ioat_dma.c 22 KB

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  1. /*
  2. * Copyright(c) 2004 - 2006 Intel Corporation. All rights reserved.
  3. *
  4. * This program is free software; you can redistribute it and/or modify it
  5. * under the terms of the GNU General Public License as published by the Free
  6. * Software Foundation; either version 2 of the License, or (at your option)
  7. * any later version.
  8. *
  9. * This program is distributed in the hope that it will be useful, but WITHOUT
  10. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  11. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  12. * more details.
  13. *
  14. * You should have received a copy of the GNU General Public License along with
  15. * this program; if not, write to the Free Software Foundation, Inc., 59
  16. * Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  17. *
  18. * The full GNU General Public License is included in this distribution in the
  19. * file called COPYING.
  20. */
  21. /*
  22. * This driver supports an Intel I/OAT DMA engine, which does asynchronous
  23. * copy operations.
  24. */
  25. #include <linux/init.h>
  26. #include <linux/module.h>
  27. #include <linux/pci.h>
  28. #include <linux/interrupt.h>
  29. #include <linux/dmaengine.h>
  30. #include <linux/delay.h>
  31. #include <linux/dma-mapping.h>
  32. #include "ioatdma.h"
  33. #include "ioatdma_registers.h"
  34. #include "ioatdma_hw.h"
  35. #define to_ioat_chan(chan) container_of(chan, struct ioat_dma_chan, common)
  36. #define to_ioat_device(dev) container_of(dev, struct ioat_device, common)
  37. #define to_ioat_desc(lh) container_of(lh, struct ioat_desc_sw, node)
  38. #define tx_to_ioat_desc(tx) container_of(tx, struct ioat_desc_sw, async_tx)
  39. /* internal functions */
  40. static int __devinit ioat_probe(struct pci_dev *pdev, const struct pci_device_id *ent);
  41. static void ioat_shutdown(struct pci_dev *pdev);
  42. static void __devexit ioat_remove(struct pci_dev *pdev);
  43. static int enumerate_dma_channels(struct ioat_device *device)
  44. {
  45. u8 xfercap_scale;
  46. u32 xfercap;
  47. int i;
  48. struct ioat_dma_chan *ioat_chan;
  49. device->common.chancnt = readb(device->reg_base + IOAT_CHANCNT_OFFSET);
  50. xfercap_scale = readb(device->reg_base + IOAT_XFERCAP_OFFSET);
  51. xfercap = (xfercap_scale == 0 ? -1 : (1UL << xfercap_scale));
  52. for (i = 0; i < device->common.chancnt; i++) {
  53. ioat_chan = kzalloc(sizeof(*ioat_chan), GFP_KERNEL);
  54. if (!ioat_chan) {
  55. device->common.chancnt = i;
  56. break;
  57. }
  58. ioat_chan->device = device;
  59. ioat_chan->reg_base = device->reg_base + (0x80 * (i + 1));
  60. ioat_chan->xfercap = xfercap;
  61. spin_lock_init(&ioat_chan->cleanup_lock);
  62. spin_lock_init(&ioat_chan->desc_lock);
  63. INIT_LIST_HEAD(&ioat_chan->free_desc);
  64. INIT_LIST_HEAD(&ioat_chan->used_desc);
  65. /* This should be made common somewhere in dmaengine.c */
  66. ioat_chan->common.device = &device->common;
  67. list_add_tail(&ioat_chan->common.device_node,
  68. &device->common.channels);
  69. }
  70. return device->common.chancnt;
  71. }
  72. static void
  73. ioat_set_src(dma_addr_t addr, struct dma_async_tx_descriptor *tx, int index)
  74. {
  75. struct ioat_desc_sw *iter, *desc = tx_to_ioat_desc(tx);
  76. struct ioat_dma_chan *ioat_chan = to_ioat_chan(tx->chan);
  77. pci_unmap_addr_set(desc, src, addr);
  78. list_for_each_entry(iter, &desc->async_tx.tx_list, node) {
  79. iter->hw->src_addr = addr;
  80. addr += ioat_chan->xfercap;
  81. }
  82. }
  83. static void
  84. ioat_set_dest(dma_addr_t addr, struct dma_async_tx_descriptor *tx, int index)
  85. {
  86. struct ioat_desc_sw *iter, *desc = tx_to_ioat_desc(tx);
  87. struct ioat_dma_chan *ioat_chan = to_ioat_chan(tx->chan);
  88. pci_unmap_addr_set(desc, dst, addr);
  89. list_for_each_entry(iter, &desc->async_tx.tx_list, node) {
  90. iter->hw->dst_addr = addr;
  91. addr += ioat_chan->xfercap;
  92. }
  93. }
  94. static dma_cookie_t
  95. ioat_tx_submit(struct dma_async_tx_descriptor *tx)
  96. {
  97. struct ioat_dma_chan *ioat_chan = to_ioat_chan(tx->chan);
  98. struct ioat_desc_sw *desc = tx_to_ioat_desc(tx);
  99. int append = 0;
  100. dma_cookie_t cookie;
  101. struct ioat_desc_sw *group_start;
  102. group_start = list_entry(desc->async_tx.tx_list.next,
  103. struct ioat_desc_sw, node);
  104. spin_lock_bh(&ioat_chan->desc_lock);
  105. /* cookie incr and addition to used_list must be atomic */
  106. cookie = ioat_chan->common.cookie;
  107. cookie++;
  108. if (cookie < 0)
  109. cookie = 1;
  110. ioat_chan->common.cookie = desc->async_tx.cookie = cookie;
  111. /* write address into NextDescriptor field of last desc in chain */
  112. to_ioat_desc(ioat_chan->used_desc.prev)->hw->next =
  113. group_start->async_tx.phys;
  114. list_splice_init(&desc->async_tx.tx_list, ioat_chan->used_desc.prev);
  115. ioat_chan->pending += desc->tx_cnt;
  116. if (ioat_chan->pending >= 4) {
  117. append = 1;
  118. ioat_chan->pending = 0;
  119. }
  120. spin_unlock_bh(&ioat_chan->desc_lock);
  121. if (append)
  122. writeb(IOAT_CHANCMD_APPEND,
  123. ioat_chan->reg_base + IOAT_CHANCMD_OFFSET);
  124. return cookie;
  125. }
  126. static struct ioat_desc_sw *ioat_dma_alloc_descriptor(
  127. struct ioat_dma_chan *ioat_chan,
  128. gfp_t flags)
  129. {
  130. struct ioat_dma_descriptor *desc;
  131. struct ioat_desc_sw *desc_sw;
  132. struct ioat_device *ioat_device;
  133. dma_addr_t phys;
  134. ioat_device = to_ioat_device(ioat_chan->common.device);
  135. desc = pci_pool_alloc(ioat_device->dma_pool, flags, &phys);
  136. if (unlikely(!desc))
  137. return NULL;
  138. desc_sw = kzalloc(sizeof(*desc_sw), flags);
  139. if (unlikely(!desc_sw)) {
  140. pci_pool_free(ioat_device->dma_pool, desc, phys);
  141. return NULL;
  142. }
  143. memset(desc, 0, sizeof(*desc));
  144. dma_async_tx_descriptor_init(&desc_sw->async_tx, &ioat_chan->common);
  145. desc_sw->async_tx.tx_set_src = ioat_set_src;
  146. desc_sw->async_tx.tx_set_dest = ioat_set_dest;
  147. desc_sw->async_tx.tx_submit = ioat_tx_submit;
  148. INIT_LIST_HEAD(&desc_sw->async_tx.tx_list);
  149. desc_sw->hw = desc;
  150. desc_sw->async_tx.phys = phys;
  151. return desc_sw;
  152. }
  153. #define INITIAL_IOAT_DESC_COUNT 128
  154. static void ioat_start_null_desc(struct ioat_dma_chan *ioat_chan);
  155. /* returns the actual number of allocated descriptors */
  156. static int ioat_dma_alloc_chan_resources(struct dma_chan *chan)
  157. {
  158. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  159. struct ioat_desc_sw *desc = NULL;
  160. u16 chanctrl;
  161. u32 chanerr;
  162. int i;
  163. LIST_HEAD(tmp_list);
  164. /* have we already been set up? */
  165. if (!list_empty(&ioat_chan->free_desc))
  166. return INITIAL_IOAT_DESC_COUNT;
  167. /* Setup register to interrupt and write completion status on error */
  168. chanctrl = IOAT_CHANCTRL_ERR_INT_EN |
  169. IOAT_CHANCTRL_ANY_ERR_ABORT_EN |
  170. IOAT_CHANCTRL_ERR_COMPLETION_EN;
  171. writew(chanctrl, ioat_chan->reg_base + IOAT_CHANCTRL_OFFSET);
  172. chanerr = readl(ioat_chan->reg_base + IOAT_CHANERR_OFFSET);
  173. if (chanerr) {
  174. printk("IOAT: CHANERR = %x, clearing\n", chanerr);
  175. writel(chanerr, ioat_chan->reg_base + IOAT_CHANERR_OFFSET);
  176. }
  177. /* Allocate descriptors */
  178. for (i = 0; i < INITIAL_IOAT_DESC_COUNT; i++) {
  179. desc = ioat_dma_alloc_descriptor(ioat_chan, GFP_KERNEL);
  180. if (!desc) {
  181. printk(KERN_ERR "IOAT: Only %d initial descriptors\n", i);
  182. break;
  183. }
  184. list_add_tail(&desc->node, &tmp_list);
  185. }
  186. spin_lock_bh(&ioat_chan->desc_lock);
  187. list_splice(&tmp_list, &ioat_chan->free_desc);
  188. spin_unlock_bh(&ioat_chan->desc_lock);
  189. /* allocate a completion writeback area */
  190. /* doing 2 32bit writes to mmio since 1 64b write doesn't work */
  191. ioat_chan->completion_virt =
  192. pci_pool_alloc(ioat_chan->device->completion_pool,
  193. GFP_KERNEL,
  194. &ioat_chan->completion_addr);
  195. memset(ioat_chan->completion_virt, 0,
  196. sizeof(*ioat_chan->completion_virt));
  197. writel(((u64) ioat_chan->completion_addr) & 0x00000000FFFFFFFF,
  198. ioat_chan->reg_base + IOAT_CHANCMP_OFFSET_LOW);
  199. writel(((u64) ioat_chan->completion_addr) >> 32,
  200. ioat_chan->reg_base + IOAT_CHANCMP_OFFSET_HIGH);
  201. ioat_start_null_desc(ioat_chan);
  202. return i;
  203. }
  204. static void ioat_dma_memcpy_cleanup(struct ioat_dma_chan *ioat_chan);
  205. static void ioat_dma_free_chan_resources(struct dma_chan *chan)
  206. {
  207. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  208. struct ioat_device *ioat_device = to_ioat_device(chan->device);
  209. struct ioat_desc_sw *desc, *_desc;
  210. u16 chanctrl;
  211. int in_use_descs = 0;
  212. ioat_dma_memcpy_cleanup(ioat_chan);
  213. writeb(IOAT_CHANCMD_RESET, ioat_chan->reg_base + IOAT_CHANCMD_OFFSET);
  214. spin_lock_bh(&ioat_chan->desc_lock);
  215. list_for_each_entry_safe(desc, _desc, &ioat_chan->used_desc, node) {
  216. in_use_descs++;
  217. list_del(&desc->node);
  218. pci_pool_free(ioat_device->dma_pool, desc->hw,
  219. desc->async_tx.phys);
  220. kfree(desc);
  221. }
  222. list_for_each_entry_safe(desc, _desc, &ioat_chan->free_desc, node) {
  223. list_del(&desc->node);
  224. pci_pool_free(ioat_device->dma_pool, desc->hw,
  225. desc->async_tx.phys);
  226. kfree(desc);
  227. }
  228. spin_unlock_bh(&ioat_chan->desc_lock);
  229. pci_pool_free(ioat_device->completion_pool,
  230. ioat_chan->completion_virt,
  231. ioat_chan->completion_addr);
  232. /* one is ok since we left it on there on purpose */
  233. if (in_use_descs > 1)
  234. printk(KERN_ERR "IOAT: Freeing %d in use descriptors!\n",
  235. in_use_descs - 1);
  236. ioat_chan->last_completion = ioat_chan->completion_addr = 0;
  237. }
  238. static struct dma_async_tx_descriptor *
  239. ioat_dma_prep_memcpy(struct dma_chan *chan, size_t len, int int_en)
  240. {
  241. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  242. struct ioat_desc_sw *first, *prev, *new;
  243. LIST_HEAD(new_chain);
  244. u32 copy;
  245. size_t orig_len;
  246. int desc_count = 0;
  247. if (!len)
  248. return NULL;
  249. orig_len = len;
  250. first = NULL;
  251. prev = NULL;
  252. spin_lock_bh(&ioat_chan->desc_lock);
  253. while (len) {
  254. if (!list_empty(&ioat_chan->free_desc)) {
  255. new = to_ioat_desc(ioat_chan->free_desc.next);
  256. list_del(&new->node);
  257. } else {
  258. /* try to get another desc */
  259. new = ioat_dma_alloc_descriptor(ioat_chan, GFP_ATOMIC);
  260. /* will this ever happen? */
  261. /* TODO add upper limit on these */
  262. BUG_ON(!new);
  263. }
  264. copy = min((u32) len, ioat_chan->xfercap);
  265. new->hw->size = copy;
  266. new->hw->ctl = 0;
  267. new->async_tx.cookie = 0;
  268. new->async_tx.ack = 1;
  269. /* chain together the physical address list for the HW */
  270. if (!first)
  271. first = new;
  272. else
  273. prev->hw->next = (u64) new->async_tx.phys;
  274. prev = new;
  275. len -= copy;
  276. list_add_tail(&new->node, &new_chain);
  277. desc_count++;
  278. }
  279. list_splice(&new_chain, &new->async_tx.tx_list);
  280. new->hw->ctl = IOAT_DMA_DESCRIPTOR_CTL_CP_STS;
  281. new->hw->next = 0;
  282. new->tx_cnt = desc_count;
  283. new->async_tx.ack = 0; /* client is in control of this ack */
  284. new->async_tx.cookie = -EBUSY;
  285. pci_unmap_len_set(new, len, orig_len);
  286. spin_unlock_bh(&ioat_chan->desc_lock);
  287. return new ? &new->async_tx : NULL;
  288. }
  289. /**
  290. * ioat_dma_memcpy_issue_pending - push potentially unrecognized appended descriptors to hw
  291. * @chan: DMA channel handle
  292. */
  293. static void ioat_dma_memcpy_issue_pending(struct dma_chan *chan)
  294. {
  295. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  296. if (ioat_chan->pending != 0) {
  297. ioat_chan->pending = 0;
  298. writeb(IOAT_CHANCMD_APPEND,
  299. ioat_chan->reg_base + IOAT_CHANCMD_OFFSET);
  300. }
  301. }
  302. static void ioat_dma_memcpy_cleanup(struct ioat_dma_chan *chan)
  303. {
  304. unsigned long phys_complete;
  305. struct ioat_desc_sw *desc, *_desc;
  306. dma_cookie_t cookie = 0;
  307. prefetch(chan->completion_virt);
  308. if (!spin_trylock(&chan->cleanup_lock))
  309. return;
  310. /* The completion writeback can happen at any time,
  311. so reads by the driver need to be atomic operations
  312. The descriptor physical addresses are limited to 32-bits
  313. when the CPU can only do a 32-bit mov */
  314. #if (BITS_PER_LONG == 64)
  315. phys_complete =
  316. chan->completion_virt->full & IOAT_CHANSTS_COMPLETED_DESCRIPTOR_ADDR;
  317. #else
  318. phys_complete = chan->completion_virt->low & IOAT_LOW_COMPLETION_MASK;
  319. #endif
  320. if ((chan->completion_virt->full & IOAT_CHANSTS_DMA_TRANSFER_STATUS) ==
  321. IOAT_CHANSTS_DMA_TRANSFER_STATUS_HALTED) {
  322. printk("IOAT: Channel halted, chanerr = %x\n",
  323. readl(chan->reg_base + IOAT_CHANERR_OFFSET));
  324. /* TODO do something to salvage the situation */
  325. }
  326. if (phys_complete == chan->last_completion) {
  327. spin_unlock(&chan->cleanup_lock);
  328. return;
  329. }
  330. spin_lock_bh(&chan->desc_lock);
  331. list_for_each_entry_safe(desc, _desc, &chan->used_desc, node) {
  332. /*
  333. * Incoming DMA requests may use multiple descriptors, due to
  334. * exceeding xfercap, perhaps. If so, only the last one will
  335. * have a cookie, and require unmapping.
  336. */
  337. if (desc->async_tx.cookie) {
  338. cookie = desc->async_tx.cookie;
  339. /* yes we are unmapping both _page and _single alloc'd
  340. regions with unmap_page. Is this *really* that bad?
  341. */
  342. pci_unmap_page(chan->device->pdev,
  343. pci_unmap_addr(desc, dst),
  344. pci_unmap_len(desc, len),
  345. PCI_DMA_FROMDEVICE);
  346. pci_unmap_page(chan->device->pdev,
  347. pci_unmap_addr(desc, src),
  348. pci_unmap_len(desc, len),
  349. PCI_DMA_TODEVICE);
  350. }
  351. if (desc->async_tx.phys != phys_complete) {
  352. /* a completed entry, but not the last, so cleanup
  353. * if the client is done with the descriptor
  354. */
  355. if (desc->async_tx.ack) {
  356. list_del(&desc->node);
  357. list_add_tail(&desc->node, &chan->free_desc);
  358. } else
  359. desc->async_tx.cookie = 0;
  360. } else {
  361. /* last used desc. Do not remove, so we can append from
  362. it, but don't look at it next time, either */
  363. desc->async_tx.cookie = 0;
  364. /* TODO check status bits? */
  365. break;
  366. }
  367. }
  368. spin_unlock_bh(&chan->desc_lock);
  369. chan->last_completion = phys_complete;
  370. if (cookie != 0)
  371. chan->completed_cookie = cookie;
  372. spin_unlock(&chan->cleanup_lock);
  373. }
  374. static void ioat_dma_dependency_added(struct dma_chan *chan)
  375. {
  376. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  377. spin_lock_bh(&ioat_chan->desc_lock);
  378. if (ioat_chan->pending == 0) {
  379. spin_unlock_bh(&ioat_chan->desc_lock);
  380. ioat_dma_memcpy_cleanup(ioat_chan);
  381. } else
  382. spin_unlock_bh(&ioat_chan->desc_lock);
  383. }
  384. /**
  385. * ioat_dma_is_complete - poll the status of a IOAT DMA transaction
  386. * @chan: IOAT DMA channel handle
  387. * @cookie: DMA transaction identifier
  388. * @done: if not %NULL, updated with last completed transaction
  389. * @used: if not %NULL, updated with last used transaction
  390. */
  391. static enum dma_status ioat_dma_is_complete(struct dma_chan *chan,
  392. dma_cookie_t cookie,
  393. dma_cookie_t *done,
  394. dma_cookie_t *used)
  395. {
  396. struct ioat_dma_chan *ioat_chan = to_ioat_chan(chan);
  397. dma_cookie_t last_used;
  398. dma_cookie_t last_complete;
  399. enum dma_status ret;
  400. last_used = chan->cookie;
  401. last_complete = ioat_chan->completed_cookie;
  402. if (done)
  403. *done= last_complete;
  404. if (used)
  405. *used = last_used;
  406. ret = dma_async_is_complete(cookie, last_complete, last_used);
  407. if (ret == DMA_SUCCESS)
  408. return ret;
  409. ioat_dma_memcpy_cleanup(ioat_chan);
  410. last_used = chan->cookie;
  411. last_complete = ioat_chan->completed_cookie;
  412. if (done)
  413. *done= last_complete;
  414. if (used)
  415. *used = last_used;
  416. return dma_async_is_complete(cookie, last_complete, last_used);
  417. }
  418. /* PCI API */
  419. static struct pci_device_id ioat_pci_tbl[] = {
  420. { PCI_DEVICE(PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_IOAT) },
  421. { PCI_DEVICE(PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_IOAT_CNB) },
  422. { PCI_DEVICE(PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_INTEL_IOAT_SCNB) },
  423. { PCI_DEVICE(PCI_VENDOR_ID_UNISYS, PCI_DEVICE_ID_UNISYS_DMA_DIRECTOR) },
  424. { 0, }
  425. };
  426. static struct pci_driver ioat_pci_driver = {
  427. .name = "ioatdma",
  428. .id_table = ioat_pci_tbl,
  429. .probe = ioat_probe,
  430. .shutdown = ioat_shutdown,
  431. .remove = __devexit_p(ioat_remove),
  432. };
  433. static irqreturn_t ioat_do_interrupt(int irq, void *data)
  434. {
  435. struct ioat_device *instance = data;
  436. unsigned long attnstatus;
  437. u8 intrctrl;
  438. intrctrl = readb(instance->reg_base + IOAT_INTRCTRL_OFFSET);
  439. if (!(intrctrl & IOAT_INTRCTRL_MASTER_INT_EN))
  440. return IRQ_NONE;
  441. if (!(intrctrl & IOAT_INTRCTRL_INT_STATUS)) {
  442. writeb(intrctrl, instance->reg_base + IOAT_INTRCTRL_OFFSET);
  443. return IRQ_NONE;
  444. }
  445. attnstatus = readl(instance->reg_base + IOAT_ATTNSTATUS_OFFSET);
  446. printk(KERN_ERR "ioatdma error: interrupt! status %lx\n", attnstatus);
  447. writeb(intrctrl, instance->reg_base + IOAT_INTRCTRL_OFFSET);
  448. return IRQ_HANDLED;
  449. }
  450. static void ioat_start_null_desc(struct ioat_dma_chan *ioat_chan)
  451. {
  452. struct ioat_desc_sw *desc;
  453. spin_lock_bh(&ioat_chan->desc_lock);
  454. if (!list_empty(&ioat_chan->free_desc)) {
  455. desc = to_ioat_desc(ioat_chan->free_desc.next);
  456. list_del(&desc->node);
  457. } else {
  458. /* try to get another desc */
  459. spin_unlock_bh(&ioat_chan->desc_lock);
  460. desc = ioat_dma_alloc_descriptor(ioat_chan, GFP_KERNEL);
  461. spin_lock_bh(&ioat_chan->desc_lock);
  462. /* will this ever happen? */
  463. BUG_ON(!desc);
  464. }
  465. desc->hw->ctl = IOAT_DMA_DESCRIPTOR_NUL;
  466. desc->hw->next = 0;
  467. desc->async_tx.ack = 1;
  468. list_add_tail(&desc->node, &ioat_chan->used_desc);
  469. spin_unlock_bh(&ioat_chan->desc_lock);
  470. writel(((u64) desc->async_tx.phys) & 0x00000000FFFFFFFF,
  471. ioat_chan->reg_base + IOAT_CHAINADDR_OFFSET_LOW);
  472. writel(((u64) desc->async_tx.phys) >> 32,
  473. ioat_chan->reg_base + IOAT_CHAINADDR_OFFSET_HIGH);
  474. writeb(IOAT_CHANCMD_START, ioat_chan->reg_base + IOAT_CHANCMD_OFFSET);
  475. }
  476. /*
  477. * Perform a IOAT transaction to verify the HW works.
  478. */
  479. #define IOAT_TEST_SIZE 2000
  480. static int ioat_self_test(struct ioat_device *device)
  481. {
  482. int i;
  483. u8 *src;
  484. u8 *dest;
  485. struct dma_chan *dma_chan;
  486. struct dma_async_tx_descriptor *tx;
  487. dma_addr_t addr;
  488. dma_cookie_t cookie;
  489. int err = 0;
  490. src = kzalloc(sizeof(u8) * IOAT_TEST_SIZE, GFP_KERNEL);
  491. if (!src)
  492. return -ENOMEM;
  493. dest = kzalloc(sizeof(u8) * IOAT_TEST_SIZE, GFP_KERNEL);
  494. if (!dest) {
  495. kfree(src);
  496. return -ENOMEM;
  497. }
  498. /* Fill in src buffer */
  499. for (i = 0; i < IOAT_TEST_SIZE; i++)
  500. src[i] = (u8)i;
  501. /* Start copy, using first DMA channel */
  502. dma_chan = container_of(device->common.channels.next,
  503. struct dma_chan,
  504. device_node);
  505. if (ioat_dma_alloc_chan_resources(dma_chan) < 1) {
  506. err = -ENODEV;
  507. goto out;
  508. }
  509. tx = ioat_dma_prep_memcpy(dma_chan, IOAT_TEST_SIZE, 0);
  510. async_tx_ack(tx);
  511. addr = dma_map_single(dma_chan->device->dev, src, IOAT_TEST_SIZE,
  512. DMA_TO_DEVICE);
  513. ioat_set_src(addr, tx, 0);
  514. addr = dma_map_single(dma_chan->device->dev, dest, IOAT_TEST_SIZE,
  515. DMA_FROM_DEVICE);
  516. ioat_set_dest(addr, tx, 0);
  517. cookie = ioat_tx_submit(tx);
  518. ioat_dma_memcpy_issue_pending(dma_chan);
  519. msleep(1);
  520. if (ioat_dma_is_complete(dma_chan, cookie, NULL, NULL) != DMA_SUCCESS) {
  521. printk(KERN_ERR "ioatdma: Self-test copy timed out, disabling\n");
  522. err = -ENODEV;
  523. goto free_resources;
  524. }
  525. if (memcmp(src, dest, IOAT_TEST_SIZE)) {
  526. printk(KERN_ERR "ioatdma: Self-test copy failed compare, disabling\n");
  527. err = -ENODEV;
  528. goto free_resources;
  529. }
  530. free_resources:
  531. ioat_dma_free_chan_resources(dma_chan);
  532. out:
  533. kfree(src);
  534. kfree(dest);
  535. return err;
  536. }
  537. static int __devinit ioat_probe(struct pci_dev *pdev,
  538. const struct pci_device_id *ent)
  539. {
  540. int err;
  541. unsigned long mmio_start, mmio_len;
  542. void __iomem *reg_base;
  543. struct ioat_device *device;
  544. err = pci_enable_device(pdev);
  545. if (err)
  546. goto err_enable_device;
  547. err = pci_set_dma_mask(pdev, DMA_64BIT_MASK);
  548. if (err)
  549. err = pci_set_dma_mask(pdev, DMA_32BIT_MASK);
  550. if (err)
  551. goto err_set_dma_mask;
  552. err = pci_request_regions(pdev, ioat_pci_driver.name);
  553. if (err)
  554. goto err_request_regions;
  555. mmio_start = pci_resource_start(pdev, 0);
  556. mmio_len = pci_resource_len(pdev, 0);
  557. reg_base = ioremap(mmio_start, mmio_len);
  558. if (!reg_base) {
  559. err = -ENOMEM;
  560. goto err_ioremap;
  561. }
  562. device = kzalloc(sizeof(*device), GFP_KERNEL);
  563. if (!device) {
  564. err = -ENOMEM;
  565. goto err_kzalloc;
  566. }
  567. /* DMA coherent memory pool for DMA descriptor allocations */
  568. device->dma_pool = pci_pool_create("dma_desc_pool", pdev,
  569. sizeof(struct ioat_dma_descriptor), 64, 0);
  570. if (!device->dma_pool) {
  571. err = -ENOMEM;
  572. goto err_dma_pool;
  573. }
  574. device->completion_pool = pci_pool_create("completion_pool", pdev, sizeof(u64), SMP_CACHE_BYTES, SMP_CACHE_BYTES);
  575. if (!device->completion_pool) {
  576. err = -ENOMEM;
  577. goto err_completion_pool;
  578. }
  579. device->pdev = pdev;
  580. pci_set_drvdata(pdev, device);
  581. #ifdef CONFIG_PCI_MSI
  582. if (pci_enable_msi(pdev) == 0) {
  583. device->msi = 1;
  584. } else {
  585. device->msi = 0;
  586. }
  587. #endif
  588. err = request_irq(pdev->irq, &ioat_do_interrupt, IRQF_SHARED, "ioat",
  589. device);
  590. if (err)
  591. goto err_irq;
  592. device->reg_base = reg_base;
  593. writeb(IOAT_INTRCTRL_MASTER_INT_EN, device->reg_base + IOAT_INTRCTRL_OFFSET);
  594. pci_set_master(pdev);
  595. INIT_LIST_HEAD(&device->common.channels);
  596. enumerate_dma_channels(device);
  597. dma_cap_set(DMA_MEMCPY, device->common.cap_mask);
  598. device->common.device_alloc_chan_resources = ioat_dma_alloc_chan_resources;
  599. device->common.device_free_chan_resources = ioat_dma_free_chan_resources;
  600. device->common.device_prep_dma_memcpy = ioat_dma_prep_memcpy;
  601. device->common.device_is_tx_complete = ioat_dma_is_complete;
  602. device->common.device_issue_pending = ioat_dma_memcpy_issue_pending;
  603. device->common.device_dependency_added = ioat_dma_dependency_added;
  604. device->common.dev = &pdev->dev;
  605. printk(KERN_INFO "Intel(R) I/OAT DMA Engine found, %d channels\n",
  606. device->common.chancnt);
  607. err = ioat_self_test(device);
  608. if (err)
  609. goto err_self_test;
  610. dma_async_device_register(&device->common);
  611. return 0;
  612. err_self_test:
  613. err_irq:
  614. pci_pool_destroy(device->completion_pool);
  615. err_completion_pool:
  616. pci_pool_destroy(device->dma_pool);
  617. err_dma_pool:
  618. kfree(device);
  619. err_kzalloc:
  620. iounmap(reg_base);
  621. err_ioremap:
  622. pci_release_regions(pdev);
  623. err_request_regions:
  624. err_set_dma_mask:
  625. pci_disable_device(pdev);
  626. err_enable_device:
  627. printk(KERN_ERR "Intel(R) I/OAT DMA Engine initialization failed\n");
  628. return err;
  629. }
  630. static void ioat_shutdown(struct pci_dev *pdev)
  631. {
  632. struct ioat_device *device;
  633. device = pci_get_drvdata(pdev);
  634. dma_async_device_unregister(&device->common);
  635. }
  636. static void __devexit ioat_remove(struct pci_dev *pdev)
  637. {
  638. struct ioat_device *device;
  639. struct dma_chan *chan, *_chan;
  640. struct ioat_dma_chan *ioat_chan;
  641. device = pci_get_drvdata(pdev);
  642. dma_async_device_unregister(&device->common);
  643. free_irq(device->pdev->irq, device);
  644. #ifdef CONFIG_PCI_MSI
  645. if (device->msi)
  646. pci_disable_msi(device->pdev);
  647. #endif
  648. pci_pool_destroy(device->dma_pool);
  649. pci_pool_destroy(device->completion_pool);
  650. iounmap(device->reg_base);
  651. pci_release_regions(pdev);
  652. pci_disable_device(pdev);
  653. list_for_each_entry_safe(chan, _chan, &device->common.channels, device_node) {
  654. ioat_chan = to_ioat_chan(chan);
  655. list_del(&chan->device_node);
  656. kfree(ioat_chan);
  657. }
  658. kfree(device);
  659. }
  660. /* MODULE API */
  661. MODULE_VERSION("1.9");
  662. MODULE_LICENSE("GPL");
  663. MODULE_AUTHOR("Intel Corporation");
  664. static int __init ioat_init_module(void)
  665. {
  666. /* it's currently unsafe to unload this module */
  667. /* if forced, worst case is that rmmod hangs */
  668. __unsafe(THIS_MODULE);
  669. return pci_register_driver(&ioat_pci_driver);
  670. }
  671. module_init(ioat_init_module);
  672. static void __exit ioat_exit_module(void)
  673. {
  674. pci_unregister_driver(&ioat_pci_driver);
  675. }
  676. module_exit(ioat_exit_module);