proxymain.c 33 KB

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  1. /*
  2. 3APA3A simpliest proxy server
  3. (c) 2002-2017 by Vladimir Dubrovin <3proxy@3proxy.ru>
  4. please read License Agreement
  5. */
  6. #include "proxy.h"
  7. pthread_mutex_t log_mutex;
  8. #define param ((struct clientparam *) p)
  9. #ifdef _WIN32
  10. DWORD WINAPI threadfunc(LPVOID p) {
  11. #else
  12. void * threadfunc (void *p) {
  13. #endif
  14. int i = 0;
  15. if(param->srv->cbsock != INVALID_SOCKET){
  16. SASIZETYPE size = sizeof(param->sinsr);
  17. for(i=0; i<3; i++){
  18. param->remsock = so._accept(param->srv->cbsock, (struct sockaddr*)&param->sinsr, &size);
  19. if(param->remsock == INVALID_SOCKET) {
  20. param->res = 13;
  21. param->srv->logfunc(param, (unsigned char *)"Connect back accept() failed");
  22. continue;
  23. }
  24. #ifndef WITHMAIN
  25. param->req = param->sinsr;
  26. if(param->srv->acl) param->res = checkACL(param);
  27. if(param->res){
  28. param->srv->logfunc(param, (unsigned char *)"Connect back ACL failed");
  29. so._closesocket(param->remsock);
  30. param->remsock = INVALID_SOCKET;
  31. continue;
  32. }
  33. #endif
  34. if(so._sendto(param->remsock, "C", 1, 0, (struct sockaddr*)&param->sinsr, size) != 1){
  35. param->srv->logfunc(param, (unsigned char *)"Connect back sending command failed");
  36. so._closesocket(param->remsock);
  37. param->remsock = INVALID_SOCKET;
  38. continue;
  39. }
  40. break;
  41. }
  42. }
  43. if(i == 3){
  44. freeparam(param);
  45. }
  46. else {
  47. ((struct clientparam *) p)->srv->pf((struct clientparam *)p);
  48. }
  49. #ifdef _WIN32
  50. return 0;
  51. #else
  52. return NULL;
  53. #endif
  54. }
  55. #undef param
  56. struct socketoptions sockopts[] = {
  57. #ifdef TCP_NODELAY
  58. {TCP_NODELAY, "TCP_NODELAY"},
  59. #endif
  60. #ifdef TCP_CORK
  61. {TCP_CORK, "TCP_CORK"},
  62. #endif
  63. #ifdef TCP_DEFER_ACCEPT
  64. {TCP_DEFER_ACCEPT, "TCP_DEFER_ACCEPT"},
  65. #endif
  66. #ifdef TCP_QUICKACK
  67. {TCP_QUICKACK, "TCP_QUICKACK"},
  68. #endif
  69. #ifdef TCP_TIMESTAMPS
  70. {TCP_TIMESTAMPS, "TCP_TIMESTAMPS"},
  71. #endif
  72. #ifdef USE_TCP_FASTOPEN
  73. {USE_TCP_FASTOPEN, "USE_TCP_FASTOPEN"},
  74. #endif
  75. #ifdef SO_REUSEADDR
  76. {SO_REUSEADDR, "SO_REUSEADDR"},
  77. #endif
  78. #ifdef SO_REUSEPORT
  79. {SO_REUSEPORT, "SO_REUSEPORT"},
  80. #endif
  81. #ifdef SO_PORT_SCALABILITY
  82. {SO_PORT_SCALABILITY, "SO_PORT_SCALABILITY"},
  83. #endif
  84. #ifdef SO_REUSE_UNICASTPORT
  85. {SO_REUSE_UNICASTPORT, "SO_REUSE_UNICASTPORT"},
  86. #endif
  87. #ifdef SO_KEEPALIVE
  88. {SO_KEEPALIVE, "SO_KEEPALIVE"},
  89. #endif
  90. #ifdef SO_DONTROUTE
  91. {SO_DONTROUTE, "SO_DONTROUTE"},
  92. #endif
  93. #ifdef IP_TRANSPARENT
  94. {IP_TRANSPARENT, "IP_TRANSPARENT"},
  95. #endif
  96. {0, NULL}
  97. };
  98. char optsbuf[1024];
  99. char * printopts(char *sep){
  100. int i=0, pos=0;
  101. for(; sockopts[i].optname; i++)pos += sprintf(optsbuf+pos,"%s%s",i?sep:"",sockopts[i].optname);
  102. return optsbuf;
  103. }
  104. int getopts(const char *s){
  105. int i=0, ret=0;
  106. for(; sockopts[i].optname; i++)if(strstr(s,sockopts[i].optname)) ret |= (1<<i);
  107. return ret;
  108. }
  109. void setopts(SOCKET s, int opts){
  110. int i, opt, set;
  111. for(i = 0; opts >= (opt = (1<<i)); i++){
  112. set = 1;
  113. if(opts & opt) setsockopt(s, *sockopts[i].optname == 'T'? IPPROTO_TCP:
  114. #ifdef SOL_IP
  115. *sockopts[i].optname == 'I'? SOL_IP:
  116. #endif
  117. SOL_SOCKET, sockopts[i].opt, (char *)&set, sizeof(set));
  118. }
  119. }
  120. #ifndef MODULEMAINFUNC
  121. #define MODULEMAINFUNC main
  122. #define STDMAIN
  123. #ifndef _WINCE
  124. int main (int argc, char** argv){
  125. #else
  126. int WinMain(HINSTANCE hInstance, HINSTANCE hPrevInstance, LPWSTR lpCmdLine, int nCmdShow){
  127. int argc;
  128. char ** argv;
  129. WNDCLASS wc;
  130. HWND hwnd = 0;
  131. #endif
  132. #else
  133. extern int linenum;
  134. extern int haveerror;
  135. int MODULEMAINFUNC (int argc, char** argv){
  136. #endif
  137. SOCKET sock = INVALID_SOCKET, new_sock = INVALID_SOCKET;
  138. int i=0;
  139. SASIZETYPE size;
  140. pthread_t thread;
  141. struct clientparam defparam;
  142. struct srvparam srv;
  143. struct clientparam * newparam;
  144. int error = 0;
  145. unsigned sleeptime;
  146. unsigned char buf[256];
  147. char *hostname=NULL;
  148. int opt = 1, isudp = 0, iscbl = 0, iscbc = 0;
  149. unsigned char *cbc_string = NULL, *cbl_string = NULL;
  150. #ifndef NOIPV6
  151. struct sockaddr_in6 cbsa;
  152. #else
  153. struct sockaddr_in cbsa;
  154. #endif
  155. FILE *fp = NULL;
  156. struct linger lg;
  157. int nlog = 5000;
  158. char loghelp[] =
  159. #ifdef STDMAIN
  160. #ifndef _WIN32
  161. " -I inetd mode (requires real socket, doesn't work with TTY)\n"
  162. " -l@IDENT log to syslog IDENT\n"
  163. #endif
  164. " -d go to background (daemon)\n"
  165. #else
  166. " -u never ask for username\n"
  167. " -u2 always ask for username\n"
  168. #endif
  169. #ifdef SO_BINDTODEVICE
  170. " -Di(DEVICENAME) bind internal interface to device, e.g. eth1\n"
  171. " -De(DEVICENAME) bind external interface to device, e.g. eth1\n"
  172. #endif
  173. #ifdef WITHSLICE
  174. " -s Use slice() - faster proxing, but no filtering for data\n"
  175. #endif
  176. " -fFORMAT logging format (see documentation)\n"
  177. " -l log to stderr\n"
  178. " -lFILENAME log to FILENAME\n"
  179. " -b(BUFSIZE) size of network buffer (default 4096 for TCP, 16384 for UDP)\n"
  180. " -S(STACKSIZE) value to add to default client thread stack size\n"
  181. " -t be silent (do not log service start/stop)\n"
  182. "\n"
  183. " -iIP ip address or internal interface (clients are expected to connect)\n"
  184. " -eIP ip address or external interface (outgoing connection will have this)\n"
  185. " -rHOST:PORT Use IP:port for connect back proxy instead of listen port\n"
  186. " -RHOST:PORT Use PORT to listen connect back proxy connection to pass data to\n"
  187. " -4 Use IPv4 for outgoing connections\n"
  188. " -6 Use IPv6 for outgoing connections\n"
  189. " -46 Prefer IPv4 for outgoing connections, use both IPv4 and IPv6\n"
  190. " -64 Prefer IPv6 for outgoing connections, use both IPv4 and IPv6\n"
  191. " -ocOPTIONS, -osOPTIONS, -olOPTIONS - options for client (oc), server (os) or listening (ol) socket,"
  192. " where possible options are: ";
  193. #ifdef _WIN32
  194. unsigned long ul = 1;
  195. #else
  196. pthread_attr_t pa;
  197. #ifdef STDMAIN
  198. int inetd = 0;
  199. #endif
  200. #endif
  201. #ifdef _WIN32
  202. HANDLE h;
  203. #endif
  204. #ifdef STDMAIN
  205. #ifdef _WINCE
  206. argc = ceparseargs((char *)lpCmdLine);
  207. argv = ceargv;
  208. if(FindWindow(lpCmdLine, lpCmdLine)) return 0;
  209. ZeroMemory(&wc,sizeof(wc));
  210. wc.hbrBackground=(HBRUSH)GetStockObject(BLACK_BRUSH);
  211. wc.hInstance=hInstance;
  212. wc.hCursor=LoadCursor(NULL,IDC_ARROW);
  213. wc.lpfnWndProc=DefWindowProc;
  214. wc.style=CS_HREDRAW|CS_VREDRAW;
  215. wc.lpszClassName=lpCmdLine;
  216. RegisterClass(&wc);
  217. hwnd = CreateWindowEx(WS_EX_TOOLWINDOW,lpCmdLine,lpCmdLine,WS_VISIBLE|WS_POPUP,0,0,0,0,0,0,hInstance,0);
  218. #endif
  219. #ifdef _WIN32
  220. WSADATA wd;
  221. WSAStartup(MAKEWORD( 1, 1 ), &wd);
  222. #else
  223. signal(SIGPIPE, SIG_IGN);
  224. #endif
  225. #endif
  226. srvinit(&srv, &defparam);
  227. srv.pf = childdef.pf;
  228. isudp = childdef.isudp;
  229. srv.service = defparam.service = childdef.service;
  230. #ifndef STDMAIN
  231. srv.acl = copyacl(conf.acl);
  232. srv.authfuncs = copyauth(conf.authfuncs);
  233. if(!conf.services){
  234. conf.services = &srv;
  235. }
  236. else {
  237. srv.next = conf.services;
  238. conf.services = conf.services->prev = &srv;
  239. }
  240. #else
  241. srv.needuser = 0;
  242. pthread_mutex_init(&log_mutex, NULL);
  243. #endif
  244. for (i=1; i<argc; i++) {
  245. if(*argv[i]=='-') {
  246. switch(argv[i][1]) {
  247. case 'd':
  248. if(!conf.demon)daemonize();
  249. conf.demon = 1;
  250. break;
  251. #ifdef SO_BINDTODEVICE
  252. case 'D':
  253. if(argv[i][2] == 'i') srv.ibindtodevice = mystrdup(argv[i] + 3);
  254. else srv.obindtodevice = mystrdup(argv[i] + 3);
  255. break;
  256. #endif
  257. case 'l':
  258. srv.logfunc = logstdout;
  259. if(srv.logtarget) myfree(srv.logtarget);
  260. srv.logtarget = (unsigned char *)mystrdup(argv[i] + 2);
  261. if(argv[i][2]) {
  262. if(argv[i][2]=='@'){
  263. #ifdef STDMAIN
  264. #ifndef _WIN32
  265. openlog(argv[i]+3, LOG_PID, LOG_DAEMON);
  266. srv.logfunc = logsyslog;
  267. #endif
  268. #endif
  269. }
  270. else {
  271. fp = fopen(argv[i] + 2, "a");
  272. if (fp) {
  273. srv.stdlog = fp;
  274. fseek(fp, 0L, SEEK_END);
  275. }
  276. }
  277. }
  278. break;
  279. case 'i':
  280. getip46(46, (unsigned char *)argv[i]+2, (struct sockaddr *)&srv.intsa);
  281. break;
  282. case 'e':
  283. {
  284. #ifndef NOIPV6
  285. struct sockaddr_in6 sa6;
  286. memset(&sa6, 0, sizeof(sa6));
  287. error = !getip46(46, (unsigned char *)argv[i]+2, (struct sockaddr *)&sa6);
  288. if(!error) {
  289. if (*SAFAMILY(&sa6)==AF_INET) srv.extsa = sa6;
  290. else srv.extsa6 = sa6;
  291. }
  292. #else
  293. error = !getip46(46, (unsigned char *)argv[i]+2, (struct sockaddr *)&srv.extsa);
  294. #endif
  295. }
  296. break;
  297. case 'p':
  298. *SAPORT(&srv.intsa) = htons(atoi(argv[i]+2));
  299. break;
  300. case '4':
  301. case '6':
  302. srv.family = atoi(argv[i]+1);
  303. break;
  304. case 'b':
  305. srv.bufsize = atoi(argv[i]+2);
  306. break;
  307. case 'n':
  308. srv.usentlm = atoi(argv[i]+2);
  309. break;
  310. #ifdef STDMAIN
  311. #ifndef _WIN32
  312. case 'I':
  313. size = sizeof(defparam.sincl);
  314. if(so._getsockname(0, (struct sockaddr*)&defparam.sincl, &size) ||
  315. *SAFAMILY(&defparam.sincl) != AF_INET) error = 1;
  316. else inetd = 1;
  317. break;
  318. #endif
  319. #endif
  320. case 'f':
  321. if(srv.logformat)myfree(srv.logformat);
  322. srv.logformat = (unsigned char *)mystrdup(argv[i] + 2);
  323. break;
  324. case 't':
  325. srv.silent = 1;
  326. break;
  327. case 'h':
  328. hostname = argv[i] + 2;
  329. break;
  330. case 'r':
  331. cbc_string = (unsigned char *)mystrdup(argv[i] + 2);
  332. iscbc = 1;
  333. break;
  334. case 'R':
  335. cbl_string = (unsigned char *)mystrdup(argv[i] + 2);
  336. iscbl = 1;
  337. break;
  338. case 'u':
  339. srv.needuser = 0;
  340. if(*(argv[i] + 2)) srv.needuser = atoi(argv[i] + 2);
  341. break;
  342. case 'T':
  343. srv.transparent = 1;
  344. break;
  345. case 'S':
  346. srv.stacksize = atoi(argv[i]+2);
  347. break;
  348. case 'a':
  349. srv.anonymous = 1 + atoi(argv[i]+2);
  350. break;
  351. case 's':
  352. if(isudp)
  353. srv.singlepacket = 1 + atoi(argv[i]+2);
  354. #ifdef WITHSPLICE
  355. else
  356. if(*(argv[i]+2)) srv.usesplice = atoi(argv[i]+2);
  357. #endif
  358. break;
  359. case 'o':
  360. if(argv[i][2] == 's'){
  361. srv.srvsockopts = getopts(argv[i]+3);
  362. break;
  363. }
  364. else if(argv[i][2] == 'c'){
  365. srv.clisockopts = getopts(argv[i]+3);
  366. break;
  367. }
  368. else if(argv[i][2] == 'l'){
  369. srv.lissockopts = getopts(argv[i]+3);
  370. break;
  371. }
  372. default:
  373. error = 1;
  374. break;
  375. }
  376. }
  377. else break;
  378. }
  379. #ifndef STDMAIN
  380. if(childdef.port) {
  381. #endif
  382. #ifndef PORTMAP
  383. if (error || i!=argc) {
  384. #ifndef STDMAIN
  385. haveerror = 1;
  386. conf.threadinit = 0;
  387. #endif
  388. fprintf(stderr, "%s of %s\n"
  389. "Usage: %s options\n"
  390. "Available options are:\n"
  391. "%s\n"
  392. "\t%s\n"
  393. " -pPORT - service port to accept connections\n"
  394. "%s"
  395. "\tExample: %s -i127.0.0.1\n\n"
  396. "%s",
  397. argv[0],
  398. conf.stringtable?(char *)conf.stringtable[3]: VERSION " (" BUILDDATE ")",
  399. argv[0], loghelp, printopts("\n\t"), childdef.helpmessage, argv[0],
  400. #ifdef STDMAIN
  401. copyright
  402. #else
  403. ""
  404. #endif
  405. );
  406. return (1);
  407. }
  408. #endif
  409. #ifndef STDMAIN
  410. }
  411. else {
  412. #endif
  413. #ifndef NOPORTMAP
  414. if (error || argc != i+3 || *argv[i]=='-'|| (*SAPORT(&srv.intsa) = htons((unsigned short)atoi(argv[i])))==0 || (srv.targetport = htons((unsigned short)atoi(argv[i+2])))==0) {
  415. #ifndef STDMAIN
  416. haveerror = 1;
  417. conf.threadinit = 0;
  418. #endif
  419. fprintf(stderr, "%s of %s\n"
  420. "Usage: %s options"
  421. " [-e<external_ip>] <port_to_bind>"
  422. " <target_hostname> <target_port>\n"
  423. "Available options are:\n"
  424. "%s\n"
  425. "\t%s\n"
  426. "%s"
  427. "\tExample: %s -d -i127.0.0.1 6666 serv.somehost.ru 6666\n\n"
  428. "%s",
  429. argv[0],
  430. conf.stringtable?(char *)conf.stringtable[3]: VERSION " (" BUILDDATE ")",
  431. argv[0], loghelp, printopts("\n\t"), childdef.helpmessage, argv[0],
  432. #ifdef STDMAIN
  433. copyright
  434. #else
  435. ""
  436. #endif
  437. );
  438. return (1);
  439. }
  440. srv.target = (unsigned char *)mystrdup(argv[i+1]);
  441. #endif
  442. #ifndef STDMAIN
  443. }
  444. #else
  445. #ifndef _WIN32
  446. if(inetd) {
  447. fcntl(0,F_SETFL,O_NONBLOCK);
  448. if(!isudp){
  449. so._setsockopt(0, SOL_SOCKET, SO_LINGER, (unsigned char *)&lg, sizeof(lg));
  450. so._setsockopt(0, SOL_SOCKET, SO_OOBINLINE, (unsigned char *)&opt, sizeof(int));
  451. }
  452. defparam.clisock = 0;
  453. if(! (newparam = myalloc (sizeof(defparam)))){
  454. return 2;
  455. };
  456. *newparam = defparam;
  457. return((*srv.pf)((void *)newparam)? 1:0);
  458. }
  459. #endif
  460. #endif
  461. srvinit2(&srv, &defparam);
  462. if(!*SAFAMILY(&srv.intsa)) *SAFAMILY(&srv.intsa) = AF_INET;
  463. if(!*SAPORT(&srv.intsa)) *SAPORT(&srv.intsa) = htons(childdef.port);
  464. *SAFAMILY(&srv.extsa) = AF_INET;
  465. #ifndef NOIPV6
  466. *SAFAMILY(&srv.extsa6) = AF_INET6;
  467. #endif
  468. if(hostname)parsehostname(hostname, &defparam, childdef.port);
  469. #ifndef STDMAIN
  470. copyfilter(conf.filters, &srv);
  471. conf.threadinit = 0;
  472. #endif
  473. if (!iscbc) {
  474. if(srv.srvsock == INVALID_SOCKET){
  475. if(!isudp){
  476. lg.l_onoff = 1;
  477. lg.l_linger = conf.timeouts[STRING_L];
  478. sock=so._socket(SASOCK(&srv.intsa), SOCK_STREAM, IPPROTO_TCP);
  479. }
  480. else {
  481. sock=so._socket(SASOCK(&srv.intsa), SOCK_DGRAM, IPPROTO_UDP);
  482. }
  483. if( sock == INVALID_SOCKET) {
  484. perror("socket()");
  485. return -2;
  486. }
  487. setopts(sock, srv.lissockopts);
  488. #ifdef _WIN32
  489. ioctlsocket(sock, FIONBIO, &ul);
  490. #else
  491. fcntl(sock,F_SETFL,O_NONBLOCK);
  492. #endif
  493. srv.srvsock = sock;
  494. opt = 1;
  495. if(so._setsockopt(sock, SOL_SOCKET, SO_REUSEADDR, (char *)&opt, sizeof(int)))perror("setsockopt()");
  496. #ifdef SO_REUSEPORT
  497. opt = 1;
  498. so._setsockopt(sock, SOL_SOCKET, SO_REUSEPORT, (char *)&opt, sizeof(int));
  499. #endif
  500. #ifdef SO_BINDTODEVICE
  501. if(srv.ibindtodevice) so._setsockopt(sock, SOL_SOCKET, SO_BINDTODEVICE, srv.ibindtodevice, strlen(srv.ibindtodevice) + 1);
  502. #endif
  503. }
  504. size = sizeof(srv.intsa);
  505. for(sleeptime = SLEEPTIME * 100; so._bind(sock, (struct sockaddr*)&srv.intsa, SASIZE(&srv.intsa))==-1; usleep(sleeptime)) {
  506. sprintf((char *)buf, "bind(): %s", strerror(errno));
  507. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  508. sleeptime = (sleeptime<<1);
  509. if(!sleeptime) {
  510. so._closesocket(sock);
  511. return -3;
  512. }
  513. }
  514. if(!isudp){
  515. if(so._listen (sock, 1 + (srv.maxchild>>4))==-1) {
  516. sprintf((char *)buf, "listen(): %s", strerror(errno));
  517. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  518. return -4;
  519. }
  520. }
  521. else
  522. defparam.clisock = sock;
  523. if(!srv.silent && !iscbc){
  524. sprintf((char *)buf, "Accepting connections [%u/%u]", (unsigned)getpid(), (unsigned)pthread_self());
  525. (*srv.logfunc)(&defparam, buf);
  526. }
  527. }
  528. if(iscbl){
  529. parsehost(srv.family, cbl_string, (struct sockaddr *)&cbsa);
  530. if((srv.cbsock=so._socket(SASOCK(&cbsa), SOCK_STREAM, IPPROTO_TCP))==INVALID_SOCKET) {
  531. (*srv.logfunc)(&defparam, (unsigned char *)"Failed to allocate connect back socket");
  532. return -6;
  533. }
  534. opt = 1;
  535. so._setsockopt(srv.cbsock, SOL_SOCKET, SO_REUSEADDR, (char *)&opt, sizeof(int));
  536. #ifdef SO_REUSEPORT
  537. opt = 1;
  538. so._setsockopt(srv.cbsock, SOL_SOCKET, SO_REUSEPORT, (char *)&opt, sizeof(int));
  539. #endif
  540. if(so._bind(srv.cbsock, (struct sockaddr*)&cbsa, SASIZE(&cbsa))==-1) {
  541. (*srv.logfunc)(&defparam, (unsigned char *)"Failed to bind connect back socket");
  542. return -7;
  543. }
  544. if(so._listen(srv.cbsock, 1 + (srv.maxchild>>4))==-1) {
  545. (*srv.logfunc)(&defparam, (unsigned char *)"Failed to listen connect back socket");
  546. return -8;
  547. }
  548. }
  549. srv.fds.fd = sock;
  550. srv.fds.events = POLLIN;
  551. #ifndef _WIN32
  552. pthread_attr_init(&pa);
  553. pthread_attr_setstacksize(&pa,PTHREAD_STACK_MIN + (32768 + srv.stacksize));
  554. pthread_attr_setdetachstate(&pa,PTHREAD_CREATE_DETACHED);
  555. #endif
  556. for (;;) {
  557. for(;;){
  558. while((conf.paused == srv.paused && srv.childcount >= srv.maxchild)){
  559. nlog++;
  560. if(!srv.silent && nlog > 5000) {
  561. sprintf((char *)buf, "Warning: too many connected clients (%d/%d)", srv.childcount, srv.maxchild);
  562. (*srv.logfunc)(&defparam, buf);
  563. nlog = 0;
  564. }
  565. usleep(SLEEPTIME);
  566. }
  567. if (iscbc) break;
  568. if (conf.paused != srv.paused) break;
  569. if (srv.fds.events & POLLIN) {
  570. error = so._poll(&srv.fds, 1, 1000);
  571. }
  572. else {
  573. usleep(SLEEPTIME);
  574. continue;
  575. }
  576. if (error >= 1) break;
  577. if (error == 0) continue;
  578. if (errno != EAGAIN && errno != EINTR) {
  579. sprintf((char *)buf, "poll(): %s/%d", strerror(errno), errno);
  580. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  581. break;
  582. }
  583. }
  584. if((conf.paused != srv.paused) || (error < 0)) break;
  585. error = 0;
  586. if(!isudp){
  587. size = sizeof(defparam.sincr);
  588. if(iscbc){
  589. new_sock=so._socket(SASOCK(&defparam.sincr), SOCK_STREAM, IPPROTO_TCP);
  590. if(new_sock != INVALID_SOCKET){
  591. parsehost(srv.family, cbc_string, (struct sockaddr *)&defparam.sincr);
  592. if(connectwithpoll(new_sock,(struct sockaddr *)&defparam.sincr,SASIZE(&defparam.sincr))) {
  593. so._closesocket(new_sock);
  594. new_sock = INVALID_SOCKET;
  595. usleep(SLEEPTIME);
  596. continue;
  597. }
  598. if(so._recvfrom(new_sock,(char *)buf,1,0,(struct sockaddr*)&defparam.sincr, &size) != 1) {
  599. so._closesocket(new_sock);
  600. new_sock = INVALID_SOCKET;
  601. usleep(SLEEPTIME);
  602. continue;
  603. }
  604. }
  605. else {
  606. usleep(SLEEPTIME);
  607. continue;
  608. }
  609. }
  610. else {
  611. new_sock = so._accept(sock, (struct sockaddr*)&defparam.sincr, &size);
  612. if(new_sock == INVALID_SOCKET){
  613. #ifdef _WIN32
  614. switch(WSAGetLastError()){
  615. case WSAEMFILE:
  616. case WSAENOBUFS:
  617. case WSAENETDOWN:
  618. usleep(SLEEPTIME * 10);
  619. break;
  620. case WSAEINTR:
  621. error = 1;
  622. break;
  623. default:
  624. break;
  625. }
  626. #else
  627. switch (errno){
  628. #ifdef EMFILE
  629. case EMFILE:
  630. #endif
  631. #ifdef ENFILE
  632. case ENFILE:
  633. #endif
  634. #ifdef ENOBUFS
  635. case ENOBUFS:
  636. #endif
  637. #ifdef ENOMEM
  638. case ENOMEM:
  639. #endif
  640. usleep(SLEEPTIME * 10);
  641. break;
  642. default:
  643. break;
  644. }
  645. #endif
  646. nlog++;
  647. if(!srv.silent && (error || nlog > 5000)) {
  648. sprintf((char *)buf, "accept(): %s", strerror(errno));
  649. (*srv.logfunc)(&defparam, buf);
  650. nlog = 0;
  651. }
  652. continue;
  653. }
  654. }
  655. setopts(new_sock, srv.clisockopts);
  656. size = sizeof(defparam.sincl);
  657. if(so._getsockname(new_sock, (struct sockaddr *)&defparam.sincl, &size)){
  658. sprintf((char *)buf, "getsockname(): %s", strerror(errno));
  659. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  660. continue;
  661. }
  662. #ifdef _WIN32
  663. ioctlsocket(new_sock, FIONBIO, &ul);
  664. #else
  665. fcntl(new_sock,F_SETFL,O_NONBLOCK);
  666. #endif
  667. so._setsockopt(new_sock, SOL_SOCKET, SO_LINGER, (char *)&lg, sizeof(lg));
  668. so._setsockopt(new_sock, SOL_SOCKET, SO_OOBINLINE, (char *)&opt, sizeof(int));
  669. }
  670. else {
  671. srv.fds.events = 0;
  672. }
  673. if(! (newparam = myalloc (sizeof(defparam)))){
  674. if(!isudp) so._closesocket(new_sock);
  675. defparam.res = 21;
  676. if(!srv.silent)(*srv.logfunc)(&defparam, (unsigned char *)"Memory Allocation Failed");
  677. usleep(SLEEPTIME);
  678. continue;
  679. };
  680. *newparam = defparam;
  681. if(defparam.hostname)newparam->hostname=(unsigned char *)mystrdup((char *)defparam.hostname);
  682. clearstat(newparam);
  683. if(!isudp) newparam->clisock = new_sock;
  684. #ifndef STDMAIN
  685. if(makefilters(&srv, newparam) > CONTINUE){
  686. freeparam(newparam);
  687. continue;
  688. }
  689. #endif
  690. newparam->prev = newparam->next = NULL;
  691. error = 0;
  692. pthread_mutex_lock(&srv.counter_mutex);
  693. if(!srv.child){
  694. srv.child = newparam;
  695. }
  696. else {
  697. newparam->next = srv.child;
  698. srv.child = srv.child->prev = newparam;
  699. }
  700. #ifdef _WIN32
  701. #ifndef _WINCE
  702. h = (HANDLE)_beginthreadex((LPSECURITY_ATTRIBUTES )NULL, (unsigned)(16384 + srv.stacksize), (void *)threadfunc, (void *) newparam, 0, &thread);
  703. #else
  704. h = (HANDLE)CreateThread((LPSECURITY_ATTRIBUTES )NULL, (unsigned)(16384 + srv.stacksize), (void *)threadfunc, (void *) newparam, 0, &thread);
  705. #endif
  706. srv.childcount++;
  707. if (h) {
  708. newparam->threadid = (unsigned)thread;
  709. CloseHandle(h);
  710. }
  711. else {
  712. sprintf((char *)buf, "_beginthreadex(): %s", _strerror(NULL));
  713. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  714. error = 1;
  715. }
  716. #else
  717. error = pthread_create(&thread, &pa, threadfunc, (void *)newparam);
  718. srv.childcount++;
  719. if(error){
  720. sprintf((char *)buf, "pthread_create(): %s", strerror(error));
  721. if(!srv.silent)(*srv.logfunc)(&defparam, buf);
  722. }
  723. else {
  724. newparam->threadid = (unsigned)thread;
  725. }
  726. #endif
  727. pthread_mutex_unlock(&srv.counter_mutex);
  728. if(error) freeparam(newparam);
  729. memset(&defparam.sincl, 0, sizeof(defparam.sincl));
  730. memset(&defparam.sincr, 0, sizeof(defparam.sincr));
  731. if(isudp) while(!srv.fds.events)usleep(SLEEPTIME);
  732. }
  733. if(!srv.silent) srv.logfunc(&defparam, (unsigned char *)"Exiting thread");
  734. srvfree(&srv);
  735. #ifndef STDMAIN
  736. pthread_mutex_lock(&config_mutex);
  737. if(srv.next)srv.next->prev = srv.prev;
  738. if(srv.prev)srv.prev->next = srv.next;
  739. else conf.services = srv.next;
  740. pthread_mutex_unlock(&config_mutex);
  741. #endif
  742. #ifndef _WIN32
  743. pthread_attr_destroy(&pa);
  744. #endif
  745. if(defparam.hostname)myfree(defparam.hostname);
  746. if(cbc_string)myfree(cbc_string);
  747. if(cbl_string)myfree(cbl_string);
  748. if(fp) fclose(fp);
  749. return 0;
  750. }
  751. void srvinit(struct srvparam * srv, struct clientparam *param){
  752. memset(srv, 0, sizeof(struct srvparam));
  753. srv->version = conf.version + 1;
  754. srv->paused = conf.paused;
  755. srv->logfunc = havelog?conf.logfunc:lognone;
  756. srv->noforce = conf.noforce;
  757. srv->logformat = conf.logformat? (unsigned char *)mystrdup((char *)conf.logformat) : NULL;
  758. srv->authfunc = conf.authfunc;
  759. srv->usentlm = 0;
  760. srv->maxchild = conf.maxchild;
  761. srv->stacksize = conf.stacksize;
  762. srv->time_start = time(NULL);
  763. if(havelog && conf.logtarget){
  764. srv->logtarget = (unsigned char *)mystrdup((char *)conf.logtarget);
  765. }
  766. srv->srvsock = INVALID_SOCKET;
  767. srv->logdumpsrv = conf.logdumpsrv;
  768. srv->logdumpcli = conf.logdumpcli;
  769. srv->cbsock = INVALID_SOCKET;
  770. srv->needuser = 1;
  771. #ifdef WITHSPLICE
  772. srv->usesplice = 1;
  773. #endif
  774. memset(param, 0, sizeof(struct clientparam));
  775. param->srv = srv;
  776. param->version = srv->version;
  777. param->paused = srv->paused;
  778. param->remsock = param->clisock = param->ctrlsock = param->ctrlsocksrv = INVALID_SOCKET;
  779. *SAFAMILY(&param->req) = *SAFAMILY(&param->sinsl) = *SAFAMILY(&param->sinsr) = *SAFAMILY(&param->sincr) = *SAFAMILY(&param->sincl) = AF_INET;
  780. pthread_mutex_init(&srv->counter_mutex, NULL);
  781. srv->intsa = conf.intsa;
  782. srv->extsa = conf.extsa;
  783. #ifndef NOIPV6
  784. srv->extsa6 = conf.extsa6;
  785. #endif
  786. }
  787. void srvinit2(struct srvparam * srv, struct clientparam *param){
  788. if(srv->logformat){
  789. char *s;
  790. if(*srv->logformat == '-' && (s = strchr((char *)srv->logformat + 1, '+')) && s[1]){
  791. unsigned char* logformat = srv->logformat;
  792. *s = 0;
  793. srv->nonprintable = (unsigned char *)mystrdup((char *)srv->logformat + 1);
  794. srv->replace = s[1];
  795. srv->logformat = (unsigned char *)mystrdup(s + 2);
  796. *s = '+';
  797. myfree(logformat);
  798. }
  799. }
  800. memset(&param->sinsl, 0, sizeof(param->sinsl));
  801. memset(&param->sinsr, 0, sizeof(param->sinsr));
  802. memset(&param->req, 0, sizeof(param->req));
  803. *SAFAMILY(&param->sinsl) = AF_INET;
  804. *SAFAMILY(&param->sinsr) = AF_INET;
  805. *SAFAMILY(&param->req) = AF_INET;
  806. param->sincr = param->sincl = srv->intsa;
  807. #ifndef NOIPV6
  808. if (srv->family == 6 || srv->family == 64) param->sinsr = srv->extsa6;
  809. else
  810. #endif
  811. param->sinsr = srv->extsa;
  812. }
  813. void srvfree(struct srvparam * srv){
  814. if(srv->srvsock != INVALID_SOCKET) so._closesocket(srv->srvsock);
  815. srv->srvsock = INVALID_SOCKET;
  816. if(srv->cbsock != INVALID_SOCKET) so._closesocket(srv->cbsock);
  817. srv->cbsock = INVALID_SOCKET;
  818. srv->service = S_ZOMBIE;
  819. while(srv->child) usleep(SLEEPTIME * 100);
  820. #ifndef STDMAIN
  821. if(srv->filter){
  822. while(srv->nfilters){
  823. srv->nfilters--;
  824. if(srv->filter[srv->nfilters].filter_close){
  825. (*srv->filter[srv->nfilters].filter_close)(srv->filter[srv->nfilters].data);
  826. }
  827. }
  828. myfree(srv->filter);
  829. }
  830. if(srv->acl)freeacl(srv->acl);
  831. if(srv->authfuncs)freeauth(srv->authfuncs);
  832. #endif
  833. pthread_mutex_destroy(&srv->counter_mutex);
  834. if(srv->target) myfree(srv->target);
  835. if(srv->logtarget) myfree(srv->logtarget);
  836. if(srv->logformat) myfree(srv->logformat);
  837. if(srv->nonprintable) myfree(srv->nonprintable);
  838. #ifdef SO_BINDTODEVICE
  839. if(srv->ibindtodevice) myfree(srv->ibindtodevice);
  840. if(srv->obindtodevice) myfree(srv->obindtodevice);
  841. #endif
  842. }
  843. void freeparam(struct clientparam * param) {
  844. if(param->res == 2) return;
  845. if(param->datfilterssrv) myfree(param->datfilterssrv);
  846. #ifndef STDMAIN
  847. if(param->reqfilters) myfree(param->reqfilters);
  848. if(param->hdrfilterscli) myfree(param->hdrfilterscli);
  849. if(param->hdrfilterssrv) myfree(param->hdrfilterssrv);
  850. if(param->predatfilters) myfree(param->predatfilters);
  851. if(param->datfilterscli) myfree(param->datfilterscli);
  852. if(param->filters){
  853. if(param->nfilters)while(param->nfilters--){
  854. if(param->filters[param->nfilters].filter->filter_clear)
  855. (*param->filters[param->nfilters].filter->filter_clear)(param->filters[param->nfilters].data);
  856. }
  857. myfree(param->filters);
  858. }
  859. if(conf.connlimiter && (param->res != 95 || param->remsock != INVALID_SOCKET)) stopconnlims(param);
  860. #endif
  861. if(param->clibuf) myfree(param->clibuf);
  862. if(param->srvbuf) myfree(param->srvbuf);
  863. if(param->srv){
  864. pthread_mutex_lock(&param->srv->counter_mutex);
  865. if(param->prev){
  866. param->prev->next = param->next;
  867. }
  868. else
  869. param->srv->child = param->next;
  870. if(param->next){
  871. param->next->prev = param->prev;
  872. }
  873. (param->srv->childcount)--;
  874. pthread_mutex_unlock(&param->srv->counter_mutex);
  875. }
  876. if(param->hostname) myfree(param->hostname);
  877. if(param->username) myfree(param->username);
  878. if(param->password) myfree(param->password);
  879. if(param->extusername) myfree(param->extusername);
  880. if(param->extpassword) myfree(param->extpassword);
  881. if(param->ctrlsocksrv != INVALID_SOCKET && param->ctrlsocksrv != param->remsock) {
  882. so._shutdown(param->ctrlsocksrv, SHUT_RDWR);
  883. so._closesocket(param->ctrlsocksrv);
  884. }
  885. if(param->ctrlsock != INVALID_SOCKET && param->ctrlsock != param->clisock) {
  886. so._shutdown(param->ctrlsock, SHUT_RDWR);
  887. so._closesocket(param->ctrlsock);
  888. }
  889. if(param->remsock != INVALID_SOCKET) {
  890. so._shutdown(param->remsock, SHUT_RDWR);
  891. so._closesocket(param->remsock);
  892. }
  893. if(param->clisock != INVALID_SOCKET) {
  894. so._shutdown(param->clisock, SHUT_RDWR);
  895. so._closesocket(param->clisock);
  896. }
  897. myfree(param);
  898. }
  899. #ifndef STDMAIN
  900. static void * itcopy (void * from, size_t size){
  901. void * ret;
  902. if(!from) return NULL;
  903. ret = myalloc(size);
  904. if(ret) memcpy(ret, from, size);
  905. return ret;
  906. }
  907. struct auth * copyauth (struct auth * authfuncs){
  908. struct auth * newauth = NULL;
  909. newauth = authfuncs = itcopy(authfuncs, sizeof(struct auth));
  910. for( ; authfuncs; authfuncs = authfuncs->next = itcopy(authfuncs->next, sizeof(struct auth)));
  911. return newauth;
  912. }
  913. struct ace * copyacl (struct ace *ac){
  914. struct ace * ret = NULL;
  915. struct iplist *ipl;
  916. struct portlist *pl;
  917. struct userlist *ul;
  918. struct chain *ch;
  919. struct period *pel;
  920. struct hostname *hst;
  921. ret = ac = itcopy(ac, sizeof(struct ace));
  922. for( ; ac; ac = ac->next = itcopy(ac->next, sizeof(struct ace))){
  923. ac->src = itcopy(ac->src, sizeof(struct iplist));
  924. for(ipl = ac->src; ipl; ipl = ipl->next = itcopy(ipl->next, sizeof(struct iplist)));
  925. ac->dst = itcopy(ac->dst, sizeof(struct iplist));
  926. for(ipl = ac->dst; ipl; ipl = ipl->next = itcopy(ipl->next, sizeof(struct iplist)));
  927. ac->ports = itcopy(ac->ports, sizeof(struct portlist));
  928. for(pl = ac->ports; pl; pl = pl->next = itcopy(pl->next, sizeof(struct portlist)));
  929. ac->periods = itcopy(ac->periods, sizeof(struct period));
  930. for(pel = ac->periods; pel; pel = pel->next = itcopy(pel->next, sizeof(struct period)));
  931. ac->users = itcopy(ac->users, sizeof(struct userlist));
  932. for(ul = ac->users; ul; ul = ul->next = itcopy(ul->next, sizeof(struct userlist))){
  933. if(ul->user) ul->user = (unsigned char*)mystrdup((char *)ul->user);
  934. }
  935. ac->dstnames = itcopy(ac->dstnames, sizeof(struct hostname));
  936. for(hst = ac->dstnames; hst; hst = hst->next = itcopy(hst->next, sizeof(struct hostname))){
  937. if(hst->name) hst->name = (unsigned char*)mystrdup((char *)hst->name);
  938. }
  939. ac->chains = itcopy(ac->chains, sizeof(struct chain));
  940. for(ch = ac->chains; ch; ch = ch->next = itcopy(ch->next, sizeof(struct chain))){
  941. if(ch->extuser)ch->extuser = (unsigned char*)mystrdup((char *)ch->extuser);
  942. if(ch->extpass)ch->extpass = (unsigned char*)mystrdup((char *)ch->extpass);
  943. if(ch->exthost)ch->exthost = (unsigned char*)mystrdup((char *)ch->exthost);
  944. }
  945. }
  946. return ret;
  947. }
  948. void copyfilter (struct filter *filter, struct srvparam *srv){
  949. int nfilters = 0;
  950. if(!filter) return;
  951. for(srv->filter = filter; srv->filter; srv->filter = srv->filter->next) nfilters++;
  952. srv->filter = myalloc(sizeof(struct filter) * nfilters);
  953. if(!srv->filter) return;
  954. for(; filter; filter = filter->next){
  955. void *data = NULL;
  956. if(!filter->filter_open || !(data = (*filter->filter_open)(filter->data, srv))) continue;
  957. srv->filter[srv->nfilters] = *filter;
  958. srv->filter[srv->nfilters].data = data;
  959. if(srv->nfilters>0)srv->filter[srv->nfilters - 1].next = srv->filter + srv->nfilters;
  960. srv->nfilters++;
  961. if(filter->filter_request)srv->nreqfilters++;
  962. if(filter->filter_header_srv)srv->nhdrfilterssrv++;
  963. if(filter->filter_header_cli)srv->nhdrfilterscli++;
  964. if(filter->filter_predata)srv->npredatfilters++;
  965. if(filter->filter_data_srv)srv->ndatfilterssrv++;
  966. if(filter->filter_data_cli)srv->ndatfilterscli++;
  967. }
  968. }
  969. FILTER_ACTION makefilters (struct srvparam *srv, struct clientparam *param){
  970. FILTER_ACTION res=PASS;
  971. FILTER_ACTION action;
  972. int i;
  973. if(!srv->nfilters) return PASS;
  974. if(!(param->filters = myalloc(sizeof(struct filterp) * srv->nfilters)) ||
  975. (srv->nreqfilters && !(param->reqfilters = myalloc(sizeof(struct filterp *) * srv->nreqfilters))) ||
  976. (srv->nhdrfilterssrv && !(param->hdrfilterssrv = myalloc(sizeof(struct filterp *) * srv->nhdrfilterssrv))) ||
  977. (srv->nhdrfilterscli && !(param->hdrfilterscli = myalloc(sizeof(struct filterp *) * srv->nhdrfilterscli))) ||
  978. (srv->npredatfilters && !(param->predatfilters = myalloc(sizeof(struct filterp *) * srv->npredatfilters))) ||
  979. (srv->ndatfilterssrv && !(param->datfilterssrv = myalloc(sizeof(struct filterp *) * srv->ndatfilterssrv))) ||
  980. (srv->ndatfilterscli && !(param->datfilterscli = myalloc(sizeof(struct filterp *) * srv->ndatfilterscli)))
  981. ){
  982. param->res = 21;
  983. return REJECT;
  984. }
  985. for(i=0; i<srv->nfilters; i++){
  986. if(!srv->filter[i].filter_client)continue;
  987. action = (*srv->filter[i].filter_client)(srv->filter[i].data, param, &param->filters[param->nfilters].data);
  988. if(action == PASS) continue;
  989. if(action > CONTINUE) return action;
  990. param->filters[param->nfilters].filter = srv->filter + i;
  991. if(srv->filter[i].filter_request)param->reqfilters[param->nreqfilters++] = param->filters + param->nfilters;
  992. if(srv->filter[i].filter_header_cli)param->hdrfilterscli[param->nhdrfilterscli++] = param->filters + param->nfilters;
  993. if(srv->filter[i].filter_header_srv)param->hdrfilterssrv[param->nhdrfilterssrv++] = param->filters + param->nfilters;
  994. if(srv->filter[i].filter_predata)param->predatfilters[param->npredatfilters++] = param->filters + param->nfilters;
  995. if(srv->filter[i].filter_data_cli)param->datfilterscli[param->ndatfilterscli++] = param->filters + param->nfilters;
  996. if(srv->filter[i].filter_data_srv)param->datfilterssrv[param->ndatfilterssrv++] = param->filters + param->nfilters;
  997. param->nfilters++;
  998. }
  999. return res;
  1000. }
  1001. void * itfree(void *data, void * retval){
  1002. myfree(data);
  1003. return retval;
  1004. }
  1005. void freeauth(struct auth * authfuncs){
  1006. for(; authfuncs; authfuncs = (struct auth *)itfree(authfuncs, authfuncs->next));
  1007. }
  1008. void freeacl(struct ace *ac){
  1009. struct iplist *ipl;
  1010. struct portlist *pl;
  1011. struct userlist *ul;
  1012. struct chain *ch;
  1013. struct period *pel;
  1014. struct hostname *hst;
  1015. for(; ac; ac = (struct ace *) itfree(ac, ac->next)){
  1016. for(ipl = ac->src; ipl; ipl = (struct iplist *)itfree(ipl, ipl->next));
  1017. for(ipl = ac->dst; ipl; ipl = (struct iplist *)itfree(ipl,ipl->next));
  1018. for(pl = ac->ports; pl; pl = (struct portlist *)itfree(pl, pl->next));
  1019. for(pel = ac->periods; pel; pel = (struct period *)itfree(pel, pel->next));
  1020. for(ul = ac->users; ul; ul = (struct userlist *)itfree(ul, ul->next)){
  1021. if(ul->user)myfree(ul->user);
  1022. }
  1023. for(hst = ac->dstnames; hst; hst = (struct hostname *)itfree(hst, hst->next)){
  1024. if(hst->name)myfree(hst->name);
  1025. }
  1026. for(ch = ac->chains; ch; ch = (struct chain *) itfree(ch, ch->next)){
  1027. if(ch->extuser) myfree(ch->extuser);
  1028. if(ch->extpass) myfree(ch->extpass);
  1029. if(ch->exthost) myfree(ch->exthost);
  1030. }
  1031. }
  1032. }
  1033. FILTER_ACTION handlereqfilters(struct clientparam *param, unsigned char ** buf_p, int * bufsize_p, int offset, int * length_p){
  1034. FILTER_ACTION action;
  1035. int i;
  1036. for(i=0; i<param->nreqfilters; i++){
  1037. action = (*param->reqfilters[i]->filter->filter_request)(param->reqfilters[i]->data, param, buf_p, bufsize_p, offset, length_p);
  1038. if(action!=CONTINUE) return action;
  1039. }
  1040. return PASS;
  1041. }
  1042. FILTER_ACTION handlehdrfilterssrv(struct clientparam *param, unsigned char ** buf_p, int * bufsize_p, int offset, int * length_p){
  1043. FILTER_ACTION action;
  1044. int i;
  1045. for(i=0; i<param->nhdrfilterssrv; i++){
  1046. action = (*param->hdrfilterssrv[i]->filter->filter_header_srv)(param->hdrfilterssrv[i]->data, param, buf_p, bufsize_p, offset, length_p);
  1047. if(action!=CONTINUE) return action;
  1048. }
  1049. return PASS;
  1050. }
  1051. FILTER_ACTION handlehdrfilterscli(struct clientparam *param, unsigned char ** buf_p, int * bufsize_p, int offset, int * length_p){
  1052. FILTER_ACTION action;
  1053. int i;
  1054. for(i = 0; i < param->nhdrfilterscli; i++){
  1055. action = (*param->hdrfilterscli[i]->filter->filter_header_cli)(param->hdrfilterscli[i]->data, param, buf_p, bufsize_p, offset, length_p);
  1056. if(action!=CONTINUE) return action;
  1057. }
  1058. return PASS;
  1059. }
  1060. #endif
  1061. FILTER_ACTION handlepredatflt(struct clientparam *cparam){
  1062. #ifndef STDMAIN
  1063. FILTER_ACTION action;
  1064. int i;
  1065. for(i=0; i<cparam->npredatfilters ;i++){
  1066. action = (*cparam->predatfilters[i]->filter->filter_predata)(cparam->predatfilters[i]->data, cparam);
  1067. if(action!=CONTINUE) return action;
  1068. }
  1069. #endif
  1070. return PASS;
  1071. }
  1072. FILTER_ACTION handledatfltcli(struct clientparam *cparam, unsigned char ** buf_p, int * bufsize_p, int offset, int * length_p){
  1073. #ifndef STDMAIN
  1074. FILTER_ACTION action;
  1075. int i;
  1076. for(i=0; i<cparam->ndatfilterscli ;i++){
  1077. action = (*cparam->datfilterscli[i]->filter->filter_data_cli)(cparam->datfilterscli[i]->data, cparam, buf_p, bufsize_p, offset, length_p);
  1078. if(action!=CONTINUE) return action;
  1079. }
  1080. #endif
  1081. return PASS;
  1082. }
  1083. FILTER_ACTION handledatfltsrv(struct clientparam *cparam, unsigned char ** buf_p, int * bufsize_p, int offset, int * length_p){
  1084. FILTER_ACTION action;
  1085. int i;
  1086. for(i=0; i<cparam->ndatfilterssrv; i++){
  1087. action = (*cparam->datfilterssrv[i]->filter->filter_data_srv)(cparam->datfilterssrv[i]->data, cparam, buf_p, bufsize_p, offset, length_p);
  1088. if(action!=CONTINUE) return action;
  1089. }
  1090. return PASS;
  1091. }