ntb_transport.c 44 KB

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  1. /*
  2. * This file is provided under a dual BSD/GPLv2 license. When using or
  3. * redistributing this file, you may do so under either license.
  4. *
  5. * GPL LICENSE SUMMARY
  6. *
  7. * Copyright(c) 2012 Intel Corporation. All rights reserved.
  8. *
  9. * This program is free software; you can redistribute it and/or modify
  10. * it under the terms of version 2 of the GNU General Public License as
  11. * published by the Free Software Foundation.
  12. *
  13. * BSD LICENSE
  14. *
  15. * Copyright(c) 2012 Intel Corporation. All rights reserved.
  16. *
  17. * Redistribution and use in source and binary forms, with or without
  18. * modification, are permitted provided that the following conditions
  19. * are met:
  20. *
  21. * * Redistributions of source code must retain the above copyright
  22. * notice, this list of conditions and the following disclaimer.
  23. * * Redistributions in binary form must reproduce the above copy
  24. * notice, this list of conditions and the following disclaimer in
  25. * the documentation and/or other materials provided with the
  26. * distribution.
  27. * * Neither the name of Intel Corporation nor the names of its
  28. * contributors may be used to endorse or promote products derived
  29. * from this software without specific prior written permission.
  30. *
  31. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  32. * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  33. * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
  34. * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  35. * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
  36. * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
  37. * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
  38. * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
  39. * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
  40. * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
  41. * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
  42. *
  43. * Intel PCIe NTB Linux driver
  44. *
  45. * Contact Information:
  46. * Jon Mason <jon.mason@intel.com>
  47. */
  48. #include <linux/debugfs.h>
  49. #include <linux/delay.h>
  50. #include <linux/dmaengine.h>
  51. #include <linux/dma-mapping.h>
  52. #include <linux/errno.h>
  53. #include <linux/export.h>
  54. #include <linux/interrupt.h>
  55. #include <linux/module.h>
  56. #include <linux/pci.h>
  57. #include <linux/slab.h>
  58. #include <linux/types.h>
  59. #include <linux/ntb.h>
  60. #include "ntb_hw.h"
  61. #define NTB_TRANSPORT_VERSION 3
  62. static unsigned int transport_mtu = 0x401E;
  63. module_param(transport_mtu, uint, 0644);
  64. MODULE_PARM_DESC(transport_mtu, "Maximum size of NTB transport packets");
  65. static unsigned char max_num_clients;
  66. module_param(max_num_clients, byte, 0644);
  67. MODULE_PARM_DESC(max_num_clients, "Maximum number of NTB transport clients");
  68. static unsigned int copy_bytes = 1024;
  69. module_param(copy_bytes, uint, 0644);
  70. MODULE_PARM_DESC(copy_bytes, "Threshold under which NTB will use the CPU to copy instead of DMA");
  71. struct ntb_queue_entry {
  72. /* ntb_queue list reference */
  73. struct list_head entry;
  74. /* pointers to data to be transfered */
  75. void *cb_data;
  76. void *buf;
  77. unsigned int len;
  78. unsigned int flags;
  79. struct ntb_transport_qp *qp;
  80. union {
  81. struct ntb_payload_header __iomem *tx_hdr;
  82. struct ntb_payload_header *rx_hdr;
  83. };
  84. unsigned int index;
  85. };
  86. struct ntb_rx_info {
  87. unsigned int entry;
  88. };
  89. struct ntb_transport_qp {
  90. struct ntb_transport *transport;
  91. struct ntb_device *ndev;
  92. void *cb_data;
  93. struct dma_chan *dma_chan;
  94. bool client_ready;
  95. bool qp_link;
  96. u8 qp_num; /* Only 64 QP's are allowed. 0-63 */
  97. struct ntb_rx_info __iomem *rx_info;
  98. struct ntb_rx_info *remote_rx_info;
  99. void (*tx_handler) (struct ntb_transport_qp *qp, void *qp_data,
  100. void *data, int len);
  101. struct list_head tx_free_q;
  102. spinlock_t ntb_tx_free_q_lock;
  103. void __iomem *tx_mw;
  104. dma_addr_t tx_mw_phys;
  105. unsigned int tx_index;
  106. unsigned int tx_max_entry;
  107. unsigned int tx_max_frame;
  108. void (*rx_handler) (struct ntb_transport_qp *qp, void *qp_data,
  109. void *data, int len);
  110. struct tasklet_struct rx_work;
  111. struct list_head rx_pend_q;
  112. struct list_head rx_free_q;
  113. spinlock_t ntb_rx_pend_q_lock;
  114. spinlock_t ntb_rx_free_q_lock;
  115. void *rx_buff;
  116. unsigned int rx_index;
  117. unsigned int rx_max_entry;
  118. unsigned int rx_max_frame;
  119. dma_cookie_t last_cookie;
  120. void (*event_handler) (void *data, int status);
  121. struct delayed_work link_work;
  122. struct work_struct link_cleanup;
  123. struct dentry *debugfs_dir;
  124. struct dentry *debugfs_stats;
  125. /* Stats */
  126. u64 rx_bytes;
  127. u64 rx_pkts;
  128. u64 rx_ring_empty;
  129. u64 rx_err_no_buf;
  130. u64 rx_err_oflow;
  131. u64 rx_err_ver;
  132. u64 rx_memcpy;
  133. u64 rx_async;
  134. u64 tx_bytes;
  135. u64 tx_pkts;
  136. u64 tx_ring_full;
  137. u64 tx_err_no_buf;
  138. u64 tx_memcpy;
  139. u64 tx_async;
  140. };
  141. struct ntb_transport_mw {
  142. size_t size;
  143. void *virt_addr;
  144. dma_addr_t dma_addr;
  145. };
  146. struct ntb_transport_client_dev {
  147. struct list_head entry;
  148. struct device dev;
  149. };
  150. struct ntb_transport {
  151. struct list_head entry;
  152. struct list_head client_devs;
  153. struct ntb_device *ndev;
  154. struct ntb_transport_mw *mw;
  155. struct ntb_transport_qp *qps;
  156. unsigned int max_qps;
  157. unsigned long qp_bitmap;
  158. bool transport_link;
  159. struct delayed_work link_work;
  160. struct work_struct link_cleanup;
  161. };
  162. enum {
  163. DESC_DONE_FLAG = 1 << 0,
  164. LINK_DOWN_FLAG = 1 << 1,
  165. };
  166. struct ntb_payload_header {
  167. unsigned int ver;
  168. unsigned int len;
  169. unsigned int flags;
  170. };
  171. enum {
  172. VERSION = 0,
  173. QP_LINKS,
  174. NUM_QPS,
  175. NUM_MWS,
  176. MW0_SZ_HIGH,
  177. MW0_SZ_LOW,
  178. MW1_SZ_HIGH,
  179. MW1_SZ_LOW,
  180. MAX_SPAD,
  181. };
  182. #define QP_TO_MW(ndev, qp) ((qp) % ntb_max_mw(ndev))
  183. #define NTB_QP_DEF_NUM_ENTRIES 100
  184. #define NTB_LINK_DOWN_TIMEOUT 10
  185. static int ntb_match_bus(struct device *dev, struct device_driver *drv)
  186. {
  187. return !strncmp(dev_name(dev), drv->name, strlen(drv->name));
  188. }
  189. static int ntb_client_probe(struct device *dev)
  190. {
  191. const struct ntb_client *drv = container_of(dev->driver,
  192. struct ntb_client, driver);
  193. struct pci_dev *pdev = container_of(dev->parent, struct pci_dev, dev);
  194. int rc = -EINVAL;
  195. get_device(dev);
  196. if (drv && drv->probe)
  197. rc = drv->probe(pdev);
  198. if (rc)
  199. put_device(dev);
  200. return rc;
  201. }
  202. static int ntb_client_remove(struct device *dev)
  203. {
  204. const struct ntb_client *drv = container_of(dev->driver,
  205. struct ntb_client, driver);
  206. struct pci_dev *pdev = container_of(dev->parent, struct pci_dev, dev);
  207. if (drv && drv->remove)
  208. drv->remove(pdev);
  209. put_device(dev);
  210. return 0;
  211. }
  212. static struct bus_type ntb_bus_type = {
  213. .name = "ntb_bus",
  214. .match = ntb_match_bus,
  215. .probe = ntb_client_probe,
  216. .remove = ntb_client_remove,
  217. };
  218. static LIST_HEAD(ntb_transport_list);
  219. static int ntb_bus_init(struct ntb_transport *nt)
  220. {
  221. if (list_empty(&ntb_transport_list)) {
  222. int rc = bus_register(&ntb_bus_type);
  223. if (rc)
  224. return rc;
  225. }
  226. list_add(&nt->entry, &ntb_transport_list);
  227. return 0;
  228. }
  229. static void ntb_bus_remove(struct ntb_transport *nt)
  230. {
  231. struct ntb_transport_client_dev *client_dev, *cd;
  232. list_for_each_entry_safe(client_dev, cd, &nt->client_devs, entry) {
  233. dev_err(client_dev->dev.parent, "%s still attached to bus, removing\n",
  234. dev_name(&client_dev->dev));
  235. list_del(&client_dev->entry);
  236. device_unregister(&client_dev->dev);
  237. }
  238. list_del(&nt->entry);
  239. if (list_empty(&ntb_transport_list))
  240. bus_unregister(&ntb_bus_type);
  241. }
  242. static void ntb_client_release(struct device *dev)
  243. {
  244. struct ntb_transport_client_dev *client_dev;
  245. client_dev = container_of(dev, struct ntb_transport_client_dev, dev);
  246. kfree(client_dev);
  247. }
  248. /**
  249. * ntb_unregister_client_dev - Unregister NTB client device
  250. * @device_name: Name of NTB client device
  251. *
  252. * Unregister an NTB client device with the NTB transport layer
  253. */
  254. void ntb_unregister_client_dev(char *device_name)
  255. {
  256. struct ntb_transport_client_dev *client, *cd;
  257. struct ntb_transport *nt;
  258. list_for_each_entry(nt, &ntb_transport_list, entry)
  259. list_for_each_entry_safe(client, cd, &nt->client_devs, entry)
  260. if (!strncmp(dev_name(&client->dev), device_name,
  261. strlen(device_name))) {
  262. list_del(&client->entry);
  263. device_unregister(&client->dev);
  264. }
  265. }
  266. EXPORT_SYMBOL_GPL(ntb_unregister_client_dev);
  267. /**
  268. * ntb_register_client_dev - Register NTB client device
  269. * @device_name: Name of NTB client device
  270. *
  271. * Register an NTB client device with the NTB transport layer
  272. */
  273. int ntb_register_client_dev(char *device_name)
  274. {
  275. struct ntb_transport_client_dev *client_dev;
  276. struct ntb_transport *nt;
  277. int rc, i = 0;
  278. if (list_empty(&ntb_transport_list))
  279. return -ENODEV;
  280. list_for_each_entry(nt, &ntb_transport_list, entry) {
  281. struct device *dev;
  282. client_dev = kzalloc(sizeof(struct ntb_transport_client_dev),
  283. GFP_KERNEL);
  284. if (!client_dev) {
  285. rc = -ENOMEM;
  286. goto err;
  287. }
  288. dev = &client_dev->dev;
  289. /* setup and register client devices */
  290. dev_set_name(dev, "%s%d", device_name, i);
  291. dev->bus = &ntb_bus_type;
  292. dev->release = ntb_client_release;
  293. dev->parent = &ntb_query_pdev(nt->ndev)->dev;
  294. rc = device_register(dev);
  295. if (rc) {
  296. kfree(client_dev);
  297. goto err;
  298. }
  299. list_add_tail(&client_dev->entry, &nt->client_devs);
  300. i++;
  301. }
  302. return 0;
  303. err:
  304. ntb_unregister_client_dev(device_name);
  305. return rc;
  306. }
  307. EXPORT_SYMBOL_GPL(ntb_register_client_dev);
  308. /**
  309. * ntb_register_client - Register NTB client driver
  310. * @drv: NTB client driver to be registered
  311. *
  312. * Register an NTB client driver with the NTB transport layer
  313. *
  314. * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
  315. */
  316. int ntb_register_client(struct ntb_client *drv)
  317. {
  318. drv->driver.bus = &ntb_bus_type;
  319. if (list_empty(&ntb_transport_list))
  320. return -ENODEV;
  321. return driver_register(&drv->driver);
  322. }
  323. EXPORT_SYMBOL_GPL(ntb_register_client);
  324. /**
  325. * ntb_unregister_client - Unregister NTB client driver
  326. * @drv: NTB client driver to be unregistered
  327. *
  328. * Unregister an NTB client driver with the NTB transport layer
  329. *
  330. * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
  331. */
  332. void ntb_unregister_client(struct ntb_client *drv)
  333. {
  334. driver_unregister(&drv->driver);
  335. }
  336. EXPORT_SYMBOL_GPL(ntb_unregister_client);
  337. static ssize_t debugfs_read(struct file *filp, char __user *ubuf, size_t count,
  338. loff_t *offp)
  339. {
  340. struct ntb_transport_qp *qp;
  341. char *buf;
  342. ssize_t ret, out_offset, out_count;
  343. out_count = 1000;
  344. buf = kmalloc(out_count, GFP_KERNEL);
  345. if (!buf)
  346. return -ENOMEM;
  347. qp = filp->private_data;
  348. out_offset = 0;
  349. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  350. "NTB QP stats\n");
  351. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  352. "rx_bytes - \t%llu\n", qp->rx_bytes);
  353. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  354. "rx_pkts - \t%llu\n", qp->rx_pkts);
  355. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  356. "rx_memcpy - \t%llu\n", qp->rx_memcpy);
  357. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  358. "rx_async - \t%llu\n", qp->rx_async);
  359. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  360. "rx_ring_empty - %llu\n", qp->rx_ring_empty);
  361. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  362. "rx_err_no_buf - %llu\n", qp->rx_err_no_buf);
  363. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  364. "rx_err_oflow - \t%llu\n", qp->rx_err_oflow);
  365. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  366. "rx_err_ver - \t%llu\n", qp->rx_err_ver);
  367. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  368. "rx_buff - \t%p\n", qp->rx_buff);
  369. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  370. "rx_index - \t%u\n", qp->rx_index);
  371. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  372. "rx_max_entry - \t%u\n", qp->rx_max_entry);
  373. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  374. "tx_bytes - \t%llu\n", qp->tx_bytes);
  375. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  376. "tx_pkts - \t%llu\n", qp->tx_pkts);
  377. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  378. "tx_memcpy - \t%llu\n", qp->tx_memcpy);
  379. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  380. "tx_async - \t%llu\n", qp->tx_async);
  381. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  382. "tx_ring_full - \t%llu\n", qp->tx_ring_full);
  383. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  384. "tx_err_no_buf - %llu\n", qp->tx_err_no_buf);
  385. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  386. "tx_mw - \t%p\n", qp->tx_mw);
  387. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  388. "tx_index - \t%u\n", qp->tx_index);
  389. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  390. "tx_max_entry - \t%u\n", qp->tx_max_entry);
  391. out_offset += snprintf(buf + out_offset, out_count - out_offset,
  392. "\nQP Link %s\n", (qp->qp_link == NTB_LINK_UP) ?
  393. "Up" : "Down");
  394. if (out_offset > out_count)
  395. out_offset = out_count;
  396. ret = simple_read_from_buffer(ubuf, count, offp, buf, out_offset);
  397. kfree(buf);
  398. return ret;
  399. }
  400. static const struct file_operations ntb_qp_debugfs_stats = {
  401. .owner = THIS_MODULE,
  402. .open = simple_open,
  403. .read = debugfs_read,
  404. };
  405. static void ntb_list_add(spinlock_t *lock, struct list_head *entry,
  406. struct list_head *list)
  407. {
  408. unsigned long flags;
  409. spin_lock_irqsave(lock, flags);
  410. list_add_tail(entry, list);
  411. spin_unlock_irqrestore(lock, flags);
  412. }
  413. static struct ntb_queue_entry *ntb_list_rm(spinlock_t *lock,
  414. struct list_head *list)
  415. {
  416. struct ntb_queue_entry *entry;
  417. unsigned long flags;
  418. spin_lock_irqsave(lock, flags);
  419. if (list_empty(list)) {
  420. entry = NULL;
  421. goto out;
  422. }
  423. entry = list_first_entry(list, struct ntb_queue_entry, entry);
  424. list_del(&entry->entry);
  425. out:
  426. spin_unlock_irqrestore(lock, flags);
  427. return entry;
  428. }
  429. static void ntb_transport_setup_qp_mw(struct ntb_transport *nt,
  430. unsigned int qp_num)
  431. {
  432. struct ntb_transport_qp *qp = &nt->qps[qp_num];
  433. unsigned int rx_size, num_qps_mw;
  434. u8 mw_num, mw_max;
  435. unsigned int i;
  436. mw_max = ntb_max_mw(nt->ndev);
  437. mw_num = QP_TO_MW(nt->ndev, qp_num);
  438. WARN_ON(nt->mw[mw_num].virt_addr == NULL);
  439. if (nt->max_qps % mw_max && mw_num < nt->max_qps % mw_max)
  440. num_qps_mw = nt->max_qps / mw_max + 1;
  441. else
  442. num_qps_mw = nt->max_qps / mw_max;
  443. rx_size = (unsigned int) nt->mw[mw_num].size / num_qps_mw;
  444. qp->rx_buff = nt->mw[mw_num].virt_addr + qp_num / mw_max * rx_size;
  445. rx_size -= sizeof(struct ntb_rx_info);
  446. qp->remote_rx_info = qp->rx_buff + rx_size;
  447. /* Due to housekeeping, there must be atleast 2 buffs */
  448. qp->rx_max_frame = min(transport_mtu, rx_size / 2);
  449. qp->rx_max_entry = rx_size / qp->rx_max_frame;
  450. qp->rx_index = 0;
  451. qp->remote_rx_info->entry = qp->rx_max_entry - 1;
  452. /* setup the hdr offsets with 0's */
  453. for (i = 0; i < qp->rx_max_entry; i++) {
  454. void *offset = qp->rx_buff + qp->rx_max_frame * (i + 1) -
  455. sizeof(struct ntb_payload_header);
  456. memset(offset, 0, sizeof(struct ntb_payload_header));
  457. }
  458. qp->rx_pkts = 0;
  459. qp->tx_pkts = 0;
  460. qp->tx_index = 0;
  461. }
  462. static void ntb_free_mw(struct ntb_transport *nt, int num_mw)
  463. {
  464. struct ntb_transport_mw *mw = &nt->mw[num_mw];
  465. struct pci_dev *pdev = ntb_query_pdev(nt->ndev);
  466. if (!mw->virt_addr)
  467. return;
  468. dma_free_coherent(&pdev->dev, mw->size, mw->virt_addr, mw->dma_addr);
  469. mw->virt_addr = NULL;
  470. }
  471. static int ntb_set_mw(struct ntb_transport *nt, int num_mw, unsigned int size)
  472. {
  473. struct ntb_transport_mw *mw = &nt->mw[num_mw];
  474. struct pci_dev *pdev = ntb_query_pdev(nt->ndev);
  475. /* No need to re-setup */
  476. if (mw->size == ALIGN(size, 4096))
  477. return 0;
  478. if (mw->size != 0)
  479. ntb_free_mw(nt, num_mw);
  480. /* Alloc memory for receiving data. Must be 4k aligned */
  481. mw->size = ALIGN(size, 4096);
  482. mw->virt_addr = dma_alloc_coherent(&pdev->dev, mw->size, &mw->dma_addr,
  483. GFP_KERNEL);
  484. if (!mw->virt_addr) {
  485. mw->size = 0;
  486. dev_err(&pdev->dev, "Unable to allocate MW buffer of size %d\n",
  487. (int) mw->size);
  488. return -ENOMEM;
  489. }
  490. /* Notify HW the memory location of the receive buffer */
  491. ntb_set_mw_addr(nt->ndev, num_mw, mw->dma_addr);
  492. return 0;
  493. }
  494. static void ntb_qp_link_cleanup(struct ntb_transport_qp *qp)
  495. {
  496. struct ntb_transport *nt = qp->transport;
  497. struct pci_dev *pdev = ntb_query_pdev(nt->ndev);
  498. if (qp->qp_link == NTB_LINK_DOWN) {
  499. cancel_delayed_work_sync(&qp->link_work);
  500. return;
  501. }
  502. if (qp->event_handler)
  503. qp->event_handler(qp->cb_data, NTB_LINK_DOWN);
  504. dev_info(&pdev->dev, "qp %d: Link Down\n", qp->qp_num);
  505. qp->qp_link = NTB_LINK_DOWN;
  506. }
  507. static void ntb_qp_link_cleanup_work(struct work_struct *work)
  508. {
  509. struct ntb_transport_qp *qp = container_of(work,
  510. struct ntb_transport_qp,
  511. link_cleanup);
  512. struct ntb_transport *nt = qp->transport;
  513. ntb_qp_link_cleanup(qp);
  514. if (nt->transport_link == NTB_LINK_UP)
  515. schedule_delayed_work(&qp->link_work,
  516. msecs_to_jiffies(NTB_LINK_DOWN_TIMEOUT));
  517. }
  518. static void ntb_qp_link_down(struct ntb_transport_qp *qp)
  519. {
  520. schedule_work(&qp->link_cleanup);
  521. }
  522. static void ntb_transport_link_cleanup(struct ntb_transport *nt)
  523. {
  524. int i;
  525. /* Pass along the info to any clients */
  526. for (i = 0; i < nt->max_qps; i++)
  527. if (!test_bit(i, &nt->qp_bitmap))
  528. ntb_qp_link_cleanup(&nt->qps[i]);
  529. if (nt->transport_link == NTB_LINK_DOWN)
  530. cancel_delayed_work_sync(&nt->link_work);
  531. else
  532. nt->transport_link = NTB_LINK_DOWN;
  533. /* The scratchpad registers keep the values if the remote side
  534. * goes down, blast them now to give them a sane value the next
  535. * time they are accessed
  536. */
  537. for (i = 0; i < MAX_SPAD; i++)
  538. ntb_write_local_spad(nt->ndev, i, 0);
  539. }
  540. static void ntb_transport_link_cleanup_work(struct work_struct *work)
  541. {
  542. struct ntb_transport *nt = container_of(work, struct ntb_transport,
  543. link_cleanup);
  544. ntb_transport_link_cleanup(nt);
  545. }
  546. static void ntb_transport_event_callback(void *data, enum ntb_hw_event event)
  547. {
  548. struct ntb_transport *nt = data;
  549. switch (event) {
  550. case NTB_EVENT_HW_LINK_UP:
  551. schedule_delayed_work(&nt->link_work, 0);
  552. break;
  553. case NTB_EVENT_HW_LINK_DOWN:
  554. schedule_work(&nt->link_cleanup);
  555. break;
  556. default:
  557. BUG();
  558. }
  559. }
  560. static void ntb_transport_link_work(struct work_struct *work)
  561. {
  562. struct ntb_transport *nt = container_of(work, struct ntb_transport,
  563. link_work.work);
  564. struct ntb_device *ndev = nt->ndev;
  565. struct pci_dev *pdev = ntb_query_pdev(ndev);
  566. u32 val;
  567. int rc, i;
  568. /* send the local info, in the opposite order of the way we read it */
  569. for (i = 0; i < ntb_max_mw(ndev); i++) {
  570. rc = ntb_write_remote_spad(ndev, MW0_SZ_HIGH + (i * 2),
  571. ntb_get_mw_size(ndev, i) >> 32);
  572. if (rc) {
  573. dev_err(&pdev->dev, "Error writing %u to remote spad %d\n",
  574. (u32)(ntb_get_mw_size(ndev, i) >> 32),
  575. MW0_SZ_HIGH + (i * 2));
  576. goto out;
  577. }
  578. rc = ntb_write_remote_spad(ndev, MW0_SZ_LOW + (i * 2),
  579. (u32) ntb_get_mw_size(ndev, i));
  580. if (rc) {
  581. dev_err(&pdev->dev, "Error writing %u to remote spad %d\n",
  582. (u32) ntb_get_mw_size(ndev, i),
  583. MW0_SZ_LOW + (i * 2));
  584. goto out;
  585. }
  586. }
  587. rc = ntb_write_remote_spad(ndev, NUM_MWS, ntb_max_mw(ndev));
  588. if (rc) {
  589. dev_err(&pdev->dev, "Error writing %x to remote spad %d\n",
  590. ntb_max_mw(ndev), NUM_MWS);
  591. goto out;
  592. }
  593. rc = ntb_write_remote_spad(ndev, NUM_QPS, nt->max_qps);
  594. if (rc) {
  595. dev_err(&pdev->dev, "Error writing %x to remote spad %d\n",
  596. nt->max_qps, NUM_QPS);
  597. goto out;
  598. }
  599. rc = ntb_write_remote_spad(ndev, VERSION, NTB_TRANSPORT_VERSION);
  600. if (rc) {
  601. dev_err(&pdev->dev, "Error writing %x to remote spad %d\n",
  602. NTB_TRANSPORT_VERSION, VERSION);
  603. goto out;
  604. }
  605. /* Query the remote side for its info */
  606. rc = ntb_read_remote_spad(ndev, VERSION, &val);
  607. if (rc) {
  608. dev_err(&pdev->dev, "Error reading remote spad %d\n", VERSION);
  609. goto out;
  610. }
  611. if (val != NTB_TRANSPORT_VERSION)
  612. goto out;
  613. dev_dbg(&pdev->dev, "Remote version = %d\n", val);
  614. rc = ntb_read_remote_spad(ndev, NUM_QPS, &val);
  615. if (rc) {
  616. dev_err(&pdev->dev, "Error reading remote spad %d\n", NUM_QPS);
  617. goto out;
  618. }
  619. if (val != nt->max_qps)
  620. goto out;
  621. dev_dbg(&pdev->dev, "Remote max number of qps = %d\n", val);
  622. rc = ntb_read_remote_spad(ndev, NUM_MWS, &val);
  623. if (rc) {
  624. dev_err(&pdev->dev, "Error reading remote spad %d\n", NUM_MWS);
  625. goto out;
  626. }
  627. if (val != ntb_max_mw(ndev))
  628. goto out;
  629. dev_dbg(&pdev->dev, "Remote number of mws = %d\n", val);
  630. for (i = 0; i < ntb_max_mw(ndev); i++) {
  631. u64 val64;
  632. rc = ntb_read_remote_spad(ndev, MW0_SZ_HIGH + (i * 2), &val);
  633. if (rc) {
  634. dev_err(&pdev->dev, "Error reading remote spad %d\n",
  635. MW0_SZ_HIGH + (i * 2));
  636. goto out1;
  637. }
  638. val64 = (u64) val << 32;
  639. rc = ntb_read_remote_spad(ndev, MW0_SZ_LOW + (i * 2), &val);
  640. if (rc) {
  641. dev_err(&pdev->dev, "Error reading remote spad %d\n",
  642. MW0_SZ_LOW + (i * 2));
  643. goto out1;
  644. }
  645. val64 |= val;
  646. dev_dbg(&pdev->dev, "Remote MW%d size = %llu\n", i, val64);
  647. rc = ntb_set_mw(nt, i, val64);
  648. if (rc)
  649. goto out1;
  650. }
  651. nt->transport_link = NTB_LINK_UP;
  652. for (i = 0; i < nt->max_qps; i++) {
  653. struct ntb_transport_qp *qp = &nt->qps[i];
  654. ntb_transport_setup_qp_mw(nt, i);
  655. if (qp->client_ready == NTB_LINK_UP)
  656. schedule_delayed_work(&qp->link_work, 0);
  657. }
  658. return;
  659. out1:
  660. for (i = 0; i < ntb_max_mw(ndev); i++)
  661. ntb_free_mw(nt, i);
  662. out:
  663. if (ntb_hw_link_status(ndev))
  664. schedule_delayed_work(&nt->link_work,
  665. msecs_to_jiffies(NTB_LINK_DOWN_TIMEOUT));
  666. }
  667. static void ntb_qp_link_work(struct work_struct *work)
  668. {
  669. struct ntb_transport_qp *qp = container_of(work,
  670. struct ntb_transport_qp,
  671. link_work.work);
  672. struct pci_dev *pdev = ntb_query_pdev(qp->ndev);
  673. struct ntb_transport *nt = qp->transport;
  674. int rc, val;
  675. WARN_ON(nt->transport_link != NTB_LINK_UP);
  676. rc = ntb_read_local_spad(nt->ndev, QP_LINKS, &val);
  677. if (rc) {
  678. dev_err(&pdev->dev, "Error reading spad %d\n", QP_LINKS);
  679. return;
  680. }
  681. rc = ntb_write_remote_spad(nt->ndev, QP_LINKS, val | 1 << qp->qp_num);
  682. if (rc)
  683. dev_err(&pdev->dev, "Error writing %x to remote spad %d\n",
  684. val | 1 << qp->qp_num, QP_LINKS);
  685. /* query remote spad for qp ready bits */
  686. rc = ntb_read_remote_spad(nt->ndev, QP_LINKS, &val);
  687. if (rc)
  688. dev_err(&pdev->dev, "Error reading remote spad %d\n", QP_LINKS);
  689. dev_dbg(&pdev->dev, "Remote QP link status = %x\n", val);
  690. /* See if the remote side is up */
  691. if (1 << qp->qp_num & val) {
  692. qp->qp_link = NTB_LINK_UP;
  693. dev_info(&pdev->dev, "qp %d: Link Up\n", qp->qp_num);
  694. if (qp->event_handler)
  695. qp->event_handler(qp->cb_data, NTB_LINK_UP);
  696. } else if (nt->transport_link == NTB_LINK_UP)
  697. schedule_delayed_work(&qp->link_work,
  698. msecs_to_jiffies(NTB_LINK_DOWN_TIMEOUT));
  699. }
  700. static int ntb_transport_init_queue(struct ntb_transport *nt,
  701. unsigned int qp_num)
  702. {
  703. struct ntb_transport_qp *qp;
  704. unsigned int num_qps_mw, tx_size;
  705. u8 mw_num, mw_max;
  706. u64 qp_offset;
  707. mw_max = ntb_max_mw(nt->ndev);
  708. mw_num = QP_TO_MW(nt->ndev, qp_num);
  709. qp = &nt->qps[qp_num];
  710. qp->qp_num = qp_num;
  711. qp->transport = nt;
  712. qp->ndev = nt->ndev;
  713. qp->qp_link = NTB_LINK_DOWN;
  714. qp->client_ready = NTB_LINK_DOWN;
  715. qp->event_handler = NULL;
  716. if (nt->max_qps % mw_max && mw_num < nt->max_qps % mw_max)
  717. num_qps_mw = nt->max_qps / mw_max + 1;
  718. else
  719. num_qps_mw = nt->max_qps / mw_max;
  720. tx_size = (unsigned int) ntb_get_mw_size(qp->ndev, mw_num) / num_qps_mw;
  721. qp_offset = qp_num / mw_max * tx_size;
  722. qp->tx_mw = ntb_get_mw_vbase(nt->ndev, mw_num) + qp_offset;
  723. if (!qp->tx_mw)
  724. return -EINVAL;
  725. qp->tx_mw_phys = ntb_get_mw_base(qp->ndev, mw_num) + qp_offset;
  726. if (!qp->tx_mw_phys)
  727. return -EINVAL;
  728. tx_size -= sizeof(struct ntb_rx_info);
  729. qp->rx_info = qp->tx_mw + tx_size;
  730. /* Due to housekeeping, there must be atleast 2 buffs */
  731. qp->tx_max_frame = min(transport_mtu, tx_size / 2);
  732. qp->tx_max_entry = tx_size / qp->tx_max_frame;
  733. if (ntb_query_debugfs(nt->ndev)) {
  734. char debugfs_name[4];
  735. snprintf(debugfs_name, 4, "qp%d", qp_num);
  736. qp->debugfs_dir = debugfs_create_dir(debugfs_name,
  737. ntb_query_debugfs(nt->ndev));
  738. qp->debugfs_stats = debugfs_create_file("stats", S_IRUSR,
  739. qp->debugfs_dir, qp,
  740. &ntb_qp_debugfs_stats);
  741. }
  742. INIT_DELAYED_WORK(&qp->link_work, ntb_qp_link_work);
  743. INIT_WORK(&qp->link_cleanup, ntb_qp_link_cleanup_work);
  744. spin_lock_init(&qp->ntb_rx_pend_q_lock);
  745. spin_lock_init(&qp->ntb_rx_free_q_lock);
  746. spin_lock_init(&qp->ntb_tx_free_q_lock);
  747. INIT_LIST_HEAD(&qp->rx_pend_q);
  748. INIT_LIST_HEAD(&qp->rx_free_q);
  749. INIT_LIST_HEAD(&qp->tx_free_q);
  750. return 0;
  751. }
  752. int ntb_transport_init(struct pci_dev *pdev)
  753. {
  754. struct ntb_transport *nt;
  755. int rc, i;
  756. nt = kzalloc(sizeof(struct ntb_transport), GFP_KERNEL);
  757. if (!nt)
  758. return -ENOMEM;
  759. nt->ndev = ntb_register_transport(pdev, nt);
  760. if (!nt->ndev) {
  761. rc = -EIO;
  762. goto err;
  763. }
  764. nt->mw = kcalloc(ntb_max_mw(nt->ndev), sizeof(struct ntb_transport_mw),
  765. GFP_KERNEL);
  766. if (!nt->mw) {
  767. rc = -ENOMEM;
  768. goto err1;
  769. }
  770. if (max_num_clients)
  771. nt->max_qps = min(ntb_max_cbs(nt->ndev), max_num_clients);
  772. else
  773. nt->max_qps = min(ntb_max_cbs(nt->ndev), ntb_max_mw(nt->ndev));
  774. nt->qps = kcalloc(nt->max_qps, sizeof(struct ntb_transport_qp),
  775. GFP_KERNEL);
  776. if (!nt->qps) {
  777. rc = -ENOMEM;
  778. goto err2;
  779. }
  780. nt->qp_bitmap = ((u64) 1 << nt->max_qps) - 1;
  781. for (i = 0; i < nt->max_qps; i++) {
  782. rc = ntb_transport_init_queue(nt, i);
  783. if (rc)
  784. goto err3;
  785. }
  786. INIT_DELAYED_WORK(&nt->link_work, ntb_transport_link_work);
  787. INIT_WORK(&nt->link_cleanup, ntb_transport_link_cleanup_work);
  788. rc = ntb_register_event_callback(nt->ndev,
  789. ntb_transport_event_callback);
  790. if (rc)
  791. goto err3;
  792. INIT_LIST_HEAD(&nt->client_devs);
  793. rc = ntb_bus_init(nt);
  794. if (rc)
  795. goto err4;
  796. if (ntb_hw_link_status(nt->ndev))
  797. schedule_delayed_work(&nt->link_work, 0);
  798. return 0;
  799. err4:
  800. ntb_unregister_event_callback(nt->ndev);
  801. err3:
  802. kfree(nt->qps);
  803. err2:
  804. kfree(nt->mw);
  805. err1:
  806. ntb_unregister_transport(nt->ndev);
  807. err:
  808. kfree(nt);
  809. return rc;
  810. }
  811. void ntb_transport_free(void *transport)
  812. {
  813. struct ntb_transport *nt = transport;
  814. struct ntb_device *ndev = nt->ndev;
  815. int i;
  816. ntb_transport_link_cleanup(nt);
  817. /* verify that all the qp's are freed */
  818. for (i = 0; i < nt->max_qps; i++) {
  819. if (!test_bit(i, &nt->qp_bitmap))
  820. ntb_transport_free_queue(&nt->qps[i]);
  821. debugfs_remove_recursive(nt->qps[i].debugfs_dir);
  822. }
  823. ntb_bus_remove(nt);
  824. cancel_delayed_work_sync(&nt->link_work);
  825. ntb_unregister_event_callback(ndev);
  826. for (i = 0; i < ntb_max_mw(ndev); i++)
  827. ntb_free_mw(nt, i);
  828. kfree(nt->qps);
  829. kfree(nt->mw);
  830. ntb_unregister_transport(ndev);
  831. kfree(nt);
  832. }
  833. static void ntb_rx_copy_callback(void *data)
  834. {
  835. struct ntb_queue_entry *entry = data;
  836. struct ntb_transport_qp *qp = entry->qp;
  837. void *cb_data = entry->cb_data;
  838. unsigned int len = entry->len;
  839. struct ntb_payload_header *hdr = entry->rx_hdr;
  840. /* Ensure that the data is fully copied out before clearing the flag */
  841. wmb();
  842. hdr->flags = 0;
  843. iowrite32(entry->index, &qp->rx_info->entry);
  844. ntb_list_add(&qp->ntb_rx_free_q_lock, &entry->entry, &qp->rx_free_q);
  845. if (qp->rx_handler && qp->client_ready == NTB_LINK_UP)
  846. qp->rx_handler(qp, qp->cb_data, cb_data, len);
  847. }
  848. static void ntb_memcpy_rx(struct ntb_queue_entry *entry, void *offset)
  849. {
  850. void *buf = entry->buf;
  851. size_t len = entry->len;
  852. memcpy(buf, offset, len);
  853. ntb_rx_copy_callback(entry);
  854. }
  855. static void ntb_async_rx(struct ntb_queue_entry *entry, void *offset,
  856. size_t len)
  857. {
  858. struct dma_async_tx_descriptor *txd;
  859. struct ntb_transport_qp *qp = entry->qp;
  860. struct dma_chan *chan = qp->dma_chan;
  861. struct dma_device *device;
  862. size_t pay_off, buff_off;
  863. dma_addr_t src, dest;
  864. dma_cookie_t cookie;
  865. void *buf = entry->buf;
  866. unsigned long flags;
  867. entry->len = len;
  868. if (!chan)
  869. goto err;
  870. if (len < copy_bytes)
  871. goto err1;
  872. device = chan->device;
  873. pay_off = (size_t) offset & ~PAGE_MASK;
  874. buff_off = (size_t) buf & ~PAGE_MASK;
  875. if (!is_dma_copy_aligned(device, pay_off, buff_off, len))
  876. goto err1;
  877. dest = dma_map_single(device->dev, buf, len, DMA_FROM_DEVICE);
  878. if (dma_mapping_error(device->dev, dest))
  879. goto err1;
  880. src = dma_map_single(device->dev, offset, len, DMA_TO_DEVICE);
  881. if (dma_mapping_error(device->dev, src))
  882. goto err2;
  883. flags = DMA_COMPL_DEST_UNMAP_SINGLE | DMA_COMPL_SRC_UNMAP_SINGLE |
  884. DMA_PREP_INTERRUPT;
  885. txd = device->device_prep_dma_memcpy(chan, dest, src, len, flags);
  886. if (!txd)
  887. goto err3;
  888. txd->callback = ntb_rx_copy_callback;
  889. txd->callback_param = entry;
  890. cookie = dmaengine_submit(txd);
  891. if (dma_submit_error(cookie))
  892. goto err3;
  893. qp->last_cookie = cookie;
  894. qp->rx_async++;
  895. return;
  896. err3:
  897. dma_unmap_single(device->dev, src, len, DMA_TO_DEVICE);
  898. err2:
  899. dma_unmap_single(device->dev, dest, len, DMA_FROM_DEVICE);
  900. err1:
  901. /* If the callbacks come out of order, the writing of the index to the
  902. * last completed will be out of order. This may result in the
  903. * receive stalling forever.
  904. */
  905. dma_sync_wait(chan, qp->last_cookie);
  906. err:
  907. ntb_memcpy_rx(entry, offset);
  908. qp->rx_memcpy++;
  909. }
  910. static int ntb_process_rxc(struct ntb_transport_qp *qp)
  911. {
  912. struct ntb_payload_header *hdr;
  913. struct ntb_queue_entry *entry;
  914. void *offset;
  915. offset = qp->rx_buff + qp->rx_max_frame * qp->rx_index;
  916. hdr = offset + qp->rx_max_frame - sizeof(struct ntb_payload_header);
  917. entry = ntb_list_rm(&qp->ntb_rx_pend_q_lock, &qp->rx_pend_q);
  918. if (!entry) {
  919. dev_dbg(&ntb_query_pdev(qp->ndev)->dev,
  920. "no buffer - HDR ver %u, len %d, flags %x\n",
  921. hdr->ver, hdr->len, hdr->flags);
  922. qp->rx_err_no_buf++;
  923. return -ENOMEM;
  924. }
  925. if (!(hdr->flags & DESC_DONE_FLAG)) {
  926. ntb_list_add(&qp->ntb_rx_pend_q_lock, &entry->entry,
  927. &qp->rx_pend_q);
  928. qp->rx_ring_empty++;
  929. return -EAGAIN;
  930. }
  931. if (hdr->ver != (u32) qp->rx_pkts) {
  932. dev_dbg(&ntb_query_pdev(qp->ndev)->dev,
  933. "qp %d: version mismatch, expected %llu - got %u\n",
  934. qp->qp_num, qp->rx_pkts, hdr->ver);
  935. ntb_list_add(&qp->ntb_rx_pend_q_lock, &entry->entry,
  936. &qp->rx_pend_q);
  937. qp->rx_err_ver++;
  938. return -EIO;
  939. }
  940. if (hdr->flags & LINK_DOWN_FLAG) {
  941. ntb_qp_link_down(qp);
  942. goto err;
  943. }
  944. dev_dbg(&ntb_query_pdev(qp->ndev)->dev,
  945. "rx offset %u, ver %u - %d payload received, buf size %d\n",
  946. qp->rx_index, hdr->ver, hdr->len, entry->len);
  947. qp->rx_bytes += hdr->len;
  948. qp->rx_pkts++;
  949. if (hdr->len > entry->len) {
  950. qp->rx_err_oflow++;
  951. dev_dbg(&ntb_query_pdev(qp->ndev)->dev,
  952. "RX overflow! Wanted %d got %d\n",
  953. hdr->len, entry->len);
  954. goto err;
  955. }
  956. entry->index = qp->rx_index;
  957. entry->rx_hdr = hdr;
  958. ntb_async_rx(entry, offset, hdr->len);
  959. out:
  960. qp->rx_index++;
  961. qp->rx_index %= qp->rx_max_entry;
  962. return 0;
  963. err:
  964. ntb_list_add(&qp->ntb_rx_pend_q_lock, &entry->entry,
  965. &qp->rx_pend_q);
  966. /* Ensure that the data is fully copied out before clearing the flag */
  967. wmb();
  968. hdr->flags = 0;
  969. iowrite32(qp->rx_index, &qp->rx_info->entry);
  970. goto out;
  971. }
  972. static void ntb_transport_rx(unsigned long data)
  973. {
  974. struct ntb_transport_qp *qp = (struct ntb_transport_qp *)data;
  975. int rc, i;
  976. /* Limit the number of packets processed in a single interrupt to
  977. * provide fairness to others
  978. */
  979. for (i = 0; i < qp->rx_max_entry; i++) {
  980. rc = ntb_process_rxc(qp);
  981. if (rc)
  982. break;
  983. }
  984. if (qp->dma_chan)
  985. dma_async_issue_pending(qp->dma_chan);
  986. }
  987. static void ntb_transport_rxc_db(void *data, int db_num)
  988. {
  989. struct ntb_transport_qp *qp = data;
  990. dev_dbg(&ntb_query_pdev(qp->ndev)->dev, "%s: doorbell %d received\n",
  991. __func__, db_num);
  992. tasklet_schedule(&qp->rx_work);
  993. }
  994. static void ntb_tx_copy_callback(void *data)
  995. {
  996. struct ntb_queue_entry *entry = data;
  997. struct ntb_transport_qp *qp = entry->qp;
  998. struct ntb_payload_header __iomem *hdr = entry->tx_hdr;
  999. /* Ensure that the data is fully copied out before setting the flags */
  1000. wmb();
  1001. iowrite32(entry->flags | DESC_DONE_FLAG, &hdr->flags);
  1002. ntb_ring_doorbell(qp->ndev, qp->qp_num);
  1003. /* The entry length can only be zero if the packet is intended to be a
  1004. * "link down" or similar. Since no payload is being sent in these
  1005. * cases, there is nothing to add to the completion queue.
  1006. */
  1007. if (entry->len > 0) {
  1008. qp->tx_bytes += entry->len;
  1009. if (qp->tx_handler)
  1010. qp->tx_handler(qp, qp->cb_data, entry->cb_data,
  1011. entry->len);
  1012. }
  1013. ntb_list_add(&qp->ntb_tx_free_q_lock, &entry->entry, &qp->tx_free_q);
  1014. }
  1015. static void ntb_memcpy_tx(struct ntb_queue_entry *entry, void __iomem *offset)
  1016. {
  1017. memcpy_toio(offset, entry->buf, entry->len);
  1018. ntb_tx_copy_callback(entry);
  1019. }
  1020. static void ntb_async_tx(struct ntb_transport_qp *qp,
  1021. struct ntb_queue_entry *entry)
  1022. {
  1023. struct ntb_payload_header __iomem *hdr;
  1024. struct dma_async_tx_descriptor *txd;
  1025. struct dma_chan *chan = qp->dma_chan;
  1026. struct dma_device *device;
  1027. size_t dest_off, buff_off;
  1028. dma_addr_t src, dest;
  1029. dma_cookie_t cookie;
  1030. void __iomem *offset;
  1031. size_t len = entry->len;
  1032. void *buf = entry->buf;
  1033. unsigned long flags;
  1034. offset = qp->tx_mw + qp->tx_max_frame * qp->tx_index;
  1035. hdr = offset + qp->tx_max_frame - sizeof(struct ntb_payload_header);
  1036. entry->tx_hdr = hdr;
  1037. iowrite32(entry->len, &hdr->len);
  1038. iowrite32((u32) qp->tx_pkts, &hdr->ver);
  1039. if (!chan)
  1040. goto err;
  1041. if (len < copy_bytes)
  1042. goto err;
  1043. device = chan->device;
  1044. dest = qp->tx_mw_phys + qp->tx_max_frame * qp->tx_index;
  1045. buff_off = (size_t) buf & ~PAGE_MASK;
  1046. dest_off = (size_t) dest & ~PAGE_MASK;
  1047. if (!is_dma_copy_aligned(device, buff_off, dest_off, len))
  1048. goto err;
  1049. src = dma_map_single(device->dev, buf, len, DMA_TO_DEVICE);
  1050. if (dma_mapping_error(device->dev, src))
  1051. goto err;
  1052. flags = DMA_COMPL_SRC_UNMAP_SINGLE | DMA_PREP_INTERRUPT;
  1053. txd = device->device_prep_dma_memcpy(chan, dest, src, len, flags);
  1054. if (!txd)
  1055. goto err1;
  1056. txd->callback = ntb_tx_copy_callback;
  1057. txd->callback_param = entry;
  1058. cookie = dmaengine_submit(txd);
  1059. if (dma_submit_error(cookie))
  1060. goto err1;
  1061. dma_async_issue_pending(chan);
  1062. qp->tx_async++;
  1063. return;
  1064. err1:
  1065. dma_unmap_single(device->dev, src, len, DMA_TO_DEVICE);
  1066. err:
  1067. ntb_memcpy_tx(entry, offset);
  1068. qp->tx_memcpy++;
  1069. }
  1070. static int ntb_process_tx(struct ntb_transport_qp *qp,
  1071. struct ntb_queue_entry *entry)
  1072. {
  1073. dev_dbg(&ntb_query_pdev(qp->ndev)->dev, "%lld - tx %u, entry len %d flags %x buff %p\n",
  1074. qp->tx_pkts, qp->tx_index, entry->len, entry->flags,
  1075. entry->buf);
  1076. if (qp->tx_index == qp->remote_rx_info->entry) {
  1077. qp->tx_ring_full++;
  1078. return -EAGAIN;
  1079. }
  1080. if (entry->len > qp->tx_max_frame - sizeof(struct ntb_payload_header)) {
  1081. if (qp->tx_handler)
  1082. qp->tx_handler(qp->cb_data, qp, NULL, -EIO);
  1083. ntb_list_add(&qp->ntb_tx_free_q_lock, &entry->entry,
  1084. &qp->tx_free_q);
  1085. return 0;
  1086. }
  1087. ntb_async_tx(qp, entry);
  1088. qp->tx_index++;
  1089. qp->tx_index %= qp->tx_max_entry;
  1090. qp->tx_pkts++;
  1091. return 0;
  1092. }
  1093. static void ntb_send_link_down(struct ntb_transport_qp *qp)
  1094. {
  1095. struct pci_dev *pdev = ntb_query_pdev(qp->ndev);
  1096. struct ntb_queue_entry *entry;
  1097. int i, rc;
  1098. if (qp->qp_link == NTB_LINK_DOWN)
  1099. return;
  1100. qp->qp_link = NTB_LINK_DOWN;
  1101. dev_info(&pdev->dev, "qp %d: Link Down\n", qp->qp_num);
  1102. for (i = 0; i < NTB_LINK_DOWN_TIMEOUT; i++) {
  1103. entry = ntb_list_rm(&qp->ntb_tx_free_q_lock, &qp->tx_free_q);
  1104. if (entry)
  1105. break;
  1106. msleep(100);
  1107. }
  1108. if (!entry)
  1109. return;
  1110. entry->cb_data = NULL;
  1111. entry->buf = NULL;
  1112. entry->len = 0;
  1113. entry->flags = LINK_DOWN_FLAG;
  1114. rc = ntb_process_tx(qp, entry);
  1115. if (rc)
  1116. dev_err(&pdev->dev, "ntb: QP%d unable to send linkdown msg\n",
  1117. qp->qp_num);
  1118. }
  1119. /**
  1120. * ntb_transport_create_queue - Create a new NTB transport layer queue
  1121. * @rx_handler: receive callback function
  1122. * @tx_handler: transmit callback function
  1123. * @event_handler: event callback function
  1124. *
  1125. * Create a new NTB transport layer queue and provide the queue with a callback
  1126. * routine for both transmit and receive. The receive callback routine will be
  1127. * used to pass up data when the transport has received it on the queue. The
  1128. * transmit callback routine will be called when the transport has completed the
  1129. * transmission of the data on the queue and the data is ready to be freed.
  1130. *
  1131. * RETURNS: pointer to newly created ntb_queue, NULL on error.
  1132. */
  1133. struct ntb_transport_qp *
  1134. ntb_transport_create_queue(void *data, struct pci_dev *pdev,
  1135. const struct ntb_queue_handlers *handlers)
  1136. {
  1137. struct ntb_queue_entry *entry;
  1138. struct ntb_transport_qp *qp;
  1139. struct ntb_transport *nt;
  1140. unsigned int free_queue;
  1141. int rc, i;
  1142. nt = ntb_find_transport(pdev);
  1143. if (!nt)
  1144. goto err;
  1145. free_queue = ffs(nt->qp_bitmap);
  1146. if (!free_queue)
  1147. goto err;
  1148. /* decrement free_queue to make it zero based */
  1149. free_queue--;
  1150. clear_bit(free_queue, &nt->qp_bitmap);
  1151. qp = &nt->qps[free_queue];
  1152. qp->cb_data = data;
  1153. qp->rx_handler = handlers->rx_handler;
  1154. qp->tx_handler = handlers->tx_handler;
  1155. qp->event_handler = handlers->event_handler;
  1156. dmaengine_get();
  1157. qp->dma_chan = dma_find_channel(DMA_MEMCPY);
  1158. if (!qp->dma_chan) {
  1159. dmaengine_put();
  1160. dev_info(&pdev->dev, "Unable to allocate DMA channel, using CPU instead\n");
  1161. }
  1162. for (i = 0; i < NTB_QP_DEF_NUM_ENTRIES; i++) {
  1163. entry = kzalloc(sizeof(struct ntb_queue_entry), GFP_ATOMIC);
  1164. if (!entry)
  1165. goto err1;
  1166. entry->qp = qp;
  1167. ntb_list_add(&qp->ntb_rx_free_q_lock, &entry->entry,
  1168. &qp->rx_free_q);
  1169. }
  1170. for (i = 0; i < NTB_QP_DEF_NUM_ENTRIES; i++) {
  1171. entry = kzalloc(sizeof(struct ntb_queue_entry), GFP_ATOMIC);
  1172. if (!entry)
  1173. goto err2;
  1174. entry->qp = qp;
  1175. ntb_list_add(&qp->ntb_tx_free_q_lock, &entry->entry,
  1176. &qp->tx_free_q);
  1177. }
  1178. tasklet_init(&qp->rx_work, ntb_transport_rx, (unsigned long) qp);
  1179. rc = ntb_register_db_callback(qp->ndev, free_queue, qp,
  1180. ntb_transport_rxc_db);
  1181. if (rc)
  1182. goto err3;
  1183. dev_info(&pdev->dev, "NTB Transport QP %d created\n", qp->qp_num);
  1184. return qp;
  1185. err3:
  1186. tasklet_disable(&qp->rx_work);
  1187. err2:
  1188. while ((entry = ntb_list_rm(&qp->ntb_tx_free_q_lock, &qp->tx_free_q)))
  1189. kfree(entry);
  1190. err1:
  1191. while ((entry = ntb_list_rm(&qp->ntb_rx_free_q_lock, &qp->rx_free_q)))
  1192. kfree(entry);
  1193. if (qp->dma_chan)
  1194. dmaengine_put();
  1195. set_bit(free_queue, &nt->qp_bitmap);
  1196. err:
  1197. return NULL;
  1198. }
  1199. EXPORT_SYMBOL_GPL(ntb_transport_create_queue);
  1200. /**
  1201. * ntb_transport_free_queue - Frees NTB transport queue
  1202. * @qp: NTB queue to be freed
  1203. *
  1204. * Frees NTB transport queue
  1205. */
  1206. void ntb_transport_free_queue(struct ntb_transport_qp *qp)
  1207. {
  1208. struct pci_dev *pdev;
  1209. struct ntb_queue_entry *entry;
  1210. if (!qp)
  1211. return;
  1212. pdev = ntb_query_pdev(qp->ndev);
  1213. if (qp->dma_chan) {
  1214. struct dma_chan *chan = qp->dma_chan;
  1215. /* Putting the dma_chan to NULL will force any new traffic to be
  1216. * processed by the CPU instead of the DAM engine
  1217. */
  1218. qp->dma_chan = NULL;
  1219. /* Try to be nice and wait for any queued DMA engine
  1220. * transactions to process before smashing it with a rock
  1221. */
  1222. dma_sync_wait(chan, qp->last_cookie);
  1223. dmaengine_terminate_all(chan);
  1224. dmaengine_put();
  1225. }
  1226. ntb_unregister_db_callback(qp->ndev, qp->qp_num);
  1227. tasklet_disable(&qp->rx_work);
  1228. cancel_delayed_work_sync(&qp->link_work);
  1229. while ((entry = ntb_list_rm(&qp->ntb_rx_free_q_lock, &qp->rx_free_q)))
  1230. kfree(entry);
  1231. while ((entry = ntb_list_rm(&qp->ntb_rx_pend_q_lock, &qp->rx_pend_q))) {
  1232. dev_warn(&pdev->dev, "Freeing item from a non-empty queue\n");
  1233. kfree(entry);
  1234. }
  1235. while ((entry = ntb_list_rm(&qp->ntb_tx_free_q_lock, &qp->tx_free_q)))
  1236. kfree(entry);
  1237. set_bit(qp->qp_num, &qp->transport->qp_bitmap);
  1238. dev_info(&pdev->dev, "NTB Transport QP %d freed\n", qp->qp_num);
  1239. }
  1240. EXPORT_SYMBOL_GPL(ntb_transport_free_queue);
  1241. /**
  1242. * ntb_transport_rx_remove - Dequeues enqueued rx packet
  1243. * @qp: NTB queue to be freed
  1244. * @len: pointer to variable to write enqueued buffers length
  1245. *
  1246. * Dequeues unused buffers from receive queue. Should only be used during
  1247. * shutdown of qp.
  1248. *
  1249. * RETURNS: NULL error value on error, or void* for success.
  1250. */
  1251. void *ntb_transport_rx_remove(struct ntb_transport_qp *qp, unsigned int *len)
  1252. {
  1253. struct ntb_queue_entry *entry;
  1254. void *buf;
  1255. if (!qp || qp->client_ready == NTB_LINK_UP)
  1256. return NULL;
  1257. entry = ntb_list_rm(&qp->ntb_rx_pend_q_lock, &qp->rx_pend_q);
  1258. if (!entry)
  1259. return NULL;
  1260. buf = entry->cb_data;
  1261. *len = entry->len;
  1262. ntb_list_add(&qp->ntb_rx_free_q_lock, &entry->entry, &qp->rx_free_q);
  1263. return buf;
  1264. }
  1265. EXPORT_SYMBOL_GPL(ntb_transport_rx_remove);
  1266. /**
  1267. * ntb_transport_rx_enqueue - Enqueue a new NTB queue entry
  1268. * @qp: NTB transport layer queue the entry is to be enqueued on
  1269. * @cb: per buffer pointer for callback function to use
  1270. * @data: pointer to data buffer that incoming packets will be copied into
  1271. * @len: length of the data buffer
  1272. *
  1273. * Enqueue a new receive buffer onto the transport queue into which a NTB
  1274. * payload can be received into.
  1275. *
  1276. * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
  1277. */
  1278. int ntb_transport_rx_enqueue(struct ntb_transport_qp *qp, void *cb, void *data,
  1279. unsigned int len)
  1280. {
  1281. struct ntb_queue_entry *entry;
  1282. if (!qp)
  1283. return -EINVAL;
  1284. entry = ntb_list_rm(&qp->ntb_rx_free_q_lock, &qp->rx_free_q);
  1285. if (!entry)
  1286. return -ENOMEM;
  1287. entry->cb_data = cb;
  1288. entry->buf = data;
  1289. entry->len = len;
  1290. ntb_list_add(&qp->ntb_rx_pend_q_lock, &entry->entry, &qp->rx_pend_q);
  1291. return 0;
  1292. }
  1293. EXPORT_SYMBOL_GPL(ntb_transport_rx_enqueue);
  1294. /**
  1295. * ntb_transport_tx_enqueue - Enqueue a new NTB queue entry
  1296. * @qp: NTB transport layer queue the entry is to be enqueued on
  1297. * @cb: per buffer pointer for callback function to use
  1298. * @data: pointer to data buffer that will be sent
  1299. * @len: length of the data buffer
  1300. *
  1301. * Enqueue a new transmit buffer onto the transport queue from which a NTB
  1302. * payload will be transmitted. This assumes that a lock is being held to
  1303. * serialize access to the qp.
  1304. *
  1305. * RETURNS: An appropriate -ERRNO error value on error, or zero for success.
  1306. */
  1307. int ntb_transport_tx_enqueue(struct ntb_transport_qp *qp, void *cb, void *data,
  1308. unsigned int len)
  1309. {
  1310. struct ntb_queue_entry *entry;
  1311. int rc;
  1312. if (!qp || qp->qp_link != NTB_LINK_UP || !len)
  1313. return -EINVAL;
  1314. entry = ntb_list_rm(&qp->ntb_tx_free_q_lock, &qp->tx_free_q);
  1315. if (!entry) {
  1316. qp->tx_err_no_buf++;
  1317. return -ENOMEM;
  1318. }
  1319. entry->cb_data = cb;
  1320. entry->buf = data;
  1321. entry->len = len;
  1322. entry->flags = 0;
  1323. rc = ntb_process_tx(qp, entry);
  1324. if (rc)
  1325. ntb_list_add(&qp->ntb_tx_free_q_lock, &entry->entry,
  1326. &qp->tx_free_q);
  1327. return rc;
  1328. }
  1329. EXPORT_SYMBOL_GPL(ntb_transport_tx_enqueue);
  1330. /**
  1331. * ntb_transport_link_up - Notify NTB transport of client readiness to use queue
  1332. * @qp: NTB transport layer queue to be enabled
  1333. *
  1334. * Notify NTB transport layer of client readiness to use queue
  1335. */
  1336. void ntb_transport_link_up(struct ntb_transport_qp *qp)
  1337. {
  1338. if (!qp)
  1339. return;
  1340. qp->client_ready = NTB_LINK_UP;
  1341. if (qp->transport->transport_link == NTB_LINK_UP)
  1342. schedule_delayed_work(&qp->link_work, 0);
  1343. }
  1344. EXPORT_SYMBOL_GPL(ntb_transport_link_up);
  1345. /**
  1346. * ntb_transport_link_down - Notify NTB transport to no longer enqueue data
  1347. * @qp: NTB transport layer queue to be disabled
  1348. *
  1349. * Notify NTB transport layer of client's desire to no longer receive data on
  1350. * transport queue specified. It is the client's responsibility to ensure all
  1351. * entries on queue are purged or otherwise handled appropriately.
  1352. */
  1353. void ntb_transport_link_down(struct ntb_transport_qp *qp)
  1354. {
  1355. struct pci_dev *pdev;
  1356. int rc, val;
  1357. if (!qp)
  1358. return;
  1359. pdev = ntb_query_pdev(qp->ndev);
  1360. qp->client_ready = NTB_LINK_DOWN;
  1361. rc = ntb_read_local_spad(qp->ndev, QP_LINKS, &val);
  1362. if (rc) {
  1363. dev_err(&pdev->dev, "Error reading spad %d\n", QP_LINKS);
  1364. return;
  1365. }
  1366. rc = ntb_write_remote_spad(qp->ndev, QP_LINKS,
  1367. val & ~(1 << qp->qp_num));
  1368. if (rc)
  1369. dev_err(&pdev->dev, "Error writing %x to remote spad %d\n",
  1370. val & ~(1 << qp->qp_num), QP_LINKS);
  1371. if (qp->qp_link == NTB_LINK_UP)
  1372. ntb_send_link_down(qp);
  1373. else
  1374. cancel_delayed_work_sync(&qp->link_work);
  1375. }
  1376. EXPORT_SYMBOL_GPL(ntb_transport_link_down);
  1377. /**
  1378. * ntb_transport_link_query - Query transport link state
  1379. * @qp: NTB transport layer queue to be queried
  1380. *
  1381. * Query connectivity to the remote system of the NTB transport queue
  1382. *
  1383. * RETURNS: true for link up or false for link down
  1384. */
  1385. bool ntb_transport_link_query(struct ntb_transport_qp *qp)
  1386. {
  1387. if (!qp)
  1388. return false;
  1389. return qp->qp_link == NTB_LINK_UP;
  1390. }
  1391. EXPORT_SYMBOL_GPL(ntb_transport_link_query);
  1392. /**
  1393. * ntb_transport_qp_num - Query the qp number
  1394. * @qp: NTB transport layer queue to be queried
  1395. *
  1396. * Query qp number of the NTB transport queue
  1397. *
  1398. * RETURNS: a zero based number specifying the qp number
  1399. */
  1400. unsigned char ntb_transport_qp_num(struct ntb_transport_qp *qp)
  1401. {
  1402. if (!qp)
  1403. return 0;
  1404. return qp->qp_num;
  1405. }
  1406. EXPORT_SYMBOL_GPL(ntb_transport_qp_num);
  1407. /**
  1408. * ntb_transport_max_size - Query the max payload size of a qp
  1409. * @qp: NTB transport layer queue to be queried
  1410. *
  1411. * Query the maximum payload size permissible on the given qp
  1412. *
  1413. * RETURNS: the max payload size of a qp
  1414. */
  1415. unsigned int ntb_transport_max_size(struct ntb_transport_qp *qp)
  1416. {
  1417. unsigned int max;
  1418. if (!qp)
  1419. return 0;
  1420. if (!qp->dma_chan)
  1421. return qp->tx_max_frame - sizeof(struct ntb_payload_header);
  1422. /* If DMA engine usage is possible, try to find the max size for that */
  1423. max = qp->tx_max_frame - sizeof(struct ntb_payload_header);
  1424. max -= max % (1 << qp->dma_chan->device->copy_align);
  1425. return max;
  1426. }
  1427. EXPORT_SYMBOL_GPL(ntb_transport_max_size);