linit.c 46 KB

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  1. /*
  2. * Adaptec AAC series RAID controller driver
  3. * (c) Copyright 2001 Red Hat Inc.
  4. *
  5. * based on the old aacraid driver that is..
  6. * Adaptec aacraid device driver for Linux.
  7. *
  8. * Copyright (c) 2000-2010 Adaptec, Inc.
  9. * 2010 PMC-Sierra, Inc. (aacraid@pmc-sierra.com)
  10. *
  11. * This program is free software; you can redistribute it and/or modify
  12. * it under the terms of the GNU General Public License as published by
  13. * the Free Software Foundation; either version 2, or (at your option)
  14. * any later version.
  15. *
  16. * This program is distributed in the hope that it will be useful,
  17. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  18. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  19. * GNU General Public License for more details.
  20. *
  21. * You should have received a copy of the GNU General Public License
  22. * along with this program; see the file COPYING. If not, write to
  23. * the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
  24. *
  25. * Module Name:
  26. * linit.c
  27. *
  28. * Abstract: Linux Driver entry module for Adaptec RAID Array Controller
  29. */
  30. #include <linux/compat.h>
  31. #include <linux/blkdev.h>
  32. #include <linux/completion.h>
  33. #include <linux/init.h>
  34. #include <linux/interrupt.h>
  35. #include <linux/kernel.h>
  36. #include <linux/module.h>
  37. #include <linux/moduleparam.h>
  38. #include <linux/pci.h>
  39. #include <linux/pci-aspm.h>
  40. #include <linux/slab.h>
  41. #include <linux/mutex.h>
  42. #include <linux/spinlock.h>
  43. #include <linux/syscalls.h>
  44. #include <linux/delay.h>
  45. #include <linux/kthread.h>
  46. #include <scsi/scsi.h>
  47. #include <scsi/scsi_cmnd.h>
  48. #include <scsi/scsi_device.h>
  49. #include <scsi/scsi_host.h>
  50. #include <scsi/scsi_tcq.h>
  51. #include <scsi/scsicam.h>
  52. #include <scsi/scsi_eh.h>
  53. #include "aacraid.h"
  54. #define AAC_DRIVER_VERSION "1.2-0"
  55. #ifndef AAC_DRIVER_BRANCH
  56. #define AAC_DRIVER_BRANCH ""
  57. #endif
  58. #define AAC_DRIVERNAME "aacraid"
  59. #ifdef AAC_DRIVER_BUILD
  60. #define _str(x) #x
  61. #define str(x) _str(x)
  62. #define AAC_DRIVER_FULL_VERSION AAC_DRIVER_VERSION "[" str(AAC_DRIVER_BUILD) "]" AAC_DRIVER_BRANCH
  63. #else
  64. #define AAC_DRIVER_FULL_VERSION AAC_DRIVER_VERSION AAC_DRIVER_BRANCH
  65. #endif
  66. MODULE_AUTHOR("Red Hat Inc and Adaptec");
  67. MODULE_DESCRIPTION("Dell PERC2, 2/Si, 3/Si, 3/Di, "
  68. "Adaptec Advanced Raid Products, "
  69. "HP NetRAID-4M, IBM ServeRAID & ICP SCSI driver");
  70. MODULE_LICENSE("GPL");
  71. MODULE_VERSION(AAC_DRIVER_FULL_VERSION);
  72. static DEFINE_MUTEX(aac_mutex);
  73. static LIST_HEAD(aac_devices);
  74. static int aac_cfg_major = -1;
  75. char aac_driver_version[] = AAC_DRIVER_FULL_VERSION;
  76. /*
  77. * Because of the way Linux names scsi devices, the order in this table has
  78. * become important. Check for on-board Raid first, add-in cards second.
  79. *
  80. * Note: The last field is used to index into aac_drivers below.
  81. */
  82. static const struct pci_device_id aac_pci_tbl[] = {
  83. { 0x1028, 0x0001, 0x1028, 0x0001, 0, 0, 0 }, /* PERC 2/Si (Iguana/PERC2Si) */
  84. { 0x1028, 0x0002, 0x1028, 0x0002, 0, 0, 1 }, /* PERC 3/Di (Opal/PERC3Di) */
  85. { 0x1028, 0x0003, 0x1028, 0x0003, 0, 0, 2 }, /* PERC 3/Si (SlimFast/PERC3Si */
  86. { 0x1028, 0x0004, 0x1028, 0x00d0, 0, 0, 3 }, /* PERC 3/Di (Iguana FlipChip/PERC3DiF */
  87. { 0x1028, 0x0002, 0x1028, 0x00d1, 0, 0, 4 }, /* PERC 3/Di (Viper/PERC3DiV) */
  88. { 0x1028, 0x0002, 0x1028, 0x00d9, 0, 0, 5 }, /* PERC 3/Di (Lexus/PERC3DiL) */
  89. { 0x1028, 0x000a, 0x1028, 0x0106, 0, 0, 6 }, /* PERC 3/Di (Jaguar/PERC3DiJ) */
  90. { 0x1028, 0x000a, 0x1028, 0x011b, 0, 0, 7 }, /* PERC 3/Di (Dagger/PERC3DiD) */
  91. { 0x1028, 0x000a, 0x1028, 0x0121, 0, 0, 8 }, /* PERC 3/Di (Boxster/PERC3DiB) */
  92. { 0x9005, 0x0283, 0x9005, 0x0283, 0, 0, 9 }, /* catapult */
  93. { 0x9005, 0x0284, 0x9005, 0x0284, 0, 0, 10 }, /* tomcat */
  94. { 0x9005, 0x0285, 0x9005, 0x0286, 0, 0, 11 }, /* Adaptec 2120S (Crusader) */
  95. { 0x9005, 0x0285, 0x9005, 0x0285, 0, 0, 12 }, /* Adaptec 2200S (Vulcan) */
  96. { 0x9005, 0x0285, 0x9005, 0x0287, 0, 0, 13 }, /* Adaptec 2200S (Vulcan-2m) */
  97. { 0x9005, 0x0285, 0x17aa, 0x0286, 0, 0, 14 }, /* Legend S220 (Legend Crusader) */
  98. { 0x9005, 0x0285, 0x17aa, 0x0287, 0, 0, 15 }, /* Legend S230 (Legend Vulcan) */
  99. { 0x9005, 0x0285, 0x9005, 0x0288, 0, 0, 16 }, /* Adaptec 3230S (Harrier) */
  100. { 0x9005, 0x0285, 0x9005, 0x0289, 0, 0, 17 }, /* Adaptec 3240S (Tornado) */
  101. { 0x9005, 0x0285, 0x9005, 0x028a, 0, 0, 18 }, /* ASR-2020ZCR SCSI PCI-X ZCR (Skyhawk) */
  102. { 0x9005, 0x0285, 0x9005, 0x028b, 0, 0, 19 }, /* ASR-2025ZCR SCSI SO-DIMM PCI-X ZCR (Terminator) */
  103. { 0x9005, 0x0286, 0x9005, 0x028c, 0, 0, 20 }, /* ASR-2230S + ASR-2230SLP PCI-X (Lancer) */
  104. { 0x9005, 0x0286, 0x9005, 0x028d, 0, 0, 21 }, /* ASR-2130S (Lancer) */
  105. { 0x9005, 0x0286, 0x9005, 0x029b, 0, 0, 22 }, /* AAR-2820SA (Intruder) */
  106. { 0x9005, 0x0286, 0x9005, 0x029c, 0, 0, 23 }, /* AAR-2620SA (Intruder) */
  107. { 0x9005, 0x0286, 0x9005, 0x029d, 0, 0, 24 }, /* AAR-2420SA (Intruder) */
  108. { 0x9005, 0x0286, 0x9005, 0x029e, 0, 0, 25 }, /* ICP9024RO (Lancer) */
  109. { 0x9005, 0x0286, 0x9005, 0x029f, 0, 0, 26 }, /* ICP9014RO (Lancer) */
  110. { 0x9005, 0x0286, 0x9005, 0x02a0, 0, 0, 27 }, /* ICP9047MA (Lancer) */
  111. { 0x9005, 0x0286, 0x9005, 0x02a1, 0, 0, 28 }, /* ICP9087MA (Lancer) */
  112. { 0x9005, 0x0286, 0x9005, 0x02a3, 0, 0, 29 }, /* ICP5445AU (Hurricane44) */
  113. { 0x9005, 0x0285, 0x9005, 0x02a4, 0, 0, 30 }, /* ICP9085LI (Marauder-X) */
  114. { 0x9005, 0x0285, 0x9005, 0x02a5, 0, 0, 31 }, /* ICP5085BR (Marauder-E) */
  115. { 0x9005, 0x0286, 0x9005, 0x02a6, 0, 0, 32 }, /* ICP9067MA (Intruder-6) */
  116. { 0x9005, 0x0287, 0x9005, 0x0800, 0, 0, 33 }, /* Themisto Jupiter Platform */
  117. { 0x9005, 0x0200, 0x9005, 0x0200, 0, 0, 33 }, /* Themisto Jupiter Platform */
  118. { 0x9005, 0x0286, 0x9005, 0x0800, 0, 0, 34 }, /* Callisto Jupiter Platform */
  119. { 0x9005, 0x0285, 0x9005, 0x028e, 0, 0, 35 }, /* ASR-2020SA SATA PCI-X ZCR (Skyhawk) */
  120. { 0x9005, 0x0285, 0x9005, 0x028f, 0, 0, 36 }, /* ASR-2025SA SATA SO-DIMM PCI-X ZCR (Terminator) */
  121. { 0x9005, 0x0285, 0x9005, 0x0290, 0, 0, 37 }, /* AAR-2410SA PCI SATA 4ch (Jaguar II) */
  122. { 0x9005, 0x0285, 0x1028, 0x0291, 0, 0, 38 }, /* CERC SATA RAID 2 PCI SATA 6ch (DellCorsair) */
  123. { 0x9005, 0x0285, 0x9005, 0x0292, 0, 0, 39 }, /* AAR-2810SA PCI SATA 8ch (Corsair-8) */
  124. { 0x9005, 0x0285, 0x9005, 0x0293, 0, 0, 40 }, /* AAR-21610SA PCI SATA 16ch (Corsair-16) */
  125. { 0x9005, 0x0285, 0x9005, 0x0294, 0, 0, 41 }, /* ESD SO-DIMM PCI-X SATA ZCR (Prowler) */
  126. { 0x9005, 0x0285, 0x103C, 0x3227, 0, 0, 42 }, /* AAR-2610SA PCI SATA 6ch */
  127. { 0x9005, 0x0285, 0x9005, 0x0296, 0, 0, 43 }, /* ASR-2240S (SabreExpress) */
  128. { 0x9005, 0x0285, 0x9005, 0x0297, 0, 0, 44 }, /* ASR-4005 */
  129. { 0x9005, 0x0285, 0x1014, 0x02F2, 0, 0, 45 }, /* IBM 8i (AvonPark) */
  130. { 0x9005, 0x0285, 0x1014, 0x0312, 0, 0, 45 }, /* IBM 8i (AvonPark Lite) */
  131. { 0x9005, 0x0286, 0x1014, 0x9580, 0, 0, 46 }, /* IBM 8k/8k-l8 (Aurora) */
  132. { 0x9005, 0x0286, 0x1014, 0x9540, 0, 0, 47 }, /* IBM 8k/8k-l4 (Aurora Lite) */
  133. { 0x9005, 0x0285, 0x9005, 0x0298, 0, 0, 48 }, /* ASR-4000 (BlackBird) */
  134. { 0x9005, 0x0285, 0x9005, 0x0299, 0, 0, 49 }, /* ASR-4800SAS (Marauder-X) */
  135. { 0x9005, 0x0285, 0x9005, 0x029a, 0, 0, 50 }, /* ASR-4805SAS (Marauder-E) */
  136. { 0x9005, 0x0286, 0x9005, 0x02a2, 0, 0, 51 }, /* ASR-3800 (Hurricane44) */
  137. { 0x9005, 0x0285, 0x1028, 0x0287, 0, 0, 52 }, /* Perc 320/DC*/
  138. { 0x1011, 0x0046, 0x9005, 0x0365, 0, 0, 53 }, /* Adaptec 5400S (Mustang)*/
  139. { 0x1011, 0x0046, 0x9005, 0x0364, 0, 0, 54 }, /* Adaptec 5400S (Mustang)*/
  140. { 0x1011, 0x0046, 0x9005, 0x1364, 0, 0, 55 }, /* Dell PERC2/QC */
  141. { 0x1011, 0x0046, 0x103c, 0x10c2, 0, 0, 56 }, /* HP NetRAID-4M */
  142. { 0x9005, 0x0285, 0x1028, PCI_ANY_ID, 0, 0, 57 }, /* Dell Catchall */
  143. { 0x9005, 0x0285, 0x17aa, PCI_ANY_ID, 0, 0, 58 }, /* Legend Catchall */
  144. { 0x9005, 0x0285, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 59 }, /* Adaptec Catch All */
  145. { 0x9005, 0x0286, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 60 }, /* Adaptec Rocket Catch All */
  146. { 0x9005, 0x0288, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 61 }, /* Adaptec NEMER/ARK Catch All */
  147. { 0x9005, 0x028b, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 62 }, /* Adaptec PMC Series 6 (Tupelo) */
  148. { 0x9005, 0x028c, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 63 }, /* Adaptec PMC Series 7 (Denali) */
  149. { 0x9005, 0x028d, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 64 }, /* Adaptec PMC Series 8 */
  150. { 0x9005, 0x028f, PCI_ANY_ID, PCI_ANY_ID, 0, 0, 65 }, /* Adaptec PMC Series 9 */
  151. { 0,}
  152. };
  153. MODULE_DEVICE_TABLE(pci, aac_pci_tbl);
  154. /*
  155. * dmb - For now we add the number of channels to this structure.
  156. * In the future we should add a fib that reports the number of channels
  157. * for the card. At that time we can remove the channels from here
  158. */
  159. static struct aac_driver_ident aac_drivers[] = {
  160. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 2/Si (Iguana/PERC2Si) */
  161. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Opal/PERC3Di) */
  162. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Si (SlimFast/PERC3Si */
  163. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Iguana FlipChip/PERC3DiF */
  164. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Viper/PERC3DiV) */
  165. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Lexus/PERC3DiL) */
  166. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 1, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Jaguar/PERC3DiJ) */
  167. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Dagger/PERC3DiD) */
  168. { aac_rx_init, "percraid", "DELL ", "PERCRAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* PERC 3/Di (Boxster/PERC3DiB) */
  169. { aac_rx_init, "aacraid", "ADAPTEC ", "catapult ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* catapult */
  170. { aac_rx_init, "aacraid", "ADAPTEC ", "tomcat ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* tomcat */
  171. { aac_rx_init, "aacraid", "ADAPTEC ", "Adaptec 2120S ", 1, AAC_QUIRK_31BIT | AAC_QUIRK_34SG }, /* Adaptec 2120S (Crusader) */
  172. { aac_rx_init, "aacraid", "ADAPTEC ", "Adaptec 2200S ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG }, /* Adaptec 2200S (Vulcan) */
  173. { aac_rx_init, "aacraid", "ADAPTEC ", "Adaptec 2200S ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* Adaptec 2200S (Vulcan-2m) */
  174. { aac_rx_init, "aacraid", "Legend ", "Legend S220 ", 1, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* Legend S220 (Legend Crusader) */
  175. { aac_rx_init, "aacraid", "Legend ", "Legend S230 ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* Legend S230 (Legend Vulcan) */
  176. { aac_rx_init, "aacraid", "ADAPTEC ", "Adaptec 3230S ", 2 }, /* Adaptec 3230S (Harrier) */
  177. { aac_rx_init, "aacraid", "ADAPTEC ", "Adaptec 3240S ", 2 }, /* Adaptec 3240S (Tornado) */
  178. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2020ZCR ", 2 }, /* ASR-2020ZCR SCSI PCI-X ZCR (Skyhawk) */
  179. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2025ZCR ", 2 }, /* ASR-2025ZCR SCSI SO-DIMM PCI-X ZCR (Terminator) */
  180. { aac_rkt_init, "aacraid", "ADAPTEC ", "ASR-2230S PCI-X ", 2 }, /* ASR-2230S + ASR-2230SLP PCI-X (Lancer) */
  181. { aac_rkt_init, "aacraid", "ADAPTEC ", "ASR-2130S PCI-X ", 1 }, /* ASR-2130S (Lancer) */
  182. { aac_rkt_init, "aacraid", "ADAPTEC ", "AAR-2820SA ", 1 }, /* AAR-2820SA (Intruder) */
  183. { aac_rkt_init, "aacraid", "ADAPTEC ", "AAR-2620SA ", 1 }, /* AAR-2620SA (Intruder) */
  184. { aac_rkt_init, "aacraid", "ADAPTEC ", "AAR-2420SA ", 1 }, /* AAR-2420SA (Intruder) */
  185. { aac_rkt_init, "aacraid", "ICP ", "ICP9024RO ", 2 }, /* ICP9024RO (Lancer) */
  186. { aac_rkt_init, "aacraid", "ICP ", "ICP9014RO ", 1 }, /* ICP9014RO (Lancer) */
  187. { aac_rkt_init, "aacraid", "ICP ", "ICP9047MA ", 1 }, /* ICP9047MA (Lancer) */
  188. { aac_rkt_init, "aacraid", "ICP ", "ICP9087MA ", 1 }, /* ICP9087MA (Lancer) */
  189. { aac_rkt_init, "aacraid", "ICP ", "ICP5445AU ", 1 }, /* ICP5445AU (Hurricane44) */
  190. { aac_rx_init, "aacraid", "ICP ", "ICP9085LI ", 1 }, /* ICP9085LI (Marauder-X) */
  191. { aac_rx_init, "aacraid", "ICP ", "ICP5085BR ", 1 }, /* ICP5085BR (Marauder-E) */
  192. { aac_rkt_init, "aacraid", "ICP ", "ICP9067MA ", 1 }, /* ICP9067MA (Intruder-6) */
  193. { NULL , "aacraid", "ADAPTEC ", "Themisto ", 0, AAC_QUIRK_SLAVE }, /* Jupiter Platform */
  194. { aac_rkt_init, "aacraid", "ADAPTEC ", "Callisto ", 2, AAC_QUIRK_MASTER }, /* Jupiter Platform */
  195. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2020SA ", 1 }, /* ASR-2020SA SATA PCI-X ZCR (Skyhawk) */
  196. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2025SA ", 1 }, /* ASR-2025SA SATA SO-DIMM PCI-X ZCR (Terminator) */
  197. { aac_rx_init, "aacraid", "ADAPTEC ", "AAR-2410SA SATA ", 1, AAC_QUIRK_17SG }, /* AAR-2410SA PCI SATA 4ch (Jaguar II) */
  198. { aac_rx_init, "aacraid", "DELL ", "CERC SR2 ", 1, AAC_QUIRK_17SG }, /* CERC SATA RAID 2 PCI SATA 6ch (DellCorsair) */
  199. { aac_rx_init, "aacraid", "ADAPTEC ", "AAR-2810SA SATA ", 1, AAC_QUIRK_17SG }, /* AAR-2810SA PCI SATA 8ch (Corsair-8) */
  200. { aac_rx_init, "aacraid", "ADAPTEC ", "AAR-21610SA SATA", 1, AAC_QUIRK_17SG }, /* AAR-21610SA PCI SATA 16ch (Corsair-16) */
  201. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2026ZCR ", 1 }, /* ESD SO-DIMM PCI-X SATA ZCR (Prowler) */
  202. { aac_rx_init, "aacraid", "ADAPTEC ", "AAR-2610SA ", 1 }, /* SATA 6Ch (Bearcat) */
  203. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-2240S ", 1 }, /* ASR-2240S (SabreExpress) */
  204. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-4005 ", 1 }, /* ASR-4005 */
  205. { aac_rx_init, "ServeRAID","IBM ", "ServeRAID 8i ", 1 }, /* IBM 8i (AvonPark) */
  206. { aac_rkt_init, "ServeRAID","IBM ", "ServeRAID 8k-l8 ", 1 }, /* IBM 8k/8k-l8 (Aurora) */
  207. { aac_rkt_init, "ServeRAID","IBM ", "ServeRAID 8k-l4 ", 1 }, /* IBM 8k/8k-l4 (Aurora Lite) */
  208. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-4000 ", 1 }, /* ASR-4000 (BlackBird & AvonPark) */
  209. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-4800SAS ", 1 }, /* ASR-4800SAS (Marauder-X) */
  210. { aac_rx_init, "aacraid", "ADAPTEC ", "ASR-4805SAS ", 1 }, /* ASR-4805SAS (Marauder-E) */
  211. { aac_rkt_init, "aacraid", "ADAPTEC ", "ASR-3800 ", 1 }, /* ASR-3800 (Hurricane44) */
  212. { aac_rx_init, "percraid", "DELL ", "PERC 320/DC ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG }, /* Perc 320/DC*/
  213. { aac_sa_init, "aacraid", "ADAPTEC ", "Adaptec 5400S ", 4, AAC_QUIRK_34SG }, /* Adaptec 5400S (Mustang)*/
  214. { aac_sa_init, "aacraid", "ADAPTEC ", "AAC-364 ", 4, AAC_QUIRK_34SG }, /* Adaptec 5400S (Mustang)*/
  215. { aac_sa_init, "percraid", "DELL ", "PERCRAID ", 4, AAC_QUIRK_34SG }, /* Dell PERC2/QC */
  216. { aac_sa_init, "hpnraid", "HP ", "NetRAID ", 4, AAC_QUIRK_34SG }, /* HP NetRAID-4M */
  217. { aac_rx_init, "aacraid", "DELL ", "RAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* Dell Catchall */
  218. { aac_rx_init, "aacraid", "Legend ", "RAID ", 2, AAC_QUIRK_31BIT | AAC_QUIRK_34SG | AAC_QUIRK_SCSI_32 }, /* Legend Catchall */
  219. { aac_rx_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec Catch All */
  220. { aac_rkt_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec Rocket Catch All */
  221. { aac_nark_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec NEMER/ARK Catch All */
  222. { aac_src_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec PMC Series 6 (Tupelo) */
  223. { aac_srcv_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec PMC Series 7 (Denali) */
  224. { aac_srcv_init, "aacraid", "ADAPTEC ", "RAID ", 2 }, /* Adaptec PMC Series 8 */
  225. { aac_srcv_init, "aacraid", "ADAPTEC ", "RAID ", 2 } /* Adaptec PMC Series 9 */
  226. };
  227. /**
  228. * aac_queuecommand - queue a SCSI command
  229. * @cmd: SCSI command to queue
  230. * @done: Function to call on command completion
  231. *
  232. * Queues a command for execution by the associated Host Adapter.
  233. *
  234. * TODO: unify with aac_scsi_cmd().
  235. */
  236. static int aac_queuecommand_lck(struct scsi_cmnd *cmd, void (*done)(struct scsi_cmnd *))
  237. {
  238. struct Scsi_Host *host = cmd->device->host;
  239. struct aac_dev *dev = (struct aac_dev *)host->hostdata;
  240. u32 count = 0;
  241. cmd->scsi_done = done;
  242. for (; count < (host->can_queue + AAC_NUM_MGT_FIB); ++count) {
  243. struct fib * fib = &dev->fibs[count];
  244. struct scsi_cmnd * command;
  245. if (fib->hw_fib_va->header.XferState &&
  246. ((command = fib->callback_data)) &&
  247. (command == cmd) &&
  248. (cmd->SCp.phase == AAC_OWNER_FIRMWARE))
  249. return 0; /* Already owned by Adapter */
  250. }
  251. cmd->SCp.phase = AAC_OWNER_LOWLEVEL;
  252. return (aac_scsi_cmd(cmd) ? FAILED : 0);
  253. }
  254. static DEF_SCSI_QCMD(aac_queuecommand)
  255. /**
  256. * aac_info - Returns the host adapter name
  257. * @shost: Scsi host to report on
  258. *
  259. * Returns a static string describing the device in question
  260. */
  261. static const char *aac_info(struct Scsi_Host *shost)
  262. {
  263. struct aac_dev *dev = (struct aac_dev *)shost->hostdata;
  264. return aac_drivers[dev->cardtype].name;
  265. }
  266. /**
  267. * aac_get_driver_ident
  268. * @devtype: index into lookup table
  269. *
  270. * Returns a pointer to the entry in the driver lookup table.
  271. */
  272. struct aac_driver_ident* aac_get_driver_ident(int devtype)
  273. {
  274. return &aac_drivers[devtype];
  275. }
  276. /**
  277. * aac_biosparm - return BIOS parameters for disk
  278. * @sdev: The scsi device corresponding to the disk
  279. * @bdev: the block device corresponding to the disk
  280. * @capacity: the sector capacity of the disk
  281. * @geom: geometry block to fill in
  282. *
  283. * Return the Heads/Sectors/Cylinders BIOS Disk Parameters for Disk.
  284. * The default disk geometry is 64 heads, 32 sectors, and the appropriate
  285. * number of cylinders so as not to exceed drive capacity. In order for
  286. * disks equal to or larger than 1 GB to be addressable by the BIOS
  287. * without exceeding the BIOS limitation of 1024 cylinders, Extended
  288. * Translation should be enabled. With Extended Translation enabled,
  289. * drives between 1 GB inclusive and 2 GB exclusive are given a disk
  290. * geometry of 128 heads and 32 sectors, and drives above 2 GB inclusive
  291. * are given a disk geometry of 255 heads and 63 sectors. However, if
  292. * the BIOS detects that the Extended Translation setting does not match
  293. * the geometry in the partition table, then the translation inferred
  294. * from the partition table will be used by the BIOS, and a warning may
  295. * be displayed.
  296. */
  297. static int aac_biosparm(struct scsi_device *sdev, struct block_device *bdev,
  298. sector_t capacity, int *geom)
  299. {
  300. struct diskparm *param = (struct diskparm *)geom;
  301. unsigned char *buf;
  302. dprintk((KERN_DEBUG "aac_biosparm.\n"));
  303. /*
  304. * Assuming extended translation is enabled - #REVISIT#
  305. */
  306. if (capacity >= 2 * 1024 * 1024) { /* 1 GB in 512 byte sectors */
  307. if(capacity >= 4 * 1024 * 1024) { /* 2 GB in 512 byte sectors */
  308. param->heads = 255;
  309. param->sectors = 63;
  310. } else {
  311. param->heads = 128;
  312. param->sectors = 32;
  313. }
  314. } else {
  315. param->heads = 64;
  316. param->sectors = 32;
  317. }
  318. param->cylinders = cap_to_cyls(capacity, param->heads * param->sectors);
  319. /*
  320. * Read the first 1024 bytes from the disk device, if the boot
  321. * sector partition table is valid, search for a partition table
  322. * entry whose end_head matches one of the standard geometry
  323. * translations ( 64/32, 128/32, 255/63 ).
  324. */
  325. buf = scsi_bios_ptable(bdev);
  326. if (!buf)
  327. return 0;
  328. if(*(__le16 *)(buf + 0x40) == cpu_to_le16(0xaa55)) {
  329. struct partition *first = (struct partition * )buf;
  330. struct partition *entry = first;
  331. int saved_cylinders = param->cylinders;
  332. int num;
  333. unsigned char end_head, end_sec;
  334. for(num = 0; num < 4; num++) {
  335. end_head = entry->end_head;
  336. end_sec = entry->end_sector & 0x3f;
  337. if(end_head == 63) {
  338. param->heads = 64;
  339. param->sectors = 32;
  340. break;
  341. } else if(end_head == 127) {
  342. param->heads = 128;
  343. param->sectors = 32;
  344. break;
  345. } else if(end_head == 254) {
  346. param->heads = 255;
  347. param->sectors = 63;
  348. break;
  349. }
  350. entry++;
  351. }
  352. if (num == 4) {
  353. end_head = first->end_head;
  354. end_sec = first->end_sector & 0x3f;
  355. }
  356. param->cylinders = cap_to_cyls(capacity, param->heads * param->sectors);
  357. if (num < 4 && end_sec == param->sectors) {
  358. if (param->cylinders != saved_cylinders)
  359. dprintk((KERN_DEBUG "Adopting geometry: heads=%d, sectors=%d from partition table %d.\n",
  360. param->heads, param->sectors, num));
  361. } else if (end_head > 0 || end_sec > 0) {
  362. dprintk((KERN_DEBUG "Strange geometry: heads=%d, sectors=%d in partition table %d.\n",
  363. end_head + 1, end_sec, num));
  364. dprintk((KERN_DEBUG "Using geometry: heads=%d, sectors=%d.\n",
  365. param->heads, param->sectors));
  366. }
  367. }
  368. kfree(buf);
  369. return 0;
  370. }
  371. /**
  372. * aac_slave_configure - compute queue depths
  373. * @sdev: SCSI device we are considering
  374. *
  375. * Selects queue depths for each target device based on the host adapter's
  376. * total capacity and the queue depth supported by the target device.
  377. * A queue depth of one automatically disables tagged queueing.
  378. */
  379. static int aac_slave_configure(struct scsi_device *sdev)
  380. {
  381. struct aac_dev *aac = (struct aac_dev *)sdev->host->hostdata;
  382. if (aac->jbod && (sdev->type == TYPE_DISK))
  383. sdev->removable = 1;
  384. if ((sdev->type == TYPE_DISK) &&
  385. (sdev_channel(sdev) != CONTAINER_CHANNEL) &&
  386. (!aac->jbod || sdev->inq_periph_qual) &&
  387. (!aac->raid_scsi_mode || (sdev_channel(sdev) != 2))) {
  388. if (expose_physicals == 0)
  389. return -ENXIO;
  390. if (expose_physicals < 0)
  391. sdev->no_uld_attach = 1;
  392. }
  393. if (sdev->tagged_supported && (sdev->type == TYPE_DISK) &&
  394. (!aac->raid_scsi_mode || (sdev_channel(sdev) != 2)) &&
  395. !sdev->no_uld_attach) {
  396. struct scsi_device * dev;
  397. struct Scsi_Host *host = sdev->host;
  398. unsigned num_lsu = 0;
  399. unsigned num_one = 0;
  400. unsigned depth;
  401. unsigned cid;
  402. /*
  403. * Firmware has an individual device recovery time typically
  404. * of 35 seconds, give us a margin.
  405. */
  406. if (sdev->request_queue->rq_timeout < (45 * HZ))
  407. blk_queue_rq_timeout(sdev->request_queue, 45*HZ);
  408. for (cid = 0; cid < aac->maximum_num_containers; ++cid)
  409. if (aac->fsa_dev[cid].valid)
  410. ++num_lsu;
  411. __shost_for_each_device(dev, host) {
  412. if (dev->tagged_supported && (dev->type == TYPE_DISK) &&
  413. (!aac->raid_scsi_mode ||
  414. (sdev_channel(sdev) != 2)) &&
  415. !dev->no_uld_attach) {
  416. if ((sdev_channel(dev) != CONTAINER_CHANNEL)
  417. || !aac->fsa_dev[sdev_id(dev)].valid)
  418. ++num_lsu;
  419. } else
  420. ++num_one;
  421. }
  422. if (num_lsu == 0)
  423. ++num_lsu;
  424. depth = (host->can_queue - num_one) / num_lsu;
  425. if (depth > 256)
  426. depth = 256;
  427. else if (depth < 2)
  428. depth = 2;
  429. scsi_adjust_queue_depth(sdev, MSG_ORDERED_TAG, depth);
  430. } else
  431. scsi_adjust_queue_depth(sdev, 0, 1);
  432. return 0;
  433. }
  434. /**
  435. * aac_change_queue_depth - alter queue depths
  436. * @sdev: SCSI device we are considering
  437. * @depth: desired queue depth
  438. *
  439. * Alters queue depths for target device based on the host adapter's
  440. * total capacity and the queue depth supported by the target device.
  441. */
  442. static int aac_change_queue_depth(struct scsi_device *sdev, int depth,
  443. int reason)
  444. {
  445. if (reason != SCSI_QDEPTH_DEFAULT)
  446. return -EOPNOTSUPP;
  447. if (sdev->tagged_supported && (sdev->type == TYPE_DISK) &&
  448. (sdev_channel(sdev) == CONTAINER_CHANNEL)) {
  449. struct scsi_device * dev;
  450. struct Scsi_Host *host = sdev->host;
  451. unsigned num = 0;
  452. __shost_for_each_device(dev, host) {
  453. if (dev->tagged_supported && (dev->type == TYPE_DISK) &&
  454. (sdev_channel(dev) == CONTAINER_CHANNEL))
  455. ++num;
  456. ++num;
  457. }
  458. if (num >= host->can_queue)
  459. num = host->can_queue - 1;
  460. if (depth > (host->can_queue - num))
  461. depth = host->can_queue - num;
  462. if (depth > 256)
  463. depth = 256;
  464. else if (depth < 2)
  465. depth = 2;
  466. scsi_adjust_queue_depth(sdev, MSG_ORDERED_TAG, depth);
  467. } else
  468. scsi_adjust_queue_depth(sdev, 0, 1);
  469. return sdev->queue_depth;
  470. }
  471. static ssize_t aac_show_raid_level(struct device *dev, struct device_attribute *attr, char *buf)
  472. {
  473. struct scsi_device *sdev = to_scsi_device(dev);
  474. struct aac_dev *aac = (struct aac_dev *)(sdev->host->hostdata);
  475. if (sdev_channel(sdev) != CONTAINER_CHANNEL)
  476. return snprintf(buf, PAGE_SIZE, sdev->no_uld_attach
  477. ? "Hidden\n" :
  478. ((aac->jbod && (sdev->type == TYPE_DISK)) ? "JBOD\n" : ""));
  479. return snprintf(buf, PAGE_SIZE, "%s\n",
  480. get_container_type(aac->fsa_dev[sdev_id(sdev)].type));
  481. }
  482. static struct device_attribute aac_raid_level_attr = {
  483. .attr = {
  484. .name = "level",
  485. .mode = S_IRUGO,
  486. },
  487. .show = aac_show_raid_level
  488. };
  489. static struct device_attribute *aac_dev_attrs[] = {
  490. &aac_raid_level_attr,
  491. NULL,
  492. };
  493. static int aac_ioctl(struct scsi_device *sdev, int cmd, void __user * arg)
  494. {
  495. struct aac_dev *dev = (struct aac_dev *)sdev->host->hostdata;
  496. if (!capable(CAP_SYS_RAWIO))
  497. return -EPERM;
  498. return aac_do_ioctl(dev, cmd, arg);
  499. }
  500. static int aac_eh_abort(struct scsi_cmnd* cmd)
  501. {
  502. struct scsi_device * dev = cmd->device;
  503. struct Scsi_Host * host = dev->host;
  504. struct aac_dev * aac = (struct aac_dev *)host->hostdata;
  505. int count;
  506. int ret = FAILED;
  507. printk(KERN_ERR "%s: Host adapter abort request (%d,%d,%d,%d)\n",
  508. AAC_DRIVERNAME,
  509. host->host_no, sdev_channel(dev), sdev_id(dev), dev->lun);
  510. switch (cmd->cmnd[0]) {
  511. case SERVICE_ACTION_IN:
  512. if (!(aac->raw_io_interface) ||
  513. !(aac->raw_io_64) ||
  514. ((cmd->cmnd[1] & 0x1f) != SAI_READ_CAPACITY_16))
  515. break;
  516. case INQUIRY:
  517. case READ_CAPACITY:
  518. /* Mark associated FIB to not complete, eh handler does this */
  519. for (count = 0; count < (host->can_queue + AAC_NUM_MGT_FIB); ++count) {
  520. struct fib * fib = &aac->fibs[count];
  521. if (fib->hw_fib_va->header.XferState &&
  522. (fib->flags & FIB_CONTEXT_FLAG) &&
  523. (fib->callback_data == cmd)) {
  524. fib->flags |= FIB_CONTEXT_FLAG_TIMED_OUT;
  525. cmd->SCp.phase = AAC_OWNER_ERROR_HANDLER;
  526. ret = SUCCESS;
  527. }
  528. }
  529. break;
  530. case TEST_UNIT_READY:
  531. /* Mark associated FIB to not complete, eh handler does this */
  532. for (count = 0; count < (host->can_queue + AAC_NUM_MGT_FIB); ++count) {
  533. struct scsi_cmnd * command;
  534. struct fib * fib = &aac->fibs[count];
  535. if ((fib->hw_fib_va->header.XferState & cpu_to_le32(Async | NoResponseExpected)) &&
  536. (fib->flags & FIB_CONTEXT_FLAG) &&
  537. ((command = fib->callback_data)) &&
  538. (command->device == cmd->device)) {
  539. fib->flags |= FIB_CONTEXT_FLAG_TIMED_OUT;
  540. command->SCp.phase = AAC_OWNER_ERROR_HANDLER;
  541. if (command == cmd)
  542. ret = SUCCESS;
  543. }
  544. }
  545. }
  546. return ret;
  547. }
  548. /*
  549. * aac_eh_reset - Reset command handling
  550. * @scsi_cmd: SCSI command block causing the reset
  551. *
  552. */
  553. static int aac_eh_reset(struct scsi_cmnd* cmd)
  554. {
  555. struct scsi_device * dev = cmd->device;
  556. struct Scsi_Host * host = dev->host;
  557. struct scsi_cmnd * command;
  558. int count;
  559. struct aac_dev * aac = (struct aac_dev *)host->hostdata;
  560. unsigned long flags;
  561. /* Mark the associated FIB to not complete, eh handler does this */
  562. for (count = 0; count < (host->can_queue + AAC_NUM_MGT_FIB); ++count) {
  563. struct fib * fib = &aac->fibs[count];
  564. if (fib->hw_fib_va->header.XferState &&
  565. (fib->flags & FIB_CONTEXT_FLAG) &&
  566. (fib->callback_data == cmd)) {
  567. fib->flags |= FIB_CONTEXT_FLAG_TIMED_OUT;
  568. cmd->SCp.phase = AAC_OWNER_ERROR_HANDLER;
  569. }
  570. }
  571. printk(KERN_ERR "%s: Host adapter reset request. SCSI hang ?\n",
  572. AAC_DRIVERNAME);
  573. if ((count = aac_check_health(aac)))
  574. return count;
  575. /*
  576. * Wait for all commands to complete to this specific
  577. * target (block maximum 60 seconds).
  578. */
  579. for (count = 60; count; --count) {
  580. int active = aac->in_reset;
  581. if (active == 0)
  582. __shost_for_each_device(dev, host) {
  583. spin_lock_irqsave(&dev->list_lock, flags);
  584. list_for_each_entry(command, &dev->cmd_list, list) {
  585. if ((command != cmd) &&
  586. (command->SCp.phase == AAC_OWNER_FIRMWARE)) {
  587. active++;
  588. break;
  589. }
  590. }
  591. spin_unlock_irqrestore(&dev->list_lock, flags);
  592. if (active)
  593. break;
  594. }
  595. /*
  596. * We can exit If all the commands are complete
  597. */
  598. if (active == 0)
  599. return SUCCESS;
  600. ssleep(1);
  601. }
  602. printk(KERN_ERR "%s: SCSI bus appears hung\n", AAC_DRIVERNAME);
  603. /*
  604. * This adapter needs a blind reset, only do so for Adapters that
  605. * support a register, instead of a commanded, reset.
  606. */
  607. if (((aac->supplement_adapter_info.SupportedOptions2 &
  608. AAC_OPTION_MU_RESET) ||
  609. (aac->supplement_adapter_info.SupportedOptions2 &
  610. AAC_OPTION_DOORBELL_RESET)) &&
  611. aac_check_reset &&
  612. ((aac_check_reset != 1) ||
  613. !(aac->supplement_adapter_info.SupportedOptions2 &
  614. AAC_OPTION_IGNORE_RESET)))
  615. aac_reset_adapter(aac, 2); /* Bypass wait for command quiesce */
  616. return SUCCESS; /* Cause an immediate retry of the command with a ten second delay after successful tur */
  617. }
  618. /**
  619. * aac_cfg_open - open a configuration file
  620. * @inode: inode being opened
  621. * @file: file handle attached
  622. *
  623. * Called when the configuration device is opened. Does the needed
  624. * set up on the handle and then returns
  625. *
  626. * Bugs: This needs extending to check a given adapter is present
  627. * so we can support hot plugging, and to ref count adapters.
  628. */
  629. static int aac_cfg_open(struct inode *inode, struct file *file)
  630. {
  631. struct aac_dev *aac;
  632. unsigned minor_number = iminor(inode);
  633. int err = -ENODEV;
  634. mutex_lock(&aac_mutex); /* BKL pushdown: nothing else protects this list */
  635. list_for_each_entry(aac, &aac_devices, entry) {
  636. if (aac->id == minor_number) {
  637. file->private_data = aac;
  638. err = 0;
  639. break;
  640. }
  641. }
  642. mutex_unlock(&aac_mutex);
  643. return err;
  644. }
  645. /**
  646. * aac_cfg_ioctl - AAC configuration request
  647. * @inode: inode of device
  648. * @file: file handle
  649. * @cmd: ioctl command code
  650. * @arg: argument
  651. *
  652. * Handles a configuration ioctl. Currently this involves wrapping it
  653. * up and feeding it into the nasty windowsalike glue layer.
  654. *
  655. * Bugs: Needs locking against parallel ioctls lower down
  656. * Bugs: Needs to handle hot plugging
  657. */
  658. static long aac_cfg_ioctl(struct file *file,
  659. unsigned int cmd, unsigned long arg)
  660. {
  661. int ret;
  662. if (!capable(CAP_SYS_RAWIO))
  663. return -EPERM;
  664. mutex_lock(&aac_mutex);
  665. ret = aac_do_ioctl(file->private_data, cmd, (void __user *)arg);
  666. mutex_unlock(&aac_mutex);
  667. return ret;
  668. }
  669. #ifdef CONFIG_COMPAT
  670. static long aac_compat_do_ioctl(struct aac_dev *dev, unsigned cmd, unsigned long arg)
  671. {
  672. long ret;
  673. mutex_lock(&aac_mutex);
  674. switch (cmd) {
  675. case FSACTL_MINIPORT_REV_CHECK:
  676. case FSACTL_SENDFIB:
  677. case FSACTL_OPEN_GET_ADAPTER_FIB:
  678. case FSACTL_CLOSE_GET_ADAPTER_FIB:
  679. case FSACTL_SEND_RAW_SRB:
  680. case FSACTL_GET_PCI_INFO:
  681. case FSACTL_QUERY_DISK:
  682. case FSACTL_DELETE_DISK:
  683. case FSACTL_FORCE_DELETE_DISK:
  684. case FSACTL_GET_CONTAINERS:
  685. case FSACTL_SEND_LARGE_FIB:
  686. ret = aac_do_ioctl(dev, cmd, (void __user *)arg);
  687. break;
  688. case FSACTL_GET_NEXT_ADAPTER_FIB: {
  689. struct fib_ioctl __user *f;
  690. f = compat_alloc_user_space(sizeof(*f));
  691. ret = 0;
  692. if (clear_user(f, sizeof(*f)))
  693. ret = -EFAULT;
  694. if (copy_in_user(f, (void __user *)arg, sizeof(struct fib_ioctl) - sizeof(u32)))
  695. ret = -EFAULT;
  696. if (!ret)
  697. ret = aac_do_ioctl(dev, cmd, f);
  698. break;
  699. }
  700. default:
  701. ret = -ENOIOCTLCMD;
  702. break;
  703. }
  704. mutex_unlock(&aac_mutex);
  705. return ret;
  706. }
  707. static int aac_compat_ioctl(struct scsi_device *sdev, int cmd, void __user *arg)
  708. {
  709. struct aac_dev *dev = (struct aac_dev *)sdev->host->hostdata;
  710. if (!capable(CAP_SYS_RAWIO))
  711. return -EPERM;
  712. return aac_compat_do_ioctl(dev, cmd, (unsigned long)arg);
  713. }
  714. static long aac_compat_cfg_ioctl(struct file *file, unsigned cmd, unsigned long arg)
  715. {
  716. if (!capable(CAP_SYS_RAWIO))
  717. return -EPERM;
  718. return aac_compat_do_ioctl(file->private_data, cmd, arg);
  719. }
  720. #endif
  721. static ssize_t aac_show_model(struct device *device,
  722. struct device_attribute *attr, char *buf)
  723. {
  724. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  725. int len;
  726. if (dev->supplement_adapter_info.AdapterTypeText[0]) {
  727. char * cp = dev->supplement_adapter_info.AdapterTypeText;
  728. while (*cp && *cp != ' ')
  729. ++cp;
  730. while (*cp == ' ')
  731. ++cp;
  732. len = snprintf(buf, PAGE_SIZE, "%s\n", cp);
  733. } else
  734. len = snprintf(buf, PAGE_SIZE, "%s\n",
  735. aac_drivers[dev->cardtype].model);
  736. return len;
  737. }
  738. static ssize_t aac_show_vendor(struct device *device,
  739. struct device_attribute *attr, char *buf)
  740. {
  741. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  742. int len;
  743. if (dev->supplement_adapter_info.AdapterTypeText[0]) {
  744. char * cp = dev->supplement_adapter_info.AdapterTypeText;
  745. while (*cp && *cp != ' ')
  746. ++cp;
  747. len = snprintf(buf, PAGE_SIZE, "%.*s\n",
  748. (int)(cp - (char *)dev->supplement_adapter_info.AdapterTypeText),
  749. dev->supplement_adapter_info.AdapterTypeText);
  750. } else
  751. len = snprintf(buf, PAGE_SIZE, "%s\n",
  752. aac_drivers[dev->cardtype].vname);
  753. return len;
  754. }
  755. static ssize_t aac_show_flags(struct device *cdev,
  756. struct device_attribute *attr, char *buf)
  757. {
  758. int len = 0;
  759. struct aac_dev *dev = (struct aac_dev*)class_to_shost(cdev)->hostdata;
  760. if (nblank(dprintk(x)))
  761. len = snprintf(buf, PAGE_SIZE, "dprintk\n");
  762. #ifdef AAC_DETAILED_STATUS_INFO
  763. len += snprintf(buf + len, PAGE_SIZE - len,
  764. "AAC_DETAILED_STATUS_INFO\n");
  765. #endif
  766. if (dev->raw_io_interface && dev->raw_io_64)
  767. len += snprintf(buf + len, PAGE_SIZE - len,
  768. "SAI_READ_CAPACITY_16\n");
  769. if (dev->jbod)
  770. len += snprintf(buf + len, PAGE_SIZE - len, "SUPPORTED_JBOD\n");
  771. if (dev->supplement_adapter_info.SupportedOptions2 &
  772. AAC_OPTION_POWER_MANAGEMENT)
  773. len += snprintf(buf + len, PAGE_SIZE - len,
  774. "SUPPORTED_POWER_MANAGEMENT\n");
  775. if (dev->msi)
  776. len += snprintf(buf + len, PAGE_SIZE - len, "PCI_HAS_MSI\n");
  777. return len;
  778. }
  779. static ssize_t aac_show_kernel_version(struct device *device,
  780. struct device_attribute *attr,
  781. char *buf)
  782. {
  783. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  784. int len, tmp;
  785. tmp = le32_to_cpu(dev->adapter_info.kernelrev);
  786. len = snprintf(buf, PAGE_SIZE, "%d.%d-%d[%d]\n",
  787. tmp >> 24, (tmp >> 16) & 0xff, tmp & 0xff,
  788. le32_to_cpu(dev->adapter_info.kernelbuild));
  789. return len;
  790. }
  791. static ssize_t aac_show_monitor_version(struct device *device,
  792. struct device_attribute *attr,
  793. char *buf)
  794. {
  795. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  796. int len, tmp;
  797. tmp = le32_to_cpu(dev->adapter_info.monitorrev);
  798. len = snprintf(buf, PAGE_SIZE, "%d.%d-%d[%d]\n",
  799. tmp >> 24, (tmp >> 16) & 0xff, tmp & 0xff,
  800. le32_to_cpu(dev->adapter_info.monitorbuild));
  801. return len;
  802. }
  803. static ssize_t aac_show_bios_version(struct device *device,
  804. struct device_attribute *attr,
  805. char *buf)
  806. {
  807. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  808. int len, tmp;
  809. tmp = le32_to_cpu(dev->adapter_info.biosrev);
  810. len = snprintf(buf, PAGE_SIZE, "%d.%d-%d[%d]\n",
  811. tmp >> 24, (tmp >> 16) & 0xff, tmp & 0xff,
  812. le32_to_cpu(dev->adapter_info.biosbuild));
  813. return len;
  814. }
  815. static ssize_t aac_show_serial_number(struct device *device,
  816. struct device_attribute *attr, char *buf)
  817. {
  818. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  819. int len = 0;
  820. if (le32_to_cpu(dev->adapter_info.serial[0]) != 0xBAD0)
  821. len = snprintf(buf, 16, "%06X\n",
  822. le32_to_cpu(dev->adapter_info.serial[0]));
  823. if (len &&
  824. !memcmp(&dev->supplement_adapter_info.MfgPcbaSerialNo[
  825. sizeof(dev->supplement_adapter_info.MfgPcbaSerialNo)-len],
  826. buf, len-1))
  827. len = snprintf(buf, 16, "%.*s\n",
  828. (int)sizeof(dev->supplement_adapter_info.MfgPcbaSerialNo),
  829. dev->supplement_adapter_info.MfgPcbaSerialNo);
  830. return min(len, 16);
  831. }
  832. static ssize_t aac_show_max_channel(struct device *device,
  833. struct device_attribute *attr, char *buf)
  834. {
  835. return snprintf(buf, PAGE_SIZE, "%d\n",
  836. class_to_shost(device)->max_channel);
  837. }
  838. static ssize_t aac_show_max_id(struct device *device,
  839. struct device_attribute *attr, char *buf)
  840. {
  841. return snprintf(buf, PAGE_SIZE, "%d\n",
  842. class_to_shost(device)->max_id);
  843. }
  844. static ssize_t aac_store_reset_adapter(struct device *device,
  845. struct device_attribute *attr,
  846. const char *buf, size_t count)
  847. {
  848. int retval = -EACCES;
  849. if (!capable(CAP_SYS_ADMIN))
  850. return retval;
  851. retval = aac_reset_adapter((struct aac_dev*)class_to_shost(device)->hostdata, buf[0] == '!');
  852. if (retval >= 0)
  853. retval = count;
  854. return retval;
  855. }
  856. static ssize_t aac_show_reset_adapter(struct device *device,
  857. struct device_attribute *attr,
  858. char *buf)
  859. {
  860. struct aac_dev *dev = (struct aac_dev*)class_to_shost(device)->hostdata;
  861. int len, tmp;
  862. tmp = aac_adapter_check_health(dev);
  863. if ((tmp == 0) && dev->in_reset)
  864. tmp = -EBUSY;
  865. len = snprintf(buf, PAGE_SIZE, "0x%x\n", tmp);
  866. return len;
  867. }
  868. static struct device_attribute aac_model = {
  869. .attr = {
  870. .name = "model",
  871. .mode = S_IRUGO,
  872. },
  873. .show = aac_show_model,
  874. };
  875. static struct device_attribute aac_vendor = {
  876. .attr = {
  877. .name = "vendor",
  878. .mode = S_IRUGO,
  879. },
  880. .show = aac_show_vendor,
  881. };
  882. static struct device_attribute aac_flags = {
  883. .attr = {
  884. .name = "flags",
  885. .mode = S_IRUGO,
  886. },
  887. .show = aac_show_flags,
  888. };
  889. static struct device_attribute aac_kernel_version = {
  890. .attr = {
  891. .name = "hba_kernel_version",
  892. .mode = S_IRUGO,
  893. },
  894. .show = aac_show_kernel_version,
  895. };
  896. static struct device_attribute aac_monitor_version = {
  897. .attr = {
  898. .name = "hba_monitor_version",
  899. .mode = S_IRUGO,
  900. },
  901. .show = aac_show_monitor_version,
  902. };
  903. static struct device_attribute aac_bios_version = {
  904. .attr = {
  905. .name = "hba_bios_version",
  906. .mode = S_IRUGO,
  907. },
  908. .show = aac_show_bios_version,
  909. };
  910. static struct device_attribute aac_serial_number = {
  911. .attr = {
  912. .name = "serial_number",
  913. .mode = S_IRUGO,
  914. },
  915. .show = aac_show_serial_number,
  916. };
  917. static struct device_attribute aac_max_channel = {
  918. .attr = {
  919. .name = "max_channel",
  920. .mode = S_IRUGO,
  921. },
  922. .show = aac_show_max_channel,
  923. };
  924. static struct device_attribute aac_max_id = {
  925. .attr = {
  926. .name = "max_id",
  927. .mode = S_IRUGO,
  928. },
  929. .show = aac_show_max_id,
  930. };
  931. static struct device_attribute aac_reset = {
  932. .attr = {
  933. .name = "reset_host",
  934. .mode = S_IWUSR|S_IRUGO,
  935. },
  936. .store = aac_store_reset_adapter,
  937. .show = aac_show_reset_adapter,
  938. };
  939. static struct device_attribute *aac_attrs[] = {
  940. &aac_model,
  941. &aac_vendor,
  942. &aac_flags,
  943. &aac_kernel_version,
  944. &aac_monitor_version,
  945. &aac_bios_version,
  946. &aac_serial_number,
  947. &aac_max_channel,
  948. &aac_max_id,
  949. &aac_reset,
  950. NULL
  951. };
  952. ssize_t aac_get_serial_number(struct device *device, char *buf)
  953. {
  954. return aac_show_serial_number(device, &aac_serial_number, buf);
  955. }
  956. static const struct file_operations aac_cfg_fops = {
  957. .owner = THIS_MODULE,
  958. .unlocked_ioctl = aac_cfg_ioctl,
  959. #ifdef CONFIG_COMPAT
  960. .compat_ioctl = aac_compat_cfg_ioctl,
  961. #endif
  962. .open = aac_cfg_open,
  963. .llseek = noop_llseek,
  964. };
  965. static struct scsi_host_template aac_driver_template = {
  966. .module = THIS_MODULE,
  967. .name = "AAC",
  968. .proc_name = AAC_DRIVERNAME,
  969. .info = aac_info,
  970. .ioctl = aac_ioctl,
  971. #ifdef CONFIG_COMPAT
  972. .compat_ioctl = aac_compat_ioctl,
  973. #endif
  974. .queuecommand = aac_queuecommand,
  975. .bios_param = aac_biosparm,
  976. .shost_attrs = aac_attrs,
  977. .slave_configure = aac_slave_configure,
  978. .change_queue_depth = aac_change_queue_depth,
  979. .sdev_attrs = aac_dev_attrs,
  980. .eh_abort_handler = aac_eh_abort,
  981. .eh_host_reset_handler = aac_eh_reset,
  982. .can_queue = AAC_NUM_IO_FIB,
  983. .this_id = MAXIMUM_NUM_CONTAINERS,
  984. .sg_tablesize = 16,
  985. .max_sectors = 128,
  986. #if (AAC_NUM_IO_FIB > 256)
  987. .cmd_per_lun = 256,
  988. #else
  989. .cmd_per_lun = AAC_NUM_IO_FIB,
  990. #endif
  991. .use_clustering = ENABLE_CLUSTERING,
  992. .emulated = 1,
  993. };
  994. static void __aac_shutdown(struct aac_dev * aac)
  995. {
  996. if (aac->aif_thread) {
  997. int i;
  998. /* Clear out events first */
  999. for (i = 0; i < (aac->scsi_host_ptr->can_queue + AAC_NUM_MGT_FIB); i++) {
  1000. struct fib *fib = &aac->fibs[i];
  1001. if (!(fib->hw_fib_va->header.XferState & cpu_to_le32(NoResponseExpected | Async)) &&
  1002. (fib->hw_fib_va->header.XferState & cpu_to_le32(ResponseExpected)))
  1003. up(&fib->event_wait);
  1004. }
  1005. kthread_stop(aac->thread);
  1006. }
  1007. aac_send_shutdown(aac);
  1008. aac_adapter_disable_int(aac);
  1009. free_irq(aac->pdev->irq, aac);
  1010. if (aac->msi)
  1011. pci_disable_msi(aac->pdev);
  1012. }
  1013. static int aac_probe_one(struct pci_dev *pdev, const struct pci_device_id *id)
  1014. {
  1015. unsigned index = id->driver_data;
  1016. struct Scsi_Host *shost;
  1017. struct aac_dev *aac;
  1018. struct list_head *insert = &aac_devices;
  1019. int error = -ENODEV;
  1020. int unique_id = 0;
  1021. u64 dmamask;
  1022. extern int aac_sync_mode;
  1023. list_for_each_entry(aac, &aac_devices, entry) {
  1024. if (aac->id > unique_id)
  1025. break;
  1026. insert = &aac->entry;
  1027. unique_id++;
  1028. }
  1029. pci_disable_link_state(pdev, PCIE_LINK_STATE_L0S | PCIE_LINK_STATE_L1 |
  1030. PCIE_LINK_STATE_CLKPM);
  1031. error = pci_enable_device(pdev);
  1032. if (error)
  1033. goto out;
  1034. error = -ENODEV;
  1035. /*
  1036. * If the quirk31 bit is set, the adapter needs adapter
  1037. * to driver communication memory to be allocated below 2gig
  1038. */
  1039. if (aac_drivers[index].quirks & AAC_QUIRK_31BIT)
  1040. dmamask = DMA_BIT_MASK(31);
  1041. else
  1042. dmamask = DMA_BIT_MASK(32);
  1043. if (pci_set_dma_mask(pdev, dmamask) ||
  1044. pci_set_consistent_dma_mask(pdev, dmamask))
  1045. goto out_disable_pdev;
  1046. pci_set_master(pdev);
  1047. shost = scsi_host_alloc(&aac_driver_template, sizeof(struct aac_dev));
  1048. if (!shost)
  1049. goto out_disable_pdev;
  1050. shost->irq = pdev->irq;
  1051. shost->unique_id = unique_id;
  1052. shost->max_cmd_len = 16;
  1053. aac = (struct aac_dev *)shost->hostdata;
  1054. aac->base_start = pci_resource_start(pdev, 0);
  1055. aac->scsi_host_ptr = shost;
  1056. aac->pdev = pdev;
  1057. aac->name = aac_driver_template.name;
  1058. aac->id = shost->unique_id;
  1059. aac->cardtype = index;
  1060. INIT_LIST_HEAD(&aac->entry);
  1061. aac->fibs = kzalloc(sizeof(struct fib) * (shost->can_queue + AAC_NUM_MGT_FIB), GFP_KERNEL);
  1062. if (!aac->fibs)
  1063. goto out_free_host;
  1064. spin_lock_init(&aac->fib_lock);
  1065. /*
  1066. * Map in the registers from the adapter.
  1067. */
  1068. aac->base_size = AAC_MIN_FOOTPRINT_SIZE;
  1069. if ((*aac_drivers[index].init)(aac))
  1070. goto out_unmap;
  1071. if (aac->sync_mode) {
  1072. if (aac_sync_mode)
  1073. printk(KERN_INFO "%s%d: Sync. mode enforced "
  1074. "by driver parameter. This will cause "
  1075. "a significant performance decrease!\n",
  1076. aac->name,
  1077. aac->id);
  1078. else
  1079. printk(KERN_INFO "%s%d: Async. mode not supported "
  1080. "by current driver, sync. mode enforced."
  1081. "\nPlease update driver to get full performance.\n",
  1082. aac->name,
  1083. aac->id);
  1084. }
  1085. /*
  1086. * Start any kernel threads needed
  1087. */
  1088. aac->thread = kthread_run(aac_command_thread, aac, AAC_DRIVERNAME);
  1089. if (IS_ERR(aac->thread)) {
  1090. printk(KERN_ERR "aacraid: Unable to create command thread.\n");
  1091. error = PTR_ERR(aac->thread);
  1092. aac->thread = NULL;
  1093. goto out_deinit;
  1094. }
  1095. /*
  1096. * If we had set a smaller DMA mask earlier, set it to 4gig
  1097. * now since the adapter can dma data to at least a 4gig
  1098. * address space.
  1099. */
  1100. if (aac_drivers[index].quirks & AAC_QUIRK_31BIT)
  1101. if (pci_set_dma_mask(pdev, DMA_BIT_MASK(32)))
  1102. goto out_deinit;
  1103. aac->maximum_num_channels = aac_drivers[index].channels;
  1104. error = aac_get_adapter_info(aac);
  1105. if (error < 0)
  1106. goto out_deinit;
  1107. /*
  1108. * Lets override negotiations and drop the maximum SG limit to 34
  1109. */
  1110. if ((aac_drivers[index].quirks & AAC_QUIRK_34SG) &&
  1111. (shost->sg_tablesize > 34)) {
  1112. shost->sg_tablesize = 34;
  1113. shost->max_sectors = (shost->sg_tablesize * 8) + 112;
  1114. }
  1115. if ((aac_drivers[index].quirks & AAC_QUIRK_17SG) &&
  1116. (shost->sg_tablesize > 17)) {
  1117. shost->sg_tablesize = 17;
  1118. shost->max_sectors = (shost->sg_tablesize * 8) + 112;
  1119. }
  1120. error = pci_set_dma_max_seg_size(pdev,
  1121. (aac->adapter_info.options & AAC_OPT_NEW_COMM) ?
  1122. (shost->max_sectors << 9) : 65536);
  1123. if (error)
  1124. goto out_deinit;
  1125. /*
  1126. * Firmware printf works only with older firmware.
  1127. */
  1128. if (aac_drivers[index].quirks & AAC_QUIRK_34SG)
  1129. aac->printf_enabled = 1;
  1130. else
  1131. aac->printf_enabled = 0;
  1132. /*
  1133. * max channel will be the physical channels plus 1 virtual channel
  1134. * all containers are on the virtual channel 0 (CONTAINER_CHANNEL)
  1135. * physical channels are address by their actual physical number+1
  1136. */
  1137. if (aac->nondasd_support || expose_physicals || aac->jbod)
  1138. shost->max_channel = aac->maximum_num_channels;
  1139. else
  1140. shost->max_channel = 0;
  1141. aac_get_config_status(aac, 0);
  1142. aac_get_containers(aac);
  1143. list_add(&aac->entry, insert);
  1144. shost->max_id = aac->maximum_num_containers;
  1145. if (shost->max_id < aac->maximum_num_physicals)
  1146. shost->max_id = aac->maximum_num_physicals;
  1147. if (shost->max_id < MAXIMUM_NUM_CONTAINERS)
  1148. shost->max_id = MAXIMUM_NUM_CONTAINERS;
  1149. else
  1150. shost->this_id = shost->max_id;
  1151. /*
  1152. * dmb - we may need to move the setting of these parms somewhere else once
  1153. * we get a fib that can report the actual numbers
  1154. */
  1155. shost->max_lun = AAC_MAX_LUN;
  1156. pci_set_drvdata(pdev, shost);
  1157. error = scsi_add_host(shost, &pdev->dev);
  1158. if (error)
  1159. goto out_deinit;
  1160. scsi_scan_host(shost);
  1161. return 0;
  1162. out_deinit:
  1163. __aac_shutdown(aac);
  1164. out_unmap:
  1165. aac_fib_map_free(aac);
  1166. if (aac->comm_addr)
  1167. pci_free_consistent(aac->pdev, aac->comm_size, aac->comm_addr,
  1168. aac->comm_phys);
  1169. kfree(aac->queues);
  1170. aac_adapter_ioremap(aac, 0);
  1171. kfree(aac->fibs);
  1172. kfree(aac->fsa_dev);
  1173. out_free_host:
  1174. scsi_host_put(shost);
  1175. out_disable_pdev:
  1176. pci_disable_device(pdev);
  1177. out:
  1178. return error;
  1179. }
  1180. static void aac_shutdown(struct pci_dev *dev)
  1181. {
  1182. struct Scsi_Host *shost = pci_get_drvdata(dev);
  1183. scsi_block_requests(shost);
  1184. __aac_shutdown((struct aac_dev *)shost->hostdata);
  1185. }
  1186. static void aac_remove_one(struct pci_dev *pdev)
  1187. {
  1188. struct Scsi_Host *shost = pci_get_drvdata(pdev);
  1189. struct aac_dev *aac = (struct aac_dev *)shost->hostdata;
  1190. scsi_remove_host(shost);
  1191. __aac_shutdown(aac);
  1192. aac_fib_map_free(aac);
  1193. pci_free_consistent(aac->pdev, aac->comm_size, aac->comm_addr,
  1194. aac->comm_phys);
  1195. kfree(aac->queues);
  1196. aac_adapter_ioremap(aac, 0);
  1197. kfree(aac->fibs);
  1198. kfree(aac->fsa_dev);
  1199. list_del(&aac->entry);
  1200. scsi_host_put(shost);
  1201. pci_disable_device(pdev);
  1202. if (list_empty(&aac_devices)) {
  1203. unregister_chrdev(aac_cfg_major, "aac");
  1204. aac_cfg_major = -1;
  1205. }
  1206. }
  1207. static struct pci_driver aac_pci_driver = {
  1208. .name = AAC_DRIVERNAME,
  1209. .id_table = aac_pci_tbl,
  1210. .probe = aac_probe_one,
  1211. .remove = aac_remove_one,
  1212. .shutdown = aac_shutdown,
  1213. };
  1214. static int __init aac_init(void)
  1215. {
  1216. int error;
  1217. printk(KERN_INFO "Adaptec %s driver %s\n",
  1218. AAC_DRIVERNAME, aac_driver_version);
  1219. error = pci_register_driver(&aac_pci_driver);
  1220. if (error < 0)
  1221. return error;
  1222. aac_cfg_major = register_chrdev( 0, "aac", &aac_cfg_fops);
  1223. if (aac_cfg_major < 0) {
  1224. printk(KERN_WARNING
  1225. "aacraid: unable to register \"aac\" device.\n");
  1226. }
  1227. return 0;
  1228. }
  1229. static void __exit aac_exit(void)
  1230. {
  1231. if (aac_cfg_major > -1)
  1232. unregister_chrdev(aac_cfg_major, "aac");
  1233. pci_unregister_driver(&aac_pci_driver);
  1234. }
  1235. module_init(aac_init);
  1236. module_exit(aac_exit);