/src/curl/lib/cf-socket.c
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1 | | /*************************************************************************** |
2 | | * _ _ ____ _ |
3 | | * Project ___| | | | _ \| | |
4 | | * / __| | | | |_) | | |
5 | | * | (__| |_| | _ <| |___ |
6 | | * \___|\___/|_| \_\_____| |
7 | | * |
8 | | * Copyright (C) Daniel Stenberg, <daniel@haxx.se>, et al. |
9 | | * |
10 | | * This software is licensed as described in the file COPYING, which |
11 | | * you should have received as part of this distribution. The terms |
12 | | * are also available at https://curl.se/docs/copyright.html. |
13 | | * |
14 | | * You may opt to use, copy, modify, merge, publish, distribute and/or sell |
15 | | * copies of the Software, and permit persons to whom the Software is |
16 | | * furnished to do so, under the terms of the COPYING file. |
17 | | * |
18 | | * This software is distributed on an "AS IS" basis, WITHOUT WARRANTY OF ANY |
19 | | * KIND, either express or implied. |
20 | | * |
21 | | * SPDX-License-Identifier: curl |
22 | | * |
23 | | ***************************************************************************/ |
24 | | |
25 | | #include "curl_setup.h" |
26 | | |
27 | | #ifdef HAVE_NETINET_IN_H |
28 | | #include <netinet/in.h> /* <netinet/tcp.h> may need it */ |
29 | | #endif |
30 | | #ifdef HAVE_SYS_UN_H |
31 | | #include <sys/un.h> /* for sockaddr_un */ |
32 | | #endif |
33 | | #ifdef HAVE_LINUX_TCP_H |
34 | | #include <linux/tcp.h> |
35 | | #elif defined(HAVE_NETINET_TCP_H) |
36 | | #include <netinet/tcp.h> |
37 | | #endif |
38 | | #ifdef HAVE_SYS_IOCTL_H |
39 | | #include <sys/ioctl.h> |
40 | | #endif |
41 | | #ifdef HAVE_NETDB_H |
42 | | #include <netdb.h> |
43 | | #endif |
44 | | #ifdef HAVE_FCNTL_H |
45 | | #include <fcntl.h> |
46 | | #endif |
47 | | #ifdef HAVE_ARPA_INET_H |
48 | | #include <arpa/inet.h> |
49 | | #endif |
50 | | |
51 | | #ifdef __VMS |
52 | | #include <in.h> |
53 | | #include <inet.h> |
54 | | #endif |
55 | | |
56 | | #include "urldata.h" |
57 | | #include "bufq.h" |
58 | | #include "sendf.h" |
59 | | #include "if2ip.h" |
60 | | #include "strerror.h" |
61 | | #include "cfilters.h" |
62 | | #include "cf-socket.h" |
63 | | #include "connect.h" |
64 | | #include "select.h" |
65 | | #include "url.h" /* for Curl_safefree() */ |
66 | | #include "multiif.h" |
67 | | #include "sockaddr.h" /* required for Curl_sockaddr_storage */ |
68 | | #include "inet_ntop.h" |
69 | | #include "inet_pton.h" |
70 | | #include "progress.h" |
71 | | #include "warnless.h" |
72 | | #include "conncache.h" |
73 | | #include "multihandle.h" |
74 | | #include "rand.h" |
75 | | #include "share.h" |
76 | | #include "version_win32.h" |
77 | | |
78 | | /* The last 3 #include files should be in this order */ |
79 | | #include "curl_printf.h" |
80 | | #include "curl_memory.h" |
81 | | #include "memdebug.h" |
82 | | |
83 | | |
84 | | #if defined(ENABLE_IPV6) && defined(IPV6_V6ONLY) && defined(_WIN32) |
85 | | /* It makes support for IPv4-mapped IPv6 addresses. |
86 | | * Linux kernel, NetBSD, FreeBSD and Darwin: default is off; |
87 | | * Windows Vista and later: default is on; |
88 | | * DragonFly BSD: acts like off, and dummy setting; |
89 | | * OpenBSD and earlier Windows: unsupported. |
90 | | * Linux: controlled by /proc/sys/net/ipv6/bindv6only. |
91 | | */ |
92 | | static void set_ipv6_v6only(curl_socket_t sockfd, int on) |
93 | | { |
94 | | (void)setsockopt(sockfd, IPPROTO_IPV6, IPV6_V6ONLY, (void *)&on, sizeof(on)); |
95 | | } |
96 | | #else |
97 | | #define set_ipv6_v6only(x,y) |
98 | | #endif |
99 | | |
100 | | static void tcpnodelay(struct Curl_easy *data, curl_socket_t sockfd) |
101 | 0 | { |
102 | 0 | #if defined(TCP_NODELAY) |
103 | 0 | curl_socklen_t onoff = (curl_socklen_t) 1; |
104 | 0 | int level = IPPROTO_TCP; |
105 | 0 | char buffer[STRERROR_LEN]; |
106 | |
|
107 | 0 | if(setsockopt(sockfd, level, TCP_NODELAY, (void *)&onoff, |
108 | 0 | sizeof(onoff)) < 0) |
109 | 0 | infof(data, "Could not set TCP_NODELAY: %s", |
110 | 0 | Curl_strerror(SOCKERRNO, buffer, sizeof(buffer))); |
111 | | #else |
112 | | (void)data; |
113 | | (void)sockfd; |
114 | | #endif |
115 | 0 | } |
116 | | |
117 | | #ifdef SO_NOSIGPIPE |
118 | | /* The preferred method on Mac OS X (10.2 and later) to prevent SIGPIPEs when |
119 | | sending data to a dead peer (instead of relying on the 4th argument to send |
120 | | being MSG_NOSIGNAL). Possibly also existing and in use on other BSD |
121 | | systems? */ |
122 | | static void nosigpipe(struct Curl_easy *data, |
123 | | curl_socket_t sockfd) |
124 | | { |
125 | | int onoff = 1; |
126 | | (void)data; |
127 | | if(setsockopt(sockfd, SOL_SOCKET, SO_NOSIGPIPE, (void *)&onoff, |
128 | | sizeof(onoff)) < 0) { |
129 | | #if !defined(CURL_DISABLE_VERBOSE_STRINGS) |
130 | | char buffer[STRERROR_LEN]; |
131 | | infof(data, "Could not set SO_NOSIGPIPE: %s", |
132 | | Curl_strerror(SOCKERRNO, buffer, sizeof(buffer))); |
133 | | #endif |
134 | | } |
135 | | } |
136 | | #else |
137 | 0 | #define nosigpipe(x,y) Curl_nop_stmt |
138 | | #endif |
139 | | |
140 | | #if defined(__DragonFly__) || defined(HAVE_WINSOCK2_H) |
141 | | /* DragonFlyBSD and Windows use millisecond units */ |
142 | | #define KEEPALIVE_FACTOR(x) (x *= 1000) |
143 | | #else |
144 | | #define KEEPALIVE_FACTOR(x) |
145 | | #endif |
146 | | |
147 | | #if defined(HAVE_WINSOCK2_H) && !defined(SIO_KEEPALIVE_VALS) |
148 | | #define SIO_KEEPALIVE_VALS _WSAIOW(IOC_VENDOR,4) |
149 | | |
150 | | struct tcp_keepalive { |
151 | | u_long onoff; |
152 | | u_long keepalivetime; |
153 | | u_long keepaliveinterval; |
154 | | }; |
155 | | #endif |
156 | | |
157 | | static void |
158 | | tcpkeepalive(struct Curl_easy *data, |
159 | | curl_socket_t sockfd) |
160 | 0 | { |
161 | 0 | int optval = data->set.tcp_keepalive?1:0; |
162 | | |
163 | | /* only set IDLE and INTVL if setting KEEPALIVE is successful */ |
164 | 0 | if(setsockopt(sockfd, SOL_SOCKET, SO_KEEPALIVE, |
165 | 0 | (void *)&optval, sizeof(optval)) < 0) { |
166 | 0 | infof(data, "Failed to set SO_KEEPALIVE on fd %d", sockfd); |
167 | 0 | } |
168 | 0 | else { |
169 | | #if defined(SIO_KEEPALIVE_VALS) |
170 | | struct tcp_keepalive vals; |
171 | | DWORD dummy; |
172 | | vals.onoff = 1; |
173 | | optval = curlx_sltosi(data->set.tcp_keepidle); |
174 | | KEEPALIVE_FACTOR(optval); |
175 | | vals.keepalivetime = optval; |
176 | | optval = curlx_sltosi(data->set.tcp_keepintvl); |
177 | | KEEPALIVE_FACTOR(optval); |
178 | | vals.keepaliveinterval = optval; |
179 | | if(WSAIoctl(sockfd, SIO_KEEPALIVE_VALS, (LPVOID) &vals, sizeof(vals), |
180 | | NULL, 0, &dummy, NULL, NULL) != 0) { |
181 | | infof(data, "Failed to set SIO_KEEPALIVE_VALS on fd %d: %d", |
182 | | (int)sockfd, WSAGetLastError()); |
183 | | } |
184 | | #else |
185 | 0 | #ifdef TCP_KEEPIDLE |
186 | 0 | optval = curlx_sltosi(data->set.tcp_keepidle); |
187 | 0 | KEEPALIVE_FACTOR(optval); |
188 | 0 | if(setsockopt(sockfd, IPPROTO_TCP, TCP_KEEPIDLE, |
189 | 0 | (void *)&optval, sizeof(optval)) < 0) { |
190 | 0 | infof(data, "Failed to set TCP_KEEPIDLE on fd %d", sockfd); |
191 | 0 | } |
192 | | #elif defined(TCP_KEEPALIVE) |
193 | | /* Mac OS X style */ |
194 | | optval = curlx_sltosi(data->set.tcp_keepidle); |
195 | | KEEPALIVE_FACTOR(optval); |
196 | | if(setsockopt(sockfd, IPPROTO_TCP, TCP_KEEPALIVE, |
197 | | (void *)&optval, sizeof(optval)) < 0) { |
198 | | infof(data, "Failed to set TCP_KEEPALIVE on fd %d", sockfd); |
199 | | } |
200 | | #endif |
201 | 0 | #ifdef TCP_KEEPINTVL |
202 | 0 | optval = curlx_sltosi(data->set.tcp_keepintvl); |
203 | 0 | KEEPALIVE_FACTOR(optval); |
204 | 0 | if(setsockopt(sockfd, IPPROTO_TCP, TCP_KEEPINTVL, |
205 | 0 | (void *)&optval, sizeof(optval)) < 0) { |
206 | 0 | infof(data, "Failed to set TCP_KEEPINTVL on fd %d", sockfd); |
207 | 0 | } |
208 | 0 | #endif |
209 | 0 | #endif |
210 | 0 | } |
211 | 0 | } |
212 | | |
213 | | /** |
214 | | * Assign the address `ai` to the Curl_sockaddr_ex `dest` and |
215 | | * set the transport used. |
216 | | */ |
217 | | void Curl_sock_assign_addr(struct Curl_sockaddr_ex *dest, |
218 | | const struct Curl_addrinfo *ai, |
219 | | int transport) |
220 | 0 | { |
221 | | /* |
222 | | * The Curl_sockaddr_ex structure is basically libcurl's external API |
223 | | * curl_sockaddr structure with enough space available to directly hold |
224 | | * any protocol-specific address structures. The variable declared here |
225 | | * will be used to pass / receive data to/from the fopensocket callback |
226 | | * if this has been set, before that, it is initialized from parameters. |
227 | | */ |
228 | 0 | dest->family = ai->ai_family; |
229 | 0 | switch(transport) { |
230 | 0 | case TRNSPRT_TCP: |
231 | 0 | dest->socktype = SOCK_STREAM; |
232 | 0 | dest->protocol = IPPROTO_TCP; |
233 | 0 | break; |
234 | 0 | case TRNSPRT_UNIX: |
235 | 0 | dest->socktype = SOCK_STREAM; |
236 | 0 | dest->protocol = IPPROTO_IP; |
237 | 0 | break; |
238 | 0 | default: /* UDP and QUIC */ |
239 | 0 | dest->socktype = SOCK_DGRAM; |
240 | 0 | dest->protocol = IPPROTO_UDP; |
241 | 0 | break; |
242 | 0 | } |
243 | 0 | dest->addrlen = ai->ai_addrlen; |
244 | |
|
245 | 0 | if(dest->addrlen > sizeof(struct Curl_sockaddr_storage)) |
246 | 0 | dest->addrlen = sizeof(struct Curl_sockaddr_storage); |
247 | 0 | memcpy(&dest->sa_addr, ai->ai_addr, dest->addrlen); |
248 | 0 | } |
249 | | |
250 | | static CURLcode socket_open(struct Curl_easy *data, |
251 | | struct Curl_sockaddr_ex *addr, |
252 | | curl_socket_t *sockfd) |
253 | 0 | { |
254 | 0 | DEBUGASSERT(data); |
255 | 0 | DEBUGASSERT(data->conn); |
256 | 0 | if(data->set.fopensocket) { |
257 | | /* |
258 | | * If the opensocket callback is set, all the destination address |
259 | | * information is passed to the callback. Depending on this information the |
260 | | * callback may opt to abort the connection, this is indicated returning |
261 | | * CURL_SOCKET_BAD; otherwise it will return a not-connected socket. When |
262 | | * the callback returns a valid socket the destination address information |
263 | | * might have been changed and this 'new' address will actually be used |
264 | | * here to connect. |
265 | | */ |
266 | 0 | Curl_set_in_callback(data, true); |
267 | 0 | *sockfd = data->set.fopensocket(data->set.opensocket_client, |
268 | 0 | CURLSOCKTYPE_IPCXN, |
269 | 0 | (struct curl_sockaddr *)addr); |
270 | 0 | Curl_set_in_callback(data, false); |
271 | 0 | } |
272 | 0 | else { |
273 | | /* opensocket callback not set, so simply create the socket now */ |
274 | 0 | *sockfd = socket(addr->family, addr->socktype, addr->protocol); |
275 | 0 | } |
276 | |
|
277 | 0 | if(*sockfd == CURL_SOCKET_BAD) |
278 | | /* no socket, no connection */ |
279 | 0 | return CURLE_COULDNT_CONNECT; |
280 | | |
281 | 0 | #if defined(ENABLE_IPV6) && defined(HAVE_SOCKADDR_IN6_SIN6_SCOPE_ID) |
282 | 0 | if(data->conn->scope_id && (addr->family == AF_INET6)) { |
283 | 0 | struct sockaddr_in6 * const sa6 = (void *)&addr->sa_addr; |
284 | 0 | sa6->sin6_scope_id = data->conn->scope_id; |
285 | 0 | } |
286 | 0 | #endif |
287 | 0 | return CURLE_OK; |
288 | 0 | } |
289 | | |
290 | | /* |
291 | | * Create a socket based on info from 'conn' and 'ai'. |
292 | | * |
293 | | * 'addr' should be a pointer to the correct struct to get data back, or NULL. |
294 | | * 'sockfd' must be a pointer to a socket descriptor. |
295 | | * |
296 | | * If the open socket callback is set, used that! |
297 | | * |
298 | | */ |
299 | | CURLcode Curl_socket_open(struct Curl_easy *data, |
300 | | const struct Curl_addrinfo *ai, |
301 | | struct Curl_sockaddr_ex *addr, |
302 | | int transport, |
303 | | curl_socket_t *sockfd) |
304 | 0 | { |
305 | 0 | struct Curl_sockaddr_ex dummy; |
306 | |
|
307 | 0 | if(!addr) |
308 | | /* if the caller doesn't want info back, use a local temp copy */ |
309 | 0 | addr = &dummy; |
310 | |
|
311 | 0 | Curl_sock_assign_addr(addr, ai, transport); |
312 | 0 | return socket_open(data, addr, sockfd); |
313 | 0 | } |
314 | | |
315 | | static int socket_close(struct Curl_easy *data, struct connectdata *conn, |
316 | | int use_callback, curl_socket_t sock) |
317 | 0 | { |
318 | 0 | if(use_callback && conn && conn->fclosesocket) { |
319 | 0 | int rc; |
320 | 0 | Curl_multi_closed(data, sock); |
321 | 0 | Curl_set_in_callback(data, true); |
322 | 0 | rc = conn->fclosesocket(conn->closesocket_client, sock); |
323 | 0 | Curl_set_in_callback(data, false); |
324 | 0 | return rc; |
325 | 0 | } |
326 | | |
327 | 0 | if(conn) |
328 | | /* tell the multi-socket code about this */ |
329 | 0 | Curl_multi_closed(data, sock); |
330 | |
|
331 | 0 | sclose(sock); |
332 | |
|
333 | 0 | return 0; |
334 | 0 | } |
335 | | |
336 | | /* |
337 | | * Close a socket. |
338 | | * |
339 | | * 'conn' can be NULL, beware! |
340 | | */ |
341 | | int Curl_socket_close(struct Curl_easy *data, struct connectdata *conn, |
342 | | curl_socket_t sock) |
343 | 0 | { |
344 | 0 | return socket_close(data, conn, FALSE, sock); |
345 | 0 | } |
346 | | |
347 | | #ifdef USE_WINSOCK |
348 | | /* When you run a program that uses the Windows Sockets API, you may |
349 | | experience slow performance when you copy data to a TCP server. |
350 | | |
351 | | https://support.microsoft.com/kb/823764 |
352 | | |
353 | | Work-around: Make the Socket Send Buffer Size Larger Than the Program Send |
354 | | Buffer Size |
355 | | |
356 | | The problem described in this knowledge-base is applied only to pre-Vista |
357 | | Windows. Following function trying to detect OS version and skips |
358 | | SO_SNDBUF adjustment for Windows Vista and above. |
359 | | */ |
360 | | #define DETECT_OS_NONE 0 |
361 | | #define DETECT_OS_PREVISTA 1 |
362 | | #define DETECT_OS_VISTA_OR_LATER 2 |
363 | | |
364 | | void Curl_sndbufset(curl_socket_t sockfd) |
365 | | { |
366 | | int val = CURL_MAX_WRITE_SIZE + 32; |
367 | | int curval = 0; |
368 | | int curlen = sizeof(curval); |
369 | | |
370 | | static int detectOsState = DETECT_OS_NONE; |
371 | | |
372 | | if(detectOsState == DETECT_OS_NONE) { |
373 | | if(curlx_verify_windows_version(6, 0, 0, PLATFORM_WINNT, |
374 | | VERSION_GREATER_THAN_EQUAL)) |
375 | | detectOsState = DETECT_OS_VISTA_OR_LATER; |
376 | | else |
377 | | detectOsState = DETECT_OS_PREVISTA; |
378 | | } |
379 | | |
380 | | if(detectOsState == DETECT_OS_VISTA_OR_LATER) |
381 | | return; |
382 | | |
383 | | if(getsockopt(sockfd, SOL_SOCKET, SO_SNDBUF, (char *)&curval, &curlen) == 0) |
384 | | if(curval > val) |
385 | | return; |
386 | | |
387 | | setsockopt(sockfd, SOL_SOCKET, SO_SNDBUF, (const char *)&val, sizeof(val)); |
388 | | } |
389 | | #endif |
390 | | |
391 | | #ifndef CURL_DISABLE_BINDLOCAL |
392 | | static CURLcode bindlocal(struct Curl_easy *data, struct connectdata *conn, |
393 | | curl_socket_t sockfd, int af, unsigned int scope) |
394 | 0 | { |
395 | 0 | struct Curl_sockaddr_storage sa; |
396 | 0 | struct sockaddr *sock = (struct sockaddr *)&sa; /* bind to this address */ |
397 | 0 | curl_socklen_t sizeof_sa = 0; /* size of the data sock points to */ |
398 | 0 | struct sockaddr_in *si4 = (struct sockaddr_in *)&sa; |
399 | 0 | #ifdef ENABLE_IPV6 |
400 | 0 | struct sockaddr_in6 *si6 = (struct sockaddr_in6 *)&sa; |
401 | 0 | #endif |
402 | |
|
403 | 0 | struct Curl_dns_entry *h = NULL; |
404 | 0 | unsigned short port = data->set.localport; /* use this port number, 0 for |
405 | | "random" */ |
406 | | /* how many port numbers to try to bind to, increasing one at a time */ |
407 | 0 | int portnum = data->set.localportrange; |
408 | 0 | const char *dev = data->set.str[STRING_DEVICE]; |
409 | 0 | int error; |
410 | 0 | #ifdef IP_BIND_ADDRESS_NO_PORT |
411 | 0 | int on = 1; |
412 | 0 | #endif |
413 | | #ifndef ENABLE_IPV6 |
414 | | (void)scope; |
415 | | #endif |
416 | | |
417 | | /************************************************************* |
418 | | * Select device to bind socket to |
419 | | *************************************************************/ |
420 | 0 | if(!dev && !port) |
421 | | /* no local kind of binding was requested */ |
422 | 0 | return CURLE_OK; |
423 | | |
424 | 0 | memset(&sa, 0, sizeof(struct Curl_sockaddr_storage)); |
425 | |
|
426 | 0 | if(dev && (strlen(dev)<255) ) { |
427 | 0 | char myhost[256] = ""; |
428 | 0 | int done = 0; /* -1 for error, 1 for address found */ |
429 | 0 | bool is_interface = FALSE; |
430 | 0 | bool is_host = FALSE; |
431 | 0 | static const char *if_prefix = "if!"; |
432 | 0 | static const char *host_prefix = "host!"; |
433 | |
|
434 | 0 | if(strncmp(if_prefix, dev, strlen(if_prefix)) == 0) { |
435 | 0 | dev += strlen(if_prefix); |
436 | 0 | is_interface = TRUE; |
437 | 0 | } |
438 | 0 | else if(strncmp(host_prefix, dev, strlen(host_prefix)) == 0) { |
439 | 0 | dev += strlen(host_prefix); |
440 | 0 | is_host = TRUE; |
441 | 0 | } |
442 | | |
443 | | /* interface */ |
444 | 0 | if(!is_host) { |
445 | 0 | #ifdef SO_BINDTODEVICE |
446 | | /* |
447 | | * This binds the local socket to a particular interface. This will |
448 | | * force even requests to other local interfaces to go out the external |
449 | | * interface. Only bind to the interface when specified as interface, |
450 | | * not just as a hostname or ip address. |
451 | | * |
452 | | * The interface might be a VRF, eg: vrf-blue, which means it cannot be |
453 | | * converted to an IP address and would fail Curl_if2ip. Simply try to |
454 | | * use it straight away. |
455 | | */ |
456 | 0 | if(setsockopt(sockfd, SOL_SOCKET, SO_BINDTODEVICE, |
457 | 0 | dev, (curl_socklen_t)strlen(dev) + 1) == 0) { |
458 | | /* This is often "errno 1, error: Operation not permitted" if you're |
459 | | * not running as root or another suitable privileged user. If it |
460 | | * succeeds it means the parameter was a valid interface and not an IP |
461 | | * address. Return immediately. |
462 | | */ |
463 | 0 | infof(data, "socket successfully bound to interface '%s'", dev); |
464 | 0 | return CURLE_OK; |
465 | 0 | } |
466 | 0 | #endif |
467 | | |
468 | 0 | switch(Curl_if2ip(af, |
469 | 0 | #ifdef ENABLE_IPV6 |
470 | 0 | scope, conn->scope_id, |
471 | 0 | #endif |
472 | 0 | dev, myhost, sizeof(myhost))) { |
473 | 0 | case IF2IP_NOT_FOUND: |
474 | 0 | if(is_interface) { |
475 | | /* Do not fall back to treating it as a host name */ |
476 | 0 | failf(data, "Couldn't bind to interface '%s'", dev); |
477 | 0 | return CURLE_INTERFACE_FAILED; |
478 | 0 | } |
479 | 0 | break; |
480 | 0 | case IF2IP_AF_NOT_SUPPORTED: |
481 | | /* Signal the caller to try another address family if available */ |
482 | 0 | return CURLE_UNSUPPORTED_PROTOCOL; |
483 | 0 | case IF2IP_FOUND: |
484 | 0 | is_interface = TRUE; |
485 | | /* |
486 | | * We now have the numerical IP address in the 'myhost' buffer |
487 | | */ |
488 | 0 | infof(data, "Local Interface %s is ip %s using address family %i", |
489 | 0 | dev, myhost, af); |
490 | 0 | done = 1; |
491 | 0 | break; |
492 | 0 | } |
493 | 0 | } |
494 | 0 | if(!is_interface) { |
495 | | /* |
496 | | * This was not an interface, resolve the name as a host name |
497 | | * or IP number |
498 | | * |
499 | | * Temporarily force name resolution to use only the address type |
500 | | * of the connection. The resolve functions should really be changed |
501 | | * to take a type parameter instead. |
502 | | */ |
503 | 0 | unsigned char ipver = conn->ip_version; |
504 | 0 | int rc; |
505 | |
|
506 | 0 | if(af == AF_INET) |
507 | 0 | conn->ip_version = CURL_IPRESOLVE_V4; |
508 | 0 | #ifdef ENABLE_IPV6 |
509 | 0 | else if(af == AF_INET6) |
510 | 0 | conn->ip_version = CURL_IPRESOLVE_V6; |
511 | 0 | #endif |
512 | |
|
513 | 0 | rc = Curl_resolv(data, dev, 80, FALSE, &h); |
514 | 0 | if(rc == CURLRESOLV_PENDING) |
515 | 0 | (void)Curl_resolver_wait_resolv(data, &h); |
516 | 0 | conn->ip_version = ipver; |
517 | |
|
518 | 0 | if(h) { |
519 | | /* convert the resolved address, sizeof myhost >= INET_ADDRSTRLEN */ |
520 | 0 | Curl_printable_address(h->addr, myhost, sizeof(myhost)); |
521 | 0 | infof(data, "Name '%s' family %i resolved to '%s' family %i", |
522 | 0 | dev, af, myhost, h->addr->ai_family); |
523 | 0 | Curl_resolv_unlock(data, h); |
524 | 0 | if(af != h->addr->ai_family) { |
525 | | /* bad IP version combo, signal the caller to try another address |
526 | | family if available */ |
527 | 0 | return CURLE_UNSUPPORTED_PROTOCOL; |
528 | 0 | } |
529 | 0 | done = 1; |
530 | 0 | } |
531 | 0 | else { |
532 | | /* |
533 | | * provided dev was no interface (or interfaces are not supported |
534 | | * e.g. solaris) no ip address and no domain we fail here |
535 | | */ |
536 | 0 | done = -1; |
537 | 0 | } |
538 | 0 | } |
539 | | |
540 | 0 | if(done > 0) { |
541 | 0 | #ifdef ENABLE_IPV6 |
542 | | /* IPv6 address */ |
543 | 0 | if(af == AF_INET6) { |
544 | 0 | #ifdef HAVE_SOCKADDR_IN6_SIN6_SCOPE_ID |
545 | 0 | char *scope_ptr = strchr(myhost, '%'); |
546 | 0 | if(scope_ptr) |
547 | 0 | *(scope_ptr++) = '\0'; |
548 | 0 | #endif |
549 | 0 | if(Curl_inet_pton(AF_INET6, myhost, &si6->sin6_addr) > 0) { |
550 | 0 | si6->sin6_family = AF_INET6; |
551 | 0 | si6->sin6_port = htons(port); |
552 | 0 | #ifdef HAVE_SOCKADDR_IN6_SIN6_SCOPE_ID |
553 | 0 | if(scope_ptr) { |
554 | | /* The "myhost" string either comes from Curl_if2ip or from |
555 | | Curl_printable_address. The latter returns only numeric scope |
556 | | IDs and the former returns none at all. So the scope ID, if |
557 | | present, is known to be numeric */ |
558 | 0 | unsigned long scope_id = strtoul(scope_ptr, NULL, 10); |
559 | 0 | if(scope_id > UINT_MAX) |
560 | 0 | return CURLE_UNSUPPORTED_PROTOCOL; |
561 | | |
562 | 0 | si6->sin6_scope_id = (unsigned int)scope_id; |
563 | 0 | } |
564 | 0 | #endif |
565 | 0 | } |
566 | 0 | sizeof_sa = sizeof(struct sockaddr_in6); |
567 | 0 | } |
568 | 0 | else |
569 | 0 | #endif |
570 | | /* IPv4 address */ |
571 | 0 | if((af == AF_INET) && |
572 | 0 | (Curl_inet_pton(AF_INET, myhost, &si4->sin_addr) > 0)) { |
573 | 0 | si4->sin_family = AF_INET; |
574 | 0 | si4->sin_port = htons(port); |
575 | 0 | sizeof_sa = sizeof(struct sockaddr_in); |
576 | 0 | } |
577 | 0 | } |
578 | | |
579 | 0 | if(done < 1) { |
580 | | /* errorbuf is set false so failf will overwrite any message already in |
581 | | the error buffer, so the user receives this error message instead of a |
582 | | generic resolve error. */ |
583 | 0 | data->state.errorbuf = FALSE; |
584 | 0 | failf(data, "Couldn't bind to '%s'", dev); |
585 | 0 | return CURLE_INTERFACE_FAILED; |
586 | 0 | } |
587 | 0 | } |
588 | 0 | else { |
589 | | /* no device was given, prepare sa to match af's needs */ |
590 | 0 | #ifdef ENABLE_IPV6 |
591 | 0 | if(af == AF_INET6) { |
592 | 0 | si6->sin6_family = AF_INET6; |
593 | 0 | si6->sin6_port = htons(port); |
594 | 0 | sizeof_sa = sizeof(struct sockaddr_in6); |
595 | 0 | } |
596 | 0 | else |
597 | 0 | #endif |
598 | 0 | if(af == AF_INET) { |
599 | 0 | si4->sin_family = AF_INET; |
600 | 0 | si4->sin_port = htons(port); |
601 | 0 | sizeof_sa = sizeof(struct sockaddr_in); |
602 | 0 | } |
603 | 0 | } |
604 | 0 | #ifdef IP_BIND_ADDRESS_NO_PORT |
605 | 0 | (void)setsockopt(sockfd, SOL_IP, IP_BIND_ADDRESS_NO_PORT, &on, sizeof(on)); |
606 | 0 | #endif |
607 | 0 | for(;;) { |
608 | 0 | if(bind(sockfd, sock, sizeof_sa) >= 0) { |
609 | | /* we succeeded to bind */ |
610 | 0 | struct Curl_sockaddr_storage add; |
611 | 0 | curl_socklen_t size = sizeof(add); |
612 | 0 | memset(&add, 0, sizeof(struct Curl_sockaddr_storage)); |
613 | 0 | if(getsockname(sockfd, (struct sockaddr *) &add, &size) < 0) { |
614 | 0 | char buffer[STRERROR_LEN]; |
615 | 0 | data->state.os_errno = error = SOCKERRNO; |
616 | 0 | failf(data, "getsockname() failed with errno %d: %s", |
617 | 0 | error, Curl_strerror(error, buffer, sizeof(buffer))); |
618 | 0 | return CURLE_INTERFACE_FAILED; |
619 | 0 | } |
620 | 0 | infof(data, "Local port: %hu", port); |
621 | 0 | conn->bits.bound = TRUE; |
622 | 0 | return CURLE_OK; |
623 | 0 | } |
624 | | |
625 | 0 | if(--portnum > 0) { |
626 | 0 | port++; /* try next port */ |
627 | 0 | if(port == 0) |
628 | 0 | break; |
629 | 0 | infof(data, "Bind to local port %d failed, trying next", port - 1); |
630 | | /* We reuse/clobber the port variable here below */ |
631 | 0 | if(sock->sa_family == AF_INET) |
632 | 0 | si4->sin_port = ntohs(port); |
633 | 0 | #ifdef ENABLE_IPV6 |
634 | 0 | else |
635 | 0 | si6->sin6_port = ntohs(port); |
636 | 0 | #endif |
637 | 0 | } |
638 | 0 | else |
639 | 0 | break; |
640 | 0 | } |
641 | 0 | { |
642 | 0 | char buffer[STRERROR_LEN]; |
643 | 0 | data->state.os_errno = error = SOCKERRNO; |
644 | 0 | failf(data, "bind failed with errno %d: %s", |
645 | 0 | error, Curl_strerror(error, buffer, sizeof(buffer))); |
646 | 0 | } |
647 | |
|
648 | 0 | return CURLE_INTERFACE_FAILED; |
649 | 0 | } |
650 | | #endif |
651 | | |
652 | | /* |
653 | | * verifyconnect() returns TRUE if the connect really has happened. |
654 | | */ |
655 | | static bool verifyconnect(curl_socket_t sockfd, int *error) |
656 | 0 | { |
657 | 0 | bool rc = TRUE; |
658 | 0 | #ifdef SO_ERROR |
659 | 0 | int err = 0; |
660 | 0 | curl_socklen_t errSize = sizeof(err); |
661 | |
|
662 | | #ifdef _WIN32 |
663 | | /* |
664 | | * In October 2003 we effectively nullified this function on Windows due to |
665 | | * problems with it using all CPU in multi-threaded cases. |
666 | | * |
667 | | * In May 2004, we bring it back to offer more info back on connect failures. |
668 | | * Gisle Vanem could reproduce the former problems with this function, but |
669 | | * could avoid them by adding this SleepEx() call below: |
670 | | * |
671 | | * "I don't have Rational Quantify, but the hint from his post was |
672 | | * ntdll::NtRemoveIoCompletion(). So I'd assume the SleepEx (or maybe |
673 | | * just Sleep(0) would be enough?) would release whatever |
674 | | * mutex/critical-section the ntdll call is waiting on. |
675 | | * |
676 | | * Someone got to verify this on Win-NT 4.0, 2000." |
677 | | */ |
678 | | |
679 | | #ifdef _WIN32_WCE |
680 | | Sleep(0); |
681 | | #else |
682 | | SleepEx(0, FALSE); |
683 | | #endif |
684 | | |
685 | | #endif |
686 | |
|
687 | 0 | if(0 != getsockopt(sockfd, SOL_SOCKET, SO_ERROR, (void *)&err, &errSize)) |
688 | 0 | err = SOCKERRNO; |
689 | | #ifdef _WIN32_WCE |
690 | | /* Old WinCE versions don't support SO_ERROR */ |
691 | | if(WSAENOPROTOOPT == err) { |
692 | | SET_SOCKERRNO(0); |
693 | | err = 0; |
694 | | } |
695 | | #endif |
696 | | #if defined(EBADIOCTL) && defined(__minix) |
697 | | /* Minix 3.1.x doesn't support getsockopt on UDP sockets */ |
698 | | if(EBADIOCTL == err) { |
699 | | SET_SOCKERRNO(0); |
700 | | err = 0; |
701 | | } |
702 | | #endif |
703 | 0 | if((0 == err) || (EISCONN == err)) |
704 | | /* we are connected, awesome! */ |
705 | 0 | rc = TRUE; |
706 | 0 | else |
707 | | /* This wasn't a successful connect */ |
708 | 0 | rc = FALSE; |
709 | 0 | if(error) |
710 | 0 | *error = err; |
711 | | #else |
712 | | (void)sockfd; |
713 | | if(error) |
714 | | *error = SOCKERRNO; |
715 | | #endif |
716 | 0 | return rc; |
717 | 0 | } |
718 | | |
719 | | /** |
720 | | * Determine the curl code for a socket connect() == -1 with errno. |
721 | | */ |
722 | | static CURLcode socket_connect_result(struct Curl_easy *data, |
723 | | const char *ipaddress, int error) |
724 | 0 | { |
725 | 0 | switch(error) { |
726 | 0 | case EINPROGRESS: |
727 | 0 | case EWOULDBLOCK: |
728 | 0 | #if defined(EAGAIN) |
729 | | #if (EAGAIN) != (EWOULDBLOCK) |
730 | | /* On some platforms EAGAIN and EWOULDBLOCK are the |
731 | | * same value, and on others they are different, hence |
732 | | * the odd #if |
733 | | */ |
734 | | case EAGAIN: |
735 | | #endif |
736 | 0 | #endif |
737 | 0 | return CURLE_OK; |
738 | | |
739 | 0 | default: |
740 | | /* unknown error, fallthrough and try another address! */ |
741 | | #ifdef CURL_DISABLE_VERBOSE_STRINGS |
742 | | (void)ipaddress; |
743 | | #else |
744 | 0 | { |
745 | 0 | char buffer[STRERROR_LEN]; |
746 | 0 | infof(data, "Immediate connect fail for %s: %s", |
747 | 0 | ipaddress, Curl_strerror(error, buffer, sizeof(buffer))); |
748 | 0 | } |
749 | 0 | #endif |
750 | 0 | data->state.os_errno = error; |
751 | | /* connect failed */ |
752 | 0 | return CURLE_COULDNT_CONNECT; |
753 | 0 | } |
754 | 0 | } |
755 | | |
756 | | /* We have a recv buffer to enhance reads with len < NW_SMALL_READS. |
757 | | * This happens often on TLS connections where the TLS implementation |
758 | | * tries to read the head of a TLS record, determine the length of the |
759 | | * full record and then make a subsequent read for that. |
760 | | * On large reads, we will not fill the buffer to avoid the double copy. */ |
761 | 0 | #define NW_RECV_CHUNK_SIZE (64 * 1024) |
762 | 0 | #define NW_RECV_CHUNKS 1 |
763 | 0 | #define NW_SMALL_READS (1024) |
764 | | |
765 | | struct cf_socket_ctx { |
766 | | int transport; |
767 | | struct Curl_sockaddr_ex addr; /* address to connect to */ |
768 | | curl_socket_t sock; /* current attempt socket */ |
769 | | struct bufq recvbuf; /* used when `buffer_recv` is set */ |
770 | | char r_ip[MAX_IPADR_LEN]; /* remote IP as string */ |
771 | | int r_port; /* remote port number */ |
772 | | char l_ip[MAX_IPADR_LEN]; /* local IP as string */ |
773 | | int l_port; /* local port number */ |
774 | | struct curltime started_at; /* when socket was created */ |
775 | | struct curltime connected_at; /* when socket connected/got first byte */ |
776 | | struct curltime first_byte_at; /* when first byte was recvd */ |
777 | | int error; /* errno of last failure or 0 */ |
778 | | #ifdef DEBUGBUILD |
779 | | int wblock_percent; /* percent of writes doing EAGAIN */ |
780 | | int wpartial_percent; /* percent of bytes written in send */ |
781 | | int rblock_percent; /* percent of reads doing EAGAIN */ |
782 | | size_t recv_max; /* max enforced read size */ |
783 | | #endif |
784 | | BIT(got_first_byte); /* if first byte was received */ |
785 | | BIT(accepted); /* socket was accepted, not connected */ |
786 | | BIT(active); |
787 | | BIT(buffer_recv); |
788 | | }; |
789 | | |
790 | | static void cf_socket_ctx_init(struct cf_socket_ctx *ctx, |
791 | | const struct Curl_addrinfo *ai, |
792 | | int transport) |
793 | 0 | { |
794 | 0 | memset(ctx, 0, sizeof(*ctx)); |
795 | 0 | ctx->sock = CURL_SOCKET_BAD; |
796 | 0 | ctx->transport = transport; |
797 | 0 | Curl_sock_assign_addr(&ctx->addr, ai, transport); |
798 | 0 | Curl_bufq_init(&ctx->recvbuf, NW_RECV_CHUNK_SIZE, NW_RECV_CHUNKS); |
799 | 0 | #ifdef DEBUGBUILD |
800 | 0 | { |
801 | 0 | char *p = getenv("CURL_DBG_SOCK_WBLOCK"); |
802 | 0 | if(p) { |
803 | 0 | long l = strtol(p, NULL, 10); |
804 | 0 | if(l >= 0 && l <= 100) |
805 | 0 | ctx->wblock_percent = (int)l; |
806 | 0 | } |
807 | 0 | p = getenv("CURL_DBG_SOCK_WPARTIAL"); |
808 | 0 | if(p) { |
809 | 0 | long l = strtol(p, NULL, 10); |
810 | 0 | if(l >= 0 && l <= 100) |
811 | 0 | ctx->wpartial_percent = (int)l; |
812 | 0 | } |
813 | 0 | p = getenv("CURL_DBG_SOCK_RBLOCK"); |
814 | 0 | if(p) { |
815 | 0 | long l = strtol(p, NULL, 10); |
816 | 0 | if(l >= 0 && l <= 100) |
817 | 0 | ctx->rblock_percent = (int)l; |
818 | 0 | } |
819 | 0 | p = getenv("CURL_DBG_SOCK_RMAX"); |
820 | 0 | if(p) { |
821 | 0 | long l = strtol(p, NULL, 10); |
822 | 0 | if(l >= 0) |
823 | 0 | ctx->recv_max = (size_t)l; |
824 | 0 | } |
825 | 0 | } |
826 | 0 | #endif |
827 | 0 | } |
828 | | |
829 | | struct reader_ctx { |
830 | | struct Curl_cfilter *cf; |
831 | | struct Curl_easy *data; |
832 | | }; |
833 | | |
834 | | static ssize_t nw_in_read(void *reader_ctx, |
835 | | unsigned char *buf, size_t len, |
836 | | CURLcode *err) |
837 | 0 | { |
838 | 0 | struct reader_ctx *rctx = reader_ctx; |
839 | 0 | struct cf_socket_ctx *ctx = rctx->cf->ctx; |
840 | 0 | ssize_t nread; |
841 | |
|
842 | 0 | *err = CURLE_OK; |
843 | 0 | nread = sread(ctx->sock, buf, len); |
844 | |
|
845 | 0 | if(-1 == nread) { |
846 | 0 | int sockerr = SOCKERRNO; |
847 | |
|
848 | 0 | if( |
849 | | #ifdef WSAEWOULDBLOCK |
850 | | /* This is how Windows does it */ |
851 | | (WSAEWOULDBLOCK == sockerr) |
852 | | #else |
853 | | /* errno may be EWOULDBLOCK or on some systems EAGAIN when it returned |
854 | | due to its inability to send off data without blocking. We therefore |
855 | | treat both error codes the same here */ |
856 | 0 | (EWOULDBLOCK == sockerr) || (EAGAIN == sockerr) || (EINTR == sockerr) |
857 | 0 | #endif |
858 | 0 | ) { |
859 | | /* this is just a case of EWOULDBLOCK */ |
860 | 0 | *err = CURLE_AGAIN; |
861 | 0 | nread = -1; |
862 | 0 | } |
863 | 0 | else { |
864 | 0 | char buffer[STRERROR_LEN]; |
865 | |
|
866 | 0 | failf(rctx->data, "Recv failure: %s", |
867 | 0 | Curl_strerror(sockerr, buffer, sizeof(buffer))); |
868 | 0 | rctx->data->state.os_errno = sockerr; |
869 | 0 | *err = CURLE_RECV_ERROR; |
870 | 0 | nread = -1; |
871 | 0 | } |
872 | 0 | } |
873 | 0 | CURL_TRC_CF(rctx->data, rctx->cf, "nw_in_read(len=%zu) -> %d, err=%d", |
874 | 0 | len, (int)nread, *err); |
875 | 0 | return nread; |
876 | 0 | } |
877 | | |
878 | | static void cf_socket_close(struct Curl_cfilter *cf, struct Curl_easy *data) |
879 | 0 | { |
880 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
881 | |
|
882 | 0 | if(ctx && CURL_SOCKET_BAD != ctx->sock) { |
883 | 0 | CURL_TRC_CF(data, cf, "cf_socket_close(%" CURL_FORMAT_SOCKET_T |
884 | 0 | ")", ctx->sock); |
885 | 0 | if(ctx->sock == cf->conn->sock[cf->sockindex]) |
886 | 0 | cf->conn->sock[cf->sockindex] = CURL_SOCKET_BAD; |
887 | 0 | socket_close(data, cf->conn, !ctx->accepted, ctx->sock); |
888 | 0 | ctx->sock = CURL_SOCKET_BAD; |
889 | 0 | if(ctx->active && cf->sockindex == FIRSTSOCKET) |
890 | 0 | cf->conn->remote_addr = NULL; |
891 | 0 | Curl_bufq_reset(&ctx->recvbuf); |
892 | 0 | ctx->active = FALSE; |
893 | 0 | ctx->buffer_recv = FALSE; |
894 | 0 | memset(&ctx->started_at, 0, sizeof(ctx->started_at)); |
895 | 0 | memset(&ctx->connected_at, 0, sizeof(ctx->connected_at)); |
896 | 0 | } |
897 | |
|
898 | 0 | cf->connected = FALSE; |
899 | 0 | } |
900 | | |
901 | | static void cf_socket_destroy(struct Curl_cfilter *cf, struct Curl_easy *data) |
902 | 0 | { |
903 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
904 | |
|
905 | 0 | cf_socket_close(cf, data); |
906 | 0 | CURL_TRC_CF(data, cf, "destroy"); |
907 | 0 | Curl_bufq_free(&ctx->recvbuf); |
908 | 0 | free(ctx); |
909 | 0 | cf->ctx = NULL; |
910 | 0 | } |
911 | | |
912 | | static CURLcode set_local_ip(struct Curl_cfilter *cf, |
913 | | struct Curl_easy *data) |
914 | 0 | { |
915 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
916 | |
|
917 | 0 | #ifdef HAVE_GETSOCKNAME |
918 | 0 | if(!(data->conn->handler->protocol & CURLPROTO_TFTP)) { |
919 | | /* TFTP does not connect, so it cannot get the IP like this */ |
920 | |
|
921 | 0 | char buffer[STRERROR_LEN]; |
922 | 0 | struct Curl_sockaddr_storage ssloc; |
923 | 0 | curl_socklen_t slen = sizeof(struct Curl_sockaddr_storage); |
924 | |
|
925 | 0 | memset(&ssloc, 0, sizeof(ssloc)); |
926 | 0 | if(getsockname(ctx->sock, (struct sockaddr*) &ssloc, &slen)) { |
927 | 0 | int error = SOCKERRNO; |
928 | 0 | failf(data, "getsockname() failed with errno %d: %s", |
929 | 0 | error, Curl_strerror(error, buffer, sizeof(buffer))); |
930 | 0 | return CURLE_FAILED_INIT; |
931 | 0 | } |
932 | 0 | if(!Curl_addr2string((struct sockaddr*)&ssloc, slen, |
933 | 0 | ctx->l_ip, &ctx->l_port)) { |
934 | 0 | failf(data, "ssloc inet_ntop() failed with errno %d: %s", |
935 | 0 | errno, Curl_strerror(errno, buffer, sizeof(buffer))); |
936 | 0 | return CURLE_FAILED_INIT; |
937 | 0 | } |
938 | 0 | } |
939 | | #else |
940 | | (void)data; |
941 | | ctx->l_ip[0] = 0; |
942 | | ctx->l_port = -1; |
943 | | #endif |
944 | 0 | return CURLE_OK; |
945 | 0 | } |
946 | | |
947 | | static CURLcode set_remote_ip(struct Curl_cfilter *cf, |
948 | | struct Curl_easy *data) |
949 | 0 | { |
950 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
951 | | |
952 | | /* store remote address and port used in this connection attempt */ |
953 | 0 | if(!Curl_addr2string(&ctx->addr.sa_addr, ctx->addr.addrlen, |
954 | 0 | ctx->r_ip, &ctx->r_port)) { |
955 | 0 | char buffer[STRERROR_LEN]; |
956 | |
|
957 | 0 | ctx->error = errno; |
958 | | /* malformed address or bug in inet_ntop, try next address */ |
959 | 0 | failf(data, "sa_addr inet_ntop() failed with errno %d: %s", |
960 | 0 | errno, Curl_strerror(errno, buffer, sizeof(buffer))); |
961 | 0 | return CURLE_FAILED_INIT; |
962 | 0 | } |
963 | 0 | return CURLE_OK; |
964 | 0 | } |
965 | | |
966 | | static CURLcode cf_socket_open(struct Curl_cfilter *cf, |
967 | | struct Curl_easy *data) |
968 | 0 | { |
969 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
970 | 0 | int error = 0; |
971 | 0 | bool isconnected = FALSE; |
972 | 0 | CURLcode result = CURLE_COULDNT_CONNECT; |
973 | 0 | bool is_tcp; |
974 | |
|
975 | 0 | (void)data; |
976 | 0 | DEBUGASSERT(ctx->sock == CURL_SOCKET_BAD); |
977 | 0 | ctx->started_at = Curl_now(); |
978 | 0 | result = socket_open(data, &ctx->addr, &ctx->sock); |
979 | 0 | if(result) |
980 | 0 | goto out; |
981 | | |
982 | 0 | result = set_remote_ip(cf, data); |
983 | 0 | if(result) |
984 | 0 | goto out; |
985 | | |
986 | 0 | #ifndef CURL_DISABLE_VERBOSE_STRINGS |
987 | 0 | { |
988 | 0 | const char *ipmsg; |
989 | 0 | #ifdef ENABLE_IPV6 |
990 | 0 | if(ctx->addr.family == AF_INET6) { |
991 | 0 | set_ipv6_v6only(ctx->sock, 0); |
992 | 0 | ipmsg = " Trying [%s]:%d..."; |
993 | 0 | } |
994 | 0 | else |
995 | 0 | #endif |
996 | 0 | ipmsg = " Trying %s:%d..."; |
997 | 0 | infof(data, ipmsg, ctx->r_ip, ctx->r_port); |
998 | 0 | } |
999 | 0 | #endif |
1000 | |
|
1001 | 0 | #ifdef ENABLE_IPV6 |
1002 | 0 | is_tcp = (ctx->addr.family == AF_INET |
1003 | 0 | || ctx->addr.family == AF_INET6) && |
1004 | 0 | ctx->addr.socktype == SOCK_STREAM; |
1005 | | #else |
1006 | | is_tcp = (ctx->addr.family == AF_INET) && |
1007 | | ctx->addr.socktype == SOCK_STREAM; |
1008 | | #endif |
1009 | 0 | if(is_tcp && data->set.tcp_nodelay) |
1010 | 0 | tcpnodelay(data, ctx->sock); |
1011 | |
|
1012 | 0 | nosigpipe(data, ctx->sock); |
1013 | |
|
1014 | 0 | Curl_sndbufset(ctx->sock); |
1015 | |
|
1016 | 0 | if(is_tcp && data->set.tcp_keepalive) |
1017 | 0 | tcpkeepalive(data, ctx->sock); |
1018 | |
|
1019 | 0 | if(data->set.fsockopt) { |
1020 | | /* activate callback for setting socket options */ |
1021 | 0 | Curl_set_in_callback(data, true); |
1022 | 0 | error = data->set.fsockopt(data->set.sockopt_client, |
1023 | 0 | ctx->sock, |
1024 | 0 | CURLSOCKTYPE_IPCXN); |
1025 | 0 | Curl_set_in_callback(data, false); |
1026 | |
|
1027 | 0 | if(error == CURL_SOCKOPT_ALREADY_CONNECTED) |
1028 | 0 | isconnected = TRUE; |
1029 | 0 | else if(error) { |
1030 | 0 | result = CURLE_ABORTED_BY_CALLBACK; |
1031 | 0 | goto out; |
1032 | 0 | } |
1033 | 0 | } |
1034 | | |
1035 | 0 | #ifndef CURL_DISABLE_BINDLOCAL |
1036 | | /* possibly bind the local end to an IP, interface or port */ |
1037 | 0 | if(ctx->addr.family == AF_INET |
1038 | 0 | #ifdef ENABLE_IPV6 |
1039 | 0 | || ctx->addr.family == AF_INET6 |
1040 | 0 | #endif |
1041 | 0 | ) { |
1042 | 0 | result = bindlocal(data, cf->conn, ctx->sock, ctx->addr.family, |
1043 | 0 | Curl_ipv6_scope(&ctx->addr.sa_addr)); |
1044 | 0 | if(result) { |
1045 | 0 | if(result == CURLE_UNSUPPORTED_PROTOCOL) { |
1046 | | /* The address family is not supported on this interface. |
1047 | | We can continue trying addresses */ |
1048 | 0 | result = CURLE_COULDNT_CONNECT; |
1049 | 0 | } |
1050 | 0 | goto out; |
1051 | 0 | } |
1052 | 0 | } |
1053 | 0 | #endif |
1054 | | |
1055 | | /* set socket non-blocking */ |
1056 | 0 | (void)curlx_nonblock(ctx->sock, TRUE); |
1057 | |
|
1058 | 0 | out: |
1059 | 0 | if(result) { |
1060 | 0 | if(ctx->sock != CURL_SOCKET_BAD) { |
1061 | 0 | socket_close(data, cf->conn, TRUE, ctx->sock); |
1062 | 0 | ctx->sock = CURL_SOCKET_BAD; |
1063 | 0 | } |
1064 | 0 | } |
1065 | 0 | else if(isconnected) { |
1066 | 0 | set_local_ip(cf, data); |
1067 | 0 | ctx->connected_at = Curl_now(); |
1068 | 0 | cf->connected = TRUE; |
1069 | 0 | } |
1070 | 0 | CURL_TRC_CF(data, cf, "cf_socket_open() -> %d, fd=%" CURL_FORMAT_SOCKET_T, |
1071 | 0 | result, ctx->sock); |
1072 | 0 | return result; |
1073 | 0 | } |
1074 | | |
1075 | | static int do_connect(struct Curl_cfilter *cf, struct Curl_easy *data, |
1076 | | bool is_tcp_fastopen) |
1077 | 0 | { |
1078 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1079 | 0 | #ifdef TCP_FASTOPEN_CONNECT |
1080 | 0 | int optval = 1; |
1081 | 0 | #endif |
1082 | 0 | int rc = -1; |
1083 | |
|
1084 | 0 | (void)data; |
1085 | 0 | if(is_tcp_fastopen) { |
1086 | | #if defined(CONNECT_DATA_IDEMPOTENT) /* Darwin */ |
1087 | | # if defined(HAVE_BUILTIN_AVAILABLE) |
1088 | | /* while connectx function is available since macOS 10.11 / iOS 9, |
1089 | | it did not have the interface declared correctly until |
1090 | | Xcode 9 / macOS SDK 10.13 */ |
1091 | | if(__builtin_available(macOS 10.11, iOS 9.0, tvOS 9.0, watchOS 2.0, *)) { |
1092 | | sa_endpoints_t endpoints; |
1093 | | endpoints.sae_srcif = 0; |
1094 | | endpoints.sae_srcaddr = NULL; |
1095 | | endpoints.sae_srcaddrlen = 0; |
1096 | | endpoints.sae_dstaddr = &ctx->addr.sa_addr; |
1097 | | endpoints.sae_dstaddrlen = ctx->addr.addrlen; |
1098 | | |
1099 | | rc = connectx(ctx->sock, &endpoints, SAE_ASSOCID_ANY, |
1100 | | CONNECT_RESUME_ON_READ_WRITE | CONNECT_DATA_IDEMPOTENT, |
1101 | | NULL, 0, NULL, NULL); |
1102 | | } |
1103 | | else { |
1104 | | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1105 | | } |
1106 | | # else |
1107 | | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1108 | | # endif /* HAVE_BUILTIN_AVAILABLE */ |
1109 | | #elif defined(TCP_FASTOPEN_CONNECT) /* Linux >= 4.11 */ |
1110 | 0 | if(setsockopt(ctx->sock, IPPROTO_TCP, TCP_FASTOPEN_CONNECT, |
1111 | 0 | (void *)&optval, sizeof(optval)) < 0) |
1112 | 0 | infof(data, "Failed to enable TCP Fast Open on fd %" |
1113 | 0 | CURL_FORMAT_SOCKET_T, ctx->sock); |
1114 | |
|
1115 | 0 | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1116 | | #elif defined(MSG_FASTOPEN) /* old Linux */ |
1117 | | if(cf->conn->given->flags & PROTOPT_SSL) |
1118 | | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1119 | | else |
1120 | | rc = 0; /* Do nothing */ |
1121 | | #endif |
1122 | 0 | } |
1123 | 0 | else { |
1124 | 0 | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1125 | 0 | } |
1126 | 0 | return rc; |
1127 | 0 | } |
1128 | | |
1129 | | static CURLcode cf_tcp_connect(struct Curl_cfilter *cf, |
1130 | | struct Curl_easy *data, |
1131 | | bool blocking, bool *done) |
1132 | 0 | { |
1133 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1134 | 0 | CURLcode result = CURLE_COULDNT_CONNECT; |
1135 | 0 | int rc = 0; |
1136 | |
|
1137 | 0 | (void)data; |
1138 | 0 | if(cf->connected) { |
1139 | 0 | *done = TRUE; |
1140 | 0 | return CURLE_OK; |
1141 | 0 | } |
1142 | | |
1143 | | /* TODO: need to support blocking connect? */ |
1144 | 0 | if(blocking) |
1145 | 0 | return CURLE_UNSUPPORTED_PROTOCOL; |
1146 | | |
1147 | 0 | *done = FALSE; /* a very negative world view is best */ |
1148 | 0 | if(ctx->sock == CURL_SOCKET_BAD) { |
1149 | 0 | int error; |
1150 | |
|
1151 | 0 | result = cf_socket_open(cf, data); |
1152 | 0 | if(result) |
1153 | 0 | goto out; |
1154 | | |
1155 | 0 | if(cf->connected) { |
1156 | 0 | *done = TRUE; |
1157 | 0 | return CURLE_OK; |
1158 | 0 | } |
1159 | | |
1160 | | /* Connect TCP socket */ |
1161 | 0 | rc = do_connect(cf, data, cf->conn->bits.tcp_fastopen); |
1162 | 0 | error = SOCKERRNO; |
1163 | 0 | set_local_ip(cf, data); |
1164 | 0 | CURL_TRC_CF(data, cf, "local address %s port %d...", |
1165 | 0 | ctx->l_ip, ctx->l_port); |
1166 | 0 | if(-1 == rc) { |
1167 | 0 | result = socket_connect_result(data, ctx->r_ip, error); |
1168 | 0 | goto out; |
1169 | 0 | } |
1170 | 0 | } |
1171 | | |
1172 | | #ifdef mpeix |
1173 | | /* Call this function once now, and ignore the results. We do this to |
1174 | | "clear" the error state on the socket so that we can later read it |
1175 | | reliably. This is reported necessary on the MPE/iX operating |
1176 | | system. */ |
1177 | | (void)verifyconnect(ctx->sock, NULL); |
1178 | | #endif |
1179 | | /* check socket for connect */ |
1180 | 0 | rc = SOCKET_WRITABLE(ctx->sock, 0); |
1181 | |
|
1182 | 0 | if(rc == 0) { /* no connection yet */ |
1183 | 0 | CURL_TRC_CF(data, cf, "not connected yet"); |
1184 | 0 | return CURLE_OK; |
1185 | 0 | } |
1186 | 0 | else if(rc == CURL_CSELECT_OUT || cf->conn->bits.tcp_fastopen) { |
1187 | 0 | if(verifyconnect(ctx->sock, &ctx->error)) { |
1188 | | /* we are connected with TCP, awesome! */ |
1189 | 0 | ctx->connected_at = Curl_now(); |
1190 | 0 | set_local_ip(cf, data); |
1191 | 0 | *done = TRUE; |
1192 | 0 | cf->connected = TRUE; |
1193 | 0 | CURL_TRC_CF(data, cf, "connected"); |
1194 | 0 | return CURLE_OK; |
1195 | 0 | } |
1196 | 0 | } |
1197 | 0 | else if(rc & CURL_CSELECT_ERR) { |
1198 | 0 | (void)verifyconnect(ctx->sock, &ctx->error); |
1199 | 0 | result = CURLE_COULDNT_CONNECT; |
1200 | 0 | } |
1201 | | |
1202 | 0 | out: |
1203 | 0 | if(result) { |
1204 | 0 | if(ctx->error) { |
1205 | 0 | set_local_ip(cf, data); |
1206 | 0 | data->state.os_errno = ctx->error; |
1207 | 0 | SET_SOCKERRNO(ctx->error); |
1208 | 0 | #ifndef CURL_DISABLE_VERBOSE_STRINGS |
1209 | 0 | { |
1210 | 0 | char buffer[STRERROR_LEN]; |
1211 | 0 | infof(data, "connect to %s port %u from %s port %d failed: %s", |
1212 | 0 | ctx->r_ip, ctx->r_port, ctx->l_ip, ctx->l_port, |
1213 | 0 | Curl_strerror(ctx->error, buffer, sizeof(buffer))); |
1214 | 0 | } |
1215 | 0 | #endif |
1216 | 0 | } |
1217 | 0 | if(ctx->sock != CURL_SOCKET_BAD) { |
1218 | 0 | socket_close(data, cf->conn, TRUE, ctx->sock); |
1219 | 0 | ctx->sock = CURL_SOCKET_BAD; |
1220 | 0 | } |
1221 | 0 | *done = FALSE; |
1222 | 0 | } |
1223 | 0 | return result; |
1224 | 0 | } |
1225 | | |
1226 | | static void cf_socket_get_host(struct Curl_cfilter *cf, |
1227 | | struct Curl_easy *data, |
1228 | | const char **phost, |
1229 | | const char **pdisplay_host, |
1230 | | int *pport) |
1231 | 0 | { |
1232 | 0 | (void)data; |
1233 | 0 | *phost = cf->conn->host.name; |
1234 | 0 | *pdisplay_host = cf->conn->host.dispname; |
1235 | 0 | *pport = cf->conn->port; |
1236 | 0 | } |
1237 | | |
1238 | | static void cf_socket_adjust_pollset(struct Curl_cfilter *cf, |
1239 | | struct Curl_easy *data, |
1240 | | struct easy_pollset *ps) |
1241 | 0 | { |
1242 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1243 | |
|
1244 | 0 | if(ctx->sock != CURL_SOCKET_BAD) { |
1245 | 0 | if(!cf->connected) |
1246 | 0 | Curl_pollset_set_out_only(data, ps, ctx->sock); |
1247 | 0 | else |
1248 | 0 | Curl_pollset_add_in(data, ps, ctx->sock); |
1249 | 0 | CURL_TRC_CF(data, cf, "adjust_pollset -> %d socks", ps->num); |
1250 | 0 | } |
1251 | 0 | } |
1252 | | |
1253 | | static bool cf_socket_data_pending(struct Curl_cfilter *cf, |
1254 | | const struct Curl_easy *data) |
1255 | 0 | { |
1256 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1257 | 0 | int readable; |
1258 | |
|
1259 | 0 | (void)data; |
1260 | 0 | if(!Curl_bufq_is_empty(&ctx->recvbuf)) |
1261 | 0 | return TRUE; |
1262 | | |
1263 | 0 | readable = SOCKET_READABLE(ctx->sock, 0); |
1264 | 0 | return (readable > 0 && (readable & CURL_CSELECT_IN)); |
1265 | 0 | } |
1266 | | |
1267 | | static ssize_t cf_socket_send(struct Curl_cfilter *cf, struct Curl_easy *data, |
1268 | | const void *buf, size_t len, CURLcode *err) |
1269 | 0 | { |
1270 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1271 | 0 | curl_socket_t fdsave; |
1272 | 0 | ssize_t nwritten; |
1273 | 0 | size_t orig_len = len; |
1274 | |
|
1275 | 0 | *err = CURLE_OK; |
1276 | 0 | fdsave = cf->conn->sock[cf->sockindex]; |
1277 | 0 | cf->conn->sock[cf->sockindex] = ctx->sock; |
1278 | |
|
1279 | 0 | #ifdef DEBUGBUILD |
1280 | | /* simulate network blocking/partial writes */ |
1281 | 0 | if(ctx->wblock_percent > 0) { |
1282 | 0 | unsigned char c; |
1283 | 0 | Curl_rand(data, &c, 1); |
1284 | 0 | if(c >= ((100-ctx->wblock_percent)*256/100)) { |
1285 | 0 | CURL_TRC_CF(data, cf, "send(len=%zu) SIMULATE EWOULDBLOCK", orig_len); |
1286 | 0 | *err = CURLE_AGAIN; |
1287 | 0 | nwritten = -1; |
1288 | 0 | cf->conn->sock[cf->sockindex] = fdsave; |
1289 | 0 | return nwritten; |
1290 | 0 | } |
1291 | 0 | } |
1292 | 0 | if(cf->cft != &Curl_cft_udp && ctx->wpartial_percent > 0 && len > 8) { |
1293 | 0 | len = len * ctx->wpartial_percent / 100; |
1294 | 0 | if(!len) |
1295 | 0 | len = 1; |
1296 | 0 | CURL_TRC_CF(data, cf, "send(len=%zu) SIMULATE partial write of %zu bytes", |
1297 | 0 | orig_len, len); |
1298 | 0 | } |
1299 | 0 | #endif |
1300 | |
|
1301 | | #if defined(MSG_FASTOPEN) && !defined(TCP_FASTOPEN_CONNECT) /* Linux */ |
1302 | | if(cf->conn->bits.tcp_fastopen) { |
1303 | | nwritten = sendto(ctx->sock, buf, len, MSG_FASTOPEN, |
1304 | | &cf->conn->remote_addr->sa_addr, |
1305 | | cf->conn->remote_addr->addrlen); |
1306 | | cf->conn->bits.tcp_fastopen = FALSE; |
1307 | | } |
1308 | | else |
1309 | | #endif |
1310 | 0 | nwritten = swrite(ctx->sock, buf, len); |
1311 | |
|
1312 | 0 | if(-1 == nwritten) { |
1313 | 0 | int sockerr = SOCKERRNO; |
1314 | |
|
1315 | 0 | if( |
1316 | | #ifdef WSAEWOULDBLOCK |
1317 | | /* This is how Windows does it */ |
1318 | | (WSAEWOULDBLOCK == sockerr) |
1319 | | #else |
1320 | | /* errno may be EWOULDBLOCK or on some systems EAGAIN when it returned |
1321 | | due to its inability to send off data without blocking. We therefore |
1322 | | treat both error codes the same here */ |
1323 | 0 | (EWOULDBLOCK == sockerr) || (EAGAIN == sockerr) || (EINTR == sockerr) || |
1324 | 0 | (EINPROGRESS == sockerr) |
1325 | 0 | #endif |
1326 | 0 | ) { |
1327 | | /* this is just a case of EWOULDBLOCK */ |
1328 | 0 | *err = CURLE_AGAIN; |
1329 | 0 | } |
1330 | 0 | else { |
1331 | 0 | char buffer[STRERROR_LEN]; |
1332 | 0 | failf(data, "Send failure: %s", |
1333 | 0 | Curl_strerror(sockerr, buffer, sizeof(buffer))); |
1334 | 0 | data->state.os_errno = sockerr; |
1335 | 0 | *err = CURLE_SEND_ERROR; |
1336 | 0 | } |
1337 | 0 | } |
1338 | |
|
1339 | 0 | CURL_TRC_CF(data, cf, "send(len=%zu) -> %d, err=%d", |
1340 | 0 | orig_len, (int)nwritten, *err); |
1341 | 0 | cf->conn->sock[cf->sockindex] = fdsave; |
1342 | 0 | return nwritten; |
1343 | 0 | } |
1344 | | |
1345 | | static ssize_t cf_socket_recv(struct Curl_cfilter *cf, struct Curl_easy *data, |
1346 | | char *buf, size_t len, CURLcode *err) |
1347 | 0 | { |
1348 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1349 | 0 | curl_socket_t fdsave; |
1350 | 0 | ssize_t nread; |
1351 | |
|
1352 | 0 | *err = CURLE_OK; |
1353 | |
|
1354 | 0 | fdsave = cf->conn->sock[cf->sockindex]; |
1355 | 0 | cf->conn->sock[cf->sockindex] = ctx->sock; |
1356 | |
|
1357 | 0 | #ifdef DEBUGBUILD |
1358 | | /* simulate network blocking/partial reads */ |
1359 | 0 | if(cf->cft != &Curl_cft_udp && ctx->rblock_percent > 0) { |
1360 | 0 | unsigned char c; |
1361 | 0 | Curl_rand(data, &c, 1); |
1362 | 0 | if(c >= ((100-ctx->rblock_percent)*256/100)) { |
1363 | 0 | CURL_TRC_CF(data, cf, "recv(len=%zu) SIMULATE EWOULDBLOCK", len); |
1364 | 0 | *err = CURLE_AGAIN; |
1365 | 0 | nread = -1; |
1366 | 0 | cf->conn->sock[cf->sockindex] = fdsave; |
1367 | 0 | return nread; |
1368 | 0 | } |
1369 | 0 | } |
1370 | 0 | if(cf->cft != &Curl_cft_udp && ctx->recv_max && ctx->recv_max < len) { |
1371 | 0 | size_t orig_len = len; |
1372 | 0 | len = ctx->recv_max; |
1373 | 0 | CURL_TRC_CF(data, cf, "recv(len=%zu) SIMULATE max read of %zu bytes", |
1374 | 0 | orig_len, len); |
1375 | 0 | } |
1376 | 0 | #endif |
1377 | |
|
1378 | 0 | if(ctx->buffer_recv && !Curl_bufq_is_empty(&ctx->recvbuf)) { |
1379 | 0 | CURL_TRC_CF(data, cf, "recv from buffer"); |
1380 | 0 | nread = Curl_bufq_read(&ctx->recvbuf, (unsigned char *)buf, len, err); |
1381 | 0 | } |
1382 | 0 | else { |
1383 | 0 | struct reader_ctx rctx; |
1384 | |
|
1385 | 0 | rctx.cf = cf; |
1386 | 0 | rctx.data = data; |
1387 | | |
1388 | | /* "small" reads may trigger filling our buffer, "large" reads |
1389 | | * are probably not worth the additional copy */ |
1390 | 0 | if(ctx->buffer_recv && len < NW_SMALL_READS) { |
1391 | 0 | ssize_t nwritten; |
1392 | 0 | nwritten = Curl_bufq_slurp(&ctx->recvbuf, nw_in_read, &rctx, err); |
1393 | 0 | if(nwritten < 0 && !Curl_bufq_is_empty(&ctx->recvbuf)) { |
1394 | | /* we have a partial read with an error. need to deliver |
1395 | | * what we got, return the error later. */ |
1396 | 0 | CURL_TRC_CF(data, cf, "partial read: empty buffer first"); |
1397 | 0 | nread = Curl_bufq_read(&ctx->recvbuf, (unsigned char *)buf, len, err); |
1398 | 0 | } |
1399 | 0 | else if(nwritten < 0) { |
1400 | 0 | nread = -1; |
1401 | 0 | goto out; |
1402 | 0 | } |
1403 | 0 | else if(nwritten == 0) { |
1404 | | /* eof */ |
1405 | 0 | *err = CURLE_OK; |
1406 | 0 | nread = 0; |
1407 | 0 | } |
1408 | 0 | else { |
1409 | 0 | CURL_TRC_CF(data, cf, "buffered %zd additional bytes", nwritten); |
1410 | 0 | nread = Curl_bufq_read(&ctx->recvbuf, (unsigned char *)buf, len, err); |
1411 | 0 | } |
1412 | 0 | } |
1413 | 0 | else { |
1414 | 0 | nread = nw_in_read(&rctx, (unsigned char *)buf, len, err); |
1415 | 0 | } |
1416 | 0 | } |
1417 | | |
1418 | 0 | out: |
1419 | 0 | CURL_TRC_CF(data, cf, "recv(len=%zu) -> %d, err=%d", len, (int)nread, |
1420 | 0 | *err); |
1421 | 0 | if(nread > 0 && !ctx->got_first_byte) { |
1422 | 0 | ctx->first_byte_at = Curl_now(); |
1423 | 0 | ctx->got_first_byte = TRUE; |
1424 | 0 | } |
1425 | 0 | cf->conn->sock[cf->sockindex] = fdsave; |
1426 | 0 | return nread; |
1427 | 0 | } |
1428 | | |
1429 | | static void conn_set_primary_ip(struct Curl_cfilter *cf, |
1430 | | struct Curl_easy *data) |
1431 | 0 | { |
1432 | 0 | #ifdef HAVE_GETPEERNAME |
1433 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1434 | 0 | if(!(data->conn->handler->protocol & CURLPROTO_TFTP)) { |
1435 | | /* TFTP does not connect the endpoint: getpeername() failed with errno |
1436 | | 107: Transport endpoint is not connected */ |
1437 | |
|
1438 | 0 | char buffer[STRERROR_LEN]; |
1439 | 0 | struct Curl_sockaddr_storage ssrem; |
1440 | 0 | curl_socklen_t plen; |
1441 | 0 | int port; |
1442 | |
|
1443 | 0 | plen = sizeof(ssrem); |
1444 | 0 | memset(&ssrem, 0, plen); |
1445 | 0 | if(getpeername(ctx->sock, (struct sockaddr*) &ssrem, &plen)) { |
1446 | 0 | int error = SOCKERRNO; |
1447 | 0 | failf(data, "getpeername() failed with errno %d: %s", |
1448 | 0 | error, Curl_strerror(error, buffer, sizeof(buffer))); |
1449 | 0 | return; |
1450 | 0 | } |
1451 | 0 | if(!Curl_addr2string((struct sockaddr*)&ssrem, plen, |
1452 | 0 | cf->conn->primary_ip, &port)) { |
1453 | 0 | failf(data, "ssrem inet_ntop() failed with errno %d: %s", |
1454 | 0 | errno, Curl_strerror(errno, buffer, sizeof(buffer))); |
1455 | 0 | return; |
1456 | 0 | } |
1457 | 0 | } |
1458 | | #else |
1459 | | cf->conn->primary_ip[0] = 0; |
1460 | | (void)data; |
1461 | | #endif |
1462 | 0 | } |
1463 | | |
1464 | | static void cf_socket_active(struct Curl_cfilter *cf, struct Curl_easy *data) |
1465 | 0 | { |
1466 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1467 | | |
1468 | | /* use this socket from now on */ |
1469 | 0 | cf->conn->sock[cf->sockindex] = ctx->sock; |
1470 | | /* the first socket info gets set at conn and data */ |
1471 | 0 | if(cf->sockindex == FIRSTSOCKET) { |
1472 | 0 | cf->conn->remote_addr = &ctx->addr; |
1473 | 0 | #ifdef ENABLE_IPV6 |
1474 | 0 | cf->conn->bits.ipv6 = (ctx->addr.family == AF_INET6)? TRUE : FALSE; |
1475 | 0 | #endif |
1476 | 0 | conn_set_primary_ip(cf, data); |
1477 | 0 | set_local_ip(cf, data); |
1478 | 0 | Curl_persistconninfo(data, cf->conn, ctx->l_ip, ctx->l_port); |
1479 | | /* buffering is currently disabled by default because we have stalls |
1480 | | * in parallel transfers where not all buffered data is consumed and no |
1481 | | * socket events happen. |
1482 | | */ |
1483 | 0 | ctx->buffer_recv = FALSE; |
1484 | 0 | } |
1485 | 0 | ctx->active = TRUE; |
1486 | 0 | } |
1487 | | |
1488 | | static CURLcode cf_socket_cntrl(struct Curl_cfilter *cf, |
1489 | | struct Curl_easy *data, |
1490 | | int event, int arg1, void *arg2) |
1491 | 0 | { |
1492 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1493 | |
|
1494 | 0 | (void)arg1; |
1495 | 0 | (void)arg2; |
1496 | 0 | switch(event) { |
1497 | 0 | case CF_CTRL_CONN_INFO_UPDATE: |
1498 | 0 | cf_socket_active(cf, data); |
1499 | 0 | break; |
1500 | 0 | case CF_CTRL_DATA_SETUP: |
1501 | 0 | Curl_persistconninfo(data, cf->conn, ctx->l_ip, ctx->l_port); |
1502 | 0 | break; |
1503 | 0 | case CF_CTRL_FORGET_SOCKET: |
1504 | 0 | ctx->sock = CURL_SOCKET_BAD; |
1505 | 0 | break; |
1506 | 0 | } |
1507 | 0 | return CURLE_OK; |
1508 | 0 | } |
1509 | | |
1510 | | static bool cf_socket_conn_is_alive(struct Curl_cfilter *cf, |
1511 | | struct Curl_easy *data, |
1512 | | bool *input_pending) |
1513 | 0 | { |
1514 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1515 | 0 | struct pollfd pfd[1]; |
1516 | 0 | int r; |
1517 | |
|
1518 | 0 | *input_pending = FALSE; |
1519 | 0 | (void)data; |
1520 | 0 | if(!ctx || ctx->sock == CURL_SOCKET_BAD) |
1521 | 0 | return FALSE; |
1522 | | |
1523 | | /* Check with 0 timeout if there are any events pending on the socket */ |
1524 | 0 | pfd[0].fd = ctx->sock; |
1525 | 0 | pfd[0].events = POLLRDNORM|POLLIN|POLLRDBAND|POLLPRI; |
1526 | 0 | pfd[0].revents = 0; |
1527 | |
|
1528 | 0 | r = Curl_poll(pfd, 1, 0); |
1529 | 0 | if(r < 0) { |
1530 | 0 | CURL_TRC_CF(data, cf, "is_alive: poll error, assume dead"); |
1531 | 0 | return FALSE; |
1532 | 0 | } |
1533 | 0 | else if(r == 0) { |
1534 | 0 | CURL_TRC_CF(data, cf, "is_alive: poll timeout, assume alive"); |
1535 | 0 | return TRUE; |
1536 | 0 | } |
1537 | 0 | else if(pfd[0].revents & (POLLERR|POLLHUP|POLLPRI|POLLNVAL)) { |
1538 | 0 | CURL_TRC_CF(data, cf, "is_alive: err/hup/etc events, assume dead"); |
1539 | 0 | return FALSE; |
1540 | 0 | } |
1541 | | |
1542 | 0 | CURL_TRC_CF(data, cf, "is_alive: valid events, looks alive"); |
1543 | 0 | *input_pending = TRUE; |
1544 | 0 | return TRUE; |
1545 | 0 | } |
1546 | | |
1547 | | static CURLcode cf_socket_query(struct Curl_cfilter *cf, |
1548 | | struct Curl_easy *data, |
1549 | | int query, int *pres1, void *pres2) |
1550 | 0 | { |
1551 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1552 | |
|
1553 | 0 | switch(query) { |
1554 | 0 | case CF_QUERY_SOCKET: |
1555 | 0 | DEBUGASSERT(pres2); |
1556 | 0 | *((curl_socket_t *)pres2) = ctx->sock; |
1557 | 0 | return CURLE_OK; |
1558 | 0 | case CF_QUERY_CONNECT_REPLY_MS: |
1559 | 0 | if(ctx->got_first_byte) { |
1560 | 0 | timediff_t ms = Curl_timediff(ctx->first_byte_at, ctx->started_at); |
1561 | 0 | *pres1 = (ms < INT_MAX)? (int)ms : INT_MAX; |
1562 | 0 | } |
1563 | 0 | else |
1564 | 0 | *pres1 = -1; |
1565 | 0 | return CURLE_OK; |
1566 | 0 | case CF_QUERY_TIMER_CONNECT: { |
1567 | 0 | struct curltime *when = pres2; |
1568 | 0 | switch(ctx->transport) { |
1569 | 0 | case TRNSPRT_UDP: |
1570 | 0 | case TRNSPRT_QUIC: |
1571 | | /* Since UDP connected sockets work different from TCP, we use the |
1572 | | * time of the first byte from the peer as the "connect" time. */ |
1573 | 0 | if(ctx->got_first_byte) { |
1574 | 0 | *when = ctx->first_byte_at; |
1575 | 0 | break; |
1576 | 0 | } |
1577 | | /* FALLTHROUGH */ |
1578 | 0 | default: |
1579 | 0 | *when = ctx->connected_at; |
1580 | 0 | break; |
1581 | 0 | } |
1582 | 0 | return CURLE_OK; |
1583 | 0 | } |
1584 | 0 | default: |
1585 | 0 | break; |
1586 | 0 | } |
1587 | 0 | return cf->next? |
1588 | 0 | cf->next->cft->query(cf->next, data, query, pres1, pres2) : |
1589 | 0 | CURLE_UNKNOWN_OPTION; |
1590 | 0 | } |
1591 | | |
1592 | | struct Curl_cftype Curl_cft_tcp = { |
1593 | | "TCP", |
1594 | | CF_TYPE_IP_CONNECT, |
1595 | | CURL_LOG_LVL_NONE, |
1596 | | cf_socket_destroy, |
1597 | | cf_tcp_connect, |
1598 | | cf_socket_close, |
1599 | | cf_socket_get_host, |
1600 | | cf_socket_adjust_pollset, |
1601 | | cf_socket_data_pending, |
1602 | | cf_socket_send, |
1603 | | cf_socket_recv, |
1604 | | cf_socket_cntrl, |
1605 | | cf_socket_conn_is_alive, |
1606 | | Curl_cf_def_conn_keep_alive, |
1607 | | cf_socket_query, |
1608 | | }; |
1609 | | |
1610 | | CURLcode Curl_cf_tcp_create(struct Curl_cfilter **pcf, |
1611 | | struct Curl_easy *data, |
1612 | | struct connectdata *conn, |
1613 | | const struct Curl_addrinfo *ai, |
1614 | | int transport) |
1615 | 0 | { |
1616 | 0 | struct cf_socket_ctx *ctx = NULL; |
1617 | 0 | struct Curl_cfilter *cf = NULL; |
1618 | 0 | CURLcode result; |
1619 | |
|
1620 | 0 | (void)data; |
1621 | 0 | (void)conn; |
1622 | 0 | DEBUGASSERT(transport == TRNSPRT_TCP); |
1623 | 0 | ctx = calloc(1, sizeof(*ctx)); |
1624 | 0 | if(!ctx) { |
1625 | 0 | result = CURLE_OUT_OF_MEMORY; |
1626 | 0 | goto out; |
1627 | 0 | } |
1628 | 0 | cf_socket_ctx_init(ctx, ai, transport); |
1629 | |
|
1630 | 0 | result = Curl_cf_create(&cf, &Curl_cft_tcp, ctx); |
1631 | |
|
1632 | 0 | out: |
1633 | 0 | *pcf = (!result)? cf : NULL; |
1634 | 0 | if(result) { |
1635 | 0 | Curl_safefree(cf); |
1636 | 0 | Curl_safefree(ctx); |
1637 | 0 | } |
1638 | |
|
1639 | 0 | return result; |
1640 | 0 | } |
1641 | | |
1642 | | static CURLcode cf_udp_setup_quic(struct Curl_cfilter *cf, |
1643 | | struct Curl_easy *data) |
1644 | 0 | { |
1645 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1646 | 0 | int rc; |
1647 | | |
1648 | | /* QUIC needs a connected socket, nonblocking */ |
1649 | 0 | DEBUGASSERT(ctx->sock != CURL_SOCKET_BAD); |
1650 | | |
1651 | 0 | rc = connect(ctx->sock, &ctx->addr.sa_addr, ctx->addr.addrlen); |
1652 | 0 | if(-1 == rc) { |
1653 | 0 | return socket_connect_result(data, ctx->r_ip, SOCKERRNO); |
1654 | 0 | } |
1655 | 0 | set_local_ip(cf, data); |
1656 | 0 | CURL_TRC_CF(data, cf, "%s socket %" CURL_FORMAT_SOCKET_T |
1657 | 0 | " connected: [%s:%d] -> [%s:%d]", |
1658 | 0 | (ctx->transport == TRNSPRT_QUIC)? "QUIC" : "UDP", |
1659 | 0 | ctx->sock, ctx->l_ip, ctx->l_port, ctx->r_ip, ctx->r_port); |
1660 | |
|
1661 | 0 | (void)curlx_nonblock(ctx->sock, TRUE); |
1662 | 0 | switch(ctx->addr.family) { |
1663 | 0 | #if defined(__linux__) && defined(IP_MTU_DISCOVER) |
1664 | 0 | case AF_INET: { |
1665 | 0 | int val = IP_PMTUDISC_DO; |
1666 | 0 | (void)setsockopt(ctx->sock, IPPROTO_IP, IP_MTU_DISCOVER, &val, |
1667 | 0 | sizeof(val)); |
1668 | 0 | break; |
1669 | 0 | } |
1670 | 0 | #endif |
1671 | 0 | #if defined(__linux__) && defined(IPV6_MTU_DISCOVER) |
1672 | 0 | case AF_INET6: { |
1673 | 0 | int val = IPV6_PMTUDISC_DO; |
1674 | 0 | (void)setsockopt(ctx->sock, IPPROTO_IPV6, IPV6_MTU_DISCOVER, &val, |
1675 | 0 | sizeof(val)); |
1676 | 0 | break; |
1677 | 0 | } |
1678 | 0 | #endif |
1679 | 0 | } |
1680 | 0 | return CURLE_OK; |
1681 | 0 | } |
1682 | | |
1683 | | static CURLcode cf_udp_connect(struct Curl_cfilter *cf, |
1684 | | struct Curl_easy *data, |
1685 | | bool blocking, bool *done) |
1686 | 0 | { |
1687 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1688 | 0 | CURLcode result = CURLE_COULDNT_CONNECT; |
1689 | |
|
1690 | 0 | (void)blocking; |
1691 | 0 | if(cf->connected) { |
1692 | 0 | *done = TRUE; |
1693 | 0 | return CURLE_OK; |
1694 | 0 | } |
1695 | 0 | *done = FALSE; |
1696 | 0 | if(ctx->sock == CURL_SOCKET_BAD) { |
1697 | 0 | result = cf_socket_open(cf, data); |
1698 | 0 | if(result) { |
1699 | 0 | CURL_TRC_CF(data, cf, "cf_udp_connect(), open failed -> %d", result); |
1700 | 0 | goto out; |
1701 | 0 | } |
1702 | | |
1703 | 0 | if(ctx->transport == TRNSPRT_QUIC) { |
1704 | 0 | result = cf_udp_setup_quic(cf, data); |
1705 | 0 | if(result) |
1706 | 0 | goto out; |
1707 | 0 | CURL_TRC_CF(data, cf, "cf_udp_connect(), opened socket=%" |
1708 | 0 | CURL_FORMAT_SOCKET_T " (%s:%d)", |
1709 | 0 | ctx->sock, ctx->l_ip, ctx->l_port); |
1710 | 0 | } |
1711 | 0 | else { |
1712 | 0 | CURL_TRC_CF(data, cf, "cf_udp_connect(), opened socket=%" |
1713 | 0 | CURL_FORMAT_SOCKET_T " (unconnected)", ctx->sock); |
1714 | 0 | } |
1715 | 0 | *done = TRUE; |
1716 | 0 | cf->connected = TRUE; |
1717 | 0 | } |
1718 | 0 | out: |
1719 | 0 | return result; |
1720 | 0 | } |
1721 | | |
1722 | | struct Curl_cftype Curl_cft_udp = { |
1723 | | "UDP", |
1724 | | CF_TYPE_IP_CONNECT, |
1725 | | CURL_LOG_LVL_NONE, |
1726 | | cf_socket_destroy, |
1727 | | cf_udp_connect, |
1728 | | cf_socket_close, |
1729 | | cf_socket_get_host, |
1730 | | cf_socket_adjust_pollset, |
1731 | | cf_socket_data_pending, |
1732 | | cf_socket_send, |
1733 | | cf_socket_recv, |
1734 | | cf_socket_cntrl, |
1735 | | cf_socket_conn_is_alive, |
1736 | | Curl_cf_def_conn_keep_alive, |
1737 | | cf_socket_query, |
1738 | | }; |
1739 | | |
1740 | | CURLcode Curl_cf_udp_create(struct Curl_cfilter **pcf, |
1741 | | struct Curl_easy *data, |
1742 | | struct connectdata *conn, |
1743 | | const struct Curl_addrinfo *ai, |
1744 | | int transport) |
1745 | 0 | { |
1746 | 0 | struct cf_socket_ctx *ctx = NULL; |
1747 | 0 | struct Curl_cfilter *cf = NULL; |
1748 | 0 | CURLcode result; |
1749 | |
|
1750 | 0 | (void)data; |
1751 | 0 | (void)conn; |
1752 | 0 | DEBUGASSERT(transport == TRNSPRT_UDP || transport == TRNSPRT_QUIC); |
1753 | 0 | ctx = calloc(1, sizeof(*ctx)); |
1754 | 0 | if(!ctx) { |
1755 | 0 | result = CURLE_OUT_OF_MEMORY; |
1756 | 0 | goto out; |
1757 | 0 | } |
1758 | 0 | cf_socket_ctx_init(ctx, ai, transport); |
1759 | |
|
1760 | 0 | result = Curl_cf_create(&cf, &Curl_cft_udp, ctx); |
1761 | |
|
1762 | 0 | out: |
1763 | 0 | *pcf = (!result)? cf : NULL; |
1764 | 0 | if(result) { |
1765 | 0 | Curl_safefree(cf); |
1766 | 0 | Curl_safefree(ctx); |
1767 | 0 | } |
1768 | |
|
1769 | 0 | return result; |
1770 | 0 | } |
1771 | | |
1772 | | /* this is the TCP filter which can also handle this case */ |
1773 | | struct Curl_cftype Curl_cft_unix = { |
1774 | | "UNIX", |
1775 | | CF_TYPE_IP_CONNECT, |
1776 | | CURL_LOG_LVL_NONE, |
1777 | | cf_socket_destroy, |
1778 | | cf_tcp_connect, |
1779 | | cf_socket_close, |
1780 | | cf_socket_get_host, |
1781 | | cf_socket_adjust_pollset, |
1782 | | cf_socket_data_pending, |
1783 | | cf_socket_send, |
1784 | | cf_socket_recv, |
1785 | | cf_socket_cntrl, |
1786 | | cf_socket_conn_is_alive, |
1787 | | Curl_cf_def_conn_keep_alive, |
1788 | | cf_socket_query, |
1789 | | }; |
1790 | | |
1791 | | CURLcode Curl_cf_unix_create(struct Curl_cfilter **pcf, |
1792 | | struct Curl_easy *data, |
1793 | | struct connectdata *conn, |
1794 | | const struct Curl_addrinfo *ai, |
1795 | | int transport) |
1796 | 0 | { |
1797 | 0 | struct cf_socket_ctx *ctx = NULL; |
1798 | 0 | struct Curl_cfilter *cf = NULL; |
1799 | 0 | CURLcode result; |
1800 | |
|
1801 | 0 | (void)data; |
1802 | 0 | (void)conn; |
1803 | 0 | DEBUGASSERT(transport == TRNSPRT_UNIX); |
1804 | 0 | ctx = calloc(1, sizeof(*ctx)); |
1805 | 0 | if(!ctx) { |
1806 | 0 | result = CURLE_OUT_OF_MEMORY; |
1807 | 0 | goto out; |
1808 | 0 | } |
1809 | 0 | cf_socket_ctx_init(ctx, ai, transport); |
1810 | |
|
1811 | 0 | result = Curl_cf_create(&cf, &Curl_cft_unix, ctx); |
1812 | |
|
1813 | 0 | out: |
1814 | 0 | *pcf = (!result)? cf : NULL; |
1815 | 0 | if(result) { |
1816 | 0 | Curl_safefree(cf); |
1817 | 0 | Curl_safefree(ctx); |
1818 | 0 | } |
1819 | |
|
1820 | 0 | return result; |
1821 | 0 | } |
1822 | | |
1823 | | static CURLcode cf_tcp_accept_connect(struct Curl_cfilter *cf, |
1824 | | struct Curl_easy *data, |
1825 | | bool blocking, bool *done) |
1826 | 0 | { |
1827 | | /* we start accepted, if we ever close, we cannot go on */ |
1828 | 0 | (void)data; |
1829 | 0 | (void)blocking; |
1830 | 0 | if(cf->connected) { |
1831 | 0 | *done = TRUE; |
1832 | 0 | return CURLE_OK; |
1833 | 0 | } |
1834 | 0 | return CURLE_FAILED_INIT; |
1835 | 0 | } |
1836 | | |
1837 | | struct Curl_cftype Curl_cft_tcp_accept = { |
1838 | | "TCP-ACCEPT", |
1839 | | CF_TYPE_IP_CONNECT, |
1840 | | CURL_LOG_LVL_NONE, |
1841 | | cf_socket_destroy, |
1842 | | cf_tcp_accept_connect, |
1843 | | cf_socket_close, |
1844 | | cf_socket_get_host, /* TODO: not accurate */ |
1845 | | cf_socket_adjust_pollset, |
1846 | | cf_socket_data_pending, |
1847 | | cf_socket_send, |
1848 | | cf_socket_recv, |
1849 | | cf_socket_cntrl, |
1850 | | cf_socket_conn_is_alive, |
1851 | | Curl_cf_def_conn_keep_alive, |
1852 | | cf_socket_query, |
1853 | | }; |
1854 | | |
1855 | | CURLcode Curl_conn_tcp_listen_set(struct Curl_easy *data, |
1856 | | struct connectdata *conn, |
1857 | | int sockindex, curl_socket_t *s) |
1858 | 0 | { |
1859 | 0 | CURLcode result; |
1860 | 0 | struct Curl_cfilter *cf = NULL; |
1861 | 0 | struct cf_socket_ctx *ctx = NULL; |
1862 | | |
1863 | | /* replace any existing */ |
1864 | 0 | Curl_conn_cf_discard_all(data, conn, sockindex); |
1865 | 0 | DEBUGASSERT(conn->sock[sockindex] == CURL_SOCKET_BAD); |
1866 | | |
1867 | 0 | ctx = calloc(1, sizeof(*ctx)); |
1868 | 0 | if(!ctx) { |
1869 | 0 | result = CURLE_OUT_OF_MEMORY; |
1870 | 0 | goto out; |
1871 | 0 | } |
1872 | 0 | ctx->transport = conn->transport; |
1873 | 0 | ctx->sock = *s; |
1874 | 0 | ctx->accepted = FALSE; |
1875 | 0 | result = Curl_cf_create(&cf, &Curl_cft_tcp_accept, ctx); |
1876 | 0 | if(result) |
1877 | 0 | goto out; |
1878 | 0 | Curl_conn_cf_add(data, conn, sockindex, cf); |
1879 | |
|
1880 | 0 | conn->sock[sockindex] = ctx->sock; |
1881 | 0 | set_local_ip(cf, data); |
1882 | 0 | ctx->active = TRUE; |
1883 | 0 | ctx->connected_at = Curl_now(); |
1884 | 0 | cf->connected = TRUE; |
1885 | 0 | CURL_TRC_CF(data, cf, "Curl_conn_tcp_listen_set(%" |
1886 | 0 | CURL_FORMAT_SOCKET_T ")", ctx->sock); |
1887 | |
|
1888 | 0 | out: |
1889 | 0 | if(result) { |
1890 | 0 | Curl_safefree(cf); |
1891 | 0 | Curl_safefree(ctx); |
1892 | 0 | } |
1893 | 0 | return result; |
1894 | 0 | } |
1895 | | |
1896 | | static void set_accepted_remote_ip(struct Curl_cfilter *cf, |
1897 | | struct Curl_easy *data) |
1898 | 0 | { |
1899 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1900 | 0 | #ifdef HAVE_GETPEERNAME |
1901 | 0 | char buffer[STRERROR_LEN]; |
1902 | 0 | struct Curl_sockaddr_storage ssrem; |
1903 | 0 | curl_socklen_t plen; |
1904 | |
|
1905 | 0 | ctx->r_ip[0] = 0; |
1906 | 0 | ctx->r_port = 0; |
1907 | 0 | plen = sizeof(ssrem); |
1908 | 0 | memset(&ssrem, 0, plen); |
1909 | 0 | if(getpeername(ctx->sock, (struct sockaddr*) &ssrem, &plen)) { |
1910 | 0 | int error = SOCKERRNO; |
1911 | 0 | failf(data, "getpeername() failed with errno %d: %s", |
1912 | 0 | error, Curl_strerror(error, buffer, sizeof(buffer))); |
1913 | 0 | return; |
1914 | 0 | } |
1915 | 0 | if(!Curl_addr2string((struct sockaddr*)&ssrem, plen, |
1916 | 0 | ctx->r_ip, &ctx->r_port)) { |
1917 | 0 | failf(data, "ssrem inet_ntop() failed with errno %d: %s", |
1918 | 0 | errno, Curl_strerror(errno, buffer, sizeof(buffer))); |
1919 | 0 | return; |
1920 | 0 | } |
1921 | | #else |
1922 | | ctx->r_ip[0] = 0; |
1923 | | ctx->r_port = 0; |
1924 | | (void)data; |
1925 | | #endif |
1926 | 0 | } |
1927 | | |
1928 | | CURLcode Curl_conn_tcp_accepted_set(struct Curl_easy *data, |
1929 | | struct connectdata *conn, |
1930 | | int sockindex, curl_socket_t *s) |
1931 | 0 | { |
1932 | 0 | struct Curl_cfilter *cf = NULL; |
1933 | 0 | struct cf_socket_ctx *ctx = NULL; |
1934 | |
|
1935 | 0 | cf = conn->cfilter[sockindex]; |
1936 | 0 | if(!cf || cf->cft != &Curl_cft_tcp_accept) |
1937 | 0 | return CURLE_FAILED_INIT; |
1938 | | |
1939 | 0 | ctx = cf->ctx; |
1940 | | /* discard the listen socket */ |
1941 | 0 | socket_close(data, conn, TRUE, ctx->sock); |
1942 | 0 | ctx->sock = *s; |
1943 | 0 | conn->sock[sockindex] = ctx->sock; |
1944 | 0 | set_accepted_remote_ip(cf, data); |
1945 | 0 | set_local_ip(cf, data); |
1946 | 0 | ctx->active = TRUE; |
1947 | 0 | ctx->accepted = TRUE; |
1948 | 0 | ctx->connected_at = Curl_now(); |
1949 | 0 | cf->connected = TRUE; |
1950 | 0 | CURL_TRC_CF(data, cf, "accepted_set(sock=%" CURL_FORMAT_SOCKET_T |
1951 | 0 | ", remote=%s port=%d)", |
1952 | 0 | ctx->sock, ctx->r_ip, ctx->r_port); |
1953 | |
|
1954 | 0 | return CURLE_OK; |
1955 | 0 | } |
1956 | | |
1957 | | /** |
1958 | | * Return TRUE iff `cf` is a socket filter. |
1959 | | */ |
1960 | | static bool cf_is_socket(struct Curl_cfilter *cf) |
1961 | 0 | { |
1962 | 0 | return cf && (cf->cft == &Curl_cft_tcp || |
1963 | 0 | cf->cft == &Curl_cft_udp || |
1964 | 0 | cf->cft == &Curl_cft_unix || |
1965 | 0 | cf->cft == &Curl_cft_tcp_accept); |
1966 | 0 | } |
1967 | | |
1968 | | CURLcode Curl_cf_socket_peek(struct Curl_cfilter *cf, |
1969 | | struct Curl_easy *data, |
1970 | | curl_socket_t *psock, |
1971 | | const struct Curl_sockaddr_ex **paddr, |
1972 | | const char **pr_ip_str, int *pr_port, |
1973 | | const char **pl_ip_str, int *pl_port) |
1974 | 0 | { |
1975 | 0 | if(cf_is_socket(cf) && cf->ctx) { |
1976 | 0 | struct cf_socket_ctx *ctx = cf->ctx; |
1977 | |
|
1978 | 0 | if(psock) |
1979 | 0 | *psock = ctx->sock; |
1980 | 0 | if(paddr) |
1981 | 0 | *paddr = &ctx->addr; |
1982 | 0 | if(pr_ip_str) |
1983 | 0 | *pr_ip_str = ctx->r_ip; |
1984 | 0 | if(pr_port) |
1985 | 0 | *pr_port = ctx->r_port; |
1986 | 0 | if(pl_port ||pl_ip_str) { |
1987 | 0 | set_local_ip(cf, data); |
1988 | 0 | if(pl_ip_str) |
1989 | 0 | *pl_ip_str = ctx->l_ip; |
1990 | 0 | if(pl_port) |
1991 | 0 | *pl_port = ctx->l_port; |
1992 | 0 | } |
1993 | 0 | return CURLE_OK; |
1994 | 0 | } |
1995 | 0 | return CURLE_FAILED_INIT; |
1996 | 0 | } |