   snprintf(dst, size, "%d.%d.%d.%d", as_in_addr->S_un.S_un_b.s_b1,
77            as_in_addr->S_un.S_un_b.s_b2, as_in_addr->S_un.S_un_b.s_b3,
78            as_in_addr->S_un.S_un_b.s_b4);
79   return dst;
80 }
81 
82 // Helper function for inet_ntop for IPv6 addresses.
inet_ntop_v6(const void * src,char * dst,socklen_t size)83 const char* inet_ntop_v6(const void* src, char* dst, socklen_t size) {
84   if (size < INET6_ADDRSTRLEN) {
85     return nullptr;
86   }
87   const uint16_t* as_shorts = reinterpret_cast<const uint16_t*>(src);
88   int runpos[8];
89   int current = 1;
90   int max = 0;
91   int maxpos = -1;
92   int run_array_size = arraysize(runpos);
93   // Run over the address marking runs of 0s.
94   for (int i = 0; i < run_array_size; ++i) {
95     if (as_shorts[i] == 0) {
96       runpos[i] = current;
97       if (current > max) {
98         maxpos = i;
99         max = current;
100       }
101       ++current;
102     } else {
103       runpos[i] = -1;
104       current = 1;
105     }
106   }
107 
108   if (max > 0) {
109     int tmpmax = maxpos;
110     // Run back through, setting -1 for all but the longest run.
111     for (int i = run_array_size - 1; i >= 0; i--) {
112       if (i > tmpmax) {
113         runpos[i] = -1;
114       } else if (runpos[i] == -1) {
115         // We're less than maxpos, we hit a -1, so the 'good' run is done.
116         // Setting tmpmax -1 means all remaining positions get set to -1.
117         tmpmax = -1;
118       }
119     }
120   }
121 
122   char* cursor = dst;
123   // Print IPv4 compatible and IPv4 mapped addresses using the IPv4 helper.
124   // These addresses have an initial run of either eight zero-bytes followed
125   // by 0xFFFF, or an initial run of ten zero-bytes.
126   if (runpos[0] == 1 &&
127       (maxpos == 5 || (maxpos == 4 && as_shorts[5] == 0xFFFF))) {
128     *cursor++ = ':';
129     *cursor++ = ':';
130     if (maxpos == 4) {
131       cursor += snprintf(cursor, INET6_ADDRSTRLEN - 2, "ffff:");
132     }
133     const struct in_addr* as_v4 =
134         reinterpret_cast<const struct in_addr*>(&(as_shorts[6]));
135     inet_ntop_v4(as_v4, cursor,
136                  static_cast<socklen_t>(INET6_ADDRSTRLEN - (cursor - dst)));
137   } else {
138     for (int i = 0; i < run_array_size; ++i) {
139       if (runpos[i] == -1) {
140         cursor += snprintf(cursor, INET6_ADDRSTRLEN - (cursor - dst), "%x",
141                            NetworkToHost16(as_shorts[i]));
142         if (i != 7 && runpos[i + 1] != 1) {
143           *cursor++ = ':';
144         }
145       } else if (runpos[i] == 1) {
146         // Entered the run; print the colons and skip the run.
147         *cursor++ = ':';
148         *cursor++ = ':';
149         i += (max - 1);
150       }
151     }
152   }
153   return dst;
154 }
155 
156 // Helper function for inet_pton for IPv4 addresses.
157 // `src` points to a character string containing an IPv4 network address in
158 // dotted-decimal format, "ddd.ddd.ddd.ddd", where ddd is a decimal number
159 // of up to three digits in the range 0 to 255.
160 // The address is converted and copied to dst,
161 // which must be sizeof(struct in_addr) (4) bytes (32 bits) long.
inet_pton_v4(const char * src,void * dst)162 int inet_pton_v4(const char* src, void* dst) {
163   const int kIpv4AddressSize = 4;
164   int found = 0;
165   const char* src_pos = src;
166   unsigned char result[kIpv4AddressSize] = {0};
167 
168   while (*src_pos != '\0') {
169     // strtol won't treat whitespace characters in the begining as an error,
170     // so check to ensure this is started with digit before passing to strtol.
171     if (!isdigit(*src_pos)) {
172       return 0;
173     }
174     char* end_pos;
175     long value = strtol(src_pos, &end_pos, 10);
176     if (value < 0 || value > 255 || src_pos == end_pos) {
177       return 0;
178     }
179     ++found;
180     if (found > kIpv4AddressSize) {
181       return 0;
182     }
183     result[found - 1] = static_cast<unsigned char>(value);
184     src_pos = end_pos;
185     if (*src_pos == '.') {
186       // There's more.
187       ++src_pos;
188     } else if (*src_pos != '\0') {
189       // If it's neither '.' nor '\0' then return fail.
190       return 0;
191     }
192   }
193   if (found != kIpv4AddressSize) {
194     return 0;
195   }
196   memcpy(dst, result, sizeof(result));
197   return 1;
198 }
199 
200 // Helper function for inet_pton for IPv6 addresses.
inet_pton_v6(const char * src,void * dst)201 int inet_pton_v6(const char* src, void* dst) {
202   // sscanf will pick any other invalid chars up, but it parses 0xnnnn as hex.
203   // Check for literal x in the input string.
204   const char* readcursor = src;
205   char c = *readcursor++;
206   while (c) {
207     if (c == 'x') {
208       return 0;
209     }
210     c = *readcursor++;
211   }
212   readcursor = src;
213 
214   struct in6_addr an_addr;
215   memset(&an_addr, 0, sizeof(an_addr));
216 
217   uint16_t* addr_cursor = reinterpret_cast<uint16_t*>(&an_addr.s6_addr[0]);
218   uint16_t* addr_end = reinterpret_cast<uint16_t*>(&an_addr.s6_addr[16]);
219   bool seencompressed = false;
220 
221   // Addresses that start with "::" (i.e., a run of initial zeros) or
222   // "::ffff:" can potentially be IPv4 mapped or compatibility addresses.
223   // These have dotted-style IPv4 addresses on the end (e.g. "::192.168.7.1").
224   if (*readcursor == ':' && *(readcursor + 1) == ':' &&
225       *(readcursor + 2) != 0) {
226     // Check for periods, which we'll take as a sign of v4 addresses.
227     const char* addrstart = readcursor + 2;
228     if (strchr(addrstart, '.')) {
229       const char* colon = strchr(addrstart, ':');
230       if (colon) {
231         uint16_t a_short;
232         int bytesread = 0;
233         if (sscanf(addrstart, "%hx%n", &a_short, &bytesread) != 1 ||
234             a_short != 0xFFFF || bytesread != 4) {
235           // Colons + periods means has to be ::ffff:a.b.c.d. But it wasn't.
236           return 0;
237         } else {
238           an_addr.s6_addr[10] = 0xFF;
239           an_addr.s6_addr[11] = 0xFF;
240           addrstart = colon + 1;
241         }
242       }
243       struct in_addr v4;
244       if (inet_pton_v4(addrstart, &v4.s_addr)) {
245         memcpy(&an_addr.s6_addr[12], &v4, sizeof(v4));
246         memcpy(dst, &an_addr, sizeof(an_addr));
247         return 1;
248       } else {
249         // Invalid v4 address.
250         return 0;
251       }
252     }
253   }
254 
255   // For addresses without a trailing IPv4 component ('normal' IPv6 addresses).
256   while (*readcursor != 0 && addr_cursor < addr_end) {
257     if (*readcursor == ':') {
258       if (*(readcursor + 1) == ':') {
259         if (seencompressed) {
260           // Can only have one compressed run of zeroes ("::") per address.
261           return 0;
262         }
263         // Hit a compressed run. Count colons to figure out how much of the
264         // address is skipped.
265         readcursor += 2;
266         const char* coloncounter = readcursor;
267         int coloncount = 0;
268         if (*coloncounter == 0) {
269           // Special case - trailing ::.
270           addr_cursor = addr_end;
271         } else {
272           while (*coloncounter) {
273             if (*coloncounter == ':') {
274               ++coloncount;
275             }
276             ++coloncounter;
277           }
278           // (coloncount + 1) is the number of shorts left in the address.
279           // If this number is greater than the number of available shorts, the
280           // address is malformed.
281           if (coloncount + 1 > addr_end - addr_cursor) {
282             return 0;
283           }
284           addr_cursor = addr_end - (coloncount + 1);
285           seencompressed = true;
286         }
287       } else {
288         ++readcursor;
289       }
290     } else {
291       uint16_t word;
292       int bytesread = 0;
293       if (sscanf(readcursor, "%4hx%n", &word, &bytesread) != 1) {
294         return 0;
295       } else {
296         *addr_cursor = HostToNetwork16(word);
297         ++addr_cursor;
298         readcursor += bytesread;
299         if (*readcursor != ':' && *readcursor != '\0') {
300           return 0;
301         }
302       }
303     }
304   }
305 
306   if (*readcursor != '\0' || addr_cursor < addr_end) {
307     // Catches addresses too short or too long.
308     return 0;
309   }
310   memcpy(dst, &an_addr, sizeof(an_addr));
311   return 1;
312 }
313 
314 }  // namespace rtc
315