blob: ee3242779dfdff5e55baf611e84d295a451fd965 [file] [edit]
// SPDX-License-Identifier: GPL-2.0
/*
* Copyright (C) 2026 LeapIO Tech Inc.
*
* LeapRAID storage and RAID controller driver.
*/
#include <linux/module.h>
#include "leapraid_func.h"
#include "leapraid.h"
LIST_HEAD(leapraid_adapter_list);
DEFINE_SPINLOCK(leapraid_adapter_lock);
MODULE_AUTHOR(LEAPRAID_AUTHOR);
MODULE_DESCRIPTION(LEAPRAID_DESCRIPTION);
MODULE_LICENSE("GPL");
MODULE_VERSION(LEAPRAID_DRIVER_VERSION);
static atomic_t leapraid_ids = ATOMIC_INIT(0);
static int open_pcie_trace = 1;
module_param(open_pcie_trace, int, 0644);
MODULE_PARM_DESC(open_pcie_trace, "Default=1(open)/0(close)");
static int enable_mp = 1;
module_param(enable_mp, int, 0444);
MODULE_PARM_DESC(enable_mp,
"Enable multipath on target device. default=1(enable)");
static inline void leapraid_get_sense_data(char *sense,
struct sense_info *data)
{
bool desc_format = (sense[0] & SCSI_SENSE_RESPONSE_CODE_MASK) >=
DESC_FORMAT_THRESHOLD;
if (desc_format) {
data->sense_key = sense[1] & SENSE_KEY_MASK;
data->asc = sense[2];
data->ascq = sense[3];
} else {
data->sense_key = sense[2] & SENSE_KEY_MASK;
data->asc = sense[12];
data->ascq = sense[13];
}
}
static struct leapraid_adapter *pdev_to_adapter(struct pci_dev *pdev)
{
struct Scsi_Host *shost = pci_get_drvdata(pdev);
if (!shost)
return NULL;
return shost_priv(shost);
}
void leapraid_set_tm_flg(struct leapraid_adapter *adapter, u16 hdl)
{
struct leapraid_sdev_priv *sdev_priv;
struct scsi_device *sdev;
bool skip = false;
/* Iterate over all devices. */
shost_for_each_device(sdev, adapter->shost) {
if (skip)
continue;
sdev_priv = sdev->hostdata;
if (!sdev_priv)
continue;
if (sdev_priv->starget_priv->hdl == hdl) {
sdev_priv->starget_priv->tm_busy = 1;
skip = true;
}
}
}
void leapraid_clear_tm_flg(struct leapraid_adapter *adapter, u16 hdl)
{
struct leapraid_sdev_priv *sdev_priv;
struct scsi_device *sdev;
bool skip = false;
/* Iterate over all devices. */
shost_for_each_device(sdev, adapter->shost) {
if (skip)
continue;
sdev_priv = sdev->hostdata;
if (!sdev_priv)
continue;
if (sdev_priv->starget_priv->hdl == hdl) {
sdev_priv->starget_priv->tm_busy = 0;
skip = true;
}
}
}
static int leapraid_tm_cmd_map_status(struct leapraid_adapter *adapter,
uint channel,
uint id,
uint lun,
u8 type,
u16 taskid_task)
{
int rc = FAILED;
if (taskid_task <= adapter->shost->can_queue) {
switch (type) {
case LEAPRAID_TM_TASKTYPE_ABRT_TASK_SET:
case LEAPRAID_TM_TASKTYPE_LOGICAL_UNIT_RESET:
if (!leapraid_scmd_find_by_lun(adapter, id, lun,
channel))
rc = SUCCESS;
break;
case LEAPRAID_TM_TASKTYPE_TARGET_RESET:
if (!leapraid_scmd_find_by_tgt(adapter, id, channel))
rc = SUCCESS;
break;
default:
rc = SUCCESS;
}
}
if (taskid_task == adapter->driver_cmds.ctl_cmd.hp_taskid &&
(adapter->driver_cmds.ctl_cmd.status &
LEAPRAID_CMD_DONE ||
adapter->driver_cmds.ctl_cmd.status &
LEAPRAID_CMD_NOT_USED))
rc = SUCCESS;
return rc;
}
static int leapraid_tm_post_processing(struct leapraid_adapter *adapter,
u16 hdl, uint channel, uint id,
uint lun, u8 type, u16 taskid_task)
{
int rc;
rc = leapraid_tm_cmd_map_status(adapter, channel, id, lun,
type, taskid_task);
if (rc == SUCCESS)
return rc;
leapraid_mask_int(adapter);
leapraid_sync_irqs(adapter, true);
leapraid_unmask_int(adapter);
return leapraid_tm_cmd_map_status(adapter, channel, id, lun, type,
taskid_task);
}
static void leapraid_build_tm_req(struct leapraid_scsi_tm_req *scsi_tm_req,
u16 hdl, uint lun, u8 type, u8 tr_method,
u16 target_taskid)
{
memset(scsi_tm_req, 0, sizeof(*scsi_tm_req));
scsi_tm_req->func = LEAPRAID_FUNC_SCSI_TMF;
scsi_tm_req->dev_hdl = cpu_to_le16(hdl);
scsi_tm_req->task_type = type;
scsi_tm_req->msg_flg = tr_method;
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK ||
type == LEAPRAID_TM_TASKTYPE_QUERY_TASK)
scsi_tm_req->task_mid = cpu_to_le16(target_taskid);
int_to_scsilun(lun, (struct scsi_lun *)scsi_tm_req->lun);
}
int leapraid_issue_tm(struct leapraid_adapter *adapter, u16 hdl, uint channel,
uint id, uint lun, u8 type,
u16 target_taskid, u8 tr_method)
{
struct leapraid_scsi_tm_req *scsi_tm_req;
struct leapraid_scsiio_req *scsiio_req;
struct leapraid_io_req_tracker *io_req_tracker = NULL;
u16 msix_task;
u16 taskid;
bool issue_reset = false;
u32 db;
int rc;
lockdep_assert_held(&adapter->driver_cmds.tm_cmd.mutex);
if (adapter->access_ctrl.shost_recovering ||
adapter->access_ctrl.host_removing ||
adapter->access_ctrl.pcie_recovering) {
dev_info(&adapter->pdev->dev,
"%s %s: Host is recovering, skip tm command!\n",
__func__, adapter->adapter_attr.name);
return FAILED;
}
db = leapraid_readl(&adapter->iomem_base->db);
if (db & LEAPRAID_DB_USED) {
dev_info(&adapter->pdev->dev,
"%s Unexpected db status, issuing hard reset!\n",
adapter->adapter_attr.name);
dev_info(&adapter->pdev->dev, "%s:%d: call hard_reset\n",
__func__, __LINE__);
rc = leapraid_hard_reset_handler(adapter, FULL_RESET);
return !rc ? SUCCESS : FAILED;
}
if ((db & LEAPRAID_DB_MASK) == LEAPRAID_DB_FAULT) {
dev_info(&adapter->pdev->dev, "%s:%d: call hard_reset\n",
__func__, __LINE__);
rc = leapraid_hard_reset_handler(adapter, FULL_RESET);
return !rc ? SUCCESS : FAILED;
}
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK)
io_req_tracker =
leapraid_get_io_tracker_from_taskid(adapter,
target_taskid);
adapter->driver_cmds.tm_cmd.status = LEAPRAID_CMD_PENDING;
scsi_tm_req =
leapraid_get_task_desc(adapter,
adapter->driver_cmds.tm_cmd.hp_taskid);
leapraid_build_tm_req(scsi_tm_req, hdl, lun, type, tr_method,
target_taskid);
memset(&adapter->driver_cmds.tm_cmd.reply, 0,
sizeof(struct leapraid_scsi_tm_rep));
leapraid_set_tm_flg(adapter, hdl);
init_completion(&adapter->driver_cmds.tm_cmd.done);
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK &&
io_req_tracker &&
io_req_tracker->msix_io < adapter->adapter_attr.rq_cnt)
msix_task = io_req_tracker->msix_io;
else
msix_task = 0;
taskid = adapter->driver_cmds.tm_cmd.hp_taskid;
leapraid_fire_hpr_task(adapter, taskid, msix_task);
wait_for_completion_timeout(&adapter->driver_cmds.tm_cmd.done,
LEAPRAID_TM_CMD_TIMEOUT * HZ);
if (!(adapter->driver_cmds.tm_cmd.status & LEAPRAID_CMD_DONE)) {
dev_err(&adapter->pdev->dev,
"%s: TM cmd timeout, status=0x%x\n",
__func__, adapter->driver_cmds.tm_cmd.status);
leapraid_log_req_context(adapter, taskid, scsi_tm_req);
issue_reset =
leapraid_check_reset(
adapter->driver_cmds.tm_cmd.status);
if (issue_reset) {
dev_info(&adapter->pdev->dev,
"%s:%d: call hard_reset\n",
__func__, __LINE__);
rc = leapraid_hard_reset_handler(adapter, FULL_RESET);
rc = !rc ? SUCCESS : FAILED;
goto out_cleanup;
}
}
leapraid_sync_irqs(adapter, false);
switch (type) {
case LEAPRAID_TM_TASKTYPE_TARGET_RESET:
case LEAPRAID_TM_TASKTYPE_ABRT_TASK_SET:
case LEAPRAID_TM_TASKTYPE_LOGICAL_UNIT_RESET:
rc = leapraid_tm_post_processing(adapter, hdl, channel, id,
lun, type, target_taskid);
break;
case LEAPRAID_TM_TASKTYPE_ABORT_TASK:
rc = SUCCESS;
scsiio_req = leapraid_get_task_desc(adapter, target_taskid);
if (le16_to_cpu(scsiio_req->dev_hdl) != hdl)
break;
dev_err(&adapter->pdev->dev, "%s: Abort failed, hdl=0x%04x\n",
adapter->adapter_attr.name, hdl);
rc = FAILED;
break;
case LEAPRAID_TM_TASKTYPE_QUERY_TASK:
rc = SUCCESS;
break;
default:
rc = FAILED;
break;
}
out_cleanup:
leapraid_clear_tm_flg(adapter, hdl);
adapter->driver_cmds.tm_cmd.status = LEAPRAID_CMD_NOT_USED;
return rc;
}
int leapraid_issue_locked_tm(struct leapraid_adapter *adapter, u16 hdl,
uint channel, uint id, uint lun, u8 type,
u16 target_taskid, u8 tr_method)
{
int rc;
mutex_lock(&adapter->driver_cmds.tm_cmd.mutex);
rc = leapraid_issue_tm(adapter, hdl, channel, id, lun, type,
target_taskid, tr_method);
mutex_unlock(&adapter->driver_cmds.tm_cmd.mutex);
return rc;
}
void leapraid_smart_fault_detect(struct leapraid_adapter *adapter, u16 hdl)
{
struct leapraid_starget_priv *starget_priv;
struct leapraid_sas_dev *sas_dev;
struct scsi_target *starget;
unsigned long flags;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
sas_dev = leapraid_hold_lock_get_sas_dev_by_hdl(adapter, hdl);
if (!sas_dev) {
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
return;
}
starget = sas_dev->starget;
starget_priv = starget ? starget->hostdata : NULL;
if (!starget_priv) {
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
goto release_sdev;
}
if (starget_priv->flg & LEAPRAID_TGT_FLG_RAID_MEMBER ||
starget_priv->flg & LEAPRAID_TGT_FLG_VOLUME) {
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
goto release_sdev;
}
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
leapraid_async_turn_on_led(adapter, hdl);
release_sdev:
if (sas_dev)
leapraid_sdev_put(sas_dev);
}
static void leapraid_process_sense_data(struct leapraid_adapter *adapter,
struct leapraid_scsiio_rep *scsiio_rep,
struct scsi_cmnd *scmd, u16 taskid)
{
struct sense_info data;
const void *sense_data;
u32 sz;
if (!(scsiio_rep->scsi_state & LEAPRAID_SCSI_STATE_AUTOSENSE_VALID))
return;
sense_data = leapraid_get_sense_buffer(adapter, taskid);
sz = min_t(u32, SCSI_SENSE_BUFFERSIZE,
le32_to_cpu(scsiio_rep->sense_count));
memcpy(scmd->sense_buffer, sense_data, sz);
leapraid_get_sense_data(scmd->sense_buffer, &data);
if (data.asc == ASC_FAILURE_PREDICTION_THRESHOLD_EXCEEDED)
leapraid_smart_fault_detect(adapter,
le16_to_cpu(scsiio_rep->dev_hdl));
}
static void leapraid_handle_data_underrun(
struct leapraid_scsiio_rep *scsiio_rep,
struct scsi_cmnd *scmd, u32 xfer_cnt)
{
u8 scsi_status = scsiio_rep->scsi_status;
u8 scsi_state = scsiio_rep->scsi_state;
scmd->result = (DID_OK << LEAPRAID_SCSI_HOST_SHIFT) | scsi_status;
if (scsi_state & LEAPRAID_SCSI_STATE_AUTOSENSE_VALID)
return;
if (xfer_cnt < scmd->underflow) {
if (scsi_status == SAM_STAT_BUSY)
scmd->result = SAM_STAT_BUSY;
else
scmd->result = DID_SOFT_ERROR <<
LEAPRAID_SCSI_HOST_SHIFT;
} else if (scsi_state & (LEAPRAID_SCSI_STATE_AUTOSENSE_FAILED |
LEAPRAID_SCSI_STATE_NO_SCSI_STATUS)) {
scmd->result = DID_SOFT_ERROR << LEAPRAID_SCSI_HOST_SHIFT;
} else if (scsi_state & LEAPRAID_SCSI_STATE_TERMINATED) {
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
} else if (!xfer_cnt && scmd->cmnd[0] == REPORT_LUNS) {
scsiio_rep->scsi_state = LEAPRAID_SCSI_STATE_AUTOSENSE_VALID;
scsiio_rep->scsi_status = SAM_STAT_CHECK_CONDITION;
scsi_build_sense(scmd, 0, ILLEGAL_REQUEST,
LEAPRAID_SCSI_ASC_INVALID_CMD_CODE,
LEAPRAID_SCSI_ASCQ_DEFAULT);
}
}
static void leapraid_handle_success_status(
struct leapraid_scsiio_rep *scsiio_rep,
struct scsi_cmnd *scmd,
u32 response_code)
{
u8 scsi_status = scsiio_rep->scsi_status;
u8 scsi_state = scsiio_rep->scsi_state;
scmd->result = (DID_OK << LEAPRAID_SCSI_HOST_SHIFT) | scsi_status;
if (response_code == LEAPRAID_TM_RSP_INVALID_FRAME ||
(scsi_state & (LEAPRAID_SCSI_STATE_AUTOSENSE_FAILED |
LEAPRAID_SCSI_STATE_NO_SCSI_STATUS)))
scmd->result = DID_SOFT_ERROR << LEAPRAID_SCSI_HOST_SHIFT;
else if (scsi_state & LEAPRAID_SCSI_STATE_TERMINATED)
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
}
static void leapraid_scsiio_done_dispatch(
struct leapraid_adapter *adapter,
struct leapraid_scsiio_rep *scsiio_rep,
struct leapraid_sdev_priv *sdev_priv,
struct scsi_cmnd *scmd,
u16 taskid, u32 response_code)
{
u8 scsi_status = scsiio_rep->scsi_status;
u8 scsi_state = scsiio_rep->scsi_state;
u16 adapter_status;
u32 xfer_cnt;
u32 sz;
adapter_status = le16_to_cpu(scsiio_rep->adapter_status) &
LEAPRAID_ADAPTER_STATUS_MASK;
xfer_cnt = le32_to_cpu(scsiio_rep->transfer_count);
scsi_set_resid(scmd, scsi_bufflen(scmd) - xfer_cnt);
if (adapter_status == LEAPRAID_ADAPTER_STATUS_SCSI_DATA_UNDERRUN &&
xfer_cnt == 0 &&
(scsi_status == LEAPRAID_SCSI_STATUS_BUSY ||
scsi_status == LEAPRAID_SCSI_STATUS_RESERVATION_CONFLICT ||
scsi_status == LEAPRAID_SCSI_STATUS_TASK_SET_FULL))
adapter_status = LEAPRAID_ADAPTER_STATUS_SUCCESS;
switch (adapter_status) {
case LEAPRAID_ADAPTER_STATUS_SCSI_DEVICE_NOT_THERE:
scmd->result = DID_NO_CONNECT << LEAPRAID_SCSI_HOST_SHIFT;
break;
case LEAPRAID_ADAPTER_STATUS_BUSY:
case LEAPRAID_ADAPTER_STATUS_INSUFFICIENT_RESOURCES:
scmd->result = SAM_STAT_BUSY;
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_RESIDUAL_MISMATCH:
if (xfer_cnt == 0 || scmd->underflow > xfer_cnt)
scmd->result = DID_SOFT_ERROR <<
LEAPRAID_SCSI_HOST_SHIFT;
else
scmd->result = (DID_OK << LEAPRAID_SCSI_HOST_SHIFT) |
scsi_status;
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_ADAPTER_TERMINATED:
if (sdev_priv->block) {
scmd->result = DID_TRANSPORT_DISRUPTED <<
LEAPRAID_SCSI_HOST_SHIFT;
return;
}
if (scmd->device->channel == RAID_CHANNEL &&
scsi_state == (LEAPRAID_SCSI_STATE_TERMINATED |
LEAPRAID_SCSI_STATE_NO_SCSI_STATUS)) {
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
break;
}
scmd->result = DID_SOFT_ERROR << LEAPRAID_SCSI_HOST_SHIFT;
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_TASK_TERMINATED:
case LEAPRAID_ADAPTER_STATUS_SCSI_EXT_TERMINATED:
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_DATA_UNDERRUN:
leapraid_handle_data_underrun(scsiio_rep, scmd, xfer_cnt);
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_DATA_OVERRUN:
scsi_set_resid(scmd, 0);
leapraid_handle_success_status(scsiio_rep, scmd,
response_code);
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_RECOVERED_ERROR:
case LEAPRAID_ADAPTER_STATUS_SUCCESS:
leapraid_handle_success_status(scsiio_rep, scmd,
response_code);
break;
case LEAPRAID_ADAPTER_STATUS_SCSI_PROTOCOL_ERROR:
case LEAPRAID_ADAPTER_STATUS_INTERNAL_ERROR:
case LEAPRAID_ADAPTER_STATUS_SCSI_IO_DATA_ERROR:
case LEAPRAID_ADAPTER_STATUS_SCSI_TASK_MGMT_FAILED:
default:
scmd->result = DID_SOFT_ERROR << LEAPRAID_SCSI_HOST_SHIFT;
break;
}
if (!scmd->result)
return;
scsi_print_command(scmd);
dev_warn(&adapter->pdev->dev,
"SCSI I/O: hdl=0x%x, status: 0x%x, 0x%x, 0x%x\n",
le16_to_cpu(scsiio_rep->dev_hdl), adapter_status,
scsi_status, scsi_state);
if (scsi_state & LEAPRAID_SCSI_STATE_AUTOSENSE_VALID) {
struct scsi_sense_hdr sshdr;
sz = min_t(u32, SCSI_SENSE_BUFFERSIZE,
le32_to_cpu(scsiio_rep->sense_count));
if (scsi_normalize_sense(scmd->sense_buffer, sz,
&sshdr))
dev_warn(&adapter->pdev->dev,
"Sense: key=0x%x asc=0x%x ascq=0x%x\n",
sshdr.sense_key, sshdr.asc,
sshdr.ascq);
else
dev_warn(&adapter->pdev->dev,
"Sense: Invalid sense data\n");
}
}
bool leapraid_scsiio_done(struct leapraid_adapter *adapter, u16 taskid,
u8 msix_index, u32 rep)
{
struct leapraid_scsiio_rep *scsiio_rep;
struct leapraid_sdev_priv *sdev_priv;
struct scsi_cmnd *scmd;
u32 response_code = 0;
scmd = leapraid_get_scmd_from_taskid(adapter, taskid);
if (!scmd)
return true;
scsiio_rep = leapraid_get_reply_vaddr(adapter, rep);
if (!scsiio_rep) {
scmd->result = DID_OK << LEAPRAID_SCSI_HOST_SHIFT;
goto out_scsiio_done;
}
sdev_priv = scmd->device->hostdata;
if (!sdev_priv ||
!sdev_priv->starget_priv ||
sdev_priv->starget_priv->deleted) {
scmd->result = DID_NO_CONNECT << LEAPRAID_SCSI_HOST_SHIFT;
goto out_scsiio_done;
}
if (scsiio_rep->scsi_state & LEAPRAID_SCSI_STATE_RESPONSE_INFO_VALID)
response_code = le32_to_cpu(scsiio_rep->resp_info) & 0xFF;
leapraid_process_sense_data(adapter, scsiio_rep, scmd, taskid);
leapraid_scsiio_done_dispatch(adapter, scsiio_rep, sdev_priv, scmd,
taskid, response_code);
out_scsiio_done:
scsi_dma_unmap(scmd);
leapraid_free_taskid(adapter, taskid);
scsi_done(scmd);
return false;
}
static void leapraid_probe_raid(struct leapraid_adapter *adapter)
{
struct leapraid_raid_volume *raid_volume, *next_raid_volume;
unsigned long flags;
LIST_HEAD(head);
int rc;
spin_lock_irqsave(&adapter->dev_topo.raid_volume_lock, flags);
list_splice_init(&adapter->dev_topo.raid_volume_list, &head);
spin_unlock_irqrestore(&adapter->dev_topo.raid_volume_lock, flags);
list_for_each_entry_safe(raid_volume, next_raid_volume, &head, list) {
spin_lock_irqsave(&adapter->dev_topo.raid_volume_lock, flags);
list_move_tail(&raid_volume->list,
&adapter->dev_topo.raid_volume_list);
if (raid_volume->starget) {
spin_unlock_irqrestore(
&adapter->dev_topo.raid_volume_lock, flags);
continue;
}
leapraid_raid_volume_get(raid_volume);
spin_unlock_irqrestore(
&adapter->dev_topo.raid_volume_lock, flags);
rc = scsi_add_device(adapter->shost, RAID_CHANNEL,
raid_volume->id, 0);
if (rc)
leapraid_raid_volume_remove(adapter, raid_volume);
leapraid_raid_volume_put(raid_volume);
}
}
static void leapraid_sas_dev_make_active(struct leapraid_adapter *adapter,
struct leapraid_sas_dev *sas_dev)
{
unsigned long flags;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
if (!list_empty(&sas_dev->list)) {
list_del_init(&sas_dev->list);
leapraid_sdev_put(sas_dev);
}
leapraid_sdev_get(sas_dev);
list_add_tail(&sas_dev->list, &adapter->dev_topo.sas_dev_list);
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
}
static void leapraid_probe_sas(struct leapraid_adapter *adapter)
{
struct leapraid_sas_dev *sas_dev;
bool added;
for (;;) {
sas_dev = leapraid_get_next_sas_dev_from_init_list(adapter);
if (!sas_dev)
break;
added = leapraid_transport_port_add(adapter,
sas_dev->hdl,
sas_dev->parent_sas_addr,
sas_dev->card_port);
if (!added)
goto remove_dev;
if (!sas_dev->starget &&
!adapter->scan_dev_desc.driver_loading) {
leapraid_transport_port_remove(adapter,
sas_dev->sas_addr,
sas_dev->parent_sas_addr,
sas_dev->card_port);
goto remove_dev;
}
leapraid_sas_dev_make_active(adapter, sas_dev);
leapraid_sdev_put(sas_dev);
continue;
remove_dev:
leapraid_sas_dev_remove(adapter, sas_dev);
leapraid_sdev_put(sas_dev);
}
}
static bool leapraid_get_boot_dev(struct leapraid_adapter *adapter,
struct leapraid_boot_dev *boot_dev,
void **pdev, u32 *pchnl)
{
unsigned long flags;
void *dev;
u32 chnl;
spin_lock_irqsave(&adapter->boot_devs.lock, flags);
if (!boot_dev->dev) {
spin_unlock_irqrestore(&adapter->boot_devs.lock, flags);
return false;
}
dev = boot_dev->dev;
chnl = boot_dev->chnl;
leapraid_boot_dev_get(dev, chnl);
spin_unlock_irqrestore(&adapter->boot_devs.lock, flags);
*pdev = dev;
*pchnl = chnl;
return true;
}
static void leapraid_probe_boot_dev(struct leapraid_adapter *adapter)
{
struct leapraid_raid_volume *raid_volume;
struct leapraid_sas_dev *sas_dev;
struct leapraid_sas_port *sport;
unsigned long flags;
void *dev = NULL;
u32 chnl;
if (leapraid_get_boot_dev(adapter,
&adapter->boot_devs.requested_boot_dev,
&dev, &chnl))
goto boot_dev_found;
if (leapraid_get_boot_dev(adapter,
&adapter->boot_devs.requested_alt_boot_dev,
&dev, &chnl))
goto boot_dev_found;
if (leapraid_get_boot_dev(adapter,
&adapter->boot_devs.current_boot_dev,
&dev, &chnl))
goto boot_dev_found;
return;
boot_dev_found:
switch (chnl) {
case RAID_CHANNEL:
raid_volume = dev;
if (raid_volume->starget)
break;
/* TODO eedp */
if (scsi_add_device(adapter->shost, RAID_CHANNEL,
raid_volume->id, 0))
leapraid_raid_volume_remove(adapter, raid_volume);
break;
default:
sas_dev = dev;
if (sas_dev->starget)
break;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
list_move_tail(&sas_dev->list,
&adapter->dev_topo.sas_dev_list);
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
if (!sas_dev->card_port)
break;
sport = leapraid_transport_port_add(adapter, sas_dev->hdl,
sas_dev->parent_sas_addr,
sas_dev->card_port);
if (!sport)
leapraid_sas_dev_remove(adapter, sas_dev);
break;
}
leapraid_boot_dev_put(dev, chnl);
}
static void leapraid_probe_devices(struct leapraid_adapter *adapter)
{
leapraid_probe_boot_dev(adapter);
if (adapter->adapter_attr.raid_support) {
leapraid_probe_raid(adapter);
leapraid_probe_sas(adapter);
} else {
leapraid_probe_sas(adapter);
}
}
void leapraid_scan_dev_done(struct leapraid_adapter *adapter)
{
if (adapter->scan_dev_desc.wait_scan_dev_done) {
adapter->scan_dev_desc.wait_scan_dev_done = 0;
leapraid_probe_devices(adapter);
}
adapter->scan_dev_desc.scan_start = 0;
leapraid_check_scheduled_fault_start(adapter);
leapraid_fw_log_start(adapter);
adapter->scan_dev_desc.driver_loading = 0;
wake_up(&adapter->scan_dev_desc.wait_driver_loading);
}
static const struct pci_device_id leapraid_pci_table[] = {
{ PCI_DEVICE_SUB(LEAPRAID_VENDOR_ID, LEAPRAID_DEVID_HBA,
LEAPRAID_SUBVENDOR_ID,
LEAPRAID_SUBDEVID_HBA) },
{ 0, }
};
static inline bool leapraid_is_scmd_permitted(struct leapraid_adapter *adapter,
struct scsi_cmnd *scmd)
{
u8 opcode;
if (adapter->access_ctrl.pcie_recovering ||
atomic_read(&adapter->overheat_desc.thermal_alert))
return false;
if (adapter->access_ctrl.host_removing) {
if (leapraid_pci_removed(adapter))
return false;
opcode = scmd->cmnd[0];
return opcode == SYNCHRONIZE_CACHE || opcode == START_STOP;
}
return true;
}
static bool leapraid_should_queuecommand(struct leapraid_adapter *adapter,
struct leapraid_sdev_priv *sdev_priv,
struct scsi_cmnd *scmd,
enum scsi_qc_status *rc)
{
struct leapraid_starget_priv *starget_priv;
if (!sdev_priv || !sdev_priv->starget_priv)
goto no_connect;
if (!leapraid_is_scmd_permitted(adapter, scmd))
goto no_connect;
starget_priv = sdev_priv->starget_priv;
if (starget_priv->hdl == LEAPRAID_INVALID_DEV_HANDLE)
goto no_connect;
if (sdev_priv->block &&
scsi_get_host_state(scmd->device->host) == SHOST_RECOVERY &&
scmd->cmnd[0] == TEST_UNIT_READY) {
scsi_build_sense(scmd, 0, UNIT_ATTENTION,
LEAPRAID_SCSI_ASC_POWER_ON_RESET,
LEAPRAID_SCSI_ASCQ_POWER_ON_RESET);
goto scsiio_done;
}
if (adapter->access_ctrl.shost_recovering ||
adapter->reset_desc.adapter_link_resetting) {
*rc = SCSI_MLQUEUE_HOST_BUSY;
return false;
}
if (starget_priv->deleted || sdev_priv->deleted)
goto no_connect;
if (starget_priv->tm_busy || sdev_priv->block) {
*rc = SCSI_MLQUEUE_DEVICE_BUSY;
return false;
}
return true;
no_connect:
scmd->result = DID_NO_CONNECT << LEAPRAID_SCSI_HOST_SHIFT;
scsiio_done:
scsi_done(scmd);
return false;
}
static u32 build_scsiio_req_control(struct scsi_cmnd *scmd,
struct leapraid_sdev_priv *sdev_priv)
{
u32 control;
switch (scmd->sc_data_direction) {
case DMA_FROM_DEVICE:
control = LEAPRAID_SCSIIO_CTRL_READ;
break;
case DMA_TO_DEVICE:
control = LEAPRAID_SCSIIO_CTRL_WRITE;
break;
default:
control = LEAPRAID_SCSIIO_CTRL_NODATATRANSFER;
break;
}
control |= LEAPRAID_SCSIIO_CTRL_SIMPLEQ;
if (sdev_priv->ncq_prio_enable &&
(IOPRIO_PRIO_CLASS(req_get_ioprio(scsi_cmd_to_rq(scmd))) ==
IOPRIO_CLASS_RT))
control |= LEAPRAID_SCSIIO_CTRL_CMDPRI;
if (scmd->cmd_len == 32)
control |= LEAPRAID_SCSIIO_CTRL_CDB_32BYTE <<
LEAPRAID_SCSIIO_CTRL_CDB_LEN_SHIFT;
return control;
}
enum scsi_qc_status leapraid_queuecommand(struct Scsi_Host *shost,
struct scsi_cmnd *scmd)
{
struct leapraid_adapter *adapter = shost_priv(scmd->device->host);
struct leapraid_sdev_priv *sdev_priv = scmd->device->hostdata;
struct leapraid_starget_priv *starget_priv;
struct leapraid_scsiio_req *scsiio_req;
u32 control;
u16 taskid;
u16 hdl;
enum scsi_qc_status rc = 0;
if (!leapraid_should_queuecommand(adapter, sdev_priv, scmd, &rc))
return rc;
starget_priv = sdev_priv->starget_priv;
hdl = starget_priv->hdl;
control = build_scsiio_req_control(scmd, sdev_priv);
taskid = leapraid_alloc_scsiio_taskid(adapter, scmd);
scsiio_req = leapraid_get_task_desc(adapter, taskid);
scsiio_req->func = LEAPRAID_FUNC_SCSIIO;
if (sdev_priv->starget_priv->flg & LEAPRAID_TGT_FLG_RAID_MEMBER)
scsiio_req->func = LEAPRAID_FUNC_SCSIIO_RAID_PASSTHROUGH;
else
scsiio_req->func = LEAPRAID_FUNC_SCSIIO;
scsiio_req->dev_hdl = cpu_to_le16(hdl);
scsiio_req->data_len = cpu_to_le32(scsi_bufflen(scmd));
scsiio_req->ctrl = cpu_to_le32(control);
scsiio_req->io_flg = cpu_to_le16(scmd->cmd_len);
scsiio_req->msg_flg = 0;
scsiio_req->sense_buffer_len = SCSI_SENSE_BUFFERSIZE;
scsiio_req->sense_buffer_low_add =
leapraid_get_sense_buffer_dma(adapter, taskid);
scsiio_req->sgl_offset0 =
offsetof(struct leapraid_scsiio_req, sgl) /
LEAPRAID_DWORDS_BYTE_SIZE;
int_to_scsilun(sdev_priv->lun, (struct scsi_lun *)scsiio_req->lun);
memcpy(scsiio_req->cdb.cdb32, scmd->cmnd, scmd->cmd_len);
if (scsiio_req->data_len) {
if (leapraid_build_scmd_ieee_sg(adapter, scmd, taskid)) {
leapraid_free_taskid(adapter, taskid);
return SCSI_MLQUEUE_HOST_BUSY;
}
} else {
leapraid_build_ieee_nodata_sg(adapter, &scsiio_req->sgl);
}
if (likely(scsiio_req->func == LEAPRAID_FUNC_SCSIIO))
leapraid_fire_scsi_io(adapter, taskid,
le16_to_cpu(scsiio_req->dev_hdl));
else
leapraid_fire_task(adapter, taskid);
dev_dbg(&adapter->pdev->dev,
"LEAPRAID_SCSIIO: Send Descriptor taskid %d, req type 0x%x\n",
taskid, scsiio_req->func);
return rc;
}
static int leapraid_init_cmd_priv(struct Scsi_Host *shost,
struct scsi_cmnd *scmd)
{
struct leapraid_adapter *adapter = shost_priv(shost);
struct leapraid_io_req_tracker *io_tracker;
io_tracker = scsi_cmd_priv(scmd);
leapraid_internal_init_cmd_priv(adapter, io_tracker);
return 0;
}
static int leapraid_exit_cmd_priv(struct Scsi_Host *shost,
struct scsi_cmnd *scmd)
{
struct leapraid_adapter *adapter = shost_priv(shost);
struct leapraid_io_req_tracker *io_tracker;
io_tracker = scsi_cmd_priv(scmd);
leapraid_internal_exit_cmd_priv(adapter, io_tracker);
return 0;
}
static int leapraid_error_handler(struct scsi_cmnd *scmd,
const char *str, u8 type)
{
struct leapraid_adapter *adapter = shost_priv(scmd->device->host);
struct scsi_target *starget = scmd->device->sdev_target;
struct leapraid_starget_priv *starget_priv = starget->hostdata;
struct leapraid_io_req_tracker *io_req_tracker = NULL;
struct leapraid_sdev_priv *sdev_priv;
struct leapraid_sas_dev *sas_dev = NULL;
u16 hdl;
int rc;
dev_info(&adapter->pdev->dev,
"EH enter: type=%s, scmd=0x%p, req tag=%d\n", str, scmd,
scsi_cmd_to_rq(scmd)->tag);
scsi_print_command(scmd);
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK) {
io_req_tracker = scsi_cmd_priv(scmd);
dev_info(&adapter->pdev->dev,
"EH ABORT: scmd=0x%p, pend=%ums, tout=%ums, tag=%d\n",
scmd,
jiffies_to_msecs(jiffies - scmd->jiffies_at_alloc),
(scsi_cmd_to_rq(scmd)->timeout / HZ) * 1000,
scsi_cmd_to_rq(scmd)->tag);
}
if (leapraid_pci_removed(adapter) ||
adapter->access_ctrl.host_removing) {
dev_err(&adapter->pdev->dev,
"EH %s failed: %s scmd=0x%p\n", str,
(adapter->access_ctrl.host_removing ?
"shost removing!" : "pci_dev removed!"), scmd);
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK &&
io_req_tracker && io_req_tracker->taskid)
leapraid_free_taskid(adapter, io_req_tracker->taskid);
scmd->result = DID_NO_CONNECT << LEAPRAID_SCSI_HOST_SHIFT;
#ifdef FAST_IO_FAIL
rc = FAST_IO_FAIL;
#else
rc = FAILED;
#endif
goto out_eh_done;
}
sdev_priv = scmd->device->hostdata;
if (!sdev_priv || !sdev_priv->starget_priv) {
dev_warn(&adapter->pdev->dev,
"EH %s: SAS dev or starget gone, scmd=0x%p\n",
str, scmd);
scmd->result = DID_NO_CONNECT << LEAPRAID_SCSI_HOST_SHIFT;
scsi_done(scmd);
rc = SUCCESS;
goto out_eh_done;
}
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK) {
if (!io_req_tracker) {
dev_warn(&adapter->pdev->dev,
"EH ABORT: No I/O tracker, scmd 0x%p\n", scmd);
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
rc = SUCCESS;
goto out_eh_done;
}
if (sdev_priv->starget_priv->flg &
LEAPRAID_TGT_FLG_RAID_MEMBER ||
sdev_priv->starget_priv->flg & LEAPRAID_TGT_FLG_VOLUME) {
dev_err(&adapter->pdev->dev,
"EH ABORT: Skip RAID/VOLUME, scmd=0x%p\n",
scmd);
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
rc = FAILED;
goto out_eh_done;
}
hdl = sdev_priv->starget_priv->hdl;
} else {
hdl = 0;
if (sdev_priv->starget_priv->flg &
LEAPRAID_TGT_FLG_RAID_MEMBER) {
sas_dev = leapraid_get_sas_dev_from_tgt(adapter,
starget_priv);
if (sas_dev)
hdl = sas_dev->volume_hdl;
} else {
hdl = sdev_priv->starget_priv->hdl;
}
if (!hdl) {
dev_err(&adapter->pdev->dev,
"EH %s failed: Target handle 0, scmd=0x%p\n",
str, scmd);
scmd->result = DID_RESET << LEAPRAID_SCSI_HOST_SHIFT;
rc = FAILED;
goto out_eh_done;
}
}
dev_info(&adapter->pdev->dev,
"EH issue TM: type=%s, scmd=0x%p, hdl=0x%x\n",
str, scmd, hdl);
rc = leapraid_issue_locked_tm(
adapter,
hdl,
scmd->device->channel,
scmd->device->id,
(type == LEAPRAID_TM_TASKTYPE_TARGET_RESET ?
0 : scmd->device->lun),
type,
(type == LEAPRAID_TM_TASKTYPE_ABORT_TASK ?
io_req_tracker->taskid : 0),
LEAPRAID_TM_MSGFLAGS_LINK_RESET);
out_eh_done:
if (type == LEAPRAID_TM_TASKTYPE_ABORT_TASK) {
if (rc != SUCCESS)
dev_err(&adapter->pdev->dev,
"EH ABORT result: failed, scmd=0x%p\n",
scmd);
} else {
if (rc != SUCCESS)
dev_err(&adapter->pdev->dev,
"EH %s result: failed, scmd=0x%p\n",
str, scmd);
if (sas_dev)
leapraid_sdev_put(sas_dev);
}
return rc;
}
static int leapraid_eh_abort_handler(struct scsi_cmnd *scmd)
{
return leapraid_error_handler(scmd, "ABORT TASK",
LEAPRAID_TM_TASKTYPE_ABORT_TASK);
}
static int leapraid_eh_device_reset_handler(struct scsi_cmnd *scmd)
{
return leapraid_error_handler(scmd, "UNIT RESET",
LEAPRAID_TM_TASKTYPE_LOGICAL_UNIT_RESET);
}
static int leapraid_eh_target_reset_handler(struct scsi_cmnd *scmd)
{
return leapraid_error_handler(scmd, "TARGET RESET",
LEAPRAID_TM_TASKTYPE_TARGET_RESET);
}
static int leapraid_eh_host_reset_handler(struct scsi_cmnd *scmd)
{
struct leapraid_adapter *adapter = shost_priv(scmd->device->host);
int rc;
dev_info(&adapter->pdev->dev,
"EH HOST RESET enter: scmd=%p, req tag=%d\n",
scmd,
scsi_cmd_to_rq(scmd)->tag);
scsi_print_command(scmd);
if (adapter->scan_dev_desc.driver_loading ||
adapter->access_ctrl.host_removing) {
dev_err(&adapter->pdev->dev,
"EH HOST RESET failed: %s scmd=0x%p\n",
(adapter->access_ctrl.host_removing ?
"shost removing!" : "driver loading!"), scmd);
rc = FAILED;
goto out_host_reset_done;
}
dev_info(&adapter->pdev->dev, "%s:%d: Issuing hard reset\n",
__func__, __LINE__);
if (leapraid_hard_reset_handler(adapter, FULL_RESET) < 0)
rc = FAILED;
else
rc = SUCCESS;
out_host_reset_done:
if (rc != SUCCESS)
dev_err(&adapter->pdev->dev,
"EH HOST RESET result: failed, scmd=0x%p\n",
scmd);
return rc;
}
static int leapraid_sdev_init(struct scsi_device *sdev)
{
struct leapraid_raid_volume *raid_volume;
struct leapraid_starget_priv *stgt_priv;
struct leapraid_sdev_priv *sdev_priv;
struct leapraid_adapter *adapter;
struct leapraid_sas_dev *sas_dev;
struct scsi_target *tgt;
struct Scsi_Host *shost;
unsigned long flags;
sdev_priv = kzalloc_obj(*sdev_priv);
if (!sdev_priv)
return -ENOMEM;
sdev_priv->lun = sdev->lun;
sdev_priv->flg = LEAPRAID_DEVICE_FLG_INIT;
tgt = scsi_target(sdev);
stgt_priv = tgt->hostdata;
stgt_priv->num_luns++;
sdev_priv->starget_priv = stgt_priv;
sdev->hostdata = sdev_priv;
if (stgt_priv->flg & LEAPRAID_TGT_FLG_RAID_MEMBER)
sdev->no_uld_attach = LEAPRAID_NO_ULD_ATTACH;
shost = dev_to_shost(&tgt->dev);
adapter = shost_priv(shost);
if (tgt->channel == RAID_CHANNEL) {
raid_volume = leapraid_raid_volume_find_by_id(adapter,
tgt->id,
tgt->channel);
if (raid_volume) {
spin_lock_irqsave(&adapter->dev_topo.raid_volume_lock,
flags);
raid_volume->sdev = sdev;
spin_unlock_irqrestore(
&adapter->dev_topo.raid_volume_lock, flags);
leapraid_raid_volume_put(raid_volume);
}
}
if (!(stgt_priv->flg & LEAPRAID_TGT_FLG_VOLUME)) {
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
sas_dev = leapraid_hold_lock_get_sas_dev_by_addr(
adapter,
stgt_priv->sas_address,
stgt_priv->card_port);
if (sas_dev && !sas_dev->starget) {
sdev_printk(KERN_INFO, sdev,
"%s: Assign starget to sas_dev\n",
__func__);
sas_dev->starget = tgt;
}
if (sas_dev)
leapraid_sdev_put(sas_dev);
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
}
return 0;
}
static bool leapraid_slave_cfg_volume(struct scsi_device *sdev,
struct queue_limits *lim)
{
struct Scsi_Host *shost = sdev->host;
struct leapraid_adapter *adapter = shost_priv(shost);
struct leapraid_raid_volume *raid_volume;
struct leapraid_starget_priv *starget_priv;
struct leapraid_sdev_priv *sdev_priv;
int qd;
u16 hdl;
sdev_priv = sdev->hostdata;
starget_priv = sdev_priv->starget_priv;
hdl = starget_priv->hdl;
raid_volume = leapraid_raid_volume_find_by_hdl(adapter, hdl);
if (!raid_volume) {
sdev_printk(KERN_WARNING, sdev,
"%s: RAID volume not found, hdl=0x%x\n",
__func__, hdl);
return 1;
}
if (leapraid_get_volume_cap(adapter, raid_volume)) {
sdev_printk(KERN_ERR, sdev,
"%s: Failed to get volume cap, hdl=0x%x\n",
__func__, hdl);
leapraid_raid_volume_put(raid_volume);
return 1;
}
qd = (raid_volume->dev_info & LEAPRAID_DEVTYP_SSP_TGT) ?
adapter->adapter_attr.narrowport_max_queue_depth :
adapter->adapter_attr.sata_max_queue_depth;
if (raid_volume->vol_type != LEAPRAID_VOL_TYPE_RAID0)
qd = adapter->adapter_attr.raid_volume_max_queue_depth;
sdev_printk(KERN_INFO, sdev,
"RAID volume: hdl=0x%04x, wwid=0x%016llx\n",
raid_volume->hdl, (unsigned long long)raid_volume->wwid);
if (shost->max_sectors > LEAPRAID_MAX_SECTORS)
lim->max_hw_sectors = LEAPRAID_MAX_SECTORS;
leapraid_change_queue_depth(sdev, qd);
leapraid_raid_volume_put(raid_volume);
return 0;
}
static bool leapraid_slave_configure_extra(struct scsi_device *sdev,
struct leapraid_sas_dev **psas_dev,
u16 vol_hdl, u64 volume_wwid,
bool *is_target_ssp, int *qd)
{
struct leapraid_sas_dev *sas_dev;
struct leapraid_sdev_priv *sdev_priv;
struct Scsi_Host *shost = sdev->host;
struct leapraid_adapter *adapter = shost_priv(shost);
unsigned long flags;
sdev_priv = sdev->hostdata;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
*is_target_ssp = false;
sas_dev = leapraid_hold_lock_get_sas_dev_by_addr(
adapter,
sdev_priv->starget_priv->sas_address,
sdev_priv->starget_priv->card_port);
if (!sas_dev) {
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
sdev_printk(KERN_WARNING, sdev,
"%s: SAS dev not found, sas=0x%llx\n",
__func__, sdev_priv->starget_priv->sas_address);
return 1;
}
*psas_dev = sas_dev;
sas_dev->volume_hdl = vol_hdl;
sas_dev->volume_wwid = volume_wwid;
if (sas_dev->dev_info & LEAPRAID_DEVTYP_SSP_TGT) {
*qd = (sas_dev->port_connection > 1) ?
adapter->adapter_attr.wideport_max_queue_depth :
adapter->adapter_attr.narrowport_max_queue_depth;
*is_target_ssp = true;
if (sas_dev->dev_info & LEAPRAID_DEVTYP_SEP)
sdev_priv->sep = 1;
} else {
*qd = adapter->adapter_attr.sata_max_queue_depth;
}
sdev_printk(KERN_INFO, sdev,
"device name=0x%016llx, SAS addr=0x%016llx\n",
(unsigned long long)sas_dev->dev_name,
(unsigned long long)sas_dev->sas_addr);
leapraid_sdev_put(sas_dev);
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
return 0;
}
static int leapraid_sdev_configure(struct scsi_device *sdev,
struct queue_limits *lim)
{
struct leapraid_sas_dev *sas_dev;
struct leapraid_sdev_priv *sdev_priv;
struct Scsi_Host *shost = sdev->host;
struct leapraid_starget_priv *starget_priv;
struct leapraid_adapter *adapter;
u16 hdl, vol_hdl = 0;
bool is_target_ssp = false;
u64 volume_wwid = 0;
int qd = 1;
adapter = shost_priv(shost);
sdev_priv = sdev->hostdata;
sdev_priv->flg &= ~LEAPRAID_DEVICE_FLG_INIT;
starget_priv = sdev_priv->starget_priv;
hdl = starget_priv->hdl;
if (starget_priv->flg & LEAPRAID_TGT_FLG_VOLUME)
return leapraid_slave_cfg_volume(sdev, lim);
if (starget_priv->flg & LEAPRAID_TGT_FLG_RAID_MEMBER) {
if (leapraid_cfg_get_volume_hdl(adapter, hdl, &vol_hdl)) {
sdev_printk(KERN_WARNING, sdev,
"%s: Get volume hdl failed, hdl=0x%x\n",
__func__, hdl);
return 1;
}
if (vol_hdl && leapraid_cfg_get_volume_wwid(adapter, vol_hdl,
&volume_wwid)) {
sdev_printk(KERN_WARNING, sdev,
"%s: Get wwid failed, volume_hdl=0x%x\n",
__func__, vol_hdl);
return 1;
}
}
if (leapraid_slave_configure_extra(sdev, &sas_dev, vol_hdl,
volume_wwid, &is_target_ssp, &qd)) {
sdev_printk(KERN_WARNING, sdev,
"%s: slave_configure_extra failed\n", __func__);
return 1;
}
leapraid_change_queue_depth(sdev, qd);
if (is_target_ssp)
sas_read_port_mode_page(sdev);
return 0;
}
static void leapraid_sdev_destroy(struct scsi_device *sdev)
{
struct leapraid_adapter *adapter;
struct Scsi_Host *shost;
struct leapraid_sas_dev *sas_dev;
struct leapraid_starget_priv *starget_priv;
struct scsi_target *stgt;
unsigned long flags;
if (!sdev->hostdata)
return;
stgt = scsi_target(sdev);
starget_priv = stgt->hostdata;
starget_priv->num_luns--;
shost = dev_to_shost(&stgt->dev);
adapter = shost_priv(shost);
if (!(starget_priv->flg & LEAPRAID_TGT_FLG_VOLUME)) {
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
sas_dev = leapraid_hold_lock_get_sas_dev_from_tgt(adapter,
starget_priv);
if (sas_dev && !starget_priv->num_luns)
sas_dev->starget = NULL;
if (sas_dev)
leapraid_sdev_put(sas_dev);
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
}
kfree(sdev->hostdata);
sdev->hostdata = NULL;
}
static int leapraid_target_alloc_raid(struct scsi_target *tgt)
{
struct leapraid_starget_priv *starget_priv;
struct leapraid_raid_volume *raid_volume;
struct Scsi_Host *shost = dev_to_shost(&tgt->dev);
struct leapraid_adapter *adapter = shost_priv(shost);
unsigned long flags;
starget_priv = tgt->hostdata;
raid_volume = leapraid_raid_volume_find_by_id(adapter, tgt->id,
tgt->channel);
if (raid_volume) {
spin_lock_irqsave(&adapter->dev_topo.raid_volume_lock, flags);
starget_priv->hdl = raid_volume->hdl;
starget_priv->sas_address = raid_volume->wwid;
starget_priv->flg |= LEAPRAID_TGT_FLG_VOLUME;
raid_volume->starget = tgt;
spin_unlock_irqrestore(&adapter->dev_topo.raid_volume_lock,
flags);
leapraid_raid_volume_put(raid_volume);
}
return 0;
}
static int leapraid_target_alloc_sas(struct scsi_target *tgt)
{
struct sas_rphy *rphy;
struct Scsi_Host *shost;
struct leapraid_sas_dev *sas_dev;
struct leapraid_adapter *adapter;
struct leapraid_starget_priv *starget_priv;
unsigned long flags;
shost = dev_to_shost(&tgt->dev);
adapter = shost_priv(shost);
starget_priv = tgt->hostdata;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
rphy = dev_to_rphy(tgt->dev.parent);
sas_dev = leapraid_hold_lock_get_sas_dev_by_addr_and_rphy(
adapter,
rphy->identify.sas_address,
rphy);
if (sas_dev) {
starget_priv->sas_dev = sas_dev;
starget_priv->card_port = sas_dev->card_port;
starget_priv->sas_address = sas_dev->sas_addr;
starget_priv->hdl = sas_dev->hdl;
sas_dev->channel = tgt->channel;
sas_dev->id = tgt->id;
sas_dev->starget = tgt;
if (sas_dev->hdl &&
sas_dev->hdl <=
adapter->adapter_attr.features.max_dev_handle &&
test_bit(sas_dev->hdl, adapter->dev_topo.pd_hdls))
starget_priv->flg |= LEAPRAID_TGT_FLG_RAID_MEMBER;
}
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
return 0;
}
static int leapraid_target_alloc(struct scsi_target *tgt)
{
struct leapraid_starget_priv *starget_priv;
starget_priv = kzalloc_obj(*starget_priv);
if (!starget_priv)
return -ENOMEM;
tgt->hostdata = starget_priv;
starget_priv->starget = tgt;
starget_priv->hdl = LEAPRAID_INVALID_DEV_HANDLE;
if (tgt->channel == RAID_CHANNEL)
return leapraid_target_alloc_raid(tgt);
return leapraid_target_alloc_sas(tgt);
}
static void leapraid_target_destroy_raid(struct scsi_target *tgt)
{
struct leapraid_raid_volume *raid_volume;
struct Scsi_Host *shost = dev_to_shost(&tgt->dev);
struct leapraid_adapter *adapter = shost_priv(shost);
unsigned long flags;
raid_volume = leapraid_raid_volume_find_by_id(adapter, tgt->id,
tgt->channel);
if (raid_volume) {
spin_lock_irqsave(&adapter->dev_topo.raid_volume_lock, flags);
raid_volume->starget = NULL;
raid_volume->sdev = NULL;
spin_unlock_irqrestore(&adapter->dev_topo.raid_volume_lock,
flags);
leapraid_raid_volume_put(raid_volume);
}
}
static void leapraid_target_destroy_sas(struct scsi_target *tgt)
{
struct leapraid_adapter *adapter;
struct leapraid_sas_dev *sas_dev;
struct leapraid_starget_priv *starget_priv;
struct Scsi_Host *shost;
unsigned long flags;
shost = dev_to_shost(&tgt->dev);
adapter = shost_priv(shost);
starget_priv = tgt->hostdata;
spin_lock_irqsave(&adapter->dev_topo.sas_dev_lock, flags);
sas_dev = leapraid_hold_lock_get_sas_dev_from_tgt(adapter,
starget_priv);
if (sas_dev &&
sas_dev->starget == tgt &&
sas_dev->id == tgt->id &&
sas_dev->channel == tgt->channel)
sas_dev->starget = NULL;
if (sas_dev) {
starget_priv->sas_dev = NULL;
leapraid_sdev_put(sas_dev);
leapraid_sdev_put(sas_dev);
}
spin_unlock_irqrestore(&adapter->dev_topo.sas_dev_lock, flags);
}
static void leapraid_target_destroy(struct scsi_target *tgt)
{
struct leapraid_starget_priv *starget_priv;
starget_priv = tgt->hostdata;
if (!starget_priv)
return;
if (tgt->channel == RAID_CHANNEL) {
leapraid_target_destroy_raid(tgt);
goto out_free;
}
leapraid_target_destroy_sas(tgt);
out_free:
kfree(starget_priv);
tgt->hostdata = NULL;
}
static bool leapraid_scan_check_status(struct leapraid_adapter *adapter,
bool *need_hard_reset)
{
u32 adapter_state;
if (adapter->scan_dev_desc.scan_start) {
adapter_state = leapraid_get_adapter_state(adapter);
if (adapter_state == LEAPRAID_DB_FAULT) {
*need_hard_reset = true;
return true;
}
return false;
}
if (adapter->driver_cmds.scan_dev_cmd.status & LEAPRAID_CMD_RESET) {
dev_err(&adapter->pdev->dev,
"Device scan: Aborted due to reset\n");
adapter->driver_cmds.scan_dev_cmd.status =
LEAPRAID_CMD_NOT_USED;
adapter->scan_dev_desc.driver_loading = 0;
wake_up(&adapter->scan_dev_desc.wait_driver_loading);
return true;
}
if (adapter->scan_dev_desc.scan_start_failed) {
dev_err(&adapter->pdev->dev,
"Device scan: Failed with adapter_status=0x%08x\n",
adapter->scan_dev_desc.scan_start_failed);
adapter->scan_dev_desc.driver_loading = 0;
wake_up(&adapter->scan_dev_desc.wait_driver_loading);
adapter->scan_dev_desc.wait_scan_dev_done = 0;
adapter->access_ctrl.host_removing = 1;
return true;
}
adapter->driver_cmds.scan_dev_cmd.status = LEAPRAID_CMD_NOT_USED;
leapraid_scan_dev_done(adapter);
return true;
}
static int leapraid_scan_finished(struct Scsi_Host *shost, unsigned long time)
{
struct leapraid_adapter *adapter = shost_priv(shost);
bool need_hard_reset = false;
if (time >= (LEAPRAID_SCAN_DEV_CMD_TIMEOUT * HZ)) {
adapter->driver_cmds.scan_dev_cmd.status =
LEAPRAID_CMD_NOT_USED;
dev_err(&adapter->pdev->dev,
"Device scan: Failed with timeout 300s\n");
adapter->scan_dev_desc.driver_loading = 0;
wake_up(&adapter->scan_dev_desc.wait_driver_loading);
return 1;
}
if (!leapraid_scan_check_status(adapter, &need_hard_reset))
return 0;
if (need_hard_reset) {
adapter->driver_cmds.scan_dev_cmd.status =
LEAPRAID_CMD_NOT_USED;
dev_info(&adapter->pdev->dev, "%s:%d: call hard_reset\n",
__func__, __LINE__);
if (leapraid_hard_reset_handler(adapter, PART_RESET)) {
adapter->scan_dev_desc.driver_loading = 0;
wake_up(&adapter->scan_dev_desc.wait_driver_loading);
}
}
return 1;
}
static void leapraid_scan_start(struct Scsi_Host *shost)
{
struct leapraid_adapter *adapter = shost_priv(shost);
adapter->scan_dev_desc.scan_start = 1;
leapraid_scan_dev(adapter, true);
}
static u32 leapraid_get_raid_qd(struct leapraid_adapter *adapter,
const struct leapraid_raid_volume *raid_volume,
bool default_qd)
{
const struct leapraid_adapter_attr *attr = &adapter->adapter_attr;
if (raid_volume->vol_type != LEAPRAID_VOL_TYPE_RAID0)
return default_qd ? LEAPRAID_RAID_QUEUE_DEPTH :
attr->raid_volume_max_queue_depth;
if (raid_volume->dev_info & LEAPRAID_DEVTYP_SSP_TGT)
return default_qd ? LEAPRAID_SAS_QUEUE_DEPTH :
attr->narrowport_max_queue_depth;
return default_qd ? LEAPRAID_SATA_QUEUE_DEPTH :
attr->sata_max_queue_depth;
}
static int leapraid_calc_max_queue_depth(struct scsi_device *sdev, int qdepth)
{
struct Scsi_Host *shost;
struct leapraid_adapter *adapter;
struct leapraid_starget_priv *starget_priv;
struct leapraid_sdev_priv *sdev_priv;
struct leapraid_raid_volume *raid_volume;
struct leapraid_sas_dev *sas_dev;
int max_depth;
u32 default_qdepth = 0;
u32 fw_qdepth = 0;
shost = sdev->host;
adapter = shost_priv(shost);
max_depth = shost->can_queue;
sdev_priv = sdev->hostdata;
if (!sdev_priv)
goto out_tag_check;
starget_priv = sdev_priv->starget_priv;
if (!starget_priv)
goto out_tag_check;
if (starget_priv->flg & LEAPRAID_TGT_FLG_VOLUME) {
raid_volume = leapraid_raid_volume_find_by_hdl(
adapter, starget_priv->hdl);
if (raid_volume) {
default_qdepth = leapraid_get_raid_qd(
adapter, raid_volume, true);
fw_qdepth = leapraid_get_raid_qd(
adapter, raid_volume, false);
leapraid_raid_volume_put(raid_volume);
}
goto out_limit_check;
}
sas_dev = leapraid_get_sas_dev_from_tgt(adapter, starget_priv);
if (sas_dev) {
if (sas_dev->dev_info & LEAPRAID_DEVTYP_SSP_TGT) {
default_qdepth = LEAPRAID_SAS_QUEUE_DEPTH;
fw_qdepth = (sas_dev->port_connection > 1) ?
adapter->adapter_attr.wideport_max_queue_depth :
adapter->adapter_attr.narrowport_max_queue_depth;
}
if (sas_dev->dev_info & LEAPRAID_DEVTYP_SATA_DEV) {
default_qdepth = LEAPRAID_SATA_QUEUE_DEPTH;
fw_qdepth = adapter->adapter_attr.sata_max_queue_depth;
}
leapraid_sdev_put(sas_dev);
}
out_limit_check:
if (fw_qdepth > shost->can_queue && default_qdepth)
fw_qdepth = default_qdepth;
if (fw_qdepth)
max_depth = min_t(int, max_depth, fw_qdepth);
out_tag_check:
if (!sdev->tagged_supported)
max_depth = 1;
if (qdepth > max_depth)
qdepth = max_depth;
return qdepth;
}
int leapraid_change_queue_depth(struct scsi_device *sdev, int qdepth)
{
qdepth = leapraid_calc_max_queue_depth(sdev, qdepth);
scsi_change_queue_depth(sdev, qdepth);
return sdev->queue_depth;
}
static void leapraid_map_queues(struct Scsi_Host *shost)
{
struct leapraid_adapter *adapter;
struct blk_mq_queue_map *queue_map;
int msix_queue_count;
int poll_queue_count;
int queue_offset;
int map_index;
adapter = (struct leapraid_adapter *)shost->hostdata;
if (shost->nr_hw_queues == 1)
return;
msix_queue_count = adapter->notification_desc.iopoll_qdex;
poll_queue_count = adapter->adapter_attr.rq_cnt - msix_queue_count;
queue_offset = 0;
for (map_index = 0; map_index < shost->nr_maps; map_index++) {
queue_map = &shost->tag_set.map[map_index];
queue_map->nr_queues = 0;
switch (map_index) {
case HCTX_TYPE_DEFAULT:
queue_map->nr_queues = msix_queue_count;
queue_map->queue_offset = queue_offset;
WARN_ON_ONCE(!queue_map->nr_queues);
blk_mq_map_hw_queues(queue_map,
&adapter->pdev->dev, 0);
break;
case HCTX_TYPE_POLL:
queue_map->nr_queues = poll_queue_count;
queue_map->queue_offset = queue_offset;
blk_mq_map_queues(queue_map);
break;
default:
queue_map->queue_offset = queue_offset;
blk_mq_map_hw_queues(queue_map,
&adapter->pdev->dev, 0);
break;
}
queue_offset += queue_map->nr_queues;
}
}
int leapraid_blk_mq_poll(struct Scsi_Host *shost, unsigned int queue_num)
{
struct leapraid_adapter *adapter =
(struct leapraid_adapter *)shost->hostdata;
struct leapraid_blk_mq_poll_rq *blk_mq_poll_rq;
int num_entries;
int qid = queue_num - adapter->notification_desc.iopoll_qdex;
blk_mq_poll_rq = &adapter->notification_desc.blk_mq_poll_rqs[qid];
if (atomic_read(&blk_mq_poll_rq->pause) ||
!atomic_add_unless(&blk_mq_poll_rq->busy, 1, 1))
return 0;
num_entries = leapraid_rep_queue_handler(&blk_mq_poll_rq->rq);
atomic_dec(&blk_mq_poll_rq->busy);
return num_entries;
}
static int leapraid_bios_param(struct scsi_device *sdev,
struct gendisk *disk, sector_t capacity,
int geom[])
{
int heads;
int sectors;
sector_t cylinders;
if (scsi_partsize(disk, capacity, geom))
return 0;
if ((ulong)capacity >= LEAPRAID_LARGE_DISK_THRESHOLD) {
heads = LEAPRAID_LARGE_DISK_HEADS;
sectors = LEAPRAID_LARGE_DISK_SECTORS;
} else {
heads = LEAPRAID_SMALL_DISK_HEADS;
sectors = LEAPRAID_SMALL_DISK_SECTORS;
}
cylinders = capacity;
sector_div(cylinders, heads * sectors);
geom[0] = heads;
geom[1] = sectors;
geom[2] = cylinders;
return 0;
}
static ssize_t fw_queue_depth_show(struct device *cdev,
struct device_attribute *attr,
char *buf)
{
struct Scsi_Host *shost = class_to_shost(cdev);
struct leapraid_adapter *adapter = shost_priv(shost);
return sysfs_emit(buf, "%02d\n",
adapter->adapter_attr.features.req_slot);
}
static ssize_t host_sas_address_show(struct device *cdev,
struct device_attribute *attr, char *buf)
{
struct Scsi_Host *shost = class_to_shost(cdev);
struct leapraid_adapter *adapter = shost_priv(shost);
return sysfs_emit(buf, "0x%016llx\n",
(unsigned long long)adapter->dev_topo.card.sas_address);
}
static ssize_t board_name_show(struct device *cdev,
struct device_attribute *attr, char *buf)
{
struct Scsi_Host *shost = class_to_shost(cdev);
struct leapraid_adapter *adapter = shost_priv(shost);
return sysfs_emit(buf, "%s\n", adapter->adapter_attr.board_name);
}
static DEVICE_ATTR_RO(fw_queue_depth);
static DEVICE_ATTR_RO(host_sas_address);
static DEVICE_ATTR_RO(board_name);
static struct attribute *leapraid_shost_attrs[] = {
&dev_attr_fw_queue_depth.attr,
&dev_attr_host_sas_address.attr,
&dev_attr_board_name.attr,
NULL,
};
ATTRIBUTE_GROUPS(leapraid_shost);
static ssize_t sas_device_handle_show(struct device *dev,
struct device_attribute *attr, char *buf)
{
struct scsi_device *sdev = to_scsi_device(dev);
struct leapraid_sdev_priv *sas_device_priv_data = sdev->hostdata;
if (!sas_device_priv_data || !sas_device_priv_data->starget_priv) {
dev_err(&sdev->sdev_gendev,
"%s: Invalid sdev_priv or starget_priv\n", __func__);
return -EINVAL;
}
return sysfs_emit(buf, "0x%04x\n",
sas_device_priv_data->starget_priv->hdl);
}
static ssize_t sas_ncq_prio_supported_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
struct scsi_device *sdev = to_scsi_device(dev);
return sysfs_emit(buf, "%d\n", sas_ata_ncq_prio_supported(sdev));
}
static ssize_t sas_ncq_prio_enable_show(struct device *dev,
struct device_attribute *attr,
char *buf)
{
struct scsi_device *sdev = to_scsi_device(dev);
struct leapraid_sdev_priv *sas_device_priv_data = sdev->hostdata;
if (!sas_device_priv_data) {
dev_err(&sdev->sdev_gendev,
"%s: Invalid sdev_priv\n", __func__);
return -EINVAL;
}
return sysfs_emit(buf, "%d\n", sas_device_priv_data->ncq_prio_enable);
}
static ssize_t sas_ncq_prio_enable_store(struct device *dev,
struct device_attribute *attr,
const char *buf, size_t count)
{
struct scsi_device *sdev = to_scsi_device(dev);
struct leapraid_sdev_priv *sas_device_priv_data = sdev->hostdata;
bool enable;
if (!sas_device_priv_data) {
dev_err(&sdev->sdev_gendev,
"%s: Invalid sdev_priv\n", __func__);
return -EINVAL;
}
if (kstrtobool(buf, &enable))
return -EINVAL;
if (!sas_ata_ncq_prio_supported(sdev))
return -EINVAL;
sas_device_priv_data->ncq_prio_enable = enable;
return count;
}
static DEVICE_ATTR_RO(sas_device_handle);
static DEVICE_ATTR_RO(sas_ncq_prio_supported);
static DEVICE_ATTR_RW(sas_ncq_prio_enable);
static bool leapraid_sdev_is_sata(struct scsi_device *sdev)
{
struct scsi_target *starget = sdev->sdev_target;
struct leapraid_starget_priv *starget_priv = starget->hostdata;
struct leapraid_sas_dev *sas_dev;
if (!starget_priv)
return false;
sas_dev = starget_priv->sas_dev;
return sas_dev && (sas_dev->dev_info & LEAPRAID_DEVTYP_SATA_DEV);
}
static struct attribute *leapraid_sdev_attrs[] = {
&dev_attr_sas_device_handle.attr,
&dev_attr_sas_ncq_prio_supported.attr,
&dev_attr_sas_ncq_prio_enable.attr,
NULL,
};
static umode_t leapraid_sdev_attr_is_visible(struct kobject *kobj,
struct attribute *attr, int i)
{
struct device *dev = kobj_to_dev(kobj);
struct scsi_device *sdev = to_scsi_device(dev);
if (attr == &dev_attr_sas_ncq_prio_supported.attr ||
attr == &dev_attr_sas_ncq_prio_enable.attr)
if (!leapraid_sdev_is_sata(sdev))
return 0;
return attr->mode;
}
static const struct attribute_group leapraid_sdev_attr_group = {
.attrs = leapraid_sdev_attrs,
.is_visible = leapraid_sdev_attr_is_visible,
};
static const struct attribute_group *leapraid_sdev_groups[] = {
&leapraid_sdev_attr_group,
NULL,
};
static struct scsi_host_template leapraid_driver_template = {
.module = THIS_MODULE,
.name = "LEAPIO RAID Host",
.proc_name = LEAPRAID_DRIVER_NAME,
.queuecommand = leapraid_queuecommand,
.cmd_size = sizeof(struct leapraid_io_req_tracker),
.init_cmd_priv = leapraid_init_cmd_priv,
.exit_cmd_priv = leapraid_exit_cmd_priv,
.eh_abort_handler = leapraid_eh_abort_handler,
.eh_device_reset_handler = leapraid_eh_device_reset_handler,
.eh_target_reset_handler = leapraid_eh_target_reset_handler,
.eh_host_reset_handler = leapraid_eh_host_reset_handler,
.sdev_init = leapraid_sdev_init,
.sdev_destroy = leapraid_sdev_destroy,
.sdev_configure = leapraid_sdev_configure,
.target_alloc = leapraid_target_alloc,
.target_destroy = leapraid_target_destroy,
.scan_finished = leapraid_scan_finished,
.scan_start = leapraid_scan_start,
.change_queue_depth = leapraid_change_queue_depth,
.map_queues = leapraid_map_queues,
.mq_poll = leapraid_blk_mq_poll,
.bios_param = leapraid_bios_param,
.can_queue = LEAPRAID_CAN_QUEUE_MIN,
.this_id = LEAPRAID_THIS_ID_NONE,
.sg_tablesize = LEAPRAID_SG_DEPTH,
.max_sectors = LEAPRAID_MAX_SECTORS,
.max_segment_size = LEAPRAID_MAX_SEGMENT_SIZE,
.cmd_per_lun = LEAPRAID_CMD_PER_LUN,
.shost_groups = leapraid_shost_groups,
.sdev_groups = leapraid_sdev_groups,
.track_queue_depth = 1,
};
static void leapraid_lock_init(struct leapraid_adapter *adapter)
{
mutex_init(&adapter->reset_desc.adapter_reset_mutex);
mutex_init(&adapter->reset_desc.host_diag_mutex);
mutex_init(&adapter->access_ctrl.pci_access_lock);
spin_lock_init(&adapter->reset_desc.adapter_reset_lock);
spin_lock_init(&adapter->dynamic_task_desc.task_lock);
spin_lock_init(&adapter->dev_topo.sas_dev_lock);
spin_lock_init(&adapter->dev_topo.topo_node_lock);
spin_lock_init(&adapter->fw_evt_s.fw_evt_lock);
spin_lock_init(&adapter->dev_topo.raid_volume_lock);
spin_lock_init(&adapter->dev_topo.enc_lock);
spin_lock_init(&adapter->boot_devs.lock);
}
static void leapraid_list_init(struct leapraid_adapter *adapter)
{
INIT_LIST_HEAD(&adapter->dev_topo.sas_dev_list);
INIT_LIST_HEAD(&adapter->dev_topo.card_port_list);
INIT_LIST_HEAD(&adapter->dev_topo.sas_dev_init_list);
INIT_LIST_HEAD(&adapter->dev_topo.exp_list);
INIT_LIST_HEAD(&adapter->dev_topo.enc_list);
INIT_LIST_HEAD(&adapter->fw_evt_s.fw_evt_list);
INIT_LIST_HEAD(&adapter->dev_topo.raid_volume_list);
INIT_LIST_HEAD(&adapter->dev_topo.card.sas_port_list);
}
static int leapraid_probe(struct pci_dev *pdev, const struct pci_device_id *id)
{
struct leapraid_adapter *adapter;
struct Scsi_Host *shost;
int iopoll_q_count;
int rc;
shost = scsi_host_alloc(&leapraid_driver_template,
sizeof(struct leapraid_adapter));
if (!shost) {
dev_err(&pdev->dev,
"%s: SCSI host alloc failed\n", __func__);
return -ENODEV;
}
adapter = shost_priv(shost);
memset(adapter, 0, sizeof(struct leapraid_adapter));
init_waitqueue_head(&adapter->access_ctrl.recovery_waitq);
adapter->adapter_attr.id = atomic_inc_return(&leapraid_ids) - 1;
adapter->adapter_attr.enable_mp = enable_mp;
adapter = shost_priv(shost);
INIT_LIST_HEAD(&adapter->list);
adapter->shost = shost;
adapter->pdev = pdev;
adapter->fw_log_desc.open_pcie_trace = open_pcie_trace;
atomic_set(&adapter->fw_log_desc.mmap_refcnt, 0);
init_waitqueue_head(&adapter->fw_log_desc.mmap_waitq);
leapraid_lock_init(adapter);
leapraid_list_init(adapter);
snprintf(adapter->adapter_attr.name, LEAPRAID_NAME_LENGTH, "%s%d",
LEAPRAID_DRIVER_NAME, adapter->adapter_attr.id);
shost->max_cmd_len = LEAPRAID_MAX_CDB_LEN;
shost->max_lun = LEAPRAID_MAX_LUNS;
shost->transportt = leapraid_transport_template;
shost->unique_id = adapter->adapter_attr.id;
snprintf(adapter->fw_evt_s.fw_evt_name,
sizeof(adapter->fw_evt_s.fw_evt_name),
"fw_event_%s%d", LEAPRAID_DRIVER_NAME,
adapter->adapter_attr.id);
adapter->fw_evt_s.fw_evt_thread =
alloc_ordered_workqueue(adapter->fw_evt_s.fw_evt_name, 0);
if (!adapter->fw_evt_s.fw_evt_thread) {
dev_err(&adapter->pdev->dev,
"%s: Failed to create fw event workqueue\n", __func__);
rc = -ENODEV;
goto evt_wq_fail;
}
shost->host_tagset = 1;
init_waitqueue_head(&adapter->scan_dev_desc.wait_driver_loading);
adapter->scan_dev_desc.driver_loading = 1;
if (leapraid_ctrl_init(adapter)) {
dev_err(&adapter->pdev->dev,
"%s: Adapter init failed\n", __func__);
rc = -ENODEV;
goto ctrl_init_fail;
}
shost->nr_hw_queues = 1;
if (shost->host_tagset) {
shost->nr_hw_queues = adapter->adapter_attr.rq_cnt;
iopoll_q_count = adapter->adapter_attr.rq_cnt -
adapter->notification_desc.iopoll_qdex;
shost->nr_maps = iopoll_q_count ? 3 : 1;
dev_info(&adapter->pdev->dev,
"Max scsi I/O cmds %d shared with nr_hw_queues=%d\n",
shost->can_queue, shost->nr_hw_queues);
}
rc = scsi_add_host(shost, &pdev->dev);
if (rc) {
dev_err(&pdev->dev,
"%s: SCSI host add failed\n", __func__);
goto scsi_add_shost_fail;
}
spin_lock(&leapraid_adapter_lock);
list_add_tail(&adapter->list, &leapraid_adapter_list);
spin_unlock(&leapraid_adapter_lock);
scsi_scan_host(shost);
return 0;
scsi_add_shost_fail:
leapraid_remove_ctrl(adapter);
ctrl_init_fail:
leapraid_overheat_cleanup(adapter);
destroy_workqueue(adapter->fw_evt_s.fw_evt_thread);
evt_wq_fail:
scsi_host_put(shost);
return rc;
}
void leapraid_cleanup_lists(struct leapraid_adapter *adapter)
{
struct leapraid_raid_volume *raid_volume, *next_raid_volume;
struct leapraid_starget_priv *starget_priv_data;
struct leapraid_sas_port *leapraid_port, *next_port;
struct leapraid_card_port *port, *port_next;
struct leapraid_vphy *vphy, *vphy_next;
list_for_each_entry_safe(raid_volume, next_raid_volume,
&adapter->dev_topo.raid_volume_list, list) {
if (raid_volume->starget) {
starget_priv_data = raid_volume->starget->hostdata;
if (starget_priv_data)
starget_priv_data->deleted = 1;
scsi_remove_target(&raid_volume->starget->dev);
}
dev_info(&adapter->pdev->dev,
"removing hdl=0x%04x, wwid=0x%016llx\n",
raid_volume->hdl,
(unsigned long long)raid_volume->wwid);
leapraid_raid_volume_remove(adapter, raid_volume);
}
list_for_each_entry_safe(leapraid_port, next_port,
&adapter->dev_topo.card.sas_port_list,
port_list) {
if (leapraid_port->remote_identify.device_type ==
SAS_END_DEVICE)
leapraid_sas_dev_remove_by_sas_address(
adapter,
leapraid_port->remote_identify.sas_address,
leapraid_port->card_port);
else if (leapraid_port->remote_identify.device_type ==
SAS_EDGE_EXPANDER_DEVICE ||
leapraid_port->remote_identify.device_type ==
SAS_FANOUT_EXPANDER_DEVICE)
leapraid_exp_rm(
adapter,
leapraid_port->remote_identify.sas_address,
leapraid_port->card_port);
}
list_for_each_entry_safe(port, port_next,
&adapter->dev_topo.card_port_list, list) {
if (port->vphys_mask)
list_for_each_entry_safe(vphy, vphy_next,
&port->vphys_list, list) {
list_del(&vphy->list);
kfree(vphy);
}
list_del(&port->list);
kfree(port);
}
if (adapter->dev_topo.card.phys_num) {
kfree(adapter->dev_topo.card.card_phy);
adapter->dev_topo.card.card_phy = NULL;
adapter->dev_topo.card.phys_num = 0;
}
}
static void leapraid_remove(struct pci_dev *pdev)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
struct workqueue_struct *wq;
unsigned long flags;
if (!shost || !adapter) {
dev_err(&pdev->dev, "Unable to remove!\n");
return;
}
wait_event(adapter->scan_dev_desc.wait_driver_loading,
!adapter->scan_dev_desc.driver_loading);
wait_event(adapter->scan_dev_desc.wait_driver_loading,
!atomic_read(&adapter->overheat_desc.thermal_alert));
WRITE_ONCE(adapter->access_ctrl.host_removing, 1);
spin_lock(&leapraid_adapter_lock);
list_del(&adapter->list);
spin_unlock(&leapraid_adapter_lock);
leapraid_wait_cmds_done(adapter);
if (leapraid_pci_removed(adapter)) {
leapraid_mq_polling_pause(adapter);
leapraid_clean_active_scsi_cmds(adapter);
}
leapraid_clean_active_fw_evt(adapter);
spin_lock_irqsave(&adapter->fw_evt_s.fw_evt_lock, flags);
wq = adapter->fw_evt_s.fw_evt_thread;
adapter->fw_evt_s.fw_evt_thread = NULL;
spin_unlock_irqrestore(&adapter->fw_evt_s.fw_evt_lock, flags);
if (wq)
destroy_workqueue(wq);
sas_remove_host(shost);
leapraid_cleanup_lists(adapter);
leapraid_remove_ctrl(adapter);
scsi_host_put(shost);
}
static void leapraid_shutdown(struct pci_dev *pdev)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
struct workqueue_struct *wq;
unsigned long flags;
if (!shost || !adapter) {
dev_err(&pdev->dev, "Unable to shutdown!\n");
return;
}
adapter->access_ctrl.host_removing = 1;
leapraid_wait_cmds_done(adapter);
leapraid_clean_active_fw_evt(adapter);
leapraid_overheat_cleanup(adapter);
leapraid_fw_log_stop(adapter);
spin_lock_irqsave(&adapter->fw_evt_s.fw_evt_lock, flags);
wq = adapter->fw_evt_s.fw_evt_thread;
adapter->fw_evt_s.fw_evt_thread = NULL;
spin_unlock_irqrestore(&adapter->fw_evt_s.fw_evt_lock, flags);
if (wq)
destroy_workqueue(wq);
leapraid_disable_controller(adapter);
}
static pci_ers_result_t leapraid_pci_error_detected(struct pci_dev *pdev,
pci_channel_state_t state)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
if (!shost || !adapter) {
dev_err(&pdev->dev, "Failed to error detected for device\n");
return PCI_ERS_RESULT_DISCONNECT;
}
dev_err(&pdev->dev, "%s: PCI error detected, state=%d\n",
adapter->adapter_attr.name, state);
switch (state) {
case pci_channel_io_normal:
return PCI_ERS_RESULT_CAN_RECOVER;
case pci_channel_io_frozen:
adapter->access_ctrl.pcie_recovering = 1;
scsi_block_requests(adapter->shost);
leapraid_overheat_cleanup(adapter);
leapraid_check_scheduled_fault_stop(adapter);
leapraid_fw_log_stop(adapter);
leapraid_disable_controller(adapter);
return PCI_ERS_RESULT_NEED_RESET;
case pci_channel_io_perm_failure:
adapter->access_ctrl.pcie_recovering = 1;
leapraid_overheat_cleanup(adapter);
leapraid_check_scheduled_fault_stop(adapter);
leapraid_fw_log_stop(adapter);
leapraid_mq_polling_pause(adapter);
leapraid_clean_active_scsi_cmds(adapter);
return PCI_ERS_RESULT_DISCONNECT;
}
return PCI_ERS_RESULT_NEED_RESET;
}
static pci_ers_result_t leapraid_pci_mmio_enabled(struct pci_dev *pdev)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
if (!shost || !adapter) {
dev_err(&pdev->dev,
"Failed to enable mmio for device\n");
return PCI_ERS_RESULT_DISCONNECT;
}
dev_info(&pdev->dev, "%s: PCI error mmio enabled\n",
adapter->adapter_attr.name);
return PCI_ERS_RESULT_RECOVERED;
}
static pci_ers_result_t leapraid_pci_slot_reset(struct pci_dev *pdev)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
int rc;
if (!shost || !adapter) {
dev_err(&pdev->dev,
"Failed to slot reset for device\n");
return PCI_ERS_RESULT_DISCONNECT;
}
dev_err(&pdev->dev, "%s PCI error slot reset\n",
adapter->adapter_attr.name);
adapter->pdev = pdev;
pci_restore_state(pdev);
if (leapraid_set_pcie_and_notification(adapter)) {
dev_err(&pdev->dev,
"%s: Failed to set PCIe state and notification\n",
__func__);
return PCI_ERS_RESULT_DISCONNECT;
}
adapter->access_ctrl.pcie_recovering = 0;
dev_info(&pdev->dev, "%s: Hard reset triggered by PCI slot reset\n",
adapter->adapter_attr.name);
dev_info(&adapter->pdev->dev, "%s: %d: call hard_reset\n",
__func__, __LINE__);
rc = leapraid_hard_reset_handler(adapter, FULL_RESET);
if (rc)
dev_err(&pdev->dev, "%s hard reset: failed\n",
adapter->adapter_attr.name);
return rc == 0 ? PCI_ERS_RESULT_RECOVERED :
PCI_ERS_RESULT_DISCONNECT;
}
static void leapraid_pci_resume(struct pci_dev *pdev)
{
struct Scsi_Host *shost = pci_get_drvdata(pdev);
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
if (!shost || !adapter) {
dev_err(&pdev->dev, "Failed to resume\n");
return;
}
dev_err(&pdev->dev, "PCI error resume!\n");
pci_aer_clear_nonfatal_status(pdev);
leapraid_check_scheduled_fault_start(adapter);
leapraid_fw_log_start(adapter);
scsi_unblock_requests(adapter->shost);
}
MODULE_DEVICE_TABLE(pci, leapraid_pci_table);
static struct pci_error_handlers leapraid_err_handler = {
.error_detected = leapraid_pci_error_detected,
.mmio_enabled = leapraid_pci_mmio_enabled,
.slot_reset = leapraid_pci_slot_reset,
.resume = leapraid_pci_resume,
};
#ifdef CONFIG_PM
static int leapraid_suspend(struct pci_dev *pdev, pm_message_t state)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
pci_power_t device_state;
if (!shost || !adapter) {
dev_err(&pdev->dev,
"Suspend failed, invalid host or adapter\n");
return -ENXIO;
}
leapraid_overheat_cleanup(adapter);
leapraid_check_scheduled_fault_stop(adapter);
leapraid_fw_log_stop(adapter);
scsi_block_requests(shost);
device_state = pci_choose_state(pdev, state);
dev_info(&pdev->dev, "Entering PCI power state D%d, (slot=%s)\n",
device_state, pci_name(pdev));
pci_save_state(pdev);
leapraid_disable_controller(adapter);
pci_set_power_state(pdev, device_state);
return 0;
}
static int leapraid_resume(struct pci_dev *pdev)
{
struct leapraid_adapter *adapter = pdev_to_adapter(pdev);
struct Scsi_Host *shost = pci_get_drvdata(pdev);
pci_power_t device_state = pdev->current_state;
int rc;
if (!shost || !adapter) {
dev_err(&pdev->dev,
"Resume failed, invalid host or adapter\n");
return -ENXIO;
}
dev_info(&pdev->dev,
"Resuming device %s, previous state D%d\n",
pci_name(pdev), device_state);
pci_set_power_state(pdev, PCI_D0);
pci_enable_wake(pdev, PCI_D0, 0);
pci_restore_state(pdev);
adapter->pdev = pdev;
rc = leapraid_set_pcie_and_notification(adapter);
if (rc) {
dev_err(&pdev->dev,
"%s: Failed to set PCIe state and notification\n",
__func__);
return rc;
}
dev_info(&adapter->pdev->dev, "%s:%d: call hard_reset\n",
__func__, __LINE__);
rc = leapraid_hard_reset_handler(adapter, PART_RESET);
if (rc) {
dev_err(&adapter->pdev->dev,
"%s: Hard reset failed during resume, rc=%d\n",
__func__, rc);
return rc;
}
scsi_unblock_requests(shost);
leapraid_check_scheduled_fault_start(adapter);
leapraid_fw_log_start(adapter);
return 0;
}
#endif /* CONFIG_PM */
static struct pci_driver leapraid_driver = {
.name = LEAPRAID_DRIVER_NAME,
.id_table = leapraid_pci_table,
.probe = leapraid_probe,
.remove = leapraid_remove,
.shutdown = leapraid_shutdown,
.err_handler = &leapraid_err_handler,
#ifdef CONFIG_PM
.suspend = leapraid_suspend,
.resume = leapraid_resume,
#endif /* CONFIG_PM */
};
static int __init leapraid_init(void)
{
int error;
pr_info("%s initializing\n", LEAPRAID_DRIVER_NAME);
leapraid_transport_template =
sas_attach_transport(&leapraid_transport_functions);
if (!leapraid_transport_template) {
pr_err("%s: Failed to attach SAS transport\n",
LEAPRAID_DRIVER_NAME);
return -ENODEV;
}
error = pci_register_driver(&leapraid_driver);
if (error) {
pr_err("%s: PCI driver registration failed: %d\n",
LEAPRAID_DRIVER_NAME, error);
sas_release_transport(leapraid_transport_template);
return error;
}
error = leapraid_ctl_init();
if (error) {
pci_unregister_driver(&leapraid_driver);
sas_release_transport(leapraid_transport_template);
return error;
}
return 0;
}
static void __exit leapraid_exit(void)
{
pr_info("%s exiting\n", LEAPRAID_DRIVER_NAME);
leapraid_ctl_exit();
pci_unregister_driver(&leapraid_driver);
sas_release_transport(leapraid_transport_template);
}
module_init(leapraid_init);
module_exit(leapraid_exit);