libata-core.c 187 KB

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  1. /*
  2. * libata-core.c - helper library for ATA
  3. *
  4. * Maintained by: Jeff Garzik <jgarzik@pobox.com>
  5. * Please ALWAYS copy linux-ide@vger.kernel.org
  6. * on emails.
  7. *
  8. * Copyright 2003-2004 Red Hat, Inc. All rights reserved.
  9. * Copyright 2003-2004 Jeff Garzik
  10. *
  11. *
  12. * This program is free software; you can redistribute it and/or modify
  13. * it under the terms of the GNU General Public License as published by
  14. * the Free Software Foundation; either version 2, or (at your option)
  15. * any later version.
  16. *
  17. * This program is distributed in the hope that it will be useful,
  18. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  19. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  20. * GNU General Public License for more details.
  21. *
  22. * You should have received a copy of the GNU General Public License
  23. * along with this program; see the file COPYING. If not, write to
  24. * the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
  25. *
  26. *
  27. * libata documentation is available via 'make {ps|pdf}docs',
  28. * as Documentation/DocBook/libata.*
  29. *
  30. * Hardware documentation available from http://www.t13.org/ and
  31. * http://www.sata-io.org/
  32. *
  33. * Standards documents from:
  34. * http://www.t13.org (ATA standards, PCI DMA IDE spec)
  35. * http://www.t10.org (SCSI MMC - for ATAPI MMC)
  36. * http://www.sata-io.org (SATA)
  37. * http://www.compactflash.org (CF)
  38. * http://www.qic.org (QIC157 - Tape and DSC)
  39. * http://www.ce-ata.org (CE-ATA: not supported)
  40. *
  41. */
  42. #include <linux/kernel.h>
  43. #include <linux/module.h>
  44. #include <linux/pci.h>
  45. #include <linux/init.h>
  46. #include <linux/list.h>
  47. #include <linux/mm.h>
  48. #include <linux/highmem.h>
  49. #include <linux/spinlock.h>
  50. #include <linux/blkdev.h>
  51. #include <linux/delay.h>
  52. #include <linux/timer.h>
  53. #include <linux/interrupt.h>
  54. #include <linux/completion.h>
  55. #include <linux/suspend.h>
  56. #include <linux/workqueue.h>
  57. #include <linux/jiffies.h>
  58. #include <linux/scatterlist.h>
  59. #include <linux/io.h>
  60. #include <scsi/scsi.h>
  61. #include <scsi/scsi_cmnd.h>
  62. #include <scsi/scsi_host.h>
  63. #include <linux/libata.h>
  64. #include <asm/semaphore.h>
  65. #include <asm/byteorder.h>
  66. #include <linux/cdrom.h>
  67. #include "libata.h"
  68. /* debounce timing parameters in msecs { interval, duration, timeout } */
  69. const unsigned long sata_deb_timing_normal[] = { 5, 100, 2000 };
  70. const unsigned long sata_deb_timing_hotplug[] = { 25, 500, 2000 };
  71. const unsigned long sata_deb_timing_long[] = { 100, 2000, 5000 };
  72. static unsigned int ata_dev_init_params(struct ata_device *dev,
  73. u16 heads, u16 sectors);
  74. static unsigned int ata_dev_set_xfermode(struct ata_device *dev);
  75. static unsigned int ata_dev_set_feature(struct ata_device *dev,
  76. u8 enable, u8 feature);
  77. static void ata_dev_xfermask(struct ata_device *dev);
  78. static unsigned long ata_dev_blacklisted(const struct ata_device *dev);
  79. unsigned int ata_print_id = 1;
  80. static struct workqueue_struct *ata_wq;
  81. struct workqueue_struct *ata_aux_wq;
  82. int atapi_enabled = 1;
  83. module_param(atapi_enabled, int, 0444);
  84. MODULE_PARM_DESC(atapi_enabled, "Enable discovery of ATAPI devices (0=off, 1=on)");
  85. int atapi_dmadir = 0;
  86. module_param(atapi_dmadir, int, 0444);
  87. MODULE_PARM_DESC(atapi_dmadir, "Enable ATAPI DMADIR bridge support (0=off, 1=on)");
  88. int atapi_passthru16 = 1;
  89. module_param(atapi_passthru16, int, 0444);
  90. MODULE_PARM_DESC(atapi_passthru16, "Enable ATA_16 passthru for ATAPI devices; on by default (0=off, 1=on)");
  91. int libata_fua = 0;
  92. module_param_named(fua, libata_fua, int, 0444);
  93. MODULE_PARM_DESC(fua, "FUA support (0=off, 1=on)");
  94. static int ata_ignore_hpa;
  95. module_param_named(ignore_hpa, ata_ignore_hpa, int, 0644);
  96. MODULE_PARM_DESC(ignore_hpa, "Ignore HPA limit (0=keep BIOS limits, 1=ignore limits, using full disk)");
  97. static int libata_dma_mask = ATA_DMA_MASK_ATA|ATA_DMA_MASK_ATAPI|ATA_DMA_MASK_CFA;
  98. module_param_named(dma, libata_dma_mask, int, 0444);
  99. MODULE_PARM_DESC(dma, "DMA enable/disable (0x1==ATA, 0x2==ATAPI, 0x4==CF)");
  100. static int ata_probe_timeout = ATA_TMOUT_INTERNAL / HZ;
  101. module_param(ata_probe_timeout, int, 0444);
  102. MODULE_PARM_DESC(ata_probe_timeout, "Set ATA probing timeout (seconds)");
  103. int libata_noacpi = 0;
  104. module_param_named(noacpi, libata_noacpi, int, 0444);
  105. MODULE_PARM_DESC(noacpi, "Disables the use of ACPI in probe/suspend/resume when set");
  106. int libata_allow_tpm = 0;
  107. module_param_named(allow_tpm, libata_allow_tpm, int, 0444);
  108. MODULE_PARM_DESC(allow_tpm, "Permit the use of TPM commands");
  109. MODULE_AUTHOR("Jeff Garzik");
  110. MODULE_DESCRIPTION("Library module for ATA devices");
  111. MODULE_LICENSE("GPL");
  112. MODULE_VERSION(DRV_VERSION);
  113. /**
  114. * ata_tf_to_fis - Convert ATA taskfile to SATA FIS structure
  115. * @tf: Taskfile to convert
  116. * @pmp: Port multiplier port
  117. * @is_cmd: This FIS is for command
  118. * @fis: Buffer into which data will output
  119. *
  120. * Converts a standard ATA taskfile to a Serial ATA
  121. * FIS structure (Register - Host to Device).
  122. *
  123. * LOCKING:
  124. * Inherited from caller.
  125. */
  126. void ata_tf_to_fis(const struct ata_taskfile *tf, u8 pmp, int is_cmd, u8 *fis)
  127. {
  128. fis[0] = 0x27; /* Register - Host to Device FIS */
  129. fis[1] = pmp & 0xf; /* Port multiplier number*/
  130. if (is_cmd)
  131. fis[1] |= (1 << 7); /* bit 7 indicates Command FIS */
  132. fis[2] = tf->command;
  133. fis[3] = tf->feature;
  134. fis[4] = tf->lbal;
  135. fis[5] = tf->lbam;
  136. fis[6] = tf->lbah;
  137. fis[7] = tf->device;
  138. fis[8] = tf->hob_lbal;
  139. fis[9] = tf->hob_lbam;
  140. fis[10] = tf->hob_lbah;
  141. fis[11] = tf->hob_feature;
  142. fis[12] = tf->nsect;
  143. fis[13] = tf->hob_nsect;
  144. fis[14] = 0;
  145. fis[15] = tf->ctl;
  146. fis[16] = 0;
  147. fis[17] = 0;
  148. fis[18] = 0;
  149. fis[19] = 0;
  150. }
  151. /**
  152. * ata_tf_from_fis - Convert SATA FIS to ATA taskfile
  153. * @fis: Buffer from which data will be input
  154. * @tf: Taskfile to output
  155. *
  156. * Converts a serial ATA FIS structure to a standard ATA taskfile.
  157. *
  158. * LOCKING:
  159. * Inherited from caller.
  160. */
  161. void ata_tf_from_fis(const u8 *fis, struct ata_taskfile *tf)
  162. {
  163. tf->command = fis[2]; /* status */
  164. tf->feature = fis[3]; /* error */
  165. tf->lbal = fis[4];
  166. tf->lbam = fis[5];
  167. tf->lbah = fis[6];
  168. tf->device = fis[7];
  169. tf->hob_lbal = fis[8];
  170. tf->hob_lbam = fis[9];
  171. tf->hob_lbah = fis[10];
  172. tf->nsect = fis[12];
  173. tf->hob_nsect = fis[13];
  174. }
  175. static const u8 ata_rw_cmds[] = {
  176. /* pio multi */
  177. ATA_CMD_READ_MULTI,
  178. ATA_CMD_WRITE_MULTI,
  179. ATA_CMD_READ_MULTI_EXT,
  180. ATA_CMD_WRITE_MULTI_EXT,
  181. 0,
  182. 0,
  183. 0,
  184. ATA_CMD_WRITE_MULTI_FUA_EXT,
  185. /* pio */
  186. ATA_CMD_PIO_READ,
  187. ATA_CMD_PIO_WRITE,
  188. ATA_CMD_PIO_READ_EXT,
  189. ATA_CMD_PIO_WRITE_EXT,
  190. 0,
  191. 0,
  192. 0,
  193. 0,
  194. /* dma */
  195. ATA_CMD_READ,
  196. ATA_CMD_WRITE,
  197. ATA_CMD_READ_EXT,
  198. ATA_CMD_WRITE_EXT,
  199. 0,
  200. 0,
  201. 0,
  202. ATA_CMD_WRITE_FUA_EXT
  203. };
  204. /**
  205. * ata_rwcmd_protocol - set taskfile r/w commands and protocol
  206. * @tf: command to examine and configure
  207. * @dev: device tf belongs to
  208. *
  209. * Examine the device configuration and tf->flags to calculate
  210. * the proper read/write commands and protocol to use.
  211. *
  212. * LOCKING:
  213. * caller.
  214. */
  215. static int ata_rwcmd_protocol(struct ata_taskfile *tf, struct ata_device *dev)
  216. {
  217. u8 cmd;
  218. int index, fua, lba48, write;
  219. fua = (tf->flags & ATA_TFLAG_FUA) ? 4 : 0;
  220. lba48 = (tf->flags & ATA_TFLAG_LBA48) ? 2 : 0;
  221. write = (tf->flags & ATA_TFLAG_WRITE) ? 1 : 0;
  222. if (dev->flags & ATA_DFLAG_PIO) {
  223. tf->protocol = ATA_PROT_PIO;
  224. index = dev->multi_count ? 0 : 8;
  225. } else if (lba48 && (dev->link->ap->flags & ATA_FLAG_PIO_LBA48)) {
  226. /* Unable to use DMA due to host limitation */
  227. tf->protocol = ATA_PROT_PIO;
  228. index = dev->multi_count ? 0 : 8;
  229. } else {
  230. tf->protocol = ATA_PROT_DMA;
  231. index = 16;
  232. }
  233. cmd = ata_rw_cmds[index + fua + lba48 + write];
  234. if (cmd) {
  235. tf->command = cmd;
  236. return 0;
  237. }
  238. return -1;
  239. }
  240. /**
  241. * ata_tf_read_block - Read block address from ATA taskfile
  242. * @tf: ATA taskfile of interest
  243. * @dev: ATA device @tf belongs to
  244. *
  245. * LOCKING:
  246. * None.
  247. *
  248. * Read block address from @tf. This function can handle all
  249. * three address formats - LBA, LBA48 and CHS. tf->protocol and
  250. * flags select the address format to use.
  251. *
  252. * RETURNS:
  253. * Block address read from @tf.
  254. */
  255. u64 ata_tf_read_block(struct ata_taskfile *tf, struct ata_device *dev)
  256. {
  257. u64 block = 0;
  258. if (tf->flags & ATA_TFLAG_LBA) {
  259. if (tf->flags & ATA_TFLAG_LBA48) {
  260. block |= (u64)tf->hob_lbah << 40;
  261. block |= (u64)tf->hob_lbam << 32;
  262. block |= tf->hob_lbal << 24;
  263. } else
  264. block |= (tf->device & 0xf) << 24;
  265. block |= tf->lbah << 16;
  266. block |= tf->lbam << 8;
  267. block |= tf->lbal;
  268. } else {
  269. u32 cyl, head, sect;
  270. cyl = tf->lbam | (tf->lbah << 8);
  271. head = tf->device & 0xf;
  272. sect = tf->lbal;
  273. block = (cyl * dev->heads + head) * dev->sectors + sect;
  274. }
  275. return block;
  276. }
  277. /**
  278. * ata_build_rw_tf - Build ATA taskfile for given read/write request
  279. * @tf: Target ATA taskfile
  280. * @dev: ATA device @tf belongs to
  281. * @block: Block address
  282. * @n_block: Number of blocks
  283. * @tf_flags: RW/FUA etc...
  284. * @tag: tag
  285. *
  286. * LOCKING:
  287. * None.
  288. *
  289. * Build ATA taskfile @tf for read/write request described by
  290. * @block, @n_block, @tf_flags and @tag on @dev.
  291. *
  292. * RETURNS:
  293. *
  294. * 0 on success, -ERANGE if the request is too large for @dev,
  295. * -EINVAL if the request is invalid.
  296. */
  297. int ata_build_rw_tf(struct ata_taskfile *tf, struct ata_device *dev,
  298. u64 block, u32 n_block, unsigned int tf_flags,
  299. unsigned int tag)
  300. {
  301. tf->flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
  302. tf->flags |= tf_flags;
  303. if (ata_ncq_enabled(dev) && likely(tag != ATA_TAG_INTERNAL)) {
  304. /* yay, NCQ */
  305. if (!lba_48_ok(block, n_block))
  306. return -ERANGE;
  307. tf->protocol = ATA_PROT_NCQ;
  308. tf->flags |= ATA_TFLAG_LBA | ATA_TFLAG_LBA48;
  309. if (tf->flags & ATA_TFLAG_WRITE)
  310. tf->command = ATA_CMD_FPDMA_WRITE;
  311. else
  312. tf->command = ATA_CMD_FPDMA_READ;
  313. tf->nsect = tag << 3;
  314. tf->hob_feature = (n_block >> 8) & 0xff;
  315. tf->feature = n_block & 0xff;
  316. tf->hob_lbah = (block >> 40) & 0xff;
  317. tf->hob_lbam = (block >> 32) & 0xff;
  318. tf->hob_lbal = (block >> 24) & 0xff;
  319. tf->lbah = (block >> 16) & 0xff;
  320. tf->lbam = (block >> 8) & 0xff;
  321. tf->lbal = block & 0xff;
  322. tf->device = 1 << 6;
  323. if (tf->flags & ATA_TFLAG_FUA)
  324. tf->device |= 1 << 7;
  325. } else if (dev->flags & ATA_DFLAG_LBA) {
  326. tf->flags |= ATA_TFLAG_LBA;
  327. if (lba_28_ok(block, n_block)) {
  328. /* use LBA28 */
  329. tf->device |= (block >> 24) & 0xf;
  330. } else if (lba_48_ok(block, n_block)) {
  331. if (!(dev->flags & ATA_DFLAG_LBA48))
  332. return -ERANGE;
  333. /* use LBA48 */
  334. tf->flags |= ATA_TFLAG_LBA48;
  335. tf->hob_nsect = (n_block >> 8) & 0xff;
  336. tf->hob_lbah = (block >> 40) & 0xff;
  337. tf->hob_lbam = (block >> 32) & 0xff;
  338. tf->hob_lbal = (block >> 24) & 0xff;
  339. } else
  340. /* request too large even for LBA48 */
  341. return -ERANGE;
  342. if (unlikely(ata_rwcmd_protocol(tf, dev) < 0))
  343. return -EINVAL;
  344. tf->nsect = n_block & 0xff;
  345. tf->lbah = (block >> 16) & 0xff;
  346. tf->lbam = (block >> 8) & 0xff;
  347. tf->lbal = block & 0xff;
  348. tf->device |= ATA_LBA;
  349. } else {
  350. /* CHS */
  351. u32 sect, head, cyl, track;
  352. /* The request -may- be too large for CHS addressing. */
  353. if (!lba_28_ok(block, n_block))
  354. return -ERANGE;
  355. if (unlikely(ata_rwcmd_protocol(tf, dev) < 0))
  356. return -EINVAL;
  357. /* Convert LBA to CHS */
  358. track = (u32)block / dev->sectors;
  359. cyl = track / dev->heads;
  360. head = track % dev->heads;
  361. sect = (u32)block % dev->sectors + 1;
  362. DPRINTK("block %u track %u cyl %u head %u sect %u\n",
  363. (u32)block, track, cyl, head, sect);
  364. /* Check whether the converted CHS can fit.
  365. Cylinder: 0-65535
  366. Head: 0-15
  367. Sector: 1-255*/
  368. if ((cyl >> 16) || (head >> 4) || (sect >> 8) || (!sect))
  369. return -ERANGE;
  370. tf->nsect = n_block & 0xff; /* Sector count 0 means 256 sectors */
  371. tf->lbal = sect;
  372. tf->lbam = cyl;
  373. tf->lbah = cyl >> 8;
  374. tf->device |= head;
  375. }
  376. return 0;
  377. }
  378. /**
  379. * ata_pack_xfermask - Pack pio, mwdma and udma masks into xfer_mask
  380. * @pio_mask: pio_mask
  381. * @mwdma_mask: mwdma_mask
  382. * @udma_mask: udma_mask
  383. *
  384. * Pack @pio_mask, @mwdma_mask and @udma_mask into a single
  385. * unsigned int xfer_mask.
  386. *
  387. * LOCKING:
  388. * None.
  389. *
  390. * RETURNS:
  391. * Packed xfer_mask.
  392. */
  393. unsigned long ata_pack_xfermask(unsigned long pio_mask,
  394. unsigned long mwdma_mask,
  395. unsigned long udma_mask)
  396. {
  397. return ((pio_mask << ATA_SHIFT_PIO) & ATA_MASK_PIO) |
  398. ((mwdma_mask << ATA_SHIFT_MWDMA) & ATA_MASK_MWDMA) |
  399. ((udma_mask << ATA_SHIFT_UDMA) & ATA_MASK_UDMA);
  400. }
  401. /**
  402. * ata_unpack_xfermask - Unpack xfer_mask into pio, mwdma and udma masks
  403. * @xfer_mask: xfer_mask to unpack
  404. * @pio_mask: resulting pio_mask
  405. * @mwdma_mask: resulting mwdma_mask
  406. * @udma_mask: resulting udma_mask
  407. *
  408. * Unpack @xfer_mask into @pio_mask, @mwdma_mask and @udma_mask.
  409. * Any NULL distination masks will be ignored.
  410. */
  411. void ata_unpack_xfermask(unsigned long xfer_mask, unsigned long *pio_mask,
  412. unsigned long *mwdma_mask, unsigned long *udma_mask)
  413. {
  414. if (pio_mask)
  415. *pio_mask = (xfer_mask & ATA_MASK_PIO) >> ATA_SHIFT_PIO;
  416. if (mwdma_mask)
  417. *mwdma_mask = (xfer_mask & ATA_MASK_MWDMA) >> ATA_SHIFT_MWDMA;
  418. if (udma_mask)
  419. *udma_mask = (xfer_mask & ATA_MASK_UDMA) >> ATA_SHIFT_UDMA;
  420. }
  421. static const struct ata_xfer_ent {
  422. int shift, bits;
  423. u8 base;
  424. } ata_xfer_tbl[] = {
  425. { ATA_SHIFT_PIO, ATA_NR_PIO_MODES, XFER_PIO_0 },
  426. { ATA_SHIFT_MWDMA, ATA_NR_MWDMA_MODES, XFER_MW_DMA_0 },
  427. { ATA_SHIFT_UDMA, ATA_NR_UDMA_MODES, XFER_UDMA_0 },
  428. { -1, },
  429. };
  430. /**
  431. * ata_xfer_mask2mode - Find matching XFER_* for the given xfer_mask
  432. * @xfer_mask: xfer_mask of interest
  433. *
  434. * Return matching XFER_* value for @xfer_mask. Only the highest
  435. * bit of @xfer_mask is considered.
  436. *
  437. * LOCKING:
  438. * None.
  439. *
  440. * RETURNS:
  441. * Matching XFER_* value, 0xff if no match found.
  442. */
  443. u8 ata_xfer_mask2mode(unsigned long xfer_mask)
  444. {
  445. int highbit = fls(xfer_mask) - 1;
  446. const struct ata_xfer_ent *ent;
  447. for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
  448. if (highbit >= ent->shift && highbit < ent->shift + ent->bits)
  449. return ent->base + highbit - ent->shift;
  450. return 0xff;
  451. }
  452. /**
  453. * ata_xfer_mode2mask - Find matching xfer_mask for XFER_*
  454. * @xfer_mode: XFER_* of interest
  455. *
  456. * Return matching xfer_mask for @xfer_mode.
  457. *
  458. * LOCKING:
  459. * None.
  460. *
  461. * RETURNS:
  462. * Matching xfer_mask, 0 if no match found.
  463. */
  464. unsigned long ata_xfer_mode2mask(u8 xfer_mode)
  465. {
  466. const struct ata_xfer_ent *ent;
  467. for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
  468. if (xfer_mode >= ent->base && xfer_mode < ent->base + ent->bits)
  469. return ((2 << (ent->shift + xfer_mode - ent->base)) - 1)
  470. & ~((1 << ent->shift) - 1);
  471. return 0;
  472. }
  473. /**
  474. * ata_xfer_mode2shift - Find matching xfer_shift for XFER_*
  475. * @xfer_mode: XFER_* of interest
  476. *
  477. * Return matching xfer_shift for @xfer_mode.
  478. *
  479. * LOCKING:
  480. * None.
  481. *
  482. * RETURNS:
  483. * Matching xfer_shift, -1 if no match found.
  484. */
  485. int ata_xfer_mode2shift(unsigned long xfer_mode)
  486. {
  487. const struct ata_xfer_ent *ent;
  488. for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
  489. if (xfer_mode >= ent->base && xfer_mode < ent->base + ent->bits)
  490. return ent->shift;
  491. return -1;
  492. }
  493. /**
  494. * ata_mode_string - convert xfer_mask to string
  495. * @xfer_mask: mask of bits supported; only highest bit counts.
  496. *
  497. * Determine string which represents the highest speed
  498. * (highest bit in @modemask).
  499. *
  500. * LOCKING:
  501. * None.
  502. *
  503. * RETURNS:
  504. * Constant C string representing highest speed listed in
  505. * @mode_mask, or the constant C string "<n/a>".
  506. */
  507. const char *ata_mode_string(unsigned long xfer_mask)
  508. {
  509. static const char * const xfer_mode_str[] = {
  510. "PIO0",
  511. "PIO1",
  512. "PIO2",
  513. "PIO3",
  514. "PIO4",
  515. "PIO5",
  516. "PIO6",
  517. "MWDMA0",
  518. "MWDMA1",
  519. "MWDMA2",
  520. "MWDMA3",
  521. "MWDMA4",
  522. "UDMA/16",
  523. "UDMA/25",
  524. "UDMA/33",
  525. "UDMA/44",
  526. "UDMA/66",
  527. "UDMA/100",
  528. "UDMA/133",
  529. "UDMA7",
  530. };
  531. int highbit;
  532. highbit = fls(xfer_mask) - 1;
  533. if (highbit >= 0 && highbit < ARRAY_SIZE(xfer_mode_str))
  534. return xfer_mode_str[highbit];
  535. return "<n/a>";
  536. }
  537. static const char *sata_spd_string(unsigned int spd)
  538. {
  539. static const char * const spd_str[] = {
  540. "1.5 Gbps",
  541. "3.0 Gbps",
  542. };
  543. if (spd == 0 || (spd - 1) >= ARRAY_SIZE(spd_str))
  544. return "<unknown>";
  545. return spd_str[spd - 1];
  546. }
  547. void ata_dev_disable(struct ata_device *dev)
  548. {
  549. if (ata_dev_enabled(dev)) {
  550. if (ata_msg_drv(dev->link->ap))
  551. ata_dev_printk(dev, KERN_WARNING, "disabled\n");
  552. ata_acpi_on_disable(dev);
  553. ata_down_xfermask_limit(dev, ATA_DNXFER_FORCE_PIO0 |
  554. ATA_DNXFER_QUIET);
  555. dev->class++;
  556. }
  557. }
  558. static int ata_dev_set_dipm(struct ata_device *dev, enum link_pm policy)
  559. {
  560. struct ata_link *link = dev->link;
  561. struct ata_port *ap = link->ap;
  562. u32 scontrol;
  563. unsigned int err_mask;
  564. int rc;
  565. /*
  566. * disallow DIPM for drivers which haven't set
  567. * ATA_FLAG_IPM. This is because when DIPM is enabled,
  568. * phy ready will be set in the interrupt status on
  569. * state changes, which will cause some drivers to
  570. * think there are errors - additionally drivers will
  571. * need to disable hot plug.
  572. */
  573. if (!(ap->flags & ATA_FLAG_IPM) || !ata_dev_enabled(dev)) {
  574. ap->pm_policy = NOT_AVAILABLE;
  575. return -EINVAL;
  576. }
  577. /*
  578. * For DIPM, we will only enable it for the
  579. * min_power setting.
  580. *
  581. * Why? Because Disks are too stupid to know that
  582. * If the host rejects a request to go to SLUMBER
  583. * they should retry at PARTIAL, and instead it
  584. * just would give up. So, for medium_power to
  585. * work at all, we need to only allow HIPM.
  586. */
  587. rc = sata_scr_read(link, SCR_CONTROL, &scontrol);
  588. if (rc)
  589. return rc;
  590. switch (policy) {
  591. case MIN_POWER:
  592. /* no restrictions on IPM transitions */
  593. scontrol &= ~(0x3 << 8);
  594. rc = sata_scr_write(link, SCR_CONTROL, scontrol);
  595. if (rc)
  596. return rc;
  597. /* enable DIPM */
  598. if (dev->flags & ATA_DFLAG_DIPM)
  599. err_mask = ata_dev_set_feature(dev,
  600. SETFEATURES_SATA_ENABLE, SATA_DIPM);
  601. break;
  602. case MEDIUM_POWER:
  603. /* allow IPM to PARTIAL */
  604. scontrol &= ~(0x1 << 8);
  605. scontrol |= (0x2 << 8);
  606. rc = sata_scr_write(link, SCR_CONTROL, scontrol);
  607. if (rc)
  608. return rc;
  609. /*
  610. * we don't have to disable DIPM since IPM flags
  611. * disallow transitions to SLUMBER, which effectively
  612. * disable DIPM if it does not support PARTIAL
  613. */
  614. break;
  615. case NOT_AVAILABLE:
  616. case MAX_PERFORMANCE:
  617. /* disable all IPM transitions */
  618. scontrol |= (0x3 << 8);
  619. rc = sata_scr_write(link, SCR_CONTROL, scontrol);
  620. if (rc)
  621. return rc;
  622. /*
  623. * we don't have to disable DIPM since IPM flags
  624. * disallow all transitions which effectively
  625. * disable DIPM anyway.
  626. */
  627. break;
  628. }
  629. /* FIXME: handle SET FEATURES failure */
  630. (void) err_mask;
  631. return 0;
  632. }
  633. /**
  634. * ata_dev_enable_pm - enable SATA interface power management
  635. * @dev: device to enable power management
  636. * @policy: the link power management policy
  637. *
  638. * Enable SATA Interface power management. This will enable
  639. * Device Interface Power Management (DIPM) for min_power
  640. * policy, and then call driver specific callbacks for
  641. * enabling Host Initiated Power management.
  642. *
  643. * Locking: Caller.
  644. * Returns: -EINVAL if IPM is not supported, 0 otherwise.
  645. */
  646. void ata_dev_enable_pm(struct ata_device *dev, enum link_pm policy)
  647. {
  648. int rc = 0;
  649. struct ata_port *ap = dev->link->ap;
  650. /* set HIPM first, then DIPM */
  651. if (ap->ops->enable_pm)
  652. rc = ap->ops->enable_pm(ap, policy);
  653. if (rc)
  654. goto enable_pm_out;
  655. rc = ata_dev_set_dipm(dev, policy);
  656. enable_pm_out:
  657. if (rc)
  658. ap->pm_policy = MAX_PERFORMANCE;
  659. else
  660. ap->pm_policy = policy;
  661. return /* rc */; /* hopefully we can use 'rc' eventually */
  662. }
  663. #ifdef CONFIG_PM
  664. /**
  665. * ata_dev_disable_pm - disable SATA interface power management
  666. * @dev: device to disable power management
  667. *
  668. * Disable SATA Interface power management. This will disable
  669. * Device Interface Power Management (DIPM) without changing
  670. * policy, call driver specific callbacks for disabling Host
  671. * Initiated Power management.
  672. *
  673. * Locking: Caller.
  674. * Returns: void
  675. */
  676. static void ata_dev_disable_pm(struct ata_device *dev)
  677. {
  678. struct ata_port *ap = dev->link->ap;
  679. ata_dev_set_dipm(dev, MAX_PERFORMANCE);
  680. if (ap->ops->disable_pm)
  681. ap->ops->disable_pm(ap);
  682. }
  683. #endif /* CONFIG_PM */
  684. void ata_lpm_schedule(struct ata_port *ap, enum link_pm policy)
  685. {
  686. ap->pm_policy = policy;
  687. ap->link.eh_info.action |= ATA_EHI_LPM;
  688. ap->link.eh_info.flags |= ATA_EHI_NO_AUTOPSY;
  689. ata_port_schedule_eh(ap);
  690. }
  691. #ifdef CONFIG_PM
  692. static void ata_lpm_enable(struct ata_host *host)
  693. {
  694. struct ata_link *link;
  695. struct ata_port *ap;
  696. struct ata_device *dev;
  697. int i;
  698. for (i = 0; i < host->n_ports; i++) {
  699. ap = host->ports[i];
  700. ata_port_for_each_link(link, ap) {
  701. ata_link_for_each_dev(dev, link)
  702. ata_dev_disable_pm(dev);
  703. }
  704. }
  705. }
  706. static void ata_lpm_disable(struct ata_host *host)
  707. {
  708. int i;
  709. for (i = 0; i < host->n_ports; i++) {
  710. struct ata_port *ap = host->ports[i];
  711. ata_lpm_schedule(ap, ap->pm_policy);
  712. }
  713. }
  714. #endif /* CONFIG_PM */
  715. /**
  716. * ata_devchk - PATA device presence detection
  717. * @ap: ATA channel to examine
  718. * @device: Device to examine (starting at zero)
  719. *
  720. * This technique was originally described in
  721. * Hale Landis's ATADRVR (www.ata-atapi.com), and
  722. * later found its way into the ATA/ATAPI spec.
  723. *
  724. * Write a pattern to the ATA shadow registers,
  725. * and if a device is present, it will respond by
  726. * correctly storing and echoing back the
  727. * ATA shadow register contents.
  728. *
  729. * LOCKING:
  730. * caller.
  731. */
  732. static unsigned int ata_devchk(struct ata_port *ap, unsigned int device)
  733. {
  734. struct ata_ioports *ioaddr = &ap->ioaddr;
  735. u8 nsect, lbal;
  736. ap->ops->dev_select(ap, device);
  737. iowrite8(0x55, ioaddr->nsect_addr);
  738. iowrite8(0xaa, ioaddr->lbal_addr);
  739. iowrite8(0xaa, ioaddr->nsect_addr);
  740. iowrite8(0x55, ioaddr->lbal_addr);
  741. iowrite8(0x55, ioaddr->nsect_addr);
  742. iowrite8(0xaa, ioaddr->lbal_addr);
  743. nsect = ioread8(ioaddr->nsect_addr);
  744. lbal = ioread8(ioaddr->lbal_addr);
  745. if ((nsect == 0x55) && (lbal == 0xaa))
  746. return 1; /* we found a device */
  747. return 0; /* nothing found */
  748. }
  749. /**
  750. * ata_dev_classify - determine device type based on ATA-spec signature
  751. * @tf: ATA taskfile register set for device to be identified
  752. *
  753. * Determine from taskfile register contents whether a device is
  754. * ATA or ATAPI, as per "Signature and persistence" section
  755. * of ATA/PI spec (volume 1, sect 5.14).
  756. *
  757. * LOCKING:
  758. * None.
  759. *
  760. * RETURNS:
  761. * Device type, %ATA_DEV_ATA, %ATA_DEV_ATAPI, %ATA_DEV_PMP or
  762. * %ATA_DEV_UNKNOWN the event of failure.
  763. */
  764. unsigned int ata_dev_classify(const struct ata_taskfile *tf)
  765. {
  766. /* Apple's open source Darwin code hints that some devices only
  767. * put a proper signature into the LBA mid/high registers,
  768. * So, we only check those. It's sufficient for uniqueness.
  769. *
  770. * ATA/ATAPI-7 (d1532v1r1: Feb. 19, 2003) specified separate
  771. * signatures for ATA and ATAPI devices attached on SerialATA,
  772. * 0x3c/0xc3 and 0x69/0x96 respectively. However, SerialATA
  773. * spec has never mentioned about using different signatures
  774. * for ATA/ATAPI devices. Then, Serial ATA II: Port
  775. * Multiplier specification began to use 0x69/0x96 to identify
  776. * port multpliers and 0x3c/0xc3 to identify SEMB device.
  777. * ATA/ATAPI-7 dropped descriptions about 0x3c/0xc3 and
  778. * 0x69/0x96 shortly and described them as reserved for
  779. * SerialATA.
  780. *
  781. * We follow the current spec and consider that 0x69/0x96
  782. * identifies a port multiplier and 0x3c/0xc3 a SEMB device.
  783. */
  784. if ((tf->lbam == 0) && (tf->lbah == 0)) {
  785. DPRINTK("found ATA device by sig\n");
  786. return ATA_DEV_ATA;
  787. }
  788. if ((tf->lbam == 0x14) && (tf->lbah == 0xeb)) {
  789. DPRINTK("found ATAPI device by sig\n");
  790. return ATA_DEV_ATAPI;
  791. }
  792. if ((tf->lbam == 0x69) && (tf->lbah == 0x96)) {
  793. DPRINTK("found PMP device by sig\n");
  794. return ATA_DEV_PMP;
  795. }
  796. if ((tf->lbam == 0x3c) && (tf->lbah == 0xc3)) {
  797. printk(KERN_INFO "ata: SEMB device ignored\n");
  798. return ATA_DEV_SEMB_UNSUP; /* not yet */
  799. }
  800. DPRINTK("unknown device\n");
  801. return ATA_DEV_UNKNOWN;
  802. }
  803. /**
  804. * ata_dev_try_classify - Parse returned ATA device signature
  805. * @dev: ATA device to classify (starting at zero)
  806. * @present: device seems present
  807. * @r_err: Value of error register on completion
  808. *
  809. * After an event -- SRST, E.D.D., or SATA COMRESET -- occurs,
  810. * an ATA/ATAPI-defined set of values is placed in the ATA
  811. * shadow registers, indicating the results of device detection
  812. * and diagnostics.
  813. *
  814. * Select the ATA device, and read the values from the ATA shadow
  815. * registers. Then parse according to the Error register value,
  816. * and the spec-defined values examined by ata_dev_classify().
  817. *
  818. * LOCKING:
  819. * caller.
  820. *
  821. * RETURNS:
  822. * Device type - %ATA_DEV_ATA, %ATA_DEV_ATAPI or %ATA_DEV_NONE.
  823. */
  824. unsigned int ata_dev_try_classify(struct ata_device *dev, int present,
  825. u8 *r_err)
  826. {
  827. struct ata_port *ap = dev->link->ap;
  828. struct ata_taskfile tf;
  829. unsigned int class;
  830. u8 err;
  831. ap->ops->dev_select(ap, dev->devno);
  832. memset(&tf, 0, sizeof(tf));
  833. ap->ops->tf_read(ap, &tf);
  834. err = tf.feature;
  835. if (r_err)
  836. *r_err = err;
  837. /* see if device passed diags: continue and warn later */
  838. if (err == 0)
  839. /* diagnostic fail : do nothing _YET_ */
  840. dev->horkage |= ATA_HORKAGE_DIAGNOSTIC;
  841. else if (err == 1)
  842. /* do nothing */ ;
  843. else if ((dev->devno == 0) && (err == 0x81))
  844. /* do nothing */ ;
  845. else
  846. return ATA_DEV_NONE;
  847. /* determine if device is ATA or ATAPI */
  848. class = ata_dev_classify(&tf);
  849. if (class == ATA_DEV_UNKNOWN) {
  850. /* If the device failed diagnostic, it's likely to
  851. * have reported incorrect device signature too.
  852. * Assume ATA device if the device seems present but
  853. * device signature is invalid with diagnostic
  854. * failure.
  855. */
  856. if (present && (dev->horkage & ATA_HORKAGE_DIAGNOSTIC))
  857. class = ATA_DEV_ATA;
  858. else
  859. class = ATA_DEV_NONE;
  860. } else if ((class == ATA_DEV_ATA) && (ata_chk_status(ap) == 0))
  861. class = ATA_DEV_NONE;
  862. return class;
  863. }
  864. /**
  865. * ata_id_string - Convert IDENTIFY DEVICE page into string
  866. * @id: IDENTIFY DEVICE results we will examine
  867. * @s: string into which data is output
  868. * @ofs: offset into identify device page
  869. * @len: length of string to return. must be an even number.
  870. *
  871. * The strings in the IDENTIFY DEVICE page are broken up into
  872. * 16-bit chunks. Run through the string, and output each
  873. * 8-bit chunk linearly, regardless of platform.
  874. *
  875. * LOCKING:
  876. * caller.
  877. */
  878. void ata_id_string(const u16 *id, unsigned char *s,
  879. unsigned int ofs, unsigned int len)
  880. {
  881. unsigned int c;
  882. while (len > 0) {
  883. c = id[ofs] >> 8;
  884. *s = c;
  885. s++;
  886. c = id[ofs] & 0xff;
  887. *s = c;
  888. s++;
  889. ofs++;
  890. len -= 2;
  891. }
  892. }
  893. /**
  894. * ata_id_c_string - Convert IDENTIFY DEVICE page into C string
  895. * @id: IDENTIFY DEVICE results we will examine
  896. * @s: string into which data is output
  897. * @ofs: offset into identify device page
  898. * @len: length of string to return. must be an odd number.
  899. *
  900. * This function is identical to ata_id_string except that it
  901. * trims trailing spaces and terminates the resulting string with
  902. * null. @len must be actual maximum length (even number) + 1.
  903. *
  904. * LOCKING:
  905. * caller.
  906. */
  907. void ata_id_c_string(const u16 *id, unsigned char *s,
  908. unsigned int ofs, unsigned int len)
  909. {
  910. unsigned char *p;
  911. WARN_ON(!(len & 1));
  912. ata_id_string(id, s, ofs, len - 1);
  913. p = s + strnlen(s, len - 1);
  914. while (p > s && p[-1] == ' ')
  915. p--;
  916. *p = '\0';
  917. }
  918. static u64 ata_id_n_sectors(const u16 *id)
  919. {
  920. if (ata_id_has_lba(id)) {
  921. if (ata_id_has_lba48(id))
  922. return ata_id_u64(id, 100);
  923. else
  924. return ata_id_u32(id, 60);
  925. } else {
  926. if (ata_id_current_chs_valid(id))
  927. return ata_id_u32(id, 57);
  928. else
  929. return id[1] * id[3] * id[6];
  930. }
  931. }
  932. static u64 ata_tf_to_lba48(struct ata_taskfile *tf)
  933. {
  934. u64 sectors = 0;
  935. sectors |= ((u64)(tf->hob_lbah & 0xff)) << 40;
  936. sectors |= ((u64)(tf->hob_lbam & 0xff)) << 32;
  937. sectors |= (tf->hob_lbal & 0xff) << 24;
  938. sectors |= (tf->lbah & 0xff) << 16;
  939. sectors |= (tf->lbam & 0xff) << 8;
  940. sectors |= (tf->lbal & 0xff);
  941. return ++sectors;
  942. }
  943. static u64 ata_tf_to_lba(struct ata_taskfile *tf)
  944. {
  945. u64 sectors = 0;
  946. sectors |= (tf->device & 0x0f) << 24;
  947. sectors |= (tf->lbah & 0xff) << 16;
  948. sectors |= (tf->lbam & 0xff) << 8;
  949. sectors |= (tf->lbal & 0xff);
  950. return ++sectors;
  951. }
  952. /**
  953. * ata_read_native_max_address - Read native max address
  954. * @dev: target device
  955. * @max_sectors: out parameter for the result native max address
  956. *
  957. * Perform an LBA48 or LBA28 native size query upon the device in
  958. * question.
  959. *
  960. * RETURNS:
  961. * 0 on success, -EACCES if command is aborted by the drive.
  962. * -EIO on other errors.
  963. */
  964. static int ata_read_native_max_address(struct ata_device *dev, u64 *max_sectors)
  965. {
  966. unsigned int err_mask;
  967. struct ata_taskfile tf;
  968. int lba48 = ata_id_has_lba48(dev->id);
  969. ata_tf_init(dev, &tf);
  970. /* always clear all address registers */
  971. tf.flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
  972. if (lba48) {
  973. tf.command = ATA_CMD_READ_NATIVE_MAX_EXT;
  974. tf.flags |= ATA_TFLAG_LBA48;
  975. } else
  976. tf.command = ATA_CMD_READ_NATIVE_MAX;
  977. tf.protocol |= ATA_PROT_NODATA;
  978. tf.device |= ATA_LBA;
  979. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  980. if (err_mask) {
  981. ata_dev_printk(dev, KERN_WARNING, "failed to read native "
  982. "max address (err_mask=0x%x)\n", err_mask);
  983. if (err_mask == AC_ERR_DEV && (tf.feature & ATA_ABORTED))
  984. return -EACCES;
  985. return -EIO;
  986. }
  987. if (lba48)
  988. *max_sectors = ata_tf_to_lba48(&tf);
  989. else
  990. *max_sectors = ata_tf_to_lba(&tf);
  991. if (dev->horkage & ATA_HORKAGE_HPA_SIZE)
  992. (*max_sectors)--;
  993. return 0;
  994. }
  995. /**
  996. * ata_set_max_sectors - Set max sectors
  997. * @dev: target device
  998. * @new_sectors: new max sectors value to set for the device
  999. *
  1000. * Set max sectors of @dev to @new_sectors.
  1001. *
  1002. * RETURNS:
  1003. * 0 on success, -EACCES if command is aborted or denied (due to
  1004. * previous non-volatile SET_MAX) by the drive. -EIO on other
  1005. * errors.
  1006. */
  1007. static int ata_set_max_sectors(struct ata_device *dev, u64 new_sectors)
  1008. {
  1009. unsigned int err_mask;
  1010. struct ata_taskfile tf;
  1011. int lba48 = ata_id_has_lba48(dev->id);
  1012. new_sectors--;
  1013. ata_tf_init(dev, &tf);
  1014. tf.flags |= ATA_TFLAG_DEVICE | ATA_TFLAG_ISADDR;
  1015. if (lba48) {
  1016. tf.command = ATA_CMD_SET_MAX_EXT;
  1017. tf.flags |= ATA_TFLAG_LBA48;
  1018. tf.hob_lbal = (new_sectors >> 24) & 0xff;
  1019. tf.hob_lbam = (new_sectors >> 32) & 0xff;
  1020. tf.hob_lbah = (new_sectors >> 40) & 0xff;
  1021. } else {
  1022. tf.command = ATA_CMD_SET_MAX;
  1023. tf.device |= (new_sectors >> 24) & 0xf;
  1024. }
  1025. tf.protocol |= ATA_PROT_NODATA;
  1026. tf.device |= ATA_LBA;
  1027. tf.lbal = (new_sectors >> 0) & 0xff;
  1028. tf.lbam = (new_sectors >> 8) & 0xff;
  1029. tf.lbah = (new_sectors >> 16) & 0xff;
  1030. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  1031. if (err_mask) {
  1032. ata_dev_printk(dev, KERN_WARNING, "failed to set "
  1033. "max address (err_mask=0x%x)\n", err_mask);
  1034. if (err_mask == AC_ERR_DEV &&
  1035. (tf.feature & (ATA_ABORTED | ATA_IDNF)))
  1036. return -EACCES;
  1037. return -EIO;
  1038. }
  1039. return 0;
  1040. }
  1041. /**
  1042. * ata_hpa_resize - Resize a device with an HPA set
  1043. * @dev: Device to resize
  1044. *
  1045. * Read the size of an LBA28 or LBA48 disk with HPA features and resize
  1046. * it if required to the full size of the media. The caller must check
  1047. * the drive has the HPA feature set enabled.
  1048. *
  1049. * RETURNS:
  1050. * 0 on success, -errno on failure.
  1051. */
  1052. static int ata_hpa_resize(struct ata_device *dev)
  1053. {
  1054. struct ata_eh_context *ehc = &dev->link->eh_context;
  1055. int print_info = ehc->i.flags & ATA_EHI_PRINTINFO;
  1056. u64 sectors = ata_id_n_sectors(dev->id);
  1057. u64 native_sectors;
  1058. int rc;
  1059. /* do we need to do it? */
  1060. if (dev->class != ATA_DEV_ATA ||
  1061. !ata_id_has_lba(dev->id) || !ata_id_hpa_enabled(dev->id) ||
  1062. (dev->horkage & ATA_HORKAGE_BROKEN_HPA))
  1063. return 0;
  1064. /* read native max address */
  1065. rc = ata_read_native_max_address(dev, &native_sectors);
  1066. if (rc) {
  1067. /* If HPA isn't going to be unlocked, skip HPA
  1068. * resizing from the next try.
  1069. */
  1070. if (!ata_ignore_hpa) {
  1071. ata_dev_printk(dev, KERN_WARNING, "HPA support seems "
  1072. "broken, will skip HPA handling\n");
  1073. dev->horkage |= ATA_HORKAGE_BROKEN_HPA;
  1074. /* we can continue if device aborted the command */
  1075. if (rc == -EACCES)
  1076. rc = 0;
  1077. }
  1078. return rc;
  1079. }
  1080. /* nothing to do? */
  1081. if (native_sectors <= sectors || !ata_ignore_hpa) {
  1082. if (!print_info || native_sectors == sectors)
  1083. return 0;
  1084. if (native_sectors > sectors)
  1085. ata_dev_printk(dev, KERN_INFO,
  1086. "HPA detected: current %llu, native %llu\n",
  1087. (unsigned long long)sectors,
  1088. (unsigned long long)native_sectors);
  1089. else if (native_sectors < sectors)
  1090. ata_dev_printk(dev, KERN_WARNING,
  1091. "native sectors (%llu) is smaller than "
  1092. "sectors (%llu)\n",
  1093. (unsigned long long)native_sectors,
  1094. (unsigned long long)sectors);
  1095. return 0;
  1096. }
  1097. /* let's unlock HPA */
  1098. rc = ata_set_max_sectors(dev, native_sectors);
  1099. if (rc == -EACCES) {
  1100. /* if device aborted the command, skip HPA resizing */
  1101. ata_dev_printk(dev, KERN_WARNING, "device aborted resize "
  1102. "(%llu -> %llu), skipping HPA handling\n",
  1103. (unsigned long long)sectors,
  1104. (unsigned long long)native_sectors);
  1105. dev->horkage |= ATA_HORKAGE_BROKEN_HPA;
  1106. return 0;
  1107. } else if (rc)
  1108. return rc;
  1109. /* re-read IDENTIFY data */
  1110. rc = ata_dev_reread_id(dev, 0);
  1111. if (rc) {
  1112. ata_dev_printk(dev, KERN_ERR, "failed to re-read IDENTIFY "
  1113. "data after HPA resizing\n");
  1114. return rc;
  1115. }
  1116. if (print_info) {
  1117. u64 new_sectors = ata_id_n_sectors(dev->id);
  1118. ata_dev_printk(dev, KERN_INFO,
  1119. "HPA unlocked: %llu -> %llu, native %llu\n",
  1120. (unsigned long long)sectors,
  1121. (unsigned long long)new_sectors,
  1122. (unsigned long long)native_sectors);
  1123. }
  1124. return 0;
  1125. }
  1126. /**
  1127. * ata_noop_dev_select - Select device 0/1 on ATA bus
  1128. * @ap: ATA channel to manipulate
  1129. * @device: ATA device (numbered from zero) to select
  1130. *
  1131. * This function performs no actual function.
  1132. *
  1133. * May be used as the dev_select() entry in ata_port_operations.
  1134. *
  1135. * LOCKING:
  1136. * caller.
  1137. */
  1138. void ata_noop_dev_select(struct ata_port *ap, unsigned int device)
  1139. {
  1140. }
  1141. /**
  1142. * ata_std_dev_select - Select device 0/1 on ATA bus
  1143. * @ap: ATA channel to manipulate
  1144. * @device: ATA device (numbered from zero) to select
  1145. *
  1146. * Use the method defined in the ATA specification to
  1147. * make either device 0, or device 1, active on the
  1148. * ATA channel. Works with both PIO and MMIO.
  1149. *
  1150. * May be used as the dev_select() entry in ata_port_operations.
  1151. *
  1152. * LOCKING:
  1153. * caller.
  1154. */
  1155. void ata_std_dev_select(struct ata_port *ap, unsigned int device)
  1156. {
  1157. u8 tmp;
  1158. if (device == 0)
  1159. tmp = ATA_DEVICE_OBS;
  1160. else
  1161. tmp = ATA_DEVICE_OBS | ATA_DEV1;
  1162. iowrite8(tmp, ap->ioaddr.device_addr);
  1163. ata_pause(ap); /* needed; also flushes, for mmio */
  1164. }
  1165. /**
  1166. * ata_dev_select - Select device 0/1 on ATA bus
  1167. * @ap: ATA channel to manipulate
  1168. * @device: ATA device (numbered from zero) to select
  1169. * @wait: non-zero to wait for Status register BSY bit to clear
  1170. * @can_sleep: non-zero if context allows sleeping
  1171. *
  1172. * Use the method defined in the ATA specification to
  1173. * make either device 0, or device 1, active on the
  1174. * ATA channel.
  1175. *
  1176. * This is a high-level version of ata_std_dev_select(),
  1177. * which additionally provides the services of inserting
  1178. * the proper pauses and status polling, where needed.
  1179. *
  1180. * LOCKING:
  1181. * caller.
  1182. */
  1183. void ata_dev_select(struct ata_port *ap, unsigned int device,
  1184. unsigned int wait, unsigned int can_sleep)
  1185. {
  1186. if (ata_msg_probe(ap))
  1187. ata_port_printk(ap, KERN_INFO, "ata_dev_select: ENTER, "
  1188. "device %u, wait %u\n", device, wait);
  1189. if (wait)
  1190. ata_wait_idle(ap);
  1191. ap->ops->dev_select(ap, device);
  1192. if (wait) {
  1193. if (can_sleep && ap->link.device[device].class == ATA_DEV_ATAPI)
  1194. msleep(150);
  1195. ata_wait_idle(ap);
  1196. }
  1197. }
  1198. /**
  1199. * ata_dump_id - IDENTIFY DEVICE info debugging output
  1200. * @id: IDENTIFY DEVICE page to dump
  1201. *
  1202. * Dump selected 16-bit words from the given IDENTIFY DEVICE
  1203. * page.
  1204. *
  1205. * LOCKING:
  1206. * caller.
  1207. */
  1208. static inline void ata_dump_id(const u16 *id)
  1209. {
  1210. DPRINTK("49==0x%04x "
  1211. "53==0x%04x "
  1212. "63==0x%04x "
  1213. "64==0x%04x "
  1214. "75==0x%04x \n",
  1215. id[49],
  1216. id[53],
  1217. id[63],
  1218. id[64],
  1219. id[75]);
  1220. DPRINTK("80==0x%04x "
  1221. "81==0x%04x "
  1222. "82==0x%04x "
  1223. "83==0x%04x "
  1224. "84==0x%04x \n",
  1225. id[80],
  1226. id[81],
  1227. id[82],
  1228. id[83],
  1229. id[84]);
  1230. DPRINTK("88==0x%04x "
  1231. "93==0x%04x\n",
  1232. id[88],
  1233. id[93]);
  1234. }
  1235. /**
  1236. * ata_id_xfermask - Compute xfermask from the given IDENTIFY data
  1237. * @id: IDENTIFY data to compute xfer mask from
  1238. *
  1239. * Compute the xfermask for this device. This is not as trivial
  1240. * as it seems if we must consider early devices correctly.
  1241. *
  1242. * FIXME: pre IDE drive timing (do we care ?).
  1243. *
  1244. * LOCKING:
  1245. * None.
  1246. *
  1247. * RETURNS:
  1248. * Computed xfermask
  1249. */
  1250. unsigned long ata_id_xfermask(const u16 *id)
  1251. {
  1252. unsigned long pio_mask, mwdma_mask, udma_mask;
  1253. /* Usual case. Word 53 indicates word 64 is valid */
  1254. if (id[ATA_ID_FIELD_VALID] & (1 << 1)) {
  1255. pio_mask = id[ATA_ID_PIO_MODES] & 0x03;
  1256. pio_mask <<= 3;
  1257. pio_mask |= 0x7;
  1258. } else {
  1259. /* If word 64 isn't valid then Word 51 high byte holds
  1260. * the PIO timing number for the maximum. Turn it into
  1261. * a mask.
  1262. */
  1263. u8 mode = (id[ATA_ID_OLD_PIO_MODES] >> 8) & 0xFF;
  1264. if (mode < 5) /* Valid PIO range */
  1265. pio_mask = (2 << mode) - 1;
  1266. else
  1267. pio_mask = 1;
  1268. /* But wait.. there's more. Design your standards by
  1269. * committee and you too can get a free iordy field to
  1270. * process. However its the speeds not the modes that
  1271. * are supported... Note drivers using the timing API
  1272. * will get this right anyway
  1273. */
  1274. }
  1275. mwdma_mask = id[ATA_ID_MWDMA_MODES] & 0x07;
  1276. if (ata_id_is_cfa(id)) {
  1277. /*
  1278. * Process compact flash extended modes
  1279. */
  1280. int pio = id[163] & 0x7;
  1281. int dma = (id[163] >> 3) & 7;
  1282. if (pio)
  1283. pio_mask |= (1 << 5);
  1284. if (pio > 1)
  1285. pio_mask |= (1 << 6);
  1286. if (dma)
  1287. mwdma_mask |= (1 << 3);
  1288. if (dma > 1)
  1289. mwdma_mask |= (1 << 4);
  1290. }
  1291. udma_mask = 0;
  1292. if (id[ATA_ID_FIELD_VALID] & (1 << 2))
  1293. udma_mask = id[ATA_ID_UDMA_MODES] & 0xff;
  1294. return ata_pack_xfermask(pio_mask, mwdma_mask, udma_mask);
  1295. }
  1296. /**
  1297. * ata_pio_queue_task - Queue port_task
  1298. * @ap: The ata_port to queue port_task for
  1299. * @fn: workqueue function to be scheduled
  1300. * @data: data for @fn to use
  1301. * @delay: delay time for workqueue function
  1302. *
  1303. * Schedule @fn(@data) for execution after @delay jiffies using
  1304. * port_task. There is one port_task per port and it's the
  1305. * user(low level driver)'s responsibility to make sure that only
  1306. * one task is active at any given time.
  1307. *
  1308. * libata core layer takes care of synchronization between
  1309. * port_task and EH. ata_pio_queue_task() may be ignored for EH
  1310. * synchronization.
  1311. *
  1312. * LOCKING:
  1313. * Inherited from caller.
  1314. */
  1315. static void ata_pio_queue_task(struct ata_port *ap, void *data,
  1316. unsigned long delay)
  1317. {
  1318. ap->port_task_data = data;
  1319. /* may fail if ata_port_flush_task() in progress */
  1320. queue_delayed_work(ata_wq, &ap->port_task, delay);
  1321. }
  1322. /**
  1323. * ata_port_flush_task - Flush port_task
  1324. * @ap: The ata_port to flush port_task for
  1325. *
  1326. * After this function completes, port_task is guranteed not to
  1327. * be running or scheduled.
  1328. *
  1329. * LOCKING:
  1330. * Kernel thread context (may sleep)
  1331. */
  1332. void ata_port_flush_task(struct ata_port *ap)
  1333. {
  1334. DPRINTK("ENTER\n");
  1335. cancel_rearming_delayed_work(&ap->port_task);
  1336. if (ata_msg_ctl(ap))
  1337. ata_port_printk(ap, KERN_DEBUG, "%s: EXIT\n", __FUNCTION__);
  1338. }
  1339. static void ata_qc_complete_internal(struct ata_queued_cmd *qc)
  1340. {
  1341. struct completion *waiting = qc->private_data;
  1342. complete(waiting);
  1343. }
  1344. /**
  1345. * ata_exec_internal_sg - execute libata internal command
  1346. * @dev: Device to which the command is sent
  1347. * @tf: Taskfile registers for the command and the result
  1348. * @cdb: CDB for packet command
  1349. * @dma_dir: Data tranfer direction of the command
  1350. * @sgl: sg list for the data buffer of the command
  1351. * @n_elem: Number of sg entries
  1352. * @timeout: Timeout in msecs (0 for default)
  1353. *
  1354. * Executes libata internal command with timeout. @tf contains
  1355. * command on entry and result on return. Timeout and error
  1356. * conditions are reported via return value. No recovery action
  1357. * is taken after a command times out. It's caller's duty to
  1358. * clean up after timeout.
  1359. *
  1360. * LOCKING:
  1361. * None. Should be called with kernel context, might sleep.
  1362. *
  1363. * RETURNS:
  1364. * Zero on success, AC_ERR_* mask on failure
  1365. */
  1366. unsigned ata_exec_internal_sg(struct ata_device *dev,
  1367. struct ata_taskfile *tf, const u8 *cdb,
  1368. int dma_dir, struct scatterlist *sgl,
  1369. unsigned int n_elem, unsigned long timeout)
  1370. {
  1371. struct ata_link *link = dev->link;
  1372. struct ata_port *ap = link->ap;
  1373. u8 command = tf->command;
  1374. struct ata_queued_cmd *qc;
  1375. unsigned int tag, preempted_tag;
  1376. u32 preempted_sactive, preempted_qc_active;
  1377. int preempted_nr_active_links;
  1378. DECLARE_COMPLETION_ONSTACK(wait);
  1379. unsigned long flags;
  1380. unsigned int err_mask;
  1381. int rc;
  1382. spin_lock_irqsave(ap->lock, flags);
  1383. /* no internal command while frozen */
  1384. if (ap->pflags & ATA_PFLAG_FROZEN) {
  1385. spin_unlock_irqrestore(ap->lock, flags);
  1386. return AC_ERR_SYSTEM;
  1387. }
  1388. /* initialize internal qc */
  1389. /* XXX: Tag 0 is used for drivers with legacy EH as some
  1390. * drivers choke if any other tag is given. This breaks
  1391. * ata_tag_internal() test for those drivers. Don't use new
  1392. * EH stuff without converting to it.
  1393. */
  1394. if (ap->ops->error_handler)
  1395. tag = ATA_TAG_INTERNAL;
  1396. else
  1397. tag = 0;
  1398. if (test_and_set_bit(tag, &ap->qc_allocated))
  1399. BUG();
  1400. qc = __ata_qc_from_tag(ap, tag);
  1401. qc->tag = tag;
  1402. qc->scsicmd = NULL;
  1403. qc->ap = ap;
  1404. qc->dev = dev;
  1405. ata_qc_reinit(qc);
  1406. preempted_tag = link->active_tag;
  1407. preempted_sactive = link->sactive;
  1408. preempted_qc_active = ap->qc_active;
  1409. preempted_nr_active_links = ap->nr_active_links;
  1410. link->active_tag = ATA_TAG_POISON;
  1411. link->sactive = 0;
  1412. ap->qc_active = 0;
  1413. ap->nr_active_links = 0;
  1414. /* prepare & issue qc */
  1415. qc->tf = *tf;
  1416. if (cdb)
  1417. memcpy(qc->cdb, cdb, ATAPI_CDB_LEN);
  1418. qc->flags |= ATA_QCFLAG_RESULT_TF;
  1419. qc->dma_dir = dma_dir;
  1420. if (dma_dir != DMA_NONE) {
  1421. unsigned int i, buflen = 0;
  1422. struct scatterlist *sg;
  1423. for_each_sg(sgl, sg, n_elem, i)
  1424. buflen += sg->length;
  1425. ata_sg_init(qc, sgl, n_elem);
  1426. qc->nbytes = buflen;
  1427. }
  1428. qc->private_data = &wait;
  1429. qc->complete_fn = ata_qc_complete_internal;
  1430. ata_qc_issue(qc);
  1431. spin_unlock_irqrestore(ap->lock, flags);
  1432. if (!timeout)
  1433. timeout = ata_probe_timeout * 1000 / HZ;
  1434. rc = wait_for_completion_timeout(&wait, msecs_to_jiffies(timeout));
  1435. ata_port_flush_task(ap);
  1436. if (!rc) {
  1437. spin_lock_irqsave(ap->lock, flags);
  1438. /* We're racing with irq here. If we lose, the
  1439. * following test prevents us from completing the qc
  1440. * twice. If we win, the port is frozen and will be
  1441. * cleaned up by ->post_internal_cmd().
  1442. */
  1443. if (qc->flags & ATA_QCFLAG_ACTIVE) {
  1444. qc->err_mask |= AC_ERR_TIMEOUT;
  1445. if (ap->ops->error_handler)
  1446. ata_port_freeze(ap);
  1447. else
  1448. ata_qc_complete(qc);
  1449. if (ata_msg_warn(ap))
  1450. ata_dev_printk(dev, KERN_WARNING,
  1451. "qc timeout (cmd 0x%x)\n", command);
  1452. }
  1453. spin_unlock_irqrestore(ap->lock, flags);
  1454. }
  1455. /* do post_internal_cmd */
  1456. if (ap->ops->post_internal_cmd)
  1457. ap->ops->post_internal_cmd(qc);
  1458. /* perform minimal error analysis */
  1459. if (qc->flags & ATA_QCFLAG_FAILED) {
  1460. if (qc->result_tf.command & (ATA_ERR | ATA_DF))
  1461. qc->err_mask |= AC_ERR_DEV;
  1462. if (!qc->err_mask)
  1463. qc->err_mask |= AC_ERR_OTHER;
  1464. if (qc->err_mask & ~AC_ERR_OTHER)
  1465. qc->err_mask &= ~AC_ERR_OTHER;
  1466. }
  1467. /* finish up */
  1468. spin_lock_irqsave(ap->lock, flags);
  1469. *tf = qc->result_tf;
  1470. err_mask = qc->err_mask;
  1471. ata_qc_free(qc);
  1472. link->active_tag = preempted_tag;
  1473. link->sactive = preempted_sactive;
  1474. ap->qc_active = preempted_qc_active;
  1475. ap->nr_active_links = preempted_nr_active_links;
  1476. /* XXX - Some LLDDs (sata_mv) disable port on command failure.
  1477. * Until those drivers are fixed, we detect the condition
  1478. * here, fail the command with AC_ERR_SYSTEM and reenable the
  1479. * port.
  1480. *
  1481. * Note that this doesn't change any behavior as internal
  1482. * command failure results in disabling the device in the
  1483. * higher layer for LLDDs without new reset/EH callbacks.
  1484. *
  1485. * Kill the following code as soon as those drivers are fixed.
  1486. */
  1487. if (ap->flags & ATA_FLAG_DISABLED) {
  1488. err_mask |= AC_ERR_SYSTEM;
  1489. ata_port_probe(ap);
  1490. }
  1491. spin_unlock_irqrestore(ap->lock, flags);
  1492. return err_mask;
  1493. }
  1494. /**
  1495. * ata_exec_internal - execute libata internal command
  1496. * @dev: Device to which the command is sent
  1497. * @tf: Taskfile registers for the command and the result
  1498. * @cdb: CDB for packet command
  1499. * @dma_dir: Data tranfer direction of the command
  1500. * @buf: Data buffer of the command
  1501. * @buflen: Length of data buffer
  1502. * @timeout: Timeout in msecs (0 for default)
  1503. *
  1504. * Wrapper around ata_exec_internal_sg() which takes simple
  1505. * buffer instead of sg list.
  1506. *
  1507. * LOCKING:
  1508. * None. Should be called with kernel context, might sleep.
  1509. *
  1510. * RETURNS:
  1511. * Zero on success, AC_ERR_* mask on failure
  1512. */
  1513. unsigned ata_exec_internal(struct ata_device *dev,
  1514. struct ata_taskfile *tf, const u8 *cdb,
  1515. int dma_dir, void *buf, unsigned int buflen,
  1516. unsigned long timeout)
  1517. {
  1518. struct scatterlist *psg = NULL, sg;
  1519. unsigned int n_elem = 0;
  1520. if (dma_dir != DMA_NONE) {
  1521. WARN_ON(!buf);
  1522. sg_init_one(&sg, buf, buflen);
  1523. psg = &sg;
  1524. n_elem++;
  1525. }
  1526. return ata_exec_internal_sg(dev, tf, cdb, dma_dir, psg, n_elem,
  1527. timeout);
  1528. }
  1529. /**
  1530. * ata_do_simple_cmd - execute simple internal command
  1531. * @dev: Device to which the command is sent
  1532. * @cmd: Opcode to execute
  1533. *
  1534. * Execute a 'simple' command, that only consists of the opcode
  1535. * 'cmd' itself, without filling any other registers
  1536. *
  1537. * LOCKING:
  1538. * Kernel thread context (may sleep).
  1539. *
  1540. * RETURNS:
  1541. * Zero on success, AC_ERR_* mask on failure
  1542. */
  1543. unsigned int ata_do_simple_cmd(struct ata_device *dev, u8 cmd)
  1544. {
  1545. struct ata_taskfile tf;
  1546. ata_tf_init(dev, &tf);
  1547. tf.command = cmd;
  1548. tf.flags |= ATA_TFLAG_DEVICE;
  1549. tf.protocol = ATA_PROT_NODATA;
  1550. return ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  1551. }
  1552. /**
  1553. * ata_pio_need_iordy - check if iordy needed
  1554. * @adev: ATA device
  1555. *
  1556. * Check if the current speed of the device requires IORDY. Used
  1557. * by various controllers for chip configuration.
  1558. */
  1559. unsigned int ata_pio_need_iordy(const struct ata_device *adev)
  1560. {
  1561. /* Controller doesn't support IORDY. Probably a pointless check
  1562. as the caller should know this */
  1563. if (adev->link->ap->flags & ATA_FLAG_NO_IORDY)
  1564. return 0;
  1565. /* PIO3 and higher it is mandatory */
  1566. if (adev->pio_mode > XFER_PIO_2)
  1567. return 1;
  1568. /* We turn it on when possible */
  1569. if (ata_id_has_iordy(adev->id))
  1570. return 1;
  1571. return 0;
  1572. }
  1573. /**
  1574. * ata_pio_mask_no_iordy - Return the non IORDY mask
  1575. * @adev: ATA device
  1576. *
  1577. * Compute the highest mode possible if we are not using iordy. Return
  1578. * -1 if no iordy mode is available.
  1579. */
  1580. static u32 ata_pio_mask_no_iordy(const struct ata_device *adev)
  1581. {
  1582. /* If we have no drive specific rule, then PIO 2 is non IORDY */
  1583. if (adev->id[ATA_ID_FIELD_VALID] & 2) { /* EIDE */
  1584. u16 pio = adev->id[ATA_ID_EIDE_PIO];
  1585. /* Is the speed faster than the drive allows non IORDY ? */
  1586. if (pio) {
  1587. /* This is cycle times not frequency - watch the logic! */
  1588. if (pio > 240) /* PIO2 is 240nS per cycle */
  1589. return 3 << ATA_SHIFT_PIO;
  1590. return 7 << ATA_SHIFT_PIO;
  1591. }
  1592. }
  1593. return 3 << ATA_SHIFT_PIO;
  1594. }
  1595. /**
  1596. * ata_dev_read_id - Read ID data from the specified device
  1597. * @dev: target device
  1598. * @p_class: pointer to class of the target device (may be changed)
  1599. * @flags: ATA_READID_* flags
  1600. * @id: buffer to read IDENTIFY data into
  1601. *
  1602. * Read ID data from the specified device. ATA_CMD_ID_ATA is
  1603. * performed on ATA devices and ATA_CMD_ID_ATAPI on ATAPI
  1604. * devices. This function also issues ATA_CMD_INIT_DEV_PARAMS
  1605. * for pre-ATA4 drives.
  1606. *
  1607. * FIXME: ATA_CMD_ID_ATA is optional for early drives and right
  1608. * now we abort if we hit that case.
  1609. *
  1610. * LOCKING:
  1611. * Kernel thread context (may sleep)
  1612. *
  1613. * RETURNS:
  1614. * 0 on success, -errno otherwise.
  1615. */
  1616. int ata_dev_read_id(struct ata_device *dev, unsigned int *p_class,
  1617. unsigned int flags, u16 *id)
  1618. {
  1619. struct ata_port *ap = dev->link->ap;
  1620. unsigned int class = *p_class;
  1621. struct ata_taskfile tf;
  1622. unsigned int err_mask = 0;
  1623. const char *reason;
  1624. int may_fallback = 1, tried_spinup = 0;
  1625. int rc;
  1626. if (ata_msg_ctl(ap))
  1627. ata_dev_printk(dev, KERN_DEBUG, "%s: ENTER\n", __FUNCTION__);
  1628. ata_dev_select(ap, dev->devno, 1, 1); /* select device 0/1 */
  1629. retry:
  1630. ata_tf_init(dev, &tf);
  1631. switch (class) {
  1632. case ATA_DEV_ATA:
  1633. tf.command = ATA_CMD_ID_ATA;
  1634. break;
  1635. case ATA_DEV_ATAPI:
  1636. tf.command = ATA_CMD_ID_ATAPI;
  1637. break;
  1638. default:
  1639. rc = -ENODEV;
  1640. reason = "unsupported class";
  1641. goto err_out;
  1642. }
  1643. tf.protocol = ATA_PROT_PIO;
  1644. /* Some devices choke if TF registers contain garbage. Make
  1645. * sure those are properly initialized.
  1646. */
  1647. tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
  1648. /* Device presence detection is unreliable on some
  1649. * controllers. Always poll IDENTIFY if available.
  1650. */
  1651. tf.flags |= ATA_TFLAG_POLLING;
  1652. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_FROM_DEVICE,
  1653. id, sizeof(id[0]) * ATA_ID_WORDS, 0);
  1654. if (err_mask) {
  1655. if (err_mask & AC_ERR_NODEV_HINT) {
  1656. DPRINTK("ata%u.%d: NODEV after polling detection\n",
  1657. ap->print_id, dev->devno);
  1658. return -ENOENT;
  1659. }
  1660. /* Device or controller might have reported the wrong
  1661. * device class. Give a shot at the other IDENTIFY if
  1662. * the current one is aborted by the device.
  1663. */
  1664. if (may_fallback &&
  1665. (err_mask == AC_ERR_DEV) && (tf.feature & ATA_ABORTED)) {
  1666. may_fallback = 0;
  1667. if (class == ATA_DEV_ATA)
  1668. class = ATA_DEV_ATAPI;
  1669. else
  1670. class = ATA_DEV_ATA;
  1671. goto retry;
  1672. }
  1673. rc = -EIO;
  1674. reason = "I/O error";
  1675. goto err_out;
  1676. }
  1677. /* Falling back doesn't make sense if ID data was read
  1678. * successfully at least once.
  1679. */
  1680. may_fallback = 0;
  1681. swap_buf_le16(id, ATA_ID_WORDS);
  1682. /* sanity check */
  1683. rc = -EINVAL;
  1684. reason = "device reports invalid type";
  1685. if (class == ATA_DEV_ATA) {
  1686. if (!ata_id_is_ata(id) && !ata_id_is_cfa(id))
  1687. goto err_out;
  1688. } else {
  1689. if (ata_id_is_ata(id))
  1690. goto err_out;
  1691. }
  1692. if (!tried_spinup && (id[2] == 0x37c8 || id[2] == 0x738c)) {
  1693. tried_spinup = 1;
  1694. /*
  1695. * Drive powered-up in standby mode, and requires a specific
  1696. * SET_FEATURES spin-up subcommand before it will accept
  1697. * anything other than the original IDENTIFY command.
  1698. */
  1699. err_mask = ata_dev_set_feature(dev, SETFEATURES_SPINUP, 0);
  1700. if (err_mask && id[2] != 0x738c) {
  1701. rc = -EIO;
  1702. reason = "SPINUP failed";
  1703. goto err_out;
  1704. }
  1705. /*
  1706. * If the drive initially returned incomplete IDENTIFY info,
  1707. * we now must reissue the IDENTIFY command.
  1708. */
  1709. if (id[2] == 0x37c8)
  1710. goto retry;
  1711. }
  1712. if ((flags & ATA_READID_POSTRESET) && class == ATA_DEV_ATA) {
  1713. /*
  1714. * The exact sequence expected by certain pre-ATA4 drives is:
  1715. * SRST RESET
  1716. * IDENTIFY (optional in early ATA)
  1717. * INITIALIZE DEVICE PARAMETERS (later IDE and ATA)
  1718. * anything else..
  1719. * Some drives were very specific about that exact sequence.
  1720. *
  1721. * Note that ATA4 says lba is mandatory so the second check
  1722. * shoud never trigger.
  1723. */
  1724. if (ata_id_major_version(id) < 4 || !ata_id_has_lba(id)) {
  1725. err_mask = ata_dev_init_params(dev, id[3], id[6]);
  1726. if (err_mask) {
  1727. rc = -EIO;
  1728. reason = "INIT_DEV_PARAMS failed";
  1729. goto err_out;
  1730. }
  1731. /* current CHS translation info (id[53-58]) might be
  1732. * changed. reread the identify device info.
  1733. */
  1734. flags &= ~ATA_READID_POSTRESET;
  1735. goto retry;
  1736. }
  1737. }
  1738. *p_class = class;
  1739. return 0;
  1740. err_out:
  1741. if (ata_msg_warn(ap))
  1742. ata_dev_printk(dev, KERN_WARNING, "failed to IDENTIFY "
  1743. "(%s, err_mask=0x%x)\n", reason, err_mask);
  1744. return rc;
  1745. }
  1746. static inline u8 ata_dev_knobble(struct ata_device *dev)
  1747. {
  1748. struct ata_port *ap = dev->link->ap;
  1749. return ((ap->cbl == ATA_CBL_SATA) && (!ata_id_is_sata(dev->id)));
  1750. }
  1751. static void ata_dev_config_ncq(struct ata_device *dev,
  1752. char *desc, size_t desc_sz)
  1753. {
  1754. struct ata_port *ap = dev->link->ap;
  1755. int hdepth = 0, ddepth = ata_id_queue_depth(dev->id);
  1756. if (!ata_id_has_ncq(dev->id)) {
  1757. desc[0] = '\0';
  1758. return;
  1759. }
  1760. if (dev->horkage & ATA_HORKAGE_NONCQ) {
  1761. snprintf(desc, desc_sz, "NCQ (not used)");
  1762. return;
  1763. }
  1764. if (ap->flags & ATA_FLAG_NCQ) {
  1765. hdepth = min(ap->scsi_host->can_queue, ATA_MAX_QUEUE - 1);
  1766. dev->flags |= ATA_DFLAG_NCQ;
  1767. }
  1768. if (hdepth >= ddepth)
  1769. snprintf(desc, desc_sz, "NCQ (depth %d)", ddepth);
  1770. else
  1771. snprintf(desc, desc_sz, "NCQ (depth %d/%d)", hdepth, ddepth);
  1772. }
  1773. /**
  1774. * ata_dev_configure - Configure the specified ATA/ATAPI device
  1775. * @dev: Target device to configure
  1776. *
  1777. * Configure @dev according to @dev->id. Generic and low-level
  1778. * driver specific fixups are also applied.
  1779. *
  1780. * LOCKING:
  1781. * Kernel thread context (may sleep)
  1782. *
  1783. * RETURNS:
  1784. * 0 on success, -errno otherwise
  1785. */
  1786. int ata_dev_configure(struct ata_device *dev)
  1787. {
  1788. struct ata_port *ap = dev->link->ap;
  1789. struct ata_eh_context *ehc = &dev->link->eh_context;
  1790. int print_info = ehc->i.flags & ATA_EHI_PRINTINFO;
  1791. const u16 *id = dev->id;
  1792. unsigned long xfer_mask;
  1793. char revbuf[7]; /* XYZ-99\0 */
  1794. char fwrevbuf[ATA_ID_FW_REV_LEN+1];
  1795. char modelbuf[ATA_ID_PROD_LEN+1];
  1796. int rc;
  1797. if (!ata_dev_enabled(dev) && ata_msg_info(ap)) {
  1798. ata_dev_printk(dev, KERN_INFO, "%s: ENTER/EXIT -- nodev\n",
  1799. __FUNCTION__);
  1800. return 0;
  1801. }
  1802. if (ata_msg_probe(ap))
  1803. ata_dev_printk(dev, KERN_DEBUG, "%s: ENTER\n", __FUNCTION__);
  1804. /* set horkage */
  1805. dev->horkage |= ata_dev_blacklisted(dev);
  1806. /* let ACPI work its magic */
  1807. rc = ata_acpi_on_devcfg(dev);
  1808. if (rc)
  1809. return rc;
  1810. /* massage HPA, do it early as it might change IDENTIFY data */
  1811. rc = ata_hpa_resize(dev);
  1812. if (rc)
  1813. return rc;
  1814. /* print device capabilities */
  1815. if (ata_msg_probe(ap))
  1816. ata_dev_printk(dev, KERN_DEBUG,
  1817. "%s: cfg 49:%04x 82:%04x 83:%04x 84:%04x "
  1818. "85:%04x 86:%04x 87:%04x 88:%04x\n",
  1819. __FUNCTION__,
  1820. id[49], id[82], id[83], id[84],
  1821. id[85], id[86], id[87], id[88]);
  1822. /* initialize to-be-configured parameters */
  1823. dev->flags &= ~ATA_DFLAG_CFG_MASK;
  1824. dev->max_sectors = 0;
  1825. dev->cdb_len = 0;
  1826. dev->n_sectors = 0;
  1827. dev->cylinders = 0;
  1828. dev->heads = 0;
  1829. dev->sectors = 0;
  1830. /*
  1831. * common ATA, ATAPI feature tests
  1832. */
  1833. /* find max transfer mode; for printk only */
  1834. xfer_mask = ata_id_xfermask(id);
  1835. if (ata_msg_probe(ap))
  1836. ata_dump_id(id);
  1837. /* SCSI only uses 4-char revisions, dump full 8 chars from ATA */
  1838. ata_id_c_string(dev->id, fwrevbuf, ATA_ID_FW_REV,
  1839. sizeof(fwrevbuf));
  1840. ata_id_c_string(dev->id, modelbuf, ATA_ID_PROD,
  1841. sizeof(modelbuf));
  1842. /* ATA-specific feature tests */
  1843. if (dev->class == ATA_DEV_ATA) {
  1844. if (ata_id_is_cfa(id)) {
  1845. if (id[162] & 1) /* CPRM may make this media unusable */
  1846. ata_dev_printk(dev, KERN_WARNING,
  1847. "supports DRM functions and may "
  1848. "not be fully accessable.\n");
  1849. snprintf(revbuf, 7, "CFA");
  1850. } else {
  1851. snprintf(revbuf, 7, "ATA-%d", ata_id_major_version(id));
  1852. /* Warn the user if the device has TPM extensions */
  1853. if (ata_id_has_tpm(id))
  1854. ata_dev_printk(dev, KERN_WARNING,
  1855. "supports DRM functions and may "
  1856. "not be fully accessable.\n");
  1857. }
  1858. dev->n_sectors = ata_id_n_sectors(id);
  1859. if (dev->id[59] & 0x100)
  1860. dev->multi_count = dev->id[59] & 0xff;
  1861. if (ata_id_has_lba(id)) {
  1862. const char *lba_desc;
  1863. char ncq_desc[20];
  1864. lba_desc = "LBA";
  1865. dev->flags |= ATA_DFLAG_LBA;
  1866. if (ata_id_has_lba48(id)) {
  1867. dev->flags |= ATA_DFLAG_LBA48;
  1868. lba_desc = "LBA48";
  1869. if (dev->n_sectors >= (1UL << 28) &&
  1870. ata_id_has_flush_ext(id))
  1871. dev->flags |= ATA_DFLAG_FLUSH_EXT;
  1872. }
  1873. /* config NCQ */
  1874. ata_dev_config_ncq(dev, ncq_desc, sizeof(ncq_desc));
  1875. /* print device info to dmesg */
  1876. if (ata_msg_drv(ap) && print_info) {
  1877. ata_dev_printk(dev, KERN_INFO,
  1878. "%s: %s, %s, max %s\n",
  1879. revbuf, modelbuf, fwrevbuf,
  1880. ata_mode_string(xfer_mask));
  1881. ata_dev_printk(dev, KERN_INFO,
  1882. "%Lu sectors, multi %u: %s %s\n",
  1883. (unsigned long long)dev->n_sectors,
  1884. dev->multi_count, lba_desc, ncq_desc);
  1885. }
  1886. } else {
  1887. /* CHS */
  1888. /* Default translation */
  1889. dev->cylinders = id[1];
  1890. dev->heads = id[3];
  1891. dev->sectors = id[6];
  1892. if (ata_id_current_chs_valid(id)) {
  1893. /* Current CHS translation is valid. */
  1894. dev->cylinders = id[54];
  1895. dev->heads = id[55];
  1896. dev->sectors = id[56];
  1897. }
  1898. /* print device info to dmesg */
  1899. if (ata_msg_drv(ap) && print_info) {
  1900. ata_dev_printk(dev, KERN_INFO,
  1901. "%s: %s, %s, max %s\n",
  1902. revbuf, modelbuf, fwrevbuf,
  1903. ata_mode_string(xfer_mask));
  1904. ata_dev_printk(dev, KERN_INFO,
  1905. "%Lu sectors, multi %u, CHS %u/%u/%u\n",
  1906. (unsigned long long)dev->n_sectors,
  1907. dev->multi_count, dev->cylinders,
  1908. dev->heads, dev->sectors);
  1909. }
  1910. }
  1911. dev->cdb_len = 16;
  1912. }
  1913. /* ATAPI-specific feature tests */
  1914. else if (dev->class == ATA_DEV_ATAPI) {
  1915. const char *cdb_intr_string = "";
  1916. const char *atapi_an_string = "";
  1917. u32 sntf;
  1918. rc = atapi_cdb_len(id);
  1919. if ((rc < 12) || (rc > ATAPI_CDB_LEN)) {
  1920. if (ata_msg_warn(ap))
  1921. ata_dev_printk(dev, KERN_WARNING,
  1922. "unsupported CDB len\n");
  1923. rc = -EINVAL;
  1924. goto err_out_nosup;
  1925. }
  1926. dev->cdb_len = (unsigned int) rc;
  1927. /* Enable ATAPI AN if both the host and device have
  1928. * the support. If PMP is attached, SNTF is required
  1929. * to enable ATAPI AN to discern between PHY status
  1930. * changed notifications and ATAPI ANs.
  1931. */
  1932. if ((ap->flags & ATA_FLAG_AN) && ata_id_has_atapi_AN(id) &&
  1933. (!ap->nr_pmp_links ||
  1934. sata_scr_read(&ap->link, SCR_NOTIFICATION, &sntf) == 0)) {
  1935. unsigned int err_mask;
  1936. /* issue SET feature command to turn this on */
  1937. err_mask = ata_dev_set_feature(dev,
  1938. SETFEATURES_SATA_ENABLE, SATA_AN);
  1939. if (err_mask)
  1940. ata_dev_printk(dev, KERN_ERR,
  1941. "failed to enable ATAPI AN "
  1942. "(err_mask=0x%x)\n", err_mask);
  1943. else {
  1944. dev->flags |= ATA_DFLAG_AN;
  1945. atapi_an_string = ", ATAPI AN";
  1946. }
  1947. }
  1948. if (ata_id_cdb_intr(dev->id)) {
  1949. dev->flags |= ATA_DFLAG_CDB_INTR;
  1950. cdb_intr_string = ", CDB intr";
  1951. }
  1952. /* print device info to dmesg */
  1953. if (ata_msg_drv(ap) && print_info)
  1954. ata_dev_printk(dev, KERN_INFO,
  1955. "ATAPI: %s, %s, max %s%s%s\n",
  1956. modelbuf, fwrevbuf,
  1957. ata_mode_string(xfer_mask),
  1958. cdb_intr_string, atapi_an_string);
  1959. }
  1960. /* determine max_sectors */
  1961. dev->max_sectors = ATA_MAX_SECTORS;
  1962. if (dev->flags & ATA_DFLAG_LBA48)
  1963. dev->max_sectors = ATA_MAX_SECTORS_LBA48;
  1964. if (!(dev->horkage & ATA_HORKAGE_IPM)) {
  1965. if (ata_id_has_hipm(dev->id))
  1966. dev->flags |= ATA_DFLAG_HIPM;
  1967. if (ata_id_has_dipm(dev->id))
  1968. dev->flags |= ATA_DFLAG_DIPM;
  1969. }
  1970. /* Limit PATA drive on SATA cable bridge transfers to udma5,
  1971. 200 sectors */
  1972. if (ata_dev_knobble(dev)) {
  1973. if (ata_msg_drv(ap) && print_info)
  1974. ata_dev_printk(dev, KERN_INFO,
  1975. "applying bridge limits\n");
  1976. dev->udma_mask &= ATA_UDMA5;
  1977. dev->max_sectors = ATA_MAX_SECTORS;
  1978. }
  1979. if ((dev->class == ATA_DEV_ATAPI) &&
  1980. (atapi_command_packet_set(id) == TYPE_TAPE)) {
  1981. dev->max_sectors = ATA_MAX_SECTORS_TAPE;
  1982. dev->horkage |= ATA_HORKAGE_STUCK_ERR;
  1983. }
  1984. if (dev->horkage & ATA_HORKAGE_MAX_SEC_128)
  1985. dev->max_sectors = min_t(unsigned int, ATA_MAX_SECTORS_128,
  1986. dev->max_sectors);
  1987. if (ata_dev_blacklisted(dev) & ATA_HORKAGE_IPM) {
  1988. dev->horkage |= ATA_HORKAGE_IPM;
  1989. /* reset link pm_policy for this port to no pm */
  1990. ap->pm_policy = MAX_PERFORMANCE;
  1991. }
  1992. if (ap->ops->dev_config)
  1993. ap->ops->dev_config(dev);
  1994. if (dev->horkage & ATA_HORKAGE_DIAGNOSTIC) {
  1995. /* Let the user know. We don't want to disallow opens for
  1996. rescue purposes, or in case the vendor is just a blithering
  1997. idiot. Do this after the dev_config call as some controllers
  1998. with buggy firmware may want to avoid reporting false device
  1999. bugs */
  2000. if (print_info) {
  2001. ata_dev_printk(dev, KERN_WARNING,
  2002. "Drive reports diagnostics failure. This may indicate a drive\n");
  2003. ata_dev_printk(dev, KERN_WARNING,
  2004. "fault or invalid emulation. Contact drive vendor for information.\n");
  2005. }
  2006. }
  2007. if (ata_msg_probe(ap))
  2008. ata_dev_printk(dev, KERN_DEBUG, "%s: EXIT, drv_stat = 0x%x\n",
  2009. __FUNCTION__, ata_chk_status(ap));
  2010. return 0;
  2011. err_out_nosup:
  2012. if (ata_msg_probe(ap))
  2013. ata_dev_printk(dev, KERN_DEBUG,
  2014. "%s: EXIT, err\n", __FUNCTION__);
  2015. return rc;
  2016. }
  2017. /**
  2018. * ata_cable_40wire - return 40 wire cable type
  2019. * @ap: port
  2020. *
  2021. * Helper method for drivers which want to hardwire 40 wire cable
  2022. * detection.
  2023. */
  2024. int ata_cable_40wire(struct ata_port *ap)
  2025. {
  2026. return ATA_CBL_PATA40;
  2027. }
  2028. /**
  2029. * ata_cable_80wire - return 80 wire cable type
  2030. * @ap: port
  2031. *
  2032. * Helper method for drivers which want to hardwire 80 wire cable
  2033. * detection.
  2034. */
  2035. int ata_cable_80wire(struct ata_port *ap)
  2036. {
  2037. return ATA_CBL_PATA80;
  2038. }
  2039. /**
  2040. * ata_cable_unknown - return unknown PATA cable.
  2041. * @ap: port
  2042. *
  2043. * Helper method for drivers which have no PATA cable detection.
  2044. */
  2045. int ata_cable_unknown(struct ata_port *ap)
  2046. {
  2047. return ATA_CBL_PATA_UNK;
  2048. }
  2049. /**
  2050. * ata_cable_ignore - return ignored PATA cable.
  2051. * @ap: port
  2052. *
  2053. * Helper method for drivers which don't use cable type to limit
  2054. * transfer mode.
  2055. */
  2056. int ata_cable_ignore(struct ata_port *ap)
  2057. {
  2058. return ATA_CBL_PATA_IGN;
  2059. }
  2060. /**
  2061. * ata_cable_sata - return SATA cable type
  2062. * @ap: port
  2063. *
  2064. * Helper method for drivers which have SATA cables
  2065. */
  2066. int ata_cable_sata(struct ata_port *ap)
  2067. {
  2068. return ATA_CBL_SATA;
  2069. }
  2070. /**
  2071. * ata_bus_probe - Reset and probe ATA bus
  2072. * @ap: Bus to probe
  2073. *
  2074. * Master ATA bus probing function. Initiates a hardware-dependent
  2075. * bus reset, then attempts to identify any devices found on
  2076. * the bus.
  2077. *
  2078. * LOCKING:
  2079. * PCI/etc. bus probe sem.
  2080. *
  2081. * RETURNS:
  2082. * Zero on success, negative errno otherwise.
  2083. */
  2084. int ata_bus_probe(struct ata_port *ap)
  2085. {
  2086. unsigned int classes[ATA_MAX_DEVICES];
  2087. int tries[ATA_MAX_DEVICES];
  2088. int rc;
  2089. struct ata_device *dev;
  2090. ata_port_probe(ap);
  2091. ata_link_for_each_dev(dev, &ap->link)
  2092. tries[dev->devno] = ATA_PROBE_MAX_TRIES;
  2093. retry:
  2094. ata_link_for_each_dev(dev, &ap->link) {
  2095. /* If we issue an SRST then an ATA drive (not ATAPI)
  2096. * may change configuration and be in PIO0 timing. If
  2097. * we do a hard reset (or are coming from power on)
  2098. * this is true for ATA or ATAPI. Until we've set a
  2099. * suitable controller mode we should not touch the
  2100. * bus as we may be talking too fast.
  2101. */
  2102. dev->pio_mode = XFER_PIO_0;
  2103. /* If the controller has a pio mode setup function
  2104. * then use it to set the chipset to rights. Don't
  2105. * touch the DMA setup as that will be dealt with when
  2106. * configuring devices.
  2107. */
  2108. if (ap->ops->set_piomode)
  2109. ap->ops->set_piomode(ap, dev);
  2110. }
  2111. /* reset and determine device classes */
  2112. ap->ops->phy_reset(ap);
  2113. ata_link_for_each_dev(dev, &ap->link) {
  2114. if (!(ap->flags & ATA_FLAG_DISABLED) &&
  2115. dev->class != ATA_DEV_UNKNOWN)
  2116. classes[dev->devno] = dev->class;
  2117. else
  2118. classes[dev->devno] = ATA_DEV_NONE;
  2119. dev->class = ATA_DEV_UNKNOWN;
  2120. }
  2121. ata_port_probe(ap);
  2122. /* read IDENTIFY page and configure devices. We have to do the identify
  2123. specific sequence bass-ackwards so that PDIAG- is released by
  2124. the slave device */
  2125. ata_link_for_each_dev(dev, &ap->link) {
  2126. if (tries[dev->devno])
  2127. dev->class = classes[dev->devno];
  2128. if (!ata_dev_enabled(dev))
  2129. continue;
  2130. rc = ata_dev_read_id(dev, &dev->class, ATA_READID_POSTRESET,
  2131. dev->id);
  2132. if (rc)
  2133. goto fail;
  2134. }
  2135. /* Now ask for the cable type as PDIAG- should have been released */
  2136. if (ap->ops->cable_detect)
  2137. ap->cbl = ap->ops->cable_detect(ap);
  2138. /* We may have SATA bridge glue hiding here irrespective of the
  2139. reported cable types and sensed types */
  2140. ata_link_for_each_dev(dev, &ap->link) {
  2141. if (!ata_dev_enabled(dev))
  2142. continue;
  2143. /* SATA drives indicate we have a bridge. We don't know which
  2144. end of the link the bridge is which is a problem */
  2145. if (ata_id_is_sata(dev->id))
  2146. ap->cbl = ATA_CBL_SATA;
  2147. }
  2148. /* After the identify sequence we can now set up the devices. We do
  2149. this in the normal order so that the user doesn't get confused */
  2150. ata_link_for_each_dev(dev, &ap->link) {
  2151. if (!ata_dev_enabled(dev))
  2152. continue;
  2153. ap->link.eh_context.i.flags |= ATA_EHI_PRINTINFO;
  2154. rc = ata_dev_configure(dev);
  2155. ap->link.eh_context.i.flags &= ~ATA_EHI_PRINTINFO;
  2156. if (rc)
  2157. goto fail;
  2158. }
  2159. /* configure transfer mode */
  2160. rc = ata_set_mode(&ap->link, &dev);
  2161. if (rc)
  2162. goto fail;
  2163. ata_link_for_each_dev(dev, &ap->link)
  2164. if (ata_dev_enabled(dev))
  2165. return 0;
  2166. /* no device present, disable port */
  2167. ata_port_disable(ap);
  2168. return -ENODEV;
  2169. fail:
  2170. tries[dev->devno]--;
  2171. switch (rc) {
  2172. case -EINVAL:
  2173. /* eeek, something went very wrong, give up */
  2174. tries[dev->devno] = 0;
  2175. break;
  2176. case -ENODEV:
  2177. /* give it just one more chance */
  2178. tries[dev->devno] = min(tries[dev->devno], 1);
  2179. case -EIO:
  2180. if (tries[dev->devno] == 1) {
  2181. /* This is the last chance, better to slow
  2182. * down than lose it.
  2183. */
  2184. sata_down_spd_limit(&ap->link);
  2185. ata_down_xfermask_limit(dev, ATA_DNXFER_PIO);
  2186. }
  2187. }
  2188. if (!tries[dev->devno])
  2189. ata_dev_disable(dev);
  2190. goto retry;
  2191. }
  2192. /**
  2193. * ata_port_probe - Mark port as enabled
  2194. * @ap: Port for which we indicate enablement
  2195. *
  2196. * Modify @ap data structure such that the system
  2197. * thinks that the entire port is enabled.
  2198. *
  2199. * LOCKING: host lock, or some other form of
  2200. * serialization.
  2201. */
  2202. void ata_port_probe(struct ata_port *ap)
  2203. {
  2204. ap->flags &= ~ATA_FLAG_DISABLED;
  2205. }
  2206. /**
  2207. * sata_print_link_status - Print SATA link status
  2208. * @link: SATA link to printk link status about
  2209. *
  2210. * This function prints link speed and status of a SATA link.
  2211. *
  2212. * LOCKING:
  2213. * None.
  2214. */
  2215. void sata_print_link_status(struct ata_link *link)
  2216. {
  2217. u32 sstatus, scontrol, tmp;
  2218. if (sata_scr_read(link, SCR_STATUS, &sstatus))
  2219. return;
  2220. sata_scr_read(link, SCR_CONTROL, &scontrol);
  2221. if (ata_link_online(link)) {
  2222. tmp = (sstatus >> 4) & 0xf;
  2223. ata_link_printk(link, KERN_INFO,
  2224. "SATA link up %s (SStatus %X SControl %X)\n",
  2225. sata_spd_string(tmp), sstatus, scontrol);
  2226. } else {
  2227. ata_link_printk(link, KERN_INFO,
  2228. "SATA link down (SStatus %X SControl %X)\n",
  2229. sstatus, scontrol);
  2230. }
  2231. }
  2232. /**
  2233. * ata_dev_pair - return other device on cable
  2234. * @adev: device
  2235. *
  2236. * Obtain the other device on the same cable, or if none is
  2237. * present NULL is returned
  2238. */
  2239. struct ata_device *ata_dev_pair(struct ata_device *adev)
  2240. {
  2241. struct ata_link *link = adev->link;
  2242. struct ata_device *pair = &link->device[1 - adev->devno];
  2243. if (!ata_dev_enabled(pair))
  2244. return NULL;
  2245. return pair;
  2246. }
  2247. /**
  2248. * ata_port_disable - Disable port.
  2249. * @ap: Port to be disabled.
  2250. *
  2251. * Modify @ap data structure such that the system
  2252. * thinks that the entire port is disabled, and should
  2253. * never attempt to probe or communicate with devices
  2254. * on this port.
  2255. *
  2256. * LOCKING: host lock, or some other form of
  2257. * serialization.
  2258. */
  2259. void ata_port_disable(struct ata_port *ap)
  2260. {
  2261. ap->link.device[0].class = ATA_DEV_NONE;
  2262. ap->link.device[1].class = ATA_DEV_NONE;
  2263. ap->flags |= ATA_FLAG_DISABLED;
  2264. }
  2265. /**
  2266. * sata_down_spd_limit - adjust SATA spd limit downward
  2267. * @link: Link to adjust SATA spd limit for
  2268. *
  2269. * Adjust SATA spd limit of @link downward. Note that this
  2270. * function only adjusts the limit. The change must be applied
  2271. * using sata_set_spd().
  2272. *
  2273. * LOCKING:
  2274. * Inherited from caller.
  2275. *
  2276. * RETURNS:
  2277. * 0 on success, negative errno on failure
  2278. */
  2279. int sata_down_spd_limit(struct ata_link *link)
  2280. {
  2281. u32 sstatus, spd, mask;
  2282. int rc, highbit;
  2283. if (!sata_scr_valid(link))
  2284. return -EOPNOTSUPP;
  2285. /* If SCR can be read, use it to determine the current SPD.
  2286. * If not, use cached value in link->sata_spd.
  2287. */
  2288. rc = sata_scr_read(link, SCR_STATUS, &sstatus);
  2289. if (rc == 0)
  2290. spd = (sstatus >> 4) & 0xf;
  2291. else
  2292. spd = link->sata_spd;
  2293. mask = link->sata_spd_limit;
  2294. if (mask <= 1)
  2295. return -EINVAL;
  2296. /* unconditionally mask off the highest bit */
  2297. highbit = fls(mask) - 1;
  2298. mask &= ~(1 << highbit);
  2299. /* Mask off all speeds higher than or equal to the current
  2300. * one. Force 1.5Gbps if current SPD is not available.
  2301. */
  2302. if (spd > 1)
  2303. mask &= (1 << (spd - 1)) - 1;
  2304. else
  2305. mask &= 1;
  2306. /* were we already at the bottom? */
  2307. if (!mask)
  2308. return -EINVAL;
  2309. link->sata_spd_limit = mask;
  2310. ata_link_printk(link, KERN_WARNING, "limiting SATA link speed to %s\n",
  2311. sata_spd_string(fls(mask)));
  2312. return 0;
  2313. }
  2314. static int __sata_set_spd_needed(struct ata_link *link, u32 *scontrol)
  2315. {
  2316. struct ata_link *host_link = &link->ap->link;
  2317. u32 limit, target, spd;
  2318. limit = link->sata_spd_limit;
  2319. /* Don't configure downstream link faster than upstream link.
  2320. * It doesn't speed up anything and some PMPs choke on such
  2321. * configuration.
  2322. */
  2323. if (!ata_is_host_link(link) && host_link->sata_spd)
  2324. limit &= (1 << host_link->sata_spd) - 1;
  2325. if (limit == UINT_MAX)
  2326. target = 0;
  2327. else
  2328. target = fls(limit);
  2329. spd = (*scontrol >> 4) & 0xf;
  2330. *scontrol = (*scontrol & ~0xf0) | ((target & 0xf) << 4);
  2331. return spd != target;
  2332. }
  2333. /**
  2334. * sata_set_spd_needed - is SATA spd configuration needed
  2335. * @link: Link in question
  2336. *
  2337. * Test whether the spd limit in SControl matches
  2338. * @link->sata_spd_limit. This function is used to determine
  2339. * whether hardreset is necessary to apply SATA spd
  2340. * configuration.
  2341. *
  2342. * LOCKING:
  2343. * Inherited from caller.
  2344. *
  2345. * RETURNS:
  2346. * 1 if SATA spd configuration is needed, 0 otherwise.
  2347. */
  2348. int sata_set_spd_needed(struct ata_link *link)
  2349. {
  2350. u32 scontrol;
  2351. if (sata_scr_read(link, SCR_CONTROL, &scontrol))
  2352. return 1;
  2353. return __sata_set_spd_needed(link, &scontrol);
  2354. }
  2355. /**
  2356. * sata_set_spd - set SATA spd according to spd limit
  2357. * @link: Link to set SATA spd for
  2358. *
  2359. * Set SATA spd of @link according to sata_spd_limit.
  2360. *
  2361. * LOCKING:
  2362. * Inherited from caller.
  2363. *
  2364. * RETURNS:
  2365. * 0 if spd doesn't need to be changed, 1 if spd has been
  2366. * changed. Negative errno if SCR registers are inaccessible.
  2367. */
  2368. int sata_set_spd(struct ata_link *link)
  2369. {
  2370. u32 scontrol;
  2371. int rc;
  2372. if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
  2373. return rc;
  2374. if (!__sata_set_spd_needed(link, &scontrol))
  2375. return 0;
  2376. if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
  2377. return rc;
  2378. return 1;
  2379. }
  2380. /*
  2381. * This mode timing computation functionality is ported over from
  2382. * drivers/ide/ide-timing.h and was originally written by Vojtech Pavlik
  2383. */
  2384. /*
  2385. * PIO 0-4, MWDMA 0-2 and UDMA 0-6 timings (in nanoseconds).
  2386. * These were taken from ATA/ATAPI-6 standard, rev 0a, except
  2387. * for UDMA6, which is currently supported only by Maxtor drives.
  2388. *
  2389. * For PIO 5/6 MWDMA 3/4 see the CFA specification 3.0.
  2390. */
  2391. static const struct ata_timing ata_timing[] = {
  2392. /* { XFER_PIO_SLOW, 120, 290, 240, 960, 290, 240, 960, 0 }, */
  2393. { XFER_PIO_0, 70, 290, 240, 600, 165, 150, 600, 0 },
  2394. { XFER_PIO_1, 50, 290, 93, 383, 125, 100, 383, 0 },
  2395. { XFER_PIO_2, 30, 290, 40, 330, 100, 90, 240, 0 },
  2396. { XFER_PIO_3, 30, 80, 70, 180, 80, 70, 180, 0 },
  2397. { XFER_PIO_4, 25, 70, 25, 120, 70, 25, 120, 0 },
  2398. { XFER_PIO_5, 15, 65, 25, 100, 65, 25, 100, 0 },
  2399. { XFER_PIO_6, 10, 55, 20, 80, 55, 20, 80, 0 },
  2400. { XFER_SW_DMA_0, 120, 0, 0, 0, 480, 480, 960, 0 },
  2401. { XFER_SW_DMA_1, 90, 0, 0, 0, 240, 240, 480, 0 },
  2402. { XFER_SW_DMA_2, 60, 0, 0, 0, 120, 120, 240, 0 },
  2403. { XFER_MW_DMA_0, 60, 0, 0, 0, 215, 215, 480, 0 },
  2404. { XFER_MW_DMA_1, 45, 0, 0, 0, 80, 50, 150, 0 },
  2405. { XFER_MW_DMA_2, 25, 0, 0, 0, 70, 25, 120, 0 },
  2406. { XFER_MW_DMA_3, 25, 0, 0, 0, 65, 25, 100, 0 },
  2407. { XFER_MW_DMA_4, 25, 0, 0, 0, 55, 20, 80, 0 },
  2408. /* { XFER_UDMA_SLOW, 0, 0, 0, 0, 0, 0, 0, 150 }, */
  2409. { XFER_UDMA_0, 0, 0, 0, 0, 0, 0, 0, 120 },
  2410. { XFER_UDMA_1, 0, 0, 0, 0, 0, 0, 0, 80 },
  2411. { XFER_UDMA_2, 0, 0, 0, 0, 0, 0, 0, 60 },
  2412. { XFER_UDMA_3, 0, 0, 0, 0, 0, 0, 0, 45 },
  2413. { XFER_UDMA_4, 0, 0, 0, 0, 0, 0, 0, 30 },
  2414. { XFER_UDMA_5, 0, 0, 0, 0, 0, 0, 0, 20 },
  2415. { XFER_UDMA_6, 0, 0, 0, 0, 0, 0, 0, 15 },
  2416. { 0xFF }
  2417. };
  2418. #define ENOUGH(v, unit) (((v)-1)/(unit)+1)
  2419. #define EZ(v, unit) ((v)?ENOUGH(v, unit):0)
  2420. static void ata_timing_quantize(const struct ata_timing *t, struct ata_timing *q, int T, int UT)
  2421. {
  2422. q->setup = EZ(t->setup * 1000, T);
  2423. q->act8b = EZ(t->act8b * 1000, T);
  2424. q->rec8b = EZ(t->rec8b * 1000, T);
  2425. q->cyc8b = EZ(t->cyc8b * 1000, T);
  2426. q->active = EZ(t->active * 1000, T);
  2427. q->recover = EZ(t->recover * 1000, T);
  2428. q->cycle = EZ(t->cycle * 1000, T);
  2429. q->udma = EZ(t->udma * 1000, UT);
  2430. }
  2431. void ata_timing_merge(const struct ata_timing *a, const struct ata_timing *b,
  2432. struct ata_timing *m, unsigned int what)
  2433. {
  2434. if (what & ATA_TIMING_SETUP ) m->setup = max(a->setup, b->setup);
  2435. if (what & ATA_TIMING_ACT8B ) m->act8b = max(a->act8b, b->act8b);
  2436. if (what & ATA_TIMING_REC8B ) m->rec8b = max(a->rec8b, b->rec8b);
  2437. if (what & ATA_TIMING_CYC8B ) m->cyc8b = max(a->cyc8b, b->cyc8b);
  2438. if (what & ATA_TIMING_ACTIVE ) m->active = max(a->active, b->active);
  2439. if (what & ATA_TIMING_RECOVER) m->recover = max(a->recover, b->recover);
  2440. if (what & ATA_TIMING_CYCLE ) m->cycle = max(a->cycle, b->cycle);
  2441. if (what & ATA_TIMING_UDMA ) m->udma = max(a->udma, b->udma);
  2442. }
  2443. const struct ata_timing *ata_timing_find_mode(u8 xfer_mode)
  2444. {
  2445. const struct ata_timing *t = ata_timing;
  2446. while (xfer_mode > t->mode)
  2447. t++;
  2448. if (xfer_mode == t->mode)
  2449. return t;
  2450. return NULL;
  2451. }
  2452. int ata_timing_compute(struct ata_device *adev, unsigned short speed,
  2453. struct ata_timing *t, int T, int UT)
  2454. {
  2455. const struct ata_timing *s;
  2456. struct ata_timing p;
  2457. /*
  2458. * Find the mode.
  2459. */
  2460. if (!(s = ata_timing_find_mode(speed)))
  2461. return -EINVAL;
  2462. memcpy(t, s, sizeof(*s));
  2463. /*
  2464. * If the drive is an EIDE drive, it can tell us it needs extended
  2465. * PIO/MW_DMA cycle timing.
  2466. */
  2467. if (adev->id[ATA_ID_FIELD_VALID] & 2) { /* EIDE drive */
  2468. memset(&p, 0, sizeof(p));
  2469. if (speed >= XFER_PIO_0 && speed <= XFER_SW_DMA_0) {
  2470. if (speed <= XFER_PIO_2) p.cycle = p.cyc8b = adev->id[ATA_ID_EIDE_PIO];
  2471. else p.cycle = p.cyc8b = adev->id[ATA_ID_EIDE_PIO_IORDY];
  2472. } else if (speed >= XFER_MW_DMA_0 && speed <= XFER_MW_DMA_2) {
  2473. p.cycle = adev->id[ATA_ID_EIDE_DMA_MIN];
  2474. }
  2475. ata_timing_merge(&p, t, t, ATA_TIMING_CYCLE | ATA_TIMING_CYC8B);
  2476. }
  2477. /*
  2478. * Convert the timing to bus clock counts.
  2479. */
  2480. ata_timing_quantize(t, t, T, UT);
  2481. /*
  2482. * Even in DMA/UDMA modes we still use PIO access for IDENTIFY,
  2483. * S.M.A.R.T * and some other commands. We have to ensure that the
  2484. * DMA cycle timing is slower/equal than the fastest PIO timing.
  2485. */
  2486. if (speed > XFER_PIO_6) {
  2487. ata_timing_compute(adev, adev->pio_mode, &p, T, UT);
  2488. ata_timing_merge(&p, t, t, ATA_TIMING_ALL);
  2489. }
  2490. /*
  2491. * Lengthen active & recovery time so that cycle time is correct.
  2492. */
  2493. if (t->act8b + t->rec8b < t->cyc8b) {
  2494. t->act8b += (t->cyc8b - (t->act8b + t->rec8b)) / 2;
  2495. t->rec8b = t->cyc8b - t->act8b;
  2496. }
  2497. if (t->active + t->recover < t->cycle) {
  2498. t->active += (t->cycle - (t->active + t->recover)) / 2;
  2499. t->recover = t->cycle - t->active;
  2500. }
  2501. /* In a few cases quantisation may produce enough errors to
  2502. leave t->cycle too low for the sum of active and recovery
  2503. if so we must correct this */
  2504. if (t->active + t->recover > t->cycle)
  2505. t->cycle = t->active + t->recover;
  2506. return 0;
  2507. }
  2508. /**
  2509. * ata_timing_cycle2mode - find xfer mode for the specified cycle duration
  2510. * @xfer_shift: ATA_SHIFT_* value for transfer type to examine.
  2511. * @cycle: cycle duration in ns
  2512. *
  2513. * Return matching xfer mode for @cycle. The returned mode is of
  2514. * the transfer type specified by @xfer_shift. If @cycle is too
  2515. * slow for @xfer_shift, 0xff is returned. If @cycle is faster
  2516. * than the fastest known mode, the fasted mode is returned.
  2517. *
  2518. * LOCKING:
  2519. * None.
  2520. *
  2521. * RETURNS:
  2522. * Matching xfer_mode, 0xff if no match found.
  2523. */
  2524. u8 ata_timing_cycle2mode(unsigned int xfer_shift, int cycle)
  2525. {
  2526. u8 base_mode = 0xff, last_mode = 0xff;
  2527. const struct ata_xfer_ent *ent;
  2528. const struct ata_timing *t;
  2529. for (ent = ata_xfer_tbl; ent->shift >= 0; ent++)
  2530. if (ent->shift == xfer_shift)
  2531. base_mode = ent->base;
  2532. for (t = ata_timing_find_mode(base_mode);
  2533. t && ata_xfer_mode2shift(t->mode) == xfer_shift; t++) {
  2534. unsigned short this_cycle;
  2535. switch (xfer_shift) {
  2536. case ATA_SHIFT_PIO:
  2537. case ATA_SHIFT_MWDMA:
  2538. this_cycle = t->cycle;
  2539. break;
  2540. case ATA_SHIFT_UDMA:
  2541. this_cycle = t->udma;
  2542. break;
  2543. default:
  2544. return 0xff;
  2545. }
  2546. if (cycle > this_cycle)
  2547. break;
  2548. last_mode = t->mode;
  2549. }
  2550. return last_mode;
  2551. }
  2552. /**
  2553. * ata_down_xfermask_limit - adjust dev xfer masks downward
  2554. * @dev: Device to adjust xfer masks
  2555. * @sel: ATA_DNXFER_* selector
  2556. *
  2557. * Adjust xfer masks of @dev downward. Note that this function
  2558. * does not apply the change. Invoking ata_set_mode() afterwards
  2559. * will apply the limit.
  2560. *
  2561. * LOCKING:
  2562. * Inherited from caller.
  2563. *
  2564. * RETURNS:
  2565. * 0 on success, negative errno on failure
  2566. */
  2567. int ata_down_xfermask_limit(struct ata_device *dev, unsigned int sel)
  2568. {
  2569. char buf[32];
  2570. unsigned long orig_mask, xfer_mask;
  2571. unsigned long pio_mask, mwdma_mask, udma_mask;
  2572. int quiet, highbit;
  2573. quiet = !!(sel & ATA_DNXFER_QUIET);
  2574. sel &= ~ATA_DNXFER_QUIET;
  2575. xfer_mask = orig_mask = ata_pack_xfermask(dev->pio_mask,
  2576. dev->mwdma_mask,
  2577. dev->udma_mask);
  2578. ata_unpack_xfermask(xfer_mask, &pio_mask, &mwdma_mask, &udma_mask);
  2579. switch (sel) {
  2580. case ATA_DNXFER_PIO:
  2581. highbit = fls(pio_mask) - 1;
  2582. pio_mask &= ~(1 << highbit);
  2583. break;
  2584. case ATA_DNXFER_DMA:
  2585. if (udma_mask) {
  2586. highbit = fls(udma_mask) - 1;
  2587. udma_mask &= ~(1 << highbit);
  2588. if (!udma_mask)
  2589. return -ENOENT;
  2590. } else if (mwdma_mask) {
  2591. highbit = fls(mwdma_mask) - 1;
  2592. mwdma_mask &= ~(1 << highbit);
  2593. if (!mwdma_mask)
  2594. return -ENOENT;
  2595. }
  2596. break;
  2597. case ATA_DNXFER_40C:
  2598. udma_mask &= ATA_UDMA_MASK_40C;
  2599. break;
  2600. case ATA_DNXFER_FORCE_PIO0:
  2601. pio_mask &= 1;
  2602. case ATA_DNXFER_FORCE_PIO:
  2603. mwdma_mask = 0;
  2604. udma_mask = 0;
  2605. break;
  2606. default:
  2607. BUG();
  2608. }
  2609. xfer_mask &= ata_pack_xfermask(pio_mask, mwdma_mask, udma_mask);
  2610. if (!(xfer_mask & ATA_MASK_PIO) || xfer_mask == orig_mask)
  2611. return -ENOENT;
  2612. if (!quiet) {
  2613. if (xfer_mask & (ATA_MASK_MWDMA | ATA_MASK_UDMA))
  2614. snprintf(buf, sizeof(buf), "%s:%s",
  2615. ata_mode_string(xfer_mask),
  2616. ata_mode_string(xfer_mask & ATA_MASK_PIO));
  2617. else
  2618. snprintf(buf, sizeof(buf), "%s",
  2619. ata_mode_string(xfer_mask));
  2620. ata_dev_printk(dev, KERN_WARNING,
  2621. "limiting speed to %s\n", buf);
  2622. }
  2623. ata_unpack_xfermask(xfer_mask, &dev->pio_mask, &dev->mwdma_mask,
  2624. &dev->udma_mask);
  2625. return 0;
  2626. }
  2627. static int ata_dev_set_mode(struct ata_device *dev)
  2628. {
  2629. struct ata_eh_context *ehc = &dev->link->eh_context;
  2630. const char *dev_err_whine = "";
  2631. int ign_dev_err = 0;
  2632. unsigned int err_mask;
  2633. int rc;
  2634. dev->flags &= ~ATA_DFLAG_PIO;
  2635. if (dev->xfer_shift == ATA_SHIFT_PIO)
  2636. dev->flags |= ATA_DFLAG_PIO;
  2637. err_mask = ata_dev_set_xfermode(dev);
  2638. if (err_mask & ~AC_ERR_DEV)
  2639. goto fail;
  2640. /* revalidate */
  2641. ehc->i.flags |= ATA_EHI_POST_SETMODE;
  2642. rc = ata_dev_revalidate(dev, ATA_DEV_UNKNOWN, 0);
  2643. ehc->i.flags &= ~ATA_EHI_POST_SETMODE;
  2644. if (rc)
  2645. return rc;
  2646. /* Old CFA may refuse this command, which is just fine */
  2647. if (dev->xfer_shift == ATA_SHIFT_PIO && ata_id_is_cfa(dev->id))
  2648. ign_dev_err = 1;
  2649. /* Some very old devices and some bad newer ones fail any kind of
  2650. SET_XFERMODE request but support PIO0-2 timings and no IORDY */
  2651. if (dev->xfer_shift == ATA_SHIFT_PIO && !ata_id_has_iordy(dev->id) &&
  2652. dev->pio_mode <= XFER_PIO_2)
  2653. ign_dev_err = 1;
  2654. /* Early MWDMA devices do DMA but don't allow DMA mode setting.
  2655. Don't fail an MWDMA0 set IFF the device indicates it is in MWDMA0 */
  2656. if (dev->xfer_shift == ATA_SHIFT_MWDMA &&
  2657. dev->dma_mode == XFER_MW_DMA_0 &&
  2658. (dev->id[63] >> 8) & 1)
  2659. ign_dev_err = 1;
  2660. /* if the device is actually configured correctly, ignore dev err */
  2661. if (dev->xfer_mode == ata_xfer_mask2mode(ata_id_xfermask(dev->id)))
  2662. ign_dev_err = 1;
  2663. if (err_mask & AC_ERR_DEV) {
  2664. if (!ign_dev_err)
  2665. goto fail;
  2666. else
  2667. dev_err_whine = " (device error ignored)";
  2668. }
  2669. DPRINTK("xfer_shift=%u, xfer_mode=0x%x\n",
  2670. dev->xfer_shift, (int)dev->xfer_mode);
  2671. ata_dev_printk(dev, KERN_INFO, "configured for %s%s\n",
  2672. ata_mode_string(ata_xfer_mode2mask(dev->xfer_mode)),
  2673. dev_err_whine);
  2674. return 0;
  2675. fail:
  2676. ata_dev_printk(dev, KERN_ERR, "failed to set xfermode "
  2677. "(err_mask=0x%x)\n", err_mask);
  2678. return -EIO;
  2679. }
  2680. /**
  2681. * ata_do_set_mode - Program timings and issue SET FEATURES - XFER
  2682. * @link: link on which timings will be programmed
  2683. * @r_failed_dev: out parameter for failed device
  2684. *
  2685. * Standard implementation of the function used to tune and set
  2686. * ATA device disk transfer mode (PIO3, UDMA6, etc.). If
  2687. * ata_dev_set_mode() fails, pointer to the failing device is
  2688. * returned in @r_failed_dev.
  2689. *
  2690. * LOCKING:
  2691. * PCI/etc. bus probe sem.
  2692. *
  2693. * RETURNS:
  2694. * 0 on success, negative errno otherwise
  2695. */
  2696. int ata_do_set_mode(struct ata_link *link, struct ata_device **r_failed_dev)
  2697. {
  2698. struct ata_port *ap = link->ap;
  2699. struct ata_device *dev;
  2700. int rc = 0, used_dma = 0, found = 0;
  2701. /* step 1: calculate xfer_mask */
  2702. ata_link_for_each_dev(dev, link) {
  2703. unsigned long pio_mask, dma_mask;
  2704. unsigned int mode_mask;
  2705. if (!ata_dev_enabled(dev))
  2706. continue;
  2707. mode_mask = ATA_DMA_MASK_ATA;
  2708. if (dev->class == ATA_DEV_ATAPI)
  2709. mode_mask = ATA_DMA_MASK_ATAPI;
  2710. else if (ata_id_is_cfa(dev->id))
  2711. mode_mask = ATA_DMA_MASK_CFA;
  2712. ata_dev_xfermask(dev);
  2713. pio_mask = ata_pack_xfermask(dev->pio_mask, 0, 0);
  2714. dma_mask = ata_pack_xfermask(0, dev->mwdma_mask, dev->udma_mask);
  2715. if (libata_dma_mask & mode_mask)
  2716. dma_mask = ata_pack_xfermask(0, dev->mwdma_mask, dev->udma_mask);
  2717. else
  2718. dma_mask = 0;
  2719. dev->pio_mode = ata_xfer_mask2mode(pio_mask);
  2720. dev->dma_mode = ata_xfer_mask2mode(dma_mask);
  2721. found = 1;
  2722. if (dev->dma_mode != 0xff)
  2723. used_dma = 1;
  2724. }
  2725. if (!found)
  2726. goto out;
  2727. /* step 2: always set host PIO timings */
  2728. ata_link_for_each_dev(dev, link) {
  2729. if (!ata_dev_enabled(dev))
  2730. continue;
  2731. if (dev->pio_mode == 0xff) {
  2732. ata_dev_printk(dev, KERN_WARNING, "no PIO support\n");
  2733. rc = -EINVAL;
  2734. goto out;
  2735. }
  2736. dev->xfer_mode = dev->pio_mode;
  2737. dev->xfer_shift = ATA_SHIFT_PIO;
  2738. if (ap->ops->set_piomode)
  2739. ap->ops->set_piomode(ap, dev);
  2740. }
  2741. /* step 3: set host DMA timings */
  2742. ata_link_for_each_dev(dev, link) {
  2743. if (!ata_dev_enabled(dev) || dev->dma_mode == 0xff)
  2744. continue;
  2745. dev->xfer_mode = dev->dma_mode;
  2746. dev->xfer_shift = ata_xfer_mode2shift(dev->dma_mode);
  2747. if (ap->ops->set_dmamode)
  2748. ap->ops->set_dmamode(ap, dev);
  2749. }
  2750. /* step 4: update devices' xfer mode */
  2751. ata_link_for_each_dev(dev, link) {
  2752. /* don't update suspended devices' xfer mode */
  2753. if (!ata_dev_enabled(dev))
  2754. continue;
  2755. rc = ata_dev_set_mode(dev);
  2756. if (rc)
  2757. goto out;
  2758. }
  2759. /* Record simplex status. If we selected DMA then the other
  2760. * host channels are not permitted to do so.
  2761. */
  2762. if (used_dma && (ap->host->flags & ATA_HOST_SIMPLEX))
  2763. ap->host->simplex_claimed = ap;
  2764. out:
  2765. if (rc)
  2766. *r_failed_dev = dev;
  2767. return rc;
  2768. }
  2769. /**
  2770. * ata_tf_to_host - issue ATA taskfile to host controller
  2771. * @ap: port to which command is being issued
  2772. * @tf: ATA taskfile register set
  2773. *
  2774. * Issues ATA taskfile register set to ATA host controller,
  2775. * with proper synchronization with interrupt handler and
  2776. * other threads.
  2777. *
  2778. * LOCKING:
  2779. * spin_lock_irqsave(host lock)
  2780. */
  2781. static inline void ata_tf_to_host(struct ata_port *ap,
  2782. const struct ata_taskfile *tf)
  2783. {
  2784. ap->ops->tf_load(ap, tf);
  2785. ap->ops->exec_command(ap, tf);
  2786. }
  2787. /**
  2788. * ata_busy_sleep - sleep until BSY clears, or timeout
  2789. * @ap: port containing status register to be polled
  2790. * @tmout_pat: impatience timeout
  2791. * @tmout: overall timeout
  2792. *
  2793. * Sleep until ATA Status register bit BSY clears,
  2794. * or a timeout occurs.
  2795. *
  2796. * LOCKING:
  2797. * Kernel thread context (may sleep).
  2798. *
  2799. * RETURNS:
  2800. * 0 on success, -errno otherwise.
  2801. */
  2802. int ata_busy_sleep(struct ata_port *ap,
  2803. unsigned long tmout_pat, unsigned long tmout)
  2804. {
  2805. unsigned long timer_start, timeout;
  2806. u8 status;
  2807. status = ata_busy_wait(ap, ATA_BUSY, 300);
  2808. timer_start = jiffies;
  2809. timeout = timer_start + tmout_pat;
  2810. while (status != 0xff && (status & ATA_BUSY) &&
  2811. time_before(jiffies, timeout)) {
  2812. msleep(50);
  2813. status = ata_busy_wait(ap, ATA_BUSY, 3);
  2814. }
  2815. if (status != 0xff && (status & ATA_BUSY))
  2816. ata_port_printk(ap, KERN_WARNING,
  2817. "port is slow to respond, please be patient "
  2818. "(Status 0x%x)\n", status);
  2819. timeout = timer_start + tmout;
  2820. while (status != 0xff && (status & ATA_BUSY) &&
  2821. time_before(jiffies, timeout)) {
  2822. msleep(50);
  2823. status = ata_chk_status(ap);
  2824. }
  2825. if (status == 0xff)
  2826. return -ENODEV;
  2827. if (status & ATA_BUSY) {
  2828. ata_port_printk(ap, KERN_ERR, "port failed to respond "
  2829. "(%lu secs, Status 0x%x)\n",
  2830. tmout / HZ, status);
  2831. return -EBUSY;
  2832. }
  2833. return 0;
  2834. }
  2835. /**
  2836. * ata_wait_after_reset - wait before checking status after reset
  2837. * @ap: port containing status register to be polled
  2838. * @deadline: deadline jiffies for the operation
  2839. *
  2840. * After reset, we need to pause a while before reading status.
  2841. * Also, certain combination of controller and device report 0xff
  2842. * for some duration (e.g. until SATA PHY is up and running)
  2843. * which is interpreted as empty port in ATA world. This
  2844. * function also waits for such devices to get out of 0xff
  2845. * status.
  2846. *
  2847. * LOCKING:
  2848. * Kernel thread context (may sleep).
  2849. */
  2850. void ata_wait_after_reset(struct ata_port *ap, unsigned long deadline)
  2851. {
  2852. unsigned long until = jiffies + ATA_TMOUT_FF_WAIT;
  2853. if (time_before(until, deadline))
  2854. deadline = until;
  2855. /* Spec mandates ">= 2ms" before checking status. We wait
  2856. * 150ms, because that was the magic delay used for ATAPI
  2857. * devices in Hale Landis's ATADRVR, for the period of time
  2858. * between when the ATA command register is written, and then
  2859. * status is checked. Because waiting for "a while" before
  2860. * checking status is fine, post SRST, we perform this magic
  2861. * delay here as well.
  2862. *
  2863. * Old drivers/ide uses the 2mS rule and then waits for ready.
  2864. */
  2865. msleep(150);
  2866. /* Wait for 0xff to clear. Some SATA devices take a long time
  2867. * to clear 0xff after reset. For example, HHD424020F7SV00
  2868. * iVDR needs >= 800ms while. Quantum GoVault needs even more
  2869. * than that.
  2870. *
  2871. * Note that some PATA controllers (pata_ali) explode if
  2872. * status register is read more than once when there's no
  2873. * device attached.
  2874. */
  2875. if (ap->flags & ATA_FLAG_SATA) {
  2876. while (1) {
  2877. u8 status = ata_chk_status(ap);
  2878. if (status != 0xff || time_after(jiffies, deadline))
  2879. return;
  2880. msleep(50);
  2881. }
  2882. }
  2883. }
  2884. /**
  2885. * ata_wait_ready - sleep until BSY clears, or timeout
  2886. * @ap: port containing status register to be polled
  2887. * @deadline: deadline jiffies for the operation
  2888. *
  2889. * Sleep until ATA Status register bit BSY clears, or timeout
  2890. * occurs.
  2891. *
  2892. * LOCKING:
  2893. * Kernel thread context (may sleep).
  2894. *
  2895. * RETURNS:
  2896. * 0 on success, -errno otherwise.
  2897. */
  2898. int ata_wait_ready(struct ata_port *ap, unsigned long deadline)
  2899. {
  2900. unsigned long start = jiffies;
  2901. int warned = 0;
  2902. while (1) {
  2903. u8 status = ata_chk_status(ap);
  2904. unsigned long now = jiffies;
  2905. if (!(status & ATA_BUSY))
  2906. return 0;
  2907. if (!ata_link_online(&ap->link) && status == 0xff)
  2908. return -ENODEV;
  2909. if (time_after(now, deadline))
  2910. return -EBUSY;
  2911. if (!warned && time_after(now, start + 5 * HZ) &&
  2912. (deadline - now > 3 * HZ)) {
  2913. ata_port_printk(ap, KERN_WARNING,
  2914. "port is slow to respond, please be patient "
  2915. "(Status 0x%x)\n", status);
  2916. warned = 1;
  2917. }
  2918. msleep(50);
  2919. }
  2920. }
  2921. static int ata_bus_post_reset(struct ata_port *ap, unsigned int devmask,
  2922. unsigned long deadline)
  2923. {
  2924. struct ata_ioports *ioaddr = &ap->ioaddr;
  2925. unsigned int dev0 = devmask & (1 << 0);
  2926. unsigned int dev1 = devmask & (1 << 1);
  2927. int rc, ret = 0;
  2928. /* if device 0 was found in ata_devchk, wait for its
  2929. * BSY bit to clear
  2930. */
  2931. if (dev0) {
  2932. rc = ata_wait_ready(ap, deadline);
  2933. if (rc) {
  2934. if (rc != -ENODEV)
  2935. return rc;
  2936. ret = rc;
  2937. }
  2938. }
  2939. /* if device 1 was found in ata_devchk, wait for register
  2940. * access briefly, then wait for BSY to clear.
  2941. */
  2942. if (dev1) {
  2943. int i;
  2944. ap->ops->dev_select(ap, 1);
  2945. /* Wait for register access. Some ATAPI devices fail
  2946. * to set nsect/lbal after reset, so don't waste too
  2947. * much time on it. We're gonna wait for !BSY anyway.
  2948. */
  2949. for (i = 0; i < 2; i++) {
  2950. u8 nsect, lbal;
  2951. nsect = ioread8(ioaddr->nsect_addr);
  2952. lbal = ioread8(ioaddr->lbal_addr);
  2953. if ((nsect == 1) && (lbal == 1))
  2954. break;
  2955. msleep(50); /* give drive a breather */
  2956. }
  2957. rc = ata_wait_ready(ap, deadline);
  2958. if (rc) {
  2959. if (rc != -ENODEV)
  2960. return rc;
  2961. ret = rc;
  2962. }
  2963. }
  2964. /* is all this really necessary? */
  2965. ap->ops->dev_select(ap, 0);
  2966. if (dev1)
  2967. ap->ops->dev_select(ap, 1);
  2968. if (dev0)
  2969. ap->ops->dev_select(ap, 0);
  2970. return ret;
  2971. }
  2972. static int ata_bus_softreset(struct ata_port *ap, unsigned int devmask,
  2973. unsigned long deadline)
  2974. {
  2975. struct ata_ioports *ioaddr = &ap->ioaddr;
  2976. DPRINTK("ata%u: bus reset via SRST\n", ap->print_id);
  2977. /* software reset. causes dev0 to be selected */
  2978. iowrite8(ap->ctl, ioaddr->ctl_addr);
  2979. udelay(20); /* FIXME: flush */
  2980. iowrite8(ap->ctl | ATA_SRST, ioaddr->ctl_addr);
  2981. udelay(20); /* FIXME: flush */
  2982. iowrite8(ap->ctl, ioaddr->ctl_addr);
  2983. /* wait a while before checking status */
  2984. ata_wait_after_reset(ap, deadline);
  2985. /* Before we perform post reset processing we want to see if
  2986. * the bus shows 0xFF because the odd clown forgets the D7
  2987. * pulldown resistor.
  2988. */
  2989. if (ata_chk_status(ap) == 0xFF)
  2990. return -ENODEV;
  2991. return ata_bus_post_reset(ap, devmask, deadline);
  2992. }
  2993. /**
  2994. * ata_bus_reset - reset host port and associated ATA channel
  2995. * @ap: port to reset
  2996. *
  2997. * This is typically the first time we actually start issuing
  2998. * commands to the ATA channel. We wait for BSY to clear, then
  2999. * issue EXECUTE DEVICE DIAGNOSTIC command, polling for its
  3000. * result. Determine what devices, if any, are on the channel
  3001. * by looking at the device 0/1 error register. Look at the signature
  3002. * stored in each device's taskfile registers, to determine if
  3003. * the device is ATA or ATAPI.
  3004. *
  3005. * LOCKING:
  3006. * PCI/etc. bus probe sem.
  3007. * Obtains host lock.
  3008. *
  3009. * SIDE EFFECTS:
  3010. * Sets ATA_FLAG_DISABLED if bus reset fails.
  3011. */
  3012. void ata_bus_reset(struct ata_port *ap)
  3013. {
  3014. struct ata_device *device = ap->link.device;
  3015. struct ata_ioports *ioaddr = &ap->ioaddr;
  3016. unsigned int slave_possible = ap->flags & ATA_FLAG_SLAVE_POSS;
  3017. u8 err;
  3018. unsigned int dev0, dev1 = 0, devmask = 0;
  3019. int rc;
  3020. DPRINTK("ENTER, host %u, port %u\n", ap->print_id, ap->port_no);
  3021. /* determine if device 0/1 are present */
  3022. if (ap->flags & ATA_FLAG_SATA_RESET)
  3023. dev0 = 1;
  3024. else {
  3025. dev0 = ata_devchk(ap, 0);
  3026. if (slave_possible)
  3027. dev1 = ata_devchk(ap, 1);
  3028. }
  3029. if (dev0)
  3030. devmask |= (1 << 0);
  3031. if (dev1)
  3032. devmask |= (1 << 1);
  3033. /* select device 0 again */
  3034. ap->ops->dev_select(ap, 0);
  3035. /* issue bus reset */
  3036. if (ap->flags & ATA_FLAG_SRST) {
  3037. rc = ata_bus_softreset(ap, devmask, jiffies + 40 * HZ);
  3038. if (rc && rc != -ENODEV)
  3039. goto err_out;
  3040. }
  3041. /*
  3042. * determine by signature whether we have ATA or ATAPI devices
  3043. */
  3044. device[0].class = ata_dev_try_classify(&device[0], dev0, &err);
  3045. if ((slave_possible) && (err != 0x81))
  3046. device[1].class = ata_dev_try_classify(&device[1], dev1, &err);
  3047. /* is double-select really necessary? */
  3048. if (device[1].class != ATA_DEV_NONE)
  3049. ap->ops->dev_select(ap, 1);
  3050. if (device[0].class != ATA_DEV_NONE)
  3051. ap->ops->dev_select(ap, 0);
  3052. /* if no devices were detected, disable this port */
  3053. if ((device[0].class == ATA_DEV_NONE) &&
  3054. (device[1].class == ATA_DEV_NONE))
  3055. goto err_out;
  3056. if (ap->flags & (ATA_FLAG_SATA_RESET | ATA_FLAG_SRST)) {
  3057. /* set up device control for ATA_FLAG_SATA_RESET */
  3058. iowrite8(ap->ctl, ioaddr->ctl_addr);
  3059. }
  3060. DPRINTK("EXIT\n");
  3061. return;
  3062. err_out:
  3063. ata_port_printk(ap, KERN_ERR, "disabling port\n");
  3064. ata_port_disable(ap);
  3065. DPRINTK("EXIT\n");
  3066. }
  3067. /**
  3068. * sata_link_debounce - debounce SATA phy status
  3069. * @link: ATA link to debounce SATA phy status for
  3070. * @params: timing parameters { interval, duratinon, timeout } in msec
  3071. * @deadline: deadline jiffies for the operation
  3072. *
  3073. * Make sure SStatus of @link reaches stable state, determined by
  3074. * holding the same value where DET is not 1 for @duration polled
  3075. * every @interval, before @timeout. Timeout constraints the
  3076. * beginning of the stable state. Because DET gets stuck at 1 on
  3077. * some controllers after hot unplugging, this functions waits
  3078. * until timeout then returns 0 if DET is stable at 1.
  3079. *
  3080. * @timeout is further limited by @deadline. The sooner of the
  3081. * two is used.
  3082. *
  3083. * LOCKING:
  3084. * Kernel thread context (may sleep)
  3085. *
  3086. * RETURNS:
  3087. * 0 on success, -errno on failure.
  3088. */
  3089. int sata_link_debounce(struct ata_link *link, const unsigned long *params,
  3090. unsigned long deadline)
  3091. {
  3092. unsigned long interval_msec = params[0];
  3093. unsigned long duration = msecs_to_jiffies(params[1]);
  3094. unsigned long last_jiffies, t;
  3095. u32 last, cur;
  3096. int rc;
  3097. t = jiffies + msecs_to_jiffies(params[2]);
  3098. if (time_before(t, deadline))
  3099. deadline = t;
  3100. if ((rc = sata_scr_read(link, SCR_STATUS, &cur)))
  3101. return rc;
  3102. cur &= 0xf;
  3103. last = cur;
  3104. last_jiffies = jiffies;
  3105. while (1) {
  3106. msleep(interval_msec);
  3107. if ((rc = sata_scr_read(link, SCR_STATUS, &cur)))
  3108. return rc;
  3109. cur &= 0xf;
  3110. /* DET stable? */
  3111. if (cur == last) {
  3112. if (cur == 1 && time_before(jiffies, deadline))
  3113. continue;
  3114. if (time_after(jiffies, last_jiffies + duration))
  3115. return 0;
  3116. continue;
  3117. }
  3118. /* unstable, start over */
  3119. last = cur;
  3120. last_jiffies = jiffies;
  3121. /* Check deadline. If debouncing failed, return
  3122. * -EPIPE to tell upper layer to lower link speed.
  3123. */
  3124. if (time_after(jiffies, deadline))
  3125. return -EPIPE;
  3126. }
  3127. }
  3128. /**
  3129. * sata_link_resume - resume SATA link
  3130. * @link: ATA link to resume SATA
  3131. * @params: timing parameters { interval, duratinon, timeout } in msec
  3132. * @deadline: deadline jiffies for the operation
  3133. *
  3134. * Resume SATA phy @link and debounce it.
  3135. *
  3136. * LOCKING:
  3137. * Kernel thread context (may sleep)
  3138. *
  3139. * RETURNS:
  3140. * 0 on success, -errno on failure.
  3141. */
  3142. int sata_link_resume(struct ata_link *link, const unsigned long *params,
  3143. unsigned long deadline)
  3144. {
  3145. u32 scontrol;
  3146. int rc;
  3147. if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
  3148. return rc;
  3149. scontrol = (scontrol & 0x0f0) | 0x300;
  3150. if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
  3151. return rc;
  3152. /* Some PHYs react badly if SStatus is pounded immediately
  3153. * after resuming. Delay 200ms before debouncing.
  3154. */
  3155. msleep(200);
  3156. return sata_link_debounce(link, params, deadline);
  3157. }
  3158. /**
  3159. * ata_std_prereset - prepare for reset
  3160. * @link: ATA link to be reset
  3161. * @deadline: deadline jiffies for the operation
  3162. *
  3163. * @link is about to be reset. Initialize it. Failure from
  3164. * prereset makes libata abort whole reset sequence and give up
  3165. * that port, so prereset should be best-effort. It does its
  3166. * best to prepare for reset sequence but if things go wrong, it
  3167. * should just whine, not fail.
  3168. *
  3169. * LOCKING:
  3170. * Kernel thread context (may sleep)
  3171. *
  3172. * RETURNS:
  3173. * 0 on success, -errno otherwise.
  3174. */
  3175. int ata_std_prereset(struct ata_link *link, unsigned long deadline)
  3176. {
  3177. struct ata_port *ap = link->ap;
  3178. struct ata_eh_context *ehc = &link->eh_context;
  3179. const unsigned long *timing = sata_ehc_deb_timing(ehc);
  3180. int rc;
  3181. /* handle link resume */
  3182. if ((ehc->i.flags & ATA_EHI_RESUME_LINK) &&
  3183. (link->flags & ATA_LFLAG_HRST_TO_RESUME))
  3184. ehc->i.action |= ATA_EH_HARDRESET;
  3185. /* Some PMPs don't work with only SRST, force hardreset if PMP
  3186. * is supported.
  3187. */
  3188. if (ap->flags & ATA_FLAG_PMP)
  3189. ehc->i.action |= ATA_EH_HARDRESET;
  3190. /* if we're about to do hardreset, nothing more to do */
  3191. if (ehc->i.action & ATA_EH_HARDRESET)
  3192. return 0;
  3193. /* if SATA, resume link */
  3194. if (ap->flags & ATA_FLAG_SATA) {
  3195. rc = sata_link_resume(link, timing, deadline);
  3196. /* whine about phy resume failure but proceed */
  3197. if (rc && rc != -EOPNOTSUPP)
  3198. ata_link_printk(link, KERN_WARNING, "failed to resume "
  3199. "link for reset (errno=%d)\n", rc);
  3200. }
  3201. /* Wait for !BSY if the controller can wait for the first D2H
  3202. * Reg FIS and we don't know that no device is attached.
  3203. */
  3204. if (!(link->flags & ATA_LFLAG_SKIP_D2H_BSY) && !ata_link_offline(link)) {
  3205. rc = ata_wait_ready(ap, deadline);
  3206. if (rc && rc != -ENODEV) {
  3207. ata_link_printk(link, KERN_WARNING, "device not ready "
  3208. "(errno=%d), forcing hardreset\n", rc);
  3209. ehc->i.action |= ATA_EH_HARDRESET;
  3210. }
  3211. }
  3212. return 0;
  3213. }
  3214. /**
  3215. * ata_std_softreset - reset host port via ATA SRST
  3216. * @link: ATA link to reset
  3217. * @classes: resulting classes of attached devices
  3218. * @deadline: deadline jiffies for the operation
  3219. *
  3220. * Reset host port using ATA SRST.
  3221. *
  3222. * LOCKING:
  3223. * Kernel thread context (may sleep)
  3224. *
  3225. * RETURNS:
  3226. * 0 on success, -errno otherwise.
  3227. */
  3228. int ata_std_softreset(struct ata_link *link, unsigned int *classes,
  3229. unsigned long deadline)
  3230. {
  3231. struct ata_port *ap = link->ap;
  3232. unsigned int slave_possible = ap->flags & ATA_FLAG_SLAVE_POSS;
  3233. unsigned int devmask = 0;
  3234. int rc;
  3235. u8 err;
  3236. DPRINTK("ENTER\n");
  3237. if (ata_link_offline(link)) {
  3238. classes[0] = ATA_DEV_NONE;
  3239. goto out;
  3240. }
  3241. /* determine if device 0/1 are present */
  3242. if (ata_devchk(ap, 0))
  3243. devmask |= (1 << 0);
  3244. if (slave_possible && ata_devchk(ap, 1))
  3245. devmask |= (1 << 1);
  3246. /* select device 0 again */
  3247. ap->ops->dev_select(ap, 0);
  3248. /* issue bus reset */
  3249. DPRINTK("about to softreset, devmask=%x\n", devmask);
  3250. rc = ata_bus_softreset(ap, devmask, deadline);
  3251. /* if link is occupied, -ENODEV too is an error */
  3252. if (rc && (rc != -ENODEV || sata_scr_valid(link))) {
  3253. ata_link_printk(link, KERN_ERR, "SRST failed (errno=%d)\n", rc);
  3254. return rc;
  3255. }
  3256. /* determine by signature whether we have ATA or ATAPI devices */
  3257. classes[0] = ata_dev_try_classify(&link->device[0],
  3258. devmask & (1 << 0), &err);
  3259. if (slave_possible && err != 0x81)
  3260. classes[1] = ata_dev_try_classify(&link->device[1],
  3261. devmask & (1 << 1), &err);
  3262. out:
  3263. DPRINTK("EXIT, classes[0]=%u [1]=%u\n", classes[0], classes[1]);
  3264. return 0;
  3265. }
  3266. /**
  3267. * sata_link_hardreset - reset link via SATA phy reset
  3268. * @link: link to reset
  3269. * @timing: timing parameters { interval, duratinon, timeout } in msec
  3270. * @deadline: deadline jiffies for the operation
  3271. *
  3272. * SATA phy-reset @link using DET bits of SControl register.
  3273. *
  3274. * LOCKING:
  3275. * Kernel thread context (may sleep)
  3276. *
  3277. * RETURNS:
  3278. * 0 on success, -errno otherwise.
  3279. */
  3280. int sata_link_hardreset(struct ata_link *link, const unsigned long *timing,
  3281. unsigned long deadline)
  3282. {
  3283. u32 scontrol;
  3284. int rc;
  3285. DPRINTK("ENTER\n");
  3286. if (sata_set_spd_needed(link)) {
  3287. /* SATA spec says nothing about how to reconfigure
  3288. * spd. To be on the safe side, turn off phy during
  3289. * reconfiguration. This works for at least ICH7 AHCI
  3290. * and Sil3124.
  3291. */
  3292. if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
  3293. goto out;
  3294. scontrol = (scontrol & 0x0f0) | 0x304;
  3295. if ((rc = sata_scr_write(link, SCR_CONTROL, scontrol)))
  3296. goto out;
  3297. sata_set_spd(link);
  3298. }
  3299. /* issue phy wake/reset */
  3300. if ((rc = sata_scr_read(link, SCR_CONTROL, &scontrol)))
  3301. goto out;
  3302. scontrol = (scontrol & 0x0f0) | 0x301;
  3303. if ((rc = sata_scr_write_flush(link, SCR_CONTROL, scontrol)))
  3304. goto out;
  3305. /* Couldn't find anything in SATA I/II specs, but AHCI-1.1
  3306. * 10.4.2 says at least 1 ms.
  3307. */
  3308. msleep(1);
  3309. /* bring link back */
  3310. rc = sata_link_resume(link, timing, deadline);
  3311. out:
  3312. DPRINTK("EXIT, rc=%d\n", rc);
  3313. return rc;
  3314. }
  3315. /**
  3316. * sata_std_hardreset - reset host port via SATA phy reset
  3317. * @link: link to reset
  3318. * @class: resulting class of attached device
  3319. * @deadline: deadline jiffies for the operation
  3320. *
  3321. * SATA phy-reset host port using DET bits of SControl register,
  3322. * wait for !BSY and classify the attached device.
  3323. *
  3324. * LOCKING:
  3325. * Kernel thread context (may sleep)
  3326. *
  3327. * RETURNS:
  3328. * 0 on success, -errno otherwise.
  3329. */
  3330. int sata_std_hardreset(struct ata_link *link, unsigned int *class,
  3331. unsigned long deadline)
  3332. {
  3333. struct ata_port *ap = link->ap;
  3334. const unsigned long *timing = sata_ehc_deb_timing(&link->eh_context);
  3335. int rc;
  3336. DPRINTK("ENTER\n");
  3337. /* do hardreset */
  3338. rc = sata_link_hardreset(link, timing, deadline);
  3339. if (rc) {
  3340. ata_link_printk(link, KERN_ERR,
  3341. "COMRESET failed (errno=%d)\n", rc);
  3342. return rc;
  3343. }
  3344. /* TODO: phy layer with polling, timeouts, etc. */
  3345. if (ata_link_offline(link)) {
  3346. *class = ATA_DEV_NONE;
  3347. DPRINTK("EXIT, link offline\n");
  3348. return 0;
  3349. }
  3350. /* wait a while before checking status */
  3351. ata_wait_after_reset(ap, deadline);
  3352. /* If PMP is supported, we have to do follow-up SRST. Note
  3353. * that some PMPs don't send D2H Reg FIS after hardreset at
  3354. * all if the first port is empty. Wait for it just for a
  3355. * second and request follow-up SRST.
  3356. */
  3357. if (ap->flags & ATA_FLAG_PMP) {
  3358. ata_wait_ready(ap, jiffies + HZ);
  3359. return -EAGAIN;
  3360. }
  3361. rc = ata_wait_ready(ap, deadline);
  3362. /* link occupied, -ENODEV too is an error */
  3363. if (rc) {
  3364. ata_link_printk(link, KERN_ERR,
  3365. "COMRESET failed (errno=%d)\n", rc);
  3366. return rc;
  3367. }
  3368. ap->ops->dev_select(ap, 0); /* probably unnecessary */
  3369. *class = ata_dev_try_classify(link->device, 1, NULL);
  3370. DPRINTK("EXIT, class=%u\n", *class);
  3371. return 0;
  3372. }
  3373. /**
  3374. * ata_std_postreset - standard postreset callback
  3375. * @link: the target ata_link
  3376. * @classes: classes of attached devices
  3377. *
  3378. * This function is invoked after a successful reset. Note that
  3379. * the device might have been reset more than once using
  3380. * different reset methods before postreset is invoked.
  3381. *
  3382. * LOCKING:
  3383. * Kernel thread context (may sleep)
  3384. */
  3385. void ata_std_postreset(struct ata_link *link, unsigned int *classes)
  3386. {
  3387. struct ata_port *ap = link->ap;
  3388. u32 serror;
  3389. DPRINTK("ENTER\n");
  3390. /* print link status */
  3391. sata_print_link_status(link);
  3392. /* clear SError */
  3393. if (sata_scr_read(link, SCR_ERROR, &serror) == 0)
  3394. sata_scr_write(link, SCR_ERROR, serror);
  3395. link->eh_info.serror = 0;
  3396. /* is double-select really necessary? */
  3397. if (classes[0] != ATA_DEV_NONE)
  3398. ap->ops->dev_select(ap, 1);
  3399. if (classes[1] != ATA_DEV_NONE)
  3400. ap->ops->dev_select(ap, 0);
  3401. /* bail out if no device is present */
  3402. if (classes[0] == ATA_DEV_NONE && classes[1] == ATA_DEV_NONE) {
  3403. DPRINTK("EXIT, no device\n");
  3404. return;
  3405. }
  3406. /* set up device control */
  3407. if (ap->ioaddr.ctl_addr)
  3408. iowrite8(ap->ctl, ap->ioaddr.ctl_addr);
  3409. DPRINTK("EXIT\n");
  3410. }
  3411. /**
  3412. * ata_dev_same_device - Determine whether new ID matches configured device
  3413. * @dev: device to compare against
  3414. * @new_class: class of the new device
  3415. * @new_id: IDENTIFY page of the new device
  3416. *
  3417. * Compare @new_class and @new_id against @dev and determine
  3418. * whether @dev is the device indicated by @new_class and
  3419. * @new_id.
  3420. *
  3421. * LOCKING:
  3422. * None.
  3423. *
  3424. * RETURNS:
  3425. * 1 if @dev matches @new_class and @new_id, 0 otherwise.
  3426. */
  3427. static int ata_dev_same_device(struct ata_device *dev, unsigned int new_class,
  3428. const u16 *new_id)
  3429. {
  3430. const u16 *old_id = dev->id;
  3431. unsigned char model[2][ATA_ID_PROD_LEN + 1];
  3432. unsigned char serial[2][ATA_ID_SERNO_LEN + 1];
  3433. if (dev->class != new_class) {
  3434. ata_dev_printk(dev, KERN_INFO, "class mismatch %d != %d\n",
  3435. dev->class, new_class);
  3436. return 0;
  3437. }
  3438. ata_id_c_string(old_id, model[0], ATA_ID_PROD, sizeof(model[0]));
  3439. ata_id_c_string(new_id, model[1], ATA_ID_PROD, sizeof(model[1]));
  3440. ata_id_c_string(old_id, serial[0], ATA_ID_SERNO, sizeof(serial[0]));
  3441. ata_id_c_string(new_id, serial[1], ATA_ID_SERNO, sizeof(serial[1]));
  3442. if (strcmp(model[0], model[1])) {
  3443. ata_dev_printk(dev, KERN_INFO, "model number mismatch "
  3444. "'%s' != '%s'\n", model[0], model[1]);
  3445. return 0;
  3446. }
  3447. if (strcmp(serial[0], serial[1])) {
  3448. ata_dev_printk(dev, KERN_INFO, "serial number mismatch "
  3449. "'%s' != '%s'\n", serial[0], serial[1]);
  3450. return 0;
  3451. }
  3452. return 1;
  3453. }
  3454. /**
  3455. * ata_dev_reread_id - Re-read IDENTIFY data
  3456. * @dev: target ATA device
  3457. * @readid_flags: read ID flags
  3458. *
  3459. * Re-read IDENTIFY page and make sure @dev is still attached to
  3460. * the port.
  3461. *
  3462. * LOCKING:
  3463. * Kernel thread context (may sleep)
  3464. *
  3465. * RETURNS:
  3466. * 0 on success, negative errno otherwise
  3467. */
  3468. int ata_dev_reread_id(struct ata_device *dev, unsigned int readid_flags)
  3469. {
  3470. unsigned int class = dev->class;
  3471. u16 *id = (void *)dev->link->ap->sector_buf;
  3472. int rc;
  3473. /* read ID data */
  3474. rc = ata_dev_read_id(dev, &class, readid_flags, id);
  3475. if (rc)
  3476. return rc;
  3477. /* is the device still there? */
  3478. if (!ata_dev_same_device(dev, class, id))
  3479. return -ENODEV;
  3480. memcpy(dev->id, id, sizeof(id[0]) * ATA_ID_WORDS);
  3481. return 0;
  3482. }
  3483. /**
  3484. * ata_dev_revalidate - Revalidate ATA device
  3485. * @dev: device to revalidate
  3486. * @new_class: new class code
  3487. * @readid_flags: read ID flags
  3488. *
  3489. * Re-read IDENTIFY page, make sure @dev is still attached to the
  3490. * port and reconfigure it according to the new IDENTIFY page.
  3491. *
  3492. * LOCKING:
  3493. * Kernel thread context (may sleep)
  3494. *
  3495. * RETURNS:
  3496. * 0 on success, negative errno otherwise
  3497. */
  3498. int ata_dev_revalidate(struct ata_device *dev, unsigned int new_class,
  3499. unsigned int readid_flags)
  3500. {
  3501. u64 n_sectors = dev->n_sectors;
  3502. int rc;
  3503. if (!ata_dev_enabled(dev))
  3504. return -ENODEV;
  3505. /* fail early if !ATA && !ATAPI to avoid issuing [P]IDENTIFY to PMP */
  3506. if (ata_class_enabled(new_class) &&
  3507. new_class != ATA_DEV_ATA && new_class != ATA_DEV_ATAPI) {
  3508. ata_dev_printk(dev, KERN_INFO, "class mismatch %u != %u\n",
  3509. dev->class, new_class);
  3510. rc = -ENODEV;
  3511. goto fail;
  3512. }
  3513. /* re-read ID */
  3514. rc = ata_dev_reread_id(dev, readid_flags);
  3515. if (rc)
  3516. goto fail;
  3517. /* configure device according to the new ID */
  3518. rc = ata_dev_configure(dev);
  3519. if (rc)
  3520. goto fail;
  3521. /* verify n_sectors hasn't changed */
  3522. if (dev->class == ATA_DEV_ATA && n_sectors &&
  3523. dev->n_sectors != n_sectors) {
  3524. ata_dev_printk(dev, KERN_INFO, "n_sectors mismatch "
  3525. "%llu != %llu\n",
  3526. (unsigned long long)n_sectors,
  3527. (unsigned long long)dev->n_sectors);
  3528. /* restore original n_sectors */
  3529. dev->n_sectors = n_sectors;
  3530. rc = -ENODEV;
  3531. goto fail;
  3532. }
  3533. return 0;
  3534. fail:
  3535. ata_dev_printk(dev, KERN_ERR, "revalidation failed (errno=%d)\n", rc);
  3536. return rc;
  3537. }
  3538. struct ata_blacklist_entry {
  3539. const char *model_num;
  3540. const char *model_rev;
  3541. unsigned long horkage;
  3542. };
  3543. static const struct ata_blacklist_entry ata_device_blacklist [] = {
  3544. /* Devices with DMA related problems under Linux */
  3545. { "WDC AC11000H", NULL, ATA_HORKAGE_NODMA },
  3546. { "WDC AC22100H", NULL, ATA_HORKAGE_NODMA },
  3547. { "WDC AC32500H", NULL, ATA_HORKAGE_NODMA },
  3548. { "WDC AC33100H", NULL, ATA_HORKAGE_NODMA },
  3549. { "WDC AC31600H", NULL, ATA_HORKAGE_NODMA },
  3550. { "WDC AC32100H", "24.09P07", ATA_HORKAGE_NODMA },
  3551. { "WDC AC23200L", "21.10N21", ATA_HORKAGE_NODMA },
  3552. { "Compaq CRD-8241B", NULL, ATA_HORKAGE_NODMA },
  3553. { "CRD-8400B", NULL, ATA_HORKAGE_NODMA },
  3554. { "CRD-8480B", NULL, ATA_HORKAGE_NODMA },
  3555. { "CRD-8482B", NULL, ATA_HORKAGE_NODMA },
  3556. { "CRD-84", NULL, ATA_HORKAGE_NODMA },
  3557. { "SanDisk SDP3B", NULL, ATA_HORKAGE_NODMA },
  3558. { "SanDisk SDP3B-64", NULL, ATA_HORKAGE_NODMA },
  3559. { "SANYO CD-ROM CRD", NULL, ATA_HORKAGE_NODMA },
  3560. { "HITACHI CDR-8", NULL, ATA_HORKAGE_NODMA },
  3561. { "HITACHI CDR-8335", NULL, ATA_HORKAGE_NODMA },
  3562. { "HITACHI CDR-8435", NULL, ATA_HORKAGE_NODMA },
  3563. { "Toshiba CD-ROM XM-6202B", NULL, ATA_HORKAGE_NODMA },
  3564. { "TOSHIBA CD-ROM XM-1702BC", NULL, ATA_HORKAGE_NODMA },
  3565. { "CD-532E-A", NULL, ATA_HORKAGE_NODMA },
  3566. { "E-IDE CD-ROM CR-840",NULL, ATA_HORKAGE_NODMA },
  3567. { "CD-ROM Drive/F5A", NULL, ATA_HORKAGE_NODMA },
  3568. { "WPI CDD-820", NULL, ATA_HORKAGE_NODMA },
  3569. { "SAMSUNG CD-ROM SC-148C", NULL, ATA_HORKAGE_NODMA },
  3570. { "SAMSUNG CD-ROM SC", NULL, ATA_HORKAGE_NODMA },
  3571. { "ATAPI CD-ROM DRIVE 40X MAXIMUM",NULL,ATA_HORKAGE_NODMA },
  3572. { "_NEC DV5800A", NULL, ATA_HORKAGE_NODMA },
  3573. { "SAMSUNG CD-ROM SN-124", "N001", ATA_HORKAGE_NODMA },
  3574. { "Seagate STT20000A", NULL, ATA_HORKAGE_NODMA },
  3575. /* Odd clown on sil3726/4726 PMPs */
  3576. { "Config Disk", NULL, ATA_HORKAGE_NODMA |
  3577. ATA_HORKAGE_SKIP_PM },
  3578. /* Weird ATAPI devices */
  3579. { "TORiSAN DVD-ROM DRD-N216", NULL, ATA_HORKAGE_MAX_SEC_128 },
  3580. /* Devices we expect to fail diagnostics */
  3581. /* Devices where NCQ should be avoided */
  3582. /* NCQ is slow */
  3583. { "WDC WD740ADFD-00", NULL, ATA_HORKAGE_NONCQ },
  3584. { "WDC WD740ADFD-00NLR1", NULL, ATA_HORKAGE_NONCQ, },
  3585. /* http://thread.gmane.org/gmane.linux.ide/14907 */
  3586. { "FUJITSU MHT2060BH", NULL, ATA_HORKAGE_NONCQ },
  3587. /* NCQ is broken */
  3588. { "Maxtor *", "BANC*", ATA_HORKAGE_NONCQ },
  3589. { "Maxtor 7V300F0", "VA111630", ATA_HORKAGE_NONCQ },
  3590. { "ST380817AS", "3.42", ATA_HORKAGE_NONCQ },
  3591. { "ST3160023AS", "3.42", ATA_HORKAGE_NONCQ },
  3592. /* Blacklist entries taken from Silicon Image 3124/3132
  3593. Windows driver .inf file - also several Linux problem reports */
  3594. { "HTS541060G9SA00", "MB3OC60D", ATA_HORKAGE_NONCQ, },
  3595. { "HTS541080G9SA00", "MB4OC60D", ATA_HORKAGE_NONCQ, },
  3596. { "HTS541010G9SA00", "MBZOC60D", ATA_HORKAGE_NONCQ, },
  3597. /* devices which puke on READ_NATIVE_MAX */
  3598. { "HDS724040KLSA80", "KFAOA20N", ATA_HORKAGE_BROKEN_HPA, },
  3599. { "WDC WD3200JD-00KLB0", "WD-WCAMR1130137", ATA_HORKAGE_BROKEN_HPA },
  3600. { "WDC WD2500JD-00HBB0", "WD-WMAL71490727", ATA_HORKAGE_BROKEN_HPA },
  3601. { "MAXTOR 6L080L4", "A93.0500", ATA_HORKAGE_BROKEN_HPA },
  3602. /* Devices which report 1 sector over size HPA */
  3603. { "ST340823A", NULL, ATA_HORKAGE_HPA_SIZE, },
  3604. { "ST320413A", NULL, ATA_HORKAGE_HPA_SIZE, },
  3605. { "ST310211A", NULL, ATA_HORKAGE_HPA_SIZE, },
  3606. /* Devices which get the IVB wrong */
  3607. { "QUANTUM FIREBALLlct10 05", "A03.0900", ATA_HORKAGE_IVB, },
  3608. { "TSSTcorp CDDVDW SH-S202J", "SB00", ATA_HORKAGE_IVB, },
  3609. { "TSSTcorp CDDVDW SH-S202J", "SB01", ATA_HORKAGE_IVB, },
  3610. { "TSSTcorp CDDVDW SH-S202N", "SB00", ATA_HORKAGE_IVB, },
  3611. { "TSSTcorp CDDVDW SH-S202N", "SB01", ATA_HORKAGE_IVB, },
  3612. /* End Marker */
  3613. { }
  3614. };
  3615. static int strn_pattern_cmp(const char *patt, const char *name, int wildchar)
  3616. {
  3617. const char *p;
  3618. int len;
  3619. /*
  3620. * check for trailing wildcard: *\0
  3621. */
  3622. p = strchr(patt, wildchar);
  3623. if (p && ((*(p + 1)) == 0))
  3624. len = p - patt;
  3625. else {
  3626. len = strlen(name);
  3627. if (!len) {
  3628. if (!*patt)
  3629. return 0;
  3630. return -1;
  3631. }
  3632. }
  3633. return strncmp(patt, name, len);
  3634. }
  3635. static unsigned long ata_dev_blacklisted(const struct ata_device *dev)
  3636. {
  3637. unsigned char model_num[ATA_ID_PROD_LEN + 1];
  3638. unsigned char model_rev[ATA_ID_FW_REV_LEN + 1];
  3639. const struct ata_blacklist_entry *ad = ata_device_blacklist;
  3640. ata_id_c_string(dev->id, model_num, ATA_ID_PROD, sizeof(model_num));
  3641. ata_id_c_string(dev->id, model_rev, ATA_ID_FW_REV, sizeof(model_rev));
  3642. while (ad->model_num) {
  3643. if (!strn_pattern_cmp(ad->model_num, model_num, '*')) {
  3644. if (ad->model_rev == NULL)
  3645. return ad->horkage;
  3646. if (!strn_pattern_cmp(ad->model_rev, model_rev, '*'))
  3647. return ad->horkage;
  3648. }
  3649. ad++;
  3650. }
  3651. return 0;
  3652. }
  3653. static int ata_dma_blacklisted(const struct ata_device *dev)
  3654. {
  3655. /* We don't support polling DMA.
  3656. * DMA blacklist those ATAPI devices with CDB-intr (and use PIO)
  3657. * if the LLDD handles only interrupts in the HSM_ST_LAST state.
  3658. */
  3659. if ((dev->link->ap->flags & ATA_FLAG_PIO_POLLING) &&
  3660. (dev->flags & ATA_DFLAG_CDB_INTR))
  3661. return 1;
  3662. return (dev->horkage & ATA_HORKAGE_NODMA) ? 1 : 0;
  3663. }
  3664. /**
  3665. * ata_is_40wire - check drive side detection
  3666. * @dev: device
  3667. *
  3668. * Perform drive side detection decoding, allowing for device vendors
  3669. * who can't follow the documentation.
  3670. */
  3671. static int ata_is_40wire(struct ata_device *dev)
  3672. {
  3673. if (dev->horkage & ATA_HORKAGE_IVB)
  3674. return ata_drive_40wire_relaxed(dev->id);
  3675. return ata_drive_40wire(dev->id);
  3676. }
  3677. /**
  3678. * ata_dev_xfermask - Compute supported xfermask of the given device
  3679. * @dev: Device to compute xfermask for
  3680. *
  3681. * Compute supported xfermask of @dev and store it in
  3682. * dev->*_mask. This function is responsible for applying all
  3683. * known limits including host controller limits, device
  3684. * blacklist, etc...
  3685. *
  3686. * LOCKING:
  3687. * None.
  3688. */
  3689. static void ata_dev_xfermask(struct ata_device *dev)
  3690. {
  3691. struct ata_link *link = dev->link;
  3692. struct ata_port *ap = link->ap;
  3693. struct ata_host *host = ap->host;
  3694. unsigned long xfer_mask;
  3695. /* controller modes available */
  3696. xfer_mask = ata_pack_xfermask(ap->pio_mask,
  3697. ap->mwdma_mask, ap->udma_mask);
  3698. /* drive modes available */
  3699. xfer_mask &= ata_pack_xfermask(dev->pio_mask,
  3700. dev->mwdma_mask, dev->udma_mask);
  3701. xfer_mask &= ata_id_xfermask(dev->id);
  3702. /*
  3703. * CFA Advanced TrueIDE timings are not allowed on a shared
  3704. * cable
  3705. */
  3706. if (ata_dev_pair(dev)) {
  3707. /* No PIO5 or PIO6 */
  3708. xfer_mask &= ~(0x03 << (ATA_SHIFT_PIO + 5));
  3709. /* No MWDMA3 or MWDMA 4 */
  3710. xfer_mask &= ~(0x03 << (ATA_SHIFT_MWDMA + 3));
  3711. }
  3712. if (ata_dma_blacklisted(dev)) {
  3713. xfer_mask &= ~(ATA_MASK_MWDMA | ATA_MASK_UDMA);
  3714. ata_dev_printk(dev, KERN_WARNING,
  3715. "device is on DMA blacklist, disabling DMA\n");
  3716. }
  3717. if ((host->flags & ATA_HOST_SIMPLEX) &&
  3718. host->simplex_claimed && host->simplex_claimed != ap) {
  3719. xfer_mask &= ~(ATA_MASK_MWDMA | ATA_MASK_UDMA);
  3720. ata_dev_printk(dev, KERN_WARNING, "simplex DMA is claimed by "
  3721. "other device, disabling DMA\n");
  3722. }
  3723. if (ap->flags & ATA_FLAG_NO_IORDY)
  3724. xfer_mask &= ata_pio_mask_no_iordy(dev);
  3725. if (ap->ops->mode_filter)
  3726. xfer_mask = ap->ops->mode_filter(dev, xfer_mask);
  3727. /* Apply cable rule here. Don't apply it early because when
  3728. * we handle hot plug the cable type can itself change.
  3729. * Check this last so that we know if the transfer rate was
  3730. * solely limited by the cable.
  3731. * Unknown or 80 wire cables reported host side are checked
  3732. * drive side as well. Cases where we know a 40wire cable
  3733. * is used safely for 80 are not checked here.
  3734. */
  3735. if (xfer_mask & (0xF8 << ATA_SHIFT_UDMA))
  3736. /* UDMA/44 or higher would be available */
  3737. if ((ap->cbl == ATA_CBL_PATA40) ||
  3738. (ata_is_40wire(dev) &&
  3739. (ap->cbl == ATA_CBL_PATA_UNK ||
  3740. ap->cbl == ATA_CBL_PATA80))) {
  3741. ata_dev_printk(dev, KERN_WARNING,
  3742. "limited to UDMA/33 due to 40-wire cable\n");
  3743. xfer_mask &= ~(0xF8 << ATA_SHIFT_UDMA);
  3744. }
  3745. ata_unpack_xfermask(xfer_mask, &dev->pio_mask,
  3746. &dev->mwdma_mask, &dev->udma_mask);
  3747. }
  3748. /**
  3749. * ata_dev_set_xfermode - Issue SET FEATURES - XFER MODE command
  3750. * @dev: Device to which command will be sent
  3751. *
  3752. * Issue SET FEATURES - XFER MODE command to device @dev
  3753. * on port @ap.
  3754. *
  3755. * LOCKING:
  3756. * PCI/etc. bus probe sem.
  3757. *
  3758. * RETURNS:
  3759. * 0 on success, AC_ERR_* mask otherwise.
  3760. */
  3761. static unsigned int ata_dev_set_xfermode(struct ata_device *dev)
  3762. {
  3763. struct ata_taskfile tf;
  3764. unsigned int err_mask;
  3765. /* set up set-features taskfile */
  3766. DPRINTK("set features - xfer mode\n");
  3767. /* Some controllers and ATAPI devices show flaky interrupt
  3768. * behavior after setting xfer mode. Use polling instead.
  3769. */
  3770. ata_tf_init(dev, &tf);
  3771. tf.command = ATA_CMD_SET_FEATURES;
  3772. tf.feature = SETFEATURES_XFER;
  3773. tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE | ATA_TFLAG_POLLING;
  3774. tf.protocol = ATA_PROT_NODATA;
  3775. /* If we are using IORDY we must send the mode setting command */
  3776. if (ata_pio_need_iordy(dev))
  3777. tf.nsect = dev->xfer_mode;
  3778. /* If the device has IORDY and the controller does not - turn it off */
  3779. else if (ata_id_has_iordy(dev->id))
  3780. tf.nsect = 0x01;
  3781. else /* In the ancient relic department - skip all of this */
  3782. return 0;
  3783. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  3784. DPRINTK("EXIT, err_mask=%x\n", err_mask);
  3785. return err_mask;
  3786. }
  3787. /**
  3788. * ata_dev_set_feature - Issue SET FEATURES - SATA FEATURES
  3789. * @dev: Device to which command will be sent
  3790. * @enable: Whether to enable or disable the feature
  3791. * @feature: The sector count represents the feature to set
  3792. *
  3793. * Issue SET FEATURES - SATA FEATURES command to device @dev
  3794. * on port @ap with sector count
  3795. *
  3796. * LOCKING:
  3797. * PCI/etc. bus probe sem.
  3798. *
  3799. * RETURNS:
  3800. * 0 on success, AC_ERR_* mask otherwise.
  3801. */
  3802. static unsigned int ata_dev_set_feature(struct ata_device *dev, u8 enable,
  3803. u8 feature)
  3804. {
  3805. struct ata_taskfile tf;
  3806. unsigned int err_mask;
  3807. /* set up set-features taskfile */
  3808. DPRINTK("set features - SATA features\n");
  3809. ata_tf_init(dev, &tf);
  3810. tf.command = ATA_CMD_SET_FEATURES;
  3811. tf.feature = enable;
  3812. tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
  3813. tf.protocol = ATA_PROT_NODATA;
  3814. tf.nsect = feature;
  3815. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  3816. DPRINTK("EXIT, err_mask=%x\n", err_mask);
  3817. return err_mask;
  3818. }
  3819. /**
  3820. * ata_dev_init_params - Issue INIT DEV PARAMS command
  3821. * @dev: Device to which command will be sent
  3822. * @heads: Number of heads (taskfile parameter)
  3823. * @sectors: Number of sectors (taskfile parameter)
  3824. *
  3825. * LOCKING:
  3826. * Kernel thread context (may sleep)
  3827. *
  3828. * RETURNS:
  3829. * 0 on success, AC_ERR_* mask otherwise.
  3830. */
  3831. static unsigned int ata_dev_init_params(struct ata_device *dev,
  3832. u16 heads, u16 sectors)
  3833. {
  3834. struct ata_taskfile tf;
  3835. unsigned int err_mask;
  3836. /* Number of sectors per track 1-255. Number of heads 1-16 */
  3837. if (sectors < 1 || sectors > 255 || heads < 1 || heads > 16)
  3838. return AC_ERR_INVALID;
  3839. /* set up init dev params taskfile */
  3840. DPRINTK("init dev params \n");
  3841. ata_tf_init(dev, &tf);
  3842. tf.command = ATA_CMD_INIT_DEV_PARAMS;
  3843. tf.flags |= ATA_TFLAG_ISADDR | ATA_TFLAG_DEVICE;
  3844. tf.protocol = ATA_PROT_NODATA;
  3845. tf.nsect = sectors;
  3846. tf.device |= (heads - 1) & 0x0f; /* max head = num. of heads - 1 */
  3847. err_mask = ata_exec_internal(dev, &tf, NULL, DMA_NONE, NULL, 0, 0);
  3848. /* A clean abort indicates an original or just out of spec drive
  3849. and we should continue as we issue the setup based on the
  3850. drive reported working geometry */
  3851. if (err_mask == AC_ERR_DEV && (tf.feature & ATA_ABORTED))
  3852. err_mask = 0;
  3853. DPRINTK("EXIT, err_mask=%x\n", err_mask);
  3854. return err_mask;
  3855. }
  3856. /**
  3857. * ata_sg_clean - Unmap DMA memory associated with command
  3858. * @qc: Command containing DMA memory to be released
  3859. *
  3860. * Unmap all mapped DMA memory associated with this command.
  3861. *
  3862. * LOCKING:
  3863. * spin_lock_irqsave(host lock)
  3864. */
  3865. void ata_sg_clean(struct ata_queued_cmd *qc)
  3866. {
  3867. struct ata_port *ap = qc->ap;
  3868. struct scatterlist *sg = qc->sg;
  3869. int dir = qc->dma_dir;
  3870. WARN_ON(sg == NULL);
  3871. VPRINTK("unmapping %u sg elements\n", qc->n_elem);
  3872. if (qc->n_elem)
  3873. dma_unmap_sg(ap->dev, sg, qc->n_elem, dir);
  3874. qc->flags &= ~ATA_QCFLAG_DMAMAP;
  3875. qc->sg = NULL;
  3876. }
  3877. /**
  3878. * ata_fill_sg - Fill PCI IDE PRD table
  3879. * @qc: Metadata associated with taskfile to be transferred
  3880. *
  3881. * Fill PCI IDE PRD (scatter-gather) table with segments
  3882. * associated with the current disk command.
  3883. *
  3884. * LOCKING:
  3885. * spin_lock_irqsave(host lock)
  3886. *
  3887. */
  3888. static void ata_fill_sg(struct ata_queued_cmd *qc)
  3889. {
  3890. struct ata_port *ap = qc->ap;
  3891. struct scatterlist *sg;
  3892. unsigned int si, pi;
  3893. pi = 0;
  3894. for_each_sg(qc->sg, sg, qc->n_elem, si) {
  3895. u32 addr, offset;
  3896. u32 sg_len, len;
  3897. /* determine if physical DMA addr spans 64K boundary.
  3898. * Note h/w doesn't support 64-bit, so we unconditionally
  3899. * truncate dma_addr_t to u32.
  3900. */
  3901. addr = (u32) sg_dma_address(sg);
  3902. sg_len = sg_dma_len(sg);
  3903. while (sg_len) {
  3904. offset = addr & 0xffff;
  3905. len = sg_len;
  3906. if ((offset + sg_len) > 0x10000)
  3907. len = 0x10000 - offset;
  3908. ap->prd[pi].addr = cpu_to_le32(addr);
  3909. ap->prd[pi].flags_len = cpu_to_le32(len & 0xffff);
  3910. VPRINTK("PRD[%u] = (0x%X, 0x%X)\n", pi, addr, len);
  3911. pi++;
  3912. sg_len -= len;
  3913. addr += len;
  3914. }
  3915. }
  3916. ap->prd[pi - 1].flags_len |= cpu_to_le32(ATA_PRD_EOT);
  3917. }
  3918. /**
  3919. * ata_fill_sg_dumb - Fill PCI IDE PRD table
  3920. * @qc: Metadata associated with taskfile to be transferred
  3921. *
  3922. * Fill PCI IDE PRD (scatter-gather) table with segments
  3923. * associated with the current disk command. Perform the fill
  3924. * so that we avoid writing any length 64K records for
  3925. * controllers that don't follow the spec.
  3926. *
  3927. * LOCKING:
  3928. * spin_lock_irqsave(host lock)
  3929. *
  3930. */
  3931. static void ata_fill_sg_dumb(struct ata_queued_cmd *qc)
  3932. {
  3933. struct ata_port *ap = qc->ap;
  3934. struct scatterlist *sg;
  3935. unsigned int si, pi;
  3936. pi = 0;
  3937. for_each_sg(qc->sg, sg, qc->n_elem, si) {
  3938. u32 addr, offset;
  3939. u32 sg_len, len, blen;
  3940. /* determine if physical DMA addr spans 64K boundary.
  3941. * Note h/w doesn't support 64-bit, so we unconditionally
  3942. * truncate dma_addr_t to u32.
  3943. */
  3944. addr = (u32) sg_dma_address(sg);
  3945. sg_len = sg_dma_len(sg);
  3946. while (sg_len) {
  3947. offset = addr & 0xffff;
  3948. len = sg_len;
  3949. if ((offset + sg_len) > 0x10000)
  3950. len = 0x10000 - offset;
  3951. blen = len & 0xffff;
  3952. ap->prd[pi].addr = cpu_to_le32(addr);
  3953. if (blen == 0) {
  3954. /* Some PATA chipsets like the CS5530 can't
  3955. cope with 0x0000 meaning 64K as the spec says */
  3956. ap->prd[pi].flags_len = cpu_to_le32(0x8000);
  3957. blen = 0x8000;
  3958. ap->prd[++pi].addr = cpu_to_le32(addr + 0x8000);
  3959. }
  3960. ap->prd[pi].flags_len = cpu_to_le32(blen);
  3961. VPRINTK("PRD[%u] = (0x%X, 0x%X)\n", pi, addr, len);
  3962. pi++;
  3963. sg_len -= len;
  3964. addr += len;
  3965. }
  3966. }
  3967. ap->prd[pi - 1].flags_len |= cpu_to_le32(ATA_PRD_EOT);
  3968. }
  3969. /**
  3970. * ata_check_atapi_dma - Check whether ATAPI DMA can be supported
  3971. * @qc: Metadata associated with taskfile to check
  3972. *
  3973. * Allow low-level driver to filter ATA PACKET commands, returning
  3974. * a status indicating whether or not it is OK to use DMA for the
  3975. * supplied PACKET command.
  3976. *
  3977. * LOCKING:
  3978. * spin_lock_irqsave(host lock)
  3979. *
  3980. * RETURNS: 0 when ATAPI DMA can be used
  3981. * nonzero otherwise
  3982. */
  3983. int ata_check_atapi_dma(struct ata_queued_cmd *qc)
  3984. {
  3985. struct ata_port *ap = qc->ap;
  3986. /* Don't allow DMA if it isn't multiple of 16 bytes. Quite a
  3987. * few ATAPI devices choke on such DMA requests.
  3988. */
  3989. if (unlikely(qc->nbytes & 15))
  3990. return 1;
  3991. if (ap->ops->check_atapi_dma)
  3992. return ap->ops->check_atapi_dma(qc);
  3993. return 0;
  3994. }
  3995. /**
  3996. * ata_std_qc_defer - Check whether a qc needs to be deferred
  3997. * @qc: ATA command in question
  3998. *
  3999. * Non-NCQ commands cannot run with any other command, NCQ or
  4000. * not. As upper layer only knows the queue depth, we are
  4001. * responsible for maintaining exclusion. This function checks
  4002. * whether a new command @qc can be issued.
  4003. *
  4004. * LOCKING:
  4005. * spin_lock_irqsave(host lock)
  4006. *
  4007. * RETURNS:
  4008. * ATA_DEFER_* if deferring is needed, 0 otherwise.
  4009. */
  4010. int ata_std_qc_defer(struct ata_queued_cmd *qc)
  4011. {
  4012. struct ata_link *link = qc->dev->link;
  4013. if (qc->tf.protocol == ATA_PROT_NCQ) {
  4014. if (!ata_tag_valid(link->active_tag))
  4015. return 0;
  4016. } else {
  4017. if (!ata_tag_valid(link->active_tag) && !link->sactive)
  4018. return 0;
  4019. }
  4020. return ATA_DEFER_LINK;
  4021. }
  4022. /**
  4023. * ata_qc_prep - Prepare taskfile for submission
  4024. * @qc: Metadata associated with taskfile to be prepared
  4025. *
  4026. * Prepare ATA taskfile for submission.
  4027. *
  4028. * LOCKING:
  4029. * spin_lock_irqsave(host lock)
  4030. */
  4031. void ata_qc_prep(struct ata_queued_cmd *qc)
  4032. {
  4033. if (!(qc->flags & ATA_QCFLAG_DMAMAP))
  4034. return;
  4035. ata_fill_sg(qc);
  4036. }
  4037. /**
  4038. * ata_dumb_qc_prep - Prepare taskfile for submission
  4039. * @qc: Metadata associated with taskfile to be prepared
  4040. *
  4041. * Prepare ATA taskfile for submission.
  4042. *
  4043. * LOCKING:
  4044. * spin_lock_irqsave(host lock)
  4045. */
  4046. void ata_dumb_qc_prep(struct ata_queued_cmd *qc)
  4047. {
  4048. if (!(qc->flags & ATA_QCFLAG_DMAMAP))
  4049. return;
  4050. ata_fill_sg_dumb(qc);
  4051. }
  4052. void ata_noop_qc_prep(struct ata_queued_cmd *qc) { }
  4053. /**
  4054. * ata_sg_init - Associate command with scatter-gather table.
  4055. * @qc: Command to be associated
  4056. * @sg: Scatter-gather table.
  4057. * @n_elem: Number of elements in s/g table.
  4058. *
  4059. * Initialize the data-related elements of queued_cmd @qc
  4060. * to point to a scatter-gather table @sg, containing @n_elem
  4061. * elements.
  4062. *
  4063. * LOCKING:
  4064. * spin_lock_irqsave(host lock)
  4065. */
  4066. void ata_sg_init(struct ata_queued_cmd *qc, struct scatterlist *sg,
  4067. unsigned int n_elem)
  4068. {
  4069. qc->sg = sg;
  4070. qc->n_elem = n_elem;
  4071. qc->cursg = qc->sg;
  4072. }
  4073. /**
  4074. * ata_sg_setup - DMA-map the scatter-gather table associated with a command.
  4075. * @qc: Command with scatter-gather table to be mapped.
  4076. *
  4077. * DMA-map the scatter-gather table associated with queued_cmd @qc.
  4078. *
  4079. * LOCKING:
  4080. * spin_lock_irqsave(host lock)
  4081. *
  4082. * RETURNS:
  4083. * Zero on success, negative on error.
  4084. *
  4085. */
  4086. static int ata_sg_setup(struct ata_queued_cmd *qc)
  4087. {
  4088. struct ata_port *ap = qc->ap;
  4089. unsigned int n_elem;
  4090. VPRINTK("ENTER, ata%u\n", ap->print_id);
  4091. n_elem = dma_map_sg(ap->dev, qc->sg, qc->n_elem, qc->dma_dir);
  4092. if (n_elem < 1)
  4093. return -1;
  4094. DPRINTK("%d sg elements mapped\n", n_elem);
  4095. qc->n_elem = n_elem;
  4096. qc->flags |= ATA_QCFLAG_DMAMAP;
  4097. return 0;
  4098. }
  4099. /**
  4100. * swap_buf_le16 - swap halves of 16-bit words in place
  4101. * @buf: Buffer to swap
  4102. * @buf_words: Number of 16-bit words in buffer.
  4103. *
  4104. * Swap halves of 16-bit words if needed to convert from
  4105. * little-endian byte order to native cpu byte order, or
  4106. * vice-versa.
  4107. *
  4108. * LOCKING:
  4109. * Inherited from caller.
  4110. */
  4111. void swap_buf_le16(u16 *buf, unsigned int buf_words)
  4112. {
  4113. #ifdef __BIG_ENDIAN
  4114. unsigned int i;
  4115. for (i = 0; i < buf_words; i++)
  4116. buf[i] = le16_to_cpu(buf[i]);
  4117. #endif /* __BIG_ENDIAN */
  4118. }
  4119. /**
  4120. * ata_data_xfer - Transfer data by PIO
  4121. * @dev: device to target
  4122. * @buf: data buffer
  4123. * @buflen: buffer length
  4124. * @rw: read/write
  4125. *
  4126. * Transfer data from/to the device data register by PIO.
  4127. *
  4128. * LOCKING:
  4129. * Inherited from caller.
  4130. *
  4131. * RETURNS:
  4132. * Bytes consumed.
  4133. */
  4134. unsigned int ata_data_xfer(struct ata_device *dev, unsigned char *buf,
  4135. unsigned int buflen, int rw)
  4136. {
  4137. struct ata_port *ap = dev->link->ap;
  4138. void __iomem *data_addr = ap->ioaddr.data_addr;
  4139. unsigned int words = buflen >> 1;
  4140. /* Transfer multiple of 2 bytes */
  4141. if (rw == READ)
  4142. ioread16_rep(data_addr, buf, words);
  4143. else
  4144. iowrite16_rep(data_addr, buf, words);
  4145. /* Transfer trailing 1 byte, if any. */
  4146. if (unlikely(buflen & 0x01)) {
  4147. __le16 align_buf[1] = { 0 };
  4148. unsigned char *trailing_buf = buf + buflen - 1;
  4149. if (rw == READ) {
  4150. align_buf[0] = cpu_to_le16(ioread16(data_addr));
  4151. memcpy(trailing_buf, align_buf, 1);
  4152. } else {
  4153. memcpy(align_buf, trailing_buf, 1);
  4154. iowrite16(le16_to_cpu(align_buf[0]), data_addr);
  4155. }
  4156. words++;
  4157. }
  4158. return words << 1;
  4159. }
  4160. /**
  4161. * ata_data_xfer_noirq - Transfer data by PIO
  4162. * @dev: device to target
  4163. * @buf: data buffer
  4164. * @buflen: buffer length
  4165. * @rw: read/write
  4166. *
  4167. * Transfer data from/to the device data register by PIO. Do the
  4168. * transfer with interrupts disabled.
  4169. *
  4170. * LOCKING:
  4171. * Inherited from caller.
  4172. *
  4173. * RETURNS:
  4174. * Bytes consumed.
  4175. */
  4176. unsigned int ata_data_xfer_noirq(struct ata_device *dev, unsigned char *buf,
  4177. unsigned int buflen, int rw)
  4178. {
  4179. unsigned long flags;
  4180. unsigned int consumed;
  4181. local_irq_save(flags);
  4182. consumed = ata_data_xfer(dev, buf, buflen, rw);
  4183. local_irq_restore(flags);
  4184. return consumed;
  4185. }
  4186. /**
  4187. * ata_pio_sector - Transfer a sector of data.
  4188. * @qc: Command on going
  4189. *
  4190. * Transfer qc->sect_size bytes of data from/to the ATA device.
  4191. *
  4192. * LOCKING:
  4193. * Inherited from caller.
  4194. */
  4195. static void ata_pio_sector(struct ata_queued_cmd *qc)
  4196. {
  4197. int do_write = (qc->tf.flags & ATA_TFLAG_WRITE);
  4198. struct ata_port *ap = qc->ap;
  4199. struct page *page;
  4200. unsigned int offset;
  4201. unsigned char *buf;
  4202. if (qc->curbytes == qc->nbytes - qc->sect_size)
  4203. ap->hsm_task_state = HSM_ST_LAST;
  4204. page = sg_page(qc->cursg);
  4205. offset = qc->cursg->offset + qc->cursg_ofs;
  4206. /* get the current page and offset */
  4207. page = nth_page(page, (offset >> PAGE_SHIFT));
  4208. offset %= PAGE_SIZE;
  4209. DPRINTK("data %s\n", qc->tf.flags & ATA_TFLAG_WRITE ? "write" : "read");
  4210. if (PageHighMem(page)) {
  4211. unsigned long flags;
  4212. /* FIXME: use a bounce buffer */
  4213. local_irq_save(flags);
  4214. buf = kmap_atomic(page, KM_IRQ0);
  4215. /* do the actual data transfer */
  4216. ap->ops->data_xfer(qc->dev, buf + offset, qc->sect_size, do_write);
  4217. kunmap_atomic(buf, KM_IRQ0);
  4218. local_irq_restore(flags);
  4219. } else {
  4220. buf = page_address(page);
  4221. ap->ops->data_xfer(qc->dev, buf + offset, qc->sect_size, do_write);
  4222. }
  4223. qc->curbytes += qc->sect_size;
  4224. qc->cursg_ofs += qc->sect_size;
  4225. if (qc->cursg_ofs == qc->cursg->length) {
  4226. qc->cursg = sg_next(qc->cursg);
  4227. qc->cursg_ofs = 0;
  4228. }
  4229. }
  4230. /**
  4231. * ata_pio_sectors - Transfer one or many sectors.
  4232. * @qc: Command on going
  4233. *
  4234. * Transfer one or many sectors of data from/to the
  4235. * ATA device for the DRQ request.
  4236. *
  4237. * LOCKING:
  4238. * Inherited from caller.
  4239. */
  4240. static void ata_pio_sectors(struct ata_queued_cmd *qc)
  4241. {
  4242. if (is_multi_taskfile(&qc->tf)) {
  4243. /* READ/WRITE MULTIPLE */
  4244. unsigned int nsect;
  4245. WARN_ON(qc->dev->multi_count == 0);
  4246. nsect = min((qc->nbytes - qc->curbytes) / qc->sect_size,
  4247. qc->dev->multi_count);
  4248. while (nsect--)
  4249. ata_pio_sector(qc);
  4250. } else
  4251. ata_pio_sector(qc);
  4252. ata_altstatus(qc->ap); /* flush */
  4253. }
  4254. /**
  4255. * atapi_send_cdb - Write CDB bytes to hardware
  4256. * @ap: Port to which ATAPI device is attached.
  4257. * @qc: Taskfile currently active
  4258. *
  4259. * When device has indicated its readiness to accept
  4260. * a CDB, this function is called. Send the CDB.
  4261. *
  4262. * LOCKING:
  4263. * caller.
  4264. */
  4265. static void atapi_send_cdb(struct ata_port *ap, struct ata_queued_cmd *qc)
  4266. {
  4267. /* send SCSI cdb */
  4268. DPRINTK("send cdb\n");
  4269. WARN_ON(qc->dev->cdb_len < 12);
  4270. ap->ops->data_xfer(qc->dev, qc->cdb, qc->dev->cdb_len, 1);
  4271. ata_altstatus(ap); /* flush */
  4272. switch (qc->tf.protocol) {
  4273. case ATAPI_PROT_PIO:
  4274. ap->hsm_task_state = HSM_ST;
  4275. break;
  4276. case ATAPI_PROT_NODATA:
  4277. ap->hsm_task_state = HSM_ST_LAST;
  4278. break;
  4279. case ATAPI_PROT_DMA:
  4280. ap->hsm_task_state = HSM_ST_LAST;
  4281. /* initiate bmdma */
  4282. ap->ops->bmdma_start(qc);
  4283. break;
  4284. }
  4285. }
  4286. /**
  4287. * __atapi_pio_bytes - Transfer data from/to the ATAPI device.
  4288. * @qc: Command on going
  4289. * @bytes: number of bytes
  4290. *
  4291. * Transfer Transfer data from/to the ATAPI device.
  4292. *
  4293. * LOCKING:
  4294. * Inherited from caller.
  4295. *
  4296. */
  4297. static int __atapi_pio_bytes(struct ata_queued_cmd *qc, unsigned int bytes)
  4298. {
  4299. int rw = (qc->tf.flags & ATA_TFLAG_WRITE) ? WRITE : READ;
  4300. struct ata_port *ap = qc->ap;
  4301. struct ata_device *dev = qc->dev;
  4302. struct ata_eh_info *ehi = &dev->link->eh_info;
  4303. struct scatterlist *sg;
  4304. struct page *page;
  4305. unsigned char *buf;
  4306. unsigned int offset, count, consumed;
  4307. next_sg:
  4308. sg = qc->cursg;
  4309. if (unlikely(!sg)) {
  4310. ata_ehi_push_desc(ehi, "unexpected or too much trailing data "
  4311. "buf=%u cur=%u bytes=%u",
  4312. qc->nbytes, qc->curbytes, bytes);
  4313. return -1;
  4314. }
  4315. page = sg_page(sg);
  4316. offset = sg->offset + qc->cursg_ofs;
  4317. /* get the current page and offset */
  4318. page = nth_page(page, (offset >> PAGE_SHIFT));
  4319. offset %= PAGE_SIZE;
  4320. /* don't overrun current sg */
  4321. count = min(sg->length - qc->cursg_ofs, bytes);
  4322. /* don't cross page boundaries */
  4323. count = min(count, (unsigned int)PAGE_SIZE - offset);
  4324. DPRINTK("data %s\n", qc->tf.flags & ATA_TFLAG_WRITE ? "write" : "read");
  4325. if (PageHighMem(page)) {
  4326. unsigned long flags;
  4327. /* FIXME: use bounce buffer */
  4328. local_irq_save(flags);
  4329. buf = kmap_atomic(page, KM_IRQ0);
  4330. /* do the actual data transfer */
  4331. consumed = ap->ops->data_xfer(dev, buf + offset, count, rw);
  4332. kunmap_atomic(buf, KM_IRQ0);
  4333. local_irq_restore(flags);
  4334. } else {
  4335. buf = page_address(page);
  4336. consumed = ap->ops->data_xfer(dev, buf + offset, count, rw);
  4337. }
  4338. bytes -= min(bytes, consumed);
  4339. qc->curbytes += count;
  4340. qc->cursg_ofs += count;
  4341. if (qc->cursg_ofs == sg->length) {
  4342. qc->cursg = sg_next(qc->cursg);
  4343. qc->cursg_ofs = 0;
  4344. }
  4345. /* consumed can be larger than count only for the last transfer */
  4346. WARN_ON(qc->cursg && count != consumed);
  4347. if (bytes)
  4348. goto next_sg;
  4349. return 0;
  4350. }
  4351. /**
  4352. * atapi_pio_bytes - Transfer data from/to the ATAPI device.
  4353. * @qc: Command on going
  4354. *
  4355. * Transfer Transfer data from/to the ATAPI device.
  4356. *
  4357. * LOCKING:
  4358. * Inherited from caller.
  4359. */
  4360. static void atapi_pio_bytes(struct ata_queued_cmd *qc)
  4361. {
  4362. struct ata_port *ap = qc->ap;
  4363. struct ata_device *dev = qc->dev;
  4364. struct ata_eh_info *ehi = &dev->link->eh_info;
  4365. unsigned int ireason, bc_lo, bc_hi, bytes;
  4366. int i_write, do_write = (qc->tf.flags & ATA_TFLAG_WRITE) ? 1 : 0;
  4367. /* Abuse qc->result_tf for temp storage of intermediate TF
  4368. * here to save some kernel stack usage.
  4369. * For normal completion, qc->result_tf is not relevant. For
  4370. * error, qc->result_tf is later overwritten by ata_qc_complete().
  4371. * So, the correctness of qc->result_tf is not affected.
  4372. */
  4373. ap->ops->tf_read(ap, &qc->result_tf);
  4374. ireason = qc->result_tf.nsect;
  4375. bc_lo = qc->result_tf.lbam;
  4376. bc_hi = qc->result_tf.lbah;
  4377. bytes = (bc_hi << 8) | bc_lo;
  4378. /* shall be cleared to zero, indicating xfer of data */
  4379. if (unlikely(ireason & (1 << 0)))
  4380. goto atapi_check;
  4381. /* make sure transfer direction matches expected */
  4382. i_write = ((ireason & (1 << 1)) == 0) ? 1 : 0;
  4383. if (unlikely(do_write != i_write))
  4384. goto atapi_check;
  4385. if (unlikely(!bytes))
  4386. goto atapi_check;
  4387. VPRINTK("ata%u: xfering %d bytes\n", ap->print_id, bytes);
  4388. if (unlikely(__atapi_pio_bytes(qc, bytes)))
  4389. goto err_out;
  4390. ata_altstatus(ap); /* flush */
  4391. return;
  4392. atapi_check:
  4393. ata_ehi_push_desc(ehi, "ATAPI check failed (ireason=0x%x bytes=%u)",
  4394. ireason, bytes);
  4395. err_out:
  4396. qc->err_mask |= AC_ERR_HSM;
  4397. ap->hsm_task_state = HSM_ST_ERR;
  4398. }
  4399. /**
  4400. * ata_hsm_ok_in_wq - Check if the qc can be handled in the workqueue.
  4401. * @ap: the target ata_port
  4402. * @qc: qc on going
  4403. *
  4404. * RETURNS:
  4405. * 1 if ok in workqueue, 0 otherwise.
  4406. */
  4407. static inline int ata_hsm_ok_in_wq(struct ata_port *ap, struct ata_queued_cmd *qc)
  4408. {
  4409. if (qc->tf.flags & ATA_TFLAG_POLLING)
  4410. return 1;
  4411. if (ap->hsm_task_state == HSM_ST_FIRST) {
  4412. if (qc->tf.protocol == ATA_PROT_PIO &&
  4413. (qc->tf.flags & ATA_TFLAG_WRITE))
  4414. return 1;
  4415. if (ata_is_atapi(qc->tf.protocol) &&
  4416. !(qc->dev->flags & ATA_DFLAG_CDB_INTR))
  4417. return 1;
  4418. }
  4419. return 0;
  4420. }
  4421. /**
  4422. * ata_hsm_qc_complete - finish a qc running on standard HSM
  4423. * @qc: Command to complete
  4424. * @in_wq: 1 if called from workqueue, 0 otherwise
  4425. *
  4426. * Finish @qc which is running on standard HSM.
  4427. *
  4428. * LOCKING:
  4429. * If @in_wq is zero, spin_lock_irqsave(host lock).
  4430. * Otherwise, none on entry and grabs host lock.
  4431. */
  4432. static void ata_hsm_qc_complete(struct ata_queued_cmd *qc, int in_wq)
  4433. {
  4434. struct ata_port *ap = qc->ap;
  4435. unsigned long flags;
  4436. if (ap->ops->error_handler) {
  4437. if (in_wq) {
  4438. spin_lock_irqsave(ap->lock, flags);
  4439. /* EH might have kicked in while host lock is
  4440. * released.
  4441. */
  4442. qc = ata_qc_from_tag(ap, qc->tag);
  4443. if (qc) {
  4444. if (likely(!(qc->err_mask & AC_ERR_HSM))) {
  4445. ap->ops->irq_on(ap);
  4446. ata_qc_complete(qc);
  4447. } else
  4448. ata_port_freeze(ap);
  4449. }
  4450. spin_unlock_irqrestore(ap->lock, flags);
  4451. } else {
  4452. if (likely(!(qc->err_mask & AC_ERR_HSM)))
  4453. ata_qc_complete(qc);
  4454. else
  4455. ata_port_freeze(ap);
  4456. }
  4457. } else {
  4458. if (in_wq) {
  4459. spin_lock_irqsave(ap->lock, flags);
  4460. ap->ops->irq_on(ap);
  4461. ata_qc_complete(qc);
  4462. spin_unlock_irqrestore(ap->lock, flags);
  4463. } else
  4464. ata_qc_complete(qc);
  4465. }
  4466. }
  4467. /**
  4468. * ata_hsm_move - move the HSM to the next state.
  4469. * @ap: the target ata_port
  4470. * @qc: qc on going
  4471. * @status: current device status
  4472. * @in_wq: 1 if called from workqueue, 0 otherwise
  4473. *
  4474. * RETURNS:
  4475. * 1 when poll next status needed, 0 otherwise.
  4476. */
  4477. int ata_hsm_move(struct ata_port *ap, struct ata_queued_cmd *qc,
  4478. u8 status, int in_wq)
  4479. {
  4480. unsigned long flags = 0;
  4481. int poll_next;
  4482. WARN_ON((qc->flags & ATA_QCFLAG_ACTIVE) == 0);
  4483. /* Make sure ata_qc_issue_prot() does not throw things
  4484. * like DMA polling into the workqueue. Notice that
  4485. * in_wq is not equivalent to (qc->tf.flags & ATA_TFLAG_POLLING).
  4486. */
  4487. WARN_ON(in_wq != ata_hsm_ok_in_wq(ap, qc));
  4488. fsm_start:
  4489. DPRINTK("ata%u: protocol %d task_state %d (dev_stat 0x%X)\n",
  4490. ap->print_id, qc->tf.protocol, ap->hsm_task_state, status);
  4491. switch (ap->hsm_task_state) {
  4492. case HSM_ST_FIRST:
  4493. /* Send first data block or PACKET CDB */
  4494. /* If polling, we will stay in the work queue after
  4495. * sending the data. Otherwise, interrupt handler
  4496. * takes over after sending the data.
  4497. */
  4498. poll_next = (qc->tf.flags & ATA_TFLAG_POLLING);
  4499. /* check device status */
  4500. if (unlikely((status & ATA_DRQ) == 0)) {
  4501. /* handle BSY=0, DRQ=0 as error */
  4502. if (likely(status & (ATA_ERR | ATA_DF)))
  4503. /* device stops HSM for abort/error */
  4504. qc->err_mask |= AC_ERR_DEV;
  4505. else
  4506. /* HSM violation. Let EH handle this */
  4507. qc->err_mask |= AC_ERR_HSM;
  4508. ap->hsm_task_state = HSM_ST_ERR;
  4509. goto fsm_start;
  4510. }
  4511. /* Device should not ask for data transfer (DRQ=1)
  4512. * when it finds something wrong.
  4513. * We ignore DRQ here and stop the HSM by
  4514. * changing hsm_task_state to HSM_ST_ERR and
  4515. * let the EH abort the command or reset the device.
  4516. */
  4517. if (unlikely(status & (ATA_ERR | ATA_DF))) {
  4518. /* Some ATAPI tape drives forget to clear the ERR bit
  4519. * when doing the next command (mostly request sense).
  4520. * We ignore ERR here to workaround and proceed sending
  4521. * the CDB.
  4522. */
  4523. if (!(qc->dev->horkage & ATA_HORKAGE_STUCK_ERR)) {
  4524. ata_port_printk(ap, KERN_WARNING,
  4525. "DRQ=1 with device error, "
  4526. "dev_stat 0x%X\n", status);
  4527. qc->err_mask |= AC_ERR_HSM;
  4528. ap->hsm_task_state = HSM_ST_ERR;
  4529. goto fsm_start;
  4530. }
  4531. }
  4532. /* Send the CDB (atapi) or the first data block (ata pio out).
  4533. * During the state transition, interrupt handler shouldn't
  4534. * be invoked before the data transfer is complete and
  4535. * hsm_task_state is changed. Hence, the following locking.
  4536. */
  4537. if (in_wq)
  4538. spin_lock_irqsave(ap->lock, flags);
  4539. if (qc->tf.protocol == ATA_PROT_PIO) {
  4540. /* PIO data out protocol.
  4541. * send first data block.
  4542. */
  4543. /* ata_pio_sectors() might change the state
  4544. * to HSM_ST_LAST. so, the state is changed here
  4545. * before ata_pio_sectors().
  4546. */
  4547. ap->hsm_task_state = HSM_ST;
  4548. ata_pio_sectors(qc);
  4549. } else
  4550. /* send CDB */
  4551. atapi_send_cdb(ap, qc);
  4552. if (in_wq)
  4553. spin_unlock_irqrestore(ap->lock, flags);
  4554. /* if polling, ata_pio_task() handles the rest.
  4555. * otherwise, interrupt handler takes over from here.
  4556. */
  4557. break;
  4558. case HSM_ST:
  4559. /* complete command or read/write the data register */
  4560. if (qc->tf.protocol == ATAPI_PROT_PIO) {
  4561. /* ATAPI PIO protocol */
  4562. if ((status & ATA_DRQ) == 0) {
  4563. /* No more data to transfer or device error.
  4564. * Device error will be tagged in HSM_ST_LAST.
  4565. */
  4566. ap->hsm_task_state = HSM_ST_LAST;
  4567. goto fsm_start;
  4568. }
  4569. /* Device should not ask for data transfer (DRQ=1)
  4570. * when it finds something wrong.
  4571. * We ignore DRQ here and stop the HSM by
  4572. * changing hsm_task_state to HSM_ST_ERR and
  4573. * let the EH abort the command or reset the device.
  4574. */
  4575. if (unlikely(status & (ATA_ERR | ATA_DF))) {
  4576. ata_port_printk(ap, KERN_WARNING, "DRQ=1 with "
  4577. "device error, dev_stat 0x%X\n",
  4578. status);
  4579. qc->err_mask |= AC_ERR_HSM;
  4580. ap->hsm_task_state = HSM_ST_ERR;
  4581. goto fsm_start;
  4582. }
  4583. atapi_pio_bytes(qc);
  4584. if (unlikely(ap->hsm_task_state == HSM_ST_ERR))
  4585. /* bad ireason reported by device */
  4586. goto fsm_start;
  4587. } else {
  4588. /* ATA PIO protocol */
  4589. if (unlikely((status & ATA_DRQ) == 0)) {
  4590. /* handle BSY=0, DRQ=0 as error */
  4591. if (likely(status & (ATA_ERR | ATA_DF)))
  4592. /* device stops HSM for abort/error */
  4593. qc->err_mask |= AC_ERR_DEV;
  4594. else
  4595. /* HSM violation. Let EH handle this.
  4596. * Phantom devices also trigger this
  4597. * condition. Mark hint.
  4598. */
  4599. qc->err_mask |= AC_ERR_HSM |
  4600. AC_ERR_NODEV_HINT;
  4601. ap->hsm_task_state = HSM_ST_ERR;
  4602. goto fsm_start;
  4603. }
  4604. /* For PIO reads, some devices may ask for
  4605. * data transfer (DRQ=1) alone with ERR=1.
  4606. * We respect DRQ here and transfer one
  4607. * block of junk data before changing the
  4608. * hsm_task_state to HSM_ST_ERR.
  4609. *
  4610. * For PIO writes, ERR=1 DRQ=1 doesn't make
  4611. * sense since the data block has been
  4612. * transferred to the device.
  4613. */
  4614. if (unlikely(status & (ATA_ERR | ATA_DF))) {
  4615. /* data might be corrputed */
  4616. qc->err_mask |= AC_ERR_DEV;
  4617. if (!(qc->tf.flags & ATA_TFLAG_WRITE)) {
  4618. ata_pio_sectors(qc);
  4619. status = ata_wait_idle(ap);
  4620. }
  4621. if (status & (ATA_BUSY | ATA_DRQ))
  4622. qc->err_mask |= AC_ERR_HSM;
  4623. /* ata_pio_sectors() might change the
  4624. * state to HSM_ST_LAST. so, the state
  4625. * is changed after ata_pio_sectors().
  4626. */
  4627. ap->hsm_task_state = HSM_ST_ERR;
  4628. goto fsm_start;
  4629. }
  4630. ata_pio_sectors(qc);
  4631. if (ap->hsm_task_state == HSM_ST_LAST &&
  4632. (!(qc->tf.flags & ATA_TFLAG_WRITE))) {
  4633. /* all data read */
  4634. status = ata_wait_idle(ap);
  4635. goto fsm_start;
  4636. }
  4637. }
  4638. poll_next = 1;
  4639. break;
  4640. case HSM_ST_LAST:
  4641. if (unlikely(!ata_ok(status))) {
  4642. qc->err_mask |= __ac_err_mask(status);
  4643. ap->hsm_task_state = HSM_ST_ERR;
  4644. goto fsm_start;
  4645. }
  4646. /* no more data to transfer */
  4647. DPRINTK("ata%u: dev %u command complete, drv_stat 0x%x\n",
  4648. ap->print_id, qc->dev->devno, status);
  4649. WARN_ON(qc->err_mask);
  4650. ap->hsm_task_state = HSM_ST_IDLE;
  4651. /* complete taskfile transaction */
  4652. ata_hsm_qc_complete(qc, in_wq);
  4653. poll_next = 0;
  4654. break;
  4655. case HSM_ST_ERR:
  4656. /* make sure qc->err_mask is available to
  4657. * know what's wrong and recover
  4658. */
  4659. WARN_ON(qc->err_mask == 0);
  4660. ap->hsm_task_state = HSM_ST_IDLE;
  4661. /* complete taskfile transaction */
  4662. ata_hsm_qc_complete(qc, in_wq);
  4663. poll_next = 0;
  4664. break;
  4665. default:
  4666. poll_next = 0;
  4667. BUG();
  4668. }
  4669. return poll_next;
  4670. }
  4671. static void ata_pio_task(struct work_struct *work)
  4672. {
  4673. struct ata_port *ap =
  4674. container_of(work, struct ata_port, port_task.work);
  4675. struct ata_queued_cmd *qc = ap->port_task_data;
  4676. u8 status;
  4677. int poll_next;
  4678. fsm_start:
  4679. WARN_ON(ap->hsm_task_state == HSM_ST_IDLE);
  4680. /*
  4681. * This is purely heuristic. This is a fast path.
  4682. * Sometimes when we enter, BSY will be cleared in
  4683. * a chk-status or two. If not, the drive is probably seeking
  4684. * or something. Snooze for a couple msecs, then
  4685. * chk-status again. If still busy, queue delayed work.
  4686. */
  4687. status = ata_busy_wait(ap, ATA_BUSY, 5);
  4688. if (status & ATA_BUSY) {
  4689. msleep(2);
  4690. status = ata_busy_wait(ap, ATA_BUSY, 10);
  4691. if (status & ATA_BUSY) {
  4692. ata_pio_queue_task(ap, qc, ATA_SHORT_PAUSE);
  4693. return;
  4694. }
  4695. }
  4696. /* move the HSM */
  4697. poll_next = ata_hsm_move(ap, qc, status, 1);
  4698. /* another command or interrupt handler
  4699. * may be running at this point.
  4700. */
  4701. if (poll_next)
  4702. goto fsm_start;
  4703. }
  4704. /**
  4705. * ata_qc_new - Request an available ATA command, for queueing
  4706. * @ap: Port associated with device @dev
  4707. * @dev: Device from whom we request an available command structure
  4708. *
  4709. * LOCKING:
  4710. * None.
  4711. */
  4712. static struct ata_queued_cmd *ata_qc_new(struct ata_port *ap)
  4713. {
  4714. struct ata_queued_cmd *qc = NULL;
  4715. unsigned int i;
  4716. /* no command while frozen */
  4717. if (unlikely(ap->pflags & ATA_PFLAG_FROZEN))
  4718. return NULL;
  4719. /* the last tag is reserved for internal command. */
  4720. for (i = 0; i < ATA_MAX_QUEUE - 1; i++)
  4721. if (!test_and_set_bit(i, &ap->qc_allocated)) {
  4722. qc = __ata_qc_from_tag(ap, i);
  4723. break;
  4724. }
  4725. if (qc)
  4726. qc->tag = i;
  4727. return qc;
  4728. }
  4729. /**
  4730. * ata_qc_new_init - Request an available ATA command, and initialize it
  4731. * @dev: Device from whom we request an available command structure
  4732. *
  4733. * LOCKING:
  4734. * None.
  4735. */
  4736. struct ata_queued_cmd *ata_qc_new_init(struct ata_device *dev)
  4737. {
  4738. struct ata_port *ap = dev->link->ap;
  4739. struct ata_queued_cmd *qc;
  4740. qc = ata_qc_new(ap);
  4741. if (qc) {
  4742. qc->scsicmd = NULL;
  4743. qc->ap = ap;
  4744. qc->dev = dev;
  4745. ata_qc_reinit(qc);
  4746. }
  4747. return qc;
  4748. }
  4749. /**
  4750. * ata_qc_free - free unused ata_queued_cmd
  4751. * @qc: Command to complete
  4752. *
  4753. * Designed to free unused ata_queued_cmd object
  4754. * in case something prevents using it.
  4755. *
  4756. * LOCKING:
  4757. * spin_lock_irqsave(host lock)
  4758. */
  4759. void ata_qc_free(struct ata_queued_cmd *qc)
  4760. {
  4761. struct ata_port *ap = qc->ap;
  4762. unsigned int tag;
  4763. WARN_ON(qc == NULL); /* ata_qc_from_tag _might_ return NULL */
  4764. qc->flags = 0;
  4765. tag = qc->tag;
  4766. if (likely(ata_tag_valid(tag))) {
  4767. qc->tag = ATA_TAG_POISON;
  4768. clear_bit(tag, &ap->qc_allocated);
  4769. }
  4770. }
  4771. void __ata_qc_complete(struct ata_queued_cmd *qc)
  4772. {
  4773. struct ata_port *ap = qc->ap;
  4774. struct ata_link *link = qc->dev->link;
  4775. WARN_ON(qc == NULL); /* ata_qc_from_tag _might_ return NULL */
  4776. WARN_ON(!(qc->flags & ATA_QCFLAG_ACTIVE));
  4777. if (likely(qc->flags & ATA_QCFLAG_DMAMAP))
  4778. ata_sg_clean(qc);
  4779. /* command should be marked inactive atomically with qc completion */
  4780. if (qc->tf.protocol == ATA_PROT_NCQ) {
  4781. link->sactive &= ~(1 << qc->tag);
  4782. if (!link->sactive)
  4783. ap->nr_active_links--;
  4784. } else {
  4785. link->active_tag = ATA_TAG_POISON;
  4786. ap->nr_active_links--;
  4787. }
  4788. /* clear exclusive status */
  4789. if (unlikely(qc->flags & ATA_QCFLAG_CLEAR_EXCL &&
  4790. ap->excl_link == link))
  4791. ap->excl_link = NULL;
  4792. /* atapi: mark qc as inactive to prevent the interrupt handler
  4793. * from completing the command twice later, before the error handler
  4794. * is called. (when rc != 0 and atapi request sense is needed)
  4795. */
  4796. qc->flags &= ~ATA_QCFLAG_ACTIVE;
  4797. ap->qc_active &= ~(1 << qc->tag);
  4798. /* call completion callback */
  4799. qc->complete_fn(qc);
  4800. }
  4801. static void fill_result_tf(struct ata_queued_cmd *qc)
  4802. {
  4803. struct ata_port *ap = qc->ap;
  4804. qc->result_tf.flags = qc->tf.flags;
  4805. ap->ops->tf_read(ap, &qc->result_tf);
  4806. }
  4807. static void ata_verify_xfer(struct ata_queued_cmd *qc)
  4808. {
  4809. struct ata_device *dev = qc->dev;
  4810. if (ata_tag_internal(qc->tag))
  4811. return;
  4812. if (ata_is_nodata(qc->tf.protocol))
  4813. return;
  4814. if ((dev->mwdma_mask || dev->udma_mask) && ata_is_pio(qc->tf.protocol))
  4815. return;
  4816. dev->flags &= ~ATA_DFLAG_DUBIOUS_XFER;
  4817. }
  4818. /**
  4819. * ata_qc_complete - Complete an active ATA command
  4820. * @qc: Command to complete
  4821. * @err_mask: ATA Status register contents
  4822. *
  4823. * Indicate to the mid and upper layers that an ATA
  4824. * command has completed, with either an ok or not-ok status.
  4825. *
  4826. * LOCKING:
  4827. * spin_lock_irqsave(host lock)
  4828. */
  4829. void ata_qc_complete(struct ata_queued_cmd *qc)
  4830. {
  4831. struct ata_port *ap = qc->ap;
  4832. /* XXX: New EH and old EH use different mechanisms to
  4833. * synchronize EH with regular execution path.
  4834. *
  4835. * In new EH, a failed qc is marked with ATA_QCFLAG_FAILED.
  4836. * Normal execution path is responsible for not accessing a
  4837. * failed qc. libata core enforces the rule by returning NULL
  4838. * from ata_qc_from_tag() for failed qcs.
  4839. *
  4840. * Old EH depends on ata_qc_complete() nullifying completion
  4841. * requests if ATA_QCFLAG_EH_SCHEDULED is set. Old EH does
  4842. * not synchronize with interrupt handler. Only PIO task is
  4843. * taken care of.
  4844. */
  4845. if (ap->ops->error_handler) {
  4846. struct ata_device *dev = qc->dev;
  4847. struct ata_eh_info *ehi = &dev->link->eh_info;
  4848. WARN_ON(ap->pflags & ATA_PFLAG_FROZEN);
  4849. if (unlikely(qc->err_mask))
  4850. qc->flags |= ATA_QCFLAG_FAILED;
  4851. if (unlikely(qc->flags & ATA_QCFLAG_FAILED)) {
  4852. if (!ata_tag_internal(qc->tag)) {
  4853. /* always fill result TF for failed qc */
  4854. fill_result_tf(qc);
  4855. ata_qc_schedule_eh(qc);
  4856. return;
  4857. }
  4858. }
  4859. /* read result TF if requested */
  4860. if (qc->flags & ATA_QCFLAG_RESULT_TF)
  4861. fill_result_tf(qc);
  4862. /* Some commands need post-processing after successful
  4863. * completion.
  4864. */
  4865. switch (qc->tf.command) {
  4866. case ATA_CMD_SET_FEATURES:
  4867. if (qc->tf.feature != SETFEATURES_WC_ON &&
  4868. qc->tf.feature != SETFEATURES_WC_OFF)
  4869. break;
  4870. /* fall through */
  4871. case ATA_CMD_INIT_DEV_PARAMS: /* CHS translation changed */
  4872. case ATA_CMD_SET_MULTI: /* multi_count changed */
  4873. /* revalidate device */
  4874. ehi->dev_action[dev->devno] |= ATA_EH_REVALIDATE;
  4875. ata_port_schedule_eh(ap);
  4876. break;
  4877. case ATA_CMD_SLEEP:
  4878. dev->flags |= ATA_DFLAG_SLEEPING;
  4879. break;
  4880. }
  4881. if (unlikely(dev->flags & ATA_DFLAG_DUBIOUS_XFER))
  4882. ata_verify_xfer(qc);
  4883. __ata_qc_complete(qc);
  4884. } else {
  4885. if (qc->flags & ATA_QCFLAG_EH_SCHEDULED)
  4886. return;
  4887. /* read result TF if failed or requested */
  4888. if (qc->err_mask || qc->flags & ATA_QCFLAG_RESULT_TF)
  4889. fill_result_tf(qc);
  4890. __ata_qc_complete(qc);
  4891. }
  4892. }
  4893. /**
  4894. * ata_qc_complete_multiple - Complete multiple qcs successfully
  4895. * @ap: port in question
  4896. * @qc_active: new qc_active mask
  4897. * @finish_qc: LLDD callback invoked before completing a qc
  4898. *
  4899. * Complete in-flight commands. This functions is meant to be
  4900. * called from low-level driver's interrupt routine to complete
  4901. * requests normally. ap->qc_active and @qc_active is compared
  4902. * and commands are completed accordingly.
  4903. *
  4904. * LOCKING:
  4905. * spin_lock_irqsave(host lock)
  4906. *
  4907. * RETURNS:
  4908. * Number of completed commands on success, -errno otherwise.
  4909. */
  4910. int ata_qc_complete_multiple(struct ata_port *ap, u32 qc_active,
  4911. void (*finish_qc)(struct ata_queued_cmd *))
  4912. {
  4913. int nr_done = 0;
  4914. u32 done_mask;
  4915. int i;
  4916. done_mask = ap->qc_active ^ qc_active;
  4917. if (unlikely(done_mask & qc_active)) {
  4918. ata_port_printk(ap, KERN_ERR, "illegal qc_active transition "
  4919. "(%08x->%08x)\n", ap->qc_active, qc_active);
  4920. return -EINVAL;
  4921. }
  4922. for (i = 0; i < ATA_MAX_QUEUE; i++) {
  4923. struct ata_queued_cmd *qc;
  4924. if (!(done_mask & (1 << i)))
  4925. continue;
  4926. if ((qc = ata_qc_from_tag(ap, i))) {
  4927. if (finish_qc)
  4928. finish_qc(qc);
  4929. ata_qc_complete(qc);
  4930. nr_done++;
  4931. }
  4932. }
  4933. return nr_done;
  4934. }
  4935. /**
  4936. * ata_qc_issue - issue taskfile to device
  4937. * @qc: command to issue to device
  4938. *
  4939. * Prepare an ATA command to submission to device.
  4940. * This includes mapping the data into a DMA-able
  4941. * area, filling in the S/G table, and finally
  4942. * writing the taskfile to hardware, starting the command.
  4943. *
  4944. * LOCKING:
  4945. * spin_lock_irqsave(host lock)
  4946. */
  4947. void ata_qc_issue(struct ata_queued_cmd *qc)
  4948. {
  4949. struct ata_port *ap = qc->ap;
  4950. struct ata_link *link = qc->dev->link;
  4951. u8 prot = qc->tf.protocol;
  4952. /* Make sure only one non-NCQ command is outstanding. The
  4953. * check is skipped for old EH because it reuses active qc to
  4954. * request ATAPI sense.
  4955. */
  4956. WARN_ON(ap->ops->error_handler && ata_tag_valid(link->active_tag));
  4957. if (ata_is_ncq(prot)) {
  4958. WARN_ON(link->sactive & (1 << qc->tag));
  4959. if (!link->sactive)
  4960. ap->nr_active_links++;
  4961. link->sactive |= 1 << qc->tag;
  4962. } else {
  4963. WARN_ON(link->sactive);
  4964. ap->nr_active_links++;
  4965. link->active_tag = qc->tag;
  4966. }
  4967. qc->flags |= ATA_QCFLAG_ACTIVE;
  4968. ap->qc_active |= 1 << qc->tag;
  4969. /* We guarantee to LLDs that they will have at least one
  4970. * non-zero sg if the command is a data command.
  4971. */
  4972. BUG_ON(ata_is_data(prot) && (!qc->sg || !qc->n_elem || !qc->nbytes));
  4973. if (ata_is_dma(prot) || (ata_is_pio(prot) &&
  4974. (ap->flags & ATA_FLAG_PIO_DMA)))
  4975. if (ata_sg_setup(qc))
  4976. goto sg_err;
  4977. /* if device is sleeping, schedule softreset and abort the link */
  4978. if (unlikely(qc->dev->flags & ATA_DFLAG_SLEEPING)) {
  4979. link->eh_info.action |= ATA_EH_SOFTRESET;
  4980. ata_ehi_push_desc(&link->eh_info, "waking up from sleep");
  4981. ata_link_abort(link);
  4982. return;
  4983. }
  4984. ap->ops->qc_prep(qc);
  4985. qc->err_mask |= ap->ops->qc_issue(qc);
  4986. if (unlikely(qc->err_mask))
  4987. goto err;
  4988. return;
  4989. sg_err:
  4990. qc->err_mask |= AC_ERR_SYSTEM;
  4991. err:
  4992. ata_qc_complete(qc);
  4993. }
  4994. /**
  4995. * ata_qc_issue_prot - issue taskfile to device in proto-dependent manner
  4996. * @qc: command to issue to device
  4997. *
  4998. * Using various libata functions and hooks, this function
  4999. * starts an ATA command. ATA commands are grouped into
  5000. * classes called "protocols", and issuing each type of protocol
  5001. * is slightly different.
  5002. *
  5003. * May be used as the qc_issue() entry in ata_port_operations.
  5004. *
  5005. * LOCKING:
  5006. * spin_lock_irqsave(host lock)
  5007. *
  5008. * RETURNS:
  5009. * Zero on success, AC_ERR_* mask on failure
  5010. */
  5011. unsigned int ata_qc_issue_prot(struct ata_queued_cmd *qc)
  5012. {
  5013. struct ata_port *ap = qc->ap;
  5014. /* Use polling pio if the LLD doesn't handle
  5015. * interrupt driven pio and atapi CDB interrupt.
  5016. */
  5017. if (ap->flags & ATA_FLAG_PIO_POLLING) {
  5018. switch (qc->tf.protocol) {
  5019. case ATA_PROT_PIO:
  5020. case ATA_PROT_NODATA:
  5021. case ATAPI_PROT_PIO:
  5022. case ATAPI_PROT_NODATA:
  5023. qc->tf.flags |= ATA_TFLAG_POLLING;
  5024. break;
  5025. case ATAPI_PROT_DMA:
  5026. if (qc->dev->flags & ATA_DFLAG_CDB_INTR)
  5027. /* see ata_dma_blacklisted() */
  5028. BUG();
  5029. break;
  5030. default:
  5031. break;
  5032. }
  5033. }
  5034. /* select the device */
  5035. ata_dev_select(ap, qc->dev->devno, 1, 0);
  5036. /* start the command */
  5037. switch (qc->tf.protocol) {
  5038. case ATA_PROT_NODATA:
  5039. if (qc->tf.flags & ATA_TFLAG_POLLING)
  5040. ata_qc_set_polling(qc);
  5041. ata_tf_to_host(ap, &qc->tf);
  5042. ap->hsm_task_state = HSM_ST_LAST;
  5043. if (qc->tf.flags & ATA_TFLAG_POLLING)
  5044. ata_pio_queue_task(ap, qc, 0);
  5045. break;
  5046. case ATA_PROT_DMA:
  5047. WARN_ON(qc->tf.flags & ATA_TFLAG_POLLING);
  5048. ap->ops->tf_load(ap, &qc->tf); /* load tf registers */
  5049. ap->ops->bmdma_setup(qc); /* set up bmdma */
  5050. ap->ops->bmdma_start(qc); /* initiate bmdma */
  5051. ap->hsm_task_state = HSM_ST_LAST;
  5052. break;
  5053. case ATA_PROT_PIO:
  5054. if (qc->tf.flags & ATA_TFLAG_POLLING)
  5055. ata_qc_set_polling(qc);
  5056. ata_tf_to_host(ap, &qc->tf);
  5057. if (qc->tf.flags & ATA_TFLAG_WRITE) {
  5058. /* PIO data out protocol */
  5059. ap->hsm_task_state = HSM_ST_FIRST;
  5060. ata_pio_queue_task(ap, qc, 0);
  5061. /* always send first data block using
  5062. * the ata_pio_task() codepath.
  5063. */
  5064. } else {
  5065. /* PIO data in protocol */
  5066. ap->hsm_task_state = HSM_ST;
  5067. if (qc->tf.flags & ATA_TFLAG_POLLING)
  5068. ata_pio_queue_task(ap, qc, 0);
  5069. /* if polling, ata_pio_task() handles the rest.
  5070. * otherwise, interrupt handler takes over from here.
  5071. */
  5072. }
  5073. break;
  5074. case ATAPI_PROT_PIO:
  5075. case ATAPI_PROT_NODATA:
  5076. if (qc->tf.flags & ATA_TFLAG_POLLING)
  5077. ata_qc_set_polling(qc);
  5078. ata_tf_to_host(ap, &qc->tf);
  5079. ap->hsm_task_state = HSM_ST_FIRST;
  5080. /* send cdb by polling if no cdb interrupt */
  5081. if ((!(qc->dev->flags & ATA_DFLAG_CDB_INTR)) ||
  5082. (qc->tf.flags & ATA_TFLAG_POLLING))
  5083. ata_pio_queue_task(ap, qc, 0);
  5084. break;
  5085. case ATAPI_PROT_DMA:
  5086. WARN_ON(qc->tf.flags & ATA_TFLAG_POLLING);
  5087. ap->ops->tf_load(ap, &qc->tf); /* load tf registers */
  5088. ap->ops->bmdma_setup(qc); /* set up bmdma */
  5089. ap->hsm_task_state = HSM_ST_FIRST;
  5090. /* send cdb by polling if no cdb interrupt */
  5091. if (!(qc->dev->flags & ATA_DFLAG_CDB_INTR))
  5092. ata_pio_queue_task(ap, qc, 0);
  5093. break;
  5094. default:
  5095. WARN_ON(1);
  5096. return AC_ERR_SYSTEM;
  5097. }
  5098. return 0;
  5099. }
  5100. /**
  5101. * ata_host_intr - Handle host interrupt for given (port, task)
  5102. * @ap: Port on which interrupt arrived (possibly...)
  5103. * @qc: Taskfile currently active in engine
  5104. *
  5105. * Handle host interrupt for given queued command. Currently,
  5106. * only DMA interrupts are handled. All other commands are
  5107. * handled via polling with interrupts disabled (nIEN bit).
  5108. *
  5109. * LOCKING:
  5110. * spin_lock_irqsave(host lock)
  5111. *
  5112. * RETURNS:
  5113. * One if interrupt was handled, zero if not (shared irq).
  5114. */
  5115. inline unsigned int ata_host_intr(struct ata_port *ap,
  5116. struct ata_queued_cmd *qc)
  5117. {
  5118. struct ata_eh_info *ehi = &ap->link.eh_info;
  5119. u8 status, host_stat = 0;
  5120. VPRINTK("ata%u: protocol %d task_state %d\n",
  5121. ap->print_id, qc->tf.protocol, ap->hsm_task_state);
  5122. /* Check whether we are expecting interrupt in this state */
  5123. switch (ap->hsm_task_state) {
  5124. case HSM_ST_FIRST:
  5125. /* Some pre-ATAPI-4 devices assert INTRQ
  5126. * at this state when ready to receive CDB.
  5127. */
  5128. /* Check the ATA_DFLAG_CDB_INTR flag is enough here.
  5129. * The flag was turned on only for atapi devices. No
  5130. * need to check ata_is_atapi(qc->tf.protocol) again.
  5131. */
  5132. if (!(qc->dev->flags & ATA_DFLAG_CDB_INTR))
  5133. goto idle_irq;
  5134. break;
  5135. case HSM_ST_LAST:
  5136. if (qc->tf.protocol == ATA_PROT_DMA ||
  5137. qc->tf.protocol == ATAPI_PROT_DMA) {
  5138. /* check status of DMA engine */
  5139. host_stat = ap->ops->bmdma_status(ap);
  5140. VPRINTK("ata%u: host_stat 0x%X\n",
  5141. ap->print_id, host_stat);
  5142. /* if it's not our irq... */
  5143. if (!(host_stat & ATA_DMA_INTR))
  5144. goto idle_irq;
  5145. /* before we do anything else, clear DMA-Start bit */
  5146. ap->ops->bmdma_stop(qc);
  5147. if (unlikely(host_stat & ATA_DMA_ERR)) {
  5148. /* error when transfering data to/from memory */
  5149. qc->err_mask |= AC_ERR_HOST_BUS;
  5150. ap->hsm_task_state = HSM_ST_ERR;
  5151. }
  5152. }
  5153. break;
  5154. case HSM_ST:
  5155. break;
  5156. default:
  5157. goto idle_irq;
  5158. }
  5159. /* check altstatus */
  5160. status = ata_altstatus(ap);
  5161. if (status & ATA_BUSY)
  5162. goto idle_irq;
  5163. /* check main status, clearing INTRQ */
  5164. status = ata_chk_status(ap);
  5165. if (unlikely(status & ATA_BUSY))
  5166. goto idle_irq;
  5167. /* ack bmdma irq events */
  5168. ap->ops->irq_clear(ap);
  5169. ata_hsm_move(ap, qc, status, 0);
  5170. if (unlikely(qc->err_mask) && (qc->tf.protocol == ATA_PROT_DMA ||
  5171. qc->tf.protocol == ATAPI_PROT_DMA))
  5172. ata_ehi_push_desc(ehi, "BMDMA stat 0x%x", host_stat);
  5173. return 1; /* irq handled */
  5174. idle_irq:
  5175. ap->stats.idle_irq++;
  5176. #ifdef ATA_IRQ_TRAP
  5177. if ((ap->stats.idle_irq % 1000) == 0) {
  5178. ata_chk_status(ap);
  5179. ap->ops->irq_clear(ap);
  5180. ata_port_printk(ap, KERN_WARNING, "irq trap\n");
  5181. return 1;
  5182. }
  5183. #endif
  5184. return 0; /* irq not handled */
  5185. }
  5186. /**
  5187. * ata_interrupt - Default ATA host interrupt handler
  5188. * @irq: irq line (unused)
  5189. * @dev_instance: pointer to our ata_host information structure
  5190. *
  5191. * Default interrupt handler for PCI IDE devices. Calls
  5192. * ata_host_intr() for each port that is not disabled.
  5193. *
  5194. * LOCKING:
  5195. * Obtains host lock during operation.
  5196. *
  5197. * RETURNS:
  5198. * IRQ_NONE or IRQ_HANDLED.
  5199. */
  5200. irqreturn_t ata_interrupt(int irq, void *dev_instance)
  5201. {
  5202. struct ata_host *host = dev_instance;
  5203. unsigned int i;
  5204. unsigned int handled = 0;
  5205. unsigned long flags;
  5206. /* TODO: make _irqsave conditional on x86 PCI IDE legacy mode */
  5207. spin_lock_irqsave(&host->lock, flags);
  5208. for (i = 0; i < host->n_ports; i++) {
  5209. struct ata_port *ap;
  5210. ap = host->ports[i];
  5211. if (ap &&
  5212. !(ap->flags & ATA_FLAG_DISABLED)) {
  5213. struct ata_queued_cmd *qc;
  5214. qc = ata_qc_from_tag(ap, ap->link.active_tag);
  5215. if (qc && (!(qc->tf.flags & ATA_TFLAG_POLLING)) &&
  5216. (qc->flags & ATA_QCFLAG_ACTIVE))
  5217. handled |= ata_host_intr(ap, qc);
  5218. }
  5219. }
  5220. spin_unlock_irqrestore(&host->lock, flags);
  5221. return IRQ_RETVAL(handled);
  5222. }
  5223. /**
  5224. * sata_scr_valid - test whether SCRs are accessible
  5225. * @link: ATA link to test SCR accessibility for
  5226. *
  5227. * Test whether SCRs are accessible for @link.
  5228. *
  5229. * LOCKING:
  5230. * None.
  5231. *
  5232. * RETURNS:
  5233. * 1 if SCRs are accessible, 0 otherwise.
  5234. */
  5235. int sata_scr_valid(struct ata_link *link)
  5236. {
  5237. struct ata_port *ap = link->ap;
  5238. return (ap->flags & ATA_FLAG_SATA) && ap->ops->scr_read;
  5239. }
  5240. /**
  5241. * sata_scr_read - read SCR register of the specified port
  5242. * @link: ATA link to read SCR for
  5243. * @reg: SCR to read
  5244. * @val: Place to store read value
  5245. *
  5246. * Read SCR register @reg of @link into *@val. This function is
  5247. * guaranteed to succeed if @link is ap->link, the cable type of
  5248. * the port is SATA and the port implements ->scr_read.
  5249. *
  5250. * LOCKING:
  5251. * None if @link is ap->link. Kernel thread context otherwise.
  5252. *
  5253. * RETURNS:
  5254. * 0 on success, negative errno on failure.
  5255. */
  5256. int sata_scr_read(struct ata_link *link, int reg, u32 *val)
  5257. {
  5258. if (ata_is_host_link(link)) {
  5259. struct ata_port *ap = link->ap;
  5260. if (sata_scr_valid(link))
  5261. return ap->ops->scr_read(ap, reg, val);
  5262. return -EOPNOTSUPP;
  5263. }
  5264. return sata_pmp_scr_read(link, reg, val);
  5265. }
  5266. /**
  5267. * sata_scr_write - write SCR register of the specified port
  5268. * @link: ATA link to write SCR for
  5269. * @reg: SCR to write
  5270. * @val: value to write
  5271. *
  5272. * Write @val to SCR register @reg of @link. This function is
  5273. * guaranteed to succeed if @link is ap->link, the cable type of
  5274. * the port is SATA and the port implements ->scr_read.
  5275. *
  5276. * LOCKING:
  5277. * None if @link is ap->link. Kernel thread context otherwise.
  5278. *
  5279. * RETURNS:
  5280. * 0 on success, negative errno on failure.
  5281. */
  5282. int sata_scr_write(struct ata_link *link, int reg, u32 val)
  5283. {
  5284. if (ata_is_host_link(link)) {
  5285. struct ata_port *ap = link->ap;
  5286. if (sata_scr_valid(link))
  5287. return ap->ops->scr_write(ap, reg, val);
  5288. return -EOPNOTSUPP;
  5289. }
  5290. return sata_pmp_scr_write(link, reg, val);
  5291. }
  5292. /**
  5293. * sata_scr_write_flush - write SCR register of the specified port and flush
  5294. * @link: ATA link to write SCR for
  5295. * @reg: SCR to write
  5296. * @val: value to write
  5297. *
  5298. * This function is identical to sata_scr_write() except that this
  5299. * function performs flush after writing to the register.
  5300. *
  5301. * LOCKING:
  5302. * None if @link is ap->link. Kernel thread context otherwise.
  5303. *
  5304. * RETURNS:
  5305. * 0 on success, negative errno on failure.
  5306. */
  5307. int sata_scr_write_flush(struct ata_link *link, int reg, u32 val)
  5308. {
  5309. if (ata_is_host_link(link)) {
  5310. struct ata_port *ap = link->ap;
  5311. int rc;
  5312. if (sata_scr_valid(link)) {
  5313. rc = ap->ops->scr_write(ap, reg, val);
  5314. if (rc == 0)
  5315. rc = ap->ops->scr_read(ap, reg, &val);
  5316. return rc;
  5317. }
  5318. return -EOPNOTSUPP;
  5319. }
  5320. return sata_pmp_scr_write(link, reg, val);
  5321. }
  5322. /**
  5323. * ata_link_online - test whether the given link is online
  5324. * @link: ATA link to test
  5325. *
  5326. * Test whether @link is online. Note that this function returns
  5327. * 0 if online status of @link cannot be obtained, so
  5328. * ata_link_online(link) != !ata_link_offline(link).
  5329. *
  5330. * LOCKING:
  5331. * None.
  5332. *
  5333. * RETURNS:
  5334. * 1 if the port online status is available and online.
  5335. */
  5336. int ata_link_online(struct ata_link *link)
  5337. {
  5338. u32 sstatus;
  5339. if (sata_scr_read(link, SCR_STATUS, &sstatus) == 0 &&
  5340. (sstatus & 0xf) == 0x3)
  5341. return 1;
  5342. return 0;
  5343. }
  5344. /**
  5345. * ata_link_offline - test whether the given link is offline
  5346. * @link: ATA link to test
  5347. *
  5348. * Test whether @link is offline. Note that this function
  5349. * returns 0 if offline status of @link cannot be obtained, so
  5350. * ata_link_online(link) != !ata_link_offline(link).
  5351. *
  5352. * LOCKING:
  5353. * None.
  5354. *
  5355. * RETURNS:
  5356. * 1 if the port offline status is available and offline.
  5357. */
  5358. int ata_link_offline(struct ata_link *link)
  5359. {
  5360. u32 sstatus;
  5361. if (sata_scr_read(link, SCR_STATUS, &sstatus) == 0 &&
  5362. (sstatus & 0xf) != 0x3)
  5363. return 1;
  5364. return 0;
  5365. }
  5366. int ata_flush_cache(struct ata_device *dev)
  5367. {
  5368. unsigned int err_mask;
  5369. u8 cmd;
  5370. if (!ata_try_flush_cache(dev))
  5371. return 0;
  5372. if (dev->flags & ATA_DFLAG_FLUSH_EXT)
  5373. cmd = ATA_CMD_FLUSH_EXT;
  5374. else
  5375. cmd = ATA_CMD_FLUSH;
  5376. /* This is wrong. On a failed flush we get back the LBA of the lost
  5377. sector and we should (assuming it wasn't aborted as unknown) issue
  5378. a further flush command to continue the writeback until it
  5379. does not error */
  5380. err_mask = ata_do_simple_cmd(dev, cmd);
  5381. if (err_mask) {
  5382. ata_dev_printk(dev, KERN_ERR, "failed to flush cache\n");
  5383. return -EIO;
  5384. }
  5385. return 0;
  5386. }
  5387. #ifdef CONFIG_PM
  5388. static int ata_host_request_pm(struct ata_host *host, pm_message_t mesg,
  5389. unsigned int action, unsigned int ehi_flags,
  5390. int wait)
  5391. {
  5392. unsigned long flags;
  5393. int i, rc;
  5394. for (i = 0; i < host->n_ports; i++) {
  5395. struct ata_port *ap = host->ports[i];
  5396. struct ata_link *link;
  5397. /* Previous resume operation might still be in
  5398. * progress. Wait for PM_PENDING to clear.
  5399. */
  5400. if (ap->pflags & ATA_PFLAG_PM_PENDING) {
  5401. ata_port_wait_eh(ap);
  5402. WARN_ON(ap->pflags & ATA_PFLAG_PM_PENDING);
  5403. }
  5404. /* request PM ops to EH */
  5405. spin_lock_irqsave(ap->lock, flags);
  5406. ap->pm_mesg = mesg;
  5407. if (wait) {
  5408. rc = 0;
  5409. ap->pm_result = &rc;
  5410. }
  5411. ap->pflags |= ATA_PFLAG_PM_PENDING;
  5412. __ata_port_for_each_link(link, ap) {
  5413. link->eh_info.action |= action;
  5414. link->eh_info.flags |= ehi_flags;
  5415. }
  5416. ata_port_schedule_eh(ap);
  5417. spin_unlock_irqrestore(ap->lock, flags);
  5418. /* wait and check result */
  5419. if (wait) {
  5420. ata_port_wait_eh(ap);
  5421. WARN_ON(ap->pflags & ATA_PFLAG_PM_PENDING);
  5422. if (rc)
  5423. return rc;
  5424. }
  5425. }
  5426. return 0;
  5427. }
  5428. /**
  5429. * ata_host_suspend - suspend host
  5430. * @host: host to suspend
  5431. * @mesg: PM message
  5432. *
  5433. * Suspend @host. Actual operation is performed by EH. This
  5434. * function requests EH to perform PM operations and waits for EH
  5435. * to finish.
  5436. *
  5437. * LOCKING:
  5438. * Kernel thread context (may sleep).
  5439. *
  5440. * RETURNS:
  5441. * 0 on success, -errno on failure.
  5442. */
  5443. int ata_host_suspend(struct ata_host *host, pm_message_t mesg)
  5444. {
  5445. int rc;
  5446. /*
  5447. * disable link pm on all ports before requesting
  5448. * any pm activity
  5449. */
  5450. ata_lpm_enable(host);
  5451. rc = ata_host_request_pm(host, mesg, 0, ATA_EHI_QUIET, 1);
  5452. if (rc == 0)
  5453. host->dev->power.power_state = mesg;
  5454. return rc;
  5455. }
  5456. /**
  5457. * ata_host_resume - resume host
  5458. * @host: host to resume
  5459. *
  5460. * Resume @host. Actual operation is performed by EH. This
  5461. * function requests EH to perform PM operations and returns.
  5462. * Note that all resume operations are performed parallely.
  5463. *
  5464. * LOCKING:
  5465. * Kernel thread context (may sleep).
  5466. */
  5467. void ata_host_resume(struct ata_host *host)
  5468. {
  5469. ata_host_request_pm(host, PMSG_ON, ATA_EH_SOFTRESET,
  5470. ATA_EHI_NO_AUTOPSY | ATA_EHI_QUIET, 0);
  5471. host->dev->power.power_state = PMSG_ON;
  5472. /* reenable link pm */
  5473. ata_lpm_disable(host);
  5474. }
  5475. #endif
  5476. /**
  5477. * ata_port_start - Set port up for dma.
  5478. * @ap: Port to initialize
  5479. *
  5480. * Called just after data structures for each port are
  5481. * initialized. Allocates space for PRD table.
  5482. *
  5483. * May be used as the port_start() entry in ata_port_operations.
  5484. *
  5485. * LOCKING:
  5486. * Inherited from caller.
  5487. */
  5488. int ata_port_start(struct ata_port *ap)
  5489. {
  5490. struct device *dev = ap->dev;
  5491. ap->prd = dmam_alloc_coherent(dev, ATA_PRD_TBL_SZ, &ap->prd_dma,
  5492. GFP_KERNEL);
  5493. if (!ap->prd)
  5494. return -ENOMEM;
  5495. return 0;
  5496. }
  5497. /**
  5498. * ata_dev_init - Initialize an ata_device structure
  5499. * @dev: Device structure to initialize
  5500. *
  5501. * Initialize @dev in preparation for probing.
  5502. *
  5503. * LOCKING:
  5504. * Inherited from caller.
  5505. */
  5506. void ata_dev_init(struct ata_device *dev)
  5507. {
  5508. struct ata_link *link = dev->link;
  5509. struct ata_port *ap = link->ap;
  5510. unsigned long flags;
  5511. /* SATA spd limit is bound to the first device */
  5512. link->sata_spd_limit = link->hw_sata_spd_limit;
  5513. link->sata_spd = 0;
  5514. /* High bits of dev->flags are used to record warm plug
  5515. * requests which occur asynchronously. Synchronize using
  5516. * host lock.
  5517. */
  5518. spin_lock_irqsave(ap->lock, flags);
  5519. dev->flags &= ~ATA_DFLAG_INIT_MASK;
  5520. dev->horkage = 0;
  5521. spin_unlock_irqrestore(ap->lock, flags);
  5522. memset((void *)dev + ATA_DEVICE_CLEAR_OFFSET, 0,
  5523. sizeof(*dev) - ATA_DEVICE_CLEAR_OFFSET);
  5524. dev->pio_mask = UINT_MAX;
  5525. dev->mwdma_mask = UINT_MAX;
  5526. dev->udma_mask = UINT_MAX;
  5527. }
  5528. /**
  5529. * ata_link_init - Initialize an ata_link structure
  5530. * @ap: ATA port link is attached to
  5531. * @link: Link structure to initialize
  5532. * @pmp: Port multiplier port number
  5533. *
  5534. * Initialize @link.
  5535. *
  5536. * LOCKING:
  5537. * Kernel thread context (may sleep)
  5538. */
  5539. void ata_link_init(struct ata_port *ap, struct ata_link *link, int pmp)
  5540. {
  5541. int i;
  5542. /* clear everything except for devices */
  5543. memset(link, 0, offsetof(struct ata_link, device[0]));
  5544. link->ap = ap;
  5545. link->pmp = pmp;
  5546. link->active_tag = ATA_TAG_POISON;
  5547. link->hw_sata_spd_limit = UINT_MAX;
  5548. /* can't use iterator, ap isn't initialized yet */
  5549. for (i = 0; i < ATA_MAX_DEVICES; i++) {
  5550. struct ata_device *dev = &link->device[i];
  5551. dev->link = link;
  5552. dev->devno = dev - link->device;
  5553. ata_dev_init(dev);
  5554. }
  5555. }
  5556. /**
  5557. * sata_link_init_spd - Initialize link->sata_spd_limit
  5558. * @link: Link to configure sata_spd_limit for
  5559. *
  5560. * Initialize @link->[hw_]sata_spd_limit to the currently
  5561. * configured value.
  5562. *
  5563. * LOCKING:
  5564. * Kernel thread context (may sleep).
  5565. *
  5566. * RETURNS:
  5567. * 0 on success, -errno on failure.
  5568. */
  5569. int sata_link_init_spd(struct ata_link *link)
  5570. {
  5571. u32 scontrol, spd;
  5572. int rc;
  5573. rc = sata_scr_read(link, SCR_CONTROL, &scontrol);
  5574. if (rc)
  5575. return rc;
  5576. spd = (scontrol >> 4) & 0xf;
  5577. if (spd)
  5578. link->hw_sata_spd_limit &= (1 << spd) - 1;
  5579. link->sata_spd_limit = link->hw_sata_spd_limit;
  5580. return 0;
  5581. }
  5582. /**
  5583. * ata_port_alloc - allocate and initialize basic ATA port resources
  5584. * @host: ATA host this allocated port belongs to
  5585. *
  5586. * Allocate and initialize basic ATA port resources.
  5587. *
  5588. * RETURNS:
  5589. * Allocate ATA port on success, NULL on failure.
  5590. *
  5591. * LOCKING:
  5592. * Inherited from calling layer (may sleep).
  5593. */
  5594. struct ata_port *ata_port_alloc(struct ata_host *host)
  5595. {
  5596. struct ata_port *ap;
  5597. DPRINTK("ENTER\n");
  5598. ap = kzalloc(sizeof(*ap), GFP_KERNEL);
  5599. if (!ap)
  5600. return NULL;
  5601. ap->pflags |= ATA_PFLAG_INITIALIZING;
  5602. ap->lock = &host->lock;
  5603. ap->flags = ATA_FLAG_DISABLED;
  5604. ap->print_id = -1;
  5605. ap->ctl = ATA_DEVCTL_OBS;
  5606. ap->host = host;
  5607. ap->dev = host->dev;
  5608. ap->last_ctl = 0xFF;
  5609. #if defined(ATA_VERBOSE_DEBUG)
  5610. /* turn on all debugging levels */
  5611. ap->msg_enable = 0x00FF;
  5612. #elif defined(ATA_DEBUG)
  5613. ap->msg_enable = ATA_MSG_DRV | ATA_MSG_INFO | ATA_MSG_CTL | ATA_MSG_WARN | ATA_MSG_ERR;
  5614. #else
  5615. ap->msg_enable = ATA_MSG_DRV | ATA_MSG_ERR | ATA_MSG_WARN;
  5616. #endif
  5617. INIT_DELAYED_WORK(&ap->port_task, ata_pio_task);
  5618. INIT_DELAYED_WORK(&ap->hotplug_task, ata_scsi_hotplug);
  5619. INIT_WORK(&ap->scsi_rescan_task, ata_scsi_dev_rescan);
  5620. INIT_LIST_HEAD(&ap->eh_done_q);
  5621. init_waitqueue_head(&ap->eh_wait_q);
  5622. init_timer_deferrable(&ap->fastdrain_timer);
  5623. ap->fastdrain_timer.function = ata_eh_fastdrain_timerfn;
  5624. ap->fastdrain_timer.data = (unsigned long)ap;
  5625. ap->cbl = ATA_CBL_NONE;
  5626. ata_link_init(ap, &ap->link, 0);
  5627. #ifdef ATA_IRQ_TRAP
  5628. ap->stats.unhandled_irq = 1;
  5629. ap->stats.idle_irq = 1;
  5630. #endif
  5631. return ap;
  5632. }
  5633. static void ata_host_release(struct device *gendev, void *res)
  5634. {
  5635. struct ata_host *host = dev_get_drvdata(gendev);
  5636. int i;
  5637. for (i = 0; i < host->n_ports; i++) {
  5638. struct ata_port *ap = host->ports[i];
  5639. if (!ap)
  5640. continue;
  5641. if (ap->scsi_host)
  5642. scsi_host_put(ap->scsi_host);
  5643. kfree(ap->pmp_link);
  5644. kfree(ap);
  5645. host->ports[i] = NULL;
  5646. }
  5647. dev_set_drvdata(gendev, NULL);
  5648. }
  5649. /**
  5650. * ata_host_alloc - allocate and init basic ATA host resources
  5651. * @dev: generic device this host is associated with
  5652. * @max_ports: maximum number of ATA ports associated with this host
  5653. *
  5654. * Allocate and initialize basic ATA host resources. LLD calls
  5655. * this function to allocate a host, initializes it fully and
  5656. * attaches it using ata_host_register().
  5657. *
  5658. * @max_ports ports are allocated and host->n_ports is
  5659. * initialized to @max_ports. The caller is allowed to decrease
  5660. * host->n_ports before calling ata_host_register(). The unused
  5661. * ports will be automatically freed on registration.
  5662. *
  5663. * RETURNS:
  5664. * Allocate ATA host on success, NULL on failure.
  5665. *
  5666. * LOCKING:
  5667. * Inherited from calling layer (may sleep).
  5668. */
  5669. struct ata_host *ata_host_alloc(struct device *dev, int max_ports)
  5670. {
  5671. struct ata_host *host;
  5672. size_t sz;
  5673. int i;
  5674. DPRINTK("ENTER\n");
  5675. if (!devres_open_group(dev, NULL, GFP_KERNEL))
  5676. return NULL;
  5677. /* alloc a container for our list of ATA ports (buses) */
  5678. sz = sizeof(struct ata_host) + (max_ports + 1) * sizeof(void *);
  5679. /* alloc a container for our list of ATA ports (buses) */
  5680. host = devres_alloc(ata_host_release, sz, GFP_KERNEL);
  5681. if (!host)
  5682. goto err_out;
  5683. devres_add(dev, host);
  5684. dev_set_drvdata(dev, host);
  5685. spin_lock_init(&host->lock);
  5686. host->dev = dev;
  5687. host->n_ports = max_ports;
  5688. /* allocate ports bound to this host */
  5689. for (i = 0; i < max_ports; i++) {
  5690. struct ata_port *ap;
  5691. ap = ata_port_alloc(host);
  5692. if (!ap)
  5693. goto err_out;
  5694. ap->port_no = i;
  5695. host->ports[i] = ap;
  5696. }
  5697. devres_remove_group(dev, NULL);
  5698. return host;
  5699. err_out:
  5700. devres_release_group(dev, NULL);
  5701. return NULL;
  5702. }
  5703. /**
  5704. * ata_host_alloc_pinfo - alloc host and init with port_info array
  5705. * @dev: generic device this host is associated with
  5706. * @ppi: array of ATA port_info to initialize host with
  5707. * @n_ports: number of ATA ports attached to this host
  5708. *
  5709. * Allocate ATA host and initialize with info from @ppi. If NULL
  5710. * terminated, @ppi may contain fewer entries than @n_ports. The
  5711. * last entry will be used for the remaining ports.
  5712. *
  5713. * RETURNS:
  5714. * Allocate ATA host on success, NULL on failure.
  5715. *
  5716. * LOCKING:
  5717. * Inherited from calling layer (may sleep).
  5718. */
  5719. struct ata_host *ata_host_alloc_pinfo(struct device *dev,
  5720. const struct ata_port_info * const * ppi,
  5721. int n_ports)
  5722. {
  5723. const struct ata_port_info *pi;
  5724. struct ata_host *host;
  5725. int i, j;
  5726. host = ata_host_alloc(dev, n_ports);
  5727. if (!host)
  5728. return NULL;
  5729. for (i = 0, j = 0, pi = NULL; i < host->n_ports; i++) {
  5730. struct ata_port *ap = host->ports[i];
  5731. if (ppi[j])
  5732. pi = ppi[j++];
  5733. ap->pio_mask = pi->pio_mask;
  5734. ap->mwdma_mask = pi->mwdma_mask;
  5735. ap->udma_mask = pi->udma_mask;
  5736. ap->flags |= pi->flags;
  5737. ap->link.flags |= pi->link_flags;
  5738. ap->ops = pi->port_ops;
  5739. if (!host->ops && (pi->port_ops != &ata_dummy_port_ops))
  5740. host->ops = pi->port_ops;
  5741. if (!host->private_data && pi->private_data)
  5742. host->private_data = pi->private_data;
  5743. }
  5744. return host;
  5745. }
  5746. static void ata_host_stop(struct device *gendev, void *res)
  5747. {
  5748. struct ata_host *host = dev_get_drvdata(gendev);
  5749. int i;
  5750. WARN_ON(!(host->flags & ATA_HOST_STARTED));
  5751. for (i = 0; i < host->n_ports; i++) {
  5752. struct ata_port *ap = host->ports[i];
  5753. if (ap->ops->port_stop)
  5754. ap->ops->port_stop(ap);
  5755. }
  5756. if (host->ops->host_stop)
  5757. host->ops->host_stop(host);
  5758. }
  5759. /**
  5760. * ata_host_start - start and freeze ports of an ATA host
  5761. * @host: ATA host to start ports for
  5762. *
  5763. * Start and then freeze ports of @host. Started status is
  5764. * recorded in host->flags, so this function can be called
  5765. * multiple times. Ports are guaranteed to get started only
  5766. * once. If host->ops isn't initialized yet, its set to the
  5767. * first non-dummy port ops.
  5768. *
  5769. * LOCKING:
  5770. * Inherited from calling layer (may sleep).
  5771. *
  5772. * RETURNS:
  5773. * 0 if all ports are started successfully, -errno otherwise.
  5774. */
  5775. int ata_host_start(struct ata_host *host)
  5776. {
  5777. int have_stop = 0;
  5778. void *start_dr = NULL;
  5779. int i, rc;
  5780. if (host->flags & ATA_HOST_STARTED)
  5781. return 0;
  5782. for (i = 0; i < host->n_ports; i++) {
  5783. struct ata_port *ap = host->ports[i];
  5784. if (!host->ops && !ata_port_is_dummy(ap))
  5785. host->ops = ap->ops;
  5786. if (ap->ops->port_stop)
  5787. have_stop = 1;
  5788. }
  5789. if (host->ops->host_stop)
  5790. have_stop = 1;
  5791. if (have_stop) {
  5792. start_dr = devres_alloc(ata_host_stop, 0, GFP_KERNEL);
  5793. if (!start_dr)
  5794. return -ENOMEM;
  5795. }
  5796. for (i = 0; i < host->n_ports; i++) {
  5797. struct ata_port *ap = host->ports[i];
  5798. if (ap->ops->port_start) {
  5799. rc = ap->ops->port_start(ap);
  5800. if (rc) {
  5801. if (rc != -ENODEV)
  5802. dev_printk(KERN_ERR, host->dev,
  5803. "failed to start port %d "
  5804. "(errno=%d)\n", i, rc);
  5805. goto err_out;
  5806. }
  5807. }
  5808. ata_eh_freeze_port(ap);
  5809. }
  5810. if (start_dr)
  5811. devres_add(host->dev, start_dr);
  5812. host->flags |= ATA_HOST_STARTED;
  5813. return 0;
  5814. err_out:
  5815. while (--i >= 0) {
  5816. struct ata_port *ap = host->ports[i];
  5817. if (ap->ops->port_stop)
  5818. ap->ops->port_stop(ap);
  5819. }
  5820. devres_free(start_dr);
  5821. return rc;
  5822. }
  5823. /**
  5824. * ata_sas_host_init - Initialize a host struct
  5825. * @host: host to initialize
  5826. * @dev: device host is attached to
  5827. * @flags: host flags
  5828. * @ops: port_ops
  5829. *
  5830. * LOCKING:
  5831. * PCI/etc. bus probe sem.
  5832. *
  5833. */
  5834. /* KILLME - the only user left is ipr */
  5835. void ata_host_init(struct ata_host *host, struct device *dev,
  5836. unsigned long flags, const struct ata_port_operations *ops)
  5837. {
  5838. spin_lock_init(&host->lock);
  5839. host->dev = dev;
  5840. host->flags = flags;
  5841. host->ops = ops;
  5842. }
  5843. /**
  5844. * ata_host_register - register initialized ATA host
  5845. * @host: ATA host to register
  5846. * @sht: template for SCSI host
  5847. *
  5848. * Register initialized ATA host. @host is allocated using
  5849. * ata_host_alloc() and fully initialized by LLD. This function
  5850. * starts ports, registers @host with ATA and SCSI layers and
  5851. * probe registered devices.
  5852. *
  5853. * LOCKING:
  5854. * Inherited from calling layer (may sleep).
  5855. *
  5856. * RETURNS:
  5857. * 0 on success, -errno otherwise.
  5858. */
  5859. int ata_host_register(struct ata_host *host, struct scsi_host_template *sht)
  5860. {
  5861. int i, rc;
  5862. /* host must have been started */
  5863. if (!(host->flags & ATA_HOST_STARTED)) {
  5864. dev_printk(KERN_ERR, host->dev,
  5865. "BUG: trying to register unstarted host\n");
  5866. WARN_ON(1);
  5867. return -EINVAL;
  5868. }
  5869. /* Blow away unused ports. This happens when LLD can't
  5870. * determine the exact number of ports to allocate at
  5871. * allocation time.
  5872. */
  5873. for (i = host->n_ports; host->ports[i]; i++)
  5874. kfree(host->ports[i]);
  5875. /* give ports names and add SCSI hosts */
  5876. for (i = 0; i < host->n_ports; i++)
  5877. host->ports[i]->print_id = ata_print_id++;
  5878. rc = ata_scsi_add_hosts(host, sht);
  5879. if (rc)
  5880. return rc;
  5881. /* associate with ACPI nodes */
  5882. ata_acpi_associate(host);
  5883. /* set cable, sata_spd_limit and report */
  5884. for (i = 0; i < host->n_ports; i++) {
  5885. struct ata_port *ap = host->ports[i];
  5886. unsigned long xfer_mask;
  5887. /* set SATA cable type if still unset */
  5888. if (ap->cbl == ATA_CBL_NONE && (ap->flags & ATA_FLAG_SATA))
  5889. ap->cbl = ATA_CBL_SATA;
  5890. /* init sata_spd_limit to the current value */
  5891. sata_link_init_spd(&ap->link);
  5892. /* print per-port info to dmesg */
  5893. xfer_mask = ata_pack_xfermask(ap->pio_mask, ap->mwdma_mask,
  5894. ap->udma_mask);
  5895. if (!ata_port_is_dummy(ap)) {
  5896. ata_port_printk(ap, KERN_INFO,
  5897. "%cATA max %s %s\n",
  5898. (ap->flags & ATA_FLAG_SATA) ? 'S' : 'P',
  5899. ata_mode_string(xfer_mask),
  5900. ap->link.eh_info.desc);
  5901. ata_ehi_clear_desc(&ap->link.eh_info);
  5902. } else
  5903. ata_port_printk(ap, KERN_INFO, "DUMMY\n");
  5904. }
  5905. /* perform each probe synchronously */
  5906. DPRINTK("probe begin\n");
  5907. for (i = 0; i < host->n_ports; i++) {
  5908. struct ata_port *ap = host->ports[i];
  5909. /* probe */
  5910. if (ap->ops->error_handler) {
  5911. struct ata_eh_info *ehi = &ap->link.eh_info;
  5912. unsigned long flags;
  5913. ata_port_probe(ap);
  5914. /* kick EH for boot probing */
  5915. spin_lock_irqsave(ap->lock, flags);
  5916. ehi->probe_mask =
  5917. (1 << ata_link_max_devices(&ap->link)) - 1;
  5918. ehi->action |= ATA_EH_SOFTRESET;
  5919. ehi->flags |= ATA_EHI_NO_AUTOPSY | ATA_EHI_QUIET;
  5920. ap->pflags &= ~ATA_PFLAG_INITIALIZING;
  5921. ap->pflags |= ATA_PFLAG_LOADING;
  5922. ata_port_schedule_eh(ap);
  5923. spin_unlock_irqrestore(ap->lock, flags);
  5924. /* wait for EH to finish */
  5925. ata_port_wait_eh(ap);
  5926. } else {
  5927. DPRINTK("ata%u: bus probe begin\n", ap->print_id);
  5928. rc = ata_bus_probe(ap);
  5929. DPRINTK("ata%u: bus probe end\n", ap->print_id);
  5930. if (rc) {
  5931. /* FIXME: do something useful here?
  5932. * Current libata behavior will
  5933. * tear down everything when
  5934. * the module is removed
  5935. * or the h/w is unplugged.
  5936. */
  5937. }
  5938. }
  5939. }
  5940. /* probes are done, now scan each port's disk(s) */
  5941. DPRINTK("host probe begin\n");
  5942. for (i = 0; i < host->n_ports; i++) {
  5943. struct ata_port *ap = host->ports[i];
  5944. ata_scsi_scan_host(ap, 1);
  5945. ata_lpm_schedule(ap, ap->pm_policy);
  5946. }
  5947. return 0;
  5948. }
  5949. /**
  5950. * ata_host_activate - start host, request IRQ and register it
  5951. * @host: target ATA host
  5952. * @irq: IRQ to request
  5953. * @irq_handler: irq_handler used when requesting IRQ
  5954. * @irq_flags: irq_flags used when requesting IRQ
  5955. * @sht: scsi_host_template to use when registering the host
  5956. *
  5957. * After allocating an ATA host and initializing it, most libata
  5958. * LLDs perform three steps to activate the host - start host,
  5959. * request IRQ and register it. This helper takes necessasry
  5960. * arguments and performs the three steps in one go.
  5961. *
  5962. * An invalid IRQ skips the IRQ registration and expects the host to
  5963. * have set polling mode on the port. In this case, @irq_handler
  5964. * should be NULL.
  5965. *
  5966. * LOCKING:
  5967. * Inherited from calling layer (may sleep).
  5968. *
  5969. * RETURNS:
  5970. * 0 on success, -errno otherwise.
  5971. */
  5972. int ata_host_activate(struct ata_host *host, int irq,
  5973. irq_handler_t irq_handler, unsigned long irq_flags,
  5974. struct scsi_host_template *sht)
  5975. {
  5976. int i, rc;
  5977. rc = ata_host_start(host);
  5978. if (rc)
  5979. return rc;
  5980. /* Special case for polling mode */
  5981. if (!irq) {
  5982. WARN_ON(irq_handler);
  5983. return ata_host_register(host, sht);
  5984. }
  5985. rc = devm_request_irq(host->dev, irq, irq_handler, irq_flags,
  5986. dev_driver_string(host->dev), host);
  5987. if (rc)
  5988. return rc;
  5989. for (i = 0; i < host->n_ports; i++)
  5990. ata_port_desc(host->ports[i], "irq %d", irq);
  5991. rc = ata_host_register(host, sht);
  5992. /* if failed, just free the IRQ and leave ports alone */
  5993. if (rc)
  5994. devm_free_irq(host->dev, irq, host);
  5995. return rc;
  5996. }
  5997. /**
  5998. * ata_port_detach - Detach ATA port in prepration of device removal
  5999. * @ap: ATA port to be detached
  6000. *
  6001. * Detach all ATA devices and the associated SCSI devices of @ap;
  6002. * then, remove the associated SCSI host. @ap is guaranteed to
  6003. * be quiescent on return from this function.
  6004. *
  6005. * LOCKING:
  6006. * Kernel thread context (may sleep).
  6007. */
  6008. static void ata_port_detach(struct ata_port *ap)
  6009. {
  6010. unsigned long flags;
  6011. struct ata_link *link;
  6012. struct ata_device *dev;
  6013. if (!ap->ops->error_handler)
  6014. goto skip_eh;
  6015. /* tell EH we're leaving & flush EH */
  6016. spin_lock_irqsave(ap->lock, flags);
  6017. ap->pflags |= ATA_PFLAG_UNLOADING;
  6018. spin_unlock_irqrestore(ap->lock, flags);
  6019. ata_port_wait_eh(ap);
  6020. /* EH is now guaranteed to see UNLOADING - EH context belongs
  6021. * to us. Disable all existing devices.
  6022. */
  6023. ata_port_for_each_link(link, ap) {
  6024. ata_link_for_each_dev(dev, link)
  6025. ata_dev_disable(dev);
  6026. }
  6027. /* Final freeze & EH. All in-flight commands are aborted. EH
  6028. * will be skipped and retrials will be terminated with bad
  6029. * target.
  6030. */
  6031. spin_lock_irqsave(ap->lock, flags);
  6032. ata_port_freeze(ap); /* won't be thawed */
  6033. spin_unlock_irqrestore(ap->lock, flags);
  6034. ata_port_wait_eh(ap);
  6035. cancel_rearming_delayed_work(&ap->hotplug_task);
  6036. skip_eh:
  6037. /* remove the associated SCSI host */
  6038. scsi_remove_host(ap->scsi_host);
  6039. }
  6040. /**
  6041. * ata_host_detach - Detach all ports of an ATA host
  6042. * @host: Host to detach
  6043. *
  6044. * Detach all ports of @host.
  6045. *
  6046. * LOCKING:
  6047. * Kernel thread context (may sleep).
  6048. */
  6049. void ata_host_detach(struct ata_host *host)
  6050. {
  6051. int i;
  6052. for (i = 0; i < host->n_ports; i++)
  6053. ata_port_detach(host->ports[i]);
  6054. /* the host is dead now, dissociate ACPI */
  6055. ata_acpi_dissociate(host);
  6056. }
  6057. /**
  6058. * ata_std_ports - initialize ioaddr with standard port offsets.
  6059. * @ioaddr: IO address structure to be initialized
  6060. *
  6061. * Utility function which initializes data_addr, error_addr,
  6062. * feature_addr, nsect_addr, lbal_addr, lbam_addr, lbah_addr,
  6063. * device_addr, status_addr, and command_addr to standard offsets
  6064. * relative to cmd_addr.
  6065. *
  6066. * Does not set ctl_addr, altstatus_addr, bmdma_addr, or scr_addr.
  6067. */
  6068. void ata_std_ports(struct ata_ioports *ioaddr)
  6069. {
  6070. ioaddr->data_addr = ioaddr->cmd_addr + ATA_REG_DATA;
  6071. ioaddr->error_addr = ioaddr->cmd_addr + ATA_REG_ERR;
  6072. ioaddr->feature_addr = ioaddr->cmd_addr + ATA_REG_FEATURE;
  6073. ioaddr->nsect_addr = ioaddr->cmd_addr + ATA_REG_NSECT;
  6074. ioaddr->lbal_addr = ioaddr->cmd_addr + ATA_REG_LBAL;
  6075. ioaddr->lbam_addr = ioaddr->cmd_addr + ATA_REG_LBAM;
  6076. ioaddr->lbah_addr = ioaddr->cmd_addr + ATA_REG_LBAH;
  6077. ioaddr->device_addr = ioaddr->cmd_addr + ATA_REG_DEVICE;
  6078. ioaddr->status_addr = ioaddr->cmd_addr + ATA_REG_STATUS;
  6079. ioaddr->command_addr = ioaddr->cmd_addr + ATA_REG_CMD;
  6080. }
  6081. #ifdef CONFIG_PCI
  6082. /**
  6083. * ata_pci_remove_one - PCI layer callback for device removal
  6084. * @pdev: PCI device that was removed
  6085. *
  6086. * PCI layer indicates to libata via this hook that hot-unplug or
  6087. * module unload event has occurred. Detach all ports. Resource
  6088. * release is handled via devres.
  6089. *
  6090. * LOCKING:
  6091. * Inherited from PCI layer (may sleep).
  6092. */
  6093. void ata_pci_remove_one(struct pci_dev *pdev)
  6094. {
  6095. struct device *dev = &pdev->dev;
  6096. struct ata_host *host = dev_get_drvdata(dev);
  6097. ata_host_detach(host);
  6098. }
  6099. /* move to PCI subsystem */
  6100. int pci_test_config_bits(struct pci_dev *pdev, const struct pci_bits *bits)
  6101. {
  6102. unsigned long tmp = 0;
  6103. switch (bits->width) {
  6104. case 1: {
  6105. u8 tmp8 = 0;
  6106. pci_read_config_byte(pdev, bits->reg, &tmp8);
  6107. tmp = tmp8;
  6108. break;
  6109. }
  6110. case 2: {
  6111. u16 tmp16 = 0;
  6112. pci_read_config_word(pdev, bits->reg, &tmp16);
  6113. tmp = tmp16;
  6114. break;
  6115. }
  6116. case 4: {
  6117. u32 tmp32 = 0;
  6118. pci_read_config_dword(pdev, bits->reg, &tmp32);
  6119. tmp = tmp32;
  6120. break;
  6121. }
  6122. default:
  6123. return -EINVAL;
  6124. }
  6125. tmp &= bits->mask;
  6126. return (tmp == bits->val) ? 1 : 0;
  6127. }
  6128. #ifdef CONFIG_PM
  6129. void ata_pci_device_do_suspend(struct pci_dev *pdev, pm_message_t mesg)
  6130. {
  6131. pci_save_state(pdev);
  6132. pci_disable_device(pdev);
  6133. if (mesg.event == PM_EVENT_SUSPEND)
  6134. pci_set_power_state(pdev, PCI_D3hot);
  6135. }
  6136. int ata_pci_device_do_resume(struct pci_dev *pdev)
  6137. {
  6138. int rc;
  6139. pci_set_power_state(pdev, PCI_D0);
  6140. pci_restore_state(pdev);
  6141. rc = pcim_enable_device(pdev);
  6142. if (rc) {
  6143. dev_printk(KERN_ERR, &pdev->dev,
  6144. "failed to enable device after resume (%d)\n", rc);
  6145. return rc;
  6146. }
  6147. pci_set_master(pdev);
  6148. return 0;
  6149. }
  6150. int ata_pci_device_suspend(struct pci_dev *pdev, pm_message_t mesg)
  6151. {
  6152. struct ata_host *host = dev_get_drvdata(&pdev->dev);
  6153. int rc = 0;
  6154. rc = ata_host_suspend(host, mesg);
  6155. if (rc)
  6156. return rc;
  6157. ata_pci_device_do_suspend(pdev, mesg);
  6158. return 0;
  6159. }
  6160. int ata_pci_device_resume(struct pci_dev *pdev)
  6161. {
  6162. struct ata_host *host = dev_get_drvdata(&pdev->dev);
  6163. int rc;
  6164. rc = ata_pci_device_do_resume(pdev);
  6165. if (rc == 0)
  6166. ata_host_resume(host);
  6167. return rc;
  6168. }
  6169. #endif /* CONFIG_PM */
  6170. #endif /* CONFIG_PCI */
  6171. static int __init ata_init(void)
  6172. {
  6173. ata_probe_timeout *= HZ;
  6174. ata_wq = create_workqueue("ata");
  6175. if (!ata_wq)
  6176. return -ENOMEM;
  6177. ata_aux_wq = create_singlethread_workqueue("ata_aux");
  6178. if (!ata_aux_wq) {
  6179. destroy_workqueue(ata_wq);
  6180. return -ENOMEM;
  6181. }
  6182. printk(KERN_DEBUG "libata version " DRV_VERSION " loaded.\n");
  6183. return 0;
  6184. }
  6185. static void __exit ata_exit(void)
  6186. {
  6187. destroy_workqueue(ata_wq);
  6188. destroy_workqueue(ata_aux_wq);
  6189. }
  6190. subsys_initcall(ata_init);
  6191. module_exit(ata_exit);
  6192. static unsigned long ratelimit_time;
  6193. static DEFINE_SPINLOCK(ata_ratelimit_lock);
  6194. int ata_ratelimit(void)
  6195. {
  6196. int rc;
  6197. unsigned long flags;
  6198. spin_lock_irqsave(&ata_ratelimit_lock, flags);
  6199. if (time_after(jiffies, ratelimit_time)) {
  6200. rc = 1;
  6201. ratelimit_time = jiffies + (HZ/5);
  6202. } else
  6203. rc = 0;
  6204. spin_unlock_irqrestore(&ata_ratelimit_lock, flags);
  6205. return rc;
  6206. }
  6207. /**
  6208. * ata_wait_register - wait until register value changes
  6209. * @reg: IO-mapped register
  6210. * @mask: Mask to apply to read register value
  6211. * @val: Wait condition
  6212. * @interval_msec: polling interval in milliseconds
  6213. * @timeout_msec: timeout in milliseconds
  6214. *
  6215. * Waiting for some bits of register to change is a common
  6216. * operation for ATA controllers. This function reads 32bit LE
  6217. * IO-mapped register @reg and tests for the following condition.
  6218. *
  6219. * (*@reg & mask) != val
  6220. *
  6221. * If the condition is met, it returns; otherwise, the process is
  6222. * repeated after @interval_msec until timeout.
  6223. *
  6224. * LOCKING:
  6225. * Kernel thread context (may sleep)
  6226. *
  6227. * RETURNS:
  6228. * The final register value.
  6229. */
  6230. u32 ata_wait_register(void __iomem *reg, u32 mask, u32 val,
  6231. unsigned long interval_msec,
  6232. unsigned long timeout_msec)
  6233. {
  6234. unsigned long timeout;
  6235. u32 tmp;
  6236. tmp = ioread32(reg);
  6237. /* Calculate timeout _after_ the first read to make sure
  6238. * preceding writes reach the controller before starting to
  6239. * eat away the timeout.
  6240. */
  6241. timeout = jiffies + (timeout_msec * HZ) / 1000;
  6242. while ((tmp & mask) == val && time_before(jiffies, timeout)) {
  6243. msleep(interval_msec);
  6244. tmp = ioread32(reg);
  6245. }
  6246. return tmp;
  6247. }
  6248. /*
  6249. * Dummy port_ops
  6250. */
  6251. static void ata_dummy_noret(struct ata_port *ap) { }
  6252. static int ata_dummy_ret0(struct ata_port *ap) { return 0; }
  6253. static void ata_dummy_qc_noret(struct ata_queued_cmd *qc) { }
  6254. static u8 ata_dummy_check_status(struct ata_port *ap)
  6255. {
  6256. return ATA_DRDY;
  6257. }
  6258. static unsigned int ata_dummy_qc_issue(struct ata_queued_cmd *qc)
  6259. {
  6260. return AC_ERR_SYSTEM;
  6261. }
  6262. const struct ata_port_operations ata_dummy_port_ops = {
  6263. .check_status = ata_dummy_check_status,
  6264. .check_altstatus = ata_dummy_check_status,
  6265. .dev_select = ata_noop_dev_select,
  6266. .qc_prep = ata_noop_qc_prep,
  6267. .qc_issue = ata_dummy_qc_issue,
  6268. .freeze = ata_dummy_noret,
  6269. .thaw = ata_dummy_noret,
  6270. .error_handler = ata_dummy_noret,
  6271. .post_internal_cmd = ata_dummy_qc_noret,
  6272. .irq_clear = ata_dummy_noret,
  6273. .port_start = ata_dummy_ret0,
  6274. .port_stop = ata_dummy_noret,
  6275. };
  6276. const struct ata_port_info ata_dummy_port_info = {
  6277. .port_ops = &ata_dummy_port_ops,
  6278. };
  6279. /*
  6280. * libata is essentially a library of internal helper functions for
  6281. * low-level ATA host controller drivers. As such, the API/ABI is
  6282. * likely to change as new drivers are added and updated.
  6283. * Do not depend on ABI/API stability.
  6284. */
  6285. EXPORT_SYMBOL_GPL(sata_deb_timing_normal);
  6286. EXPORT_SYMBOL_GPL(sata_deb_timing_hotplug);
  6287. EXPORT_SYMBOL_GPL(sata_deb_timing_long);
  6288. EXPORT_SYMBOL_GPL(ata_dummy_port_ops);
  6289. EXPORT_SYMBOL_GPL(ata_dummy_port_info);
  6290. EXPORT_SYMBOL_GPL(ata_std_bios_param);
  6291. EXPORT_SYMBOL_GPL(ata_std_ports);
  6292. EXPORT_SYMBOL_GPL(ata_host_init);
  6293. EXPORT_SYMBOL_GPL(ata_host_alloc);
  6294. EXPORT_SYMBOL_GPL(ata_host_alloc_pinfo);
  6295. EXPORT_SYMBOL_GPL(ata_host_start);
  6296. EXPORT_SYMBOL_GPL(ata_host_register);
  6297. EXPORT_SYMBOL_GPL(ata_host_activate);
  6298. EXPORT_SYMBOL_GPL(ata_host_detach);
  6299. EXPORT_SYMBOL_GPL(ata_sg_init);
  6300. EXPORT_SYMBOL_GPL(ata_hsm_move);
  6301. EXPORT_SYMBOL_GPL(ata_qc_complete);
  6302. EXPORT_SYMBOL_GPL(ata_qc_complete_multiple);
  6303. EXPORT_SYMBOL_GPL(ata_qc_issue_prot);
  6304. EXPORT_SYMBOL_GPL(ata_tf_load);
  6305. EXPORT_SYMBOL_GPL(ata_tf_read);
  6306. EXPORT_SYMBOL_GPL(ata_noop_dev_select);
  6307. EXPORT_SYMBOL_GPL(ata_std_dev_select);
  6308. EXPORT_SYMBOL_GPL(sata_print_link_status);
  6309. EXPORT_SYMBOL_GPL(ata_tf_to_fis);
  6310. EXPORT_SYMBOL_GPL(ata_tf_from_fis);
  6311. EXPORT_SYMBOL_GPL(ata_pack_xfermask);
  6312. EXPORT_SYMBOL_GPL(ata_unpack_xfermask);
  6313. EXPORT_SYMBOL_GPL(ata_xfer_mask2mode);
  6314. EXPORT_SYMBOL_GPL(ata_xfer_mode2mask);
  6315. EXPORT_SYMBOL_GPL(ata_xfer_mode2shift);
  6316. EXPORT_SYMBOL_GPL(ata_mode_string);
  6317. EXPORT_SYMBOL_GPL(ata_id_xfermask);
  6318. EXPORT_SYMBOL_GPL(ata_check_status);
  6319. EXPORT_SYMBOL_GPL(ata_altstatus);
  6320. EXPORT_SYMBOL_GPL(ata_exec_command);
  6321. EXPORT_SYMBOL_GPL(ata_port_start);
  6322. EXPORT_SYMBOL_GPL(ata_sff_port_start);
  6323. EXPORT_SYMBOL_GPL(ata_interrupt);
  6324. EXPORT_SYMBOL_GPL(ata_do_set_mode);
  6325. EXPORT_SYMBOL_GPL(ata_data_xfer);
  6326. EXPORT_SYMBOL_GPL(ata_data_xfer_noirq);
  6327. EXPORT_SYMBOL_GPL(ata_std_qc_defer);
  6328. EXPORT_SYMBOL_GPL(ata_qc_prep);
  6329. EXPORT_SYMBOL_GPL(ata_dumb_qc_prep);
  6330. EXPORT_SYMBOL_GPL(ata_noop_qc_prep);
  6331. EXPORT_SYMBOL_GPL(ata_bmdma_setup);
  6332. EXPORT_SYMBOL_GPL(ata_bmdma_start);
  6333. EXPORT_SYMBOL_GPL(ata_bmdma_irq_clear);
  6334. EXPORT_SYMBOL_GPL(ata_bmdma_status);
  6335. EXPORT_SYMBOL_GPL(ata_bmdma_stop);
  6336. EXPORT_SYMBOL_GPL(ata_bmdma_freeze);
  6337. EXPORT_SYMBOL_GPL(ata_bmdma_thaw);
  6338. EXPORT_SYMBOL_GPL(ata_bmdma_drive_eh);
  6339. EXPORT_SYMBOL_GPL(ata_bmdma_error_handler);
  6340. EXPORT_SYMBOL_GPL(ata_bmdma_post_internal_cmd);
  6341. EXPORT_SYMBOL_GPL(ata_port_probe);
  6342. EXPORT_SYMBOL_GPL(ata_dev_disable);
  6343. EXPORT_SYMBOL_GPL(sata_set_spd);
  6344. EXPORT_SYMBOL_GPL(sata_link_debounce);
  6345. EXPORT_SYMBOL_GPL(sata_link_resume);
  6346. EXPORT_SYMBOL_GPL(ata_bus_reset);
  6347. EXPORT_SYMBOL_GPL(ata_std_prereset);
  6348. EXPORT_SYMBOL_GPL(ata_std_softreset);
  6349. EXPORT_SYMBOL_GPL(sata_link_hardreset);
  6350. EXPORT_SYMBOL_GPL(sata_std_hardreset);
  6351. EXPORT_SYMBOL_GPL(ata_std_postreset);
  6352. EXPORT_SYMBOL_GPL(ata_dev_classify);
  6353. EXPORT_SYMBOL_GPL(ata_dev_pair);
  6354. EXPORT_SYMBOL_GPL(ata_port_disable);
  6355. EXPORT_SYMBOL_GPL(ata_ratelimit);
  6356. EXPORT_SYMBOL_GPL(ata_wait_register);
  6357. EXPORT_SYMBOL_GPL(ata_busy_sleep);
  6358. EXPORT_SYMBOL_GPL(ata_wait_after_reset);
  6359. EXPORT_SYMBOL_GPL(ata_wait_ready);
  6360. EXPORT_SYMBOL_GPL(ata_scsi_ioctl);
  6361. EXPORT_SYMBOL_GPL(ata_scsi_queuecmd);
  6362. EXPORT_SYMBOL_GPL(ata_scsi_slave_config);
  6363. EXPORT_SYMBOL_GPL(ata_scsi_slave_destroy);
  6364. EXPORT_SYMBOL_GPL(ata_scsi_change_queue_depth);
  6365. EXPORT_SYMBOL_GPL(ata_host_intr);
  6366. EXPORT_SYMBOL_GPL(sata_scr_valid);
  6367. EXPORT_SYMBOL_GPL(sata_scr_read);
  6368. EXPORT_SYMBOL_GPL(sata_scr_write);
  6369. EXPORT_SYMBOL_GPL(sata_scr_write_flush);
  6370. EXPORT_SYMBOL_GPL(ata_link_online);
  6371. EXPORT_SYMBOL_GPL(ata_link_offline);
  6372. #ifdef CONFIG_PM
  6373. EXPORT_SYMBOL_GPL(ata_host_suspend);
  6374. EXPORT_SYMBOL_GPL(ata_host_resume);
  6375. #endif /* CONFIG_PM */
  6376. EXPORT_SYMBOL_GPL(ata_id_string);
  6377. EXPORT_SYMBOL_GPL(ata_id_c_string);
  6378. EXPORT_SYMBOL_GPL(ata_scsi_simulate);
  6379. EXPORT_SYMBOL_GPL(ata_pio_need_iordy);
  6380. EXPORT_SYMBOL_GPL(ata_timing_find_mode);
  6381. EXPORT_SYMBOL_GPL(ata_timing_compute);
  6382. EXPORT_SYMBOL_GPL(ata_timing_merge);
  6383. EXPORT_SYMBOL_GPL(ata_timing_cycle2mode);
  6384. #ifdef CONFIG_PCI
  6385. EXPORT_SYMBOL_GPL(pci_test_config_bits);
  6386. EXPORT_SYMBOL_GPL(ata_pci_init_sff_host);
  6387. EXPORT_SYMBOL_GPL(ata_pci_init_bmdma);
  6388. EXPORT_SYMBOL_GPL(ata_pci_prepare_sff_host);
  6389. EXPORT_SYMBOL_GPL(ata_pci_activate_sff_host);
  6390. EXPORT_SYMBOL_GPL(ata_pci_init_one);
  6391. EXPORT_SYMBOL_GPL(ata_pci_remove_one);
  6392. #ifdef CONFIG_PM
  6393. EXPORT_SYMBOL_GPL(ata_pci_device_do_suspend);
  6394. EXPORT_SYMBOL_GPL(ata_pci_device_do_resume);
  6395. EXPORT_SYMBOL_GPL(ata_pci_device_suspend);
  6396. EXPORT_SYMBOL_GPL(ata_pci_device_resume);
  6397. #endif /* CONFIG_PM */
  6398. EXPORT_SYMBOL_GPL(ata_pci_default_filter);
  6399. EXPORT_SYMBOL_GPL(ata_pci_clear_simplex);
  6400. #endif /* CONFIG_PCI */
  6401. EXPORT_SYMBOL_GPL(sata_pmp_qc_defer_cmd_switch);
  6402. EXPORT_SYMBOL_GPL(sata_pmp_std_prereset);
  6403. EXPORT_SYMBOL_GPL(sata_pmp_std_hardreset);
  6404. EXPORT_SYMBOL_GPL(sata_pmp_std_postreset);
  6405. EXPORT_SYMBOL_GPL(sata_pmp_do_eh);
  6406. EXPORT_SYMBOL_GPL(__ata_ehi_push_desc);
  6407. EXPORT_SYMBOL_GPL(ata_ehi_push_desc);
  6408. EXPORT_SYMBOL_GPL(ata_ehi_clear_desc);
  6409. EXPORT_SYMBOL_GPL(ata_port_desc);
  6410. #ifdef CONFIG_PCI
  6411. EXPORT_SYMBOL_GPL(ata_port_pbar_desc);
  6412. #endif /* CONFIG_PCI */
  6413. EXPORT_SYMBOL_GPL(ata_port_schedule_eh);
  6414. EXPORT_SYMBOL_GPL(ata_link_abort);
  6415. EXPORT_SYMBOL_GPL(ata_port_abort);
  6416. EXPORT_SYMBOL_GPL(ata_port_freeze);
  6417. EXPORT_SYMBOL_GPL(sata_async_notification);
  6418. EXPORT_SYMBOL_GPL(ata_eh_freeze_port);
  6419. EXPORT_SYMBOL_GPL(ata_eh_thaw_port);
  6420. EXPORT_SYMBOL_GPL(ata_eh_qc_complete);
  6421. EXPORT_SYMBOL_GPL(ata_eh_qc_retry);
  6422. EXPORT_SYMBOL_GPL(ata_do_eh);
  6423. EXPORT_SYMBOL_GPL(ata_irq_on);
  6424. EXPORT_SYMBOL_GPL(ata_dev_try_classify);
  6425. EXPORT_SYMBOL_GPL(ata_cable_40wire);
  6426. EXPORT_SYMBOL_GPL(ata_cable_80wire);
  6427. EXPORT_SYMBOL_GPL(ata_cable_unknown);
  6428. EXPORT_SYMBOL_GPL(ata_cable_ignore);
  6429. EXPORT_SYMBOL_GPL(ata_cable_sata);