1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 *
4 * Linux MegaRAID device driver
5 *
6 * Copyright (c) 2002 LSI Logic Corporation.
7 *
8 * Copyright (c) 2002 Red Hat, Inc. All rights reserved.
9 * - fixes
10 * - speed-ups (list handling fixes, issued_list, optimizations.)
11 * - lots of cleanups.
12 *
13 * Copyright (c) 2003 Christoph Hellwig <hch@lst.de>
14 * - new-style, hotplug-aware pci probing and scsi registration
15 *
16 * Version : v2.00.4 Mon Nov 14 14:02:43 EST 2005 - Seokmann Ju
17 * <Seokmann.Ju@lsil.com>
18 *
19 * Description: Linux device driver for LSI Logic MegaRAID controller
20 *
21 * Supported controllers: MegaRAID 418, 428, 438, 466, 762, 467, 471, 490, 493
22 * 518, 520, 531, 532
23 *
24 * This driver is supported by LSI Logic, with assistance from Red Hat, Dell,
25 * and others. Please send updates to the mailing list
26 * linux-scsi@vger.kernel.org .
27 */
28
29 #include <linux/mm.h>
30 #include <linux/fs.h>
31 #include <linux/blkdev.h>
32 #include <linux/uaccess.h>
33 #include <asm/io.h>
34 #include <linux/completion.h>
35 #include <linux/delay.h>
36 #include <linux/proc_fs.h>
37 #include <linux/seq_file.h>
38 #include <linux/reboot.h>
39 #include <linux/module.h>
40 #include <linux/list.h>
41 #include <linux/interrupt.h>
42 #include <linux/pci.h>
43 #include <linux/init.h>
44 #include <linux/dma-mapping.h>
45 #include <linux/mutex.h>
46 #include <linux/slab.h>
47 #include <scsi/scsicam.h>
48
49 #include "scsi.h"
50 #include <scsi/scsi_host.h>
51
52 #include "megaraid.h"
53
54 #define MEGARAID_MODULE_VERSION "2.00.4"
55
56 MODULE_AUTHOR ("sju@lsil.com");
57 MODULE_DESCRIPTION ("LSI Logic MegaRAID legacy driver");
58 MODULE_LICENSE ("GPL");
59 MODULE_VERSION(MEGARAID_MODULE_VERSION);
60
61 static DEFINE_MUTEX(megadev_mutex);
62 static unsigned int max_cmd_per_lun = DEF_CMD_PER_LUN;
63 module_param(max_cmd_per_lun, uint, 0);
64 MODULE_PARM_DESC(max_cmd_per_lun, "Maximum number of commands which can be issued to a single LUN (default=DEF_CMD_PER_LUN=63)");
65
66 static unsigned short int max_sectors_per_io = MAX_SECTORS_PER_IO;
67 module_param(max_sectors_per_io, ushort, 0);
68 MODULE_PARM_DESC(max_sectors_per_io, "Maximum number of sectors per I/O request (default=MAX_SECTORS_PER_IO=128)");
69
70
71 static unsigned short int max_mbox_busy_wait = MBOX_BUSY_WAIT;
72 module_param(max_mbox_busy_wait, ushort, 0);
73 MODULE_PARM_DESC(max_mbox_busy_wait, "Maximum wait for mailbox in microseconds if busy (default=MBOX_BUSY_WAIT=10)");
74
75 #define RDINDOOR(adapter) readl((adapter)->mmio_base + 0x20)
76 #define RDOUTDOOR(adapter) readl((adapter)->mmio_base + 0x2C)
77 #define WRINDOOR(adapter,value) writel(value, (adapter)->mmio_base + 0x20)
78 #define WROUTDOOR(adapter,value) writel(value, (adapter)->mmio_base + 0x2C)
79
80 /*
81 * Global variables
82 */
83
84 static int hba_count;
85 static adapter_t *hba_soft_state[MAX_CONTROLLERS];
86 static struct proc_dir_entry *mega_proc_dir_entry;
87
88 /* For controller re-ordering */
89 static struct mega_hbas mega_hbas[MAX_CONTROLLERS];
90
91 static long
92 megadev_unlocked_ioctl(struct file *filep, unsigned int cmd, unsigned long arg);
93
94 /*
95 * The File Operations structure for the serial/ioctl interface of the driver
96 */
97 static const struct file_operations megadev_fops = {
98 .owner = THIS_MODULE,
99 .unlocked_ioctl = megadev_unlocked_ioctl,
100 .open = megadev_open,
101 .llseek = noop_llseek,
102 };
103
104 /*
105 * Array to structures for storing the information about the controllers. This
106 * information is sent to the user level applications, when they do an ioctl
107 * for this information.
108 */
109 static struct mcontroller mcontroller[MAX_CONTROLLERS];
110
111 /* The current driver version */
112 static u32 driver_ver = 0x02000000;
113
114 /* major number used by the device for character interface */
115 static int major;
116
117 #define IS_RAID_CH(hba, ch) (((hba)->mega_ch_class >> (ch)) & 0x01)
118
119
120 /*
121 * Debug variable to print some diagnostic messages
122 */
123 static int trace_level;
124
125 /**
126 * mega_setup_mailbox()
127 * @adapter: pointer to our soft state
128 *
129 * Allocates a 8 byte aligned memory for the handshake mailbox.
130 */
131 static int
mega_setup_mailbox(adapter_t * adapter)132 mega_setup_mailbox(adapter_t *adapter)
133 {
134 unsigned long align;
135
136 adapter->una_mbox64 = dma_alloc_coherent(&adapter->dev->dev,
137 sizeof(mbox64_t),
138 &adapter->una_mbox64_dma,
139 GFP_KERNEL);
140
141 if( !adapter->una_mbox64 ) return -1;
142
143 adapter->mbox = &adapter->una_mbox64->mbox;
144
145 adapter->mbox = (mbox_t *)((((unsigned long) adapter->mbox) + 15) &
146 (~0UL ^ 0xFUL));
147
148 adapter->mbox64 = (mbox64_t *)(((unsigned long)adapter->mbox) - 8);
149
150 align = ((void *)adapter->mbox) - ((void *)&adapter->una_mbox64->mbox);
151
152 adapter->mbox_dma = adapter->una_mbox64_dma + 8 + align;
153
154 /*
155 * Register the mailbox if the controller is an io-mapped controller
156 */
157 if( adapter->flag & BOARD_IOMAP ) {
158
159 outb(adapter->mbox_dma & 0xFF,
160 adapter->host->io_port + MBOX_PORT0);
161
162 outb((adapter->mbox_dma >> 8) & 0xFF,
163 adapter->host->io_port + MBOX_PORT1);
164
165 outb((adapter->mbox_dma >> 16) & 0xFF,
166 adapter->host->io_port + MBOX_PORT2);
167
168 outb((adapter->mbox_dma >> 24) & 0xFF,
169 adapter->host->io_port + MBOX_PORT3);
170
171 outb(ENABLE_MBOX_BYTE,
172 adapter->host->io_port + ENABLE_MBOX_REGION);
173
174 irq_ack(adapter);
175
176 irq_enable(adapter);
177 }
178
179 return 0;
180 }
181
182
183 /*
184 * mega_query_adapter()
185 * @adapter - pointer to our soft state
186 *
187 * Issue the adapter inquiry commands to the controller and find out
188 * information and parameter about the devices attached
189 */
190 static int
mega_query_adapter(adapter_t * adapter)191 mega_query_adapter(adapter_t *adapter)
192 {
193 dma_addr_t prod_info_dma_handle;
194 mega_inquiry3 *inquiry3;
195 u8 raw_mbox[sizeof(struct mbox_out)];
196 mbox_t *mbox;
197 int retval;
198
199 /* Initialize adapter inquiry mailbox */
200
201 mbox = (mbox_t *)raw_mbox;
202
203 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
204 memset(&mbox->m_out, 0, sizeof(raw_mbox));
205
206 /*
207 * Try to issue Inquiry3 command
208 * if not succeeded, then issue MEGA_MBOXCMD_ADAPTERINQ command and
209 * update enquiry3 structure
210 */
211 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
212
213 inquiry3 = (mega_inquiry3 *)adapter->mega_buffer;
214
215 raw_mbox[0] = FC_NEW_CONFIG; /* i.e. mbox->cmd=0xA1 */
216 raw_mbox[2] = NC_SUBOP_ENQUIRY3; /* i.e. 0x0F */
217 raw_mbox[3] = ENQ3_GET_SOLICITED_FULL; /* i.e. 0x02 */
218
219 /* Issue a blocking command to the card */
220 if ((retval = issue_scb_block(adapter, raw_mbox))) {
221 /* the adapter does not support 40ld */
222
223 mraid_ext_inquiry *ext_inq;
224 mraid_inquiry *inq;
225 dma_addr_t dma_handle;
226
227 ext_inq = dma_alloc_coherent(&adapter->dev->dev,
228 sizeof(mraid_ext_inquiry),
229 &dma_handle, GFP_KERNEL);
230
231 if( ext_inq == NULL ) return -1;
232
233 inq = &ext_inq->raid_inq;
234
235 mbox->m_out.xferaddr = (u32)dma_handle;
236
237 /*issue old 0x04 command to adapter */
238 mbox->m_out.cmd = MEGA_MBOXCMD_ADPEXTINQ;
239
240 issue_scb_block(adapter, raw_mbox);
241
242 /*
243 * update Enquiry3 and ProductInfo structures with
244 * mraid_inquiry structure
245 */
246 mega_8_to_40ld(inq, inquiry3,
247 (mega_product_info *)&adapter->product_info);
248
249 dma_free_coherent(&adapter->dev->dev,
250 sizeof(mraid_ext_inquiry), ext_inq,
251 dma_handle);
252
253 } else { /*adapter supports 40ld */
254 adapter->flag |= BOARD_40LD;
255
256 /*
257 * get product_info, which is static information and will be
258 * unchanged
259 */
260 prod_info_dma_handle = dma_map_single(&adapter->dev->dev,
261 (void *)&adapter->product_info,
262 sizeof(mega_product_info),
263 DMA_FROM_DEVICE);
264
265 mbox->m_out.xferaddr = prod_info_dma_handle;
266
267 raw_mbox[0] = FC_NEW_CONFIG; /* i.e. mbox->cmd=0xA1 */
268 raw_mbox[2] = NC_SUBOP_PRODUCT_INFO; /* i.e. 0x0E */
269
270 if ((retval = issue_scb_block(adapter, raw_mbox)))
271 dev_warn(&adapter->dev->dev,
272 "Product_info cmd failed with error: %d\n",
273 retval);
274
275 dma_unmap_single(&adapter->dev->dev, prod_info_dma_handle,
276 sizeof(mega_product_info), DMA_FROM_DEVICE);
277 }
278
279
280 /*
281 * kernel scans the channels from 0 to <= max_channel
282 */
283 adapter->host->max_channel =
284 adapter->product_info.nchannels + NVIRT_CHAN -1;
285
286 adapter->host->max_id = 16; /* max targets per channel */
287
288 adapter->host->max_lun = 7; /* Up to 7 luns for non disk devices */
289
290 adapter->host->cmd_per_lun = max_cmd_per_lun;
291
292 adapter->numldrv = inquiry3->num_ldrv;
293
294 adapter->max_cmds = adapter->product_info.max_commands;
295
296 if(adapter->max_cmds > MAX_COMMANDS)
297 adapter->max_cmds = MAX_COMMANDS;
298
299 adapter->host->can_queue = adapter->max_cmds - 1;
300
301 /*
302 * Get the maximum number of scatter-gather elements supported by this
303 * firmware
304 */
305 mega_get_max_sgl(adapter);
306
307 adapter->host->sg_tablesize = adapter->sglen;
308
309 /* use HP firmware and bios version encoding
310 Note: fw_version[0|1] and bios_version[0|1] were originally shifted
311 right 8 bits making them zero. This 0 value was hardcoded to fix
312 sparse warnings. */
313 if (adapter->product_info.subsysvid == PCI_VENDOR_ID_HP) {
314 snprintf(adapter->fw_version, sizeof(adapter->fw_version),
315 "%c%d%d.%d%d",
316 adapter->product_info.fw_version[2],
317 0,
318 adapter->product_info.fw_version[1] & 0x0f,
319 0,
320 adapter->product_info.fw_version[0] & 0x0f);
321 snprintf(adapter->bios_version, sizeof(adapter->fw_version),
322 "%c%d%d.%d%d",
323 adapter->product_info.bios_version[2],
324 0,
325 adapter->product_info.bios_version[1] & 0x0f,
326 0,
327 adapter->product_info.bios_version[0] & 0x0f);
328 } else {
329 memcpy(adapter->fw_version,
330 (char *)adapter->product_info.fw_version, 4);
331 adapter->fw_version[4] = 0;
332
333 memcpy(adapter->bios_version,
334 (char *)adapter->product_info.bios_version, 4);
335
336 adapter->bios_version[4] = 0;
337 }
338
339 dev_notice(&adapter->dev->dev, "[%s:%s] detected %d logical drives\n",
340 adapter->fw_version, adapter->bios_version, adapter->numldrv);
341
342 /*
343 * Do we support extended (>10 bytes) cdbs
344 */
345 adapter->support_ext_cdb = mega_support_ext_cdb(adapter);
346 if (adapter->support_ext_cdb)
347 dev_notice(&adapter->dev->dev, "supports extended CDBs\n");
348
349
350 return 0;
351 }
352
353 /**
354 * mega_runpendq()
355 * @adapter: pointer to our soft state
356 *
357 * Runs through the list of pending requests.
358 */
359 static inline void
mega_runpendq(adapter_t * adapter)360 mega_runpendq(adapter_t *adapter)
361 {
362 if(!list_empty(&adapter->pending_list))
363 __mega_runpendq(adapter);
364 }
365
366 /*
367 * megaraid_queue()
368 * @scmd - Issue this scsi command
369 * @done - the callback hook into the scsi mid-layer
370 *
371 * The command queuing entry point for the mid-layer.
372 */
373 static int
megaraid_queue_lck(struct scsi_cmnd * scmd,void (* done)(struct scsi_cmnd *))374 megaraid_queue_lck(struct scsi_cmnd *scmd, void (*done)(struct scsi_cmnd *))
375 {
376 adapter_t *adapter;
377 scb_t *scb;
378 int busy=0;
379 unsigned long flags;
380
381 adapter = (adapter_t *)scmd->device->host->hostdata;
382
383 scmd->scsi_done = done;
384
385
386 /*
387 * Allocate and build a SCB request
388 * busy flag will be set if mega_build_cmd() command could not
389 * allocate scb. We will return non-zero status in that case.
390 * NOTE: scb can be null even though certain commands completed
391 * successfully, e.g., MODE_SENSE and TEST_UNIT_READY, we would
392 * return 0 in that case.
393 */
394
395 spin_lock_irqsave(&adapter->lock, flags);
396 scb = mega_build_cmd(adapter, scmd, &busy);
397 if (!scb)
398 goto out;
399
400 scb->state |= SCB_PENDQ;
401 list_add_tail(&scb->list, &adapter->pending_list);
402
403 /*
404 * Check if the HBA is in quiescent state, e.g., during a
405 * delete logical drive opertion. If it is, don't run
406 * the pending_list.
407 */
408 if (atomic_read(&adapter->quiescent) == 0)
409 mega_runpendq(adapter);
410
411 busy = 0;
412 out:
413 spin_unlock_irqrestore(&adapter->lock, flags);
414 return busy;
415 }
416
DEF_SCSI_QCMD(megaraid_queue)417 static DEF_SCSI_QCMD(megaraid_queue)
418
419 /**
420 * mega_allocate_scb()
421 * @adapter: pointer to our soft state
422 * @cmd: scsi command from the mid-layer
423 *
424 * Allocate a SCB structure. This is the central structure for controller
425 * commands.
426 */
427 static inline scb_t *
428 mega_allocate_scb(adapter_t *adapter, struct scsi_cmnd *cmd)
429 {
430 struct list_head *head = &adapter->free_list;
431 scb_t *scb;
432
433 /* Unlink command from Free List */
434 if( !list_empty(head) ) {
435
436 scb = list_entry(head->next, scb_t, list);
437
438 list_del_init(head->next);
439
440 scb->state = SCB_ACTIVE;
441 scb->cmd = cmd;
442 scb->dma_type = MEGA_DMA_TYPE_NONE;
443
444 return scb;
445 }
446
447 return NULL;
448 }
449
450 /**
451 * mega_get_ldrv_num()
452 * @adapter: pointer to our soft state
453 * @cmd: scsi mid layer command
454 * @channel: channel on the controller
455 *
456 * Calculate the logical drive number based on the information in scsi command
457 * and the channel number.
458 */
459 static inline int
mega_get_ldrv_num(adapter_t * adapter,struct scsi_cmnd * cmd,int channel)460 mega_get_ldrv_num(adapter_t *adapter, struct scsi_cmnd *cmd, int channel)
461 {
462 int tgt;
463 int ldrv_num;
464
465 tgt = cmd->device->id;
466
467 if ( tgt > adapter->this_id )
468 tgt--; /* we do not get inquires for initiator id */
469
470 ldrv_num = (channel * 15) + tgt;
471
472
473 /*
474 * If we have a logical drive with boot enabled, project it first
475 */
476 if( adapter->boot_ldrv_enabled ) {
477 if( ldrv_num == 0 ) {
478 ldrv_num = adapter->boot_ldrv;
479 }
480 else {
481 if( ldrv_num <= adapter->boot_ldrv ) {
482 ldrv_num--;
483 }
484 }
485 }
486
487 /*
488 * If "delete logical drive" feature is enabled on this controller.
489 * Do only if at least one delete logical drive operation was done.
490 *
491 * Also, after logical drive deletion, instead of logical drive number,
492 * the value returned should be 0x80+logical drive id.
493 *
494 * These is valid only for IO commands.
495 */
496
497 if (adapter->support_random_del && adapter->read_ldidmap )
498 switch (cmd->cmnd[0]) {
499 case READ_6:
500 case WRITE_6:
501 case READ_10:
502 case WRITE_10:
503 ldrv_num += 0x80;
504 }
505
506 return ldrv_num;
507 }
508
509 /**
510 * mega_build_cmd()
511 * @adapter: pointer to our soft state
512 * @cmd: Prepare using this scsi command
513 * @busy: busy flag if no resources
514 *
515 * Prepares a command and scatter gather list for the controller. This routine
516 * also finds out if the commands is intended for a logical drive or a
517 * physical device and prepares the controller command accordingly.
518 *
519 * We also re-order the logical drives and physical devices based on their
520 * boot settings.
521 */
522 static scb_t *
mega_build_cmd(adapter_t * adapter,struct scsi_cmnd * cmd,int * busy)523 mega_build_cmd(adapter_t *adapter, struct scsi_cmnd *cmd, int *busy)
524 {
525 mega_passthru *pthru;
526 scb_t *scb;
527 mbox_t *mbox;
528 u32 seg;
529 char islogical;
530 int max_ldrv_num;
531 int channel = 0;
532 int target = 0;
533 int ldrv_num = 0; /* logical drive number */
534
535 /*
536 * We know what channels our logical drives are on - mega_find_card()
537 */
538 islogical = adapter->logdrv_chan[cmd->device->channel];
539
540 /*
541 * The theory: If physical drive is chosen for boot, all the physical
542 * devices are exported before the logical drives, otherwise physical
543 * devices are pushed after logical drives, in which case - Kernel sees
544 * the physical devices on virtual channel which is obviously converted
545 * to actual channel on the HBA.
546 */
547 if( adapter->boot_pdrv_enabled ) {
548 if( islogical ) {
549 /* logical channel */
550 channel = cmd->device->channel -
551 adapter->product_info.nchannels;
552 }
553 else {
554 /* this is physical channel */
555 channel = cmd->device->channel;
556 target = cmd->device->id;
557
558 /*
559 * boot from a physical disk, that disk needs to be
560 * exposed first IF both the channels are SCSI, then
561 * booting from the second channel is not allowed.
562 */
563 if( target == 0 ) {
564 target = adapter->boot_pdrv_tgt;
565 }
566 else if( target == adapter->boot_pdrv_tgt ) {
567 target = 0;
568 }
569 }
570 }
571 else {
572 if( islogical ) {
573 /* this is the logical channel */
574 channel = cmd->device->channel;
575 }
576 else {
577 /* physical channel */
578 channel = cmd->device->channel - NVIRT_CHAN;
579 target = cmd->device->id;
580 }
581 }
582
583
584 if(islogical) {
585
586 /* have just LUN 0 for each target on virtual channels */
587 if (cmd->device->lun) {
588 cmd->result = (DID_BAD_TARGET << 16);
589 cmd->scsi_done(cmd);
590 return NULL;
591 }
592
593 ldrv_num = mega_get_ldrv_num(adapter, cmd, channel);
594
595
596 max_ldrv_num = (adapter->flag & BOARD_40LD) ?
597 MAX_LOGICAL_DRIVES_40LD : MAX_LOGICAL_DRIVES_8LD;
598
599 /*
600 * max_ldrv_num increases by 0x80 if some logical drive was
601 * deleted.
602 */
603 if(adapter->read_ldidmap)
604 max_ldrv_num += 0x80;
605
606 if(ldrv_num > max_ldrv_num ) {
607 cmd->result = (DID_BAD_TARGET << 16);
608 cmd->scsi_done(cmd);
609 return NULL;
610 }
611
612 }
613 else {
614 if( cmd->device->lun > 7) {
615 /*
616 * Do not support lun >7 for physically accessed
617 * devices
618 */
619 cmd->result = (DID_BAD_TARGET << 16);
620 cmd->scsi_done(cmd);
621 return NULL;
622 }
623 }
624
625 /*
626 *
627 * Logical drive commands
628 *
629 */
630 if(islogical) {
631 switch (cmd->cmnd[0]) {
632 case TEST_UNIT_READY:
633 #if MEGA_HAVE_CLUSTERING
634 /*
635 * Do we support clustering and is the support enabled
636 * If no, return success always
637 */
638 if( !adapter->has_cluster ) {
639 cmd->result = (DID_OK << 16);
640 cmd->scsi_done(cmd);
641 return NULL;
642 }
643
644 if(!(scb = mega_allocate_scb(adapter, cmd))) {
645 *busy = 1;
646 return NULL;
647 }
648
649 scb->raw_mbox[0] = MEGA_CLUSTER_CMD;
650 scb->raw_mbox[2] = MEGA_RESERVATION_STATUS;
651 scb->raw_mbox[3] = ldrv_num;
652
653 scb->dma_direction = DMA_NONE;
654
655 return scb;
656 #else
657 cmd->result = (DID_OK << 16);
658 cmd->scsi_done(cmd);
659 return NULL;
660 #endif
661
662 case MODE_SENSE: {
663 char *buf;
664 struct scatterlist *sg;
665
666 sg = scsi_sglist(cmd);
667 buf = kmap_atomic(sg_page(sg)) + sg->offset;
668
669 memset(buf, 0, cmd->cmnd[4]);
670 kunmap_atomic(buf - sg->offset);
671
672 cmd->result = (DID_OK << 16);
673 cmd->scsi_done(cmd);
674 return NULL;
675 }
676
677 case READ_CAPACITY:
678 case INQUIRY:
679
680 if(!(adapter->flag & (1L << cmd->device->channel))) {
681
682 dev_notice(&adapter->dev->dev,
683 "scsi%d: scanning scsi channel %d "
684 "for logical drives\n",
685 adapter->host->host_no,
686 cmd->device->channel);
687
688 adapter->flag |= (1L << cmd->device->channel);
689 }
690
691 /* Allocate a SCB and initialize passthru */
692 if(!(scb = mega_allocate_scb(adapter, cmd))) {
693 *busy = 1;
694 return NULL;
695 }
696 pthru = scb->pthru;
697
698 mbox = (mbox_t *)scb->raw_mbox;
699 memset(mbox, 0, sizeof(scb->raw_mbox));
700 memset(pthru, 0, sizeof(mega_passthru));
701
702 pthru->timeout = 0;
703 pthru->ars = 1;
704 pthru->reqsenselen = 14;
705 pthru->islogical = 1;
706 pthru->logdrv = ldrv_num;
707 pthru->cdblen = cmd->cmd_len;
708 memcpy(pthru->cdb, cmd->cmnd, cmd->cmd_len);
709
710 if( adapter->has_64bit_addr ) {
711 mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU64;
712 }
713 else {
714 mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU;
715 }
716
717 scb->dma_direction = DMA_FROM_DEVICE;
718
719 pthru->numsgelements = mega_build_sglist(adapter, scb,
720 &pthru->dataxferaddr, &pthru->dataxferlen);
721
722 mbox->m_out.xferaddr = scb->pthru_dma_addr;
723
724 return scb;
725
726 case READ_6:
727 case WRITE_6:
728 case READ_10:
729 case WRITE_10:
730 case READ_12:
731 case WRITE_12:
732
733 /* Allocate a SCB and initialize mailbox */
734 if(!(scb = mega_allocate_scb(adapter, cmd))) {
735 *busy = 1;
736 return NULL;
737 }
738 mbox = (mbox_t *)scb->raw_mbox;
739
740 memset(mbox, 0, sizeof(scb->raw_mbox));
741 mbox->m_out.logdrv = ldrv_num;
742
743 /*
744 * A little hack: 2nd bit is zero for all scsi read
745 * commands and is set for all scsi write commands
746 */
747 if( adapter->has_64bit_addr ) {
748 mbox->m_out.cmd = (*cmd->cmnd & 0x02) ?
749 MEGA_MBOXCMD_LWRITE64:
750 MEGA_MBOXCMD_LREAD64 ;
751 }
752 else {
753 mbox->m_out.cmd = (*cmd->cmnd & 0x02) ?
754 MEGA_MBOXCMD_LWRITE:
755 MEGA_MBOXCMD_LREAD ;
756 }
757
758 /*
759 * 6-byte READ(0x08) or WRITE(0x0A) cdb
760 */
761 if( cmd->cmd_len == 6 ) {
762 mbox->m_out.numsectors = (u32) cmd->cmnd[4];
763 mbox->m_out.lba =
764 ((u32)cmd->cmnd[1] << 16) |
765 ((u32)cmd->cmnd[2] << 8) |
766 (u32)cmd->cmnd[3];
767
768 mbox->m_out.lba &= 0x1FFFFF;
769
770 #if MEGA_HAVE_STATS
771 /*
772 * Take modulo 0x80, since the logical drive
773 * number increases by 0x80 when a logical
774 * drive was deleted
775 */
776 if (*cmd->cmnd == READ_6) {
777 adapter->nreads[ldrv_num%0x80]++;
778 adapter->nreadblocks[ldrv_num%0x80] +=
779 mbox->m_out.numsectors;
780 } else {
781 adapter->nwrites[ldrv_num%0x80]++;
782 adapter->nwriteblocks[ldrv_num%0x80] +=
783 mbox->m_out.numsectors;
784 }
785 #endif
786 }
787
788 /*
789 * 10-byte READ(0x28) or WRITE(0x2A) cdb
790 */
791 if( cmd->cmd_len == 10 ) {
792 mbox->m_out.numsectors =
793 (u32)cmd->cmnd[8] |
794 ((u32)cmd->cmnd[7] << 8);
795 mbox->m_out.lba =
796 ((u32)cmd->cmnd[2] << 24) |
797 ((u32)cmd->cmnd[3] << 16) |
798 ((u32)cmd->cmnd[4] << 8) |
799 (u32)cmd->cmnd[5];
800
801 #if MEGA_HAVE_STATS
802 if (*cmd->cmnd == READ_10) {
803 adapter->nreads[ldrv_num%0x80]++;
804 adapter->nreadblocks[ldrv_num%0x80] +=
805 mbox->m_out.numsectors;
806 } else {
807 adapter->nwrites[ldrv_num%0x80]++;
808 adapter->nwriteblocks[ldrv_num%0x80] +=
809 mbox->m_out.numsectors;
810 }
811 #endif
812 }
813
814 /*
815 * 12-byte READ(0xA8) or WRITE(0xAA) cdb
816 */
817 if( cmd->cmd_len == 12 ) {
818 mbox->m_out.lba =
819 ((u32)cmd->cmnd[2] << 24) |
820 ((u32)cmd->cmnd[3] << 16) |
821 ((u32)cmd->cmnd[4] << 8) |
822 (u32)cmd->cmnd[5];
823
824 mbox->m_out.numsectors =
825 ((u32)cmd->cmnd[6] << 24) |
826 ((u32)cmd->cmnd[7] << 16) |
827 ((u32)cmd->cmnd[8] << 8) |
828 (u32)cmd->cmnd[9];
829
830 #if MEGA_HAVE_STATS
831 if (*cmd->cmnd == READ_12) {
832 adapter->nreads[ldrv_num%0x80]++;
833 adapter->nreadblocks[ldrv_num%0x80] +=
834 mbox->m_out.numsectors;
835 } else {
836 adapter->nwrites[ldrv_num%0x80]++;
837 adapter->nwriteblocks[ldrv_num%0x80] +=
838 mbox->m_out.numsectors;
839 }
840 #endif
841 }
842
843 /*
844 * If it is a read command
845 */
846 if( (*cmd->cmnd & 0x0F) == 0x08 ) {
847 scb->dma_direction = DMA_FROM_DEVICE;
848 }
849 else {
850 scb->dma_direction = DMA_TO_DEVICE;
851 }
852
853 /* Calculate Scatter-Gather info */
854 mbox->m_out.numsgelements = mega_build_sglist(adapter, scb,
855 (u32 *)&mbox->m_out.xferaddr, &seg);
856
857 return scb;
858
859 #if MEGA_HAVE_CLUSTERING
860 case RESERVE:
861 case RELEASE:
862
863 /*
864 * Do we support clustering and is the support enabled
865 */
866 if( ! adapter->has_cluster ) {
867
868 cmd->result = (DID_BAD_TARGET << 16);
869 cmd->scsi_done(cmd);
870 return NULL;
871 }
872
873 /* Allocate a SCB and initialize mailbox */
874 if(!(scb = mega_allocate_scb(adapter, cmd))) {
875 *busy = 1;
876 return NULL;
877 }
878
879 scb->raw_mbox[0] = MEGA_CLUSTER_CMD;
880 scb->raw_mbox[2] = ( *cmd->cmnd == RESERVE ) ?
881 MEGA_RESERVE_LD : MEGA_RELEASE_LD;
882
883 scb->raw_mbox[3] = ldrv_num;
884
885 scb->dma_direction = DMA_NONE;
886
887 return scb;
888 #endif
889
890 default:
891 cmd->result = (DID_BAD_TARGET << 16);
892 cmd->scsi_done(cmd);
893 return NULL;
894 }
895 }
896
897 /*
898 * Passthru drive commands
899 */
900 else {
901 /* Allocate a SCB and initialize passthru */
902 if(!(scb = mega_allocate_scb(adapter, cmd))) {
903 *busy = 1;
904 return NULL;
905 }
906
907 mbox = (mbox_t *)scb->raw_mbox;
908 memset(mbox, 0, sizeof(scb->raw_mbox));
909
910 if( adapter->support_ext_cdb ) {
911
912 mega_prepare_extpassthru(adapter, scb, cmd,
913 channel, target);
914
915 mbox->m_out.cmd = MEGA_MBOXCMD_EXTPTHRU;
916
917 mbox->m_out.xferaddr = scb->epthru_dma_addr;
918
919 }
920 else {
921
922 pthru = mega_prepare_passthru(adapter, scb, cmd,
923 channel, target);
924
925 /* Initialize mailbox */
926 if( adapter->has_64bit_addr ) {
927 mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU64;
928 }
929 else {
930 mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU;
931 }
932
933 mbox->m_out.xferaddr = scb->pthru_dma_addr;
934
935 }
936 return scb;
937 }
938 return NULL;
939 }
940
941
942 /**
943 * mega_prepare_passthru()
944 * @adapter: pointer to our soft state
945 * @scb: our scsi control block
946 * @cmd: scsi command from the mid-layer
947 * @channel: actual channel on the controller
948 * @target: actual id on the controller.
949 *
950 * prepare a command for the scsi physical devices.
951 */
952 static mega_passthru *
mega_prepare_passthru(adapter_t * adapter,scb_t * scb,struct scsi_cmnd * cmd,int channel,int target)953 mega_prepare_passthru(adapter_t *adapter, scb_t *scb, struct scsi_cmnd *cmd,
954 int channel, int target)
955 {
956 mega_passthru *pthru;
957
958 pthru = scb->pthru;
959 memset(pthru, 0, sizeof (mega_passthru));
960
961 /* 0=6sec/1=60sec/2=10min/3=3hrs */
962 pthru->timeout = 2;
963
964 pthru->ars = 1;
965 pthru->reqsenselen = 14;
966 pthru->islogical = 0;
967
968 pthru->channel = (adapter->flag & BOARD_40LD) ? 0 : channel;
969
970 pthru->target = (adapter->flag & BOARD_40LD) ?
971 (channel << 4) | target : target;
972
973 pthru->cdblen = cmd->cmd_len;
974 pthru->logdrv = cmd->device->lun;
975
976 memcpy(pthru->cdb, cmd->cmnd, cmd->cmd_len);
977
978 /* Not sure about the direction */
979 scb->dma_direction = DMA_BIDIRECTIONAL;
980
981 /* Special Code for Handling READ_CAPA/ INQ using bounce buffers */
982 switch (cmd->cmnd[0]) {
983 case INQUIRY:
984 case READ_CAPACITY:
985 if(!(adapter->flag & (1L << cmd->device->channel))) {
986
987 dev_notice(&adapter->dev->dev,
988 "scsi%d: scanning scsi channel %d [P%d] "
989 "for physical devices\n",
990 adapter->host->host_no,
991 cmd->device->channel, channel);
992
993 adapter->flag |= (1L << cmd->device->channel);
994 }
995 fallthrough;
996 default:
997 pthru->numsgelements = mega_build_sglist(adapter, scb,
998 &pthru->dataxferaddr, &pthru->dataxferlen);
999 break;
1000 }
1001 return pthru;
1002 }
1003
1004
1005 /**
1006 * mega_prepare_extpassthru()
1007 * @adapter: pointer to our soft state
1008 * @scb: our scsi control block
1009 * @cmd: scsi command from the mid-layer
1010 * @channel: actual channel on the controller
1011 * @target: actual id on the controller.
1012 *
1013 * prepare a command for the scsi physical devices. This rountine prepares
1014 * commands for devices which can take extended CDBs (>10 bytes)
1015 */
1016 static mega_ext_passthru *
mega_prepare_extpassthru(adapter_t * adapter,scb_t * scb,struct scsi_cmnd * cmd,int channel,int target)1017 mega_prepare_extpassthru(adapter_t *adapter, scb_t *scb,
1018 struct scsi_cmnd *cmd,
1019 int channel, int target)
1020 {
1021 mega_ext_passthru *epthru;
1022
1023 epthru = scb->epthru;
1024 memset(epthru, 0, sizeof(mega_ext_passthru));
1025
1026 /* 0=6sec/1=60sec/2=10min/3=3hrs */
1027 epthru->timeout = 2;
1028
1029 epthru->ars = 1;
1030 epthru->reqsenselen = 14;
1031 epthru->islogical = 0;
1032
1033 epthru->channel = (adapter->flag & BOARD_40LD) ? 0 : channel;
1034 epthru->target = (adapter->flag & BOARD_40LD) ?
1035 (channel << 4) | target : target;
1036
1037 epthru->cdblen = cmd->cmd_len;
1038 epthru->logdrv = cmd->device->lun;
1039
1040 memcpy(epthru->cdb, cmd->cmnd, cmd->cmd_len);
1041
1042 /* Not sure about the direction */
1043 scb->dma_direction = DMA_BIDIRECTIONAL;
1044
1045 switch(cmd->cmnd[0]) {
1046 case INQUIRY:
1047 case READ_CAPACITY:
1048 if(!(adapter->flag & (1L << cmd->device->channel))) {
1049
1050 dev_notice(&adapter->dev->dev,
1051 "scsi%d: scanning scsi channel %d [P%d] "
1052 "for physical devices\n",
1053 adapter->host->host_no,
1054 cmd->device->channel, channel);
1055
1056 adapter->flag |= (1L << cmd->device->channel);
1057 }
1058 fallthrough;
1059 default:
1060 epthru->numsgelements = mega_build_sglist(adapter, scb,
1061 &epthru->dataxferaddr, &epthru->dataxferlen);
1062 break;
1063 }
1064
1065 return epthru;
1066 }
1067
1068 static void
__mega_runpendq(adapter_t * adapter)1069 __mega_runpendq(adapter_t *adapter)
1070 {
1071 scb_t *scb;
1072 struct list_head *pos, *next;
1073
1074 /* Issue any pending commands to the card */
1075 list_for_each_safe(pos, next, &adapter->pending_list) {
1076
1077 scb = list_entry(pos, scb_t, list);
1078
1079 if( !(scb->state & SCB_ISSUED) ) {
1080
1081 if( issue_scb(adapter, scb) != 0 )
1082 return;
1083 }
1084 }
1085
1086 return;
1087 }
1088
1089
1090 /**
1091 * issue_scb()
1092 * @adapter: pointer to our soft state
1093 * @scb: scsi control block
1094 *
1095 * Post a command to the card if the mailbox is available, otherwise return
1096 * busy. We also take the scb from the pending list if the mailbox is
1097 * available.
1098 */
1099 static int
issue_scb(adapter_t * adapter,scb_t * scb)1100 issue_scb(adapter_t *adapter, scb_t *scb)
1101 {
1102 volatile mbox64_t *mbox64 = adapter->mbox64;
1103 volatile mbox_t *mbox = adapter->mbox;
1104 unsigned int i = 0;
1105
1106 if(unlikely(mbox->m_in.busy)) {
1107 do {
1108 udelay(1);
1109 i++;
1110 } while( mbox->m_in.busy && (i < max_mbox_busy_wait) );
1111
1112 if(mbox->m_in.busy) return -1;
1113 }
1114
1115 /* Copy mailbox data into host structure */
1116 memcpy((char *)&mbox->m_out, (char *)scb->raw_mbox,
1117 sizeof(struct mbox_out));
1118
1119 mbox->m_out.cmdid = scb->idx; /* Set cmdid */
1120 mbox->m_in.busy = 1; /* Set busy */
1121
1122
1123 /*
1124 * Increment the pending queue counter
1125 */
1126 atomic_inc(&adapter->pend_cmds);
1127
1128 switch (mbox->m_out.cmd) {
1129 case MEGA_MBOXCMD_LREAD64:
1130 case MEGA_MBOXCMD_LWRITE64:
1131 case MEGA_MBOXCMD_PASSTHRU64:
1132 case MEGA_MBOXCMD_EXTPTHRU:
1133 mbox64->xfer_segment_lo = mbox->m_out.xferaddr;
1134 mbox64->xfer_segment_hi = 0;
1135 mbox->m_out.xferaddr = 0xFFFFFFFF;
1136 break;
1137 default:
1138 mbox64->xfer_segment_lo = 0;
1139 mbox64->xfer_segment_hi = 0;
1140 }
1141
1142 /*
1143 * post the command
1144 */
1145 scb->state |= SCB_ISSUED;
1146
1147 if( likely(adapter->flag & BOARD_MEMMAP) ) {
1148 mbox->m_in.poll = 0;
1149 mbox->m_in.ack = 0;
1150 WRINDOOR(adapter, adapter->mbox_dma | 0x1);
1151 }
1152 else {
1153 irq_enable(adapter);
1154 issue_command(adapter);
1155 }
1156
1157 return 0;
1158 }
1159
1160 /*
1161 * Wait until the controller's mailbox is available
1162 */
1163 static inline int
mega_busywait_mbox(adapter_t * adapter)1164 mega_busywait_mbox (adapter_t *adapter)
1165 {
1166 if (adapter->mbox->m_in.busy)
1167 return __mega_busywait_mbox(adapter);
1168 return 0;
1169 }
1170
1171 /**
1172 * issue_scb_block()
1173 * @adapter: pointer to our soft state
1174 * @raw_mbox: the mailbox
1175 *
1176 * Issue a scb in synchronous and non-interrupt mode
1177 */
1178 static int
issue_scb_block(adapter_t * adapter,u_char * raw_mbox)1179 issue_scb_block(adapter_t *adapter, u_char *raw_mbox)
1180 {
1181 volatile mbox64_t *mbox64 = adapter->mbox64;
1182 volatile mbox_t *mbox = adapter->mbox;
1183 u8 byte;
1184
1185 /* Wait until mailbox is free */
1186 if(mega_busywait_mbox (adapter))
1187 goto bug_blocked_mailbox;
1188
1189 /* Copy mailbox data into host structure */
1190 memcpy((char *) mbox, raw_mbox, sizeof(struct mbox_out));
1191 mbox->m_out.cmdid = 0xFE;
1192 mbox->m_in.busy = 1;
1193
1194 switch (raw_mbox[0]) {
1195 case MEGA_MBOXCMD_LREAD64:
1196 case MEGA_MBOXCMD_LWRITE64:
1197 case MEGA_MBOXCMD_PASSTHRU64:
1198 case MEGA_MBOXCMD_EXTPTHRU:
1199 mbox64->xfer_segment_lo = mbox->m_out.xferaddr;
1200 mbox64->xfer_segment_hi = 0;
1201 mbox->m_out.xferaddr = 0xFFFFFFFF;
1202 break;
1203 default:
1204 mbox64->xfer_segment_lo = 0;
1205 mbox64->xfer_segment_hi = 0;
1206 }
1207
1208 if( likely(adapter->flag & BOARD_MEMMAP) ) {
1209 mbox->m_in.poll = 0;
1210 mbox->m_in.ack = 0;
1211 mbox->m_in.numstatus = 0xFF;
1212 mbox->m_in.status = 0xFF;
1213 WRINDOOR(adapter, adapter->mbox_dma | 0x1);
1214
1215 while((volatile u8)mbox->m_in.numstatus == 0xFF)
1216 cpu_relax();
1217
1218 mbox->m_in.numstatus = 0xFF;
1219
1220 while( (volatile u8)mbox->m_in.poll != 0x77 )
1221 cpu_relax();
1222
1223 mbox->m_in.poll = 0;
1224 mbox->m_in.ack = 0x77;
1225
1226 WRINDOOR(adapter, adapter->mbox_dma | 0x2);
1227
1228 while(RDINDOOR(adapter) & 0x2)
1229 cpu_relax();
1230 }
1231 else {
1232 irq_disable(adapter);
1233 issue_command(adapter);
1234
1235 while (!((byte = irq_state(adapter)) & INTR_VALID))
1236 cpu_relax();
1237
1238 set_irq_state(adapter, byte);
1239 irq_enable(adapter);
1240 irq_ack(adapter);
1241 }
1242
1243 return mbox->m_in.status;
1244
1245 bug_blocked_mailbox:
1246 dev_warn(&adapter->dev->dev, "Blocked mailbox......!!\n");
1247 udelay (1000);
1248 return -1;
1249 }
1250
1251
1252 /**
1253 * megaraid_isr_iomapped()
1254 * @irq: irq
1255 * @devp: pointer to our soft state
1256 *
1257 * Interrupt service routine for io-mapped controllers.
1258 * Find out if our device is interrupting. If yes, acknowledge the interrupt
1259 * and service the completed commands.
1260 */
1261 static irqreturn_t
megaraid_isr_iomapped(int irq,void * devp)1262 megaraid_isr_iomapped(int irq, void *devp)
1263 {
1264 adapter_t *adapter = devp;
1265 unsigned long flags;
1266 u8 status;
1267 u8 nstatus;
1268 u8 completed[MAX_FIRMWARE_STATUS];
1269 u8 byte;
1270 int handled = 0;
1271
1272
1273 /*
1274 * loop till F/W has more commands for us to complete.
1275 */
1276 spin_lock_irqsave(&adapter->lock, flags);
1277
1278 do {
1279 /* Check if a valid interrupt is pending */
1280 byte = irq_state(adapter);
1281 if( (byte & VALID_INTR_BYTE) == 0 ) {
1282 /*
1283 * No more pending commands
1284 */
1285 goto out_unlock;
1286 }
1287 set_irq_state(adapter, byte);
1288
1289 while((nstatus = (volatile u8)adapter->mbox->m_in.numstatus)
1290 == 0xFF)
1291 cpu_relax();
1292 adapter->mbox->m_in.numstatus = 0xFF;
1293
1294 status = adapter->mbox->m_in.status;
1295
1296 /*
1297 * decrement the pending queue counter
1298 */
1299 atomic_sub(nstatus, &adapter->pend_cmds);
1300
1301 memcpy(completed, (void *)adapter->mbox->m_in.completed,
1302 nstatus);
1303
1304 /* Acknowledge interrupt */
1305 irq_ack(adapter);
1306
1307 mega_cmd_done(adapter, completed, nstatus, status);
1308
1309 mega_rundoneq(adapter);
1310
1311 handled = 1;
1312
1313 /* Loop through any pending requests */
1314 if(atomic_read(&adapter->quiescent) == 0) {
1315 mega_runpendq(adapter);
1316 }
1317
1318 } while(1);
1319
1320 out_unlock:
1321
1322 spin_unlock_irqrestore(&adapter->lock, flags);
1323
1324 return IRQ_RETVAL(handled);
1325 }
1326
1327
1328 /**
1329 * megaraid_isr_memmapped()
1330 * @irq: irq
1331 * @devp: pointer to our soft state
1332 *
1333 * Interrupt service routine for memory-mapped controllers.
1334 * Find out if our device is interrupting. If yes, acknowledge the interrupt
1335 * and service the completed commands.
1336 */
1337 static irqreturn_t
megaraid_isr_memmapped(int irq,void * devp)1338 megaraid_isr_memmapped(int irq, void *devp)
1339 {
1340 adapter_t *adapter = devp;
1341 unsigned long flags;
1342 u8 status;
1343 u32 dword = 0;
1344 u8 nstatus;
1345 u8 completed[MAX_FIRMWARE_STATUS];
1346 int handled = 0;
1347
1348
1349 /*
1350 * loop till F/W has more commands for us to complete.
1351 */
1352 spin_lock_irqsave(&adapter->lock, flags);
1353
1354 do {
1355 /* Check if a valid interrupt is pending */
1356 dword = RDOUTDOOR(adapter);
1357 if(dword != 0x10001234) {
1358 /*
1359 * No more pending commands
1360 */
1361 goto out_unlock;
1362 }
1363 WROUTDOOR(adapter, 0x10001234);
1364
1365 while((nstatus = (volatile u8)adapter->mbox->m_in.numstatus)
1366 == 0xFF) {
1367 cpu_relax();
1368 }
1369 adapter->mbox->m_in.numstatus = 0xFF;
1370
1371 status = adapter->mbox->m_in.status;
1372
1373 /*
1374 * decrement the pending queue counter
1375 */
1376 atomic_sub(nstatus, &adapter->pend_cmds);
1377
1378 memcpy(completed, (void *)adapter->mbox->m_in.completed,
1379 nstatus);
1380
1381 /* Acknowledge interrupt */
1382 WRINDOOR(adapter, 0x2);
1383
1384 handled = 1;
1385
1386 while( RDINDOOR(adapter) & 0x02 )
1387 cpu_relax();
1388
1389 mega_cmd_done(adapter, completed, nstatus, status);
1390
1391 mega_rundoneq(adapter);
1392
1393 /* Loop through any pending requests */
1394 if(atomic_read(&adapter->quiescent) == 0) {
1395 mega_runpendq(adapter);
1396 }
1397
1398 } while(1);
1399
1400 out_unlock:
1401
1402 spin_unlock_irqrestore(&adapter->lock, flags);
1403
1404 return IRQ_RETVAL(handled);
1405 }
1406 /**
1407 * mega_cmd_done()
1408 * @adapter: pointer to our soft state
1409 * @completed: array of ids of completed commands
1410 * @nstatus: number of completed commands
1411 * @status: status of the last command completed
1412 *
1413 * Complete the commands and call the scsi mid-layer callback hooks.
1414 */
1415 static void
mega_cmd_done(adapter_t * adapter,u8 completed[],int nstatus,int status)1416 mega_cmd_done(adapter_t *adapter, u8 completed[], int nstatus, int status)
1417 {
1418 mega_ext_passthru *epthru = NULL;
1419 struct scatterlist *sgl;
1420 struct scsi_cmnd *cmd = NULL;
1421 mega_passthru *pthru = NULL;
1422 mbox_t *mbox = NULL;
1423 u8 c;
1424 scb_t *scb;
1425 int islogical;
1426 int cmdid;
1427 int i;
1428
1429 /*
1430 * for all the commands completed, call the mid-layer callback routine
1431 * and free the scb.
1432 */
1433 for( i = 0; i < nstatus; i++ ) {
1434
1435 cmdid = completed[i];
1436
1437 /*
1438 * Only free SCBs for the commands coming down from the
1439 * mid-layer, not for which were issued internally
1440 *
1441 * For internal command, restore the status returned by the
1442 * firmware so that user can interpret it.
1443 */
1444 if (cmdid == CMDID_INT_CMDS) {
1445 scb = &adapter->int_scb;
1446 cmd = scb->cmd;
1447
1448 list_del_init(&scb->list);
1449 scb->state = SCB_FREE;
1450
1451 adapter->int_status = status;
1452 complete(&adapter->int_waitq);
1453 } else {
1454 scb = &adapter->scb_list[cmdid];
1455
1456 /*
1457 * Make sure f/w has completed a valid command
1458 */
1459 if( !(scb->state & SCB_ISSUED) || scb->cmd == NULL ) {
1460 dev_crit(&adapter->dev->dev, "invalid command "
1461 "Id %d, scb->state:%x, scsi cmd:%p\n",
1462 cmdid, scb->state, scb->cmd);
1463
1464 continue;
1465 }
1466
1467 /*
1468 * Was a abort issued for this command
1469 */
1470 if( scb->state & SCB_ABORT ) {
1471
1472 dev_warn(&adapter->dev->dev,
1473 "aborted cmd [%x] complete\n",
1474 scb->idx);
1475
1476 scb->cmd->result = (DID_ABORT << 16);
1477
1478 list_add_tail(SCSI_LIST(scb->cmd),
1479 &adapter->completed_list);
1480
1481 mega_free_scb(adapter, scb);
1482
1483 continue;
1484 }
1485
1486 /*
1487 * Was a reset issued for this command
1488 */
1489 if( scb->state & SCB_RESET ) {
1490
1491 dev_warn(&adapter->dev->dev,
1492 "reset cmd [%x] complete\n",
1493 scb->idx);
1494
1495 scb->cmd->result = (DID_RESET << 16);
1496
1497 list_add_tail(SCSI_LIST(scb->cmd),
1498 &adapter->completed_list);
1499
1500 mega_free_scb (adapter, scb);
1501
1502 continue;
1503 }
1504
1505 cmd = scb->cmd;
1506 pthru = scb->pthru;
1507 epthru = scb->epthru;
1508 mbox = (mbox_t *)scb->raw_mbox;
1509
1510 #if MEGA_HAVE_STATS
1511 {
1512
1513 int logdrv = mbox->m_out.logdrv;
1514
1515 islogical = adapter->logdrv_chan[cmd->channel];
1516 /*
1517 * Maintain an error counter for the logical drive.
1518 * Some application like SNMP agent need such
1519 * statistics
1520 */
1521 if( status && islogical && (cmd->cmnd[0] == READ_6 ||
1522 cmd->cmnd[0] == READ_10 ||
1523 cmd->cmnd[0] == READ_12)) {
1524 /*
1525 * Logical drive number increases by 0x80 when
1526 * a logical drive is deleted
1527 */
1528 adapter->rd_errors[logdrv%0x80]++;
1529 }
1530
1531 if( status && islogical && (cmd->cmnd[0] == WRITE_6 ||
1532 cmd->cmnd[0] == WRITE_10 ||
1533 cmd->cmnd[0] == WRITE_12)) {
1534 /*
1535 * Logical drive number increases by 0x80 when
1536 * a logical drive is deleted
1537 */
1538 adapter->wr_errors[logdrv%0x80]++;
1539 }
1540
1541 }
1542 #endif
1543 }
1544
1545 /*
1546 * Do not return the presence of hard disk on the channel so,
1547 * inquiry sent, and returned data==hard disk or removable
1548 * hard disk and not logical, request should return failure! -
1549 * PJ
1550 */
1551 islogical = adapter->logdrv_chan[cmd->device->channel];
1552 if( cmd->cmnd[0] == INQUIRY && !islogical ) {
1553
1554 sgl = scsi_sglist(cmd);
1555 if( sg_page(sgl) ) {
1556 c = *(unsigned char *) sg_virt(&sgl[0]);
1557 } else {
1558 dev_warn(&adapter->dev->dev, "invalid sg\n");
1559 c = 0;
1560 }
1561
1562 if(IS_RAID_CH(adapter, cmd->device->channel) &&
1563 ((c & 0x1F ) == TYPE_DISK)) {
1564 status = 0xF0;
1565 }
1566 }
1567
1568 /* clear result; otherwise, success returns corrupt value */
1569 cmd->result = 0;
1570
1571 /* Convert MegaRAID status to Linux error code */
1572 switch (status) {
1573 case 0x00: /* SUCCESS , i.e. SCSI_STATUS_GOOD */
1574 cmd->result |= (DID_OK << 16);
1575 break;
1576
1577 case 0x02: /* ERROR_ABORTED, i.e.
1578 SCSI_STATUS_CHECK_CONDITION */
1579
1580 /* set sense_buffer and result fields */
1581 if( mbox->m_out.cmd == MEGA_MBOXCMD_PASSTHRU ||
1582 mbox->m_out.cmd == MEGA_MBOXCMD_PASSTHRU64 ) {
1583
1584 memcpy(cmd->sense_buffer, pthru->reqsensearea,
1585 14);
1586
1587 cmd->result = SAM_STAT_CHECK_CONDITION;
1588 }
1589 else {
1590 if (mbox->m_out.cmd == MEGA_MBOXCMD_EXTPTHRU) {
1591
1592 memcpy(cmd->sense_buffer,
1593 epthru->reqsensearea, 14);
1594
1595 cmd->result = SAM_STAT_CHECK_CONDITION;
1596 } else
1597 scsi_build_sense(cmd, 0,
1598 ABORTED_COMMAND, 0, 0);
1599 }
1600 break;
1601
1602 case 0x08: /* ERR_DEST_DRIVE_FAILED, i.e.
1603 SCSI_STATUS_BUSY */
1604 cmd->result |= (DID_BUS_BUSY << 16) | status;
1605 break;
1606
1607 default:
1608 #if MEGA_HAVE_CLUSTERING
1609 /*
1610 * If TEST_UNIT_READY fails, we know
1611 * MEGA_RESERVATION_STATUS failed
1612 */
1613 if( cmd->cmnd[0] == TEST_UNIT_READY ) {
1614 cmd->result |= (DID_ERROR << 16) |
1615 SAM_STAT_RESERVATION_CONFLICT;
1616 }
1617 else
1618 /*
1619 * Error code returned is 1 if Reserve or Release
1620 * failed or the input parameter is invalid
1621 */
1622 if( status == 1 &&
1623 (cmd->cmnd[0] == RESERVE ||
1624 cmd->cmnd[0] == RELEASE) ) {
1625
1626 cmd->result |= (DID_ERROR << 16) |
1627 SAM_STAT_RESERVATION_CONFLICT;
1628 }
1629 else
1630 #endif
1631 cmd->result |= (DID_BAD_TARGET << 16)|status;
1632 }
1633
1634 mega_free_scb(adapter, scb);
1635
1636 /* Add Scsi_Command to end of completed queue */
1637 list_add_tail(SCSI_LIST(cmd), &adapter->completed_list);
1638 }
1639 }
1640
1641
1642 /*
1643 * mega_runpendq()
1644 *
1645 * Run through the list of completed requests and finish it
1646 */
1647 static void
mega_rundoneq(adapter_t * adapter)1648 mega_rundoneq (adapter_t *adapter)
1649 {
1650 struct scsi_cmnd *cmd;
1651 struct list_head *pos;
1652
1653 list_for_each(pos, &adapter->completed_list) {
1654
1655 struct scsi_pointer* spos = (struct scsi_pointer *)pos;
1656
1657 cmd = list_entry(spos, struct scsi_cmnd, SCp);
1658 cmd->scsi_done(cmd);
1659 }
1660
1661 INIT_LIST_HEAD(&adapter->completed_list);
1662 }
1663
1664
1665 /*
1666 * Free a SCB structure
1667 * Note: We assume the scsi commands associated with this scb is not free yet.
1668 */
1669 static void
mega_free_scb(adapter_t * adapter,scb_t * scb)1670 mega_free_scb(adapter_t *adapter, scb_t *scb)
1671 {
1672 switch( scb->dma_type ) {
1673
1674 case MEGA_DMA_TYPE_NONE:
1675 break;
1676
1677 case MEGA_SGLIST:
1678 scsi_dma_unmap(scb->cmd);
1679 break;
1680 default:
1681 break;
1682 }
1683
1684 /*
1685 * Remove from the pending list
1686 */
1687 list_del_init(&scb->list);
1688
1689 /* Link the scb back into free list */
1690 scb->state = SCB_FREE;
1691 scb->cmd = NULL;
1692
1693 list_add(&scb->list, &adapter->free_list);
1694 }
1695
1696
1697 static int
__mega_busywait_mbox(adapter_t * adapter)1698 __mega_busywait_mbox (adapter_t *adapter)
1699 {
1700 volatile mbox_t *mbox = adapter->mbox;
1701 long counter;
1702
1703 for (counter = 0; counter < 10000; counter++) {
1704 if (!mbox->m_in.busy)
1705 return 0;
1706 udelay(100);
1707 cond_resched();
1708 }
1709 return -1; /* give up after 1 second */
1710 }
1711
1712 /*
1713 * Copies data to SGLIST
1714 * Note: For 64 bit cards, we need a minimum of one SG element for read/write
1715 */
1716 static int
mega_build_sglist(adapter_t * adapter,scb_t * scb,u32 * buf,u32 * len)1717 mega_build_sglist(adapter_t *adapter, scb_t *scb, u32 *buf, u32 *len)
1718 {
1719 struct scatterlist *sg;
1720 struct scsi_cmnd *cmd;
1721 int sgcnt;
1722 int idx;
1723
1724 cmd = scb->cmd;
1725
1726 /*
1727 * Copy Scatter-Gather list info into controller structure.
1728 *
1729 * The number of sg elements returned must not exceed our limit
1730 */
1731 sgcnt = scsi_dma_map(cmd);
1732
1733 scb->dma_type = MEGA_SGLIST;
1734
1735 BUG_ON(sgcnt > adapter->sglen || sgcnt < 0);
1736
1737 *len = 0;
1738
1739 if (scsi_sg_count(cmd) == 1 && !adapter->has_64bit_addr) {
1740 sg = scsi_sglist(cmd);
1741 scb->dma_h_bulkdata = sg_dma_address(sg);
1742 *buf = (u32)scb->dma_h_bulkdata;
1743 *len = sg_dma_len(sg);
1744 return 0;
1745 }
1746
1747 scsi_for_each_sg(cmd, sg, sgcnt, idx) {
1748 if (adapter->has_64bit_addr) {
1749 scb->sgl64[idx].address = sg_dma_address(sg);
1750 *len += scb->sgl64[idx].length = sg_dma_len(sg);
1751 } else {
1752 scb->sgl[idx].address = sg_dma_address(sg);
1753 *len += scb->sgl[idx].length = sg_dma_len(sg);
1754 }
1755 }
1756
1757 /* Reset pointer and length fields */
1758 *buf = scb->sgl_dma_addr;
1759
1760 /* Return count of SG requests */
1761 return sgcnt;
1762 }
1763
1764
1765 /*
1766 * mega_8_to_40ld()
1767 *
1768 * takes all info in AdapterInquiry structure and puts it into ProductInfo and
1769 * Enquiry3 structures for later use
1770 */
1771 static void
mega_8_to_40ld(mraid_inquiry * inquiry,mega_inquiry3 * enquiry3,mega_product_info * product_info)1772 mega_8_to_40ld(mraid_inquiry *inquiry, mega_inquiry3 *enquiry3,
1773 mega_product_info *product_info)
1774 {
1775 int i;
1776
1777 product_info->max_commands = inquiry->adapter_info.max_commands;
1778 enquiry3->rebuild_rate = inquiry->adapter_info.rebuild_rate;
1779 product_info->nchannels = inquiry->adapter_info.nchannels;
1780
1781 for (i = 0; i < 4; i++) {
1782 product_info->fw_version[i] =
1783 inquiry->adapter_info.fw_version[i];
1784
1785 product_info->bios_version[i] =
1786 inquiry->adapter_info.bios_version[i];
1787 }
1788 enquiry3->cache_flush_interval =
1789 inquiry->adapter_info.cache_flush_interval;
1790
1791 product_info->dram_size = inquiry->adapter_info.dram_size;
1792
1793 enquiry3->num_ldrv = inquiry->logdrv_info.num_ldrv;
1794
1795 for (i = 0; i < MAX_LOGICAL_DRIVES_8LD; i++) {
1796 enquiry3->ldrv_size[i] = inquiry->logdrv_info.ldrv_size[i];
1797 enquiry3->ldrv_prop[i] = inquiry->logdrv_info.ldrv_prop[i];
1798 enquiry3->ldrv_state[i] = inquiry->logdrv_info.ldrv_state[i];
1799 }
1800
1801 for (i = 0; i < (MAX_PHYSICAL_DRIVES); i++)
1802 enquiry3->pdrv_state[i] = inquiry->pdrv_info.pdrv_state[i];
1803 }
1804
1805 static inline void
mega_free_sgl(adapter_t * adapter)1806 mega_free_sgl(adapter_t *adapter)
1807 {
1808 scb_t *scb;
1809 int i;
1810
1811 for(i = 0; i < adapter->max_cmds; i++) {
1812
1813 scb = &adapter->scb_list[i];
1814
1815 if( scb->sgl64 ) {
1816 dma_free_coherent(&adapter->dev->dev,
1817 sizeof(mega_sgl64) * adapter->sglen,
1818 scb->sgl64, scb->sgl_dma_addr);
1819
1820 scb->sgl64 = NULL;
1821 }
1822
1823 if( scb->pthru ) {
1824 dma_free_coherent(&adapter->dev->dev,
1825 sizeof(mega_passthru), scb->pthru,
1826 scb->pthru_dma_addr);
1827
1828 scb->pthru = NULL;
1829 }
1830
1831 if( scb->epthru ) {
1832 dma_free_coherent(&adapter->dev->dev,
1833 sizeof(mega_ext_passthru),
1834 scb->epthru, scb->epthru_dma_addr);
1835
1836 scb->epthru = NULL;
1837 }
1838
1839 }
1840 }
1841
1842
1843 /*
1844 * Get information about the card/driver
1845 */
1846 const char *
megaraid_info(struct Scsi_Host * host)1847 megaraid_info(struct Scsi_Host *host)
1848 {
1849 static char buffer[512];
1850 adapter_t *adapter;
1851
1852 adapter = (adapter_t *)host->hostdata;
1853
1854 sprintf (buffer,
1855 "LSI Logic MegaRAID %s %d commands %d targs %d chans %d luns",
1856 adapter->fw_version, adapter->product_info.max_commands,
1857 adapter->host->max_id, adapter->host->max_channel,
1858 (u32)adapter->host->max_lun);
1859 return buffer;
1860 }
1861
1862 /*
1863 * Abort a previous SCSI request. Only commands on the pending list can be
1864 * aborted. All the commands issued to the F/W must complete.
1865 */
1866 static int
megaraid_abort(struct scsi_cmnd * cmd)1867 megaraid_abort(struct scsi_cmnd *cmd)
1868 {
1869 adapter_t *adapter;
1870 int rval;
1871
1872 adapter = (adapter_t *)cmd->device->host->hostdata;
1873
1874 rval = megaraid_abort_and_reset(adapter, cmd, SCB_ABORT);
1875
1876 /*
1877 * This is required here to complete any completed requests
1878 * to be communicated over to the mid layer.
1879 */
1880 mega_rundoneq(adapter);
1881
1882 return rval;
1883 }
1884
1885
1886 static int
megaraid_reset(struct scsi_cmnd * cmd)1887 megaraid_reset(struct scsi_cmnd *cmd)
1888 {
1889 adapter_t *adapter;
1890 megacmd_t mc;
1891 int rval;
1892
1893 adapter = (adapter_t *)cmd->device->host->hostdata;
1894
1895 #if MEGA_HAVE_CLUSTERING
1896 mc.cmd = MEGA_CLUSTER_CMD;
1897 mc.opcode = MEGA_RESET_RESERVATIONS;
1898
1899 if( mega_internal_command(adapter, &mc, NULL) != 0 ) {
1900 dev_warn(&adapter->dev->dev, "reservation reset failed\n");
1901 }
1902 else {
1903 dev_info(&adapter->dev->dev, "reservation reset\n");
1904 }
1905 #endif
1906
1907 spin_lock_irq(&adapter->lock);
1908
1909 rval = megaraid_abort_and_reset(adapter, cmd, SCB_RESET);
1910
1911 /*
1912 * This is required here to complete any completed requests
1913 * to be communicated over to the mid layer.
1914 */
1915 mega_rundoneq(adapter);
1916 spin_unlock_irq(&adapter->lock);
1917
1918 return rval;
1919 }
1920
1921 /**
1922 * megaraid_abort_and_reset()
1923 * @adapter: megaraid soft state
1924 * @cmd: scsi command to be aborted or reset
1925 * @aor: abort or reset flag
1926 *
1927 * Try to locate the scsi command in the pending queue. If found and is not
1928 * issued to the controller, abort/reset it. Otherwise return failure
1929 */
1930 static int
megaraid_abort_and_reset(adapter_t * adapter,struct scsi_cmnd * cmd,int aor)1931 megaraid_abort_and_reset(adapter_t *adapter, struct scsi_cmnd *cmd, int aor)
1932 {
1933 struct list_head *pos, *next;
1934 scb_t *scb;
1935
1936 dev_warn(&adapter->dev->dev, "%s cmd=%x <c=%d t=%d l=%d>\n",
1937 (aor == SCB_ABORT)? "ABORTING":"RESET",
1938 cmd->cmnd[0], cmd->device->channel,
1939 cmd->device->id, (u32)cmd->device->lun);
1940
1941 if(list_empty(&adapter->pending_list))
1942 return FAILED;
1943
1944 list_for_each_safe(pos, next, &adapter->pending_list) {
1945
1946 scb = list_entry(pos, scb_t, list);
1947
1948 if (scb->cmd == cmd) { /* Found command */
1949
1950 scb->state |= aor;
1951
1952 /*
1953 * Check if this command has firmware ownership. If
1954 * yes, we cannot reset this command. Whenever f/w
1955 * completes this command, we will return appropriate
1956 * status from ISR.
1957 */
1958 if( scb->state & SCB_ISSUED ) {
1959
1960 dev_warn(&adapter->dev->dev,
1961 "%s[%x], fw owner\n",
1962 (aor==SCB_ABORT) ? "ABORTING":"RESET",
1963 scb->idx);
1964
1965 return FAILED;
1966 }
1967 else {
1968
1969 /*
1970 * Not yet issued! Remove from the pending
1971 * list
1972 */
1973 dev_warn(&adapter->dev->dev,
1974 "%s-[%x], driver owner\n",
1975 (aor==SCB_ABORT) ? "ABORTING":"RESET",
1976 scb->idx);
1977
1978 mega_free_scb(adapter, scb);
1979
1980 if( aor == SCB_ABORT ) {
1981 cmd->result = (DID_ABORT << 16);
1982 }
1983 else {
1984 cmd->result = (DID_RESET << 16);
1985 }
1986
1987 list_add_tail(SCSI_LIST(cmd),
1988 &adapter->completed_list);
1989
1990 return SUCCESS;
1991 }
1992 }
1993 }
1994
1995 return FAILED;
1996 }
1997
1998 static inline int
make_local_pdev(adapter_t * adapter,struct pci_dev ** pdev)1999 make_local_pdev(adapter_t *adapter, struct pci_dev **pdev)
2000 {
2001 *pdev = pci_alloc_dev(NULL);
2002
2003 if( *pdev == NULL ) return -1;
2004
2005 memcpy(*pdev, adapter->dev, sizeof(struct pci_dev));
2006
2007 if (dma_set_mask(&(*pdev)->dev, DMA_BIT_MASK(32)) != 0) {
2008 kfree(*pdev);
2009 return -1;
2010 }
2011
2012 return 0;
2013 }
2014
2015 static inline void
free_local_pdev(struct pci_dev * pdev)2016 free_local_pdev(struct pci_dev *pdev)
2017 {
2018 kfree(pdev);
2019 }
2020
2021 /**
2022 * mega_allocate_inquiry()
2023 * @dma_handle: handle returned for dma address
2024 * @pdev: handle to pci device
2025 *
2026 * allocates memory for inquiry structure
2027 */
2028 static inline void *
mega_allocate_inquiry(dma_addr_t * dma_handle,struct pci_dev * pdev)2029 mega_allocate_inquiry(dma_addr_t *dma_handle, struct pci_dev *pdev)
2030 {
2031 return dma_alloc_coherent(&pdev->dev, sizeof(mega_inquiry3),
2032 dma_handle, GFP_KERNEL);
2033 }
2034
2035
2036 static inline void
mega_free_inquiry(void * inquiry,dma_addr_t dma_handle,struct pci_dev * pdev)2037 mega_free_inquiry(void *inquiry, dma_addr_t dma_handle, struct pci_dev *pdev)
2038 {
2039 dma_free_coherent(&pdev->dev, sizeof(mega_inquiry3), inquiry,
2040 dma_handle);
2041 }
2042
2043
2044 #ifdef CONFIG_PROC_FS
2045 /* Following code handles /proc fs */
2046
2047 /**
2048 * proc_show_config()
2049 * @m: Synthetic file construction data
2050 * @v: File iterator
2051 *
2052 * Display configuration information about the controller.
2053 */
2054 static int
proc_show_config(struct seq_file * m,void * v)2055 proc_show_config(struct seq_file *m, void *v)
2056 {
2057
2058 adapter_t *adapter = m->private;
2059
2060 seq_puts(m, MEGARAID_VERSION);
2061 if(adapter->product_info.product_name[0])
2062 seq_printf(m, "%s\n", adapter->product_info.product_name);
2063
2064 seq_puts(m, "Controller Type: ");
2065
2066 if( adapter->flag & BOARD_MEMMAP )
2067 seq_puts(m, "438/466/467/471/493/518/520/531/532\n");
2068 else
2069 seq_puts(m, "418/428/434\n");
2070
2071 if(adapter->flag & BOARD_40LD)
2072 seq_puts(m, "Controller Supports 40 Logical Drives\n");
2073
2074 if(adapter->flag & BOARD_64BIT)
2075 seq_puts(m, "Controller capable of 64-bit memory addressing\n");
2076 if( adapter->has_64bit_addr )
2077 seq_puts(m, "Controller using 64-bit memory addressing\n");
2078 else
2079 seq_puts(m, "Controller is not using 64-bit memory addressing\n");
2080
2081 seq_printf(m, "Base = %08lx, Irq = %d, ",
2082 adapter->base, adapter->host->irq);
2083
2084 seq_printf(m, "Logical Drives = %d, Channels = %d\n",
2085 adapter->numldrv, adapter->product_info.nchannels);
2086
2087 seq_printf(m, "Version =%s:%s, DRAM = %dMb\n",
2088 adapter->fw_version, adapter->bios_version,
2089 adapter->product_info.dram_size);
2090
2091 seq_printf(m, "Controller Queue Depth = %d, Driver Queue Depth = %d\n",
2092 adapter->product_info.max_commands, adapter->max_cmds);
2093
2094 seq_printf(m, "support_ext_cdb = %d\n", adapter->support_ext_cdb);
2095 seq_printf(m, "support_random_del = %d\n", adapter->support_random_del);
2096 seq_printf(m, "boot_ldrv_enabled = %d\n", adapter->boot_ldrv_enabled);
2097 seq_printf(m, "boot_ldrv = %d\n", adapter->boot_ldrv);
2098 seq_printf(m, "boot_pdrv_enabled = %d\n", adapter->boot_pdrv_enabled);
2099 seq_printf(m, "boot_pdrv_ch = %d\n", adapter->boot_pdrv_ch);
2100 seq_printf(m, "boot_pdrv_tgt = %d\n", adapter->boot_pdrv_tgt);
2101 seq_printf(m, "quiescent = %d\n",
2102 atomic_read(&adapter->quiescent));
2103 seq_printf(m, "has_cluster = %d\n", adapter->has_cluster);
2104
2105 seq_puts(m, "\nModule Parameters:\n");
2106 seq_printf(m, "max_cmd_per_lun = %d\n", max_cmd_per_lun);
2107 seq_printf(m, "max_sectors_per_io = %d\n", max_sectors_per_io);
2108 return 0;
2109 }
2110
2111 /**
2112 * proc_show_stat()
2113 * @m: Synthetic file construction data
2114 * @v: File iterator
2115 *
2116 * Display statistical information about the I/O activity.
2117 */
2118 static int
proc_show_stat(struct seq_file * m,void * v)2119 proc_show_stat(struct seq_file *m, void *v)
2120 {
2121 adapter_t *adapter = m->private;
2122 #if MEGA_HAVE_STATS
2123 int i;
2124 #endif
2125
2126 seq_puts(m, "Statistical Information for this controller\n");
2127 seq_printf(m, "pend_cmds = %d\n", atomic_read(&adapter->pend_cmds));
2128 #if MEGA_HAVE_STATS
2129 for(i = 0; i < adapter->numldrv; i++) {
2130 seq_printf(m, "Logical Drive %d:\n", i);
2131 seq_printf(m, "\tReads Issued = %lu, Writes Issued = %lu\n",
2132 adapter->nreads[i], adapter->nwrites[i]);
2133 seq_printf(m, "\tSectors Read = %lu, Sectors Written = %lu\n",
2134 adapter->nreadblocks[i], adapter->nwriteblocks[i]);
2135 seq_printf(m, "\tRead errors = %lu, Write errors = %lu\n\n",
2136 adapter->rd_errors[i], adapter->wr_errors[i]);
2137 }
2138 #else
2139 seq_puts(m, "IO and error counters not compiled in driver.\n");
2140 #endif
2141 return 0;
2142 }
2143
2144
2145 /**
2146 * proc_show_mbox()
2147 * @m: Synthetic file construction data
2148 * @v: File iterator
2149 *
2150 * Display mailbox information for the last command issued. This information
2151 * is good for debugging.
2152 */
2153 static int
proc_show_mbox(struct seq_file * m,void * v)2154 proc_show_mbox(struct seq_file *m, void *v)
2155 {
2156 adapter_t *adapter = m->private;
2157 volatile mbox_t *mbox = adapter->mbox;
2158
2159 seq_puts(m, "Contents of Mail Box Structure\n");
2160 seq_printf(m, " Fw Command = 0x%02x\n", mbox->m_out.cmd);
2161 seq_printf(m, " Cmd Sequence = 0x%02x\n", mbox->m_out.cmdid);
2162 seq_printf(m, " No of Sectors= %04d\n", mbox->m_out.numsectors);
2163 seq_printf(m, " LBA = 0x%02x\n", mbox->m_out.lba);
2164 seq_printf(m, " DTA = 0x%08x\n", mbox->m_out.xferaddr);
2165 seq_printf(m, " Logical Drive= 0x%02x\n", mbox->m_out.logdrv);
2166 seq_printf(m, " No of SG Elmt= 0x%02x\n", mbox->m_out.numsgelements);
2167 seq_printf(m, " Busy = %01x\n", mbox->m_in.busy);
2168 seq_printf(m, " Status = 0x%02x\n", mbox->m_in.status);
2169 return 0;
2170 }
2171
2172
2173 /**
2174 * proc_show_rebuild_rate()
2175 * @m: Synthetic file construction data
2176 * @v: File iterator
2177 *
2178 * Display current rebuild rate
2179 */
2180 static int
proc_show_rebuild_rate(struct seq_file * m,void * v)2181 proc_show_rebuild_rate(struct seq_file *m, void *v)
2182 {
2183 adapter_t *adapter = m->private;
2184 dma_addr_t dma_handle;
2185 caddr_t inquiry;
2186 struct pci_dev *pdev;
2187
2188 if( make_local_pdev(adapter, &pdev) != 0 )
2189 return 0;
2190
2191 if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL )
2192 goto free_pdev;
2193
2194 if( mega_adapinq(adapter, dma_handle) != 0 ) {
2195 seq_puts(m, "Adapter inquiry failed.\n");
2196 dev_warn(&adapter->dev->dev, "inquiry failed\n");
2197 goto free_inquiry;
2198 }
2199
2200 if( adapter->flag & BOARD_40LD )
2201 seq_printf(m, "Rebuild Rate: [%d%%]\n",
2202 ((mega_inquiry3 *)inquiry)->rebuild_rate);
2203 else
2204 seq_printf(m, "Rebuild Rate: [%d%%]\n",
2205 ((mraid_ext_inquiry *)
2206 inquiry)->raid_inq.adapter_info.rebuild_rate);
2207
2208 free_inquiry:
2209 mega_free_inquiry(inquiry, dma_handle, pdev);
2210 free_pdev:
2211 free_local_pdev(pdev);
2212 return 0;
2213 }
2214
2215
2216 /**
2217 * proc_show_battery()
2218 * @m: Synthetic file construction data
2219 * @v: File iterator
2220 *
2221 * Display information about the battery module on the controller.
2222 */
2223 static int
proc_show_battery(struct seq_file * m,void * v)2224 proc_show_battery(struct seq_file *m, void *v)
2225 {
2226 adapter_t *adapter = m->private;
2227 dma_addr_t dma_handle;
2228 caddr_t inquiry;
2229 struct pci_dev *pdev;
2230 u8 battery_status;
2231
2232 if( make_local_pdev(adapter, &pdev) != 0 )
2233 return 0;
2234
2235 if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL )
2236 goto free_pdev;
2237
2238 if( mega_adapinq(adapter, dma_handle) != 0 ) {
2239 seq_puts(m, "Adapter inquiry failed.\n");
2240 dev_warn(&adapter->dev->dev, "inquiry failed\n");
2241 goto free_inquiry;
2242 }
2243
2244 if( adapter->flag & BOARD_40LD ) {
2245 battery_status = ((mega_inquiry3 *)inquiry)->battery_status;
2246 }
2247 else {
2248 battery_status = ((mraid_ext_inquiry *)inquiry)->
2249 raid_inq.adapter_info.battery_status;
2250 }
2251
2252 /*
2253 * Decode the battery status
2254 */
2255 seq_printf(m, "Battery Status:[%d]", battery_status);
2256
2257 if(battery_status == MEGA_BATT_CHARGE_DONE)
2258 seq_puts(m, " Charge Done");
2259
2260 if(battery_status & MEGA_BATT_MODULE_MISSING)
2261 seq_puts(m, " Module Missing");
2262
2263 if(battery_status & MEGA_BATT_LOW_VOLTAGE)
2264 seq_puts(m, " Low Voltage");
2265
2266 if(battery_status & MEGA_BATT_TEMP_HIGH)
2267 seq_puts(m, " Temperature High");
2268
2269 if(battery_status & MEGA_BATT_PACK_MISSING)
2270 seq_puts(m, " Pack Missing");
2271
2272 if(battery_status & MEGA_BATT_CHARGE_INPROG)
2273 seq_puts(m, " Charge In-progress");
2274
2275 if(battery_status & MEGA_BATT_CHARGE_FAIL)
2276 seq_puts(m, " Charge Fail");
2277
2278 if(battery_status & MEGA_BATT_CYCLES_EXCEEDED)
2279 seq_puts(m, " Cycles Exceeded");
2280
2281 seq_putc(m, '\n');
2282
2283 free_inquiry:
2284 mega_free_inquiry(inquiry, dma_handle, pdev);
2285 free_pdev:
2286 free_local_pdev(pdev);
2287 return 0;
2288 }
2289
2290
2291 /*
2292 * Display scsi inquiry
2293 */
2294 static void
mega_print_inquiry(struct seq_file * m,char * scsi_inq)2295 mega_print_inquiry(struct seq_file *m, char *scsi_inq)
2296 {
2297 int i;
2298
2299 seq_puts(m, " Vendor: ");
2300 seq_write(m, scsi_inq + 8, 8);
2301 seq_puts(m, " Model: ");
2302 seq_write(m, scsi_inq + 16, 16);
2303 seq_puts(m, " Rev: ");
2304 seq_write(m, scsi_inq + 32, 4);
2305 seq_putc(m, '\n');
2306
2307 i = scsi_inq[0] & 0x1f;
2308 seq_printf(m, " Type: %s ", scsi_device_type(i));
2309
2310 seq_printf(m, " ANSI SCSI revision: %02x",
2311 scsi_inq[2] & 0x07);
2312
2313 if( (scsi_inq[2] & 0x07) == 1 && (scsi_inq[3] & 0x0f) == 1 )
2314 seq_puts(m, " CCS\n");
2315 else
2316 seq_putc(m, '\n');
2317 }
2318
2319 /**
2320 * proc_show_pdrv()
2321 * @m: Synthetic file construction data
2322 * @adapter: pointer to our soft state
2323 * @channel: channel
2324 *
2325 * Display information about the physical drives.
2326 */
2327 static int
proc_show_pdrv(struct seq_file * m,adapter_t * adapter,int channel)2328 proc_show_pdrv(struct seq_file *m, adapter_t *adapter, int channel)
2329 {
2330 dma_addr_t dma_handle;
2331 char *scsi_inq;
2332 dma_addr_t scsi_inq_dma_handle;
2333 caddr_t inquiry;
2334 struct pci_dev *pdev;
2335 u8 *pdrv_state;
2336 u8 state;
2337 int tgt;
2338 int max_channels;
2339 int i;
2340
2341 if( make_local_pdev(adapter, &pdev) != 0 )
2342 return 0;
2343
2344 if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL )
2345 goto free_pdev;
2346
2347 if( mega_adapinq(adapter, dma_handle) != 0 ) {
2348 seq_puts(m, "Adapter inquiry failed.\n");
2349 dev_warn(&adapter->dev->dev, "inquiry failed\n");
2350 goto free_inquiry;
2351 }
2352
2353
2354 scsi_inq = dma_alloc_coherent(&pdev->dev, 256, &scsi_inq_dma_handle,
2355 GFP_KERNEL);
2356 if( scsi_inq == NULL ) {
2357 seq_puts(m, "memory not available for scsi inq.\n");
2358 goto free_inquiry;
2359 }
2360
2361 if( adapter->flag & BOARD_40LD ) {
2362 pdrv_state = ((mega_inquiry3 *)inquiry)->pdrv_state;
2363 }
2364 else {
2365 pdrv_state = ((mraid_ext_inquiry *)inquiry)->
2366 raid_inq.pdrv_info.pdrv_state;
2367 }
2368
2369 max_channels = adapter->product_info.nchannels;
2370
2371 if( channel >= max_channels ) {
2372 goto free_pci;
2373 }
2374
2375 for( tgt = 0; tgt <= MAX_TARGET; tgt++ ) {
2376
2377 i = channel*16 + tgt;
2378
2379 state = *(pdrv_state + i);
2380 switch( state & 0x0F ) {
2381 case PDRV_ONLINE:
2382 seq_printf(m, "Channel:%2d Id:%2d State: Online",
2383 channel, tgt);
2384 break;
2385
2386 case PDRV_FAILED:
2387 seq_printf(m, "Channel:%2d Id:%2d State: Failed",
2388 channel, tgt);
2389 break;
2390
2391 case PDRV_RBLD:
2392 seq_printf(m, "Channel:%2d Id:%2d State: Rebuild",
2393 channel, tgt);
2394 break;
2395
2396 case PDRV_HOTSPARE:
2397 seq_printf(m, "Channel:%2d Id:%2d State: Hot spare",
2398 channel, tgt);
2399 break;
2400
2401 default:
2402 seq_printf(m, "Channel:%2d Id:%2d State: Un-configured",
2403 channel, tgt);
2404 break;
2405 }
2406
2407 /*
2408 * This interface displays inquiries for disk drives
2409 * only. Inquries for logical drives and non-disk
2410 * devices are available through /proc/scsi/scsi
2411 */
2412 memset(scsi_inq, 0, 256);
2413 if( mega_internal_dev_inquiry(adapter, channel, tgt,
2414 scsi_inq_dma_handle) ||
2415 (scsi_inq[0] & 0x1F) != TYPE_DISK ) {
2416 continue;
2417 }
2418
2419 /*
2420 * Check for overflow. We print less than 240
2421 * characters for inquiry
2422 */
2423 seq_puts(m, ".\n");
2424 mega_print_inquiry(m, scsi_inq);
2425 }
2426
2427 free_pci:
2428 dma_free_coherent(&pdev->dev, 256, scsi_inq, scsi_inq_dma_handle);
2429 free_inquiry:
2430 mega_free_inquiry(inquiry, dma_handle, pdev);
2431 free_pdev:
2432 free_local_pdev(pdev);
2433 return 0;
2434 }
2435
2436 /**
2437 * proc_show_pdrv_ch0()
2438 * @m: Synthetic file construction data
2439 * @v: File iterator
2440 *
2441 * Display information about the physical drives on physical channel 0.
2442 */
2443 static int
proc_show_pdrv_ch0(struct seq_file * m,void * v)2444 proc_show_pdrv_ch0(struct seq_file *m, void *v)
2445 {
2446 return proc_show_pdrv(m, m->private, 0);
2447 }
2448
2449
2450 /**
2451 * proc_show_pdrv_ch1()
2452 * @m: Synthetic file construction data
2453 * @v: File iterator
2454 *
2455 * Display information about the physical drives on physical channel 1.
2456 */
2457 static int
proc_show_pdrv_ch1(struct seq_file * m,void * v)2458 proc_show_pdrv_ch1(struct seq_file *m, void *v)
2459 {
2460 return proc_show_pdrv(m, m->private, 1);
2461 }
2462
2463
2464 /**
2465 * proc_show_pdrv_ch2()
2466 * @m: Synthetic file construction data
2467 * @v: File iterator
2468 *
2469 * Display information about the physical drives on physical channel 2.
2470 */
2471 static int
proc_show_pdrv_ch2(struct seq_file * m,void * v)2472 proc_show_pdrv_ch2(struct seq_file *m, void *v)
2473 {
2474 return proc_show_pdrv(m, m->private, 2);
2475 }
2476
2477
2478 /**
2479 * proc_show_pdrv_ch3()
2480 * @m: Synthetic file construction data
2481 * @v: File iterator
2482 *
2483 * Display information about the physical drives on physical channel 3.
2484 */
2485 static int
proc_show_pdrv_ch3(struct seq_file * m,void * v)2486 proc_show_pdrv_ch3(struct seq_file *m, void *v)
2487 {
2488 return proc_show_pdrv(m, m->private, 3);
2489 }
2490
2491
2492 /**
2493 * proc_show_rdrv()
2494 * @m: Synthetic file construction data
2495 * @adapter: pointer to our soft state
2496 * @start: starting logical drive to display
2497 * @end: ending logical drive to display
2498 *
2499 * We do not print the inquiry information since its already available through
2500 * /proc/scsi/scsi interface
2501 */
2502 static int
proc_show_rdrv(struct seq_file * m,adapter_t * adapter,int start,int end)2503 proc_show_rdrv(struct seq_file *m, adapter_t *adapter, int start, int end )
2504 {
2505 dma_addr_t dma_handle;
2506 logdrv_param *lparam;
2507 megacmd_t mc;
2508 char *disk_array;
2509 dma_addr_t disk_array_dma_handle;
2510 caddr_t inquiry;
2511 struct pci_dev *pdev;
2512 u8 *rdrv_state;
2513 int num_ldrv;
2514 u32 array_sz;
2515 int i;
2516
2517 if( make_local_pdev(adapter, &pdev) != 0 )
2518 return 0;
2519
2520 if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL )
2521 goto free_pdev;
2522
2523 if( mega_adapinq(adapter, dma_handle) != 0 ) {
2524 seq_puts(m, "Adapter inquiry failed.\n");
2525 dev_warn(&adapter->dev->dev, "inquiry failed\n");
2526 goto free_inquiry;
2527 }
2528
2529 memset(&mc, 0, sizeof(megacmd_t));
2530
2531 if( adapter->flag & BOARD_40LD ) {
2532 array_sz = sizeof(disk_array_40ld);
2533
2534 rdrv_state = ((mega_inquiry3 *)inquiry)->ldrv_state;
2535
2536 num_ldrv = ((mega_inquiry3 *)inquiry)->num_ldrv;
2537 }
2538 else {
2539 array_sz = sizeof(disk_array_8ld);
2540
2541 rdrv_state = ((mraid_ext_inquiry *)inquiry)->
2542 raid_inq.logdrv_info.ldrv_state;
2543
2544 num_ldrv = ((mraid_ext_inquiry *)inquiry)->
2545 raid_inq.logdrv_info.num_ldrv;
2546 }
2547
2548 disk_array = dma_alloc_coherent(&pdev->dev, array_sz,
2549 &disk_array_dma_handle, GFP_KERNEL);
2550
2551 if( disk_array == NULL ) {
2552 seq_puts(m, "memory not available.\n");
2553 goto free_inquiry;
2554 }
2555
2556 mc.xferaddr = (u32)disk_array_dma_handle;
2557
2558 if( adapter->flag & BOARD_40LD ) {
2559 mc.cmd = FC_NEW_CONFIG;
2560 mc.opcode = OP_DCMD_READ_CONFIG;
2561
2562 if( mega_internal_command(adapter, &mc, NULL) ) {
2563 seq_puts(m, "40LD read config failed.\n");
2564 goto free_pci;
2565 }
2566
2567 }
2568 else {
2569 mc.cmd = NEW_READ_CONFIG_8LD;
2570
2571 if( mega_internal_command(adapter, &mc, NULL) ) {
2572 mc.cmd = READ_CONFIG_8LD;
2573 if( mega_internal_command(adapter, &mc, NULL) ) {
2574 seq_puts(m, "8LD read config failed.\n");
2575 goto free_pci;
2576 }
2577 }
2578 }
2579
2580 for( i = start; i < ( (end+1 < num_ldrv) ? end+1 : num_ldrv ); i++ ) {
2581
2582 if( adapter->flag & BOARD_40LD ) {
2583 lparam =
2584 &((disk_array_40ld *)disk_array)->ldrv[i].lparam;
2585 }
2586 else {
2587 lparam =
2588 &((disk_array_8ld *)disk_array)->ldrv[i].lparam;
2589 }
2590
2591 /*
2592 * Check for overflow. We print less than 240 characters for
2593 * information about each logical drive.
2594 */
2595 seq_printf(m, "Logical drive:%2d:, ", i);
2596
2597 switch( rdrv_state[i] & 0x0F ) {
2598 case RDRV_OFFLINE:
2599 seq_puts(m, "state: offline");
2600 break;
2601 case RDRV_DEGRADED:
2602 seq_puts(m, "state: degraded");
2603 break;
2604 case RDRV_OPTIMAL:
2605 seq_puts(m, "state: optimal");
2606 break;
2607 case RDRV_DELETED:
2608 seq_puts(m, "state: deleted");
2609 break;
2610 default:
2611 seq_puts(m, "state: unknown");
2612 break;
2613 }
2614
2615 /*
2616 * Check if check consistency or initialization is going on
2617 * for this logical drive.
2618 */
2619 if( (rdrv_state[i] & 0xF0) == 0x20 )
2620 seq_puts(m, ", check-consistency in progress");
2621 else if( (rdrv_state[i] & 0xF0) == 0x10 )
2622 seq_puts(m, ", initialization in progress");
2623
2624 seq_putc(m, '\n');
2625
2626 seq_printf(m, "Span depth:%3d, ", lparam->span_depth);
2627 seq_printf(m, "RAID level:%3d, ", lparam->level);
2628 seq_printf(m, "Stripe size:%3d, ",
2629 lparam->stripe_sz ? lparam->stripe_sz/2: 128);
2630 seq_printf(m, "Row size:%3d\n", lparam->row_size);
2631
2632 seq_puts(m, "Read Policy: ");
2633 switch(lparam->read_ahead) {
2634 case NO_READ_AHEAD:
2635 seq_puts(m, "No read ahead, ");
2636 break;
2637 case READ_AHEAD:
2638 seq_puts(m, "Read ahead, ");
2639 break;
2640 case ADAP_READ_AHEAD:
2641 seq_puts(m, "Adaptive, ");
2642 break;
2643
2644 }
2645
2646 seq_puts(m, "Write Policy: ");
2647 switch(lparam->write_mode) {
2648 case WRMODE_WRITE_THRU:
2649 seq_puts(m, "Write thru, ");
2650 break;
2651 case WRMODE_WRITE_BACK:
2652 seq_puts(m, "Write back, ");
2653 break;
2654 }
2655
2656 seq_puts(m, "Cache Policy: ");
2657 switch(lparam->direct_io) {
2658 case CACHED_IO:
2659 seq_puts(m, "Cached IO\n\n");
2660 break;
2661 case DIRECT_IO:
2662 seq_puts(m, "Direct IO\n\n");
2663 break;
2664 }
2665 }
2666
2667 free_pci:
2668 dma_free_coherent(&pdev->dev, array_sz, disk_array,
2669 disk_array_dma_handle);
2670 free_inquiry:
2671 mega_free_inquiry(inquiry, dma_handle, pdev);
2672 free_pdev:
2673 free_local_pdev(pdev);
2674 return 0;
2675 }
2676
2677 /**
2678 * proc_show_rdrv_10()
2679 * @m: Synthetic file construction data
2680 * @v: File iterator
2681 *
2682 * Display real time information about the logical drives 0 through 9.
2683 */
2684 static int
proc_show_rdrv_10(struct seq_file * m,void * v)2685 proc_show_rdrv_10(struct seq_file *m, void *v)
2686 {
2687 return proc_show_rdrv(m, m->private, 0, 9);
2688 }
2689
2690
2691 /**
2692 * proc_show_rdrv_20()
2693 * @m: Synthetic file construction data
2694 * @v: File iterator
2695 *
2696 * Display real time information about the logical drives 0 through 9.
2697 */
2698 static int
proc_show_rdrv_20(struct seq_file * m,void * v)2699 proc_show_rdrv_20(struct seq_file *m, void *v)
2700 {
2701 return proc_show_rdrv(m, m->private, 10, 19);
2702 }
2703
2704
2705 /**
2706 * proc_show_rdrv_30()
2707 * @m: Synthetic file construction data
2708 * @v: File iterator
2709 *
2710 * Display real time information about the logical drives 0 through 9.
2711 */
2712 static int
proc_show_rdrv_30(struct seq_file * m,void * v)2713 proc_show_rdrv_30(struct seq_file *m, void *v)
2714 {
2715 return proc_show_rdrv(m, m->private, 20, 29);
2716 }
2717
2718
2719 /**
2720 * proc_show_rdrv_40()
2721 * @m: Synthetic file construction data
2722 * @v: File iterator
2723 *
2724 * Display real time information about the logical drives 0 through 9.
2725 */
2726 static int
proc_show_rdrv_40(struct seq_file * m,void * v)2727 proc_show_rdrv_40(struct seq_file *m, void *v)
2728 {
2729 return proc_show_rdrv(m, m->private, 30, 39);
2730 }
2731
2732 /**
2733 * mega_create_proc_entry()
2734 * @index: index in soft state array
2735 * @parent: parent node for this /proc entry
2736 *
2737 * Creates /proc entries for our controllers.
2738 */
2739 static void
mega_create_proc_entry(int index,struct proc_dir_entry * parent)2740 mega_create_proc_entry(int index, struct proc_dir_entry *parent)
2741 {
2742 adapter_t *adapter = hba_soft_state[index];
2743 struct proc_dir_entry *dir;
2744 u8 string[16];
2745
2746 sprintf(string, "hba%d", adapter->host->host_no);
2747 dir = proc_mkdir_data(string, 0, parent, adapter);
2748 if (!dir) {
2749 dev_warn(&adapter->dev->dev, "proc_mkdir failed\n");
2750 return;
2751 }
2752
2753 proc_create_single_data("config", S_IRUSR, dir,
2754 proc_show_config, adapter);
2755 proc_create_single_data("stat", S_IRUSR, dir,
2756 proc_show_stat, adapter);
2757 proc_create_single_data("mailbox", S_IRUSR, dir,
2758 proc_show_mbox, adapter);
2759 #if MEGA_HAVE_ENH_PROC
2760 proc_create_single_data("rebuild-rate", S_IRUSR, dir,
2761 proc_show_rebuild_rate, adapter);
2762 proc_create_single_data("battery-status", S_IRUSR, dir,
2763 proc_show_battery, adapter);
2764 proc_create_single_data("diskdrives-ch0", S_IRUSR, dir,
2765 proc_show_pdrv_ch0, adapter);
2766 proc_create_single_data("diskdrives-ch1", S_IRUSR, dir,
2767 proc_show_pdrv_ch1, adapter);
2768 proc_create_single_data("diskdrives-ch2", S_IRUSR, dir,
2769 proc_show_pdrv_ch2, adapter);
2770 proc_create_single_data("diskdrives-ch3", S_IRUSR, dir,
2771 proc_show_pdrv_ch3, adapter);
2772 proc_create_single_data("raiddrives-0-9", S_IRUSR, dir,
2773 proc_show_rdrv_10, adapter);
2774 proc_create_single_data("raiddrives-10-19", S_IRUSR, dir,
2775 proc_show_rdrv_20, adapter);
2776 proc_create_single_data("raiddrives-20-29", S_IRUSR, dir,
2777 proc_show_rdrv_30, adapter);
2778 proc_create_single_data("raiddrives-30-39", S_IRUSR, dir,
2779 proc_show_rdrv_40, adapter);
2780 #endif
2781 }
2782
2783 #else
mega_create_proc_entry(int index,struct proc_dir_entry * parent)2784 static inline void mega_create_proc_entry(int index, struct proc_dir_entry *parent)
2785 {
2786 }
2787 #endif
2788
2789
2790 /*
2791 * megaraid_biosparam()
2792 *
2793 * Return the disk geometry for a particular disk
2794 */
2795 static int
megaraid_biosparam(struct scsi_device * sdev,struct block_device * bdev,sector_t capacity,int geom[])2796 megaraid_biosparam(struct scsi_device *sdev, struct block_device *bdev,
2797 sector_t capacity, int geom[])
2798 {
2799 adapter_t *adapter;
2800 int heads;
2801 int sectors;
2802 int cylinders;
2803
2804 /* Get pointer to host config structure */
2805 adapter = (adapter_t *)sdev->host->hostdata;
2806
2807 if (IS_RAID_CH(adapter, sdev->channel)) {
2808 /* Default heads (64) & sectors (32) */
2809 heads = 64;
2810 sectors = 32;
2811 cylinders = (ulong)capacity / (heads * sectors);
2812
2813 /*
2814 * Handle extended translation size for logical drives
2815 * > 1Gb
2816 */
2817 if ((ulong)capacity >= 0x200000) {
2818 heads = 255;
2819 sectors = 63;
2820 cylinders = (ulong)capacity / (heads * sectors);
2821 }
2822
2823 /* return result */
2824 geom[0] = heads;
2825 geom[1] = sectors;
2826 geom[2] = cylinders;
2827 }
2828 else {
2829 if (scsi_partsize(bdev, capacity, geom))
2830 return 0;
2831
2832 dev_info(&adapter->dev->dev,
2833 "invalid partition on this disk on channel %d\n",
2834 sdev->channel);
2835
2836 /* Default heads (64) & sectors (32) */
2837 heads = 64;
2838 sectors = 32;
2839 cylinders = (ulong)capacity / (heads * sectors);
2840
2841 /* Handle extended translation size for logical drives > 1Gb */
2842 if ((ulong)capacity >= 0x200000) {
2843 heads = 255;
2844 sectors = 63;
2845 cylinders = (ulong)capacity / (heads * sectors);
2846 }
2847
2848 /* return result */
2849 geom[0] = heads;
2850 geom[1] = sectors;
2851 geom[2] = cylinders;
2852 }
2853
2854 return 0;
2855 }
2856
2857 /**
2858 * mega_init_scb()
2859 * @adapter: pointer to our soft state
2860 *
2861 * Allocate memory for the various pointers in the scb structures:
2862 * scatter-gather list pointer, passthru and extended passthru structure
2863 * pointers.
2864 */
2865 static int
mega_init_scb(adapter_t * adapter)2866 mega_init_scb(adapter_t *adapter)
2867 {
2868 scb_t *scb;
2869 int i;
2870
2871 for( i = 0; i < adapter->max_cmds; i++ ) {
2872
2873 scb = &adapter->scb_list[i];
2874
2875 scb->sgl64 = NULL;
2876 scb->sgl = NULL;
2877 scb->pthru = NULL;
2878 scb->epthru = NULL;
2879 }
2880
2881 for( i = 0; i < adapter->max_cmds; i++ ) {
2882
2883 scb = &adapter->scb_list[i];
2884
2885 scb->idx = i;
2886
2887 scb->sgl64 = dma_alloc_coherent(&adapter->dev->dev,
2888 sizeof(mega_sgl64) * adapter->sglen,
2889 &scb->sgl_dma_addr, GFP_KERNEL);
2890
2891 scb->sgl = (mega_sglist *)scb->sgl64;
2892
2893 if( !scb->sgl ) {
2894 dev_warn(&adapter->dev->dev, "RAID: Can't allocate sglist\n");
2895 mega_free_sgl(adapter);
2896 return -1;
2897 }
2898
2899 scb->pthru = dma_alloc_coherent(&adapter->dev->dev,
2900 sizeof(mega_passthru),
2901 &scb->pthru_dma_addr, GFP_KERNEL);
2902
2903 if( !scb->pthru ) {
2904 dev_warn(&adapter->dev->dev, "RAID: Can't allocate passthru\n");
2905 mega_free_sgl(adapter);
2906 return -1;
2907 }
2908
2909 scb->epthru = dma_alloc_coherent(&adapter->dev->dev,
2910 sizeof(mega_ext_passthru),
2911 &scb->epthru_dma_addr, GFP_KERNEL);
2912
2913 if( !scb->epthru ) {
2914 dev_warn(&adapter->dev->dev,
2915 "Can't allocate extended passthru\n");
2916 mega_free_sgl(adapter);
2917 return -1;
2918 }
2919
2920
2921 scb->dma_type = MEGA_DMA_TYPE_NONE;
2922
2923 /*
2924 * Link to free list
2925 * lock not required since we are loading the driver, so no
2926 * commands possible right now.
2927 */
2928 scb->state = SCB_FREE;
2929 scb->cmd = NULL;
2930 list_add(&scb->list, &adapter->free_list);
2931 }
2932
2933 return 0;
2934 }
2935
2936
2937 /**
2938 * megadev_open()
2939 * @inode: unused
2940 * @filep: unused
2941 *
2942 * Routines for the character/ioctl interface to the driver. Find out if this
2943 * is a valid open.
2944 */
2945 static int
megadev_open(struct inode * inode,struct file * filep)2946 megadev_open (struct inode *inode, struct file *filep)
2947 {
2948 /*
2949 * Only allow superuser to access private ioctl interface
2950 */
2951 if( !capable(CAP_SYS_ADMIN) ) return -EACCES;
2952
2953 return 0;
2954 }
2955
2956
2957 /**
2958 * megadev_ioctl()
2959 * @filep: Our device file
2960 * @cmd: ioctl command
2961 * @arg: user buffer
2962 *
2963 * ioctl entry point for our private ioctl interface. We move the data in from
2964 * the user space, prepare the command (if necessary, convert the old MIMD
2965 * ioctl to new ioctl command), and issue a synchronous command to the
2966 * controller.
2967 */
2968 static int
megadev_ioctl(struct file * filep,unsigned int cmd,unsigned long arg)2969 megadev_ioctl(struct file *filep, unsigned int cmd, unsigned long arg)
2970 {
2971 adapter_t *adapter;
2972 nitioctl_t uioc;
2973 int adapno;
2974 int rval;
2975 mega_passthru __user *upthru; /* user address for passthru */
2976 mega_passthru *pthru; /* copy user passthru here */
2977 dma_addr_t pthru_dma_hndl;
2978 void *data = NULL; /* data to be transferred */
2979 dma_addr_t data_dma_hndl; /* dma handle for data xfer area */
2980 megacmd_t mc;
2981 #if MEGA_HAVE_STATS
2982 megastat_t __user *ustats = NULL;
2983 int num_ldrv = 0;
2984 #endif
2985 u32 uxferaddr = 0;
2986 struct pci_dev *pdev;
2987
2988 /*
2989 * Make sure only USCSICMD are issued through this interface.
2990 * MIMD application would still fire different command.
2991 */
2992 if( (_IOC_TYPE(cmd) != MEGAIOC_MAGIC) && (cmd != USCSICMD) ) {
2993 return -EINVAL;
2994 }
2995
2996 /*
2997 * Check and convert a possible MIMD command to NIT command.
2998 * mega_m_to_n() copies the data from the user space, so we do not
2999 * have to do it here.
3000 * NOTE: We will need some user address to copyout the data, therefore
3001 * the inteface layer will also provide us with the required user
3002 * addresses.
3003 */
3004 memset(&uioc, 0, sizeof(nitioctl_t));
3005 if( (rval = mega_m_to_n( (void __user *)arg, &uioc)) != 0 )
3006 return rval;
3007
3008
3009 switch( uioc.opcode ) {
3010
3011 case GET_DRIVER_VER:
3012 if( put_user(driver_ver, (u32 __user *)uioc.uioc_uaddr) )
3013 return (-EFAULT);
3014
3015 break;
3016
3017 case GET_N_ADAP:
3018 if( put_user(hba_count, (u32 __user *)uioc.uioc_uaddr) )
3019 return (-EFAULT);
3020
3021 /*
3022 * Shucks. MIMD interface returns a positive value for number
3023 * of adapters. TODO: Change it to return 0 when there is no
3024 * applicatio using mimd interface.
3025 */
3026 return hba_count;
3027
3028 case GET_ADAP_INFO:
3029
3030 /*
3031 * Which adapter
3032 */
3033 if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
3034 return (-ENODEV);
3035
3036 if( copy_to_user(uioc.uioc_uaddr, mcontroller+adapno,
3037 sizeof(struct mcontroller)) )
3038 return (-EFAULT);
3039 break;
3040
3041 #if MEGA_HAVE_STATS
3042
3043 case GET_STATS:
3044 /*
3045 * Which adapter
3046 */
3047 if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
3048 return (-ENODEV);
3049
3050 adapter = hba_soft_state[adapno];
3051
3052 ustats = uioc.uioc_uaddr;
3053
3054 if( copy_from_user(&num_ldrv, &ustats->num_ldrv, sizeof(int)) )
3055 return (-EFAULT);
3056
3057 /*
3058 * Check for the validity of the logical drive number
3059 */
3060 if( num_ldrv >= MAX_LOGICAL_DRIVES_40LD ) return -EINVAL;
3061
3062 if( copy_to_user(ustats->nreads, adapter->nreads,
3063 num_ldrv*sizeof(u32)) )
3064 return -EFAULT;
3065
3066 if( copy_to_user(ustats->nreadblocks, adapter->nreadblocks,
3067 num_ldrv*sizeof(u32)) )
3068 return -EFAULT;
3069
3070 if( copy_to_user(ustats->nwrites, adapter->nwrites,
3071 num_ldrv*sizeof(u32)) )
3072 return -EFAULT;
3073
3074 if( copy_to_user(ustats->nwriteblocks, adapter->nwriteblocks,
3075 num_ldrv*sizeof(u32)) )
3076 return -EFAULT;
3077
3078 if( copy_to_user(ustats->rd_errors, adapter->rd_errors,
3079 num_ldrv*sizeof(u32)) )
3080 return -EFAULT;
3081
3082 if( copy_to_user(ustats->wr_errors, adapter->wr_errors,
3083 num_ldrv*sizeof(u32)) )
3084 return -EFAULT;
3085
3086 return 0;
3087
3088 #endif
3089 case MBOX_CMD:
3090
3091 /*
3092 * Which adapter
3093 */
3094 if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
3095 return (-ENODEV);
3096
3097 adapter = hba_soft_state[adapno];
3098
3099 /*
3100 * Deletion of logical drive is a special case. The adapter
3101 * should be quiescent before this command is issued.
3102 */
3103 if( uioc.uioc_rmbox[0] == FC_DEL_LOGDRV &&
3104 uioc.uioc_rmbox[2] == OP_DEL_LOGDRV ) {
3105
3106 /*
3107 * Do we support this feature
3108 */
3109 if( !adapter->support_random_del ) {
3110 dev_warn(&adapter->dev->dev, "logdrv "
3111 "delete on non-supporting F/W\n");
3112
3113 return (-EINVAL);
3114 }
3115
3116 rval = mega_del_logdrv( adapter, uioc.uioc_rmbox[3] );
3117
3118 if( rval == 0 ) {
3119 memset(&mc, 0, sizeof(megacmd_t));
3120
3121 mc.status = rval;
3122
3123 rval = mega_n_to_m((void __user *)arg, &mc);
3124 }
3125
3126 return rval;
3127 }
3128 /*
3129 * This interface only support the regular passthru commands.
3130 * Reject extended passthru and 64-bit passthru
3131 */
3132 if( uioc.uioc_rmbox[0] == MEGA_MBOXCMD_PASSTHRU64 ||
3133 uioc.uioc_rmbox[0] == MEGA_MBOXCMD_EXTPTHRU ) {
3134
3135 dev_warn(&adapter->dev->dev, "rejected passthru\n");
3136
3137 return (-EINVAL);
3138 }
3139
3140 /*
3141 * For all internal commands, the buffer must be allocated in
3142 * <4GB address range
3143 */
3144 if( make_local_pdev(adapter, &pdev) != 0 )
3145 return -EIO;
3146
3147 /* Is it a passthru command or a DCMD */
3148 if( uioc.uioc_rmbox[0] == MEGA_MBOXCMD_PASSTHRU ) {
3149 /* Passthru commands */
3150
3151 pthru = dma_alloc_coherent(&pdev->dev,
3152 sizeof(mega_passthru),
3153 &pthru_dma_hndl, GFP_KERNEL);
3154
3155 if( pthru == NULL ) {
3156 free_local_pdev(pdev);
3157 return (-ENOMEM);
3158 }
3159
3160 /*
3161 * The user passthru structure
3162 */
3163 upthru = (mega_passthru __user *)(unsigned long)MBOX(uioc)->xferaddr;
3164
3165 /*
3166 * Copy in the user passthru here.
3167 */
3168 if( copy_from_user(pthru, upthru,
3169 sizeof(mega_passthru)) ) {
3170
3171 dma_free_coherent(&pdev->dev,
3172 sizeof(mega_passthru),
3173 pthru, pthru_dma_hndl);
3174
3175 free_local_pdev(pdev);
3176
3177 return (-EFAULT);
3178 }
3179
3180 /*
3181 * Is there a data transfer
3182 */
3183 if( pthru->dataxferlen ) {
3184 data = dma_alloc_coherent(&pdev->dev,
3185 pthru->dataxferlen,
3186 &data_dma_hndl,
3187 GFP_KERNEL);
3188
3189 if( data == NULL ) {
3190 dma_free_coherent(&pdev->dev,
3191 sizeof(mega_passthru),
3192 pthru,
3193 pthru_dma_hndl);
3194
3195 free_local_pdev(pdev);
3196
3197 return (-ENOMEM);
3198 }
3199
3200 /*
3201 * Save the user address and point the kernel
3202 * address at just allocated memory
3203 */
3204 uxferaddr = pthru->dataxferaddr;
3205 pthru->dataxferaddr = data_dma_hndl;
3206 }
3207
3208
3209 /*
3210 * Is data coming down-stream
3211 */
3212 if( pthru->dataxferlen && (uioc.flags & UIOC_WR) ) {
3213 /*
3214 * Get the user data
3215 */
3216 if( copy_from_user(data, (char __user *)(unsigned long) uxferaddr,
3217 pthru->dataxferlen) ) {
3218 rval = (-EFAULT);
3219 goto freemem_and_return;
3220 }
3221 }
3222
3223 memset(&mc, 0, sizeof(megacmd_t));
3224
3225 mc.cmd = MEGA_MBOXCMD_PASSTHRU;
3226 mc.xferaddr = (u32)pthru_dma_hndl;
3227
3228 /*
3229 * Issue the command
3230 */
3231 mega_internal_command(adapter, &mc, pthru);
3232
3233 rval = mega_n_to_m((void __user *)arg, &mc);
3234
3235 if( rval ) goto freemem_and_return;
3236
3237
3238 /*
3239 * Is data going up-stream
3240 */
3241 if( pthru->dataxferlen && (uioc.flags & UIOC_RD) ) {
3242 if( copy_to_user((char __user *)(unsigned long) uxferaddr, data,
3243 pthru->dataxferlen) ) {
3244 rval = (-EFAULT);
3245 }
3246 }
3247
3248 /*
3249 * Send the request sense data also, irrespective of
3250 * whether the user has asked for it or not.
3251 */
3252 if (copy_to_user(upthru->reqsensearea,
3253 pthru->reqsensearea, 14))
3254 rval = -EFAULT;
3255
3256 freemem_and_return:
3257 if( pthru->dataxferlen ) {
3258 dma_free_coherent(&pdev->dev,
3259 pthru->dataxferlen, data,
3260 data_dma_hndl);
3261 }
3262
3263 dma_free_coherent(&pdev->dev, sizeof(mega_passthru),
3264 pthru, pthru_dma_hndl);
3265
3266 free_local_pdev(pdev);
3267
3268 return rval;
3269 }
3270 else {
3271 /* DCMD commands */
3272
3273 /*
3274 * Is there a data transfer
3275 */
3276 if( uioc.xferlen ) {
3277 data = dma_alloc_coherent(&pdev->dev,
3278 uioc.xferlen,
3279 &data_dma_hndl,
3280 GFP_KERNEL);
3281
3282 if( data == NULL ) {
3283 free_local_pdev(pdev);
3284 return (-ENOMEM);
3285 }
3286
3287 uxferaddr = MBOX(uioc)->xferaddr;
3288 }
3289
3290 /*
3291 * Is data coming down-stream
3292 */
3293 if( uioc.xferlen && (uioc.flags & UIOC_WR) ) {
3294 /*
3295 * Get the user data
3296 */
3297 if( copy_from_user(data, (char __user *)(unsigned long) uxferaddr,
3298 uioc.xferlen) ) {
3299
3300 dma_free_coherent(&pdev->dev,
3301 uioc.xferlen, data,
3302 data_dma_hndl);
3303
3304 free_local_pdev(pdev);
3305
3306 return (-EFAULT);
3307 }
3308 }
3309
3310 memcpy(&mc, MBOX(uioc), sizeof(megacmd_t));
3311
3312 mc.xferaddr = (u32)data_dma_hndl;
3313
3314 /*
3315 * Issue the command
3316 */
3317 mega_internal_command(adapter, &mc, NULL);
3318
3319 rval = mega_n_to_m((void __user *)arg, &mc);
3320
3321 if( rval ) {
3322 if( uioc.xferlen ) {
3323 dma_free_coherent(&pdev->dev,
3324 uioc.xferlen, data,
3325 data_dma_hndl);
3326 }
3327
3328 free_local_pdev(pdev);
3329
3330 return rval;
3331 }
3332
3333 /*
3334 * Is data going up-stream
3335 */
3336 if( uioc.xferlen && (uioc.flags & UIOC_RD) ) {
3337 if( copy_to_user((char __user *)(unsigned long) uxferaddr, data,
3338 uioc.xferlen) ) {
3339
3340 rval = (-EFAULT);
3341 }
3342 }
3343
3344 if( uioc.xferlen ) {
3345 dma_free_coherent(&pdev->dev, uioc.xferlen,
3346 data, data_dma_hndl);
3347 }
3348
3349 free_local_pdev(pdev);
3350
3351 return rval;
3352 }
3353
3354 default:
3355 return (-EINVAL);
3356 }
3357
3358 return 0;
3359 }
3360
3361 static long
megadev_unlocked_ioctl(struct file * filep,unsigned int cmd,unsigned long arg)3362 megadev_unlocked_ioctl(struct file *filep, unsigned int cmd, unsigned long arg)
3363 {
3364 int ret;
3365
3366 mutex_lock(&megadev_mutex);
3367 ret = megadev_ioctl(filep, cmd, arg);
3368 mutex_unlock(&megadev_mutex);
3369
3370 return ret;
3371 }
3372
3373 /**
3374 * mega_m_to_n()
3375 * @arg: user address
3376 * @uioc: new ioctl structure
3377 *
3378 * A thin layer to convert older mimd interface ioctl structure to NIT ioctl
3379 * structure
3380 *
3381 * Converts the older mimd ioctl structure to newer NIT structure
3382 */
3383 static int
mega_m_to_n(void __user * arg,nitioctl_t * uioc)3384 mega_m_to_n(void __user *arg, nitioctl_t *uioc)
3385 {
3386 struct uioctl_t uioc_mimd;
3387 char signature[8] = {0};
3388 u8 opcode;
3389 u8 subopcode;
3390
3391
3392 /*
3393 * check is the application conforms to NIT. We do not have to do much
3394 * in that case.
3395 * We exploit the fact that the signature is stored in the very
3396 * beginning of the structure.
3397 */
3398
3399 if( copy_from_user(signature, arg, 7) )
3400 return (-EFAULT);
3401
3402 if( memcmp(signature, "MEGANIT", 7) == 0 ) {
3403
3404 /*
3405 * NOTE NOTE: The nit ioctl is still under flux because of
3406 * change of mailbox definition, in HPE. No applications yet
3407 * use this interface and let's not have applications use this
3408 * interface till the new specifitions are in place.
3409 */
3410 return -EINVAL;
3411 #if 0
3412 if( copy_from_user(uioc, arg, sizeof(nitioctl_t)) )
3413 return (-EFAULT);
3414 return 0;
3415 #endif
3416 }
3417
3418 /*
3419 * Else assume we have mimd uioctl_t as arg. Convert to nitioctl_t
3420 *
3421 * Get the user ioctl structure
3422 */
3423 if( copy_from_user(&uioc_mimd, arg, sizeof(struct uioctl_t)) )
3424 return (-EFAULT);
3425
3426
3427 /*
3428 * Get the opcode and subopcode for the commands
3429 */
3430 opcode = uioc_mimd.ui.fcs.opcode;
3431 subopcode = uioc_mimd.ui.fcs.subopcode;
3432
3433 switch (opcode) {
3434 case 0x82:
3435
3436 switch (subopcode) {
3437
3438 case MEGAIOC_QDRVRVER: /* Query driver version */
3439 uioc->opcode = GET_DRIVER_VER;
3440 uioc->uioc_uaddr = uioc_mimd.data;
3441 break;
3442
3443 case MEGAIOC_QNADAP: /* Get # of adapters */
3444 uioc->opcode = GET_N_ADAP;
3445 uioc->uioc_uaddr = uioc_mimd.data;
3446 break;
3447
3448 case MEGAIOC_QADAPINFO: /* Get adapter information */
3449 uioc->opcode = GET_ADAP_INFO;
3450 uioc->adapno = uioc_mimd.ui.fcs.adapno;
3451 uioc->uioc_uaddr = uioc_mimd.data;
3452 break;
3453
3454 default:
3455 return(-EINVAL);
3456 }
3457
3458 break;
3459
3460
3461 case 0x81:
3462
3463 uioc->opcode = MBOX_CMD;
3464 uioc->adapno = uioc_mimd.ui.fcs.adapno;
3465
3466 memcpy(uioc->uioc_rmbox, uioc_mimd.mbox, 18);
3467
3468 uioc->xferlen = uioc_mimd.ui.fcs.length;
3469
3470 if( uioc_mimd.outlen ) uioc->flags = UIOC_RD;
3471 if( uioc_mimd.inlen ) uioc->flags |= UIOC_WR;
3472
3473 break;
3474
3475 case 0x80:
3476
3477 uioc->opcode = MBOX_CMD;
3478 uioc->adapno = uioc_mimd.ui.fcs.adapno;
3479
3480 memcpy(uioc->uioc_rmbox, uioc_mimd.mbox, 18);
3481
3482 /*
3483 * Choose the xferlen bigger of input and output data
3484 */
3485 uioc->xferlen = uioc_mimd.outlen > uioc_mimd.inlen ?
3486 uioc_mimd.outlen : uioc_mimd.inlen;
3487
3488 if( uioc_mimd.outlen ) uioc->flags = UIOC_RD;
3489 if( uioc_mimd.inlen ) uioc->flags |= UIOC_WR;
3490
3491 break;
3492
3493 default:
3494 return (-EINVAL);
3495
3496 }
3497
3498 return 0;
3499 }
3500
3501 /*
3502 * mega_n_to_m()
3503 * @arg: user address
3504 * @mc: mailbox command
3505 *
3506 * Updates the status information to the application, depending on application
3507 * conforms to older mimd ioctl interface or newer NIT ioctl interface
3508 */
3509 static int
mega_n_to_m(void __user * arg,megacmd_t * mc)3510 mega_n_to_m(void __user *arg, megacmd_t *mc)
3511 {
3512 nitioctl_t __user *uiocp;
3513 megacmd_t __user *umc;
3514 mega_passthru __user *upthru;
3515 struct uioctl_t __user *uioc_mimd;
3516 char signature[8] = {0};
3517
3518 /*
3519 * check is the application conforms to NIT.
3520 */
3521 if( copy_from_user(signature, arg, 7) )
3522 return -EFAULT;
3523
3524 if( memcmp(signature, "MEGANIT", 7) == 0 ) {
3525
3526 uiocp = arg;
3527
3528 if( put_user(mc->status, (u8 __user *)&MBOX_P(uiocp)->status) )
3529 return (-EFAULT);
3530
3531 if( mc->cmd == MEGA_MBOXCMD_PASSTHRU ) {
3532
3533 umc = MBOX_P(uiocp);
3534
3535 if (get_user(upthru, (mega_passthru __user * __user *)&umc->xferaddr))
3536 return -EFAULT;
3537
3538 if( put_user(mc->status, (u8 __user *)&upthru->scsistatus))
3539 return (-EFAULT);
3540 }
3541 }
3542 else {
3543 uioc_mimd = arg;
3544
3545 if( put_user(mc->status, (u8 __user *)&uioc_mimd->mbox[17]) )
3546 return (-EFAULT);
3547
3548 if( mc->cmd == MEGA_MBOXCMD_PASSTHRU ) {
3549
3550 umc = (megacmd_t __user *)uioc_mimd->mbox;
3551
3552 if (get_user(upthru, (mega_passthru __user * __user *)&umc->xferaddr))
3553 return (-EFAULT);
3554
3555 if( put_user(mc->status, (u8 __user *)&upthru->scsistatus) )
3556 return (-EFAULT);
3557 }
3558 }
3559
3560 return 0;
3561 }
3562
3563
3564 /*
3565 * MEGARAID 'FW' commands.
3566 */
3567
3568 /**
3569 * mega_is_bios_enabled()
3570 * @adapter: pointer to our soft state
3571 *
3572 * issue command to find out if the BIOS is enabled for this controller
3573 */
3574 static int
mega_is_bios_enabled(adapter_t * adapter)3575 mega_is_bios_enabled(adapter_t *adapter)
3576 {
3577 unsigned char raw_mbox[sizeof(struct mbox_out)];
3578 mbox_t *mbox;
3579
3580 mbox = (mbox_t *)raw_mbox;
3581
3582 memset(&mbox->m_out, 0, sizeof(raw_mbox));
3583
3584 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
3585
3586 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
3587
3588 raw_mbox[0] = IS_BIOS_ENABLED;
3589 raw_mbox[2] = GET_BIOS;
3590
3591 issue_scb_block(adapter, raw_mbox);
3592
3593 return *(char *)adapter->mega_buffer;
3594 }
3595
3596
3597 /**
3598 * mega_enum_raid_scsi()
3599 * @adapter: pointer to our soft state
3600 *
3601 * Find out what channels are RAID/SCSI. This information is used to
3602 * differentiate the virtual channels and physical channels and to support
3603 * ROMB feature and non-disk devices.
3604 */
3605 static void
mega_enum_raid_scsi(adapter_t * adapter)3606 mega_enum_raid_scsi(adapter_t *adapter)
3607 {
3608 unsigned char raw_mbox[sizeof(struct mbox_out)];
3609 mbox_t *mbox;
3610 int i;
3611
3612 mbox = (mbox_t *)raw_mbox;
3613
3614 memset(&mbox->m_out, 0, sizeof(raw_mbox));
3615
3616 /*
3617 * issue command to find out what channels are raid/scsi
3618 */
3619 raw_mbox[0] = CHNL_CLASS;
3620 raw_mbox[2] = GET_CHNL_CLASS;
3621
3622 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
3623
3624 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
3625
3626 /*
3627 * Non-ROMB firmware fail this command, so all channels
3628 * must be shown RAID
3629 */
3630 adapter->mega_ch_class = 0xFF;
3631
3632 if(!issue_scb_block(adapter, raw_mbox)) {
3633 adapter->mega_ch_class = *((char *)adapter->mega_buffer);
3634
3635 }
3636
3637 for( i = 0; i < adapter->product_info.nchannels; i++ ) {
3638 if( (adapter->mega_ch_class >> i) & 0x01 ) {
3639 dev_info(&adapter->dev->dev, "channel[%d] is raid\n",
3640 i);
3641 }
3642 else {
3643 dev_info(&adapter->dev->dev, "channel[%d] is scsi\n",
3644 i);
3645 }
3646 }
3647
3648 return;
3649 }
3650
3651
3652 /**
3653 * mega_get_boot_drv()
3654 * @adapter: pointer to our soft state
3655 *
3656 * Find out which device is the boot device. Note, any logical drive or any
3657 * phyical device (e.g., a CDROM) can be designated as a boot device.
3658 */
3659 static void
mega_get_boot_drv(adapter_t * adapter)3660 mega_get_boot_drv(adapter_t *adapter)
3661 {
3662 struct private_bios_data *prv_bios_data;
3663 unsigned char raw_mbox[sizeof(struct mbox_out)];
3664 mbox_t *mbox;
3665 u16 cksum = 0;
3666 u8 *cksum_p;
3667 u8 boot_pdrv;
3668 int i;
3669
3670 mbox = (mbox_t *)raw_mbox;
3671
3672 memset(&mbox->m_out, 0, sizeof(raw_mbox));
3673
3674 raw_mbox[0] = BIOS_PVT_DATA;
3675 raw_mbox[2] = GET_BIOS_PVT_DATA;
3676
3677 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
3678
3679 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
3680
3681 adapter->boot_ldrv_enabled = 0;
3682 adapter->boot_ldrv = 0;
3683
3684 adapter->boot_pdrv_enabled = 0;
3685 adapter->boot_pdrv_ch = 0;
3686 adapter->boot_pdrv_tgt = 0;
3687
3688 if(issue_scb_block(adapter, raw_mbox) == 0) {
3689 prv_bios_data =
3690 (struct private_bios_data *)adapter->mega_buffer;
3691
3692 cksum = 0;
3693 cksum_p = (char *)prv_bios_data;
3694 for (i = 0; i < 14; i++ ) {
3695 cksum += (u16)(*cksum_p++);
3696 }
3697
3698 if (prv_bios_data->cksum == (u16)(0-cksum) ) {
3699
3700 /*
3701 * If MSB is set, a physical drive is set as boot
3702 * device
3703 */
3704 if( prv_bios_data->boot_drv & 0x80 ) {
3705 adapter->boot_pdrv_enabled = 1;
3706 boot_pdrv = prv_bios_data->boot_drv & 0x7F;
3707 adapter->boot_pdrv_ch = boot_pdrv / 16;
3708 adapter->boot_pdrv_tgt = boot_pdrv % 16;
3709 }
3710 else {
3711 adapter->boot_ldrv_enabled = 1;
3712 adapter->boot_ldrv = prv_bios_data->boot_drv;
3713 }
3714 }
3715 }
3716
3717 }
3718
3719 /**
3720 * mega_support_random_del()
3721 * @adapter: pointer to our soft state
3722 *
3723 * Find out if this controller supports random deletion and addition of
3724 * logical drives
3725 */
3726 static int
mega_support_random_del(adapter_t * adapter)3727 mega_support_random_del(adapter_t *adapter)
3728 {
3729 unsigned char raw_mbox[sizeof(struct mbox_out)];
3730 mbox_t *mbox;
3731 int rval;
3732
3733 mbox = (mbox_t *)raw_mbox;
3734
3735 memset(&mbox->m_out, 0, sizeof(raw_mbox));
3736
3737 /*
3738 * issue command
3739 */
3740 raw_mbox[0] = FC_DEL_LOGDRV;
3741 raw_mbox[2] = OP_SUP_DEL_LOGDRV;
3742
3743 rval = issue_scb_block(adapter, raw_mbox);
3744
3745 return !rval;
3746 }
3747
3748
3749 /**
3750 * mega_support_ext_cdb()
3751 * @adapter: pointer to our soft state
3752 *
3753 * Find out if this firmware support cdblen > 10
3754 */
3755 static int
mega_support_ext_cdb(adapter_t * adapter)3756 mega_support_ext_cdb(adapter_t *adapter)
3757 {
3758 unsigned char raw_mbox[sizeof(struct mbox_out)];
3759 mbox_t *mbox;
3760 int rval;
3761
3762 mbox = (mbox_t *)raw_mbox;
3763
3764 memset(&mbox->m_out, 0, sizeof(raw_mbox));
3765 /*
3766 * issue command to find out if controller supports extended CDBs.
3767 */
3768 raw_mbox[0] = 0xA4;
3769 raw_mbox[2] = 0x16;
3770
3771 rval = issue_scb_block(adapter, raw_mbox);
3772
3773 return !rval;
3774 }
3775
3776
3777 /**
3778 * mega_del_logdrv()
3779 * @adapter: pointer to our soft state
3780 * @logdrv: logical drive to be deleted
3781 *
3782 * Delete the specified logical drive. It is the responsibility of the user
3783 * app to let the OS know about this operation.
3784 */
3785 static int
mega_del_logdrv(adapter_t * adapter,int logdrv)3786 mega_del_logdrv(adapter_t *adapter, int logdrv)
3787 {
3788 unsigned long flags;
3789 scb_t *scb;
3790 int rval;
3791
3792 /*
3793 * Stop sending commands to the controller, queue them internally.
3794 * When deletion is complete, ISR will flush the queue.
3795 */
3796 atomic_set(&adapter->quiescent, 1);
3797
3798 /*
3799 * Wait till all the issued commands are complete and there are no
3800 * commands in the pending queue
3801 */
3802 while (atomic_read(&adapter->pend_cmds) > 0 ||
3803 !list_empty(&adapter->pending_list))
3804 msleep(1000); /* sleep for 1s */
3805
3806 rval = mega_do_del_logdrv(adapter, logdrv);
3807
3808 spin_lock_irqsave(&adapter->lock, flags);
3809
3810 /*
3811 * If delete operation was successful, add 0x80 to the logical drive
3812 * ids for commands in the pending queue.
3813 */
3814 if (adapter->read_ldidmap) {
3815 struct list_head *pos;
3816 list_for_each(pos, &adapter->pending_list) {
3817 scb = list_entry(pos, scb_t, list);
3818 if (scb->pthru->logdrv < 0x80 )
3819 scb->pthru->logdrv += 0x80;
3820 }
3821 }
3822
3823 atomic_set(&adapter->quiescent, 0);
3824
3825 mega_runpendq(adapter);
3826
3827 spin_unlock_irqrestore(&adapter->lock, flags);
3828
3829 return rval;
3830 }
3831
3832
3833 static int
mega_do_del_logdrv(adapter_t * adapter,int logdrv)3834 mega_do_del_logdrv(adapter_t *adapter, int logdrv)
3835 {
3836 megacmd_t mc;
3837 int rval;
3838
3839 memset( &mc, 0, sizeof(megacmd_t));
3840
3841 mc.cmd = FC_DEL_LOGDRV;
3842 mc.opcode = OP_DEL_LOGDRV;
3843 mc.subopcode = logdrv;
3844
3845 rval = mega_internal_command(adapter, &mc, NULL);
3846
3847 /* log this event */
3848 if(rval) {
3849 dev_warn(&adapter->dev->dev, "Delete LD-%d failed", logdrv);
3850 return rval;
3851 }
3852
3853 /*
3854 * After deleting first logical drive, the logical drives must be
3855 * addressed by adding 0x80 to the logical drive id.
3856 */
3857 adapter->read_ldidmap = 1;
3858
3859 return rval;
3860 }
3861
3862
3863 /**
3864 * mega_get_max_sgl()
3865 * @adapter: pointer to our soft state
3866 *
3867 * Find out the maximum number of scatter-gather elements supported by this
3868 * version of the firmware
3869 */
3870 static void
mega_get_max_sgl(adapter_t * adapter)3871 mega_get_max_sgl(adapter_t *adapter)
3872 {
3873 unsigned char raw_mbox[sizeof(struct mbox_out)];
3874 mbox_t *mbox;
3875
3876 mbox = (mbox_t *)raw_mbox;
3877
3878 memset(mbox, 0, sizeof(raw_mbox));
3879
3880 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
3881
3882 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
3883
3884 raw_mbox[0] = MAIN_MISC_OPCODE;
3885 raw_mbox[2] = GET_MAX_SG_SUPPORT;
3886
3887
3888 if( issue_scb_block(adapter, raw_mbox) ) {
3889 /*
3890 * f/w does not support this command. Choose the default value
3891 */
3892 adapter->sglen = MIN_SGLIST;
3893 }
3894 else {
3895 adapter->sglen = *((char *)adapter->mega_buffer);
3896
3897 /*
3898 * Make sure this is not more than the resources we are
3899 * planning to allocate
3900 */
3901 if ( adapter->sglen > MAX_SGLIST )
3902 adapter->sglen = MAX_SGLIST;
3903 }
3904
3905 return;
3906 }
3907
3908
3909 /**
3910 * mega_support_cluster()
3911 * @adapter: pointer to our soft state
3912 *
3913 * Find out if this firmware support cluster calls.
3914 */
3915 static int
mega_support_cluster(adapter_t * adapter)3916 mega_support_cluster(adapter_t *adapter)
3917 {
3918 unsigned char raw_mbox[sizeof(struct mbox_out)];
3919 mbox_t *mbox;
3920
3921 mbox = (mbox_t *)raw_mbox;
3922
3923 memset(mbox, 0, sizeof(raw_mbox));
3924
3925 memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
3926
3927 mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
3928
3929 /*
3930 * Try to get the initiator id. This command will succeed iff the
3931 * clustering is available on this HBA.
3932 */
3933 raw_mbox[0] = MEGA_GET_TARGET_ID;
3934
3935 if( issue_scb_block(adapter, raw_mbox) == 0 ) {
3936
3937 /*
3938 * Cluster support available. Get the initiator target id.
3939 * Tell our id to mid-layer too.
3940 */
3941 adapter->this_id = *(u32 *)adapter->mega_buffer;
3942 adapter->host->this_id = adapter->this_id;
3943
3944 return 1;
3945 }
3946
3947 return 0;
3948 }
3949
3950 #ifdef CONFIG_PROC_FS
3951 /**
3952 * mega_adapinq()
3953 * @adapter: pointer to our soft state
3954 * @dma_handle: DMA address of the buffer
3955 *
3956 * Issue internal commands while interrupts are available.
3957 * We only issue direct mailbox commands from within the driver. ioctl()
3958 * interface using these routines can issue passthru commands.
3959 */
3960 static int
mega_adapinq(adapter_t * adapter,dma_addr_t dma_handle)3961 mega_adapinq(adapter_t *adapter, dma_addr_t dma_handle)
3962 {
3963 megacmd_t mc;
3964
3965 memset(&mc, 0, sizeof(megacmd_t));
3966
3967 if( adapter->flag & BOARD_40LD ) {
3968 mc.cmd = FC_NEW_CONFIG;
3969 mc.opcode = NC_SUBOP_ENQUIRY3;
3970 mc.subopcode = ENQ3_GET_SOLICITED_FULL;
3971 }
3972 else {
3973 mc.cmd = MEGA_MBOXCMD_ADPEXTINQ;
3974 }
3975
3976 mc.xferaddr = (u32)dma_handle;
3977
3978 if ( mega_internal_command(adapter, &mc, NULL) != 0 ) {
3979 return -1;
3980 }
3981
3982 return 0;
3983 }
3984
3985
3986 /**
3987 * mega_internal_dev_inquiry()
3988 * @adapter: pointer to our soft state
3989 * @ch: channel for this device
3990 * @tgt: ID of this device
3991 * @buf_dma_handle: DMA address of the buffer
3992 *
3993 * Issue the scsi inquiry for the specified device.
3994 */
3995 static int
mega_internal_dev_inquiry(adapter_t * adapter,u8 ch,u8 tgt,dma_addr_t buf_dma_handle)3996 mega_internal_dev_inquiry(adapter_t *adapter, u8 ch, u8 tgt,
3997 dma_addr_t buf_dma_handle)
3998 {
3999 mega_passthru *pthru;
4000 dma_addr_t pthru_dma_handle;
4001 megacmd_t mc;
4002 int rval;
4003 struct pci_dev *pdev;
4004
4005
4006 /*
4007 * For all internal commands, the buffer must be allocated in <4GB
4008 * address range
4009 */
4010 if( make_local_pdev(adapter, &pdev) != 0 ) return -1;
4011
4012 pthru = dma_alloc_coherent(&pdev->dev, sizeof(mega_passthru),
4013 &pthru_dma_handle, GFP_KERNEL);
4014
4015 if( pthru == NULL ) {
4016 free_local_pdev(pdev);
4017 return -1;
4018 }
4019
4020 pthru->timeout = 2;
4021 pthru->ars = 1;
4022 pthru->reqsenselen = 14;
4023 pthru->islogical = 0;
4024
4025 pthru->channel = (adapter->flag & BOARD_40LD) ? 0 : ch;
4026
4027 pthru->target = (adapter->flag & BOARD_40LD) ? (ch << 4)|tgt : tgt;
4028
4029 pthru->cdblen = 6;
4030
4031 pthru->cdb[0] = INQUIRY;
4032 pthru->cdb[1] = 0;
4033 pthru->cdb[2] = 0;
4034 pthru->cdb[3] = 0;
4035 pthru->cdb[4] = 255;
4036 pthru->cdb[5] = 0;
4037
4038
4039 pthru->dataxferaddr = (u32)buf_dma_handle;
4040 pthru->dataxferlen = 256;
4041
4042 memset(&mc, 0, sizeof(megacmd_t));
4043
4044 mc.cmd = MEGA_MBOXCMD_PASSTHRU;
4045 mc.xferaddr = (u32)pthru_dma_handle;
4046
4047 rval = mega_internal_command(adapter, &mc, pthru);
4048
4049 dma_free_coherent(&pdev->dev, sizeof(mega_passthru), pthru,
4050 pthru_dma_handle);
4051
4052 free_local_pdev(pdev);
4053
4054 return rval;
4055 }
4056 #endif
4057
4058 /**
4059 * mega_internal_command()
4060 * @adapter: pointer to our soft state
4061 * @mc: the mailbox command
4062 * @pthru: Passthru structure for DCDB commands
4063 *
4064 * Issue the internal commands in interrupt mode.
4065 * The last argument is the address of the passthru structure if the command
4066 * to be fired is a passthru command
4067 *
4068 * Note: parameter 'pthru' is null for non-passthru commands.
4069 */
4070 static int
mega_internal_command(adapter_t * adapter,megacmd_t * mc,mega_passthru * pthru)4071 mega_internal_command(adapter_t *adapter, megacmd_t *mc, mega_passthru *pthru)
4072 {
4073 unsigned long flags;
4074 scb_t *scb;
4075 int rval;
4076
4077 /*
4078 * The internal commands share one command id and hence are
4079 * serialized. This is so because we want to reserve maximum number of
4080 * available command ids for the I/O commands.
4081 */
4082 mutex_lock(&adapter->int_mtx);
4083
4084 scb = &adapter->int_scb;
4085 memset(scb, 0, sizeof(scb_t));
4086
4087 scb->idx = CMDID_INT_CMDS;
4088 scb->state |= SCB_ACTIVE | SCB_PENDQ;
4089
4090 memcpy(scb->raw_mbox, mc, sizeof(megacmd_t));
4091
4092 /*
4093 * Is it a passthru command
4094 */
4095 if (mc->cmd == MEGA_MBOXCMD_PASSTHRU)
4096 scb->pthru = pthru;
4097
4098 spin_lock_irqsave(&adapter->lock, flags);
4099 list_add_tail(&scb->list, &adapter->pending_list);
4100 /*
4101 * Check if the HBA is in quiescent state, e.g., during a
4102 * delete logical drive opertion. If it is, don't run
4103 * the pending_list.
4104 */
4105 if (atomic_read(&adapter->quiescent) == 0)
4106 mega_runpendq(adapter);
4107 spin_unlock_irqrestore(&adapter->lock, flags);
4108
4109 wait_for_completion(&adapter->int_waitq);
4110
4111 mc->status = rval = adapter->int_status;
4112
4113 /*
4114 * Print a debug message for all failed commands. Applications can use
4115 * this information.
4116 */
4117 if (rval && trace_level) {
4118 dev_info(&adapter->dev->dev, "cmd [%x, %x, %x] status:[%x]\n",
4119 mc->cmd, mc->opcode, mc->subopcode, rval);
4120 }
4121
4122 mutex_unlock(&adapter->int_mtx);
4123 return rval;
4124 }
4125
4126 static struct scsi_host_template megaraid_template = {
4127 .module = THIS_MODULE,
4128 .name = "MegaRAID",
4129 .proc_name = "megaraid_legacy",
4130 .info = megaraid_info,
4131 .queuecommand = megaraid_queue,
4132 .bios_param = megaraid_biosparam,
4133 .max_sectors = MAX_SECTORS_PER_IO,
4134 .can_queue = MAX_COMMANDS,
4135 .this_id = DEFAULT_INITIATOR_ID,
4136 .sg_tablesize = MAX_SGLIST,
4137 .cmd_per_lun = DEF_CMD_PER_LUN,
4138 .eh_abort_handler = megaraid_abort,
4139 .eh_device_reset_handler = megaraid_reset,
4140 .eh_bus_reset_handler = megaraid_reset,
4141 .eh_host_reset_handler = megaraid_reset,
4142 .no_write_same = 1,
4143 };
4144
4145 static int
megaraid_probe_one(struct pci_dev * pdev,const struct pci_device_id * id)4146 megaraid_probe_one(struct pci_dev *pdev, const struct pci_device_id *id)
4147 {
4148 struct Scsi_Host *host;
4149 adapter_t *adapter;
4150 unsigned long mega_baseport, tbase, flag = 0;
4151 u16 subsysid, subsysvid;
4152 u8 pci_bus, pci_dev_func;
4153 int irq, i, j;
4154 int error = -ENODEV;
4155
4156 if (hba_count >= MAX_CONTROLLERS)
4157 goto out;
4158
4159 if (pci_enable_device(pdev))
4160 goto out;
4161 pci_set_master(pdev);
4162
4163 pci_bus = pdev->bus->number;
4164 pci_dev_func = pdev->devfn;
4165
4166 /*
4167 * The megaraid3 stuff reports the ID of the Intel part which is not
4168 * remotely specific to the megaraid
4169 */
4170 if (pdev->vendor == PCI_VENDOR_ID_INTEL) {
4171 u16 magic;
4172 /*
4173 * Don't fall over the Compaq management cards using the same
4174 * PCI identifier
4175 */
4176 if (pdev->subsystem_vendor == PCI_VENDOR_ID_COMPAQ &&
4177 pdev->subsystem_device == 0xC000)
4178 goto out_disable_device;
4179 /* Now check the magic signature byte */
4180 pci_read_config_word(pdev, PCI_CONF_AMISIG, &magic);
4181 if (magic != HBA_SIGNATURE_471 && magic != HBA_SIGNATURE)
4182 goto out_disable_device;
4183 /* Ok it is probably a megaraid */
4184 }
4185
4186 /*
4187 * For these vendor and device ids, signature offsets are not
4188 * valid and 64 bit is implicit
4189 */
4190 if (id->driver_data & BOARD_64BIT)
4191 flag |= BOARD_64BIT;
4192 else {
4193 u32 magic64;
4194
4195 pci_read_config_dword(pdev, PCI_CONF_AMISIG64, &magic64);
4196 if (magic64 == HBA_SIGNATURE_64BIT)
4197 flag |= BOARD_64BIT;
4198 }
4199
4200 subsysvid = pdev->subsystem_vendor;
4201 subsysid = pdev->subsystem_device;
4202
4203 dev_notice(&pdev->dev, "found 0x%4.04x:0x%4.04x\n",
4204 id->vendor, id->device);
4205
4206 /* Read the base port and IRQ from PCI */
4207 mega_baseport = pci_resource_start(pdev, 0);
4208 irq = pdev->irq;
4209
4210 tbase = mega_baseport;
4211 if (pci_resource_flags(pdev, 0) & IORESOURCE_MEM) {
4212 flag |= BOARD_MEMMAP;
4213
4214 if (!request_mem_region(mega_baseport, 128, "megaraid")) {
4215 dev_warn(&pdev->dev, "mem region busy!\n");
4216 goto out_disable_device;
4217 }
4218
4219 mega_baseport = (unsigned long)ioremap(mega_baseport, 128);
4220 if (!mega_baseport) {
4221 dev_warn(&pdev->dev, "could not map hba memory\n");
4222 goto out_release_region;
4223 }
4224 } else {
4225 flag |= BOARD_IOMAP;
4226 mega_baseport += 0x10;
4227
4228 if (!request_region(mega_baseport, 16, "megaraid"))
4229 goto out_disable_device;
4230 }
4231
4232 /* Initialize SCSI Host structure */
4233 host = scsi_host_alloc(&megaraid_template, sizeof(adapter_t));
4234 if (!host)
4235 goto out_iounmap;
4236
4237 adapter = (adapter_t *)host->hostdata;
4238 memset(adapter, 0, sizeof(adapter_t));
4239
4240 dev_notice(&pdev->dev,
4241 "scsi%d:Found MegaRAID controller at 0x%lx, IRQ:%d\n",
4242 host->host_no, mega_baseport, irq);
4243
4244 adapter->base = mega_baseport;
4245 if (flag & BOARD_MEMMAP)
4246 adapter->mmio_base = (void __iomem *) mega_baseport;
4247
4248 INIT_LIST_HEAD(&adapter->free_list);
4249 INIT_LIST_HEAD(&adapter->pending_list);
4250 INIT_LIST_HEAD(&adapter->completed_list);
4251
4252 adapter->flag = flag;
4253 spin_lock_init(&adapter->lock);
4254
4255 host->cmd_per_lun = max_cmd_per_lun;
4256 host->max_sectors = max_sectors_per_io;
4257
4258 adapter->dev = pdev;
4259 adapter->host = host;
4260
4261 adapter->host->irq = irq;
4262
4263 if (flag & BOARD_MEMMAP)
4264 adapter->host->base = tbase;
4265 else {
4266 adapter->host->io_port = tbase;
4267 adapter->host->n_io_port = 16;
4268 }
4269
4270 adapter->host->unique_id = (pci_bus << 8) | pci_dev_func;
4271
4272 /*
4273 * Allocate buffer to issue internal commands.
4274 */
4275 adapter->mega_buffer = dma_alloc_coherent(&adapter->dev->dev,
4276 MEGA_BUFFER_SIZE,
4277 &adapter->buf_dma_handle,
4278 GFP_KERNEL);
4279 if (!adapter->mega_buffer) {
4280 dev_warn(&pdev->dev, "out of RAM\n");
4281 goto out_host_put;
4282 }
4283
4284 adapter->scb_list = kmalloc_array(MAX_COMMANDS, sizeof(scb_t),
4285 GFP_KERNEL);
4286 if (!adapter->scb_list) {
4287 dev_warn(&pdev->dev, "out of RAM\n");
4288 goto out_free_cmd_buffer;
4289 }
4290
4291 if (request_irq(irq, (adapter->flag & BOARD_MEMMAP) ?
4292 megaraid_isr_memmapped : megaraid_isr_iomapped,
4293 IRQF_SHARED, "megaraid", adapter)) {
4294 dev_warn(&pdev->dev, "Couldn't register IRQ %d!\n", irq);
4295 goto out_free_scb_list;
4296 }
4297
4298 if (mega_setup_mailbox(adapter))
4299 goto out_free_irq;
4300
4301 if (mega_query_adapter(adapter))
4302 goto out_free_mbox;
4303
4304 /*
4305 * Have checks for some buggy f/w
4306 */
4307 if ((subsysid == 0x1111) && (subsysvid == 0x1111)) {
4308 /*
4309 * Which firmware
4310 */
4311 if (!strcmp(adapter->fw_version, "3.00") ||
4312 !strcmp(adapter->fw_version, "3.01")) {
4313
4314 dev_warn(&pdev->dev,
4315 "Your card is a Dell PERC "
4316 "2/SC RAID controller with "
4317 "firmware\nmegaraid: 3.00 or 3.01. "
4318 "This driver is known to have "
4319 "corruption issues\nmegaraid: with "
4320 "those firmware versions on this "
4321 "specific card. In order\nmegaraid: "
4322 "to protect your data, please upgrade "
4323 "your firmware to version\nmegaraid: "
4324 "3.10 or later, available from the "
4325 "Dell Technical Support web\n"
4326 "megaraid: site at\nhttp://support."
4327 "dell.com/us/en/filelib/download/"
4328 "index.asp?fileid=2940\n"
4329 );
4330 }
4331 }
4332
4333 /*
4334 * If we have a HP 1M(0x60E7)/2M(0x60E8) controller with
4335 * firmware H.01.07, H.01.08, and H.01.09 disable 64 bit
4336 * support, since this firmware cannot handle 64 bit
4337 * addressing
4338 */
4339 if ((subsysvid == PCI_VENDOR_ID_HP) &&
4340 ((subsysid == 0x60E7) || (subsysid == 0x60E8))) {
4341 /*
4342 * which firmware
4343 */
4344 if (!strcmp(adapter->fw_version, "H01.07") ||
4345 !strcmp(adapter->fw_version, "H01.08") ||
4346 !strcmp(adapter->fw_version, "H01.09") ) {
4347 dev_warn(&pdev->dev,
4348 "Firmware H.01.07, "
4349 "H.01.08, and H.01.09 on 1M/2M "
4350 "controllers\n"
4351 "do not support 64 bit "
4352 "addressing.\nDISABLING "
4353 "64 bit support.\n");
4354 adapter->flag &= ~BOARD_64BIT;
4355 }
4356 }
4357
4358 if (mega_is_bios_enabled(adapter))
4359 mega_hbas[hba_count].is_bios_enabled = 1;
4360 mega_hbas[hba_count].hostdata_addr = adapter;
4361
4362 /*
4363 * Find out which channel is raid and which is scsi. This is
4364 * for ROMB support.
4365 */
4366 mega_enum_raid_scsi(adapter);
4367
4368 /*
4369 * Find out if a logical drive is set as the boot drive. If
4370 * there is one, will make that as the first logical drive.
4371 * ROMB: Do we have to boot from a physical drive. Then all
4372 * the physical drives would appear before the logical disks.
4373 * Else, all the physical drives would be exported to the mid
4374 * layer after logical drives.
4375 */
4376 mega_get_boot_drv(adapter);
4377
4378 if (adapter->boot_pdrv_enabled) {
4379 j = adapter->product_info.nchannels;
4380 for( i = 0; i < j; i++ )
4381 adapter->logdrv_chan[i] = 0;
4382 for( i = j; i < NVIRT_CHAN + j; i++ )
4383 adapter->logdrv_chan[i] = 1;
4384 } else {
4385 for (i = 0; i < NVIRT_CHAN; i++)
4386 adapter->logdrv_chan[i] = 1;
4387 for (i = NVIRT_CHAN; i < MAX_CHANNELS+NVIRT_CHAN; i++)
4388 adapter->logdrv_chan[i] = 0;
4389 adapter->mega_ch_class <<= NVIRT_CHAN;
4390 }
4391
4392 /*
4393 * Do we support random deletion and addition of logical
4394 * drives
4395 */
4396 adapter->read_ldidmap = 0; /* set it after first logdrv
4397 delete cmd */
4398 adapter->support_random_del = mega_support_random_del(adapter);
4399
4400 /* Initialize SCBs */
4401 if (mega_init_scb(adapter))
4402 goto out_free_mbox;
4403
4404 /*
4405 * Reset the pending commands counter
4406 */
4407 atomic_set(&adapter->pend_cmds, 0);
4408
4409 /*
4410 * Reset the adapter quiescent flag
4411 */
4412 atomic_set(&adapter->quiescent, 0);
4413
4414 hba_soft_state[hba_count] = adapter;
4415
4416 /*
4417 * Fill in the structure which needs to be passed back to the
4418 * application when it does an ioctl() for controller related
4419 * information.
4420 */
4421 i = hba_count;
4422
4423 mcontroller[i].base = mega_baseport;
4424 mcontroller[i].irq = irq;
4425 mcontroller[i].numldrv = adapter->numldrv;
4426 mcontroller[i].pcibus = pci_bus;
4427 mcontroller[i].pcidev = id->device;
4428 mcontroller[i].pcifun = PCI_FUNC (pci_dev_func);
4429 mcontroller[i].pciid = -1;
4430 mcontroller[i].pcivendor = id->vendor;
4431 mcontroller[i].pcislot = PCI_SLOT(pci_dev_func);
4432 mcontroller[i].uid = (pci_bus << 8) | pci_dev_func;
4433
4434
4435 /* Set the Mode of addressing to 64 bit if we can */
4436 if ((adapter->flag & BOARD_64BIT) && (sizeof(dma_addr_t) == 8)) {
4437 dma_set_mask(&pdev->dev, DMA_BIT_MASK(64));
4438 adapter->has_64bit_addr = 1;
4439 } else {
4440 dma_set_mask(&pdev->dev, DMA_BIT_MASK(32));
4441 adapter->has_64bit_addr = 0;
4442 }
4443
4444 mutex_init(&adapter->int_mtx);
4445 init_completion(&adapter->int_waitq);
4446
4447 adapter->this_id = DEFAULT_INITIATOR_ID;
4448 adapter->host->this_id = DEFAULT_INITIATOR_ID;
4449
4450 #if MEGA_HAVE_CLUSTERING
4451 /*
4452 * Is cluster support enabled on this controller
4453 * Note: In a cluster the HBAs ( the initiators ) will have
4454 * different target IDs and we cannot assume it to be 7. Call
4455 * to mega_support_cluster() will get the target ids also if
4456 * the cluster support is available
4457 */
4458 adapter->has_cluster = mega_support_cluster(adapter);
4459 if (adapter->has_cluster) {
4460 dev_notice(&pdev->dev,
4461 "Cluster driver, initiator id:%d\n",
4462 adapter->this_id);
4463 }
4464 #endif
4465
4466 pci_set_drvdata(pdev, host);
4467
4468 mega_create_proc_entry(hba_count, mega_proc_dir_entry);
4469
4470 error = scsi_add_host(host, &pdev->dev);
4471 if (error)
4472 goto out_free_mbox;
4473
4474 scsi_scan_host(host);
4475 hba_count++;
4476 return 0;
4477
4478 out_free_mbox:
4479 dma_free_coherent(&adapter->dev->dev, sizeof(mbox64_t),
4480 adapter->una_mbox64, adapter->una_mbox64_dma);
4481 out_free_irq:
4482 free_irq(adapter->host->irq, adapter);
4483 out_free_scb_list:
4484 kfree(adapter->scb_list);
4485 out_free_cmd_buffer:
4486 dma_free_coherent(&adapter->dev->dev, MEGA_BUFFER_SIZE,
4487 adapter->mega_buffer, adapter->buf_dma_handle);
4488 out_host_put:
4489 scsi_host_put(host);
4490 out_iounmap:
4491 if (flag & BOARD_MEMMAP)
4492 iounmap((void *)mega_baseport);
4493 out_release_region:
4494 if (flag & BOARD_MEMMAP)
4495 release_mem_region(tbase, 128);
4496 else
4497 release_region(mega_baseport, 16);
4498 out_disable_device:
4499 pci_disable_device(pdev);
4500 out:
4501 return error;
4502 }
4503
4504 static void
__megaraid_shutdown(adapter_t * adapter)4505 __megaraid_shutdown(adapter_t *adapter)
4506 {
4507 u_char raw_mbox[sizeof(struct mbox_out)];
4508 mbox_t *mbox = (mbox_t *)raw_mbox;
4509 int i;
4510
4511 /* Flush adapter cache */
4512 memset(&mbox->m_out, 0, sizeof(raw_mbox));
4513 raw_mbox[0] = FLUSH_ADAPTER;
4514
4515 free_irq(adapter->host->irq, adapter);
4516
4517 /* Issue a blocking (interrupts disabled) command to the card */
4518 issue_scb_block(adapter, raw_mbox);
4519
4520 /* Flush disks cache */
4521 memset(&mbox->m_out, 0, sizeof(raw_mbox));
4522 raw_mbox[0] = FLUSH_SYSTEM;
4523
4524 /* Issue a blocking (interrupts disabled) command to the card */
4525 issue_scb_block(adapter, raw_mbox);
4526
4527 if (atomic_read(&adapter->pend_cmds) > 0)
4528 dev_warn(&adapter->dev->dev, "pending commands!!\n");
4529
4530 /*
4531 * Have a delibrate delay to make sure all the caches are
4532 * actually flushed.
4533 */
4534 for (i = 0; i <= 10; i++)
4535 mdelay(1000);
4536 }
4537
4538 static void
megaraid_remove_one(struct pci_dev * pdev)4539 megaraid_remove_one(struct pci_dev *pdev)
4540 {
4541 struct Scsi_Host *host = pci_get_drvdata(pdev);
4542 adapter_t *adapter = (adapter_t *)host->hostdata;
4543 char buf[12] = { 0 };
4544
4545 scsi_remove_host(host);
4546
4547 __megaraid_shutdown(adapter);
4548
4549 /* Free our resources */
4550 if (adapter->flag & BOARD_MEMMAP) {
4551 iounmap((void *)adapter->base);
4552 release_mem_region(adapter->host->base, 128);
4553 } else
4554 release_region(adapter->base, 16);
4555
4556 mega_free_sgl(adapter);
4557
4558 sprintf(buf, "hba%d", adapter->host->host_no);
4559 remove_proc_subtree(buf, mega_proc_dir_entry);
4560
4561 dma_free_coherent(&adapter->dev->dev, MEGA_BUFFER_SIZE,
4562 adapter->mega_buffer, adapter->buf_dma_handle);
4563 kfree(adapter->scb_list);
4564 dma_free_coherent(&adapter->dev->dev, sizeof(mbox64_t),
4565 adapter->una_mbox64, adapter->una_mbox64_dma);
4566
4567 scsi_host_put(host);
4568 pci_disable_device(pdev);
4569
4570 hba_count--;
4571 }
4572
4573 static void
megaraid_shutdown(struct pci_dev * pdev)4574 megaraid_shutdown(struct pci_dev *pdev)
4575 {
4576 struct Scsi_Host *host = pci_get_drvdata(pdev);
4577 adapter_t *adapter = (adapter_t *)host->hostdata;
4578
4579 __megaraid_shutdown(adapter);
4580 }
4581
4582 static struct pci_device_id megaraid_pci_tbl[] = {
4583 {PCI_VENDOR_ID_AMI, PCI_DEVICE_ID_AMI_MEGARAID,
4584 PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
4585 {PCI_VENDOR_ID_AMI, PCI_DEVICE_ID_AMI_MEGARAID2,
4586 PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
4587 {PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_AMI_MEGARAID3,
4588 PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
4589 {0,}
4590 };
4591 MODULE_DEVICE_TABLE(pci, megaraid_pci_tbl);
4592
4593 static struct pci_driver megaraid_pci_driver = {
4594 .name = "megaraid_legacy",
4595 .id_table = megaraid_pci_tbl,
4596 .probe = megaraid_probe_one,
4597 .remove = megaraid_remove_one,
4598 .shutdown = megaraid_shutdown,
4599 };
4600
megaraid_init(void)4601 static int __init megaraid_init(void)
4602 {
4603 int error;
4604
4605 if ((max_cmd_per_lun <= 0) || (max_cmd_per_lun > MAX_CMD_PER_LUN))
4606 max_cmd_per_lun = MAX_CMD_PER_LUN;
4607 if (max_mbox_busy_wait > MBOX_BUSY_WAIT)
4608 max_mbox_busy_wait = MBOX_BUSY_WAIT;
4609
4610 #ifdef CONFIG_PROC_FS
4611 mega_proc_dir_entry = proc_mkdir("megaraid", NULL);
4612 if (!mega_proc_dir_entry) {
4613 printk(KERN_WARNING
4614 "megaraid: failed to create megaraid root\n");
4615 }
4616 #endif
4617 error = pci_register_driver(&megaraid_pci_driver);
4618 if (error) {
4619 #ifdef CONFIG_PROC_FS
4620 remove_proc_entry("megaraid", NULL);
4621 #endif
4622 return error;
4623 }
4624
4625 /*
4626 * Register the driver as a character device, for applications
4627 * to access it for ioctls.
4628 * First argument (major) to register_chrdev implies a dynamic
4629 * major number allocation.
4630 */
4631 major = register_chrdev(0, "megadev_legacy", &megadev_fops);
4632 if (major < 0) {
4633 printk(KERN_WARNING
4634 "megaraid: failed to register char device\n");
4635 }
4636
4637 return 0;
4638 }
4639
megaraid_exit(void)4640 static void __exit megaraid_exit(void)
4641 {
4642 /*
4643 * Unregister the character device interface to the driver.
4644 */
4645 unregister_chrdev(major, "megadev_legacy");
4646
4647 pci_unregister_driver(&megaraid_pci_driver);
4648
4649 #ifdef CONFIG_PROC_FS
4650 remove_proc_entry("megaraid", NULL);
4651 #endif
4652 }
4653
4654 module_init(megaraid_init);
4655 module_exit(megaraid_exit);
4656
4657 /* vi: set ts=8 sw=8 tw=78: */
4658