megaraid.c 116 KB
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/*
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 *
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 *			Linux MegaRAID device driver
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 *
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 * Copyright  2002  LSI Logic Corporation.
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 *
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 *	   This program is free software; you can redistribute it and/or
 *	   modify it under the terms of the GNU General Public License
 *	   as published by the Free Software Foundation; either version
 *	   2 of the License, or (at your option) any later version.
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 *
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 * Copyright (c) 2002  Red Hat, Inc. All rights reserved.
 *	  - fixes
 *	  - speed-ups (list handling fixes, issued_list, optimizations.)
 *	  - lots of cleanups.
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 *
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 * Copyright (c) 2003  Christoph Hellwig  <hch@lst.de>
 *	  - new-style, hotplug-aware pci probing and scsi registration
 *
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 * Version : v2.00.3 (Feb 19, 2003) - Atul Mukker <Atul.Mukker@lsil.com>
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 *
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 * Description: Linux device driver for LSI Logic MegaRAID controller
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 *
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 * Supported controllers: MegaRAID 418, 428, 438, 466, 762, 467, 471, 490, 493
 *					518, 520, 531, 532
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 *
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 * This driver is supported by LSI Logic, with assistance from Red Hat, Dell,
 * and others. Please send updates to the public mailing list
 * linux-megaraid-devel@dell.com, and subscribe to and read archives of this
 * list at http://lists.us.dell.com/.
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 *
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 * For history of changes, see ChangeLog.megaraid.
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 *
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 */
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#include <linux/mm.h>
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#include <linux/fs.h>
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#include <linux/blkdev.h>
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#include <asm/uaccess.h>
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#include <asm/io.h>
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#include <linux/delay.h>
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#include <linux/proc_fs.h>
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#include <linux/reboot.h>
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#include <linux/module.h>
#include <linux/list.h>
#include <linux/interrupt.h>
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#include <linux/pci.h>
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#include <scsi/scsicam.h>

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#include "scsi.h"
#include "hosts.h"

#include "megaraid.h"

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MODULE_AUTHOR ("LSI Logic Corporation");
MODULE_DESCRIPTION ("LSI Logic MegaRAID driver");
MODULE_LICENSE ("GPL");
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static unsigned int max_cmd_per_lun = DEF_CMD_PER_LUN;
MODULE_PARM(max_cmd_per_lun, "i");
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)");
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static unsigned short int max_sectors_per_io = MAX_SECTORS_PER_IO;
MODULE_PARM(max_sectors_per_io, "h");
MODULE_PARM_DESC(max_sectors_per_io, "Maximum number of sectors per I/O request (default=MAX_SECTORS_PER_IO=128)");
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static unsigned short int max_mbox_busy_wait = MBOX_BUSY_WAIT;
MODULE_PARM(max_mbox_busy_wait, "h");
MODULE_PARM_DESC(max_mbox_busy_wait, "Maximum wait for mailbox in microseconds if busy (default=MBOX_BUSY_WAIT=10)");
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#define RDINDOOR(adapter)		readl((adapter)->base + 0x20)
#define RDOUTDOOR(adapter)		readl((adapter)->base + 0x2C)
#define WRINDOOR(adapter,value)		writel(value, (adapter)->base + 0x20)
#define WROUTDOOR(adapter,value)	writel(value, (adapter)->base + 0x2C)
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/*
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 * Global variables
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 */

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static int hba_count;
static adapter_t *hba_soft_state[MAX_CONTROLLERS];
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static struct proc_dir_entry *mega_proc_dir_entry;
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/* For controller re-ordering */
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static struct mega_hbas mega_hbas[MAX_CONTROLLERS];
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/*
 * The File Operations structure for the serial/ioctl interface of the driver
 */
static struct file_operations megadev_fops = {
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	.owner		= THIS_MODULE,
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	.ioctl		= megadev_ioctl,
	.open		= megadev_open,
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};

/*
 * Array to structures for storing the information about the controllers. This
 * information is sent to the user level applications, when they do an ioctl
 * for this information.
 */
static struct mcontroller mcontroller[MAX_CONTROLLERS];

/* The current driver version */
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static u32 driver_ver = 0x02000000;
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/* major number used by the device for character interface */
static int major;

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#define IS_RAID_CH(hba, ch)	(((hba)->mega_ch_class >> (ch)) & 0x01)
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/*
 * Debug variable to print some diagnostic messages
 */
static int trace_level;
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/**
 * mega_setup_mailbox()
 * @adapter - pointer to our soft state
 *
 * Allocates a 8 byte aligned memory for the handshake mailbox.
 */
static int
mega_setup_mailbox(adapter_t *adapter)
{
	unsigned long	align;
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	adapter->una_mbox64 = pci_alloc_consistent(adapter->dev,
			sizeof(mbox64_t), &adapter->una_mbox64_dma);
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	if( !adapter->una_mbox64 ) return -1;
		
	adapter->mbox = &adapter->una_mbox64->mbox;
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	adapter->mbox = (mbox_t *)((((unsigned long) adapter->mbox) + 15) &
			(~0UL ^ 0xFUL));
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	adapter->mbox64 = (mbox64_t *)(((unsigned long)adapter->mbox) - 8);
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	align = ((void *)adapter->mbox) - ((void *)&adapter->una_mbox64->mbox);
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	adapter->mbox_dma = adapter->una_mbox64_dma + 8 + align;
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	/*
	 * Register the mailbox if the controller is an io-mapped controller
	 */
	if( adapter->flag & BOARD_IOMAP ) {
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		outb_p(adapter->mbox_dma & 0xFF,
				adapter->host->io_port + MBOX_PORT0);
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		outb_p((adapter->mbox_dma >> 8) & 0xFF,
				adapter->host->io_port + MBOX_PORT1);

		outb_p((adapter->mbox_dma >> 16) & 0xFF,
				adapter->host->io_port + MBOX_PORT2);

		outb_p((adapter->mbox_dma >> 24) & 0xFF,
				adapter->host->io_port + MBOX_PORT3);

		outb_p(ENABLE_MBOX_BYTE,
				adapter->host->io_port + ENABLE_MBOX_REGION);

		irq_ack(adapter);

		irq_enable(adapter);
	}

	return 0;
}


/*
 * mega_query_adapter()
 * @adapter - pointer to our soft state
 *
 * Issue the adapter inquiry commands to the controller and find out
 * information and parameter about the devices attached
 */
static int
mega_query_adapter(adapter_t *adapter)
{
	dma_addr_t	prod_info_dma_handle;
	mega_inquiry3	*inquiry3;
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	u8	raw_mbox[sizeof(struct mbox_out)];
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	mbox_t	*mbox;
	int	retval;

	/* Initialize adapter inquiry mailbox */

	mbox = (mbox_t *)raw_mbox;

	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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	memset(&mbox->m_out, 0, sizeof(raw_mbox));
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	/*
	 * Try to issue Inquiry3 command
	 * if not succeeded, then issue MEGA_MBOXCMD_ADAPTERINQ command and
	 * update enquiry3 structure
	 */
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	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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	inquiry3 = (mega_inquiry3 *)adapter->mega_buffer;

	raw_mbox[0] = FC_NEW_CONFIG;		/* i.e. mbox->cmd=0xA1 */
	raw_mbox[2] = NC_SUBOP_ENQUIRY3;	/* i.e. 0x0F */
	raw_mbox[3] = ENQ3_GET_SOLICITED_FULL;	/* i.e. 0x02 */

	/* Issue a blocking command to the card */
	if ((retval = issue_scb_block(adapter, raw_mbox))) {
		/* the adapter does not support 40ld */

		mraid_ext_inquiry	*ext_inq;
		mraid_inquiry		*inq;
		dma_addr_t		dma_handle;

		ext_inq = pci_alloc_consistent(adapter->dev,
				sizeof(mraid_ext_inquiry), &dma_handle);

		if( ext_inq == NULL ) return -1;

		inq = &ext_inq->raid_inq;

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		mbox->m_out.xferaddr = (u32)dma_handle;
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		/*issue old 0x04 command to adapter */
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		mbox->m_out.cmd = MEGA_MBOXCMD_ADPEXTINQ;
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		issue_scb_block(adapter, raw_mbox);

		/*
		 * update Enquiry3 and ProductInfo structures with
		 * mraid_inquiry structure
		 */
		mega_8_to_40ld(inq, inquiry3,
				(mega_product_info *)&adapter->product_info);

		pci_free_consistent(adapter->dev, sizeof(mraid_ext_inquiry),
				ext_inq, dma_handle);

	} else {		/*adapter supports 40ld */
		adapter->flag |= BOARD_40LD;

		/*
		 * get product_info, which is static information and will be
		 * unchanged
		 */
		prod_info_dma_handle = pci_map_single(adapter->dev, (void *)
				&adapter->product_info,
				sizeof(mega_product_info), PCI_DMA_FROMDEVICE);

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		mbox->m_out.xferaddr = prod_info_dma_handle;
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		raw_mbox[0] = FC_NEW_CONFIG;	/* i.e. mbox->cmd=0xA1 */
		raw_mbox[2] = NC_SUBOP_PRODUCT_INFO;	/* i.e. 0x0E */

		if ((retval = issue_scb_block(adapter, raw_mbox)))
			printk(KERN_WARNING
			"megaraid: Product_info cmd failed with error: %d\n",
				retval);

		pci_dma_sync_single(adapter->dev, prod_info_dma_handle,
				sizeof(mega_product_info),
				PCI_DMA_FROMDEVICE);

		pci_unmap_single(adapter->dev, prod_info_dma_handle,
				sizeof(mega_product_info), PCI_DMA_FROMDEVICE);
	}


	/*
	 * kernel scans the channels from 0 to <= max_channel
	 */
	adapter->host->max_channel =
		adapter->product_info.nchannels + NVIRT_CHAN -1;

	adapter->host->max_id = 16;	/* max targets per channel */

	adapter->host->max_lun = 7;	/* Upto 7 luns for non disk devices */

	adapter->host->cmd_per_lun = max_cmd_per_lun;

	adapter->numldrv = inquiry3->num_ldrv;

	adapter->max_cmds = adapter->product_info.max_commands;

	if(adapter->max_cmds > MAX_COMMANDS)
		adapter->max_cmds = MAX_COMMANDS;

	adapter->host->can_queue = adapter->max_cmds - 1;

	/*
	 * Get the maximum number of scatter-gather elements supported by this
	 * firmware
	 */
	mega_get_max_sgl(adapter);

	adapter->host->sg_tablesize = adapter->sglen;


	/* use HP firmware and bios version encoding */
	if (adapter->product_info.subsysvid == HP_SUBSYS_VID) {
		sprintf (adapter->fw_version, "%c%d%d.%d%d",
			 adapter->product_info.fw_version[2],
			 adapter->product_info.fw_version[1] >> 8,
			 adapter->product_info.fw_version[1] & 0x0f,
			 adapter->product_info.fw_version[0] >> 8,
			 adapter->product_info.fw_version[0] & 0x0f);
		sprintf (adapter->bios_version, "%c%d%d.%d%d",
			 adapter->product_info.bios_version[2],
			 adapter->product_info.bios_version[1] >> 8,
			 adapter->product_info.bios_version[1] & 0x0f,
			 adapter->product_info.bios_version[0] >> 8,
			 adapter->product_info.bios_version[0] & 0x0f);
	} else {
		memcpy(adapter->fw_version,
				(char *)adapter->product_info.fw_version, 4);
		adapter->fw_version[4] = 0;

		memcpy(adapter->bios_version,
				(char *)adapter->product_info.bios_version, 4);

		adapter->bios_version[4] = 0;
	}

	printk(KERN_NOTICE "megaraid: [%s:%s] detected %d logical drives.\n",
		adapter->fw_version, adapter->bios_version, adapter->numldrv);

	/*
	 * Do we support extended (>10 bytes) cdbs
	 */
	adapter->support_ext_cdb = mega_support_ext_cdb(adapter);
	if (adapter->support_ext_cdb)
		printk(KERN_NOTICE "megaraid: supports extended CDBs.\n");


	return 0;
}


/*
 * megaraid_queue()
 * @scmd - Issue this scsi command
 * @done - the callback hook into the scsi mid-layer
 *
 * The command queuing entry point for the mid-layer.
 */
static int
megaraid_queue(Scsi_Cmnd *scmd, void (*done)(Scsi_Cmnd *))
{
	adapter_t	*adapter;
	scb_t	*scb;
	int	busy=0;

	adapter = (adapter_t *)scmd->device->host->hostdata;

	scmd->scsi_done = done;


	/*
	 * Allocate and build a SCB request
	 * busy flag will be set if mega_build_cmd() command could not
	 * allocate scb. We will return non-zero status in that case.
	 * NOTE: scb can be null even though certain commands completed
	 * successfully, e.g., MODE_SENSE and TEST_UNIT_READY, we would
	 * return 0 in that case.
	 */

	scb = mega_build_cmd(adapter, scmd, &busy);

	if(scb) {
		scb->state |= SCB_PENDQ;
		list_add_tail(&scb->list, &adapter->pending_list);

		/*
		 * Check if the HBA is in quiescent state, e.g., during a
		 * delete logical drive opertion. If it is, don't run
		 * the pending_list.
		 */
		if(atomic_read(&adapter->quiescent) == 0) {
			mega_runpendq(adapter);
		}
		return 0;
	}

	return busy;
}


/**
 * mega_build_cmd()
 * @adapter - pointer to our soft state
 * @cmd - Prepare using this scsi command
 * @busy - busy flag if no resources
 *
 * Prepares a command and scatter gather list for the controller. This routine
 * also finds out if the commands is intended for a logical drive or a
 * physical device and prepares the controller command accordingly.
 *
 * We also re-order the logical drives and physical devices based on their
 * boot settings.
 */
static scb_t *
mega_build_cmd(adapter_t *adapter, Scsi_Cmnd *cmd, int *busy)
{
	mega_ext_passthru	*epthru;
	mega_passthru	*pthru;
	scb_t	*scb;
	mbox_t	*mbox;
	long	seg;
	char	islogical;
	int	max_ldrv_num;
	int	channel = 0;
	int	target = 0;
	int	ldrv_num = 0;   /* logical drive number */


	/*
	 * filter the internal and ioctl commands
	 */
	if((cmd->cmnd[0] == MEGA_INTERNAL_CMD)) {
		return cmd->buffer;
	}


	/*
	 * We know what channels our logical drives are on - mega_find_card()
	 */
	islogical = adapter->logdrv_chan[cmd->device->channel];

	/*
	 * The theory: If physical drive is chosen for boot, all the physical
	 * devices are exported before the logical drives, otherwise physical
	 * devices are pushed after logical drives, in which case - Kernel sees
	 * the physical devices on virtual channel which is obviously converted
	 * to actual channel on the HBA.
	 */
	if( adapter->boot_pdrv_enabled ) {
		if( islogical ) {
			/* logical channel */
			channel = cmd->device->channel -
				adapter->product_info.nchannels;
		}
		else {
			/* this is physical channel */
			channel = cmd->device->channel; 
			target = cmd->device->id;

			/*
			 * boot from a physical disk, that disk needs to be
			 * exposed first IF both the channels are SCSI, then
			 * booting from the second channel is not allowed.
			 */
			if( target == 0 ) {
				target = adapter->boot_pdrv_tgt;
			}
			else if( target == adapter->boot_pdrv_tgt ) {
				target = 0;
			}
		}
	}
	else {
		if( islogical ) {
			/* this is the logical channel */
			channel = cmd->device->channel;	
		}
		else {
			/* physical channel */
			channel = cmd->device->channel - NVIRT_CHAN;	
			target = cmd->device->id;
		}
	}


	if(islogical) {

		/* have just LUN 0 for each target on virtual channels */
		if (cmd->device->lun) {
			cmd->result = (DID_BAD_TARGET << 16);
			cmd->scsi_done(cmd);
			return NULL;
		}

		ldrv_num = mega_get_ldrv_num(adapter, cmd, channel);


		max_ldrv_num = (adapter->flag & BOARD_40LD) ?
			MAX_LOGICAL_DRIVES_40LD : MAX_LOGICAL_DRIVES_8LD;

		/*
		 * max_ldrv_num increases by 0x80 if some logical drive was
		 * deleted.
		 */
		if(adapter->read_ldidmap)
			max_ldrv_num += 0x80;

		if(ldrv_num > max_ldrv_num ) {
			cmd->result = (DID_BAD_TARGET << 16);
			cmd->scsi_done(cmd);
			return NULL;
		}

	}
	else {
		if( cmd->device->lun > 7) {
			/*
			 * Do not support lun >7 for physically accessed
			 * devices
			 */
			cmd->result = (DID_BAD_TARGET << 16);
			cmd->scsi_done(cmd);
			return NULL;
		}
	}

	/*
	 *
	 * Logical drive commands
	 *
	 */
	if(islogical) {
		switch (cmd->cmnd[0]) {
		case TEST_UNIT_READY:
			memset(cmd->request_buffer, 0, cmd->request_bufflen);

#if MEGA_HAVE_CLUSTERING
			/*
			 * Do we support clustering and is the support enabled
			 * If no, return success always
			 */
			if( !adapter->has_cluster ) {
				cmd->result = (DID_OK << 16);
				cmd->scsi_done(cmd);
				return NULL;
			}

			if(!(scb = mega_allocate_scb(adapter, cmd))) {

				cmd->result = (DID_ERROR << 16);
				cmd->scsi_done(cmd);
				*busy = 1;

				return NULL;
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			}
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			scb->raw_mbox[0] = MEGA_CLUSTER_CMD;
			scb->raw_mbox[2] = MEGA_RESERVATION_STATUS;
			scb->raw_mbox[3] = ldrv_num;

			scb->dma_direction = PCI_DMA_NONE;

			return scb;
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#else
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			cmd->result = (DID_OK << 16);
			cmd->scsi_done(cmd);
			return NULL;
#endif

		case MODE_SENSE:
			memset(cmd->request_buffer, 0, cmd->cmnd[4]);
			cmd->result = (DID_OK << 16);
			cmd->scsi_done(cmd);
			return NULL;

		case READ_CAPACITY:
		case INQUIRY:

			if(!(adapter->flag & (1L << cmd->device->channel))) {

				printk(KERN_NOTICE
					"scsi%d: scanning scsi channel %d ",
						adapter->host->host_no,
						cmd->device->channel);
				printk("for logical drives.\n");

				adapter->flag |= (1L << cmd->device->channel);
			}

			/* Allocate a SCB and initialize passthru */
			if(!(scb = mega_allocate_scb(adapter, cmd))) {

				cmd->result = (DID_ERROR << 16);
				cmd->scsi_done(cmd);
				*busy = 1;

				return NULL;
			}
			pthru = scb->pthru;

			mbox = (mbox_t *)scb->raw_mbox;
			memset(mbox, 0, sizeof(scb->raw_mbox));
			memset(pthru, 0, sizeof(mega_passthru));

			pthru->timeout = 0;
			pthru->ars = 1;
			pthru->reqsenselen = 14;
			pthru->islogical = 1;
			pthru->logdrv = ldrv_num;
			pthru->cdblen = cmd->cmd_len;
			memcpy(pthru->cdb, cmd->cmnd, cmd->cmd_len);

			if( adapter->has_64bit_addr ) {
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				mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU64;
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			}
			else {
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				mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU;
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			}

			scb->dma_direction = PCI_DMA_FROMDEVICE;

			pthru->numsgelements = mega_build_sglist(adapter, scb,
				&pthru->dataxferaddr, &pthru->dataxferlen);

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			mbox->m_out.xferaddr = scb->pthru_dma_addr;
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			return scb;

		case READ_6:
		case WRITE_6:
		case READ_10:
		case WRITE_10:
		case READ_12:
		case WRITE_12:

			/* Allocate a SCB and initialize mailbox */
			if(!(scb = mega_allocate_scb(adapter, cmd))) {

				cmd->result = (DID_ERROR << 16);
				cmd->scsi_done(cmd);
				*busy = 1;

				return NULL;
			}
			mbox = (mbox_t *)scb->raw_mbox;

			memset(mbox, 0, sizeof(scb->raw_mbox));
638
			mbox->m_out.logdrv = ldrv_num;
639 640 641 642 643 644

			/*
			 * A little hack: 2nd bit is zero for all scsi read
			 * commands and is set for all scsi write commands
			 */
			if( adapter->has_64bit_addr ) {
645
				mbox->m_out.cmd = (*cmd->cmnd & 0x02) ?
646 647 648 649
					MEGA_MBOXCMD_LWRITE64:
					MEGA_MBOXCMD_LREAD64 ;
			}
			else {
650
				mbox->m_out.cmd = (*cmd->cmnd & 0x02) ?
651 652 653 654 655 656 657 658
					MEGA_MBOXCMD_LWRITE:
					MEGA_MBOXCMD_LREAD ;
			}

			/*
			 * 6-byte READ(0x08) or WRITE(0x0A) cdb
			 */
			if( cmd->cmd_len == 6 ) {
659 660
				mbox->m_out.numsectors = (u32) cmd->cmnd[4];
				mbox->m_out.lba =
661 662 663 664
					((u32)cmd->cmnd[1] << 16) |
					((u32)cmd->cmnd[2] << 8) |
					(u32)cmd->cmnd[3];

665
				mbox->m_out.lba &= 0x1FFFFF;
666 667 668 669 670 671 672 673 674 675

#if MEGA_HAVE_STATS
				/*
				 * Take modulo 0x80, since the logical drive
				 * number increases by 0x80 when a logical
				 * drive was deleted
				 */
				if (*cmd->cmnd == READ_6) {
					adapter->nreads[ldrv_num%0x80]++;
					adapter->nreadblocks[ldrv_num%0x80] +=
676
						mbox->m_out.numsectors;
677 678 679
				} else {
					adapter->nwrites[ldrv_num%0x80]++;
					adapter->nwriteblocks[ldrv_num%0x80] +=
680
						mbox->m_out.numsectors;
681 682 683 684 685 686 687 688
				}
#endif
			}

			/*
			 * 10-byte READ(0x28) or WRITE(0x2A) cdb
			 */
			if( cmd->cmd_len == 10 ) {
689
				mbox->m_out.numsectors =
690 691
					(u32)cmd->cmnd[8] |
					((u32)cmd->cmnd[7] << 8);
692
				mbox->m_out.lba =
693 694 695 696 697 698 699 700 701
					((u32)cmd->cmnd[2] << 24) |
					((u32)cmd->cmnd[3] << 16) |
					((u32)cmd->cmnd[4] << 8) |
					(u32)cmd->cmnd[5];

#if MEGA_HAVE_STATS
				if (*cmd->cmnd == READ_10) {
					adapter->nreads[ldrv_num%0x80]++;
					adapter->nreadblocks[ldrv_num%0x80] +=
702
						mbox->m_out.numsectors;
703 704 705
				} else {
					adapter->nwrites[ldrv_num%0x80]++;
					adapter->nwriteblocks[ldrv_num%0x80] +=
706
						mbox->m_out.numsectors;
707 708 709 710 711 712 713 714
				}
#endif
			}

			/*
			 * 12-byte READ(0xA8) or WRITE(0xAA) cdb
			 */
			if( cmd->cmd_len == 12 ) {
715
				mbox->m_out.lba =
716 717 718 719 720
					((u32)cmd->cmnd[2] << 24) |
					((u32)cmd->cmnd[3] << 16) |
					((u32)cmd->cmnd[4] << 8) |
					(u32)cmd->cmnd[5];

721
				mbox->m_out.numsectors =
722 723 724 725 726 727 728 729 730
					((u32)cmd->cmnd[6] << 24) |
					((u32)cmd->cmnd[7] << 16) |
					((u32)cmd->cmnd[8] << 8) |
					(u32)cmd->cmnd[9];

#if MEGA_HAVE_STATS
				if (*cmd->cmnd == READ_12) {
					adapter->nreads[ldrv_num%0x80]++;
					adapter->nreadblocks[ldrv_num%0x80] +=
731
						mbox->m_out.numsectors;
732 733 734
				} else {
					adapter->nwrites[ldrv_num%0x80]++;
					adapter->nwriteblocks[ldrv_num%0x80] +=
735
						mbox->m_out.numsectors;
736 737 738 739 740 741 742 743 744 745 746 747 748 749 750
				}
#endif
			}

			/*
			 * If it is a read command
			 */
			if( (*cmd->cmnd & 0x0F) == 0x08 ) {
				scb->dma_direction = PCI_DMA_FROMDEVICE;
			}
			else {
				scb->dma_direction = PCI_DMA_TODEVICE;
			}

			/* Calculate Scatter-Gather info */
751 752
			mbox->m_out.numsgelements = mega_build_sglist(adapter, scb,
					(u32 *)&mbox->m_out.xferaddr, (u32 *)&seg);
753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819

			return scb;

#if MEGA_HAVE_CLUSTERING
		case RESERVE:	/* Fall through */
		case RELEASE:

			/*
			 * Do we support clustering and is the support enabled
			 */
			if( ! adapter->has_cluster ) {

				cmd->result = (DID_BAD_TARGET << 16);
				cmd->scsi_done(cmd);
				return NULL;
			}

			/* Allocate a SCB and initialize mailbox */
			if(!(scb = mega_allocate_scb(adapter, cmd))) {

				cmd->result = (DID_ERROR << 16);
				cmd->scsi_done(cmd);
				*busy = 1;

				return NULL;
			}

			scb->raw_mbox[0] = MEGA_CLUSTER_CMD;
			scb->raw_mbox[2] = ( *cmd->cmnd == RESERVE ) ?
				MEGA_RESERVE_LD : MEGA_RELEASE_LD;

			scb->raw_mbox[3] = ldrv_num;

			scb->dma_direction = PCI_DMA_NONE;

			return scb;
#endif

		default:
			cmd->result = (DID_BAD_TARGET << 16);
			cmd->scsi_done(cmd);
			return NULL;
		}
	}

	/*
	 * Passthru drive commands
	 */
	else {
		/* Allocate a SCB and initialize passthru */
		if(!(scb = mega_allocate_scb(adapter, cmd))) {

			cmd->result = (DID_ERROR << 16);
			cmd->scsi_done(cmd);
			*busy = 1;

			return NULL;
		}

		mbox = (mbox_t *)scb->raw_mbox;
		memset(mbox, 0, sizeof(scb->raw_mbox));

		if( adapter->support_ext_cdb ) {

			epthru = mega_prepare_extpassthru(adapter, scb, cmd,
					channel, target);

820
			mbox->m_out.cmd = MEGA_MBOXCMD_EXTPTHRU;
821

822
			mbox->m_out.xferaddr = scb->epthru_dma_addr;
823 824 825 826 827 828 829 830 831

		}
		else {

			pthru = mega_prepare_passthru(adapter, scb, cmd,
					channel, target);

			/* Initialize mailbox */
			if( adapter->has_64bit_addr ) {
832
				mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU64;
833 834
			}
			else {
835
				mbox->m_out.cmd = MEGA_MBOXCMD_PASSTHRU;
836 837
			}

838
			mbox->m_out.xferaddr = scb->pthru_dma_addr;
839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055

		}
		return scb;
	}
	return NULL;
}


/**
 * mega_prepare_passthru()
 * @adapter - pointer to our soft state
 * @scb - our scsi control block
 * @cmd - scsi command from the mid-layer
 * @channel - actual channel on the controller
 * @target - actual id on the controller.
 *
 * prepare a command for the scsi physical devices.
 */
static mega_passthru *
mega_prepare_passthru(adapter_t *adapter, scb_t *scb, Scsi_Cmnd *cmd,
		int channel, int target)
{
	mega_passthru *pthru;

	pthru = scb->pthru;
	memset(pthru, 0, sizeof (mega_passthru));

	/* 0=6sec/1=60sec/2=10min/3=3hrs */
	pthru->timeout = 2;

	pthru->ars = 1;
	pthru->reqsenselen = 14;
	pthru->islogical = 0;

	pthru->channel = (adapter->flag & BOARD_40LD) ? 0 : channel;

	pthru->target = (adapter->flag & BOARD_40LD) ?
		(channel << 4) | target : target;

	pthru->cdblen = cmd->cmd_len;
	pthru->logdrv = cmd->device->lun;

	memcpy(pthru->cdb, cmd->cmnd, cmd->cmd_len);

	/* Not sure about the direction */
	scb->dma_direction = PCI_DMA_BIDIRECTIONAL;

	/* Special Code for Handling READ_CAPA/ INQ using bounce buffers */
	switch (cmd->cmnd[0]) {
	case INQUIRY:
	case READ_CAPACITY:
		if(!(adapter->flag & (1L << cmd->device->channel))) {

			printk(KERN_NOTICE
				"scsi%d: scanning scsi channel %d [P%d] ",
					adapter->host->host_no,
					cmd->device->channel, channel);
			printk("for physical devices.\n");

			adapter->flag |= (1L << cmd->device->channel);
		}
		/* Fall through */
	default:
		pthru->numsgelements = mega_build_sglist(adapter, scb,
				&pthru->dataxferaddr, &pthru->dataxferlen);
		break;
	}
	return pthru;
}


/**
 * mega_prepare_extpassthru()
 * @adapter - pointer to our soft state
 * @scb - our scsi control block
 * @cmd - scsi command from the mid-layer
 * @channel - actual channel on the controller
 * @target - actual id on the controller.
 *
 * prepare a command for the scsi physical devices. This rountine prepares
 * commands for devices which can take extended CDBs (>10 bytes)
 */
static mega_ext_passthru *
mega_prepare_extpassthru(adapter_t *adapter, scb_t *scb, Scsi_Cmnd *cmd,
		int channel, int target)
{
	mega_ext_passthru	*epthru;

	epthru = scb->epthru;
	memset(epthru, 0, sizeof(mega_ext_passthru));

	/* 0=6sec/1=60sec/2=10min/3=3hrs */
	epthru->timeout = 2;

	epthru->ars = 1;
	epthru->reqsenselen = 14;
	epthru->islogical = 0;

	epthru->channel = (adapter->flag & BOARD_40LD) ? 0 : channel;
	epthru->target = (adapter->flag & BOARD_40LD) ?
		(channel << 4) | target : target;

	epthru->cdblen = cmd->cmd_len;
	epthru->logdrv = cmd->device->lun;

	memcpy(epthru->cdb, cmd->cmnd, cmd->cmd_len);

	/* Not sure about the direction */
	scb->dma_direction = PCI_DMA_BIDIRECTIONAL;

	switch(cmd->cmnd[0]) {
	case INQUIRY:
	case READ_CAPACITY:
		if(!(adapter->flag & (1L << cmd->device->channel))) {

			printk(KERN_NOTICE
				"scsi%d: scanning scsi channel %d [P%d] ",
					adapter->host->host_no,
					cmd->device->channel, channel);
			printk("for physical devices.\n");

			adapter->flag |= (1L << cmd->device->channel);
		}
		/* Fall through */
	default:
		epthru->numsgelements = mega_build_sglist(adapter, scb,
				&epthru->dataxferaddr, &epthru->dataxferlen);
		break;
	}

	return epthru;
}


/**
 * mega_allocate_scb()
 * @adapter - pointer to our soft state
 * @cmd - scsi command from the mid-layer
 *
 * Allocate a SCB structure. This is the central structure for controller
 * commands.
 */
static inline scb_t *
mega_allocate_scb(adapter_t *adapter, Scsi_Cmnd *cmd)
{
	struct list_head *head = &adapter->free_list;
	scb_t	*scb;

	/* Unlink command from Free List */
	if( !list_empty(head) ) {

		scb = list_entry(head->next, scb_t, list);

		list_del_init(head->next);

		scb->state = SCB_ACTIVE;
		scb->cmd = cmd;
		scb->dma_type = MEGA_DMA_TYPE_NONE;

		return scb;
	}

	return NULL;
}


/**
 * mega_runpendq()
 * @adapter - pointer to our soft state
 *
 * Runs through the list of pending requests.
 */
static inline void
mega_runpendq(adapter_t *adapter)
{
	if(!list_empty(&adapter->pending_list))
		__mega_runpendq(adapter);
}

static void
__mega_runpendq(adapter_t *adapter)
{
	scb_t *scb;
	struct list_head *pos, *next;

	/* Issue any pending commands to the card */
	list_for_each_safe(pos, next, &adapter->pending_list) {

		scb = list_entry(pos, scb_t, list);

		if( !(scb->state & SCB_ISSUED) ) {

			if( issue_scb(adapter, scb) != 0 )
				return;
		}
	}

	return;
}


/**
 * issue_scb()
 * @adapter - pointer to our soft state
 * @scb - scsi control block
 *
 * Post a command to the card if the mailbox is available, otherwise return
 * busy. We also take the scb from the pending list if the mailbox is
 * available.
 */
static inline int
issue_scb(adapter_t *adapter, scb_t *scb)
{
	volatile mbox64_t	*mbox64 = adapter->mbox64;
	volatile mbox_t		*mbox = adapter->mbox;
	unsigned int	i = 0;

1056
	if(unlikely(mbox->m_in.busy)) {
1057 1058 1059
		do {
			udelay(1);
			i++;
1060
		} while( mbox->m_in.busy && (i < max_mbox_busy_wait) );
1061

1062
		if(mbox->m_in.busy) return -1;
1063 1064 1065
	}

	/* Copy mailbox data into host structure */
1066 1067
	memcpy((char *)&mbox->m_out, (char *)scb->raw_mbox, 
			sizeof(struct mbox_out));
1068

1069 1070
	mbox->m_out.cmdid = scb->idx;	/* Set cmdid */
	mbox->m_in.busy = 1;		/* Set busy */
1071 1072 1073 1074 1075 1076 1077


	/*
	 * Increment the pending queue counter
	 */
	atomic_inc(&adapter->pend_cmds);

1078
	switch (mbox->m_out.cmd) {
1079 1080 1081 1082
	case MEGA_MBOXCMD_LREAD64:
	case MEGA_MBOXCMD_LWRITE64:
	case MEGA_MBOXCMD_PASSTHRU64:
	case MEGA_MBOXCMD_EXTPTHRU:
1083
		mbox64->xfer_segment_lo = mbox->m_out.xferaddr;
1084
		mbox64->xfer_segment_hi = 0;
1085
		mbox->m_out.xferaddr = 0xFFFFFFFF;
1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097
		break;
	default:
		mbox64->xfer_segment_lo = 0;
		mbox64->xfer_segment_hi = 0;
	}

	/*
	 * post the command
	 */
	scb->state |= SCB_ISSUED;

	if( likely(adapter->flag & BOARD_MEMMAP) ) {
1098 1099
		mbox->m_in.poll = 0;
		mbox->m_in.ack = 0;
1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129
		WRINDOOR(adapter, adapter->mbox_dma | 0x1);
	}
	else {
		irq_enable(adapter);
		issue_command(adapter);
	}

	return 0;
}


/**
 * issue_scb_block()
 * @adapter - pointer to our soft state
 * @raw_mbox - the mailbox
 *
 * Issue a scb in synchronous and non-interrupt mode
 */
static int
issue_scb_block(adapter_t *adapter, u_char *raw_mbox)
{
	volatile mbox64_t *mbox64 = adapter->mbox64;
	volatile mbox_t *mbox = adapter->mbox;
	u8	byte;

	/* Wait until mailbox is free */
	if(mega_busywait_mbox (adapter))
		goto bug_blocked_mailbox;

	/* Copy mailbox data into host structure */
1130 1131 1132
	memcpy((char *) mbox, raw_mbox, sizeof(struct mbox_out));
	mbox->m_out.cmdid = 0xFE;
	mbox->m_in.busy = 1;
1133 1134 1135 1136 1137 1138

	switch (raw_mbox[0]) {
	case MEGA_MBOXCMD_LREAD64:
	case MEGA_MBOXCMD_LWRITE64:
	case MEGA_MBOXCMD_PASSTHRU64:
	case MEGA_MBOXCMD_EXTPTHRU:
1139
		mbox64->xfer_segment_lo = mbox->m_out.xferaddr;
1140
		mbox64->xfer_segment_hi = 0;
1141
		mbox->m_out.xferaddr = 0xFFFFFFFF;
1142 1143 1144 1145 1146 1147 1148
		break;
	default:
		mbox64->xfer_segment_lo = 0;
		mbox64->xfer_segment_hi = 0;
	}

	if( likely(adapter->flag & BOARD_MEMMAP) ) {
1149 1150 1151 1152
		mbox->m_in.poll = 0;
		mbox->m_in.ack = 0;
		mbox->m_in.numstatus = 0xFF;
		mbox->m_in.status = 0xFF;
1153 1154
		WRINDOOR(adapter, adapter->mbox_dma | 0x1);

1155
		while((volatile u8)mbox->m_in.numstatus == 0xFF)
1156 1157
			cpu_relax();

1158
		mbox->m_in.numstatus = 0xFF;
1159

1160
		while( (volatile u8)mbox->m_in.poll != 0x77 )
1161 1162
			cpu_relax();

1163 1164
		mbox->m_in.poll = 0;
		mbox->m_in.ack = 0x77;
1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182

		WRINDOOR(adapter, adapter->mbox_dma | 0x2);

		while(RDINDOOR(adapter) & 0x2)
			cpu_relax();
	}
	else {
		irq_disable(adapter);
		issue_command(adapter);

		while (!((byte = irq_state(adapter)) & INTR_VALID))
			cpu_relax();

		set_irq_state(adapter, byte);
		irq_enable(adapter);
		irq_ack(adapter);
	}

1183
	return mbox->m_in.status;
1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201

bug_blocked_mailbox:
	printk(KERN_WARNING "megaraid: Blocked mailbox......!!\n");
	udelay (1000);
	return -1;
}


/**
 * megaraid_isr_iomapped()
 * @irq - irq
 * @devp - pointer to our soft state
 * @regs - unused
 *
 * Interrupt service routine for io-mapped controllers.
 * Find out if our device is interrupting. If yes, acknowledge the interrupt
 * and service the completed commands.
 */
1202
static irqreturn_t
1203 1204 1205 1206 1207 1208 1209 1210
megaraid_isr_iomapped(int irq, void *devp, struct pt_regs *regs)
{
	adapter_t	*adapter = devp;
	unsigned long	flags;
	u8	status;
	u8	nstatus;
	u8	completed[MAX_FIRMWARE_STATUS];
	u8	byte;
1211
	int	handled = 0;
1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225


	/*
	 * loop till F/W has more commands for us to complete.
	 */
	spin_lock_irqsave(&adapter->lock, flags);

	do {
		/* Check if a valid interrupt is pending */
		byte = irq_state(adapter);
		if( (byte & VALID_INTR_BYTE) == 0 ) {
			/*
			 * No more pending commands
			 */
1226
			goto out_unlock;
1227 1228 1229
		}
		set_irq_state(adapter, byte);

1230
		while((nstatus = (volatile u8)adapter->mbox->m_in.numstatus)
1231 1232
				== 0xFF)
			cpu_relax();
1233
		adapter->mbox->m_in.numstatus = 0xFF;
1234

1235
		status = adapter->mbox->m_in.status;
1236 1237 1238 1239 1240 1241

		/*
		 * decrement the pending queue counter
		 */
		atomic_sub(nstatus, &adapter->pend_cmds);

1242 1243
		memcpy(completed, (void *)adapter->mbox->m_in.completed, 
				nstatus);
1244 1245 1246 1247 1248 1249 1250 1251

		/* Acknowledge interrupt */
		irq_ack(adapter);

		mega_cmd_done(adapter, completed, nstatus, status);

		mega_rundoneq(adapter);

1252 1253
		handled = 1;

1254 1255 1256 1257 1258 1259 1260
		/* Loop through any pending requests */
		if(atomic_read(&adapter->quiescent) == 0) {
			mega_runpendq(adapter);
		}

	} while(1);

1261 1262
 out_unlock:

1263 1264
	spin_unlock_irqrestore(&adapter->lock, flags);

1265
	return IRQ_RETVAL(handled);
1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278
}


/**
 * megaraid_isr_memmapped()
 * @irq - irq
 * @devp - pointer to our soft state
 * @regs - unused
 *
 * Interrupt service routine for memory-mapped controllers.
 * Find out if our device is interrupting. If yes, acknowledge the interrupt
 * and service the completed commands.
 */
1279
static irqreturn_t
1280 1281 1282 1283 1284 1285 1286 1287
megaraid_isr_memmapped(int irq, void *devp, struct pt_regs *regs)
{
	adapter_t	*adapter = devp;
	unsigned long	flags;
	u8	status;
	u32	dword = 0;
	u8	nstatus;
	u8	completed[MAX_FIRMWARE_STATUS];
1288
	int	handled = 0;
1289 1290 1291 1292 1293 1294 1295 1296 1297 1298 1299 1300 1301 1302


	/*
	 * loop till F/W has more commands for us to complete.
	 */
	spin_lock_irqsave(&adapter->lock, flags);

	do {
		/* Check if a valid interrupt is pending */
		dword = RDOUTDOOR(adapter);
		if(dword != 0x10001234) {
			/*
			 * No more pending commands
			 */
1303
			goto out_unlock;
1304 1305 1306
		}
		WROUTDOOR(adapter, 0x10001234);

1307
		while((nstatus = (volatile u8)adapter->mbox->m_in.numstatus)
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				== 0xFF) {
			cpu_relax();
		}
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		adapter->mbox->m_in.numstatus = 0xFF;
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		status = adapter->mbox->m_in.status;
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		/*
		 * decrement the pending queue counter
		 */
		atomic_sub(nstatus, &adapter->pend_cmds);

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		memcpy(completed, (void *)adapter->mbox->m_in.completed, 
				nstatus);
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		/* Acknowledge interrupt */
		WRINDOOR(adapter, 0x2);

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		handled = 1;

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		while( RDINDOOR(adapter) & 0x02 ) cpu_relax();

		mega_cmd_done(adapter, completed, nstatus, status);

		mega_rundoneq(adapter);

		/* Loop through any pending requests */
		if(atomic_read(&adapter->quiescent) == 0) {
			mega_runpendq(adapter);
		}

	} while(1);

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 out_unlock:

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	spin_unlock_irqrestore(&adapter->lock, flags);

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	return IRQ_RETVAL(handled);
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}
/**
 * mega_cmd_done()
 * @adapter - pointer to our soft state
 * @completed - array of ids of completed commands
 * @nstatus - number of completed commands
 * @status - status of the last command completed
 *
 * Complete the comamnds and call the scsi mid-layer callback hooks.
 */
static inline void
mega_cmd_done(adapter_t *adapter, u8 completed[], int nstatus, int status)
{
	mega_ext_passthru	*epthru = NULL;
	struct scatterlist	*sgl;
	Scsi_Cmnd	*cmd = NULL;
	mega_passthru	*pthru = NULL;
	mbox_t	*mbox = NULL;
	u8	c;
	scb_t	*scb;
	int	islogical;
	int	cmdid;
	int	i;

	/*
	 * for all the commands completed, call the mid-layer callback routine
	 * and free the scb.
	 */
	for( i = 0; i < nstatus; i++ ) {

		cmdid = completed[i];

		if( cmdid == CMDID_INT_CMDS ) { /* internal command */
			scb = &adapter->int_scb;
			cmd = scb->cmd;
			mbox = (mbox_t *)scb->raw_mbox;

			/*
			 * Internal command interface do not fire the extended
			 * passthru or 64-bit passthru
			 */
			pthru = scb->pthru;

		}
		else {
			scb = &adapter->scb_list[cmdid];

			/*
			 * Make sure f/w has completed a valid command
			 */
			if( !(scb->state & SCB_ISSUED) || scb->cmd == NULL ) {
				printk(KERN_CRIT
					"megaraid: invalid command ");
				printk("Id %d, scb->state:%x, scsi cmd:%p\n",
					cmdid, scb->state, scb->cmd);

				continue;
			}

			/*
			 * Was a abort issued for this command
			 */
			if( scb->state & SCB_ABORT ) {

				printk(KERN_WARNING
				"megaraid: aborted cmd %lx[%x] complete.\n",
					scb->cmd->serial_number, scb->idx);

				scb->cmd->result = (DID_ABORT << 16);

				list_add_tail(SCSI_LIST(scb->cmd),
						&adapter->completed_list);

				mega_free_scb(adapter, scb);

				continue;
			}

			/*
			 * Was a reset issued for this command
			 */
			if( scb->state & SCB_RESET ) {

				printk(KERN_WARNING
				"megaraid: reset cmd %lx[%x] complete.\n",
					scb->cmd->serial_number, scb->idx);

				scb->cmd->result = (DID_RESET << 16);

				list_add_tail(SCSI_LIST(scb->cmd),
						&adapter->completed_list);

				mega_free_scb (adapter, scb);

				continue;
			}

			cmd = scb->cmd;
			pthru = scb->pthru;
			epthru = scb->epthru;
			mbox = (mbox_t *)scb->raw_mbox;

#if MEGA_HAVE_STATS
			{

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			int	logdrv = mbox->m_out.logdrv;
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			islogical = adapter->logdrv_chan[cmd->channel];
			/*
			 * Maintain an error counter for the logical drive.
			 * Some application like SNMP agent need such
			 * statistics
			 */
			if( status && islogical && (cmd->cmnd[0] == READ_6 ||
						cmd->cmnd[0] == READ_10 ||
						cmd->cmnd[0] == READ_12)) {
				/*
				 * Logical drive number increases by 0x80 when
				 * a logical drive is deleted
				 */
				adapter->rd_errors[logdrv%0x80]++;
			}

			if( status && islogical && (cmd->cmnd[0] == WRITE_6 ||
						cmd->cmnd[0] == WRITE_10 ||
						cmd->cmnd[0] == WRITE_12)) {
				/*
				 * Logical drive number increases by 0x80 when
				 * a logical drive is deleted
				 */
				adapter->wr_errors[logdrv%0x80]++;
			}

			}
#endif
		}

		/*
		 * Do not return the presence of hard disk on the channel so,
		 * inquiry sent, and returned data==hard disk or removable
		 * hard disk and not logical, request should return failure! -
		 * PJ
		 */
		islogical = adapter->logdrv_chan[cmd->device->channel];
		if( cmd->cmnd[0] == INQUIRY && !islogical ) {

			if( cmd->use_sg ) {
				sgl = (struct scatterlist *)
					cmd->request_buffer;

				if( sgl->page ) {
					c = *(unsigned char *)
					page_address((&sgl[0])->page) +
					(&sgl[0])->offset; 
				}
				else {
					printk(KERN_WARNING
						"megaraid: invalid sg.\n");
					c = 0;
				}
			}
			else {
				c = *(u8 *)cmd->request_buffer;
			}

			if(IS_RAID_CH(adapter, cmd->device->channel) &&
					((c & 0x1F ) == TYPE_DISK)) {
				status = 0xF0;
			}
		}

		/* clear result; otherwise, success returns corrupt value */
		cmd->result = 0;

		/* Convert MegaRAID status to Linux error code */
		switch (status) {
		case 0x00:	/* SUCCESS , i.e. SCSI_STATUS_GOOD */
			cmd->result |= (DID_OK << 16);
			break;

		case 0x02:	/* ERROR_ABORTED, i.e.
				   SCSI_STATUS_CHECK_CONDITION */
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			/* set sense_buffer and result fields */
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			if( mbox->m_out.cmd == MEGA_MBOXCMD_PASSTHRU ||
				mbox->m_out.cmd == MEGA_MBOXCMD_PASSTHRU64 ) {
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				memcpy(cmd->sense_buffer, pthru->reqsensearea,
						14);

				cmd->result = (DRIVER_SENSE << 24) |
					(DID_OK << 16) |
					(CHECK_CONDITION << 1);
			}
			else {
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				if (mbox->m_out.cmd == MEGA_MBOXCMD_EXTPTHRU) {
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					memcpy(cmd->sense_buffer,
						epthru->reqsensearea, 14);

					cmd->result = (DRIVER_SENSE << 24) |
						(DID_OK << 16) |
						(CHECK_CONDITION << 1);
				} else {
					cmd->sense_buffer[0] = 0x70;
					cmd->sense_buffer[2] = ABORTED_COMMAND;
					cmd->result |= (CHECK_CONDITION << 1);
				}
			}
			break;

		case 0x08:	/* ERR_DEST_DRIVE_FAILED, i.e.
				   SCSI_STATUS_BUSY */
			cmd->result |= (DID_BUS_BUSY << 16) | status;
			break;

		default:
#if MEGA_HAVE_CLUSTERING
			/*
			 * If TEST_UNIT_READY fails, we know
			 * MEGA_RESERVATION_STATUS failed
			 */
			if( cmd->cmnd[0] == TEST_UNIT_READY ) {
				cmd->result |= (DID_ERROR << 16) |
					(RESERVATION_CONFLICT << 1);
			}
			else
			/*
			 * Error code returned is 1 if Reserve or Release
			 * failed or the input parameter is invalid
			 */
			if( status == 1 &&
				(cmd->cmnd[0] == RESERVE ||
					 cmd->cmnd[0] == RELEASE) ) {

				cmd->result |= (DID_ERROR << 16) |
					(RESERVATION_CONFLICT << 1);
			}
			else
#endif
				cmd->result |= (DID_BAD_TARGET << 16)|status;
		}

		/*
		 * Only free SCBs for the commands coming down from the
		 * mid-layer, not for which were issued internally
		 *
		 * For internal command, restore the status returned by the
		 * firmware so that user can interpret it.
		 */
		if( cmdid == CMDID_INT_CMDS ) { /* internal command */
			cmd->result = status;

			/*
			 * Remove the internal command from the pending list
			 */
			list_del_init(&scb->list);
			scb->state = SCB_FREE;
		}
		else {
			mega_free_scb(adapter, scb);
		}

		/* Add Scsi_Command to end of completed queue */
		list_add_tail(SCSI_LIST(cmd), &adapter->completed_list);
	}
}


/*
 * mega_runpendq()
 *
 * Run through the list of completed requests and finish it
 */
static void
mega_rundoneq (adapter_t *adapter)
{
	Scsi_Cmnd *cmd;
	struct list_head *pos;

	list_for_each(pos, &adapter->completed_list) {

		Scsi_Pointer* spos = (Scsi_Pointer *)pos;

		cmd = list_entry(spos, Scsi_Cmnd, SCp);
		cmd->scsi_done(cmd);
	}

	INIT_LIST_HEAD(&adapter->completed_list);
}


/*
 * Free a SCB structure
 * Note: We assume the scsi commands associated with this scb is not free yet.
 */
static void
mega_free_scb(adapter_t *adapter, scb_t *scb)
{
	switch( scb->dma_type ) {

	case MEGA_DMA_TYPE_NONE:
		break;

	case MEGA_BULK_DATA:
		pci_unmap_page(adapter->dev, scb->dma_h_bulkdata,
			scb->cmd->request_bufflen, scb->dma_direction);

		if( scb->dma_direction == PCI_DMA_FROMDEVICE ) {
			pci_dma_sync_single(adapter->dev,
					scb->dma_h_bulkdata,
					scb->cmd->request_bufflen,
					PCI_DMA_FROMDEVICE);
		}

		break;

	case MEGA_SGLIST:
		pci_unmap_sg(adapter->dev, scb->cmd->request_buffer,
			scb->cmd->use_sg, scb->dma_direction);

		if( scb->dma_direction == PCI_DMA_FROMDEVICE ) {
			pci_dma_sync_sg(adapter->dev,
					scb->cmd->request_buffer,
					scb->cmd->use_sg, PCI_DMA_FROMDEVICE);
		}

		break;

	default:
		break;
	}

	/*
	 * Remove from the pending list
	 */
	list_del_init(&scb->list);

	/* Link the scb back into free list */
	scb->state = SCB_FREE;
	scb->cmd = NULL;

	list_add(&scb->list, &adapter->free_list);
}


/*
 * Wait until the controller's mailbox is available
 */
static inline int
mega_busywait_mbox (adapter_t *adapter)
{
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	if (adapter->mbox->m_in.busy)
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		return __mega_busywait_mbox(adapter);
	return 0;
}

static int
__mega_busywait_mbox (adapter_t *adapter)
{
	volatile mbox_t *mbox = adapter->mbox;
	long counter;

	for (counter = 0; counter < 10000; counter++) {
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		if (!mbox->m_in.busy)
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			return 0;
		udelay(100); yield();
	}
	return -1;		/* give up after 1 second */
}

/*
 * Copies data to SGLIST
 * Note: For 64 bit cards, we need a minimum of one SG element for read/write
 */
static int
mega_build_sglist(adapter_t *adapter, scb_t *scb, u32 *buf, u32 *len)
{
	struct scatterlist	*sgl;
	struct page	*page;
	unsigned long	offset;
	Scsi_Cmnd	*cmd;
	int	sgcnt;
	int	idx;

	cmd = scb->cmd;

	/* Scatter-gather not used */
	if( !cmd->use_sg ) {

		page = virt_to_page(cmd->request_buffer);
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		offset = offset_in_page(cmd->request_buffer);
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		scb->dma_h_bulkdata = pci_map_page(adapter->dev,
						  page, offset,
						  cmd->request_bufflen,
						  scb->dma_direction);
		scb->dma_type = MEGA_BULK_DATA;

		/*
		 * We need to handle special 64-bit commands that need a
		 * minimum of 1 SG
		 */
		if( adapter->has_64bit_addr ) {
			scb->sgl64[0].address = scb->dma_h_bulkdata;
			scb->sgl64[0].length = cmd->request_bufflen;
			*buf = (u32)scb->sgl_dma_addr;
			*len = (u32)cmd->request_bufflen;
			return 1;
		}
		else {
			*buf = (u32)scb->dma_h_bulkdata;
			*len = (u32)cmd->request_bufflen;
		}

		if( scb->dma_direction == PCI_DMA_TODEVICE ) {
			pci_dma_sync_single(adapter->dev,
					scb->dma_h_bulkdata,
					cmd->request_bufflen,
					PCI_DMA_TODEVICE);
		}

		return 0;
	}

	sgl = (struct scatterlist *)cmd->request_buffer;

	/*
	 * Copy Scatter-Gather list info into controller structure.
	 *
	 * The number of sg elements returned must not exceed our limit
	 */
	sgcnt = pci_map_sg(adapter->dev, sgl, cmd->use_sg,
			scb->dma_direction);

	scb->dma_type = MEGA_SGLIST;

	if( sgcnt > adapter->sglen ) BUG();

	for( idx = 0; idx < sgcnt; idx++, sgl++ ) {

		if( adapter->has_64bit_addr ) {
			scb->sgl64[idx].address = sg_dma_address(sgl);
			scb->sgl64[idx].length = sg_dma_len(sgl);
		}
		else {
			scb->sgl[idx].address = sg_dma_address(sgl);
			scb->sgl[idx].length = sg_dma_len(sgl);
		}
	}

	/* Reset pointer and length fields */
	*buf = scb->sgl_dma_addr;

	/*
	 * For passthru command, dataxferlen must be set, even for commands
	 * with a sg list
	 */
	*len = (u32)cmd->request_bufflen;

	if( scb->dma_direction == PCI_DMA_TODEVICE ) {
		pci_dma_sync_sg(adapter->dev, sgl, cmd->use_sg,
				PCI_DMA_TODEVICE);
	}

	/* Return count of SG requests */
	return sgcnt;
}


/*
 * mega_8_to_40ld()
 *
 * takes all info in AdapterInquiry structure and puts it into ProductInfo and
 * Enquiry3 structures for later use
 */
static void
mega_8_to_40ld(mraid_inquiry *inquiry, mega_inquiry3 *enquiry3,
		mega_product_info *product_info)
{
	int i;

	product_info->max_commands = inquiry->adapter_info.max_commands;
	enquiry3->rebuild_rate = inquiry->adapter_info.rebuild_rate;
	product_info->nchannels = inquiry->adapter_info.nchannels;

	for (i = 0; i < 4; i++) {
		product_info->fw_version[i] =
			inquiry->adapter_info.fw_version[i];

		product_info->bios_version[i] =
			inquiry->adapter_info.bios_version[i];
	}
	enquiry3->cache_flush_interval =
		inquiry->adapter_info.cache_flush_interval;

	product_info->dram_size = inquiry->adapter_info.dram_size;

	enquiry3->num_ldrv = inquiry->logdrv_info.num_ldrv;

	for (i = 0; i < MAX_LOGICAL_DRIVES_8LD; i++) {
		enquiry3->ldrv_size[i] = inquiry->logdrv_info.ldrv_size[i];
		enquiry3->ldrv_prop[i] = inquiry->logdrv_info.ldrv_prop[i];
		enquiry3->ldrv_state[i] = inquiry->logdrv_info.ldrv_state[i];
	}

	for (i = 0; i < (MAX_PHYSICAL_DRIVES); i++)
		enquiry3->pdrv_state[i] = inquiry->pdrv_info.pdrv_state[i];
}

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static inline void
mega_free_sgl(adapter_t *adapter)
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{
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	scb_t	*scb;
	int	i;
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	for(i = 0; i < adapter->max_cmds; i++) {
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		scb = &adapter->scb_list[i];
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		if( scb->sgl64 ) {
			pci_free_consistent(adapter->dev,
				sizeof(mega_sgl64) * adapter->sglen,
				scb->sgl64,
				scb->sgl_dma_addr);
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			scb->sgl64 = NULL;
		}
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		if( scb->pthru ) {
			pci_free_consistent(adapter->dev, sizeof(mega_passthru),
				scb->pthru, scb->pthru_dma_addr);
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			scb->pthru = NULL;
		}

		if( scb->epthru ) {
			pci_free_consistent(adapter->dev,
				sizeof(mega_ext_passthru),
				scb->epthru, scb->epthru_dma_addr);

			scb->epthru = NULL;
		}

	}
}


/*
 * Get information about the card/driver
 */
const char *
megaraid_info(struct Scsi_Host *host)
{
	static char buffer[512];
	adapter_t *adapter;

	adapter = (adapter_t *)host->hostdata;

	sprintf (buffer,
		 "LSI Logic MegaRAID %s %d commands %d targs %d chans %d luns",
		 adapter->fw_version, adapter->product_info.max_commands,
		 adapter->host->max_id, adapter->host->max_channel,
		 adapter->host->max_lun);
	return buffer;
}

/*
 * Abort a previous SCSI request. Only commands on the pending list can be
 * aborted. All the commands issued to the F/W must complete.
 */
static int
megaraid_abort(Scsi_Cmnd *cmd)
{
	adapter_t	*adapter;
	int		rval;

	adapter = (adapter_t *)cmd->device->host->hostdata;

	rval =  megaraid_abort_and_reset(adapter, cmd, SCB_ABORT);
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	/*
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	 * This is required here to complete any completed requests
	 * to be communicated over to the mid layer.
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	 */
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	mega_rundoneq(adapter);
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	return rval;
}


static int
megaraid_reset(Scsi_Cmnd *cmd)
{
	adapter_t	*adapter;
	megacmd_t	mc;
	int		rval;

	adapter = (adapter_t *)cmd->device->host->hostdata;

#if MEGA_HAVE_CLUSTERING
	mc.cmd = MEGA_CLUSTER_CMD;
	mc.opcode = MEGA_RESET_RESERVATIONS;

	spin_unlock_irq(&adapter->lock);
	if( mega_internal_command(adapter, LOCK_INT, &mc, NULL) != 0 ) {
		printk(KERN_WARNING
				"megaraid: reservation reset failed.\n");
	}
	else {
		printk(KERN_INFO "megaraid: reservation reset.\n");
	}
	spin_lock_irq(&adapter->lock);
#endif

	rval =  megaraid_abort_and_reset(adapter, cmd, SCB_RESET);

	/*
	 * This is required here to complete any completed requests
	 * to be communicated over to the mid layer.
	 */
	mega_rundoneq(adapter);

	return rval;
}



/**
 * megaraid_abort_and_reset()
 * @adapter - megaraid soft state
 * @cmd - scsi command to be aborted or reset
 * @aor - abort or reset flag
 *
 * Try to locate the scsi command in the pending queue. If found and is not
 * issued to the controller, abort/reset it. Otherwise return failure
 */
static int
megaraid_abort_and_reset(adapter_t *adapter, Scsi_Cmnd *cmd, int aor)
{
	struct list_head	*pos, *next;
	scb_t			*scb;

	printk(KERN_WARNING "megaraid: %s-%lx cmd=%x <c=%d t=%d l=%d>\n",
	     (aor == SCB_ABORT)? "ABORTING":"RESET", cmd->serial_number,
	     cmd->cmnd[0], cmd->device->channel, 
	     cmd->device->id, cmd->device->lun);

	if(list_empty(&adapter->pending_list))
		return FALSE;

	list_for_each_safe(pos, next, &adapter->pending_list) {

		scb = list_entry(pos, scb_t, list);

		if (scb->cmd == cmd) { /* Found command */

			scb->state |= aor;

			/*
			 * Check if this command has firmare owenership. If
			 * yes, we cannot reset this command. Whenever, f/w
			 * completes this command, we will return appropriate
			 * status from ISR.
			 */
			if( scb->state & SCB_ISSUED ) {

				printk(KERN_WARNING
					"megaraid: %s-%lx[%x], fw owner.\n",
					(aor==SCB_ABORT) ? "ABORTING":"RESET",
					cmd->serial_number, scb->idx);

				return FALSE;
			}
			else {

				/*
				 * Not yet issued! Remove from the pending
				 * list
				 */
				printk(KERN_WARNING
					"megaraid: %s-%lx[%x], driver owner.\n",
					(aor==SCB_ABORT) ? "ABORTING":"RESET",
					cmd->serial_number, scb->idx);

				mega_free_scb(adapter, scb);

				if( aor == SCB_ABORT ) {
					cmd->result = (DID_ABORT << 16);
				}
				else {
					cmd->result = (DID_RESET << 16);
				}

				list_add_tail(SCSI_LIST(cmd),
						&adapter->completed_list);

				return TRUE;
			}
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		}
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	}

	return FALSE;
}


#ifdef CONFIG_PROC_FS
/* Following code handles /proc fs  */

#define CREATE_READ_PROC(string, func)	create_proc_read_entry(string,	\
					S_IRUSR | S_IFREG,		\
					controller_proc_dir_entry,	\
					func, adapter)

/**
 * mega_create_proc_entry()
 * @index - index in soft state array
 * @parent - parent node for this /proc entry
 *
 * Creates /proc entries for our controllers.
 */
static void
mega_create_proc_entry(int index, struct proc_dir_entry *parent)
{
	struct proc_dir_entry	*controller_proc_dir_entry = NULL;
	u8		string[64] = { 0 };
	adapter_t	*adapter = hba_soft_state[index];

	sprintf(string, "hba%d", adapter->host->host_no);

	controller_proc_dir_entry =
		adapter->controller_proc_dir_entry = proc_mkdir(string, parent);

	if(!controller_proc_dir_entry) {
		printk(KERN_WARNING "\nmegaraid: proc_mkdir failed\n");
		return;
	}
	adapter->proc_read = CREATE_READ_PROC("config", proc_read_config);
	adapter->proc_stat = CREATE_READ_PROC("stat", proc_read_stat);
	adapter->proc_mbox = CREATE_READ_PROC("mailbox", proc_read_mbox);
#if MEGA_HAVE_ENH_PROC
	adapter->proc_rr = CREATE_READ_PROC("rebuild-rate", proc_rebuild_rate);
	adapter->proc_battery = CREATE_READ_PROC("battery-status",
			proc_battery);

	/*
	 * Display each physical drive on its channel
	 */
	adapter->proc_pdrvstat[0] = CREATE_READ_PROC("diskdrives-ch0",
					proc_pdrv_ch0);
	adapter->proc_pdrvstat[1] = CREATE_READ_PROC("diskdrives-ch1",
					proc_pdrv_ch1);
	adapter->proc_pdrvstat[2] = CREATE_READ_PROC("diskdrives-ch2",
					proc_pdrv_ch2);
	adapter->proc_pdrvstat[3] = CREATE_READ_PROC("diskdrives-ch3",
					proc_pdrv_ch3);

	/*
	 * Display a set of up to 10 logical drive through each of following
	 * /proc entries
	 */
	adapter->proc_rdrvstat[0] = CREATE_READ_PROC("raiddrives-0-9",
					proc_rdrv_10);
	adapter->proc_rdrvstat[1] = CREATE_READ_PROC("raiddrives-10-19",
					proc_rdrv_20);
	adapter->proc_rdrvstat[2] = CREATE_READ_PROC("raiddrives-20-29",
					proc_rdrv_30);
	adapter->proc_rdrvstat[3] = CREATE_READ_PROC("raiddrives-30-39",
					proc_rdrv_40);
#endif
}


/**
 * proc_read_config()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display configuration information about the controller.
 */
static int
proc_read_config(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{

	adapter_t *adapter = (adapter_t *)data;
	int len = 0;

	len += sprintf(page+len, "%s", MEGARAID_VERSION);

	if(adapter->product_info.product_name[0])
		len += sprintf(page+len, "%s\n",
				adapter->product_info.product_name);

	len += sprintf(page+len, "Controller Type: ");

	if( adapter->flag & BOARD_MEMMAP ) {
		len += sprintf(page+len,
			"438/466/467/471/493/518/520/531/532\n");
	}
	else {
		len += sprintf(page+len,
			"418/428/434\n");
	}

	if(adapter->flag & BOARD_40LD) {
		len += sprintf(page+len,
				"Controller Supports 40 Logical Drives\n");
	}

	if(adapter->flag & BOARD_64BIT) {
		len += sprintf(page+len,
		"Controller capable of 64-bit memory addressing\n");
	}
	if( adapter->has_64bit_addr ) {
		len += sprintf(page+len,
			"Controller using 64-bit memory addressing\n");
	}
	else {
		len += sprintf(page+len,
			"Controller is not using 64-bit memory addressing\n");
	}
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	len += sprintf(page+len, "Base = %08lx, Irq = %d, ", adapter->base,
			adapter->host->irq);

	len += sprintf(page+len, "Logical Drives = %d, Channels = %d\n",
			adapter->numldrv, adapter->product_info.nchannels);

	len += sprintf(page+len, "Version =%s:%s, DRAM = %dMb\n",
			adapter->fw_version, adapter->bios_version,
			adapter->product_info.dram_size);

	len += sprintf(page+len,
		"Controller Queue Depth = %d, Driver Queue Depth = %d\n",
		adapter->product_info.max_commands, adapter->max_cmds);

	len += sprintf(page+len, "support_ext_cdb    = %d\n",
			adapter->support_ext_cdb);
	len += sprintf(page+len, "support_random_del = %d\n",
			adapter->support_random_del);
	len += sprintf(page+len, "boot_ldrv_enabled  = %d\n",
			adapter->boot_ldrv_enabled);
	len += sprintf(page+len, "boot_ldrv          = %d\n",
			adapter->boot_ldrv);
	len += sprintf(page+len, "boot_pdrv_enabled  = %d\n",
			adapter->boot_pdrv_enabled);
	len += sprintf(page+len, "boot_pdrv_ch       = %d\n",
			adapter->boot_pdrv_ch);
	len += sprintf(page+len, "boot_pdrv_tgt      = %d\n",
			adapter->boot_pdrv_tgt);
	len += sprintf(page+len, "quiescent          = %d\n",
			atomic_read(&adapter->quiescent));
	len += sprintf(page+len, "has_cluster        = %d\n",
			adapter->has_cluster);

	len += sprintf(page+len, "\nModule Parameters:\n");
	len += sprintf(page+len, "max_cmd_per_lun    = %d\n",
			max_cmd_per_lun);
	len += sprintf(page+len, "max_sectors_per_io = %d\n",
			max_sectors_per_io);

	*eof = 1;

	return len;
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}


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/**
 * proc_read_stat()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Diaplay statistical information about the I/O activity.
 */
static int
proc_read_stat(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t	*adapter;
	int	len;
	int	i;

	i = 0;	/* avoid compilation warnings */
	len = 0;
	adapter = (adapter_t *)data;

	len = sprintf(page, "Statistical Information for this controller\n");
	len += sprintf(page+len, "pend_cmds = %d\n",
			atomic_read(&adapter->pend_cmds));
#if MEGA_HAVE_STATS
	for(i = 0; i < adapter->numldrv; i++) {
		len += sprintf(page+len, "Logical Drive %d:\n", i);

		len += sprintf(page+len,
			"\tReads Issued = %lu, Writes Issued = %lu\n",
			adapter->nreads[i], adapter->nwrites[i]);

		len += sprintf(page+len,
			"\tSectors Read = %lu, Sectors Written = %lu\n",
			adapter->nreadblocks[i], adapter->nwriteblocks[i]);

		len += sprintf(page+len,
			"\tRead errors = %lu, Write errors = %lu\n\n",
			adapter->rd_errors[i], adapter->wr_errors[i]);
	}
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#else
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	len += sprintf(page+len,
			"IO and error counters not compiled in driver.\n");
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#endif

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	*eof = 1;
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	return len;
}
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/**
 * proc_read_mbox()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display mailbox information for the last command issued. This information
 * is good for debugging.
 */
static int
proc_read_mbox(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{

	adapter_t	*adapter = (adapter_t *)data;
	volatile mbox_t	*mbox = adapter->mbox;
	int	len = 0;

	len = sprintf(page, "Contents of Mail Box Structure\n");
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	len += sprintf(page+len, "  Fw Command   = 0x%02x\n", 
			mbox->m_out.cmd);
	len += sprintf(page+len, "  Cmd Sequence = 0x%02x\n", 
			mbox->m_out.cmdid);
	len += sprintf(page+len, "  No of Sectors= %04d\n", 
			mbox->m_out.numsectors);
	len += sprintf(page+len, "  LBA          = 0x%02x\n", 
			mbox->m_out.lba);
	len += sprintf(page+len, "  DTA          = 0x%08x\n", 
			mbox->m_out.xferaddr);
	len += sprintf(page+len, "  Logical Drive= 0x%02x\n", 
			mbox->m_out.logdrv);
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	len += sprintf(page+len, "  No of SG Elmt= 0x%02x\n",
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			mbox->m_out.numsgelements);
	len += sprintf(page+len, "  Busy         = %01x\n", 
			mbox->m_in.busy);
	len += sprintf(page+len, "  Status       = 0x%02x\n", 
			mbox->m_in.status);
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	*eof = 1;

	return len;
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}
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/**
 * proc_rebuild_rate()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display current rebuild rate
 */
static int
proc_rebuild_rate(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
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{
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	adapter_t	*adapter = (adapter_t *)data;
	dma_addr_t	dma_handle;
	caddr_t		inquiry;
	struct pci_dev	*pdev;
	int	len = 0;
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	if( make_local_pdev(adapter, &pdev) != 0 ) {
		*eof = 1;
		return len;
	}
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	if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL ) {
		free_local_pdev(pdev);
		*eof = 1;
		return len;
	}
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	if( mega_adapinq(adapter, dma_handle) != 0 ) {
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		len = sprintf(page, "Adapter inquiry failed.\n");
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		printk(KERN_WARNING "megaraid: inquiry failed.\n");
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		mega_free_inquiry(inquiry, dma_handle, pdev);
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		free_local_pdev(pdev);
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		*eof = 1;
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		return len;
	}
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	if( adapter->flag & BOARD_40LD ) {
		len = sprintf(page, "Rebuild Rate: [%d%%]\n",
			((mega_inquiry3 *)inquiry)->rebuild_rate);
	}
	else {
		len = sprintf(page, "Rebuild Rate: [%d%%]\n",
			((mraid_ext_inquiry *)
			inquiry)->raid_inq.adapter_info.rebuild_rate);
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	}

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	mega_free_inquiry(inquiry, dma_handle, pdev);

	free_local_pdev(pdev);

	*eof = 1;

	return len;
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}

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/**
 * proc_battery()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display information about the battery module on the controller.
 */
static int
proc_battery(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
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{
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	adapter_t	*adapter = (adapter_t *)data;
	dma_addr_t	dma_handle;
	caddr_t		inquiry;
	struct pci_dev	*pdev;
	u8	battery_status = 0;
	char	str[256];
	int	len = 0;

	if( make_local_pdev(adapter, &pdev) != 0 ) {
		*eof = 1;
		return len;
	}
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	if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL ) {
		free_local_pdev(pdev);
		*eof = 1;
		return len;
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	}

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	if( mega_adapinq(adapter, dma_handle) != 0 ) {
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		len = sprintf(page, "Adapter inquiry failed.\n");
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		printk(KERN_WARNING "megaraid: inquiry failed.\n");

		mega_free_inquiry(inquiry, dma_handle, pdev);

		free_local_pdev(pdev);

		*eof = 1;

		return len;
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	}
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	if( adapter->flag & BOARD_40LD ) {
		battery_status = ((mega_inquiry3 *)inquiry)->battery_status;
	}
	else {
		battery_status = ((mraid_ext_inquiry *)inquiry)->
			raid_inq.adapter_info.battery_status;
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	}

	/*
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	 * Decode the battery status
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	 */
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	sprintf(str, "Battery Status:[%d]", battery_status);
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	if(battery_status == MEGA_BATT_CHARGE_DONE)
		strcat(str, " Charge Done");
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	if(battery_status & MEGA_BATT_MODULE_MISSING)
		strcat(str, " Module Missing");
	
	if(battery_status & MEGA_BATT_LOW_VOLTAGE)
		strcat(str, " Low Voltage");
	
	if(battery_status & MEGA_BATT_TEMP_HIGH)
		strcat(str, " Temperature High");
	
	if(battery_status & MEGA_BATT_PACK_MISSING)
		strcat(str, " Pack Missing");
	
	if(battery_status & MEGA_BATT_CHARGE_INPROG)
		strcat(str, " Charge In-progress");
	
	if(battery_status & MEGA_BATT_CHARGE_FAIL)
		strcat(str, " Charge Fail");
	
	if(battery_status & MEGA_BATT_CYCLES_EXCEEDED)
		strcat(str, " Cycles Exceeded");
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	len = sprintf(page, "%s\n", str);
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	mega_free_inquiry(inquiry, dma_handle, pdev);
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	free_local_pdev(pdev);
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	*eof = 1;
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	return len;
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}


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/**
 * proc_pdrv_ch0()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display information about the physical drives on physical channel 0.
 */
static int
proc_pdrv_ch0(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
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{
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	adapter_t *adapter = (adapter_t *)data;
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	*eof = 1;
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	return (proc_pdrv(adapter, page, 0));
}
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/**
 * proc_pdrv_ch1()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display information about the physical drives on physical channel 1.
 */
static int
proc_pdrv_ch1(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t *adapter = (adapter_t *)data;

	*eof = 1;

	return (proc_pdrv(adapter, page, 1));
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}


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/**
 * proc_pdrv_ch2()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display information about the physical drives on physical channel 2.
 */
static int
proc_pdrv_ch2(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t *adapter = (adapter_t *)data;

	*eof = 1;
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	return (proc_pdrv(adapter, page, 2));
}


/**
 * proc_pdrv_ch3()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display information about the physical drives on physical channel 3.
 */
static int
proc_pdrv_ch3(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
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{
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	adapter_t *adapter = (adapter_t *)data;
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	*eof = 1;
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	return (proc_pdrv(adapter, page, 3));
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}


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/**
 * proc_pdrv()
 * @page - buffer to write the data in
 * @adapter - pointer to our soft state
 *
 * Display information about the physical drives.
 */
static int
proc_pdrv(adapter_t *adapter, char *page, int channel)
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{
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	dma_addr_t	dma_handle;
	char		*scsi_inq;
	dma_addr_t	scsi_inq_dma_handle;
	caddr_t		inquiry;
	struct pci_dev	*pdev;
	u8	*pdrv_state;
	u8	state;
	int	tgt;
	int	max_channels;
	int	len = 0;
	char	str[80];
	int	i;

	if( make_local_pdev(adapter, &pdev) != 0 ) {
		return len;
	}
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	if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL ) {
		free_local_pdev(pdev);
		return len;
	}
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	if( mega_adapinq(adapter, dma_handle) != 0 ) {
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		len = sprintf(page, "Adapter inquiry failed.\n");
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		printk(KERN_WARNING "megaraid: inquiry failed.\n");
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		mega_free_inquiry(inquiry, dma_handle, pdev);
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		free_local_pdev(pdev);
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		return len;
	}
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	scsi_inq = pci_alloc_consistent(pdev, 256, &scsi_inq_dma_handle);
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	if( scsi_inq == NULL ) {
		len = sprintf(page, "memory not available for scsi inq.\n");
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		mega_free_inquiry(inquiry, dma_handle, pdev);
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		free_local_pdev(pdev);
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		return len;
	}
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	if( adapter->flag & BOARD_40LD ) {
		pdrv_state = ((mega_inquiry3 *)inquiry)->pdrv_state;
	}
	else {
		pdrv_state = ((mraid_ext_inquiry *)inquiry)->
			raid_inq.pdrv_info.pdrv_state;
	}
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	max_channels = adapter->product_info.nchannels;
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	if( channel >= max_channels ) return 0;
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	for( tgt = 0; tgt <= MAX_TARGET; tgt++ ) {
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		i = channel*16 + tgt;
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		state = *(pdrv_state + i);
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		switch( state & 0x0F ) {
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		case PDRV_ONLINE:
			sprintf(str,
			"Channel:%2d Id:%2d State: Online",
				channel, tgt);
			break;
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		case PDRV_FAILED:
			sprintf(str,
			"Channel:%2d Id:%2d State: Failed",
				channel, tgt);
			break;
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		case PDRV_RBLD:
			sprintf(str,
			"Channel:%2d Id:%2d State: Rebuild",
				channel, tgt);
			break;

		case PDRV_HOTSPARE:
			sprintf(str,
			"Channel:%2d Id:%2d State: Hot spare",
				channel, tgt);
			break;

		default:
			sprintf(str,
			"Channel:%2d Id:%2d State: Un-configured",
				channel, tgt);
			break;
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		}
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		/*
		 * This interface displays inquiries for disk drives
		 * only. Inquries for logical drives and non-disk
		 * devices are available through /proc/scsi/scsi
		 */
		memset(scsi_inq, 0, 256);
		if( mega_internal_dev_inquiry(adapter, channel, tgt,
				scsi_inq_dma_handle) ||
				(scsi_inq[0] & 0x1F) != TYPE_DISK ) {
			continue;
		}
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		/*
		 * Check for overflow. We print less than 240
		 * characters for inquiry
		 */
		if( (len + 240) >= PAGE_SIZE ) break;
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		len += sprintf(page+len, "%s.\n", str);
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		len += mega_print_inquiry(page+len, scsi_inq);
	}
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	pci_free_consistent(pdev, 256, scsi_inq, scsi_inq_dma_handle);
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	mega_free_inquiry(inquiry, dma_handle, pdev);
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	free_local_pdev(pdev);
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	return len;
}
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/*
 * Display scsi inquiry
 */
static int
mega_print_inquiry(char *page, char *scsi_inq)
{
	int	len = 0;
	int	i;

	len = sprintf(page, "  Vendor: ");
	for( i = 8; i < 16; i++ ) {
		len += sprintf(page+len, "%c", scsi_inq[i]);
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	}

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	len += sprintf(page+len, "  Model: ");
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	for( i = 16; i < 32; i++ ) {
		len += sprintf(page+len, "%c", scsi_inq[i]);
	}
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	len += sprintf(page+len, "  Rev: ");
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	for( i = 32; i < 36; i++ ) {
		len += sprintf(page+len, "%c", scsi_inq[i]);
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	}

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	len += sprintf(page+len, "\n");

	i = scsi_inq[0] & 0x1f;

	len += sprintf(page+len, "  Type:   %s ",
		i < MAX_SCSI_DEVICE_CODE ? scsi_device_types[i] :
		   "Unknown          ");
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	len += sprintf(page+len,
	"                 ANSI SCSI revision: %02x", scsi_inq[2] & 0x07);
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	if( (scsi_inq[2] & 0x07) == 1 && (scsi_inq[3] & 0x0f) == 1 )
		len += sprintf(page+len, " CCS\n");
	else
		len += sprintf(page+len, "\n");
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	return len;
}
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/**
 * proc_rdrv_10()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display real time information about the logical drives 0 through 9.
 */
static int
proc_rdrv_10(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t *adapter = (adapter_t *)data;

	*eof = 1;
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	return (proc_rdrv(adapter, page, 0, 9));
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}

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/**
 * proc_rdrv_20()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display real time information about the logical drives 0 through 9.
 */
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static int
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proc_rdrv_20(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
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{
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	adapter_t *adapter = (adapter_t *)data;
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	*eof = 1;
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	return (proc_rdrv(adapter, page, 10, 19));
}
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/**
 * proc_rdrv_30()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display real time information about the logical drives 0 through 9.
 */
static int
proc_rdrv_30(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t *adapter = (adapter_t *)data;
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	*eof = 1;
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	return (proc_rdrv(adapter, page, 20, 29));
}
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/**
 * proc_rdrv_40()
 * @page - buffer to write the data in
 * @start - where the actual data has been written in page
 * @offset - same meaning as the read system call
 * @count - same meaning as the read system call
 * @eof - set if no more data needs to be returned
 * @data - pointer to our soft state
 *
 * Display real time information about the logical drives 0 through 9.
 */
static int
proc_rdrv_40(char *page, char **start, off_t offset, int count, int *eof,
		void *data)
{
	adapter_t *adapter = (adapter_t *)data;
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	*eof = 1;

	return (proc_rdrv(adapter, page, 30, 39));
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}

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/**
 * proc_rdrv()
 * @page - buffer to write the data in
 * @adapter - pointer to our soft state
 * @start - starting logical drive to display
 * @end - ending logical drive to display
 *
 * We do not print the inquiry information since its already available through
 * /proc/scsi/scsi interface
 */
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static int
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proc_rdrv(adapter_t *adapter, char *page, int start, int end )
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{
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	dma_addr_t	dma_handle;
	logdrv_param	*lparam;
	megacmd_t	mc;
	char		*disk_array;
	dma_addr_t	disk_array_dma_handle;
	caddr_t		inquiry;
	struct pci_dev	*pdev;
	u8	*rdrv_state;
	int	num_ldrv;
	u32	array_sz;
	int	len = 0;
	int	i;

	if( make_local_pdev(adapter, &pdev) != 0 ) {
		return len;
	}
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	if( (inquiry = mega_allocate_inquiry(&dma_handle, pdev)) == NULL ) {
		free_local_pdev(pdev);
		return len;
	}
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	if( mega_adapinq(adapter, dma_handle) != 0 ) {
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		len = sprintf(page, "Adapter inquiry failed.\n");
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		printk(KERN_WARNING "megaraid: inquiry failed.\n");
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		mega_free_inquiry(inquiry, dma_handle, pdev);
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		free_local_pdev(pdev);
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		return len;
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	}

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	memset(&mc, 0, sizeof(megacmd_t));

	if( adapter->flag & BOARD_40LD ) {
		array_sz = sizeof(disk_array_40ld);
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		rdrv_state = ((mega_inquiry3 *)inquiry)->ldrv_state;

		num_ldrv = ((mega_inquiry3 *)inquiry)->num_ldrv;
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	}
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	else {
		array_sz = sizeof(disk_array_8ld);
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		rdrv_state = ((mraid_ext_inquiry *)inquiry)->
			raid_inq.logdrv_info.ldrv_state;

		num_ldrv = ((mraid_ext_inquiry *)inquiry)->
			raid_inq.logdrv_info.num_ldrv;
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	}
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	disk_array = pci_alloc_consistent(pdev, array_sz,
			&disk_array_dma_handle);
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	if( disk_array == NULL ) {
		len = sprintf(page, "memory not available.\n");
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		mega_free_inquiry(inquiry, dma_handle, pdev);
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		free_local_pdev(pdev);
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		return len;
	}
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	mc.xferaddr = (u32)disk_array_dma_handle;
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	if( adapter->flag & BOARD_40LD ) {
		mc.cmd = FC_NEW_CONFIG;
		mc.opcode = OP_DCMD_READ_CONFIG;
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		if( mega_internal_command(adapter, LOCK_INT, &mc, NULL) ) {
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			len = sprintf(page, "40LD read config failed.\n");
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			mega_free_inquiry(inquiry, dma_handle, pdev);
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			pci_free_consistent(pdev, array_sz, disk_array,
					disk_array_dma_handle);
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			free_local_pdev(pdev);
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			return len;
		}
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	}
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	else {
		mc.cmd = NEW_READ_CONFIG_8LD;
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		if( mega_internal_command(adapter, LOCK_INT, &mc, NULL) ) {
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			mc.cmd = READ_CONFIG_8LD;
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			if( mega_internal_command(adapter, LOCK_INT, &mc,
						NULL) ){
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				len = sprintf(page,
					"8LD read config failed.\n");
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				mega_free_inquiry(inquiry, dma_handle, pdev);
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				pci_free_consistent(pdev, array_sz,
						disk_array,
						disk_array_dma_handle);
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				free_local_pdev(pdev);
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				return len;
			}
		}
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	}
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	for( i = start; i < ( (end+1 < num_ldrv) ? end+1 : num_ldrv ); i++ ) {
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		if( adapter->flag & BOARD_40LD ) {
			lparam =
			&((disk_array_40ld *)disk_array)->ldrv[i].lparam;
		}
		else {
			lparam =
			&((disk_array_8ld *)disk_array)->ldrv[i].lparam;
		}
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		/*
		 * Check for overflow. We print less than 240 characters for
		 * information about each logical drive.
		 */
		if( (len + 240) >= PAGE_SIZE ) break;
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		len += sprintf(page+len, "Logical drive:%2d:, ", i);
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		switch( rdrv_state[i] & 0x0F ) {
		case RDRV_OFFLINE:
			len += sprintf(page+len, "state: offline");
			break;
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		case RDRV_DEGRADED:
			len += sprintf(page+len, "state: degraded");
			break;
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		case RDRV_OPTIMAL:
			len += sprintf(page+len, "state: optimal");
			break;
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		case RDRV_DELETED:
			len += sprintf(page+len, "state: deleted");
			break;
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		default:
			len += sprintf(page+len, "state: unknown");
			break;
		}
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		/*
		 * Check if check consistency or initialization is going on
		 * for this logical drive.
		 */
		if( (rdrv_state[i] & 0xF0) == 0x20 ) {
			len += sprintf(page+len,
					", check-consistency in progress");
		}
		else if( (rdrv_state[i] & 0xF0) == 0x10 ) {
			len += sprintf(page+len,
					", initialization in progress");
		}
		
		len += sprintf(page+len, "\n");
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		len += sprintf(page+len, "Span depth:%3d, ",
				lparam->span_depth);
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		len += sprintf(page+len, "RAID level:%3d, ",
				lparam->level);
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		len += sprintf(page+len, "Stripe size:%3d, ",
				lparam->stripe_sz ? lparam->stripe_sz/2: 128);
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		len += sprintf(page+len, "Row size:%3d\n",
				lparam->row_size);
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		len += sprintf(page+len, "Read Policy: ");
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		switch(lparam->read_ahead) {
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		case NO_READ_AHEAD:
			len += sprintf(page+len, "No read ahead, ");
			break;
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		case READ_AHEAD:
			len += sprintf(page+len, "Read ahead, ");
			break;

		case ADAP_READ_AHEAD:
			len += sprintf(page+len, "Adaptive, ");
			break;
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		}

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		len += sprintf(page+len, "Write Policy: ");
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		switch(lparam->write_mode) {
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		case WRMODE_WRITE_THRU:
			len += sprintf(page+len, "Write thru, ");
			break;
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		case WRMODE_WRITE_BACK:
			len += sprintf(page+len, "Write back, ");
			break;
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		}
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		len += sprintf(page+len, "Cache Policy: ");
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		switch(lparam->direct_io) {
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3090 3091 3092
		case CACHED_IO:
			len += sprintf(page+len, "Cached IO\n\n");
			break;
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3094 3095 3096
		case DIRECT_IO:
			len += sprintf(page+len, "Direct IO\n\n");
			break;
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		}
3098
	}
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3100
	mega_free_inquiry(inquiry, dma_handle, pdev);
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3102 3103
	pci_free_consistent(pdev, array_sz, disk_array,
			disk_array_dma_handle);
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3105
	free_local_pdev(pdev);
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3107 3108
	return len;
}
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3109

3110
#endif
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3113 3114 3115 3116 3117 3118 3119 3120 3121 3122 3123 3124 3125 3126 3127
/**
 * megaraid_biosparam()
 *
 * Return the disk geometry for a particular disk
 */
static int
megaraid_biosparam(struct scsi_device *sdev, struct block_device *bdev,
		    sector_t capacity, int geom[])
{
	adapter_t	*adapter;
	unsigned char	*bh;
	int	heads;
	int	sectors;
	int	cylinders;
	int	rval;
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3129 3130
	/* Get pointer to host config structure */
	adapter = (adapter_t *)sdev->host->hostdata;
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3132 3133 3134 3135 3136
	if (IS_RAID_CH(adapter, sdev->channel)) {
			/* Default heads (64) & sectors (32) */
			heads = 64;
			sectors = 32;
			cylinders = (ulong)capacity / (heads * sectors);
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			/*
3139 3140
			 * Handle extended translation size for logical drives
			 * > 1Gb
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			 */
3142 3143 3144 3145
			if ((ulong)capacity >= 0x200000) {
				heads = 255;
				sectors = 63;
				cylinders = (ulong)capacity / (heads * sectors);
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			}

3148 3149 3150 3151 3152 3153 3154 3155 3156 3157 3158 3159 3160 3161
			/* return result */
			geom[0] = heads;
			geom[1] = sectors;
			geom[2] = cylinders;
	}
	else {
		bh = scsi_bios_ptable(bdev);

		if( bh ) {
			rval = scsi_partsize(bh, capacity,
					    &geom[2], &geom[0], &geom[1]);
			kfree(bh);
			if( rval != -1 )
				return rval;
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		}

3164 3165 3166
		printk(KERN_INFO
		"megaraid: invalid partition on this disk on channel %d\n",
				sdev->channel);
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3168 3169 3170 3171
		/* Default heads (64) & sectors (32) */
		heads = 64;
		sectors = 32;
		cylinders = (ulong)capacity / (heads * sectors);
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3173 3174 3175 3176 3177
		/* Handle extended translation size for logical drives > 1Gb */
		if ((ulong)capacity >= 0x200000) {
			heads = 255;
			sectors = 63;
			cylinders = (ulong)capacity / (heads * sectors);
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3178 3179
		}

3180 3181 3182 3183
		/* return result */
		geom[0] = heads;
		geom[1] = sectors;
		geom[2] = cylinders;
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3184
	}
3185 3186

	return 0;
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}

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/**
 * mega_init_scb()
 * @adapter - pointer to our soft state
 *
 * Allocate memory for the various pointers in the scb structures:
 * scatter-gather list pointer, passthru and extended passthru structure
 * pointers.
 */
static int
mega_init_scb(adapter_t *adapter)
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{
3200 3201
	scb_t	*scb;
	int	i;
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3203
	for( i = 0; i < adapter->max_cmds; i++ ) {
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		scb = &adapter->scb_list[i];
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3207 3208 3209 3210 3211
		scb->sgl64 = NULL;
		scb->sgl = NULL;
		scb->pthru = NULL;
		scb->epthru = NULL;
	}
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3213
	for( i = 0; i < adapter->max_cmds; i++ ) {
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		scb = &adapter->scb_list[i];
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3217
		scb->idx = i;
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3219 3220 3221 3222 3223 3224 3225 3226 3227 3228
		scb->sgl64 = pci_alloc_consistent(adapter->dev,
				sizeof(mega_sgl64) * adapter->sglen,
				&scb->sgl_dma_addr);

		scb->sgl = (mega_sglist *)scb->sgl64;

		if( !scb->sgl ) {
			printk(KERN_WARNING "RAID: Can't allocate sglist.\n");
			mega_free_sgl(adapter);
			return -1;
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		}
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3231 3232 3233
		scb->pthru = pci_alloc_consistent(adapter->dev,
				sizeof(mega_passthru),
				&scb->pthru_dma_addr);
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3235 3236 3237 3238 3239
		if( !scb->pthru ) {
			printk(KERN_WARNING "RAID: Can't allocate passthru.\n");
			mega_free_sgl(adapter);
			return -1;
		}
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3241 3242 3243
		scb->epthru = pci_alloc_consistent(adapter->dev,
				sizeof(mega_ext_passthru),
				&scb->epthru_dma_addr);
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3245 3246 3247 3248 3249 3250
		if( !scb->epthru ) {
			printk(KERN_WARNING
				"Can't allocate extended passthru.\n");
			mega_free_sgl(adapter);
			return -1;
		}
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3253
		scb->dma_type = MEGA_DMA_TYPE_NONE;
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3255 3256 3257 3258 3259 3260 3261 3262 3263
		/*
		 * Link to free list
		 * lock not required since we are loading the driver, so no
		 * commands possible right now.
		 */
		scb->state = SCB_FREE;
		scb->cmd = NULL;
		list_add(&scb->list, &adapter->free_list);
	}
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3265 3266
	return 0;
}
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3269 3270 3271 3272 3273 3274 3275 3276 3277 3278 3279 3280 3281 3282 3283 3284
/**
 * megadev_open()
 * @inode - unused
 * @filep - unused
 *
 * Routines for the character/ioctl interface to the driver. Find out if this
 * is a valid open. If yes, increment the module use count so that it cannot
 * be unloaded.
 */
static int
megadev_open (struct inode *inode, struct file *filep)
{
	/*
	 * Only allow superuser to access private ioctl interface
	 */
	if( !capable(CAP_SYS_ADMIN) ) return -EACCES;
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3286
	return 0;
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3287 3288
}

3289 3290 3291 3292 3293 3294 3295 3296 3297 3298 3299 3300

/**
 * megadev_ioctl()
 * @inode - Our device inode
 * @filep - unused
 * @cmd - ioctl command
 * @arg - user buffer
 *
 * ioctl entry point for our private ioctl interface. We move the data in from
 * the user space, prepare the command (if necessary, convert the old MIMD
 * ioctl to new ioctl command), and issue a synchronous command to the
 * controller.
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 */
3302 3303 3304
static int
megadev_ioctl(struct inode *inode, struct file *filep, unsigned int cmd,
		unsigned long arg)
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3305
{
3306 3307 3308 3309 3310 3311 3312 3313 3314 3315 3316 3317 3318 3319 3320 3321 3322
	adapter_t	*adapter;
	nitioctl_t	uioc;
	int		adapno;
	int		rval;
	mega_passthru	*upthru;	/* user address for passthru */
	mega_passthru	*pthru;		/* copy user passthru here */
	dma_addr_t	pthru_dma_hndl;
	void		*data = NULL;	/* data to be transferred */
	dma_addr_t	data_dma_hndl;	/* dma handle for data xfer area */
	megacmd_t	mc;
	megastat_t	*ustats;
	int		num_ldrv;
	u32		uxferaddr = 0;
	struct pci_dev	*pdev;

	ustats = NULL; /* avoid compilation warnings */
	num_ldrv = 0;
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3324 3325 3326 3327 3328 3329 3330
	/*
	 * Make sure only USCSICMD are issued through this interface.
	 * MIMD application would still fire different command.
	 */
	if( (_IOC_TYPE(cmd) != MEGAIOC_MAGIC) && (cmd != USCSICMD) ) {
		return -EINVAL;
	}
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	/*
3333 3334 3335 3336 3337 3338
	 * Check and convert a possible MIMD command to NIT command.
	 * mega_m_to_n() copies the data from the user space, so we do not
	 * have to do it here.
	 * NOTE: We will need some user address to copyout the data, therefore
	 * the inteface layer will also provide us with the required user
	 * addresses.
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	 */
3340 3341 3342
	memset(&uioc, 0, sizeof(nitioctl_t));
	if( (rval = mega_m_to_n( (void *)arg, &uioc)) != 0 )
		return rval;
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3345
	switch( uioc.opcode ) {
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3347 3348 3349
	case GET_DRIVER_VER:
		if( put_user(driver_ver, (u32 *)uioc.uioc_uaddr) )
			return (-EFAULT);
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3351
		break;
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3353 3354 3355
	case GET_N_ADAP:
		if( put_user(hba_count, (u32 *)uioc.uioc_uaddr) )
			return (-EFAULT);
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3357 3358 3359 3360 3361 3362
		/*
		 * Shucks. MIMD interface returns a positive value for number
		 * of adapters. TODO: Change it to return 0 when there is no
		 * applicatio using mimd interface.
		 */
		return hba_count;
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3364
	case GET_ADAP_INFO:
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3366 3367 3368 3369 3370
		/*
		 * Which adapter
		 */
		if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
			return (-ENODEV);
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3372 3373 3374 3375
		if( copy_to_user(uioc.uioc_uaddr, mcontroller+adapno,
				sizeof(struct mcontroller)) )
			return (-EFAULT);
		break;
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3376

3377
#if MEGA_HAVE_STATS
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3378

3379 3380 3381 3382 3383 3384
	case GET_STATS:
		/*
		 * Which adapter
		 */
		if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
			return (-ENODEV);
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3386
		adapter = hba_soft_state[adapno];
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3388
		ustats = (megastat_t *)uioc.uioc_uaddr;
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3390 3391
		if( copy_from_user(&num_ldrv, &ustats->num_ldrv, sizeof(int)) )
			return (-EFAULT);
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3393 3394 3395 3396
		/*
		 * Check for the validity of the logical drive number
		 */
		if( num_ldrv >= MAX_LOGICAL_DRIVES_40LD ) return -EINVAL;
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3398 3399 3400
		if( copy_to_user(ustats->nreads, adapter->nreads,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3402 3403 3404
		if( copy_to_user(ustats->nreadblocks, adapter->nreadblocks,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3406 3407 3408
		if( copy_to_user(ustats->nwrites, adapter->nwrites,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3410 3411 3412
		if( copy_to_user(ustats->nwriteblocks, adapter->nwriteblocks,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3414 3415 3416
		if( copy_to_user(ustats->rd_errors, adapter->rd_errors,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3418 3419 3420
		if( copy_to_user(ustats->wr_errors, adapter->wr_errors,
					num_ldrv*sizeof(u32)) )
			return -EFAULT;
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3422
		return 0;
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3424 3425
#endif
	case MBOX_CMD:
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3427 3428 3429 3430 3431
		/*
		 * Which adapter
		 */
		if( (adapno = GETADAP(uioc.adapno)) >= hba_count )
			return (-ENODEV);
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3433
		adapter = hba_soft_state[adapno];
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3435 3436 3437 3438 3439 3440
		/*
		 * Deletion of logical drive is a special case. The adapter
		 * should be quiescent before this command is issued.
		 */
		if( uioc.uioc_rmbox[0] == FC_DEL_LOGDRV &&
				uioc.uioc_rmbox[2] == OP_DEL_LOGDRV ) {
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3442 3443 3444 3445 3446 3447
			/*
			 * Do we support this feature
			 */
			if( !adapter->support_random_del ) {
				printk(KERN_WARNING "megaraid: logdrv ");
				printk("delete on non-supporting F/W.\n");
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3449 3450
				return (-EINVAL);
			}
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3451

3452
			rval = mega_del_logdrv( adapter, uioc.uioc_rmbox[3] );
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3454 3455
			if( rval == 0 ) {
				memset(&mc, 0, sizeof(megacmd_t));
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3457
				mc.status = rval;
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3459 3460
				rval = mega_n_to_m((void *)arg, &mc);
			}
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3462
			return rval;
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3463
		}
3464 3465 3466 3467 3468 3469
		/*
		 * This interface only support the regular passthru commands.
		 * Reject extended passthru and 64-bit passthru
		 */
		if( uioc.uioc_rmbox[0] == MEGA_MBOXCMD_PASSTHRU64 ||
			uioc.uioc_rmbox[0] == MEGA_MBOXCMD_EXTPTHRU ) {
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3471
			printk(KERN_WARNING "megaraid: rejected passthru.\n");
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3473 3474
			return (-EINVAL);
		}
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3476
		/*
3477 3478
		 * For all internal commands, the buffer must be allocated in
		 * <4GB address range
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3479
		 */
3480 3481
		if( make_local_pdev(adapter, &pdev) != 0 )
			return -EIO;
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3483 3484 3485 3486 3487 3488 3489
		/* Is it a passthru command or a DCMD */
		if( uioc.uioc_rmbox[0] == MEGA_MBOXCMD_PASSTHRU ) {
			/* Passthru commands */

			pthru = pci_alloc_consistent(pdev,
					sizeof(mega_passthru),
					&pthru_dma_hndl);
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3491 3492 3493
			if( pthru == NULL ) {
				free_local_pdev(pdev);
				return (-ENOMEM);
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			}

3496 3497 3498 3499
			/*
			 * The user passthru structure
			 */
			upthru = (mega_passthru *)MBOX(uioc)->xferaddr;
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3501 3502 3503 3504 3505
			/*
			 * Copy in the user passthru here.
			 */
			if( copy_from_user(pthru, (char *)upthru,
						sizeof(mega_passthru)) ) {
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3507 3508 3509
				pci_free_consistent(pdev,
						sizeof(mega_passthru), pthru,
						pthru_dma_hndl);
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3511
				free_local_pdev(pdev);
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3513 3514
				return (-EFAULT);
			}
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			/*
			 * Is there a data transfer
			 */
			if( pthru->dataxferlen ) {
				data = pci_alloc_consistent(pdev,
						pthru->dataxferlen,
						&data_dma_hndl);
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3524 3525 3526 3527 3528
				if( data == NULL ) {
					pci_free_consistent(pdev,
							sizeof(mega_passthru),
							pthru,
							pthru_dma_hndl);
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3530
					free_local_pdev(pdev);
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3532 3533
					return (-ENOMEM);
				}
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				/*
				 * Save the user address and point the kernel
				 * address at just allocated memory
				 */
				uxferaddr = pthru->dataxferaddr;
				pthru->dataxferaddr = data_dma_hndl;
			}
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3544 3545 3546 3547 3548 3549 3550 3551 3552 3553 3554 3555 3556
			/*
			 * Is data coming down-stream
			 */
			if( pthru->dataxferlen && (uioc.flags & UIOC_WR) ) {
				/*
				 * Get the user data
				 */
				if( copy_from_user(data, (char *)uxferaddr,
							pthru->dataxferlen) ) {
					rval = (-EFAULT);
					goto freemem_and_return;
				}
			}
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3558
			memset(&mc, 0, sizeof(megacmd_t));
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3560 3561
			mc.cmd = MEGA_MBOXCMD_PASSTHRU;
			mc.xferaddr = (u32)pthru_dma_hndl;
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3563 3564 3565 3566
			/*
			 * Issue the command
			 */
			mega_internal_command(adapter, LOCK_INT, &mc, pthru);
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3568
			rval = mega_n_to_m((void *)arg, &mc);
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3570
			if( rval ) goto freemem_and_return;
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3572 3573 3574 3575 3576 3577 3578 3579

			/*
			 * Is data going up-stream
			 */
			if( pthru->dataxferlen && (uioc.flags & UIOC_RD) ) {
				if( copy_to_user((char *)uxferaddr, data,
							pthru->dataxferlen) ) {
					rval = (-EFAULT);
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				}
			}
3582 3583 3584 3585 3586 3587 3588 3589 3590 3591 3592 3593 3594 3595 3596 3597 3598 3599 3600 3601 3602

			/*
			 * Send the request sense data also, irrespective of
			 * whether the user has asked for it or not.
			 */
			copy_to_user(upthru->reqsensearea,
					pthru->reqsensearea, 14);

freemem_and_return:
			if( pthru->dataxferlen ) {
				pci_free_consistent(pdev,
						pthru->dataxferlen, data,
						data_dma_hndl);
			}

			pci_free_consistent(pdev, sizeof(mega_passthru),
					pthru, pthru_dma_hndl);

			free_local_pdev(pdev);

			return rval;
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		}
3604 3605
		else {
			/* DCMD commands */
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			/*
			 * Is there a data transfer
			 */
			if( uioc.xferlen ) {
				data = pci_alloc_consistent(pdev,
						uioc.xferlen, &data_dma_hndl);
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3614 3615 3616 3617
				if( data == NULL ) {
					free_local_pdev(pdev);
					return (-ENOMEM);
				}
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3619 3620
				uxferaddr = MBOX(uioc)->xferaddr;
			}
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3621

3622 3623 3624 3625 3626 3627 3628 3629 3630
			/*
			 * Is data coming down-stream
			 */
			if( uioc.xferlen && (uioc.flags & UIOC_WR) ) {
				/*
				 * Get the user data
				 */
				if( copy_from_user(data, (char *)uxferaddr,
							uioc.xferlen) ) {
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3632 3633 3634
					pci_free_consistent(pdev,
							uioc.xferlen,
							data, data_dma_hndl);
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3636 3637 3638 3639 3640
					free_local_pdev(pdev);

					return (-EFAULT);
				}
			}
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3641

3642
			memcpy(&mc, MBOX(uioc), sizeof(megacmd_t));
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3643

3644 3645 3646 3647 3648 3649
			mc.xferaddr = (u32)data_dma_hndl;

			/*
			 * Issue the command
			 */
			mega_internal_command(adapter, LOCK_INT, &mc, NULL);
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3650

3651
			rval = mega_n_to_m((void *)arg, &mc);
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3652

3653 3654 3655 3656 3657 3658
			if( rval ) {
				if( uioc.xferlen ) {
					pci_free_consistent(pdev,
							uioc.xferlen, data,
							data_dma_hndl);
				}
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3660 3661 3662
				free_local_pdev(pdev);

				return rval;
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3663 3664
			}

3665 3666 3667 3668 3669 3670 3671 3672 3673 3674
			/*
			 * Is data going up-stream
			 */
			if( uioc.xferlen && (uioc.flags & UIOC_RD) ) {
				if( copy_to_user((char *)uxferaddr, data,
							uioc.xferlen) ) {

					rval = (-EFAULT);
				}
			}
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3676 3677 3678 3679 3680
			if( uioc.xferlen ) {
				pci_free_consistent(pdev,
						uioc.xferlen, data,
						data_dma_hndl);
			}
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3682
			free_local_pdev(pdev);
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3684 3685
			return rval;
		}
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3687 3688 3689
	default:
		return (-EINVAL);
	}
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3691
	return 0;
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3692 3693
}

3694 3695 3696 3697 3698 3699 3700 3701 3702 3703 3704 3705
/**
 * mega_m_to_n()
 * @arg - user address
 * @uioc - new ioctl structure
 *
 * A thin layer to convert older mimd interface ioctl structure to NIT ioctl
 * structure
 *
 * Converts the older mimd ioctl structure to newer NIT structure
 */
static int
mega_m_to_n(void *arg, nitioctl_t *uioc)
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{
3707 3708 3709 3710
	struct uioctl_t	uioc_mimd;
	char	signature[8] = {0};
	u8	opcode;
	u8	subopcode;
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3713 3714 3715 3716 3717 3718
	/*
	 * check is the application conforms to NIT. We do not have to do much
	 * in that case.
	 * We exploit the fact that the signature is stored in the very
	 * begining of the structure.
	 */
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3719

3720 3721
	if( copy_from_user(signature, (char *)arg, 7) )
		return (-EFAULT);
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3722

3723
	if( memcmp(signature, "MEGANIT", 7) == 0 ) {
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3724

3725 3726 3727 3728 3729 3730 3731 3732 3733 3734 3735 3736 3737
		/*
		 * NOTE NOTE: The nit ioctl is still under flux because of
		 * change of mailbox definition, in HPE. No applications yet
		 * use this interface and let's not have applications use this
		 * interface till the new specifitions are in place.
		 */
		return -EINVAL;
#if 0
		if( copy_from_user(uioc, (char *)arg, sizeof(nitioctl_t)) )
			return (-EFAULT);
		return 0;
#endif
	}
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3739 3740 3741 3742 3743 3744 3745
	/*
	 * Else assume we have mimd uioctl_t as arg. Convert to nitioctl_t
	 *
	 * Get the user ioctl structure
	 */
	if( copy_from_user(&uioc_mimd, (char *)arg, sizeof(struct uioctl_t)) )
		return (-EFAULT);
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3746 3747


3748 3749 3750 3751 3752
	/*
	 * Get the opcode and subopcode for the commands
	 */
	opcode = uioc_mimd.ui.fcs.opcode;
	subopcode = uioc_mimd.ui.fcs.subopcode;
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3754 3755
	switch (opcode) {
	case 0x82:
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3756

3757
		switch (subopcode) {
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3759 3760 3761 3762
		case MEGAIOC_QDRVRVER:	/* Query driver version */
			uioc->opcode = GET_DRIVER_VER;
			uioc->uioc_uaddr = uioc_mimd.data;
			break;
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3764 3765 3766 3767
		case MEGAIOC_QNADAP:	/* Get # of adapters */
			uioc->opcode = GET_N_ADAP;
			uioc->uioc_uaddr = uioc_mimd.data;
			break;
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3769 3770 3771 3772 3773
		case MEGAIOC_QADAPINFO:	/* Get adapter information */
			uioc->opcode = GET_ADAP_INFO;
			uioc->adapno = uioc_mimd.ui.fcs.adapno;
			uioc->uioc_uaddr = uioc_mimd.data;
			break;
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3775 3776 3777
		default:
			return(-EINVAL);
		}
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3779
		break;
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3780 3781


3782
	case 0x81:
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3783

3784 3785
		uioc->opcode = MBOX_CMD;
		uioc->adapno = uioc_mimd.ui.fcs.adapno;
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3786

3787
		memcpy(uioc->uioc_rmbox, uioc_mimd.mbox, 18);
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3788

3789
		uioc->xferlen = uioc_mimd.ui.fcs.length;
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3791 3792
		if( uioc_mimd.outlen ) uioc->flags = UIOC_RD;
		if( uioc_mimd.inlen ) uioc->flags |= UIOC_WR;
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3793

3794
		break;
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3795

3796
	case 0x80:
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3798 3799
		uioc->opcode = MBOX_CMD;
		uioc->adapno = uioc_mimd.ui.fcs.adapno;
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3801
		memcpy(uioc->uioc_rmbox, uioc_mimd.mbox, 18);
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3803 3804 3805 3806 3807
		/*
		 * Choose the xferlen bigger of input and output data
		 */
		uioc->xferlen = uioc_mimd.outlen > uioc_mimd.inlen ?
			uioc_mimd.outlen : uioc_mimd.inlen;
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		if( uioc_mimd.outlen ) uioc->flags = UIOC_RD;
		if( uioc_mimd.inlen ) uioc->flags |= UIOC_WR;
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3812
		break;
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3814 3815
	default:
		return (-EINVAL);
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	}

3819
	return 0;
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3820
}
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/*
 * mega_n_to_m()
 * @arg - user address
 * @mc - mailbox command
 *
 * Updates the status information to the application, depending on application
 * conforms to older mimd ioctl interface or newer NIT ioctl interface
 */
static int
mega_n_to_m(void *arg, megacmd_t *mc)
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3832
{
3833 3834 3835 3836 3837
	nitioctl_t	*uiocp;
	megacmd_t	*umc;
	mega_passthru	*upthru;
	struct uioctl_t	*uioc_mimd;
	char	signature[8] = {0};
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3839 3840 3841 3842 3843
	/*
	 * check is the application conforms to NIT.
	 */
	if( copy_from_user(signature, (char *)arg, 7) )
		return -EFAULT;
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3845
	if( memcmp(signature, "MEGANIT", 7) == 0 ) {
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3847
		uiocp = (nitioctl_t *)arg;
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3849 3850
		if( put_user(mc->status, (u8 *)&MBOX_P(uiocp)->status) )
			return (-EFAULT);
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3852
		if( mc->cmd == MEGA_MBOXCMD_PASSTHRU ) {
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3853

3854
			umc = MBOX_P(uiocp);
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3856
			upthru = (mega_passthru *)umc->xferaddr;
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3858 3859 3860
			if( put_user(mc->status, (u8 *)&upthru->scsistatus) )
				return (-EFAULT);
		}
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	}
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	else {
3863
		uioc_mimd = (struct uioctl_t *)arg;
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3865 3866
		if( put_user(mc->status, (u8 *)&uioc_mimd->mbox[17]) )
			return (-EFAULT);
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3868
		if( mc->cmd == MEGA_MBOXCMD_PASSTHRU ) {
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3870
			umc = (megacmd_t *)uioc_mimd->mbox;
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3872 3873 3874 3875 3876
			upthru = (mega_passthru *)umc->xferaddr;

			if( put_user(mc->status, (u8 *)&upthru->scsistatus) )
				return (-EFAULT);
		}
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3877
	}
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	return 0;
}

3882 3883 3884 3885

/*
 * MEGARAID 'FW' commands.
 */
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3887 3888 3889 3890 3891 3892 3893 3894 3895
/**
 * mega_is_bios_enabled()
 * @adapter - pointer to our soft state
 *
 * issue command to find out if the BIOS is enabled for this controller
 */
static int
mega_is_bios_enabled(adapter_t *adapter)
{
3896
	unsigned char	raw_mbox[sizeof(struct mbox_out)];
3897 3898
	mbox_t	*mbox;
	int	ret;
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3900
	mbox = (mbox_t *)raw_mbox;
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3901

3902
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
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3903

3904
	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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3906
	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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3908 3909
	raw_mbox[0] = IS_BIOS_ENABLED;
	raw_mbox[2] = GET_BIOS;
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3912
	ret = issue_scb_block(adapter, raw_mbox);
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3914
	return *(char *)adapter->mega_buffer;
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}


3918 3919 3920 3921 3922 3923 3924
/**
 * mega_enum_raid_scsi()
 * @adapter - pointer to our soft state
 *
 * Find out what channels are RAID/SCSI. This information is used to
 * differentiate the virtual channels and physical channels and to support
 * ROMB feature and non-disk devices.
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3925
 */
3926 3927
static void
mega_enum_raid_scsi(adapter_t *adapter)
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3928
{
3929
	unsigned char raw_mbox[sizeof(struct mbox_out)];
3930
	mbox_t *mbox;
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3931 3932
	int i;

3933 3934
	mbox = (mbox_t *)raw_mbox;

3935
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
3936 3937 3938 3939 3940 3941

	/*
	 * issue command to find out what channels are raid/scsi
	 */
	raw_mbox[0] = CHNL_CLASS;
	raw_mbox[2] = GET_CHNL_CLASS;
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3942

3943
	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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3944

3945
	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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3947 3948 3949 3950 3951
	/*
	 * Non-ROMB firware fail this command, so all channels
	 * must be shown RAID
	 */
	adapter->mega_ch_class = 0xFF;
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3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965
	if(!issue_scb_block(adapter, raw_mbox)) {
		adapter->mega_ch_class = *((char *)adapter->mega_buffer);

	}

	for( i = 0; i < adapter->product_info.nchannels; i++ ) { 
		if( (adapter->mega_ch_class >> i) & 0x01 ) {
			printk(KERN_INFO "megaraid: channel[%d] is raid.\n",
					i);
		}
		else {
			printk(KERN_INFO "megaraid: channel[%d] is scsi.\n",
					i);
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3966 3967
		}
	}
3968 3969

	return;
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3970 3971
}

3972 3973 3974 3975 3976 3977 3978 3979 3980 3981

/**
 * mega_get_boot_drv()
 * @adapter - pointer to our soft state
 *
 * Find out which device is the boot device. Note, any logical drive or any
 * phyical device (e.g., a CDROM) can be designated as a boot device.
 */
static void
mega_get_boot_drv(adapter_t *adapter)
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3982
{
3983
	struct private_bios_data	*prv_bios_data;
3984
	unsigned char	raw_mbox[sizeof(struct mbox_out)];
3985 3986 3987 3988 3989
	mbox_t	*mbox;
	u16	cksum = 0;
	u8	*cksum_p;
	u8	boot_pdrv;
	int	i;
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3991
	mbox = (mbox_t *)raw_mbox;
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3993
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
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3995 3996
	raw_mbox[0] = BIOS_PVT_DATA;
	raw_mbox[2] = GET_BIOS_PVT_DATA;
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3997

3998
	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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4000
	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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4001

4002 4003
	adapter->boot_ldrv_enabled = 0;
	adapter->boot_ldrv = 0;
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4005 4006 4007
	adapter->boot_pdrv_enabled = 0;
	adapter->boot_pdrv_ch = 0;
	adapter->boot_pdrv_tgt = 0;
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4009 4010 4011
	if(issue_scb_block(adapter, raw_mbox) == 0) {
		prv_bios_data =
			(struct private_bios_data *)adapter->mega_buffer;
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4013 4014 4015 4016
		cksum = 0;
		cksum_p = (char *)prv_bios_data;
		for (i = 0; i < 14; i++ ) {
			cksum += (u16)(*cksum_p++);
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		}
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4018

4019
		if (prv_bios_data->cksum == (u16)(0-cksum) ) {
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4020 4021

			/*
4022 4023
			 * If MSB is set, a physical drive is set as boot
			 * device
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4024
			 */
4025 4026 4027 4028 4029 4030 4031 4032 4033 4034
			if( prv_bios_data->boot_drv & 0x80 ) {
				adapter->boot_pdrv_enabled = 1;
				boot_pdrv = prv_bios_data->boot_drv & 0x7F;
				adapter->boot_pdrv_ch = boot_pdrv / 16;
				adapter->boot_pdrv_tgt = boot_pdrv % 16;
			}
			else {
				adapter->boot_ldrv_enabled = 1;
				adapter->boot_ldrv = prv_bios_data->boot_drv;
			}
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4035 4036 4037 4038 4039
		}
	}

}

4040 4041 4042 4043 4044 4045
/**
 * mega_support_random_del()
 * @adapter - pointer to our soft state
 *
 * Find out if this controller supports random deletion and addition of
 * logical drives
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4046
 */
4047 4048
static int
mega_support_random_del(adapter_t *adapter)
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4049
{
4050
	unsigned char raw_mbox[sizeof(struct mbox_out)];
4051 4052
	mbox_t *mbox;
	int rval;
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4053

4054
	mbox = (mbox_t *)raw_mbox;
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4056
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
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4057 4058

	/*
4059
	 * issue command
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4060
	 */
4061 4062
	raw_mbox[0] = FC_DEL_LOGDRV;
	raw_mbox[2] = OP_SUP_DEL_LOGDRV;
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4063

4064
	rval = issue_scb_block(adapter, raw_mbox);
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4066
	return !rval;
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}

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4070 4071 4072 4073 4074 4075 4076 4077 4078
/**
 * mega_support_ext_cdb()
 * @adapter - pointer to our soft state
 *
 * Find out if this firmware support cdblen > 10
 */
static int
mega_support_ext_cdb(adapter_t *adapter)
{
4079
	unsigned char raw_mbox[sizeof(struct mbox_out)];
4080 4081
	mbox_t *mbox;
	int rval;
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4082

4083
	mbox = (mbox_t *)raw_mbox;
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4085
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
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4086
	/*
4087
	 * issue command to find out if controller supports extended CDBs.
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4088
	 */
4089 4090
	raw_mbox[0] = 0xA4;
	raw_mbox[2] = 0x16;
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4091

4092
	rval = issue_scb_block(adapter, raw_mbox);
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4094 4095 4096 4097 4098 4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112
	return !rval;
}


/**
 * mega_del_logdrv()
 * @adapter - pointer to our soft state
 * @logdrv - logical drive to be deleted
 *
 * Delete the specified logical drive. It is the responsibility of the user
 * app to let the OS know about this operation.
 */
static int
mega_del_logdrv(adapter_t *adapter, int logdrv)
{
	DECLARE_WAIT_QUEUE_HEAD(wq);
	unsigned long flags;
	scb_t *scb;
	int rval;
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4113 4114

	/*
4115 4116
	 * Stop sending commands to the controller, queue them internally.
	 * When deletion is complete, ISR will flush the queue.
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4117
	 */
4118
	atomic_set(&adapter->quiescent, 1);
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4119 4120

	/*
4121 4122
	 * Wait till all the issued commands are complete and there are no
	 * commands in the pending queue
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	 */
4124 4125
	while( atomic_read(&adapter->pend_cmds) > 0 ||
			!list_empty(&adapter->pending_list) ) {
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		sleep_on_timeout( &wq, 1*HZ );	/* sleep for 1s */
	}
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4130
	rval = mega_do_del_logdrv(adapter, logdrv);
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4131

4132
	spin_lock_irqsave(&adapter->lock, flags);
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	/*
	 * If delete operation was successful, add 0x80 to the logical drive
	 * ids for commands in the pending queue.
	 */
	if (adapter->read_ldidmap) {
		struct list_head *pos;
		list_for_each(pos, &adapter->pending_list) {
			scb = list_entry(pos, scb_t, list);
			if (scb->pthru->logdrv < 0x80 )
				scb->pthru->logdrv += 0x80;
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		}
4145
	}
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4147
	atomic_set(&adapter->quiescent, 0);
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4149
	mega_runpendq(adapter);
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4151
	spin_unlock_irqrestore(&adapter->lock, flags);
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	return rval;
}
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static int
mega_do_del_logdrv(adapter_t *adapter, int logdrv)
{
	megacmd_t	mc;
	int	rval;
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	memset( &mc, 0, sizeof(megacmd_t));
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	mc.cmd = FC_DEL_LOGDRV;
	mc.opcode = OP_DEL_LOGDRV;
	mc.subopcode = logdrv;
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4169
	rval = mega_internal_command(adapter, LOCK_INT, &mc, NULL);
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	/* log this event */
	if(rval) {
		printk(KERN_WARNING "megaraid: Delete LD-%d failed.", logdrv);
		return rval;
	}
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	/*
	 * After deleting first logical drive, the logical drives must be
	 * addressed by adding 0x80 to the logical drive id.
	 */
	adapter->read_ldidmap = 1;
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	return rval;
}
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/**
 * mega_get_max_sgl()
 * @adapter - pointer to our soft state
 *
 * Find out the maximum number of scatter-gather elements supported by this
 * version of the firmware
 */
static void
mega_get_max_sgl(adapter_t *adapter)
{
4197
	unsigned char	raw_mbox[sizeof(struct mbox_out)];
4198
	mbox_t	*mbox;
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	mbox = (mbox_t *)raw_mbox;
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	memset(mbox, 0, sizeof(raw_mbox));
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4204
	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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4206
	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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	raw_mbox[0] = MAIN_MISC_OPCODE;
	raw_mbox[2] = GET_MAX_SG_SUPPORT;
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4212
	if( issue_scb_block(adapter, raw_mbox) ) {
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		/*
4214
		 * f/w does not support this command. Choose the default value
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		 */
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		adapter->sglen = MIN_SGLIST;
	}
	else {
		adapter->sglen = *((char *)adapter->mega_buffer);
		
		/*
		 * Make sure this is not more than the resources we are
		 * planning to allocate
		 */
		if ( adapter->sglen > MAX_SGLIST )
			adapter->sglen = MAX_SGLIST;
	}
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	return;
}
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/**
 * mega_support_cluster()
 * @adapter - pointer to our soft state
 *
 * Find out if this firmware support cluster calls.
 */
static int
mega_support_cluster(adapter_t *adapter)
{
4242
	unsigned char	raw_mbox[sizeof(struct mbox_out)];
4243
	mbox_t	*mbox;
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4245
	mbox = (mbox_t *)raw_mbox;
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4246

4247
	memset(mbox, 0, sizeof(raw_mbox));
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4249
	memset((void *)adapter->mega_buffer, 0, MEGA_BUFFER_SIZE);
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4251
	mbox->m_out.xferaddr = (u32)adapter->buf_dma_handle;
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	/*
	 * Try to get the initiator id. This command will succeed iff the
	 * clustering is available on this HBA.
	 */
	raw_mbox[0] = MEGA_GET_TARGET_ID;
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4259
	if( issue_scb_block(adapter, raw_mbox) == 0 ) {
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		/*
4262 4263
		 * Cluster support available. Get the initiator target id.
		 * Tell our id to mid-layer too.
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		 */
4265 4266
		adapter->this_id = *(u32 *)adapter->mega_buffer;
		adapter->host->this_id = adapter->this_id;
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		return 1;
	}
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	return 0;
}
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/**
 * mega_get_ldrv_num()
 * @adapter - pointer to our soft state
 * @cmd - scsi mid layer command
 * @channel - channel on the controller
 *
 * Calculate the logical drive number based on the information in scsi command
 * and the channel number.
 */
static inline int
mega_get_ldrv_num(adapter_t *adapter, Scsi_Cmnd *cmd, int channel)
{
	int		tgt;
	int		ldrv_num;
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	tgt = cmd->device->id;
	
	if ( tgt > adapter->this_id )
		tgt--;	/* we do not get inquires for initiator id */
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4296
	ldrv_num = (channel * 15) + tgt;
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	/*
	 * If we have a logical drive with boot enabled, project it first
	 */
	if( adapter->boot_ldrv_enabled ) {
		if( ldrv_num == 0 ) {
			ldrv_num = adapter->boot_ldrv;
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		}
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		else {
			if( ldrv_num <= adapter->boot_ldrv ) {
				ldrv_num--;
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			}
		}
4311
	}
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	/*
	 * If "delete logical drive" feature is enabled on this controller.
	 * Do only if at least one delete logical drive operation was done.
	 *
	 * Also, after logical drive deletion, instead of logical drive number,
	 * the value returned should be 0x80+logical drive id.
	 *
	 * These is valid only for IO commands.
	 */
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	if (adapter->support_random_del && adapter->read_ldidmap )
		switch (cmd->cmnd[0]) {
		case READ_6:	/* fall through */
		case WRITE_6:	/* fall through */
		case READ_10:	/* fall through */
		case WRITE_10:
			ldrv_num += 0x80;
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		}

4332 4333
	return ldrv_num;
}
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/**
 * mega_adapinq()
 * @adapter - pointer to our soft state
 * @dma_handle - DMA address of the buffer
 *
 * Issue internal comamnds while interrupts are available.
 * We only issue direct mailbox commands from within the driver. ioctl()
 * interface using these routines can issue passthru commands.
 */
static int
mega_adapinq(adapter_t *adapter, dma_addr_t dma_handle)
{
	megacmd_t	mc;

	memset(&mc, 0, sizeof(megacmd_t));
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	if( adapter->flag & BOARD_40LD ) {
		mc.cmd = FC_NEW_CONFIG;
		mc.opcode = NC_SUBOP_ENQUIRY3;
		mc.subopcode = ENQ3_GET_SOLICITED_FULL;
	}
	else {
		mc.cmd = MEGA_MBOXCMD_ADPEXTINQ;
	}
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4361
	mc.xferaddr = (u32)dma_handle;
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4363 4364 4365
	if ( mega_internal_command(adapter, LOCK_INT, &mc, NULL) != 0 ) {
		return -1;
	}
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	return 0;
}

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/**
 * mega_allocate_inquiry()
 * @dma_handle - handle returned for dma address
 * @pdev - handle to pci device
 *
 * allocates memory for inquiry structure
 */
static inline caddr_t
mega_allocate_inquiry(dma_addr_t *dma_handle, struct pci_dev *pdev)
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{
4381
	return pci_alloc_consistent(pdev, sizeof(mega_inquiry3), dma_handle);
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}

4384 4385 4386

static inline void
mega_free_inquiry(caddr_t inquiry, dma_addr_t dma_handle, struct pci_dev *pdev)
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{
4388 4389
	pci_free_consistent(pdev, sizeof(mega_inquiry3), inquiry, dma_handle);
}
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/** mega_internal_dev_inquiry()
 * @adapter - pointer to our soft state
 * @ch - channel for this device
 * @tgt - ID of this device
 * @buf_dma_handle - DMA address of the buffer
 *
 * Issue the scsi inquiry for the specified device.
 */
static int
mega_internal_dev_inquiry(adapter_t *adapter, u8 ch, u8 tgt,
		dma_addr_t buf_dma_handle)
{
	mega_passthru	*pthru;
	dma_addr_t	pthru_dma_handle;
	megacmd_t	mc;
	int		rval;
	struct pci_dev	*pdev;
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	/*
4412 4413
	 * For all internal commands, the buffer must be allocated in <4GB
	 * address range
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	 */
4415
	if( make_local_pdev(adapter, &pdev) != 0 ) return -1;
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4417 4418
	pthru = pci_alloc_consistent(pdev, sizeof(mega_passthru),
			&pthru_dma_handle);
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4420 4421 4422 4423
	if( pthru == NULL ) {
		free_local_pdev(pdev);
		return -1;
	}
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4425 4426 4427 4428
	pthru->timeout = 2;
	pthru->ars = 1;
	pthru->reqsenselen = 14;
	pthru->islogical = 0;
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4430
	pthru->channel = (adapter->flag & BOARD_40LD) ? 0 : ch;
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4432
	pthru->target = (adapter->flag & BOARD_40LD) ? (ch << 4)|tgt : tgt;
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4434
	pthru->cdblen = 6;
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4436 4437 4438 4439 4440 4441
	pthru->cdb[0] = INQUIRY;
	pthru->cdb[1] = 0;
	pthru->cdb[2] = 0;
	pthru->cdb[3] = 0;
	pthru->cdb[4] = 255;
	pthru->cdb[5] = 0;
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4444 4445
	pthru->dataxferaddr = (u32)buf_dma_handle;
	pthru->dataxferlen = 256;
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4447 4448 4449 4450 4451 4452
	memset(&mc, 0, sizeof(megacmd_t));

	mc.cmd = MEGA_MBOXCMD_PASSTHRU;
	mc.xferaddr = (u32)pthru_dma_handle;

	rval = mega_internal_command(adapter, LOCK_INT, &mc, pthru);
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4454 4455
	pci_free_consistent(pdev, sizeof(mega_passthru), pthru,
			pthru_dma_handle);
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4457 4458 4459
	free_local_pdev(pdev);

	return rval;
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}


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/**
 * mega_internal_command()
 * @adapter - pointer to our soft state
 * @ls - the scope of the exclusion lock.
 * @mc - the mailbox command
 * @pthru - Passthru structure for DCDB commands
 *
 * Issue the internal commands in interrupt mode.
 * The last argument is the address of the passthru structure if the command
 * to be fired is a passthru command
 *
 * lockscope specifies whether the caller has already acquired the lock. Of
 * course, the caller must know which lock we are talking about.
 *
 * Note: parameter 'pthru' is null for non-passthru commands.
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 */
static int
4480 4481
mega_internal_command(adapter_t *adapter, lockscope_t ls, megacmd_t *mc,
		mega_passthru *pthru )
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{
4483 4484 4485 4486 4487
	Scsi_Cmnd	*scmd;
	struct	scsi_device *sdev;
	unsigned long	flags = 0;
	scb_t	*scb;
	int	rval;
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	/*
4490 4491 4492
	 * The internal commands share one command id and hence are
	 * serialized. This is so because we want to reserve maximum number of
	 * available command ids for the I/O commands.
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4493
	 */
4494
	down(&adapter->int_mtx);
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4496 4497
	scb = &adapter->int_scb;
	memset(scb, 0, sizeof(scb_t));
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4499 4500
	scmd = &adapter->int_scmd;
	memset(scmd, 0, sizeof(Scsi_Cmnd));
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	sdev = kmalloc(sizeof(struct scsi_device), GFP_KERNEL);
	memset(sdev, 0, sizeof(struct scsi_device));
	scmd->device = sdev;

	scmd->device->host = adapter->host;
	scmd->buffer = (void *)scb;
	scmd->cmnd[0] = MEGA_INTERNAL_CMD;

	scb->state |= SCB_ACTIVE;
	scb->cmd = scmd;

	memcpy(scb->raw_mbox, mc, sizeof(megacmd_t));
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	/*
4516
	 * Is it a passthru command
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	 */
4518
	if( mc->cmd == MEGA_MBOXCMD_PASSTHRU ) {
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4520
		scb->pthru = pthru;
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	}

4523 4524 4525 4526
	scb->idx = CMDID_INT_CMDS;

	scmd->state = 0;

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	/*
4528
	 * Get the lock only if the caller has not acquired it already
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	 */
4530
	if( ls == LOCK_INT ) spin_lock_irqsave(&adapter->lock, flags);
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4532
	megaraid_queue(scmd, mega_internal_done);
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4534
	if( ls == LOCK_INT ) spin_unlock_irqrestore(&adapter->lock, flags);
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	/*
4537 4538 4539
	 * Wait till this command finishes. Do not use
	 * wait_event_interruptible(). It causes panic if CTRL-C is hit when
	 * dumping e.g., physical disk information through /proc interface.
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4540
	 */
4541 4542
#if 0
	wait_event_interruptible(adapter->int_waitq, scmd->state);
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#endif
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	wait_event(adapter->int_waitq, scmd->state);

	rval = scmd->result;
	mc->status = scmd->result;
	kfree(sdev);

	/*
	 * Print a debug message for all failed commands. Applications can use
	 * this information.
	 */
	if( scmd->result && trace_level ) {
		printk("megaraid: cmd [%x, %x, %x] status:[%x]\n",
			mc->cmd, mc->opcode, mc->subopcode, scmd->result);
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	}

4559
	up(&adapter->int_mtx);
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	return rval;
}


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/**
 * mega_internal_done()
 * @scmd - internal scsi command
 *
 * Callback routine for internal commands.
 */
static void
mega_internal_done(Scsi_Cmnd *scmd)
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{
4574
	adapter_t	*adapter;
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4576
	adapter = (adapter_t *)scmd->device->host->hostdata;
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4578
	scmd->state = 1; /* thread waiting for its command to complete */
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	/*
4581 4582
	 * See comment in mega_internal_command() routine for
	 * wait_event_interruptible()
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	 */
4584 4585 4586 4587
#if 0
	wake_up_interruptible(&adapter->int_waitq);
#endif
	wake_up(&adapter->int_waitq);
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}

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static inline int
make_local_pdev(adapter_t *adapter, struct pci_dev **pdev)
{
	*pdev = kmalloc(sizeof(struct pci_dev), GFP_KERNEL);
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4597
	if( *pdev == NULL ) return -1;
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4599
	memcpy(*pdev, adapter->dev, sizeof(struct pci_dev));
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	if( pci_set_dma_mask(*pdev, 0xffffffff) != 0 ) {
		kfree(*pdev);
		return -1;
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	}

4606
	return 0;
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}

4609 4610
static inline void
free_local_pdev(struct pci_dev *pdev)
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{
4612
	kfree(pdev);
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}

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static struct scsi_host_template megaraid_template = {
	.name				= "MegaRAID",
	.proc_name			= "megaraid",
	.info				= megaraid_info,
	.queuecommand			= megaraid_queue,	
	.bios_param			= megaraid_biosparam,
	.max_sectors			= MAX_SECTORS_PER_IO,
	.can_queue			= MAX_COMMANDS,
	.this_id			= DEFAULT_INITIATOR_ID,
	.sg_tablesize			= MAX_SGLIST,
	.cmd_per_lun			= DEF_CMD_PER_LUN,
	.use_clustering			= ENABLE_CLUSTERING,
	.eh_abort_handler		= megaraid_abort,
	.eh_device_reset_handler	= megaraid_reset,
	.eh_bus_reset_handler		= megaraid_reset,
	.eh_host_reset_handler		= megaraid_reset,
};

static int __devinit
megaraid_probe_one(struct pci_dev *pdev, const struct pci_device_id *id)
{
	struct Scsi_Host *host;
	adapter_t *adapter;
	unsigned long mega_baseport, tbase, flag = 0;
	u16 subsysid, subsysvid;
	u8 pci_bus, pci_dev_func;
	int irq, i, j;
	int error = -ENODEV;

	if (pci_enable_device(pdev))
		goto out;

	pci_bus = pdev->bus->number;
	pci_dev_func = pdev->devfn;

	/*
	 * For these vendor and device ids, signature offsets are not
	 * valid and 64 bit is implicit
	 */
	if (id->driver_data & BOARD_64BIT)
		flag |= BOARD_64BIT;
	else {
		u32 magic64;

		pci_read_config_dword(pdev, PCI_CONF_AMISIG64, &magic64);
		if (magic64 == HBA_SIGNATURE_64BIT)
			flag |= BOARD_64BIT;
	}

	subsysvid = pdev->subsystem_vendor;
	subsysid = pdev->subsystem_device;

	printk(KERN_NOTICE "megaraid: found 0x%4.04x:0x%4.04x:bus %d:",
		id->vendor, id->device, pci_bus);

	printk("slot %d:func %d\n",
		PCI_SLOT(pci_dev_func), PCI_FUNC(pci_dev_func));

	/* Read the base port and IRQ from PCI */
	mega_baseport = pci_resource_start(pdev, 0);
	irq = pdev->irq;

	tbase = mega_baseport;
	if (pci_resource_flags(pdev, 0) & IORESOURCE_MEM) {
		flag |= BOARD_MEMMAP;

		if (!request_mem_region(mega_baseport, 128, "megaraid")) {
			printk(KERN_WARNING "megaraid: mem region busy!\n");
			goto out_disable_device;
		}

		mega_baseport = (unsigned long)ioremap(mega_baseport, 128);
		if (!mega_baseport) {
			printk(KERN_WARNING
			       "megaraid: could not map hba memory\n");
			goto out_release_region;
		}
	} else {
		flag |= BOARD_IOMAP;
		mega_baseport += 0x10;

		if (!request_region(mega_baseport, 16, "megaraid"))
			goto out_disable_device;
	}

	/* Initialize SCSI Host structure */
	host = scsi_host_alloc(&megaraid_template, sizeof(adapter_t));
	if (!host)
		goto out_iounmap;

	adapter = (adapter_t *)host->hostdata;
	memset(adapter, 0, sizeof(adapter_t));

	printk(KERN_NOTICE
		"scsi%d:Found MegaRAID controller at 0x%lx, IRQ:%d\n",
		host->host_no, mega_baseport, irq);

	adapter->base = mega_baseport;

	INIT_LIST_HEAD(&adapter->free_list);
	INIT_LIST_HEAD(&adapter->pending_list);
	INIT_LIST_HEAD(&adapter->completed_list);

	adapter->flag = flag;
	spin_lock_init(&adapter->lock);
	scsi_assign_lock(host, &adapter->lock);

	host->cmd_per_lun = max_cmd_per_lun;
	host->max_sectors = max_sectors_per_io;

	adapter->dev = pdev;
	adapter->host = host;

	adapter->host->irq = irq;

	if (flag & BOARD_MEMMAP)
		adapter->host->base = tbase;
	else {
		adapter->host->io_port = tbase;
		adapter->host->n_io_port = 16;
	}

	adapter->host->unique_id = (pci_bus << 8) | pci_dev_func;

	/*
	 * Allocate buffer to issue internal commands.
	 */
	adapter->mega_buffer = pci_alloc_consistent(adapter->dev,
		MEGA_BUFFER_SIZE, &adapter->buf_dma_handle);
	if (!adapter->mega_buffer) {
		printk(KERN_WARNING "megaraid: out of RAM.\n");
		goto out_host_put;
	}

	adapter->scb_list = kmalloc(sizeof(scb_t) * MAX_COMMANDS, GFP_KERNEL);
	if (!adapter->scb_list) {
		printk(KERN_WARNING "megaraid: out of RAM.\n");
		goto out_free_cmd_buffer;
	}

	if (request_irq(irq, (adapter->flag & BOARD_MEMMAP) ?
				megaraid_isr_memmapped : megaraid_isr_iomapped,
					SA_SHIRQ, "megaraid", adapter)) {
		printk(KERN_WARNING
			"megaraid: Couldn't register IRQ %d!\n", irq);
		goto out_free_scb_list;
	}

	if (mega_setup_mailbox(adapter))
		goto out_free_irq;

	if (mega_query_adapter(adapter))
		goto out_free_mbox;

	/*
	 * Have checks for some buggy f/w
	 */
	if ((subsysid == 0x1111) && (subsysvid == 0x1111)) {
		/*
		 * Which firmware
		 */
		if (!strcmp(adapter->fw_version, "3.00") ||
				!strcmp(adapter->fw_version, "3.01")) {

			printk( KERN_WARNING
				"megaraid: Your  card is a Dell PERC "
				"2/SC RAID controller with  "
				"firmware\nmegaraid: 3.00 or 3.01.  "
				"This driver is known to have "
				"corruption issues\nmegaraid: with "
				"those firmware versions on this "
				"specific card.  In order\nmegaraid: "
				"to protect your data, please upgrade "
				"your firmware to version\nmegaraid: "
				"3.10 or later, available from the "
				"Dell Technical Support web\n"
				"megaraid: site at\nhttp://support."
				"dell.com/us/en/filelib/download/"
				"index.asp?fileid=2940\n"
			);
		}
	}

	/*
	 * If we have a HP 1M(0x60E7)/2M(0x60E8) controller with
	 * firmware H.01.07, H.01.08, and H.01.09 disable 64 bit
	 * support, since this firmware cannot handle 64 bit
	 * addressing
	 */
	if ((subsysvid == HP_SUBSYS_VID) &&
	    ((subsysid == 0x60E7) || (subsysid == 0x60E8))) {
		/*
		 * which firmware
		 */
		if (!strcmp(adapter->fw_version, "H01.07") ||
		    !strcmp(adapter->fw_version, "H01.08") ||
		    !strcmp(adapter->fw_version, "H01.09") ) {
			printk(KERN_WARNING
				"megaraid: Firmware H.01.07, "
				"H.01.08, and H.01.09 on 1M/2M "
				"controllers\n"
				"megaraid: do not support 64 bit "
				"addressing.\nmegaraid: DISABLING "
				"64 bit support.\n");
			adapter->flag &= ~BOARD_64BIT;
		}
	}

	if (mega_is_bios_enabled(adapter))
		mega_hbas[hba_count].is_bios_enabled = 1;
	mega_hbas[hba_count].hostdata_addr = adapter;

	/*
	 * Find out which channel is raid and which is scsi. This is
	 * for ROMB support.
	 */
	mega_enum_raid_scsi(adapter);

	/*
	 * Find out if a logical drive is set as the boot drive. If
	 * there is one, will make that as the first logical drive.
	 * ROMB: Do we have to boot from a physical drive. Then all
	 * the physical drives would appear before the logical disks.
	 * Else, all the physical drives would be exported to the mid
	 * layer after logical drives.
	 */
	mega_get_boot_drv(adapter);

	if (adapter->boot_pdrv_enabled) {
		j = adapter->product_info.nchannels;
		for( i = 0; i < j; i++ )
			adapter->logdrv_chan[i] = 0;
		for( i = j; i < NVIRT_CHAN + j; i++ )
			adapter->logdrv_chan[i] = 1;
	} else {
		for (i = 0; i < NVIRT_CHAN; i++)
			adapter->logdrv_chan[i] = 1;
		for (i = NVIRT_CHAN; i < MAX_CHANNELS+NVIRT_CHAN; i++)
			adapter->logdrv_chan[i] = 0;
		adapter->mega_ch_class <<= NVIRT_CHAN;
	}

	/*
	 * Do we support random deletion and addition of logical
	 * drives
	 */
	adapter->read_ldidmap = 0;	/* set it after first logdrv
						   delete cmd */
	adapter->support_random_del = mega_support_random_del(adapter);

	/* Initialize SCBs */
	if (mega_init_scb(adapter))
		goto out_free_mbox;

	/*
	 * Reset the pending commands counter
	 */
	atomic_set(&adapter->pend_cmds, 0);

	/*
	 * Reset the adapter quiescent flag
	 */
	atomic_set(&adapter->quiescent, 0);

	hba_soft_state[hba_count] = adapter;

	/*
	 * Fill in the structure which needs to be passed back to the
	 * application when it does an ioctl() for controller related
	 * information.
	 */
	i = hba_count;

	mcontroller[i].base = mega_baseport;
	mcontroller[i].irq = irq;
	mcontroller[i].numldrv = adapter->numldrv;
	mcontroller[i].pcibus = pci_bus;
	mcontroller[i].pcidev = id->device;
	mcontroller[i].pcifun = PCI_FUNC (pci_dev_func);
	mcontroller[i].pciid = -1;
	mcontroller[i].pcivendor = id->vendor;
	mcontroller[i].pcislot = PCI_SLOT(pci_dev_func);
	mcontroller[i].uid = (pci_bus << 8) | pci_dev_func;


	/* Set the Mode of addressing to 64 bit if we can */
	if ((adapter->flag & BOARD_64BIT) && (sizeof(dma_addr_t) == 8)) {
		pci_set_dma_mask(pdev, 0xffffffffffffffffULL);
		adapter->has_64bit_addr = 1;
	} else  {
		pci_set_dma_mask(pdev, 0xffffffff);
		adapter->has_64bit_addr = 0;
	}
		
	init_MUTEX(&adapter->int_mtx);
	init_waitqueue_head(&adapter->int_waitq);

	adapter->this_id = DEFAULT_INITIATOR_ID;
	adapter->host->this_id = DEFAULT_INITIATOR_ID;

#if MEGA_HAVE_CLUSTERING
	/*
	 * Is cluster support enabled on this controller
	 * Note: In a cluster the HBAs ( the initiators ) will have
	 * different target IDs and we cannot assume it to be 7. Call
	 * to mega_support_cluster() will get the target ids also if
	 * the cluster support is available
	 */
	adapter->has_cluster = mega_support_cluster(adapter);
	if (adapter->has_cluster) {
		printk(KERN_NOTICE
			"megaraid: Cluster driver, initiator id:%d\n",
			adapter->this_id);
	}
#endif

	pci_set_drvdata(pdev, host);

	mega_create_proc_entry(hba_count, mega_proc_dir_entry);

	error = scsi_add_host(host, &pdev->dev);
	if (error)
		goto out_free_mbox;

	scsi_scan_host(host);
	hba_count++;
	return 0;

 out_free_mbox:
	pci_free_consistent(adapter->dev, sizeof(mbox64_t),
			adapter->una_mbox64, adapter->una_mbox64_dma);
 out_free_irq:
	free_irq(adapter->host->irq, adapter);
 out_free_scb_list:
	kfree(adapter->scb_list);
 out_free_cmd_buffer:
	pci_free_consistent(adapter->dev, MEGA_BUFFER_SIZE,
			adapter->mega_buffer, adapter->buf_dma_handle);
 out_host_put:
	scsi_host_put(host);
 out_iounmap:
	if (flag & BOARD_MEMMAP)
		iounmap((void *)mega_baseport);
 out_release_region:
	if (flag & BOARD_MEMMAP)
		release_mem_region(tbase, 128);
	else
		release_region(mega_baseport, 16);
 out_disable_device:
	pci_disable_device(pdev);
 out:
	return error;
}

static void
__megaraid_shutdown(adapter_t *adapter)
{
	u_char	raw_mbox[sizeof(struct mbox_out)];
	mbox_t	*mbox = (mbox_t *)raw_mbox;
	int	i;

	/* Flush adapter cache */
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
	raw_mbox[0] = FLUSH_ADAPTER;

	free_irq(adapter->host->irq, adapter);

	/* Issue a blocking (interrupts disabled) command to the card */
	issue_scb_block(adapter, raw_mbox);

	/* Flush disks cache */
	memset(&mbox->m_out, 0, sizeof(raw_mbox));
	raw_mbox[0] = FLUSH_SYSTEM;

	/* Issue a blocking (interrupts disabled) command to the card */
	issue_scb_block(adapter, raw_mbox);
	
	if (atomic_read(&adapter->pend_cmds) > 0)
		printk(KERN_WARNING "megaraid: pending commands!!\n");

	/*
	 * Have a delibrate delay to make sure all the caches are
	 * actually flushed.
	 */
	for (i = 0; i <= 10; i++)
		mdelay(1000);
}

static void
megaraid_remove_one(struct pci_dev *pdev)
{
	struct Scsi_Host *host = pci_get_drvdata(pdev);
	adapter_t *adapter = (adapter_t *)host->hostdata;
	char	buf[12] = { 0 };

	scsi_remove_host(host);

	__megaraid_shutdown(adapter);

	/* Free our resources */
	if (adapter->flag & BOARD_MEMMAP) {
		iounmap((void *)adapter->base);
		release_mem_region(adapter->host->base, 128);
	} else
		release_region(adapter->base, 16);

	mega_free_sgl(adapter);

#ifdef CONFIG_PROC_FS
	if (adapter->controller_proc_dir_entry) {
		remove_proc_entry("stat", adapter->controller_proc_dir_entry);
		remove_proc_entry("config",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("mailbox",
				adapter->controller_proc_dir_entry);
#if MEGA_HAVE_ENH_PROC
		remove_proc_entry("rebuild-rate",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("battery-status",
				adapter->controller_proc_dir_entry);

		remove_proc_entry("diskdrives-ch0",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("diskdrives-ch1",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("diskdrives-ch2",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("diskdrives-ch3",
				adapter->controller_proc_dir_entry);

		remove_proc_entry("raiddrives-0-9",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("raiddrives-10-19",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("raiddrives-20-29",
				adapter->controller_proc_dir_entry);
		remove_proc_entry("raiddrives-30-39",
				adapter->controller_proc_dir_entry);
#endif
		sprintf(buf, "hba%d", adapter->host->host_no);
		remove_proc_entry(buf, mega_proc_dir_entry);
	}
#endif

	pci_free_consistent(adapter->dev, MEGA_BUFFER_SIZE,
			adapter->mega_buffer, adapter->buf_dma_handle);
	kfree(adapter->scb_list);
	pci_free_consistent(adapter->dev, sizeof(mbox64_t),
			adapter->una_mbox64, adapter->una_mbox64_dma);

	scsi_host_put(host);
	pci_disable_device(pdev);

	hba_count--;
}

static void
megaraid_shutdown(struct device *dev)
{
	struct Scsi_Host *host = pci_get_drvdata(to_pci_dev(dev));
	adapter_t *adapter = (adapter_t *)host->hostdata;

	__megaraid_shutdown(adapter);
}

static struct pci_device_id megaraid_pci_tbl[] = {
	{PCI_VENDOR_ID_DELL, PCI_DEVICE_ID_DISCOVERY,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{PCI_VENDOR_ID_DELL, PCI_DEVICE_ID_PERC4_DI,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, BOARD_64BIT},
	{PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_PERC4_QC_VERDE,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, BOARD_64BIT},
	{PCI_VENDOR_ID_AMI, PCI_DEVICE_ID_AMI_MEGARAID,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{PCI_VENDOR_ID_AMI, PCI_DEVICE_ID_AMI_MEGARAID2,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{PCI_VENDOR_ID_AMI, PCI_DEVICE_ID_AMI_MEGARAID3,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{PCI_VENDOR_ID_INTEL, PCI_DEVICE_ID_AMI_MEGARAID3,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{PCI_VENDOR_ID_LSI_LOGIC, PCI_DEVICE_ID_AMI_MEGARAID,
		PCI_ANY_ID, PCI_ANY_ID, 0, 0, 0},
	{0,}
};
MODULE_DEVICE_TABLE(pci, megaraid_pci_tbl);

static struct pci_driver megaraid_pci_driver = {
	.name		= "megaraid",
	.id_table	= megaraid_pci_tbl,
	.probe		= megaraid_probe_one,
	.remove		= __devexit_p(megaraid_remove_one),
	.driver		= {
		.shutdown = megaraid_shutdown,
	},
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};
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static int __init megaraid_init(void)
{
	int error;

	if ((max_cmd_per_lun <= 0) || (max_cmd_per_lun > MAX_CMD_PER_LUN))
		max_cmd_per_lun = MAX_CMD_PER_LUN;
	if (max_mbox_busy_wait > MBOX_BUSY_WAIT)
		max_mbox_busy_wait = MBOX_BUSY_WAIT;

	error = pci_module_init(&megaraid_pci_driver);
	if (error) 
		return error;
	
#ifdef CONFIG_PROC_FS
	mega_proc_dir_entry = proc_mkdir("megaraid", &proc_root);
	if (!mega_proc_dir_entry) {
		printk(KERN_WARNING
				"megaraid: failed to create megaraid root\n");
	}
#endif

	/*
	 * Register the driver as a character device, for applications
	 * to access it for ioctls.
	 * First argument (major) to register_chrdev implies a dynamic
	 * major number allocation.
	 */
	major = register_chrdev(0, "megadev", &megadev_fops);
	if (!major) {
		printk(KERN_WARNING
				"megaraid: failed to register char device\n");
	}

	return 0;
}

static void __exit megaraid_exit(void)
{
	/*
	 * Unregister the character device interface to the driver.
	 */
	unregister_chrdev(major, "megadev");

#ifdef CONFIG_PROC_FS
	remove_proc_entry("megaraid", &proc_root);
#endif

	pci_unregister_driver(&megaraid_pci_driver);
}

module_init(megaraid_init);
module_exit(megaraid_exit);
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