ocrdma_verbs.c 67 KB

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  1. /*******************************************************************
  2. * This file is part of the Emulex RoCE Device Driver for *
  3. * RoCE (RDMA over Converged Ethernet) adapters. *
  4. * Copyright (C) 2008-2012 Emulex. All rights reserved. *
  5. * EMULEX and SLI are trademarks of Emulex. *
  6. * www.emulex.com *
  7. * *
  8. * This program is free software; you can redistribute it and/or *
  9. * modify it under the terms of version 2 of the GNU General *
  10. * Public License as published by the Free Software Foundation. *
  11. * This program is distributed in the hope that it will be useful. *
  12. * ALL EXPRESS OR IMPLIED CONDITIONS, REPRESENTATIONS AND *
  13. * WARRANTIES, INCLUDING ANY IMPLIED WARRANTY OF MERCHANTABILITY, *
  14. * FITNESS FOR A PARTICULAR PURPOSE, OR NON-INFRINGEMENT, ARE *
  15. * DISCLAIMED, EXCEPT TO THE EXTENT THAT SUCH DISCLAIMERS ARE HELD *
  16. * TO BE LEGALLY INVALID. See the GNU General Public License for *
  17. * more details, a copy of which can be found in the file COPYING *
  18. * included with this package. *
  19. *
  20. * Contact Information:
  21. * linux-drivers@emulex.com
  22. *
  23. * Emulex
  24. * 3333 Susan Street
  25. * Costa Mesa, CA 92626
  26. *******************************************************************/
  27. #include <linux/dma-mapping.h>
  28. #include <rdma/ib_verbs.h>
  29. #include <rdma/ib_user_verbs.h>
  30. #include <rdma/iw_cm.h>
  31. #include <rdma/ib_umem.h>
  32. #include <rdma/ib_addr.h>
  33. #include "ocrdma.h"
  34. #include "ocrdma_hw.h"
  35. #include "ocrdma_verbs.h"
  36. #include "ocrdma_abi.h"
  37. int ocrdma_query_pkey(struct ib_device *ibdev, u8 port, u16 index, u16 *pkey)
  38. {
  39. if (index > 1)
  40. return -EINVAL;
  41. *pkey = 0xffff;
  42. return 0;
  43. }
  44. int ocrdma_query_gid(struct ib_device *ibdev, u8 port,
  45. int index, union ib_gid *sgid)
  46. {
  47. struct ocrdma_dev *dev;
  48. dev = get_ocrdma_dev(ibdev);
  49. memset(sgid, 0, sizeof(*sgid));
  50. if (index > OCRDMA_MAX_SGID)
  51. return -EINVAL;
  52. memcpy(sgid, &dev->sgid_tbl[index], sizeof(*sgid));
  53. return 0;
  54. }
  55. int ocrdma_query_device(struct ib_device *ibdev, struct ib_device_attr *attr)
  56. {
  57. struct ocrdma_dev *dev = get_ocrdma_dev(ibdev);
  58. memset(attr, 0, sizeof *attr);
  59. memcpy(&attr->fw_ver, &dev->attr.fw_ver[0],
  60. min(sizeof(dev->attr.fw_ver), sizeof(attr->fw_ver)));
  61. ocrdma_get_guid(dev, (u8 *)&attr->sys_image_guid);
  62. attr->max_mr_size = ~0ull;
  63. attr->page_size_cap = 0xffff000;
  64. attr->vendor_id = dev->nic_info.pdev->vendor;
  65. attr->vendor_part_id = dev->nic_info.pdev->device;
  66. attr->hw_ver = 0;
  67. attr->max_qp = dev->attr.max_qp;
  68. attr->max_ah = dev->attr.max_qp;
  69. attr->max_qp_wr = dev->attr.max_wqe;
  70. attr->device_cap_flags = IB_DEVICE_CURR_QP_STATE_MOD |
  71. IB_DEVICE_RC_RNR_NAK_GEN |
  72. IB_DEVICE_SHUTDOWN_PORT |
  73. IB_DEVICE_SYS_IMAGE_GUID |
  74. IB_DEVICE_LOCAL_DMA_LKEY;
  75. attr->max_sge = dev->attr.max_send_sge;
  76. attr->max_sge_rd = dev->attr.max_send_sge;
  77. attr->max_cq = dev->attr.max_cq;
  78. attr->max_cqe = dev->attr.max_cqe;
  79. attr->max_mr = dev->attr.max_mr;
  80. attr->max_mw = 0;
  81. attr->max_pd = dev->attr.max_pd;
  82. attr->atomic_cap = 0;
  83. attr->max_fmr = 0;
  84. attr->max_map_per_fmr = 0;
  85. attr->max_qp_rd_atom =
  86. min(dev->attr.max_ord_per_qp, dev->attr.max_ird_per_qp);
  87. attr->max_qp_init_rd_atom = dev->attr.max_ord_per_qp;
  88. attr->max_srq = (dev->attr.max_qp - 1);
  89. attr->max_srq_sge = attr->max_sge;
  90. attr->max_srq_wr = dev->attr.max_rqe;
  91. attr->local_ca_ack_delay = dev->attr.local_ca_ack_delay;
  92. attr->max_fast_reg_page_list_len = 0;
  93. attr->max_pkeys = 1;
  94. return 0;
  95. }
  96. int ocrdma_query_port(struct ib_device *ibdev,
  97. u8 port, struct ib_port_attr *props)
  98. {
  99. enum ib_port_state port_state;
  100. struct ocrdma_dev *dev;
  101. struct net_device *netdev;
  102. dev = get_ocrdma_dev(ibdev);
  103. if (port > 1) {
  104. ocrdma_err("%s(%d) invalid_port=0x%x\n", __func__,
  105. dev->id, port);
  106. return -EINVAL;
  107. }
  108. netdev = dev->nic_info.netdev;
  109. if (netif_running(netdev) && netif_oper_up(netdev)) {
  110. port_state = IB_PORT_ACTIVE;
  111. props->phys_state = 5;
  112. } else {
  113. port_state = IB_PORT_DOWN;
  114. props->phys_state = 3;
  115. }
  116. props->max_mtu = IB_MTU_4096;
  117. props->active_mtu = iboe_get_mtu(netdev->mtu);
  118. props->lid = 0;
  119. props->lmc = 0;
  120. props->sm_lid = 0;
  121. props->sm_sl = 0;
  122. props->state = port_state;
  123. props->port_cap_flags =
  124. IB_PORT_CM_SUP |
  125. IB_PORT_REINIT_SUP |
  126. IB_PORT_DEVICE_MGMT_SUP | IB_PORT_VENDOR_CLASS_SUP;
  127. props->gid_tbl_len = OCRDMA_MAX_SGID;
  128. props->pkey_tbl_len = 1;
  129. props->bad_pkey_cntr = 0;
  130. props->qkey_viol_cntr = 0;
  131. props->active_width = IB_WIDTH_1X;
  132. props->active_speed = 4;
  133. props->max_msg_sz = 0x80000000;
  134. props->max_vl_num = 4;
  135. return 0;
  136. }
  137. int ocrdma_modify_port(struct ib_device *ibdev, u8 port, int mask,
  138. struct ib_port_modify *props)
  139. {
  140. struct ocrdma_dev *dev;
  141. dev = get_ocrdma_dev(ibdev);
  142. if (port > 1) {
  143. ocrdma_err("%s(%d) invalid_port=0x%x\n", __func__,
  144. dev->id, port);
  145. return -EINVAL;
  146. }
  147. return 0;
  148. }
  149. static int ocrdma_add_mmap(struct ocrdma_ucontext *uctx, u64 phy_addr,
  150. unsigned long len)
  151. {
  152. struct ocrdma_mm *mm;
  153. mm = kzalloc(sizeof(*mm), GFP_KERNEL);
  154. if (mm == NULL)
  155. return -ENOMEM;
  156. mm->key.phy_addr = phy_addr;
  157. mm->key.len = len;
  158. INIT_LIST_HEAD(&mm->entry);
  159. mutex_lock(&uctx->mm_list_lock);
  160. list_add_tail(&mm->entry, &uctx->mm_head);
  161. mutex_unlock(&uctx->mm_list_lock);
  162. return 0;
  163. }
  164. static void ocrdma_del_mmap(struct ocrdma_ucontext *uctx, u64 phy_addr,
  165. unsigned long len)
  166. {
  167. struct ocrdma_mm *mm, *tmp;
  168. mutex_lock(&uctx->mm_list_lock);
  169. list_for_each_entry_safe(mm, tmp, &uctx->mm_head, entry) {
  170. if (len != mm->key.len || phy_addr != mm->key.phy_addr)
  171. continue;
  172. list_del(&mm->entry);
  173. kfree(mm);
  174. break;
  175. }
  176. mutex_unlock(&uctx->mm_list_lock);
  177. }
  178. static bool ocrdma_search_mmap(struct ocrdma_ucontext *uctx, u64 phy_addr,
  179. unsigned long len)
  180. {
  181. bool found = false;
  182. struct ocrdma_mm *mm;
  183. mutex_lock(&uctx->mm_list_lock);
  184. list_for_each_entry(mm, &uctx->mm_head, entry) {
  185. if (len != mm->key.len || phy_addr != mm->key.phy_addr)
  186. continue;
  187. found = true;
  188. break;
  189. }
  190. mutex_unlock(&uctx->mm_list_lock);
  191. return found;
  192. }
  193. struct ib_ucontext *ocrdma_alloc_ucontext(struct ib_device *ibdev,
  194. struct ib_udata *udata)
  195. {
  196. int status;
  197. struct ocrdma_ucontext *ctx;
  198. struct ocrdma_alloc_ucontext_resp resp;
  199. struct ocrdma_dev *dev = get_ocrdma_dev(ibdev);
  200. struct pci_dev *pdev = dev->nic_info.pdev;
  201. u32 map_len = roundup(sizeof(u32) * 2048, PAGE_SIZE);
  202. if (!udata)
  203. return ERR_PTR(-EFAULT);
  204. ctx = kzalloc(sizeof(*ctx), GFP_KERNEL);
  205. if (!ctx)
  206. return ERR_PTR(-ENOMEM);
  207. ctx->dev = dev;
  208. INIT_LIST_HEAD(&ctx->mm_head);
  209. mutex_init(&ctx->mm_list_lock);
  210. ctx->ah_tbl.va = dma_alloc_coherent(&pdev->dev, map_len,
  211. &ctx->ah_tbl.pa, GFP_KERNEL);
  212. if (!ctx->ah_tbl.va) {
  213. kfree(ctx);
  214. return ERR_PTR(-ENOMEM);
  215. }
  216. memset(ctx->ah_tbl.va, 0, map_len);
  217. ctx->ah_tbl.len = map_len;
  218. resp.ah_tbl_len = ctx->ah_tbl.len;
  219. resp.ah_tbl_page = ctx->ah_tbl.pa;
  220. status = ocrdma_add_mmap(ctx, resp.ah_tbl_page, resp.ah_tbl_len);
  221. if (status)
  222. goto map_err;
  223. resp.dev_id = dev->id;
  224. resp.max_inline_data = dev->attr.max_inline_data;
  225. resp.wqe_size = dev->attr.wqe_size;
  226. resp.rqe_size = dev->attr.rqe_size;
  227. resp.dpp_wqe_size = dev->attr.wqe_size;
  228. resp.rsvd = 0;
  229. memcpy(resp.fw_ver, dev->attr.fw_ver, sizeof(resp.fw_ver));
  230. status = ib_copy_to_udata(udata, &resp, sizeof(resp));
  231. if (status)
  232. goto cpy_err;
  233. return &ctx->ibucontext;
  234. cpy_err:
  235. ocrdma_del_mmap(ctx, ctx->ah_tbl.pa, ctx->ah_tbl.len);
  236. map_err:
  237. dma_free_coherent(&pdev->dev, ctx->ah_tbl.len, ctx->ah_tbl.va,
  238. ctx->ah_tbl.pa);
  239. kfree(ctx);
  240. return ERR_PTR(status);
  241. }
  242. int ocrdma_dealloc_ucontext(struct ib_ucontext *ibctx)
  243. {
  244. struct ocrdma_mm *mm, *tmp;
  245. struct ocrdma_ucontext *uctx = get_ocrdma_ucontext(ibctx);
  246. struct pci_dev *pdev = uctx->dev->nic_info.pdev;
  247. ocrdma_del_mmap(uctx, uctx->ah_tbl.pa, uctx->ah_tbl.len);
  248. dma_free_coherent(&pdev->dev, uctx->ah_tbl.len, uctx->ah_tbl.va,
  249. uctx->ah_tbl.pa);
  250. list_for_each_entry_safe(mm, tmp, &uctx->mm_head, entry) {
  251. list_del(&mm->entry);
  252. kfree(mm);
  253. }
  254. kfree(uctx);
  255. return 0;
  256. }
  257. int ocrdma_mmap(struct ib_ucontext *context, struct vm_area_struct *vma)
  258. {
  259. struct ocrdma_ucontext *ucontext = get_ocrdma_ucontext(context);
  260. struct ocrdma_dev *dev = ucontext->dev;
  261. unsigned long vm_page = vma->vm_pgoff << PAGE_SHIFT;
  262. u64 unmapped_db = (u64) dev->nic_info.unmapped_db;
  263. unsigned long len = (vma->vm_end - vma->vm_start);
  264. int status = 0;
  265. bool found;
  266. if (vma->vm_start & (PAGE_SIZE - 1))
  267. return -EINVAL;
  268. found = ocrdma_search_mmap(ucontext, vma->vm_pgoff << PAGE_SHIFT, len);
  269. if (!found)
  270. return -EINVAL;
  271. if ((vm_page >= unmapped_db) && (vm_page <= (unmapped_db +
  272. dev->nic_info.db_total_size)) &&
  273. (len <= dev->nic_info.db_page_size)) {
  274. /* doorbell mapping */
  275. status = io_remap_pfn_range(vma, vma->vm_start, vma->vm_pgoff,
  276. len, vma->vm_page_prot);
  277. } else if (dev->nic_info.dpp_unmapped_len &&
  278. (vm_page >= (u64) dev->nic_info.dpp_unmapped_addr) &&
  279. (vm_page <= (u64) (dev->nic_info.dpp_unmapped_addr +
  280. dev->nic_info.dpp_unmapped_len)) &&
  281. (len <= dev->nic_info.dpp_unmapped_len)) {
  282. /* dpp area mapping */
  283. vma->vm_page_prot = pgprot_writecombine(vma->vm_page_prot);
  284. status = io_remap_pfn_range(vma, vma->vm_start, vma->vm_pgoff,
  285. len, vma->vm_page_prot);
  286. } else {
  287. /* queue memory mapping */
  288. status = remap_pfn_range(vma, vma->vm_start,
  289. vma->vm_pgoff, len, vma->vm_page_prot);
  290. }
  291. return status;
  292. }
  293. static int ocrdma_copy_pd_uresp(struct ocrdma_pd *pd,
  294. struct ib_ucontext *ib_ctx,
  295. struct ib_udata *udata)
  296. {
  297. int status;
  298. u64 db_page_addr;
  299. u64 dpp_page_addr = 0;
  300. u32 db_page_size;
  301. struct ocrdma_alloc_pd_uresp rsp;
  302. struct ocrdma_ucontext *uctx = get_ocrdma_ucontext(ib_ctx);
  303. rsp.id = pd->id;
  304. rsp.dpp_enabled = pd->dpp_enabled;
  305. db_page_addr = pd->dev->nic_info.unmapped_db +
  306. (pd->id * pd->dev->nic_info.db_page_size);
  307. db_page_size = pd->dev->nic_info.db_page_size;
  308. status = ocrdma_add_mmap(uctx, db_page_addr, db_page_size);
  309. if (status)
  310. return status;
  311. if (pd->dpp_enabled) {
  312. dpp_page_addr = pd->dev->nic_info.dpp_unmapped_addr +
  313. (pd->id * OCRDMA_DPP_PAGE_SIZE);
  314. status = ocrdma_add_mmap(uctx, dpp_page_addr,
  315. OCRDMA_DPP_PAGE_SIZE);
  316. if (status)
  317. goto dpp_map_err;
  318. rsp.dpp_page_addr_hi = upper_32_bits(dpp_page_addr);
  319. rsp.dpp_page_addr_lo = dpp_page_addr;
  320. }
  321. status = ib_copy_to_udata(udata, &rsp, sizeof(rsp));
  322. if (status)
  323. goto ucopy_err;
  324. pd->uctx = uctx;
  325. return 0;
  326. ucopy_err:
  327. if (pd->dpp_enabled)
  328. ocrdma_del_mmap(pd->uctx, dpp_page_addr, OCRDMA_DPP_PAGE_SIZE);
  329. dpp_map_err:
  330. ocrdma_del_mmap(pd->uctx, db_page_addr, db_page_size);
  331. return status;
  332. }
  333. struct ib_pd *ocrdma_alloc_pd(struct ib_device *ibdev,
  334. struct ib_ucontext *context,
  335. struct ib_udata *udata)
  336. {
  337. struct ocrdma_dev *dev = get_ocrdma_dev(ibdev);
  338. struct ocrdma_pd *pd;
  339. int status;
  340. pd = kzalloc(sizeof(*pd), GFP_KERNEL);
  341. if (!pd)
  342. return ERR_PTR(-ENOMEM);
  343. pd->dev = dev;
  344. if (udata && context) {
  345. pd->dpp_enabled = (dev->nic_info.dev_family ==
  346. OCRDMA_GEN2_FAMILY) ? true : false;
  347. pd->num_dpp_qp =
  348. pd->dpp_enabled ? OCRDMA_PD_MAX_DPP_ENABLED_QP : 0;
  349. }
  350. status = ocrdma_mbx_alloc_pd(dev, pd);
  351. if (status) {
  352. kfree(pd);
  353. return ERR_PTR(status);
  354. }
  355. atomic_set(&pd->use_cnt, 0);
  356. if (udata && context) {
  357. status = ocrdma_copy_pd_uresp(pd, context, udata);
  358. if (status)
  359. goto err;
  360. }
  361. return &pd->ibpd;
  362. err:
  363. ocrdma_dealloc_pd(&pd->ibpd);
  364. return ERR_PTR(status);
  365. }
  366. int ocrdma_dealloc_pd(struct ib_pd *ibpd)
  367. {
  368. struct ocrdma_pd *pd = get_ocrdma_pd(ibpd);
  369. struct ocrdma_dev *dev = pd->dev;
  370. int status;
  371. u64 usr_db;
  372. if (atomic_read(&pd->use_cnt)) {
  373. ocrdma_err("%s(%d) pd=0x%x is in use.\n",
  374. __func__, dev->id, pd->id);
  375. status = -EFAULT;
  376. goto dealloc_err;
  377. }
  378. status = ocrdma_mbx_dealloc_pd(dev, pd);
  379. if (pd->uctx) {
  380. u64 dpp_db = dev->nic_info.dpp_unmapped_addr +
  381. (pd->id * OCRDMA_DPP_PAGE_SIZE);
  382. if (pd->dpp_enabled)
  383. ocrdma_del_mmap(pd->uctx, dpp_db, OCRDMA_DPP_PAGE_SIZE);
  384. usr_db = dev->nic_info.unmapped_db +
  385. (pd->id * dev->nic_info.db_page_size);
  386. ocrdma_del_mmap(pd->uctx, usr_db, dev->nic_info.db_page_size);
  387. }
  388. kfree(pd);
  389. dealloc_err:
  390. return status;
  391. }
  392. static struct ocrdma_mr *ocrdma_alloc_lkey(struct ib_pd *ibpd,
  393. int acc, u32 num_pbls,
  394. u32 addr_check)
  395. {
  396. int status;
  397. struct ocrdma_mr *mr;
  398. struct ocrdma_pd *pd = get_ocrdma_pd(ibpd);
  399. struct ocrdma_dev *dev = pd->dev;
  400. if (acc & IB_ACCESS_REMOTE_WRITE && !(acc & IB_ACCESS_LOCAL_WRITE)) {
  401. ocrdma_err("%s(%d) leaving err, invalid access rights\n",
  402. __func__, dev->id);
  403. return ERR_PTR(-EINVAL);
  404. }
  405. mr = kzalloc(sizeof(*mr), GFP_KERNEL);
  406. if (!mr)
  407. return ERR_PTR(-ENOMEM);
  408. mr->hwmr.dev = dev;
  409. mr->hwmr.fr_mr = 0;
  410. mr->hwmr.local_rd = 1;
  411. mr->hwmr.remote_rd = (acc & IB_ACCESS_REMOTE_READ) ? 1 : 0;
  412. mr->hwmr.remote_wr = (acc & IB_ACCESS_REMOTE_WRITE) ? 1 : 0;
  413. mr->hwmr.local_wr = (acc & IB_ACCESS_LOCAL_WRITE) ? 1 : 0;
  414. mr->hwmr.mw_bind = (acc & IB_ACCESS_MW_BIND) ? 1 : 0;
  415. mr->hwmr.remote_atomic = (acc & IB_ACCESS_REMOTE_ATOMIC) ? 1 : 0;
  416. mr->hwmr.num_pbls = num_pbls;
  417. status = ocrdma_mbx_alloc_lkey(dev, &mr->hwmr, pd->id, addr_check);
  418. if (status) {
  419. kfree(mr);
  420. return ERR_PTR(-ENOMEM);
  421. }
  422. mr->pd = pd;
  423. atomic_inc(&pd->use_cnt);
  424. mr->ibmr.lkey = mr->hwmr.lkey;
  425. if (mr->hwmr.remote_wr || mr->hwmr.remote_rd)
  426. mr->ibmr.rkey = mr->hwmr.lkey;
  427. return mr;
  428. }
  429. struct ib_mr *ocrdma_get_dma_mr(struct ib_pd *ibpd, int acc)
  430. {
  431. struct ocrdma_mr *mr;
  432. mr = ocrdma_alloc_lkey(ibpd, acc, 0, OCRDMA_ADDR_CHECK_DISABLE);
  433. if (IS_ERR(mr))
  434. return ERR_CAST(mr);
  435. return &mr->ibmr;
  436. }
  437. static void ocrdma_free_mr_pbl_tbl(struct ocrdma_dev *dev,
  438. struct ocrdma_hw_mr *mr)
  439. {
  440. struct pci_dev *pdev = dev->nic_info.pdev;
  441. int i = 0;
  442. if (mr->pbl_table) {
  443. for (i = 0; i < mr->num_pbls; i++) {
  444. if (!mr->pbl_table[i].va)
  445. continue;
  446. dma_free_coherent(&pdev->dev, mr->pbl_size,
  447. mr->pbl_table[i].va,
  448. mr->pbl_table[i].pa);
  449. }
  450. kfree(mr->pbl_table);
  451. mr->pbl_table = NULL;
  452. }
  453. }
  454. static int ocrdma_get_pbl_info(struct ocrdma_mr *mr, u32 num_pbes)
  455. {
  456. u32 num_pbls = 0;
  457. u32 idx = 0;
  458. int status = 0;
  459. u32 pbl_size;
  460. do {
  461. pbl_size = OCRDMA_MIN_HPAGE_SIZE * (1 << idx);
  462. if (pbl_size > MAX_OCRDMA_PBL_SIZE) {
  463. status = -EFAULT;
  464. break;
  465. }
  466. num_pbls = roundup(num_pbes, (pbl_size / sizeof(u64)));
  467. num_pbls = num_pbls / (pbl_size / sizeof(u64));
  468. idx++;
  469. } while (num_pbls >= mr->hwmr.dev->attr.max_num_mr_pbl);
  470. mr->hwmr.num_pbes = num_pbes;
  471. mr->hwmr.num_pbls = num_pbls;
  472. mr->hwmr.pbl_size = pbl_size;
  473. return status;
  474. }
  475. static int ocrdma_build_pbl_tbl(struct ocrdma_dev *dev, struct ocrdma_hw_mr *mr)
  476. {
  477. int status = 0;
  478. int i;
  479. u32 dma_len = mr->pbl_size;
  480. struct pci_dev *pdev = dev->nic_info.pdev;
  481. void *va;
  482. dma_addr_t pa;
  483. mr->pbl_table = kzalloc(sizeof(struct ocrdma_pbl) *
  484. mr->num_pbls, GFP_KERNEL);
  485. if (!mr->pbl_table)
  486. return -ENOMEM;
  487. for (i = 0; i < mr->num_pbls; i++) {
  488. va = dma_alloc_coherent(&pdev->dev, dma_len, &pa, GFP_KERNEL);
  489. if (!va) {
  490. ocrdma_free_mr_pbl_tbl(dev, mr);
  491. status = -ENOMEM;
  492. break;
  493. }
  494. memset(va, 0, dma_len);
  495. mr->pbl_table[i].va = va;
  496. mr->pbl_table[i].pa = pa;
  497. }
  498. return status;
  499. }
  500. static void build_user_pbes(struct ocrdma_dev *dev, struct ocrdma_mr *mr,
  501. u32 num_pbes)
  502. {
  503. struct ocrdma_pbe *pbe;
  504. struct ib_umem_chunk *chunk;
  505. struct ocrdma_pbl *pbl_tbl = mr->hwmr.pbl_table;
  506. struct ib_umem *umem = mr->umem;
  507. int i, shift, pg_cnt, pages, pbe_cnt, total_num_pbes = 0;
  508. if (!mr->hwmr.num_pbes)
  509. return;
  510. pbe = (struct ocrdma_pbe *)pbl_tbl->va;
  511. pbe_cnt = 0;
  512. shift = ilog2(umem->page_size);
  513. list_for_each_entry(chunk, &umem->chunk_list, list) {
  514. /* get all the dma regions from the chunk. */
  515. for (i = 0; i < chunk->nmap; i++) {
  516. pages = sg_dma_len(&chunk->page_list[i]) >> shift;
  517. for (pg_cnt = 0; pg_cnt < pages; pg_cnt++) {
  518. /* store the page address in pbe */
  519. pbe->pa_lo =
  520. cpu_to_le32(sg_dma_address
  521. (&chunk->page_list[i]) +
  522. (umem->page_size * pg_cnt));
  523. pbe->pa_hi =
  524. cpu_to_le32(upper_32_bits
  525. ((sg_dma_address
  526. (&chunk->page_list[i]) +
  527. umem->page_size * pg_cnt)));
  528. pbe_cnt += 1;
  529. total_num_pbes += 1;
  530. pbe++;
  531. /* if done building pbes, issue the mbx cmd. */
  532. if (total_num_pbes == num_pbes)
  533. return;
  534. /* if the given pbl is full storing the pbes,
  535. * move to next pbl.
  536. */
  537. if (pbe_cnt ==
  538. (mr->hwmr.pbl_size / sizeof(u64))) {
  539. pbl_tbl++;
  540. pbe = (struct ocrdma_pbe *)pbl_tbl->va;
  541. pbe_cnt = 0;
  542. }
  543. }
  544. }
  545. }
  546. }
  547. struct ib_mr *ocrdma_reg_user_mr(struct ib_pd *ibpd, u64 start, u64 len,
  548. u64 usr_addr, int acc, struct ib_udata *udata)
  549. {
  550. int status = -ENOMEM;
  551. struct ocrdma_dev *dev;
  552. struct ocrdma_mr *mr;
  553. struct ocrdma_pd *pd;
  554. u32 num_pbes;
  555. pd = get_ocrdma_pd(ibpd);
  556. dev = pd->dev;
  557. if (acc & IB_ACCESS_REMOTE_WRITE && !(acc & IB_ACCESS_LOCAL_WRITE))
  558. return ERR_PTR(-EINVAL);
  559. mr = kzalloc(sizeof(*mr), GFP_KERNEL);
  560. if (!mr)
  561. return ERR_PTR(status);
  562. mr->hwmr.dev = dev;
  563. mr->umem = ib_umem_get(ibpd->uobject->context, start, len, acc, 0);
  564. if (IS_ERR(mr->umem)) {
  565. status = -EFAULT;
  566. goto umem_err;
  567. }
  568. num_pbes = ib_umem_page_count(mr->umem);
  569. status = ocrdma_get_pbl_info(mr, num_pbes);
  570. if (status)
  571. goto umem_err;
  572. mr->hwmr.pbe_size = mr->umem->page_size;
  573. mr->hwmr.fbo = mr->umem->offset;
  574. mr->hwmr.va = usr_addr;
  575. mr->hwmr.len = len;
  576. mr->hwmr.remote_wr = (acc & IB_ACCESS_REMOTE_WRITE) ? 1 : 0;
  577. mr->hwmr.remote_rd = (acc & IB_ACCESS_REMOTE_READ) ? 1 : 0;
  578. mr->hwmr.local_wr = (acc & IB_ACCESS_LOCAL_WRITE) ? 1 : 0;
  579. mr->hwmr.local_rd = 1;
  580. mr->hwmr.remote_atomic = (acc & IB_ACCESS_REMOTE_ATOMIC) ? 1 : 0;
  581. status = ocrdma_build_pbl_tbl(dev, &mr->hwmr);
  582. if (status)
  583. goto umem_err;
  584. build_user_pbes(dev, mr, num_pbes);
  585. status = ocrdma_reg_mr(dev, &mr->hwmr, pd->id, acc);
  586. if (status)
  587. goto mbx_err;
  588. mr->pd = pd;
  589. atomic_inc(&pd->use_cnt);
  590. mr->ibmr.lkey = mr->hwmr.lkey;
  591. if (mr->hwmr.remote_wr || mr->hwmr.remote_rd)
  592. mr->ibmr.rkey = mr->hwmr.lkey;
  593. return &mr->ibmr;
  594. mbx_err:
  595. ocrdma_free_mr_pbl_tbl(dev, &mr->hwmr);
  596. umem_err:
  597. kfree(mr);
  598. return ERR_PTR(status);
  599. }
  600. int ocrdma_dereg_mr(struct ib_mr *ib_mr)
  601. {
  602. struct ocrdma_mr *mr = get_ocrdma_mr(ib_mr);
  603. struct ocrdma_dev *dev = mr->hwmr.dev;
  604. int status;
  605. status = ocrdma_mbx_dealloc_lkey(dev, mr->hwmr.fr_mr, mr->hwmr.lkey);
  606. if (mr->hwmr.fr_mr == 0)
  607. ocrdma_free_mr_pbl_tbl(dev, &mr->hwmr);
  608. atomic_dec(&mr->pd->use_cnt);
  609. /* it could be user registered memory. */
  610. if (mr->umem)
  611. ib_umem_release(mr->umem);
  612. kfree(mr);
  613. return status;
  614. }
  615. static int ocrdma_copy_cq_uresp(struct ocrdma_cq *cq, struct ib_udata *udata,
  616. struct ib_ucontext *ib_ctx)
  617. {
  618. int status;
  619. struct ocrdma_ucontext *uctx;
  620. struct ocrdma_create_cq_uresp uresp;
  621. uresp.cq_id = cq->id;
  622. uresp.page_size = cq->len;
  623. uresp.num_pages = 1;
  624. uresp.max_hw_cqe = cq->max_hw_cqe;
  625. uresp.page_addr[0] = cq->pa;
  626. uresp.db_page_addr = cq->dev->nic_info.unmapped_db;
  627. uresp.db_page_size = cq->dev->nic_info.db_page_size;
  628. uresp.phase_change = cq->phase_change ? 1 : 0;
  629. status = ib_copy_to_udata(udata, &uresp, sizeof(uresp));
  630. if (status) {
  631. ocrdma_err("%s(%d) copy error cqid=0x%x.\n",
  632. __func__, cq->dev->id, cq->id);
  633. goto err;
  634. }
  635. uctx = get_ocrdma_ucontext(ib_ctx);
  636. status = ocrdma_add_mmap(uctx, uresp.db_page_addr, uresp.db_page_size);
  637. if (status)
  638. goto err;
  639. status = ocrdma_add_mmap(uctx, uresp.page_addr[0], uresp.page_size);
  640. if (status) {
  641. ocrdma_del_mmap(uctx, uresp.db_page_addr, uresp.db_page_size);
  642. goto err;
  643. }
  644. cq->ucontext = uctx;
  645. err:
  646. return status;
  647. }
  648. struct ib_cq *ocrdma_create_cq(struct ib_device *ibdev, int entries, int vector,
  649. struct ib_ucontext *ib_ctx,
  650. struct ib_udata *udata)
  651. {
  652. struct ocrdma_cq *cq;
  653. struct ocrdma_dev *dev = get_ocrdma_dev(ibdev);
  654. int status;
  655. struct ocrdma_create_cq_ureq ureq;
  656. if (udata) {
  657. if (ib_copy_from_udata(&ureq, udata, sizeof(ureq)))
  658. return ERR_PTR(-EFAULT);
  659. } else
  660. ureq.dpp_cq = 0;
  661. cq = kzalloc(sizeof(*cq), GFP_KERNEL);
  662. if (!cq)
  663. return ERR_PTR(-ENOMEM);
  664. spin_lock_init(&cq->cq_lock);
  665. spin_lock_init(&cq->comp_handler_lock);
  666. atomic_set(&cq->use_cnt, 0);
  667. INIT_LIST_HEAD(&cq->sq_head);
  668. INIT_LIST_HEAD(&cq->rq_head);
  669. cq->dev = dev;
  670. status = ocrdma_mbx_create_cq(dev, cq, entries, ureq.dpp_cq);
  671. if (status) {
  672. kfree(cq);
  673. return ERR_PTR(status);
  674. }
  675. if (ib_ctx) {
  676. status = ocrdma_copy_cq_uresp(cq, udata, ib_ctx);
  677. if (status)
  678. goto ctx_err;
  679. }
  680. cq->phase = OCRDMA_CQE_VALID;
  681. cq->arm_needed = true;
  682. dev->cq_tbl[cq->id] = cq;
  683. return &cq->ibcq;
  684. ctx_err:
  685. ocrdma_mbx_destroy_cq(dev, cq);
  686. kfree(cq);
  687. return ERR_PTR(status);
  688. }
  689. int ocrdma_resize_cq(struct ib_cq *ibcq, int new_cnt,
  690. struct ib_udata *udata)
  691. {
  692. int status = 0;
  693. struct ocrdma_cq *cq = get_ocrdma_cq(ibcq);
  694. if (new_cnt < 1 || new_cnt > cq->max_hw_cqe) {
  695. status = -EINVAL;
  696. return status;
  697. }
  698. ibcq->cqe = new_cnt;
  699. return status;
  700. }
  701. int ocrdma_destroy_cq(struct ib_cq *ibcq)
  702. {
  703. int status;
  704. struct ocrdma_cq *cq = get_ocrdma_cq(ibcq);
  705. struct ocrdma_dev *dev = cq->dev;
  706. if (atomic_read(&cq->use_cnt))
  707. return -EINVAL;
  708. status = ocrdma_mbx_destroy_cq(dev, cq);
  709. if (cq->ucontext) {
  710. ocrdma_del_mmap(cq->ucontext, (u64) cq->pa, cq->len);
  711. ocrdma_del_mmap(cq->ucontext, dev->nic_info.unmapped_db,
  712. dev->nic_info.db_page_size);
  713. }
  714. dev->cq_tbl[cq->id] = NULL;
  715. kfree(cq);
  716. return status;
  717. }
  718. static int ocrdma_add_qpn_map(struct ocrdma_dev *dev, struct ocrdma_qp *qp)
  719. {
  720. int status = -EINVAL;
  721. if (qp->id < OCRDMA_MAX_QP && dev->qp_tbl[qp->id] == NULL) {
  722. dev->qp_tbl[qp->id] = qp;
  723. status = 0;
  724. }
  725. return status;
  726. }
  727. static void ocrdma_del_qpn_map(struct ocrdma_dev *dev, struct ocrdma_qp *qp)
  728. {
  729. dev->qp_tbl[qp->id] = NULL;
  730. }
  731. static int ocrdma_check_qp_params(struct ib_pd *ibpd, struct ocrdma_dev *dev,
  732. struct ib_qp_init_attr *attrs)
  733. {
  734. if (attrs->qp_type != IB_QPT_GSI &&
  735. attrs->qp_type != IB_QPT_RC &&
  736. attrs->qp_type != IB_QPT_UD) {
  737. ocrdma_err("%s(%d) unsupported qp type=0x%x requested\n",
  738. __func__, dev->id, attrs->qp_type);
  739. return -EINVAL;
  740. }
  741. if (attrs->cap.max_send_wr > dev->attr.max_wqe) {
  742. ocrdma_err("%s(%d) unsupported send_wr=0x%x requested\n",
  743. __func__, dev->id, attrs->cap.max_send_wr);
  744. ocrdma_err("%s(%d) supported send_wr=0x%x\n",
  745. __func__, dev->id, dev->attr.max_wqe);
  746. return -EINVAL;
  747. }
  748. if (!attrs->srq && (attrs->cap.max_recv_wr > dev->attr.max_rqe)) {
  749. ocrdma_err("%s(%d) unsupported recv_wr=0x%x requested\n",
  750. __func__, dev->id, attrs->cap.max_recv_wr);
  751. ocrdma_err("%s(%d) supported recv_wr=0x%x\n",
  752. __func__, dev->id, dev->attr.max_rqe);
  753. return -EINVAL;
  754. }
  755. if (attrs->cap.max_inline_data > dev->attr.max_inline_data) {
  756. ocrdma_err("%s(%d) unsupported inline data size=0x%x"
  757. " requested\n", __func__, dev->id,
  758. attrs->cap.max_inline_data);
  759. ocrdma_err("%s(%d) supported inline data size=0x%x\n",
  760. __func__, dev->id, dev->attr.max_inline_data);
  761. return -EINVAL;
  762. }
  763. if (attrs->cap.max_send_sge > dev->attr.max_send_sge) {
  764. ocrdma_err("%s(%d) unsupported send_sge=0x%x requested\n",
  765. __func__, dev->id, attrs->cap.max_send_sge);
  766. ocrdma_err("%s(%d) supported send_sge=0x%x\n",
  767. __func__, dev->id, dev->attr.max_send_sge);
  768. return -EINVAL;
  769. }
  770. if (attrs->cap.max_recv_sge > dev->attr.max_recv_sge) {
  771. ocrdma_err("%s(%d) unsupported recv_sge=0x%x requested\n",
  772. __func__, dev->id, attrs->cap.max_recv_sge);
  773. ocrdma_err("%s(%d) supported recv_sge=0x%x\n",
  774. __func__, dev->id, dev->attr.max_recv_sge);
  775. return -EINVAL;
  776. }
  777. /* unprivileged user space cannot create special QP */
  778. if (ibpd->uobject && attrs->qp_type == IB_QPT_GSI) {
  779. ocrdma_err
  780. ("%s(%d) Userspace can't create special QPs of type=0x%x\n",
  781. __func__, dev->id, attrs->qp_type);
  782. return -EINVAL;
  783. }
  784. /* allow creating only one GSI type of QP */
  785. if (attrs->qp_type == IB_QPT_GSI && dev->gsi_qp_created) {
  786. ocrdma_err("%s(%d) GSI special QPs already created.\n",
  787. __func__, dev->id);
  788. return -EINVAL;
  789. }
  790. /* verify consumer QPs are not trying to use GSI QP's CQ */
  791. if ((attrs->qp_type != IB_QPT_GSI) && (dev->gsi_qp_created)) {
  792. if ((dev->gsi_sqcq == get_ocrdma_cq(attrs->send_cq)) ||
  793. (dev->gsi_sqcq == get_ocrdma_cq(attrs->send_cq))) {
  794. ocrdma_err("%s(%d) Consumer QP cannot use GSI CQs.\n",
  795. __func__, dev->id);
  796. return -EINVAL;
  797. }
  798. }
  799. return 0;
  800. }
  801. static int ocrdma_copy_qp_uresp(struct ocrdma_qp *qp,
  802. struct ib_udata *udata, int dpp_offset,
  803. int dpp_credit_lmt, int srq)
  804. {
  805. int status = 0;
  806. u64 usr_db;
  807. struct ocrdma_create_qp_uresp uresp;
  808. struct ocrdma_dev *dev = qp->dev;
  809. struct ocrdma_pd *pd = qp->pd;
  810. memset(&uresp, 0, sizeof(uresp));
  811. usr_db = dev->nic_info.unmapped_db +
  812. (pd->id * dev->nic_info.db_page_size);
  813. uresp.qp_id = qp->id;
  814. uresp.sq_dbid = qp->sq.dbid;
  815. uresp.num_sq_pages = 1;
  816. uresp.sq_page_size = qp->sq.len;
  817. uresp.sq_page_addr[0] = qp->sq.pa;
  818. uresp.num_wqe_allocated = qp->sq.max_cnt;
  819. if (!srq) {
  820. uresp.rq_dbid = qp->rq.dbid;
  821. uresp.num_rq_pages = 1;
  822. uresp.rq_page_size = qp->rq.len;
  823. uresp.rq_page_addr[0] = qp->rq.pa;
  824. uresp.num_rqe_allocated = qp->rq.max_cnt;
  825. }
  826. uresp.db_page_addr = usr_db;
  827. uresp.db_page_size = dev->nic_info.db_page_size;
  828. if (dev->nic_info.dev_family == OCRDMA_GEN2_FAMILY) {
  829. uresp.db_sq_offset = OCRDMA_DB_GEN2_SQ_OFFSET;
  830. uresp.db_rq_offset = ((qp->id & 0xFFFF) < 128) ?
  831. OCRDMA_DB_GEN2_RQ1_OFFSET : OCRDMA_DB_GEN2_RQ2_OFFSET;
  832. uresp.db_shift = (qp->id < 128) ? 24 : 16;
  833. } else {
  834. uresp.db_sq_offset = OCRDMA_DB_SQ_OFFSET;
  835. uresp.db_rq_offset = OCRDMA_DB_RQ_OFFSET;
  836. uresp.db_shift = 16;
  837. }
  838. if (qp->dpp_enabled) {
  839. uresp.dpp_credit = dpp_credit_lmt;
  840. uresp.dpp_offset = dpp_offset;
  841. }
  842. status = ib_copy_to_udata(udata, &uresp, sizeof(uresp));
  843. if (status) {
  844. ocrdma_err("%s(%d) user copy error.\n", __func__, dev->id);
  845. goto err;
  846. }
  847. status = ocrdma_add_mmap(pd->uctx, uresp.sq_page_addr[0],
  848. uresp.sq_page_size);
  849. if (status)
  850. goto err;
  851. if (!srq) {
  852. status = ocrdma_add_mmap(pd->uctx, uresp.rq_page_addr[0],
  853. uresp.rq_page_size);
  854. if (status)
  855. goto rq_map_err;
  856. }
  857. return status;
  858. rq_map_err:
  859. ocrdma_del_mmap(pd->uctx, uresp.sq_page_addr[0], uresp.sq_page_size);
  860. err:
  861. return status;
  862. }
  863. static void ocrdma_set_qp_db(struct ocrdma_dev *dev, struct ocrdma_qp *qp,
  864. struct ocrdma_pd *pd)
  865. {
  866. if (dev->nic_info.dev_family == OCRDMA_GEN2_FAMILY) {
  867. qp->sq_db = dev->nic_info.db +
  868. (pd->id * dev->nic_info.db_page_size) +
  869. OCRDMA_DB_GEN2_SQ_OFFSET;
  870. qp->rq_db = dev->nic_info.db +
  871. (pd->id * dev->nic_info.db_page_size) +
  872. ((qp->id < 128) ?
  873. OCRDMA_DB_GEN2_RQ1_OFFSET : OCRDMA_DB_GEN2_RQ2_OFFSET);
  874. } else {
  875. qp->sq_db = dev->nic_info.db +
  876. (pd->id * dev->nic_info.db_page_size) +
  877. OCRDMA_DB_SQ_OFFSET;
  878. qp->rq_db = dev->nic_info.db +
  879. (pd->id * dev->nic_info.db_page_size) +
  880. OCRDMA_DB_RQ_OFFSET;
  881. }
  882. }
  883. static int ocrdma_alloc_wr_id_tbl(struct ocrdma_qp *qp)
  884. {
  885. qp->wqe_wr_id_tbl =
  886. kzalloc(sizeof(*(qp->wqe_wr_id_tbl)) * qp->sq.max_cnt,
  887. GFP_KERNEL);
  888. if (qp->wqe_wr_id_tbl == NULL)
  889. return -ENOMEM;
  890. qp->rqe_wr_id_tbl =
  891. kzalloc(sizeof(u64) * qp->rq.max_cnt, GFP_KERNEL);
  892. if (qp->rqe_wr_id_tbl == NULL)
  893. return -ENOMEM;
  894. return 0;
  895. }
  896. static void ocrdma_set_qp_init_params(struct ocrdma_qp *qp,
  897. struct ocrdma_pd *pd,
  898. struct ib_qp_init_attr *attrs)
  899. {
  900. qp->pd = pd;
  901. spin_lock_init(&qp->q_lock);
  902. INIT_LIST_HEAD(&qp->sq_entry);
  903. INIT_LIST_HEAD(&qp->rq_entry);
  904. qp->qp_type = attrs->qp_type;
  905. qp->cap_flags = OCRDMA_QP_INB_RD | OCRDMA_QP_INB_WR;
  906. qp->max_inline_data = attrs->cap.max_inline_data;
  907. qp->sq.max_sges = attrs->cap.max_send_sge;
  908. qp->rq.max_sges = attrs->cap.max_recv_sge;
  909. qp->state = OCRDMA_QPS_RST;
  910. }
  911. static void ocrdma_set_qp_use_cnt(struct ocrdma_qp *qp, struct ocrdma_pd *pd)
  912. {
  913. atomic_inc(&pd->use_cnt);
  914. atomic_inc(&qp->sq_cq->use_cnt);
  915. atomic_inc(&qp->rq_cq->use_cnt);
  916. if (qp->srq)
  917. atomic_inc(&qp->srq->use_cnt);
  918. qp->ibqp.qp_num = qp->id;
  919. }
  920. static void ocrdma_store_gsi_qp_cq(struct ocrdma_dev *dev,
  921. struct ib_qp_init_attr *attrs)
  922. {
  923. if (attrs->qp_type == IB_QPT_GSI) {
  924. dev->gsi_qp_created = 1;
  925. dev->gsi_sqcq = get_ocrdma_cq(attrs->send_cq);
  926. dev->gsi_rqcq = get_ocrdma_cq(attrs->recv_cq);
  927. }
  928. }
  929. struct ib_qp *ocrdma_create_qp(struct ib_pd *ibpd,
  930. struct ib_qp_init_attr *attrs,
  931. struct ib_udata *udata)
  932. {
  933. int status;
  934. struct ocrdma_pd *pd = get_ocrdma_pd(ibpd);
  935. struct ocrdma_qp *qp;
  936. struct ocrdma_dev *dev = pd->dev;
  937. struct ocrdma_create_qp_ureq ureq;
  938. u16 dpp_credit_lmt, dpp_offset;
  939. status = ocrdma_check_qp_params(ibpd, dev, attrs);
  940. if (status)
  941. goto gen_err;
  942. memset(&ureq, 0, sizeof(ureq));
  943. if (udata) {
  944. if (ib_copy_from_udata(&ureq, udata, sizeof(ureq)))
  945. return ERR_PTR(-EFAULT);
  946. }
  947. qp = kzalloc(sizeof(*qp), GFP_KERNEL);
  948. if (!qp) {
  949. status = -ENOMEM;
  950. goto gen_err;
  951. }
  952. qp->dev = dev;
  953. ocrdma_set_qp_init_params(qp, pd, attrs);
  954. mutex_lock(&dev->dev_lock);
  955. status = ocrdma_mbx_create_qp(qp, attrs, ureq.enable_dpp_cq,
  956. ureq.dpp_cq_id,
  957. &dpp_offset, &dpp_credit_lmt);
  958. if (status)
  959. goto mbx_err;
  960. /* user space QP's wr_id table are managed in library */
  961. if (udata == NULL) {
  962. qp->cap_flags |= (OCRDMA_QP_MW_BIND | OCRDMA_QP_LKEY0 |
  963. OCRDMA_QP_FAST_REG);
  964. status = ocrdma_alloc_wr_id_tbl(qp);
  965. if (status)
  966. goto map_err;
  967. }
  968. status = ocrdma_add_qpn_map(dev, qp);
  969. if (status)
  970. goto map_err;
  971. ocrdma_set_qp_db(dev, qp, pd);
  972. if (udata) {
  973. status = ocrdma_copy_qp_uresp(qp, udata, dpp_offset,
  974. dpp_credit_lmt,
  975. (attrs->srq != NULL));
  976. if (status)
  977. goto cpy_err;
  978. }
  979. ocrdma_store_gsi_qp_cq(dev, attrs);
  980. ocrdma_set_qp_use_cnt(qp, pd);
  981. mutex_unlock(&dev->dev_lock);
  982. return &qp->ibqp;
  983. cpy_err:
  984. ocrdma_del_qpn_map(dev, qp);
  985. map_err:
  986. ocrdma_mbx_destroy_qp(dev, qp);
  987. mbx_err:
  988. mutex_unlock(&dev->dev_lock);
  989. kfree(qp->wqe_wr_id_tbl);
  990. kfree(qp->rqe_wr_id_tbl);
  991. kfree(qp);
  992. ocrdma_err("%s(%d) error=%d\n", __func__, dev->id, status);
  993. gen_err:
  994. return ERR_PTR(status);
  995. }
  996. int _ocrdma_modify_qp(struct ib_qp *ibqp, struct ib_qp_attr *attr,
  997. int attr_mask)
  998. {
  999. int status = 0;
  1000. struct ocrdma_qp *qp;
  1001. struct ocrdma_dev *dev;
  1002. enum ib_qp_state old_qps;
  1003. qp = get_ocrdma_qp(ibqp);
  1004. dev = qp->dev;
  1005. if (attr_mask & IB_QP_STATE)
  1006. status = ocrdma_qp_state_machine(qp, attr->qp_state, &old_qps);
  1007. /* if new and previous states are same hw doesn't need to
  1008. * know about it.
  1009. */
  1010. if (status < 0)
  1011. return status;
  1012. status = ocrdma_mbx_modify_qp(dev, qp, attr, attr_mask, old_qps);
  1013. return status;
  1014. }
  1015. int ocrdma_modify_qp(struct ib_qp *ibqp, struct ib_qp_attr *attr,
  1016. int attr_mask, struct ib_udata *udata)
  1017. {
  1018. unsigned long flags;
  1019. int status = -EINVAL;
  1020. struct ocrdma_qp *qp;
  1021. struct ocrdma_dev *dev;
  1022. enum ib_qp_state old_qps, new_qps;
  1023. qp = get_ocrdma_qp(ibqp);
  1024. dev = qp->dev;
  1025. /* syncronize with multiple context trying to change, retrive qps */
  1026. mutex_lock(&dev->dev_lock);
  1027. /* syncronize with wqe, rqe posting and cqe processing contexts */
  1028. spin_lock_irqsave(&qp->q_lock, flags);
  1029. old_qps = get_ibqp_state(qp->state);
  1030. if (attr_mask & IB_QP_STATE)
  1031. new_qps = attr->qp_state;
  1032. else
  1033. new_qps = old_qps;
  1034. spin_unlock_irqrestore(&qp->q_lock, flags);
  1035. if (!ib_modify_qp_is_ok(old_qps, new_qps, ibqp->qp_type, attr_mask)) {
  1036. ocrdma_err("%s(%d) invalid attribute mask=0x%x specified for "
  1037. "qpn=0x%x of type=0x%x old_qps=0x%x, new_qps=0x%x\n",
  1038. __func__, dev->id, attr_mask, qp->id, ibqp->qp_type,
  1039. old_qps, new_qps);
  1040. goto param_err;
  1041. }
  1042. status = _ocrdma_modify_qp(ibqp, attr, attr_mask);
  1043. if (status > 0)
  1044. status = 0;
  1045. param_err:
  1046. mutex_unlock(&dev->dev_lock);
  1047. return status;
  1048. }
  1049. static enum ib_mtu ocrdma_mtu_int_to_enum(u16 mtu)
  1050. {
  1051. switch (mtu) {
  1052. case 256:
  1053. return IB_MTU_256;
  1054. case 512:
  1055. return IB_MTU_512;
  1056. case 1024:
  1057. return IB_MTU_1024;
  1058. case 2048:
  1059. return IB_MTU_2048;
  1060. case 4096:
  1061. return IB_MTU_4096;
  1062. default:
  1063. return IB_MTU_1024;
  1064. }
  1065. }
  1066. static int ocrdma_to_ib_qp_acc_flags(int qp_cap_flags)
  1067. {
  1068. int ib_qp_acc_flags = 0;
  1069. if (qp_cap_flags & OCRDMA_QP_INB_WR)
  1070. ib_qp_acc_flags |= IB_ACCESS_REMOTE_WRITE;
  1071. if (qp_cap_flags & OCRDMA_QP_INB_RD)
  1072. ib_qp_acc_flags |= IB_ACCESS_LOCAL_WRITE;
  1073. return ib_qp_acc_flags;
  1074. }
  1075. int ocrdma_query_qp(struct ib_qp *ibqp,
  1076. struct ib_qp_attr *qp_attr,
  1077. int attr_mask, struct ib_qp_init_attr *qp_init_attr)
  1078. {
  1079. int status;
  1080. u32 qp_state;
  1081. struct ocrdma_qp_params params;
  1082. struct ocrdma_qp *qp = get_ocrdma_qp(ibqp);
  1083. struct ocrdma_dev *dev = qp->dev;
  1084. memset(&params, 0, sizeof(params));
  1085. mutex_lock(&dev->dev_lock);
  1086. status = ocrdma_mbx_query_qp(dev, qp, &params);
  1087. mutex_unlock(&dev->dev_lock);
  1088. if (status)
  1089. goto mbx_err;
  1090. qp_attr->qp_state = get_ibqp_state(IB_QPS_INIT);
  1091. qp_attr->cur_qp_state = get_ibqp_state(IB_QPS_INIT);
  1092. qp_attr->path_mtu =
  1093. ocrdma_mtu_int_to_enum(params.path_mtu_pkey_indx &
  1094. OCRDMA_QP_PARAMS_PATH_MTU_MASK) >>
  1095. OCRDMA_QP_PARAMS_PATH_MTU_SHIFT;
  1096. qp_attr->path_mig_state = IB_MIG_MIGRATED;
  1097. qp_attr->rq_psn = params.hop_lmt_rq_psn & OCRDMA_QP_PARAMS_RQ_PSN_MASK;
  1098. qp_attr->sq_psn = params.tclass_sq_psn & OCRDMA_QP_PARAMS_SQ_PSN_MASK;
  1099. qp_attr->dest_qp_num =
  1100. params.ack_to_rnr_rtc_dest_qpn & OCRDMA_QP_PARAMS_DEST_QPN_MASK;
  1101. qp_attr->qp_access_flags = ocrdma_to_ib_qp_acc_flags(qp->cap_flags);
  1102. qp_attr->cap.max_send_wr = qp->sq.max_cnt - 1;
  1103. qp_attr->cap.max_recv_wr = qp->rq.max_cnt - 1;
  1104. qp_attr->cap.max_send_sge = qp->sq.max_sges;
  1105. qp_attr->cap.max_recv_sge = qp->rq.max_sges;
  1106. qp_attr->cap.max_inline_data = dev->attr.max_inline_data;
  1107. qp_init_attr->cap = qp_attr->cap;
  1108. memcpy(&qp_attr->ah_attr.grh.dgid, &params.dgid[0],
  1109. sizeof(params.dgid));
  1110. qp_attr->ah_attr.grh.flow_label = params.rnt_rc_sl_fl &
  1111. OCRDMA_QP_PARAMS_FLOW_LABEL_MASK;
  1112. qp_attr->ah_attr.grh.sgid_index = qp->sgid_idx;
  1113. qp_attr->ah_attr.grh.hop_limit = (params.hop_lmt_rq_psn &
  1114. OCRDMA_QP_PARAMS_HOP_LMT_MASK) >>
  1115. OCRDMA_QP_PARAMS_HOP_LMT_SHIFT;
  1116. qp_attr->ah_attr.grh.traffic_class = (params.tclass_sq_psn &
  1117. OCRDMA_QP_PARAMS_SQ_PSN_MASK) >>
  1118. OCRDMA_QP_PARAMS_TCLASS_SHIFT;
  1119. qp_attr->ah_attr.ah_flags = IB_AH_GRH;
  1120. qp_attr->ah_attr.port_num = 1;
  1121. qp_attr->ah_attr.sl = (params.rnt_rc_sl_fl &
  1122. OCRDMA_QP_PARAMS_SL_MASK) >>
  1123. OCRDMA_QP_PARAMS_SL_SHIFT;
  1124. qp_attr->timeout = (params.ack_to_rnr_rtc_dest_qpn &
  1125. OCRDMA_QP_PARAMS_ACK_TIMEOUT_MASK) >>
  1126. OCRDMA_QP_PARAMS_ACK_TIMEOUT_SHIFT;
  1127. qp_attr->rnr_retry = (params.ack_to_rnr_rtc_dest_qpn &
  1128. OCRDMA_QP_PARAMS_RNR_RETRY_CNT_MASK) >>
  1129. OCRDMA_QP_PARAMS_RNR_RETRY_CNT_SHIFT;
  1130. qp_attr->retry_cnt =
  1131. (params.rnt_rc_sl_fl & OCRDMA_QP_PARAMS_RETRY_CNT_MASK) >>
  1132. OCRDMA_QP_PARAMS_RETRY_CNT_SHIFT;
  1133. qp_attr->min_rnr_timer = 0;
  1134. qp_attr->pkey_index = 0;
  1135. qp_attr->port_num = 1;
  1136. qp_attr->ah_attr.src_path_bits = 0;
  1137. qp_attr->ah_attr.static_rate = 0;
  1138. qp_attr->alt_pkey_index = 0;
  1139. qp_attr->alt_port_num = 0;
  1140. qp_attr->alt_timeout = 0;
  1141. memset(&qp_attr->alt_ah_attr, 0, sizeof(qp_attr->alt_ah_attr));
  1142. qp_state = (params.max_sge_recv_flags & OCRDMA_QP_PARAMS_STATE_MASK) >>
  1143. OCRDMA_QP_PARAMS_STATE_SHIFT;
  1144. qp_attr->sq_draining = (qp_state == OCRDMA_QPS_SQ_DRAINING) ? 1 : 0;
  1145. qp_attr->max_dest_rd_atomic =
  1146. params.max_ord_ird >> OCRDMA_QP_PARAMS_MAX_ORD_SHIFT;
  1147. qp_attr->max_rd_atomic =
  1148. params.max_ord_ird & OCRDMA_QP_PARAMS_MAX_IRD_MASK;
  1149. qp_attr->en_sqd_async_notify = (params.max_sge_recv_flags &
  1150. OCRDMA_QP_PARAMS_FLAGS_SQD_ASYNC) ? 1 : 0;
  1151. mbx_err:
  1152. return status;
  1153. }
  1154. static void ocrdma_srq_toggle_bit(struct ocrdma_srq *srq, int idx)
  1155. {
  1156. int i = idx / 32;
  1157. unsigned int mask = (1 << (idx % 32));
  1158. if (srq->idx_bit_fields[i] & mask)
  1159. srq->idx_bit_fields[i] &= ~mask;
  1160. else
  1161. srq->idx_bit_fields[i] |= mask;
  1162. }
  1163. static int ocrdma_hwq_free_cnt(struct ocrdma_qp_hwq_info *q)
  1164. {
  1165. int free_cnt;
  1166. if (q->head >= q->tail)
  1167. free_cnt = (q->max_cnt - q->head) + q->tail;
  1168. else
  1169. free_cnt = q->tail - q->head;
  1170. return free_cnt;
  1171. }
  1172. static int is_hw_sq_empty(struct ocrdma_qp *qp)
  1173. {
  1174. return (qp->sq.tail == qp->sq.head &&
  1175. ocrdma_hwq_free_cnt(&qp->sq) ? 1 : 0);
  1176. }
  1177. static int is_hw_rq_empty(struct ocrdma_qp *qp)
  1178. {
  1179. return (qp->rq.tail == qp->rq.head) ? 1 : 0;
  1180. }
  1181. static void *ocrdma_hwq_head(struct ocrdma_qp_hwq_info *q)
  1182. {
  1183. return q->va + (q->head * q->entry_size);
  1184. }
  1185. static void *ocrdma_hwq_head_from_idx(struct ocrdma_qp_hwq_info *q,
  1186. u32 idx)
  1187. {
  1188. return q->va + (idx * q->entry_size);
  1189. }
  1190. static void ocrdma_hwq_inc_head(struct ocrdma_qp_hwq_info *q)
  1191. {
  1192. q->head = (q->head + 1) & q->max_wqe_idx;
  1193. }
  1194. static void ocrdma_hwq_inc_tail(struct ocrdma_qp_hwq_info *q)
  1195. {
  1196. q->tail = (q->tail + 1) & q->max_wqe_idx;
  1197. }
  1198. /* discard the cqe for a given QP */
  1199. static void ocrdma_discard_cqes(struct ocrdma_qp *qp, struct ocrdma_cq *cq)
  1200. {
  1201. unsigned long cq_flags;
  1202. unsigned long flags;
  1203. int discard_cnt = 0;
  1204. u32 cur_getp, stop_getp;
  1205. struct ocrdma_cqe *cqe;
  1206. u32 qpn = 0;
  1207. spin_lock_irqsave(&cq->cq_lock, cq_flags);
  1208. /* traverse through the CQEs in the hw CQ,
  1209. * find the matching CQE for a given qp,
  1210. * mark the matching one discarded by clearing qpn.
  1211. * ring the doorbell in the poll_cq() as
  1212. * we don't complete out of order cqe.
  1213. */
  1214. cur_getp = cq->getp;
  1215. /* find upto when do we reap the cq. */
  1216. stop_getp = cur_getp;
  1217. do {
  1218. if (is_hw_sq_empty(qp) && (!qp->srq && is_hw_rq_empty(qp)))
  1219. break;
  1220. cqe = cq->va + cur_getp;
  1221. /* if (a) done reaping whole hw cq, or
  1222. * (b) qp_xq becomes empty.
  1223. * then exit
  1224. */
  1225. qpn = cqe->cmn.qpn & OCRDMA_CQE_QPN_MASK;
  1226. /* if previously discarded cqe found, skip that too. */
  1227. /* check for matching qp */
  1228. if (qpn == 0 || qpn != qp->id)
  1229. goto skip_cqe;
  1230. /* mark cqe discarded so that it is not picked up later
  1231. * in the poll_cq().
  1232. */
  1233. discard_cnt += 1;
  1234. cqe->cmn.qpn = 0;
  1235. if (is_cqe_for_sq(cqe))
  1236. ocrdma_hwq_inc_tail(&qp->sq);
  1237. else {
  1238. if (qp->srq) {
  1239. spin_lock_irqsave(&qp->srq->q_lock, flags);
  1240. ocrdma_hwq_inc_tail(&qp->srq->rq);
  1241. ocrdma_srq_toggle_bit(qp->srq, cur_getp);
  1242. spin_unlock_irqrestore(&qp->srq->q_lock, flags);
  1243. } else
  1244. ocrdma_hwq_inc_tail(&qp->rq);
  1245. }
  1246. skip_cqe:
  1247. cur_getp = (cur_getp + 1) % cq->max_hw_cqe;
  1248. } while (cur_getp != stop_getp);
  1249. spin_unlock_irqrestore(&cq->cq_lock, cq_flags);
  1250. }
  1251. static void ocrdma_del_flush_qp(struct ocrdma_qp *qp)
  1252. {
  1253. int found = false;
  1254. unsigned long flags;
  1255. struct ocrdma_dev *dev = qp->dev;
  1256. /* sync with any active CQ poll */
  1257. spin_lock_irqsave(&dev->flush_q_lock, flags);
  1258. found = ocrdma_is_qp_in_sq_flushlist(qp->sq_cq, qp);
  1259. if (found)
  1260. list_del(&qp->sq_entry);
  1261. if (!qp->srq) {
  1262. found = ocrdma_is_qp_in_rq_flushlist(qp->rq_cq, qp);
  1263. if (found)
  1264. list_del(&qp->rq_entry);
  1265. }
  1266. spin_unlock_irqrestore(&dev->flush_q_lock, flags);
  1267. }
  1268. int ocrdma_destroy_qp(struct ib_qp *ibqp)
  1269. {
  1270. int status;
  1271. struct ocrdma_pd *pd;
  1272. struct ocrdma_qp *qp;
  1273. struct ocrdma_dev *dev;
  1274. struct ib_qp_attr attrs;
  1275. int attr_mask = IB_QP_STATE;
  1276. unsigned long flags;
  1277. qp = get_ocrdma_qp(ibqp);
  1278. dev = qp->dev;
  1279. attrs.qp_state = IB_QPS_ERR;
  1280. pd = qp->pd;
  1281. /* change the QP state to ERROR */
  1282. _ocrdma_modify_qp(ibqp, &attrs, attr_mask);
  1283. /* ensure that CQEs for newly created QP (whose id may be same with
  1284. * one which just getting destroyed are same), dont get
  1285. * discarded until the old CQEs are discarded.
  1286. */
  1287. mutex_lock(&dev->dev_lock);
  1288. status = ocrdma_mbx_destroy_qp(dev, qp);
  1289. /*
  1290. * acquire CQ lock while destroy is in progress, in order to
  1291. * protect against proessing in-flight CQEs for this QP.
  1292. */
  1293. spin_lock_irqsave(&qp->sq_cq->cq_lock, flags);
  1294. if (qp->rq_cq && (qp->rq_cq != qp->sq_cq))
  1295. spin_lock(&qp->rq_cq->cq_lock);
  1296. ocrdma_del_qpn_map(dev, qp);
  1297. if (qp->rq_cq && (qp->rq_cq != qp->sq_cq))
  1298. spin_unlock(&qp->rq_cq->cq_lock);
  1299. spin_unlock_irqrestore(&qp->sq_cq->cq_lock, flags);
  1300. if (!pd->uctx) {
  1301. ocrdma_discard_cqes(qp, qp->sq_cq);
  1302. ocrdma_discard_cqes(qp, qp->rq_cq);
  1303. }
  1304. mutex_unlock(&dev->dev_lock);
  1305. if (pd->uctx) {
  1306. ocrdma_del_mmap(pd->uctx, (u64) qp->sq.pa, qp->sq.len);
  1307. if (!qp->srq)
  1308. ocrdma_del_mmap(pd->uctx, (u64) qp->rq.pa, qp->rq.len);
  1309. }
  1310. ocrdma_del_flush_qp(qp);
  1311. atomic_dec(&qp->pd->use_cnt);
  1312. atomic_dec(&qp->sq_cq->use_cnt);
  1313. atomic_dec(&qp->rq_cq->use_cnt);
  1314. if (qp->srq)
  1315. atomic_dec(&qp->srq->use_cnt);
  1316. kfree(qp->wqe_wr_id_tbl);
  1317. kfree(qp->rqe_wr_id_tbl);
  1318. kfree(qp);
  1319. return status;
  1320. }
  1321. static int ocrdma_copy_srq_uresp(struct ocrdma_srq *srq, struct ib_udata *udata)
  1322. {
  1323. int status;
  1324. struct ocrdma_create_srq_uresp uresp;
  1325. uresp.rq_dbid = srq->rq.dbid;
  1326. uresp.num_rq_pages = 1;
  1327. uresp.rq_page_addr[0] = srq->rq.pa;
  1328. uresp.rq_page_size = srq->rq.len;
  1329. uresp.db_page_addr = srq->dev->nic_info.unmapped_db +
  1330. (srq->pd->id * srq->dev->nic_info.db_page_size);
  1331. uresp.db_page_size = srq->dev->nic_info.db_page_size;
  1332. uresp.num_rqe_allocated = srq->rq.max_cnt;
  1333. if (srq->dev->nic_info.dev_family == OCRDMA_GEN2_FAMILY) {
  1334. uresp.db_rq_offset = OCRDMA_DB_GEN2_RQ1_OFFSET;
  1335. uresp.db_shift = 24;
  1336. } else {
  1337. uresp.db_rq_offset = OCRDMA_DB_RQ_OFFSET;
  1338. uresp.db_shift = 16;
  1339. }
  1340. status = ib_copy_to_udata(udata, &uresp, sizeof(uresp));
  1341. if (status)
  1342. return status;
  1343. status = ocrdma_add_mmap(srq->pd->uctx, uresp.rq_page_addr[0],
  1344. uresp.rq_page_size);
  1345. if (status)
  1346. return status;
  1347. return status;
  1348. }
  1349. struct ib_srq *ocrdma_create_srq(struct ib_pd *ibpd,
  1350. struct ib_srq_init_attr *init_attr,
  1351. struct ib_udata *udata)
  1352. {
  1353. int status = -ENOMEM;
  1354. struct ocrdma_pd *pd = get_ocrdma_pd(ibpd);
  1355. struct ocrdma_dev *dev = pd->dev;
  1356. struct ocrdma_srq *srq;
  1357. if (init_attr->attr.max_sge > dev->attr.max_recv_sge)
  1358. return ERR_PTR(-EINVAL);
  1359. if (init_attr->attr.max_wr > dev->attr.max_rqe)
  1360. return ERR_PTR(-EINVAL);
  1361. srq = kzalloc(sizeof(*srq), GFP_KERNEL);
  1362. if (!srq)
  1363. return ERR_PTR(status);
  1364. spin_lock_init(&srq->q_lock);
  1365. srq->dev = dev;
  1366. srq->pd = pd;
  1367. srq->db = dev->nic_info.db + (pd->id * dev->nic_info.db_page_size);
  1368. status = ocrdma_mbx_create_srq(srq, init_attr, pd);
  1369. if (status)
  1370. goto err;
  1371. if (udata == NULL) {
  1372. srq->rqe_wr_id_tbl = kzalloc(sizeof(u64) * srq->rq.max_cnt,
  1373. GFP_KERNEL);
  1374. if (srq->rqe_wr_id_tbl == NULL)
  1375. goto arm_err;
  1376. srq->bit_fields_len = (srq->rq.max_cnt / 32) +
  1377. (srq->rq.max_cnt % 32 ? 1 : 0);
  1378. srq->idx_bit_fields =
  1379. kmalloc(srq->bit_fields_len * sizeof(u32), GFP_KERNEL);
  1380. if (srq->idx_bit_fields == NULL)
  1381. goto arm_err;
  1382. memset(srq->idx_bit_fields, 0xff,
  1383. srq->bit_fields_len * sizeof(u32));
  1384. }
  1385. if (init_attr->attr.srq_limit) {
  1386. status = ocrdma_mbx_modify_srq(srq, &init_attr->attr);
  1387. if (status)
  1388. goto arm_err;
  1389. }
  1390. atomic_set(&srq->use_cnt, 0);
  1391. if (udata) {
  1392. status = ocrdma_copy_srq_uresp(srq, udata);
  1393. if (status)
  1394. goto arm_err;
  1395. }
  1396. atomic_inc(&pd->use_cnt);
  1397. return &srq->ibsrq;
  1398. arm_err:
  1399. ocrdma_mbx_destroy_srq(dev, srq);
  1400. err:
  1401. kfree(srq->rqe_wr_id_tbl);
  1402. kfree(srq->idx_bit_fields);
  1403. kfree(srq);
  1404. return ERR_PTR(status);
  1405. }
  1406. int ocrdma_modify_srq(struct ib_srq *ibsrq,
  1407. struct ib_srq_attr *srq_attr,
  1408. enum ib_srq_attr_mask srq_attr_mask,
  1409. struct ib_udata *udata)
  1410. {
  1411. int status = 0;
  1412. struct ocrdma_srq *srq;
  1413. srq = get_ocrdma_srq(ibsrq);
  1414. if (srq_attr_mask & IB_SRQ_MAX_WR)
  1415. status = -EINVAL;
  1416. else
  1417. status = ocrdma_mbx_modify_srq(srq, srq_attr);
  1418. return status;
  1419. }
  1420. int ocrdma_query_srq(struct ib_srq *ibsrq, struct ib_srq_attr *srq_attr)
  1421. {
  1422. int status;
  1423. struct ocrdma_srq *srq;
  1424. srq = get_ocrdma_srq(ibsrq);
  1425. status = ocrdma_mbx_query_srq(srq, srq_attr);
  1426. return status;
  1427. }
  1428. int ocrdma_destroy_srq(struct ib_srq *ibsrq)
  1429. {
  1430. int status;
  1431. struct ocrdma_srq *srq;
  1432. struct ocrdma_dev *dev;
  1433. srq = get_ocrdma_srq(ibsrq);
  1434. dev = srq->dev;
  1435. if (atomic_read(&srq->use_cnt)) {
  1436. ocrdma_err("%s(%d) err, srq=0x%x in use\n",
  1437. __func__, dev->id, srq->id);
  1438. return -EAGAIN;
  1439. }
  1440. status = ocrdma_mbx_destroy_srq(dev, srq);
  1441. if (srq->pd->uctx)
  1442. ocrdma_del_mmap(srq->pd->uctx, (u64) srq->rq.pa, srq->rq.len);
  1443. atomic_dec(&srq->pd->use_cnt);
  1444. kfree(srq->idx_bit_fields);
  1445. kfree(srq->rqe_wr_id_tbl);
  1446. kfree(srq);
  1447. return status;
  1448. }
  1449. /* unprivileged verbs and their support functions. */
  1450. static void ocrdma_build_ud_hdr(struct ocrdma_qp *qp,
  1451. struct ocrdma_hdr_wqe *hdr,
  1452. struct ib_send_wr *wr)
  1453. {
  1454. struct ocrdma_ewqe_ud_hdr *ud_hdr =
  1455. (struct ocrdma_ewqe_ud_hdr *)(hdr + 1);
  1456. struct ocrdma_ah *ah = get_ocrdma_ah(wr->wr.ud.ah);
  1457. ud_hdr->rsvd_dest_qpn = wr->wr.ud.remote_qpn;
  1458. if (qp->qp_type == IB_QPT_GSI)
  1459. ud_hdr->qkey = qp->qkey;
  1460. else
  1461. ud_hdr->qkey = wr->wr.ud.remote_qkey;
  1462. ud_hdr->rsvd_ahid = ah->id;
  1463. }
  1464. static void ocrdma_build_sges(struct ocrdma_hdr_wqe *hdr,
  1465. struct ocrdma_sge *sge, int num_sge,
  1466. struct ib_sge *sg_list)
  1467. {
  1468. int i;
  1469. for (i = 0; i < num_sge; i++) {
  1470. sge[i].lrkey = sg_list[i].lkey;
  1471. sge[i].addr_lo = sg_list[i].addr;
  1472. sge[i].addr_hi = upper_32_bits(sg_list[i].addr);
  1473. sge[i].len = sg_list[i].length;
  1474. hdr->total_len += sg_list[i].length;
  1475. }
  1476. if (num_sge == 0)
  1477. memset(sge, 0, sizeof(*sge));
  1478. }
  1479. static int ocrdma_build_inline_sges(struct ocrdma_qp *qp,
  1480. struct ocrdma_hdr_wqe *hdr,
  1481. struct ocrdma_sge *sge,
  1482. struct ib_send_wr *wr, u32 wqe_size)
  1483. {
  1484. if (wr->send_flags & IB_SEND_INLINE) {
  1485. if (wr->sg_list[0].length > qp->max_inline_data) {
  1486. ocrdma_err("%s() supported_len=0x%x,"
  1487. " unspported len req=0x%x\n", __func__,
  1488. qp->max_inline_data, wr->sg_list[0].length);
  1489. return -EINVAL;
  1490. }
  1491. memcpy(sge,
  1492. (void *)(unsigned long)wr->sg_list[0].addr,
  1493. wr->sg_list[0].length);
  1494. hdr->total_len = wr->sg_list[0].length;
  1495. wqe_size += roundup(hdr->total_len, OCRDMA_WQE_ALIGN_BYTES);
  1496. hdr->cw |= (OCRDMA_TYPE_INLINE << OCRDMA_WQE_TYPE_SHIFT);
  1497. } else {
  1498. ocrdma_build_sges(hdr, sge, wr->num_sge, wr->sg_list);
  1499. if (wr->num_sge)
  1500. wqe_size += (wr->num_sge * sizeof(struct ocrdma_sge));
  1501. else
  1502. wqe_size += sizeof(struct ocrdma_sge);
  1503. hdr->cw |= (OCRDMA_TYPE_LKEY << OCRDMA_WQE_TYPE_SHIFT);
  1504. }
  1505. hdr->cw |= ((wqe_size / OCRDMA_WQE_STRIDE) << OCRDMA_WQE_SIZE_SHIFT);
  1506. return 0;
  1507. }
  1508. static int ocrdma_build_send(struct ocrdma_qp *qp, struct ocrdma_hdr_wqe *hdr,
  1509. struct ib_send_wr *wr)
  1510. {
  1511. int status;
  1512. struct ocrdma_sge *sge;
  1513. u32 wqe_size = sizeof(*hdr);
  1514. if (qp->qp_type == IB_QPT_UD || qp->qp_type == IB_QPT_GSI) {
  1515. ocrdma_build_ud_hdr(qp, hdr, wr);
  1516. sge = (struct ocrdma_sge *)(hdr + 2);
  1517. wqe_size += sizeof(struct ocrdma_ewqe_ud_hdr);
  1518. } else
  1519. sge = (struct ocrdma_sge *)(hdr + 1);
  1520. status = ocrdma_build_inline_sges(qp, hdr, sge, wr, wqe_size);
  1521. return status;
  1522. }
  1523. static int ocrdma_build_write(struct ocrdma_qp *qp, struct ocrdma_hdr_wqe *hdr,
  1524. struct ib_send_wr *wr)
  1525. {
  1526. int status;
  1527. struct ocrdma_sge *ext_rw = (struct ocrdma_sge *)(hdr + 1);
  1528. struct ocrdma_sge *sge = ext_rw + 1;
  1529. u32 wqe_size = sizeof(*hdr) + sizeof(*ext_rw);
  1530. status = ocrdma_build_inline_sges(qp, hdr, sge, wr, wqe_size);
  1531. if (status)
  1532. return status;
  1533. ext_rw->addr_lo = wr->wr.rdma.remote_addr;
  1534. ext_rw->addr_hi = upper_32_bits(wr->wr.rdma.remote_addr);
  1535. ext_rw->lrkey = wr->wr.rdma.rkey;
  1536. ext_rw->len = hdr->total_len;
  1537. return 0;
  1538. }
  1539. static void ocrdma_build_read(struct ocrdma_qp *qp, struct ocrdma_hdr_wqe *hdr,
  1540. struct ib_send_wr *wr)
  1541. {
  1542. struct ocrdma_sge *ext_rw = (struct ocrdma_sge *)(hdr + 1);
  1543. struct ocrdma_sge *sge = ext_rw + 1;
  1544. u32 wqe_size = ((wr->num_sge + 1) * sizeof(struct ocrdma_sge)) +
  1545. sizeof(struct ocrdma_hdr_wqe);
  1546. ocrdma_build_sges(hdr, sge, wr->num_sge, wr->sg_list);
  1547. hdr->cw |= ((wqe_size / OCRDMA_WQE_STRIDE) << OCRDMA_WQE_SIZE_SHIFT);
  1548. hdr->cw |= (OCRDMA_READ << OCRDMA_WQE_OPCODE_SHIFT);
  1549. hdr->cw |= (OCRDMA_TYPE_LKEY << OCRDMA_WQE_TYPE_SHIFT);
  1550. ext_rw->addr_lo = wr->wr.rdma.remote_addr;
  1551. ext_rw->addr_hi = upper_32_bits(wr->wr.rdma.remote_addr);
  1552. ext_rw->lrkey = wr->wr.rdma.rkey;
  1553. ext_rw->len = hdr->total_len;
  1554. }
  1555. static void ocrdma_ring_sq_db(struct ocrdma_qp *qp)
  1556. {
  1557. u32 val = qp->sq.dbid | (1 << 16);
  1558. iowrite32(val, qp->sq_db);
  1559. }
  1560. int ocrdma_post_send(struct ib_qp *ibqp, struct ib_send_wr *wr,
  1561. struct ib_send_wr **bad_wr)
  1562. {
  1563. int status = 0;
  1564. struct ocrdma_qp *qp = get_ocrdma_qp(ibqp);
  1565. struct ocrdma_hdr_wqe *hdr;
  1566. unsigned long flags;
  1567. spin_lock_irqsave(&qp->q_lock, flags);
  1568. if (qp->state != OCRDMA_QPS_RTS && qp->state != OCRDMA_QPS_SQD) {
  1569. spin_unlock_irqrestore(&qp->q_lock, flags);
  1570. return -EINVAL;
  1571. }
  1572. while (wr) {
  1573. if (ocrdma_hwq_free_cnt(&qp->sq) == 0 ||
  1574. wr->num_sge > qp->sq.max_sges) {
  1575. status = -ENOMEM;
  1576. break;
  1577. }
  1578. hdr = ocrdma_hwq_head(&qp->sq);
  1579. hdr->cw = 0;
  1580. if (wr->send_flags & IB_SEND_SIGNALED)
  1581. hdr->cw |= (OCRDMA_FLAG_SIG << OCRDMA_WQE_FLAGS_SHIFT);
  1582. if (wr->send_flags & IB_SEND_FENCE)
  1583. hdr->cw |=
  1584. (OCRDMA_FLAG_FENCE_L << OCRDMA_WQE_FLAGS_SHIFT);
  1585. if (wr->send_flags & IB_SEND_SOLICITED)
  1586. hdr->cw |=
  1587. (OCRDMA_FLAG_SOLICIT << OCRDMA_WQE_FLAGS_SHIFT);
  1588. hdr->total_len = 0;
  1589. switch (wr->opcode) {
  1590. case IB_WR_SEND_WITH_IMM:
  1591. hdr->cw |= (OCRDMA_FLAG_IMM << OCRDMA_WQE_FLAGS_SHIFT);
  1592. hdr->immdt = ntohl(wr->ex.imm_data);
  1593. case IB_WR_SEND:
  1594. hdr->cw |= (OCRDMA_SEND << OCRDMA_WQE_OPCODE_SHIFT);
  1595. ocrdma_build_send(qp, hdr, wr);
  1596. break;
  1597. case IB_WR_SEND_WITH_INV:
  1598. hdr->cw |= (OCRDMA_FLAG_INV << OCRDMA_WQE_FLAGS_SHIFT);
  1599. hdr->cw |= (OCRDMA_SEND << OCRDMA_WQE_OPCODE_SHIFT);
  1600. hdr->lkey = wr->ex.invalidate_rkey;
  1601. status = ocrdma_build_send(qp, hdr, wr);
  1602. break;
  1603. case IB_WR_RDMA_WRITE_WITH_IMM:
  1604. hdr->cw |= (OCRDMA_FLAG_IMM << OCRDMA_WQE_FLAGS_SHIFT);
  1605. hdr->immdt = ntohl(wr->ex.imm_data);
  1606. case IB_WR_RDMA_WRITE:
  1607. hdr->cw |= (OCRDMA_WRITE << OCRDMA_WQE_OPCODE_SHIFT);
  1608. status = ocrdma_build_write(qp, hdr, wr);
  1609. break;
  1610. case IB_WR_RDMA_READ_WITH_INV:
  1611. hdr->cw |= (OCRDMA_FLAG_INV << OCRDMA_WQE_FLAGS_SHIFT);
  1612. case IB_WR_RDMA_READ:
  1613. ocrdma_build_read(qp, hdr, wr);
  1614. break;
  1615. case IB_WR_LOCAL_INV:
  1616. hdr->cw |=
  1617. (OCRDMA_LKEY_INV << OCRDMA_WQE_OPCODE_SHIFT);
  1618. hdr->cw |= (sizeof(struct ocrdma_hdr_wqe) /
  1619. OCRDMA_WQE_STRIDE) << OCRDMA_WQE_SIZE_SHIFT;
  1620. hdr->lkey = wr->ex.invalidate_rkey;
  1621. break;
  1622. default:
  1623. status = -EINVAL;
  1624. break;
  1625. }
  1626. if (status) {
  1627. *bad_wr = wr;
  1628. break;
  1629. }
  1630. if (wr->send_flags & IB_SEND_SIGNALED)
  1631. qp->wqe_wr_id_tbl[qp->sq.head].signaled = 1;
  1632. else
  1633. qp->wqe_wr_id_tbl[qp->sq.head].signaled = 0;
  1634. qp->wqe_wr_id_tbl[qp->sq.head].wrid = wr->wr_id;
  1635. ocrdma_cpu_to_le32(hdr, ((hdr->cw >> OCRDMA_WQE_SIZE_SHIFT) &
  1636. OCRDMA_WQE_SIZE_MASK) * OCRDMA_WQE_STRIDE);
  1637. /* make sure wqe is written before adapter can access it */
  1638. wmb();
  1639. /* inform hw to start processing it */
  1640. ocrdma_ring_sq_db(qp);
  1641. /* update pointer, counter for next wr */
  1642. ocrdma_hwq_inc_head(&qp->sq);
  1643. wr = wr->next;
  1644. }
  1645. spin_unlock_irqrestore(&qp->q_lock, flags);
  1646. return status;
  1647. }
  1648. static void ocrdma_ring_rq_db(struct ocrdma_qp *qp)
  1649. {
  1650. u32 val = qp->rq.dbid | (1 << OCRDMA_GET_NUM_POSTED_SHIFT_VAL(qp));
  1651. iowrite32(val, qp->rq_db);
  1652. }
  1653. static void ocrdma_build_rqe(struct ocrdma_hdr_wqe *rqe, struct ib_recv_wr *wr,
  1654. u16 tag)
  1655. {
  1656. u32 wqe_size = 0;
  1657. struct ocrdma_sge *sge;
  1658. if (wr->num_sge)
  1659. wqe_size = (wr->num_sge * sizeof(*sge)) + sizeof(*rqe);
  1660. else
  1661. wqe_size = sizeof(*sge) + sizeof(*rqe);
  1662. rqe->cw = ((wqe_size / OCRDMA_WQE_STRIDE) <<
  1663. OCRDMA_WQE_SIZE_SHIFT);
  1664. rqe->cw |= (OCRDMA_FLAG_SIG << OCRDMA_WQE_FLAGS_SHIFT);
  1665. rqe->cw |= (OCRDMA_TYPE_LKEY << OCRDMA_WQE_TYPE_SHIFT);
  1666. rqe->total_len = 0;
  1667. rqe->rsvd_tag = tag;
  1668. sge = (struct ocrdma_sge *)(rqe + 1);
  1669. ocrdma_build_sges(rqe, sge, wr->num_sge, wr->sg_list);
  1670. ocrdma_cpu_to_le32(rqe, wqe_size);
  1671. }
  1672. int ocrdma_post_recv(struct ib_qp *ibqp, struct ib_recv_wr *wr,
  1673. struct ib_recv_wr **bad_wr)
  1674. {
  1675. int status = 0;
  1676. unsigned long flags;
  1677. struct ocrdma_qp *qp = get_ocrdma_qp(ibqp);
  1678. struct ocrdma_hdr_wqe *rqe;
  1679. spin_lock_irqsave(&qp->q_lock, flags);
  1680. if (qp->state == OCRDMA_QPS_RST || qp->state == OCRDMA_QPS_ERR) {
  1681. spin_unlock_irqrestore(&qp->q_lock, flags);
  1682. *bad_wr = wr;
  1683. return -EINVAL;
  1684. }
  1685. while (wr) {
  1686. if (ocrdma_hwq_free_cnt(&qp->rq) == 0 ||
  1687. wr->num_sge > qp->rq.max_sges) {
  1688. *bad_wr = wr;
  1689. status = -ENOMEM;
  1690. break;
  1691. }
  1692. rqe = ocrdma_hwq_head(&qp->rq);
  1693. ocrdma_build_rqe(rqe, wr, 0);
  1694. qp->rqe_wr_id_tbl[qp->rq.head] = wr->wr_id;
  1695. /* make sure rqe is written before adapter can access it */
  1696. wmb();
  1697. /* inform hw to start processing it */
  1698. ocrdma_ring_rq_db(qp);
  1699. /* update pointer, counter for next wr */
  1700. ocrdma_hwq_inc_head(&qp->rq);
  1701. wr = wr->next;
  1702. }
  1703. spin_unlock_irqrestore(&qp->q_lock, flags);
  1704. return status;
  1705. }
  1706. /* cqe for srq's rqe can potentially arrive out of order.
  1707. * index gives the entry in the shadow table where to store
  1708. * the wr_id. tag/index is returned in cqe to reference back
  1709. * for a given rqe.
  1710. */
  1711. static int ocrdma_srq_get_idx(struct ocrdma_srq *srq)
  1712. {
  1713. int row = 0;
  1714. int indx = 0;
  1715. for (row = 0; row < srq->bit_fields_len; row++) {
  1716. if (srq->idx_bit_fields[row]) {
  1717. indx = ffs(srq->idx_bit_fields[row]);
  1718. indx = (row * 32) + (indx - 1);
  1719. if (indx >= srq->rq.max_cnt)
  1720. BUG();
  1721. ocrdma_srq_toggle_bit(srq, indx);
  1722. break;
  1723. }
  1724. }
  1725. if (row == srq->bit_fields_len)
  1726. BUG();
  1727. return indx;
  1728. }
  1729. static void ocrdma_ring_srq_db(struct ocrdma_srq *srq)
  1730. {
  1731. u32 val = srq->rq.dbid | (1 << 16);
  1732. iowrite32(val, srq->db + OCRDMA_DB_GEN2_SRQ_OFFSET);
  1733. }
  1734. int ocrdma_post_srq_recv(struct ib_srq *ibsrq, struct ib_recv_wr *wr,
  1735. struct ib_recv_wr **bad_wr)
  1736. {
  1737. int status = 0;
  1738. unsigned long flags;
  1739. struct ocrdma_srq *srq;
  1740. struct ocrdma_hdr_wqe *rqe;
  1741. u16 tag;
  1742. srq = get_ocrdma_srq(ibsrq);
  1743. spin_lock_irqsave(&srq->q_lock, flags);
  1744. while (wr) {
  1745. if (ocrdma_hwq_free_cnt(&srq->rq) == 0 ||
  1746. wr->num_sge > srq->rq.max_sges) {
  1747. status = -ENOMEM;
  1748. *bad_wr = wr;
  1749. break;
  1750. }
  1751. tag = ocrdma_srq_get_idx(srq);
  1752. rqe = ocrdma_hwq_head(&srq->rq);
  1753. ocrdma_build_rqe(rqe, wr, tag);
  1754. srq->rqe_wr_id_tbl[tag] = wr->wr_id;
  1755. /* make sure rqe is written before adapter can perform DMA */
  1756. wmb();
  1757. /* inform hw to start processing it */
  1758. ocrdma_ring_srq_db(srq);
  1759. /* update pointer, counter for next wr */
  1760. ocrdma_hwq_inc_head(&srq->rq);
  1761. wr = wr->next;
  1762. }
  1763. spin_unlock_irqrestore(&srq->q_lock, flags);
  1764. return status;
  1765. }
  1766. static enum ib_wc_status ocrdma_to_ibwc_err(u16 status)
  1767. {
  1768. enum ib_wc_status ibwc_status = IB_WC_GENERAL_ERR;
  1769. switch (status) {
  1770. case OCRDMA_CQE_GENERAL_ERR:
  1771. ibwc_status = IB_WC_GENERAL_ERR;
  1772. break;
  1773. case OCRDMA_CQE_LOC_LEN_ERR:
  1774. ibwc_status = IB_WC_LOC_LEN_ERR;
  1775. break;
  1776. case OCRDMA_CQE_LOC_QP_OP_ERR:
  1777. ibwc_status = IB_WC_LOC_QP_OP_ERR;
  1778. break;
  1779. case OCRDMA_CQE_LOC_EEC_OP_ERR:
  1780. ibwc_status = IB_WC_LOC_EEC_OP_ERR;
  1781. break;
  1782. case OCRDMA_CQE_LOC_PROT_ERR:
  1783. ibwc_status = IB_WC_LOC_PROT_ERR;
  1784. break;
  1785. case OCRDMA_CQE_WR_FLUSH_ERR:
  1786. ibwc_status = IB_WC_WR_FLUSH_ERR;
  1787. break;
  1788. case OCRDMA_CQE_MW_BIND_ERR:
  1789. ibwc_status = IB_WC_MW_BIND_ERR;
  1790. break;
  1791. case OCRDMA_CQE_BAD_RESP_ERR:
  1792. ibwc_status = IB_WC_BAD_RESP_ERR;
  1793. break;
  1794. case OCRDMA_CQE_LOC_ACCESS_ERR:
  1795. ibwc_status = IB_WC_LOC_ACCESS_ERR;
  1796. break;
  1797. case OCRDMA_CQE_REM_INV_REQ_ERR:
  1798. ibwc_status = IB_WC_REM_INV_REQ_ERR;
  1799. break;
  1800. case OCRDMA_CQE_REM_ACCESS_ERR:
  1801. ibwc_status = IB_WC_REM_ACCESS_ERR;
  1802. break;
  1803. case OCRDMA_CQE_REM_OP_ERR:
  1804. ibwc_status = IB_WC_REM_OP_ERR;
  1805. break;
  1806. case OCRDMA_CQE_RETRY_EXC_ERR:
  1807. ibwc_status = IB_WC_RETRY_EXC_ERR;
  1808. break;
  1809. case OCRDMA_CQE_RNR_RETRY_EXC_ERR:
  1810. ibwc_status = IB_WC_RNR_RETRY_EXC_ERR;
  1811. break;
  1812. case OCRDMA_CQE_LOC_RDD_VIOL_ERR:
  1813. ibwc_status = IB_WC_LOC_RDD_VIOL_ERR;
  1814. break;
  1815. case OCRDMA_CQE_REM_INV_RD_REQ_ERR:
  1816. ibwc_status = IB_WC_REM_INV_RD_REQ_ERR;
  1817. break;
  1818. case OCRDMA_CQE_REM_ABORT_ERR:
  1819. ibwc_status = IB_WC_REM_ABORT_ERR;
  1820. break;
  1821. case OCRDMA_CQE_INV_EECN_ERR:
  1822. ibwc_status = IB_WC_INV_EECN_ERR;
  1823. break;
  1824. case OCRDMA_CQE_INV_EEC_STATE_ERR:
  1825. ibwc_status = IB_WC_INV_EEC_STATE_ERR;
  1826. break;
  1827. case OCRDMA_CQE_FATAL_ERR:
  1828. ibwc_status = IB_WC_FATAL_ERR;
  1829. break;
  1830. case OCRDMA_CQE_RESP_TIMEOUT_ERR:
  1831. ibwc_status = IB_WC_RESP_TIMEOUT_ERR;
  1832. break;
  1833. default:
  1834. ibwc_status = IB_WC_GENERAL_ERR;
  1835. break;
  1836. };
  1837. return ibwc_status;
  1838. }
  1839. static void ocrdma_update_wc(struct ocrdma_qp *qp, struct ib_wc *ibwc,
  1840. u32 wqe_idx)
  1841. {
  1842. struct ocrdma_hdr_wqe *hdr;
  1843. struct ocrdma_sge *rw;
  1844. int opcode;
  1845. hdr = ocrdma_hwq_head_from_idx(&qp->sq, wqe_idx);
  1846. ibwc->wr_id = qp->wqe_wr_id_tbl[wqe_idx].wrid;
  1847. /* Undo the hdr->cw swap */
  1848. opcode = le32_to_cpu(hdr->cw) & OCRDMA_WQE_OPCODE_MASK;
  1849. switch (opcode) {
  1850. case OCRDMA_WRITE:
  1851. ibwc->opcode = IB_WC_RDMA_WRITE;
  1852. break;
  1853. case OCRDMA_READ:
  1854. rw = (struct ocrdma_sge *)(hdr + 1);
  1855. ibwc->opcode = IB_WC_RDMA_READ;
  1856. ibwc->byte_len = rw->len;
  1857. break;
  1858. case OCRDMA_SEND:
  1859. ibwc->opcode = IB_WC_SEND;
  1860. break;
  1861. case OCRDMA_LKEY_INV:
  1862. ibwc->opcode = IB_WC_LOCAL_INV;
  1863. break;
  1864. default:
  1865. ibwc->status = IB_WC_GENERAL_ERR;
  1866. ocrdma_err("%s() invalid opcode received = 0x%x\n",
  1867. __func__, hdr->cw & OCRDMA_WQE_OPCODE_MASK);
  1868. break;
  1869. };
  1870. }
  1871. static void ocrdma_set_cqe_status_flushed(struct ocrdma_qp *qp,
  1872. struct ocrdma_cqe *cqe)
  1873. {
  1874. if (is_cqe_for_sq(cqe)) {
  1875. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1876. cqe->flags_status_srcqpn) &
  1877. ~OCRDMA_CQE_STATUS_MASK);
  1878. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1879. cqe->flags_status_srcqpn) |
  1880. (OCRDMA_CQE_WR_FLUSH_ERR <<
  1881. OCRDMA_CQE_STATUS_SHIFT));
  1882. } else {
  1883. if (qp->qp_type == IB_QPT_UD || qp->qp_type == IB_QPT_GSI) {
  1884. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1885. cqe->flags_status_srcqpn) &
  1886. ~OCRDMA_CQE_UD_STATUS_MASK);
  1887. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1888. cqe->flags_status_srcqpn) |
  1889. (OCRDMA_CQE_WR_FLUSH_ERR <<
  1890. OCRDMA_CQE_UD_STATUS_SHIFT));
  1891. } else {
  1892. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1893. cqe->flags_status_srcqpn) &
  1894. ~OCRDMA_CQE_STATUS_MASK);
  1895. cqe->flags_status_srcqpn = cpu_to_le32(le32_to_cpu(
  1896. cqe->flags_status_srcqpn) |
  1897. (OCRDMA_CQE_WR_FLUSH_ERR <<
  1898. OCRDMA_CQE_STATUS_SHIFT));
  1899. }
  1900. }
  1901. }
  1902. static bool ocrdma_update_err_cqe(struct ib_wc *ibwc, struct ocrdma_cqe *cqe,
  1903. struct ocrdma_qp *qp, int status)
  1904. {
  1905. bool expand = false;
  1906. ibwc->byte_len = 0;
  1907. ibwc->qp = &qp->ibqp;
  1908. ibwc->status = ocrdma_to_ibwc_err(status);
  1909. ocrdma_flush_qp(qp);
  1910. ocrdma_qp_state_machine(qp, IB_QPS_ERR, NULL);
  1911. /* if wqe/rqe pending for which cqe needs to be returned,
  1912. * trigger inflating it.
  1913. */
  1914. if (!is_hw_rq_empty(qp) || !is_hw_sq_empty(qp)) {
  1915. expand = true;
  1916. ocrdma_set_cqe_status_flushed(qp, cqe);
  1917. }
  1918. return expand;
  1919. }
  1920. static int ocrdma_update_err_rcqe(struct ib_wc *ibwc, struct ocrdma_cqe *cqe,
  1921. struct ocrdma_qp *qp, int status)
  1922. {
  1923. ibwc->opcode = IB_WC_RECV;
  1924. ibwc->wr_id = qp->rqe_wr_id_tbl[qp->rq.tail];
  1925. ocrdma_hwq_inc_tail(&qp->rq);
  1926. return ocrdma_update_err_cqe(ibwc, cqe, qp, status);
  1927. }
  1928. static int ocrdma_update_err_scqe(struct ib_wc *ibwc, struct ocrdma_cqe *cqe,
  1929. struct ocrdma_qp *qp, int status)
  1930. {
  1931. ocrdma_update_wc(qp, ibwc, qp->sq.tail);
  1932. ocrdma_hwq_inc_tail(&qp->sq);
  1933. return ocrdma_update_err_cqe(ibwc, cqe, qp, status);
  1934. }
  1935. static bool ocrdma_poll_err_scqe(struct ocrdma_qp *qp,
  1936. struct ocrdma_cqe *cqe, struct ib_wc *ibwc,
  1937. bool *polled, bool *stop)
  1938. {
  1939. bool expand;
  1940. int status = (le32_to_cpu(cqe->flags_status_srcqpn) &
  1941. OCRDMA_CQE_STATUS_MASK) >> OCRDMA_CQE_STATUS_SHIFT;
  1942. /* when hw sq is empty, but rq is not empty, so we continue
  1943. * to keep the cqe in order to get the cq event again.
  1944. */
  1945. if (is_hw_sq_empty(qp) && !is_hw_rq_empty(qp)) {
  1946. /* when cq for rq and sq is same, it is safe to return
  1947. * flush cqe for RQEs.
  1948. */
  1949. if (!qp->srq && (qp->sq_cq == qp->rq_cq)) {
  1950. *polled = true;
  1951. status = OCRDMA_CQE_WR_FLUSH_ERR;
  1952. expand = ocrdma_update_err_rcqe(ibwc, cqe, qp, status);
  1953. } else {
  1954. /* stop processing further cqe as this cqe is used for
  1955. * triggering cq event on buddy cq of RQ.
  1956. * When QP is destroyed, this cqe will be removed
  1957. * from the cq's hardware q.
  1958. */
  1959. *polled = false;
  1960. *stop = true;
  1961. expand = false;
  1962. }
  1963. } else {
  1964. *polled = true;
  1965. expand = ocrdma_update_err_scqe(ibwc, cqe, qp, status);
  1966. }
  1967. return expand;
  1968. }
  1969. static bool ocrdma_poll_success_scqe(struct ocrdma_qp *qp,
  1970. struct ocrdma_cqe *cqe,
  1971. struct ib_wc *ibwc, bool *polled)
  1972. {
  1973. bool expand = false;
  1974. int tail = qp->sq.tail;
  1975. u32 wqe_idx;
  1976. if (!qp->wqe_wr_id_tbl[tail].signaled) {
  1977. expand = true; /* CQE cannot be consumed yet */
  1978. *polled = false; /* WC cannot be consumed yet */
  1979. } else {
  1980. ibwc->status = IB_WC_SUCCESS;
  1981. ibwc->wc_flags = 0;
  1982. ibwc->qp = &qp->ibqp;
  1983. ocrdma_update_wc(qp, ibwc, tail);
  1984. *polled = true;
  1985. wqe_idx = le32_to_cpu(cqe->wq.wqeidx) & OCRDMA_CQE_WQEIDX_MASK;
  1986. if (tail != wqe_idx)
  1987. expand = true; /* Coalesced CQE can't be consumed yet */
  1988. }
  1989. ocrdma_hwq_inc_tail(&qp->sq);
  1990. return expand;
  1991. }
  1992. static bool ocrdma_poll_scqe(struct ocrdma_qp *qp, struct ocrdma_cqe *cqe,
  1993. struct ib_wc *ibwc, bool *polled, bool *stop)
  1994. {
  1995. int status;
  1996. bool expand;
  1997. status = (le32_to_cpu(cqe->flags_status_srcqpn) &
  1998. OCRDMA_CQE_STATUS_MASK) >> OCRDMA_CQE_STATUS_SHIFT;
  1999. if (status == OCRDMA_CQE_SUCCESS)
  2000. expand = ocrdma_poll_success_scqe(qp, cqe, ibwc, polled);
  2001. else
  2002. expand = ocrdma_poll_err_scqe(qp, cqe, ibwc, polled, stop);
  2003. return expand;
  2004. }
  2005. static int ocrdma_update_ud_rcqe(struct ib_wc *ibwc, struct ocrdma_cqe *cqe)
  2006. {
  2007. int status;
  2008. status = (le32_to_cpu(cqe->flags_status_srcqpn) &
  2009. OCRDMA_CQE_UD_STATUS_MASK) >> OCRDMA_CQE_UD_STATUS_SHIFT;
  2010. ibwc->src_qp = le32_to_cpu(cqe->flags_status_srcqpn) &
  2011. OCRDMA_CQE_SRCQP_MASK;
  2012. ibwc->pkey_index = le32_to_cpu(cqe->ud.rxlen_pkey) &
  2013. OCRDMA_CQE_PKEY_MASK;
  2014. ibwc->wc_flags = IB_WC_GRH;
  2015. ibwc->byte_len = (le32_to_cpu(cqe->ud.rxlen_pkey) >>
  2016. OCRDMA_CQE_UD_XFER_LEN_SHIFT);
  2017. return status;
  2018. }
  2019. static void ocrdma_update_free_srq_cqe(struct ib_wc *ibwc,
  2020. struct ocrdma_cqe *cqe,
  2021. struct ocrdma_qp *qp)
  2022. {
  2023. unsigned long flags;
  2024. struct ocrdma_srq *srq;
  2025. u32 wqe_idx;
  2026. srq = get_ocrdma_srq(qp->ibqp.srq);
  2027. wqe_idx = le32_to_cpu(cqe->rq.buftag_qpn) >> OCRDMA_CQE_BUFTAG_SHIFT;
  2028. ibwc->wr_id = srq->rqe_wr_id_tbl[wqe_idx];
  2029. spin_lock_irqsave(&srq->q_lock, flags);
  2030. ocrdma_srq_toggle_bit(srq, wqe_idx);
  2031. spin_unlock_irqrestore(&srq->q_lock, flags);
  2032. ocrdma_hwq_inc_tail(&srq->rq);
  2033. }
  2034. static bool ocrdma_poll_err_rcqe(struct ocrdma_qp *qp, struct ocrdma_cqe *cqe,
  2035. struct ib_wc *ibwc, bool *polled, bool *stop,
  2036. int status)
  2037. {
  2038. bool expand;
  2039. /* when hw_rq is empty, but wq is not empty, so continue
  2040. * to keep the cqe to get the cq event again.
  2041. */
  2042. if (is_hw_rq_empty(qp) && !is_hw_sq_empty(qp)) {
  2043. if (!qp->srq && (qp->sq_cq == qp->rq_cq)) {
  2044. *polled = true;
  2045. status = OCRDMA_CQE_WR_FLUSH_ERR;
  2046. expand = ocrdma_update_err_scqe(ibwc, cqe, qp, status);
  2047. } else {
  2048. *polled = false;
  2049. *stop = true;
  2050. expand = false;
  2051. }
  2052. } else
  2053. expand = ocrdma_update_err_rcqe(ibwc, cqe, qp, status);
  2054. return expand;
  2055. }
  2056. static void ocrdma_poll_success_rcqe(struct ocrdma_qp *qp,
  2057. struct ocrdma_cqe *cqe, struct ib_wc *ibwc)
  2058. {
  2059. ibwc->opcode = IB_WC_RECV;
  2060. ibwc->qp = &qp->ibqp;
  2061. ibwc->status = IB_WC_SUCCESS;
  2062. if (qp->qp_type == IB_QPT_UD || qp->qp_type == IB_QPT_GSI)
  2063. ocrdma_update_ud_rcqe(ibwc, cqe);
  2064. else
  2065. ibwc->byte_len = le32_to_cpu(cqe->rq.rxlen);
  2066. if (is_cqe_imm(cqe)) {
  2067. ibwc->ex.imm_data = htonl(le32_to_cpu(cqe->rq.lkey_immdt));
  2068. ibwc->wc_flags |= IB_WC_WITH_IMM;
  2069. } else if (is_cqe_wr_imm(cqe)) {
  2070. ibwc->opcode = IB_WC_RECV_RDMA_WITH_IMM;
  2071. ibwc->ex.imm_data = htonl(le32_to_cpu(cqe->rq.lkey_immdt));
  2072. ibwc->wc_flags |= IB_WC_WITH_IMM;
  2073. } else if (is_cqe_invalidated(cqe)) {
  2074. ibwc->ex.invalidate_rkey = le32_to_cpu(cqe->rq.lkey_immdt);
  2075. ibwc->wc_flags |= IB_WC_WITH_INVALIDATE;
  2076. }
  2077. if (qp->ibqp.srq)
  2078. ocrdma_update_free_srq_cqe(ibwc, cqe, qp);
  2079. else {
  2080. ibwc->wr_id = qp->rqe_wr_id_tbl[qp->rq.tail];
  2081. ocrdma_hwq_inc_tail(&qp->rq);
  2082. }
  2083. }
  2084. static bool ocrdma_poll_rcqe(struct ocrdma_qp *qp, struct ocrdma_cqe *cqe,
  2085. struct ib_wc *ibwc, bool *polled, bool *stop)
  2086. {
  2087. int status;
  2088. bool expand = false;
  2089. ibwc->wc_flags = 0;
  2090. if (qp->qp_type == IB_QPT_UD || qp->qp_type == IB_QPT_GSI)
  2091. status = (le32_to_cpu(cqe->flags_status_srcqpn) &
  2092. OCRDMA_CQE_UD_STATUS_MASK) >>
  2093. OCRDMA_CQE_UD_STATUS_SHIFT;
  2094. else
  2095. status = (le32_to_cpu(cqe->flags_status_srcqpn) &
  2096. OCRDMA_CQE_STATUS_MASK) >> OCRDMA_CQE_STATUS_SHIFT;
  2097. if (status == OCRDMA_CQE_SUCCESS) {
  2098. *polled = true;
  2099. ocrdma_poll_success_rcqe(qp, cqe, ibwc);
  2100. } else {
  2101. expand = ocrdma_poll_err_rcqe(qp, cqe, ibwc, polled, stop,
  2102. status);
  2103. }
  2104. return expand;
  2105. }
  2106. static void ocrdma_change_cq_phase(struct ocrdma_cq *cq, struct ocrdma_cqe *cqe,
  2107. u16 cur_getp)
  2108. {
  2109. if (cq->phase_change) {
  2110. if (cur_getp == 0)
  2111. cq->phase = (~cq->phase & OCRDMA_CQE_VALID);
  2112. } else
  2113. /* clear valid bit */
  2114. cqe->flags_status_srcqpn = 0;
  2115. }
  2116. static int ocrdma_poll_hwcq(struct ocrdma_cq *cq, int num_entries,
  2117. struct ib_wc *ibwc)
  2118. {
  2119. u16 qpn = 0;
  2120. int i = 0;
  2121. bool expand = false;
  2122. int polled_hw_cqes = 0;
  2123. struct ocrdma_qp *qp = NULL;
  2124. struct ocrdma_dev *dev = cq->dev;
  2125. struct ocrdma_cqe *cqe;
  2126. u16 cur_getp; bool polled = false; bool stop = false;
  2127. cur_getp = cq->getp;
  2128. while (num_entries) {
  2129. cqe = cq->va + cur_getp;
  2130. /* check whether valid cqe or not */
  2131. if (!is_cqe_valid(cq, cqe))
  2132. break;
  2133. qpn = (le32_to_cpu(cqe->cmn.qpn) & OCRDMA_CQE_QPN_MASK);
  2134. /* ignore discarded cqe */
  2135. if (qpn == 0)
  2136. goto skip_cqe;
  2137. qp = dev->qp_tbl[qpn];
  2138. BUG_ON(qp == NULL);
  2139. if (is_cqe_for_sq(cqe)) {
  2140. expand = ocrdma_poll_scqe(qp, cqe, ibwc, &polled,
  2141. &stop);
  2142. } else {
  2143. expand = ocrdma_poll_rcqe(qp, cqe, ibwc, &polled,
  2144. &stop);
  2145. }
  2146. if (expand)
  2147. goto expand_cqe;
  2148. if (stop)
  2149. goto stop_cqe;
  2150. /* clear qpn to avoid duplicate processing by discard_cqe() */
  2151. cqe->cmn.qpn = 0;
  2152. skip_cqe:
  2153. polled_hw_cqes += 1;
  2154. cur_getp = (cur_getp + 1) % cq->max_hw_cqe;
  2155. ocrdma_change_cq_phase(cq, cqe, cur_getp);
  2156. expand_cqe:
  2157. if (polled) {
  2158. num_entries -= 1;
  2159. i += 1;
  2160. ibwc = ibwc + 1;
  2161. polled = false;
  2162. }
  2163. }
  2164. stop_cqe:
  2165. cq->getp = cur_getp;
  2166. if (polled_hw_cqes || expand || stop) {
  2167. ocrdma_ring_cq_db(dev, cq->id, cq->armed, cq->solicited,
  2168. polled_hw_cqes);
  2169. }
  2170. return i;
  2171. }
  2172. /* insert error cqe if the QP's SQ or RQ's CQ matches the CQ under poll. */
  2173. static int ocrdma_add_err_cqe(struct ocrdma_cq *cq, int num_entries,
  2174. struct ocrdma_qp *qp, struct ib_wc *ibwc)
  2175. {
  2176. int err_cqes = 0;
  2177. while (num_entries) {
  2178. if (is_hw_sq_empty(qp) && is_hw_rq_empty(qp))
  2179. break;
  2180. if (!is_hw_sq_empty(qp) && qp->sq_cq == cq) {
  2181. ocrdma_update_wc(qp, ibwc, qp->sq.tail);
  2182. ocrdma_hwq_inc_tail(&qp->sq);
  2183. } else if (!is_hw_rq_empty(qp) && qp->rq_cq == cq) {
  2184. ibwc->wr_id = qp->rqe_wr_id_tbl[qp->rq.tail];
  2185. ocrdma_hwq_inc_tail(&qp->rq);
  2186. } else
  2187. return err_cqes;
  2188. ibwc->byte_len = 0;
  2189. ibwc->status = IB_WC_WR_FLUSH_ERR;
  2190. ibwc = ibwc + 1;
  2191. err_cqes += 1;
  2192. num_entries -= 1;
  2193. }
  2194. return err_cqes;
  2195. }
  2196. int ocrdma_poll_cq(struct ib_cq *ibcq, int num_entries, struct ib_wc *wc)
  2197. {
  2198. int cqes_to_poll = num_entries;
  2199. struct ocrdma_cq *cq = NULL;
  2200. unsigned long flags;
  2201. struct ocrdma_dev *dev;
  2202. int num_os_cqe = 0, err_cqes = 0;
  2203. struct ocrdma_qp *qp;
  2204. cq = get_ocrdma_cq(ibcq);
  2205. dev = cq->dev;
  2206. /* poll cqes from adapter CQ */
  2207. spin_lock_irqsave(&cq->cq_lock, flags);
  2208. num_os_cqe = ocrdma_poll_hwcq(cq, cqes_to_poll, wc);
  2209. spin_unlock_irqrestore(&cq->cq_lock, flags);
  2210. cqes_to_poll -= num_os_cqe;
  2211. if (cqes_to_poll) {
  2212. wc = wc + num_os_cqe;
  2213. /* adapter returns single error cqe when qp moves to
  2214. * error state. So insert error cqes with wc_status as
  2215. * FLUSHED for pending WQEs and RQEs of QP's SQ and RQ
  2216. * respectively which uses this CQ.
  2217. */
  2218. spin_lock_irqsave(&dev->flush_q_lock, flags);
  2219. list_for_each_entry(qp, &cq->sq_head, sq_entry) {
  2220. if (cqes_to_poll == 0)
  2221. break;
  2222. err_cqes = ocrdma_add_err_cqe(cq, cqes_to_poll, qp, wc);
  2223. cqes_to_poll -= err_cqes;
  2224. num_os_cqe += err_cqes;
  2225. wc = wc + err_cqes;
  2226. }
  2227. spin_unlock_irqrestore(&dev->flush_q_lock, flags);
  2228. }
  2229. return num_os_cqe;
  2230. }
  2231. int ocrdma_arm_cq(struct ib_cq *ibcq, enum ib_cq_notify_flags cq_flags)
  2232. {
  2233. struct ocrdma_cq *cq;
  2234. unsigned long flags;
  2235. struct ocrdma_dev *dev;
  2236. u16 cq_id;
  2237. u16 cur_getp;
  2238. struct ocrdma_cqe *cqe;
  2239. cq = get_ocrdma_cq(ibcq);
  2240. cq_id = cq->id;
  2241. dev = cq->dev;
  2242. spin_lock_irqsave(&cq->cq_lock, flags);
  2243. if (cq_flags & IB_CQ_NEXT_COMP || cq_flags & IB_CQ_SOLICITED)
  2244. cq->armed = true;
  2245. if (cq_flags & IB_CQ_SOLICITED)
  2246. cq->solicited = true;
  2247. cur_getp = cq->getp;
  2248. cqe = cq->va + cur_getp;
  2249. /* check whether any valid cqe exist or not, if not then safe to
  2250. * arm. If cqe is not yet consumed, then let it get consumed and then
  2251. * we arm it to avoid false interrupts.
  2252. */
  2253. if (!is_cqe_valid(cq, cqe) || cq->arm_needed) {
  2254. cq->arm_needed = false;
  2255. ocrdma_ring_cq_db(dev, cq_id, cq->armed, cq->solicited, 0);
  2256. }
  2257. spin_unlock_irqrestore(&cq->cq_lock, flags);
  2258. return 0;
  2259. }