1 /*
2 * Copyright (c) 2007 Cisco Systems, Inc. All rights reserved.
3 * Copyright (c) 2007, 2008 Mellanox Technologies. All rights reserved.
4 *
5 * This software is available to you under a choice of one of two
6 * licenses. You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the
9 * OpenIB.org BSD license below:
10 *
11 * Redistribution and use in source and binary forms, with or
12 * without modification, are permitted provided that the following
13 * conditions are met:
14 *
15 * - Redistributions of source code must retain the above
16 * copyright notice, this list of conditions and the following
17 * disclaimer.
18 *
19 * - Redistributions in binary form must reproduce the above
20 * copyright notice, this list of conditions and the following
21 * disclaimer in the documentation and/or other materials
22 * provided with the distribution.
23 *
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
31 * SOFTWARE.
32 */
33
34 #include <linux/log2.h>
35 #include <linux/slab.h>
36 #include <linux/netdevice.h>
37 #include <linux/bitops.h>
38 #include <linux/rcupdate.h>
39 #include <linux/etherdevice.h>
40
41 #include <rdma/ib_cache.h>
42 #include <rdma/ib_pack.h>
43 #include <rdma/ib_addr.h>
44 #include <rdma/ib_mad.h>
45 #include <rdma/uverbs_ioctl.h>
46
47 #include <dev/mlx4/cmd.h>
48 #include <dev/mlx4/qp.h>
49 #include <dev/mlx4/driver.h>
50 #include <linux/io.h>
51
52 #include "mlx4_ib.h"
53 #include <rdma/mlx4-abi.h>
54
55 static void mlx4_ib_lock_cqs(struct mlx4_ib_cq *send_cq,
56 struct mlx4_ib_cq *recv_cq);
57 static void mlx4_ib_unlock_cqs(struct mlx4_ib_cq *send_cq,
58 struct mlx4_ib_cq *recv_cq);
59
60 enum {
61 MLX4_IB_ACK_REQ_FREQ = 8,
62 };
63
64 enum {
65 MLX4_IB_DEFAULT_SCHED_QUEUE = 0x83,
66 MLX4_IB_DEFAULT_QP0_SCHED_QUEUE = 0x3f,
67 MLX4_IB_LINK_TYPE_IB = 0,
68 MLX4_IB_LINK_TYPE_ETH = 1
69 };
70
71 enum {
72 /*
73 * Largest possible UD header: send with GRH and immediate
74 * data plus 18 bytes for an Ethernet header with VLAN/802.1Q
75 * tag. (LRH would only use 8 bytes, so Ethernet is the
76 * biggest case)
77 */
78 MLX4_IB_UD_HEADER_SIZE = 82,
79 MLX4_IB_LSO_HEADER_SPARE = 128,
80 };
81
82 enum {
83 MLX4_IB_IBOE_ETHERTYPE = 0x8915
84 };
85
86 struct mlx4_ib_sqp {
87 struct mlx4_ib_qp qp;
88 int pkey_index;
89 u32 qkey;
90 u32 send_psn;
91 struct ib_ud_header ud_header;
92 u8 header_buf[MLX4_IB_UD_HEADER_SIZE];
93 struct ib_qp *roce_v2_gsi;
94 };
95
96 enum {
97 MLX4_IB_MIN_SQ_STRIDE = 6,
98 MLX4_IB_CACHE_LINE_SIZE = 64,
99 };
100
101 enum {
102 MLX4_RAW_QP_MTU = 7,
103 MLX4_RAW_QP_MSGMAX = 31,
104 };
105
106 #ifndef ETH_ALEN
107 #define ETH_ALEN 6
108 #endif
109
110 static const __be32 mlx4_ib_opcode[] = {
111 [IB_WR_SEND] = cpu_to_be32(MLX4_OPCODE_SEND),
112 [IB_WR_LSO] = cpu_to_be32(MLX4_OPCODE_LSO),
113 [IB_WR_SEND_WITH_IMM] = cpu_to_be32(MLX4_OPCODE_SEND_IMM),
114 [IB_WR_RDMA_WRITE] = cpu_to_be32(MLX4_OPCODE_RDMA_WRITE),
115 [IB_WR_RDMA_WRITE_WITH_IMM] = cpu_to_be32(MLX4_OPCODE_RDMA_WRITE_IMM),
116 [IB_WR_RDMA_READ] = cpu_to_be32(MLX4_OPCODE_RDMA_READ),
117 [IB_WR_ATOMIC_CMP_AND_SWP] = cpu_to_be32(MLX4_OPCODE_ATOMIC_CS),
118 [IB_WR_ATOMIC_FETCH_AND_ADD] = cpu_to_be32(MLX4_OPCODE_ATOMIC_FA),
119 [IB_WR_SEND_WITH_INV] = cpu_to_be32(MLX4_OPCODE_SEND_INVAL),
120 [IB_WR_LOCAL_INV] = cpu_to_be32(MLX4_OPCODE_LOCAL_INVAL),
121 [IB_WR_REG_MR] = cpu_to_be32(MLX4_OPCODE_FMR),
122 [IB_WR_MASKED_ATOMIC_CMP_AND_SWP] = cpu_to_be32(MLX4_OPCODE_MASKED_ATOMIC_CS),
123 [IB_WR_MASKED_ATOMIC_FETCH_AND_ADD] = cpu_to_be32(MLX4_OPCODE_MASKED_ATOMIC_FA),
124 };
125
to_msqp(struct mlx4_ib_qp * mqp)126 static struct mlx4_ib_sqp *to_msqp(struct mlx4_ib_qp *mqp)
127 {
128 return container_of(mqp, struct mlx4_ib_sqp, qp);
129 }
130
is_tunnel_qp(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)131 static int is_tunnel_qp(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp)
132 {
133 if (!mlx4_is_master(dev->dev))
134 return 0;
135
136 return qp->mqp.qpn >= dev->dev->phys_caps.base_tunnel_sqpn &&
137 qp->mqp.qpn < dev->dev->phys_caps.base_tunnel_sqpn +
138 8 * MLX4_MFUNC_MAX;
139 }
140
is_sqp(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)141 static int is_sqp(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp)
142 {
143 int proxy_sqp = 0;
144 int real_sqp = 0;
145 int i;
146 /* PPF or Native -- real SQP */
147 real_sqp = ((mlx4_is_master(dev->dev) || !mlx4_is_mfunc(dev->dev)) &&
148 qp->mqp.qpn >= dev->dev->phys_caps.base_sqpn &&
149 qp->mqp.qpn <= dev->dev->phys_caps.base_sqpn + 3);
150 if (real_sqp)
151 return 1;
152 /* VF or PF -- proxy SQP */
153 if (mlx4_is_mfunc(dev->dev)) {
154 for (i = 0; i < dev->dev->caps.num_ports; i++) {
155 if (qp->mqp.qpn == dev->dev->caps.qp0_proxy[i] ||
156 qp->mqp.qpn == dev->dev->caps.qp1_proxy[i]) {
157 proxy_sqp = 1;
158 break;
159 }
160 }
161 }
162 if (proxy_sqp)
163 return 1;
164
165 return !!(qp->flags & MLX4_IB_ROCE_V2_GSI_QP);
166 }
167
168 /* used for INIT/CLOSE port logic */
is_qp0(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)169 static int is_qp0(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp)
170 {
171 int proxy_qp0 = 0;
172 int real_qp0 = 0;
173 int i;
174 /* PPF or Native -- real QP0 */
175 real_qp0 = ((mlx4_is_master(dev->dev) || !mlx4_is_mfunc(dev->dev)) &&
176 qp->mqp.qpn >= dev->dev->phys_caps.base_sqpn &&
177 qp->mqp.qpn <= dev->dev->phys_caps.base_sqpn + 1);
178 if (real_qp0)
179 return 1;
180 /* VF or PF -- proxy QP0 */
181 if (mlx4_is_mfunc(dev->dev)) {
182 for (i = 0; i < dev->dev->caps.num_ports; i++) {
183 if (qp->mqp.qpn == dev->dev->caps.qp0_proxy[i]) {
184 proxy_qp0 = 1;
185 break;
186 }
187 }
188 }
189 return proxy_qp0;
190 }
191
get_wqe(struct mlx4_ib_qp * qp,int offset)192 static void *get_wqe(struct mlx4_ib_qp *qp, int offset)
193 {
194 return mlx4_buf_offset(&qp->buf, offset);
195 }
196
get_recv_wqe(struct mlx4_ib_qp * qp,int n)197 static void *get_recv_wqe(struct mlx4_ib_qp *qp, int n)
198 {
199 return get_wqe(qp, qp->rq.offset + (n << qp->rq.wqe_shift));
200 }
201
get_send_wqe(struct mlx4_ib_qp * qp,int n)202 static void *get_send_wqe(struct mlx4_ib_qp *qp, int n)
203 {
204 return get_wqe(qp, qp->sq.offset + (n << qp->sq.wqe_shift));
205 }
206
207 /*
208 * Stamp a SQ WQE so that it is invalid if prefetched by marking the
209 * first four bytes of every 64 byte chunk with
210 * 0x7FFFFFF | (invalid_ownership_value << 31).
211 *
212 * When the max work request size is less than or equal to the WQE
213 * basic block size, as an optimization, we can stamp all WQEs with
214 * 0xffffffff, and skip the very first chunk of each WQE.
215 */
stamp_send_wqe(struct mlx4_ib_qp * qp,int n,int size)216 static void stamp_send_wqe(struct mlx4_ib_qp *qp, int n, int size)
217 {
218 __be32 *wqe;
219 int i;
220 int s;
221 int ind;
222 void *buf;
223 __be32 stamp;
224 struct mlx4_wqe_ctrl_seg *ctrl;
225
226 if (qp->sq_max_wqes_per_wr > 1) {
227 s = roundup(size, 1U << qp->sq.wqe_shift);
228 for (i = 0; i < s; i += 64) {
229 ind = (i >> qp->sq.wqe_shift) + n;
230 stamp = ind & qp->sq.wqe_cnt ? cpu_to_be32(0x7fffffff) :
231 cpu_to_be32(0xffffffff);
232 buf = get_send_wqe(qp, ind & (qp->sq.wqe_cnt - 1));
233 wqe = buf + (i & ((1 << qp->sq.wqe_shift) - 1));
234 *wqe = stamp;
235 }
236 } else {
237 ctrl = buf = get_send_wqe(qp, n & (qp->sq.wqe_cnt - 1));
238 s = (ctrl->fence_size & 0x3f) << 4;
239 for (i = 64; i < s; i += 64) {
240 wqe = buf + i;
241 *wqe = cpu_to_be32(0xffffffff);
242 }
243 }
244 }
245
post_nop_wqe(struct mlx4_ib_qp * qp,int n,int size)246 static void post_nop_wqe(struct mlx4_ib_qp *qp, int n, int size)
247 {
248 struct mlx4_wqe_ctrl_seg *ctrl;
249 struct mlx4_wqe_inline_seg *inl;
250 void *wqe;
251 int s;
252
253 ctrl = wqe = get_send_wqe(qp, n & (qp->sq.wqe_cnt - 1));
254 s = sizeof(struct mlx4_wqe_ctrl_seg);
255
256 if (qp->ibqp.qp_type == IB_QPT_UD) {
257 struct mlx4_wqe_datagram_seg *dgram = wqe + sizeof *ctrl;
258 struct mlx4_av *av = (struct mlx4_av *)dgram->av;
259 memset(dgram, 0, sizeof *dgram);
260 av->port_pd = cpu_to_be32((qp->port << 24) | to_mpd(qp->ibqp.pd)->pdn);
261 s += sizeof(struct mlx4_wqe_datagram_seg);
262 }
263
264 /* Pad the remainder of the WQE with an inline data segment. */
265 if (size > s) {
266 inl = wqe + s;
267 inl->byte_count = cpu_to_be32(1U << 31 | (size - s - sizeof *inl));
268 }
269 ctrl->srcrb_flags = 0;
270 ctrl->fence_size = size / 16;
271 /*
272 * Make sure descriptor is fully written before setting ownership bit
273 * (because HW can start executing as soon as we do).
274 */
275 wmb();
276
277 ctrl->owner_opcode = cpu_to_be32(MLX4_OPCODE_NOP | MLX4_WQE_CTRL_NEC) |
278 (n & qp->sq.wqe_cnt ? cpu_to_be32(1U << 31) : 0);
279
280 stamp_send_wqe(qp, n + qp->sq_spare_wqes, size);
281 }
282
283 /* Post NOP WQE to prevent wrap-around in the middle of WR */
pad_wraparound(struct mlx4_ib_qp * qp,int ind)284 static inline unsigned pad_wraparound(struct mlx4_ib_qp *qp, int ind)
285 {
286 unsigned s = qp->sq.wqe_cnt - (ind & (qp->sq.wqe_cnt - 1));
287 if (unlikely(s < qp->sq_max_wqes_per_wr)) {
288 post_nop_wqe(qp, ind, s << qp->sq.wqe_shift);
289 ind += s;
290 }
291 return ind;
292 }
293
mlx4_ib_qp_event(struct mlx4_qp * qp,enum mlx4_event type)294 static void mlx4_ib_qp_event(struct mlx4_qp *qp, enum mlx4_event type)
295 {
296 struct ib_event event;
297 struct ib_qp *ibqp = &to_mibqp(qp)->ibqp;
298
299 if (type == MLX4_EVENT_TYPE_PATH_MIG)
300 to_mibqp(qp)->port = to_mibqp(qp)->alt_port;
301
302 if (ibqp->event_handler) {
303 event.device = ibqp->device;
304 event.element.qp = ibqp;
305 switch (type) {
306 case MLX4_EVENT_TYPE_PATH_MIG:
307 event.event = IB_EVENT_PATH_MIG;
308 break;
309 case MLX4_EVENT_TYPE_COMM_EST:
310 event.event = IB_EVENT_COMM_EST;
311 break;
312 case MLX4_EVENT_TYPE_SQ_DRAINED:
313 event.event = IB_EVENT_SQ_DRAINED;
314 break;
315 case MLX4_EVENT_TYPE_SRQ_QP_LAST_WQE:
316 event.event = IB_EVENT_QP_LAST_WQE_REACHED;
317 break;
318 case MLX4_EVENT_TYPE_WQ_CATAS_ERROR:
319 event.event = IB_EVENT_QP_FATAL;
320 break;
321 case MLX4_EVENT_TYPE_PATH_MIG_FAILED:
322 event.event = IB_EVENT_PATH_MIG_ERR;
323 break;
324 case MLX4_EVENT_TYPE_WQ_INVAL_REQ_ERROR:
325 event.event = IB_EVENT_QP_REQ_ERR;
326 break;
327 case MLX4_EVENT_TYPE_WQ_ACCESS_ERROR:
328 event.event = IB_EVENT_QP_ACCESS_ERR;
329 break;
330 default:
331 pr_warn("Unexpected event type %d "
332 "on QP %06x\n", type, qp->qpn);
333 return;
334 }
335
336 ibqp->event_handler(&event, ibqp->qp_context);
337 }
338 }
339
send_wqe_overhead(enum mlx4_ib_qp_type type,u32 flags)340 static int send_wqe_overhead(enum mlx4_ib_qp_type type, u32 flags)
341 {
342 /*
343 * UD WQEs must have a datagram segment.
344 * RC and UC WQEs might have a remote address segment.
345 * MLX WQEs need two extra inline data segments (for the UD
346 * header and space for the ICRC).
347 */
348 switch (type) {
349 case MLX4_IB_QPT_UD:
350 return sizeof (struct mlx4_wqe_ctrl_seg) +
351 sizeof (struct mlx4_wqe_datagram_seg) +
352 ((flags & MLX4_IB_QP_LSO) ? MLX4_IB_LSO_HEADER_SPARE : 0);
353 case MLX4_IB_QPT_PROXY_SMI_OWNER:
354 case MLX4_IB_QPT_PROXY_SMI:
355 case MLX4_IB_QPT_PROXY_GSI:
356 return sizeof (struct mlx4_wqe_ctrl_seg) +
357 sizeof (struct mlx4_wqe_datagram_seg) + 64;
358 case MLX4_IB_QPT_TUN_SMI_OWNER:
359 case MLX4_IB_QPT_TUN_GSI:
360 return sizeof (struct mlx4_wqe_ctrl_seg) +
361 sizeof (struct mlx4_wqe_datagram_seg);
362
363 case MLX4_IB_QPT_UC:
364 return sizeof (struct mlx4_wqe_ctrl_seg) +
365 sizeof (struct mlx4_wqe_raddr_seg);
366 case MLX4_IB_QPT_RC:
367 return sizeof (struct mlx4_wqe_ctrl_seg) +
368 sizeof (struct mlx4_wqe_masked_atomic_seg) +
369 sizeof (struct mlx4_wqe_raddr_seg);
370 case MLX4_IB_QPT_SMI:
371 case MLX4_IB_QPT_GSI:
372 return sizeof (struct mlx4_wqe_ctrl_seg) +
373 ALIGN(MLX4_IB_UD_HEADER_SIZE +
374 DIV_ROUND_UP(MLX4_IB_UD_HEADER_SIZE,
375 MLX4_INLINE_ALIGN) *
376 sizeof (struct mlx4_wqe_inline_seg),
377 sizeof (struct mlx4_wqe_data_seg)) +
378 ALIGN(4 +
379 sizeof (struct mlx4_wqe_inline_seg),
380 sizeof (struct mlx4_wqe_data_seg));
381 default:
382 return sizeof (struct mlx4_wqe_ctrl_seg);
383 }
384 }
385
set_rq_size(struct mlx4_ib_dev * dev,struct ib_qp_cap * cap,int is_user,int has_rq,struct mlx4_ib_qp * qp)386 static int set_rq_size(struct mlx4_ib_dev *dev, struct ib_qp_cap *cap,
387 int is_user, int has_rq, struct mlx4_ib_qp *qp)
388 {
389 /* Sanity check RQ size before proceeding */
390 if (cap->max_recv_wr > dev->dev->caps.max_wqes - MLX4_IB_SQ_MAX_SPARE ||
391 cap->max_recv_sge > min(dev->dev->caps.max_sq_sg, dev->dev->caps.max_rq_sg))
392 return -EINVAL;
393
394 if (!has_rq) {
395 if (cap->max_recv_wr)
396 return -EINVAL;
397
398 qp->rq.wqe_cnt = qp->rq.max_gs = 0;
399 } else {
400 /* HW requires >= 1 RQ entry with >= 1 gather entry */
401 if (is_user && (!cap->max_recv_wr || !cap->max_recv_sge))
402 return -EINVAL;
403
404 qp->rq.wqe_cnt = roundup_pow_of_two(max(1U, cap->max_recv_wr));
405 qp->rq.max_gs = roundup_pow_of_two(max(1U, cap->max_recv_sge));
406 qp->rq.wqe_shift = ilog2(qp->rq.max_gs * sizeof (struct mlx4_wqe_data_seg));
407 }
408
409 /* leave userspace return values as they were, so as not to break ABI */
410 if (is_user) {
411 cap->max_recv_wr = qp->rq.max_post = qp->rq.wqe_cnt;
412 cap->max_recv_sge = qp->rq.max_gs;
413 } else {
414 cap->max_recv_wr = qp->rq.max_post =
415 min(dev->dev->caps.max_wqes - MLX4_IB_SQ_MAX_SPARE, qp->rq.wqe_cnt);
416 cap->max_recv_sge = min(qp->rq.max_gs,
417 min(dev->dev->caps.max_sq_sg,
418 dev->dev->caps.max_rq_sg));
419 }
420
421 return 0;
422 }
423
set_kernel_sq_size(struct mlx4_ib_dev * dev,struct ib_qp_cap * cap,enum mlx4_ib_qp_type type,struct mlx4_ib_qp * qp,bool shrink_wqe)424 static int set_kernel_sq_size(struct mlx4_ib_dev *dev, struct ib_qp_cap *cap,
425 enum mlx4_ib_qp_type type, struct mlx4_ib_qp *qp,
426 bool shrink_wqe)
427 {
428 int s;
429
430 /* Sanity check SQ size before proceeding */
431 if (cap->max_send_wr > (dev->dev->caps.max_wqes - MLX4_IB_SQ_MAX_SPARE) ||
432 cap->max_send_sge > min(dev->dev->caps.max_sq_sg, dev->dev->caps.max_rq_sg) ||
433 cap->max_inline_data + send_wqe_overhead(type, qp->flags) +
434 sizeof (struct mlx4_wqe_inline_seg) > dev->dev->caps.max_sq_desc_sz)
435 return -EINVAL;
436
437 /*
438 * For MLX transport we need 2 extra S/G entries:
439 * one for the header and one for the checksum at the end
440 */
441 if ((type == MLX4_IB_QPT_SMI || type == MLX4_IB_QPT_GSI ||
442 type & (MLX4_IB_QPT_PROXY_SMI_OWNER | MLX4_IB_QPT_TUN_SMI_OWNER)) &&
443 cap->max_send_sge + 2 > dev->dev->caps.max_sq_sg)
444 return -EINVAL;
445
446 s = max(cap->max_send_sge * sizeof (struct mlx4_wqe_data_seg),
447 cap->max_inline_data + sizeof (struct mlx4_wqe_inline_seg)) +
448 send_wqe_overhead(type, qp->flags);
449
450 if (s > dev->dev->caps.max_sq_desc_sz)
451 return -EINVAL;
452
453 /*
454 * Hermon supports shrinking WQEs, such that a single work
455 * request can include multiple units of 1 << wqe_shift. This
456 * way, work requests can differ in size, and do not have to
457 * be a power of 2 in size, saving memory and speeding up send
458 * WR posting. Unfortunately, if we do this then the
459 * wqe_index field in CQEs can't be used to look up the WR ID
460 * anymore, so we do this only if selective signaling is off.
461 *
462 * Further, on 32-bit platforms, we can't use vmap() to make
463 * the QP buffer virtually contiguous. Thus we have to use
464 * constant-sized WRs to make sure a WR is always fully within
465 * a single page-sized chunk.
466 *
467 * Finally, we use NOP work requests to pad the end of the
468 * work queue, to avoid wrap-around in the middle of WR. We
469 * set NEC bit to avoid getting completions with error for
470 * these NOP WRs, but since NEC is only supported starting
471 * with firmware 2.2.232, we use constant-sized WRs for older
472 * firmware.
473 *
474 * And, since MLX QPs only support SEND, we use constant-sized
475 * WRs in this case.
476 *
477 * We look for the smallest value of wqe_shift such that the
478 * resulting number of wqes does not exceed device
479 * capabilities.
480 *
481 * We set WQE size to at least 64 bytes, this way stamping
482 * invalidates each WQE.
483 */
484 if (shrink_wqe && dev->dev->caps.fw_ver >= MLX4_FW_VER_WQE_CTRL_NEC &&
485 qp->sq_signal_bits && BITS_PER_LONG == 64 &&
486 type != MLX4_IB_QPT_SMI && type != MLX4_IB_QPT_GSI &&
487 !(type & (MLX4_IB_QPT_PROXY_SMI_OWNER | MLX4_IB_QPT_PROXY_SMI |
488 MLX4_IB_QPT_PROXY_GSI | MLX4_IB_QPT_TUN_SMI_OWNER)))
489 qp->sq.wqe_shift = ilog2(64);
490 else
491 qp->sq.wqe_shift = order_base_2(s);
492
493 for (;;) {
494 qp->sq_max_wqes_per_wr = DIV_ROUND_UP(s, 1U << qp->sq.wqe_shift);
495
496 /*
497 * We need to leave 2 KB + 1 WR of headroom in the SQ to
498 * allow HW to prefetch.
499 */
500 qp->sq_spare_wqes = (2048 >> qp->sq.wqe_shift) + qp->sq_max_wqes_per_wr;
501 qp->sq.wqe_cnt = roundup_pow_of_two(cap->max_send_wr *
502 qp->sq_max_wqes_per_wr +
503 qp->sq_spare_wqes);
504
505 if (qp->sq.wqe_cnt <= dev->dev->caps.max_wqes)
506 break;
507
508 if (qp->sq_max_wqes_per_wr <= 1)
509 return -EINVAL;
510
511 ++qp->sq.wqe_shift;
512 }
513
514 qp->sq.max_gs = (min(dev->dev->caps.max_sq_desc_sz,
515 (qp->sq_max_wqes_per_wr << qp->sq.wqe_shift)) -
516 send_wqe_overhead(type, qp->flags)) /
517 sizeof (struct mlx4_wqe_data_seg);
518
519 qp->buf_size = (qp->rq.wqe_cnt << qp->rq.wqe_shift) +
520 (qp->sq.wqe_cnt << qp->sq.wqe_shift);
521 if (qp->rq.wqe_shift > qp->sq.wqe_shift) {
522 qp->rq.offset = 0;
523 qp->sq.offset = qp->rq.wqe_cnt << qp->rq.wqe_shift;
524 } else {
525 qp->rq.offset = qp->sq.wqe_cnt << qp->sq.wqe_shift;
526 qp->sq.offset = 0;
527 }
528
529 cap->max_send_wr = qp->sq.max_post =
530 (qp->sq.wqe_cnt - qp->sq_spare_wqes) / qp->sq_max_wqes_per_wr;
531 cap->max_send_sge = min(qp->sq.max_gs,
532 min(dev->dev->caps.max_sq_sg,
533 dev->dev->caps.max_rq_sg));
534 /* We don't support inline sends for kernel QPs (yet) */
535 cap->max_inline_data = 0;
536
537 return 0;
538 }
539
set_user_sq_size(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp,struct mlx4_ib_create_qp * ucmd)540 static int set_user_sq_size(struct mlx4_ib_dev *dev,
541 struct mlx4_ib_qp *qp,
542 struct mlx4_ib_create_qp *ucmd)
543 {
544 /* Sanity check SQ size before proceeding */
545 if ((1 << ucmd->log_sq_bb_count) > dev->dev->caps.max_wqes ||
546 ucmd->log_sq_stride >
547 order_base_2(dev->dev->caps.max_sq_desc_sz) ||
548 ucmd->log_sq_stride < MLX4_IB_MIN_SQ_STRIDE)
549 return -EINVAL;
550
551 qp->sq.wqe_cnt = 1 << ucmd->log_sq_bb_count;
552 qp->sq.wqe_shift = ucmd->log_sq_stride;
553
554 qp->buf_size = (qp->rq.wqe_cnt << qp->rq.wqe_shift) +
555 (qp->sq.wqe_cnt << qp->sq.wqe_shift);
556
557 return 0;
558 }
559
alloc_proxy_bufs(struct ib_device * dev,struct mlx4_ib_qp * qp)560 static int alloc_proxy_bufs(struct ib_device *dev, struct mlx4_ib_qp *qp)
561 {
562 int i;
563
564 qp->sqp_proxy_rcv =
565 kmalloc_array(qp->rq.wqe_cnt, sizeof(struct mlx4_ib_buf),
566 GFP_KERNEL);
567 if (!qp->sqp_proxy_rcv)
568 return -ENOMEM;
569 for (i = 0; i < qp->rq.wqe_cnt; i++) {
570 qp->sqp_proxy_rcv[i].addr =
571 kmalloc(sizeof (struct mlx4_ib_proxy_sqp_hdr),
572 GFP_KERNEL);
573 if (!qp->sqp_proxy_rcv[i].addr)
574 goto err;
575 qp->sqp_proxy_rcv[i].map =
576 ib_dma_map_single(dev, qp->sqp_proxy_rcv[i].addr,
577 sizeof (struct mlx4_ib_proxy_sqp_hdr),
578 DMA_FROM_DEVICE);
579 if (ib_dma_mapping_error(dev, qp->sqp_proxy_rcv[i].map)) {
580 kfree(qp->sqp_proxy_rcv[i].addr);
581 goto err;
582 }
583 }
584 return 0;
585
586 err:
587 while (i > 0) {
588 --i;
589 ib_dma_unmap_single(dev, qp->sqp_proxy_rcv[i].map,
590 sizeof (struct mlx4_ib_proxy_sqp_hdr),
591 DMA_FROM_DEVICE);
592 kfree(qp->sqp_proxy_rcv[i].addr);
593 }
594 kfree(qp->sqp_proxy_rcv);
595 qp->sqp_proxy_rcv = NULL;
596 return -ENOMEM;
597 }
598
free_proxy_bufs(struct ib_device * dev,struct mlx4_ib_qp * qp)599 static void free_proxy_bufs(struct ib_device *dev, struct mlx4_ib_qp *qp)
600 {
601 int i;
602
603 for (i = 0; i < qp->rq.wqe_cnt; i++) {
604 ib_dma_unmap_single(dev, qp->sqp_proxy_rcv[i].map,
605 sizeof (struct mlx4_ib_proxy_sqp_hdr),
606 DMA_FROM_DEVICE);
607 kfree(qp->sqp_proxy_rcv[i].addr);
608 }
609 kfree(qp->sqp_proxy_rcv);
610 }
611
qp_has_rq(struct ib_qp_init_attr * attr)612 static int qp_has_rq(struct ib_qp_init_attr *attr)
613 {
614 if (attr->qp_type == IB_QPT_XRC_INI || attr->qp_type == IB_QPT_XRC_TGT)
615 return 0;
616
617 return !attr->srq;
618 }
619
qp0_enabled_vf(struct mlx4_dev * dev,int qpn)620 static int qp0_enabled_vf(struct mlx4_dev *dev, int qpn)
621 {
622 int i;
623 for (i = 0; i < dev->caps.num_ports; i++) {
624 if (qpn == dev->caps.qp0_proxy[i])
625 return !!dev->caps.qp0_qkey[i];
626 }
627 return 0;
628 }
629
mlx4_ib_free_qp_counter(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)630 static void mlx4_ib_free_qp_counter(struct mlx4_ib_dev *dev,
631 struct mlx4_ib_qp *qp)
632 {
633 mutex_lock(&dev->counters_table[qp->port - 1].mutex);
634 mlx4_counter_free(dev->dev, qp->counter_index->index);
635 list_del(&qp->counter_index->list);
636 mutex_unlock(&dev->counters_table[qp->port - 1].mutex);
637
638 kfree(qp->counter_index);
639 qp->counter_index = NULL;
640 }
641
create_qp_common(struct mlx4_ib_dev * dev,struct ib_pd * pd,struct ib_qp_init_attr * init_attr,struct ib_udata * udata,int sqpn,struct mlx4_ib_qp ** caller_qp,gfp_t gfp)642 static int create_qp_common(struct mlx4_ib_dev *dev, struct ib_pd *pd,
643 struct ib_qp_init_attr *init_attr,
644 struct ib_udata *udata, int sqpn, struct mlx4_ib_qp **caller_qp,
645 gfp_t gfp)
646 {
647 int qpn;
648 int err;
649 struct ib_qp_cap backup_cap;
650 struct mlx4_ib_sqp *sqp;
651 struct mlx4_ib_qp *qp;
652 enum mlx4_ib_qp_type qp_type = (enum mlx4_ib_qp_type) init_attr->qp_type;
653 struct mlx4_ib_cq *mcq;
654 unsigned long flags;
655
656 /* When tunneling special qps, we use a plain UD qp */
657 if (sqpn) {
658 if (mlx4_is_mfunc(dev->dev) &&
659 (!mlx4_is_master(dev->dev) ||
660 !(init_attr->create_flags & MLX4_IB_SRIOV_SQP))) {
661 if (init_attr->qp_type == IB_QPT_GSI)
662 qp_type = MLX4_IB_QPT_PROXY_GSI;
663 else {
664 if (mlx4_is_master(dev->dev) ||
665 qp0_enabled_vf(dev->dev, sqpn))
666 qp_type = MLX4_IB_QPT_PROXY_SMI_OWNER;
667 else
668 qp_type = MLX4_IB_QPT_PROXY_SMI;
669 }
670 }
671 qpn = sqpn;
672 /* add extra sg entry for tunneling */
673 init_attr->cap.max_recv_sge++;
674 } else if (init_attr->create_flags & MLX4_IB_SRIOV_TUNNEL_QP) {
675 struct mlx4_ib_qp_tunnel_init_attr *tnl_init =
676 container_of(init_attr,
677 struct mlx4_ib_qp_tunnel_init_attr, init_attr);
678 if ((tnl_init->proxy_qp_type != IB_QPT_SMI &&
679 tnl_init->proxy_qp_type != IB_QPT_GSI) ||
680 !mlx4_is_master(dev->dev))
681 return -EINVAL;
682 if (tnl_init->proxy_qp_type == IB_QPT_GSI)
683 qp_type = MLX4_IB_QPT_TUN_GSI;
684 else if (tnl_init->slave == mlx4_master_func_num(dev->dev) ||
685 mlx4_vf_smi_enabled(dev->dev, tnl_init->slave,
686 tnl_init->port))
687 qp_type = MLX4_IB_QPT_TUN_SMI_OWNER;
688 else
689 qp_type = MLX4_IB_QPT_TUN_SMI;
690 /* we are definitely in the PPF here, since we are creating
691 * tunnel QPs. base_tunnel_sqpn is therefore valid. */
692 qpn = dev->dev->phys_caps.base_tunnel_sqpn + 8 * tnl_init->slave
693 + tnl_init->proxy_qp_type * 2 + tnl_init->port - 1;
694 sqpn = qpn;
695 }
696
697 if (!*caller_qp) {
698 if (qp_type == MLX4_IB_QPT_SMI || qp_type == MLX4_IB_QPT_GSI ||
699 (qp_type & (MLX4_IB_QPT_PROXY_SMI | MLX4_IB_QPT_PROXY_SMI_OWNER |
700 MLX4_IB_QPT_PROXY_GSI | MLX4_IB_QPT_TUN_SMI_OWNER))) {
701 sqp = kzalloc(sizeof (struct mlx4_ib_sqp), gfp);
702 if (!sqp)
703 return -ENOMEM;
704 qp = &sqp->qp;
705 qp->pri.vid = 0xFFFF;
706 qp->alt.vid = 0xFFFF;
707 } else {
708 qp = kzalloc(sizeof (struct mlx4_ib_qp), gfp);
709 if (!qp)
710 return -ENOMEM;
711 qp->pri.vid = 0xFFFF;
712 qp->alt.vid = 0xFFFF;
713 }
714 } else
715 qp = *caller_qp;
716
717 qp->mlx4_ib_qp_type = qp_type;
718
719 mutex_init(&qp->mutex);
720 spin_lock_init(&qp->sq.lock);
721 spin_lock_init(&qp->rq.lock);
722 INIT_LIST_HEAD(&qp->gid_list);
723 INIT_LIST_HEAD(&qp->steering_rules);
724
725 qp->state = IB_QPS_RESET;
726 if (init_attr->sq_sig_type == IB_SIGNAL_ALL_WR)
727 qp->sq_signal_bits = cpu_to_be32(MLX4_WQE_CTRL_CQ_UPDATE);
728
729 err = set_rq_size(dev, &init_attr->cap, !!pd->uobject, qp_has_rq(init_attr), qp);
730 if (err)
731 goto err;
732
733 if (pd->uobject) {
734 struct mlx4_ib_create_qp ucmd;
735
736 if (ib_copy_from_udata(&ucmd, udata, sizeof ucmd)) {
737 err = -EFAULT;
738 goto err;
739 }
740
741 qp->sq_no_prefetch = ucmd.sq_no_prefetch;
742
743 err = set_user_sq_size(dev, qp, &ucmd);
744 if (err)
745 goto err;
746
747 qp->umem = ib_umem_get(pd->uobject->context, ucmd.buf_addr,
748 qp->buf_size, 0, 0);
749 if (IS_ERR(qp->umem)) {
750 err = PTR_ERR(qp->umem);
751 goto err;
752 }
753
754 err = mlx4_mtt_init(dev->dev, ib_umem_page_count(qp->umem),
755 qp->umem->page_shift, &qp->mtt);
756 if (err)
757 goto err_buf;
758
759 err = mlx4_ib_umem_write_mtt(dev, &qp->mtt, qp->umem);
760 if (err)
761 goto err_mtt;
762
763 if (qp_has_rq(init_attr)) {
764 err = mlx4_ib_db_map_user(to_mucontext(pd->uobject->context),
765 ucmd.db_addr, &qp->db);
766 if (err)
767 goto err_mtt;
768 }
769 } else {
770 qp->sq_no_prefetch = 0;
771
772 if (init_attr->create_flags & IB_QP_CREATE_IPOIB_UD_LSO)
773 qp->flags |= MLX4_IB_QP_LSO;
774
775 if (init_attr->create_flags & IB_QP_CREATE_NETIF_QP) {
776 if (dev->steering_support ==
777 MLX4_STEERING_MODE_DEVICE_MANAGED)
778 qp->flags |= MLX4_IB_QP_NETIF;
779 else
780 goto err;
781 }
782
783 memcpy(&backup_cap, &init_attr->cap, sizeof(backup_cap));
784 err = set_kernel_sq_size(dev, &init_attr->cap,
785 qp_type, qp, true);
786 if (err)
787 goto err;
788
789 if (qp_has_rq(init_attr)) {
790 err = mlx4_db_alloc(dev->dev, &qp->db, 0, gfp);
791 if (err)
792 goto err;
793
794 *qp->db.db = 0;
795 }
796
797 if (mlx4_buf_alloc(dev->dev, qp->buf_size, qp->buf_size,
798 &qp->buf, gfp)) {
799 memcpy(&init_attr->cap, &backup_cap,
800 sizeof(backup_cap));
801 err = set_kernel_sq_size(dev, &init_attr->cap, qp_type,
802 qp, false);
803 if (err)
804 goto err_db;
805
806 if (mlx4_buf_alloc(dev->dev, qp->buf_size,
807 PAGE_SIZE * 2, &qp->buf, gfp)) {
808 err = -ENOMEM;
809 goto err_db;
810 }
811 }
812
813 err = mlx4_mtt_init(dev->dev, qp->buf.npages, qp->buf.page_shift,
814 &qp->mtt);
815 if (err)
816 goto err_buf;
817
818 err = mlx4_buf_write_mtt(dev->dev, &qp->mtt, &qp->buf, gfp);
819 if (err)
820 goto err_mtt;
821
822 qp->sq.wrid = kmalloc_array(qp->sq.wqe_cnt, sizeof(u64),
823 gfp | __GFP_NOWARN);
824 if (!qp->sq.wrid)
825 qp->sq.wrid = __vmalloc(qp->sq.wqe_cnt * sizeof(u64),
826 gfp, 0 /*PAGE_KERNEL*/);
827 qp->rq.wrid = kmalloc_array(qp->rq.wqe_cnt, sizeof(u64),
828 gfp | __GFP_NOWARN);
829 if (!qp->rq.wrid)
830 qp->rq.wrid = __vmalloc(qp->rq.wqe_cnt * sizeof(u64),
831 gfp, 0 /*PAGE_KERNEL*/);
832 if (!qp->sq.wrid || !qp->rq.wrid) {
833 err = -ENOMEM;
834 goto err_wrid;
835 }
836 }
837
838 if (sqpn) {
839 if (qp->mlx4_ib_qp_type & (MLX4_IB_QPT_PROXY_SMI_OWNER |
840 MLX4_IB_QPT_PROXY_SMI | MLX4_IB_QPT_PROXY_GSI)) {
841 if (alloc_proxy_bufs(pd->device, qp)) {
842 err = -ENOMEM;
843 goto err_wrid;
844 }
845 }
846 } else {
847 /* Raw packet QPNs may not have bits 6,7 set in their qp_num;
848 * otherwise, the WQE BlueFlame setup flow wrongly causes
849 * VLAN insertion. */
850 if (init_attr->qp_type == IB_QPT_RAW_PACKET)
851 err = mlx4_qp_reserve_range(dev->dev, 1, 1, &qpn,
852 (init_attr->cap.max_send_wr ?
853 MLX4_RESERVE_ETH_BF_QP : 0) |
854 (init_attr->cap.max_recv_wr ?
855 MLX4_RESERVE_A0_QP : 0));
856 else
857 if (qp->flags & MLX4_IB_QP_NETIF)
858 err = mlx4_ib_steer_qp_alloc(dev, 1, &qpn);
859 else
860 err = mlx4_qp_reserve_range(dev->dev, 1, 1,
861 &qpn, 0);
862 if (err)
863 goto err_proxy;
864 }
865
866 if (init_attr->create_flags & IB_QP_CREATE_BLOCK_MULTICAST_LOOPBACK)
867 qp->flags |= MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK;
868
869 err = mlx4_qp_alloc(dev->dev, qpn, &qp->mqp, gfp);
870 if (err)
871 goto err_qpn;
872
873 if (init_attr->qp_type == IB_QPT_XRC_TGT)
874 qp->mqp.qpn |= (1 << 23);
875
876 /*
877 * Hardware wants QPN written in big-endian order (after
878 * shifting) for send doorbell. Precompute this value to save
879 * a little bit when posting sends.
880 */
881 qp->doorbell_qpn = swab32(qp->mqp.qpn << 8);
882
883 qp->mqp.event = mlx4_ib_qp_event;
884 if (!*caller_qp)
885 *caller_qp = qp;
886
887 spin_lock_irqsave(&dev->reset_flow_resource_lock, flags);
888 mlx4_ib_lock_cqs(to_mcq(init_attr->send_cq),
889 to_mcq(init_attr->recv_cq));
890 /* Maintain device to QPs access, needed for further handling
891 * via reset flow
892 */
893 list_add_tail(&qp->qps_list, &dev->qp_list);
894 /* Maintain CQ to QPs access, needed for further handling
895 * via reset flow
896 */
897 mcq = to_mcq(init_attr->send_cq);
898 list_add_tail(&qp->cq_send_list, &mcq->send_qp_list);
899 mcq = to_mcq(init_attr->recv_cq);
900 list_add_tail(&qp->cq_recv_list, &mcq->recv_qp_list);
901 mlx4_ib_unlock_cqs(to_mcq(init_attr->send_cq),
902 to_mcq(init_attr->recv_cq));
903 spin_unlock_irqrestore(&dev->reset_flow_resource_lock, flags);
904 return 0;
905
906 err_qpn:
907 if (!sqpn) {
908 if (qp->flags & MLX4_IB_QP_NETIF)
909 mlx4_ib_steer_qp_free(dev, qpn, 1);
910 else
911 mlx4_qp_release_range(dev->dev, qpn, 1);
912 }
913 err_proxy:
914 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_PROXY_GSI)
915 free_proxy_bufs(pd->device, qp);
916 err_wrid:
917 if (pd->uobject) {
918 if (qp_has_rq(init_attr))
919 mlx4_ib_db_unmap_user(to_mucontext(pd->uobject->context), &qp->db);
920 } else {
921 kvfree(qp->sq.wrid);
922 kvfree(qp->rq.wrid);
923 }
924
925 err_mtt:
926 mlx4_mtt_cleanup(dev->dev, &qp->mtt);
927
928 err_buf:
929 if (pd->uobject)
930 ib_umem_release(qp->umem);
931 else
932 mlx4_buf_free(dev->dev, qp->buf_size, &qp->buf);
933
934 err_db:
935 if (!pd->uobject && qp_has_rq(init_attr))
936 mlx4_db_free(dev->dev, &qp->db);
937
938 err:
939 if (!*caller_qp)
940 kfree(qp);
941 return err;
942 }
943
to_mlx4_state(enum ib_qp_state state)944 static enum mlx4_qp_state to_mlx4_state(enum ib_qp_state state)
945 {
946 switch (state) {
947 case IB_QPS_RESET: return MLX4_QP_STATE_RST;
948 case IB_QPS_INIT: return MLX4_QP_STATE_INIT;
949 case IB_QPS_RTR: return MLX4_QP_STATE_RTR;
950 case IB_QPS_RTS: return MLX4_QP_STATE_RTS;
951 case IB_QPS_SQD: return MLX4_QP_STATE_SQD;
952 case IB_QPS_SQE: return MLX4_QP_STATE_SQER;
953 case IB_QPS_ERR: return MLX4_QP_STATE_ERR;
954 default: return -1;
955 }
956 }
957
mlx4_ib_lock_cqs(struct mlx4_ib_cq * send_cq,struct mlx4_ib_cq * recv_cq)958 static void mlx4_ib_lock_cqs(struct mlx4_ib_cq *send_cq, struct mlx4_ib_cq *recv_cq)
959 __acquires(&send_cq->lock) __acquires(&recv_cq->lock)
960 {
961 if (send_cq == recv_cq) {
962 spin_lock(&send_cq->lock);
963 __acquire(&recv_cq->lock);
964 } else if (send_cq->mcq.cqn < recv_cq->mcq.cqn) {
965 spin_lock(&send_cq->lock);
966 spin_lock_nested(&recv_cq->lock, SINGLE_DEPTH_NESTING);
967 } else {
968 spin_lock(&recv_cq->lock);
969 spin_lock_nested(&send_cq->lock, SINGLE_DEPTH_NESTING);
970 }
971 }
972
mlx4_ib_unlock_cqs(struct mlx4_ib_cq * send_cq,struct mlx4_ib_cq * recv_cq)973 static void mlx4_ib_unlock_cqs(struct mlx4_ib_cq *send_cq, struct mlx4_ib_cq *recv_cq)
974 __releases(&send_cq->lock) __releases(&recv_cq->lock)
975 {
976 if (send_cq == recv_cq) {
977 __release(&recv_cq->lock);
978 spin_unlock(&send_cq->lock);
979 } else if (send_cq->mcq.cqn < recv_cq->mcq.cqn) {
980 spin_unlock(&recv_cq->lock);
981 spin_unlock(&send_cq->lock);
982 } else {
983 spin_unlock(&send_cq->lock);
984 spin_unlock(&recv_cq->lock);
985 }
986 }
987
del_gid_entries(struct mlx4_ib_qp * qp)988 static void del_gid_entries(struct mlx4_ib_qp *qp)
989 {
990 struct mlx4_ib_gid_entry *ge, *tmp;
991
992 list_for_each_entry_safe(ge, tmp, &qp->gid_list, list) {
993 list_del(&ge->list);
994 kfree(ge);
995 }
996 }
997
get_pd(struct mlx4_ib_qp * qp)998 static struct mlx4_ib_pd *get_pd(struct mlx4_ib_qp *qp)
999 {
1000 if (qp->ibqp.qp_type == IB_QPT_XRC_TGT)
1001 return to_mpd(to_mxrcd(qp->ibqp.xrcd)->pd);
1002 else
1003 return to_mpd(qp->ibqp.pd);
1004 }
1005
get_cqs(struct mlx4_ib_qp * qp,struct mlx4_ib_cq ** send_cq,struct mlx4_ib_cq ** recv_cq)1006 static void get_cqs(struct mlx4_ib_qp *qp,
1007 struct mlx4_ib_cq **send_cq, struct mlx4_ib_cq **recv_cq)
1008 {
1009 switch (qp->ibqp.qp_type) {
1010 case IB_QPT_XRC_TGT:
1011 *send_cq = to_mcq(to_mxrcd(qp->ibqp.xrcd)->cq);
1012 *recv_cq = *send_cq;
1013 break;
1014 case IB_QPT_XRC_INI:
1015 *send_cq = to_mcq(qp->ibqp.send_cq);
1016 *recv_cq = *send_cq;
1017 break;
1018 default:
1019 *send_cq = to_mcq(qp->ibqp.send_cq);
1020 *recv_cq = to_mcq(qp->ibqp.recv_cq);
1021 break;
1022 }
1023 }
1024
destroy_qp_common(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp,struct ib_udata * udata)1025 static void destroy_qp_common(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp,
1026 struct ib_udata *udata)
1027 {
1028 struct mlx4_ib_cq *send_cq, *recv_cq;
1029 unsigned long flags;
1030
1031 if (qp->state != IB_QPS_RESET) {
1032 if (mlx4_qp_modify(dev->dev, NULL, to_mlx4_state(qp->state),
1033 MLX4_QP_STATE_RST, NULL, 0, 0, &qp->mqp))
1034 pr_warn("modify QP %06x to RESET failed.\n",
1035 qp->mqp.qpn);
1036 if (qp->pri.smac || (!qp->pri.smac && qp->pri.smac_port)) {
1037 mlx4_unregister_mac(dev->dev, qp->pri.smac_port, qp->pri.smac);
1038 qp->pri.smac = 0;
1039 qp->pri.smac_port = 0;
1040 }
1041 if (qp->alt.smac) {
1042 mlx4_unregister_mac(dev->dev, qp->alt.smac_port, qp->alt.smac);
1043 qp->alt.smac = 0;
1044 }
1045 if (qp->pri.vid < 0x1000) {
1046 mlx4_unregister_vlan(dev->dev, qp->pri.vlan_port, qp->pri.vid);
1047 qp->pri.vid = 0xFFFF;
1048 qp->pri.candidate_vid = 0xFFFF;
1049 qp->pri.update_vid = 0;
1050 }
1051 if (qp->alt.vid < 0x1000) {
1052 mlx4_unregister_vlan(dev->dev, qp->alt.vlan_port, qp->alt.vid);
1053 qp->alt.vid = 0xFFFF;
1054 qp->alt.candidate_vid = 0xFFFF;
1055 qp->alt.update_vid = 0;
1056 }
1057 }
1058
1059 get_cqs(qp, &send_cq, &recv_cq);
1060
1061 spin_lock_irqsave(&dev->reset_flow_resource_lock, flags);
1062 mlx4_ib_lock_cqs(send_cq, recv_cq);
1063
1064 /* del from lists under both locks above to protect reset flow paths */
1065 list_del(&qp->qps_list);
1066 list_del(&qp->cq_send_list);
1067 list_del(&qp->cq_recv_list);
1068 if (!udata) {
1069 __mlx4_ib_cq_clean(recv_cq, qp->mqp.qpn,
1070 qp->ibqp.srq ? to_msrq(qp->ibqp.srq): NULL);
1071 if (send_cq != recv_cq)
1072 __mlx4_ib_cq_clean(send_cq, qp->mqp.qpn, NULL);
1073 }
1074
1075 mlx4_qp_remove(dev->dev, &qp->mqp);
1076
1077 mlx4_ib_unlock_cqs(send_cq, recv_cq);
1078 spin_unlock_irqrestore(&dev->reset_flow_resource_lock, flags);
1079
1080 mlx4_qp_free(dev->dev, &qp->mqp);
1081
1082 if (!is_sqp(dev, qp) && !is_tunnel_qp(dev, qp)) {
1083 if (qp->flags & MLX4_IB_QP_NETIF)
1084 mlx4_ib_steer_qp_free(dev, qp->mqp.qpn, 1);
1085 else
1086 mlx4_qp_release_range(dev->dev, qp->mqp.qpn, 1);
1087 }
1088
1089 mlx4_mtt_cleanup(dev->dev, &qp->mtt);
1090
1091 if (udata) {
1092 if (qp->rq.wqe_cnt) {
1093 struct mlx4_ib_ucontext *mcontext =
1094 rdma_udata_to_drv_context(
1095 udata,
1096 struct mlx4_ib_ucontext,
1097 ibucontext);
1098
1099 mlx4_ib_db_unmap_user(mcontext, &qp->db);
1100 }
1101 } else {
1102 kvfree(qp->sq.wrid);
1103 kvfree(qp->rq.wrid);
1104 if (qp->mlx4_ib_qp_type & (MLX4_IB_QPT_PROXY_SMI_OWNER |
1105 MLX4_IB_QPT_PROXY_SMI | MLX4_IB_QPT_PROXY_GSI))
1106 free_proxy_bufs(&dev->ib_dev, qp);
1107 mlx4_buf_free(dev->dev, qp->buf_size, &qp->buf);
1108 if (qp->rq.wqe_cnt)
1109 mlx4_db_free(dev->dev, &qp->db);
1110 }
1111 ib_umem_release(qp->umem);
1112
1113 del_gid_entries(qp);
1114 }
1115
get_sqp_num(struct mlx4_ib_dev * dev,struct ib_qp_init_attr * attr)1116 static u32 get_sqp_num(struct mlx4_ib_dev *dev, struct ib_qp_init_attr *attr)
1117 {
1118 /* Native or PPF */
1119 if (!mlx4_is_mfunc(dev->dev) ||
1120 (mlx4_is_master(dev->dev) &&
1121 attr->create_flags & MLX4_IB_SRIOV_SQP)) {
1122 return dev->dev->phys_caps.base_sqpn +
1123 (attr->qp_type == IB_QPT_SMI ? 0 : 2) +
1124 attr->port_num - 1;
1125 }
1126 /* PF or VF -- creating proxies */
1127 if (attr->qp_type == IB_QPT_SMI)
1128 return dev->dev->caps.qp0_proxy[attr->port_num - 1];
1129 else
1130 return dev->dev->caps.qp1_proxy[attr->port_num - 1];
1131 }
1132
_mlx4_ib_create_qp(struct ib_pd * pd,struct ib_qp_init_attr * init_attr,struct ib_udata * udata)1133 static struct ib_qp *_mlx4_ib_create_qp(struct ib_pd *pd,
1134 struct ib_qp_init_attr *init_attr,
1135 struct ib_udata *udata)
1136 {
1137 struct mlx4_ib_qp *qp = NULL;
1138 int err;
1139 int sup_u_create_flags = MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK;
1140 u16 xrcdn = 0;
1141 gfp_t gfp;
1142
1143 gfp = (init_attr->create_flags & MLX4_IB_QP_CREATE_USE_GFP_NOIO) ?
1144 GFP_NOIO : GFP_KERNEL;
1145 /*
1146 * We only support LSO, vendor flag1, and multicast loopback blocking,
1147 * and only for kernel UD QPs.
1148 */
1149 if (init_attr->create_flags & ~(MLX4_IB_QP_LSO |
1150 MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK |
1151 MLX4_IB_SRIOV_TUNNEL_QP |
1152 MLX4_IB_SRIOV_SQP |
1153 MLX4_IB_QP_NETIF |
1154 MLX4_IB_QP_CREATE_ROCE_V2_GSI |
1155 MLX4_IB_QP_CREATE_USE_GFP_NOIO))
1156 return ERR_PTR(-EINVAL);
1157
1158 if (init_attr->create_flags & IB_QP_CREATE_NETIF_QP) {
1159 if (init_attr->qp_type != IB_QPT_UD)
1160 return ERR_PTR(-EINVAL);
1161 }
1162
1163 if (init_attr->create_flags) {
1164 if (udata && init_attr->create_flags & ~(sup_u_create_flags))
1165 return ERR_PTR(-EINVAL);
1166
1167 if ((init_attr->create_flags & ~(MLX4_IB_SRIOV_SQP |
1168 MLX4_IB_QP_CREATE_USE_GFP_NOIO |
1169 MLX4_IB_QP_CREATE_ROCE_V2_GSI |
1170 MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK) &&
1171 init_attr->qp_type != IB_QPT_UD) ||
1172 (init_attr->create_flags & MLX4_IB_SRIOV_SQP &&
1173 init_attr->qp_type > IB_QPT_GSI) ||
1174 (init_attr->create_flags & MLX4_IB_QP_CREATE_ROCE_V2_GSI &&
1175 init_attr->qp_type != IB_QPT_GSI))
1176 return ERR_PTR(-EINVAL);
1177 }
1178
1179 switch (init_attr->qp_type) {
1180 case IB_QPT_XRC_TGT:
1181 pd = to_mxrcd(init_attr->xrcd)->pd;
1182 xrcdn = to_mxrcd(init_attr->xrcd)->xrcdn;
1183 init_attr->send_cq = to_mxrcd(init_attr->xrcd)->cq;
1184 /* fall through */
1185 case IB_QPT_XRC_INI:
1186 if (!(to_mdev(pd->device)->dev->caps.flags & MLX4_DEV_CAP_FLAG_XRC))
1187 return ERR_PTR(-ENOSYS);
1188 init_attr->recv_cq = init_attr->send_cq;
1189 /* fall through */
1190 case IB_QPT_RC:
1191 case IB_QPT_UC:
1192 case IB_QPT_RAW_PACKET:
1193 qp = kzalloc(sizeof *qp, gfp);
1194 if (!qp)
1195 return ERR_PTR(-ENOMEM);
1196 qp->pri.vid = 0xFFFF;
1197 qp->alt.vid = 0xFFFF;
1198 /* fall through */
1199 case IB_QPT_UD:
1200 {
1201 err = create_qp_common(to_mdev(pd->device), pd, init_attr,
1202 udata, 0, &qp, gfp);
1203 if (err) {
1204 kfree(qp);
1205 return ERR_PTR(err);
1206 }
1207
1208 qp->ibqp.qp_num = qp->mqp.qpn;
1209 qp->xrcdn = xrcdn;
1210
1211 break;
1212 }
1213 case IB_QPT_SMI:
1214 case IB_QPT_GSI:
1215 {
1216 int sqpn;
1217
1218 /* Userspace is not allowed to create special QPs: */
1219 if (udata)
1220 return ERR_PTR(-EINVAL);
1221 if (init_attr->create_flags & MLX4_IB_QP_CREATE_ROCE_V2_GSI) {
1222 int res = mlx4_qp_reserve_range(to_mdev(pd->device)->dev, 1, 1, &sqpn, 0);
1223
1224 if (res)
1225 return ERR_PTR(res);
1226 } else {
1227 sqpn = get_sqp_num(to_mdev(pd->device), init_attr);
1228 }
1229
1230 err = create_qp_common(to_mdev(pd->device), pd, init_attr, udata,
1231 sqpn,
1232 &qp, gfp);
1233 if (err)
1234 return ERR_PTR(err);
1235
1236 qp->port = init_attr->port_num;
1237 qp->ibqp.qp_num = init_attr->qp_type == IB_QPT_SMI ? 0 :
1238 init_attr->create_flags & MLX4_IB_QP_CREATE_ROCE_V2_GSI ? sqpn : 1;
1239 break;
1240 }
1241 default:
1242 /* Don't support raw QPs */
1243 return ERR_PTR(-EINVAL);
1244 }
1245
1246 return &qp->ibqp;
1247 }
1248
mlx4_ib_create_qp(struct ib_pd * pd,struct ib_qp_init_attr * init_attr,struct ib_udata * udata)1249 struct ib_qp *mlx4_ib_create_qp(struct ib_pd *pd,
1250 struct ib_qp_init_attr *init_attr,
1251 struct ib_udata *udata) {
1252 struct ib_device *device = pd ? pd->device : init_attr->xrcd->device;
1253 struct ib_qp *ibqp;
1254 struct mlx4_ib_dev *dev = to_mdev(device);
1255
1256 ibqp = _mlx4_ib_create_qp(pd, init_attr, udata);
1257
1258 if (!IS_ERR(ibqp) &&
1259 (init_attr->qp_type == IB_QPT_GSI) &&
1260 !(init_attr->create_flags & MLX4_IB_QP_CREATE_ROCE_V2_GSI)) {
1261 struct mlx4_ib_sqp *sqp = to_msqp((to_mqp(ibqp)));
1262 int is_eth = rdma_cap_eth_ah(&dev->ib_dev, init_attr->port_num);
1263
1264 if (is_eth &&
1265 dev->dev->caps.flags2 & MLX4_DEV_CAP_FLAG2_ROCE_V1_V2) {
1266 init_attr->create_flags |= MLX4_IB_QP_CREATE_ROCE_V2_GSI;
1267 sqp->roce_v2_gsi = ib_create_qp(pd, init_attr);
1268
1269 if (IS_ERR(sqp->roce_v2_gsi)) {
1270 pr_err("Failed to create GSI QP for RoCEv2 (%ld)\n", PTR_ERR(sqp->roce_v2_gsi));
1271 sqp->roce_v2_gsi = NULL;
1272 } else {
1273 sqp = to_msqp(to_mqp(sqp->roce_v2_gsi));
1274 sqp->qp.flags |= MLX4_IB_ROCE_V2_GSI_QP;
1275 }
1276
1277 init_attr->create_flags &= ~MLX4_IB_QP_CREATE_ROCE_V2_GSI;
1278 }
1279 }
1280 return ibqp;
1281 }
1282
_mlx4_ib_destroy_qp(struct ib_qp * qp,struct ib_udata * udata)1283 static int _mlx4_ib_destroy_qp(struct ib_qp *qp, struct ib_udata *udata)
1284 {
1285 struct mlx4_ib_dev *dev = to_mdev(qp->device);
1286 struct mlx4_ib_qp *mqp = to_mqp(qp);
1287
1288 if (is_qp0(dev, mqp))
1289 mlx4_CLOSE_PORT(dev->dev, mqp->port);
1290
1291 if (dev->qp1_proxy[mqp->port - 1] == mqp) {
1292 mutex_lock(&dev->qp1_proxy_lock[mqp->port - 1]);
1293 dev->qp1_proxy[mqp->port - 1] = NULL;
1294 mutex_unlock(&dev->qp1_proxy_lock[mqp->port - 1]);
1295 }
1296
1297 if (mqp->counter_index)
1298 mlx4_ib_free_qp_counter(dev, mqp);
1299
1300 destroy_qp_common(dev, mqp, udata);
1301
1302 if (is_sqp(dev, mqp))
1303 kfree(to_msqp(mqp));
1304 else
1305 kfree(mqp);
1306
1307 return 0;
1308 }
1309
mlx4_ib_destroy_qp(struct ib_qp * qp,struct ib_udata * udata)1310 int mlx4_ib_destroy_qp(struct ib_qp *qp, struct ib_udata *udata)
1311 {
1312 struct mlx4_ib_qp *mqp = to_mqp(qp);
1313
1314 if (mqp->mlx4_ib_qp_type == MLX4_IB_QPT_GSI) {
1315 struct mlx4_ib_sqp *sqp = to_msqp(mqp);
1316
1317 if (sqp->roce_v2_gsi)
1318 ib_destroy_qp(sqp->roce_v2_gsi);
1319 }
1320
1321 return _mlx4_ib_destroy_qp(qp, udata);
1322 }
1323
to_mlx4_st(struct mlx4_ib_dev * dev,enum mlx4_ib_qp_type type)1324 static int to_mlx4_st(struct mlx4_ib_dev *dev, enum mlx4_ib_qp_type type)
1325 {
1326 switch (type) {
1327 case MLX4_IB_QPT_RC: return MLX4_QP_ST_RC;
1328 case MLX4_IB_QPT_UC: return MLX4_QP_ST_UC;
1329 case MLX4_IB_QPT_UD: return MLX4_QP_ST_UD;
1330 case MLX4_IB_QPT_XRC_INI:
1331 case MLX4_IB_QPT_XRC_TGT: return MLX4_QP_ST_XRC;
1332 case MLX4_IB_QPT_SMI:
1333 case MLX4_IB_QPT_GSI:
1334 case MLX4_IB_QPT_RAW_PACKET: return MLX4_QP_ST_MLX;
1335
1336 case MLX4_IB_QPT_PROXY_SMI_OWNER:
1337 case MLX4_IB_QPT_TUN_SMI_OWNER: return (mlx4_is_mfunc(dev->dev) ?
1338 MLX4_QP_ST_MLX : -1);
1339 case MLX4_IB_QPT_PROXY_SMI:
1340 case MLX4_IB_QPT_TUN_SMI:
1341 case MLX4_IB_QPT_PROXY_GSI:
1342 case MLX4_IB_QPT_TUN_GSI: return (mlx4_is_mfunc(dev->dev) ?
1343 MLX4_QP_ST_UD : -1);
1344 default: return -1;
1345 }
1346 }
1347
to_mlx4_access_flags(struct mlx4_ib_qp * qp,const struct ib_qp_attr * attr,int attr_mask)1348 static __be32 to_mlx4_access_flags(struct mlx4_ib_qp *qp, const struct ib_qp_attr *attr,
1349 int attr_mask)
1350 {
1351 u8 dest_rd_atomic;
1352 u32 access_flags;
1353 u32 hw_access_flags = 0;
1354
1355 if (attr_mask & IB_QP_MAX_DEST_RD_ATOMIC)
1356 dest_rd_atomic = attr->max_dest_rd_atomic;
1357 else
1358 dest_rd_atomic = qp->resp_depth;
1359
1360 if (attr_mask & IB_QP_ACCESS_FLAGS)
1361 access_flags = attr->qp_access_flags;
1362 else
1363 access_flags = qp->atomic_rd_en;
1364
1365 if (!dest_rd_atomic)
1366 access_flags &= IB_ACCESS_REMOTE_WRITE;
1367
1368 if (access_flags & IB_ACCESS_REMOTE_READ)
1369 hw_access_flags |= MLX4_QP_BIT_RRE;
1370 if (access_flags & IB_ACCESS_REMOTE_ATOMIC)
1371 hw_access_flags |= MLX4_QP_BIT_RAE;
1372 if (access_flags & IB_ACCESS_REMOTE_WRITE)
1373 hw_access_flags |= MLX4_QP_BIT_RWE;
1374
1375 return cpu_to_be32(hw_access_flags);
1376 }
1377
store_sqp_attrs(struct mlx4_ib_sqp * sqp,const struct ib_qp_attr * attr,int attr_mask)1378 static void store_sqp_attrs(struct mlx4_ib_sqp *sqp, const struct ib_qp_attr *attr,
1379 int attr_mask)
1380 {
1381 if (attr_mask & IB_QP_PKEY_INDEX)
1382 sqp->pkey_index = attr->pkey_index;
1383 if (attr_mask & IB_QP_QKEY)
1384 sqp->qkey = attr->qkey;
1385 if (attr_mask & IB_QP_SQ_PSN)
1386 sqp->send_psn = attr->sq_psn;
1387 }
1388
mlx4_set_sched(struct mlx4_qp_path * path,u8 port)1389 static void mlx4_set_sched(struct mlx4_qp_path *path, u8 port)
1390 {
1391 path->sched_queue = (path->sched_queue & 0xbf) | ((port - 1) << 6);
1392 }
1393
_mlx4_set_path(struct mlx4_ib_dev * dev,const struct rdma_ah_attr * ah,u64 smac,u16 vlan_tag,struct mlx4_qp_path * path,struct mlx4_roce_smac_vlan_info * smac_info,u8 port)1394 static int _mlx4_set_path(struct mlx4_ib_dev *dev, const struct rdma_ah_attr *ah,
1395 u64 smac, u16 vlan_tag, struct mlx4_qp_path *path,
1396 struct mlx4_roce_smac_vlan_info *smac_info, u8 port)
1397 {
1398 int vidx;
1399 int smac_index;
1400 int err;
1401
1402 path->grh_mylmc = rdma_ah_get_path_bits(ah) & 0x7f;
1403 path->rlid = cpu_to_be16(rdma_ah_get_dlid(ah));
1404 if (rdma_ah_get_static_rate(ah)) {
1405 path->static_rate = rdma_ah_get_static_rate(ah) +
1406 MLX4_STAT_RATE_OFFSET;
1407 while (path->static_rate > IB_RATE_2_5_GBPS + MLX4_STAT_RATE_OFFSET &&
1408 !(1 << path->static_rate & dev->dev->caps.stat_rate_support))
1409 --path->static_rate;
1410 } else
1411 path->static_rate = 0;
1412
1413 if (rdma_ah_get_ah_flags(ah) & IB_AH_GRH) {
1414 const struct ib_global_route *grh = rdma_ah_read_grh(ah);
1415 int real_sgid_index =
1416 mlx4_ib_gid_index_to_real_index(dev, grh->sgid_attr);
1417
1418 if (real_sgid_index < 0)
1419 return real_sgid_index;
1420 if (real_sgid_index >= dev->dev->caps.gid_table_len[port]) {
1421 pr_err("sgid_index (%u) too large. max is %d\n",
1422 real_sgid_index, dev->dev->caps.gid_table_len[port] - 1);
1423 return -1;
1424 }
1425
1426 path->grh_mylmc |= 1 << 7;
1427 path->mgid_index = real_sgid_index;
1428 path->hop_limit = grh->hop_limit;
1429 path->tclass_flowlabel =
1430 cpu_to_be32((grh->traffic_class << 20) |
1431 (grh->flow_label));
1432 memcpy(path->rgid, grh->dgid.raw, 16);
1433 }
1434
1435 if (ah->type == RDMA_AH_ATTR_TYPE_ROCE) {
1436 if (!(rdma_ah_get_ah_flags(ah) & IB_AH_GRH))
1437 return -1;
1438
1439 path->sched_queue = MLX4_IB_DEFAULT_SCHED_QUEUE |
1440 ((port - 1) << 6) | ((rdma_ah_get_sl(ah) & 7) << 3);
1441
1442 path->feup |= MLX4_FEUP_FORCE_ETH_UP;
1443 if (vlan_tag < 0x1000) {
1444 if (smac_info->vid < 0x1000) {
1445 /* both valid vlan ids */
1446 if (smac_info->vid != vlan_tag) {
1447 /* different VIDs. unreg old and reg new */
1448 err = mlx4_register_vlan(dev->dev, port, vlan_tag, &vidx);
1449 if (err)
1450 return err;
1451 smac_info->candidate_vid = vlan_tag;
1452 smac_info->candidate_vlan_index = vidx;
1453 smac_info->candidate_vlan_port = port;
1454 smac_info->update_vid = 1;
1455 path->vlan_index = vidx;
1456 } else {
1457 path->vlan_index = smac_info->vlan_index;
1458 }
1459 } else {
1460 /* no current vlan tag in qp */
1461 err = mlx4_register_vlan(dev->dev, port, vlan_tag, &vidx);
1462 if (err)
1463 return err;
1464 smac_info->candidate_vid = vlan_tag;
1465 smac_info->candidate_vlan_index = vidx;
1466 smac_info->candidate_vlan_port = port;
1467 smac_info->update_vid = 1;
1468 path->vlan_index = vidx;
1469 }
1470 path->feup |= MLX4_FVL_FORCE_ETH_VLAN;
1471 path->fl = 1 << 6;
1472 } else {
1473 /* have current vlan tag. unregister it at modify-qp success */
1474 if (smac_info->vid < 0x1000) {
1475 smac_info->candidate_vid = 0xFFFF;
1476 smac_info->update_vid = 1;
1477 }
1478 }
1479
1480 /* get smac_index for RoCE use.
1481 * If no smac was yet assigned, register one.
1482 * If one was already assigned, but the new mac differs,
1483 * unregister the old one and register the new one.
1484 */
1485 if ((!smac_info->smac && !smac_info->smac_port) ||
1486 smac_info->smac != smac) {
1487 /* register candidate now, unreg if needed, after success */
1488 smac_index = mlx4_register_mac(dev->dev, port, smac);
1489 if (smac_index >= 0) {
1490 smac_info->candidate_smac_index = smac_index;
1491 smac_info->candidate_smac = smac;
1492 smac_info->candidate_smac_port = port;
1493 } else {
1494 return -EINVAL;
1495 }
1496 } else {
1497 smac_index = smac_info->smac_index;
1498 }
1499 memcpy(path->dmac, ah->roce.dmac, 6);
1500 path->ackto = MLX4_IB_LINK_TYPE_ETH;
1501 /* put MAC table smac index for IBoE */
1502 path->grh_mylmc = (u8) (smac_index) | 0x80;
1503 } else {
1504 path->sched_queue = MLX4_IB_DEFAULT_SCHED_QUEUE |
1505 ((port - 1) << 6) | ((rdma_ah_get_sl(ah) & 0xf) << 2);
1506 }
1507
1508 return 0;
1509 }
1510
mlx4_set_path(struct mlx4_ib_dev * dev,const struct ib_qp_attr * qp,enum ib_qp_attr_mask qp_attr_mask,struct mlx4_ib_qp * mqp,struct mlx4_qp_path * path,u8 port,u16 vlan_id,u8 * smac)1511 static int mlx4_set_path(struct mlx4_ib_dev *dev, const struct ib_qp_attr *qp,
1512 enum ib_qp_attr_mask qp_attr_mask,
1513 struct mlx4_ib_qp *mqp,
1514 struct mlx4_qp_path *path, u8 port,
1515 u16 vlan_id, u8 *smac)
1516 {
1517 return _mlx4_set_path(dev, &qp->ah_attr,
1518 mlx4_mac_to_u64(smac),
1519 vlan_id,
1520 path, &mqp->pri, port);
1521 }
1522
mlx4_set_alt_path(struct mlx4_ib_dev * dev,const struct ib_qp_attr * qp,enum ib_qp_attr_mask qp_attr_mask,struct mlx4_ib_qp * mqp,struct mlx4_qp_path * path,u8 port)1523 static int mlx4_set_alt_path(struct mlx4_ib_dev *dev,
1524 const struct ib_qp_attr *qp,
1525 enum ib_qp_attr_mask qp_attr_mask,
1526 struct mlx4_ib_qp *mqp,
1527 struct mlx4_qp_path *path, u8 port)
1528 {
1529 return _mlx4_set_path(dev, &qp->alt_ah_attr,
1530 0,
1531 0xffff,
1532 path, &mqp->alt, port);
1533 }
1534
update_mcg_macs(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)1535 static void update_mcg_macs(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp)
1536 {
1537 struct mlx4_ib_gid_entry *ge, *tmp;
1538
1539 list_for_each_entry_safe(ge, tmp, &qp->gid_list, list) {
1540 if (!ge->added && mlx4_ib_add_mc(dev, qp, &ge->gid)) {
1541 ge->added = 1;
1542 ge->port = qp->port;
1543 }
1544 }
1545 }
1546
handle_eth_ud_smac_index(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp,struct mlx4_qp_context * context)1547 static int handle_eth_ud_smac_index(struct mlx4_ib_dev *dev,
1548 struct mlx4_ib_qp *qp,
1549 struct mlx4_qp_context *context)
1550 {
1551 u64 u64_mac;
1552 int smac_index;
1553
1554 u64_mac = atomic64_read(&dev->iboe.mac[qp->port - 1]);
1555
1556 context->pri_path.sched_queue = MLX4_IB_DEFAULT_SCHED_QUEUE | ((qp->port - 1) << 6);
1557 if (!qp->pri.smac && !qp->pri.smac_port) {
1558 smac_index = mlx4_register_mac(dev->dev, qp->port, u64_mac);
1559 if (smac_index >= 0) {
1560 qp->pri.candidate_smac_index = smac_index;
1561 qp->pri.candidate_smac = u64_mac;
1562 qp->pri.candidate_smac_port = qp->port;
1563 context->pri_path.grh_mylmc = 0x80 | (u8) smac_index;
1564 } else {
1565 return -ENOENT;
1566 }
1567 }
1568 return 0;
1569 }
1570
create_qp_lb_counter(struct mlx4_ib_dev * dev,struct mlx4_ib_qp * qp)1571 static int create_qp_lb_counter(struct mlx4_ib_dev *dev, struct mlx4_ib_qp *qp)
1572 {
1573 struct counter_index *new_counter_index;
1574 int err;
1575 u32 tmp_idx;
1576
1577 if (rdma_port_get_link_layer(&dev->ib_dev, qp->port) !=
1578 IB_LINK_LAYER_ETHERNET ||
1579 !(qp->flags & MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK) ||
1580 !(dev->dev->caps.flags2 & MLX4_DEV_CAP_FLAG2_LB_SRC_CHK))
1581 return 0;
1582
1583 err = mlx4_counter_alloc(dev->dev, &tmp_idx);
1584 if (err)
1585 return err;
1586
1587 new_counter_index = kmalloc(sizeof(*new_counter_index), GFP_KERNEL);
1588 if (!new_counter_index) {
1589 mlx4_counter_free(dev->dev, tmp_idx);
1590 return -ENOMEM;
1591 }
1592
1593 new_counter_index->index = tmp_idx;
1594 new_counter_index->allocated = 1;
1595 qp->counter_index = new_counter_index;
1596
1597 mutex_lock(&dev->counters_table[qp->port - 1].mutex);
1598 list_add_tail(&new_counter_index->list,
1599 &dev->counters_table[qp->port - 1].counters_list);
1600 mutex_unlock(&dev->counters_table[qp->port - 1].mutex);
1601
1602 return 0;
1603 }
1604
1605 enum {
1606 MLX4_QPC_ROCE_MODE_1 = 0,
1607 MLX4_QPC_ROCE_MODE_2 = 2,
1608 MLX4_QPC_ROCE_MODE_UNDEFINED = 0xff
1609 };
1610
gid_type_to_qpc(enum ib_gid_type gid_type)1611 static u8 gid_type_to_qpc(enum ib_gid_type gid_type)
1612 {
1613 switch (gid_type) {
1614 case IB_GID_TYPE_ROCE:
1615 return MLX4_QPC_ROCE_MODE_1;
1616 case IB_GID_TYPE_ROCE_UDP_ENCAP:
1617 return MLX4_QPC_ROCE_MODE_2;
1618 default:
1619 return MLX4_QPC_ROCE_MODE_UNDEFINED;
1620 }
1621 }
1622
__mlx4_ib_modify_qp(struct ib_qp * ibqp,const struct ib_qp_attr * attr,int attr_mask,enum ib_qp_state cur_state,enum ib_qp_state new_state,struct ib_udata * udata)1623 static int __mlx4_ib_modify_qp(struct ib_qp *ibqp,
1624 const struct ib_qp_attr *attr, int attr_mask,
1625 enum ib_qp_state cur_state,
1626 enum ib_qp_state new_state,
1627 struct ib_udata *udata)
1628 {
1629 const struct ib_gid_attr *gid_attr = NULL;
1630 struct mlx4_ib_dev *dev = to_mdev(ibqp->device);
1631 struct mlx4_ib_qp *qp = to_mqp(ibqp);
1632 struct mlx4_ib_pd *pd;
1633 struct mlx4_ib_cq *send_cq, *recv_cq;
1634 struct mlx4_ib_ucontext *ucontext = rdma_udata_to_drv_context(
1635 udata, struct mlx4_ib_ucontext, ibucontext);
1636 struct mlx4_qp_context *context;
1637 enum mlx4_qp_optpar optpar = 0;
1638 int sqd_event;
1639 int steer_qp = 0;
1640 int err = -EINVAL;
1641 int counter_index;
1642
1643 /* APM is not supported under RoCE */
1644 if (attr_mask & IB_QP_ALT_PATH &&
1645 rdma_port_get_link_layer(&dev->ib_dev, qp->port) ==
1646 IB_LINK_LAYER_ETHERNET)
1647 return -ENOTSUPP;
1648
1649 context = kzalloc(sizeof *context, GFP_KERNEL);
1650 if (!context)
1651 return -ENOMEM;
1652
1653 context->flags = cpu_to_be32((to_mlx4_state(new_state) << 28) |
1654 (to_mlx4_st(dev, qp->mlx4_ib_qp_type) << 16));
1655
1656 if (!(attr_mask & IB_QP_PATH_MIG_STATE))
1657 context->flags |= cpu_to_be32(MLX4_QP_PM_MIGRATED << 11);
1658 else {
1659 optpar |= MLX4_QP_OPTPAR_PM_STATE;
1660 switch (attr->path_mig_state) {
1661 case IB_MIG_MIGRATED:
1662 context->flags |= cpu_to_be32(MLX4_QP_PM_MIGRATED << 11);
1663 break;
1664 case IB_MIG_REARM:
1665 context->flags |= cpu_to_be32(MLX4_QP_PM_REARM << 11);
1666 break;
1667 case IB_MIG_ARMED:
1668 context->flags |= cpu_to_be32(MLX4_QP_PM_ARMED << 11);
1669 break;
1670 }
1671 }
1672
1673 if (ibqp->qp_type == IB_QPT_GSI || ibqp->qp_type == IB_QPT_SMI)
1674 context->mtu_msgmax = (IB_MTU_4096 << 5) | 11;
1675 else if (ibqp->qp_type == IB_QPT_RAW_PACKET)
1676 context->mtu_msgmax = (MLX4_RAW_QP_MTU << 5) | MLX4_RAW_QP_MSGMAX;
1677 else if (ibqp->qp_type == IB_QPT_UD) {
1678 if (qp->flags & MLX4_IB_QP_LSO)
1679 context->mtu_msgmax = (IB_MTU_4096 << 5) |
1680 ilog2(dev->dev->caps.max_gso_sz);
1681 else
1682 context->mtu_msgmax = (IB_MTU_4096 << 5) | 12;
1683 } else if (attr_mask & IB_QP_PATH_MTU) {
1684 if (attr->path_mtu < IB_MTU_256 || attr->path_mtu > IB_MTU_4096) {
1685 pr_err("path MTU (%u) is invalid\n",
1686 attr->path_mtu);
1687 goto out;
1688 }
1689 context->mtu_msgmax = (attr->path_mtu << 5) |
1690 ilog2(dev->dev->caps.max_msg_sz);
1691 }
1692
1693 if (qp->rq.wqe_cnt)
1694 context->rq_size_stride = ilog2(qp->rq.wqe_cnt) << 3;
1695 context->rq_size_stride |= qp->rq.wqe_shift - 4;
1696
1697 if (qp->sq.wqe_cnt)
1698 context->sq_size_stride = ilog2(qp->sq.wqe_cnt) << 3;
1699 context->sq_size_stride |= qp->sq.wqe_shift - 4;
1700
1701 if (new_state == IB_QPS_RESET && qp->counter_index)
1702 mlx4_ib_free_qp_counter(dev, qp);
1703
1704 if (cur_state == IB_QPS_RESET && new_state == IB_QPS_INIT) {
1705 context->sq_size_stride |= !!qp->sq_no_prefetch << 7;
1706 context->xrcd = cpu_to_be32((u32) qp->xrcdn);
1707 if (ibqp->qp_type == IB_QPT_RAW_PACKET)
1708 context->param3 |= cpu_to_be32(1 << 30);
1709 }
1710
1711 if (ucontext)
1712 context->usr_page = cpu_to_be32(
1713 mlx4_to_hw_uar_index(dev->dev, ucontext->uar.index));
1714 else
1715 context->usr_page = cpu_to_be32(
1716 mlx4_to_hw_uar_index(dev->dev, dev->priv_uar.index));
1717
1718 if (attr_mask & IB_QP_DEST_QPN)
1719 context->remote_qpn = cpu_to_be32(attr->dest_qp_num);
1720
1721 if (attr_mask & IB_QP_PORT) {
1722 if (cur_state == IB_QPS_SQD && new_state == IB_QPS_SQD &&
1723 !(attr_mask & IB_QP_AV)) {
1724 mlx4_set_sched(&context->pri_path, attr->port_num);
1725 optpar |= MLX4_QP_OPTPAR_SCHED_QUEUE;
1726 }
1727 }
1728
1729 if (cur_state == IB_QPS_INIT && new_state == IB_QPS_RTR) {
1730 err = create_qp_lb_counter(dev, qp);
1731 if (err)
1732 goto out;
1733
1734 counter_index =
1735 dev->counters_table[qp->port - 1].default_counter;
1736 if (qp->counter_index)
1737 counter_index = qp->counter_index->index;
1738
1739 if (counter_index != -1) {
1740 context->pri_path.counter_index = counter_index;
1741 optpar |= MLX4_QP_OPTPAR_COUNTER_INDEX;
1742 if (qp->counter_index) {
1743 context->pri_path.fl |=
1744 MLX4_FL_ETH_SRC_CHECK_MC_LB;
1745 context->pri_path.vlan_control |=
1746 MLX4_CTRL_ETH_SRC_CHECK_IF_COUNTER;
1747 }
1748 } else
1749 context->pri_path.counter_index =
1750 MLX4_SINK_COUNTER_INDEX(dev->dev);
1751
1752 if (qp->flags & MLX4_IB_QP_NETIF) {
1753 mlx4_ib_steer_qp_reg(dev, qp, 1);
1754 steer_qp = 1;
1755 }
1756
1757 if (ibqp->qp_type == IB_QPT_GSI) {
1758 enum ib_gid_type gid_type = qp->flags & MLX4_IB_ROCE_V2_GSI_QP ?
1759 IB_GID_TYPE_ROCE_UDP_ENCAP : IB_GID_TYPE_ROCE;
1760 u8 qpc_roce_mode = gid_type_to_qpc(gid_type);
1761
1762 context->rlkey_roce_mode |= (qpc_roce_mode << 6);
1763 }
1764 }
1765
1766 if (attr_mask & IB_QP_PKEY_INDEX) {
1767 if (qp->mlx4_ib_qp_type & MLX4_IB_QPT_ANY_SRIOV)
1768 context->pri_path.disable_pkey_check = 0x40;
1769 context->pri_path.pkey_index = attr->pkey_index;
1770 optpar |= MLX4_QP_OPTPAR_PKEY_INDEX;
1771 }
1772
1773 if (attr_mask & IB_QP_AV) {
1774 u8 port_num = mlx4_is_bonded(to_mdev(ibqp->device)->dev) ? 1 :
1775 attr_mask & IB_QP_PORT ? attr->port_num : qp->port;
1776 u16 vlan = 0xffff;
1777 u8 smac[ETH_ALEN];
1778 int is_eth = rdma_cap_eth_ah(&dev->ib_dev, port_num) &&
1779 rdma_ah_get_ah_flags(&attr->ah_attr) & IB_AH_GRH;
1780
1781 if (is_eth) {
1782 gid_attr = attr->ah_attr.grh.sgid_attr;
1783 err = rdma_read_gid_l2_fields(gid_attr, &vlan,
1784 &smac[0]);
1785 if (err)
1786 goto out;
1787 }
1788
1789 if (mlx4_set_path(dev, attr, attr_mask, qp, &context->pri_path,
1790 port_num, vlan, smac))
1791 goto out;
1792
1793 optpar |= (MLX4_QP_OPTPAR_PRIMARY_ADDR_PATH |
1794 MLX4_QP_OPTPAR_SCHED_QUEUE);
1795
1796 if (is_eth &&
1797 (cur_state == IB_QPS_INIT && new_state == IB_QPS_RTR)) {
1798 u8 qpc_roce_mode = gid_type_to_qpc(gid_attr->gid_type);
1799
1800 if (qpc_roce_mode == MLX4_QPC_ROCE_MODE_UNDEFINED) {
1801 err = -EINVAL;
1802 goto out;
1803 }
1804 context->rlkey_roce_mode |= (qpc_roce_mode << 6);
1805 }
1806
1807 }
1808
1809 if (attr_mask & IB_QP_TIMEOUT) {
1810 context->pri_path.ackto |= attr->timeout << 3;
1811 optpar |= MLX4_QP_OPTPAR_ACK_TIMEOUT;
1812 }
1813
1814 if (attr_mask & IB_QP_ALT_PATH) {
1815 if (attr->alt_port_num == 0 ||
1816 attr->alt_port_num > dev->dev->caps.num_ports)
1817 goto out;
1818
1819 if (attr->alt_pkey_index >=
1820 dev->dev->caps.pkey_table_len[attr->alt_port_num])
1821 goto out;
1822
1823 if (mlx4_set_alt_path(dev, attr, attr_mask, qp,
1824 &context->alt_path,
1825 attr->alt_port_num))
1826 goto out;
1827
1828 context->alt_path.pkey_index = attr->alt_pkey_index;
1829 context->alt_path.ackto = attr->alt_timeout << 3;
1830 optpar |= MLX4_QP_OPTPAR_ALT_ADDR_PATH;
1831 }
1832
1833 pd = get_pd(qp);
1834 get_cqs(qp, &send_cq, &recv_cq);
1835 context->pd = cpu_to_be32(pd->pdn);
1836 context->cqn_send = cpu_to_be32(send_cq->mcq.cqn);
1837 context->cqn_recv = cpu_to_be32(recv_cq->mcq.cqn);
1838 context->params1 = cpu_to_be32(MLX4_IB_ACK_REQ_FREQ << 28);
1839
1840 /* Set "fast registration enabled" for all kernel QPs */
1841 if (!qp->ibqp.uobject)
1842 context->params1 |= cpu_to_be32(1 << 11);
1843
1844 if (attr_mask & IB_QP_RNR_RETRY) {
1845 context->params1 |= cpu_to_be32(attr->rnr_retry << 13);
1846 optpar |= MLX4_QP_OPTPAR_RNR_RETRY;
1847 }
1848
1849 if (attr_mask & IB_QP_RETRY_CNT) {
1850 context->params1 |= cpu_to_be32(attr->retry_cnt << 16);
1851 optpar |= MLX4_QP_OPTPAR_RETRY_COUNT;
1852 }
1853
1854 if (attr_mask & IB_QP_MAX_QP_RD_ATOMIC) {
1855 if (attr->max_rd_atomic)
1856 context->params1 |=
1857 cpu_to_be32(fls(attr->max_rd_atomic - 1) << 21);
1858 optpar |= MLX4_QP_OPTPAR_SRA_MAX;
1859 }
1860
1861 if (attr_mask & IB_QP_SQ_PSN)
1862 context->next_send_psn = cpu_to_be32(attr->sq_psn);
1863
1864 if (attr_mask & IB_QP_MAX_DEST_RD_ATOMIC) {
1865 if (attr->max_dest_rd_atomic)
1866 context->params2 |=
1867 cpu_to_be32(fls(attr->max_dest_rd_atomic - 1) << 21);
1868 optpar |= MLX4_QP_OPTPAR_RRA_MAX;
1869 }
1870
1871 if (attr_mask & (IB_QP_ACCESS_FLAGS | IB_QP_MAX_DEST_RD_ATOMIC)) {
1872 context->params2 |= to_mlx4_access_flags(qp, attr, attr_mask);
1873 optpar |= MLX4_QP_OPTPAR_RWE | MLX4_QP_OPTPAR_RRE | MLX4_QP_OPTPAR_RAE;
1874 }
1875
1876 if (ibqp->srq)
1877 context->params2 |= cpu_to_be32(MLX4_QP_BIT_RIC);
1878
1879 if (attr_mask & IB_QP_MIN_RNR_TIMER) {
1880 context->rnr_nextrecvpsn |= cpu_to_be32(attr->min_rnr_timer << 24);
1881 optpar |= MLX4_QP_OPTPAR_RNR_TIMEOUT;
1882 }
1883 if (attr_mask & IB_QP_RQ_PSN)
1884 context->rnr_nextrecvpsn |= cpu_to_be32(attr->rq_psn);
1885
1886 /* proxy and tunnel qp qkeys will be changed in modify-qp wrappers */
1887 if (attr_mask & IB_QP_QKEY) {
1888 if (qp->mlx4_ib_qp_type &
1889 (MLX4_IB_QPT_PROXY_SMI_OWNER | MLX4_IB_QPT_TUN_SMI_OWNER))
1890 context->qkey = cpu_to_be32(IB_QP_SET_QKEY);
1891 else {
1892 if (mlx4_is_mfunc(dev->dev) &&
1893 !(qp->mlx4_ib_qp_type & MLX4_IB_QPT_ANY_SRIOV) &&
1894 (attr->qkey & MLX4_RESERVED_QKEY_MASK) ==
1895 MLX4_RESERVED_QKEY_BASE) {
1896 pr_err("Cannot use reserved QKEY"
1897 " 0x%x (range 0xffff0000..0xffffffff"
1898 " is reserved)\n", attr->qkey);
1899 err = -EINVAL;
1900 goto out;
1901 }
1902 context->qkey = cpu_to_be32(attr->qkey);
1903 }
1904 optpar |= MLX4_QP_OPTPAR_Q_KEY;
1905 }
1906
1907 if (ibqp->srq)
1908 context->srqn = cpu_to_be32(1 << 24 | to_msrq(ibqp->srq)->msrq.srqn);
1909
1910 if (qp->rq.wqe_cnt && cur_state == IB_QPS_RESET && new_state == IB_QPS_INIT)
1911 context->db_rec_addr = cpu_to_be64(qp->db.dma);
1912
1913 if (cur_state == IB_QPS_INIT &&
1914 new_state == IB_QPS_RTR &&
1915 (ibqp->qp_type == IB_QPT_GSI || ibqp->qp_type == IB_QPT_SMI ||
1916 ibqp->qp_type == IB_QPT_UD ||
1917 ibqp->qp_type == IB_QPT_RAW_PACKET)) {
1918 context->pri_path.sched_queue = (qp->port - 1) << 6;
1919 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_SMI ||
1920 qp->mlx4_ib_qp_type &
1921 (MLX4_IB_QPT_PROXY_SMI_OWNER | MLX4_IB_QPT_TUN_SMI_OWNER)) {
1922 context->pri_path.sched_queue |= MLX4_IB_DEFAULT_QP0_SCHED_QUEUE;
1923 if (qp->mlx4_ib_qp_type != MLX4_IB_QPT_SMI)
1924 context->pri_path.fl = 0x80;
1925 } else {
1926 if (qp->mlx4_ib_qp_type & MLX4_IB_QPT_ANY_SRIOV)
1927 context->pri_path.fl = 0x80;
1928 context->pri_path.sched_queue |= MLX4_IB_DEFAULT_SCHED_QUEUE;
1929 }
1930 if (rdma_port_get_link_layer(&dev->ib_dev, qp->port) ==
1931 IB_LINK_LAYER_ETHERNET) {
1932 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_TUN_GSI ||
1933 qp->mlx4_ib_qp_type == MLX4_IB_QPT_GSI)
1934 context->pri_path.feup = 1 << 7; /* don't fsm */
1935 /* handle smac_index */
1936 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_UD ||
1937 qp->mlx4_ib_qp_type == MLX4_IB_QPT_PROXY_GSI ||
1938 qp->mlx4_ib_qp_type == MLX4_IB_QPT_TUN_GSI) {
1939 err = handle_eth_ud_smac_index(dev, qp, context);
1940 if (err) {
1941 err = -EINVAL;
1942 goto out;
1943 }
1944 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_PROXY_GSI)
1945 dev->qp1_proxy[qp->port - 1] = qp;
1946 }
1947 }
1948 }
1949
1950 if (qp->ibqp.qp_type == IB_QPT_RAW_PACKET) {
1951 context->pri_path.ackto = (context->pri_path.ackto & 0xf8) |
1952 MLX4_IB_LINK_TYPE_ETH;
1953 if (dev->dev->caps.tunnel_offload_mode == MLX4_TUNNEL_OFFLOAD_MODE_VXLAN) {
1954 /* set QP to receive both tunneled & non-tunneled packets */
1955 if (!(context->flags & cpu_to_be32(1 << MLX4_RSS_QPC_FLAG_OFFSET)))
1956 context->srqn = cpu_to_be32(7 << 28);
1957 }
1958 }
1959
1960 if (ibqp->qp_type == IB_QPT_UD && (new_state == IB_QPS_RTR)) {
1961 int is_eth = rdma_port_get_link_layer(
1962 &dev->ib_dev, qp->port) ==
1963 IB_LINK_LAYER_ETHERNET;
1964 if (is_eth) {
1965 context->pri_path.ackto = MLX4_IB_LINK_TYPE_ETH;
1966 optpar |= MLX4_QP_OPTPAR_PRIMARY_ADDR_PATH;
1967 }
1968 }
1969
1970
1971 if (cur_state == IB_QPS_RTS && new_state == IB_QPS_SQD &&
1972 attr_mask & IB_QP_EN_SQD_ASYNC_NOTIFY && attr->en_sqd_async_notify)
1973 sqd_event = 1;
1974 else
1975 sqd_event = 0;
1976
1977 if (!ibqp->uobject && cur_state == IB_QPS_RESET && new_state == IB_QPS_INIT)
1978 context->rlkey_roce_mode |= (1 << 4);
1979
1980 /*
1981 * Before passing a kernel QP to the HW, make sure that the
1982 * ownership bits of the send queue are set and the SQ
1983 * headroom is stamped so that the hardware doesn't start
1984 * processing stale work requests.
1985 */
1986 if (!ibqp->uobject && cur_state == IB_QPS_RESET && new_state == IB_QPS_INIT) {
1987 struct mlx4_wqe_ctrl_seg *ctrl;
1988 int i;
1989
1990 for (i = 0; i < qp->sq.wqe_cnt; ++i) {
1991 ctrl = get_send_wqe(qp, i);
1992 ctrl->owner_opcode = cpu_to_be32(1U << 31);
1993 if (qp->sq_max_wqes_per_wr == 1)
1994 ctrl->fence_size =
1995 1 << (qp->sq.wqe_shift - 4);
1996
1997 stamp_send_wqe(qp, i, 1 << qp->sq.wqe_shift);
1998 }
1999 }
2000
2001 err = mlx4_qp_modify(dev->dev, &qp->mtt, to_mlx4_state(cur_state),
2002 to_mlx4_state(new_state), context, optpar,
2003 sqd_event, &qp->mqp);
2004 if (err)
2005 goto out;
2006
2007 qp->state = new_state;
2008
2009 if (attr_mask & IB_QP_ACCESS_FLAGS)
2010 qp->atomic_rd_en = attr->qp_access_flags;
2011 if (attr_mask & IB_QP_MAX_DEST_RD_ATOMIC)
2012 qp->resp_depth = attr->max_dest_rd_atomic;
2013 if (attr_mask & IB_QP_PORT) {
2014 qp->port = attr->port_num;
2015 update_mcg_macs(dev, qp);
2016 }
2017 if (attr_mask & IB_QP_ALT_PATH)
2018 qp->alt_port = attr->alt_port_num;
2019
2020 if (is_sqp(dev, qp))
2021 store_sqp_attrs(to_msqp(qp), attr, attr_mask);
2022
2023 /*
2024 * If we moved QP0 to RTR, bring the IB link up; if we moved
2025 * QP0 to RESET or ERROR, bring the link back down.
2026 */
2027 if (is_qp0(dev, qp)) {
2028 if (cur_state != IB_QPS_RTR && new_state == IB_QPS_RTR)
2029 if (mlx4_INIT_PORT(dev->dev, qp->port))
2030 pr_warn("INIT_PORT failed for port %d\n",
2031 qp->port);
2032
2033 if (cur_state != IB_QPS_RESET && cur_state != IB_QPS_ERR &&
2034 (new_state == IB_QPS_RESET || new_state == IB_QPS_ERR))
2035 mlx4_CLOSE_PORT(dev->dev, qp->port);
2036 }
2037
2038 /*
2039 * If we moved a kernel QP to RESET, clean up all old CQ
2040 * entries and reinitialize the QP.
2041 */
2042 if (new_state == IB_QPS_RESET) {
2043 if (!ibqp->uobject) {
2044 mlx4_ib_cq_clean(recv_cq, qp->mqp.qpn,
2045 ibqp->srq ? to_msrq(ibqp->srq) : NULL);
2046 if (send_cq != recv_cq)
2047 mlx4_ib_cq_clean(send_cq, qp->mqp.qpn, NULL);
2048
2049 qp->rq.head = 0;
2050 qp->rq.tail = 0;
2051 qp->sq.head = 0;
2052 qp->sq.tail = 0;
2053 qp->sq_next_wqe = 0;
2054 if (qp->rq.wqe_cnt)
2055 *qp->db.db = 0;
2056
2057 if (qp->flags & MLX4_IB_QP_NETIF)
2058 mlx4_ib_steer_qp_reg(dev, qp, 0);
2059 }
2060 if (qp->pri.smac || (!qp->pri.smac && qp->pri.smac_port)) {
2061 mlx4_unregister_mac(dev->dev, qp->pri.smac_port, qp->pri.smac);
2062 qp->pri.smac = 0;
2063 qp->pri.smac_port = 0;
2064 }
2065 if (qp->alt.smac) {
2066 mlx4_unregister_mac(dev->dev, qp->alt.smac_port, qp->alt.smac);
2067 qp->alt.smac = 0;
2068 }
2069 if (qp->pri.vid < 0x1000) {
2070 mlx4_unregister_vlan(dev->dev, qp->pri.vlan_port, qp->pri.vid);
2071 qp->pri.vid = 0xFFFF;
2072 qp->pri.candidate_vid = 0xFFFF;
2073 qp->pri.update_vid = 0;
2074 }
2075
2076 if (qp->alt.vid < 0x1000) {
2077 mlx4_unregister_vlan(dev->dev, qp->alt.vlan_port, qp->alt.vid);
2078 qp->alt.vid = 0xFFFF;
2079 qp->alt.candidate_vid = 0xFFFF;
2080 qp->alt.update_vid = 0;
2081 }
2082 }
2083 out:
2084 if (err && qp->counter_index)
2085 mlx4_ib_free_qp_counter(dev, qp);
2086 if (err && steer_qp)
2087 mlx4_ib_steer_qp_reg(dev, qp, 0);
2088 kfree(context);
2089 if (qp->pri.candidate_smac ||
2090 (!qp->pri.candidate_smac && qp->pri.candidate_smac_port)) {
2091 if (err) {
2092 mlx4_unregister_mac(dev->dev, qp->pri.candidate_smac_port, qp->pri.candidate_smac);
2093 } else {
2094 if (qp->pri.smac || (!qp->pri.smac && qp->pri.smac_port))
2095 mlx4_unregister_mac(dev->dev, qp->pri.smac_port, qp->pri.smac);
2096 qp->pri.smac = qp->pri.candidate_smac;
2097 qp->pri.smac_index = qp->pri.candidate_smac_index;
2098 qp->pri.smac_port = qp->pri.candidate_smac_port;
2099 }
2100 qp->pri.candidate_smac = 0;
2101 qp->pri.candidate_smac_index = 0;
2102 qp->pri.candidate_smac_port = 0;
2103 }
2104 if (qp->alt.candidate_smac) {
2105 if (err) {
2106 mlx4_unregister_mac(dev->dev, qp->alt.candidate_smac_port, qp->alt.candidate_smac);
2107 } else {
2108 if (qp->alt.smac)
2109 mlx4_unregister_mac(dev->dev, qp->alt.smac_port, qp->alt.smac);
2110 qp->alt.smac = qp->alt.candidate_smac;
2111 qp->alt.smac_index = qp->alt.candidate_smac_index;
2112 qp->alt.smac_port = qp->alt.candidate_smac_port;
2113 }
2114 qp->alt.candidate_smac = 0;
2115 qp->alt.candidate_smac_index = 0;
2116 qp->alt.candidate_smac_port = 0;
2117 }
2118
2119 if (qp->pri.update_vid) {
2120 if (err) {
2121 if (qp->pri.candidate_vid < 0x1000)
2122 mlx4_unregister_vlan(dev->dev, qp->pri.candidate_vlan_port,
2123 qp->pri.candidate_vid);
2124 } else {
2125 if (qp->pri.vid < 0x1000)
2126 mlx4_unregister_vlan(dev->dev, qp->pri.vlan_port,
2127 qp->pri.vid);
2128 qp->pri.vid = qp->pri.candidate_vid;
2129 qp->pri.vlan_port = qp->pri.candidate_vlan_port;
2130 qp->pri.vlan_index = qp->pri.candidate_vlan_index;
2131 }
2132 qp->pri.candidate_vid = 0xFFFF;
2133 qp->pri.update_vid = 0;
2134 }
2135
2136 if (qp->alt.update_vid) {
2137 if (err) {
2138 if (qp->alt.candidate_vid < 0x1000)
2139 mlx4_unregister_vlan(dev->dev, qp->alt.candidate_vlan_port,
2140 qp->alt.candidate_vid);
2141 } else {
2142 if (qp->alt.vid < 0x1000)
2143 mlx4_unregister_vlan(dev->dev, qp->alt.vlan_port,
2144 qp->alt.vid);
2145 qp->alt.vid = qp->alt.candidate_vid;
2146 qp->alt.vlan_port = qp->alt.candidate_vlan_port;
2147 qp->alt.vlan_index = qp->alt.candidate_vlan_index;
2148 }
2149 qp->alt.candidate_vid = 0xFFFF;
2150 qp->alt.update_vid = 0;
2151 }
2152
2153 return err;
2154 }
2155
_mlx4_ib_modify_qp(struct ib_qp * ibqp,struct ib_qp_attr * attr,int attr_mask,struct ib_udata * udata)2156 static int _mlx4_ib_modify_qp(struct ib_qp *ibqp, struct ib_qp_attr *attr,
2157 int attr_mask, struct ib_udata *udata)
2158 {
2159 struct mlx4_ib_dev *dev = to_mdev(ibqp->device);
2160 struct mlx4_ib_qp *qp = to_mqp(ibqp);
2161 enum ib_qp_state cur_state, new_state;
2162 int err = -EINVAL;
2163 mutex_lock(&qp->mutex);
2164
2165 cur_state = attr_mask & IB_QP_CUR_STATE ? attr->cur_qp_state : qp->state;
2166 new_state = attr_mask & IB_QP_STATE ? attr->qp_state : cur_state;
2167
2168 if (!ib_modify_qp_is_ok(cur_state, new_state, ibqp->qp_type,
2169 attr_mask)) {
2170 pr_debug("qpn 0x%x: invalid attribute mask specified "
2171 "for transition %d to %d. qp_type %d,"
2172 " attr_mask 0x%x\n",
2173 ibqp->qp_num, cur_state, new_state,
2174 ibqp->qp_type, attr_mask);
2175 goto out;
2176 }
2177
2178 if (mlx4_is_bonded(dev->dev) && (attr_mask & IB_QP_PORT)) {
2179 if ((cur_state == IB_QPS_RESET) && (new_state == IB_QPS_INIT)) {
2180 if ((ibqp->qp_type == IB_QPT_RC) ||
2181 (ibqp->qp_type == IB_QPT_UD) ||
2182 (ibqp->qp_type == IB_QPT_UC) ||
2183 (ibqp->qp_type == IB_QPT_RAW_PACKET) ||
2184 (ibqp->qp_type == IB_QPT_XRC_INI)) {
2185 attr->port_num = mlx4_ib_bond_next_port(dev);
2186 }
2187 } else {
2188 /* no sense in changing port_num
2189 * when ports are bonded */
2190 attr_mask &= ~IB_QP_PORT;
2191 }
2192 }
2193
2194 if ((attr_mask & IB_QP_PORT) &&
2195 (attr->port_num == 0 || attr->port_num > dev->num_ports)) {
2196 pr_debug("qpn 0x%x: invalid port number (%d) specified "
2197 "for transition %d to %d. qp_type %d\n",
2198 ibqp->qp_num, attr->port_num, cur_state,
2199 new_state, ibqp->qp_type);
2200 goto out;
2201 }
2202
2203 if ((attr_mask & IB_QP_PORT) && (ibqp->qp_type == IB_QPT_RAW_PACKET) &&
2204 (rdma_port_get_link_layer(&dev->ib_dev, attr->port_num) !=
2205 IB_LINK_LAYER_ETHERNET))
2206 goto out;
2207
2208 if (attr_mask & IB_QP_PKEY_INDEX) {
2209 int p = attr_mask & IB_QP_PORT ? attr->port_num : qp->port;
2210 if (attr->pkey_index >= dev->dev->caps.pkey_table_len[p]) {
2211 pr_debug("qpn 0x%x: invalid pkey index (%d) specified "
2212 "for transition %d to %d. qp_type %d\n",
2213 ibqp->qp_num, attr->pkey_index, cur_state,
2214 new_state, ibqp->qp_type);
2215 goto out;
2216 }
2217 }
2218
2219 if (attr_mask & IB_QP_MAX_QP_RD_ATOMIC &&
2220 attr->max_rd_atomic > dev->dev->caps.max_qp_init_rdma) {
2221 pr_debug("qpn 0x%x: max_rd_atomic (%d) too large. "
2222 "Transition %d to %d. qp_type %d\n",
2223 ibqp->qp_num, attr->max_rd_atomic, cur_state,
2224 new_state, ibqp->qp_type);
2225 goto out;
2226 }
2227
2228 if (attr_mask & IB_QP_MAX_DEST_RD_ATOMIC &&
2229 attr->max_dest_rd_atomic > dev->dev->caps.max_qp_dest_rdma) {
2230 pr_debug("qpn 0x%x: max_dest_rd_atomic (%d) too large. "
2231 "Transition %d to %d. qp_type %d\n",
2232 ibqp->qp_num, attr->max_dest_rd_atomic, cur_state,
2233 new_state, ibqp->qp_type);
2234 goto out;
2235 }
2236
2237 if (cur_state == new_state && cur_state == IB_QPS_RESET) {
2238 err = 0;
2239 goto out;
2240 }
2241
2242 err = __mlx4_ib_modify_qp(ibqp, attr, attr_mask, cur_state, new_state, udata);
2243
2244 if (mlx4_is_bonded(dev->dev) && (attr_mask & IB_QP_PORT))
2245 attr->port_num = 1;
2246
2247 out:
2248 mutex_unlock(&qp->mutex);
2249 return err;
2250 }
2251
mlx4_ib_modify_qp(struct ib_qp * ibqp,struct ib_qp_attr * attr,int attr_mask,struct ib_udata * udata)2252 int mlx4_ib_modify_qp(struct ib_qp *ibqp, struct ib_qp_attr *attr,
2253 int attr_mask, struct ib_udata *udata)
2254 {
2255 struct mlx4_ib_qp *mqp = to_mqp(ibqp);
2256 int ret;
2257
2258 ret = _mlx4_ib_modify_qp(ibqp, attr, attr_mask, udata);
2259
2260 if (mqp->mlx4_ib_qp_type == MLX4_IB_QPT_GSI) {
2261 struct mlx4_ib_sqp *sqp = to_msqp(mqp);
2262 int err = 0;
2263
2264 if (sqp->roce_v2_gsi)
2265 err = ib_modify_qp(sqp->roce_v2_gsi, attr, attr_mask);
2266 if (err)
2267 pr_err("Failed to modify GSI QP for RoCEv2 (%d)\n",
2268 err);
2269 }
2270 return ret;
2271 }
2272
vf_get_qp0_qkey(struct mlx4_dev * dev,int qpn,u32 * qkey)2273 static int vf_get_qp0_qkey(struct mlx4_dev *dev, int qpn, u32 *qkey)
2274 {
2275 int i;
2276 for (i = 0; i < dev->caps.num_ports; i++) {
2277 if (qpn == dev->caps.qp0_proxy[i] ||
2278 qpn == dev->caps.qp0_tunnel[i]) {
2279 *qkey = dev->caps.qp0_qkey[i];
2280 return 0;
2281 }
2282 }
2283 return -EINVAL;
2284 }
2285
build_sriov_qp0_header(struct mlx4_ib_sqp * sqp,const struct ib_ud_wr * wr,void * wqe,unsigned * mlx_seg_len)2286 static int build_sriov_qp0_header(struct mlx4_ib_sqp *sqp,
2287 const struct ib_ud_wr *wr,
2288 void *wqe, unsigned *mlx_seg_len)
2289 {
2290 struct mlx4_ib_dev *mdev = to_mdev(sqp->qp.ibqp.device);
2291 struct ib_device *ib_dev = &mdev->ib_dev;
2292 struct mlx4_wqe_mlx_seg *mlx = wqe;
2293 struct mlx4_wqe_inline_seg *inl = wqe + sizeof *mlx;
2294 struct mlx4_ib_ah *ah = to_mah(wr->ah);
2295 u16 pkey;
2296 u32 qkey;
2297 int send_size;
2298 int header_size;
2299 int spc;
2300 int i;
2301
2302 if (wr->wr.opcode != IB_WR_SEND)
2303 return -EINVAL;
2304
2305 send_size = 0;
2306
2307 for (i = 0; i < wr->wr.num_sge; ++i)
2308 send_size += wr->wr.sg_list[i].length;
2309
2310 /* for proxy-qp0 sends, need to add in size of tunnel header */
2311 /* for tunnel-qp0 sends, tunnel header is already in s/g list */
2312 if (sqp->qp.mlx4_ib_qp_type == MLX4_IB_QPT_PROXY_SMI_OWNER)
2313 send_size += sizeof (struct mlx4_ib_tunnel_header);
2314
2315 ib_ud_header_init(send_size, 1, 0, 0, 0, 0, 0, 0, &sqp->ud_header);
2316
2317 if (sqp->qp.mlx4_ib_qp_type == MLX4_IB_QPT_PROXY_SMI_OWNER) {
2318 sqp->ud_header.lrh.service_level =
2319 be32_to_cpu(ah->av.ib.sl_tclass_flowlabel) >> 28;
2320 sqp->ud_header.lrh.destination_lid =
2321 cpu_to_be16(ah->av.ib.g_slid & 0x7f);
2322 sqp->ud_header.lrh.source_lid =
2323 cpu_to_be16(ah->av.ib.g_slid & 0x7f);
2324 }
2325
2326 mlx->flags &= cpu_to_be32(MLX4_WQE_CTRL_CQ_UPDATE);
2327
2328 /* force loopback */
2329 mlx->flags |= cpu_to_be32(MLX4_WQE_MLX_VL15 | 0x1 | MLX4_WQE_MLX_SLR);
2330 mlx->rlid = sqp->ud_header.lrh.destination_lid;
2331
2332 sqp->ud_header.lrh.virtual_lane = 0;
2333 sqp->ud_header.bth.solicited_event = !!(wr->wr.send_flags & IB_SEND_SOLICITED);
2334 ib_get_cached_pkey(ib_dev, sqp->qp.port, 0, &pkey);
2335 sqp->ud_header.bth.pkey = cpu_to_be16(pkey);
2336 if (sqp->qp.mlx4_ib_qp_type == MLX4_IB_QPT_TUN_SMI_OWNER)
2337 sqp->ud_header.bth.destination_qpn = cpu_to_be32(wr->remote_qpn);
2338 else
2339 sqp->ud_header.bth.destination_qpn =
2340 cpu_to_be32(mdev->dev->caps.qp0_tunnel[sqp->qp.port - 1]);
2341
2342 sqp->ud_header.bth.psn = cpu_to_be32((sqp->send_psn++) & ((1 << 24) - 1));
2343 if (mlx4_is_master(mdev->dev)) {
2344 if (mlx4_get_parav_qkey(mdev->dev, sqp->qp.mqp.qpn, &qkey))
2345 return -EINVAL;
2346 } else {
2347 if (vf_get_qp0_qkey(mdev->dev, sqp->qp.mqp.qpn, &qkey))
2348 return -EINVAL;
2349 }
2350 sqp->ud_header.deth.qkey = cpu_to_be32(qkey);
2351 sqp->ud_header.deth.source_qpn = cpu_to_be32(sqp->qp.mqp.qpn);
2352
2353 sqp->ud_header.bth.opcode = IB_OPCODE_UD_SEND_ONLY;
2354 sqp->ud_header.immediate_present = 0;
2355
2356 header_size = ib_ud_header_pack(&sqp->ud_header, sqp->header_buf);
2357
2358 /*
2359 * Inline data segments may not cross a 64 byte boundary. If
2360 * our UD header is bigger than the space available up to the
2361 * next 64 byte boundary in the WQE, use two inline data
2362 * segments to hold the UD header.
2363 */
2364 spc = MLX4_INLINE_ALIGN -
2365 ((unsigned long) (inl + 1) & (MLX4_INLINE_ALIGN - 1));
2366 if (header_size <= spc) {
2367 inl->byte_count = cpu_to_be32((1U << 31) | header_size);
2368 memcpy(inl + 1, sqp->header_buf, header_size);
2369 i = 1;
2370 } else {
2371 inl->byte_count = cpu_to_be32((1U << 31) | spc);
2372 memcpy(inl + 1, sqp->header_buf, spc);
2373
2374 inl = (void *) (inl + 1) + spc;
2375 memcpy(inl + 1, sqp->header_buf + spc, header_size - spc);
2376 /*
2377 * Need a barrier here to make sure all the data is
2378 * visible before the byte_count field is set.
2379 * Otherwise the HCA prefetcher could grab the 64-byte
2380 * chunk with this inline segment and get a valid (!=
2381 * 0xffffffff) byte count but stale data, and end up
2382 * generating a packet with bad headers.
2383 *
2384 * The first inline segment's byte_count field doesn't
2385 * need a barrier, because it comes after a
2386 * control/MLX segment and therefore is at an offset
2387 * of 16 mod 64.
2388 */
2389 wmb();
2390 inl->byte_count = cpu_to_be32((1U << 31) | (header_size - spc));
2391 i = 2;
2392 }
2393
2394 *mlx_seg_len =
2395 ALIGN(i * sizeof (struct mlx4_wqe_inline_seg) + header_size, 16);
2396 return 0;
2397 }
2398
sl_to_vl(struct mlx4_ib_dev * dev,u8 sl,int port_num)2399 static u8 sl_to_vl(struct mlx4_ib_dev *dev, u8 sl, int port_num)
2400 {
2401 union sl2vl_tbl_to_u64 tmp_vltab;
2402 u8 vl;
2403
2404 if (sl > 15)
2405 return 0xf;
2406 tmp_vltab.sl64 = atomic64_read(&dev->sl2vl[port_num - 1]);
2407 vl = tmp_vltab.sl8[sl >> 1];
2408 if (sl & 1)
2409 vl &= 0x0f;
2410 else
2411 vl >>= 4;
2412 return vl;
2413 }
2414
fill_gid_by_hw_index(struct mlx4_ib_dev * ibdev,u8 port_num,int index,union ib_gid * gid,enum ib_gid_type * gid_type)2415 static int fill_gid_by_hw_index(struct mlx4_ib_dev *ibdev, u8 port_num,
2416 int index, union ib_gid *gid,
2417 enum ib_gid_type *gid_type)
2418 {
2419 struct mlx4_ib_iboe *iboe = &ibdev->iboe;
2420 struct mlx4_port_gid_table *port_gid_table;
2421 unsigned long flags;
2422
2423 port_gid_table = &iboe->gids[port_num - 1];
2424 spin_lock_irqsave(&iboe->lock, flags);
2425 memcpy(gid, &port_gid_table->gids[index].gid, sizeof(*gid));
2426 *gid_type = port_gid_table->gids[index].gid_type;
2427 spin_unlock_irqrestore(&iboe->lock, flags);
2428 if (rdma_is_zero_gid(gid))
2429 return -ENOENT;
2430
2431 return 0;
2432 }
2433
2434 #define MLX4_ROCEV2_QP1_SPORT 0xC000
build_mlx_header(struct mlx4_ib_sqp * sqp,const struct ib_ud_wr * wr,void * wqe,unsigned * mlx_seg_len)2435 static int build_mlx_header(struct mlx4_ib_sqp *sqp, const struct ib_ud_wr *wr,
2436 void *wqe, unsigned *mlx_seg_len)
2437 {
2438 struct ib_device *ib_dev = sqp->qp.ibqp.device;
2439 struct mlx4_ib_dev *ibdev = to_mdev(ib_dev);
2440 struct mlx4_wqe_mlx_seg *mlx = wqe;
2441 struct mlx4_wqe_ctrl_seg *ctrl = wqe;
2442 struct mlx4_wqe_inline_seg *inl = wqe + sizeof *mlx;
2443 struct mlx4_ib_ah *ah = to_mah(wr->ah);
2444 union ib_gid sgid;
2445 u16 pkey;
2446 int send_size;
2447 int header_size;
2448 int spc;
2449 int i;
2450 int err = 0;
2451 u16 vlan = 0xffff;
2452 bool is_eth;
2453 bool is_vlan = false;
2454 bool is_grh;
2455 bool is_udp = false;
2456 int ip_version = 0;
2457
2458 send_size = 0;
2459 for (i = 0; i < wr->wr.num_sge; ++i)
2460 send_size += wr->wr.sg_list[i].length;
2461
2462 is_eth = rdma_port_get_link_layer(sqp->qp.ibqp.device, sqp->qp.port) == IB_LINK_LAYER_ETHERNET;
2463 is_grh = mlx4_ib_ah_grh_present(ah);
2464 if (is_eth) {
2465 enum ib_gid_type gid_type;
2466 if (mlx4_is_mfunc(to_mdev(ib_dev)->dev)) {
2467 /* When multi-function is enabled, the ib_core gid
2468 * indexes don't necessarily match the hw ones, so
2469 * we must use our own cache */
2470 err = mlx4_get_roce_gid_from_slave(to_mdev(ib_dev)->dev,
2471 be32_to_cpu(ah->av.ib.port_pd) >> 24,
2472 ah->av.ib.gid_index, &sgid.raw[0]);
2473 if (err)
2474 return err;
2475 } else {
2476 err = fill_gid_by_hw_index(ibdev, sqp->qp.port,
2477 ah->av.ib.gid_index,
2478 &sgid, &gid_type);
2479 if (!err) {
2480 is_udp = gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP;
2481 if (is_udp) {
2482 if (ipv6_addr_v4mapped((struct in6_addr *)&sgid))
2483 ip_version = 4;
2484 else
2485 ip_version = 6;
2486 is_grh = false;
2487 }
2488 } else {
2489 return err;
2490 }
2491 }
2492 if (ah->av.eth.vlan != cpu_to_be16(0xffff)) {
2493 vlan = be16_to_cpu(ah->av.eth.vlan) & 0x0fff;
2494 is_vlan = 1;
2495 }
2496 }
2497 err = ib_ud_header_init(send_size, !is_eth, is_eth, is_vlan, is_grh,
2498 ip_version, is_udp, 0, &sqp->ud_header);
2499 if (err)
2500 return err;
2501
2502 if (!is_eth) {
2503 sqp->ud_header.lrh.service_level =
2504 be32_to_cpu(ah->av.ib.sl_tclass_flowlabel) >> 28;
2505 sqp->ud_header.lrh.destination_lid = ah->av.ib.dlid;
2506 sqp->ud_header.lrh.source_lid = cpu_to_be16(ah->av.ib.g_slid & 0x7f);
2507 }
2508
2509 if (is_grh || (ip_version == 6)) {
2510 sqp->ud_header.grh.traffic_class =
2511 (be32_to_cpu(ah->av.ib.sl_tclass_flowlabel) >> 20) & 0xff;
2512 sqp->ud_header.grh.flow_label =
2513 ah->av.ib.sl_tclass_flowlabel & cpu_to_be32(0xfffff);
2514 sqp->ud_header.grh.hop_limit = ah->av.ib.hop_limit;
2515 if (is_eth) {
2516 memcpy(sqp->ud_header.grh.source_gid.raw, sgid.raw, 16);
2517 } else {
2518 if (mlx4_is_mfunc(to_mdev(ib_dev)->dev)) {
2519 /* When multi-function is enabled, the ib_core gid
2520 * indexes don't necessarily match the hw ones, so
2521 * we must use our own cache
2522 */
2523 sqp->ud_header.grh.source_gid.global.subnet_prefix =
2524 cpu_to_be64(atomic64_read(&(to_mdev(ib_dev)->sriov.
2525 demux[sqp->qp.port - 1].
2526 subnet_prefix)));
2527 sqp->ud_header.grh.source_gid.global.interface_id =
2528 to_mdev(ib_dev)->sriov.demux[sqp->qp.port - 1].
2529 guid_cache[ah->av.ib.gid_index];
2530 } else {
2531 sqp->ud_header.grh.source_gid =
2532 ah->ibah.sgid_attr->gid;
2533 }
2534 }
2535 memcpy(sqp->ud_header.grh.destination_gid.raw,
2536 ah->av.ib.dgid, 16);
2537 }
2538
2539 if (ip_version == 4) {
2540 sqp->ud_header.ip4.tos =
2541 (be32_to_cpu(ah->av.ib.sl_tclass_flowlabel) >> 20) & 0xff;
2542 sqp->ud_header.ip4.id = 0;
2543 sqp->ud_header.ip4.frag_off = htons(IP_DF);
2544 sqp->ud_header.ip4.ttl = ah->av.eth.hop_limit;
2545
2546 memcpy(&sqp->ud_header.ip4.saddr,
2547 sgid.raw + 12, 4);
2548 memcpy(&sqp->ud_header.ip4.daddr, ah->av.ib.dgid + 12, 4);
2549 sqp->ud_header.ip4.check = ib_ud_ip4_csum(&sqp->ud_header);
2550 }
2551
2552 if (is_udp) {
2553 sqp->ud_header.udp.dport = htons(ROCE_V2_UDP_DPORT);
2554 sqp->ud_header.udp.sport = htons(MLX4_ROCEV2_QP1_SPORT);
2555 sqp->ud_header.udp.csum = 0;
2556 }
2557
2558 mlx->flags &= cpu_to_be32(MLX4_WQE_CTRL_CQ_UPDATE);
2559
2560 if (!is_eth) {
2561 mlx->flags |= cpu_to_be32((!sqp->qp.ibqp.qp_num ? MLX4_WQE_MLX_VL15 : 0) |
2562 (sqp->ud_header.lrh.destination_lid ==
2563 IB_LID_PERMISSIVE ? MLX4_WQE_MLX_SLR : 0) |
2564 (sqp->ud_header.lrh.service_level << 8));
2565 if (ah->av.ib.port_pd & cpu_to_be32(0x80000000))
2566 mlx->flags |= cpu_to_be32(0x1); /* force loopback */
2567 mlx->rlid = sqp->ud_header.lrh.destination_lid;
2568 }
2569
2570 switch (wr->wr.opcode) {
2571 case IB_WR_SEND:
2572 sqp->ud_header.bth.opcode = IB_OPCODE_UD_SEND_ONLY;
2573 sqp->ud_header.immediate_present = 0;
2574 break;
2575 case IB_WR_SEND_WITH_IMM:
2576 sqp->ud_header.bth.opcode = IB_OPCODE_UD_SEND_ONLY_WITH_IMMEDIATE;
2577 sqp->ud_header.immediate_present = 1;
2578 sqp->ud_header.immediate_data = wr->wr.ex.imm_data;
2579 break;
2580 default:
2581 return -EINVAL;
2582 }
2583
2584 if (is_eth) {
2585 struct in6_addr in6;
2586 u16 ether_type;
2587 u16 pcp = (be32_to_cpu(ah->av.ib.sl_tclass_flowlabel) >> 29) << 13;
2588
2589 ether_type = (!is_udp) ? MLX4_IB_IBOE_ETHERTYPE :
2590 (ip_version == 4 ? ETHERTYPE_IP : ETHERTYPE_IPV6);
2591
2592 mlx->sched_prio = cpu_to_be16(pcp);
2593
2594 ether_addr_copy(sqp->ud_header.eth.smac_h, ah->av.eth.s_mac);
2595 memcpy(sqp->ud_header.eth.dmac_h, ah->av.eth.mac, 6);
2596 memcpy(&ctrl->srcrb_flags16[0], ah->av.eth.mac, 2);
2597 memcpy(&ctrl->imm, ah->av.eth.mac + 2, 4);
2598 memcpy(&in6, sgid.raw, sizeof(in6));
2599
2600
2601 if (!memcmp(sqp->ud_header.eth.smac_h, sqp->ud_header.eth.dmac_h, 6))
2602 mlx->flags |= cpu_to_be32(MLX4_WQE_CTRL_FORCE_LOOPBACK);
2603 if (!is_vlan) {
2604 sqp->ud_header.eth.type = cpu_to_be16(ether_type);
2605 } else {
2606 sqp->ud_header.vlan.type = cpu_to_be16(ether_type);
2607 sqp->ud_header.vlan.tag = cpu_to_be16(vlan | pcp);
2608 }
2609 } else {
2610 sqp->ud_header.lrh.virtual_lane = !sqp->qp.ibqp.qp_num ? 15 :
2611 sl_to_vl(to_mdev(ib_dev),
2612 sqp->ud_header.lrh.service_level,
2613 sqp->qp.port);
2614 if (sqp->qp.ibqp.qp_num && sqp->ud_header.lrh.virtual_lane == 15)
2615 return -EINVAL;
2616 if (sqp->ud_header.lrh.destination_lid == IB_LID_PERMISSIVE)
2617 sqp->ud_header.lrh.source_lid = IB_LID_PERMISSIVE;
2618 }
2619 sqp->ud_header.bth.solicited_event = !!(wr->wr.send_flags & IB_SEND_SOLICITED);
2620 if (!sqp->qp.ibqp.qp_num)
2621 ib_get_cached_pkey(ib_dev, sqp->qp.port, sqp->pkey_index, &pkey);
2622 else
2623 ib_get_cached_pkey(ib_dev, sqp->qp.port, wr->pkey_index, &pkey);
2624 sqp->ud_header.bth.pkey = cpu_to_be16(pkey);
2625 sqp->ud_header.bth.destination_qpn = cpu_to_be32(wr->remote_qpn);
2626 sqp->ud_header.bth.psn = cpu_to_be32((sqp->send_psn++) & ((1 << 24) - 1));
2627 sqp->ud_header.deth.qkey = cpu_to_be32(wr->remote_qkey & 0x80000000 ?
2628 sqp->qkey : wr->remote_qkey);
2629 sqp->ud_header.deth.source_qpn = cpu_to_be32(sqp->qp.ibqp.qp_num);
2630
2631 header_size = ib_ud_header_pack(&sqp->ud_header, sqp->header_buf);
2632
2633 if (0) {
2634 pr_err("built UD header of size %d:\n", header_size);
2635 for (i = 0; i < header_size / 4; ++i) {
2636 if (i % 8 == 0)
2637 pr_err(" [%02x] ", i * 4);
2638 pr_cont(" %08x",
2639 be32_to_cpu(((__be32 *) sqp->header_buf)[i]));
2640 if ((i + 1) % 8 == 0)
2641 pr_cont("\n");
2642 }
2643 pr_err("\n");
2644 }
2645
2646 /*
2647 * Inline data segments may not cross a 64 byte boundary. If
2648 * our UD header is bigger than the space available up to the
2649 * next 64 byte boundary in the WQE, use two inline data
2650 * segments to hold the UD header.
2651 */
2652 spc = MLX4_INLINE_ALIGN -
2653 ((unsigned long) (inl + 1) & (MLX4_INLINE_ALIGN - 1));
2654 if (header_size <= spc) {
2655 inl->byte_count = cpu_to_be32(1U << 31 | header_size);
2656 memcpy(inl + 1, sqp->header_buf, header_size);
2657 i = 1;
2658 } else {
2659 inl->byte_count = cpu_to_be32(1U << 31 | spc);
2660 memcpy(inl + 1, sqp->header_buf, spc);
2661
2662 inl = (void *) (inl + 1) + spc;
2663 memcpy(inl + 1, sqp->header_buf + spc, header_size - spc);
2664 /*
2665 * Need a barrier here to make sure all the data is
2666 * visible before the byte_count field is set.
2667 * Otherwise the HCA prefetcher could grab the 64-byte
2668 * chunk with this inline segment and get a valid (!=
2669 * 0xffffffff) byte count but stale data, and end up
2670 * generating a packet with bad headers.
2671 *
2672 * The first inline segment's byte_count field doesn't
2673 * need a barrier, because it comes after a
2674 * control/MLX segment and therefore is at an offset
2675 * of 16 mod 64.
2676 */
2677 wmb();
2678 inl->byte_count = cpu_to_be32(1U << 31 | (header_size - spc));
2679 i = 2;
2680 }
2681
2682 *mlx_seg_len =
2683 ALIGN(i * sizeof (struct mlx4_wqe_inline_seg) + header_size, 16);
2684 return 0;
2685 }
2686
mlx4_wq_overflow(struct mlx4_ib_wq * wq,int nreq,struct ib_cq * ib_cq)2687 static int mlx4_wq_overflow(struct mlx4_ib_wq *wq, int nreq, struct ib_cq *ib_cq)
2688 {
2689 unsigned cur;
2690 struct mlx4_ib_cq *cq;
2691
2692 cur = wq->head - wq->tail;
2693 if (likely(cur + nreq < wq->max_post))
2694 return 0;
2695
2696 cq = to_mcq(ib_cq);
2697 spin_lock(&cq->lock);
2698 cur = wq->head - wq->tail;
2699 spin_unlock(&cq->lock);
2700
2701 return cur + nreq >= wq->max_post;
2702 }
2703
convert_access(int acc)2704 static __be32 convert_access(int acc)
2705 {
2706 return (acc & IB_ACCESS_REMOTE_ATOMIC ?
2707 cpu_to_be32(MLX4_WQE_FMR_AND_BIND_PERM_ATOMIC) : 0) |
2708 (acc & IB_ACCESS_REMOTE_WRITE ?
2709 cpu_to_be32(MLX4_WQE_FMR_AND_BIND_PERM_REMOTE_WRITE) : 0) |
2710 (acc & IB_ACCESS_REMOTE_READ ?
2711 cpu_to_be32(MLX4_WQE_FMR_AND_BIND_PERM_REMOTE_READ) : 0) |
2712 (acc & IB_ACCESS_LOCAL_WRITE ? cpu_to_be32(MLX4_WQE_FMR_PERM_LOCAL_WRITE) : 0) |
2713 cpu_to_be32(MLX4_WQE_FMR_PERM_LOCAL_READ);
2714 }
2715
set_reg_seg(struct mlx4_wqe_fmr_seg * fseg,const struct ib_reg_wr * wr)2716 static void set_reg_seg(struct mlx4_wqe_fmr_seg *fseg,
2717 const struct ib_reg_wr *wr)
2718 {
2719 struct mlx4_ib_mr *mr = to_mmr(wr->mr);
2720
2721 fseg->flags = convert_access(wr->access);
2722 fseg->mem_key = cpu_to_be32(wr->key);
2723 fseg->buf_list = cpu_to_be64(mr->page_map);
2724 fseg->start_addr = cpu_to_be64(mr->ibmr.iova);
2725 fseg->reg_len = cpu_to_be64(mr->ibmr.length);
2726 fseg->offset = 0; /* XXX -- is this just for ZBVA? */
2727 fseg->page_size = cpu_to_be32(ilog2(mr->ibmr.page_size));
2728 fseg->reserved[0] = 0;
2729 fseg->reserved[1] = 0;
2730 }
2731
set_local_inv_seg(struct mlx4_wqe_local_inval_seg * iseg,u32 rkey)2732 static void set_local_inv_seg(struct mlx4_wqe_local_inval_seg *iseg, u32 rkey)
2733 {
2734 memset(iseg, 0, sizeof(*iseg));
2735 iseg->mem_key = cpu_to_be32(rkey);
2736 }
2737
set_raddr_seg(struct mlx4_wqe_raddr_seg * rseg,u64 remote_addr,u32 rkey)2738 static __always_inline void set_raddr_seg(struct mlx4_wqe_raddr_seg *rseg,
2739 u64 remote_addr, u32 rkey)
2740 {
2741 rseg->raddr = cpu_to_be64(remote_addr);
2742 rseg->rkey = cpu_to_be32(rkey);
2743 rseg->reserved = 0;
2744 }
2745
set_atomic_seg(struct mlx4_wqe_atomic_seg * aseg,const struct ib_atomic_wr * wr)2746 static void set_atomic_seg(struct mlx4_wqe_atomic_seg *aseg,
2747 const struct ib_atomic_wr *wr)
2748 {
2749 if (wr->wr.opcode == IB_WR_ATOMIC_CMP_AND_SWP) {
2750 aseg->swap_add = cpu_to_be64(wr->swap);
2751 aseg->compare = cpu_to_be64(wr->compare_add);
2752 } else if (wr->wr.opcode == IB_WR_MASKED_ATOMIC_FETCH_AND_ADD) {
2753 aseg->swap_add = cpu_to_be64(wr->compare_add);
2754 aseg->compare = cpu_to_be64(wr->compare_add_mask);
2755 } else {
2756 aseg->swap_add = cpu_to_be64(wr->compare_add);
2757 aseg->compare = 0;
2758 }
2759
2760 }
2761
set_masked_atomic_seg(struct mlx4_wqe_masked_atomic_seg * aseg,const struct ib_atomic_wr * wr)2762 static void set_masked_atomic_seg(struct mlx4_wqe_masked_atomic_seg *aseg,
2763 const struct ib_atomic_wr *wr)
2764 {
2765 aseg->swap_add = cpu_to_be64(wr->swap);
2766 aseg->swap_add_mask = cpu_to_be64(wr->swap_mask);
2767 aseg->compare = cpu_to_be64(wr->compare_add);
2768 aseg->compare_mask = cpu_to_be64(wr->compare_add_mask);
2769 }
2770
set_datagram_seg(struct mlx4_wqe_datagram_seg * dseg,const struct ib_ud_wr * wr)2771 static void set_datagram_seg(struct mlx4_wqe_datagram_seg *dseg,
2772 const struct ib_ud_wr *wr)
2773 {
2774 memcpy(dseg->av, &to_mah(wr->ah)->av, sizeof (struct mlx4_av));
2775 dseg->dqpn = cpu_to_be32(wr->remote_qpn);
2776 dseg->qkey = cpu_to_be32(wr->remote_qkey);
2777 dseg->vlan = to_mah(wr->ah)->av.eth.vlan;
2778 memcpy(dseg->mac, to_mah(wr->ah)->av.eth.mac, 6);
2779 }
2780
set_tunnel_datagram_seg(struct mlx4_ib_dev * dev,struct mlx4_wqe_datagram_seg * dseg,const struct ib_ud_wr * wr,enum mlx4_ib_qp_type qpt)2781 static void set_tunnel_datagram_seg(struct mlx4_ib_dev *dev,
2782 struct mlx4_wqe_datagram_seg *dseg,
2783 const struct ib_ud_wr *wr,
2784 enum mlx4_ib_qp_type qpt)
2785 {
2786 union mlx4_ext_av *av = &to_mah(wr->ah)->av;
2787 struct mlx4_av sqp_av = {0};
2788 int port = *((u8 *) &av->ib.port_pd) & 0x3;
2789
2790 /* force loopback */
2791 sqp_av.port_pd = av->ib.port_pd | cpu_to_be32(0x80000000);
2792 sqp_av.g_slid = av->ib.g_slid & 0x7f; /* no GRH */
2793 sqp_av.sl_tclass_flowlabel = av->ib.sl_tclass_flowlabel &
2794 cpu_to_be32(0xf0000000);
2795
2796 memcpy(dseg->av, &sqp_av, sizeof (struct mlx4_av));
2797 if (qpt == MLX4_IB_QPT_PROXY_GSI)
2798 dseg->dqpn = cpu_to_be32(dev->dev->caps.qp1_tunnel[port - 1]);
2799 else
2800 dseg->dqpn = cpu_to_be32(dev->dev->caps.qp0_tunnel[port - 1]);
2801 /* Use QKEY from the QP context, which is set by master */
2802 dseg->qkey = cpu_to_be32(IB_QP_SET_QKEY);
2803 }
2804
build_tunnel_header(const struct ib_ud_wr * wr,void * wqe,unsigned * mlx_seg_len)2805 static void build_tunnel_header(const struct ib_ud_wr *wr, void *wqe, unsigned *mlx_seg_len)
2806 {
2807 struct mlx4_wqe_inline_seg *inl = wqe;
2808 struct mlx4_ib_tunnel_header hdr;
2809 struct mlx4_ib_ah *ah = to_mah(wr->ah);
2810 int spc;
2811 int i;
2812
2813 memcpy(&hdr.av, &ah->av, sizeof hdr.av);
2814 hdr.remote_qpn = cpu_to_be32(wr->remote_qpn);
2815 hdr.pkey_index = cpu_to_be16(wr->pkey_index);
2816 hdr.qkey = cpu_to_be32(wr->remote_qkey);
2817 memcpy(hdr.mac, ah->av.eth.mac, 6);
2818 hdr.vlan = ah->av.eth.vlan;
2819
2820 spc = MLX4_INLINE_ALIGN -
2821 ((unsigned long) (inl + 1) & (MLX4_INLINE_ALIGN - 1));
2822 if (sizeof (hdr) <= spc) {
2823 memcpy(inl + 1, &hdr, sizeof (hdr));
2824 wmb();
2825 inl->byte_count = cpu_to_be32((1U << 31) | (u32)sizeof(hdr));
2826 i = 1;
2827 } else {
2828 memcpy(inl + 1, &hdr, spc);
2829 wmb();
2830 inl->byte_count = cpu_to_be32((1U << 31) | spc);
2831
2832 inl = (void *) (inl + 1) + spc;
2833 memcpy(inl + 1, (void *) &hdr + spc, sizeof (hdr) - spc);
2834 wmb();
2835 inl->byte_count = cpu_to_be32((1U << 31) | (u32)(sizeof (hdr) - spc));
2836 i = 2;
2837 }
2838
2839 *mlx_seg_len =
2840 ALIGN(i * sizeof (struct mlx4_wqe_inline_seg) + sizeof (hdr), 16);
2841 }
2842
set_mlx_icrc_seg(void * dseg)2843 static void set_mlx_icrc_seg(void *dseg)
2844 {
2845 u32 *t = dseg;
2846 struct mlx4_wqe_inline_seg *iseg = dseg;
2847
2848 t[1] = 0;
2849
2850 /*
2851 * Need a barrier here before writing the byte_count field to
2852 * make sure that all the data is visible before the
2853 * byte_count field is set. Otherwise, if the segment begins
2854 * a new cacheline, the HCA prefetcher could grab the 64-byte
2855 * chunk and get a valid (!= * 0xffffffff) byte count but
2856 * stale data, and end up sending the wrong data.
2857 */
2858 wmb();
2859
2860 iseg->byte_count = cpu_to_be32((1U << 31) | 4);
2861 }
2862
set_data_seg(struct mlx4_wqe_data_seg * dseg,struct ib_sge * sg)2863 static void set_data_seg(struct mlx4_wqe_data_seg *dseg, struct ib_sge *sg)
2864 {
2865 dseg->lkey = cpu_to_be32(sg->lkey);
2866 dseg->addr = cpu_to_be64(sg->addr);
2867
2868 /*
2869 * Need a barrier here before writing the byte_count field to
2870 * make sure that all the data is visible before the
2871 * byte_count field is set. Otherwise, if the segment begins
2872 * a new cacheline, the HCA prefetcher could grab the 64-byte
2873 * chunk and get a valid (!= * 0xffffffff) byte count but
2874 * stale data, and end up sending the wrong data.
2875 */
2876 wmb();
2877
2878 dseg->byte_count = cpu_to_be32(sg->length);
2879 }
2880
__set_data_seg(struct mlx4_wqe_data_seg * dseg,struct ib_sge * sg)2881 static void __set_data_seg(struct mlx4_wqe_data_seg *dseg, struct ib_sge *sg)
2882 {
2883 dseg->byte_count = cpu_to_be32(sg->length);
2884 dseg->lkey = cpu_to_be32(sg->lkey);
2885 dseg->addr = cpu_to_be64(sg->addr);
2886 }
2887
build_lso_seg(struct mlx4_wqe_lso_seg * wqe,const struct ib_ud_wr * wr,struct mlx4_ib_qp * qp,unsigned * lso_seg_len,__be32 * lso_hdr_sz,__be32 * blh)2888 static int build_lso_seg(struct mlx4_wqe_lso_seg *wqe, const struct ib_ud_wr *wr,
2889 struct mlx4_ib_qp *qp, unsigned *lso_seg_len,
2890 __be32 *lso_hdr_sz, __be32 *blh)
2891 {
2892 unsigned halign = ALIGN(sizeof *wqe + wr->hlen, 16);
2893
2894 if (unlikely(halign > MLX4_IB_CACHE_LINE_SIZE))
2895 *blh = cpu_to_be32(1 << 6);
2896
2897 if (unlikely(!(qp->flags & MLX4_IB_QP_LSO) &&
2898 wr->wr.num_sge > qp->sq.max_gs - (halign >> 4)))
2899 return -EINVAL;
2900
2901 memcpy(wqe->header, wr->header, wr->hlen);
2902
2903 *lso_hdr_sz = cpu_to_be32(wr->mss << 16 | wr->hlen);
2904 *lso_seg_len = halign;
2905 return 0;
2906 }
2907
send_ieth(const struct ib_send_wr * wr)2908 static __be32 send_ieth(const struct ib_send_wr *wr)
2909 {
2910 switch (wr->opcode) {
2911 case IB_WR_SEND_WITH_IMM:
2912 case IB_WR_RDMA_WRITE_WITH_IMM:
2913 return wr->ex.imm_data;
2914
2915 case IB_WR_SEND_WITH_INV:
2916 return cpu_to_be32(wr->ex.invalidate_rkey);
2917
2918 default:
2919 return 0;
2920 }
2921 }
2922
add_zero_len_inline(void * wqe)2923 static void add_zero_len_inline(void *wqe)
2924 {
2925 struct mlx4_wqe_inline_seg *inl = wqe;
2926 memset(wqe, 0, 16);
2927 inl->byte_count = cpu_to_be32(1U << 31);
2928 }
2929
mlx4_ib_post_send(struct ib_qp * ibqp,const struct ib_send_wr * wr,const struct ib_send_wr ** bad_wr)2930 int mlx4_ib_post_send(struct ib_qp *ibqp, const struct ib_send_wr *wr,
2931 const struct ib_send_wr **bad_wr)
2932 {
2933 struct mlx4_ib_qp *qp = to_mqp(ibqp);
2934 void *wqe;
2935 struct mlx4_wqe_ctrl_seg *ctrl;
2936 struct mlx4_wqe_data_seg *dseg;
2937 unsigned long flags;
2938 int nreq;
2939 int err = 0;
2940 unsigned ind;
2941 int uninitialized_var(stamp);
2942 int uninitialized_var(size);
2943 unsigned uninitialized_var(seglen);
2944 __be32 dummy;
2945 __be32 *lso_wqe;
2946 __be32 lso_hdr_sz = 0;
2947 __be32 blh;
2948 int i;
2949 struct mlx4_ib_dev *mdev = to_mdev(ibqp->device);
2950
2951 if (qp->mlx4_ib_qp_type == MLX4_IB_QPT_GSI) {
2952 struct mlx4_ib_sqp *sqp = to_msqp(qp);
2953
2954 if (sqp->roce_v2_gsi) {
2955 struct mlx4_ib_ah *ah = to_mah(ud_wr(wr)->ah);
2956 enum ib_gid_type gid_type;
2957 union ib_gid gid;
2958
2959 if (!fill_gid_by_hw_index(mdev, sqp->qp.port,
2960 ah->av.ib.gid_index,
2961 &gid, &gid_type))
2962 qp = (gid_type == IB_GID_TYPE_ROCE_UDP_ENCAP) ?
2963 to_mqp(sqp->roce_v2_gsi) : qp;
2964 else
2965 pr_err("Failed to get gid at index %d. RoCEv2 will not work properly\n",
2966 ah->av.ib.gid_index);
2967 }
2968 }
2969
2970 spin_lock_irqsave(&qp->sq.lock, flags);
2971 if (mdev->dev->persist->state & MLX4_DEVICE_STATE_INTERNAL_ERROR) {
2972 err = -EIO;
2973 *bad_wr = wr;
2974 nreq = 0;
2975 goto out;
2976 }
2977
2978 ind = qp->sq_next_wqe;
2979
2980 for (nreq = 0; wr; ++nreq, wr = wr->next) {
2981 lso_wqe = &dummy;
2982 blh = 0;
2983
2984 if (mlx4_wq_overflow(&qp->sq, nreq, qp->ibqp.send_cq)) {
2985 err = -ENOMEM;
2986 *bad_wr = wr;
2987 goto out;
2988 }
2989
2990 if (unlikely(wr->num_sge > qp->sq.max_gs)) {
2991 err = -EINVAL;
2992 *bad_wr = wr;
2993 goto out;
2994 }
2995
2996 ctrl = wqe = get_send_wqe(qp, ind & (qp->sq.wqe_cnt - 1));
2997 qp->sq.wrid[(qp->sq.head + nreq) & (qp->sq.wqe_cnt - 1)] = wr->wr_id;
2998
2999 ctrl->srcrb_flags =
3000 (wr->send_flags & IB_SEND_SIGNALED ?
3001 cpu_to_be32(MLX4_WQE_CTRL_CQ_UPDATE) : 0) |
3002 (wr->send_flags & IB_SEND_SOLICITED ?
3003 cpu_to_be32(MLX4_WQE_CTRL_SOLICITED) : 0) |
3004 ((wr->send_flags & IB_SEND_IP_CSUM) ?
3005 cpu_to_be32(MLX4_WQE_CTRL_IP_CSUM |
3006 MLX4_WQE_CTRL_TCP_UDP_CSUM) : 0) |
3007 qp->sq_signal_bits;
3008
3009 ctrl->imm = send_ieth(wr);
3010
3011 wqe += sizeof *ctrl;
3012 size = sizeof *ctrl / 16;
3013
3014 switch (qp->mlx4_ib_qp_type) {
3015 case MLX4_IB_QPT_RC:
3016 case MLX4_IB_QPT_UC:
3017 switch (wr->opcode) {
3018 case IB_WR_ATOMIC_CMP_AND_SWP:
3019 case IB_WR_ATOMIC_FETCH_AND_ADD:
3020 case IB_WR_MASKED_ATOMIC_FETCH_AND_ADD:
3021 set_raddr_seg(wqe, atomic_wr(wr)->remote_addr,
3022 atomic_wr(wr)->rkey);
3023 wqe += sizeof (struct mlx4_wqe_raddr_seg);
3024
3025 set_atomic_seg(wqe, atomic_wr(wr));
3026 wqe += sizeof (struct mlx4_wqe_atomic_seg);
3027
3028 size += (sizeof (struct mlx4_wqe_raddr_seg) +
3029 sizeof (struct mlx4_wqe_atomic_seg)) / 16;
3030
3031 break;
3032
3033 case IB_WR_MASKED_ATOMIC_CMP_AND_SWP:
3034 set_raddr_seg(wqe, atomic_wr(wr)->remote_addr,
3035 atomic_wr(wr)->rkey);
3036 wqe += sizeof (struct mlx4_wqe_raddr_seg);
3037
3038 set_masked_atomic_seg(wqe, atomic_wr(wr));
3039 wqe += sizeof (struct mlx4_wqe_masked_atomic_seg);
3040
3041 size += (sizeof (struct mlx4_wqe_raddr_seg) +
3042 sizeof (struct mlx4_wqe_masked_atomic_seg)) / 16;
3043
3044 break;
3045
3046 case IB_WR_RDMA_READ:
3047 case IB_WR_RDMA_WRITE:
3048 case IB_WR_RDMA_WRITE_WITH_IMM:
3049 set_raddr_seg(wqe, rdma_wr(wr)->remote_addr,
3050 rdma_wr(wr)->rkey);
3051 wqe += sizeof (struct mlx4_wqe_raddr_seg);
3052 size += sizeof (struct mlx4_wqe_raddr_seg) / 16;
3053 break;
3054
3055 case IB_WR_LOCAL_INV:
3056 ctrl->srcrb_flags |=
3057 cpu_to_be32(MLX4_WQE_CTRL_STRONG_ORDER);
3058 set_local_inv_seg(wqe, wr->ex.invalidate_rkey);
3059 wqe += sizeof (struct mlx4_wqe_local_inval_seg);
3060 size += sizeof (struct mlx4_wqe_local_inval_seg) / 16;
3061 break;
3062
3063 case IB_WR_REG_MR:
3064 ctrl->srcrb_flags |=
3065 cpu_to_be32(MLX4_WQE_CTRL_STRONG_ORDER);
3066 set_reg_seg(wqe, reg_wr(wr));
3067 wqe += sizeof(struct mlx4_wqe_fmr_seg);
3068 size += sizeof(struct mlx4_wqe_fmr_seg) / 16;
3069 break;
3070
3071 default:
3072 /* No extra segments required for sends */
3073 break;
3074 }
3075 break;
3076
3077 case MLX4_IB_QPT_TUN_SMI_OWNER:
3078 err = build_sriov_qp0_header(to_msqp(qp), ud_wr(wr),
3079 ctrl, &seglen);
3080 if (unlikely(err)) {
3081 *bad_wr = wr;
3082 goto out;
3083 }
3084 wqe += seglen;
3085 size += seglen / 16;
3086 break;
3087 case MLX4_IB_QPT_TUN_SMI:
3088 case MLX4_IB_QPT_TUN_GSI:
3089 /* this is a UD qp used in MAD responses to slaves. */
3090 set_datagram_seg(wqe, ud_wr(wr));
3091 /* set the forced-loopback bit in the data seg av */
3092 *(__be32 *) wqe |= cpu_to_be32(0x80000000);
3093 wqe += sizeof (struct mlx4_wqe_datagram_seg);
3094 size += sizeof (struct mlx4_wqe_datagram_seg) / 16;
3095 break;
3096 case MLX4_IB_QPT_UD:
3097 set_datagram_seg(wqe, ud_wr(wr));
3098 wqe += sizeof (struct mlx4_wqe_datagram_seg);
3099 size += sizeof (struct mlx4_wqe_datagram_seg) / 16;
3100
3101 if (wr->opcode == IB_WR_LSO) {
3102 err = build_lso_seg(wqe, ud_wr(wr), qp, &seglen,
3103 &lso_hdr_sz, &blh);
3104 if (unlikely(err)) {
3105 *bad_wr = wr;
3106 goto out;
3107 }
3108 lso_wqe = (__be32 *) wqe;
3109 wqe += seglen;
3110 size += seglen / 16;
3111 }
3112 break;
3113
3114 case MLX4_IB_QPT_PROXY_SMI_OWNER:
3115 err = build_sriov_qp0_header(to_msqp(qp), ud_wr(wr),
3116 ctrl, &seglen);
3117 if (unlikely(err)) {
3118 *bad_wr = wr;
3119 goto out;
3120 }
3121 wqe += seglen;
3122 size += seglen / 16;
3123 /* to start tunnel header on a cache-line boundary */
3124 add_zero_len_inline(wqe);
3125 wqe += 16;
3126 size++;
3127 build_tunnel_header(ud_wr(wr), wqe, &seglen);
3128 wqe += seglen;
3129 size += seglen / 16;
3130 break;
3131 case MLX4_IB_QPT_PROXY_SMI:
3132 case MLX4_IB_QPT_PROXY_GSI:
3133 /* If we are tunneling special qps, this is a UD qp.
3134 * In this case we first add a UD segment targeting
3135 * the tunnel qp, and then add a header with address
3136 * information */
3137 set_tunnel_datagram_seg(to_mdev(ibqp->device), wqe,
3138 ud_wr(wr),
3139 qp->mlx4_ib_qp_type);
3140 wqe += sizeof (struct mlx4_wqe_datagram_seg);
3141 size += sizeof (struct mlx4_wqe_datagram_seg) / 16;
3142 build_tunnel_header(ud_wr(wr), wqe, &seglen);
3143 wqe += seglen;
3144 size += seglen / 16;
3145 break;
3146
3147 case MLX4_IB_QPT_SMI:
3148 case MLX4_IB_QPT_GSI:
3149 err = build_mlx_header(to_msqp(qp), ud_wr(wr), ctrl,
3150 &seglen);
3151 if (unlikely(err)) {
3152 *bad_wr = wr;
3153 goto out;
3154 }
3155 wqe += seglen;
3156 size += seglen / 16;
3157 break;
3158
3159 default:
3160 break;
3161 }
3162
3163 /*
3164 * Write data segments in reverse order, so as to
3165 * overwrite cacheline stamp last within each
3166 * cacheline. This avoids issues with WQE
3167 * prefetching.
3168 */
3169
3170 dseg = wqe;
3171 dseg += wr->num_sge - 1;
3172 size += wr->num_sge * (sizeof (struct mlx4_wqe_data_seg) / 16);
3173
3174 /* Add one more inline data segment for ICRC for MLX sends */
3175 if (unlikely(qp->mlx4_ib_qp_type == MLX4_IB_QPT_SMI ||
3176 qp->mlx4_ib_qp_type == MLX4_IB_QPT_GSI ||
3177 qp->mlx4_ib_qp_type &
3178 (MLX4_IB_QPT_PROXY_SMI_OWNER | MLX4_IB_QPT_TUN_SMI_OWNER))) {
3179 set_mlx_icrc_seg(dseg + 1);
3180 size += sizeof (struct mlx4_wqe_data_seg) / 16;
3181 }
3182
3183 for (i = wr->num_sge - 1; i >= 0; --i, --dseg)
3184 set_data_seg(dseg, wr->sg_list + i);
3185
3186 /*
3187 * Possibly overwrite stamping in cacheline with LSO
3188 * segment only after making sure all data segments
3189 * are written.
3190 */
3191 wmb();
3192 *lso_wqe = lso_hdr_sz;
3193
3194 ctrl->fence_size = (wr->send_flags & IB_SEND_FENCE ?
3195 MLX4_WQE_CTRL_FENCE : 0) | size;
3196
3197 /*
3198 * Make sure descriptor is fully written before
3199 * setting ownership bit (because HW can start
3200 * executing as soon as we do).
3201 */
3202 wmb();
3203
3204 if (wr->opcode < 0 || wr->opcode >= ARRAY_SIZE(mlx4_ib_opcode)) {
3205 *bad_wr = wr;
3206 err = -EINVAL;
3207 goto out;
3208 }
3209
3210 ctrl->owner_opcode = mlx4_ib_opcode[wr->opcode] |
3211 (ind & qp->sq.wqe_cnt ? cpu_to_be32(1U << 31) : 0) | blh;
3212
3213 stamp = ind + qp->sq_spare_wqes;
3214 ind += DIV_ROUND_UP(size * 16, 1U << qp->sq.wqe_shift);
3215
3216 /*
3217 * We can improve latency by not stamping the last
3218 * send queue WQE until after ringing the doorbell, so
3219 * only stamp here if there are still more WQEs to post.
3220 *
3221 * Same optimization applies to padding with NOP wqe
3222 * in case of WQE shrinking (used to prevent wrap-around
3223 * in the middle of WR).
3224 */
3225 if (wr->next) {
3226 stamp_send_wqe(qp, stamp, size * 16);
3227 ind = pad_wraparound(qp, ind);
3228 }
3229 }
3230
3231 out:
3232 if (likely(nreq)) {
3233 qp->sq.head += nreq;
3234
3235 /*
3236 * Make sure that descriptors are written before
3237 * doorbell record.
3238 */
3239 wmb();
3240
3241 writel(qp->doorbell_qpn,
3242 to_mdev(ibqp->device)->uar_map + MLX4_SEND_DOORBELL);
3243
3244 /*
3245 * Make sure doorbells don't leak out of SQ spinlock
3246 * and reach the HCA out of order.
3247 */
3248 mmiowb();
3249
3250 stamp_send_wqe(qp, stamp, size * 16);
3251
3252 ind = pad_wraparound(qp, ind);
3253 qp->sq_next_wqe = ind;
3254 }
3255
3256 spin_unlock_irqrestore(&qp->sq.lock, flags);
3257
3258 return err;
3259 }
3260
mlx4_ib_post_recv(struct ib_qp * ibqp,const struct ib_recv_wr * wr,const struct ib_recv_wr ** bad_wr)3261 int mlx4_ib_post_recv(struct ib_qp *ibqp, const struct ib_recv_wr *wr,
3262 const struct ib_recv_wr **bad_wr)
3263 {
3264 struct mlx4_ib_qp *qp = to_mqp(ibqp);
3265 struct mlx4_wqe_data_seg *scat;
3266 unsigned long flags;
3267 int err = 0;
3268 int nreq;
3269 int ind;
3270 int max_gs;
3271 int i;
3272 struct mlx4_ib_dev *mdev = to_mdev(ibqp->device);
3273
3274 max_gs = qp->rq.max_gs;
3275 spin_lock_irqsave(&qp->rq.lock, flags);
3276
3277 if (mdev->dev->persist->state & MLX4_DEVICE_STATE_INTERNAL_ERROR) {
3278 err = -EIO;
3279 *bad_wr = wr;
3280 nreq = 0;
3281 goto out;
3282 }
3283
3284 ind = qp->rq.head & (qp->rq.wqe_cnt - 1);
3285
3286 for (nreq = 0; wr; ++nreq, wr = wr->next) {
3287 if (mlx4_wq_overflow(&qp->rq, nreq, qp->ibqp.recv_cq)) {
3288 err = -ENOMEM;
3289 *bad_wr = wr;
3290 goto out;
3291 }
3292
3293 if (unlikely(wr->num_sge > qp->rq.max_gs)) {
3294 err = -EINVAL;
3295 *bad_wr = wr;
3296 goto out;
3297 }
3298
3299 scat = get_recv_wqe(qp, ind);
3300
3301 if (qp->mlx4_ib_qp_type & (MLX4_IB_QPT_PROXY_SMI_OWNER |
3302 MLX4_IB_QPT_PROXY_SMI | MLX4_IB_QPT_PROXY_GSI)) {
3303 ib_dma_sync_single_for_device(ibqp->device,
3304 qp->sqp_proxy_rcv[ind].map,
3305 sizeof (struct mlx4_ib_proxy_sqp_hdr),
3306 DMA_FROM_DEVICE);
3307 scat->byte_count =
3308 cpu_to_be32(sizeof (struct mlx4_ib_proxy_sqp_hdr));
3309 /* use dma lkey from upper layer entry */
3310 scat->lkey = cpu_to_be32(wr->sg_list->lkey);
3311 scat->addr = cpu_to_be64(qp->sqp_proxy_rcv[ind].map);
3312 scat++;
3313 max_gs--;
3314 }
3315
3316 for (i = 0; i < wr->num_sge; ++i)
3317 __set_data_seg(scat + i, wr->sg_list + i);
3318
3319 if (i < max_gs) {
3320 scat[i].byte_count = 0;
3321 scat[i].lkey = cpu_to_be32(MLX4_INVALID_LKEY);
3322 scat[i].addr = 0;
3323 }
3324
3325 qp->rq.wrid[ind] = wr->wr_id;
3326
3327 ind = (ind + 1) & (qp->rq.wqe_cnt - 1);
3328 }
3329
3330 out:
3331 if (likely(nreq)) {
3332 qp->rq.head += nreq;
3333
3334 /*
3335 * Make sure that descriptors are written before
3336 * doorbell record.
3337 */
3338 wmb();
3339
3340 *qp->db.db = cpu_to_be32(qp->rq.head & 0xffff);
3341 }
3342
3343 spin_unlock_irqrestore(&qp->rq.lock, flags);
3344
3345 return err;
3346 }
3347
to_ib_qp_state(enum mlx4_qp_state mlx4_state)3348 static inline enum ib_qp_state to_ib_qp_state(enum mlx4_qp_state mlx4_state)
3349 {
3350 switch (mlx4_state) {
3351 case MLX4_QP_STATE_RST: return IB_QPS_RESET;
3352 case MLX4_QP_STATE_INIT: return IB_QPS_INIT;
3353 case MLX4_QP_STATE_RTR: return IB_QPS_RTR;
3354 case MLX4_QP_STATE_RTS: return IB_QPS_RTS;
3355 case MLX4_QP_STATE_SQ_DRAINING:
3356 case MLX4_QP_STATE_SQD: return IB_QPS_SQD;
3357 case MLX4_QP_STATE_SQER: return IB_QPS_SQE;
3358 case MLX4_QP_STATE_ERR: return IB_QPS_ERR;
3359 default: return -1;
3360 }
3361 }
3362
to_ib_mig_state(int mlx4_mig_state)3363 static inline enum ib_mig_state to_ib_mig_state(int mlx4_mig_state)
3364 {
3365 switch (mlx4_mig_state) {
3366 case MLX4_QP_PM_ARMED: return IB_MIG_ARMED;
3367 case MLX4_QP_PM_REARM: return IB_MIG_REARM;
3368 case MLX4_QP_PM_MIGRATED: return IB_MIG_MIGRATED;
3369 default: return -1;
3370 }
3371 }
3372
to_ib_qp_access_flags(int mlx4_flags)3373 static int to_ib_qp_access_flags(int mlx4_flags)
3374 {
3375 int ib_flags = 0;
3376
3377 if (mlx4_flags & MLX4_QP_BIT_RRE)
3378 ib_flags |= IB_ACCESS_REMOTE_READ;
3379 if (mlx4_flags & MLX4_QP_BIT_RWE)
3380 ib_flags |= IB_ACCESS_REMOTE_WRITE;
3381 if (mlx4_flags & MLX4_QP_BIT_RAE)
3382 ib_flags |= IB_ACCESS_REMOTE_ATOMIC;
3383
3384 return ib_flags;
3385 }
3386
to_rdma_ah_attr(struct mlx4_ib_dev * ibdev,struct rdma_ah_attr * ah_attr,struct mlx4_qp_path * path)3387 static void to_rdma_ah_attr(struct mlx4_ib_dev *ibdev,
3388 struct rdma_ah_attr *ah_attr,
3389 struct mlx4_qp_path *path)
3390 {
3391 struct mlx4_dev *dev = ibdev->dev;
3392 u8 port_num = path->sched_queue & 0x40 ? 2 : 1;
3393
3394 memset(ah_attr, 0, sizeof *ah_attr);
3395 ah_attr->type = rdma_ah_find_type(&ibdev->ib_dev, port_num);
3396 if (port_num == 0 || port_num > dev->caps.num_ports)
3397 return;
3398
3399 if (ah_attr->type == RDMA_AH_ATTR_TYPE_ROCE)
3400 rdma_ah_set_sl(ah_attr, ((path->sched_queue >> 3) & 0x7) |
3401 ((path->sched_queue & 4) << 1));
3402 else
3403 rdma_ah_set_sl(ah_attr, (path->sched_queue >> 2) & 0xf);
3404 rdma_ah_set_port_num(ah_attr, port_num);
3405
3406 rdma_ah_set_dlid(ah_attr, be16_to_cpu(path->rlid));
3407 rdma_ah_set_path_bits(ah_attr, path->grh_mylmc & 0x7f);
3408 rdma_ah_set_static_rate(ah_attr,
3409 path->static_rate ? path->static_rate - 5 : 0);
3410 if (path->grh_mylmc & (1 << 7)) {
3411 rdma_ah_set_grh(ah_attr, NULL,
3412 be32_to_cpu(path->tclass_flowlabel) & 0xfffff,
3413 path->mgid_index,
3414 path->hop_limit,
3415 (be32_to_cpu(path->tclass_flowlabel)
3416 >> 20) & 0xff);
3417 rdma_ah_set_dgid_raw(ah_attr, path->rgid);
3418 }
3419 }
3420
mlx4_ib_query_qp(struct ib_qp * ibqp,struct ib_qp_attr * qp_attr,int qp_attr_mask,struct ib_qp_init_attr * qp_init_attr)3421 int mlx4_ib_query_qp(struct ib_qp *ibqp, struct ib_qp_attr *qp_attr, int qp_attr_mask,
3422 struct ib_qp_init_attr *qp_init_attr)
3423 {
3424 struct mlx4_ib_dev *dev = to_mdev(ibqp->device);
3425 struct mlx4_ib_qp *qp = to_mqp(ibqp);
3426 struct mlx4_qp_context context;
3427 int mlx4_state;
3428 int err = 0;
3429
3430 mutex_lock(&qp->mutex);
3431
3432 if (qp->state == IB_QPS_RESET) {
3433 qp_attr->qp_state = IB_QPS_RESET;
3434 goto done;
3435 }
3436
3437 err = mlx4_qp_query(dev->dev, &qp->mqp, &context);
3438 if (err) {
3439 err = -EINVAL;
3440 goto out;
3441 }
3442
3443 mlx4_state = be32_to_cpu(context.flags) >> 28;
3444
3445 qp->state = to_ib_qp_state(mlx4_state);
3446 qp_attr->qp_state = qp->state;
3447 qp_attr->path_mtu = context.mtu_msgmax >> 5;
3448 qp_attr->path_mig_state =
3449 to_ib_mig_state((be32_to_cpu(context.flags) >> 11) & 0x3);
3450 qp_attr->qkey = be32_to_cpu(context.qkey);
3451 qp_attr->rq_psn = be32_to_cpu(context.rnr_nextrecvpsn) & 0xffffff;
3452 qp_attr->sq_psn = be32_to_cpu(context.next_send_psn) & 0xffffff;
3453 qp_attr->dest_qp_num = be32_to_cpu(context.remote_qpn) & 0xffffff;
3454 qp_attr->qp_access_flags =
3455 to_ib_qp_access_flags(be32_to_cpu(context.params2));
3456
3457 if (qp->ibqp.qp_type == IB_QPT_RC || qp->ibqp.qp_type == IB_QPT_UC) {
3458 to_rdma_ah_attr(dev, &qp_attr->ah_attr, &context.pri_path);
3459 to_rdma_ah_attr(dev, &qp_attr->alt_ah_attr, &context.alt_path);
3460 qp_attr->alt_pkey_index = context.alt_path.pkey_index & 0x7f;
3461 qp_attr->alt_port_num =
3462 rdma_ah_get_port_num(&qp_attr->alt_ah_attr);
3463 }
3464
3465 qp_attr->pkey_index = context.pri_path.pkey_index & 0x7f;
3466 if (qp_attr->qp_state == IB_QPS_INIT)
3467 qp_attr->port_num = qp->port;
3468 else
3469 qp_attr->port_num = context.pri_path.sched_queue & 0x40 ? 2 : 1;
3470
3471 /* qp_attr->en_sqd_async_notify is only applicable in modify qp */
3472 qp_attr->sq_draining = mlx4_state == MLX4_QP_STATE_SQ_DRAINING;
3473
3474 qp_attr->max_rd_atomic = 1 << ((be32_to_cpu(context.params1) >> 21) & 0x7);
3475
3476 qp_attr->max_dest_rd_atomic =
3477 1 << ((be32_to_cpu(context.params2) >> 21) & 0x7);
3478 qp_attr->min_rnr_timer =
3479 (be32_to_cpu(context.rnr_nextrecvpsn) >> 24) & 0x1f;
3480 qp_attr->timeout = context.pri_path.ackto >> 3;
3481 qp_attr->retry_cnt = (be32_to_cpu(context.params1) >> 16) & 0x7;
3482 qp_attr->rnr_retry = (be32_to_cpu(context.params1) >> 13) & 0x7;
3483 qp_attr->alt_timeout = context.alt_path.ackto >> 3;
3484
3485 done:
3486 qp_attr->cur_qp_state = qp_attr->qp_state;
3487 qp_attr->cap.max_recv_wr = qp->rq.wqe_cnt;
3488 qp_attr->cap.max_recv_sge = qp->rq.max_gs;
3489
3490 if (!ibqp->uobject) {
3491 qp_attr->cap.max_send_wr = qp->sq.wqe_cnt;
3492 qp_attr->cap.max_send_sge = qp->sq.max_gs;
3493 } else {
3494 qp_attr->cap.max_send_wr = 0;
3495 qp_attr->cap.max_send_sge = 0;
3496 }
3497
3498 /*
3499 * We don't support inline sends for kernel QPs (yet), and we
3500 * don't know what userspace's value should be.
3501 */
3502 qp_attr->cap.max_inline_data = 0;
3503
3504 qp_init_attr->cap = qp_attr->cap;
3505
3506 qp_init_attr->create_flags = 0;
3507 if (qp->flags & MLX4_IB_QP_BLOCK_MULTICAST_LOOPBACK)
3508 qp_init_attr->create_flags |= IB_QP_CREATE_BLOCK_MULTICAST_LOOPBACK;
3509
3510 if (qp->flags & MLX4_IB_QP_LSO)
3511 qp_init_attr->create_flags |= IB_QP_CREATE_IPOIB_UD_LSO;
3512
3513 if (qp->flags & MLX4_IB_QP_NETIF)
3514 qp_init_attr->create_flags |= IB_QP_CREATE_NETIF_QP;
3515
3516 qp_init_attr->sq_sig_type =
3517 qp->sq_signal_bits == cpu_to_be32(MLX4_WQE_CTRL_CQ_UPDATE) ?
3518 IB_SIGNAL_ALL_WR : IB_SIGNAL_REQ_WR;
3519
3520 out:
3521 mutex_unlock(&qp->mutex);
3522 return err;
3523 }
3524
3525