scsi_dh_rdac.c 22.8 KB
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/*
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 * LSI/Engenio/NetApp E-Series RDAC SCSI Device Handler
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 *
 * Copyright (C) 2005 Mike Christie. All rights reserved.
 * Copyright (C) Chandra Seetharaman, IBM Corp. 2007
 *
 * 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.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
 *
 */
#include <scsi/scsi.h>
#include <scsi/scsi_eh.h>
#include <scsi/scsi_dh.h>
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#include <linux/workqueue.h>
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#include <linux/slab.h>
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#include <linux/module.h>
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#define RDAC_NAME "rdac"
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#define RDAC_RETRY_COUNT 5
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/*
 * LSI mode page stuff
 *
 * These struct definitions and the forming of the
 * mode page were taken from the LSI RDAC 2.4 GPL'd
 * driver, and then converted to Linux conventions.
 */
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#define RDAC_QUIESCENCE_TIME 20
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/*
 * Page Codes
 */
#define RDAC_PAGE_CODE_REDUNDANT_CONTROLLER 0x2c

/*
 * Controller modes definitions
 */
#define RDAC_MODE_TRANSFER_SPECIFIED_LUNS	0x02

/*
 * RDAC Options field
 */
#define RDAC_FORCED_QUIESENCE 0x02

#define RDAC_TIMEOUT	(60 * HZ)
#define RDAC_RETRIES	3

struct rdac_mode_6_hdr {
	u8	data_len;
	u8	medium_type;
	u8	device_params;
	u8	block_desc_len;
};

struct rdac_mode_10_hdr {
	u16	data_len;
	u8	medium_type;
	u8	device_params;
	u16	reserved;
	u16	block_desc_len;
};

struct rdac_mode_common {
	u8	controller_serial[16];
	u8	alt_controller_serial[16];
	u8	rdac_mode[2];
	u8	alt_rdac_mode[2];
	u8	quiescence_timeout;
	u8	rdac_options;
};

struct rdac_pg_legacy {
	struct rdac_mode_6_hdr hdr;
	u8	page_code;
	u8	page_len;
	struct rdac_mode_common common;
#define MODE6_MAX_LUN	32
	u8	lun_table[MODE6_MAX_LUN];
	u8	reserved2[32];
	u8	reserved3;
	u8	reserved4;
};

struct rdac_pg_expanded {
	struct rdac_mode_10_hdr hdr;
	u8	page_code;
	u8	subpage_code;
	u8	page_len[2];
	struct rdac_mode_common common;
	u8	lun_table[256];
	u8	reserved3;
	u8	reserved4;
};

struct c9_inquiry {
	u8	peripheral_info;
	u8	page_code;	/* 0xC9 */
	u8	reserved1;
	u8	page_len;
	u8	page_id[4];	/* "vace" */
	u8	avte_cvp;
	u8	path_prio;
	u8	reserved2[38];
};

#define SUBSYS_ID_LEN	16
#define SLOT_ID_LEN	2
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#define ARRAY_LABEL_LEN	31
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struct c4_inquiry {
	u8	peripheral_info;
	u8	page_code;	/* 0xC4 */
	u8	reserved1;
	u8	page_len;
	u8	page_id[4];	/* "subs" */
	u8	subsys_id[SUBSYS_ID_LEN];
	u8	revision[4];
	u8	slot_id[SLOT_ID_LEN];
	u8	reserved[2];
};

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#define UNIQUE_ID_LEN 16
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struct c8_inquiry {
	u8	peripheral_info;
	u8	page_code; /* 0xC8 */
	u8	reserved1;
	u8	page_len;
	u8	page_id[4]; /* "edid" */
	u8	reserved2[3];
	u8	vol_uniq_id_len;
	u8	vol_uniq_id[16];
	u8	vol_user_label_len;
	u8	vol_user_label[60];
	u8	array_uniq_id_len;
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	u8	array_unique_id[UNIQUE_ID_LEN];
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	u8	array_user_label_len;
	u8	array_user_label[60];
	u8	lun[8];
};

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struct rdac_controller {
	u8			array_id[UNIQUE_ID_LEN];
	int			use_ms10;
	struct kref		kref;
	struct list_head	node; /* list of all controllers */
	union			{
		struct rdac_pg_legacy legacy;
		struct rdac_pg_expanded expanded;
	} mode_select;
	u8	index;
	u8	array_name[ARRAY_LABEL_LEN];
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	struct Scsi_Host	*host;
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	spinlock_t		ms_lock;
	int			ms_queued;
	struct work_struct	ms_work;
	struct scsi_device	*ms_sdev;
	struct list_head	ms_head;
};

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struct c2_inquiry {
	u8	peripheral_info;
	u8	page_code;	/* 0xC2 */
	u8	reserved1;
	u8	page_len;
	u8	page_id[4];	/* "swr4" */
	u8	sw_version[3];
	u8	sw_date[3];
	u8	features_enabled;
	u8	max_lun_supported;
	u8	partitions[239]; /* Total allocation length should be 0xFF */
};

struct rdac_dh_data {
	struct rdac_controller	*ctlr;
#define UNINITIALIZED_LUN	(1 << 8)
	unsigned		lun;
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#define RDAC_MODE		0
#define RDAC_MODE_AVT		1
#define RDAC_MODE_IOSHIP	2
	unsigned char		mode;

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#define RDAC_STATE_ACTIVE	0
#define RDAC_STATE_PASSIVE	1
	unsigned char		state;
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#define RDAC_LUN_UNOWNED	0
#define RDAC_LUN_OWNED		1
	char			lun_state;
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#define RDAC_PREFERRED		0
#define RDAC_NON_PREFERRED	1
	char			preferred;

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	unsigned char		sense[SCSI_SENSE_BUFFERSIZE];
	union			{
		struct c2_inquiry c2;
		struct c4_inquiry c4;
		struct c8_inquiry c8;
		struct c9_inquiry c9;
	} inq;
};

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static const char *mode[] = {
	"RDAC",
	"AVT",
	"IOSHIP",
};
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static const char *lun_state[] =
{
	"unowned",
	"owned",
};

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struct rdac_queue_data {
	struct list_head	entry;
	struct rdac_dh_data	*h;
	activate_complete	callback_fn;
	void			*callback_data;
};

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static LIST_HEAD(ctlr_list);
static DEFINE_SPINLOCK(list_lock);
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static struct workqueue_struct *kmpath_rdacd;
static void send_mode_select(struct work_struct *work);
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/*
 * module parameter to enable rdac debug logging.
 * 2 bits for each type of logging, only two types defined for now
 * Can be enhanced if required at later point
 */
static int rdac_logging = 1;
module_param(rdac_logging, int, S_IRUGO|S_IWUSR);
MODULE_PARM_DESC(rdac_logging, "A bit mask of rdac logging levels, "
		"Default is 1 - failover logging enabled, "
		"set it to 0xF to enable all the logs");

#define RDAC_LOG_FAILOVER	0
#define RDAC_LOG_SENSE		2

#define RDAC_LOG_BITS		2

#define RDAC_LOG_LEVEL(SHIFT)  \
	((rdac_logging >> (SHIFT)) & ((1 << (RDAC_LOG_BITS)) - 1))

#define RDAC_LOG(SHIFT, sdev, f, arg...) \
do { \
	if (unlikely(RDAC_LOG_LEVEL(SHIFT))) \
		sdev_printk(KERN_INFO, sdev, RDAC_NAME ": " f "\n", ## arg); \
} while (0);

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static inline struct rdac_dh_data *get_rdac_data(struct scsi_device *sdev)
{
	struct scsi_dh_data *scsi_dh_data = sdev->scsi_dh_data;
	BUG_ON(scsi_dh_data == NULL);
	return ((struct rdac_dh_data *) scsi_dh_data->buf);
}

static struct request *get_rdac_req(struct scsi_device *sdev,
			void *buffer, unsigned buflen, int rw)
{
	struct request *rq;
	struct request_queue *q = sdev->request_queue;

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	rq = blk_get_request(q, rw, GFP_NOIO);
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	if (!rq) {
		sdev_printk(KERN_INFO, sdev,
				"get_rdac_req: blk_get_request failed.\n");
		return NULL;
	}

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	if (buflen && blk_rq_map_kern(q, rq, buffer, buflen, GFP_NOIO)) {
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		blk_put_request(rq);
		sdev_printk(KERN_INFO, sdev,
				"get_rdac_req: blk_rq_map_kern failed.\n");
		return NULL;
	}

	rq->cmd_type = REQ_TYPE_BLOCK_PC;
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	rq->cmd_flags |= REQ_FAILFAST_DEV | REQ_FAILFAST_TRANSPORT |
			 REQ_FAILFAST_DRIVER;
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	rq->retries = RDAC_RETRIES;
	rq->timeout = RDAC_TIMEOUT;

	return rq;
}

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static struct request *rdac_failover_get(struct scsi_device *sdev,
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			struct rdac_dh_data *h, struct list_head *list)
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{
	struct request *rq;
	struct rdac_mode_common *common;
	unsigned data_size;
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	struct rdac_queue_data *qdata;
	u8 *lun_table;
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	if (h->ctlr->use_ms10) {
		struct rdac_pg_expanded *rdac_pg;

		data_size = sizeof(struct rdac_pg_expanded);
		rdac_pg = &h->ctlr->mode_select.expanded;
		memset(rdac_pg, 0, data_size);
		common = &rdac_pg->common;
		rdac_pg->page_code = RDAC_PAGE_CODE_REDUNDANT_CONTROLLER + 0x40;
		rdac_pg->subpage_code = 0x1;
		rdac_pg->page_len[0] = 0x01;
		rdac_pg->page_len[1] = 0x28;
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		lun_table = rdac_pg->lun_table;
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	} else {
		struct rdac_pg_legacy *rdac_pg;

		data_size = sizeof(struct rdac_pg_legacy);
		rdac_pg = &h->ctlr->mode_select.legacy;
		memset(rdac_pg, 0, data_size);
		common = &rdac_pg->common;
		rdac_pg->page_code = RDAC_PAGE_CODE_REDUNDANT_CONTROLLER;
		rdac_pg->page_len = 0x68;
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		lun_table = rdac_pg->lun_table;
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	}
	common->rdac_mode[1] = RDAC_MODE_TRANSFER_SPECIFIED_LUNS;
	common->quiescence_timeout = RDAC_QUIESCENCE_TIME;
	common->rdac_options = RDAC_FORCED_QUIESENCE;

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	list_for_each_entry(qdata, list, entry) {
		lun_table[qdata->h->lun] = 0x81;
	}

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	/* get request for block layer packet command */
	rq = get_rdac_req(sdev, &h->ctlr->mode_select, data_size, WRITE);
	if (!rq)
		return NULL;

	/* Prepare the command. */
	if (h->ctlr->use_ms10) {
		rq->cmd[0] = MODE_SELECT_10;
		rq->cmd[7] = data_size >> 8;
		rq->cmd[8] = data_size & 0xff;
	} else {
		rq->cmd[0] = MODE_SELECT;
		rq->cmd[4] = data_size;
	}
	rq->cmd_len = COMMAND_SIZE(rq->cmd[0]);

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	rq->sense = h->sense;
	memset(rq->sense, 0, SCSI_SENSE_BUFFERSIZE);
	rq->sense_len = 0;

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	return rq;
}

static void release_controller(struct kref *kref)
{
	struct rdac_controller *ctlr;
	ctlr = container_of(kref, struct rdac_controller, kref);

	list_del(&ctlr->node);
	kfree(ctlr);
}

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static struct rdac_controller *get_controller(int index, char *array_name,
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			u8 *array_id, struct scsi_device *sdev)
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{
	struct rdac_controller *ctlr, *tmp;

	list_for_each_entry(tmp, &ctlr_list, node) {
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		if ((memcmp(tmp->array_id, array_id, UNIQUE_ID_LEN) == 0) &&
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			  (tmp->index == index) &&
			  (tmp->host == sdev->host)) {
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			kref_get(&tmp->kref);
			return tmp;
		}
	}
	ctlr = kmalloc(sizeof(*ctlr), GFP_ATOMIC);
	if (!ctlr)
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		return NULL;
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	/* initialize fields of controller */
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	memcpy(ctlr->array_id, array_id, UNIQUE_ID_LEN);
	ctlr->index = index;
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	ctlr->host = sdev->host;
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	memcpy(ctlr->array_name, array_name, ARRAY_LABEL_LEN);

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	kref_init(&ctlr->kref);
	ctlr->use_ms10 = -1;
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	ctlr->ms_queued = 0;
	ctlr->ms_sdev = NULL;
	spin_lock_init(&ctlr->ms_lock);
	INIT_WORK(&ctlr->ms_work, send_mode_select);
	INIT_LIST_HEAD(&ctlr->ms_head);
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	list_add(&ctlr->node, &ctlr_list);
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	return ctlr;
}

static int submit_inquiry(struct scsi_device *sdev, int page_code,
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			  unsigned int len, struct rdac_dh_data *h)
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{
	struct request *rq;
	struct request_queue *q = sdev->request_queue;
	int err = SCSI_DH_RES_TEMP_UNAVAIL;

	rq = get_rdac_req(sdev, &h->inq, len, READ);
	if (!rq)
		goto done;

	/* Prepare the command. */
	rq->cmd[0] = INQUIRY;
	rq->cmd[1] = 1;
	rq->cmd[2] = page_code;
	rq->cmd[4] = len;
	rq->cmd_len = COMMAND_SIZE(INQUIRY);
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	rq->sense = h->sense;
	memset(rq->sense, 0, SCSI_SENSE_BUFFERSIZE);
	rq->sense_len = 0;

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	err = blk_execute_rq(q, NULL, rq, 1);
	if (err == -EIO)
		err = SCSI_DH_IO;
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	blk_put_request(rq);
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done:
	return err;
}

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static int get_lun_info(struct scsi_device *sdev, struct rdac_dh_data *h,
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			char *array_name, u8 *array_id)
439
{
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	int err, i;
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	struct c8_inquiry *inqp;

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	err = submit_inquiry(sdev, 0xC8, sizeof(struct c8_inquiry), h);
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	if (err == SCSI_DH_OK) {
		inqp = &h->inq.c8;
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		if (inqp->page_code != 0xc8)
			return SCSI_DH_NOSYS;
		if (inqp->page_id[0] != 'e' || inqp->page_id[1] != 'd' ||
		    inqp->page_id[2] != 'i' || inqp->page_id[3] != 'd')
			return SCSI_DH_NOSYS;
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		h->lun = inqp->lun[7]; /* Uses only the last byte */
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		for(i=0; i<ARRAY_LABEL_LEN-1; ++i)
			*(array_name+i) = inqp->array_user_label[(2*i)+1];

		*(array_name+ARRAY_LABEL_LEN-1) = '\0';
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		memset(array_id, 0, UNIQUE_ID_LEN);
		memcpy(array_id, inqp->array_unique_id, inqp->array_uniq_id_len);
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	}
	return err;
}

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static int check_ownership(struct scsi_device *sdev, struct rdac_dh_data *h)
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{
	int err;
	struct c9_inquiry *inqp;

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	h->state = RDAC_STATE_ACTIVE;
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	err = submit_inquiry(sdev, 0xC9, sizeof(struct c9_inquiry), h);
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	if (err == SCSI_DH_OK) {
		inqp = &h->inq.c9;
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		/* detect the operating mode */
		if ((inqp->avte_cvp >> 5) & 0x1)
			h->mode = RDAC_MODE_IOSHIP; /* LUN in IOSHIP mode */
		else if (inqp->avte_cvp >> 7)
			h->mode = RDAC_MODE_AVT; /* LUN in AVT mode */
		else
			h->mode = RDAC_MODE; /* LUN in RDAC mode */

		/* Update ownership */
		if (inqp->avte_cvp & 0x1)
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			h->lun_state = RDAC_LUN_OWNED;
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		else {
			h->lun_state = RDAC_LUN_UNOWNED;
			if (h->mode == RDAC_MODE)
				h->state = RDAC_STATE_PASSIVE;
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		}

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		/* Update path prio*/
		if (inqp->path_prio & 0x1)
			h->preferred = RDAC_PREFERRED;
		else
			h->preferred = RDAC_NON_PREFERRED;
	}
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	return err;
}

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static int initialize_controller(struct scsi_device *sdev,
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		struct rdac_dh_data *h, char *array_name, u8 *array_id)
501
{
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	int err, index;
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	struct c4_inquiry *inqp;

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	err = submit_inquiry(sdev, 0xC4, sizeof(struct c4_inquiry), h);
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	if (err == SCSI_DH_OK) {
		inqp = &h->inq.c4;
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		/* get the controller index */
		if (inqp->slot_id[1] == 0x31)
			index = 0;
		else
			index = 1;
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		spin_lock(&list_lock);
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		h->ctlr = get_controller(index, array_name, array_id, sdev);
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		if (!h->ctlr)
			err = SCSI_DH_RES_TEMP_UNAVAIL;
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		spin_unlock(&list_lock);
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	}
	return err;
}

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static int set_mode_select(struct scsi_device *sdev, struct rdac_dh_data *h)
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{
	int err;
	struct c2_inquiry *inqp;

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	err = submit_inquiry(sdev, 0xC2, sizeof(struct c2_inquiry), h);
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	if (err == SCSI_DH_OK) {
		inqp = &h->inq.c2;
		/*
		 * If more than MODE6_MAX_LUN luns are supported, use
		 * mode select 10
		 */
		if (inqp->max_lun_supported >= MODE6_MAX_LUN)
			h->ctlr->use_ms10 = 1;
		else
			h->ctlr->use_ms10 = 0;
	}
	return err;
}

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static int mode_select_handle_sense(struct scsi_device *sdev,
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					unsigned char *sensebuf)
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{
	struct scsi_sense_hdr sense_hdr;
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	int err = SCSI_DH_IO, ret;
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	struct rdac_dh_data *h = get_rdac_data(sdev);
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	ret = scsi_normalize_sense(sensebuf, SCSI_SENSE_BUFFERSIZE, &sense_hdr);
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	if (!ret)
		goto done;

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	switch (sense_hdr.sense_key) {
	case NO_SENSE:
	case ABORTED_COMMAND:
	case UNIT_ATTENTION:
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		err = SCSI_DH_RETRY;
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		break;
	case NOT_READY:
		if (sense_hdr.asc == 0x04 && sense_hdr.ascq == 0x01)
			/* LUN Not Ready and is in the Process of Becoming
			 * Ready
			 */
			err = SCSI_DH_RETRY;
		break;
	case ILLEGAL_REQUEST:
		if (sense_hdr.asc == 0x91 && sense_hdr.ascq == 0x36)
			/*
			 * Command Lock contention
			 */
			err = SCSI_DH_RETRY;
		break;
	default:
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		break;
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	}

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	RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
		"MODE_SELECT returned with sense %02x/%02x/%02x",
		(char *) h->ctlr->array_name, h->ctlr->index,
		sense_hdr.sense_key, sense_hdr.asc, sense_hdr.ascq);

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done:
	return err;
}

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static void send_mode_select(struct work_struct *work)
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{
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	struct rdac_controller *ctlr =
		container_of(work, struct rdac_controller, ms_work);
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	struct request *rq;
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	struct scsi_device *sdev = ctlr->ms_sdev;
	struct rdac_dh_data *h = get_rdac_data(sdev);
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	struct request_queue *q = sdev->request_queue;
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	int err, retry_cnt = RDAC_RETRY_COUNT;
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	struct rdac_queue_data *tmp, *qdata;
	LIST_HEAD(list);

	spin_lock(&ctlr->ms_lock);
	list_splice_init(&ctlr->ms_head, &list);
	ctlr->ms_queued = 0;
	ctlr->ms_sdev = NULL;
	spin_unlock(&ctlr->ms_lock);

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retry:
	err = SCSI_DH_RES_TEMP_UNAVAIL;
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	rq = rdac_failover_get(sdev, h, &list);
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	if (!rq)
		goto done;

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	RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
		"%s MODE_SELECT command",
		(char *) h->ctlr->array_name, h->ctlr->index,
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		(retry_cnt == RDAC_RETRY_COUNT) ? "queueing" : "retrying");
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	err = blk_execute_rq(q, NULL, rq, 1);
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	blk_put_request(rq);
	if (err != SCSI_DH_OK) {
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		err = mode_select_handle_sense(sdev, h->sense);
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		if (err == SCSI_DH_RETRY && retry_cnt--)
			goto retry;
	}
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	if (err == SCSI_DH_OK) {
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		h->state = RDAC_STATE_ACTIVE;
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		RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
				"MODE_SELECT completed",
				(char *) h->ctlr->array_name, h->ctlr->index);
	}
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630
done:
631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665
	list_for_each_entry_safe(qdata, tmp, &list, entry) {
		list_del(&qdata->entry);
		if (err == SCSI_DH_OK)
			qdata->h->state = RDAC_STATE_ACTIVE;
		if (qdata->callback_fn)
			qdata->callback_fn(qdata->callback_data, err);
		kfree(qdata);
	}
	return;
}

static int queue_mode_select(struct scsi_device *sdev,
				activate_complete fn, void *data)
{
	struct rdac_queue_data *qdata;
	struct rdac_controller *ctlr;

	qdata = kzalloc(sizeof(*qdata), GFP_KERNEL);
	if (!qdata)
		return SCSI_DH_RETRY;

	qdata->h = get_rdac_data(sdev);
	qdata->callback_fn = fn;
	qdata->callback_data = data;

	ctlr = qdata->h->ctlr;
	spin_lock(&ctlr->ms_lock);
	list_add_tail(&qdata->entry, &ctlr->ms_head);
	if (!ctlr->ms_queued) {
		ctlr->ms_queued = 1;
		ctlr->ms_sdev = sdev;
		queue_work(kmpath_rdacd, &ctlr->ms_work);
	}
	spin_unlock(&ctlr->ms_lock);
	return SCSI_DH_OK;
666 667
}

668 669
static int rdac_activate(struct scsi_device *sdev,
			activate_complete fn, void *data)
670 671 672
{
	struct rdac_dh_data *h = get_rdac_data(sdev);
	int err = SCSI_DH_OK;
673
	int act = 0;
674

675 676
	err = check_ownership(sdev, h);
	if (err != SCSI_DH_OK)
677 678
		goto done;

679 680 681 682 683 684 685 686 687 688 689 690 691 692 693
	switch (h->mode) {
	case RDAC_MODE:
		if (h->lun_state == RDAC_LUN_UNOWNED)
			act = 1;
		break;
	case RDAC_MODE_IOSHIP:
		if ((h->lun_state == RDAC_LUN_UNOWNED) &&
		    (h->preferred == RDAC_PREFERRED))
			act = 1;
		break;
	default:
		break;
	}

	if (act) {
694 695 696 697
		err = queue_mode_select(sdev, fn, data);
		if (err == SCSI_DH_OK)
			return 0;
	}
698
done:
699 700 701
	if (fn)
		fn(data, err);
	return 0;
702 703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720
}

static int rdac_prep_fn(struct scsi_device *sdev, struct request *req)
{
	struct rdac_dh_data *h = get_rdac_data(sdev);
	int ret = BLKPREP_OK;

	if (h->state != RDAC_STATE_ACTIVE) {
		ret = BLKPREP_KILL;
		req->cmd_flags |= REQ_QUIET;
	}
	return ret;

}

static int rdac_check_sense(struct scsi_device *sdev,
				struct scsi_sense_hdr *sense_hdr)
{
	struct rdac_dh_data *h = get_rdac_data(sdev);
721 722 723 724 725 726

	RDAC_LOG(RDAC_LOG_SENSE, sdev, "array %s, ctlr %d, "
			"I/O returned with sense %02x/%02x/%02x",
			(char *) h->ctlr->array_name, h->ctlr->index,
			sense_hdr->sense_key, sense_hdr->asc, sense_hdr->ascq);

727 728
	switch (sense_hdr->sense_key) {
	case NOT_READY:
729 730 731 732 733 734
		if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0x01)
			/* LUN Not Ready - Logical Unit Not Ready and is in
			* the process of becoming ready
			* Just retry.
			*/
			return ADD_TO_MLQUEUE;
735 736 737 738 739 740 741 742 743 744 745 746
		if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0x81)
			/* LUN Not Ready - Storage firmware incompatible
			 * Manual code synchonisation required.
			 *
			 * Nothing we can do here. Try to bypass the path.
			 */
			return SUCCESS;
		if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0xA1)
			/* LUN Not Ready - Quiescense in progress
			 *
			 * Just retry and wait.
			 */
747
			return ADD_TO_MLQUEUE;
748 749 750 751 752 753
		if (sense_hdr->asc == 0xA1  && sense_hdr->ascq == 0x02)
			/* LUN Not Ready - Quiescense in progress
			 * or has been achieved
			 * Just retry.
			 */
			return ADD_TO_MLQUEUE;
754 755 756 757 758 759 760 761 762 763 764 765 766 767 768
		break;
	case ILLEGAL_REQUEST:
		if (sense_hdr->asc == 0x94 && sense_hdr->ascq == 0x01) {
			/* Invalid Request - Current Logical Unit Ownership.
			 * Controller is not the current owner of the LUN,
			 * Fail the path, so that the other path be used.
			 */
			h->state = RDAC_STATE_PASSIVE;
			return SUCCESS;
		}
		break;
	case UNIT_ATTENTION:
		if (sense_hdr->asc == 0x29 && sense_hdr->ascq == 0x00)
			/*
			 * Power On, Reset, or Bus Device Reset, just retry.
769 770 771 772 773
			 */
			return ADD_TO_MLQUEUE;
		if (sense_hdr->asc == 0x8b && sense_hdr->ascq == 0x02)
			/*
			 * Quiescence in progress , just retry.
774
			 */
775
			return ADD_TO_MLQUEUE;
776 777 778 779 780 781
		break;
	}
	/* success just means we do not care what scsi-ml does */
	return SCSI_RETURN_NOT_HANDLED;
}

782
static const struct scsi_dh_devlist rdac_dev_list[] = {
783 784 785 786
	{"IBM", "1722"},
	{"IBM", "1724"},
	{"IBM", "1726"},
	{"IBM", "1742"},
787 788
	{"IBM", "1745"},
	{"IBM", "1746"},
789 790 791 792 793 794
	{"IBM", "1814"},
	{"IBM", "1815"},
	{"IBM", "1818"},
	{"IBM", "3526"},
	{"SGI", "TP9400"},
	{"SGI", "TP9500"},
795
	{"SGI", "TP9700"},
796 797 798
	{"SGI", "IS"},
	{"STK", "OPENstorage D280"},
	{"SUN", "CSM200_R"},
799 800 801
	{"SUN", "LCSM100_I"},
	{"SUN", "LCSM100_S"},
	{"SUN", "LCSM100_E"},
802
	{"SUN", "LCSM100_F"},
803 804
	{"DELL", "MD3000"},
	{"DELL", "MD3000i"},
805 806
	{"DELL", "MD32xx"},
	{"DELL", "MD32xxi"},
807
	{"DELL", "MD36xxi"},
808
	{"DELL", "MD36xxf"},
809 810
	{"LSI", "INF-01-00"},
	{"ENGENIO", "INF-01-00"},
811 812
	{"STK", "FLEXLINE 380"},
	{"SUN", "CSM100_R_FC"},
813 814
	{"SUN", "STK6580_6780"},
	{"SUN", "SUN_6180"},
815
	{"SUN", "ArrayStorage"},
816 817 818
	{NULL, NULL},
};

819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836
static bool rdac_match(struct scsi_device *sdev)
{
	int i;

	if (scsi_device_tpgs(sdev))
		return false;

	for (i = 0; rdac_dev_list[i].vendor; i++) {
		if (!strncmp(sdev->vendor, rdac_dev_list[i].vendor,
			strlen(rdac_dev_list[i].vendor)) &&
		    !strncmp(sdev->model, rdac_dev_list[i].model,
			strlen(rdac_dev_list[i].model))) {
			return true;
		}
	}
	return false;
}

837 838
static int rdac_bus_attach(struct scsi_device *sdev);
static void rdac_bus_detach(struct scsi_device *sdev);
839 840 841 842

static struct scsi_device_handler rdac_dh = {
	.name = RDAC_NAME,
	.module = THIS_MODULE,
843
	.devlist = rdac_dev_list,
844 845
	.prep_fn = rdac_prep_fn,
	.check_sense = rdac_check_sense,
846 847
	.attach = rdac_bus_attach,
	.detach = rdac_bus_detach,
848
	.activate = rdac_activate,
849
	.match = rdac_match,
850 851
};

852
static int rdac_bus_attach(struct scsi_device *sdev)
853 854 855 856
{
	struct scsi_dh_data *scsi_dh_data;
	struct rdac_dh_data *h;
	unsigned long flags;
857
	int err;
858
	char array_name[ARRAY_LABEL_LEN];
859
	char array_id[UNIQUE_ID_LEN];
860

861
	scsi_dh_data = kzalloc(sizeof(*scsi_dh_data)
862 863
			       + sizeof(*h) , GFP_KERNEL);
	if (!scsi_dh_data) {
864
		sdev_printk(KERN_ERR, sdev, "%s: Attach failed\n",
865
			    RDAC_NAME);
866
		return 0;
867
	}
868

869 870 871 872
	scsi_dh_data->scsi_dh = &rdac_dh;
	h = (struct rdac_dh_data *) scsi_dh_data->buf;
	h->lun = UNINITIALIZED_LUN;
	h->state = RDAC_STATE_ACTIVE;
873

874
	err = get_lun_info(sdev, h, array_name, array_id);
875 876 877
	if (err != SCSI_DH_OK)
		goto failed;

878
	err = initialize_controller(sdev, h, array_name, array_id);
879 880 881
	if (err != SCSI_DH_OK)
		goto failed;

882 883 884 885 886 887 888 889
	err = check_ownership(sdev, h);
	if (err != SCSI_DH_OK)
		goto clean_ctlr;

	err = set_mode_select(sdev, h);
	if (err != SCSI_DH_OK)
		goto clean_ctlr;

890
	if (!try_module_get(THIS_MODULE))
891
		goto clean_ctlr;
892

893 894 895
	spin_lock_irqsave(sdev->request_queue->queue_lock, flags);
	sdev->scsi_dh_data = scsi_dh_data;
	spin_unlock_irqrestore(sdev->request_queue->queue_lock, flags);
896

897
	sdev_printk(KERN_NOTICE, sdev,
898 899 900
		    "%s: LUN %d (%s) (%s)\n",
		    RDAC_NAME, h->lun, mode[(int)h->mode],
		    lun_state[(int)h->lun_state]);
901 902

	return 0;
903

904
clean_ctlr:
905
	spin_lock(&list_lock);
906
	kref_put(&h->ctlr->kref, release_controller);
907
	spin_unlock(&list_lock);
908

909 910 911 912 913
failed:
	kfree(scsi_dh_data);
	sdev_printk(KERN_ERR, sdev, "%s: not attached\n",
		    RDAC_NAME);
	return -EINVAL;
914 915
}

916 917 918 919 920 921 922
static void rdac_bus_detach( struct scsi_device *sdev )
{
	struct scsi_dh_data *scsi_dh_data;
	struct rdac_dh_data *h;
	unsigned long flags;

	scsi_dh_data = sdev->scsi_dh_data;
923 924 925 926 927
	h = (struct rdac_dh_data *) scsi_dh_data->buf;
	if (h->ctlr && h->ctlr->ms_queued)
		flush_workqueue(kmpath_rdacd);

	spin_lock_irqsave(sdev->request_queue->queue_lock, flags);
928 929 930
	sdev->scsi_dh_data = NULL;
	spin_unlock_irqrestore(sdev->request_queue->queue_lock, flags);

931
	spin_lock(&list_lock);
932 933
	if (h->ctlr)
		kref_put(&h->ctlr->kref, release_controller);
934
	spin_unlock(&list_lock);
935 936
	kfree(scsi_dh_data);
	module_put(THIS_MODULE);
937
	sdev_printk(KERN_NOTICE, sdev, "%s: Detached\n", RDAC_NAME);
938 939 940 941
}



942 943 944 945 946
static int __init rdac_init(void)
{
	int r;

	r = scsi_register_device_handler(&rdac_dh);
947
	if (r != 0) {
948
		printk(KERN_ERR "Failed to register scsi device handler.");
949 950 951 952 953 954 955 956 957 958
		goto done;
	}

	/*
	 * Create workqueue to handle mode selects for rdac
	 */
	kmpath_rdacd = create_singlethread_workqueue("kmpath_rdacd");
	if (!kmpath_rdacd) {
		scsi_unregister_device_handler(&rdac_dh);
		printk(KERN_ERR "kmpath_rdacd creation failed.\n");
959 960

		r = -EINVAL;
961 962
	}
done:
963 964 965 966 967
	return r;
}

static void __exit rdac_exit(void)
{
968
	destroy_workqueue(kmpath_rdacd);
969 970 971 972 973 974
	scsi_unregister_device_handler(&rdac_dh);
}

module_init(rdac_init);
module_exit(rdac_exit);

975
MODULE_DESCRIPTION("Multipath LSI/Engenio/NetApp E-Series RDAC driver");
976
MODULE_AUTHOR("Mike Christie, Chandra Seetharaman");
977
MODULE_VERSION("01.00.0000.0000");
978
MODULE_LICENSE("GPL");