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 7 #include <linux/skbuff.h> 8 9 #include "rxe.h" 10 #include "rxe_loc.h" 11 #include "rxe_queue.h" 12 13 enum resp_states { 14 RESPST_NONE, 15 RESPST_GET_REQ, 16 RESPST_CHK_PSN, 17 RESPST_CHK_OP_SEQ, 18 RESPST_CHK_OP_VALID, 19 RESPST_CHK_RESOURCE, 20 RESPST_CHK_LENGTH, 21 RESPST_CHK_RKEY, 22 RESPST_EXECUTE, 23 RESPST_READ_REPLY, 24 RESPST_COMPLETE, 25 RESPST_ACKNOWLEDGE, 26 RESPST_CLEANUP, 27 RESPST_DUPLICATE_REQUEST, 28 RESPST_ERR_MALFORMED_WQE, 29 RESPST_ERR_UNSUPPORTED_OPCODE, 30 RESPST_ERR_MISALIGNED_ATOMIC, 31 RESPST_ERR_PSN_OUT_OF_SEQ, 32 RESPST_ERR_MISSING_OPCODE_FIRST, 33 RESPST_ERR_MISSING_OPCODE_LAST_C, 34 RESPST_ERR_MISSING_OPCODE_LAST_D1E, 35 RESPST_ERR_TOO_MANY_RDMA_ATM_REQ, 36 RESPST_ERR_RNR, 37 RESPST_ERR_RKEY_VIOLATION, 38 RESPST_ERR_INVALIDATE_RKEY, 39 RESPST_ERR_LENGTH, 40 RESPST_ERR_CQ_OVERFLOW, 41 RESPST_ERROR, 42 RESPST_RESET, 43 RESPST_DONE, 44 RESPST_EXIT, 45 }; 46 47 static char *resp_state_name[] = { 48 [RESPST_NONE] = "NONE", 49 [RESPST_GET_REQ] = "GET_REQ", 50 [RESPST_CHK_PSN] = "CHK_PSN", 51 [RESPST_CHK_OP_SEQ] = "CHK_OP_SEQ", 52 [RESPST_CHK_OP_VALID] = "CHK_OP_VALID", 53 [RESPST_CHK_RESOURCE] = "CHK_RESOURCE", 54 [RESPST_CHK_LENGTH] = "CHK_LENGTH", 55 [RESPST_CHK_RKEY] = "CHK_RKEY", 56 [RESPST_EXECUTE] = "EXECUTE", 57 [RESPST_READ_REPLY] = "READ_REPLY", 58 [RESPST_COMPLETE] = "COMPLETE", 59 [RESPST_ACKNOWLEDGE] = "ACKNOWLEDGE", 60 [RESPST_CLEANUP] = "CLEANUP", 61 [RESPST_DUPLICATE_REQUEST] = "DUPLICATE_REQUEST", 62 [RESPST_ERR_MALFORMED_WQE] = "ERR_MALFORMED_WQE", 63 [RESPST_ERR_UNSUPPORTED_OPCODE] = "ERR_UNSUPPORTED_OPCODE", 64 [RESPST_ERR_MISALIGNED_ATOMIC] = "ERR_MISALIGNED_ATOMIC", 65 [RESPST_ERR_PSN_OUT_OF_SEQ] = "ERR_PSN_OUT_OF_SEQ", 66 [RESPST_ERR_MISSING_OPCODE_FIRST] = "ERR_MISSING_OPCODE_FIRST", 67 [RESPST_ERR_MISSING_OPCODE_LAST_C] = "ERR_MISSING_OPCODE_LAST_C", 68 [RESPST_ERR_MISSING_OPCODE_LAST_D1E] = "ERR_MISSING_OPCODE_LAST_D1E", 69 [RESPST_ERR_TOO_MANY_RDMA_ATM_REQ] = "ERR_TOO_MANY_RDMA_ATM_REQ", 70 [RESPST_ERR_RNR] = "ERR_RNR", 71 [RESPST_ERR_RKEY_VIOLATION] = "ERR_RKEY_VIOLATION", 72 [RESPST_ERR_INVALIDATE_RKEY] = "ERR_INVALIDATE_RKEY_VIOLATION", 73 [RESPST_ERR_LENGTH] = "ERR_LENGTH", 74 [RESPST_ERR_CQ_OVERFLOW] = "ERR_CQ_OVERFLOW", 75 [RESPST_ERROR] = "ERROR", 76 [RESPST_RESET] = "RESET", 77 [RESPST_DONE] = "DONE", 78 [RESPST_EXIT] = "EXIT", 79 }; 80 81 /* rxe_recv calls here to add a request packet to the input queue */ 82 void rxe_resp_queue_pkt(struct rxe_qp *qp, struct sk_buff *skb) 83 { 84 int must_sched; 85 struct rxe_pkt_info *pkt = SKB_TO_PKT(skb); 86 87 skb_queue_tail(&qp->req_pkts, skb); 88 89 must_sched = (pkt->opcode == IB_OPCODE_RC_RDMA_READ_REQUEST) || 90 (skb_queue_len(&qp->req_pkts) > 1); 91 92 rxe_run_task(&qp->resp.task, must_sched); 93 } 94 95 static inline enum resp_states get_req(struct rxe_qp *qp, 96 struct rxe_pkt_info **pkt_p) 97 { 98 struct sk_buff *skb; 99 100 if (qp->resp.state == QP_STATE_ERROR) { 101 while ((skb = skb_dequeue(&qp->req_pkts))) { 102 rxe_put(qp); 103 kfree_skb(skb); 104 ib_device_put(qp->ibqp.device); 105 } 106 107 /* go drain recv wr queue */ 108 return RESPST_CHK_RESOURCE; 109 } 110 111 skb = skb_peek(&qp->req_pkts); 112 if (!skb) 113 return RESPST_EXIT; 114 115 *pkt_p = SKB_TO_PKT(skb); 116 117 return (qp->resp.res) ? RESPST_READ_REPLY : RESPST_CHK_PSN; 118 } 119 120 static enum resp_states check_psn(struct rxe_qp *qp, 121 struct rxe_pkt_info *pkt) 122 { 123 int diff = psn_compare(pkt->psn, qp->resp.psn); 124 struct rxe_dev *rxe = to_rdev(qp->ibqp.device); 125 126 switch (qp_type(qp)) { 127 case IB_QPT_RC: 128 if (diff > 0) { 129 if (qp->resp.sent_psn_nak) 130 return RESPST_CLEANUP; 131 132 qp->resp.sent_psn_nak = 1; 133 rxe_counter_inc(rxe, RXE_CNT_OUT_OF_SEQ_REQ); 134 return RESPST_ERR_PSN_OUT_OF_SEQ; 135 136 } else if (diff < 0) { 137 rxe_counter_inc(rxe, RXE_CNT_DUP_REQ); 138 return RESPST_DUPLICATE_REQUEST; 139 } 140 141 if (qp->resp.sent_psn_nak) 142 qp->resp.sent_psn_nak = 0; 143 144 break; 145 146 case IB_QPT_UC: 147 if (qp->resp.drop_msg || diff != 0) { 148 if (pkt->mask & RXE_START_MASK) { 149 qp->resp.drop_msg = 0; 150 return RESPST_CHK_OP_SEQ; 151 } 152 153 qp->resp.drop_msg = 1; 154 return RESPST_CLEANUP; 155 } 156 break; 157 default: 158 break; 159 } 160 161 return RESPST_CHK_OP_SEQ; 162 } 163 164 static enum resp_states check_op_seq(struct rxe_qp *qp, 165 struct rxe_pkt_info *pkt) 166 { 167 switch (qp_type(qp)) { 168 case IB_QPT_RC: 169 switch (qp->resp.opcode) { 170 case IB_OPCODE_RC_SEND_FIRST: 171 case IB_OPCODE_RC_SEND_MIDDLE: 172 switch (pkt->opcode) { 173 case IB_OPCODE_RC_SEND_MIDDLE: 174 case IB_OPCODE_RC_SEND_LAST: 175 case IB_OPCODE_RC_SEND_LAST_WITH_IMMEDIATE: 176 case IB_OPCODE_RC_SEND_LAST_WITH_INVALIDATE: 177 return RESPST_CHK_OP_VALID; 178 default: 179 return RESPST_ERR_MISSING_OPCODE_LAST_C; 180 } 181 182 case IB_OPCODE_RC_RDMA_WRITE_FIRST: 183 case IB_OPCODE_RC_RDMA_WRITE_MIDDLE: 184 switch (pkt->opcode) { 185 case IB_OPCODE_RC_RDMA_WRITE_MIDDLE: 186 case IB_OPCODE_RC_RDMA_WRITE_LAST: 187 case IB_OPCODE_RC_RDMA_WRITE_LAST_WITH_IMMEDIATE: 188 return RESPST_CHK_OP_VALID; 189 default: 190 return RESPST_ERR_MISSING_OPCODE_LAST_C; 191 } 192 193 default: 194 switch (pkt->opcode) { 195 case IB_OPCODE_RC_SEND_MIDDLE: 196 case IB_OPCODE_RC_SEND_LAST: 197 case IB_OPCODE_RC_SEND_LAST_WITH_IMMEDIATE: 198 case IB_OPCODE_RC_SEND_LAST_WITH_INVALIDATE: 199 case IB_OPCODE_RC_RDMA_WRITE_MIDDLE: 200 case IB_OPCODE_RC_RDMA_WRITE_LAST: 201 case IB_OPCODE_RC_RDMA_WRITE_LAST_WITH_IMMEDIATE: 202 return RESPST_ERR_MISSING_OPCODE_FIRST; 203 default: 204 return RESPST_CHK_OP_VALID; 205 } 206 } 207 break; 208 209 case IB_QPT_UC: 210 switch (qp->resp.opcode) { 211 case IB_OPCODE_UC_SEND_FIRST: 212 case IB_OPCODE_UC_SEND_MIDDLE: 213 switch (pkt->opcode) { 214 case IB_OPCODE_UC_SEND_MIDDLE: 215 case IB_OPCODE_UC_SEND_LAST: 216 case IB_OPCODE_UC_SEND_LAST_WITH_IMMEDIATE: 217 return RESPST_CHK_OP_VALID; 218 default: 219 return RESPST_ERR_MISSING_OPCODE_LAST_D1E; 220 } 221 222 case IB_OPCODE_UC_RDMA_WRITE_FIRST: 223 case IB_OPCODE_UC_RDMA_WRITE_MIDDLE: 224 switch (pkt->opcode) { 225 case IB_OPCODE_UC_RDMA_WRITE_MIDDLE: 226 case IB_OPCODE_UC_RDMA_WRITE_LAST: 227 case IB_OPCODE_UC_RDMA_WRITE_LAST_WITH_IMMEDIATE: 228 return RESPST_CHK_OP_VALID; 229 default: 230 return RESPST_ERR_MISSING_OPCODE_LAST_D1E; 231 } 232 233 default: 234 switch (pkt->opcode) { 235 case IB_OPCODE_UC_SEND_MIDDLE: 236 case IB_OPCODE_UC_SEND_LAST: 237 case IB_OPCODE_UC_SEND_LAST_WITH_IMMEDIATE: 238 case IB_OPCODE_UC_RDMA_WRITE_MIDDLE: 239 case IB_OPCODE_UC_RDMA_WRITE_LAST: 240 case IB_OPCODE_UC_RDMA_WRITE_LAST_WITH_IMMEDIATE: 241 qp->resp.drop_msg = 1; 242 return RESPST_CLEANUP; 243 default: 244 return RESPST_CHK_OP_VALID; 245 } 246 } 247 break; 248 249 default: 250 return RESPST_CHK_OP_VALID; 251 } 252 } 253 254 static enum resp_states check_op_valid(struct rxe_qp *qp, 255 struct rxe_pkt_info *pkt) 256 { 257 switch (qp_type(qp)) { 258 case IB_QPT_RC: 259 if (((pkt->mask & RXE_READ_MASK) && 260 !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_READ)) || 261 ((pkt->mask & RXE_WRITE_MASK) && 262 !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_WRITE)) || 263 ((pkt->mask & RXE_ATOMIC_MASK) && 264 !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_ATOMIC))) { 265 return RESPST_ERR_UNSUPPORTED_OPCODE; 266 } 267 268 break; 269 270 case IB_QPT_UC: 271 if ((pkt->mask & RXE_WRITE_MASK) && 272 !(qp->attr.qp_access_flags & IB_ACCESS_REMOTE_WRITE)) { 273 qp->resp.drop_msg = 1; 274 return RESPST_CLEANUP; 275 } 276 277 break; 278 279 case IB_QPT_UD: 280 case IB_QPT_SMI: 281 case IB_QPT_GSI: 282 break; 283 284 default: 285 WARN_ON_ONCE(1); 286 break; 287 } 288 289 return RESPST_CHK_RESOURCE; 290 } 291 292 static enum resp_states get_srq_wqe(struct rxe_qp *qp) 293 { 294 struct rxe_srq *srq = qp->srq; 295 struct rxe_queue *q = srq->rq.queue; 296 struct rxe_recv_wqe *wqe; 297 struct ib_event ev; 298 unsigned int count; 299 size_t size; 300 unsigned long flags; 301 302 if (srq->error) 303 return RESPST_ERR_RNR; 304 305 spin_lock_irqsave(&srq->rq.consumer_lock, flags); 306 307 wqe = queue_head(q, QUEUE_TYPE_FROM_CLIENT); 308 if (!wqe) { 309 spin_unlock_irqrestore(&srq->rq.consumer_lock, flags); 310 return RESPST_ERR_RNR; 311 } 312 313 /* don't trust user space data */ 314 if (unlikely(wqe->dma.num_sge > srq->rq.max_sge)) { 315 spin_unlock_irqrestore(&srq->rq.consumer_lock, flags); 316 pr_warn("%s: invalid num_sge in SRQ entry\n", __func__); 317 return RESPST_ERR_MALFORMED_WQE; 318 } 319 size = sizeof(*wqe) + wqe->dma.num_sge*sizeof(struct rxe_sge); 320 memcpy(&qp->resp.srq_wqe, wqe, size); 321 322 qp->resp.wqe = &qp->resp.srq_wqe.wqe; 323 queue_advance_consumer(q, QUEUE_TYPE_FROM_CLIENT); 324 count = queue_count(q, QUEUE_TYPE_FROM_CLIENT); 325 326 if (srq->limit && srq->ibsrq.event_handler && (count < srq->limit)) { 327 srq->limit = 0; 328 goto event; 329 } 330 331 spin_unlock_irqrestore(&srq->rq.consumer_lock, flags); 332 return RESPST_CHK_LENGTH; 333 334 event: 335 spin_unlock_irqrestore(&srq->rq.consumer_lock, flags); 336 ev.device = qp->ibqp.device; 337 ev.element.srq = qp->ibqp.srq; 338 ev.event = IB_EVENT_SRQ_LIMIT_REACHED; 339 srq->ibsrq.event_handler(&ev, srq->ibsrq.srq_context); 340 return RESPST_CHK_LENGTH; 341 } 342 343 static enum resp_states check_resource(struct rxe_qp *qp, 344 struct rxe_pkt_info *pkt) 345 { 346 struct rxe_srq *srq = qp->srq; 347 348 if (qp->resp.state == QP_STATE_ERROR) { 349 if (qp->resp.wqe) { 350 qp->resp.status = IB_WC_WR_FLUSH_ERR; 351 return RESPST_COMPLETE; 352 } else if (!srq) { 353 qp->resp.wqe = queue_head(qp->rq.queue, 354 QUEUE_TYPE_FROM_CLIENT); 355 if (qp->resp.wqe) { 356 qp->resp.status = IB_WC_WR_FLUSH_ERR; 357 return RESPST_COMPLETE; 358 } else { 359 return RESPST_EXIT; 360 } 361 } else { 362 return RESPST_EXIT; 363 } 364 } 365 366 if (pkt->mask & RXE_READ_OR_ATOMIC_MASK) { 367 /* it is the requesters job to not send 368 * too many read/atomic ops, we just 369 * recycle the responder resource queue 370 */ 371 if (likely(qp->attr.max_dest_rd_atomic > 0)) 372 return RESPST_CHK_LENGTH; 373 else 374 return RESPST_ERR_TOO_MANY_RDMA_ATM_REQ; 375 } 376 377 if (pkt->mask & RXE_RWR_MASK) { 378 if (srq) 379 return get_srq_wqe(qp); 380 381 qp->resp.wqe = queue_head(qp->rq.queue, 382 QUEUE_TYPE_FROM_CLIENT); 383 return (qp->resp.wqe) ? RESPST_CHK_LENGTH : RESPST_ERR_RNR; 384 } 385 386 return RESPST_CHK_LENGTH; 387 } 388 389 static enum resp_states check_length(struct rxe_qp *qp, 390 struct rxe_pkt_info *pkt) 391 { 392 switch (qp_type(qp)) { 393 case IB_QPT_RC: 394 return RESPST_CHK_RKEY; 395 396 case IB_QPT_UC: 397 return RESPST_CHK_RKEY; 398 399 default: 400 return RESPST_CHK_RKEY; 401 } 402 } 403 404 static enum resp_states check_rkey(struct rxe_qp *qp, 405 struct rxe_pkt_info *pkt) 406 { 407 struct rxe_mr *mr = NULL; 408 struct rxe_mw *mw = NULL; 409 u64 va; 410 u32 rkey; 411 u32 resid; 412 u32 pktlen; 413 int mtu = qp->mtu; 414 enum resp_states state; 415 int access; 416 417 if (pkt->mask & RXE_READ_OR_WRITE_MASK) { 418 if (pkt->mask & RXE_RETH_MASK) { 419 qp->resp.va = reth_va(pkt); 420 qp->resp.offset = 0; 421 qp->resp.rkey = reth_rkey(pkt); 422 qp->resp.resid = reth_len(pkt); 423 qp->resp.length = reth_len(pkt); 424 } 425 access = (pkt->mask & RXE_READ_MASK) ? IB_ACCESS_REMOTE_READ 426 : IB_ACCESS_REMOTE_WRITE; 427 } else if (pkt->mask & RXE_ATOMIC_MASK) { 428 qp->resp.va = atmeth_va(pkt); 429 qp->resp.offset = 0; 430 qp->resp.rkey = atmeth_rkey(pkt); 431 qp->resp.resid = sizeof(u64); 432 access = IB_ACCESS_REMOTE_ATOMIC; 433 } else { 434 return RESPST_EXECUTE; 435 } 436 437 /* A zero-byte op is not required to set an addr or rkey. */ 438 if ((pkt->mask & RXE_READ_OR_WRITE_MASK) && 439 (pkt->mask & RXE_RETH_MASK) && 440 reth_len(pkt) == 0) { 441 return RESPST_EXECUTE; 442 } 443 444 va = qp->resp.va; 445 rkey = qp->resp.rkey; 446 resid = qp->resp.resid; 447 pktlen = payload_size(pkt); 448 449 if (rkey_is_mw(rkey)) { 450 mw = rxe_lookup_mw(qp, access, rkey); 451 if (!mw) { 452 pr_err("%s: no MW matches rkey %#x\n", __func__, rkey); 453 state = RESPST_ERR_RKEY_VIOLATION; 454 goto err; 455 } 456 457 mr = mw->mr; 458 if (!mr) { 459 pr_err("%s: MW doesn't have an MR\n", __func__); 460 state = RESPST_ERR_RKEY_VIOLATION; 461 goto err; 462 } 463 464 if (mw->access & IB_ZERO_BASED) 465 qp->resp.offset = mw->addr; 466 467 rxe_put(mw); 468 rxe_get(mr); 469 } else { 470 mr = lookup_mr(qp->pd, access, rkey, RXE_LOOKUP_REMOTE); 471 if (!mr) { 472 pr_err("%s: no MR matches rkey %#x\n", __func__, rkey); 473 state = RESPST_ERR_RKEY_VIOLATION; 474 goto err; 475 } 476 } 477 478 if (mr_check_range(mr, va + qp->resp.offset, resid)) { 479 state = RESPST_ERR_RKEY_VIOLATION; 480 goto err; 481 } 482 483 if (pkt->mask & RXE_WRITE_MASK) { 484 if (resid > mtu) { 485 if (pktlen != mtu || bth_pad(pkt)) { 486 state = RESPST_ERR_LENGTH; 487 goto err; 488 } 489 } else { 490 if (pktlen != resid) { 491 state = RESPST_ERR_LENGTH; 492 goto err; 493 } 494 if ((bth_pad(pkt) != (0x3 & (-resid)))) { 495 /* This case may not be exactly that 496 * but nothing else fits. 497 */ 498 state = RESPST_ERR_LENGTH; 499 goto err; 500 } 501 } 502 } 503 504 WARN_ON_ONCE(qp->resp.mr); 505 506 qp->resp.mr = mr; 507 return RESPST_EXECUTE; 508 509 err: 510 if (mr) 511 rxe_put(mr); 512 if (mw) 513 rxe_put(mw); 514 515 return state; 516 } 517 518 static enum resp_states send_data_in(struct rxe_qp *qp, void *data_addr, 519 int data_len) 520 { 521 int err; 522 523 err = copy_data(qp->pd, IB_ACCESS_LOCAL_WRITE, &qp->resp.wqe->dma, 524 data_addr, data_len, RXE_TO_MR_OBJ); 525 if (unlikely(err)) 526 return (err == -ENOSPC) ? RESPST_ERR_LENGTH 527 : RESPST_ERR_MALFORMED_WQE; 528 529 return RESPST_NONE; 530 } 531 532 static enum resp_states write_data_in(struct rxe_qp *qp, 533 struct rxe_pkt_info *pkt) 534 { 535 enum resp_states rc = RESPST_NONE; 536 int err; 537 int data_len = payload_size(pkt); 538 539 err = rxe_mr_copy(qp->resp.mr, qp->resp.va + qp->resp.offset, 540 payload_addr(pkt), data_len, RXE_TO_MR_OBJ); 541 if (err) { 542 rc = RESPST_ERR_RKEY_VIOLATION; 543 goto out; 544 } 545 546 qp->resp.va += data_len; 547 qp->resp.resid -= data_len; 548 549 out: 550 return rc; 551 } 552 553 /* Guarantee atomicity of atomic operations at the machine level. */ 554 static DEFINE_SPINLOCK(atomic_ops_lock); 555 556 static enum resp_states process_atomic(struct rxe_qp *qp, 557 struct rxe_pkt_info *pkt) 558 { 559 u64 *vaddr; 560 enum resp_states ret; 561 struct rxe_mr *mr = qp->resp.mr; 562 563 if (mr->state != RXE_MR_STATE_VALID) { 564 ret = RESPST_ERR_RKEY_VIOLATION; 565 goto out; 566 } 567 568 vaddr = iova_to_vaddr(mr, qp->resp.va + qp->resp.offset, sizeof(u64)); 569 570 /* check vaddr is 8 bytes aligned. */ 571 if (!vaddr || (uintptr_t)vaddr & 7) { 572 ret = RESPST_ERR_MISALIGNED_ATOMIC; 573 goto out; 574 } 575 576 spin_lock_bh(&atomic_ops_lock); 577 578 qp->resp.atomic_orig = *vaddr; 579 580 if (pkt->opcode == IB_OPCODE_RC_COMPARE_SWAP || 581 pkt->opcode == IB_OPCODE_RD_COMPARE_SWAP) { 582 if (*vaddr == atmeth_comp(pkt)) 583 *vaddr = atmeth_swap_add(pkt); 584 } else { 585 *vaddr += atmeth_swap_add(pkt); 586 } 587 588 spin_unlock_bh(&atomic_ops_lock); 589 590 ret = RESPST_NONE; 591 out: 592 return ret; 593 } 594 595 static struct sk_buff *prepare_ack_packet(struct rxe_qp *qp, 596 struct rxe_pkt_info *pkt, 597 struct rxe_pkt_info *ack, 598 int opcode, 599 int payload, 600 u32 psn, 601 u8 syndrome) 602 { 603 struct rxe_dev *rxe = to_rdev(qp->ibqp.device); 604 struct sk_buff *skb; 605 int paylen; 606 int pad; 607 int err; 608 609 /* 610 * allocate packet 611 */ 612 pad = (-payload) & 0x3; 613 paylen = rxe_opcode[opcode].length + payload + pad + RXE_ICRC_SIZE; 614 615 skb = rxe_init_packet(rxe, &qp->pri_av, paylen, ack); 616 if (!skb) 617 return NULL; 618 619 ack->qp = qp; 620 ack->opcode = opcode; 621 ack->mask = rxe_opcode[opcode].mask; 622 ack->paylen = paylen; 623 ack->psn = psn; 624 625 bth_init(ack, opcode, 0, 0, pad, IB_DEFAULT_PKEY_FULL, 626 qp->attr.dest_qp_num, 0, psn); 627 628 if (ack->mask & RXE_AETH_MASK) { 629 aeth_set_syn(ack, syndrome); 630 aeth_set_msn(ack, qp->resp.msn); 631 } 632 633 if (ack->mask & RXE_ATMACK_MASK) 634 atmack_set_orig(ack, qp->resp.atomic_orig); 635 636 err = rxe_prepare(&qp->pri_av, ack, skb); 637 if (err) { 638 kfree_skb(skb); 639 return NULL; 640 } 641 642 return skb; 643 } 644 645 static struct resp_res *rxe_prepare_read_res(struct rxe_qp *qp, 646 struct rxe_pkt_info *pkt) 647 { 648 struct resp_res *res; 649 u32 pkts; 650 651 res = &qp->resp.resources[qp->resp.res_head]; 652 rxe_advance_resp_resource(qp); 653 free_rd_atomic_resource(qp, res); 654 655 res->type = RXE_READ_MASK; 656 res->replay = 0; 657 res->read.va = qp->resp.va + qp->resp.offset; 658 res->read.va_org = qp->resp.va + qp->resp.offset; 659 res->read.resid = qp->resp.resid; 660 res->read.length = qp->resp.resid; 661 res->read.rkey = qp->resp.rkey; 662 663 pkts = max_t(u32, (reth_len(pkt) + qp->mtu - 1)/qp->mtu, 1); 664 res->first_psn = pkt->psn; 665 res->cur_psn = pkt->psn; 666 res->last_psn = (pkt->psn + pkts - 1) & BTH_PSN_MASK; 667 668 res->state = rdatm_res_state_new; 669 670 return res; 671 } 672 673 /** 674 * rxe_recheck_mr - revalidate MR from rkey and get a reference 675 * @qp: the qp 676 * @rkey: the rkey 677 * 678 * This code allows the MR to be invalidated or deregistered or 679 * the MW if one was used to be invalidated or deallocated. 680 * It is assumed that the access permissions if originally good 681 * are OK and the mappings to be unchanged. 682 * 683 * Return: mr on success else NULL 684 */ 685 static struct rxe_mr *rxe_recheck_mr(struct rxe_qp *qp, u32 rkey) 686 { 687 struct rxe_dev *rxe = to_rdev(qp->ibqp.device); 688 struct rxe_mr *mr; 689 struct rxe_mw *mw; 690 691 if (rkey_is_mw(rkey)) { 692 mw = rxe_pool_get_index(&rxe->mw_pool, rkey >> 8); 693 if (!mw || mw->rkey != rkey) 694 return NULL; 695 696 if (mw->state != RXE_MW_STATE_VALID) { 697 rxe_put(mw); 698 return NULL; 699 } 700 701 mr = mw->mr; 702 rxe_put(mw); 703 } else { 704 mr = rxe_pool_get_index(&rxe->mr_pool, rkey >> 8); 705 if (!mr || mr->rkey != rkey) 706 return NULL; 707 } 708 709 if (mr->state != RXE_MR_STATE_VALID) { 710 rxe_put(mr); 711 return NULL; 712 } 713 714 return mr; 715 } 716 717 /* RDMA read response. If res is not NULL, then we have a current RDMA request 718 * being processed or replayed. 719 */ 720 static enum resp_states read_reply(struct rxe_qp *qp, 721 struct rxe_pkt_info *req_pkt) 722 { 723 struct rxe_pkt_info ack_pkt; 724 struct sk_buff *skb; 725 int mtu = qp->mtu; 726 enum resp_states state; 727 int payload; 728 int opcode; 729 int err; 730 struct resp_res *res = qp->resp.res; 731 struct rxe_mr *mr; 732 733 if (!res) { 734 res = rxe_prepare_read_res(qp, req_pkt); 735 qp->resp.res = res; 736 } 737 738 if (res->state == rdatm_res_state_new) { 739 mr = qp->resp.mr; 740 qp->resp.mr = NULL; 741 742 if (res->read.resid <= mtu) 743 opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_ONLY; 744 else 745 opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_FIRST; 746 } else { 747 mr = rxe_recheck_mr(qp, res->read.rkey); 748 if (!mr) 749 return RESPST_ERR_RKEY_VIOLATION; 750 751 if (res->read.resid > mtu) 752 opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_MIDDLE; 753 else 754 opcode = IB_OPCODE_RC_RDMA_READ_RESPONSE_LAST; 755 } 756 757 res->state = rdatm_res_state_next; 758 759 payload = min_t(int, res->read.resid, mtu); 760 761 skb = prepare_ack_packet(qp, req_pkt, &ack_pkt, opcode, payload, 762 res->cur_psn, AETH_ACK_UNLIMITED); 763 if (!skb) 764 return RESPST_ERR_RNR; 765 766 err = rxe_mr_copy(mr, res->read.va, payload_addr(&ack_pkt), 767 payload, RXE_FROM_MR_OBJ); 768 if (err) 769 pr_err("Failed copying memory\n"); 770 if (mr) 771 rxe_put(mr); 772 773 if (bth_pad(&ack_pkt)) { 774 u8 *pad = payload_addr(&ack_pkt) + payload; 775 776 memset(pad, 0, bth_pad(&ack_pkt)); 777 } 778 779 err = rxe_xmit_packet(qp, &ack_pkt, skb); 780 if (err) { 781 pr_err("Failed sending RDMA reply.\n"); 782 return RESPST_ERR_RNR; 783 } 784 785 res->read.va += payload; 786 res->read.resid -= payload; 787 res->cur_psn = (res->cur_psn + 1) & BTH_PSN_MASK; 788 789 if (res->read.resid > 0) { 790 state = RESPST_DONE; 791 } else { 792 qp->resp.res = NULL; 793 if (!res->replay) 794 qp->resp.opcode = -1; 795 if (psn_compare(res->cur_psn, qp->resp.psn) >= 0) 796 qp->resp.psn = res->cur_psn; 797 state = RESPST_CLEANUP; 798 } 799 800 return state; 801 } 802 803 static int invalidate_rkey(struct rxe_qp *qp, u32 rkey) 804 { 805 if (rkey_is_mw(rkey)) 806 return rxe_invalidate_mw(qp, rkey); 807 else 808 return rxe_invalidate_mr(qp, rkey); 809 } 810 811 /* Executes a new request. A retried request never reach that function (send 812 * and writes are discarded, and reads and atomics are retried elsewhere. 813 */ 814 static enum resp_states execute(struct rxe_qp *qp, struct rxe_pkt_info *pkt) 815 { 816 enum resp_states err; 817 struct sk_buff *skb = PKT_TO_SKB(pkt); 818 union rdma_network_hdr hdr; 819 820 if (pkt->mask & RXE_SEND_MASK) { 821 if (qp_type(qp) == IB_QPT_UD || 822 qp_type(qp) == IB_QPT_SMI || 823 qp_type(qp) == IB_QPT_GSI) { 824 if (skb->protocol == htons(ETH_P_IP)) { 825 memset(&hdr.reserved, 0, 826 sizeof(hdr.reserved)); 827 memcpy(&hdr.roce4grh, ip_hdr(skb), 828 sizeof(hdr.roce4grh)); 829 err = send_data_in(qp, &hdr, sizeof(hdr)); 830 } else { 831 err = send_data_in(qp, ipv6_hdr(skb), 832 sizeof(hdr)); 833 } 834 if (err) 835 return err; 836 } 837 err = send_data_in(qp, payload_addr(pkt), payload_size(pkt)); 838 if (err) 839 return err; 840 } else if (pkt->mask & RXE_WRITE_MASK) { 841 err = write_data_in(qp, pkt); 842 if (err) 843 return err; 844 } else if (pkt->mask & RXE_READ_MASK) { 845 /* For RDMA Read we can increment the msn now. See C9-148. */ 846 qp->resp.msn++; 847 return RESPST_READ_REPLY; 848 } else if (pkt->mask & RXE_ATOMIC_MASK) { 849 err = process_atomic(qp, pkt); 850 if (err) 851 return err; 852 } else { 853 /* Unreachable */ 854 WARN_ON_ONCE(1); 855 } 856 857 if (pkt->mask & RXE_IETH_MASK) { 858 u32 rkey = ieth_rkey(pkt); 859 860 err = invalidate_rkey(qp, rkey); 861 if (err) 862 return RESPST_ERR_INVALIDATE_RKEY; 863 } 864 865 if (pkt->mask & RXE_END_MASK) 866 /* We successfully processed this new request. */ 867 qp->resp.msn++; 868 869 /* next expected psn, read handles this separately */ 870 qp->resp.psn = (pkt->psn + 1) & BTH_PSN_MASK; 871 qp->resp.ack_psn = qp->resp.psn; 872 873 qp->resp.opcode = pkt->opcode; 874 qp->resp.status = IB_WC_SUCCESS; 875 876 if (pkt->mask & RXE_COMP_MASK) 877 return RESPST_COMPLETE; 878 else if (qp_type(qp) == IB_QPT_RC) 879 return RESPST_ACKNOWLEDGE; 880 else 881 return RESPST_CLEANUP; 882 } 883 884 static enum resp_states do_complete(struct rxe_qp *qp, 885 struct rxe_pkt_info *pkt) 886 { 887 struct rxe_cqe cqe; 888 struct ib_wc *wc = &cqe.ibwc; 889 struct ib_uverbs_wc *uwc = &cqe.uibwc; 890 struct rxe_recv_wqe *wqe = qp->resp.wqe; 891 struct rxe_dev *rxe = to_rdev(qp->ibqp.device); 892 893 if (!wqe) 894 goto finish; 895 896 memset(&cqe, 0, sizeof(cqe)); 897 898 if (qp->rcq->is_user) { 899 uwc->status = qp->resp.status; 900 uwc->qp_num = qp->ibqp.qp_num; 901 uwc->wr_id = wqe->wr_id; 902 } else { 903 wc->status = qp->resp.status; 904 wc->qp = &qp->ibqp; 905 wc->wr_id = wqe->wr_id; 906 } 907 908 if (wc->status == IB_WC_SUCCESS) { 909 rxe_counter_inc(rxe, RXE_CNT_RDMA_RECV); 910 wc->opcode = (pkt->mask & RXE_IMMDT_MASK && 911 pkt->mask & RXE_WRITE_MASK) ? 912 IB_WC_RECV_RDMA_WITH_IMM : IB_WC_RECV; 913 wc->byte_len = (pkt->mask & RXE_IMMDT_MASK && 914 pkt->mask & RXE_WRITE_MASK) ? 915 qp->resp.length : wqe->dma.length - wqe->dma.resid; 916 917 /* fields after byte_len are different between kernel and user 918 * space 919 */ 920 if (qp->rcq->is_user) { 921 uwc->wc_flags = IB_WC_GRH; 922 923 if (pkt->mask & RXE_IMMDT_MASK) { 924 uwc->wc_flags |= IB_WC_WITH_IMM; 925 uwc->ex.imm_data = immdt_imm(pkt); 926 } 927 928 if (pkt->mask & RXE_IETH_MASK) { 929 uwc->wc_flags |= IB_WC_WITH_INVALIDATE; 930 uwc->ex.invalidate_rkey = ieth_rkey(pkt); 931 } 932 933 if (pkt->mask & RXE_DETH_MASK) 934 uwc->src_qp = deth_sqp(pkt); 935 936 uwc->port_num = qp->attr.port_num; 937 } else { 938 struct sk_buff *skb = PKT_TO_SKB(pkt); 939 940 wc->wc_flags = IB_WC_GRH | IB_WC_WITH_NETWORK_HDR_TYPE; 941 if (skb->protocol == htons(ETH_P_IP)) 942 wc->network_hdr_type = RDMA_NETWORK_IPV4; 943 else 944 wc->network_hdr_type = RDMA_NETWORK_IPV6; 945 946 if (is_vlan_dev(skb->dev)) { 947 wc->wc_flags |= IB_WC_WITH_VLAN; 948 wc->vlan_id = vlan_dev_vlan_id(skb->dev); 949 } 950 951 if (pkt->mask & RXE_IMMDT_MASK) { 952 wc->wc_flags |= IB_WC_WITH_IMM; 953 wc->ex.imm_data = immdt_imm(pkt); 954 } 955 956 if (pkt->mask & RXE_IETH_MASK) { 957 wc->wc_flags |= IB_WC_WITH_INVALIDATE; 958 wc->ex.invalidate_rkey = ieth_rkey(pkt); 959 } 960 961 if (pkt->mask & RXE_DETH_MASK) 962 wc->src_qp = deth_sqp(pkt); 963 964 wc->port_num = qp->attr.port_num; 965 } 966 } 967 968 /* have copy for srq and reference for !srq */ 969 if (!qp->srq) 970 queue_advance_consumer(qp->rq.queue, QUEUE_TYPE_FROM_CLIENT); 971 972 qp->resp.wqe = NULL; 973 974 if (rxe_cq_post(qp->rcq, &cqe, pkt ? bth_se(pkt) : 1)) 975 return RESPST_ERR_CQ_OVERFLOW; 976 977 finish: 978 if (unlikely(qp->resp.state == QP_STATE_ERROR)) 979 return RESPST_CHK_RESOURCE; 980 if (unlikely(!pkt)) 981 return RESPST_DONE; 982 if (qp_type(qp) == IB_QPT_RC) 983 return RESPST_ACKNOWLEDGE; 984 else 985 return RESPST_CLEANUP; 986 } 987 988 static int send_ack(struct rxe_qp *qp, struct rxe_pkt_info *pkt, 989 u8 syndrome, u32 psn) 990 { 991 int err = 0; 992 struct rxe_pkt_info ack_pkt; 993 struct sk_buff *skb; 994 995 skb = prepare_ack_packet(qp, pkt, &ack_pkt, IB_OPCODE_RC_ACKNOWLEDGE, 996 0, psn, syndrome); 997 if (!skb) { 998 err = -ENOMEM; 999 goto err1; 1000 } 1001 1002 err = rxe_xmit_packet(qp, &ack_pkt, skb); 1003 if (err) 1004 pr_err_ratelimited("Failed sending ack\n"); 1005 1006 err1: 1007 return err; 1008 } 1009 1010 static int send_atomic_ack(struct rxe_qp *qp, struct rxe_pkt_info *pkt, 1011 u8 syndrome) 1012 { 1013 int rc = 0; 1014 struct rxe_pkt_info ack_pkt; 1015 struct sk_buff *skb; 1016 struct resp_res *res; 1017 1018 skb = prepare_ack_packet(qp, pkt, &ack_pkt, 1019 IB_OPCODE_RC_ATOMIC_ACKNOWLEDGE, 0, pkt->psn, 1020 syndrome); 1021 if (!skb) { 1022 rc = -ENOMEM; 1023 goto out; 1024 } 1025 1026 res = &qp->resp.resources[qp->resp.res_head]; 1027 free_rd_atomic_resource(qp, res); 1028 rxe_advance_resp_resource(qp); 1029 1030 skb_get(skb); 1031 res->type = RXE_ATOMIC_MASK; 1032 res->atomic.skb = skb; 1033 res->first_psn = ack_pkt.psn; 1034 res->last_psn = ack_pkt.psn; 1035 res->cur_psn = ack_pkt.psn; 1036 1037 rc = rxe_xmit_packet(qp, &ack_pkt, skb); 1038 if (rc) { 1039 pr_err_ratelimited("Failed sending ack\n"); 1040 rxe_put(qp); 1041 } 1042 out: 1043 return rc; 1044 } 1045 1046 static enum resp_states acknowledge(struct rxe_qp *qp, 1047 struct rxe_pkt_info *pkt) 1048 { 1049 if (qp_type(qp) != IB_QPT_RC) 1050 return RESPST_CLEANUP; 1051 1052 if (qp->resp.aeth_syndrome != AETH_ACK_UNLIMITED) 1053 send_ack(qp, pkt, qp->resp.aeth_syndrome, pkt->psn); 1054 else if (pkt->mask & RXE_ATOMIC_MASK) 1055 send_atomic_ack(qp, pkt, AETH_ACK_UNLIMITED); 1056 else if (bth_ack(pkt)) 1057 send_ack(qp, pkt, AETH_ACK_UNLIMITED, pkt->psn); 1058 1059 return RESPST_CLEANUP; 1060 } 1061 1062 static enum resp_states cleanup(struct rxe_qp *qp, 1063 struct rxe_pkt_info *pkt) 1064 { 1065 struct sk_buff *skb; 1066 1067 if (pkt) { 1068 skb = skb_dequeue(&qp->req_pkts); 1069 rxe_put(qp); 1070 kfree_skb(skb); 1071 ib_device_put(qp->ibqp.device); 1072 } 1073 1074 if (qp->resp.mr) { 1075 rxe_put(qp->resp.mr); 1076 qp->resp.mr = NULL; 1077 } 1078 1079 return RESPST_DONE; 1080 } 1081 1082 static struct resp_res *find_resource(struct rxe_qp *qp, u32 psn) 1083 { 1084 int i; 1085 1086 for (i = 0; i < qp->attr.max_dest_rd_atomic; i++) { 1087 struct resp_res *res = &qp->resp.resources[i]; 1088 1089 if (res->type == 0) 1090 continue; 1091 1092 if (psn_compare(psn, res->first_psn) >= 0 && 1093 psn_compare(psn, res->last_psn) <= 0) { 1094 return res; 1095 } 1096 } 1097 1098 return NULL; 1099 } 1100 1101 static enum resp_states duplicate_request(struct rxe_qp *qp, 1102 struct rxe_pkt_info *pkt) 1103 { 1104 enum resp_states rc; 1105 u32 prev_psn = (qp->resp.ack_psn - 1) & BTH_PSN_MASK; 1106 1107 if (pkt->mask & RXE_SEND_MASK || 1108 pkt->mask & RXE_WRITE_MASK) { 1109 /* SEND. Ack again and cleanup. C9-105. */ 1110 send_ack(qp, pkt, AETH_ACK_UNLIMITED, prev_psn); 1111 return RESPST_CLEANUP; 1112 } else if (pkt->mask & RXE_READ_MASK) { 1113 struct resp_res *res; 1114 1115 res = find_resource(qp, pkt->psn); 1116 if (!res) { 1117 /* Resource not found. Class D error. Drop the 1118 * request. 1119 */ 1120 rc = RESPST_CLEANUP; 1121 goto out; 1122 } else { 1123 /* Ensure this new request is the same as the previous 1124 * one or a subset of it. 1125 */ 1126 u64 iova = reth_va(pkt); 1127 u32 resid = reth_len(pkt); 1128 1129 if (iova < res->read.va_org || 1130 resid > res->read.length || 1131 (iova + resid) > (res->read.va_org + 1132 res->read.length)) { 1133 rc = RESPST_CLEANUP; 1134 goto out; 1135 } 1136 1137 if (reth_rkey(pkt) != res->read.rkey) { 1138 rc = RESPST_CLEANUP; 1139 goto out; 1140 } 1141 1142 res->cur_psn = pkt->psn; 1143 res->state = (pkt->psn == res->first_psn) ? 1144 rdatm_res_state_new : 1145 rdatm_res_state_replay; 1146 res->replay = 1; 1147 1148 /* Reset the resource, except length. */ 1149 res->read.va_org = iova; 1150 res->read.va = iova; 1151 res->read.resid = resid; 1152 1153 /* Replay the RDMA read reply. */ 1154 qp->resp.res = res; 1155 rc = RESPST_READ_REPLY; 1156 goto out; 1157 } 1158 } else { 1159 struct resp_res *res; 1160 1161 /* Find the operation in our list of responder resources. */ 1162 res = find_resource(qp, pkt->psn); 1163 if (res) { 1164 skb_get(res->atomic.skb); 1165 /* Resend the result. */ 1166 rc = rxe_xmit_packet(qp, pkt, res->atomic.skb); 1167 if (rc) { 1168 pr_err("Failed resending result. This flow is not handled - skb ignored\n"); 1169 rc = RESPST_CLEANUP; 1170 goto out; 1171 } 1172 } 1173 1174 /* Resource not found. Class D error. Drop the request. */ 1175 rc = RESPST_CLEANUP; 1176 goto out; 1177 } 1178 out: 1179 return rc; 1180 } 1181 1182 /* Process a class A or C. Both are treated the same in this implementation. */ 1183 static void do_class_ac_error(struct rxe_qp *qp, u8 syndrome, 1184 enum ib_wc_status status) 1185 { 1186 qp->resp.aeth_syndrome = syndrome; 1187 qp->resp.status = status; 1188 1189 /* indicate that we should go through the ERROR state */ 1190 qp->resp.goto_error = 1; 1191 } 1192 1193 static enum resp_states do_class_d1e_error(struct rxe_qp *qp) 1194 { 1195 /* UC */ 1196 if (qp->srq) { 1197 /* Class E */ 1198 qp->resp.drop_msg = 1; 1199 if (qp->resp.wqe) { 1200 qp->resp.status = IB_WC_REM_INV_REQ_ERR; 1201 return RESPST_COMPLETE; 1202 } else { 1203 return RESPST_CLEANUP; 1204 } 1205 } else { 1206 /* Class D1. This packet may be the start of a 1207 * new message and could be valid. The previous 1208 * message is invalid and ignored. reset the 1209 * recv wr to its original state 1210 */ 1211 if (qp->resp.wqe) { 1212 qp->resp.wqe->dma.resid = qp->resp.wqe->dma.length; 1213 qp->resp.wqe->dma.cur_sge = 0; 1214 qp->resp.wqe->dma.sge_offset = 0; 1215 qp->resp.opcode = -1; 1216 } 1217 1218 if (qp->resp.mr) { 1219 rxe_put(qp->resp.mr); 1220 qp->resp.mr = NULL; 1221 } 1222 1223 return RESPST_CLEANUP; 1224 } 1225 } 1226 1227 static void rxe_drain_req_pkts(struct rxe_qp *qp, bool notify) 1228 { 1229 struct sk_buff *skb; 1230 struct rxe_queue *q = qp->rq.queue; 1231 1232 while ((skb = skb_dequeue(&qp->req_pkts))) { 1233 rxe_put(qp); 1234 kfree_skb(skb); 1235 ib_device_put(qp->ibqp.device); 1236 } 1237 1238 if (notify) 1239 return; 1240 1241 while (!qp->srq && q && queue_head(q, q->type)) 1242 queue_advance_consumer(q, q->type); 1243 } 1244 1245 int rxe_responder(void *arg) 1246 { 1247 struct rxe_qp *qp = (struct rxe_qp *)arg; 1248 struct rxe_dev *rxe = to_rdev(qp->ibqp.device); 1249 enum resp_states state; 1250 struct rxe_pkt_info *pkt = NULL; 1251 int ret = 0; 1252 1253 rxe_get(qp); 1254 1255 qp->resp.aeth_syndrome = AETH_ACK_UNLIMITED; 1256 1257 if (!qp->valid) { 1258 ret = -EINVAL; 1259 goto done; 1260 } 1261 1262 switch (qp->resp.state) { 1263 case QP_STATE_RESET: 1264 state = RESPST_RESET; 1265 break; 1266 1267 default: 1268 state = RESPST_GET_REQ; 1269 break; 1270 } 1271 1272 while (1) { 1273 pr_debug("qp#%d state = %s\n", qp_num(qp), 1274 resp_state_name[state]); 1275 switch (state) { 1276 case RESPST_GET_REQ: 1277 state = get_req(qp, &pkt); 1278 break; 1279 case RESPST_CHK_PSN: 1280 state = check_psn(qp, pkt); 1281 break; 1282 case RESPST_CHK_OP_SEQ: 1283 state = check_op_seq(qp, pkt); 1284 break; 1285 case RESPST_CHK_OP_VALID: 1286 state = check_op_valid(qp, pkt); 1287 break; 1288 case RESPST_CHK_RESOURCE: 1289 state = check_resource(qp, pkt); 1290 break; 1291 case RESPST_CHK_LENGTH: 1292 state = check_length(qp, pkt); 1293 break; 1294 case RESPST_CHK_RKEY: 1295 state = check_rkey(qp, pkt); 1296 break; 1297 case RESPST_EXECUTE: 1298 state = execute(qp, pkt); 1299 break; 1300 case RESPST_COMPLETE: 1301 state = do_complete(qp, pkt); 1302 break; 1303 case RESPST_READ_REPLY: 1304 state = read_reply(qp, pkt); 1305 break; 1306 case RESPST_ACKNOWLEDGE: 1307 state = acknowledge(qp, pkt); 1308 break; 1309 case RESPST_CLEANUP: 1310 state = cleanup(qp, pkt); 1311 break; 1312 case RESPST_DUPLICATE_REQUEST: 1313 state = duplicate_request(qp, pkt); 1314 break; 1315 case RESPST_ERR_PSN_OUT_OF_SEQ: 1316 /* RC only - Class B. Drop packet. */ 1317 send_ack(qp, pkt, AETH_NAK_PSN_SEQ_ERROR, qp->resp.psn); 1318 state = RESPST_CLEANUP; 1319 break; 1320 1321 case RESPST_ERR_TOO_MANY_RDMA_ATM_REQ: 1322 case RESPST_ERR_MISSING_OPCODE_FIRST: 1323 case RESPST_ERR_MISSING_OPCODE_LAST_C: 1324 case RESPST_ERR_UNSUPPORTED_OPCODE: 1325 case RESPST_ERR_MISALIGNED_ATOMIC: 1326 /* RC Only - Class C. */ 1327 do_class_ac_error(qp, AETH_NAK_INVALID_REQ, 1328 IB_WC_REM_INV_REQ_ERR); 1329 state = RESPST_COMPLETE; 1330 break; 1331 1332 case RESPST_ERR_MISSING_OPCODE_LAST_D1E: 1333 state = do_class_d1e_error(qp); 1334 break; 1335 case RESPST_ERR_RNR: 1336 if (qp_type(qp) == IB_QPT_RC) { 1337 rxe_counter_inc(rxe, RXE_CNT_SND_RNR); 1338 /* RC - class B */ 1339 send_ack(qp, pkt, AETH_RNR_NAK | 1340 (~AETH_TYPE_MASK & 1341 qp->attr.min_rnr_timer), 1342 pkt->psn); 1343 } else { 1344 /* UD/UC - class D */ 1345 qp->resp.drop_msg = 1; 1346 } 1347 state = RESPST_CLEANUP; 1348 break; 1349 1350 case RESPST_ERR_RKEY_VIOLATION: 1351 if (qp_type(qp) == IB_QPT_RC) { 1352 /* Class C */ 1353 do_class_ac_error(qp, AETH_NAK_REM_ACC_ERR, 1354 IB_WC_REM_ACCESS_ERR); 1355 state = RESPST_COMPLETE; 1356 } else { 1357 qp->resp.drop_msg = 1; 1358 if (qp->srq) { 1359 /* UC/SRQ Class D */ 1360 qp->resp.status = IB_WC_REM_ACCESS_ERR; 1361 state = RESPST_COMPLETE; 1362 } else { 1363 /* UC/non-SRQ Class E. */ 1364 state = RESPST_CLEANUP; 1365 } 1366 } 1367 break; 1368 1369 case RESPST_ERR_INVALIDATE_RKEY: 1370 /* RC - Class J. */ 1371 qp->resp.goto_error = 1; 1372 qp->resp.status = IB_WC_REM_INV_REQ_ERR; 1373 state = RESPST_COMPLETE; 1374 break; 1375 1376 case RESPST_ERR_LENGTH: 1377 if (qp_type(qp) == IB_QPT_RC) { 1378 /* Class C */ 1379 do_class_ac_error(qp, AETH_NAK_INVALID_REQ, 1380 IB_WC_REM_INV_REQ_ERR); 1381 state = RESPST_COMPLETE; 1382 } else if (qp->srq) { 1383 /* UC/UD - class E */ 1384 qp->resp.status = IB_WC_REM_INV_REQ_ERR; 1385 state = RESPST_COMPLETE; 1386 } else { 1387 /* UC/UD - class D */ 1388 qp->resp.drop_msg = 1; 1389 state = RESPST_CLEANUP; 1390 } 1391 break; 1392 1393 case RESPST_ERR_MALFORMED_WQE: 1394 /* All, Class A. */ 1395 do_class_ac_error(qp, AETH_NAK_REM_OP_ERR, 1396 IB_WC_LOC_QP_OP_ERR); 1397 state = RESPST_COMPLETE; 1398 break; 1399 1400 case RESPST_ERR_CQ_OVERFLOW: 1401 /* All - Class G */ 1402 state = RESPST_ERROR; 1403 break; 1404 1405 case RESPST_DONE: 1406 if (qp->resp.goto_error) { 1407 state = RESPST_ERROR; 1408 break; 1409 } 1410 1411 goto done; 1412 1413 case RESPST_EXIT: 1414 if (qp->resp.goto_error) { 1415 state = RESPST_ERROR; 1416 break; 1417 } 1418 1419 goto exit; 1420 1421 case RESPST_RESET: 1422 rxe_drain_req_pkts(qp, false); 1423 qp->resp.wqe = NULL; 1424 goto exit; 1425 1426 case RESPST_ERROR: 1427 qp->resp.goto_error = 0; 1428 pr_warn("qp#%d moved to error state\n", qp_num(qp)); 1429 rxe_qp_error(qp); 1430 goto exit; 1431 1432 default: 1433 WARN_ON_ONCE(1); 1434 } 1435 } 1436 1437 exit: 1438 ret = -EAGAIN; 1439 done: 1440 rxe_put(qp); 1441 return ret; 1442 } 1443