slitheen-proxy.c 22 KB

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  1. /* Name: slitheen-proxy.c
  2. *
  3. * Slitheen - a decoy routing system for censorship resistance
  4. * Copyright (C) 2017 Cecylia Bocovich (cbocovic@uwaterloo.ca)
  5. *
  6. * This program is free software: you can redistribute it and/or modify
  7. * it under the terms of the GNU General Public License as published by
  8. * the Free Software Foundation, version 3.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. *
  18. * Additional permission under GNU GPL version 3 section 7
  19. *
  20. * If you modify this Program, or any covered work, by linking or combining
  21. * it with the OpenSSL library (or a modified version of that library),
  22. * containing parts covered by the terms of the OpenSSL Licence and the
  23. * SSLeay license, the licensors of this Program grant you additional
  24. * permission to convey the resulting work. Corresponding Source for a
  25. * non-source form of such a combination shall include the source code
  26. * for the parts of the OpenSSL library used as well as that of the covered
  27. * work.
  28. */
  29. #include <pcap.h>
  30. #include <stdio.h>
  31. #include <stdlib.h>
  32. #include <unistd.h>
  33. #include <string.h>
  34. #include <pthread.h>
  35. #include <sys/ioctl.h>
  36. #include <net/if.h>
  37. #include <openssl/ssl.h>
  38. #include "util.h"
  39. #include "flow.h"
  40. #include "slitheen.h"
  41. #include "relay.h"
  42. #include "crypto.h"
  43. #include "cryptothread.h"
  44. void save_packet(flow *f, struct packet_info *info);
  45. void update_window_expiration(flow *f, struct packet_info *info);
  46. void retransmit(flow *f, struct packet_info *info, uint32_t data_to_fill);
  47. void usage(void){
  48. printf("Usage: slitheen-proxy [internal network interface] [NAT interface]\n");
  49. }
  50. int main(int argc, char *argv[]){
  51. pthread_t t1, t2;
  52. char *dev1 = NULL; /* Device that leads to the internal network */
  53. char *dev2 = NULL; /* Device that leads out to the world */
  54. struct sniff_args outbound;
  55. struct sniff_args inbound;
  56. if (argc != 3) {
  57. usage();
  58. return(2);
  59. }
  60. dev1 = argv[1];
  61. dev2 = argv[2];
  62. if(init_tables()){
  63. exit(1);
  64. }
  65. if(init_session_cache()){
  66. exit(1);
  67. }
  68. init_crypto_locks();
  69. /* Create threads */
  70. outbound.readdev = dev1;
  71. outbound.writedev = dev2;
  72. inbound.readdev = dev2;
  73. inbound.writedev = dev1;
  74. pthread_create(&t1, NULL, sniff_packets, (void *) &outbound);
  75. pthread_create(&t2, NULL, sniff_packets, (void *) &inbound);
  76. pthread_join(t1, NULL);
  77. pthread_join(t2, NULL);
  78. pthread_exit(NULL);
  79. crypto_locks_cleanup();
  80. return(0);
  81. }
  82. void *sniff_packets(void *args){
  83. pcap_t *rd_handle;
  84. pcap_t *wr_handle;
  85. char rd_errbuf[BUFSIZ];
  86. char wr_errbuf[BUFSIZ];
  87. uint8_t MAC[ETHER_ADDR_LEN];
  88. bpf_u_int32 mask;
  89. bpf_u_int32 net;
  90. char *readdev, *writedev;
  91. struct sniff_args *arg_st = (struct sniff_args *) args;
  92. readdev = arg_st->readdev;
  93. writedev = arg_st->writedev;
  94. //Find MAC address of each interface
  95. struct ifreq ifr;
  96. int s = socket(AF_INET, SOCK_DGRAM, 0);
  97. strcpy(ifr.ifr_name, writedev);
  98. ioctl(s, SIOCGIFHWADDR, &ifr);
  99. memcpy(MAC, ifr.ifr_hwaddr.sa_data, ETHER_ADDR_LEN);
  100. close(s);
  101. if (pcap_lookupnet(readdev, &net, &mask, rd_errbuf) == -1){
  102. fprintf(stderr, "Can't get netmask for device %s\n", readdev);
  103. exit(2);
  104. }
  105. rd_handle = pcap_open_live(readdev, BUFSIZ, 0, 0, rd_errbuf);
  106. if (rd_handle == NULL){
  107. fprintf(stderr, "Couldn't open device %s: %s\n", readdev, rd_errbuf);
  108. }
  109. if(pcap_datalink(rd_handle) != DLT_EN10MB) {
  110. fprintf(stderr, "Device %s does not provide Ethernet headers - not supported\n", readdev);
  111. exit(2);
  112. }
  113. if(pcap_setdirection(rd_handle, PCAP_D_IN)){
  114. fprintf(stderr, "Platform does not support write direction. Update filters with MAC address\n");
  115. exit(2);
  116. }
  117. wr_handle = pcap_open_live(writedev, BUFSIZ, 0, 0, wr_errbuf);
  118. if (wr_handle == NULL){
  119. fprintf(stderr, "Couldn't open device %s: %s\n", writedev, wr_errbuf);
  120. }
  121. struct inject_args iargs;
  122. iargs.mac_addr = MAC;
  123. iargs.write_dev = wr_handle;
  124. /*callback function*/
  125. pcap_loop(rd_handle, -1, got_packet, (unsigned char *) &iargs);
  126. /*Sniff a packet*/
  127. pcap_close(rd_handle);
  128. return NULL;
  129. }
  130. /*
  131. * Injects a packet back out the opposite interface
  132. */
  133. void inject_packet(struct inject_args *iargs, const struct pcap_pkthdr *header, uint8_t *packet){
  134. pcap_t *handle = iargs->write_dev;
  135. //write back out to the MAC ADDR it came in on
  136. memmove(packet, packet+ETHER_ADDR_LEN, ETHER_ADDR_LEN);
  137. memcpy(packet+ETHER_ADDR_LEN, iargs->mac_addr, ETHER_ADDR_LEN);
  138. if((pcap_inject(handle, packet, header->len)) < 0 ){
  139. fprintf(stderr, "Error: %s\n", pcap_geterr(handle));
  140. printf("Length: %d\n", header->len);
  141. }
  142. #ifdef DEBUG
  143. fprintf(stderr, "injected the following packet:\n");
  144. for(int i=0; i< header->len; i++){
  145. fprintf(stderr, "%02x ", packet[i]);
  146. }
  147. fprintf(stderr, "\n");
  148. #endif
  149. free(packet);
  150. }
  151. /**
  152. * Runs when pcap_loop receives a packet from the specified interface
  153. * If the received packet is a tcp packet, processes it and then writes it back out
  154. * to the interface
  155. *
  156. */
  157. void got_packet(uint8_t *args, const struct pcap_pkthdr *header, const uint8_t *packet){
  158. struct inject_args *iargs = (struct inject_args *) args;
  159. uint8_t *tmp_packet = emalloc(header->len);
  160. memcpy(tmp_packet, packet, header->len);
  161. process_packet(iargs, header, tmp_packet);
  162. }
  163. /* This function receives a full ip packet and then:
  164. * 1) identifies the flow
  165. * 2) adds the packet to the flow's data chain
  166. * 3) updates the flow's state
  167. */
  168. void process_packet(struct inject_args *iargs, const struct pcap_pkthdr *header, uint8_t *packet){
  169. struct packet_info *info = emalloc(sizeof(struct packet_info));
  170. extract_packet_headers(packet, info);
  171. //Ignore non-TCP packets (shouldn't actually get any)
  172. if((info->ip_hdr == NULL) || (info->tcp_hdr == NULL)){
  173. free(info);
  174. free(packet);
  175. return;
  176. }
  177. /* Checks to see if this is a possibly tagged hello msg */
  178. if ((info->record_hdr != NULL) && (info->record_hdr->type == HS)){ /* This is a TLS handshake */
  179. check_handshake(info);
  180. }
  181. /* Now if flow is in table, update state */
  182. flow *observed;
  183. if((observed = check_flow(info)) != NULL){
  184. #ifdef DEBUG
  185. /*Check sequence number and replay application data if necessary*/
  186. fprintf(stdout,"Flow: %x:%d > %x:%d (%s)\n", info->ip_hdr->src.s_addr, ntohs(info->tcp_hdr->src_port), info->ip_hdr->dst.s_addr, ntohs(info->tcp_hdr->dst_port), (info->ip_hdr->src.s_addr != observed->src_ip.s_addr)? "incoming":"outgoing");
  187. fprintf(stdout,"ID number: %u\n", htonl(info->ip_hdr->id));
  188. fprintf(stdout,"Sequence number: %u\n", htonl(info->tcp_hdr->sequence_num));
  189. fprintf(stdout,"Acknowledgement number: %u\n", htonl(info->tcp_hdr->ack_num));
  190. #endif
  191. uint8_t incoming = (info->ip_hdr->src.s_addr != observed->src_ip.s_addr)? 1 : 0;
  192. uint32_t seq_num = htonl(info->tcp_hdr->sequence_num);
  193. uint32_t expected_seq = (incoming)? observed->downstream_seq_num : observed->upstream_seq_num;
  194. #ifdef DEBUG
  195. fprintf(stdout,"Expected sequence number: %u\n", expected_seq);
  196. #endif
  197. /* Remove acknowledged data from queue after TCP window is exceeded */
  198. update_window_expiration(observed, info);
  199. /* fill with retransmit data, process new data */
  200. uint32_t data_to_fill;
  201. uint32_t data_to_process;
  202. if(seq_num > expected_seq){
  203. data_to_process = info->app_data_len;
  204. data_to_fill = 0;
  205. } else if (seq_num + info->app_data_len > expected_seq){
  206. data_to_fill = expected_seq - seq_num;
  207. data_to_process = seq_num + info->app_data_len - expected_seq;
  208. } else {
  209. data_to_fill = info->app_data_len;
  210. data_to_process = 0;
  211. }
  212. uint8_t *p = info->app_data;
  213. if(data_to_fill){ //retransmit
  214. printf("Retransmiting data (%u:%u)\n", seq_num, seq_num + info->app_data_len);
  215. retransmit(observed, info, data_to_fill);
  216. }
  217. p += data_to_fill;
  218. if(data_to_process){
  219. if(p != info->app_data){
  220. printf("UH OH something weird might happen\n");
  221. }
  222. if(observed->application){
  223. if(seq_num > expected_seq){
  224. //For now, enters into FORFEIT state
  225. //TODO: change upstream behaviour to try to mask slitheen hdr
  226. //printf("ERROR: future packet in app data, forfeiting flow\n");
  227. remove_flow(observed);
  228. goto err;
  229. }
  230. replace_packet(observed, info);
  231. } else {
  232. //We're still in the TLS handshake; hold packets misordered packets
  233. if(seq_num > expected_seq){
  234. //Delay and process later
  235. frame *new_frame = ecalloc(1, sizeof(frame));
  236. new_frame->iargs = iargs;
  237. new_frame->packet = packet;
  238. new_frame->header = header;
  239. new_frame->seq_num = seq_num;
  240. new_frame->next = NULL;
  241. frame_queue *queue = (incoming) ? observed->ds_frame_queue : observed->us_frame_queue;
  242. printf("Delay processing of frame (seq = %u )\n", seq_num);
  243. //add to end of list
  244. if(queue->first_frame == NULL){
  245. queue->first_frame = new_frame;
  246. } else {
  247. frame *last = queue->first_frame;
  248. while(last->next != NULL){
  249. last = last->next;
  250. }
  251. last->next = new_frame;
  252. }
  253. free(info);
  254. observed->ref_ctr--;
  255. printf("Misordered packet. %p ref_ctr %d\n", observed, observed->ref_ctr);
  256. return; //TODO: fix terrible spaghetti returns
  257. }
  258. /* Pass data to packet chain */
  259. if(observed->stall){
  260. }
  261. if(add_packet(observed, info)){//removed_flow
  262. goto err;
  263. }
  264. }
  265. /* Update TCP state */
  266. if(info->tcp_hdr->flags & (FIN | RST) ){
  267. /* Remove flow from table, connection ended */
  268. remove_flow(observed);
  269. goto err;
  270. }
  271. /* add packet to application data queue */
  272. save_packet(observed, info);
  273. }
  274. /*process and release held frames with current sequence numbers*/
  275. frame_queue *queue = (incoming) ? observed->ds_frame_queue : observed->us_frame_queue;
  276. frame *first = queue->first_frame;
  277. frame *prev = queue->first_frame;
  278. expected_seq = (incoming)? observed->downstream_seq_num : observed->upstream_seq_num;
  279. while (first != NULL){
  280. if(first->seq_num <= expected_seq){
  281. //remove from queue and process
  282. if(first == queue->first_frame) {
  283. queue->first_frame = first->next;
  284. } else {
  285. prev->next = first->next;
  286. }
  287. printf("Now processing frame (seq = %u )\n", first->seq_num);
  288. process_packet(iargs, first->header, first->packet);
  289. free(first);
  290. first = queue->first_frame;
  291. prev = queue->first_frame;
  292. } else {
  293. prev = first;
  294. first = first->next;
  295. }
  296. }
  297. observed->ref_ctr--;
  298. printf("Finished processing packet. %p ref_ctr %d\n", observed, observed->ref_ctr);
  299. }
  300. err:
  301. free(info);//Note: don't free this while a thread is using it
  302. inject_packet(iargs, header, packet);
  303. return;
  304. }
  305. //TODO: rewrite this function to remove bloat
  306. void save_packet(flow *f, struct packet_info *info){
  307. uint8_t incoming = (info->ip_hdr->src.s_addr != f->src_ip.s_addr)? 1 : 0;
  308. uint32_t seq_num = htonl(info->tcp_hdr->sequence_num);
  309. //add new app block
  310. packet *new_block = ecalloc(1, sizeof(packet));
  311. new_block->seq_num = htonl(info->tcp_hdr->sequence_num);
  312. new_block->data = ecalloc(1, info->app_data_len);
  313. memcpy(new_block->data, info->app_data, info->app_data_len);
  314. new_block->len = info->app_data_len;
  315. new_block->next = NULL;
  316. new_block->expiration = 0;
  317. packet *saved_data = (incoming)? f->downstream_app_data->first_packet :
  318. f->upstream_app_data->first_packet;
  319. //put app data block in queue
  320. if(saved_data == NULL){
  321. if(incoming){
  322. f->downstream_app_data->first_packet = new_block;
  323. if(new_block->seq_num ==
  324. f->downstream_seq_num){
  325. f->downstream_seq_num += new_block->len;
  326. #ifdef DEBUG
  327. printf("Updated downstream expected seqnum to %u\n",
  328. f->downstream_seq_num );
  329. #endif
  330. }
  331. } else {
  332. f->upstream_app_data->first_packet = new_block;
  333. if(new_block->seq_num ==
  334. f->upstream_seq_num){
  335. f->upstream_seq_num += new_block->len;
  336. #ifdef DEBUG
  337. printf("Updated upstream expected seqnum to %u\n",
  338. f->upstream_seq_num );
  339. #endif
  340. }
  341. }
  342. } else {
  343. uint8_t saved = 0;
  344. while(saved_data->next != NULL){
  345. if(!saved && (saved_data->next->seq_num > seq_num)){
  346. new_block->next = saved_data->next;
  347. saved_data->next = new_block;
  348. saved = 1;
  349. }
  350. //update expected sequence number
  351. if(incoming){
  352. if(saved_data->next->seq_num ==
  353. f->downstream_seq_num){
  354. f->downstream_seq_num += saved_data->next->len;
  355. #ifdef DEBUG
  356. printf("Updated downstream expected seqnum to %u\n",
  357. f->downstream_seq_num );
  358. #endif
  359. }
  360. } else {//outgoing
  361. if(saved_data->next->seq_num ==
  362. f->upstream_seq_num){
  363. f->upstream_seq_num += saved_data->next->len;
  364. #ifdef DEBUG
  365. printf("Updated upstream expected seqnum to %u\n",
  366. f->upstream_seq_num );
  367. #endif
  368. }
  369. }
  370. saved_data = saved_data->next;
  371. }
  372. if(!saved){
  373. saved_data->next = new_block;
  374. //update expected sequence number
  375. if(incoming){
  376. if(saved_data->next->seq_num ==
  377. f->downstream_seq_num){
  378. f->downstream_seq_num += saved_data->next->len;
  379. #ifdef DEBUG
  380. printf("Updated downstream expected seqnum to %u\n",
  381. f->downstream_seq_num );
  382. #endif
  383. }
  384. } else {//outgoing
  385. if(saved_data->next->seq_num ==
  386. f->upstream_seq_num){
  387. f->upstream_seq_num += saved_data->next->len;
  388. #ifdef DEBUG
  389. printf("Updated upstream expected seqnum to %u\n",
  390. f->upstream_seq_num );
  391. #endif
  392. }
  393. }
  394. }
  395. }
  396. }
  397. /**
  398. * This function cleans up data that has been acked, after the TCP window of the recipient has been
  399. * exceeded. This ensures that a retransmisson of the data will no longer occur.
  400. *
  401. * Sets the expiration for recent data base on the TCP window
  402. */
  403. void update_window_expiration(flow *f, struct packet_info *info){
  404. uint8_t incoming = (info->ip_hdr->src.s_addr != f->src_ip.s_addr)? 1 : 0;
  405. uint32_t ack_num = htonl(info->tcp_hdr->ack_num);
  406. uint32_t end_seq = htonl(info->tcp_hdr->sequence_num) + info->app_data_len - 1;
  407. uint32_t window = ack_num + htons(info->tcp_hdr->win_size);
  408. #ifdef DEBUG
  409. printf("Received sequence number %u\n", htonl(info->tcp_hdr->sequence_num));
  410. printf("Acknowledged up to %u with window expiring at %u\n", ack_num, window);
  411. printf("Removing all packets up to %u\n", end_seq);
  412. #endif
  413. packet *saved_data = (incoming)? f->downstream_app_data->first_packet :
  414. f->upstream_app_data->first_packet;
  415. while((saved_data != NULL) && (saved_data->expiration != 0) && (end_seq > saved_data->expiration)){
  416. //remove entire block
  417. if(incoming){
  418. f->downstream_app_data->first_packet = saved_data->next;
  419. } else {
  420. f->upstream_app_data->first_packet = saved_data->next;
  421. }
  422. free(saved_data->data);
  423. free(saved_data);
  424. saved_data = (incoming)? f->downstream_app_data->first_packet :
  425. f->upstream_app_data->first_packet;
  426. #ifdef DEBUG
  427. if(saved_data != NULL){
  428. printf("Currently saved seq_num is now %u\n", saved_data->seq_num);
  429. } else {
  430. printf("Acked all data, queue is empty\n");
  431. }
  432. #endif
  433. }
  434. /* Update expiration for packets based on TCP window size */
  435. saved_data = (incoming)? f->upstream_app_data->first_packet :
  436. f->downstream_app_data->first_packet;
  437. while((saved_data != NULL) && (ack_num > saved_data->seq_num)){
  438. //update window
  439. if(ack_num >= saved_data->seq_num + saved_data->len){
  440. //remove entire block
  441. saved_data->expiration = window;
  442. }
  443. saved_data = saved_data->next;
  444. }
  445. }
  446. /**
  447. * This function retransmits previously sent (and possibly modified) data
  448. *
  449. */
  450. void retransmit(flow *f, struct packet_info *info, uint32_t data_to_fill){
  451. uint8_t *p = info->app_data;
  452. uint32_t seq_num = htonl(info->tcp_hdr->sequence_num);
  453. uint8_t incoming = (info->ip_hdr->src.s_addr != f->src_ip.s_addr)? 1 : 0;
  454. packet *saved_data = (incoming)? f->downstream_app_data->first_packet :
  455. f->upstream_app_data->first_packet;
  456. while(data_to_fill > 0){
  457. if(saved_data == NULL){
  458. //have already acked all data
  459. p += data_to_fill;
  460. seq_num += data_to_fill;
  461. data_to_fill -= data_to_fill;
  462. continue;
  463. }
  464. if(seq_num < saved_data->seq_num){
  465. //we are missing a block. Use what was given
  466. if(saved_data->seq_num - seq_num > data_to_fill){
  467. //skip the rest
  468. p += data_to_fill;
  469. seq_num += data_to_fill;
  470. data_to_fill -= data_to_fill;
  471. } else {
  472. p += saved_data->seq_num - seq_num;
  473. data_to_fill -= saved_data->seq_num - seq_num;
  474. seq_num += saved_data->seq_num - seq_num;
  475. }
  476. } else if ( seq_num == saved_data->seq_num) {
  477. if(data_to_fill >= saved_data->len){
  478. //exhaust this block and move onto next one
  479. memcpy(p, saved_data->data, saved_data->len);
  480. p += saved_data->len;
  481. seq_num += saved_data->len;
  482. data_to_fill -= saved_data->len;
  483. saved_data = saved_data->next;
  484. } else {
  485. //fill with partial block
  486. memcpy(p, saved_data->data, data_to_fill);
  487. p += data_to_fill;
  488. seq_num += data_to_fill;
  489. data_to_fill -= data_to_fill;
  490. }
  491. } else { //seq_num > saved_data->seq_num
  492. uint32_t offset = seq_num - saved_data->seq_num;
  493. if(offset > saved_data->len){
  494. saved_data = saved_data->next;
  495. offset -= saved_data->len;
  496. } else {
  497. if(data_to_fill > saved_data->len - offset){
  498. memcpy(p, saved_data->data + offset, saved_data->len - offset);
  499. p += saved_data->len - offset;
  500. seq_num += saved_data->len - offset;
  501. data_to_fill -= saved_data->len - offset;
  502. saved_data = saved_data->next;
  503. } else {
  504. memcpy(p, saved_data->data + offset, data_to_fill);
  505. p += data_to_fill;
  506. seq_num += data_to_fill;
  507. data_to_fill -= data_to_fill;
  508. }
  509. }
  510. }
  511. }
  512. tcp_checksum(info);//update checksum
  513. }
  514. /** This function extracts the ip, tcp, and tls record headers
  515. * from a received packet (if they exist), and put them in
  516. * a packet_info struct
  517. *
  518. */
  519. void extract_packet_headers(uint8_t *packet, struct packet_info *info){
  520. /* First fill in IP header */
  521. uint8_t *p = packet;
  522. p += ETHER_HEADER_LEN; //skip ethernet header
  523. info->ip_hdr = (struct ip_header*) p;
  524. info->size_ip_hdr = IP_HEADER_LEN(info->ip_hdr);
  525. /* Verify this is an IP packet */
  526. if( (info->ip_hdr->versionihl >>4) != 4){
  527. info->ip_hdr = NULL;
  528. info->size_ip_hdr = 0;
  529. info->tcp_hdr = NULL;
  530. info->size_tcp_hdr = 0;
  531. info->record_hdr = NULL;
  532. return;
  533. }
  534. /* If this is a TCP segment, fill in TCP header */
  535. if (info->ip_hdr->proto == IPPROTO_TCP){
  536. p += info->size_ip_hdr; //skip IP header
  537. info->tcp_hdr = (struct tcp_header*) p;
  538. info->size_tcp_hdr = TCP_HEADER_LEN(info->tcp_hdr);
  539. p += info->size_tcp_hdr;
  540. } else {
  541. info->tcp_hdr = NULL;
  542. info->size_tcp_hdr = 0;
  543. info->record_hdr = NULL;
  544. return;
  545. }
  546. /* If the application data contains a TLS record, fill in hdr */
  547. info->app_data_len = htons(info->ip_hdr->len) - (info->size_ip_hdr + info->size_tcp_hdr);
  548. if(info->app_data_len > 0){
  549. info->app_data = p;
  550. info->record_hdr = (struct tls_header*) p;
  551. //check to see if this is a valid record
  552. if((info->record_hdr->type < 0x14) || (info->record_hdr->type > 0x18)){
  553. info->record_hdr = NULL;
  554. }
  555. } else {
  556. info->record_hdr = NULL;
  557. info->app_data = NULL;
  558. }
  559. return;
  560. }
  561. /** Copies a packet_info structure and returns a pointer to the duplicate.
  562. */
  563. struct packet_info *copy_packet_info(struct packet_info *src_info){
  564. struct packet_info *dst_info = emalloc(sizeof(struct packet_info));
  565. dst_info->ip_hdr = src_info->ip_hdr;
  566. dst_info->tcp_hdr = src_info->tcp_hdr;
  567. dst_info->size_tcp_hdr = src_info->size_tcp_hdr;
  568. dst_info->size_ip_hdr = src_info->size_ip_hdr;
  569. dst_info->app_data = src_info->app_data;
  570. dst_info->app_data_len = src_info->app_data_len;
  571. return dst_info;
  572. }