cm.c 113 KB

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  1. /*
  2. * Copyright (c) 2009-2014 Chelsio, Inc. All rights reserved.
  3. *
  4. * This software is available to you under a choice of one of two
  5. * licenses. You may choose to be licensed under the terms of the GNU
  6. * General Public License (GPL) Version 2, available from the file
  7. * COPYING in the main directory of this source tree, or the
  8. * OpenIB.org BSD license below:
  9. *
  10. * Redistribution and use in source and binary forms, with or
  11. * without modification, are permitted provided that the following
  12. * conditions are met:
  13. *
  14. * - Redistributions of source code must retain the above
  15. * copyright notice, this list of conditions and the following
  16. * disclaimer.
  17. *
  18. * - Redistributions in binary form must reproduce the above
  19. * copyright notice, this list of conditions and the following
  20. * disclaimer in the documentation and/or other materials
  21. * provided with the distribution.
  22. *
  23. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
  24. * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
  25. * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
  26. * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
  27. * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
  28. * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
  29. * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  30. * SOFTWARE.
  31. */
  32. #include <linux/module.h>
  33. #include <linux/list.h>
  34. #include <linux/workqueue.h>
  35. #include <linux/skbuff.h>
  36. #include <linux/timer.h>
  37. #include <linux/notifier.h>
  38. #include <linux/inetdevice.h>
  39. #include <linux/ip.h>
  40. #include <linux/tcp.h>
  41. #include <linux/if_vlan.h>
  42. #include <net/neighbour.h>
  43. #include <net/netevent.h>
  44. #include <net/route.h>
  45. #include <net/tcp.h>
  46. #include <net/ip6_route.h>
  47. #include <net/addrconf.h>
  48. #include <rdma/ib_addr.h>
  49. #include "iw_cxgb4.h"
  50. #include "clip_tbl.h"
  51. static char *states[] = {
  52. "idle",
  53. "listen",
  54. "connecting",
  55. "mpa_wait_req",
  56. "mpa_req_sent",
  57. "mpa_req_rcvd",
  58. "mpa_rep_sent",
  59. "fpdu_mode",
  60. "aborting",
  61. "closing",
  62. "moribund",
  63. "dead",
  64. NULL,
  65. };
  66. static int nocong;
  67. module_param(nocong, int, 0644);
  68. MODULE_PARM_DESC(nocong, "Turn of congestion control (default=0)");
  69. static int enable_ecn;
  70. module_param(enable_ecn, int, 0644);
  71. MODULE_PARM_DESC(enable_ecn, "Enable ECN (default=0/disabled)");
  72. static int dack_mode = 1;
  73. module_param(dack_mode, int, 0644);
  74. MODULE_PARM_DESC(dack_mode, "Delayed ack mode (default=1)");
  75. uint c4iw_max_read_depth = 32;
  76. module_param(c4iw_max_read_depth, int, 0644);
  77. MODULE_PARM_DESC(c4iw_max_read_depth,
  78. "Per-connection max ORD/IRD (default=32)");
  79. static int enable_tcp_timestamps;
  80. module_param(enable_tcp_timestamps, int, 0644);
  81. MODULE_PARM_DESC(enable_tcp_timestamps, "Enable tcp timestamps (default=0)");
  82. static int enable_tcp_sack;
  83. module_param(enable_tcp_sack, int, 0644);
  84. MODULE_PARM_DESC(enable_tcp_sack, "Enable tcp SACK (default=0)");
  85. static int enable_tcp_window_scaling = 1;
  86. module_param(enable_tcp_window_scaling, int, 0644);
  87. MODULE_PARM_DESC(enable_tcp_window_scaling,
  88. "Enable tcp window scaling (default=1)");
  89. int c4iw_debug;
  90. module_param(c4iw_debug, int, 0644);
  91. MODULE_PARM_DESC(c4iw_debug, "Enable debug logging (default=0)");
  92. static int peer2peer = 1;
  93. module_param(peer2peer, int, 0644);
  94. MODULE_PARM_DESC(peer2peer, "Support peer2peer ULPs (default=1)");
  95. static int p2p_type = FW_RI_INIT_P2PTYPE_READ_REQ;
  96. module_param(p2p_type, int, 0644);
  97. MODULE_PARM_DESC(p2p_type, "RDMAP opcode to use for the RTR message: "
  98. "1=RDMA_READ 0=RDMA_WRITE (default 1)");
  99. static int ep_timeout_secs = 60;
  100. module_param(ep_timeout_secs, int, 0644);
  101. MODULE_PARM_DESC(ep_timeout_secs, "CM Endpoint operation timeout "
  102. "in seconds (default=60)");
  103. static int mpa_rev = 2;
  104. module_param(mpa_rev, int, 0644);
  105. MODULE_PARM_DESC(mpa_rev, "MPA Revision, 0 supports amso1100, "
  106. "1 is RFC0544 spec compliant, 2 is IETF MPA Peer Connect Draft"
  107. " compliant (default=2)");
  108. static int markers_enabled;
  109. module_param(markers_enabled, int, 0644);
  110. MODULE_PARM_DESC(markers_enabled, "Enable MPA MARKERS (default(0)=disabled)");
  111. static int crc_enabled = 1;
  112. module_param(crc_enabled, int, 0644);
  113. MODULE_PARM_DESC(crc_enabled, "Enable MPA CRC (default(1)=enabled)");
  114. static int rcv_win = 256 * 1024;
  115. module_param(rcv_win, int, 0644);
  116. MODULE_PARM_DESC(rcv_win, "TCP receive window in bytes (default=256KB)");
  117. static int snd_win = 128 * 1024;
  118. module_param(snd_win, int, 0644);
  119. MODULE_PARM_DESC(snd_win, "TCP send window in bytes (default=128KB)");
  120. static struct workqueue_struct *workq;
  121. static struct sk_buff_head rxq;
  122. static struct sk_buff *get_skb(struct sk_buff *skb, int len, gfp_t gfp);
  123. static void ep_timeout(unsigned long arg);
  124. static void connect_reply_upcall(struct c4iw_ep *ep, int status);
  125. static LIST_HEAD(timeout_list);
  126. static spinlock_t timeout_lock;
  127. static void deref_qp(struct c4iw_ep *ep)
  128. {
  129. c4iw_qp_rem_ref(&ep->com.qp->ibqp);
  130. clear_bit(QP_REFERENCED, &ep->com.flags);
  131. }
  132. static void ref_qp(struct c4iw_ep *ep)
  133. {
  134. set_bit(QP_REFERENCED, &ep->com.flags);
  135. c4iw_qp_add_ref(&ep->com.qp->ibqp);
  136. }
  137. static void start_ep_timer(struct c4iw_ep *ep)
  138. {
  139. PDBG("%s ep %p\n", __func__, ep);
  140. if (timer_pending(&ep->timer)) {
  141. pr_err("%s timer already started! ep %p\n",
  142. __func__, ep);
  143. return;
  144. }
  145. clear_bit(TIMEOUT, &ep->com.flags);
  146. c4iw_get_ep(&ep->com);
  147. ep->timer.expires = jiffies + ep_timeout_secs * HZ;
  148. ep->timer.data = (unsigned long)ep;
  149. ep->timer.function = ep_timeout;
  150. add_timer(&ep->timer);
  151. }
  152. static int stop_ep_timer(struct c4iw_ep *ep)
  153. {
  154. PDBG("%s ep %p stopping\n", __func__, ep);
  155. del_timer_sync(&ep->timer);
  156. if (!test_and_set_bit(TIMEOUT, &ep->com.flags)) {
  157. c4iw_put_ep(&ep->com);
  158. return 0;
  159. }
  160. return 1;
  161. }
  162. static int c4iw_l2t_send(struct c4iw_rdev *rdev, struct sk_buff *skb,
  163. struct l2t_entry *l2e)
  164. {
  165. int error = 0;
  166. if (c4iw_fatal_error(rdev)) {
  167. kfree_skb(skb);
  168. PDBG("%s - device in error state - dropping\n", __func__);
  169. return -EIO;
  170. }
  171. error = cxgb4_l2t_send(rdev->lldi.ports[0], skb, l2e);
  172. if (error < 0)
  173. kfree_skb(skb);
  174. return error < 0 ? error : 0;
  175. }
  176. int c4iw_ofld_send(struct c4iw_rdev *rdev, struct sk_buff *skb)
  177. {
  178. int error = 0;
  179. if (c4iw_fatal_error(rdev)) {
  180. kfree_skb(skb);
  181. PDBG("%s - device in error state - dropping\n", __func__);
  182. return -EIO;
  183. }
  184. error = cxgb4_ofld_send(rdev->lldi.ports[0], skb);
  185. if (error < 0)
  186. kfree_skb(skb);
  187. return error < 0 ? error : 0;
  188. }
  189. static void release_tid(struct c4iw_rdev *rdev, u32 hwtid, struct sk_buff *skb)
  190. {
  191. struct cpl_tid_release *req;
  192. skb = get_skb(skb, sizeof *req, GFP_KERNEL);
  193. if (!skb)
  194. return;
  195. req = (struct cpl_tid_release *) skb_put(skb, sizeof(*req));
  196. INIT_TP_WR(req, hwtid);
  197. OPCODE_TID(req) = cpu_to_be32(MK_OPCODE_TID(CPL_TID_RELEASE, hwtid));
  198. set_wr_txq(skb, CPL_PRIORITY_SETUP, 0);
  199. c4iw_ofld_send(rdev, skb);
  200. return;
  201. }
  202. static void set_emss(struct c4iw_ep *ep, u16 opt)
  203. {
  204. ep->emss = ep->com.dev->rdev.lldi.mtus[TCPOPT_MSS_G(opt)] -
  205. ((AF_INET == ep->com.remote_addr.ss_family) ?
  206. sizeof(struct iphdr) : sizeof(struct ipv6hdr)) -
  207. sizeof(struct tcphdr);
  208. ep->mss = ep->emss;
  209. if (TCPOPT_TSTAMP_G(opt))
  210. ep->emss -= round_up(TCPOLEN_TIMESTAMP, 4);
  211. if (ep->emss < 128)
  212. ep->emss = 128;
  213. if (ep->emss & 7)
  214. PDBG("Warning: misaligned mtu idx %u mss %u emss=%u\n",
  215. TCPOPT_MSS_G(opt), ep->mss, ep->emss);
  216. PDBG("%s mss_idx %u mss %u emss=%u\n", __func__, TCPOPT_MSS_G(opt),
  217. ep->mss, ep->emss);
  218. }
  219. static enum c4iw_ep_state state_read(struct c4iw_ep_common *epc)
  220. {
  221. enum c4iw_ep_state state;
  222. mutex_lock(&epc->mutex);
  223. state = epc->state;
  224. mutex_unlock(&epc->mutex);
  225. return state;
  226. }
  227. static void __state_set(struct c4iw_ep_common *epc, enum c4iw_ep_state new)
  228. {
  229. epc->state = new;
  230. }
  231. static void state_set(struct c4iw_ep_common *epc, enum c4iw_ep_state new)
  232. {
  233. mutex_lock(&epc->mutex);
  234. PDBG("%s - %s -> %s\n", __func__, states[epc->state], states[new]);
  235. __state_set(epc, new);
  236. mutex_unlock(&epc->mutex);
  237. return;
  238. }
  239. static void *alloc_ep(int size, gfp_t gfp)
  240. {
  241. struct c4iw_ep_common *epc;
  242. epc = kzalloc(size, gfp);
  243. if (epc) {
  244. kref_init(&epc->kref);
  245. mutex_init(&epc->mutex);
  246. c4iw_init_wr_wait(&epc->wr_wait);
  247. }
  248. PDBG("%s alloc ep %p\n", __func__, epc);
  249. return epc;
  250. }
  251. void _c4iw_free_ep(struct kref *kref)
  252. {
  253. struct c4iw_ep *ep;
  254. ep = container_of(kref, struct c4iw_ep, com.kref);
  255. PDBG("%s ep %p state %s\n", __func__, ep, states[state_read(&ep->com)]);
  256. if (test_bit(QP_REFERENCED, &ep->com.flags))
  257. deref_qp(ep);
  258. if (test_bit(RELEASE_RESOURCES, &ep->com.flags)) {
  259. if (ep->com.remote_addr.ss_family == AF_INET6) {
  260. struct sockaddr_in6 *sin6 =
  261. (struct sockaddr_in6 *)
  262. &ep->com.mapped_local_addr;
  263. cxgb4_clip_release(
  264. ep->com.dev->rdev.lldi.ports[0],
  265. (const u32 *)&sin6->sin6_addr.s6_addr,
  266. 1);
  267. }
  268. remove_handle(ep->com.dev, &ep->com.dev->hwtid_idr, ep->hwtid);
  269. cxgb4_remove_tid(ep->com.dev->rdev.lldi.tids, 0, ep->hwtid);
  270. dst_release(ep->dst);
  271. cxgb4_l2t_release(ep->l2t);
  272. }
  273. if (test_bit(RELEASE_MAPINFO, &ep->com.flags)) {
  274. print_addr(&ep->com, __func__, "remove_mapinfo/mapping");
  275. iwpm_remove_mapinfo(&ep->com.local_addr,
  276. &ep->com.mapped_local_addr);
  277. iwpm_remove_mapping(&ep->com.local_addr, RDMA_NL_C4IW);
  278. }
  279. kfree(ep);
  280. }
  281. static void release_ep_resources(struct c4iw_ep *ep)
  282. {
  283. set_bit(RELEASE_RESOURCES, &ep->com.flags);
  284. c4iw_put_ep(&ep->com);
  285. }
  286. static int status2errno(int status)
  287. {
  288. switch (status) {
  289. case CPL_ERR_NONE:
  290. return 0;
  291. case CPL_ERR_CONN_RESET:
  292. return -ECONNRESET;
  293. case CPL_ERR_ARP_MISS:
  294. return -EHOSTUNREACH;
  295. case CPL_ERR_CONN_TIMEDOUT:
  296. return -ETIMEDOUT;
  297. case CPL_ERR_TCAM_FULL:
  298. return -ENOMEM;
  299. case CPL_ERR_CONN_EXIST:
  300. return -EADDRINUSE;
  301. default:
  302. return -EIO;
  303. }
  304. }
  305. /*
  306. * Try and reuse skbs already allocated...
  307. */
  308. static struct sk_buff *get_skb(struct sk_buff *skb, int len, gfp_t gfp)
  309. {
  310. if (skb && !skb_is_nonlinear(skb) && !skb_cloned(skb)) {
  311. skb_trim(skb, 0);
  312. skb_get(skb);
  313. skb_reset_transport_header(skb);
  314. } else {
  315. skb = alloc_skb(len, gfp);
  316. }
  317. t4_set_arp_err_handler(skb, NULL, NULL);
  318. return skb;
  319. }
  320. static struct net_device *get_real_dev(struct net_device *egress_dev)
  321. {
  322. return rdma_vlan_dev_real_dev(egress_dev) ? : egress_dev;
  323. }
  324. static int our_interface(struct c4iw_dev *dev, struct net_device *egress_dev)
  325. {
  326. int i;
  327. egress_dev = get_real_dev(egress_dev);
  328. for (i = 0; i < dev->rdev.lldi.nports; i++)
  329. if (dev->rdev.lldi.ports[i] == egress_dev)
  330. return 1;
  331. return 0;
  332. }
  333. static struct dst_entry *find_route6(struct c4iw_dev *dev, __u8 *local_ip,
  334. __u8 *peer_ip, __be16 local_port,
  335. __be16 peer_port, u8 tos,
  336. __u32 sin6_scope_id)
  337. {
  338. struct dst_entry *dst = NULL;
  339. if (IS_ENABLED(CONFIG_IPV6)) {
  340. struct flowi6 fl6;
  341. memset(&fl6, 0, sizeof(fl6));
  342. memcpy(&fl6.daddr, peer_ip, 16);
  343. memcpy(&fl6.saddr, local_ip, 16);
  344. if (ipv6_addr_type(&fl6.daddr) & IPV6_ADDR_LINKLOCAL)
  345. fl6.flowi6_oif = sin6_scope_id;
  346. dst = ip6_route_output(&init_net, NULL, &fl6);
  347. if (!dst)
  348. goto out;
  349. if (!our_interface(dev, ip6_dst_idev(dst)->dev) &&
  350. !(ip6_dst_idev(dst)->dev->flags & IFF_LOOPBACK)) {
  351. dst_release(dst);
  352. dst = NULL;
  353. }
  354. }
  355. out:
  356. return dst;
  357. }
  358. static struct dst_entry *find_route(struct c4iw_dev *dev, __be32 local_ip,
  359. __be32 peer_ip, __be16 local_port,
  360. __be16 peer_port, u8 tos)
  361. {
  362. struct rtable *rt;
  363. struct flowi4 fl4;
  364. struct neighbour *n;
  365. rt = ip_route_output_ports(&init_net, &fl4, NULL, peer_ip, local_ip,
  366. peer_port, local_port, IPPROTO_TCP,
  367. tos, 0);
  368. if (IS_ERR(rt))
  369. return NULL;
  370. n = dst_neigh_lookup(&rt->dst, &peer_ip);
  371. if (!n)
  372. return NULL;
  373. if (!our_interface(dev, n->dev) &&
  374. !(n->dev->flags & IFF_LOOPBACK)) {
  375. neigh_release(n);
  376. dst_release(&rt->dst);
  377. return NULL;
  378. }
  379. neigh_release(n);
  380. return &rt->dst;
  381. }
  382. static void arp_failure_discard(void *handle, struct sk_buff *skb)
  383. {
  384. PDBG("%s c4iw_dev %p\n", __func__, handle);
  385. kfree_skb(skb);
  386. }
  387. /*
  388. * Handle an ARP failure for an active open.
  389. */
  390. static void act_open_req_arp_failure(void *handle, struct sk_buff *skb)
  391. {
  392. struct c4iw_ep *ep = handle;
  393. printk(KERN_ERR MOD "ARP failure duing connect\n");
  394. kfree_skb(skb);
  395. connect_reply_upcall(ep, -EHOSTUNREACH);
  396. state_set(&ep->com, DEAD);
  397. if (ep->com.remote_addr.ss_family == AF_INET6) {
  398. struct sockaddr_in6 *sin6 =
  399. (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  400. cxgb4_clip_release(ep->com.dev->rdev.lldi.ports[0],
  401. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  402. }
  403. remove_handle(ep->com.dev, &ep->com.dev->atid_idr, ep->atid);
  404. cxgb4_free_atid(ep->com.dev->rdev.lldi.tids, ep->atid);
  405. dst_release(ep->dst);
  406. cxgb4_l2t_release(ep->l2t);
  407. c4iw_put_ep(&ep->com);
  408. }
  409. /*
  410. * Handle an ARP failure for a CPL_ABORT_REQ. Change it into a no RST variant
  411. * and send it along.
  412. */
  413. static void abort_arp_failure(void *handle, struct sk_buff *skb)
  414. {
  415. struct c4iw_rdev *rdev = handle;
  416. struct cpl_abort_req *req = cplhdr(skb);
  417. PDBG("%s rdev %p\n", __func__, rdev);
  418. req->cmd = CPL_ABORT_NO_RST;
  419. c4iw_ofld_send(rdev, skb);
  420. }
  421. static void send_flowc(struct c4iw_ep *ep, struct sk_buff *skb)
  422. {
  423. unsigned int flowclen = 80;
  424. struct fw_flowc_wr *flowc;
  425. int i;
  426. skb = get_skb(skb, flowclen, GFP_KERNEL);
  427. flowc = (struct fw_flowc_wr *)__skb_put(skb, flowclen);
  428. flowc->op_to_nparams = cpu_to_be32(FW_WR_OP_V(FW_FLOWC_WR) |
  429. FW_FLOWC_WR_NPARAMS_V(8));
  430. flowc->flowid_len16 = cpu_to_be32(FW_WR_LEN16_V(DIV_ROUND_UP(flowclen,
  431. 16)) | FW_WR_FLOWID_V(ep->hwtid));
  432. flowc->mnemval[0].mnemonic = FW_FLOWC_MNEM_PFNVFN;
  433. flowc->mnemval[0].val = cpu_to_be32(FW_PFVF_CMD_PFN_V
  434. (ep->com.dev->rdev.lldi.pf));
  435. flowc->mnemval[1].mnemonic = FW_FLOWC_MNEM_CH;
  436. flowc->mnemval[1].val = cpu_to_be32(ep->tx_chan);
  437. flowc->mnemval[2].mnemonic = FW_FLOWC_MNEM_PORT;
  438. flowc->mnemval[2].val = cpu_to_be32(ep->tx_chan);
  439. flowc->mnemval[3].mnemonic = FW_FLOWC_MNEM_IQID;
  440. flowc->mnemval[3].val = cpu_to_be32(ep->rss_qid);
  441. flowc->mnemval[4].mnemonic = FW_FLOWC_MNEM_SNDNXT;
  442. flowc->mnemval[4].val = cpu_to_be32(ep->snd_seq);
  443. flowc->mnemval[5].mnemonic = FW_FLOWC_MNEM_RCVNXT;
  444. flowc->mnemval[5].val = cpu_to_be32(ep->rcv_seq);
  445. flowc->mnemval[6].mnemonic = FW_FLOWC_MNEM_SNDBUF;
  446. flowc->mnemval[6].val = cpu_to_be32(ep->snd_win);
  447. flowc->mnemval[7].mnemonic = FW_FLOWC_MNEM_MSS;
  448. flowc->mnemval[7].val = cpu_to_be32(ep->emss);
  449. /* Pad WR to 16 byte boundary */
  450. flowc->mnemval[8].mnemonic = 0;
  451. flowc->mnemval[8].val = 0;
  452. for (i = 0; i < 9; i++) {
  453. flowc->mnemval[i].r4[0] = 0;
  454. flowc->mnemval[i].r4[1] = 0;
  455. flowc->mnemval[i].r4[2] = 0;
  456. }
  457. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  458. c4iw_ofld_send(&ep->com.dev->rdev, skb);
  459. }
  460. static int send_halfclose(struct c4iw_ep *ep, gfp_t gfp)
  461. {
  462. struct cpl_close_con_req *req;
  463. struct sk_buff *skb;
  464. int wrlen = roundup(sizeof *req, 16);
  465. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  466. skb = get_skb(NULL, wrlen, gfp);
  467. if (!skb) {
  468. printk(KERN_ERR MOD "%s - failed to alloc skb\n", __func__);
  469. return -ENOMEM;
  470. }
  471. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  472. t4_set_arp_err_handler(skb, NULL, arp_failure_discard);
  473. req = (struct cpl_close_con_req *) skb_put(skb, wrlen);
  474. memset(req, 0, wrlen);
  475. INIT_TP_WR(req, ep->hwtid);
  476. OPCODE_TID(req) = cpu_to_be32(MK_OPCODE_TID(CPL_CLOSE_CON_REQ,
  477. ep->hwtid));
  478. return c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  479. }
  480. static int send_abort(struct c4iw_ep *ep, struct sk_buff *skb, gfp_t gfp)
  481. {
  482. struct cpl_abort_req *req;
  483. int wrlen = roundup(sizeof *req, 16);
  484. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  485. skb = get_skb(skb, wrlen, gfp);
  486. if (!skb) {
  487. printk(KERN_ERR MOD "%s - failed to alloc skb.\n",
  488. __func__);
  489. return -ENOMEM;
  490. }
  491. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  492. t4_set_arp_err_handler(skb, &ep->com.dev->rdev, abort_arp_failure);
  493. req = (struct cpl_abort_req *) skb_put(skb, wrlen);
  494. memset(req, 0, wrlen);
  495. INIT_TP_WR(req, ep->hwtid);
  496. OPCODE_TID(req) = cpu_to_be32(MK_OPCODE_TID(CPL_ABORT_REQ, ep->hwtid));
  497. req->cmd = CPL_ABORT_SEND_RST;
  498. return c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  499. }
  500. /*
  501. * c4iw_form_pm_msg - Form a port mapper message with mapping info
  502. */
  503. static void c4iw_form_pm_msg(struct c4iw_ep *ep,
  504. struct iwpm_sa_data *pm_msg)
  505. {
  506. memcpy(&pm_msg->loc_addr, &ep->com.local_addr,
  507. sizeof(ep->com.local_addr));
  508. memcpy(&pm_msg->rem_addr, &ep->com.remote_addr,
  509. sizeof(ep->com.remote_addr));
  510. }
  511. /*
  512. * c4iw_form_reg_msg - Form a port mapper message with dev info
  513. */
  514. static void c4iw_form_reg_msg(struct c4iw_dev *dev,
  515. struct iwpm_dev_data *pm_msg)
  516. {
  517. memcpy(pm_msg->dev_name, dev->ibdev.name, IWPM_DEVNAME_SIZE);
  518. memcpy(pm_msg->if_name, dev->rdev.lldi.ports[0]->name,
  519. IWPM_IFNAME_SIZE);
  520. }
  521. static void c4iw_record_pm_msg(struct c4iw_ep *ep,
  522. struct iwpm_sa_data *pm_msg)
  523. {
  524. memcpy(&ep->com.mapped_local_addr, &pm_msg->mapped_loc_addr,
  525. sizeof(ep->com.mapped_local_addr));
  526. memcpy(&ep->com.mapped_remote_addr, &pm_msg->mapped_rem_addr,
  527. sizeof(ep->com.mapped_remote_addr));
  528. }
  529. static int get_remote_addr(struct c4iw_ep *parent_ep, struct c4iw_ep *child_ep)
  530. {
  531. int ret;
  532. print_addr(&parent_ep->com, __func__, "get_remote_addr parent_ep ");
  533. print_addr(&child_ep->com, __func__, "get_remote_addr child_ep ");
  534. ret = iwpm_get_remote_info(&parent_ep->com.mapped_local_addr,
  535. &child_ep->com.mapped_remote_addr,
  536. &child_ep->com.remote_addr, RDMA_NL_C4IW);
  537. if (ret)
  538. PDBG("Unable to find remote peer addr info - err %d\n", ret);
  539. return ret;
  540. }
  541. static void best_mtu(const unsigned short *mtus, unsigned short mtu,
  542. unsigned int *idx, int use_ts, int ipv6)
  543. {
  544. unsigned short hdr_size = (ipv6 ?
  545. sizeof(struct ipv6hdr) :
  546. sizeof(struct iphdr)) +
  547. sizeof(struct tcphdr) +
  548. (use_ts ?
  549. round_up(TCPOLEN_TIMESTAMP, 4) : 0);
  550. unsigned short data_size = mtu - hdr_size;
  551. cxgb4_best_aligned_mtu(mtus, hdr_size, data_size, 8, idx);
  552. }
  553. static int send_connect(struct c4iw_ep *ep)
  554. {
  555. struct cpl_act_open_req *req;
  556. struct cpl_t5_act_open_req *t5_req;
  557. struct cpl_act_open_req6 *req6;
  558. struct cpl_t5_act_open_req6 *t5_req6;
  559. struct sk_buff *skb;
  560. u64 opt0;
  561. u32 opt2;
  562. unsigned int mtu_idx;
  563. int wscale;
  564. int wrlen;
  565. int sizev4 = is_t4(ep->com.dev->rdev.lldi.adapter_type) ?
  566. sizeof(struct cpl_act_open_req) :
  567. sizeof(struct cpl_t5_act_open_req);
  568. int sizev6 = is_t4(ep->com.dev->rdev.lldi.adapter_type) ?
  569. sizeof(struct cpl_act_open_req6) :
  570. sizeof(struct cpl_t5_act_open_req6);
  571. struct sockaddr_in *la = (struct sockaddr_in *)
  572. &ep->com.mapped_local_addr;
  573. struct sockaddr_in *ra = (struct sockaddr_in *)
  574. &ep->com.mapped_remote_addr;
  575. struct sockaddr_in6 *la6 = (struct sockaddr_in6 *)
  576. &ep->com.mapped_local_addr;
  577. struct sockaddr_in6 *ra6 = (struct sockaddr_in6 *)
  578. &ep->com.mapped_remote_addr;
  579. int win;
  580. int ret;
  581. wrlen = (ep->com.remote_addr.ss_family == AF_INET) ?
  582. roundup(sizev4, 16) :
  583. roundup(sizev6, 16);
  584. PDBG("%s ep %p atid %u\n", __func__, ep, ep->atid);
  585. skb = get_skb(NULL, wrlen, GFP_KERNEL);
  586. if (!skb) {
  587. printk(KERN_ERR MOD "%s - failed to alloc skb.\n",
  588. __func__);
  589. return -ENOMEM;
  590. }
  591. set_wr_txq(skb, CPL_PRIORITY_SETUP, ep->ctrlq_idx);
  592. best_mtu(ep->com.dev->rdev.lldi.mtus, ep->mtu, &mtu_idx,
  593. enable_tcp_timestamps,
  594. (AF_INET == ep->com.remote_addr.ss_family) ? 0 : 1);
  595. wscale = compute_wscale(rcv_win);
  596. /*
  597. * Specify the largest window that will fit in opt0. The
  598. * remainder will be specified in the rx_data_ack.
  599. */
  600. win = ep->rcv_win >> 10;
  601. if (win > RCV_BUFSIZ_M)
  602. win = RCV_BUFSIZ_M;
  603. opt0 = (nocong ? NO_CONG_F : 0) |
  604. KEEP_ALIVE_F |
  605. DELACK_F |
  606. WND_SCALE_V(wscale) |
  607. MSS_IDX_V(mtu_idx) |
  608. L2T_IDX_V(ep->l2t->idx) |
  609. TX_CHAN_V(ep->tx_chan) |
  610. SMAC_SEL_V(ep->smac_idx) |
  611. DSCP_V(ep->tos) |
  612. ULP_MODE_V(ULP_MODE_TCPDDP) |
  613. RCV_BUFSIZ_V(win);
  614. opt2 = RX_CHANNEL_V(0) |
  615. CCTRL_ECN_V(enable_ecn) |
  616. RSS_QUEUE_VALID_F | RSS_QUEUE_V(ep->rss_qid);
  617. if (enable_tcp_timestamps)
  618. opt2 |= TSTAMPS_EN_F;
  619. if (enable_tcp_sack)
  620. opt2 |= SACK_EN_F;
  621. if (wscale && enable_tcp_window_scaling)
  622. opt2 |= WND_SCALE_EN_F;
  623. if (is_t5(ep->com.dev->rdev.lldi.adapter_type)) {
  624. opt2 |= T5_OPT_2_VALID_F;
  625. opt2 |= CONG_CNTRL_V(CONG_ALG_TAHOE);
  626. opt2 |= T5_ISS_F;
  627. }
  628. if (ep->com.remote_addr.ss_family == AF_INET6)
  629. cxgb4_clip_get(ep->com.dev->rdev.lldi.ports[0],
  630. (const u32 *)&la6->sin6_addr.s6_addr, 1);
  631. t4_set_arp_err_handler(skb, ep, act_open_req_arp_failure);
  632. if (is_t4(ep->com.dev->rdev.lldi.adapter_type)) {
  633. if (ep->com.remote_addr.ss_family == AF_INET) {
  634. req = (struct cpl_act_open_req *) skb_put(skb, wrlen);
  635. INIT_TP_WR(req, 0);
  636. OPCODE_TID(req) = cpu_to_be32(
  637. MK_OPCODE_TID(CPL_ACT_OPEN_REQ,
  638. ((ep->rss_qid << 14) | ep->atid)));
  639. req->local_port = la->sin_port;
  640. req->peer_port = ra->sin_port;
  641. req->local_ip = la->sin_addr.s_addr;
  642. req->peer_ip = ra->sin_addr.s_addr;
  643. req->opt0 = cpu_to_be64(opt0);
  644. req->params = cpu_to_be32(cxgb4_select_ntuple(
  645. ep->com.dev->rdev.lldi.ports[0],
  646. ep->l2t));
  647. req->opt2 = cpu_to_be32(opt2);
  648. } else {
  649. req6 = (struct cpl_act_open_req6 *)skb_put(skb, wrlen);
  650. INIT_TP_WR(req6, 0);
  651. OPCODE_TID(req6) = cpu_to_be32(
  652. MK_OPCODE_TID(CPL_ACT_OPEN_REQ6,
  653. ((ep->rss_qid<<14)|ep->atid)));
  654. req6->local_port = la6->sin6_port;
  655. req6->peer_port = ra6->sin6_port;
  656. req6->local_ip_hi = *((__be64 *)
  657. (la6->sin6_addr.s6_addr));
  658. req6->local_ip_lo = *((__be64 *)
  659. (la6->sin6_addr.s6_addr + 8));
  660. req6->peer_ip_hi = *((__be64 *)
  661. (ra6->sin6_addr.s6_addr));
  662. req6->peer_ip_lo = *((__be64 *)
  663. (ra6->sin6_addr.s6_addr + 8));
  664. req6->opt0 = cpu_to_be64(opt0);
  665. req6->params = cpu_to_be32(cxgb4_select_ntuple(
  666. ep->com.dev->rdev.lldi.ports[0],
  667. ep->l2t));
  668. req6->opt2 = cpu_to_be32(opt2);
  669. }
  670. } else {
  671. u32 isn = (prandom_u32() & ~7UL) - 1;
  672. if (peer2peer)
  673. isn += 4;
  674. if (ep->com.remote_addr.ss_family == AF_INET) {
  675. t5_req = (struct cpl_t5_act_open_req *)
  676. skb_put(skb, wrlen);
  677. INIT_TP_WR(t5_req, 0);
  678. OPCODE_TID(t5_req) = cpu_to_be32(
  679. MK_OPCODE_TID(CPL_ACT_OPEN_REQ,
  680. ((ep->rss_qid << 14) | ep->atid)));
  681. t5_req->local_port = la->sin_port;
  682. t5_req->peer_port = ra->sin_port;
  683. t5_req->local_ip = la->sin_addr.s_addr;
  684. t5_req->peer_ip = ra->sin_addr.s_addr;
  685. t5_req->opt0 = cpu_to_be64(opt0);
  686. t5_req->params = cpu_to_be64(FILTER_TUPLE_V(
  687. cxgb4_select_ntuple(
  688. ep->com.dev->rdev.lldi.ports[0],
  689. ep->l2t)));
  690. t5_req->rsvd = cpu_to_be32(isn);
  691. PDBG("%s snd_isn %u\n", __func__,
  692. be32_to_cpu(t5_req->rsvd));
  693. t5_req->opt2 = cpu_to_be32(opt2);
  694. } else {
  695. t5_req6 = (struct cpl_t5_act_open_req6 *)
  696. skb_put(skb, wrlen);
  697. INIT_TP_WR(t5_req6, 0);
  698. OPCODE_TID(t5_req6) = cpu_to_be32(
  699. MK_OPCODE_TID(CPL_ACT_OPEN_REQ6,
  700. ((ep->rss_qid<<14)|ep->atid)));
  701. t5_req6->local_port = la6->sin6_port;
  702. t5_req6->peer_port = ra6->sin6_port;
  703. t5_req6->local_ip_hi = *((__be64 *)
  704. (la6->sin6_addr.s6_addr));
  705. t5_req6->local_ip_lo = *((__be64 *)
  706. (la6->sin6_addr.s6_addr + 8));
  707. t5_req6->peer_ip_hi = *((__be64 *)
  708. (ra6->sin6_addr.s6_addr));
  709. t5_req6->peer_ip_lo = *((__be64 *)
  710. (ra6->sin6_addr.s6_addr + 8));
  711. t5_req6->opt0 = cpu_to_be64(opt0);
  712. t5_req6->params = cpu_to_be64(FILTER_TUPLE_V(
  713. cxgb4_select_ntuple(
  714. ep->com.dev->rdev.lldi.ports[0],
  715. ep->l2t)));
  716. t5_req6->rsvd = cpu_to_be32(isn);
  717. PDBG("%s snd_isn %u\n", __func__,
  718. be32_to_cpu(t5_req6->rsvd));
  719. t5_req6->opt2 = cpu_to_be32(opt2);
  720. }
  721. }
  722. set_bit(ACT_OPEN_REQ, &ep->com.history);
  723. ret = c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  724. if (ret && ep->com.remote_addr.ss_family == AF_INET6)
  725. cxgb4_clip_release(ep->com.dev->rdev.lldi.ports[0],
  726. (const u32 *)&la6->sin6_addr.s6_addr, 1);
  727. return ret;
  728. }
  729. static void send_mpa_req(struct c4iw_ep *ep, struct sk_buff *skb,
  730. u8 mpa_rev_to_use)
  731. {
  732. int mpalen, wrlen;
  733. struct fw_ofld_tx_data_wr *req;
  734. struct mpa_message *mpa;
  735. struct mpa_v2_conn_params mpa_v2_params;
  736. PDBG("%s ep %p tid %u pd_len %d\n", __func__, ep, ep->hwtid, ep->plen);
  737. BUG_ON(skb_cloned(skb));
  738. mpalen = sizeof(*mpa) + ep->plen;
  739. if (mpa_rev_to_use == 2)
  740. mpalen += sizeof(struct mpa_v2_conn_params);
  741. wrlen = roundup(mpalen + sizeof *req, 16);
  742. skb = get_skb(skb, wrlen, GFP_KERNEL);
  743. if (!skb) {
  744. connect_reply_upcall(ep, -ENOMEM);
  745. return;
  746. }
  747. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  748. req = (struct fw_ofld_tx_data_wr *)skb_put(skb, wrlen);
  749. memset(req, 0, wrlen);
  750. req->op_to_immdlen = cpu_to_be32(
  751. FW_WR_OP_V(FW_OFLD_TX_DATA_WR) |
  752. FW_WR_COMPL_F |
  753. FW_WR_IMMDLEN_V(mpalen));
  754. req->flowid_len16 = cpu_to_be32(
  755. FW_WR_FLOWID_V(ep->hwtid) |
  756. FW_WR_LEN16_V(wrlen >> 4));
  757. req->plen = cpu_to_be32(mpalen);
  758. req->tunnel_to_proxy = cpu_to_be32(
  759. FW_OFLD_TX_DATA_WR_FLUSH_F |
  760. FW_OFLD_TX_DATA_WR_SHOVE_F);
  761. mpa = (struct mpa_message *)(req + 1);
  762. memcpy(mpa->key, MPA_KEY_REQ, sizeof(mpa->key));
  763. mpa->flags = (crc_enabled ? MPA_CRC : 0) |
  764. (markers_enabled ? MPA_MARKERS : 0) |
  765. (mpa_rev_to_use == 2 ? MPA_ENHANCED_RDMA_CONN : 0);
  766. mpa->private_data_size = htons(ep->plen);
  767. mpa->revision = mpa_rev_to_use;
  768. if (mpa_rev_to_use == 1) {
  769. ep->tried_with_mpa_v1 = 1;
  770. ep->retry_with_mpa_v1 = 0;
  771. }
  772. if (mpa_rev_to_use == 2) {
  773. mpa->private_data_size = htons(ntohs(mpa->private_data_size) +
  774. sizeof (struct mpa_v2_conn_params));
  775. PDBG("%s initiator ird %u ord %u\n", __func__, ep->ird,
  776. ep->ord);
  777. mpa_v2_params.ird = htons((u16)ep->ird);
  778. mpa_v2_params.ord = htons((u16)ep->ord);
  779. if (peer2peer) {
  780. mpa_v2_params.ird |= htons(MPA_V2_PEER2PEER_MODEL);
  781. if (p2p_type == FW_RI_INIT_P2PTYPE_RDMA_WRITE)
  782. mpa_v2_params.ord |=
  783. htons(MPA_V2_RDMA_WRITE_RTR);
  784. else if (p2p_type == FW_RI_INIT_P2PTYPE_READ_REQ)
  785. mpa_v2_params.ord |=
  786. htons(MPA_V2_RDMA_READ_RTR);
  787. }
  788. memcpy(mpa->private_data, &mpa_v2_params,
  789. sizeof(struct mpa_v2_conn_params));
  790. if (ep->plen)
  791. memcpy(mpa->private_data +
  792. sizeof(struct mpa_v2_conn_params),
  793. ep->mpa_pkt + sizeof(*mpa), ep->plen);
  794. } else
  795. if (ep->plen)
  796. memcpy(mpa->private_data,
  797. ep->mpa_pkt + sizeof(*mpa), ep->plen);
  798. /*
  799. * Reference the mpa skb. This ensures the data area
  800. * will remain in memory until the hw acks the tx.
  801. * Function fw4_ack() will deref it.
  802. */
  803. skb_get(skb);
  804. t4_set_arp_err_handler(skb, NULL, arp_failure_discard);
  805. BUG_ON(ep->mpa_skb);
  806. ep->mpa_skb = skb;
  807. c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  808. start_ep_timer(ep);
  809. __state_set(&ep->com, MPA_REQ_SENT);
  810. ep->mpa_attr.initiator = 1;
  811. ep->snd_seq += mpalen;
  812. return;
  813. }
  814. static int send_mpa_reject(struct c4iw_ep *ep, const void *pdata, u8 plen)
  815. {
  816. int mpalen, wrlen;
  817. struct fw_ofld_tx_data_wr *req;
  818. struct mpa_message *mpa;
  819. struct sk_buff *skb;
  820. struct mpa_v2_conn_params mpa_v2_params;
  821. PDBG("%s ep %p tid %u pd_len %d\n", __func__, ep, ep->hwtid, ep->plen);
  822. mpalen = sizeof(*mpa) + plen;
  823. if (ep->mpa_attr.version == 2 && ep->mpa_attr.enhanced_rdma_conn)
  824. mpalen += sizeof(struct mpa_v2_conn_params);
  825. wrlen = roundup(mpalen + sizeof *req, 16);
  826. skb = get_skb(NULL, wrlen, GFP_KERNEL);
  827. if (!skb) {
  828. printk(KERN_ERR MOD "%s - cannot alloc skb!\n", __func__);
  829. return -ENOMEM;
  830. }
  831. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  832. req = (struct fw_ofld_tx_data_wr *)skb_put(skb, wrlen);
  833. memset(req, 0, wrlen);
  834. req->op_to_immdlen = cpu_to_be32(
  835. FW_WR_OP_V(FW_OFLD_TX_DATA_WR) |
  836. FW_WR_COMPL_F |
  837. FW_WR_IMMDLEN_V(mpalen));
  838. req->flowid_len16 = cpu_to_be32(
  839. FW_WR_FLOWID_V(ep->hwtid) |
  840. FW_WR_LEN16_V(wrlen >> 4));
  841. req->plen = cpu_to_be32(mpalen);
  842. req->tunnel_to_proxy = cpu_to_be32(
  843. FW_OFLD_TX_DATA_WR_FLUSH_F |
  844. FW_OFLD_TX_DATA_WR_SHOVE_F);
  845. mpa = (struct mpa_message *)(req + 1);
  846. memset(mpa, 0, sizeof(*mpa));
  847. memcpy(mpa->key, MPA_KEY_REP, sizeof(mpa->key));
  848. mpa->flags = MPA_REJECT;
  849. mpa->revision = ep->mpa_attr.version;
  850. mpa->private_data_size = htons(plen);
  851. if (ep->mpa_attr.version == 2 && ep->mpa_attr.enhanced_rdma_conn) {
  852. mpa->flags |= MPA_ENHANCED_RDMA_CONN;
  853. mpa->private_data_size = htons(ntohs(mpa->private_data_size) +
  854. sizeof (struct mpa_v2_conn_params));
  855. mpa_v2_params.ird = htons(((u16)ep->ird) |
  856. (peer2peer ? MPA_V2_PEER2PEER_MODEL :
  857. 0));
  858. mpa_v2_params.ord = htons(((u16)ep->ord) | (peer2peer ?
  859. (p2p_type ==
  860. FW_RI_INIT_P2PTYPE_RDMA_WRITE ?
  861. MPA_V2_RDMA_WRITE_RTR : p2p_type ==
  862. FW_RI_INIT_P2PTYPE_READ_REQ ?
  863. MPA_V2_RDMA_READ_RTR : 0) : 0));
  864. memcpy(mpa->private_data, &mpa_v2_params,
  865. sizeof(struct mpa_v2_conn_params));
  866. if (ep->plen)
  867. memcpy(mpa->private_data +
  868. sizeof(struct mpa_v2_conn_params), pdata, plen);
  869. } else
  870. if (plen)
  871. memcpy(mpa->private_data, pdata, plen);
  872. /*
  873. * Reference the mpa skb again. This ensures the data area
  874. * will remain in memory until the hw acks the tx.
  875. * Function fw4_ack() will deref it.
  876. */
  877. skb_get(skb);
  878. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  879. t4_set_arp_err_handler(skb, NULL, arp_failure_discard);
  880. BUG_ON(ep->mpa_skb);
  881. ep->mpa_skb = skb;
  882. ep->snd_seq += mpalen;
  883. return c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  884. }
  885. static int send_mpa_reply(struct c4iw_ep *ep, const void *pdata, u8 plen)
  886. {
  887. int mpalen, wrlen;
  888. struct fw_ofld_tx_data_wr *req;
  889. struct mpa_message *mpa;
  890. struct sk_buff *skb;
  891. struct mpa_v2_conn_params mpa_v2_params;
  892. PDBG("%s ep %p tid %u pd_len %d\n", __func__, ep, ep->hwtid, ep->plen);
  893. mpalen = sizeof(*mpa) + plen;
  894. if (ep->mpa_attr.version == 2 && ep->mpa_attr.enhanced_rdma_conn)
  895. mpalen += sizeof(struct mpa_v2_conn_params);
  896. wrlen = roundup(mpalen + sizeof *req, 16);
  897. skb = get_skb(NULL, wrlen, GFP_KERNEL);
  898. if (!skb) {
  899. printk(KERN_ERR MOD "%s - cannot alloc skb!\n", __func__);
  900. return -ENOMEM;
  901. }
  902. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  903. req = (struct fw_ofld_tx_data_wr *) skb_put(skb, wrlen);
  904. memset(req, 0, wrlen);
  905. req->op_to_immdlen = cpu_to_be32(
  906. FW_WR_OP_V(FW_OFLD_TX_DATA_WR) |
  907. FW_WR_COMPL_F |
  908. FW_WR_IMMDLEN_V(mpalen));
  909. req->flowid_len16 = cpu_to_be32(
  910. FW_WR_FLOWID_V(ep->hwtid) |
  911. FW_WR_LEN16_V(wrlen >> 4));
  912. req->plen = cpu_to_be32(mpalen);
  913. req->tunnel_to_proxy = cpu_to_be32(
  914. FW_OFLD_TX_DATA_WR_FLUSH_F |
  915. FW_OFLD_TX_DATA_WR_SHOVE_F);
  916. mpa = (struct mpa_message *)(req + 1);
  917. memset(mpa, 0, sizeof(*mpa));
  918. memcpy(mpa->key, MPA_KEY_REP, sizeof(mpa->key));
  919. mpa->flags = (ep->mpa_attr.crc_enabled ? MPA_CRC : 0) |
  920. (markers_enabled ? MPA_MARKERS : 0);
  921. mpa->revision = ep->mpa_attr.version;
  922. mpa->private_data_size = htons(plen);
  923. if (ep->mpa_attr.version == 2 && ep->mpa_attr.enhanced_rdma_conn) {
  924. mpa->flags |= MPA_ENHANCED_RDMA_CONN;
  925. mpa->private_data_size = htons(ntohs(mpa->private_data_size) +
  926. sizeof (struct mpa_v2_conn_params));
  927. mpa_v2_params.ird = htons((u16)ep->ird);
  928. mpa_v2_params.ord = htons((u16)ep->ord);
  929. if (peer2peer && (ep->mpa_attr.p2p_type !=
  930. FW_RI_INIT_P2PTYPE_DISABLED)) {
  931. mpa_v2_params.ird |= htons(MPA_V2_PEER2PEER_MODEL);
  932. if (p2p_type == FW_RI_INIT_P2PTYPE_RDMA_WRITE)
  933. mpa_v2_params.ord |=
  934. htons(MPA_V2_RDMA_WRITE_RTR);
  935. else if (p2p_type == FW_RI_INIT_P2PTYPE_READ_REQ)
  936. mpa_v2_params.ord |=
  937. htons(MPA_V2_RDMA_READ_RTR);
  938. }
  939. memcpy(mpa->private_data, &mpa_v2_params,
  940. sizeof(struct mpa_v2_conn_params));
  941. if (ep->plen)
  942. memcpy(mpa->private_data +
  943. sizeof(struct mpa_v2_conn_params), pdata, plen);
  944. } else
  945. if (plen)
  946. memcpy(mpa->private_data, pdata, plen);
  947. /*
  948. * Reference the mpa skb. This ensures the data area
  949. * will remain in memory until the hw acks the tx.
  950. * Function fw4_ack() will deref it.
  951. */
  952. skb_get(skb);
  953. t4_set_arp_err_handler(skb, NULL, arp_failure_discard);
  954. ep->mpa_skb = skb;
  955. __state_set(&ep->com, MPA_REP_SENT);
  956. ep->snd_seq += mpalen;
  957. return c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  958. }
  959. static int act_establish(struct c4iw_dev *dev, struct sk_buff *skb)
  960. {
  961. struct c4iw_ep *ep;
  962. struct cpl_act_establish *req = cplhdr(skb);
  963. unsigned int tid = GET_TID(req);
  964. unsigned int atid = TID_TID_G(ntohl(req->tos_atid));
  965. struct tid_info *t = dev->rdev.lldi.tids;
  966. ep = lookup_atid(t, atid);
  967. PDBG("%s ep %p tid %u snd_isn %u rcv_isn %u\n", __func__, ep, tid,
  968. be32_to_cpu(req->snd_isn), be32_to_cpu(req->rcv_isn));
  969. mutex_lock(&ep->com.mutex);
  970. dst_confirm(ep->dst);
  971. /* setup the hwtid for this connection */
  972. ep->hwtid = tid;
  973. cxgb4_insert_tid(t, ep, tid);
  974. insert_handle(dev, &dev->hwtid_idr, ep, ep->hwtid);
  975. ep->snd_seq = be32_to_cpu(req->snd_isn);
  976. ep->rcv_seq = be32_to_cpu(req->rcv_isn);
  977. set_emss(ep, ntohs(req->tcp_opt));
  978. /* dealloc the atid */
  979. remove_handle(ep->com.dev, &ep->com.dev->atid_idr, atid);
  980. cxgb4_free_atid(t, atid);
  981. set_bit(ACT_ESTAB, &ep->com.history);
  982. /* start MPA negotiation */
  983. send_flowc(ep, NULL);
  984. if (ep->retry_with_mpa_v1)
  985. send_mpa_req(ep, skb, 1);
  986. else
  987. send_mpa_req(ep, skb, mpa_rev);
  988. mutex_unlock(&ep->com.mutex);
  989. return 0;
  990. }
  991. static void close_complete_upcall(struct c4iw_ep *ep, int status)
  992. {
  993. struct iw_cm_event event;
  994. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  995. memset(&event, 0, sizeof(event));
  996. event.event = IW_CM_EVENT_CLOSE;
  997. event.status = status;
  998. if (ep->com.cm_id) {
  999. PDBG("close complete delivered ep %p cm_id %p tid %u\n",
  1000. ep, ep->com.cm_id, ep->hwtid);
  1001. ep->com.cm_id->event_handler(ep->com.cm_id, &event);
  1002. ep->com.cm_id->rem_ref(ep->com.cm_id);
  1003. ep->com.cm_id = NULL;
  1004. set_bit(CLOSE_UPCALL, &ep->com.history);
  1005. }
  1006. }
  1007. static int abort_connection(struct c4iw_ep *ep, struct sk_buff *skb, gfp_t gfp)
  1008. {
  1009. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1010. __state_set(&ep->com, ABORTING);
  1011. set_bit(ABORT_CONN, &ep->com.history);
  1012. return send_abort(ep, skb, gfp);
  1013. }
  1014. static void peer_close_upcall(struct c4iw_ep *ep)
  1015. {
  1016. struct iw_cm_event event;
  1017. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1018. memset(&event, 0, sizeof(event));
  1019. event.event = IW_CM_EVENT_DISCONNECT;
  1020. if (ep->com.cm_id) {
  1021. PDBG("peer close delivered ep %p cm_id %p tid %u\n",
  1022. ep, ep->com.cm_id, ep->hwtid);
  1023. ep->com.cm_id->event_handler(ep->com.cm_id, &event);
  1024. set_bit(DISCONN_UPCALL, &ep->com.history);
  1025. }
  1026. }
  1027. static void peer_abort_upcall(struct c4iw_ep *ep)
  1028. {
  1029. struct iw_cm_event event;
  1030. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1031. memset(&event, 0, sizeof(event));
  1032. event.event = IW_CM_EVENT_CLOSE;
  1033. event.status = -ECONNRESET;
  1034. if (ep->com.cm_id) {
  1035. PDBG("abort delivered ep %p cm_id %p tid %u\n", ep,
  1036. ep->com.cm_id, ep->hwtid);
  1037. ep->com.cm_id->event_handler(ep->com.cm_id, &event);
  1038. ep->com.cm_id->rem_ref(ep->com.cm_id);
  1039. ep->com.cm_id = NULL;
  1040. set_bit(ABORT_UPCALL, &ep->com.history);
  1041. }
  1042. }
  1043. static void connect_reply_upcall(struct c4iw_ep *ep, int status)
  1044. {
  1045. struct iw_cm_event event;
  1046. PDBG("%s ep %p tid %u status %d\n", __func__, ep, ep->hwtid, status);
  1047. memset(&event, 0, sizeof(event));
  1048. event.event = IW_CM_EVENT_CONNECT_REPLY;
  1049. event.status = status;
  1050. memcpy(&event.local_addr, &ep->com.local_addr,
  1051. sizeof(ep->com.local_addr));
  1052. memcpy(&event.remote_addr, &ep->com.remote_addr,
  1053. sizeof(ep->com.remote_addr));
  1054. if ((status == 0) || (status == -ECONNREFUSED)) {
  1055. if (!ep->tried_with_mpa_v1) {
  1056. /* this means MPA_v2 is used */
  1057. event.private_data_len = ep->plen -
  1058. sizeof(struct mpa_v2_conn_params);
  1059. event.private_data = ep->mpa_pkt +
  1060. sizeof(struct mpa_message) +
  1061. sizeof(struct mpa_v2_conn_params);
  1062. } else {
  1063. /* this means MPA_v1 is used */
  1064. event.private_data_len = ep->plen;
  1065. event.private_data = ep->mpa_pkt +
  1066. sizeof(struct mpa_message);
  1067. }
  1068. }
  1069. PDBG("%s ep %p tid %u status %d\n", __func__, ep,
  1070. ep->hwtid, status);
  1071. set_bit(CONN_RPL_UPCALL, &ep->com.history);
  1072. ep->com.cm_id->event_handler(ep->com.cm_id, &event);
  1073. if (status < 0) {
  1074. ep->com.cm_id->rem_ref(ep->com.cm_id);
  1075. ep->com.cm_id = NULL;
  1076. }
  1077. }
  1078. static int connect_request_upcall(struct c4iw_ep *ep)
  1079. {
  1080. struct iw_cm_event event;
  1081. int ret;
  1082. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1083. memset(&event, 0, sizeof(event));
  1084. event.event = IW_CM_EVENT_CONNECT_REQUEST;
  1085. memcpy(&event.local_addr, &ep->com.local_addr,
  1086. sizeof(ep->com.local_addr));
  1087. memcpy(&event.remote_addr, &ep->com.remote_addr,
  1088. sizeof(ep->com.remote_addr));
  1089. event.provider_data = ep;
  1090. if (!ep->tried_with_mpa_v1) {
  1091. /* this means MPA_v2 is used */
  1092. event.ord = ep->ord;
  1093. event.ird = ep->ird;
  1094. event.private_data_len = ep->plen -
  1095. sizeof(struct mpa_v2_conn_params);
  1096. event.private_data = ep->mpa_pkt + sizeof(struct mpa_message) +
  1097. sizeof(struct mpa_v2_conn_params);
  1098. } else {
  1099. /* this means MPA_v1 is used. Send max supported */
  1100. event.ord = cur_max_read_depth(ep->com.dev);
  1101. event.ird = cur_max_read_depth(ep->com.dev);
  1102. event.private_data_len = ep->plen;
  1103. event.private_data = ep->mpa_pkt + sizeof(struct mpa_message);
  1104. }
  1105. c4iw_get_ep(&ep->com);
  1106. ret = ep->parent_ep->com.cm_id->event_handler(ep->parent_ep->com.cm_id,
  1107. &event);
  1108. if (ret)
  1109. c4iw_put_ep(&ep->com);
  1110. set_bit(CONNREQ_UPCALL, &ep->com.history);
  1111. c4iw_put_ep(&ep->parent_ep->com);
  1112. return ret;
  1113. }
  1114. static void established_upcall(struct c4iw_ep *ep)
  1115. {
  1116. struct iw_cm_event event;
  1117. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1118. memset(&event, 0, sizeof(event));
  1119. event.event = IW_CM_EVENT_ESTABLISHED;
  1120. event.ird = ep->ird;
  1121. event.ord = ep->ord;
  1122. if (ep->com.cm_id) {
  1123. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1124. ep->com.cm_id->event_handler(ep->com.cm_id, &event);
  1125. set_bit(ESTAB_UPCALL, &ep->com.history);
  1126. }
  1127. }
  1128. static int update_rx_credits(struct c4iw_ep *ep, u32 credits)
  1129. {
  1130. struct cpl_rx_data_ack *req;
  1131. struct sk_buff *skb;
  1132. int wrlen = roundup(sizeof *req, 16);
  1133. PDBG("%s ep %p tid %u credits %u\n", __func__, ep, ep->hwtid, credits);
  1134. skb = get_skb(NULL, wrlen, GFP_KERNEL);
  1135. if (!skb) {
  1136. printk(KERN_ERR MOD "update_rx_credits - cannot alloc skb!\n");
  1137. return 0;
  1138. }
  1139. /*
  1140. * If we couldn't specify the entire rcv window at connection setup
  1141. * due to the limit in the number of bits in the RCV_BUFSIZ field,
  1142. * then add the overage in to the credits returned.
  1143. */
  1144. if (ep->rcv_win > RCV_BUFSIZ_M * 1024)
  1145. credits += ep->rcv_win - RCV_BUFSIZ_M * 1024;
  1146. req = (struct cpl_rx_data_ack *) skb_put(skb, wrlen);
  1147. memset(req, 0, wrlen);
  1148. INIT_TP_WR(req, ep->hwtid);
  1149. OPCODE_TID(req) = cpu_to_be32(MK_OPCODE_TID(CPL_RX_DATA_ACK,
  1150. ep->hwtid));
  1151. req->credit_dack = cpu_to_be32(credits | RX_FORCE_ACK_F |
  1152. RX_DACK_CHANGE_F |
  1153. RX_DACK_MODE_V(dack_mode));
  1154. set_wr_txq(skb, CPL_PRIORITY_ACK, ep->ctrlq_idx);
  1155. c4iw_ofld_send(&ep->com.dev->rdev, skb);
  1156. return credits;
  1157. }
  1158. #define RELAXED_IRD_NEGOTIATION 1
  1159. static int process_mpa_reply(struct c4iw_ep *ep, struct sk_buff *skb)
  1160. {
  1161. struct mpa_message *mpa;
  1162. struct mpa_v2_conn_params *mpa_v2_params;
  1163. u16 plen;
  1164. u16 resp_ird, resp_ord;
  1165. u8 rtr_mismatch = 0, insuff_ird = 0;
  1166. struct c4iw_qp_attributes attrs;
  1167. enum c4iw_qp_attr_mask mask;
  1168. int err;
  1169. int disconnect = 0;
  1170. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1171. /*
  1172. * Stop mpa timer. If it expired, then
  1173. * we ignore the MPA reply. process_timeout()
  1174. * will abort the connection.
  1175. */
  1176. if (stop_ep_timer(ep))
  1177. return 0;
  1178. /*
  1179. * If we get more than the supported amount of private data
  1180. * then we must fail this connection.
  1181. */
  1182. if (ep->mpa_pkt_len + skb->len > sizeof(ep->mpa_pkt)) {
  1183. err = -EINVAL;
  1184. goto err;
  1185. }
  1186. /*
  1187. * copy the new data into our accumulation buffer.
  1188. */
  1189. skb_copy_from_linear_data(skb, &(ep->mpa_pkt[ep->mpa_pkt_len]),
  1190. skb->len);
  1191. ep->mpa_pkt_len += skb->len;
  1192. /*
  1193. * if we don't even have the mpa message, then bail.
  1194. */
  1195. if (ep->mpa_pkt_len < sizeof(*mpa))
  1196. return 0;
  1197. mpa = (struct mpa_message *) ep->mpa_pkt;
  1198. /* Validate MPA header. */
  1199. if (mpa->revision > mpa_rev) {
  1200. printk(KERN_ERR MOD "%s MPA version mismatch. Local = %d,"
  1201. " Received = %d\n", __func__, mpa_rev, mpa->revision);
  1202. err = -EPROTO;
  1203. goto err;
  1204. }
  1205. if (memcmp(mpa->key, MPA_KEY_REP, sizeof(mpa->key))) {
  1206. err = -EPROTO;
  1207. goto err;
  1208. }
  1209. plen = ntohs(mpa->private_data_size);
  1210. /*
  1211. * Fail if there's too much private data.
  1212. */
  1213. if (plen > MPA_MAX_PRIVATE_DATA) {
  1214. err = -EPROTO;
  1215. goto err;
  1216. }
  1217. /*
  1218. * If plen does not account for pkt size
  1219. */
  1220. if (ep->mpa_pkt_len > (sizeof(*mpa) + plen)) {
  1221. err = -EPROTO;
  1222. goto err;
  1223. }
  1224. ep->plen = (u8) plen;
  1225. /*
  1226. * If we don't have all the pdata yet, then bail.
  1227. * We'll continue process when more data arrives.
  1228. */
  1229. if (ep->mpa_pkt_len < (sizeof(*mpa) + plen))
  1230. return 0;
  1231. if (mpa->flags & MPA_REJECT) {
  1232. err = -ECONNREFUSED;
  1233. goto err;
  1234. }
  1235. /*
  1236. * If we get here we have accumulated the entire mpa
  1237. * start reply message including private data. And
  1238. * the MPA header is valid.
  1239. */
  1240. __state_set(&ep->com, FPDU_MODE);
  1241. ep->mpa_attr.crc_enabled = (mpa->flags & MPA_CRC) | crc_enabled ? 1 : 0;
  1242. ep->mpa_attr.recv_marker_enabled = markers_enabled;
  1243. ep->mpa_attr.xmit_marker_enabled = mpa->flags & MPA_MARKERS ? 1 : 0;
  1244. ep->mpa_attr.version = mpa->revision;
  1245. ep->mpa_attr.p2p_type = FW_RI_INIT_P2PTYPE_DISABLED;
  1246. if (mpa->revision == 2) {
  1247. ep->mpa_attr.enhanced_rdma_conn =
  1248. mpa->flags & MPA_ENHANCED_RDMA_CONN ? 1 : 0;
  1249. if (ep->mpa_attr.enhanced_rdma_conn) {
  1250. mpa_v2_params = (struct mpa_v2_conn_params *)
  1251. (ep->mpa_pkt + sizeof(*mpa));
  1252. resp_ird = ntohs(mpa_v2_params->ird) &
  1253. MPA_V2_IRD_ORD_MASK;
  1254. resp_ord = ntohs(mpa_v2_params->ord) &
  1255. MPA_V2_IRD_ORD_MASK;
  1256. PDBG("%s responder ird %u ord %u ep ird %u ord %u\n",
  1257. __func__, resp_ird, resp_ord, ep->ird, ep->ord);
  1258. /*
  1259. * This is a double-check. Ideally, below checks are
  1260. * not required since ird/ord stuff has been taken
  1261. * care of in c4iw_accept_cr
  1262. */
  1263. if (ep->ird < resp_ord) {
  1264. if (RELAXED_IRD_NEGOTIATION && resp_ord <=
  1265. ep->com.dev->rdev.lldi.max_ordird_qp)
  1266. ep->ird = resp_ord;
  1267. else
  1268. insuff_ird = 1;
  1269. } else if (ep->ird > resp_ord) {
  1270. ep->ird = resp_ord;
  1271. }
  1272. if (ep->ord > resp_ird) {
  1273. if (RELAXED_IRD_NEGOTIATION)
  1274. ep->ord = resp_ird;
  1275. else
  1276. insuff_ird = 1;
  1277. }
  1278. if (insuff_ird) {
  1279. err = -ENOMEM;
  1280. ep->ird = resp_ord;
  1281. ep->ord = resp_ird;
  1282. }
  1283. if (ntohs(mpa_v2_params->ird) &
  1284. MPA_V2_PEER2PEER_MODEL) {
  1285. if (ntohs(mpa_v2_params->ord) &
  1286. MPA_V2_RDMA_WRITE_RTR)
  1287. ep->mpa_attr.p2p_type =
  1288. FW_RI_INIT_P2PTYPE_RDMA_WRITE;
  1289. else if (ntohs(mpa_v2_params->ord) &
  1290. MPA_V2_RDMA_READ_RTR)
  1291. ep->mpa_attr.p2p_type =
  1292. FW_RI_INIT_P2PTYPE_READ_REQ;
  1293. }
  1294. }
  1295. } else if (mpa->revision == 1)
  1296. if (peer2peer)
  1297. ep->mpa_attr.p2p_type = p2p_type;
  1298. PDBG("%s - crc_enabled=%d, recv_marker_enabled=%d, "
  1299. "xmit_marker_enabled=%d, version=%d p2p_type=%d local-p2p_type = "
  1300. "%d\n", __func__, ep->mpa_attr.crc_enabled,
  1301. ep->mpa_attr.recv_marker_enabled,
  1302. ep->mpa_attr.xmit_marker_enabled, ep->mpa_attr.version,
  1303. ep->mpa_attr.p2p_type, p2p_type);
  1304. /*
  1305. * If responder's RTR does not match with that of initiator, assign
  1306. * FW_RI_INIT_P2PTYPE_DISABLED in mpa attributes so that RTR is not
  1307. * generated when moving QP to RTS state.
  1308. * A TERM message will be sent after QP has moved to RTS state
  1309. */
  1310. if ((ep->mpa_attr.version == 2) && peer2peer &&
  1311. (ep->mpa_attr.p2p_type != p2p_type)) {
  1312. ep->mpa_attr.p2p_type = FW_RI_INIT_P2PTYPE_DISABLED;
  1313. rtr_mismatch = 1;
  1314. }
  1315. attrs.mpa_attr = ep->mpa_attr;
  1316. attrs.max_ird = ep->ird;
  1317. attrs.max_ord = ep->ord;
  1318. attrs.llp_stream_handle = ep;
  1319. attrs.next_state = C4IW_QP_STATE_RTS;
  1320. mask = C4IW_QP_ATTR_NEXT_STATE |
  1321. C4IW_QP_ATTR_LLP_STREAM_HANDLE | C4IW_QP_ATTR_MPA_ATTR |
  1322. C4IW_QP_ATTR_MAX_IRD | C4IW_QP_ATTR_MAX_ORD;
  1323. /* bind QP and TID with INIT_WR */
  1324. err = c4iw_modify_qp(ep->com.qp->rhp,
  1325. ep->com.qp, mask, &attrs, 1);
  1326. if (err)
  1327. goto err;
  1328. /*
  1329. * If responder's RTR requirement did not match with what initiator
  1330. * supports, generate TERM message
  1331. */
  1332. if (rtr_mismatch) {
  1333. printk(KERN_ERR "%s: RTR mismatch, sending TERM\n", __func__);
  1334. attrs.layer_etype = LAYER_MPA | DDP_LLP;
  1335. attrs.ecode = MPA_NOMATCH_RTR;
  1336. attrs.next_state = C4IW_QP_STATE_TERMINATE;
  1337. attrs.send_term = 1;
  1338. err = c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  1339. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  1340. err = -ENOMEM;
  1341. disconnect = 1;
  1342. goto out;
  1343. }
  1344. /*
  1345. * Generate TERM if initiator IRD is not sufficient for responder
  1346. * provided ORD. Currently, we do the same behaviour even when
  1347. * responder provided IRD is also not sufficient as regards to
  1348. * initiator ORD.
  1349. */
  1350. if (insuff_ird) {
  1351. printk(KERN_ERR "%s: Insufficient IRD, sending TERM\n",
  1352. __func__);
  1353. attrs.layer_etype = LAYER_MPA | DDP_LLP;
  1354. attrs.ecode = MPA_INSUFF_IRD;
  1355. attrs.next_state = C4IW_QP_STATE_TERMINATE;
  1356. attrs.send_term = 1;
  1357. err = c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  1358. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  1359. err = -ENOMEM;
  1360. disconnect = 1;
  1361. goto out;
  1362. }
  1363. goto out;
  1364. err:
  1365. __state_set(&ep->com, ABORTING);
  1366. send_abort(ep, skb, GFP_KERNEL);
  1367. out:
  1368. connect_reply_upcall(ep, err);
  1369. return disconnect;
  1370. }
  1371. static void process_mpa_request(struct c4iw_ep *ep, struct sk_buff *skb)
  1372. {
  1373. struct mpa_message *mpa;
  1374. struct mpa_v2_conn_params *mpa_v2_params;
  1375. u16 plen;
  1376. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1377. /*
  1378. * If we get more than the supported amount of private data
  1379. * then we must fail this connection.
  1380. */
  1381. if (ep->mpa_pkt_len + skb->len > sizeof(ep->mpa_pkt)) {
  1382. (void)stop_ep_timer(ep);
  1383. abort_connection(ep, skb, GFP_KERNEL);
  1384. return;
  1385. }
  1386. PDBG("%s enter (%s line %u)\n", __func__, __FILE__, __LINE__);
  1387. /*
  1388. * Copy the new data into our accumulation buffer.
  1389. */
  1390. skb_copy_from_linear_data(skb, &(ep->mpa_pkt[ep->mpa_pkt_len]),
  1391. skb->len);
  1392. ep->mpa_pkt_len += skb->len;
  1393. /*
  1394. * If we don't even have the mpa message, then bail.
  1395. * We'll continue process when more data arrives.
  1396. */
  1397. if (ep->mpa_pkt_len < sizeof(*mpa))
  1398. return;
  1399. PDBG("%s enter (%s line %u)\n", __func__, __FILE__, __LINE__);
  1400. mpa = (struct mpa_message *) ep->mpa_pkt;
  1401. /*
  1402. * Validate MPA Header.
  1403. */
  1404. if (mpa->revision > mpa_rev) {
  1405. printk(KERN_ERR MOD "%s MPA version mismatch. Local = %d,"
  1406. " Received = %d\n", __func__, mpa_rev, mpa->revision);
  1407. (void)stop_ep_timer(ep);
  1408. abort_connection(ep, skb, GFP_KERNEL);
  1409. return;
  1410. }
  1411. if (memcmp(mpa->key, MPA_KEY_REQ, sizeof(mpa->key))) {
  1412. (void)stop_ep_timer(ep);
  1413. abort_connection(ep, skb, GFP_KERNEL);
  1414. return;
  1415. }
  1416. plen = ntohs(mpa->private_data_size);
  1417. /*
  1418. * Fail if there's too much private data.
  1419. */
  1420. if (plen > MPA_MAX_PRIVATE_DATA) {
  1421. (void)stop_ep_timer(ep);
  1422. abort_connection(ep, skb, GFP_KERNEL);
  1423. return;
  1424. }
  1425. /*
  1426. * If plen does not account for pkt size
  1427. */
  1428. if (ep->mpa_pkt_len > (sizeof(*mpa) + plen)) {
  1429. (void)stop_ep_timer(ep);
  1430. abort_connection(ep, skb, GFP_KERNEL);
  1431. return;
  1432. }
  1433. ep->plen = (u8) plen;
  1434. /*
  1435. * If we don't have all the pdata yet, then bail.
  1436. */
  1437. if (ep->mpa_pkt_len < (sizeof(*mpa) + plen))
  1438. return;
  1439. /*
  1440. * If we get here we have accumulated the entire mpa
  1441. * start reply message including private data.
  1442. */
  1443. ep->mpa_attr.initiator = 0;
  1444. ep->mpa_attr.crc_enabled = (mpa->flags & MPA_CRC) | crc_enabled ? 1 : 0;
  1445. ep->mpa_attr.recv_marker_enabled = markers_enabled;
  1446. ep->mpa_attr.xmit_marker_enabled = mpa->flags & MPA_MARKERS ? 1 : 0;
  1447. ep->mpa_attr.version = mpa->revision;
  1448. if (mpa->revision == 1)
  1449. ep->tried_with_mpa_v1 = 1;
  1450. ep->mpa_attr.p2p_type = FW_RI_INIT_P2PTYPE_DISABLED;
  1451. if (mpa->revision == 2) {
  1452. ep->mpa_attr.enhanced_rdma_conn =
  1453. mpa->flags & MPA_ENHANCED_RDMA_CONN ? 1 : 0;
  1454. if (ep->mpa_attr.enhanced_rdma_conn) {
  1455. mpa_v2_params = (struct mpa_v2_conn_params *)
  1456. (ep->mpa_pkt + sizeof(*mpa));
  1457. ep->ird = ntohs(mpa_v2_params->ird) &
  1458. MPA_V2_IRD_ORD_MASK;
  1459. ep->ord = ntohs(mpa_v2_params->ord) &
  1460. MPA_V2_IRD_ORD_MASK;
  1461. PDBG("%s initiator ird %u ord %u\n", __func__, ep->ird,
  1462. ep->ord);
  1463. if (ntohs(mpa_v2_params->ird) & MPA_V2_PEER2PEER_MODEL)
  1464. if (peer2peer) {
  1465. if (ntohs(mpa_v2_params->ord) &
  1466. MPA_V2_RDMA_WRITE_RTR)
  1467. ep->mpa_attr.p2p_type =
  1468. FW_RI_INIT_P2PTYPE_RDMA_WRITE;
  1469. else if (ntohs(mpa_v2_params->ord) &
  1470. MPA_V2_RDMA_READ_RTR)
  1471. ep->mpa_attr.p2p_type =
  1472. FW_RI_INIT_P2PTYPE_READ_REQ;
  1473. }
  1474. }
  1475. } else if (mpa->revision == 1)
  1476. if (peer2peer)
  1477. ep->mpa_attr.p2p_type = p2p_type;
  1478. PDBG("%s - crc_enabled=%d, recv_marker_enabled=%d, "
  1479. "xmit_marker_enabled=%d, version=%d p2p_type=%d\n", __func__,
  1480. ep->mpa_attr.crc_enabled, ep->mpa_attr.recv_marker_enabled,
  1481. ep->mpa_attr.xmit_marker_enabled, ep->mpa_attr.version,
  1482. ep->mpa_attr.p2p_type);
  1483. /*
  1484. * If the endpoint timer already expired, then we ignore
  1485. * the start request. process_timeout() will abort
  1486. * the connection.
  1487. */
  1488. if (!stop_ep_timer(ep)) {
  1489. __state_set(&ep->com, MPA_REQ_RCVD);
  1490. /* drive upcall */
  1491. mutex_lock_nested(&ep->parent_ep->com.mutex,
  1492. SINGLE_DEPTH_NESTING);
  1493. if (ep->parent_ep->com.state != DEAD) {
  1494. if (connect_request_upcall(ep))
  1495. abort_connection(ep, skb, GFP_KERNEL);
  1496. } else {
  1497. abort_connection(ep, skb, GFP_KERNEL);
  1498. }
  1499. mutex_unlock(&ep->parent_ep->com.mutex);
  1500. }
  1501. return;
  1502. }
  1503. static int rx_data(struct c4iw_dev *dev, struct sk_buff *skb)
  1504. {
  1505. struct c4iw_ep *ep;
  1506. struct cpl_rx_data *hdr = cplhdr(skb);
  1507. unsigned int dlen = ntohs(hdr->len);
  1508. unsigned int tid = GET_TID(hdr);
  1509. struct tid_info *t = dev->rdev.lldi.tids;
  1510. __u8 status = hdr->status;
  1511. int disconnect = 0;
  1512. ep = lookup_tid(t, tid);
  1513. if (!ep)
  1514. return 0;
  1515. PDBG("%s ep %p tid %u dlen %u\n", __func__, ep, ep->hwtid, dlen);
  1516. skb_pull(skb, sizeof(*hdr));
  1517. skb_trim(skb, dlen);
  1518. mutex_lock(&ep->com.mutex);
  1519. /* update RX credits */
  1520. update_rx_credits(ep, dlen);
  1521. switch (ep->com.state) {
  1522. case MPA_REQ_SENT:
  1523. ep->rcv_seq += dlen;
  1524. disconnect = process_mpa_reply(ep, skb);
  1525. break;
  1526. case MPA_REQ_WAIT:
  1527. ep->rcv_seq += dlen;
  1528. process_mpa_request(ep, skb);
  1529. break;
  1530. case FPDU_MODE: {
  1531. struct c4iw_qp_attributes attrs;
  1532. BUG_ON(!ep->com.qp);
  1533. if (status)
  1534. pr_err("%s Unexpected streaming data." \
  1535. " qpid %u ep %p state %d tid %u status %d\n",
  1536. __func__, ep->com.qp->wq.sq.qid, ep,
  1537. ep->com.state, ep->hwtid, status);
  1538. attrs.next_state = C4IW_QP_STATE_TERMINATE;
  1539. c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  1540. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  1541. disconnect = 1;
  1542. break;
  1543. }
  1544. default:
  1545. break;
  1546. }
  1547. mutex_unlock(&ep->com.mutex);
  1548. if (disconnect)
  1549. c4iw_ep_disconnect(ep, 0, GFP_KERNEL);
  1550. return 0;
  1551. }
  1552. static int abort_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  1553. {
  1554. struct c4iw_ep *ep;
  1555. struct cpl_abort_rpl_rss *rpl = cplhdr(skb);
  1556. int release = 0;
  1557. unsigned int tid = GET_TID(rpl);
  1558. struct tid_info *t = dev->rdev.lldi.tids;
  1559. ep = lookup_tid(t, tid);
  1560. if (!ep) {
  1561. printk(KERN_WARNING MOD "Abort rpl to freed endpoint\n");
  1562. return 0;
  1563. }
  1564. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1565. mutex_lock(&ep->com.mutex);
  1566. switch (ep->com.state) {
  1567. case ABORTING:
  1568. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  1569. __state_set(&ep->com, DEAD);
  1570. release = 1;
  1571. break;
  1572. default:
  1573. printk(KERN_ERR "%s ep %p state %d\n",
  1574. __func__, ep, ep->com.state);
  1575. break;
  1576. }
  1577. mutex_unlock(&ep->com.mutex);
  1578. if (release)
  1579. release_ep_resources(ep);
  1580. return 0;
  1581. }
  1582. static void send_fw_act_open_req(struct c4iw_ep *ep, unsigned int atid)
  1583. {
  1584. struct sk_buff *skb;
  1585. struct fw_ofld_connection_wr *req;
  1586. unsigned int mtu_idx;
  1587. int wscale;
  1588. struct sockaddr_in *sin;
  1589. int win;
  1590. skb = get_skb(NULL, sizeof(*req), GFP_KERNEL);
  1591. req = (struct fw_ofld_connection_wr *)__skb_put(skb, sizeof(*req));
  1592. memset(req, 0, sizeof(*req));
  1593. req->op_compl = htonl(WR_OP_V(FW_OFLD_CONNECTION_WR));
  1594. req->len16_pkd = htonl(FW_WR_LEN16_V(DIV_ROUND_UP(sizeof(*req), 16)));
  1595. req->le.filter = cpu_to_be32(cxgb4_select_ntuple(
  1596. ep->com.dev->rdev.lldi.ports[0],
  1597. ep->l2t));
  1598. sin = (struct sockaddr_in *)&ep->com.mapped_local_addr;
  1599. req->le.lport = sin->sin_port;
  1600. req->le.u.ipv4.lip = sin->sin_addr.s_addr;
  1601. sin = (struct sockaddr_in *)&ep->com.mapped_remote_addr;
  1602. req->le.pport = sin->sin_port;
  1603. req->le.u.ipv4.pip = sin->sin_addr.s_addr;
  1604. req->tcb.t_state_to_astid =
  1605. htonl(FW_OFLD_CONNECTION_WR_T_STATE_V(TCP_SYN_SENT) |
  1606. FW_OFLD_CONNECTION_WR_ASTID_V(atid));
  1607. req->tcb.cplrxdataack_cplpassacceptrpl =
  1608. htons(FW_OFLD_CONNECTION_WR_CPLRXDATAACK_F);
  1609. req->tcb.tx_max = (__force __be32) jiffies;
  1610. req->tcb.rcv_adv = htons(1);
  1611. best_mtu(ep->com.dev->rdev.lldi.mtus, ep->mtu, &mtu_idx,
  1612. enable_tcp_timestamps,
  1613. (AF_INET == ep->com.remote_addr.ss_family) ? 0 : 1);
  1614. wscale = compute_wscale(rcv_win);
  1615. /*
  1616. * Specify the largest window that will fit in opt0. The
  1617. * remainder will be specified in the rx_data_ack.
  1618. */
  1619. win = ep->rcv_win >> 10;
  1620. if (win > RCV_BUFSIZ_M)
  1621. win = RCV_BUFSIZ_M;
  1622. req->tcb.opt0 = (__force __be64) (TCAM_BYPASS_F |
  1623. (nocong ? NO_CONG_F : 0) |
  1624. KEEP_ALIVE_F |
  1625. DELACK_F |
  1626. WND_SCALE_V(wscale) |
  1627. MSS_IDX_V(mtu_idx) |
  1628. L2T_IDX_V(ep->l2t->idx) |
  1629. TX_CHAN_V(ep->tx_chan) |
  1630. SMAC_SEL_V(ep->smac_idx) |
  1631. DSCP_V(ep->tos) |
  1632. ULP_MODE_V(ULP_MODE_TCPDDP) |
  1633. RCV_BUFSIZ_V(win));
  1634. req->tcb.opt2 = (__force __be32) (PACE_V(1) |
  1635. TX_QUEUE_V(ep->com.dev->rdev.lldi.tx_modq[ep->tx_chan]) |
  1636. RX_CHANNEL_V(0) |
  1637. CCTRL_ECN_V(enable_ecn) |
  1638. RSS_QUEUE_VALID_F | RSS_QUEUE_V(ep->rss_qid));
  1639. if (enable_tcp_timestamps)
  1640. req->tcb.opt2 |= (__force __be32)TSTAMPS_EN_F;
  1641. if (enable_tcp_sack)
  1642. req->tcb.opt2 |= (__force __be32)SACK_EN_F;
  1643. if (wscale && enable_tcp_window_scaling)
  1644. req->tcb.opt2 |= (__force __be32)WND_SCALE_EN_F;
  1645. req->tcb.opt0 = cpu_to_be64((__force u64)req->tcb.opt0);
  1646. req->tcb.opt2 = cpu_to_be32((__force u32)req->tcb.opt2);
  1647. set_wr_txq(skb, CPL_PRIORITY_CONTROL, ep->ctrlq_idx);
  1648. set_bit(ACT_OFLD_CONN, &ep->com.history);
  1649. c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  1650. }
  1651. /*
  1652. * Return whether a failed active open has allocated a TID
  1653. */
  1654. static inline int act_open_has_tid(int status)
  1655. {
  1656. return status != CPL_ERR_TCAM_FULL && status != CPL_ERR_CONN_EXIST &&
  1657. status != CPL_ERR_ARP_MISS;
  1658. }
  1659. /* Returns whether a CPL status conveys negative advice.
  1660. */
  1661. static int is_neg_adv(unsigned int status)
  1662. {
  1663. return status == CPL_ERR_RTX_NEG_ADVICE ||
  1664. status == CPL_ERR_PERSIST_NEG_ADVICE ||
  1665. status == CPL_ERR_KEEPALV_NEG_ADVICE;
  1666. }
  1667. static char *neg_adv_str(unsigned int status)
  1668. {
  1669. switch (status) {
  1670. case CPL_ERR_RTX_NEG_ADVICE:
  1671. return "Retransmit timeout";
  1672. case CPL_ERR_PERSIST_NEG_ADVICE:
  1673. return "Persist timeout";
  1674. case CPL_ERR_KEEPALV_NEG_ADVICE:
  1675. return "Keepalive timeout";
  1676. default:
  1677. return "Unknown";
  1678. }
  1679. }
  1680. static void set_tcp_window(struct c4iw_ep *ep, struct port_info *pi)
  1681. {
  1682. ep->snd_win = snd_win;
  1683. ep->rcv_win = rcv_win;
  1684. PDBG("%s snd_win %d rcv_win %d\n", __func__, ep->snd_win, ep->rcv_win);
  1685. }
  1686. #define ACT_OPEN_RETRY_COUNT 2
  1687. static int import_ep(struct c4iw_ep *ep, int iptype, __u8 *peer_ip,
  1688. struct dst_entry *dst, struct c4iw_dev *cdev,
  1689. bool clear_mpa_v1)
  1690. {
  1691. struct neighbour *n;
  1692. int err, step;
  1693. struct net_device *pdev;
  1694. n = dst_neigh_lookup(dst, peer_ip);
  1695. if (!n)
  1696. return -ENODEV;
  1697. rcu_read_lock();
  1698. err = -ENOMEM;
  1699. if (n->dev->flags & IFF_LOOPBACK) {
  1700. if (iptype == 4)
  1701. pdev = ip_dev_find(&init_net, *(__be32 *)peer_ip);
  1702. else if (IS_ENABLED(CONFIG_IPV6))
  1703. for_each_netdev(&init_net, pdev) {
  1704. if (ipv6_chk_addr(&init_net,
  1705. (struct in6_addr *)peer_ip,
  1706. pdev, 1))
  1707. break;
  1708. }
  1709. else
  1710. pdev = NULL;
  1711. if (!pdev) {
  1712. err = -ENODEV;
  1713. goto out;
  1714. }
  1715. ep->l2t = cxgb4_l2t_get(cdev->rdev.lldi.l2t,
  1716. n, pdev, 0);
  1717. if (!ep->l2t)
  1718. goto out;
  1719. ep->mtu = pdev->mtu;
  1720. ep->tx_chan = cxgb4_port_chan(pdev);
  1721. ep->smac_idx = (cxgb4_port_viid(pdev) & 0x7F) << 1;
  1722. step = cdev->rdev.lldi.ntxq /
  1723. cdev->rdev.lldi.nchan;
  1724. ep->txq_idx = cxgb4_port_idx(pdev) * step;
  1725. step = cdev->rdev.lldi.nrxq /
  1726. cdev->rdev.lldi.nchan;
  1727. ep->ctrlq_idx = cxgb4_port_idx(pdev);
  1728. ep->rss_qid = cdev->rdev.lldi.rxq_ids[
  1729. cxgb4_port_idx(pdev) * step];
  1730. set_tcp_window(ep, (struct port_info *)netdev_priv(pdev));
  1731. dev_put(pdev);
  1732. } else {
  1733. pdev = get_real_dev(n->dev);
  1734. ep->l2t = cxgb4_l2t_get(cdev->rdev.lldi.l2t,
  1735. n, pdev, 0);
  1736. if (!ep->l2t)
  1737. goto out;
  1738. ep->mtu = dst_mtu(dst);
  1739. ep->tx_chan = cxgb4_port_chan(pdev);
  1740. ep->smac_idx = (cxgb4_port_viid(pdev) & 0x7F) << 1;
  1741. step = cdev->rdev.lldi.ntxq /
  1742. cdev->rdev.lldi.nchan;
  1743. ep->txq_idx = cxgb4_port_idx(pdev) * step;
  1744. ep->ctrlq_idx = cxgb4_port_idx(pdev);
  1745. step = cdev->rdev.lldi.nrxq /
  1746. cdev->rdev.lldi.nchan;
  1747. ep->rss_qid = cdev->rdev.lldi.rxq_ids[
  1748. cxgb4_port_idx(pdev) * step];
  1749. set_tcp_window(ep, (struct port_info *)netdev_priv(pdev));
  1750. if (clear_mpa_v1) {
  1751. ep->retry_with_mpa_v1 = 0;
  1752. ep->tried_with_mpa_v1 = 0;
  1753. }
  1754. }
  1755. err = 0;
  1756. out:
  1757. rcu_read_unlock();
  1758. neigh_release(n);
  1759. return err;
  1760. }
  1761. static int c4iw_reconnect(struct c4iw_ep *ep)
  1762. {
  1763. int err = 0;
  1764. struct sockaddr_in *laddr = (struct sockaddr_in *)
  1765. &ep->com.cm_id->local_addr;
  1766. struct sockaddr_in *raddr = (struct sockaddr_in *)
  1767. &ep->com.cm_id->remote_addr;
  1768. struct sockaddr_in6 *laddr6 = (struct sockaddr_in6 *)
  1769. &ep->com.cm_id->local_addr;
  1770. struct sockaddr_in6 *raddr6 = (struct sockaddr_in6 *)
  1771. &ep->com.cm_id->remote_addr;
  1772. int iptype;
  1773. __u8 *ra;
  1774. PDBG("%s qp %p cm_id %p\n", __func__, ep->com.qp, ep->com.cm_id);
  1775. init_timer(&ep->timer);
  1776. /*
  1777. * Allocate an active TID to initiate a TCP connection.
  1778. */
  1779. ep->atid = cxgb4_alloc_atid(ep->com.dev->rdev.lldi.tids, ep);
  1780. if (ep->atid == -1) {
  1781. pr_err("%s - cannot alloc atid.\n", __func__);
  1782. err = -ENOMEM;
  1783. goto fail2;
  1784. }
  1785. insert_handle(ep->com.dev, &ep->com.dev->atid_idr, ep, ep->atid);
  1786. /* find a route */
  1787. if (ep->com.cm_id->local_addr.ss_family == AF_INET) {
  1788. ep->dst = find_route(ep->com.dev, laddr->sin_addr.s_addr,
  1789. raddr->sin_addr.s_addr, laddr->sin_port,
  1790. raddr->sin_port, 0);
  1791. iptype = 4;
  1792. ra = (__u8 *)&raddr->sin_addr;
  1793. } else {
  1794. ep->dst = find_route6(ep->com.dev, laddr6->sin6_addr.s6_addr,
  1795. raddr6->sin6_addr.s6_addr,
  1796. laddr6->sin6_port, raddr6->sin6_port, 0,
  1797. raddr6->sin6_scope_id);
  1798. iptype = 6;
  1799. ra = (__u8 *)&raddr6->sin6_addr;
  1800. }
  1801. if (!ep->dst) {
  1802. pr_err("%s - cannot find route.\n", __func__);
  1803. err = -EHOSTUNREACH;
  1804. goto fail3;
  1805. }
  1806. err = import_ep(ep, iptype, ra, ep->dst, ep->com.dev, false);
  1807. if (err) {
  1808. pr_err("%s - cannot alloc l2e.\n", __func__);
  1809. goto fail4;
  1810. }
  1811. PDBG("%s txq_idx %u tx_chan %u smac_idx %u rss_qid %u l2t_idx %u\n",
  1812. __func__, ep->txq_idx, ep->tx_chan, ep->smac_idx, ep->rss_qid,
  1813. ep->l2t->idx);
  1814. state_set(&ep->com, CONNECTING);
  1815. ep->tos = 0;
  1816. /* send connect request to rnic */
  1817. err = send_connect(ep);
  1818. if (!err)
  1819. goto out;
  1820. cxgb4_l2t_release(ep->l2t);
  1821. fail4:
  1822. dst_release(ep->dst);
  1823. fail3:
  1824. remove_handle(ep->com.dev, &ep->com.dev->atid_idr, ep->atid);
  1825. cxgb4_free_atid(ep->com.dev->rdev.lldi.tids, ep->atid);
  1826. fail2:
  1827. /*
  1828. * remember to send notification to upper layer.
  1829. * We are in here so the upper layer is not aware that this is
  1830. * re-connect attempt and so, upper layer is still waiting for
  1831. * response of 1st connect request.
  1832. */
  1833. connect_reply_upcall(ep, -ECONNRESET);
  1834. c4iw_put_ep(&ep->com);
  1835. out:
  1836. return err;
  1837. }
  1838. static int act_open_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  1839. {
  1840. struct c4iw_ep *ep;
  1841. struct cpl_act_open_rpl *rpl = cplhdr(skb);
  1842. unsigned int atid = TID_TID_G(AOPEN_ATID_G(
  1843. ntohl(rpl->atid_status)));
  1844. struct tid_info *t = dev->rdev.lldi.tids;
  1845. int status = AOPEN_STATUS_G(ntohl(rpl->atid_status));
  1846. struct sockaddr_in *la;
  1847. struct sockaddr_in *ra;
  1848. struct sockaddr_in6 *la6;
  1849. struct sockaddr_in6 *ra6;
  1850. ep = lookup_atid(t, atid);
  1851. la = (struct sockaddr_in *)&ep->com.mapped_local_addr;
  1852. ra = (struct sockaddr_in *)&ep->com.mapped_remote_addr;
  1853. la6 = (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  1854. ra6 = (struct sockaddr_in6 *)&ep->com.mapped_remote_addr;
  1855. PDBG("%s ep %p atid %u status %u errno %d\n", __func__, ep, atid,
  1856. status, status2errno(status));
  1857. if (is_neg_adv(status)) {
  1858. PDBG("%s Connection problems for atid %u status %u (%s)\n",
  1859. __func__, atid, status, neg_adv_str(status));
  1860. ep->stats.connect_neg_adv++;
  1861. mutex_lock(&dev->rdev.stats.lock);
  1862. dev->rdev.stats.neg_adv++;
  1863. mutex_unlock(&dev->rdev.stats.lock);
  1864. return 0;
  1865. }
  1866. set_bit(ACT_OPEN_RPL, &ep->com.history);
  1867. /*
  1868. * Log interesting failures.
  1869. */
  1870. switch (status) {
  1871. case CPL_ERR_CONN_RESET:
  1872. case CPL_ERR_CONN_TIMEDOUT:
  1873. break;
  1874. case CPL_ERR_TCAM_FULL:
  1875. mutex_lock(&dev->rdev.stats.lock);
  1876. dev->rdev.stats.tcam_full++;
  1877. mutex_unlock(&dev->rdev.stats.lock);
  1878. if (ep->com.local_addr.ss_family == AF_INET &&
  1879. dev->rdev.lldi.enable_fw_ofld_conn) {
  1880. send_fw_act_open_req(ep,
  1881. TID_TID_G(AOPEN_ATID_G(
  1882. ntohl(rpl->atid_status))));
  1883. return 0;
  1884. }
  1885. break;
  1886. case CPL_ERR_CONN_EXIST:
  1887. if (ep->retry_count++ < ACT_OPEN_RETRY_COUNT) {
  1888. set_bit(ACT_RETRY_INUSE, &ep->com.history);
  1889. if (ep->com.remote_addr.ss_family == AF_INET6) {
  1890. struct sockaddr_in6 *sin6 =
  1891. (struct sockaddr_in6 *)
  1892. &ep->com.mapped_local_addr;
  1893. cxgb4_clip_release(
  1894. ep->com.dev->rdev.lldi.ports[0],
  1895. (const u32 *)
  1896. &sin6->sin6_addr.s6_addr, 1);
  1897. }
  1898. remove_handle(ep->com.dev, &ep->com.dev->atid_idr,
  1899. atid);
  1900. cxgb4_free_atid(t, atid);
  1901. dst_release(ep->dst);
  1902. cxgb4_l2t_release(ep->l2t);
  1903. c4iw_reconnect(ep);
  1904. return 0;
  1905. }
  1906. break;
  1907. default:
  1908. if (ep->com.local_addr.ss_family == AF_INET) {
  1909. pr_info("Active open failure - atid %u status %u errno %d %pI4:%u->%pI4:%u\n",
  1910. atid, status, status2errno(status),
  1911. &la->sin_addr.s_addr, ntohs(la->sin_port),
  1912. &ra->sin_addr.s_addr, ntohs(ra->sin_port));
  1913. } else {
  1914. pr_info("Active open failure - atid %u status %u errno %d %pI6:%u->%pI6:%u\n",
  1915. atid, status, status2errno(status),
  1916. la6->sin6_addr.s6_addr, ntohs(la6->sin6_port),
  1917. ra6->sin6_addr.s6_addr, ntohs(ra6->sin6_port));
  1918. }
  1919. break;
  1920. }
  1921. connect_reply_upcall(ep, status2errno(status));
  1922. state_set(&ep->com, DEAD);
  1923. if (ep->com.remote_addr.ss_family == AF_INET6) {
  1924. struct sockaddr_in6 *sin6 =
  1925. (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  1926. cxgb4_clip_release(ep->com.dev->rdev.lldi.ports[0],
  1927. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  1928. }
  1929. if (status && act_open_has_tid(status))
  1930. cxgb4_remove_tid(ep->com.dev->rdev.lldi.tids, 0, GET_TID(rpl));
  1931. remove_handle(ep->com.dev, &ep->com.dev->atid_idr, atid);
  1932. cxgb4_free_atid(t, atid);
  1933. dst_release(ep->dst);
  1934. cxgb4_l2t_release(ep->l2t);
  1935. c4iw_put_ep(&ep->com);
  1936. return 0;
  1937. }
  1938. static int pass_open_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  1939. {
  1940. struct cpl_pass_open_rpl *rpl = cplhdr(skb);
  1941. struct tid_info *t = dev->rdev.lldi.tids;
  1942. unsigned int stid = GET_TID(rpl);
  1943. struct c4iw_listen_ep *ep = lookup_stid(t, stid);
  1944. if (!ep) {
  1945. PDBG("%s stid %d lookup failure!\n", __func__, stid);
  1946. goto out;
  1947. }
  1948. PDBG("%s ep %p status %d error %d\n", __func__, ep,
  1949. rpl->status, status2errno(rpl->status));
  1950. c4iw_wake_up(&ep->com.wr_wait, status2errno(rpl->status));
  1951. out:
  1952. return 0;
  1953. }
  1954. static int close_listsrv_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  1955. {
  1956. struct cpl_close_listsvr_rpl *rpl = cplhdr(skb);
  1957. struct tid_info *t = dev->rdev.lldi.tids;
  1958. unsigned int stid = GET_TID(rpl);
  1959. struct c4iw_listen_ep *ep = lookup_stid(t, stid);
  1960. PDBG("%s ep %p\n", __func__, ep);
  1961. c4iw_wake_up(&ep->com.wr_wait, status2errno(rpl->status));
  1962. return 0;
  1963. }
  1964. static void accept_cr(struct c4iw_ep *ep, struct sk_buff *skb,
  1965. struct cpl_pass_accept_req *req)
  1966. {
  1967. struct cpl_pass_accept_rpl *rpl;
  1968. unsigned int mtu_idx;
  1969. u64 opt0;
  1970. u32 opt2;
  1971. int wscale;
  1972. struct cpl_t5_pass_accept_rpl *rpl5 = NULL;
  1973. int win;
  1974. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  1975. BUG_ON(skb_cloned(skb));
  1976. skb_get(skb);
  1977. rpl = cplhdr(skb);
  1978. if (is_t5(ep->com.dev->rdev.lldi.adapter_type)) {
  1979. skb_trim(skb, roundup(sizeof(*rpl5), 16));
  1980. rpl5 = (void *)rpl;
  1981. INIT_TP_WR(rpl5, ep->hwtid);
  1982. } else {
  1983. skb_trim(skb, sizeof(*rpl));
  1984. INIT_TP_WR(rpl, ep->hwtid);
  1985. }
  1986. OPCODE_TID(rpl) = cpu_to_be32(MK_OPCODE_TID(CPL_PASS_ACCEPT_RPL,
  1987. ep->hwtid));
  1988. best_mtu(ep->com.dev->rdev.lldi.mtus, ep->mtu, &mtu_idx,
  1989. enable_tcp_timestamps && req->tcpopt.tstamp,
  1990. (AF_INET == ep->com.remote_addr.ss_family) ? 0 : 1);
  1991. wscale = compute_wscale(rcv_win);
  1992. /*
  1993. * Specify the largest window that will fit in opt0. The
  1994. * remainder will be specified in the rx_data_ack.
  1995. */
  1996. win = ep->rcv_win >> 10;
  1997. if (win > RCV_BUFSIZ_M)
  1998. win = RCV_BUFSIZ_M;
  1999. opt0 = (nocong ? NO_CONG_F : 0) |
  2000. KEEP_ALIVE_F |
  2001. DELACK_F |
  2002. WND_SCALE_V(wscale) |
  2003. MSS_IDX_V(mtu_idx) |
  2004. L2T_IDX_V(ep->l2t->idx) |
  2005. TX_CHAN_V(ep->tx_chan) |
  2006. SMAC_SEL_V(ep->smac_idx) |
  2007. DSCP_V(ep->tos >> 2) |
  2008. ULP_MODE_V(ULP_MODE_TCPDDP) |
  2009. RCV_BUFSIZ_V(win);
  2010. opt2 = RX_CHANNEL_V(0) |
  2011. RSS_QUEUE_VALID_F | RSS_QUEUE_V(ep->rss_qid);
  2012. if (enable_tcp_timestamps && req->tcpopt.tstamp)
  2013. opt2 |= TSTAMPS_EN_F;
  2014. if (enable_tcp_sack && req->tcpopt.sack)
  2015. opt2 |= SACK_EN_F;
  2016. if (wscale && enable_tcp_window_scaling)
  2017. opt2 |= WND_SCALE_EN_F;
  2018. if (enable_ecn) {
  2019. const struct tcphdr *tcph;
  2020. u32 hlen = ntohl(req->hdr_len);
  2021. tcph = (const void *)(req + 1) + ETH_HDR_LEN_G(hlen) +
  2022. IP_HDR_LEN_G(hlen);
  2023. if (tcph->ece && tcph->cwr)
  2024. opt2 |= CCTRL_ECN_V(1);
  2025. }
  2026. if (is_t5(ep->com.dev->rdev.lldi.adapter_type)) {
  2027. u32 isn = (prandom_u32() & ~7UL) - 1;
  2028. opt2 |= T5_OPT_2_VALID_F;
  2029. opt2 |= CONG_CNTRL_V(CONG_ALG_TAHOE);
  2030. opt2 |= T5_ISS_F;
  2031. rpl5 = (void *)rpl;
  2032. memset(&rpl5->iss, 0, roundup(sizeof(*rpl5)-sizeof(*rpl), 16));
  2033. if (peer2peer)
  2034. isn += 4;
  2035. rpl5->iss = cpu_to_be32(isn);
  2036. PDBG("%s iss %u\n", __func__, be32_to_cpu(rpl5->iss));
  2037. }
  2038. rpl->opt0 = cpu_to_be64(opt0);
  2039. rpl->opt2 = cpu_to_be32(opt2);
  2040. set_wr_txq(skb, CPL_PRIORITY_SETUP, ep->ctrlq_idx);
  2041. t4_set_arp_err_handler(skb, NULL, arp_failure_discard);
  2042. c4iw_l2t_send(&ep->com.dev->rdev, skb, ep->l2t);
  2043. return;
  2044. }
  2045. static void reject_cr(struct c4iw_dev *dev, u32 hwtid, struct sk_buff *skb)
  2046. {
  2047. PDBG("%s c4iw_dev %p tid %u\n", __func__, dev, hwtid);
  2048. BUG_ON(skb_cloned(skb));
  2049. skb_trim(skb, sizeof(struct cpl_tid_release));
  2050. release_tid(&dev->rdev, hwtid, skb);
  2051. return;
  2052. }
  2053. static void get_4tuple(struct cpl_pass_accept_req *req, int *iptype,
  2054. __u8 *local_ip, __u8 *peer_ip,
  2055. __be16 *local_port, __be16 *peer_port)
  2056. {
  2057. int eth_len = ETH_HDR_LEN_G(be32_to_cpu(req->hdr_len));
  2058. int ip_len = IP_HDR_LEN_G(be32_to_cpu(req->hdr_len));
  2059. struct iphdr *ip = (struct iphdr *)((u8 *)(req + 1) + eth_len);
  2060. struct ipv6hdr *ip6 = (struct ipv6hdr *)((u8 *)(req + 1) + eth_len);
  2061. struct tcphdr *tcp = (struct tcphdr *)
  2062. ((u8 *)(req + 1) + eth_len + ip_len);
  2063. if (ip->version == 4) {
  2064. PDBG("%s saddr 0x%x daddr 0x%x sport %u dport %u\n", __func__,
  2065. ntohl(ip->saddr), ntohl(ip->daddr), ntohs(tcp->source),
  2066. ntohs(tcp->dest));
  2067. *iptype = 4;
  2068. memcpy(peer_ip, &ip->saddr, 4);
  2069. memcpy(local_ip, &ip->daddr, 4);
  2070. } else {
  2071. PDBG("%s saddr %pI6 daddr %pI6 sport %u dport %u\n", __func__,
  2072. ip6->saddr.s6_addr, ip6->daddr.s6_addr, ntohs(tcp->source),
  2073. ntohs(tcp->dest));
  2074. *iptype = 6;
  2075. memcpy(peer_ip, ip6->saddr.s6_addr, 16);
  2076. memcpy(local_ip, ip6->daddr.s6_addr, 16);
  2077. }
  2078. *peer_port = tcp->source;
  2079. *local_port = tcp->dest;
  2080. return;
  2081. }
  2082. static int pass_accept_req(struct c4iw_dev *dev, struct sk_buff *skb)
  2083. {
  2084. struct c4iw_ep *child_ep = NULL, *parent_ep;
  2085. struct cpl_pass_accept_req *req = cplhdr(skb);
  2086. unsigned int stid = PASS_OPEN_TID_G(ntohl(req->tos_stid));
  2087. struct tid_info *t = dev->rdev.lldi.tids;
  2088. unsigned int hwtid = GET_TID(req);
  2089. struct dst_entry *dst;
  2090. __u8 local_ip[16], peer_ip[16];
  2091. __be16 local_port, peer_port;
  2092. struct sockaddr_in6 *sin6;
  2093. int err;
  2094. u16 peer_mss = ntohs(req->tcpopt.mss);
  2095. int iptype;
  2096. unsigned short hdrs;
  2097. parent_ep = lookup_stid(t, stid);
  2098. if (!parent_ep) {
  2099. PDBG("%s connect request on invalid stid %d\n", __func__, stid);
  2100. goto reject;
  2101. }
  2102. if (state_read(&parent_ep->com) != LISTEN) {
  2103. printk(KERN_ERR "%s - listening ep not in LISTEN\n",
  2104. __func__);
  2105. goto reject;
  2106. }
  2107. get_4tuple(req, &iptype, local_ip, peer_ip, &local_port, &peer_port);
  2108. /* Find output route */
  2109. if (iptype == 4) {
  2110. PDBG("%s parent ep %p hwtid %u laddr %pI4 raddr %pI4 lport %d rport %d peer_mss %d\n"
  2111. , __func__, parent_ep, hwtid,
  2112. local_ip, peer_ip, ntohs(local_port),
  2113. ntohs(peer_port), peer_mss);
  2114. dst = find_route(dev, *(__be32 *)local_ip, *(__be32 *)peer_ip,
  2115. local_port, peer_port,
  2116. PASS_OPEN_TOS_G(ntohl(req->tos_stid)));
  2117. } else {
  2118. PDBG("%s parent ep %p hwtid %u laddr %pI6 raddr %pI6 lport %d rport %d peer_mss %d\n"
  2119. , __func__, parent_ep, hwtid,
  2120. local_ip, peer_ip, ntohs(local_port),
  2121. ntohs(peer_port), peer_mss);
  2122. dst = find_route6(dev, local_ip, peer_ip, local_port, peer_port,
  2123. PASS_OPEN_TOS_G(ntohl(req->tos_stid)),
  2124. ((struct sockaddr_in6 *)
  2125. &parent_ep->com.local_addr)->sin6_scope_id);
  2126. }
  2127. if (!dst) {
  2128. printk(KERN_ERR MOD "%s - failed to find dst entry!\n",
  2129. __func__);
  2130. goto reject;
  2131. }
  2132. child_ep = alloc_ep(sizeof(*child_ep), GFP_KERNEL);
  2133. if (!child_ep) {
  2134. printk(KERN_ERR MOD "%s - failed to allocate ep entry!\n",
  2135. __func__);
  2136. dst_release(dst);
  2137. goto reject;
  2138. }
  2139. err = import_ep(child_ep, iptype, peer_ip, dst, dev, false);
  2140. if (err) {
  2141. printk(KERN_ERR MOD "%s - failed to allocate l2t entry!\n",
  2142. __func__);
  2143. dst_release(dst);
  2144. kfree(child_ep);
  2145. goto reject;
  2146. }
  2147. hdrs = sizeof(struct iphdr) + sizeof(struct tcphdr) +
  2148. ((enable_tcp_timestamps && req->tcpopt.tstamp) ? 12 : 0);
  2149. if (peer_mss && child_ep->mtu > (peer_mss + hdrs))
  2150. child_ep->mtu = peer_mss + hdrs;
  2151. state_set(&child_ep->com, CONNECTING);
  2152. child_ep->com.dev = dev;
  2153. child_ep->com.cm_id = NULL;
  2154. /*
  2155. * The mapped_local and mapped_remote addresses get setup with
  2156. * the actual 4-tuple. The local address will be based on the
  2157. * actual local address of the connection, but on the port number
  2158. * of the parent listening endpoint. The remote address is
  2159. * setup based on a query to the IWPM since we don't know what it
  2160. * originally was before mapping. If no mapping was done, then
  2161. * mapped_remote == remote, and mapped_local == local.
  2162. */
  2163. if (iptype == 4) {
  2164. struct sockaddr_in *sin = (struct sockaddr_in *)
  2165. &child_ep->com.mapped_local_addr;
  2166. sin->sin_family = PF_INET;
  2167. sin->sin_port = local_port;
  2168. sin->sin_addr.s_addr = *(__be32 *)local_ip;
  2169. sin = (struct sockaddr_in *)&child_ep->com.local_addr;
  2170. sin->sin_family = PF_INET;
  2171. sin->sin_port = ((struct sockaddr_in *)
  2172. &parent_ep->com.local_addr)->sin_port;
  2173. sin->sin_addr.s_addr = *(__be32 *)local_ip;
  2174. sin = (struct sockaddr_in *)&child_ep->com.mapped_remote_addr;
  2175. sin->sin_family = PF_INET;
  2176. sin->sin_port = peer_port;
  2177. sin->sin_addr.s_addr = *(__be32 *)peer_ip;
  2178. } else {
  2179. sin6 = (struct sockaddr_in6 *)&child_ep->com.mapped_local_addr;
  2180. sin6->sin6_family = PF_INET6;
  2181. sin6->sin6_port = local_port;
  2182. memcpy(sin6->sin6_addr.s6_addr, local_ip, 16);
  2183. sin6 = (struct sockaddr_in6 *)&child_ep->com.local_addr;
  2184. sin6->sin6_family = PF_INET6;
  2185. sin6->sin6_port = ((struct sockaddr_in6 *)
  2186. &parent_ep->com.local_addr)->sin6_port;
  2187. memcpy(sin6->sin6_addr.s6_addr, local_ip, 16);
  2188. sin6 = (struct sockaddr_in6 *)&child_ep->com.mapped_remote_addr;
  2189. sin6->sin6_family = PF_INET6;
  2190. sin6->sin6_port = peer_port;
  2191. memcpy(sin6->sin6_addr.s6_addr, peer_ip, 16);
  2192. }
  2193. memcpy(&child_ep->com.remote_addr, &child_ep->com.mapped_remote_addr,
  2194. sizeof(child_ep->com.remote_addr));
  2195. get_remote_addr(parent_ep, child_ep);
  2196. c4iw_get_ep(&parent_ep->com);
  2197. child_ep->parent_ep = parent_ep;
  2198. child_ep->tos = PASS_OPEN_TOS_G(ntohl(req->tos_stid));
  2199. child_ep->dst = dst;
  2200. child_ep->hwtid = hwtid;
  2201. PDBG("%s tx_chan %u smac_idx %u rss_qid %u\n", __func__,
  2202. child_ep->tx_chan, child_ep->smac_idx, child_ep->rss_qid);
  2203. init_timer(&child_ep->timer);
  2204. cxgb4_insert_tid(t, child_ep, hwtid);
  2205. insert_handle(dev, &dev->hwtid_idr, child_ep, child_ep->hwtid);
  2206. accept_cr(child_ep, skb, req);
  2207. set_bit(PASS_ACCEPT_REQ, &child_ep->com.history);
  2208. if (iptype == 6) {
  2209. sin6 = (struct sockaddr_in6 *)&child_ep->com.mapped_local_addr;
  2210. cxgb4_clip_get(child_ep->com.dev->rdev.lldi.ports[0],
  2211. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  2212. }
  2213. goto out;
  2214. reject:
  2215. reject_cr(dev, hwtid, skb);
  2216. out:
  2217. return 0;
  2218. }
  2219. static int pass_establish(struct c4iw_dev *dev, struct sk_buff *skb)
  2220. {
  2221. struct c4iw_ep *ep;
  2222. struct cpl_pass_establish *req = cplhdr(skb);
  2223. struct tid_info *t = dev->rdev.lldi.tids;
  2224. unsigned int tid = GET_TID(req);
  2225. ep = lookup_tid(t, tid);
  2226. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  2227. ep->snd_seq = be32_to_cpu(req->snd_isn);
  2228. ep->rcv_seq = be32_to_cpu(req->rcv_isn);
  2229. PDBG("%s ep %p hwtid %u tcp_opt 0x%02x\n", __func__, ep, tid,
  2230. ntohs(req->tcp_opt));
  2231. set_emss(ep, ntohs(req->tcp_opt));
  2232. dst_confirm(ep->dst);
  2233. state_set(&ep->com, MPA_REQ_WAIT);
  2234. start_ep_timer(ep);
  2235. send_flowc(ep, skb);
  2236. set_bit(PASS_ESTAB, &ep->com.history);
  2237. return 0;
  2238. }
  2239. static int peer_close(struct c4iw_dev *dev, struct sk_buff *skb)
  2240. {
  2241. struct cpl_peer_close *hdr = cplhdr(skb);
  2242. struct c4iw_ep *ep;
  2243. struct c4iw_qp_attributes attrs;
  2244. int disconnect = 1;
  2245. int release = 0;
  2246. struct tid_info *t = dev->rdev.lldi.tids;
  2247. unsigned int tid = GET_TID(hdr);
  2248. int ret;
  2249. ep = lookup_tid(t, tid);
  2250. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  2251. dst_confirm(ep->dst);
  2252. set_bit(PEER_CLOSE, &ep->com.history);
  2253. mutex_lock(&ep->com.mutex);
  2254. switch (ep->com.state) {
  2255. case MPA_REQ_WAIT:
  2256. __state_set(&ep->com, CLOSING);
  2257. break;
  2258. case MPA_REQ_SENT:
  2259. __state_set(&ep->com, CLOSING);
  2260. connect_reply_upcall(ep, -ECONNRESET);
  2261. break;
  2262. case MPA_REQ_RCVD:
  2263. /*
  2264. * We're gonna mark this puppy DEAD, but keep
  2265. * the reference on it until the ULP accepts or
  2266. * rejects the CR. Also wake up anyone waiting
  2267. * in rdma connection migration (see c4iw_accept_cr()).
  2268. */
  2269. __state_set(&ep->com, CLOSING);
  2270. PDBG("waking up ep %p tid %u\n", ep, ep->hwtid);
  2271. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  2272. break;
  2273. case MPA_REP_SENT:
  2274. __state_set(&ep->com, CLOSING);
  2275. PDBG("waking up ep %p tid %u\n", ep, ep->hwtid);
  2276. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  2277. break;
  2278. case FPDU_MODE:
  2279. start_ep_timer(ep);
  2280. __state_set(&ep->com, CLOSING);
  2281. attrs.next_state = C4IW_QP_STATE_CLOSING;
  2282. ret = c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  2283. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  2284. if (ret != -ECONNRESET) {
  2285. peer_close_upcall(ep);
  2286. disconnect = 1;
  2287. }
  2288. break;
  2289. case ABORTING:
  2290. disconnect = 0;
  2291. break;
  2292. case CLOSING:
  2293. __state_set(&ep->com, MORIBUND);
  2294. disconnect = 0;
  2295. break;
  2296. case MORIBUND:
  2297. (void)stop_ep_timer(ep);
  2298. if (ep->com.cm_id && ep->com.qp) {
  2299. attrs.next_state = C4IW_QP_STATE_IDLE;
  2300. c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  2301. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  2302. }
  2303. close_complete_upcall(ep, 0);
  2304. __state_set(&ep->com, DEAD);
  2305. release = 1;
  2306. disconnect = 0;
  2307. break;
  2308. case DEAD:
  2309. disconnect = 0;
  2310. break;
  2311. default:
  2312. BUG_ON(1);
  2313. }
  2314. mutex_unlock(&ep->com.mutex);
  2315. if (disconnect)
  2316. c4iw_ep_disconnect(ep, 0, GFP_KERNEL);
  2317. if (release)
  2318. release_ep_resources(ep);
  2319. return 0;
  2320. }
  2321. static int peer_abort(struct c4iw_dev *dev, struct sk_buff *skb)
  2322. {
  2323. struct cpl_abort_req_rss *req = cplhdr(skb);
  2324. struct c4iw_ep *ep;
  2325. struct cpl_abort_rpl *rpl;
  2326. struct sk_buff *rpl_skb;
  2327. struct c4iw_qp_attributes attrs;
  2328. int ret;
  2329. int release = 0;
  2330. struct tid_info *t = dev->rdev.lldi.tids;
  2331. unsigned int tid = GET_TID(req);
  2332. ep = lookup_tid(t, tid);
  2333. if (is_neg_adv(req->status)) {
  2334. PDBG("%s Negative advice on abort- tid %u status %d (%s)\n",
  2335. __func__, ep->hwtid, req->status,
  2336. neg_adv_str(req->status));
  2337. ep->stats.abort_neg_adv++;
  2338. mutex_lock(&dev->rdev.stats.lock);
  2339. dev->rdev.stats.neg_adv++;
  2340. mutex_unlock(&dev->rdev.stats.lock);
  2341. return 0;
  2342. }
  2343. PDBG("%s ep %p tid %u state %u\n", __func__, ep, ep->hwtid,
  2344. ep->com.state);
  2345. set_bit(PEER_ABORT, &ep->com.history);
  2346. /*
  2347. * Wake up any threads in rdma_init() or rdma_fini().
  2348. * However, this is not needed if com state is just
  2349. * MPA_REQ_SENT
  2350. */
  2351. if (ep->com.state != MPA_REQ_SENT)
  2352. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  2353. mutex_lock(&ep->com.mutex);
  2354. switch (ep->com.state) {
  2355. case CONNECTING:
  2356. break;
  2357. case MPA_REQ_WAIT:
  2358. (void)stop_ep_timer(ep);
  2359. break;
  2360. case MPA_REQ_SENT:
  2361. (void)stop_ep_timer(ep);
  2362. if (mpa_rev == 1 || (mpa_rev == 2 && ep->tried_with_mpa_v1))
  2363. connect_reply_upcall(ep, -ECONNRESET);
  2364. else {
  2365. /*
  2366. * we just don't send notification upwards because we
  2367. * want to retry with mpa_v1 without upper layers even
  2368. * knowing it.
  2369. *
  2370. * do some housekeeping so as to re-initiate the
  2371. * connection
  2372. */
  2373. PDBG("%s: mpa_rev=%d. Retrying with mpav1\n", __func__,
  2374. mpa_rev);
  2375. ep->retry_with_mpa_v1 = 1;
  2376. }
  2377. break;
  2378. case MPA_REP_SENT:
  2379. break;
  2380. case MPA_REQ_RCVD:
  2381. break;
  2382. case MORIBUND:
  2383. case CLOSING:
  2384. stop_ep_timer(ep);
  2385. /*FALLTHROUGH*/
  2386. case FPDU_MODE:
  2387. if (ep->com.cm_id && ep->com.qp) {
  2388. attrs.next_state = C4IW_QP_STATE_ERROR;
  2389. ret = c4iw_modify_qp(ep->com.qp->rhp,
  2390. ep->com.qp, C4IW_QP_ATTR_NEXT_STATE,
  2391. &attrs, 1);
  2392. if (ret)
  2393. printk(KERN_ERR MOD
  2394. "%s - qp <- error failed!\n",
  2395. __func__);
  2396. }
  2397. peer_abort_upcall(ep);
  2398. break;
  2399. case ABORTING:
  2400. break;
  2401. case DEAD:
  2402. PDBG("%s PEER_ABORT IN DEAD STATE!!!!\n", __func__);
  2403. mutex_unlock(&ep->com.mutex);
  2404. return 0;
  2405. default:
  2406. BUG_ON(1);
  2407. break;
  2408. }
  2409. dst_confirm(ep->dst);
  2410. if (ep->com.state != ABORTING) {
  2411. __state_set(&ep->com, DEAD);
  2412. /* we don't release if we want to retry with mpa_v1 */
  2413. if (!ep->retry_with_mpa_v1)
  2414. release = 1;
  2415. }
  2416. mutex_unlock(&ep->com.mutex);
  2417. rpl_skb = get_skb(skb, sizeof(*rpl), GFP_KERNEL);
  2418. if (!rpl_skb) {
  2419. printk(KERN_ERR MOD "%s - cannot allocate skb!\n",
  2420. __func__);
  2421. release = 1;
  2422. goto out;
  2423. }
  2424. set_wr_txq(skb, CPL_PRIORITY_DATA, ep->txq_idx);
  2425. rpl = (struct cpl_abort_rpl *) skb_put(rpl_skb, sizeof(*rpl));
  2426. INIT_TP_WR(rpl, ep->hwtid);
  2427. OPCODE_TID(rpl) = cpu_to_be32(MK_OPCODE_TID(CPL_ABORT_RPL, ep->hwtid));
  2428. rpl->cmd = CPL_ABORT_NO_RST;
  2429. c4iw_ofld_send(&ep->com.dev->rdev, rpl_skb);
  2430. out:
  2431. if (release)
  2432. release_ep_resources(ep);
  2433. else if (ep->retry_with_mpa_v1) {
  2434. if (ep->com.remote_addr.ss_family == AF_INET6) {
  2435. struct sockaddr_in6 *sin6 =
  2436. (struct sockaddr_in6 *)
  2437. &ep->com.mapped_local_addr;
  2438. cxgb4_clip_release(
  2439. ep->com.dev->rdev.lldi.ports[0],
  2440. (const u32 *)&sin6->sin6_addr.s6_addr,
  2441. 1);
  2442. }
  2443. remove_handle(ep->com.dev, &ep->com.dev->hwtid_idr, ep->hwtid);
  2444. cxgb4_remove_tid(ep->com.dev->rdev.lldi.tids, 0, ep->hwtid);
  2445. dst_release(ep->dst);
  2446. cxgb4_l2t_release(ep->l2t);
  2447. c4iw_reconnect(ep);
  2448. }
  2449. return 0;
  2450. }
  2451. static int close_con_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  2452. {
  2453. struct c4iw_ep *ep;
  2454. struct c4iw_qp_attributes attrs;
  2455. struct cpl_close_con_rpl *rpl = cplhdr(skb);
  2456. int release = 0;
  2457. struct tid_info *t = dev->rdev.lldi.tids;
  2458. unsigned int tid = GET_TID(rpl);
  2459. ep = lookup_tid(t, tid);
  2460. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  2461. BUG_ON(!ep);
  2462. /* The cm_id may be null if we failed to connect */
  2463. mutex_lock(&ep->com.mutex);
  2464. switch (ep->com.state) {
  2465. case CLOSING:
  2466. __state_set(&ep->com, MORIBUND);
  2467. break;
  2468. case MORIBUND:
  2469. (void)stop_ep_timer(ep);
  2470. if ((ep->com.cm_id) && (ep->com.qp)) {
  2471. attrs.next_state = C4IW_QP_STATE_IDLE;
  2472. c4iw_modify_qp(ep->com.qp->rhp,
  2473. ep->com.qp,
  2474. C4IW_QP_ATTR_NEXT_STATE,
  2475. &attrs, 1);
  2476. }
  2477. close_complete_upcall(ep, 0);
  2478. __state_set(&ep->com, DEAD);
  2479. release = 1;
  2480. break;
  2481. case ABORTING:
  2482. case DEAD:
  2483. break;
  2484. default:
  2485. BUG_ON(1);
  2486. break;
  2487. }
  2488. mutex_unlock(&ep->com.mutex);
  2489. if (release)
  2490. release_ep_resources(ep);
  2491. return 0;
  2492. }
  2493. static int terminate(struct c4iw_dev *dev, struct sk_buff *skb)
  2494. {
  2495. struct cpl_rdma_terminate *rpl = cplhdr(skb);
  2496. struct tid_info *t = dev->rdev.lldi.tids;
  2497. unsigned int tid = GET_TID(rpl);
  2498. struct c4iw_ep *ep;
  2499. struct c4iw_qp_attributes attrs;
  2500. ep = lookup_tid(t, tid);
  2501. BUG_ON(!ep);
  2502. if (ep && ep->com.qp) {
  2503. printk(KERN_WARNING MOD "TERM received tid %u qpid %u\n", tid,
  2504. ep->com.qp->wq.sq.qid);
  2505. attrs.next_state = C4IW_QP_STATE_TERMINATE;
  2506. c4iw_modify_qp(ep->com.qp->rhp, ep->com.qp,
  2507. C4IW_QP_ATTR_NEXT_STATE, &attrs, 1);
  2508. } else
  2509. printk(KERN_WARNING MOD "TERM received tid %u no ep/qp\n", tid);
  2510. return 0;
  2511. }
  2512. /*
  2513. * Upcall from the adapter indicating data has been transmitted.
  2514. * For us its just the single MPA request or reply. We can now free
  2515. * the skb holding the mpa message.
  2516. */
  2517. static int fw4_ack(struct c4iw_dev *dev, struct sk_buff *skb)
  2518. {
  2519. struct c4iw_ep *ep;
  2520. struct cpl_fw4_ack *hdr = cplhdr(skb);
  2521. u8 credits = hdr->credits;
  2522. unsigned int tid = GET_TID(hdr);
  2523. struct tid_info *t = dev->rdev.lldi.tids;
  2524. ep = lookup_tid(t, tid);
  2525. PDBG("%s ep %p tid %u credits %u\n", __func__, ep, ep->hwtid, credits);
  2526. if (credits == 0) {
  2527. PDBG("%s 0 credit ack ep %p tid %u state %u\n",
  2528. __func__, ep, ep->hwtid, state_read(&ep->com));
  2529. return 0;
  2530. }
  2531. dst_confirm(ep->dst);
  2532. if (ep->mpa_skb) {
  2533. PDBG("%s last streaming msg ack ep %p tid %u state %u "
  2534. "initiator %u freeing skb\n", __func__, ep, ep->hwtid,
  2535. state_read(&ep->com), ep->mpa_attr.initiator ? 1 : 0);
  2536. kfree_skb(ep->mpa_skb);
  2537. ep->mpa_skb = NULL;
  2538. }
  2539. return 0;
  2540. }
  2541. int c4iw_reject_cr(struct iw_cm_id *cm_id, const void *pdata, u8 pdata_len)
  2542. {
  2543. int err = 0;
  2544. int disconnect = 0;
  2545. struct c4iw_ep *ep = to_ep(cm_id);
  2546. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  2547. mutex_lock(&ep->com.mutex);
  2548. if (ep->com.state == DEAD) {
  2549. mutex_unlock(&ep->com.mutex);
  2550. c4iw_put_ep(&ep->com);
  2551. return -ECONNRESET;
  2552. }
  2553. set_bit(ULP_REJECT, &ep->com.history);
  2554. BUG_ON(ep->com.state != MPA_REQ_RCVD);
  2555. if (mpa_rev == 0)
  2556. abort_connection(ep, NULL, GFP_KERNEL);
  2557. else {
  2558. err = send_mpa_reject(ep, pdata, pdata_len);
  2559. disconnect = 1;
  2560. }
  2561. mutex_unlock(&ep->com.mutex);
  2562. if (disconnect)
  2563. err = c4iw_ep_disconnect(ep, 0, GFP_KERNEL);
  2564. c4iw_put_ep(&ep->com);
  2565. return 0;
  2566. }
  2567. int c4iw_accept_cr(struct iw_cm_id *cm_id, struct iw_cm_conn_param *conn_param)
  2568. {
  2569. int err;
  2570. struct c4iw_qp_attributes attrs;
  2571. enum c4iw_qp_attr_mask mask;
  2572. struct c4iw_ep *ep = to_ep(cm_id);
  2573. struct c4iw_dev *h = to_c4iw_dev(cm_id->device);
  2574. struct c4iw_qp *qp = get_qhp(h, conn_param->qpn);
  2575. PDBG("%s ep %p tid %u\n", __func__, ep, ep->hwtid);
  2576. mutex_lock(&ep->com.mutex);
  2577. if (ep->com.state == DEAD) {
  2578. err = -ECONNRESET;
  2579. goto err;
  2580. }
  2581. BUG_ON(ep->com.state != MPA_REQ_RCVD);
  2582. BUG_ON(!qp);
  2583. set_bit(ULP_ACCEPT, &ep->com.history);
  2584. if ((conn_param->ord > cur_max_read_depth(ep->com.dev)) ||
  2585. (conn_param->ird > cur_max_read_depth(ep->com.dev))) {
  2586. abort_connection(ep, NULL, GFP_KERNEL);
  2587. err = -EINVAL;
  2588. goto err;
  2589. }
  2590. if (ep->mpa_attr.version == 2 && ep->mpa_attr.enhanced_rdma_conn) {
  2591. if (conn_param->ord > ep->ird) {
  2592. if (RELAXED_IRD_NEGOTIATION) {
  2593. ep->ord = ep->ird;
  2594. } else {
  2595. ep->ird = conn_param->ird;
  2596. ep->ord = conn_param->ord;
  2597. send_mpa_reject(ep, conn_param->private_data,
  2598. conn_param->private_data_len);
  2599. abort_connection(ep, NULL, GFP_KERNEL);
  2600. err = -ENOMEM;
  2601. goto err;
  2602. }
  2603. }
  2604. if (conn_param->ird < ep->ord) {
  2605. if (RELAXED_IRD_NEGOTIATION &&
  2606. ep->ord <= h->rdev.lldi.max_ordird_qp) {
  2607. conn_param->ird = ep->ord;
  2608. } else {
  2609. abort_connection(ep, NULL, GFP_KERNEL);
  2610. err = -ENOMEM;
  2611. goto err;
  2612. }
  2613. }
  2614. }
  2615. ep->ird = conn_param->ird;
  2616. ep->ord = conn_param->ord;
  2617. if (ep->mpa_attr.version == 1) {
  2618. if (peer2peer && ep->ird == 0)
  2619. ep->ird = 1;
  2620. } else {
  2621. if (peer2peer &&
  2622. (ep->mpa_attr.p2p_type != FW_RI_INIT_P2PTYPE_DISABLED) &&
  2623. (p2p_type == FW_RI_INIT_P2PTYPE_READ_REQ) && ep->ord == 0)
  2624. ep->ird = 1;
  2625. }
  2626. PDBG("%s %d ird %d ord %d\n", __func__, __LINE__, ep->ird, ep->ord);
  2627. cm_id->add_ref(cm_id);
  2628. ep->com.cm_id = cm_id;
  2629. ep->com.qp = qp;
  2630. ref_qp(ep);
  2631. /* bind QP to EP and move to RTS */
  2632. attrs.mpa_attr = ep->mpa_attr;
  2633. attrs.max_ird = ep->ird;
  2634. attrs.max_ord = ep->ord;
  2635. attrs.llp_stream_handle = ep;
  2636. attrs.next_state = C4IW_QP_STATE_RTS;
  2637. /* bind QP and TID with INIT_WR */
  2638. mask = C4IW_QP_ATTR_NEXT_STATE |
  2639. C4IW_QP_ATTR_LLP_STREAM_HANDLE |
  2640. C4IW_QP_ATTR_MPA_ATTR |
  2641. C4IW_QP_ATTR_MAX_IRD |
  2642. C4IW_QP_ATTR_MAX_ORD;
  2643. err = c4iw_modify_qp(ep->com.qp->rhp,
  2644. ep->com.qp, mask, &attrs, 1);
  2645. if (err)
  2646. goto err1;
  2647. err = send_mpa_reply(ep, conn_param->private_data,
  2648. conn_param->private_data_len);
  2649. if (err)
  2650. goto err1;
  2651. __state_set(&ep->com, FPDU_MODE);
  2652. established_upcall(ep);
  2653. mutex_unlock(&ep->com.mutex);
  2654. c4iw_put_ep(&ep->com);
  2655. return 0;
  2656. err1:
  2657. ep->com.cm_id = NULL;
  2658. abort_connection(ep, NULL, GFP_KERNEL);
  2659. cm_id->rem_ref(cm_id);
  2660. err:
  2661. mutex_unlock(&ep->com.mutex);
  2662. c4iw_put_ep(&ep->com);
  2663. return err;
  2664. }
  2665. static int pick_local_ipaddrs(struct c4iw_dev *dev, struct iw_cm_id *cm_id)
  2666. {
  2667. struct in_device *ind;
  2668. int found = 0;
  2669. struct sockaddr_in *laddr = (struct sockaddr_in *)&cm_id->local_addr;
  2670. struct sockaddr_in *raddr = (struct sockaddr_in *)&cm_id->remote_addr;
  2671. ind = in_dev_get(dev->rdev.lldi.ports[0]);
  2672. if (!ind)
  2673. return -EADDRNOTAVAIL;
  2674. for_primary_ifa(ind) {
  2675. laddr->sin_addr.s_addr = ifa->ifa_address;
  2676. raddr->sin_addr.s_addr = ifa->ifa_address;
  2677. found = 1;
  2678. break;
  2679. }
  2680. endfor_ifa(ind);
  2681. in_dev_put(ind);
  2682. return found ? 0 : -EADDRNOTAVAIL;
  2683. }
  2684. static int get_lladdr(struct net_device *dev, struct in6_addr *addr,
  2685. unsigned char banned_flags)
  2686. {
  2687. struct inet6_dev *idev;
  2688. int err = -EADDRNOTAVAIL;
  2689. rcu_read_lock();
  2690. idev = __in6_dev_get(dev);
  2691. if (idev != NULL) {
  2692. struct inet6_ifaddr *ifp;
  2693. read_lock_bh(&idev->lock);
  2694. list_for_each_entry(ifp, &idev->addr_list, if_list) {
  2695. if (ifp->scope == IFA_LINK &&
  2696. !(ifp->flags & banned_flags)) {
  2697. memcpy(addr, &ifp->addr, 16);
  2698. err = 0;
  2699. break;
  2700. }
  2701. }
  2702. read_unlock_bh(&idev->lock);
  2703. }
  2704. rcu_read_unlock();
  2705. return err;
  2706. }
  2707. static int pick_local_ip6addrs(struct c4iw_dev *dev, struct iw_cm_id *cm_id)
  2708. {
  2709. struct in6_addr uninitialized_var(addr);
  2710. struct sockaddr_in6 *la6 = (struct sockaddr_in6 *)&cm_id->local_addr;
  2711. struct sockaddr_in6 *ra6 = (struct sockaddr_in6 *)&cm_id->remote_addr;
  2712. if (!get_lladdr(dev->rdev.lldi.ports[0], &addr, IFA_F_TENTATIVE)) {
  2713. memcpy(la6->sin6_addr.s6_addr, &addr, 16);
  2714. memcpy(ra6->sin6_addr.s6_addr, &addr, 16);
  2715. return 0;
  2716. }
  2717. return -EADDRNOTAVAIL;
  2718. }
  2719. int c4iw_connect(struct iw_cm_id *cm_id, struct iw_cm_conn_param *conn_param)
  2720. {
  2721. struct c4iw_dev *dev = to_c4iw_dev(cm_id->device);
  2722. struct c4iw_ep *ep;
  2723. int err = 0;
  2724. struct sockaddr_in *laddr;
  2725. struct sockaddr_in *raddr;
  2726. struct sockaddr_in6 *laddr6;
  2727. struct sockaddr_in6 *raddr6;
  2728. struct iwpm_dev_data pm_reg_msg;
  2729. struct iwpm_sa_data pm_msg;
  2730. __u8 *ra;
  2731. int iptype;
  2732. int iwpm_err = 0;
  2733. if ((conn_param->ord > cur_max_read_depth(dev)) ||
  2734. (conn_param->ird > cur_max_read_depth(dev))) {
  2735. err = -EINVAL;
  2736. goto out;
  2737. }
  2738. ep = alloc_ep(sizeof(*ep), GFP_KERNEL);
  2739. if (!ep) {
  2740. printk(KERN_ERR MOD "%s - cannot alloc ep.\n", __func__);
  2741. err = -ENOMEM;
  2742. goto out;
  2743. }
  2744. init_timer(&ep->timer);
  2745. ep->plen = conn_param->private_data_len;
  2746. if (ep->plen)
  2747. memcpy(ep->mpa_pkt + sizeof(struct mpa_message),
  2748. conn_param->private_data, ep->plen);
  2749. ep->ird = conn_param->ird;
  2750. ep->ord = conn_param->ord;
  2751. if (peer2peer && ep->ord == 0)
  2752. ep->ord = 1;
  2753. cm_id->add_ref(cm_id);
  2754. ep->com.dev = dev;
  2755. ep->com.cm_id = cm_id;
  2756. ep->com.qp = get_qhp(dev, conn_param->qpn);
  2757. if (!ep->com.qp) {
  2758. PDBG("%s qpn 0x%x not found!\n", __func__, conn_param->qpn);
  2759. err = -EINVAL;
  2760. goto fail1;
  2761. }
  2762. ref_qp(ep);
  2763. PDBG("%s qpn 0x%x qp %p cm_id %p\n", __func__, conn_param->qpn,
  2764. ep->com.qp, cm_id);
  2765. /*
  2766. * Allocate an active TID to initiate a TCP connection.
  2767. */
  2768. ep->atid = cxgb4_alloc_atid(dev->rdev.lldi.tids, ep);
  2769. if (ep->atid == -1) {
  2770. printk(KERN_ERR MOD "%s - cannot alloc atid.\n", __func__);
  2771. err = -ENOMEM;
  2772. goto fail1;
  2773. }
  2774. insert_handle(dev, &dev->atid_idr, ep, ep->atid);
  2775. memcpy(&ep->com.local_addr, &cm_id->local_addr,
  2776. sizeof(ep->com.local_addr));
  2777. memcpy(&ep->com.remote_addr, &cm_id->remote_addr,
  2778. sizeof(ep->com.remote_addr));
  2779. /* No port mapper available, go with the specified peer information */
  2780. memcpy(&ep->com.mapped_local_addr, &cm_id->local_addr,
  2781. sizeof(ep->com.mapped_local_addr));
  2782. memcpy(&ep->com.mapped_remote_addr, &cm_id->remote_addr,
  2783. sizeof(ep->com.mapped_remote_addr));
  2784. c4iw_form_reg_msg(dev, &pm_reg_msg);
  2785. iwpm_err = iwpm_register_pid(&pm_reg_msg, RDMA_NL_C4IW);
  2786. if (iwpm_err) {
  2787. PDBG("%s: Port Mapper reg pid fail (err = %d).\n",
  2788. __func__, iwpm_err);
  2789. }
  2790. if (iwpm_valid_pid() && !iwpm_err) {
  2791. c4iw_form_pm_msg(ep, &pm_msg);
  2792. iwpm_err = iwpm_add_and_query_mapping(&pm_msg, RDMA_NL_C4IW);
  2793. if (iwpm_err)
  2794. PDBG("%s: Port Mapper query fail (err = %d).\n",
  2795. __func__, iwpm_err);
  2796. else
  2797. c4iw_record_pm_msg(ep, &pm_msg);
  2798. }
  2799. if (iwpm_create_mapinfo(&ep->com.local_addr,
  2800. &ep->com.mapped_local_addr, RDMA_NL_C4IW)) {
  2801. iwpm_remove_mapping(&ep->com.local_addr, RDMA_NL_C4IW);
  2802. err = -ENOMEM;
  2803. goto fail1;
  2804. }
  2805. print_addr(&ep->com, __func__, "add_query/create_mapinfo");
  2806. set_bit(RELEASE_MAPINFO, &ep->com.flags);
  2807. laddr = (struct sockaddr_in *)&ep->com.mapped_local_addr;
  2808. raddr = (struct sockaddr_in *)&ep->com.mapped_remote_addr;
  2809. laddr6 = (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  2810. raddr6 = (struct sockaddr_in6 *) &ep->com.mapped_remote_addr;
  2811. if (cm_id->remote_addr.ss_family == AF_INET) {
  2812. iptype = 4;
  2813. ra = (__u8 *)&raddr->sin_addr;
  2814. /*
  2815. * Handle loopback requests to INADDR_ANY.
  2816. */
  2817. if ((__force int)raddr->sin_addr.s_addr == INADDR_ANY) {
  2818. err = pick_local_ipaddrs(dev, cm_id);
  2819. if (err)
  2820. goto fail1;
  2821. }
  2822. /* find a route */
  2823. PDBG("%s saddr %pI4 sport 0x%x raddr %pI4 rport 0x%x\n",
  2824. __func__, &laddr->sin_addr, ntohs(laddr->sin_port),
  2825. ra, ntohs(raddr->sin_port));
  2826. ep->dst = find_route(dev, laddr->sin_addr.s_addr,
  2827. raddr->sin_addr.s_addr, laddr->sin_port,
  2828. raddr->sin_port, 0);
  2829. } else {
  2830. iptype = 6;
  2831. ra = (__u8 *)&raddr6->sin6_addr;
  2832. /*
  2833. * Handle loopback requests to INADDR_ANY.
  2834. */
  2835. if (ipv6_addr_type(&raddr6->sin6_addr) == IPV6_ADDR_ANY) {
  2836. err = pick_local_ip6addrs(dev, cm_id);
  2837. if (err)
  2838. goto fail1;
  2839. }
  2840. /* find a route */
  2841. PDBG("%s saddr %pI6 sport 0x%x raddr %pI6 rport 0x%x\n",
  2842. __func__, laddr6->sin6_addr.s6_addr,
  2843. ntohs(laddr6->sin6_port),
  2844. raddr6->sin6_addr.s6_addr, ntohs(raddr6->sin6_port));
  2845. ep->dst = find_route6(dev, laddr6->sin6_addr.s6_addr,
  2846. raddr6->sin6_addr.s6_addr,
  2847. laddr6->sin6_port, raddr6->sin6_port, 0,
  2848. raddr6->sin6_scope_id);
  2849. }
  2850. if (!ep->dst) {
  2851. printk(KERN_ERR MOD "%s - cannot find route.\n", __func__);
  2852. err = -EHOSTUNREACH;
  2853. goto fail2;
  2854. }
  2855. err = import_ep(ep, iptype, ra, ep->dst, ep->com.dev, true);
  2856. if (err) {
  2857. printk(KERN_ERR MOD "%s - cannot alloc l2e.\n", __func__);
  2858. goto fail3;
  2859. }
  2860. PDBG("%s txq_idx %u tx_chan %u smac_idx %u rss_qid %u l2t_idx %u\n",
  2861. __func__, ep->txq_idx, ep->tx_chan, ep->smac_idx, ep->rss_qid,
  2862. ep->l2t->idx);
  2863. state_set(&ep->com, CONNECTING);
  2864. ep->tos = 0;
  2865. /* send connect request to rnic */
  2866. err = send_connect(ep);
  2867. if (!err)
  2868. goto out;
  2869. cxgb4_l2t_release(ep->l2t);
  2870. fail3:
  2871. dst_release(ep->dst);
  2872. fail2:
  2873. remove_handle(ep->com.dev, &ep->com.dev->atid_idr, ep->atid);
  2874. cxgb4_free_atid(ep->com.dev->rdev.lldi.tids, ep->atid);
  2875. fail1:
  2876. cm_id->rem_ref(cm_id);
  2877. c4iw_put_ep(&ep->com);
  2878. out:
  2879. return err;
  2880. }
  2881. static int create_server6(struct c4iw_dev *dev, struct c4iw_listen_ep *ep)
  2882. {
  2883. int err;
  2884. struct sockaddr_in6 *sin6 = (struct sockaddr_in6 *)
  2885. &ep->com.mapped_local_addr;
  2886. c4iw_init_wr_wait(&ep->com.wr_wait);
  2887. err = cxgb4_create_server6(ep->com.dev->rdev.lldi.ports[0],
  2888. ep->stid, &sin6->sin6_addr,
  2889. sin6->sin6_port,
  2890. ep->com.dev->rdev.lldi.rxq_ids[0]);
  2891. if (!err)
  2892. err = c4iw_wait_for_reply(&ep->com.dev->rdev,
  2893. &ep->com.wr_wait,
  2894. 0, 0, __func__);
  2895. else if (err > 0)
  2896. err = net_xmit_errno(err);
  2897. if (err)
  2898. pr_err("cxgb4_create_server6/filter failed err %d stid %d laddr %pI6 lport %d\n",
  2899. err, ep->stid,
  2900. sin6->sin6_addr.s6_addr, ntohs(sin6->sin6_port));
  2901. else
  2902. cxgb4_clip_get(ep->com.dev->rdev.lldi.ports[0],
  2903. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  2904. return err;
  2905. }
  2906. static int create_server4(struct c4iw_dev *dev, struct c4iw_listen_ep *ep)
  2907. {
  2908. int err;
  2909. struct sockaddr_in *sin = (struct sockaddr_in *)
  2910. &ep->com.mapped_local_addr;
  2911. if (dev->rdev.lldi.enable_fw_ofld_conn) {
  2912. do {
  2913. err = cxgb4_create_server_filter(
  2914. ep->com.dev->rdev.lldi.ports[0], ep->stid,
  2915. sin->sin_addr.s_addr, sin->sin_port, 0,
  2916. ep->com.dev->rdev.lldi.rxq_ids[0], 0, 0);
  2917. if (err == -EBUSY) {
  2918. set_current_state(TASK_UNINTERRUPTIBLE);
  2919. schedule_timeout(usecs_to_jiffies(100));
  2920. }
  2921. } while (err == -EBUSY);
  2922. } else {
  2923. c4iw_init_wr_wait(&ep->com.wr_wait);
  2924. err = cxgb4_create_server(ep->com.dev->rdev.lldi.ports[0],
  2925. ep->stid, sin->sin_addr.s_addr, sin->sin_port,
  2926. 0, ep->com.dev->rdev.lldi.rxq_ids[0]);
  2927. if (!err)
  2928. err = c4iw_wait_for_reply(&ep->com.dev->rdev,
  2929. &ep->com.wr_wait,
  2930. 0, 0, __func__);
  2931. else if (err > 0)
  2932. err = net_xmit_errno(err);
  2933. }
  2934. if (err)
  2935. pr_err("cxgb4_create_server/filter failed err %d stid %d laddr %pI4 lport %d\n"
  2936. , err, ep->stid,
  2937. &sin->sin_addr, ntohs(sin->sin_port));
  2938. return err;
  2939. }
  2940. int c4iw_create_listen(struct iw_cm_id *cm_id, int backlog)
  2941. {
  2942. int err = 0;
  2943. struct c4iw_dev *dev = to_c4iw_dev(cm_id->device);
  2944. struct c4iw_listen_ep *ep;
  2945. struct iwpm_dev_data pm_reg_msg;
  2946. struct iwpm_sa_data pm_msg;
  2947. int iwpm_err = 0;
  2948. might_sleep();
  2949. ep = alloc_ep(sizeof(*ep), GFP_KERNEL);
  2950. if (!ep) {
  2951. printk(KERN_ERR MOD "%s - cannot alloc ep.\n", __func__);
  2952. err = -ENOMEM;
  2953. goto fail1;
  2954. }
  2955. PDBG("%s ep %p\n", __func__, ep);
  2956. cm_id->add_ref(cm_id);
  2957. ep->com.cm_id = cm_id;
  2958. ep->com.dev = dev;
  2959. ep->backlog = backlog;
  2960. memcpy(&ep->com.local_addr, &cm_id->local_addr,
  2961. sizeof(ep->com.local_addr));
  2962. /*
  2963. * Allocate a server TID.
  2964. */
  2965. if (dev->rdev.lldi.enable_fw_ofld_conn &&
  2966. ep->com.local_addr.ss_family == AF_INET)
  2967. ep->stid = cxgb4_alloc_sftid(dev->rdev.lldi.tids,
  2968. cm_id->local_addr.ss_family, ep);
  2969. else
  2970. ep->stid = cxgb4_alloc_stid(dev->rdev.lldi.tids,
  2971. cm_id->local_addr.ss_family, ep);
  2972. if (ep->stid == -1) {
  2973. printk(KERN_ERR MOD "%s - cannot alloc stid.\n", __func__);
  2974. err = -ENOMEM;
  2975. goto fail2;
  2976. }
  2977. insert_handle(dev, &dev->stid_idr, ep, ep->stid);
  2978. /* No port mapper available, go with the specified info */
  2979. memcpy(&ep->com.mapped_local_addr, &cm_id->local_addr,
  2980. sizeof(ep->com.mapped_local_addr));
  2981. c4iw_form_reg_msg(dev, &pm_reg_msg);
  2982. iwpm_err = iwpm_register_pid(&pm_reg_msg, RDMA_NL_C4IW);
  2983. if (iwpm_err) {
  2984. PDBG("%s: Port Mapper reg pid fail (err = %d).\n",
  2985. __func__, iwpm_err);
  2986. }
  2987. if (iwpm_valid_pid() && !iwpm_err) {
  2988. memcpy(&pm_msg.loc_addr, &ep->com.local_addr,
  2989. sizeof(ep->com.local_addr));
  2990. iwpm_err = iwpm_add_mapping(&pm_msg, RDMA_NL_C4IW);
  2991. if (iwpm_err)
  2992. PDBG("%s: Port Mapper query fail (err = %d).\n",
  2993. __func__, iwpm_err);
  2994. else
  2995. memcpy(&ep->com.mapped_local_addr,
  2996. &pm_msg.mapped_loc_addr,
  2997. sizeof(ep->com.mapped_local_addr));
  2998. }
  2999. if (iwpm_create_mapinfo(&ep->com.local_addr,
  3000. &ep->com.mapped_local_addr, RDMA_NL_C4IW)) {
  3001. err = -ENOMEM;
  3002. goto fail3;
  3003. }
  3004. print_addr(&ep->com, __func__, "add_mapping/create_mapinfo");
  3005. set_bit(RELEASE_MAPINFO, &ep->com.flags);
  3006. state_set(&ep->com, LISTEN);
  3007. if (ep->com.local_addr.ss_family == AF_INET)
  3008. err = create_server4(dev, ep);
  3009. else
  3010. err = create_server6(dev, ep);
  3011. if (!err) {
  3012. cm_id->provider_data = ep;
  3013. goto out;
  3014. }
  3015. fail3:
  3016. cxgb4_free_stid(ep->com.dev->rdev.lldi.tids, ep->stid,
  3017. ep->com.local_addr.ss_family);
  3018. fail2:
  3019. cm_id->rem_ref(cm_id);
  3020. c4iw_put_ep(&ep->com);
  3021. fail1:
  3022. out:
  3023. return err;
  3024. }
  3025. int c4iw_destroy_listen(struct iw_cm_id *cm_id)
  3026. {
  3027. int err;
  3028. struct c4iw_listen_ep *ep = to_listen_ep(cm_id);
  3029. PDBG("%s ep %p\n", __func__, ep);
  3030. might_sleep();
  3031. state_set(&ep->com, DEAD);
  3032. if (ep->com.dev->rdev.lldi.enable_fw_ofld_conn &&
  3033. ep->com.local_addr.ss_family == AF_INET) {
  3034. err = cxgb4_remove_server_filter(
  3035. ep->com.dev->rdev.lldi.ports[0], ep->stid,
  3036. ep->com.dev->rdev.lldi.rxq_ids[0], 0);
  3037. } else {
  3038. struct sockaddr_in6 *sin6;
  3039. c4iw_init_wr_wait(&ep->com.wr_wait);
  3040. err = cxgb4_remove_server(
  3041. ep->com.dev->rdev.lldi.ports[0], ep->stid,
  3042. ep->com.dev->rdev.lldi.rxq_ids[0], 0);
  3043. if (err)
  3044. goto done;
  3045. err = c4iw_wait_for_reply(&ep->com.dev->rdev, &ep->com.wr_wait,
  3046. 0, 0, __func__);
  3047. sin6 = (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  3048. cxgb4_clip_release(ep->com.dev->rdev.lldi.ports[0],
  3049. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  3050. }
  3051. remove_handle(ep->com.dev, &ep->com.dev->stid_idr, ep->stid);
  3052. cxgb4_free_stid(ep->com.dev->rdev.lldi.tids, ep->stid,
  3053. ep->com.local_addr.ss_family);
  3054. done:
  3055. cm_id->rem_ref(cm_id);
  3056. c4iw_put_ep(&ep->com);
  3057. return err;
  3058. }
  3059. int c4iw_ep_disconnect(struct c4iw_ep *ep, int abrupt, gfp_t gfp)
  3060. {
  3061. int ret = 0;
  3062. int close = 0;
  3063. int fatal = 0;
  3064. struct c4iw_rdev *rdev;
  3065. mutex_lock(&ep->com.mutex);
  3066. PDBG("%s ep %p state %s, abrupt %d\n", __func__, ep,
  3067. states[ep->com.state], abrupt);
  3068. rdev = &ep->com.dev->rdev;
  3069. if (c4iw_fatal_error(rdev)) {
  3070. fatal = 1;
  3071. close_complete_upcall(ep, -EIO);
  3072. ep->com.state = DEAD;
  3073. }
  3074. switch (ep->com.state) {
  3075. case MPA_REQ_WAIT:
  3076. case MPA_REQ_SENT:
  3077. case MPA_REQ_RCVD:
  3078. case MPA_REP_SENT:
  3079. case FPDU_MODE:
  3080. close = 1;
  3081. if (abrupt)
  3082. ep->com.state = ABORTING;
  3083. else {
  3084. ep->com.state = CLOSING;
  3085. start_ep_timer(ep);
  3086. }
  3087. set_bit(CLOSE_SENT, &ep->com.flags);
  3088. break;
  3089. case CLOSING:
  3090. if (!test_and_set_bit(CLOSE_SENT, &ep->com.flags)) {
  3091. close = 1;
  3092. if (abrupt) {
  3093. (void)stop_ep_timer(ep);
  3094. ep->com.state = ABORTING;
  3095. } else
  3096. ep->com.state = MORIBUND;
  3097. }
  3098. break;
  3099. case MORIBUND:
  3100. case ABORTING:
  3101. case DEAD:
  3102. PDBG("%s ignoring disconnect ep %p state %u\n",
  3103. __func__, ep, ep->com.state);
  3104. break;
  3105. default:
  3106. BUG();
  3107. break;
  3108. }
  3109. if (close) {
  3110. if (abrupt) {
  3111. set_bit(EP_DISC_ABORT, &ep->com.history);
  3112. close_complete_upcall(ep, -ECONNRESET);
  3113. ret = send_abort(ep, NULL, gfp);
  3114. } else {
  3115. set_bit(EP_DISC_CLOSE, &ep->com.history);
  3116. ret = send_halfclose(ep, gfp);
  3117. }
  3118. if (ret)
  3119. fatal = 1;
  3120. }
  3121. mutex_unlock(&ep->com.mutex);
  3122. if (fatal)
  3123. release_ep_resources(ep);
  3124. return ret;
  3125. }
  3126. static void active_ofld_conn_reply(struct c4iw_dev *dev, struct sk_buff *skb,
  3127. struct cpl_fw6_msg_ofld_connection_wr_rpl *req)
  3128. {
  3129. struct c4iw_ep *ep;
  3130. int atid = be32_to_cpu(req->tid);
  3131. ep = (struct c4iw_ep *)lookup_atid(dev->rdev.lldi.tids,
  3132. (__force u32) req->tid);
  3133. if (!ep)
  3134. return;
  3135. switch (req->retval) {
  3136. case FW_ENOMEM:
  3137. set_bit(ACT_RETRY_NOMEM, &ep->com.history);
  3138. if (ep->retry_count++ < ACT_OPEN_RETRY_COUNT) {
  3139. send_fw_act_open_req(ep, atid);
  3140. return;
  3141. }
  3142. case FW_EADDRINUSE:
  3143. set_bit(ACT_RETRY_INUSE, &ep->com.history);
  3144. if (ep->retry_count++ < ACT_OPEN_RETRY_COUNT) {
  3145. send_fw_act_open_req(ep, atid);
  3146. return;
  3147. }
  3148. break;
  3149. default:
  3150. pr_info("%s unexpected ofld conn wr retval %d\n",
  3151. __func__, req->retval);
  3152. break;
  3153. }
  3154. pr_err("active ofld_connect_wr failure %d atid %d\n",
  3155. req->retval, atid);
  3156. mutex_lock(&dev->rdev.stats.lock);
  3157. dev->rdev.stats.act_ofld_conn_fails++;
  3158. mutex_unlock(&dev->rdev.stats.lock);
  3159. connect_reply_upcall(ep, status2errno(req->retval));
  3160. state_set(&ep->com, DEAD);
  3161. if (ep->com.remote_addr.ss_family == AF_INET6) {
  3162. struct sockaddr_in6 *sin6 =
  3163. (struct sockaddr_in6 *)&ep->com.mapped_local_addr;
  3164. cxgb4_clip_release(ep->com.dev->rdev.lldi.ports[0],
  3165. (const u32 *)&sin6->sin6_addr.s6_addr, 1);
  3166. }
  3167. remove_handle(dev, &dev->atid_idr, atid);
  3168. cxgb4_free_atid(dev->rdev.lldi.tids, atid);
  3169. dst_release(ep->dst);
  3170. cxgb4_l2t_release(ep->l2t);
  3171. c4iw_put_ep(&ep->com);
  3172. }
  3173. static void passive_ofld_conn_reply(struct c4iw_dev *dev, struct sk_buff *skb,
  3174. struct cpl_fw6_msg_ofld_connection_wr_rpl *req)
  3175. {
  3176. struct sk_buff *rpl_skb;
  3177. struct cpl_pass_accept_req *cpl;
  3178. int ret;
  3179. rpl_skb = (struct sk_buff *)(unsigned long)req->cookie;
  3180. BUG_ON(!rpl_skb);
  3181. if (req->retval) {
  3182. PDBG("%s passive open failure %d\n", __func__, req->retval);
  3183. mutex_lock(&dev->rdev.stats.lock);
  3184. dev->rdev.stats.pas_ofld_conn_fails++;
  3185. mutex_unlock(&dev->rdev.stats.lock);
  3186. kfree_skb(rpl_skb);
  3187. } else {
  3188. cpl = (struct cpl_pass_accept_req *)cplhdr(rpl_skb);
  3189. OPCODE_TID(cpl) = htonl(MK_OPCODE_TID(CPL_PASS_ACCEPT_REQ,
  3190. (__force u32) htonl(
  3191. (__force u32) req->tid)));
  3192. ret = pass_accept_req(dev, rpl_skb);
  3193. if (!ret)
  3194. kfree_skb(rpl_skb);
  3195. }
  3196. return;
  3197. }
  3198. static int deferred_fw6_msg(struct c4iw_dev *dev, struct sk_buff *skb)
  3199. {
  3200. struct cpl_fw6_msg *rpl = cplhdr(skb);
  3201. struct cpl_fw6_msg_ofld_connection_wr_rpl *req;
  3202. switch (rpl->type) {
  3203. case FW6_TYPE_CQE:
  3204. c4iw_ev_dispatch(dev, (struct t4_cqe *)&rpl->data[0]);
  3205. break;
  3206. case FW6_TYPE_OFLD_CONNECTION_WR_RPL:
  3207. req = (struct cpl_fw6_msg_ofld_connection_wr_rpl *)rpl->data;
  3208. switch (req->t_state) {
  3209. case TCP_SYN_SENT:
  3210. active_ofld_conn_reply(dev, skb, req);
  3211. break;
  3212. case TCP_SYN_RECV:
  3213. passive_ofld_conn_reply(dev, skb, req);
  3214. break;
  3215. default:
  3216. pr_err("%s unexpected ofld conn wr state %d\n",
  3217. __func__, req->t_state);
  3218. break;
  3219. }
  3220. break;
  3221. }
  3222. return 0;
  3223. }
  3224. static void build_cpl_pass_accept_req(struct sk_buff *skb, int stid , u8 tos)
  3225. {
  3226. u32 l2info;
  3227. u16 vlantag, len, hdr_len, eth_hdr_len;
  3228. u8 intf;
  3229. struct cpl_rx_pkt *cpl = cplhdr(skb);
  3230. struct cpl_pass_accept_req *req;
  3231. struct tcp_options_received tmp_opt;
  3232. struct c4iw_dev *dev;
  3233. dev = *((struct c4iw_dev **) (skb->cb + sizeof(void *)));
  3234. /* Store values from cpl_rx_pkt in temporary location. */
  3235. vlantag = (__force u16) cpl->vlan;
  3236. len = (__force u16) cpl->len;
  3237. l2info = (__force u32) cpl->l2info;
  3238. hdr_len = (__force u16) cpl->hdr_len;
  3239. intf = cpl->iff;
  3240. __skb_pull(skb, sizeof(*req) + sizeof(struct rss_header));
  3241. /*
  3242. * We need to parse the TCP options from SYN packet.
  3243. * to generate cpl_pass_accept_req.
  3244. */
  3245. memset(&tmp_opt, 0, sizeof(tmp_opt));
  3246. tcp_clear_options(&tmp_opt);
  3247. tcp_parse_options(skb, &tmp_opt, 0, NULL);
  3248. req = (struct cpl_pass_accept_req *)__skb_push(skb, sizeof(*req));
  3249. memset(req, 0, sizeof(*req));
  3250. req->l2info = cpu_to_be16(SYN_INTF_V(intf) |
  3251. SYN_MAC_IDX_V(RX_MACIDX_G(
  3252. (__force int) htonl(l2info))) |
  3253. SYN_XACT_MATCH_F);
  3254. eth_hdr_len = is_t4(dev->rdev.lldi.adapter_type) ?
  3255. RX_ETHHDR_LEN_G((__force int)htonl(l2info)) :
  3256. RX_T5_ETHHDR_LEN_G((__force int)htonl(l2info));
  3257. req->hdr_len = cpu_to_be32(SYN_RX_CHAN_V(RX_CHAN_G(
  3258. (__force int) htonl(l2info))) |
  3259. TCP_HDR_LEN_V(RX_TCPHDR_LEN_G(
  3260. (__force int) htons(hdr_len))) |
  3261. IP_HDR_LEN_V(RX_IPHDR_LEN_G(
  3262. (__force int) htons(hdr_len))) |
  3263. ETH_HDR_LEN_V(RX_ETHHDR_LEN_G(eth_hdr_len)));
  3264. req->vlan = (__force __be16) vlantag;
  3265. req->len = (__force __be16) len;
  3266. req->tos_stid = cpu_to_be32(PASS_OPEN_TID_V(stid) |
  3267. PASS_OPEN_TOS_V(tos));
  3268. req->tcpopt.mss = htons(tmp_opt.mss_clamp);
  3269. if (tmp_opt.wscale_ok)
  3270. req->tcpopt.wsf = tmp_opt.snd_wscale;
  3271. req->tcpopt.tstamp = tmp_opt.saw_tstamp;
  3272. if (tmp_opt.sack_ok)
  3273. req->tcpopt.sack = 1;
  3274. OPCODE_TID(req) = htonl(MK_OPCODE_TID(CPL_PASS_ACCEPT_REQ, 0));
  3275. return;
  3276. }
  3277. static void send_fw_pass_open_req(struct c4iw_dev *dev, struct sk_buff *skb,
  3278. __be32 laddr, __be16 lport,
  3279. __be32 raddr, __be16 rport,
  3280. u32 rcv_isn, u32 filter, u16 window,
  3281. u32 rss_qid, u8 port_id)
  3282. {
  3283. struct sk_buff *req_skb;
  3284. struct fw_ofld_connection_wr *req;
  3285. struct cpl_pass_accept_req *cpl = cplhdr(skb);
  3286. int ret;
  3287. req_skb = alloc_skb(sizeof(struct fw_ofld_connection_wr), GFP_KERNEL);
  3288. req = (struct fw_ofld_connection_wr *)__skb_put(req_skb, sizeof(*req));
  3289. memset(req, 0, sizeof(*req));
  3290. req->op_compl = htonl(WR_OP_V(FW_OFLD_CONNECTION_WR) | FW_WR_COMPL_F);
  3291. req->len16_pkd = htonl(FW_WR_LEN16_V(DIV_ROUND_UP(sizeof(*req), 16)));
  3292. req->le.version_cpl = htonl(FW_OFLD_CONNECTION_WR_CPL_F);
  3293. req->le.filter = (__force __be32) filter;
  3294. req->le.lport = lport;
  3295. req->le.pport = rport;
  3296. req->le.u.ipv4.lip = laddr;
  3297. req->le.u.ipv4.pip = raddr;
  3298. req->tcb.rcv_nxt = htonl(rcv_isn + 1);
  3299. req->tcb.rcv_adv = htons(window);
  3300. req->tcb.t_state_to_astid =
  3301. htonl(FW_OFLD_CONNECTION_WR_T_STATE_V(TCP_SYN_RECV) |
  3302. FW_OFLD_CONNECTION_WR_RCV_SCALE_V(cpl->tcpopt.wsf) |
  3303. FW_OFLD_CONNECTION_WR_ASTID_V(
  3304. PASS_OPEN_TID_G(ntohl(cpl->tos_stid))));
  3305. /*
  3306. * We store the qid in opt2 which will be used by the firmware
  3307. * to send us the wr response.
  3308. */
  3309. req->tcb.opt2 = htonl(RSS_QUEUE_V(rss_qid));
  3310. /*
  3311. * We initialize the MSS index in TCB to 0xF.
  3312. * So that when driver sends cpl_pass_accept_rpl
  3313. * TCB picks up the correct value. If this was 0
  3314. * TP will ignore any value > 0 for MSS index.
  3315. */
  3316. req->tcb.opt0 = cpu_to_be64(MSS_IDX_V(0xF));
  3317. req->cookie = (uintptr_t)skb;
  3318. set_wr_txq(req_skb, CPL_PRIORITY_CONTROL, port_id);
  3319. ret = cxgb4_ofld_send(dev->rdev.lldi.ports[0], req_skb);
  3320. if (ret < 0) {
  3321. pr_err("%s - cxgb4_ofld_send error %d - dropping\n", __func__,
  3322. ret);
  3323. kfree_skb(skb);
  3324. kfree_skb(req_skb);
  3325. }
  3326. }
  3327. /*
  3328. * Handler for CPL_RX_PKT message. Need to handle cpl_rx_pkt
  3329. * messages when a filter is being used instead of server to
  3330. * redirect a syn packet. When packets hit filter they are redirected
  3331. * to the offload queue and driver tries to establish the connection
  3332. * using firmware work request.
  3333. */
  3334. static int rx_pkt(struct c4iw_dev *dev, struct sk_buff *skb)
  3335. {
  3336. int stid;
  3337. unsigned int filter;
  3338. struct ethhdr *eh = NULL;
  3339. struct vlan_ethhdr *vlan_eh = NULL;
  3340. struct iphdr *iph;
  3341. struct tcphdr *tcph;
  3342. struct rss_header *rss = (void *)skb->data;
  3343. struct cpl_rx_pkt *cpl = (void *)skb->data;
  3344. struct cpl_pass_accept_req *req = (void *)(rss + 1);
  3345. struct l2t_entry *e;
  3346. struct dst_entry *dst;
  3347. struct c4iw_ep *lep;
  3348. u16 window;
  3349. struct port_info *pi;
  3350. struct net_device *pdev;
  3351. u16 rss_qid, eth_hdr_len;
  3352. int step;
  3353. u32 tx_chan;
  3354. struct neighbour *neigh;
  3355. /* Drop all non-SYN packets */
  3356. if (!(cpl->l2info & cpu_to_be32(RXF_SYN_F)))
  3357. goto reject;
  3358. /*
  3359. * Drop all packets which did not hit the filter.
  3360. * Unlikely to happen.
  3361. */
  3362. if (!(rss->filter_hit && rss->filter_tid))
  3363. goto reject;
  3364. /*
  3365. * Calculate the server tid from filter hit index from cpl_rx_pkt.
  3366. */
  3367. stid = (__force int) cpu_to_be32((__force u32) rss->hash_val);
  3368. lep = (struct c4iw_ep *)lookup_stid(dev->rdev.lldi.tids, stid);
  3369. if (!lep) {
  3370. PDBG("%s connect request on invalid stid %d\n", __func__, stid);
  3371. goto reject;
  3372. }
  3373. eth_hdr_len = is_t4(dev->rdev.lldi.adapter_type) ?
  3374. RX_ETHHDR_LEN_G(htonl(cpl->l2info)) :
  3375. RX_T5_ETHHDR_LEN_G(htonl(cpl->l2info));
  3376. if (eth_hdr_len == ETH_HLEN) {
  3377. eh = (struct ethhdr *)(req + 1);
  3378. iph = (struct iphdr *)(eh + 1);
  3379. } else {
  3380. vlan_eh = (struct vlan_ethhdr *)(req + 1);
  3381. iph = (struct iphdr *)(vlan_eh + 1);
  3382. skb->vlan_tci = ntohs(cpl->vlan);
  3383. }
  3384. if (iph->version != 0x4)
  3385. goto reject;
  3386. tcph = (struct tcphdr *)(iph + 1);
  3387. skb_set_network_header(skb, (void *)iph - (void *)rss);
  3388. skb_set_transport_header(skb, (void *)tcph - (void *)rss);
  3389. skb_get(skb);
  3390. PDBG("%s lip 0x%x lport %u pip 0x%x pport %u tos %d\n", __func__,
  3391. ntohl(iph->daddr), ntohs(tcph->dest), ntohl(iph->saddr),
  3392. ntohs(tcph->source), iph->tos);
  3393. dst = find_route(dev, iph->daddr, iph->saddr, tcph->dest, tcph->source,
  3394. iph->tos);
  3395. if (!dst) {
  3396. pr_err("%s - failed to find dst entry!\n",
  3397. __func__);
  3398. goto reject;
  3399. }
  3400. neigh = dst_neigh_lookup_skb(dst, skb);
  3401. if (!neigh) {
  3402. pr_err("%s - failed to allocate neigh!\n",
  3403. __func__);
  3404. goto free_dst;
  3405. }
  3406. if (neigh->dev->flags & IFF_LOOPBACK) {
  3407. pdev = ip_dev_find(&init_net, iph->daddr);
  3408. e = cxgb4_l2t_get(dev->rdev.lldi.l2t, neigh,
  3409. pdev, 0);
  3410. pi = (struct port_info *)netdev_priv(pdev);
  3411. tx_chan = cxgb4_port_chan(pdev);
  3412. dev_put(pdev);
  3413. } else {
  3414. pdev = get_real_dev(neigh->dev);
  3415. e = cxgb4_l2t_get(dev->rdev.lldi.l2t, neigh,
  3416. pdev, 0);
  3417. pi = (struct port_info *)netdev_priv(pdev);
  3418. tx_chan = cxgb4_port_chan(pdev);
  3419. }
  3420. neigh_release(neigh);
  3421. if (!e) {
  3422. pr_err("%s - failed to allocate l2t entry!\n",
  3423. __func__);
  3424. goto free_dst;
  3425. }
  3426. step = dev->rdev.lldi.nrxq / dev->rdev.lldi.nchan;
  3427. rss_qid = dev->rdev.lldi.rxq_ids[pi->port_id * step];
  3428. window = (__force u16) htons((__force u16)tcph->window);
  3429. /* Calcuate filter portion for LE region. */
  3430. filter = (__force unsigned int) cpu_to_be32(cxgb4_select_ntuple(
  3431. dev->rdev.lldi.ports[0],
  3432. e));
  3433. /*
  3434. * Synthesize the cpl_pass_accept_req. We have everything except the
  3435. * TID. Once firmware sends a reply with TID we update the TID field
  3436. * in cpl and pass it through the regular cpl_pass_accept_req path.
  3437. */
  3438. build_cpl_pass_accept_req(skb, stid, iph->tos);
  3439. send_fw_pass_open_req(dev, skb, iph->daddr, tcph->dest, iph->saddr,
  3440. tcph->source, ntohl(tcph->seq), filter, window,
  3441. rss_qid, pi->port_id);
  3442. cxgb4_l2t_release(e);
  3443. free_dst:
  3444. dst_release(dst);
  3445. reject:
  3446. return 0;
  3447. }
  3448. /*
  3449. * These are the real handlers that are called from a
  3450. * work queue.
  3451. */
  3452. static c4iw_handler_func work_handlers[NUM_CPL_CMDS] = {
  3453. [CPL_ACT_ESTABLISH] = act_establish,
  3454. [CPL_ACT_OPEN_RPL] = act_open_rpl,
  3455. [CPL_RX_DATA] = rx_data,
  3456. [CPL_ABORT_RPL_RSS] = abort_rpl,
  3457. [CPL_ABORT_RPL] = abort_rpl,
  3458. [CPL_PASS_OPEN_RPL] = pass_open_rpl,
  3459. [CPL_CLOSE_LISTSRV_RPL] = close_listsrv_rpl,
  3460. [CPL_PASS_ACCEPT_REQ] = pass_accept_req,
  3461. [CPL_PASS_ESTABLISH] = pass_establish,
  3462. [CPL_PEER_CLOSE] = peer_close,
  3463. [CPL_ABORT_REQ_RSS] = peer_abort,
  3464. [CPL_CLOSE_CON_RPL] = close_con_rpl,
  3465. [CPL_RDMA_TERMINATE] = terminate,
  3466. [CPL_FW4_ACK] = fw4_ack,
  3467. [CPL_FW6_MSG] = deferred_fw6_msg,
  3468. [CPL_RX_PKT] = rx_pkt
  3469. };
  3470. static void process_timeout(struct c4iw_ep *ep)
  3471. {
  3472. struct c4iw_qp_attributes attrs;
  3473. int abort = 1;
  3474. mutex_lock(&ep->com.mutex);
  3475. PDBG("%s ep %p tid %u state %d\n", __func__, ep, ep->hwtid,
  3476. ep->com.state);
  3477. set_bit(TIMEDOUT, &ep->com.history);
  3478. switch (ep->com.state) {
  3479. case MPA_REQ_SENT:
  3480. __state_set(&ep->com, ABORTING);
  3481. connect_reply_upcall(ep, -ETIMEDOUT);
  3482. break;
  3483. case MPA_REQ_WAIT:
  3484. __state_set(&ep->com, ABORTING);
  3485. break;
  3486. case CLOSING:
  3487. case MORIBUND:
  3488. if (ep->com.cm_id && ep->com.qp) {
  3489. attrs.next_state = C4IW_QP_STATE_ERROR;
  3490. c4iw_modify_qp(ep->com.qp->rhp,
  3491. ep->com.qp, C4IW_QP_ATTR_NEXT_STATE,
  3492. &attrs, 1);
  3493. }
  3494. __state_set(&ep->com, ABORTING);
  3495. close_complete_upcall(ep, -ETIMEDOUT);
  3496. break;
  3497. case ABORTING:
  3498. case DEAD:
  3499. /*
  3500. * These states are expected if the ep timed out at the same
  3501. * time as another thread was calling stop_ep_timer().
  3502. * So we silently do nothing for these states.
  3503. */
  3504. abort = 0;
  3505. break;
  3506. default:
  3507. WARN(1, "%s unexpected state ep %p tid %u state %u\n",
  3508. __func__, ep, ep->hwtid, ep->com.state);
  3509. abort = 0;
  3510. }
  3511. if (abort)
  3512. abort_connection(ep, NULL, GFP_KERNEL);
  3513. mutex_unlock(&ep->com.mutex);
  3514. c4iw_put_ep(&ep->com);
  3515. }
  3516. static void process_timedout_eps(void)
  3517. {
  3518. struct c4iw_ep *ep;
  3519. spin_lock_irq(&timeout_lock);
  3520. while (!list_empty(&timeout_list)) {
  3521. struct list_head *tmp;
  3522. tmp = timeout_list.next;
  3523. list_del(tmp);
  3524. tmp->next = NULL;
  3525. tmp->prev = NULL;
  3526. spin_unlock_irq(&timeout_lock);
  3527. ep = list_entry(tmp, struct c4iw_ep, entry);
  3528. process_timeout(ep);
  3529. spin_lock_irq(&timeout_lock);
  3530. }
  3531. spin_unlock_irq(&timeout_lock);
  3532. }
  3533. static void process_work(struct work_struct *work)
  3534. {
  3535. struct sk_buff *skb = NULL;
  3536. struct c4iw_dev *dev;
  3537. struct cpl_act_establish *rpl;
  3538. unsigned int opcode;
  3539. int ret;
  3540. process_timedout_eps();
  3541. while ((skb = skb_dequeue(&rxq))) {
  3542. rpl = cplhdr(skb);
  3543. dev = *((struct c4iw_dev **) (skb->cb + sizeof(void *)));
  3544. opcode = rpl->ot.opcode;
  3545. BUG_ON(!work_handlers[opcode]);
  3546. ret = work_handlers[opcode](dev, skb);
  3547. if (!ret)
  3548. kfree_skb(skb);
  3549. process_timedout_eps();
  3550. }
  3551. }
  3552. static DECLARE_WORK(skb_work, process_work);
  3553. static void ep_timeout(unsigned long arg)
  3554. {
  3555. struct c4iw_ep *ep = (struct c4iw_ep *)arg;
  3556. int kickit = 0;
  3557. spin_lock(&timeout_lock);
  3558. if (!test_and_set_bit(TIMEOUT, &ep->com.flags)) {
  3559. /*
  3560. * Only insert if it is not already on the list.
  3561. */
  3562. if (!ep->entry.next) {
  3563. list_add_tail(&ep->entry, &timeout_list);
  3564. kickit = 1;
  3565. }
  3566. }
  3567. spin_unlock(&timeout_lock);
  3568. if (kickit)
  3569. queue_work(workq, &skb_work);
  3570. }
  3571. /*
  3572. * All the CM events are handled on a work queue to have a safe context.
  3573. */
  3574. static int sched(struct c4iw_dev *dev, struct sk_buff *skb)
  3575. {
  3576. /*
  3577. * Save dev in the skb->cb area.
  3578. */
  3579. *((struct c4iw_dev **) (skb->cb + sizeof(void *))) = dev;
  3580. /*
  3581. * Queue the skb and schedule the worker thread.
  3582. */
  3583. skb_queue_tail(&rxq, skb);
  3584. queue_work(workq, &skb_work);
  3585. return 0;
  3586. }
  3587. static int set_tcb_rpl(struct c4iw_dev *dev, struct sk_buff *skb)
  3588. {
  3589. struct cpl_set_tcb_rpl *rpl = cplhdr(skb);
  3590. if (rpl->status != CPL_ERR_NONE) {
  3591. printk(KERN_ERR MOD "Unexpected SET_TCB_RPL status %u "
  3592. "for tid %u\n", rpl->status, GET_TID(rpl));
  3593. }
  3594. kfree_skb(skb);
  3595. return 0;
  3596. }
  3597. static int fw6_msg(struct c4iw_dev *dev, struct sk_buff *skb)
  3598. {
  3599. struct cpl_fw6_msg *rpl = cplhdr(skb);
  3600. struct c4iw_wr_wait *wr_waitp;
  3601. int ret;
  3602. PDBG("%s type %u\n", __func__, rpl->type);
  3603. switch (rpl->type) {
  3604. case FW6_TYPE_WR_RPL:
  3605. ret = (int)((be64_to_cpu(rpl->data[0]) >> 8) & 0xff);
  3606. wr_waitp = (struct c4iw_wr_wait *)(__force unsigned long) rpl->data[1];
  3607. PDBG("%s wr_waitp %p ret %u\n", __func__, wr_waitp, ret);
  3608. if (wr_waitp)
  3609. c4iw_wake_up(wr_waitp, ret ? -ret : 0);
  3610. kfree_skb(skb);
  3611. break;
  3612. case FW6_TYPE_CQE:
  3613. case FW6_TYPE_OFLD_CONNECTION_WR_RPL:
  3614. sched(dev, skb);
  3615. break;
  3616. default:
  3617. printk(KERN_ERR MOD "%s unexpected fw6 msg type %u\n", __func__,
  3618. rpl->type);
  3619. kfree_skb(skb);
  3620. break;
  3621. }
  3622. return 0;
  3623. }
  3624. static int peer_abort_intr(struct c4iw_dev *dev, struct sk_buff *skb)
  3625. {
  3626. struct cpl_abort_req_rss *req = cplhdr(skb);
  3627. struct c4iw_ep *ep;
  3628. struct tid_info *t = dev->rdev.lldi.tids;
  3629. unsigned int tid = GET_TID(req);
  3630. ep = lookup_tid(t, tid);
  3631. if (!ep) {
  3632. printk(KERN_WARNING MOD
  3633. "Abort on non-existent endpoint, tid %d\n", tid);
  3634. kfree_skb(skb);
  3635. return 0;
  3636. }
  3637. if (is_neg_adv(req->status)) {
  3638. PDBG("%s Negative advice on abort- tid %u status %d (%s)\n",
  3639. __func__, ep->hwtid, req->status,
  3640. neg_adv_str(req->status));
  3641. ep->stats.abort_neg_adv++;
  3642. dev->rdev.stats.neg_adv++;
  3643. kfree_skb(skb);
  3644. return 0;
  3645. }
  3646. PDBG("%s ep %p tid %u state %u\n", __func__, ep, ep->hwtid,
  3647. ep->com.state);
  3648. /*
  3649. * Wake up any threads in rdma_init() or rdma_fini().
  3650. * However, if we are on MPAv2 and want to retry with MPAv1
  3651. * then, don't wake up yet.
  3652. */
  3653. if (mpa_rev == 2 && !ep->tried_with_mpa_v1) {
  3654. if (ep->com.state != MPA_REQ_SENT)
  3655. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  3656. } else
  3657. c4iw_wake_up(&ep->com.wr_wait, -ECONNRESET);
  3658. sched(dev, skb);
  3659. return 0;
  3660. }
  3661. /*
  3662. * Most upcalls from the T4 Core go to sched() to
  3663. * schedule the processing on a work queue.
  3664. */
  3665. c4iw_handler_func c4iw_handlers[NUM_CPL_CMDS] = {
  3666. [CPL_ACT_ESTABLISH] = sched,
  3667. [CPL_ACT_OPEN_RPL] = sched,
  3668. [CPL_RX_DATA] = sched,
  3669. [CPL_ABORT_RPL_RSS] = sched,
  3670. [CPL_ABORT_RPL] = sched,
  3671. [CPL_PASS_OPEN_RPL] = sched,
  3672. [CPL_CLOSE_LISTSRV_RPL] = sched,
  3673. [CPL_PASS_ACCEPT_REQ] = sched,
  3674. [CPL_PASS_ESTABLISH] = sched,
  3675. [CPL_PEER_CLOSE] = sched,
  3676. [CPL_CLOSE_CON_RPL] = sched,
  3677. [CPL_ABORT_REQ_RSS] = peer_abort_intr,
  3678. [CPL_RDMA_TERMINATE] = sched,
  3679. [CPL_FW4_ACK] = sched,
  3680. [CPL_SET_TCB_RPL] = set_tcb_rpl,
  3681. [CPL_FW6_MSG] = fw6_msg,
  3682. [CPL_RX_PKT] = sched
  3683. };
  3684. int __init c4iw_cm_init(void)
  3685. {
  3686. spin_lock_init(&timeout_lock);
  3687. skb_queue_head_init(&rxq);
  3688. workq = create_singlethread_workqueue("iw_cxgb4");
  3689. if (!workq)
  3690. return -ENOMEM;
  3691. return 0;
  3692. }
  3693. void c4iw_cm_term(void)
  3694. {
  3695. WARN_ON(!list_empty(&timeout_list));
  3696. flush_workqueue(workq);
  3697. destroy_workqueue(workq);
  3698. }