1 /*
2  * ipr.c -- driver for IBM Power Linux RAID adapters
3  *
4  * Written By: Brian King <brking@us.ibm.com>, IBM Corporation
5  *
6  * Copyright (C) 2003, 2004 IBM Corporation
7  *
8  * This program is free software; you can redistribute it and/or modify
9  * it under the terms of the GNU General Public License as published by
10  * the Free Software Foundation; either version 2 of the License, or
11  * (at your option) any later version.
12  *
13  * This program is distributed in the hope that it will be useful,
14  * but WITHOUT ANY WARRANTY; without even the implied warranty of
15  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
16  * GNU General Public License for more details.
17  *
18  * You should have received a copy of the GNU General Public License
19  * along with this program; if not, write to the Free Software
20  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
21  *
22  */
23 
24 /*
25  * Notes:
26  *
27  * This driver is used to control the following SCSI adapters:
28  *
29  * IBM iSeries: 5702, 5703, 2780, 5709, 570A, 570B
30  *
31  * IBM pSeries: PCI-X Dual Channel Ultra 320 SCSI RAID Adapter
32  *              PCI-X Dual Channel Ultra 320 SCSI Adapter
33  *              PCI-X Dual Channel Ultra 320 SCSI RAID Enablement Card
34  *              Embedded SCSI adapter on p615 and p655 systems
35  *
36  * Supported Hardware Features:
37  *	- Ultra 320 SCSI controller
38  *	- PCI-X host interface
39  *	- Embedded PowerPC RISC Processor and Hardware XOR DMA Engine
40  *	- Non-Volatile Write Cache
41  *	- Supports attachment of non-RAID disks, tape, and optical devices
42  *	- RAID Levels 0, 5, 10
43  *	- Hot spare
44  *	- Background Parity Checking
45  *	- Background Data Scrubbing
46  *	- Ability to increase the capacity of an existing RAID 5 disk array
47  *		by adding disks
48  *
49  * Driver Features:
50  *	- Tagged command queuing
51  *	- Adapter microcode download
52  *	- PCI hot plug
53  *	- SCSI device hot plug
54  *
55  */
56 
57 #include <linux/fs.h>
58 #include <linux/init.h>
59 #include <linux/types.h>
60 #include <linux/errno.h>
61 #include <linux/kernel.h>
62 #include <linux/slab.h>
63 #include <linux/vmalloc.h>
64 #include <linux/ioport.h>
65 #include <linux/delay.h>
66 #include <linux/pci.h>
67 #include <linux/wait.h>
68 #include <linux/spinlock.h>
69 #include <linux/sched.h>
70 #include <linux/interrupt.h>
71 #include <linux/blkdev.h>
72 #include <linux/firmware.h>
73 #include <linux/module.h>
74 #include <linux/moduleparam.h>
75 #include <linux/libata.h>
76 #include <linux/hdreg.h>
77 #include <linux/reboot.h>
78 #include <linux/stringify.h>
79 #include <asm/io.h>
80 #include <asm/irq.h>
81 #include <asm/processor.h>
82 #include <scsi/scsi.h>
83 #include <scsi/scsi_host.h>
84 #include <scsi/scsi_tcq.h>
85 #include <scsi/scsi_eh.h>
86 #include <scsi/scsi_cmnd.h>
87 #include "ipr.h"
88 
89 /*
90  *   Global Data
91  */
92 static LIST_HEAD(ipr_ioa_head);
93 static unsigned int ipr_log_level = IPR_DEFAULT_LOG_LEVEL;
94 static unsigned int ipr_max_speed = 1;
95 static int ipr_testmode = 0;
96 static unsigned int ipr_fastfail = 0;
97 static unsigned int ipr_transop_timeout = 0;
98 static unsigned int ipr_debug = 0;
99 static unsigned int ipr_max_devs = IPR_DEFAULT_SIS64_DEVS;
100 static unsigned int ipr_dual_ioa_raid = 1;
101 static unsigned int ipr_number_of_msix = 2;
102 static unsigned int ipr_fast_reboot;
103 static DEFINE_SPINLOCK(ipr_driver_lock);
104 
105 /* This table describes the differences between DMA controller chips */
106 static const struct ipr_chip_cfg_t ipr_chip_cfg[] = {
107 	{ /* Gemstone, Citrine, Obsidian, and Obsidian-E */
108 		.mailbox = 0x0042C,
109 		.max_cmds = 100,
110 		.cache_line_size = 0x20,
111 		.clear_isr = 1,
112 		.iopoll_weight = 0,
113 		{
114 			.set_interrupt_mask_reg = 0x0022C,
115 			.clr_interrupt_mask_reg = 0x00230,
116 			.clr_interrupt_mask_reg32 = 0x00230,
117 			.sense_interrupt_mask_reg = 0x0022C,
118 			.sense_interrupt_mask_reg32 = 0x0022C,
119 			.clr_interrupt_reg = 0x00228,
120 			.clr_interrupt_reg32 = 0x00228,
121 			.sense_interrupt_reg = 0x00224,
122 			.sense_interrupt_reg32 = 0x00224,
123 			.ioarrin_reg = 0x00404,
124 			.sense_uproc_interrupt_reg = 0x00214,
125 			.sense_uproc_interrupt_reg32 = 0x00214,
126 			.set_uproc_interrupt_reg = 0x00214,
127 			.set_uproc_interrupt_reg32 = 0x00214,
128 			.clr_uproc_interrupt_reg = 0x00218,
129 			.clr_uproc_interrupt_reg32 = 0x00218
130 		}
131 	},
132 	{ /* Snipe and Scamp */
133 		.mailbox = 0x0052C,
134 		.max_cmds = 100,
135 		.cache_line_size = 0x20,
136 		.clear_isr = 1,
137 		.iopoll_weight = 0,
138 		{
139 			.set_interrupt_mask_reg = 0x00288,
140 			.clr_interrupt_mask_reg = 0x0028C,
141 			.clr_interrupt_mask_reg32 = 0x0028C,
142 			.sense_interrupt_mask_reg = 0x00288,
143 			.sense_interrupt_mask_reg32 = 0x00288,
144 			.clr_interrupt_reg = 0x00284,
145 			.clr_interrupt_reg32 = 0x00284,
146 			.sense_interrupt_reg = 0x00280,
147 			.sense_interrupt_reg32 = 0x00280,
148 			.ioarrin_reg = 0x00504,
149 			.sense_uproc_interrupt_reg = 0x00290,
150 			.sense_uproc_interrupt_reg32 = 0x00290,
151 			.set_uproc_interrupt_reg = 0x00290,
152 			.set_uproc_interrupt_reg32 = 0x00290,
153 			.clr_uproc_interrupt_reg = 0x00294,
154 			.clr_uproc_interrupt_reg32 = 0x00294
155 		}
156 	},
157 	{ /* CRoC */
158 		.mailbox = 0x00044,
159 		.max_cmds = 1000,
160 		.cache_line_size = 0x20,
161 		.clear_isr = 0,
162 		.iopoll_weight = 64,
163 		{
164 			.set_interrupt_mask_reg = 0x00010,
165 			.clr_interrupt_mask_reg = 0x00018,
166 			.clr_interrupt_mask_reg32 = 0x0001C,
167 			.sense_interrupt_mask_reg = 0x00010,
168 			.sense_interrupt_mask_reg32 = 0x00014,
169 			.clr_interrupt_reg = 0x00008,
170 			.clr_interrupt_reg32 = 0x0000C,
171 			.sense_interrupt_reg = 0x00000,
172 			.sense_interrupt_reg32 = 0x00004,
173 			.ioarrin_reg = 0x00070,
174 			.sense_uproc_interrupt_reg = 0x00020,
175 			.sense_uproc_interrupt_reg32 = 0x00024,
176 			.set_uproc_interrupt_reg = 0x00020,
177 			.set_uproc_interrupt_reg32 = 0x00024,
178 			.clr_uproc_interrupt_reg = 0x00028,
179 			.clr_uproc_interrupt_reg32 = 0x0002C,
180 			.init_feedback_reg = 0x0005C,
181 			.dump_addr_reg = 0x00064,
182 			.dump_data_reg = 0x00068,
183 			.endian_swap_reg = 0x00084
184 		}
185 	},
186 };
187 
188 static const struct ipr_chip_t ipr_chip[] = {
189 	{ PCI_VENDOR_ID_MYLEX, PCI_DEVICE_ID_IBM_GEMSTONE, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[0] },
190 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CITRINE, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[0] },
191 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_OBSIDIAN, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[0] },
192 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[0] },
193 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN_E, IPR_USE_MSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[0] },
194 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_SNIPE, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[1] },
195 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_SCAMP, IPR_USE_LSI, IPR_SIS32, IPR_PCI_CFG, &ipr_chip_cfg[1] },
196 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2, IPR_USE_MSI, IPR_SIS64, IPR_MMIO, &ipr_chip_cfg[2] },
197 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE, IPR_USE_MSI, IPR_SIS64, IPR_MMIO, &ipr_chip_cfg[2] }
198 };
199 
200 static int ipr_max_bus_speeds[] = {
201 	IPR_80MBs_SCSI_RATE, IPR_U160_SCSI_RATE, IPR_U320_SCSI_RATE
202 };
203 
204 MODULE_AUTHOR("Brian King <brking@us.ibm.com>");
205 MODULE_DESCRIPTION("IBM Power RAID SCSI Adapter Driver");
206 module_param_named(max_speed, ipr_max_speed, uint, 0);
207 MODULE_PARM_DESC(max_speed, "Maximum bus speed (0-2). Default: 1=U160. Speeds: 0=80 MB/s, 1=U160, 2=U320");
208 module_param_named(log_level, ipr_log_level, uint, 0);
209 MODULE_PARM_DESC(log_level, "Set to 0 - 4 for increasing verbosity of device driver");
210 module_param_named(testmode, ipr_testmode, int, 0);
211 MODULE_PARM_DESC(testmode, "DANGEROUS!!! Allows unsupported configurations");
212 module_param_named(fastfail, ipr_fastfail, int, S_IRUGO | S_IWUSR);
213 MODULE_PARM_DESC(fastfail, "Reduce timeouts and retries");
214 module_param_named(transop_timeout, ipr_transop_timeout, int, 0);
215 MODULE_PARM_DESC(transop_timeout, "Time in seconds to wait for adapter to come operational (default: 300)");
216 module_param_named(debug, ipr_debug, int, S_IRUGO | S_IWUSR);
217 MODULE_PARM_DESC(debug, "Enable device driver debugging logging. Set to 1 to enable. (default: 0)");
218 module_param_named(dual_ioa_raid, ipr_dual_ioa_raid, int, 0);
219 MODULE_PARM_DESC(dual_ioa_raid, "Enable dual adapter RAID support. Set to 1 to enable. (default: 1)");
220 module_param_named(max_devs, ipr_max_devs, int, 0);
221 MODULE_PARM_DESC(max_devs, "Specify the maximum number of physical devices. "
222 		 "[Default=" __stringify(IPR_DEFAULT_SIS64_DEVS) "]");
223 module_param_named(number_of_msix, ipr_number_of_msix, int, 0);
224 MODULE_PARM_DESC(number_of_msix, "Specify the number of MSIX interrupts to use on capable adapters (1 - 16).  (default:2)");
225 module_param_named(fast_reboot, ipr_fast_reboot, int, S_IRUGO | S_IWUSR);
226 MODULE_PARM_DESC(fast_reboot, "Skip adapter shutdown during reboot. Set to 1 to enable. (default: 0)");
227 MODULE_LICENSE("GPL");
228 MODULE_VERSION(IPR_DRIVER_VERSION);
229 
230 /*  A constant array of IOASCs/URCs/Error Messages */
231 static const
232 struct ipr_error_table_t ipr_error_table[] = {
233 	{0x00000000, 1, IPR_DEFAULT_LOG_LEVEL,
234 	"8155: An unknown error was received"},
235 	{0x00330000, 0, 0,
236 	"Soft underlength error"},
237 	{0x005A0000, 0, 0,
238 	"Command to be cancelled not found"},
239 	{0x00808000, 0, 0,
240 	"Qualified success"},
241 	{0x01080000, 1, IPR_DEFAULT_LOG_LEVEL,
242 	"FFFE: Soft device bus error recovered by the IOA"},
243 	{0x01088100, 0, IPR_DEFAULT_LOG_LEVEL,
244 	"4101: Soft device bus fabric error"},
245 	{0x01100100, 0, IPR_DEFAULT_LOG_LEVEL,
246 	"FFFC: Logical block guard error recovered by the device"},
247 	{0x01100300, 0, IPR_DEFAULT_LOG_LEVEL,
248 	"FFFC: Logical block reference tag error recovered by the device"},
249 	{0x01108300, 0, IPR_DEFAULT_LOG_LEVEL,
250 	"4171: Recovered scatter list tag / sequence number error"},
251 	{0x01109000, 0, IPR_DEFAULT_LOG_LEVEL,
252 	"FF3D: Recovered logical block CRC error on IOA to Host transfer"},
253 	{0x01109200, 0, IPR_DEFAULT_LOG_LEVEL,
254 	"4171: Recovered logical block sequence number error on IOA to Host transfer"},
255 	{0x0110A000, 0, IPR_DEFAULT_LOG_LEVEL,
256 	"FFFD: Recovered logical block reference tag error detected by the IOA"},
257 	{0x0110A100, 0, IPR_DEFAULT_LOG_LEVEL,
258 	"FFFD: Logical block guard error recovered by the IOA"},
259 	{0x01170600, 0, IPR_DEFAULT_LOG_LEVEL,
260 	"FFF9: Device sector reassign successful"},
261 	{0x01170900, 0, IPR_DEFAULT_LOG_LEVEL,
262 	"FFF7: Media error recovered by device rewrite procedures"},
263 	{0x01180200, 0, IPR_DEFAULT_LOG_LEVEL,
264 	"7001: IOA sector reassignment successful"},
265 	{0x01180500, 0, IPR_DEFAULT_LOG_LEVEL,
266 	"FFF9: Soft media error. Sector reassignment recommended"},
267 	{0x01180600, 0, IPR_DEFAULT_LOG_LEVEL,
268 	"FFF7: Media error recovered by IOA rewrite procedures"},
269 	{0x01418000, 0, IPR_DEFAULT_LOG_LEVEL,
270 	"FF3D: Soft PCI bus error recovered by the IOA"},
271 	{0x01440000, 1, IPR_DEFAULT_LOG_LEVEL,
272 	"FFF6: Device hardware error recovered by the IOA"},
273 	{0x01448100, 0, IPR_DEFAULT_LOG_LEVEL,
274 	"FFF6: Device hardware error recovered by the device"},
275 	{0x01448200, 1, IPR_DEFAULT_LOG_LEVEL,
276 	"FF3D: Soft IOA error recovered by the IOA"},
277 	{0x01448300, 0, IPR_DEFAULT_LOG_LEVEL,
278 	"FFFA: Undefined device response recovered by the IOA"},
279 	{0x014A0000, 1, IPR_DEFAULT_LOG_LEVEL,
280 	"FFF6: Device bus error, message or command phase"},
281 	{0x014A8000, 0, IPR_DEFAULT_LOG_LEVEL,
282 	"FFFE: Task Management Function failed"},
283 	{0x015D0000, 0, IPR_DEFAULT_LOG_LEVEL,
284 	"FFF6: Failure prediction threshold exceeded"},
285 	{0x015D9200, 0, IPR_DEFAULT_LOG_LEVEL,
286 	"8009: Impending cache battery pack failure"},
287 	{0x02040100, 0, 0,
288 	"Logical Unit in process of becoming ready"},
289 	{0x02040200, 0, 0,
290 	"Initializing command required"},
291 	{0x02040400, 0, 0,
292 	"34FF: Disk device format in progress"},
293 	{0x02040C00, 0, 0,
294 	"Logical unit not accessible, target port in unavailable state"},
295 	{0x02048000, 0, IPR_DEFAULT_LOG_LEVEL,
296 	"9070: IOA requested reset"},
297 	{0x023F0000, 0, 0,
298 	"Synchronization required"},
299 	{0x02408500, 0, 0,
300 	"IOA microcode download required"},
301 	{0x02408600, 0, 0,
302 	"Device bus connection is prohibited by host"},
303 	{0x024E0000, 0, 0,
304 	"No ready, IOA shutdown"},
305 	{0x025A0000, 0, 0,
306 	"Not ready, IOA has been shutdown"},
307 	{0x02670100, 0, IPR_DEFAULT_LOG_LEVEL,
308 	"3020: Storage subsystem configuration error"},
309 	{0x03110B00, 0, 0,
310 	"FFF5: Medium error, data unreadable, recommend reassign"},
311 	{0x03110C00, 0, 0,
312 	"7000: Medium error, data unreadable, do not reassign"},
313 	{0x03310000, 0, IPR_DEFAULT_LOG_LEVEL,
314 	"FFF3: Disk media format bad"},
315 	{0x04050000, 0, IPR_DEFAULT_LOG_LEVEL,
316 	"3002: Addressed device failed to respond to selection"},
317 	{0x04080000, 1, IPR_DEFAULT_LOG_LEVEL,
318 	"3100: Device bus error"},
319 	{0x04080100, 0, IPR_DEFAULT_LOG_LEVEL,
320 	"3109: IOA timed out a device command"},
321 	{0x04088000, 0, 0,
322 	"3120: SCSI bus is not operational"},
323 	{0x04088100, 0, IPR_DEFAULT_LOG_LEVEL,
324 	"4100: Hard device bus fabric error"},
325 	{0x04100100, 0, IPR_DEFAULT_LOG_LEVEL,
326 	"310C: Logical block guard error detected by the device"},
327 	{0x04100300, 0, IPR_DEFAULT_LOG_LEVEL,
328 	"310C: Logical block reference tag error detected by the device"},
329 	{0x04108300, 1, IPR_DEFAULT_LOG_LEVEL,
330 	"4170: Scatter list tag / sequence number error"},
331 	{0x04109000, 1, IPR_DEFAULT_LOG_LEVEL,
332 	"8150: Logical block CRC error on IOA to Host transfer"},
333 	{0x04109200, 1, IPR_DEFAULT_LOG_LEVEL,
334 	"4170: Logical block sequence number error on IOA to Host transfer"},
335 	{0x0410A000, 0, IPR_DEFAULT_LOG_LEVEL,
336 	"310D: Logical block reference tag error detected by the IOA"},
337 	{0x0410A100, 0, IPR_DEFAULT_LOG_LEVEL,
338 	"310D: Logical block guard error detected by the IOA"},
339 	{0x04118000, 0, IPR_DEFAULT_LOG_LEVEL,
340 	"9000: IOA reserved area data check"},
341 	{0x04118100, 0, IPR_DEFAULT_LOG_LEVEL,
342 	"9001: IOA reserved area invalid data pattern"},
343 	{0x04118200, 0, IPR_DEFAULT_LOG_LEVEL,
344 	"9002: IOA reserved area LRC error"},
345 	{0x04118300, 1, IPR_DEFAULT_LOG_LEVEL,
346 	"Hardware Error, IOA metadata access error"},
347 	{0x04320000, 0, IPR_DEFAULT_LOG_LEVEL,
348 	"102E: Out of alternate sectors for disk storage"},
349 	{0x04330000, 1, IPR_DEFAULT_LOG_LEVEL,
350 	"FFF4: Data transfer underlength error"},
351 	{0x04338000, 1, IPR_DEFAULT_LOG_LEVEL,
352 	"FFF4: Data transfer overlength error"},
353 	{0x043E0100, 0, IPR_DEFAULT_LOG_LEVEL,
354 	"3400: Logical unit failure"},
355 	{0x04408500, 0, IPR_DEFAULT_LOG_LEVEL,
356 	"FFF4: Device microcode is corrupt"},
357 	{0x04418000, 1, IPR_DEFAULT_LOG_LEVEL,
358 	"8150: PCI bus error"},
359 	{0x04430000, 1, 0,
360 	"Unsupported device bus message received"},
361 	{0x04440000, 1, IPR_DEFAULT_LOG_LEVEL,
362 	"FFF4: Disk device problem"},
363 	{0x04448200, 1, IPR_DEFAULT_LOG_LEVEL,
364 	"8150: Permanent IOA failure"},
365 	{0x04448300, 0, IPR_DEFAULT_LOG_LEVEL,
366 	"3010: Disk device returned wrong response to IOA"},
367 	{0x04448400, 0, IPR_DEFAULT_LOG_LEVEL,
368 	"8151: IOA microcode error"},
369 	{0x04448500, 0, 0,
370 	"Device bus status error"},
371 	{0x04448600, 0, IPR_DEFAULT_LOG_LEVEL,
372 	"8157: IOA error requiring IOA reset to recover"},
373 	{0x04448700, 0, 0,
374 	"ATA device status error"},
375 	{0x04490000, 0, 0,
376 	"Message reject received from the device"},
377 	{0x04449200, 0, IPR_DEFAULT_LOG_LEVEL,
378 	"8008: A permanent cache battery pack failure occurred"},
379 	{0x0444A000, 0, IPR_DEFAULT_LOG_LEVEL,
380 	"9090: Disk unit has been modified after the last known status"},
381 	{0x0444A200, 0, IPR_DEFAULT_LOG_LEVEL,
382 	"9081: IOA detected device error"},
383 	{0x0444A300, 0, IPR_DEFAULT_LOG_LEVEL,
384 	"9082: IOA detected device error"},
385 	{0x044A0000, 1, IPR_DEFAULT_LOG_LEVEL,
386 	"3110: Device bus error, message or command phase"},
387 	{0x044A8000, 1, IPR_DEFAULT_LOG_LEVEL,
388 	"3110: SAS Command / Task Management Function failed"},
389 	{0x04670400, 0, IPR_DEFAULT_LOG_LEVEL,
390 	"9091: Incorrect hardware configuration change has been detected"},
391 	{0x04678000, 0, IPR_DEFAULT_LOG_LEVEL,
392 	"9073: Invalid multi-adapter configuration"},
393 	{0x04678100, 0, IPR_DEFAULT_LOG_LEVEL,
394 	"4010: Incorrect connection between cascaded expanders"},
395 	{0x04678200, 0, IPR_DEFAULT_LOG_LEVEL,
396 	"4020: Connections exceed IOA design limits"},
397 	{0x04678300, 0, IPR_DEFAULT_LOG_LEVEL,
398 	"4030: Incorrect multipath connection"},
399 	{0x04679000, 0, IPR_DEFAULT_LOG_LEVEL,
400 	"4110: Unsupported enclosure function"},
401 	{0x04679800, 0, IPR_DEFAULT_LOG_LEVEL,
402 	"4120: SAS cable VPD cannot be read"},
403 	{0x046E0000, 0, IPR_DEFAULT_LOG_LEVEL,
404 	"FFF4: Command to logical unit failed"},
405 	{0x05240000, 1, 0,
406 	"Illegal request, invalid request type or request packet"},
407 	{0x05250000, 0, 0,
408 	"Illegal request, invalid resource handle"},
409 	{0x05258000, 0, 0,
410 	"Illegal request, commands not allowed to this device"},
411 	{0x05258100, 0, 0,
412 	"Illegal request, command not allowed to a secondary adapter"},
413 	{0x05258200, 0, 0,
414 	"Illegal request, command not allowed to a non-optimized resource"},
415 	{0x05260000, 0, 0,
416 	"Illegal request, invalid field in parameter list"},
417 	{0x05260100, 0, 0,
418 	"Illegal request, parameter not supported"},
419 	{0x05260200, 0, 0,
420 	"Illegal request, parameter value invalid"},
421 	{0x052C0000, 0, 0,
422 	"Illegal request, command sequence error"},
423 	{0x052C8000, 1, 0,
424 	"Illegal request, dual adapter support not enabled"},
425 	{0x052C8100, 1, 0,
426 	"Illegal request, another cable connector was physically disabled"},
427 	{0x054E8000, 1, 0,
428 	"Illegal request, inconsistent group id/group count"},
429 	{0x06040500, 0, IPR_DEFAULT_LOG_LEVEL,
430 	"9031: Array protection temporarily suspended, protection resuming"},
431 	{0x06040600, 0, IPR_DEFAULT_LOG_LEVEL,
432 	"9040: Array protection temporarily suspended, protection resuming"},
433 	{0x060B0100, 0, IPR_DEFAULT_LOG_LEVEL,
434 	"4080: IOA exceeded maximum operating temperature"},
435 	{0x060B8000, 0, IPR_DEFAULT_LOG_LEVEL,
436 	"4085: Service required"},
437 	{0x06288000, 0, IPR_DEFAULT_LOG_LEVEL,
438 	"3140: Device bus not ready to ready transition"},
439 	{0x06290000, 0, IPR_DEFAULT_LOG_LEVEL,
440 	"FFFB: SCSI bus was reset"},
441 	{0x06290500, 0, 0,
442 	"FFFE: SCSI bus transition to single ended"},
443 	{0x06290600, 0, 0,
444 	"FFFE: SCSI bus transition to LVD"},
445 	{0x06298000, 0, IPR_DEFAULT_LOG_LEVEL,
446 	"FFFB: SCSI bus was reset by another initiator"},
447 	{0x063F0300, 0, IPR_DEFAULT_LOG_LEVEL,
448 	"3029: A device replacement has occurred"},
449 	{0x063F8300, 0, IPR_DEFAULT_LOG_LEVEL,
450 	"4102: Device bus fabric performance degradation"},
451 	{0x064C8000, 0, IPR_DEFAULT_LOG_LEVEL,
452 	"9051: IOA cache data exists for a missing or failed device"},
453 	{0x064C8100, 0, IPR_DEFAULT_LOG_LEVEL,
454 	"9055: Auxiliary cache IOA contains cache data needed by the primary IOA"},
455 	{0x06670100, 0, IPR_DEFAULT_LOG_LEVEL,
456 	"9025: Disk unit is not supported at its physical location"},
457 	{0x06670600, 0, IPR_DEFAULT_LOG_LEVEL,
458 	"3020: IOA detected a SCSI bus configuration error"},
459 	{0x06678000, 0, IPR_DEFAULT_LOG_LEVEL,
460 	"3150: SCSI bus configuration error"},
461 	{0x06678100, 0, IPR_DEFAULT_LOG_LEVEL,
462 	"9074: Asymmetric advanced function disk configuration"},
463 	{0x06678300, 0, IPR_DEFAULT_LOG_LEVEL,
464 	"4040: Incomplete multipath connection between IOA and enclosure"},
465 	{0x06678400, 0, IPR_DEFAULT_LOG_LEVEL,
466 	"4041: Incomplete multipath connection between enclosure and device"},
467 	{0x06678500, 0, IPR_DEFAULT_LOG_LEVEL,
468 	"9075: Incomplete multipath connection between IOA and remote IOA"},
469 	{0x06678600, 0, IPR_DEFAULT_LOG_LEVEL,
470 	"9076: Configuration error, missing remote IOA"},
471 	{0x06679100, 0, IPR_DEFAULT_LOG_LEVEL,
472 	"4050: Enclosure does not support a required multipath function"},
473 	{0x06679800, 0, IPR_DEFAULT_LOG_LEVEL,
474 	"4121: Configuration error, required cable is missing"},
475 	{0x06679900, 0, IPR_DEFAULT_LOG_LEVEL,
476 	"4122: Cable is not plugged into the correct location on remote IOA"},
477 	{0x06679A00, 0, IPR_DEFAULT_LOG_LEVEL,
478 	"4123: Configuration error, invalid cable vital product data"},
479 	{0x06679B00, 0, IPR_DEFAULT_LOG_LEVEL,
480 	"4124: Configuration error, both cable ends are plugged into the same IOA"},
481 	{0x06690000, 0, IPR_DEFAULT_LOG_LEVEL,
482 	"4070: Logically bad block written on device"},
483 	{0x06690200, 0, IPR_DEFAULT_LOG_LEVEL,
484 	"9041: Array protection temporarily suspended"},
485 	{0x06698200, 0, IPR_DEFAULT_LOG_LEVEL,
486 	"9042: Corrupt array parity detected on specified device"},
487 	{0x066B0200, 0, IPR_DEFAULT_LOG_LEVEL,
488 	"9030: Array no longer protected due to missing or failed disk unit"},
489 	{0x066B8000, 0, IPR_DEFAULT_LOG_LEVEL,
490 	"9071: Link operational transition"},
491 	{0x066B8100, 0, IPR_DEFAULT_LOG_LEVEL,
492 	"9072: Link not operational transition"},
493 	{0x066B8200, 0, IPR_DEFAULT_LOG_LEVEL,
494 	"9032: Array exposed but still protected"},
495 	{0x066B8300, 0, IPR_DEFAULT_LOG_LEVEL + 1,
496 	"70DD: Device forced failed by disrupt device command"},
497 	{0x066B9100, 0, IPR_DEFAULT_LOG_LEVEL,
498 	"4061: Multipath redundancy level got better"},
499 	{0x066B9200, 0, IPR_DEFAULT_LOG_LEVEL,
500 	"4060: Multipath redundancy level got worse"},
501 	{0x06808100, 0, IPR_DEFAULT_LOG_LEVEL,
502 	"9083: Device raw mode enabled"},
503 	{0x06808200, 0, IPR_DEFAULT_LOG_LEVEL,
504 	"9084: Device raw mode disabled"},
505 	{0x07270000, 0, 0,
506 	"Failure due to other device"},
507 	{0x07278000, 0, IPR_DEFAULT_LOG_LEVEL,
508 	"9008: IOA does not support functions expected by devices"},
509 	{0x07278100, 0, IPR_DEFAULT_LOG_LEVEL,
510 	"9010: Cache data associated with attached devices cannot be found"},
511 	{0x07278200, 0, IPR_DEFAULT_LOG_LEVEL,
512 	"9011: Cache data belongs to devices other than those attached"},
513 	{0x07278400, 0, IPR_DEFAULT_LOG_LEVEL,
514 	"9020: Array missing 2 or more devices with only 1 device present"},
515 	{0x07278500, 0, IPR_DEFAULT_LOG_LEVEL,
516 	"9021: Array missing 2 or more devices with 2 or more devices present"},
517 	{0x07278600, 0, IPR_DEFAULT_LOG_LEVEL,
518 	"9022: Exposed array is missing a required device"},
519 	{0x07278700, 0, IPR_DEFAULT_LOG_LEVEL,
520 	"9023: Array member(s) not at required physical locations"},
521 	{0x07278800, 0, IPR_DEFAULT_LOG_LEVEL,
522 	"9024: Array not functional due to present hardware configuration"},
523 	{0x07278900, 0, IPR_DEFAULT_LOG_LEVEL,
524 	"9026: Array not functional due to present hardware configuration"},
525 	{0x07278A00, 0, IPR_DEFAULT_LOG_LEVEL,
526 	"9027: Array is missing a device and parity is out of sync"},
527 	{0x07278B00, 0, IPR_DEFAULT_LOG_LEVEL,
528 	"9028: Maximum number of arrays already exist"},
529 	{0x07278C00, 0, IPR_DEFAULT_LOG_LEVEL,
530 	"9050: Required cache data cannot be located for a disk unit"},
531 	{0x07278D00, 0, IPR_DEFAULT_LOG_LEVEL,
532 	"9052: Cache data exists for a device that has been modified"},
533 	{0x07278F00, 0, IPR_DEFAULT_LOG_LEVEL,
534 	"9054: IOA resources not available due to previous problems"},
535 	{0x07279100, 0, IPR_DEFAULT_LOG_LEVEL,
536 	"9092: Disk unit requires initialization before use"},
537 	{0x07279200, 0, IPR_DEFAULT_LOG_LEVEL,
538 	"9029: Incorrect hardware configuration change has been detected"},
539 	{0x07279600, 0, IPR_DEFAULT_LOG_LEVEL,
540 	"9060: One or more disk pairs are missing from an array"},
541 	{0x07279700, 0, IPR_DEFAULT_LOG_LEVEL,
542 	"9061: One or more disks are missing from an array"},
543 	{0x07279800, 0, IPR_DEFAULT_LOG_LEVEL,
544 	"9062: One or more disks are missing from an array"},
545 	{0x07279900, 0, IPR_DEFAULT_LOG_LEVEL,
546 	"9063: Maximum number of functional arrays has been exceeded"},
547 	{0x07279A00, 0, 0,
548 	"Data protect, other volume set problem"},
549 	{0x0B260000, 0, 0,
550 	"Aborted command, invalid descriptor"},
551 	{0x0B3F9000, 0, 0,
552 	"Target operating conditions have changed, dual adapter takeover"},
553 	{0x0B530200, 0, 0,
554 	"Aborted command, medium removal prevented"},
555 	{0x0B5A0000, 0, 0,
556 	"Command terminated by host"},
557 	{0x0B5B8000, 0, 0,
558 	"Aborted command, command terminated by host"}
559 };
560 
561 static const struct ipr_ses_table_entry ipr_ses_table[] = {
562 	{ "2104-DL1        ", "XXXXXXXXXXXXXXXX", 80 },
563 	{ "2104-TL1        ", "XXXXXXXXXXXXXXXX", 80 },
564 	{ "HSBP07M P U2SCSI", "XXXXXXXXXXXXXXXX", 80 }, /* Hidive 7 slot */
565 	{ "HSBP05M P U2SCSI", "XXXXXXXXXXXXXXXX", 80 }, /* Hidive 5 slot */
566 	{ "HSBP05M S U2SCSI", "XXXXXXXXXXXXXXXX", 80 }, /* Bowtie */
567 	{ "HSBP06E ASU2SCSI", "XXXXXXXXXXXXXXXX", 80 }, /* MartinFenning */
568 	{ "2104-DU3        ", "XXXXXXXXXXXXXXXX", 160 },
569 	{ "2104-TU3        ", "XXXXXXXXXXXXXXXX", 160 },
570 	{ "HSBP04C RSU2SCSI", "XXXXXXX*XXXXXXXX", 160 },
571 	{ "HSBP06E RSU2SCSI", "XXXXXXX*XXXXXXXX", 160 },
572 	{ "St  V1S2        ", "XXXXXXXXXXXXXXXX", 160 },
573 	{ "HSBPD4M  PU3SCSI", "XXXXXXX*XXXXXXXX", 160 },
574 	{ "VSBPD1H   U3SCSI", "XXXXXXX*XXXXXXXX", 160 }
575 };
576 
577 /*
578  *  Function Prototypes
579  */
580 static int ipr_reset_alert(struct ipr_cmnd *);
581 static void ipr_process_ccn(struct ipr_cmnd *);
582 static void ipr_process_error(struct ipr_cmnd *);
583 static void ipr_reset_ioa_job(struct ipr_cmnd *);
584 static void ipr_initiate_ioa_reset(struct ipr_ioa_cfg *,
585 				   enum ipr_shutdown_type);
586 
587 #ifdef CONFIG_SCSI_IPR_TRACE
588 /**
589  * ipr_trc_hook - Add a trace entry to the driver trace
590  * @ipr_cmd:	ipr command struct
591  * @type:		trace type
592  * @add_data:	additional data
593  *
594  * Return value:
595  * 	none
596  **/
ipr_trc_hook(struct ipr_cmnd * ipr_cmd,u8 type,u32 add_data)597 static void ipr_trc_hook(struct ipr_cmnd *ipr_cmd,
598 			 u8 type, u32 add_data)
599 {
600 	struct ipr_trace_entry *trace_entry;
601 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
602 	unsigned int trace_index;
603 
604 	trace_index = atomic_add_return(1, &ioa_cfg->trace_index) & IPR_TRACE_INDEX_MASK;
605 	trace_entry = &ioa_cfg->trace[trace_index];
606 	trace_entry->time = jiffies;
607 	trace_entry->op_code = ipr_cmd->ioarcb.cmd_pkt.cdb[0];
608 	trace_entry->type = type;
609 	if (ipr_cmd->ioa_cfg->sis64)
610 		trace_entry->ata_op_code = ipr_cmd->i.ata_ioadl.regs.command;
611 	else
612 		trace_entry->ata_op_code = ipr_cmd->ioarcb.u.add_data.u.regs.command;
613 	trace_entry->cmd_index = ipr_cmd->cmd_index & 0xff;
614 	trace_entry->res_handle = ipr_cmd->ioarcb.res_handle;
615 	trace_entry->u.add_data = add_data;
616 	wmb();
617 }
618 #else
619 #define ipr_trc_hook(ipr_cmd, type, add_data) do { } while (0)
620 #endif
621 
622 /**
623  * ipr_lock_and_done - Acquire lock and complete command
624  * @ipr_cmd:	ipr command struct
625  *
626  * Return value:
627  *	none
628  **/
ipr_lock_and_done(struct ipr_cmnd * ipr_cmd)629 static void ipr_lock_and_done(struct ipr_cmnd *ipr_cmd)
630 {
631 	unsigned long lock_flags;
632 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
633 
634 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
635 	ipr_cmd->done(ipr_cmd);
636 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
637 }
638 
639 /**
640  * ipr_reinit_ipr_cmnd - Re-initialize an IPR Cmnd block for reuse
641  * @ipr_cmd:	ipr command struct
642  *
643  * Return value:
644  * 	none
645  **/
ipr_reinit_ipr_cmnd(struct ipr_cmnd * ipr_cmd)646 static void ipr_reinit_ipr_cmnd(struct ipr_cmnd *ipr_cmd)
647 {
648 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
649 	struct ipr_ioasa *ioasa = &ipr_cmd->s.ioasa;
650 	struct ipr_ioasa64 *ioasa64 = &ipr_cmd->s.ioasa64;
651 	dma_addr_t dma_addr = ipr_cmd->dma_addr;
652 	int hrrq_id;
653 
654 	hrrq_id = ioarcb->cmd_pkt.hrrq_id;
655 	memset(&ioarcb->cmd_pkt, 0, sizeof(struct ipr_cmd_pkt));
656 	ioarcb->cmd_pkt.hrrq_id = hrrq_id;
657 	ioarcb->data_transfer_length = 0;
658 	ioarcb->read_data_transfer_length = 0;
659 	ioarcb->ioadl_len = 0;
660 	ioarcb->read_ioadl_len = 0;
661 
662 	if (ipr_cmd->ioa_cfg->sis64) {
663 		ioarcb->u.sis64_addr_data.data_ioadl_addr =
664 			cpu_to_be64(dma_addr + offsetof(struct ipr_cmnd, i.ioadl64));
665 		ioasa64->u.gata.status = 0;
666 	} else {
667 		ioarcb->write_ioadl_addr =
668 			cpu_to_be32(dma_addr + offsetof(struct ipr_cmnd, i.ioadl));
669 		ioarcb->read_ioadl_addr = ioarcb->write_ioadl_addr;
670 		ioasa->u.gata.status = 0;
671 	}
672 
673 	ioasa->hdr.ioasc = 0;
674 	ioasa->hdr.residual_data_len = 0;
675 	ipr_cmd->scsi_cmd = NULL;
676 	ipr_cmd->qc = NULL;
677 	ipr_cmd->sense_buffer[0] = 0;
678 	ipr_cmd->dma_use_sg = 0;
679 }
680 
681 /**
682  * ipr_init_ipr_cmnd - Initialize an IPR Cmnd block
683  * @ipr_cmd:	ipr command struct
684  *
685  * Return value:
686  * 	none
687  **/
ipr_init_ipr_cmnd(struct ipr_cmnd * ipr_cmd,void (* fast_done)(struct ipr_cmnd *))688 static void ipr_init_ipr_cmnd(struct ipr_cmnd *ipr_cmd,
689 			      void (*fast_done) (struct ipr_cmnd *))
690 {
691 	ipr_reinit_ipr_cmnd(ipr_cmd);
692 	ipr_cmd->u.scratch = 0;
693 	ipr_cmd->sibling = NULL;
694 	ipr_cmd->eh_comp = NULL;
695 	ipr_cmd->fast_done = fast_done;
696 	init_timer(&ipr_cmd->timer);
697 }
698 
699 /**
700  * __ipr_get_free_ipr_cmnd - Get a free IPR Cmnd block
701  * @ioa_cfg:	ioa config struct
702  *
703  * Return value:
704  * 	pointer to ipr command struct
705  **/
706 static
__ipr_get_free_ipr_cmnd(struct ipr_hrr_queue * hrrq)707 struct ipr_cmnd *__ipr_get_free_ipr_cmnd(struct ipr_hrr_queue *hrrq)
708 {
709 	struct ipr_cmnd *ipr_cmd = NULL;
710 
711 	if (likely(!list_empty(&hrrq->hrrq_free_q))) {
712 		ipr_cmd = list_entry(hrrq->hrrq_free_q.next,
713 			struct ipr_cmnd, queue);
714 		list_del(&ipr_cmd->queue);
715 	}
716 
717 
718 	return ipr_cmd;
719 }
720 
721 /**
722  * ipr_get_free_ipr_cmnd - Get a free IPR Cmnd block and initialize it
723  * @ioa_cfg:	ioa config struct
724  *
725  * Return value:
726  *	pointer to ipr command struct
727  **/
728 static
ipr_get_free_ipr_cmnd(struct ipr_ioa_cfg * ioa_cfg)729 struct ipr_cmnd *ipr_get_free_ipr_cmnd(struct ipr_ioa_cfg *ioa_cfg)
730 {
731 	struct ipr_cmnd *ipr_cmd =
732 		__ipr_get_free_ipr_cmnd(&ioa_cfg->hrrq[IPR_INIT_HRRQ]);
733 	ipr_init_ipr_cmnd(ipr_cmd, ipr_lock_and_done);
734 	return ipr_cmd;
735 }
736 
737 /**
738  * ipr_mask_and_clear_interrupts - Mask all and clear specified interrupts
739  * @ioa_cfg:	ioa config struct
740  * @clr_ints:     interrupts to clear
741  *
742  * This function masks all interrupts on the adapter, then clears the
743  * interrupts specified in the mask
744  *
745  * Return value:
746  * 	none
747  **/
ipr_mask_and_clear_interrupts(struct ipr_ioa_cfg * ioa_cfg,u32 clr_ints)748 static void ipr_mask_and_clear_interrupts(struct ipr_ioa_cfg *ioa_cfg,
749 					  u32 clr_ints)
750 {
751 	volatile u32 int_reg;
752 	int i;
753 
754 	/* Stop new interrupts */
755 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
756 		spin_lock(&ioa_cfg->hrrq[i]._lock);
757 		ioa_cfg->hrrq[i].allow_interrupts = 0;
758 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
759 	}
760 	wmb();
761 
762 	/* Set interrupt mask to stop all new interrupts */
763 	if (ioa_cfg->sis64)
764 		writeq(~0, ioa_cfg->regs.set_interrupt_mask_reg);
765 	else
766 		writel(~0, ioa_cfg->regs.set_interrupt_mask_reg);
767 
768 	/* Clear any pending interrupts */
769 	if (ioa_cfg->sis64)
770 		writel(~0, ioa_cfg->regs.clr_interrupt_reg);
771 	writel(clr_ints, ioa_cfg->regs.clr_interrupt_reg32);
772 	int_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
773 }
774 
775 /**
776  * ipr_save_pcix_cmd_reg - Save PCI-X command register
777  * @ioa_cfg:	ioa config struct
778  *
779  * Return value:
780  * 	0 on success / -EIO on failure
781  **/
ipr_save_pcix_cmd_reg(struct ipr_ioa_cfg * ioa_cfg)782 static int ipr_save_pcix_cmd_reg(struct ipr_ioa_cfg *ioa_cfg)
783 {
784 	int pcix_cmd_reg = pci_find_capability(ioa_cfg->pdev, PCI_CAP_ID_PCIX);
785 
786 	if (pcix_cmd_reg == 0)
787 		return 0;
788 
789 	if (pci_read_config_word(ioa_cfg->pdev, pcix_cmd_reg + PCI_X_CMD,
790 				 &ioa_cfg->saved_pcix_cmd_reg) != PCIBIOS_SUCCESSFUL) {
791 		dev_err(&ioa_cfg->pdev->dev, "Failed to save PCI-X command register\n");
792 		return -EIO;
793 	}
794 
795 	ioa_cfg->saved_pcix_cmd_reg |= PCI_X_CMD_DPERR_E | PCI_X_CMD_ERO;
796 	return 0;
797 }
798 
799 /**
800  * ipr_set_pcix_cmd_reg - Setup PCI-X command register
801  * @ioa_cfg:	ioa config struct
802  *
803  * Return value:
804  * 	0 on success / -EIO on failure
805  **/
ipr_set_pcix_cmd_reg(struct ipr_ioa_cfg * ioa_cfg)806 static int ipr_set_pcix_cmd_reg(struct ipr_ioa_cfg *ioa_cfg)
807 {
808 	int pcix_cmd_reg = pci_find_capability(ioa_cfg->pdev, PCI_CAP_ID_PCIX);
809 
810 	if (pcix_cmd_reg) {
811 		if (pci_write_config_word(ioa_cfg->pdev, pcix_cmd_reg + PCI_X_CMD,
812 					  ioa_cfg->saved_pcix_cmd_reg) != PCIBIOS_SUCCESSFUL) {
813 			dev_err(&ioa_cfg->pdev->dev, "Failed to setup PCI-X command register\n");
814 			return -EIO;
815 		}
816 	}
817 
818 	return 0;
819 }
820 
821 /**
822  * ipr_sata_eh_done - done function for aborted SATA commands
823  * @ipr_cmd:	ipr command struct
824  *
825  * This function is invoked for ops generated to SATA
826  * devices which are being aborted.
827  *
828  * Return value:
829  * 	none
830  **/
ipr_sata_eh_done(struct ipr_cmnd * ipr_cmd)831 static void ipr_sata_eh_done(struct ipr_cmnd *ipr_cmd)
832 {
833 	struct ata_queued_cmd *qc = ipr_cmd->qc;
834 	struct ipr_sata_port *sata_port = qc->ap->private_data;
835 
836 	qc->err_mask |= AC_ERR_OTHER;
837 	sata_port->ioasa.status |= ATA_BUSY;
838 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
839 	ata_qc_complete(qc);
840 }
841 
842 /**
843  * ipr_scsi_eh_done - mid-layer done function for aborted ops
844  * @ipr_cmd:	ipr command struct
845  *
846  * This function is invoked by the interrupt handler for
847  * ops generated by the SCSI mid-layer which are being aborted.
848  *
849  * Return value:
850  * 	none
851  **/
ipr_scsi_eh_done(struct ipr_cmnd * ipr_cmd)852 static void ipr_scsi_eh_done(struct ipr_cmnd *ipr_cmd)
853 {
854 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
855 
856 	scsi_cmd->result |= (DID_ERROR << 16);
857 
858 	scsi_dma_unmap(ipr_cmd->scsi_cmd);
859 	scsi_cmd->scsi_done(scsi_cmd);
860 	if (ipr_cmd->eh_comp)
861 		complete(ipr_cmd->eh_comp);
862 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
863 }
864 
865 /**
866  * ipr_fail_all_ops - Fails all outstanding ops.
867  * @ioa_cfg:	ioa config struct
868  *
869  * This function fails all outstanding ops.
870  *
871  * Return value:
872  * 	none
873  **/
ipr_fail_all_ops(struct ipr_ioa_cfg * ioa_cfg)874 static void ipr_fail_all_ops(struct ipr_ioa_cfg *ioa_cfg)
875 {
876 	struct ipr_cmnd *ipr_cmd, *temp;
877 	struct ipr_hrr_queue *hrrq;
878 
879 	ENTER;
880 	for_each_hrrq(hrrq, ioa_cfg) {
881 		spin_lock(&hrrq->_lock);
882 		list_for_each_entry_safe(ipr_cmd,
883 					temp, &hrrq->hrrq_pending_q, queue) {
884 			list_del(&ipr_cmd->queue);
885 
886 			ipr_cmd->s.ioasa.hdr.ioasc =
887 				cpu_to_be32(IPR_IOASC_IOA_WAS_RESET);
888 			ipr_cmd->s.ioasa.hdr.ilid =
889 				cpu_to_be32(IPR_DRIVER_ILID);
890 
891 			if (ipr_cmd->scsi_cmd)
892 				ipr_cmd->done = ipr_scsi_eh_done;
893 			else if (ipr_cmd->qc)
894 				ipr_cmd->done = ipr_sata_eh_done;
895 
896 			ipr_trc_hook(ipr_cmd, IPR_TRACE_FINISH,
897 				     IPR_IOASC_IOA_WAS_RESET);
898 			del_timer(&ipr_cmd->timer);
899 			ipr_cmd->done(ipr_cmd);
900 		}
901 		spin_unlock(&hrrq->_lock);
902 	}
903 	LEAVE;
904 }
905 
906 /**
907  * ipr_send_command -  Send driver initiated requests.
908  * @ipr_cmd:		ipr command struct
909  *
910  * This function sends a command to the adapter using the correct write call.
911  * In the case of sis64, calculate the ioarcb size required. Then or in the
912  * appropriate bits.
913  *
914  * Return value:
915  * 	none
916  **/
ipr_send_command(struct ipr_cmnd * ipr_cmd)917 static void ipr_send_command(struct ipr_cmnd *ipr_cmd)
918 {
919 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
920 	dma_addr_t send_dma_addr = ipr_cmd->dma_addr;
921 
922 	if (ioa_cfg->sis64) {
923 		/* The default size is 256 bytes */
924 		send_dma_addr |= 0x1;
925 
926 		/* If the number of ioadls * size of ioadl > 128 bytes,
927 		   then use a 512 byte ioarcb */
928 		if (ipr_cmd->dma_use_sg * sizeof(struct ipr_ioadl64_desc) > 128 )
929 			send_dma_addr |= 0x4;
930 		writeq(send_dma_addr, ioa_cfg->regs.ioarrin_reg);
931 	} else
932 		writel(send_dma_addr, ioa_cfg->regs.ioarrin_reg);
933 }
934 
935 /**
936  * ipr_do_req -  Send driver initiated requests.
937  * @ipr_cmd:		ipr command struct
938  * @done:			done function
939  * @timeout_func:	timeout function
940  * @timeout:		timeout value
941  *
942  * This function sends the specified command to the adapter with the
943  * timeout given. The done function is invoked on command completion.
944  *
945  * Return value:
946  * 	none
947  **/
ipr_do_req(struct ipr_cmnd * ipr_cmd,void (* done)(struct ipr_cmnd *),void (* timeout_func)(struct ipr_cmnd *),u32 timeout)948 static void ipr_do_req(struct ipr_cmnd *ipr_cmd,
949 		       void (*done) (struct ipr_cmnd *),
950 		       void (*timeout_func) (struct ipr_cmnd *), u32 timeout)
951 {
952 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
953 
954 	ipr_cmd->done = done;
955 
956 	ipr_cmd->timer.data = (unsigned long) ipr_cmd;
957 	ipr_cmd->timer.expires = jiffies + timeout;
958 	ipr_cmd->timer.function = (void (*)(unsigned long))timeout_func;
959 
960 	add_timer(&ipr_cmd->timer);
961 
962 	ipr_trc_hook(ipr_cmd, IPR_TRACE_START, 0);
963 
964 	ipr_send_command(ipr_cmd);
965 }
966 
967 /**
968  * ipr_internal_cmd_done - Op done function for an internally generated op.
969  * @ipr_cmd:	ipr command struct
970  *
971  * This function is the op done function for an internally generated,
972  * blocking op. It simply wakes the sleeping thread.
973  *
974  * Return value:
975  * 	none
976  **/
ipr_internal_cmd_done(struct ipr_cmnd * ipr_cmd)977 static void ipr_internal_cmd_done(struct ipr_cmnd *ipr_cmd)
978 {
979 	if (ipr_cmd->sibling)
980 		ipr_cmd->sibling = NULL;
981 	else
982 		complete(&ipr_cmd->completion);
983 }
984 
985 /**
986  * ipr_init_ioadl - initialize the ioadl for the correct SIS type
987  * @ipr_cmd:	ipr command struct
988  * @dma_addr:	dma address
989  * @len:	transfer length
990  * @flags:	ioadl flag value
991  *
992  * This function initializes an ioadl in the case where there is only a single
993  * descriptor.
994  *
995  * Return value:
996  * 	nothing
997  **/
ipr_init_ioadl(struct ipr_cmnd * ipr_cmd,dma_addr_t dma_addr,u32 len,int flags)998 static void ipr_init_ioadl(struct ipr_cmnd *ipr_cmd, dma_addr_t dma_addr,
999 			   u32 len, int flags)
1000 {
1001 	struct ipr_ioadl_desc *ioadl = ipr_cmd->i.ioadl;
1002 	struct ipr_ioadl64_desc *ioadl64 = ipr_cmd->i.ioadl64;
1003 
1004 	ipr_cmd->dma_use_sg = 1;
1005 
1006 	if (ipr_cmd->ioa_cfg->sis64) {
1007 		ioadl64->flags = cpu_to_be32(flags);
1008 		ioadl64->data_len = cpu_to_be32(len);
1009 		ioadl64->address = cpu_to_be64(dma_addr);
1010 
1011 		ipr_cmd->ioarcb.ioadl_len =
1012 		       	cpu_to_be32(sizeof(struct ipr_ioadl64_desc));
1013 		ipr_cmd->ioarcb.data_transfer_length = cpu_to_be32(len);
1014 	} else {
1015 		ioadl->flags_and_data_len = cpu_to_be32(flags | len);
1016 		ioadl->address = cpu_to_be32(dma_addr);
1017 
1018 		if (flags == IPR_IOADL_FLAGS_READ_LAST) {
1019 			ipr_cmd->ioarcb.read_ioadl_len =
1020 				cpu_to_be32(sizeof(struct ipr_ioadl_desc));
1021 			ipr_cmd->ioarcb.read_data_transfer_length = cpu_to_be32(len);
1022 		} else {
1023 			ipr_cmd->ioarcb.ioadl_len =
1024 			       	cpu_to_be32(sizeof(struct ipr_ioadl_desc));
1025 			ipr_cmd->ioarcb.data_transfer_length = cpu_to_be32(len);
1026 		}
1027 	}
1028 }
1029 
1030 /**
1031  * ipr_send_blocking_cmd - Send command and sleep on its completion.
1032  * @ipr_cmd:	ipr command struct
1033  * @timeout_func:	function to invoke if command times out
1034  * @timeout:	timeout
1035  *
1036  * Return value:
1037  * 	none
1038  **/
ipr_send_blocking_cmd(struct ipr_cmnd * ipr_cmd,void (* timeout_func)(struct ipr_cmnd * ipr_cmd),u32 timeout)1039 static void ipr_send_blocking_cmd(struct ipr_cmnd *ipr_cmd,
1040 				  void (*timeout_func) (struct ipr_cmnd *ipr_cmd),
1041 				  u32 timeout)
1042 {
1043 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
1044 
1045 	init_completion(&ipr_cmd->completion);
1046 	ipr_do_req(ipr_cmd, ipr_internal_cmd_done, timeout_func, timeout);
1047 
1048 	spin_unlock_irq(ioa_cfg->host->host_lock);
1049 	wait_for_completion(&ipr_cmd->completion);
1050 	spin_lock_irq(ioa_cfg->host->host_lock);
1051 }
1052 
ipr_get_hrrq_index(struct ipr_ioa_cfg * ioa_cfg)1053 static int ipr_get_hrrq_index(struct ipr_ioa_cfg *ioa_cfg)
1054 {
1055 	unsigned int hrrq;
1056 
1057 	if (ioa_cfg->hrrq_num == 1)
1058 		hrrq = 0;
1059 	else {
1060 		hrrq = atomic_add_return(1, &ioa_cfg->hrrq_index);
1061 		hrrq = (hrrq % (ioa_cfg->hrrq_num - 1)) + 1;
1062 	}
1063 	return hrrq;
1064 }
1065 
1066 /**
1067  * ipr_send_hcam - Send an HCAM to the adapter.
1068  * @ioa_cfg:	ioa config struct
1069  * @type:		HCAM type
1070  * @hostrcb:	hostrcb struct
1071  *
1072  * This function will send a Host Controlled Async command to the adapter.
1073  * If HCAMs are currently not allowed to be issued to the adapter, it will
1074  * place the hostrcb on the free queue.
1075  *
1076  * Return value:
1077  * 	none
1078  **/
ipr_send_hcam(struct ipr_ioa_cfg * ioa_cfg,u8 type,struct ipr_hostrcb * hostrcb)1079 static void ipr_send_hcam(struct ipr_ioa_cfg *ioa_cfg, u8 type,
1080 			  struct ipr_hostrcb *hostrcb)
1081 {
1082 	struct ipr_cmnd *ipr_cmd;
1083 	struct ipr_ioarcb *ioarcb;
1084 
1085 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].allow_cmds) {
1086 		ipr_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
1087 		list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
1088 		list_add_tail(&hostrcb->queue, &ioa_cfg->hostrcb_pending_q);
1089 
1090 		ipr_cmd->u.hostrcb = hostrcb;
1091 		ioarcb = &ipr_cmd->ioarcb;
1092 
1093 		ioarcb->res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
1094 		ioarcb->cmd_pkt.request_type = IPR_RQTYPE_HCAM;
1095 		ioarcb->cmd_pkt.cdb[0] = IPR_HOST_CONTROLLED_ASYNC;
1096 		ioarcb->cmd_pkt.cdb[1] = type;
1097 		ioarcb->cmd_pkt.cdb[7] = (sizeof(hostrcb->hcam) >> 8) & 0xff;
1098 		ioarcb->cmd_pkt.cdb[8] = sizeof(hostrcb->hcam) & 0xff;
1099 
1100 		ipr_init_ioadl(ipr_cmd, hostrcb->hostrcb_dma,
1101 			       sizeof(hostrcb->hcam), IPR_IOADL_FLAGS_READ_LAST);
1102 
1103 		if (type == IPR_HCAM_CDB_OP_CODE_CONFIG_CHANGE)
1104 			ipr_cmd->done = ipr_process_ccn;
1105 		else
1106 			ipr_cmd->done = ipr_process_error;
1107 
1108 		ipr_trc_hook(ipr_cmd, IPR_TRACE_START, IPR_IOA_RES_ADDR);
1109 
1110 		ipr_send_command(ipr_cmd);
1111 	} else {
1112 		list_add_tail(&hostrcb->queue, &ioa_cfg->hostrcb_free_q);
1113 	}
1114 }
1115 
1116 /**
1117  * ipr_update_ata_class - Update the ata class in the resource entry
1118  * @res:	resource entry struct
1119  * @proto:	cfgte device bus protocol value
1120  *
1121  * Return value:
1122  * 	none
1123  **/
ipr_update_ata_class(struct ipr_resource_entry * res,unsigned int proto)1124 static void ipr_update_ata_class(struct ipr_resource_entry *res, unsigned int proto)
1125 {
1126 	switch (proto) {
1127 	case IPR_PROTO_SATA:
1128 	case IPR_PROTO_SAS_STP:
1129 		res->ata_class = ATA_DEV_ATA;
1130 		break;
1131 	case IPR_PROTO_SATA_ATAPI:
1132 	case IPR_PROTO_SAS_STP_ATAPI:
1133 		res->ata_class = ATA_DEV_ATAPI;
1134 		break;
1135 	default:
1136 		res->ata_class = ATA_DEV_UNKNOWN;
1137 		break;
1138 	};
1139 }
1140 
1141 /**
1142  * ipr_init_res_entry - Initialize a resource entry struct.
1143  * @res:	resource entry struct
1144  * @cfgtew:	config table entry wrapper struct
1145  *
1146  * Return value:
1147  * 	none
1148  **/
ipr_init_res_entry(struct ipr_resource_entry * res,struct ipr_config_table_entry_wrapper * cfgtew)1149 static void ipr_init_res_entry(struct ipr_resource_entry *res,
1150 			       struct ipr_config_table_entry_wrapper *cfgtew)
1151 {
1152 	int found = 0;
1153 	unsigned int proto;
1154 	struct ipr_ioa_cfg *ioa_cfg = res->ioa_cfg;
1155 	struct ipr_resource_entry *gscsi_res = NULL;
1156 
1157 	res->needs_sync_complete = 0;
1158 	res->in_erp = 0;
1159 	res->add_to_ml = 0;
1160 	res->del_from_ml = 0;
1161 	res->resetting_device = 0;
1162 	res->reset_occurred = 0;
1163 	res->sdev = NULL;
1164 	res->sata_port = NULL;
1165 
1166 	if (ioa_cfg->sis64) {
1167 		proto = cfgtew->u.cfgte64->proto;
1168 		res->flags = be16_to_cpu(cfgtew->u.cfgte64->flags);
1169 		res->res_flags = be16_to_cpu(cfgtew->u.cfgte64->res_flags);
1170 		res->qmodel = IPR_QUEUEING_MODEL64(res);
1171 		res->type = cfgtew->u.cfgte64->res_type;
1172 
1173 		memcpy(res->res_path, &cfgtew->u.cfgte64->res_path,
1174 			sizeof(res->res_path));
1175 
1176 		res->bus = 0;
1177 		memcpy(&res->dev_lun.scsi_lun, &cfgtew->u.cfgte64->lun,
1178 			sizeof(res->dev_lun.scsi_lun));
1179 		res->lun = scsilun_to_int(&res->dev_lun);
1180 
1181 		if (res->type == IPR_RES_TYPE_GENERIC_SCSI) {
1182 			list_for_each_entry(gscsi_res, &ioa_cfg->used_res_q, queue) {
1183 				if (gscsi_res->dev_id == cfgtew->u.cfgte64->dev_id) {
1184 					found = 1;
1185 					res->target = gscsi_res->target;
1186 					break;
1187 				}
1188 			}
1189 			if (!found) {
1190 				res->target = find_first_zero_bit(ioa_cfg->target_ids,
1191 								  ioa_cfg->max_devs_supported);
1192 				set_bit(res->target, ioa_cfg->target_ids);
1193 			}
1194 		} else if (res->type == IPR_RES_TYPE_IOAFP) {
1195 			res->bus = IPR_IOAFP_VIRTUAL_BUS;
1196 			res->target = 0;
1197 		} else if (res->type == IPR_RES_TYPE_ARRAY) {
1198 			res->bus = IPR_ARRAY_VIRTUAL_BUS;
1199 			res->target = find_first_zero_bit(ioa_cfg->array_ids,
1200 							  ioa_cfg->max_devs_supported);
1201 			set_bit(res->target, ioa_cfg->array_ids);
1202 		} else if (res->type == IPR_RES_TYPE_VOLUME_SET) {
1203 			res->bus = IPR_VSET_VIRTUAL_BUS;
1204 			res->target = find_first_zero_bit(ioa_cfg->vset_ids,
1205 							  ioa_cfg->max_devs_supported);
1206 			set_bit(res->target, ioa_cfg->vset_ids);
1207 		} else {
1208 			res->target = find_first_zero_bit(ioa_cfg->target_ids,
1209 							  ioa_cfg->max_devs_supported);
1210 			set_bit(res->target, ioa_cfg->target_ids);
1211 		}
1212 	} else {
1213 		proto = cfgtew->u.cfgte->proto;
1214 		res->qmodel = IPR_QUEUEING_MODEL(res);
1215 		res->flags = cfgtew->u.cfgte->flags;
1216 		if (res->flags & IPR_IS_IOA_RESOURCE)
1217 			res->type = IPR_RES_TYPE_IOAFP;
1218 		else
1219 			res->type = cfgtew->u.cfgte->rsvd_subtype & 0x0f;
1220 
1221 		res->bus = cfgtew->u.cfgte->res_addr.bus;
1222 		res->target = cfgtew->u.cfgte->res_addr.target;
1223 		res->lun = cfgtew->u.cfgte->res_addr.lun;
1224 		res->lun_wwn = get_unaligned_be64(cfgtew->u.cfgte->lun_wwn);
1225 	}
1226 
1227 	ipr_update_ata_class(res, proto);
1228 }
1229 
1230 /**
1231  * ipr_is_same_device - Determine if two devices are the same.
1232  * @res:	resource entry struct
1233  * @cfgtew:	config table entry wrapper struct
1234  *
1235  * Return value:
1236  * 	1 if the devices are the same / 0 otherwise
1237  **/
ipr_is_same_device(struct ipr_resource_entry * res,struct ipr_config_table_entry_wrapper * cfgtew)1238 static int ipr_is_same_device(struct ipr_resource_entry *res,
1239 			      struct ipr_config_table_entry_wrapper *cfgtew)
1240 {
1241 	if (res->ioa_cfg->sis64) {
1242 		if (!memcmp(&res->dev_id, &cfgtew->u.cfgte64->dev_id,
1243 					sizeof(cfgtew->u.cfgte64->dev_id)) &&
1244 			!memcmp(&res->dev_lun.scsi_lun, &cfgtew->u.cfgte64->lun,
1245 					sizeof(cfgtew->u.cfgte64->lun))) {
1246 			return 1;
1247 		}
1248 	} else {
1249 		if (res->bus == cfgtew->u.cfgte->res_addr.bus &&
1250 		    res->target == cfgtew->u.cfgte->res_addr.target &&
1251 		    res->lun == cfgtew->u.cfgte->res_addr.lun)
1252 			return 1;
1253 	}
1254 
1255 	return 0;
1256 }
1257 
1258 /**
1259  * __ipr_format_res_path - Format the resource path for printing.
1260  * @res_path:	resource path
1261  * @buf:	buffer
1262  * @len:	length of buffer provided
1263  *
1264  * Return value:
1265  * 	pointer to buffer
1266  **/
__ipr_format_res_path(u8 * res_path,char * buffer,int len)1267 static char *__ipr_format_res_path(u8 *res_path, char *buffer, int len)
1268 {
1269 	int i;
1270 	char *p = buffer;
1271 
1272 	*p = '\0';
1273 	p += snprintf(p, buffer + len - p, "%02X", res_path[0]);
1274 	for (i = 1; res_path[i] != 0xff && ((i * 3) < len); i++)
1275 		p += snprintf(p, buffer + len - p, "-%02X", res_path[i]);
1276 
1277 	return buffer;
1278 }
1279 
1280 /**
1281  * ipr_format_res_path - Format the resource path for printing.
1282  * @ioa_cfg:	ioa config struct
1283  * @res_path:	resource path
1284  * @buf:	buffer
1285  * @len:	length of buffer provided
1286  *
1287  * Return value:
1288  *	pointer to buffer
1289  **/
ipr_format_res_path(struct ipr_ioa_cfg * ioa_cfg,u8 * res_path,char * buffer,int len)1290 static char *ipr_format_res_path(struct ipr_ioa_cfg *ioa_cfg,
1291 				 u8 *res_path, char *buffer, int len)
1292 {
1293 	char *p = buffer;
1294 
1295 	*p = '\0';
1296 	p += snprintf(p, buffer + len - p, "%d/", ioa_cfg->host->host_no);
1297 	__ipr_format_res_path(res_path, p, len - (buffer - p));
1298 	return buffer;
1299 }
1300 
1301 /**
1302  * ipr_update_res_entry - Update the resource entry.
1303  * @res:	resource entry struct
1304  * @cfgtew:	config table entry wrapper struct
1305  *
1306  * Return value:
1307  *      none
1308  **/
ipr_update_res_entry(struct ipr_resource_entry * res,struct ipr_config_table_entry_wrapper * cfgtew)1309 static void ipr_update_res_entry(struct ipr_resource_entry *res,
1310 				 struct ipr_config_table_entry_wrapper *cfgtew)
1311 {
1312 	char buffer[IPR_MAX_RES_PATH_LENGTH];
1313 	unsigned int proto;
1314 	int new_path = 0;
1315 
1316 	if (res->ioa_cfg->sis64) {
1317 		res->flags = be16_to_cpu(cfgtew->u.cfgte64->flags);
1318 		res->res_flags = be16_to_cpu(cfgtew->u.cfgte64->res_flags);
1319 		res->type = cfgtew->u.cfgte64->res_type;
1320 
1321 		memcpy(&res->std_inq_data, &cfgtew->u.cfgte64->std_inq_data,
1322 			sizeof(struct ipr_std_inq_data));
1323 
1324 		res->qmodel = IPR_QUEUEING_MODEL64(res);
1325 		proto = cfgtew->u.cfgte64->proto;
1326 		res->res_handle = cfgtew->u.cfgte64->res_handle;
1327 		res->dev_id = cfgtew->u.cfgte64->dev_id;
1328 
1329 		memcpy(&res->dev_lun.scsi_lun, &cfgtew->u.cfgte64->lun,
1330 			sizeof(res->dev_lun.scsi_lun));
1331 
1332 		if (memcmp(res->res_path, &cfgtew->u.cfgte64->res_path,
1333 					sizeof(res->res_path))) {
1334 			memcpy(res->res_path, &cfgtew->u.cfgte64->res_path,
1335 				sizeof(res->res_path));
1336 			new_path = 1;
1337 		}
1338 
1339 		if (res->sdev && new_path)
1340 			sdev_printk(KERN_INFO, res->sdev, "Resource path: %s\n",
1341 				    ipr_format_res_path(res->ioa_cfg,
1342 					res->res_path, buffer, sizeof(buffer)));
1343 	} else {
1344 		res->flags = cfgtew->u.cfgte->flags;
1345 		if (res->flags & IPR_IS_IOA_RESOURCE)
1346 			res->type = IPR_RES_TYPE_IOAFP;
1347 		else
1348 			res->type = cfgtew->u.cfgte->rsvd_subtype & 0x0f;
1349 
1350 		memcpy(&res->std_inq_data, &cfgtew->u.cfgte->std_inq_data,
1351 			sizeof(struct ipr_std_inq_data));
1352 
1353 		res->qmodel = IPR_QUEUEING_MODEL(res);
1354 		proto = cfgtew->u.cfgte->proto;
1355 		res->res_handle = cfgtew->u.cfgte->res_handle;
1356 	}
1357 
1358 	ipr_update_ata_class(res, proto);
1359 }
1360 
1361 /**
1362  * ipr_clear_res_target - Clear the bit in the bit map representing the target
1363  * 			  for the resource.
1364  * @res:	resource entry struct
1365  * @cfgtew:	config table entry wrapper struct
1366  *
1367  * Return value:
1368  *      none
1369  **/
ipr_clear_res_target(struct ipr_resource_entry * res)1370 static void ipr_clear_res_target(struct ipr_resource_entry *res)
1371 {
1372 	struct ipr_resource_entry *gscsi_res = NULL;
1373 	struct ipr_ioa_cfg *ioa_cfg = res->ioa_cfg;
1374 
1375 	if (!ioa_cfg->sis64)
1376 		return;
1377 
1378 	if (res->bus == IPR_ARRAY_VIRTUAL_BUS)
1379 		clear_bit(res->target, ioa_cfg->array_ids);
1380 	else if (res->bus == IPR_VSET_VIRTUAL_BUS)
1381 		clear_bit(res->target, ioa_cfg->vset_ids);
1382 	else if (res->bus == 0 && res->type == IPR_RES_TYPE_GENERIC_SCSI) {
1383 		list_for_each_entry(gscsi_res, &ioa_cfg->used_res_q, queue)
1384 			if (gscsi_res->dev_id == res->dev_id && gscsi_res != res)
1385 				return;
1386 		clear_bit(res->target, ioa_cfg->target_ids);
1387 
1388 	} else if (res->bus == 0)
1389 		clear_bit(res->target, ioa_cfg->target_ids);
1390 }
1391 
1392 /**
1393  * ipr_handle_config_change - Handle a config change from the adapter
1394  * @ioa_cfg:	ioa config struct
1395  * @hostrcb:	hostrcb
1396  *
1397  * Return value:
1398  * 	none
1399  **/
ipr_handle_config_change(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1400 static void ipr_handle_config_change(struct ipr_ioa_cfg *ioa_cfg,
1401 				     struct ipr_hostrcb *hostrcb)
1402 {
1403 	struct ipr_resource_entry *res = NULL;
1404 	struct ipr_config_table_entry_wrapper cfgtew;
1405 	__be32 cc_res_handle;
1406 
1407 	u32 is_ndn = 1;
1408 
1409 	if (ioa_cfg->sis64) {
1410 		cfgtew.u.cfgte64 = &hostrcb->hcam.u.ccn.u.cfgte64;
1411 		cc_res_handle = cfgtew.u.cfgte64->res_handle;
1412 	} else {
1413 		cfgtew.u.cfgte = &hostrcb->hcam.u.ccn.u.cfgte;
1414 		cc_res_handle = cfgtew.u.cfgte->res_handle;
1415 	}
1416 
1417 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
1418 		if (res->res_handle == cc_res_handle) {
1419 			is_ndn = 0;
1420 			break;
1421 		}
1422 	}
1423 
1424 	if (is_ndn) {
1425 		if (list_empty(&ioa_cfg->free_res_q)) {
1426 			ipr_send_hcam(ioa_cfg,
1427 				      IPR_HCAM_CDB_OP_CODE_CONFIG_CHANGE,
1428 				      hostrcb);
1429 			return;
1430 		}
1431 
1432 		res = list_entry(ioa_cfg->free_res_q.next,
1433 				 struct ipr_resource_entry, queue);
1434 
1435 		list_del(&res->queue);
1436 		ipr_init_res_entry(res, &cfgtew);
1437 		list_add_tail(&res->queue, &ioa_cfg->used_res_q);
1438 	}
1439 
1440 	ipr_update_res_entry(res, &cfgtew);
1441 
1442 	if (hostrcb->hcam.notify_type == IPR_HOST_RCB_NOTIF_TYPE_REM_ENTRY) {
1443 		if (res->sdev) {
1444 			res->del_from_ml = 1;
1445 			res->res_handle = IPR_INVALID_RES_HANDLE;
1446 			schedule_work(&ioa_cfg->work_q);
1447 		} else {
1448 			ipr_clear_res_target(res);
1449 			list_move_tail(&res->queue, &ioa_cfg->free_res_q);
1450 		}
1451 	} else if (!res->sdev || res->del_from_ml) {
1452 		res->add_to_ml = 1;
1453 		schedule_work(&ioa_cfg->work_q);
1454 	}
1455 
1456 	ipr_send_hcam(ioa_cfg, IPR_HCAM_CDB_OP_CODE_CONFIG_CHANGE, hostrcb);
1457 }
1458 
1459 /**
1460  * ipr_process_ccn - Op done function for a CCN.
1461  * @ipr_cmd:	ipr command struct
1462  *
1463  * This function is the op done function for a configuration
1464  * change notification host controlled async from the adapter.
1465  *
1466  * Return value:
1467  * 	none
1468  **/
ipr_process_ccn(struct ipr_cmnd * ipr_cmd)1469 static void ipr_process_ccn(struct ipr_cmnd *ipr_cmd)
1470 {
1471 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
1472 	struct ipr_hostrcb *hostrcb = ipr_cmd->u.hostrcb;
1473 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
1474 
1475 	list_del(&hostrcb->queue);
1476 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
1477 
1478 	if (ioasc) {
1479 		if (ioasc != IPR_IOASC_IOA_WAS_RESET &&
1480 		    ioasc != IPR_IOASC_ABORTED_CMD_TERM_BY_HOST)
1481 			dev_err(&ioa_cfg->pdev->dev,
1482 				"Host RCB failed with IOASC: 0x%08X\n", ioasc);
1483 
1484 		ipr_send_hcam(ioa_cfg, IPR_HCAM_CDB_OP_CODE_CONFIG_CHANGE, hostrcb);
1485 	} else {
1486 		ipr_handle_config_change(ioa_cfg, hostrcb);
1487 	}
1488 }
1489 
1490 /**
1491  * strip_and_pad_whitespace - Strip and pad trailing whitespace.
1492  * @i:		index into buffer
1493  * @buf:		string to modify
1494  *
1495  * This function will strip all trailing whitespace, pad the end
1496  * of the string with a single space, and NULL terminate the string.
1497  *
1498  * Return value:
1499  * 	new length of string
1500  **/
strip_and_pad_whitespace(int i,char * buf)1501 static int strip_and_pad_whitespace(int i, char *buf)
1502 {
1503 	while (i && buf[i] == ' ')
1504 		i--;
1505 	buf[i+1] = ' ';
1506 	buf[i+2] = '\0';
1507 	return i + 2;
1508 }
1509 
1510 /**
1511  * ipr_log_vpd_compact - Log the passed extended VPD compactly.
1512  * @prefix:		string to print at start of printk
1513  * @hostrcb:	hostrcb pointer
1514  * @vpd:		vendor/product id/sn struct
1515  *
1516  * Return value:
1517  * 	none
1518  **/
ipr_log_vpd_compact(char * prefix,struct ipr_hostrcb * hostrcb,struct ipr_vpd * vpd)1519 static void ipr_log_vpd_compact(char *prefix, struct ipr_hostrcb *hostrcb,
1520 				struct ipr_vpd *vpd)
1521 {
1522 	char buffer[IPR_VENDOR_ID_LEN + IPR_PROD_ID_LEN + IPR_SERIAL_NUM_LEN + 3];
1523 	int i = 0;
1524 
1525 	memcpy(buffer, vpd->vpids.vendor_id, IPR_VENDOR_ID_LEN);
1526 	i = strip_and_pad_whitespace(IPR_VENDOR_ID_LEN - 1, buffer);
1527 
1528 	memcpy(&buffer[i], vpd->vpids.product_id, IPR_PROD_ID_LEN);
1529 	i = strip_and_pad_whitespace(i + IPR_PROD_ID_LEN - 1, buffer);
1530 
1531 	memcpy(&buffer[i], vpd->sn, IPR_SERIAL_NUM_LEN);
1532 	buffer[IPR_SERIAL_NUM_LEN + i] = '\0';
1533 
1534 	ipr_hcam_err(hostrcb, "%s VPID/SN: %s\n", prefix, buffer);
1535 }
1536 
1537 /**
1538  * ipr_log_vpd - Log the passed VPD to the error log.
1539  * @vpd:		vendor/product id/sn struct
1540  *
1541  * Return value:
1542  * 	none
1543  **/
ipr_log_vpd(struct ipr_vpd * vpd)1544 static void ipr_log_vpd(struct ipr_vpd *vpd)
1545 {
1546 	char buffer[IPR_VENDOR_ID_LEN + IPR_PROD_ID_LEN
1547 		    + IPR_SERIAL_NUM_LEN];
1548 
1549 	memcpy(buffer, vpd->vpids.vendor_id, IPR_VENDOR_ID_LEN);
1550 	memcpy(buffer + IPR_VENDOR_ID_LEN, vpd->vpids.product_id,
1551 	       IPR_PROD_ID_LEN);
1552 	buffer[IPR_VENDOR_ID_LEN + IPR_PROD_ID_LEN] = '\0';
1553 	ipr_err("Vendor/Product ID: %s\n", buffer);
1554 
1555 	memcpy(buffer, vpd->sn, IPR_SERIAL_NUM_LEN);
1556 	buffer[IPR_SERIAL_NUM_LEN] = '\0';
1557 	ipr_err("    Serial Number: %s\n", buffer);
1558 }
1559 
1560 /**
1561  * ipr_log_ext_vpd_compact - Log the passed extended VPD compactly.
1562  * @prefix:		string to print at start of printk
1563  * @hostrcb:	hostrcb pointer
1564  * @vpd:		vendor/product id/sn/wwn struct
1565  *
1566  * Return value:
1567  * 	none
1568  **/
ipr_log_ext_vpd_compact(char * prefix,struct ipr_hostrcb * hostrcb,struct ipr_ext_vpd * vpd)1569 static void ipr_log_ext_vpd_compact(char *prefix, struct ipr_hostrcb *hostrcb,
1570 				    struct ipr_ext_vpd *vpd)
1571 {
1572 	ipr_log_vpd_compact(prefix, hostrcb, &vpd->vpd);
1573 	ipr_hcam_err(hostrcb, "%s WWN: %08X%08X\n", prefix,
1574 		     be32_to_cpu(vpd->wwid[0]), be32_to_cpu(vpd->wwid[1]));
1575 }
1576 
1577 /**
1578  * ipr_log_ext_vpd - Log the passed extended VPD to the error log.
1579  * @vpd:		vendor/product id/sn/wwn struct
1580  *
1581  * Return value:
1582  * 	none
1583  **/
ipr_log_ext_vpd(struct ipr_ext_vpd * vpd)1584 static void ipr_log_ext_vpd(struct ipr_ext_vpd *vpd)
1585 {
1586 	ipr_log_vpd(&vpd->vpd);
1587 	ipr_err("    WWN: %08X%08X\n", be32_to_cpu(vpd->wwid[0]),
1588 		be32_to_cpu(vpd->wwid[1]));
1589 }
1590 
1591 /**
1592  * ipr_log_enhanced_cache_error - Log a cache error.
1593  * @ioa_cfg:	ioa config struct
1594  * @hostrcb:	hostrcb struct
1595  *
1596  * Return value:
1597  * 	none
1598  **/
ipr_log_enhanced_cache_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1599 static void ipr_log_enhanced_cache_error(struct ipr_ioa_cfg *ioa_cfg,
1600 					 struct ipr_hostrcb *hostrcb)
1601 {
1602 	struct ipr_hostrcb_type_12_error *error;
1603 
1604 	if (ioa_cfg->sis64)
1605 		error = &hostrcb->hcam.u.error64.u.type_12_error;
1606 	else
1607 		error = &hostrcb->hcam.u.error.u.type_12_error;
1608 
1609 	ipr_err("-----Current Configuration-----\n");
1610 	ipr_err("Cache Directory Card Information:\n");
1611 	ipr_log_ext_vpd(&error->ioa_vpd);
1612 	ipr_err("Adapter Card Information:\n");
1613 	ipr_log_ext_vpd(&error->cfc_vpd);
1614 
1615 	ipr_err("-----Expected Configuration-----\n");
1616 	ipr_err("Cache Directory Card Information:\n");
1617 	ipr_log_ext_vpd(&error->ioa_last_attached_to_cfc_vpd);
1618 	ipr_err("Adapter Card Information:\n");
1619 	ipr_log_ext_vpd(&error->cfc_last_attached_to_ioa_vpd);
1620 
1621 	ipr_err("Additional IOA Data: %08X %08X %08X\n",
1622 		     be32_to_cpu(error->ioa_data[0]),
1623 		     be32_to_cpu(error->ioa_data[1]),
1624 		     be32_to_cpu(error->ioa_data[2]));
1625 }
1626 
1627 /**
1628  * ipr_log_cache_error - Log a cache error.
1629  * @ioa_cfg:	ioa config struct
1630  * @hostrcb:	hostrcb struct
1631  *
1632  * Return value:
1633  * 	none
1634  **/
ipr_log_cache_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1635 static void ipr_log_cache_error(struct ipr_ioa_cfg *ioa_cfg,
1636 				struct ipr_hostrcb *hostrcb)
1637 {
1638 	struct ipr_hostrcb_type_02_error *error =
1639 		&hostrcb->hcam.u.error.u.type_02_error;
1640 
1641 	ipr_err("-----Current Configuration-----\n");
1642 	ipr_err("Cache Directory Card Information:\n");
1643 	ipr_log_vpd(&error->ioa_vpd);
1644 	ipr_err("Adapter Card Information:\n");
1645 	ipr_log_vpd(&error->cfc_vpd);
1646 
1647 	ipr_err("-----Expected Configuration-----\n");
1648 	ipr_err("Cache Directory Card Information:\n");
1649 	ipr_log_vpd(&error->ioa_last_attached_to_cfc_vpd);
1650 	ipr_err("Adapter Card Information:\n");
1651 	ipr_log_vpd(&error->cfc_last_attached_to_ioa_vpd);
1652 
1653 	ipr_err("Additional IOA Data: %08X %08X %08X\n",
1654 		     be32_to_cpu(error->ioa_data[0]),
1655 		     be32_to_cpu(error->ioa_data[1]),
1656 		     be32_to_cpu(error->ioa_data[2]));
1657 }
1658 
1659 /**
1660  * ipr_log_enhanced_config_error - Log a configuration error.
1661  * @ioa_cfg:	ioa config struct
1662  * @hostrcb:	hostrcb struct
1663  *
1664  * Return value:
1665  * 	none
1666  **/
ipr_log_enhanced_config_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1667 static void ipr_log_enhanced_config_error(struct ipr_ioa_cfg *ioa_cfg,
1668 					  struct ipr_hostrcb *hostrcb)
1669 {
1670 	int errors_logged, i;
1671 	struct ipr_hostrcb_device_data_entry_enhanced *dev_entry;
1672 	struct ipr_hostrcb_type_13_error *error;
1673 
1674 	error = &hostrcb->hcam.u.error.u.type_13_error;
1675 	errors_logged = be32_to_cpu(error->errors_logged);
1676 
1677 	ipr_err("Device Errors Detected/Logged: %d/%d\n",
1678 		be32_to_cpu(error->errors_detected), errors_logged);
1679 
1680 	dev_entry = error->dev;
1681 
1682 	for (i = 0; i < errors_logged; i++, dev_entry++) {
1683 		ipr_err_separator;
1684 
1685 		ipr_phys_res_err(ioa_cfg, dev_entry->dev_res_addr, "Device %d", i + 1);
1686 		ipr_log_ext_vpd(&dev_entry->vpd);
1687 
1688 		ipr_err("-----New Device Information-----\n");
1689 		ipr_log_ext_vpd(&dev_entry->new_vpd);
1690 
1691 		ipr_err("Cache Directory Card Information:\n");
1692 		ipr_log_ext_vpd(&dev_entry->ioa_last_with_dev_vpd);
1693 
1694 		ipr_err("Adapter Card Information:\n");
1695 		ipr_log_ext_vpd(&dev_entry->cfc_last_with_dev_vpd);
1696 	}
1697 }
1698 
1699 /**
1700  * ipr_log_sis64_config_error - Log a device error.
1701  * @ioa_cfg:	ioa config struct
1702  * @hostrcb:	hostrcb struct
1703  *
1704  * Return value:
1705  * 	none
1706  **/
ipr_log_sis64_config_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1707 static void ipr_log_sis64_config_error(struct ipr_ioa_cfg *ioa_cfg,
1708 				       struct ipr_hostrcb *hostrcb)
1709 {
1710 	int errors_logged, i;
1711 	struct ipr_hostrcb64_device_data_entry_enhanced *dev_entry;
1712 	struct ipr_hostrcb_type_23_error *error;
1713 	char buffer[IPR_MAX_RES_PATH_LENGTH];
1714 
1715 	error = &hostrcb->hcam.u.error64.u.type_23_error;
1716 	errors_logged = be32_to_cpu(error->errors_logged);
1717 
1718 	ipr_err("Device Errors Detected/Logged: %d/%d\n",
1719 		be32_to_cpu(error->errors_detected), errors_logged);
1720 
1721 	dev_entry = error->dev;
1722 
1723 	for (i = 0; i < errors_logged; i++, dev_entry++) {
1724 		ipr_err_separator;
1725 
1726 		ipr_err("Device %d : %s", i + 1,
1727 			__ipr_format_res_path(dev_entry->res_path,
1728 					      buffer, sizeof(buffer)));
1729 		ipr_log_ext_vpd(&dev_entry->vpd);
1730 
1731 		ipr_err("-----New Device Information-----\n");
1732 		ipr_log_ext_vpd(&dev_entry->new_vpd);
1733 
1734 		ipr_err("Cache Directory Card Information:\n");
1735 		ipr_log_ext_vpd(&dev_entry->ioa_last_with_dev_vpd);
1736 
1737 		ipr_err("Adapter Card Information:\n");
1738 		ipr_log_ext_vpd(&dev_entry->cfc_last_with_dev_vpd);
1739 	}
1740 }
1741 
1742 /**
1743  * ipr_log_config_error - Log a configuration error.
1744  * @ioa_cfg:	ioa config struct
1745  * @hostrcb:	hostrcb struct
1746  *
1747  * Return value:
1748  * 	none
1749  **/
ipr_log_config_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1750 static void ipr_log_config_error(struct ipr_ioa_cfg *ioa_cfg,
1751 				 struct ipr_hostrcb *hostrcb)
1752 {
1753 	int errors_logged, i;
1754 	struct ipr_hostrcb_device_data_entry *dev_entry;
1755 	struct ipr_hostrcb_type_03_error *error;
1756 
1757 	error = &hostrcb->hcam.u.error.u.type_03_error;
1758 	errors_logged = be32_to_cpu(error->errors_logged);
1759 
1760 	ipr_err("Device Errors Detected/Logged: %d/%d\n",
1761 		be32_to_cpu(error->errors_detected), errors_logged);
1762 
1763 	dev_entry = error->dev;
1764 
1765 	for (i = 0; i < errors_logged; i++, dev_entry++) {
1766 		ipr_err_separator;
1767 
1768 		ipr_phys_res_err(ioa_cfg, dev_entry->dev_res_addr, "Device %d", i + 1);
1769 		ipr_log_vpd(&dev_entry->vpd);
1770 
1771 		ipr_err("-----New Device Information-----\n");
1772 		ipr_log_vpd(&dev_entry->new_vpd);
1773 
1774 		ipr_err("Cache Directory Card Information:\n");
1775 		ipr_log_vpd(&dev_entry->ioa_last_with_dev_vpd);
1776 
1777 		ipr_err("Adapter Card Information:\n");
1778 		ipr_log_vpd(&dev_entry->cfc_last_with_dev_vpd);
1779 
1780 		ipr_err("Additional IOA Data: %08X %08X %08X %08X %08X\n",
1781 			be32_to_cpu(dev_entry->ioa_data[0]),
1782 			be32_to_cpu(dev_entry->ioa_data[1]),
1783 			be32_to_cpu(dev_entry->ioa_data[2]),
1784 			be32_to_cpu(dev_entry->ioa_data[3]),
1785 			be32_to_cpu(dev_entry->ioa_data[4]));
1786 	}
1787 }
1788 
1789 /**
1790  * ipr_log_enhanced_array_error - Log an array configuration error.
1791  * @ioa_cfg:	ioa config struct
1792  * @hostrcb:	hostrcb struct
1793  *
1794  * Return value:
1795  * 	none
1796  **/
ipr_log_enhanced_array_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1797 static void ipr_log_enhanced_array_error(struct ipr_ioa_cfg *ioa_cfg,
1798 					 struct ipr_hostrcb *hostrcb)
1799 {
1800 	int i, num_entries;
1801 	struct ipr_hostrcb_type_14_error *error;
1802 	struct ipr_hostrcb_array_data_entry_enhanced *array_entry;
1803 	const u8 zero_sn[IPR_SERIAL_NUM_LEN] = { [0 ... IPR_SERIAL_NUM_LEN-1] = '0' };
1804 
1805 	error = &hostrcb->hcam.u.error.u.type_14_error;
1806 
1807 	ipr_err_separator;
1808 
1809 	ipr_err("RAID %s Array Configuration: %d:%d:%d:%d\n",
1810 		error->protection_level,
1811 		ioa_cfg->host->host_no,
1812 		error->last_func_vset_res_addr.bus,
1813 		error->last_func_vset_res_addr.target,
1814 		error->last_func_vset_res_addr.lun);
1815 
1816 	ipr_err_separator;
1817 
1818 	array_entry = error->array_member;
1819 	num_entries = min_t(u32, be32_to_cpu(error->num_entries),
1820 			    ARRAY_SIZE(error->array_member));
1821 
1822 	for (i = 0; i < num_entries; i++, array_entry++) {
1823 		if (!memcmp(array_entry->vpd.vpd.sn, zero_sn, IPR_SERIAL_NUM_LEN))
1824 			continue;
1825 
1826 		if (be32_to_cpu(error->exposed_mode_adn) == i)
1827 			ipr_err("Exposed Array Member %d:\n", i);
1828 		else
1829 			ipr_err("Array Member %d:\n", i);
1830 
1831 		ipr_log_ext_vpd(&array_entry->vpd);
1832 		ipr_phys_res_err(ioa_cfg, array_entry->dev_res_addr, "Current Location");
1833 		ipr_phys_res_err(ioa_cfg, array_entry->expected_dev_res_addr,
1834 				 "Expected Location");
1835 
1836 		ipr_err_separator;
1837 	}
1838 }
1839 
1840 /**
1841  * ipr_log_array_error - Log an array configuration error.
1842  * @ioa_cfg:	ioa config struct
1843  * @hostrcb:	hostrcb struct
1844  *
1845  * Return value:
1846  * 	none
1847  **/
ipr_log_array_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1848 static void ipr_log_array_error(struct ipr_ioa_cfg *ioa_cfg,
1849 				struct ipr_hostrcb *hostrcb)
1850 {
1851 	int i;
1852 	struct ipr_hostrcb_type_04_error *error;
1853 	struct ipr_hostrcb_array_data_entry *array_entry;
1854 	const u8 zero_sn[IPR_SERIAL_NUM_LEN] = { [0 ... IPR_SERIAL_NUM_LEN-1] = '0' };
1855 
1856 	error = &hostrcb->hcam.u.error.u.type_04_error;
1857 
1858 	ipr_err_separator;
1859 
1860 	ipr_err("RAID %s Array Configuration: %d:%d:%d:%d\n",
1861 		error->protection_level,
1862 		ioa_cfg->host->host_no,
1863 		error->last_func_vset_res_addr.bus,
1864 		error->last_func_vset_res_addr.target,
1865 		error->last_func_vset_res_addr.lun);
1866 
1867 	ipr_err_separator;
1868 
1869 	array_entry = error->array_member;
1870 
1871 	for (i = 0; i < 18; i++) {
1872 		if (!memcmp(array_entry->vpd.sn, zero_sn, IPR_SERIAL_NUM_LEN))
1873 			continue;
1874 
1875 		if (be32_to_cpu(error->exposed_mode_adn) == i)
1876 			ipr_err("Exposed Array Member %d:\n", i);
1877 		else
1878 			ipr_err("Array Member %d:\n", i);
1879 
1880 		ipr_log_vpd(&array_entry->vpd);
1881 
1882 		ipr_phys_res_err(ioa_cfg, array_entry->dev_res_addr, "Current Location");
1883 		ipr_phys_res_err(ioa_cfg, array_entry->expected_dev_res_addr,
1884 				 "Expected Location");
1885 
1886 		ipr_err_separator;
1887 
1888 		if (i == 9)
1889 			array_entry = error->array_member2;
1890 		else
1891 			array_entry++;
1892 	}
1893 }
1894 
1895 /**
1896  * ipr_log_hex_data - Log additional hex IOA error data.
1897  * @ioa_cfg:	ioa config struct
1898  * @data:		IOA error data
1899  * @len:		data length
1900  *
1901  * Return value:
1902  * 	none
1903  **/
ipr_log_hex_data(struct ipr_ioa_cfg * ioa_cfg,__be32 * data,int len)1904 static void ipr_log_hex_data(struct ipr_ioa_cfg *ioa_cfg, __be32 *data, int len)
1905 {
1906 	int i;
1907 
1908 	if (len == 0)
1909 		return;
1910 
1911 	if (ioa_cfg->log_level <= IPR_DEFAULT_LOG_LEVEL)
1912 		len = min_t(int, len, IPR_DEFAULT_MAX_ERROR_DUMP);
1913 
1914 	for (i = 0; i < len / 4; i += 4) {
1915 		ipr_err("%08X: %08X %08X %08X %08X\n", i*4,
1916 			be32_to_cpu(data[i]),
1917 			be32_to_cpu(data[i+1]),
1918 			be32_to_cpu(data[i+2]),
1919 			be32_to_cpu(data[i+3]));
1920 	}
1921 }
1922 
1923 /**
1924  * ipr_log_enhanced_dual_ioa_error - Log an enhanced dual adapter error.
1925  * @ioa_cfg:	ioa config struct
1926  * @hostrcb:	hostrcb struct
1927  *
1928  * Return value:
1929  * 	none
1930  **/
ipr_log_enhanced_dual_ioa_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1931 static void ipr_log_enhanced_dual_ioa_error(struct ipr_ioa_cfg *ioa_cfg,
1932 					    struct ipr_hostrcb *hostrcb)
1933 {
1934 	struct ipr_hostrcb_type_17_error *error;
1935 
1936 	if (ioa_cfg->sis64)
1937 		error = &hostrcb->hcam.u.error64.u.type_17_error;
1938 	else
1939 		error = &hostrcb->hcam.u.error.u.type_17_error;
1940 
1941 	error->failure_reason[sizeof(error->failure_reason) - 1] = '\0';
1942 	strim(error->failure_reason);
1943 
1944 	ipr_hcam_err(hostrcb, "%s [PRC: %08X]\n", error->failure_reason,
1945 		     be32_to_cpu(hostrcb->hcam.u.error.prc));
1946 	ipr_log_ext_vpd_compact("Remote IOA", hostrcb, &error->vpd);
1947 	ipr_log_hex_data(ioa_cfg, error->data,
1948 			 be32_to_cpu(hostrcb->hcam.length) -
1949 			 (offsetof(struct ipr_hostrcb_error, u) +
1950 			  offsetof(struct ipr_hostrcb_type_17_error, data)));
1951 }
1952 
1953 /**
1954  * ipr_log_dual_ioa_error - Log a dual adapter error.
1955  * @ioa_cfg:	ioa config struct
1956  * @hostrcb:	hostrcb struct
1957  *
1958  * Return value:
1959  * 	none
1960  **/
ipr_log_dual_ioa_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)1961 static void ipr_log_dual_ioa_error(struct ipr_ioa_cfg *ioa_cfg,
1962 				   struct ipr_hostrcb *hostrcb)
1963 {
1964 	struct ipr_hostrcb_type_07_error *error;
1965 
1966 	error = &hostrcb->hcam.u.error.u.type_07_error;
1967 	error->failure_reason[sizeof(error->failure_reason) - 1] = '\0';
1968 	strim(error->failure_reason);
1969 
1970 	ipr_hcam_err(hostrcb, "%s [PRC: %08X]\n", error->failure_reason,
1971 		     be32_to_cpu(hostrcb->hcam.u.error.prc));
1972 	ipr_log_vpd_compact("Remote IOA", hostrcb, &error->vpd);
1973 	ipr_log_hex_data(ioa_cfg, error->data,
1974 			 be32_to_cpu(hostrcb->hcam.length) -
1975 			 (offsetof(struct ipr_hostrcb_error, u) +
1976 			  offsetof(struct ipr_hostrcb_type_07_error, data)));
1977 }
1978 
1979 static const struct {
1980 	u8 active;
1981 	char *desc;
1982 } path_active_desc[] = {
1983 	{ IPR_PATH_NO_INFO, "Path" },
1984 	{ IPR_PATH_ACTIVE, "Active path" },
1985 	{ IPR_PATH_NOT_ACTIVE, "Inactive path" }
1986 };
1987 
1988 static const struct {
1989 	u8 state;
1990 	char *desc;
1991 } path_state_desc[] = {
1992 	{ IPR_PATH_STATE_NO_INFO, "has no path state information available" },
1993 	{ IPR_PATH_HEALTHY, "is healthy" },
1994 	{ IPR_PATH_DEGRADED, "is degraded" },
1995 	{ IPR_PATH_FAILED, "is failed" }
1996 };
1997 
1998 /**
1999  * ipr_log_fabric_path - Log a fabric path error
2000  * @hostrcb:	hostrcb struct
2001  * @fabric:		fabric descriptor
2002  *
2003  * Return value:
2004  * 	none
2005  **/
ipr_log_fabric_path(struct ipr_hostrcb * hostrcb,struct ipr_hostrcb_fabric_desc * fabric)2006 static void ipr_log_fabric_path(struct ipr_hostrcb *hostrcb,
2007 				struct ipr_hostrcb_fabric_desc *fabric)
2008 {
2009 	int i, j;
2010 	u8 path_state = fabric->path_state;
2011 	u8 active = path_state & IPR_PATH_ACTIVE_MASK;
2012 	u8 state = path_state & IPR_PATH_STATE_MASK;
2013 
2014 	for (i = 0; i < ARRAY_SIZE(path_active_desc); i++) {
2015 		if (path_active_desc[i].active != active)
2016 			continue;
2017 
2018 		for (j = 0; j < ARRAY_SIZE(path_state_desc); j++) {
2019 			if (path_state_desc[j].state != state)
2020 				continue;
2021 
2022 			if (fabric->cascaded_expander == 0xff && fabric->phy == 0xff) {
2023 				ipr_hcam_err(hostrcb, "%s %s: IOA Port=%d\n",
2024 					     path_active_desc[i].desc, path_state_desc[j].desc,
2025 					     fabric->ioa_port);
2026 			} else if (fabric->cascaded_expander == 0xff) {
2027 				ipr_hcam_err(hostrcb, "%s %s: IOA Port=%d, Phy=%d\n",
2028 					     path_active_desc[i].desc, path_state_desc[j].desc,
2029 					     fabric->ioa_port, fabric->phy);
2030 			} else if (fabric->phy == 0xff) {
2031 				ipr_hcam_err(hostrcb, "%s %s: IOA Port=%d, Cascade=%d\n",
2032 					     path_active_desc[i].desc, path_state_desc[j].desc,
2033 					     fabric->ioa_port, fabric->cascaded_expander);
2034 			} else {
2035 				ipr_hcam_err(hostrcb, "%s %s: IOA Port=%d, Cascade=%d, Phy=%d\n",
2036 					     path_active_desc[i].desc, path_state_desc[j].desc,
2037 					     fabric->ioa_port, fabric->cascaded_expander, fabric->phy);
2038 			}
2039 			return;
2040 		}
2041 	}
2042 
2043 	ipr_err("Path state=%02X IOA Port=%d Cascade=%d Phy=%d\n", path_state,
2044 		fabric->ioa_port, fabric->cascaded_expander, fabric->phy);
2045 }
2046 
2047 /**
2048  * ipr_log64_fabric_path - Log a fabric path error
2049  * @hostrcb:	hostrcb struct
2050  * @fabric:		fabric descriptor
2051  *
2052  * Return value:
2053  * 	none
2054  **/
ipr_log64_fabric_path(struct ipr_hostrcb * hostrcb,struct ipr_hostrcb64_fabric_desc * fabric)2055 static void ipr_log64_fabric_path(struct ipr_hostrcb *hostrcb,
2056 				  struct ipr_hostrcb64_fabric_desc *fabric)
2057 {
2058 	int i, j;
2059 	u8 path_state = fabric->path_state;
2060 	u8 active = path_state & IPR_PATH_ACTIVE_MASK;
2061 	u8 state = path_state & IPR_PATH_STATE_MASK;
2062 	char buffer[IPR_MAX_RES_PATH_LENGTH];
2063 
2064 	for (i = 0; i < ARRAY_SIZE(path_active_desc); i++) {
2065 		if (path_active_desc[i].active != active)
2066 			continue;
2067 
2068 		for (j = 0; j < ARRAY_SIZE(path_state_desc); j++) {
2069 			if (path_state_desc[j].state != state)
2070 				continue;
2071 
2072 			ipr_hcam_err(hostrcb, "%s %s: Resource Path=%s\n",
2073 				     path_active_desc[i].desc, path_state_desc[j].desc,
2074 				     ipr_format_res_path(hostrcb->ioa_cfg,
2075 						fabric->res_path,
2076 						buffer, sizeof(buffer)));
2077 			return;
2078 		}
2079 	}
2080 
2081 	ipr_err("Path state=%02X Resource Path=%s\n", path_state,
2082 		ipr_format_res_path(hostrcb->ioa_cfg, fabric->res_path,
2083 				    buffer, sizeof(buffer)));
2084 }
2085 
2086 static const struct {
2087 	u8 type;
2088 	char *desc;
2089 } path_type_desc[] = {
2090 	{ IPR_PATH_CFG_IOA_PORT, "IOA port" },
2091 	{ IPR_PATH_CFG_EXP_PORT, "Expander port" },
2092 	{ IPR_PATH_CFG_DEVICE_PORT, "Device port" },
2093 	{ IPR_PATH_CFG_DEVICE_LUN, "Device LUN" }
2094 };
2095 
2096 static const struct {
2097 	u8 status;
2098 	char *desc;
2099 } path_status_desc[] = {
2100 	{ IPR_PATH_CFG_NO_PROB, "Functional" },
2101 	{ IPR_PATH_CFG_DEGRADED, "Degraded" },
2102 	{ IPR_PATH_CFG_FAILED, "Failed" },
2103 	{ IPR_PATH_CFG_SUSPECT, "Suspect" },
2104 	{ IPR_PATH_NOT_DETECTED, "Missing" },
2105 	{ IPR_PATH_INCORRECT_CONN, "Incorrectly connected" }
2106 };
2107 
2108 static const char *link_rate[] = {
2109 	"unknown",
2110 	"disabled",
2111 	"phy reset problem",
2112 	"spinup hold",
2113 	"port selector",
2114 	"unknown",
2115 	"unknown",
2116 	"unknown",
2117 	"1.5Gbps",
2118 	"3.0Gbps",
2119 	"unknown",
2120 	"unknown",
2121 	"unknown",
2122 	"unknown",
2123 	"unknown",
2124 	"unknown"
2125 };
2126 
2127 /**
2128  * ipr_log_path_elem - Log a fabric path element.
2129  * @hostrcb:	hostrcb struct
2130  * @cfg:		fabric path element struct
2131  *
2132  * Return value:
2133  * 	none
2134  **/
ipr_log_path_elem(struct ipr_hostrcb * hostrcb,struct ipr_hostrcb_config_element * cfg)2135 static void ipr_log_path_elem(struct ipr_hostrcb *hostrcb,
2136 			      struct ipr_hostrcb_config_element *cfg)
2137 {
2138 	int i, j;
2139 	u8 type = cfg->type_status & IPR_PATH_CFG_TYPE_MASK;
2140 	u8 status = cfg->type_status & IPR_PATH_CFG_STATUS_MASK;
2141 
2142 	if (type == IPR_PATH_CFG_NOT_EXIST)
2143 		return;
2144 
2145 	for (i = 0; i < ARRAY_SIZE(path_type_desc); i++) {
2146 		if (path_type_desc[i].type != type)
2147 			continue;
2148 
2149 		for (j = 0; j < ARRAY_SIZE(path_status_desc); j++) {
2150 			if (path_status_desc[j].status != status)
2151 				continue;
2152 
2153 			if (type == IPR_PATH_CFG_IOA_PORT) {
2154 				ipr_hcam_err(hostrcb, "%s %s: Phy=%d, Link rate=%s, WWN=%08X%08X\n",
2155 					     path_status_desc[j].desc, path_type_desc[i].desc,
2156 					     cfg->phy, link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2157 					     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2158 			} else {
2159 				if (cfg->cascaded_expander == 0xff && cfg->phy == 0xff) {
2160 					ipr_hcam_err(hostrcb, "%s %s: Link rate=%s, WWN=%08X%08X\n",
2161 						     path_status_desc[j].desc, path_type_desc[i].desc,
2162 						     link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2163 						     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2164 				} else if (cfg->cascaded_expander == 0xff) {
2165 					ipr_hcam_err(hostrcb, "%s %s: Phy=%d, Link rate=%s, "
2166 						     "WWN=%08X%08X\n", path_status_desc[j].desc,
2167 						     path_type_desc[i].desc, cfg->phy,
2168 						     link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2169 						     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2170 				} else if (cfg->phy == 0xff) {
2171 					ipr_hcam_err(hostrcb, "%s %s: Cascade=%d, Link rate=%s, "
2172 						     "WWN=%08X%08X\n", path_status_desc[j].desc,
2173 						     path_type_desc[i].desc, cfg->cascaded_expander,
2174 						     link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2175 						     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2176 				} else {
2177 					ipr_hcam_err(hostrcb, "%s %s: Cascade=%d, Phy=%d, Link rate=%s "
2178 						     "WWN=%08X%08X\n", path_status_desc[j].desc,
2179 						     path_type_desc[i].desc, cfg->cascaded_expander, cfg->phy,
2180 						     link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2181 						     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2182 				}
2183 			}
2184 			return;
2185 		}
2186 	}
2187 
2188 	ipr_hcam_err(hostrcb, "Path element=%02X: Cascade=%d Phy=%d Link rate=%s "
2189 		     "WWN=%08X%08X\n", cfg->type_status, cfg->cascaded_expander, cfg->phy,
2190 		     link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2191 		     be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2192 }
2193 
2194 /**
2195  * ipr_log64_path_elem - Log a fabric path element.
2196  * @hostrcb:	hostrcb struct
2197  * @cfg:		fabric path element struct
2198  *
2199  * Return value:
2200  * 	none
2201  **/
ipr_log64_path_elem(struct ipr_hostrcb * hostrcb,struct ipr_hostrcb64_config_element * cfg)2202 static void ipr_log64_path_elem(struct ipr_hostrcb *hostrcb,
2203 				struct ipr_hostrcb64_config_element *cfg)
2204 {
2205 	int i, j;
2206 	u8 desc_id = cfg->descriptor_id & IPR_DESCRIPTOR_MASK;
2207 	u8 type = cfg->type_status & IPR_PATH_CFG_TYPE_MASK;
2208 	u8 status = cfg->type_status & IPR_PATH_CFG_STATUS_MASK;
2209 	char buffer[IPR_MAX_RES_PATH_LENGTH];
2210 
2211 	if (type == IPR_PATH_CFG_NOT_EXIST || desc_id != IPR_DESCRIPTOR_SIS64)
2212 		return;
2213 
2214 	for (i = 0; i < ARRAY_SIZE(path_type_desc); i++) {
2215 		if (path_type_desc[i].type != type)
2216 			continue;
2217 
2218 		for (j = 0; j < ARRAY_SIZE(path_status_desc); j++) {
2219 			if (path_status_desc[j].status != status)
2220 				continue;
2221 
2222 			ipr_hcam_err(hostrcb, "%s %s: Resource Path=%s, Link rate=%s, WWN=%08X%08X\n",
2223 				     path_status_desc[j].desc, path_type_desc[i].desc,
2224 				     ipr_format_res_path(hostrcb->ioa_cfg,
2225 					cfg->res_path, buffer, sizeof(buffer)),
2226 					link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2227 					be32_to_cpu(cfg->wwid[0]),
2228 					be32_to_cpu(cfg->wwid[1]));
2229 			return;
2230 		}
2231 	}
2232 	ipr_hcam_err(hostrcb, "Path element=%02X: Resource Path=%s, Link rate=%s "
2233 		     "WWN=%08X%08X\n", cfg->type_status,
2234 		     ipr_format_res_path(hostrcb->ioa_cfg,
2235 			cfg->res_path, buffer, sizeof(buffer)),
2236 			link_rate[cfg->link_rate & IPR_PHY_LINK_RATE_MASK],
2237 			be32_to_cpu(cfg->wwid[0]), be32_to_cpu(cfg->wwid[1]));
2238 }
2239 
2240 /**
2241  * ipr_log_fabric_error - Log a fabric error.
2242  * @ioa_cfg:	ioa config struct
2243  * @hostrcb:	hostrcb struct
2244  *
2245  * Return value:
2246  * 	none
2247  **/
ipr_log_fabric_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2248 static void ipr_log_fabric_error(struct ipr_ioa_cfg *ioa_cfg,
2249 				 struct ipr_hostrcb *hostrcb)
2250 {
2251 	struct ipr_hostrcb_type_20_error *error;
2252 	struct ipr_hostrcb_fabric_desc *fabric;
2253 	struct ipr_hostrcb_config_element *cfg;
2254 	int i, add_len;
2255 
2256 	error = &hostrcb->hcam.u.error.u.type_20_error;
2257 	error->failure_reason[sizeof(error->failure_reason) - 1] = '\0';
2258 	ipr_hcam_err(hostrcb, "%s\n", error->failure_reason);
2259 
2260 	add_len = be32_to_cpu(hostrcb->hcam.length) -
2261 		(offsetof(struct ipr_hostrcb_error, u) +
2262 		 offsetof(struct ipr_hostrcb_type_20_error, desc));
2263 
2264 	for (i = 0, fabric = error->desc; i < error->num_entries; i++) {
2265 		ipr_log_fabric_path(hostrcb, fabric);
2266 		for_each_fabric_cfg(fabric, cfg)
2267 			ipr_log_path_elem(hostrcb, cfg);
2268 
2269 		add_len -= be16_to_cpu(fabric->length);
2270 		fabric = (struct ipr_hostrcb_fabric_desc *)
2271 			((unsigned long)fabric + be16_to_cpu(fabric->length));
2272 	}
2273 
2274 	ipr_log_hex_data(ioa_cfg, (__be32 *)fabric, add_len);
2275 }
2276 
2277 /**
2278  * ipr_log_sis64_array_error - Log a sis64 array error.
2279  * @ioa_cfg:	ioa config struct
2280  * @hostrcb:	hostrcb struct
2281  *
2282  * Return value:
2283  * 	none
2284  **/
ipr_log_sis64_array_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2285 static void ipr_log_sis64_array_error(struct ipr_ioa_cfg *ioa_cfg,
2286 				      struct ipr_hostrcb *hostrcb)
2287 {
2288 	int i, num_entries;
2289 	struct ipr_hostrcb_type_24_error *error;
2290 	struct ipr_hostrcb64_array_data_entry *array_entry;
2291 	char buffer[IPR_MAX_RES_PATH_LENGTH];
2292 	const u8 zero_sn[IPR_SERIAL_NUM_LEN] = { [0 ... IPR_SERIAL_NUM_LEN-1] = '0' };
2293 
2294 	error = &hostrcb->hcam.u.error64.u.type_24_error;
2295 
2296 	ipr_err_separator;
2297 
2298 	ipr_err("RAID %s Array Configuration: %s\n",
2299 		error->protection_level,
2300 		ipr_format_res_path(ioa_cfg, error->last_res_path,
2301 			buffer, sizeof(buffer)));
2302 
2303 	ipr_err_separator;
2304 
2305 	array_entry = error->array_member;
2306 	num_entries = min_t(u32, error->num_entries,
2307 			    ARRAY_SIZE(error->array_member));
2308 
2309 	for (i = 0; i < num_entries; i++, array_entry++) {
2310 
2311 		if (!memcmp(array_entry->vpd.vpd.sn, zero_sn, IPR_SERIAL_NUM_LEN))
2312 			continue;
2313 
2314 		if (error->exposed_mode_adn == i)
2315 			ipr_err("Exposed Array Member %d:\n", i);
2316 		else
2317 			ipr_err("Array Member %d:\n", i);
2318 
2319 		ipr_err("Array Member %d:\n", i);
2320 		ipr_log_ext_vpd(&array_entry->vpd);
2321 		ipr_err("Current Location: %s\n",
2322 			 ipr_format_res_path(ioa_cfg, array_entry->res_path,
2323 				buffer, sizeof(buffer)));
2324 		ipr_err("Expected Location: %s\n",
2325 			 ipr_format_res_path(ioa_cfg,
2326 				array_entry->expected_res_path,
2327 				buffer, sizeof(buffer)));
2328 
2329 		ipr_err_separator;
2330 	}
2331 }
2332 
2333 /**
2334  * ipr_log_sis64_fabric_error - Log a sis64 fabric error.
2335  * @ioa_cfg:	ioa config struct
2336  * @hostrcb:	hostrcb struct
2337  *
2338  * Return value:
2339  * 	none
2340  **/
ipr_log_sis64_fabric_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2341 static void ipr_log_sis64_fabric_error(struct ipr_ioa_cfg *ioa_cfg,
2342 				       struct ipr_hostrcb *hostrcb)
2343 {
2344 	struct ipr_hostrcb_type_30_error *error;
2345 	struct ipr_hostrcb64_fabric_desc *fabric;
2346 	struct ipr_hostrcb64_config_element *cfg;
2347 	int i, add_len;
2348 
2349 	error = &hostrcb->hcam.u.error64.u.type_30_error;
2350 
2351 	error->failure_reason[sizeof(error->failure_reason) - 1] = '\0';
2352 	ipr_hcam_err(hostrcb, "%s\n", error->failure_reason);
2353 
2354 	add_len = be32_to_cpu(hostrcb->hcam.length) -
2355 		(offsetof(struct ipr_hostrcb64_error, u) +
2356 		 offsetof(struct ipr_hostrcb_type_30_error, desc));
2357 
2358 	for (i = 0, fabric = error->desc; i < error->num_entries; i++) {
2359 		ipr_log64_fabric_path(hostrcb, fabric);
2360 		for_each_fabric_cfg(fabric, cfg)
2361 			ipr_log64_path_elem(hostrcb, cfg);
2362 
2363 		add_len -= be16_to_cpu(fabric->length);
2364 		fabric = (struct ipr_hostrcb64_fabric_desc *)
2365 			((unsigned long)fabric + be16_to_cpu(fabric->length));
2366 	}
2367 
2368 	ipr_log_hex_data(ioa_cfg, (__be32 *)fabric, add_len);
2369 }
2370 
2371 /**
2372  * ipr_log_generic_error - Log an adapter error.
2373  * @ioa_cfg:	ioa config struct
2374  * @hostrcb:	hostrcb struct
2375  *
2376  * Return value:
2377  * 	none
2378  **/
ipr_log_generic_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2379 static void ipr_log_generic_error(struct ipr_ioa_cfg *ioa_cfg,
2380 				  struct ipr_hostrcb *hostrcb)
2381 {
2382 	ipr_log_hex_data(ioa_cfg, hostrcb->hcam.u.raw.data,
2383 			 be32_to_cpu(hostrcb->hcam.length));
2384 }
2385 
2386 /**
2387  * ipr_log_sis64_device_error - Log a cache error.
2388  * @ioa_cfg:	ioa config struct
2389  * @hostrcb:	hostrcb struct
2390  *
2391  * Return value:
2392  * 	none
2393  **/
ipr_log_sis64_device_error(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2394 static void ipr_log_sis64_device_error(struct ipr_ioa_cfg *ioa_cfg,
2395 					 struct ipr_hostrcb *hostrcb)
2396 {
2397 	struct ipr_hostrcb_type_21_error *error;
2398 	char buffer[IPR_MAX_RES_PATH_LENGTH];
2399 
2400 	error = &hostrcb->hcam.u.error64.u.type_21_error;
2401 
2402 	ipr_err("-----Failing Device Information-----\n");
2403 	ipr_err("World Wide Unique ID: %08X%08X%08X%08X\n",
2404 		be32_to_cpu(error->wwn[0]), be32_to_cpu(error->wwn[1]),
2405 		 be32_to_cpu(error->wwn[2]), be32_to_cpu(error->wwn[3]));
2406 	ipr_err("Device Resource Path: %s\n",
2407 		__ipr_format_res_path(error->res_path,
2408 				      buffer, sizeof(buffer)));
2409 	error->primary_problem_desc[sizeof(error->primary_problem_desc) - 1] = '\0';
2410 	error->second_problem_desc[sizeof(error->second_problem_desc) - 1] = '\0';
2411 	ipr_err("Primary Problem Description: %s\n", error->primary_problem_desc);
2412 	ipr_err("Secondary Problem Description:  %s\n", error->second_problem_desc);
2413 	ipr_err("SCSI Sense Data:\n");
2414 	ipr_log_hex_data(ioa_cfg, error->sense_data, sizeof(error->sense_data));
2415 	ipr_err("SCSI Command Descriptor Block: \n");
2416 	ipr_log_hex_data(ioa_cfg, error->cdb, sizeof(error->cdb));
2417 
2418 	ipr_err("Additional IOA Data:\n");
2419 	ipr_log_hex_data(ioa_cfg, error->ioa_data, be32_to_cpu(error->length_of_error));
2420 }
2421 
2422 /**
2423  * ipr_get_error - Find the specfied IOASC in the ipr_error_table.
2424  * @ioasc:	IOASC
2425  *
2426  * This function will return the index of into the ipr_error_table
2427  * for the specified IOASC. If the IOASC is not in the table,
2428  * 0 will be returned, which points to the entry used for unknown errors.
2429  *
2430  * Return value:
2431  * 	index into the ipr_error_table
2432  **/
ipr_get_error(u32 ioasc)2433 static u32 ipr_get_error(u32 ioasc)
2434 {
2435 	int i;
2436 
2437 	for (i = 0; i < ARRAY_SIZE(ipr_error_table); i++)
2438 		if (ipr_error_table[i].ioasc == (ioasc & IPR_IOASC_IOASC_MASK))
2439 			return i;
2440 
2441 	return 0;
2442 }
2443 
2444 /**
2445  * ipr_handle_log_data - Log an adapter error.
2446  * @ioa_cfg:	ioa config struct
2447  * @hostrcb:	hostrcb struct
2448  *
2449  * This function logs an adapter error to the system.
2450  *
2451  * Return value:
2452  * 	none
2453  **/
ipr_handle_log_data(struct ipr_ioa_cfg * ioa_cfg,struct ipr_hostrcb * hostrcb)2454 static void ipr_handle_log_data(struct ipr_ioa_cfg *ioa_cfg,
2455 				struct ipr_hostrcb *hostrcb)
2456 {
2457 	u32 ioasc;
2458 	int error_index;
2459 	struct ipr_hostrcb_type_21_error *error;
2460 
2461 	if (hostrcb->hcam.notify_type != IPR_HOST_RCB_NOTIF_TYPE_ERROR_LOG_ENTRY)
2462 		return;
2463 
2464 	if (hostrcb->hcam.notifications_lost == IPR_HOST_RCB_NOTIFICATIONS_LOST)
2465 		dev_err(&ioa_cfg->pdev->dev, "Error notifications lost\n");
2466 
2467 	if (ioa_cfg->sis64)
2468 		ioasc = be32_to_cpu(hostrcb->hcam.u.error64.fd_ioasc);
2469 	else
2470 		ioasc = be32_to_cpu(hostrcb->hcam.u.error.fd_ioasc);
2471 
2472 	if (!ioa_cfg->sis64 && (ioasc == IPR_IOASC_BUS_WAS_RESET ||
2473 	    ioasc == IPR_IOASC_BUS_WAS_RESET_BY_OTHER)) {
2474 		/* Tell the midlayer we had a bus reset so it will handle the UA properly */
2475 		scsi_report_bus_reset(ioa_cfg->host,
2476 				      hostrcb->hcam.u.error.fd_res_addr.bus);
2477 	}
2478 
2479 	error_index = ipr_get_error(ioasc);
2480 
2481 	if (!ipr_error_table[error_index].log_hcam)
2482 		return;
2483 
2484 	if (ioasc == IPR_IOASC_HW_CMD_FAILED &&
2485 	    hostrcb->hcam.overlay_id == IPR_HOST_RCB_OVERLAY_ID_21) {
2486 		error = &hostrcb->hcam.u.error64.u.type_21_error;
2487 
2488 		if (((be32_to_cpu(error->sense_data[0]) & 0x0000ff00) >> 8) == ILLEGAL_REQUEST &&
2489 			ioa_cfg->log_level <= IPR_DEFAULT_LOG_LEVEL)
2490 				return;
2491 	}
2492 
2493 	ipr_hcam_err(hostrcb, "%s\n", ipr_error_table[error_index].error);
2494 
2495 	/* Set indication we have logged an error */
2496 	ioa_cfg->errors_logged++;
2497 
2498 	if (ioa_cfg->log_level < ipr_error_table[error_index].log_hcam)
2499 		return;
2500 	if (be32_to_cpu(hostrcb->hcam.length) > sizeof(hostrcb->hcam.u.raw))
2501 		hostrcb->hcam.length = cpu_to_be32(sizeof(hostrcb->hcam.u.raw));
2502 
2503 	switch (hostrcb->hcam.overlay_id) {
2504 	case IPR_HOST_RCB_OVERLAY_ID_2:
2505 		ipr_log_cache_error(ioa_cfg, hostrcb);
2506 		break;
2507 	case IPR_HOST_RCB_OVERLAY_ID_3:
2508 		ipr_log_config_error(ioa_cfg, hostrcb);
2509 		break;
2510 	case IPR_HOST_RCB_OVERLAY_ID_4:
2511 	case IPR_HOST_RCB_OVERLAY_ID_6:
2512 		ipr_log_array_error(ioa_cfg, hostrcb);
2513 		break;
2514 	case IPR_HOST_RCB_OVERLAY_ID_7:
2515 		ipr_log_dual_ioa_error(ioa_cfg, hostrcb);
2516 		break;
2517 	case IPR_HOST_RCB_OVERLAY_ID_12:
2518 		ipr_log_enhanced_cache_error(ioa_cfg, hostrcb);
2519 		break;
2520 	case IPR_HOST_RCB_OVERLAY_ID_13:
2521 		ipr_log_enhanced_config_error(ioa_cfg, hostrcb);
2522 		break;
2523 	case IPR_HOST_RCB_OVERLAY_ID_14:
2524 	case IPR_HOST_RCB_OVERLAY_ID_16:
2525 		ipr_log_enhanced_array_error(ioa_cfg, hostrcb);
2526 		break;
2527 	case IPR_HOST_RCB_OVERLAY_ID_17:
2528 		ipr_log_enhanced_dual_ioa_error(ioa_cfg, hostrcb);
2529 		break;
2530 	case IPR_HOST_RCB_OVERLAY_ID_20:
2531 		ipr_log_fabric_error(ioa_cfg, hostrcb);
2532 		break;
2533 	case IPR_HOST_RCB_OVERLAY_ID_21:
2534 		ipr_log_sis64_device_error(ioa_cfg, hostrcb);
2535 		break;
2536 	case IPR_HOST_RCB_OVERLAY_ID_23:
2537 		ipr_log_sis64_config_error(ioa_cfg, hostrcb);
2538 		break;
2539 	case IPR_HOST_RCB_OVERLAY_ID_24:
2540 	case IPR_HOST_RCB_OVERLAY_ID_26:
2541 		ipr_log_sis64_array_error(ioa_cfg, hostrcb);
2542 		break;
2543 	case IPR_HOST_RCB_OVERLAY_ID_30:
2544 		ipr_log_sis64_fabric_error(ioa_cfg, hostrcb);
2545 		break;
2546 	case IPR_HOST_RCB_OVERLAY_ID_1:
2547 	case IPR_HOST_RCB_OVERLAY_ID_DEFAULT:
2548 	default:
2549 		ipr_log_generic_error(ioa_cfg, hostrcb);
2550 		break;
2551 	}
2552 }
2553 
2554 /**
2555  * ipr_process_error - Op done function for an adapter error log.
2556  * @ipr_cmd:	ipr command struct
2557  *
2558  * This function is the op done function for an error log host
2559  * controlled async from the adapter. It will log the error and
2560  * send the HCAM back to the adapter.
2561  *
2562  * Return value:
2563  * 	none
2564  **/
ipr_process_error(struct ipr_cmnd * ipr_cmd)2565 static void ipr_process_error(struct ipr_cmnd *ipr_cmd)
2566 {
2567 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
2568 	struct ipr_hostrcb *hostrcb = ipr_cmd->u.hostrcb;
2569 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
2570 	u32 fd_ioasc;
2571 
2572 	if (ioa_cfg->sis64)
2573 		fd_ioasc = be32_to_cpu(hostrcb->hcam.u.error64.fd_ioasc);
2574 	else
2575 		fd_ioasc = be32_to_cpu(hostrcb->hcam.u.error.fd_ioasc);
2576 
2577 	list_del(&hostrcb->queue);
2578 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
2579 
2580 	if (!ioasc) {
2581 		ipr_handle_log_data(ioa_cfg, hostrcb);
2582 		if (fd_ioasc == IPR_IOASC_NR_IOA_RESET_REQUIRED)
2583 			ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_ABBREV);
2584 	} else if (ioasc != IPR_IOASC_IOA_WAS_RESET &&
2585 		   ioasc != IPR_IOASC_ABORTED_CMD_TERM_BY_HOST) {
2586 		dev_err(&ioa_cfg->pdev->dev,
2587 			"Host RCB failed with IOASC: 0x%08X\n", ioasc);
2588 	}
2589 
2590 	ipr_send_hcam(ioa_cfg, IPR_HCAM_CDB_OP_CODE_LOG_DATA, hostrcb);
2591 }
2592 
2593 /**
2594  * ipr_timeout -  An internally generated op has timed out.
2595  * @ipr_cmd:	ipr command struct
2596  *
2597  * This function blocks host requests and initiates an
2598  * adapter reset.
2599  *
2600  * Return value:
2601  * 	none
2602  **/
ipr_timeout(struct ipr_cmnd * ipr_cmd)2603 static void ipr_timeout(struct ipr_cmnd *ipr_cmd)
2604 {
2605 	unsigned long lock_flags = 0;
2606 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
2607 
2608 	ENTER;
2609 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
2610 
2611 	ioa_cfg->errors_logged++;
2612 	dev_err(&ioa_cfg->pdev->dev,
2613 		"Adapter being reset due to command timeout.\n");
2614 
2615 	if (WAIT_FOR_DUMP == ioa_cfg->sdt_state)
2616 		ioa_cfg->sdt_state = GET_DUMP;
2617 
2618 	if (!ioa_cfg->in_reset_reload || ioa_cfg->reset_cmd == ipr_cmd)
2619 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
2620 
2621 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
2622 	LEAVE;
2623 }
2624 
2625 /**
2626  * ipr_oper_timeout -  Adapter timed out transitioning to operational
2627  * @ipr_cmd:	ipr command struct
2628  *
2629  * This function blocks host requests and initiates an
2630  * adapter reset.
2631  *
2632  * Return value:
2633  * 	none
2634  **/
ipr_oper_timeout(struct ipr_cmnd * ipr_cmd)2635 static void ipr_oper_timeout(struct ipr_cmnd *ipr_cmd)
2636 {
2637 	unsigned long lock_flags = 0;
2638 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
2639 
2640 	ENTER;
2641 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
2642 
2643 	ioa_cfg->errors_logged++;
2644 	dev_err(&ioa_cfg->pdev->dev,
2645 		"Adapter timed out transitioning to operational.\n");
2646 
2647 	if (WAIT_FOR_DUMP == ioa_cfg->sdt_state)
2648 		ioa_cfg->sdt_state = GET_DUMP;
2649 
2650 	if (!ioa_cfg->in_reset_reload || ioa_cfg->reset_cmd == ipr_cmd) {
2651 		if (ipr_fastfail)
2652 			ioa_cfg->reset_retries += IPR_NUM_RESET_RELOAD_RETRIES;
2653 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
2654 	}
2655 
2656 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
2657 	LEAVE;
2658 }
2659 
2660 /**
2661  * ipr_find_ses_entry - Find matching SES in SES table
2662  * @res:	resource entry struct of SES
2663  *
2664  * Return value:
2665  * 	pointer to SES table entry / NULL on failure
2666  **/
2667 static const struct ipr_ses_table_entry *
ipr_find_ses_entry(struct ipr_resource_entry * res)2668 ipr_find_ses_entry(struct ipr_resource_entry *res)
2669 {
2670 	int i, j, matches;
2671 	struct ipr_std_inq_vpids *vpids;
2672 	const struct ipr_ses_table_entry *ste = ipr_ses_table;
2673 
2674 	for (i = 0; i < ARRAY_SIZE(ipr_ses_table); i++, ste++) {
2675 		for (j = 0, matches = 0; j < IPR_PROD_ID_LEN; j++) {
2676 			if (ste->compare_product_id_byte[j] == 'X') {
2677 				vpids = &res->std_inq_data.vpids;
2678 				if (vpids->product_id[j] == ste->product_id[j])
2679 					matches++;
2680 				else
2681 					break;
2682 			} else
2683 				matches++;
2684 		}
2685 
2686 		if (matches == IPR_PROD_ID_LEN)
2687 			return ste;
2688 	}
2689 
2690 	return NULL;
2691 }
2692 
2693 /**
2694  * ipr_get_max_scsi_speed - Determine max SCSI speed for a given bus
2695  * @ioa_cfg:	ioa config struct
2696  * @bus:		SCSI bus
2697  * @bus_width:	bus width
2698  *
2699  * Return value:
2700  *	SCSI bus speed in units of 100KHz, 1600 is 160 MHz
2701  *	For a 2-byte wide SCSI bus, the maximum transfer speed is
2702  *	twice the maximum transfer rate (e.g. for a wide enabled bus,
2703  *	max 160MHz = max 320MB/sec).
2704  **/
ipr_get_max_scsi_speed(struct ipr_ioa_cfg * ioa_cfg,u8 bus,u8 bus_width)2705 static u32 ipr_get_max_scsi_speed(struct ipr_ioa_cfg *ioa_cfg, u8 bus, u8 bus_width)
2706 {
2707 	struct ipr_resource_entry *res;
2708 	const struct ipr_ses_table_entry *ste;
2709 	u32 max_xfer_rate = IPR_MAX_SCSI_RATE(bus_width);
2710 
2711 	/* Loop through each config table entry in the config table buffer */
2712 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
2713 		if (!(IPR_IS_SES_DEVICE(res->std_inq_data)))
2714 			continue;
2715 
2716 		if (bus != res->bus)
2717 			continue;
2718 
2719 		if (!(ste = ipr_find_ses_entry(res)))
2720 			continue;
2721 
2722 		max_xfer_rate = (ste->max_bus_speed_limit * 10) / (bus_width / 8);
2723 	}
2724 
2725 	return max_xfer_rate;
2726 }
2727 
2728 /**
2729  * ipr_wait_iodbg_ack - Wait for an IODEBUG ACK from the IOA
2730  * @ioa_cfg:		ioa config struct
2731  * @max_delay:		max delay in micro-seconds to wait
2732  *
2733  * Waits for an IODEBUG ACK from the IOA, doing busy looping.
2734  *
2735  * Return value:
2736  * 	0 on success / other on failure
2737  **/
ipr_wait_iodbg_ack(struct ipr_ioa_cfg * ioa_cfg,int max_delay)2738 static int ipr_wait_iodbg_ack(struct ipr_ioa_cfg *ioa_cfg, int max_delay)
2739 {
2740 	volatile u32 pcii_reg;
2741 	int delay = 1;
2742 
2743 	/* Read interrupt reg until IOA signals IO Debug Acknowledge */
2744 	while (delay < max_delay) {
2745 		pcii_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
2746 
2747 		if (pcii_reg & IPR_PCII_IO_DEBUG_ACKNOWLEDGE)
2748 			return 0;
2749 
2750 		/* udelay cannot be used if delay is more than a few milliseconds */
2751 		if ((delay / 1000) > MAX_UDELAY_MS)
2752 			mdelay(delay / 1000);
2753 		else
2754 			udelay(delay);
2755 
2756 		delay += delay;
2757 	}
2758 	return -EIO;
2759 }
2760 
2761 /**
2762  * ipr_get_sis64_dump_data_section - Dump IOA memory
2763  * @ioa_cfg:			ioa config struct
2764  * @start_addr:			adapter address to dump
2765  * @dest:			destination kernel buffer
2766  * @length_in_words:		length to dump in 4 byte words
2767  *
2768  * Return value:
2769  * 	0 on success
2770  **/
ipr_get_sis64_dump_data_section(struct ipr_ioa_cfg * ioa_cfg,u32 start_addr,__be32 * dest,u32 length_in_words)2771 static int ipr_get_sis64_dump_data_section(struct ipr_ioa_cfg *ioa_cfg,
2772 					   u32 start_addr,
2773 					   __be32 *dest, u32 length_in_words)
2774 {
2775 	int i;
2776 
2777 	for (i = 0; i < length_in_words; i++) {
2778 		writel(start_addr+(i*4), ioa_cfg->regs.dump_addr_reg);
2779 		*dest = cpu_to_be32(readl(ioa_cfg->regs.dump_data_reg));
2780 		dest++;
2781 	}
2782 
2783 	return 0;
2784 }
2785 
2786 /**
2787  * ipr_get_ldump_data_section - Dump IOA memory
2788  * @ioa_cfg:			ioa config struct
2789  * @start_addr:			adapter address to dump
2790  * @dest:				destination kernel buffer
2791  * @length_in_words:	length to dump in 4 byte words
2792  *
2793  * Return value:
2794  * 	0 on success / -EIO on failure
2795  **/
ipr_get_ldump_data_section(struct ipr_ioa_cfg * ioa_cfg,u32 start_addr,__be32 * dest,u32 length_in_words)2796 static int ipr_get_ldump_data_section(struct ipr_ioa_cfg *ioa_cfg,
2797 				      u32 start_addr,
2798 				      __be32 *dest, u32 length_in_words)
2799 {
2800 	volatile u32 temp_pcii_reg;
2801 	int i, delay = 0;
2802 
2803 	if (ioa_cfg->sis64)
2804 		return ipr_get_sis64_dump_data_section(ioa_cfg, start_addr,
2805 						       dest, length_in_words);
2806 
2807 	/* Write IOA interrupt reg starting LDUMP state  */
2808 	writel((IPR_UPROCI_RESET_ALERT | IPR_UPROCI_IO_DEBUG_ALERT),
2809 	       ioa_cfg->regs.set_uproc_interrupt_reg32);
2810 
2811 	/* Wait for IO debug acknowledge */
2812 	if (ipr_wait_iodbg_ack(ioa_cfg,
2813 			       IPR_LDUMP_MAX_LONG_ACK_DELAY_IN_USEC)) {
2814 		dev_err(&ioa_cfg->pdev->dev,
2815 			"IOA dump long data transfer timeout\n");
2816 		return -EIO;
2817 	}
2818 
2819 	/* Signal LDUMP interlocked - clear IO debug ack */
2820 	writel(IPR_PCII_IO_DEBUG_ACKNOWLEDGE,
2821 	       ioa_cfg->regs.clr_interrupt_reg);
2822 
2823 	/* Write Mailbox with starting address */
2824 	writel(start_addr, ioa_cfg->ioa_mailbox);
2825 
2826 	/* Signal address valid - clear IOA Reset alert */
2827 	writel(IPR_UPROCI_RESET_ALERT,
2828 	       ioa_cfg->regs.clr_uproc_interrupt_reg32);
2829 
2830 	for (i = 0; i < length_in_words; i++) {
2831 		/* Wait for IO debug acknowledge */
2832 		if (ipr_wait_iodbg_ack(ioa_cfg,
2833 				       IPR_LDUMP_MAX_SHORT_ACK_DELAY_IN_USEC)) {
2834 			dev_err(&ioa_cfg->pdev->dev,
2835 				"IOA dump short data transfer timeout\n");
2836 			return -EIO;
2837 		}
2838 
2839 		/* Read data from mailbox and increment destination pointer */
2840 		*dest = cpu_to_be32(readl(ioa_cfg->ioa_mailbox));
2841 		dest++;
2842 
2843 		/* For all but the last word of data, signal data received */
2844 		if (i < (length_in_words - 1)) {
2845 			/* Signal dump data received - Clear IO debug Ack */
2846 			writel(IPR_PCII_IO_DEBUG_ACKNOWLEDGE,
2847 			       ioa_cfg->regs.clr_interrupt_reg);
2848 		}
2849 	}
2850 
2851 	/* Signal end of block transfer. Set reset alert then clear IO debug ack */
2852 	writel(IPR_UPROCI_RESET_ALERT,
2853 	       ioa_cfg->regs.set_uproc_interrupt_reg32);
2854 
2855 	writel(IPR_UPROCI_IO_DEBUG_ALERT,
2856 	       ioa_cfg->regs.clr_uproc_interrupt_reg32);
2857 
2858 	/* Signal dump data received - Clear IO debug Ack */
2859 	writel(IPR_PCII_IO_DEBUG_ACKNOWLEDGE,
2860 	       ioa_cfg->regs.clr_interrupt_reg);
2861 
2862 	/* Wait for IOA to signal LDUMP exit - IOA reset alert will be cleared */
2863 	while (delay < IPR_LDUMP_MAX_SHORT_ACK_DELAY_IN_USEC) {
2864 		temp_pcii_reg =
2865 		    readl(ioa_cfg->regs.sense_uproc_interrupt_reg32);
2866 
2867 		if (!(temp_pcii_reg & IPR_UPROCI_RESET_ALERT))
2868 			return 0;
2869 
2870 		udelay(10);
2871 		delay += 10;
2872 	}
2873 
2874 	return 0;
2875 }
2876 
2877 #ifdef CONFIG_SCSI_IPR_DUMP
2878 /**
2879  * ipr_sdt_copy - Copy Smart Dump Table to kernel buffer
2880  * @ioa_cfg:		ioa config struct
2881  * @pci_address:	adapter address
2882  * @length:			length of data to copy
2883  *
2884  * Copy data from PCI adapter to kernel buffer.
2885  * Note: length MUST be a 4 byte multiple
2886  * Return value:
2887  * 	0 on success / other on failure
2888  **/
ipr_sdt_copy(struct ipr_ioa_cfg * ioa_cfg,unsigned long pci_address,u32 length)2889 static int ipr_sdt_copy(struct ipr_ioa_cfg *ioa_cfg,
2890 			unsigned long pci_address, u32 length)
2891 {
2892 	int bytes_copied = 0;
2893 	int cur_len, rc, rem_len, rem_page_len, max_dump_size;
2894 	__be32 *page;
2895 	unsigned long lock_flags = 0;
2896 	struct ipr_ioa_dump *ioa_dump = &ioa_cfg->dump->ioa_dump;
2897 
2898 	if (ioa_cfg->sis64)
2899 		max_dump_size = IPR_FMT3_MAX_IOA_DUMP_SIZE;
2900 	else
2901 		max_dump_size = IPR_FMT2_MAX_IOA_DUMP_SIZE;
2902 
2903 	while (bytes_copied < length &&
2904 	       (ioa_dump->hdr.len + bytes_copied) < max_dump_size) {
2905 		if (ioa_dump->page_offset >= PAGE_SIZE ||
2906 		    ioa_dump->page_offset == 0) {
2907 			page = (__be32 *)__get_free_page(GFP_ATOMIC);
2908 
2909 			if (!page) {
2910 				ipr_trace;
2911 				return bytes_copied;
2912 			}
2913 
2914 			ioa_dump->page_offset = 0;
2915 			ioa_dump->ioa_data[ioa_dump->next_page_index] = page;
2916 			ioa_dump->next_page_index++;
2917 		} else
2918 			page = ioa_dump->ioa_data[ioa_dump->next_page_index - 1];
2919 
2920 		rem_len = length - bytes_copied;
2921 		rem_page_len = PAGE_SIZE - ioa_dump->page_offset;
2922 		cur_len = min(rem_len, rem_page_len);
2923 
2924 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
2925 		if (ioa_cfg->sdt_state == ABORT_DUMP) {
2926 			rc = -EIO;
2927 		} else {
2928 			rc = ipr_get_ldump_data_section(ioa_cfg,
2929 							pci_address + bytes_copied,
2930 							&page[ioa_dump->page_offset / 4],
2931 							(cur_len / sizeof(u32)));
2932 		}
2933 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
2934 
2935 		if (!rc) {
2936 			ioa_dump->page_offset += cur_len;
2937 			bytes_copied += cur_len;
2938 		} else {
2939 			ipr_trace;
2940 			break;
2941 		}
2942 		schedule();
2943 	}
2944 
2945 	return bytes_copied;
2946 }
2947 
2948 /**
2949  * ipr_init_dump_entry_hdr - Initialize a dump entry header.
2950  * @hdr:	dump entry header struct
2951  *
2952  * Return value:
2953  * 	nothing
2954  **/
ipr_init_dump_entry_hdr(struct ipr_dump_entry_header * hdr)2955 static void ipr_init_dump_entry_hdr(struct ipr_dump_entry_header *hdr)
2956 {
2957 	hdr->eye_catcher = IPR_DUMP_EYE_CATCHER;
2958 	hdr->num_elems = 1;
2959 	hdr->offset = sizeof(*hdr);
2960 	hdr->status = IPR_DUMP_STATUS_SUCCESS;
2961 }
2962 
2963 /**
2964  * ipr_dump_ioa_type_data - Fill in the adapter type in the dump.
2965  * @ioa_cfg:	ioa config struct
2966  * @driver_dump:	driver dump struct
2967  *
2968  * Return value:
2969  * 	nothing
2970  **/
ipr_dump_ioa_type_data(struct ipr_ioa_cfg * ioa_cfg,struct ipr_driver_dump * driver_dump)2971 static void ipr_dump_ioa_type_data(struct ipr_ioa_cfg *ioa_cfg,
2972 				   struct ipr_driver_dump *driver_dump)
2973 {
2974 	struct ipr_inquiry_page3 *ucode_vpd = &ioa_cfg->vpd_cbs->page3_data;
2975 
2976 	ipr_init_dump_entry_hdr(&driver_dump->ioa_type_entry.hdr);
2977 	driver_dump->ioa_type_entry.hdr.len =
2978 		sizeof(struct ipr_dump_ioa_type_entry) -
2979 		sizeof(struct ipr_dump_entry_header);
2980 	driver_dump->ioa_type_entry.hdr.data_type = IPR_DUMP_DATA_TYPE_BINARY;
2981 	driver_dump->ioa_type_entry.hdr.id = IPR_DUMP_DRIVER_TYPE_ID;
2982 	driver_dump->ioa_type_entry.type = ioa_cfg->type;
2983 	driver_dump->ioa_type_entry.fw_version = (ucode_vpd->major_release << 24) |
2984 		(ucode_vpd->card_type << 16) | (ucode_vpd->minor_release[0] << 8) |
2985 		ucode_vpd->minor_release[1];
2986 	driver_dump->hdr.num_entries++;
2987 }
2988 
2989 /**
2990  * ipr_dump_version_data - Fill in the driver version in the dump.
2991  * @ioa_cfg:	ioa config struct
2992  * @driver_dump:	driver dump struct
2993  *
2994  * Return value:
2995  * 	nothing
2996  **/
ipr_dump_version_data(struct ipr_ioa_cfg * ioa_cfg,struct ipr_driver_dump * driver_dump)2997 static void ipr_dump_version_data(struct ipr_ioa_cfg *ioa_cfg,
2998 				  struct ipr_driver_dump *driver_dump)
2999 {
3000 	ipr_init_dump_entry_hdr(&driver_dump->version_entry.hdr);
3001 	driver_dump->version_entry.hdr.len =
3002 		sizeof(struct ipr_dump_version_entry) -
3003 		sizeof(struct ipr_dump_entry_header);
3004 	driver_dump->version_entry.hdr.data_type = IPR_DUMP_DATA_TYPE_ASCII;
3005 	driver_dump->version_entry.hdr.id = IPR_DUMP_DRIVER_VERSION_ID;
3006 	strcpy(driver_dump->version_entry.version, IPR_DRIVER_VERSION);
3007 	driver_dump->hdr.num_entries++;
3008 }
3009 
3010 /**
3011  * ipr_dump_trace_data - Fill in the IOA trace in the dump.
3012  * @ioa_cfg:	ioa config struct
3013  * @driver_dump:	driver dump struct
3014  *
3015  * Return value:
3016  * 	nothing
3017  **/
ipr_dump_trace_data(struct ipr_ioa_cfg * ioa_cfg,struct ipr_driver_dump * driver_dump)3018 static void ipr_dump_trace_data(struct ipr_ioa_cfg *ioa_cfg,
3019 				   struct ipr_driver_dump *driver_dump)
3020 {
3021 	ipr_init_dump_entry_hdr(&driver_dump->trace_entry.hdr);
3022 	driver_dump->trace_entry.hdr.len =
3023 		sizeof(struct ipr_dump_trace_entry) -
3024 		sizeof(struct ipr_dump_entry_header);
3025 	driver_dump->trace_entry.hdr.data_type = IPR_DUMP_DATA_TYPE_BINARY;
3026 	driver_dump->trace_entry.hdr.id = IPR_DUMP_TRACE_ID;
3027 	memcpy(driver_dump->trace_entry.trace, ioa_cfg->trace, IPR_TRACE_SIZE);
3028 	driver_dump->hdr.num_entries++;
3029 }
3030 
3031 /**
3032  * ipr_dump_location_data - Fill in the IOA location in the dump.
3033  * @ioa_cfg:	ioa config struct
3034  * @driver_dump:	driver dump struct
3035  *
3036  * Return value:
3037  * 	nothing
3038  **/
ipr_dump_location_data(struct ipr_ioa_cfg * ioa_cfg,struct ipr_driver_dump * driver_dump)3039 static void ipr_dump_location_data(struct ipr_ioa_cfg *ioa_cfg,
3040 				   struct ipr_driver_dump *driver_dump)
3041 {
3042 	ipr_init_dump_entry_hdr(&driver_dump->location_entry.hdr);
3043 	driver_dump->location_entry.hdr.len =
3044 		sizeof(struct ipr_dump_location_entry) -
3045 		sizeof(struct ipr_dump_entry_header);
3046 	driver_dump->location_entry.hdr.data_type = IPR_DUMP_DATA_TYPE_ASCII;
3047 	driver_dump->location_entry.hdr.id = IPR_DUMP_LOCATION_ID;
3048 	strcpy(driver_dump->location_entry.location, dev_name(&ioa_cfg->pdev->dev));
3049 	driver_dump->hdr.num_entries++;
3050 }
3051 
3052 /**
3053  * ipr_get_ioa_dump - Perform a dump of the driver and adapter.
3054  * @ioa_cfg:	ioa config struct
3055  * @dump:		dump struct
3056  *
3057  * Return value:
3058  * 	nothing
3059  **/
ipr_get_ioa_dump(struct ipr_ioa_cfg * ioa_cfg,struct ipr_dump * dump)3060 static void ipr_get_ioa_dump(struct ipr_ioa_cfg *ioa_cfg, struct ipr_dump *dump)
3061 {
3062 	unsigned long start_addr, sdt_word;
3063 	unsigned long lock_flags = 0;
3064 	struct ipr_driver_dump *driver_dump = &dump->driver_dump;
3065 	struct ipr_ioa_dump *ioa_dump = &dump->ioa_dump;
3066 	u32 num_entries, max_num_entries, start_off, end_off;
3067 	u32 max_dump_size, bytes_to_copy, bytes_copied, rc;
3068 	struct ipr_sdt *sdt;
3069 	int valid = 1;
3070 	int i;
3071 
3072 	ENTER;
3073 
3074 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3075 
3076 	if (ioa_cfg->sdt_state != READ_DUMP) {
3077 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3078 		return;
3079 	}
3080 
3081 	if (ioa_cfg->sis64) {
3082 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3083 		ssleep(IPR_DUMP_DELAY_SECONDS);
3084 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3085 	}
3086 
3087 	start_addr = readl(ioa_cfg->ioa_mailbox);
3088 
3089 	if (!ioa_cfg->sis64 && !ipr_sdt_is_fmt2(start_addr)) {
3090 		dev_err(&ioa_cfg->pdev->dev,
3091 			"Invalid dump table format: %lx\n", start_addr);
3092 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3093 		return;
3094 	}
3095 
3096 	dev_err(&ioa_cfg->pdev->dev, "Dump of IOA initiated\n");
3097 
3098 	driver_dump->hdr.eye_catcher = IPR_DUMP_EYE_CATCHER;
3099 
3100 	/* Initialize the overall dump header */
3101 	driver_dump->hdr.len = sizeof(struct ipr_driver_dump);
3102 	driver_dump->hdr.num_entries = 1;
3103 	driver_dump->hdr.first_entry_offset = sizeof(struct ipr_dump_header);
3104 	driver_dump->hdr.status = IPR_DUMP_STATUS_SUCCESS;
3105 	driver_dump->hdr.os = IPR_DUMP_OS_LINUX;
3106 	driver_dump->hdr.driver_name = IPR_DUMP_DRIVER_NAME;
3107 
3108 	ipr_dump_version_data(ioa_cfg, driver_dump);
3109 	ipr_dump_location_data(ioa_cfg, driver_dump);
3110 	ipr_dump_ioa_type_data(ioa_cfg, driver_dump);
3111 	ipr_dump_trace_data(ioa_cfg, driver_dump);
3112 
3113 	/* Update dump_header */
3114 	driver_dump->hdr.len += sizeof(struct ipr_dump_entry_header);
3115 
3116 	/* IOA Dump entry */
3117 	ipr_init_dump_entry_hdr(&ioa_dump->hdr);
3118 	ioa_dump->hdr.len = 0;
3119 	ioa_dump->hdr.data_type = IPR_DUMP_DATA_TYPE_BINARY;
3120 	ioa_dump->hdr.id = IPR_DUMP_IOA_DUMP_ID;
3121 
3122 	/* First entries in sdt are actually a list of dump addresses and
3123 	 lengths to gather the real dump data.  sdt represents the pointer
3124 	 to the ioa generated dump table.  Dump data will be extracted based
3125 	 on entries in this table */
3126 	sdt = &ioa_dump->sdt;
3127 
3128 	if (ioa_cfg->sis64) {
3129 		max_num_entries = IPR_FMT3_NUM_SDT_ENTRIES;
3130 		max_dump_size = IPR_FMT3_MAX_IOA_DUMP_SIZE;
3131 	} else {
3132 		max_num_entries = IPR_FMT2_NUM_SDT_ENTRIES;
3133 		max_dump_size = IPR_FMT2_MAX_IOA_DUMP_SIZE;
3134 	}
3135 
3136 	bytes_to_copy = offsetof(struct ipr_sdt, entry) +
3137 			(max_num_entries * sizeof(struct ipr_sdt_entry));
3138 	rc = ipr_get_ldump_data_section(ioa_cfg, start_addr, (__be32 *)sdt,
3139 					bytes_to_copy / sizeof(__be32));
3140 
3141 	/* Smart Dump table is ready to use and the first entry is valid */
3142 	if (rc || ((be32_to_cpu(sdt->hdr.state) != IPR_FMT3_SDT_READY_TO_USE) &&
3143 	    (be32_to_cpu(sdt->hdr.state) != IPR_FMT2_SDT_READY_TO_USE))) {
3144 		dev_err(&ioa_cfg->pdev->dev,
3145 			"Dump of IOA failed. Dump table not valid: %d, %X.\n",
3146 			rc, be32_to_cpu(sdt->hdr.state));
3147 		driver_dump->hdr.status = IPR_DUMP_STATUS_FAILED;
3148 		ioa_cfg->sdt_state = DUMP_OBTAINED;
3149 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3150 		return;
3151 	}
3152 
3153 	num_entries = be32_to_cpu(sdt->hdr.num_entries_used);
3154 
3155 	if (num_entries > max_num_entries)
3156 		num_entries = max_num_entries;
3157 
3158 	/* Update dump length to the actual data to be copied */
3159 	dump->driver_dump.hdr.len += sizeof(struct ipr_sdt_header);
3160 	if (ioa_cfg->sis64)
3161 		dump->driver_dump.hdr.len += num_entries * sizeof(struct ipr_sdt_entry);
3162 	else
3163 		dump->driver_dump.hdr.len += max_num_entries * sizeof(struct ipr_sdt_entry);
3164 
3165 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3166 
3167 	for (i = 0; i < num_entries; i++) {
3168 		if (ioa_dump->hdr.len > max_dump_size) {
3169 			driver_dump->hdr.status = IPR_DUMP_STATUS_QUAL_SUCCESS;
3170 			break;
3171 		}
3172 
3173 		if (sdt->entry[i].flags & IPR_SDT_VALID_ENTRY) {
3174 			sdt_word = be32_to_cpu(sdt->entry[i].start_token);
3175 			if (ioa_cfg->sis64)
3176 				bytes_to_copy = be32_to_cpu(sdt->entry[i].end_token);
3177 			else {
3178 				start_off = sdt_word & IPR_FMT2_MBX_ADDR_MASK;
3179 				end_off = be32_to_cpu(sdt->entry[i].end_token);
3180 
3181 				if (ipr_sdt_is_fmt2(sdt_word) && sdt_word)
3182 					bytes_to_copy = end_off - start_off;
3183 				else
3184 					valid = 0;
3185 			}
3186 			if (valid) {
3187 				if (bytes_to_copy > max_dump_size) {
3188 					sdt->entry[i].flags &= ~IPR_SDT_VALID_ENTRY;
3189 					continue;
3190 				}
3191 
3192 				/* Copy data from adapter to driver buffers */
3193 				bytes_copied = ipr_sdt_copy(ioa_cfg, sdt_word,
3194 							    bytes_to_copy);
3195 
3196 				ioa_dump->hdr.len += bytes_copied;
3197 
3198 				if (bytes_copied != bytes_to_copy) {
3199 					driver_dump->hdr.status = IPR_DUMP_STATUS_QUAL_SUCCESS;
3200 					break;
3201 				}
3202 			}
3203 		}
3204 	}
3205 
3206 	dev_err(&ioa_cfg->pdev->dev, "Dump of IOA completed.\n");
3207 
3208 	/* Update dump_header */
3209 	driver_dump->hdr.len += ioa_dump->hdr.len;
3210 	wmb();
3211 	ioa_cfg->sdt_state = DUMP_OBTAINED;
3212 	LEAVE;
3213 }
3214 
3215 #else
3216 #define ipr_get_ioa_dump(ioa_cfg, dump) do { } while (0)
3217 #endif
3218 
3219 /**
3220  * ipr_release_dump - Free adapter dump memory
3221  * @kref:	kref struct
3222  *
3223  * Return value:
3224  *	nothing
3225  **/
ipr_release_dump(struct kref * kref)3226 static void ipr_release_dump(struct kref *kref)
3227 {
3228 	struct ipr_dump *dump = container_of(kref, struct ipr_dump, kref);
3229 	struct ipr_ioa_cfg *ioa_cfg = dump->ioa_cfg;
3230 	unsigned long lock_flags = 0;
3231 	int i;
3232 
3233 	ENTER;
3234 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3235 	ioa_cfg->dump = NULL;
3236 	ioa_cfg->sdt_state = INACTIVE;
3237 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3238 
3239 	for (i = 0; i < dump->ioa_dump.next_page_index; i++)
3240 		free_page((unsigned long) dump->ioa_dump.ioa_data[i]);
3241 
3242 	vfree(dump->ioa_dump.ioa_data);
3243 	kfree(dump);
3244 	LEAVE;
3245 }
3246 
3247 /**
3248  * ipr_worker_thread - Worker thread
3249  * @work:		ioa config struct
3250  *
3251  * Called at task level from a work thread. This function takes care
3252  * of adding and removing device from the mid-layer as configuration
3253  * changes are detected by the adapter.
3254  *
3255  * Return value:
3256  * 	nothing
3257  **/
ipr_worker_thread(struct work_struct * work)3258 static void ipr_worker_thread(struct work_struct *work)
3259 {
3260 	unsigned long lock_flags;
3261 	struct ipr_resource_entry *res;
3262 	struct scsi_device *sdev;
3263 	struct ipr_dump *dump;
3264 	struct ipr_ioa_cfg *ioa_cfg =
3265 		container_of(work, struct ipr_ioa_cfg, work_q);
3266 	u8 bus, target, lun;
3267 	int did_work;
3268 
3269 	ENTER;
3270 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3271 
3272 	if (ioa_cfg->sdt_state == READ_DUMP) {
3273 		dump = ioa_cfg->dump;
3274 		if (!dump) {
3275 			spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3276 			return;
3277 		}
3278 		kref_get(&dump->kref);
3279 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3280 		ipr_get_ioa_dump(ioa_cfg, dump);
3281 		kref_put(&dump->kref, ipr_release_dump);
3282 
3283 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3284 		if (ioa_cfg->sdt_state == DUMP_OBTAINED && !ioa_cfg->dump_timeout)
3285 			ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
3286 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3287 		return;
3288 	}
3289 
3290 restart:
3291 	do {
3292 		did_work = 0;
3293 		if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].allow_cmds) {
3294 			spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3295 			return;
3296 		}
3297 
3298 		list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
3299 			if (res->del_from_ml && res->sdev) {
3300 				did_work = 1;
3301 				sdev = res->sdev;
3302 				if (!scsi_device_get(sdev)) {
3303 					if (!res->add_to_ml)
3304 						list_move_tail(&res->queue, &ioa_cfg->free_res_q);
3305 					else
3306 						res->del_from_ml = 0;
3307 					spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3308 					scsi_remove_device(sdev);
3309 					scsi_device_put(sdev);
3310 					spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3311 				}
3312 				break;
3313 			}
3314 		}
3315 	} while (did_work);
3316 
3317 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
3318 		if (res->add_to_ml) {
3319 			bus = res->bus;
3320 			target = res->target;
3321 			lun = res->lun;
3322 			res->add_to_ml = 0;
3323 			spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3324 			scsi_add_device(ioa_cfg->host, bus, target, lun);
3325 			spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3326 			goto restart;
3327 		}
3328 	}
3329 
3330 	ioa_cfg->scan_done = 1;
3331 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3332 	kobject_uevent(&ioa_cfg->host->shost_dev.kobj, KOBJ_CHANGE);
3333 	LEAVE;
3334 }
3335 
3336 #ifdef CONFIG_SCSI_IPR_TRACE
3337 /**
3338  * ipr_read_trace - Dump the adapter trace
3339  * @filp:		open sysfs file
3340  * @kobj:		kobject struct
3341  * @bin_attr:		bin_attribute struct
3342  * @buf:		buffer
3343  * @off:		offset
3344  * @count:		buffer size
3345  *
3346  * Return value:
3347  *	number of bytes printed to buffer
3348  **/
ipr_read_trace(struct file * filp,struct kobject * kobj,struct bin_attribute * bin_attr,char * buf,loff_t off,size_t count)3349 static ssize_t ipr_read_trace(struct file *filp, struct kobject *kobj,
3350 			      struct bin_attribute *bin_attr,
3351 			      char *buf, loff_t off, size_t count)
3352 {
3353 	struct device *dev = container_of(kobj, struct device, kobj);
3354 	struct Scsi_Host *shost = class_to_shost(dev);
3355 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3356 	unsigned long lock_flags = 0;
3357 	ssize_t ret;
3358 
3359 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3360 	ret = memory_read_from_buffer(buf, count, &off, ioa_cfg->trace,
3361 				IPR_TRACE_SIZE);
3362 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3363 
3364 	return ret;
3365 }
3366 
3367 static struct bin_attribute ipr_trace_attr = {
3368 	.attr =	{
3369 		.name = "trace",
3370 		.mode = S_IRUGO,
3371 	},
3372 	.size = 0,
3373 	.read = ipr_read_trace,
3374 };
3375 #endif
3376 
3377 /**
3378  * ipr_show_fw_version - Show the firmware version
3379  * @dev:	class device struct
3380  * @buf:	buffer
3381  *
3382  * Return value:
3383  *	number of bytes printed to buffer
3384  **/
ipr_show_fw_version(struct device * dev,struct device_attribute * attr,char * buf)3385 static ssize_t ipr_show_fw_version(struct device *dev,
3386 				   struct device_attribute *attr, char *buf)
3387 {
3388 	struct Scsi_Host *shost = class_to_shost(dev);
3389 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3390 	struct ipr_inquiry_page3 *ucode_vpd = &ioa_cfg->vpd_cbs->page3_data;
3391 	unsigned long lock_flags = 0;
3392 	int len;
3393 
3394 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3395 	len = snprintf(buf, PAGE_SIZE, "%02X%02X%02X%02X\n",
3396 		       ucode_vpd->major_release, ucode_vpd->card_type,
3397 		       ucode_vpd->minor_release[0],
3398 		       ucode_vpd->minor_release[1]);
3399 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3400 	return len;
3401 }
3402 
3403 static struct device_attribute ipr_fw_version_attr = {
3404 	.attr = {
3405 		.name =		"fw_version",
3406 		.mode =		S_IRUGO,
3407 	},
3408 	.show = ipr_show_fw_version,
3409 };
3410 
3411 /**
3412  * ipr_show_log_level - Show the adapter's error logging level
3413  * @dev:	class device struct
3414  * @buf:	buffer
3415  *
3416  * Return value:
3417  * 	number of bytes printed to buffer
3418  **/
ipr_show_log_level(struct device * dev,struct device_attribute * attr,char * buf)3419 static ssize_t ipr_show_log_level(struct device *dev,
3420 				   struct device_attribute *attr, char *buf)
3421 {
3422 	struct Scsi_Host *shost = class_to_shost(dev);
3423 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3424 	unsigned long lock_flags = 0;
3425 	int len;
3426 
3427 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3428 	len = snprintf(buf, PAGE_SIZE, "%d\n", ioa_cfg->log_level);
3429 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3430 	return len;
3431 }
3432 
3433 /**
3434  * ipr_store_log_level - Change the adapter's error logging level
3435  * @dev:	class device struct
3436  * @buf:	buffer
3437  *
3438  * Return value:
3439  * 	number of bytes printed to buffer
3440  **/
ipr_store_log_level(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3441 static ssize_t ipr_store_log_level(struct device *dev,
3442 				   struct device_attribute *attr,
3443 				   const char *buf, size_t count)
3444 {
3445 	struct Scsi_Host *shost = class_to_shost(dev);
3446 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3447 	unsigned long lock_flags = 0;
3448 
3449 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3450 	ioa_cfg->log_level = simple_strtoul(buf, NULL, 10);
3451 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3452 	return strlen(buf);
3453 }
3454 
3455 static struct device_attribute ipr_log_level_attr = {
3456 	.attr = {
3457 		.name =		"log_level",
3458 		.mode =		S_IRUGO | S_IWUSR,
3459 	},
3460 	.show = ipr_show_log_level,
3461 	.store = ipr_store_log_level
3462 };
3463 
3464 /**
3465  * ipr_store_diagnostics - IOA Diagnostics interface
3466  * @dev:	device struct
3467  * @buf:	buffer
3468  * @count:	buffer size
3469  *
3470  * This function will reset the adapter and wait a reasonable
3471  * amount of time for any errors that the adapter might log.
3472  *
3473  * Return value:
3474  * 	count on success / other on failure
3475  **/
ipr_store_diagnostics(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3476 static ssize_t ipr_store_diagnostics(struct device *dev,
3477 				     struct device_attribute *attr,
3478 				     const char *buf, size_t count)
3479 {
3480 	struct Scsi_Host *shost = class_to_shost(dev);
3481 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3482 	unsigned long lock_flags = 0;
3483 	int rc = count;
3484 
3485 	if (!capable(CAP_SYS_ADMIN))
3486 		return -EACCES;
3487 
3488 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3489 	while (ioa_cfg->in_reset_reload) {
3490 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3491 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3492 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3493 	}
3494 
3495 	ioa_cfg->errors_logged = 0;
3496 	ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NORMAL);
3497 
3498 	if (ioa_cfg->in_reset_reload) {
3499 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3500 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3501 
3502 		/* Wait for a second for any errors to be logged */
3503 		msleep(1000);
3504 	} else {
3505 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3506 		return -EIO;
3507 	}
3508 
3509 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3510 	if (ioa_cfg->in_reset_reload || ioa_cfg->errors_logged)
3511 		rc = -EIO;
3512 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3513 
3514 	return rc;
3515 }
3516 
3517 static struct device_attribute ipr_diagnostics_attr = {
3518 	.attr = {
3519 		.name =		"run_diagnostics",
3520 		.mode =		S_IWUSR,
3521 	},
3522 	.store = ipr_store_diagnostics
3523 };
3524 
3525 /**
3526  * ipr_show_adapter_state - Show the adapter's state
3527  * @class_dev:	device struct
3528  * @buf:	buffer
3529  *
3530  * Return value:
3531  * 	number of bytes printed to buffer
3532  **/
ipr_show_adapter_state(struct device * dev,struct device_attribute * attr,char * buf)3533 static ssize_t ipr_show_adapter_state(struct device *dev,
3534 				      struct device_attribute *attr, char *buf)
3535 {
3536 	struct Scsi_Host *shost = class_to_shost(dev);
3537 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3538 	unsigned long lock_flags = 0;
3539 	int len;
3540 
3541 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3542 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead)
3543 		len = snprintf(buf, PAGE_SIZE, "offline\n");
3544 	else
3545 		len = snprintf(buf, PAGE_SIZE, "online\n");
3546 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3547 	return len;
3548 }
3549 
3550 /**
3551  * ipr_store_adapter_state - Change adapter state
3552  * @dev:	device struct
3553  * @buf:	buffer
3554  * @count:	buffer size
3555  *
3556  * This function will change the adapter's state.
3557  *
3558  * Return value:
3559  * 	count on success / other on failure
3560  **/
ipr_store_adapter_state(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3561 static ssize_t ipr_store_adapter_state(struct device *dev,
3562 				       struct device_attribute *attr,
3563 				       const char *buf, size_t count)
3564 {
3565 	struct Scsi_Host *shost = class_to_shost(dev);
3566 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3567 	unsigned long lock_flags;
3568 	int result = count, i;
3569 
3570 	if (!capable(CAP_SYS_ADMIN))
3571 		return -EACCES;
3572 
3573 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3574 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead &&
3575 	    !strncmp(buf, "online", 6)) {
3576 		for (i = 0; i < ioa_cfg->hrrq_num; i++) {
3577 			spin_lock(&ioa_cfg->hrrq[i]._lock);
3578 			ioa_cfg->hrrq[i].ioa_is_dead = 0;
3579 			spin_unlock(&ioa_cfg->hrrq[i]._lock);
3580 		}
3581 		wmb();
3582 		ioa_cfg->reset_retries = 0;
3583 		ioa_cfg->in_ioa_bringdown = 0;
3584 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
3585 	}
3586 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3587 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3588 
3589 	return result;
3590 }
3591 
3592 static struct device_attribute ipr_ioa_state_attr = {
3593 	.attr = {
3594 		.name =		"online_state",
3595 		.mode =		S_IRUGO | S_IWUSR,
3596 	},
3597 	.show = ipr_show_adapter_state,
3598 	.store = ipr_store_adapter_state
3599 };
3600 
3601 /**
3602  * ipr_store_reset_adapter - Reset the adapter
3603  * @dev:	device struct
3604  * @buf:	buffer
3605  * @count:	buffer size
3606  *
3607  * This function will reset the adapter.
3608  *
3609  * Return value:
3610  * 	count on success / other on failure
3611  **/
ipr_store_reset_adapter(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3612 static ssize_t ipr_store_reset_adapter(struct device *dev,
3613 				       struct device_attribute *attr,
3614 				       const char *buf, size_t count)
3615 {
3616 	struct Scsi_Host *shost = class_to_shost(dev);
3617 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3618 	unsigned long lock_flags;
3619 	int result = count;
3620 
3621 	if (!capable(CAP_SYS_ADMIN))
3622 		return -EACCES;
3623 
3624 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3625 	if (!ioa_cfg->in_reset_reload)
3626 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NORMAL);
3627 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3628 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3629 
3630 	return result;
3631 }
3632 
3633 static struct device_attribute ipr_ioa_reset_attr = {
3634 	.attr = {
3635 		.name =		"reset_host",
3636 		.mode =		S_IWUSR,
3637 	},
3638 	.store = ipr_store_reset_adapter
3639 };
3640 
3641 static int ipr_iopoll(struct blk_iopoll *iop, int budget);
3642  /**
3643  * ipr_show_iopoll_weight - Show ipr polling mode
3644  * @dev:	class device struct
3645  * @buf:	buffer
3646  *
3647  * Return value:
3648  *	number of bytes printed to buffer
3649  **/
ipr_show_iopoll_weight(struct device * dev,struct device_attribute * attr,char * buf)3650 static ssize_t ipr_show_iopoll_weight(struct device *dev,
3651 				   struct device_attribute *attr, char *buf)
3652 {
3653 	struct Scsi_Host *shost = class_to_shost(dev);
3654 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3655 	unsigned long lock_flags = 0;
3656 	int len;
3657 
3658 	spin_lock_irqsave(shost->host_lock, lock_flags);
3659 	len = snprintf(buf, PAGE_SIZE, "%d\n", ioa_cfg->iopoll_weight);
3660 	spin_unlock_irqrestore(shost->host_lock, lock_flags);
3661 
3662 	return len;
3663 }
3664 
3665 /**
3666  * ipr_store_iopoll_weight - Change the adapter's polling mode
3667  * @dev:	class device struct
3668  * @buf:	buffer
3669  *
3670  * Return value:
3671  *	number of bytes printed to buffer
3672  **/
ipr_store_iopoll_weight(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3673 static ssize_t ipr_store_iopoll_weight(struct device *dev,
3674 					struct device_attribute *attr,
3675 					const char *buf, size_t count)
3676 {
3677 	struct Scsi_Host *shost = class_to_shost(dev);
3678 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
3679 	unsigned long user_iopoll_weight;
3680 	unsigned long lock_flags = 0;
3681 	int i;
3682 
3683 	if (!ioa_cfg->sis64) {
3684 		dev_info(&ioa_cfg->pdev->dev, "blk-iopoll not supported on this adapter\n");
3685 		return -EINVAL;
3686 	}
3687 	if (kstrtoul(buf, 10, &user_iopoll_weight))
3688 		return -EINVAL;
3689 
3690 	if (user_iopoll_weight > 256) {
3691 		dev_info(&ioa_cfg->pdev->dev, "Invalid blk-iopoll weight. It must be less than 256\n");
3692 		return -EINVAL;
3693 	}
3694 
3695 	if (user_iopoll_weight == ioa_cfg->iopoll_weight) {
3696 		dev_info(&ioa_cfg->pdev->dev, "Current blk-iopoll weight has the same weight\n");
3697 		return strlen(buf);
3698 	}
3699 
3700 	if (ioa_cfg->iopoll_weight && ioa_cfg->sis64 && ioa_cfg->nvectors > 1) {
3701 		for (i = 1; i < ioa_cfg->hrrq_num; i++)
3702 			blk_iopoll_disable(&ioa_cfg->hrrq[i].iopoll);
3703 	}
3704 
3705 	spin_lock_irqsave(shost->host_lock, lock_flags);
3706 	ioa_cfg->iopoll_weight = user_iopoll_weight;
3707 	if (ioa_cfg->iopoll_weight && ioa_cfg->sis64 && ioa_cfg->nvectors > 1) {
3708 		for (i = 1; i < ioa_cfg->hrrq_num; i++) {
3709 			blk_iopoll_init(&ioa_cfg->hrrq[i].iopoll,
3710 					ioa_cfg->iopoll_weight, ipr_iopoll);
3711 			blk_iopoll_enable(&ioa_cfg->hrrq[i].iopoll);
3712 		}
3713 	}
3714 	spin_unlock_irqrestore(shost->host_lock, lock_flags);
3715 
3716 	return strlen(buf);
3717 }
3718 
3719 static struct device_attribute ipr_iopoll_weight_attr = {
3720 	.attr = {
3721 		.name =		"iopoll_weight",
3722 		.mode =		S_IRUGO | S_IWUSR,
3723 	},
3724 	.show = ipr_show_iopoll_weight,
3725 	.store = ipr_store_iopoll_weight
3726 };
3727 
3728 /**
3729  * ipr_alloc_ucode_buffer - Allocates a microcode download buffer
3730  * @buf_len:		buffer length
3731  *
3732  * Allocates a DMA'able buffer in chunks and assembles a scatter/gather
3733  * list to use for microcode download
3734  *
3735  * Return value:
3736  * 	pointer to sglist / NULL on failure
3737  **/
ipr_alloc_ucode_buffer(int buf_len)3738 static struct ipr_sglist *ipr_alloc_ucode_buffer(int buf_len)
3739 {
3740 	int sg_size, order, bsize_elem, num_elem, i, j;
3741 	struct ipr_sglist *sglist;
3742 	struct scatterlist *scatterlist;
3743 	struct page *page;
3744 
3745 	/* Get the minimum size per scatter/gather element */
3746 	sg_size = buf_len / (IPR_MAX_SGLIST - 1);
3747 
3748 	/* Get the actual size per element */
3749 	order = get_order(sg_size);
3750 
3751 	/* Determine the actual number of bytes per element */
3752 	bsize_elem = PAGE_SIZE * (1 << order);
3753 
3754 	/* Determine the actual number of sg entries needed */
3755 	if (buf_len % bsize_elem)
3756 		num_elem = (buf_len / bsize_elem) + 1;
3757 	else
3758 		num_elem = buf_len / bsize_elem;
3759 
3760 	/* Allocate a scatter/gather list for the DMA */
3761 	sglist = kzalloc(sizeof(struct ipr_sglist) +
3762 			 (sizeof(struct scatterlist) * (num_elem - 1)),
3763 			 GFP_KERNEL);
3764 
3765 	if (sglist == NULL) {
3766 		ipr_trace;
3767 		return NULL;
3768 	}
3769 
3770 	scatterlist = sglist->scatterlist;
3771 	sg_init_table(scatterlist, num_elem);
3772 
3773 	sglist->order = order;
3774 	sglist->num_sg = num_elem;
3775 
3776 	/* Allocate a bunch of sg elements */
3777 	for (i = 0; i < num_elem; i++) {
3778 		page = alloc_pages(GFP_KERNEL, order);
3779 		if (!page) {
3780 			ipr_trace;
3781 
3782 			/* Free up what we already allocated */
3783 			for (j = i - 1; j >= 0; j--)
3784 				__free_pages(sg_page(&scatterlist[j]), order);
3785 			kfree(sglist);
3786 			return NULL;
3787 		}
3788 
3789 		sg_set_page(&scatterlist[i], page, 0, 0);
3790 	}
3791 
3792 	return sglist;
3793 }
3794 
3795 /**
3796  * ipr_free_ucode_buffer - Frees a microcode download buffer
3797  * @p_dnld:		scatter/gather list pointer
3798  *
3799  * Free a DMA'able ucode download buffer previously allocated with
3800  * ipr_alloc_ucode_buffer
3801  *
3802  * Return value:
3803  * 	nothing
3804  **/
ipr_free_ucode_buffer(struct ipr_sglist * sglist)3805 static void ipr_free_ucode_buffer(struct ipr_sglist *sglist)
3806 {
3807 	int i;
3808 
3809 	for (i = 0; i < sglist->num_sg; i++)
3810 		__free_pages(sg_page(&sglist->scatterlist[i]), sglist->order);
3811 
3812 	kfree(sglist);
3813 }
3814 
3815 /**
3816  * ipr_copy_ucode_buffer - Copy user buffer to kernel buffer
3817  * @sglist:		scatter/gather list pointer
3818  * @buffer:		buffer pointer
3819  * @len:		buffer length
3820  *
3821  * Copy a microcode image from a user buffer into a buffer allocated by
3822  * ipr_alloc_ucode_buffer
3823  *
3824  * Return value:
3825  * 	0 on success / other on failure
3826  **/
ipr_copy_ucode_buffer(struct ipr_sglist * sglist,u8 * buffer,u32 len)3827 static int ipr_copy_ucode_buffer(struct ipr_sglist *sglist,
3828 				 u8 *buffer, u32 len)
3829 {
3830 	int bsize_elem, i, result = 0;
3831 	struct scatterlist *scatterlist;
3832 	void *kaddr;
3833 
3834 	/* Determine the actual number of bytes per element */
3835 	bsize_elem = PAGE_SIZE * (1 << sglist->order);
3836 
3837 	scatterlist = sglist->scatterlist;
3838 
3839 	for (i = 0; i < (len / bsize_elem); i++, buffer += bsize_elem) {
3840 		struct page *page = sg_page(&scatterlist[i]);
3841 
3842 		kaddr = kmap(page);
3843 		memcpy(kaddr, buffer, bsize_elem);
3844 		kunmap(page);
3845 
3846 		scatterlist[i].length = bsize_elem;
3847 
3848 		if (result != 0) {
3849 			ipr_trace;
3850 			return result;
3851 		}
3852 	}
3853 
3854 	if (len % bsize_elem) {
3855 		struct page *page = sg_page(&scatterlist[i]);
3856 
3857 		kaddr = kmap(page);
3858 		memcpy(kaddr, buffer, len % bsize_elem);
3859 		kunmap(page);
3860 
3861 		scatterlist[i].length = len % bsize_elem;
3862 	}
3863 
3864 	sglist->buffer_len = len;
3865 	return result;
3866 }
3867 
3868 /**
3869  * ipr_build_ucode_ioadl64 - Build a microcode download IOADL
3870  * @ipr_cmd:		ipr command struct
3871  * @sglist:		scatter/gather list
3872  *
3873  * Builds a microcode download IOA data list (IOADL).
3874  *
3875  **/
ipr_build_ucode_ioadl64(struct ipr_cmnd * ipr_cmd,struct ipr_sglist * sglist)3876 static void ipr_build_ucode_ioadl64(struct ipr_cmnd *ipr_cmd,
3877 				    struct ipr_sglist *sglist)
3878 {
3879 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
3880 	struct ipr_ioadl64_desc *ioadl64 = ipr_cmd->i.ioadl64;
3881 	struct scatterlist *scatterlist = sglist->scatterlist;
3882 	int i;
3883 
3884 	ipr_cmd->dma_use_sg = sglist->num_dma_sg;
3885 	ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
3886 	ioarcb->data_transfer_length = cpu_to_be32(sglist->buffer_len);
3887 
3888 	ioarcb->ioadl_len =
3889 		cpu_to_be32(sizeof(struct ipr_ioadl64_desc) * ipr_cmd->dma_use_sg);
3890 	for (i = 0; i < ipr_cmd->dma_use_sg; i++) {
3891 		ioadl64[i].flags = cpu_to_be32(IPR_IOADL_FLAGS_WRITE);
3892 		ioadl64[i].data_len = cpu_to_be32(sg_dma_len(&scatterlist[i]));
3893 		ioadl64[i].address = cpu_to_be64(sg_dma_address(&scatterlist[i]));
3894 	}
3895 
3896 	ioadl64[i-1].flags |= cpu_to_be32(IPR_IOADL_FLAGS_LAST);
3897 }
3898 
3899 /**
3900  * ipr_build_ucode_ioadl - Build a microcode download IOADL
3901  * @ipr_cmd:	ipr command struct
3902  * @sglist:		scatter/gather list
3903  *
3904  * Builds a microcode download IOA data list (IOADL).
3905  *
3906  **/
ipr_build_ucode_ioadl(struct ipr_cmnd * ipr_cmd,struct ipr_sglist * sglist)3907 static void ipr_build_ucode_ioadl(struct ipr_cmnd *ipr_cmd,
3908 				  struct ipr_sglist *sglist)
3909 {
3910 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
3911 	struct ipr_ioadl_desc *ioadl = ipr_cmd->i.ioadl;
3912 	struct scatterlist *scatterlist = sglist->scatterlist;
3913 	int i;
3914 
3915 	ipr_cmd->dma_use_sg = sglist->num_dma_sg;
3916 	ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
3917 	ioarcb->data_transfer_length = cpu_to_be32(sglist->buffer_len);
3918 
3919 	ioarcb->ioadl_len =
3920 		cpu_to_be32(sizeof(struct ipr_ioadl_desc) * ipr_cmd->dma_use_sg);
3921 
3922 	for (i = 0; i < ipr_cmd->dma_use_sg; i++) {
3923 		ioadl[i].flags_and_data_len =
3924 			cpu_to_be32(IPR_IOADL_FLAGS_WRITE | sg_dma_len(&scatterlist[i]));
3925 		ioadl[i].address =
3926 			cpu_to_be32(sg_dma_address(&scatterlist[i]));
3927 	}
3928 
3929 	ioadl[i-1].flags_and_data_len |=
3930 		cpu_to_be32(IPR_IOADL_FLAGS_LAST);
3931 }
3932 
3933 /**
3934  * ipr_update_ioa_ucode - Update IOA's microcode
3935  * @ioa_cfg:	ioa config struct
3936  * @sglist:		scatter/gather list
3937  *
3938  * Initiate an adapter reset to update the IOA's microcode
3939  *
3940  * Return value:
3941  * 	0 on success / -EIO on failure
3942  **/
ipr_update_ioa_ucode(struct ipr_ioa_cfg * ioa_cfg,struct ipr_sglist * sglist)3943 static int ipr_update_ioa_ucode(struct ipr_ioa_cfg *ioa_cfg,
3944 				struct ipr_sglist *sglist)
3945 {
3946 	unsigned long lock_flags;
3947 
3948 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3949 	while (ioa_cfg->in_reset_reload) {
3950 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3951 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3952 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3953 	}
3954 
3955 	if (ioa_cfg->ucode_sglist) {
3956 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3957 		dev_err(&ioa_cfg->pdev->dev,
3958 			"Microcode download already in progress\n");
3959 		return -EIO;
3960 	}
3961 
3962 	sglist->num_dma_sg = dma_map_sg(&ioa_cfg->pdev->dev,
3963 					sglist->scatterlist, sglist->num_sg,
3964 					DMA_TO_DEVICE);
3965 
3966 	if (!sglist->num_dma_sg) {
3967 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3968 		dev_err(&ioa_cfg->pdev->dev,
3969 			"Failed to map microcode download buffer!\n");
3970 		return -EIO;
3971 	}
3972 
3973 	ioa_cfg->ucode_sglist = sglist;
3974 	ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NORMAL);
3975 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3976 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
3977 
3978 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
3979 	ioa_cfg->ucode_sglist = NULL;
3980 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
3981 	return 0;
3982 }
3983 
3984 /**
3985  * ipr_store_update_fw - Update the firmware on the adapter
3986  * @class_dev:	device struct
3987  * @buf:	buffer
3988  * @count:	buffer size
3989  *
3990  * This function will update the firmware on the adapter.
3991  *
3992  * Return value:
3993  * 	count on success / other on failure
3994  **/
ipr_store_update_fw(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)3995 static ssize_t ipr_store_update_fw(struct device *dev,
3996 				   struct device_attribute *attr,
3997 				   const char *buf, size_t count)
3998 {
3999 	struct Scsi_Host *shost = class_to_shost(dev);
4000 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
4001 	struct ipr_ucode_image_header *image_hdr;
4002 	const struct firmware *fw_entry;
4003 	struct ipr_sglist *sglist;
4004 	char fname[100];
4005 	char *src;
4006 	char *endline;
4007 	int result, dnld_size;
4008 
4009 	if (!capable(CAP_SYS_ADMIN))
4010 		return -EACCES;
4011 
4012 	snprintf(fname, sizeof(fname), "%s", buf);
4013 
4014 	endline = strchr(fname, '\n');
4015 	if (endline)
4016 		*endline = '\0';
4017 
4018 	if (request_firmware(&fw_entry, fname, &ioa_cfg->pdev->dev)) {
4019 		dev_err(&ioa_cfg->pdev->dev, "Firmware file %s not found\n", fname);
4020 		return -EIO;
4021 	}
4022 
4023 	image_hdr = (struct ipr_ucode_image_header *)fw_entry->data;
4024 
4025 	src = (u8 *)image_hdr + be32_to_cpu(image_hdr->header_length);
4026 	dnld_size = fw_entry->size - be32_to_cpu(image_hdr->header_length);
4027 	sglist = ipr_alloc_ucode_buffer(dnld_size);
4028 
4029 	if (!sglist) {
4030 		dev_err(&ioa_cfg->pdev->dev, "Microcode buffer allocation failed\n");
4031 		release_firmware(fw_entry);
4032 		return -ENOMEM;
4033 	}
4034 
4035 	result = ipr_copy_ucode_buffer(sglist, src, dnld_size);
4036 
4037 	if (result) {
4038 		dev_err(&ioa_cfg->pdev->dev,
4039 			"Microcode buffer copy to DMA buffer failed\n");
4040 		goto out;
4041 	}
4042 
4043 	ipr_info("Updating microcode, please be patient.  This may take up to 30 minutes.\n");
4044 
4045 	result = ipr_update_ioa_ucode(ioa_cfg, sglist);
4046 
4047 	if (!result)
4048 		result = count;
4049 out:
4050 	ipr_free_ucode_buffer(sglist);
4051 	release_firmware(fw_entry);
4052 	return result;
4053 }
4054 
4055 static struct device_attribute ipr_update_fw_attr = {
4056 	.attr = {
4057 		.name =		"update_fw",
4058 		.mode =		S_IWUSR,
4059 	},
4060 	.store = ipr_store_update_fw
4061 };
4062 
4063 /**
4064  * ipr_show_fw_type - Show the adapter's firmware type.
4065  * @dev:	class device struct
4066  * @buf:	buffer
4067  *
4068  * Return value:
4069  *	number of bytes printed to buffer
4070  **/
ipr_show_fw_type(struct device * dev,struct device_attribute * attr,char * buf)4071 static ssize_t ipr_show_fw_type(struct device *dev,
4072 				struct device_attribute *attr, char *buf)
4073 {
4074 	struct Scsi_Host *shost = class_to_shost(dev);
4075 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
4076 	unsigned long lock_flags = 0;
4077 	int len;
4078 
4079 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4080 	len = snprintf(buf, PAGE_SIZE, "%d\n", ioa_cfg->sis64);
4081 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4082 	return len;
4083 }
4084 
4085 static struct device_attribute ipr_ioa_fw_type_attr = {
4086 	.attr = {
4087 		.name =		"fw_type",
4088 		.mode =		S_IRUGO,
4089 	},
4090 	.show = ipr_show_fw_type
4091 };
4092 
4093 static struct device_attribute *ipr_ioa_attrs[] = {
4094 	&ipr_fw_version_attr,
4095 	&ipr_log_level_attr,
4096 	&ipr_diagnostics_attr,
4097 	&ipr_ioa_state_attr,
4098 	&ipr_ioa_reset_attr,
4099 	&ipr_update_fw_attr,
4100 	&ipr_ioa_fw_type_attr,
4101 	&ipr_iopoll_weight_attr,
4102 	NULL,
4103 };
4104 
4105 #ifdef CONFIG_SCSI_IPR_DUMP
4106 /**
4107  * ipr_read_dump - Dump the adapter
4108  * @filp:		open sysfs file
4109  * @kobj:		kobject struct
4110  * @bin_attr:		bin_attribute struct
4111  * @buf:		buffer
4112  * @off:		offset
4113  * @count:		buffer size
4114  *
4115  * Return value:
4116  *	number of bytes printed to buffer
4117  **/
ipr_read_dump(struct file * filp,struct kobject * kobj,struct bin_attribute * bin_attr,char * buf,loff_t off,size_t count)4118 static ssize_t ipr_read_dump(struct file *filp, struct kobject *kobj,
4119 			     struct bin_attribute *bin_attr,
4120 			     char *buf, loff_t off, size_t count)
4121 {
4122 	struct device *cdev = container_of(kobj, struct device, kobj);
4123 	struct Scsi_Host *shost = class_to_shost(cdev);
4124 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
4125 	struct ipr_dump *dump;
4126 	unsigned long lock_flags = 0;
4127 	char *src;
4128 	int len, sdt_end;
4129 	size_t rc = count;
4130 
4131 	if (!capable(CAP_SYS_ADMIN))
4132 		return -EACCES;
4133 
4134 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4135 	dump = ioa_cfg->dump;
4136 
4137 	if (ioa_cfg->sdt_state != DUMP_OBTAINED || !dump) {
4138 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4139 		return 0;
4140 	}
4141 	kref_get(&dump->kref);
4142 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4143 
4144 	if (off > dump->driver_dump.hdr.len) {
4145 		kref_put(&dump->kref, ipr_release_dump);
4146 		return 0;
4147 	}
4148 
4149 	if (off + count > dump->driver_dump.hdr.len) {
4150 		count = dump->driver_dump.hdr.len - off;
4151 		rc = count;
4152 	}
4153 
4154 	if (count && off < sizeof(dump->driver_dump)) {
4155 		if (off + count > sizeof(dump->driver_dump))
4156 			len = sizeof(dump->driver_dump) - off;
4157 		else
4158 			len = count;
4159 		src = (u8 *)&dump->driver_dump + off;
4160 		memcpy(buf, src, len);
4161 		buf += len;
4162 		off += len;
4163 		count -= len;
4164 	}
4165 
4166 	off -= sizeof(dump->driver_dump);
4167 
4168 	if (ioa_cfg->sis64)
4169 		sdt_end = offsetof(struct ipr_ioa_dump, sdt.entry) +
4170 			  (be32_to_cpu(dump->ioa_dump.sdt.hdr.num_entries_used) *
4171 			   sizeof(struct ipr_sdt_entry));
4172 	else
4173 		sdt_end = offsetof(struct ipr_ioa_dump, sdt.entry) +
4174 			  (IPR_FMT2_NUM_SDT_ENTRIES * sizeof(struct ipr_sdt_entry));
4175 
4176 	if (count && off < sdt_end) {
4177 		if (off + count > sdt_end)
4178 			len = sdt_end - off;
4179 		else
4180 			len = count;
4181 		src = (u8 *)&dump->ioa_dump + off;
4182 		memcpy(buf, src, len);
4183 		buf += len;
4184 		off += len;
4185 		count -= len;
4186 	}
4187 
4188 	off -= sdt_end;
4189 
4190 	while (count) {
4191 		if ((off & PAGE_MASK) != ((off + count) & PAGE_MASK))
4192 			len = PAGE_ALIGN(off) - off;
4193 		else
4194 			len = count;
4195 		src = (u8 *)dump->ioa_dump.ioa_data[(off & PAGE_MASK) >> PAGE_SHIFT];
4196 		src += off & ~PAGE_MASK;
4197 		memcpy(buf, src, len);
4198 		buf += len;
4199 		off += len;
4200 		count -= len;
4201 	}
4202 
4203 	kref_put(&dump->kref, ipr_release_dump);
4204 	return rc;
4205 }
4206 
4207 /**
4208  * ipr_alloc_dump - Prepare for adapter dump
4209  * @ioa_cfg:	ioa config struct
4210  *
4211  * Return value:
4212  *	0 on success / other on failure
4213  **/
ipr_alloc_dump(struct ipr_ioa_cfg * ioa_cfg)4214 static int ipr_alloc_dump(struct ipr_ioa_cfg *ioa_cfg)
4215 {
4216 	struct ipr_dump *dump;
4217 	__be32 **ioa_data;
4218 	unsigned long lock_flags = 0;
4219 
4220 	dump = kzalloc(sizeof(struct ipr_dump), GFP_KERNEL);
4221 
4222 	if (!dump) {
4223 		ipr_err("Dump memory allocation failed\n");
4224 		return -ENOMEM;
4225 	}
4226 
4227 	if (ioa_cfg->sis64)
4228 		ioa_data = vmalloc(IPR_FMT3_MAX_NUM_DUMP_PAGES * sizeof(__be32 *));
4229 	else
4230 		ioa_data = vmalloc(IPR_FMT2_MAX_NUM_DUMP_PAGES * sizeof(__be32 *));
4231 
4232 	if (!ioa_data) {
4233 		ipr_err("Dump memory allocation failed\n");
4234 		kfree(dump);
4235 		return -ENOMEM;
4236 	}
4237 
4238 	dump->ioa_dump.ioa_data = ioa_data;
4239 
4240 	kref_init(&dump->kref);
4241 	dump->ioa_cfg = ioa_cfg;
4242 
4243 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4244 
4245 	if (INACTIVE != ioa_cfg->sdt_state) {
4246 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4247 		vfree(dump->ioa_dump.ioa_data);
4248 		kfree(dump);
4249 		return 0;
4250 	}
4251 
4252 	ioa_cfg->dump = dump;
4253 	ioa_cfg->sdt_state = WAIT_FOR_DUMP;
4254 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead && !ioa_cfg->dump_taken) {
4255 		ioa_cfg->dump_taken = 1;
4256 		schedule_work(&ioa_cfg->work_q);
4257 	}
4258 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4259 
4260 	return 0;
4261 }
4262 
4263 /**
4264  * ipr_free_dump - Free adapter dump memory
4265  * @ioa_cfg:	ioa config struct
4266  *
4267  * Return value:
4268  *	0 on success / other on failure
4269  **/
ipr_free_dump(struct ipr_ioa_cfg * ioa_cfg)4270 static int ipr_free_dump(struct ipr_ioa_cfg *ioa_cfg)
4271 {
4272 	struct ipr_dump *dump;
4273 	unsigned long lock_flags = 0;
4274 
4275 	ENTER;
4276 
4277 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4278 	dump = ioa_cfg->dump;
4279 	if (!dump) {
4280 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4281 		return 0;
4282 	}
4283 
4284 	ioa_cfg->dump = NULL;
4285 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4286 
4287 	kref_put(&dump->kref, ipr_release_dump);
4288 
4289 	LEAVE;
4290 	return 0;
4291 }
4292 
4293 /**
4294  * ipr_write_dump - Setup dump state of adapter
4295  * @filp:		open sysfs file
4296  * @kobj:		kobject struct
4297  * @bin_attr:		bin_attribute struct
4298  * @buf:		buffer
4299  * @off:		offset
4300  * @count:		buffer size
4301  *
4302  * Return value:
4303  *	number of bytes printed to buffer
4304  **/
ipr_write_dump(struct file * filp,struct kobject * kobj,struct bin_attribute * bin_attr,char * buf,loff_t off,size_t count)4305 static ssize_t ipr_write_dump(struct file *filp, struct kobject *kobj,
4306 			      struct bin_attribute *bin_attr,
4307 			      char *buf, loff_t off, size_t count)
4308 {
4309 	struct device *cdev = container_of(kobj, struct device, kobj);
4310 	struct Scsi_Host *shost = class_to_shost(cdev);
4311 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
4312 	int rc;
4313 
4314 	if (!capable(CAP_SYS_ADMIN))
4315 		return -EACCES;
4316 
4317 	if (buf[0] == '1')
4318 		rc = ipr_alloc_dump(ioa_cfg);
4319 	else if (buf[0] == '0')
4320 		rc = ipr_free_dump(ioa_cfg);
4321 	else
4322 		return -EINVAL;
4323 
4324 	if (rc)
4325 		return rc;
4326 	else
4327 		return count;
4328 }
4329 
4330 static struct bin_attribute ipr_dump_attr = {
4331 	.attr =	{
4332 		.name = "dump",
4333 		.mode = S_IRUSR | S_IWUSR,
4334 	},
4335 	.size = 0,
4336 	.read = ipr_read_dump,
4337 	.write = ipr_write_dump
4338 };
4339 #else
ipr_free_dump(struct ipr_ioa_cfg * ioa_cfg)4340 static int ipr_free_dump(struct ipr_ioa_cfg *ioa_cfg) { return 0; };
4341 #endif
4342 
4343 /**
4344  * ipr_change_queue_depth - Change the device's queue depth
4345  * @sdev:	scsi device struct
4346  * @qdepth:	depth to set
4347  * @reason:	calling context
4348  *
4349  * Return value:
4350  * 	actual depth set
4351  **/
ipr_change_queue_depth(struct scsi_device * sdev,int qdepth)4352 static int ipr_change_queue_depth(struct scsi_device *sdev, int qdepth)
4353 {
4354 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4355 	struct ipr_resource_entry *res;
4356 	unsigned long lock_flags = 0;
4357 
4358 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4359 	res = (struct ipr_resource_entry *)sdev->hostdata;
4360 
4361 	if (res && ipr_is_gata(res) && qdepth > IPR_MAX_CMD_PER_ATA_LUN)
4362 		qdepth = IPR_MAX_CMD_PER_ATA_LUN;
4363 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4364 
4365 	scsi_change_queue_depth(sdev, qdepth);
4366 	return sdev->queue_depth;
4367 }
4368 
4369 /**
4370  * ipr_show_adapter_handle - Show the adapter's resource handle for this device
4371  * @dev:	device struct
4372  * @attr:	device attribute structure
4373  * @buf:	buffer
4374  *
4375  * Return value:
4376  * 	number of bytes printed to buffer
4377  **/
ipr_show_adapter_handle(struct device * dev,struct device_attribute * attr,char * buf)4378 static ssize_t ipr_show_adapter_handle(struct device *dev, struct device_attribute *attr, char *buf)
4379 {
4380 	struct scsi_device *sdev = to_scsi_device(dev);
4381 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4382 	struct ipr_resource_entry *res;
4383 	unsigned long lock_flags = 0;
4384 	ssize_t len = -ENXIO;
4385 
4386 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4387 	res = (struct ipr_resource_entry *)sdev->hostdata;
4388 	if (res)
4389 		len = snprintf(buf, PAGE_SIZE, "%08X\n", res->res_handle);
4390 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4391 	return len;
4392 }
4393 
4394 static struct device_attribute ipr_adapter_handle_attr = {
4395 	.attr = {
4396 		.name = 	"adapter_handle",
4397 		.mode =		S_IRUSR,
4398 	},
4399 	.show = ipr_show_adapter_handle
4400 };
4401 
4402 /**
4403  * ipr_show_resource_path - Show the resource path or the resource address for
4404  *			    this device.
4405  * @dev:	device struct
4406  * @attr:	device attribute structure
4407  * @buf:	buffer
4408  *
4409  * Return value:
4410  * 	number of bytes printed to buffer
4411  **/
ipr_show_resource_path(struct device * dev,struct device_attribute * attr,char * buf)4412 static ssize_t ipr_show_resource_path(struct device *dev, struct device_attribute *attr, char *buf)
4413 {
4414 	struct scsi_device *sdev = to_scsi_device(dev);
4415 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4416 	struct ipr_resource_entry *res;
4417 	unsigned long lock_flags = 0;
4418 	ssize_t len = -ENXIO;
4419 	char buffer[IPR_MAX_RES_PATH_LENGTH];
4420 
4421 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4422 	res = (struct ipr_resource_entry *)sdev->hostdata;
4423 	if (res && ioa_cfg->sis64)
4424 		len = snprintf(buf, PAGE_SIZE, "%s\n",
4425 			       __ipr_format_res_path(res->res_path, buffer,
4426 						     sizeof(buffer)));
4427 	else if (res)
4428 		len = snprintf(buf, PAGE_SIZE, "%d:%d:%d:%d\n", ioa_cfg->host->host_no,
4429 			       res->bus, res->target, res->lun);
4430 
4431 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4432 	return len;
4433 }
4434 
4435 static struct device_attribute ipr_resource_path_attr = {
4436 	.attr = {
4437 		.name = 	"resource_path",
4438 		.mode =		S_IRUGO,
4439 	},
4440 	.show = ipr_show_resource_path
4441 };
4442 
4443 /**
4444  * ipr_show_device_id - Show the device_id for this device.
4445  * @dev:	device struct
4446  * @attr:	device attribute structure
4447  * @buf:	buffer
4448  *
4449  * Return value:
4450  *	number of bytes printed to buffer
4451  **/
ipr_show_device_id(struct device * dev,struct device_attribute * attr,char * buf)4452 static ssize_t ipr_show_device_id(struct device *dev, struct device_attribute *attr, char *buf)
4453 {
4454 	struct scsi_device *sdev = to_scsi_device(dev);
4455 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4456 	struct ipr_resource_entry *res;
4457 	unsigned long lock_flags = 0;
4458 	ssize_t len = -ENXIO;
4459 
4460 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4461 	res = (struct ipr_resource_entry *)sdev->hostdata;
4462 	if (res && ioa_cfg->sis64)
4463 		len = snprintf(buf, PAGE_SIZE, "0x%llx\n", be64_to_cpu(res->dev_id));
4464 	else if (res)
4465 		len = snprintf(buf, PAGE_SIZE, "0x%llx\n", res->lun_wwn);
4466 
4467 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4468 	return len;
4469 }
4470 
4471 static struct device_attribute ipr_device_id_attr = {
4472 	.attr = {
4473 		.name =		"device_id",
4474 		.mode =		S_IRUGO,
4475 	},
4476 	.show = ipr_show_device_id
4477 };
4478 
4479 /**
4480  * ipr_show_resource_type - Show the resource type for this device.
4481  * @dev:	device struct
4482  * @attr:	device attribute structure
4483  * @buf:	buffer
4484  *
4485  * Return value:
4486  *	number of bytes printed to buffer
4487  **/
ipr_show_resource_type(struct device * dev,struct device_attribute * attr,char * buf)4488 static ssize_t ipr_show_resource_type(struct device *dev, struct device_attribute *attr, char *buf)
4489 {
4490 	struct scsi_device *sdev = to_scsi_device(dev);
4491 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4492 	struct ipr_resource_entry *res;
4493 	unsigned long lock_flags = 0;
4494 	ssize_t len = -ENXIO;
4495 
4496 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4497 	res = (struct ipr_resource_entry *)sdev->hostdata;
4498 
4499 	if (res)
4500 		len = snprintf(buf, PAGE_SIZE, "%x\n", res->type);
4501 
4502 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4503 	return len;
4504 }
4505 
4506 static struct device_attribute ipr_resource_type_attr = {
4507 	.attr = {
4508 		.name =		"resource_type",
4509 		.mode =		S_IRUGO,
4510 	},
4511 	.show = ipr_show_resource_type
4512 };
4513 
4514 /**
4515  * ipr_show_raw_mode - Show the adapter's raw mode
4516  * @dev:	class device struct
4517  * @buf:	buffer
4518  *
4519  * Return value:
4520  * 	number of bytes printed to buffer
4521  **/
ipr_show_raw_mode(struct device * dev,struct device_attribute * attr,char * buf)4522 static ssize_t ipr_show_raw_mode(struct device *dev,
4523 				 struct device_attribute *attr, char *buf)
4524 {
4525 	struct scsi_device *sdev = to_scsi_device(dev);
4526 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4527 	struct ipr_resource_entry *res;
4528 	unsigned long lock_flags = 0;
4529 	ssize_t len;
4530 
4531 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4532 	res = (struct ipr_resource_entry *)sdev->hostdata;
4533 	if (res)
4534 		len = snprintf(buf, PAGE_SIZE, "%d\n", res->raw_mode);
4535 	else
4536 		len = -ENXIO;
4537 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4538 	return len;
4539 }
4540 
4541 /**
4542  * ipr_store_raw_mode - Change the adapter's raw mode
4543  * @dev:	class device struct
4544  * @buf:	buffer
4545  *
4546  * Return value:
4547  * 	number of bytes printed to buffer
4548  **/
ipr_store_raw_mode(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)4549 static ssize_t ipr_store_raw_mode(struct device *dev,
4550 				  struct device_attribute *attr,
4551 				  const char *buf, size_t count)
4552 {
4553 	struct scsi_device *sdev = to_scsi_device(dev);
4554 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)sdev->host->hostdata;
4555 	struct ipr_resource_entry *res;
4556 	unsigned long lock_flags = 0;
4557 	ssize_t len;
4558 
4559 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4560 	res = (struct ipr_resource_entry *)sdev->hostdata;
4561 	if (res) {
4562 		if (ipr_is_af_dasd_device(res)) {
4563 			res->raw_mode = simple_strtoul(buf, NULL, 10);
4564 			len = strlen(buf);
4565 			if (res->sdev)
4566 				sdev_printk(KERN_INFO, res->sdev, "raw mode is %s\n",
4567 					res->raw_mode ? "enabled" : "disabled");
4568 		} else
4569 			len = -EINVAL;
4570 	} else
4571 		len = -ENXIO;
4572 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4573 	return len;
4574 }
4575 
4576 static struct device_attribute ipr_raw_mode_attr = {
4577 	.attr = {
4578 		.name =		"raw_mode",
4579 		.mode =		S_IRUGO | S_IWUSR,
4580 	},
4581 	.show = ipr_show_raw_mode,
4582 	.store = ipr_store_raw_mode
4583 };
4584 
4585 static struct device_attribute *ipr_dev_attrs[] = {
4586 	&ipr_adapter_handle_attr,
4587 	&ipr_resource_path_attr,
4588 	&ipr_device_id_attr,
4589 	&ipr_resource_type_attr,
4590 	&ipr_raw_mode_attr,
4591 	NULL,
4592 };
4593 
4594 /**
4595  * ipr_biosparam - Return the HSC mapping
4596  * @sdev:			scsi device struct
4597  * @block_device:	block device pointer
4598  * @capacity:		capacity of the device
4599  * @parm:			Array containing returned HSC values.
4600  *
4601  * This function generates the HSC parms that fdisk uses.
4602  * We want to make sure we return something that places partitions
4603  * on 4k boundaries for best performance with the IOA.
4604  *
4605  * Return value:
4606  * 	0 on success
4607  **/
ipr_biosparam(struct scsi_device * sdev,struct block_device * block_device,sector_t capacity,int * parm)4608 static int ipr_biosparam(struct scsi_device *sdev,
4609 			 struct block_device *block_device,
4610 			 sector_t capacity, int *parm)
4611 {
4612 	int heads, sectors;
4613 	sector_t cylinders;
4614 
4615 	heads = 128;
4616 	sectors = 32;
4617 
4618 	cylinders = capacity;
4619 	sector_div(cylinders, (128 * 32));
4620 
4621 	/* return result */
4622 	parm[0] = heads;
4623 	parm[1] = sectors;
4624 	parm[2] = cylinders;
4625 
4626 	return 0;
4627 }
4628 
4629 /**
4630  * ipr_find_starget - Find target based on bus/target.
4631  * @starget:	scsi target struct
4632  *
4633  * Return value:
4634  * 	resource entry pointer if found / NULL if not found
4635  **/
ipr_find_starget(struct scsi_target * starget)4636 static struct ipr_resource_entry *ipr_find_starget(struct scsi_target *starget)
4637 {
4638 	struct Scsi_Host *shost = dev_to_shost(&starget->dev);
4639 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) shost->hostdata;
4640 	struct ipr_resource_entry *res;
4641 
4642 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
4643 		if ((res->bus == starget->channel) &&
4644 		    (res->target == starget->id)) {
4645 			return res;
4646 		}
4647 	}
4648 
4649 	return NULL;
4650 }
4651 
4652 static struct ata_port_info sata_port_info;
4653 
4654 /**
4655  * ipr_target_alloc - Prepare for commands to a SCSI target
4656  * @starget:	scsi target struct
4657  *
4658  * If the device is a SATA device, this function allocates an
4659  * ATA port with libata, else it does nothing.
4660  *
4661  * Return value:
4662  * 	0 on success / non-0 on failure
4663  **/
ipr_target_alloc(struct scsi_target * starget)4664 static int ipr_target_alloc(struct scsi_target *starget)
4665 {
4666 	struct Scsi_Host *shost = dev_to_shost(&starget->dev);
4667 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) shost->hostdata;
4668 	struct ipr_sata_port *sata_port;
4669 	struct ata_port *ap;
4670 	struct ipr_resource_entry *res;
4671 	unsigned long lock_flags;
4672 
4673 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4674 	res = ipr_find_starget(starget);
4675 	starget->hostdata = NULL;
4676 
4677 	if (res && ipr_is_gata(res)) {
4678 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4679 		sata_port = kzalloc(sizeof(*sata_port), GFP_KERNEL);
4680 		if (!sata_port)
4681 			return -ENOMEM;
4682 
4683 		ap = ata_sas_port_alloc(&ioa_cfg->ata_host, &sata_port_info, shost);
4684 		if (ap) {
4685 			spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4686 			sata_port->ioa_cfg = ioa_cfg;
4687 			sata_port->ap = ap;
4688 			sata_port->res = res;
4689 
4690 			res->sata_port = sata_port;
4691 			ap->private_data = sata_port;
4692 			starget->hostdata = sata_port;
4693 		} else {
4694 			kfree(sata_port);
4695 			return -ENOMEM;
4696 		}
4697 	}
4698 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4699 
4700 	return 0;
4701 }
4702 
4703 /**
4704  * ipr_target_destroy - Destroy a SCSI target
4705  * @starget:	scsi target struct
4706  *
4707  * If the device was a SATA device, this function frees the libata
4708  * ATA port, else it does nothing.
4709  *
4710  **/
ipr_target_destroy(struct scsi_target * starget)4711 static void ipr_target_destroy(struct scsi_target *starget)
4712 {
4713 	struct ipr_sata_port *sata_port = starget->hostdata;
4714 	struct Scsi_Host *shost = dev_to_shost(&starget->dev);
4715 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) shost->hostdata;
4716 
4717 	if (ioa_cfg->sis64) {
4718 		if (!ipr_find_starget(starget)) {
4719 			if (starget->channel == IPR_ARRAY_VIRTUAL_BUS)
4720 				clear_bit(starget->id, ioa_cfg->array_ids);
4721 			else if (starget->channel == IPR_VSET_VIRTUAL_BUS)
4722 				clear_bit(starget->id, ioa_cfg->vset_ids);
4723 			else if (starget->channel == 0)
4724 				clear_bit(starget->id, ioa_cfg->target_ids);
4725 		}
4726 	}
4727 
4728 	if (sata_port) {
4729 		starget->hostdata = NULL;
4730 		ata_sas_port_destroy(sata_port->ap);
4731 		kfree(sata_port);
4732 	}
4733 }
4734 
4735 /**
4736  * ipr_find_sdev - Find device based on bus/target/lun.
4737  * @sdev:	scsi device struct
4738  *
4739  * Return value:
4740  * 	resource entry pointer if found / NULL if not found
4741  **/
ipr_find_sdev(struct scsi_device * sdev)4742 static struct ipr_resource_entry *ipr_find_sdev(struct scsi_device *sdev)
4743 {
4744 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) sdev->host->hostdata;
4745 	struct ipr_resource_entry *res;
4746 
4747 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
4748 		if ((res->bus == sdev->channel) &&
4749 		    (res->target == sdev->id) &&
4750 		    (res->lun == sdev->lun))
4751 			return res;
4752 	}
4753 
4754 	return NULL;
4755 }
4756 
4757 /**
4758  * ipr_slave_destroy - Unconfigure a SCSI device
4759  * @sdev:	scsi device struct
4760  *
4761  * Return value:
4762  * 	nothing
4763  **/
ipr_slave_destroy(struct scsi_device * sdev)4764 static void ipr_slave_destroy(struct scsi_device *sdev)
4765 {
4766 	struct ipr_resource_entry *res;
4767 	struct ipr_ioa_cfg *ioa_cfg;
4768 	unsigned long lock_flags = 0;
4769 
4770 	ioa_cfg = (struct ipr_ioa_cfg *) sdev->host->hostdata;
4771 
4772 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4773 	res = (struct ipr_resource_entry *) sdev->hostdata;
4774 	if (res) {
4775 		if (res->sata_port)
4776 			res->sata_port->ap->link.device[0].class = ATA_DEV_NONE;
4777 		sdev->hostdata = NULL;
4778 		res->sdev = NULL;
4779 		res->sata_port = NULL;
4780 	}
4781 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4782 }
4783 
4784 /**
4785  * ipr_slave_configure - Configure a SCSI device
4786  * @sdev:	scsi device struct
4787  *
4788  * This function configures the specified scsi device.
4789  *
4790  * Return value:
4791  * 	0 on success
4792  **/
ipr_slave_configure(struct scsi_device * sdev)4793 static int ipr_slave_configure(struct scsi_device *sdev)
4794 {
4795 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) sdev->host->hostdata;
4796 	struct ipr_resource_entry *res;
4797 	struct ata_port *ap = NULL;
4798 	unsigned long lock_flags = 0;
4799 	char buffer[IPR_MAX_RES_PATH_LENGTH];
4800 
4801 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4802 	res = sdev->hostdata;
4803 	if (res) {
4804 		if (ipr_is_af_dasd_device(res))
4805 			sdev->type = TYPE_RAID;
4806 		if (ipr_is_af_dasd_device(res) || ipr_is_ioa_resource(res)) {
4807 			sdev->scsi_level = 4;
4808 			sdev->no_uld_attach = 1;
4809 		}
4810 		if (ipr_is_vset_device(res)) {
4811 			sdev->scsi_level = SCSI_SPC_3;
4812 			blk_queue_rq_timeout(sdev->request_queue,
4813 					     IPR_VSET_RW_TIMEOUT);
4814 			blk_queue_max_hw_sectors(sdev->request_queue, IPR_VSET_MAX_SECTORS);
4815 		}
4816 		if (ipr_is_gata(res) && res->sata_port)
4817 			ap = res->sata_port->ap;
4818 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4819 
4820 		if (ap) {
4821 			scsi_change_queue_depth(sdev, IPR_MAX_CMD_PER_ATA_LUN);
4822 			ata_sas_slave_configure(sdev, ap);
4823 		}
4824 
4825 		if (ioa_cfg->sis64)
4826 			sdev_printk(KERN_INFO, sdev, "Resource path: %s\n",
4827 				    ipr_format_res_path(ioa_cfg,
4828 				res->res_path, buffer, sizeof(buffer)));
4829 		return 0;
4830 	}
4831 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4832 	return 0;
4833 }
4834 
4835 /**
4836  * ipr_ata_slave_alloc - Prepare for commands to a SATA device
4837  * @sdev:	scsi device struct
4838  *
4839  * This function initializes an ATA port so that future commands
4840  * sent through queuecommand will work.
4841  *
4842  * Return value:
4843  * 	0 on success
4844  **/
ipr_ata_slave_alloc(struct scsi_device * sdev)4845 static int ipr_ata_slave_alloc(struct scsi_device *sdev)
4846 {
4847 	struct ipr_sata_port *sata_port = NULL;
4848 	int rc = -ENXIO;
4849 
4850 	ENTER;
4851 	if (sdev->sdev_target)
4852 		sata_port = sdev->sdev_target->hostdata;
4853 	if (sata_port) {
4854 		rc = ata_sas_port_init(sata_port->ap);
4855 		if (rc == 0)
4856 			rc = ata_sas_sync_probe(sata_port->ap);
4857 	}
4858 
4859 	if (rc)
4860 		ipr_slave_destroy(sdev);
4861 
4862 	LEAVE;
4863 	return rc;
4864 }
4865 
4866 /**
4867  * ipr_slave_alloc - Prepare for commands to a device.
4868  * @sdev:	scsi device struct
4869  *
4870  * This function saves a pointer to the resource entry
4871  * in the scsi device struct if the device exists. We
4872  * can then use this pointer in ipr_queuecommand when
4873  * handling new commands.
4874  *
4875  * Return value:
4876  * 	0 on success / -ENXIO if device does not exist
4877  **/
ipr_slave_alloc(struct scsi_device * sdev)4878 static int ipr_slave_alloc(struct scsi_device *sdev)
4879 {
4880 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) sdev->host->hostdata;
4881 	struct ipr_resource_entry *res;
4882 	unsigned long lock_flags;
4883 	int rc = -ENXIO;
4884 
4885 	sdev->hostdata = NULL;
4886 
4887 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4888 
4889 	res = ipr_find_sdev(sdev);
4890 	if (res) {
4891 		res->sdev = sdev;
4892 		res->add_to_ml = 0;
4893 		res->in_erp = 0;
4894 		sdev->hostdata = res;
4895 		if (!ipr_is_naca_model(res))
4896 			res->needs_sync_complete = 1;
4897 		rc = 0;
4898 		if (ipr_is_gata(res)) {
4899 			spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4900 			return ipr_ata_slave_alloc(sdev);
4901 		}
4902 	}
4903 
4904 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
4905 
4906 	return rc;
4907 }
4908 
4909 /**
4910  * ipr_match_lun - Match function for specified LUN
4911  * @ipr_cmd:	ipr command struct
4912  * @device:		device to match (sdev)
4913  *
4914  * Returns:
4915  *	1 if command matches sdev / 0 if command does not match sdev
4916  **/
ipr_match_lun(struct ipr_cmnd * ipr_cmd,void * device)4917 static int ipr_match_lun(struct ipr_cmnd *ipr_cmd, void *device)
4918 {
4919 	if (ipr_cmd->scsi_cmd && ipr_cmd->scsi_cmd->device == device)
4920 		return 1;
4921 	return 0;
4922 }
4923 
4924 /**
4925  * ipr_wait_for_ops - Wait for matching commands to complete
4926  * @ipr_cmd:	ipr command struct
4927  * @device:		device to match (sdev)
4928  * @match:		match function to use
4929  *
4930  * Returns:
4931  *	SUCCESS / FAILED
4932  **/
ipr_wait_for_ops(struct ipr_ioa_cfg * ioa_cfg,void * device,int (* match)(struct ipr_cmnd *,void *))4933 static int ipr_wait_for_ops(struct ipr_ioa_cfg *ioa_cfg, void *device,
4934 			    int (*match)(struct ipr_cmnd *, void *))
4935 {
4936 	struct ipr_cmnd *ipr_cmd;
4937 	int wait;
4938 	unsigned long flags;
4939 	struct ipr_hrr_queue *hrrq;
4940 	signed long timeout = IPR_ABORT_TASK_TIMEOUT;
4941 	DECLARE_COMPLETION_ONSTACK(comp);
4942 
4943 	ENTER;
4944 	do {
4945 		wait = 0;
4946 
4947 		for_each_hrrq(hrrq, ioa_cfg) {
4948 			spin_lock_irqsave(hrrq->lock, flags);
4949 			list_for_each_entry(ipr_cmd, &hrrq->hrrq_pending_q, queue) {
4950 				if (match(ipr_cmd, device)) {
4951 					ipr_cmd->eh_comp = &comp;
4952 					wait++;
4953 				}
4954 			}
4955 			spin_unlock_irqrestore(hrrq->lock, flags);
4956 		}
4957 
4958 		if (wait) {
4959 			timeout = wait_for_completion_timeout(&comp, timeout);
4960 
4961 			if (!timeout) {
4962 				wait = 0;
4963 
4964 				for_each_hrrq(hrrq, ioa_cfg) {
4965 					spin_lock_irqsave(hrrq->lock, flags);
4966 					list_for_each_entry(ipr_cmd, &hrrq->hrrq_pending_q, queue) {
4967 						if (match(ipr_cmd, device)) {
4968 							ipr_cmd->eh_comp = NULL;
4969 							wait++;
4970 						}
4971 					}
4972 					spin_unlock_irqrestore(hrrq->lock, flags);
4973 				}
4974 
4975 				if (wait)
4976 					dev_err(&ioa_cfg->pdev->dev, "Timed out waiting for aborted commands\n");
4977 				LEAVE;
4978 				return wait ? FAILED : SUCCESS;
4979 			}
4980 		}
4981 	} while (wait);
4982 
4983 	LEAVE;
4984 	return SUCCESS;
4985 }
4986 
ipr_eh_host_reset(struct scsi_cmnd * cmd)4987 static int ipr_eh_host_reset(struct scsi_cmnd *cmd)
4988 {
4989 	struct ipr_ioa_cfg *ioa_cfg;
4990 	unsigned long lock_flags = 0;
4991 	int rc = SUCCESS;
4992 
4993 	ENTER;
4994 	ioa_cfg = (struct ipr_ioa_cfg *) cmd->device->host->hostdata;
4995 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
4996 
4997 	if (!ioa_cfg->in_reset_reload && !ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead) {
4998 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_ABBREV);
4999 		dev_err(&ioa_cfg->pdev->dev,
5000 			"Adapter being reset as a result of error recovery.\n");
5001 
5002 		if (WAIT_FOR_DUMP == ioa_cfg->sdt_state)
5003 			ioa_cfg->sdt_state = GET_DUMP;
5004 	}
5005 
5006 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5007 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
5008 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
5009 
5010 	/* If we got hit with a host reset while we were already resetting
5011 	 the adapter for some reason, and the reset failed. */
5012 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead) {
5013 		ipr_trace;
5014 		rc = FAILED;
5015 	}
5016 
5017 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5018 	LEAVE;
5019 	return rc;
5020 }
5021 
5022 /**
5023  * ipr_device_reset - Reset the device
5024  * @ioa_cfg:	ioa config struct
5025  * @res:		resource entry struct
5026  *
5027  * This function issues a device reset to the affected device.
5028  * If the device is a SCSI device, a LUN reset will be sent
5029  * to the device first. If that does not work, a target reset
5030  * will be sent. If the device is a SATA device, a PHY reset will
5031  * be sent.
5032  *
5033  * Return value:
5034  *	0 on success / non-zero on failure
5035  **/
ipr_device_reset(struct ipr_ioa_cfg * ioa_cfg,struct ipr_resource_entry * res)5036 static int ipr_device_reset(struct ipr_ioa_cfg *ioa_cfg,
5037 			    struct ipr_resource_entry *res)
5038 {
5039 	struct ipr_cmnd *ipr_cmd;
5040 	struct ipr_ioarcb *ioarcb;
5041 	struct ipr_cmd_pkt *cmd_pkt;
5042 	struct ipr_ioarcb_ata_regs *regs;
5043 	u32 ioasc;
5044 
5045 	ENTER;
5046 	ipr_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
5047 	ioarcb = &ipr_cmd->ioarcb;
5048 	cmd_pkt = &ioarcb->cmd_pkt;
5049 
5050 	if (ipr_cmd->ioa_cfg->sis64) {
5051 		regs = &ipr_cmd->i.ata_ioadl.regs;
5052 		ioarcb->add_cmd_parms_offset = cpu_to_be16(sizeof(*ioarcb));
5053 	} else
5054 		regs = &ioarcb->u.add_data.u.regs;
5055 
5056 	ioarcb->res_handle = res->res_handle;
5057 	cmd_pkt->request_type = IPR_RQTYPE_IOACMD;
5058 	cmd_pkt->cdb[0] = IPR_RESET_DEVICE;
5059 	if (ipr_is_gata(res)) {
5060 		cmd_pkt->cdb[2] = IPR_ATA_PHY_RESET;
5061 		ioarcb->add_cmd_parms_len = cpu_to_be16(sizeof(regs->flags));
5062 		regs->flags |= IPR_ATA_FLAG_STATUS_ON_GOOD_COMPLETION;
5063 	}
5064 
5065 	ipr_send_blocking_cmd(ipr_cmd, ipr_timeout, IPR_DEVICE_RESET_TIMEOUT);
5066 	ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
5067 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
5068 	if (ipr_is_gata(res) && res->sata_port && ioasc != IPR_IOASC_IOA_WAS_RESET) {
5069 		if (ipr_cmd->ioa_cfg->sis64)
5070 			memcpy(&res->sata_port->ioasa, &ipr_cmd->s.ioasa64.u.gata,
5071 			       sizeof(struct ipr_ioasa_gata));
5072 		else
5073 			memcpy(&res->sata_port->ioasa, &ipr_cmd->s.ioasa.u.gata,
5074 			       sizeof(struct ipr_ioasa_gata));
5075 	}
5076 
5077 	LEAVE;
5078 	return IPR_IOASC_SENSE_KEY(ioasc) ? -EIO : 0;
5079 }
5080 
5081 /**
5082  * ipr_sata_reset - Reset the SATA port
5083  * @link:	SATA link to reset
5084  * @classes:	class of the attached device
5085  *
5086  * This function issues a SATA phy reset to the affected ATA link.
5087  *
5088  * Return value:
5089  *	0 on success / non-zero on failure
5090  **/
ipr_sata_reset(struct ata_link * link,unsigned int * classes,unsigned long deadline)5091 static int ipr_sata_reset(struct ata_link *link, unsigned int *classes,
5092 				unsigned long deadline)
5093 {
5094 	struct ipr_sata_port *sata_port = link->ap->private_data;
5095 	struct ipr_ioa_cfg *ioa_cfg = sata_port->ioa_cfg;
5096 	struct ipr_resource_entry *res;
5097 	unsigned long lock_flags = 0;
5098 	int rc = -ENXIO;
5099 
5100 	ENTER;
5101 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
5102 	while (ioa_cfg->in_reset_reload) {
5103 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5104 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
5105 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
5106 	}
5107 
5108 	res = sata_port->res;
5109 	if (res) {
5110 		rc = ipr_device_reset(ioa_cfg, res);
5111 		*classes = res->ata_class;
5112 	}
5113 
5114 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5115 	LEAVE;
5116 	return rc;
5117 }
5118 
5119 /**
5120  * ipr_eh_dev_reset - Reset the device
5121  * @scsi_cmd:	scsi command struct
5122  *
5123  * This function issues a device reset to the affected device.
5124  * A LUN reset will be sent to the device first. If that does
5125  * not work, a target reset will be sent.
5126  *
5127  * Return value:
5128  *	SUCCESS / FAILED
5129  **/
__ipr_eh_dev_reset(struct scsi_cmnd * scsi_cmd)5130 static int __ipr_eh_dev_reset(struct scsi_cmnd *scsi_cmd)
5131 {
5132 	struct ipr_cmnd *ipr_cmd;
5133 	struct ipr_ioa_cfg *ioa_cfg;
5134 	struct ipr_resource_entry *res;
5135 	struct ata_port *ap;
5136 	int rc = 0;
5137 	struct ipr_hrr_queue *hrrq;
5138 
5139 	ENTER;
5140 	ioa_cfg = (struct ipr_ioa_cfg *) scsi_cmd->device->host->hostdata;
5141 	res = scsi_cmd->device->hostdata;
5142 
5143 	if (!res)
5144 		return FAILED;
5145 
5146 	/*
5147 	 * If we are currently going through reset/reload, return failed. This will force the
5148 	 * mid-layer to call ipr_eh_host_reset, which will then go to sleep and wait for the
5149 	 * reset to complete
5150 	 */
5151 	if (ioa_cfg->in_reset_reload)
5152 		return FAILED;
5153 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead)
5154 		return FAILED;
5155 
5156 	for_each_hrrq(hrrq, ioa_cfg) {
5157 		spin_lock(&hrrq->_lock);
5158 		list_for_each_entry(ipr_cmd, &hrrq->hrrq_pending_q, queue) {
5159 			if (ipr_cmd->ioarcb.res_handle == res->res_handle) {
5160 				if (ipr_cmd->scsi_cmd)
5161 					ipr_cmd->done = ipr_scsi_eh_done;
5162 				if (ipr_cmd->qc)
5163 					ipr_cmd->done = ipr_sata_eh_done;
5164 				if (ipr_cmd->qc &&
5165 				    !(ipr_cmd->qc->flags & ATA_QCFLAG_FAILED)) {
5166 					ipr_cmd->qc->err_mask |= AC_ERR_TIMEOUT;
5167 					ipr_cmd->qc->flags |= ATA_QCFLAG_FAILED;
5168 				}
5169 			}
5170 		}
5171 		spin_unlock(&hrrq->_lock);
5172 	}
5173 	res->resetting_device = 1;
5174 	scmd_printk(KERN_ERR, scsi_cmd, "Resetting device\n");
5175 
5176 	if (ipr_is_gata(res) && res->sata_port) {
5177 		ap = res->sata_port->ap;
5178 		spin_unlock_irq(scsi_cmd->device->host->host_lock);
5179 		ata_std_error_handler(ap);
5180 		spin_lock_irq(scsi_cmd->device->host->host_lock);
5181 
5182 		for_each_hrrq(hrrq, ioa_cfg) {
5183 			spin_lock(&hrrq->_lock);
5184 			list_for_each_entry(ipr_cmd,
5185 					    &hrrq->hrrq_pending_q, queue) {
5186 				if (ipr_cmd->ioarcb.res_handle ==
5187 				    res->res_handle) {
5188 					rc = -EIO;
5189 					break;
5190 				}
5191 			}
5192 			spin_unlock(&hrrq->_lock);
5193 		}
5194 	} else
5195 		rc = ipr_device_reset(ioa_cfg, res);
5196 	res->resetting_device = 0;
5197 	res->reset_occurred = 1;
5198 
5199 	LEAVE;
5200 	return rc ? FAILED : SUCCESS;
5201 }
5202 
ipr_eh_dev_reset(struct scsi_cmnd * cmd)5203 static int ipr_eh_dev_reset(struct scsi_cmnd *cmd)
5204 {
5205 	int rc;
5206 	struct ipr_ioa_cfg *ioa_cfg;
5207 
5208 	ioa_cfg = (struct ipr_ioa_cfg *) cmd->device->host->hostdata;
5209 
5210 	spin_lock_irq(cmd->device->host->host_lock);
5211 	rc = __ipr_eh_dev_reset(cmd);
5212 	spin_unlock_irq(cmd->device->host->host_lock);
5213 
5214 	if (rc == SUCCESS)
5215 		rc = ipr_wait_for_ops(ioa_cfg, cmd->device, ipr_match_lun);
5216 
5217 	return rc;
5218 }
5219 
5220 /**
5221  * ipr_bus_reset_done - Op done function for bus reset.
5222  * @ipr_cmd:	ipr command struct
5223  *
5224  * This function is the op done function for a bus reset
5225  *
5226  * Return value:
5227  * 	none
5228  **/
ipr_bus_reset_done(struct ipr_cmnd * ipr_cmd)5229 static void ipr_bus_reset_done(struct ipr_cmnd *ipr_cmd)
5230 {
5231 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
5232 	struct ipr_resource_entry *res;
5233 
5234 	ENTER;
5235 	if (!ioa_cfg->sis64)
5236 		list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
5237 			if (res->res_handle == ipr_cmd->ioarcb.res_handle) {
5238 				scsi_report_bus_reset(ioa_cfg->host, res->bus);
5239 				break;
5240 			}
5241 		}
5242 
5243 	/*
5244 	 * If abort has not completed, indicate the reset has, else call the
5245 	 * abort's done function to wake the sleeping eh thread
5246 	 */
5247 	if (ipr_cmd->sibling->sibling)
5248 		ipr_cmd->sibling->sibling = NULL;
5249 	else
5250 		ipr_cmd->sibling->done(ipr_cmd->sibling);
5251 
5252 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
5253 	LEAVE;
5254 }
5255 
5256 /**
5257  * ipr_abort_timeout - An abort task has timed out
5258  * @ipr_cmd:	ipr command struct
5259  *
5260  * This function handles when an abort task times out. If this
5261  * happens we issue a bus reset since we have resources tied
5262  * up that must be freed before returning to the midlayer.
5263  *
5264  * Return value:
5265  *	none
5266  **/
ipr_abort_timeout(struct ipr_cmnd * ipr_cmd)5267 static void ipr_abort_timeout(struct ipr_cmnd *ipr_cmd)
5268 {
5269 	struct ipr_cmnd *reset_cmd;
5270 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
5271 	struct ipr_cmd_pkt *cmd_pkt;
5272 	unsigned long lock_flags = 0;
5273 
5274 	ENTER;
5275 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
5276 	if (ipr_cmd->completion.done || ioa_cfg->in_reset_reload) {
5277 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5278 		return;
5279 	}
5280 
5281 	sdev_printk(KERN_ERR, ipr_cmd->u.sdev, "Abort timed out. Resetting bus.\n");
5282 	reset_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
5283 	ipr_cmd->sibling = reset_cmd;
5284 	reset_cmd->sibling = ipr_cmd;
5285 	reset_cmd->ioarcb.res_handle = ipr_cmd->ioarcb.res_handle;
5286 	cmd_pkt = &reset_cmd->ioarcb.cmd_pkt;
5287 	cmd_pkt->request_type = IPR_RQTYPE_IOACMD;
5288 	cmd_pkt->cdb[0] = IPR_RESET_DEVICE;
5289 	cmd_pkt->cdb[2] = IPR_RESET_TYPE_SELECT | IPR_BUS_RESET;
5290 
5291 	ipr_do_req(reset_cmd, ipr_bus_reset_done, ipr_timeout, IPR_DEVICE_RESET_TIMEOUT);
5292 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
5293 	LEAVE;
5294 }
5295 
5296 /**
5297  * ipr_cancel_op - Cancel specified op
5298  * @scsi_cmd:	scsi command struct
5299  *
5300  * This function cancels specified op.
5301  *
5302  * Return value:
5303  *	SUCCESS / FAILED
5304  **/
ipr_cancel_op(struct scsi_cmnd * scsi_cmd)5305 static int ipr_cancel_op(struct scsi_cmnd *scsi_cmd)
5306 {
5307 	struct ipr_cmnd *ipr_cmd;
5308 	struct ipr_ioa_cfg *ioa_cfg;
5309 	struct ipr_resource_entry *res;
5310 	struct ipr_cmd_pkt *cmd_pkt;
5311 	u32 ioasc, int_reg;
5312 	int op_found = 0;
5313 	struct ipr_hrr_queue *hrrq;
5314 
5315 	ENTER;
5316 	ioa_cfg = (struct ipr_ioa_cfg *)scsi_cmd->device->host->hostdata;
5317 	res = scsi_cmd->device->hostdata;
5318 
5319 	/* If we are currently going through reset/reload, return failed.
5320 	 * This will force the mid-layer to call ipr_eh_host_reset,
5321 	 * which will then go to sleep and wait for the reset to complete
5322 	 */
5323 	if (ioa_cfg->in_reset_reload ||
5324 	    ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead)
5325 		return FAILED;
5326 	if (!res)
5327 		return FAILED;
5328 
5329 	/*
5330 	 * If we are aborting a timed out op, chances are that the timeout was caused
5331 	 * by a still not detected EEH error. In such cases, reading a register will
5332 	 * trigger the EEH recovery infrastructure.
5333 	 */
5334 	int_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
5335 
5336 	if (!ipr_is_gscsi(res))
5337 		return FAILED;
5338 
5339 	for_each_hrrq(hrrq, ioa_cfg) {
5340 		spin_lock(&hrrq->_lock);
5341 		list_for_each_entry(ipr_cmd, &hrrq->hrrq_pending_q, queue) {
5342 			if (ipr_cmd->scsi_cmd == scsi_cmd) {
5343 				ipr_cmd->done = ipr_scsi_eh_done;
5344 				op_found = 1;
5345 				break;
5346 			}
5347 		}
5348 		spin_unlock(&hrrq->_lock);
5349 	}
5350 
5351 	if (!op_found)
5352 		return SUCCESS;
5353 
5354 	ipr_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
5355 	ipr_cmd->ioarcb.res_handle = res->res_handle;
5356 	cmd_pkt = &ipr_cmd->ioarcb.cmd_pkt;
5357 	cmd_pkt->request_type = IPR_RQTYPE_IOACMD;
5358 	cmd_pkt->cdb[0] = IPR_CANCEL_ALL_REQUESTS;
5359 	ipr_cmd->u.sdev = scsi_cmd->device;
5360 
5361 	scmd_printk(KERN_ERR, scsi_cmd, "Aborting command: %02X\n",
5362 		    scsi_cmd->cmnd[0]);
5363 	ipr_send_blocking_cmd(ipr_cmd, ipr_abort_timeout, IPR_CANCEL_ALL_TIMEOUT);
5364 	ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
5365 
5366 	/*
5367 	 * If the abort task timed out and we sent a bus reset, we will get
5368 	 * one the following responses to the abort
5369 	 */
5370 	if (ioasc == IPR_IOASC_BUS_WAS_RESET || ioasc == IPR_IOASC_SYNC_REQUIRED) {
5371 		ioasc = 0;
5372 		ipr_trace;
5373 	}
5374 
5375 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
5376 	if (!ipr_is_naca_model(res))
5377 		res->needs_sync_complete = 1;
5378 
5379 	LEAVE;
5380 	return IPR_IOASC_SENSE_KEY(ioasc) ? FAILED : SUCCESS;
5381 }
5382 
5383 /**
5384  * ipr_eh_abort - Abort a single op
5385  * @scsi_cmd:	scsi command struct
5386  *
5387  * Return value:
5388  *	0 if scan in progress / 1 if scan is complete
5389  **/
ipr_scan_finished(struct Scsi_Host * shost,unsigned long elapsed_time)5390 static int ipr_scan_finished(struct Scsi_Host *shost, unsigned long elapsed_time)
5391 {
5392 	unsigned long lock_flags;
5393 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *) shost->hostdata;
5394 	int rc = 0;
5395 
5396 	spin_lock_irqsave(shost->host_lock, lock_flags);
5397 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead || ioa_cfg->scan_done)
5398 		rc = 1;
5399 	if ((elapsed_time/HZ) > (ioa_cfg->transop_timeout * 2))
5400 		rc = 1;
5401 	spin_unlock_irqrestore(shost->host_lock, lock_flags);
5402 	return rc;
5403 }
5404 
5405 /**
5406  * ipr_eh_host_reset - Reset the host adapter
5407  * @scsi_cmd:	scsi command struct
5408  *
5409  * Return value:
5410  * 	SUCCESS / FAILED
5411  **/
ipr_eh_abort(struct scsi_cmnd * scsi_cmd)5412 static int ipr_eh_abort(struct scsi_cmnd *scsi_cmd)
5413 {
5414 	unsigned long flags;
5415 	int rc;
5416 	struct ipr_ioa_cfg *ioa_cfg;
5417 
5418 	ENTER;
5419 
5420 	ioa_cfg = (struct ipr_ioa_cfg *) scsi_cmd->device->host->hostdata;
5421 
5422 	spin_lock_irqsave(scsi_cmd->device->host->host_lock, flags);
5423 	rc = ipr_cancel_op(scsi_cmd);
5424 	spin_unlock_irqrestore(scsi_cmd->device->host->host_lock, flags);
5425 
5426 	if (rc == SUCCESS)
5427 		rc = ipr_wait_for_ops(ioa_cfg, scsi_cmd->device, ipr_match_lun);
5428 	LEAVE;
5429 	return rc;
5430 }
5431 
5432 /**
5433  * ipr_handle_other_interrupt - Handle "other" interrupts
5434  * @ioa_cfg:	ioa config struct
5435  * @int_reg:	interrupt register
5436  *
5437  * Return value:
5438  * 	IRQ_NONE / IRQ_HANDLED
5439  **/
ipr_handle_other_interrupt(struct ipr_ioa_cfg * ioa_cfg,u32 int_reg)5440 static irqreturn_t ipr_handle_other_interrupt(struct ipr_ioa_cfg *ioa_cfg,
5441 					      u32 int_reg)
5442 {
5443 	irqreturn_t rc = IRQ_HANDLED;
5444 	u32 int_mask_reg;
5445 
5446 	int_mask_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg32);
5447 	int_reg &= ~int_mask_reg;
5448 
5449 	/* If an interrupt on the adapter did not occur, ignore it.
5450 	 * Or in the case of SIS 64, check for a stage change interrupt.
5451 	 */
5452 	if ((int_reg & IPR_PCII_OPER_INTERRUPTS) == 0) {
5453 		if (ioa_cfg->sis64) {
5454 			int_mask_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
5455 			int_reg = readl(ioa_cfg->regs.sense_interrupt_reg) & ~int_mask_reg;
5456 			if (int_reg & IPR_PCII_IPL_STAGE_CHANGE) {
5457 
5458 				/* clear stage change */
5459 				writel(IPR_PCII_IPL_STAGE_CHANGE, ioa_cfg->regs.clr_interrupt_reg);
5460 				int_reg = readl(ioa_cfg->regs.sense_interrupt_reg) & ~int_mask_reg;
5461 				list_del(&ioa_cfg->reset_cmd->queue);
5462 				del_timer(&ioa_cfg->reset_cmd->timer);
5463 				ipr_reset_ioa_job(ioa_cfg->reset_cmd);
5464 				return IRQ_HANDLED;
5465 			}
5466 		}
5467 
5468 		return IRQ_NONE;
5469 	}
5470 
5471 	if (int_reg & IPR_PCII_IOA_TRANS_TO_OPER) {
5472 		/* Mask the interrupt */
5473 		writel(IPR_PCII_IOA_TRANS_TO_OPER, ioa_cfg->regs.set_interrupt_mask_reg);
5474 		int_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
5475 
5476 		list_del(&ioa_cfg->reset_cmd->queue);
5477 		del_timer(&ioa_cfg->reset_cmd->timer);
5478 		ipr_reset_ioa_job(ioa_cfg->reset_cmd);
5479 	} else if ((int_reg & IPR_PCII_HRRQ_UPDATED) == int_reg) {
5480 		if (ioa_cfg->clear_isr) {
5481 			if (ipr_debug && printk_ratelimit())
5482 				dev_err(&ioa_cfg->pdev->dev,
5483 					"Spurious interrupt detected. 0x%08X\n", int_reg);
5484 			writel(IPR_PCII_HRRQ_UPDATED, ioa_cfg->regs.clr_interrupt_reg32);
5485 			int_reg = readl(ioa_cfg->regs.sense_interrupt_reg32);
5486 			return IRQ_NONE;
5487 		}
5488 	} else {
5489 		if (int_reg & IPR_PCII_IOA_UNIT_CHECKED)
5490 			ioa_cfg->ioa_unit_checked = 1;
5491 		else if (int_reg & IPR_PCII_NO_HOST_RRQ)
5492 			dev_err(&ioa_cfg->pdev->dev,
5493 				"No Host RRQ. 0x%08X\n", int_reg);
5494 		else
5495 			dev_err(&ioa_cfg->pdev->dev,
5496 				"Permanent IOA failure. 0x%08X\n", int_reg);
5497 
5498 		if (WAIT_FOR_DUMP == ioa_cfg->sdt_state)
5499 			ioa_cfg->sdt_state = GET_DUMP;
5500 
5501 		ipr_mask_and_clear_interrupts(ioa_cfg, ~0);
5502 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
5503 	}
5504 
5505 	return rc;
5506 }
5507 
5508 /**
5509  * ipr_isr_eh - Interrupt service routine error handler
5510  * @ioa_cfg:	ioa config struct
5511  * @msg:	message to log
5512  *
5513  * Return value:
5514  * 	none
5515  **/
ipr_isr_eh(struct ipr_ioa_cfg * ioa_cfg,char * msg,u16 number)5516 static void ipr_isr_eh(struct ipr_ioa_cfg *ioa_cfg, char *msg, u16 number)
5517 {
5518 	ioa_cfg->errors_logged++;
5519 	dev_err(&ioa_cfg->pdev->dev, "%s %d\n", msg, number);
5520 
5521 	if (WAIT_FOR_DUMP == ioa_cfg->sdt_state)
5522 		ioa_cfg->sdt_state = GET_DUMP;
5523 
5524 	ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
5525 }
5526 
ipr_process_hrrq(struct ipr_hrr_queue * hrr_queue,int budget,struct list_head * doneq)5527 static int ipr_process_hrrq(struct ipr_hrr_queue *hrr_queue, int budget,
5528 						struct list_head *doneq)
5529 {
5530 	u32 ioasc;
5531 	u16 cmd_index;
5532 	struct ipr_cmnd *ipr_cmd;
5533 	struct ipr_ioa_cfg *ioa_cfg = hrr_queue->ioa_cfg;
5534 	int num_hrrq = 0;
5535 
5536 	/* If interrupts are disabled, ignore the interrupt */
5537 	if (!hrr_queue->allow_interrupts)
5538 		return 0;
5539 
5540 	while ((be32_to_cpu(*hrr_queue->hrrq_curr) & IPR_HRRQ_TOGGLE_BIT) ==
5541 	       hrr_queue->toggle_bit) {
5542 
5543 		cmd_index = (be32_to_cpu(*hrr_queue->hrrq_curr) &
5544 			     IPR_HRRQ_REQ_RESP_HANDLE_MASK) >>
5545 			     IPR_HRRQ_REQ_RESP_HANDLE_SHIFT;
5546 
5547 		if (unlikely(cmd_index > hrr_queue->max_cmd_id ||
5548 			     cmd_index < hrr_queue->min_cmd_id)) {
5549 			ipr_isr_eh(ioa_cfg,
5550 				"Invalid response handle from IOA: ",
5551 				cmd_index);
5552 			break;
5553 		}
5554 
5555 		ipr_cmd = ioa_cfg->ipr_cmnd_list[cmd_index];
5556 		ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
5557 
5558 		ipr_trc_hook(ipr_cmd, IPR_TRACE_FINISH, ioasc);
5559 
5560 		list_move_tail(&ipr_cmd->queue, doneq);
5561 
5562 		if (hrr_queue->hrrq_curr < hrr_queue->hrrq_end) {
5563 			hrr_queue->hrrq_curr++;
5564 		} else {
5565 			hrr_queue->hrrq_curr = hrr_queue->hrrq_start;
5566 			hrr_queue->toggle_bit ^= 1u;
5567 		}
5568 		num_hrrq++;
5569 		if (budget > 0 && num_hrrq >= budget)
5570 			break;
5571 	}
5572 
5573 	return num_hrrq;
5574 }
5575 
ipr_iopoll(struct blk_iopoll * iop,int budget)5576 static int ipr_iopoll(struct blk_iopoll *iop, int budget)
5577 {
5578 	struct ipr_ioa_cfg *ioa_cfg;
5579 	struct ipr_hrr_queue *hrrq;
5580 	struct ipr_cmnd *ipr_cmd, *temp;
5581 	unsigned long hrrq_flags;
5582 	int completed_ops;
5583 	LIST_HEAD(doneq);
5584 
5585 	hrrq = container_of(iop, struct ipr_hrr_queue, iopoll);
5586 	ioa_cfg = hrrq->ioa_cfg;
5587 
5588 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
5589 	completed_ops = ipr_process_hrrq(hrrq, budget, &doneq);
5590 
5591 	if (completed_ops < budget)
5592 		blk_iopoll_complete(iop);
5593 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5594 
5595 	list_for_each_entry_safe(ipr_cmd, temp, &doneq, queue) {
5596 		list_del(&ipr_cmd->queue);
5597 		del_timer(&ipr_cmd->timer);
5598 		ipr_cmd->fast_done(ipr_cmd);
5599 	}
5600 
5601 	return completed_ops;
5602 }
5603 
5604 /**
5605  * ipr_isr - Interrupt service routine
5606  * @irq:	irq number
5607  * @devp:	pointer to ioa config struct
5608  *
5609  * Return value:
5610  * 	IRQ_NONE / IRQ_HANDLED
5611  **/
ipr_isr(int irq,void * devp)5612 static irqreturn_t ipr_isr(int irq, void *devp)
5613 {
5614 	struct ipr_hrr_queue *hrrq = (struct ipr_hrr_queue *)devp;
5615 	struct ipr_ioa_cfg *ioa_cfg = hrrq->ioa_cfg;
5616 	unsigned long hrrq_flags = 0;
5617 	u32 int_reg = 0;
5618 	int num_hrrq = 0;
5619 	int irq_none = 0;
5620 	struct ipr_cmnd *ipr_cmd, *temp;
5621 	irqreturn_t rc = IRQ_NONE;
5622 	LIST_HEAD(doneq);
5623 
5624 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
5625 	/* If interrupts are disabled, ignore the interrupt */
5626 	if (!hrrq->allow_interrupts) {
5627 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5628 		return IRQ_NONE;
5629 	}
5630 
5631 	while (1) {
5632 		if (ipr_process_hrrq(hrrq, -1, &doneq)) {
5633 			rc =  IRQ_HANDLED;
5634 
5635 			if (!ioa_cfg->clear_isr)
5636 				break;
5637 
5638 			/* Clear the PCI interrupt */
5639 			num_hrrq = 0;
5640 			do {
5641 				writel(IPR_PCII_HRRQ_UPDATED,
5642 				     ioa_cfg->regs.clr_interrupt_reg32);
5643 				int_reg = readl(ioa_cfg->regs.sense_interrupt_reg32);
5644 			} while (int_reg & IPR_PCII_HRRQ_UPDATED &&
5645 				num_hrrq++ < IPR_MAX_HRRQ_RETRIES);
5646 
5647 		} else if (rc == IRQ_NONE && irq_none == 0) {
5648 			int_reg = readl(ioa_cfg->regs.sense_interrupt_reg32);
5649 			irq_none++;
5650 		} else if (num_hrrq == IPR_MAX_HRRQ_RETRIES &&
5651 			   int_reg & IPR_PCII_HRRQ_UPDATED) {
5652 			ipr_isr_eh(ioa_cfg,
5653 				"Error clearing HRRQ: ", num_hrrq);
5654 			rc = IRQ_HANDLED;
5655 			break;
5656 		} else
5657 			break;
5658 	}
5659 
5660 	if (unlikely(rc == IRQ_NONE))
5661 		rc = ipr_handle_other_interrupt(ioa_cfg, int_reg);
5662 
5663 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5664 	list_for_each_entry_safe(ipr_cmd, temp, &doneq, queue) {
5665 		list_del(&ipr_cmd->queue);
5666 		del_timer(&ipr_cmd->timer);
5667 		ipr_cmd->fast_done(ipr_cmd);
5668 	}
5669 	return rc;
5670 }
5671 
5672 /**
5673  * ipr_isr_mhrrq - Interrupt service routine
5674  * @irq:	irq number
5675  * @devp:	pointer to ioa config struct
5676  *
5677  * Return value:
5678  *	IRQ_NONE / IRQ_HANDLED
5679  **/
ipr_isr_mhrrq(int irq,void * devp)5680 static irqreturn_t ipr_isr_mhrrq(int irq, void *devp)
5681 {
5682 	struct ipr_hrr_queue *hrrq = (struct ipr_hrr_queue *)devp;
5683 	struct ipr_ioa_cfg *ioa_cfg = hrrq->ioa_cfg;
5684 	unsigned long hrrq_flags = 0;
5685 	struct ipr_cmnd *ipr_cmd, *temp;
5686 	irqreturn_t rc = IRQ_NONE;
5687 	LIST_HEAD(doneq);
5688 
5689 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
5690 
5691 	/* If interrupts are disabled, ignore the interrupt */
5692 	if (!hrrq->allow_interrupts) {
5693 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5694 		return IRQ_NONE;
5695 	}
5696 
5697 	if (ioa_cfg->iopoll_weight && ioa_cfg->sis64 && ioa_cfg->nvectors > 1) {
5698 		if ((be32_to_cpu(*hrrq->hrrq_curr) & IPR_HRRQ_TOGGLE_BIT) ==
5699 		       hrrq->toggle_bit) {
5700 			if (!blk_iopoll_sched_prep(&hrrq->iopoll))
5701 				blk_iopoll_sched(&hrrq->iopoll);
5702 			spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5703 			return IRQ_HANDLED;
5704 		}
5705 	} else {
5706 		if ((be32_to_cpu(*hrrq->hrrq_curr) & IPR_HRRQ_TOGGLE_BIT) ==
5707 			hrrq->toggle_bit)
5708 
5709 			if (ipr_process_hrrq(hrrq, -1, &doneq))
5710 				rc =  IRQ_HANDLED;
5711 	}
5712 
5713 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
5714 
5715 	list_for_each_entry_safe(ipr_cmd, temp, &doneq, queue) {
5716 		list_del(&ipr_cmd->queue);
5717 		del_timer(&ipr_cmd->timer);
5718 		ipr_cmd->fast_done(ipr_cmd);
5719 	}
5720 	return rc;
5721 }
5722 
5723 /**
5724  * ipr_build_ioadl64 - Build a scatter/gather list and map the buffer
5725  * @ioa_cfg:	ioa config struct
5726  * @ipr_cmd:	ipr command struct
5727  *
5728  * Return value:
5729  * 	0 on success / -1 on failure
5730  **/
ipr_build_ioadl64(struct ipr_ioa_cfg * ioa_cfg,struct ipr_cmnd * ipr_cmd)5731 static int ipr_build_ioadl64(struct ipr_ioa_cfg *ioa_cfg,
5732 			     struct ipr_cmnd *ipr_cmd)
5733 {
5734 	int i, nseg;
5735 	struct scatterlist *sg;
5736 	u32 length;
5737 	u32 ioadl_flags = 0;
5738 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
5739 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
5740 	struct ipr_ioadl64_desc *ioadl64 = ipr_cmd->i.ioadl64;
5741 
5742 	length = scsi_bufflen(scsi_cmd);
5743 	if (!length)
5744 		return 0;
5745 
5746 	nseg = scsi_dma_map(scsi_cmd);
5747 	if (nseg < 0) {
5748 		if (printk_ratelimit())
5749 			dev_err(&ioa_cfg->pdev->dev, "scsi_dma_map failed!\n");
5750 		return -1;
5751 	}
5752 
5753 	ipr_cmd->dma_use_sg = nseg;
5754 
5755 	ioarcb->data_transfer_length = cpu_to_be32(length);
5756 	ioarcb->ioadl_len =
5757 		cpu_to_be32(sizeof(struct ipr_ioadl64_desc) * ipr_cmd->dma_use_sg);
5758 
5759 	if (scsi_cmd->sc_data_direction == DMA_TO_DEVICE) {
5760 		ioadl_flags = IPR_IOADL_FLAGS_WRITE;
5761 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
5762 	} else if (scsi_cmd->sc_data_direction == DMA_FROM_DEVICE)
5763 		ioadl_flags = IPR_IOADL_FLAGS_READ;
5764 
5765 	scsi_for_each_sg(scsi_cmd, sg, ipr_cmd->dma_use_sg, i) {
5766 		ioadl64[i].flags = cpu_to_be32(ioadl_flags);
5767 		ioadl64[i].data_len = cpu_to_be32(sg_dma_len(sg));
5768 		ioadl64[i].address = cpu_to_be64(sg_dma_address(sg));
5769 	}
5770 
5771 	ioadl64[i-1].flags |= cpu_to_be32(IPR_IOADL_FLAGS_LAST);
5772 	return 0;
5773 }
5774 
5775 /**
5776  * ipr_build_ioadl - Build a scatter/gather list and map the buffer
5777  * @ioa_cfg:	ioa config struct
5778  * @ipr_cmd:	ipr command struct
5779  *
5780  * Return value:
5781  * 	0 on success / -1 on failure
5782  **/
ipr_build_ioadl(struct ipr_ioa_cfg * ioa_cfg,struct ipr_cmnd * ipr_cmd)5783 static int ipr_build_ioadl(struct ipr_ioa_cfg *ioa_cfg,
5784 			   struct ipr_cmnd *ipr_cmd)
5785 {
5786 	int i, nseg;
5787 	struct scatterlist *sg;
5788 	u32 length;
5789 	u32 ioadl_flags = 0;
5790 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
5791 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
5792 	struct ipr_ioadl_desc *ioadl = ipr_cmd->i.ioadl;
5793 
5794 	length = scsi_bufflen(scsi_cmd);
5795 	if (!length)
5796 		return 0;
5797 
5798 	nseg = scsi_dma_map(scsi_cmd);
5799 	if (nseg < 0) {
5800 		dev_err(&ioa_cfg->pdev->dev, "scsi_dma_map failed!\n");
5801 		return -1;
5802 	}
5803 
5804 	ipr_cmd->dma_use_sg = nseg;
5805 
5806 	if (scsi_cmd->sc_data_direction == DMA_TO_DEVICE) {
5807 		ioadl_flags = IPR_IOADL_FLAGS_WRITE;
5808 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
5809 		ioarcb->data_transfer_length = cpu_to_be32(length);
5810 		ioarcb->ioadl_len =
5811 			cpu_to_be32(sizeof(struct ipr_ioadl_desc) * ipr_cmd->dma_use_sg);
5812 	} else if (scsi_cmd->sc_data_direction == DMA_FROM_DEVICE) {
5813 		ioadl_flags = IPR_IOADL_FLAGS_READ;
5814 		ioarcb->read_data_transfer_length = cpu_to_be32(length);
5815 		ioarcb->read_ioadl_len =
5816 			cpu_to_be32(sizeof(struct ipr_ioadl_desc) * ipr_cmd->dma_use_sg);
5817 	}
5818 
5819 	if (ipr_cmd->dma_use_sg <= ARRAY_SIZE(ioarcb->u.add_data.u.ioadl)) {
5820 		ioadl = ioarcb->u.add_data.u.ioadl;
5821 		ioarcb->write_ioadl_addr = cpu_to_be32((ipr_cmd->dma_addr) +
5822 				    offsetof(struct ipr_ioarcb, u.add_data));
5823 		ioarcb->read_ioadl_addr = ioarcb->write_ioadl_addr;
5824 	}
5825 
5826 	scsi_for_each_sg(scsi_cmd, sg, ipr_cmd->dma_use_sg, i) {
5827 		ioadl[i].flags_and_data_len =
5828 			cpu_to_be32(ioadl_flags | sg_dma_len(sg));
5829 		ioadl[i].address = cpu_to_be32(sg_dma_address(sg));
5830 	}
5831 
5832 	ioadl[i-1].flags_and_data_len |= cpu_to_be32(IPR_IOADL_FLAGS_LAST);
5833 	return 0;
5834 }
5835 
5836 /**
5837  * ipr_erp_done - Process completion of ERP for a device
5838  * @ipr_cmd:		ipr command struct
5839  *
5840  * This function copies the sense buffer into the scsi_cmd
5841  * struct and pushes the scsi_done function.
5842  *
5843  * Return value:
5844  * 	nothing
5845  **/
ipr_erp_done(struct ipr_cmnd * ipr_cmd)5846 static void ipr_erp_done(struct ipr_cmnd *ipr_cmd)
5847 {
5848 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
5849 	struct ipr_resource_entry *res = scsi_cmd->device->hostdata;
5850 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
5851 
5852 	if (IPR_IOASC_SENSE_KEY(ioasc) > 0) {
5853 		scsi_cmd->result |= (DID_ERROR << 16);
5854 		scmd_printk(KERN_ERR, scsi_cmd,
5855 			    "Request Sense failed with IOASC: 0x%08X\n", ioasc);
5856 	} else {
5857 		memcpy(scsi_cmd->sense_buffer, ipr_cmd->sense_buffer,
5858 		       SCSI_SENSE_BUFFERSIZE);
5859 	}
5860 
5861 	if (res) {
5862 		if (!ipr_is_naca_model(res))
5863 			res->needs_sync_complete = 1;
5864 		res->in_erp = 0;
5865 	}
5866 	scsi_dma_unmap(ipr_cmd->scsi_cmd);
5867 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
5868 	scsi_cmd->scsi_done(scsi_cmd);
5869 }
5870 
5871 /**
5872  * ipr_reinit_ipr_cmnd_for_erp - Re-initialize a cmnd block to be used for ERP
5873  * @ipr_cmd:	ipr command struct
5874  *
5875  * Return value:
5876  * 	none
5877  **/
ipr_reinit_ipr_cmnd_for_erp(struct ipr_cmnd * ipr_cmd)5878 static void ipr_reinit_ipr_cmnd_for_erp(struct ipr_cmnd *ipr_cmd)
5879 {
5880 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
5881 	struct ipr_ioasa *ioasa = &ipr_cmd->s.ioasa;
5882 	dma_addr_t dma_addr = ipr_cmd->dma_addr;
5883 
5884 	memset(&ioarcb->cmd_pkt, 0, sizeof(struct ipr_cmd_pkt));
5885 	ioarcb->data_transfer_length = 0;
5886 	ioarcb->read_data_transfer_length = 0;
5887 	ioarcb->ioadl_len = 0;
5888 	ioarcb->read_ioadl_len = 0;
5889 	ioasa->hdr.ioasc = 0;
5890 	ioasa->hdr.residual_data_len = 0;
5891 
5892 	if (ipr_cmd->ioa_cfg->sis64)
5893 		ioarcb->u.sis64_addr_data.data_ioadl_addr =
5894 			cpu_to_be64(dma_addr + offsetof(struct ipr_cmnd, i.ioadl64));
5895 	else {
5896 		ioarcb->write_ioadl_addr =
5897 			cpu_to_be32(dma_addr + offsetof(struct ipr_cmnd, i.ioadl));
5898 		ioarcb->read_ioadl_addr = ioarcb->write_ioadl_addr;
5899 	}
5900 }
5901 
5902 /**
5903  * ipr_erp_request_sense - Send request sense to a device
5904  * @ipr_cmd:	ipr command struct
5905  *
5906  * This function sends a request sense to a device as a result
5907  * of a check condition.
5908  *
5909  * Return value:
5910  * 	nothing
5911  **/
ipr_erp_request_sense(struct ipr_cmnd * ipr_cmd)5912 static void ipr_erp_request_sense(struct ipr_cmnd *ipr_cmd)
5913 {
5914 	struct ipr_cmd_pkt *cmd_pkt = &ipr_cmd->ioarcb.cmd_pkt;
5915 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
5916 
5917 	if (IPR_IOASC_SENSE_KEY(ioasc) > 0) {
5918 		ipr_erp_done(ipr_cmd);
5919 		return;
5920 	}
5921 
5922 	ipr_reinit_ipr_cmnd_for_erp(ipr_cmd);
5923 
5924 	cmd_pkt->request_type = IPR_RQTYPE_SCSICDB;
5925 	cmd_pkt->cdb[0] = REQUEST_SENSE;
5926 	cmd_pkt->cdb[4] = SCSI_SENSE_BUFFERSIZE;
5927 	cmd_pkt->flags_hi |= IPR_FLAGS_HI_SYNC_OVERRIDE;
5928 	cmd_pkt->flags_hi |= IPR_FLAGS_HI_NO_ULEN_CHK;
5929 	cmd_pkt->timeout = cpu_to_be16(IPR_REQUEST_SENSE_TIMEOUT / HZ);
5930 
5931 	ipr_init_ioadl(ipr_cmd, ipr_cmd->sense_buffer_dma,
5932 		       SCSI_SENSE_BUFFERSIZE, IPR_IOADL_FLAGS_READ_LAST);
5933 
5934 	ipr_do_req(ipr_cmd, ipr_erp_done, ipr_timeout,
5935 		   IPR_REQUEST_SENSE_TIMEOUT * 2);
5936 }
5937 
5938 /**
5939  * ipr_erp_cancel_all - Send cancel all to a device
5940  * @ipr_cmd:	ipr command struct
5941  *
5942  * This function sends a cancel all to a device to clear the
5943  * queue. If we are running TCQ on the device, QERR is set to 1,
5944  * which means all outstanding ops have been dropped on the floor.
5945  * Cancel all will return them to us.
5946  *
5947  * Return value:
5948  * 	nothing
5949  **/
ipr_erp_cancel_all(struct ipr_cmnd * ipr_cmd)5950 static void ipr_erp_cancel_all(struct ipr_cmnd *ipr_cmd)
5951 {
5952 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
5953 	struct ipr_resource_entry *res = scsi_cmd->device->hostdata;
5954 	struct ipr_cmd_pkt *cmd_pkt;
5955 
5956 	res->in_erp = 1;
5957 
5958 	ipr_reinit_ipr_cmnd_for_erp(ipr_cmd);
5959 
5960 	if (!scsi_cmd->device->simple_tags) {
5961 		ipr_erp_request_sense(ipr_cmd);
5962 		return;
5963 	}
5964 
5965 	cmd_pkt = &ipr_cmd->ioarcb.cmd_pkt;
5966 	cmd_pkt->request_type = IPR_RQTYPE_IOACMD;
5967 	cmd_pkt->cdb[0] = IPR_CANCEL_ALL_REQUESTS;
5968 
5969 	ipr_do_req(ipr_cmd, ipr_erp_request_sense, ipr_timeout,
5970 		   IPR_CANCEL_ALL_TIMEOUT);
5971 }
5972 
5973 /**
5974  * ipr_dump_ioasa - Dump contents of IOASA
5975  * @ioa_cfg:	ioa config struct
5976  * @ipr_cmd:	ipr command struct
5977  * @res:		resource entry struct
5978  *
5979  * This function is invoked by the interrupt handler when ops
5980  * fail. It will log the IOASA if appropriate. Only called
5981  * for GPDD ops.
5982  *
5983  * Return value:
5984  * 	none
5985  **/
ipr_dump_ioasa(struct ipr_ioa_cfg * ioa_cfg,struct ipr_cmnd * ipr_cmd,struct ipr_resource_entry * res)5986 static void ipr_dump_ioasa(struct ipr_ioa_cfg *ioa_cfg,
5987 			   struct ipr_cmnd *ipr_cmd, struct ipr_resource_entry *res)
5988 {
5989 	int i;
5990 	u16 data_len;
5991 	u32 ioasc, fd_ioasc;
5992 	struct ipr_ioasa *ioasa = &ipr_cmd->s.ioasa;
5993 	__be32 *ioasa_data = (__be32 *)ioasa;
5994 	int error_index;
5995 
5996 	ioasc = be32_to_cpu(ioasa->hdr.ioasc) & IPR_IOASC_IOASC_MASK;
5997 	fd_ioasc = be32_to_cpu(ioasa->hdr.fd_ioasc) & IPR_IOASC_IOASC_MASK;
5998 
5999 	if (0 == ioasc)
6000 		return;
6001 
6002 	if (ioa_cfg->log_level < IPR_DEFAULT_LOG_LEVEL)
6003 		return;
6004 
6005 	if (ioasc == IPR_IOASC_BUS_WAS_RESET && fd_ioasc)
6006 		error_index = ipr_get_error(fd_ioasc);
6007 	else
6008 		error_index = ipr_get_error(ioasc);
6009 
6010 	if (ioa_cfg->log_level < IPR_MAX_LOG_LEVEL) {
6011 		/* Don't log an error if the IOA already logged one */
6012 		if (ioasa->hdr.ilid != 0)
6013 			return;
6014 
6015 		if (!ipr_is_gscsi(res))
6016 			return;
6017 
6018 		if (ipr_error_table[error_index].log_ioasa == 0)
6019 			return;
6020 	}
6021 
6022 	ipr_res_err(ioa_cfg, res, "%s\n", ipr_error_table[error_index].error);
6023 
6024 	data_len = be16_to_cpu(ioasa->hdr.ret_stat_len);
6025 	if (ioa_cfg->sis64 && sizeof(struct ipr_ioasa64) < data_len)
6026 		data_len = sizeof(struct ipr_ioasa64);
6027 	else if (!ioa_cfg->sis64 && sizeof(struct ipr_ioasa) < data_len)
6028 		data_len = sizeof(struct ipr_ioasa);
6029 
6030 	ipr_err("IOASA Dump:\n");
6031 
6032 	for (i = 0; i < data_len / 4; i += 4) {
6033 		ipr_err("%08X: %08X %08X %08X %08X\n", i*4,
6034 			be32_to_cpu(ioasa_data[i]),
6035 			be32_to_cpu(ioasa_data[i+1]),
6036 			be32_to_cpu(ioasa_data[i+2]),
6037 			be32_to_cpu(ioasa_data[i+3]));
6038 	}
6039 }
6040 
6041 /**
6042  * ipr_gen_sense - Generate SCSI sense data from an IOASA
6043  * @ioasa:		IOASA
6044  * @sense_buf:	sense data buffer
6045  *
6046  * Return value:
6047  * 	none
6048  **/
ipr_gen_sense(struct ipr_cmnd * ipr_cmd)6049 static void ipr_gen_sense(struct ipr_cmnd *ipr_cmd)
6050 {
6051 	u32 failing_lba;
6052 	u8 *sense_buf = ipr_cmd->scsi_cmd->sense_buffer;
6053 	struct ipr_resource_entry *res = ipr_cmd->scsi_cmd->device->hostdata;
6054 	struct ipr_ioasa *ioasa = &ipr_cmd->s.ioasa;
6055 	u32 ioasc = be32_to_cpu(ioasa->hdr.ioasc);
6056 
6057 	memset(sense_buf, 0, SCSI_SENSE_BUFFERSIZE);
6058 
6059 	if (ioasc >= IPR_FIRST_DRIVER_IOASC)
6060 		return;
6061 
6062 	ipr_cmd->scsi_cmd->result = SAM_STAT_CHECK_CONDITION;
6063 
6064 	if (ipr_is_vset_device(res) &&
6065 	    ioasc == IPR_IOASC_MED_DO_NOT_REALLOC &&
6066 	    ioasa->u.vset.failing_lba_hi != 0) {
6067 		sense_buf[0] = 0x72;
6068 		sense_buf[1] = IPR_IOASC_SENSE_KEY(ioasc);
6069 		sense_buf[2] = IPR_IOASC_SENSE_CODE(ioasc);
6070 		sense_buf[3] = IPR_IOASC_SENSE_QUAL(ioasc);
6071 
6072 		sense_buf[7] = 12;
6073 		sense_buf[8] = 0;
6074 		sense_buf[9] = 0x0A;
6075 		sense_buf[10] = 0x80;
6076 
6077 		failing_lba = be32_to_cpu(ioasa->u.vset.failing_lba_hi);
6078 
6079 		sense_buf[12] = (failing_lba & 0xff000000) >> 24;
6080 		sense_buf[13] = (failing_lba & 0x00ff0000) >> 16;
6081 		sense_buf[14] = (failing_lba & 0x0000ff00) >> 8;
6082 		sense_buf[15] = failing_lba & 0x000000ff;
6083 
6084 		failing_lba = be32_to_cpu(ioasa->u.vset.failing_lba_lo);
6085 
6086 		sense_buf[16] = (failing_lba & 0xff000000) >> 24;
6087 		sense_buf[17] = (failing_lba & 0x00ff0000) >> 16;
6088 		sense_buf[18] = (failing_lba & 0x0000ff00) >> 8;
6089 		sense_buf[19] = failing_lba & 0x000000ff;
6090 	} else {
6091 		sense_buf[0] = 0x70;
6092 		sense_buf[2] = IPR_IOASC_SENSE_KEY(ioasc);
6093 		sense_buf[12] = IPR_IOASC_SENSE_CODE(ioasc);
6094 		sense_buf[13] = IPR_IOASC_SENSE_QUAL(ioasc);
6095 
6096 		/* Illegal request */
6097 		if ((IPR_IOASC_SENSE_KEY(ioasc) == 0x05) &&
6098 		    (be32_to_cpu(ioasa->hdr.ioasc_specific) & IPR_FIELD_POINTER_VALID)) {
6099 			sense_buf[7] = 10;	/* additional length */
6100 
6101 			/* IOARCB was in error */
6102 			if (IPR_IOASC_SENSE_CODE(ioasc) == 0x24)
6103 				sense_buf[15] = 0xC0;
6104 			else	/* Parameter data was invalid */
6105 				sense_buf[15] = 0x80;
6106 
6107 			sense_buf[16] =
6108 			    ((IPR_FIELD_POINTER_MASK &
6109 			      be32_to_cpu(ioasa->hdr.ioasc_specific)) >> 8) & 0xff;
6110 			sense_buf[17] =
6111 			    (IPR_FIELD_POINTER_MASK &
6112 			     be32_to_cpu(ioasa->hdr.ioasc_specific)) & 0xff;
6113 		} else {
6114 			if (ioasc == IPR_IOASC_MED_DO_NOT_REALLOC) {
6115 				if (ipr_is_vset_device(res))
6116 					failing_lba = be32_to_cpu(ioasa->u.vset.failing_lba_lo);
6117 				else
6118 					failing_lba = be32_to_cpu(ioasa->u.dasd.failing_lba);
6119 
6120 				sense_buf[0] |= 0x80;	/* Or in the Valid bit */
6121 				sense_buf[3] = (failing_lba & 0xff000000) >> 24;
6122 				sense_buf[4] = (failing_lba & 0x00ff0000) >> 16;
6123 				sense_buf[5] = (failing_lba & 0x0000ff00) >> 8;
6124 				sense_buf[6] = failing_lba & 0x000000ff;
6125 			}
6126 
6127 			sense_buf[7] = 6;	/* additional length */
6128 		}
6129 	}
6130 }
6131 
6132 /**
6133  * ipr_get_autosense - Copy autosense data to sense buffer
6134  * @ipr_cmd:	ipr command struct
6135  *
6136  * This function copies the autosense buffer to the buffer
6137  * in the scsi_cmd, if there is autosense available.
6138  *
6139  * Return value:
6140  *	1 if autosense was available / 0 if not
6141  **/
ipr_get_autosense(struct ipr_cmnd * ipr_cmd)6142 static int ipr_get_autosense(struct ipr_cmnd *ipr_cmd)
6143 {
6144 	struct ipr_ioasa *ioasa = &ipr_cmd->s.ioasa;
6145 	struct ipr_ioasa64 *ioasa64 = &ipr_cmd->s.ioasa64;
6146 
6147 	if ((be32_to_cpu(ioasa->hdr.ioasc_specific) & IPR_AUTOSENSE_VALID) == 0)
6148 		return 0;
6149 
6150 	if (ipr_cmd->ioa_cfg->sis64)
6151 		memcpy(ipr_cmd->scsi_cmd->sense_buffer, ioasa64->auto_sense.data,
6152 		       min_t(u16, be16_to_cpu(ioasa64->auto_sense.auto_sense_len),
6153 			   SCSI_SENSE_BUFFERSIZE));
6154 	else
6155 		memcpy(ipr_cmd->scsi_cmd->sense_buffer, ioasa->auto_sense.data,
6156 		       min_t(u16, be16_to_cpu(ioasa->auto_sense.auto_sense_len),
6157 			   SCSI_SENSE_BUFFERSIZE));
6158 	return 1;
6159 }
6160 
6161 /**
6162  * ipr_erp_start - Process an error response for a SCSI op
6163  * @ioa_cfg:	ioa config struct
6164  * @ipr_cmd:	ipr command struct
6165  *
6166  * This function determines whether or not to initiate ERP
6167  * on the affected device.
6168  *
6169  * Return value:
6170  * 	nothing
6171  **/
ipr_erp_start(struct ipr_ioa_cfg * ioa_cfg,struct ipr_cmnd * ipr_cmd)6172 static void ipr_erp_start(struct ipr_ioa_cfg *ioa_cfg,
6173 			      struct ipr_cmnd *ipr_cmd)
6174 {
6175 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
6176 	struct ipr_resource_entry *res = scsi_cmd->device->hostdata;
6177 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
6178 	u32 masked_ioasc = ioasc & IPR_IOASC_IOASC_MASK;
6179 
6180 	if (!res) {
6181 		ipr_scsi_eh_done(ipr_cmd);
6182 		return;
6183 	}
6184 
6185 	if (!ipr_is_gscsi(res) && masked_ioasc != IPR_IOASC_HW_DEV_BUS_STATUS)
6186 		ipr_gen_sense(ipr_cmd);
6187 
6188 	ipr_dump_ioasa(ioa_cfg, ipr_cmd, res);
6189 
6190 	switch (masked_ioasc) {
6191 	case IPR_IOASC_ABORTED_CMD_TERM_BY_HOST:
6192 		if (ipr_is_naca_model(res))
6193 			scsi_cmd->result |= (DID_ABORT << 16);
6194 		else
6195 			scsi_cmd->result |= (DID_IMM_RETRY << 16);
6196 		break;
6197 	case IPR_IOASC_IR_RESOURCE_HANDLE:
6198 	case IPR_IOASC_IR_NO_CMDS_TO_2ND_IOA:
6199 		scsi_cmd->result |= (DID_NO_CONNECT << 16);
6200 		break;
6201 	case IPR_IOASC_HW_SEL_TIMEOUT:
6202 		scsi_cmd->result |= (DID_NO_CONNECT << 16);
6203 		if (!ipr_is_naca_model(res))
6204 			res->needs_sync_complete = 1;
6205 		break;
6206 	case IPR_IOASC_SYNC_REQUIRED:
6207 		if (!res->in_erp)
6208 			res->needs_sync_complete = 1;
6209 		scsi_cmd->result |= (DID_IMM_RETRY << 16);
6210 		break;
6211 	case IPR_IOASC_MED_DO_NOT_REALLOC: /* prevent retries */
6212 	case IPR_IOASA_IR_DUAL_IOA_DISABLED:
6213 		scsi_cmd->result |= (DID_PASSTHROUGH << 16);
6214 		break;
6215 	case IPR_IOASC_BUS_WAS_RESET:
6216 	case IPR_IOASC_BUS_WAS_RESET_BY_OTHER:
6217 		/*
6218 		 * Report the bus reset and ask for a retry. The device
6219 		 * will give CC/UA the next command.
6220 		 */
6221 		if (!res->resetting_device)
6222 			scsi_report_bus_reset(ioa_cfg->host, scsi_cmd->device->channel);
6223 		scsi_cmd->result |= (DID_ERROR << 16);
6224 		if (!ipr_is_naca_model(res))
6225 			res->needs_sync_complete = 1;
6226 		break;
6227 	case IPR_IOASC_HW_DEV_BUS_STATUS:
6228 		scsi_cmd->result |= IPR_IOASC_SENSE_STATUS(ioasc);
6229 		if (IPR_IOASC_SENSE_STATUS(ioasc) == SAM_STAT_CHECK_CONDITION) {
6230 			if (!ipr_get_autosense(ipr_cmd)) {
6231 				if (!ipr_is_naca_model(res)) {
6232 					ipr_erp_cancel_all(ipr_cmd);
6233 					return;
6234 				}
6235 			}
6236 		}
6237 		if (!ipr_is_naca_model(res))
6238 			res->needs_sync_complete = 1;
6239 		break;
6240 	case IPR_IOASC_NR_INIT_CMD_REQUIRED:
6241 		break;
6242 	case IPR_IOASC_IR_NON_OPTIMIZED:
6243 		if (res->raw_mode) {
6244 			res->raw_mode = 0;
6245 			scsi_cmd->result |= (DID_IMM_RETRY << 16);
6246 		} else
6247 			scsi_cmd->result |= (DID_ERROR << 16);
6248 		break;
6249 	default:
6250 		if (IPR_IOASC_SENSE_KEY(ioasc) > RECOVERED_ERROR)
6251 			scsi_cmd->result |= (DID_ERROR << 16);
6252 		if (!ipr_is_vset_device(res) && !ipr_is_naca_model(res))
6253 			res->needs_sync_complete = 1;
6254 		break;
6255 	}
6256 
6257 	scsi_dma_unmap(ipr_cmd->scsi_cmd);
6258 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
6259 	scsi_cmd->scsi_done(scsi_cmd);
6260 }
6261 
6262 /**
6263  * ipr_scsi_done - mid-layer done function
6264  * @ipr_cmd:	ipr command struct
6265  *
6266  * This function is invoked by the interrupt handler for
6267  * ops generated by the SCSI mid-layer
6268  *
6269  * Return value:
6270  * 	none
6271  **/
ipr_scsi_done(struct ipr_cmnd * ipr_cmd)6272 static void ipr_scsi_done(struct ipr_cmnd *ipr_cmd)
6273 {
6274 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
6275 	struct scsi_cmnd *scsi_cmd = ipr_cmd->scsi_cmd;
6276 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
6277 	unsigned long lock_flags;
6278 
6279 	scsi_set_resid(scsi_cmd, be32_to_cpu(ipr_cmd->s.ioasa.hdr.residual_data_len));
6280 
6281 	if (likely(IPR_IOASC_SENSE_KEY(ioasc) == 0)) {
6282 		scsi_dma_unmap(scsi_cmd);
6283 
6284 		spin_lock_irqsave(ipr_cmd->hrrq->lock, lock_flags);
6285 		list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
6286 		scsi_cmd->scsi_done(scsi_cmd);
6287 		spin_unlock_irqrestore(ipr_cmd->hrrq->lock, lock_flags);
6288 	} else {
6289 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
6290 		spin_lock(&ipr_cmd->hrrq->_lock);
6291 		ipr_erp_start(ioa_cfg, ipr_cmd);
6292 		spin_unlock(&ipr_cmd->hrrq->_lock);
6293 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
6294 	}
6295 }
6296 
6297 /**
6298  * ipr_queuecommand - Queue a mid-layer request
6299  * @shost:		scsi host struct
6300  * @scsi_cmd:	scsi command struct
6301  *
6302  * This function queues a request generated by the mid-layer.
6303  *
6304  * Return value:
6305  *	0 on success
6306  *	SCSI_MLQUEUE_DEVICE_BUSY if device is busy
6307  *	SCSI_MLQUEUE_HOST_BUSY if host is busy
6308  **/
ipr_queuecommand(struct Scsi_Host * shost,struct scsi_cmnd * scsi_cmd)6309 static int ipr_queuecommand(struct Scsi_Host *shost,
6310 			    struct scsi_cmnd *scsi_cmd)
6311 {
6312 	struct ipr_ioa_cfg *ioa_cfg;
6313 	struct ipr_resource_entry *res;
6314 	struct ipr_ioarcb *ioarcb;
6315 	struct ipr_cmnd *ipr_cmd;
6316 	unsigned long hrrq_flags, lock_flags;
6317 	int rc;
6318 	struct ipr_hrr_queue *hrrq;
6319 	int hrrq_id;
6320 
6321 	ioa_cfg = (struct ipr_ioa_cfg *)shost->hostdata;
6322 
6323 	scsi_cmd->result = (DID_OK << 16);
6324 	res = scsi_cmd->device->hostdata;
6325 
6326 	if (ipr_is_gata(res) && res->sata_port) {
6327 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
6328 		rc = ata_sas_queuecmd(scsi_cmd, res->sata_port->ap);
6329 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
6330 		return rc;
6331 	}
6332 
6333 	hrrq_id = ipr_get_hrrq_index(ioa_cfg);
6334 	hrrq = &ioa_cfg->hrrq[hrrq_id];
6335 
6336 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
6337 	/*
6338 	 * We are currently blocking all devices due to a host reset
6339 	 * We have told the host to stop giving us new requests, but
6340 	 * ERP ops don't count. FIXME
6341 	 */
6342 	if (unlikely(!hrrq->allow_cmds && !hrrq->ioa_is_dead && !hrrq->removing_ioa)) {
6343 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6344 		return SCSI_MLQUEUE_HOST_BUSY;
6345 	}
6346 
6347 	/*
6348 	 * FIXME - Create scsi_set_host_offline interface
6349 	 *  and the ioa_is_dead check can be removed
6350 	 */
6351 	if (unlikely(hrrq->ioa_is_dead || hrrq->removing_ioa || !res)) {
6352 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6353 		goto err_nodev;
6354 	}
6355 
6356 	ipr_cmd = __ipr_get_free_ipr_cmnd(hrrq);
6357 	if (ipr_cmd == NULL) {
6358 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6359 		return SCSI_MLQUEUE_HOST_BUSY;
6360 	}
6361 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6362 
6363 	ipr_init_ipr_cmnd(ipr_cmd, ipr_scsi_done);
6364 	ioarcb = &ipr_cmd->ioarcb;
6365 
6366 	memcpy(ioarcb->cmd_pkt.cdb, scsi_cmd->cmnd, scsi_cmd->cmd_len);
6367 	ipr_cmd->scsi_cmd = scsi_cmd;
6368 	ipr_cmd->done = ipr_scsi_eh_done;
6369 
6370 	if (ipr_is_gscsi(res)) {
6371 		if (scsi_cmd->underflow == 0)
6372 			ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_NO_ULEN_CHK;
6373 
6374 		if (res->reset_occurred) {
6375 			res->reset_occurred = 0;
6376 			ioarcb->cmd_pkt.flags_lo |= IPR_FLAGS_LO_DELAY_AFTER_RST;
6377 		}
6378 	}
6379 
6380 	if (ipr_is_gscsi(res) || ipr_is_vset_device(res)) {
6381 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_NO_LINK_DESC;
6382 
6383 		ioarcb->cmd_pkt.flags_lo |= IPR_FLAGS_LO_ALIGNED_BFR;
6384 		if (scsi_cmd->flags & SCMD_TAGGED)
6385 			ioarcb->cmd_pkt.flags_lo |= IPR_FLAGS_LO_SIMPLE_TASK;
6386 		else
6387 			ioarcb->cmd_pkt.flags_lo |= IPR_FLAGS_LO_UNTAGGED_TASK;
6388 	}
6389 
6390 	if (scsi_cmd->cmnd[0] >= 0xC0 &&
6391 	    (!ipr_is_gscsi(res) || scsi_cmd->cmnd[0] == IPR_QUERY_RSRC_STATE)) {
6392 		ioarcb->cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
6393 	}
6394 	if (res->raw_mode && ipr_is_af_dasd_device(res)) {
6395 		ioarcb->cmd_pkt.request_type = IPR_RQTYPE_PIPE;
6396 
6397 		if (scsi_cmd->underflow == 0)
6398 			ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_NO_ULEN_CHK;
6399 	}
6400 
6401 	if (ioa_cfg->sis64)
6402 		rc = ipr_build_ioadl64(ioa_cfg, ipr_cmd);
6403 	else
6404 		rc = ipr_build_ioadl(ioa_cfg, ipr_cmd);
6405 
6406 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
6407 	if (unlikely(rc || (!hrrq->allow_cmds && !hrrq->ioa_is_dead))) {
6408 		list_add_tail(&ipr_cmd->queue, &hrrq->hrrq_free_q);
6409 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6410 		if (!rc)
6411 			scsi_dma_unmap(scsi_cmd);
6412 		return SCSI_MLQUEUE_HOST_BUSY;
6413 	}
6414 
6415 	if (unlikely(hrrq->ioa_is_dead)) {
6416 		list_add_tail(&ipr_cmd->queue, &hrrq->hrrq_free_q);
6417 		spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6418 		scsi_dma_unmap(scsi_cmd);
6419 		goto err_nodev;
6420 	}
6421 
6422 	ioarcb->res_handle = res->res_handle;
6423 	if (res->needs_sync_complete) {
6424 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_SYNC_COMPLETE;
6425 		res->needs_sync_complete = 0;
6426 	}
6427 	list_add_tail(&ipr_cmd->queue, &hrrq->hrrq_pending_q);
6428 	ipr_trc_hook(ipr_cmd, IPR_TRACE_START, IPR_GET_RES_PHYS_LOC(res));
6429 	ipr_send_command(ipr_cmd);
6430 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6431 	return 0;
6432 
6433 err_nodev:
6434 	spin_lock_irqsave(hrrq->lock, hrrq_flags);
6435 	memset(scsi_cmd->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
6436 	scsi_cmd->result = (DID_NO_CONNECT << 16);
6437 	scsi_cmd->scsi_done(scsi_cmd);
6438 	spin_unlock_irqrestore(hrrq->lock, hrrq_flags);
6439 	return 0;
6440 }
6441 
6442 /**
6443  * ipr_ioctl - IOCTL handler
6444  * @sdev:	scsi device struct
6445  * @cmd:	IOCTL cmd
6446  * @arg:	IOCTL arg
6447  *
6448  * Return value:
6449  * 	0 on success / other on failure
6450  **/
ipr_ioctl(struct scsi_device * sdev,int cmd,void __user * arg)6451 static int ipr_ioctl(struct scsi_device *sdev, int cmd, void __user *arg)
6452 {
6453 	struct ipr_resource_entry *res;
6454 
6455 	res = (struct ipr_resource_entry *)sdev->hostdata;
6456 	if (res && ipr_is_gata(res)) {
6457 		if (cmd == HDIO_GET_IDENTITY)
6458 			return -ENOTTY;
6459 		return ata_sas_scsi_ioctl(res->sata_port->ap, sdev, cmd, arg);
6460 	}
6461 
6462 	return -EINVAL;
6463 }
6464 
6465 /**
6466  * ipr_info - Get information about the card/driver
6467  * @scsi_host:	scsi host struct
6468  *
6469  * Return value:
6470  * 	pointer to buffer with description string
6471  **/
ipr_ioa_info(struct Scsi_Host * host)6472 static const char *ipr_ioa_info(struct Scsi_Host *host)
6473 {
6474 	static char buffer[512];
6475 	struct ipr_ioa_cfg *ioa_cfg;
6476 	unsigned long lock_flags = 0;
6477 
6478 	ioa_cfg = (struct ipr_ioa_cfg *) host->hostdata;
6479 
6480 	spin_lock_irqsave(host->host_lock, lock_flags);
6481 	sprintf(buffer, "IBM %X Storage Adapter", ioa_cfg->type);
6482 	spin_unlock_irqrestore(host->host_lock, lock_flags);
6483 
6484 	return buffer;
6485 }
6486 
6487 static struct scsi_host_template driver_template = {
6488 	.module = THIS_MODULE,
6489 	.name = "IPR",
6490 	.info = ipr_ioa_info,
6491 	.ioctl = ipr_ioctl,
6492 	.queuecommand = ipr_queuecommand,
6493 	.eh_abort_handler = ipr_eh_abort,
6494 	.eh_device_reset_handler = ipr_eh_dev_reset,
6495 	.eh_host_reset_handler = ipr_eh_host_reset,
6496 	.slave_alloc = ipr_slave_alloc,
6497 	.slave_configure = ipr_slave_configure,
6498 	.slave_destroy = ipr_slave_destroy,
6499 	.scan_finished = ipr_scan_finished,
6500 	.target_alloc = ipr_target_alloc,
6501 	.target_destroy = ipr_target_destroy,
6502 	.change_queue_depth = ipr_change_queue_depth,
6503 	.bios_param = ipr_biosparam,
6504 	.can_queue = IPR_MAX_COMMANDS,
6505 	.this_id = -1,
6506 	.sg_tablesize = IPR_MAX_SGLIST,
6507 	.max_sectors = IPR_IOA_MAX_SECTORS,
6508 	.cmd_per_lun = IPR_MAX_CMD_PER_LUN,
6509 	.use_clustering = ENABLE_CLUSTERING,
6510 	.shost_attrs = ipr_ioa_attrs,
6511 	.sdev_attrs = ipr_dev_attrs,
6512 	.proc_name = IPR_NAME,
6513 };
6514 
6515 /**
6516  * ipr_ata_phy_reset - libata phy_reset handler
6517  * @ap:		ata port to reset
6518  *
6519  **/
ipr_ata_phy_reset(struct ata_port * ap)6520 static void ipr_ata_phy_reset(struct ata_port *ap)
6521 {
6522 	unsigned long flags;
6523 	struct ipr_sata_port *sata_port = ap->private_data;
6524 	struct ipr_resource_entry *res = sata_port->res;
6525 	struct ipr_ioa_cfg *ioa_cfg = sata_port->ioa_cfg;
6526 	int rc;
6527 
6528 	ENTER;
6529 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
6530 	while (ioa_cfg->in_reset_reload) {
6531 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
6532 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
6533 		spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
6534 	}
6535 
6536 	if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].allow_cmds)
6537 		goto out_unlock;
6538 
6539 	rc = ipr_device_reset(ioa_cfg, res);
6540 
6541 	if (rc) {
6542 		ap->link.device[0].class = ATA_DEV_NONE;
6543 		goto out_unlock;
6544 	}
6545 
6546 	ap->link.device[0].class = res->ata_class;
6547 	if (ap->link.device[0].class == ATA_DEV_UNKNOWN)
6548 		ap->link.device[0].class = ATA_DEV_NONE;
6549 
6550 out_unlock:
6551 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
6552 	LEAVE;
6553 }
6554 
6555 /**
6556  * ipr_ata_post_internal - Cleanup after an internal command
6557  * @qc:	ATA queued command
6558  *
6559  * Return value:
6560  * 	none
6561  **/
ipr_ata_post_internal(struct ata_queued_cmd * qc)6562 static void ipr_ata_post_internal(struct ata_queued_cmd *qc)
6563 {
6564 	struct ipr_sata_port *sata_port = qc->ap->private_data;
6565 	struct ipr_ioa_cfg *ioa_cfg = sata_port->ioa_cfg;
6566 	struct ipr_cmnd *ipr_cmd;
6567 	struct ipr_hrr_queue *hrrq;
6568 	unsigned long flags;
6569 
6570 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
6571 	while (ioa_cfg->in_reset_reload) {
6572 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
6573 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
6574 		spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
6575 	}
6576 
6577 	for_each_hrrq(hrrq, ioa_cfg) {
6578 		spin_lock(&hrrq->_lock);
6579 		list_for_each_entry(ipr_cmd, &hrrq->hrrq_pending_q, queue) {
6580 			if (ipr_cmd->qc == qc) {
6581 				ipr_device_reset(ioa_cfg, sata_port->res);
6582 				break;
6583 			}
6584 		}
6585 		spin_unlock(&hrrq->_lock);
6586 	}
6587 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
6588 }
6589 
6590 /**
6591  * ipr_copy_sata_tf - Copy a SATA taskfile to an IOA data structure
6592  * @regs:	destination
6593  * @tf:	source ATA taskfile
6594  *
6595  * Return value:
6596  * 	none
6597  **/
ipr_copy_sata_tf(struct ipr_ioarcb_ata_regs * regs,struct ata_taskfile * tf)6598 static void ipr_copy_sata_tf(struct ipr_ioarcb_ata_regs *regs,
6599 			     struct ata_taskfile *tf)
6600 {
6601 	regs->feature = tf->feature;
6602 	regs->nsect = tf->nsect;
6603 	regs->lbal = tf->lbal;
6604 	regs->lbam = tf->lbam;
6605 	regs->lbah = tf->lbah;
6606 	regs->device = tf->device;
6607 	regs->command = tf->command;
6608 	regs->hob_feature = tf->hob_feature;
6609 	regs->hob_nsect = tf->hob_nsect;
6610 	regs->hob_lbal = tf->hob_lbal;
6611 	regs->hob_lbam = tf->hob_lbam;
6612 	regs->hob_lbah = tf->hob_lbah;
6613 	regs->ctl = tf->ctl;
6614 }
6615 
6616 /**
6617  * ipr_sata_done - done function for SATA commands
6618  * @ipr_cmd:	ipr command struct
6619  *
6620  * This function is invoked by the interrupt handler for
6621  * ops generated by the SCSI mid-layer to SATA devices
6622  *
6623  * Return value:
6624  * 	none
6625  **/
ipr_sata_done(struct ipr_cmnd * ipr_cmd)6626 static void ipr_sata_done(struct ipr_cmnd *ipr_cmd)
6627 {
6628 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
6629 	struct ata_queued_cmd *qc = ipr_cmd->qc;
6630 	struct ipr_sata_port *sata_port = qc->ap->private_data;
6631 	struct ipr_resource_entry *res = sata_port->res;
6632 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
6633 
6634 	spin_lock(&ipr_cmd->hrrq->_lock);
6635 	if (ipr_cmd->ioa_cfg->sis64)
6636 		memcpy(&sata_port->ioasa, &ipr_cmd->s.ioasa64.u.gata,
6637 		       sizeof(struct ipr_ioasa_gata));
6638 	else
6639 		memcpy(&sata_port->ioasa, &ipr_cmd->s.ioasa.u.gata,
6640 		       sizeof(struct ipr_ioasa_gata));
6641 	ipr_dump_ioasa(ioa_cfg, ipr_cmd, res);
6642 
6643 	if (be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc_specific) & IPR_ATA_DEVICE_WAS_RESET)
6644 		scsi_report_device_reset(ioa_cfg->host, res->bus, res->target);
6645 
6646 	if (IPR_IOASC_SENSE_KEY(ioasc) > RECOVERED_ERROR)
6647 		qc->err_mask |= __ac_err_mask(sata_port->ioasa.status);
6648 	else
6649 		qc->err_mask |= ac_err_mask(sata_port->ioasa.status);
6650 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
6651 	spin_unlock(&ipr_cmd->hrrq->_lock);
6652 	ata_qc_complete(qc);
6653 }
6654 
6655 /**
6656  * ipr_build_ata_ioadl64 - Build an ATA scatter/gather list
6657  * @ipr_cmd:	ipr command struct
6658  * @qc:		ATA queued command
6659  *
6660  **/
ipr_build_ata_ioadl64(struct ipr_cmnd * ipr_cmd,struct ata_queued_cmd * qc)6661 static void ipr_build_ata_ioadl64(struct ipr_cmnd *ipr_cmd,
6662 				  struct ata_queued_cmd *qc)
6663 {
6664 	u32 ioadl_flags = 0;
6665 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
6666 	struct ipr_ioadl64_desc *ioadl64 = ipr_cmd->i.ata_ioadl.ioadl64;
6667 	struct ipr_ioadl64_desc *last_ioadl64 = NULL;
6668 	int len = qc->nbytes;
6669 	struct scatterlist *sg;
6670 	unsigned int si;
6671 	dma_addr_t dma_addr = ipr_cmd->dma_addr;
6672 
6673 	if (len == 0)
6674 		return;
6675 
6676 	if (qc->dma_dir == DMA_TO_DEVICE) {
6677 		ioadl_flags = IPR_IOADL_FLAGS_WRITE;
6678 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
6679 	} else if (qc->dma_dir == DMA_FROM_DEVICE)
6680 		ioadl_flags = IPR_IOADL_FLAGS_READ;
6681 
6682 	ioarcb->data_transfer_length = cpu_to_be32(len);
6683 	ioarcb->ioadl_len =
6684 		cpu_to_be32(sizeof(struct ipr_ioadl64_desc) * ipr_cmd->dma_use_sg);
6685 	ioarcb->u.sis64_addr_data.data_ioadl_addr =
6686 		cpu_to_be64(dma_addr + offsetof(struct ipr_cmnd, i.ata_ioadl.ioadl64));
6687 
6688 	for_each_sg(qc->sg, sg, qc->n_elem, si) {
6689 		ioadl64->flags = cpu_to_be32(ioadl_flags);
6690 		ioadl64->data_len = cpu_to_be32(sg_dma_len(sg));
6691 		ioadl64->address = cpu_to_be64(sg_dma_address(sg));
6692 
6693 		last_ioadl64 = ioadl64;
6694 		ioadl64++;
6695 	}
6696 
6697 	if (likely(last_ioadl64))
6698 		last_ioadl64->flags |= cpu_to_be32(IPR_IOADL_FLAGS_LAST);
6699 }
6700 
6701 /**
6702  * ipr_build_ata_ioadl - Build an ATA scatter/gather list
6703  * @ipr_cmd:	ipr command struct
6704  * @qc:		ATA queued command
6705  *
6706  **/
ipr_build_ata_ioadl(struct ipr_cmnd * ipr_cmd,struct ata_queued_cmd * qc)6707 static void ipr_build_ata_ioadl(struct ipr_cmnd *ipr_cmd,
6708 				struct ata_queued_cmd *qc)
6709 {
6710 	u32 ioadl_flags = 0;
6711 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
6712 	struct ipr_ioadl_desc *ioadl = ipr_cmd->i.ioadl;
6713 	struct ipr_ioadl_desc *last_ioadl = NULL;
6714 	int len = qc->nbytes;
6715 	struct scatterlist *sg;
6716 	unsigned int si;
6717 
6718 	if (len == 0)
6719 		return;
6720 
6721 	if (qc->dma_dir == DMA_TO_DEVICE) {
6722 		ioadl_flags = IPR_IOADL_FLAGS_WRITE;
6723 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
6724 		ioarcb->data_transfer_length = cpu_to_be32(len);
6725 		ioarcb->ioadl_len =
6726 			cpu_to_be32(sizeof(struct ipr_ioadl_desc) * ipr_cmd->dma_use_sg);
6727 	} else if (qc->dma_dir == DMA_FROM_DEVICE) {
6728 		ioadl_flags = IPR_IOADL_FLAGS_READ;
6729 		ioarcb->read_data_transfer_length = cpu_to_be32(len);
6730 		ioarcb->read_ioadl_len =
6731 			cpu_to_be32(sizeof(struct ipr_ioadl_desc) * ipr_cmd->dma_use_sg);
6732 	}
6733 
6734 	for_each_sg(qc->sg, sg, qc->n_elem, si) {
6735 		ioadl->flags_and_data_len = cpu_to_be32(ioadl_flags | sg_dma_len(sg));
6736 		ioadl->address = cpu_to_be32(sg_dma_address(sg));
6737 
6738 		last_ioadl = ioadl;
6739 		ioadl++;
6740 	}
6741 
6742 	if (likely(last_ioadl))
6743 		last_ioadl->flags_and_data_len |= cpu_to_be32(IPR_IOADL_FLAGS_LAST);
6744 }
6745 
6746 /**
6747  * ipr_qc_defer - Get a free ipr_cmd
6748  * @qc:	queued command
6749  *
6750  * Return value:
6751  *	0 if success
6752  **/
ipr_qc_defer(struct ata_queued_cmd * qc)6753 static int ipr_qc_defer(struct ata_queued_cmd *qc)
6754 {
6755 	struct ata_port *ap = qc->ap;
6756 	struct ipr_sata_port *sata_port = ap->private_data;
6757 	struct ipr_ioa_cfg *ioa_cfg = sata_port->ioa_cfg;
6758 	struct ipr_cmnd *ipr_cmd;
6759 	struct ipr_hrr_queue *hrrq;
6760 	int hrrq_id;
6761 
6762 	hrrq_id = ipr_get_hrrq_index(ioa_cfg);
6763 	hrrq = &ioa_cfg->hrrq[hrrq_id];
6764 
6765 	qc->lldd_task = NULL;
6766 	spin_lock(&hrrq->_lock);
6767 	if (unlikely(hrrq->ioa_is_dead)) {
6768 		spin_unlock(&hrrq->_lock);
6769 		return 0;
6770 	}
6771 
6772 	if (unlikely(!hrrq->allow_cmds)) {
6773 		spin_unlock(&hrrq->_lock);
6774 		return ATA_DEFER_LINK;
6775 	}
6776 
6777 	ipr_cmd = __ipr_get_free_ipr_cmnd(hrrq);
6778 	if (ipr_cmd == NULL) {
6779 		spin_unlock(&hrrq->_lock);
6780 		return ATA_DEFER_LINK;
6781 	}
6782 
6783 	qc->lldd_task = ipr_cmd;
6784 	spin_unlock(&hrrq->_lock);
6785 	return 0;
6786 }
6787 
6788 /**
6789  * ipr_qc_issue - Issue a SATA qc to a device
6790  * @qc:	queued command
6791  *
6792  * Return value:
6793  * 	0 if success
6794  **/
ipr_qc_issue(struct ata_queued_cmd * qc)6795 static unsigned int ipr_qc_issue(struct ata_queued_cmd *qc)
6796 {
6797 	struct ata_port *ap = qc->ap;
6798 	struct ipr_sata_port *sata_port = ap->private_data;
6799 	struct ipr_resource_entry *res = sata_port->res;
6800 	struct ipr_ioa_cfg *ioa_cfg = sata_port->ioa_cfg;
6801 	struct ipr_cmnd *ipr_cmd;
6802 	struct ipr_ioarcb *ioarcb;
6803 	struct ipr_ioarcb_ata_regs *regs;
6804 
6805 	if (qc->lldd_task == NULL)
6806 		ipr_qc_defer(qc);
6807 
6808 	ipr_cmd = qc->lldd_task;
6809 	if (ipr_cmd == NULL)
6810 		return AC_ERR_SYSTEM;
6811 
6812 	qc->lldd_task = NULL;
6813 	spin_lock(&ipr_cmd->hrrq->_lock);
6814 	if (unlikely(!ipr_cmd->hrrq->allow_cmds ||
6815 			ipr_cmd->hrrq->ioa_is_dead)) {
6816 		list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
6817 		spin_unlock(&ipr_cmd->hrrq->_lock);
6818 		return AC_ERR_SYSTEM;
6819 	}
6820 
6821 	ipr_init_ipr_cmnd(ipr_cmd, ipr_lock_and_done);
6822 	ioarcb = &ipr_cmd->ioarcb;
6823 
6824 	if (ioa_cfg->sis64) {
6825 		regs = &ipr_cmd->i.ata_ioadl.regs;
6826 		ioarcb->add_cmd_parms_offset = cpu_to_be16(sizeof(*ioarcb));
6827 	} else
6828 		regs = &ioarcb->u.add_data.u.regs;
6829 
6830 	memset(regs, 0, sizeof(*regs));
6831 	ioarcb->add_cmd_parms_len = cpu_to_be16(sizeof(*regs));
6832 
6833 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
6834 	ipr_cmd->qc = qc;
6835 	ipr_cmd->done = ipr_sata_done;
6836 	ipr_cmd->ioarcb.res_handle = res->res_handle;
6837 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_ATA_PASSTHRU;
6838 	ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_NO_LINK_DESC;
6839 	ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_NO_ULEN_CHK;
6840 	ipr_cmd->dma_use_sg = qc->n_elem;
6841 
6842 	if (ioa_cfg->sis64)
6843 		ipr_build_ata_ioadl64(ipr_cmd, qc);
6844 	else
6845 		ipr_build_ata_ioadl(ipr_cmd, qc);
6846 
6847 	regs->flags |= IPR_ATA_FLAG_STATUS_ON_GOOD_COMPLETION;
6848 	ipr_copy_sata_tf(regs, &qc->tf);
6849 	memcpy(ioarcb->cmd_pkt.cdb, qc->cdb, IPR_MAX_CDB_LEN);
6850 	ipr_trc_hook(ipr_cmd, IPR_TRACE_START, IPR_GET_RES_PHYS_LOC(res));
6851 
6852 	switch (qc->tf.protocol) {
6853 	case ATA_PROT_NODATA:
6854 	case ATA_PROT_PIO:
6855 		break;
6856 
6857 	case ATA_PROT_DMA:
6858 		regs->flags |= IPR_ATA_FLAG_XFER_TYPE_DMA;
6859 		break;
6860 
6861 	case ATAPI_PROT_PIO:
6862 	case ATAPI_PROT_NODATA:
6863 		regs->flags |= IPR_ATA_FLAG_PACKET_CMD;
6864 		break;
6865 
6866 	case ATAPI_PROT_DMA:
6867 		regs->flags |= IPR_ATA_FLAG_PACKET_CMD;
6868 		regs->flags |= IPR_ATA_FLAG_XFER_TYPE_DMA;
6869 		break;
6870 
6871 	default:
6872 		WARN_ON(1);
6873 		spin_unlock(&ipr_cmd->hrrq->_lock);
6874 		return AC_ERR_INVALID;
6875 	}
6876 
6877 	ipr_send_command(ipr_cmd);
6878 	spin_unlock(&ipr_cmd->hrrq->_lock);
6879 
6880 	return 0;
6881 }
6882 
6883 /**
6884  * ipr_qc_fill_rtf - Read result TF
6885  * @qc: ATA queued command
6886  *
6887  * Return value:
6888  * 	true
6889  **/
ipr_qc_fill_rtf(struct ata_queued_cmd * qc)6890 static bool ipr_qc_fill_rtf(struct ata_queued_cmd *qc)
6891 {
6892 	struct ipr_sata_port *sata_port = qc->ap->private_data;
6893 	struct ipr_ioasa_gata *g = &sata_port->ioasa;
6894 	struct ata_taskfile *tf = &qc->result_tf;
6895 
6896 	tf->feature = g->error;
6897 	tf->nsect = g->nsect;
6898 	tf->lbal = g->lbal;
6899 	tf->lbam = g->lbam;
6900 	tf->lbah = g->lbah;
6901 	tf->device = g->device;
6902 	tf->command = g->status;
6903 	tf->hob_nsect = g->hob_nsect;
6904 	tf->hob_lbal = g->hob_lbal;
6905 	tf->hob_lbam = g->hob_lbam;
6906 	tf->hob_lbah = g->hob_lbah;
6907 
6908 	return true;
6909 }
6910 
6911 static struct ata_port_operations ipr_sata_ops = {
6912 	.phy_reset = ipr_ata_phy_reset,
6913 	.hardreset = ipr_sata_reset,
6914 	.post_internal_cmd = ipr_ata_post_internal,
6915 	.qc_prep = ata_noop_qc_prep,
6916 	.qc_defer = ipr_qc_defer,
6917 	.qc_issue = ipr_qc_issue,
6918 	.qc_fill_rtf = ipr_qc_fill_rtf,
6919 	.port_start = ata_sas_port_start,
6920 	.port_stop = ata_sas_port_stop
6921 };
6922 
6923 static struct ata_port_info sata_port_info = {
6924 	.flags		= ATA_FLAG_SATA | ATA_FLAG_PIO_DMA |
6925 			  ATA_FLAG_SAS_HOST,
6926 	.pio_mask	= ATA_PIO4_ONLY,
6927 	.mwdma_mask	= ATA_MWDMA2,
6928 	.udma_mask	= ATA_UDMA6,
6929 	.port_ops	= &ipr_sata_ops
6930 };
6931 
6932 #ifdef CONFIG_PPC_PSERIES
6933 static const u16 ipr_blocked_processors[] = {
6934 	PVR_NORTHSTAR,
6935 	PVR_PULSAR,
6936 	PVR_POWER4,
6937 	PVR_ICESTAR,
6938 	PVR_SSTAR,
6939 	PVR_POWER4p,
6940 	PVR_630,
6941 	PVR_630p
6942 };
6943 
6944 /**
6945  * ipr_invalid_adapter - Determine if this adapter is supported on this hardware
6946  * @ioa_cfg:	ioa cfg struct
6947  *
6948  * Adapters that use Gemstone revision < 3.1 do not work reliably on
6949  * certain pSeries hardware. This function determines if the given
6950  * adapter is in one of these confgurations or not.
6951  *
6952  * Return value:
6953  * 	1 if adapter is not supported / 0 if adapter is supported
6954  **/
ipr_invalid_adapter(struct ipr_ioa_cfg * ioa_cfg)6955 static int ipr_invalid_adapter(struct ipr_ioa_cfg *ioa_cfg)
6956 {
6957 	int i;
6958 
6959 	if ((ioa_cfg->type == 0x5702) && (ioa_cfg->pdev->revision < 4)) {
6960 		for (i = 0; i < ARRAY_SIZE(ipr_blocked_processors); i++) {
6961 			if (pvr_version_is(ipr_blocked_processors[i]))
6962 				return 1;
6963 		}
6964 	}
6965 	return 0;
6966 }
6967 #else
6968 #define ipr_invalid_adapter(ioa_cfg) 0
6969 #endif
6970 
6971 /**
6972  * ipr_ioa_bringdown_done - IOA bring down completion.
6973  * @ipr_cmd:	ipr command struct
6974  *
6975  * This function processes the completion of an adapter bring down.
6976  * It wakes any reset sleepers.
6977  *
6978  * Return value:
6979  * 	IPR_RC_JOB_RETURN
6980  **/
ipr_ioa_bringdown_done(struct ipr_cmnd * ipr_cmd)6981 static int ipr_ioa_bringdown_done(struct ipr_cmnd *ipr_cmd)
6982 {
6983 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
6984 	int i;
6985 
6986 	ENTER;
6987 	if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].removing_ioa) {
6988 		ipr_trace;
6989 		spin_unlock_irq(ioa_cfg->host->host_lock);
6990 		scsi_unblock_requests(ioa_cfg->host);
6991 		spin_lock_irq(ioa_cfg->host->host_lock);
6992 	}
6993 
6994 	ioa_cfg->in_reset_reload = 0;
6995 	ioa_cfg->reset_retries = 0;
6996 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
6997 		spin_lock(&ioa_cfg->hrrq[i]._lock);
6998 		ioa_cfg->hrrq[i].ioa_is_dead = 1;
6999 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
7000 	}
7001 	wmb();
7002 
7003 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
7004 	wake_up_all(&ioa_cfg->reset_wait_q);
7005 	LEAVE;
7006 
7007 	return IPR_RC_JOB_RETURN;
7008 }
7009 
7010 /**
7011  * ipr_ioa_reset_done - IOA reset completion.
7012  * @ipr_cmd:	ipr command struct
7013  *
7014  * This function processes the completion of an adapter reset.
7015  * It schedules any necessary mid-layer add/removes and
7016  * wakes any reset sleepers.
7017  *
7018  * Return value:
7019  * 	IPR_RC_JOB_RETURN
7020  **/
ipr_ioa_reset_done(struct ipr_cmnd * ipr_cmd)7021 static int ipr_ioa_reset_done(struct ipr_cmnd *ipr_cmd)
7022 {
7023 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7024 	struct ipr_resource_entry *res;
7025 	struct ipr_hostrcb *hostrcb, *temp;
7026 	int i = 0, j;
7027 
7028 	ENTER;
7029 	ioa_cfg->in_reset_reload = 0;
7030 	for (j = 0; j < ioa_cfg->hrrq_num; j++) {
7031 		spin_lock(&ioa_cfg->hrrq[j]._lock);
7032 		ioa_cfg->hrrq[j].allow_cmds = 1;
7033 		spin_unlock(&ioa_cfg->hrrq[j]._lock);
7034 	}
7035 	wmb();
7036 	ioa_cfg->reset_cmd = NULL;
7037 	ioa_cfg->doorbell |= IPR_RUNTIME_RESET;
7038 
7039 	list_for_each_entry(res, &ioa_cfg->used_res_q, queue) {
7040 		if (res->add_to_ml || res->del_from_ml) {
7041 			ipr_trace;
7042 			break;
7043 		}
7044 	}
7045 	schedule_work(&ioa_cfg->work_q);
7046 
7047 	list_for_each_entry_safe(hostrcb, temp, &ioa_cfg->hostrcb_free_q, queue) {
7048 		list_del(&hostrcb->queue);
7049 		if (i++ < IPR_NUM_LOG_HCAMS)
7050 			ipr_send_hcam(ioa_cfg, IPR_HCAM_CDB_OP_CODE_LOG_DATA, hostrcb);
7051 		else
7052 			ipr_send_hcam(ioa_cfg, IPR_HCAM_CDB_OP_CODE_CONFIG_CHANGE, hostrcb);
7053 	}
7054 
7055 	scsi_report_bus_reset(ioa_cfg->host, IPR_VSET_BUS);
7056 	dev_info(&ioa_cfg->pdev->dev, "IOA initialized.\n");
7057 
7058 	ioa_cfg->reset_retries = 0;
7059 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
7060 	wake_up_all(&ioa_cfg->reset_wait_q);
7061 
7062 	spin_unlock(ioa_cfg->host->host_lock);
7063 	scsi_unblock_requests(ioa_cfg->host);
7064 	spin_lock(ioa_cfg->host->host_lock);
7065 
7066 	if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].allow_cmds)
7067 		scsi_block_requests(ioa_cfg->host);
7068 
7069 	schedule_work(&ioa_cfg->work_q);
7070 	LEAVE;
7071 	return IPR_RC_JOB_RETURN;
7072 }
7073 
7074 /**
7075  * ipr_set_sup_dev_dflt - Initialize a Set Supported Device buffer
7076  * @supported_dev:	supported device struct
7077  * @vpids:			vendor product id struct
7078  *
7079  * Return value:
7080  * 	none
7081  **/
ipr_set_sup_dev_dflt(struct ipr_supported_device * supported_dev,struct ipr_std_inq_vpids * vpids)7082 static void ipr_set_sup_dev_dflt(struct ipr_supported_device *supported_dev,
7083 				 struct ipr_std_inq_vpids *vpids)
7084 {
7085 	memset(supported_dev, 0, sizeof(struct ipr_supported_device));
7086 	memcpy(&supported_dev->vpids, vpids, sizeof(struct ipr_std_inq_vpids));
7087 	supported_dev->num_records = 1;
7088 	supported_dev->data_length =
7089 		cpu_to_be16(sizeof(struct ipr_supported_device));
7090 	supported_dev->reserved = 0;
7091 }
7092 
7093 /**
7094  * ipr_set_supported_devs - Send Set Supported Devices for a device
7095  * @ipr_cmd:	ipr command struct
7096  *
7097  * This function sends a Set Supported Devices to the adapter
7098  *
7099  * Return value:
7100  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7101  **/
ipr_set_supported_devs(struct ipr_cmnd * ipr_cmd)7102 static int ipr_set_supported_devs(struct ipr_cmnd *ipr_cmd)
7103 {
7104 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7105 	struct ipr_supported_device *supp_dev = &ioa_cfg->vpd_cbs->supp_dev;
7106 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7107 	struct ipr_resource_entry *res = ipr_cmd->u.res;
7108 
7109 	ipr_cmd->job_step = ipr_ioa_reset_done;
7110 
7111 	list_for_each_entry_continue(res, &ioa_cfg->used_res_q, queue) {
7112 		if (!ipr_is_scsi_disk(res))
7113 			continue;
7114 
7115 		ipr_cmd->u.res = res;
7116 		ipr_set_sup_dev_dflt(supp_dev, &res->std_inq_data.vpids);
7117 
7118 		ioarcb->res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
7119 		ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
7120 		ioarcb->cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
7121 
7122 		ioarcb->cmd_pkt.cdb[0] = IPR_SET_SUPPORTED_DEVICES;
7123 		ioarcb->cmd_pkt.cdb[1] = IPR_SET_ALL_SUPPORTED_DEVICES;
7124 		ioarcb->cmd_pkt.cdb[7] = (sizeof(struct ipr_supported_device) >> 8) & 0xff;
7125 		ioarcb->cmd_pkt.cdb[8] = sizeof(struct ipr_supported_device) & 0xff;
7126 
7127 		ipr_init_ioadl(ipr_cmd,
7128 			       ioa_cfg->vpd_cbs_dma +
7129 				 offsetof(struct ipr_misc_cbs, supp_dev),
7130 			       sizeof(struct ipr_supported_device),
7131 			       IPR_IOADL_FLAGS_WRITE_LAST);
7132 
7133 		ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout,
7134 			   IPR_SET_SUP_DEVICE_TIMEOUT);
7135 
7136 		if (!ioa_cfg->sis64)
7137 			ipr_cmd->job_step = ipr_set_supported_devs;
7138 		LEAVE;
7139 		return IPR_RC_JOB_RETURN;
7140 	}
7141 
7142 	LEAVE;
7143 	return IPR_RC_JOB_CONTINUE;
7144 }
7145 
7146 /**
7147  * ipr_get_mode_page - Locate specified mode page
7148  * @mode_pages:	mode page buffer
7149  * @page_code:	page code to find
7150  * @len:		minimum required length for mode page
7151  *
7152  * Return value:
7153  * 	pointer to mode page / NULL on failure
7154  **/
ipr_get_mode_page(struct ipr_mode_pages * mode_pages,u32 page_code,u32 len)7155 static void *ipr_get_mode_page(struct ipr_mode_pages *mode_pages,
7156 			       u32 page_code, u32 len)
7157 {
7158 	struct ipr_mode_page_hdr *mode_hdr;
7159 	u32 page_length;
7160 	u32 length;
7161 
7162 	if (!mode_pages || (mode_pages->hdr.length == 0))
7163 		return NULL;
7164 
7165 	length = (mode_pages->hdr.length + 1) - 4 - mode_pages->hdr.block_desc_len;
7166 	mode_hdr = (struct ipr_mode_page_hdr *)
7167 		(mode_pages->data + mode_pages->hdr.block_desc_len);
7168 
7169 	while (length) {
7170 		if (IPR_GET_MODE_PAGE_CODE(mode_hdr) == page_code) {
7171 			if (mode_hdr->page_length >= (len - sizeof(struct ipr_mode_page_hdr)))
7172 				return mode_hdr;
7173 			break;
7174 		} else {
7175 			page_length = (sizeof(struct ipr_mode_page_hdr) +
7176 				       mode_hdr->page_length);
7177 			length -= page_length;
7178 			mode_hdr = (struct ipr_mode_page_hdr *)
7179 				((unsigned long)mode_hdr + page_length);
7180 		}
7181 	}
7182 	return NULL;
7183 }
7184 
7185 /**
7186  * ipr_check_term_power - Check for term power errors
7187  * @ioa_cfg:	ioa config struct
7188  * @mode_pages:	IOAFP mode pages buffer
7189  *
7190  * Check the IOAFP's mode page 28 for term power errors
7191  *
7192  * Return value:
7193  * 	nothing
7194  **/
ipr_check_term_power(struct ipr_ioa_cfg * ioa_cfg,struct ipr_mode_pages * mode_pages)7195 static void ipr_check_term_power(struct ipr_ioa_cfg *ioa_cfg,
7196 				 struct ipr_mode_pages *mode_pages)
7197 {
7198 	int i;
7199 	int entry_length;
7200 	struct ipr_dev_bus_entry *bus;
7201 	struct ipr_mode_page28 *mode_page;
7202 
7203 	mode_page = ipr_get_mode_page(mode_pages, 0x28,
7204 				      sizeof(struct ipr_mode_page28));
7205 
7206 	entry_length = mode_page->entry_length;
7207 
7208 	bus = mode_page->bus;
7209 
7210 	for (i = 0; i < mode_page->num_entries; i++) {
7211 		if (bus->flags & IPR_SCSI_ATTR_NO_TERM_PWR) {
7212 			dev_err(&ioa_cfg->pdev->dev,
7213 				"Term power is absent on scsi bus %d\n",
7214 				bus->res_addr.bus);
7215 		}
7216 
7217 		bus = (struct ipr_dev_bus_entry *)((char *)bus + entry_length);
7218 	}
7219 }
7220 
7221 /**
7222  * ipr_scsi_bus_speed_limit - Limit the SCSI speed based on SES table
7223  * @ioa_cfg:	ioa config struct
7224  *
7225  * Looks through the config table checking for SES devices. If
7226  * the SES device is in the SES table indicating a maximum SCSI
7227  * bus speed, the speed is limited for the bus.
7228  *
7229  * Return value:
7230  * 	none
7231  **/
ipr_scsi_bus_speed_limit(struct ipr_ioa_cfg * ioa_cfg)7232 static void ipr_scsi_bus_speed_limit(struct ipr_ioa_cfg *ioa_cfg)
7233 {
7234 	u32 max_xfer_rate;
7235 	int i;
7236 
7237 	for (i = 0; i < IPR_MAX_NUM_BUSES; i++) {
7238 		max_xfer_rate = ipr_get_max_scsi_speed(ioa_cfg, i,
7239 						       ioa_cfg->bus_attr[i].bus_width);
7240 
7241 		if (max_xfer_rate < ioa_cfg->bus_attr[i].max_xfer_rate)
7242 			ioa_cfg->bus_attr[i].max_xfer_rate = max_xfer_rate;
7243 	}
7244 }
7245 
7246 /**
7247  * ipr_modify_ioafp_mode_page_28 - Modify IOAFP Mode Page 28
7248  * @ioa_cfg:	ioa config struct
7249  * @mode_pages:	mode page 28 buffer
7250  *
7251  * Updates mode page 28 based on driver configuration
7252  *
7253  * Return value:
7254  * 	none
7255  **/
ipr_modify_ioafp_mode_page_28(struct ipr_ioa_cfg * ioa_cfg,struct ipr_mode_pages * mode_pages)7256 static void ipr_modify_ioafp_mode_page_28(struct ipr_ioa_cfg *ioa_cfg,
7257 					  struct ipr_mode_pages *mode_pages)
7258 {
7259 	int i, entry_length;
7260 	struct ipr_dev_bus_entry *bus;
7261 	struct ipr_bus_attributes *bus_attr;
7262 	struct ipr_mode_page28 *mode_page;
7263 
7264 	mode_page = ipr_get_mode_page(mode_pages, 0x28,
7265 				      sizeof(struct ipr_mode_page28));
7266 
7267 	entry_length = mode_page->entry_length;
7268 
7269 	/* Loop for each device bus entry */
7270 	for (i = 0, bus = mode_page->bus;
7271 	     i < mode_page->num_entries;
7272 	     i++, bus = (struct ipr_dev_bus_entry *)((u8 *)bus + entry_length)) {
7273 		if (bus->res_addr.bus > IPR_MAX_NUM_BUSES) {
7274 			dev_err(&ioa_cfg->pdev->dev,
7275 				"Invalid resource address reported: 0x%08X\n",
7276 				IPR_GET_PHYS_LOC(bus->res_addr));
7277 			continue;
7278 		}
7279 
7280 		bus_attr = &ioa_cfg->bus_attr[i];
7281 		bus->extended_reset_delay = IPR_EXTENDED_RESET_DELAY;
7282 		bus->bus_width = bus_attr->bus_width;
7283 		bus->max_xfer_rate = cpu_to_be32(bus_attr->max_xfer_rate);
7284 		bus->flags &= ~IPR_SCSI_ATTR_QAS_MASK;
7285 		if (bus_attr->qas_enabled)
7286 			bus->flags |= IPR_SCSI_ATTR_ENABLE_QAS;
7287 		else
7288 			bus->flags |= IPR_SCSI_ATTR_DISABLE_QAS;
7289 	}
7290 }
7291 
7292 /**
7293  * ipr_build_mode_select - Build a mode select command
7294  * @ipr_cmd:	ipr command struct
7295  * @res_handle:	resource handle to send command to
7296  * @parm:		Byte 2 of Mode Sense command
7297  * @dma_addr:	DMA buffer address
7298  * @xfer_len:	data transfer length
7299  *
7300  * Return value:
7301  * 	none
7302  **/
ipr_build_mode_select(struct ipr_cmnd * ipr_cmd,__be32 res_handle,u8 parm,dma_addr_t dma_addr,u8 xfer_len)7303 static void ipr_build_mode_select(struct ipr_cmnd *ipr_cmd,
7304 				  __be32 res_handle, u8 parm,
7305 				  dma_addr_t dma_addr, u8 xfer_len)
7306 {
7307 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7308 
7309 	ioarcb->res_handle = res_handle;
7310 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_SCSICDB;
7311 	ioarcb->cmd_pkt.flags_hi |= IPR_FLAGS_HI_WRITE_NOT_READ;
7312 	ioarcb->cmd_pkt.cdb[0] = MODE_SELECT;
7313 	ioarcb->cmd_pkt.cdb[1] = parm;
7314 	ioarcb->cmd_pkt.cdb[4] = xfer_len;
7315 
7316 	ipr_init_ioadl(ipr_cmd, dma_addr, xfer_len, IPR_IOADL_FLAGS_WRITE_LAST);
7317 }
7318 
7319 /**
7320  * ipr_ioafp_mode_select_page28 - Issue Mode Select Page 28 to IOA
7321  * @ipr_cmd:	ipr command struct
7322  *
7323  * This function sets up the SCSI bus attributes and sends
7324  * a Mode Select for Page 28 to activate them.
7325  *
7326  * Return value:
7327  * 	IPR_RC_JOB_RETURN
7328  **/
ipr_ioafp_mode_select_page28(struct ipr_cmnd * ipr_cmd)7329 static int ipr_ioafp_mode_select_page28(struct ipr_cmnd *ipr_cmd)
7330 {
7331 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7332 	struct ipr_mode_pages *mode_pages = &ioa_cfg->vpd_cbs->mode_pages;
7333 	int length;
7334 
7335 	ENTER;
7336 	ipr_scsi_bus_speed_limit(ioa_cfg);
7337 	ipr_check_term_power(ioa_cfg, mode_pages);
7338 	ipr_modify_ioafp_mode_page_28(ioa_cfg, mode_pages);
7339 	length = mode_pages->hdr.length + 1;
7340 	mode_pages->hdr.length = 0;
7341 
7342 	ipr_build_mode_select(ipr_cmd, cpu_to_be32(IPR_IOA_RES_HANDLE), 0x11,
7343 			      ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, mode_pages),
7344 			      length);
7345 
7346 	ipr_cmd->job_step = ipr_set_supported_devs;
7347 	ipr_cmd->u.res = list_entry(ioa_cfg->used_res_q.next,
7348 				    struct ipr_resource_entry, queue);
7349 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7350 
7351 	LEAVE;
7352 	return IPR_RC_JOB_RETURN;
7353 }
7354 
7355 /**
7356  * ipr_build_mode_sense - Builds a mode sense command
7357  * @ipr_cmd:	ipr command struct
7358  * @res:		resource entry struct
7359  * @parm:		Byte 2 of mode sense command
7360  * @dma_addr:	DMA address of mode sense buffer
7361  * @xfer_len:	Size of DMA buffer
7362  *
7363  * Return value:
7364  * 	none
7365  **/
ipr_build_mode_sense(struct ipr_cmnd * ipr_cmd,__be32 res_handle,u8 parm,dma_addr_t dma_addr,u8 xfer_len)7366 static void ipr_build_mode_sense(struct ipr_cmnd *ipr_cmd,
7367 				 __be32 res_handle,
7368 				 u8 parm, dma_addr_t dma_addr, u8 xfer_len)
7369 {
7370 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7371 
7372 	ioarcb->res_handle = res_handle;
7373 	ioarcb->cmd_pkt.cdb[0] = MODE_SENSE;
7374 	ioarcb->cmd_pkt.cdb[2] = parm;
7375 	ioarcb->cmd_pkt.cdb[4] = xfer_len;
7376 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_SCSICDB;
7377 
7378 	ipr_init_ioadl(ipr_cmd, dma_addr, xfer_len, IPR_IOADL_FLAGS_READ_LAST);
7379 }
7380 
7381 /**
7382  * ipr_reset_cmd_failed - Handle failure of IOA reset command
7383  * @ipr_cmd:	ipr command struct
7384  *
7385  * This function handles the failure of an IOA bringup command.
7386  *
7387  * Return value:
7388  * 	IPR_RC_JOB_RETURN
7389  **/
ipr_reset_cmd_failed(struct ipr_cmnd * ipr_cmd)7390 static int ipr_reset_cmd_failed(struct ipr_cmnd *ipr_cmd)
7391 {
7392 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7393 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
7394 
7395 	dev_err(&ioa_cfg->pdev->dev,
7396 		"0x%02X failed with IOASC: 0x%08X\n",
7397 		ipr_cmd->ioarcb.cmd_pkt.cdb[0], ioasc);
7398 
7399 	ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
7400 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
7401 	return IPR_RC_JOB_RETURN;
7402 }
7403 
7404 /**
7405  * ipr_reset_mode_sense_failed - Handle failure of IOAFP mode sense
7406  * @ipr_cmd:	ipr command struct
7407  *
7408  * This function handles the failure of a Mode Sense to the IOAFP.
7409  * Some adapters do not handle all mode pages.
7410  *
7411  * Return value:
7412  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7413  **/
ipr_reset_mode_sense_failed(struct ipr_cmnd * ipr_cmd)7414 static int ipr_reset_mode_sense_failed(struct ipr_cmnd *ipr_cmd)
7415 {
7416 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7417 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
7418 
7419 	if (ioasc == IPR_IOASC_IR_INVALID_REQ_TYPE_OR_PKT) {
7420 		ipr_cmd->job_step = ipr_set_supported_devs;
7421 		ipr_cmd->u.res = list_entry(ioa_cfg->used_res_q.next,
7422 					    struct ipr_resource_entry, queue);
7423 		return IPR_RC_JOB_CONTINUE;
7424 	}
7425 
7426 	return ipr_reset_cmd_failed(ipr_cmd);
7427 }
7428 
7429 /**
7430  * ipr_ioafp_mode_sense_page28 - Issue Mode Sense Page 28 to IOA
7431  * @ipr_cmd:	ipr command struct
7432  *
7433  * This function send a Page 28 mode sense to the IOA to
7434  * retrieve SCSI bus attributes.
7435  *
7436  * Return value:
7437  * 	IPR_RC_JOB_RETURN
7438  **/
ipr_ioafp_mode_sense_page28(struct ipr_cmnd * ipr_cmd)7439 static int ipr_ioafp_mode_sense_page28(struct ipr_cmnd *ipr_cmd)
7440 {
7441 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7442 
7443 	ENTER;
7444 	ipr_build_mode_sense(ipr_cmd, cpu_to_be32(IPR_IOA_RES_HANDLE),
7445 			     0x28, ioa_cfg->vpd_cbs_dma +
7446 			     offsetof(struct ipr_misc_cbs, mode_pages),
7447 			     sizeof(struct ipr_mode_pages));
7448 
7449 	ipr_cmd->job_step = ipr_ioafp_mode_select_page28;
7450 	ipr_cmd->job_step_failed = ipr_reset_mode_sense_failed;
7451 
7452 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7453 
7454 	LEAVE;
7455 	return IPR_RC_JOB_RETURN;
7456 }
7457 
7458 /**
7459  * ipr_ioafp_mode_select_page24 - Issue Mode Select to IOA
7460  * @ipr_cmd:	ipr command struct
7461  *
7462  * This function enables dual IOA RAID support if possible.
7463  *
7464  * Return value:
7465  * 	IPR_RC_JOB_RETURN
7466  **/
ipr_ioafp_mode_select_page24(struct ipr_cmnd * ipr_cmd)7467 static int ipr_ioafp_mode_select_page24(struct ipr_cmnd *ipr_cmd)
7468 {
7469 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7470 	struct ipr_mode_pages *mode_pages = &ioa_cfg->vpd_cbs->mode_pages;
7471 	struct ipr_mode_page24 *mode_page;
7472 	int length;
7473 
7474 	ENTER;
7475 	mode_page = ipr_get_mode_page(mode_pages, 0x24,
7476 				      sizeof(struct ipr_mode_page24));
7477 
7478 	if (mode_page)
7479 		mode_page->flags |= IPR_ENABLE_DUAL_IOA_AF;
7480 
7481 	length = mode_pages->hdr.length + 1;
7482 	mode_pages->hdr.length = 0;
7483 
7484 	ipr_build_mode_select(ipr_cmd, cpu_to_be32(IPR_IOA_RES_HANDLE), 0x11,
7485 			      ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, mode_pages),
7486 			      length);
7487 
7488 	ipr_cmd->job_step = ipr_ioafp_mode_sense_page28;
7489 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7490 
7491 	LEAVE;
7492 	return IPR_RC_JOB_RETURN;
7493 }
7494 
7495 /**
7496  * ipr_reset_mode_sense_page24_failed - Handle failure of IOAFP mode sense
7497  * @ipr_cmd:	ipr command struct
7498  *
7499  * This function handles the failure of a Mode Sense to the IOAFP.
7500  * Some adapters do not handle all mode pages.
7501  *
7502  * Return value:
7503  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7504  **/
ipr_reset_mode_sense_page24_failed(struct ipr_cmnd * ipr_cmd)7505 static int ipr_reset_mode_sense_page24_failed(struct ipr_cmnd *ipr_cmd)
7506 {
7507 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
7508 
7509 	if (ioasc == IPR_IOASC_IR_INVALID_REQ_TYPE_OR_PKT) {
7510 		ipr_cmd->job_step = ipr_ioafp_mode_sense_page28;
7511 		return IPR_RC_JOB_CONTINUE;
7512 	}
7513 
7514 	return ipr_reset_cmd_failed(ipr_cmd);
7515 }
7516 
7517 /**
7518  * ipr_ioafp_mode_sense_page24 - Issue Page 24 Mode Sense to IOA
7519  * @ipr_cmd:	ipr command struct
7520  *
7521  * This function send a mode sense to the IOA to retrieve
7522  * the IOA Advanced Function Control mode page.
7523  *
7524  * Return value:
7525  * 	IPR_RC_JOB_RETURN
7526  **/
ipr_ioafp_mode_sense_page24(struct ipr_cmnd * ipr_cmd)7527 static int ipr_ioafp_mode_sense_page24(struct ipr_cmnd *ipr_cmd)
7528 {
7529 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7530 
7531 	ENTER;
7532 	ipr_build_mode_sense(ipr_cmd, cpu_to_be32(IPR_IOA_RES_HANDLE),
7533 			     0x24, ioa_cfg->vpd_cbs_dma +
7534 			     offsetof(struct ipr_misc_cbs, mode_pages),
7535 			     sizeof(struct ipr_mode_pages));
7536 
7537 	ipr_cmd->job_step = ipr_ioafp_mode_select_page24;
7538 	ipr_cmd->job_step_failed = ipr_reset_mode_sense_page24_failed;
7539 
7540 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7541 
7542 	LEAVE;
7543 	return IPR_RC_JOB_RETURN;
7544 }
7545 
7546 /**
7547  * ipr_init_res_table - Initialize the resource table
7548  * @ipr_cmd:	ipr command struct
7549  *
7550  * This function looks through the existing resource table, comparing
7551  * it with the config table. This function will take care of old/new
7552  * devices and schedule adding/removing them from the mid-layer
7553  * as appropriate.
7554  *
7555  * Return value:
7556  * 	IPR_RC_JOB_CONTINUE
7557  **/
ipr_init_res_table(struct ipr_cmnd * ipr_cmd)7558 static int ipr_init_res_table(struct ipr_cmnd *ipr_cmd)
7559 {
7560 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7561 	struct ipr_resource_entry *res, *temp;
7562 	struct ipr_config_table_entry_wrapper cfgtew;
7563 	int entries, found, flag, i;
7564 	LIST_HEAD(old_res);
7565 
7566 	ENTER;
7567 	if (ioa_cfg->sis64)
7568 		flag = ioa_cfg->u.cfg_table64->hdr64.flags;
7569 	else
7570 		flag = ioa_cfg->u.cfg_table->hdr.flags;
7571 
7572 	if (flag & IPR_UCODE_DOWNLOAD_REQ)
7573 		dev_err(&ioa_cfg->pdev->dev, "Microcode download required\n");
7574 
7575 	list_for_each_entry_safe(res, temp, &ioa_cfg->used_res_q, queue)
7576 		list_move_tail(&res->queue, &old_res);
7577 
7578 	if (ioa_cfg->sis64)
7579 		entries = be16_to_cpu(ioa_cfg->u.cfg_table64->hdr64.num_entries);
7580 	else
7581 		entries = ioa_cfg->u.cfg_table->hdr.num_entries;
7582 
7583 	for (i = 0; i < entries; i++) {
7584 		if (ioa_cfg->sis64)
7585 			cfgtew.u.cfgte64 = &ioa_cfg->u.cfg_table64->dev[i];
7586 		else
7587 			cfgtew.u.cfgte = &ioa_cfg->u.cfg_table->dev[i];
7588 		found = 0;
7589 
7590 		list_for_each_entry_safe(res, temp, &old_res, queue) {
7591 			if (ipr_is_same_device(res, &cfgtew)) {
7592 				list_move_tail(&res->queue, &ioa_cfg->used_res_q);
7593 				found = 1;
7594 				break;
7595 			}
7596 		}
7597 
7598 		if (!found) {
7599 			if (list_empty(&ioa_cfg->free_res_q)) {
7600 				dev_err(&ioa_cfg->pdev->dev, "Too many devices attached\n");
7601 				break;
7602 			}
7603 
7604 			found = 1;
7605 			res = list_entry(ioa_cfg->free_res_q.next,
7606 					 struct ipr_resource_entry, queue);
7607 			list_move_tail(&res->queue, &ioa_cfg->used_res_q);
7608 			ipr_init_res_entry(res, &cfgtew);
7609 			res->add_to_ml = 1;
7610 		} else if (res->sdev && (ipr_is_vset_device(res) || ipr_is_scsi_disk(res)))
7611 			res->sdev->allow_restart = 1;
7612 
7613 		if (found)
7614 			ipr_update_res_entry(res, &cfgtew);
7615 	}
7616 
7617 	list_for_each_entry_safe(res, temp, &old_res, queue) {
7618 		if (res->sdev) {
7619 			res->del_from_ml = 1;
7620 			res->res_handle = IPR_INVALID_RES_HANDLE;
7621 			list_move_tail(&res->queue, &ioa_cfg->used_res_q);
7622 		}
7623 	}
7624 
7625 	list_for_each_entry_safe(res, temp, &old_res, queue) {
7626 		ipr_clear_res_target(res);
7627 		list_move_tail(&res->queue, &ioa_cfg->free_res_q);
7628 	}
7629 
7630 	if (ioa_cfg->dual_raid && ipr_dual_ioa_raid)
7631 		ipr_cmd->job_step = ipr_ioafp_mode_sense_page24;
7632 	else
7633 		ipr_cmd->job_step = ipr_ioafp_mode_sense_page28;
7634 
7635 	LEAVE;
7636 	return IPR_RC_JOB_CONTINUE;
7637 }
7638 
7639 /**
7640  * ipr_ioafp_query_ioa_cfg - Send a Query IOA Config to the adapter.
7641  * @ipr_cmd:	ipr command struct
7642  *
7643  * This function sends a Query IOA Configuration command
7644  * to the adapter to retrieve the IOA configuration table.
7645  *
7646  * Return value:
7647  * 	IPR_RC_JOB_RETURN
7648  **/
ipr_ioafp_query_ioa_cfg(struct ipr_cmnd * ipr_cmd)7649 static int ipr_ioafp_query_ioa_cfg(struct ipr_cmnd *ipr_cmd)
7650 {
7651 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7652 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7653 	struct ipr_inquiry_page3 *ucode_vpd = &ioa_cfg->vpd_cbs->page3_data;
7654 	struct ipr_inquiry_cap *cap = &ioa_cfg->vpd_cbs->cap;
7655 
7656 	ENTER;
7657 	if (cap->cap & IPR_CAP_DUAL_IOA_RAID)
7658 		ioa_cfg->dual_raid = 1;
7659 	dev_info(&ioa_cfg->pdev->dev, "Adapter firmware version: %02X%02X%02X%02X\n",
7660 		 ucode_vpd->major_release, ucode_vpd->card_type,
7661 		 ucode_vpd->minor_release[0], ucode_vpd->minor_release[1]);
7662 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
7663 	ioarcb->res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
7664 
7665 	ioarcb->cmd_pkt.cdb[0] = IPR_QUERY_IOA_CONFIG;
7666 	ioarcb->cmd_pkt.cdb[6] = (ioa_cfg->cfg_table_size >> 16) & 0xff;
7667 	ioarcb->cmd_pkt.cdb[7] = (ioa_cfg->cfg_table_size >> 8) & 0xff;
7668 	ioarcb->cmd_pkt.cdb[8] = ioa_cfg->cfg_table_size & 0xff;
7669 
7670 	ipr_init_ioadl(ipr_cmd, ioa_cfg->cfg_table_dma, ioa_cfg->cfg_table_size,
7671 		       IPR_IOADL_FLAGS_READ_LAST);
7672 
7673 	ipr_cmd->job_step = ipr_init_res_table;
7674 
7675 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7676 
7677 	LEAVE;
7678 	return IPR_RC_JOB_RETURN;
7679 }
7680 
ipr_ioa_service_action_failed(struct ipr_cmnd * ipr_cmd)7681 static int ipr_ioa_service_action_failed(struct ipr_cmnd *ipr_cmd)
7682 {
7683 	u32 ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
7684 
7685 	if (ioasc == IPR_IOASC_IR_INVALID_REQ_TYPE_OR_PKT)
7686 		return IPR_RC_JOB_CONTINUE;
7687 
7688 	return ipr_reset_cmd_failed(ipr_cmd);
7689 }
7690 
ipr_build_ioa_service_action(struct ipr_cmnd * ipr_cmd,__be32 res_handle,u8 sa_code)7691 static void ipr_build_ioa_service_action(struct ipr_cmnd *ipr_cmd,
7692 					 __be32 res_handle, u8 sa_code)
7693 {
7694 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7695 
7696 	ioarcb->res_handle = res_handle;
7697 	ioarcb->cmd_pkt.cdb[0] = IPR_IOA_SERVICE_ACTION;
7698 	ioarcb->cmd_pkt.cdb[1] = sa_code;
7699 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
7700 }
7701 
7702 /**
7703  * ipr_ioafp_set_caching_parameters - Issue Set Cache parameters service
7704  * action
7705  *
7706  * Return value:
7707  *	none
7708  **/
ipr_ioafp_set_caching_parameters(struct ipr_cmnd * ipr_cmd)7709 static int ipr_ioafp_set_caching_parameters(struct ipr_cmnd *ipr_cmd)
7710 {
7711 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7712 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7713 	struct ipr_inquiry_pageC4 *pageC4 = &ioa_cfg->vpd_cbs->pageC4_data;
7714 
7715 	ENTER;
7716 
7717 	ipr_cmd->job_step = ipr_ioafp_query_ioa_cfg;
7718 
7719 	if (pageC4->cache_cap[0] & IPR_CAP_SYNC_CACHE) {
7720 		ipr_build_ioa_service_action(ipr_cmd,
7721 					     cpu_to_be32(IPR_IOA_RES_HANDLE),
7722 					     IPR_IOA_SA_CHANGE_CACHE_PARAMS);
7723 
7724 		ioarcb->cmd_pkt.cdb[2] = 0x40;
7725 
7726 		ipr_cmd->job_step_failed = ipr_ioa_service_action_failed;
7727 		ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout,
7728 			   IPR_SET_SUP_DEVICE_TIMEOUT);
7729 
7730 		LEAVE;
7731 		return IPR_RC_JOB_RETURN;
7732 	}
7733 
7734 	LEAVE;
7735 	return IPR_RC_JOB_CONTINUE;
7736 }
7737 
7738 /**
7739  * ipr_ioafp_inquiry - Send an Inquiry to the adapter.
7740  * @ipr_cmd:	ipr command struct
7741  *
7742  * This utility function sends an inquiry to the adapter.
7743  *
7744  * Return value:
7745  * 	none
7746  **/
ipr_ioafp_inquiry(struct ipr_cmnd * ipr_cmd,u8 flags,u8 page,dma_addr_t dma_addr,u8 xfer_len)7747 static void ipr_ioafp_inquiry(struct ipr_cmnd *ipr_cmd, u8 flags, u8 page,
7748 			      dma_addr_t dma_addr, u8 xfer_len)
7749 {
7750 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7751 
7752 	ENTER;
7753 	ioarcb->cmd_pkt.request_type = IPR_RQTYPE_SCSICDB;
7754 	ioarcb->res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
7755 
7756 	ioarcb->cmd_pkt.cdb[0] = INQUIRY;
7757 	ioarcb->cmd_pkt.cdb[1] = flags;
7758 	ioarcb->cmd_pkt.cdb[2] = page;
7759 	ioarcb->cmd_pkt.cdb[4] = xfer_len;
7760 
7761 	ipr_init_ioadl(ipr_cmd, dma_addr, xfer_len, IPR_IOADL_FLAGS_READ_LAST);
7762 
7763 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, IPR_INTERNAL_TIMEOUT);
7764 	LEAVE;
7765 }
7766 
7767 /**
7768  * ipr_inquiry_page_supported - Is the given inquiry page supported
7769  * @page0:		inquiry page 0 buffer
7770  * @page:		page code.
7771  *
7772  * This function determines if the specified inquiry page is supported.
7773  *
7774  * Return value:
7775  *	1 if page is supported / 0 if not
7776  **/
ipr_inquiry_page_supported(struct ipr_inquiry_page0 * page0,u8 page)7777 static int ipr_inquiry_page_supported(struct ipr_inquiry_page0 *page0, u8 page)
7778 {
7779 	int i;
7780 
7781 	for (i = 0; i < min_t(u8, page0->len, IPR_INQUIRY_PAGE0_ENTRIES); i++)
7782 		if (page0->page[i] == page)
7783 			return 1;
7784 
7785 	return 0;
7786 }
7787 
7788 /**
7789  * ipr_ioafp_pageC4_inquiry - Send a Page 0xC4 Inquiry to the adapter.
7790  * @ipr_cmd:	ipr command struct
7791  *
7792  * This function sends a Page 0xC4 inquiry to the adapter
7793  * to retrieve software VPD information.
7794  *
7795  * Return value:
7796  *	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7797  **/
ipr_ioafp_pageC4_inquiry(struct ipr_cmnd * ipr_cmd)7798 static int ipr_ioafp_pageC4_inquiry(struct ipr_cmnd *ipr_cmd)
7799 {
7800 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7801 	struct ipr_inquiry_page0 *page0 = &ioa_cfg->vpd_cbs->page0_data;
7802 	struct ipr_inquiry_pageC4 *pageC4 = &ioa_cfg->vpd_cbs->pageC4_data;
7803 
7804 	ENTER;
7805 	ipr_cmd->job_step = ipr_ioafp_set_caching_parameters;
7806 	memset(pageC4, 0, sizeof(*pageC4));
7807 
7808 	if (ipr_inquiry_page_supported(page0, 0xC4)) {
7809 		ipr_ioafp_inquiry(ipr_cmd, 1, 0xC4,
7810 				  (ioa_cfg->vpd_cbs_dma
7811 				   + offsetof(struct ipr_misc_cbs,
7812 					      pageC4_data)),
7813 				  sizeof(struct ipr_inquiry_pageC4));
7814 		return IPR_RC_JOB_RETURN;
7815 	}
7816 
7817 	LEAVE;
7818 	return IPR_RC_JOB_CONTINUE;
7819 }
7820 
7821 /**
7822  * ipr_ioafp_cap_inquiry - Send a Page 0xD0 Inquiry to the adapter.
7823  * @ipr_cmd:	ipr command struct
7824  *
7825  * This function sends a Page 0xD0 inquiry to the adapter
7826  * to retrieve adapter capabilities.
7827  *
7828  * Return value:
7829  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7830  **/
ipr_ioafp_cap_inquiry(struct ipr_cmnd * ipr_cmd)7831 static int ipr_ioafp_cap_inquiry(struct ipr_cmnd *ipr_cmd)
7832 {
7833 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7834 	struct ipr_inquiry_page0 *page0 = &ioa_cfg->vpd_cbs->page0_data;
7835 	struct ipr_inquiry_cap *cap = &ioa_cfg->vpd_cbs->cap;
7836 
7837 	ENTER;
7838 	ipr_cmd->job_step = ipr_ioafp_pageC4_inquiry;
7839 	memset(cap, 0, sizeof(*cap));
7840 
7841 	if (ipr_inquiry_page_supported(page0, 0xD0)) {
7842 		ipr_ioafp_inquiry(ipr_cmd, 1, 0xD0,
7843 				  ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, cap),
7844 				  sizeof(struct ipr_inquiry_cap));
7845 		return IPR_RC_JOB_RETURN;
7846 	}
7847 
7848 	LEAVE;
7849 	return IPR_RC_JOB_CONTINUE;
7850 }
7851 
7852 /**
7853  * ipr_ioafp_page3_inquiry - Send a Page 3 Inquiry to the adapter.
7854  * @ipr_cmd:	ipr command struct
7855  *
7856  * This function sends a Page 3 inquiry to the adapter
7857  * to retrieve software VPD information.
7858  *
7859  * Return value:
7860  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7861  **/
ipr_ioafp_page3_inquiry(struct ipr_cmnd * ipr_cmd)7862 static int ipr_ioafp_page3_inquiry(struct ipr_cmnd *ipr_cmd)
7863 {
7864 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7865 
7866 	ENTER;
7867 
7868 	ipr_cmd->job_step = ipr_ioafp_cap_inquiry;
7869 
7870 	ipr_ioafp_inquiry(ipr_cmd, 1, 3,
7871 			  ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, page3_data),
7872 			  sizeof(struct ipr_inquiry_page3));
7873 
7874 	LEAVE;
7875 	return IPR_RC_JOB_RETURN;
7876 }
7877 
7878 /**
7879  * ipr_ioafp_page0_inquiry - Send a Page 0 Inquiry to the adapter.
7880  * @ipr_cmd:	ipr command struct
7881  *
7882  * This function sends a Page 0 inquiry to the adapter
7883  * to retrieve supported inquiry pages.
7884  *
7885  * Return value:
7886  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
7887  **/
ipr_ioafp_page0_inquiry(struct ipr_cmnd * ipr_cmd)7888 static int ipr_ioafp_page0_inquiry(struct ipr_cmnd *ipr_cmd)
7889 {
7890 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7891 	char type[5];
7892 
7893 	ENTER;
7894 
7895 	/* Grab the type out of the VPD and store it away */
7896 	memcpy(type, ioa_cfg->vpd_cbs->ioa_vpd.std_inq_data.vpids.product_id, 4);
7897 	type[4] = '\0';
7898 	ioa_cfg->type = simple_strtoul((char *)type, NULL, 16);
7899 
7900 	if (ipr_invalid_adapter(ioa_cfg)) {
7901 		dev_err(&ioa_cfg->pdev->dev,
7902 			"Adapter not supported in this hardware configuration.\n");
7903 
7904 		if (!ipr_testmode) {
7905 			ioa_cfg->reset_retries += IPR_NUM_RESET_RELOAD_RETRIES;
7906 			ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
7907 			list_add_tail(&ipr_cmd->queue,
7908 					&ioa_cfg->hrrq->hrrq_free_q);
7909 			return IPR_RC_JOB_RETURN;
7910 		}
7911 	}
7912 
7913 	ipr_cmd->job_step = ipr_ioafp_page3_inquiry;
7914 
7915 	ipr_ioafp_inquiry(ipr_cmd, 1, 0,
7916 			  ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, page0_data),
7917 			  sizeof(struct ipr_inquiry_page0));
7918 
7919 	LEAVE;
7920 	return IPR_RC_JOB_RETURN;
7921 }
7922 
7923 /**
7924  * ipr_ioafp_std_inquiry - Send a Standard Inquiry to the adapter.
7925  * @ipr_cmd:	ipr command struct
7926  *
7927  * This function sends a standard inquiry to the adapter.
7928  *
7929  * Return value:
7930  * 	IPR_RC_JOB_RETURN
7931  **/
ipr_ioafp_std_inquiry(struct ipr_cmnd * ipr_cmd)7932 static int ipr_ioafp_std_inquiry(struct ipr_cmnd *ipr_cmd)
7933 {
7934 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7935 
7936 	ENTER;
7937 	ipr_cmd->job_step = ipr_ioafp_page0_inquiry;
7938 
7939 	ipr_ioafp_inquiry(ipr_cmd, 0, 0,
7940 			  ioa_cfg->vpd_cbs_dma + offsetof(struct ipr_misc_cbs, ioa_vpd),
7941 			  sizeof(struct ipr_ioa_vpd));
7942 
7943 	LEAVE;
7944 	return IPR_RC_JOB_RETURN;
7945 }
7946 
7947 /**
7948  * ipr_ioafp_identify_hrrq - Send Identify Host RRQ.
7949  * @ipr_cmd:	ipr command struct
7950  *
7951  * This function send an Identify Host Request Response Queue
7952  * command to establish the HRRQ with the adapter.
7953  *
7954  * Return value:
7955  * 	IPR_RC_JOB_RETURN
7956  **/
ipr_ioafp_identify_hrrq(struct ipr_cmnd * ipr_cmd)7957 static int ipr_ioafp_identify_hrrq(struct ipr_cmnd *ipr_cmd)
7958 {
7959 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
7960 	struct ipr_ioarcb *ioarcb = &ipr_cmd->ioarcb;
7961 	struct ipr_hrr_queue *hrrq;
7962 
7963 	ENTER;
7964 	ipr_cmd->job_step = ipr_ioafp_std_inquiry;
7965 	dev_info(&ioa_cfg->pdev->dev, "Starting IOA initialization sequence.\n");
7966 
7967 	if (ioa_cfg->identify_hrrq_index < ioa_cfg->hrrq_num) {
7968 		hrrq = &ioa_cfg->hrrq[ioa_cfg->identify_hrrq_index];
7969 
7970 		ioarcb->cmd_pkt.cdb[0] = IPR_ID_HOST_RR_Q;
7971 		ioarcb->res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
7972 
7973 		ioarcb->cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
7974 		if (ioa_cfg->sis64)
7975 			ioarcb->cmd_pkt.cdb[1] = 0x1;
7976 
7977 		if (ioa_cfg->nvectors == 1)
7978 			ioarcb->cmd_pkt.cdb[1] &= ~IPR_ID_HRRQ_SELE_ENABLE;
7979 		else
7980 			ioarcb->cmd_pkt.cdb[1] |= IPR_ID_HRRQ_SELE_ENABLE;
7981 
7982 		ioarcb->cmd_pkt.cdb[2] =
7983 			((u64) hrrq->host_rrq_dma >> 24) & 0xff;
7984 		ioarcb->cmd_pkt.cdb[3] =
7985 			((u64) hrrq->host_rrq_dma >> 16) & 0xff;
7986 		ioarcb->cmd_pkt.cdb[4] =
7987 			((u64) hrrq->host_rrq_dma >> 8) & 0xff;
7988 		ioarcb->cmd_pkt.cdb[5] =
7989 			((u64) hrrq->host_rrq_dma) & 0xff;
7990 		ioarcb->cmd_pkt.cdb[7] =
7991 			((sizeof(u32) * hrrq->size) >> 8) & 0xff;
7992 		ioarcb->cmd_pkt.cdb[8] =
7993 			(sizeof(u32) * hrrq->size) & 0xff;
7994 
7995 		if (ioarcb->cmd_pkt.cdb[1] & IPR_ID_HRRQ_SELE_ENABLE)
7996 			ioarcb->cmd_pkt.cdb[9] =
7997 					ioa_cfg->identify_hrrq_index;
7998 
7999 		if (ioa_cfg->sis64) {
8000 			ioarcb->cmd_pkt.cdb[10] =
8001 				((u64) hrrq->host_rrq_dma >> 56) & 0xff;
8002 			ioarcb->cmd_pkt.cdb[11] =
8003 				((u64) hrrq->host_rrq_dma >> 48) & 0xff;
8004 			ioarcb->cmd_pkt.cdb[12] =
8005 				((u64) hrrq->host_rrq_dma >> 40) & 0xff;
8006 			ioarcb->cmd_pkt.cdb[13] =
8007 				((u64) hrrq->host_rrq_dma >> 32) & 0xff;
8008 		}
8009 
8010 		if (ioarcb->cmd_pkt.cdb[1] & IPR_ID_HRRQ_SELE_ENABLE)
8011 			ioarcb->cmd_pkt.cdb[14] =
8012 					ioa_cfg->identify_hrrq_index;
8013 
8014 		ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout,
8015 			   IPR_INTERNAL_TIMEOUT);
8016 
8017 		if (++ioa_cfg->identify_hrrq_index < ioa_cfg->hrrq_num)
8018 			ipr_cmd->job_step = ipr_ioafp_identify_hrrq;
8019 
8020 		LEAVE;
8021 		return IPR_RC_JOB_RETURN;
8022 	}
8023 
8024 	LEAVE;
8025 	return IPR_RC_JOB_CONTINUE;
8026 }
8027 
8028 /**
8029  * ipr_reset_timer_done - Adapter reset timer function
8030  * @ipr_cmd:	ipr command struct
8031  *
8032  * Description: This function is used in adapter reset processing
8033  * for timing events. If the reset_cmd pointer in the IOA
8034  * config struct is not this adapter's we are doing nested
8035  * resets and fail_all_ops will take care of freeing the
8036  * command block.
8037  *
8038  * Return value:
8039  * 	none
8040  **/
ipr_reset_timer_done(struct ipr_cmnd * ipr_cmd)8041 static void ipr_reset_timer_done(struct ipr_cmnd *ipr_cmd)
8042 {
8043 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8044 	unsigned long lock_flags = 0;
8045 
8046 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
8047 
8048 	if (ioa_cfg->reset_cmd == ipr_cmd) {
8049 		list_del(&ipr_cmd->queue);
8050 		ipr_cmd->done(ipr_cmd);
8051 	}
8052 
8053 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
8054 }
8055 
8056 /**
8057  * ipr_reset_start_timer - Start a timer for adapter reset job
8058  * @ipr_cmd:	ipr command struct
8059  * @timeout:	timeout value
8060  *
8061  * Description: This function is used in adapter reset processing
8062  * for timing events. If the reset_cmd pointer in the IOA
8063  * config struct is not this adapter's we are doing nested
8064  * resets and fail_all_ops will take care of freeing the
8065  * command block.
8066  *
8067  * Return value:
8068  * 	none
8069  **/
ipr_reset_start_timer(struct ipr_cmnd * ipr_cmd,unsigned long timeout)8070 static void ipr_reset_start_timer(struct ipr_cmnd *ipr_cmd,
8071 				  unsigned long timeout)
8072 {
8073 
8074 	ENTER;
8075 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
8076 	ipr_cmd->done = ipr_reset_ioa_job;
8077 
8078 	ipr_cmd->timer.data = (unsigned long) ipr_cmd;
8079 	ipr_cmd->timer.expires = jiffies + timeout;
8080 	ipr_cmd->timer.function = (void (*)(unsigned long))ipr_reset_timer_done;
8081 	add_timer(&ipr_cmd->timer);
8082 }
8083 
8084 /**
8085  * ipr_init_ioa_mem - Initialize ioa_cfg control block
8086  * @ioa_cfg:	ioa cfg struct
8087  *
8088  * Return value:
8089  * 	nothing
8090  **/
ipr_init_ioa_mem(struct ipr_ioa_cfg * ioa_cfg)8091 static void ipr_init_ioa_mem(struct ipr_ioa_cfg *ioa_cfg)
8092 {
8093 	struct ipr_hrr_queue *hrrq;
8094 
8095 	for_each_hrrq(hrrq, ioa_cfg) {
8096 		spin_lock(&hrrq->_lock);
8097 		memset(hrrq->host_rrq, 0, sizeof(u32) * hrrq->size);
8098 
8099 		/* Initialize Host RRQ pointers */
8100 		hrrq->hrrq_start = hrrq->host_rrq;
8101 		hrrq->hrrq_end = &hrrq->host_rrq[hrrq->size - 1];
8102 		hrrq->hrrq_curr = hrrq->hrrq_start;
8103 		hrrq->toggle_bit = 1;
8104 		spin_unlock(&hrrq->_lock);
8105 	}
8106 	wmb();
8107 
8108 	ioa_cfg->identify_hrrq_index = 0;
8109 	if (ioa_cfg->hrrq_num == 1)
8110 		atomic_set(&ioa_cfg->hrrq_index, 0);
8111 	else
8112 		atomic_set(&ioa_cfg->hrrq_index, 1);
8113 
8114 	/* Zero out config table */
8115 	memset(ioa_cfg->u.cfg_table, 0, ioa_cfg->cfg_table_size);
8116 }
8117 
8118 /**
8119  * ipr_reset_next_stage - Process IPL stage change based on feedback register.
8120  * @ipr_cmd:	ipr command struct
8121  *
8122  * Return value:
8123  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8124  **/
ipr_reset_next_stage(struct ipr_cmnd * ipr_cmd)8125 static int ipr_reset_next_stage(struct ipr_cmnd *ipr_cmd)
8126 {
8127 	unsigned long stage, stage_time;
8128 	u32 feedback;
8129 	volatile u32 int_reg;
8130 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8131 	u64 maskval = 0;
8132 
8133 	feedback = readl(ioa_cfg->regs.init_feedback_reg);
8134 	stage = feedback & IPR_IPL_INIT_STAGE_MASK;
8135 	stage_time = feedback & IPR_IPL_INIT_STAGE_TIME_MASK;
8136 
8137 	ipr_dbg("IPL stage = 0x%lx, IPL stage time = %ld\n", stage, stage_time);
8138 
8139 	/* sanity check the stage_time value */
8140 	if (stage_time == 0)
8141 		stage_time = IPR_IPL_INIT_DEFAULT_STAGE_TIME;
8142 	else if (stage_time < IPR_IPL_INIT_MIN_STAGE_TIME)
8143 		stage_time = IPR_IPL_INIT_MIN_STAGE_TIME;
8144 	else if (stage_time > IPR_LONG_OPERATIONAL_TIMEOUT)
8145 		stage_time = IPR_LONG_OPERATIONAL_TIMEOUT;
8146 
8147 	if (stage == IPR_IPL_INIT_STAGE_UNKNOWN) {
8148 		writel(IPR_PCII_IPL_STAGE_CHANGE, ioa_cfg->regs.set_interrupt_mask_reg);
8149 		int_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
8150 		stage_time = ioa_cfg->transop_timeout;
8151 		ipr_cmd->job_step = ipr_ioafp_identify_hrrq;
8152 	} else if (stage == IPR_IPL_INIT_STAGE_TRANSOP) {
8153 		int_reg = readl(ioa_cfg->regs.sense_interrupt_reg32);
8154 		if (int_reg & IPR_PCII_IOA_TRANS_TO_OPER) {
8155 			ipr_cmd->job_step = ipr_ioafp_identify_hrrq;
8156 			maskval = IPR_PCII_IPL_STAGE_CHANGE;
8157 			maskval = (maskval << 32) | IPR_PCII_IOA_TRANS_TO_OPER;
8158 			writeq(maskval, ioa_cfg->regs.set_interrupt_mask_reg);
8159 			int_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
8160 			return IPR_RC_JOB_CONTINUE;
8161 		}
8162 	}
8163 
8164 	ipr_cmd->timer.data = (unsigned long) ipr_cmd;
8165 	ipr_cmd->timer.expires = jiffies + stage_time * HZ;
8166 	ipr_cmd->timer.function = (void (*)(unsigned long))ipr_oper_timeout;
8167 	ipr_cmd->done = ipr_reset_ioa_job;
8168 	add_timer(&ipr_cmd->timer);
8169 
8170 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
8171 
8172 	return IPR_RC_JOB_RETURN;
8173 }
8174 
8175 /**
8176  * ipr_reset_enable_ioa - Enable the IOA following a reset.
8177  * @ipr_cmd:	ipr command struct
8178  *
8179  * This function reinitializes some control blocks and
8180  * enables destructive diagnostics on the adapter.
8181  *
8182  * Return value:
8183  * 	IPR_RC_JOB_RETURN
8184  **/
ipr_reset_enable_ioa(struct ipr_cmnd * ipr_cmd)8185 static int ipr_reset_enable_ioa(struct ipr_cmnd *ipr_cmd)
8186 {
8187 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8188 	volatile u32 int_reg;
8189 	volatile u64 maskval;
8190 	int i;
8191 
8192 	ENTER;
8193 	ipr_cmd->job_step = ipr_ioafp_identify_hrrq;
8194 	ipr_init_ioa_mem(ioa_cfg);
8195 
8196 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
8197 		spin_lock(&ioa_cfg->hrrq[i]._lock);
8198 		ioa_cfg->hrrq[i].allow_interrupts = 1;
8199 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
8200 	}
8201 	wmb();
8202 	if (ioa_cfg->sis64) {
8203 		/* Set the adapter to the correct endian mode. */
8204 		writel(IPR_ENDIAN_SWAP_KEY, ioa_cfg->regs.endian_swap_reg);
8205 		int_reg = readl(ioa_cfg->regs.endian_swap_reg);
8206 	}
8207 
8208 	int_reg = readl(ioa_cfg->regs.sense_interrupt_reg32);
8209 
8210 	if (int_reg & IPR_PCII_IOA_TRANS_TO_OPER) {
8211 		writel((IPR_PCII_ERROR_INTERRUPTS | IPR_PCII_HRRQ_UPDATED),
8212 		       ioa_cfg->regs.clr_interrupt_mask_reg32);
8213 		int_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
8214 		return IPR_RC_JOB_CONTINUE;
8215 	}
8216 
8217 	/* Enable destructive diagnostics on IOA */
8218 	writel(ioa_cfg->doorbell, ioa_cfg->regs.set_uproc_interrupt_reg32);
8219 
8220 	if (ioa_cfg->sis64) {
8221 		maskval = IPR_PCII_IPL_STAGE_CHANGE;
8222 		maskval = (maskval << 32) | IPR_PCII_OPER_INTERRUPTS;
8223 		writeq(maskval, ioa_cfg->regs.clr_interrupt_mask_reg);
8224 	} else
8225 		writel(IPR_PCII_OPER_INTERRUPTS, ioa_cfg->regs.clr_interrupt_mask_reg32);
8226 
8227 	int_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
8228 
8229 	dev_info(&ioa_cfg->pdev->dev, "Initializing IOA.\n");
8230 
8231 	if (ioa_cfg->sis64) {
8232 		ipr_cmd->job_step = ipr_reset_next_stage;
8233 		return IPR_RC_JOB_CONTINUE;
8234 	}
8235 
8236 	ipr_cmd->timer.data = (unsigned long) ipr_cmd;
8237 	ipr_cmd->timer.expires = jiffies + (ioa_cfg->transop_timeout * HZ);
8238 	ipr_cmd->timer.function = (void (*)(unsigned long))ipr_oper_timeout;
8239 	ipr_cmd->done = ipr_reset_ioa_job;
8240 	add_timer(&ipr_cmd->timer);
8241 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
8242 
8243 	LEAVE;
8244 	return IPR_RC_JOB_RETURN;
8245 }
8246 
8247 /**
8248  * ipr_reset_wait_for_dump - Wait for a dump to timeout.
8249  * @ipr_cmd:	ipr command struct
8250  *
8251  * This function is invoked when an adapter dump has run out
8252  * of processing time.
8253  *
8254  * Return value:
8255  * 	IPR_RC_JOB_CONTINUE
8256  **/
ipr_reset_wait_for_dump(struct ipr_cmnd * ipr_cmd)8257 static int ipr_reset_wait_for_dump(struct ipr_cmnd *ipr_cmd)
8258 {
8259 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8260 
8261 	if (ioa_cfg->sdt_state == GET_DUMP)
8262 		ioa_cfg->sdt_state = WAIT_FOR_DUMP;
8263 	else if (ioa_cfg->sdt_state == READ_DUMP)
8264 		ioa_cfg->sdt_state = ABORT_DUMP;
8265 
8266 	ioa_cfg->dump_timeout = 1;
8267 	ipr_cmd->job_step = ipr_reset_alert;
8268 
8269 	return IPR_RC_JOB_CONTINUE;
8270 }
8271 
8272 /**
8273  * ipr_unit_check_no_data - Log a unit check/no data error log
8274  * @ioa_cfg:		ioa config struct
8275  *
8276  * Logs an error indicating the adapter unit checked, but for some
8277  * reason, we were unable to fetch the unit check buffer.
8278  *
8279  * Return value:
8280  * 	nothing
8281  **/
ipr_unit_check_no_data(struct ipr_ioa_cfg * ioa_cfg)8282 static void ipr_unit_check_no_data(struct ipr_ioa_cfg *ioa_cfg)
8283 {
8284 	ioa_cfg->errors_logged++;
8285 	dev_err(&ioa_cfg->pdev->dev, "IOA unit check with no data\n");
8286 }
8287 
8288 /**
8289  * ipr_get_unit_check_buffer - Get the unit check buffer from the IOA
8290  * @ioa_cfg:		ioa config struct
8291  *
8292  * Fetches the unit check buffer from the adapter by clocking the data
8293  * through the mailbox register.
8294  *
8295  * Return value:
8296  * 	nothing
8297  **/
ipr_get_unit_check_buffer(struct ipr_ioa_cfg * ioa_cfg)8298 static void ipr_get_unit_check_buffer(struct ipr_ioa_cfg *ioa_cfg)
8299 {
8300 	unsigned long mailbox;
8301 	struct ipr_hostrcb *hostrcb;
8302 	struct ipr_uc_sdt sdt;
8303 	int rc, length;
8304 	u32 ioasc;
8305 
8306 	mailbox = readl(ioa_cfg->ioa_mailbox);
8307 
8308 	if (!ioa_cfg->sis64 && !ipr_sdt_is_fmt2(mailbox)) {
8309 		ipr_unit_check_no_data(ioa_cfg);
8310 		return;
8311 	}
8312 
8313 	memset(&sdt, 0, sizeof(struct ipr_uc_sdt));
8314 	rc = ipr_get_ldump_data_section(ioa_cfg, mailbox, (__be32 *) &sdt,
8315 					(sizeof(struct ipr_uc_sdt)) / sizeof(__be32));
8316 
8317 	if (rc || !(sdt.entry[0].flags & IPR_SDT_VALID_ENTRY) ||
8318 	    ((be32_to_cpu(sdt.hdr.state) != IPR_FMT3_SDT_READY_TO_USE) &&
8319 	    (be32_to_cpu(sdt.hdr.state) != IPR_FMT2_SDT_READY_TO_USE))) {
8320 		ipr_unit_check_no_data(ioa_cfg);
8321 		return;
8322 	}
8323 
8324 	/* Find length of the first sdt entry (UC buffer) */
8325 	if (be32_to_cpu(sdt.hdr.state) == IPR_FMT3_SDT_READY_TO_USE)
8326 		length = be32_to_cpu(sdt.entry[0].end_token);
8327 	else
8328 		length = (be32_to_cpu(sdt.entry[0].end_token) -
8329 			  be32_to_cpu(sdt.entry[0].start_token)) &
8330 			  IPR_FMT2_MBX_ADDR_MASK;
8331 
8332 	hostrcb = list_entry(ioa_cfg->hostrcb_free_q.next,
8333 			     struct ipr_hostrcb, queue);
8334 	list_del(&hostrcb->queue);
8335 	memset(&hostrcb->hcam, 0, sizeof(hostrcb->hcam));
8336 
8337 	rc = ipr_get_ldump_data_section(ioa_cfg,
8338 					be32_to_cpu(sdt.entry[0].start_token),
8339 					(__be32 *)&hostrcb->hcam,
8340 					min(length, (int)sizeof(hostrcb->hcam)) / sizeof(__be32));
8341 
8342 	if (!rc) {
8343 		ipr_handle_log_data(ioa_cfg, hostrcb);
8344 		ioasc = be32_to_cpu(hostrcb->hcam.u.error.fd_ioasc);
8345 		if (ioasc == IPR_IOASC_NR_IOA_RESET_REQUIRED &&
8346 		    ioa_cfg->sdt_state == GET_DUMP)
8347 			ioa_cfg->sdt_state = WAIT_FOR_DUMP;
8348 	} else
8349 		ipr_unit_check_no_data(ioa_cfg);
8350 
8351 	list_add_tail(&hostrcb->queue, &ioa_cfg->hostrcb_free_q);
8352 }
8353 
8354 /**
8355  * ipr_reset_get_unit_check_job - Call to get the unit check buffer.
8356  * @ipr_cmd:	ipr command struct
8357  *
8358  * Description: This function will call to get the unit check buffer.
8359  *
8360  * Return value:
8361  *	IPR_RC_JOB_RETURN
8362  **/
ipr_reset_get_unit_check_job(struct ipr_cmnd * ipr_cmd)8363 static int ipr_reset_get_unit_check_job(struct ipr_cmnd *ipr_cmd)
8364 {
8365 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8366 
8367 	ENTER;
8368 	ioa_cfg->ioa_unit_checked = 0;
8369 	ipr_get_unit_check_buffer(ioa_cfg);
8370 	ipr_cmd->job_step = ipr_reset_alert;
8371 	ipr_reset_start_timer(ipr_cmd, 0);
8372 
8373 	LEAVE;
8374 	return IPR_RC_JOB_RETURN;
8375 }
8376 
ipr_dump_mailbox_wait(struct ipr_cmnd * ipr_cmd)8377 static int ipr_dump_mailbox_wait(struct ipr_cmnd *ipr_cmd)
8378 {
8379 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8380 
8381 	ENTER;
8382 
8383 	if (ioa_cfg->sdt_state != GET_DUMP)
8384 		return IPR_RC_JOB_RETURN;
8385 
8386 	if (!ioa_cfg->sis64 || !ipr_cmd->u.time_left ||
8387 	    (readl(ioa_cfg->regs.sense_interrupt_reg) &
8388 	     IPR_PCII_MAILBOX_STABLE)) {
8389 
8390 		if (!ipr_cmd->u.time_left)
8391 			dev_err(&ioa_cfg->pdev->dev,
8392 				"Timed out waiting for Mailbox register.\n");
8393 
8394 		ioa_cfg->sdt_state = READ_DUMP;
8395 		ioa_cfg->dump_timeout = 0;
8396 		if (ioa_cfg->sis64)
8397 			ipr_reset_start_timer(ipr_cmd, IPR_SIS64_DUMP_TIMEOUT);
8398 		else
8399 			ipr_reset_start_timer(ipr_cmd, IPR_SIS32_DUMP_TIMEOUT);
8400 		ipr_cmd->job_step = ipr_reset_wait_for_dump;
8401 		schedule_work(&ioa_cfg->work_q);
8402 
8403 	} else {
8404 		ipr_cmd->u.time_left -= IPR_CHECK_FOR_RESET_TIMEOUT;
8405 		ipr_reset_start_timer(ipr_cmd,
8406 				      IPR_CHECK_FOR_RESET_TIMEOUT);
8407 	}
8408 
8409 	LEAVE;
8410 	return IPR_RC_JOB_RETURN;
8411 }
8412 
8413 /**
8414  * ipr_reset_restore_cfg_space - Restore PCI config space.
8415  * @ipr_cmd:	ipr command struct
8416  *
8417  * Description: This function restores the saved PCI config space of
8418  * the adapter, fails all outstanding ops back to the callers, and
8419  * fetches the dump/unit check if applicable to this reset.
8420  *
8421  * Return value:
8422  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8423  **/
ipr_reset_restore_cfg_space(struct ipr_cmnd * ipr_cmd)8424 static int ipr_reset_restore_cfg_space(struct ipr_cmnd *ipr_cmd)
8425 {
8426 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8427 	u32 int_reg;
8428 
8429 	ENTER;
8430 	ioa_cfg->pdev->state_saved = true;
8431 	pci_restore_state(ioa_cfg->pdev);
8432 
8433 	if (ipr_set_pcix_cmd_reg(ioa_cfg)) {
8434 		ipr_cmd->s.ioasa.hdr.ioasc = cpu_to_be32(IPR_IOASC_PCI_ACCESS_ERROR);
8435 		return IPR_RC_JOB_CONTINUE;
8436 	}
8437 
8438 	ipr_fail_all_ops(ioa_cfg);
8439 
8440 	if (ioa_cfg->sis64) {
8441 		/* Set the adapter to the correct endian mode. */
8442 		writel(IPR_ENDIAN_SWAP_KEY, ioa_cfg->regs.endian_swap_reg);
8443 		int_reg = readl(ioa_cfg->regs.endian_swap_reg);
8444 	}
8445 
8446 	if (ioa_cfg->ioa_unit_checked) {
8447 		if (ioa_cfg->sis64) {
8448 			ipr_cmd->job_step = ipr_reset_get_unit_check_job;
8449 			ipr_reset_start_timer(ipr_cmd, IPR_DUMP_DELAY_TIMEOUT);
8450 			return IPR_RC_JOB_RETURN;
8451 		} else {
8452 			ioa_cfg->ioa_unit_checked = 0;
8453 			ipr_get_unit_check_buffer(ioa_cfg);
8454 			ipr_cmd->job_step = ipr_reset_alert;
8455 			ipr_reset_start_timer(ipr_cmd, 0);
8456 			return IPR_RC_JOB_RETURN;
8457 		}
8458 	}
8459 
8460 	if (ioa_cfg->in_ioa_bringdown) {
8461 		ipr_cmd->job_step = ipr_ioa_bringdown_done;
8462 	} else if (ioa_cfg->sdt_state == GET_DUMP) {
8463 		ipr_cmd->job_step = ipr_dump_mailbox_wait;
8464 		ipr_cmd->u.time_left = IPR_WAIT_FOR_MAILBOX;
8465 	} else {
8466 		ipr_cmd->job_step = ipr_reset_enable_ioa;
8467 	}
8468 
8469 	LEAVE;
8470 	return IPR_RC_JOB_CONTINUE;
8471 }
8472 
8473 /**
8474  * ipr_reset_bist_done - BIST has completed on the adapter.
8475  * @ipr_cmd:	ipr command struct
8476  *
8477  * Description: Unblock config space and resume the reset process.
8478  *
8479  * Return value:
8480  * 	IPR_RC_JOB_CONTINUE
8481  **/
ipr_reset_bist_done(struct ipr_cmnd * ipr_cmd)8482 static int ipr_reset_bist_done(struct ipr_cmnd *ipr_cmd)
8483 {
8484 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8485 
8486 	ENTER;
8487 	if (ioa_cfg->cfg_locked)
8488 		pci_cfg_access_unlock(ioa_cfg->pdev);
8489 	ioa_cfg->cfg_locked = 0;
8490 	ipr_cmd->job_step = ipr_reset_restore_cfg_space;
8491 	LEAVE;
8492 	return IPR_RC_JOB_CONTINUE;
8493 }
8494 
8495 /**
8496  * ipr_reset_start_bist - Run BIST on the adapter.
8497  * @ipr_cmd:	ipr command struct
8498  *
8499  * Description: This function runs BIST on the adapter, then delays 2 seconds.
8500  *
8501  * Return value:
8502  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8503  **/
ipr_reset_start_bist(struct ipr_cmnd * ipr_cmd)8504 static int ipr_reset_start_bist(struct ipr_cmnd *ipr_cmd)
8505 {
8506 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8507 	int rc = PCIBIOS_SUCCESSFUL;
8508 
8509 	ENTER;
8510 	if (ioa_cfg->ipr_chip->bist_method == IPR_MMIO)
8511 		writel(IPR_UPROCI_SIS64_START_BIST,
8512 		       ioa_cfg->regs.set_uproc_interrupt_reg32);
8513 	else
8514 		rc = pci_write_config_byte(ioa_cfg->pdev, PCI_BIST, PCI_BIST_START);
8515 
8516 	if (rc == PCIBIOS_SUCCESSFUL) {
8517 		ipr_cmd->job_step = ipr_reset_bist_done;
8518 		ipr_reset_start_timer(ipr_cmd, IPR_WAIT_FOR_BIST_TIMEOUT);
8519 		rc = IPR_RC_JOB_RETURN;
8520 	} else {
8521 		if (ioa_cfg->cfg_locked)
8522 			pci_cfg_access_unlock(ipr_cmd->ioa_cfg->pdev);
8523 		ioa_cfg->cfg_locked = 0;
8524 		ipr_cmd->s.ioasa.hdr.ioasc = cpu_to_be32(IPR_IOASC_PCI_ACCESS_ERROR);
8525 		rc = IPR_RC_JOB_CONTINUE;
8526 	}
8527 
8528 	LEAVE;
8529 	return rc;
8530 }
8531 
8532 /**
8533  * ipr_reset_slot_reset_done - Clear PCI reset to the adapter
8534  * @ipr_cmd:	ipr command struct
8535  *
8536  * Description: This clears PCI reset to the adapter and delays two seconds.
8537  *
8538  * Return value:
8539  * 	IPR_RC_JOB_RETURN
8540  **/
ipr_reset_slot_reset_done(struct ipr_cmnd * ipr_cmd)8541 static int ipr_reset_slot_reset_done(struct ipr_cmnd *ipr_cmd)
8542 {
8543 	ENTER;
8544 	ipr_cmd->job_step = ipr_reset_bist_done;
8545 	ipr_reset_start_timer(ipr_cmd, IPR_WAIT_FOR_BIST_TIMEOUT);
8546 	LEAVE;
8547 	return IPR_RC_JOB_RETURN;
8548 }
8549 
8550 /**
8551  * ipr_reset_reset_work - Pulse a PCIe fundamental reset
8552  * @work:	work struct
8553  *
8554  * Description: This pulses warm reset to a slot.
8555  *
8556  **/
ipr_reset_reset_work(struct work_struct * work)8557 static void ipr_reset_reset_work(struct work_struct *work)
8558 {
8559 	struct ipr_cmnd *ipr_cmd = container_of(work, struct ipr_cmnd, work);
8560 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8561 	struct pci_dev *pdev = ioa_cfg->pdev;
8562 	unsigned long lock_flags = 0;
8563 
8564 	ENTER;
8565 	pci_set_pcie_reset_state(pdev, pcie_warm_reset);
8566 	msleep(jiffies_to_msecs(IPR_PCI_RESET_TIMEOUT));
8567 	pci_set_pcie_reset_state(pdev, pcie_deassert_reset);
8568 
8569 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
8570 	if (ioa_cfg->reset_cmd == ipr_cmd)
8571 		ipr_reset_ioa_job(ipr_cmd);
8572 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
8573 	LEAVE;
8574 }
8575 
8576 /**
8577  * ipr_reset_slot_reset - Reset the PCI slot of the adapter.
8578  * @ipr_cmd:	ipr command struct
8579  *
8580  * Description: This asserts PCI reset to the adapter.
8581  *
8582  * Return value:
8583  * 	IPR_RC_JOB_RETURN
8584  **/
ipr_reset_slot_reset(struct ipr_cmnd * ipr_cmd)8585 static int ipr_reset_slot_reset(struct ipr_cmnd *ipr_cmd)
8586 {
8587 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8588 
8589 	ENTER;
8590 	INIT_WORK(&ipr_cmd->work, ipr_reset_reset_work);
8591 	queue_work(ioa_cfg->reset_work_q, &ipr_cmd->work);
8592 	ipr_cmd->job_step = ipr_reset_slot_reset_done;
8593 	LEAVE;
8594 	return IPR_RC_JOB_RETURN;
8595 }
8596 
8597 /**
8598  * ipr_reset_block_config_access_wait - Wait for permission to block config access
8599  * @ipr_cmd:	ipr command struct
8600  *
8601  * Description: This attempts to block config access to the IOA.
8602  *
8603  * Return value:
8604  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8605  **/
ipr_reset_block_config_access_wait(struct ipr_cmnd * ipr_cmd)8606 static int ipr_reset_block_config_access_wait(struct ipr_cmnd *ipr_cmd)
8607 {
8608 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8609 	int rc = IPR_RC_JOB_CONTINUE;
8610 
8611 	if (pci_cfg_access_trylock(ioa_cfg->pdev)) {
8612 		ioa_cfg->cfg_locked = 1;
8613 		ipr_cmd->job_step = ioa_cfg->reset;
8614 	} else {
8615 		if (ipr_cmd->u.time_left) {
8616 			rc = IPR_RC_JOB_RETURN;
8617 			ipr_cmd->u.time_left -= IPR_CHECK_FOR_RESET_TIMEOUT;
8618 			ipr_reset_start_timer(ipr_cmd,
8619 					      IPR_CHECK_FOR_RESET_TIMEOUT);
8620 		} else {
8621 			ipr_cmd->job_step = ioa_cfg->reset;
8622 			dev_err(&ioa_cfg->pdev->dev,
8623 				"Timed out waiting to lock config access. Resetting anyway.\n");
8624 		}
8625 	}
8626 
8627 	return rc;
8628 }
8629 
8630 /**
8631  * ipr_reset_block_config_access - Block config access to the IOA
8632  * @ipr_cmd:	ipr command struct
8633  *
8634  * Description: This attempts to block config access to the IOA
8635  *
8636  * Return value:
8637  * 	IPR_RC_JOB_CONTINUE
8638  **/
ipr_reset_block_config_access(struct ipr_cmnd * ipr_cmd)8639 static int ipr_reset_block_config_access(struct ipr_cmnd *ipr_cmd)
8640 {
8641 	ipr_cmd->ioa_cfg->cfg_locked = 0;
8642 	ipr_cmd->job_step = ipr_reset_block_config_access_wait;
8643 	ipr_cmd->u.time_left = IPR_WAIT_FOR_RESET_TIMEOUT;
8644 	return IPR_RC_JOB_CONTINUE;
8645 }
8646 
8647 /**
8648  * ipr_reset_allowed - Query whether or not IOA can be reset
8649  * @ioa_cfg:	ioa config struct
8650  *
8651  * Return value:
8652  * 	0 if reset not allowed / non-zero if reset is allowed
8653  **/
ipr_reset_allowed(struct ipr_ioa_cfg * ioa_cfg)8654 static int ipr_reset_allowed(struct ipr_ioa_cfg *ioa_cfg)
8655 {
8656 	volatile u32 temp_reg;
8657 
8658 	temp_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
8659 	return ((temp_reg & IPR_PCII_CRITICAL_OPERATION) == 0);
8660 }
8661 
8662 /**
8663  * ipr_reset_wait_to_start_bist - Wait for permission to reset IOA.
8664  * @ipr_cmd:	ipr command struct
8665  *
8666  * Description: This function waits for adapter permission to run BIST,
8667  * then runs BIST. If the adapter does not give permission after a
8668  * reasonable time, we will reset the adapter anyway. The impact of
8669  * resetting the adapter without warning the adapter is the risk of
8670  * losing the persistent error log on the adapter. If the adapter is
8671  * reset while it is writing to the flash on the adapter, the flash
8672  * segment will have bad ECC and be zeroed.
8673  *
8674  * Return value:
8675  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8676  **/
ipr_reset_wait_to_start_bist(struct ipr_cmnd * ipr_cmd)8677 static int ipr_reset_wait_to_start_bist(struct ipr_cmnd *ipr_cmd)
8678 {
8679 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8680 	int rc = IPR_RC_JOB_RETURN;
8681 
8682 	if (!ipr_reset_allowed(ioa_cfg) && ipr_cmd->u.time_left) {
8683 		ipr_cmd->u.time_left -= IPR_CHECK_FOR_RESET_TIMEOUT;
8684 		ipr_reset_start_timer(ipr_cmd, IPR_CHECK_FOR_RESET_TIMEOUT);
8685 	} else {
8686 		ipr_cmd->job_step = ipr_reset_block_config_access;
8687 		rc = IPR_RC_JOB_CONTINUE;
8688 	}
8689 
8690 	return rc;
8691 }
8692 
8693 /**
8694  * ipr_reset_alert - Alert the adapter of a pending reset
8695  * @ipr_cmd:	ipr command struct
8696  *
8697  * Description: This function alerts the adapter that it will be reset.
8698  * If memory space is not currently enabled, proceed directly
8699  * to running BIST on the adapter. The timer must always be started
8700  * so we guarantee we do not run BIST from ipr_isr.
8701  *
8702  * Return value:
8703  * 	IPR_RC_JOB_RETURN
8704  **/
ipr_reset_alert(struct ipr_cmnd * ipr_cmd)8705 static int ipr_reset_alert(struct ipr_cmnd *ipr_cmd)
8706 {
8707 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8708 	u16 cmd_reg;
8709 	int rc;
8710 
8711 	ENTER;
8712 	rc = pci_read_config_word(ioa_cfg->pdev, PCI_COMMAND, &cmd_reg);
8713 
8714 	if ((rc == PCIBIOS_SUCCESSFUL) && (cmd_reg & PCI_COMMAND_MEMORY)) {
8715 		ipr_mask_and_clear_interrupts(ioa_cfg, ~0);
8716 		writel(IPR_UPROCI_RESET_ALERT, ioa_cfg->regs.set_uproc_interrupt_reg32);
8717 		ipr_cmd->job_step = ipr_reset_wait_to_start_bist;
8718 	} else {
8719 		ipr_cmd->job_step = ipr_reset_block_config_access;
8720 	}
8721 
8722 	ipr_cmd->u.time_left = IPR_WAIT_FOR_RESET_TIMEOUT;
8723 	ipr_reset_start_timer(ipr_cmd, IPR_CHECK_FOR_RESET_TIMEOUT);
8724 
8725 	LEAVE;
8726 	return IPR_RC_JOB_RETURN;
8727 }
8728 
8729 /**
8730  * ipr_reset_quiesce_done - Complete IOA disconnect
8731  * @ipr_cmd:	ipr command struct
8732  *
8733  * Description: Freeze the adapter to complete quiesce processing
8734  *
8735  * Return value:
8736  * 	IPR_RC_JOB_CONTINUE
8737  **/
ipr_reset_quiesce_done(struct ipr_cmnd * ipr_cmd)8738 static int ipr_reset_quiesce_done(struct ipr_cmnd *ipr_cmd)
8739 {
8740 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8741 
8742 	ENTER;
8743 	ipr_cmd->job_step = ipr_ioa_bringdown_done;
8744 	ipr_mask_and_clear_interrupts(ioa_cfg, ~IPR_PCII_IOA_TRANS_TO_OPER);
8745 	LEAVE;
8746 	return IPR_RC_JOB_CONTINUE;
8747 }
8748 
8749 /**
8750  * ipr_reset_cancel_hcam_done - Check for outstanding commands
8751  * @ipr_cmd:	ipr command struct
8752  *
8753  * Description: Ensure nothing is outstanding to the IOA and
8754  *			proceed with IOA disconnect. Otherwise reset the IOA.
8755  *
8756  * Return value:
8757  * 	IPR_RC_JOB_RETURN / IPR_RC_JOB_CONTINUE
8758  **/
ipr_reset_cancel_hcam_done(struct ipr_cmnd * ipr_cmd)8759 static int ipr_reset_cancel_hcam_done(struct ipr_cmnd *ipr_cmd)
8760 {
8761 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8762 	struct ipr_cmnd *loop_cmd;
8763 	struct ipr_hrr_queue *hrrq;
8764 	int rc = IPR_RC_JOB_CONTINUE;
8765 	int count = 0;
8766 
8767 	ENTER;
8768 	ipr_cmd->job_step = ipr_reset_quiesce_done;
8769 
8770 	for_each_hrrq(hrrq, ioa_cfg) {
8771 		spin_lock(&hrrq->_lock);
8772 		list_for_each_entry(loop_cmd, &hrrq->hrrq_pending_q, queue) {
8773 			count++;
8774 			ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
8775 			list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
8776 			rc = IPR_RC_JOB_RETURN;
8777 			break;
8778 		}
8779 		spin_unlock(&hrrq->_lock);
8780 
8781 		if (count)
8782 			break;
8783 	}
8784 
8785 	LEAVE;
8786 	return rc;
8787 }
8788 
8789 /**
8790  * ipr_reset_cancel_hcam - Cancel outstanding HCAMs
8791  * @ipr_cmd:	ipr command struct
8792  *
8793  * Description: Cancel any oustanding HCAMs to the IOA.
8794  *
8795  * Return value:
8796  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8797  **/
ipr_reset_cancel_hcam(struct ipr_cmnd * ipr_cmd)8798 static int ipr_reset_cancel_hcam(struct ipr_cmnd *ipr_cmd)
8799 {
8800 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8801 	int rc = IPR_RC_JOB_CONTINUE;
8802 	struct ipr_cmd_pkt *cmd_pkt;
8803 	struct ipr_cmnd *hcam_cmd;
8804 	struct ipr_hrr_queue *hrrq = &ioa_cfg->hrrq[IPR_INIT_HRRQ];
8805 
8806 	ENTER;
8807 	ipr_cmd->job_step = ipr_reset_cancel_hcam_done;
8808 
8809 	if (!hrrq->ioa_is_dead) {
8810 		if (!list_empty(&ioa_cfg->hostrcb_pending_q)) {
8811 			list_for_each_entry(hcam_cmd, &hrrq->hrrq_pending_q, queue) {
8812 				if (hcam_cmd->ioarcb.cmd_pkt.cdb[0] != IPR_HOST_CONTROLLED_ASYNC)
8813 					continue;
8814 
8815 				ipr_cmd->ioarcb.res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
8816 				ipr_cmd->ioarcb.cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
8817 				cmd_pkt = &ipr_cmd->ioarcb.cmd_pkt;
8818 				cmd_pkt->request_type = IPR_RQTYPE_IOACMD;
8819 				cmd_pkt->cdb[0] = IPR_CANCEL_REQUEST;
8820 				cmd_pkt->cdb[1] = IPR_CANCEL_64BIT_IOARCB;
8821 				cmd_pkt->cdb[10] = ((u64) hcam_cmd->dma_addr >> 56) & 0xff;
8822 				cmd_pkt->cdb[11] = ((u64) hcam_cmd->dma_addr >> 48) & 0xff;
8823 				cmd_pkt->cdb[12] = ((u64) hcam_cmd->dma_addr >> 40) & 0xff;
8824 				cmd_pkt->cdb[13] = ((u64) hcam_cmd->dma_addr >> 32) & 0xff;
8825 				cmd_pkt->cdb[2] = ((u64) hcam_cmd->dma_addr >> 24) & 0xff;
8826 				cmd_pkt->cdb[3] = ((u64) hcam_cmd->dma_addr >> 16) & 0xff;
8827 				cmd_pkt->cdb[4] = ((u64) hcam_cmd->dma_addr >> 8) & 0xff;
8828 				cmd_pkt->cdb[5] = ((u64) hcam_cmd->dma_addr) & 0xff;
8829 
8830 				ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout,
8831 					   IPR_CANCEL_TIMEOUT);
8832 
8833 				rc = IPR_RC_JOB_RETURN;
8834 				ipr_cmd->job_step = ipr_reset_cancel_hcam;
8835 				break;
8836 			}
8837 		}
8838 	} else
8839 		ipr_cmd->job_step = ipr_reset_alert;
8840 
8841 	LEAVE;
8842 	return rc;
8843 }
8844 
8845 /**
8846  * ipr_reset_ucode_download_done - Microcode download completion
8847  * @ipr_cmd:	ipr command struct
8848  *
8849  * Description: This function unmaps the microcode download buffer.
8850  *
8851  * Return value:
8852  * 	IPR_RC_JOB_CONTINUE
8853  **/
ipr_reset_ucode_download_done(struct ipr_cmnd * ipr_cmd)8854 static int ipr_reset_ucode_download_done(struct ipr_cmnd *ipr_cmd)
8855 {
8856 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8857 	struct ipr_sglist *sglist = ioa_cfg->ucode_sglist;
8858 
8859 	dma_unmap_sg(&ioa_cfg->pdev->dev, sglist->scatterlist,
8860 		     sglist->num_sg, DMA_TO_DEVICE);
8861 
8862 	ipr_cmd->job_step = ipr_reset_alert;
8863 	return IPR_RC_JOB_CONTINUE;
8864 }
8865 
8866 /**
8867  * ipr_reset_ucode_download - Download microcode to the adapter
8868  * @ipr_cmd:	ipr command struct
8869  *
8870  * Description: This function checks to see if it there is microcode
8871  * to download to the adapter. If there is, a download is performed.
8872  *
8873  * Return value:
8874  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8875  **/
ipr_reset_ucode_download(struct ipr_cmnd * ipr_cmd)8876 static int ipr_reset_ucode_download(struct ipr_cmnd *ipr_cmd)
8877 {
8878 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8879 	struct ipr_sglist *sglist = ioa_cfg->ucode_sglist;
8880 
8881 	ENTER;
8882 	ipr_cmd->job_step = ipr_reset_alert;
8883 
8884 	if (!sglist)
8885 		return IPR_RC_JOB_CONTINUE;
8886 
8887 	ipr_cmd->ioarcb.res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
8888 	ipr_cmd->ioarcb.cmd_pkt.request_type = IPR_RQTYPE_SCSICDB;
8889 	ipr_cmd->ioarcb.cmd_pkt.cdb[0] = WRITE_BUFFER;
8890 	ipr_cmd->ioarcb.cmd_pkt.cdb[1] = IPR_WR_BUF_DOWNLOAD_AND_SAVE;
8891 	ipr_cmd->ioarcb.cmd_pkt.cdb[6] = (sglist->buffer_len & 0xff0000) >> 16;
8892 	ipr_cmd->ioarcb.cmd_pkt.cdb[7] = (sglist->buffer_len & 0x00ff00) >> 8;
8893 	ipr_cmd->ioarcb.cmd_pkt.cdb[8] = sglist->buffer_len & 0x0000ff;
8894 
8895 	if (ioa_cfg->sis64)
8896 		ipr_build_ucode_ioadl64(ipr_cmd, sglist);
8897 	else
8898 		ipr_build_ucode_ioadl(ipr_cmd, sglist);
8899 	ipr_cmd->job_step = ipr_reset_ucode_download_done;
8900 
8901 	ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout,
8902 		   IPR_WRITE_BUFFER_TIMEOUT);
8903 
8904 	LEAVE;
8905 	return IPR_RC_JOB_RETURN;
8906 }
8907 
8908 /**
8909  * ipr_reset_shutdown_ioa - Shutdown the adapter
8910  * @ipr_cmd:	ipr command struct
8911  *
8912  * Description: This function issues an adapter shutdown of the
8913  * specified type to the specified adapter as part of the
8914  * adapter reset job.
8915  *
8916  * Return value:
8917  * 	IPR_RC_JOB_CONTINUE / IPR_RC_JOB_RETURN
8918  **/
ipr_reset_shutdown_ioa(struct ipr_cmnd * ipr_cmd)8919 static int ipr_reset_shutdown_ioa(struct ipr_cmnd *ipr_cmd)
8920 {
8921 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8922 	enum ipr_shutdown_type shutdown_type = ipr_cmd->u.shutdown_type;
8923 	unsigned long timeout;
8924 	int rc = IPR_RC_JOB_CONTINUE;
8925 
8926 	ENTER;
8927 	if (shutdown_type == IPR_SHUTDOWN_QUIESCE)
8928 		ipr_cmd->job_step = ipr_reset_cancel_hcam;
8929 	else if (shutdown_type != IPR_SHUTDOWN_NONE &&
8930 			!ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead) {
8931 		ipr_cmd->ioarcb.res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
8932 		ipr_cmd->ioarcb.cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
8933 		ipr_cmd->ioarcb.cmd_pkt.cdb[0] = IPR_IOA_SHUTDOWN;
8934 		ipr_cmd->ioarcb.cmd_pkt.cdb[1] = shutdown_type;
8935 
8936 		if (shutdown_type == IPR_SHUTDOWN_NORMAL)
8937 			timeout = IPR_SHUTDOWN_TIMEOUT;
8938 		else if (shutdown_type == IPR_SHUTDOWN_PREPARE_FOR_NORMAL)
8939 			timeout = IPR_INTERNAL_TIMEOUT;
8940 		else if (ioa_cfg->dual_raid && ipr_dual_ioa_raid)
8941 			timeout = IPR_DUAL_IOA_ABBR_SHUTDOWN_TO;
8942 		else
8943 			timeout = IPR_ABBREV_SHUTDOWN_TIMEOUT;
8944 
8945 		ipr_do_req(ipr_cmd, ipr_reset_ioa_job, ipr_timeout, timeout);
8946 
8947 		rc = IPR_RC_JOB_RETURN;
8948 		ipr_cmd->job_step = ipr_reset_ucode_download;
8949 	} else
8950 		ipr_cmd->job_step = ipr_reset_alert;
8951 
8952 	LEAVE;
8953 	return rc;
8954 }
8955 
8956 /**
8957  * ipr_reset_ioa_job - Adapter reset job
8958  * @ipr_cmd:	ipr command struct
8959  *
8960  * Description: This function is the job router for the adapter reset job.
8961  *
8962  * Return value:
8963  * 	none
8964  **/
ipr_reset_ioa_job(struct ipr_cmnd * ipr_cmd)8965 static void ipr_reset_ioa_job(struct ipr_cmnd *ipr_cmd)
8966 {
8967 	u32 rc, ioasc;
8968 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
8969 
8970 	do {
8971 		ioasc = be32_to_cpu(ipr_cmd->s.ioasa.hdr.ioasc);
8972 
8973 		if (ioa_cfg->reset_cmd != ipr_cmd) {
8974 			/*
8975 			 * We are doing nested adapter resets and this is
8976 			 * not the current reset job.
8977 			 */
8978 			list_add_tail(&ipr_cmd->queue,
8979 					&ipr_cmd->hrrq->hrrq_free_q);
8980 			return;
8981 		}
8982 
8983 		if (IPR_IOASC_SENSE_KEY(ioasc)) {
8984 			rc = ipr_cmd->job_step_failed(ipr_cmd);
8985 			if (rc == IPR_RC_JOB_RETURN)
8986 				return;
8987 		}
8988 
8989 		ipr_reinit_ipr_cmnd(ipr_cmd);
8990 		ipr_cmd->job_step_failed = ipr_reset_cmd_failed;
8991 		rc = ipr_cmd->job_step(ipr_cmd);
8992 	} while (rc == IPR_RC_JOB_CONTINUE);
8993 }
8994 
8995 /**
8996  * _ipr_initiate_ioa_reset - Initiate an adapter reset
8997  * @ioa_cfg:		ioa config struct
8998  * @job_step:		first job step of reset job
8999  * @shutdown_type:	shutdown type
9000  *
9001  * Description: This function will initiate the reset of the given adapter
9002  * starting at the selected job step.
9003  * If the caller needs to wait on the completion of the reset,
9004  * the caller must sleep on the reset_wait_q.
9005  *
9006  * Return value:
9007  * 	none
9008  **/
_ipr_initiate_ioa_reset(struct ipr_ioa_cfg * ioa_cfg,int (* job_step)(struct ipr_cmnd *),enum ipr_shutdown_type shutdown_type)9009 static void _ipr_initiate_ioa_reset(struct ipr_ioa_cfg *ioa_cfg,
9010 				    int (*job_step) (struct ipr_cmnd *),
9011 				    enum ipr_shutdown_type shutdown_type)
9012 {
9013 	struct ipr_cmnd *ipr_cmd;
9014 	int i;
9015 
9016 	ioa_cfg->in_reset_reload = 1;
9017 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9018 		spin_lock(&ioa_cfg->hrrq[i]._lock);
9019 		ioa_cfg->hrrq[i].allow_cmds = 0;
9020 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
9021 	}
9022 	wmb();
9023 	if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].removing_ioa)
9024 		scsi_block_requests(ioa_cfg->host);
9025 
9026 	ipr_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
9027 	ioa_cfg->reset_cmd = ipr_cmd;
9028 	ipr_cmd->job_step = job_step;
9029 	ipr_cmd->u.shutdown_type = shutdown_type;
9030 
9031 	ipr_reset_ioa_job(ipr_cmd);
9032 }
9033 
9034 /**
9035  * ipr_initiate_ioa_reset - Initiate an adapter reset
9036  * @ioa_cfg:		ioa config struct
9037  * @shutdown_type:	shutdown type
9038  *
9039  * Description: This function will initiate the reset of the given adapter.
9040  * If the caller needs to wait on the completion of the reset,
9041  * the caller must sleep on the reset_wait_q.
9042  *
9043  * Return value:
9044  * 	none
9045  **/
ipr_initiate_ioa_reset(struct ipr_ioa_cfg * ioa_cfg,enum ipr_shutdown_type shutdown_type)9046 static void ipr_initiate_ioa_reset(struct ipr_ioa_cfg *ioa_cfg,
9047 				   enum ipr_shutdown_type shutdown_type)
9048 {
9049 	int i;
9050 
9051 	if (ioa_cfg->hrrq[IPR_INIT_HRRQ].ioa_is_dead)
9052 		return;
9053 
9054 	if (ioa_cfg->in_reset_reload) {
9055 		if (ioa_cfg->sdt_state == GET_DUMP)
9056 			ioa_cfg->sdt_state = WAIT_FOR_DUMP;
9057 		else if (ioa_cfg->sdt_state == READ_DUMP)
9058 			ioa_cfg->sdt_state = ABORT_DUMP;
9059 	}
9060 
9061 	if (ioa_cfg->reset_retries++ >= IPR_NUM_RESET_RELOAD_RETRIES) {
9062 		dev_err(&ioa_cfg->pdev->dev,
9063 			"IOA taken offline - error recovery failed\n");
9064 
9065 		ioa_cfg->reset_retries = 0;
9066 		for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9067 			spin_lock(&ioa_cfg->hrrq[i]._lock);
9068 			ioa_cfg->hrrq[i].ioa_is_dead = 1;
9069 			spin_unlock(&ioa_cfg->hrrq[i]._lock);
9070 		}
9071 		wmb();
9072 
9073 		if (ioa_cfg->in_ioa_bringdown) {
9074 			ioa_cfg->reset_cmd = NULL;
9075 			ioa_cfg->in_reset_reload = 0;
9076 			ipr_fail_all_ops(ioa_cfg);
9077 			wake_up_all(&ioa_cfg->reset_wait_q);
9078 
9079 			if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].removing_ioa) {
9080 				spin_unlock_irq(ioa_cfg->host->host_lock);
9081 				scsi_unblock_requests(ioa_cfg->host);
9082 				spin_lock_irq(ioa_cfg->host->host_lock);
9083 			}
9084 			return;
9085 		} else {
9086 			ioa_cfg->in_ioa_bringdown = 1;
9087 			shutdown_type = IPR_SHUTDOWN_NONE;
9088 		}
9089 	}
9090 
9091 	_ipr_initiate_ioa_reset(ioa_cfg, ipr_reset_shutdown_ioa,
9092 				shutdown_type);
9093 }
9094 
9095 /**
9096  * ipr_reset_freeze - Hold off all I/O activity
9097  * @ipr_cmd:	ipr command struct
9098  *
9099  * Description: If the PCI slot is frozen, hold off all I/O
9100  * activity; then, as soon as the slot is available again,
9101  * initiate an adapter reset.
9102  */
ipr_reset_freeze(struct ipr_cmnd * ipr_cmd)9103 static int ipr_reset_freeze(struct ipr_cmnd *ipr_cmd)
9104 {
9105 	struct ipr_ioa_cfg *ioa_cfg = ipr_cmd->ioa_cfg;
9106 	int i;
9107 
9108 	/* Disallow new interrupts, avoid loop */
9109 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9110 		spin_lock(&ioa_cfg->hrrq[i]._lock);
9111 		ioa_cfg->hrrq[i].allow_interrupts = 0;
9112 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
9113 	}
9114 	wmb();
9115 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_pending_q);
9116 	ipr_cmd->done = ipr_reset_ioa_job;
9117 	return IPR_RC_JOB_RETURN;
9118 }
9119 
9120 /**
9121  * ipr_pci_mmio_enabled - Called when MMIO has been re-enabled
9122  * @pdev:	PCI device struct
9123  *
9124  * Description: This routine is called to tell us that the MMIO
9125  * access to the IOA has been restored
9126  */
ipr_pci_mmio_enabled(struct pci_dev * pdev)9127 static pci_ers_result_t ipr_pci_mmio_enabled(struct pci_dev *pdev)
9128 {
9129 	unsigned long flags = 0;
9130 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
9131 
9132 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
9133 	if (!ioa_cfg->probe_done)
9134 		pci_save_state(pdev);
9135 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
9136 	return PCI_ERS_RESULT_NEED_RESET;
9137 }
9138 
9139 /**
9140  * ipr_pci_frozen - Called when slot has experienced a PCI bus error.
9141  * @pdev:	PCI device struct
9142  *
9143  * Description: This routine is called to tell us that the PCI bus
9144  * is down. Can't do anything here, except put the device driver
9145  * into a holding pattern, waiting for the PCI bus to come back.
9146  */
ipr_pci_frozen(struct pci_dev * pdev)9147 static void ipr_pci_frozen(struct pci_dev *pdev)
9148 {
9149 	unsigned long flags = 0;
9150 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
9151 
9152 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
9153 	if (ioa_cfg->probe_done)
9154 		_ipr_initiate_ioa_reset(ioa_cfg, ipr_reset_freeze, IPR_SHUTDOWN_NONE);
9155 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
9156 }
9157 
9158 /**
9159  * ipr_pci_slot_reset - Called when PCI slot has been reset.
9160  * @pdev:	PCI device struct
9161  *
9162  * Description: This routine is called by the pci error recovery
9163  * code after the PCI slot has been reset, just before we
9164  * should resume normal operations.
9165  */
ipr_pci_slot_reset(struct pci_dev * pdev)9166 static pci_ers_result_t ipr_pci_slot_reset(struct pci_dev *pdev)
9167 {
9168 	unsigned long flags = 0;
9169 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
9170 
9171 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
9172 	if (ioa_cfg->probe_done) {
9173 		if (ioa_cfg->needs_warm_reset)
9174 			ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
9175 		else
9176 			_ipr_initiate_ioa_reset(ioa_cfg, ipr_reset_restore_cfg_space,
9177 						IPR_SHUTDOWN_NONE);
9178 	} else
9179 		wake_up_all(&ioa_cfg->eeh_wait_q);
9180 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
9181 	return PCI_ERS_RESULT_RECOVERED;
9182 }
9183 
9184 /**
9185  * ipr_pci_perm_failure - Called when PCI slot is dead for good.
9186  * @pdev:	PCI device struct
9187  *
9188  * Description: This routine is called when the PCI bus has
9189  * permanently failed.
9190  */
ipr_pci_perm_failure(struct pci_dev * pdev)9191 static void ipr_pci_perm_failure(struct pci_dev *pdev)
9192 {
9193 	unsigned long flags = 0;
9194 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
9195 	int i;
9196 
9197 	spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
9198 	if (ioa_cfg->probe_done) {
9199 		if (ioa_cfg->sdt_state == WAIT_FOR_DUMP)
9200 			ioa_cfg->sdt_state = ABORT_DUMP;
9201 		ioa_cfg->reset_retries = IPR_NUM_RESET_RELOAD_RETRIES - 1;
9202 		ioa_cfg->in_ioa_bringdown = 1;
9203 		for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9204 			spin_lock(&ioa_cfg->hrrq[i]._lock);
9205 			ioa_cfg->hrrq[i].allow_cmds = 0;
9206 			spin_unlock(&ioa_cfg->hrrq[i]._lock);
9207 		}
9208 		wmb();
9209 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
9210 	} else
9211 		wake_up_all(&ioa_cfg->eeh_wait_q);
9212 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
9213 }
9214 
9215 /**
9216  * ipr_pci_error_detected - Called when a PCI error is detected.
9217  * @pdev:	PCI device struct
9218  * @state:	PCI channel state
9219  *
9220  * Description: Called when a PCI error is detected.
9221  *
9222  * Return value:
9223  * 	PCI_ERS_RESULT_NEED_RESET or PCI_ERS_RESULT_DISCONNECT
9224  */
ipr_pci_error_detected(struct pci_dev * pdev,pci_channel_state_t state)9225 static pci_ers_result_t ipr_pci_error_detected(struct pci_dev *pdev,
9226 					       pci_channel_state_t state)
9227 {
9228 	switch (state) {
9229 	case pci_channel_io_frozen:
9230 		ipr_pci_frozen(pdev);
9231 		return PCI_ERS_RESULT_CAN_RECOVER;
9232 	case pci_channel_io_perm_failure:
9233 		ipr_pci_perm_failure(pdev);
9234 		return PCI_ERS_RESULT_DISCONNECT;
9235 		break;
9236 	default:
9237 		break;
9238 	}
9239 	return PCI_ERS_RESULT_NEED_RESET;
9240 }
9241 
9242 /**
9243  * ipr_probe_ioa_part2 - Initializes IOAs found in ipr_probe_ioa(..)
9244  * @ioa_cfg:	ioa cfg struct
9245  *
9246  * Description: This is the second phase of adapter intialization
9247  * This function takes care of initilizing the adapter to the point
9248  * where it can accept new commands.
9249 
9250  * Return value:
9251  * 	0 on success / -EIO on failure
9252  **/
ipr_probe_ioa_part2(struct ipr_ioa_cfg * ioa_cfg)9253 static int ipr_probe_ioa_part2(struct ipr_ioa_cfg *ioa_cfg)
9254 {
9255 	int rc = 0;
9256 	unsigned long host_lock_flags = 0;
9257 
9258 	ENTER;
9259 	spin_lock_irqsave(ioa_cfg->host->host_lock, host_lock_flags);
9260 	dev_dbg(&ioa_cfg->pdev->dev, "ioa_cfg adx: 0x%p\n", ioa_cfg);
9261 	ioa_cfg->probe_done = 1;
9262 	if (ioa_cfg->needs_hard_reset) {
9263 		ioa_cfg->needs_hard_reset = 0;
9264 		ipr_initiate_ioa_reset(ioa_cfg, IPR_SHUTDOWN_NONE);
9265 	} else
9266 		_ipr_initiate_ioa_reset(ioa_cfg, ipr_reset_enable_ioa,
9267 					IPR_SHUTDOWN_NONE);
9268 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, host_lock_flags);
9269 
9270 	LEAVE;
9271 	return rc;
9272 }
9273 
9274 /**
9275  * ipr_free_cmd_blks - Frees command blocks allocated for an adapter
9276  * @ioa_cfg:	ioa config struct
9277  *
9278  * Return value:
9279  * 	none
9280  **/
ipr_free_cmd_blks(struct ipr_ioa_cfg * ioa_cfg)9281 static void ipr_free_cmd_blks(struct ipr_ioa_cfg *ioa_cfg)
9282 {
9283 	int i;
9284 
9285 	if (ioa_cfg->ipr_cmnd_list) {
9286 		for (i = 0; i < IPR_NUM_CMD_BLKS; i++) {
9287 			if (ioa_cfg->ipr_cmnd_list[i])
9288 				dma_pool_free(ioa_cfg->ipr_cmd_pool,
9289 					      ioa_cfg->ipr_cmnd_list[i],
9290 					      ioa_cfg->ipr_cmnd_list_dma[i]);
9291 
9292 			ioa_cfg->ipr_cmnd_list[i] = NULL;
9293 		}
9294 	}
9295 
9296 	if (ioa_cfg->ipr_cmd_pool)
9297 		dma_pool_destroy(ioa_cfg->ipr_cmd_pool);
9298 
9299 	kfree(ioa_cfg->ipr_cmnd_list);
9300 	kfree(ioa_cfg->ipr_cmnd_list_dma);
9301 	ioa_cfg->ipr_cmnd_list = NULL;
9302 	ioa_cfg->ipr_cmnd_list_dma = NULL;
9303 	ioa_cfg->ipr_cmd_pool = NULL;
9304 }
9305 
9306 /**
9307  * ipr_free_mem - Frees memory allocated for an adapter
9308  * @ioa_cfg:	ioa cfg struct
9309  *
9310  * Return value:
9311  * 	nothing
9312  **/
ipr_free_mem(struct ipr_ioa_cfg * ioa_cfg)9313 static void ipr_free_mem(struct ipr_ioa_cfg *ioa_cfg)
9314 {
9315 	int i;
9316 
9317 	kfree(ioa_cfg->res_entries);
9318 	dma_free_coherent(&ioa_cfg->pdev->dev, sizeof(struct ipr_misc_cbs),
9319 			  ioa_cfg->vpd_cbs, ioa_cfg->vpd_cbs_dma);
9320 	ipr_free_cmd_blks(ioa_cfg);
9321 
9322 	for (i = 0; i < ioa_cfg->hrrq_num; i++)
9323 		dma_free_coherent(&ioa_cfg->pdev->dev,
9324 				  sizeof(u32) * ioa_cfg->hrrq[i].size,
9325 				  ioa_cfg->hrrq[i].host_rrq,
9326 				  ioa_cfg->hrrq[i].host_rrq_dma);
9327 
9328 	dma_free_coherent(&ioa_cfg->pdev->dev, ioa_cfg->cfg_table_size,
9329 			  ioa_cfg->u.cfg_table, ioa_cfg->cfg_table_dma);
9330 
9331 	for (i = 0; i < IPR_NUM_HCAMS; i++) {
9332 		dma_free_coherent(&ioa_cfg->pdev->dev,
9333 				  sizeof(struct ipr_hostrcb),
9334 				  ioa_cfg->hostrcb[i],
9335 				  ioa_cfg->hostrcb_dma[i]);
9336 	}
9337 
9338 	ipr_free_dump(ioa_cfg);
9339 	kfree(ioa_cfg->trace);
9340 }
9341 
9342 /**
9343  * ipr_free_irqs - Free all allocated IRQs for the adapter.
9344  * @ioa_cfg:	ipr cfg struct
9345  *
9346  * This function frees all allocated IRQs for the
9347  * specified adapter.
9348  *
9349  * Return value:
9350  * 	none
9351  **/
ipr_free_irqs(struct ipr_ioa_cfg * ioa_cfg)9352 static void ipr_free_irqs(struct ipr_ioa_cfg *ioa_cfg)
9353 {
9354 	struct pci_dev *pdev = ioa_cfg->pdev;
9355 
9356 	if (ioa_cfg->intr_flag == IPR_USE_MSI ||
9357 	    ioa_cfg->intr_flag == IPR_USE_MSIX) {
9358 		int i;
9359 		for (i = 0; i < ioa_cfg->nvectors; i++)
9360 			free_irq(ioa_cfg->vectors_info[i].vec,
9361 				 &ioa_cfg->hrrq[i]);
9362 	} else
9363 		free_irq(pdev->irq, &ioa_cfg->hrrq[0]);
9364 
9365 	if (ioa_cfg->intr_flag == IPR_USE_MSI) {
9366 		pci_disable_msi(pdev);
9367 		ioa_cfg->intr_flag &= ~IPR_USE_MSI;
9368 	} else if (ioa_cfg->intr_flag == IPR_USE_MSIX) {
9369 		pci_disable_msix(pdev);
9370 		ioa_cfg->intr_flag &= ~IPR_USE_MSIX;
9371 	}
9372 }
9373 
9374 /**
9375  * ipr_free_all_resources - Free all allocated resources for an adapter.
9376  * @ipr_cmd:	ipr command struct
9377  *
9378  * This function frees all allocated resources for the
9379  * specified adapter.
9380  *
9381  * Return value:
9382  * 	none
9383  **/
ipr_free_all_resources(struct ipr_ioa_cfg * ioa_cfg)9384 static void ipr_free_all_resources(struct ipr_ioa_cfg *ioa_cfg)
9385 {
9386 	struct pci_dev *pdev = ioa_cfg->pdev;
9387 
9388 	ENTER;
9389 	ipr_free_irqs(ioa_cfg);
9390 	if (ioa_cfg->reset_work_q)
9391 		destroy_workqueue(ioa_cfg->reset_work_q);
9392 	iounmap(ioa_cfg->hdw_dma_regs);
9393 	pci_release_regions(pdev);
9394 	ipr_free_mem(ioa_cfg);
9395 	scsi_host_put(ioa_cfg->host);
9396 	pci_disable_device(pdev);
9397 	LEAVE;
9398 }
9399 
9400 /**
9401  * ipr_alloc_cmd_blks - Allocate command blocks for an adapter
9402  * @ioa_cfg:	ioa config struct
9403  *
9404  * Return value:
9405  * 	0 on success / -ENOMEM on allocation failure
9406  **/
ipr_alloc_cmd_blks(struct ipr_ioa_cfg * ioa_cfg)9407 static int ipr_alloc_cmd_blks(struct ipr_ioa_cfg *ioa_cfg)
9408 {
9409 	struct ipr_cmnd *ipr_cmd;
9410 	struct ipr_ioarcb *ioarcb;
9411 	dma_addr_t dma_addr;
9412 	int i, entries_each_hrrq, hrrq_id = 0;
9413 
9414 	ioa_cfg->ipr_cmd_pool = dma_pool_create(IPR_NAME, &ioa_cfg->pdev->dev,
9415 						sizeof(struct ipr_cmnd), 512, 0);
9416 
9417 	if (!ioa_cfg->ipr_cmd_pool)
9418 		return -ENOMEM;
9419 
9420 	ioa_cfg->ipr_cmnd_list = kcalloc(IPR_NUM_CMD_BLKS, sizeof(struct ipr_cmnd *), GFP_KERNEL);
9421 	ioa_cfg->ipr_cmnd_list_dma = kcalloc(IPR_NUM_CMD_BLKS, sizeof(dma_addr_t), GFP_KERNEL);
9422 
9423 	if (!ioa_cfg->ipr_cmnd_list || !ioa_cfg->ipr_cmnd_list_dma) {
9424 		ipr_free_cmd_blks(ioa_cfg);
9425 		return -ENOMEM;
9426 	}
9427 
9428 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9429 		if (ioa_cfg->hrrq_num > 1) {
9430 			if (i == 0) {
9431 				entries_each_hrrq = IPR_NUM_INTERNAL_CMD_BLKS;
9432 				ioa_cfg->hrrq[i].min_cmd_id = 0;
9433 					ioa_cfg->hrrq[i].max_cmd_id =
9434 						(entries_each_hrrq - 1);
9435 			} else {
9436 				entries_each_hrrq =
9437 					IPR_NUM_BASE_CMD_BLKS/
9438 					(ioa_cfg->hrrq_num - 1);
9439 				ioa_cfg->hrrq[i].min_cmd_id =
9440 					IPR_NUM_INTERNAL_CMD_BLKS +
9441 					(i - 1) * entries_each_hrrq;
9442 				ioa_cfg->hrrq[i].max_cmd_id =
9443 					(IPR_NUM_INTERNAL_CMD_BLKS +
9444 					i * entries_each_hrrq - 1);
9445 			}
9446 		} else {
9447 			entries_each_hrrq = IPR_NUM_CMD_BLKS;
9448 			ioa_cfg->hrrq[i].min_cmd_id = 0;
9449 			ioa_cfg->hrrq[i].max_cmd_id = (entries_each_hrrq - 1);
9450 		}
9451 		ioa_cfg->hrrq[i].size = entries_each_hrrq;
9452 	}
9453 
9454 	BUG_ON(ioa_cfg->hrrq_num == 0);
9455 
9456 	i = IPR_NUM_CMD_BLKS -
9457 		ioa_cfg->hrrq[ioa_cfg->hrrq_num - 1].max_cmd_id - 1;
9458 	if (i > 0) {
9459 		ioa_cfg->hrrq[ioa_cfg->hrrq_num - 1].size += i;
9460 		ioa_cfg->hrrq[ioa_cfg->hrrq_num - 1].max_cmd_id += i;
9461 	}
9462 
9463 	for (i = 0; i < IPR_NUM_CMD_BLKS; i++) {
9464 		ipr_cmd = dma_pool_alloc(ioa_cfg->ipr_cmd_pool, GFP_KERNEL, &dma_addr);
9465 
9466 		if (!ipr_cmd) {
9467 			ipr_free_cmd_blks(ioa_cfg);
9468 			return -ENOMEM;
9469 		}
9470 
9471 		memset(ipr_cmd, 0, sizeof(*ipr_cmd));
9472 		ioa_cfg->ipr_cmnd_list[i] = ipr_cmd;
9473 		ioa_cfg->ipr_cmnd_list_dma[i] = dma_addr;
9474 
9475 		ioarcb = &ipr_cmd->ioarcb;
9476 		ipr_cmd->dma_addr = dma_addr;
9477 		if (ioa_cfg->sis64)
9478 			ioarcb->a.ioarcb_host_pci_addr64 = cpu_to_be64(dma_addr);
9479 		else
9480 			ioarcb->a.ioarcb_host_pci_addr = cpu_to_be32(dma_addr);
9481 
9482 		ioarcb->host_response_handle = cpu_to_be32(i << 2);
9483 		if (ioa_cfg->sis64) {
9484 			ioarcb->u.sis64_addr_data.data_ioadl_addr =
9485 				cpu_to_be64(dma_addr + offsetof(struct ipr_cmnd, i.ioadl64));
9486 			ioarcb->u.sis64_addr_data.ioasa_host_pci_addr =
9487 				cpu_to_be64(dma_addr + offsetof(struct ipr_cmnd, s.ioasa64));
9488 		} else {
9489 			ioarcb->write_ioadl_addr =
9490 				cpu_to_be32(dma_addr + offsetof(struct ipr_cmnd, i.ioadl));
9491 			ioarcb->read_ioadl_addr = ioarcb->write_ioadl_addr;
9492 			ioarcb->ioasa_host_pci_addr =
9493 				cpu_to_be32(dma_addr + offsetof(struct ipr_cmnd, s.ioasa));
9494 		}
9495 		ioarcb->ioasa_len = cpu_to_be16(sizeof(struct ipr_ioasa));
9496 		ipr_cmd->cmd_index = i;
9497 		ipr_cmd->ioa_cfg = ioa_cfg;
9498 		ipr_cmd->sense_buffer_dma = dma_addr +
9499 			offsetof(struct ipr_cmnd, sense_buffer);
9500 
9501 		ipr_cmd->ioarcb.cmd_pkt.hrrq_id = hrrq_id;
9502 		ipr_cmd->hrrq = &ioa_cfg->hrrq[hrrq_id];
9503 		list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
9504 		if (i >= ioa_cfg->hrrq[hrrq_id].max_cmd_id)
9505 			hrrq_id++;
9506 	}
9507 
9508 	return 0;
9509 }
9510 
9511 /**
9512  * ipr_alloc_mem - Allocate memory for an adapter
9513  * @ioa_cfg:	ioa config struct
9514  *
9515  * Return value:
9516  * 	0 on success / non-zero for error
9517  **/
ipr_alloc_mem(struct ipr_ioa_cfg * ioa_cfg)9518 static int ipr_alloc_mem(struct ipr_ioa_cfg *ioa_cfg)
9519 {
9520 	struct pci_dev *pdev = ioa_cfg->pdev;
9521 	int i, rc = -ENOMEM;
9522 
9523 	ENTER;
9524 	ioa_cfg->res_entries = kzalloc(sizeof(struct ipr_resource_entry) *
9525 				       ioa_cfg->max_devs_supported, GFP_KERNEL);
9526 
9527 	if (!ioa_cfg->res_entries)
9528 		goto out;
9529 
9530 	for (i = 0; i < ioa_cfg->max_devs_supported; i++) {
9531 		list_add_tail(&ioa_cfg->res_entries[i].queue, &ioa_cfg->free_res_q);
9532 		ioa_cfg->res_entries[i].ioa_cfg = ioa_cfg;
9533 	}
9534 
9535 	ioa_cfg->vpd_cbs = dma_alloc_coherent(&pdev->dev,
9536 					      sizeof(struct ipr_misc_cbs),
9537 					      &ioa_cfg->vpd_cbs_dma,
9538 					      GFP_KERNEL);
9539 
9540 	if (!ioa_cfg->vpd_cbs)
9541 		goto out_free_res_entries;
9542 
9543 	if (ipr_alloc_cmd_blks(ioa_cfg))
9544 		goto out_free_vpd_cbs;
9545 
9546 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9547 		ioa_cfg->hrrq[i].host_rrq = dma_alloc_coherent(&pdev->dev,
9548 					sizeof(u32) * ioa_cfg->hrrq[i].size,
9549 					&ioa_cfg->hrrq[i].host_rrq_dma,
9550 					GFP_KERNEL);
9551 
9552 		if (!ioa_cfg->hrrq[i].host_rrq)  {
9553 			while (--i > 0)
9554 				dma_free_coherent(&pdev->dev,
9555 					sizeof(u32) * ioa_cfg->hrrq[i].size,
9556 					ioa_cfg->hrrq[i].host_rrq,
9557 					ioa_cfg->hrrq[i].host_rrq_dma);
9558 			goto out_ipr_free_cmd_blocks;
9559 		}
9560 		ioa_cfg->hrrq[i].ioa_cfg = ioa_cfg;
9561 	}
9562 
9563 	ioa_cfg->u.cfg_table = dma_alloc_coherent(&pdev->dev,
9564 						  ioa_cfg->cfg_table_size,
9565 						  &ioa_cfg->cfg_table_dma,
9566 						  GFP_KERNEL);
9567 
9568 	if (!ioa_cfg->u.cfg_table)
9569 		goto out_free_host_rrq;
9570 
9571 	for (i = 0; i < IPR_NUM_HCAMS; i++) {
9572 		ioa_cfg->hostrcb[i] = dma_alloc_coherent(&pdev->dev,
9573 							 sizeof(struct ipr_hostrcb),
9574 							 &ioa_cfg->hostrcb_dma[i],
9575 							 GFP_KERNEL);
9576 
9577 		if (!ioa_cfg->hostrcb[i])
9578 			goto out_free_hostrcb_dma;
9579 
9580 		ioa_cfg->hostrcb[i]->hostrcb_dma =
9581 			ioa_cfg->hostrcb_dma[i] + offsetof(struct ipr_hostrcb, hcam);
9582 		ioa_cfg->hostrcb[i]->ioa_cfg = ioa_cfg;
9583 		list_add_tail(&ioa_cfg->hostrcb[i]->queue, &ioa_cfg->hostrcb_free_q);
9584 	}
9585 
9586 	ioa_cfg->trace = kzalloc(sizeof(struct ipr_trace_entry) *
9587 				 IPR_NUM_TRACE_ENTRIES, GFP_KERNEL);
9588 
9589 	if (!ioa_cfg->trace)
9590 		goto out_free_hostrcb_dma;
9591 
9592 	rc = 0;
9593 out:
9594 	LEAVE;
9595 	return rc;
9596 
9597 out_free_hostrcb_dma:
9598 	while (i-- > 0) {
9599 		dma_free_coherent(&pdev->dev, sizeof(struct ipr_hostrcb),
9600 				  ioa_cfg->hostrcb[i],
9601 				  ioa_cfg->hostrcb_dma[i]);
9602 	}
9603 	dma_free_coherent(&pdev->dev, ioa_cfg->cfg_table_size,
9604 			  ioa_cfg->u.cfg_table, ioa_cfg->cfg_table_dma);
9605 out_free_host_rrq:
9606 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
9607 		dma_free_coherent(&pdev->dev,
9608 				  sizeof(u32) * ioa_cfg->hrrq[i].size,
9609 				  ioa_cfg->hrrq[i].host_rrq,
9610 				  ioa_cfg->hrrq[i].host_rrq_dma);
9611 	}
9612 out_ipr_free_cmd_blocks:
9613 	ipr_free_cmd_blks(ioa_cfg);
9614 out_free_vpd_cbs:
9615 	dma_free_coherent(&pdev->dev, sizeof(struct ipr_misc_cbs),
9616 			  ioa_cfg->vpd_cbs, ioa_cfg->vpd_cbs_dma);
9617 out_free_res_entries:
9618 	kfree(ioa_cfg->res_entries);
9619 	goto out;
9620 }
9621 
9622 /**
9623  * ipr_initialize_bus_attr - Initialize SCSI bus attributes to default values
9624  * @ioa_cfg:	ioa config struct
9625  *
9626  * Return value:
9627  * 	none
9628  **/
ipr_initialize_bus_attr(struct ipr_ioa_cfg * ioa_cfg)9629 static void ipr_initialize_bus_attr(struct ipr_ioa_cfg *ioa_cfg)
9630 {
9631 	int i;
9632 
9633 	for (i = 0; i < IPR_MAX_NUM_BUSES; i++) {
9634 		ioa_cfg->bus_attr[i].bus = i;
9635 		ioa_cfg->bus_attr[i].qas_enabled = 0;
9636 		ioa_cfg->bus_attr[i].bus_width = IPR_DEFAULT_BUS_WIDTH;
9637 		if (ipr_max_speed < ARRAY_SIZE(ipr_max_bus_speeds))
9638 			ioa_cfg->bus_attr[i].max_xfer_rate = ipr_max_bus_speeds[ipr_max_speed];
9639 		else
9640 			ioa_cfg->bus_attr[i].max_xfer_rate = IPR_U160_SCSI_RATE;
9641 	}
9642 }
9643 
9644 /**
9645  * ipr_init_regs - Initialize IOA registers
9646  * @ioa_cfg:	ioa config struct
9647  *
9648  * Return value:
9649  *	none
9650  **/
ipr_init_regs(struct ipr_ioa_cfg * ioa_cfg)9651 static void ipr_init_regs(struct ipr_ioa_cfg *ioa_cfg)
9652 {
9653 	const struct ipr_interrupt_offsets *p;
9654 	struct ipr_interrupts *t;
9655 	void __iomem *base;
9656 
9657 	p = &ioa_cfg->chip_cfg->regs;
9658 	t = &ioa_cfg->regs;
9659 	base = ioa_cfg->hdw_dma_regs;
9660 
9661 	t->set_interrupt_mask_reg = base + p->set_interrupt_mask_reg;
9662 	t->clr_interrupt_mask_reg = base + p->clr_interrupt_mask_reg;
9663 	t->clr_interrupt_mask_reg32 = base + p->clr_interrupt_mask_reg32;
9664 	t->sense_interrupt_mask_reg = base + p->sense_interrupt_mask_reg;
9665 	t->sense_interrupt_mask_reg32 = base + p->sense_interrupt_mask_reg32;
9666 	t->clr_interrupt_reg = base + p->clr_interrupt_reg;
9667 	t->clr_interrupt_reg32 = base + p->clr_interrupt_reg32;
9668 	t->sense_interrupt_reg = base + p->sense_interrupt_reg;
9669 	t->sense_interrupt_reg32 = base + p->sense_interrupt_reg32;
9670 	t->ioarrin_reg = base + p->ioarrin_reg;
9671 	t->sense_uproc_interrupt_reg = base + p->sense_uproc_interrupt_reg;
9672 	t->sense_uproc_interrupt_reg32 = base + p->sense_uproc_interrupt_reg32;
9673 	t->set_uproc_interrupt_reg = base + p->set_uproc_interrupt_reg;
9674 	t->set_uproc_interrupt_reg32 = base + p->set_uproc_interrupt_reg32;
9675 	t->clr_uproc_interrupt_reg = base + p->clr_uproc_interrupt_reg;
9676 	t->clr_uproc_interrupt_reg32 = base + p->clr_uproc_interrupt_reg32;
9677 
9678 	if (ioa_cfg->sis64) {
9679 		t->init_feedback_reg = base + p->init_feedback_reg;
9680 		t->dump_addr_reg = base + p->dump_addr_reg;
9681 		t->dump_data_reg = base + p->dump_data_reg;
9682 		t->endian_swap_reg = base + p->endian_swap_reg;
9683 	}
9684 }
9685 
9686 /**
9687  * ipr_init_ioa_cfg - Initialize IOA config struct
9688  * @ioa_cfg:	ioa config struct
9689  * @host:		scsi host struct
9690  * @pdev:		PCI dev struct
9691  *
9692  * Return value:
9693  * 	none
9694  **/
ipr_init_ioa_cfg(struct ipr_ioa_cfg * ioa_cfg,struct Scsi_Host * host,struct pci_dev * pdev)9695 static void ipr_init_ioa_cfg(struct ipr_ioa_cfg *ioa_cfg,
9696 			     struct Scsi_Host *host, struct pci_dev *pdev)
9697 {
9698 	int i;
9699 
9700 	ioa_cfg->host = host;
9701 	ioa_cfg->pdev = pdev;
9702 	ioa_cfg->log_level = ipr_log_level;
9703 	ioa_cfg->doorbell = IPR_DOORBELL;
9704 	sprintf(ioa_cfg->eye_catcher, IPR_EYECATCHER);
9705 	sprintf(ioa_cfg->trace_start, IPR_TRACE_START_LABEL);
9706 	sprintf(ioa_cfg->cfg_table_start, IPR_CFG_TBL_START);
9707 	sprintf(ioa_cfg->resource_table_label, IPR_RES_TABLE_LABEL);
9708 	sprintf(ioa_cfg->ipr_hcam_label, IPR_HCAM_LABEL);
9709 	sprintf(ioa_cfg->ipr_cmd_label, IPR_CMD_LABEL);
9710 
9711 	INIT_LIST_HEAD(&ioa_cfg->hostrcb_free_q);
9712 	INIT_LIST_HEAD(&ioa_cfg->hostrcb_pending_q);
9713 	INIT_LIST_HEAD(&ioa_cfg->free_res_q);
9714 	INIT_LIST_HEAD(&ioa_cfg->used_res_q);
9715 	INIT_WORK(&ioa_cfg->work_q, ipr_worker_thread);
9716 	init_waitqueue_head(&ioa_cfg->reset_wait_q);
9717 	init_waitqueue_head(&ioa_cfg->msi_wait_q);
9718 	init_waitqueue_head(&ioa_cfg->eeh_wait_q);
9719 	ioa_cfg->sdt_state = INACTIVE;
9720 
9721 	ipr_initialize_bus_attr(ioa_cfg);
9722 	ioa_cfg->max_devs_supported = ipr_max_devs;
9723 
9724 	if (ioa_cfg->sis64) {
9725 		host->max_id = IPR_MAX_SIS64_TARGETS_PER_BUS;
9726 		host->max_lun = IPR_MAX_SIS64_LUNS_PER_TARGET;
9727 		if (ipr_max_devs > IPR_MAX_SIS64_DEVS)
9728 			ioa_cfg->max_devs_supported = IPR_MAX_SIS64_DEVS;
9729 		ioa_cfg->cfg_table_size = (sizeof(struct ipr_config_table_hdr64)
9730 					   + ((sizeof(struct ipr_config_table_entry64)
9731 					       * ioa_cfg->max_devs_supported)));
9732 	} else {
9733 		host->max_id = IPR_MAX_NUM_TARGETS_PER_BUS;
9734 		host->max_lun = IPR_MAX_NUM_LUNS_PER_TARGET;
9735 		if (ipr_max_devs > IPR_MAX_PHYSICAL_DEVS)
9736 			ioa_cfg->max_devs_supported = IPR_MAX_PHYSICAL_DEVS;
9737 		ioa_cfg->cfg_table_size = (sizeof(struct ipr_config_table_hdr)
9738 					   + ((sizeof(struct ipr_config_table_entry)
9739 					       * ioa_cfg->max_devs_supported)));
9740 	}
9741 
9742 	host->max_channel = IPR_VSET_BUS;
9743 	host->unique_id = host->host_no;
9744 	host->max_cmd_len = IPR_MAX_CDB_LEN;
9745 	host->can_queue = ioa_cfg->max_cmds;
9746 	pci_set_drvdata(pdev, ioa_cfg);
9747 
9748 	for (i = 0; i < ARRAY_SIZE(ioa_cfg->hrrq); i++) {
9749 		INIT_LIST_HEAD(&ioa_cfg->hrrq[i].hrrq_free_q);
9750 		INIT_LIST_HEAD(&ioa_cfg->hrrq[i].hrrq_pending_q);
9751 		spin_lock_init(&ioa_cfg->hrrq[i]._lock);
9752 		if (i == 0)
9753 			ioa_cfg->hrrq[i].lock = ioa_cfg->host->host_lock;
9754 		else
9755 			ioa_cfg->hrrq[i].lock = &ioa_cfg->hrrq[i]._lock;
9756 	}
9757 }
9758 
9759 /**
9760  * ipr_get_chip_info - Find adapter chip information
9761  * @dev_id:		PCI device id struct
9762  *
9763  * Return value:
9764  * 	ptr to chip information on success / NULL on failure
9765  **/
9766 static const struct ipr_chip_t *
ipr_get_chip_info(const struct pci_device_id * dev_id)9767 ipr_get_chip_info(const struct pci_device_id *dev_id)
9768 {
9769 	int i;
9770 
9771 	for (i = 0; i < ARRAY_SIZE(ipr_chip); i++)
9772 		if (ipr_chip[i].vendor == dev_id->vendor &&
9773 		    ipr_chip[i].device == dev_id->device)
9774 			return &ipr_chip[i];
9775 	return NULL;
9776 }
9777 
9778 /**
9779  * ipr_wait_for_pci_err_recovery - Wait for any PCI error recovery to complete
9780  *						during probe time
9781  * @ioa_cfg:	ioa config struct
9782  *
9783  * Return value:
9784  * 	None
9785  **/
ipr_wait_for_pci_err_recovery(struct ipr_ioa_cfg * ioa_cfg)9786 static void ipr_wait_for_pci_err_recovery(struct ipr_ioa_cfg *ioa_cfg)
9787 {
9788 	struct pci_dev *pdev = ioa_cfg->pdev;
9789 
9790 	if (pci_channel_offline(pdev)) {
9791 		wait_event_timeout(ioa_cfg->eeh_wait_q,
9792 				   !pci_channel_offline(pdev),
9793 				   IPR_PCI_ERROR_RECOVERY_TIMEOUT);
9794 		pci_restore_state(pdev);
9795 	}
9796 }
9797 
ipr_enable_msix(struct ipr_ioa_cfg * ioa_cfg)9798 static int ipr_enable_msix(struct ipr_ioa_cfg *ioa_cfg)
9799 {
9800 	struct msix_entry entries[IPR_MAX_MSIX_VECTORS];
9801 	int i, vectors;
9802 
9803 	for (i = 0; i < ARRAY_SIZE(entries); ++i)
9804 		entries[i].entry = i;
9805 
9806 	vectors = pci_enable_msix_range(ioa_cfg->pdev,
9807 					entries, 1, ipr_number_of_msix);
9808 	if (vectors < 0) {
9809 		ipr_wait_for_pci_err_recovery(ioa_cfg);
9810 		return vectors;
9811 	}
9812 
9813 	for (i = 0; i < vectors; i++)
9814 		ioa_cfg->vectors_info[i].vec = entries[i].vector;
9815 	ioa_cfg->nvectors = vectors;
9816 
9817 	return 0;
9818 }
9819 
ipr_enable_msi(struct ipr_ioa_cfg * ioa_cfg)9820 static int ipr_enable_msi(struct ipr_ioa_cfg *ioa_cfg)
9821 {
9822 	int i, vectors;
9823 
9824 	vectors = pci_enable_msi_range(ioa_cfg->pdev, 1, ipr_number_of_msix);
9825 	if (vectors < 0) {
9826 		ipr_wait_for_pci_err_recovery(ioa_cfg);
9827 		return vectors;
9828 	}
9829 
9830 	for (i = 0; i < vectors; i++)
9831 		ioa_cfg->vectors_info[i].vec = ioa_cfg->pdev->irq + i;
9832 	ioa_cfg->nvectors = vectors;
9833 
9834 	return 0;
9835 }
9836 
name_msi_vectors(struct ipr_ioa_cfg * ioa_cfg)9837 static void name_msi_vectors(struct ipr_ioa_cfg *ioa_cfg)
9838 {
9839 	int vec_idx, n = sizeof(ioa_cfg->vectors_info[0].desc) - 1;
9840 
9841 	for (vec_idx = 0; vec_idx < ioa_cfg->nvectors; vec_idx++) {
9842 		snprintf(ioa_cfg->vectors_info[vec_idx].desc, n,
9843 			 "host%d-%d", ioa_cfg->host->host_no, vec_idx);
9844 		ioa_cfg->vectors_info[vec_idx].
9845 			desc[strlen(ioa_cfg->vectors_info[vec_idx].desc)] = 0;
9846 	}
9847 }
9848 
ipr_request_other_msi_irqs(struct ipr_ioa_cfg * ioa_cfg)9849 static int ipr_request_other_msi_irqs(struct ipr_ioa_cfg *ioa_cfg)
9850 {
9851 	int i, rc;
9852 
9853 	for (i = 1; i < ioa_cfg->nvectors; i++) {
9854 		rc = request_irq(ioa_cfg->vectors_info[i].vec,
9855 			ipr_isr_mhrrq,
9856 			0,
9857 			ioa_cfg->vectors_info[i].desc,
9858 			&ioa_cfg->hrrq[i]);
9859 		if (rc) {
9860 			while (--i >= 0)
9861 				free_irq(ioa_cfg->vectors_info[i].vec,
9862 					&ioa_cfg->hrrq[i]);
9863 			return rc;
9864 		}
9865 	}
9866 	return 0;
9867 }
9868 
9869 /**
9870  * ipr_test_intr - Handle the interrupt generated in ipr_test_msi().
9871  * @pdev:		PCI device struct
9872  *
9873  * Description: Simply set the msi_received flag to 1 indicating that
9874  * Message Signaled Interrupts are supported.
9875  *
9876  * Return value:
9877  * 	0 on success / non-zero on failure
9878  **/
ipr_test_intr(int irq,void * devp)9879 static irqreturn_t ipr_test_intr(int irq, void *devp)
9880 {
9881 	struct ipr_ioa_cfg *ioa_cfg = (struct ipr_ioa_cfg *)devp;
9882 	unsigned long lock_flags = 0;
9883 	irqreturn_t rc = IRQ_HANDLED;
9884 
9885 	dev_info(&ioa_cfg->pdev->dev, "Received IRQ : %d\n", irq);
9886 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
9887 
9888 	ioa_cfg->msi_received = 1;
9889 	wake_up(&ioa_cfg->msi_wait_q);
9890 
9891 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
9892 	return rc;
9893 }
9894 
9895 /**
9896  * ipr_test_msi - Test for Message Signaled Interrupt (MSI) support.
9897  * @pdev:		PCI device struct
9898  *
9899  * Description: The return value from pci_enable_msi_range() can not always be
9900  * trusted.  This routine sets up and initiates a test interrupt to determine
9901  * if the interrupt is received via the ipr_test_intr() service routine.
9902  * If the tests fails, the driver will fall back to LSI.
9903  *
9904  * Return value:
9905  * 	0 on success / non-zero on failure
9906  **/
ipr_test_msi(struct ipr_ioa_cfg * ioa_cfg,struct pci_dev * pdev)9907 static int ipr_test_msi(struct ipr_ioa_cfg *ioa_cfg, struct pci_dev *pdev)
9908 {
9909 	int rc;
9910 	volatile u32 int_reg;
9911 	unsigned long lock_flags = 0;
9912 
9913 	ENTER;
9914 
9915 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
9916 	init_waitqueue_head(&ioa_cfg->msi_wait_q);
9917 	ioa_cfg->msi_received = 0;
9918 	ipr_mask_and_clear_interrupts(ioa_cfg, ~IPR_PCII_IOA_TRANS_TO_OPER);
9919 	writel(IPR_PCII_IO_DEBUG_ACKNOWLEDGE, ioa_cfg->regs.clr_interrupt_mask_reg32);
9920 	int_reg = readl(ioa_cfg->regs.sense_interrupt_mask_reg);
9921 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
9922 
9923 	if (ioa_cfg->intr_flag == IPR_USE_MSIX)
9924 		rc = request_irq(ioa_cfg->vectors_info[0].vec, ipr_test_intr, 0, IPR_NAME, ioa_cfg);
9925 	else
9926 		rc = request_irq(pdev->irq, ipr_test_intr, 0, IPR_NAME, ioa_cfg);
9927 	if (rc) {
9928 		dev_err(&pdev->dev, "Can not assign irq %d\n", pdev->irq);
9929 		return rc;
9930 	} else if (ipr_debug)
9931 		dev_info(&pdev->dev, "IRQ assigned: %d\n", pdev->irq);
9932 
9933 	writel(IPR_PCII_IO_DEBUG_ACKNOWLEDGE, ioa_cfg->regs.sense_interrupt_reg32);
9934 	int_reg = readl(ioa_cfg->regs.sense_interrupt_reg);
9935 	wait_event_timeout(ioa_cfg->msi_wait_q, ioa_cfg->msi_received, HZ);
9936 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
9937 	ipr_mask_and_clear_interrupts(ioa_cfg, ~IPR_PCII_IOA_TRANS_TO_OPER);
9938 
9939 	if (!ioa_cfg->msi_received) {
9940 		/* MSI test failed */
9941 		dev_info(&pdev->dev, "MSI test failed.  Falling back to LSI.\n");
9942 		rc = -EOPNOTSUPP;
9943 	} else if (ipr_debug)
9944 		dev_info(&pdev->dev, "MSI test succeeded.\n");
9945 
9946 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
9947 
9948 	if (ioa_cfg->intr_flag == IPR_USE_MSIX)
9949 		free_irq(ioa_cfg->vectors_info[0].vec, ioa_cfg);
9950 	else
9951 		free_irq(pdev->irq, ioa_cfg);
9952 
9953 	LEAVE;
9954 
9955 	return rc;
9956 }
9957 
9958  /* ipr_probe_ioa - Allocates memory and does first stage of initialization
9959  * @pdev:		PCI device struct
9960  * @dev_id:		PCI device id struct
9961  *
9962  * Return value:
9963  * 	0 on success / non-zero on failure
9964  **/
ipr_probe_ioa(struct pci_dev * pdev,const struct pci_device_id * dev_id)9965 static int ipr_probe_ioa(struct pci_dev *pdev,
9966 			 const struct pci_device_id *dev_id)
9967 {
9968 	struct ipr_ioa_cfg *ioa_cfg;
9969 	struct Scsi_Host *host;
9970 	unsigned long ipr_regs_pci;
9971 	void __iomem *ipr_regs;
9972 	int rc = PCIBIOS_SUCCESSFUL;
9973 	volatile u32 mask, uproc, interrupts;
9974 	unsigned long lock_flags, driver_lock_flags;
9975 
9976 	ENTER;
9977 
9978 	dev_info(&pdev->dev, "Found IOA with IRQ: %d\n", pdev->irq);
9979 	host = scsi_host_alloc(&driver_template, sizeof(*ioa_cfg));
9980 
9981 	if (!host) {
9982 		dev_err(&pdev->dev, "call to scsi_host_alloc failed!\n");
9983 		rc = -ENOMEM;
9984 		goto out;
9985 	}
9986 
9987 	ioa_cfg = (struct ipr_ioa_cfg *)host->hostdata;
9988 	memset(ioa_cfg, 0, sizeof(struct ipr_ioa_cfg));
9989 	ata_host_init(&ioa_cfg->ata_host, &pdev->dev, &ipr_sata_ops);
9990 
9991 	ioa_cfg->ipr_chip = ipr_get_chip_info(dev_id);
9992 
9993 	if (!ioa_cfg->ipr_chip) {
9994 		dev_err(&pdev->dev, "Unknown adapter chipset 0x%04X 0x%04X\n",
9995 			dev_id->vendor, dev_id->device);
9996 		goto out_scsi_host_put;
9997 	}
9998 
9999 	/* set SIS 32 or SIS 64 */
10000 	ioa_cfg->sis64 = ioa_cfg->ipr_chip->sis_type == IPR_SIS64 ? 1 : 0;
10001 	ioa_cfg->chip_cfg = ioa_cfg->ipr_chip->cfg;
10002 	ioa_cfg->clear_isr = ioa_cfg->chip_cfg->clear_isr;
10003 	ioa_cfg->max_cmds = ioa_cfg->chip_cfg->max_cmds;
10004 
10005 	if (ipr_transop_timeout)
10006 		ioa_cfg->transop_timeout = ipr_transop_timeout;
10007 	else if (dev_id->driver_data & IPR_USE_LONG_TRANSOP_TIMEOUT)
10008 		ioa_cfg->transop_timeout = IPR_LONG_OPERATIONAL_TIMEOUT;
10009 	else
10010 		ioa_cfg->transop_timeout = IPR_OPERATIONAL_TIMEOUT;
10011 
10012 	ioa_cfg->revid = pdev->revision;
10013 
10014 	ipr_init_ioa_cfg(ioa_cfg, host, pdev);
10015 
10016 	ipr_regs_pci = pci_resource_start(pdev, 0);
10017 
10018 	rc = pci_request_regions(pdev, IPR_NAME);
10019 	if (rc < 0) {
10020 		dev_err(&pdev->dev,
10021 			"Couldn't register memory range of registers\n");
10022 		goto out_scsi_host_put;
10023 	}
10024 
10025 	rc = pci_enable_device(pdev);
10026 
10027 	if (rc || pci_channel_offline(pdev)) {
10028 		if (pci_channel_offline(pdev)) {
10029 			ipr_wait_for_pci_err_recovery(ioa_cfg);
10030 			rc = pci_enable_device(pdev);
10031 		}
10032 
10033 		if (rc) {
10034 			dev_err(&pdev->dev, "Cannot enable adapter\n");
10035 			ipr_wait_for_pci_err_recovery(ioa_cfg);
10036 			goto out_release_regions;
10037 		}
10038 	}
10039 
10040 	ipr_regs = pci_ioremap_bar(pdev, 0);
10041 
10042 	if (!ipr_regs) {
10043 		dev_err(&pdev->dev,
10044 			"Couldn't map memory range of registers\n");
10045 		rc = -ENOMEM;
10046 		goto out_disable;
10047 	}
10048 
10049 	ioa_cfg->hdw_dma_regs = ipr_regs;
10050 	ioa_cfg->hdw_dma_regs_pci = ipr_regs_pci;
10051 	ioa_cfg->ioa_mailbox = ioa_cfg->chip_cfg->mailbox + ipr_regs;
10052 
10053 	ipr_init_regs(ioa_cfg);
10054 
10055 	if (ioa_cfg->sis64) {
10056 		rc = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64));
10057 		if (rc < 0) {
10058 			dev_dbg(&pdev->dev, "Failed to set 64 bit DMA mask\n");
10059 			rc = dma_set_mask_and_coherent(&pdev->dev,
10060 						       DMA_BIT_MASK(32));
10061 		}
10062 	} else
10063 		rc = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32));
10064 
10065 	if (rc < 0) {
10066 		dev_err(&pdev->dev, "Failed to set DMA mask\n");
10067 		goto cleanup_nomem;
10068 	}
10069 
10070 	rc = pci_write_config_byte(pdev, PCI_CACHE_LINE_SIZE,
10071 				   ioa_cfg->chip_cfg->cache_line_size);
10072 
10073 	if (rc != PCIBIOS_SUCCESSFUL) {
10074 		dev_err(&pdev->dev, "Write of cache line size failed\n");
10075 		ipr_wait_for_pci_err_recovery(ioa_cfg);
10076 		rc = -EIO;
10077 		goto cleanup_nomem;
10078 	}
10079 
10080 	/* Issue MMIO read to ensure card is not in EEH */
10081 	interrupts = readl(ioa_cfg->regs.sense_interrupt_reg);
10082 	ipr_wait_for_pci_err_recovery(ioa_cfg);
10083 
10084 	if (ipr_number_of_msix > IPR_MAX_MSIX_VECTORS) {
10085 		dev_err(&pdev->dev, "The max number of MSIX is %d\n",
10086 			IPR_MAX_MSIX_VECTORS);
10087 		ipr_number_of_msix = IPR_MAX_MSIX_VECTORS;
10088 	}
10089 
10090 	if (ioa_cfg->ipr_chip->intr_type == IPR_USE_MSI &&
10091 			ipr_enable_msix(ioa_cfg) == 0)
10092 		ioa_cfg->intr_flag = IPR_USE_MSIX;
10093 	else if (ioa_cfg->ipr_chip->intr_type == IPR_USE_MSI &&
10094 			ipr_enable_msi(ioa_cfg) == 0)
10095 		ioa_cfg->intr_flag = IPR_USE_MSI;
10096 	else {
10097 		ioa_cfg->intr_flag = IPR_USE_LSI;
10098 		ioa_cfg->nvectors = 1;
10099 		dev_info(&pdev->dev, "Cannot enable MSI.\n");
10100 	}
10101 
10102 	pci_set_master(pdev);
10103 
10104 	if (pci_channel_offline(pdev)) {
10105 		ipr_wait_for_pci_err_recovery(ioa_cfg);
10106 		pci_set_master(pdev);
10107 		if (pci_channel_offline(pdev)) {
10108 			rc = -EIO;
10109 			goto out_msi_disable;
10110 		}
10111 	}
10112 
10113 	if (ioa_cfg->intr_flag == IPR_USE_MSI ||
10114 	    ioa_cfg->intr_flag == IPR_USE_MSIX) {
10115 		rc = ipr_test_msi(ioa_cfg, pdev);
10116 		if (rc == -EOPNOTSUPP) {
10117 			ipr_wait_for_pci_err_recovery(ioa_cfg);
10118 			if (ioa_cfg->intr_flag == IPR_USE_MSI) {
10119 				ioa_cfg->intr_flag &= ~IPR_USE_MSI;
10120 				pci_disable_msi(pdev);
10121 			 } else if (ioa_cfg->intr_flag == IPR_USE_MSIX) {
10122 				ioa_cfg->intr_flag &= ~IPR_USE_MSIX;
10123 				pci_disable_msix(pdev);
10124 			}
10125 
10126 			ioa_cfg->intr_flag = IPR_USE_LSI;
10127 			ioa_cfg->nvectors = 1;
10128 		}
10129 		else if (rc)
10130 			goto out_msi_disable;
10131 		else {
10132 			if (ioa_cfg->intr_flag == IPR_USE_MSI)
10133 				dev_info(&pdev->dev,
10134 					"Request for %d MSIs succeeded with starting IRQ: %d\n",
10135 					ioa_cfg->nvectors, pdev->irq);
10136 			else if (ioa_cfg->intr_flag == IPR_USE_MSIX)
10137 				dev_info(&pdev->dev,
10138 					"Request for %d MSIXs succeeded.",
10139 					ioa_cfg->nvectors);
10140 		}
10141 	}
10142 
10143 	ioa_cfg->hrrq_num = min3(ioa_cfg->nvectors,
10144 				(unsigned int)num_online_cpus(),
10145 				(unsigned int)IPR_MAX_HRRQ_NUM);
10146 
10147 	if ((rc = ipr_save_pcix_cmd_reg(ioa_cfg)))
10148 		goto out_msi_disable;
10149 
10150 	if ((rc = ipr_set_pcix_cmd_reg(ioa_cfg)))
10151 		goto out_msi_disable;
10152 
10153 	rc = ipr_alloc_mem(ioa_cfg);
10154 	if (rc < 0) {
10155 		dev_err(&pdev->dev,
10156 			"Couldn't allocate enough memory for device driver!\n");
10157 		goto out_msi_disable;
10158 	}
10159 
10160 	/* Save away PCI config space for use following IOA reset */
10161 	rc = pci_save_state(pdev);
10162 
10163 	if (rc != PCIBIOS_SUCCESSFUL) {
10164 		dev_err(&pdev->dev, "Failed to save PCI config space\n");
10165 		rc = -EIO;
10166 		goto cleanup_nolog;
10167 	}
10168 
10169 	/*
10170 	 * If HRRQ updated interrupt is not masked, or reset alert is set,
10171 	 * the card is in an unknown state and needs a hard reset
10172 	 */
10173 	mask = readl(ioa_cfg->regs.sense_interrupt_mask_reg32);
10174 	interrupts = readl(ioa_cfg->regs.sense_interrupt_reg32);
10175 	uproc = readl(ioa_cfg->regs.sense_uproc_interrupt_reg32);
10176 	if ((mask & IPR_PCII_HRRQ_UPDATED) == 0 || (uproc & IPR_UPROCI_RESET_ALERT))
10177 		ioa_cfg->needs_hard_reset = 1;
10178 	if ((interrupts & IPR_PCII_ERROR_INTERRUPTS) || reset_devices)
10179 		ioa_cfg->needs_hard_reset = 1;
10180 	if (interrupts & IPR_PCII_IOA_UNIT_CHECKED)
10181 		ioa_cfg->ioa_unit_checked = 1;
10182 
10183 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
10184 	ipr_mask_and_clear_interrupts(ioa_cfg, ~IPR_PCII_IOA_TRANS_TO_OPER);
10185 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
10186 
10187 	if (ioa_cfg->intr_flag == IPR_USE_MSI
10188 			|| ioa_cfg->intr_flag == IPR_USE_MSIX) {
10189 		name_msi_vectors(ioa_cfg);
10190 		rc = request_irq(ioa_cfg->vectors_info[0].vec, ipr_isr,
10191 			0,
10192 			ioa_cfg->vectors_info[0].desc,
10193 			&ioa_cfg->hrrq[0]);
10194 		if (!rc)
10195 			rc = ipr_request_other_msi_irqs(ioa_cfg);
10196 	} else {
10197 		rc = request_irq(pdev->irq, ipr_isr,
10198 			 IRQF_SHARED,
10199 			 IPR_NAME, &ioa_cfg->hrrq[0]);
10200 	}
10201 	if (rc) {
10202 		dev_err(&pdev->dev, "Couldn't register IRQ %d! rc=%d\n",
10203 			pdev->irq, rc);
10204 		goto cleanup_nolog;
10205 	}
10206 
10207 	if ((dev_id->driver_data & IPR_USE_PCI_WARM_RESET) ||
10208 	    (dev_id->device == PCI_DEVICE_ID_IBM_OBSIDIAN_E && !ioa_cfg->revid)) {
10209 		ioa_cfg->needs_warm_reset = 1;
10210 		ioa_cfg->reset = ipr_reset_slot_reset;
10211 
10212 		ioa_cfg->reset_work_q = alloc_ordered_workqueue("ipr_reset_%d",
10213 								WQ_MEM_RECLAIM, host->host_no);
10214 
10215 		if (!ioa_cfg->reset_work_q) {
10216 			dev_err(&pdev->dev, "Couldn't register reset workqueue\n");
10217 			goto out_free_irq;
10218 		}
10219 	} else
10220 		ioa_cfg->reset = ipr_reset_start_bist;
10221 
10222 	spin_lock_irqsave(&ipr_driver_lock, driver_lock_flags);
10223 	list_add_tail(&ioa_cfg->queue, &ipr_ioa_head);
10224 	spin_unlock_irqrestore(&ipr_driver_lock, driver_lock_flags);
10225 
10226 	LEAVE;
10227 out:
10228 	return rc;
10229 
10230 out_free_irq:
10231 	ipr_free_irqs(ioa_cfg);
10232 cleanup_nolog:
10233 	ipr_free_mem(ioa_cfg);
10234 out_msi_disable:
10235 	ipr_wait_for_pci_err_recovery(ioa_cfg);
10236 	if (ioa_cfg->intr_flag == IPR_USE_MSI)
10237 		pci_disable_msi(pdev);
10238 	else if (ioa_cfg->intr_flag == IPR_USE_MSIX)
10239 		pci_disable_msix(pdev);
10240 cleanup_nomem:
10241 	iounmap(ipr_regs);
10242 out_disable:
10243 	pci_disable_device(pdev);
10244 out_release_regions:
10245 	pci_release_regions(pdev);
10246 out_scsi_host_put:
10247 	scsi_host_put(host);
10248 	goto out;
10249 }
10250 
10251 /**
10252  * ipr_initiate_ioa_bringdown - Bring down an adapter
10253  * @ioa_cfg:		ioa config struct
10254  * @shutdown_type:	shutdown type
10255  *
10256  * Description: This function will initiate bringing down the adapter.
10257  * This consists of issuing an IOA shutdown to the adapter
10258  * to flush the cache, and running BIST.
10259  * If the caller needs to wait on the completion of the reset,
10260  * the caller must sleep on the reset_wait_q.
10261  *
10262  * Return value:
10263  * 	none
10264  **/
ipr_initiate_ioa_bringdown(struct ipr_ioa_cfg * ioa_cfg,enum ipr_shutdown_type shutdown_type)10265 static void ipr_initiate_ioa_bringdown(struct ipr_ioa_cfg *ioa_cfg,
10266 				       enum ipr_shutdown_type shutdown_type)
10267 {
10268 	ENTER;
10269 	if (ioa_cfg->sdt_state == WAIT_FOR_DUMP)
10270 		ioa_cfg->sdt_state = ABORT_DUMP;
10271 	ioa_cfg->reset_retries = 0;
10272 	ioa_cfg->in_ioa_bringdown = 1;
10273 	ipr_initiate_ioa_reset(ioa_cfg, shutdown_type);
10274 	LEAVE;
10275 }
10276 
10277 /**
10278  * __ipr_remove - Remove a single adapter
10279  * @pdev:	pci device struct
10280  *
10281  * Adapter hot plug remove entry point.
10282  *
10283  * Return value:
10284  * 	none
10285  **/
__ipr_remove(struct pci_dev * pdev)10286 static void __ipr_remove(struct pci_dev *pdev)
10287 {
10288 	unsigned long host_lock_flags = 0;
10289 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
10290 	int i;
10291 	unsigned long driver_lock_flags;
10292 	ENTER;
10293 
10294 	spin_lock_irqsave(ioa_cfg->host->host_lock, host_lock_flags);
10295 	while (ioa_cfg->in_reset_reload) {
10296 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, host_lock_flags);
10297 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
10298 		spin_lock_irqsave(ioa_cfg->host->host_lock, host_lock_flags);
10299 	}
10300 
10301 	for (i = 0; i < ioa_cfg->hrrq_num; i++) {
10302 		spin_lock(&ioa_cfg->hrrq[i]._lock);
10303 		ioa_cfg->hrrq[i].removing_ioa = 1;
10304 		spin_unlock(&ioa_cfg->hrrq[i]._lock);
10305 	}
10306 	wmb();
10307 	ipr_initiate_ioa_bringdown(ioa_cfg, IPR_SHUTDOWN_NORMAL);
10308 
10309 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, host_lock_flags);
10310 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
10311 	flush_work(&ioa_cfg->work_q);
10312 	if (ioa_cfg->reset_work_q)
10313 		flush_workqueue(ioa_cfg->reset_work_q);
10314 	INIT_LIST_HEAD(&ioa_cfg->used_res_q);
10315 	spin_lock_irqsave(ioa_cfg->host->host_lock, host_lock_flags);
10316 
10317 	spin_lock_irqsave(&ipr_driver_lock, driver_lock_flags);
10318 	list_del(&ioa_cfg->queue);
10319 	spin_unlock_irqrestore(&ipr_driver_lock, driver_lock_flags);
10320 
10321 	if (ioa_cfg->sdt_state == ABORT_DUMP)
10322 		ioa_cfg->sdt_state = WAIT_FOR_DUMP;
10323 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, host_lock_flags);
10324 
10325 	ipr_free_all_resources(ioa_cfg);
10326 
10327 	LEAVE;
10328 }
10329 
10330 /**
10331  * ipr_remove - IOA hot plug remove entry point
10332  * @pdev:	pci device struct
10333  *
10334  * Adapter hot plug remove entry point.
10335  *
10336  * Return value:
10337  * 	none
10338  **/
ipr_remove(struct pci_dev * pdev)10339 static void ipr_remove(struct pci_dev *pdev)
10340 {
10341 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
10342 
10343 	ENTER;
10344 
10345 	ipr_remove_trace_file(&ioa_cfg->host->shost_dev.kobj,
10346 			      &ipr_trace_attr);
10347 	ipr_remove_dump_file(&ioa_cfg->host->shost_dev.kobj,
10348 			     &ipr_dump_attr);
10349 	scsi_remove_host(ioa_cfg->host);
10350 
10351 	__ipr_remove(pdev);
10352 
10353 	LEAVE;
10354 }
10355 
10356 /**
10357  * ipr_probe - Adapter hot plug add entry point
10358  *
10359  * Return value:
10360  * 	0 on success / non-zero on failure
10361  **/
ipr_probe(struct pci_dev * pdev,const struct pci_device_id * dev_id)10362 static int ipr_probe(struct pci_dev *pdev, const struct pci_device_id *dev_id)
10363 {
10364 	struct ipr_ioa_cfg *ioa_cfg;
10365 	int rc, i;
10366 
10367 	rc = ipr_probe_ioa(pdev, dev_id);
10368 
10369 	if (rc)
10370 		return rc;
10371 
10372 	ioa_cfg = pci_get_drvdata(pdev);
10373 	rc = ipr_probe_ioa_part2(ioa_cfg);
10374 
10375 	if (rc) {
10376 		__ipr_remove(pdev);
10377 		return rc;
10378 	}
10379 
10380 	rc = scsi_add_host(ioa_cfg->host, &pdev->dev);
10381 
10382 	if (rc) {
10383 		__ipr_remove(pdev);
10384 		return rc;
10385 	}
10386 
10387 	rc = ipr_create_trace_file(&ioa_cfg->host->shost_dev.kobj,
10388 				   &ipr_trace_attr);
10389 
10390 	if (rc) {
10391 		scsi_remove_host(ioa_cfg->host);
10392 		__ipr_remove(pdev);
10393 		return rc;
10394 	}
10395 
10396 	rc = ipr_create_dump_file(&ioa_cfg->host->shost_dev.kobj,
10397 				   &ipr_dump_attr);
10398 
10399 	if (rc) {
10400 		ipr_remove_trace_file(&ioa_cfg->host->shost_dev.kobj,
10401 				      &ipr_trace_attr);
10402 		scsi_remove_host(ioa_cfg->host);
10403 		__ipr_remove(pdev);
10404 		return rc;
10405 	}
10406 
10407 	scsi_scan_host(ioa_cfg->host);
10408 	ioa_cfg->iopoll_weight = ioa_cfg->chip_cfg->iopoll_weight;
10409 
10410 	if (ioa_cfg->iopoll_weight && ioa_cfg->sis64 && ioa_cfg->nvectors > 1) {
10411 		for (i = 1; i < ioa_cfg->hrrq_num; i++) {
10412 			blk_iopoll_init(&ioa_cfg->hrrq[i].iopoll,
10413 					ioa_cfg->iopoll_weight, ipr_iopoll);
10414 			blk_iopoll_enable(&ioa_cfg->hrrq[i].iopoll);
10415 		}
10416 	}
10417 
10418 	schedule_work(&ioa_cfg->work_q);
10419 	return 0;
10420 }
10421 
10422 /**
10423  * ipr_shutdown - Shutdown handler.
10424  * @pdev:	pci device struct
10425  *
10426  * This function is invoked upon system shutdown/reboot. It will issue
10427  * an adapter shutdown to the adapter to flush the write cache.
10428  *
10429  * Return value:
10430  * 	none
10431  **/
ipr_shutdown(struct pci_dev * pdev)10432 static void ipr_shutdown(struct pci_dev *pdev)
10433 {
10434 	struct ipr_ioa_cfg *ioa_cfg = pci_get_drvdata(pdev);
10435 	unsigned long lock_flags = 0;
10436 	enum ipr_shutdown_type shutdown_type = IPR_SHUTDOWN_NORMAL;
10437 	int i;
10438 
10439 	spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
10440 	if (ioa_cfg->iopoll_weight && ioa_cfg->sis64 && ioa_cfg->nvectors > 1) {
10441 		ioa_cfg->iopoll_weight = 0;
10442 		for (i = 1; i < ioa_cfg->hrrq_num; i++)
10443 			blk_iopoll_disable(&ioa_cfg->hrrq[i].iopoll);
10444 	}
10445 
10446 	while (ioa_cfg->in_reset_reload) {
10447 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
10448 		wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
10449 		spin_lock_irqsave(ioa_cfg->host->host_lock, lock_flags);
10450 	}
10451 
10452 	if (ipr_fast_reboot && system_state == SYSTEM_RESTART && ioa_cfg->sis64)
10453 		shutdown_type = IPR_SHUTDOWN_QUIESCE;
10454 
10455 	ipr_initiate_ioa_bringdown(ioa_cfg, shutdown_type);
10456 	spin_unlock_irqrestore(ioa_cfg->host->host_lock, lock_flags);
10457 	wait_event(ioa_cfg->reset_wait_q, !ioa_cfg->in_reset_reload);
10458 	if (ipr_fast_reboot && system_state == SYSTEM_RESTART && ioa_cfg->sis64) {
10459 		ipr_free_irqs(ioa_cfg);
10460 		pci_disable_device(ioa_cfg->pdev);
10461 	}
10462 }
10463 
10464 static struct pci_device_id ipr_pci_table[] = {
10465 	{ PCI_VENDOR_ID_MYLEX, PCI_DEVICE_ID_IBM_GEMSTONE,
10466 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_5702, 0, 0, 0 },
10467 	{ PCI_VENDOR_ID_MYLEX, PCI_DEVICE_ID_IBM_GEMSTONE,
10468 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_5703, 0, 0, 0 },
10469 	{ PCI_VENDOR_ID_MYLEX, PCI_DEVICE_ID_IBM_GEMSTONE,
10470 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_573D, 0, 0, 0 },
10471 	{ PCI_VENDOR_ID_MYLEX, PCI_DEVICE_ID_IBM_GEMSTONE,
10472 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_573E, 0, 0, 0 },
10473 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CITRINE,
10474 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_571B, 0, 0, 0 },
10475 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CITRINE,
10476 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572E, 0, 0, 0 },
10477 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CITRINE,
10478 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_571A, 0, 0, 0 },
10479 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CITRINE,
10480 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_575B, 0, 0,
10481 		IPR_USE_LONG_TRANSOP_TIMEOUT },
10482 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_OBSIDIAN,
10483 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572A, 0, 0, 0 },
10484 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_OBSIDIAN,
10485 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572B, 0, 0,
10486 	      IPR_USE_LONG_TRANSOP_TIMEOUT },
10487 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_OBSIDIAN,
10488 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_575C, 0, 0,
10489 	      IPR_USE_LONG_TRANSOP_TIMEOUT },
10490 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN,
10491 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572A, 0, 0, 0 },
10492 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN,
10493 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572B, 0, 0,
10494 	      IPR_USE_LONG_TRANSOP_TIMEOUT},
10495 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN,
10496 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_575C, 0, 0,
10497 	      IPR_USE_LONG_TRANSOP_TIMEOUT },
10498 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN_E,
10499 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_574E, 0, 0,
10500 	      IPR_USE_LONG_TRANSOP_TIMEOUT },
10501 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN_E,
10502 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B3, 0, 0, 0 },
10503 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN_E,
10504 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57CC, 0, 0, 0 },
10505 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_OBSIDIAN_E,
10506 	      PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B7, 0, 0,
10507 	      IPR_USE_LONG_TRANSOP_TIMEOUT | IPR_USE_PCI_WARM_RESET },
10508 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_SNIPE,
10509 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_2780, 0, 0, 0 },
10510 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_SCAMP,
10511 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_571E, 0, 0, 0 },
10512 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_SCAMP,
10513 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_571F, 0, 0,
10514 		IPR_USE_LONG_TRANSOP_TIMEOUT },
10515 	{ PCI_VENDOR_ID_ADAPTEC2, PCI_DEVICE_ID_ADAPTEC2_SCAMP,
10516 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_572F, 0, 0,
10517 		IPR_USE_LONG_TRANSOP_TIMEOUT },
10518 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10519 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B5, 0, 0, 0 },
10520 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10521 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_574D, 0, 0, 0 },
10522 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10523 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B2, 0, 0, 0 },
10524 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10525 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57C0, 0, 0, 0 },
10526 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10527 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57C3, 0, 0, 0 },
10528 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROC_FPGA_E2,
10529 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57C4, 0, 0, 0 },
10530 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10531 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B4, 0, 0, 0 },
10532 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10533 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57B1, 0, 0, 0 },
10534 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10535 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57C6, 0, 0, 0 },
10536 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10537 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57C8, 0, 0, 0 },
10538 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10539 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57CE, 0, 0, 0 },
10540 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10541 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57D5, 0, 0, 0 },
10542 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10543 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57D6, 0, 0, 0 },
10544 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10545 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57D7, 0, 0, 0 },
10546 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10547 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57D8, 0, 0, 0 },
10548 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10549 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57D9, 0, 0, 0 },
10550 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10551 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57DA, 0, 0, 0 },
10552 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10553 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57EB, 0, 0, 0 },
10554 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10555 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57EC, 0, 0, 0 },
10556 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10557 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57ED, 0, 0, 0 },
10558 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10559 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57EE, 0, 0, 0 },
10560 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10561 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57EF, 0, 0, 0 },
10562 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10563 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_57F0, 0, 0, 0 },
10564 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10565 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_2CCA, 0, 0, 0 },
10566 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10567 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_2CD2, 0, 0, 0 },
10568 	{ PCI_VENDOR_ID_IBM, PCI_DEVICE_ID_IBM_CROCODILE,
10569 		PCI_VENDOR_ID_IBM, IPR_SUBS_DEV_ID_2CCD, 0, 0, 0 },
10570 	{ }
10571 };
10572 MODULE_DEVICE_TABLE(pci, ipr_pci_table);
10573 
10574 static const struct pci_error_handlers ipr_err_handler = {
10575 	.error_detected = ipr_pci_error_detected,
10576 	.mmio_enabled = ipr_pci_mmio_enabled,
10577 	.slot_reset = ipr_pci_slot_reset,
10578 };
10579 
10580 static struct pci_driver ipr_driver = {
10581 	.name = IPR_NAME,
10582 	.id_table = ipr_pci_table,
10583 	.probe = ipr_probe,
10584 	.remove = ipr_remove,
10585 	.shutdown = ipr_shutdown,
10586 	.err_handler = &ipr_err_handler,
10587 };
10588 
10589 /**
10590  * ipr_halt_done - Shutdown prepare completion
10591  *
10592  * Return value:
10593  * 	none
10594  **/
ipr_halt_done(struct ipr_cmnd * ipr_cmd)10595 static void ipr_halt_done(struct ipr_cmnd *ipr_cmd)
10596 {
10597 	list_add_tail(&ipr_cmd->queue, &ipr_cmd->hrrq->hrrq_free_q);
10598 }
10599 
10600 /**
10601  * ipr_halt - Issue shutdown prepare to all adapters
10602  *
10603  * Return value:
10604  * 	NOTIFY_OK on success / NOTIFY_DONE on failure
10605  **/
ipr_halt(struct notifier_block * nb,ulong event,void * buf)10606 static int ipr_halt(struct notifier_block *nb, ulong event, void *buf)
10607 {
10608 	struct ipr_cmnd *ipr_cmd;
10609 	struct ipr_ioa_cfg *ioa_cfg;
10610 	unsigned long flags = 0, driver_lock_flags;
10611 
10612 	if (event != SYS_RESTART && event != SYS_HALT && event != SYS_POWER_OFF)
10613 		return NOTIFY_DONE;
10614 
10615 	spin_lock_irqsave(&ipr_driver_lock, driver_lock_flags);
10616 
10617 	list_for_each_entry(ioa_cfg, &ipr_ioa_head, queue) {
10618 		spin_lock_irqsave(ioa_cfg->host->host_lock, flags);
10619 		if (!ioa_cfg->hrrq[IPR_INIT_HRRQ].allow_cmds ||
10620 		    (ipr_fast_reboot && event == SYS_RESTART && ioa_cfg->sis64)) {
10621 			spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
10622 			continue;
10623 		}
10624 
10625 		ipr_cmd = ipr_get_free_ipr_cmnd(ioa_cfg);
10626 		ipr_cmd->ioarcb.res_handle = cpu_to_be32(IPR_IOA_RES_HANDLE);
10627 		ipr_cmd->ioarcb.cmd_pkt.request_type = IPR_RQTYPE_IOACMD;
10628 		ipr_cmd->ioarcb.cmd_pkt.cdb[0] = IPR_IOA_SHUTDOWN;
10629 		ipr_cmd->ioarcb.cmd_pkt.cdb[1] = IPR_SHUTDOWN_PREPARE_FOR_NORMAL;
10630 
10631 		ipr_do_req(ipr_cmd, ipr_halt_done, ipr_timeout, IPR_DEVICE_RESET_TIMEOUT);
10632 		spin_unlock_irqrestore(ioa_cfg->host->host_lock, flags);
10633 	}
10634 	spin_unlock_irqrestore(&ipr_driver_lock, driver_lock_flags);
10635 
10636 	return NOTIFY_OK;
10637 }
10638 
10639 static struct notifier_block ipr_notifier = {
10640 	ipr_halt, NULL, 0
10641 };
10642 
10643 /**
10644  * ipr_init - Module entry point
10645  *
10646  * Return value:
10647  * 	0 on success / negative value on failure
10648  **/
ipr_init(void)10649 static int __init ipr_init(void)
10650 {
10651 	ipr_info("IBM Power RAID SCSI Device Driver version: %s %s\n",
10652 		 IPR_DRIVER_VERSION, IPR_DRIVER_DATE);
10653 
10654 	register_reboot_notifier(&ipr_notifier);
10655 	return pci_register_driver(&ipr_driver);
10656 }
10657 
10658 /**
10659  * ipr_exit - Module unload
10660  *
10661  * Module unload entry point.
10662  *
10663  * Return value:
10664  * 	none
10665  **/
ipr_exit(void)10666 static void __exit ipr_exit(void)
10667 {
10668 	unregister_reboot_notifier(&ipr_notifier);
10669 	pci_unregister_driver(&ipr_driver);
10670 }
10671 
10672 module_init(ipr_init);
10673 module_exit(ipr_exit);
10674