| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 1 | /* | 
|  | 2 | * Copyright (c) 2006 Oracle.  All rights reserved. | 
|  | 3 | * | 
|  | 4 | * This software is available to you under a choice of one of two | 
|  | 5 | * licenses.  You may choose to be licensed under the terms of the GNU | 
|  | 6 | * General Public License (GPL) Version 2, available from the file | 
|  | 7 | * COPYING in the main directory of this source tree, or the | 
|  | 8 | * OpenIB.org BSD license below: | 
|  | 9 | * | 
|  | 10 | *     Redistribution and use in source and binary forms, with or | 
|  | 11 | *     without modification, are permitted provided that the following | 
|  | 12 | *     conditions are met: | 
|  | 13 | * | 
|  | 14 | *      - Redistributions of source code must retain the above | 
|  | 15 | *        copyright notice, this list of conditions and the following | 
|  | 16 | *        disclaimer. | 
|  | 17 | * | 
|  | 18 | *      - Redistributions in binary form must reproduce the above | 
|  | 19 | *        copyright notice, this list of conditions and the following | 
|  | 20 | *        disclaimer in the documentation and/or other materials | 
|  | 21 | *        provided with the distribution. | 
|  | 22 | * | 
|  | 23 | * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, | 
|  | 24 | * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF | 
|  | 25 | * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND | 
|  | 26 | * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS | 
|  | 27 | * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN | 
|  | 28 | * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN | 
|  | 29 | * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE | 
|  | 30 | * SOFTWARE. | 
|  | 31 | * | 
|  | 32 | */ | 
|  | 33 | #include <linux/kernel.h> | 
|  | 34 |  | 
|  | 35 | #include "rds.h" | 
|  | 36 | #include "rdma.h" | 
|  | 37 | #include "iw.h" | 
|  | 38 |  | 
|  | 39 |  | 
|  | 40 | /* | 
|  | 41 | * This is stored as mr->r_trans_private. | 
|  | 42 | */ | 
|  | 43 | struct rds_iw_mr { | 
|  | 44 | struct rds_iw_device	*device; | 
|  | 45 | struct rds_iw_mr_pool	*pool; | 
|  | 46 | struct rdma_cm_id	*cm_id; | 
|  | 47 |  | 
|  | 48 | struct ib_mr	*mr; | 
|  | 49 | struct ib_fast_reg_page_list *page_list; | 
|  | 50 |  | 
|  | 51 | struct rds_iw_mapping	mapping; | 
|  | 52 | unsigned char		remap_count; | 
|  | 53 | }; | 
|  | 54 |  | 
|  | 55 | /* | 
|  | 56 | * Our own little MR pool | 
|  | 57 | */ | 
|  | 58 | struct rds_iw_mr_pool { | 
|  | 59 | struct rds_iw_device	*device;		/* back ptr to the device that owns us */ | 
|  | 60 |  | 
|  | 61 | struct mutex		flush_lock;		/* serialize fmr invalidate */ | 
|  | 62 | struct work_struct	flush_worker;		/* flush worker */ | 
|  | 63 |  | 
|  | 64 | spinlock_t		list_lock;		/* protect variables below */ | 
|  | 65 | atomic_t		item_count;		/* total # of MRs */ | 
|  | 66 | atomic_t		dirty_count;		/* # dirty of MRs */ | 
|  | 67 | struct list_head	dirty_list;		/* dirty mappings */ | 
|  | 68 | struct list_head	clean_list;		/* unused & unamapped MRs */ | 
|  | 69 | atomic_t		free_pinned;		/* memory pinned by free MRs */ | 
|  | 70 | unsigned long		max_message_size;	/* in pages */ | 
|  | 71 | unsigned long		max_items; | 
|  | 72 | unsigned long		max_items_soft; | 
|  | 73 | unsigned long		max_free_pinned; | 
|  | 74 | int			max_pages; | 
|  | 75 | }; | 
|  | 76 |  | 
|  | 77 | static int rds_iw_flush_mr_pool(struct rds_iw_mr_pool *pool, int free_all); | 
|  | 78 | static void rds_iw_mr_pool_flush_worker(struct work_struct *work); | 
|  | 79 | static int rds_iw_init_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr); | 
|  | 80 | static int rds_iw_map_fastreg(struct rds_iw_mr_pool *pool, | 
|  | 81 | struct rds_iw_mr *ibmr, | 
|  | 82 | struct scatterlist *sg, unsigned int nents); | 
|  | 83 | static void rds_iw_free_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr); | 
|  | 84 | static unsigned int rds_iw_unmap_fastreg_list(struct rds_iw_mr_pool *pool, | 
|  | 85 | struct list_head *unmap_list, | 
|  | 86 | struct list_head *kill_list); | 
|  | 87 | static void rds_iw_destroy_fastreg(struct rds_iw_mr_pool *pool, struct rds_iw_mr *ibmr); | 
|  | 88 |  | 
|  | 89 | static int rds_iw_get_device(struct rds_sock *rs, struct rds_iw_device **rds_iwdev, struct rdma_cm_id **cm_id) | 
|  | 90 | { | 
|  | 91 | struct rds_iw_device *iwdev; | 
|  | 92 | struct rds_iw_cm_id *i_cm_id; | 
|  | 93 |  | 
|  | 94 | *rds_iwdev = NULL; | 
|  | 95 | *cm_id = NULL; | 
|  | 96 |  | 
|  | 97 | list_for_each_entry(iwdev, &rds_iw_devices, list) { | 
|  | 98 | spin_lock_irq(&iwdev->spinlock); | 
|  | 99 | list_for_each_entry(i_cm_id, &iwdev->cm_id_list, list) { | 
|  | 100 | struct sockaddr_in *src_addr, *dst_addr; | 
|  | 101 |  | 
|  | 102 | src_addr = (struct sockaddr_in *)&i_cm_id->cm_id->route.addr.src_addr; | 
|  | 103 | dst_addr = (struct sockaddr_in *)&i_cm_id->cm_id->route.addr.dst_addr; | 
|  | 104 |  | 
|  | 105 | rdsdebug("local ipaddr = %x port %d, " | 
|  | 106 | "remote ipaddr = %x port %d" | 
|  | 107 | "..looking for %x port %d, " | 
|  | 108 | "remote ipaddr = %x port %d\n", | 
|  | 109 | src_addr->sin_addr.s_addr, | 
|  | 110 | src_addr->sin_port, | 
|  | 111 | dst_addr->sin_addr.s_addr, | 
|  | 112 | dst_addr->sin_port, | 
|  | 113 | rs->rs_bound_addr, | 
|  | 114 | rs->rs_bound_port, | 
|  | 115 | rs->rs_conn_addr, | 
|  | 116 | rs->rs_conn_port); | 
|  | 117 | #ifdef WORKING_TUPLE_DETECTION | 
|  | 118 | if (src_addr->sin_addr.s_addr == rs->rs_bound_addr && | 
|  | 119 | src_addr->sin_port == rs->rs_bound_port && | 
|  | 120 | dst_addr->sin_addr.s_addr == rs->rs_conn_addr && | 
|  | 121 | dst_addr->sin_port == rs->rs_conn_port) { | 
|  | 122 | #else | 
|  | 123 | /* FIXME - needs to compare the local and remote | 
|  | 124 | * ipaddr/port tuple, but the ipaddr is the only | 
|  | 125 | * available infomation in the rds_sock (as the rest are | 
|  | 126 | * zero'ed.  It doesn't appear to be properly populated | 
|  | 127 | * during connection setup... | 
|  | 128 | */ | 
|  | 129 | if (src_addr->sin_addr.s_addr == rs->rs_bound_addr) { | 
|  | 130 | #endif | 
|  | 131 | spin_unlock_irq(&iwdev->spinlock); | 
|  | 132 | *rds_iwdev = iwdev; | 
|  | 133 | *cm_id = i_cm_id->cm_id; | 
|  | 134 | return 0; | 
|  | 135 | } | 
|  | 136 | } | 
|  | 137 | spin_unlock_irq(&iwdev->spinlock); | 
|  | 138 | } | 
|  | 139 |  | 
|  | 140 | return 1; | 
|  | 141 | } | 
|  | 142 |  | 
|  | 143 | static int rds_iw_add_cm_id(struct rds_iw_device *rds_iwdev, struct rdma_cm_id *cm_id) | 
|  | 144 | { | 
|  | 145 | struct rds_iw_cm_id *i_cm_id; | 
|  | 146 |  | 
|  | 147 | i_cm_id = kmalloc(sizeof *i_cm_id, GFP_KERNEL); | 
|  | 148 | if (!i_cm_id) | 
|  | 149 | return -ENOMEM; | 
|  | 150 |  | 
|  | 151 | i_cm_id->cm_id = cm_id; | 
|  | 152 |  | 
|  | 153 | spin_lock_irq(&rds_iwdev->spinlock); | 
|  | 154 | list_add_tail(&i_cm_id->list, &rds_iwdev->cm_id_list); | 
|  | 155 | spin_unlock_irq(&rds_iwdev->spinlock); | 
|  | 156 |  | 
|  | 157 | return 0; | 
|  | 158 | } | 
|  | 159 |  | 
|  | 160 | void rds_iw_remove_cm_id(struct rds_iw_device *rds_iwdev, struct rdma_cm_id *cm_id) | 
|  | 161 | { | 
|  | 162 | struct rds_iw_cm_id *i_cm_id; | 
|  | 163 |  | 
|  | 164 | spin_lock_irq(&rds_iwdev->spinlock); | 
|  | 165 | list_for_each_entry(i_cm_id, &rds_iwdev->cm_id_list, list) { | 
|  | 166 | if (i_cm_id->cm_id == cm_id) { | 
|  | 167 | list_del(&i_cm_id->list); | 
|  | 168 | kfree(i_cm_id); | 
|  | 169 | break; | 
|  | 170 | } | 
|  | 171 | } | 
|  | 172 | spin_unlock_irq(&rds_iwdev->spinlock); | 
|  | 173 | } | 
|  | 174 |  | 
|  | 175 |  | 
|  | 176 | int rds_iw_update_cm_id(struct rds_iw_device *rds_iwdev, struct rdma_cm_id *cm_id) | 
|  | 177 | { | 
|  | 178 | struct sockaddr_in *src_addr, *dst_addr; | 
|  | 179 | struct rds_iw_device *rds_iwdev_old; | 
|  | 180 | struct rds_sock rs; | 
|  | 181 | struct rdma_cm_id *pcm_id; | 
|  | 182 | int rc; | 
|  | 183 |  | 
|  | 184 | src_addr = (struct sockaddr_in *)&cm_id->route.addr.src_addr; | 
|  | 185 | dst_addr = (struct sockaddr_in *)&cm_id->route.addr.dst_addr; | 
|  | 186 |  | 
|  | 187 | rs.rs_bound_addr = src_addr->sin_addr.s_addr; | 
|  | 188 | rs.rs_bound_port = src_addr->sin_port; | 
|  | 189 | rs.rs_conn_addr = dst_addr->sin_addr.s_addr; | 
|  | 190 | rs.rs_conn_port = dst_addr->sin_port; | 
|  | 191 |  | 
|  | 192 | rc = rds_iw_get_device(&rs, &rds_iwdev_old, &pcm_id); | 
|  | 193 | if (rc) | 
|  | 194 | rds_iw_remove_cm_id(rds_iwdev, cm_id); | 
|  | 195 |  | 
|  | 196 | return rds_iw_add_cm_id(rds_iwdev, cm_id); | 
|  | 197 | } | 
|  | 198 |  | 
| Andy Grover | 745cbcc | 2009-04-01 08:20:19 +0000 | [diff] [blame] | 199 | void rds_iw_add_conn(struct rds_iw_device *rds_iwdev, struct rds_connection *conn) | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 200 | { | 
|  | 201 | struct rds_iw_connection *ic = conn->c_transport_data; | 
|  | 202 |  | 
|  | 203 | /* conn was previously on the nodev_conns_list */ | 
|  | 204 | spin_lock_irq(&iw_nodev_conns_lock); | 
|  | 205 | BUG_ON(list_empty(&iw_nodev_conns)); | 
|  | 206 | BUG_ON(list_empty(&ic->iw_node)); | 
|  | 207 | list_del(&ic->iw_node); | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 208 |  | 
|  | 209 | spin_lock_irq(&rds_iwdev->spinlock); | 
|  | 210 | list_add_tail(&ic->iw_node, &rds_iwdev->conn_list); | 
|  | 211 | spin_unlock_irq(&rds_iwdev->spinlock); | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 212 | spin_unlock_irq(&iw_nodev_conns_lock); | 
|  | 213 |  | 
| Andy Grover | 745cbcc | 2009-04-01 08:20:19 +0000 | [diff] [blame] | 214 | ic->rds_iwdev = rds_iwdev; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 215 | } | 
|  | 216 |  | 
| Andy Grover | 745cbcc | 2009-04-01 08:20:19 +0000 | [diff] [blame] | 217 | void rds_iw_remove_conn(struct rds_iw_device *rds_iwdev, struct rds_connection *conn) | 
|  | 218 | { | 
|  | 219 | struct rds_iw_connection *ic = conn->c_transport_data; | 
|  | 220 |  | 
|  | 221 | /* place conn on nodev_conns_list */ | 
|  | 222 | spin_lock(&iw_nodev_conns_lock); | 
|  | 223 |  | 
|  | 224 | spin_lock_irq(&rds_iwdev->spinlock); | 
|  | 225 | BUG_ON(list_empty(&ic->iw_node)); | 
|  | 226 | list_del(&ic->iw_node); | 
|  | 227 | spin_unlock_irq(&rds_iwdev->spinlock); | 
|  | 228 |  | 
|  | 229 | list_add_tail(&ic->iw_node, &iw_nodev_conns); | 
|  | 230 |  | 
|  | 231 | spin_unlock(&iw_nodev_conns_lock); | 
|  | 232 |  | 
|  | 233 | rds_iw_remove_cm_id(ic->rds_iwdev, ic->i_cm_id); | 
|  | 234 | ic->rds_iwdev = NULL; | 
|  | 235 | } | 
|  | 236 |  | 
|  | 237 | void __rds_iw_destroy_conns(struct list_head *list, spinlock_t *list_lock) | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 238 | { | 
|  | 239 | struct rds_iw_connection *ic, *_ic; | 
|  | 240 | LIST_HEAD(tmp_list); | 
|  | 241 |  | 
|  | 242 | /* avoid calling conn_destroy with irqs off */ | 
| Andy Grover | 745cbcc | 2009-04-01 08:20:19 +0000 | [diff] [blame] | 243 | spin_lock_irq(list_lock); | 
|  | 244 | list_splice(list, &tmp_list); | 
|  | 245 | INIT_LIST_HEAD(list); | 
|  | 246 | spin_unlock_irq(list_lock); | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 247 |  | 
|  | 248 | list_for_each_entry_safe(ic, _ic, &tmp_list, iw_node) { | 
|  | 249 | if (ic->conn->c_passive) | 
|  | 250 | rds_conn_destroy(ic->conn->c_passive); | 
|  | 251 | rds_conn_destroy(ic->conn); | 
|  | 252 | } | 
|  | 253 | } | 
|  | 254 |  | 
|  | 255 | static void rds_iw_set_scatterlist(struct rds_iw_scatterlist *sg, | 
|  | 256 | struct scatterlist *list, unsigned int sg_len) | 
|  | 257 | { | 
|  | 258 | sg->list = list; | 
|  | 259 | sg->len = sg_len; | 
|  | 260 | sg->dma_len = 0; | 
|  | 261 | sg->dma_npages = 0; | 
|  | 262 | sg->bytes = 0; | 
|  | 263 | } | 
|  | 264 |  | 
|  | 265 | static u64 *rds_iw_map_scatterlist(struct rds_iw_device *rds_iwdev, | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 266 | struct rds_iw_scatterlist *sg) | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 267 | { | 
|  | 268 | struct ib_device *dev = rds_iwdev->dev; | 
|  | 269 | u64 *dma_pages = NULL; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 270 | int i, j, ret; | 
|  | 271 |  | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 272 | WARN_ON(sg->dma_len); | 
|  | 273 |  | 
|  | 274 | sg->dma_len = ib_dma_map_sg(dev, sg->list, sg->len, DMA_BIDIRECTIONAL); | 
|  | 275 | if (unlikely(!sg->dma_len)) { | 
|  | 276 | printk(KERN_WARNING "RDS/IW: dma_map_sg failed!\n"); | 
|  | 277 | return ERR_PTR(-EBUSY); | 
|  | 278 | } | 
|  | 279 |  | 
|  | 280 | sg->bytes = 0; | 
|  | 281 | sg->dma_npages = 0; | 
|  | 282 |  | 
|  | 283 | ret = -EINVAL; | 
|  | 284 | for (i = 0; i < sg->dma_len; ++i) { | 
|  | 285 | unsigned int dma_len = ib_sg_dma_len(dev, &sg->list[i]); | 
|  | 286 | u64 dma_addr = ib_sg_dma_address(dev, &sg->list[i]); | 
|  | 287 | u64 end_addr; | 
|  | 288 |  | 
|  | 289 | sg->bytes += dma_len; | 
|  | 290 |  | 
|  | 291 | end_addr = dma_addr + dma_len; | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 292 | if (dma_addr & PAGE_MASK) { | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 293 | if (i > 0) | 
|  | 294 | goto out_unmap; | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 295 | dma_addr &= ~PAGE_MASK; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 296 | } | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 297 | if (end_addr & PAGE_MASK) { | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 298 | if (i < sg->dma_len - 1) | 
|  | 299 | goto out_unmap; | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 300 | end_addr = (end_addr + PAGE_MASK) & ~PAGE_MASK; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 301 | } | 
|  | 302 |  | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 303 | sg->dma_npages += (end_addr - dma_addr) >> PAGE_SHIFT; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 304 | } | 
|  | 305 |  | 
|  | 306 | /* Now gather the dma addrs into one list */ | 
|  | 307 | if (sg->dma_npages > fastreg_message_size) | 
|  | 308 | goto out_unmap; | 
|  | 309 |  | 
|  | 310 | dma_pages = kmalloc(sizeof(u64) * sg->dma_npages, GFP_ATOMIC); | 
|  | 311 | if (!dma_pages) { | 
|  | 312 | ret = -ENOMEM; | 
|  | 313 | goto out_unmap; | 
|  | 314 | } | 
|  | 315 |  | 
|  | 316 | for (i = j = 0; i < sg->dma_len; ++i) { | 
|  | 317 | unsigned int dma_len = ib_sg_dma_len(dev, &sg->list[i]); | 
|  | 318 | u64 dma_addr = ib_sg_dma_address(dev, &sg->list[i]); | 
|  | 319 | u64 end_addr; | 
|  | 320 |  | 
|  | 321 | end_addr = dma_addr + dma_len; | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 322 | dma_addr &= ~PAGE_MASK; | 
|  | 323 | for (; dma_addr < end_addr; dma_addr += PAGE_SIZE) | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 324 | dma_pages[j++] = dma_addr; | 
|  | 325 | BUG_ON(j > sg->dma_npages); | 
|  | 326 | } | 
|  | 327 |  | 
|  | 328 | return dma_pages; | 
|  | 329 |  | 
|  | 330 | out_unmap: | 
|  | 331 | ib_dma_unmap_sg(rds_iwdev->dev, sg->list, sg->len, DMA_BIDIRECTIONAL); | 
|  | 332 | sg->dma_len = 0; | 
|  | 333 | kfree(dma_pages); | 
|  | 334 | return ERR_PTR(ret); | 
|  | 335 | } | 
|  | 336 |  | 
|  | 337 |  | 
|  | 338 | struct rds_iw_mr_pool *rds_iw_create_mr_pool(struct rds_iw_device *rds_iwdev) | 
|  | 339 | { | 
|  | 340 | struct rds_iw_mr_pool *pool; | 
|  | 341 |  | 
|  | 342 | pool = kzalloc(sizeof(*pool), GFP_KERNEL); | 
|  | 343 | if (!pool) { | 
|  | 344 | printk(KERN_WARNING "RDS/IW: rds_iw_create_mr_pool alloc error\n"); | 
|  | 345 | return ERR_PTR(-ENOMEM); | 
|  | 346 | } | 
|  | 347 |  | 
|  | 348 | pool->device = rds_iwdev; | 
|  | 349 | INIT_LIST_HEAD(&pool->dirty_list); | 
|  | 350 | INIT_LIST_HEAD(&pool->clean_list); | 
|  | 351 | mutex_init(&pool->flush_lock); | 
|  | 352 | spin_lock_init(&pool->list_lock); | 
|  | 353 | INIT_WORK(&pool->flush_worker, rds_iw_mr_pool_flush_worker); | 
|  | 354 |  | 
|  | 355 | pool->max_message_size = fastreg_message_size; | 
|  | 356 | pool->max_items = fastreg_pool_size; | 
|  | 357 | pool->max_free_pinned = pool->max_items * pool->max_message_size / 4; | 
|  | 358 | pool->max_pages = fastreg_message_size; | 
|  | 359 |  | 
|  | 360 | /* We never allow more than max_items MRs to be allocated. | 
|  | 361 | * When we exceed more than max_items_soft, we start freeing | 
|  | 362 | * items more aggressively. | 
|  | 363 | * Make sure that max_items > max_items_soft > max_items / 2 | 
|  | 364 | */ | 
|  | 365 | pool->max_items_soft = pool->max_items * 3 / 4; | 
|  | 366 |  | 
|  | 367 | return pool; | 
|  | 368 | } | 
|  | 369 |  | 
|  | 370 | void rds_iw_get_mr_info(struct rds_iw_device *rds_iwdev, struct rds_info_rdma_connection *iinfo) | 
|  | 371 | { | 
|  | 372 | struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool; | 
|  | 373 |  | 
|  | 374 | iinfo->rdma_mr_max = pool->max_items; | 
|  | 375 | iinfo->rdma_mr_size = pool->max_pages; | 
|  | 376 | } | 
|  | 377 |  | 
|  | 378 | void rds_iw_destroy_mr_pool(struct rds_iw_mr_pool *pool) | 
|  | 379 | { | 
|  | 380 | flush_workqueue(rds_wq); | 
|  | 381 | rds_iw_flush_mr_pool(pool, 1); | 
|  | 382 | BUG_ON(atomic_read(&pool->item_count)); | 
|  | 383 | BUG_ON(atomic_read(&pool->free_pinned)); | 
|  | 384 | kfree(pool); | 
|  | 385 | } | 
|  | 386 |  | 
|  | 387 | static inline struct rds_iw_mr *rds_iw_reuse_fmr(struct rds_iw_mr_pool *pool) | 
|  | 388 | { | 
|  | 389 | struct rds_iw_mr *ibmr = NULL; | 
|  | 390 | unsigned long flags; | 
|  | 391 |  | 
|  | 392 | spin_lock_irqsave(&pool->list_lock, flags); | 
|  | 393 | if (!list_empty(&pool->clean_list)) { | 
|  | 394 | ibmr = list_entry(pool->clean_list.next, struct rds_iw_mr, mapping.m_list); | 
|  | 395 | list_del_init(&ibmr->mapping.m_list); | 
|  | 396 | } | 
|  | 397 | spin_unlock_irqrestore(&pool->list_lock, flags); | 
|  | 398 |  | 
|  | 399 | return ibmr; | 
|  | 400 | } | 
|  | 401 |  | 
|  | 402 | static struct rds_iw_mr *rds_iw_alloc_mr(struct rds_iw_device *rds_iwdev) | 
|  | 403 | { | 
|  | 404 | struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool; | 
|  | 405 | struct rds_iw_mr *ibmr = NULL; | 
|  | 406 | int err = 0, iter = 0; | 
|  | 407 |  | 
|  | 408 | while (1) { | 
|  | 409 | ibmr = rds_iw_reuse_fmr(pool); | 
|  | 410 | if (ibmr) | 
|  | 411 | return ibmr; | 
|  | 412 |  | 
|  | 413 | /* No clean MRs - now we have the choice of either | 
|  | 414 | * allocating a fresh MR up to the limit imposed by the | 
|  | 415 | * driver, or flush any dirty unused MRs. | 
|  | 416 | * We try to avoid stalling in the send path if possible, | 
|  | 417 | * so we allocate as long as we're allowed to. | 
|  | 418 | * | 
|  | 419 | * We're fussy with enforcing the FMR limit, though. If the driver | 
|  | 420 | * tells us we can't use more than N fmrs, we shouldn't start | 
|  | 421 | * arguing with it */ | 
|  | 422 | if (atomic_inc_return(&pool->item_count) <= pool->max_items) | 
|  | 423 | break; | 
|  | 424 |  | 
|  | 425 | atomic_dec(&pool->item_count); | 
|  | 426 |  | 
|  | 427 | if (++iter > 2) { | 
|  | 428 | rds_iw_stats_inc(s_iw_rdma_mr_pool_depleted); | 
|  | 429 | return ERR_PTR(-EAGAIN); | 
|  | 430 | } | 
|  | 431 |  | 
|  | 432 | /* We do have some empty MRs. Flush them out. */ | 
|  | 433 | rds_iw_stats_inc(s_iw_rdma_mr_pool_wait); | 
|  | 434 | rds_iw_flush_mr_pool(pool, 0); | 
|  | 435 | } | 
|  | 436 |  | 
|  | 437 | ibmr = kzalloc(sizeof(*ibmr), GFP_KERNEL); | 
|  | 438 | if (!ibmr) { | 
|  | 439 | err = -ENOMEM; | 
|  | 440 | goto out_no_cigar; | 
|  | 441 | } | 
|  | 442 |  | 
|  | 443 | spin_lock_init(&ibmr->mapping.m_lock); | 
|  | 444 | INIT_LIST_HEAD(&ibmr->mapping.m_list); | 
|  | 445 | ibmr->mapping.m_mr = ibmr; | 
|  | 446 |  | 
|  | 447 | err = rds_iw_init_fastreg(pool, ibmr); | 
|  | 448 | if (err) | 
|  | 449 | goto out_no_cigar; | 
|  | 450 |  | 
|  | 451 | rds_iw_stats_inc(s_iw_rdma_mr_alloc); | 
|  | 452 | return ibmr; | 
|  | 453 |  | 
|  | 454 | out_no_cigar: | 
|  | 455 | if (ibmr) { | 
|  | 456 | rds_iw_destroy_fastreg(pool, ibmr); | 
|  | 457 | kfree(ibmr); | 
|  | 458 | } | 
|  | 459 | atomic_dec(&pool->item_count); | 
|  | 460 | return ERR_PTR(err); | 
|  | 461 | } | 
|  | 462 |  | 
|  | 463 | void rds_iw_sync_mr(void *trans_private, int direction) | 
|  | 464 | { | 
|  | 465 | struct rds_iw_mr *ibmr = trans_private; | 
|  | 466 | struct rds_iw_device *rds_iwdev = ibmr->device; | 
|  | 467 |  | 
|  | 468 | switch (direction) { | 
|  | 469 | case DMA_FROM_DEVICE: | 
|  | 470 | ib_dma_sync_sg_for_cpu(rds_iwdev->dev, ibmr->mapping.m_sg.list, | 
|  | 471 | ibmr->mapping.m_sg.dma_len, DMA_BIDIRECTIONAL); | 
|  | 472 | break; | 
|  | 473 | case DMA_TO_DEVICE: | 
|  | 474 | ib_dma_sync_sg_for_device(rds_iwdev->dev, ibmr->mapping.m_sg.list, | 
|  | 475 | ibmr->mapping.m_sg.dma_len, DMA_BIDIRECTIONAL); | 
|  | 476 | break; | 
|  | 477 | } | 
|  | 478 | } | 
|  | 479 |  | 
|  | 480 | static inline unsigned int rds_iw_flush_goal(struct rds_iw_mr_pool *pool, int free_all) | 
|  | 481 | { | 
|  | 482 | unsigned int item_count; | 
|  | 483 |  | 
|  | 484 | item_count = atomic_read(&pool->item_count); | 
|  | 485 | if (free_all) | 
|  | 486 | return item_count; | 
|  | 487 |  | 
|  | 488 | return 0; | 
|  | 489 | } | 
|  | 490 |  | 
|  | 491 | /* | 
|  | 492 | * Flush our pool of MRs. | 
|  | 493 | * At a minimum, all currently unused MRs are unmapped. | 
|  | 494 | * If the number of MRs allocated exceeds the limit, we also try | 
|  | 495 | * to free as many MRs as needed to get back to this limit. | 
|  | 496 | */ | 
|  | 497 | static int rds_iw_flush_mr_pool(struct rds_iw_mr_pool *pool, int free_all) | 
|  | 498 | { | 
|  | 499 | struct rds_iw_mr *ibmr, *next; | 
|  | 500 | LIST_HEAD(unmap_list); | 
|  | 501 | LIST_HEAD(kill_list); | 
|  | 502 | unsigned long flags; | 
|  | 503 | unsigned int nfreed = 0, ncleaned = 0, free_goal; | 
|  | 504 | int ret = 0; | 
|  | 505 |  | 
|  | 506 | rds_iw_stats_inc(s_iw_rdma_mr_pool_flush); | 
|  | 507 |  | 
|  | 508 | mutex_lock(&pool->flush_lock); | 
|  | 509 |  | 
|  | 510 | spin_lock_irqsave(&pool->list_lock, flags); | 
|  | 511 | /* Get the list of all mappings to be destroyed */ | 
|  | 512 | list_splice_init(&pool->dirty_list, &unmap_list); | 
|  | 513 | if (free_all) | 
|  | 514 | list_splice_init(&pool->clean_list, &kill_list); | 
|  | 515 | spin_unlock_irqrestore(&pool->list_lock, flags); | 
|  | 516 |  | 
|  | 517 | free_goal = rds_iw_flush_goal(pool, free_all); | 
|  | 518 |  | 
|  | 519 | /* Batched invalidate of dirty MRs. | 
|  | 520 | * For FMR based MRs, the mappings on the unmap list are | 
|  | 521 | * actually members of an ibmr (ibmr->mapping). They either | 
|  | 522 | * migrate to the kill_list, or have been cleaned and should be | 
|  | 523 | * moved to the clean_list. | 
|  | 524 | * For fastregs, they will be dynamically allocated, and | 
|  | 525 | * will be destroyed by the unmap function. | 
|  | 526 | */ | 
|  | 527 | if (!list_empty(&unmap_list)) { | 
|  | 528 | ncleaned = rds_iw_unmap_fastreg_list(pool, &unmap_list, &kill_list); | 
|  | 529 | /* If we've been asked to destroy all MRs, move those | 
|  | 530 | * that were simply cleaned to the kill list */ | 
|  | 531 | if (free_all) | 
|  | 532 | list_splice_init(&unmap_list, &kill_list); | 
|  | 533 | } | 
|  | 534 |  | 
|  | 535 | /* Destroy any MRs that are past their best before date */ | 
|  | 536 | list_for_each_entry_safe(ibmr, next, &kill_list, mapping.m_list) { | 
|  | 537 | rds_iw_stats_inc(s_iw_rdma_mr_free); | 
|  | 538 | list_del(&ibmr->mapping.m_list); | 
|  | 539 | rds_iw_destroy_fastreg(pool, ibmr); | 
|  | 540 | kfree(ibmr); | 
|  | 541 | nfreed++; | 
|  | 542 | } | 
|  | 543 |  | 
|  | 544 | /* Anything that remains are laundered ibmrs, which we can add | 
|  | 545 | * back to the clean list. */ | 
|  | 546 | if (!list_empty(&unmap_list)) { | 
|  | 547 | spin_lock_irqsave(&pool->list_lock, flags); | 
|  | 548 | list_splice(&unmap_list, &pool->clean_list); | 
|  | 549 | spin_unlock_irqrestore(&pool->list_lock, flags); | 
|  | 550 | } | 
|  | 551 |  | 
|  | 552 | atomic_sub(ncleaned, &pool->dirty_count); | 
|  | 553 | atomic_sub(nfreed, &pool->item_count); | 
|  | 554 |  | 
|  | 555 | mutex_unlock(&pool->flush_lock); | 
|  | 556 | return ret; | 
|  | 557 | } | 
|  | 558 |  | 
|  | 559 | static void rds_iw_mr_pool_flush_worker(struct work_struct *work) | 
|  | 560 | { | 
|  | 561 | struct rds_iw_mr_pool *pool = container_of(work, struct rds_iw_mr_pool, flush_worker); | 
|  | 562 |  | 
|  | 563 | rds_iw_flush_mr_pool(pool, 0); | 
|  | 564 | } | 
|  | 565 |  | 
|  | 566 | void rds_iw_free_mr(void *trans_private, int invalidate) | 
|  | 567 | { | 
|  | 568 | struct rds_iw_mr *ibmr = trans_private; | 
|  | 569 | struct rds_iw_mr_pool *pool = ibmr->device->mr_pool; | 
|  | 570 |  | 
|  | 571 | rdsdebug("RDS/IW: free_mr nents %u\n", ibmr->mapping.m_sg.len); | 
|  | 572 | if (!pool) | 
|  | 573 | return; | 
|  | 574 |  | 
|  | 575 | /* Return it to the pool's free list */ | 
|  | 576 | rds_iw_free_fastreg(pool, ibmr); | 
|  | 577 |  | 
|  | 578 | /* If we've pinned too many pages, request a flush */ | 
|  | 579 | if (atomic_read(&pool->free_pinned) >= pool->max_free_pinned | 
|  | 580 | || atomic_read(&pool->dirty_count) >= pool->max_items / 10) | 
|  | 581 | queue_work(rds_wq, &pool->flush_worker); | 
|  | 582 |  | 
|  | 583 | if (invalidate) { | 
|  | 584 | if (likely(!in_interrupt())) { | 
|  | 585 | rds_iw_flush_mr_pool(pool, 0); | 
|  | 586 | } else { | 
|  | 587 | /* We get here if the user created a MR marked | 
|  | 588 | * as use_once and invalidate at the same time. */ | 
|  | 589 | queue_work(rds_wq, &pool->flush_worker); | 
|  | 590 | } | 
|  | 591 | } | 
|  | 592 | } | 
|  | 593 |  | 
|  | 594 | void rds_iw_flush_mrs(void) | 
|  | 595 | { | 
|  | 596 | struct rds_iw_device *rds_iwdev; | 
|  | 597 |  | 
|  | 598 | list_for_each_entry(rds_iwdev, &rds_iw_devices, list) { | 
|  | 599 | struct rds_iw_mr_pool *pool = rds_iwdev->mr_pool; | 
|  | 600 |  | 
|  | 601 | if (pool) | 
|  | 602 | rds_iw_flush_mr_pool(pool, 0); | 
|  | 603 | } | 
|  | 604 | } | 
|  | 605 |  | 
|  | 606 | void *rds_iw_get_mr(struct scatterlist *sg, unsigned long nents, | 
|  | 607 | struct rds_sock *rs, u32 *key_ret) | 
|  | 608 | { | 
|  | 609 | struct rds_iw_device *rds_iwdev; | 
|  | 610 | struct rds_iw_mr *ibmr = NULL; | 
|  | 611 | struct rdma_cm_id *cm_id; | 
|  | 612 | int ret; | 
|  | 613 |  | 
|  | 614 | ret = rds_iw_get_device(rs, &rds_iwdev, &cm_id); | 
|  | 615 | if (ret || !cm_id) { | 
|  | 616 | ret = -ENODEV; | 
|  | 617 | goto out; | 
|  | 618 | } | 
|  | 619 |  | 
|  | 620 | if (!rds_iwdev->mr_pool) { | 
|  | 621 | ret = -ENODEV; | 
|  | 622 | goto out; | 
|  | 623 | } | 
|  | 624 |  | 
|  | 625 | ibmr = rds_iw_alloc_mr(rds_iwdev); | 
|  | 626 | if (IS_ERR(ibmr)) | 
|  | 627 | return ibmr; | 
|  | 628 |  | 
|  | 629 | ibmr->cm_id = cm_id; | 
|  | 630 | ibmr->device = rds_iwdev; | 
|  | 631 |  | 
|  | 632 | ret = rds_iw_map_fastreg(rds_iwdev->mr_pool, ibmr, sg, nents); | 
|  | 633 | if (ret == 0) | 
|  | 634 | *key_ret = ibmr->mr->rkey; | 
|  | 635 | else | 
|  | 636 | printk(KERN_WARNING "RDS/IW: failed to map mr (errno=%d)\n", ret); | 
|  | 637 |  | 
|  | 638 | out: | 
|  | 639 | if (ret) { | 
|  | 640 | if (ibmr) | 
|  | 641 | rds_iw_free_mr(ibmr, 0); | 
|  | 642 | ibmr = ERR_PTR(ret); | 
|  | 643 | } | 
|  | 644 | return ibmr; | 
|  | 645 | } | 
|  | 646 |  | 
|  | 647 | /* | 
|  | 648 | * iWARP fastreg handling | 
|  | 649 | * | 
|  | 650 | * The life cycle of a fastreg registration is a bit different from | 
|  | 651 | * FMRs. | 
|  | 652 | * The idea behind fastreg is to have one MR, to which we bind different | 
|  | 653 | * mappings over time. To avoid stalling on the expensive map and invalidate | 
|  | 654 | * operations, these operations are pipelined on the same send queue on | 
|  | 655 | * which we want to send the message containing the r_key. | 
|  | 656 | * | 
|  | 657 | * This creates a bit of a problem for us, as we do not have the destination | 
|  | 658 | * IP in GET_MR, so the connection must be setup prior to the GET_MR call for | 
|  | 659 | * RDMA to be correctly setup.  If a fastreg request is present, rds_iw_xmit | 
|  | 660 | * will try to queue a LOCAL_INV (if needed) and a FAST_REG_MR work request | 
|  | 661 | * before queuing the SEND. When completions for these arrive, they are | 
|  | 662 | * dispatched to the MR has a bit set showing that RDMa can be performed. | 
|  | 663 | * | 
|  | 664 | * There is another interesting aspect that's related to invalidation. | 
|  | 665 | * The application can request that a mapping is invalidated in FREE_MR. | 
|  | 666 | * The expectation there is that this invalidation step includes ALL | 
|  | 667 | * PREVIOUSLY FREED MRs. | 
|  | 668 | */ | 
|  | 669 | static int rds_iw_init_fastreg(struct rds_iw_mr_pool *pool, | 
|  | 670 | struct rds_iw_mr *ibmr) | 
|  | 671 | { | 
|  | 672 | struct rds_iw_device *rds_iwdev = pool->device; | 
|  | 673 | struct ib_fast_reg_page_list *page_list = NULL; | 
|  | 674 | struct ib_mr *mr; | 
|  | 675 | int err; | 
|  | 676 |  | 
|  | 677 | mr = ib_alloc_fast_reg_mr(rds_iwdev->pd, pool->max_message_size); | 
|  | 678 | if (IS_ERR(mr)) { | 
|  | 679 | err = PTR_ERR(mr); | 
|  | 680 |  | 
|  | 681 | printk(KERN_WARNING "RDS/IW: ib_alloc_fast_reg_mr failed (err=%d)\n", err); | 
|  | 682 | return err; | 
|  | 683 | } | 
|  | 684 |  | 
|  | 685 | /* FIXME - this is overkill, but mapping->m_sg.dma_len/mapping->m_sg.dma_npages | 
|  | 686 | * is not filled in. | 
|  | 687 | */ | 
|  | 688 | page_list = ib_alloc_fast_reg_page_list(rds_iwdev->dev, pool->max_message_size); | 
|  | 689 | if (IS_ERR(page_list)) { | 
|  | 690 | err = PTR_ERR(page_list); | 
|  | 691 |  | 
|  | 692 | printk(KERN_WARNING "RDS/IW: ib_alloc_fast_reg_page_list failed (err=%d)\n", err); | 
|  | 693 | ib_dereg_mr(mr); | 
|  | 694 | return err; | 
|  | 695 | } | 
|  | 696 |  | 
|  | 697 | ibmr->page_list = page_list; | 
|  | 698 | ibmr->mr = mr; | 
|  | 699 | return 0; | 
|  | 700 | } | 
|  | 701 |  | 
|  | 702 | static int rds_iw_rdma_build_fastreg(struct rds_iw_mapping *mapping) | 
|  | 703 | { | 
|  | 704 | struct rds_iw_mr *ibmr = mapping->m_mr; | 
|  | 705 | struct ib_send_wr f_wr, *failed_wr; | 
|  | 706 | int ret; | 
|  | 707 |  | 
|  | 708 | /* | 
|  | 709 | * Perform a WR for the fast_reg_mr. Each individual page | 
|  | 710 | * in the sg list is added to the fast reg page list and placed | 
|  | 711 | * inside the fast_reg_mr WR.  The key used is a rolling 8bit | 
|  | 712 | * counter, which should guarantee uniqueness. | 
|  | 713 | */ | 
|  | 714 | ib_update_fast_reg_key(ibmr->mr, ibmr->remap_count++); | 
|  | 715 | mapping->m_rkey = ibmr->mr->rkey; | 
|  | 716 |  | 
|  | 717 | memset(&f_wr, 0, sizeof(f_wr)); | 
|  | 718 | f_wr.wr_id = RDS_IW_FAST_REG_WR_ID; | 
|  | 719 | f_wr.opcode = IB_WR_FAST_REG_MR; | 
|  | 720 | f_wr.wr.fast_reg.length = mapping->m_sg.bytes; | 
|  | 721 | f_wr.wr.fast_reg.rkey = mapping->m_rkey; | 
|  | 722 | f_wr.wr.fast_reg.page_list = ibmr->page_list; | 
|  | 723 | f_wr.wr.fast_reg.page_list_len = mapping->m_sg.dma_len; | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 724 | f_wr.wr.fast_reg.page_shift = PAGE_SHIFT; | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 725 | f_wr.wr.fast_reg.access_flags = IB_ACCESS_LOCAL_WRITE | | 
|  | 726 | IB_ACCESS_REMOTE_READ | | 
|  | 727 | IB_ACCESS_REMOTE_WRITE; | 
|  | 728 | f_wr.wr.fast_reg.iova_start = 0; | 
|  | 729 | f_wr.send_flags = IB_SEND_SIGNALED; | 
|  | 730 |  | 
|  | 731 | failed_wr = &f_wr; | 
|  | 732 | ret = ib_post_send(ibmr->cm_id->qp, &f_wr, &failed_wr); | 
|  | 733 | BUG_ON(failed_wr != &f_wr); | 
|  | 734 | if (ret && printk_ratelimit()) | 
|  | 735 | printk(KERN_WARNING "RDS/IW: %s:%d ib_post_send returned %d\n", | 
|  | 736 | __func__, __LINE__, ret); | 
|  | 737 | return ret; | 
|  | 738 | } | 
|  | 739 |  | 
|  | 740 | static int rds_iw_rdma_fastreg_inv(struct rds_iw_mr *ibmr) | 
|  | 741 | { | 
|  | 742 | struct ib_send_wr s_wr, *failed_wr; | 
|  | 743 | int ret = 0; | 
|  | 744 |  | 
|  | 745 | if (!ibmr->cm_id->qp || !ibmr->mr) | 
|  | 746 | goto out; | 
|  | 747 |  | 
|  | 748 | memset(&s_wr, 0, sizeof(s_wr)); | 
|  | 749 | s_wr.wr_id = RDS_IW_LOCAL_INV_WR_ID; | 
|  | 750 | s_wr.opcode = IB_WR_LOCAL_INV; | 
|  | 751 | s_wr.ex.invalidate_rkey = ibmr->mr->rkey; | 
|  | 752 | s_wr.send_flags = IB_SEND_SIGNALED; | 
|  | 753 |  | 
|  | 754 | failed_wr = &s_wr; | 
|  | 755 | ret = ib_post_send(ibmr->cm_id->qp, &s_wr, &failed_wr); | 
|  | 756 | if (ret && printk_ratelimit()) { | 
|  | 757 | printk(KERN_WARNING "RDS/IW: %s:%d ib_post_send returned %d\n", | 
|  | 758 | __func__, __LINE__, ret); | 
|  | 759 | goto out; | 
|  | 760 | } | 
|  | 761 | out: | 
|  | 762 | return ret; | 
|  | 763 | } | 
|  | 764 |  | 
|  | 765 | static int rds_iw_map_fastreg(struct rds_iw_mr_pool *pool, | 
|  | 766 | struct rds_iw_mr *ibmr, | 
|  | 767 | struct scatterlist *sg, | 
|  | 768 | unsigned int sg_len) | 
|  | 769 | { | 
|  | 770 | struct rds_iw_device *rds_iwdev = pool->device; | 
|  | 771 | struct rds_iw_mapping *mapping = &ibmr->mapping; | 
|  | 772 | u64 *dma_pages; | 
|  | 773 | int i, ret = 0; | 
|  | 774 |  | 
|  | 775 | rds_iw_set_scatterlist(&mapping->m_sg, sg, sg_len); | 
|  | 776 |  | 
| Andy Grover | 404bb72 | 2009-07-17 13:13:34 +0000 | [diff] [blame] | 777 | dma_pages = rds_iw_map_scatterlist(rds_iwdev, &mapping->m_sg); | 
| Andy Grover | fcd8b7c | 2009-02-24 15:30:36 +0000 | [diff] [blame] | 778 | if (IS_ERR(dma_pages)) { | 
|  | 779 | ret = PTR_ERR(dma_pages); | 
|  | 780 | dma_pages = NULL; | 
|  | 781 | goto out; | 
|  | 782 | } | 
|  | 783 |  | 
|  | 784 | if (mapping->m_sg.dma_len > pool->max_message_size) { | 
|  | 785 | ret = -EMSGSIZE; | 
|  | 786 | goto out; | 
|  | 787 | } | 
|  | 788 |  | 
|  | 789 | for (i = 0; i < mapping->m_sg.dma_npages; ++i) | 
|  | 790 | ibmr->page_list->page_list[i] = dma_pages[i]; | 
|  | 791 |  | 
|  | 792 | ret = rds_iw_rdma_build_fastreg(mapping); | 
|  | 793 | if (ret) | 
|  | 794 | goto out; | 
|  | 795 |  | 
|  | 796 | rds_iw_stats_inc(s_iw_rdma_mr_used); | 
|  | 797 |  | 
|  | 798 | out: | 
|  | 799 | kfree(dma_pages); | 
|  | 800 |  | 
|  | 801 | return ret; | 
|  | 802 | } | 
|  | 803 |  | 
|  | 804 | /* | 
|  | 805 | * "Free" a fastreg MR. | 
|  | 806 | */ | 
|  | 807 | static void rds_iw_free_fastreg(struct rds_iw_mr_pool *pool, | 
|  | 808 | struct rds_iw_mr *ibmr) | 
|  | 809 | { | 
|  | 810 | unsigned long flags; | 
|  | 811 | int ret; | 
|  | 812 |  | 
|  | 813 | if (!ibmr->mapping.m_sg.dma_len) | 
|  | 814 | return; | 
|  | 815 |  | 
|  | 816 | ret = rds_iw_rdma_fastreg_inv(ibmr); | 
|  | 817 | if (ret) | 
|  | 818 | return; | 
|  | 819 |  | 
|  | 820 | /* Try to post the LOCAL_INV WR to the queue. */ | 
|  | 821 | spin_lock_irqsave(&pool->list_lock, flags); | 
|  | 822 |  | 
|  | 823 | list_add_tail(&ibmr->mapping.m_list, &pool->dirty_list); | 
|  | 824 | atomic_add(ibmr->mapping.m_sg.len, &pool->free_pinned); | 
|  | 825 | atomic_inc(&pool->dirty_count); | 
|  | 826 |  | 
|  | 827 | spin_unlock_irqrestore(&pool->list_lock, flags); | 
|  | 828 | } | 
|  | 829 |  | 
|  | 830 | static unsigned int rds_iw_unmap_fastreg_list(struct rds_iw_mr_pool *pool, | 
|  | 831 | struct list_head *unmap_list, | 
|  | 832 | struct list_head *kill_list) | 
|  | 833 | { | 
|  | 834 | struct rds_iw_mapping *mapping, *next; | 
|  | 835 | unsigned int ncleaned = 0; | 
|  | 836 | LIST_HEAD(laundered); | 
|  | 837 |  | 
|  | 838 | /* Batched invalidation of fastreg MRs. | 
|  | 839 | * Why do we do it this way, even though we could pipeline unmap | 
|  | 840 | * and remap? The reason is the application semantics - when the | 
|  | 841 | * application requests an invalidation of MRs, it expects all | 
|  | 842 | * previously released R_Keys to become invalid. | 
|  | 843 | * | 
|  | 844 | * If we implement MR reuse naively, we risk memory corruption | 
|  | 845 | * (this has actually been observed). So the default behavior | 
|  | 846 | * requires that a MR goes through an explicit unmap operation before | 
|  | 847 | * we can reuse it again. | 
|  | 848 | * | 
|  | 849 | * We could probably improve on this a little, by allowing immediate | 
|  | 850 | * reuse of a MR on the same socket (eg you could add small | 
|  | 851 | * cache of unused MRs to strct rds_socket - GET_MR could grab one | 
|  | 852 | * of these without requiring an explicit invalidate). | 
|  | 853 | */ | 
|  | 854 | while (!list_empty(unmap_list)) { | 
|  | 855 | unsigned long flags; | 
|  | 856 |  | 
|  | 857 | spin_lock_irqsave(&pool->list_lock, flags); | 
|  | 858 | list_for_each_entry_safe(mapping, next, unmap_list, m_list) { | 
|  | 859 | list_move(&mapping->m_list, &laundered); | 
|  | 860 | ncleaned++; | 
|  | 861 | } | 
|  | 862 | spin_unlock_irqrestore(&pool->list_lock, flags); | 
|  | 863 | } | 
|  | 864 |  | 
|  | 865 | /* Move all laundered mappings back to the unmap list. | 
|  | 866 | * We do not kill any WRs right now - it doesn't seem the | 
|  | 867 | * fastreg API has a max_remap limit. */ | 
|  | 868 | list_splice_init(&laundered, unmap_list); | 
|  | 869 |  | 
|  | 870 | return ncleaned; | 
|  | 871 | } | 
|  | 872 |  | 
|  | 873 | static void rds_iw_destroy_fastreg(struct rds_iw_mr_pool *pool, | 
|  | 874 | struct rds_iw_mr *ibmr) | 
|  | 875 | { | 
|  | 876 | if (ibmr->page_list) | 
|  | 877 | ib_free_fast_reg_page_list(ibmr->page_list); | 
|  | 878 | if (ibmr->mr) | 
|  | 879 | ib_dereg_mr(ibmr->mr); | 
|  | 880 | } |