rxe_resp.c 33 KB

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  1. // SPDX-License-Identifier: GPL-2.0 OR Linux-OpenIB
  2. /*
  3. * Copyright (c) 2016 Mellanox Technologies Ltd. All rights reserved.
  4. * Copyright (c) 2015 System Fabric Works, Inc. All rights reserved.
  5. */
  6. #include <linux/skbuff.h>
  7. #include "rxe.h"
  8. #include "rxe_loc.h"
  9. #include "rxe_queue.h"
  10. enum resp_states {
  11. RESPST_NONE,
  12. RESPST_GET_REQ,
  13. RESPST_CHK_PSN,
  14. RESPST_CHK_OP_SEQ,
  15. RESPST_CHK_OP_VALID,
  16. RESPST_CHK_RESOURCE,
  17. RESPST_CHK_LENGTH,
  18. RESPST_CHK_RKEY,
  19. RESPST_EXECUTE,
  20. RESPST_READ_REPLY,
  21. RESPST_ATOMIC_REPLY,
  22. RESPST_COMPLETE,
  23. RESPST_ACKNOWLEDGE,
  24. RESPST_CLEANUP,
  25. RESPST_DUPLICATE_REQUEST,
  26. RESPST_ERR_MALFORMED_WQE,
  27. RESPST_ERR_UNSUPPORTED_OPCODE,
  28. RESPST_ERR_MISALIGNED_ATOMIC,
  29. RESPST_ERR_PSN_OUT_OF_SEQ,
  30. RESPST_ERR_MISSING_OPCODE_FIRST,
  31. RESPST_ERR_MISSING_OPCODE_LAST_C,
  32. RESPST_ERR_MISSING_OPCODE_LAST_D1E,
  33. RESPST_ERR_TOO_MANY_RDMA_ATM_REQ,
  34. RESPST_ERR_RNR,
  35. RESPST_ERR_RKEY_VIOLATION,
  36. RESPST_ERR_INVALIDATE_RKEY,
  37. RESPST_ERR_LENGTH,
  38. RESPST_ERR_CQ_OVERFLOW,
  39. RESPST_ERROR,
  40. RESPST_RESET,
  41. RESPST_DONE,
  42. RESPST_EXIT,
  43. };
  44. static char *resp_state_name[] = {
  45. [RESPST_NONE] = "NONE",
  46. [RESPST_GET_REQ] = "GET_REQ",
  47. [RESPST_CHK_PSN] = "CHK_PSN",
  48. [RESPST_CHK_OP_SEQ] = "CHK_OP_SEQ",
  49. [RESPST_CHK_OP_VALID] = "CHK_OP_VALID",
  50. [RESPST_CHK_RESOURCE] = "CHK_RESOURCE",
  51. [RESPST_CHK_LENGTH] = "CHK_LENGTH",
  52. [RESPST_CHK_RKEY] = "CHK_RKEY",
  53. [RESPST_EXECUTE] = "EXECUTE",
  54. [RESPST_READ_REPLY] = "READ_REPLY",
  55. [RESPST_ATOMIC_REPLY] = "ATOMIC_REPLY",
  56. [RESPST_COMPLETE] = "COMPLETE",
  57. [RESPST_ACKNOWLEDGE] = "ACKNOWLEDGE",
  58. [RESPST_CLEANUP] = "CLEANUP",
  59. [RESPST_DUPLICATE_REQUEST] = "DUPLICATE_REQUEST",
  60. [RESPST_ERR_MALFORMED_WQE] = "ERR_MALFORMED_WQE",
  61. [RESPST_ERR_UNSUPPORTED_OPCODE] = "ERR_UNSUPPORTED_OPCODE",
  62. [RESPST_ERR_MISALIGNED_ATOMIC] = "ERR_MISALIGNED_ATOMIC",
  63. [RESPST_ERR_PSN_OUT_OF_SEQ] = "ERR_PSN_OUT_OF_SEQ",
  64. [RESPST_ERR_MISSING_OPCODE_FIRST] = "ERR_MISSING_OPCODE_FIRST",
  65. [RESPST_ERR_MISSING_OPCODE_LAST_C] = "ERR_MISSING_OPCODE_LAST_C",
  66. [RESPST_ERR_MISSING_OPCODE_LAST_D1E] = "ERR_MISSING_OPCODE_LAST_D1E",
  67. [RESPST_ERR_TOO_MANY_RDMA_ATM_REQ] = "ERR_TOO_MANY_RDMA_ATM_REQ",
  68. [RESPST_ERR_RNR] = "ERR_RNR",
  69. [RESPST_ERR_RKEY_VIOLATION] = "ERR_RKEY_VIOLATION",
  70. [RESPST_ERR_INVALIDATE_RKEY] = "ERR_INVALIDATE_RKEY_VIOLATION",
  71. [RESPST_ERR_LENGTH] = "ERR_LENGTH",
  72. [RESPST_ERR_CQ_OVERFLOW] = "ERR_CQ_OVERFLOW",
  73. [RESPST_ERROR] = "ERROR",
  74. [RESPST_RESET] = "RESET",
  75. [RESPST_DONE] = "DONE",
  76. [RESPST_EXIT] = "EXIT",
  77. };
  78. /* rxe_recv calls here to add a request packet to the input queue */
  79. void rxe_resp_queue_pkt(struct rxe_qp *qp, struct sk_buff *skb)
  80. {
  81. int must_sched;
  82. struct rxe_pkt_info *pkt = SKB_TO_PKT(skb);
  83. skb_queue_tail(&qp->req_pkts, skb);
  84. must_sched = (pkt->opcode == IB_OPCODE_RC_RDMA_READ_REQUEST) ||
  85. (skb_queue_len(&qp->req_pkts) > 1);
  86. if (must_sched)
  87. rxe_sched_task(&qp->resp.task);
  88. else
  89. rxe_run_task(&qp->resp.task);
  90. }
  91. static inline enum resp_states get_req(struct rxe_qp *qp,
  92. struct rxe_pkt_info **pkt_p)
  93. {
  94. struct sk_buff *skb;
  95. if (qp->resp.state == QP_STATE_ERROR) {
  96. while ((skb = skb_dequeue(&qp->req_pkts))) {
  97. rxe_put(qp);
  98. kfree_skb(skb);
  99. ib_device_put(qp->ibqp.device);
  100. }
  101. /* go drain recv wr queue */
  102. return RESPST_CHK_RESOURCE;
  103. }
  104. skb = skb_peek(&qp->req_pkts);
  105. if (!skb)
  106. return RESPST_EXIT;
  107. *pkt_p = SKB_TO_PKT(skb);
  108. return (qp->resp.res) ? RESPST_READ_REPLY : RESPST_CHK_PSN;
  109. }
  110. static enum resp_states check_psn(struct rxe_qp *qp,
  111. struct rxe_pkt_info *pkt)
  112. {
  113. int diff = psn_compare(pkt->psn, qp->resp.psn);
  114. struct rxe_dev *rxe = to_rdev(qp->ibqp.device);
  115. switch (qp_type(qp)) {
  116. case IB_QPT_RC:
  117. if (diff > 0) {
  118. if (qp->resp.sent_psn_nak)
  119. return RESPST_CLEANUP;
  120. qp->resp.sent_psn_nak = 1;
  121. rxe_counter_inc(rxe, RXE_CNT_OUT_OF_SEQ_REQ);
  122. return RESPST_ERR_PSN_OUT_OF_SEQ;
  123. } else if (diff < 0) {
  124. rxe_counter_inc(rxe, RXE_CNT_DUP_REQ);
  125. return RESPST_DUPLICATE_REQUEST;
  126. }
  127. if (qp->resp.sent_psn_nak)
  128. qp->resp.sent_psn_nak = 0;
  129. break;
  130. case IB_QPT_UC:
  131. if (qp->resp.drop_msg || diff != 0) {
  132. if (pkt->mask & RXE_START_MASK) {
  133. qp->resp.drop_msg = 0;
  134. return RESPST_CHK_OP_SEQ;
  135. }
  136. qp->resp.drop_msg = 1;
  137. return RESPST_CLEANUP;
  138. }
  139. break;
  140. default:
  141. break;
  142. }
  143. return RESPST_CHK_OP_SEQ;
  144. }
  145. static enum resp_states check_op_seq(struct rxe_qp *qp,
  146. struct rxe_pkt_info *pkt)
  147. {
  148. switch (qp_type(qp)) {
  149. case IB_QPT_RC:
  150. switch (qp->resp.opcode) {
  151. case IB_OPCODE_RC_SEND_FIRST:
  152. case IB_OPCODE_RC_SEND_MIDDLE:
  153. switch (pkt->opcode) {
  154. case IB_OPCODE_RC_SEND_MIDDLE:
  155. case IB_OPCODE_RC_SEND_LAST:
  156. case IB_OPCODE_RC_SEND_LAST_WITH_IMMEDIATE:
  157. case IB_OPCODE_RC_SEND_LAST_WITH_INVALIDATE:
  158. return RESPST_CHK_OP_VALID;
  159. default:
  160. return RESPST_ERR_MISSING_OPCODE_LAST_C;
  161. }
  162. case IB_OPCODE_RC_RDMA_WRITE_FIRST:
  163. case IB_OPCODE_RC_RDMA_WRITE_MIDDLE:
  164. switch (pkt->opcode) {
  165. case IB_OPCODE_RC_RDMA_WRITE_MIDDLE:
  166. case IB_OPCODE_RC_RDMA_WRITE_LAST:
  167. case IB_OPCODE_RC_RDMA_WRITE_LAST_WITH_IMMEDIATE:
  168. return RESPST_CHK_OP_VALID;
  169. default:
  170. return RESPST_ERR_MISSING_OPCODE_LAST_C;
  171. }
  172. default:
  173. switch (pkt->opcode) {
  174. case IB_OPCODE_RC_SEND_MIDDLE:
  175. case IB_OPCODE_RC_SEND_LAST:
  176. case IB_OPCODE_RC_SEND_LAST_WITH_IMMEDIATE:
  177. case IB_OPCODE_RC_SEND_LAST_WITH_INVALIDATE:
  178. case IB_OPCODE_RC_RDMA_WRITE_MIDDLE:
  179. case IB_OPCODE_RC_RDMA_WRITE_LAST:
  180. case IB_OPCODE_RC_RDMA_WRITE_LAST_WITH_IMMEDIATE:
  181. return RESPST_ERR_MISSING_OPCODE_FIRST;
  182. default:
  183. return RESPST_CHK_OP_VALID;
  184. }
  185. }
  186. break;
  187. case IB_QPT_UC:
  188. switch (qp->resp.opcode) {
  189. case IB_OPCODE_UC_SEND_FIRST:
  190. case IB_OPCODE_UC_SEND_MIDDLE:
  191. switch (pkt->opcode) {
  192. case IB_OPCODE_UC_SEND_MIDDLE:
  193. case IB_OPCODE_UC_SEND_LAST:
  194. case IB_OPCODE_UC_SEND_LAST_WITH_IMMEDIATE:
  195. return RESPST_CHK_OP_VALID;
  196. default:
  197. return RESPST_ERR_MISSING_OPCODE_LAST_D1E;
  198. }
  199. case IB_OPCODE_UC_RDMA_WRITE_FIRST:
  200. case IB_OPCODE_UC_RDMA_WRITE_MIDDLE:
  201. switch (pkt->opcode) {
  202. case IB_OPCODE_UC_RDMA_WRITE_MIDDLE:
  203. case IB_OPCODE_UC_RDMA_WRITE_LAST:
  204. case IB_OPCODE_UC_RDMA_WRITE_LAST_WITH_IMMEDIATE:
  205. return RESPST_CHK_OP_VALID;
  206. default:
  207. return RESPST_ERR_MISSING_OPCODE_LAST_D1E;
  208. }
  209. default:
  210. switch (pkt->opcode) {
  211. case IB_OPCODE_UC_SEND_MIDDLE:
  212. case IB_OPCODE_UC_SEND_LAST:
  213. case IB_OPCODE_UC_SEND_LAST_WITH_IMMEDIATE:
  214. case IB_OPCODE_UC_RDMA_WRITE_MIDDLE:
  215. case IB_OPCODE_UC_RDMA_WRITE_LAST:
  216. case IB_OPCODE_UC_RDMA_WRITE_LAST_WITH_IMMEDIATE:
  217. qp->resp.drop_msg = 1;
  218. return RESPST_CLEANUP;
  219. default:
  220. return RESPST_CHK_OP_VALID;
  221. }
  222. }
  223. break;
  224. default:
  225. return RESPST_CHK_OP_VALID;
  226. }
  227. }
  228. static enum resp_states check_op_valid(struct rxe_qp *qp,
  229. struct rxe_pkt_info *pkt)
  230. {
  231. switch (qp_type(qp)) {
  232. case IB_QPT_RC:
  233. if (((pkt->mask & RXE_READ_MASK) &&
  234. !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_READ)) ||
  235. ((pkt->mask & RXE_WRITE_MASK) &&
  236. !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_WRITE)) ||
  237. ((pkt->mask & RXE_ATOMIC_MASK) &&
  238. !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_ATOMIC))) {
  239. return RESPST_ERR_UNSUPPORTED_OPCODE;
  240. }
  241. break;
  242. case IB_QPT_UC:
  243. if ((pkt->mask & RXE_WRITE_MASK) &&
  244. !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_WRITE)) {
  245. qp->resp.drop_msg = 1;
  246. return RESPST_CLEANUP;
  247. }
  248. break;
  249. case IB_QPT_UD:
  250. case IB_QPT_GSI:
  251. break;
  252. default:
  253. WARN_ON_ONCE(1);
  254. break;
  255. }
  256. return RESPST_CHK_RESOURCE;
  257. }
  258. static enum resp_states get_srq_wqe(struct rxe_qp *qp)
  259. {
  260. struct rxe_srq *srq = qp->srq;
  261. struct rxe_queue *q = srq->rq.queue;
  262. struct rxe_recv_wqe *wqe;
  263. struct ib_event ev;
  264. unsigned int count;
  265. size_t size;
  266. unsigned long flags;
  267. if (srq->error)
  268. return RESPST_ERR_RNR;
  269. spin_lock_irqsave(&srq->rq.consumer_lock, flags);
  270. wqe = queue_head(q, QUEUE_TYPE_FROM_CLIENT);
  271. if (!wqe) {
  272. spin_unlock_irqrestore(&srq->rq.consumer_lock, flags);
  273. return RESPST_ERR_RNR;
  274. }
  275. /* don't trust user space data */
  276. if (unlikely(wqe->dma.num_sge > srq->rq.max_sge)) {
  277. spin_unlock_irqrestore(&srq->rq.consumer_lock, flags);
  278. pr_warn("%s: invalid num_sge in SRQ entry\n", __func__);
  279. return RESPST_ERR_MALFORMED_WQE;
  280. }
  281. size = sizeof(*wqe) + wqe->dma.num_sge*sizeof(struct rxe_sge);
  282. memcpy(&qp->resp.srq_wqe, wqe, size);
  283. qp->resp.wqe = &qp->resp.srq_wqe.wqe;
  284. queue_advance_consumer(q, QUEUE_TYPE_FROM_CLIENT);
  285. count = queue_count(q, QUEUE_TYPE_FROM_CLIENT);
  286. if (srq->limit && srq->ibsrq.event_handler && (count < srq->limit)) {
  287. srq->limit = 0;
  288. goto event;
  289. }
  290. spin_unlock_irqrestore(&srq->rq.consumer_lock, flags);
  291. return RESPST_CHK_LENGTH;
  292. event:
  293. spin_unlock_irqrestore(&srq->rq.consumer_lock, flags);
  294. ev.device = qp->ibqp.device;
  295. ev.element.srq = qp->ibqp.srq;
  296. ev.event = IB_EVENT_SRQ_LIMIT_REACHED;
  297. srq->ibsrq.event_handler(&ev, srq->ibsrq.srq_context);
  298. return RESPST_CHK_LENGTH;
  299. }
  300. static enum resp_states check_resource(struct rxe_qp *qp,
  301. struct rxe_pkt_info *pkt)
  302. {
  303. struct rxe_srq *srq = qp->srq;
  304. if (qp->resp.state == QP_STATE_ERROR) {
  305. if (qp->resp.wqe) {
  306. qp->resp.status = IB_WC_WR_FLUSH_ERR;
  307. return RESPST_COMPLETE;
  308. } else if (!srq) {
  309. qp->resp.wqe = queue_head(qp->rq.queue,
  310. QUEUE_TYPE_FROM_CLIENT);
  311. if (qp->resp.wqe) {
  312. qp->resp.status = IB_WC_WR_FLUSH_ERR;
  313. return RESPST_COMPLETE;
  314. } else {
  315. return RESPST_EXIT;
  316. }
  317. } else {
  318. return RESPST_EXIT;
  319. }
  320. }
  321. if (pkt->mask & RXE_READ_OR_ATOMIC_MASK) {
  322. /* it is the requesters job to not send
  323. * too many read/atomic ops, we just
  324. * recycle the responder resource queue
  325. */
  326. if (likely(qp->attr.max_dest_rd_atomic > 0))
  327. return RESPST_CHK_LENGTH;
  328. else
  329. return RESPST_ERR_TOO_MANY_RDMA_ATM_REQ;
  330. }
  331. if (pkt->mask & RXE_RWR_MASK) {
  332. if (srq)
  333. return get_srq_wqe(qp);
  334. qp->resp.wqe = queue_head(qp->rq.queue,
  335. QUEUE_TYPE_FROM_CLIENT);
  336. return (qp->resp.wqe) ? RESPST_CHK_LENGTH : RESPST_ERR_RNR;
  337. }
  338. return RESPST_CHK_LENGTH;
  339. }
  340. static enum resp_states check_length(struct rxe_qp *qp,
  341. struct rxe_pkt_info *pkt)
  342. {
  343. switch (qp_type(qp)) {
  344. case IB_QPT_RC:
  345. return RESPST_CHK_RKEY;
  346. case IB_QPT_UC:
  347. return RESPST_CHK_RKEY;
  348. default:
  349. return RESPST_CHK_RKEY;
  350. }
  351. }
  352. static enum resp_states check_rkey(struct rxe_qp *qp,
  353. struct rxe_pkt_info *pkt)
  354. {
  355. struct rxe_mr *mr = NULL;
  356. struct rxe_mw *mw = NULL;
  357. u64 va;
  358. u32 rkey;
  359. u32 resid;
  360. u32 pktlen;
  361. int mtu = qp->mtu;
  362. enum resp_states state;
  363. int access;
  364. if (pkt->mask & RXE_READ_OR_WRITE_MASK) {
  365. if (pkt->mask & RXE_RETH_MASK) {
  366. qp->resp.va = reth_va(pkt);
  367. qp->resp.offset = 0;
  368. qp->resp.rkey = reth_rkey(pkt);
  369. qp->resp.resid = reth_len(pkt);
  370. qp->resp.length = reth_len(pkt);
  371. }
  372. access = (pkt->mask & RXE_READ_MASK) ? IB_ACCESS_REMOTE_READ
  373. : IB_ACCESS_REMOTE_WRITE;
  374. } else if (pkt->mask & RXE_ATOMIC_MASK) {
  375. qp->resp.va = atmeth_va(pkt);
  376. qp->resp.offset = 0;
  377. qp->resp.rkey = atmeth_rkey(pkt);
  378. qp->resp.resid = sizeof(u64);
  379. access = IB_ACCESS_REMOTE_ATOMIC;
  380. } else {
  381. return RESPST_EXECUTE;
  382. }
  383. /* A zero-byte op is not required to set an addr or rkey. */
  384. if ((pkt->mask & RXE_READ_OR_WRITE_MASK) &&
  385. (pkt->mask & RXE_RETH_MASK) &&
  386. reth_len(pkt) == 0) {
  387. return RESPST_EXECUTE;
  388. }
  389. va = qp->resp.va;
  390. rkey = qp->resp.rkey;
  391. resid = qp->resp.resid;
  392. pktlen = payload_size(pkt);
  393. if (rkey_is_mw(rkey)) {
  394. mw = rxe_lookup_mw(qp, access, rkey);
  395. if (!mw) {
  396. pr_debug("%s: no MW matches rkey %#x\n",
  397. __func__, rkey);
  398. state = RESPST_ERR_RKEY_VIOLATION;
  399. goto err;
  400. }
  401. mr = mw->mr;
  402. if (!mr) {
  403. pr_err("%s: MW doesn't have an MR\n", __func__);
  404. state = RESPST_ERR_RKEY_VIOLATION;
  405. goto err;
  406. }
  407. if (mw->access & IB_ZERO_BASED)
  408. qp->resp.offset = mw->addr;
  409. rxe_get(mr);
  410. rxe_put(mw);
  411. mw = NULL;
  412. } else {
  413. mr = lookup_mr(qp->pd, access, rkey, RXE_LOOKUP_REMOTE);
  414. if (!mr) {
  415. pr_debug("%s: no MR matches rkey %#x\n",
  416. __func__, rkey);
  417. state = RESPST_ERR_RKEY_VIOLATION;
  418. goto err;
  419. }
  420. }
  421. if (mr_check_range(mr, va + qp->resp.offset, resid)) {
  422. state = RESPST_ERR_RKEY_VIOLATION;
  423. goto err;
  424. }
  425. if (pkt->mask & RXE_WRITE_MASK) {
  426. if (resid > mtu) {
  427. if (pktlen != mtu || bth_pad(pkt)) {
  428. state = RESPST_ERR_LENGTH;
  429. goto err;
  430. }
  431. } else {
  432. if (pktlen != resid) {
  433. state = RESPST_ERR_LENGTH;
  434. goto err;
  435. }
  436. if ((bth_pad(pkt) != (0x3 & (-resid)))) {
  437. /* This case may not be exactly that
  438. * but nothing else fits.
  439. */
  440. state = RESPST_ERR_LENGTH;
  441. goto err;
  442. }
  443. }
  444. }
  445. WARN_ON_ONCE(qp->resp.mr);
  446. qp->resp.mr = mr;
  447. return RESPST_EXECUTE;
  448. err:
  449. if (mr)
  450. rxe_put(mr);
  451. if (mw)
  452. rxe_put(mw);
  453. return state;
  454. }
  455. static enum resp_states send_data_in(struct rxe_qp *qp, void *data_addr,
  456. int data_len)
  457. {
  458. int err;
  459. err = copy_data(qp->pd, IB_ACCESS_LOCAL_WRITE, &qp->resp.wqe->dma,
  460. data_addr, data_len, RXE_TO_MR_OBJ);
  461. if (unlikely(err))
  462. return (err == -ENOSPC) ? RESPST_ERR_LENGTH
  463. : RESPST_ERR_MALFORMED_WQE;
  464. return RESPST_NONE;
  465. }
  466. static enum resp_states write_data_in(struct rxe_qp *qp,
  467. struct rxe_pkt_info *pkt)
  468. {
  469. enum resp_states rc = RESPST_NONE;
  470. int err;
  471. int data_len = payload_size(pkt);
  472. err = rxe_mr_copy(qp->resp.mr, qp->resp.va + qp->resp.offset,
  473. payload_addr(pkt), data_len, RXE_TO_MR_OBJ);
  474. if (err) {
  475. rc = RESPST_ERR_RKEY_VIOLATION;
  476. goto out;
  477. }
  478. qp->resp.va += data_len;
  479. qp->resp.resid -= data_len;
  480. out:
  481. return rc;
  482. }
  483. static struct resp_res *rxe_prepare_res(struct rxe_qp *qp,
  484. struct rxe_pkt_info *pkt,
  485. int type)
  486. {
  487. struct resp_res *res;
  488. u32 pkts;
  489. res = &qp->resp.resources[qp->resp.res_head];
  490. rxe_advance_resp_resource(qp);
  491. free_rd_atomic_resource(res);
  492. res->type = type;
  493. res->replay = 0;
  494. switch (type) {
  495. case RXE_READ_MASK:
  496. res->read.va = qp->resp.va + qp->resp.offset;
  497. res->read.va_org = qp->resp.va + qp->resp.offset;
  498. res->read.resid = qp->resp.resid;
  499. res->read.length = qp->resp.resid;
  500. res->read.rkey = qp->resp.rkey;
  501. pkts = max_t(u32, (reth_len(pkt) + qp->mtu - 1)/qp->mtu, 1);
  502. res->first_psn = pkt->psn;
  503. res->cur_psn = pkt->psn;
  504. res->last_psn = (pkt->psn + pkts - 1) & BTH_PSN_MASK;
  505. res->state = rdatm_res_state_new;
  506. break;
  507. case RXE_ATOMIC_MASK:
  508. res->first_psn = pkt->psn;
  509. res->last_psn = pkt->psn;
  510. res->cur_psn = pkt->psn;
  511. break;
  512. }
  513. return res;
  514. }
  515. /* Guarantee atomicity of atomic operations at the machine level. */
  516. static DEFINE_SPINLOCK(atomic_ops_lock);
  517. static enum resp_states atomic_reply(struct rxe_qp *qp,
  518. struct rxe_pkt_info *pkt)
  519. {
  520. u64 *vaddr;
  521. enum resp_states ret;
  522. struct rxe_mr *mr = qp->resp.mr;
  523. struct resp_res *res = qp->resp.res;
  524. u64 value;
  525. if (!res) {
  526. res = rxe_prepare_res(qp, pkt, RXE_ATOMIC_MASK);
  527. qp->resp.res = res;
  528. }
  529. if (!res->replay) {
  530. if (mr->state != RXE_MR_STATE_VALID) {
  531. ret = RESPST_ERR_RKEY_VIOLATION;
  532. goto out;
  533. }
  534. vaddr = iova_to_vaddr(mr, qp->resp.va + qp->resp.offset,
  535. sizeof(u64));
  536. /* check vaddr is 8 bytes aligned. */
  537. if (!vaddr || (uintptr_t)vaddr & 7) {
  538. ret = RESPST_ERR_MISALIGNED_ATOMIC;
  539. goto out;
  540. }
  541. spin_lock_bh(&atomic_ops_lock);
  542. res->atomic.orig_val = value = *vaddr;
  543. if (pkt->opcode == IB_OPCODE_RC_COMPARE_SWAP) {
  544. if (value == atmeth_comp(pkt))
  545. value = atmeth_swap_add(pkt);
  546. } else {
  547. value += atmeth_swap_add(pkt);
  548. }
  549. *vaddr = value;
  550. spin_unlock_bh(&atomic_ops_lock);
  551. qp->resp.msn++;
  552. /* next expected psn, read handles this separately */
  553. qp->resp.psn = (pkt->psn + 1) & BTH_PSN_MASK;
  554. qp->resp.ack_psn = qp->resp.psn;
  555. qp->resp.opcode = pkt->opcode;
  556. qp->resp.status = IB_WC_SUCCESS;
  557. }
  558. ret = RESPST_ACKNOWLEDGE;
  559. out:
  560. return ret;
  561. }
  562. static struct sk_buff *prepare_ack_packet(struct rxe_qp *qp,
  563. struct rxe_pkt_info *ack,
  564. int opcode,
  565. int payload,
  566. u32 psn,
  567. u8 syndrome)
  568. {
  569. struct rxe_dev *rxe = to_rdev(qp->ibqp.device);
  570. struct sk_buff *skb;
  571. int paylen;
  572. int pad;
  573. int err;
  574. /*
  575. * allocate packet
  576. */
  577. pad = (-payload) & 0x3;
  578. paylen = rxe_opcode[opcode].length + payload + pad + RXE_ICRC_SIZE;
  579. skb = rxe_init_packet(rxe, &qp->pri_av, paylen, ack);
  580. if (!skb)
  581. return NULL;
  582. ack->qp = qp;
  583. ack->opcode = opcode;
  584. ack->mask = rxe_opcode[opcode].mask;
  585. ack->paylen = paylen;
  586. ack->psn = psn;
  587. bth_init(ack, opcode, 0, 0, pad, IB_DEFAULT_PKEY_FULL,
  588. qp->attr.dest_qp_num, 0, psn);
  589. if (ack->mask & RXE_AETH_MASK) {
  590. aeth_set_syn(ack, syndrome);
  591. aeth_set_msn(ack, qp->resp.msn);
  592. }
  593. if (ack->mask & RXE_ATMACK_MASK)
  594. atmack_set_orig(ack, qp->resp.res->atomic.orig_val);
  595. err = rxe_prepare(&qp->pri_av, ack, skb);
  596. if (err) {
  597. kfree_skb(skb);
  598. return NULL;
  599. }
  600. return skb;
  601. }
  602. /**
  603. * rxe_recheck_mr - revalidate MR from rkey and get a reference
  604. * @qp: the qp
  605. * @rkey: the rkey
  606. *
  607. * This code allows the MR to be invalidated or deregistered or
  608. * the MW if one was used to be invalidated or deallocated.
  609. * It is assumed that the access permissions if originally good
  610. * are OK and the mappings to be unchanged.
  611. *
  612. * TODO: If someone reregisters an MR to change its size or
  613. * access permissions during the processing of an RDMA read
  614. * we should kill the responder resource and complete the
  615. * operation with an error.
  616. *
  617. * Return: mr on success else NULL
  618. */
  619. static struct rxe_mr *rxe_recheck_mr(struct rxe_qp *qp, u32 rkey)
  620. {
  621. struct rxe_dev *rxe = to_rdev(qp->ibqp.device);
  622. struct rxe_mr *mr;
  623. struct rxe_mw *mw;
  624. if (rkey_is_mw(rkey)) {
  625. mw = rxe_pool_get_index(&rxe->mw_pool, rkey >> 8);
  626. if (!mw)
  627. return NULL;
  628. mr = mw->mr;
  629. if (mw->rkey != rkey || mw->state != RXE_MW_STATE_VALID ||
  630. !mr || mr->state != RXE_MR_STATE_VALID) {
  631. rxe_put(mw);
  632. return NULL;
  633. }
  634. rxe_get(mr);
  635. rxe_put(mw);
  636. return mr;
  637. }
  638. mr = rxe_pool_get_index(&rxe->mr_pool, rkey >> 8);
  639. if (!mr)
  640. return NULL;
  641. if (mr->rkey != rkey || mr->state != RXE_MR_STATE_VALID) {
  642. rxe_put(mr);
  643. return NULL;
  644. }
  645. return mr;
  646. }
  647. /* RDMA read response. If res is not NULL, then we have a current RDMA request
  648. * being processed or replayed.
  649. */
  650. static enum resp_states read_reply(struct rxe_qp *qp,
  651. struct rxe_pkt_info *req_pkt)
  652. {
  653. struct rxe_pkt_info ack_pkt;
  654. struct sk_buff *skb;
  655. int mtu = qp->mtu;
  656. enum resp_states state;
  657. int payload;
  658. int opcode;
  659. int err;
  660. struct resp_res *res = qp->resp.res;
  661. struct rxe_mr *mr;
  662. if (!res) {
  663. res = rxe_prepare_res(qp, req_pkt, RXE_READ_MASK);
  664. qp->resp.res = res;
  665. }
  666. if (res->state == rdatm_res_state_new) {
  667. if (!res->replay) {
  668. mr = qp->resp.mr;
  669. qp->resp.mr = NULL;
  670. } else {
  671. mr = rxe_recheck_mr(qp, res->read.rkey);
  672. if (!mr)
  673. return RESPST_ERR_RKEY_VIOLATION;
  674. }
  675. if (res->read.resid <= mtu)
  676. opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_ONLY;
  677. else
  678. opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_FIRST;
  679. } else {
  680. mr = rxe_recheck_mr(qp, res->read.rkey);
  681. if (!mr)
  682. return RESPST_ERR_RKEY_VIOLATION;
  683. if (res->read.resid > mtu)
  684. opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_MIDDLE;
  685. else
  686. opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_LAST;
  687. }
  688. res->state = rdatm_res_state_next;
  689. payload = min_t(int, res->read.resid, mtu);
  690. skb = prepare_ack_packet(qp, &ack_pkt, opcode, payload,
  691. res->cur_psn, AETH_ACK_UNLIMITED);
  692. if (!skb) {
  693. rxe_put(mr);
  694. return RESPST_ERR_RNR;
  695. }
  696. rxe_mr_copy(mr, res->read.va, payload_addr(&ack_pkt),
  697. payload, RXE_FROM_MR_OBJ);
  698. if (mr)
  699. rxe_put(mr);
  700. if (bth_pad(&ack_pkt)) {
  701. u8 *pad = payload_addr(&ack_pkt) + payload;
  702. memset(pad, 0, bth_pad(&ack_pkt));
  703. }
  704. err = rxe_xmit_packet(qp, &ack_pkt, skb);
  705. if (err)
  706. return RESPST_ERR_RNR;
  707. res->read.va += payload;
  708. res->read.resid -= payload;
  709. res->cur_psn = (res->cur_psn + 1) & BTH_PSN_MASK;
  710. if (res->read.resid > 0) {
  711. state = RESPST_DONE;
  712. } else {
  713. qp->resp.res = NULL;
  714. if (!res->replay)
  715. qp->resp.opcode = -1;
  716. if (psn_compare(res->cur_psn, qp->resp.psn) >= 0)
  717. qp->resp.psn = res->cur_psn;
  718. state = RESPST_CLEANUP;
  719. }
  720. return state;
  721. }
  722. static int invalidate_rkey(struct rxe_qp *qp, u32 rkey)
  723. {
  724. if (rkey_is_mw(rkey))
  725. return rxe_invalidate_mw(qp, rkey);
  726. else
  727. return rxe_invalidate_mr(qp, rkey);
  728. }
  729. /* Executes a new request. A retried request never reach that function (send
  730. * and writes are discarded, and reads and atomics are retried elsewhere.
  731. */
  732. static enum resp_states execute(struct rxe_qp *qp, struct rxe_pkt_info *pkt)
  733. {
  734. enum resp_states err;
  735. struct sk_buff *skb = PKT_TO_SKB(pkt);
  736. union rdma_network_hdr hdr;
  737. if (pkt->mask & RXE_SEND_MASK) {
  738. if (qp_type(qp) == IB_QPT_UD ||
  739. qp_type(qp) == IB_QPT_GSI) {
  740. if (skb->protocol == htons(ETH_P_IP)) {
  741. memset(&hdr.reserved, 0,
  742. sizeof(hdr.reserved));
  743. memcpy(&hdr.roce4grh, ip_hdr(skb),
  744. sizeof(hdr.roce4grh));
  745. err = send_data_in(qp, &hdr, sizeof(hdr));
  746. } else {
  747. err = send_data_in(qp, ipv6_hdr(skb),
  748. sizeof(hdr));
  749. }
  750. if (err)
  751. return err;
  752. }
  753. err = send_data_in(qp, payload_addr(pkt), payload_size(pkt));
  754. if (err)
  755. return err;
  756. } else if (pkt->mask & RXE_WRITE_MASK) {
  757. err = write_data_in(qp, pkt);
  758. if (err)
  759. return err;
  760. } else if (pkt->mask & RXE_READ_MASK) {
  761. /* For RDMA Read we can increment the msn now. See C9-148. */
  762. qp->resp.msn++;
  763. return RESPST_READ_REPLY;
  764. } else if (pkt->mask & RXE_ATOMIC_MASK) {
  765. return RESPST_ATOMIC_REPLY;
  766. } else {
  767. /* Unreachable */
  768. WARN_ON_ONCE(1);
  769. }
  770. if (pkt->mask & RXE_IETH_MASK) {
  771. u32 rkey = ieth_rkey(pkt);
  772. err = invalidate_rkey(qp, rkey);
  773. if (err)
  774. return RESPST_ERR_INVALIDATE_RKEY;
  775. }
  776. if (pkt->mask & RXE_END_MASK)
  777. /* We successfully processed this new request. */
  778. qp->resp.msn++;
  779. /* next expected psn, read handles this separately */
  780. qp->resp.psn = (pkt->psn + 1) & BTH_PSN_MASK;
  781. qp->resp.ack_psn = qp->resp.psn;
  782. qp->resp.opcode = pkt->opcode;
  783. qp->resp.status = IB_WC_SUCCESS;
  784. if (pkt->mask & RXE_COMP_MASK)
  785. return RESPST_COMPLETE;
  786. else if (qp_type(qp) == IB_QPT_RC)
  787. return RESPST_ACKNOWLEDGE;
  788. else
  789. return RESPST_CLEANUP;
  790. }
  791. static enum resp_states do_complete(struct rxe_qp *qp,
  792. struct rxe_pkt_info *pkt)
  793. {
  794. struct rxe_cqe cqe;
  795. struct ib_wc *wc = &cqe.ibwc;
  796. struct ib_uverbs_wc *uwc = &cqe.uibwc;
  797. struct rxe_recv_wqe *wqe = qp->resp.wqe;
  798. struct rxe_dev *rxe = to_rdev(qp->ibqp.device);
  799. if (!wqe)
  800. goto finish;
  801. memset(&cqe, 0, sizeof(cqe));
  802. if (qp->rcq->is_user) {
  803. uwc->status = qp->resp.status;
  804. uwc->qp_num = qp->ibqp.qp_num;
  805. uwc->wr_id = wqe->wr_id;
  806. } else {
  807. wc->status = qp->resp.status;
  808. wc->qp = &qp->ibqp;
  809. wc->wr_id = wqe->wr_id;
  810. }
  811. if (wc->status == IB_WC_SUCCESS) {
  812. rxe_counter_inc(rxe, RXE_CNT_RDMA_RECV);
  813. wc->opcode = (pkt->mask & RXE_IMMDT_MASK &&
  814. pkt->mask & RXE_WRITE_MASK) ?
  815. IB_WC_RECV_RDMA_WITH_IMM : IB_WC_RECV;
  816. wc->byte_len = (pkt->mask & RXE_IMMDT_MASK &&
  817. pkt->mask & RXE_WRITE_MASK) ?
  818. qp->resp.length : wqe->dma.length - wqe->dma.resid;
  819. /* fields after byte_len are different between kernel and user
  820. * space
  821. */
  822. if (qp->rcq->is_user) {
  823. uwc->wc_flags = IB_WC_GRH;
  824. if (pkt->mask & RXE_IMMDT_MASK) {
  825. uwc->wc_flags |= IB_WC_WITH_IMM;
  826. uwc->ex.imm_data = immdt_imm(pkt);
  827. }
  828. if (pkt->mask & RXE_IETH_MASK) {
  829. uwc->wc_flags |= IB_WC_WITH_INVALIDATE;
  830. uwc->ex.invalidate_rkey = ieth_rkey(pkt);
  831. }
  832. if (pkt->mask & RXE_DETH_MASK)
  833. uwc->src_qp = deth_sqp(pkt);
  834. uwc->port_num = qp->attr.port_num;
  835. } else {
  836. struct sk_buff *skb = PKT_TO_SKB(pkt);
  837. wc->wc_flags = IB_WC_GRH | IB_WC_WITH_NETWORK_HDR_TYPE;
  838. if (skb->protocol == htons(ETH_P_IP))
  839. wc->network_hdr_type = RDMA_NETWORK_IPV4;
  840. else
  841. wc->network_hdr_type = RDMA_NETWORK_IPV6;
  842. if (is_vlan_dev(skb->dev)) {
  843. wc->wc_flags |= IB_WC_WITH_VLAN;
  844. wc->vlan_id = vlan_dev_vlan_id(skb->dev);
  845. }
  846. if (pkt->mask & RXE_IMMDT_MASK) {
  847. wc->wc_flags |= IB_WC_WITH_IMM;
  848. wc->ex.imm_data = immdt_imm(pkt);
  849. }
  850. if (pkt->mask & RXE_IETH_MASK) {
  851. wc->wc_flags |= IB_WC_WITH_INVALIDATE;
  852. wc->ex.invalidate_rkey = ieth_rkey(pkt);
  853. }
  854. if (pkt->mask & RXE_DETH_MASK)
  855. wc->src_qp = deth_sqp(pkt);
  856. wc->port_num = qp->attr.port_num;
  857. }
  858. }
  859. /* have copy for srq and reference for !srq */
  860. if (!qp->srq)
  861. queue_advance_consumer(qp->rq.queue, QUEUE_TYPE_FROM_CLIENT);
  862. qp->resp.wqe = NULL;
  863. if (rxe_cq_post(qp->rcq, &cqe, pkt ? bth_se(pkt) : 1))
  864. return RESPST_ERR_CQ_OVERFLOW;
  865. finish:
  866. if (unlikely(qp->resp.state == QP_STATE_ERROR))
  867. return RESPST_CHK_RESOURCE;
  868. if (unlikely(!pkt))
  869. return RESPST_DONE;
  870. if (qp_type(qp) == IB_QPT_RC)
  871. return RESPST_ACKNOWLEDGE;
  872. else
  873. return RESPST_CLEANUP;
  874. }
  875. static int send_common_ack(struct rxe_qp *qp, u8 syndrome, u32 psn,
  876. int opcode, const char *msg)
  877. {
  878. int err;
  879. struct rxe_pkt_info ack_pkt;
  880. struct sk_buff *skb;
  881. skb = prepare_ack_packet(qp, &ack_pkt, opcode, 0, psn, syndrome);
  882. if (!skb)
  883. return -ENOMEM;
  884. err = rxe_xmit_packet(qp, &ack_pkt, skb);
  885. if (err)
  886. pr_err_ratelimited("Failed sending %s\n", msg);
  887. return err;
  888. }
  889. static int send_ack(struct rxe_qp *qp, u8 syndrome, u32 psn)
  890. {
  891. return send_common_ack(qp, syndrome, psn,
  892. IB_OPCODE_RC_ACKNOWLEDGE, "ACK");
  893. }
  894. static int send_atomic_ack(struct rxe_qp *qp, u8 syndrome, u32 psn)
  895. {
  896. int ret = send_common_ack(qp, syndrome, psn,
  897. IB_OPCODE_RC_ATOMIC_ACKNOWLEDGE, "ATOMIC ACK");
  898. /* have to clear this since it is used to trigger
  899. * long read replies
  900. */
  901. qp->resp.res = NULL;
  902. return ret;
  903. }
  904. static enum resp_states acknowledge(struct rxe_qp *qp,
  905. struct rxe_pkt_info *pkt)
  906. {
  907. if (qp_type(qp) != IB_QPT_RC)
  908. return RESPST_CLEANUP;
  909. if (qp->resp.aeth_syndrome != AETH_ACK_UNLIMITED)
  910. send_ack(qp, qp->resp.aeth_syndrome, pkt->psn);
  911. else if (pkt->mask & RXE_ATOMIC_MASK)
  912. send_atomic_ack(qp, AETH_ACK_UNLIMITED, pkt->psn);
  913. else if (bth_ack(pkt))
  914. send_ack(qp, AETH_ACK_UNLIMITED, pkt->psn);
  915. return RESPST_CLEANUP;
  916. }
  917. static enum resp_states cleanup(struct rxe_qp *qp,
  918. struct rxe_pkt_info *pkt)
  919. {
  920. struct sk_buff *skb;
  921. if (pkt) {
  922. skb = skb_dequeue(&qp->req_pkts);
  923. rxe_put(qp);
  924. kfree_skb(skb);
  925. ib_device_put(qp->ibqp.device);
  926. }
  927. if (qp->resp.mr) {
  928. rxe_put(qp->resp.mr);
  929. qp->resp.mr = NULL;
  930. }
  931. return RESPST_DONE;
  932. }
  933. static struct resp_res *find_resource(struct rxe_qp *qp, u32 psn)
  934. {
  935. int i;
  936. for (i = 0; i < qp->attr.max_dest_rd_atomic; i++) {
  937. struct resp_res *res = &qp->resp.resources[i];
  938. if (res->type == 0)
  939. continue;
  940. if (psn_compare(psn, res->first_psn) >= 0 &&
  941. psn_compare(psn, res->last_psn) <= 0) {
  942. return res;
  943. }
  944. }
  945. return NULL;
  946. }
  947. static enum resp_states duplicate_request(struct rxe_qp *qp,
  948. struct rxe_pkt_info *pkt)
  949. {
  950. enum resp_states rc;
  951. u32 prev_psn = (qp->resp.ack_psn - 1) & BTH_PSN_MASK;
  952. if (pkt->mask & RXE_SEND_MASK ||
  953. pkt->mask & RXE_WRITE_MASK) {
  954. /* SEND. Ack again and cleanup. C9-105. */
  955. send_ack(qp, AETH_ACK_UNLIMITED, prev_psn);
  956. return RESPST_CLEANUP;
  957. } else if (pkt->mask & RXE_READ_MASK) {
  958. struct resp_res *res;
  959. res = find_resource(qp, pkt->psn);
  960. if (!res) {
  961. /* Resource not found. Class D error. Drop the
  962. * request.
  963. */
  964. rc = RESPST_CLEANUP;
  965. goto out;
  966. } else {
  967. /* Ensure this new request is the same as the previous
  968. * one or a subset of it.
  969. */
  970. u64 iova = reth_va(pkt);
  971. u32 resid = reth_len(pkt);
  972. if (iova < res->read.va_org ||
  973. resid > res->read.length ||
  974. (iova + resid) > (res->read.va_org +
  975. res->read.length)) {
  976. rc = RESPST_CLEANUP;
  977. goto out;
  978. }
  979. if (reth_rkey(pkt) != res->read.rkey) {
  980. rc = RESPST_CLEANUP;
  981. goto out;
  982. }
  983. res->cur_psn = pkt->psn;
  984. res->state = (pkt->psn == res->first_psn) ?
  985. rdatm_res_state_new :
  986. rdatm_res_state_replay;
  987. res->replay = 1;
  988. /* Reset the resource, except length. */
  989. res->read.va_org = iova;
  990. res->read.va = iova;
  991. res->read.resid = resid;
  992. /* Replay the RDMA read reply. */
  993. qp->resp.res = res;
  994. rc = RESPST_READ_REPLY;
  995. goto out;
  996. }
  997. } else {
  998. struct resp_res *res;
  999. /* Find the operation in our list of responder resources. */
  1000. res = find_resource(qp, pkt->psn);
  1001. if (res) {
  1002. res->replay = 1;
  1003. res->cur_psn = pkt->psn;
  1004. qp->resp.res = res;
  1005. rc = RESPST_ATOMIC_REPLY;
  1006. goto out;
  1007. }
  1008. /* Resource not found. Class D error. Drop the request. */
  1009. rc = RESPST_CLEANUP;
  1010. goto out;
  1011. }
  1012. out:
  1013. return rc;
  1014. }
  1015. /* Process a class A or C. Both are treated the same in this implementation. */
  1016. static void do_class_ac_error(struct rxe_qp *qp, u8 syndrome,
  1017. enum ib_wc_status status)
  1018. {
  1019. qp->resp.aeth_syndrome = syndrome;
  1020. qp->resp.status = status;
  1021. /* indicate that we should go through the ERROR state */
  1022. qp->resp.goto_error = 1;
  1023. }
  1024. static enum resp_states do_class_d1e_error(struct rxe_qp *qp)
  1025. {
  1026. /* UC */
  1027. if (qp->srq) {
  1028. /* Class E */
  1029. qp->resp.drop_msg = 1;
  1030. if (qp->resp.wqe) {
  1031. qp->resp.status = IB_WC_REM_INV_REQ_ERR;
  1032. return RESPST_COMPLETE;
  1033. } else {
  1034. return RESPST_CLEANUP;
  1035. }
  1036. } else {
  1037. /* Class D1. This packet may be the start of a
  1038. * new message and could be valid. The previous
  1039. * message is invalid and ignored. reset the
  1040. * recv wr to its original state
  1041. */
  1042. if (qp->resp.wqe) {
  1043. qp->resp.wqe->dma.resid = qp->resp.wqe->dma.length;
  1044. qp->resp.wqe->dma.cur_sge = 0;
  1045. qp->resp.wqe->dma.sge_offset = 0;
  1046. qp->resp.opcode = -1;
  1047. }
  1048. if (qp->resp.mr) {
  1049. rxe_put(qp->resp.mr);
  1050. qp->resp.mr = NULL;
  1051. }
  1052. return RESPST_CLEANUP;
  1053. }
  1054. }
  1055. static void rxe_drain_req_pkts(struct rxe_qp *qp, bool notify)
  1056. {
  1057. struct sk_buff *skb;
  1058. struct rxe_queue *q = qp->rq.queue;
  1059. while ((skb = skb_dequeue(&qp->req_pkts))) {
  1060. rxe_put(qp);
  1061. kfree_skb(skb);
  1062. ib_device_put(qp->ibqp.device);
  1063. }
  1064. if (notify)
  1065. return;
  1066. while (!qp->srq && q && queue_head(q, q->type))
  1067. queue_advance_consumer(q, q->type);
  1068. }
  1069. int rxe_responder(void *arg)
  1070. {
  1071. struct rxe_qp *qp = (struct rxe_qp *)arg;
  1072. struct rxe_dev *rxe = to_rdev(qp->ibqp.device);
  1073. enum resp_states state;
  1074. struct rxe_pkt_info *pkt = NULL;
  1075. int ret;
  1076. if (!rxe_get(qp))
  1077. return -EAGAIN;
  1078. qp->resp.aeth_syndrome = AETH_ACK_UNLIMITED;
  1079. if (!qp->valid)
  1080. goto exit;
  1081. switch (qp->resp.state) {
  1082. case QP_STATE_RESET:
  1083. state = RESPST_RESET;
  1084. break;
  1085. default:
  1086. state = RESPST_GET_REQ;
  1087. break;
  1088. }
  1089. while (1) {
  1090. pr_debug("qp#%d state = %s\n", qp_num(qp),
  1091. resp_state_name[state]);
  1092. switch (state) {
  1093. case RESPST_GET_REQ:
  1094. state = get_req(qp, &pkt);
  1095. break;
  1096. case RESPST_CHK_PSN:
  1097. state = check_psn(qp, pkt);
  1098. break;
  1099. case RESPST_CHK_OP_SEQ:
  1100. state = check_op_seq(qp, pkt);
  1101. break;
  1102. case RESPST_CHK_OP_VALID:
  1103. state = check_op_valid(qp, pkt);
  1104. break;
  1105. case RESPST_CHK_RESOURCE:
  1106. state = check_resource(qp, pkt);
  1107. break;
  1108. case RESPST_CHK_LENGTH:
  1109. state = check_length(qp, pkt);
  1110. break;
  1111. case RESPST_CHK_RKEY:
  1112. state = check_rkey(qp, pkt);
  1113. break;
  1114. case RESPST_EXECUTE:
  1115. state = execute(qp, pkt);
  1116. break;
  1117. case RESPST_COMPLETE:
  1118. state = do_complete(qp, pkt);
  1119. break;
  1120. case RESPST_READ_REPLY:
  1121. state = read_reply(qp, pkt);
  1122. break;
  1123. case RESPST_ATOMIC_REPLY:
  1124. state = atomic_reply(qp, pkt);
  1125. break;
  1126. case RESPST_ACKNOWLEDGE:
  1127. state = acknowledge(qp, pkt);
  1128. break;
  1129. case RESPST_CLEANUP:
  1130. state = cleanup(qp, pkt);
  1131. break;
  1132. case RESPST_DUPLICATE_REQUEST:
  1133. state = duplicate_request(qp, pkt);
  1134. break;
  1135. case RESPST_ERR_PSN_OUT_OF_SEQ:
  1136. /* RC only - Class B. Drop packet. */
  1137. send_ack(qp, AETH_NAK_PSN_SEQ_ERROR, qp->resp.psn);
  1138. state = RESPST_CLEANUP;
  1139. break;
  1140. case RESPST_ERR_TOO_MANY_RDMA_ATM_REQ:
  1141. case RESPST_ERR_MISSING_OPCODE_FIRST:
  1142. case RESPST_ERR_MISSING_OPCODE_LAST_C:
  1143. case RESPST_ERR_UNSUPPORTED_OPCODE:
  1144. case RESPST_ERR_MISALIGNED_ATOMIC:
  1145. /* RC Only - Class C. */
  1146. do_class_ac_error(qp, AETH_NAK_INVALID_REQ,
  1147. IB_WC_REM_INV_REQ_ERR);
  1148. state = RESPST_COMPLETE;
  1149. break;
  1150. case RESPST_ERR_MISSING_OPCODE_LAST_D1E:
  1151. state = do_class_d1e_error(qp);
  1152. break;
  1153. case RESPST_ERR_RNR:
  1154. if (qp_type(qp) == IB_QPT_RC) {
  1155. rxe_counter_inc(rxe, RXE_CNT_SND_RNR);
  1156. /* RC - class B */
  1157. send_ack(qp, AETH_RNR_NAK |
  1158. (~AETH_TYPE_MASK &
  1159. qp->attr.min_rnr_timer),
  1160. pkt->psn);
  1161. } else {
  1162. /* UD/UC - class D */
  1163. qp->resp.drop_msg = 1;
  1164. }
  1165. state = RESPST_CLEANUP;
  1166. break;
  1167. case RESPST_ERR_RKEY_VIOLATION:
  1168. if (qp_type(qp) == IB_QPT_RC) {
  1169. /* Class C */
  1170. do_class_ac_error(qp, AETH_NAK_REM_ACC_ERR,
  1171. IB_WC_REM_ACCESS_ERR);
  1172. state = RESPST_COMPLETE;
  1173. } else {
  1174. qp->resp.drop_msg = 1;
  1175. if (qp->srq) {
  1176. /* UC/SRQ Class D */
  1177. qp->resp.status = IB_WC_REM_ACCESS_ERR;
  1178. state = RESPST_COMPLETE;
  1179. } else {
  1180. /* UC/non-SRQ Class E. */
  1181. state = RESPST_CLEANUP;
  1182. }
  1183. }
  1184. break;
  1185. case RESPST_ERR_INVALIDATE_RKEY:
  1186. /* RC - Class J. */
  1187. qp->resp.goto_error = 1;
  1188. qp->resp.status = IB_WC_REM_INV_REQ_ERR;
  1189. state = RESPST_COMPLETE;
  1190. break;
  1191. case RESPST_ERR_LENGTH:
  1192. if (qp_type(qp) == IB_QPT_RC) {
  1193. /* Class C */
  1194. do_class_ac_error(qp, AETH_NAK_INVALID_REQ,
  1195. IB_WC_REM_INV_REQ_ERR);
  1196. state = RESPST_COMPLETE;
  1197. } else if (qp->srq) {
  1198. /* UC/UD - class E */
  1199. qp->resp.status = IB_WC_REM_INV_REQ_ERR;
  1200. state = RESPST_COMPLETE;
  1201. } else {
  1202. /* UC/UD - class D */
  1203. qp->resp.drop_msg = 1;
  1204. state = RESPST_CLEANUP;
  1205. }
  1206. break;
  1207. case RESPST_ERR_MALFORMED_WQE:
  1208. /* All, Class A. */
  1209. do_class_ac_error(qp, AETH_NAK_REM_OP_ERR,
  1210. IB_WC_LOC_QP_OP_ERR);
  1211. state = RESPST_COMPLETE;
  1212. break;
  1213. case RESPST_ERR_CQ_OVERFLOW:
  1214. /* All - Class G */
  1215. state = RESPST_ERROR;
  1216. break;
  1217. case RESPST_DONE:
  1218. if (qp->resp.goto_error) {
  1219. state = RESPST_ERROR;
  1220. break;
  1221. }
  1222. goto done;
  1223. case RESPST_EXIT:
  1224. if (qp->resp.goto_error) {
  1225. state = RESPST_ERROR;
  1226. break;
  1227. }
  1228. goto exit;
  1229. case RESPST_RESET:
  1230. rxe_drain_req_pkts(qp, false);
  1231. qp->resp.wqe = NULL;
  1232. goto exit;
  1233. case RESPST_ERROR:
  1234. qp->resp.goto_error = 0;
  1235. pr_debug("qp#%d moved to error state\n", qp_num(qp));
  1236. rxe_qp_error(qp);
  1237. goto exit;
  1238. default:
  1239. WARN_ON_ONCE(1);
  1240. }
  1241. }
  1242. /* A non-zero return value will cause rxe_do_task to
  1243. * exit its loop and end the tasklet. A zero return
  1244. * will continue looping and return to rxe_responder
  1245. */
  1246. done:
  1247. ret = 0;
  1248. goto out;
  1249. exit:
  1250. ret = -EAGAIN;
  1251. out:
  1252. rxe_put(qp);
  1253. return ret;
  1254. }