pm8001_hwi.c 166.3 KB
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/*
 * PMC-Sierra SPC 8001 SAS/SATA based host adapters driver
 *
 * Copyright (c) 2008-2009 USI Co., Ltd.
 * All rights reserved.
 *
 * Redistribution and use in source and binary forms, with or without
 * modification, are permitted provided that the following conditions
 * are met:
 * 1. Redistributions of source code must retain the above copyright
 *    notice, this list of conditions, and the following disclaimer,
 *    without modification.
 * 2. Redistributions in binary form must reproduce at minimum a disclaimer
 *    substantially similar to the "NO WARRANTY" disclaimer below
 *    ("Disclaimer") and any redistribution must be conditioned upon
 *    including a substantially similar Disclaimer requirement for further
 *    binary redistribution.
 * 3. Neither the names of the above-listed copyright holders nor the names
 *    of any contributors may be used to endorse or promote products derived
 *    from this software without specific prior written permission.
 *
 * Alternatively, this software may be distributed under the terms of the
 * GNU General Public License ("GPL") version 2 as published by the Free
 * Software Foundation.
 *
 * NO WARRANTY
 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
 * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
 * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
 * POSSIBILITY OF SUCH DAMAGES.
 *
 */
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 #include <linux/slab.h>
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 #include "pm8001_sas.h"
 #include "pm8001_hwi.h"
 #include "pm8001_chips.h"
 #include "pm8001_ctl.h"

/**
 * read_main_config_table - read the configure table and save it.
 * @pm8001_ha: our hba card information
 */
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static void read_main_config_table(struct pm8001_hba_info *pm8001_ha)
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{
	void __iomem *address = pm8001_ha->main_cfg_tbl_addr;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.signature	=
				pm8001_mr32(address, 0x00);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.interface_rev =
				pm8001_mr32(address, 0x04);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.firmware_rev	=
				pm8001_mr32(address, 0x08);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.max_out_io	=
				pm8001_mr32(address, 0x0C);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.max_sgl	=
				pm8001_mr32(address, 0x10);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.ctrl_cap_flag =
				pm8001_mr32(address, 0x14);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.gst_offset	=
				pm8001_mr32(address, 0x18);
	pm8001_ha->main_cfg_tbl.pm8001_tbl.inbound_queue_offset =
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		pm8001_mr32(address, MAIN_IBQ_OFFSET);
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_queue_offset =
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		pm8001_mr32(address, MAIN_OBQ_OFFSET);
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.hda_mode_flag	=
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		pm8001_mr32(address, MAIN_HDA_FLAGS_OFFSET);

	/* read analog Setting offset from the configuration table */
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.anolog_setup_table_offset =
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		pm8001_mr32(address, MAIN_ANALOG_SETUP_OFFSET);

	/* read Error Dump Offset and Length */
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_dump_offset0 =
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		pm8001_mr32(address, MAIN_FATAL_ERROR_RDUMP0_OFFSET);
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_dump_length0 =
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		pm8001_mr32(address, MAIN_FATAL_ERROR_RDUMP0_LENGTH);
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_dump_offset1 =
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		pm8001_mr32(address, MAIN_FATAL_ERROR_RDUMP1_OFFSET);
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_dump_length1 =
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		pm8001_mr32(address, MAIN_FATAL_ERROR_RDUMP1_LENGTH);
}

/**
 * read_general_status_table - read the general status table and save it.
 * @pm8001_ha: our hba card information
 */
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static void read_general_status_table(struct pm8001_hba_info *pm8001_ha)
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{
	void __iomem *address = pm8001_ha->general_stat_tbl_addr;
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	pm8001_ha->gs_tbl.pm8001_tbl.gst_len_mpistate	=
				pm8001_mr32(address, 0x00);
	pm8001_ha->gs_tbl.pm8001_tbl.iq_freeze_state0	=
				pm8001_mr32(address, 0x04);
	pm8001_ha->gs_tbl.pm8001_tbl.iq_freeze_state1	=
				pm8001_mr32(address, 0x08);
	pm8001_ha->gs_tbl.pm8001_tbl.msgu_tcnt		=
				pm8001_mr32(address, 0x0C);
	pm8001_ha->gs_tbl.pm8001_tbl.iop_tcnt		=
				pm8001_mr32(address, 0x10);
	pm8001_ha->gs_tbl.pm8001_tbl.rsvd		=
				pm8001_mr32(address, 0x14);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[0]	=
				pm8001_mr32(address, 0x18);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[1]	=
				pm8001_mr32(address, 0x1C);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[2]	=
				pm8001_mr32(address, 0x20);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[3]	=
				pm8001_mr32(address, 0x24);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[4]	=
				pm8001_mr32(address, 0x28);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[5]	=
				pm8001_mr32(address, 0x2C);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[6]	=
				pm8001_mr32(address, 0x30);
	pm8001_ha->gs_tbl.pm8001_tbl.phy_state[7]	=
				pm8001_mr32(address, 0x34);
	pm8001_ha->gs_tbl.pm8001_tbl.gpio_input_val	=
				pm8001_mr32(address, 0x38);
	pm8001_ha->gs_tbl.pm8001_tbl.rsvd1[0]		=
				pm8001_mr32(address, 0x3C);
	pm8001_ha->gs_tbl.pm8001_tbl.rsvd1[1]		=
				pm8001_mr32(address, 0x40);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[0]	=
				pm8001_mr32(address, 0x44);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[1]	=
				pm8001_mr32(address, 0x48);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[2]	=
				pm8001_mr32(address, 0x4C);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[3]	=
				pm8001_mr32(address, 0x50);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[4]	=
				pm8001_mr32(address, 0x54);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[5]	=
				pm8001_mr32(address, 0x58);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[6]	=
				pm8001_mr32(address, 0x5C);
	pm8001_ha->gs_tbl.pm8001_tbl.recover_err_info[7]	=
				pm8001_mr32(address, 0x60);
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}

/**
 * read_inbnd_queue_table - read the inbound queue table and save it.
 * @pm8001_ha: our hba card information
 */
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static void read_inbnd_queue_table(struct pm8001_hba_info *pm8001_ha)
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{
	int i;
	void __iomem *address = pm8001_ha->inbnd_q_tbl_addr;
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	for (i = 0; i < PM8001_MAX_INB_NUM; i++) {
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		u32 offset = i * 0x20;
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		pm8001_ha->inbnd_q_tbl[i].pi_pci_bar =
		      get_pci_bar_index(pm8001_mr32(address, (offset + 0x14)));
		pm8001_ha->inbnd_q_tbl[i].pi_offset =
			pm8001_mr32(address, (offset + 0x18));
	}
}

/**
 * read_outbnd_queue_table - read the outbound queue table and save it.
 * @pm8001_ha: our hba card information
 */
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static void read_outbnd_queue_table(struct pm8001_hba_info *pm8001_ha)
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{
	int i;
	void __iomem *address = pm8001_ha->outbnd_q_tbl_addr;
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	for (i = 0; i < PM8001_MAX_OUTB_NUM; i++) {
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		u32 offset = i * 0x24;
		pm8001_ha->outbnd_q_tbl[i].ci_pci_bar =
		      get_pci_bar_index(pm8001_mr32(address, (offset + 0x14)));
		pm8001_ha->outbnd_q_tbl[i].ci_offset =
			pm8001_mr32(address, (offset + 0x18));
	}
}

/**
 * init_default_table_values - init the default table.
 * @pm8001_ha: our hba card information
 */
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static void init_default_table_values(struct pm8001_hba_info *pm8001_ha)
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{
	int i;
	u32 offsetib, offsetob;
	void __iomem *addressib = pm8001_ha->inbnd_q_tbl_addr;
	void __iomem *addressob = pm8001_ha->outbnd_q_tbl_addr;
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	u32 ib_offset = pm8001_ha->ib_offset;
	u32 ob_offset = pm8001_ha->ob_offset;
	u32 ci_offset = pm8001_ha->ci_offset;
	u32 pi_offset = pm8001_ha->pi_offset;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.inbound_q_nppd_hppd		= 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_hw_event_pid0_3	= 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_hw_event_pid4_7	= 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_ncq_event_pid0_3	= 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_ncq_event_pid4_7	= 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_ITNexus_event_pid0_3 =
									 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_ITNexus_event_pid4_7 =
									 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_ssp_event_pid0_3 = 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_ssp_event_pid4_7 = 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_smp_event_pid0_3 = 0;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_tgt_smp_event_pid4_7 = 0;

	pm8001_ha->main_cfg_tbl.pm8001_tbl.upper_event_log_addr		=
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		pm8001_ha->memoryMap.region[AAP1].phys_addr_hi;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.lower_event_log_addr		=
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		pm8001_ha->memoryMap.region[AAP1].phys_addr_lo;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.event_log_size		=
		PM8001_EVENT_LOG_SIZE;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.event_log_option		= 0x01;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.upper_iop_event_log_addr	=
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		pm8001_ha->memoryMap.region[IOP].phys_addr_hi;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.lower_iop_event_log_addr	=
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		pm8001_ha->memoryMap.region[IOP].phys_addr_lo;
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	pm8001_ha->main_cfg_tbl.pm8001_tbl.iop_event_log_size		=
		PM8001_EVENT_LOG_SIZE;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.iop_event_log_option		= 0x01;
	pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_interrupt		= 0x01;
	for (i = 0; i < PM8001_MAX_INB_NUM; i++) {
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		pm8001_ha->inbnd_q_tbl[i].element_pri_size_cnt	=
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			PM8001_MPI_QUEUE | (pm8001_ha->iomb_size << 16) | (0x00<<30);
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		pm8001_ha->inbnd_q_tbl[i].upper_base_addr	=
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			pm8001_ha->memoryMap.region[ib_offset + i].phys_addr_hi;
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		pm8001_ha->inbnd_q_tbl[i].lower_base_addr	=
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		pm8001_ha->memoryMap.region[ib_offset + i].phys_addr_lo;
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		pm8001_ha->inbnd_q_tbl[i].base_virt		=
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		  (u8 *)pm8001_ha->memoryMap.region[ib_offset + i].virt_ptr;
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		pm8001_ha->inbnd_q_tbl[i].total_length		=
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			pm8001_ha->memoryMap.region[ib_offset + i].total_len;
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		pm8001_ha->inbnd_q_tbl[i].ci_upper_base_addr	=
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			pm8001_ha->memoryMap.region[ci_offset + i].phys_addr_hi;
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		pm8001_ha->inbnd_q_tbl[i].ci_lower_base_addr	=
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			pm8001_ha->memoryMap.region[ci_offset + i].phys_addr_lo;
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		pm8001_ha->inbnd_q_tbl[i].ci_virt		=
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			pm8001_ha->memoryMap.region[ci_offset + i].virt_ptr;
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		offsetib = i * 0x20;
		pm8001_ha->inbnd_q_tbl[i].pi_pci_bar		=
			get_pci_bar_index(pm8001_mr32(addressib,
				(offsetib + 0x14)));
		pm8001_ha->inbnd_q_tbl[i].pi_offset		=
			pm8001_mr32(addressib, (offsetib + 0x18));
		pm8001_ha->inbnd_q_tbl[i].producer_idx		= 0;
		pm8001_ha->inbnd_q_tbl[i].consumer_index	= 0;
	}
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	for (i = 0; i < PM8001_MAX_OUTB_NUM; i++) {
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		pm8001_ha->outbnd_q_tbl[i].element_size_cnt	=
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			PM8001_MPI_QUEUE | (pm8001_ha->iomb_size << 16) | (0x01<<30);
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		pm8001_ha->outbnd_q_tbl[i].upper_base_addr	=
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			pm8001_ha->memoryMap.region[ob_offset + i].phys_addr_hi;
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		pm8001_ha->outbnd_q_tbl[i].lower_base_addr	=
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			pm8001_ha->memoryMap.region[ob_offset + i].phys_addr_lo;
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		pm8001_ha->outbnd_q_tbl[i].base_virt		=
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		  (u8 *)pm8001_ha->memoryMap.region[ob_offset + i].virt_ptr;
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		pm8001_ha->outbnd_q_tbl[i].total_length		=
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			pm8001_ha->memoryMap.region[ob_offset + i].total_len;
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		pm8001_ha->outbnd_q_tbl[i].pi_upper_base_addr	=
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			pm8001_ha->memoryMap.region[pi_offset + i].phys_addr_hi;
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		pm8001_ha->outbnd_q_tbl[i].pi_lower_base_addr	=
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			pm8001_ha->memoryMap.region[pi_offset + i].phys_addr_lo;
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		pm8001_ha->outbnd_q_tbl[i].interrup_vec_cnt_delay	=
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			0 | (10 << 16) | (i << 24);
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		pm8001_ha->outbnd_q_tbl[i].pi_virt		=
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			pm8001_ha->memoryMap.region[pi_offset + i].virt_ptr;
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		offsetob = i * 0x24;
		pm8001_ha->outbnd_q_tbl[i].ci_pci_bar		=
			get_pci_bar_index(pm8001_mr32(addressob,
			offsetob + 0x14));
		pm8001_ha->outbnd_q_tbl[i].ci_offset		=
			pm8001_mr32(addressob, (offsetob + 0x18));
		pm8001_ha->outbnd_q_tbl[i].consumer_idx		= 0;
		pm8001_ha->outbnd_q_tbl[i].producer_index	= 0;
	}
}

/**
 * update_main_config_table - update the main default table to the HBA.
 * @pm8001_ha: our hba card information
 */
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static void update_main_config_table(struct pm8001_hba_info *pm8001_ha)
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{
	void __iomem *address = pm8001_ha->main_cfg_tbl_addr;
	pm8001_mw32(address, 0x24,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.inbound_q_nppd_hppd);
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	pm8001_mw32(address, 0x28,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_hw_event_pid0_3);
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	pm8001_mw32(address, 0x2C,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_hw_event_pid4_7);
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	pm8001_mw32(address, 0x30,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_ncq_event_pid0_3);
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	pm8001_mw32(address, 0x34,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.outbound_ncq_event_pid4_7);
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	pm8001_mw32(address, 0x38,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_ITNexus_event_pid0_3);
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	pm8001_mw32(address, 0x3C,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_ITNexus_event_pid4_7);
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	pm8001_mw32(address, 0x40,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_ssp_event_pid0_3);
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	pm8001_mw32(address, 0x44,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_ssp_event_pid4_7);
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	pm8001_mw32(address, 0x48,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_smp_event_pid0_3);
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	pm8001_mw32(address, 0x4C,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.
					outbound_tgt_smp_event_pid4_7);
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	pm8001_mw32(address, 0x50,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.upper_event_log_addr);
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	pm8001_mw32(address, 0x54,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.lower_event_log_addr);
	pm8001_mw32(address, 0x58,
		pm8001_ha->main_cfg_tbl.pm8001_tbl.event_log_size);
	pm8001_mw32(address, 0x5C,
		pm8001_ha->main_cfg_tbl.pm8001_tbl.event_log_option);
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	pm8001_mw32(address, 0x60,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.upper_iop_event_log_addr);
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	pm8001_mw32(address, 0x64,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.lower_iop_event_log_addr);
	pm8001_mw32(address, 0x68,
		pm8001_ha->main_cfg_tbl.pm8001_tbl.iop_event_log_size);
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	pm8001_mw32(address, 0x6C,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.iop_event_log_option);
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	pm8001_mw32(address, 0x70,
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		pm8001_ha->main_cfg_tbl.pm8001_tbl.fatal_err_interrupt);
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}

/**
 * update_inbnd_queue_table - update the inbound queue table to the HBA.
 * @pm8001_ha: our hba card information
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 * @number: entry in the queue
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 */
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static void update_inbnd_queue_table(struct pm8001_hba_info *pm8001_ha,
				     int number)
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{
	void __iomem *address = pm8001_ha->inbnd_q_tbl_addr;
	u16 offset = number * 0x20;
	pm8001_mw32(address, offset + 0x00,
		pm8001_ha->inbnd_q_tbl[number].element_pri_size_cnt);
	pm8001_mw32(address, offset + 0x04,
		pm8001_ha->inbnd_q_tbl[number].upper_base_addr);
	pm8001_mw32(address, offset + 0x08,
		pm8001_ha->inbnd_q_tbl[number].lower_base_addr);
	pm8001_mw32(address, offset + 0x0C,
		pm8001_ha->inbnd_q_tbl[number].ci_upper_base_addr);
	pm8001_mw32(address, offset + 0x10,
		pm8001_ha->inbnd_q_tbl[number].ci_lower_base_addr);
}

/**
 * update_outbnd_queue_table - update the outbound queue table to the HBA.
 * @pm8001_ha: our hba card information
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 * @number: entry in the queue
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 */
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static void update_outbnd_queue_table(struct pm8001_hba_info *pm8001_ha,
				      int number)
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{
	void __iomem *address = pm8001_ha->outbnd_q_tbl_addr;
	u16 offset = number * 0x24;
	pm8001_mw32(address, offset + 0x00,
		pm8001_ha->outbnd_q_tbl[number].element_size_cnt);
	pm8001_mw32(address, offset + 0x04,
		pm8001_ha->outbnd_q_tbl[number].upper_base_addr);
	pm8001_mw32(address, offset + 0x08,
		pm8001_ha->outbnd_q_tbl[number].lower_base_addr);
	pm8001_mw32(address, offset + 0x0C,
		pm8001_ha->outbnd_q_tbl[number].pi_upper_base_addr);
	pm8001_mw32(address, offset + 0x10,
		pm8001_ha->outbnd_q_tbl[number].pi_lower_base_addr);
	pm8001_mw32(address, offset + 0x1C,
		pm8001_ha->outbnd_q_tbl[number].interrup_vec_cnt_delay);
}

/**
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 * pm8001_bar4_shift - function is called to shift BAR base address
 * @pm8001_ha : our hba card infomation
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 * @shiftValue : shifting value in memory bar.
 */
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int pm8001_bar4_shift(struct pm8001_hba_info *pm8001_ha, u32 shiftValue)
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{
	u32 regVal;
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	unsigned long start;
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	/* program the inbound AXI translation Lower Address */
	pm8001_cw32(pm8001_ha, 1, SPC_IBW_AXI_TRANSLATION_LOW, shiftValue);

	/* confirm the setting is written */
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	start = jiffies + HZ; /* 1 sec */
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	do {
		regVal = pm8001_cr32(pm8001_ha, 1, SPC_IBW_AXI_TRANSLATION_LOW);
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	} while ((regVal != shiftValue) && time_before(jiffies, start));
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	if (regVal != shiftValue) {
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		PM8001_INIT_DBG(pm8001_ha,
			pm8001_printk("TIMEOUT:SPC_IBW_AXI_TRANSLATION_LOW"
			" = 0x%x\n", regVal));
		return -1;
	}
	return 0;
}

/**
 * mpi_set_phys_g3_with_ssc
 * @pm8001_ha: our hba card information
 * @SSCbit: set SSCbit to 0 to disable all phys ssc; 1 to enable all phys ssc.
 */
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static void mpi_set_phys_g3_with_ssc(struct pm8001_hba_info *pm8001_ha,
				     u32 SSCbit)
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{
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	u32 offset, i;
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	unsigned long flags;
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#define SAS2_SETTINGS_LOCAL_PHY_0_3_SHIFT_ADDR 0x00030000
#define SAS2_SETTINGS_LOCAL_PHY_4_7_SHIFT_ADDR 0x00040000
#define SAS2_SETTINGS_LOCAL_PHY_0_3_OFFSET 0x1074
#define SAS2_SETTINGS_LOCAL_PHY_4_7_OFFSET 0x1074
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#define PHY_G3_WITHOUT_SSC_BIT_SHIFT 12
#define PHY_G3_WITH_SSC_BIT_SHIFT 13
#define SNW3_PHY_CAPABILITIES_PARITY 31
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   /*
    * Using shifted destination address 0x3_0000:0x1074 + 0x4000*N (N=0:3)
    * Using shifted destination address 0x4_0000:0x1074 + 0x4000*(N-4) (N=4:7)
    */
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	spin_lock_irqsave(&pm8001_ha->lock, flags);
	if (-1 == pm8001_bar4_shift(pm8001_ha,
				SAS2_SETTINGS_LOCAL_PHY_0_3_SHIFT_ADDR)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		return;
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	}
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	for (i = 0; i < 4; i++) {
		offset = SAS2_SETTINGS_LOCAL_PHY_0_3_OFFSET + 0x4000 * i;
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		pm8001_cw32(pm8001_ha, 2, offset, 0x80001501);
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	}
	/* shift membase 3 for SAS2_SETTINGS_LOCAL_PHY 4 - 7 */
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	if (-1 == pm8001_bar4_shift(pm8001_ha,
				SAS2_SETTINGS_LOCAL_PHY_4_7_SHIFT_ADDR)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		return;
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	}
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	for (i = 4; i < 8; i++) {
		offset = SAS2_SETTINGS_LOCAL_PHY_4_7_OFFSET + 0x4000 * (i-4);
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		pm8001_cw32(pm8001_ha, 2, offset, 0x80001501);
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	}
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	/*************************************************************
	Change the SSC upspreading value to 0x0 so that upspreading is disabled.
	Device MABC SMOD0 Controls
	Address: (via MEMBASE-III):
	Using shifted destination address 0x0_0000: with Offset 0xD8

	31:28 R/W Reserved Do not change
	27:24 R/W SAS_SMOD_SPRDUP 0000
	23:20 R/W SAS_SMOD_SPRDDN 0000
	19:0  R/W  Reserved Do not change
	Upon power-up this register will read as 0x8990c016,
	and I would like you to change the SAS_SMOD_SPRDUP bits to 0b0000
	so that the written value will be 0x8090c016.
	This will ensure only down-spreading SSC is enabled on the SPC.
	*************************************************************/
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	pm8001_cr32(pm8001_ha, 2, 0xd8);
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	pm8001_cw32(pm8001_ha, 2, 0xd8, 0x8000C016);
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	/*set the shifted destination address to 0x0 to avoid error operation */
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	pm8001_bar4_shift(pm8001_ha, 0x0);
	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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	return;
}

/**
 * mpi_set_open_retry_interval_reg
 * @pm8001_ha: our hba card information
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 * @interval: interval time for each OPEN_REJECT (RETRY). The units are in 1us.
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 */
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static void mpi_set_open_retry_interval_reg(struct pm8001_hba_info *pm8001_ha,
					    u32 interval)
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{
	u32 offset;
	u32 value;
	u32 i;
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	unsigned long flags;
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#define OPEN_RETRY_INTERVAL_PHY_0_3_SHIFT_ADDR 0x00030000
#define OPEN_RETRY_INTERVAL_PHY_4_7_SHIFT_ADDR 0x00040000
#define OPEN_RETRY_INTERVAL_PHY_0_3_OFFSET 0x30B4
#define OPEN_RETRY_INTERVAL_PHY_4_7_OFFSET 0x30B4
#define OPEN_RETRY_INTERVAL_REG_MASK 0x0000FFFF

	value = interval & OPEN_RETRY_INTERVAL_REG_MASK;
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	spin_lock_irqsave(&pm8001_ha->lock, flags);
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	/* shift bar and set the OPEN_REJECT(RETRY) interval time of PHY 0 -3.*/
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	if (-1 == pm8001_bar4_shift(pm8001_ha,
			     OPEN_RETRY_INTERVAL_PHY_0_3_SHIFT_ADDR)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		return;
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	}
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	for (i = 0; i < 4; i++) {
		offset = OPEN_RETRY_INTERVAL_PHY_0_3_OFFSET + 0x4000 * i;
		pm8001_cw32(pm8001_ha, 2, offset, value);
	}

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	if (-1 == pm8001_bar4_shift(pm8001_ha,
			     OPEN_RETRY_INTERVAL_PHY_4_7_SHIFT_ADDR)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		return;
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	}
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	for (i = 4; i < 8; i++) {
		offset = OPEN_RETRY_INTERVAL_PHY_4_7_OFFSET + 0x4000 * (i-4);
		pm8001_cw32(pm8001_ha, 2, offset, value);
	}
	/*set the shifted destination address to 0x0 to avoid error operation */
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	pm8001_bar4_shift(pm8001_ha, 0x0);
	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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	return;
}

/**
 * mpi_init_check - check firmware initialization status.
 * @pm8001_ha: our hba card information
 */
static int mpi_init_check(struct pm8001_hba_info *pm8001_ha)
{
	u32 max_wait_count;
	u32 value;
	u32 gst_len_mpistate;
	/* Write bit0=1 to Inbound DoorBell Register to tell the SPC FW the
	table is updated */
	pm8001_cw32(pm8001_ha, 0, MSGU_IBDB_SET, SPC_MSGU_CFG_TABLE_UPDATE);
	/* wait until Inbound DoorBell Clear Register toggled */
	max_wait_count = 1 * 1000 * 1000;/* 1 sec */
	do {
		udelay(1);
		value = pm8001_cr32(pm8001_ha, 0, MSGU_IBDB_SET);
		value &= SPC_MSGU_CFG_TABLE_UPDATE;
	} while ((value != 0) && (--max_wait_count));

	if (!max_wait_count)
		return -1;
	/* check the MPI-State for initialization */
	gst_len_mpistate =
		pm8001_mr32(pm8001_ha->general_stat_tbl_addr,
		GST_GSTLEN_MPIS_OFFSET);
	if (GST_MPI_STATE_INIT != (gst_len_mpistate & GST_MPI_STATE_MASK))
		return -1;
	/* check MPI Initialization error */
	gst_len_mpistate = gst_len_mpistate >> 16;
	if (0x0000 != gst_len_mpistate)
		return -1;
	return 0;
}

/**
 * check_fw_ready - The LLDD check if the FW is ready, if not, return error.
 * @pm8001_ha: our hba card information
 */
static int check_fw_ready(struct pm8001_hba_info *pm8001_ha)
{
	u32 value, value1;
	u32 max_wait_count;
	/* check error state */
	value = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1);
	value1 = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2);
	/* check AAP error */
	if (SCRATCH_PAD1_ERR == (value & SCRATCH_PAD_STATE_MASK)) {
		/* error state */
		value = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_0);
		return -1;
	}

	/* check IOP error */
	if (SCRATCH_PAD2_ERR == (value1 & SCRATCH_PAD_STATE_MASK)) {
		/* error state */
		value1 = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_3);
		return -1;
	}

	/* bit 4-31 of scratch pad1 should be zeros if it is not
	in error state*/
	if (value & SCRATCH_PAD1_STATE_MASK) {
		/* error case */
		pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_0);
		return -1;
	}

	/* bit 2, 4-31 of scratch pad2 should be zeros if it is not
	in error state */
	if (value1 & SCRATCH_PAD2_STATE_MASK) {
		/* error case */
		return -1;
	}

	max_wait_count = 1 * 1000 * 1000;/* 1 sec timeout */

	/* wait until scratch pad 1 and 2 registers in ready state  */
	do {
		udelay(1);
		value = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1)
			& SCRATCH_PAD1_RDY;
		value1 = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2)
			& SCRATCH_PAD2_RDY;
		if ((--max_wait_count) == 0)
			return -1;
	} while ((value != SCRATCH_PAD1_RDY) || (value1 != SCRATCH_PAD2_RDY));
	return 0;
}

static void init_pci_device_addresses(struct pm8001_hba_info *pm8001_ha)
{
	void __iomem *base_addr;
	u32	value;
	u32	offset;
	u32	pcibar;
	u32	pcilogic;

	value = pm8001_cr32(pm8001_ha, 0, 0x44);
	offset = value & 0x03FFFFFF;
	PM8001_INIT_DBG(pm8001_ha,
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		pm8001_printk("Scratchpad 0 Offset: %x\n", offset));
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	pcilogic = (value & 0xFC000000) >> 26;
	pcibar = get_pci_bar_index(pcilogic);
	PM8001_INIT_DBG(pm8001_ha,
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		pm8001_printk("Scratchpad 0 PCI BAR: %d\n", pcibar));
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	pm8001_ha->main_cfg_tbl_addr = base_addr =
		pm8001_ha->io_mem[pcibar].memvirtaddr + offset;
	pm8001_ha->general_stat_tbl_addr =
		base_addr + pm8001_cr32(pm8001_ha, pcibar, offset + 0x18);
	pm8001_ha->inbnd_q_tbl_addr =
		base_addr + pm8001_cr32(pm8001_ha, pcibar, offset + 0x1C);
	pm8001_ha->outbnd_q_tbl_addr =
		base_addr + pm8001_cr32(pm8001_ha, pcibar, offset + 0x20);
}

/**
 * pm8001_chip_init - the main init function that initialize whole PM8001 chip.
 * @pm8001_ha: our hba card information
 */
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static int pm8001_chip_init(struct pm8001_hba_info *pm8001_ha)
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{
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	u8 i = 0;
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	u16 deviceid;
	pci_read_config_word(pm8001_ha->pdev, PCI_DEVICE_ID, &deviceid);
	/* 8081 controllers need BAR shift to access MPI space
	* as this is shared with BIOS data */
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	if (deviceid == 0x8081 || deviceid == 0x0042) {
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		if (-1 == pm8001_bar4_shift(pm8001_ha, GSM_SM_BASE)) {
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("Shift Bar4 to 0x%x failed\n",
					GSM_SM_BASE));
			return -1;
		}
	}
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	/* check the firmware status */
	if (-1 == check_fw_ready(pm8001_ha)) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Firmware is not ready!\n"));
		return -EBUSY;
	}

	/* Initialize pci space address eg: mpi offset */
	init_pci_device_addresses(pm8001_ha);
	init_default_table_values(pm8001_ha);
	read_main_config_table(pm8001_ha);
	read_general_status_table(pm8001_ha);
	read_inbnd_queue_table(pm8001_ha);
	read_outbnd_queue_table(pm8001_ha);
	/* update main config table ,inbound table and outbound table */
	update_main_config_table(pm8001_ha);
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	for (i = 0; i < PM8001_MAX_INB_NUM; i++)
		update_inbnd_queue_table(pm8001_ha, i);
	for (i = 0; i < PM8001_MAX_OUTB_NUM; i++)
		update_outbnd_queue_table(pm8001_ha, i);
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	/* 8081 controller donot require these operations */
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	if (deviceid != 0x8081 && deviceid != 0x0042) {
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		mpi_set_phys_g3_with_ssc(pm8001_ha, 0);
		/* 7->130ms, 34->500ms, 119->1.5s */
		mpi_set_open_retry_interval_reg(pm8001_ha, 119);
	}
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	/* notify firmware update finished and check initialization status */
	if (0 == mpi_init_check(pm8001_ha)) {
		PM8001_INIT_DBG(pm8001_ha,
			pm8001_printk("MPI initialize successful!\n"));
	} else
		return -EBUSY;
	/*This register is a 16-bit timer with a resolution of 1us. This is the
	timer used for interrupt delay/coalescing in the PCIe Application Layer.
	Zero is not a valid value. A value of 1 in the register will cause the
	interrupts to be normal. A value greater than 1 will cause coalescing
	delays.*/
	pm8001_cw32(pm8001_ha, 1, 0x0033c0, 0x1);
	pm8001_cw32(pm8001_ha, 1, 0x0033c4, 0x0);
	return 0;
}

static int mpi_uninit_check(struct pm8001_hba_info *pm8001_ha)
{
	u32 max_wait_count;
	u32 value;
	u32 gst_len_mpistate;
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	u16 deviceid;
	pci_read_config_word(pm8001_ha->pdev, PCI_DEVICE_ID, &deviceid);
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	if (deviceid == 0x8081 || deviceid == 0x0042) {
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		if (-1 == pm8001_bar4_shift(pm8001_ha, GSM_SM_BASE)) {
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("Shift Bar4 to 0x%x failed\n",
					GSM_SM_BASE));
			return -1;
		}
	}
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	init_pci_device_addresses(pm8001_ha);
	/* Write bit1=1 to Inbound DoorBell Register to tell the SPC FW the
	table is stop */
	pm8001_cw32(pm8001_ha, 0, MSGU_IBDB_SET, SPC_MSGU_CFG_TABLE_RESET);

	/* wait until Inbound DoorBell Clear Register toggled */
	max_wait_count = 1 * 1000 * 1000;/* 1 sec */
	do {
		udelay(1);
		value = pm8001_cr32(pm8001_ha, 0, MSGU_IBDB_SET);
		value &= SPC_MSGU_CFG_TABLE_RESET;
	} while ((value != 0) && (--max_wait_count));

	if (!max_wait_count) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("TIMEOUT:IBDB value/=0x%x\n", value));
		return -1;
	}

	/* check the MPI-State for termination in progress */
	/* wait until Inbound DoorBell Clear Register toggled */
	max_wait_count = 1 * 1000 * 1000;  /* 1 sec */
	do {
		udelay(1);
		gst_len_mpistate =
			pm8001_mr32(pm8001_ha->general_stat_tbl_addr,
			GST_GSTLEN_MPIS_OFFSET);
		if (GST_MPI_STATE_UNINIT ==
			(gst_len_mpistate & GST_MPI_STATE_MASK))
			break;
	} while (--max_wait_count);
	if (!max_wait_count) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk(" TIME OUT MPI State = 0x%x\n",
				gst_len_mpistate & GST_MPI_STATE_MASK));
		return -1;
	}
	return 0;
}

/**
 * soft_reset_ready_check - Function to check FW is ready for soft reset.
 * @pm8001_ha: our hba card information
 */
static u32 soft_reset_ready_check(struct pm8001_hba_info *pm8001_ha)
{
	u32 regVal, regVal1, regVal2;
	if (mpi_uninit_check(pm8001_ha) != 0) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("MPI state is not ready\n"));
		return -1;
	}
	/* read the scratch pad 2 register bit 2 */
	regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2)
		& SCRATCH_PAD2_FWRDY_RST;
	if (regVal == SCRATCH_PAD2_FWRDY_RST) {
		PM8001_INIT_DBG(pm8001_ha,
			pm8001_printk("Firmware is ready for reset .\n"));
	} else {
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		unsigned long flags;
		/* Trigger NMI twice via RB6 */
		spin_lock_irqsave(&pm8001_ha->lock, flags);
		if (-1 == pm8001_bar4_shift(pm8001_ha, RB6_ACCESS_REG)) {
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("Shift Bar4 to 0x%x failed\n",
					RB6_ACCESS_REG));
			return -1;
		}
		pm8001_cw32(pm8001_ha, 2, SPC_RB6_OFFSET,
			RB6_MAGIC_NUMBER_RST);
		pm8001_cw32(pm8001_ha, 2, SPC_RB6_OFFSET, RB6_MAGIC_NUMBER_RST);
		/* wait for 100 ms */
		mdelay(100);
		regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2) &
			SCRATCH_PAD2_FWRDY_RST;
		if (regVal != SCRATCH_PAD2_FWRDY_RST) {
			regVal1 = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1);
			regVal2 = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2);
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("TIMEOUT:MSGU_SCRATCH_PAD1"
				"=0x%x, MSGU_SCRATCH_PAD2=0x%x\n",
				regVal1, regVal2));
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD0 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_0)));
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD3 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_3)));
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			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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			return -1;
		}
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		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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	}
	return 0;
}

/**
 * pm8001_chip_soft_rst - soft reset the PM8001 chip, so that the clear all
 * the FW register status to the originated status.
 * @pm8001_ha: our hba card information
 */
static int
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pm8001_chip_soft_rst(struct pm8001_hba_info *pm8001_ha)
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{
	u32	regVal, toggleVal;
	u32	max_wait_count;
	u32	regVal1, regVal2, regVal3;
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	u32	signature = 0x252acbcd; /* for host scratch pad0 */
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	unsigned long flags;
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	/* step1: Check FW is ready for soft reset */
	if (soft_reset_ready_check(pm8001_ha) != 0) {
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("FW is not ready\n"));
		return -1;
	}

	/* step 2: clear NMI status register on AAP1 and IOP, write the same
	value to clear */
	/* map 0x60000 to BAR4(0x20), BAR2(win) */
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	spin_lock_irqsave(&pm8001_ha->lock, flags);
	if (-1 == pm8001_bar4_shift(pm8001_ha, MBIC_AAP1_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Shift Bar4 to 0x%x failed\n",
			MBIC_AAP1_ADDR_BASE));
		return -1;
	}
	regVal = pm8001_cr32(pm8001_ha, 2, MBIC_NMI_ENABLE_VPE0_IOP);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("MBIC - NMI Enable VPE0 (IOP)= 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 2, MBIC_NMI_ENABLE_VPE0_IOP, 0x0);
	/* map 0x70000 to BAR4(0x20), BAR2(win) */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, MBIC_IOP_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Shift Bar4 to 0x%x failed\n",
			MBIC_IOP_ADDR_BASE));
		return -1;
	}
	regVal = pm8001_cr32(pm8001_ha, 2, MBIC_NMI_ENABLE_VPE0_AAP1);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("MBIC - NMI Enable VPE0 (AAP1)= 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 2, MBIC_NMI_ENABLE_VPE0_AAP1, 0x0);

	regVal = pm8001_cr32(pm8001_ha, 1, PCIE_EVENT_INTERRUPT_ENABLE);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("PCIE -Event Interrupt Enable = 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 1, PCIE_EVENT_INTERRUPT_ENABLE, 0x0);

	regVal = pm8001_cr32(pm8001_ha, 1, PCIE_EVENT_INTERRUPT);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("PCIE - Event Interrupt  = 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 1, PCIE_EVENT_INTERRUPT, regVal);

	regVal = pm8001_cr32(pm8001_ha, 1, PCIE_ERROR_INTERRUPT_ENABLE);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("PCIE -Error Interrupt Enable = 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 1, PCIE_ERROR_INTERRUPT_ENABLE, 0x0);

	regVal = pm8001_cr32(pm8001_ha, 1, PCIE_ERROR_INTERRUPT);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("PCIE - Error Interrupt = 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 1, PCIE_ERROR_INTERRUPT, regVal);

	/* read the scratch pad 1 register bit 2 */
	regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1)
		& SCRATCH_PAD1_RST;
	toggleVal = regVal ^ SCRATCH_PAD1_RST;

	/* set signature in host scratch pad0 register to tell SPC that the
	host performs the soft reset */
	pm8001_cw32(pm8001_ha, 0, MSGU_HOST_SCRATCH_PAD_0, signature);

	/* read required registers for confirmming */
	/* map 0x0700000 to BAR4(0x20), BAR2(win) */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, GSM_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Shift Bar4 to 0x%x failed\n",
			GSM_ADDR_BASE));
		return -1;
	}
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x0(0x00007b88)-GSM Configuration and"
		" Reset = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET)));

	/* step 3: host read GSM Configuration and Reset register */
	regVal = pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET);
	/* Put those bits to low */
	/* GSM XCBI offset = 0x70 0000
	0x00 Bit 13 COM_SLV_SW_RSTB 1
	0x00 Bit 12 QSSP_SW_RSTB 1
	0x00 Bit 11 RAAE_SW_RSTB 1
	0x00 Bit 9 RB_1_SW_RSTB 1
	0x00 Bit 8 SM_SW_RSTB 1
	*/
	regVal &= ~(0x00003b00);
	/* host write GSM Configuration and Reset register */
	pm8001_cw32(pm8001_ha, 2, GSM_CONFIG_RESET, regVal);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x0 (0x00007b88 ==> 0x00004088) - GSM "
		"Configuration and Reset is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET)));

	/* step 4: */
	/* disable GSM - Read Address Parity Check */
	regVal1 = pm8001_cr32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700038 - Read Address Parity Check "
		"Enable = 0x%x\n", regVal1));
	pm8001_cw32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK, 0x0);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700038 - Read Address Parity Check Enable"
		"is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK)));

	/* disable GSM - Write Address Parity Check */
	regVal2 = pm8001_cr32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700040 - Write Address Parity Check"
		" Enable = 0x%x\n", regVal2));
	pm8001_cw32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK, 0x0);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700040 - Write Address Parity Check "
		"Enable is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK)));

	/* disable GSM - Write Data Parity Check */
	regVal3 = pm8001_cr32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x300048 - Write Data Parity Check"
		" Enable = 0x%x\n", regVal3));
	pm8001_cw32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK, 0x0);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x300048 - Write Data Parity Check Enable"
		"is set to = 0x%x\n",
	pm8001_cr32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK)));

	/* step 5: delay 10 usec */
	udelay(10);
	/* step 5-b: set GPIO-0 output control to tristate anyway */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, GPIO_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_INIT_DBG(pm8001_ha,
				pm8001_printk("Shift Bar4 to 0x%x failed\n",
				GPIO_ADDR_BASE));
		return -1;
	}
	regVal = pm8001_cr32(pm8001_ha, 2, GPIO_GPIO_0_0UTPUT_CTL_OFFSET);
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	PM8001_INIT_DBG(pm8001_ha,
			pm8001_printk("GPIO Output Control Register:"
			" = 0x%x\n", regVal));
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	/* set GPIO-0 output control to tri-state */
	regVal &= 0xFFFFFFFC;
	pm8001_cw32(pm8001_ha, 2, GPIO_GPIO_0_0UTPUT_CTL_OFFSET, regVal);

	/* Step 6: Reset the IOP and AAP1 */
	/* map 0x00000 to BAR4(0x20), BAR2(win) */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, SPC_TOP_LEVEL_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("SPC Shift Bar4 to 0x%x failed\n",
			SPC_TOP_LEVEL_ADDR_BASE));
		return -1;
	}
	regVal = pm8001_cr32(pm8001_ha, 2, SPC_REG_RESET);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("Top Register before resetting IOP/AAP1"
		":= 0x%x\n", regVal));
	regVal &= ~(SPC_REG_RESET_PCS_IOP_SS | SPC_REG_RESET_PCS_AAP1_SS);
	pm8001_cw32(pm8001_ha, 2, SPC_REG_RESET, regVal);

	/* step 7: Reset the BDMA/OSSP */
	regVal = pm8001_cr32(pm8001_ha, 2, SPC_REG_RESET);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("Top Register before resetting BDMA/OSSP"
		": = 0x%x\n", regVal));
	regVal &= ~(SPC_REG_RESET_BDMA_CORE | SPC_REG_RESET_OSSP);
	pm8001_cw32(pm8001_ha, 2, SPC_REG_RESET, regVal);

	/* step 8: delay 10 usec */
	udelay(10);

	/* step 9: bring the BDMA and OSSP out of reset */
	regVal = pm8001_cr32(pm8001_ha, 2, SPC_REG_RESET);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("Top Register before bringing up BDMA/OSSP"
		":= 0x%x\n", regVal));
	regVal |= (SPC_REG_RESET_BDMA_CORE | SPC_REG_RESET_OSSP);
	pm8001_cw32(pm8001_ha, 2, SPC_REG_RESET, regVal);

	/* step 10: delay 10 usec */
	udelay(10);

	/* step 11: reads and sets the GSM Configuration and Reset Register */
	/* map 0x0700000 to BAR4(0x20), BAR2(win) */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, GSM_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("SPC Shift Bar4 to 0x%x failed\n",
			GSM_ADDR_BASE));
		return -1;
	}
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x0 (0x00007b88)-GSM Configuration and "
		"Reset = 0x%x\n", pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET)));
	regVal = pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET);
	/* Put those bits to high */
	/* GSM XCBI offset = 0x70 0000
	0x00 Bit 13 COM_SLV_SW_RSTB 1
	0x00 Bit 12 QSSP_SW_RSTB 1
	0x00 Bit 11 RAAE_SW_RSTB 1
	0x00 Bit 9   RB_1_SW_RSTB 1
	0x00 Bit 8   SM_SW_RSTB 1
	*/
	regVal |= (GSM_CONFIG_RESET_VALUE);
	pm8001_cw32(pm8001_ha, 2, GSM_CONFIG_RESET, regVal);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM (0x00004088 ==> 0x00007b88) - GSM"
		" Configuration and Reset is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_CONFIG_RESET)));

	/* step 12: Restore GSM - Read Address Parity Check */
	regVal = pm8001_cr32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK);
	/* just for debugging */
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700038 - Read Address Parity Check Enable"
		" = 0x%x\n", regVal));
	pm8001_cw32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK, regVal1);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700038 - Read Address Parity"
		" Check Enable is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_READ_ADDR_PARITY_CHECK)));
	/* Restore GSM - Write Address Parity Check */
	regVal = pm8001_cr32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK);
	pm8001_cw32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK, regVal2);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700040 - Write Address Parity Check"
		" Enable is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_WRITE_ADDR_PARITY_CHECK)));
	/* Restore GSM - Write Data Parity Check */
	regVal = pm8001_cr32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK);
	pm8001_cw32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK, regVal3);
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("GSM 0x700048 - Write Data Parity Check Enable"
		"is set to = 0x%x\n",
		pm8001_cr32(pm8001_ha, 2, GSM_WRITE_DATA_PARITY_CHECK)));

	/* step 13: bring the IOP and AAP1 out of reset */
	/* map 0x00000 to BAR4(0x20), BAR2(win) */
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	if (-1 == pm8001_bar4_shift(pm8001_ha, SPC_TOP_LEVEL_ADDR_BASE)) {
		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Shift Bar4 to 0x%x failed\n",
			SPC_TOP_LEVEL_ADDR_BASE));
		return -1;
	}
	regVal = pm8001_cr32(pm8001_ha, 2, SPC_REG_RESET);
	regVal |= (SPC_REG_RESET_PCS_IOP_SS | SPC_REG_RESET_PCS_AAP1_SS);
	pm8001_cw32(pm8001_ha, 2, SPC_REG_RESET, regVal);

	/* step 14: delay 10 usec - Normal Mode */
	udelay(10);
	/* check Soft Reset Normal mode or Soft Reset HDA mode */
	if (signature == SPC_SOFT_RESET_SIGNATURE) {
		/* step 15 (Normal Mode): wait until scratch pad1 register
		bit 2 toggled */
		max_wait_count = 2 * 1000 * 1000;/* 2 sec */
		do {
			udelay(1);
			regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1) &
				SCRATCH_PAD1_RST;
		} while ((regVal != toggleVal) && (--max_wait_count));

		if (!max_wait_count) {
			regVal = pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_1);
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("TIMEOUT : ToggleVal 0x%x,"
				"MSGU_SCRATCH_PAD1 = 0x%x\n",
				toggleVal, regVal));
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD0 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_0)));
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD2 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_2)));
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD3 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_3)));
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			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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			return -1;
		}

		/* step 16 (Normal) - Clear ODMR and ODCR */
		pm8001_cw32(pm8001_ha, 0, MSGU_ODCR, ODCR_CLEAR_ALL);
		pm8001_cw32(pm8001_ha, 0, MSGU_ODMR, ODMR_CLEAR_ALL);

		/* step 17 (Normal Mode): wait for the FW and IOP to get
		ready - 1 sec timeout */
		/* Wait for the SPC Configuration Table to be ready */
		if (check_fw_ready(pm8001_ha) == -1) {
			regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_1);
			/* return error if MPI Configuration Table not ready */
			PM8001_INIT_DBG(pm8001_ha,
				pm8001_printk("FW not ready SCRATCH_PAD1"
				" = 0x%x\n", regVal));
			regVal = pm8001_cr32(pm8001_ha, 0, MSGU_SCRATCH_PAD_2);
			/* return error if MPI Configuration Table not ready */
			PM8001_INIT_DBG(pm8001_ha,
				pm8001_printk("FW not ready SCRATCH_PAD2"
				" = 0x%x\n", regVal));
			PM8001_INIT_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD0 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_0)));
			PM8001_INIT_DBG(pm8001_ha,
				pm8001_printk("SCRATCH_PAD3 value = 0x%x\n",
				pm8001_cr32(pm8001_ha, 0,
				MSGU_SCRATCH_PAD_3)));
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			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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			return -1;
		}
	}
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	pm8001_bar4_shift(pm8001_ha, 0);
	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
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	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("SPC soft reset Complete\n"));
	return 0;
}

static void pm8001_hw_chip_rst(struct pm8001_hba_info *pm8001_ha)
{
	u32 i;
	u32 regVal;
	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("chip reset start\n"));

	/* do SPC chip reset. */
	regVal = pm8001_cr32(pm8001_ha, 1, SPC_REG_RESET);
	regVal &= ~(SPC_REG_RESET_DEVICE);
	pm8001_cw32(pm8001_ha, 1, SPC_REG_RESET, regVal);

	/* delay 10 usec */
	udelay(10);

	/* bring chip reset out of reset */
	regVal = pm8001_cr32(pm8001_ha, 1, SPC_REG_RESET);
	regVal |= SPC_REG_RESET_DEVICE;
	pm8001_cw32(pm8001_ha, 1, SPC_REG_RESET, regVal);

	/* delay 10 usec */
	udelay(10);

	/* wait for 20 msec until the firmware gets reloaded */
	i = 20;
	do {
		mdelay(1);
	} while ((--i) != 0);

	PM8001_INIT_DBG(pm8001_ha,
		pm8001_printk("chip reset finished\n"));
}

/**
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 * pm8001_chip_iounmap - which maped when initialized.
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 * @pm8001_ha: our hba card information
 */
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void pm8001_chip_iounmap(struct pm8001_hba_info *pm8001_ha)
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{
	s8 bar, logical = 0;
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	for (bar = 0; bar < PCI_STD_NUM_BARS; bar++) {
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		/*
		** logical BARs for SPC:
		** bar 0 and 1 - logical BAR0
		** bar 2 and 3 - logical BAR1
		** bar4 - logical BAR2
		** bar5 - logical BAR3
		** Skip the appropriate assignments:
		*/
		if ((bar == 1) || (bar == 3))
			continue;
		if (pm8001_ha->io_mem[logical].memvirtaddr) {
			iounmap(pm8001_ha->io_mem[logical].memvirtaddr);
			logical++;
		}
	}
}

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#ifndef PM8001_USE_MSIX
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/**
 * pm8001_chip_interrupt_enable - enable PM8001 chip interrupt
 * @pm8001_ha: our hba card information
 */
static void
pm8001_chip_intx_interrupt_enable(struct pm8001_hba_info *pm8001_ha)
{
	pm8001_cw32(pm8001_ha, 0, MSGU_ODMR, ODMR_CLEAR_ALL);
	pm8001_cw32(pm8001_ha, 0, MSGU_ODCR, ODCR_CLEAR_ALL);
}

 /**
  * pm8001_chip_intx_interrupt_disable- disable PM8001 chip interrupt
  * @pm8001_ha: our hba card information
  */
static void
pm8001_chip_intx_interrupt_disable(struct pm8001_hba_info *pm8001_ha)
{
	pm8001_cw32(pm8001_ha, 0, MSGU_ODMR, ODMR_MASK_ALL);
}

1235 1236
#else

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/**
 * pm8001_chip_msix_interrupt_enable - enable PM8001 chip interrupt
 * @pm8001_ha: our hba card information
1240
 * @int_vec_idx: interrupt number to enable
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 */
static void
pm8001_chip_msix_interrupt_enable(struct pm8001_hba_info *pm8001_ha,
	u32 int_vec_idx)
{
	u32 msi_index;
	u32 value;
	msi_index = int_vec_idx * MSIX_TABLE_ELEMENT_SIZE;
	msi_index += MSIX_TABLE_BASE;
	pm8001_cw32(pm8001_ha, 0, msi_index, MSIX_INTERRUPT_ENABLE);
	value = (1 << int_vec_idx);
	pm8001_cw32(pm8001_ha, 0,  MSGU_ODCR, value);

}

/**
 * pm8001_chip_msix_interrupt_disable - disable PM8001 chip interrupt
 * @pm8001_ha: our hba card information
1259
 * @int_vec_idx: interrupt number to disable
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 */
static void
pm8001_chip_msix_interrupt_disable(struct pm8001_hba_info *pm8001_ha,
	u32 int_vec_idx)
{
	u32 msi_index;
	msi_index = int_vec_idx * MSIX_TABLE_ELEMENT_SIZE;
	msi_index += MSIX_TABLE_BASE;
	pm8001_cw32(pm8001_ha, 0,  msi_index, MSIX_INTERRUPT_DISABLE);
}
1270
#endif
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/**
 * pm8001_chip_interrupt_enable - enable PM8001 chip interrupt
 * @pm8001_ha: our hba card information
1275
 * @vec: unused
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 */
static void
1278
pm8001_chip_interrupt_enable(struct pm8001_hba_info *pm8001_ha, u8 vec)
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{
#ifdef PM8001_USE_MSIX
	pm8001_chip_msix_interrupt_enable(pm8001_ha, 0);
1282
#else
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	pm8001_chip_intx_interrupt_enable(pm8001_ha);
1284
#endif
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}

/**
 * pm8001_chip_intx_interrupt_disable- disable PM8001 chip interrupt
 * @pm8001_ha: our hba card information
1290
 * @vec: unused
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 */
static void
1293
pm8001_chip_interrupt_disable(struct pm8001_hba_info *pm8001_ha, u8 vec)
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{
#ifdef PM8001_USE_MSIX
	pm8001_chip_msix_interrupt_disable(pm8001_ha, 0);
1297
#else
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	pm8001_chip_intx_interrupt_disable(pm8001_ha);
1299
#endif
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}

/**
1303 1304
 * pm8001_mpi_msg_free_get - get the free message buffer for transfer
 * inbound queue.
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 * @circularQ: the inbound queue  we want to transfer to HBA.
 * @messageSize: the message size of this transfer, normally it is 64 bytes
 * @messagePtr: the pointer to message.
 */
1309
int pm8001_mpi_msg_free_get(struct inbound_queue_table *circularQ,
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			    u16 messageSize, void **messagePtr)
{
	u32 offset, consumer_index;
	struct mpi_msg_hdr *msgHeader;
	u8 bcCount = 1; /* only support single buffer */

	/* Checks is the requested message size can be allocated in this queue*/
1317
	if (messageSize > IOMB_SIZE_SPCV) {
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		*messagePtr = NULL;
		return -1;
	}

	/* Stores the new consumer index */
	consumer_index = pm8001_read_32(circularQ->ci_virt);
	circularQ->consumer_index = cpu_to_le32(consumer_index);
1325
	if (((circularQ->producer_idx + bcCount) % PM8001_MPI_QUEUE) ==
1326
		le32_to_cpu(circularQ->consumer_index)) {
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		*messagePtr = NULL;
		return -1;
	}
	/* get memory IOMB buffer address */
1331
	offset = circularQ->producer_idx * messageSize;
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	/* increment to next bcCount element */
1333 1334
	circularQ->producer_idx = (circularQ->producer_idx + bcCount)
				% PM8001_MPI_QUEUE;
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	/* Adds that distance to the base of the region virtual address plus
	the message header size*/
	msgHeader = (struct mpi_msg_hdr *)(circularQ->base_virt	+ offset);
	*messagePtr = ((void *)msgHeader) + sizeof(struct mpi_msg_hdr);
	return 0;
}

/**
1343 1344
 * pm8001_mpi_build_cmd- build the message queue for transfer, update the PI to
 * FW to tell the fw to get this message from IOMB.
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 * @pm8001_ha: our hba card information
 * @circularQ: the inbound queue we want to transfer to HBA.
 * @opCode: the operation code represents commands which LLDD and fw recognized.
 * @payload: the command payload of each operation command.
1349 1350
 * @nb: size in bytes of the command payload
 * @responseQueue: queue to interrupt on w/ command response (if any)
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 */
1352
int pm8001_mpi_build_cmd(struct pm8001_hba_info *pm8001_ha,
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			 struct inbound_queue_table *circularQ,
1354 1355
			 u32 opCode, void *payload, size_t nb,
			 u32 responseQueue)
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{
	u32 Header = 0, hpriority = 0, bc = 1, category = 0x02;
	void *pMessage;
1359 1360 1361 1362 1363 1364 1365 1366 1367
	unsigned long flags;
	int q_index = circularQ - pm8001_ha->inbnd_q_tbl;
	int rv = -1;

	WARN_ON(q_index >= PM8001_MAX_INB_NUM);
	spin_lock_irqsave(&circularQ->iq_lock, flags);
	rv = pm8001_mpi_msg_free_get(circularQ, pm8001_ha->iomb_size,
			&pMessage);
	if (rv < 0) {
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		PM8001_IO_DBG(pm8001_ha,
1369 1370 1371
			      pm8001_printk("No free mpi buffer\n"));
		rv = -ENOMEM;
		goto done;
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	}
1373 1374 1375 1376 1377 1378 1379

	if (nb > (pm8001_ha->iomb_size - sizeof(struct mpi_msg_hdr)))
		nb = pm8001_ha->iomb_size - sizeof(struct mpi_msg_hdr);
	memcpy(pMessage, payload, nb);
	if (nb + sizeof(struct mpi_msg_hdr) < pm8001_ha->iomb_size)
		memset(pMessage + nb, 0, pm8001_ha->iomb_size -
				(nb + sizeof(struct mpi_msg_hdr)));
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	/*Build the header*/
	Header = ((1 << 31) | (hpriority << 30) | ((bc & 0x1f) << 24)
		| ((responseQueue & 0x3F) << 16)
		| ((category & 0xF) << 12) | (opCode & 0xFFF));

	pm8001_write_32((pMessage - 4), 0, cpu_to_le32(Header));
	/*Update the PI to the firmware*/
	pm8001_cw32(pm8001_ha, circularQ->pi_pci_bar,
		circularQ->pi_offset, circularQ->producer_idx);
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	PM8001_DEVIO_DBG(pm8001_ha,
1391 1392 1393
		pm8001_printk("INB Q %x OPCODE:%x , UPDATED PI=%d CI=%d\n",
			responseQueue, opCode, circularQ->producer_idx,
			circularQ->consumer_index));
1394 1395 1396
done:
	spin_unlock_irqrestore(&circularQ->iq_lock, flags);
	return rv;
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}

1399
u32 pm8001_mpi_msg_free_set(struct pm8001_hba_info *pm8001_ha, void *pMsg,
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			    struct outbound_queue_table *circularQ, u8 bc)
{
	u32 producer_index;
1403 1404 1405 1406 1407
	struct mpi_msg_hdr *msgHeader;
	struct mpi_msg_hdr *pOutBoundMsgHeader;

	msgHeader = (struct mpi_msg_hdr *)(pMsg - sizeof(struct mpi_msg_hdr));
	pOutBoundMsgHeader = (struct mpi_msg_hdr *)(circularQ->base_virt +
1408
				circularQ->consumer_idx * pm8001_ha->iomb_size);
1409 1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422
	if (pOutBoundMsgHeader != msgHeader) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("consumer_idx = %d msgHeader = %p\n",
			circularQ->consumer_idx, msgHeader));

		/* Update the producer index from SPC */
		producer_index = pm8001_read_32(circularQ->pi_virt);
		circularQ->producer_index = cpu_to_le32(producer_index);
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("consumer_idx = %d producer_index = %d"
			"msgHeader = %p\n", circularQ->consumer_idx,
			circularQ->producer_index, msgHeader));
		return 0;
	}
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	/* free the circular queue buffer elements associated with the message*/
1424 1425
	circularQ->consumer_idx = (circularQ->consumer_idx + bc)
				% PM8001_MPI_QUEUE;
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	/* update the CI of outbound queue */
	pm8001_cw32(pm8001_ha, circularQ->ci_pci_bar, circularQ->ci_offset,
		circularQ->consumer_idx);
	/* Update the producer index from SPC*/
	producer_index = pm8001_read_32(circularQ->pi_virt);
	circularQ->producer_index = cpu_to_le32(producer_index);
	PM8001_IO_DBG(pm8001_ha,
		pm8001_printk(" CI=%d PI=%d\n", circularQ->consumer_idx,
		circularQ->producer_index));
	return 0;
}

/**
1439 1440
 * pm8001_mpi_msg_consume- get the MPI message from outbound queue
 * message table.
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 * @pm8001_ha: our hba card information
 * @circularQ: the outbound queue  table.
 * @messagePtr1: the message contents of this outbound message.
 * @pBC: the message size.
 */
1446
u32 pm8001_mpi_msg_consume(struct pm8001_hba_info *pm8001_ha,
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			   struct outbound_queue_table *circularQ,
			   void **messagePtr1, u8 *pBC)
{
	struct mpi_msg_hdr	*msgHeader;
	__le32	msgHeader_tmp;
	u32 header_tmp;
	do {
		/* If there are not-yet-delivered messages ... */
1455 1456
		if (le32_to_cpu(circularQ->producer_index)
			!= circularQ->consumer_idx) {
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			/*Get the pointer to the circular queue buffer element*/
			msgHeader = (struct mpi_msg_hdr *)
				(circularQ->base_virt +
1460
				circularQ->consumer_idx * pm8001_ha->iomb_size);
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			/* read header */
			header_tmp = pm8001_read_32(msgHeader);
			msgHeader_tmp = cpu_to_le32(header_tmp);
1464 1465 1466 1467
			PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
				"outbound opcode msgheader:%x ci=%d pi=%d\n",
				msgHeader_tmp, circularQ->consumer_idx,
				circularQ->producer_index));
1468
			if (0 != (le32_to_cpu(msgHeader_tmp) & 0x80000000)) {
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				if (OPC_OUB_SKIP_ENTRY !=
1470
					(le32_to_cpu(msgHeader_tmp) & 0xfff)) {
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					*messagePtr1 =
						((u8 *)msgHeader) +
						sizeof(struct mpi_msg_hdr);
1474 1475
					*pBC = (u8)((le32_to_cpu(msgHeader_tmp)
						>> 24) & 0x1f);
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					PM8001_IO_DBG(pm8001_ha,
1477 1478
						pm8001_printk(": CI=%d PI=%d "
						"msgHeader=%x\n",
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						circularQ->consumer_idx,
						circularQ->producer_index,
						msgHeader_tmp));
					return MPI_IO_STATUS_SUCCESS;
				} else {
					circularQ->consumer_idx =
						(circularQ->consumer_idx +
1486
						((le32_to_cpu(msgHeader_tmp)
1487 1488
						 >> 24) & 0x1f))
							% PM8001_MPI_QUEUE;
1489 1490
					msgHeader_tmp = 0;
					pm8001_write_32(msgHeader, 0, 0);
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					/* update the CI of outbound queue */
					pm8001_cw32(pm8001_ha,
						circularQ->ci_pci_bar,
						circularQ->ci_offset,
						circularQ->consumer_idx);
				}
1497 1498 1499
			} else {
				circularQ->consumer_idx =
					(circularQ->consumer_idx +
1500
					((le32_to_cpu(msgHeader_tmp) >> 24) &
1501
					0x1f)) % PM8001_MPI_QUEUE;
1502 1503 1504 1505 1506 1507
				msgHeader_tmp = 0;
				pm8001_write_32(msgHeader, 0, 0);
				/* update the CI of outbound queue */
				pm8001_cw32(pm8001_ha, circularQ->ci_pci_bar,
					circularQ->ci_offset,
					circularQ->consumer_idx);
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				return MPI_IO_STATUS_FAIL;
1509 1510 1511 1512
			}
		} else {
			u32 producer_index;
			void *pi_virt = circularQ->pi_virt;
1513 1514 1515 1516 1517 1518
			/* spurious interrupt during setup if
			 * kexec-ing and driver doing a doorbell access
			 * with the pre-kexec oq interrupt setup
			 */
			if (!pi_virt)
				break;
1519 1520 1521
			/* Update the producer index from SPC */
			producer_index = pm8001_read_32(pi_virt);
			circularQ->producer_index = cpu_to_le32(producer_index);
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		}
1523 1524
	} while (le32_to_cpu(circularQ->producer_index) !=
		circularQ->consumer_idx);
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	/* while we don't have any more not-yet-delivered message */
	/* report empty */
	return MPI_IO_STATUS_BUSY;
}

1530
void pm8001_work_fn(struct work_struct *work)
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{
1532
	struct pm8001_work *pw = container_of(work, struct pm8001_work, work);
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	struct pm8001_device *pm8001_dev;
1534
	struct domain_device *dev;
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1536 1537 1538 1539 1540 1541 1542 1543 1544
	/*
	 * So far, all users of this stash an associated structure here.
	 * If we get here, and this pointer is null, then the action
	 * was cancelled. This nullification happens when the device
	 * goes away.
	 */
	pm8001_dev = pw->data; /* Most stash device structure */
	if ((pm8001_dev == NULL)
	 || ((pw->handler != IO_XFER_ERROR_BREAK)
1545
	  && (pm8001_dev->dev_type == SAS_PHY_UNUSED))) {
1546 1547 1548 1549
		kfree(pw);
		return;
	}

1550
	switch (pw->handler) {
1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589
	case IO_XFER_ERROR_BREAK:
	{	/* This one stashes the sas_task instead */
		struct sas_task *t = (struct sas_task *)pm8001_dev;
		u32 tag;
		struct pm8001_ccb_info *ccb;
		struct pm8001_hba_info *pm8001_ha = pw->pm8001_ha;
		unsigned long flags, flags1;
		struct task_status_struct *ts;
		int i;

		if (pm8001_query_task(t) == TMF_RESP_FUNC_SUCC)
			break; /* Task still on lu */
		spin_lock_irqsave(&pm8001_ha->lock, flags);

		spin_lock_irqsave(&t->task_state_lock, flags1);
		if (unlikely((t->task_state_flags & SAS_TASK_STATE_DONE))) {
			spin_unlock_irqrestore(&t->task_state_lock, flags1);
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			break; /* Task got completed by another */
		}
		spin_unlock_irqrestore(&t->task_state_lock, flags1);

		/* Search for a possible ccb that matches the task */
		for (i = 0; ccb = NULL, i < PM8001_MAX_CCB; i++) {
			ccb = &pm8001_ha->ccb_info[i];
			tag = ccb->ccb_tag;
			if ((tag != 0xFFFFFFFF) && (ccb->task == t))
				break;
		}
		if (!ccb) {
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			break; /* Task got freed by another */
		}
		ts = &t->task_status;
		ts->resp = SAS_TASK_COMPLETE;
		/* Force the midlayer to retry */
		ts->stat = SAS_QUEUE_FULL;
		pm8001_dev = ccb->device;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
1591 1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627 1628 1629 1630 1631 1632 1633 1634 1635
		spin_lock_irqsave(&t->task_state_lock, flags1);
		t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
		t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
		t->task_state_flags |= SAS_TASK_STATE_DONE;
		if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
			spin_unlock_irqrestore(&t->task_state_lock, flags1);
			PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("task 0x%p"
				" done with event 0x%x resp 0x%x stat 0x%x but"
				" aborted by upper layer!\n",
				t, pw->handler, ts->resp, ts->stat));
			pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
		} else {
			spin_unlock_irqrestore(&t->task_state_lock, flags1);
			pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
			mb();/* in order to force CPU ordering */
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			t->task_done(t);
		}
	}	break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
	{	/* This one stashes the sas_task instead */
		struct sas_task *t = (struct sas_task *)pm8001_dev;
		u32 tag;
		struct pm8001_ccb_info *ccb;
		struct pm8001_hba_info *pm8001_ha = pw->pm8001_ha;
		unsigned long flags, flags1;
		int i, ret = 0;

		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));

		ret = pm8001_query_task(t);

		PM8001_IO_DBG(pm8001_ha,
			switch (ret) {
			case TMF_RESP_FUNC_SUCC:
				pm8001_printk("...Task on lu\n");
				break;

			case TMF_RESP_FUNC_COMPLETE:
				pm8001_printk("...Task NOT on lu\n");
				break;

			default:
1636 1637
				PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
					"...query task failed!!!\n"));
1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708
				break;
			});

		spin_lock_irqsave(&pm8001_ha->lock, flags);

		spin_lock_irqsave(&t->task_state_lock, flags1);

		if (unlikely((t->task_state_flags & SAS_TASK_STATE_DONE))) {
			spin_unlock_irqrestore(&t->task_state_lock, flags1);
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			if (ret == TMF_RESP_FUNC_SUCC) /* task on lu */
				(void)pm8001_abort_task(t);
			break; /* Task got completed by another */
		}

		spin_unlock_irqrestore(&t->task_state_lock, flags1);

		/* Search for a possible ccb that matches the task */
		for (i = 0; ccb = NULL, i < PM8001_MAX_CCB; i++) {
			ccb = &pm8001_ha->ccb_info[i];
			tag = ccb->ccb_tag;
			if ((tag != 0xFFFFFFFF) && (ccb->task == t))
				break;
		}
		if (!ccb) {
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			if (ret == TMF_RESP_FUNC_SUCC) /* task on lu */
				(void)pm8001_abort_task(t);
			break; /* Task got freed by another */
		}

		pm8001_dev = ccb->device;
		dev = pm8001_dev->sas_device;

		switch (ret) {
		case TMF_RESP_FUNC_SUCC: /* task on lu */
			ccb->open_retry = 1; /* Snub completion */
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			ret = pm8001_abort_task(t);
			ccb->open_retry = 0;
			switch (ret) {
			case TMF_RESP_FUNC_SUCC:
			case TMF_RESP_FUNC_COMPLETE:
				break;
			default: /* device misbehavior */
				ret = TMF_RESP_FUNC_FAILED;
				PM8001_IO_DBG(pm8001_ha,
					pm8001_printk("...Reset phy\n"));
				pm8001_I_T_nexus_reset(dev);
				break;
			}
			break;

		case TMF_RESP_FUNC_COMPLETE: /* task not on lu */
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			/* Do we need to abort the task locally? */
			break;

		default: /* device misbehavior */
			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
			ret = TMF_RESP_FUNC_FAILED;
			PM8001_IO_DBG(pm8001_ha,
				pm8001_printk("...Reset phy\n"));
			pm8001_I_T_nexus_reset(dev);
		}

		if (ret == TMF_RESP_FUNC_FAILED)
			t = NULL;
		pm8001_open_reject_retry(pm8001_ha, t, pm8001_dev);
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("...Complete\n"));
	}	break;
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	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		dev = pm8001_dev->sas_device;
1711
		pm8001_I_T_nexus_event_handler(dev);
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		break;
	case IO_OPEN_CNX_ERROR_STP_RESOURCES_BUSY:
		dev = pm8001_dev->sas_device;
		pm8001_I_T_nexus_reset(dev);
		break;
	case IO_DS_IN_ERROR:
		dev = pm8001_dev->sas_device;
		pm8001_I_T_nexus_reset(dev);
		break;
	case IO_DS_NON_OPERATIONAL:
		dev = pm8001_dev->sas_device;
		pm8001_I_T_nexus_reset(dev);
		break;
	}
1726
	kfree(pw);
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}

1729
int pm8001_handle_event(struct pm8001_hba_info *pm8001_ha, void *data,
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			       int handler)
{
1732
	struct pm8001_work *pw;
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	int ret = 0;

1735 1736 1737 1738 1739 1740 1741
	pw = kmalloc(sizeof(struct pm8001_work), GFP_ATOMIC);
	if (pw) {
		pw->pm8001_ha = pm8001_ha;
		pw->data = data;
		pw->handler = handler;
		INIT_WORK(&pw->work, pm8001_work_fn);
		queue_work(pm8001_wq, &pw->work);
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	} else
		ret = -ENOMEM;

	return ret;
}

1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790
static void pm8001_send_abort_all(struct pm8001_hba_info *pm8001_ha,
		struct pm8001_device *pm8001_ha_dev)
{
	int res;
	u32 ccb_tag;
	struct pm8001_ccb_info *ccb;
	struct sas_task *task = NULL;
	struct task_abort_req task_abort;
	struct inbound_queue_table *circularQ;
	u32 opc = OPC_INB_SATA_ABORT;
	int ret;

	if (!pm8001_ha_dev) {
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("dev is null\n"));
		return;
	}

	task = sas_alloc_slow_task(GFP_ATOMIC);

	if (!task) {
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("cannot "
						"allocate task\n"));
		return;
	}

	task->task_done = pm8001_task_done;

	res = pm8001_tag_alloc(pm8001_ha, &ccb_tag);
	if (res)
		return;

	ccb = &pm8001_ha->ccb_info[ccb_tag];
	ccb->device = pm8001_ha_dev;
	ccb->ccb_tag = ccb_tag;
	ccb->task = task;

	circularQ = &pm8001_ha->inbnd_q_tbl[0];

	memset(&task_abort, 0, sizeof(task_abort));
	task_abort.abort_all = cpu_to_le32(1);
	task_abort.device_id = cpu_to_le32(pm8001_ha_dev->device_id);
	task_abort.tag = cpu_to_le32(ccb_tag);

1791 1792
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &task_abort,
			sizeof(task_abort), 0);
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	if (ret)
		pm8001_tag_free(pm8001_ha, ccb_tag);
1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821

}

static void pm8001_send_read_log(struct pm8001_hba_info *pm8001_ha,
		struct pm8001_device *pm8001_ha_dev)
{
	struct sata_start_req sata_cmd;
	int res;
	u32 ccb_tag;
	struct pm8001_ccb_info *ccb;
	struct sas_task *task = NULL;
	struct host_to_dev_fis fis;
	struct domain_device *dev;
	struct inbound_queue_table *circularQ;
	u32 opc = OPC_INB_SATA_HOST_OPSTART;

	task = sas_alloc_slow_task(GFP_ATOMIC);

	if (!task) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("cannot allocate task !!!\n"));
		return;
	}
	task->task_done = pm8001_task_done;

	res = pm8001_tag_alloc(pm8001_ha, &ccb_tag);
	if (res) {
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		sas_free_task(task);
1823 1824 1825 1826 1827 1828 1829 1830 1831 1832
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("cannot allocate tag !!!\n"));
		return;
	}

	/* allocate domain device by ourselves as libsas
	 * is not going to provide any
	*/
	dev = kzalloc(sizeof(struct domain_device), GFP_ATOMIC);
	if (!dev) {
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		sas_free_task(task);
		pm8001_tag_free(pm8001_ha, ccb_tag);
1835 1836 1837 1838
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Domain device cannot be allocated\n"));
		return;
	}
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	task->dev = dev;
	task->dev->lldd_dev = pm8001_ha_dev;
1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864

	ccb = &pm8001_ha->ccb_info[ccb_tag];
	ccb->device = pm8001_ha_dev;
	ccb->ccb_tag = ccb_tag;
	ccb->task = task;
	pm8001_ha_dev->id |= NCQ_READ_LOG_FLAG;
	pm8001_ha_dev->id |= NCQ_2ND_RLE_FLAG;

	memset(&sata_cmd, 0, sizeof(sata_cmd));
	circularQ = &pm8001_ha->inbnd_q_tbl[0];

	/* construct read log FIS */
	memset(&fis, 0, sizeof(struct host_to_dev_fis));
	fis.fis_type = 0x27;
	fis.flags = 0x80;
	fis.command = ATA_CMD_READ_LOG_EXT;
	fis.lbal = 0x10;
	fis.sector_count = 0x1;

	sata_cmd.tag = cpu_to_le32(ccb_tag);
	sata_cmd.device_id = cpu_to_le32(pm8001_ha_dev->device_id);
	sata_cmd.ncqtag_atap_dir_m |= ((0x1 << 7) | (0x5 << 9));
	memcpy(&sata_cmd.sata_fis, &fis, sizeof(struct host_to_dev_fis));

1865 1866
	res = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &sata_cmd,
			sizeof(sata_cmd), 0);
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	if (res) {
		sas_free_task(task);
		pm8001_tag_free(pm8001_ha, ccb_tag);
		kfree(dev);
	}
1872 1873
}

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/**
 * mpi_ssp_completion- process the event that FW response to the SSP request.
 * @pm8001_ha: our hba card information
 * @piomb: the message contents of this outbound message.
 *
 * When FW has completed a ssp request for example a IO request, after it has
 * filled the SG data with the data, it will trigger this event represent
 * that he has finished the job,please check the coresponding buffer.
 * So we will tell the caller who maybe waiting the result to tell upper layer
 * that the task has been finished.
 */
1885
static void
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mpi_ssp_completion(struct pm8001_hba_info *pm8001_ha , void *piomb)
{
	struct sas_task *t;
	struct pm8001_ccb_info *ccb;
	unsigned long flags;
	u32 status;
	u32 param;
	u32 tag;
	struct ssp_completion_resp *psspPayload;
	struct task_status_struct *ts;
	struct ssp_response_iu *iu;
	struct pm8001_device *pm8001_dev;
	psspPayload = (struct ssp_completion_resp *)(piomb + 4);
	status = le32_to_cpu(psspPayload->status);
	tag = le32_to_cpu(psspPayload->tag);
	ccb = &pm8001_ha->ccb_info[tag];
1902 1903 1904 1905 1906
	if ((status == IO_ABORTED) && ccb->open_retry) {
		/* Being completed by another */
		ccb->open_retry = 0;
		return;
	}
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	pm8001_dev = ccb->device;
	param = le32_to_cpu(psspPayload->param);

	t = ccb->task;

1912
	if (status && status != IO_UNDERFLOW)
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("sas IO status 0x%x\n", status));
	if (unlikely(!t || !t->lldd_task || !t->dev))
1916
		return;
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	ts = &t->task_status;
1918 1919 1920 1921 1922 1923 1924
	/* Print sas address of IO failed device */
	if ((status != IO_SUCCESS) && (status != IO_OVERFLOW) &&
		(status != IO_UNDERFLOW))
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("SAS Address of IO Failure Drive:"
			"%016llx", SAS_ADDR(t->dev->sas_addr)));

1925 1926 1927 1928 1929
	if (status)
		PM8001_IOERR_DBG(pm8001_ha, pm8001_printk(
			"status:0x%x, tag:0x%x, task:0x%p\n",
			status, tag, t));

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	switch (status) {
	case IO_SUCCESS:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_SUCCESS"
1933
			",param = %d\n", param));
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		if (param == 0) {
			ts->resp = SAS_TASK_COMPLETE;
1936
			ts->stat = SAM_STAT_GOOD;
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		} else {
			ts->resp = SAS_TASK_COMPLETE;
			ts->stat = SAS_PROTO_RESPONSE;
			ts->residual = param;
			iu = &psspPayload->ssp_resp_iu;
			sas_ssp_task_response(pm8001_ha->dev, t, iu);
		}
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_ABORTED:
		PM8001_IO_DBG(pm8001_ha,
1949
			pm8001_printk("IO_ABORTED IOMB Tag\n"));
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		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_ABORTED_TASK;
		break;
	case IO_UNDERFLOW:
		/* SSP Completion with error */
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_UNDERFLOW"
1956
			",param = %d\n", param));
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		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_UNDERRUN;
		ts->residual = param;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_NO_DEVICE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_NO_DEVICE\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_PHY_DOWN;
		break;
	case IO_XFER_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
1974 1975
		/* Force the midlayer to retry */
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		break;
	case IO_XFER_ERROR_PHY_NOT_READY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PHY_NOT_READY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
		pm8001_printk("IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_EPROTO;
		break;
	case IO_OPEN_CNX_ERROR_ZONE_VIOLATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_ZONE_VIOLATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		break;
	case IO_OPEN_CNX_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
2003
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		break;
	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		if (!t->uldd_task)
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
		break;
	case IO_OPEN_CNX_ERROR_BAD_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BAD_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_BAD_DEST;
		break;
	case IO_OPEN_CNX_ERROR_CONNECTION_RATE_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_CONNECTION_RATE_"
			"NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_CONN_RATE;
		break;
	case IO_OPEN_CNX_ERROR_WRONG_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_WRONG_DESTINATION\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_WRONG_DEST;
		break;
	case IO_XFER_ERROR_NAK_RECEIVED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_NAK_RECEIVED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
2043
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		break;
	case IO_XFER_ERROR_ACK_NAK_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_ACK_NAK_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
		break;
	case IO_XFER_ERROR_DMA:
		PM8001_IO_DBG(pm8001_ha,
		pm8001_printk("IO_XFER_ERROR_DMA\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_XFER_ERROR_OFFSET_MISMATCH:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_OFFSET_MISMATCH\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_PORT_IN_RESET:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_PORT_IN_RESET\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_DS_NON_OPERATIONAL:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_NON_OPERATIONAL\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		if (!t->uldd_task)
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_DS_NON_OPERATIONAL);
		break;
	case IO_DS_IN_RECOVERY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_IN_RECOVERY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_TM_TAG_NOT_FOUND:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_TM_TAG_NOT_FOUND\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_SSP_EXT_IU_ZERO_LEN_ERROR:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_SSP_EXT_IU_ZERO_LEN_ERROR\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	case IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
2110
		break;
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	default:
2112
		PM8001_DEVIO_DBG(pm8001_ha,
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			pm8001_printk("Unknown status 0x%x\n", status));
		/* not allowed case. Therefore, return failed status */
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		break;
	}
	PM8001_IO_DBG(pm8001_ha,
2120
		pm8001_printk("scsi_status = %x\n ",
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		psspPayload->ssp_resp_iu.status));
	spin_lock_irqsave(&t->task_state_lock, flags);
	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("task 0x%p done with"
			" io_status 0x%x resp 0x%x "
			"stat 0x%x but aborted by upper layer!\n",
			t, status, ts->resp, ts->stat));
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
	} else {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
		mb();/* in order to force CPU ordering */
		t->task_done(t);
	}
}

/*See the comments for mpi_ssp_completion */
2142
static void mpi_ssp_event(struct pm8001_hba_info *pm8001_ha , void *piomb)
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{
	struct sas_task *t;
	unsigned long flags;
	struct task_status_struct *ts;
	struct pm8001_ccb_info *ccb;
	struct pm8001_device *pm8001_dev;
	struct ssp_event_resp *psspPayload =
		(struct ssp_event_resp *)(piomb + 4);
	u32 event = le32_to_cpu(psspPayload->event);
	u32 tag = le32_to_cpu(psspPayload->tag);
	u32 port_id = le32_to_cpu(psspPayload->port_id);
	u32 dev_id = le32_to_cpu(psspPayload->device_id);

	ccb = &pm8001_ha->ccb_info[tag];
	t = ccb->task;
	pm8001_dev = ccb->device;
	if (event)
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("sas IO status 0x%x\n", event));
	if (unlikely(!t || !t->lldd_task || !t->dev))
2163
		return;
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	ts = &t->task_status;
2165
	PM8001_DEVIO_DBG(pm8001_ha,
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		pm8001_printk("port_id = %x,device_id = %x\n",
		port_id, dev_id));
	switch (event) {
	case IO_OVERFLOW:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_UNDERFLOW\n");)
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		ts->residual = 0;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_BREAK\n"));
2180 2181
		pm8001_handle_event(pm8001_ha, t, IO_XFER_ERROR_BREAK);
		return;
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	case IO_XFER_ERROR_PHY_NOT_READY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PHY_NOT_READY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_PROTOCOL_NOT"
			"_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_EPROTO;
		break;
	case IO_OPEN_CNX_ERROR_ZONE_VIOLATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_ZONE_VIOLATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		break;
	case IO_OPEN_CNX_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
2209
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		break;
	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		if (!t->uldd_task)
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
		break;
	case IO_OPEN_CNX_ERROR_BAD_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BAD_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_BAD_DEST;
		break;
	case IO_OPEN_CNX_ERROR_CONNECTION_RATE_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_CONNECTION_RATE_"
			"NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_CONN_RATE;
		break;
	case IO_OPEN_CNX_ERROR_WRONG_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_OPEN_CNX_ERROR_WRONG_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_WRONG_DEST;
		break;
	case IO_XFER_ERROR_NAK_RECEIVED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_NAK_RECEIVED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
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		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		break;
	case IO_XFER_ERROR_ACK_NAK_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_ACK_NAK_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
		break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));
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		pm8001_handle_event(pm8001_ha, t, IO_XFER_OPEN_RETRY_TIMEOUT);
		return;
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	case IO_XFER_ERROR_UNEXPECTED_PHASE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_UNEXPECTED_PHASE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_ERROR_XFER_RDY_OVERRUN:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_XFER_RDY_OVERRUN\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_ERROR_XFER_RDY_NOT_EXPECTED:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_XFER_ERROR_XFER_RDY_NOT_EXPECTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_ERROR_CMD_ISSUE_ACK_NAK_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
		pm8001_printk("IO_XFER_ERROR_CMD_ISSUE_ACK_NAK_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_ERROR_OFFSET_MISMATCH:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_OFFSET_MISMATCH\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_ERROR_XFER_ZERO_DATA_LEN:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_XFER_ZERO_DATA_LEN\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	case IO_XFER_CMD_FRAME_ISSUED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("  IO_XFER_CMD_FRAME_ISSUED\n"));
2301
		return;
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	default:
2303
		PM8001_DEVIO_DBG(pm8001_ha,
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			pm8001_printk("Unknown status 0x%x\n", event));
		/* not allowed case. Therefore, return failed status */
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		break;
	}
	spin_lock_irqsave(&t->task_state_lock, flags);
	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("task 0x%p done with"
			" event 0x%x resp 0x%x "
			"stat 0x%x but aborted by upper layer!\n",
			t, event, ts->resp, ts->stat));
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
	} else {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
		mb();/* in order to force CPU ordering */
		t->task_done(t);
	}
}

/*See the comments for mpi_ssp_completion */
2330
static void
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mpi_sata_completion(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
	struct sas_task *t;
	struct pm8001_ccb_info *ccb;
	u32 param;
	u32 status;
	u32 tag;
2338 2339 2340 2341 2342
	int i, j;
	u8 sata_addr_low[4];
	u32 temp_sata_addr_low;
	u8 sata_addr_hi[4];
	u32 temp_sata_addr_hi;
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	struct sata_completion_resp *psataPayload;
	struct task_status_struct *ts;
	struct ata_task_resp *resp ;
	u32 *sata_resp;
	struct pm8001_device *pm8001_dev;
2348
	unsigned long flags;
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	psataPayload = (struct sata_completion_resp *)(piomb + 4);
	status = le32_to_cpu(psataPayload->status);
	tag = le32_to_cpu(psataPayload->tag);

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	if (!tag) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("tag null\n"));
		return;
	}
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	ccb = &pm8001_ha->ccb_info[tag];
	param = le32_to_cpu(psataPayload->param);
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	if (ccb) {
		t = ccb->task;
		pm8001_dev = ccb->device;
	} else {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("ccb null\n"));
		return;
	}

	if (t) {
		if (t->dev && (t->dev->lldd_dev))
			pm8001_dev = t->dev->lldd_dev;
	} else {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("task null\n"));
		return;
	}

	if ((pm8001_dev && !(pm8001_dev->id & NCQ_READ_LOG_FLAG))
		&& unlikely(!t || !t->lldd_task || !t->dev)) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("task or dev null\n"));
		return;
	}

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	ts = &t->task_status;
2387
	if (!ts) {
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		PM8001_FAIL_DBG(pm8001_ha,
2389
			pm8001_printk("ts null\n"));
2390
		return;
2391
	}
2392 2393 2394 2395 2396 2397

	if (status)
		PM8001_IOERR_DBG(pm8001_ha, pm8001_printk(
			"status:0x%x, tag:0x%x, task::0x%p\n",
			status, tag, t));

2398 2399 2400 2401
	/* Print sas address of IO failed device */
	if ((status != IO_SUCCESS) && (status != IO_OVERFLOW) &&
		(status != IO_UNDERFLOW)) {
		if (!((t->dev->parent) &&
2402
			(dev_is_expander(t->dev->parent->dev_type)))) {
2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437
			for (i = 0 , j = 4; j <= 7 && i <= 3; i++ , j++)
				sata_addr_low[i] = pm8001_ha->sas_addr[j];
			for (i = 0 , j = 0; j <= 3 && i <= 3; i++ , j++)
				sata_addr_hi[i] = pm8001_ha->sas_addr[j];
			memcpy(&temp_sata_addr_low, sata_addr_low,
				sizeof(sata_addr_low));
			memcpy(&temp_sata_addr_hi, sata_addr_hi,
				sizeof(sata_addr_hi));
			temp_sata_addr_hi = (((temp_sata_addr_hi >> 24) & 0xff)
						|((temp_sata_addr_hi << 8) &
						0xff0000) |
						((temp_sata_addr_hi >> 8)
						& 0xff00) |
						((temp_sata_addr_hi << 24) &
						0xff000000));
			temp_sata_addr_low = ((((temp_sata_addr_low >> 24)
						& 0xff) |
						((temp_sata_addr_low << 8)
						& 0xff0000) |
						((temp_sata_addr_low >> 8)
						& 0xff00) |
						((temp_sata_addr_low << 24)
						& 0xff000000)) +
						pm8001_dev->attached_phy +
						0x10);
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SAS Address of IO Failure Drive:"
				"%08x%08x", temp_sata_addr_hi,
					temp_sata_addr_low));
		} else {
			PM8001_FAIL_DBG(pm8001_ha,
				pm8001_printk("SAS Address of IO Failure Drive:"
				"%016llx", SAS_ADDR(t->dev->sas_addr)));
		}
	}
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	switch (status) {
	case IO_SUCCESS:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_SUCCESS\n"));
		if (param == 0) {
			ts->resp = SAS_TASK_COMPLETE;
2443
			ts->stat = SAM_STAT_GOOD;
2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454 2455 2456
			/* check if response is for SEND READ LOG */
			if (pm8001_dev &&
				(pm8001_dev->id & NCQ_READ_LOG_FLAG)) {
				/* set new bit for abort_all */
				pm8001_dev->id |= NCQ_ABORT_ALL_FLAG;
				/* clear bit for read log */
				pm8001_dev->id = pm8001_dev->id & 0x7FFFFFFF;
				pm8001_send_abort_all(pm8001_ha, pm8001_dev);
				/* Free the tag */
				pm8001_tag_free(pm8001_ha, tag);
				sas_free_task(t);
				return;
			}
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		} else {
			u8 len;
			ts->resp = SAS_TASK_COMPLETE;
			ts->stat = SAS_PROTO_RESPONSE;
			ts->residual = param;
			PM8001_IO_DBG(pm8001_ha,
				pm8001_printk("SAS_PROTO_RESPONSE len = %d\n",
				param));
			sata_resp = &psataPayload->sata_resp[0];
			resp = (struct ata_task_resp *)ts->buf;
			if (t->ata_task.dma_xfer == 0 &&
2468
			    t->data_dir == DMA_FROM_DEVICE) {
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				len = sizeof(struct pio_setup_fis);
				PM8001_IO_DBG(pm8001_ha,
				pm8001_printk("PIO read len = %d\n", len));
			} else if (t->ata_task.use_ncq) {
				len = sizeof(struct set_dev_bits_fis);
				PM8001_IO_DBG(pm8001_ha,
					pm8001_printk("FPDMA len = %d\n", len));
			} else {
				len = sizeof(struct dev_to_host_fis);
				PM8001_IO_DBG(pm8001_ha,
				pm8001_printk("other len = %d\n", len));
			}
			if (SAS_STATUS_BUF_SIZE >= sizeof(*resp)) {
				resp->frame_len = len;
				memcpy(&resp->ending_fis[0], sata_resp, len);
				ts->buf_valid_size = sizeof(*resp);
			} else
				PM8001_IO_DBG(pm8001_ha,
2487
					pm8001_printk("response to large\n"));
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		}
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_ABORTED:
		PM8001_IO_DBG(pm8001_ha,
2494
			pm8001_printk("IO_ABORTED IOMB Tag\n"));
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		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_ABORTED_TASK;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
		/* following cases are to do cases */
	case IO_UNDERFLOW:
		/* SATA Completion with error */
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_UNDERFLOW param = %d\n", param));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_UNDERRUN;
		ts->residual =  param;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_NO_DEVICE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_NO_DEVICE\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_PHY_DOWN;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_INTERRUPTED;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_PHY_NOT_READY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PHY_NOT_READY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_PROTOCOL_NOT"
			"_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_EPROTO;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OPEN_CNX_ERROR_ZONE_VIOLATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_ZONE_VIOLATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OPEN_CNX_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_CONT0;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
			ts->resp = SAS_TASK_UNDELIVERED;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2576
			return;
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		}
		break;
	case IO_OPEN_CNX_ERROR_BAD_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BAD_DESTINATION\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_BAD_DEST;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
			ts->resp = SAS_TASK_UNDELIVERED;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2592
			return;
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		}
		break;
	case IO_OPEN_CNX_ERROR_CONNECTION_RATE_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_CONNECTION_RATE_"
			"NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_CONN_RATE;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OPEN_CNX_ERROR_STP_RESOURCES_BUSY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_STP_RESOURCES"
			"_BUSY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_STP_RESOURCES_BUSY);
			ts->resp = SAS_TASK_UNDELIVERED;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2618
			return;
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		}
		break;
	case IO_OPEN_CNX_ERROR_WRONG_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_OPEN_CNX_ERROR_WRONG_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_WRONG_DEST;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_NAK_RECEIVED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_NAK_RECEIVED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_ACK_NAK_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_ACK_NAK_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_DMA:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_DMA\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_ABORTED_TASK;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_SATA_LINK_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_SATA_LINK_TIMEOUT\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_DEV_NO_RESPONSE;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_REJECTED_NCQ_MODE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_REJECTED_NCQ_MODE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_UNDERRUN;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_PORT_IN_RESET:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_PORT_IN_RESET\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_DS_NON_OPERATIONAL:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_NON_OPERATIONAL\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha, pm8001_dev,
				    IO_DS_NON_OPERATIONAL);
			ts->resp = SAS_TASK_UNDELIVERED;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2697
			return;
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		}
		break;
	case IO_DS_IN_RECOVERY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("  IO_DS_IN_RECOVERY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_DS_IN_ERROR:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_IN_ERROR\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha, pm8001_dev,
				    IO_DS_IN_ERROR);
			ts->resp = SAS_TASK_UNDELIVERED;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2719
			return;
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		}
		break;
	case IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
2730
		break;
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	default:
2732
		PM8001_DEVIO_DBG(pm8001_ha,
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			pm8001_printk("Unknown status 0x%x\n", status));
		/* not allowed case. Therefore, return failed status */
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
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		if (pm8001_dev)
			atomic_dec(&pm8001_dev->running_req);
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		break;
	}
2741
	spin_lock_irqsave(&t->task_state_lock, flags);
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	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
2746
		spin_unlock_irqrestore(&t->task_state_lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("task 0x%p done with io_status 0x%x"
			" resp 0x%x stat 0x%x but aborted by upper layer!\n",
			t, status, ts->resp, ts->stat));
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
S
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	} else {
2753
		spin_unlock_irqrestore(&t->task_state_lock, flags);
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		pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
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	}
}

/*See the comments for mpi_ssp_completion */
2759
static void mpi_sata_event(struct pm8001_hba_info *pm8001_ha , void *piomb)
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{
	struct sas_task *t;
	struct task_status_struct *ts;
	struct pm8001_ccb_info *ccb;
	struct pm8001_device *pm8001_dev;
	struct sata_event_resp *psataPayload =
		(struct sata_event_resp *)(piomb + 4);
	u32 event = le32_to_cpu(psataPayload->event);
	u32 tag = le32_to_cpu(psataPayload->tag);
	u32 port_id = le32_to_cpu(psataPayload->port_id);
	u32 dev_id = le32_to_cpu(psataPayload->device_id);
2771
	unsigned long flags;
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2773 2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784 2785 2786 2787 2788 2789 2790 2791 2792 2793 2794 2795
	ccb = &pm8001_ha->ccb_info[tag];

	if (ccb) {
		t = ccb->task;
		pm8001_dev = ccb->device;
	} else {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("No CCB !!!. returning\n"));
	}
	if (event)
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("SATA EVENT 0x%x\n", event));

	/* Check if this is NCQ error */
	if (event == IO_XFER_ERROR_ABORTED_NCQ_MODE) {
		/* find device using device id */
		pm8001_dev = pm8001_find_dev(pm8001_ha, dev_id);
		/* send read log extension */
		if (pm8001_dev)
			pm8001_send_read_log(pm8001_ha, pm8001_dev);
		return;
	}

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	ccb = &pm8001_ha->ccb_info[tag];
	t = ccb->task;
	pm8001_dev = ccb->device;
	if (event)
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("sata IO status 0x%x\n", event));
	if (unlikely(!t || !t->lldd_task || !t->dev))
2803
		return;
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	ts = &t->task_status;
2805
	PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
2806 2807
		"port_id:0x%x, device_id:0x%x, tag:0x%x, event:0x%x\n",
		port_id, dev_id, tag, event));
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	switch (event) {
	case IO_OVERFLOW:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_UNDERFLOW\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		ts->residual = 0;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_XFER_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_INTERRUPTED;
		break;
	case IO_XFER_ERROR_PHY_NOT_READY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PHY_NOT_READY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_PROTOCOL_NOT"
			"_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_EPROTO;
		break;
	case IO_OPEN_CNX_ERROR_ZONE_VIOLATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_ZONE_VIOLATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		break;
	case IO_OPEN_CNX_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_CONT0;
		break;
	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_DEV_NO_RESPONSE;
		if (!t->uldd_task) {
			pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
			ts->resp = SAS_TASK_COMPLETE;
			ts->stat = SAS_QUEUE_FULL;
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			pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
2864
			return;
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		}
		break;
	case IO_OPEN_CNX_ERROR_BAD_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BAD_DESTINATION\n"));
		ts->resp = SAS_TASK_UNDELIVERED;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_BAD_DEST;
		break;
	case IO_OPEN_CNX_ERROR_CONNECTION_RATE_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_CONNECTION_RATE_"
			"NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_CONN_RATE;
		break;
	case IO_OPEN_CNX_ERROR_WRONG_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_OPEN_CNX_ERROR_WRONG_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_WRONG_DEST;
		break;
	case IO_XFER_ERROR_NAK_RECEIVED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_NAK_RECEIVED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
		break;
	case IO_XFER_ERROR_PEER_ABORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PEER_ABORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_NAK_R_ERR;
		break;
	case IO_XFER_ERROR_REJECTED_NCQ_MODE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_REJECTED_NCQ_MODE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_UNDERRUN;
		break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_ERROR_UNEXPECTED_PHASE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_UNEXPECTED_PHASE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_ERROR_XFER_RDY_OVERRUN:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_XFER_RDY_OVERRUN\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_ERROR_XFER_RDY_NOT_EXPECTED:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_XFER_ERROR_XFER_RDY_NOT_EXPECTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_ERROR_OFFSET_MISMATCH:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_OFFSET_MISMATCH\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_ERROR_XFER_ZERO_DATA_LEN:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_XFER_ZERO_DATA_LEN\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	case IO_XFER_CMD_FRAME_ISSUED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_CMD_FRAME_ISSUED\n"));
		break;
	case IO_XFER_PIO_SETUP_ERROR:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_PIO_SETUP_ERROR\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	default:
2954
		PM8001_DEVIO_DBG(pm8001_ha,
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			pm8001_printk("Unknown status 0x%x\n", event));
		/* not allowed case. Therefore, return failed status */
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_TO;
		break;
	}
2961
	spin_lock_irqsave(&t->task_state_lock, flags);
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	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
2966
		spin_unlock_irqrestore(&t->task_state_lock, flags);
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("task 0x%p done with io_status 0x%x"
			" resp 0x%x stat 0x%x but aborted by upper layer!\n",
			t, event, ts->resp, ts->stat));
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
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	} else {
2973
		spin_unlock_irqrestore(&t->task_state_lock, flags);
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		pm8001_ccb_task_free_done(pm8001_ha, t, ccb, tag);
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	}
}

/*See the comments for mpi_ssp_completion */
2979
static void
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mpi_smp_completion(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
	struct sas_task *t;
	struct pm8001_ccb_info *ccb;
	unsigned long flags;
	u32 status;
	u32 tag;
	struct smp_completion_resp *psmpPayload;
	struct task_status_struct *ts;
	struct pm8001_device *pm8001_dev;

	psmpPayload = (struct smp_completion_resp *)(piomb + 4);
	status = le32_to_cpu(psmpPayload->status);
	tag = le32_to_cpu(psmpPayload->tag);

	ccb = &pm8001_ha->ccb_info[tag];
	t = ccb->task;
	ts = &t->task_status;
	pm8001_dev = ccb->device;
2999
	if (status) {
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		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("smp IO status 0x%x\n", status));
3002 3003 3004 3005
		PM8001_IOERR_DBG(pm8001_ha,
			pm8001_printk("status:0x%x, tag:0x%x, task:0x%p\n",
			status, tag, t));
	}
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	if (unlikely(!t || !t->lldd_task || !t->dev))
3007
		return;
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	switch (status) {
	case IO_SUCCESS:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_SUCCESS\n"));
		ts->resp = SAS_TASK_COMPLETE;
3013
		ts->stat = SAM_STAT_GOOD;
3014
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_ABORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_ABORTED IOMB\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_ABORTED_TASK;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_OVERFLOW:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_UNDERFLOW\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DATA_OVERRUN;
		ts->residual = 0;
		if (pm8001_dev)
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			atomic_dec(&pm8001_dev->running_req);
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		break;
	case IO_NO_DEVICE:
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("IO_NO_DEVICE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_PHY_DOWN;
		break;
	case IO_ERROR_HW_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_ERROR_HW_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
3042
		ts->stat = SAM_STAT_BUSY;
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		break;
	case IO_XFER_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
3048
		ts->stat = SAM_STAT_BUSY;
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		break;
	case IO_XFER_ERROR_PHY_NOT_READY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_PHY_NOT_READY\n"));
		ts->resp = SAS_TASK_COMPLETE;
3054
		ts->stat = SAM_STAT_BUSY;
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		break;
	case IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
		pm8001_printk("IO_OPEN_CNX_ERROR_PROTOCOL_NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		break;
	case IO_OPEN_CNX_ERROR_ZONE_VIOLATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_ZONE_VIOLATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		break;
	case IO_OPEN_CNX_ERROR_BREAK:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BREAK\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_CONT0;
		break;
	case IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_UNKNOWN;
		pm8001_handle_event(pm8001_ha,
				pm8001_dev,
				IO_OPEN_CNX_ERROR_IT_NEXUS_LOSS);
		break;
	case IO_OPEN_CNX_ERROR_BAD_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_BAD_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_BAD_DEST;
		break;
	case IO_OPEN_CNX_ERROR_CONNECTION_RATE_NOT_SUPPORTED:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_CONNECTION_RATE_"
			"NOT_SUPPORTED\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_CONN_RATE;
		break;
	case IO_OPEN_CNX_ERROR_WRONG_DESTINATION:
		PM8001_IO_DBG(pm8001_ha,
		       pm8001_printk("IO_OPEN_CNX_ERROR_WRONG_DESTINATION\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_WRONG_DEST;
		break;
	case IO_XFER_ERROR_RX_FRAME:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_ERROR_RX_FRAME\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		break;
	case IO_XFER_OPEN_RETRY_TIMEOUT:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_XFER_OPEN_RETRY_TIMEOUT\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_ERROR_INTERNAL_SMP_RESOURCE:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_ERROR_INTERNAL_SMP_RESOURCE\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_QUEUE_FULL;
		break;
	case IO_PORT_IN_RESET:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_PORT_IN_RESET\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_DS_NON_OPERATIONAL:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_NON_OPERATIONAL\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		break;
	case IO_DS_IN_RECOVERY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_DS_IN_RECOVERY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	case IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY:
		PM8001_IO_DBG(pm8001_ha,
			pm8001_printk("IO_OPEN_CNX_ERROR_HW_RESOURCE_BUSY\n"));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_OPEN_REJECT;
		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
		break;
	default:
3156
		PM8001_DEVIO_DBG(pm8001_ha,
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			pm8001_printk("Unknown status 0x%x\n", status));
		ts->resp = SAS_TASK_COMPLETE;
		ts->stat = SAS_DEV_NO_RESPONSE;
		/* not allowed case. Therefore, return failed status */
		break;
	}
	spin_lock_irqsave(&t->task_state_lock, flags);
	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	if (unlikely((t->task_state_flags & SAS_TASK_STATE_ABORTED))) {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("task 0x%p done with"
			" io_status 0x%x resp 0x%x "
			"stat 0x%x but aborted by upper layer!\n",
			t, status, ts->resp, ts->stat));
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
	} else {
		spin_unlock_irqrestore(&t->task_state_lock, flags);
		pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
		mb();/* in order to force CPU ordering */
		t->task_done(t);
	}
}

3182 3183
void pm8001_mpi_set_dev_state_resp(struct pm8001_hba_info *pm8001_ha,
		void *piomb)
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{
	struct set_dev_state_resp *pPayload =
		(struct set_dev_state_resp *)(piomb + 4);
	u32 tag = le32_to_cpu(pPayload->tag);
	struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[tag];
	struct pm8001_device *pm8001_dev = ccb->device;
	u32 status = le32_to_cpu(pPayload->status);
	u32 device_id = le32_to_cpu(pPayload->device_id);
3192 3193
	u8 pds = le32_to_cpu(pPayload->pds_nds) & PDS_BITS;
	u8 nds = le32_to_cpu(pPayload->pds_nds) & NDS_BITS;
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	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("Set device id = 0x%x state "
		"from 0x%x to 0x%x status = 0x%x!\n",
		device_id, pds, nds, status));
	complete(pm8001_dev->setds_completion);
	ccb->task = NULL;
	ccb->ccb_tag = 0xFFFFFFFF;
3200
	pm8001_tag_free(pm8001_ha, tag);
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}

3203
void pm8001_mpi_set_nvmd_resp(struct pm8001_hba_info *pm8001_ha, void *piomb)
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{
	struct get_nvm_data_resp *pPayload =
		(struct get_nvm_data_resp *)(piomb + 4);
	u32 tag = le32_to_cpu(pPayload->tag);
	struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[tag];
	u32 dlen_status = le32_to_cpu(pPayload->dlen_status);
	complete(pm8001_ha->nvmd_completion);
	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("Set nvm data complete!\n"));
	if ((dlen_status & NVMD_STAT) != 0) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Set nvm data error!\n"));
		return;
	}
	ccb->task = NULL;
	ccb->ccb_tag = 0xFFFFFFFF;
3219
	pm8001_tag_free(pm8001_ha, tag);
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}

3222 3223
void
pm8001_mpi_get_nvmd_resp(struct pm8001_hba_info *pm8001_ha, void *piomb)
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{
3225
	struct fw_control_ex    *fw_control_context;
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	struct get_nvm_data_resp *pPayload =
		(struct get_nvm_data_resp *)(piomb + 4);
	u32 tag = le32_to_cpu(pPayload->tag);
	struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[tag];
	u32 dlen_status = le32_to_cpu(pPayload->dlen_status);
	u32 ir_tds_bn_dps_das_nvm =
		le32_to_cpu(pPayload->ir_tda_bn_dps_das_nvm);
	void *virt_addr = pm8001_ha->memoryMap.region[NVMD].virt_ptr;
3234
	fw_control_context = ccb->fw_control_context;
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	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("Get nvm data complete!\n"));
	if ((dlen_status & NVMD_STAT) != 0) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk("Get nvm data error!\n"));
		complete(pm8001_ha->nvmd_completion);
		return;
	}

	if (ir_tds_bn_dps_das_nvm & IPMode) {
		/* indirect mode - IR bit set */
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("Get NVMD success, IR=1\n"));
		if ((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == TWI_DEVICE) {
			if (ir_tds_bn_dps_das_nvm == 0x80a80200) {
				memcpy(pm8001_ha->sas_addr,
				      ((u8 *)virt_addr + 4),
				       SAS_ADDR_SIZE);
				PM8001_MSG_DBG(pm8001_ha,
					pm8001_printk("Get SAS address"
					" from VPD successfully!\n"));
			}
		} else if (((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == C_SEEPROM)
			|| ((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == VPD_FLASH) ||
			((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == EXPAN_ROM)) {
				;
		} else if (((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == AAP1_RDUMP)
			|| ((ir_tds_bn_dps_das_nvm & NVMD_TYPE) == IOP_RDUMP)) {
			;
		} else {
			/* Should not be happened*/
			PM8001_MSG_DBG(pm8001_ha,
				pm8001_printk("(IR=1)Wrong Device type 0x%x\n",
				ir_tds_bn_dps_das_nvm));
		}
	} else /* direct mode */{
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("Get NVMD success, IR=0, dataLen=%d\n",
			(dlen_status & NVMD_LEN) >> 24));
	}
3275 3276 3277 3278 3279 3280
	/* Though fw_control_context is freed below, usrAddr still needs
	 * to be updated as this holds the response to the request function
	 */
	memcpy(fw_control_context->usrAddr,
		pm8001_ha->memoryMap.region[NVMD].virt_ptr,
		fw_control_context->len);
3281
	kfree(ccb->fw_control_context);
3282 3283 3284 3285 3286 3287
	/* To avoid race condition, complete should be
	 * called after the message is copied to
	 * fw_control_context->usrAddr
	 */
	complete(pm8001_ha->nvmd_completion);
	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("Set nvm data complete!\n"));
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	ccb->task = NULL;
	ccb->ccb_tag = 0xFFFFFFFF;
3290
	pm8001_tag_free(pm8001_ha, tag);
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}

3293
int pm8001_mpi_local_phy_ctl(struct pm8001_hba_info *pm8001_ha, void *piomb)
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{
3295
	u32 tag;
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	struct local_phy_ctl_resp *pPayload =
		(struct local_phy_ctl_resp *)(piomb + 4);
	u32 status = le32_to_cpu(pPayload->status);
	u32 phy_id = le32_to_cpu(pPayload->phyop_phyid) & ID_BITS;
	u32 phy_op = le32_to_cpu(pPayload->phyop_phyid) & OP_BITS;
3301
	tag = le32_to_cpu(pPayload->tag);
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	if (status != 0) {
		PM8001_MSG_DBG(pm8001_ha,
3304
			pm8001_printk("%x phy execute %x phy op failed!\n",
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			phy_id, phy_op));
3306
	} else {
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		PM8001_MSG_DBG(pm8001_ha,
3308
			pm8001_printk("%x phy execute %x phy op success!\n",
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			phy_id, phy_op));
3310 3311 3312 3313 3314 3315
		pm8001_ha->phy[phy_id].reset_success = true;
	}
	if (pm8001_ha->phy[phy_id].enable_completion) {
		complete(pm8001_ha->phy[phy_id].enable_completion);
		pm8001_ha->phy[phy_id].enable_completion = NULL;
	}
3316
	pm8001_tag_free(pm8001_ha, tag);
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	return 0;
}

/**
 * pm8001_bytes_dmaed - one of the interface function communication with libsas
 * @pm8001_ha: our hba card information
 * @i: which phy that received the event.
 *
 * when HBA driver received the identify done event or initiate FIS received
 * event(for SATA), it will invoke this function to notify the sas layer that
 * the sas toplogy has formed, please discover the the whole sas domain,
 * while receive a broadcast(change) primitive just tell the sas
 * layer to discover the changed domain rather than the whole domain.
 */
3331
void pm8001_bytes_dmaed(struct pm8001_hba_info *pm8001_ha, int i)
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{
	struct pm8001_phy *phy = &pm8001_ha->phy[i];
	struct asd_sas_phy *sas_phy = &phy->sas_phy;
	if (!phy->phy_attached)
		return;

	if (sas_phy->phy) {
		struct sas_phy *sphy = sas_phy->phy;
		sphy->negotiated_linkrate = sas_phy->linkrate;
		sphy->minimum_linkrate = phy->minimum_linkrate;
		sphy->minimum_linkrate_hw = SAS_LINK_RATE_1_5_GBPS;
		sphy->maximum_linkrate = phy->maximum_linkrate;
		sphy->maximum_linkrate_hw = phy->maximum_linkrate;
	}

	if (phy->phy_type & PORT_TYPE_SAS) {
		struct sas_identify_frame *id;
		id = (struct sas_identify_frame *)phy->frame_rcvd;
		id->dev_type = phy->identify.device_type;
		id->initiator_bits = SAS_PROTOCOL_ALL;
		id->target_bits = phy->identify.target_port_protocols;
	} else if (phy->phy_type & PORT_TYPE_SATA) {
		/*Nothing*/
	}
	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("phy %d byte dmaded.\n", i));

	sas_phy->frame_rcvd_size = phy->frame_rcvd_size;
	pm8001_ha->sas->notify_port_event(sas_phy, PORTE_BYTES_DMAED);
}

/* Get the link rate speed  */
3363
void pm8001_get_lrate_mode(struct pm8001_phy *phy, u8 link_rate)
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{
	struct sas_phy *sas_phy = phy->sas_phy.phy;

	switch (link_rate) {
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	case PHY_SPEED_120:
		phy->sas_phy.linkrate = SAS_LINK_RATE_12_0_GBPS;
		phy->sas_phy.phy->negotiated_linkrate = SAS_LINK_RATE_12_0_GBPS;
		break;
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	case PHY_SPEED_60:
		phy->sas_phy.linkrate = SAS_LINK_RATE_6_0_GBPS;
		phy->sas_phy.phy->negotiated_linkrate = SAS_LINK_RATE_6_0_GBPS;
		break;
	case PHY_SPEED_30:
		phy->sas_phy.linkrate = SAS_LINK_RATE_3_0_GBPS;
		phy->sas_phy.phy->negotiated_linkrate = SAS_LINK_RATE_3_0_GBPS;
		break;
	case PHY_SPEED_15:
		phy->sas_phy.linkrate = SAS_LINK_RATE_1_5_GBPS;
		phy->sas_phy.phy->negotiated_linkrate = SAS_LINK_RATE_1_5_GBPS;
		break;
	}
	sas_phy->negotiated_linkrate = phy->sas_phy.linkrate;
	sas_phy->maximum_linkrate_hw = SAS_LINK_RATE_6_0_GBPS;
	sas_phy->minimum_linkrate_hw = SAS_LINK_RATE_1_5_GBPS;
	sas_phy->maximum_linkrate = SAS_LINK_RATE_6_0_GBPS;
	sas_phy->minimum_linkrate = SAS_LINK_RATE_1_5_GBPS;
}

/**
 * asd_get_attached_sas_addr -- extract/generate attached SAS address
 * @phy: pointer to asd_phy
 * @sas_addr: pointer to buffer where the SAS address is to be written
 *
 * This function extracts the SAS address from an IDENTIFY frame
 * received.  If OOB is SATA, then a SAS address is generated from the
 * HA tables.
 *
 * LOCKING: the frame_rcvd_lock needs to be held since this parses the frame
 * buffer.
 */
3404
void pm8001_get_attached_sas_addr(struct pm8001_phy *phy,
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	u8 *sas_addr)
{
	if (phy->sas_phy.frame_rcvd[0] == 0x34
		&& phy->sas_phy.oob_mode == SATA_OOB_MODE) {
		struct pm8001_hba_info *pm8001_ha = phy->sas_phy.ha->lldd_ha;
		/* FIS device-to-host */
		u64 addr = be64_to_cpu(*(__be64 *)pm8001_ha->sas_addr);
		addr += phy->sas_phy.id;
		*(__be64 *)sas_addr = cpu_to_be64(addr);
	} else {
		struct sas_identify_frame *idframe =
			(void *) phy->sas_phy.frame_rcvd;
		memcpy(sas_addr, idframe->sas_addr, SAS_ADDR_SIZE);
	}
}

/**
 * pm8001_hw_event_ack_req- For PM8001,some events need to acknowage to FW.
 * @pm8001_ha: our hba card information
 * @Qnum: the outbound queue message number.
 * @SEA: source of event to ack
 * @port_id: port id.
 * @phyId: phy id.
 * @param0: parameter 0.
 * @param1: parameter 1.
 */
static void pm8001_hw_event_ack_req(struct pm8001_hba_info *pm8001_ha,
	u32 Qnum, u32 SEA, u32 port_id, u32 phyId, u32 param0, u32 param1)
{
	struct hw_event_ack_req	 payload;
	u32 opc = OPC_INB_SAS_HW_EVENT_ACK;

	struct inbound_queue_table *circularQ;

	memset((u8 *)&payload, 0, sizeof(payload));
	circularQ = &pm8001_ha->inbnd_q_tbl[Qnum];
3441
	payload.tag = cpu_to_le32(1);
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	payload.sea_phyid_portid = cpu_to_le32(((SEA & 0xFFFF) << 8) |
		((phyId & 0x0F) << 4) | (port_id & 0x0F));
	payload.param0 = cpu_to_le32(param0);
	payload.param1 = cpu_to_le32(param1);
3446 3447
	pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
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}

static int pm8001_chip_phy_ctl_req(struct pm8001_hba_info *pm8001_ha,
	u32 phyId, u32 phy_op);

/**
 * hw_event_sas_phy_up -FW tells me a SAS phy up event.
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
static void
hw_event_sas_phy_up(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
	struct hw_event_resp *pPayload =
		(struct hw_event_resp *)(piomb + 4);
	u32 lr_evt_status_phyid_portid =
		le32_to_cpu(pPayload->lr_evt_status_phyid_portid);
	u8 link_rate =
		(u8)((lr_evt_status_phyid_portid & 0xF0000000) >> 28);
3467
	u8 port_id = (u8)(lr_evt_status_phyid_portid & 0x0000000F);
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3468 3469
	u8 phy_id =
		(u8)((lr_evt_status_phyid_portid & 0x000000F0) >> 4);
3470 3471 3472
	u32 npip_portstate = le32_to_cpu(pPayload->npip_portstate);
	u8 portstate = (u8)(npip_portstate & 0x0000000F);
	struct pm8001_port *port = &pm8001_ha->port[port_id];
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	struct sas_ha_struct *sas_ha = pm8001_ha->sas;
	struct pm8001_phy *phy = &pm8001_ha->phy[phy_id];
	unsigned long flags;
	u8 deviceType = pPayload->sas_identify.dev_type;
3477
	port->port_state =  portstate;
3478
	phy->phy_state = PHY_STATE_LINK_UP_SPC;
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	PM8001_MSG_DBG(pm8001_ha,
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		pm8001_printk("HW_EVENT_SAS_PHY_UP port id = %d, phy id = %d\n",
		port_id, phy_id));
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	switch (deviceType) {
	case SAS_PHY_UNUSED:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("device type no device.\n"));
		break;
	case SAS_END_DEVICE:
		PM8001_MSG_DBG(pm8001_ha, pm8001_printk("end device.\n"));
		pm8001_chip_phy_ctl_req(pm8001_ha, phy_id,
			PHY_NOTIFY_ENABLE_SPINUP);
3492
		port->port_attached = 1;
3493
		pm8001_get_lrate_mode(phy, link_rate);
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		break;
	case SAS_EDGE_EXPANDER_DEVICE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("expander device.\n"));
3498
		port->port_attached = 1;
3499
		pm8001_get_lrate_mode(phy, link_rate);
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		break;
	case SAS_FANOUT_EXPANDER_DEVICE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("fanout expander device.\n"));
3504
		port->port_attached = 1;
3505
		pm8001_get_lrate_mode(phy, link_rate);
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		break;
	default:
3508
		PM8001_DEVIO_DBG(pm8001_ha,
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3509
			pm8001_printk("unknown device type(%x)\n", deviceType));
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		break;
	}
	phy->phy_type |= PORT_TYPE_SAS;
	phy->identify.device_type = deviceType;
	phy->phy_attached = 1;
3515
	if (phy->identify.device_type == SAS_END_DEVICE)
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		phy->identify.target_port_protocols = SAS_PROTOCOL_SSP;
3517
	else if (phy->identify.device_type != SAS_PHY_UNUSED)
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3518 3519 3520 3521 3522 3523 3524 3525 3526 3527 3528 3529 3530 3531 3532 3533 3534 3535 3536 3537 3538 3539 3540 3541 3542 3543 3544 3545
		phy->identify.target_port_protocols = SAS_PROTOCOL_SMP;
	phy->sas_phy.oob_mode = SAS_OOB_MODE;
	sas_ha->notify_phy_event(&phy->sas_phy, PHYE_OOB_DONE);
	spin_lock_irqsave(&phy->sas_phy.frame_rcvd_lock, flags);
	memcpy(phy->frame_rcvd, &pPayload->sas_identify,
		sizeof(struct sas_identify_frame)-4);
	phy->frame_rcvd_size = sizeof(struct sas_identify_frame) - 4;
	pm8001_get_attached_sas_addr(phy, phy->sas_phy.attached_sas_addr);
	spin_unlock_irqrestore(&phy->sas_phy.frame_rcvd_lock, flags);
	if (pm8001_ha->flags == PM8001F_RUN_TIME)
		mdelay(200);/*delay a moment to wait disk to spinup*/
	pm8001_bytes_dmaed(pm8001_ha, phy_id);
}

/**
 * hw_event_sata_phy_up -FW tells me a SATA phy up event.
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
static void
hw_event_sata_phy_up(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
	struct hw_event_resp *pPayload =
		(struct hw_event_resp *)(piomb + 4);
	u32 lr_evt_status_phyid_portid =
		le32_to_cpu(pPayload->lr_evt_status_phyid_portid);
	u8 link_rate =
		(u8)((lr_evt_status_phyid_portid & 0xF0000000) >> 28);
3546
	u8 port_id = (u8)(lr_evt_status_phyid_portid & 0x0000000F);
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	u8 phy_id =
		(u8)((lr_evt_status_phyid_portid & 0x000000F0) >> 4);
3549 3550 3551
	u32 npip_portstate = le32_to_cpu(pPayload->npip_portstate);
	u8 portstate = (u8)(npip_portstate & 0x0000000F);
	struct pm8001_port *port = &pm8001_ha->port[port_id];
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	struct sas_ha_struct *sas_ha = pm8001_ha->sas;
	struct pm8001_phy *phy = &pm8001_ha->phy[phy_id];
	unsigned long flags;
3555
	PM8001_DEVIO_DBG(pm8001_ha,
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		pm8001_printk("HW_EVENT_SATA_PHY_UP port id = %d,"
		" phy id = %d\n", port_id, phy_id));
3558
	port->port_state =  portstate;
3559
	phy->phy_state = PHY_STATE_LINK_UP_SPC;
3560
	port->port_attached = 1;
3561
	pm8001_get_lrate_mode(phy, link_rate);
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3562 3563 3564 3565 3566 3567 3568 3569 3570
	phy->phy_type |= PORT_TYPE_SATA;
	phy->phy_attached = 1;
	phy->sas_phy.oob_mode = SATA_OOB_MODE;
	sas_ha->notify_phy_event(&phy->sas_phy, PHYE_OOB_DONE);
	spin_lock_irqsave(&phy->sas_phy.frame_rcvd_lock, flags);
	memcpy(phy->frame_rcvd, ((u8 *)&pPayload->sata_fis - 4),
		sizeof(struct dev_to_host_fis));
	phy->frame_rcvd_size = sizeof(struct dev_to_host_fis);
	phy->identify.target_port_protocols = SAS_PROTOCOL_SATA;
3571
	phy->identify.device_type = SAS_SATA_DEV;
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	pm8001_get_attached_sas_addr(phy, phy->sas_phy.attached_sas_addr);
	spin_unlock_irqrestore(&phy->sas_phy.frame_rcvd_lock, flags);
	pm8001_bytes_dmaed(pm8001_ha, phy_id);
}

/**
 * hw_event_phy_down -we should notify the libsas the phy is down.
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
static void
hw_event_phy_down(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
	struct hw_event_resp *pPayload =
		(struct hw_event_resp *)(piomb + 4);
	u32 lr_evt_status_phyid_portid =
		le32_to_cpu(pPayload->lr_evt_status_phyid_portid);
	u8 port_id = (u8)(lr_evt_status_phyid_portid & 0x0000000F);
	u8 phy_id =
		(u8)((lr_evt_status_phyid_portid & 0x000000F0) >> 4);
	u32 npip_portstate = le32_to_cpu(pPayload->npip_portstate);
	u8 portstate = (u8)(npip_portstate & 0x0000000F);
3594 3595 3596 3597 3598 3599 3600
	struct pm8001_port *port = &pm8001_ha->port[port_id];
	struct pm8001_phy *phy = &pm8001_ha->phy[phy_id];
	port->port_state =  portstate;
	phy->phy_type = 0;
	phy->identify.device_type = 0;
	phy->phy_attached = 0;
	memset(&phy->dev_sas_addr, 0, SAS_ADDR_SIZE);
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	switch (portstate) {
	case PORT_VALID:
		break;
	case PORT_INVALID:
		PM8001_MSG_DBG(pm8001_ha,
3606
			pm8001_printk(" PortInvalid portID %d\n", port_id));
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		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(" Last phy Down and port invalid\n"));
3609
		port->port_attached = 0;
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		pm8001_hw_event_ack_req(pm8001_ha, 0, HW_EVENT_PHY_DOWN,
			port_id, phy_id, 0, 0);
		break;
	case PORT_IN_RESET:
		PM8001_MSG_DBG(pm8001_ha,
3615
			pm8001_printk(" Port In Reset portID %d\n", port_id));
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		break;
	case PORT_NOT_ESTABLISHED:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(" phy Down and PORT_NOT_ESTABLISHED\n"));
3620
		port->port_attached = 0;
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3621 3622 3623 3624 3625 3626
		break;
	case PORT_LOSTCOMM:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(" phy Down and PORT_LOSTCOMM\n"));
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(" Last phy Down and port invalid\n"));
3627
		port->port_attached = 0;
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3628 3629 3630 3631
		pm8001_hw_event_ack_req(pm8001_ha, 0, HW_EVENT_PHY_DOWN,
			port_id, phy_id, 0, 0);
		break;
	default:
3632
		port->port_attached = 0;
3633
		PM8001_DEVIO_DBG(pm8001_ha,
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3634 3635 3636 3637 3638 3639 3640 3641
			pm8001_printk(" phy Down and(default) = %x\n",
			portstate));
		break;

	}
}

/**
3642
 * pm8001_mpi_reg_resp -process register device ID response.
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 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 *
 * when sas layer find a device it will notify LLDD, then the driver register
 * the domain device to FW, this event is the return device ID which the FW
 * has assigned, from now,inter-communication with FW is no longer using the
 * SAS address, use device ID which FW assigned.
 */
3651
int pm8001_mpi_reg_resp(struct pm8001_hba_info *pm8001_ha, void *piomb)
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3652 3653 3654 3655 3656 3657 3658 3659 3660 3661
{
	u32 status;
	u32 device_id;
	u32 htag;
	struct pm8001_ccb_info *ccb;
	struct pm8001_device *pm8001_dev;
	struct dev_reg_resp *registerRespPayload =
		(struct dev_reg_resp *)(piomb + 4);

	htag = le32_to_cpu(registerRespPayload->tag);
3662
	ccb = &pm8001_ha->ccb_info[htag];
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	pm8001_dev = ccb->device;
	status = le32_to_cpu(registerRespPayload->status);
	device_id = le32_to_cpu(registerRespPayload->device_id);
	PM8001_MSG_DBG(pm8001_ha,
		pm8001_printk(" register device is status = %d\n", status));
	switch (status) {
	case DEVREG_SUCCESS:
		PM8001_MSG_DBG(pm8001_ha, pm8001_printk("DEVREG_SUCCESS\n"));
		pm8001_dev->device_id = device_id;
		break;
	case DEVREG_FAILURE_OUT_OF_RESOURCE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("DEVREG_FAILURE_OUT_OF_RESOURCE\n"));
		break;
	case DEVREG_FAILURE_DEVICE_ALREADY_REGISTERED:
		PM8001_MSG_DBG(pm8001_ha,
		   pm8001_printk("DEVREG_FAILURE_DEVICE_ALREADY_REGISTERED\n"));
		break;
	case DEVREG_FAILURE_INVALID_PHY_ID:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("DEVREG_FAILURE_INVALID_PHY_ID\n"));
		break;
	case DEVREG_FAILURE_PHY_ID_ALREADY_REGISTERED:
		PM8001_MSG_DBG(pm8001_ha,
		   pm8001_printk("DEVREG_FAILURE_PHY_ID_ALREADY_REGISTERED\n"));
		break;
	case DEVREG_FAILURE_PORT_ID_OUT_OF_RANGE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("DEVREG_FAILURE_PORT_ID_OUT_OF_RANGE\n"));
		break;
	case DEVREG_FAILURE_PORT_NOT_VALID_STATE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("DEVREG_FAILURE_PORT_NOT_VALID_STATE\n"));
		break;
	case DEVREG_FAILURE_DEVICE_TYPE_NOT_VALID:
		PM8001_MSG_DBG(pm8001_ha,
		       pm8001_printk("DEVREG_FAILURE_DEVICE_TYPE_NOT_VALID\n"));
		break;
	default:
		PM8001_MSG_DBG(pm8001_ha,
3703
			pm8001_printk("DEVREG_FAILURE_DEVICE_TYPE_NOT_SUPPORTED\n"));
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		break;
	}
	complete(pm8001_dev->dcompletion);
	ccb->task = NULL;
	ccb->ccb_tag = 0xFFFFFFFF;
3709
	pm8001_tag_free(pm8001_ha, htag);
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3710 3711 3712
	return 0;
}

3713
int pm8001_mpi_dereg_resp(struct pm8001_hba_info *pm8001_ha, void *piomb)
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3714 3715 3716 3717 3718 3719 3720 3721 3722 3723 3724 3725 3726 3727 3728
{
	u32 status;
	u32 device_id;
	struct dev_reg_resp *registerRespPayload =
		(struct dev_reg_resp *)(piomb + 4);

	status = le32_to_cpu(registerRespPayload->status);
	device_id = le32_to_cpu(registerRespPayload->device_id);
	if (status != 0)
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(" deregister device failed ,status = %x"
			", device_id = %x\n", status, device_id));
	return 0;
}

3729 3730 3731 3732 3733 3734 3735
/**
 * fw_flash_update_resp - Response from FW for flash update command.
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
int pm8001_mpi_fw_flash_update_resp(struct pm8001_hba_info *pm8001_ha,
		void *piomb)
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{
	u32 status;
	struct fw_flash_Update_resp *ppayload =
		(struct fw_flash_Update_resp *)(piomb + 4);
3740
	u32 tag = le32_to_cpu(ppayload->tag);
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3741 3742 3743 3744 3745 3746 3747 3748 3749 3750 3751 3752 3753 3754 3755 3756 3757 3758 3759 3760 3761 3762 3763 3764 3765 3766 3767 3768 3769 3770 3771 3772 3773 3774 3775 3776 3777 3778 3779 3780
	struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[tag];
	status = le32_to_cpu(ppayload->status);
	switch (status) {
	case FLASH_UPDATE_COMPLETE_PENDING_REBOOT:
		PM8001_MSG_DBG(pm8001_ha,
		pm8001_printk(": FLASH_UPDATE_COMPLETE_PENDING_REBOOT\n"));
		break;
	case FLASH_UPDATE_IN_PROGRESS:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_IN_PROGRESS\n"));
		break;
	case FLASH_UPDATE_HDR_ERR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_HDR_ERR\n"));
		break;
	case FLASH_UPDATE_OFFSET_ERR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_OFFSET_ERR\n"));
		break;
	case FLASH_UPDATE_CRC_ERR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_CRC_ERR\n"));
		break;
	case FLASH_UPDATE_LENGTH_ERR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_LENGTH_ERR\n"));
		break;
	case FLASH_UPDATE_HW_ERR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_HW_ERR\n"));
		break;
	case FLASH_UPDATE_DNLD_NOT_SUPPORTED:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_DNLD_NOT_SUPPORTED\n"));
		break;
	case FLASH_UPDATE_DISABLED:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk(": FLASH_UPDATE_DISABLED\n"));
		break;
	default:
3781
		PM8001_DEVIO_DBG(pm8001_ha,
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3782 3783 3784
			pm8001_printk("No matched status = %d\n", status));
		break;
	}
3785
	kfree(ccb->fw_control_context);
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3786 3787
	ccb->task = NULL;
	ccb->ccb_tag = 0xFFFFFFFF;
3788
	pm8001_tag_free(pm8001_ha, tag);
3789
	complete(pm8001_ha->nvmd_completion);
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3790 3791 3792
	return 0;
}

3793
int pm8001_mpi_general_event(struct pm8001_hba_info *pm8001_ha , void *piomb)
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3794 3795 3796 3797 3798 3799 3800 3801 3802 3803
{
	u32 status;
	int i;
	struct general_event_resp *pPayload =
		(struct general_event_resp *)(piomb + 4);
	status = le32_to_cpu(pPayload->status);
	PM8001_MSG_DBG(pm8001_ha,
		pm8001_printk(" status = 0x%x\n", status));
	for (i = 0; i < GENERAL_EVENT_PAYLOAD; i++)
		PM8001_MSG_DBG(pm8001_ha,
3804
			pm8001_printk("inb_IOMB_payload[0x%x] 0x%x,\n", i,
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3805 3806 3807 3808
			pPayload->inb_IOMB_payload[i]));
	return 0;
}

3809
int pm8001_mpi_task_abort_resp(struct pm8001_hba_info *pm8001_ha, void *piomb)
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{
	struct sas_task *t;
	struct pm8001_ccb_info *ccb;
	unsigned long flags;
	u32 status ;
	u32 tag, scp;
	struct task_status_struct *ts;
3817
	struct pm8001_device *pm8001_dev;
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	struct task_abort_resp *pPayload =
		(struct task_abort_resp *)(piomb + 4);

	status = le32_to_cpu(pPayload->status);
	tag = le32_to_cpu(pPayload->tag);
3824 3825 3826 3827 3828 3829
	if (!tag) {
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk(" TAG NULL. RETURNING !!!"));
		return -1;
	}

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	scp = le32_to_cpu(pPayload->scp);
3831 3832
	ccb = &pm8001_ha->ccb_info[tag];
	t = ccb->task;
3833 3834 3835 3836 3837
	pm8001_dev = ccb->device; /* retrieve device */

	if (!t)	{
		PM8001_FAIL_DBG(pm8001_ha,
			pm8001_printk(" TASK NULL. RETURNING !!!"));
3838
		return -1;
3839
	}
3840
	ts = &t->task_status;
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3841 3842
	if (status != 0)
		PM8001_FAIL_DBG(pm8001_ha,
3843 3844
			pm8001_printk("task abort failed status 0x%x ,"
			"tag = 0x%x, scp= 0x%x\n", status, tag, scp));
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	switch (status) {
	case IO_SUCCESS:
3847
		PM8001_EH_DBG(pm8001_ha, pm8001_printk("IO_SUCCESS\n"));
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3848
		ts->resp = SAS_TASK_COMPLETE;
3849
		ts->stat = SAM_STAT_GOOD;
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3850 3851
		break;
	case IO_NOT_VALID:
3852
		PM8001_EH_DBG(pm8001_ha, pm8001_printk("IO_NOT_VALID\n"));
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3853 3854 3855 3856 3857 3858 3859 3860
		ts->resp = TMF_RESP_FUNC_FAILED;
		break;
	}
	spin_lock_irqsave(&t->task_state_lock, flags);
	t->task_state_flags &= ~SAS_TASK_STATE_PENDING;
	t->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
	t->task_state_flags |= SAS_TASK_STATE_DONE;
	spin_unlock_irqrestore(&t->task_state_lock, flags);
3861
	pm8001_ccb_task_free(pm8001_ha, t, ccb, tag);
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3862
	mb();
3863

3864
	if (pm8001_dev->id & NCQ_ABORT_ALL_FLAG) {
3865 3866 3867 3868 3869 3870 3871
		pm8001_tag_free(pm8001_ha, tag);
		sas_free_task(t);
		/* clear the flag */
		pm8001_dev->id &= 0xBFFFFFFF;
	} else
		t->task_done(t);

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	return 0;
}

/**
 * mpi_hw_event -The hw event has come.
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
static int mpi_hw_event(struct pm8001_hba_info *pm8001_ha, void* piomb)
{
	unsigned long flags;
	struct hw_event_resp *pPayload =
		(struct hw_event_resp *)(piomb + 4);
	u32 lr_evt_status_phyid_portid =
		le32_to_cpu(pPayload->lr_evt_status_phyid_portid);
	u8 port_id = (u8)(lr_evt_status_phyid_portid & 0x0000000F);
	u8 phy_id =
		(u8)((lr_evt_status_phyid_portid & 0x000000F0) >> 4);
	u16 eventType =
		(u16)((lr_evt_status_phyid_portid & 0x00FFFF00) >> 8);
	u8 status =
		(u8)((lr_evt_status_phyid_portid & 0x0F000000) >> 24);
	struct sas_ha_struct *sas_ha = pm8001_ha->sas;
	struct pm8001_phy *phy = &pm8001_ha->phy[phy_id];
	struct asd_sas_phy *sas_phy = sas_ha->sas_phy[phy_id];
3897 3898 3899
	PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
		"SPC HW event for portid:%d, phyid:%d, event:%x, status:%x\n",
		port_id, phy_id, eventType, status));
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	switch (eventType) {
	case HW_EVENT_PHY_START_STATUS:
		PM8001_MSG_DBG(pm8001_ha,
		pm8001_printk("HW_EVENT_PHY_START_STATUS"
			" status = %x\n", status));
		if (status == 0) {
			phy->phy_state = 1;
3907 3908
			if (pm8001_ha->flags == PM8001F_RUN_TIME &&
					phy->enable_completion != NULL)
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3909 3910 3911 3912 3913
				complete(phy->enable_completion);
		}
		break;
	case HW_EVENT_SAS_PHY_UP:
		PM8001_MSG_DBG(pm8001_ha,
3914
			pm8001_printk("HW_EVENT_PHY_START_STATUS\n"));
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		hw_event_sas_phy_up(pm8001_ha, piomb);
		break;
	case HW_EVENT_SATA_PHY_UP:
		PM8001_MSG_DBG(pm8001_ha,
3919
			pm8001_printk("HW_EVENT_SATA_PHY_UP\n"));
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3920 3921 3922 3923 3924 3925 3926 3927 3928 3929 3930
		hw_event_sata_phy_up(pm8001_ha, piomb);
		break;
	case HW_EVENT_PHY_STOP_STATUS:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_PHY_STOP_STATUS "
			"status = %x\n", status));
		if (status == 0)
			phy->phy_state = 0;
		break;
	case HW_EVENT_SATA_SPINUP_HOLD:
		PM8001_MSG_DBG(pm8001_ha,
3931
			pm8001_printk("HW_EVENT_SATA_SPINUP_HOLD\n"));
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3932 3933 3934 3935
		sas_ha->notify_phy_event(&phy->sas_phy, PHYE_SPINUP_HOLD);
		break;
	case HW_EVENT_PHY_DOWN:
		PM8001_MSG_DBG(pm8001_ha,
3936
			pm8001_printk("HW_EVENT_PHY_DOWN\n"));
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3937 3938 3939 3940 3941 3942 3943 3944 3945 3946 3947 3948 3949 3950 3951 3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001 4002 4003 4004 4005 4006 4007 4008 4009 4010 4011 4012 4013 4014 4015 4016 4017 4018 4019 4020 4021 4022 4023 4024 4025 4026 4027 4028 4029 4030 4031 4032 4033 4034 4035 4036 4037 4038 4039 4040 4041 4042 4043 4044 4045 4046 4047
		sas_ha->notify_phy_event(&phy->sas_phy, PHYE_LOSS_OF_SIGNAL);
		phy->phy_attached = 0;
		phy->phy_state = 0;
		hw_event_phy_down(pm8001_ha, piomb);
		break;
	case HW_EVENT_PORT_INVALID:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_PORT_INVALID\n"));
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	/* the broadcast change primitive received, tell the LIBSAS this event
	to revalidate the sas domain*/
	case HW_EVENT_BROADCAST_CHANGE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_BROADCAST_CHANGE\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0, HW_EVENT_BROADCAST_CHANGE,
			port_id, phy_id, 1, 0);
		spin_lock_irqsave(&sas_phy->sas_prim_lock, flags);
		sas_phy->sas_prim = HW_EVENT_BROADCAST_CHANGE;
		spin_unlock_irqrestore(&sas_phy->sas_prim_lock, flags);
		sas_ha->notify_port_event(sas_phy, PORTE_BROADCAST_RCVD);
		break;
	case HW_EVENT_PHY_ERROR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_PHY_ERROR\n"));
		sas_phy_disconnected(&phy->sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_phy_event(&phy->sas_phy, PHYE_OOB_ERROR);
		break;
	case HW_EVENT_BROADCAST_EXP:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_BROADCAST_EXP\n"));
		spin_lock_irqsave(&sas_phy->sas_prim_lock, flags);
		sas_phy->sas_prim = HW_EVENT_BROADCAST_EXP;
		spin_unlock_irqrestore(&sas_phy->sas_prim_lock, flags);
		sas_ha->notify_port_event(sas_phy, PORTE_BROADCAST_RCVD);
		break;
	case HW_EVENT_LINK_ERR_INVALID_DWORD:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_LINK_ERR_INVALID_DWORD\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_LINK_ERR_INVALID_DWORD, port_id, phy_id, 0, 0);
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_LINK_ERR_DISPARITY_ERROR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_LINK_ERR_DISPARITY_ERROR\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_LINK_ERR_DISPARITY_ERROR,
			port_id, phy_id, 0, 0);
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_LINK_ERR_CODE_VIOLATION:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_LINK_ERR_CODE_VIOLATION\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_LINK_ERR_CODE_VIOLATION,
			port_id, phy_id, 0, 0);
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_LINK_ERR_LOSS_OF_DWORD_SYNCH:
		PM8001_MSG_DBG(pm8001_ha,
		      pm8001_printk("HW_EVENT_LINK_ERR_LOSS_OF_DWORD_SYNCH\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_LINK_ERR_LOSS_OF_DWORD_SYNCH,
			port_id, phy_id, 0, 0);
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_MALFUNCTION:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_MALFUNCTION\n"));
		break;
	case HW_EVENT_BROADCAST_SES:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_BROADCAST_SES\n"));
		spin_lock_irqsave(&sas_phy->sas_prim_lock, flags);
		sas_phy->sas_prim = HW_EVENT_BROADCAST_SES;
		spin_unlock_irqrestore(&sas_phy->sas_prim_lock, flags);
		sas_ha->notify_port_event(sas_phy, PORTE_BROADCAST_RCVD);
		break;
	case HW_EVENT_INBOUND_CRC_ERROR:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_INBOUND_CRC_ERROR\n"));
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_INBOUND_CRC_ERROR,
			port_id, phy_id, 0, 0);
		break;
	case HW_EVENT_HARD_RESET_RECEIVED:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_HARD_RESET_RECEIVED\n"));
		sas_ha->notify_port_event(sas_phy, PORTE_HARD_RESET);
		break;
	case HW_EVENT_ID_FRAME_TIMEOUT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("HW_EVENT_ID_FRAME_TIMEOUT\n"));
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_LINK_ERR_PHY_RESET_FAILED:
		PM8001_MSG_DBG(pm8001_ha,
4048
			pm8001_printk("HW_EVENT_LINK_ERR_PHY_RESET_FAILED\n"));
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4049 4050 4051 4052 4053 4054 4055 4056 4057
		pm8001_hw_event_ack_req(pm8001_ha, 0,
			HW_EVENT_LINK_ERR_PHY_RESET_FAILED,
			port_id, phy_id, 0, 0);
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_PORT_RESET_TIMER_TMO:
		PM8001_MSG_DBG(pm8001_ha,
4058
			pm8001_printk("HW_EVENT_PORT_RESET_TIMER_TMO\n"));
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4059 4060 4061 4062 4063 4064
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_PORT_RECOVERY_TIMER_TMO:
		PM8001_MSG_DBG(pm8001_ha,
4065
			pm8001_printk("HW_EVENT_PORT_RECOVERY_TIMER_TMO\n"));
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4066 4067 4068 4069 4070 4071
		sas_phy_disconnected(sas_phy);
		phy->phy_attached = 0;
		sas_ha->notify_port_event(sas_phy, PORTE_LINK_RESET_ERR);
		break;
	case HW_EVENT_PORT_RECOVER:
		PM8001_MSG_DBG(pm8001_ha,
4072
			pm8001_printk("HW_EVENT_PORT_RECOVER\n"));
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4073 4074 4075
		break;
	case HW_EVENT_PORT_RESET_COMPLETE:
		PM8001_MSG_DBG(pm8001_ha,
4076
			pm8001_printk("HW_EVENT_PORT_RESET_COMPLETE\n"));
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4077 4078 4079 4080 4081 4082
		break;
	case EVENT_BROADCAST_ASYNCH_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("EVENT_BROADCAST_ASYNCH_EVENT\n"));
		break;
	default:
4083
		PM8001_DEVIO_DBG(pm8001_ha,
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4084 4085 4086 4087 4088 4089 4090 4091 4092 4093 4094 4095 4096
			pm8001_printk("Unknown event type = %x\n", eventType));
		break;
	}
	return 0;
}

/**
 * process_one_iomb - process one outbound Queue memory block
 * @pm8001_ha: our hba card information
 * @piomb: IO message buffer
 */
static void process_one_iomb(struct pm8001_hba_info *pm8001_ha, void *piomb)
{
4097 4098
	__le32 pHeader = *(__le32 *)piomb;
	u8 opc = (u8)((le32_to_cpu(pHeader)) & 0xFFF);
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4099

4100
	PM8001_MSG_DBG(pm8001_ha, pm8001_printk("process_one_iomb:"));
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4101 4102 4103

	switch (opc) {
	case OPC_OUB_ECHO:
4104
		PM8001_MSG_DBG(pm8001_ha, pm8001_printk("OPC_OUB_ECHO\n"));
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4105 4106 4107
		break;
	case OPC_OUB_HW_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
4108
			pm8001_printk("OPC_OUB_HW_EVENT\n"));
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4109 4110 4111 4112
		mpi_hw_event(pm8001_ha, piomb);
		break;
	case OPC_OUB_SSP_COMP:
		PM8001_MSG_DBG(pm8001_ha,
4113
			pm8001_printk("OPC_OUB_SSP_COMP\n"));
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4114 4115 4116 4117
		mpi_ssp_completion(pm8001_ha, piomb);
		break;
	case OPC_OUB_SMP_COMP:
		PM8001_MSG_DBG(pm8001_ha,
4118
			pm8001_printk("OPC_OUB_SMP_COMP\n"));
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		mpi_smp_completion(pm8001_ha, piomb);
		break;
	case OPC_OUB_LOCAL_PHY_CNTRL:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_LOCAL_PHY_CNTRL\n"));
4124
		pm8001_mpi_local_phy_ctl(pm8001_ha, piomb);
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4125 4126 4127
		break;
	case OPC_OUB_DEV_REGIST:
		PM8001_MSG_DBG(pm8001_ha,
4128
			pm8001_printk("OPC_OUB_DEV_REGIST\n"));
4129
		pm8001_mpi_reg_resp(pm8001_ha, piomb);
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4130 4131 4132
		break;
	case OPC_OUB_DEREG_DEV:
		PM8001_MSG_DBG(pm8001_ha,
4133
			pm8001_printk("unregister the device\n"));
4134
		pm8001_mpi_dereg_resp(pm8001_ha, piomb);
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4135 4136 4137
		break;
	case OPC_OUB_GET_DEV_HANDLE:
		PM8001_MSG_DBG(pm8001_ha,
4138
			pm8001_printk("OPC_OUB_GET_DEV_HANDLE\n"));
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		break;
	case OPC_OUB_SATA_COMP:
		PM8001_MSG_DBG(pm8001_ha,
4142
			pm8001_printk("OPC_OUB_SATA_COMP\n"));
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		mpi_sata_completion(pm8001_ha, piomb);
		break;
	case OPC_OUB_SATA_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
4147
			pm8001_printk("OPC_OUB_SATA_EVENT\n"));
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4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171
		mpi_sata_event(pm8001_ha, piomb);
		break;
	case OPC_OUB_SSP_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SSP_EVENT\n"));
		mpi_ssp_event(pm8001_ha, piomb);
		break;
	case OPC_OUB_DEV_HANDLE_ARRIV:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_DEV_HANDLE_ARRIV\n"));
		/*This is for target*/
		break;
	case OPC_OUB_SSP_RECV_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SSP_RECV_EVENT\n"));
		/*This is for target*/
		break;
	case OPC_OUB_DEV_INFO:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_DEV_INFO\n"));
		break;
	case OPC_OUB_FW_FLASH_UPDATE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_FW_FLASH_UPDATE\n"));
4172
		pm8001_mpi_fw_flash_update_resp(pm8001_ha, piomb);
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		break;
	case OPC_OUB_GPIO_RESPONSE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GPIO_RESPONSE\n"));
		break;
	case OPC_OUB_GPIO_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GPIO_EVENT\n"));
		break;
	case OPC_OUB_GENERAL_EVENT:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GENERAL_EVENT\n"));
4185
		pm8001_mpi_general_event(pm8001_ha, piomb);
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4186 4187 4188 4189
		break;
	case OPC_OUB_SSP_ABORT_RSP:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SSP_ABORT_RSP\n"));
4190
		pm8001_mpi_task_abort_resp(pm8001_ha, piomb);
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4191 4192 4193 4194
		break;
	case OPC_OUB_SATA_ABORT_RSP:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SATA_ABORT_RSP\n"));
4195
		pm8001_mpi_task_abort_resp(pm8001_ha, piomb);
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4196 4197 4198 4199 4200 4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213 4214 4215 4216 4217 4218 4219
		break;
	case OPC_OUB_SAS_DIAG_MODE_START_END:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SAS_DIAG_MODE_START_END\n"));
		break;
	case OPC_OUB_SAS_DIAG_EXECUTE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SAS_DIAG_EXECUTE\n"));
		break;
	case OPC_OUB_GET_TIME_STAMP:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GET_TIME_STAMP\n"));
		break;
	case OPC_OUB_SAS_HW_EVENT_ACK:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SAS_HW_EVENT_ACK\n"));
		break;
	case OPC_OUB_PORT_CONTROL:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_PORT_CONTROL\n"));
		break;
	case OPC_OUB_SMP_ABORT_RSP:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SMP_ABORT_RSP\n"));
4220
		pm8001_mpi_task_abort_resp(pm8001_ha, piomb);
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4221 4222 4223 4224
		break;
	case OPC_OUB_GET_NVMD_DATA:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GET_NVMD_DATA\n"));
4225
		pm8001_mpi_get_nvmd_resp(pm8001_ha, piomb);
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		break;
	case OPC_OUB_SET_NVMD_DATA:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SET_NVMD_DATA\n"));
4230
		pm8001_mpi_set_nvmd_resp(pm8001_ha, piomb);
J
jack wang 已提交
4231 4232 4233 4234 4235 4236 4237 4238
		break;
	case OPC_OUB_DEVICE_HANDLE_REMOVAL:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_DEVICE_HANDLE_REMOVAL\n"));
		break;
	case OPC_OUB_SET_DEVICE_STATE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SET_DEVICE_STATE\n"));
4239
		pm8001_mpi_set_dev_state_resp(pm8001_ha, piomb);
J
jack wang 已提交
4240 4241 4242 4243 4244 4245 4246 4247 4248 4249 4250 4251 4252 4253
		break;
	case OPC_OUB_GET_DEVICE_STATE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_GET_DEVICE_STATE\n"));
		break;
	case OPC_OUB_SET_DEV_INFO:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SET_DEV_INFO\n"));
		break;
	case OPC_OUB_SAS_RE_INITIALIZE:
		PM8001_MSG_DBG(pm8001_ha,
			pm8001_printk("OPC_OUB_SAS_RE_INITIALIZE\n"));
		break;
	default:
4254
		PM8001_DEVIO_DBG(pm8001_ha,
J
jack wang 已提交
4255 4256 4257 4258 4259 4260
			pm8001_printk("Unknown outbound Queue IOMB OPC = %x\n",
			opc));
		break;
	}
}

4261
static int process_oq(struct pm8001_hba_info *pm8001_ha, u8 vec)
J
jack wang 已提交
4262 4263 4264
{
	struct outbound_queue_table *circularQ;
	void *pMsg1 = NULL;
4265
	u8 bc;
4266
	u32 ret = MPI_IO_STATUS_FAIL;
4267
	unsigned long flags;
J
jack wang 已提交
4268

4269
	spin_lock_irqsave(&pm8001_ha->lock, flags);
4270
	circularQ = &pm8001_ha->outbnd_q_tbl[vec];
J
jack wang 已提交
4271
	do {
4272
		ret = pm8001_mpi_msg_consume(pm8001_ha, circularQ, &pMsg1, &bc);
J
jack wang 已提交
4273 4274
		if (MPI_IO_STATUS_SUCCESS == ret) {
			/* process the outbound message */
4275
			process_one_iomb(pm8001_ha, (void *)(pMsg1 - 4));
J
jack wang 已提交
4276
			/* free the message from the outbound circular buffer */
4277 4278
			pm8001_mpi_msg_free_set(pm8001_ha, pMsg1,
							circularQ, bc);
J
jack wang 已提交
4279 4280 4281
		}
		if (MPI_IO_STATUS_BUSY == ret) {
			/* Update the producer index from SPC */
4282 4283 4284
			circularQ->producer_index =
				cpu_to_le32(pm8001_read_32(circularQ->pi_virt));
			if (le32_to_cpu(circularQ->producer_index) ==
J
jack wang 已提交
4285 4286 4287 4288
				circularQ->consumer_idx)
				/* OQ is empty */
				break;
		}
4289
	} while (1);
4290
	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
J
jack wang 已提交
4291 4292 4293
	return ret;
}

4294
/* DMA_... to our direction translation. */
J
jack wang 已提交
4295
static const u8 data_dir_flags[] = {
4296 4297 4298 4299
	[DMA_BIDIRECTIONAL]	= DATA_DIR_BYRECIPIENT,	/* UNSPECIFIED */
	[DMA_TO_DEVICE]		= DATA_DIR_OUT,		/* OUTBOUND */
	[DMA_FROM_DEVICE]	= DATA_DIR_IN,		/* INBOUND */
	[DMA_NONE]		= DATA_DIR_NONE,	/* NO TRANSFER */
J
jack wang 已提交
4300
};
4301
void
J
jack wang 已提交
4302 4303 4304 4305 4306 4307 4308 4309 4310 4311 4312 4313 4314 4315
pm8001_chip_make_sg(struct scatterlist *scatter, int nr, void *prd)
{
	int i;
	struct scatterlist *sg;
	struct pm8001_prd *buf_prd = prd;

	for_each_sg(scatter, sg, nr, i) {
		buf_prd->addr = cpu_to_le64(sg_dma_address(sg));
		buf_prd->im_len.len = cpu_to_le32(sg_dma_len(sg));
		buf_prd->im_len.e = 0;
		buf_prd++;
	}
}

4316
static void build_smp_cmd(u32 deviceID, __le32 hTag, struct smp_req *psmp_cmd)
J
jack wang 已提交
4317
{
4318
	psmp_cmd->tag = hTag;
J
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4319 4320 4321 4322 4323 4324 4325 4326 4327 4328 4329 4330 4331 4332 4333 4334 4335 4336 4337 4338 4339 4340 4341 4342 4343 4344 4345
	psmp_cmd->device_id = cpu_to_le32(deviceID);
	psmp_cmd->len_ip_ir = cpu_to_le32(1|(1 << 1));
}

/**
 * pm8001_chip_smp_req - send a SMP task to FW
 * @pm8001_ha: our hba card information.
 * @ccb: the ccb information this request used.
 */
static int pm8001_chip_smp_req(struct pm8001_hba_info *pm8001_ha,
	struct pm8001_ccb_info *ccb)
{
	int elem, rc;
	struct sas_task *task = ccb->task;
	struct domain_device *dev = task->dev;
	struct pm8001_device *pm8001_dev = dev->lldd_dev;
	struct scatterlist *sg_req, *sg_resp;
	u32 req_len, resp_len;
	struct smp_req smp_cmd;
	u32 opc;
	struct inbound_queue_table *circularQ;

	memset(&smp_cmd, 0, sizeof(smp_cmd));
	/*
	 * DMA-map SMP request, response buffers
	 */
	sg_req = &task->smp_task.smp_req;
4346
	elem = dma_map_sg(pm8001_ha->dev, sg_req, 1, DMA_TO_DEVICE);
J
jack wang 已提交
4347 4348 4349 4350 4351
	if (!elem)
		return -ENOMEM;
	req_len = sg_dma_len(sg_req);

	sg_resp = &task->smp_task.smp_resp;
4352
	elem = dma_map_sg(pm8001_ha->dev, sg_resp, 1, DMA_FROM_DEVICE);
J
jack wang 已提交
4353 4354 4355 4356 4357 4358 4359 4360 4361 4362 4363 4364 4365 4366 4367 4368 4369 4370 4371 4372 4373 4374 4375
	if (!elem) {
		rc = -ENOMEM;
		goto err_out;
	}
	resp_len = sg_dma_len(sg_resp);
	/* must be in dwords */
	if ((req_len & 0x3) || (resp_len & 0x3)) {
		rc = -EINVAL;
		goto err_out_2;
	}

	opc = OPC_INB_SMP_REQUEST;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	smp_cmd.tag = cpu_to_le32(ccb->ccb_tag);
	smp_cmd.long_smp_req.long_req_addr =
		cpu_to_le64((u64)sg_dma_address(&task->smp_task.smp_req));
	smp_cmd.long_smp_req.long_req_size =
		cpu_to_le32((u32)sg_dma_len(&task->smp_task.smp_req)-4);
	smp_cmd.long_smp_req.long_resp_addr =
		cpu_to_le64((u64)sg_dma_address(&task->smp_task.smp_resp));
	smp_cmd.long_smp_req.long_resp_size =
		cpu_to_le32((u32)sg_dma_len(&task->smp_task.smp_resp)-4);
	build_smp_cmd(pm8001_dev->device_id, smp_cmd.tag, &smp_cmd);
T
Tomas Henzl 已提交
4376
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc,
4377
			&smp_cmd, sizeof(smp_cmd), 0);
T
Tomas Henzl 已提交
4378 4379 4380
	if (rc)
		goto err_out_2;

J
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4381 4382 4383 4384
	return 0;

err_out_2:
	dma_unmap_sg(pm8001_ha->dev, &ccb->task->smp_task.smp_resp, 1,
4385
			DMA_FROM_DEVICE);
J
jack wang 已提交
4386 4387
err_out:
	dma_unmap_sg(pm8001_ha->dev, &ccb->task->smp_task.smp_req, 1,
4388
			DMA_TO_DEVICE);
J
jack wang 已提交
4389 4390 4391 4392 4393 4394 4395 4396 4397 4398 4399 4400 4401 4402 4403 4404
	return rc;
}

/**
 * pm8001_chip_ssp_io_req - send a SSP task to FW
 * @pm8001_ha: our hba card information.
 * @ccb: the ccb information this request used.
 */
static int pm8001_chip_ssp_io_req(struct pm8001_hba_info *pm8001_ha,
	struct pm8001_ccb_info *ccb)
{
	struct sas_task *task = ccb->task;
	struct domain_device *dev = task->dev;
	struct pm8001_device *pm8001_dev = dev->lldd_dev;
	struct ssp_ini_io_start_req ssp_cmd;
	u32 tag = ccb->ccb_tag;
4405
	int ret;
4406
	u64 phys_addr;
J
jack wang 已提交
4407 4408 4409 4410
	struct inbound_queue_table *circularQ;
	u32 opc = OPC_INB_SSPINIIOSTART;
	memset(&ssp_cmd, 0, sizeof(ssp_cmd));
	memcpy(ssp_cmd.ssp_iu.lun, task->ssp_task.LUN, 8);
4411 4412
	ssp_cmd.dir_m_tlr =
		cpu_to_le32(data_dir_flags[task->data_dir] << 8 | 0x0);/*0 for
J
jack wang 已提交
4413 4414 4415 4416 4417 4418 4419 4420
	SAS 1.1 compatible TLR*/
	ssp_cmd.data_len = cpu_to_le32(task->total_xfer_len);
	ssp_cmd.device_id = cpu_to_le32(pm8001_dev->device_id);
	ssp_cmd.tag = cpu_to_le32(tag);
	if (task->ssp_task.enable_first_burst)
		ssp_cmd.ssp_iu.efb_prio_attr |= 0x80;
	ssp_cmd.ssp_iu.efb_prio_attr |= (task->ssp_task.task_prio << 3);
	ssp_cmd.ssp_iu.efb_prio_attr |= (task->ssp_task.task_attr & 7);
4421 4422
	memcpy(ssp_cmd.ssp_iu.cdb, task->ssp_task.cmd->cmnd,
	       task->ssp_task.cmd->cmd_len);
J
jack wang 已提交
4423 4424 4425 4426 4427
	circularQ = &pm8001_ha->inbnd_q_tbl[0];

	/* fill in PRD (scatter/gather) table, if any */
	if (task->num_scatter > 1) {
		pm8001_chip_make_sg(task->scatter, ccb->n_elem, ccb->buf_prd);
4428
		phys_addr = ccb->ccb_dma_handle;
4429 4430
		ssp_cmd.addr_low = cpu_to_le32(lower_32_bits(phys_addr));
		ssp_cmd.addr_high = cpu_to_le32(upper_32_bits(phys_addr));
J
jack wang 已提交
4431 4432
		ssp_cmd.esgl = cpu_to_le32(1<<31);
	} else if (task->num_scatter == 1) {
4433 4434 4435
		u64 dma_addr = sg_dma_address(task->scatter);
		ssp_cmd.addr_low = cpu_to_le32(lower_32_bits(dma_addr));
		ssp_cmd.addr_high = cpu_to_le32(upper_32_bits(dma_addr));
J
jack wang 已提交
4436 4437 4438 4439 4440 4441 4442 4443
		ssp_cmd.len = cpu_to_le32(task->total_xfer_len);
		ssp_cmd.esgl = 0;
	} else if (task->num_scatter == 0) {
		ssp_cmd.addr_low = 0;
		ssp_cmd.addr_high = 0;
		ssp_cmd.len = cpu_to_le32(task->total_xfer_len);
		ssp_cmd.esgl = 0;
	}
4444 4445
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &ssp_cmd,
			sizeof(ssp_cmd), 0);
4446
	return ret;
J
jack wang 已提交
4447 4448 4449 4450 4451 4452 4453 4454 4455
}

static int pm8001_chip_sata_req(struct pm8001_hba_info *pm8001_ha,
	struct pm8001_ccb_info *ccb)
{
	struct sas_task *task = ccb->task;
	struct domain_device *dev = task->dev;
	struct pm8001_device *pm8001_ha_dev = dev->lldd_dev;
	u32 tag = ccb->ccb_tag;
4456
	int ret;
J
jack wang 已提交
4457 4458
	struct sata_start_req sata_cmd;
	u32 hdr_tag, ncg_tag = 0;
4459
	u64 phys_addr;
J
jack wang 已提交
4460 4461 4462
	u32 ATAP = 0x0;
	u32 dir;
	struct inbound_queue_table *circularQ;
4463
	unsigned long flags;
J
jack wang 已提交
4464 4465 4466
	u32  opc = OPC_INB_SATA_HOST_OPSTART;
	memset(&sata_cmd, 0, sizeof(sata_cmd));
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
4467
	if (task->data_dir == DMA_NONE) {
J
jack wang 已提交
4468
		ATAP = 0x04;  /* no data*/
4469
		PM8001_IO_DBG(pm8001_ha, pm8001_printk("no data\n"));
J
jack wang 已提交
4470 4471 4472
	} else if (likely(!task->ata_task.device_control_reg_update)) {
		if (task->ata_task.dma_xfer) {
			ATAP = 0x06; /* DMA */
4473
			PM8001_IO_DBG(pm8001_ha, pm8001_printk("DMA\n"));
J
jack wang 已提交
4474 4475
		} else {
			ATAP = 0x05; /* PIO*/
4476
			PM8001_IO_DBG(pm8001_ha, pm8001_printk("PIO\n"));
J
jack wang 已提交
4477 4478
		}
		if (task->ata_task.use_ncq &&
H
Hannes Reinecke 已提交
4479
			dev->sata_dev.class != ATA_DEV_ATAPI) {
J
jack wang 已提交
4480
			ATAP = 0x07; /* FPDMA */
4481
			PM8001_IO_DBG(pm8001_ha, pm8001_printk("FPDMA\n"));
J
jack wang 已提交
4482 4483
		}
	}
4484 4485
	if (task->ata_task.use_ncq && pm8001_get_ncq_tag(task, &hdr_tag)) {
		task->ata_task.fis.sector_count |= (u8) (hdr_tag << 3);
4486
		ncg_tag = hdr_tag;
4487
	}
J
jack wang 已提交
4488 4489 4490 4491 4492 4493 4494 4495 4496 4497 4498 4499 4500
	dir = data_dir_flags[task->data_dir] << 8;
	sata_cmd.tag = cpu_to_le32(tag);
	sata_cmd.device_id = cpu_to_le32(pm8001_ha_dev->device_id);
	sata_cmd.data_len = cpu_to_le32(task->total_xfer_len);
	sata_cmd.ncqtag_atap_dir_m =
		cpu_to_le32(((ncg_tag & 0xff)<<16)|((ATAP & 0x3f) << 10) | dir);
	sata_cmd.sata_fis = task->ata_task.fis;
	if (likely(!task->ata_task.device_control_reg_update))
		sata_cmd.sata_fis.flags |= 0x80;/* C=1: update ATA cmd reg */
	sata_cmd.sata_fis.flags &= 0xF0;/* PM_PORT field shall be 0 */
	/* fill in PRD (scatter/gather) table, if any */
	if (task->num_scatter > 1) {
		pm8001_chip_make_sg(task->scatter, ccb->n_elem, ccb->buf_prd);
4501
		phys_addr = ccb->ccb_dma_handle;
J
jack wang 已提交
4502 4503 4504 4505
		sata_cmd.addr_low = lower_32_bits(phys_addr);
		sata_cmd.addr_high = upper_32_bits(phys_addr);
		sata_cmd.esgl = cpu_to_le32(1 << 31);
	} else if (task->num_scatter == 1) {
4506
		u64 dma_addr = sg_dma_address(task->scatter);
J
jack wang 已提交
4507 4508 4509 4510 4511 4512 4513 4514 4515 4516
		sata_cmd.addr_low = lower_32_bits(dma_addr);
		sata_cmd.addr_high = upper_32_bits(dma_addr);
		sata_cmd.len = cpu_to_le32(task->total_xfer_len);
		sata_cmd.esgl = 0;
	} else if (task->num_scatter == 0) {
		sata_cmd.addr_low = 0;
		sata_cmd.addr_high = 0;
		sata_cmd.len = cpu_to_le32(task->total_xfer_len);
		sata_cmd.esgl = 0;
	}
4517 4518 4519

	/* Check for read log for failed drive and return */
	if (sata_cmd.sata_fis.command == 0x2f) {
4520
		if (((pm8001_ha_dev->id & NCQ_READ_LOG_FLAG) ||
4521 4522 4523 4524 4525 4526 4527 4528 4529 4530 4531 4532 4533 4534 4535 4536 4537 4538 4539 4540 4541 4542
			(pm8001_ha_dev->id & NCQ_ABORT_ALL_FLAG) ||
			(pm8001_ha_dev->id & NCQ_2ND_RLE_FLAG))) {
			struct task_status_struct *ts;

			pm8001_ha_dev->id &= 0xDFFFFFFF;
			ts = &task->task_status;

			spin_lock_irqsave(&task->task_state_lock, flags);
			ts->resp = SAS_TASK_COMPLETE;
			ts->stat = SAM_STAT_GOOD;
			task->task_state_flags &= ~SAS_TASK_STATE_PENDING;
			task->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
			task->task_state_flags |= SAS_TASK_STATE_DONE;
			if (unlikely((task->task_state_flags &
					SAS_TASK_STATE_ABORTED))) {
				spin_unlock_irqrestore(&task->task_state_lock,
							flags);
				PM8001_FAIL_DBG(pm8001_ha,
					pm8001_printk("task 0x%p resp 0x%x "
					" stat 0x%x but aborted by upper layer "
					"\n", task, ts->resp, ts->stat));
				pm8001_ccb_task_free(pm8001_ha, task, ccb, tag);
S
Suresh Thiagarajan 已提交
4543
			} else {
4544 4545
				spin_unlock_irqrestore(&task->task_state_lock,
							flags);
S
Suresh Thiagarajan 已提交
4546 4547
				pm8001_ccb_task_free_done(pm8001_ha, task,
								ccb, tag);
4548 4549 4550 4551 4552
				return 0;
			}
		}
	}

4553 4554
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &sata_cmd,
			sizeof(sata_cmd), 0);
4555
	return ret;
J
jack wang 已提交
4556 4557 4558 4559 4560 4561 4562 4563 4564 4565 4566 4567
}

/**
 * pm8001_chip_phy_start_req - start phy via PHY_START COMMAND
 * @pm8001_ha: our hba card information.
 * @phy_id: the phy id which we wanted to start up.
 */
static int
pm8001_chip_phy_start_req(struct pm8001_hba_info *pm8001_ha, u8 phy_id)
{
	struct phy_start_req payload;
	struct inbound_queue_table *circularQ;
4568
	int ret;
J
jack wang 已提交
4569 4570 4571 4572 4573 4574 4575 4576 4577 4578 4579 4580 4581 4582
	u32 tag = 0x01;
	u32 opcode = OPC_INB_PHYSTART;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	memset(&payload, 0, sizeof(payload));
	payload.tag = cpu_to_le32(tag);
	/*
	 ** [0:7]   PHY Identifier
	 ** [8:11]  link rate 1.5G, 3G, 6G
	 ** [12:13] link mode 01b SAS mode; 10b SATA mode; 11b both
	 ** [14]    0b disable spin up hold; 1b enable spin up hold
	 */
	payload.ase_sh_lm_slr_phyid = cpu_to_le32(SPINHOLD_DISABLE |
		LINKMODE_AUTO |	LINKRATE_15 |
		LINKRATE_30 | LINKRATE_60 | phy_id);
4583
	payload.sas_identify.dev_type = SAS_END_DEVICE;
J
jack wang 已提交
4584 4585 4586 4587
	payload.sas_identify.initiator_bits = SAS_PROTOCOL_ALL;
	memcpy(payload.sas_identify.sas_addr,
		pm8001_ha->sas_addr, SAS_ADDR_SIZE);
	payload.sas_identify.phy_id = phy_id;
4588 4589
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opcode, &payload,
			sizeof(payload), 0);
4590
	return ret;
J
jack wang 已提交
4591 4592 4593 4594 4595 4596 4597
}

/**
 * pm8001_chip_phy_stop_req - start phy via PHY_STOP COMMAND
 * @pm8001_ha: our hba card information.
 * @phy_id: the phy id which we wanted to start up.
 */
4598 4599
static int pm8001_chip_phy_stop_req(struct pm8001_hba_info *pm8001_ha,
				    u8 phy_id)
J
jack wang 已提交
4600 4601 4602
{
	struct phy_stop_req payload;
	struct inbound_queue_table *circularQ;
4603
	int ret;
J
jack wang 已提交
4604 4605 4606 4607 4608 4609
	u32 tag = 0x01;
	u32 opcode = OPC_INB_PHYSTOP;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	memset(&payload, 0, sizeof(payload));
	payload.tag = cpu_to_le32(tag);
	payload.phy_id = cpu_to_le32(phy_id);
4610 4611
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opcode, &payload,
			sizeof(payload), 0);
4612
	return ret;
J
jack wang 已提交
4613 4614
}

4615
/*
4616
 * see comments on pm8001_mpi_reg_resp.
J
jack wang 已提交
4617 4618 4619 4620 4621 4622 4623 4624 4625
 */
static int pm8001_chip_reg_dev_req(struct pm8001_hba_info *pm8001_ha,
	struct pm8001_device *pm8001_dev, u32 flag)
{
	struct reg_dev_req payload;
	u32	opc;
	u32 stp_sspsmp_sata = 0x4;
	struct inbound_queue_table *circularQ;
	u32 linkrate, phy_id;
4626
	int rc, tag = 0xdeadbeef;
J
jack wang 已提交
4627 4628 4629 4630 4631 4632 4633 4634 4635 4636 4637 4638 4639 4640 4641 4642 4643 4644 4645
	struct pm8001_ccb_info *ccb;
	u8 retryFlag = 0x1;
	u16 firstBurstSize = 0;
	u16 ITNT = 2000;
	struct domain_device *dev = pm8001_dev->sas_device;
	struct domain_device *parent_dev = dev->parent;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];

	memset(&payload, 0, sizeof(payload));
	rc = pm8001_tag_alloc(pm8001_ha, &tag);
	if (rc)
		return rc;
	ccb = &pm8001_ha->ccb_info[tag];
	ccb->device = pm8001_dev;
	ccb->ccb_tag = tag;
	payload.tag = cpu_to_le32(tag);
	if (flag == 1)
		stp_sspsmp_sata = 0x02; /*direct attached sata */
	else {
4646
		if (pm8001_dev->dev_type == SAS_SATA_DEV)
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			stp_sspsmp_sata = 0x00; /* stp*/
4648 4649 4650
		else if (pm8001_dev->dev_type == SAS_END_DEVICE ||
			pm8001_dev->dev_type == SAS_EDGE_EXPANDER_DEVICE ||
			pm8001_dev->dev_type == SAS_FANOUT_EXPANDER_DEVICE)
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			stp_sspsmp_sata = 0x01; /*ssp or smp*/
	}
4653
	if (parent_dev && dev_is_expander(parent_dev->dev_type))
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4654 4655 4656 4657 4658 4659 4660 4661 4662 4663 4664 4665 4666 4667
		phy_id = parent_dev->ex_dev.ex_phy->phy_id;
	else
		phy_id = pm8001_dev->attached_phy;
	opc = OPC_INB_REG_DEV;
	linkrate = (pm8001_dev->sas_device->linkrate < dev->port->linkrate) ?
			pm8001_dev->sas_device->linkrate : dev->port->linkrate;
	payload.phyid_portid =
		cpu_to_le32(((pm8001_dev->sas_device->port->id) & 0x0F) |
		((phy_id & 0x0F) << 4));
	payload.dtype_dlr_retry = cpu_to_le32((retryFlag & 0x01) |
		((linkrate & 0x0F) * 0x1000000) |
		((stp_sspsmp_sata & 0x03) * 0x10000000));
	payload.firstburstsize_ITNexustimeout =
		cpu_to_le32(ITNT | (firstBurstSize * 0x10000));
4668
	memcpy(payload.sas_addr, pm8001_dev->sas_device->sas_addr,
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		SAS_ADDR_SIZE);
4670 4671
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
4672
	return rc;
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}

4675
/*
4676
 * see comments on pm8001_mpi_reg_resp.
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4677
 */
4678
int pm8001_chip_dereg_dev_req(struct pm8001_hba_info *pm8001_ha,
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4679 4680 4681 4682
	u32 device_id)
{
	struct dereg_dev_req payload;
	u32 opc = OPC_INB_DEREG_DEV_HANDLE;
4683
	int ret;
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	struct inbound_queue_table *circularQ;

	circularQ = &pm8001_ha->inbnd_q_tbl[0];
4687
	memset(&payload, 0, sizeof(payload));
4688
	payload.tag = cpu_to_le32(1);
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	payload.device_id = cpu_to_le32(device_id);
	PM8001_MSG_DBG(pm8001_ha,
		pm8001_printk("unregister device device_id = %d\n", device_id));
4692 4693
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
4694
	return ret;
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}

/**
 * pm8001_chip_phy_ctl_req - support the local phy operation
 * @pm8001_ha: our hba card information.
4700 4701
 * @phyId: the phy id which we wanted to operate
 * @phy_op: the phy operation to request
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 */
static int pm8001_chip_phy_ctl_req(struct pm8001_hba_info *pm8001_ha,
	u32 phyId, u32 phy_op)
{
	struct local_phy_ctl_req payload;
	struct inbound_queue_table *circularQ;
4708
	int ret;
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	u32 opc = OPC_INB_LOCAL_PHY_CONTROL;
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4710
	memset(&payload, 0, sizeof(payload));
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4711
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
4712
	payload.tag = cpu_to_le32(1);
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	payload.phyop_phyid =
		cpu_to_le32(((phy_op & 0xff) << 8) | (phyId & 0x0F));
4715 4716
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
4717
	return ret;
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}

4720
static u32 pm8001_chip_is_our_interrupt(struct pm8001_hba_info *pm8001_ha)
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{
#ifdef PM8001_USE_MSIX
	return 1;
4724 4725 4726
#else
	u32 value;

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	value = pm8001_cr32(pm8001_ha, 0, MSGU_ODR);
	if (value)
		return 1;
	return 0;
4731
#endif
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}

/**
 * pm8001_chip_isr - PM8001 isr handler.
 * @pm8001_ha: our hba card information.
4737
 * @vec: IRQ number
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 */
4739
static irqreturn_t
4740
pm8001_chip_isr(struct pm8001_hba_info *pm8001_ha, u8 vec)
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4741
{
4742
	pm8001_chip_interrupt_disable(pm8001_ha, vec);
4743 4744 4745
	PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
		"irq vec %d, ODMR:0x%x\n",
		vec, pm8001_cr32(pm8001_ha, 0, 0x30)));
4746 4747
	process_oq(pm8001_ha, vec);
	pm8001_chip_interrupt_enable(pm8001_ha, vec);
4748
	return IRQ_HANDLED;
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}

static int send_task_abort(struct pm8001_hba_info *pm8001_ha, u32 opc,
	u32 dev_id, u8 flag, u32 task_tag, u32 cmd_tag)
{
	struct task_abort_req task_abort;
	struct inbound_queue_table *circularQ;
4756
	int ret;
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	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	memset(&task_abort, 0, sizeof(task_abort));
	if (ABORT_SINGLE == (flag & ABORT_MASK)) {
		task_abort.abort_all = 0;
		task_abort.device_id = cpu_to_le32(dev_id);
		task_abort.tag_to_abort = cpu_to_le32(task_tag);
		task_abort.tag = cpu_to_le32(cmd_tag);
	} else if (ABORT_ALL == (flag & ABORT_MASK)) {
		task_abort.abort_all = cpu_to_le32(1);
		task_abort.device_id = cpu_to_le32(dev_id);
		task_abort.tag = cpu_to_le32(cmd_tag);
	}
4769 4770
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &task_abort,
			sizeof(task_abort), 0);
4771
	return ret;
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}

4774
/*
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 * pm8001_chip_abort_task - SAS abort task when error or exception happened.
 */
4777
int pm8001_chip_abort_task(struct pm8001_hba_info *pm8001_ha,
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	struct pm8001_device *pm8001_dev, u8 flag, u32 task_tag, u32 cmd_tag)
{
	u32 opc, device_id;
	int rc = TMF_RESP_FUNC_FAILED;
4782 4783 4784
	PM8001_EH_DBG(pm8001_ha,
		pm8001_printk("cmd_tag = %x, abort task tag = 0x%x",
			cmd_tag, task_tag));
4785
	if (pm8001_dev->dev_type == SAS_END_DEVICE)
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4786
		opc = OPC_INB_SSP_ABORT;
4787
	else if (pm8001_dev->dev_type == SAS_SATA_DEV)
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4788 4789 4790 4791 4792 4793 4794
		opc = OPC_INB_SATA_ABORT;
	else
		opc = OPC_INB_SMP_ABORT;/* SMP */
	device_id = pm8001_dev->device_id;
	rc = send_task_abort(pm8001_ha, opc, device_id, flag,
		task_tag, cmd_tag);
	if (rc != TMF_RESP_FUNC_COMPLETE)
4795
		PM8001_EH_DBG(pm8001_ha, pm8001_printk("rc= %d\n", rc));
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	return rc;
}

/**
4800
 * pm8001_chip_ssp_tm_req - built the task management command.
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 * @pm8001_ha: our hba card information.
 * @ccb: the ccb information.
 * @tmf: task management function.
 */
4805
int pm8001_chip_ssp_tm_req(struct pm8001_hba_info *pm8001_ha,
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4806 4807 4808 4809 4810 4811 4812 4813
	struct pm8001_ccb_info *ccb, struct pm8001_tmf_task *tmf)
{
	struct sas_task *task = ccb->task;
	struct domain_device *dev = task->dev;
	struct pm8001_device *pm8001_dev = dev->lldd_dev;
	u32 opc = OPC_INB_SSPINITMSTART;
	struct inbound_queue_table *circularQ;
	struct ssp_ini_tm_start_req sspTMCmd;
4814
	int ret;
J
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4815 4816 4817 4818 4819 4820 4821

	memset(&sspTMCmd, 0, sizeof(sspTMCmd));
	sspTMCmd.device_id = cpu_to_le32(pm8001_dev->device_id);
	sspTMCmd.relate_tag = cpu_to_le32(tmf->tag_of_task_to_be_managed);
	sspTMCmd.tmf = cpu_to_le32(tmf->tmf);
	memcpy(sspTMCmd.lun, task->ssp_task.LUN, 8);
	sspTMCmd.tag = cpu_to_le32(ccb->ccb_tag);
4822 4823
	if (pm8001_ha->chip_id != chip_8001)
		sspTMCmd.ds_ads_m = 0x08;
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4824
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
4825 4826
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &sspTMCmd,
			sizeof(sspTMCmd), 0);
4827
	return ret;
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4828 4829
}

4830
int pm8001_chip_get_nvmd_req(struct pm8001_hba_info *pm8001_ha,
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4831 4832 4833 4834
	void *payload)
{
	u32 opc = OPC_INB_GET_NVMD_DATA;
	u32 nvmd_type;
4835
	int rc;
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4836 4837 4838 4839 4840 4841 4842 4843 4844
	u32 tag;
	struct pm8001_ccb_info *ccb;
	struct inbound_queue_table *circularQ;
	struct get_nvm_data_req nvmd_req;
	struct fw_control_ex *fw_control_context;
	struct pm8001_ioctl_payload *ioctl_payload = payload;

	nvmd_type = ioctl_payload->minor_function;
	fw_control_context = kzalloc(sizeof(struct fw_control_ex), GFP_KERNEL);
4845 4846
	if (!fw_control_context)
		return -ENOMEM;
4847
	fw_control_context->usrAddr = (u8 *)ioctl_payload->func_specific;
4848
	fw_control_context->len = ioctl_payload->rd_length;
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4849 4850 4851
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	memset(&nvmd_req, 0, sizeof(nvmd_req));
	rc = pm8001_tag_alloc(pm8001_ha, &tag);
4852 4853
	if (rc) {
		kfree(fw_control_context);
J
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4854
		return rc;
4855
	}
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4856 4857 4858 4859 4860 4861 4862 4863 4864 4865 4866 4867 4868
	ccb = &pm8001_ha->ccb_info[tag];
	ccb->ccb_tag = tag;
	ccb->fw_control_context = fw_control_context;
	nvmd_req.tag = cpu_to_le32(tag);

	switch (nvmd_type) {
	case TWI_DEVICE: {
		u32 twi_addr, twi_page_size;
		twi_addr = 0xa8;
		twi_page_size = 2;

		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | twi_addr << 16 |
			twi_page_size << 8 | TWI_DEVICE);
4869
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->rd_length);
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4870 4871 4872 4873 4874 4875 4876 4877
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
	case C_SEEPROM: {
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | C_SEEPROM);
4878
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->rd_length);
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4879 4880 4881 4882 4883 4884 4885 4886
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
	case VPD_FLASH: {
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | VPD_FLASH);
4887
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->rd_length);
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4888 4889 4890 4891 4892 4893 4894 4895
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
	case EXPAN_ROM: {
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | EXPAN_ROM);
4896
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->rd_length);
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4897 4898 4899 4900 4901 4902
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
4903 4904
	case IOP_RDUMP: {
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | IOP_RDUMP);
4905
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->rd_length);
4906 4907 4908 4909 4910 4911 4912
		nvmd_req.vpd_offset = cpu_to_le32(ioctl_payload->offset);
		nvmd_req.resp_addr_hi =
		cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
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4913 4914 4915
	default:
		break;
	}
4916 4917
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &nvmd_req,
			sizeof(nvmd_req), 0);
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4918 4919 4920 4921
	if (rc) {
		kfree(fw_control_context);
		pm8001_tag_free(pm8001_ha, tag);
	}
4922
	return rc;
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4923 4924
}

4925
int pm8001_chip_set_nvmd_req(struct pm8001_hba_info *pm8001_ha,
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4926 4927 4928 4929
	void *payload)
{
	u32 opc = OPC_INB_SET_NVMD_DATA;
	u32 nvmd_type;
4930
	int rc;
J
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4931 4932 4933 4934 4935 4936 4937 4938 4939
	u32 tag;
	struct pm8001_ccb_info *ccb;
	struct inbound_queue_table *circularQ;
	struct set_nvm_data_req nvmd_req;
	struct fw_control_ex *fw_control_context;
	struct pm8001_ioctl_payload *ioctl_payload = payload;

	nvmd_type = ioctl_payload->minor_function;
	fw_control_context = kzalloc(sizeof(struct fw_control_ex), GFP_KERNEL);
4940 4941
	if (!fw_control_context)
		return -ENOMEM;
J
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4942 4943
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	memcpy(pm8001_ha->memoryMap.region[NVMD].virt_ptr,
4944
		&ioctl_payload->func_specific,
4945
		ioctl_payload->wr_length);
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4946 4947
	memset(&nvmd_req, 0, sizeof(nvmd_req));
	rc = pm8001_tag_alloc(pm8001_ha, &tag);
4948 4949
	if (rc) {
		kfree(fw_control_context);
T
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4950
		return -EBUSY;
4951
	}
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4952 4953 4954 4955 4956 4957 4958 4959 4960 4961 4962 4963
	ccb = &pm8001_ha->ccb_info[tag];
	ccb->fw_control_context = fw_control_context;
	ccb->ccb_tag = tag;
	nvmd_req.tag = cpu_to_le32(tag);
	switch (nvmd_type) {
	case TWI_DEVICE: {
		u32 twi_addr, twi_page_size;
		twi_addr = 0xa8;
		twi_page_size = 2;
		nvmd_req.reserved[0] = cpu_to_le32(0xFEDCBA98);
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | twi_addr << 16 |
			twi_page_size << 8 | TWI_DEVICE);
4964
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->wr_length);
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4965 4966 4967 4968 4969 4970 4971 4972
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	}
	case C_SEEPROM:
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | C_SEEPROM);
4973
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->wr_length);
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4974 4975 4976 4977 4978 4979 4980 4981
		nvmd_req.reserved[0] = cpu_to_le32(0xFEDCBA98);
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	case VPD_FLASH:
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | VPD_FLASH);
4982
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->wr_length);
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4983 4984 4985 4986 4987 4988 4989 4990
		nvmd_req.reserved[0] = cpu_to_le32(0xFEDCBA98);
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	case EXPAN_ROM:
		nvmd_req.len_ir_vpdd = cpu_to_le32(IPMode | EXPAN_ROM);
4991
		nvmd_req.resp_len = cpu_to_le32(ioctl_payload->wr_length);
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4992 4993 4994 4995 4996 4997 4998 4999 5000
		nvmd_req.reserved[0] = cpu_to_le32(0xFEDCBA98);
		nvmd_req.resp_addr_hi =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_hi);
		nvmd_req.resp_addr_lo =
		    cpu_to_le32(pm8001_ha->memoryMap.region[NVMD].phys_addr_lo);
		break;
	default:
		break;
	}
5001 5002
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &nvmd_req,
			sizeof(nvmd_req), 0);
5003 5004 5005 5006
	if (rc) {
		kfree(fw_control_context);
		pm8001_tag_free(pm8001_ha, tag);
	}
5007
	return rc;
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5008 5009 5010 5011 5012 5013
}

/**
 * pm8001_chip_fw_flash_update_build - support the firmware update operation
 * @pm8001_ha: our hba card information.
 * @fw_flash_updata_info: firmware flash update param
5014
 * @tag: Tag to apply to the payload
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5015
 */
5016
int
J
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5017 5018 5019 5020 5021 5022
pm8001_chip_fw_flash_update_build(struct pm8001_hba_info *pm8001_ha,
	void *fw_flash_updata_info, u32 tag)
{
	struct fw_flash_Update_req payload;
	struct fw_flash_updata_info *info;
	struct inbound_queue_table *circularQ;
5023
	int ret;
J
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5024 5025
	u32 opc = OPC_INB_FW_FLASH_UPDATE;

5026
	memset(&payload, 0, sizeof(struct fw_flash_Update_req));
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5027 5028 5029 5030 5031 5032 5033
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	info = fw_flash_updata_info;
	payload.tag = cpu_to_le32(tag);
	payload.cur_image_len = cpu_to_le32(info->cur_image_len);
	payload.cur_image_offset = cpu_to_le32(info->cur_image_offset);
	payload.total_image_len = cpu_to_le32(info->total_image_len);
	payload.len = info->sgl.im_len.len ;
5034 5035 5036 5037
	payload.sgl_addr_lo =
		cpu_to_le32(lower_32_bits(le64_to_cpu(info->sgl.addr)));
	payload.sgl_addr_hi =
		cpu_to_le32(upper_32_bits(le64_to_cpu(info->sgl.addr)));
5038 5039
	ret = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
5040
	return ret;
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}

5043
int
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pm8001_chip_fw_flash_update_req(struct pm8001_hba_info *pm8001_ha,
	void *payload)
{
	struct fw_flash_updata_info flash_update_info;
	struct fw_control_info *fw_control;
	struct fw_control_ex *fw_control_context;
5050
	int rc;
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	u32 tag;
	struct pm8001_ccb_info *ccb;
5053 5054
	void *buffer = pm8001_ha->memoryMap.region[FW_FLASH].virt_ptr;
	dma_addr_t phys_addr = pm8001_ha->memoryMap.region[FW_FLASH].phys_addr;
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	struct pm8001_ioctl_payload *ioctl_payload = payload;

	fw_control_context = kzalloc(sizeof(struct fw_control_ex), GFP_KERNEL);
5058 5059
	if (!fw_control_context)
		return -ENOMEM;
5060
	fw_control = (struct fw_control_info *)&ioctl_payload->func_specific;
5061 5062
	PM8001_DEVIO_DBG(pm8001_ha, pm8001_printk(
		"dma fw_control context input length :%x\n", fw_control->len));
5063
	memcpy(buffer, fw_control->buffer, fw_control->len);
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	flash_update_info.sgl.addr = cpu_to_le64(phys_addr);
	flash_update_info.sgl.im_len.len = cpu_to_le32(fw_control->len);
	flash_update_info.sgl.im_len.e = 0;
	flash_update_info.cur_image_offset = fw_control->offset;
	flash_update_info.cur_image_len = fw_control->len;
	flash_update_info.total_image_len = fw_control->size;
	fw_control_context->fw_control = fw_control;
	fw_control_context->virtAddr = buffer;
5072
	fw_control_context->phys_addr = phys_addr;
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	fw_control_context->len = fw_control->len;
	rc = pm8001_tag_alloc(pm8001_ha, &tag);
5075 5076
	if (rc) {
		kfree(fw_control_context);
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		return -EBUSY;
5078
	}
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	ccb = &pm8001_ha->ccb_info[tag];
	ccb->fw_control_context = fw_control_context;
	ccb->ccb_tag = tag;
5082 5083 5084
	rc = pm8001_chip_fw_flash_update_build(pm8001_ha, &flash_update_info,
		tag);
	return rc;
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}

5087 5088 5089 5090 5091 5092 5093 5094 5095 5096 5097 5098 5099 5100 5101 5102 5103
ssize_t
pm8001_get_gsm_dump(struct device *cdev, u32 length, char *buf)
{
	u32 value, rem, offset = 0, bar = 0;
	u32 index, work_offset, dw_length;
	u32 shift_value, gsm_base, gsm_dump_offset;
	char *direct_data;
	struct Scsi_Host *shost = class_to_shost(cdev);
	struct sas_ha_struct *sha = SHOST_TO_SAS_HA(shost);
	struct pm8001_hba_info *pm8001_ha = sha->lldd_ha;

	direct_data = buf;
	gsm_dump_offset = pm8001_ha->fatal_forensic_shift_offset;

	/* check max is 1 Mbytes */
	if ((length > 0x100000) || (gsm_dump_offset & 3) ||
		((gsm_dump_offset + length) > 0x1000000))
5104
			return -EINVAL;
5105 5106 5107 5108 5109 5110 5111 5112 5113 5114 5115 5116 5117 5118 5119 5120 5121 5122 5123 5124 5125 5126 5127 5128 5129 5130 5131

	if (pm8001_ha->chip_id == chip_8001)
		bar = 2;
	else
		bar = 1;

	work_offset = gsm_dump_offset & 0xFFFF0000;
	offset = gsm_dump_offset & 0x0000FFFF;
	gsm_dump_offset = work_offset;
	/* adjust length to dword boundary */
	rem = length & 3;
	dw_length = length >> 2;

	for (index = 0; index < dw_length; index++) {
		if ((work_offset + offset) & 0xFFFF0000) {
			if (pm8001_ha->chip_id == chip_8001)
				shift_value = ((gsm_dump_offset + offset) &
						SHIFT_REG_64K_MASK);
			else
				shift_value = (((gsm_dump_offset + offset) &
						SHIFT_REG_64K_MASK) >>
						SHIFT_REG_BIT_SHIFT);

			if (pm8001_ha->chip_id == chip_8001) {
				gsm_base = GSM_BASE;
				if (-1 == pm8001_bar4_shift(pm8001_ha,
						(gsm_base + shift_value)))
5132
					return -EIO;
5133 5134 5135 5136
			} else {
				gsm_base = 0;
				if (-1 == pm80xx_bar4_shift(pm8001_ha,
						(gsm_base + shift_value)))
5137
					return -EIO;
5138 5139 5140 5141 5142 5143 5144 5145 5146 5147 5148 5149 5150 5151 5152 5153 5154 5155
			}
			gsm_dump_offset = (gsm_dump_offset + offset) &
						0xFFFF0000;
			work_offset = 0;
			offset = offset & 0x0000FFFF;
		}
		value = pm8001_cr32(pm8001_ha, bar, (work_offset + offset) &
						0x0000FFFF);
		direct_data += sprintf(direct_data, "%08x ", value);
		offset += 4;
	}
	if (rem != 0) {
		value = pm8001_cr32(pm8001_ha, bar, (work_offset + offset) &
						0x0000FFFF);
		/* xfr for non_dw */
		direct_data += sprintf(direct_data, "%08x ", value);
	}
	/* Shift back to BAR4 original address */
5156
	if (-1 == pm8001_bar4_shift(pm8001_ha, 0))
5157
			return -EIO;
5158 5159 5160 5161 5162 5163 5164
	pm8001_ha->fatal_forensic_shift_offset += 1024;

	if (pm8001_ha->fatal_forensic_shift_offset >= 0x100000)
		pm8001_ha->fatal_forensic_shift_offset = 0;
	return direct_data - buf;
}

5165
int
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pm8001_chip_set_dev_state_req(struct pm8001_hba_info *pm8001_ha,
	struct pm8001_device *pm8001_dev, u32 state)
{
	struct set_dev_state_req payload;
	struct inbound_queue_table *circularQ;
	struct pm8001_ccb_info *ccb;
5172
	int rc;
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	u32 tag;
	u32 opc = OPC_INB_SET_DEVICE_STATE;
5175
	memset(&payload, 0, sizeof(payload));
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	rc = pm8001_tag_alloc(pm8001_ha, &tag);
	if (rc)
		return -1;
	ccb = &pm8001_ha->ccb_info[tag];
	ccb->ccb_tag = tag;
	ccb->device = pm8001_dev;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	payload.tag = cpu_to_le32(tag);
	payload.device_id = cpu_to_le32(pm8001_dev->device_id);
	payload.nds = cpu_to_le32(state);
5186 5187
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
5188 5189
	return rc;

5190 5191 5192 5193 5194 5195 5196 5197 5198 5199 5200 5201 5202 5203
}

static int
pm8001_chip_sas_re_initialization(struct pm8001_hba_info *pm8001_ha)
{
	struct sas_re_initialization_req payload;
	struct inbound_queue_table *circularQ;
	struct pm8001_ccb_info *ccb;
	int rc;
	u32 tag;
	u32 opc = OPC_INB_SAS_RE_INITIALIZE;
	memset(&payload, 0, sizeof(payload));
	rc = pm8001_tag_alloc(pm8001_ha, &tag);
	if (rc)
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		return -ENOMEM;
5205 5206 5207 5208 5209 5210 5211
	ccb = &pm8001_ha->ccb_info[tag];
	ccb->ccb_tag = tag;
	circularQ = &pm8001_ha->inbnd_q_tbl[0];
	payload.tag = cpu_to_le32(tag);
	payload.SSAHOLT = cpu_to_le32(0xd << 25);
	payload.sata_hol_tmo = cpu_to_le32(80);
	payload.open_reject_cmdretries_data_retries = cpu_to_le32(0xff00ff);
5212 5213
	rc = pm8001_mpi_build_cmd(pm8001_ha, circularQ, opc, &payload,
			sizeof(payload), 0);
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	if (rc)
		pm8001_tag_free(pm8001_ha, tag);
5216
	return rc;
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}

const struct pm8001_dispatch pm8001_8001_dispatch = {
	.name			= "pmc8001",
	.chip_init		= pm8001_chip_init,
	.chip_soft_rst		= pm8001_chip_soft_rst,
	.chip_rst		= pm8001_hw_chip_rst,
	.chip_iounmap		= pm8001_chip_iounmap,
	.isr			= pm8001_chip_isr,
5227
	.is_our_interrupt	= pm8001_chip_is_our_interrupt,
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	.isr_process_oq		= process_oq,
	.interrupt_enable 	= pm8001_chip_interrupt_enable,
	.interrupt_disable	= pm8001_chip_interrupt_disable,
	.make_prd		= pm8001_chip_make_sg,
	.smp_req		= pm8001_chip_smp_req,
	.ssp_io_req		= pm8001_chip_ssp_io_req,
	.sata_req		= pm8001_chip_sata_req,
	.phy_start_req		= pm8001_chip_phy_start_req,
	.phy_stop_req		= pm8001_chip_phy_stop_req,
	.reg_dev_req		= pm8001_chip_reg_dev_req,
	.dereg_dev_req		= pm8001_chip_dereg_dev_req,
	.phy_ctl_req		= pm8001_chip_phy_ctl_req,
	.task_abort		= pm8001_chip_abort_task,
	.ssp_tm_req		= pm8001_chip_ssp_tm_req,
	.get_nvmd_req		= pm8001_chip_get_nvmd_req,
	.set_nvmd_req		= pm8001_chip_set_nvmd_req,
	.fw_flash_update_req	= pm8001_chip_fw_flash_update_req,
	.set_dev_state_req	= pm8001_chip_set_dev_state_req,
5246
	.sas_re_init_req	= pm8001_chip_sas_re_initialization,
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};