1 /* 2 * Copyright (c) 2016 Hisilicon Limited. 3 * Copyright (c) 2007, 2008 Mellanox Technologies. All rights reserved. 4 * 5 * This software is available to you under a choice of one of two 6 * licenses. You may choose to be licensed under the terms of the GNU 7 * General Public License (GPL) Version 2, available from the file 8 * COPYING in the main directory of this source tree, or the 9 * OpenIB.org BSD license below: 10 * 11 * Redistribution and use in source and binary forms, with or 12 * without modification, are permitted provided that the following 13 * conditions are met: 14 * 15 * - Redistributions of source code must retain the above 16 * copyright notice, this list of conditions and the following 17 * disclaimer. 18 * 19 * - Redistributions in binary form must reproduce the above 20 * copyright notice, this list of conditions and the following 21 * disclaimer in the documentation and/or other materials 22 * provided with the distribution. 23 * 24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, 25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF 26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND 27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS 28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN 29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN 30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE 31 * SOFTWARE. 32 */ 33 34 #include <linux/vmalloc.h> 35 #include <linux/count_zeros.h> 36 #include <rdma/ib_umem.h> 37 #include <linux/math.h> 38 #include "hns_roce_device.h" 39 #include "hns_roce_cmd.h" 40 #include "hns_roce_hem.h" 41 #include "hns_roce_trace.h" 42 43 static u32 hw_index_to_key(int ind) 44 { 45 return ((u32)ind >> 24) | ((u32)ind << 8); 46 } 47 48 unsigned long key_to_hw_index(u32 key) 49 { 50 return (key << 24) | (key >> 8); 51 } 52 53 static int alloc_mr_key(struct hns_roce_dev *hr_dev, struct hns_roce_mr *mr) 54 { 55 struct hns_roce_ida *mtpt_ida = &hr_dev->mr_table.mtpt_ida; 56 struct ib_device *ibdev = &hr_dev->ib_dev; 57 int err; 58 int id; 59 60 /* Allocate a key for mr from mr_table */ 61 id = ida_alloc_range(&mtpt_ida->ida, mtpt_ida->min, mtpt_ida->max, 62 GFP_KERNEL); 63 if (id < 0) { 64 ibdev_err(ibdev, "failed to alloc id for MR key, id(%d)\n", id); 65 return -ENOMEM; 66 } 67 68 mr->key = hw_index_to_key(id); /* MR key */ 69 70 err = hns_roce_table_get(hr_dev, &hr_dev->mr_table.mtpt_table, 71 (unsigned long)id); 72 if (err) { 73 ibdev_err(ibdev, "failed to alloc mtpt, ret = %d.\n", err); 74 goto err_free_bitmap; 75 } 76 77 return 0; 78 err_free_bitmap: 79 ida_free(&mtpt_ida->ida, id); 80 return err; 81 } 82 83 static void free_mr_key(struct hns_roce_dev *hr_dev, struct hns_roce_mr *mr) 84 { 85 unsigned long obj = key_to_hw_index(mr->key); 86 87 hns_roce_table_put(hr_dev, &hr_dev->mr_table.mtpt_table, obj); 88 ida_free(&hr_dev->mr_table.mtpt_ida.ida, (int)obj); 89 } 90 91 static int alloc_mr_pbl(struct hns_roce_dev *hr_dev, struct hns_roce_mr *mr, 92 struct ib_udata *udata, u64 start) 93 { 94 struct ib_device *ibdev = &hr_dev->ib_dev; 95 bool is_fast = mr->type == MR_TYPE_FRMR; 96 struct hns_roce_buf_attr buf_attr = {}; 97 int err; 98 99 mr->pbl_hop_num = is_fast ? 1 : hr_dev->caps.pbl_hop_num; 100 buf_attr.page_shift = is_fast ? PAGE_SHIFT : 101 hr_dev->caps.pbl_buf_pg_sz + PAGE_SHIFT; 102 buf_attr.region[0].size = mr->size; 103 buf_attr.region[0].hopnum = mr->pbl_hop_num; 104 buf_attr.region_count = 1; 105 buf_attr.user_access = mr->access; 106 /* fast MR's buffer is alloced before mapping, not at creation */ 107 buf_attr.mtt_only = is_fast; 108 buf_attr.iova = mr->iova; 109 /* pagesize and hopnum is fixed for fast MR */ 110 buf_attr.adaptive = !is_fast; 111 buf_attr.type = MTR_PBL; 112 113 err = hns_roce_mtr_create(hr_dev, &mr->pbl_mtr, &buf_attr, 114 hr_dev->caps.pbl_ba_pg_sz + PAGE_SHIFT, 115 udata, start); 116 if (err) { 117 ibdev_err(ibdev, "failed to alloc pbl mtr, ret = %d.\n", err); 118 return err; 119 } 120 121 mr->npages = mr->pbl_mtr.hem_cfg.buf_pg_count; 122 mr->pbl_hop_num = buf_attr.region[0].hopnum; 123 124 return err; 125 } 126 127 static void free_mr_pbl(struct hns_roce_dev *hr_dev, struct hns_roce_mr *mr) 128 { 129 hns_roce_mtr_destroy(hr_dev, &mr->pbl_mtr); 130 } 131 132 static void hns_roce_mr_free(struct hns_roce_dev *hr_dev, struct hns_roce_mr *mr) 133 { 134 struct ib_device *ibdev = &hr_dev->ib_dev; 135 int ret; 136 137 if (mr->enabled) { 138 ret = hns_roce_destroy_hw_ctx(hr_dev, HNS_ROCE_CMD_DESTROY_MPT, 139 key_to_hw_index(mr->key) & 140 (hr_dev->caps.num_mtpts - 1)); 141 if (ret) 142 ibdev_warn_ratelimited(ibdev, "failed to destroy mpt, ret = %d.\n", 143 ret); 144 } 145 146 free_mr_pbl(hr_dev, mr); 147 free_mr_key(hr_dev, mr); 148 } 149 150 static int hns_roce_mr_enable(struct hns_roce_dev *hr_dev, 151 struct hns_roce_mr *mr) 152 { 153 unsigned long mtpt_idx = key_to_hw_index(mr->key); 154 struct hns_roce_cmd_mailbox *mailbox; 155 struct device *dev = hr_dev->dev; 156 int ret; 157 158 /* Allocate mailbox memory */ 159 mailbox = hns_roce_alloc_cmd_mailbox(hr_dev); 160 if (IS_ERR(mailbox)) 161 return PTR_ERR(mailbox); 162 163 trace_hns_mr(mr); 164 if (mr->type != MR_TYPE_FRMR) 165 ret = hr_dev->hw->write_mtpt(hr_dev, mailbox->buf, mr); 166 else 167 ret = hr_dev->hw->frmr_write_mtpt(mailbox->buf, mr); 168 if (ret) { 169 dev_err(dev, "failed to write mtpt, ret = %d.\n", ret); 170 goto err_page; 171 } 172 173 ret = hns_roce_create_hw_ctx(hr_dev, mailbox, HNS_ROCE_CMD_CREATE_MPT, 174 mtpt_idx & (hr_dev->caps.num_mtpts - 1)); 175 if (ret) { 176 dev_err(dev, "failed to create mpt, ret = %d.\n", ret); 177 goto err_page; 178 } 179 180 mr->enabled = 1; 181 182 err_page: 183 hns_roce_free_cmd_mailbox(hr_dev, mailbox); 184 185 return ret; 186 } 187 188 void hns_roce_init_mr_table(struct hns_roce_dev *hr_dev) 189 { 190 struct hns_roce_ida *mtpt_ida = &hr_dev->mr_table.mtpt_ida; 191 192 ida_init(&mtpt_ida->ida); 193 mtpt_ida->max = hr_dev->caps.num_mtpts - 1; 194 mtpt_ida->min = hr_dev->caps.reserved_mrws; 195 } 196 197 struct ib_mr *hns_roce_get_dma_mr(struct ib_pd *pd, int acc) 198 { 199 struct hns_roce_dev *hr_dev = to_hr_dev(pd->device); 200 struct hns_roce_mr *mr; 201 int ret; 202 203 mr = kzalloc_obj(*mr); 204 if (!mr) 205 return ERR_PTR(-ENOMEM); 206 207 mr->type = MR_TYPE_DMA; 208 mr->pd = to_hr_pd(pd)->pdn; 209 mr->access = acc; 210 211 /* Allocate memory region key */ 212 hns_roce_hem_list_init(&mr->pbl_mtr.hem_list); 213 ret = alloc_mr_key(hr_dev, mr); 214 if (ret) 215 goto err_free; 216 217 ret = hns_roce_mr_enable(hr_dev, mr); 218 if (ret) 219 goto err_mr; 220 221 mr->ibmr.rkey = mr->ibmr.lkey = mr->key; 222 223 return &mr->ibmr; 224 err_mr: 225 free_mr_key(hr_dev, mr); 226 227 err_free: 228 kfree(mr); 229 return ERR_PTR(ret); 230 } 231 232 struct ib_mr *hns_roce_reg_user_mr(struct ib_pd *pd, u64 start, u64 length, 233 u64 virt_addr, int access_flags, 234 struct ib_dmah *dmah, 235 struct ib_udata *udata) 236 { 237 struct hns_roce_dev *hr_dev = to_hr_dev(pd->device); 238 struct hns_roce_mr *mr; 239 int ret; 240 241 if (dmah) { 242 ret = -EOPNOTSUPP; 243 goto err_out; 244 } 245 246 mr = kzalloc_obj(*mr); 247 if (!mr) { 248 ret = -ENOMEM; 249 goto err_out; 250 } 251 252 mr->iova = virt_addr; 253 mr->size = length; 254 mr->pd = to_hr_pd(pd)->pdn; 255 mr->access = access_flags; 256 mr->type = MR_TYPE_MR; 257 258 ret = alloc_mr_key(hr_dev, mr); 259 if (ret) 260 goto err_alloc_mr; 261 262 ret = alloc_mr_pbl(hr_dev, mr, udata, start); 263 if (ret) 264 goto err_alloc_key; 265 266 ret = hns_roce_mr_enable(hr_dev, mr); 267 if (ret) 268 goto err_alloc_pbl; 269 270 mr->ibmr.rkey = mr->ibmr.lkey = mr->key; 271 272 return &mr->ibmr; 273 274 err_alloc_pbl: 275 free_mr_pbl(hr_dev, mr); 276 err_alloc_key: 277 free_mr_key(hr_dev, mr); 278 err_alloc_mr: 279 kfree(mr); 280 err_out: 281 atomic64_inc(&hr_dev->dfx_cnt[HNS_ROCE_DFX_MR_REG_ERR_CNT]); 282 283 return ERR_PTR(ret); 284 } 285 286 struct ib_mr *hns_roce_rereg_user_mr(struct ib_mr *ibmr, int flags, u64 start, 287 u64 length, u64 virt_addr, 288 int mr_access_flags, struct ib_pd *pd, 289 struct ib_udata *udata) 290 { 291 struct hns_roce_dev *hr_dev = to_hr_dev(ibmr->device); 292 struct ib_device *ib_dev = &hr_dev->ib_dev; 293 struct hns_roce_mr *mr = to_hr_mr(ibmr); 294 struct hns_roce_cmd_mailbox *mailbox; 295 unsigned long mtpt_idx; 296 int ret; 297 298 if (!mr->enabled) { 299 ret = -EINVAL; 300 goto err_out; 301 } 302 303 ret = ib_umem_check_rereg(mr->pbl_mtr.umem, flags, mr_access_flags); 304 if (ret) 305 goto err_out; 306 307 mailbox = hns_roce_alloc_cmd_mailbox(hr_dev); 308 ret = PTR_ERR_OR_ZERO(mailbox); 309 if (ret) 310 goto err_out; 311 312 mtpt_idx = key_to_hw_index(mr->key) & (hr_dev->caps.num_mtpts - 1); 313 314 ret = hns_roce_cmd_mbox(hr_dev, 0, mailbox->dma, HNS_ROCE_CMD_QUERY_MPT, 315 mtpt_idx); 316 if (ret) 317 goto free_cmd_mbox; 318 319 ret = hns_roce_destroy_hw_ctx(hr_dev, HNS_ROCE_CMD_DESTROY_MPT, 320 mtpt_idx); 321 if (ret) 322 ibdev_warn(ib_dev, "failed to destroy MPT, ret = %d.\n", ret); 323 324 mr->enabled = 0; 325 mr->iova = virt_addr; 326 mr->size = length; 327 328 if (flags & IB_MR_REREG_PD) 329 mr->pd = to_hr_pd(pd)->pdn; 330 331 if (flags & IB_MR_REREG_ACCESS) 332 mr->access = mr_access_flags; 333 334 if (flags & IB_MR_REREG_TRANS) { 335 free_mr_pbl(hr_dev, mr); 336 ret = alloc_mr_pbl(hr_dev, mr, udata, start); 337 if (ret) { 338 ibdev_err(ib_dev, "failed to alloc mr PBL, ret = %d.\n", 339 ret); 340 goto free_cmd_mbox; 341 } 342 } 343 344 ret = hr_dev->hw->rereg_write_mtpt(hr_dev, mr, flags, mailbox->buf); 345 if (ret) { 346 ibdev_err(ib_dev, "failed to write mtpt, ret = %d.\n", ret); 347 goto free_cmd_mbox; 348 } 349 350 ret = hns_roce_create_hw_ctx(hr_dev, mailbox, HNS_ROCE_CMD_CREATE_MPT, 351 mtpt_idx); 352 if (ret) { 353 ibdev_err(ib_dev, "failed to create MPT, ret = %d.\n", ret); 354 goto free_cmd_mbox; 355 } 356 357 mr->enabled = 1; 358 359 free_cmd_mbox: 360 hns_roce_free_cmd_mailbox(hr_dev, mailbox); 361 362 err_out: 363 if (ret) { 364 atomic64_inc(&hr_dev->dfx_cnt[HNS_ROCE_DFX_MR_REREG_ERR_CNT]); 365 return ERR_PTR(ret); 366 } 367 368 return NULL; 369 } 370 371 int hns_roce_dereg_mr(struct ib_mr *ibmr, struct ib_udata *udata) 372 { 373 struct hns_roce_dev *hr_dev = to_hr_dev(ibmr->device); 374 struct hns_roce_mr *mr = to_hr_mr(ibmr); 375 376 if (hr_dev->hw->dereg_mr) 377 hr_dev->hw->dereg_mr(hr_dev); 378 379 hns_roce_mr_free(hr_dev, mr); 380 kfree(mr); 381 382 return 0; 383 } 384 385 struct ib_mr *hns_roce_alloc_mr(struct ib_pd *pd, enum ib_mr_type mr_type, 386 u32 max_num_sg) 387 { 388 struct hns_roce_dev *hr_dev = to_hr_dev(pd->device); 389 struct device *dev = hr_dev->dev; 390 struct hns_roce_mr *mr; 391 int ret; 392 393 if (mr_type != IB_MR_TYPE_MEM_REG) 394 return ERR_PTR(-EINVAL); 395 396 if (max_num_sg > HNS_ROCE_FRMR_MAX_PA) { 397 dev_err(dev, "max_num_sg larger than %d\n", 398 HNS_ROCE_FRMR_MAX_PA); 399 return ERR_PTR(-EINVAL); 400 } 401 402 mr = kzalloc_obj(*mr); 403 if (!mr) 404 return ERR_PTR(-ENOMEM); 405 406 mr->type = MR_TYPE_FRMR; 407 mr->pd = to_hr_pd(pd)->pdn; 408 mr->size = max_num_sg * (1 << PAGE_SHIFT); 409 410 /* Allocate memory region key */ 411 ret = alloc_mr_key(hr_dev, mr); 412 if (ret) 413 goto err_free; 414 415 ret = alloc_mr_pbl(hr_dev, mr, NULL, 0); 416 if (ret) 417 goto err_key; 418 419 ret = hns_roce_mr_enable(hr_dev, mr); 420 if (ret) 421 goto err_pbl; 422 423 mr->ibmr.rkey = mr->ibmr.lkey = mr->key; 424 mr->ibmr.length = mr->size; 425 426 return &mr->ibmr; 427 428 err_pbl: 429 free_mr_pbl(hr_dev, mr); 430 err_key: 431 free_mr_key(hr_dev, mr); 432 err_free: 433 kfree(mr); 434 return ERR_PTR(ret); 435 } 436 437 static int hns_roce_set_page(struct ib_mr *ibmr, u64 addr) 438 { 439 struct hns_roce_mr *mr = to_hr_mr(ibmr); 440 441 if (likely(mr->npages < mr->pbl_mtr.hem_cfg.buf_pg_count)) { 442 mr->page_list[mr->npages++] = addr; 443 return 0; 444 } 445 446 return -ENOBUFS; 447 } 448 449 int hns_roce_map_mr_sg(struct ib_mr *ibmr, struct scatterlist *sg, int sg_nents, 450 unsigned int *sg_offset_p) 451 { 452 unsigned int sg_offset = sg_offset_p ? *sg_offset_p : 0; 453 struct hns_roce_dev *hr_dev = to_hr_dev(ibmr->device); 454 struct ib_device *ibdev = &hr_dev->ib_dev; 455 struct hns_roce_mr *mr = to_hr_mr(ibmr); 456 struct hns_roce_mtr *mtr = &mr->pbl_mtr; 457 int ret, sg_num = 0; 458 459 if (!IS_ALIGNED(sg_offset, HNS_ROCE_FRMR_ALIGN_SIZE) || 460 ibmr->page_size < HNS_HW_PAGE_SIZE || 461 ibmr->page_size > HNS_HW_MAX_PAGE_SIZE) 462 return sg_num; 463 464 mr->npages = 0; 465 mr->page_list = kvzalloc_objs(dma_addr_t, 466 mr->pbl_mtr.hem_cfg.buf_pg_count); 467 if (!mr->page_list) 468 return sg_num; 469 470 sg_num = ib_sg_to_pages(ibmr, sg, sg_nents, sg_offset_p, hns_roce_set_page); 471 if (sg_num < 1) { 472 ibdev_err(ibdev, "failed to store sg pages %u %u, cnt = %d.\n", 473 mr->npages, mr->pbl_mtr.hem_cfg.buf_pg_count, sg_num); 474 goto err_page_list; 475 } 476 477 mtr->hem_cfg.region[0].offset = 0; 478 mtr->hem_cfg.region[0].count = mr->npages; 479 mtr->hem_cfg.region[0].hopnum = mr->pbl_hop_num; 480 mtr->hem_cfg.region_count = 1; 481 ret = hns_roce_mtr_map(hr_dev, mtr, mr->page_list, mr->npages); 482 if (ret) { 483 ibdev_err(ibdev, "failed to map sg mtr, ret = %d.\n", ret); 484 sg_num = 0; 485 } else { 486 mr->pbl_mtr.hem_cfg.buf_pg_shift = (u32)ilog2(ibmr->page_size); 487 } 488 489 err_page_list: 490 kvfree(mr->page_list); 491 mr->page_list = NULL; 492 493 return sg_num; 494 } 495 496 static int mtr_map_region(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 497 struct hns_roce_buf_region *region, dma_addr_t *pages, 498 int max_count) 499 { 500 int count, npage; 501 int offset, end; 502 __le64 *mtts; 503 u64 addr; 504 int i; 505 506 offset = region->offset; 507 end = offset + region->count; 508 npage = 0; 509 while (offset < end && npage < max_count) { 510 count = 0; 511 mtts = hns_roce_hem_list_find_mtt(hr_dev, &mtr->hem_list, 512 offset, &count); 513 if (!mtts) 514 return -ENOBUFS; 515 516 for (i = 0; i < count && npage < max_count; i++) { 517 addr = pages[npage]; 518 519 mtts[i] = cpu_to_le64(addr); 520 npage++; 521 } 522 offset += count; 523 } 524 525 return npage; 526 } 527 528 static inline bool mtr_has_mtt(struct hns_roce_buf_attr *attr) 529 { 530 int i; 531 532 for (i = 0; i < attr->region_count; i++) 533 if (attr->region[i].hopnum != HNS_ROCE_HOP_NUM_0 && 534 attr->region[i].hopnum > 0) 535 return true; 536 537 /* because the mtr only one root base address, when hopnum is 0 means 538 * root base address equals the first buffer address, thus all alloced 539 * memory must in a continuous space accessed by direct mode. 540 */ 541 return false; 542 } 543 544 static inline size_t mtr_bufs_size(struct hns_roce_buf_attr *attr) 545 { 546 size_t size = 0; 547 int i; 548 549 for (i = 0; i < attr->region_count; i++) 550 size += attr->region[i].size; 551 552 return size; 553 } 554 555 /* 556 * check the given pages in continuous address space 557 * Returns 0 on success, or the error page num. 558 */ 559 static inline int mtr_check_direct_pages(dma_addr_t *pages, int page_count, 560 unsigned int page_shift) 561 { 562 size_t page_size = 1 << page_shift; 563 int i; 564 565 for (i = 1; i < page_count; i++) 566 if (pages[i] - pages[i - 1] != page_size) 567 return i; 568 569 return 0; 570 } 571 572 static void mtr_free_bufs(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr) 573 { 574 /* release user buffers */ 575 if (mtr->umem) { 576 ib_umem_release(mtr->umem); 577 mtr->umem = NULL; 578 } 579 580 /* release kernel buffers */ 581 if (mtr->kmem) { 582 hns_roce_buf_free(hr_dev, mtr->kmem); 583 mtr->kmem = NULL; 584 } 585 } 586 587 static int mtr_alloc_bufs(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 588 struct hns_roce_buf_attr *buf_attr, 589 struct ib_udata *udata, unsigned long user_addr) 590 { 591 struct ib_device *ibdev = &hr_dev->ib_dev; 592 size_t total_size; 593 594 total_size = mtr_bufs_size(buf_attr); 595 596 if (udata) { 597 mtr->kmem = NULL; 598 mtr->umem = ib_umem_get(ibdev, user_addr, total_size, 599 buf_attr->user_access); 600 if (IS_ERR(mtr->umem)) { 601 ibdev_err(ibdev, "failed to get umem, ret = %pe.\n", 602 mtr->umem); 603 return -ENOMEM; 604 } 605 } else { 606 mtr->umem = NULL; 607 mtr->kmem = hns_roce_buf_alloc(hr_dev, total_size, 608 buf_attr->page_shift, 609 !mtr_has_mtt(buf_attr) ? 610 HNS_ROCE_BUF_DIRECT : 0); 611 if (IS_ERR(mtr->kmem)) { 612 ibdev_err(ibdev, "failed to alloc kmem, ret = %pe.\n", 613 mtr->kmem); 614 return PTR_ERR(mtr->kmem); 615 } 616 } 617 618 return 0; 619 } 620 621 static int cal_mtr_pg_cnt(struct hns_roce_mtr *mtr) 622 { 623 struct hns_roce_buf_region *region; 624 int page_cnt = 0; 625 int i; 626 627 for (i = 0; i < mtr->hem_cfg.region_count; i++) { 628 region = &mtr->hem_cfg.region[i]; 629 page_cnt += region->count; 630 } 631 632 return page_cnt; 633 } 634 635 static bool need_split_huge_page(struct hns_roce_mtr *mtr) 636 { 637 /* When HEM buffer uses 0-level addressing, the page size is 638 * equal to the whole buffer size. If the current MTR has multiple 639 * regions, we split the buffer into small pages(4k, required by hns 640 * ROCEE). These pages will be used in multiple regions. 641 */ 642 return mtr->hem_cfg.is_direct && mtr->hem_cfg.region_count > 1; 643 } 644 645 static int mtr_map_bufs(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr) 646 { 647 struct ib_device *ibdev = &hr_dev->ib_dev; 648 int page_count = cal_mtr_pg_cnt(mtr); 649 unsigned int page_shift; 650 dma_addr_t *pages; 651 int npage; 652 int ret; 653 654 page_shift = need_split_huge_page(mtr) ? HNS_HW_PAGE_SHIFT : 655 mtr->hem_cfg.buf_pg_shift; 656 /* alloc a tmp array to store buffer's dma address */ 657 pages = kvzalloc_objs(dma_addr_t, page_count); 658 if (!pages) 659 return -ENOMEM; 660 661 if (mtr->umem) 662 npage = hns_roce_get_umem_bufs(pages, page_count, 663 mtr->umem, page_shift); 664 else 665 npage = hns_roce_get_kmem_bufs(hr_dev, pages, page_count, 666 mtr->kmem, page_shift); 667 668 if (npage != page_count) { 669 ibdev_err(ibdev, "failed to get mtr page %d != %d.\n", npage, 670 page_count); 671 ret = -ENOBUFS; 672 goto err_alloc_list; 673 } 674 675 if (need_split_huge_page(mtr) && npage > 1) { 676 ret = mtr_check_direct_pages(pages, npage, page_shift); 677 if (ret) { 678 ibdev_err(ibdev, "failed to check %s page: %d / %d.\n", 679 mtr->umem ? "umtr" : "kmtr", ret, npage); 680 ret = -ENOBUFS; 681 goto err_alloc_list; 682 } 683 } 684 685 ret = hns_roce_mtr_map(hr_dev, mtr, pages, page_count); 686 if (ret) 687 ibdev_err(ibdev, "failed to map mtr pages, ret = %d.\n", ret); 688 689 err_alloc_list: 690 kvfree(pages); 691 692 return ret; 693 } 694 695 int hns_roce_mtr_map(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 696 dma_addr_t *pages, unsigned int page_cnt) 697 { 698 struct ib_device *ibdev = &hr_dev->ib_dev; 699 struct hns_roce_buf_region *r; 700 unsigned int i, mapped_cnt; 701 int ret = 0; 702 703 /* 704 * Only use the first page address as root ba when hopnum is 0, this 705 * is because the addresses of all pages are consecutive in this case. 706 */ 707 if (mtr->hem_cfg.is_direct) { 708 mtr->hem_cfg.root_ba = pages[0]; 709 return 0; 710 } 711 712 for (i = 0, mapped_cnt = 0; i < mtr->hem_cfg.region_count && 713 mapped_cnt < page_cnt; i++) { 714 r = &mtr->hem_cfg.region[i]; 715 716 if (r->offset + r->count > page_cnt) { 717 ret = -EINVAL; 718 ibdev_err(ibdev, 719 "failed to check mtr%u count %u + %u > %u.\n", 720 i, r->offset, r->count, page_cnt); 721 return ret; 722 } 723 724 ret = mtr_map_region(hr_dev, mtr, r, &pages[r->offset], 725 page_cnt - mapped_cnt); 726 if (ret < 0) { 727 ibdev_err(ibdev, 728 "failed to map mtr%u offset %u, ret = %d.\n", 729 i, r->offset, ret); 730 return ret; 731 } 732 mapped_cnt += ret; 733 ret = 0; 734 } 735 736 if (mapped_cnt < page_cnt) { 737 ret = -ENOBUFS; 738 ibdev_err(ibdev, "failed to map mtr pages count: %u < %u.\n", 739 mapped_cnt, page_cnt); 740 } 741 742 return ret; 743 } 744 745 static int hns_roce_get_direct_addr_mtt(struct hns_roce_hem_cfg *cfg, 746 u32 start_index, u64 *mtt_buf, 747 int mtt_cnt) 748 { 749 int mtt_count; 750 int total = 0; 751 u32 npage; 752 u64 addr; 753 754 if (mtt_cnt > cfg->region_count) 755 return -EINVAL; 756 757 for (mtt_count = 0; mtt_count < cfg->region_count && total < mtt_cnt; 758 mtt_count++) { 759 npage = cfg->region[mtt_count].offset; 760 if (npage < start_index) 761 continue; 762 763 addr = cfg->root_ba + (npage << HNS_HW_PAGE_SHIFT); 764 mtt_buf[total] = addr; 765 766 total++; 767 } 768 769 if (!total) 770 return -ENOENT; 771 772 return 0; 773 } 774 775 static int hns_roce_get_mhop_mtt(struct hns_roce_dev *hr_dev, 776 struct hns_roce_mtr *mtr, u32 start_index, 777 u64 *mtt_buf, int mtt_cnt) 778 { 779 int left = mtt_cnt; 780 int total = 0; 781 int mtt_count; 782 __le64 *mtts; 783 u32 npage; 784 785 while (left > 0) { 786 mtt_count = 0; 787 mtts = hns_roce_hem_list_find_mtt(hr_dev, &mtr->hem_list, 788 start_index + total, 789 &mtt_count); 790 if (!mtts || !mtt_count) 791 break; 792 793 npage = min(mtt_count, left); 794 left -= npage; 795 for (mtt_count = 0; mtt_count < npage; mtt_count++) 796 mtt_buf[total++] = le64_to_cpu(mtts[mtt_count]); 797 } 798 799 if (!total) 800 return -ENOENT; 801 802 return 0; 803 } 804 805 int hns_roce_mtr_find(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 806 u32 offset, u64 *mtt_buf, int mtt_max) 807 { 808 struct hns_roce_hem_cfg *cfg = &mtr->hem_cfg; 809 u32 start_index; 810 int ret; 811 812 if (!mtt_buf || mtt_max < 1) 813 return -EINVAL; 814 815 /* no mtt memory in direct mode, so just return the buffer address */ 816 if (cfg->is_direct) { 817 start_index = offset >> HNS_HW_PAGE_SHIFT; 818 ret = hns_roce_get_direct_addr_mtt(cfg, start_index, 819 mtt_buf, mtt_max); 820 } else { 821 start_index = offset >> cfg->buf_pg_shift; 822 ret = hns_roce_get_mhop_mtt(hr_dev, mtr, start_index, 823 mtt_buf, mtt_max); 824 } 825 return ret; 826 } 827 828 static int get_best_page_shift(struct hns_roce_dev *hr_dev, 829 struct hns_roce_mtr *mtr, 830 struct hns_roce_buf_attr *buf_attr) 831 { 832 unsigned int page_sz; 833 834 if (!buf_attr->adaptive || buf_attr->type != MTR_PBL || !mtr->umem) 835 return 0; 836 837 page_sz = ib_umem_find_best_pgsz(mtr->umem, 838 hr_dev->caps.page_size_cap, 839 buf_attr->iova); 840 if (!page_sz) 841 return -EINVAL; 842 843 buf_attr->page_shift = order_base_2(page_sz); 844 return 0; 845 } 846 847 static int get_best_hop_num(struct hns_roce_dev *hr_dev, 848 struct hns_roce_mtr *mtr, 849 struct hns_roce_buf_attr *buf_attr, 850 unsigned int ba_pg_shift) 851 { 852 #define INVALID_HOPNUM -1 853 #define MIN_BA_CNT 1 854 size_t buf_pg_sz = 1 << buf_attr->page_shift; 855 struct ib_device *ibdev = &hr_dev->ib_dev; 856 size_t ba_pg_sz = 1 << ba_pg_shift; 857 int hop_num = INVALID_HOPNUM; 858 size_t unit = MIN_BA_CNT; 859 size_t ba_cnt; 860 int j; 861 862 if (!buf_attr->adaptive || buf_attr->type != MTR_PBL) 863 return 0; 864 865 /* Caculating the number of buf pages, each buf page need a BA */ 866 if (mtr->umem) 867 ba_cnt = ib_umem_num_dma_blocks(mtr->umem, buf_pg_sz); 868 else 869 ba_cnt = DIV_ROUND_UP(buf_attr->region[0].size, buf_pg_sz); 870 871 for (j = 0; j <= HNS_ROCE_MAX_HOP_NUM; j++) { 872 if (ba_cnt <= unit) { 873 hop_num = j; 874 break; 875 } 876 /* Number of BAs can be represented at per hop */ 877 unit *= ba_pg_sz / BA_BYTE_LEN; 878 } 879 880 if (hop_num < 0) { 881 ibdev_err(ibdev, 882 "failed to calculate a valid hopnum.\n"); 883 return -EINVAL; 884 } 885 886 buf_attr->region[0].hopnum = hop_num; 887 888 return 0; 889 } 890 891 static bool is_buf_attr_valid(struct hns_roce_dev *hr_dev, 892 struct hns_roce_buf_attr *attr) 893 { 894 struct ib_device *ibdev = &hr_dev->ib_dev; 895 896 if (attr->region_count > ARRAY_SIZE(attr->region) || 897 attr->region_count < 1 || attr->page_shift < HNS_HW_PAGE_SHIFT) { 898 ibdev_err(ibdev, 899 "invalid buf attr, region count %u, page shift %u.\n", 900 attr->region_count, attr->page_shift); 901 return false; 902 } 903 904 return true; 905 } 906 907 static int mtr_init_buf_cfg(struct hns_roce_dev *hr_dev, 908 struct hns_roce_mtr *mtr, 909 struct hns_roce_buf_attr *attr) 910 { 911 struct hns_roce_hem_cfg *cfg = &mtr->hem_cfg; 912 struct hns_roce_buf_region *r; 913 size_t buf_pg_sz; 914 size_t buf_size; 915 int page_cnt, i; 916 u64 pgoff = 0; 917 918 if (!is_buf_attr_valid(hr_dev, attr)) 919 return -EINVAL; 920 921 /* If mtt is disabled, all pages must be within a continuous range */ 922 cfg->is_direct = !mtr_has_mtt(attr); 923 cfg->region_count = attr->region_count; 924 buf_size = mtr_bufs_size(attr); 925 if (need_split_huge_page(mtr)) { 926 buf_pg_sz = HNS_HW_PAGE_SIZE; 927 cfg->buf_pg_count = 1; 928 /* The ROCEE requires the page size to be 4K * 2 ^ N. */ 929 cfg->buf_pg_shift = HNS_HW_PAGE_SHIFT + 930 order_base_2(DIV_ROUND_UP(buf_size, HNS_HW_PAGE_SIZE)); 931 } else { 932 buf_pg_sz = 1 << attr->page_shift; 933 cfg->buf_pg_count = mtr->umem ? 934 ib_umem_num_dma_blocks(mtr->umem, buf_pg_sz) : 935 DIV_ROUND_UP(buf_size, buf_pg_sz); 936 cfg->buf_pg_shift = attr->page_shift; 937 pgoff = mtr->umem ? mtr->umem->address & ~PAGE_MASK : 0; 938 } 939 940 /* Convert buffer size to page index and page count for each region and 941 * the buffer's offset needs to be appended to the first region. 942 */ 943 for (page_cnt = 0, i = 0; i < attr->region_count; i++) { 944 r = &cfg->region[i]; 945 r->offset = page_cnt; 946 buf_size = hr_hw_page_align(attr->region[i].size + pgoff); 947 if (attr->type == MTR_PBL && mtr->umem) 948 r->count = ib_umem_num_dma_blocks(mtr->umem, buf_pg_sz); 949 else 950 r->count = DIV_ROUND_UP(buf_size, buf_pg_sz); 951 952 pgoff = 0; 953 page_cnt += r->count; 954 r->hopnum = to_hr_hem_hopnum(attr->region[i].hopnum, r->count); 955 } 956 957 return 0; 958 } 959 960 static u64 cal_pages_per_l1ba(unsigned int ba_per_bt, unsigned int hopnum) 961 { 962 return int_pow(ba_per_bt, hopnum - 1); 963 } 964 965 static unsigned int cal_best_bt_pg_sz(struct hns_roce_dev *hr_dev, 966 struct hns_roce_mtr *mtr, 967 unsigned int pg_shift) 968 { 969 unsigned long cap = hr_dev->caps.page_size_cap; 970 struct hns_roce_buf_region *re; 971 unsigned int pgs_per_l1ba; 972 unsigned int ba_per_bt; 973 unsigned int ba_num; 974 int i; 975 976 for_each_set_bit_from(pg_shift, &cap, sizeof(cap) * BITS_PER_BYTE) { 977 if (!(BIT(pg_shift) & cap)) 978 continue; 979 980 ba_per_bt = BIT(pg_shift) / BA_BYTE_LEN; 981 ba_num = 0; 982 for (i = 0; i < mtr->hem_cfg.region_count; i++) { 983 re = &mtr->hem_cfg.region[i]; 984 if (re->hopnum == 0) 985 continue; 986 987 pgs_per_l1ba = cal_pages_per_l1ba(ba_per_bt, re->hopnum); 988 ba_num += DIV_ROUND_UP(re->count, pgs_per_l1ba); 989 } 990 991 if (ba_num <= ba_per_bt) 992 return pg_shift; 993 } 994 995 return 0; 996 } 997 998 static int mtr_alloc_mtt(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 999 unsigned int ba_page_shift) 1000 { 1001 struct hns_roce_hem_cfg *cfg = &mtr->hem_cfg; 1002 int ret; 1003 1004 hns_roce_hem_list_init(&mtr->hem_list); 1005 if (!cfg->is_direct) { 1006 ba_page_shift = cal_best_bt_pg_sz(hr_dev, mtr, ba_page_shift); 1007 if (!ba_page_shift) 1008 return -ERANGE; 1009 1010 ret = hns_roce_hem_list_request(hr_dev, &mtr->hem_list, 1011 cfg->region, cfg->region_count, 1012 ba_page_shift); 1013 if (ret) 1014 return ret; 1015 cfg->root_ba = mtr->hem_list.root_ba; 1016 cfg->ba_pg_shift = ba_page_shift; 1017 } else { 1018 cfg->ba_pg_shift = cfg->buf_pg_shift; 1019 } 1020 1021 return 0; 1022 } 1023 1024 static void mtr_free_mtt(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr) 1025 { 1026 hns_roce_hem_list_release(hr_dev, &mtr->hem_list); 1027 } 1028 1029 /** 1030 * hns_roce_mtr_create - Create hns memory translate region. 1031 * 1032 * @hr_dev: RoCE device struct pointer 1033 * @mtr: memory translate region 1034 * @buf_attr: buffer attribute for creating mtr 1035 * @ba_page_shift: page shift for multi-hop base address table 1036 * @udata: user space context, if it's NULL, means kernel space 1037 * @user_addr: userspace virtual address to start at 1038 */ 1039 int hns_roce_mtr_create(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr, 1040 struct hns_roce_buf_attr *buf_attr, 1041 unsigned int ba_page_shift, struct ib_udata *udata, 1042 unsigned long user_addr) 1043 { 1044 struct ib_device *ibdev = &hr_dev->ib_dev; 1045 int ret; 1046 1047 trace_hns_buf_attr(buf_attr); 1048 /* The caller has its own buffer list and invokes the hns_roce_mtr_map() 1049 * to finish the MTT configuration. 1050 */ 1051 if (buf_attr->mtt_only) { 1052 mtr->umem = NULL; 1053 mtr->kmem = NULL; 1054 } else { 1055 ret = mtr_alloc_bufs(hr_dev, mtr, buf_attr, udata, user_addr); 1056 if (ret) { 1057 ibdev_err(ibdev, 1058 "failed to alloc mtr bufs, ret = %d.\n", ret); 1059 return ret; 1060 } 1061 1062 ret = get_best_page_shift(hr_dev, mtr, buf_attr); 1063 if (ret) 1064 goto err_init_buf; 1065 1066 ret = get_best_hop_num(hr_dev, mtr, buf_attr, ba_page_shift); 1067 if (ret) 1068 goto err_init_buf; 1069 } 1070 1071 ret = mtr_init_buf_cfg(hr_dev, mtr, buf_attr); 1072 if (ret) 1073 goto err_init_buf; 1074 1075 ret = mtr_alloc_mtt(hr_dev, mtr, ba_page_shift); 1076 if (ret) { 1077 ibdev_err(ibdev, "failed to alloc mtr mtt, ret = %d.\n", ret); 1078 goto err_init_buf; 1079 } 1080 1081 if (buf_attr->mtt_only) 1082 return 0; 1083 1084 /* Write buffer's dma address to MTT */ 1085 ret = mtr_map_bufs(hr_dev, mtr); 1086 if (ret) { 1087 ibdev_err(ibdev, "failed to map mtr bufs, ret = %d.\n", ret); 1088 goto err_alloc_mtt; 1089 } 1090 1091 return 0; 1092 1093 err_alloc_mtt: 1094 mtr_free_mtt(hr_dev, mtr); 1095 err_init_buf: 1096 mtr_free_bufs(hr_dev, mtr); 1097 1098 return ret; 1099 } 1100 1101 void hns_roce_mtr_destroy(struct hns_roce_dev *hr_dev, struct hns_roce_mtr *mtr) 1102 { 1103 /* release multi-hop addressing resource */ 1104 hns_roce_hem_list_release(hr_dev, &mtr->hem_list); 1105 1106 /* free buffers */ 1107 mtr_free_bufs(hr_dev, mtr); 1108 } 1109