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connection.cpp 19 KB

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  1. /*
  2. * connection.cpp
  3. *
  4. * Created on: Sep 23, 2017
  5. * Author: root
  6. */
  7. #include "connection.h"
  8. #include "encrypt.h"
  9. #include "fd_manager.h"
  10. int disable_anti_replay=0;//if anti_replay windows is diabled
  11. const int disable_conv_clear=0;//a udp connection in the multiplexer is called conversation in this program,conv for short.
  12. const int disable_conn_clear=0;//a raw connection is called conn.
  13. conn_manager_t conn_manager;
  14. anti_replay_seq_t anti_replay_t::get_new_seq_for_send()
  15. {
  16. return anti_replay_seq++;
  17. }
  18. anti_replay_t::anti_replay_t()
  19. {
  20. max_packet_received=0;
  21. anti_replay_seq=get_true_random_number_64()/10;//random first seq
  22. //memset(window,0,sizeof(window)); //not necessary
  23. }
  24. void anti_replay_t::re_init()
  25. {
  26. max_packet_received=0;
  27. //memset(window,0,sizeof(window));
  28. }
  29. int anti_replay_t::is_vaild(u64_t seq)
  30. {
  31. if(disable_anti_replay) return 1;
  32. //if(disabled) return 0;
  33. if(seq==max_packet_received) return 0;
  34. else if(seq>max_packet_received)
  35. {
  36. if(seq-max_packet_received>=anti_replay_window_size)
  37. {
  38. memset(window,0,sizeof(window));
  39. window[seq%anti_replay_window_size]=1;
  40. }
  41. else
  42. {
  43. for (u64_t i=max_packet_received+1;i<seq;i++)
  44. window[i%anti_replay_window_size]=0;
  45. window[seq%anti_replay_window_size]=1;
  46. }
  47. max_packet_received=seq;
  48. return 1;
  49. }
  50. else if(seq<max_packet_received)
  51. {
  52. if(max_packet_received-seq>=anti_replay_window_size) return 0;
  53. else
  54. {
  55. if (window[seq%anti_replay_window_size]==1) return 0;
  56. else
  57. {
  58. window[seq%anti_replay_window_size]=1;
  59. return 1;
  60. }
  61. }
  62. }
  63. return 0; //for complier check
  64. }
  65. void server_clear_function(u64_t u64);
  66. conv_manager_t::conv_manager_t()
  67. {
  68. clear_it=conv_last_active_time.begin();
  69. long long last_clear_time=0;
  70. //clear_function=0;
  71. }
  72. conv_manager_t::~conv_manager_t()
  73. {
  74. clear();
  75. }
  76. int conv_manager_t::get_size()
  77. {
  78. return conv_to_u64.size();
  79. }
  80. void conv_manager_t::reserve()
  81. {
  82. u64_to_conv.reserve(10007);
  83. conv_to_u64.reserve(10007);
  84. conv_last_active_time.reserve(10007);
  85. }
  86. void conv_manager_t::clear()
  87. {
  88. if(disable_conv_clear) return ;
  89. if(program_mode==server_mode)
  90. {
  91. for(it=conv_to_u64.begin();it!=conv_to_u64.end();it++)
  92. {
  93. //int fd=int((it->second<<32u)>>32u);
  94. server_clear_function( it->second);
  95. }
  96. }
  97. u64_to_conv.clear();
  98. conv_to_u64.clear();
  99. conv_last_active_time.clear();
  100. clear_it=conv_last_active_time.begin();
  101. }
  102. u32_t conv_manager_t::get_new_conv()
  103. {
  104. u32_t conv=get_true_random_number_nz();
  105. while(conv_to_u64.find(conv)!=conv_to_u64.end())
  106. {
  107. conv=get_true_random_number_nz();
  108. }
  109. return conv;
  110. }
  111. int conv_manager_t::is_conv_used(u32_t conv)
  112. {
  113. return conv_to_u64.find(conv)!=conv_to_u64.end();
  114. }
  115. int conv_manager_t::is_u64_used(u64_t u64)
  116. {
  117. return u64_to_conv.find(u64)!=u64_to_conv.end();
  118. }
  119. u32_t conv_manager_t::find_conv_by_u64(u64_t u64)
  120. {
  121. return u64_to_conv[u64];
  122. }
  123. u64_t conv_manager_t::find_u64_by_conv(u32_t conv)
  124. {
  125. return conv_to_u64[conv];
  126. }
  127. int conv_manager_t::update_active_time(u32_t conv)
  128. {
  129. return conv_last_active_time[conv]=get_current_time();
  130. }
  131. int conv_manager_t::insert_conv(u32_t conv,u64_t u64)
  132. {
  133. u64_to_conv[u64]=conv;
  134. conv_to_u64[conv]=u64;
  135. conv_last_active_time[conv]=get_current_time();
  136. return 0;
  137. }
  138. int conv_manager_t::erase_conv(u32_t conv)
  139. {
  140. if(disable_conv_clear) return 0;
  141. u64_t u64=conv_to_u64[conv];
  142. if(program_mode==server_mode)
  143. {
  144. server_clear_function(u64);
  145. }
  146. conv_to_u64.erase(conv);
  147. u64_to_conv.erase(u64);
  148. conv_last_active_time.erase(conv);
  149. return 0;
  150. }
  151. int conv_manager_t::clear_inactive(char * ip_port)
  152. {
  153. if(get_current_time()-last_clear_time>conv_clear_interval)
  154. {
  155. last_clear_time=get_current_time();
  156. return clear_inactive0(ip_port);
  157. }
  158. return 0;
  159. }
  160. int conv_manager_t::clear_inactive0(char * ip_port)
  161. {
  162. if(disable_conv_clear) return 0;
  163. //map<uint32_t,uint64_t>::iterator it;
  164. int cnt=0;
  165. it=clear_it;
  166. int size=conv_last_active_time.size();
  167. int num_to_clean=size/conv_clear_ratio+conv_clear_min; //clear 1/10 each time,to avoid latency glitch
  168. num_to_clean=min(num_to_clean,size);
  169. u64_t current_time=get_current_time();
  170. for(;;)
  171. {
  172. if(cnt>=num_to_clean) break;
  173. if(conv_last_active_time.begin()==conv_last_active_time.end()) break;
  174. if(it==conv_last_active_time.end())
  175. {
  176. it=conv_last_active_time.begin();
  177. }
  178. if( current_time -it->second >conv_timeout )
  179. {
  180. //mylog(log_info,"inactive conv %u cleared \n",it->first);
  181. old_it=it;
  182. it++;
  183. u32_t conv= old_it->first;
  184. erase_conv(old_it->first);
  185. if(ip_port==0)
  186. {
  187. mylog(log_info,"conv %x cleared\n",conv);
  188. }
  189. else
  190. {
  191. mylog(log_info,"[%s]conv %x cleared\n",ip_port,conv);
  192. }
  193. }
  194. else
  195. {
  196. it++;
  197. }
  198. cnt++;
  199. }
  200. clear_it=it;
  201. return 0;
  202. }
  203. void conn_info_t::recover(const conn_info_t &conn_info)
  204. {
  205. raw_info=conn_info.raw_info;
  206. raw_info.rst_received=0;
  207. raw_info.disabled=0;
  208. last_state_time=conn_info.last_state_time;
  209. last_hb_recv_time=conn_info.last_hb_recv_time;
  210. last_hb_sent_time=conn_info.last_hb_sent_time;
  211. my_id=conn_info.my_id;
  212. oppsite_id=conn_info.oppsite_id;
  213. blob->anti_replay.re_init();
  214. my_roller=0;//no need to set,but for easier debug,set it to zero
  215. oppsite_roller=0;//same as above
  216. last_oppsite_roller_time=0;
  217. }
  218. void conn_info_t::re_init()
  219. {
  220. //send_packet_info.protocol=g_packet_info_send.protocol;
  221. if(program_mode==server_mode)
  222. state.server_current_state=server_idle;
  223. else
  224. state.client_current_state=client_idle;
  225. last_state_time=0;
  226. oppsite_const_id=0;
  227. timer_fd64=0;
  228. my_roller=0;
  229. oppsite_roller=0;
  230. last_oppsite_roller_time=0;
  231. }
  232. conn_info_t::conn_info_t()
  233. {
  234. blob=0;
  235. re_init();
  236. }
  237. void conn_info_t::prepare()
  238. {
  239. blob=new blob_t;
  240. }
  241. conn_info_t::conn_info_t(const conn_info_t&b)
  242. {
  243. //mylog(log_error,"called!!!!!!!!!!!!!\n");
  244. *this=b;
  245. if(blob!=0)
  246. {
  247. blob=new blob_t(*b.blob);
  248. }
  249. }
  250. conn_info_t& conn_info_t::operator=(const conn_info_t& b)
  251. {
  252. mylog(log_fatal,"not allowed\n");
  253. myexit(-1);
  254. return *this;
  255. }
  256. conn_info_t::~conn_info_t()
  257. {
  258. if(program_mode==server_mode)
  259. {
  260. if(state.server_current_state==server_ready)
  261. {
  262. assert(blob!=0);
  263. assert(oppsite_const_id!=0);
  264. //assert(conn_manager.const_id_mp.find(oppsite_const_id)!=conn_manager.const_id_mp.end()); // conn_manager 's deconstuction function erases it
  265. }
  266. else
  267. {
  268. assert(blob==0);
  269. assert(oppsite_const_id==0);
  270. }
  271. }
  272. assert(timer_fd64==0);
  273. //if(oppsite_const_id!=0) //do this at conn_manager 's deconstuction function
  274. //conn_manager.const_id_mp.erase(oppsite_const_id);
  275. if(blob!=0)
  276. delete blob;
  277. //send_packet_info.protocol=g_packet_info_send.protocol;
  278. }
  279. conn_manager_t::conn_manager_t()
  280. {
  281. ready_num=0;
  282. mp.reserve(10007);
  283. clear_it=mp.begin();
  284. // timer_fd_mp.reserve(10007);
  285. const_id_mp.reserve(10007);
  286. // udp_fd_mp.reserve(100007);
  287. last_clear_time=0;
  288. //current_ready_ip=0;
  289. // current_ready_port=0;
  290. }
  291. int conn_manager_t::exist(u32_t ip,uint16_t port)
  292. {
  293. u64_t u64=0;
  294. u64=ip;
  295. u64<<=32u;
  296. u64|=port;
  297. if(mp.find(u64)!=mp.end())
  298. {
  299. return 1;
  300. }
  301. return 0;
  302. }
  303. /*
  304. int insert(uint32_t ip,uint16_t port)
  305. {
  306. uint64_t u64=0;
  307. u64=ip;
  308. u64<<=32u;
  309. u64|=port;
  310. mp[u64];
  311. return 0;
  312. }*/
  313. conn_info_t *& conn_manager_t::find_insert_p(u32_t ip,uint16_t port) //be aware,the adress may change after rehash
  314. {
  315. u64_t u64=0;
  316. u64=ip;
  317. u64<<=32u;
  318. u64|=port;
  319. unordered_map<u64_t,conn_info_t*>::iterator it=mp.find(u64);
  320. if(it==mp.end())
  321. {
  322. mp[u64]=new conn_info_t;
  323. }
  324. return mp[u64];
  325. }
  326. conn_info_t & conn_manager_t::find_insert(u32_t ip,uint16_t port) //be aware,the adress may change after rehash
  327. {
  328. u64_t u64=0;
  329. u64=ip;
  330. u64<<=32u;
  331. u64|=port;
  332. unordered_map<u64_t,conn_info_t*>::iterator it=mp.find(u64);
  333. if(it==mp.end())
  334. {
  335. mp[u64]=new conn_info_t;
  336. }
  337. return *mp[u64];
  338. }
  339. int conn_manager_t::erase(unordered_map<u64_t,conn_info_t*>::iterator erase_it)
  340. {
  341. if(erase_it->second->state.server_current_state==server_ready)
  342. {
  343. ready_num--;
  344. assert(i32_t(ready_num)!=-1);
  345. assert(erase_it->second!=0);
  346. assert(erase_it->second->timer_fd64 !=0);
  347. assert(fd_manager.exist(erase_it->second->timer_fd64));
  348. assert(erase_it->second->oppsite_const_id!=0);
  349. assert(const_id_mp.find(erase_it->second->oppsite_const_id)!=const_id_mp.end());
  350. //assert(timer_fd_mp.find(erase_it->second->timer_fd)!=timer_fd_mp.end());
  351. const_id_mp.erase(erase_it->second->oppsite_const_id);
  352. fd_manager.fd64_close(erase_it->second->timer_fd64);
  353. erase_it->second->timer_fd64=0;
  354. //timer_fd_mp.erase(erase_it->second->timer_fd);
  355. //close(erase_it->second->timer_fd);// close will auto delte it from epoll
  356. delete(erase_it->second);
  357. mp.erase(erase_it->first);
  358. }
  359. else
  360. {
  361. assert(erase_it->second->blob==0);
  362. assert(erase_it->second->timer_fd64 ==0);
  363. assert(erase_it->second->oppsite_const_id==0);
  364. delete(erase_it->second);
  365. mp.erase(erase_it->first);
  366. }
  367. return 0;
  368. }
  369. int conn_manager_t::clear_inactive()
  370. {
  371. if(get_current_time()-last_clear_time>conn_clear_interval)
  372. {
  373. last_clear_time=get_current_time();
  374. return clear_inactive0();
  375. }
  376. return 0;
  377. }
  378. int conn_manager_t::clear_inactive0()
  379. {
  380. unordered_map<u64_t,conn_info_t*>::iterator it;
  381. unordered_map<u64_t,conn_info_t*>::iterator old_it;
  382. if(disable_conn_clear) return 0;
  383. //map<uint32_t,uint64_t>::iterator it;
  384. int cnt=0;
  385. it=clear_it;
  386. int size=mp.size();
  387. int num_to_clean=size/conn_clear_ratio+conn_clear_min; //clear 1/10 each time,to avoid latency glitch
  388. mylog(log_trace,"mp.size() %d\n", size);
  389. num_to_clean=min(num_to_clean,(int)mp.size());
  390. u64_t current_time=get_current_time();
  391. for(;;)
  392. {
  393. if(cnt>=num_to_clean) break;
  394. if(mp.begin()==mp.end()) break;
  395. if(it==mp.end())
  396. {
  397. it=mp.begin();
  398. }
  399. if(it->second->state.server_current_state==server_ready &&current_time - it->second->last_hb_recv_time <=server_conn_timeout)
  400. {
  401. it++;
  402. }
  403. else if(it->second->state.server_current_state!=server_ready&& current_time - it->second->last_state_time <=server_handshake_timeout )
  404. {
  405. it++;
  406. }
  407. else if(it->second->blob!=0&&it->second->blob->conv_manager.get_size() >0)
  408. {
  409. assert(it->second->state.server_current_state==server_ready);
  410. it++;
  411. }
  412. else
  413. {
  414. mylog(log_info,"[%s:%d]inactive conn cleared \n",my_ntoa(it->second->raw_info.recv_info.src_ip),it->second->raw_info.recv_info.src_port);
  415. old_it=it;
  416. it++;
  417. erase(old_it);
  418. }
  419. cnt++;
  420. }
  421. clear_it=it;
  422. return 0;
  423. }
  424. int send_bare(raw_info_t &raw_info,const char* data,int len)//send function with encryption but no anti replay,this is used when client and server verifys each other
  425. //you have to design the protocol carefully, so that you wont be affect by relay attack
  426. {
  427. if(len<0)
  428. {
  429. mylog(log_debug,"input_len <0\n");
  430. return -1;
  431. }
  432. packet_info_t &send_info=raw_info.send_info;
  433. packet_info_t &recv_info=raw_info.recv_info;
  434. char send_data_buf[buf_len]; //buf for send data and send hb
  435. char send_data_buf2[buf_len];
  436. //static send_bare[buf_len];
  437. iv_t iv=get_true_random_number_64();
  438. padding_t padding=get_true_random_number_64();
  439. memcpy(send_data_buf,&iv,sizeof(iv));
  440. memcpy(send_data_buf+sizeof(iv),&padding,sizeof(padding));
  441. send_data_buf[sizeof(iv)+sizeof(padding)]='b';
  442. memcpy(send_data_buf+sizeof(iv)+sizeof(padding)+1,data,len);
  443. int new_len=len+sizeof(iv)+sizeof(padding)+1;
  444. if(my_encrypt(send_data_buf,send_data_buf2,new_len,key)!=0)
  445. {
  446. return -1;
  447. }
  448. send_raw0(raw_info,send_data_buf2,new_len);
  449. return 0;
  450. }
  451. int reserved_parse_bare(const char *input,int input_len,char* & data,int & len) // a sub function used in recv_bare
  452. {
  453. static char recv_data_buf[buf_len];
  454. if(input_len<0)
  455. {
  456. mylog(log_debug,"input_len <0\n");
  457. return -1;
  458. }
  459. if(my_decrypt(input,recv_data_buf,input_len,key)!=0)
  460. {
  461. mylog(log_debug,"decrypt_fail in recv bare\n");
  462. return -1;
  463. }
  464. if(recv_data_buf[sizeof(iv_t)+sizeof(padding_t)]!='b')
  465. {
  466. mylog(log_debug,"not a bare packet\n");
  467. return -1;
  468. }
  469. len=input_len;
  470. data=recv_data_buf+sizeof(iv_t)+sizeof(padding_t)+1;
  471. len-=sizeof(iv_t)+sizeof(padding_t)+1;
  472. if(len<0)
  473. {
  474. mylog(log_debug,"len <0\n");
  475. return -1;
  476. }
  477. return 0;
  478. }
  479. int recv_bare(raw_info_t &raw_info,char* & data,int & len)//recv function with encryption but no anti replay,this is used when client and server verifys each other
  480. //you have to design the protocol carefully, so that you wont be affect by relay attack
  481. {
  482. packet_info_t &send_info=raw_info.send_info;
  483. packet_info_t &recv_info=raw_info.recv_info;
  484. if(recv_raw0(raw_info,data,len)<0)
  485. {
  486. //printf("recv_raw_fail in recv bare\n");
  487. return -1;
  488. }
  489. if ((raw_mode == mode_faketcp && (recv_info.syn == 1 || recv_info.ack != 1)))
  490. {
  491. mylog(log_debug,"unexpect packet type recv_info.syn=%d recv_info.ack=%d \n",recv_info.syn,recv_info.ack);
  492. return -1;
  493. }
  494. return reserved_parse_bare(data,len,data,len);
  495. }
  496. int send_handshake(raw_info_t &raw_info,id_t id1,id_t id2,id_t id3)// a warp for send_bare for sending handshake(this is not tcp handshake) easily
  497. {
  498. packet_info_t &send_info=raw_info.send_info;
  499. packet_info_t &recv_info=raw_info.recv_info;
  500. char * data;int len;
  501. //len=sizeof(id_t)*3;
  502. if(numbers_to_char(id1,id2,id3,data,len)!=0) return -1;
  503. if(send_bare(raw_info,data,len)!=0) {mylog(log_warn,"send bare fail\n");return -1;}
  504. return 0;
  505. }
  506. /*
  507. int recv_handshake(packet_info_t &info,id_t &id1,id_t &id2,id_t &id3)
  508. {
  509. char * data;int len;
  510. if(recv_bare(info,data,len)!=0) return -1;
  511. if(char_to_numbers(data,len,id1,id2,id3)!=0) return -1;
  512. return 0;
  513. }*/
  514. int send_safer(conn_info_t &conn_info,char type,const char* data,int len) //safer transfer function with anti-replay,when mutually verification is done.
  515. {
  516. packet_info_t &send_info=conn_info.raw_info.send_info;
  517. packet_info_t &recv_info=conn_info.raw_info.recv_info;
  518. if(type!='h'&&type!='d')
  519. {
  520. mylog(log_warn,"first byte is not h or d ,%x\n",type);
  521. return -1;
  522. }
  523. char send_data_buf[buf_len]; //buf for send data and send hb
  524. char send_data_buf2[buf_len];
  525. id_t n_tmp_id=htonl(conn_info.my_id);
  526. memcpy(send_data_buf,&n_tmp_id,sizeof(n_tmp_id));
  527. n_tmp_id=htonl(conn_info.oppsite_id);
  528. memcpy(send_data_buf+sizeof(n_tmp_id),&n_tmp_id,sizeof(n_tmp_id));
  529. anti_replay_seq_t n_seq=hton64(conn_info.blob->anti_replay.get_new_seq_for_send());
  530. memcpy(send_data_buf+sizeof(n_tmp_id)*2,&n_seq,sizeof(n_seq));
  531. send_data_buf[sizeof(n_tmp_id)*2+sizeof(n_seq)]=type;
  532. send_data_buf[sizeof(n_tmp_id)*2+sizeof(n_seq)+1]=conn_info.my_roller;
  533. memcpy(send_data_buf+2+sizeof(n_tmp_id)*2+sizeof(n_seq),data,len);//data;
  534. int new_len=len+sizeof(n_seq)+sizeof(n_tmp_id)*2+2;
  535. if(my_encrypt(send_data_buf,send_data_buf2,new_len,key)!=0)
  536. {
  537. return -1;
  538. }
  539. if(send_raw0(conn_info.raw_info,send_data_buf2,new_len)!=0) return -1;
  540. if(after_send_raw0(conn_info.raw_info)!=0) return -1;
  541. return 0;
  542. }
  543. int send_data_safer(conn_info_t &conn_info,const char* data,int len,u32_t conv_num)//a wrap for send_safer for transfer data.
  544. {
  545. packet_info_t &send_info=conn_info.raw_info.send_info;
  546. packet_info_t &recv_info=conn_info.raw_info.recv_info;
  547. char send_data_buf[buf_len];
  548. //send_data_buf[0]='d';
  549. u32_t n_conv_num=htonl(conv_num);
  550. memcpy(send_data_buf,&n_conv_num,sizeof(n_conv_num));
  551. memcpy(send_data_buf+sizeof(n_conv_num),data,len);
  552. int new_len=len+sizeof(n_conv_num);
  553. send_safer(conn_info,'d',send_data_buf,new_len);
  554. return 0;
  555. }
  556. int reserved_parse_safer(conn_info_t &conn_info,const char * input,int input_len,char &type,char* &data,int &len)//subfunction for recv_safer,allow overlap
  557. {
  558. static char recv_data_buf[buf_len];
  559. // char *recv_data_buf=recv_data_buf0; //fix strict alias warning
  560. if(my_decrypt(input,recv_data_buf,input_len,key)!=0)
  561. {
  562. //printf("decrypt fail\n");
  563. return -1;
  564. }
  565. //char *a=recv_data_buf;
  566. //id_t h_oppiste_id= ntohl ( *((id_t * )(recv_data_buf)) );
  567. id_t h_oppsite_id;
  568. memcpy(&h_oppsite_id,recv_data_buf,sizeof(h_oppsite_id));
  569. h_oppsite_id=ntohl(h_oppsite_id);
  570. //id_t h_my_id= ntohl ( *((id_t * )(recv_data_buf+sizeof(id_t))) );
  571. id_t h_my_id;
  572. memcpy(&h_my_id,recv_data_buf+sizeof(id_t),sizeof(h_my_id));
  573. h_my_id=ntohl(h_my_id);
  574. //anti_replay_seq_t h_seq= ntoh64 ( *((anti_replay_seq_t * )(recv_data_buf +sizeof(id_t) *2 )) );
  575. anti_replay_seq_t h_seq;
  576. memcpy(&h_seq,recv_data_buf +sizeof(id_t) *2 ,sizeof(h_seq));
  577. h_seq=ntoh64(h_seq);
  578. if(h_oppsite_id!=conn_info.oppsite_id||h_my_id!=conn_info.my_id)
  579. {
  580. mylog(log_debug,"id and oppsite_id verification failed %x %x %x %x \n",h_oppsite_id,conn_info.oppsite_id,h_my_id,conn_info.my_id);
  581. return -1;
  582. }
  583. if (conn_info.blob->anti_replay.is_vaild(h_seq) != 1) {
  584. mylog(log_debug,"dropped replay packet\n");
  585. return -1;
  586. }
  587. //printf("recv _len %d\n ",recv_len);
  588. data=recv_data_buf+sizeof(anti_replay_seq_t)+sizeof(id_t)*2;
  589. len=input_len-(sizeof(anti_replay_seq_t)+sizeof(id_t)*2 );
  590. if(data[0]!='h'&&data[0]!='d')
  591. {
  592. mylog(log_debug,"first byte is not h or d ,%x\n",data[0]);
  593. return -1;
  594. }
  595. uint8_t roller=data[1];
  596. type=data[0];
  597. data+=2;
  598. len-=2;
  599. if(len<0)
  600. {
  601. mylog(log_debug,"len <0 ,%d\n",len);
  602. return -1;
  603. }
  604. if(roller!=conn_info.oppsite_roller)
  605. {
  606. conn_info.oppsite_roller=roller;
  607. conn_info.last_oppsite_roller_time=get_current_time();
  608. }
  609. if(hb_mode==0)
  610. conn_info.my_roller++;//increase on a successful recv
  611. else if(hb_mode==1)
  612. {
  613. if(type=='h')
  614. conn_info.my_roller++;
  615. }
  616. else
  617. {
  618. assert(0==1);
  619. }
  620. if(after_recv_raw0(conn_info.raw_info)!=0) return -1;
  621. return 0;
  622. }
  623. int recv_safer(conn_info_t &conn_info,char &type,char* &data,int &len)///safer transfer function with anti-replay,when mutually verification is done.
  624. {
  625. packet_info_t &send_info=conn_info.raw_info.send_info;
  626. packet_info_t &recv_info=conn_info.raw_info.recv_info;
  627. char * recv_data;int recv_len;
  628. static char recv_data_buf[buf_len];
  629. if(recv_raw0(conn_info.raw_info,recv_data,recv_len)!=0) return -1;
  630. return reserved_parse_safer(conn_info,recv_data,recv_len,type,data,len);
  631. }
  632. void server_clear_function(u64_t u64)//used in conv_manager in server mode.for server we have to use one udp fd for one conv(udp connection),
  633. //so we have to close the fd when conv expires
  634. {
  635. //int fd=int(u64);
  636. // int ret;
  637. //assert(fd!=0);
  638. /*
  639. epoll_event ev;
  640. ev.events = EPOLLIN;
  641. ev.data.u64 = u64;
  642. ret = epoll_ctl(epollfd, EPOLL_CTL_DEL, fd, &ev);
  643. if (ret!=0)
  644. {
  645. mylog(log_fatal,"fd:%d epoll delete failed!!!!\n",fd);
  646. myexit(-1); //this shouldnt happen
  647. }*/ //no need
  648. /*ret= close(fd); //closed fd should be auto removed from epoll
  649. if (ret!=0)
  650. {
  651. mylog(log_fatal,"close fd %d failed !!!!\n",fd);
  652. myexit(-1); //this shouldnt happen
  653. }*/
  654. //mylog(log_fatal,"size:%d !!!!\n",conn_manager.udp_fd_mp.size());
  655. fd64_t fd64=u64;
  656. assert(fd_manager.exist(fd64));
  657. fd_manager.fd64_close(fd64);
  658. //assert(conn_manager.udp_fd_mp.find(fd)!=conn_manager.udp_fd_mp.end());
  659. //conn_manager.udp_fd_mp.erase(fd);
  660. }