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CommitLineData
1da177e4
LT
1/*
2 * Copyright (c) 2004 Mellanox Technologies Ltd. All rights reserved.
3 * Copyright (c) 2004 Infinicon Corporation. All rights reserved.
4 * Copyright (c) 2004 Intel Corporation. All rights reserved.
5 * Copyright (c) 2004 Topspin Corporation. All rights reserved.
6 * Copyright (c) 2004 Voltaire Corporation. All rights reserved.
2a1d9b7f 7 * Copyright (c) 2005 Sun Microsystems, Inc. All rights reserved.
f7c6a7b5 8 * Copyright (c) 2005, 2006, 2007 Cisco Systems. All rights reserved.
1da177e4
LT
9 *
10 * This software is available to you under a choice of one of two
11 * licenses. You may choose to be licensed under the terms of the GNU
12 * General Public License (GPL) Version 2, available from the file
13 * COPYING in the main directory of this source tree, or the
14 * OpenIB.org BSD license below:
15 *
16 * Redistribution and use in source and binary forms, with or
17 * without modification, are permitted provided that the following
18 * conditions are met:
19 *
20 * - Redistributions of source code must retain the above
21 * copyright notice, this list of conditions and the following
22 * disclaimer.
23 *
24 * - Redistributions in binary form must reproduce the above
25 * copyright notice, this list of conditions and the following
26 * disclaimer in the documentation and/or other materials
27 * provided with the distribution.
28 *
29 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
30 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
31 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
32 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
33 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
34 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
35 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
36 * SOFTWARE.
1da177e4
LT
37 */
38
39#if !defined(IB_VERBS_H)
40#define IB_VERBS_H
41
42#include <linux/types.h>
43#include <linux/device.h>
9b513090
RC
44#include <linux/mm.h>
45#include <linux/dma-mapping.h>
459d6e2a 46#include <linux/kref.h>
bfb3ea12
DB
47#include <linux/list.h>
48#include <linux/rwsem.h>
87ae9afd 49#include <linux/scatterlist.h>
f0626710 50#include <linux/workqueue.h>
9268f72d 51#include <linux/socket.h>
14d3a3b2 52#include <linux/irq_poll.h>
dd5f03be 53#include <uapi/linux/if_ether.h>
c865f246
SK
54#include <net/ipv6.h>
55#include <net/ip.h>
301a721e
MB
56#include <linux/string.h>
57#include <linux/slab.h>
2fc77572 58#include <linux/netdevice.h>
e2773c06 59
50174a7f 60#include <linux/if_link.h>
60063497 61#include <linux/atomic.h>
882214e2 62#include <linux/mmu_notifier.h>
7c0f6ba6 63#include <linux/uaccess.h>
43579b5f 64#include <linux/cgroup_rdma.h>
ea6819e1 65#include <uapi/rdma/ib_user_verbs.h>
1da177e4 66
f0626710 67extern struct workqueue_struct *ib_wq;
14d3a3b2 68extern struct workqueue_struct *ib_comp_wq;
f0626710 69
1da177e4
LT
70union ib_gid {
71 u8 raw[16];
72 struct {
97f52eb4
SH
73 __be64 subnet_prefix;
74 __be64 interface_id;
1da177e4
LT
75 } global;
76};
77
e26be1bf
MS
78extern union ib_gid zgid;
79
b39ffa1d
MB
80enum ib_gid_type {
81 /* If link layer is Ethernet, this is RoCE V1 */
82 IB_GID_TYPE_IB = 0,
83 IB_GID_TYPE_ROCE = 0,
7766a99f 84 IB_GID_TYPE_ROCE_UDP_ENCAP = 1,
b39ffa1d
MB
85 IB_GID_TYPE_SIZE
86};
87
7ead4bcb 88#define ROCE_V2_UDP_DPORT 4791
03db3a2d 89struct ib_gid_attr {
b39ffa1d 90 enum ib_gid_type gid_type;
03db3a2d
MB
91 struct net_device *ndev;
92};
93
07ebafba
TT
94enum rdma_node_type {
95 /* IB values map to NodeInfo:NodeType. */
96 RDMA_NODE_IB_CA = 1,
97 RDMA_NODE_IB_SWITCH,
98 RDMA_NODE_IB_ROUTER,
180771a3
UM
99 RDMA_NODE_RNIC,
100 RDMA_NODE_USNIC,
5db5765e 101 RDMA_NODE_USNIC_UDP,
1da177e4
LT
102};
103
a0c1b2a3
EC
104enum {
105 /* set the local administered indication */
106 IB_SA_WELL_KNOWN_GUID = BIT_ULL(57) | 2,
107};
108
07ebafba
TT
109enum rdma_transport_type {
110 RDMA_TRANSPORT_IB,
180771a3 111 RDMA_TRANSPORT_IWARP,
248567f7
UM
112 RDMA_TRANSPORT_USNIC,
113 RDMA_TRANSPORT_USNIC_UDP
07ebafba
TT
114};
115
6b90a6d6
MW
116enum rdma_protocol_type {
117 RDMA_PROTOCOL_IB,
118 RDMA_PROTOCOL_IBOE,
119 RDMA_PROTOCOL_IWARP,
120 RDMA_PROTOCOL_USNIC_UDP
121};
122
8385fd84
RD
123__attribute_const__ enum rdma_transport_type
124rdma_node_get_transport(enum rdma_node_type node_type);
07ebafba 125
c865f246
SK
126enum rdma_network_type {
127 RDMA_NETWORK_IB,
128 RDMA_NETWORK_ROCE_V1 = RDMA_NETWORK_IB,
129 RDMA_NETWORK_IPV4,
130 RDMA_NETWORK_IPV6
131};
132
133static inline enum ib_gid_type ib_network_to_gid_type(enum rdma_network_type network_type)
134{
135 if (network_type == RDMA_NETWORK_IPV4 ||
136 network_type == RDMA_NETWORK_IPV6)
137 return IB_GID_TYPE_ROCE_UDP_ENCAP;
138
139 /* IB_GID_TYPE_IB same as RDMA_NETWORK_ROCE_V1 */
140 return IB_GID_TYPE_IB;
141}
142
143static inline enum rdma_network_type ib_gid_to_network_type(enum ib_gid_type gid_type,
144 union ib_gid *gid)
145{
146 if (gid_type == IB_GID_TYPE_IB)
147 return RDMA_NETWORK_IB;
148
149 if (ipv6_addr_v4mapped((struct in6_addr *)gid))
150 return RDMA_NETWORK_IPV4;
151 else
152 return RDMA_NETWORK_IPV6;
153}
154
a3f5adaf
EC
155enum rdma_link_layer {
156 IB_LINK_LAYER_UNSPECIFIED,
157 IB_LINK_LAYER_INFINIBAND,
158 IB_LINK_LAYER_ETHERNET,
159};
160
1da177e4 161enum ib_device_cap_flags {
7ca0bc53
LR
162 IB_DEVICE_RESIZE_MAX_WR = (1 << 0),
163 IB_DEVICE_BAD_PKEY_CNTR = (1 << 1),
164 IB_DEVICE_BAD_QKEY_CNTR = (1 << 2),
165 IB_DEVICE_RAW_MULTI = (1 << 3),
166 IB_DEVICE_AUTO_PATH_MIG = (1 << 4),
167 IB_DEVICE_CHANGE_PHY_PORT = (1 << 5),
168 IB_DEVICE_UD_AV_PORT_ENFORCE = (1 << 6),
169 IB_DEVICE_CURR_QP_STATE_MOD = (1 << 7),
170 IB_DEVICE_SHUTDOWN_PORT = (1 << 8),
171 IB_DEVICE_INIT_TYPE = (1 << 9),
172 IB_DEVICE_PORT_ACTIVE_EVENT = (1 << 10),
173 IB_DEVICE_SYS_IMAGE_GUID = (1 << 11),
174 IB_DEVICE_RC_RNR_NAK_GEN = (1 << 12),
175 IB_DEVICE_SRQ_RESIZE = (1 << 13),
176 IB_DEVICE_N_NOTIFY_CQ = (1 << 14),
b1adc714
CH
177
178 /*
179 * This device supports a per-device lkey or stag that can be
180 * used without performing a memory registration for the local
181 * memory. Note that ULPs should never check this flag, but
182 * instead of use the local_dma_lkey flag in the ib_pd structure,
183 * which will always contain a usable lkey.
184 */
7ca0bc53
LR
185 IB_DEVICE_LOCAL_DMA_LKEY = (1 << 15),
186 IB_DEVICE_RESERVED /* old SEND_W_INV */ = (1 << 16),
187 IB_DEVICE_MEM_WINDOW = (1 << 17),
e0605d91
EC
188 /*
189 * Devices should set IB_DEVICE_UD_IP_SUM if they support
190 * insertion of UDP and TCP checksum on outgoing UD IPoIB
191 * messages and can verify the validity of checksum for
192 * incoming messages. Setting this flag implies that the
193 * IPoIB driver may set NETIF_F_IP_CSUM for datagram mode.
194 */
7ca0bc53
LR
195 IB_DEVICE_UD_IP_CSUM = (1 << 18),
196 IB_DEVICE_UD_TSO = (1 << 19),
197 IB_DEVICE_XRC = (1 << 20),
b1adc714
CH
198
199 /*
200 * This device supports the IB "base memory management extension",
201 * which includes support for fast registrations (IB_WR_REG_MR,
202 * IB_WR_LOCAL_INV and IB_WR_SEND_WITH_INV verbs). This flag should
203 * also be set by any iWarp device which must support FRs to comply
204 * to the iWarp verbs spec. iWarp devices also support the
205 * IB_WR_RDMA_READ_WITH_INV verb for RDMA READs that invalidate the
206 * stag.
207 */
7ca0bc53
LR
208 IB_DEVICE_MEM_MGT_EXTENSIONS = (1 << 21),
209 IB_DEVICE_BLOCK_MULTICAST_LOOPBACK = (1 << 22),
210 IB_DEVICE_MEM_WINDOW_TYPE_2A = (1 << 23),
211 IB_DEVICE_MEM_WINDOW_TYPE_2B = (1 << 24),
212 IB_DEVICE_RC_IP_CSUM = (1 << 25),
ebaaee25 213 /* Deprecated. Please use IB_RAW_PACKET_CAP_IP_CSUM. */
7ca0bc53 214 IB_DEVICE_RAW_IP_CSUM = (1 << 26),
8a06ce59
LR
215 /*
216 * Devices should set IB_DEVICE_CROSS_CHANNEL if they
217 * support execution of WQEs that involve synchronization
218 * of I/O operations with single completion queue managed
219 * by hardware.
220 */
221 IB_DEVICE_CROSS_CHANNEL = (1 << 27),
7ca0bc53
LR
222 IB_DEVICE_MANAGED_FLOW_STEERING = (1 << 29),
223 IB_DEVICE_SIGNATURE_HANDOVER = (1 << 30),
47355b3c 224 IB_DEVICE_ON_DEMAND_PAGING = (1ULL << 31),
f5aa9159 225 IB_DEVICE_SG_GAPS_REG = (1ULL << 32),
c7e162a4 226 IB_DEVICE_VIRTUAL_FUNCTION = (1ULL << 33),
ebaaee25 227 /* Deprecated. Please use IB_RAW_PACKET_CAP_SCATTER_FCS. */
c7e162a4 228 IB_DEVICE_RAW_SCATTER_FCS = (1ULL << 34),
62e45949 229 IB_DEVICE_RDMA_NETDEV_OPA_VNIC = (1ULL << 35),
1b01d335
SG
230};
231
232enum ib_signature_prot_cap {
233 IB_PROT_T10DIF_TYPE_1 = 1,
234 IB_PROT_T10DIF_TYPE_2 = 1 << 1,
235 IB_PROT_T10DIF_TYPE_3 = 1 << 2,
236};
237
238enum ib_signature_guard_cap {
239 IB_GUARD_T10DIF_CRC = 1,
240 IB_GUARD_T10DIF_CSUM = 1 << 1,
1da177e4
LT
241};
242
243enum ib_atomic_cap {
244 IB_ATOMIC_NONE,
245 IB_ATOMIC_HCA,
246 IB_ATOMIC_GLOB
247};
248
860f10a7 249enum ib_odp_general_cap_bits {
25bf14d6
AK
250 IB_ODP_SUPPORT = 1 << 0,
251 IB_ODP_SUPPORT_IMPLICIT = 1 << 1,
860f10a7
SG
252};
253
254enum ib_odp_transport_cap_bits {
255 IB_ODP_SUPPORT_SEND = 1 << 0,
256 IB_ODP_SUPPORT_RECV = 1 << 1,
257 IB_ODP_SUPPORT_WRITE = 1 << 2,
258 IB_ODP_SUPPORT_READ = 1 << 3,
259 IB_ODP_SUPPORT_ATOMIC = 1 << 4,
260};
261
262struct ib_odp_caps {
263 uint64_t general_caps;
264 struct {
265 uint32_t rc_odp_caps;
266 uint32_t uc_odp_caps;
267 uint32_t ud_odp_caps;
268 } per_transport_caps;
269};
270
ccf20562
YH
271struct ib_rss_caps {
272 /* Corresponding bit will be set if qp type from
273 * 'enum ib_qp_type' is supported, e.g.
274 * supported_qpts |= 1 << IB_QPT_UD
275 */
276 u32 supported_qpts;
277 u32 max_rwq_indirection_tables;
278 u32 max_rwq_indirection_table_size;
279};
280
b9926b92
MB
281enum ib_cq_creation_flags {
282 IB_CQ_FLAGS_TIMESTAMP_COMPLETION = 1 << 0,
8a06ce59 283 IB_CQ_FLAGS_IGNORE_OVERRUN = 1 << 1,
b9926b92
MB
284};
285
bcf4c1ea
MB
286struct ib_cq_init_attr {
287 unsigned int cqe;
288 int comp_vector;
289 u32 flags;
290};
291
1da177e4
LT
292struct ib_device_attr {
293 u64 fw_ver;
97f52eb4 294 __be64 sys_image_guid;
1da177e4
LT
295 u64 max_mr_size;
296 u64 page_size_cap;
297 u32 vendor_id;
298 u32 vendor_part_id;
299 u32 hw_ver;
300 int max_qp;
301 int max_qp_wr;
fb532d6a 302 u64 device_cap_flags;
1da177e4
LT
303 int max_sge;
304 int max_sge_rd;
305 int max_cq;
306 int max_cqe;
307 int max_mr;
308 int max_pd;
309 int max_qp_rd_atom;
310 int max_ee_rd_atom;
311 int max_res_rd_atom;
312 int max_qp_init_rd_atom;
313 int max_ee_init_rd_atom;
314 enum ib_atomic_cap atomic_cap;
5e80ba8f 315 enum ib_atomic_cap masked_atomic_cap;
1da177e4
LT
316 int max_ee;
317 int max_rdd;
318 int max_mw;
319 int max_raw_ipv6_qp;
320 int max_raw_ethy_qp;
321 int max_mcast_grp;
322 int max_mcast_qp_attach;
323 int max_total_mcast_qp_attach;
324 int max_ah;
325 int max_fmr;
326 int max_map_per_fmr;
327 int max_srq;
328 int max_srq_wr;
329 int max_srq_sge;
00f7ec36 330 unsigned int max_fast_reg_page_list_len;
1da177e4
LT
331 u16 max_pkeys;
332 u8 local_ca_ack_delay;
1b01d335
SG
333 int sig_prot_cap;
334 int sig_guard_cap;
860f10a7 335 struct ib_odp_caps odp_caps;
24306dc6
MB
336 uint64_t timestamp_mask;
337 uint64_t hca_core_clock; /* in KHZ */
ccf20562
YH
338 struct ib_rss_caps rss_caps;
339 u32 max_wq_type_rq;
ebaaee25 340 u32 raw_packet_caps; /* Use ib_raw_packet_caps enum */
1da177e4
LT
341};
342
343enum ib_mtu {
344 IB_MTU_256 = 1,
345 IB_MTU_512 = 2,
346 IB_MTU_1024 = 3,
347 IB_MTU_2048 = 4,
348 IB_MTU_4096 = 5
349};
350
351static inline int ib_mtu_enum_to_int(enum ib_mtu mtu)
352{
353 switch (mtu) {
354 case IB_MTU_256: return 256;
355 case IB_MTU_512: return 512;
356 case IB_MTU_1024: return 1024;
357 case IB_MTU_2048: return 2048;
358 case IB_MTU_4096: return 4096;
359 default: return -1;
360 }
361}
362
d3f4aadd
AR
363static inline enum ib_mtu ib_mtu_int_to_enum(int mtu)
364{
365 if (mtu >= 4096)
366 return IB_MTU_4096;
367 else if (mtu >= 2048)
368 return IB_MTU_2048;
369 else if (mtu >= 1024)
370 return IB_MTU_1024;
371 else if (mtu >= 512)
372 return IB_MTU_512;
373 else
374 return IB_MTU_256;
375}
376
1da177e4
LT
377enum ib_port_state {
378 IB_PORT_NOP = 0,
379 IB_PORT_DOWN = 1,
380 IB_PORT_INIT = 2,
381 IB_PORT_ARMED = 3,
382 IB_PORT_ACTIVE = 4,
383 IB_PORT_ACTIVE_DEFER = 5
384};
385
386enum ib_port_cap_flags {
387 IB_PORT_SM = 1 << 1,
388 IB_PORT_NOTICE_SUP = 1 << 2,
389 IB_PORT_TRAP_SUP = 1 << 3,
390 IB_PORT_OPT_IPD_SUP = 1 << 4,
391 IB_PORT_AUTO_MIGR_SUP = 1 << 5,
392 IB_PORT_SL_MAP_SUP = 1 << 6,
393 IB_PORT_MKEY_NVRAM = 1 << 7,
394 IB_PORT_PKEY_NVRAM = 1 << 8,
395 IB_PORT_LED_INFO_SUP = 1 << 9,
396 IB_PORT_SM_DISABLED = 1 << 10,
397 IB_PORT_SYS_IMAGE_GUID_SUP = 1 << 11,
398 IB_PORT_PKEY_SW_EXT_PORT_TRAP_SUP = 1 << 12,
71eeba16 399 IB_PORT_EXTENDED_SPEEDS_SUP = 1 << 14,
1da177e4
LT
400 IB_PORT_CM_SUP = 1 << 16,
401 IB_PORT_SNMP_TUNNEL_SUP = 1 << 17,
402 IB_PORT_REINIT_SUP = 1 << 18,
403 IB_PORT_DEVICE_MGMT_SUP = 1 << 19,
404 IB_PORT_VENDOR_CLASS_SUP = 1 << 20,
405 IB_PORT_DR_NOTICE_SUP = 1 << 21,
406 IB_PORT_CAP_MASK_NOTICE_SUP = 1 << 22,
407 IB_PORT_BOOT_MGMT_SUP = 1 << 23,
408 IB_PORT_LINK_LATENCY_SUP = 1 << 24,
b4a26a27 409 IB_PORT_CLIENT_REG_SUP = 1 << 25,
03db3a2d 410 IB_PORT_IP_BASED_GIDS = 1 << 26,
1da177e4
LT
411};
412
413enum ib_port_width {
414 IB_WIDTH_1X = 1,
415 IB_WIDTH_4X = 2,
416 IB_WIDTH_8X = 4,
417 IB_WIDTH_12X = 8
418};
419
420static inline int ib_width_enum_to_int(enum ib_port_width width)
421{
422 switch (width) {
423 case IB_WIDTH_1X: return 1;
424 case IB_WIDTH_4X: return 4;
425 case IB_WIDTH_8X: return 8;
426 case IB_WIDTH_12X: return 12;
427 default: return -1;
428 }
429}
430
2e96691c
OG
431enum ib_port_speed {
432 IB_SPEED_SDR = 1,
433 IB_SPEED_DDR = 2,
434 IB_SPEED_QDR = 4,
435 IB_SPEED_FDR10 = 8,
436 IB_SPEED_FDR = 16,
12113a35
NO
437 IB_SPEED_EDR = 32,
438 IB_SPEED_HDR = 64
2e96691c
OG
439};
440
b40f4757
CL
441/**
442 * struct rdma_hw_stats
443 * @timestamp - Used by the core code to track when the last update was
444 * @lifespan - Used by the core code to determine how old the counters
445 * should be before being updated again. Stored in jiffies, defaults
446 * to 10 milliseconds, drivers can override the default be specifying
447 * their own value during their allocation routine.
448 * @name - Array of pointers to static names used for the counters in
449 * directory.
450 * @num_counters - How many hardware counters there are. If name is
451 * shorter than this number, a kernel oops will result. Driver authors
452 * are encouraged to leave BUILD_BUG_ON(ARRAY_SIZE(@name) < num_counters)
453 * in their code to prevent this.
454 * @value - Array of u64 counters that are accessed by the sysfs code and
455 * filled in by the drivers get_stats routine
456 */
457struct rdma_hw_stats {
458 unsigned long timestamp;
459 unsigned long lifespan;
460 const char * const *names;
461 int num_counters;
462 u64 value[];
7f624d02
SW
463};
464
b40f4757
CL
465#define RDMA_HW_STATS_DEFAULT_LIFESPAN 10
466/**
467 * rdma_alloc_hw_stats_struct - Helper function to allocate dynamic struct
468 * for drivers.
469 * @names - Array of static const char *
470 * @num_counters - How many elements in array
471 * @lifespan - How many milliseconds between updates
472 */
473static inline struct rdma_hw_stats *rdma_alloc_hw_stats_struct(
474 const char * const *names, int num_counters,
475 unsigned long lifespan)
476{
477 struct rdma_hw_stats *stats;
478
479 stats = kzalloc(sizeof(*stats) + num_counters * sizeof(u64),
480 GFP_KERNEL);
481 if (!stats)
482 return NULL;
483 stats->names = names;
484 stats->num_counters = num_counters;
485 stats->lifespan = msecs_to_jiffies(lifespan);
486
487 return stats;
488}
489
490
f9b22e35
IW
491/* Define bits for the various functionality this port needs to be supported by
492 * the core.
493 */
494/* Management 0x00000FFF */
495#define RDMA_CORE_CAP_IB_MAD 0x00000001
496#define RDMA_CORE_CAP_IB_SMI 0x00000002
497#define RDMA_CORE_CAP_IB_CM 0x00000004
498#define RDMA_CORE_CAP_IW_CM 0x00000008
499#define RDMA_CORE_CAP_IB_SA 0x00000010
65995fee 500#define RDMA_CORE_CAP_OPA_MAD 0x00000020
f9b22e35
IW
501
502/* Address format 0x000FF000 */
503#define RDMA_CORE_CAP_AF_IB 0x00001000
504#define RDMA_CORE_CAP_ETH_AH 0x00002000
94d595c5 505#define RDMA_CORE_CAP_OPA_AH 0x00004000
f9b22e35
IW
506
507/* Protocol 0xFFF00000 */
508#define RDMA_CORE_CAP_PROT_IB 0x00100000
509#define RDMA_CORE_CAP_PROT_ROCE 0x00200000
510#define RDMA_CORE_CAP_PROT_IWARP 0x00400000
7766a99f 511#define RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP 0x00800000
aa773bd4 512#define RDMA_CORE_CAP_PROT_RAW_PACKET 0x01000000
ce1e055f 513#define RDMA_CORE_CAP_PROT_USNIC 0x02000000
f9b22e35
IW
514
515#define RDMA_CORE_PORT_IBA_IB (RDMA_CORE_CAP_PROT_IB \
516 | RDMA_CORE_CAP_IB_MAD \
517 | RDMA_CORE_CAP_IB_SMI \
518 | RDMA_CORE_CAP_IB_CM \
519 | RDMA_CORE_CAP_IB_SA \
520 | RDMA_CORE_CAP_AF_IB)
521#define RDMA_CORE_PORT_IBA_ROCE (RDMA_CORE_CAP_PROT_ROCE \
522 | RDMA_CORE_CAP_IB_MAD \
523 | RDMA_CORE_CAP_IB_CM \
f9b22e35
IW
524 | RDMA_CORE_CAP_AF_IB \
525 | RDMA_CORE_CAP_ETH_AH)
7766a99f
MB
526#define RDMA_CORE_PORT_IBA_ROCE_UDP_ENCAP \
527 (RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP \
528 | RDMA_CORE_CAP_IB_MAD \
529 | RDMA_CORE_CAP_IB_CM \
530 | RDMA_CORE_CAP_AF_IB \
531 | RDMA_CORE_CAP_ETH_AH)
f9b22e35
IW
532#define RDMA_CORE_PORT_IWARP (RDMA_CORE_CAP_PROT_IWARP \
533 | RDMA_CORE_CAP_IW_CM)
65995fee
IW
534#define RDMA_CORE_PORT_INTEL_OPA (RDMA_CORE_PORT_IBA_IB \
535 | RDMA_CORE_CAP_OPA_MAD)
f9b22e35 536
aa773bd4
OG
537#define RDMA_CORE_PORT_RAW_PACKET (RDMA_CORE_CAP_PROT_RAW_PACKET)
538
ce1e055f
OG
539#define RDMA_CORE_PORT_USNIC (RDMA_CORE_CAP_PROT_USNIC)
540
1da177e4 541struct ib_port_attr {
fad61ad4 542 u64 subnet_prefix;
1da177e4
LT
543 enum ib_port_state state;
544 enum ib_mtu max_mtu;
545 enum ib_mtu active_mtu;
546 int gid_tbl_len;
547 u32 port_cap_flags;
548 u32 max_msg_sz;
549 u32 bad_pkey_cntr;
550 u32 qkey_viol_cntr;
551 u16 pkey_tbl_len;
552 u16 lid;
553 u16 sm_lid;
554 u8 lmc;
555 u8 max_vl_num;
556 u8 sm_sl;
557 u8 subnet_timeout;
558 u8 init_type_reply;
559 u8 active_width;
560 u8 active_speed;
561 u8 phys_state;
a0c1b2a3 562 bool grh_required;
1da177e4
LT
563};
564
565enum ib_device_modify_flags {
c5bcbbb9
RD
566 IB_DEVICE_MODIFY_SYS_IMAGE_GUID = 1 << 0,
567 IB_DEVICE_MODIFY_NODE_DESC = 1 << 1
1da177e4
LT
568};
569
bd99fdea
YS
570#define IB_DEVICE_NODE_DESC_MAX 64
571
1da177e4
LT
572struct ib_device_modify {
573 u64 sys_image_guid;
bd99fdea 574 char node_desc[IB_DEVICE_NODE_DESC_MAX];
1da177e4
LT
575};
576
577enum ib_port_modify_flags {
578 IB_PORT_SHUTDOWN = 1,
579 IB_PORT_INIT_TYPE = (1<<2),
cb49366f
VN
580 IB_PORT_RESET_QKEY_CNTR = (1<<3),
581 IB_PORT_OPA_MASK_CHG = (1<<4)
1da177e4
LT
582};
583
584struct ib_port_modify {
585 u32 set_port_cap_mask;
586 u32 clr_port_cap_mask;
587 u8 init_type;
588};
589
590enum ib_event_type {
591 IB_EVENT_CQ_ERR,
592 IB_EVENT_QP_FATAL,
593 IB_EVENT_QP_REQ_ERR,
594 IB_EVENT_QP_ACCESS_ERR,
595 IB_EVENT_COMM_EST,
596 IB_EVENT_SQ_DRAINED,
597 IB_EVENT_PATH_MIG,
598 IB_EVENT_PATH_MIG_ERR,
599 IB_EVENT_DEVICE_FATAL,
600 IB_EVENT_PORT_ACTIVE,
601 IB_EVENT_PORT_ERR,
602 IB_EVENT_LID_CHANGE,
603 IB_EVENT_PKEY_CHANGE,
d41fcc67
RD
604 IB_EVENT_SM_CHANGE,
605 IB_EVENT_SRQ_ERR,
606 IB_EVENT_SRQ_LIMIT_REACHED,
63942c9a 607 IB_EVENT_QP_LAST_WQE_REACHED,
761d90ed
OG
608 IB_EVENT_CLIENT_REREGISTER,
609 IB_EVENT_GID_CHANGE,
f213c052 610 IB_EVENT_WQ_FATAL,
1da177e4
LT
611};
612
db7489e0 613const char *__attribute_const__ ib_event_msg(enum ib_event_type event);
2b1b5b60 614
1da177e4
LT
615struct ib_event {
616 struct ib_device *device;
617 union {
618 struct ib_cq *cq;
619 struct ib_qp *qp;
d41fcc67 620 struct ib_srq *srq;
f213c052 621 struct ib_wq *wq;
1da177e4
LT
622 u8 port_num;
623 } element;
624 enum ib_event_type event;
625};
626
627struct ib_event_handler {
628 struct ib_device *device;
629 void (*handler)(struct ib_event_handler *, struct ib_event *);
630 struct list_head list;
631};
632
633#define INIT_IB_EVENT_HANDLER(_ptr, _device, _handler) \
634 do { \
635 (_ptr)->device = _device; \
636 (_ptr)->handler = _handler; \
637 INIT_LIST_HEAD(&(_ptr)->list); \
638 } while (0)
639
640struct ib_global_route {
641 union ib_gid dgid;
642 u32 flow_label;
643 u8 sgid_index;
644 u8 hop_limit;
645 u8 traffic_class;
646};
647
513789ed 648struct ib_grh {
97f52eb4
SH
649 __be32 version_tclass_flow;
650 __be16 paylen;
513789ed
HR
651 u8 next_hdr;
652 u8 hop_limit;
653 union ib_gid sgid;
654 union ib_gid dgid;
655};
656
c865f246
SK
657union rdma_network_hdr {
658 struct ib_grh ibgrh;
659 struct {
660 /* The IB spec states that if it's IPv4, the header
661 * is located in the last 20 bytes of the header.
662 */
663 u8 reserved[20];
664 struct iphdr roce4grh;
665 };
666};
667
7dafbab3
DH
668#define IB_QPN_MASK 0xFFFFFF
669
1da177e4
LT
670enum {
671 IB_MULTICAST_QPN = 0xffffff
672};
673
f3a7c66b 674#define IB_LID_PERMISSIVE cpu_to_be16(0xFFFF)
b4e64397 675#define IB_MULTICAST_LID_BASE cpu_to_be16(0xC000)
97f52eb4 676
1da177e4
LT
677enum ib_ah_flags {
678 IB_AH_GRH = 1
679};
680
bf6a9e31
JM
681enum ib_rate {
682 IB_RATE_PORT_CURRENT = 0,
683 IB_RATE_2_5_GBPS = 2,
684 IB_RATE_5_GBPS = 5,
685 IB_RATE_10_GBPS = 3,
686 IB_RATE_20_GBPS = 6,
687 IB_RATE_30_GBPS = 4,
688 IB_RATE_40_GBPS = 7,
689 IB_RATE_60_GBPS = 8,
690 IB_RATE_80_GBPS = 9,
71eeba16
MA
691 IB_RATE_120_GBPS = 10,
692 IB_RATE_14_GBPS = 11,
693 IB_RATE_56_GBPS = 12,
694 IB_RATE_112_GBPS = 13,
695 IB_RATE_168_GBPS = 14,
696 IB_RATE_25_GBPS = 15,
697 IB_RATE_100_GBPS = 16,
698 IB_RATE_200_GBPS = 17,
699 IB_RATE_300_GBPS = 18
bf6a9e31
JM
700};
701
702/**
703 * ib_rate_to_mult - Convert the IB rate enum to a multiple of the
704 * base rate of 2.5 Gbit/sec. For example, IB_RATE_5_GBPS will be
705 * converted to 2, since 5 Gbit/sec is 2 * 2.5 Gbit/sec.
706 * @rate: rate to convert.
707 */
8385fd84 708__attribute_const__ int ib_rate_to_mult(enum ib_rate rate);
bf6a9e31 709
71eeba16
MA
710/**
711 * ib_rate_to_mbps - Convert the IB rate enum to Mbps.
712 * For example, IB_RATE_2_5_GBPS will be converted to 2500.
713 * @rate: rate to convert.
714 */
8385fd84 715__attribute_const__ int ib_rate_to_mbps(enum ib_rate rate);
71eeba16 716
17cd3a2d
SG
717
718/**
9bee178b
SG
719 * enum ib_mr_type - memory region type
720 * @IB_MR_TYPE_MEM_REG: memory region that is used for
721 * normal registration
722 * @IB_MR_TYPE_SIGNATURE: memory region that is used for
723 * signature operations (data-integrity
724 * capable regions)
f5aa9159
SG
725 * @IB_MR_TYPE_SG_GAPS: memory region that is capable to
726 * register any arbitrary sg lists (without
727 * the normal mr constraints - see
728 * ib_map_mr_sg)
17cd3a2d 729 */
9bee178b
SG
730enum ib_mr_type {
731 IB_MR_TYPE_MEM_REG,
732 IB_MR_TYPE_SIGNATURE,
f5aa9159 733 IB_MR_TYPE_SG_GAPS,
17cd3a2d
SG
734};
735
1b01d335 736/**
78eda2bb
SG
737 * Signature types
738 * IB_SIG_TYPE_NONE: Unprotected.
739 * IB_SIG_TYPE_T10_DIF: Type T10-DIF
1b01d335 740 */
78eda2bb
SG
741enum ib_signature_type {
742 IB_SIG_TYPE_NONE,
743 IB_SIG_TYPE_T10_DIF,
1b01d335
SG
744};
745
746/**
747 * Signature T10-DIF block-guard types
748 * IB_T10DIF_CRC: Corresponds to T10-PI mandated CRC checksum rules.
749 * IB_T10DIF_CSUM: Corresponds to IP checksum rules.
750 */
751enum ib_t10_dif_bg_type {
752 IB_T10DIF_CRC,
753 IB_T10DIF_CSUM
754};
755
756/**
757 * struct ib_t10_dif_domain - Parameters specific for T10-DIF
758 * domain.
1b01d335
SG
759 * @bg_type: T10-DIF block guard type (CRC|CSUM)
760 * @pi_interval: protection information interval.
761 * @bg: seed of guard computation.
762 * @app_tag: application tag of guard block
763 * @ref_tag: initial guard block reference tag.
78eda2bb
SG
764 * @ref_remap: Indicate wethear the reftag increments each block
765 * @app_escape: Indicate to skip block check if apptag=0xffff
766 * @ref_escape: Indicate to skip block check if reftag=0xffffffff
767 * @apptag_check_mask: check bitmask of application tag.
1b01d335
SG
768 */
769struct ib_t10_dif_domain {
1b01d335
SG
770 enum ib_t10_dif_bg_type bg_type;
771 u16 pi_interval;
772 u16 bg;
773 u16 app_tag;
774 u32 ref_tag;
78eda2bb
SG
775 bool ref_remap;
776 bool app_escape;
777 bool ref_escape;
778 u16 apptag_check_mask;
1b01d335
SG
779};
780
781/**
782 * struct ib_sig_domain - Parameters for signature domain
783 * @sig_type: specific signauture type
784 * @sig: union of all signature domain attributes that may
785 * be used to set domain layout.
786 */
787struct ib_sig_domain {
788 enum ib_signature_type sig_type;
789 union {
790 struct ib_t10_dif_domain dif;
791 } sig;
792};
793
794/**
795 * struct ib_sig_attrs - Parameters for signature handover operation
796 * @check_mask: bitmask for signature byte check (8 bytes)
797 * @mem: memory domain layout desciptor.
798 * @wire: wire domain layout desciptor.
799 */
800struct ib_sig_attrs {
801 u8 check_mask;
802 struct ib_sig_domain mem;
803 struct ib_sig_domain wire;
804};
805
806enum ib_sig_err_type {
807 IB_SIG_BAD_GUARD,
808 IB_SIG_BAD_REFTAG,
809 IB_SIG_BAD_APPTAG,
810};
811
812/**
813 * struct ib_sig_err - signature error descriptor
814 */
815struct ib_sig_err {
816 enum ib_sig_err_type err_type;
817 u32 expected;
818 u32 actual;
819 u64 sig_err_offset;
820 u32 key;
821};
822
823enum ib_mr_status_check {
824 IB_MR_CHECK_SIG_STATUS = 1,
825};
826
827/**
828 * struct ib_mr_status - Memory region status container
829 *
830 * @fail_status: Bitmask of MR checks status. For each
831 * failed check a corresponding status bit is set.
832 * @sig_err: Additional info for IB_MR_CEHCK_SIG_STATUS
833 * failure.
834 */
835struct ib_mr_status {
836 u32 fail_status;
837 struct ib_sig_err sig_err;
838};
839
bf6a9e31
JM
840/**
841 * mult_to_ib_rate - Convert a multiple of 2.5 Gbit/sec to an IB rate
842 * enum.
843 * @mult: multiple to convert.
844 */
8385fd84 845__attribute_const__ enum ib_rate mult_to_ib_rate(int mult);
bf6a9e31 846
44c58487
DC
847enum rdma_ah_attr_type {
848 RDMA_AH_ATTR_TYPE_IB,
849 RDMA_AH_ATTR_TYPE_ROCE,
64b4646e 850 RDMA_AH_ATTR_TYPE_OPA,
44c58487
DC
851};
852
853struct ib_ah_attr {
854 u16 dlid;
855 u8 src_path_bits;
856};
857
858struct roce_ah_attr {
859 u8 dmac[ETH_ALEN];
860};
861
64b4646e
DC
862struct opa_ah_attr {
863 u32 dlid;
864 u8 src_path_bits;
865};
866
90898850 867struct rdma_ah_attr {
1da177e4 868 struct ib_global_route grh;
1da177e4 869 u8 sl;
1da177e4 870 u8 static_rate;
1da177e4 871 u8 port_num;
44c58487
DC
872 u8 ah_flags;
873 enum rdma_ah_attr_type type;
874 union {
875 struct ib_ah_attr ib;
876 struct roce_ah_attr roce;
64b4646e 877 struct opa_ah_attr opa;
44c58487 878 };
1da177e4
LT
879};
880
881enum ib_wc_status {
882 IB_WC_SUCCESS,
883 IB_WC_LOC_LEN_ERR,
884 IB_WC_LOC_QP_OP_ERR,
885 IB_WC_LOC_EEC_OP_ERR,
886 IB_WC_LOC_PROT_ERR,
887 IB_WC_WR_FLUSH_ERR,
888 IB_WC_MW_BIND_ERR,
889 IB_WC_BAD_RESP_ERR,
890 IB_WC_LOC_ACCESS_ERR,
891 IB_WC_REM_INV_REQ_ERR,
892 IB_WC_REM_ACCESS_ERR,
893 IB_WC_REM_OP_ERR,
894 IB_WC_RETRY_EXC_ERR,
895 IB_WC_RNR_RETRY_EXC_ERR,
896 IB_WC_LOC_RDD_VIOL_ERR,
897 IB_WC_REM_INV_RD_REQ_ERR,
898 IB_WC_REM_ABORT_ERR,
899 IB_WC_INV_EECN_ERR,
900 IB_WC_INV_EEC_STATE_ERR,
901 IB_WC_FATAL_ERR,
902 IB_WC_RESP_TIMEOUT_ERR,
903 IB_WC_GENERAL_ERR
904};
905
db7489e0 906const char *__attribute_const__ ib_wc_status_msg(enum ib_wc_status status);
2b1b5b60 907
1da177e4
LT
908enum ib_wc_opcode {
909 IB_WC_SEND,
910 IB_WC_RDMA_WRITE,
911 IB_WC_RDMA_READ,
912 IB_WC_COMP_SWAP,
913 IB_WC_FETCH_ADD,
c93570f2 914 IB_WC_LSO,
00f7ec36 915 IB_WC_LOCAL_INV,
4c67e2bf 916 IB_WC_REG_MR,
5e80ba8f
VS
917 IB_WC_MASKED_COMP_SWAP,
918 IB_WC_MASKED_FETCH_ADD,
1da177e4
LT
919/*
920 * Set value of IB_WC_RECV so consumers can test if a completion is a
921 * receive by testing (opcode & IB_WC_RECV).
922 */
923 IB_WC_RECV = 1 << 7,
924 IB_WC_RECV_RDMA_WITH_IMM
925};
926
927enum ib_wc_flags {
928 IB_WC_GRH = 1,
00f7ec36
SW
929 IB_WC_WITH_IMM = (1<<1),
930 IB_WC_WITH_INVALIDATE = (1<<2),
d927d505 931 IB_WC_IP_CSUM_OK = (1<<3),
dd5f03be
MB
932 IB_WC_WITH_SMAC = (1<<4),
933 IB_WC_WITH_VLAN = (1<<5),
c865f246 934 IB_WC_WITH_NETWORK_HDR_TYPE = (1<<6),
1da177e4
LT
935};
936
937struct ib_wc {
14d3a3b2
CH
938 union {
939 u64 wr_id;
940 struct ib_cqe *wr_cqe;
941 };
1da177e4
LT
942 enum ib_wc_status status;
943 enum ib_wc_opcode opcode;
944 u32 vendor_err;
945 u32 byte_len;
062dbb69 946 struct ib_qp *qp;
00f7ec36
SW
947 union {
948 __be32 imm_data;
949 u32 invalidate_rkey;
950 } ex;
1da177e4
LT
951 u32 src_qp;
952 int wc_flags;
953 u16 pkey_index;
954 u16 slid;
955 u8 sl;
956 u8 dlid_path_bits;
957 u8 port_num; /* valid only for DR SMPs on switches */
dd5f03be
MB
958 u8 smac[ETH_ALEN];
959 u16 vlan_id;
c865f246 960 u8 network_hdr_type;
1da177e4
LT
961};
962
ed23a727
RD
963enum ib_cq_notify_flags {
964 IB_CQ_SOLICITED = 1 << 0,
965 IB_CQ_NEXT_COMP = 1 << 1,
966 IB_CQ_SOLICITED_MASK = IB_CQ_SOLICITED | IB_CQ_NEXT_COMP,
967 IB_CQ_REPORT_MISSED_EVENTS = 1 << 2,
1da177e4
LT
968};
969
96104eda 970enum ib_srq_type {
418d5130
SH
971 IB_SRQT_BASIC,
972 IB_SRQT_XRC
96104eda
SH
973};
974
d41fcc67
RD
975enum ib_srq_attr_mask {
976 IB_SRQ_MAX_WR = 1 << 0,
977 IB_SRQ_LIMIT = 1 << 1,
978};
979
980struct ib_srq_attr {
981 u32 max_wr;
982 u32 max_sge;
983 u32 srq_limit;
984};
985
986struct ib_srq_init_attr {
987 void (*event_handler)(struct ib_event *, void *);
988 void *srq_context;
989 struct ib_srq_attr attr;
96104eda 990 enum ib_srq_type srq_type;
418d5130
SH
991
992 union {
993 struct {
994 struct ib_xrcd *xrcd;
995 struct ib_cq *cq;
996 } xrc;
997 } ext;
d41fcc67
RD
998};
999
1da177e4
LT
1000struct ib_qp_cap {
1001 u32 max_send_wr;
1002 u32 max_recv_wr;
1003 u32 max_send_sge;
1004 u32 max_recv_sge;
1005 u32 max_inline_data;
a060b562
CH
1006
1007 /*
1008 * Maximum number of rdma_rw_ctx structures in flight at a time.
1009 * ib_create_qp() will calculate the right amount of neededed WRs
1010 * and MRs based on this.
1011 */
1012 u32 max_rdma_ctxs;
1da177e4
LT
1013};
1014
1015enum ib_sig_type {
1016 IB_SIGNAL_ALL_WR,
1017 IB_SIGNAL_REQ_WR
1018};
1019
1020enum ib_qp_type {
1021 /*
1022 * IB_QPT_SMI and IB_QPT_GSI have to be the first two entries
1023 * here (and in that order) since the MAD layer uses them as
1024 * indices into a 2-entry table.
1025 */
1026 IB_QPT_SMI,
1027 IB_QPT_GSI,
1028
1029 IB_QPT_RC,
1030 IB_QPT_UC,
1031 IB_QPT_UD,
1032 IB_QPT_RAW_IPV6,
b42b63cf 1033 IB_QPT_RAW_ETHERTYPE,
c938a616 1034 IB_QPT_RAW_PACKET = 8,
b42b63cf
SH
1035 IB_QPT_XRC_INI = 9,
1036 IB_QPT_XRC_TGT,
0134f16b
JM
1037 IB_QPT_MAX,
1038 /* Reserve a range for qp types internal to the low level driver.
1039 * These qp types will not be visible at the IB core layer, so the
1040 * IB_QPT_MAX usages should not be affected in the core layer
1041 */
1042 IB_QPT_RESERVED1 = 0x1000,
1043 IB_QPT_RESERVED2,
1044 IB_QPT_RESERVED3,
1045 IB_QPT_RESERVED4,
1046 IB_QPT_RESERVED5,
1047 IB_QPT_RESERVED6,
1048 IB_QPT_RESERVED7,
1049 IB_QPT_RESERVED8,
1050 IB_QPT_RESERVED9,
1051 IB_QPT_RESERVED10,
1da177e4
LT
1052};
1053
b846f25a 1054enum ib_qp_create_flags {
47ee1b9f
RL
1055 IB_QP_CREATE_IPOIB_UD_LSO = 1 << 0,
1056 IB_QP_CREATE_BLOCK_MULTICAST_LOOPBACK = 1 << 1,
8a06ce59
LR
1057 IB_QP_CREATE_CROSS_CHANNEL = 1 << 2,
1058 IB_QP_CREATE_MANAGED_SEND = 1 << 3,
1059 IB_QP_CREATE_MANAGED_RECV = 1 << 4,
90f1d1b4 1060 IB_QP_CREATE_NETIF_QP = 1 << 5,
1b01d335 1061 IB_QP_CREATE_SIGNATURE_EN = 1 << 6,
7855f584 1062 /* FREE = 1 << 7, */
b531b909 1063 IB_QP_CREATE_SCATTER_FCS = 1 << 8,
9c2b270e 1064 IB_QP_CREATE_CVLAN_STRIPPING = 1 << 9,
02984cc7 1065 IB_QP_CREATE_SOURCE_QPN = 1 << 10,
d2b57063
JM
1066 /* reserve bits 26-31 for low level drivers' internal use */
1067 IB_QP_CREATE_RESERVED_START = 1 << 26,
1068 IB_QP_CREATE_RESERVED_END = 1 << 31,
b846f25a
EC
1069};
1070
73c40c61
YH
1071/*
1072 * Note: users may not call ib_close_qp or ib_destroy_qp from the event_handler
1073 * callback to destroy the passed in QP.
1074 */
1075
1da177e4
LT
1076struct ib_qp_init_attr {
1077 void (*event_handler)(struct ib_event *, void *);
1078 void *qp_context;
1079 struct ib_cq *send_cq;
1080 struct ib_cq *recv_cq;
1081 struct ib_srq *srq;
b42b63cf 1082 struct ib_xrcd *xrcd; /* XRC TGT QPs only */
1da177e4
LT
1083 struct ib_qp_cap cap;
1084 enum ib_sig_type sq_sig_type;
1085 enum ib_qp_type qp_type;
b846f25a 1086 enum ib_qp_create_flags create_flags;
a060b562
CH
1087
1088 /*
1089 * Only needed for special QP types, or when using the RW API.
1090 */
1091 u8 port_num;
a9017e23 1092 struct ib_rwq_ind_table *rwq_ind_tbl;
02984cc7 1093 u32 source_qpn;
1da177e4
LT
1094};
1095
0e0ec7e0
SH
1096struct ib_qp_open_attr {
1097 void (*event_handler)(struct ib_event *, void *);
1098 void *qp_context;
1099 u32 qp_num;
1100 enum ib_qp_type qp_type;
1101};
1102
1da177e4
LT
1103enum ib_rnr_timeout {
1104 IB_RNR_TIMER_655_36 = 0,
1105 IB_RNR_TIMER_000_01 = 1,
1106 IB_RNR_TIMER_000_02 = 2,
1107 IB_RNR_TIMER_000_03 = 3,
1108 IB_RNR_TIMER_000_04 = 4,
1109 IB_RNR_TIMER_000_06 = 5,
1110 IB_RNR_TIMER_000_08 = 6,
1111 IB_RNR_TIMER_000_12 = 7,
1112 IB_RNR_TIMER_000_16 = 8,
1113 IB_RNR_TIMER_000_24 = 9,
1114 IB_RNR_TIMER_000_32 = 10,
1115 IB_RNR_TIMER_000_48 = 11,
1116 IB_RNR_TIMER_000_64 = 12,
1117 IB_RNR_TIMER_000_96 = 13,
1118 IB_RNR_TIMER_001_28 = 14,
1119 IB_RNR_TIMER_001_92 = 15,
1120 IB_RNR_TIMER_002_56 = 16,
1121 IB_RNR_TIMER_003_84 = 17,
1122 IB_RNR_TIMER_005_12 = 18,
1123 IB_RNR_TIMER_007_68 = 19,
1124 IB_RNR_TIMER_010_24 = 20,
1125 IB_RNR_TIMER_015_36 = 21,
1126 IB_RNR_TIMER_020_48 = 22,
1127 IB_RNR_TIMER_030_72 = 23,
1128 IB_RNR_TIMER_040_96 = 24,
1129 IB_RNR_TIMER_061_44 = 25,
1130 IB_RNR_TIMER_081_92 = 26,
1131 IB_RNR_TIMER_122_88 = 27,
1132 IB_RNR_TIMER_163_84 = 28,
1133 IB_RNR_TIMER_245_76 = 29,
1134 IB_RNR_TIMER_327_68 = 30,
1135 IB_RNR_TIMER_491_52 = 31
1136};
1137
1138enum ib_qp_attr_mask {
1139 IB_QP_STATE = 1,
1140 IB_QP_CUR_STATE = (1<<1),
1141 IB_QP_EN_SQD_ASYNC_NOTIFY = (1<<2),
1142 IB_QP_ACCESS_FLAGS = (1<<3),
1143 IB_QP_PKEY_INDEX = (1<<4),
1144 IB_QP_PORT = (1<<5),
1145 IB_QP_QKEY = (1<<6),
1146 IB_QP_AV = (1<<7),
1147 IB_QP_PATH_MTU = (1<<8),
1148 IB_QP_TIMEOUT = (1<<9),
1149 IB_QP_RETRY_CNT = (1<<10),
1150 IB_QP_RNR_RETRY = (1<<11),
1151 IB_QP_RQ_PSN = (1<<12),
1152 IB_QP_MAX_QP_RD_ATOMIC = (1<<13),
1153 IB_QP_ALT_PATH = (1<<14),
1154 IB_QP_MIN_RNR_TIMER = (1<<15),
1155 IB_QP_SQ_PSN = (1<<16),
1156 IB_QP_MAX_DEST_RD_ATOMIC = (1<<17),
1157 IB_QP_PATH_MIG_STATE = (1<<18),
1158 IB_QP_CAP = (1<<19),
dd5f03be 1159 IB_QP_DEST_QPN = (1<<20),
aa744cc0
MB
1160 IB_QP_RESERVED1 = (1<<21),
1161 IB_QP_RESERVED2 = (1<<22),
1162 IB_QP_RESERVED3 = (1<<23),
1163 IB_QP_RESERVED4 = (1<<24),
528e5a1b 1164 IB_QP_RATE_LIMIT = (1<<25),
1da177e4
LT
1165};
1166
1167enum ib_qp_state {
1168 IB_QPS_RESET,
1169 IB_QPS_INIT,
1170 IB_QPS_RTR,
1171 IB_QPS_RTS,
1172 IB_QPS_SQD,
1173 IB_QPS_SQE,
1174 IB_QPS_ERR
1175};
1176
1177enum ib_mig_state {
1178 IB_MIG_MIGRATED,
1179 IB_MIG_REARM,
1180 IB_MIG_ARMED
1181};
1182
7083e42e
SM
1183enum ib_mw_type {
1184 IB_MW_TYPE_1 = 1,
1185 IB_MW_TYPE_2 = 2
1186};
1187
1da177e4
LT
1188struct ib_qp_attr {
1189 enum ib_qp_state qp_state;
1190 enum ib_qp_state cur_qp_state;
1191 enum ib_mtu path_mtu;
1192 enum ib_mig_state path_mig_state;
1193 u32 qkey;
1194 u32 rq_psn;
1195 u32 sq_psn;
1196 u32 dest_qp_num;
1197 int qp_access_flags;
1198 struct ib_qp_cap cap;
90898850
DC
1199 struct rdma_ah_attr ah_attr;
1200 struct rdma_ah_attr alt_ah_attr;
1da177e4
LT
1201 u16 pkey_index;
1202 u16 alt_pkey_index;
1203 u8 en_sqd_async_notify;
1204 u8 sq_draining;
1205 u8 max_rd_atomic;
1206 u8 max_dest_rd_atomic;
1207 u8 min_rnr_timer;
1208 u8 port_num;
1209 u8 timeout;
1210 u8 retry_cnt;
1211 u8 rnr_retry;
1212 u8 alt_port_num;
1213 u8 alt_timeout;
528e5a1b 1214 u32 rate_limit;
1da177e4
LT
1215};
1216
1217enum ib_wr_opcode {
1218 IB_WR_RDMA_WRITE,
1219 IB_WR_RDMA_WRITE_WITH_IMM,
1220 IB_WR_SEND,
1221 IB_WR_SEND_WITH_IMM,
1222 IB_WR_RDMA_READ,
1223 IB_WR_ATOMIC_CMP_AND_SWP,
c93570f2 1224 IB_WR_ATOMIC_FETCH_AND_ADD,
0f39cf3d
RD
1225 IB_WR_LSO,
1226 IB_WR_SEND_WITH_INV,
00f7ec36
SW
1227 IB_WR_RDMA_READ_WITH_INV,
1228 IB_WR_LOCAL_INV,
4c67e2bf 1229 IB_WR_REG_MR,
5e80ba8f
VS
1230 IB_WR_MASKED_ATOMIC_CMP_AND_SWP,
1231 IB_WR_MASKED_ATOMIC_FETCH_AND_ADD,
1b01d335 1232 IB_WR_REG_SIG_MR,
0134f16b
JM
1233 /* reserve values for low level drivers' internal use.
1234 * These values will not be used at all in the ib core layer.
1235 */
1236 IB_WR_RESERVED1 = 0xf0,
1237 IB_WR_RESERVED2,
1238 IB_WR_RESERVED3,
1239 IB_WR_RESERVED4,
1240 IB_WR_RESERVED5,
1241 IB_WR_RESERVED6,
1242 IB_WR_RESERVED7,
1243 IB_WR_RESERVED8,
1244 IB_WR_RESERVED9,
1245 IB_WR_RESERVED10,
1da177e4
LT
1246};
1247
1248enum ib_send_flags {
1249 IB_SEND_FENCE = 1,
1250 IB_SEND_SIGNALED = (1<<1),
1251 IB_SEND_SOLICITED = (1<<2),
e0605d91 1252 IB_SEND_INLINE = (1<<3),
0134f16b
JM
1253 IB_SEND_IP_CSUM = (1<<4),
1254
1255 /* reserve bits 26-31 for low level drivers' internal use */
1256 IB_SEND_RESERVED_START = (1 << 26),
1257 IB_SEND_RESERVED_END = (1 << 31),
1da177e4
LT
1258};
1259
1260struct ib_sge {
1261 u64 addr;
1262 u32 length;
1263 u32 lkey;
1264};
1265
14d3a3b2
CH
1266struct ib_cqe {
1267 void (*done)(struct ib_cq *cq, struct ib_wc *wc);
1268};
1269
1da177e4
LT
1270struct ib_send_wr {
1271 struct ib_send_wr *next;
14d3a3b2
CH
1272 union {
1273 u64 wr_id;
1274 struct ib_cqe *wr_cqe;
1275 };
1da177e4
LT
1276 struct ib_sge *sg_list;
1277 int num_sge;
1278 enum ib_wr_opcode opcode;
1279 int send_flags;
0f39cf3d
RD
1280 union {
1281 __be32 imm_data;
1282 u32 invalidate_rkey;
1283 } ex;
1da177e4
LT
1284};
1285
e622f2f4
CH
1286struct ib_rdma_wr {
1287 struct ib_send_wr wr;
1288 u64 remote_addr;
1289 u32 rkey;
1290};
1291
1292static inline struct ib_rdma_wr *rdma_wr(struct ib_send_wr *wr)
1293{
1294 return container_of(wr, struct ib_rdma_wr, wr);
1295}
1296
1297struct ib_atomic_wr {
1298 struct ib_send_wr wr;
1299 u64 remote_addr;
1300 u64 compare_add;
1301 u64 swap;
1302 u64 compare_add_mask;
1303 u64 swap_mask;
1304 u32 rkey;
1305};
1306
1307static inline struct ib_atomic_wr *atomic_wr(struct ib_send_wr *wr)
1308{
1309 return container_of(wr, struct ib_atomic_wr, wr);
1310}
1311
1312struct ib_ud_wr {
1313 struct ib_send_wr wr;
1314 struct ib_ah *ah;
1315 void *header;
1316 int hlen;
1317 int mss;
1318 u32 remote_qpn;
1319 u32 remote_qkey;
1320 u16 pkey_index; /* valid for GSI only */
1321 u8 port_num; /* valid for DR SMPs on switch only */
1322};
1323
1324static inline struct ib_ud_wr *ud_wr(struct ib_send_wr *wr)
1325{
1326 return container_of(wr, struct ib_ud_wr, wr);
1327}
1328
4c67e2bf
SG
1329struct ib_reg_wr {
1330 struct ib_send_wr wr;
1331 struct ib_mr *mr;
1332 u32 key;
1333 int access;
1334};
1335
1336static inline struct ib_reg_wr *reg_wr(struct ib_send_wr *wr)
1337{
1338 return container_of(wr, struct ib_reg_wr, wr);
1339}
1340
e622f2f4
CH
1341struct ib_sig_handover_wr {
1342 struct ib_send_wr wr;
1343 struct ib_sig_attrs *sig_attrs;
1344 struct ib_mr *sig_mr;
1345 int access_flags;
1346 struct ib_sge *prot;
1347};
1348
1349static inline struct ib_sig_handover_wr *sig_handover_wr(struct ib_send_wr *wr)
1350{
1351 return container_of(wr, struct ib_sig_handover_wr, wr);
1352}
1353
1da177e4
LT
1354struct ib_recv_wr {
1355 struct ib_recv_wr *next;
14d3a3b2
CH
1356 union {
1357 u64 wr_id;
1358 struct ib_cqe *wr_cqe;
1359 };
1da177e4
LT
1360 struct ib_sge *sg_list;
1361 int num_sge;
1362};
1363
1364enum ib_access_flags {
1365 IB_ACCESS_LOCAL_WRITE = 1,
1366 IB_ACCESS_REMOTE_WRITE = (1<<1),
1367 IB_ACCESS_REMOTE_READ = (1<<2),
1368 IB_ACCESS_REMOTE_ATOMIC = (1<<3),
7083e42e 1369 IB_ACCESS_MW_BIND = (1<<4),
860f10a7
SG
1370 IB_ZERO_BASED = (1<<5),
1371 IB_ACCESS_ON_DEMAND = (1<<6),
0008b84e 1372 IB_ACCESS_HUGETLB = (1<<7),
1da177e4
LT
1373};
1374
b7d3e0a9
CH
1375/*
1376 * XXX: these are apparently used for ->rereg_user_mr, no idea why they
1377 * are hidden here instead of a uapi header!
1378 */
1da177e4
LT
1379enum ib_mr_rereg_flags {
1380 IB_MR_REREG_TRANS = 1,
1381 IB_MR_REREG_PD = (1<<1),
7e6edb9b
MB
1382 IB_MR_REREG_ACCESS = (1<<2),
1383 IB_MR_REREG_SUPPORTED = ((IB_MR_REREG_ACCESS << 1) - 1)
1da177e4
LT
1384};
1385
1da177e4
LT
1386struct ib_fmr_attr {
1387 int max_pages;
1388 int max_maps;
d36f34aa 1389 u8 page_shift;
1da177e4
LT
1390};
1391
882214e2
HE
1392struct ib_umem;
1393
38321256
MB
1394enum rdma_remove_reason {
1395 /* Userspace requested uobject deletion. Call could fail */
1396 RDMA_REMOVE_DESTROY,
1397 /* Context deletion. This call should delete the actual object itself */
1398 RDMA_REMOVE_CLOSE,
1399 /* Driver is being hot-unplugged. This call should delete the actual object itself */
1400 RDMA_REMOVE_DRIVER_REMOVE,
1401 /* Context is being cleaned-up, but commit was just completed */
1402 RDMA_REMOVE_DURING_CLEANUP,
1403};
1404
43579b5f
PP
1405struct ib_rdmacg_object {
1406#ifdef CONFIG_CGROUP_RDMA
1407 struct rdma_cgroup *cg; /* owner rdma cgroup */
1408#endif
1409};
1410
e2773c06
RD
1411struct ib_ucontext {
1412 struct ib_device *device;
771addf6 1413 struct ib_uverbs_file *ufile;
f7c6a7b5 1414 int closing;
8ada2c1c 1415
38321256
MB
1416 /* locking the uobjects_list */
1417 struct mutex uobjects_lock;
1418 struct list_head uobjects;
1419 /* protects cleanup process from other actions */
1420 struct rw_semaphore cleanup_rwsem;
1421 enum rdma_remove_reason cleanup_reason;
1422
8ada2c1c 1423 struct pid *tgid;
882214e2
HE
1424#ifdef CONFIG_INFINIBAND_ON_DEMAND_PAGING
1425 struct rb_root umem_tree;
1426 /*
1427 * Protects .umem_rbroot and tree, as well as odp_mrs_count and
1428 * mmu notifiers registration.
1429 */
1430 struct rw_semaphore umem_rwsem;
1431 void (*invalidate_range)(struct ib_umem *umem,
1432 unsigned long start, unsigned long end);
1433
1434 struct mmu_notifier mn;
1435 atomic_t notifier_count;
1436 /* A list of umems that don't have private mmu notifier counters yet. */
1437 struct list_head no_private_counters;
1438 int odp_mrs_count;
1439#endif
43579b5f
PP
1440
1441 struct ib_rdmacg_object cg_obj;
e2773c06
RD
1442};
1443
1444struct ib_uobject {
1445 u64 user_handle; /* handle given to us by userspace */
1446 struct ib_ucontext *context; /* associated user context */
9ead190b 1447 void *object; /* containing object */
e2773c06 1448 struct list_head list; /* link to context's list */
43579b5f 1449 struct ib_rdmacg_object cg_obj; /* rdmacg object */
b3d636b0 1450 int id; /* index into kernel idr */
9ead190b 1451 struct kref ref;
38321256 1452 atomic_t usecnt; /* protects exclusive access */
d144da8c 1453 struct rcu_head rcu; /* kfree_rcu() overhead */
38321256
MB
1454
1455 const struct uverbs_obj_type *type;
e2773c06
RD
1456};
1457
cf8966b3
MB
1458struct ib_uobject_file {
1459 struct ib_uobject uobj;
1460 /* ufile contains the lock between context release and file close */
1461 struct ib_uverbs_file *ufile;
e2773c06
RD
1462};
1463
e2773c06 1464struct ib_udata {
309243ec 1465 const void __user *inbuf;
e2773c06
RD
1466 void __user *outbuf;
1467 size_t inlen;
1468 size_t outlen;
1469};
1470
1da177e4 1471struct ib_pd {
96249d70 1472 u32 local_dma_lkey;
ed082d36 1473 u32 flags;
e2773c06
RD
1474 struct ib_device *device;
1475 struct ib_uobject *uobject;
1476 atomic_t usecnt; /* count all resources */
50d46335 1477
ed082d36
CH
1478 u32 unsafe_global_rkey;
1479
50d46335
CH
1480 /*
1481 * Implementation details of the RDMA core, don't use in drivers:
1482 */
1483 struct ib_mr *__internal_mr;
1da177e4
LT
1484};
1485
59991f94
SH
1486struct ib_xrcd {
1487 struct ib_device *device;
d3d72d90 1488 atomic_t usecnt; /* count all exposed resources */
53d0bd1e 1489 struct inode *inode;
d3d72d90
SH
1490
1491 struct mutex tgt_qp_mutex;
1492 struct list_head tgt_qp_list;
59991f94
SH
1493};
1494
1da177e4
LT
1495struct ib_ah {
1496 struct ib_device *device;
1497 struct ib_pd *pd;
e2773c06 1498 struct ib_uobject *uobject;
44c58487 1499 enum rdma_ah_attr_type type;
1da177e4
LT
1500};
1501
1502typedef void (*ib_comp_handler)(struct ib_cq *cq, void *cq_context);
1503
14d3a3b2
CH
1504enum ib_poll_context {
1505 IB_POLL_DIRECT, /* caller context, no hw completions */
1506 IB_POLL_SOFTIRQ, /* poll from softirq context */
1507 IB_POLL_WORKQUEUE, /* poll from workqueue */
1508};
1509
1da177e4 1510struct ib_cq {
e2773c06
RD
1511 struct ib_device *device;
1512 struct ib_uobject *uobject;
1513 ib_comp_handler comp_handler;
1514 void (*event_handler)(struct ib_event *, void *);
4deccd6d 1515 void *cq_context;
e2773c06
RD
1516 int cqe;
1517 atomic_t usecnt; /* count number of work queues */
14d3a3b2
CH
1518 enum ib_poll_context poll_ctx;
1519 struct ib_wc *wc;
1520 union {
1521 struct irq_poll iop;
1522 struct work_struct work;
1523 };
1da177e4
LT
1524};
1525
1526struct ib_srq {
d41fcc67
RD
1527 struct ib_device *device;
1528 struct ib_pd *pd;
1529 struct ib_uobject *uobject;
1530 void (*event_handler)(struct ib_event *, void *);
1531 void *srq_context;
96104eda 1532 enum ib_srq_type srq_type;
1da177e4 1533 atomic_t usecnt;
418d5130
SH
1534
1535 union {
1536 struct {
1537 struct ib_xrcd *xrcd;
1538 struct ib_cq *cq;
1539 u32 srq_num;
1540 } xrc;
1541 } ext;
1da177e4
LT
1542};
1543
ebaaee25
NO
1544enum ib_raw_packet_caps {
1545 /* Strip cvlan from incoming packet and report it in the matching work
1546 * completion is supported.
1547 */
1548 IB_RAW_PACKET_CAP_CVLAN_STRIPPING = (1 << 0),
1549 /* Scatter FCS field of an incoming packet to host memory is supported.
1550 */
1551 IB_RAW_PACKET_CAP_SCATTER_FCS = (1 << 1),
1552 /* Checksum offloads are supported (for both send and receive). */
1553 IB_RAW_PACKET_CAP_IP_CSUM = (1 << 2),
7d9336d8
MG
1554 /* When a packet is received for an RQ with no receive WQEs, the
1555 * packet processing is delayed.
1556 */
1557 IB_RAW_PACKET_CAP_DELAY_DROP = (1 << 3),
ebaaee25
NO
1558};
1559
5fd251c8
YH
1560enum ib_wq_type {
1561 IB_WQT_RQ
1562};
1563
1564enum ib_wq_state {
1565 IB_WQS_RESET,
1566 IB_WQS_RDY,
1567 IB_WQS_ERR
1568};
1569
1570struct ib_wq {
1571 struct ib_device *device;
1572 struct ib_uobject *uobject;
1573 void *wq_context;
1574 void (*event_handler)(struct ib_event *, void *);
1575 struct ib_pd *pd;
1576 struct ib_cq *cq;
1577 u32 wq_num;
1578 enum ib_wq_state state;
1579 enum ib_wq_type wq_type;
1580 atomic_t usecnt;
1581};
1582
10bac72b
NO
1583enum ib_wq_flags {
1584 IB_WQ_FLAGS_CVLAN_STRIPPING = 1 << 0,
27b0df11 1585 IB_WQ_FLAGS_SCATTER_FCS = 1 << 1,
7d9336d8 1586 IB_WQ_FLAGS_DELAY_DROP = 1 << 2,
10bac72b
NO
1587};
1588
5fd251c8
YH
1589struct ib_wq_init_attr {
1590 void *wq_context;
1591 enum ib_wq_type wq_type;
1592 u32 max_wr;
1593 u32 max_sge;
1594 struct ib_cq *cq;
1595 void (*event_handler)(struct ib_event *, void *);
10bac72b 1596 u32 create_flags; /* Use enum ib_wq_flags */
5fd251c8
YH
1597};
1598
1599enum ib_wq_attr_mask {
10bac72b
NO
1600 IB_WQ_STATE = 1 << 0,
1601 IB_WQ_CUR_STATE = 1 << 1,
1602 IB_WQ_FLAGS = 1 << 2,
5fd251c8
YH
1603};
1604
1605struct ib_wq_attr {
1606 enum ib_wq_state wq_state;
1607 enum ib_wq_state curr_wq_state;
10bac72b
NO
1608 u32 flags; /* Use enum ib_wq_flags */
1609 u32 flags_mask; /* Use enum ib_wq_flags */
5fd251c8
YH
1610};
1611
6d39786b
YH
1612struct ib_rwq_ind_table {
1613 struct ib_device *device;
1614 struct ib_uobject *uobject;
1615 atomic_t usecnt;
1616 u32 ind_tbl_num;
1617 u32 log_ind_tbl_size;
1618 struct ib_wq **ind_tbl;
1619};
1620
1621struct ib_rwq_ind_table_init_attr {
1622 u32 log_ind_tbl_size;
1623 /* Each entry is a pointer to Receive Work Queue */
1624 struct ib_wq **ind_tbl;
1625};
1626
d291f1a6
DJ
1627enum port_pkey_state {
1628 IB_PORT_PKEY_NOT_VALID = 0,
1629 IB_PORT_PKEY_VALID = 1,
1630 IB_PORT_PKEY_LISTED = 2,
1631};
1632
1633struct ib_qp_security;
1634
1635struct ib_port_pkey {
1636 enum port_pkey_state state;
1637 u16 pkey_index;
1638 u8 port_num;
1639 struct list_head qp_list;
1640 struct list_head to_error_list;
1641 struct ib_qp_security *sec;
1642};
1643
1644struct ib_ports_pkeys {
1645 struct ib_port_pkey main;
1646 struct ib_port_pkey alt;
1647};
1648
1649struct ib_qp_security {
1650 struct ib_qp *qp;
1651 struct ib_device *dev;
1652 /* Hold this mutex when changing port and pkey settings. */
1653 struct mutex mutex;
1654 struct ib_ports_pkeys *ports_pkeys;
1655 /* A list of all open shared QP handles. Required to enforce security
1656 * properly for all users of a shared QP.
1657 */
1658 struct list_head shared_qp_list;
1659 void *security;
1660 bool destroying;
1661 atomic_t error_list_count;
1662 struct completion error_complete;
1663 int error_comps_pending;
1664};
1665
632bc3f6
BVA
1666/*
1667 * @max_write_sge: Maximum SGE elements per RDMA WRITE request.
1668 * @max_read_sge: Maximum SGE elements per RDMA READ request.
1669 */
1da177e4
LT
1670struct ib_qp {
1671 struct ib_device *device;
1672 struct ib_pd *pd;
1673 struct ib_cq *send_cq;
1674 struct ib_cq *recv_cq;
fffb0383
CH
1675 spinlock_t mr_lock;
1676 int mrs_used;
a060b562 1677 struct list_head rdma_mrs;
0e353e34 1678 struct list_head sig_mrs;
1da177e4 1679 struct ib_srq *srq;
b42b63cf 1680 struct ib_xrcd *xrcd; /* XRC TGT QPs only */
d3d72d90 1681 struct list_head xrcd_list;
fffb0383 1682
319a441d
HHZ
1683 /* count times opened, mcast attaches, flow attaches */
1684 atomic_t usecnt;
0e0ec7e0
SH
1685 struct list_head open_list;
1686 struct ib_qp *real_qp;
e2773c06 1687 struct ib_uobject *uobject;
1da177e4
LT
1688 void (*event_handler)(struct ib_event *, void *);
1689 void *qp_context;
1690 u32 qp_num;
632bc3f6
BVA
1691 u32 max_write_sge;
1692 u32 max_read_sge;
1da177e4 1693 enum ib_qp_type qp_type;
a9017e23 1694 struct ib_rwq_ind_table *rwq_ind_tbl;
d291f1a6 1695 struct ib_qp_security *qp_sec;
1da177e4
LT
1696};
1697
1698struct ib_mr {
e2773c06
RD
1699 struct ib_device *device;
1700 struct ib_pd *pd;
e2773c06
RD
1701 u32 lkey;
1702 u32 rkey;
4c67e2bf
SG
1703 u64 iova;
1704 u32 length;
1705 unsigned int page_size;
d4a85c30 1706 bool need_inval;
fffb0383
CH
1707 union {
1708 struct ib_uobject *uobject; /* user */
1709 struct list_head qp_entry; /* FR */
1710 };
1da177e4
LT
1711};
1712
1713struct ib_mw {
1714 struct ib_device *device;
1715 struct ib_pd *pd;
e2773c06 1716 struct ib_uobject *uobject;
1da177e4 1717 u32 rkey;
7083e42e 1718 enum ib_mw_type type;
1da177e4
LT
1719};
1720
1721struct ib_fmr {
1722 struct ib_device *device;
1723 struct ib_pd *pd;
1724 struct list_head list;
1725 u32 lkey;
1726 u32 rkey;
1727};
1728
319a441d
HHZ
1729/* Supported steering options */
1730enum ib_flow_attr_type {
1731 /* steering according to rule specifications */
1732 IB_FLOW_ATTR_NORMAL = 0x0,
1733 /* default unicast and multicast rule -
1734 * receive all Eth traffic which isn't steered to any QP
1735 */
1736 IB_FLOW_ATTR_ALL_DEFAULT = 0x1,
1737 /* default multicast rule -
1738 * receive all Eth multicast traffic which isn't steered to any QP
1739 */
1740 IB_FLOW_ATTR_MC_DEFAULT = 0x2,
1741 /* sniffer rule - receive all port traffic */
1742 IB_FLOW_ATTR_SNIFFER = 0x3
1743};
1744
1745/* Supported steering header types */
1746enum ib_flow_spec_type {
1747 /* L2 headers*/
76bd23b3
MR
1748 IB_FLOW_SPEC_ETH = 0x20,
1749 IB_FLOW_SPEC_IB = 0x22,
319a441d 1750 /* L3 header*/
76bd23b3
MR
1751 IB_FLOW_SPEC_IPV4 = 0x30,
1752 IB_FLOW_SPEC_IPV6 = 0x31,
319a441d 1753 /* L4 headers*/
76bd23b3
MR
1754 IB_FLOW_SPEC_TCP = 0x40,
1755 IB_FLOW_SPEC_UDP = 0x41,
0dbf3332 1756 IB_FLOW_SPEC_VXLAN_TUNNEL = 0x50,
fbf46860 1757 IB_FLOW_SPEC_INNER = 0x100,
460d0198
MR
1758 /* Actions */
1759 IB_FLOW_SPEC_ACTION_TAG = 0x1000,
483a3966 1760 IB_FLOW_SPEC_ACTION_DROP = 0x1001,
319a441d 1761};
240ae00e 1762#define IB_FLOW_SPEC_LAYER_MASK 0xF0
fbf46860 1763#define IB_FLOW_SPEC_SUPPORT_LAYERS 8
22878dbc 1764
319a441d
HHZ
1765/* Flow steering rule priority is set according to it's domain.
1766 * Lower domain value means higher priority.
1767 */
1768enum ib_flow_domain {
1769 IB_FLOW_DOMAIN_USER,
1770 IB_FLOW_DOMAIN_ETHTOOL,
1771 IB_FLOW_DOMAIN_RFS,
1772 IB_FLOW_DOMAIN_NIC,
1773 IB_FLOW_DOMAIN_NUM /* Must be last */
1774};
1775
a3100a78
MV
1776enum ib_flow_flags {
1777 IB_FLOW_ATTR_FLAGS_DONT_TRAP = 1UL << 1, /* Continue match, no steal */
1778 IB_FLOW_ATTR_FLAGS_RESERVED = 1UL << 2 /* Must be last */
1779};
1780
319a441d
HHZ
1781struct ib_flow_eth_filter {
1782 u8 dst_mac[6];
1783 u8 src_mac[6];
1784 __be16 ether_type;
1785 __be16 vlan_tag;
15dfbd6b
MG
1786 /* Must be last */
1787 u8 real_sz[0];
319a441d
HHZ
1788};
1789
1790struct ib_flow_spec_eth {
fbf46860 1791 u32 type;
319a441d
HHZ
1792 u16 size;
1793 struct ib_flow_eth_filter val;
1794 struct ib_flow_eth_filter mask;
1795};
1796
240ae00e
MB
1797struct ib_flow_ib_filter {
1798 __be16 dlid;
1799 __u8 sl;
15dfbd6b
MG
1800 /* Must be last */
1801 u8 real_sz[0];
240ae00e
MB
1802};
1803
1804struct ib_flow_spec_ib {
fbf46860 1805 u32 type;
240ae00e
MB
1806 u16 size;
1807 struct ib_flow_ib_filter val;
1808 struct ib_flow_ib_filter mask;
1809};
1810
989a3a8f
MG
1811/* IPv4 header flags */
1812enum ib_ipv4_flags {
1813 IB_IPV4_DONT_FRAG = 0x2, /* Don't enable packet fragmentation */
1814 IB_IPV4_MORE_FRAG = 0X4 /* For All fragmented packets except the
1815 last have this flag set */
1816};
1817
319a441d
HHZ
1818struct ib_flow_ipv4_filter {
1819 __be32 src_ip;
1820 __be32 dst_ip;
989a3a8f
MG
1821 u8 proto;
1822 u8 tos;
1823 u8 ttl;
1824 u8 flags;
15dfbd6b
MG
1825 /* Must be last */
1826 u8 real_sz[0];
319a441d
HHZ
1827};
1828
1829struct ib_flow_spec_ipv4 {
fbf46860 1830 u32 type;
319a441d
HHZ
1831 u16 size;
1832 struct ib_flow_ipv4_filter val;
1833 struct ib_flow_ipv4_filter mask;
1834};
1835
4c2aae71
MG
1836struct ib_flow_ipv6_filter {
1837 u8 src_ip[16];
1838 u8 dst_ip[16];
a72c6a2b
MG
1839 __be32 flow_label;
1840 u8 next_hdr;
1841 u8 traffic_class;
1842 u8 hop_limit;
15dfbd6b
MG
1843 /* Must be last */
1844 u8 real_sz[0];
4c2aae71
MG
1845};
1846
1847struct ib_flow_spec_ipv6 {
fbf46860 1848 u32 type;
4c2aae71
MG
1849 u16 size;
1850 struct ib_flow_ipv6_filter val;
1851 struct ib_flow_ipv6_filter mask;
1852};
1853
319a441d
HHZ
1854struct ib_flow_tcp_udp_filter {
1855 __be16 dst_port;
1856 __be16 src_port;
15dfbd6b
MG
1857 /* Must be last */
1858 u8 real_sz[0];
319a441d
HHZ
1859};
1860
1861struct ib_flow_spec_tcp_udp {
fbf46860 1862 u32 type;
319a441d
HHZ
1863 u16 size;
1864 struct ib_flow_tcp_udp_filter val;
1865 struct ib_flow_tcp_udp_filter mask;
1866};
1867
0dbf3332
MR
1868struct ib_flow_tunnel_filter {
1869 __be32 tunnel_id;
1870 u8 real_sz[0];
1871};
1872
1873/* ib_flow_spec_tunnel describes the Vxlan tunnel
1874 * the tunnel_id from val has the vni value
1875 */
1876struct ib_flow_spec_tunnel {
fbf46860 1877 u32 type;
0dbf3332
MR
1878 u16 size;
1879 struct ib_flow_tunnel_filter val;
1880 struct ib_flow_tunnel_filter mask;
1881};
1882
460d0198
MR
1883struct ib_flow_spec_action_tag {
1884 enum ib_flow_spec_type type;
1885 u16 size;
1886 u32 tag_id;
1887};
1888
483a3966
SS
1889struct ib_flow_spec_action_drop {
1890 enum ib_flow_spec_type type;
1891 u16 size;
1892};
1893
319a441d
HHZ
1894union ib_flow_spec {
1895 struct {
fbf46860 1896 u32 type;
319a441d
HHZ
1897 u16 size;
1898 };
1899 struct ib_flow_spec_eth eth;
240ae00e 1900 struct ib_flow_spec_ib ib;
319a441d
HHZ
1901 struct ib_flow_spec_ipv4 ipv4;
1902 struct ib_flow_spec_tcp_udp tcp_udp;
4c2aae71 1903 struct ib_flow_spec_ipv6 ipv6;
0dbf3332 1904 struct ib_flow_spec_tunnel tunnel;
460d0198 1905 struct ib_flow_spec_action_tag flow_tag;
483a3966 1906 struct ib_flow_spec_action_drop drop;
319a441d
HHZ
1907};
1908
1909struct ib_flow_attr {
1910 enum ib_flow_attr_type type;
1911 u16 size;
1912 u16 priority;
1913 u32 flags;
1914 u8 num_of_specs;
1915 u8 port;
1916 /* Following are the optional layers according to user request
1917 * struct ib_flow_spec_xxx
1918 * struct ib_flow_spec_yyy
1919 */
1920};
1921
1922struct ib_flow {
1923 struct ib_qp *qp;
1924 struct ib_uobject *uobject;
1925};
1926
4cd7c947 1927struct ib_mad_hdr;
1da177e4
LT
1928struct ib_grh;
1929
1930enum ib_process_mad_flags {
1931 IB_MAD_IGNORE_MKEY = 1,
1932 IB_MAD_IGNORE_BKEY = 2,
1933 IB_MAD_IGNORE_ALL = IB_MAD_IGNORE_MKEY | IB_MAD_IGNORE_BKEY
1934};
1935
1936enum ib_mad_result {
1937 IB_MAD_RESULT_FAILURE = 0, /* (!SUCCESS is the important flag) */
1938 IB_MAD_RESULT_SUCCESS = 1 << 0, /* MAD was successfully processed */
1939 IB_MAD_RESULT_REPLY = 1 << 1, /* Reply packet needs to be sent */
1940 IB_MAD_RESULT_CONSUMED = 1 << 2 /* Packet consumed: stop processing */
1941};
1942
21d6454a 1943struct ib_port_cache {
883c71fe 1944 u64 subnet_prefix;
21d6454a
JW
1945 struct ib_pkey_cache *pkey;
1946 struct ib_gid_table *gid;
1947 u8 lmc;
1948 enum ib_port_state port_state;
1949};
1950
1da177e4
LT
1951struct ib_cache {
1952 rwlock_t lock;
1953 struct ib_event_handler event_handler;
21d6454a 1954 struct ib_port_cache *ports;
1da177e4
LT
1955};
1956
07ebafba
TT
1957struct iw_cm_verbs;
1958
7738613e
IW
1959struct ib_port_immutable {
1960 int pkey_tbl_len;
1961 int gid_tbl_len;
f9b22e35 1962 u32 core_cap_flags;
337877a4 1963 u32 max_mad_size;
7738613e
IW
1964};
1965
2fc77572
VN
1966/* rdma netdev type - specifies protocol type */
1967enum rdma_netdev_t {
f0ad83ac
NV
1968 RDMA_NETDEV_OPA_VNIC,
1969 RDMA_NETDEV_IPOIB,
2fc77572
VN
1970};
1971
1972/**
1973 * struct rdma_netdev - rdma netdev
1974 * For cases where netstack interfacing is required.
1975 */
1976struct rdma_netdev {
1977 void *clnt_priv;
1978 struct ib_device *hca;
1979 u8 port_num;
1980
8e959601
NV
1981 /* cleanup function must be specified */
1982 void (*free_rdma_netdev)(struct net_device *netdev);
1983
2fc77572
VN
1984 /* control functions */
1985 void (*set_id)(struct net_device *netdev, int id);
f0ad83ac
NV
1986 /* send packet */
1987 int (*send)(struct net_device *dev, struct sk_buff *skb,
1988 struct ib_ah *address, u32 dqpn);
1989 /* multicast */
1990 int (*attach_mcast)(struct net_device *dev, struct ib_device *hca,
1991 union ib_gid *gid, u16 mlid,
1992 int set_qkey, u32 qkey);
1993 int (*detach_mcast)(struct net_device *dev, struct ib_device *hca,
1994 union ib_gid *gid, u16 mlid);
2fc77572
VN
1995};
1996
d291f1a6
DJ
1997struct ib_port_pkey_list {
1998 /* Lock to hold while modifying the list. */
1999 spinlock_t list_lock;
2000 struct list_head pkey_list;
2001};
2002
1da177e4 2003struct ib_device {
0957c29f
BVA
2004 /* Do not access @dma_device directly from ULP nor from HW drivers. */
2005 struct device *dma_device;
2006
1da177e4
LT
2007 char name[IB_DEVICE_NAME_MAX];
2008
2009 struct list_head event_handler_list;
2010 spinlock_t event_handler_lock;
2011
17a55f79 2012 spinlock_t client_data_lock;
1da177e4 2013 struct list_head core_list;
7c1eb45a
HE
2014 /* Access to the client_data_list is protected by the client_data_lock
2015 * spinlock and the lists_rwsem read-write semaphore */
1da177e4 2016 struct list_head client_data_list;
1da177e4
LT
2017
2018 struct ib_cache cache;
7738613e
IW
2019 /**
2020 * port_immutable is indexed by port number
2021 */
2022 struct ib_port_immutable *port_immutable;
1da177e4 2023
f4fd0b22
MT
2024 int num_comp_vectors;
2025
d291f1a6
DJ
2026 struct ib_port_pkey_list *port_pkey_list;
2027
07ebafba
TT
2028 struct iw_cm_verbs *iwcm;
2029
b40f4757
CL
2030 /**
2031 * alloc_hw_stats - Allocate a struct rdma_hw_stats and fill in the
2032 * driver initialized data. The struct is kfree()'ed by the sysfs
2033 * core when the device is removed. A lifespan of -1 in the return
2034 * struct tells the core to set a default lifespan.
2035 */
2036 struct rdma_hw_stats *(*alloc_hw_stats)(struct ib_device *device,
2037 u8 port_num);
2038 /**
2039 * get_hw_stats - Fill in the counter value(s) in the stats struct.
2040 * @index - The index in the value array we wish to have updated, or
2041 * num_counters if we want all stats updated
2042 * Return codes -
2043 * < 0 - Error, no counters updated
2044 * index - Updated the single counter pointed to by index
2045 * num_counters - Updated all counters (will reset the timestamp
2046 * and prevent further calls for lifespan milliseconds)
2047 * Drivers are allowed to update all counters in leiu of just the
2048 * one given in index at their option
2049 */
2050 int (*get_hw_stats)(struct ib_device *device,
2051 struct rdma_hw_stats *stats,
2052 u8 port, int index);
1da177e4 2053 int (*query_device)(struct ib_device *device,
2528e33e
MB
2054 struct ib_device_attr *device_attr,
2055 struct ib_udata *udata);
1da177e4
LT
2056 int (*query_port)(struct ib_device *device,
2057 u8 port_num,
2058 struct ib_port_attr *port_attr);
a3f5adaf
EC
2059 enum rdma_link_layer (*get_link_layer)(struct ib_device *device,
2060 u8 port_num);
03db3a2d
MB
2061 /* When calling get_netdev, the HW vendor's driver should return the
2062 * net device of device @device at port @port_num or NULL if such
2063 * a net device doesn't exist. The vendor driver should call dev_hold
2064 * on this net device. The HW vendor's device driver must guarantee
2065 * that this function returns NULL before the net device reaches
2066 * NETDEV_UNREGISTER_FINAL state.
2067 */
2068 struct net_device *(*get_netdev)(struct ib_device *device,
2069 u8 port_num);
1da177e4
LT
2070 int (*query_gid)(struct ib_device *device,
2071 u8 port_num, int index,
2072 union ib_gid *gid);
03db3a2d
MB
2073 /* When calling add_gid, the HW vendor's driver should
2074 * add the gid of device @device at gid index @index of
2075 * port @port_num to be @gid. Meta-info of that gid (for example,
2076 * the network device related to this gid is available
2077 * at @attr. @context allows the HW vendor driver to store extra
2078 * information together with a GID entry. The HW vendor may allocate
2079 * memory to contain this information and store it in @context when a
2080 * new GID entry is written to. Params are consistent until the next
2081 * call of add_gid or delete_gid. The function should return 0 on
2082 * success or error otherwise. The function could be called
2083 * concurrently for different ports. This function is only called
2084 * when roce_gid_table is used.
2085 */
2086 int (*add_gid)(struct ib_device *device,
2087 u8 port_num,
2088 unsigned int index,
2089 const union ib_gid *gid,
2090 const struct ib_gid_attr *attr,
2091 void **context);
2092 /* When calling del_gid, the HW vendor's driver should delete the
2093 * gid of device @device at gid index @index of port @port_num.
2094 * Upon the deletion of a GID entry, the HW vendor must free any
2095 * allocated memory. The caller will clear @context afterwards.
2096 * This function is only called when roce_gid_table is used.
2097 */
2098 int (*del_gid)(struct ib_device *device,
2099 u8 port_num,
2100 unsigned int index,
2101 void **context);
1da177e4
LT
2102 int (*query_pkey)(struct ib_device *device,
2103 u8 port_num, u16 index, u16 *pkey);
2104 int (*modify_device)(struct ib_device *device,
2105 int device_modify_mask,
2106 struct ib_device_modify *device_modify);
2107 int (*modify_port)(struct ib_device *device,
2108 u8 port_num, int port_modify_mask,
2109 struct ib_port_modify *port_modify);
e2773c06
RD
2110 struct ib_ucontext * (*alloc_ucontext)(struct ib_device *device,
2111 struct ib_udata *udata);
2112 int (*dealloc_ucontext)(struct ib_ucontext *context);
2113 int (*mmap)(struct ib_ucontext *context,
2114 struct vm_area_struct *vma);
2115 struct ib_pd * (*alloc_pd)(struct ib_device *device,
2116 struct ib_ucontext *context,
2117 struct ib_udata *udata);
1da177e4
LT
2118 int (*dealloc_pd)(struct ib_pd *pd);
2119 struct ib_ah * (*create_ah)(struct ib_pd *pd,
90898850 2120 struct rdma_ah_attr *ah_attr,
477864c8 2121 struct ib_udata *udata);
1da177e4 2122 int (*modify_ah)(struct ib_ah *ah,
90898850 2123 struct rdma_ah_attr *ah_attr);
1da177e4 2124 int (*query_ah)(struct ib_ah *ah,
90898850 2125 struct rdma_ah_attr *ah_attr);
1da177e4 2126 int (*destroy_ah)(struct ib_ah *ah);
d41fcc67
RD
2127 struct ib_srq * (*create_srq)(struct ib_pd *pd,
2128 struct ib_srq_init_attr *srq_init_attr,
2129 struct ib_udata *udata);
2130 int (*modify_srq)(struct ib_srq *srq,
2131 struct ib_srq_attr *srq_attr,
9bc57e2d
RC
2132 enum ib_srq_attr_mask srq_attr_mask,
2133 struct ib_udata *udata);
d41fcc67
RD
2134 int (*query_srq)(struct ib_srq *srq,
2135 struct ib_srq_attr *srq_attr);
2136 int (*destroy_srq)(struct ib_srq *srq);
2137 int (*post_srq_recv)(struct ib_srq *srq,
2138 struct ib_recv_wr *recv_wr,
2139 struct ib_recv_wr **bad_recv_wr);
1da177e4 2140 struct ib_qp * (*create_qp)(struct ib_pd *pd,
e2773c06
RD
2141 struct ib_qp_init_attr *qp_init_attr,
2142 struct ib_udata *udata);
1da177e4
LT
2143 int (*modify_qp)(struct ib_qp *qp,
2144 struct ib_qp_attr *qp_attr,
9bc57e2d
RC
2145 int qp_attr_mask,
2146 struct ib_udata *udata);
1da177e4
LT
2147 int (*query_qp)(struct ib_qp *qp,
2148 struct ib_qp_attr *qp_attr,
2149 int qp_attr_mask,
2150 struct ib_qp_init_attr *qp_init_attr);
2151 int (*destroy_qp)(struct ib_qp *qp);
2152 int (*post_send)(struct ib_qp *qp,
2153 struct ib_send_wr *send_wr,
2154 struct ib_send_wr **bad_send_wr);
2155 int (*post_recv)(struct ib_qp *qp,
2156 struct ib_recv_wr *recv_wr,
2157 struct ib_recv_wr **bad_recv_wr);
bcf4c1ea
MB
2158 struct ib_cq * (*create_cq)(struct ib_device *device,
2159 const struct ib_cq_init_attr *attr,
e2773c06
RD
2160 struct ib_ucontext *context,
2161 struct ib_udata *udata);
2dd57162
EC
2162 int (*modify_cq)(struct ib_cq *cq, u16 cq_count,
2163 u16 cq_period);
1da177e4 2164 int (*destroy_cq)(struct ib_cq *cq);
33b9b3ee
RD
2165 int (*resize_cq)(struct ib_cq *cq, int cqe,
2166 struct ib_udata *udata);
1da177e4
LT
2167 int (*poll_cq)(struct ib_cq *cq, int num_entries,
2168 struct ib_wc *wc);
2169 int (*peek_cq)(struct ib_cq *cq, int wc_cnt);
2170 int (*req_notify_cq)(struct ib_cq *cq,
ed23a727 2171 enum ib_cq_notify_flags flags);
1da177e4
LT
2172 int (*req_ncomp_notif)(struct ib_cq *cq,
2173 int wc_cnt);
2174 struct ib_mr * (*get_dma_mr)(struct ib_pd *pd,
2175 int mr_access_flags);
e2773c06 2176 struct ib_mr * (*reg_user_mr)(struct ib_pd *pd,
f7c6a7b5
RD
2177 u64 start, u64 length,
2178 u64 virt_addr,
e2773c06
RD
2179 int mr_access_flags,
2180 struct ib_udata *udata);
7e6edb9b
MB
2181 int (*rereg_user_mr)(struct ib_mr *mr,
2182 int flags,
2183 u64 start, u64 length,
2184 u64 virt_addr,
2185 int mr_access_flags,
2186 struct ib_pd *pd,
2187 struct ib_udata *udata);
1da177e4 2188 int (*dereg_mr)(struct ib_mr *mr);
9bee178b
SG
2189 struct ib_mr * (*alloc_mr)(struct ib_pd *pd,
2190 enum ib_mr_type mr_type,
2191 u32 max_num_sg);
4c67e2bf
SG
2192 int (*map_mr_sg)(struct ib_mr *mr,
2193 struct scatterlist *sg,
ff2ba993 2194 int sg_nents,
9aa8b321 2195 unsigned int *sg_offset);
7083e42e 2196 struct ib_mw * (*alloc_mw)(struct ib_pd *pd,
b2a239df
MB
2197 enum ib_mw_type type,
2198 struct ib_udata *udata);
1da177e4
LT
2199 int (*dealloc_mw)(struct ib_mw *mw);
2200 struct ib_fmr * (*alloc_fmr)(struct ib_pd *pd,
2201 int mr_access_flags,
2202 struct ib_fmr_attr *fmr_attr);
2203 int (*map_phys_fmr)(struct ib_fmr *fmr,
2204 u64 *page_list, int list_len,
2205 u64 iova);
2206 int (*unmap_fmr)(struct list_head *fmr_list);
2207 int (*dealloc_fmr)(struct ib_fmr *fmr);
2208 int (*attach_mcast)(struct ib_qp *qp,
2209 union ib_gid *gid,
2210 u16 lid);
2211 int (*detach_mcast)(struct ib_qp *qp,
2212 union ib_gid *gid,
2213 u16 lid);
2214 int (*process_mad)(struct ib_device *device,
2215 int process_mad_flags,
2216 u8 port_num,
a97e2d86
IW
2217 const struct ib_wc *in_wc,
2218 const struct ib_grh *in_grh,
4cd7c947
IW
2219 const struct ib_mad_hdr *in_mad,
2220 size_t in_mad_size,
2221 struct ib_mad_hdr *out_mad,
2222 size_t *out_mad_size,
2223 u16 *out_mad_pkey_index);
59991f94
SH
2224 struct ib_xrcd * (*alloc_xrcd)(struct ib_device *device,
2225 struct ib_ucontext *ucontext,
2226 struct ib_udata *udata);
2227 int (*dealloc_xrcd)(struct ib_xrcd *xrcd);
319a441d
HHZ
2228 struct ib_flow * (*create_flow)(struct ib_qp *qp,
2229 struct ib_flow_attr
2230 *flow_attr,
2231 int domain);
2232 int (*destroy_flow)(struct ib_flow *flow_id);
1b01d335
SG
2233 int (*check_mr_status)(struct ib_mr *mr, u32 check_mask,
2234 struct ib_mr_status *mr_status);
036b1063 2235 void (*disassociate_ucontext)(struct ib_ucontext *ibcontext);
765d6774
SW
2236 void (*drain_rq)(struct ib_qp *qp);
2237 void (*drain_sq)(struct ib_qp *qp);
50174a7f
EC
2238 int (*set_vf_link_state)(struct ib_device *device, int vf, u8 port,
2239 int state);
2240 int (*get_vf_config)(struct ib_device *device, int vf, u8 port,
2241 struct ifla_vf_info *ivf);
2242 int (*get_vf_stats)(struct ib_device *device, int vf, u8 port,
2243 struct ifla_vf_stats *stats);
2244 int (*set_vf_guid)(struct ib_device *device, int vf, u8 port, u64 guid,
2245 int type);
5fd251c8
YH
2246 struct ib_wq * (*create_wq)(struct ib_pd *pd,
2247 struct ib_wq_init_attr *init_attr,
2248 struct ib_udata *udata);
2249 int (*destroy_wq)(struct ib_wq *wq);
2250 int (*modify_wq)(struct ib_wq *wq,
2251 struct ib_wq_attr *attr,
2252 u32 wq_attr_mask,
2253 struct ib_udata *udata);
6d39786b
YH
2254 struct ib_rwq_ind_table * (*create_rwq_ind_table)(struct ib_device *device,
2255 struct ib_rwq_ind_table_init_attr *init_attr,
2256 struct ib_udata *udata);
2257 int (*destroy_rwq_ind_table)(struct ib_rwq_ind_table *wq_ind_table);
2fc77572 2258 /**
8e959601 2259 * rdma netdev operation
2fc77572
VN
2260 *
2261 * Driver implementing alloc_rdma_netdev must return -EOPNOTSUPP if it
2262 * doesn't support the specified rdma netdev type.
2263 */
2264 struct net_device *(*alloc_rdma_netdev)(
2265 struct ib_device *device,
2266 u8 port_num,
2267 enum rdma_netdev_t type,
2268 const char *name,
2269 unsigned char name_assign_type,
2270 void (*setup)(struct net_device *));
9b513090 2271
e2773c06 2272 struct module *owner;
f4e91eb4 2273 struct device dev;
35be0681 2274 struct kobject *ports_parent;
1da177e4
LT
2275 struct list_head port_list;
2276
2277 enum {
2278 IB_DEV_UNINITIALIZED,
2279 IB_DEV_REGISTERED,
2280 IB_DEV_UNREGISTERED
2281 } reg_state;
2282
274c0891 2283 int uverbs_abi_ver;
17a55f79 2284 u64 uverbs_cmd_mask;
f21519b2 2285 u64 uverbs_ex_cmd_mask;
274c0891 2286
bd99fdea 2287 char node_desc[IB_DEVICE_NODE_DESC_MAX];
cf311cd4 2288 __be64 node_guid;
96f15c03 2289 u32 local_dma_lkey;
4139032b 2290 u16 is_switch:1;
1da177e4
LT
2291 u8 node_type;
2292 u8 phys_port_cnt;
3e153a93 2293 struct ib_device_attr attrs;
b40f4757
CL
2294 struct attribute_group *hw_stats_ag;
2295 struct rdma_hw_stats *hw_stats;
7738613e 2296
43579b5f
PP
2297#ifdef CONFIG_CGROUP_RDMA
2298 struct rdmacg_device cg_device;
2299#endif
2300
ecc82c53
LR
2301 u32 index;
2302
7738613e
IW
2303 /**
2304 * The following mandatory functions are used only at device
2305 * registration. Keep functions such as these at the end of this
2306 * structure to avoid cache line misses when accessing struct ib_device
2307 * in fast paths.
2308 */
2309 int (*get_port_immutable)(struct ib_device *, u8, struct ib_port_immutable *);
5fa76c20 2310 void (*get_dev_fw_str)(struct ib_device *, char *str, size_t str_len);
1da177e4
LT
2311};
2312
2313struct ib_client {
2314 char *name;
2315 void (*add) (struct ib_device *);
7c1eb45a 2316 void (*remove)(struct ib_device *, void *client_data);
1da177e4 2317
9268f72d
YK
2318 /* Returns the net_dev belonging to this ib_client and matching the
2319 * given parameters.
2320 * @dev: An RDMA device that the net_dev use for communication.
2321 * @port: A physical port number on the RDMA device.
2322 * @pkey: P_Key that the net_dev uses if applicable.
2323 * @gid: A GID that the net_dev uses to communicate.
2324 * @addr: An IP address the net_dev is configured with.
2325 * @client_data: The device's client data set by ib_set_client_data().
2326 *
2327 * An ib_client that implements a net_dev on top of RDMA devices
2328 * (such as IP over IB) should implement this callback, allowing the
2329 * rdma_cm module to find the right net_dev for a given request.
2330 *
2331 * The caller is responsible for calling dev_put on the returned
2332 * netdev. */
2333 struct net_device *(*get_net_dev_by_params)(
2334 struct ib_device *dev,
2335 u8 port,
2336 u16 pkey,
2337 const union ib_gid *gid,
2338 const struct sockaddr *addr,
2339 void *client_data);
1da177e4
LT
2340 struct list_head list;
2341};
2342
2343struct ib_device *ib_alloc_device(size_t size);
2344void ib_dealloc_device(struct ib_device *device);
2345
5fa76c20
IW
2346void ib_get_device_fw_str(struct ib_device *device, char *str, size_t str_len);
2347
9a6edb60
RC
2348int ib_register_device(struct ib_device *device,
2349 int (*port_callback)(struct ib_device *,
2350 u8, struct kobject *));
1da177e4
LT
2351void ib_unregister_device(struct ib_device *device);
2352
2353int ib_register_client (struct ib_client *client);
2354void ib_unregister_client(struct ib_client *client);
2355
2356void *ib_get_client_data(struct ib_device *device, struct ib_client *client);
2357void ib_set_client_data(struct ib_device *device, struct ib_client *client,
2358 void *data);
2359
e2773c06
RD
2360static inline int ib_copy_from_udata(void *dest, struct ib_udata *udata, size_t len)
2361{
2362 return copy_from_user(dest, udata->inbuf, len) ? -EFAULT : 0;
2363}
2364
2365static inline int ib_copy_to_udata(struct ib_udata *udata, void *src, size_t len)
2366{
43c61165 2367 return copy_to_user(udata->outbuf, src, len) ? -EFAULT : 0;
e2773c06
RD
2368}
2369
301a721e
MB
2370static inline bool ib_is_udata_cleared(struct ib_udata *udata,
2371 size_t offset,
2372 size_t len)
2373{
2374 const void __user *p = udata->inbuf + offset;
92d27ae6 2375 bool ret;
301a721e
MB
2376 u8 *buf;
2377
2378 if (len > USHRT_MAX)
2379 return false;
2380
92d27ae6
ME
2381 buf = memdup_user(p, len);
2382 if (IS_ERR(buf))
301a721e
MB
2383 return false;
2384
301a721e 2385 ret = !memchr_inv(buf, 0, len);
301a721e
MB
2386 kfree(buf);
2387 return ret;
2388}
2389
8a51866f
RD
2390/**
2391 * ib_modify_qp_is_ok - Check that the supplied attribute mask
2392 * contains all required attributes and no attributes not allowed for
2393 * the given QP state transition.
2394 * @cur_state: Current QP state
2395 * @next_state: Next QP state
2396 * @type: QP type
2397 * @mask: Mask of supplied QP attributes
dd5f03be 2398 * @ll : link layer of port
8a51866f
RD
2399 *
2400 * This function is a helper function that a low-level driver's
2401 * modify_qp method can use to validate the consumer's input. It
2402 * checks that cur_state and next_state are valid QP states, that a
2403 * transition from cur_state to next_state is allowed by the IB spec,
2404 * and that the attribute mask supplied is allowed for the transition.
2405 */
2406int ib_modify_qp_is_ok(enum ib_qp_state cur_state, enum ib_qp_state next_state,
dd5f03be
MB
2407 enum ib_qp_type type, enum ib_qp_attr_mask mask,
2408 enum rdma_link_layer ll);
8a51866f 2409
1da177e4
LT
2410int ib_register_event_handler (struct ib_event_handler *event_handler);
2411int ib_unregister_event_handler(struct ib_event_handler *event_handler);
2412void ib_dispatch_event(struct ib_event *event);
2413
1da177e4
LT
2414int ib_query_port(struct ib_device *device,
2415 u8 port_num, struct ib_port_attr *port_attr);
2416
a3f5adaf
EC
2417enum rdma_link_layer rdma_port_get_link_layer(struct ib_device *device,
2418 u8 port_num);
2419
4139032b
HR
2420/**
2421 * rdma_cap_ib_switch - Check if the device is IB switch
2422 * @device: Device to check
2423 *
2424 * Device driver is responsible for setting is_switch bit on
2425 * in ib_device structure at init time.
2426 *
2427 * Return: true if the device is IB switch.
2428 */
2429static inline bool rdma_cap_ib_switch(const struct ib_device *device)
2430{
2431 return device->is_switch;
2432}
2433
0cf18d77
IW
2434/**
2435 * rdma_start_port - Return the first valid port number for the device
2436 * specified
2437 *
2438 * @device: Device to be checked
2439 *
2440 * Return start port number
2441 */
2442static inline u8 rdma_start_port(const struct ib_device *device)
2443{
4139032b 2444 return rdma_cap_ib_switch(device) ? 0 : 1;
0cf18d77
IW
2445}
2446
2447/**
2448 * rdma_end_port - Return the last valid port number for the device
2449 * specified
2450 *
2451 * @device: Device to be checked
2452 *
2453 * Return last port number
2454 */
2455static inline u8 rdma_end_port(const struct ib_device *device)
2456{
4139032b 2457 return rdma_cap_ib_switch(device) ? 0 : device->phys_port_cnt;
0cf18d77
IW
2458}
2459
24dc831b
YS
2460static inline int rdma_is_port_valid(const struct ib_device *device,
2461 unsigned int port)
2462{
2463 return (port >= rdma_start_port(device) &&
2464 port <= rdma_end_port(device));
2465}
2466
5ede9289 2467static inline bool rdma_protocol_ib(const struct ib_device *device, u8 port_num)
de66be94 2468{
f9b22e35 2469 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_IB;
de66be94
MW
2470}
2471
5ede9289 2472static inline bool rdma_protocol_roce(const struct ib_device *device, u8 port_num)
7766a99f
MB
2473{
2474 return device->port_immutable[port_num].core_cap_flags &
2475 (RDMA_CORE_CAP_PROT_ROCE | RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP);
2476}
2477
2478static inline bool rdma_protocol_roce_udp_encap(const struct ib_device *device, u8 port_num)
2479{
2480 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_ROCE_UDP_ENCAP;
2481}
2482
2483static inline bool rdma_protocol_roce_eth_encap(const struct ib_device *device, u8 port_num)
de66be94 2484{
f9b22e35 2485 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_ROCE;
de66be94
MW
2486}
2487
5ede9289 2488static inline bool rdma_protocol_iwarp(const struct ib_device *device, u8 port_num)
de66be94 2489{
f9b22e35 2490 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_IWARP;
de66be94
MW
2491}
2492
5ede9289 2493static inline bool rdma_ib_or_roce(const struct ib_device *device, u8 port_num)
de66be94 2494{
7766a99f
MB
2495 return rdma_protocol_ib(device, port_num) ||
2496 rdma_protocol_roce(device, port_num);
de66be94
MW
2497}
2498
aa773bd4
OG
2499static inline bool rdma_protocol_raw_packet(const struct ib_device *device, u8 port_num)
2500{
2501 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_RAW_PACKET;
2502}
2503
ce1e055f
OG
2504static inline bool rdma_protocol_usnic(const struct ib_device *device, u8 port_num)
2505{
2506 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_PROT_USNIC;
2507}
2508
c757dea8 2509/**
296ec009 2510 * rdma_cap_ib_mad - Check if the port of a device supports Infiniband
c757dea8 2511 * Management Datagrams.
296ec009
MW
2512 * @device: Device to check
2513 * @port_num: Port number to check
c757dea8 2514 *
296ec009
MW
2515 * Management Datagrams (MAD) are a required part of the InfiniBand
2516 * specification and are supported on all InfiniBand devices. A slightly
2517 * extended version are also supported on OPA interfaces.
c757dea8 2518 *
296ec009 2519 * Return: true if the port supports sending/receiving of MAD packets.
c757dea8 2520 */
5ede9289 2521static inline bool rdma_cap_ib_mad(const struct ib_device *device, u8 port_num)
c757dea8 2522{
f9b22e35 2523 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_MAD;
c757dea8
MW
2524}
2525
65995fee
IW
2526/**
2527 * rdma_cap_opa_mad - Check if the port of device provides support for OPA
2528 * Management Datagrams.
2529 * @device: Device to check
2530 * @port_num: Port number to check
2531 *
2532 * Intel OmniPath devices extend and/or replace the InfiniBand Management
2533 * datagrams with their own versions. These OPA MADs share many but not all of
2534 * the characteristics of InfiniBand MADs.
2535 *
2536 * OPA MADs differ in the following ways:
2537 *
2538 * 1) MADs are variable size up to 2K
2539 * IBTA defined MADs remain fixed at 256 bytes
2540 * 2) OPA SMPs must carry valid PKeys
2541 * 3) OPA SMP packets are a different format
2542 *
2543 * Return: true if the port supports OPA MAD packet formats.
2544 */
2545static inline bool rdma_cap_opa_mad(struct ib_device *device, u8 port_num)
2546{
2547 return (device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_OPA_MAD)
2548 == RDMA_CORE_CAP_OPA_MAD;
2549}
2550
29541e3a 2551/**
296ec009
MW
2552 * rdma_cap_ib_smi - Check if the port of a device provides an Infiniband
2553 * Subnet Management Agent (SMA) on the Subnet Management Interface (SMI).
2554 * @device: Device to check
2555 * @port_num: Port number to check
29541e3a 2556 *
296ec009
MW
2557 * Each InfiniBand node is required to provide a Subnet Management Agent
2558 * that the subnet manager can access. Prior to the fabric being fully
2559 * configured by the subnet manager, the SMA is accessed via a well known
2560 * interface called the Subnet Management Interface (SMI). This interface
2561 * uses directed route packets to communicate with the SM to get around the
2562 * chicken and egg problem of the SM needing to know what's on the fabric
2563 * in order to configure the fabric, and needing to configure the fabric in
2564 * order to send packets to the devices on the fabric. These directed
2565 * route packets do not need the fabric fully configured in order to reach
2566 * their destination. The SMI is the only method allowed to send
2567 * directed route packets on an InfiniBand fabric.
29541e3a 2568 *
296ec009 2569 * Return: true if the port provides an SMI.
29541e3a 2570 */
5ede9289 2571static inline bool rdma_cap_ib_smi(const struct ib_device *device, u8 port_num)
29541e3a 2572{
f9b22e35 2573 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_SMI;
29541e3a
MW
2574}
2575
72219cea
MW
2576/**
2577 * rdma_cap_ib_cm - Check if the port of device has the capability Infiniband
2578 * Communication Manager.
296ec009
MW
2579 * @device: Device to check
2580 * @port_num: Port number to check
72219cea 2581 *
296ec009
MW
2582 * The InfiniBand Communication Manager is one of many pre-defined General
2583 * Service Agents (GSA) that are accessed via the General Service
2584 * Interface (GSI). It's role is to facilitate establishment of connections
2585 * between nodes as well as other management related tasks for established
2586 * connections.
72219cea 2587 *
296ec009
MW
2588 * Return: true if the port supports an IB CM (this does not guarantee that
2589 * a CM is actually running however).
72219cea 2590 */
5ede9289 2591static inline bool rdma_cap_ib_cm(const struct ib_device *device, u8 port_num)
72219cea 2592{
f9b22e35 2593 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_CM;
72219cea
MW
2594}
2595
04215330
MW
2596/**
2597 * rdma_cap_iw_cm - Check if the port of device has the capability IWARP
2598 * Communication Manager.
296ec009
MW
2599 * @device: Device to check
2600 * @port_num: Port number to check
04215330 2601 *
296ec009
MW
2602 * Similar to above, but specific to iWARP connections which have a different
2603 * managment protocol than InfiniBand.
04215330 2604 *
296ec009
MW
2605 * Return: true if the port supports an iWARP CM (this does not guarantee that
2606 * a CM is actually running however).
04215330 2607 */
5ede9289 2608static inline bool rdma_cap_iw_cm(const struct ib_device *device, u8 port_num)
04215330 2609{
f9b22e35 2610 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IW_CM;
04215330
MW
2611}
2612
fe53ba2f
MW
2613/**
2614 * rdma_cap_ib_sa - Check if the port of device has the capability Infiniband
2615 * Subnet Administration.
296ec009
MW
2616 * @device: Device to check
2617 * @port_num: Port number to check
fe53ba2f 2618 *
296ec009
MW
2619 * An InfiniBand Subnet Administration (SA) service is a pre-defined General
2620 * Service Agent (GSA) provided by the Subnet Manager (SM). On InfiniBand
2621 * fabrics, devices should resolve routes to other hosts by contacting the
2622 * SA to query the proper route.
fe53ba2f 2623 *
296ec009
MW
2624 * Return: true if the port should act as a client to the fabric Subnet
2625 * Administration interface. This does not imply that the SA service is
2626 * running locally.
fe53ba2f 2627 */
5ede9289 2628static inline bool rdma_cap_ib_sa(const struct ib_device *device, u8 port_num)
fe53ba2f 2629{
f9b22e35 2630 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_IB_SA;
fe53ba2f
MW
2631}
2632
a31ad3b0
MW
2633/**
2634 * rdma_cap_ib_mcast - Check if the port of device has the capability Infiniband
2635 * Multicast.
296ec009
MW
2636 * @device: Device to check
2637 * @port_num: Port number to check
a31ad3b0 2638 *
296ec009
MW
2639 * InfiniBand multicast registration is more complex than normal IPv4 or
2640 * IPv6 multicast registration. Each Host Channel Adapter must register
2641 * with the Subnet Manager when it wishes to join a multicast group. It
2642 * should do so only once regardless of how many queue pairs it subscribes
2643 * to this group. And it should leave the group only after all queue pairs
2644 * attached to the group have been detached.
a31ad3b0 2645 *
296ec009
MW
2646 * Return: true if the port must undertake the additional adminstrative
2647 * overhead of registering/unregistering with the SM and tracking of the
2648 * total number of queue pairs attached to the multicast group.
a31ad3b0 2649 */
5ede9289 2650static inline bool rdma_cap_ib_mcast(const struct ib_device *device, u8 port_num)
a31ad3b0
MW
2651{
2652 return rdma_cap_ib_sa(device, port_num);
2653}
2654
30a74ef4
MW
2655/**
2656 * rdma_cap_af_ib - Check if the port of device has the capability
2657 * Native Infiniband Address.
296ec009
MW
2658 * @device: Device to check
2659 * @port_num: Port number to check
30a74ef4 2660 *
296ec009
MW
2661 * InfiniBand addressing uses a port's GUID + Subnet Prefix to make a default
2662 * GID. RoCE uses a different mechanism, but still generates a GID via
2663 * a prescribed mechanism and port specific data.
30a74ef4 2664 *
296ec009
MW
2665 * Return: true if the port uses a GID address to identify devices on the
2666 * network.
30a74ef4 2667 */
5ede9289 2668static inline bool rdma_cap_af_ib(const struct ib_device *device, u8 port_num)
30a74ef4 2669{
f9b22e35 2670 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_AF_IB;
30a74ef4
MW
2671}
2672
227128fc
MW
2673/**
2674 * rdma_cap_eth_ah - Check if the port of device has the capability
296ec009
MW
2675 * Ethernet Address Handle.
2676 * @device: Device to check
2677 * @port_num: Port number to check
227128fc 2678 *
296ec009
MW
2679 * RoCE is InfiniBand over Ethernet, and it uses a well defined technique
2680 * to fabricate GIDs over Ethernet/IP specific addresses native to the
2681 * port. Normally, packet headers are generated by the sending host
2682 * adapter, but when sending connectionless datagrams, we must manually
2683 * inject the proper headers for the fabric we are communicating over.
227128fc 2684 *
296ec009
MW
2685 * Return: true if we are running as a RoCE port and must force the
2686 * addition of a Global Route Header built from our Ethernet Address
2687 * Handle into our header list for connectionless packets.
227128fc 2688 */
5ede9289 2689static inline bool rdma_cap_eth_ah(const struct ib_device *device, u8 port_num)
227128fc 2690{
f9b22e35 2691 return device->port_immutable[port_num].core_cap_flags & RDMA_CORE_CAP_ETH_AH;
227128fc
MW
2692}
2693
94d595c5
DC
2694/**
2695 * rdma_cap_opa_ah - Check if the port of device supports
2696 * OPA Address handles
2697 * @device: Device to check
2698 * @port_num: Port number to check
2699 *
2700 * Return: true if we are running on an OPA device which supports
2701 * the extended OPA addressing.
2702 */
2703static inline bool rdma_cap_opa_ah(struct ib_device *device, u8 port_num)
2704{
2705 return (device->port_immutable[port_num].core_cap_flags &
2706 RDMA_CORE_CAP_OPA_AH) == RDMA_CORE_CAP_OPA_AH;
2707}
2708
337877a4
IW
2709/**
2710 * rdma_max_mad_size - Return the max MAD size required by this RDMA Port.
2711 *
2712 * @device: Device
2713 * @port_num: Port number
2714 *
2715 * This MAD size includes the MAD headers and MAD payload. No other headers
2716 * are included.
2717 *
2718 * Return the max MAD size required by the Port. Will return 0 if the port
2719 * does not support MADs
2720 */
2721static inline size_t rdma_max_mad_size(const struct ib_device *device, u8 port_num)
2722{
2723 return device->port_immutable[port_num].max_mad_size;
2724}
2725
03db3a2d
MB
2726/**
2727 * rdma_cap_roce_gid_table - Check if the port of device uses roce_gid_table
2728 * @device: Device to check
2729 * @port_num: Port number to check
2730 *
2731 * RoCE GID table mechanism manages the various GIDs for a device.
2732 *
2733 * NOTE: if allocating the port's GID table has failed, this call will still
2734 * return true, but any RoCE GID table API will fail.
2735 *
2736 * Return: true if the port uses RoCE GID table mechanism in order to manage
2737 * its GIDs.
2738 */
2739static inline bool rdma_cap_roce_gid_table(const struct ib_device *device,
2740 u8 port_num)
2741{
2742 return rdma_protocol_roce(device, port_num) &&
2743 device->add_gid && device->del_gid;
2744}
2745
002516ed
CH
2746/*
2747 * Check if the device supports READ W/ INVALIDATE.
2748 */
2749static inline bool rdma_cap_read_inv(struct ib_device *dev, u32 port_num)
2750{
2751 /*
2752 * iWarp drivers must support READ W/ INVALIDATE. No other protocol
2753 * has support for it yet.
2754 */
2755 return rdma_protocol_iwarp(dev, port_num);
2756}
2757
1da177e4 2758int ib_query_gid(struct ib_device *device,
55ee3ab2
MB
2759 u8 port_num, int index, union ib_gid *gid,
2760 struct ib_gid_attr *attr);
1da177e4 2761
50174a7f
EC
2762int ib_set_vf_link_state(struct ib_device *device, int vf, u8 port,
2763 int state);
2764int ib_get_vf_config(struct ib_device *device, int vf, u8 port,
2765 struct ifla_vf_info *info);
2766int ib_get_vf_stats(struct ib_device *device, int vf, u8 port,
2767 struct ifla_vf_stats *stats);
2768int ib_set_vf_guid(struct ib_device *device, int vf, u8 port, u64 guid,
2769 int type);
2770
1da177e4
LT
2771int ib_query_pkey(struct ib_device *device,
2772 u8 port_num, u16 index, u16 *pkey);
2773
2774int ib_modify_device(struct ib_device *device,
2775 int device_modify_mask,
2776 struct ib_device_modify *device_modify);
2777
2778int ib_modify_port(struct ib_device *device,
2779 u8 port_num, int port_modify_mask,
2780 struct ib_port_modify *port_modify);
2781
5eb620c8 2782int ib_find_gid(struct ib_device *device, union ib_gid *gid,
b39ffa1d
MB
2783 enum ib_gid_type gid_type, struct net_device *ndev,
2784 u8 *port_num, u16 *index);
5eb620c8
YE
2785
2786int ib_find_pkey(struct ib_device *device,
2787 u8 port_num, u16 pkey, u16 *index);
2788
ed082d36
CH
2789enum ib_pd_flags {
2790 /*
2791 * Create a memory registration for all memory in the system and place
2792 * the rkey for it into pd->unsafe_global_rkey. This can be used by
2793 * ULPs to avoid the overhead of dynamic MRs.
2794 *
2795 * This flag is generally considered unsafe and must only be used in
2796 * extremly trusted environments. Every use of it will log a warning
2797 * in the kernel log.
2798 */
2799 IB_PD_UNSAFE_GLOBAL_RKEY = 0x01,
2800};
1da177e4 2801
ed082d36
CH
2802struct ib_pd *__ib_alloc_pd(struct ib_device *device, unsigned int flags,
2803 const char *caller);
2804#define ib_alloc_pd(device, flags) \
2805 __ib_alloc_pd((device), (flags), __func__)
7dd78647 2806void ib_dealloc_pd(struct ib_pd *pd);
1da177e4
LT
2807
2808/**
0a18cfe4 2809 * rdma_create_ah - Creates an address handle for the given address vector.
1da177e4
LT
2810 * @pd: The protection domain associated with the address handle.
2811 * @ah_attr: The attributes of the address vector.
2812 *
2813 * The address handle is used to reference a local or global destination
2814 * in all UD QP post sends.
2815 */
0a18cfe4 2816struct ib_ah *rdma_create_ah(struct ib_pd *pd, struct rdma_ah_attr *ah_attr);
1da177e4 2817
850d8fd7
MS
2818/**
2819 * ib_get_gids_from_rdma_hdr - Get sgid and dgid from GRH or IPv4 header
2820 * work completion.
2821 * @hdr: the L3 header to parse
2822 * @net_type: type of header to parse
2823 * @sgid: place to store source gid
2824 * @dgid: place to store destination gid
2825 */
2826int ib_get_gids_from_rdma_hdr(const union rdma_network_hdr *hdr,
2827 enum rdma_network_type net_type,
2828 union ib_gid *sgid, union ib_gid *dgid);
2829
2830/**
2831 * ib_get_rdma_header_version - Get the header version
2832 * @hdr: the L3 header to parse
2833 */
2834int ib_get_rdma_header_version(const union rdma_network_hdr *hdr);
2835
4e00d694
SH
2836/**
2837 * ib_init_ah_from_wc - Initializes address handle attributes from a
2838 * work completion.
2839 * @device: Device on which the received message arrived.
2840 * @port_num: Port on which the received message arrived.
2841 * @wc: Work completion associated with the received message.
2842 * @grh: References the received global route header. This parameter is
2843 * ignored unless the work completion indicates that the GRH is valid.
2844 * @ah_attr: Returned attributes that can be used when creating an address
2845 * handle for replying to the message.
2846 */
73cdaaee
IW
2847int ib_init_ah_from_wc(struct ib_device *device, u8 port_num,
2848 const struct ib_wc *wc, const struct ib_grh *grh,
90898850 2849 struct rdma_ah_attr *ah_attr);
4e00d694 2850
513789ed
HR
2851/**
2852 * ib_create_ah_from_wc - Creates an address handle associated with the
2853 * sender of the specified work completion.
2854 * @pd: The protection domain associated with the address handle.
2855 * @wc: Work completion information associated with a received message.
2856 * @grh: References the received global route header. This parameter is
2857 * ignored unless the work completion indicates that the GRH is valid.
2858 * @port_num: The outbound port number to associate with the address.
2859 *
2860 * The address handle is used to reference a local or global destination
2861 * in all UD QP post sends.
2862 */
73cdaaee
IW
2863struct ib_ah *ib_create_ah_from_wc(struct ib_pd *pd, const struct ib_wc *wc,
2864 const struct ib_grh *grh, u8 port_num);
513789ed 2865
1da177e4 2866/**
67b985b6 2867 * rdma_modify_ah - Modifies the address vector associated with an address
1da177e4
LT
2868 * handle.
2869 * @ah: The address handle to modify.
2870 * @ah_attr: The new address vector attributes to associate with the
2871 * address handle.
2872 */
67b985b6 2873int rdma_modify_ah(struct ib_ah *ah, struct rdma_ah_attr *ah_attr);
1da177e4
LT
2874
2875/**
bfbfd661 2876 * rdma_query_ah - Queries the address vector associated with an address
1da177e4
LT
2877 * handle.
2878 * @ah: The address handle to query.
2879 * @ah_attr: The address vector attributes associated with the address
2880 * handle.
2881 */
bfbfd661 2882int rdma_query_ah(struct ib_ah *ah, struct rdma_ah_attr *ah_attr);
1da177e4
LT
2883
2884/**
36523159 2885 * rdma_destroy_ah - Destroys an address handle.
1da177e4
LT
2886 * @ah: The address handle to destroy.
2887 */
36523159 2888int rdma_destroy_ah(struct ib_ah *ah);
1da177e4 2889
d41fcc67
RD
2890/**
2891 * ib_create_srq - Creates a SRQ associated with the specified protection
2892 * domain.
2893 * @pd: The protection domain associated with the SRQ.
abb6e9ba
DB
2894 * @srq_init_attr: A list of initial attributes required to create the
2895 * SRQ. If SRQ creation succeeds, then the attributes are updated to
2896 * the actual capabilities of the created SRQ.
d41fcc67
RD
2897 *
2898 * srq_attr->max_wr and srq_attr->max_sge are read the determine the
2899 * requested size of the SRQ, and set to the actual values allocated
2900 * on return. If ib_create_srq() succeeds, then max_wr and max_sge
2901 * will always be at least as large as the requested values.
2902 */
2903struct ib_srq *ib_create_srq(struct ib_pd *pd,
2904 struct ib_srq_init_attr *srq_init_attr);
2905
2906/**
2907 * ib_modify_srq - Modifies the attributes for the specified SRQ.
2908 * @srq: The SRQ to modify.
2909 * @srq_attr: On input, specifies the SRQ attributes to modify. On output,
2910 * the current values of selected SRQ attributes are returned.
2911 * @srq_attr_mask: A bit-mask used to specify which attributes of the SRQ
2912 * are being modified.
2913 *
2914 * The mask may contain IB_SRQ_MAX_WR to resize the SRQ and/or
2915 * IB_SRQ_LIMIT to set the SRQ's limit and request notification when
2916 * the number of receives queued drops below the limit.
2917 */
2918int ib_modify_srq(struct ib_srq *srq,
2919 struct ib_srq_attr *srq_attr,
2920 enum ib_srq_attr_mask srq_attr_mask);
2921
2922/**
2923 * ib_query_srq - Returns the attribute list and current values for the
2924 * specified SRQ.
2925 * @srq: The SRQ to query.
2926 * @srq_attr: The attributes of the specified SRQ.
2927 */
2928int ib_query_srq(struct ib_srq *srq,
2929 struct ib_srq_attr *srq_attr);
2930
2931/**
2932 * ib_destroy_srq - Destroys the specified SRQ.
2933 * @srq: The SRQ to destroy.
2934 */
2935int ib_destroy_srq(struct ib_srq *srq);
2936
2937/**
2938 * ib_post_srq_recv - Posts a list of work requests to the specified SRQ.
2939 * @srq: The SRQ to post the work request on.
2940 * @recv_wr: A list of work requests to post on the receive queue.
2941 * @bad_recv_wr: On an immediate failure, this parameter will reference
2942 * the work request that failed to be posted on the QP.
2943 */
2944static inline int ib_post_srq_recv(struct ib_srq *srq,
2945 struct ib_recv_wr *recv_wr,
2946 struct ib_recv_wr **bad_recv_wr)
2947{
2948 return srq->device->post_srq_recv(srq, recv_wr, bad_recv_wr);
2949}
2950
1da177e4
LT
2951/**
2952 * ib_create_qp - Creates a QP associated with the specified protection
2953 * domain.
2954 * @pd: The protection domain associated with the QP.
abb6e9ba
DB
2955 * @qp_init_attr: A list of initial attributes required to create the
2956 * QP. If QP creation succeeds, then the attributes are updated to
2957 * the actual capabilities of the created QP.
1da177e4
LT
2958 */
2959struct ib_qp *ib_create_qp(struct ib_pd *pd,
2960 struct ib_qp_init_attr *qp_init_attr);
2961
a512c2fb
PP
2962/**
2963 * ib_modify_qp_with_udata - Modifies the attributes for the specified QP.
2964 * @qp: The QP to modify.
2965 * @attr: On input, specifies the QP attributes to modify. On output,
2966 * the current values of selected QP attributes are returned.
2967 * @attr_mask: A bit-mask used to specify which attributes of the QP
2968 * are being modified.
2969 * @udata: pointer to user's input output buffer information
2970 * are being modified.
2971 * It returns 0 on success and returns appropriate error code on error.
2972 */
2973int ib_modify_qp_with_udata(struct ib_qp *qp,
2974 struct ib_qp_attr *attr,
2975 int attr_mask,
2976 struct ib_udata *udata);
2977
1da177e4
LT
2978/**
2979 * ib_modify_qp - Modifies the attributes for the specified QP and then
2980 * transitions the QP to the given state.
2981 * @qp: The QP to modify.
2982 * @qp_attr: On input, specifies the QP attributes to modify. On output,
2983 * the current values of selected QP attributes are returned.
2984 * @qp_attr_mask: A bit-mask used to specify which attributes of the QP
2985 * are being modified.
2986 */
2987int ib_modify_qp(struct ib_qp *qp,
2988 struct ib_qp_attr *qp_attr,
2989 int qp_attr_mask);
2990
2991/**
2992 * ib_query_qp - Returns the attribute list and current values for the
2993 * specified QP.
2994 * @qp: The QP to query.
2995 * @qp_attr: The attributes of the specified QP.
2996 * @qp_attr_mask: A bit-mask used to select specific attributes to query.
2997 * @qp_init_attr: Additional attributes of the selected QP.
2998 *
2999 * The qp_attr_mask may be used to limit the query to gathering only the
3000 * selected attributes.
3001 */
3002int ib_query_qp(struct ib_qp *qp,
3003 struct ib_qp_attr *qp_attr,
3004 int qp_attr_mask,
3005 struct ib_qp_init_attr *qp_init_attr);
3006
3007/**
3008 * ib_destroy_qp - Destroys the specified QP.
3009 * @qp: The QP to destroy.
3010 */
3011int ib_destroy_qp(struct ib_qp *qp);
3012
d3d72d90 3013/**
0e0ec7e0
SH
3014 * ib_open_qp - Obtain a reference to an existing sharable QP.
3015 * @xrcd - XRC domain
3016 * @qp_open_attr: Attributes identifying the QP to open.
3017 *
3018 * Returns a reference to a sharable QP.
3019 */
3020struct ib_qp *ib_open_qp(struct ib_xrcd *xrcd,
3021 struct ib_qp_open_attr *qp_open_attr);
3022
3023/**
3024 * ib_close_qp - Release an external reference to a QP.
d3d72d90
SH
3025 * @qp: The QP handle to release
3026 *
0e0ec7e0
SH
3027 * The opened QP handle is released by the caller. The underlying
3028 * shared QP is not destroyed until all internal references are released.
d3d72d90 3029 */
0e0ec7e0 3030int ib_close_qp(struct ib_qp *qp);
d3d72d90 3031
1da177e4
LT
3032/**
3033 * ib_post_send - Posts a list of work requests to the send queue of
3034 * the specified QP.
3035 * @qp: The QP to post the work request on.
3036 * @send_wr: A list of work requests to post on the send queue.
3037 * @bad_send_wr: On an immediate failure, this parameter will reference
3038 * the work request that failed to be posted on the QP.
55464d46
BVA
3039 *
3040 * While IBA Vol. 1 section 11.4.1.1 specifies that if an immediate
3041 * error is returned, the QP state shall not be affected,
3042 * ib_post_send() will return an immediate error after queueing any
3043 * earlier work requests in the list.
1da177e4
LT
3044 */
3045static inline int ib_post_send(struct ib_qp *qp,
3046 struct ib_send_wr *send_wr,
3047 struct ib_send_wr **bad_send_wr)
3048{
3049 return qp->device->post_send(qp, send_wr, bad_send_wr);
3050}
3051
3052/**
3053 * ib_post_recv - Posts a list of work requests to the receive queue of
3054 * the specified QP.
3055 * @qp: The QP to post the work request on.
3056 * @recv_wr: A list of work requests to post on the receive queue.
3057 * @bad_recv_wr: On an immediate failure, this parameter will reference
3058 * the work request that failed to be posted on the QP.
3059 */
3060static inline int ib_post_recv(struct ib_qp *qp,
3061 struct ib_recv_wr *recv_wr,
3062 struct ib_recv_wr **bad_recv_wr)
3063{
3064 return qp->device->post_recv(qp, recv_wr, bad_recv_wr);
3065}
3066
14d3a3b2
CH
3067struct ib_cq *ib_alloc_cq(struct ib_device *dev, void *private,
3068 int nr_cqe, int comp_vector, enum ib_poll_context poll_ctx);
3069void ib_free_cq(struct ib_cq *cq);
3070int ib_process_cq_direct(struct ib_cq *cq, int budget);
3071
1da177e4
LT
3072/**
3073 * ib_create_cq - Creates a CQ on the specified device.
3074 * @device: The device on which to create the CQ.
3075 * @comp_handler: A user-specified callback that is invoked when a
3076 * completion event occurs on the CQ.
3077 * @event_handler: A user-specified callback that is invoked when an
3078 * asynchronous event not associated with a completion occurs on the CQ.
3079 * @cq_context: Context associated with the CQ returned to the user via
3080 * the associated completion and event handlers.
8e37210b 3081 * @cq_attr: The attributes the CQ should be created upon.
1da177e4
LT
3082 *
3083 * Users can examine the cq structure to determine the actual CQ size.
3084 */
3085struct ib_cq *ib_create_cq(struct ib_device *device,
3086 ib_comp_handler comp_handler,
3087 void (*event_handler)(struct ib_event *, void *),
8e37210b
MB
3088 void *cq_context,
3089 const struct ib_cq_init_attr *cq_attr);
1da177e4
LT
3090
3091/**
3092 * ib_resize_cq - Modifies the capacity of the CQ.
3093 * @cq: The CQ to resize.
3094 * @cqe: The minimum size of the CQ.
3095 *
3096 * Users can examine the cq structure to determine the actual CQ size.
3097 */
3098int ib_resize_cq(struct ib_cq *cq, int cqe);
3099
2dd57162
EC
3100/**
3101 * ib_modify_cq - Modifies moderation params of the CQ
3102 * @cq: The CQ to modify.
3103 * @cq_count: number of CQEs that will trigger an event
3104 * @cq_period: max period of time in usec before triggering an event
3105 *
3106 */
3107int ib_modify_cq(struct ib_cq *cq, u16 cq_count, u16 cq_period);
3108
1da177e4
LT
3109/**
3110 * ib_destroy_cq - Destroys the specified CQ.
3111 * @cq: The CQ to destroy.
3112 */
3113int ib_destroy_cq(struct ib_cq *cq);
3114
3115/**
3116 * ib_poll_cq - poll a CQ for completion(s)
3117 * @cq:the CQ being polled
3118 * @num_entries:maximum number of completions to return
3119 * @wc:array of at least @num_entries &struct ib_wc where completions
3120 * will be returned
3121 *
3122 * Poll a CQ for (possibly multiple) completions. If the return value
3123 * is < 0, an error occurred. If the return value is >= 0, it is the
3124 * number of completions returned. If the return value is
3125 * non-negative and < num_entries, then the CQ was emptied.
3126 */
3127static inline int ib_poll_cq(struct ib_cq *cq, int num_entries,
3128 struct ib_wc *wc)
3129{
3130 return cq->device->poll_cq(cq, num_entries, wc);
3131}
3132
3133/**
3134 * ib_peek_cq - Returns the number of unreaped completions currently
3135 * on the specified CQ.
3136 * @cq: The CQ to peek.
3137 * @wc_cnt: A minimum number of unreaped completions to check for.
3138 *
3139 * If the number of unreaped completions is greater than or equal to wc_cnt,
3140 * this function returns wc_cnt, otherwise, it returns the actual number of
3141 * unreaped completions.
3142 */
3143int ib_peek_cq(struct ib_cq *cq, int wc_cnt);
3144
3145/**
3146 * ib_req_notify_cq - Request completion notification on a CQ.
3147 * @cq: The CQ to generate an event for.
ed23a727
RD
3148 * @flags:
3149 * Must contain exactly one of %IB_CQ_SOLICITED or %IB_CQ_NEXT_COMP
3150 * to request an event on the next solicited event or next work
3151 * completion at any type, respectively. %IB_CQ_REPORT_MISSED_EVENTS
3152 * may also be |ed in to request a hint about missed events, as
3153 * described below.
3154 *
3155 * Return Value:
3156 * < 0 means an error occurred while requesting notification
3157 * == 0 means notification was requested successfully, and if
3158 * IB_CQ_REPORT_MISSED_EVENTS was passed in, then no events
3159 * were missed and it is safe to wait for another event. In
3160 * this case is it guaranteed that any work completions added
3161 * to the CQ since the last CQ poll will trigger a completion
3162 * notification event.
3163 * > 0 is only returned if IB_CQ_REPORT_MISSED_EVENTS was passed
3164 * in. It means that the consumer must poll the CQ again to
3165 * make sure it is empty to avoid missing an event because of a
3166 * race between requesting notification and an entry being
3167 * added to the CQ. This return value means it is possible
3168 * (but not guaranteed) that a work completion has been added
3169 * to the CQ since the last poll without triggering a
3170 * completion notification event.
1da177e4
LT
3171 */
3172static inline int ib_req_notify_cq(struct ib_cq *cq,
ed23a727 3173 enum ib_cq_notify_flags flags)
1da177e4 3174{
ed23a727 3175 return cq->device->req_notify_cq(cq, flags);
1da177e4
LT
3176}
3177
3178/**
3179 * ib_req_ncomp_notif - Request completion notification when there are
3180 * at least the specified number of unreaped completions on the CQ.
3181 * @cq: The CQ to generate an event for.
3182 * @wc_cnt: The number of unreaped completions that should be on the
3183 * CQ before an event is generated.
3184 */
3185static inline int ib_req_ncomp_notif(struct ib_cq *cq, int wc_cnt)
3186{
3187 return cq->device->req_ncomp_notif ?
3188 cq->device->req_ncomp_notif(cq, wc_cnt) :
3189 -ENOSYS;
3190}
3191
9b513090
RC
3192/**
3193 * ib_dma_mapping_error - check a DMA addr for error
3194 * @dev: The device for which the dma_addr was created
3195 * @dma_addr: The DMA address to check
3196 */
3197static inline int ib_dma_mapping_error(struct ib_device *dev, u64 dma_addr)
3198{
0957c29f 3199 return dma_mapping_error(dev->dma_device, dma_addr);
9b513090
RC
3200}
3201
3202/**
3203 * ib_dma_map_single - Map a kernel virtual address to DMA address
3204 * @dev: The device for which the dma_addr is to be created
3205 * @cpu_addr: The kernel virtual address
3206 * @size: The size of the region in bytes
3207 * @direction: The direction of the DMA
3208 */
3209static inline u64 ib_dma_map_single(struct ib_device *dev,
3210 void *cpu_addr, size_t size,
3211 enum dma_data_direction direction)
3212{
0957c29f 3213 return dma_map_single(dev->dma_device, cpu_addr, size, direction);
9b513090
RC
3214}
3215
3216/**
3217 * ib_dma_unmap_single - Destroy a mapping created by ib_dma_map_single()
3218 * @dev: The device for which the DMA address was created
3219 * @addr: The DMA address
3220 * @size: The size of the region in bytes
3221 * @direction: The direction of the DMA
3222 */
3223static inline void ib_dma_unmap_single(struct ib_device *dev,
3224 u64 addr, size_t size,
3225 enum dma_data_direction direction)
3226{
0957c29f 3227 dma_unmap_single(dev->dma_device, addr, size, direction);
cb9fbc5c
AK
3228}
3229
9b513090
RC
3230/**
3231 * ib_dma_map_page - Map a physical page to DMA address
3232 * @dev: The device for which the dma_addr is to be created
3233 * @page: The page to be mapped
3234 * @offset: The offset within the page
3235 * @size: The size of the region in bytes
3236 * @direction: The direction of the DMA
3237 */
3238static inline u64 ib_dma_map_page(struct ib_device *dev,
3239 struct page *page,
3240 unsigned long offset,
3241 size_t size,
3242 enum dma_data_direction direction)
3243{
0957c29f 3244 return dma_map_page(dev->dma_device, page, offset, size, direction);
9b513090
RC
3245}
3246
3247/**
3248 * ib_dma_unmap_page - Destroy a mapping created by ib_dma_map_page()
3249 * @dev: The device for which the DMA address was created
3250 * @addr: The DMA address
3251 * @size: The size of the region in bytes
3252 * @direction: The direction of the DMA
3253 */
3254static inline void ib_dma_unmap_page(struct ib_device *dev,
3255 u64 addr, size_t size,
3256 enum dma_data_direction direction)
3257{
0957c29f 3258 dma_unmap_page(dev->dma_device, addr, size, direction);
9b513090
RC
3259}
3260
3261/**
3262 * ib_dma_map_sg - Map a scatter/gather list to DMA addresses
3263 * @dev: The device for which the DMA addresses are to be created
3264 * @sg: The array of scatter/gather entries
3265 * @nents: The number of scatter/gather entries
3266 * @direction: The direction of the DMA
3267 */
3268static inline int ib_dma_map_sg(struct ib_device *dev,
3269 struct scatterlist *sg, int nents,
3270 enum dma_data_direction direction)
3271{
0957c29f 3272 return dma_map_sg(dev->dma_device, sg, nents, direction);
9b513090
RC
3273}
3274
3275/**
3276 * ib_dma_unmap_sg - Unmap a scatter/gather list of DMA addresses
3277 * @dev: The device for which the DMA addresses were created
3278 * @sg: The array of scatter/gather entries
3279 * @nents: The number of scatter/gather entries
3280 * @direction: The direction of the DMA
3281 */
3282static inline void ib_dma_unmap_sg(struct ib_device *dev,
3283 struct scatterlist *sg, int nents,
3284 enum dma_data_direction direction)
3285{
0957c29f 3286 dma_unmap_sg(dev->dma_device, sg, nents, direction);
9b513090
RC
3287}
3288
cb9fbc5c
AK
3289static inline int ib_dma_map_sg_attrs(struct ib_device *dev,
3290 struct scatterlist *sg, int nents,
3291 enum dma_data_direction direction,
00085f1e 3292 unsigned long dma_attrs)
cb9fbc5c 3293{
0957c29f
BVA
3294 return dma_map_sg_attrs(dev->dma_device, sg, nents, direction,
3295 dma_attrs);
cb9fbc5c
AK
3296}
3297
3298static inline void ib_dma_unmap_sg_attrs(struct ib_device *dev,
3299 struct scatterlist *sg, int nents,
3300 enum dma_data_direction direction,
00085f1e 3301 unsigned long dma_attrs)
cb9fbc5c 3302{
0957c29f 3303 dma_unmap_sg_attrs(dev->dma_device, sg, nents, direction, dma_attrs);
cb9fbc5c 3304}
9b513090
RC
3305/**
3306 * ib_sg_dma_address - Return the DMA address from a scatter/gather entry
3307 * @dev: The device for which the DMA addresses were created
3308 * @sg: The scatter/gather entry
ea58a595
MM
3309 *
3310 * Note: this function is obsolete. To do: change all occurrences of
3311 * ib_sg_dma_address() into sg_dma_address().
9b513090
RC
3312 */
3313static inline u64 ib_sg_dma_address(struct ib_device *dev,
3314 struct scatterlist *sg)
3315{
d1998ef3 3316 return sg_dma_address(sg);
9b513090
RC
3317}
3318
3319/**
3320 * ib_sg_dma_len - Return the DMA length from a scatter/gather entry
3321 * @dev: The device for which the DMA addresses were created
3322 * @sg: The scatter/gather entry
ea58a595
MM
3323 *
3324 * Note: this function is obsolete. To do: change all occurrences of
3325 * ib_sg_dma_len() into sg_dma_len().
9b513090
RC
3326 */
3327static inline unsigned int ib_sg_dma_len(struct ib_device *dev,
3328 struct scatterlist *sg)
3329{
d1998ef3 3330 return sg_dma_len(sg);
9b513090
RC
3331}
3332
3333/**
3334 * ib_dma_sync_single_for_cpu - Prepare DMA region to be accessed by CPU
3335 * @dev: The device for which the DMA address was created
3336 * @addr: The DMA address
3337 * @size: The size of the region in bytes
3338 * @dir: The direction of the DMA
3339 */
3340static inline void ib_dma_sync_single_for_cpu(struct ib_device *dev,
3341 u64 addr,
3342 size_t size,
3343 enum dma_data_direction dir)
3344{
0957c29f 3345 dma_sync_single_for_cpu(dev->dma_device, addr, size, dir);
9b513090
RC
3346}
3347
3348/**
3349 * ib_dma_sync_single_for_device - Prepare DMA region to be accessed by device
3350 * @dev: The device for which the DMA address was created
3351 * @addr: The DMA address
3352 * @size: The size of the region in bytes
3353 * @dir: The direction of the DMA
3354 */
3355static inline void ib_dma_sync_single_for_device(struct ib_device *dev,
3356 u64 addr,
3357 size_t size,
3358 enum dma_data_direction dir)
3359{
0957c29f 3360 dma_sync_single_for_device(dev->dma_device, addr, size, dir);
9b513090
RC
3361}
3362
3363/**
3364 * ib_dma_alloc_coherent - Allocate memory and map it for DMA
3365 * @dev: The device for which the DMA address is requested
3366 * @size: The size of the region to allocate in bytes
3367 * @dma_handle: A pointer for returning the DMA address of the region
3368 * @flag: memory allocator flags
3369 */
3370static inline void *ib_dma_alloc_coherent(struct ib_device *dev,
3371 size_t size,
d43dbacf 3372 dma_addr_t *dma_handle,
9b513090
RC
3373 gfp_t flag)
3374{
0957c29f 3375 return dma_alloc_coherent(dev->dma_device, size, dma_handle, flag);
9b513090
RC
3376}
3377
3378/**
3379 * ib_dma_free_coherent - Free memory allocated by ib_dma_alloc_coherent()
3380 * @dev: The device for which the DMA addresses were allocated
3381 * @size: The size of the region
3382 * @cpu_addr: the address returned by ib_dma_alloc_coherent()
3383 * @dma_handle: the DMA address returned by ib_dma_alloc_coherent()
3384 */
3385static inline void ib_dma_free_coherent(struct ib_device *dev,
3386 size_t size, void *cpu_addr,
d43dbacf 3387 dma_addr_t dma_handle)
9b513090 3388{
0957c29f 3389 dma_free_coherent(dev->dma_device, size, cpu_addr, dma_handle);
9b513090
RC
3390}
3391
1da177e4
LT
3392/**
3393 * ib_dereg_mr - Deregisters a memory region and removes it from the
3394 * HCA translation table.
3395 * @mr: The memory region to deregister.
7083e42e
SM
3396 *
3397 * This function can fail, if the memory region has memory windows bound to it.
1da177e4
LT
3398 */
3399int ib_dereg_mr(struct ib_mr *mr);
3400
9bee178b
SG
3401struct ib_mr *ib_alloc_mr(struct ib_pd *pd,
3402 enum ib_mr_type mr_type,
3403 u32 max_num_sg);
00f7ec36 3404
00f7ec36
SW
3405/**
3406 * ib_update_fast_reg_key - updates the key portion of the fast_reg MR
3407 * R_Key and L_Key.
3408 * @mr - struct ib_mr pointer to be updated.
3409 * @newkey - new key to be used.
3410 */
3411static inline void ib_update_fast_reg_key(struct ib_mr *mr, u8 newkey)
3412{
3413 mr->lkey = (mr->lkey & 0xffffff00) | newkey;
3414 mr->rkey = (mr->rkey & 0xffffff00) | newkey;
3415}
3416
7083e42e
SM
3417/**
3418 * ib_inc_rkey - increments the key portion of the given rkey. Can be used
3419 * for calculating a new rkey for type 2 memory windows.
3420 * @rkey - the rkey to increment.
3421 */
3422static inline u32 ib_inc_rkey(u32 rkey)
3423{
3424 const u32 mask = 0x000000ff;
3425 return ((rkey + 1) & mask) | (rkey & ~mask);
3426}
3427
1da177e4
LT
3428/**
3429 * ib_alloc_fmr - Allocates a unmapped fast memory region.
3430 * @pd: The protection domain associated with the unmapped region.
3431 * @mr_access_flags: Specifies the memory access rights.
3432 * @fmr_attr: Attributes of the unmapped region.
3433 *
3434 * A fast memory region must be mapped before it can be used as part of
3435 * a work request.
3436 */
3437struct ib_fmr *ib_alloc_fmr(struct ib_pd *pd,
3438 int mr_access_flags,
3439 struct ib_fmr_attr *fmr_attr);
3440
3441/**
3442 * ib_map_phys_fmr - Maps a list of physical pages to a fast memory region.
3443 * @fmr: The fast memory region to associate with the pages.
3444 * @page_list: An array of physical pages to map to the fast memory region.
3445 * @list_len: The number of pages in page_list.
3446 * @iova: The I/O virtual address to use with the mapped region.
3447 */
3448static inline int ib_map_phys_fmr(struct ib_fmr *fmr,
3449 u64 *page_list, int list_len,
3450 u64 iova)
3451{
3452 return fmr->device->map_phys_fmr(fmr, page_list, list_len, iova);
3453}
3454
3455/**
3456 * ib_unmap_fmr - Removes the mapping from a list of fast memory regions.
3457 * @fmr_list: A linked list of fast memory regions to unmap.
3458 */
3459int ib_unmap_fmr(struct list_head *fmr_list);
3460
3461/**
3462 * ib_dealloc_fmr - Deallocates a fast memory region.
3463 * @fmr: The fast memory region to deallocate.
3464 */
3465int ib_dealloc_fmr(struct ib_fmr *fmr);
3466
3467/**
3468 * ib_attach_mcast - Attaches the specified QP to a multicast group.
3469 * @qp: QP to attach to the multicast group. The QP must be type
3470 * IB_QPT_UD.
3471 * @gid: Multicast group GID.
3472 * @lid: Multicast group LID in host byte order.
3473 *
3474 * In order to send and receive multicast packets, subnet
3475 * administration must have created the multicast group and configured
3476 * the fabric appropriately. The port associated with the specified
3477 * QP must also be a member of the multicast group.
3478 */
3479int ib_attach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid);
3480
3481/**
3482 * ib_detach_mcast - Detaches the specified QP from a multicast group.
3483 * @qp: QP to detach from the multicast group.
3484 * @gid: Multicast group GID.
3485 * @lid: Multicast group LID in host byte order.
3486 */
3487int ib_detach_mcast(struct ib_qp *qp, union ib_gid *gid, u16 lid);
3488
59991f94
SH
3489/**
3490 * ib_alloc_xrcd - Allocates an XRC domain.
3491 * @device: The device on which to allocate the XRC domain.
3492 */
3493struct ib_xrcd *ib_alloc_xrcd(struct ib_device *device);
3494
3495/**
3496 * ib_dealloc_xrcd - Deallocates an XRC domain.
3497 * @xrcd: The XRC domain to deallocate.
3498 */
3499int ib_dealloc_xrcd(struct ib_xrcd *xrcd);
3500
319a441d
HHZ
3501struct ib_flow *ib_create_flow(struct ib_qp *qp,
3502 struct ib_flow_attr *flow_attr, int domain);
3503int ib_destroy_flow(struct ib_flow *flow_id);
3504
1c636f80
EC
3505static inline int ib_check_mr_access(int flags)
3506{
3507 /*
3508 * Local write permission is required if remote write or
3509 * remote atomic permission is also requested.
3510 */
3511 if (flags & (IB_ACCESS_REMOTE_ATOMIC | IB_ACCESS_REMOTE_WRITE) &&
3512 !(flags & IB_ACCESS_LOCAL_WRITE))
3513 return -EINVAL;
3514
3515 return 0;
3516}
3517
1b01d335
SG
3518/**
3519 * ib_check_mr_status: lightweight check of MR status.
3520 * This routine may provide status checks on a selected
3521 * ib_mr. first use is for signature status check.
3522 *
3523 * @mr: A memory region.
3524 * @check_mask: Bitmask of which checks to perform from
3525 * ib_mr_status_check enumeration.
3526 * @mr_status: The container of relevant status checks.
3527 * failed checks will be indicated in the status bitmask
3528 * and the relevant info shall be in the error item.
3529 */
3530int ib_check_mr_status(struct ib_mr *mr, u32 check_mask,
3531 struct ib_mr_status *mr_status);
3532
9268f72d
YK
3533struct net_device *ib_get_net_dev_by_params(struct ib_device *dev, u8 port,
3534 u16 pkey, const union ib_gid *gid,
3535 const struct sockaddr *addr);
5fd251c8
YH
3536struct ib_wq *ib_create_wq(struct ib_pd *pd,
3537 struct ib_wq_init_attr *init_attr);
3538int ib_destroy_wq(struct ib_wq *wq);
3539int ib_modify_wq(struct ib_wq *wq, struct ib_wq_attr *attr,
3540 u32 wq_attr_mask);
6d39786b
YH
3541struct ib_rwq_ind_table *ib_create_rwq_ind_table(struct ib_device *device,
3542 struct ib_rwq_ind_table_init_attr*
3543 wq_ind_table_init_attr);
3544int ib_destroy_rwq_ind_table(struct ib_rwq_ind_table *wq_ind_table);
9268f72d 3545
ff2ba993 3546int ib_map_mr_sg(struct ib_mr *mr, struct scatterlist *sg, int sg_nents,
9aa8b321 3547 unsigned int *sg_offset, unsigned int page_size);
4c67e2bf
SG
3548
3549static inline int
ff2ba993 3550ib_map_mr_sg_zbva(struct ib_mr *mr, struct scatterlist *sg, int sg_nents,
9aa8b321 3551 unsigned int *sg_offset, unsigned int page_size)
4c67e2bf
SG
3552{
3553 int n;
3554
ff2ba993 3555 n = ib_map_mr_sg(mr, sg, sg_nents, sg_offset, page_size);
4c67e2bf
SG
3556 mr->iova = 0;
3557
3558 return n;
3559}
3560
ff2ba993 3561int ib_sg_to_pages(struct ib_mr *mr, struct scatterlist *sgl, int sg_nents,
9aa8b321 3562 unsigned int *sg_offset, int (*set_page)(struct ib_mr *, u64));
4c67e2bf 3563
765d6774
SW
3564void ib_drain_rq(struct ib_qp *qp);
3565void ib_drain_sq(struct ib_qp *qp);
3566void ib_drain_qp(struct ib_qp *qp);
850d8fd7 3567
c90ea9d8 3568int ib_resolve_eth_dmac(struct ib_device *device,
90898850 3569 struct rdma_ah_attr *ah_attr);
d4186194 3570int ib_get_eth_speed(struct ib_device *dev, u8 port_num, u8 *speed, u8 *width);
2224c47a
DC
3571
3572static inline u8 *rdma_ah_retrieve_dmac(struct rdma_ah_attr *attr)
3573{
44c58487
DC
3574 if (attr->type == RDMA_AH_ATTR_TYPE_ROCE)
3575 return attr->roce.dmac;
3576 return NULL;
2224c47a
DC
3577}
3578
64b4646e 3579static inline void rdma_ah_set_dlid(struct rdma_ah_attr *attr, u32 dlid)
2224c47a 3580{
44c58487 3581 if (attr->type == RDMA_AH_ATTR_TYPE_IB)
64b4646e
DC
3582 attr->ib.dlid = (u16)dlid;
3583 else if (attr->type == RDMA_AH_ATTR_TYPE_OPA)
3584 attr->opa.dlid = dlid;
2224c47a
DC
3585}
3586
64b4646e 3587static inline u32 rdma_ah_get_dlid(const struct rdma_ah_attr *attr)
2224c47a 3588{
44c58487
DC
3589 if (attr->type == RDMA_AH_ATTR_TYPE_IB)
3590 return attr->ib.dlid;
64b4646e
DC
3591 else if (attr->type == RDMA_AH_ATTR_TYPE_OPA)
3592 return attr->opa.dlid;
44c58487 3593 return 0;
2224c47a
DC
3594}
3595
3596static inline void rdma_ah_set_sl(struct rdma_ah_attr *attr, u8 sl)
3597{
3598 attr->sl = sl;
3599}
3600
3601static inline u8 rdma_ah_get_sl(const struct rdma_ah_attr *attr)
3602{
3603 return attr->sl;
3604}
3605
3606static inline void rdma_ah_set_path_bits(struct rdma_ah_attr *attr,
3607 u8 src_path_bits)
3608{
44c58487
DC
3609 if (attr->type == RDMA_AH_ATTR_TYPE_IB)
3610 attr->ib.src_path_bits = src_path_bits;
64b4646e
DC
3611 else if (attr->type == RDMA_AH_ATTR_TYPE_OPA)
3612 attr->opa.src_path_bits = src_path_bits;
2224c47a
DC
3613}
3614
3615static inline u8 rdma_ah_get_path_bits(const struct rdma_ah_attr *attr)
3616{
44c58487
DC
3617 if (attr->type == RDMA_AH_ATTR_TYPE_IB)
3618 return attr->ib.src_path_bits;
64b4646e
DC
3619 else if (attr->type == RDMA_AH_ATTR_TYPE_OPA)
3620 return attr->opa.src_path_bits;
44c58487 3621 return 0;
2224c47a
DC
3622}
3623
3624static inline void rdma_ah_set_port_num(struct rdma_ah_attr *attr, u8 port_num)
3625{
3626 attr->port_num = port_num;
3627}
3628
3629static inline u8 rdma_ah_get_port_num(const struct rdma_ah_attr *attr)
3630{
3631 return attr->port_num;
3632}
3633
3634static inline void rdma_ah_set_static_rate(struct rdma_ah_attr *attr,
3635 u8 static_rate)
3636{
3637 attr->static_rate = static_rate;
3638}
3639
3640static inline u8 rdma_ah_get_static_rate(const struct rdma_ah_attr *attr)
3641{
3642 return attr->static_rate;
3643}
3644
3645static inline void rdma_ah_set_ah_flags(struct rdma_ah_attr *attr,
3646 enum ib_ah_flags flag)
3647{
3648 attr->ah_flags = flag;
3649}
3650
3651static inline enum ib_ah_flags
3652 rdma_ah_get_ah_flags(const struct rdma_ah_attr *attr)
3653{
3654 return attr->ah_flags;
3655}
3656
3657static inline const struct ib_global_route
3658 *rdma_ah_read_grh(const struct rdma_ah_attr *attr)
3659{
3660 return &attr->grh;
3661}
3662
3663/*To retrieve and modify the grh */
3664static inline struct ib_global_route
3665 *rdma_ah_retrieve_grh(struct rdma_ah_attr *attr)
3666{
3667 return &attr->grh;
3668}
3669
3670static inline void rdma_ah_set_dgid_raw(struct rdma_ah_attr *attr, void *dgid)
3671{
3672 struct ib_global_route *grh = rdma_ah_retrieve_grh(attr);
3673
3674 memcpy(grh->dgid.raw, dgid, sizeof(grh->dgid));
3675}
3676
3677static inline void rdma_ah_set_subnet_prefix(struct rdma_ah_attr *attr,
3678 __be64 prefix)
3679{
3680 struct ib_global_route *grh = rdma_ah_retrieve_grh(attr);
3681
3682 grh->dgid.global.subnet_prefix = prefix;
3683}
3684
3685static inline void rdma_ah_set_interface_id(struct rdma_ah_attr *attr,
3686 __be64 if_id)
3687{
3688 struct ib_global_route *grh = rdma_ah_retrieve_grh(attr);
3689
3690 grh->dgid.global.interface_id = if_id;
3691}
3692
3693static inline void rdma_ah_set_grh(struct rdma_ah_attr *attr,
3694 union ib_gid *dgid, u32 flow_label,
3695 u8 sgid_index, u8 hop_limit,
3696 u8 traffic_class)
3697{
3698 struct ib_global_route *grh = rdma_ah_retrieve_grh(attr);
3699
3700 attr->ah_flags = IB_AH_GRH;
3701 if (dgid)
3702 grh->dgid = *dgid;
3703 grh->flow_label = flow_label;
3704 grh->sgid_index = sgid_index;
3705 grh->hop_limit = hop_limit;
3706 grh->traffic_class = traffic_class;
3707}
44c58487
DC
3708
3709/*Get AH type */
3710static inline enum rdma_ah_attr_type rdma_ah_find_type(struct ib_device *dev,
3711 u32 port_num)
3712{
3713 if ((rdma_protocol_roce(dev, port_num)) ||
3714 (rdma_protocol_iwarp(dev, port_num)))
3715 return RDMA_AH_ATTR_TYPE_ROCE;
64b4646e
DC
3716 else if ((rdma_protocol_ib(dev, port_num)) &&
3717 (rdma_cap_opa_ah(dev, port_num)))
3718 return RDMA_AH_ATTR_TYPE_OPA;
44c58487
DC
3719 else
3720 return RDMA_AH_ATTR_TYPE_IB;
3721}
1da177e4 3722#endif /* IB_VERBS_H */