sata_mv.c 123 KB

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  1. /*
  2. * sata_mv.c - Marvell SATA support
  3. *
  4. * Copyright 2008-2009: Marvell Corporation, all rights reserved.
  5. * Copyright 2005: EMC Corporation, all rights reserved.
  6. * Copyright 2005 Red Hat, Inc. All rights reserved.
  7. *
  8. * Originally written by Brett Russ.
  9. * Extensive overhaul and enhancement by Mark Lord <mlord@pobox.com>.
  10. *
  11. * Please ALWAYS copy linux-ide@vger.kernel.org on emails.
  12. *
  13. * This program is free software; you can redistribute it and/or modify
  14. * it under the terms of the GNU General Public License as published by
  15. * the Free Software Foundation; version 2 of the License.
  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; if not, write to the Free Software
  24. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  25. *
  26. */
  27. /*
  28. * sata_mv TODO list:
  29. *
  30. * --> Develop a low-power-consumption strategy, and implement it.
  31. *
  32. * --> Add sysfs attributes for per-chip / per-HC IRQ coalescing thresholds.
  33. *
  34. * --> [Experiment, Marvell value added] Is it possible to use target
  35. * mode to cross-connect two Linux boxes with Marvell cards? If so,
  36. * creating LibATA target mode support would be very interesting.
  37. *
  38. * Target mode, for those without docs, is the ability to directly
  39. * connect two SATA ports.
  40. */
  41. /*
  42. * 80x1-B2 errata PCI#11:
  43. *
  44. * Users of the 6041/6081 Rev.B2 chips (current is C0)
  45. * should be careful to insert those cards only onto PCI-X bus #0,
  46. * and only in device slots 0..7, not higher. The chips may not
  47. * work correctly otherwise (note: this is a pretty rare condition).
  48. */
  49. #include <linux/kernel.h>
  50. #include <linux/module.h>
  51. #include <linux/pci.h>
  52. #include <linux/init.h>
  53. #include <linux/blkdev.h>
  54. #include <linux/delay.h>
  55. #include <linux/interrupt.h>
  56. #include <linux/dmapool.h>
  57. #include <linux/dma-mapping.h>
  58. #include <linux/device.h>
  59. #include <linux/clk.h>
  60. #include <linux/phy/phy.h>
  61. #include <linux/platform_device.h>
  62. #include <linux/ata_platform.h>
  63. #include <linux/mbus.h>
  64. #include <linux/bitops.h>
  65. #include <linux/gfp.h>
  66. #include <linux/of.h>
  67. #include <linux/of_irq.h>
  68. #include <scsi/scsi_host.h>
  69. #include <scsi/scsi_cmnd.h>
  70. #include <scsi/scsi_device.h>
  71. #include <linux/libata.h>
  72. #define DRV_NAME "sata_mv"
  73. #define DRV_VERSION "1.28"
  74. /*
  75. * module options
  76. */
  77. #ifdef CONFIG_PCI
  78. static int msi;
  79. module_param(msi, int, S_IRUGO);
  80. MODULE_PARM_DESC(msi, "Enable use of PCI MSI (0=off, 1=on)");
  81. #endif
  82. static int irq_coalescing_io_count;
  83. module_param(irq_coalescing_io_count, int, S_IRUGO);
  84. MODULE_PARM_DESC(irq_coalescing_io_count,
  85. "IRQ coalescing I/O count threshold (0..255)");
  86. static int irq_coalescing_usecs;
  87. module_param(irq_coalescing_usecs, int, S_IRUGO);
  88. MODULE_PARM_DESC(irq_coalescing_usecs,
  89. "IRQ coalescing time threshold in usecs");
  90. enum {
  91. /* BAR's are enumerated in terms of pci_resource_start() terms */
  92. MV_PRIMARY_BAR = 0, /* offset 0x10: memory space */
  93. MV_IO_BAR = 2, /* offset 0x18: IO space */
  94. MV_MISC_BAR = 3, /* offset 0x1c: FLASH, NVRAM, SRAM */
  95. MV_MAJOR_REG_AREA_SZ = 0x10000, /* 64KB */
  96. MV_MINOR_REG_AREA_SZ = 0x2000, /* 8KB */
  97. /* For use with both IRQ coalescing methods ("all ports" or "per-HC" */
  98. COAL_CLOCKS_PER_USEC = 150, /* for calculating COAL_TIMEs */
  99. MAX_COAL_TIME_THRESHOLD = ((1 << 24) - 1), /* internal clocks count */
  100. MAX_COAL_IO_COUNT = 255, /* completed I/O count */
  101. MV_PCI_REG_BASE = 0,
  102. /*
  103. * Per-chip ("all ports") interrupt coalescing feature.
  104. * This is only for GEN_II / GEN_IIE hardware.
  105. *
  106. * Coalescing defers the interrupt until either the IO_THRESHOLD
  107. * (count of completed I/Os) is met, or the TIME_THRESHOLD is met.
  108. */
  109. COAL_REG_BASE = 0x18000,
  110. IRQ_COAL_CAUSE = (COAL_REG_BASE + 0x08),
  111. ALL_PORTS_COAL_IRQ = (1 << 4), /* all ports irq event */
  112. IRQ_COAL_IO_THRESHOLD = (COAL_REG_BASE + 0xcc),
  113. IRQ_COAL_TIME_THRESHOLD = (COAL_REG_BASE + 0xd0),
  114. /*
  115. * Registers for the (unused here) transaction coalescing feature:
  116. */
  117. TRAN_COAL_CAUSE_LO = (COAL_REG_BASE + 0x88),
  118. TRAN_COAL_CAUSE_HI = (COAL_REG_BASE + 0x8c),
  119. SATAHC0_REG_BASE = 0x20000,
  120. FLASH_CTL = 0x1046c,
  121. GPIO_PORT_CTL = 0x104f0,
  122. RESET_CFG = 0x180d8,
  123. MV_PCI_REG_SZ = MV_MAJOR_REG_AREA_SZ,
  124. MV_SATAHC_REG_SZ = MV_MAJOR_REG_AREA_SZ,
  125. MV_SATAHC_ARBTR_REG_SZ = MV_MINOR_REG_AREA_SZ, /* arbiter */
  126. MV_PORT_REG_SZ = MV_MINOR_REG_AREA_SZ,
  127. MV_MAX_Q_DEPTH = 32,
  128. MV_MAX_Q_DEPTH_MASK = MV_MAX_Q_DEPTH - 1,
  129. /* CRQB needs alignment on a 1KB boundary. Size == 1KB
  130. * CRPB needs alignment on a 256B boundary. Size == 256B
  131. * ePRD (SG) entries need alignment on a 16B boundary. Size == 16B
  132. */
  133. MV_CRQB_Q_SZ = (32 * MV_MAX_Q_DEPTH),
  134. MV_CRPB_Q_SZ = (8 * MV_MAX_Q_DEPTH),
  135. MV_MAX_SG_CT = 256,
  136. MV_SG_TBL_SZ = (16 * MV_MAX_SG_CT),
  137. /* Determine hc from 0-7 port: hc = port >> MV_PORT_HC_SHIFT */
  138. MV_PORT_HC_SHIFT = 2,
  139. MV_PORTS_PER_HC = (1 << MV_PORT_HC_SHIFT), /* 4 */
  140. /* Determine hc port from 0-7 port: hardport = port & MV_PORT_MASK */
  141. MV_PORT_MASK = (MV_PORTS_PER_HC - 1), /* 3 */
  142. /* Host Flags */
  143. MV_FLAG_DUAL_HC = (1 << 30), /* two SATA Host Controllers */
  144. MV_COMMON_FLAGS = ATA_FLAG_SATA | ATA_FLAG_PIO_POLLING,
  145. MV_GEN_I_FLAGS = MV_COMMON_FLAGS | ATA_FLAG_NO_ATAPI,
  146. MV_GEN_II_FLAGS = MV_COMMON_FLAGS | ATA_FLAG_NCQ |
  147. ATA_FLAG_PMP | ATA_FLAG_ACPI_SATA,
  148. MV_GEN_IIE_FLAGS = MV_GEN_II_FLAGS | ATA_FLAG_AN,
  149. CRQB_FLAG_READ = (1 << 0),
  150. CRQB_TAG_SHIFT = 1,
  151. CRQB_IOID_SHIFT = 6, /* CRQB Gen-II/IIE IO Id shift */
  152. CRQB_PMP_SHIFT = 12, /* CRQB Gen-II/IIE PMP shift */
  153. CRQB_HOSTQ_SHIFT = 17, /* CRQB Gen-II/IIE HostQueTag shift */
  154. CRQB_CMD_ADDR_SHIFT = 8,
  155. CRQB_CMD_CS = (0x2 << 11),
  156. CRQB_CMD_LAST = (1 << 15),
  157. CRPB_FLAG_STATUS_SHIFT = 8,
  158. CRPB_IOID_SHIFT_6 = 5, /* CRPB Gen-II IO Id shift */
  159. CRPB_IOID_SHIFT_7 = 7, /* CRPB Gen-IIE IO Id shift */
  160. EPRD_FLAG_END_OF_TBL = (1 << 31),
  161. /* PCI interface registers */
  162. MV_PCI_COMMAND = 0xc00,
  163. MV_PCI_COMMAND_MWRCOM = (1 << 4), /* PCI Master Write Combining */
  164. MV_PCI_COMMAND_MRDTRIG = (1 << 7), /* PCI Master Read Trigger */
  165. PCI_MAIN_CMD_STS = 0xd30,
  166. STOP_PCI_MASTER = (1 << 2),
  167. PCI_MASTER_EMPTY = (1 << 3),
  168. GLOB_SFT_RST = (1 << 4),
  169. MV_PCI_MODE = 0xd00,
  170. MV_PCI_MODE_MASK = 0x30,
  171. MV_PCI_EXP_ROM_BAR_CTL = 0xd2c,
  172. MV_PCI_DISC_TIMER = 0xd04,
  173. MV_PCI_MSI_TRIGGER = 0xc38,
  174. MV_PCI_SERR_MASK = 0xc28,
  175. MV_PCI_XBAR_TMOUT = 0x1d04,
  176. MV_PCI_ERR_LOW_ADDRESS = 0x1d40,
  177. MV_PCI_ERR_HIGH_ADDRESS = 0x1d44,
  178. MV_PCI_ERR_ATTRIBUTE = 0x1d48,
  179. MV_PCI_ERR_COMMAND = 0x1d50,
  180. PCI_IRQ_CAUSE = 0x1d58,
  181. PCI_IRQ_MASK = 0x1d5c,
  182. PCI_UNMASK_ALL_IRQS = 0x7fffff, /* bits 22-0 */
  183. PCIE_IRQ_CAUSE = 0x1900,
  184. PCIE_IRQ_MASK = 0x1910,
  185. PCIE_UNMASK_ALL_IRQS = 0x40a, /* assorted bits */
  186. /* Host Controller Main Interrupt Cause/Mask registers (1 per-chip) */
  187. PCI_HC_MAIN_IRQ_CAUSE = 0x1d60,
  188. PCI_HC_MAIN_IRQ_MASK = 0x1d64,
  189. SOC_HC_MAIN_IRQ_CAUSE = 0x20020,
  190. SOC_HC_MAIN_IRQ_MASK = 0x20024,
  191. ERR_IRQ = (1 << 0), /* shift by (2 * port #) */
  192. DONE_IRQ = (1 << 1), /* shift by (2 * port #) */
  193. HC0_IRQ_PEND = 0x1ff, /* bits 0-8 = HC0's ports */
  194. HC_SHIFT = 9, /* bits 9-17 = HC1's ports */
  195. DONE_IRQ_0_3 = 0x000000aa, /* DONE_IRQ ports 0,1,2,3 */
  196. DONE_IRQ_4_7 = (DONE_IRQ_0_3 << HC_SHIFT), /* 4,5,6,7 */
  197. PCI_ERR = (1 << 18),
  198. TRAN_COAL_LO_DONE = (1 << 19), /* transaction coalescing */
  199. TRAN_COAL_HI_DONE = (1 << 20), /* transaction coalescing */
  200. PORTS_0_3_COAL_DONE = (1 << 8), /* HC0 IRQ coalescing */
  201. PORTS_4_7_COAL_DONE = (1 << 17), /* HC1 IRQ coalescing */
  202. ALL_PORTS_COAL_DONE = (1 << 21), /* GEN_II(E) IRQ coalescing */
  203. GPIO_INT = (1 << 22),
  204. SELF_INT = (1 << 23),
  205. TWSI_INT = (1 << 24),
  206. HC_MAIN_RSVD = (0x7f << 25), /* bits 31-25 */
  207. HC_MAIN_RSVD_5 = (0x1fff << 19), /* bits 31-19 */
  208. HC_MAIN_RSVD_SOC = (0x3fffffb << 6), /* bits 31-9, 7-6 */
  209. /* SATAHC registers */
  210. HC_CFG = 0x00,
  211. HC_IRQ_CAUSE = 0x14,
  212. DMA_IRQ = (1 << 0), /* shift by port # */
  213. HC_COAL_IRQ = (1 << 4), /* IRQ coalescing */
  214. DEV_IRQ = (1 << 8), /* shift by port # */
  215. /*
  216. * Per-HC (Host-Controller) interrupt coalescing feature.
  217. * This is present on all chip generations.
  218. *
  219. * Coalescing defers the interrupt until either the IO_THRESHOLD
  220. * (count of completed I/Os) is met, or the TIME_THRESHOLD is met.
  221. */
  222. HC_IRQ_COAL_IO_THRESHOLD = 0x000c,
  223. HC_IRQ_COAL_TIME_THRESHOLD = 0x0010,
  224. SOC_LED_CTRL = 0x2c,
  225. SOC_LED_CTRL_BLINK = (1 << 0), /* Active LED blink */
  226. SOC_LED_CTRL_ACT_PRESENCE = (1 << 2), /* Multiplex dev presence */
  227. /* with dev activity LED */
  228. /* Shadow block registers */
  229. SHD_BLK = 0x100,
  230. SHD_CTL_AST = 0x20, /* ofs from SHD_BLK */
  231. /* SATA registers */
  232. SATA_STATUS = 0x300, /* ctrl, err regs follow status */
  233. SATA_ACTIVE = 0x350,
  234. FIS_IRQ_CAUSE = 0x364,
  235. FIS_IRQ_CAUSE_AN = (1 << 9), /* async notification */
  236. LTMODE = 0x30c, /* requires read-after-write */
  237. LTMODE_BIT8 = (1 << 8), /* unknown, but necessary */
  238. PHY_MODE2 = 0x330,
  239. PHY_MODE3 = 0x310,
  240. PHY_MODE4 = 0x314, /* requires read-after-write */
  241. PHY_MODE4_CFG_MASK = 0x00000003, /* phy internal config field */
  242. PHY_MODE4_CFG_VALUE = 0x00000001, /* phy internal config field */
  243. PHY_MODE4_RSVD_ZEROS = 0x5de3fffa, /* Gen2e always write zeros */
  244. PHY_MODE4_RSVD_ONES = 0x00000005, /* Gen2e always write ones */
  245. SATA_IFCTL = 0x344,
  246. SATA_TESTCTL = 0x348,
  247. SATA_IFSTAT = 0x34c,
  248. VENDOR_UNIQUE_FIS = 0x35c,
  249. FISCFG = 0x360,
  250. FISCFG_WAIT_DEV_ERR = (1 << 8), /* wait for host on DevErr */
  251. FISCFG_SINGLE_SYNC = (1 << 16), /* SYNC on DMA activation */
  252. PHY_MODE9_GEN2 = 0x398,
  253. PHY_MODE9_GEN1 = 0x39c,
  254. PHYCFG_OFS = 0x3a0, /* only in 65n devices */
  255. MV5_PHY_MODE = 0x74,
  256. MV5_LTMODE = 0x30,
  257. MV5_PHY_CTL = 0x0C,
  258. SATA_IFCFG = 0x050,
  259. LP_PHY_CTL = 0x058,
  260. LP_PHY_CTL_PIN_PU_PLL = (1 << 0),
  261. LP_PHY_CTL_PIN_PU_RX = (1 << 1),
  262. LP_PHY_CTL_PIN_PU_TX = (1 << 2),
  263. LP_PHY_CTL_GEN_TX_3G = (1 << 5),
  264. LP_PHY_CTL_GEN_RX_3G = (1 << 9),
  265. MV_M2_PREAMP_MASK = 0x7e0,
  266. /* Port registers */
  267. EDMA_CFG = 0,
  268. EDMA_CFG_Q_DEPTH = 0x1f, /* max device queue depth */
  269. EDMA_CFG_NCQ = (1 << 5), /* for R/W FPDMA queued */
  270. EDMA_CFG_NCQ_GO_ON_ERR = (1 << 14), /* continue on error */
  271. EDMA_CFG_RD_BRST_EXT = (1 << 11), /* read burst 512B */
  272. EDMA_CFG_WR_BUFF_LEN = (1 << 13), /* write buffer 512B */
  273. EDMA_CFG_EDMA_FBS = (1 << 16), /* EDMA FIS-Based Switching */
  274. EDMA_CFG_FBS = (1 << 26), /* FIS-Based Switching */
  275. EDMA_ERR_IRQ_CAUSE = 0x8,
  276. EDMA_ERR_IRQ_MASK = 0xc,
  277. EDMA_ERR_D_PAR = (1 << 0), /* UDMA data parity err */
  278. EDMA_ERR_PRD_PAR = (1 << 1), /* UDMA PRD parity err */
  279. EDMA_ERR_DEV = (1 << 2), /* device error */
  280. EDMA_ERR_DEV_DCON = (1 << 3), /* device disconnect */
  281. EDMA_ERR_DEV_CON = (1 << 4), /* device connected */
  282. EDMA_ERR_SERR = (1 << 5), /* SError bits [WBDST] raised */
  283. EDMA_ERR_SELF_DIS = (1 << 7), /* Gen II/IIE self-disable */
  284. EDMA_ERR_SELF_DIS_5 = (1 << 8), /* Gen I self-disable */
  285. EDMA_ERR_BIST_ASYNC = (1 << 8), /* BIST FIS or Async Notify */
  286. EDMA_ERR_TRANS_IRQ_7 = (1 << 8), /* Gen IIE transprt layer irq */
  287. EDMA_ERR_CRQB_PAR = (1 << 9), /* CRQB parity error */
  288. EDMA_ERR_CRPB_PAR = (1 << 10), /* CRPB parity error */
  289. EDMA_ERR_INTRL_PAR = (1 << 11), /* internal parity error */
  290. EDMA_ERR_IORDY = (1 << 12), /* IORdy timeout */
  291. EDMA_ERR_LNK_CTRL_RX = (0xf << 13), /* link ctrl rx error */
  292. EDMA_ERR_LNK_CTRL_RX_0 = (1 << 13), /* transient: CRC err */
  293. EDMA_ERR_LNK_CTRL_RX_1 = (1 << 14), /* transient: FIFO err */
  294. EDMA_ERR_LNK_CTRL_RX_2 = (1 << 15), /* fatal: caught SYNC */
  295. EDMA_ERR_LNK_CTRL_RX_3 = (1 << 16), /* transient: FIS rx err */
  296. EDMA_ERR_LNK_DATA_RX = (0xf << 17), /* link data rx error */
  297. EDMA_ERR_LNK_CTRL_TX = (0x1f << 21), /* link ctrl tx error */
  298. EDMA_ERR_LNK_CTRL_TX_0 = (1 << 21), /* transient: CRC err */
  299. EDMA_ERR_LNK_CTRL_TX_1 = (1 << 22), /* transient: FIFO err */
  300. EDMA_ERR_LNK_CTRL_TX_2 = (1 << 23), /* transient: caught SYNC */
  301. EDMA_ERR_LNK_CTRL_TX_3 = (1 << 24), /* transient: caught DMAT */
  302. EDMA_ERR_LNK_CTRL_TX_4 = (1 << 25), /* transient: FIS collision */
  303. EDMA_ERR_LNK_DATA_TX = (0x1f << 26), /* link data tx error */
  304. EDMA_ERR_TRANS_PROTO = (1 << 31), /* transport protocol error */
  305. EDMA_ERR_OVERRUN_5 = (1 << 5),
  306. EDMA_ERR_UNDERRUN_5 = (1 << 6),
  307. EDMA_ERR_IRQ_TRANSIENT = EDMA_ERR_LNK_CTRL_RX_0 |
  308. EDMA_ERR_LNK_CTRL_RX_1 |
  309. EDMA_ERR_LNK_CTRL_RX_3 |
  310. EDMA_ERR_LNK_CTRL_TX,
  311. EDMA_EH_FREEZE = EDMA_ERR_D_PAR |
  312. EDMA_ERR_PRD_PAR |
  313. EDMA_ERR_DEV_DCON |
  314. EDMA_ERR_DEV_CON |
  315. EDMA_ERR_SERR |
  316. EDMA_ERR_SELF_DIS |
  317. EDMA_ERR_CRQB_PAR |
  318. EDMA_ERR_CRPB_PAR |
  319. EDMA_ERR_INTRL_PAR |
  320. EDMA_ERR_IORDY |
  321. EDMA_ERR_LNK_CTRL_RX_2 |
  322. EDMA_ERR_LNK_DATA_RX |
  323. EDMA_ERR_LNK_DATA_TX |
  324. EDMA_ERR_TRANS_PROTO,
  325. EDMA_EH_FREEZE_5 = EDMA_ERR_D_PAR |
  326. EDMA_ERR_PRD_PAR |
  327. EDMA_ERR_DEV_DCON |
  328. EDMA_ERR_DEV_CON |
  329. EDMA_ERR_OVERRUN_5 |
  330. EDMA_ERR_UNDERRUN_5 |
  331. EDMA_ERR_SELF_DIS_5 |
  332. EDMA_ERR_CRQB_PAR |
  333. EDMA_ERR_CRPB_PAR |
  334. EDMA_ERR_INTRL_PAR |
  335. EDMA_ERR_IORDY,
  336. EDMA_REQ_Q_BASE_HI = 0x10,
  337. EDMA_REQ_Q_IN_PTR = 0x14, /* also contains BASE_LO */
  338. EDMA_REQ_Q_OUT_PTR = 0x18,
  339. EDMA_REQ_Q_PTR_SHIFT = 5,
  340. EDMA_RSP_Q_BASE_HI = 0x1c,
  341. EDMA_RSP_Q_IN_PTR = 0x20,
  342. EDMA_RSP_Q_OUT_PTR = 0x24, /* also contains BASE_LO */
  343. EDMA_RSP_Q_PTR_SHIFT = 3,
  344. EDMA_CMD = 0x28, /* EDMA command register */
  345. EDMA_EN = (1 << 0), /* enable EDMA */
  346. EDMA_DS = (1 << 1), /* disable EDMA; self-negated */
  347. EDMA_RESET = (1 << 2), /* reset eng/trans/link/phy */
  348. EDMA_STATUS = 0x30, /* EDMA engine status */
  349. EDMA_STATUS_CACHE_EMPTY = (1 << 6), /* GenIIe command cache empty */
  350. EDMA_STATUS_IDLE = (1 << 7), /* GenIIe EDMA enabled/idle */
  351. EDMA_IORDY_TMOUT = 0x34,
  352. EDMA_ARB_CFG = 0x38,
  353. EDMA_HALTCOND = 0x60, /* GenIIe halt conditions */
  354. EDMA_UNKNOWN_RSVD = 0x6C, /* GenIIe unknown/reserved */
  355. BMDMA_CMD = 0x224, /* bmdma command register */
  356. BMDMA_STATUS = 0x228, /* bmdma status register */
  357. BMDMA_PRD_LOW = 0x22c, /* bmdma PRD addr 31:0 */
  358. BMDMA_PRD_HIGH = 0x230, /* bmdma PRD addr 63:32 */
  359. /* Host private flags (hp_flags) */
  360. MV_HP_FLAG_MSI = (1 << 0),
  361. MV_HP_ERRATA_50XXB0 = (1 << 1),
  362. MV_HP_ERRATA_50XXB2 = (1 << 2),
  363. MV_HP_ERRATA_60X1B2 = (1 << 3),
  364. MV_HP_ERRATA_60X1C0 = (1 << 4),
  365. MV_HP_GEN_I = (1 << 6), /* Generation I: 50xx */
  366. MV_HP_GEN_II = (1 << 7), /* Generation II: 60xx */
  367. MV_HP_GEN_IIE = (1 << 8), /* Generation IIE: 6042/7042 */
  368. MV_HP_PCIE = (1 << 9), /* PCIe bus/regs: 7042 */
  369. MV_HP_CUT_THROUGH = (1 << 10), /* can use EDMA cut-through */
  370. MV_HP_FLAG_SOC = (1 << 11), /* SystemOnChip, no PCI */
  371. MV_HP_QUIRK_LED_BLINK_EN = (1 << 12), /* is led blinking enabled? */
  372. MV_HP_FIX_LP_PHY_CTL = (1 << 13), /* fix speed in LP_PHY_CTL ? */
  373. /* Port private flags (pp_flags) */
  374. MV_PP_FLAG_EDMA_EN = (1 << 0), /* is EDMA engine enabled? */
  375. MV_PP_FLAG_NCQ_EN = (1 << 1), /* is EDMA set up for NCQ? */
  376. MV_PP_FLAG_FBS_EN = (1 << 2), /* is EDMA set up for FBS? */
  377. MV_PP_FLAG_DELAYED_EH = (1 << 3), /* delayed dev err handling */
  378. MV_PP_FLAG_FAKE_ATA_BUSY = (1 << 4), /* ignore initial ATA_DRDY */
  379. };
  380. #define IS_GEN_I(hpriv) ((hpriv)->hp_flags & MV_HP_GEN_I)
  381. #define IS_GEN_II(hpriv) ((hpriv)->hp_flags & MV_HP_GEN_II)
  382. #define IS_GEN_IIE(hpriv) ((hpriv)->hp_flags & MV_HP_GEN_IIE)
  383. #define IS_PCIE(hpriv) ((hpriv)->hp_flags & MV_HP_PCIE)
  384. #define IS_SOC(hpriv) ((hpriv)->hp_flags & MV_HP_FLAG_SOC)
  385. #define WINDOW_CTRL(i) (0x20030 + ((i) << 4))
  386. #define WINDOW_BASE(i) (0x20034 + ((i) << 4))
  387. enum {
  388. /* DMA boundary 0xffff is required by the s/g splitting
  389. * we need on /length/ in mv_fill-sg().
  390. */
  391. MV_DMA_BOUNDARY = 0xffffU,
  392. /* mask of register bits containing lower 32 bits
  393. * of EDMA request queue DMA address
  394. */
  395. EDMA_REQ_Q_BASE_LO_MASK = 0xfffffc00U,
  396. /* ditto, for response queue */
  397. EDMA_RSP_Q_BASE_LO_MASK = 0xffffff00U,
  398. };
  399. enum chip_type {
  400. chip_504x,
  401. chip_508x,
  402. chip_5080,
  403. chip_604x,
  404. chip_608x,
  405. chip_6042,
  406. chip_7042,
  407. chip_soc,
  408. };
  409. /* Command ReQuest Block: 32B */
  410. struct mv_crqb {
  411. __le32 sg_addr;
  412. __le32 sg_addr_hi;
  413. __le16 ctrl_flags;
  414. __le16 ata_cmd[11];
  415. };
  416. struct mv_crqb_iie {
  417. __le32 addr;
  418. __le32 addr_hi;
  419. __le32 flags;
  420. __le32 len;
  421. __le32 ata_cmd[4];
  422. };
  423. /* Command ResPonse Block: 8B */
  424. struct mv_crpb {
  425. __le16 id;
  426. __le16 flags;
  427. __le32 tmstmp;
  428. };
  429. /* EDMA Physical Region Descriptor (ePRD); A.K.A. SG */
  430. struct mv_sg {
  431. __le32 addr;
  432. __le32 flags_size;
  433. __le32 addr_hi;
  434. __le32 reserved;
  435. };
  436. /*
  437. * We keep a local cache of a few frequently accessed port
  438. * registers here, to avoid having to read them (very slow)
  439. * when switching between EDMA and non-EDMA modes.
  440. */
  441. struct mv_cached_regs {
  442. u32 fiscfg;
  443. u32 ltmode;
  444. u32 haltcond;
  445. u32 unknown_rsvd;
  446. };
  447. struct mv_port_priv {
  448. struct mv_crqb *crqb;
  449. dma_addr_t crqb_dma;
  450. struct mv_crpb *crpb;
  451. dma_addr_t crpb_dma;
  452. struct mv_sg *sg_tbl[MV_MAX_Q_DEPTH];
  453. dma_addr_t sg_tbl_dma[MV_MAX_Q_DEPTH];
  454. unsigned int req_idx;
  455. unsigned int resp_idx;
  456. u32 pp_flags;
  457. struct mv_cached_regs cached;
  458. unsigned int delayed_eh_pmp_map;
  459. };
  460. struct mv_port_signal {
  461. u32 amps;
  462. u32 pre;
  463. };
  464. struct mv_host_priv {
  465. u32 hp_flags;
  466. unsigned int board_idx;
  467. u32 main_irq_mask;
  468. struct mv_port_signal signal[8];
  469. const struct mv_hw_ops *ops;
  470. int n_ports;
  471. void __iomem *base;
  472. void __iomem *main_irq_cause_addr;
  473. void __iomem *main_irq_mask_addr;
  474. u32 irq_cause_offset;
  475. u32 irq_mask_offset;
  476. u32 unmask_all_irqs;
  477. /*
  478. * Needed on some devices that require their clocks to be enabled.
  479. * These are optional: if the platform device does not have any
  480. * clocks, they won't be used. Also, if the underlying hardware
  481. * does not support the common clock framework (CONFIG_HAVE_CLK=n),
  482. * all the clock operations become no-ops (see clk.h).
  483. */
  484. struct clk *clk;
  485. struct clk **port_clks;
  486. /*
  487. * Some devices have a SATA PHY which can be enabled/disabled
  488. * in order to save power. These are optional: if the platform
  489. * devices does not have any phy, they won't be used.
  490. */
  491. struct phy **port_phys;
  492. /*
  493. * These consistent DMA memory pools give us guaranteed
  494. * alignment for hardware-accessed data structures,
  495. * and less memory waste in accomplishing the alignment.
  496. */
  497. struct dma_pool *crqb_pool;
  498. struct dma_pool *crpb_pool;
  499. struct dma_pool *sg_tbl_pool;
  500. };
  501. struct mv_hw_ops {
  502. void (*phy_errata)(struct mv_host_priv *hpriv, void __iomem *mmio,
  503. unsigned int port);
  504. void (*enable_leds)(struct mv_host_priv *hpriv, void __iomem *mmio);
  505. void (*read_preamp)(struct mv_host_priv *hpriv, int idx,
  506. void __iomem *mmio);
  507. int (*reset_hc)(struct mv_host_priv *hpriv, void __iomem *mmio,
  508. unsigned int n_hc);
  509. void (*reset_flash)(struct mv_host_priv *hpriv, void __iomem *mmio);
  510. void (*reset_bus)(struct ata_host *host, void __iomem *mmio);
  511. };
  512. static int mv_scr_read(struct ata_link *link, unsigned int sc_reg_in, u32 *val);
  513. static int mv_scr_write(struct ata_link *link, unsigned int sc_reg_in, u32 val);
  514. static int mv5_scr_read(struct ata_link *link, unsigned int sc_reg_in, u32 *val);
  515. static int mv5_scr_write(struct ata_link *link, unsigned int sc_reg_in, u32 val);
  516. static int mv_port_start(struct ata_port *ap);
  517. static void mv_port_stop(struct ata_port *ap);
  518. static int mv_qc_defer(struct ata_queued_cmd *qc);
  519. static void mv_qc_prep(struct ata_queued_cmd *qc);
  520. static void mv_qc_prep_iie(struct ata_queued_cmd *qc);
  521. static unsigned int mv_qc_issue(struct ata_queued_cmd *qc);
  522. static int mv_hardreset(struct ata_link *link, unsigned int *class,
  523. unsigned long deadline);
  524. static void mv_eh_freeze(struct ata_port *ap);
  525. static void mv_eh_thaw(struct ata_port *ap);
  526. static void mv6_dev_config(struct ata_device *dev);
  527. static void mv5_phy_errata(struct mv_host_priv *hpriv, void __iomem *mmio,
  528. unsigned int port);
  529. static void mv5_enable_leds(struct mv_host_priv *hpriv, void __iomem *mmio);
  530. static void mv5_read_preamp(struct mv_host_priv *hpriv, int idx,
  531. void __iomem *mmio);
  532. static int mv5_reset_hc(struct mv_host_priv *hpriv, void __iomem *mmio,
  533. unsigned int n_hc);
  534. static void mv5_reset_flash(struct mv_host_priv *hpriv, void __iomem *mmio);
  535. static void mv5_reset_bus(struct ata_host *host, void __iomem *mmio);
  536. static void mv6_phy_errata(struct mv_host_priv *hpriv, void __iomem *mmio,
  537. unsigned int port);
  538. static void mv6_enable_leds(struct mv_host_priv *hpriv, void __iomem *mmio);
  539. static void mv6_read_preamp(struct mv_host_priv *hpriv, int idx,
  540. void __iomem *mmio);
  541. static int mv6_reset_hc(struct mv_host_priv *hpriv, void __iomem *mmio,
  542. unsigned int n_hc);
  543. static void mv6_reset_flash(struct mv_host_priv *hpriv, void __iomem *mmio);
  544. static void mv_soc_enable_leds(struct mv_host_priv *hpriv,
  545. void __iomem *mmio);
  546. static void mv_soc_read_preamp(struct mv_host_priv *hpriv, int idx,
  547. void __iomem *mmio);
  548. static int mv_soc_reset_hc(struct mv_host_priv *hpriv,
  549. void __iomem *mmio, unsigned int n_hc);
  550. static void mv_soc_reset_flash(struct mv_host_priv *hpriv,
  551. void __iomem *mmio);
  552. static void mv_soc_reset_bus(struct ata_host *host, void __iomem *mmio);
  553. static void mv_soc_65n_phy_errata(struct mv_host_priv *hpriv,
  554. void __iomem *mmio, unsigned int port);
  555. static void mv_reset_pci_bus(struct ata_host *host, void __iomem *mmio);
  556. static void mv_reset_channel(struct mv_host_priv *hpriv, void __iomem *mmio,
  557. unsigned int port_no);
  558. static int mv_stop_edma(struct ata_port *ap);
  559. static int mv_stop_edma_engine(void __iomem *port_mmio);
  560. static void mv_edma_cfg(struct ata_port *ap, int want_ncq, int want_edma);
  561. static void mv_pmp_select(struct ata_port *ap, int pmp);
  562. static int mv_pmp_hardreset(struct ata_link *link, unsigned int *class,
  563. unsigned long deadline);
  564. static int mv_softreset(struct ata_link *link, unsigned int *class,
  565. unsigned long deadline);
  566. static void mv_pmp_error_handler(struct ata_port *ap);
  567. static void mv_process_crpb_entries(struct ata_port *ap,
  568. struct mv_port_priv *pp);
  569. static void mv_sff_irq_clear(struct ata_port *ap);
  570. static int mv_check_atapi_dma(struct ata_queued_cmd *qc);
  571. static void mv_bmdma_setup(struct ata_queued_cmd *qc);
  572. static void mv_bmdma_start(struct ata_queued_cmd *qc);
  573. static void mv_bmdma_stop(struct ata_queued_cmd *qc);
  574. static u8 mv_bmdma_status(struct ata_port *ap);
  575. static u8 mv_sff_check_status(struct ata_port *ap);
  576. /* .sg_tablesize is (MV_MAX_SG_CT / 2) in the structures below
  577. * because we have to allow room for worst case splitting of
  578. * PRDs for 64K boundaries in mv_fill_sg().
  579. */
  580. #ifdef CONFIG_PCI
  581. static struct scsi_host_template mv5_sht = {
  582. ATA_BASE_SHT(DRV_NAME),
  583. .sg_tablesize = MV_MAX_SG_CT / 2,
  584. .dma_boundary = MV_DMA_BOUNDARY,
  585. };
  586. #endif
  587. static struct scsi_host_template mv6_sht = {
  588. ATA_NCQ_SHT(DRV_NAME),
  589. .can_queue = MV_MAX_Q_DEPTH - 1,
  590. .sg_tablesize = MV_MAX_SG_CT / 2,
  591. .dma_boundary = MV_DMA_BOUNDARY,
  592. };
  593. static struct ata_port_operations mv5_ops = {
  594. .inherits = &ata_sff_port_ops,
  595. .lost_interrupt = ATA_OP_NULL,
  596. .qc_defer = mv_qc_defer,
  597. .qc_prep = mv_qc_prep,
  598. .qc_issue = mv_qc_issue,
  599. .freeze = mv_eh_freeze,
  600. .thaw = mv_eh_thaw,
  601. .hardreset = mv_hardreset,
  602. .scr_read = mv5_scr_read,
  603. .scr_write = mv5_scr_write,
  604. .port_start = mv_port_start,
  605. .port_stop = mv_port_stop,
  606. };
  607. static struct ata_port_operations mv6_ops = {
  608. .inherits = &ata_bmdma_port_ops,
  609. .lost_interrupt = ATA_OP_NULL,
  610. .qc_defer = mv_qc_defer,
  611. .qc_prep = mv_qc_prep,
  612. .qc_issue = mv_qc_issue,
  613. .dev_config = mv6_dev_config,
  614. .freeze = mv_eh_freeze,
  615. .thaw = mv_eh_thaw,
  616. .hardreset = mv_hardreset,
  617. .softreset = mv_softreset,
  618. .pmp_hardreset = mv_pmp_hardreset,
  619. .pmp_softreset = mv_softreset,
  620. .error_handler = mv_pmp_error_handler,
  621. .scr_read = mv_scr_read,
  622. .scr_write = mv_scr_write,
  623. .sff_check_status = mv_sff_check_status,
  624. .sff_irq_clear = mv_sff_irq_clear,
  625. .check_atapi_dma = mv_check_atapi_dma,
  626. .bmdma_setup = mv_bmdma_setup,
  627. .bmdma_start = mv_bmdma_start,
  628. .bmdma_stop = mv_bmdma_stop,
  629. .bmdma_status = mv_bmdma_status,
  630. .port_start = mv_port_start,
  631. .port_stop = mv_port_stop,
  632. };
  633. static struct ata_port_operations mv_iie_ops = {
  634. .inherits = &mv6_ops,
  635. .dev_config = ATA_OP_NULL,
  636. .qc_prep = mv_qc_prep_iie,
  637. };
  638. static const struct ata_port_info mv_port_info[] = {
  639. { /* chip_504x */
  640. .flags = MV_GEN_I_FLAGS,
  641. .pio_mask = ATA_PIO4,
  642. .udma_mask = ATA_UDMA6,
  643. .port_ops = &mv5_ops,
  644. },
  645. { /* chip_508x */
  646. .flags = MV_GEN_I_FLAGS | MV_FLAG_DUAL_HC,
  647. .pio_mask = ATA_PIO4,
  648. .udma_mask = ATA_UDMA6,
  649. .port_ops = &mv5_ops,
  650. },
  651. { /* chip_5080 */
  652. .flags = MV_GEN_I_FLAGS | MV_FLAG_DUAL_HC,
  653. .pio_mask = ATA_PIO4,
  654. .udma_mask = ATA_UDMA6,
  655. .port_ops = &mv5_ops,
  656. },
  657. { /* chip_604x */
  658. .flags = MV_GEN_II_FLAGS,
  659. .pio_mask = ATA_PIO4,
  660. .udma_mask = ATA_UDMA6,
  661. .port_ops = &mv6_ops,
  662. },
  663. { /* chip_608x */
  664. .flags = MV_GEN_II_FLAGS | MV_FLAG_DUAL_HC,
  665. .pio_mask = ATA_PIO4,
  666. .udma_mask = ATA_UDMA6,
  667. .port_ops = &mv6_ops,
  668. },
  669. { /* chip_6042 */
  670. .flags = MV_GEN_IIE_FLAGS,
  671. .pio_mask = ATA_PIO4,
  672. .udma_mask = ATA_UDMA6,
  673. .port_ops = &mv_iie_ops,
  674. },
  675. { /* chip_7042 */
  676. .flags = MV_GEN_IIE_FLAGS,
  677. .pio_mask = ATA_PIO4,
  678. .udma_mask = ATA_UDMA6,
  679. .port_ops = &mv_iie_ops,
  680. },
  681. { /* chip_soc */
  682. .flags = MV_GEN_IIE_FLAGS,
  683. .pio_mask = ATA_PIO4,
  684. .udma_mask = ATA_UDMA6,
  685. .port_ops = &mv_iie_ops,
  686. },
  687. };
  688. static const struct pci_device_id mv_pci_tbl[] = {
  689. { PCI_VDEVICE(MARVELL, 0x5040), chip_504x },
  690. { PCI_VDEVICE(MARVELL, 0x5041), chip_504x },
  691. { PCI_VDEVICE(MARVELL, 0x5080), chip_5080 },
  692. { PCI_VDEVICE(MARVELL, 0x5081), chip_508x },
  693. /* RocketRAID 1720/174x have different identifiers */
  694. { PCI_VDEVICE(TTI, 0x1720), chip_6042 },
  695. { PCI_VDEVICE(TTI, 0x1740), chip_6042 },
  696. { PCI_VDEVICE(TTI, 0x1742), chip_6042 },
  697. { PCI_VDEVICE(MARVELL, 0x6040), chip_604x },
  698. { PCI_VDEVICE(MARVELL, 0x6041), chip_604x },
  699. { PCI_VDEVICE(MARVELL, 0x6042), chip_6042 },
  700. { PCI_VDEVICE(MARVELL, 0x6080), chip_608x },
  701. { PCI_VDEVICE(MARVELL, 0x6081), chip_608x },
  702. { PCI_VDEVICE(ADAPTEC2, 0x0241), chip_604x },
  703. /* Adaptec 1430SA */
  704. { PCI_VDEVICE(ADAPTEC2, 0x0243), chip_7042 },
  705. /* Marvell 7042 support */
  706. { PCI_VDEVICE(MARVELL, 0x7042), chip_7042 },
  707. /* Highpoint RocketRAID PCIe series */
  708. { PCI_VDEVICE(TTI, 0x2300), chip_7042 },
  709. { PCI_VDEVICE(TTI, 0x2310), chip_7042 },
  710. { } /* terminate list */
  711. };
  712. static const struct mv_hw_ops mv5xxx_ops = {
  713. .phy_errata = mv5_phy_errata,
  714. .enable_leds = mv5_enable_leds,
  715. .read_preamp = mv5_read_preamp,
  716. .reset_hc = mv5_reset_hc,
  717. .reset_flash = mv5_reset_flash,
  718. .reset_bus = mv5_reset_bus,
  719. };
  720. static const struct mv_hw_ops mv6xxx_ops = {
  721. .phy_errata = mv6_phy_errata,
  722. .enable_leds = mv6_enable_leds,
  723. .read_preamp = mv6_read_preamp,
  724. .reset_hc = mv6_reset_hc,
  725. .reset_flash = mv6_reset_flash,
  726. .reset_bus = mv_reset_pci_bus,
  727. };
  728. static const struct mv_hw_ops mv_soc_ops = {
  729. .phy_errata = mv6_phy_errata,
  730. .enable_leds = mv_soc_enable_leds,
  731. .read_preamp = mv_soc_read_preamp,
  732. .reset_hc = mv_soc_reset_hc,
  733. .reset_flash = mv_soc_reset_flash,
  734. .reset_bus = mv_soc_reset_bus,
  735. };
  736. static const struct mv_hw_ops mv_soc_65n_ops = {
  737. .phy_errata = mv_soc_65n_phy_errata,
  738. .enable_leds = mv_soc_enable_leds,
  739. .reset_hc = mv_soc_reset_hc,
  740. .reset_flash = mv_soc_reset_flash,
  741. .reset_bus = mv_soc_reset_bus,
  742. };
  743. /*
  744. * Functions
  745. */
  746. static inline void writelfl(unsigned long data, void __iomem *addr)
  747. {
  748. writel(data, addr);
  749. (void) readl(addr); /* flush to avoid PCI posted write */
  750. }
  751. static inline unsigned int mv_hc_from_port(unsigned int port)
  752. {
  753. return port >> MV_PORT_HC_SHIFT;
  754. }
  755. static inline unsigned int mv_hardport_from_port(unsigned int port)
  756. {
  757. return port & MV_PORT_MASK;
  758. }
  759. /*
  760. * Consolidate some rather tricky bit shift calculations.
  761. * This is hot-path stuff, so not a function.
  762. * Simple code, with two return values, so macro rather than inline.
  763. *
  764. * port is the sole input, in range 0..7.
  765. * shift is one output, for use with main_irq_cause / main_irq_mask registers.
  766. * hardport is the other output, in range 0..3.
  767. *
  768. * Note that port and hardport may be the same variable in some cases.
  769. */
  770. #define MV_PORT_TO_SHIFT_AND_HARDPORT(port, shift, hardport) \
  771. { \
  772. shift = mv_hc_from_port(port) * HC_SHIFT; \
  773. hardport = mv_hardport_from_port(port); \
  774. shift += hardport * 2; \
  775. }
  776. static inline void __iomem *mv_hc_base(void __iomem *base, unsigned int hc)
  777. {
  778. return (base + SATAHC0_REG_BASE + (hc * MV_SATAHC_REG_SZ));
  779. }
  780. static inline void __iomem *mv_hc_base_from_port(void __iomem *base,
  781. unsigned int port)
  782. {
  783. return mv_hc_base(base, mv_hc_from_port(port));
  784. }
  785. static inline void __iomem *mv_port_base(void __iomem *base, unsigned int port)
  786. {
  787. return mv_hc_base_from_port(base, port) +
  788. MV_SATAHC_ARBTR_REG_SZ +
  789. (mv_hardport_from_port(port) * MV_PORT_REG_SZ);
  790. }
  791. static void __iomem *mv5_phy_base(void __iomem *mmio, unsigned int port)
  792. {
  793. void __iomem *hc_mmio = mv_hc_base_from_port(mmio, port);
  794. unsigned long ofs = (mv_hardport_from_port(port) + 1) * 0x100UL;
  795. return hc_mmio + ofs;
  796. }
  797. static inline void __iomem *mv_host_base(struct ata_host *host)
  798. {
  799. struct mv_host_priv *hpriv = host->private_data;
  800. return hpriv->base;
  801. }
  802. static inline void __iomem *mv_ap_base(struct ata_port *ap)
  803. {
  804. return mv_port_base(mv_host_base(ap->host), ap->port_no);
  805. }
  806. static inline int mv_get_hc_count(unsigned long port_flags)
  807. {
  808. return ((port_flags & MV_FLAG_DUAL_HC) ? 2 : 1);
  809. }
  810. /**
  811. * mv_save_cached_regs - (re-)initialize cached port registers
  812. * @ap: the port whose registers we are caching
  813. *
  814. * Initialize the local cache of port registers,
  815. * so that reading them over and over again can
  816. * be avoided on the hotter paths of this driver.
  817. * This saves a few microseconds each time we switch
  818. * to/from EDMA mode to perform (eg.) a drive cache flush.
  819. */
  820. static void mv_save_cached_regs(struct ata_port *ap)
  821. {
  822. void __iomem *port_mmio = mv_ap_base(ap);
  823. struct mv_port_priv *pp = ap->private_data;
  824. pp->cached.fiscfg = readl(port_mmio + FISCFG);
  825. pp->cached.ltmode = readl(port_mmio + LTMODE);
  826. pp->cached.haltcond = readl(port_mmio + EDMA_HALTCOND);
  827. pp->cached.unknown_rsvd = readl(port_mmio + EDMA_UNKNOWN_RSVD);
  828. }
  829. /**
  830. * mv_write_cached_reg - write to a cached port register
  831. * @addr: hardware address of the register
  832. * @old: pointer to cached value of the register
  833. * @new: new value for the register
  834. *
  835. * Write a new value to a cached register,
  836. * but only if the value is different from before.
  837. */
  838. static inline void mv_write_cached_reg(void __iomem *addr, u32 *old, u32 new)
  839. {
  840. if (new != *old) {
  841. unsigned long laddr;
  842. *old = new;
  843. /*
  844. * Workaround for 88SX60x1-B2 FEr SATA#13:
  845. * Read-after-write is needed to prevent generating 64-bit
  846. * write cycles on the PCI bus for SATA interface registers
  847. * at offsets ending in 0x4 or 0xc.
  848. *
  849. * Looks like a lot of fuss, but it avoids an unnecessary
  850. * +1 usec read-after-write delay for unaffected registers.
  851. */
  852. laddr = (long)addr & 0xffff;
  853. if (laddr >= 0x300 && laddr <= 0x33c) {
  854. laddr &= 0x000f;
  855. if (laddr == 0x4 || laddr == 0xc) {
  856. writelfl(new, addr); /* read after write */
  857. return;
  858. }
  859. }
  860. writel(new, addr); /* unaffected by the errata */
  861. }
  862. }
  863. static void mv_set_edma_ptrs(void __iomem *port_mmio,
  864. struct mv_host_priv *hpriv,
  865. struct mv_port_priv *pp)
  866. {
  867. u32 index;
  868. /*
  869. * initialize request queue
  870. */
  871. pp->req_idx &= MV_MAX_Q_DEPTH_MASK; /* paranoia */
  872. index = pp->req_idx << EDMA_REQ_Q_PTR_SHIFT;
  873. WARN_ON(pp->crqb_dma & 0x3ff);
  874. writel((pp->crqb_dma >> 16) >> 16, port_mmio + EDMA_REQ_Q_BASE_HI);
  875. writelfl((pp->crqb_dma & EDMA_REQ_Q_BASE_LO_MASK) | index,
  876. port_mmio + EDMA_REQ_Q_IN_PTR);
  877. writelfl(index, port_mmio + EDMA_REQ_Q_OUT_PTR);
  878. /*
  879. * initialize response queue
  880. */
  881. pp->resp_idx &= MV_MAX_Q_DEPTH_MASK; /* paranoia */
  882. index = pp->resp_idx << EDMA_RSP_Q_PTR_SHIFT;
  883. WARN_ON(pp->crpb_dma & 0xff);
  884. writel((pp->crpb_dma >> 16) >> 16, port_mmio + EDMA_RSP_Q_BASE_HI);
  885. writelfl(index, port_mmio + EDMA_RSP_Q_IN_PTR);
  886. writelfl((pp->crpb_dma & EDMA_RSP_Q_BASE_LO_MASK) | index,
  887. port_mmio + EDMA_RSP_Q_OUT_PTR);
  888. }
  889. static void mv_write_main_irq_mask(u32 mask, struct mv_host_priv *hpriv)
  890. {
  891. /*
  892. * When writing to the main_irq_mask in hardware,
  893. * we must ensure exclusivity between the interrupt coalescing bits
  894. * and the corresponding individual port DONE_IRQ bits.
  895. *
  896. * Note that this register is really an "IRQ enable" register,
  897. * not an "IRQ mask" register as Marvell's naming might suggest.
  898. */
  899. if (mask & (ALL_PORTS_COAL_DONE | PORTS_0_3_COAL_DONE))
  900. mask &= ~DONE_IRQ_0_3;
  901. if (mask & (ALL_PORTS_COAL_DONE | PORTS_4_7_COAL_DONE))
  902. mask &= ~DONE_IRQ_4_7;
  903. writelfl(mask, hpriv->main_irq_mask_addr);
  904. }
  905. static void mv_set_main_irq_mask(struct ata_host *host,
  906. u32 disable_bits, u32 enable_bits)
  907. {
  908. struct mv_host_priv *hpriv = host->private_data;
  909. u32 old_mask, new_mask;
  910. old_mask = hpriv->main_irq_mask;
  911. new_mask = (old_mask & ~disable_bits) | enable_bits;
  912. if (new_mask != old_mask) {
  913. hpriv->main_irq_mask = new_mask;
  914. mv_write_main_irq_mask(new_mask, hpriv);
  915. }
  916. }
  917. static void mv_enable_port_irqs(struct ata_port *ap,
  918. unsigned int port_bits)
  919. {
  920. unsigned int shift, hardport, port = ap->port_no;
  921. u32 disable_bits, enable_bits;
  922. MV_PORT_TO_SHIFT_AND_HARDPORT(port, shift, hardport);
  923. disable_bits = (DONE_IRQ | ERR_IRQ) << shift;
  924. enable_bits = port_bits << shift;
  925. mv_set_main_irq_mask(ap->host, disable_bits, enable_bits);
  926. }
  927. static void mv_clear_and_enable_port_irqs(struct ata_port *ap,
  928. void __iomem *port_mmio,
  929. unsigned int port_irqs)
  930. {
  931. struct mv_host_priv *hpriv = ap->host->private_data;
  932. int hardport = mv_hardport_from_port(ap->port_no);
  933. void __iomem *hc_mmio = mv_hc_base_from_port(
  934. mv_host_base(ap->host), ap->port_no);
  935. u32 hc_irq_cause;
  936. /* clear EDMA event indicators, if any */
  937. writelfl(0, port_mmio + EDMA_ERR_IRQ_CAUSE);
  938. /* clear pending irq events */
  939. hc_irq_cause = ~((DEV_IRQ | DMA_IRQ) << hardport);
  940. writelfl(hc_irq_cause, hc_mmio + HC_IRQ_CAUSE);
  941. /* clear FIS IRQ Cause */
  942. if (IS_GEN_IIE(hpriv))
  943. writelfl(0, port_mmio + FIS_IRQ_CAUSE);
  944. mv_enable_port_irqs(ap, port_irqs);
  945. }
  946. static void mv_set_irq_coalescing(struct ata_host *host,
  947. unsigned int count, unsigned int usecs)
  948. {
  949. struct mv_host_priv *hpriv = host->private_data;
  950. void __iomem *mmio = hpriv->base, *hc_mmio;
  951. u32 coal_enable = 0;
  952. unsigned long flags;
  953. unsigned int clks, is_dual_hc = hpriv->n_ports > MV_PORTS_PER_HC;
  954. const u32 coal_disable = PORTS_0_3_COAL_DONE | PORTS_4_7_COAL_DONE |
  955. ALL_PORTS_COAL_DONE;
  956. /* Disable IRQ coalescing if either threshold is zero */
  957. if (!usecs || !count) {
  958. clks = count = 0;
  959. } else {
  960. /* Respect maximum limits of the hardware */
  961. clks = usecs * COAL_CLOCKS_PER_USEC;
  962. if (clks > MAX_COAL_TIME_THRESHOLD)
  963. clks = MAX_COAL_TIME_THRESHOLD;
  964. if (count > MAX_COAL_IO_COUNT)
  965. count = MAX_COAL_IO_COUNT;
  966. }
  967. spin_lock_irqsave(&host->lock, flags);
  968. mv_set_main_irq_mask(host, coal_disable, 0);
  969. if (is_dual_hc && !IS_GEN_I(hpriv)) {
  970. /*
  971. * GEN_II/GEN_IIE with dual host controllers:
  972. * one set of global thresholds for the entire chip.
  973. */
  974. writel(clks, mmio + IRQ_COAL_TIME_THRESHOLD);
  975. writel(count, mmio + IRQ_COAL_IO_THRESHOLD);
  976. /* clear leftover coal IRQ bit */
  977. writel(~ALL_PORTS_COAL_IRQ, mmio + IRQ_COAL_CAUSE);
  978. if (count)
  979. coal_enable = ALL_PORTS_COAL_DONE;
  980. clks = count = 0; /* force clearing of regular regs below */
  981. }
  982. /*
  983. * All chips: independent thresholds for each HC on the chip.
  984. */
  985. hc_mmio = mv_hc_base_from_port(mmio, 0);
  986. writel(clks, hc_mmio + HC_IRQ_COAL_TIME_THRESHOLD);
  987. writel(count, hc_mmio + HC_IRQ_COAL_IO_THRESHOLD);
  988. writel(~HC_COAL_IRQ, hc_mmio + HC_IRQ_CAUSE);
  989. if (count)
  990. coal_enable |= PORTS_0_3_COAL_DONE;
  991. if (is_dual_hc) {
  992. hc_mmio = mv_hc_base_from_port(mmio, MV_PORTS_PER_HC);
  993. writel(clks, hc_mmio + HC_IRQ_COAL_TIME_THRESHOLD);
  994. writel(count, hc_mmio + HC_IRQ_COAL_IO_THRESHOLD);
  995. writel(~HC_COAL_IRQ, hc_mmio + HC_IRQ_CAUSE);
  996. if (count)
  997. coal_enable |= PORTS_4_7_COAL_DONE;
  998. }
  999. mv_set_main_irq_mask(host, 0, coal_enable);
  1000. spin_unlock_irqrestore(&host->lock, flags);
  1001. }
  1002. /**
  1003. * mv_start_edma - Enable eDMA engine
  1004. * @base: port base address
  1005. * @pp: port private data
  1006. *
  1007. * Verify the local cache of the eDMA state is accurate with a
  1008. * WARN_ON.
  1009. *
  1010. * LOCKING:
  1011. * Inherited from caller.
  1012. */
  1013. static void mv_start_edma(struct ata_port *ap, void __iomem *port_mmio,
  1014. struct mv_port_priv *pp, u8 protocol)
  1015. {
  1016. int want_ncq = (protocol == ATA_PROT_NCQ);
  1017. if (pp->pp_flags & MV_PP_FLAG_EDMA_EN) {
  1018. int using_ncq = ((pp->pp_flags & MV_PP_FLAG_NCQ_EN) != 0);
  1019. if (want_ncq != using_ncq)
  1020. mv_stop_edma(ap);
  1021. }
  1022. if (!(pp->pp_flags & MV_PP_FLAG_EDMA_EN)) {
  1023. struct mv_host_priv *hpriv = ap->host->private_data;
  1024. mv_edma_cfg(ap, want_ncq, 1);
  1025. mv_set_edma_ptrs(port_mmio, hpriv, pp);
  1026. mv_clear_and_enable_port_irqs(ap, port_mmio, DONE_IRQ|ERR_IRQ);
  1027. writelfl(EDMA_EN, port_mmio + EDMA_CMD);
  1028. pp->pp_flags |= MV_PP_FLAG_EDMA_EN;
  1029. }
  1030. }
  1031. static void mv_wait_for_edma_empty_idle(struct ata_port *ap)
  1032. {
  1033. void __iomem *port_mmio = mv_ap_base(ap);
  1034. const u32 empty_idle = (EDMA_STATUS_CACHE_EMPTY | EDMA_STATUS_IDLE);
  1035. const int per_loop = 5, timeout = (15 * 1000 / per_loop);
  1036. int i;
  1037. /*
  1038. * Wait for the EDMA engine to finish transactions in progress.
  1039. * No idea what a good "timeout" value might be, but measurements
  1040. * indicate that it often requires hundreds of microseconds
  1041. * with two drives in-use. So we use the 15msec value above
  1042. * as a rough guess at what even more drives might require.
  1043. */
  1044. for (i = 0; i < timeout; ++i) {
  1045. u32 edma_stat = readl(port_mmio + EDMA_STATUS);
  1046. if ((edma_stat & empty_idle) == empty_idle)
  1047. break;
  1048. udelay(per_loop);
  1049. }
  1050. /* ata_port_info(ap, "%s: %u+ usecs\n", __func__, i); */
  1051. }
  1052. /**
  1053. * mv_stop_edma_engine - Disable eDMA engine
  1054. * @port_mmio: io base address
  1055. *
  1056. * LOCKING:
  1057. * Inherited from caller.
  1058. */
  1059. static int mv_stop_edma_engine(void __iomem *port_mmio)
  1060. {
  1061. int i;
  1062. /* Disable eDMA. The disable bit auto clears. */
  1063. writelfl(EDMA_DS, port_mmio + EDMA_CMD);
  1064. /* Wait for the chip to confirm eDMA is off. */
  1065. for (i = 10000; i > 0; i--) {
  1066. u32 reg = readl(port_mmio + EDMA_CMD);
  1067. if (!(reg & EDMA_EN))
  1068. return 0;
  1069. udelay(10);
  1070. }
  1071. return -EIO;
  1072. }
  1073. static int mv_stop_edma(struct ata_port *ap)
  1074. {
  1075. void __iomem *port_mmio = mv_ap_base(ap);
  1076. struct mv_port_priv *pp = ap->private_data;
  1077. int err = 0;
  1078. if (!(pp->pp_flags & MV_PP_FLAG_EDMA_EN))
  1079. return 0;
  1080. pp->pp_flags &= ~MV_PP_FLAG_EDMA_EN;
  1081. mv_wait_for_edma_empty_idle(ap);
  1082. if (mv_stop_edma_engine(port_mmio)) {
  1083. ata_port_err(ap, "Unable to stop eDMA\n");
  1084. err = -EIO;
  1085. }
  1086. mv_edma_cfg(ap, 0, 0);
  1087. return err;
  1088. }
  1089. #ifdef ATA_DEBUG
  1090. static void mv_dump_mem(void __iomem *start, unsigned bytes)
  1091. {
  1092. int b, w;
  1093. for (b = 0; b < bytes; ) {
  1094. DPRINTK("%p: ", start + b);
  1095. for (w = 0; b < bytes && w < 4; w++) {
  1096. printk("%08x ", readl(start + b));
  1097. b += sizeof(u32);
  1098. }
  1099. printk("\n");
  1100. }
  1101. }
  1102. #endif
  1103. #if defined(ATA_DEBUG) || defined(CONFIG_PCI)
  1104. static void mv_dump_pci_cfg(struct pci_dev *pdev, unsigned bytes)
  1105. {
  1106. #ifdef ATA_DEBUG
  1107. int b, w;
  1108. u32 dw;
  1109. for (b = 0; b < bytes; ) {
  1110. DPRINTK("%02x: ", b);
  1111. for (w = 0; b < bytes && w < 4; w++) {
  1112. (void) pci_read_config_dword(pdev, b, &dw);
  1113. printk("%08x ", dw);
  1114. b += sizeof(u32);
  1115. }
  1116. printk("\n");
  1117. }
  1118. #endif
  1119. }
  1120. #endif
  1121. static void mv_dump_all_regs(void __iomem *mmio_base, int port,
  1122. struct pci_dev *pdev)
  1123. {
  1124. #ifdef ATA_DEBUG
  1125. void __iomem *hc_base = mv_hc_base(mmio_base,
  1126. port >> MV_PORT_HC_SHIFT);
  1127. void __iomem *port_base;
  1128. int start_port, num_ports, p, start_hc, num_hcs, hc;
  1129. if (0 > port) {
  1130. start_hc = start_port = 0;
  1131. num_ports = 8; /* shld be benign for 4 port devs */
  1132. num_hcs = 2;
  1133. } else {
  1134. start_hc = port >> MV_PORT_HC_SHIFT;
  1135. start_port = port;
  1136. num_ports = num_hcs = 1;
  1137. }
  1138. DPRINTK("All registers for port(s) %u-%u:\n", start_port,
  1139. num_ports > 1 ? num_ports - 1 : start_port);
  1140. if (NULL != pdev) {
  1141. DPRINTK("PCI config space regs:\n");
  1142. mv_dump_pci_cfg(pdev, 0x68);
  1143. }
  1144. DPRINTK("PCI regs:\n");
  1145. mv_dump_mem(mmio_base+0xc00, 0x3c);
  1146. mv_dump_mem(mmio_base+0xd00, 0x34);
  1147. mv_dump_mem(mmio_base+0xf00, 0x4);
  1148. mv_dump_mem(mmio_base+0x1d00, 0x6c);
  1149. for (hc = start_hc; hc < start_hc + num_hcs; hc++) {
  1150. hc_base = mv_hc_base(mmio_base, hc);
  1151. DPRINTK("HC regs (HC %i):\n", hc);
  1152. mv_dump_mem(hc_base, 0x1c);
  1153. }
  1154. for (p = start_port; p < start_port + num_ports; p++) {
  1155. port_base = mv_port_base(mmio_base, p);
  1156. DPRINTK("EDMA regs (port %i):\n", p);
  1157. mv_dump_mem(port_base, 0x54);
  1158. DPRINTK("SATA regs (port %i):\n", p);
  1159. mv_dump_mem(port_base+0x300, 0x60);
  1160. }
  1161. #endif
  1162. }
  1163. static unsigned int mv_scr_offset(unsigned int sc_reg_in)
  1164. {
  1165. unsigned int ofs;
  1166. switch (sc_reg_in) {
  1167. case SCR_STATUS:
  1168. case SCR_CONTROL:
  1169. case SCR_ERROR:
  1170. ofs = SATA_STATUS + (sc_reg_in * sizeof(u32));
  1171. break;
  1172. case SCR_ACTIVE:
  1173. ofs = SATA_ACTIVE; /* active is not with the others */
  1174. break;
  1175. default:
  1176. ofs = 0xffffffffU;
  1177. break;
  1178. }
  1179. return ofs;
  1180. }
  1181. static int mv_scr_read(struct ata_link *link, unsigned int sc_reg_in, u32 *val)
  1182. {
  1183. unsigned int ofs = mv_scr_offset(sc_reg_in);
  1184. if (ofs != 0xffffffffU) {
  1185. *val = readl(mv_ap_base(link->ap) + ofs);
  1186. return 0;
  1187. } else
  1188. return -EINVAL;
  1189. }
  1190. static int mv_scr_write(struct ata_link *link, unsigned int sc_reg_in, u32 val)
  1191. {
  1192. unsigned int ofs = mv_scr_offset(sc_reg_in);
  1193. if (ofs != 0xffffffffU) {
  1194. void __iomem *addr = mv_ap_base(link->ap) + ofs;
  1195. struct mv_host_priv *hpriv = link->ap->host->private_data;
  1196. if (sc_reg_in == SCR_CONTROL) {
  1197. /*
  1198. * Workaround for 88SX60x1 FEr SATA#26:
  1199. *
  1200. * COMRESETs have to take care not to accidentally
  1201. * put the drive to sleep when writing SCR_CONTROL.
  1202. * Setting bits 12..15 prevents this problem.
  1203. *
  1204. * So if we see an outbound COMMRESET, set those bits.
  1205. * Ditto for the followup write that clears the reset.
  1206. *
  1207. * The proprietary driver does this for
  1208. * all chip versions, and so do we.
  1209. */
  1210. if ((val & 0xf) == 1 || (readl(addr) & 0xf) == 1)
  1211. val |= 0xf000;
  1212. if (hpriv->hp_flags & MV_HP_FIX_LP_PHY_CTL) {
  1213. void __iomem *lp_phy_addr =
  1214. mv_ap_base(link->ap) + LP_PHY_CTL;
  1215. /*
  1216. * Set PHY speed according to SControl speed.
  1217. */
  1218. u32 lp_phy_val =
  1219. LP_PHY_CTL_PIN_PU_PLL |
  1220. LP_PHY_CTL_PIN_PU_RX |
  1221. LP_PHY_CTL_PIN_PU_TX;
  1222. if ((val & 0xf0) != 0x10)
  1223. lp_phy_val |=
  1224. LP_PHY_CTL_GEN_TX_3G |
  1225. LP_PHY_CTL_GEN_RX_3G;
  1226. writelfl(lp_phy_val, lp_phy_addr);
  1227. }
  1228. }
  1229. writelfl(val, addr);
  1230. return 0;
  1231. } else
  1232. return -EINVAL;
  1233. }
  1234. static void mv6_dev_config(struct ata_device *adev)
  1235. {
  1236. /*
  1237. * Deal with Gen-II ("mv6") hardware quirks/restrictions:
  1238. *
  1239. * Gen-II does not support NCQ over a port multiplier
  1240. * (no FIS-based switching).
  1241. */
  1242. if (adev->flags & ATA_DFLAG_NCQ) {
  1243. if (sata_pmp_attached(adev->link->ap)) {
  1244. adev->flags &= ~ATA_DFLAG_NCQ;
  1245. ata_dev_info(adev,
  1246. "NCQ disabled for command-based switching\n");
  1247. }
  1248. }
  1249. }
  1250. static int mv_qc_defer(struct ata_queued_cmd *qc)
  1251. {
  1252. struct ata_link *link = qc->dev->link;
  1253. struct ata_port *ap = link->ap;
  1254. struct mv_port_priv *pp = ap->private_data;
  1255. /*
  1256. * Don't allow new commands if we're in a delayed EH state
  1257. * for NCQ and/or FIS-based switching.
  1258. */
  1259. if (pp->pp_flags & MV_PP_FLAG_DELAYED_EH)
  1260. return ATA_DEFER_PORT;
  1261. /* PIO commands need exclusive link: no other commands [DMA or PIO]
  1262. * can run concurrently.
  1263. * set excl_link when we want to send a PIO command in DMA mode
  1264. * or a non-NCQ command in NCQ mode.
  1265. * When we receive a command from that link, and there are no
  1266. * outstanding commands, mark a flag to clear excl_link and let
  1267. * the command go through.
  1268. */
  1269. if (unlikely(ap->excl_link)) {
  1270. if (link == ap->excl_link) {
  1271. if (ap->nr_active_links)
  1272. return ATA_DEFER_PORT;
  1273. qc->flags |= ATA_QCFLAG_CLEAR_EXCL;
  1274. return 0;
  1275. } else
  1276. return ATA_DEFER_PORT;
  1277. }
  1278. /*
  1279. * If the port is completely idle, then allow the new qc.
  1280. */
  1281. if (ap->nr_active_links == 0)
  1282. return 0;
  1283. /*
  1284. * The port is operating in host queuing mode (EDMA) with NCQ
  1285. * enabled, allow multiple NCQ commands. EDMA also allows
  1286. * queueing multiple DMA commands but libata core currently
  1287. * doesn't allow it.
  1288. */
  1289. if ((pp->pp_flags & MV_PP_FLAG_EDMA_EN) &&
  1290. (pp->pp_flags & MV_PP_FLAG_NCQ_EN)) {
  1291. if (ata_is_ncq(qc->tf.protocol))
  1292. return 0;
  1293. else {
  1294. ap->excl_link = link;
  1295. return ATA_DEFER_PORT;
  1296. }
  1297. }
  1298. return ATA_DEFER_PORT;
  1299. }
  1300. static void mv_config_fbs(struct ata_port *ap, int want_ncq, int want_fbs)
  1301. {
  1302. struct mv_port_priv *pp = ap->private_data;
  1303. void __iomem *port_mmio;
  1304. u32 fiscfg, *old_fiscfg = &pp->cached.fiscfg;
  1305. u32 ltmode, *old_ltmode = &pp->cached.ltmode;
  1306. u32 haltcond, *old_haltcond = &pp->cached.haltcond;
  1307. ltmode = *old_ltmode & ~LTMODE_BIT8;
  1308. haltcond = *old_haltcond | EDMA_ERR_DEV;
  1309. if (want_fbs) {
  1310. fiscfg = *old_fiscfg | FISCFG_SINGLE_SYNC;
  1311. ltmode = *old_ltmode | LTMODE_BIT8;
  1312. if (want_ncq)
  1313. haltcond &= ~EDMA_ERR_DEV;
  1314. else
  1315. fiscfg |= FISCFG_WAIT_DEV_ERR;
  1316. } else {
  1317. fiscfg = *old_fiscfg & ~(FISCFG_SINGLE_SYNC | FISCFG_WAIT_DEV_ERR);
  1318. }
  1319. port_mmio = mv_ap_base(ap);
  1320. mv_write_cached_reg(port_mmio + FISCFG, old_fiscfg, fiscfg);
  1321. mv_write_cached_reg(port_mmio + LTMODE, old_ltmode, ltmode);
  1322. mv_write_cached_reg(port_mmio + EDMA_HALTCOND, old_haltcond, haltcond);
  1323. }
  1324. static void mv_60x1_errata_sata25(struct ata_port *ap, int want_ncq)
  1325. {
  1326. struct mv_host_priv *hpriv = ap->host->private_data;
  1327. u32 old, new;
  1328. /* workaround for 88SX60x1 FEr SATA#25 (part 1) */
  1329. old = readl(hpriv->base + GPIO_PORT_CTL);
  1330. if (want_ncq)
  1331. new = old | (1 << 22);
  1332. else
  1333. new = old & ~(1 << 22);
  1334. if (new != old)
  1335. writel(new, hpriv->base + GPIO_PORT_CTL);
  1336. }
  1337. /**
  1338. * mv_bmdma_enable - set a magic bit on GEN_IIE to allow bmdma
  1339. * @ap: Port being initialized
  1340. *
  1341. * There are two DMA modes on these chips: basic DMA, and EDMA.
  1342. *
  1343. * Bit-0 of the "EDMA RESERVED" register enables/disables use
  1344. * of basic DMA on the GEN_IIE versions of the chips.
  1345. *
  1346. * This bit survives EDMA resets, and must be set for basic DMA
  1347. * to function, and should be cleared when EDMA is active.
  1348. */
  1349. static void mv_bmdma_enable_iie(struct ata_port *ap, int enable_bmdma)
  1350. {
  1351. struct mv_port_priv *pp = ap->private_data;
  1352. u32 new, *old = &pp->cached.unknown_rsvd;
  1353. if (enable_bmdma)
  1354. new = *old | 1;
  1355. else
  1356. new = *old & ~1;
  1357. mv_write_cached_reg(mv_ap_base(ap) + EDMA_UNKNOWN_RSVD, old, new);
  1358. }
  1359. /*
  1360. * SOC chips have an issue whereby the HDD LEDs don't always blink
  1361. * during I/O when NCQ is enabled. Enabling a special "LED blink" mode
  1362. * of the SOC takes care of it, generating a steady blink rate when
  1363. * any drive on the chip is active.
  1364. *
  1365. * Unfortunately, the blink mode is a global hardware setting for the SOC,
  1366. * so we must use it whenever at least one port on the SOC has NCQ enabled.
  1367. *
  1368. * We turn "LED blink" off when NCQ is not in use anywhere, because the normal
  1369. * LED operation works then, and provides better (more accurate) feedback.
  1370. *
  1371. * Note that this code assumes that an SOC never has more than one HC onboard.
  1372. */
  1373. static void mv_soc_led_blink_enable(struct ata_port *ap)
  1374. {
  1375. struct ata_host *host = ap->host;
  1376. struct mv_host_priv *hpriv = host->private_data;
  1377. void __iomem *hc_mmio;
  1378. u32 led_ctrl;
  1379. if (hpriv->hp_flags & MV_HP_QUIRK_LED_BLINK_EN)
  1380. return;
  1381. hpriv->hp_flags |= MV_HP_QUIRK_LED_BLINK_EN;
  1382. hc_mmio = mv_hc_base_from_port(mv_host_base(host), ap->port_no);
  1383. led_ctrl = readl(hc_mmio + SOC_LED_CTRL);
  1384. writel(led_ctrl | SOC_LED_CTRL_BLINK, hc_mmio + SOC_LED_CTRL);
  1385. }
  1386. static void mv_soc_led_blink_disable(struct ata_port *ap)
  1387. {
  1388. struct ata_host *host = ap->host;
  1389. struct mv_host_priv *hpriv = host->private_data;
  1390. void __iomem *hc_mmio;
  1391. u32 led_ctrl;
  1392. unsigned int port;
  1393. if (!(hpriv->hp_flags & MV_HP_QUIRK_LED_BLINK_EN))
  1394. return;
  1395. /* disable led-blink only if no ports are using NCQ */
  1396. for (port = 0; port < hpriv->n_ports; port++) {
  1397. struct ata_port *this_ap = host->ports[port];
  1398. struct mv_port_priv *pp = this_ap->private_data;
  1399. if (pp->pp_flags & MV_PP_FLAG_NCQ_EN)
  1400. return;
  1401. }
  1402. hpriv->hp_flags &= ~MV_HP_QUIRK_LED_BLINK_EN;
  1403. hc_mmio = mv_hc_base_from_port(mv_host_base(host), ap->port_no);
  1404. led_ctrl = readl(hc_mmio + SOC_LED_CTRL);
  1405. writel(led_ctrl & ~SOC_LED_CTRL_BLINK, hc_mmio + SOC_LED_CTRL);
  1406. }
  1407. static void mv_edma_cfg(struct ata_port *ap, int want_ncq, int want_edma)
  1408. {
  1409. u32 cfg;
  1410. struct mv_port_priv *pp = ap->private_data;
  1411. struct mv_host_priv *hpriv = ap->host->private_data;
  1412. void __iomem *port_mmio = mv_ap_base(ap);
  1413. /* set up non-NCQ EDMA configuration */
  1414. cfg = EDMA_CFG_Q_DEPTH; /* always 0x1f for *all* chips */
  1415. pp->pp_flags &=
  1416. ~(MV_PP_FLAG_FBS_EN | MV_PP_FLAG_NCQ_EN | MV_PP_FLAG_FAKE_ATA_BUSY);
  1417. if (IS_GEN_I(hpriv))
  1418. cfg |= (1 << 8); /* enab config burst size mask */
  1419. else if (IS_GEN_II(hpriv)) {
  1420. cfg |= EDMA_CFG_RD_BRST_EXT | EDMA_CFG_WR_BUFF_LEN;
  1421. mv_60x1_errata_sata25(ap, want_ncq);
  1422. } else if (IS_GEN_IIE(hpriv)) {
  1423. int want_fbs = sata_pmp_attached(ap);
  1424. /*
  1425. * Possible future enhancement:
  1426. *
  1427. * The chip can use FBS with non-NCQ, if we allow it,
  1428. * But first we need to have the error handling in place
  1429. * for this mode (datasheet section 7.3.15.4.2.3).
  1430. * So disallow non-NCQ FBS for now.
  1431. */
  1432. want_fbs &= want_ncq;
  1433. mv_config_fbs(ap, want_ncq, want_fbs);
  1434. if (want_fbs) {
  1435. pp->pp_flags |= MV_PP_FLAG_FBS_EN;
  1436. cfg |= EDMA_CFG_EDMA_FBS; /* FIS-based switching */
  1437. }
  1438. cfg |= (1 << 23); /* do not mask PM field in rx'd FIS */
  1439. if (want_edma) {
  1440. cfg |= (1 << 22); /* enab 4-entry host queue cache */
  1441. if (!IS_SOC(hpriv))
  1442. cfg |= (1 << 18); /* enab early completion */
  1443. }
  1444. if (hpriv->hp_flags & MV_HP_CUT_THROUGH)
  1445. cfg |= (1 << 17); /* enab cut-thru (dis stor&forwrd) */
  1446. mv_bmdma_enable_iie(ap, !want_edma);
  1447. if (IS_SOC(hpriv)) {
  1448. if (want_ncq)
  1449. mv_soc_led_blink_enable(ap);
  1450. else
  1451. mv_soc_led_blink_disable(ap);
  1452. }
  1453. }
  1454. if (want_ncq) {
  1455. cfg |= EDMA_CFG_NCQ;
  1456. pp->pp_flags |= MV_PP_FLAG_NCQ_EN;
  1457. }
  1458. writelfl(cfg, port_mmio + EDMA_CFG);
  1459. }
  1460. static void mv_port_free_dma_mem(struct ata_port *ap)
  1461. {
  1462. struct mv_host_priv *hpriv = ap->host->private_data;
  1463. struct mv_port_priv *pp = ap->private_data;
  1464. int tag;
  1465. if (pp->crqb) {
  1466. dma_pool_free(hpriv->crqb_pool, pp->crqb, pp->crqb_dma);
  1467. pp->crqb = NULL;
  1468. }
  1469. if (pp->crpb) {
  1470. dma_pool_free(hpriv->crpb_pool, pp->crpb, pp->crpb_dma);
  1471. pp->crpb = NULL;
  1472. }
  1473. /*
  1474. * For GEN_I, there's no NCQ, so we have only a single sg_tbl.
  1475. * For later hardware, we have one unique sg_tbl per NCQ tag.
  1476. */
  1477. for (tag = 0; tag < MV_MAX_Q_DEPTH; ++tag) {
  1478. if (pp->sg_tbl[tag]) {
  1479. if (tag == 0 || !IS_GEN_I(hpriv))
  1480. dma_pool_free(hpriv->sg_tbl_pool,
  1481. pp->sg_tbl[tag],
  1482. pp->sg_tbl_dma[tag]);
  1483. pp->sg_tbl[tag] = NULL;
  1484. }
  1485. }
  1486. }
  1487. /**
  1488. * mv_port_start - Port specific init/start routine.
  1489. * @ap: ATA channel to manipulate
  1490. *
  1491. * Allocate and point to DMA memory, init port private memory,
  1492. * zero indices.
  1493. *
  1494. * LOCKING:
  1495. * Inherited from caller.
  1496. */
  1497. static int mv_port_start(struct ata_port *ap)
  1498. {
  1499. struct device *dev = ap->host->dev;
  1500. struct mv_host_priv *hpriv = ap->host->private_data;
  1501. struct mv_port_priv *pp;
  1502. unsigned long flags;
  1503. int tag;
  1504. pp = devm_kzalloc(dev, sizeof(*pp), GFP_KERNEL);
  1505. if (!pp)
  1506. return -ENOMEM;
  1507. ap->private_data = pp;
  1508. pp->crqb = dma_pool_alloc(hpriv->crqb_pool, GFP_KERNEL, &pp->crqb_dma);
  1509. if (!pp->crqb)
  1510. return -ENOMEM;
  1511. memset(pp->crqb, 0, MV_CRQB_Q_SZ);
  1512. pp->crpb = dma_pool_alloc(hpriv->crpb_pool, GFP_KERNEL, &pp->crpb_dma);
  1513. if (!pp->crpb)
  1514. goto out_port_free_dma_mem;
  1515. memset(pp->crpb, 0, MV_CRPB_Q_SZ);
  1516. /* 6041/6081 Rev. "C0" (and newer) are okay with async notify */
  1517. if (hpriv->hp_flags & MV_HP_ERRATA_60X1C0)
  1518. ap->flags |= ATA_FLAG_AN;
  1519. /*
  1520. * For GEN_I, there's no NCQ, so we only allocate a single sg_tbl.
  1521. * For later hardware, we need one unique sg_tbl per NCQ tag.
  1522. */
  1523. for (tag = 0; tag < MV_MAX_Q_DEPTH; ++tag) {
  1524. if (tag == 0 || !IS_GEN_I(hpriv)) {
  1525. pp->sg_tbl[tag] = dma_pool_alloc(hpriv->sg_tbl_pool,
  1526. GFP_KERNEL, &pp->sg_tbl_dma[tag]);
  1527. if (!pp->sg_tbl[tag])
  1528. goto out_port_free_dma_mem;
  1529. } else {
  1530. pp->sg_tbl[tag] = pp->sg_tbl[0];
  1531. pp->sg_tbl_dma[tag] = pp->sg_tbl_dma[0];
  1532. }
  1533. }
  1534. spin_lock_irqsave(ap->lock, flags);
  1535. mv_save_cached_regs(ap);
  1536. mv_edma_cfg(ap, 0, 0);
  1537. spin_unlock_irqrestore(ap->lock, flags);
  1538. return 0;
  1539. out_port_free_dma_mem:
  1540. mv_port_free_dma_mem(ap);
  1541. return -ENOMEM;
  1542. }
  1543. /**
  1544. * mv_port_stop - Port specific cleanup/stop routine.
  1545. * @ap: ATA channel to manipulate
  1546. *
  1547. * Stop DMA, cleanup port memory.
  1548. *
  1549. * LOCKING:
  1550. * This routine uses the host lock to protect the DMA stop.
  1551. */
  1552. static void mv_port_stop(struct ata_port *ap)
  1553. {
  1554. unsigned long flags;
  1555. spin_lock_irqsave(ap->lock, flags);
  1556. mv_stop_edma(ap);
  1557. mv_enable_port_irqs(ap, 0);
  1558. spin_unlock_irqrestore(ap->lock, flags);
  1559. mv_port_free_dma_mem(ap);
  1560. }
  1561. /**
  1562. * mv_fill_sg - Fill out the Marvell ePRD (scatter gather) entries
  1563. * @qc: queued command whose SG list to source from
  1564. *
  1565. * Populate the SG list and mark the last entry.
  1566. *
  1567. * LOCKING:
  1568. * Inherited from caller.
  1569. */
  1570. static void mv_fill_sg(struct ata_queued_cmd *qc)
  1571. {
  1572. struct mv_port_priv *pp = qc->ap->private_data;
  1573. struct scatterlist *sg;
  1574. struct mv_sg *mv_sg, *last_sg = NULL;
  1575. unsigned int si;
  1576. mv_sg = pp->sg_tbl[qc->tag];
  1577. for_each_sg(qc->sg, sg, qc->n_elem, si) {
  1578. dma_addr_t addr = sg_dma_address(sg);
  1579. u32 sg_len = sg_dma_len(sg);
  1580. while (sg_len) {
  1581. u32 offset = addr & 0xffff;
  1582. u32 len = sg_len;
  1583. if (offset + len > 0x10000)
  1584. len = 0x10000 - offset;
  1585. mv_sg->addr = cpu_to_le32(addr & 0xffffffff);
  1586. mv_sg->addr_hi = cpu_to_le32((addr >> 16) >> 16);
  1587. mv_sg->flags_size = cpu_to_le32(len & 0xffff);
  1588. mv_sg->reserved = 0;
  1589. sg_len -= len;
  1590. addr += len;
  1591. last_sg = mv_sg;
  1592. mv_sg++;
  1593. }
  1594. }
  1595. if (likely(last_sg))
  1596. last_sg->flags_size |= cpu_to_le32(EPRD_FLAG_END_OF_TBL);
  1597. mb(); /* ensure data structure is visible to the chipset */
  1598. }
  1599. static void mv_crqb_pack_cmd(__le16 *cmdw, u8 data, u8 addr, unsigned last)
  1600. {
  1601. u16 tmp = data | (addr << CRQB_CMD_ADDR_SHIFT) | CRQB_CMD_CS |
  1602. (last ? CRQB_CMD_LAST : 0);
  1603. *cmdw = cpu_to_le16(tmp);
  1604. }
  1605. /**
  1606. * mv_sff_irq_clear - Clear hardware interrupt after DMA.
  1607. * @ap: Port associated with this ATA transaction.
  1608. *
  1609. * We need this only for ATAPI bmdma transactions,
  1610. * as otherwise we experience spurious interrupts
  1611. * after libata-sff handles the bmdma interrupts.
  1612. */
  1613. static void mv_sff_irq_clear(struct ata_port *ap)
  1614. {
  1615. mv_clear_and_enable_port_irqs(ap, mv_ap_base(ap), ERR_IRQ);
  1616. }
  1617. /**
  1618. * mv_check_atapi_dma - Filter ATAPI cmds which are unsuitable for DMA.
  1619. * @qc: queued command to check for chipset/DMA compatibility.
  1620. *
  1621. * The bmdma engines cannot handle speculative data sizes
  1622. * (bytecount under/over flow). So only allow DMA for
  1623. * data transfer commands with known data sizes.
  1624. *
  1625. * LOCKING:
  1626. * Inherited from caller.
  1627. */
  1628. static int mv_check_atapi_dma(struct ata_queued_cmd *qc)
  1629. {
  1630. struct scsi_cmnd *scmd = qc->scsicmd;
  1631. if (scmd) {
  1632. switch (scmd->cmnd[0]) {
  1633. case READ_6:
  1634. case READ_10:
  1635. case READ_12:
  1636. case WRITE_6:
  1637. case WRITE_10:
  1638. case WRITE_12:
  1639. case GPCMD_READ_CD:
  1640. case GPCMD_SEND_DVD_STRUCTURE:
  1641. case GPCMD_SEND_CUE_SHEET:
  1642. return 0; /* DMA is safe */
  1643. }
  1644. }
  1645. return -EOPNOTSUPP; /* use PIO instead */
  1646. }
  1647. /**
  1648. * mv_bmdma_setup - Set up BMDMA transaction
  1649. * @qc: queued command to prepare DMA for.
  1650. *
  1651. * LOCKING:
  1652. * Inherited from caller.
  1653. */
  1654. static void mv_bmdma_setup(struct ata_queued_cmd *qc)
  1655. {
  1656. struct ata_port *ap = qc->ap;
  1657. void __iomem *port_mmio = mv_ap_base(ap);
  1658. struct mv_port_priv *pp = ap->private_data;
  1659. mv_fill_sg(qc);
  1660. /* clear all DMA cmd bits */
  1661. writel(0, port_mmio + BMDMA_CMD);
  1662. /* load PRD table addr. */
  1663. writel((pp->sg_tbl_dma[qc->tag] >> 16) >> 16,
  1664. port_mmio + BMDMA_PRD_HIGH);
  1665. writelfl(pp->sg_tbl_dma[qc->tag],
  1666. port_mmio + BMDMA_PRD_LOW);
  1667. /* issue r/w command */
  1668. ap->ops->sff_exec_command(ap, &qc->tf);
  1669. }
  1670. /**
  1671. * mv_bmdma_start - Start a BMDMA transaction
  1672. * @qc: queued command to start DMA on.
  1673. *
  1674. * LOCKING:
  1675. * Inherited from caller.
  1676. */
  1677. static void mv_bmdma_start(struct ata_queued_cmd *qc)
  1678. {
  1679. struct ata_port *ap = qc->ap;
  1680. void __iomem *port_mmio = mv_ap_base(ap);
  1681. unsigned int rw = (qc->tf.flags & ATA_TFLAG_WRITE);
  1682. u32 cmd = (rw ? 0 : ATA_DMA_WR) | ATA_DMA_START;
  1683. /* start host DMA transaction */
  1684. writelfl(cmd, port_mmio + BMDMA_CMD);
  1685. }
  1686. /**
  1687. * mv_bmdma_stop - Stop BMDMA transfer
  1688. * @qc: queued command to stop DMA on.
  1689. *
  1690. * Clears the ATA_DMA_START flag in the bmdma control register
  1691. *
  1692. * LOCKING:
  1693. * Inherited from caller.
  1694. */
  1695. static void mv_bmdma_stop_ap(struct ata_port *ap)
  1696. {
  1697. void __iomem *port_mmio = mv_ap_base(ap);
  1698. u32 cmd;
  1699. /* clear start/stop bit */
  1700. cmd = readl(port_mmio + BMDMA_CMD);
  1701. if (cmd & ATA_DMA_START) {
  1702. cmd &= ~ATA_DMA_START;
  1703. writelfl(cmd, port_mmio + BMDMA_CMD);
  1704. /* one-PIO-cycle guaranteed wait, per spec, for HDMA1:0 transition */
  1705. ata_sff_dma_pause(ap);
  1706. }
  1707. }
  1708. static void mv_bmdma_stop(struct ata_queued_cmd *qc)
  1709. {
  1710. mv_bmdma_stop_ap(qc->ap);
  1711. }
  1712. /**
  1713. * mv_bmdma_status - Read BMDMA status
  1714. * @ap: port for which to retrieve DMA status.
  1715. *
  1716. * Read and return equivalent of the sff BMDMA status register.
  1717. *
  1718. * LOCKING:
  1719. * Inherited from caller.
  1720. */
  1721. static u8 mv_bmdma_status(struct ata_port *ap)
  1722. {
  1723. void __iomem *port_mmio = mv_ap_base(ap);
  1724. u32 reg, status;
  1725. /*
  1726. * Other bits are valid only if ATA_DMA_ACTIVE==0,
  1727. * and the ATA_DMA_INTR bit doesn't exist.
  1728. */
  1729. reg = readl(port_mmio + BMDMA_STATUS);
  1730. if (reg & ATA_DMA_ACTIVE)
  1731. status = ATA_DMA_ACTIVE;
  1732. else if (reg & ATA_DMA_ERR)
  1733. status = (reg & ATA_DMA_ERR) | ATA_DMA_INTR;
  1734. else {
  1735. /*
  1736. * Just because DMA_ACTIVE is 0 (DMA completed),
  1737. * this does _not_ mean the device is "done".
  1738. * So we should not yet be signalling ATA_DMA_INTR
  1739. * in some cases. Eg. DSM/TRIM, and perhaps others.
  1740. */
  1741. mv_bmdma_stop_ap(ap);
  1742. if (ioread8(ap->ioaddr.altstatus_addr) & ATA_BUSY)
  1743. status = 0;
  1744. else
  1745. status = ATA_DMA_INTR;
  1746. }
  1747. return status;
  1748. }
  1749. static void mv_rw_multi_errata_sata24(struct ata_queued_cmd *qc)
  1750. {
  1751. struct ata_taskfile *tf = &qc->tf;
  1752. /*
  1753. * Workaround for 88SX60x1 FEr SATA#24.
  1754. *
  1755. * Chip may corrupt WRITEs if multi_count >= 4kB.
  1756. * Note that READs are unaffected.
  1757. *
  1758. * It's not clear if this errata really means "4K bytes",
  1759. * or if it always happens for multi_count > 7
  1760. * regardless of device sector_size.
  1761. *
  1762. * So, for safety, any write with multi_count > 7
  1763. * gets converted here into a regular PIO write instead:
  1764. */
  1765. if ((tf->flags & ATA_TFLAG_WRITE) && is_multi_taskfile(tf)) {
  1766. if (qc->dev->multi_count > 7) {
  1767. switch (tf->command) {
  1768. case ATA_CMD_WRITE_MULTI:
  1769. tf->command = ATA_CMD_PIO_WRITE;
  1770. break;
  1771. case ATA_CMD_WRITE_MULTI_FUA_EXT:
  1772. tf->flags &= ~ATA_TFLAG_FUA; /* ugh */
  1773. /* fall through */
  1774. case ATA_CMD_WRITE_MULTI_EXT:
  1775. tf->command = ATA_CMD_PIO_WRITE_EXT;
  1776. break;
  1777. }
  1778. }
  1779. }
  1780. }
  1781. /**
  1782. * mv_qc_prep - Host specific command preparation.
  1783. * @qc: queued command to prepare
  1784. *
  1785. * This routine simply redirects to the general purpose routine
  1786. * if command is not DMA. Else, it handles prep of the CRQB
  1787. * (command request block), does some sanity checking, and calls
  1788. * the SG load routine.
  1789. *
  1790. * LOCKING:
  1791. * Inherited from caller.
  1792. */
  1793. static void mv_qc_prep(struct ata_queued_cmd *qc)
  1794. {
  1795. struct ata_port *ap = qc->ap;
  1796. struct mv_port_priv *pp = ap->private_data;
  1797. __le16 *cw;
  1798. struct ata_taskfile *tf = &qc->tf;
  1799. u16 flags = 0;
  1800. unsigned in_index;
  1801. switch (tf->protocol) {
  1802. case ATA_PROT_DMA:
  1803. if (tf->command == ATA_CMD_DSM)
  1804. return;
  1805. /* fall-thru */
  1806. case ATA_PROT_NCQ:
  1807. break; /* continue below */
  1808. case ATA_PROT_PIO:
  1809. mv_rw_multi_errata_sata24(qc);
  1810. return;
  1811. default:
  1812. return;
  1813. }
  1814. /* Fill in command request block
  1815. */
  1816. if (!(tf->flags & ATA_TFLAG_WRITE))
  1817. flags |= CRQB_FLAG_READ;
  1818. WARN_ON(MV_MAX_Q_DEPTH <= qc->tag);
  1819. flags |= qc->tag << CRQB_TAG_SHIFT;
  1820. flags |= (qc->dev->link->pmp & 0xf) << CRQB_PMP_SHIFT;
  1821. /* get current queue index from software */
  1822. in_index = pp->req_idx;
  1823. pp->crqb[in_index].sg_addr =
  1824. cpu_to_le32(pp->sg_tbl_dma[qc->tag] & 0xffffffff);
  1825. pp->crqb[in_index].sg_addr_hi =
  1826. cpu_to_le32((pp->sg_tbl_dma[qc->tag] >> 16) >> 16);
  1827. pp->crqb[in_index].ctrl_flags = cpu_to_le16(flags);
  1828. cw = &pp->crqb[in_index].ata_cmd[0];
  1829. /* Sadly, the CRQB cannot accommodate all registers--there are
  1830. * only 11 bytes...so we must pick and choose required
  1831. * registers based on the command. So, we drop feature and
  1832. * hob_feature for [RW] DMA commands, but they are needed for
  1833. * NCQ. NCQ will drop hob_nsect, which is not needed there
  1834. * (nsect is used only for the tag; feat/hob_feat hold true nsect).
  1835. */
  1836. switch (tf->command) {
  1837. case ATA_CMD_READ:
  1838. case ATA_CMD_READ_EXT:
  1839. case ATA_CMD_WRITE:
  1840. case ATA_CMD_WRITE_EXT:
  1841. case ATA_CMD_WRITE_FUA_EXT:
  1842. mv_crqb_pack_cmd(cw++, tf->hob_nsect, ATA_REG_NSECT, 0);
  1843. break;
  1844. case ATA_CMD_FPDMA_READ:
  1845. case ATA_CMD_FPDMA_WRITE:
  1846. mv_crqb_pack_cmd(cw++, tf->hob_feature, ATA_REG_FEATURE, 0);
  1847. mv_crqb_pack_cmd(cw++, tf->feature, ATA_REG_FEATURE, 0);
  1848. break;
  1849. default:
  1850. /* The only other commands EDMA supports in non-queued and
  1851. * non-NCQ mode are: [RW] STREAM DMA and W DMA FUA EXT, none
  1852. * of which are defined/used by Linux. If we get here, this
  1853. * driver needs work.
  1854. *
  1855. * FIXME: modify libata to give qc_prep a return value and
  1856. * return error here.
  1857. */
  1858. BUG_ON(tf->command);
  1859. break;
  1860. }
  1861. mv_crqb_pack_cmd(cw++, tf->nsect, ATA_REG_NSECT, 0);
  1862. mv_crqb_pack_cmd(cw++, tf->hob_lbal, ATA_REG_LBAL, 0);
  1863. mv_crqb_pack_cmd(cw++, tf->lbal, ATA_REG_LBAL, 0);
  1864. mv_crqb_pack_cmd(cw++, tf->hob_lbam, ATA_REG_LBAM, 0);
  1865. mv_crqb_pack_cmd(cw++, tf->lbam, ATA_REG_LBAM, 0);
  1866. mv_crqb_pack_cmd(cw++, tf->hob_lbah, ATA_REG_LBAH, 0);
  1867. mv_crqb_pack_cmd(cw++, tf->lbah, ATA_REG_LBAH, 0);
  1868. mv_crqb_pack_cmd(cw++, tf->device, ATA_REG_DEVICE, 0);
  1869. mv_crqb_pack_cmd(cw++, tf->command, ATA_REG_CMD, 1); /* last */
  1870. if (!(qc->flags & ATA_QCFLAG_DMAMAP))
  1871. return;
  1872. mv_fill_sg(qc);
  1873. }
  1874. /**
  1875. * mv_qc_prep_iie - Host specific command preparation.
  1876. * @qc: queued command to prepare
  1877. *
  1878. * This routine simply redirects to the general purpose routine
  1879. * if command is not DMA. Else, it handles prep of the CRQB
  1880. * (command request block), does some sanity checking, and calls
  1881. * the SG load routine.
  1882. *
  1883. * LOCKING:
  1884. * Inherited from caller.
  1885. */
  1886. static void mv_qc_prep_iie(struct ata_queued_cmd *qc)
  1887. {
  1888. struct ata_port *ap = qc->ap;
  1889. struct mv_port_priv *pp = ap->private_data;
  1890. struct mv_crqb_iie *crqb;
  1891. struct ata_taskfile *tf = &qc->tf;
  1892. unsigned in_index;
  1893. u32 flags = 0;
  1894. if ((tf->protocol != ATA_PROT_DMA) &&
  1895. (tf->protocol != ATA_PROT_NCQ))
  1896. return;
  1897. if (tf->command == ATA_CMD_DSM)
  1898. return; /* use bmdma for this */
  1899. /* Fill in Gen IIE command request block */
  1900. if (!(tf->flags & ATA_TFLAG_WRITE))
  1901. flags |= CRQB_FLAG_READ;
  1902. WARN_ON(MV_MAX_Q_DEPTH <= qc->tag);
  1903. flags |= qc->tag << CRQB_TAG_SHIFT;
  1904. flags |= qc->tag << CRQB_HOSTQ_SHIFT;
  1905. flags |= (qc->dev->link->pmp & 0xf) << CRQB_PMP_SHIFT;
  1906. /* get current queue index from software */
  1907. in_index = pp->req_idx;
  1908. crqb = (struct mv_crqb_iie *) &pp->crqb[in_index];
  1909. crqb->addr = cpu_to_le32(pp->sg_tbl_dma[qc->tag] & 0xffffffff);
  1910. crqb->addr_hi = cpu_to_le32((pp->sg_tbl_dma[qc->tag] >> 16) >> 16);
  1911. crqb->flags = cpu_to_le32(flags);
  1912. crqb->ata_cmd[0] = cpu_to_le32(
  1913. (tf->command << 16) |
  1914. (tf->feature << 24)
  1915. );
  1916. crqb->ata_cmd[1] = cpu_to_le32(
  1917. (tf->lbal << 0) |
  1918. (tf->lbam << 8) |
  1919. (tf->lbah << 16) |
  1920. (tf->device << 24)
  1921. );
  1922. crqb->ata_cmd[2] = cpu_to_le32(
  1923. (tf->hob_lbal << 0) |
  1924. (tf->hob_lbam << 8) |
  1925. (tf->hob_lbah << 16) |
  1926. (tf->hob_feature << 24)
  1927. );
  1928. crqb->ata_cmd[3] = cpu_to_le32(
  1929. (tf->nsect << 0) |
  1930. (tf->hob_nsect << 8)
  1931. );
  1932. if (!(qc->flags & ATA_QCFLAG_DMAMAP))
  1933. return;
  1934. mv_fill_sg(qc);
  1935. }
  1936. /**
  1937. * mv_sff_check_status - fetch device status, if valid
  1938. * @ap: ATA port to fetch status from
  1939. *
  1940. * When using command issue via mv_qc_issue_fis(),
  1941. * the initial ATA_BUSY state does not show up in the
  1942. * ATA status (shadow) register. This can confuse libata!
  1943. *
  1944. * So we have a hook here to fake ATA_BUSY for that situation,
  1945. * until the first time a BUSY, DRQ, or ERR bit is seen.
  1946. *
  1947. * The rest of the time, it simply returns the ATA status register.
  1948. */
  1949. static u8 mv_sff_check_status(struct ata_port *ap)
  1950. {
  1951. u8 stat = ioread8(ap->ioaddr.status_addr);
  1952. struct mv_port_priv *pp = ap->private_data;
  1953. if (pp->pp_flags & MV_PP_FLAG_FAKE_ATA_BUSY) {
  1954. if (stat & (ATA_BUSY | ATA_DRQ | ATA_ERR))
  1955. pp->pp_flags &= ~MV_PP_FLAG_FAKE_ATA_BUSY;
  1956. else
  1957. stat = ATA_BUSY;
  1958. }
  1959. return stat;
  1960. }
  1961. /**
  1962. * mv_send_fis - Send a FIS, using the "Vendor-Unique FIS" register
  1963. * @fis: fis to be sent
  1964. * @nwords: number of 32-bit words in the fis
  1965. */
  1966. static unsigned int mv_send_fis(struct ata_port *ap, u32 *fis, int nwords)
  1967. {
  1968. void __iomem *port_mmio = mv_ap_base(ap);
  1969. u32 ifctl, old_ifctl, ifstat;
  1970. int i, timeout = 200, final_word = nwords - 1;
  1971. /* Initiate FIS transmission mode */
  1972. old_ifctl = readl(port_mmio + SATA_IFCTL);
  1973. ifctl = 0x100 | (old_ifctl & 0xf);
  1974. writelfl(ifctl, port_mmio + SATA_IFCTL);
  1975. /* Send all words of the FIS except for the final word */
  1976. for (i = 0; i < final_word; ++i)
  1977. writel(fis[i], port_mmio + VENDOR_UNIQUE_FIS);
  1978. /* Flag end-of-transmission, and then send the final word */
  1979. writelfl(ifctl | 0x200, port_mmio + SATA_IFCTL);
  1980. writelfl(fis[final_word], port_mmio + VENDOR_UNIQUE_FIS);
  1981. /*
  1982. * Wait for FIS transmission to complete.
  1983. * This typically takes just a single iteration.
  1984. */
  1985. do {
  1986. ifstat = readl(port_mmio + SATA_IFSTAT);
  1987. } while (!(ifstat & 0x1000) && --timeout);
  1988. /* Restore original port configuration */
  1989. writelfl(old_ifctl, port_mmio + SATA_IFCTL);
  1990. /* See if it worked */
  1991. if ((ifstat & 0x3000) != 0x1000) {
  1992. ata_port_warn(ap, "%s transmission error, ifstat=%08x\n",
  1993. __func__, ifstat);
  1994. return AC_ERR_OTHER;
  1995. }
  1996. return 0;
  1997. }
  1998. /**
  1999. * mv_qc_issue_fis - Issue a command directly as a FIS
  2000. * @qc: queued command to start
  2001. *
  2002. * Note that the ATA shadow registers are not updated
  2003. * after command issue, so the device will appear "READY"
  2004. * if polled, even while it is BUSY processing the command.
  2005. *
  2006. * So we use a status hook to fake ATA_BUSY until the drive changes state.
  2007. *
  2008. * Note: we don't get updated shadow regs on *completion*
  2009. * of non-data commands. So avoid sending them via this function,
  2010. * as they will appear to have completed immediately.
  2011. *
  2012. * GEN_IIE has special registers that we could get the result tf from,
  2013. * but earlier chipsets do not. For now, we ignore those registers.
  2014. */
  2015. static unsigned int mv_qc_issue_fis(struct ata_queued_cmd *qc)
  2016. {
  2017. struct ata_port *ap = qc->ap;
  2018. struct mv_port_priv *pp = ap->private_data;
  2019. struct ata_link *link = qc->dev->link;
  2020. u32 fis[5];
  2021. int err = 0;
  2022. ata_tf_to_fis(&qc->tf, link->pmp, 1, (void *)fis);
  2023. err = mv_send_fis(ap, fis, ARRAY_SIZE(fis));
  2024. if (err)
  2025. return err;
  2026. switch (qc->tf.protocol) {
  2027. case ATAPI_PROT_PIO:
  2028. pp->pp_flags |= MV_PP_FLAG_FAKE_ATA_BUSY;
  2029. /* fall through */
  2030. case ATAPI_PROT_NODATA:
  2031. ap->hsm_task_state = HSM_ST_FIRST;
  2032. break;
  2033. case ATA_PROT_PIO:
  2034. pp->pp_flags |= MV_PP_FLAG_FAKE_ATA_BUSY;
  2035. if (qc->tf.flags & ATA_TFLAG_WRITE)
  2036. ap->hsm_task_state = HSM_ST_FIRST;
  2037. else
  2038. ap->hsm_task_state = HSM_ST;
  2039. break;
  2040. default:
  2041. ap->hsm_task_state = HSM_ST_LAST;
  2042. break;
  2043. }
  2044. if (qc->tf.flags & ATA_TFLAG_POLLING)
  2045. ata_sff_queue_pio_task(link, 0);
  2046. return 0;
  2047. }
  2048. /**
  2049. * mv_qc_issue - Initiate a command to the host
  2050. * @qc: queued command to start
  2051. *
  2052. * This routine simply redirects to the general purpose routine
  2053. * if command is not DMA. Else, it sanity checks our local
  2054. * caches of the request producer/consumer indices then enables
  2055. * DMA and bumps the request producer index.
  2056. *
  2057. * LOCKING:
  2058. * Inherited from caller.
  2059. */
  2060. static unsigned int mv_qc_issue(struct ata_queued_cmd *qc)
  2061. {
  2062. static int limit_warnings = 10;
  2063. struct ata_port *ap = qc->ap;
  2064. void __iomem *port_mmio = mv_ap_base(ap);
  2065. struct mv_port_priv *pp = ap->private_data;
  2066. u32 in_index;
  2067. unsigned int port_irqs;
  2068. pp->pp_flags &= ~MV_PP_FLAG_FAKE_ATA_BUSY; /* paranoia */
  2069. switch (qc->tf.protocol) {
  2070. case ATA_PROT_DMA:
  2071. if (qc->tf.command == ATA_CMD_DSM) {
  2072. if (!ap->ops->bmdma_setup) /* no bmdma on GEN_I */
  2073. return AC_ERR_OTHER;
  2074. break; /* use bmdma for this */
  2075. }
  2076. /* fall thru */
  2077. case ATA_PROT_NCQ:
  2078. mv_start_edma(ap, port_mmio, pp, qc->tf.protocol);
  2079. pp->req_idx = (pp->req_idx + 1) & MV_MAX_Q_DEPTH_MASK;
  2080. in_index = pp->req_idx << EDMA_REQ_Q_PTR_SHIFT;
  2081. /* Write the request in pointer to kick the EDMA to life */
  2082. writelfl((pp->crqb_dma & EDMA_REQ_Q_BASE_LO_MASK) | in_index,
  2083. port_mmio + EDMA_REQ_Q_IN_PTR);
  2084. return 0;
  2085. case ATA_PROT_PIO:
  2086. /*
  2087. * Errata SATA#16, SATA#24: warn if multiple DRQs expected.
  2088. *
  2089. * Someday, we might implement special polling workarounds
  2090. * for these, but it all seems rather unnecessary since we
  2091. * normally use only DMA for commands which transfer more
  2092. * than a single block of data.
  2093. *
  2094. * Much of the time, this could just work regardless.
  2095. * So for now, just log the incident, and allow the attempt.
  2096. */
  2097. if (limit_warnings > 0 && (qc->nbytes / qc->sect_size) > 1) {
  2098. --limit_warnings;
  2099. ata_link_warn(qc->dev->link, DRV_NAME
  2100. ": attempting PIO w/multiple DRQ: "
  2101. "this may fail due to h/w errata\n");
  2102. }
  2103. /* drop through */
  2104. case ATA_PROT_NODATA:
  2105. case ATAPI_PROT_PIO:
  2106. case ATAPI_PROT_NODATA:
  2107. if (ap->flags & ATA_FLAG_PIO_POLLING)
  2108. qc->tf.flags |= ATA_TFLAG_POLLING;
  2109. break;
  2110. }
  2111. if (qc->tf.flags & ATA_TFLAG_POLLING)
  2112. port_irqs = ERR_IRQ; /* mask device interrupt when polling */
  2113. else
  2114. port_irqs = ERR_IRQ | DONE_IRQ; /* unmask all interrupts */
  2115. /*
  2116. * We're about to send a non-EDMA capable command to the
  2117. * port. Turn off EDMA so there won't be problems accessing
  2118. * shadow block, etc registers.
  2119. */
  2120. mv_stop_edma(ap);
  2121. mv_clear_and_enable_port_irqs(ap, mv_ap_base(ap), port_irqs);
  2122. mv_pmp_select(ap, qc->dev->link->pmp);
  2123. if (qc->tf.command == ATA_CMD_READ_LOG_EXT) {
  2124. struct mv_host_priv *hpriv = ap->host->private_data;
  2125. /*
  2126. * Workaround for 88SX60x1 FEr SATA#25 (part 2).
  2127. *
  2128. * After any NCQ error, the READ_LOG_EXT command
  2129. * from libata-eh *must* use mv_qc_issue_fis().
  2130. * Otherwise it might fail, due to chip errata.
  2131. *
  2132. * Rather than special-case it, we'll just *always*
  2133. * use this method here for READ_LOG_EXT, making for
  2134. * easier testing.
  2135. */
  2136. if (IS_GEN_II(hpriv))
  2137. return mv_qc_issue_fis(qc);
  2138. }
  2139. return ata_bmdma_qc_issue(qc);
  2140. }
  2141. static struct ata_queued_cmd *mv_get_active_qc(struct ata_port *ap)
  2142. {
  2143. struct mv_port_priv *pp = ap->private_data;
  2144. struct ata_queued_cmd *qc;
  2145. if (pp->pp_flags & MV_PP_FLAG_NCQ_EN)
  2146. return NULL;
  2147. qc = ata_qc_from_tag(ap, ap->link.active_tag);
  2148. if (qc && !(qc->tf.flags & ATA_TFLAG_POLLING))
  2149. return qc;
  2150. return NULL;
  2151. }
  2152. static void mv_pmp_error_handler(struct ata_port *ap)
  2153. {
  2154. unsigned int pmp, pmp_map;
  2155. struct mv_port_priv *pp = ap->private_data;
  2156. if (pp->pp_flags & MV_PP_FLAG_DELAYED_EH) {
  2157. /*
  2158. * Perform NCQ error analysis on failed PMPs
  2159. * before we freeze the port entirely.
  2160. *
  2161. * The failed PMPs are marked earlier by mv_pmp_eh_prep().
  2162. */
  2163. pmp_map = pp->delayed_eh_pmp_map;
  2164. pp->pp_flags &= ~MV_PP_FLAG_DELAYED_EH;
  2165. for (pmp = 0; pmp_map != 0; pmp++) {
  2166. unsigned int this_pmp = (1 << pmp);
  2167. if (pmp_map & this_pmp) {
  2168. struct ata_link *link = &ap->pmp_link[pmp];
  2169. pmp_map &= ~this_pmp;
  2170. ata_eh_analyze_ncq_error(link);
  2171. }
  2172. }
  2173. ata_port_freeze(ap);
  2174. }
  2175. sata_pmp_error_handler(ap);
  2176. }
  2177. static unsigned int mv_get_err_pmp_map(struct ata_port *ap)
  2178. {
  2179. void __iomem *port_mmio = mv_ap_base(ap);
  2180. return readl(port_mmio + SATA_TESTCTL) >> 16;
  2181. }
  2182. static void mv_pmp_eh_prep(struct ata_port *ap, unsigned int pmp_map)
  2183. {
  2184. struct ata_eh_info *ehi;
  2185. unsigned int pmp;
  2186. /*
  2187. * Initialize EH info for PMPs which saw device errors
  2188. */
  2189. ehi = &ap->link.eh_info;
  2190. for (pmp = 0; pmp_map != 0; pmp++) {
  2191. unsigned int this_pmp = (1 << pmp);
  2192. if (pmp_map & this_pmp) {
  2193. struct ata_link *link = &ap->pmp_link[pmp];
  2194. pmp_map &= ~this_pmp;
  2195. ehi = &link->eh_info;
  2196. ata_ehi_clear_desc(ehi);
  2197. ata_ehi_push_desc(ehi, "dev err");
  2198. ehi->err_mask |= AC_ERR_DEV;
  2199. ehi->action |= ATA_EH_RESET;
  2200. ata_link_abort(link);
  2201. }
  2202. }
  2203. }
  2204. static int mv_req_q_empty(struct ata_port *ap)
  2205. {
  2206. void __iomem *port_mmio = mv_ap_base(ap);
  2207. u32 in_ptr, out_ptr;
  2208. in_ptr = (readl(port_mmio + EDMA_REQ_Q_IN_PTR)
  2209. >> EDMA_REQ_Q_PTR_SHIFT) & MV_MAX_Q_DEPTH_MASK;
  2210. out_ptr = (readl(port_mmio + EDMA_REQ_Q_OUT_PTR)
  2211. >> EDMA_REQ_Q_PTR_SHIFT) & MV_MAX_Q_DEPTH_MASK;
  2212. return (in_ptr == out_ptr); /* 1 == queue_is_empty */
  2213. }
  2214. static int mv_handle_fbs_ncq_dev_err(struct ata_port *ap)
  2215. {
  2216. struct mv_port_priv *pp = ap->private_data;
  2217. int failed_links;
  2218. unsigned int old_map, new_map;
  2219. /*
  2220. * Device error during FBS+NCQ operation:
  2221. *
  2222. * Set a port flag to prevent further I/O being enqueued.
  2223. * Leave the EDMA running to drain outstanding commands from this port.
  2224. * Perform the post-mortem/EH only when all responses are complete.
  2225. * Follow recovery sequence from 6042/7042 datasheet (7.3.15.4.2.2).
  2226. */
  2227. if (!(pp->pp_flags & MV_PP_FLAG_DELAYED_EH)) {
  2228. pp->pp_flags |= MV_PP_FLAG_DELAYED_EH;
  2229. pp->delayed_eh_pmp_map = 0;
  2230. }
  2231. old_map = pp->delayed_eh_pmp_map;
  2232. new_map = old_map | mv_get_err_pmp_map(ap);
  2233. if (old_map != new_map) {
  2234. pp->delayed_eh_pmp_map = new_map;
  2235. mv_pmp_eh_prep(ap, new_map & ~old_map);
  2236. }
  2237. failed_links = hweight16(new_map);
  2238. ata_port_info(ap,
  2239. "%s: pmp_map=%04x qc_map=%04x failed_links=%d nr_active_links=%d\n",
  2240. __func__, pp->delayed_eh_pmp_map,
  2241. ap->qc_active, failed_links,
  2242. ap->nr_active_links);
  2243. if (ap->nr_active_links <= failed_links && mv_req_q_empty(ap)) {
  2244. mv_process_crpb_entries(ap, pp);
  2245. mv_stop_edma(ap);
  2246. mv_eh_freeze(ap);
  2247. ata_port_info(ap, "%s: done\n", __func__);
  2248. return 1; /* handled */
  2249. }
  2250. ata_port_info(ap, "%s: waiting\n", __func__);
  2251. return 1; /* handled */
  2252. }
  2253. static int mv_handle_fbs_non_ncq_dev_err(struct ata_port *ap)
  2254. {
  2255. /*
  2256. * Possible future enhancement:
  2257. *
  2258. * FBS+non-NCQ operation is not yet implemented.
  2259. * See related notes in mv_edma_cfg().
  2260. *
  2261. * Device error during FBS+non-NCQ operation:
  2262. *
  2263. * We need to snapshot the shadow registers for each failed command.
  2264. * Follow recovery sequence from 6042/7042 datasheet (7.3.15.4.2.3).
  2265. */
  2266. return 0; /* not handled */
  2267. }
  2268. static int mv_handle_dev_err(struct ata_port *ap, u32 edma_err_cause)
  2269. {
  2270. struct mv_port_priv *pp = ap->private_data;
  2271. if (!(pp->pp_flags & MV_PP_FLAG_EDMA_EN))
  2272. return 0; /* EDMA was not active: not handled */
  2273. if (!(pp->pp_flags & MV_PP_FLAG_FBS_EN))
  2274. return 0; /* FBS was not active: not handled */
  2275. if (!(edma_err_cause & EDMA_ERR_DEV))
  2276. return 0; /* non DEV error: not handled */
  2277. edma_err_cause &= ~EDMA_ERR_IRQ_TRANSIENT;
  2278. if (edma_err_cause & ~(EDMA_ERR_DEV | EDMA_ERR_SELF_DIS))
  2279. return 0; /* other problems: not handled */
  2280. if (pp->pp_flags & MV_PP_FLAG_NCQ_EN) {
  2281. /*
  2282. * EDMA should NOT have self-disabled for this case.
  2283. * If it did, then something is wrong elsewhere,
  2284. * and we cannot handle it here.
  2285. */
  2286. if (edma_err_cause & EDMA_ERR_SELF_DIS) {
  2287. ata_port_warn(ap, "%s: err_cause=0x%x pp_flags=0x%x\n",
  2288. __func__, edma_err_cause, pp->pp_flags);
  2289. return 0; /* not handled */
  2290. }
  2291. return mv_handle_fbs_ncq_dev_err(ap);
  2292. } else {
  2293. /*
  2294. * EDMA should have self-disabled for this case.
  2295. * If it did not, then something is wrong elsewhere,
  2296. * and we cannot handle it here.
  2297. */
  2298. if (!(edma_err_cause & EDMA_ERR_SELF_DIS)) {
  2299. ata_port_warn(ap, "%s: err_cause=0x%x pp_flags=0x%x\n",
  2300. __func__, edma_err_cause, pp->pp_flags);
  2301. return 0; /* not handled */
  2302. }
  2303. return mv_handle_fbs_non_ncq_dev_err(ap);
  2304. }
  2305. return 0; /* not handled */
  2306. }
  2307. static void mv_unexpected_intr(struct ata_port *ap, int edma_was_enabled)
  2308. {
  2309. struct ata_eh_info *ehi = &ap->link.eh_info;
  2310. char *when = "idle";
  2311. ata_ehi_clear_desc(ehi);
  2312. if (edma_was_enabled) {
  2313. when = "EDMA enabled";
  2314. } else {
  2315. struct ata_queued_cmd *qc = ata_qc_from_tag(ap, ap->link.active_tag);
  2316. if (qc && (qc->tf.flags & ATA_TFLAG_POLLING))
  2317. when = "polling";
  2318. }
  2319. ata_ehi_push_desc(ehi, "unexpected device interrupt while %s", when);
  2320. ehi->err_mask |= AC_ERR_OTHER;
  2321. ehi->action |= ATA_EH_RESET;
  2322. ata_port_freeze(ap);
  2323. }
  2324. /**
  2325. * mv_err_intr - Handle error interrupts on the port
  2326. * @ap: ATA channel to manipulate
  2327. *
  2328. * Most cases require a full reset of the chip's state machine,
  2329. * which also performs a COMRESET.
  2330. * Also, if the port disabled DMA, update our cached copy to match.
  2331. *
  2332. * LOCKING:
  2333. * Inherited from caller.
  2334. */
  2335. static void mv_err_intr(struct ata_port *ap)
  2336. {
  2337. void __iomem *port_mmio = mv_ap_base(ap);
  2338. u32 edma_err_cause, eh_freeze_mask, serr = 0;
  2339. u32 fis_cause = 0;
  2340. struct mv_port_priv *pp = ap->private_data;
  2341. struct mv_host_priv *hpriv = ap->host->private_data;
  2342. unsigned int action = 0, err_mask = 0;
  2343. struct ata_eh_info *ehi = &ap->link.eh_info;
  2344. struct ata_queued_cmd *qc;
  2345. int abort = 0;
  2346. /*
  2347. * Read and clear the SError and err_cause bits.
  2348. * For GenIIe, if EDMA_ERR_TRANS_IRQ_7 is set, we also must read/clear
  2349. * the FIS_IRQ_CAUSE register before clearing edma_err_cause.
  2350. */
  2351. sata_scr_read(&ap->link, SCR_ERROR, &serr);
  2352. sata_scr_write_flush(&ap->link, SCR_ERROR, serr);
  2353. edma_err_cause = readl(port_mmio + EDMA_ERR_IRQ_CAUSE);
  2354. if (IS_GEN_IIE(hpriv) && (edma_err_cause & EDMA_ERR_TRANS_IRQ_7)) {
  2355. fis_cause = readl(port_mmio + FIS_IRQ_CAUSE);
  2356. writelfl(~fis_cause, port_mmio + FIS_IRQ_CAUSE);
  2357. }
  2358. writelfl(~edma_err_cause, port_mmio + EDMA_ERR_IRQ_CAUSE);
  2359. if (edma_err_cause & EDMA_ERR_DEV) {
  2360. /*
  2361. * Device errors during FIS-based switching operation
  2362. * require special handling.
  2363. */
  2364. if (mv_handle_dev_err(ap, edma_err_cause))
  2365. return;
  2366. }
  2367. qc = mv_get_active_qc(ap);
  2368. ata_ehi_clear_desc(ehi);
  2369. ata_ehi_push_desc(ehi, "edma_err_cause=%08x pp_flags=%08x",
  2370. edma_err_cause, pp->pp_flags);
  2371. if (IS_GEN_IIE(hpriv) && (edma_err_cause & EDMA_ERR_TRANS_IRQ_7)) {
  2372. ata_ehi_push_desc(ehi, "fis_cause=%08x", fis_cause);
  2373. if (fis_cause & FIS_IRQ_CAUSE_AN) {
  2374. u32 ec = edma_err_cause &
  2375. ~(EDMA_ERR_TRANS_IRQ_7 | EDMA_ERR_IRQ_TRANSIENT);
  2376. sata_async_notification(ap);
  2377. if (!ec)
  2378. return; /* Just an AN; no need for the nukes */
  2379. ata_ehi_push_desc(ehi, "SDB notify");
  2380. }
  2381. }
  2382. /*
  2383. * All generations share these EDMA error cause bits:
  2384. */
  2385. if (edma_err_cause & EDMA_ERR_DEV) {
  2386. err_mask |= AC_ERR_DEV;
  2387. action |= ATA_EH_RESET;
  2388. ata_ehi_push_desc(ehi, "dev error");
  2389. }
  2390. if (edma_err_cause & (EDMA_ERR_D_PAR | EDMA_ERR_PRD_PAR |
  2391. EDMA_ERR_CRQB_PAR | EDMA_ERR_CRPB_PAR |
  2392. EDMA_ERR_INTRL_PAR)) {
  2393. err_mask |= AC_ERR_ATA_BUS;
  2394. action |= ATA_EH_RESET;
  2395. ata_ehi_push_desc(ehi, "parity error");
  2396. }
  2397. if (edma_err_cause & (EDMA_ERR_DEV_DCON | EDMA_ERR_DEV_CON)) {
  2398. ata_ehi_hotplugged(ehi);
  2399. ata_ehi_push_desc(ehi, edma_err_cause & EDMA_ERR_DEV_DCON ?
  2400. "dev disconnect" : "dev connect");
  2401. action |= ATA_EH_RESET;
  2402. }
  2403. /*
  2404. * Gen-I has a different SELF_DIS bit,
  2405. * different FREEZE bits, and no SERR bit:
  2406. */
  2407. if (IS_GEN_I(hpriv)) {
  2408. eh_freeze_mask = EDMA_EH_FREEZE_5;
  2409. if (edma_err_cause & EDMA_ERR_SELF_DIS_5) {
  2410. pp->pp_flags &= ~MV_PP_FLAG_EDMA_EN;
  2411. ata_ehi_push_desc(ehi, "EDMA self-disable");
  2412. }
  2413. } else {
  2414. eh_freeze_mask = EDMA_EH_FREEZE;
  2415. if (edma_err_cause & EDMA_ERR_SELF_DIS) {
  2416. pp->pp_flags &= ~MV_PP_FLAG_EDMA_EN;
  2417. ata_ehi_push_desc(ehi, "EDMA self-disable");
  2418. }
  2419. if (edma_err_cause & EDMA_ERR_SERR) {
  2420. ata_ehi_push_desc(ehi, "SError=%08x", serr);
  2421. err_mask |= AC_ERR_ATA_BUS;
  2422. action |= ATA_EH_RESET;
  2423. }
  2424. }
  2425. if (!err_mask) {
  2426. err_mask = AC_ERR_OTHER;
  2427. action |= ATA_EH_RESET;
  2428. }
  2429. ehi->serror |= serr;
  2430. ehi->action |= action;
  2431. if (qc)
  2432. qc->err_mask |= err_mask;
  2433. else
  2434. ehi->err_mask |= err_mask;
  2435. if (err_mask == AC_ERR_DEV) {
  2436. /*
  2437. * Cannot do ata_port_freeze() here,
  2438. * because it would kill PIO access,
  2439. * which is needed for further diagnosis.
  2440. */
  2441. mv_eh_freeze(ap);
  2442. abort = 1;
  2443. } else if (edma_err_cause & eh_freeze_mask) {
  2444. /*
  2445. * Note to self: ata_port_freeze() calls ata_port_abort()
  2446. */
  2447. ata_port_freeze(ap);
  2448. } else {
  2449. abort = 1;
  2450. }
  2451. if (abort) {
  2452. if (qc)
  2453. ata_link_abort(qc->dev->link);
  2454. else
  2455. ata_port_abort(ap);
  2456. }
  2457. }
  2458. static bool mv_process_crpb_response(struct ata_port *ap,
  2459. struct mv_crpb *response, unsigned int tag, int ncq_enabled)
  2460. {
  2461. u8 ata_status;
  2462. u16 edma_status = le16_to_cpu(response->flags);
  2463. /*
  2464. * edma_status from a response queue entry:
  2465. * LSB is from EDMA_ERR_IRQ_CAUSE (non-NCQ only).
  2466. * MSB is saved ATA status from command completion.
  2467. */
  2468. if (!ncq_enabled) {
  2469. u8 err_cause = edma_status & 0xff & ~EDMA_ERR_DEV;
  2470. if (err_cause) {
  2471. /*
  2472. * Error will be seen/handled by
  2473. * mv_err_intr(). So do nothing at all here.
  2474. */
  2475. return false;
  2476. }
  2477. }
  2478. ata_status = edma_status >> CRPB_FLAG_STATUS_SHIFT;
  2479. if (!ac_err_mask(ata_status))
  2480. return true;
  2481. /* else: leave it for mv_err_intr() */
  2482. return false;
  2483. }
  2484. static void mv_process_crpb_entries(struct ata_port *ap, struct mv_port_priv *pp)
  2485. {
  2486. void __iomem *port_mmio = mv_ap_base(ap);
  2487. struct mv_host_priv *hpriv = ap->host->private_data;
  2488. u32 in_index;
  2489. bool work_done = false;
  2490. u32 done_mask = 0;
  2491. int ncq_enabled = (pp->pp_flags & MV_PP_FLAG_NCQ_EN);
  2492. /* Get the hardware queue position index */
  2493. in_index = (readl(port_mmio + EDMA_RSP_Q_IN_PTR)
  2494. >> EDMA_RSP_Q_PTR_SHIFT) & MV_MAX_Q_DEPTH_MASK;
  2495. /* Process new responses from since the last time we looked */
  2496. while (in_index != pp->resp_idx) {
  2497. unsigned int tag;
  2498. struct mv_crpb *response = &pp->crpb[pp->resp_idx];
  2499. pp->resp_idx = (pp->resp_idx + 1) & MV_MAX_Q_DEPTH_MASK;
  2500. if (IS_GEN_I(hpriv)) {
  2501. /* 50xx: no NCQ, only one command active at a time */
  2502. tag = ap->link.active_tag;
  2503. } else {
  2504. /* Gen II/IIE: get command tag from CRPB entry */
  2505. tag = le16_to_cpu(response->id) & 0x1f;
  2506. }
  2507. if (mv_process_crpb_response(ap, response, tag, ncq_enabled))
  2508. done_mask |= 1 << tag;
  2509. work_done = true;
  2510. }
  2511. if (work_done) {
  2512. ata_qc_complete_multiple(ap, ap->qc_active ^ done_mask);
  2513. /* Update the software queue position index in hardware */
  2514. writelfl((pp->crpb_dma & EDMA_RSP_Q_BASE_LO_MASK) |
  2515. (pp->resp_idx << EDMA_RSP_Q_PTR_SHIFT),
  2516. port_mmio + EDMA_RSP_Q_OUT_PTR);
  2517. }
  2518. }
  2519. static void mv_port_intr(struct ata_port *ap, u32 port_cause)
  2520. {
  2521. struct mv_port_priv *pp;
  2522. int edma_was_enabled;
  2523. /*
  2524. * Grab a snapshot of the EDMA_EN flag setting,
  2525. * so that we have a consistent view for this port,
  2526. * even if something we call of our routines changes it.
  2527. */
  2528. pp = ap->private_data;
  2529. edma_was_enabled = (pp->pp_flags & MV_PP_FLAG_EDMA_EN);
  2530. /*
  2531. * Process completed CRPB response(s) before other events.
  2532. */
  2533. if (edma_was_enabled && (port_cause & DONE_IRQ)) {
  2534. mv_process_crpb_entries(ap, pp);
  2535. if (pp->pp_flags & MV_PP_FLAG_DELAYED_EH)
  2536. mv_handle_fbs_ncq_dev_err(ap);
  2537. }
  2538. /*
  2539. * Handle chip-reported errors, or continue on to handle PIO.
  2540. */
  2541. if (unlikely(port_cause & ERR_IRQ)) {
  2542. mv_err_intr(ap);
  2543. } else if (!edma_was_enabled) {
  2544. struct ata_queued_cmd *qc = mv_get_active_qc(ap);
  2545. if (qc)
  2546. ata_bmdma_port_intr(ap, qc);
  2547. else
  2548. mv_unexpected_intr(ap, edma_was_enabled);
  2549. }
  2550. }
  2551. /**
  2552. * mv_host_intr - Handle all interrupts on the given host controller
  2553. * @host: host specific structure
  2554. * @main_irq_cause: Main interrupt cause register for the chip.
  2555. *
  2556. * LOCKING:
  2557. * Inherited from caller.
  2558. */
  2559. static int mv_host_intr(struct ata_host *host, u32 main_irq_cause)
  2560. {
  2561. struct mv_host_priv *hpriv = host->private_data;
  2562. void __iomem *mmio = hpriv->base, *hc_mmio;
  2563. unsigned int handled = 0, port;
  2564. /* If asserted, clear the "all ports" IRQ coalescing bit */
  2565. if (main_irq_cause & ALL_PORTS_COAL_DONE)
  2566. writel(~ALL_PORTS_COAL_IRQ, mmio + IRQ_COAL_CAUSE);
  2567. for (port = 0; port < hpriv->n_ports; port++) {
  2568. struct ata_port *ap = host->ports[port];
  2569. unsigned int p, shift, hardport, port_cause;
  2570. MV_PORT_TO_SHIFT_AND_HARDPORT(port, shift, hardport);
  2571. /*
  2572. * Each hc within the host has its own hc_irq_cause register,
  2573. * where the interrupting ports bits get ack'd.
  2574. */
  2575. if (hardport == 0) { /* first port on this hc ? */
  2576. u32 hc_cause = (main_irq_cause >> shift) & HC0_IRQ_PEND;
  2577. u32 port_mask, ack_irqs;
  2578. /*
  2579. * Skip this entire hc if nothing pending for any ports
  2580. */
  2581. if (!hc_cause) {
  2582. port += MV_PORTS_PER_HC - 1;
  2583. continue;
  2584. }
  2585. /*
  2586. * We don't need/want to read the hc_irq_cause register,
  2587. * because doing so hurts performance, and
  2588. * main_irq_cause already gives us everything we need.
  2589. *
  2590. * But we do have to *write* to the hc_irq_cause to ack
  2591. * the ports that we are handling this time through.
  2592. *
  2593. * This requires that we create a bitmap for those
  2594. * ports which interrupted us, and use that bitmap
  2595. * to ack (only) those ports via hc_irq_cause.
  2596. */
  2597. ack_irqs = 0;
  2598. if (hc_cause & PORTS_0_3_COAL_DONE)
  2599. ack_irqs = HC_COAL_IRQ;
  2600. for (p = 0; p < MV_PORTS_PER_HC; ++p) {
  2601. if ((port + p) >= hpriv->n_ports)
  2602. break;
  2603. port_mask = (DONE_IRQ | ERR_IRQ) << (p * 2);
  2604. if (hc_cause & port_mask)
  2605. ack_irqs |= (DMA_IRQ | DEV_IRQ) << p;
  2606. }
  2607. hc_mmio = mv_hc_base_from_port(mmio, port);
  2608. writelfl(~ack_irqs, hc_mmio + HC_IRQ_CAUSE);
  2609. handled = 1;
  2610. }
  2611. /*
  2612. * Handle interrupts signalled for this port:
  2613. */
  2614. port_cause = (main_irq_cause >> shift) & (DONE_IRQ | ERR_IRQ);
  2615. if (port_cause)
  2616. mv_port_intr(ap, port_cause);
  2617. }
  2618. return handled;
  2619. }
  2620. static int mv_pci_error(struct ata_host *host, void __iomem *mmio)
  2621. {
  2622. struct mv_host_priv *hpriv = host->private_data;
  2623. struct ata_port *ap;
  2624. struct ata_queued_cmd *qc;
  2625. struct ata_eh_info *ehi;
  2626. unsigned int i, err_mask, printed = 0;
  2627. u32 err_cause;
  2628. err_cause = readl(mmio + hpriv->irq_cause_offset);
  2629. dev_err(host->dev, "PCI ERROR; PCI IRQ cause=0x%08x\n", err_cause);
  2630. DPRINTK("All regs @ PCI error\n");
  2631. mv_dump_all_regs(mmio, -1, to_pci_dev(host->dev));
  2632. writelfl(0, mmio + hpriv->irq_cause_offset);
  2633. for (i = 0; i < host->n_ports; i++) {
  2634. ap = host->ports[i];
  2635. if (!ata_link_offline(&ap->link)) {
  2636. ehi = &ap->link.eh_info;
  2637. ata_ehi_clear_desc(ehi);
  2638. if (!printed++)
  2639. ata_ehi_push_desc(ehi,
  2640. "PCI err cause 0x%08x", err_cause);
  2641. err_mask = AC_ERR_HOST_BUS;
  2642. ehi->action = ATA_EH_RESET;
  2643. qc = ata_qc_from_tag(ap, ap->link.active_tag);
  2644. if (qc)
  2645. qc->err_mask |= err_mask;
  2646. else
  2647. ehi->err_mask |= err_mask;
  2648. ata_port_freeze(ap);
  2649. }
  2650. }
  2651. return 1; /* handled */
  2652. }
  2653. /**
  2654. * mv_interrupt - Main interrupt event handler
  2655. * @irq: unused
  2656. * @dev_instance: private data; in this case the host structure
  2657. *
  2658. * Read the read only register to determine if any host
  2659. * controllers have pending interrupts. If so, call lower level
  2660. * routine to handle. Also check for PCI errors which are only
  2661. * reported here.
  2662. *
  2663. * LOCKING:
  2664. * This routine holds the host lock while processing pending
  2665. * interrupts.
  2666. */
  2667. static irqreturn_t mv_interrupt(int irq, void *dev_instance)
  2668. {
  2669. struct ata_host *host = dev_instance;
  2670. struct mv_host_priv *hpriv = host->private_data;
  2671. unsigned int handled = 0;
  2672. int using_msi = hpriv->hp_flags & MV_HP_FLAG_MSI;
  2673. u32 main_irq_cause, pending_irqs;
  2674. spin_lock(&host->lock);
  2675. /* for MSI: block new interrupts while in here */
  2676. if (using_msi)
  2677. mv_write_main_irq_mask(0, hpriv);
  2678. main_irq_cause = readl(hpriv->main_irq_cause_addr);
  2679. pending_irqs = main_irq_cause & hpriv->main_irq_mask;
  2680. /*
  2681. * Deal with cases where we either have nothing pending, or have read
  2682. * a bogus register value which can indicate HW removal or PCI fault.
  2683. */
  2684. if (pending_irqs && main_irq_cause != 0xffffffffU) {
  2685. if (unlikely((pending_irqs & PCI_ERR) && !IS_SOC(hpriv)))
  2686. handled = mv_pci_error(host, hpriv->base);
  2687. else
  2688. handled = mv_host_intr(host, pending_irqs);
  2689. }
  2690. /* for MSI: unmask; interrupt cause bits will retrigger now */
  2691. if (using_msi)
  2692. mv_write_main_irq_mask(hpriv->main_irq_mask, hpriv);
  2693. spin_unlock(&host->lock);
  2694. return IRQ_RETVAL(handled);
  2695. }
  2696. static unsigned int mv5_scr_offset(unsigned int sc_reg_in)
  2697. {
  2698. unsigned int ofs;
  2699. switch (sc_reg_in) {
  2700. case SCR_STATUS:
  2701. case SCR_ERROR:
  2702. case SCR_CONTROL:
  2703. ofs = sc_reg_in * sizeof(u32);
  2704. break;
  2705. default:
  2706. ofs = 0xffffffffU;
  2707. break;
  2708. }
  2709. return ofs;
  2710. }
  2711. static int mv5_scr_read(struct ata_link *link, unsigned int sc_reg_in, u32 *val)
  2712. {
  2713. struct mv_host_priv *hpriv = link->ap->host->private_data;
  2714. void __iomem *mmio = hpriv->base;
  2715. void __iomem *addr = mv5_phy_base(mmio, link->ap->port_no);
  2716. unsigned int ofs = mv5_scr_offset(sc_reg_in);
  2717. if (ofs != 0xffffffffU) {
  2718. *val = readl(addr + ofs);
  2719. return 0;
  2720. } else
  2721. return -EINVAL;
  2722. }
  2723. static int mv5_scr_write(struct ata_link *link, unsigned int sc_reg_in, u32 val)
  2724. {
  2725. struct mv_host_priv *hpriv = link->ap->host->private_data;
  2726. void __iomem *mmio = hpriv->base;
  2727. void __iomem *addr = mv5_phy_base(mmio, link->ap->port_no);
  2728. unsigned int ofs = mv5_scr_offset(sc_reg_in);
  2729. if (ofs != 0xffffffffU) {
  2730. writelfl(val, addr + ofs);
  2731. return 0;
  2732. } else
  2733. return -EINVAL;
  2734. }
  2735. static void mv5_reset_bus(struct ata_host *host, void __iomem *mmio)
  2736. {
  2737. struct pci_dev *pdev = to_pci_dev(host->dev);
  2738. int early_5080;
  2739. early_5080 = (pdev->device == 0x5080) && (pdev->revision == 0);
  2740. if (!early_5080) {
  2741. u32 tmp = readl(mmio + MV_PCI_EXP_ROM_BAR_CTL);
  2742. tmp |= (1 << 0);
  2743. writel(tmp, mmio + MV_PCI_EXP_ROM_BAR_CTL);
  2744. }
  2745. mv_reset_pci_bus(host, mmio);
  2746. }
  2747. static void mv5_reset_flash(struct mv_host_priv *hpriv, void __iomem *mmio)
  2748. {
  2749. writel(0x0fcfffff, mmio + FLASH_CTL);
  2750. }
  2751. static void mv5_read_preamp(struct mv_host_priv *hpriv, int idx,
  2752. void __iomem *mmio)
  2753. {
  2754. void __iomem *phy_mmio = mv5_phy_base(mmio, idx);
  2755. u32 tmp;
  2756. tmp = readl(phy_mmio + MV5_PHY_MODE);
  2757. hpriv->signal[idx].pre = tmp & 0x1800; /* bits 12:11 */
  2758. hpriv->signal[idx].amps = tmp & 0xe0; /* bits 7:5 */
  2759. }
  2760. static void mv5_enable_leds(struct mv_host_priv *hpriv, void __iomem *mmio)
  2761. {
  2762. u32 tmp;
  2763. writel(0, mmio + GPIO_PORT_CTL);
  2764. /* FIXME: handle MV_HP_ERRATA_50XXB2 errata */
  2765. tmp = readl(mmio + MV_PCI_EXP_ROM_BAR_CTL);
  2766. tmp |= ~(1 << 0);
  2767. writel(tmp, mmio + MV_PCI_EXP_ROM_BAR_CTL);
  2768. }
  2769. static void mv5_phy_errata(struct mv_host_priv *hpriv, void __iomem *mmio,
  2770. unsigned int port)
  2771. {
  2772. void __iomem *phy_mmio = mv5_phy_base(mmio, port);
  2773. const u32 mask = (1<<12) | (1<<11) | (1<<7) | (1<<6) | (1<<5);
  2774. u32 tmp;
  2775. int fix_apm_sq = (hpriv->hp_flags & MV_HP_ERRATA_50XXB0);
  2776. if (fix_apm_sq) {
  2777. tmp = readl(phy_mmio + MV5_LTMODE);
  2778. tmp |= (1 << 19);
  2779. writel(tmp, phy_mmio + MV5_LTMODE);
  2780. tmp = readl(phy_mmio + MV5_PHY_CTL);
  2781. tmp &= ~0x3;
  2782. tmp |= 0x1;
  2783. writel(tmp, phy_mmio + MV5_PHY_CTL);
  2784. }
  2785. tmp = readl(phy_mmio + MV5_PHY_MODE);
  2786. tmp &= ~mask;
  2787. tmp |= hpriv->signal[port].pre;
  2788. tmp |= hpriv->signal[port].amps;
  2789. writel(tmp, phy_mmio + MV5_PHY_MODE);
  2790. }
  2791. #undef ZERO
  2792. #define ZERO(reg) writel(0, port_mmio + (reg))
  2793. static void mv5_reset_hc_port(struct mv_host_priv *hpriv, void __iomem *mmio,
  2794. unsigned int port)
  2795. {
  2796. void __iomem *port_mmio = mv_port_base(mmio, port);
  2797. mv_reset_channel(hpriv, mmio, port);
  2798. ZERO(0x028); /* command */
  2799. writel(0x11f, port_mmio + EDMA_CFG);
  2800. ZERO(0x004); /* timer */
  2801. ZERO(0x008); /* irq err cause */
  2802. ZERO(0x00c); /* irq err mask */
  2803. ZERO(0x010); /* rq bah */
  2804. ZERO(0x014); /* rq inp */
  2805. ZERO(0x018); /* rq outp */
  2806. ZERO(0x01c); /* respq bah */
  2807. ZERO(0x024); /* respq outp */
  2808. ZERO(0x020); /* respq inp */
  2809. ZERO(0x02c); /* test control */
  2810. writel(0xbc, port_mmio + EDMA_IORDY_TMOUT);
  2811. }
  2812. #undef ZERO
  2813. #define ZERO(reg) writel(0, hc_mmio + (reg))
  2814. static void mv5_reset_one_hc(struct mv_host_priv *hpriv, void __iomem *mmio,
  2815. unsigned int hc)
  2816. {
  2817. void __iomem *hc_mmio = mv_hc_base(mmio, hc);
  2818. u32 tmp;
  2819. ZERO(0x00c);
  2820. ZERO(0x010);
  2821. ZERO(0x014);
  2822. ZERO(0x018);
  2823. tmp = readl(hc_mmio + 0x20);
  2824. tmp &= 0x1c1c1c1c;
  2825. tmp |= 0x03030303;
  2826. writel(tmp, hc_mmio + 0x20);
  2827. }
  2828. #undef ZERO
  2829. static int mv5_reset_hc(struct mv_host_priv *hpriv, void __iomem *mmio,
  2830. unsigned int n_hc)
  2831. {
  2832. unsigned int hc, port;
  2833. for (hc = 0; hc < n_hc; hc++) {
  2834. for (port = 0; port < MV_PORTS_PER_HC; port++)
  2835. mv5_reset_hc_port(hpriv, mmio,
  2836. (hc * MV_PORTS_PER_HC) + port);
  2837. mv5_reset_one_hc(hpriv, mmio, hc);
  2838. }
  2839. return 0;
  2840. }
  2841. #undef ZERO
  2842. #define ZERO(reg) writel(0, mmio + (reg))
  2843. static void mv_reset_pci_bus(struct ata_host *host, void __iomem *mmio)
  2844. {
  2845. struct mv_host_priv *hpriv = host->private_data;
  2846. u32 tmp;
  2847. tmp = readl(mmio + MV_PCI_MODE);
  2848. tmp &= 0xff00ffff;
  2849. writel(tmp, mmio + MV_PCI_MODE);
  2850. ZERO(MV_PCI_DISC_TIMER);
  2851. ZERO(MV_PCI_MSI_TRIGGER);
  2852. writel(0x000100ff, mmio + MV_PCI_XBAR_TMOUT);
  2853. ZERO(MV_PCI_SERR_MASK);
  2854. ZERO(hpriv->irq_cause_offset);
  2855. ZERO(hpriv->irq_mask_offset);
  2856. ZERO(MV_PCI_ERR_LOW_ADDRESS);
  2857. ZERO(MV_PCI_ERR_HIGH_ADDRESS);
  2858. ZERO(MV_PCI_ERR_ATTRIBUTE);
  2859. ZERO(MV_PCI_ERR_COMMAND);
  2860. }
  2861. #undef ZERO
  2862. static void mv6_reset_flash(struct mv_host_priv *hpriv, void __iomem *mmio)
  2863. {
  2864. u32 tmp;
  2865. mv5_reset_flash(hpriv, mmio);
  2866. tmp = readl(mmio + GPIO_PORT_CTL);
  2867. tmp &= 0x3;
  2868. tmp |= (1 << 5) | (1 << 6);
  2869. writel(tmp, mmio + GPIO_PORT_CTL);
  2870. }
  2871. /**
  2872. * mv6_reset_hc - Perform the 6xxx global soft reset
  2873. * @mmio: base address of the HBA
  2874. *
  2875. * This routine only applies to 6xxx parts.
  2876. *
  2877. * LOCKING:
  2878. * Inherited from caller.
  2879. */
  2880. static int mv6_reset_hc(struct mv_host_priv *hpriv, void __iomem *mmio,
  2881. unsigned int n_hc)
  2882. {
  2883. void __iomem *reg = mmio + PCI_MAIN_CMD_STS;
  2884. int i, rc = 0;
  2885. u32 t;
  2886. /* Following procedure defined in PCI "main command and status
  2887. * register" table.
  2888. */
  2889. t = readl(reg);
  2890. writel(t | STOP_PCI_MASTER, reg);
  2891. for (i = 0; i < 1000; i++) {
  2892. udelay(1);
  2893. t = readl(reg);
  2894. if (PCI_MASTER_EMPTY & t)
  2895. break;
  2896. }
  2897. if (!(PCI_MASTER_EMPTY & t)) {
  2898. printk(KERN_ERR DRV_NAME ": PCI master won't flush\n");
  2899. rc = 1;
  2900. goto done;
  2901. }
  2902. /* set reset */
  2903. i = 5;
  2904. do {
  2905. writel(t | GLOB_SFT_RST, reg);
  2906. t = readl(reg);
  2907. udelay(1);
  2908. } while (!(GLOB_SFT_RST & t) && (i-- > 0));
  2909. if (!(GLOB_SFT_RST & t)) {
  2910. printk(KERN_ERR DRV_NAME ": can't set global reset\n");
  2911. rc = 1;
  2912. goto done;
  2913. }
  2914. /* clear reset and *reenable the PCI master* (not mentioned in spec) */
  2915. i = 5;
  2916. do {
  2917. writel(t & ~(GLOB_SFT_RST | STOP_PCI_MASTER), reg);
  2918. t = readl(reg);
  2919. udelay(1);
  2920. } while ((GLOB_SFT_RST & t) && (i-- > 0));
  2921. if (GLOB_SFT_RST & t) {
  2922. printk(KERN_ERR DRV_NAME ": can't clear global reset\n");
  2923. rc = 1;
  2924. }
  2925. done:
  2926. return rc;
  2927. }
  2928. static void mv6_read_preamp(struct mv_host_priv *hpriv, int idx,
  2929. void __iomem *mmio)
  2930. {
  2931. void __iomem *port_mmio;
  2932. u32 tmp;
  2933. tmp = readl(mmio + RESET_CFG);
  2934. if ((tmp & (1 << 0)) == 0) {
  2935. hpriv->signal[idx].amps = 0x7 << 8;
  2936. hpriv->signal[idx].pre = 0x1 << 5;
  2937. return;
  2938. }
  2939. port_mmio = mv_port_base(mmio, idx);
  2940. tmp = readl(port_mmio + PHY_MODE2);
  2941. hpriv->signal[idx].amps = tmp & 0x700; /* bits 10:8 */
  2942. hpriv->signal[idx].pre = tmp & 0xe0; /* bits 7:5 */
  2943. }
  2944. static void mv6_enable_leds(struct mv_host_priv *hpriv, void __iomem *mmio)
  2945. {
  2946. writel(0x00000060, mmio + GPIO_PORT_CTL);
  2947. }
  2948. static void mv6_phy_errata(struct mv_host_priv *hpriv, void __iomem *mmio,
  2949. unsigned int port)
  2950. {
  2951. void __iomem *port_mmio = mv_port_base(mmio, port);
  2952. u32 hp_flags = hpriv->hp_flags;
  2953. int fix_phy_mode2 =
  2954. hp_flags & (MV_HP_ERRATA_60X1B2 | MV_HP_ERRATA_60X1C0);
  2955. int fix_phy_mode4 =
  2956. hp_flags & (MV_HP_ERRATA_60X1B2 | MV_HP_ERRATA_60X1C0);
  2957. u32 m2, m3;
  2958. if (fix_phy_mode2) {
  2959. m2 = readl(port_mmio + PHY_MODE2);
  2960. m2 &= ~(1 << 16);
  2961. m2 |= (1 << 31);
  2962. writel(m2, port_mmio + PHY_MODE2);
  2963. udelay(200);
  2964. m2 = readl(port_mmio + PHY_MODE2);
  2965. m2 &= ~((1 << 16) | (1 << 31));
  2966. writel(m2, port_mmio + PHY_MODE2);
  2967. udelay(200);
  2968. }
  2969. /*
  2970. * Gen-II/IIe PHY_MODE3 errata RM#2:
  2971. * Achieves better receiver noise performance than the h/w default:
  2972. */
  2973. m3 = readl(port_mmio + PHY_MODE3);
  2974. m3 = (m3 & 0x1f) | (0x5555601 << 5);
  2975. /* Guideline 88F5182 (GL# SATA-S11) */
  2976. if (IS_SOC(hpriv))
  2977. m3 &= ~0x1c;
  2978. if (fix_phy_mode4) {
  2979. u32 m4 = readl(port_mmio + PHY_MODE4);
  2980. /*
  2981. * Enforce reserved-bit restrictions on GenIIe devices only.
  2982. * For earlier chipsets, force only the internal config field
  2983. * (workaround for errata FEr SATA#10 part 1).
  2984. */
  2985. if (IS_GEN_IIE(hpriv))
  2986. m4 = (m4 & ~PHY_MODE4_RSVD_ZEROS) | PHY_MODE4_RSVD_ONES;
  2987. else
  2988. m4 = (m4 & ~PHY_MODE4_CFG_MASK) | PHY_MODE4_CFG_VALUE;
  2989. writel(m4, port_mmio + PHY_MODE4);
  2990. }
  2991. /*
  2992. * Workaround for 60x1-B2 errata SATA#13:
  2993. * Any write to PHY_MODE4 (above) may corrupt PHY_MODE3,
  2994. * so we must always rewrite PHY_MODE3 after PHY_MODE4.
  2995. * Or ensure we use writelfl() when writing PHY_MODE4.
  2996. */
  2997. writel(m3, port_mmio + PHY_MODE3);
  2998. /* Revert values of pre-emphasis and signal amps to the saved ones */
  2999. m2 = readl(port_mmio + PHY_MODE2);
  3000. m2 &= ~MV_M2_PREAMP_MASK;
  3001. m2 |= hpriv->signal[port].amps;
  3002. m2 |= hpriv->signal[port].pre;
  3003. m2 &= ~(1 << 16);
  3004. /* according to mvSata 3.6.1, some IIE values are fixed */
  3005. if (IS_GEN_IIE(hpriv)) {
  3006. m2 &= ~0xC30FF01F;
  3007. m2 |= 0x0000900F;
  3008. }
  3009. writel(m2, port_mmio + PHY_MODE2);
  3010. }
  3011. /* TODO: use the generic LED interface to configure the SATA Presence */
  3012. /* & Acitivy LEDs on the board */
  3013. static void mv_soc_enable_leds(struct mv_host_priv *hpriv,
  3014. void __iomem *mmio)
  3015. {
  3016. return;
  3017. }
  3018. static void mv_soc_read_preamp(struct mv_host_priv *hpriv, int idx,
  3019. void __iomem *mmio)
  3020. {
  3021. void __iomem *port_mmio;
  3022. u32 tmp;
  3023. port_mmio = mv_port_base(mmio, idx);
  3024. tmp = readl(port_mmio + PHY_MODE2);
  3025. hpriv->signal[idx].amps = tmp & 0x700; /* bits 10:8 */
  3026. hpriv->signal[idx].pre = tmp & 0xe0; /* bits 7:5 */
  3027. }
  3028. #undef ZERO
  3029. #define ZERO(reg) writel(0, port_mmio + (reg))
  3030. static void mv_soc_reset_hc_port(struct mv_host_priv *hpriv,
  3031. void __iomem *mmio, unsigned int port)
  3032. {
  3033. void __iomem *port_mmio = mv_port_base(mmio, port);
  3034. mv_reset_channel(hpriv, mmio, port);
  3035. ZERO(0x028); /* command */
  3036. writel(0x101f, port_mmio + EDMA_CFG);
  3037. ZERO(0x004); /* timer */
  3038. ZERO(0x008); /* irq err cause */
  3039. ZERO(0x00c); /* irq err mask */
  3040. ZERO(0x010); /* rq bah */
  3041. ZERO(0x014); /* rq inp */
  3042. ZERO(0x018); /* rq outp */
  3043. ZERO(0x01c); /* respq bah */
  3044. ZERO(0x024); /* respq outp */
  3045. ZERO(0x020); /* respq inp */
  3046. ZERO(0x02c); /* test control */
  3047. writel(0x800, port_mmio + EDMA_IORDY_TMOUT);
  3048. }
  3049. #undef ZERO
  3050. #define ZERO(reg) writel(0, hc_mmio + (reg))
  3051. static void mv_soc_reset_one_hc(struct mv_host_priv *hpriv,
  3052. void __iomem *mmio)
  3053. {
  3054. void __iomem *hc_mmio = mv_hc_base(mmio, 0);
  3055. ZERO(0x00c);
  3056. ZERO(0x010);
  3057. ZERO(0x014);
  3058. }
  3059. #undef ZERO
  3060. static int mv_soc_reset_hc(struct mv_host_priv *hpriv,
  3061. void __iomem *mmio, unsigned int n_hc)
  3062. {
  3063. unsigned int port;
  3064. for (port = 0; port < hpriv->n_ports; port++)
  3065. mv_soc_reset_hc_port(hpriv, mmio, port);
  3066. mv_soc_reset_one_hc(hpriv, mmio);
  3067. return 0;
  3068. }
  3069. static void mv_soc_reset_flash(struct mv_host_priv *hpriv,
  3070. void __iomem *mmio)
  3071. {
  3072. return;
  3073. }
  3074. static void mv_soc_reset_bus(struct ata_host *host, void __iomem *mmio)
  3075. {
  3076. return;
  3077. }
  3078. static void mv_soc_65n_phy_errata(struct mv_host_priv *hpriv,
  3079. void __iomem *mmio, unsigned int port)
  3080. {
  3081. void __iomem *port_mmio = mv_port_base(mmio, port);
  3082. u32 reg;
  3083. reg = readl(port_mmio + PHY_MODE3);
  3084. reg &= ~(0x3 << 27); /* SELMUPF (bits 28:27) to 1 */
  3085. reg |= (0x1 << 27);
  3086. reg &= ~(0x3 << 29); /* SELMUPI (bits 30:29) to 1 */
  3087. reg |= (0x1 << 29);
  3088. writel(reg, port_mmio + PHY_MODE3);
  3089. reg = readl(port_mmio + PHY_MODE4);
  3090. reg &= ~0x1; /* SATU_OD8 (bit 0) to 0, reserved bit 16 must be set */
  3091. reg |= (0x1 << 16);
  3092. writel(reg, port_mmio + PHY_MODE4);
  3093. reg = readl(port_mmio + PHY_MODE9_GEN2);
  3094. reg &= ~0xf; /* TXAMP[3:0] (bits 3:0) to 8 */
  3095. reg |= 0x8;
  3096. reg &= ~(0x1 << 14); /* TXAMP[4] (bit 14) to 0 */
  3097. writel(reg, port_mmio + PHY_MODE9_GEN2);
  3098. reg = readl(port_mmio + PHY_MODE9_GEN1);
  3099. reg &= ~0xf; /* TXAMP[3:0] (bits 3:0) to 8 */
  3100. reg |= 0x8;
  3101. reg &= ~(0x1 << 14); /* TXAMP[4] (bit 14) to 0 */
  3102. writel(reg, port_mmio + PHY_MODE9_GEN1);
  3103. }
  3104. /**
  3105. * soc_is_65 - check if the soc is 65 nano device
  3106. *
  3107. * Detect the type of the SoC, this is done by reading the PHYCFG_OFS
  3108. * register, this register should contain non-zero value and it exists only
  3109. * in the 65 nano devices, when reading it from older devices we get 0.
  3110. */
  3111. static bool soc_is_65n(struct mv_host_priv *hpriv)
  3112. {
  3113. void __iomem *port0_mmio = mv_port_base(hpriv->base, 0);
  3114. if (readl(port0_mmio + PHYCFG_OFS))
  3115. return true;
  3116. return false;
  3117. }
  3118. static void mv_setup_ifcfg(void __iomem *port_mmio, int want_gen2i)
  3119. {
  3120. u32 ifcfg = readl(port_mmio + SATA_IFCFG);
  3121. ifcfg = (ifcfg & 0xf7f) | 0x9b1000; /* from chip spec */
  3122. if (want_gen2i)
  3123. ifcfg |= (1 << 7); /* enable gen2i speed */
  3124. writelfl(ifcfg, port_mmio + SATA_IFCFG);
  3125. }
  3126. static void mv_reset_channel(struct mv_host_priv *hpriv, void __iomem *mmio,
  3127. unsigned int port_no)
  3128. {
  3129. void __iomem *port_mmio = mv_port_base(mmio, port_no);
  3130. /*
  3131. * The datasheet warns against setting EDMA_RESET when EDMA is active
  3132. * (but doesn't say what the problem might be). So we first try
  3133. * to disable the EDMA engine before doing the EDMA_RESET operation.
  3134. */
  3135. mv_stop_edma_engine(port_mmio);
  3136. writelfl(EDMA_RESET, port_mmio + EDMA_CMD);
  3137. if (!IS_GEN_I(hpriv)) {
  3138. /* Enable 3.0gb/s link speed: this survives EDMA_RESET */
  3139. mv_setup_ifcfg(port_mmio, 1);
  3140. }
  3141. /*
  3142. * Strobing EDMA_RESET here causes a hard reset of the SATA transport,
  3143. * link, and physical layers. It resets all SATA interface registers
  3144. * (except for SATA_IFCFG), and issues a COMRESET to the dev.
  3145. */
  3146. writelfl(EDMA_RESET, port_mmio + EDMA_CMD);
  3147. udelay(25); /* allow reset propagation */
  3148. writelfl(0, port_mmio + EDMA_CMD);
  3149. hpriv->ops->phy_errata(hpriv, mmio, port_no);
  3150. if (IS_GEN_I(hpriv))
  3151. mdelay(1);
  3152. }
  3153. static void mv_pmp_select(struct ata_port *ap, int pmp)
  3154. {
  3155. if (sata_pmp_supported(ap)) {
  3156. void __iomem *port_mmio = mv_ap_base(ap);
  3157. u32 reg = readl(port_mmio + SATA_IFCTL);
  3158. int old = reg & 0xf;
  3159. if (old != pmp) {
  3160. reg = (reg & ~0xf) | pmp;
  3161. writelfl(reg, port_mmio + SATA_IFCTL);
  3162. }
  3163. }
  3164. }
  3165. static int mv_pmp_hardreset(struct ata_link *link, unsigned int *class,
  3166. unsigned long deadline)
  3167. {
  3168. mv_pmp_select(link->ap, sata_srst_pmp(link));
  3169. return sata_std_hardreset(link, class, deadline);
  3170. }
  3171. static int mv_softreset(struct ata_link *link, unsigned int *class,
  3172. unsigned long deadline)
  3173. {
  3174. mv_pmp_select(link->ap, sata_srst_pmp(link));
  3175. return ata_sff_softreset(link, class, deadline);
  3176. }
  3177. static int mv_hardreset(struct ata_link *link, unsigned int *class,
  3178. unsigned long deadline)
  3179. {
  3180. struct ata_port *ap = link->ap;
  3181. struct mv_host_priv *hpriv = ap->host->private_data;
  3182. struct mv_port_priv *pp = ap->private_data;
  3183. void __iomem *mmio = hpriv->base;
  3184. int rc, attempts = 0, extra = 0;
  3185. u32 sstatus;
  3186. bool online;
  3187. mv_reset_channel(hpriv, mmio, ap->port_no);
  3188. pp->pp_flags &= ~MV_PP_FLAG_EDMA_EN;
  3189. pp->pp_flags &=
  3190. ~(MV_PP_FLAG_FBS_EN | MV_PP_FLAG_NCQ_EN | MV_PP_FLAG_FAKE_ATA_BUSY);
  3191. /* Workaround for errata FEr SATA#10 (part 2) */
  3192. do {
  3193. const unsigned long *timing =
  3194. sata_ehc_deb_timing(&link->eh_context);
  3195. rc = sata_link_hardreset(link, timing, deadline + extra,
  3196. &online, NULL);
  3197. rc = online ? -EAGAIN : rc;
  3198. if (rc)
  3199. return rc;
  3200. sata_scr_read(link, SCR_STATUS, &sstatus);
  3201. if (!IS_GEN_I(hpriv) && ++attempts >= 5 && sstatus == 0x121) {
  3202. /* Force 1.5gb/s link speed and try again */
  3203. mv_setup_ifcfg(mv_ap_base(ap), 0);
  3204. if (time_after(jiffies + HZ, deadline))
  3205. extra = HZ; /* only extend it once, max */
  3206. }
  3207. } while (sstatus != 0x0 && sstatus != 0x113 && sstatus != 0x123);
  3208. mv_save_cached_regs(ap);
  3209. mv_edma_cfg(ap, 0, 0);
  3210. return rc;
  3211. }
  3212. static void mv_eh_freeze(struct ata_port *ap)
  3213. {
  3214. mv_stop_edma(ap);
  3215. mv_enable_port_irqs(ap, 0);
  3216. }
  3217. static void mv_eh_thaw(struct ata_port *ap)
  3218. {
  3219. struct mv_host_priv *hpriv = ap->host->private_data;
  3220. unsigned int port = ap->port_no;
  3221. unsigned int hardport = mv_hardport_from_port(port);
  3222. void __iomem *hc_mmio = mv_hc_base_from_port(hpriv->base, port);
  3223. void __iomem *port_mmio = mv_ap_base(ap);
  3224. u32 hc_irq_cause;
  3225. /* clear EDMA errors on this port */
  3226. writel(0, port_mmio + EDMA_ERR_IRQ_CAUSE);
  3227. /* clear pending irq events */
  3228. hc_irq_cause = ~((DEV_IRQ | DMA_IRQ) << hardport);
  3229. writelfl(hc_irq_cause, hc_mmio + HC_IRQ_CAUSE);
  3230. mv_enable_port_irqs(ap, ERR_IRQ);
  3231. }
  3232. /**
  3233. * mv_port_init - Perform some early initialization on a single port.
  3234. * @port: libata data structure storing shadow register addresses
  3235. * @port_mmio: base address of the port
  3236. *
  3237. * Initialize shadow register mmio addresses, clear outstanding
  3238. * interrupts on the port, and unmask interrupts for the future
  3239. * start of the port.
  3240. *
  3241. * LOCKING:
  3242. * Inherited from caller.
  3243. */
  3244. static void mv_port_init(struct ata_ioports *port, void __iomem *port_mmio)
  3245. {
  3246. void __iomem *serr, *shd_base = port_mmio + SHD_BLK;
  3247. /* PIO related setup
  3248. */
  3249. port->data_addr = shd_base + (sizeof(u32) * ATA_REG_DATA);
  3250. port->error_addr =
  3251. port->feature_addr = shd_base + (sizeof(u32) * ATA_REG_ERR);
  3252. port->nsect_addr = shd_base + (sizeof(u32) * ATA_REG_NSECT);
  3253. port->lbal_addr = shd_base + (sizeof(u32) * ATA_REG_LBAL);
  3254. port->lbam_addr = shd_base + (sizeof(u32) * ATA_REG_LBAM);
  3255. port->lbah_addr = shd_base + (sizeof(u32) * ATA_REG_LBAH);
  3256. port->device_addr = shd_base + (sizeof(u32) * ATA_REG_DEVICE);
  3257. port->status_addr =
  3258. port->command_addr = shd_base + (sizeof(u32) * ATA_REG_STATUS);
  3259. /* special case: control/altstatus doesn't have ATA_REG_ address */
  3260. port->altstatus_addr = port->ctl_addr = shd_base + SHD_CTL_AST;
  3261. /* Clear any currently outstanding port interrupt conditions */
  3262. serr = port_mmio + mv_scr_offset(SCR_ERROR);
  3263. writelfl(readl(serr), serr);
  3264. writelfl(0, port_mmio + EDMA_ERR_IRQ_CAUSE);
  3265. /* unmask all non-transient EDMA error interrupts */
  3266. writelfl(~EDMA_ERR_IRQ_TRANSIENT, port_mmio + EDMA_ERR_IRQ_MASK);
  3267. VPRINTK("EDMA cfg=0x%08x EDMA IRQ err cause/mask=0x%08x/0x%08x\n",
  3268. readl(port_mmio + EDMA_CFG),
  3269. readl(port_mmio + EDMA_ERR_IRQ_CAUSE),
  3270. readl(port_mmio + EDMA_ERR_IRQ_MASK));
  3271. }
  3272. static unsigned int mv_in_pcix_mode(struct ata_host *host)
  3273. {
  3274. struct mv_host_priv *hpriv = host->private_data;
  3275. void __iomem *mmio = hpriv->base;
  3276. u32 reg;
  3277. if (IS_SOC(hpriv) || !IS_PCIE(hpriv))
  3278. return 0; /* not PCI-X capable */
  3279. reg = readl(mmio + MV_PCI_MODE);
  3280. if ((reg & MV_PCI_MODE_MASK) == 0)
  3281. return 0; /* conventional PCI mode */
  3282. return 1; /* chip is in PCI-X mode */
  3283. }
  3284. static int mv_pci_cut_through_okay(struct ata_host *host)
  3285. {
  3286. struct mv_host_priv *hpriv = host->private_data;
  3287. void __iomem *mmio = hpriv->base;
  3288. u32 reg;
  3289. if (!mv_in_pcix_mode(host)) {
  3290. reg = readl(mmio + MV_PCI_COMMAND);
  3291. if (reg & MV_PCI_COMMAND_MRDTRIG)
  3292. return 0; /* not okay */
  3293. }
  3294. return 1; /* okay */
  3295. }
  3296. static void mv_60x1b2_errata_pci7(struct ata_host *host)
  3297. {
  3298. struct mv_host_priv *hpriv = host->private_data;
  3299. void __iomem *mmio = hpriv->base;
  3300. /* workaround for 60x1-B2 errata PCI#7 */
  3301. if (mv_in_pcix_mode(host)) {
  3302. u32 reg = readl(mmio + MV_PCI_COMMAND);
  3303. writelfl(reg & ~MV_PCI_COMMAND_MWRCOM, mmio + MV_PCI_COMMAND);
  3304. }
  3305. }
  3306. static int mv_chip_id(struct ata_host *host, unsigned int board_idx)
  3307. {
  3308. struct pci_dev *pdev = to_pci_dev(host->dev);
  3309. struct mv_host_priv *hpriv = host->private_data;
  3310. u32 hp_flags = hpriv->hp_flags;
  3311. switch (board_idx) {
  3312. case chip_5080:
  3313. hpriv->ops = &mv5xxx_ops;
  3314. hp_flags |= MV_HP_GEN_I;
  3315. switch (pdev->revision) {
  3316. case 0x1:
  3317. hp_flags |= MV_HP_ERRATA_50XXB0;
  3318. break;
  3319. case 0x3:
  3320. hp_flags |= MV_HP_ERRATA_50XXB2;
  3321. break;
  3322. default:
  3323. dev_warn(&pdev->dev,
  3324. "Applying 50XXB2 workarounds to unknown rev\n");
  3325. hp_flags |= MV_HP_ERRATA_50XXB2;
  3326. break;
  3327. }
  3328. break;
  3329. case chip_504x:
  3330. case chip_508x:
  3331. hpriv->ops = &mv5xxx_ops;
  3332. hp_flags |= MV_HP_GEN_I;
  3333. switch (pdev->revision) {
  3334. case 0x0:
  3335. hp_flags |= MV_HP_ERRATA_50XXB0;
  3336. break;
  3337. case 0x3:
  3338. hp_flags |= MV_HP_ERRATA_50XXB2;
  3339. break;
  3340. default:
  3341. dev_warn(&pdev->dev,
  3342. "Applying B2 workarounds to unknown rev\n");
  3343. hp_flags |= MV_HP_ERRATA_50XXB2;
  3344. break;
  3345. }
  3346. break;
  3347. case chip_604x:
  3348. case chip_608x:
  3349. hpriv->ops = &mv6xxx_ops;
  3350. hp_flags |= MV_HP_GEN_II;
  3351. switch (pdev->revision) {
  3352. case 0x7:
  3353. mv_60x1b2_errata_pci7(host);
  3354. hp_flags |= MV_HP_ERRATA_60X1B2;
  3355. break;
  3356. case 0x9:
  3357. hp_flags |= MV_HP_ERRATA_60X1C0;
  3358. break;
  3359. default:
  3360. dev_warn(&pdev->dev,
  3361. "Applying B2 workarounds to unknown rev\n");
  3362. hp_flags |= MV_HP_ERRATA_60X1B2;
  3363. break;
  3364. }
  3365. break;
  3366. case chip_7042:
  3367. hp_flags |= MV_HP_PCIE | MV_HP_CUT_THROUGH;
  3368. if (pdev->vendor == PCI_VENDOR_ID_TTI &&
  3369. (pdev->device == 0x2300 || pdev->device == 0x2310))
  3370. {
  3371. /*
  3372. * Highpoint RocketRAID PCIe 23xx series cards:
  3373. *
  3374. * Unconfigured drives are treated as "Legacy"
  3375. * by the BIOS, and it overwrites sector 8 with
  3376. * a "Lgcy" metadata block prior to Linux boot.
  3377. *
  3378. * Configured drives (RAID or JBOD) leave sector 8
  3379. * alone, but instead overwrite a high numbered
  3380. * sector for the RAID metadata. This sector can
  3381. * be determined exactly, by truncating the physical
  3382. * drive capacity to a nice even GB value.
  3383. *
  3384. * RAID metadata is at: (dev->n_sectors & ~0xfffff)
  3385. *
  3386. * Warn the user, lest they think we're just buggy.
  3387. */
  3388. printk(KERN_WARNING DRV_NAME ": Highpoint RocketRAID"
  3389. " BIOS CORRUPTS DATA on all attached drives,"
  3390. " regardless of if/how they are configured."
  3391. " BEWARE!\n");
  3392. printk(KERN_WARNING DRV_NAME ": For data safety, do not"
  3393. " use sectors 8-9 on \"Legacy\" drives,"
  3394. " and avoid the final two gigabytes on"
  3395. " all RocketRAID BIOS initialized drives.\n");
  3396. }
  3397. /* drop through */
  3398. case chip_6042:
  3399. hpriv->ops = &mv6xxx_ops;
  3400. hp_flags |= MV_HP_GEN_IIE;
  3401. if (board_idx == chip_6042 && mv_pci_cut_through_okay(host))
  3402. hp_flags |= MV_HP_CUT_THROUGH;
  3403. switch (pdev->revision) {
  3404. case 0x2: /* Rev.B0: the first/only public release */
  3405. hp_flags |= MV_HP_ERRATA_60X1C0;
  3406. break;
  3407. default:
  3408. dev_warn(&pdev->dev,
  3409. "Applying 60X1C0 workarounds to unknown rev\n");
  3410. hp_flags |= MV_HP_ERRATA_60X1C0;
  3411. break;
  3412. }
  3413. break;
  3414. case chip_soc:
  3415. if (soc_is_65n(hpriv))
  3416. hpriv->ops = &mv_soc_65n_ops;
  3417. else
  3418. hpriv->ops = &mv_soc_ops;
  3419. hp_flags |= MV_HP_FLAG_SOC | MV_HP_GEN_IIE |
  3420. MV_HP_ERRATA_60X1C0;
  3421. break;
  3422. default:
  3423. dev_err(host->dev, "BUG: invalid board index %u\n", board_idx);
  3424. return 1;
  3425. }
  3426. hpriv->hp_flags = hp_flags;
  3427. if (hp_flags & MV_HP_PCIE) {
  3428. hpriv->irq_cause_offset = PCIE_IRQ_CAUSE;
  3429. hpriv->irq_mask_offset = PCIE_IRQ_MASK;
  3430. hpriv->unmask_all_irqs = PCIE_UNMASK_ALL_IRQS;
  3431. } else {
  3432. hpriv->irq_cause_offset = PCI_IRQ_CAUSE;
  3433. hpriv->irq_mask_offset = PCI_IRQ_MASK;
  3434. hpriv->unmask_all_irqs = PCI_UNMASK_ALL_IRQS;
  3435. }
  3436. return 0;
  3437. }
  3438. /**
  3439. * mv_init_host - Perform some early initialization of the host.
  3440. * @host: ATA host to initialize
  3441. *
  3442. * If possible, do an early global reset of the host. Then do
  3443. * our port init and clear/unmask all/relevant host interrupts.
  3444. *
  3445. * LOCKING:
  3446. * Inherited from caller.
  3447. */
  3448. static int mv_init_host(struct ata_host *host)
  3449. {
  3450. int rc = 0, n_hc, port, hc;
  3451. struct mv_host_priv *hpriv = host->private_data;
  3452. void __iomem *mmio = hpriv->base;
  3453. rc = mv_chip_id(host, hpriv->board_idx);
  3454. if (rc)
  3455. goto done;
  3456. if (IS_SOC(hpriv)) {
  3457. hpriv->main_irq_cause_addr = mmio + SOC_HC_MAIN_IRQ_CAUSE;
  3458. hpriv->main_irq_mask_addr = mmio + SOC_HC_MAIN_IRQ_MASK;
  3459. } else {
  3460. hpriv->main_irq_cause_addr = mmio + PCI_HC_MAIN_IRQ_CAUSE;
  3461. hpriv->main_irq_mask_addr = mmio + PCI_HC_MAIN_IRQ_MASK;
  3462. }
  3463. /* initialize shadow irq mask with register's value */
  3464. hpriv->main_irq_mask = readl(hpriv->main_irq_mask_addr);
  3465. /* global interrupt mask: 0 == mask everything */
  3466. mv_set_main_irq_mask(host, ~0, 0);
  3467. n_hc = mv_get_hc_count(host->ports[0]->flags);
  3468. for (port = 0; port < host->n_ports; port++)
  3469. if (hpriv->ops->read_preamp)
  3470. hpriv->ops->read_preamp(hpriv, port, mmio);
  3471. rc = hpriv->ops->reset_hc(hpriv, mmio, n_hc);
  3472. if (rc)
  3473. goto done;
  3474. hpriv->ops->reset_flash(hpriv, mmio);
  3475. hpriv->ops->reset_bus(host, mmio);
  3476. hpriv->ops->enable_leds(hpriv, mmio);
  3477. for (port = 0; port < host->n_ports; port++) {
  3478. struct ata_port *ap = host->ports[port];
  3479. void __iomem *port_mmio = mv_port_base(mmio, port);
  3480. mv_port_init(&ap->ioaddr, port_mmio);
  3481. }
  3482. for (hc = 0; hc < n_hc; hc++) {
  3483. void __iomem *hc_mmio = mv_hc_base(mmio, hc);
  3484. VPRINTK("HC%i: HC config=0x%08x HC IRQ cause "
  3485. "(before clear)=0x%08x\n", hc,
  3486. readl(hc_mmio + HC_CFG),
  3487. readl(hc_mmio + HC_IRQ_CAUSE));
  3488. /* Clear any currently outstanding hc interrupt conditions */
  3489. writelfl(0, hc_mmio + HC_IRQ_CAUSE);
  3490. }
  3491. if (!IS_SOC(hpriv)) {
  3492. /* Clear any currently outstanding host interrupt conditions */
  3493. writelfl(0, mmio + hpriv->irq_cause_offset);
  3494. /* and unmask interrupt generation for host regs */
  3495. writelfl(hpriv->unmask_all_irqs, mmio + hpriv->irq_mask_offset);
  3496. }
  3497. /*
  3498. * enable only global host interrupts for now.
  3499. * The per-port interrupts get done later as ports are set up.
  3500. */
  3501. mv_set_main_irq_mask(host, 0, PCI_ERR);
  3502. mv_set_irq_coalescing(host, irq_coalescing_io_count,
  3503. irq_coalescing_usecs);
  3504. done:
  3505. return rc;
  3506. }
  3507. static int mv_create_dma_pools(struct mv_host_priv *hpriv, struct device *dev)
  3508. {
  3509. hpriv->crqb_pool = dmam_pool_create("crqb_q", dev, MV_CRQB_Q_SZ,
  3510. MV_CRQB_Q_SZ, 0);
  3511. if (!hpriv->crqb_pool)
  3512. return -ENOMEM;
  3513. hpriv->crpb_pool = dmam_pool_create("crpb_q", dev, MV_CRPB_Q_SZ,
  3514. MV_CRPB_Q_SZ, 0);
  3515. if (!hpriv->crpb_pool)
  3516. return -ENOMEM;
  3517. hpriv->sg_tbl_pool = dmam_pool_create("sg_tbl", dev, MV_SG_TBL_SZ,
  3518. MV_SG_TBL_SZ, 0);
  3519. if (!hpriv->sg_tbl_pool)
  3520. return -ENOMEM;
  3521. return 0;
  3522. }
  3523. static void mv_conf_mbus_windows(struct mv_host_priv *hpriv,
  3524. const struct mbus_dram_target_info *dram)
  3525. {
  3526. int i;
  3527. for (i = 0; i < 4; i++) {
  3528. writel(0, hpriv->base + WINDOW_CTRL(i));
  3529. writel(0, hpriv->base + WINDOW_BASE(i));
  3530. }
  3531. for (i = 0; i < dram->num_cs; i++) {
  3532. const struct mbus_dram_window *cs = dram->cs + i;
  3533. writel(((cs->size - 1) & 0xffff0000) |
  3534. (cs->mbus_attr << 8) |
  3535. (dram->mbus_dram_target_id << 4) | 1,
  3536. hpriv->base + WINDOW_CTRL(i));
  3537. writel(cs->base, hpriv->base + WINDOW_BASE(i));
  3538. }
  3539. }
  3540. /**
  3541. * mv_platform_probe - handle a positive probe of an soc Marvell
  3542. * host
  3543. * @pdev: platform device found
  3544. *
  3545. * LOCKING:
  3546. * Inherited from caller.
  3547. */
  3548. static int mv_platform_probe(struct platform_device *pdev)
  3549. {
  3550. const struct mv_sata_platform_data *mv_platform_data;
  3551. const struct mbus_dram_target_info *dram;
  3552. const struct ata_port_info *ppi[] =
  3553. { &mv_port_info[chip_soc], NULL };
  3554. struct ata_host *host;
  3555. struct mv_host_priv *hpriv;
  3556. struct resource *res;
  3557. int n_ports = 0, irq = 0;
  3558. int rc;
  3559. int port;
  3560. ata_print_version_once(&pdev->dev, DRV_VERSION);
  3561. /*
  3562. * Simple resource validation ..
  3563. */
  3564. if (unlikely(pdev->num_resources != 2)) {
  3565. dev_err(&pdev->dev, "invalid number of resources\n");
  3566. return -EINVAL;
  3567. }
  3568. /*
  3569. * Get the register base first
  3570. */
  3571. res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
  3572. if (res == NULL)
  3573. return -EINVAL;
  3574. /* allocate host */
  3575. if (pdev->dev.of_node) {
  3576. of_property_read_u32(pdev->dev.of_node, "nr-ports", &n_ports);
  3577. irq = irq_of_parse_and_map(pdev->dev.of_node, 0);
  3578. } else {
  3579. mv_platform_data = dev_get_platdata(&pdev->dev);
  3580. n_ports = mv_platform_data->n_ports;
  3581. irq = platform_get_irq(pdev, 0);
  3582. }
  3583. host = ata_host_alloc_pinfo(&pdev->dev, ppi, n_ports);
  3584. hpriv = devm_kzalloc(&pdev->dev, sizeof(*hpriv), GFP_KERNEL);
  3585. if (!host || !hpriv)
  3586. return -ENOMEM;
  3587. hpriv->port_clks = devm_kzalloc(&pdev->dev,
  3588. sizeof(struct clk *) * n_ports,
  3589. GFP_KERNEL);
  3590. if (!hpriv->port_clks)
  3591. return -ENOMEM;
  3592. hpriv->port_phys = devm_kzalloc(&pdev->dev,
  3593. sizeof(struct phy *) * n_ports,
  3594. GFP_KERNEL);
  3595. if (!hpriv->port_phys)
  3596. return -ENOMEM;
  3597. host->private_data = hpriv;
  3598. hpriv->board_idx = chip_soc;
  3599. host->iomap = NULL;
  3600. hpriv->base = devm_ioremap(&pdev->dev, res->start,
  3601. resource_size(res));
  3602. if (!hpriv->base)
  3603. return -ENOMEM;
  3604. hpriv->base -= SATAHC0_REG_BASE;
  3605. hpriv->clk = clk_get(&pdev->dev, NULL);
  3606. if (IS_ERR(hpriv->clk))
  3607. dev_notice(&pdev->dev, "cannot get optional clkdev\n");
  3608. else
  3609. clk_prepare_enable(hpriv->clk);
  3610. for (port = 0; port < n_ports; port++) {
  3611. char port_number[16];
  3612. sprintf(port_number, "%d", port);
  3613. hpriv->port_clks[port] = clk_get(&pdev->dev, port_number);
  3614. if (!IS_ERR(hpriv->port_clks[port]))
  3615. clk_prepare_enable(hpriv->port_clks[port]);
  3616. sprintf(port_number, "port%d", port);
  3617. hpriv->port_phys[port] = devm_phy_optional_get(&pdev->dev,
  3618. port_number);
  3619. if (IS_ERR(hpriv->port_phys[port])) {
  3620. rc = PTR_ERR(hpriv->port_phys[port]);
  3621. hpriv->port_phys[port] = NULL;
  3622. if (rc != -EPROBE_DEFER)
  3623. dev_warn(&pdev->dev, "error getting phy %d", rc);
  3624. /* Cleanup only the initialized ports */
  3625. hpriv->n_ports = port;
  3626. goto err;
  3627. } else
  3628. phy_power_on(hpriv->port_phys[port]);
  3629. }
  3630. /* All the ports have been initialized */
  3631. hpriv->n_ports = n_ports;
  3632. /*
  3633. * (Re-)program MBUS remapping windows if we are asked to.
  3634. */
  3635. dram = mv_mbus_dram_info();
  3636. if (dram)
  3637. mv_conf_mbus_windows(hpriv, dram);
  3638. rc = mv_create_dma_pools(hpriv, &pdev->dev);
  3639. if (rc)
  3640. goto err;
  3641. /*
  3642. * To allow disk hotplug on Armada 370/XP SoCs, the PHY speed must be
  3643. * updated in the LP_PHY_CTL register.
  3644. */
  3645. if (pdev->dev.of_node &&
  3646. of_device_is_compatible(pdev->dev.of_node,
  3647. "marvell,armada-370-sata"))
  3648. hpriv->hp_flags |= MV_HP_FIX_LP_PHY_CTL;
  3649. /* initialize adapter */
  3650. rc = mv_init_host(host);
  3651. if (rc)
  3652. goto err;
  3653. dev_info(&pdev->dev, "slots %u ports %d\n",
  3654. (unsigned)MV_MAX_Q_DEPTH, host->n_ports);
  3655. rc = ata_host_activate(host, irq, mv_interrupt, IRQF_SHARED, &mv6_sht);
  3656. if (!rc)
  3657. return 0;
  3658. err:
  3659. if (!IS_ERR(hpriv->clk)) {
  3660. clk_disable_unprepare(hpriv->clk);
  3661. clk_put(hpriv->clk);
  3662. }
  3663. for (port = 0; port < hpriv->n_ports; port++) {
  3664. if (!IS_ERR(hpriv->port_clks[port])) {
  3665. clk_disable_unprepare(hpriv->port_clks[port]);
  3666. clk_put(hpriv->port_clks[port]);
  3667. }
  3668. phy_power_off(hpriv->port_phys[port]);
  3669. }
  3670. return rc;
  3671. }
  3672. /*
  3673. *
  3674. * mv_platform_remove - unplug a platform interface
  3675. * @pdev: platform device
  3676. *
  3677. * A platform bus SATA device has been unplugged. Perform the needed
  3678. * cleanup. Also called on module unload for any active devices.
  3679. */
  3680. static int mv_platform_remove(struct platform_device *pdev)
  3681. {
  3682. struct ata_host *host = platform_get_drvdata(pdev);
  3683. struct mv_host_priv *hpriv = host->private_data;
  3684. int port;
  3685. ata_host_detach(host);
  3686. if (!IS_ERR(hpriv->clk)) {
  3687. clk_disable_unprepare(hpriv->clk);
  3688. clk_put(hpriv->clk);
  3689. }
  3690. for (port = 0; port < host->n_ports; port++) {
  3691. if (!IS_ERR(hpriv->port_clks[port])) {
  3692. clk_disable_unprepare(hpriv->port_clks[port]);
  3693. clk_put(hpriv->port_clks[port]);
  3694. }
  3695. phy_power_off(hpriv->port_phys[port]);
  3696. }
  3697. return 0;
  3698. }
  3699. #ifdef CONFIG_PM_SLEEP
  3700. static int mv_platform_suspend(struct platform_device *pdev, pm_message_t state)
  3701. {
  3702. struct ata_host *host = platform_get_drvdata(pdev);
  3703. if (host)
  3704. return ata_host_suspend(host, state);
  3705. else
  3706. return 0;
  3707. }
  3708. static int mv_platform_resume(struct platform_device *pdev)
  3709. {
  3710. struct ata_host *host = platform_get_drvdata(pdev);
  3711. const struct mbus_dram_target_info *dram;
  3712. int ret;
  3713. if (host) {
  3714. struct mv_host_priv *hpriv = host->private_data;
  3715. /*
  3716. * (Re-)program MBUS remapping windows if we are asked to.
  3717. */
  3718. dram = mv_mbus_dram_info();
  3719. if (dram)
  3720. mv_conf_mbus_windows(hpriv, dram);
  3721. /* initialize adapter */
  3722. ret = mv_init_host(host);
  3723. if (ret) {
  3724. printk(KERN_ERR DRV_NAME ": Error during HW init\n");
  3725. return ret;
  3726. }
  3727. ata_host_resume(host);
  3728. }
  3729. return 0;
  3730. }
  3731. #else
  3732. #define mv_platform_suspend NULL
  3733. #define mv_platform_resume NULL
  3734. #endif
  3735. #ifdef CONFIG_OF
  3736. static struct of_device_id mv_sata_dt_ids[] = {
  3737. { .compatible = "marvell,armada-370-sata", },
  3738. { .compatible = "marvell,orion-sata", },
  3739. {},
  3740. };
  3741. MODULE_DEVICE_TABLE(of, mv_sata_dt_ids);
  3742. #endif
  3743. static struct platform_driver mv_platform_driver = {
  3744. .probe = mv_platform_probe,
  3745. .remove = mv_platform_remove,
  3746. .suspend = mv_platform_suspend,
  3747. .resume = mv_platform_resume,
  3748. .driver = {
  3749. .name = DRV_NAME,
  3750. .of_match_table = of_match_ptr(mv_sata_dt_ids),
  3751. },
  3752. };
  3753. #ifdef CONFIG_PCI
  3754. static int mv_pci_init_one(struct pci_dev *pdev,
  3755. const struct pci_device_id *ent);
  3756. #ifdef CONFIG_PM_SLEEP
  3757. static int mv_pci_device_resume(struct pci_dev *pdev);
  3758. #endif
  3759. static struct pci_driver mv_pci_driver = {
  3760. .name = DRV_NAME,
  3761. .id_table = mv_pci_tbl,
  3762. .probe = mv_pci_init_one,
  3763. .remove = ata_pci_remove_one,
  3764. #ifdef CONFIG_PM_SLEEP
  3765. .suspend = ata_pci_device_suspend,
  3766. .resume = mv_pci_device_resume,
  3767. #endif
  3768. };
  3769. /* move to PCI layer or libata core? */
  3770. static int pci_go_64(struct pci_dev *pdev)
  3771. {
  3772. int rc;
  3773. if (!dma_set_mask(&pdev->dev, DMA_BIT_MASK(64))) {
  3774. rc = dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(64));
  3775. if (rc) {
  3776. rc = dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(32));
  3777. if (rc) {
  3778. dev_err(&pdev->dev,
  3779. "64-bit DMA enable failed\n");
  3780. return rc;
  3781. }
  3782. }
  3783. } else {
  3784. rc = dma_set_mask(&pdev->dev, DMA_BIT_MASK(32));
  3785. if (rc) {
  3786. dev_err(&pdev->dev, "32-bit DMA enable failed\n");
  3787. return rc;
  3788. }
  3789. rc = dma_set_coherent_mask(&pdev->dev, DMA_BIT_MASK(32));
  3790. if (rc) {
  3791. dev_err(&pdev->dev,
  3792. "32-bit consistent DMA enable failed\n");
  3793. return rc;
  3794. }
  3795. }
  3796. return rc;
  3797. }
  3798. /**
  3799. * mv_print_info - Dump key info to kernel log for perusal.
  3800. * @host: ATA host to print info about
  3801. *
  3802. * FIXME: complete this.
  3803. *
  3804. * LOCKING:
  3805. * Inherited from caller.
  3806. */
  3807. static void mv_print_info(struct ata_host *host)
  3808. {
  3809. struct pci_dev *pdev = to_pci_dev(host->dev);
  3810. struct mv_host_priv *hpriv = host->private_data;
  3811. u8 scc;
  3812. const char *scc_s, *gen;
  3813. /* Use this to determine the HW stepping of the chip so we know
  3814. * what errata to workaround
  3815. */
  3816. pci_read_config_byte(pdev, PCI_CLASS_DEVICE, &scc);
  3817. if (scc == 0)
  3818. scc_s = "SCSI";
  3819. else if (scc == 0x01)
  3820. scc_s = "RAID";
  3821. else
  3822. scc_s = "?";
  3823. if (IS_GEN_I(hpriv))
  3824. gen = "I";
  3825. else if (IS_GEN_II(hpriv))
  3826. gen = "II";
  3827. else if (IS_GEN_IIE(hpriv))
  3828. gen = "IIE";
  3829. else
  3830. gen = "?";
  3831. dev_info(&pdev->dev, "Gen-%s %u slots %u ports %s mode IRQ via %s\n",
  3832. gen, (unsigned)MV_MAX_Q_DEPTH, host->n_ports,
  3833. scc_s, (MV_HP_FLAG_MSI & hpriv->hp_flags) ? "MSI" : "INTx");
  3834. }
  3835. /**
  3836. * mv_pci_init_one - handle a positive probe of a PCI Marvell host
  3837. * @pdev: PCI device found
  3838. * @ent: PCI device ID entry for the matched host
  3839. *
  3840. * LOCKING:
  3841. * Inherited from caller.
  3842. */
  3843. static int mv_pci_init_one(struct pci_dev *pdev,
  3844. const struct pci_device_id *ent)
  3845. {
  3846. unsigned int board_idx = (unsigned int)ent->driver_data;
  3847. const struct ata_port_info *ppi[] = { &mv_port_info[board_idx], NULL };
  3848. struct ata_host *host;
  3849. struct mv_host_priv *hpriv;
  3850. int n_ports, port, rc;
  3851. ata_print_version_once(&pdev->dev, DRV_VERSION);
  3852. /* allocate host */
  3853. n_ports = mv_get_hc_count(ppi[0]->flags) * MV_PORTS_PER_HC;
  3854. host = ata_host_alloc_pinfo(&pdev->dev, ppi, n_ports);
  3855. hpriv = devm_kzalloc(&pdev->dev, sizeof(*hpriv), GFP_KERNEL);
  3856. if (!host || !hpriv)
  3857. return -ENOMEM;
  3858. host->private_data = hpriv;
  3859. hpriv->n_ports = n_ports;
  3860. hpriv->board_idx = board_idx;
  3861. /* acquire resources */
  3862. rc = pcim_enable_device(pdev);
  3863. if (rc)
  3864. return rc;
  3865. rc = pcim_iomap_regions(pdev, 1 << MV_PRIMARY_BAR, DRV_NAME);
  3866. if (rc == -EBUSY)
  3867. pcim_pin_device(pdev);
  3868. if (rc)
  3869. return rc;
  3870. host->iomap = pcim_iomap_table(pdev);
  3871. hpriv->base = host->iomap[MV_PRIMARY_BAR];
  3872. rc = pci_go_64(pdev);
  3873. if (rc)
  3874. return rc;
  3875. rc = mv_create_dma_pools(hpriv, &pdev->dev);
  3876. if (rc)
  3877. return rc;
  3878. for (port = 0; port < host->n_ports; port++) {
  3879. struct ata_port *ap = host->ports[port];
  3880. void __iomem *port_mmio = mv_port_base(hpriv->base, port);
  3881. unsigned int offset = port_mmio - hpriv->base;
  3882. ata_port_pbar_desc(ap, MV_PRIMARY_BAR, -1, "mmio");
  3883. ata_port_pbar_desc(ap, MV_PRIMARY_BAR, offset, "port");
  3884. }
  3885. /* initialize adapter */
  3886. rc = mv_init_host(host);
  3887. if (rc)
  3888. return rc;
  3889. /* Enable message-switched interrupts, if requested */
  3890. if (msi && pci_enable_msi(pdev) == 0)
  3891. hpriv->hp_flags |= MV_HP_FLAG_MSI;
  3892. mv_dump_pci_cfg(pdev, 0x68);
  3893. mv_print_info(host);
  3894. pci_set_master(pdev);
  3895. pci_try_set_mwi(pdev);
  3896. return ata_host_activate(host, pdev->irq, mv_interrupt, IRQF_SHARED,
  3897. IS_GEN_I(hpriv) ? &mv5_sht : &mv6_sht);
  3898. }
  3899. #ifdef CONFIG_PM_SLEEP
  3900. static int mv_pci_device_resume(struct pci_dev *pdev)
  3901. {
  3902. struct ata_host *host = pci_get_drvdata(pdev);
  3903. int rc;
  3904. rc = ata_pci_device_do_resume(pdev);
  3905. if (rc)
  3906. return rc;
  3907. /* initialize adapter */
  3908. rc = mv_init_host(host);
  3909. if (rc)
  3910. return rc;
  3911. ata_host_resume(host);
  3912. return 0;
  3913. }
  3914. #endif
  3915. #endif
  3916. static int __init mv_init(void)
  3917. {
  3918. int rc = -ENODEV;
  3919. #ifdef CONFIG_PCI
  3920. rc = pci_register_driver(&mv_pci_driver);
  3921. if (rc < 0)
  3922. return rc;
  3923. #endif
  3924. rc = platform_driver_register(&mv_platform_driver);
  3925. #ifdef CONFIG_PCI
  3926. if (rc < 0)
  3927. pci_unregister_driver(&mv_pci_driver);
  3928. #endif
  3929. return rc;
  3930. }
  3931. static void __exit mv_exit(void)
  3932. {
  3933. #ifdef CONFIG_PCI
  3934. pci_unregister_driver(&mv_pci_driver);
  3935. #endif
  3936. platform_driver_unregister(&mv_platform_driver);
  3937. }
  3938. MODULE_AUTHOR("Brett Russ");
  3939. MODULE_DESCRIPTION("SCSI low-level driver for Marvell SATA controllers");
  3940. MODULE_LICENSE("GPL");
  3941. MODULE_DEVICE_TABLE(pci, mv_pci_tbl);
  3942. MODULE_VERSION(DRV_VERSION);
  3943. MODULE_ALIAS("platform:" DRV_NAME);
  3944. module_init(mv_init);
  3945. module_exit(mv_exit);