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[SCSI] megaraid_sas: support for poll_mode_io (reduced interrupt)
[net-next-2.6.git] / drivers / scsi / megaraid / megaraid_sas.c
CommitLineData
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1/*
2 *
3 * Linux MegaRAID driver for SAS based RAID controllers
4 *
5 * Copyright (c) 2003-2005 LSI Logic Corporation.
6 *
7 * This program is free software; you can redistribute it and/or
8 * modify it under the terms of the GNU General Public License
9 * as published by the Free Software Foundation; either version
10 * 2 of the License, or (at your option) any later version.
11 *
12 * FILE : megaraid_sas.c
05e9ebbe 13 * Version : v00.00.03.10-rc5
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14 *
15 * Authors:
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16 * (email-id : megaraidlinux@lsi.com)
17 * Sreenivas Bagalkote
18 * Sumant Patro
19 * Bo Yang
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20 *
21 * List of supported controllers
22 *
23 * OEM Product Name VID DID SSVID SSID
24 * --- ------------ --- --- ---- ----
25 */
26
27#include <linux/kernel.h>
28#include <linux/types.h>
29#include <linux/pci.h>
30#include <linux/list.h>
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31#include <linux/moduleparam.h>
32#include <linux/module.h>
33#include <linux/spinlock.h>
e5a69e27 34#include <linux/mutex.h>
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35#include <linux/interrupt.h>
36#include <linux/delay.h>
37#include <linux/uio.h>
38#include <asm/uaccess.h>
43399236 39#include <linux/fs.h>
c4a3e0a5 40#include <linux/compat.h>
cf62a0a5 41#include <linux/blkdev.h>
0b950672 42#include <linux/mutex.h>
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43
44#include <scsi/scsi.h>
45#include <scsi/scsi_cmnd.h>
46#include <scsi/scsi_device.h>
47#include <scsi/scsi_host.h>
48#include "megaraid_sas.h"
49
ad84db2e 50/*
51 * poll_mode_io:1- schedule complete completion from q cmd
52 */
53static unsigned int poll_mode_io;
54module_param_named(poll_mode_io, poll_mode_io, int, 0);
55MODULE_PARM_DESC(poll_mode_io,
56 "Complete cmds from IO path, (default=0)");
57
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58MODULE_LICENSE("GPL");
59MODULE_VERSION(MEGASAS_VERSION);
3d6d174a 60MODULE_AUTHOR("megaraidlinux@lsi.com");
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61MODULE_DESCRIPTION("LSI Logic MegaRAID SAS Driver");
62
63/*
64 * PCI ID table for all supported controllers
65 */
66static struct pci_device_id megasas_pci_table[] = {
67
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68 {PCI_DEVICE(PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_SAS1064R)},
69 /* xscale IOP */
70 {PCI_DEVICE(PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_SAS1078R)},
71 /* ppc IOP */
72 {PCI_DEVICE(PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_LSI_VERDE_ZCR)},
73 /* xscale IOP, vega */
74 {PCI_DEVICE(PCI_VENDOR_ID_DELL, PCI_DEVICE_ID_DELL_PERC5)},
75 /* xscale IOP */
76 {}
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77};
78
79MODULE_DEVICE_TABLE(pci, megasas_pci_table);
80
81static int megasas_mgmt_majorno;
82static struct megasas_mgmt_info megasas_mgmt_info;
83static struct fasync_struct *megasas_async_queue;
0b950672 84static DEFINE_MUTEX(megasas_async_queue_mutex);
c4a3e0a5 85
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86static u32 megasas_dbg_lvl;
87
7343eb65 88static void
89megasas_complete_cmd(struct megasas_instance *instance, struct megasas_cmd *cmd,
90 u8 alt_status);
91
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92/**
93 * megasas_get_cmd - Get a command from the free pool
94 * @instance: Adapter soft state
95 *
96 * Returns a free command from the pool
97 */
858119e1 98static struct megasas_cmd *megasas_get_cmd(struct megasas_instance
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99 *instance)
100{
101 unsigned long flags;
102 struct megasas_cmd *cmd = NULL;
103
104 spin_lock_irqsave(&instance->cmd_pool_lock, flags);
105
106 if (!list_empty(&instance->cmd_pool)) {
107 cmd = list_entry((&instance->cmd_pool)->next,
108 struct megasas_cmd, list);
109 list_del_init(&cmd->list);
110 } else {
111 printk(KERN_ERR "megasas: Command pool empty!\n");
112 }
113
114 spin_unlock_irqrestore(&instance->cmd_pool_lock, flags);
115 return cmd;
116}
117
118/**
119 * megasas_return_cmd - Return a cmd to free command pool
120 * @instance: Adapter soft state
121 * @cmd: Command packet to be returned to free command pool
122 */
123static inline void
124megasas_return_cmd(struct megasas_instance *instance, struct megasas_cmd *cmd)
125{
126 unsigned long flags;
127
128 spin_lock_irqsave(&instance->cmd_pool_lock, flags);
129
130 cmd->scmd = NULL;
131 list_add_tail(&cmd->list, &instance->cmd_pool);
132
133 spin_unlock_irqrestore(&instance->cmd_pool_lock, flags);
134}
135
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136
137/**
138* The following functions are defined for xscale
139* (deviceid : 1064R, PERC5) controllers
140*/
141
c4a3e0a5 142/**
1341c939 143 * megasas_enable_intr_xscale - Enables interrupts
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144 * @regs: MFI register set
145 */
146static inline void
1341c939 147megasas_enable_intr_xscale(struct megasas_register_set __iomem * regs)
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148{
149 writel(1, &(regs)->outbound_intr_mask);
150
151 /* Dummy readl to force pci flush */
152 readl(&regs->outbound_intr_mask);
153}
154
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155/**
156 * megasas_disable_intr_xscale -Disables interrupt
157 * @regs: MFI register set
158 */
159static inline void
160megasas_disable_intr_xscale(struct megasas_register_set __iomem * regs)
161{
162 u32 mask = 0x1f;
163 writel(mask, &regs->outbound_intr_mask);
164 /* Dummy readl to force pci flush */
165 readl(&regs->outbound_intr_mask);
166}
167
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168/**
169 * megasas_read_fw_status_reg_xscale - returns the current FW status value
170 * @regs: MFI register set
171 */
172static u32
173megasas_read_fw_status_reg_xscale(struct megasas_register_set __iomem * regs)
174{
175 return readl(&(regs)->outbound_msg_0);
176}
177/**
178 * megasas_clear_interrupt_xscale - Check & clear interrupt
179 * @regs: MFI register set
180 */
181static int
182megasas_clear_intr_xscale(struct megasas_register_set __iomem * regs)
183{
184 u32 status;
185 /*
186 * Check if it is our interrupt
187 */
188 status = readl(&regs->outbound_intr_status);
189
190 if (!(status & MFI_OB_INTR_STATUS_MASK)) {
191 return 1;
192 }
193
194 /*
195 * Clear the interrupt by writing back the same value
196 */
197 writel(status, &regs->outbound_intr_status);
198
199 return 0;
200}
201
202/**
203 * megasas_fire_cmd_xscale - Sends command to the FW
204 * @frame_phys_addr : Physical address of cmd
205 * @frame_count : Number of frames for the command
206 * @regs : MFI register set
207 */
208static inline void
209megasas_fire_cmd_xscale(dma_addr_t frame_phys_addr,u32 frame_count, struct megasas_register_set __iomem *regs)
210{
211 writel((frame_phys_addr >> 3)|(frame_count),
212 &(regs)->inbound_queue_port);
213}
214
215static struct megasas_instance_template megasas_instance_template_xscale = {
216
217 .fire_cmd = megasas_fire_cmd_xscale,
218 .enable_intr = megasas_enable_intr_xscale,
b274cab7 219 .disable_intr = megasas_disable_intr_xscale,
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220 .clear_intr = megasas_clear_intr_xscale,
221 .read_fw_status_reg = megasas_read_fw_status_reg_xscale,
222};
223
224/**
225* This is the end of set of functions & definitions specific
226* to xscale (deviceid : 1064R, PERC5) controllers
227*/
228
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229/**
230* The following functions are defined for ppc (deviceid : 0x60)
231* controllers
232*/
233
234/**
235 * megasas_enable_intr_ppc - Enables interrupts
236 * @regs: MFI register set
237 */
238static inline void
239megasas_enable_intr_ppc(struct megasas_register_set __iomem * regs)
240{
241 writel(0xFFFFFFFF, &(regs)->outbound_doorbell_clear);
242
243 writel(~0x80000004, &(regs)->outbound_intr_mask);
244
245 /* Dummy readl to force pci flush */
246 readl(&regs->outbound_intr_mask);
247}
248
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249/**
250 * megasas_disable_intr_ppc - Disable interrupt
251 * @regs: MFI register set
252 */
253static inline void
254megasas_disable_intr_ppc(struct megasas_register_set __iomem * regs)
255{
256 u32 mask = 0xFFFFFFFF;
257 writel(mask, &regs->outbound_intr_mask);
258 /* Dummy readl to force pci flush */
259 readl(&regs->outbound_intr_mask);
260}
261
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262/**
263 * megasas_read_fw_status_reg_ppc - returns the current FW status value
264 * @regs: MFI register set
265 */
266static u32
267megasas_read_fw_status_reg_ppc(struct megasas_register_set __iomem * regs)
268{
269 return readl(&(regs)->outbound_scratch_pad);
270}
271
272/**
273 * megasas_clear_interrupt_ppc - Check & clear interrupt
274 * @regs: MFI register set
275 */
276static int
277megasas_clear_intr_ppc(struct megasas_register_set __iomem * regs)
278{
279 u32 status;
280 /*
281 * Check if it is our interrupt
282 */
283 status = readl(&regs->outbound_intr_status);
284
285 if (!(status & MFI_REPLY_1078_MESSAGE_INTERRUPT)) {
286 return 1;
287 }
288
289 /*
290 * Clear the interrupt by writing back the same value
291 */
292 writel(status, &regs->outbound_doorbell_clear);
293
294 return 0;
295}
296/**
297 * megasas_fire_cmd_ppc - Sends command to the FW
298 * @frame_phys_addr : Physical address of cmd
299 * @frame_count : Number of frames for the command
300 * @regs : MFI register set
301 */
302static inline void
303megasas_fire_cmd_ppc(dma_addr_t frame_phys_addr, u32 frame_count, struct megasas_register_set __iomem *regs)
304{
305 writel((frame_phys_addr | (frame_count<<1))|1,
306 &(regs)->inbound_queue_port);
307}
308
309static struct megasas_instance_template megasas_instance_template_ppc = {
310
311 .fire_cmd = megasas_fire_cmd_ppc,
312 .enable_intr = megasas_enable_intr_ppc,
b274cab7 313 .disable_intr = megasas_disable_intr_ppc,
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314 .clear_intr = megasas_clear_intr_ppc,
315 .read_fw_status_reg = megasas_read_fw_status_reg_ppc,
316};
317
318/**
319* This is the end of set of functions & definitions
320* specific to ppc (deviceid : 0x60) controllers
321*/
322
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323/**
324 * megasas_issue_polled - Issues a polling command
325 * @instance: Adapter soft state
326 * @cmd: Command packet to be issued
327 *
328 * For polling, MFI requires the cmd_status to be set to 0xFF before posting.
329 */
330static int
331megasas_issue_polled(struct megasas_instance *instance, struct megasas_cmd *cmd)
332{
333 int i;
334 u32 msecs = MFI_POLL_TIMEOUT_SECS * 1000;
335
336 struct megasas_header *frame_hdr = &cmd->frame->hdr;
337
338 frame_hdr->cmd_status = 0xFF;
339 frame_hdr->flags |= MFI_FRAME_DONT_POST_IN_REPLY_QUEUE;
340
341 /*
342 * Issue the frame using inbound queue port
343 */
1341c939 344 instance->instancet->fire_cmd(cmd->frame_phys_addr ,0,instance->reg_set);
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345
346 /*
347 * Wait for cmd_status to change
348 */
349 for (i = 0; (i < msecs) && (frame_hdr->cmd_status == 0xff); i++) {
350 rmb();
351 msleep(1);
352 }
353
354 if (frame_hdr->cmd_status == 0xff)
355 return -ETIME;
356
357 return 0;
358}
359
360/**
361 * megasas_issue_blocked_cmd - Synchronous wrapper around regular FW cmds
362 * @instance: Adapter soft state
363 * @cmd: Command to be issued
364 *
365 * This function waits on an event for the command to be returned from ISR.
2a3681e5 366 * Max wait time is MEGASAS_INTERNAL_CMD_WAIT_TIME secs
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367 * Used to issue ioctl commands.
368 */
369static int
370megasas_issue_blocked_cmd(struct megasas_instance *instance,
371 struct megasas_cmd *cmd)
372{
373 cmd->cmd_status = ENODATA;
374
1341c939 375 instance->instancet->fire_cmd(cmd->frame_phys_addr ,0,instance->reg_set);
c4a3e0a5 376
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377 wait_event_timeout(instance->int_cmd_wait_q, (cmd->cmd_status != ENODATA),
378 MEGASAS_INTERNAL_CMD_WAIT_TIME*HZ);
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379
380 return 0;
381}
382
383/**
384 * megasas_issue_blocked_abort_cmd - Aborts previously issued cmd
385 * @instance: Adapter soft state
386 * @cmd_to_abort: Previously issued cmd to be aborted
387 *
388 * MFI firmware can abort previously issued AEN comamnd (automatic event
389 * notification). The megasas_issue_blocked_abort_cmd() issues such abort
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390 * cmd and waits for return status.
391 * Max wait time is MEGASAS_INTERNAL_CMD_WAIT_TIME secs
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392 */
393static int
394megasas_issue_blocked_abort_cmd(struct megasas_instance *instance,
395 struct megasas_cmd *cmd_to_abort)
396{
397 struct megasas_cmd *cmd;
398 struct megasas_abort_frame *abort_fr;
399
400 cmd = megasas_get_cmd(instance);
401
402 if (!cmd)
403 return -1;
404
405 abort_fr = &cmd->frame->abort;
406
407 /*
408 * Prepare and issue the abort frame
409 */
410 abort_fr->cmd = MFI_CMD_ABORT;
411 abort_fr->cmd_status = 0xFF;
412 abort_fr->flags = 0;
413 abort_fr->abort_context = cmd_to_abort->index;
414 abort_fr->abort_mfi_phys_addr_lo = cmd_to_abort->frame_phys_addr;
415 abort_fr->abort_mfi_phys_addr_hi = 0;
416
417 cmd->sync_cmd = 1;
418 cmd->cmd_status = 0xFF;
419
1341c939 420 instance->instancet->fire_cmd(cmd->frame_phys_addr ,0,instance->reg_set);
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421
422 /*
423 * Wait for this cmd to complete
424 */
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425 wait_event_timeout(instance->abort_cmd_wait_q, (cmd->cmd_status != 0xFF),
426 MEGASAS_INTERNAL_CMD_WAIT_TIME*HZ);
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427
428 megasas_return_cmd(instance, cmd);
429 return 0;
430}
431
432/**
433 * megasas_make_sgl32 - Prepares 32-bit SGL
434 * @instance: Adapter soft state
435 * @scp: SCSI command from the mid-layer
436 * @mfi_sgl: SGL to be filled in
437 *
438 * If successful, this function returns the number of SG elements. Otherwise,
439 * it returnes -1.
440 */
858119e1 441static int
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442megasas_make_sgl32(struct megasas_instance *instance, struct scsi_cmnd *scp,
443 union megasas_sgl *mfi_sgl)
444{
445 int i;
446 int sge_count;
447 struct scatterlist *os_sgl;
448
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449 sge_count = scsi_dma_map(scp);
450 BUG_ON(sge_count < 0);
c4a3e0a5 451
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452 if (sge_count) {
453 scsi_for_each_sg(scp, os_sgl, sge_count, i) {
454 mfi_sgl->sge32[i].length = sg_dma_len(os_sgl);
455 mfi_sgl->sge32[i].phys_addr = sg_dma_address(os_sgl);
456 }
c4a3e0a5 457 }
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458 return sge_count;
459}
460
461/**
462 * megasas_make_sgl64 - Prepares 64-bit SGL
463 * @instance: Adapter soft state
464 * @scp: SCSI command from the mid-layer
465 * @mfi_sgl: SGL to be filled in
466 *
467 * If successful, this function returns the number of SG elements. Otherwise,
468 * it returnes -1.
469 */
858119e1 470static int
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471megasas_make_sgl64(struct megasas_instance *instance, struct scsi_cmnd *scp,
472 union megasas_sgl *mfi_sgl)
473{
474 int i;
475 int sge_count;
476 struct scatterlist *os_sgl;
477
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478 sge_count = scsi_dma_map(scp);
479 BUG_ON(sge_count < 0);
c4a3e0a5 480
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481 if (sge_count) {
482 scsi_for_each_sg(scp, os_sgl, sge_count, i) {
483 mfi_sgl->sge64[i].length = sg_dma_len(os_sgl);
484 mfi_sgl->sge64[i].phys_addr = sg_dma_address(os_sgl);
485 }
c4a3e0a5 486 }
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487 return sge_count;
488}
489
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490 /**
491 * megasas_get_frame_count - Computes the number of frames
492 * @sge_count : number of sg elements
493 *
494 * Returns the number of frames required for numnber of sge's (sge_count)
495 */
496
b448de47 497static u32 megasas_get_frame_count(u8 sge_count)
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SP
498{
499 int num_cnt;
500 int sge_bytes;
501 u32 sge_sz;
502 u32 frame_count=0;
503
504 sge_sz = (IS_DMA64) ? sizeof(struct megasas_sge64) :
505 sizeof(struct megasas_sge32);
506
507 /*
508 * Main frame can contain 2 SGEs for 64-bit SGLs and
509 * 3 SGEs for 32-bit SGLs
510 */
511 if (IS_DMA64)
512 num_cnt = sge_count - 2;
513 else
514 num_cnt = sge_count - 3;
515
516 if(num_cnt>0){
517 sge_bytes = sge_sz * num_cnt;
518
519 frame_count = (sge_bytes / MEGAMFI_FRAME_SIZE) +
520 ((sge_bytes % MEGAMFI_FRAME_SIZE) ? 1 : 0) ;
521 }
522 /* Main frame */
523 frame_count +=1;
524
525 if (frame_count > 7)
526 frame_count = 8;
527 return frame_count;
528}
529
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530/**
531 * megasas_build_dcdb - Prepares a direct cdb (DCDB) command
532 * @instance: Adapter soft state
533 * @scp: SCSI command
534 * @cmd: Command to be prepared in
535 *
536 * This function prepares CDB commands. These are typcially pass-through
537 * commands to the devices.
538 */
858119e1 539static int
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540megasas_build_dcdb(struct megasas_instance *instance, struct scsi_cmnd *scp,
541 struct megasas_cmd *cmd)
542{
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543 u32 is_logical;
544 u32 device_id;
545 u16 flags = 0;
546 struct megasas_pthru_frame *pthru;
547
548 is_logical = MEGASAS_IS_LOGICAL(scp);
549 device_id = MEGASAS_DEV_INDEX(instance, scp);
550 pthru = (struct megasas_pthru_frame *)cmd->frame;
551
552 if (scp->sc_data_direction == PCI_DMA_TODEVICE)
553 flags = MFI_FRAME_DIR_WRITE;
554 else if (scp->sc_data_direction == PCI_DMA_FROMDEVICE)
555 flags = MFI_FRAME_DIR_READ;
556 else if (scp->sc_data_direction == PCI_DMA_NONE)
557 flags = MFI_FRAME_DIR_NONE;
558
559 /*
560 * Prepare the DCDB frame
561 */
562 pthru->cmd = (is_logical) ? MFI_CMD_LD_SCSI_IO : MFI_CMD_PD_SCSI_IO;
563 pthru->cmd_status = 0x0;
564 pthru->scsi_status = 0x0;
565 pthru->target_id = device_id;
566 pthru->lun = scp->device->lun;
567 pthru->cdb_len = scp->cmd_len;
568 pthru->timeout = 0;
569 pthru->flags = flags;
155d98f0 570 pthru->data_xfer_len = scsi_bufflen(scp);
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571
572 memcpy(pthru->cdb, scp->cmnd, scp->cmd_len);
573
574 /*
575 * Construct SGL
576 */
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577 if (IS_DMA64) {
578 pthru->flags |= MFI_FRAME_SGL64;
579 pthru->sge_count = megasas_make_sgl64(instance, scp,
580 &pthru->sgl);
581 } else
582 pthru->sge_count = megasas_make_sgl32(instance, scp,
583 &pthru->sgl);
584
585 /*
586 * Sense info specific
587 */
588 pthru->sense_len = SCSI_SENSE_BUFFERSIZE;
589 pthru->sense_buf_phys_addr_hi = 0;
590 pthru->sense_buf_phys_addr_lo = cmd->sense_phys_addr;
591
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592 /*
593 * Compute the total number of frames this command consumes. FW uses
594 * this number to pull sufficient number of frames from host memory.
595 */
b1df99d9 596 cmd->frame_count = megasas_get_frame_count(pthru->sge_count);
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BS
597
598 return cmd->frame_count;
599}
600
601/**
602 * megasas_build_ldio - Prepares IOs to logical devices
603 * @instance: Adapter soft state
604 * @scp: SCSI command
605 * @cmd: Command to to be prepared
606 *
607 * Frames (and accompanying SGLs) for regular SCSI IOs use this function.
608 */
858119e1 609static int
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610megasas_build_ldio(struct megasas_instance *instance, struct scsi_cmnd *scp,
611 struct megasas_cmd *cmd)
612{
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613 u32 device_id;
614 u8 sc = scp->cmnd[0];
615 u16 flags = 0;
616 struct megasas_io_frame *ldio;
617
618 device_id = MEGASAS_DEV_INDEX(instance, scp);
619 ldio = (struct megasas_io_frame *)cmd->frame;
620
621 if (scp->sc_data_direction == PCI_DMA_TODEVICE)
622 flags = MFI_FRAME_DIR_WRITE;
623 else if (scp->sc_data_direction == PCI_DMA_FROMDEVICE)
624 flags = MFI_FRAME_DIR_READ;
625
626 /*
b1df99d9 627 * Prepare the Logical IO frame: 2nd bit is zero for all read cmds
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628 */
629 ldio->cmd = (sc & 0x02) ? MFI_CMD_LD_WRITE : MFI_CMD_LD_READ;
630 ldio->cmd_status = 0x0;
631 ldio->scsi_status = 0x0;
632 ldio->target_id = device_id;
633 ldio->timeout = 0;
634 ldio->reserved_0 = 0;
635 ldio->pad_0 = 0;
636 ldio->flags = flags;
637 ldio->start_lba_hi = 0;
638 ldio->access_byte = (scp->cmd_len != 6) ? scp->cmnd[1] : 0;
639
640 /*
641 * 6-byte READ(0x08) or WRITE(0x0A) cdb
642 */
643 if (scp->cmd_len == 6) {
644 ldio->lba_count = (u32) scp->cmnd[4];
645 ldio->start_lba_lo = ((u32) scp->cmnd[1] << 16) |
646 ((u32) scp->cmnd[2] << 8) | (u32) scp->cmnd[3];
647
648 ldio->start_lba_lo &= 0x1FFFFF;
649 }
650
651 /*
652 * 10-byte READ(0x28) or WRITE(0x2A) cdb
653 */
654 else if (scp->cmd_len == 10) {
655 ldio->lba_count = (u32) scp->cmnd[8] |
656 ((u32) scp->cmnd[7] << 8);
657 ldio->start_lba_lo = ((u32) scp->cmnd[2] << 24) |
658 ((u32) scp->cmnd[3] << 16) |
659 ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
660 }
661
662 /*
663 * 12-byte READ(0xA8) or WRITE(0xAA) cdb
664 */
665 else if (scp->cmd_len == 12) {
666 ldio->lba_count = ((u32) scp->cmnd[6] << 24) |
667 ((u32) scp->cmnd[7] << 16) |
668 ((u32) scp->cmnd[8] << 8) | (u32) scp->cmnd[9];
669
670 ldio->start_lba_lo = ((u32) scp->cmnd[2] << 24) |
671 ((u32) scp->cmnd[3] << 16) |
672 ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
673 }
674
675 /*
676 * 16-byte READ(0x88) or WRITE(0x8A) cdb
677 */
678 else if (scp->cmd_len == 16) {
679 ldio->lba_count = ((u32) scp->cmnd[10] << 24) |
680 ((u32) scp->cmnd[11] << 16) |
681 ((u32) scp->cmnd[12] << 8) | (u32) scp->cmnd[13];
682
683 ldio->start_lba_lo = ((u32) scp->cmnd[6] << 24) |
684 ((u32) scp->cmnd[7] << 16) |
685 ((u32) scp->cmnd[8] << 8) | (u32) scp->cmnd[9];
686
687 ldio->start_lba_hi = ((u32) scp->cmnd[2] << 24) |
688 ((u32) scp->cmnd[3] << 16) |
689 ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
690
691 }
692
693 /*
694 * Construct SGL
695 */
c4a3e0a5
BS
696 if (IS_DMA64) {
697 ldio->flags |= MFI_FRAME_SGL64;
698 ldio->sge_count = megasas_make_sgl64(instance, scp, &ldio->sgl);
699 } else
700 ldio->sge_count = megasas_make_sgl32(instance, scp, &ldio->sgl);
701
702 /*
703 * Sense info specific
704 */
705 ldio->sense_len = SCSI_SENSE_BUFFERSIZE;
706 ldio->sense_buf_phys_addr_hi = 0;
707 ldio->sense_buf_phys_addr_lo = cmd->sense_phys_addr;
708
b1df99d9
SP
709 /*
710 * Compute the total number of frames this command consumes. FW uses
711 * this number to pull sufficient number of frames from host memory.
712 */
713 cmd->frame_count = megasas_get_frame_count(ldio->sge_count);
c4a3e0a5
BS
714
715 return cmd->frame_count;
716}
717
718/**
cb59aa6a
SP
719 * megasas_is_ldio - Checks if the cmd is for logical drive
720 * @scmd: SCSI command
721 *
722 * Called by megasas_queue_command to find out if the command to be queued
723 * is a logical drive command
c4a3e0a5 724 */
cb59aa6a 725static inline int megasas_is_ldio(struct scsi_cmnd *cmd)
c4a3e0a5 726{
cb59aa6a
SP
727 if (!MEGASAS_IS_LOGICAL(cmd))
728 return 0;
729 switch (cmd->cmnd[0]) {
730 case READ_10:
731 case WRITE_10:
732 case READ_12:
733 case WRITE_12:
734 case READ_6:
735 case WRITE_6:
736 case READ_16:
737 case WRITE_16:
738 return 1;
739 default:
740 return 0;
c4a3e0a5 741 }
c4a3e0a5
BS
742}
743
658dcedb
SP
744 /**
745 * megasas_dump_pending_frames - Dumps the frame address of all pending cmds
746 * in FW
747 * @instance: Adapter soft state
748 */
749static inline void
750megasas_dump_pending_frames(struct megasas_instance *instance)
751{
752 struct megasas_cmd *cmd;
753 int i,n;
754 union megasas_sgl *mfi_sgl;
755 struct megasas_io_frame *ldio;
756 struct megasas_pthru_frame *pthru;
757 u32 sgcount;
758 u32 max_cmd = instance->max_fw_cmds;
759
760 printk(KERN_ERR "\nmegasas[%d]: Dumping Frame Phys Address of all pending cmds in FW\n",instance->host->host_no);
761 printk(KERN_ERR "megasas[%d]: Total OS Pending cmds : %d\n",instance->host->host_no,atomic_read(&instance->fw_outstanding));
762 if (IS_DMA64)
763 printk(KERN_ERR "\nmegasas[%d]: 64 bit SGLs were sent to FW\n",instance->host->host_no);
764 else
765 printk(KERN_ERR "\nmegasas[%d]: 32 bit SGLs were sent to FW\n",instance->host->host_no);
766
767 printk(KERN_ERR "megasas[%d]: Pending OS cmds in FW : \n",instance->host->host_no);
768 for (i = 0; i < max_cmd; i++) {
769 cmd = instance->cmd_list[i];
770 if(!cmd->scmd)
771 continue;
772 printk(KERN_ERR "megasas[%d]: Frame addr :0x%08lx : ",instance->host->host_no,(unsigned long)cmd->frame_phys_addr);
773 if (megasas_is_ldio(cmd->scmd)){
774 ldio = (struct megasas_io_frame *)cmd->frame;
775 mfi_sgl = &ldio->sgl;
776 sgcount = ldio->sge_count;
777 printk(KERN_ERR "megasas[%d]: frame count : 0x%x, Cmd : 0x%x, Tgt id : 0x%x, lba lo : 0x%x, lba_hi : 0x%x, sense_buf addr : 0x%x,sge count : 0x%x\n",instance->host->host_no, cmd->frame_count,ldio->cmd,ldio->target_id, ldio->start_lba_lo,ldio->start_lba_hi,ldio->sense_buf_phys_addr_lo,sgcount);
778 }
779 else {
780 pthru = (struct megasas_pthru_frame *) cmd->frame;
781 mfi_sgl = &pthru->sgl;
782 sgcount = pthru->sge_count;
783 printk(KERN_ERR "megasas[%d]: frame count : 0x%x, Cmd : 0x%x, Tgt id : 0x%x, lun : 0x%x, cdb_len : 0x%x, data xfer len : 0x%x, sense_buf addr : 0x%x,sge count : 0x%x\n",instance->host->host_no,cmd->frame_count,pthru->cmd,pthru->target_id,pthru->lun,pthru->cdb_len , pthru->data_xfer_len,pthru->sense_buf_phys_addr_lo,sgcount);
784 }
785 if(megasas_dbg_lvl & MEGASAS_DBG_LVL){
786 for (n = 0; n < sgcount; n++){
787 if (IS_DMA64)
788 printk(KERN_ERR "megasas: sgl len : 0x%x, sgl addr : 0x%08lx ",mfi_sgl->sge64[n].length , (unsigned long)mfi_sgl->sge64[n].phys_addr) ;
789 else
790 printk(KERN_ERR "megasas: sgl len : 0x%x, sgl addr : 0x%x ",mfi_sgl->sge32[n].length , mfi_sgl->sge32[n].phys_addr) ;
791 }
792 }
793 printk(KERN_ERR "\n");
794 } /*for max_cmd*/
795 printk(KERN_ERR "\nmegasas[%d]: Pending Internal cmds in FW : \n",instance->host->host_no);
796 for (i = 0; i < max_cmd; i++) {
797
798 cmd = instance->cmd_list[i];
799
800 if(cmd->sync_cmd == 1){
801 printk(KERN_ERR "0x%08lx : ", (unsigned long)cmd->frame_phys_addr);
802 }
803 }
804 printk(KERN_ERR "megasas[%d]: Dumping Done.\n\n",instance->host->host_no);
805}
806
c4a3e0a5
BS
807/**
808 * megasas_queue_command - Queue entry point
809 * @scmd: SCSI command to be queued
810 * @done: Callback entry point
811 */
812static int
813megasas_queue_command(struct scsi_cmnd *scmd, void (*done) (struct scsi_cmnd *))
814{
815 u32 frame_count;
c4a3e0a5
BS
816 struct megasas_cmd *cmd;
817 struct megasas_instance *instance;
818
819 instance = (struct megasas_instance *)
820 scmd->device->host->hostdata;
af37acfb
SP
821
822 /* Don't process if we have already declared adapter dead */
823 if (instance->hw_crit_error)
824 return SCSI_MLQUEUE_HOST_BUSY;
825
c4a3e0a5
BS
826 scmd->scsi_done = done;
827 scmd->result = 0;
828
cb59aa6a
SP
829 if (MEGASAS_IS_LOGICAL(scmd) &&
830 (scmd->device->id >= MEGASAS_MAX_LD || scmd->device->lun)) {
831 scmd->result = DID_BAD_TARGET << 16;
832 goto out_done;
c4a3e0a5
BS
833 }
834
02b01e01
SP
835 switch (scmd->cmnd[0]) {
836 case SYNCHRONIZE_CACHE:
837 /*
838 * FW takes care of flush cache on its own
839 * No need to send it down
840 */
841 scmd->result = DID_OK << 16;
842 goto out_done;
843 default:
844 break;
845 }
846
cb59aa6a
SP
847 cmd = megasas_get_cmd(instance);
848 if (!cmd)
849 return SCSI_MLQUEUE_HOST_BUSY;
850
851 /*
852 * Logical drive command
853 */
854 if (megasas_is_ldio(scmd))
855 frame_count = megasas_build_ldio(instance, scmd, cmd);
856 else
857 frame_count = megasas_build_dcdb(instance, scmd, cmd);
858
859 if (!frame_count)
860 goto out_return_cmd;
861
c4a3e0a5 862 cmd->scmd = scmd;
05e9ebbe 863 scmd->SCp.ptr = (char *)cmd;
c4a3e0a5
BS
864
865 /*
866 * Issue the command to the FW
867 */
e4a082c7 868 atomic_inc(&instance->fw_outstanding);
c4a3e0a5 869
1341c939 870 instance->instancet->fire_cmd(cmd->frame_phys_addr ,cmd->frame_count-1,instance->reg_set);
ad84db2e 871 /*
872 * Check if we have pend cmds to be completed
873 */
874 if (poll_mode_io && atomic_read(&instance->fw_outstanding))
875 tasklet_schedule(&instance->isr_tasklet);
876
c4a3e0a5
BS
877
878 return 0;
cb59aa6a
SP
879
880 out_return_cmd:
881 megasas_return_cmd(instance, cmd);
882 out_done:
883 done(scmd);
884 return 0;
c4a3e0a5
BS
885}
886
147aab6a
CH
887static int megasas_slave_configure(struct scsi_device *sdev)
888{
889 /*
890 * Don't export physical disk devices to the disk driver.
891 *
892 * FIXME: Currently we don't export them to the midlayer at all.
893 * That will be fixed once LSI engineers have audited the
894 * firmware for possible issues.
895 */
896 if (sdev->channel < MEGASAS_MAX_PD_CHANNELS && sdev->type == TYPE_DISK)
897 return -ENXIO;
e5b3a65f
CH
898
899 /*
900 * The RAID firmware may require extended timeouts.
901 */
902 if (sdev->channel >= MEGASAS_MAX_PD_CHANNELS)
05e9ebbe 903 sdev->timeout = MEGASAS_DEFAULT_CMD_TIMEOUT * HZ;
147aab6a
CH
904 return 0;
905}
906
7343eb65 907/**
908 * megasas_complete_cmd_dpc - Returns FW's controller structure
909 * @instance_addr: Address of adapter soft state
910 *
911 * Tasklet to complete cmds
912 */
913static void megasas_complete_cmd_dpc(unsigned long instance_addr)
914{
915 u32 producer;
916 u32 consumer;
917 u32 context;
918 struct megasas_cmd *cmd;
919 struct megasas_instance *instance =
920 (struct megasas_instance *)instance_addr;
921 unsigned long flags;
922
923 /* If we have already declared adapter dead, donot complete cmds */
924 if (instance->hw_crit_error)
925 return;
926
927 spin_lock_irqsave(&instance->completion_lock, flags);
928
929 producer = *instance->producer;
930 consumer = *instance->consumer;
931
932 while (consumer != producer) {
933 context = instance->reply_queue[consumer];
934
935 cmd = instance->cmd_list[context];
936
937 megasas_complete_cmd(instance, cmd, DID_OK);
938
939 consumer++;
940 if (consumer == (instance->max_fw_cmds + 1)) {
941 consumer = 0;
942 }
943 }
944
945 *instance->consumer = producer;
946
947 spin_unlock_irqrestore(&instance->completion_lock, flags);
948
949 /*
950 * Check if we can restore can_queue
951 */
952 if (instance->flag & MEGASAS_FW_BUSY
953 && time_after(jiffies, instance->last_time + 5 * HZ)
954 && atomic_read(&instance->fw_outstanding) < 17) {
955
956 spin_lock_irqsave(instance->host->host_lock, flags);
957 instance->flag &= ~MEGASAS_FW_BUSY;
958 instance->host->can_queue =
959 instance->max_fw_cmds - MEGASAS_INT_CMDS;
960
961 spin_unlock_irqrestore(instance->host->host_lock, flags);
962 }
963}
964
c4a3e0a5
BS
965/**
966 * megasas_wait_for_outstanding - Wait for all outstanding cmds
967 * @instance: Adapter soft state
968 *
969 * This function waits for upto MEGASAS_RESET_WAIT_TIME seconds for FW to
970 * complete all its outstanding commands. Returns error if one or more IOs
971 * are pending after this time period. It also marks the controller dead.
972 */
973static int megasas_wait_for_outstanding(struct megasas_instance *instance)
974{
975 int i;
976 u32 wait_time = MEGASAS_RESET_WAIT_TIME;
977
978 for (i = 0; i < wait_time; i++) {
979
e4a082c7
SP
980 int outstanding = atomic_read(&instance->fw_outstanding);
981
982 if (!outstanding)
c4a3e0a5
BS
983 break;
984
985 if (!(i % MEGASAS_RESET_NOTICE_INTERVAL)) {
986 printk(KERN_NOTICE "megasas: [%2d]waiting for %d "
e4a082c7 987 "commands to complete\n",i,outstanding);
7343eb65 988 /*
989 * Call cmd completion routine. Cmd to be
990 * be completed directly without depending on isr.
991 */
992 megasas_complete_cmd_dpc((unsigned long)instance);
c4a3e0a5
BS
993 }
994
995 msleep(1000);
996 }
997
e4a082c7 998 if (atomic_read(&instance->fw_outstanding)) {
e3bbff9f
SP
999 /*
1000 * Send signal to FW to stop processing any pending cmds.
1001 * The controller will be taken offline by the OS now.
1002 */
1003 writel(MFI_STOP_ADP,
1004 &instance->reg_set->inbound_doorbell);
658dcedb 1005 megasas_dump_pending_frames(instance);
c4a3e0a5
BS
1006 instance->hw_crit_error = 1;
1007 return FAILED;
1008 }
1009
1010 return SUCCESS;
1011}
1012
1013/**
1014 * megasas_generic_reset - Generic reset routine
1015 * @scmd: Mid-layer SCSI command
1016 *
1017 * This routine implements a generic reset handler for device, bus and host
1018 * reset requests. Device, bus and host specific reset handlers can use this
1019 * function after they do their specific tasks.
1020 */
1021static int megasas_generic_reset(struct scsi_cmnd *scmd)
1022{
1023 int ret_val;
1024 struct megasas_instance *instance;
1025
1026 instance = (struct megasas_instance *)scmd->device->host->hostdata;
1027
05e9ebbe
SP
1028 scmd_printk(KERN_NOTICE, scmd, "megasas: RESET -%ld cmd=%x retries=%x\n",
1029 scmd->serial_number, scmd->cmnd[0], scmd->retries);
c4a3e0a5
BS
1030
1031 if (instance->hw_crit_error) {
1032 printk(KERN_ERR "megasas: cannot recover from previous reset "
1033 "failures\n");
1034 return FAILED;
1035 }
1036
c4a3e0a5 1037 ret_val = megasas_wait_for_outstanding(instance);
c4a3e0a5
BS
1038 if (ret_val == SUCCESS)
1039 printk(KERN_NOTICE "megasas: reset successful \n");
1040 else
1041 printk(KERN_ERR "megasas: failed to do reset\n");
1042
c4a3e0a5
BS
1043 return ret_val;
1044}
1045
05e9ebbe
SP
1046/**
1047 * megasas_reset_timer - quiesce the adapter if required
1048 * @scmd: scsi cmnd
1049 *
1050 * Sets the FW busy flag and reduces the host->can_queue if the
1051 * cmd has not been completed within the timeout period.
1052 */
1053static enum
1054scsi_eh_timer_return megasas_reset_timer(struct scsi_cmnd *scmd)
1055{
1056 struct megasas_cmd *cmd = (struct megasas_cmd *)scmd->SCp.ptr;
1057 struct megasas_instance *instance;
1058 unsigned long flags;
1059
1060 if (time_after(jiffies, scmd->jiffies_at_alloc +
1061 (MEGASAS_DEFAULT_CMD_TIMEOUT * 2) * HZ)) {
1062 return EH_NOT_HANDLED;
1063 }
1064
1065 instance = cmd->instance;
1066 if (!(instance->flag & MEGASAS_FW_BUSY)) {
1067 /* FW is busy, throttle IO */
1068 spin_lock_irqsave(instance->host->host_lock, flags);
1069
1070 instance->host->can_queue = 16;
1071 instance->last_time = jiffies;
1072 instance->flag |= MEGASAS_FW_BUSY;
1073
1074 spin_unlock_irqrestore(instance->host->host_lock, flags);
1075 }
1076 return EH_RESET_TIMER;
1077}
1078
c4a3e0a5
BS
1079/**
1080 * megasas_reset_device - Device reset handler entry point
1081 */
1082static int megasas_reset_device(struct scsi_cmnd *scmd)
1083{
1084 int ret;
1085
1086 /*
1087 * First wait for all commands to complete
1088 */
1089 ret = megasas_generic_reset(scmd);
1090
1091 return ret;
1092}
1093
1094/**
1095 * megasas_reset_bus_host - Bus & host reset handler entry point
1096 */
1097static int megasas_reset_bus_host(struct scsi_cmnd *scmd)
1098{
1099 int ret;
1100
1101 /*
80682fa9 1102 * First wait for all commands to complete
c4a3e0a5
BS
1103 */
1104 ret = megasas_generic_reset(scmd);
1105
1106 return ret;
1107}
1108
cf62a0a5
SP
1109/**
1110 * megasas_bios_param - Returns disk geometry for a disk
1111 * @sdev: device handle
1112 * @bdev: block device
1113 * @capacity: drive capacity
1114 * @geom: geometry parameters
1115 */
1116static int
1117megasas_bios_param(struct scsi_device *sdev, struct block_device *bdev,
1118 sector_t capacity, int geom[])
1119{
1120 int heads;
1121 int sectors;
1122 sector_t cylinders;
1123 unsigned long tmp;
1124 /* Default heads (64) & sectors (32) */
1125 heads = 64;
1126 sectors = 32;
1127
1128 tmp = heads * sectors;
1129 cylinders = capacity;
1130
1131 sector_div(cylinders, tmp);
1132
1133 /*
1134 * Handle extended translation size for logical drives > 1Gb
1135 */
1136
1137 if (capacity >= 0x200000) {
1138 heads = 255;
1139 sectors = 63;
1140 tmp = heads*sectors;
1141 cylinders = capacity;
1142 sector_div(cylinders, tmp);
1143 }
1144
1145 geom[0] = heads;
1146 geom[1] = sectors;
1147 geom[2] = cylinders;
1148
1149 return 0;
1150}
1151
c4a3e0a5
BS
1152/**
1153 * megasas_service_aen - Processes an event notification
1154 * @instance: Adapter soft state
1155 * @cmd: AEN command completed by the ISR
1156 *
1157 * For AEN, driver sends a command down to FW that is held by the FW till an
1158 * event occurs. When an event of interest occurs, FW completes the command
1159 * that it was previously holding.
1160 *
1161 * This routines sends SIGIO signal to processes that have registered with the
1162 * driver for AEN.
1163 */
1164static void
1165megasas_service_aen(struct megasas_instance *instance, struct megasas_cmd *cmd)
1166{
1167 /*
1168 * Don't signal app if it is just an aborted previously registered aen
1169 */
1170 if (!cmd->abort_aen)
1171 kill_fasync(&megasas_async_queue, SIGIO, POLL_IN);
1172 else
1173 cmd->abort_aen = 0;
1174
1175 instance->aen_cmd = NULL;
1176 megasas_return_cmd(instance, cmd);
1177}
1178
1179/*
1180 * Scsi host template for megaraid_sas driver
1181 */
1182static struct scsi_host_template megasas_template = {
1183
1184 .module = THIS_MODULE,
1185 .name = "LSI Logic SAS based MegaRAID driver",
1186 .proc_name = "megaraid_sas",
147aab6a 1187 .slave_configure = megasas_slave_configure,
c4a3e0a5
BS
1188 .queuecommand = megasas_queue_command,
1189 .eh_device_reset_handler = megasas_reset_device,
1190 .eh_bus_reset_handler = megasas_reset_bus_host,
1191 .eh_host_reset_handler = megasas_reset_bus_host,
05e9ebbe 1192 .eh_timed_out = megasas_reset_timer,
cf62a0a5 1193 .bios_param = megasas_bios_param,
c4a3e0a5 1194 .use_clustering = ENABLE_CLUSTERING,
9cb83c75 1195 .use_sg_chaining = ENABLE_SG_CHAINING,
c4a3e0a5
BS
1196};
1197
1198/**
1199 * megasas_complete_int_cmd - Completes an internal command
1200 * @instance: Adapter soft state
1201 * @cmd: Command to be completed
1202 *
1203 * The megasas_issue_blocked_cmd() function waits for a command to complete
1204 * after it issues a command. This function wakes up that waiting routine by
1205 * calling wake_up() on the wait queue.
1206 */
1207static void
1208megasas_complete_int_cmd(struct megasas_instance *instance,
1209 struct megasas_cmd *cmd)
1210{
1211 cmd->cmd_status = cmd->frame->io.cmd_status;
1212
1213 if (cmd->cmd_status == ENODATA) {
1214 cmd->cmd_status = 0;
1215 }
1216 wake_up(&instance->int_cmd_wait_q);
1217}
1218
1219/**
1220 * megasas_complete_abort - Completes aborting a command
1221 * @instance: Adapter soft state
1222 * @cmd: Cmd that was issued to abort another cmd
1223 *
1224 * The megasas_issue_blocked_abort_cmd() function waits on abort_cmd_wait_q
1225 * after it issues an abort on a previously issued command. This function
1226 * wakes up all functions waiting on the same wait queue.
1227 */
1228static void
1229megasas_complete_abort(struct megasas_instance *instance,
1230 struct megasas_cmd *cmd)
1231{
1232 if (cmd->sync_cmd) {
1233 cmd->sync_cmd = 0;
1234 cmd->cmd_status = 0;
1235 wake_up(&instance->abort_cmd_wait_q);
1236 }
1237
1238 return;
1239}
1240
c4a3e0a5
BS
1241/**
1242 * megasas_complete_cmd - Completes a command
1243 * @instance: Adapter soft state
1244 * @cmd: Command to be completed
1245 * @alt_status: If non-zero, use this value as status to
1246 * SCSI mid-layer instead of the value returned
1247 * by the FW. This should be used if caller wants
1248 * an alternate status (as in the case of aborted
1249 * commands)
1250 */
858119e1 1251static void
c4a3e0a5
BS
1252megasas_complete_cmd(struct megasas_instance *instance, struct megasas_cmd *cmd,
1253 u8 alt_status)
1254{
1255 int exception = 0;
1256 struct megasas_header *hdr = &cmd->frame->hdr;
c4a3e0a5 1257
05e9ebbe
SP
1258 if (cmd->scmd)
1259 cmd->scmd->SCp.ptr = NULL;
c4a3e0a5
BS
1260
1261 switch (hdr->cmd) {
1262
1263 case MFI_CMD_PD_SCSI_IO:
1264 case MFI_CMD_LD_SCSI_IO:
1265
1266 /*
1267 * MFI_CMD_PD_SCSI_IO and MFI_CMD_LD_SCSI_IO could have been
1268 * issued either through an IO path or an IOCTL path. If it
1269 * was via IOCTL, we will send it to internal completion.
1270 */
1271 if (cmd->sync_cmd) {
1272 cmd->sync_cmd = 0;
1273 megasas_complete_int_cmd(instance, cmd);
1274 break;
1275 }
1276
c4a3e0a5
BS
1277 case MFI_CMD_LD_READ:
1278 case MFI_CMD_LD_WRITE:
1279
1280 if (alt_status) {
1281 cmd->scmd->result = alt_status << 16;
1282 exception = 1;
1283 }
1284
1285 if (exception) {
1286
e4a082c7 1287 atomic_dec(&instance->fw_outstanding);
c4a3e0a5 1288
155d98f0 1289 scsi_dma_unmap(cmd->scmd);
c4a3e0a5
BS
1290 cmd->scmd->scsi_done(cmd->scmd);
1291 megasas_return_cmd(instance, cmd);
1292
1293 break;
1294 }
1295
1296 switch (hdr->cmd_status) {
1297
1298 case MFI_STAT_OK:
1299 cmd->scmd->result = DID_OK << 16;
1300 break;
1301
1302 case MFI_STAT_SCSI_IO_FAILED:
1303 case MFI_STAT_LD_INIT_IN_PROGRESS:
1304 cmd->scmd->result =
1305 (DID_ERROR << 16) | hdr->scsi_status;
1306 break;
1307
1308 case MFI_STAT_SCSI_DONE_WITH_ERROR:
1309
1310 cmd->scmd->result = (DID_OK << 16) | hdr->scsi_status;
1311
1312 if (hdr->scsi_status == SAM_STAT_CHECK_CONDITION) {
1313 memset(cmd->scmd->sense_buffer, 0,
1314 SCSI_SENSE_BUFFERSIZE);
1315 memcpy(cmd->scmd->sense_buffer, cmd->sense,
1316 hdr->sense_len);
1317
1318 cmd->scmd->result |= DRIVER_SENSE << 24;
1319 }
1320
1321 break;
1322
1323 case MFI_STAT_LD_OFFLINE:
1324 case MFI_STAT_DEVICE_NOT_FOUND:
1325 cmd->scmd->result = DID_BAD_TARGET << 16;
1326 break;
1327
1328 default:
1329 printk(KERN_DEBUG "megasas: MFI FW status %#x\n",
1330 hdr->cmd_status);
1331 cmd->scmd->result = DID_ERROR << 16;
1332 break;
1333 }
1334
e4a082c7 1335 atomic_dec(&instance->fw_outstanding);
c4a3e0a5 1336
155d98f0 1337 scsi_dma_unmap(cmd->scmd);
c4a3e0a5
BS
1338 cmd->scmd->scsi_done(cmd->scmd);
1339 megasas_return_cmd(instance, cmd);
1340
1341 break;
1342
1343 case MFI_CMD_SMP:
1344 case MFI_CMD_STP:
1345 case MFI_CMD_DCMD:
1346
1347 /*
1348 * See if got an event notification
1349 */
1350 if (cmd->frame->dcmd.opcode == MR_DCMD_CTRL_EVENT_WAIT)
1351 megasas_service_aen(instance, cmd);
1352 else
1353 megasas_complete_int_cmd(instance, cmd);
1354
1355 break;
1356
1357 case MFI_CMD_ABORT:
1358 /*
1359 * Cmd issued to abort another cmd returned
1360 */
1361 megasas_complete_abort(instance, cmd);
1362 break;
1363
1364 default:
1365 printk("megasas: Unknown command completed! [0x%X]\n",
1366 hdr->cmd);
1367 break;
1368 }
1369}
1370
1371/**
1372 * megasas_deplete_reply_queue - Processes all completed commands
1373 * @instance: Adapter soft state
1374 * @alt_status: Alternate status to be returned to
1375 * SCSI mid-layer instead of the status
1376 * returned by the FW
1377 */
858119e1 1378static int
c4a3e0a5
BS
1379megasas_deplete_reply_queue(struct megasas_instance *instance, u8 alt_status)
1380{
c4a3e0a5
BS
1381 /*
1382 * Check if it is our interrupt
1341c939 1383 * Clear the interrupt
c4a3e0a5 1384 */
1341c939 1385 if(instance->instancet->clear_intr(instance->reg_set))
c4a3e0a5 1386 return IRQ_NONE;
c4a3e0a5 1387
af37acfb
SP
1388 if (instance->hw_crit_error)
1389 goto out_done;
5d018ad0
SP
1390 /*
1391 * Schedule the tasklet for cmd completion
1392 */
1393 tasklet_schedule(&instance->isr_tasklet);
af37acfb 1394out_done:
c4a3e0a5
BS
1395 return IRQ_HANDLED;
1396}
1397
1398/**
1399 * megasas_isr - isr entry point
1400 */
7d12e780 1401static irqreturn_t megasas_isr(int irq, void *devp)
c4a3e0a5
BS
1402{
1403 return megasas_deplete_reply_queue((struct megasas_instance *)devp,
1404 DID_OK);
1405}
1406
1407/**
1408 * megasas_transition_to_ready - Move the FW to READY state
1341c939 1409 * @instance: Adapter soft state
c4a3e0a5
BS
1410 *
1411 * During the initialization, FW passes can potentially be in any one of
1412 * several possible states. If the FW in operational, waiting-for-handshake
1413 * states, driver must take steps to bring it to ready state. Otherwise, it
1414 * has to wait for the ready state.
1415 */
1416static int
1341c939 1417megasas_transition_to_ready(struct megasas_instance* instance)
c4a3e0a5
BS
1418{
1419 int i;
1420 u8 max_wait;
1421 u32 fw_state;
1422 u32 cur_state;
1423
1341c939 1424 fw_state = instance->instancet->read_fw_status_reg(instance->reg_set) & MFI_STATE_MASK;
c4a3e0a5 1425
e3bbff9f
SP
1426 if (fw_state != MFI_STATE_READY)
1427 printk(KERN_INFO "megasas: Waiting for FW to come to ready"
1428 " state\n");
1429
c4a3e0a5
BS
1430 while (fw_state != MFI_STATE_READY) {
1431
c4a3e0a5
BS
1432 switch (fw_state) {
1433
1434 case MFI_STATE_FAULT:
1435
1436 printk(KERN_DEBUG "megasas: FW in FAULT state!!\n");
1437 return -ENODEV;
1438
1439 case MFI_STATE_WAIT_HANDSHAKE:
1440 /*
1441 * Set the CLR bit in inbound doorbell
1442 */
e3bbff9f 1443 writel(MFI_INIT_CLEAR_HANDSHAKE|MFI_INIT_HOTPLUG,
1341c939 1444 &instance->reg_set->inbound_doorbell);
c4a3e0a5
BS
1445
1446 max_wait = 2;
1447 cur_state = MFI_STATE_WAIT_HANDSHAKE;
1448 break;
1449
e3bbff9f
SP
1450 case MFI_STATE_BOOT_MESSAGE_PENDING:
1451 writel(MFI_INIT_HOTPLUG,
1452 &instance->reg_set->inbound_doorbell);
1453
1454 max_wait = 10;
1455 cur_state = MFI_STATE_BOOT_MESSAGE_PENDING;
1456 break;
1457
c4a3e0a5
BS
1458 case MFI_STATE_OPERATIONAL:
1459 /*
e3bbff9f 1460 * Bring it to READY state; assuming max wait 10 secs
c4a3e0a5 1461 */
b274cab7 1462 instance->instancet->disable_intr(instance->reg_set);
e3bbff9f 1463 writel(MFI_RESET_FLAGS, &instance->reg_set->inbound_doorbell);
c4a3e0a5
BS
1464
1465 max_wait = 10;
1466 cur_state = MFI_STATE_OPERATIONAL;
1467 break;
1468
1469 case MFI_STATE_UNDEFINED:
1470 /*
1471 * This state should not last for more than 2 seconds
1472 */
1473 max_wait = 2;
1474 cur_state = MFI_STATE_UNDEFINED;
1475 break;
1476
1477 case MFI_STATE_BB_INIT:
1478 max_wait = 2;
1479 cur_state = MFI_STATE_BB_INIT;
1480 break;
1481
1482 case MFI_STATE_FW_INIT:
1483 max_wait = 20;
1484 cur_state = MFI_STATE_FW_INIT;
1485 break;
1486
1487 case MFI_STATE_FW_INIT_2:
1488 max_wait = 20;
1489 cur_state = MFI_STATE_FW_INIT_2;
1490 break;
1491
1492 case MFI_STATE_DEVICE_SCAN:
1493 max_wait = 20;
1494 cur_state = MFI_STATE_DEVICE_SCAN;
1495 break;
1496
1497 case MFI_STATE_FLUSH_CACHE:
1498 max_wait = 20;
1499 cur_state = MFI_STATE_FLUSH_CACHE;
1500 break;
1501
1502 default:
1503 printk(KERN_DEBUG "megasas: Unknown state 0x%x\n",
1504 fw_state);
1505 return -ENODEV;
1506 }
1507
1508 /*
1509 * The cur_state should not last for more than max_wait secs
1510 */
1511 for (i = 0; i < (max_wait * 1000); i++) {
1341c939
SP
1512 fw_state = instance->instancet->read_fw_status_reg(instance->reg_set) &
1513 MFI_STATE_MASK ;
c4a3e0a5
BS
1514
1515 if (fw_state == cur_state) {
1516 msleep(1);
1517 } else
1518 break;
1519 }
1520
1521 /*
1522 * Return error if fw_state hasn't changed after max_wait
1523 */
1524 if (fw_state == cur_state) {
1525 printk(KERN_DEBUG "FW state [%d] hasn't changed "
1526 "in %d secs\n", fw_state, max_wait);
1527 return -ENODEV;
1528 }
1529 };
e3bbff9f 1530 printk(KERN_INFO "megasas: FW now in Ready state\n");
c4a3e0a5
BS
1531
1532 return 0;
1533}
1534
1535/**
1536 * megasas_teardown_frame_pool - Destroy the cmd frame DMA pool
1537 * @instance: Adapter soft state
1538 */
1539static void megasas_teardown_frame_pool(struct megasas_instance *instance)
1540{
1541 int i;
1542 u32 max_cmd = instance->max_fw_cmds;
1543 struct megasas_cmd *cmd;
1544
1545 if (!instance->frame_dma_pool)
1546 return;
1547
1548 /*
1549 * Return all frames to pool
1550 */
1551 for (i = 0; i < max_cmd; i++) {
1552
1553 cmd = instance->cmd_list[i];
1554
1555 if (cmd->frame)
1556 pci_pool_free(instance->frame_dma_pool, cmd->frame,
1557 cmd->frame_phys_addr);
1558
1559 if (cmd->sense)
e3bbff9f 1560 pci_pool_free(instance->sense_dma_pool, cmd->sense,
c4a3e0a5
BS
1561 cmd->sense_phys_addr);
1562 }
1563
1564 /*
1565 * Now destroy the pool itself
1566 */
1567 pci_pool_destroy(instance->frame_dma_pool);
1568 pci_pool_destroy(instance->sense_dma_pool);
1569
1570 instance->frame_dma_pool = NULL;
1571 instance->sense_dma_pool = NULL;
1572}
1573
1574/**
1575 * megasas_create_frame_pool - Creates DMA pool for cmd frames
1576 * @instance: Adapter soft state
1577 *
1578 * Each command packet has an embedded DMA memory buffer that is used for
1579 * filling MFI frame and the SG list that immediately follows the frame. This
1580 * function creates those DMA memory buffers for each command packet by using
1581 * PCI pool facility.
1582 */
1583static int megasas_create_frame_pool(struct megasas_instance *instance)
1584{
1585 int i;
1586 u32 max_cmd;
1587 u32 sge_sz;
1588 u32 sgl_sz;
1589 u32 total_sz;
1590 u32 frame_count;
1591 struct megasas_cmd *cmd;
1592
1593 max_cmd = instance->max_fw_cmds;
1594
1595 /*
1596 * Size of our frame is 64 bytes for MFI frame, followed by max SG
1597 * elements and finally SCSI_SENSE_BUFFERSIZE bytes for sense buffer
1598 */
1599 sge_sz = (IS_DMA64) ? sizeof(struct megasas_sge64) :
1600 sizeof(struct megasas_sge32);
1601
1602 /*
1603 * Calculated the number of 64byte frames required for SGL
1604 */
1605 sgl_sz = sge_sz * instance->max_num_sge;
1606 frame_count = (sgl_sz + MEGAMFI_FRAME_SIZE - 1) / MEGAMFI_FRAME_SIZE;
1607
1608 /*
1609 * We need one extra frame for the MFI command
1610 */
1611 frame_count++;
1612
1613 total_sz = MEGAMFI_FRAME_SIZE * frame_count;
1614 /*
1615 * Use DMA pool facility provided by PCI layer
1616 */
1617 instance->frame_dma_pool = pci_pool_create("megasas frame pool",
1618 instance->pdev, total_sz, 64,
1619 0);
1620
1621 if (!instance->frame_dma_pool) {
1622 printk(KERN_DEBUG "megasas: failed to setup frame pool\n");
1623 return -ENOMEM;
1624 }
1625
1626 instance->sense_dma_pool = pci_pool_create("megasas sense pool",
1627 instance->pdev, 128, 4, 0);
1628
1629 if (!instance->sense_dma_pool) {
1630 printk(KERN_DEBUG "megasas: failed to setup sense pool\n");
1631
1632 pci_pool_destroy(instance->frame_dma_pool);
1633 instance->frame_dma_pool = NULL;
1634
1635 return -ENOMEM;
1636 }
1637
1638 /*
1639 * Allocate and attach a frame to each of the commands in cmd_list.
1640 * By making cmd->index as the context instead of the &cmd, we can
1641 * always use 32bit context regardless of the architecture
1642 */
1643 for (i = 0; i < max_cmd; i++) {
1644
1645 cmd = instance->cmd_list[i];
1646
1647 cmd->frame = pci_pool_alloc(instance->frame_dma_pool,
1648 GFP_KERNEL, &cmd->frame_phys_addr);
1649
1650 cmd->sense = pci_pool_alloc(instance->sense_dma_pool,
1651 GFP_KERNEL, &cmd->sense_phys_addr);
1652
1653 /*
1654 * megasas_teardown_frame_pool() takes care of freeing
1655 * whatever has been allocated
1656 */
1657 if (!cmd->frame || !cmd->sense) {
1658 printk(KERN_DEBUG "megasas: pci_pool_alloc failed \n");
1659 megasas_teardown_frame_pool(instance);
1660 return -ENOMEM;
1661 }
1662
1663 cmd->frame->io.context = cmd->index;
1664 }
1665
1666 return 0;
1667}
1668
1669/**
1670 * megasas_free_cmds - Free all the cmds in the free cmd pool
1671 * @instance: Adapter soft state
1672 */
1673static void megasas_free_cmds(struct megasas_instance *instance)
1674{
1675 int i;
1676 /* First free the MFI frame pool */
1677 megasas_teardown_frame_pool(instance);
1678
1679 /* Free all the commands in the cmd_list */
1680 for (i = 0; i < instance->max_fw_cmds; i++)
1681 kfree(instance->cmd_list[i]);
1682
1683 /* Free the cmd_list buffer itself */
1684 kfree(instance->cmd_list);
1685 instance->cmd_list = NULL;
1686
1687 INIT_LIST_HEAD(&instance->cmd_pool);
1688}
1689
1690/**
1691 * megasas_alloc_cmds - Allocates the command packets
1692 * @instance: Adapter soft state
1693 *
1694 * Each command that is issued to the FW, whether IO commands from the OS or
1695 * internal commands like IOCTLs, are wrapped in local data structure called
1696 * megasas_cmd. The frame embedded in this megasas_cmd is actually issued to
1697 * the FW.
1698 *
1699 * Each frame has a 32-bit field called context (tag). This context is used
1700 * to get back the megasas_cmd from the frame when a frame gets completed in
1701 * the ISR. Typically the address of the megasas_cmd itself would be used as
1702 * the context. But we wanted to keep the differences between 32 and 64 bit
1703 * systems to the mininum. We always use 32 bit integers for the context. In
1704 * this driver, the 32 bit values are the indices into an array cmd_list.
1705 * This array is used only to look up the megasas_cmd given the context. The
1706 * free commands themselves are maintained in a linked list called cmd_pool.
1707 */
1708static int megasas_alloc_cmds(struct megasas_instance *instance)
1709{
1710 int i;
1711 int j;
1712 u32 max_cmd;
1713 struct megasas_cmd *cmd;
1714
1715 max_cmd = instance->max_fw_cmds;
1716
1717 /*
1718 * instance->cmd_list is an array of struct megasas_cmd pointers.
1719 * Allocate the dynamic array first and then allocate individual
1720 * commands.
1721 */
dd00cc48 1722 instance->cmd_list = kcalloc(max_cmd, sizeof(struct megasas_cmd*), GFP_KERNEL);
c4a3e0a5
BS
1723
1724 if (!instance->cmd_list) {
1725 printk(KERN_DEBUG "megasas: out of memory\n");
1726 return -ENOMEM;
1727 }
1728
c4a3e0a5
BS
1729
1730 for (i = 0; i < max_cmd; i++) {
1731 instance->cmd_list[i] = kmalloc(sizeof(struct megasas_cmd),
1732 GFP_KERNEL);
1733
1734 if (!instance->cmd_list[i]) {
1735
1736 for (j = 0; j < i; j++)
1737 kfree(instance->cmd_list[j]);
1738
1739 kfree(instance->cmd_list);
1740 instance->cmd_list = NULL;
1741
1742 return -ENOMEM;
1743 }
1744 }
1745
1746 /*
1747 * Add all the commands to command pool (instance->cmd_pool)
1748 */
1749 for (i = 0; i < max_cmd; i++) {
1750 cmd = instance->cmd_list[i];
1751 memset(cmd, 0, sizeof(struct megasas_cmd));
1752 cmd->index = i;
1753 cmd->instance = instance;
1754
1755 list_add_tail(&cmd->list, &instance->cmd_pool);
1756 }
1757
1758 /*
1759 * Create a frame pool and assign one frame to each cmd
1760 */
1761 if (megasas_create_frame_pool(instance)) {
1762 printk(KERN_DEBUG "megasas: Error creating frame DMA pool\n");
1763 megasas_free_cmds(instance);
1764 }
1765
1766 return 0;
1767}
1768
1769/**
1770 * megasas_get_controller_info - Returns FW's controller structure
1771 * @instance: Adapter soft state
1772 * @ctrl_info: Controller information structure
1773 *
1774 * Issues an internal command (DCMD) to get the FW's controller structure.
1775 * This information is mainly used to find out the maximum IO transfer per
1776 * command supported by the FW.
1777 */
1778static int
1779megasas_get_ctrl_info(struct megasas_instance *instance,
1780 struct megasas_ctrl_info *ctrl_info)
1781{
1782 int ret = 0;
1783 struct megasas_cmd *cmd;
1784 struct megasas_dcmd_frame *dcmd;
1785 struct megasas_ctrl_info *ci;
1786 dma_addr_t ci_h = 0;
1787
1788 cmd = megasas_get_cmd(instance);
1789
1790 if (!cmd) {
1791 printk(KERN_DEBUG "megasas: Failed to get a free cmd\n");
1792 return -ENOMEM;
1793 }
1794
1795 dcmd = &cmd->frame->dcmd;
1796
1797 ci = pci_alloc_consistent(instance->pdev,
1798 sizeof(struct megasas_ctrl_info), &ci_h);
1799
1800 if (!ci) {
1801 printk(KERN_DEBUG "Failed to alloc mem for ctrl info\n");
1802 megasas_return_cmd(instance, cmd);
1803 return -ENOMEM;
1804 }
1805
1806 memset(ci, 0, sizeof(*ci));
1807 memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
1808
1809 dcmd->cmd = MFI_CMD_DCMD;
1810 dcmd->cmd_status = 0xFF;
1811 dcmd->sge_count = 1;
1812 dcmd->flags = MFI_FRAME_DIR_READ;
1813 dcmd->timeout = 0;
1814 dcmd->data_xfer_len = sizeof(struct megasas_ctrl_info);
1815 dcmd->opcode = MR_DCMD_CTRL_GET_INFO;
1816 dcmd->sgl.sge32[0].phys_addr = ci_h;
1817 dcmd->sgl.sge32[0].length = sizeof(struct megasas_ctrl_info);
1818
1819 if (!megasas_issue_polled(instance, cmd)) {
1820 ret = 0;
1821 memcpy(ctrl_info, ci, sizeof(struct megasas_ctrl_info));
1822 } else {
1823 ret = -1;
1824 }
1825
1826 pci_free_consistent(instance->pdev, sizeof(struct megasas_ctrl_info),
1827 ci, ci_h);
1828
1829 megasas_return_cmd(instance, cmd);
1830 return ret;
1831}
1832
31ea7088 1833/**
1834 * megasas_issue_init_mfi - Initializes the FW
1835 * @instance: Adapter soft state
1836 *
1837 * Issues the INIT MFI cmd
1838 */
1839static int
1840megasas_issue_init_mfi(struct megasas_instance *instance)
1841{
1842 u32 context;
1843
1844 struct megasas_cmd *cmd;
1845
1846 struct megasas_init_frame *init_frame;
1847 struct megasas_init_queue_info *initq_info;
1848 dma_addr_t init_frame_h;
1849 dma_addr_t initq_info_h;
1850
1851 /*
1852 * Prepare a init frame. Note the init frame points to queue info
1853 * structure. Each frame has SGL allocated after first 64 bytes. For
1854 * this frame - since we don't need any SGL - we use SGL's space as
1855 * queue info structure
1856 *
1857 * We will not get a NULL command below. We just created the pool.
1858 */
1859 cmd = megasas_get_cmd(instance);
1860
1861 init_frame = (struct megasas_init_frame *)cmd->frame;
1862 initq_info = (struct megasas_init_queue_info *)
1863 ((unsigned long)init_frame + 64);
1864
1865 init_frame_h = cmd->frame_phys_addr;
1866 initq_info_h = init_frame_h + 64;
1867
1868 context = init_frame->context;
1869 memset(init_frame, 0, MEGAMFI_FRAME_SIZE);
1870 memset(initq_info, 0, sizeof(struct megasas_init_queue_info));
1871 init_frame->context = context;
1872
1873 initq_info->reply_queue_entries = instance->max_fw_cmds + 1;
1874 initq_info->reply_queue_start_phys_addr_lo = instance->reply_queue_h;
1875
1876 initq_info->producer_index_phys_addr_lo = instance->producer_h;
1877 initq_info->consumer_index_phys_addr_lo = instance->consumer_h;
1878
1879 init_frame->cmd = MFI_CMD_INIT;
1880 init_frame->cmd_status = 0xFF;
1881 init_frame->queue_info_new_phys_addr_lo = initq_info_h;
1882
1883 init_frame->data_xfer_len = sizeof(struct megasas_init_queue_info);
1884
1885 /*
1886 * disable the intr before firing the init frame to FW
1887 */
1888 instance->instancet->disable_intr(instance->reg_set);
1889
1890 /*
1891 * Issue the init frame in polled mode
1892 */
1893
1894 if (megasas_issue_polled(instance, cmd)) {
1895 printk(KERN_ERR "megasas: Failed to init firmware\n");
1896 megasas_return_cmd(instance, cmd);
1897 goto fail_fw_init;
1898 }
1899
1900 megasas_return_cmd(instance, cmd);
1901
1902 return 0;
1903
1904fail_fw_init:
1905 return -EINVAL;
1906}
1907
ad84db2e 1908/**
1909 * megasas_start_timer - Initializes a timer object
1910 * @instance: Adapter soft state
1911 * @timer: timer object to be initialized
1912 * @fn: timer function
1913 * @interval: time interval between timer function call
1914 */
1915static inline void
1916megasas_start_timer(struct megasas_instance *instance,
1917 struct timer_list *timer,
1918 void *fn, unsigned long interval)
1919{
1920 init_timer(timer);
1921 timer->expires = jiffies + interval;
1922 timer->data = (unsigned long)instance;
1923 timer->function = fn;
1924 add_timer(timer);
1925}
1926
1927/**
1928 * megasas_io_completion_timer - Timer fn
1929 * @instance_addr: Address of adapter soft state
1930 *
1931 * Schedules tasklet for cmd completion
1932 * if poll_mode_io is set
1933 */
1934static void
1935megasas_io_completion_timer(unsigned long instance_addr)
1936{
1937 struct megasas_instance *instance =
1938 (struct megasas_instance *)instance_addr;
1939
1940 if (atomic_read(&instance->fw_outstanding))
1941 tasklet_schedule(&instance->isr_tasklet);
1942
1943 /* Restart timer */
1944 if (poll_mode_io)
1945 mod_timer(&instance->io_completion_timer,
1946 jiffies + MEGASAS_COMPLETION_TIMER_INTERVAL);
1947}
1948
c4a3e0a5
BS
1949/**
1950 * megasas_init_mfi - Initializes the FW
1951 * @instance: Adapter soft state
1952 *
1953 * This is the main function for initializing MFI firmware.
1954 */
1955static int megasas_init_mfi(struct megasas_instance *instance)
1956{
1957 u32 context_sz;
1958 u32 reply_q_sz;
1959 u32 max_sectors_1;
1960 u32 max_sectors_2;
14faea9f 1961 u32 tmp_sectors;
c4a3e0a5 1962 struct megasas_register_set __iomem *reg_set;
c4a3e0a5 1963 struct megasas_ctrl_info *ctrl_info;
c4a3e0a5
BS
1964 /*
1965 * Map the message registers
1966 */
1967 instance->base_addr = pci_resource_start(instance->pdev, 0);
1968
1969 if (pci_request_regions(instance->pdev, "megasas: LSI Logic")) {
1970 printk(KERN_DEBUG "megasas: IO memory region busy!\n");
1971 return -EBUSY;
1972 }
1973
1974 instance->reg_set = ioremap_nocache(instance->base_addr, 8192);
1975
1976 if (!instance->reg_set) {
1977 printk(KERN_DEBUG "megasas: Failed to map IO mem\n");
1978 goto fail_ioremap;
1979 }
1980
1981 reg_set = instance->reg_set;
1982
f9876f0b
SP
1983 switch(instance->pdev->device)
1984 {
1985 case PCI_DEVICE_ID_LSI_SAS1078R:
1986 instance->instancet = &megasas_instance_template_ppc;
1987 break;
1988 case PCI_DEVICE_ID_LSI_SAS1064R:
1989 case PCI_DEVICE_ID_DELL_PERC5:
1990 default:
1991 instance->instancet = &megasas_instance_template_xscale;
1992 break;
1993 }
1341c939 1994
c4a3e0a5
BS
1995 /*
1996 * We expect the FW state to be READY
1997 */
1341c939 1998 if (megasas_transition_to_ready(instance))
c4a3e0a5
BS
1999 goto fail_ready_state;
2000
2001 /*
2002 * Get various operational parameters from status register
2003 */
1341c939 2004 instance->max_fw_cmds = instance->instancet->read_fw_status_reg(reg_set) & 0x00FFFF;
e3bbff9f
SP
2005 /*
2006 * Reduce the max supported cmds by 1. This is to ensure that the
2007 * reply_q_sz (1 more than the max cmd that driver may send)
2008 * does not exceed max cmds that the FW can support
2009 */
2010 instance->max_fw_cmds = instance->max_fw_cmds-1;
1341c939
SP
2011 instance->max_num_sge = (instance->instancet->read_fw_status_reg(reg_set) & 0xFF0000) >>
2012 0x10;
c4a3e0a5
BS
2013 /*
2014 * Create a pool of commands
2015 */
2016 if (megasas_alloc_cmds(instance))
2017 goto fail_alloc_cmds;
2018
2019 /*
2020 * Allocate memory for reply queue. Length of reply queue should
2021 * be _one_ more than the maximum commands handled by the firmware.
2022 *
2023 * Note: When FW completes commands, it places corresponding contex
2024 * values in this circular reply queue. This circular queue is a fairly
2025 * typical producer-consumer queue. FW is the producer (of completed
2026 * commands) and the driver is the consumer.
2027 */
2028 context_sz = sizeof(u32);
2029 reply_q_sz = context_sz * (instance->max_fw_cmds + 1);
2030
2031 instance->reply_queue = pci_alloc_consistent(instance->pdev,
2032 reply_q_sz,
2033 &instance->reply_queue_h);
2034
2035 if (!instance->reply_queue) {
2036 printk(KERN_DEBUG "megasas: Out of DMA mem for reply queue\n");
2037 goto fail_reply_queue;
2038 }
2039
31ea7088 2040 if (megasas_issue_init_mfi(instance))
c4a3e0a5 2041 goto fail_fw_init;
c4a3e0a5
BS
2042
2043 ctrl_info = kmalloc(sizeof(struct megasas_ctrl_info), GFP_KERNEL);
2044
2045 /*
2046 * Compute the max allowed sectors per IO: The controller info has two
2047 * limits on max sectors. Driver should use the minimum of these two.
2048 *
2049 * 1 << stripe_sz_ops.min = max sectors per strip
2050 *
2051 * Note that older firmwares ( < FW ver 30) didn't report information
2052 * to calculate max_sectors_1. So the number ended up as zero always.
2053 */
14faea9f 2054 tmp_sectors = 0;
c4a3e0a5
BS
2055 if (ctrl_info && !megasas_get_ctrl_info(instance, ctrl_info)) {
2056
2057 max_sectors_1 = (1 << ctrl_info->stripe_sz_ops.min) *
2058 ctrl_info->max_strips_per_io;
2059 max_sectors_2 = ctrl_info->max_request_size;
2060
14faea9f 2061 tmp_sectors = min_t(u32, max_sectors_1 , max_sectors_2);
2062 }
2063
2064 instance->max_sectors_per_req = instance->max_num_sge *
2065 PAGE_SIZE / 512;
2066 if (tmp_sectors && (instance->max_sectors_per_req > tmp_sectors))
2067 instance->max_sectors_per_req = tmp_sectors;
c4a3e0a5
BS
2068
2069 kfree(ctrl_info);
2070
5d018ad0
SP
2071 /*
2072 * Setup tasklet for cmd completion
2073 */
2074
ad84db2e 2075 tasklet_init(&instance->isr_tasklet, megasas_complete_cmd_dpc,
2076 (unsigned long)instance);
2077
2078 /* Initialize the cmd completion timer */
2079 if (poll_mode_io)
2080 megasas_start_timer(instance, &instance->io_completion_timer,
2081 megasas_io_completion_timer,
2082 MEGASAS_COMPLETION_TIMER_INTERVAL);
c4a3e0a5
BS
2083 return 0;
2084
2085 fail_fw_init:
c4a3e0a5
BS
2086
2087 pci_free_consistent(instance->pdev, reply_q_sz,
2088 instance->reply_queue, instance->reply_queue_h);
2089 fail_reply_queue:
2090 megasas_free_cmds(instance);
2091
2092 fail_alloc_cmds:
2093 fail_ready_state:
2094 iounmap(instance->reg_set);
2095
2096 fail_ioremap:
2097 pci_release_regions(instance->pdev);
2098
2099 return -EINVAL;
2100}
2101
2102/**
2103 * megasas_release_mfi - Reverses the FW initialization
2104 * @intance: Adapter soft state
2105 */
2106static void megasas_release_mfi(struct megasas_instance *instance)
2107{
2108 u32 reply_q_sz = sizeof(u32) * (instance->max_fw_cmds + 1);
2109
2110 pci_free_consistent(instance->pdev, reply_q_sz,
2111 instance->reply_queue, instance->reply_queue_h);
2112
2113 megasas_free_cmds(instance);
2114
2115 iounmap(instance->reg_set);
2116
2117 pci_release_regions(instance->pdev);
2118}
2119
2120/**
2121 * megasas_get_seq_num - Gets latest event sequence numbers
2122 * @instance: Adapter soft state
2123 * @eli: FW event log sequence numbers information
2124 *
2125 * FW maintains a log of all events in a non-volatile area. Upper layers would
2126 * usually find out the latest sequence number of the events, the seq number at
2127 * the boot etc. They would "read" all the events below the latest seq number
2128 * by issuing a direct fw cmd (DCMD). For the future events (beyond latest seq
2129 * number), they would subsribe to AEN (asynchronous event notification) and
2130 * wait for the events to happen.
2131 */
2132static int
2133megasas_get_seq_num(struct megasas_instance *instance,
2134 struct megasas_evt_log_info *eli)
2135{
2136 struct megasas_cmd *cmd;
2137 struct megasas_dcmd_frame *dcmd;
2138 struct megasas_evt_log_info *el_info;
2139 dma_addr_t el_info_h = 0;
2140
2141 cmd = megasas_get_cmd(instance);
2142
2143 if (!cmd) {
2144 return -ENOMEM;
2145 }
2146
2147 dcmd = &cmd->frame->dcmd;
2148 el_info = pci_alloc_consistent(instance->pdev,
2149 sizeof(struct megasas_evt_log_info),
2150 &el_info_h);
2151
2152 if (!el_info) {
2153 megasas_return_cmd(instance, cmd);
2154 return -ENOMEM;
2155 }
2156
2157 memset(el_info, 0, sizeof(*el_info));
2158 memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
2159
2160 dcmd->cmd = MFI_CMD_DCMD;
2161 dcmd->cmd_status = 0x0;
2162 dcmd->sge_count = 1;
2163 dcmd->flags = MFI_FRAME_DIR_READ;
2164 dcmd->timeout = 0;
2165 dcmd->data_xfer_len = sizeof(struct megasas_evt_log_info);
2166 dcmd->opcode = MR_DCMD_CTRL_EVENT_GET_INFO;
2167 dcmd->sgl.sge32[0].phys_addr = el_info_h;
2168 dcmd->sgl.sge32[0].length = sizeof(struct megasas_evt_log_info);
2169
2170 megasas_issue_blocked_cmd(instance, cmd);
2171
2172 /*
2173 * Copy the data back into callers buffer
2174 */
2175 memcpy(eli, el_info, sizeof(struct megasas_evt_log_info));
2176
2177 pci_free_consistent(instance->pdev, sizeof(struct megasas_evt_log_info),
2178 el_info, el_info_h);
2179
2180 megasas_return_cmd(instance, cmd);
2181
2182 return 0;
2183}
2184
2185/**
2186 * megasas_register_aen - Registers for asynchronous event notification
2187 * @instance: Adapter soft state
2188 * @seq_num: The starting sequence number
2189 * @class_locale: Class of the event
2190 *
2191 * This function subscribes for AEN for events beyond the @seq_num. It requests
2192 * to be notified if and only if the event is of type @class_locale
2193 */
2194static int
2195megasas_register_aen(struct megasas_instance *instance, u32 seq_num,
2196 u32 class_locale_word)
2197{
2198 int ret_val;
2199 struct megasas_cmd *cmd;
2200 struct megasas_dcmd_frame *dcmd;
2201 union megasas_evt_class_locale curr_aen;
2202 union megasas_evt_class_locale prev_aen;
2203
2204 /*
2205 * If there an AEN pending already (aen_cmd), check if the
2206 * class_locale of that pending AEN is inclusive of the new
2207 * AEN request we currently have. If it is, then we don't have
2208 * to do anything. In other words, whichever events the current
2209 * AEN request is subscribing to, have already been subscribed
2210 * to.
2211 *
2212 * If the old_cmd is _not_ inclusive, then we have to abort
2213 * that command, form a class_locale that is superset of both
2214 * old and current and re-issue to the FW
2215 */
2216
2217 curr_aen.word = class_locale_word;
2218
2219 if (instance->aen_cmd) {
2220
2221 prev_aen.word = instance->aen_cmd->frame->dcmd.mbox.w[1];
2222
2223 /*
2224 * A class whose enum value is smaller is inclusive of all
2225 * higher values. If a PROGRESS (= -1) was previously
2226 * registered, then a new registration requests for higher
2227 * classes need not be sent to FW. They are automatically
2228 * included.
2229 *
2230 * Locale numbers don't have such hierarchy. They are bitmap
2231 * values
2232 */
2233 if ((prev_aen.members.class <= curr_aen.members.class) &&
2234 !((prev_aen.members.locale & curr_aen.members.locale) ^
2235 curr_aen.members.locale)) {
2236 /*
2237 * Previously issued event registration includes
2238 * current request. Nothing to do.
2239 */
2240 return 0;
2241 } else {
2242 curr_aen.members.locale |= prev_aen.members.locale;
2243
2244 if (prev_aen.members.class < curr_aen.members.class)
2245 curr_aen.members.class = prev_aen.members.class;
2246
2247 instance->aen_cmd->abort_aen = 1;
2248 ret_val = megasas_issue_blocked_abort_cmd(instance,
2249 instance->
2250 aen_cmd);
2251
2252 if (ret_val) {
2253 printk(KERN_DEBUG "megasas: Failed to abort "
2254 "previous AEN command\n");
2255 return ret_val;
2256 }
2257 }
2258 }
2259
2260 cmd = megasas_get_cmd(instance);
2261
2262 if (!cmd)
2263 return -ENOMEM;
2264
2265 dcmd = &cmd->frame->dcmd;
2266
2267 memset(instance->evt_detail, 0, sizeof(struct megasas_evt_detail));
2268
2269 /*
2270 * Prepare DCMD for aen registration
2271 */
2272 memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
2273
2274 dcmd->cmd = MFI_CMD_DCMD;
2275 dcmd->cmd_status = 0x0;
2276 dcmd->sge_count = 1;
2277 dcmd->flags = MFI_FRAME_DIR_READ;
2278 dcmd->timeout = 0;
2279 dcmd->data_xfer_len = sizeof(struct megasas_evt_detail);
2280 dcmd->opcode = MR_DCMD_CTRL_EVENT_WAIT;
2281 dcmd->mbox.w[0] = seq_num;
2282 dcmd->mbox.w[1] = curr_aen.word;
2283 dcmd->sgl.sge32[0].phys_addr = (u32) instance->evt_detail_h;
2284 dcmd->sgl.sge32[0].length = sizeof(struct megasas_evt_detail);
2285
2286 /*
2287 * Store reference to the cmd used to register for AEN. When an
2288 * application wants us to register for AEN, we have to abort this
2289 * cmd and re-register with a new EVENT LOCALE supplied by that app
2290 */
2291 instance->aen_cmd = cmd;
2292
2293 /*
2294 * Issue the aen registration frame
2295 */
1341c939 2296 instance->instancet->fire_cmd(cmd->frame_phys_addr ,0,instance->reg_set);
c4a3e0a5
BS
2297
2298 return 0;
2299}
2300
2301/**
2302 * megasas_start_aen - Subscribes to AEN during driver load time
2303 * @instance: Adapter soft state
2304 */
2305static int megasas_start_aen(struct megasas_instance *instance)
2306{
2307 struct megasas_evt_log_info eli;
2308 union megasas_evt_class_locale class_locale;
2309
2310 /*
2311 * Get the latest sequence number from FW
2312 */
2313 memset(&eli, 0, sizeof(eli));
2314
2315 if (megasas_get_seq_num(instance, &eli))
2316 return -1;
2317
2318 /*
2319 * Register AEN with FW for latest sequence number plus 1
2320 */
2321 class_locale.members.reserved = 0;
2322 class_locale.members.locale = MR_EVT_LOCALE_ALL;
2323 class_locale.members.class = MR_EVT_CLASS_DEBUG;
2324
2325 return megasas_register_aen(instance, eli.newest_seq_num + 1,
2326 class_locale.word);
2327}
2328
2329/**
2330 * megasas_io_attach - Attaches this driver to SCSI mid-layer
2331 * @instance: Adapter soft state
2332 */
2333static int megasas_io_attach(struct megasas_instance *instance)
2334{
2335 struct Scsi_Host *host = instance->host;
2336
2337 /*
2338 * Export parameters required by SCSI mid-layer
2339 */
2340 host->irq = instance->pdev->irq;
2341 host->unique_id = instance->unique_id;
2342 host->can_queue = instance->max_fw_cmds - MEGASAS_INT_CMDS;
2343 host->this_id = instance->init_id;
2344 host->sg_tablesize = instance->max_num_sge;
2345 host->max_sectors = instance->max_sectors_per_req;
2346 host->cmd_per_lun = 128;
2347 host->max_channel = MEGASAS_MAX_CHANNELS - 1;
2348 host->max_id = MEGASAS_MAX_DEV_PER_CHANNEL;
2349 host->max_lun = MEGASAS_MAX_LUN;
122da302 2350 host->max_cmd_len = 16;
c4a3e0a5
BS
2351
2352 /*
2353 * Notify the mid-layer about the new controller
2354 */
2355 if (scsi_add_host(host, &instance->pdev->dev)) {
2356 printk(KERN_DEBUG "megasas: scsi_add_host failed\n");
2357 return -ENODEV;
2358 }
2359
2360 /*
2361 * Trigger SCSI to scan our drives
2362 */
2363 scsi_scan_host(host);
2364 return 0;
2365}
2366
31ea7088 2367static int
2368megasas_set_dma_mask(struct pci_dev *pdev)
2369{
2370 /*
2371 * All our contollers are capable of performing 64-bit DMA
2372 */
2373 if (IS_DMA64) {
2374 if (pci_set_dma_mask(pdev, DMA_64BIT_MASK) != 0) {
2375
2376 if (pci_set_dma_mask(pdev, DMA_32BIT_MASK) != 0)
2377 goto fail_set_dma_mask;
2378 }
2379 } else {
2380 if (pci_set_dma_mask(pdev, DMA_32BIT_MASK) != 0)
2381 goto fail_set_dma_mask;
2382 }
2383 return 0;
2384
2385fail_set_dma_mask:
2386 return 1;
2387}
2388
c4a3e0a5
BS
2389/**
2390 * megasas_probe_one - PCI hotplug entry point
2391 * @pdev: PCI device structure
2392 * @id: PCI ids of supported hotplugged adapter
2393 */
2394static int __devinit
2395megasas_probe_one(struct pci_dev *pdev, const struct pci_device_id *id)
2396{
2397 int rval;
2398 struct Scsi_Host *host;
2399 struct megasas_instance *instance;
2400
2401 /*
2402 * Announce PCI information
2403 */
2404 printk(KERN_INFO "megasas: %#4.04x:%#4.04x:%#4.04x:%#4.04x: ",
2405 pdev->vendor, pdev->device, pdev->subsystem_vendor,
2406 pdev->subsystem_device);
2407
2408 printk("bus %d:slot %d:func %d\n",
2409 pdev->bus->number, PCI_SLOT(pdev->devfn), PCI_FUNC(pdev->devfn));
2410
2411 /*
2412 * PCI prepping: enable device set bus mastering and dma mask
2413 */
2414 rval = pci_enable_device(pdev);
2415
2416 if (rval) {
2417 return rval;
2418 }
2419
2420 pci_set_master(pdev);
2421
31ea7088 2422 if (megasas_set_dma_mask(pdev))
2423 goto fail_set_dma_mask;
c4a3e0a5
BS
2424
2425 host = scsi_host_alloc(&megasas_template,
2426 sizeof(struct megasas_instance));
2427
2428 if (!host) {
2429 printk(KERN_DEBUG "megasas: scsi_host_alloc failed\n");
2430 goto fail_alloc_instance;
2431 }
2432
2433 instance = (struct megasas_instance *)host->hostdata;
2434 memset(instance, 0, sizeof(*instance));
2435
2436 instance->producer = pci_alloc_consistent(pdev, sizeof(u32),
2437 &instance->producer_h);
2438 instance->consumer = pci_alloc_consistent(pdev, sizeof(u32),
2439 &instance->consumer_h);
2440
2441 if (!instance->producer || !instance->consumer) {
2442 printk(KERN_DEBUG "megasas: Failed to allocate memory for "
2443 "producer, consumer\n");
2444 goto fail_alloc_dma_buf;
2445 }
2446
2447 *instance->producer = 0;
2448 *instance->consumer = 0;
2449
2450 instance->evt_detail = pci_alloc_consistent(pdev,
2451 sizeof(struct
2452 megasas_evt_detail),
2453 &instance->evt_detail_h);
2454
2455 if (!instance->evt_detail) {
2456 printk(KERN_DEBUG "megasas: Failed to allocate memory for "
2457 "event detail structure\n");
2458 goto fail_alloc_dma_buf;
2459 }
2460
2461 /*
2462 * Initialize locks and queues
2463 */
2464 INIT_LIST_HEAD(&instance->cmd_pool);
2465
e4a082c7
SP
2466 atomic_set(&instance->fw_outstanding,0);
2467
c4a3e0a5
BS
2468 init_waitqueue_head(&instance->int_cmd_wait_q);
2469 init_waitqueue_head(&instance->abort_cmd_wait_q);
2470
2471 spin_lock_init(&instance->cmd_pool_lock);
7343eb65 2472 spin_lock_init(&instance->completion_lock);
c4a3e0a5 2473
e5a69e27 2474 mutex_init(&instance->aen_mutex);
c4a3e0a5
BS
2475 sema_init(&instance->ioctl_sem, MEGASAS_INT_CMDS);
2476
2477 /*
2478 * Initialize PCI related and misc parameters
2479 */
2480 instance->pdev = pdev;
2481 instance->host = host;
2482 instance->unique_id = pdev->bus->number << 8 | pdev->devfn;
2483 instance->init_id = MEGASAS_DEFAULT_INIT_ID;
2484
658dcedb 2485 megasas_dbg_lvl = 0;
05e9ebbe
SP
2486 instance->flag = 0;
2487 instance->last_time = 0;
658dcedb 2488
c4a3e0a5
BS
2489 /*
2490 * Initialize MFI Firmware
2491 */
2492 if (megasas_init_mfi(instance))
2493 goto fail_init_mfi;
2494
2495 /*
2496 * Register IRQ
2497 */
1d6f359a 2498 if (request_irq(pdev->irq, megasas_isr, IRQF_SHARED, "megasas", instance)) {
c4a3e0a5
BS
2499 printk(KERN_DEBUG "megasas: Failed to register IRQ\n");
2500 goto fail_irq;
2501 }
2502
1341c939 2503 instance->instancet->enable_intr(instance->reg_set);
c4a3e0a5
BS
2504
2505 /*
2506 * Store instance in PCI softstate
2507 */
2508 pci_set_drvdata(pdev, instance);
2509
2510 /*
2511 * Add this controller to megasas_mgmt_info structure so that it
2512 * can be exported to management applications
2513 */
2514 megasas_mgmt_info.count++;
2515 megasas_mgmt_info.instance[megasas_mgmt_info.max_index] = instance;
2516 megasas_mgmt_info.max_index++;
2517
2518 /*
2519 * Initiate AEN (Asynchronous Event Notification)
2520 */
2521 if (megasas_start_aen(instance)) {
2522 printk(KERN_DEBUG "megasas: start aen failed\n");
2523 goto fail_start_aen;
2524 }
2525
2526 /*
2527 * Register with SCSI mid-layer
2528 */
2529 if (megasas_io_attach(instance))
2530 goto fail_io_attach;
2531
2532 return 0;
2533
2534 fail_start_aen:
2535 fail_io_attach:
2536 megasas_mgmt_info.count--;
2537 megasas_mgmt_info.instance[megasas_mgmt_info.max_index] = NULL;
2538 megasas_mgmt_info.max_index--;
2539
2540 pci_set_drvdata(pdev, NULL);
b274cab7 2541 instance->instancet->disable_intr(instance->reg_set);
c4a3e0a5
BS
2542 free_irq(instance->pdev->irq, instance);
2543
2544 megasas_release_mfi(instance);
2545
2546 fail_irq:
2547 fail_init_mfi:
2548 fail_alloc_dma_buf:
2549 if (instance->evt_detail)
2550 pci_free_consistent(pdev, sizeof(struct megasas_evt_detail),
2551 instance->evt_detail,
2552 instance->evt_detail_h);
2553
2554 if (instance->producer)
2555 pci_free_consistent(pdev, sizeof(u32), instance->producer,
2556 instance->producer_h);
2557 if (instance->consumer)
2558 pci_free_consistent(pdev, sizeof(u32), instance->consumer,
2559 instance->consumer_h);
2560 scsi_host_put(host);
2561
2562 fail_alloc_instance:
2563 fail_set_dma_mask:
2564 pci_disable_device(pdev);
2565
2566 return -ENODEV;
2567}
2568
2569/**
2570 * megasas_flush_cache - Requests FW to flush all its caches
2571 * @instance: Adapter soft state
2572 */
2573static void megasas_flush_cache(struct megasas_instance *instance)
2574{
2575 struct megasas_cmd *cmd;
2576 struct megasas_dcmd_frame *dcmd;
2577
2578 cmd = megasas_get_cmd(instance);
2579
2580 if (!cmd)
2581 return;
2582
2583 dcmd = &cmd->frame->dcmd;
2584
2585 memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
2586
2587 dcmd->cmd = MFI_CMD_DCMD;
2588 dcmd->cmd_status = 0x0;
2589 dcmd->sge_count = 0;
2590 dcmd->flags = MFI_FRAME_DIR_NONE;
2591 dcmd->timeout = 0;
2592 dcmd->data_xfer_len = 0;
2593 dcmd->opcode = MR_DCMD_CTRL_CACHE_FLUSH;
2594 dcmd->mbox.b[0] = MR_FLUSH_CTRL_CACHE | MR_FLUSH_DISK_CACHE;
2595
2596 megasas_issue_blocked_cmd(instance, cmd);
2597
2598 megasas_return_cmd(instance, cmd);
2599
2600 return;
2601}
2602
2603/**
2604 * megasas_shutdown_controller - Instructs FW to shutdown the controller
2605 * @instance: Adapter soft state
31ea7088 2606 * @opcode: Shutdown/Hibernate
c4a3e0a5 2607 */
31ea7088 2608static void megasas_shutdown_controller(struct megasas_instance *instance,
2609 u32 opcode)
c4a3e0a5
BS
2610{
2611 struct megasas_cmd *cmd;
2612 struct megasas_dcmd_frame *dcmd;
2613
2614 cmd = megasas_get_cmd(instance);
2615
2616 if (!cmd)
2617 return;
2618
2619 if (instance->aen_cmd)
2620 megasas_issue_blocked_abort_cmd(instance, instance->aen_cmd);
2621
2622 dcmd = &cmd->frame->dcmd;
2623
2624 memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
2625
2626 dcmd->cmd = MFI_CMD_DCMD;
2627 dcmd->cmd_status = 0x0;
2628 dcmd->sge_count = 0;
2629 dcmd->flags = MFI_FRAME_DIR_NONE;
2630 dcmd->timeout = 0;
2631 dcmd->data_xfer_len = 0;
31ea7088 2632 dcmd->opcode = opcode;
c4a3e0a5
BS
2633
2634 megasas_issue_blocked_cmd(instance, cmd);
2635
2636 megasas_return_cmd(instance, cmd);
2637
2638 return;
2639}
2640
31ea7088 2641/**
ad84db2e 2642 * megasas_suspend - driver suspend entry point
2643 * @pdev: PCI device structure
31ea7088 2644 * @state: PCI power state to suspend routine
2645 */
2646static int __devinit
2647megasas_suspend(struct pci_dev *pdev, pm_message_t state)
2648{
2649 struct Scsi_Host *host;
2650 struct megasas_instance *instance;
2651
2652 instance = pci_get_drvdata(pdev);
2653 host = instance->host;
2654
ad84db2e 2655 if (poll_mode_io)
2656 del_timer_sync(&instance->io_completion_timer);
2657
31ea7088 2658 megasas_flush_cache(instance);
2659 megasas_shutdown_controller(instance, MR_DCMD_HIBERNATE_SHUTDOWN);
2660 tasklet_kill(&instance->isr_tasklet);
2661
2662 pci_set_drvdata(instance->pdev, instance);
2663 instance->instancet->disable_intr(instance->reg_set);
2664 free_irq(instance->pdev->irq, instance);
2665
2666 pci_save_state(pdev);
2667 pci_disable_device(pdev);
2668
2669 pci_set_power_state(pdev, pci_choose_state(pdev, state));
2670
2671 return 0;
2672}
2673
2674/**
2675 * megasas_resume- driver resume entry point
2676 * @pdev: PCI device structure
2677 */
2678static int __devinit
2679megasas_resume(struct pci_dev *pdev)
2680{
2681 int rval;
2682 struct Scsi_Host *host;
2683 struct megasas_instance *instance;
2684
2685 instance = pci_get_drvdata(pdev);
2686 host = instance->host;
2687 pci_set_power_state(pdev, PCI_D0);
2688 pci_enable_wake(pdev, PCI_D0, 0);
2689 pci_restore_state(pdev);
2690
2691 /*
2692 * PCI prepping: enable device set bus mastering and dma mask
2693 */
2694 rval = pci_enable_device(pdev);
2695
2696 if (rval) {
2697 printk(KERN_ERR "megasas: Enable device failed\n");
2698 return rval;
2699 }
2700
2701 pci_set_master(pdev);
2702
2703 if (megasas_set_dma_mask(pdev))
2704 goto fail_set_dma_mask;
2705
2706 /*
2707 * Initialize MFI Firmware
2708 */
2709
2710 *instance->producer = 0;
2711 *instance->consumer = 0;
2712
2713 atomic_set(&instance->fw_outstanding, 0);
2714
2715 /*
2716 * We expect the FW state to be READY
2717 */
2718 if (megasas_transition_to_ready(instance))
2719 goto fail_ready_state;
2720
2721 if (megasas_issue_init_mfi(instance))
2722 goto fail_init_mfi;
2723
2724 tasklet_init(&instance->isr_tasklet, megasas_complete_cmd_dpc,
2725 (unsigned long)instance);
2726
2727 /*
2728 * Register IRQ
2729 */
2730 if (request_irq(pdev->irq, megasas_isr, IRQF_SHARED,
2731 "megasas", instance)) {
2732 printk(KERN_ERR "megasas: Failed to register IRQ\n");
2733 goto fail_irq;
2734 }
2735
2736 instance->instancet->enable_intr(instance->reg_set);
2737
2738 /*
2739 * Initiate AEN (Asynchronous Event Notification)
2740 */
2741 if (megasas_start_aen(instance))
2742 printk(KERN_ERR "megasas: Start AEN failed\n");
2743
ad84db2e 2744 /* Initialize the cmd completion timer */
2745 if (poll_mode_io)
2746 megasas_start_timer(instance, &instance->io_completion_timer,
2747 megasas_io_completion_timer,
2748 MEGASAS_COMPLETION_TIMER_INTERVAL);
31ea7088 2749 return 0;
2750
2751fail_irq:
2752fail_init_mfi:
2753 if (instance->evt_detail)
2754 pci_free_consistent(pdev, sizeof(struct megasas_evt_detail),
2755 instance->evt_detail,
2756 instance->evt_detail_h);
2757
2758 if (instance->producer)
2759 pci_free_consistent(pdev, sizeof(u32), instance->producer,
2760 instance->producer_h);
2761 if (instance->consumer)
2762 pci_free_consistent(pdev, sizeof(u32), instance->consumer,
2763 instance->consumer_h);
2764 scsi_host_put(host);
2765
2766fail_set_dma_mask:
2767fail_ready_state:
2768
2769 pci_disable_device(pdev);
2770
2771 return -ENODEV;
2772}
2773
c4a3e0a5
BS
2774/**
2775 * megasas_detach_one - PCI hot"un"plug entry point
2776 * @pdev: PCI device structure
2777 */
2778static void megasas_detach_one(struct pci_dev *pdev)
2779{
2780 int i;
2781 struct Scsi_Host *host;
2782 struct megasas_instance *instance;
2783
2784 instance = pci_get_drvdata(pdev);
2785 host = instance->host;
2786
ad84db2e 2787 if (poll_mode_io)
2788 del_timer_sync(&instance->io_completion_timer);
2789
c4a3e0a5
BS
2790 scsi_remove_host(instance->host);
2791 megasas_flush_cache(instance);
31ea7088 2792 megasas_shutdown_controller(instance, MR_DCMD_CTRL_SHUTDOWN);
5d018ad0 2793 tasklet_kill(&instance->isr_tasklet);
c4a3e0a5
BS
2794
2795 /*
2796 * Take the instance off the instance array. Note that we will not
2797 * decrement the max_index. We let this array be sparse array
2798 */
2799 for (i = 0; i < megasas_mgmt_info.max_index; i++) {
2800 if (megasas_mgmt_info.instance[i] == instance) {
2801 megasas_mgmt_info.count--;
2802 megasas_mgmt_info.instance[i] = NULL;
2803
2804 break;
2805 }
2806 }
2807
2808 pci_set_drvdata(instance->pdev, NULL);
2809
b274cab7 2810 instance->instancet->disable_intr(instance->reg_set);
c4a3e0a5
BS
2811
2812 free_irq(instance->pdev->irq, instance);
2813
2814 megasas_release_mfi(instance);
2815
2816 pci_free_consistent(pdev, sizeof(struct megasas_evt_detail),
2817 instance->evt_detail, instance->evt_detail_h);
2818
2819 pci_free_consistent(pdev, sizeof(u32), instance->producer,
2820 instance->producer_h);
2821
2822 pci_free_consistent(pdev, sizeof(u32), instance->consumer,
2823 instance->consumer_h);
2824
2825 scsi_host_put(host);
2826
2827 pci_set_drvdata(pdev, NULL);
2828
2829 pci_disable_device(pdev);
2830
2831 return;
2832}
2833
2834/**
2835 * megasas_shutdown - Shutdown entry point
2836 * @device: Generic device structure
2837 */
2838static void megasas_shutdown(struct pci_dev *pdev)
2839{
2840 struct megasas_instance *instance = pci_get_drvdata(pdev);
2841 megasas_flush_cache(instance);
2842}
2843
2844/**
2845 * megasas_mgmt_open - char node "open" entry point
2846 */
2847static int megasas_mgmt_open(struct inode *inode, struct file *filep)
2848{
2849 /*
2850 * Allow only those users with admin rights
2851 */
2852 if (!capable(CAP_SYS_ADMIN))
2853 return -EACCES;
2854
2855 return 0;
2856}
2857
2858/**
2859 * megasas_mgmt_release - char node "release" entry point
2860 */
2861static int megasas_mgmt_release(struct inode *inode, struct file *filep)
2862{
2863 filep->private_data = NULL;
2864 fasync_helper(-1, filep, 0, &megasas_async_queue);
2865
2866 return 0;
2867}
2868
2869/**
2870 * megasas_mgmt_fasync - Async notifier registration from applications
2871 *
2872 * This function adds the calling process to a driver global queue. When an
2873 * event occurs, SIGIO will be sent to all processes in this queue.
2874 */
2875static int megasas_mgmt_fasync(int fd, struct file *filep, int mode)
2876{
2877 int rc;
2878
0b950672 2879 mutex_lock(&megasas_async_queue_mutex);
c4a3e0a5
BS
2880
2881 rc = fasync_helper(fd, filep, mode, &megasas_async_queue);
2882
0b950672 2883 mutex_unlock(&megasas_async_queue_mutex);
c4a3e0a5
BS
2884
2885 if (rc >= 0) {
2886 /* For sanity check when we get ioctl */
2887 filep->private_data = filep;
2888 return 0;
2889 }
2890
2891 printk(KERN_DEBUG "megasas: fasync_helper failed [%d]\n", rc);
2892
2893 return rc;
2894}
2895
2896/**
2897 * megasas_mgmt_fw_ioctl - Issues management ioctls to FW
2898 * @instance: Adapter soft state
2899 * @argp: User's ioctl packet
2900 */
2901static int
2902megasas_mgmt_fw_ioctl(struct megasas_instance *instance,
2903 struct megasas_iocpacket __user * user_ioc,
2904 struct megasas_iocpacket *ioc)
2905{
2906 struct megasas_sge32 *kern_sge32;
2907 struct megasas_cmd *cmd;
2908 void *kbuff_arr[MAX_IOCTL_SGE];
2909 dma_addr_t buf_handle = 0;
2910 int error = 0, i;
2911 void *sense = NULL;
2912 dma_addr_t sense_handle;
2913 u32 *sense_ptr;
b10c36a5 2914 unsigned long *sense_buff;
c4a3e0a5
BS
2915
2916 memset(kbuff_arr, 0, sizeof(kbuff_arr));
2917
2918 if (ioc->sge_count > MAX_IOCTL_SGE) {
2919 printk(KERN_DEBUG "megasas: SGE count [%d] > max limit [%d]\n",
2920 ioc->sge_count, MAX_IOCTL_SGE);
2921 return -EINVAL;
2922 }
2923
2924 cmd = megasas_get_cmd(instance);
2925 if (!cmd) {
2926 printk(KERN_DEBUG "megasas: Failed to get a cmd packet\n");
2927 return -ENOMEM;
2928 }
2929
2930 /*
2931 * User's IOCTL packet has 2 frames (maximum). Copy those two
2932 * frames into our cmd's frames. cmd->frame's context will get
2933 * overwritten when we copy from user's frames. So set that value
2934 * alone separately
2935 */
2936 memcpy(cmd->frame, ioc->frame.raw, 2 * MEGAMFI_FRAME_SIZE);
2937 cmd->frame->hdr.context = cmd->index;
2938
2939 /*
2940 * The management interface between applications and the fw uses
2941 * MFI frames. E.g, RAID configuration changes, LD property changes
2942 * etc are accomplishes through different kinds of MFI frames. The
2943 * driver needs to care only about substituting user buffers with
2944 * kernel buffers in SGLs. The location of SGL is embedded in the
2945 * struct iocpacket itself.
2946 */
2947 kern_sge32 = (struct megasas_sge32 *)
2948 ((unsigned long)cmd->frame + ioc->sgl_off);
2949
2950 /*
2951 * For each user buffer, create a mirror buffer and copy in
2952 */
2953 for (i = 0; i < ioc->sge_count; i++) {
9f35fa8a 2954 kbuff_arr[i] = dma_alloc_coherent(&instance->pdev->dev,
c4a3e0a5 2955 ioc->sgl[i].iov_len,
9f35fa8a 2956 &buf_handle, GFP_KERNEL);
c4a3e0a5
BS
2957 if (!kbuff_arr[i]) {
2958 printk(KERN_DEBUG "megasas: Failed to alloc "
2959 "kernel SGL buffer for IOCTL \n");
2960 error = -ENOMEM;
2961 goto out;
2962 }
2963
2964 /*
2965 * We don't change the dma_coherent_mask, so
2966 * pci_alloc_consistent only returns 32bit addresses
2967 */
2968 kern_sge32[i].phys_addr = (u32) buf_handle;
2969 kern_sge32[i].length = ioc->sgl[i].iov_len;
2970
2971 /*
2972 * We created a kernel buffer corresponding to the
2973 * user buffer. Now copy in from the user buffer
2974 */
2975 if (copy_from_user(kbuff_arr[i], ioc->sgl[i].iov_base,
2976 (u32) (ioc->sgl[i].iov_len))) {
2977 error = -EFAULT;
2978 goto out;
2979 }
2980 }
2981
2982 if (ioc->sense_len) {
9f35fa8a
SP
2983 sense = dma_alloc_coherent(&instance->pdev->dev, ioc->sense_len,
2984 &sense_handle, GFP_KERNEL);
c4a3e0a5
BS
2985 if (!sense) {
2986 error = -ENOMEM;
2987 goto out;
2988 }
2989
2990 sense_ptr =
2991 (u32 *) ((unsigned long)cmd->frame + ioc->sense_off);
2992 *sense_ptr = sense_handle;
2993 }
2994
2995 /*
2996 * Set the sync_cmd flag so that the ISR knows not to complete this
2997 * cmd to the SCSI mid-layer
2998 */
2999 cmd->sync_cmd = 1;
3000 megasas_issue_blocked_cmd(instance, cmd);
3001 cmd->sync_cmd = 0;
3002
3003 /*
3004 * copy out the kernel buffers to user buffers
3005 */
3006 for (i = 0; i < ioc->sge_count; i++) {
3007 if (copy_to_user(ioc->sgl[i].iov_base, kbuff_arr[i],
3008 ioc->sgl[i].iov_len)) {
3009 error = -EFAULT;
3010 goto out;
3011 }
3012 }
3013
3014 /*
3015 * copy out the sense
3016 */
3017 if (ioc->sense_len) {
3018 /*
b10c36a5 3019 * sense_buff points to the location that has the user
c4a3e0a5
BS
3020 * sense buffer address
3021 */
b10c36a5 3022 sense_buff = (unsigned long *) ((unsigned long)ioc->frame.raw +
3023 ioc->sense_off);
c4a3e0a5 3024
b10c36a5 3025 if (copy_to_user((void __user *)(unsigned long)(*sense_buff),
3026 sense, ioc->sense_len)) {
3027 printk(KERN_ERR "megasas: Failed to copy out to user "
3028 "sense data\n");
c4a3e0a5
BS
3029 error = -EFAULT;
3030 goto out;
3031 }
3032 }
3033
3034 /*
3035 * copy the status codes returned by the fw
3036 */
3037 if (copy_to_user(&user_ioc->frame.hdr.cmd_status,
3038 &cmd->frame->hdr.cmd_status, sizeof(u8))) {
3039 printk(KERN_DEBUG "megasas: Error copying out cmd_status\n");
3040 error = -EFAULT;
3041 }
3042
3043 out:
3044 if (sense) {
9f35fa8a 3045 dma_free_coherent(&instance->pdev->dev, ioc->sense_len,
c4a3e0a5
BS
3046 sense, sense_handle);
3047 }
3048
3049 for (i = 0; i < ioc->sge_count && kbuff_arr[i]; i++) {
9f35fa8a 3050 dma_free_coherent(&instance->pdev->dev,
c4a3e0a5
BS
3051 kern_sge32[i].length,
3052 kbuff_arr[i], kern_sge32[i].phys_addr);
3053 }
3054
3055 megasas_return_cmd(instance, cmd);
3056 return error;
3057}
3058
3059static struct megasas_instance *megasas_lookup_instance(u16 host_no)
3060{
3061 int i;
3062
3063 for (i = 0; i < megasas_mgmt_info.max_index; i++) {
3064
3065 if ((megasas_mgmt_info.instance[i]) &&
3066 (megasas_mgmt_info.instance[i]->host->host_no == host_no))
3067 return megasas_mgmt_info.instance[i];
3068 }
3069
3070 return NULL;
3071}
3072
3073static int megasas_mgmt_ioctl_fw(struct file *file, unsigned long arg)
3074{
3075 struct megasas_iocpacket __user *user_ioc =
3076 (struct megasas_iocpacket __user *)arg;
3077 struct megasas_iocpacket *ioc;
3078 struct megasas_instance *instance;
3079 int error;
3080
3081 ioc = kmalloc(sizeof(*ioc), GFP_KERNEL);
3082 if (!ioc)
3083 return -ENOMEM;
3084
3085 if (copy_from_user(ioc, user_ioc, sizeof(*ioc))) {
3086 error = -EFAULT;
3087 goto out_kfree_ioc;
3088 }
3089
3090 instance = megasas_lookup_instance(ioc->host_no);
3091 if (!instance) {
3092 error = -ENODEV;
3093 goto out_kfree_ioc;
3094 }
3095
3096 /*
3097 * We will allow only MEGASAS_INT_CMDS number of parallel ioctl cmds
3098 */
3099 if (down_interruptible(&instance->ioctl_sem)) {
3100 error = -ERESTARTSYS;
3101 goto out_kfree_ioc;
3102 }
3103 error = megasas_mgmt_fw_ioctl(instance, user_ioc, ioc);
3104 up(&instance->ioctl_sem);
3105
3106 out_kfree_ioc:
3107 kfree(ioc);
3108 return error;
3109}
3110
3111static int megasas_mgmt_ioctl_aen(struct file *file, unsigned long arg)
3112{
3113 struct megasas_instance *instance;
3114 struct megasas_aen aen;
3115 int error;
3116
3117 if (file->private_data != file) {
3118 printk(KERN_DEBUG "megasas: fasync_helper was not "
3119 "called first\n");
3120 return -EINVAL;
3121 }
3122
3123 if (copy_from_user(&aen, (void __user *)arg, sizeof(aen)))
3124 return -EFAULT;
3125
3126 instance = megasas_lookup_instance(aen.host_no);
3127
3128 if (!instance)
3129 return -ENODEV;
3130
e5a69e27 3131 mutex_lock(&instance->aen_mutex);
c4a3e0a5
BS
3132 error = megasas_register_aen(instance, aen.seq_num,
3133 aen.class_locale_word);
e5a69e27 3134 mutex_unlock(&instance->aen_mutex);
c4a3e0a5
BS
3135 return error;
3136}
3137
3138/**
3139 * megasas_mgmt_ioctl - char node ioctl entry point
3140 */
3141static long
3142megasas_mgmt_ioctl(struct file *file, unsigned int cmd, unsigned long arg)
3143{
3144 switch (cmd) {
3145 case MEGASAS_IOC_FIRMWARE:
3146 return megasas_mgmt_ioctl_fw(file, arg);
3147
3148 case MEGASAS_IOC_GET_AEN:
3149 return megasas_mgmt_ioctl_aen(file, arg);
3150 }
3151
3152 return -ENOTTY;
3153}
3154
3155#ifdef CONFIG_COMPAT
3156static int megasas_mgmt_compat_ioctl_fw(struct file *file, unsigned long arg)
3157{
3158 struct compat_megasas_iocpacket __user *cioc =
3159 (struct compat_megasas_iocpacket __user *)arg;
3160 struct megasas_iocpacket __user *ioc =
3161 compat_alloc_user_space(sizeof(struct megasas_iocpacket));
3162 int i;
3163 int error = 0;
3164
83aabc1b
JG
3165 if (clear_user(ioc, sizeof(*ioc)))
3166 return -EFAULT;
c4a3e0a5
BS
3167
3168 if (copy_in_user(&ioc->host_no, &cioc->host_no, sizeof(u16)) ||
3169 copy_in_user(&ioc->sgl_off, &cioc->sgl_off, sizeof(u32)) ||
3170 copy_in_user(&ioc->sense_off, &cioc->sense_off, sizeof(u32)) ||
3171 copy_in_user(&ioc->sense_len, &cioc->sense_len, sizeof(u32)) ||
3172 copy_in_user(ioc->frame.raw, cioc->frame.raw, 128) ||
3173 copy_in_user(&ioc->sge_count, &cioc->sge_count, sizeof(u32)))
3174 return -EFAULT;
3175
3176 for (i = 0; i < MAX_IOCTL_SGE; i++) {
3177 compat_uptr_t ptr;
3178
3179 if (get_user(ptr, &cioc->sgl[i].iov_base) ||
3180 put_user(compat_ptr(ptr), &ioc->sgl[i].iov_base) ||
3181 copy_in_user(&ioc->sgl[i].iov_len,
3182 &cioc->sgl[i].iov_len, sizeof(compat_size_t)))
3183 return -EFAULT;
3184 }
3185
3186 error = megasas_mgmt_ioctl_fw(file, (unsigned long)ioc);
3187
3188 if (copy_in_user(&cioc->frame.hdr.cmd_status,
3189 &ioc->frame.hdr.cmd_status, sizeof(u8))) {
3190 printk(KERN_DEBUG "megasas: error copy_in_user cmd_status\n");
3191 return -EFAULT;
3192 }
3193 return error;
3194}
3195
3196static long
3197megasas_mgmt_compat_ioctl(struct file *file, unsigned int cmd,
3198 unsigned long arg)
3199{
3200 switch (cmd) {
cb59aa6a
SP
3201 case MEGASAS_IOC_FIRMWARE32:
3202 return megasas_mgmt_compat_ioctl_fw(file, arg);
c4a3e0a5
BS
3203 case MEGASAS_IOC_GET_AEN:
3204 return megasas_mgmt_ioctl_aen(file, arg);
3205 }
3206
3207 return -ENOTTY;
3208}
3209#endif
3210
3211/*
3212 * File operations structure for management interface
3213 */
00977a59 3214static const struct file_operations megasas_mgmt_fops = {
c4a3e0a5
BS
3215 .owner = THIS_MODULE,
3216 .open = megasas_mgmt_open,
3217 .release = megasas_mgmt_release,
3218 .fasync = megasas_mgmt_fasync,
3219 .unlocked_ioctl = megasas_mgmt_ioctl,
3220#ifdef CONFIG_COMPAT
3221 .compat_ioctl = megasas_mgmt_compat_ioctl,
3222#endif
3223};
3224
3225/*
3226 * PCI hotplug support registration structure
3227 */
3228static struct pci_driver megasas_pci_driver = {
3229
3230 .name = "megaraid_sas",
3231 .id_table = megasas_pci_table,
3232 .probe = megasas_probe_one,
3233 .remove = __devexit_p(megasas_detach_one),
31ea7088 3234 .suspend = megasas_suspend,
3235 .resume = megasas_resume,
c4a3e0a5
BS
3236 .shutdown = megasas_shutdown,
3237};
3238
3239/*
3240 * Sysfs driver attributes
3241 */
3242static ssize_t megasas_sysfs_show_version(struct device_driver *dd, char *buf)
3243{
3244 return snprintf(buf, strlen(MEGASAS_VERSION) + 2, "%s\n",
3245 MEGASAS_VERSION);
3246}
3247
3248static DRIVER_ATTR(version, S_IRUGO, megasas_sysfs_show_version, NULL);
3249
3250static ssize_t
3251megasas_sysfs_show_release_date(struct device_driver *dd, char *buf)
3252{
3253 return snprintf(buf, strlen(MEGASAS_RELDATE) + 2, "%s\n",
3254 MEGASAS_RELDATE);
3255}
3256
3257static DRIVER_ATTR(release_date, S_IRUGO, megasas_sysfs_show_release_date,
3258 NULL);
3259
658dcedb
SP
3260static ssize_t
3261megasas_sysfs_show_dbg_lvl(struct device_driver *dd, char *buf)
3262{
ad84db2e 3263 return sprintf(buf, "%u\n", megasas_dbg_lvl);
658dcedb
SP
3264}
3265
3266static ssize_t
3267megasas_sysfs_set_dbg_lvl(struct device_driver *dd, const char *buf, size_t count)
3268{
3269 int retval = count;
3270 if(sscanf(buf,"%u",&megasas_dbg_lvl)<1){
3271 printk(KERN_ERR "megasas: could not set dbg_lvl\n");
3272 retval = -EINVAL;
3273 }
3274 return retval;
3275}
3276
3277static DRIVER_ATTR(dbg_lvl, S_IRUGO|S_IWUGO, megasas_sysfs_show_dbg_lvl,
ad84db2e 3278 megasas_sysfs_set_dbg_lvl);
3279
3280static ssize_t
3281megasas_sysfs_show_poll_mode_io(struct device_driver *dd, char *buf)
3282{
3283 return sprintf(buf, "%u\n", poll_mode_io);
3284}
3285
3286static ssize_t
3287megasas_sysfs_set_poll_mode_io(struct device_driver *dd,
3288 const char *buf, size_t count)
3289{
3290 int retval = count;
3291 int tmp = poll_mode_io;
3292 int i;
3293 struct megasas_instance *instance;
3294
3295 if (sscanf(buf, "%u", &poll_mode_io) < 1) {
3296 printk(KERN_ERR "megasas: could not set poll_mode_io\n");
3297 retval = -EINVAL;
3298 }
3299
3300 /*
3301 * Check if poll_mode_io is already set or is same as previous value
3302 */
3303 if ((tmp && poll_mode_io) || (tmp == poll_mode_io))
3304 goto out;
3305
3306 if (poll_mode_io) {
3307 /*
3308 * Start timers for all adapters
3309 */
3310 for (i = 0; i < megasas_mgmt_info.max_index; i++) {
3311 instance = megasas_mgmt_info.instance[i];
3312 if (instance) {
3313 megasas_start_timer(instance,
3314 &instance->io_completion_timer,
3315 megasas_io_completion_timer,
3316 MEGASAS_COMPLETION_TIMER_INTERVAL);
3317 }
3318 }
3319 } else {
3320 /*
3321 * Delete timers for all adapters
3322 */
3323 for (i = 0; i < megasas_mgmt_info.max_index; i++) {
3324 instance = megasas_mgmt_info.instance[i];
3325 if (instance)
3326 del_timer_sync(&instance->io_completion_timer);
3327 }
3328 }
3329
3330out:
3331 return retval;
3332}
3333
3334static DRIVER_ATTR(poll_mode_io, S_IRUGO|S_IWUGO,
3335 megasas_sysfs_show_poll_mode_io,
3336 megasas_sysfs_set_poll_mode_io);
658dcedb 3337
c4a3e0a5
BS
3338/**
3339 * megasas_init - Driver load entry point
3340 */
3341static int __init megasas_init(void)
3342{
3343 int rval;
3344
3345 /*
3346 * Announce driver version and other information
3347 */
3348 printk(KERN_INFO "megasas: %s %s\n", MEGASAS_VERSION,
3349 MEGASAS_EXT_VERSION);
3350
3351 memset(&megasas_mgmt_info, 0, sizeof(megasas_mgmt_info));
3352
3353 /*
3354 * Register character device node
3355 */
3356 rval = register_chrdev(0, "megaraid_sas_ioctl", &megasas_mgmt_fops);
3357
3358 if (rval < 0) {
3359 printk(KERN_DEBUG "megasas: failed to open device node\n");
3360 return rval;
3361 }
3362
3363 megasas_mgmt_majorno = rval;
3364
3365 /*
3366 * Register ourselves as PCI hotplug module
3367 */
4041b9cd 3368 rval = pci_register_driver(&megasas_pci_driver);
c4a3e0a5
BS
3369
3370 if (rval) {
3371 printk(KERN_DEBUG "megasas: PCI hotplug regisration failed \n");
83aabc1b
JG
3372 goto err_pcidrv;
3373 }
3374
3375 rval = driver_create_file(&megasas_pci_driver.driver,
3376 &driver_attr_version);
3377 if (rval)
3378 goto err_dcf_attr_ver;
3379 rval = driver_create_file(&megasas_pci_driver.driver,
3380 &driver_attr_release_date);
3381 if (rval)
3382 goto err_dcf_rel_date;
3383 rval = driver_create_file(&megasas_pci_driver.driver,
3384 &driver_attr_dbg_lvl);
3385 if (rval)
3386 goto err_dcf_dbg_lvl;
ad84db2e 3387 rval = driver_create_file(&megasas_pci_driver.driver,
3388 &driver_attr_poll_mode_io);
3389 if (rval)
3390 goto err_dcf_poll_mode_io;
c4a3e0a5
BS
3391
3392 return rval;
ad84db2e 3393
3394err_dcf_poll_mode_io:
3395 driver_remove_file(&megasas_pci_driver.driver,
3396 &driver_attr_dbg_lvl);
83aabc1b
JG
3397err_dcf_dbg_lvl:
3398 driver_remove_file(&megasas_pci_driver.driver,
3399 &driver_attr_release_date);
3400err_dcf_rel_date:
3401 driver_remove_file(&megasas_pci_driver.driver, &driver_attr_version);
3402err_dcf_attr_ver:
3403 pci_unregister_driver(&megasas_pci_driver);
3404err_pcidrv:
3405 unregister_chrdev(megasas_mgmt_majorno, "megaraid_sas_ioctl");
3406 return rval;
c4a3e0a5
BS
3407}
3408
3409/**
3410 * megasas_exit - Driver unload entry point
3411 */
3412static void __exit megasas_exit(void)
3413{
ad84db2e 3414 driver_remove_file(&megasas_pci_driver.driver,
3415 &driver_attr_poll_mode_io);
658dcedb
SP
3416 driver_remove_file(&megasas_pci_driver.driver,
3417 &driver_attr_dbg_lvl);
83aabc1b
JG
3418 driver_remove_file(&megasas_pci_driver.driver,
3419 &driver_attr_release_date);
3420 driver_remove_file(&megasas_pci_driver.driver, &driver_attr_version);
c4a3e0a5
BS
3421
3422 pci_unregister_driver(&megasas_pci_driver);
3423 unregister_chrdev(megasas_mgmt_majorno, "megaraid_sas_ioctl");
3424}
3425
3426module_init(megasas_init);
3427module_exit(megasas_exit);