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v4.17
   1/*
   2 * PMC-Sierra PM8001/8081/8088/8089 SAS/SATA based host adapters driver
   3 *
   4 * Copyright (c) 2008-2009 USI Co., Ltd.
   5 * All rights reserved.
   6 *
   7 * Redistribution and use in source and binary forms, with or without
   8 * modification, are permitted provided that the following conditions
   9 * are met:
  10 * 1. Redistributions of source code must retain the above copyright
  11 *    notice, this list of conditions, and the following disclaimer,
  12 *    without modification.
  13 * 2. Redistributions in binary form must reproduce at minimum a disclaimer
  14 *    substantially similar to the "NO WARRANTY" disclaimer below
  15 *    ("Disclaimer") and any redistribution must be conditioned upon
  16 *    including a substantially similar Disclaimer requirement for further
  17 *    binary redistribution.
  18 * 3. Neither the names of the above-listed copyright holders nor the names
  19 *    of any contributors may be used to endorse or promote products derived
  20 *    from this software without specific prior written permission.
  21 *
  22 * Alternatively, this software may be distributed under the terms of the
  23 * GNU General Public License ("GPL") version 2 as published by the Free
  24 * Software Foundation.
  25 *
  26 * NO WARRANTY
  27 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  28 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  29 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
  30 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  31 * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  32 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  33 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  34 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
  35 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
  36 * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
  37 * POSSIBILITY OF SUCH DAMAGES.
  38 *
  39 */
  40
  41#include <linux/slab.h>
  42#include "pm8001_sas.h"
  43
  44/**
  45 * pm8001_find_tag - from sas task to find out  tag that belongs to this task
  46 * @task: the task sent to the LLDD
  47 * @tag: the found tag associated with the task
  48 */
  49static int pm8001_find_tag(struct sas_task *task, u32 *tag)
  50{
  51	if (task->lldd_task) {
  52		struct pm8001_ccb_info *ccb;
  53		ccb = task->lldd_task;
  54		*tag = ccb->ccb_tag;
  55		return 1;
  56	}
  57	return 0;
  58}
  59
  60/**
  61  * pm8001_tag_free - free the no more needed tag
  62  * @pm8001_ha: our hba struct
  63  * @tag: the found tag associated with the task
  64  */
  65void pm8001_tag_free(struct pm8001_hba_info *pm8001_ha, u32 tag)
  66{
  67	void *bitmap = pm8001_ha->tags;
  68	clear_bit(tag, bitmap);
  69}
  70
  71/**
  72  * pm8001_tag_alloc - allocate a empty tag for task used.
  73  * @pm8001_ha: our hba struct
  74  * @tag_out: the found empty tag .
  75  */
  76inline int pm8001_tag_alloc(struct pm8001_hba_info *pm8001_ha, u32 *tag_out)
  77{
  78	unsigned int tag;
  79	void *bitmap = pm8001_ha->tags;
  80	unsigned long flags;
  81
  82	spin_lock_irqsave(&pm8001_ha->bitmap_lock, flags);
  83	tag = find_first_zero_bit(bitmap, pm8001_ha->tags_num);
  84	if (tag >= pm8001_ha->tags_num) {
  85		spin_unlock_irqrestore(&pm8001_ha->bitmap_lock, flags);
  86		return -SAS_QUEUE_FULL;
  87	}
  88	set_bit(tag, bitmap);
  89	spin_unlock_irqrestore(&pm8001_ha->bitmap_lock, flags);
  90	*tag_out = tag;
  91	return 0;
  92}
  93
  94void pm8001_tag_init(struct pm8001_hba_info *pm8001_ha)
  95{
  96	int i;
  97	for (i = 0; i < pm8001_ha->tags_num; ++i)
  98		pm8001_tag_free(pm8001_ha, i);
  99}
 100
 101 /**
 102  * pm8001_mem_alloc - allocate memory for pm8001.
 103  * @pdev: pci device.
 104  * @virt_addr: the allocated virtual address
 105  * @pphys_addr_hi: the physical address high byte address.
 106  * @pphys_addr_lo: the physical address low byte address.
 107  * @mem_size: memory size.
 108  */
 
 
 109int pm8001_mem_alloc(struct pci_dev *pdev, void **virt_addr,
 110	dma_addr_t *pphys_addr, u32 *pphys_addr_hi,
 111	u32 *pphys_addr_lo, u32 mem_size, u32 align)
 112{
 113	caddr_t mem_virt_alloc;
 114	dma_addr_t mem_dma_handle;
 115	u64 phys_align;
 116	u64 align_offset = 0;
 117	if (align)
 118		align_offset = (dma_addr_t)align - 1;
 119	mem_virt_alloc = pci_zalloc_consistent(pdev, mem_size + align,
 120					       &mem_dma_handle);
 121	if (!mem_virt_alloc) {
 122		pm8001_printk("memory allocation error\n");
 123		return -1;
 124	}
 125	*pphys_addr = mem_dma_handle;
 126	phys_align = (*pphys_addr + align_offset) & ~align_offset;
 127	*virt_addr = (void *)mem_virt_alloc + phys_align - *pphys_addr;
 128	*pphys_addr_hi = upper_32_bits(phys_align);
 129	*pphys_addr_lo = lower_32_bits(phys_align);
 130	return 0;
 131}
 
 132/**
 133  * pm8001_find_ha_by_dev - from domain device which come from sas layer to
 134  * find out our hba struct.
 135  * @dev: the domain device which from sas layer.
 136  */
 137static
 138struct pm8001_hba_info *pm8001_find_ha_by_dev(struct domain_device *dev)
 139{
 140	struct sas_ha_struct *sha = dev->port->ha;
 141	struct pm8001_hba_info *pm8001_ha = sha->lldd_ha;
 142	return pm8001_ha;
 143}
 144
 145/**
 146  * pm8001_phy_control - this function should be registered to
 147  * sas_domain_function_template to provide libsas used, note: this is just
 148  * control the HBA phy rather than other expander phy if you want control
 149  * other phy, you should use SMP command.
 150  * @sas_phy: which phy in HBA phys.
 151  * @func: the operation.
 152  * @funcdata: always NULL.
 153  */
 154int pm8001_phy_control(struct asd_sas_phy *sas_phy, enum phy_func func,
 155	void *funcdata)
 156{
 157	int rc = 0, phy_id = sas_phy->id;
 158	struct pm8001_hba_info *pm8001_ha = NULL;
 159	struct sas_phy_linkrates *rates;
 
 160	DECLARE_COMPLETION_ONSTACK(completion);
 161	unsigned long flags;
 162	pm8001_ha = sas_phy->ha->lldd_ha;
 
 163	pm8001_ha->phy[phy_id].enable_completion = &completion;
 164	switch (func) {
 165	case PHY_FUNC_SET_LINK_RATE:
 166		rates = funcdata;
 167		if (rates->minimum_linkrate) {
 168			pm8001_ha->phy[phy_id].minimum_linkrate =
 169				rates->minimum_linkrate;
 170		}
 171		if (rates->maximum_linkrate) {
 172			pm8001_ha->phy[phy_id].maximum_linkrate =
 173				rates->maximum_linkrate;
 174		}
 175		if (pm8001_ha->phy[phy_id].phy_state == 0) {
 176			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 177			wait_for_completion(&completion);
 178		}
 179		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 180					      PHY_LINK_RESET);
 181		break;
 182	case PHY_FUNC_HARD_RESET:
 183		if (pm8001_ha->phy[phy_id].phy_state == 0) {
 184			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 185			wait_for_completion(&completion);
 186		}
 187		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 188					      PHY_HARD_RESET);
 189		break;
 190	case PHY_FUNC_LINK_RESET:
 191		if (pm8001_ha->phy[phy_id].phy_state == 0) {
 192			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 193			wait_for_completion(&completion);
 194		}
 195		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 196					      PHY_LINK_RESET);
 197		break;
 198	case PHY_FUNC_RELEASE_SPINUP_HOLD:
 199		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 200					      PHY_LINK_RESET);
 201		break;
 202	case PHY_FUNC_DISABLE:
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 203		PM8001_CHIP_DISP->phy_stop_req(pm8001_ha, phy_id);
 204		break;
 205	case PHY_FUNC_GET_EVENTS:
 206		spin_lock_irqsave(&pm8001_ha->lock, flags);
 207		if (pm8001_ha->chip_id == chip_8001) {
 208			if (-1 == pm8001_bar4_shift(pm8001_ha,
 209					(phy_id < 4) ? 0x30000 : 0x40000)) {
 210				spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 211				return -EINVAL;
 212			}
 213		}
 214		{
 215			struct sas_phy *phy = sas_phy->phy;
 216			uint32_t *qp = (uint32_t *)(((char *)
 217				pm8001_ha->io_mem[2].memvirtaddr)
 218				+ 0x1034 + (0x4000 * (phy_id & 3)));
 219
 220			phy->invalid_dword_count = qp[0];
 221			phy->running_disparity_error_count = qp[1];
 222			phy->loss_of_dword_sync_count = qp[3];
 223			phy->phy_reset_problem_count = qp[4];
 224		}
 225		if (pm8001_ha->chip_id == chip_8001)
 226			pm8001_bar4_shift(pm8001_ha, 0);
 227		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 228		return 0;
 229	default:
 
 230		rc = -EOPNOTSUPP;
 231	}
 232	msleep(300);
 233	return rc;
 234}
 235
 236/**
 237  * pm8001_scan_start - we should enable all HBA phys by sending the phy_start
 238  * command to HBA.
 239  * @shost: the scsi host data.
 240  */
 241void pm8001_scan_start(struct Scsi_Host *shost)
 242{
 243	int i;
 244	struct pm8001_hba_info *pm8001_ha;
 245	struct sas_ha_struct *sha = SHOST_TO_SAS_HA(shost);
 
 246	pm8001_ha = sha->lldd_ha;
 247	/* SAS_RE_INITIALIZATION not available in SPCv/ve */
 248	if (pm8001_ha->chip_id == chip_8001)
 249		PM8001_CHIP_DISP->sas_re_init_req(pm8001_ha);
 250	for (i = 0; i < pm8001_ha->chip->n_phy; ++i)
 
 251		PM8001_CHIP_DISP->phy_start_req(pm8001_ha, i);
 
 
 
 252}
 253
 254int pm8001_scan_finished(struct Scsi_Host *shost, unsigned long time)
 255{
 256	struct sas_ha_struct *ha = SHOST_TO_SAS_HA(shost);
 257
 258	/* give the phy enabling interrupt event time to come in (1s
 259	* is empirically about all it takes) */
 260	if (time < HZ)
 261		return 0;
 262	/* Wait for discovery to finish */
 263	sas_drain_work(ha);
 264	return 1;
 265}
 266
 267/**
 268  * pm8001_task_prep_smp - the dispatcher function, prepare data for smp task
 269  * @pm8001_ha: our hba card information
 270  * @ccb: the ccb which attached to smp task
 271  */
 272static int pm8001_task_prep_smp(struct pm8001_hba_info *pm8001_ha,
 273	struct pm8001_ccb_info *ccb)
 274{
 275	return PM8001_CHIP_DISP->smp_req(pm8001_ha, ccb);
 276}
 277
 278u32 pm8001_get_ncq_tag(struct sas_task *task, u32 *tag)
 279{
 280	struct ata_queued_cmd *qc = task->uldd_task;
 281	if (qc) {
 282		if (qc->tf.command == ATA_CMD_FPDMA_WRITE ||
 283		    qc->tf.command == ATA_CMD_FPDMA_READ ||
 284		    qc->tf.command == ATA_CMD_FPDMA_RECV ||
 285		    qc->tf.command == ATA_CMD_FPDMA_SEND ||
 286		    qc->tf.command == ATA_CMD_NCQ_NON_DATA) {
 287			*tag = qc->tag;
 288			return 1;
 289		}
 290	}
 291	return 0;
 292}
 293
 294/**
 295  * pm8001_task_prep_ata - the dispatcher function, prepare data for sata task
 296  * @pm8001_ha: our hba card information
 297  * @ccb: the ccb which attached to sata task
 298  */
 299static int pm8001_task_prep_ata(struct pm8001_hba_info *pm8001_ha,
 300	struct pm8001_ccb_info *ccb)
 301{
 302	return PM8001_CHIP_DISP->sata_req(pm8001_ha, ccb);
 303}
 304
 305/**
 306  * pm8001_task_prep_ssp_tm - the dispatcher function, prepare task management data
 307  * @pm8001_ha: our hba card information
 308  * @ccb: the ccb which attached to TM
 309  * @tmf: the task management IU
 310  */
 311static int pm8001_task_prep_ssp_tm(struct pm8001_hba_info *pm8001_ha,
 312	struct pm8001_ccb_info *ccb, struct pm8001_tmf_task *tmf)
 313{
 314	return PM8001_CHIP_DISP->ssp_tm_req(pm8001_ha, ccb, tmf);
 315}
 316
 317/**
 318  * pm8001_task_prep_ssp - the dispatcher function,prepare ssp data for ssp task
 319  * @pm8001_ha: our hba card information
 320  * @ccb: the ccb which attached to ssp task
 321  */
 322static int pm8001_task_prep_ssp(struct pm8001_hba_info *pm8001_ha,
 323	struct pm8001_ccb_info *ccb)
 324{
 325	return PM8001_CHIP_DISP->ssp_io_req(pm8001_ha, ccb);
 326}
 327
 328 /* Find the local port id that's attached to this device */
 329static int sas_find_local_port_id(struct domain_device *dev)
 330{
 331	struct domain_device *pdev = dev->parent;
 332
 333	/* Directly attached device */
 334	if (!pdev)
 335		return dev->port->id;
 336	while (pdev) {
 337		struct domain_device *pdev_p = pdev->parent;
 338		if (!pdev_p)
 339			return pdev->port->id;
 340		pdev = pdev->parent;
 341	}
 342	return 0;
 343}
 344
 
 
 345/**
 346  * pm8001_task_exec - queue the task(ssp, smp && ata) to the hardware.
 347  * @task: the task to be execute.
 348  * @num: if can_queue great than 1, the task can be queued up. for SMP task,
 349  * we always execute one one time.
 350  * @gfp_flags: gfp_flags.
 351  * @is_tmf: if it is task management task.
 352  * @tmf: the task management IU
 353  */
 354#define DEV_IS_GONE(pm8001_dev)	\
 355	((!pm8001_dev || (pm8001_dev->dev_type == SAS_PHY_UNUSED)))
 356static int pm8001_task_exec(struct sas_task *task,
 357	gfp_t gfp_flags, int is_tmf, struct pm8001_tmf_task *tmf)
 358{
 359	struct domain_device *dev = task->dev;
 360	struct pm8001_hba_info *pm8001_ha;
 361	struct pm8001_device *pm8001_dev;
 362	struct pm8001_port *port = NULL;
 363	struct sas_task *t = task;
 364	struct pm8001_ccb_info *ccb;
 365	u32 tag = 0xdeadbeef, rc, n_elem = 0;
 366	unsigned long flags = 0;
 
 367
 368	if (!dev->port) {
 369		struct task_status_struct *tsm = &t->task_status;
 370		tsm->resp = SAS_TASK_UNDELIVERED;
 371		tsm->stat = SAS_PHY_DOWN;
 372		if (dev->dev_type != SAS_SATA_DEV)
 373			t->task_done(t);
 374		return 0;
 375	}
 376	pm8001_ha = pm8001_find_ha_by_dev(task->dev);
 377	PM8001_IO_DBG(pm8001_ha, pm8001_printk("pm8001_task_exec device \n "));
 
 
 
 
 
 
 
 378	spin_lock_irqsave(&pm8001_ha->lock, flags);
 379	do {
 380		dev = t->dev;
 381		pm8001_dev = dev->lldd_dev;
 382		port = &pm8001_ha->port[sas_find_local_port_id(dev)];
 383		if (DEV_IS_GONE(pm8001_dev) || !port->port_attached) {
 384			if (sas_protocol_ata(t->task_proto)) {
 385				struct task_status_struct *ts = &t->task_status;
 386				ts->resp = SAS_TASK_UNDELIVERED;
 387				ts->stat = SAS_PHY_DOWN;
 388
 389				spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 390				t->task_done(t);
 391				spin_lock_irqsave(&pm8001_ha->lock, flags);
 392				continue;
 393			} else {
 394				struct task_status_struct *ts = &t->task_status;
 395				ts->resp = SAS_TASK_UNDELIVERED;
 396				ts->stat = SAS_PHY_DOWN;
 397				t->task_done(t);
 398				continue;
 399			}
 400		}
 401		rc = pm8001_tag_alloc(pm8001_ha, &tag);
 402		if (rc)
 403			goto err_out;
 404		ccb = &pm8001_ha->ccb_info[tag];
 405
 406		if (!sas_protocol_ata(t->task_proto)) {
 407			if (t->num_scatter) {
 408				n_elem = dma_map_sg(pm8001_ha->dev,
 409					t->scatter,
 410					t->num_scatter,
 411					t->data_dir);
 412				if (!n_elem) {
 413					rc = -ENOMEM;
 414					goto err_out_tag;
 415				}
 416			}
 417		} else {
 418			n_elem = t->num_scatter;
 419		}
 420
 421		t->lldd_task = ccb;
 422		ccb->n_elem = n_elem;
 423		ccb->ccb_tag = tag;
 424		ccb->task = t;
 425		ccb->device = pm8001_dev;
 426		switch (t->task_proto) {
 427		case SAS_PROTOCOL_SMP:
 
 428			rc = pm8001_task_prep_smp(pm8001_ha, ccb);
 429			break;
 430		case SAS_PROTOCOL_SSP:
 
 431			if (is_tmf)
 432				rc = pm8001_task_prep_ssp_tm(pm8001_ha,
 433					ccb, tmf);
 434			else
 435				rc = pm8001_task_prep_ssp(pm8001_ha, ccb);
 436			break;
 437		case SAS_PROTOCOL_SATA:
 438		case SAS_PROTOCOL_STP:
 
 439			rc = pm8001_task_prep_ata(pm8001_ha, ccb);
 440			break;
 441		default:
 442			dev_printk(KERN_ERR, pm8001_ha->dev,
 443				"unknown sas_task proto: 0x%x\n",
 444				t->task_proto);
 445			rc = -EINVAL;
 446			break;
 447		}
 448
 449		if (rc) {
 450			PM8001_IO_DBG(pm8001_ha,
 451				pm8001_printk("rc is %x\n", rc));
 452			goto err_out_tag;
 453		}
 454		/* TODO: select normal or high priority */
 455		spin_lock(&t->task_state_lock);
 456		t->task_state_flags |= SAS_TASK_AT_INITIATOR;
 457		spin_unlock(&t->task_state_lock);
 458		pm8001_dev->running_req++;
 459	} while (0);
 460	rc = 0;
 461	goto out_done;
 462
 463err_out_tag:
 464	pm8001_tag_free(pm8001_ha, tag);
 465err_out:
 466	dev_printk(KERN_ERR, pm8001_ha->dev, "pm8001 exec failed[%d]!\n", rc);
 467	if (!sas_protocol_ata(t->task_proto))
 468		if (n_elem)
 469			dma_unmap_sg(pm8001_ha->dev, t->scatter, n_elem,
 470				t->data_dir);
 471out_done:
 472	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 473	return rc;
 474}
 475
 476/**
 477  * pm8001_queue_command - register for upper layer used, all IO commands sent
 478  * to HBA are from this interface.
 479  * @task: the task to be execute.
 480  * @gfp_flags: gfp_flags
 481  */
 482int pm8001_queue_command(struct sas_task *task, gfp_t gfp_flags)
 483{
 484	return pm8001_task_exec(task, gfp_flags, 0, NULL);
 485}
 486
 487/**
 488  * pm8001_ccb_task_free - free the sg for ssp and smp command, free the ccb.
 489  * @pm8001_ha: our hba card information
 490  * @ccb: the ccb which attached to ssp task
 491  * @task: the task to be free.
 492  * @ccb_idx: ccb index.
 493  */
 494void pm8001_ccb_task_free(struct pm8001_hba_info *pm8001_ha,
 495	struct sas_task *task, struct pm8001_ccb_info *ccb, u32 ccb_idx)
 496{
 497	if (!ccb->task)
 498		return;
 499	if (!sas_protocol_ata(task->task_proto))
 500		if (ccb->n_elem)
 501			dma_unmap_sg(pm8001_ha->dev, task->scatter,
 502				task->num_scatter, task->data_dir);
 503
 504	switch (task->task_proto) {
 505	case SAS_PROTOCOL_SMP:
 506		dma_unmap_sg(pm8001_ha->dev, &task->smp_task.smp_resp, 1,
 507			PCI_DMA_FROMDEVICE);
 508		dma_unmap_sg(pm8001_ha->dev, &task->smp_task.smp_req, 1,
 509			PCI_DMA_TODEVICE);
 510		break;
 511
 512	case SAS_PROTOCOL_SATA:
 513	case SAS_PROTOCOL_STP:
 514	case SAS_PROTOCOL_SSP:
 515	default:
 516		/* do nothing */
 517		break;
 518	}
 519	task->lldd_task = NULL;
 520	ccb->task = NULL;
 521	ccb->ccb_tag = 0xFFFFFFFF;
 522	ccb->open_retry = 0;
 523	pm8001_tag_free(pm8001_ha, ccb_idx);
 524}
 525
 526 /**
 527  * pm8001_alloc_dev - find a empty pm8001_device
 528  * @pm8001_ha: our hba card information
 529  */
 530static struct pm8001_device *pm8001_alloc_dev(struct pm8001_hba_info *pm8001_ha)
 531{
 532	u32 dev;
 533	for (dev = 0; dev < PM8001_MAX_DEVICES; dev++) {
 534		if (pm8001_ha->devices[dev].dev_type == SAS_PHY_UNUSED) {
 535			pm8001_ha->devices[dev].id = dev;
 536			return &pm8001_ha->devices[dev];
 537		}
 538	}
 539	if (dev == PM8001_MAX_DEVICES) {
 540		PM8001_FAIL_DBG(pm8001_ha,
 541			pm8001_printk("max support %d devices, ignore ..\n",
 542			PM8001_MAX_DEVICES));
 543	}
 544	return NULL;
 545}
 546/**
 547  * pm8001_find_dev - find a matching pm8001_device
 548  * @pm8001_ha: our hba card information
 
 549  */
 550struct pm8001_device *pm8001_find_dev(struct pm8001_hba_info *pm8001_ha,
 551					u32 device_id)
 552{
 553	u32 dev;
 554	for (dev = 0; dev < PM8001_MAX_DEVICES; dev++) {
 555		if (pm8001_ha->devices[dev].device_id == device_id)
 556			return &pm8001_ha->devices[dev];
 557	}
 558	if (dev == PM8001_MAX_DEVICES) {
 559		PM8001_FAIL_DBG(pm8001_ha, pm8001_printk("NO MATCHING "
 560				"DEVICE FOUND !!!\n"));
 561	}
 562	return NULL;
 563}
 564
 565static void pm8001_free_dev(struct pm8001_device *pm8001_dev)
 566{
 567	u32 id = pm8001_dev->id;
 568	memset(pm8001_dev, 0, sizeof(*pm8001_dev));
 569	pm8001_dev->id = id;
 570	pm8001_dev->dev_type = SAS_PHY_UNUSED;
 571	pm8001_dev->device_id = PM8001_MAX_DEVICES;
 572	pm8001_dev->sas_device = NULL;
 573}
 574
 575/**
 576  * pm8001_dev_found_notify - libsas notify a device is found.
 577  * @dev: the device structure which sas layer used.
 578  *
 579  * when libsas find a sas domain device, it should tell the LLDD that
 580  * device is found, and then LLDD register this device to HBA firmware
 581  * by the command "OPC_INB_REG_DEV", after that the HBA will assign a
 582  * device ID(according to device's sas address) and returned it to LLDD. From
 583  * now on, we communicate with HBA FW with the device ID which HBA assigned
 584  * rather than sas address. it is the necessary step for our HBA but it is
 585  * the optional for other HBA driver.
 586  */
 587static int pm8001_dev_found_notify(struct domain_device *dev)
 588{
 589	unsigned long flags = 0;
 590	int res = 0;
 591	struct pm8001_hba_info *pm8001_ha = NULL;
 592	struct domain_device *parent_dev = dev->parent;
 593	struct pm8001_device *pm8001_device;
 594	DECLARE_COMPLETION_ONSTACK(completion);
 595	u32 flag = 0;
 596	pm8001_ha = pm8001_find_ha_by_dev(dev);
 597	spin_lock_irqsave(&pm8001_ha->lock, flags);
 598
 599	pm8001_device = pm8001_alloc_dev(pm8001_ha);
 600	if (!pm8001_device) {
 601		res = -1;
 602		goto found_out;
 603	}
 604	pm8001_device->sas_device = dev;
 605	dev->lldd_dev = pm8001_device;
 606	pm8001_device->dev_type = dev->dev_type;
 607	pm8001_device->dcompletion = &completion;
 608	if (parent_dev && DEV_IS_EXPANDER(parent_dev->dev_type)) {
 609		int phy_id;
 610		struct ex_phy *phy;
 611		for (phy_id = 0; phy_id < parent_dev->ex_dev.num_phys;
 612		phy_id++) {
 613			phy = &parent_dev->ex_dev.ex_phy[phy_id];
 614			if (SAS_ADDR(phy->attached_sas_addr)
 615				== SAS_ADDR(dev->sas_addr)) {
 616				pm8001_device->attached_phy = phy_id;
 617				break;
 618			}
 619		}
 620		if (phy_id == parent_dev->ex_dev.num_phys) {
 621			PM8001_FAIL_DBG(pm8001_ha,
 622			pm8001_printk("Error: no attached dev:%016llx"
 623			" at ex:%016llx.\n", SAS_ADDR(dev->sas_addr),
 624				SAS_ADDR(parent_dev->sas_addr)));
 625			res = -1;
 626		}
 627	} else {
 628		if (dev->dev_type == SAS_SATA_DEV) {
 629			pm8001_device->attached_phy =
 630				dev->rphy->identify.phy_identifier;
 631				flag = 1; /* directly sata*/
 632		}
 633	} /*register this device to HBA*/
 634	PM8001_DISC_DBG(pm8001_ha, pm8001_printk("Found device\n"));
 635	PM8001_CHIP_DISP->reg_dev_req(pm8001_ha, pm8001_device, flag);
 636	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 637	wait_for_completion(&completion);
 638	if (dev->dev_type == SAS_END_DEVICE)
 639		msleep(50);
 640	pm8001_ha->flags = PM8001F_RUN_TIME;
 641	return 0;
 642found_out:
 643	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 644	return res;
 645}
 646
 647int pm8001_dev_found(struct domain_device *dev)
 648{
 649	return pm8001_dev_found_notify(dev);
 650}
 651
 652void pm8001_task_done(struct sas_task *task)
 653{
 654	if (!del_timer(&task->slow_task->timer))
 655		return;
 656	complete(&task->slow_task->completion);
 657}
 658
 659static void pm8001_tmf_timedout(struct timer_list *t)
 660{
 661	struct sas_task_slow *slow = from_timer(slow, t, timer);
 662	struct sas_task *task = slow->task;
 
 663
 664	task->task_state_flags |= SAS_TASK_STATE_ABORTED;
 665	complete(&task->slow_task->completion);
 
 
 
 
 666}
 667
 668#define PM8001_TASK_TIMEOUT 20
 669/**
 670  * pm8001_exec_internal_tmf_task - execute some task management commands.
 671  * @dev: the wanted device.
 672  * @tmf: which task management wanted to be take.
 673  * @para_len: para_len.
 674  * @parameter: ssp task parameter.
 675  *
 676  * when errors or exception happened, we may want to do something, for example
 677  * abort the issued task which result in this execption, it is done by calling
 678  * this function, note it is also with the task execute interface.
 679  */
 680static int pm8001_exec_internal_tmf_task(struct domain_device *dev,
 681	void *parameter, u32 para_len, struct pm8001_tmf_task *tmf)
 682{
 683	int res, retry;
 684	struct sas_task *task = NULL;
 685	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
 686	struct pm8001_device *pm8001_dev = dev->lldd_dev;
 687	DECLARE_COMPLETION_ONSTACK(completion_setstate);
 688
 689	for (retry = 0; retry < 3; retry++) {
 690		task = sas_alloc_slow_task(GFP_KERNEL);
 691		if (!task)
 692			return -ENOMEM;
 693
 694		task->dev = dev;
 695		task->task_proto = dev->tproto;
 696		memcpy(&task->ssp_task, parameter, para_len);
 697		task->task_done = pm8001_task_done;
 698		task->slow_task->timer.function = pm8001_tmf_timedout;
 699		task->slow_task->timer.expires = jiffies + PM8001_TASK_TIMEOUT*HZ;
 700		add_timer(&task->slow_task->timer);
 701
 702		res = pm8001_task_exec(task, GFP_KERNEL, 1, tmf);
 703
 704		if (res) {
 705			del_timer(&task->slow_task->timer);
 706			PM8001_FAIL_DBG(pm8001_ha,
 707				pm8001_printk("Executing internal task "
 708				"failed\n"));
 709			goto ex_err;
 710		}
 711		wait_for_completion(&task->slow_task->completion);
 712		if (pm8001_ha->chip_id != chip_8001) {
 713			pm8001_dev->setds_completion = &completion_setstate;
 714				PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
 715					pm8001_dev, 0x01);
 716			wait_for_completion(&completion_setstate);
 717		}
 718		res = -TMF_RESP_FUNC_FAILED;
 719		/* Even TMF timed out, return direct. */
 720		if ((task->task_state_flags & SAS_TASK_STATE_ABORTED)) {
 721			if (!(task->task_state_flags & SAS_TASK_STATE_DONE)) {
 722				PM8001_FAIL_DBG(pm8001_ha,
 723					pm8001_printk("TMF task[%x]timeout.\n",
 724					tmf->tmf));
 725				goto ex_err;
 726			}
 727		}
 728
 729		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 730			task->task_status.stat == SAM_STAT_GOOD) {
 731			res = TMF_RESP_FUNC_COMPLETE;
 732			break;
 733		}
 734
 735		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 736		task->task_status.stat == SAS_DATA_UNDERRUN) {
 737			/* no error, but return the number of bytes of
 738			* underrun */
 739			res = task->task_status.residual;
 740			break;
 741		}
 742
 743		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 744			task->task_status.stat == SAS_DATA_OVERRUN) {
 745			PM8001_FAIL_DBG(pm8001_ha,
 746				pm8001_printk("Blocked task error.\n"));
 747			res = -EMSGSIZE;
 748			break;
 749		} else {
 750			PM8001_EH_DBG(pm8001_ha,
 751				pm8001_printk(" Task to dev %016llx response:"
 752				"0x%x status 0x%x\n",
 753				SAS_ADDR(dev->sas_addr),
 754				task->task_status.resp,
 755				task->task_status.stat));
 756			sas_free_task(task);
 757			task = NULL;
 758		}
 759	}
 760ex_err:
 761	BUG_ON(retry == 3 && task != NULL);
 762	sas_free_task(task);
 763	return res;
 764}
 765
 766static int
 767pm8001_exec_internal_task_abort(struct pm8001_hba_info *pm8001_ha,
 768	struct pm8001_device *pm8001_dev, struct domain_device *dev, u32 flag,
 769	u32 task_tag)
 770{
 771	int res, retry;
 772	u32 ccb_tag;
 773	struct pm8001_ccb_info *ccb;
 774	struct sas_task *task = NULL;
 775
 776	for (retry = 0; retry < 3; retry++) {
 777		task = sas_alloc_slow_task(GFP_KERNEL);
 778		if (!task)
 779			return -ENOMEM;
 780
 781		task->dev = dev;
 782		task->task_proto = dev->tproto;
 783		task->task_done = pm8001_task_done;
 784		task->slow_task->timer.function = pm8001_tmf_timedout;
 785		task->slow_task->timer.expires = jiffies + PM8001_TASK_TIMEOUT * HZ;
 786		add_timer(&task->slow_task->timer);
 787
 788		res = pm8001_tag_alloc(pm8001_ha, &ccb_tag);
 789		if (res)
 790			return res;
 791		ccb = &pm8001_ha->ccb_info[ccb_tag];
 792		ccb->device = pm8001_dev;
 793		ccb->ccb_tag = ccb_tag;
 794		ccb->task = task;
 795		ccb->n_elem = 0;
 796
 797		res = PM8001_CHIP_DISP->task_abort(pm8001_ha,
 798			pm8001_dev, flag, task_tag, ccb_tag);
 799
 800		if (res) {
 801			del_timer(&task->slow_task->timer);
 802			PM8001_FAIL_DBG(pm8001_ha,
 803				pm8001_printk("Executing internal task "
 804				"failed\n"));
 805			goto ex_err;
 806		}
 807		wait_for_completion(&task->slow_task->completion);
 808		res = TMF_RESP_FUNC_FAILED;
 809		/* Even TMF timed out, return direct. */
 810		if ((task->task_state_flags & SAS_TASK_STATE_ABORTED)) {
 811			if (!(task->task_state_flags & SAS_TASK_STATE_DONE)) {
 812				PM8001_FAIL_DBG(pm8001_ha,
 813					pm8001_printk("TMF task timeout.\n"));
 814				goto ex_err;
 815			}
 816		}
 817
 818		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 819			task->task_status.stat == SAM_STAT_GOOD) {
 820			res = TMF_RESP_FUNC_COMPLETE;
 821			break;
 822
 823		} else {
 824			PM8001_EH_DBG(pm8001_ha,
 825				pm8001_printk(" Task to dev %016llx response: "
 826					"0x%x status 0x%x\n",
 827				SAS_ADDR(dev->sas_addr),
 828				task->task_status.resp,
 829				task->task_status.stat));
 830			sas_free_task(task);
 831			task = NULL;
 832		}
 833	}
 834ex_err:
 835	BUG_ON(retry == 3 && task != NULL);
 836	sas_free_task(task);
 837	return res;
 838}
 839
 840/**
 841  * pm8001_dev_gone_notify - see the comments for "pm8001_dev_found_notify"
 842  * @dev: the device structure which sas layer used.
 843  */
 844static void pm8001_dev_gone_notify(struct domain_device *dev)
 845{
 846	unsigned long flags = 0;
 847	struct pm8001_hba_info *pm8001_ha;
 848	struct pm8001_device *pm8001_dev = dev->lldd_dev;
 849
 850	pm8001_ha = pm8001_find_ha_by_dev(dev);
 851	spin_lock_irqsave(&pm8001_ha->lock, flags);
 852	if (pm8001_dev) {
 853		u32 device_id = pm8001_dev->device_id;
 854
 855		PM8001_DISC_DBG(pm8001_ha,
 856			pm8001_printk("found dev[%d:%x] is gone.\n",
 857			pm8001_dev->device_id, pm8001_dev->dev_type));
 858		if (pm8001_dev->running_req) {
 859			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 860			pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev ,
 861				dev, 1, 0);
 
 
 862			spin_lock_irqsave(&pm8001_ha->lock, flags);
 863		}
 864		PM8001_CHIP_DISP->dereg_dev_req(pm8001_ha, device_id);
 865		pm8001_free_dev(pm8001_dev);
 866	} else {
 867		PM8001_DISC_DBG(pm8001_ha,
 868			pm8001_printk("Found dev has gone.\n"));
 869	}
 870	dev->lldd_dev = NULL;
 871	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 872}
 873
 874void pm8001_dev_gone(struct domain_device *dev)
 875{
 876	pm8001_dev_gone_notify(dev);
 877}
 878
 879static int pm8001_issue_ssp_tmf(struct domain_device *dev,
 880	u8 *lun, struct pm8001_tmf_task *tmf)
 881{
 882	struct sas_ssp_task ssp_task;
 883	if (!(dev->tproto & SAS_PROTOCOL_SSP))
 884		return TMF_RESP_FUNC_ESUPP;
 885
 886	strncpy((u8 *)&ssp_task.LUN, lun, 8);
 887	return pm8001_exec_internal_tmf_task(dev, &ssp_task, sizeof(ssp_task),
 888		tmf);
 889}
 890
 891/* retry commands by ha, by task and/or by device */
 892void pm8001_open_reject_retry(
 893	struct pm8001_hba_info *pm8001_ha,
 894	struct sas_task *task_to_close,
 895	struct pm8001_device *device_to_close)
 896{
 897	int i;
 898	unsigned long flags;
 899
 900	if (pm8001_ha == NULL)
 901		return;
 902
 903	spin_lock_irqsave(&pm8001_ha->lock, flags);
 904
 905	for (i = 0; i < PM8001_MAX_CCB; i++) {
 906		struct sas_task *task;
 907		struct task_status_struct *ts;
 908		struct pm8001_device *pm8001_dev;
 909		unsigned long flags1;
 910		u32 tag;
 911		struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[i];
 912
 913		pm8001_dev = ccb->device;
 914		if (!pm8001_dev || (pm8001_dev->dev_type == SAS_PHY_UNUSED))
 915			continue;
 916		if (!device_to_close) {
 917			uintptr_t d = (uintptr_t)pm8001_dev
 918					- (uintptr_t)&pm8001_ha->devices;
 919			if (((d % sizeof(*pm8001_dev)) != 0)
 920			 || ((d / sizeof(*pm8001_dev)) >= PM8001_MAX_DEVICES))
 921				continue;
 922		} else if (pm8001_dev != device_to_close)
 923			continue;
 924		tag = ccb->ccb_tag;
 925		if (!tag || (tag == 0xFFFFFFFF))
 926			continue;
 927		task = ccb->task;
 928		if (!task || !task->task_done)
 929			continue;
 930		if (task_to_close && (task != task_to_close))
 931			continue;
 932		ts = &task->task_status;
 933		ts->resp = SAS_TASK_COMPLETE;
 934		/* Force the midlayer to retry */
 935		ts->stat = SAS_OPEN_REJECT;
 936		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
 937		if (pm8001_dev)
 938			pm8001_dev->running_req--;
 939		spin_lock_irqsave(&task->task_state_lock, flags1);
 940		task->task_state_flags &= ~SAS_TASK_STATE_PENDING;
 941		task->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
 942		task->task_state_flags |= SAS_TASK_STATE_DONE;
 943		if (unlikely((task->task_state_flags
 944				& SAS_TASK_STATE_ABORTED))) {
 945			spin_unlock_irqrestore(&task->task_state_lock,
 946				flags1);
 947			pm8001_ccb_task_free(pm8001_ha, task, ccb, tag);
 948		} else {
 949			spin_unlock_irqrestore(&task->task_state_lock,
 950				flags1);
 951			pm8001_ccb_task_free(pm8001_ha, task, ccb, tag);
 952			mb();/* in order to force CPU ordering */
 953			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 954			task->task_done(task);
 955			spin_lock_irqsave(&pm8001_ha->lock, flags);
 956		}
 957	}
 958
 959	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 960}
 961
 962/**
 963  * Standard mandates link reset for ATA  (type 0) and hard reset for
 964  * SSP (type 1) , only for RECOVERY
 965  */
 
 
 
 966int pm8001_I_T_nexus_reset(struct domain_device *dev)
 967{
 968	int rc = TMF_RESP_FUNC_FAILED;
 969	struct pm8001_device *pm8001_dev;
 970	struct pm8001_hba_info *pm8001_ha;
 971	struct sas_phy *phy;
 972
 973	if (!dev || !dev->lldd_dev)
 974		return -ENODEV;
 975
 976	pm8001_dev = dev->lldd_dev;
 977	pm8001_ha = pm8001_find_ha_by_dev(dev);
 978	phy = sas_get_local_phy(dev);
 979
 980	if (dev_is_sata(dev)) {
 981		if (scsi_is_sas_phy_local(phy)) {
 982			rc = 0;
 983			goto out;
 984		}
 985		rc = sas_phy_reset(phy, 1);
 986		if (rc) {
 987			PM8001_EH_DBG(pm8001_ha,
 988			pm8001_printk("phy reset failed for device %x\n"
 989			"with rc %d\n", pm8001_dev->device_id, rc));
 990			rc = TMF_RESP_FUNC_FAILED;
 991			goto out;
 992		}
 993		msleep(2000);
 994		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev ,
 995			dev, 1, 0);
 996		if (rc) {
 997			PM8001_EH_DBG(pm8001_ha,
 998			pm8001_printk("task abort failed %x\n"
 999			"with rc %d\n", pm8001_dev->device_id, rc));
1000			rc = TMF_RESP_FUNC_FAILED;
1001		}
1002	} else {
1003		rc = sas_phy_reset(phy, 1);
1004		msleep(2000);
1005	}
1006	PM8001_EH_DBG(pm8001_ha, pm8001_printk(" for device[%x]:rc=%d\n",
1007		pm8001_dev->device_id, rc));
1008 out:
1009	sas_put_local_phy(phy);
1010	return rc;
1011}
1012
1013/*
1014* This function handle the IT_NEXUS_XXX event or completion
1015* status code for SSP/SATA/SMP I/O request.
1016*/
1017int pm8001_I_T_nexus_event_handler(struct domain_device *dev)
1018{
1019	int rc = TMF_RESP_FUNC_FAILED;
1020	struct pm8001_device *pm8001_dev;
1021	struct pm8001_hba_info *pm8001_ha;
1022	struct sas_phy *phy;
1023	u32 device_id = 0;
1024
1025	if (!dev || !dev->lldd_dev)
1026		return -1;
1027
1028	pm8001_dev = dev->lldd_dev;
1029	device_id = pm8001_dev->device_id;
1030	pm8001_ha = pm8001_find_ha_by_dev(dev);
1031
1032	PM8001_EH_DBG(pm8001_ha,
1033			pm8001_printk("I_T_Nexus handler invoked !!"));
1034
1035	phy = sas_get_local_phy(dev);
1036
1037	if (dev_is_sata(dev)) {
1038		DECLARE_COMPLETION_ONSTACK(completion_setstate);
1039		if (scsi_is_sas_phy_local(phy)) {
1040			rc = 0;
1041			goto out;
1042		}
1043		/* send internal ssp/sata/smp abort command to FW */
1044		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev ,
1045							dev, 1, 0);
1046		msleep(100);
1047
1048		/* deregister the target device */
1049		pm8001_dev_gone_notify(dev);
1050		msleep(200);
1051
1052		/*send phy reset to hard reset target */
1053		rc = sas_phy_reset(phy, 1);
1054		msleep(2000);
1055		pm8001_dev->setds_completion = &completion_setstate;
1056
1057		wait_for_completion(&completion_setstate);
1058	} else {
1059		/* send internal ssp/sata/smp abort command to FW */
1060		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev ,
1061							dev, 1, 0);
1062		msleep(100);
1063
1064		/* deregister the target device */
1065		pm8001_dev_gone_notify(dev);
1066		msleep(200);
1067
1068		/*send phy reset to hard reset target */
1069		rc = sas_phy_reset(phy, 1);
1070		msleep(2000);
1071	}
1072	PM8001_EH_DBG(pm8001_ha, pm8001_printk(" for device[%x]:rc=%d\n",
1073		pm8001_dev->device_id, rc));
1074out:
1075	sas_put_local_phy(phy);
1076
1077	return rc;
1078}
1079/* mandatory SAM-3, the task reset the specified LUN*/
1080int pm8001_lu_reset(struct domain_device *dev, u8 *lun)
1081{
1082	int rc = TMF_RESP_FUNC_FAILED;
1083	struct pm8001_tmf_task tmf_task;
1084	struct pm8001_device *pm8001_dev = dev->lldd_dev;
1085	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
1086	DECLARE_COMPLETION_ONSTACK(completion_setstate);
1087	if (dev_is_sata(dev)) {
1088		struct sas_phy *phy = sas_get_local_phy(dev);
1089		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev ,
1090			dev, 1, 0);
1091		rc = sas_phy_reset(phy, 1);
1092		sas_put_local_phy(phy);
1093		pm8001_dev->setds_completion = &completion_setstate;
1094		rc = PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1095			pm8001_dev, 0x01);
1096		wait_for_completion(&completion_setstate);
1097	} else {
1098		tmf_task.tmf = TMF_LU_RESET;
1099		rc = pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
1100	}
1101	/* If failed, fall-through I_T_Nexus reset */
1102	PM8001_EH_DBG(pm8001_ha, pm8001_printk("for device[%x]:rc=%d\n",
1103		pm8001_dev->device_id, rc));
1104	return rc;
1105}
1106
1107/* optional SAM-3 */
1108int pm8001_query_task(struct sas_task *task)
1109{
1110	u32 tag = 0xdeadbeef;
1111	int i = 0;
1112	struct scsi_lun lun;
1113	struct pm8001_tmf_task tmf_task;
1114	int rc = TMF_RESP_FUNC_FAILED;
1115	if (unlikely(!task || !task->lldd_task || !task->dev))
1116		return rc;
1117
1118	if (task->task_proto & SAS_PROTOCOL_SSP) {
1119		struct scsi_cmnd *cmnd = task->uldd_task;
1120		struct domain_device *dev = task->dev;
1121		struct pm8001_hba_info *pm8001_ha =
1122			pm8001_find_ha_by_dev(dev);
1123
1124		int_to_scsilun(cmnd->device->lun, &lun);
1125		rc = pm8001_find_tag(task, &tag);
1126		if (rc == 0) {
1127			rc = TMF_RESP_FUNC_FAILED;
1128			return rc;
1129		}
1130		PM8001_EH_DBG(pm8001_ha, pm8001_printk("Query:["));
1131		for (i = 0; i < 16; i++)
1132			printk(KERN_INFO "%02x ", cmnd->cmnd[i]);
1133		printk(KERN_INFO "]\n");
1134		tmf_task.tmf = 	TMF_QUERY_TASK;
1135		tmf_task.tag_of_task_to_be_managed = tag;
1136
1137		rc = pm8001_issue_ssp_tmf(dev, lun.scsi_lun, &tmf_task);
1138		switch (rc) {
1139		/* The task is still in Lun, release it then */
1140		case TMF_RESP_FUNC_SUCC:
1141			PM8001_EH_DBG(pm8001_ha,
1142				pm8001_printk("The task is still in Lun\n"));
1143			break;
1144		/* The task is not in Lun or failed, reset the phy */
1145		case TMF_RESP_FUNC_FAILED:
1146		case TMF_RESP_FUNC_COMPLETE:
1147			PM8001_EH_DBG(pm8001_ha,
1148			pm8001_printk("The task is not in Lun or failed,"
1149			" reset the phy\n"));
1150			break;
1151		}
1152	}
1153	pm8001_printk(":rc= %d\n", rc);
1154	return rc;
1155}
1156
1157/*  mandatory SAM-3, still need free task/ccb info, abord the specified task */
1158int pm8001_abort_task(struct sas_task *task)
1159{
1160	unsigned long flags;
1161	u32 tag;
1162	u32 device_id;
1163	struct domain_device *dev ;
1164	struct pm8001_hba_info *pm8001_ha;
1165	struct scsi_lun lun;
1166	struct pm8001_device *pm8001_dev;
1167	struct pm8001_tmf_task tmf_task;
1168	int rc = TMF_RESP_FUNC_FAILED, ret;
1169	u32 phy_id;
1170	struct sas_task_slow slow_task;
 
1171	if (unlikely(!task || !task->lldd_task || !task->dev))
1172		return TMF_RESP_FUNC_FAILED;
 
1173	dev = task->dev;
1174	pm8001_dev = dev->lldd_dev;
1175	pm8001_ha = pm8001_find_ha_by_dev(dev);
1176	device_id = pm8001_dev->device_id;
1177	phy_id = pm8001_dev->attached_phy;
1178	rc = pm8001_find_tag(task, &tag);
1179	if (rc == 0) {
1180		pm8001_printk("no tag for task:%p\n", task);
 
 
 
 
 
 
 
1181		return TMF_RESP_FUNC_FAILED;
1182	}
1183	spin_lock_irqsave(&task->task_state_lock, flags);
1184	if (task->task_state_flags & SAS_TASK_STATE_DONE) {
1185		spin_unlock_irqrestore(&task->task_state_lock, flags);
1186		return TMF_RESP_FUNC_COMPLETE;
1187	}
1188	task->task_state_flags |= SAS_TASK_STATE_ABORTED;
1189	if (task->slow_task == NULL) {
1190		init_completion(&slow_task.completion);
1191		task->slow_task = &slow_task;
1192	}
1193	spin_unlock_irqrestore(&task->task_state_lock, flags);
1194	if (task->task_proto & SAS_PROTOCOL_SSP) {
1195		struct scsi_cmnd *cmnd = task->uldd_task;
1196		int_to_scsilun(cmnd->device->lun, &lun);
1197		tmf_task.tmf = TMF_ABORT_TASK;
1198		tmf_task.tag_of_task_to_be_managed = tag;
1199		rc = pm8001_issue_ssp_tmf(dev, lun.scsi_lun, &tmf_task);
1200		pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1201			pm8001_dev->sas_device, 0, tag);
1202	} else if (task->task_proto & SAS_PROTOCOL_SATA ||
1203		task->task_proto & SAS_PROTOCOL_STP) {
1204		if (pm8001_ha->chip_id == chip_8006) {
1205			DECLARE_COMPLETION_ONSTACK(completion_reset);
1206			DECLARE_COMPLETION_ONSTACK(completion);
1207			struct pm8001_phy *phy = pm8001_ha->phy + phy_id;
1208
1209			/* 1. Set Device state as Recovery */
1210			pm8001_dev->setds_completion = &completion;
1211			PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1212				pm8001_dev, 0x03);
1213			wait_for_completion(&completion);
1214
1215			/* 2. Send Phy Control Hard Reset */
1216			reinit_completion(&completion);
 
1217			phy->reset_success = false;
1218			phy->enable_completion = &completion;
1219			phy->reset_completion = &completion_reset;
1220			ret = PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
1221				PHY_HARD_RESET);
1222			if (ret)
1223				goto out;
1224			PM8001_MSG_DBG(pm8001_ha,
1225				pm8001_printk("Waiting for local phy ctl\n"));
1226			wait_for_completion(&completion);
1227			if (!phy->reset_success)
1228				goto out;
 
1229
1230			/* 3. Wait for Port Reset complete / Port reset TMO */
1231			PM8001_MSG_DBG(pm8001_ha,
1232				pm8001_printk("Waiting for Port reset\n"));
1233			wait_for_completion(&completion_reset);
1234			if (phy->port_reset_status)
1235				goto out;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1236
1237			/*
1238			 * 4. SATA Abort ALL
1239			 * we wait for the task to be aborted so that the task
1240			 * is removed from the ccb. on success the caller is
1241			 * going to free the task.
1242			 */
1243			ret = pm8001_exec_internal_task_abort(pm8001_ha,
1244				pm8001_dev, pm8001_dev->sas_device, 1, tag);
1245			if (ret)
1246				goto out;
1247			ret = wait_for_completion_timeout(
1248				&task->slow_task->completion,
1249				PM8001_TASK_TIMEOUT * HZ);
1250			if (!ret)
1251				goto out;
1252
1253			/* 5. Set Device State as Operational */
1254			reinit_completion(&completion);
1255			pm8001_dev->setds_completion = &completion;
1256			PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1257				pm8001_dev, 0x01);
1258			wait_for_completion(&completion);
1259		} else {
1260			rc = pm8001_exec_internal_task_abort(pm8001_ha,
1261				pm8001_dev, pm8001_dev->sas_device, 0, tag);
1262		}
1263		rc = TMF_RESP_FUNC_COMPLETE;
1264	} else if (task->task_proto & SAS_PROTOCOL_SMP) {
1265		/* SMP */
1266		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1267			pm8001_dev->sas_device, 0, tag);
1268
1269	}
1270out:
1271	spin_lock_irqsave(&task->task_state_lock, flags);
1272	if (task->slow_task == &slow_task)
1273		task->slow_task = NULL;
1274	spin_unlock_irqrestore(&task->task_state_lock, flags);
1275	if (rc != TMF_RESP_FUNC_COMPLETE)
1276		pm8001_printk("rc= %d\n", rc);
1277	return rc;
1278}
1279
1280int pm8001_abort_task_set(struct domain_device *dev, u8 *lun)
1281{
1282	int rc = TMF_RESP_FUNC_FAILED;
1283	struct pm8001_tmf_task tmf_task;
1284
1285	tmf_task.tmf = TMF_ABORT_TASK_SET;
1286	rc = pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
1287	return rc;
1288}
1289
1290int pm8001_clear_aca(struct domain_device *dev, u8 *lun)
1291{
1292	int rc = TMF_RESP_FUNC_FAILED;
1293	struct pm8001_tmf_task tmf_task;
1294
1295	tmf_task.tmf = TMF_CLEAR_ACA;
1296	rc = pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
1297
1298	return rc;
1299}
1300
1301int pm8001_clear_task_set(struct domain_device *dev, u8 *lun)
1302{
1303	int rc = TMF_RESP_FUNC_FAILED;
1304	struct pm8001_tmf_task tmf_task;
1305	struct pm8001_device *pm8001_dev = dev->lldd_dev;
1306	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
1307
1308	PM8001_EH_DBG(pm8001_ha,
1309		pm8001_printk("I_T_L_Q clear task set[%x]\n",
1310		pm8001_dev->device_id));
1311	tmf_task.tmf = TMF_CLEAR_TASK_SET;
1312	rc = pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
1313	return rc;
1314}
1315
v5.14.15
   1/*
   2 * PMC-Sierra PM8001/8081/8088/8089 SAS/SATA based host adapters driver
   3 *
   4 * Copyright (c) 2008-2009 USI Co., Ltd.
   5 * All rights reserved.
   6 *
   7 * Redistribution and use in source and binary forms, with or without
   8 * modification, are permitted provided that the following conditions
   9 * are met:
  10 * 1. Redistributions of source code must retain the above copyright
  11 *    notice, this list of conditions, and the following disclaimer,
  12 *    without modification.
  13 * 2. Redistributions in binary form must reproduce at minimum a disclaimer
  14 *    substantially similar to the "NO WARRANTY" disclaimer below
  15 *    ("Disclaimer") and any redistribution must be conditioned upon
  16 *    including a substantially similar Disclaimer requirement for further
  17 *    binary redistribution.
  18 * 3. Neither the names of the above-listed copyright holders nor the names
  19 *    of any contributors may be used to endorse or promote products derived
  20 *    from this software without specific prior written permission.
  21 *
  22 * Alternatively, this software may be distributed under the terms of the
  23 * GNU General Public License ("GPL") version 2 as published by the Free
  24 * Software Foundation.
  25 *
  26 * NO WARRANTY
  27 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
  28 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
  29 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTIBILITY AND FITNESS FOR
  30 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT
  31 * HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  32 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  33 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  34 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
  35 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING
  36 * IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
  37 * POSSIBILITY OF SUCH DAMAGES.
  38 *
  39 */
  40
  41#include <linux/slab.h>
  42#include "pm8001_sas.h"
  43
  44/**
  45 * pm8001_find_tag - from sas task to find out  tag that belongs to this task
  46 * @task: the task sent to the LLDD
  47 * @tag: the found tag associated with the task
  48 */
  49static int pm8001_find_tag(struct sas_task *task, u32 *tag)
  50{
  51	if (task->lldd_task) {
  52		struct pm8001_ccb_info *ccb;
  53		ccb = task->lldd_task;
  54		*tag = ccb->ccb_tag;
  55		return 1;
  56	}
  57	return 0;
  58}
  59
  60/**
  61  * pm8001_tag_free - free the no more needed tag
  62  * @pm8001_ha: our hba struct
  63  * @tag: the found tag associated with the task
  64  */
  65void pm8001_tag_free(struct pm8001_hba_info *pm8001_ha, u32 tag)
  66{
  67	void *bitmap = pm8001_ha->tags;
  68	clear_bit(tag, bitmap);
  69}
  70
  71/**
  72  * pm8001_tag_alloc - allocate a empty tag for task used.
  73  * @pm8001_ha: our hba struct
  74  * @tag_out: the found empty tag .
  75  */
  76inline int pm8001_tag_alloc(struct pm8001_hba_info *pm8001_ha, u32 *tag_out)
  77{
  78	unsigned int tag;
  79	void *bitmap = pm8001_ha->tags;
  80	unsigned long flags;
  81
  82	spin_lock_irqsave(&pm8001_ha->bitmap_lock, flags);
  83	tag = find_first_zero_bit(bitmap, pm8001_ha->tags_num);
  84	if (tag >= pm8001_ha->tags_num) {
  85		spin_unlock_irqrestore(&pm8001_ha->bitmap_lock, flags);
  86		return -SAS_QUEUE_FULL;
  87	}
  88	set_bit(tag, bitmap);
  89	spin_unlock_irqrestore(&pm8001_ha->bitmap_lock, flags);
  90	*tag_out = tag;
  91	return 0;
  92}
  93
  94void pm8001_tag_init(struct pm8001_hba_info *pm8001_ha)
  95{
  96	int i;
  97	for (i = 0; i < pm8001_ha->tags_num; ++i)
  98		pm8001_tag_free(pm8001_ha, i);
  99}
 100
 101/**
 102 * pm8001_mem_alloc - allocate memory for pm8001.
 103 * @pdev: pci device.
 104 * @virt_addr: the allocated virtual address
 105 * @pphys_addr: DMA address for this device
 106 * @pphys_addr_hi: the physical address high byte address.
 107 * @pphys_addr_lo: the physical address low byte address.
 108 * @mem_size: memory size.
 109 * @align: requested byte alignment
 110 */
 111int pm8001_mem_alloc(struct pci_dev *pdev, void **virt_addr,
 112	dma_addr_t *pphys_addr, u32 *pphys_addr_hi,
 113	u32 *pphys_addr_lo, u32 mem_size, u32 align)
 114{
 115	caddr_t mem_virt_alloc;
 116	dma_addr_t mem_dma_handle;
 117	u64 phys_align;
 118	u64 align_offset = 0;
 119	if (align)
 120		align_offset = (dma_addr_t)align - 1;
 121	mem_virt_alloc = dma_alloc_coherent(&pdev->dev, mem_size + align,
 122					    &mem_dma_handle, GFP_KERNEL);
 123	if (!mem_virt_alloc)
 124		return -ENOMEM;
 
 
 125	*pphys_addr = mem_dma_handle;
 126	phys_align = (*pphys_addr + align_offset) & ~align_offset;
 127	*virt_addr = (void *)mem_virt_alloc + phys_align - *pphys_addr;
 128	*pphys_addr_hi = upper_32_bits(phys_align);
 129	*pphys_addr_lo = lower_32_bits(phys_align);
 130	return 0;
 131}
 132
 133/**
 134  * pm8001_find_ha_by_dev - from domain device which come from sas layer to
 135  * find out our hba struct.
 136  * @dev: the domain device which from sas layer.
 137  */
 138static
 139struct pm8001_hba_info *pm8001_find_ha_by_dev(struct domain_device *dev)
 140{
 141	struct sas_ha_struct *sha = dev->port->ha;
 142	struct pm8001_hba_info *pm8001_ha = sha->lldd_ha;
 143	return pm8001_ha;
 144}
 145
 146/**
 147  * pm8001_phy_control - this function should be registered to
 148  * sas_domain_function_template to provide libsas used, note: this is just
 149  * control the HBA phy rather than other expander phy if you want control
 150  * other phy, you should use SMP command.
 151  * @sas_phy: which phy in HBA phys.
 152  * @func: the operation.
 153  * @funcdata: always NULL.
 154  */
 155int pm8001_phy_control(struct asd_sas_phy *sas_phy, enum phy_func func,
 156	void *funcdata)
 157{
 158	int rc = 0, phy_id = sas_phy->id;
 159	struct pm8001_hba_info *pm8001_ha = NULL;
 160	struct sas_phy_linkrates *rates;
 161	struct pm8001_phy *phy;
 162	DECLARE_COMPLETION_ONSTACK(completion);
 163	unsigned long flags;
 164	pm8001_ha = sas_phy->ha->lldd_ha;
 165	phy = &pm8001_ha->phy[phy_id];
 166	pm8001_ha->phy[phy_id].enable_completion = &completion;
 167	switch (func) {
 168	case PHY_FUNC_SET_LINK_RATE:
 169		rates = funcdata;
 170		if (rates->minimum_linkrate) {
 171			pm8001_ha->phy[phy_id].minimum_linkrate =
 172				rates->minimum_linkrate;
 173		}
 174		if (rates->maximum_linkrate) {
 175			pm8001_ha->phy[phy_id].maximum_linkrate =
 176				rates->maximum_linkrate;
 177		}
 178		if (pm8001_ha->phy[phy_id].phy_state ==  PHY_LINK_DISABLE) {
 179			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 180			wait_for_completion(&completion);
 181		}
 182		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 183					      PHY_LINK_RESET);
 184		break;
 185	case PHY_FUNC_HARD_RESET:
 186		if (pm8001_ha->phy[phy_id].phy_state == PHY_LINK_DISABLE) {
 187			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 188			wait_for_completion(&completion);
 189		}
 190		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 191					      PHY_HARD_RESET);
 192		break;
 193	case PHY_FUNC_LINK_RESET:
 194		if (pm8001_ha->phy[phy_id].phy_state == PHY_LINK_DISABLE) {
 195			PM8001_CHIP_DISP->phy_start_req(pm8001_ha, phy_id);
 196			wait_for_completion(&completion);
 197		}
 198		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 199					      PHY_LINK_RESET);
 200		break;
 201	case PHY_FUNC_RELEASE_SPINUP_HOLD:
 202		PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
 203					      PHY_LINK_RESET);
 204		break;
 205	case PHY_FUNC_DISABLE:
 206		if (pm8001_ha->chip_id != chip_8001) {
 207			if (pm8001_ha->phy[phy_id].phy_state ==
 208				PHY_STATE_LINK_UP_SPCV) {
 209				sas_phy_disconnected(&phy->sas_phy);
 210				sas_notify_phy_event(&phy->sas_phy,
 211					PHYE_LOSS_OF_SIGNAL, GFP_KERNEL);
 212				phy->phy_attached = 0;
 213			}
 214		} else {
 215			if (pm8001_ha->phy[phy_id].phy_state ==
 216				PHY_STATE_LINK_UP_SPC) {
 217				sas_phy_disconnected(&phy->sas_phy);
 218				sas_notify_phy_event(&phy->sas_phy,
 219					PHYE_LOSS_OF_SIGNAL, GFP_KERNEL);
 220				phy->phy_attached = 0;
 221			}
 222		}
 223		PM8001_CHIP_DISP->phy_stop_req(pm8001_ha, phy_id);
 224		break;
 225	case PHY_FUNC_GET_EVENTS:
 226		spin_lock_irqsave(&pm8001_ha->lock, flags);
 227		if (pm8001_ha->chip_id == chip_8001) {
 228			if (-1 == pm8001_bar4_shift(pm8001_ha,
 229					(phy_id < 4) ? 0x30000 : 0x40000)) {
 230				spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 231				return -EINVAL;
 232			}
 233		}
 234		{
 235			struct sas_phy *phy = sas_phy->phy;
 236			uint32_t *qp = (uint32_t *)(((char *)
 237				pm8001_ha->io_mem[2].memvirtaddr)
 238				+ 0x1034 + (0x4000 * (phy_id & 3)));
 239
 240			phy->invalid_dword_count = qp[0];
 241			phy->running_disparity_error_count = qp[1];
 242			phy->loss_of_dword_sync_count = qp[3];
 243			phy->phy_reset_problem_count = qp[4];
 244		}
 245		if (pm8001_ha->chip_id == chip_8001)
 246			pm8001_bar4_shift(pm8001_ha, 0);
 247		spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 248		return 0;
 249	default:
 250		pm8001_dbg(pm8001_ha, DEVIO, "func 0x%x\n", func);
 251		rc = -EOPNOTSUPP;
 252	}
 253	msleep(300);
 254	return rc;
 255}
 256
 257/**
 258  * pm8001_scan_start - we should enable all HBA phys by sending the phy_start
 259  * command to HBA.
 260  * @shost: the scsi host data.
 261  */
 262void pm8001_scan_start(struct Scsi_Host *shost)
 263{
 264	int i;
 265	struct pm8001_hba_info *pm8001_ha;
 266	struct sas_ha_struct *sha = SHOST_TO_SAS_HA(shost);
 267	DECLARE_COMPLETION_ONSTACK(completion);
 268	pm8001_ha = sha->lldd_ha;
 269	/* SAS_RE_INITIALIZATION not available in SPCv/ve */
 270	if (pm8001_ha->chip_id == chip_8001)
 271		PM8001_CHIP_DISP->sas_re_init_req(pm8001_ha);
 272	for (i = 0; i < pm8001_ha->chip->n_phy; ++i) {
 273		pm8001_ha->phy[i].enable_completion = &completion;
 274		PM8001_CHIP_DISP->phy_start_req(pm8001_ha, i);
 275		wait_for_completion(&completion);
 276		msleep(300);
 277	}
 278}
 279
 280int pm8001_scan_finished(struct Scsi_Host *shost, unsigned long time)
 281{
 282	struct sas_ha_struct *ha = SHOST_TO_SAS_HA(shost);
 283
 284	/* give the phy enabling interrupt event time to come in (1s
 285	* is empirically about all it takes) */
 286	if (time < HZ)
 287		return 0;
 288	/* Wait for discovery to finish */
 289	sas_drain_work(ha);
 290	return 1;
 291}
 292
 293/**
 294  * pm8001_task_prep_smp - the dispatcher function, prepare data for smp task
 295  * @pm8001_ha: our hba card information
 296  * @ccb: the ccb which attached to smp task
 297  */
 298static int pm8001_task_prep_smp(struct pm8001_hba_info *pm8001_ha,
 299	struct pm8001_ccb_info *ccb)
 300{
 301	return PM8001_CHIP_DISP->smp_req(pm8001_ha, ccb);
 302}
 303
 304u32 pm8001_get_ncq_tag(struct sas_task *task, u32 *tag)
 305{
 306	struct ata_queued_cmd *qc = task->uldd_task;
 307	if (qc) {
 308		if (qc->tf.command == ATA_CMD_FPDMA_WRITE ||
 309		    qc->tf.command == ATA_CMD_FPDMA_READ ||
 310		    qc->tf.command == ATA_CMD_FPDMA_RECV ||
 311		    qc->tf.command == ATA_CMD_FPDMA_SEND ||
 312		    qc->tf.command == ATA_CMD_NCQ_NON_DATA) {
 313			*tag = qc->tag;
 314			return 1;
 315		}
 316	}
 317	return 0;
 318}
 319
 320/**
 321  * pm8001_task_prep_ata - the dispatcher function, prepare data for sata task
 322  * @pm8001_ha: our hba card information
 323  * @ccb: the ccb which attached to sata task
 324  */
 325static int pm8001_task_prep_ata(struct pm8001_hba_info *pm8001_ha,
 326	struct pm8001_ccb_info *ccb)
 327{
 328	return PM8001_CHIP_DISP->sata_req(pm8001_ha, ccb);
 329}
 330
 331/**
 332  * pm8001_task_prep_ssp_tm - the dispatcher function, prepare task management data
 333  * @pm8001_ha: our hba card information
 334  * @ccb: the ccb which attached to TM
 335  * @tmf: the task management IU
 336  */
 337static int pm8001_task_prep_ssp_tm(struct pm8001_hba_info *pm8001_ha,
 338	struct pm8001_ccb_info *ccb, struct pm8001_tmf_task *tmf)
 339{
 340	return PM8001_CHIP_DISP->ssp_tm_req(pm8001_ha, ccb, tmf);
 341}
 342
 343/**
 344  * pm8001_task_prep_ssp - the dispatcher function, prepare ssp data for ssp task
 345  * @pm8001_ha: our hba card information
 346  * @ccb: the ccb which attached to ssp task
 347  */
 348static int pm8001_task_prep_ssp(struct pm8001_hba_info *pm8001_ha,
 349	struct pm8001_ccb_info *ccb)
 350{
 351	return PM8001_CHIP_DISP->ssp_io_req(pm8001_ha, ccb);
 352}
 353
 354 /* Find the local port id that's attached to this device */
 355static int sas_find_local_port_id(struct domain_device *dev)
 356{
 357	struct domain_device *pdev = dev->parent;
 358
 359	/* Directly attached device */
 360	if (!pdev)
 361		return dev->port->id;
 362	while (pdev) {
 363		struct domain_device *pdev_p = pdev->parent;
 364		if (!pdev_p)
 365			return pdev->port->id;
 366		pdev = pdev->parent;
 367	}
 368	return 0;
 369}
 370
 371#define DEV_IS_GONE(pm8001_dev)	\
 372	((!pm8001_dev || (pm8001_dev->dev_type == SAS_PHY_UNUSED)))
 373/**
 374  * pm8001_task_exec - queue the task(ssp, smp && ata) to the hardware.
 375  * @task: the task to be execute.
 
 
 376  * @gfp_flags: gfp_flags.
 377  * @is_tmf: if it is task management task.
 378  * @tmf: the task management IU
 379  */
 
 
 380static int pm8001_task_exec(struct sas_task *task,
 381	gfp_t gfp_flags, int is_tmf, struct pm8001_tmf_task *tmf)
 382{
 383	struct domain_device *dev = task->dev;
 384	struct pm8001_hba_info *pm8001_ha;
 385	struct pm8001_device *pm8001_dev;
 386	struct pm8001_port *port = NULL;
 387	struct sas_task *t = task;
 388	struct pm8001_ccb_info *ccb;
 389	u32 tag = 0xdeadbeef, rc = 0, n_elem = 0;
 390	unsigned long flags = 0;
 391	enum sas_protocol task_proto = t->task_proto;
 392
 393	if (!dev->port) {
 394		struct task_status_struct *tsm = &t->task_status;
 395		tsm->resp = SAS_TASK_UNDELIVERED;
 396		tsm->stat = SAS_PHY_DOWN;
 397		if (dev->dev_type != SAS_SATA_DEV)
 398			t->task_done(t);
 399		return 0;
 400	}
 401	pm8001_ha = pm8001_find_ha_by_dev(task->dev);
 402	if (pm8001_ha->controller_fatal_error) {
 403		struct task_status_struct *ts = &t->task_status;
 404
 405		ts->resp = SAS_TASK_UNDELIVERED;
 406		t->task_done(t);
 407		return 0;
 408	}
 409	pm8001_dbg(pm8001_ha, IO, "pm8001_task_exec device\n");
 410	spin_lock_irqsave(&pm8001_ha->lock, flags);
 411	do {
 412		dev = t->dev;
 413		pm8001_dev = dev->lldd_dev;
 414		port = &pm8001_ha->port[sas_find_local_port_id(dev)];
 415		if (DEV_IS_GONE(pm8001_dev) || !port->port_attached) {
 416			if (sas_protocol_ata(task_proto)) {
 417				struct task_status_struct *ts = &t->task_status;
 418				ts->resp = SAS_TASK_UNDELIVERED;
 419				ts->stat = SAS_PHY_DOWN;
 420
 421				spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 422				t->task_done(t);
 423				spin_lock_irqsave(&pm8001_ha->lock, flags);
 424				continue;
 425			} else {
 426				struct task_status_struct *ts = &t->task_status;
 427				ts->resp = SAS_TASK_UNDELIVERED;
 428				ts->stat = SAS_PHY_DOWN;
 429				t->task_done(t);
 430				continue;
 431			}
 432		}
 433		rc = pm8001_tag_alloc(pm8001_ha, &tag);
 434		if (rc)
 435			goto err_out;
 436		ccb = &pm8001_ha->ccb_info[tag];
 437
 438		if (!sas_protocol_ata(task_proto)) {
 439			if (t->num_scatter) {
 440				n_elem = dma_map_sg(pm8001_ha->dev,
 441					t->scatter,
 442					t->num_scatter,
 443					t->data_dir);
 444				if (!n_elem) {
 445					rc = -ENOMEM;
 446					goto err_out_tag;
 447				}
 448			}
 449		} else {
 450			n_elem = t->num_scatter;
 451		}
 452
 453		t->lldd_task = ccb;
 454		ccb->n_elem = n_elem;
 455		ccb->ccb_tag = tag;
 456		ccb->task = t;
 457		ccb->device = pm8001_dev;
 458		switch (task_proto) {
 459		case SAS_PROTOCOL_SMP:
 460			atomic_inc(&pm8001_dev->running_req);
 461			rc = pm8001_task_prep_smp(pm8001_ha, ccb);
 462			break;
 463		case SAS_PROTOCOL_SSP:
 464			atomic_inc(&pm8001_dev->running_req);
 465			if (is_tmf)
 466				rc = pm8001_task_prep_ssp_tm(pm8001_ha,
 467					ccb, tmf);
 468			else
 469				rc = pm8001_task_prep_ssp(pm8001_ha, ccb);
 470			break;
 471		case SAS_PROTOCOL_SATA:
 472		case SAS_PROTOCOL_STP:
 473			atomic_inc(&pm8001_dev->running_req);
 474			rc = pm8001_task_prep_ata(pm8001_ha, ccb);
 475			break;
 476		default:
 477			dev_printk(KERN_ERR, pm8001_ha->dev,
 478				"unknown sas_task proto: 0x%x\n", task_proto);
 
 479			rc = -EINVAL;
 480			break;
 481		}
 482
 483		if (rc) {
 484			pm8001_dbg(pm8001_ha, IO, "rc is %x\n", rc);
 485			atomic_dec(&pm8001_dev->running_req);
 486			goto err_out_tag;
 487		}
 488		/* TODO: select normal or high priority */
 489		spin_lock(&t->task_state_lock);
 490		t->task_state_flags |= SAS_TASK_AT_INITIATOR;
 491		spin_unlock(&t->task_state_lock);
 
 492	} while (0);
 493	rc = 0;
 494	goto out_done;
 495
 496err_out_tag:
 497	pm8001_tag_free(pm8001_ha, tag);
 498err_out:
 499	dev_printk(KERN_ERR, pm8001_ha->dev, "pm8001 exec failed[%d]!\n", rc);
 500	if (!sas_protocol_ata(task_proto))
 501		if (n_elem)
 502			dma_unmap_sg(pm8001_ha->dev, t->scatter, t->num_scatter,
 503				t->data_dir);
 504out_done:
 505	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 506	return rc;
 507}
 508
 509/**
 510  * pm8001_queue_command - register for upper layer used, all IO commands sent
 511  * to HBA are from this interface.
 512  * @task: the task to be execute.
 513  * @gfp_flags: gfp_flags
 514  */
 515int pm8001_queue_command(struct sas_task *task, gfp_t gfp_flags)
 516{
 517	return pm8001_task_exec(task, gfp_flags, 0, NULL);
 518}
 519
 520/**
 521  * pm8001_ccb_task_free - free the sg for ssp and smp command, free the ccb.
 522  * @pm8001_ha: our hba card information
 523  * @ccb: the ccb which attached to ssp task
 524  * @task: the task to be free.
 525  * @ccb_idx: ccb index.
 526  */
 527void pm8001_ccb_task_free(struct pm8001_hba_info *pm8001_ha,
 528	struct sas_task *task, struct pm8001_ccb_info *ccb, u32 ccb_idx)
 529{
 530	if (!ccb->task)
 531		return;
 532	if (!sas_protocol_ata(task->task_proto))
 533		if (ccb->n_elem)
 534			dma_unmap_sg(pm8001_ha->dev, task->scatter,
 535				task->num_scatter, task->data_dir);
 536
 537	switch (task->task_proto) {
 538	case SAS_PROTOCOL_SMP:
 539		dma_unmap_sg(pm8001_ha->dev, &task->smp_task.smp_resp, 1,
 540			DMA_FROM_DEVICE);
 541		dma_unmap_sg(pm8001_ha->dev, &task->smp_task.smp_req, 1,
 542			DMA_TO_DEVICE);
 543		break;
 544
 545	case SAS_PROTOCOL_SATA:
 546	case SAS_PROTOCOL_STP:
 547	case SAS_PROTOCOL_SSP:
 548	default:
 549		/* do nothing */
 550		break;
 551	}
 552	task->lldd_task = NULL;
 553	ccb->task = NULL;
 554	ccb->ccb_tag = 0xFFFFFFFF;
 555	ccb->open_retry = 0;
 556	pm8001_tag_free(pm8001_ha, ccb_idx);
 557}
 558
 559/**
 560 * pm8001_alloc_dev - find a empty pm8001_device
 561 * @pm8001_ha: our hba card information
 562 */
 563static struct pm8001_device *pm8001_alloc_dev(struct pm8001_hba_info *pm8001_ha)
 564{
 565	u32 dev;
 566	for (dev = 0; dev < PM8001_MAX_DEVICES; dev++) {
 567		if (pm8001_ha->devices[dev].dev_type == SAS_PHY_UNUSED) {
 568			pm8001_ha->devices[dev].id = dev;
 569			return &pm8001_ha->devices[dev];
 570		}
 571	}
 572	if (dev == PM8001_MAX_DEVICES) {
 573		pm8001_dbg(pm8001_ha, FAIL,
 574			   "max support %d devices, ignore ..\n",
 575			   PM8001_MAX_DEVICES);
 576	}
 577	return NULL;
 578}
 579/**
 580  * pm8001_find_dev - find a matching pm8001_device
 581  * @pm8001_ha: our hba card information
 582  * @device_id: device ID to match against
 583  */
 584struct pm8001_device *pm8001_find_dev(struct pm8001_hba_info *pm8001_ha,
 585					u32 device_id)
 586{
 587	u32 dev;
 588	for (dev = 0; dev < PM8001_MAX_DEVICES; dev++) {
 589		if (pm8001_ha->devices[dev].device_id == device_id)
 590			return &pm8001_ha->devices[dev];
 591	}
 592	if (dev == PM8001_MAX_DEVICES) {
 593		pm8001_dbg(pm8001_ha, FAIL, "NO MATCHING DEVICE FOUND !!!\n");
 
 594	}
 595	return NULL;
 596}
 597
 598void pm8001_free_dev(struct pm8001_device *pm8001_dev)
 599{
 600	u32 id = pm8001_dev->id;
 601	memset(pm8001_dev, 0, sizeof(*pm8001_dev));
 602	pm8001_dev->id = id;
 603	pm8001_dev->dev_type = SAS_PHY_UNUSED;
 604	pm8001_dev->device_id = PM8001_MAX_DEVICES;
 605	pm8001_dev->sas_device = NULL;
 606}
 607
 608/**
 609  * pm8001_dev_found_notify - libsas notify a device is found.
 610  * @dev: the device structure which sas layer used.
 611  *
 612  * when libsas find a sas domain device, it should tell the LLDD that
 613  * device is found, and then LLDD register this device to HBA firmware
 614  * by the command "OPC_INB_REG_DEV", after that the HBA will assign a
 615  * device ID(according to device's sas address) and returned it to LLDD. From
 616  * now on, we communicate with HBA FW with the device ID which HBA assigned
 617  * rather than sas address. it is the necessary step for our HBA but it is
 618  * the optional for other HBA driver.
 619  */
 620static int pm8001_dev_found_notify(struct domain_device *dev)
 621{
 622	unsigned long flags = 0;
 623	int res = 0;
 624	struct pm8001_hba_info *pm8001_ha = NULL;
 625	struct domain_device *parent_dev = dev->parent;
 626	struct pm8001_device *pm8001_device;
 627	DECLARE_COMPLETION_ONSTACK(completion);
 628	u32 flag = 0;
 629	pm8001_ha = pm8001_find_ha_by_dev(dev);
 630	spin_lock_irqsave(&pm8001_ha->lock, flags);
 631
 632	pm8001_device = pm8001_alloc_dev(pm8001_ha);
 633	if (!pm8001_device) {
 634		res = -1;
 635		goto found_out;
 636	}
 637	pm8001_device->sas_device = dev;
 638	dev->lldd_dev = pm8001_device;
 639	pm8001_device->dev_type = dev->dev_type;
 640	pm8001_device->dcompletion = &completion;
 641	if (parent_dev && dev_is_expander(parent_dev->dev_type)) {
 642		int phy_id;
 643		struct ex_phy *phy;
 644		for (phy_id = 0; phy_id < parent_dev->ex_dev.num_phys;
 645		phy_id++) {
 646			phy = &parent_dev->ex_dev.ex_phy[phy_id];
 647			if (SAS_ADDR(phy->attached_sas_addr)
 648				== SAS_ADDR(dev->sas_addr)) {
 649				pm8001_device->attached_phy = phy_id;
 650				break;
 651			}
 652		}
 653		if (phy_id == parent_dev->ex_dev.num_phys) {
 654			pm8001_dbg(pm8001_ha, FAIL,
 655				   "Error: no attached dev:%016llx at ex:%016llx.\n",
 656				   SAS_ADDR(dev->sas_addr),
 657				   SAS_ADDR(parent_dev->sas_addr));
 658			res = -1;
 659		}
 660	} else {
 661		if (dev->dev_type == SAS_SATA_DEV) {
 662			pm8001_device->attached_phy =
 663				dev->rphy->identify.phy_identifier;
 664			flag = 1; /* directly sata */
 665		}
 666	} /*register this device to HBA*/
 667	pm8001_dbg(pm8001_ha, DISC, "Found device\n");
 668	PM8001_CHIP_DISP->reg_dev_req(pm8001_ha, pm8001_device, flag);
 669	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 670	wait_for_completion(&completion);
 671	if (dev->dev_type == SAS_END_DEVICE)
 672		msleep(50);
 673	pm8001_ha->flags = PM8001F_RUN_TIME;
 674	return 0;
 675found_out:
 676	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 677	return res;
 678}
 679
 680int pm8001_dev_found(struct domain_device *dev)
 681{
 682	return pm8001_dev_found_notify(dev);
 683}
 684
 685void pm8001_task_done(struct sas_task *task)
 686{
 687	del_timer(&task->slow_task->timer);
 
 688	complete(&task->slow_task->completion);
 689}
 690
 691static void pm8001_tmf_timedout(struct timer_list *t)
 692{
 693	struct sas_task_slow *slow = from_timer(slow, t, timer);
 694	struct sas_task *task = slow->task;
 695	unsigned long flags;
 696
 697	spin_lock_irqsave(&task->task_state_lock, flags);
 698	if (!(task->task_state_flags & SAS_TASK_STATE_DONE)) {
 699		task->task_state_flags |= SAS_TASK_STATE_ABORTED;
 700		complete(&task->slow_task->completion);
 701	}
 702	spin_unlock_irqrestore(&task->task_state_lock, flags);
 703}
 704
 705#define PM8001_TASK_TIMEOUT 20
 706/**
 707  * pm8001_exec_internal_tmf_task - execute some task management commands.
 708  * @dev: the wanted device.
 709  * @tmf: which task management wanted to be take.
 710  * @para_len: para_len.
 711  * @parameter: ssp task parameter.
 712  *
 713  * when errors or exception happened, we may want to do something, for example
 714  * abort the issued task which result in this exception, it is done by calling
 715  * this function, note it is also with the task execute interface.
 716  */
 717static int pm8001_exec_internal_tmf_task(struct domain_device *dev,
 718	void *parameter, u32 para_len, struct pm8001_tmf_task *tmf)
 719{
 720	int res, retry;
 721	struct sas_task *task = NULL;
 722	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
 723	struct pm8001_device *pm8001_dev = dev->lldd_dev;
 724	DECLARE_COMPLETION_ONSTACK(completion_setstate);
 725
 726	for (retry = 0; retry < 3; retry++) {
 727		task = sas_alloc_slow_task(GFP_KERNEL);
 728		if (!task)
 729			return -ENOMEM;
 730
 731		task->dev = dev;
 732		task->task_proto = dev->tproto;
 733		memcpy(&task->ssp_task, parameter, para_len);
 734		task->task_done = pm8001_task_done;
 735		task->slow_task->timer.function = pm8001_tmf_timedout;
 736		task->slow_task->timer.expires = jiffies + PM8001_TASK_TIMEOUT*HZ;
 737		add_timer(&task->slow_task->timer);
 738
 739		res = pm8001_task_exec(task, GFP_KERNEL, 1, tmf);
 740
 741		if (res) {
 742			del_timer(&task->slow_task->timer);
 743			pm8001_dbg(pm8001_ha, FAIL, "Executing internal task failed\n");
 
 
 744			goto ex_err;
 745		}
 746		wait_for_completion(&task->slow_task->completion);
 747		if (pm8001_ha->chip_id != chip_8001) {
 748			pm8001_dev->setds_completion = &completion_setstate;
 749			PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
 750				pm8001_dev, DS_OPERATIONAL);
 751			wait_for_completion(&completion_setstate);
 752		}
 753		res = -TMF_RESP_FUNC_FAILED;
 754		/* Even TMF timed out, return direct. */
 755		if (task->task_state_flags & SAS_TASK_STATE_ABORTED) {
 756			pm8001_dbg(pm8001_ha, FAIL, "TMF task[%x]timeout.\n",
 757				   tmf->tmf);
 758			goto ex_err;
 
 
 
 759		}
 760
 761		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 762			task->task_status.stat == SAS_SAM_STAT_GOOD) {
 763			res = TMF_RESP_FUNC_COMPLETE;
 764			break;
 765		}
 766
 767		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 768		task->task_status.stat == SAS_DATA_UNDERRUN) {
 769			/* no error, but return the number of bytes of
 770			* underrun */
 771			res = task->task_status.residual;
 772			break;
 773		}
 774
 775		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 776			task->task_status.stat == SAS_DATA_OVERRUN) {
 777			pm8001_dbg(pm8001_ha, FAIL, "Blocked task error.\n");
 
 778			res = -EMSGSIZE;
 779			break;
 780		} else {
 781			pm8001_dbg(pm8001_ha, EH,
 782				   " Task to dev %016llx response:0x%x status 0x%x\n",
 783				   SAS_ADDR(dev->sas_addr),
 784				   task->task_status.resp,
 785				   task->task_status.stat);
 
 786			sas_free_task(task);
 787			task = NULL;
 788		}
 789	}
 790ex_err:
 791	BUG_ON(retry == 3 && task != NULL);
 792	sas_free_task(task);
 793	return res;
 794}
 795
 796static int
 797pm8001_exec_internal_task_abort(struct pm8001_hba_info *pm8001_ha,
 798	struct pm8001_device *pm8001_dev, struct domain_device *dev, u32 flag,
 799	u32 task_tag)
 800{
 801	int res, retry;
 802	u32 ccb_tag;
 803	struct pm8001_ccb_info *ccb;
 804	struct sas_task *task = NULL;
 805
 806	for (retry = 0; retry < 3; retry++) {
 807		task = sas_alloc_slow_task(GFP_KERNEL);
 808		if (!task)
 809			return -ENOMEM;
 810
 811		task->dev = dev;
 812		task->task_proto = dev->tproto;
 813		task->task_done = pm8001_task_done;
 814		task->slow_task->timer.function = pm8001_tmf_timedout;
 815		task->slow_task->timer.expires = jiffies + PM8001_TASK_TIMEOUT * HZ;
 816		add_timer(&task->slow_task->timer);
 817
 818		res = pm8001_tag_alloc(pm8001_ha, &ccb_tag);
 819		if (res)
 820			goto ex_err;
 821		ccb = &pm8001_ha->ccb_info[ccb_tag];
 822		ccb->device = pm8001_dev;
 823		ccb->ccb_tag = ccb_tag;
 824		ccb->task = task;
 825		ccb->n_elem = 0;
 826
 827		res = PM8001_CHIP_DISP->task_abort(pm8001_ha,
 828			pm8001_dev, flag, task_tag, ccb_tag);
 829
 830		if (res) {
 831			del_timer(&task->slow_task->timer);
 832			pm8001_dbg(pm8001_ha, FAIL, "Executing internal task failed\n");
 
 
 833			goto ex_err;
 834		}
 835		wait_for_completion(&task->slow_task->completion);
 836		res = TMF_RESP_FUNC_FAILED;
 837		/* Even TMF timed out, return direct. */
 838		if (task->task_state_flags & SAS_TASK_STATE_ABORTED) {
 839			pm8001_dbg(pm8001_ha, FAIL, "TMF task timeout.\n");
 840			goto ex_err;
 
 
 
 841		}
 842
 843		if (task->task_status.resp == SAS_TASK_COMPLETE &&
 844			task->task_status.stat == SAS_SAM_STAT_GOOD) {
 845			res = TMF_RESP_FUNC_COMPLETE;
 846			break;
 847
 848		} else {
 849			pm8001_dbg(pm8001_ha, EH,
 850				   " Task to dev %016llx response: 0x%x status 0x%x\n",
 851				   SAS_ADDR(dev->sas_addr),
 852				   task->task_status.resp,
 853				   task->task_status.stat);
 
 854			sas_free_task(task);
 855			task = NULL;
 856		}
 857	}
 858ex_err:
 859	BUG_ON(retry == 3 && task != NULL);
 860	sas_free_task(task);
 861	return res;
 862}
 863
 864/**
 865  * pm8001_dev_gone_notify - see the comments for "pm8001_dev_found_notify"
 866  * @dev: the device structure which sas layer used.
 867  */
 868static void pm8001_dev_gone_notify(struct domain_device *dev)
 869{
 870	unsigned long flags = 0;
 871	struct pm8001_hba_info *pm8001_ha;
 872	struct pm8001_device *pm8001_dev = dev->lldd_dev;
 873
 874	pm8001_ha = pm8001_find_ha_by_dev(dev);
 875	spin_lock_irqsave(&pm8001_ha->lock, flags);
 876	if (pm8001_dev) {
 877		u32 device_id = pm8001_dev->device_id;
 878
 879		pm8001_dbg(pm8001_ha, DISC, "found dev[%d:%x] is gone.\n",
 880			   pm8001_dev->device_id, pm8001_dev->dev_type);
 881		if (atomic_read(&pm8001_dev->running_req)) {
 
 882			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 883			pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
 884							dev, 1, 0);
 885			while (atomic_read(&pm8001_dev->running_req))
 886				msleep(20);
 887			spin_lock_irqsave(&pm8001_ha->lock, flags);
 888		}
 889		PM8001_CHIP_DISP->dereg_dev_req(pm8001_ha, device_id);
 890		pm8001_free_dev(pm8001_dev);
 891	} else {
 892		pm8001_dbg(pm8001_ha, DISC, "Found dev has gone.\n");
 
 893	}
 894	dev->lldd_dev = NULL;
 895	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 896}
 897
 898void pm8001_dev_gone(struct domain_device *dev)
 899{
 900	pm8001_dev_gone_notify(dev);
 901}
 902
 903static int pm8001_issue_ssp_tmf(struct domain_device *dev,
 904	u8 *lun, struct pm8001_tmf_task *tmf)
 905{
 906	struct sas_ssp_task ssp_task;
 907	if (!(dev->tproto & SAS_PROTOCOL_SSP))
 908		return TMF_RESP_FUNC_ESUPP;
 909
 910	memcpy((u8 *)&ssp_task.LUN, lun, 8);
 911	return pm8001_exec_internal_tmf_task(dev, &ssp_task, sizeof(ssp_task),
 912		tmf);
 913}
 914
 915/* retry commands by ha, by task and/or by device */
 916void pm8001_open_reject_retry(
 917	struct pm8001_hba_info *pm8001_ha,
 918	struct sas_task *task_to_close,
 919	struct pm8001_device *device_to_close)
 920{
 921	int i;
 922	unsigned long flags;
 923
 924	if (pm8001_ha == NULL)
 925		return;
 926
 927	spin_lock_irqsave(&pm8001_ha->lock, flags);
 928
 929	for (i = 0; i < PM8001_MAX_CCB; i++) {
 930		struct sas_task *task;
 931		struct task_status_struct *ts;
 932		struct pm8001_device *pm8001_dev;
 933		unsigned long flags1;
 934		u32 tag;
 935		struct pm8001_ccb_info *ccb = &pm8001_ha->ccb_info[i];
 936
 937		pm8001_dev = ccb->device;
 938		if (!pm8001_dev || (pm8001_dev->dev_type == SAS_PHY_UNUSED))
 939			continue;
 940		if (!device_to_close) {
 941			uintptr_t d = (uintptr_t)pm8001_dev
 942					- (uintptr_t)&pm8001_ha->devices;
 943			if (((d % sizeof(*pm8001_dev)) != 0)
 944			 || ((d / sizeof(*pm8001_dev)) >= PM8001_MAX_DEVICES))
 945				continue;
 946		} else if (pm8001_dev != device_to_close)
 947			continue;
 948		tag = ccb->ccb_tag;
 949		if (!tag || (tag == 0xFFFFFFFF))
 950			continue;
 951		task = ccb->task;
 952		if (!task || !task->task_done)
 953			continue;
 954		if (task_to_close && (task != task_to_close))
 955			continue;
 956		ts = &task->task_status;
 957		ts->resp = SAS_TASK_COMPLETE;
 958		/* Force the midlayer to retry */
 959		ts->stat = SAS_OPEN_REJECT;
 960		ts->open_rej_reason = SAS_OREJ_RSVD_RETRY;
 961		if (pm8001_dev)
 962			atomic_dec(&pm8001_dev->running_req);
 963		spin_lock_irqsave(&task->task_state_lock, flags1);
 964		task->task_state_flags &= ~SAS_TASK_STATE_PENDING;
 965		task->task_state_flags &= ~SAS_TASK_AT_INITIATOR;
 966		task->task_state_flags |= SAS_TASK_STATE_DONE;
 967		if (unlikely((task->task_state_flags
 968				& SAS_TASK_STATE_ABORTED))) {
 969			spin_unlock_irqrestore(&task->task_state_lock,
 970				flags1);
 971			pm8001_ccb_task_free(pm8001_ha, task, ccb, tag);
 972		} else {
 973			spin_unlock_irqrestore(&task->task_state_lock,
 974				flags1);
 975			pm8001_ccb_task_free(pm8001_ha, task, ccb, tag);
 976			mb();/* in order to force CPU ordering */
 977			spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 978			task->task_done(task);
 979			spin_lock_irqsave(&pm8001_ha->lock, flags);
 980		}
 981	}
 982
 983	spin_unlock_irqrestore(&pm8001_ha->lock, flags);
 984}
 985
 986/**
 987 * pm8001_I_T_nexus_reset() - reset the initiator/target connection
 988 * @dev: the device structure for the device to reset.
 989 *
 990 * Standard mandates link reset for ATA (type 0) and hard reset for
 991 * SSP (type 1), only for RECOVERY
 992 */
 993int pm8001_I_T_nexus_reset(struct domain_device *dev)
 994{
 995	int rc = TMF_RESP_FUNC_FAILED;
 996	struct pm8001_device *pm8001_dev;
 997	struct pm8001_hba_info *pm8001_ha;
 998	struct sas_phy *phy;
 999
1000	if (!dev || !dev->lldd_dev)
1001		return -ENODEV;
1002
1003	pm8001_dev = dev->lldd_dev;
1004	pm8001_ha = pm8001_find_ha_by_dev(dev);
1005	phy = sas_get_local_phy(dev);
1006
1007	if (dev_is_sata(dev)) {
1008		if (scsi_is_sas_phy_local(phy)) {
1009			rc = 0;
1010			goto out;
1011		}
1012		rc = sas_phy_reset(phy, 1);
1013		if (rc) {
1014			pm8001_dbg(pm8001_ha, EH,
1015				   "phy reset failed for device %x\n"
1016				   "with rc %d\n", pm8001_dev->device_id, rc);
1017			rc = TMF_RESP_FUNC_FAILED;
1018			goto out;
1019		}
1020		msleep(2000);
1021		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1022						     dev, 1, 0);
1023		if (rc) {
1024			pm8001_dbg(pm8001_ha, EH, "task abort failed %x\n"
1025				   "with rc %d\n", pm8001_dev->device_id, rc);
 
1026			rc = TMF_RESP_FUNC_FAILED;
1027		}
1028	} else {
1029		rc = sas_phy_reset(phy, 1);
1030		msleep(2000);
1031	}
1032	pm8001_dbg(pm8001_ha, EH, " for device[%x]:rc=%d\n",
1033		   pm8001_dev->device_id, rc);
1034 out:
1035	sas_put_local_phy(phy);
1036	return rc;
1037}
1038
1039/*
1040* This function handle the IT_NEXUS_XXX event or completion
1041* status code for SSP/SATA/SMP I/O request.
1042*/
1043int pm8001_I_T_nexus_event_handler(struct domain_device *dev)
1044{
1045	int rc = TMF_RESP_FUNC_FAILED;
1046	struct pm8001_device *pm8001_dev;
1047	struct pm8001_hba_info *pm8001_ha;
1048	struct sas_phy *phy;
 
1049
1050	if (!dev || !dev->lldd_dev)
1051		return -1;
1052
1053	pm8001_dev = dev->lldd_dev;
 
1054	pm8001_ha = pm8001_find_ha_by_dev(dev);
1055
1056	pm8001_dbg(pm8001_ha, EH, "I_T_Nexus handler invoked !!\n");
 
1057
1058	phy = sas_get_local_phy(dev);
1059
1060	if (dev_is_sata(dev)) {
1061		DECLARE_COMPLETION_ONSTACK(completion_setstate);
1062		if (scsi_is_sas_phy_local(phy)) {
1063			rc = 0;
1064			goto out;
1065		}
1066		/* send internal ssp/sata/smp abort command to FW */
1067		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1068						     dev, 1, 0);
1069		msleep(100);
1070
1071		/* deregister the target device */
1072		pm8001_dev_gone_notify(dev);
1073		msleep(200);
1074
1075		/*send phy reset to hard reset target */
1076		rc = sas_phy_reset(phy, 1);
1077		msleep(2000);
1078		pm8001_dev->setds_completion = &completion_setstate;
1079
1080		wait_for_completion(&completion_setstate);
1081	} else {
1082		/* send internal ssp/sata/smp abort command to FW */
1083		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1084						     dev, 1, 0);
1085		msleep(100);
1086
1087		/* deregister the target device */
1088		pm8001_dev_gone_notify(dev);
1089		msleep(200);
1090
1091		/*send phy reset to hard reset target */
1092		rc = sas_phy_reset(phy, 1);
1093		msleep(2000);
1094	}
1095	pm8001_dbg(pm8001_ha, EH, " for device[%x]:rc=%d\n",
1096		   pm8001_dev->device_id, rc);
1097out:
1098	sas_put_local_phy(phy);
1099
1100	return rc;
1101}
1102/* mandatory SAM-3, the task reset the specified LUN*/
1103int pm8001_lu_reset(struct domain_device *dev, u8 *lun)
1104{
1105	int rc = TMF_RESP_FUNC_FAILED;
1106	struct pm8001_tmf_task tmf_task;
1107	struct pm8001_device *pm8001_dev = dev->lldd_dev;
1108	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
1109	DECLARE_COMPLETION_ONSTACK(completion_setstate);
1110	if (dev_is_sata(dev)) {
1111		struct sas_phy *phy = sas_get_local_phy(dev);
1112		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1113						     dev, 1, 0);
1114		rc = sas_phy_reset(phy, 1);
1115		sas_put_local_phy(phy);
1116		pm8001_dev->setds_completion = &completion_setstate;
1117		rc = PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1118			pm8001_dev, DS_OPERATIONAL);
1119		wait_for_completion(&completion_setstate);
1120	} else {
1121		tmf_task.tmf = TMF_LU_RESET;
1122		rc = pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
1123	}
1124	/* If failed, fall-through I_T_Nexus reset */
1125	pm8001_dbg(pm8001_ha, EH, "for device[%x]:rc=%d\n",
1126		   pm8001_dev->device_id, rc);
1127	return rc;
1128}
1129
1130/* optional SAM-3 */
1131int pm8001_query_task(struct sas_task *task)
1132{
1133	u32 tag = 0xdeadbeef;
 
1134	struct scsi_lun lun;
1135	struct pm8001_tmf_task tmf_task;
1136	int rc = TMF_RESP_FUNC_FAILED;
1137	if (unlikely(!task || !task->lldd_task || !task->dev))
1138		return rc;
1139
1140	if (task->task_proto & SAS_PROTOCOL_SSP) {
1141		struct scsi_cmnd *cmnd = task->uldd_task;
1142		struct domain_device *dev = task->dev;
1143		struct pm8001_hba_info *pm8001_ha =
1144			pm8001_find_ha_by_dev(dev);
1145
1146		int_to_scsilun(cmnd->device->lun, &lun);
1147		rc = pm8001_find_tag(task, &tag);
1148		if (rc == 0) {
1149			rc = TMF_RESP_FUNC_FAILED;
1150			return rc;
1151		}
1152		pm8001_dbg(pm8001_ha, EH, "Query:[%16ph]\n", cmnd->cmnd);
 
 
 
1153		tmf_task.tmf = 	TMF_QUERY_TASK;
1154		tmf_task.tag_of_task_to_be_managed = tag;
1155
1156		rc = pm8001_issue_ssp_tmf(dev, lun.scsi_lun, &tmf_task);
1157		switch (rc) {
1158		/* The task is still in Lun, release it then */
1159		case TMF_RESP_FUNC_SUCC:
1160			pm8001_dbg(pm8001_ha, EH,
1161				   "The task is still in Lun\n");
1162			break;
1163		/* The task is not in Lun or failed, reset the phy */
1164		case TMF_RESP_FUNC_FAILED:
1165		case TMF_RESP_FUNC_COMPLETE:
1166			pm8001_dbg(pm8001_ha, EH,
1167				   "The task is not in Lun or failed, reset the phy\n");
 
1168			break;
1169		}
1170	}
1171	pr_err("pm80xx: rc= %d\n", rc);
1172	return rc;
1173}
1174
1175/*  mandatory SAM-3, still need free task/ccb info, abort the specified task */
1176int pm8001_abort_task(struct sas_task *task)
1177{
1178	unsigned long flags;
1179	u32 tag;
 
1180	struct domain_device *dev ;
1181	struct pm8001_hba_info *pm8001_ha;
1182	struct scsi_lun lun;
1183	struct pm8001_device *pm8001_dev;
1184	struct pm8001_tmf_task tmf_task;
1185	int rc = TMF_RESP_FUNC_FAILED, ret;
1186	u32 phy_id;
1187	struct sas_task_slow slow_task;
1188
1189	if (unlikely(!task || !task->lldd_task || !task->dev))
1190		return TMF_RESP_FUNC_FAILED;
1191
1192	dev = task->dev;
1193	pm8001_dev = dev->lldd_dev;
1194	pm8001_ha = pm8001_find_ha_by_dev(dev);
 
1195	phy_id = pm8001_dev->attached_phy;
1196
1197	if (PM8001_CHIP_DISP->fatal_errors(pm8001_ha)) {
1198		// If the controller is seeing fatal errors
1199		// abort task will not get a response from the controller
1200		return TMF_RESP_FUNC_FAILED;
1201	}
1202
1203	ret = pm8001_find_tag(task, &tag);
1204	if (ret == 0) {
1205		pm8001_info(pm8001_ha, "no tag for task:%p\n", task);
1206		return TMF_RESP_FUNC_FAILED;
1207	}
1208	spin_lock_irqsave(&task->task_state_lock, flags);
1209	if (task->task_state_flags & SAS_TASK_STATE_DONE) {
1210		spin_unlock_irqrestore(&task->task_state_lock, flags);
1211		return TMF_RESP_FUNC_COMPLETE;
1212	}
1213	task->task_state_flags |= SAS_TASK_STATE_ABORTED;
1214	if (task->slow_task == NULL) {
1215		init_completion(&slow_task.completion);
1216		task->slow_task = &slow_task;
1217	}
1218	spin_unlock_irqrestore(&task->task_state_lock, flags);
1219	if (task->task_proto & SAS_PROTOCOL_SSP) {
1220		struct scsi_cmnd *cmnd = task->uldd_task;
1221		int_to_scsilun(cmnd->device->lun, &lun);
1222		tmf_task.tmf = TMF_ABORT_TASK;
1223		tmf_task.tag_of_task_to_be_managed = tag;
1224		rc = pm8001_issue_ssp_tmf(dev, lun.scsi_lun, &tmf_task);
1225		pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1226			pm8001_dev->sas_device, 0, tag);
1227	} else if (task->task_proto & SAS_PROTOCOL_SATA ||
1228		task->task_proto & SAS_PROTOCOL_STP) {
1229		if (pm8001_ha->chip_id == chip_8006) {
1230			DECLARE_COMPLETION_ONSTACK(completion_reset);
1231			DECLARE_COMPLETION_ONSTACK(completion);
1232			struct pm8001_phy *phy = pm8001_ha->phy + phy_id;
1233
1234			/* 1. Set Device state as Recovery */
1235			pm8001_dev->setds_completion = &completion;
1236			PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1237				pm8001_dev, DS_IN_RECOVERY);
1238			wait_for_completion(&completion);
1239
1240			/* 2. Send Phy Control Hard Reset */
1241			reinit_completion(&completion);
1242			phy->port_reset_status = PORT_RESET_TMO;
1243			phy->reset_success = false;
1244			phy->enable_completion = &completion;
1245			phy->reset_completion = &completion_reset;
1246			ret = PM8001_CHIP_DISP->phy_ctl_req(pm8001_ha, phy_id,
1247				PHY_HARD_RESET);
1248			if (ret) {
1249				phy->enable_completion = NULL;
1250				phy->reset_completion = NULL;
 
 
 
1251				goto out;
1252			}
1253
1254			/* In the case of the reset timeout/fail we still
1255			 * abort the command at the firmware. The assumption
1256			 * here is that the drive is off doing something so
1257			 * that it's not processing requests, and we want to
1258			 * avoid getting a completion for this and either
1259			 * leaking the task in libsas or losing the race and
1260			 * getting a double free.
1261			 */
1262			pm8001_dbg(pm8001_ha, MSG,
1263				   "Waiting for local phy ctl\n");
1264			ret = wait_for_completion_timeout(&completion,
1265					PM8001_TASK_TIMEOUT * HZ);
1266			if (!ret || !phy->reset_success) {
1267				phy->enable_completion = NULL;
1268				phy->reset_completion = NULL;
1269			} else {
1270				/* 3. Wait for Port Reset complete or
1271				 * Port reset TMO
1272				 */
1273				pm8001_dbg(pm8001_ha, MSG,
1274					   "Waiting for Port reset\n");
1275				ret = wait_for_completion_timeout(
1276					&completion_reset,
1277					PM8001_TASK_TIMEOUT * HZ);
1278				if (!ret)
1279					phy->reset_completion = NULL;
1280				WARN_ON(phy->port_reset_status ==
1281						PORT_RESET_TMO);
1282				if (phy->port_reset_status == PORT_RESET_TMO) {
1283					pm8001_dev_gone_notify(dev);
1284					goto out;
1285				}
1286			}
1287
1288			/*
1289			 * 4. SATA Abort ALL
1290			 * we wait for the task to be aborted so that the task
1291			 * is removed from the ccb. on success the caller is
1292			 * going to free the task.
1293			 */
1294			ret = pm8001_exec_internal_task_abort(pm8001_ha,
1295				pm8001_dev, pm8001_dev->sas_device, 1, tag);
1296			if (ret)
1297				goto out;
1298			ret = wait_for_completion_timeout(
1299				&task->slow_task->completion,
1300				PM8001_TASK_TIMEOUT * HZ);
1301			if (!ret)
1302				goto out;
1303
1304			/* 5. Set Device State as Operational */
1305			reinit_completion(&completion);
1306			pm8001_dev->setds_completion = &completion;
1307			PM8001_CHIP_DISP->set_dev_state_req(pm8001_ha,
1308				pm8001_dev, DS_OPERATIONAL);
1309			wait_for_completion(&completion);
1310		} else {
1311			rc = pm8001_exec_internal_task_abort(pm8001_ha,
1312				pm8001_dev, pm8001_dev->sas_device, 0, tag);
1313		}
1314		rc = TMF_RESP_FUNC_COMPLETE;
1315	} else if (task->task_proto & SAS_PROTOCOL_SMP) {
1316		/* SMP */
1317		rc = pm8001_exec_internal_task_abort(pm8001_ha, pm8001_dev,
1318			pm8001_dev->sas_device, 0, tag);
1319
1320	}
1321out:
1322	spin_lock_irqsave(&task->task_state_lock, flags);
1323	if (task->slow_task == &slow_task)
1324		task->slow_task = NULL;
1325	spin_unlock_irqrestore(&task->task_state_lock, flags);
1326	if (rc != TMF_RESP_FUNC_COMPLETE)
1327		pm8001_info(pm8001_ha, "rc= %d\n", rc);
1328	return rc;
1329}
1330
1331int pm8001_abort_task_set(struct domain_device *dev, u8 *lun)
1332{
 
1333	struct pm8001_tmf_task tmf_task;
1334
1335	tmf_task.tmf = TMF_ABORT_TASK_SET;
1336	return pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
 
1337}
1338
1339int pm8001_clear_aca(struct domain_device *dev, u8 *lun)
1340{
 
1341	struct pm8001_tmf_task tmf_task;
1342
1343	tmf_task.tmf = TMF_CLEAR_ACA;
1344	return pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
 
 
1345}
1346
1347int pm8001_clear_task_set(struct domain_device *dev, u8 *lun)
1348{
 
1349	struct pm8001_tmf_task tmf_task;
1350	struct pm8001_device *pm8001_dev = dev->lldd_dev;
1351	struct pm8001_hba_info *pm8001_ha = pm8001_find_ha_by_dev(dev);
1352
1353	pm8001_dbg(pm8001_ha, EH, "I_T_L_Q clear task set[%x]\n",
1354		   pm8001_dev->device_id);
 
1355	tmf_task.tmf = TMF_CLEAR_TASK_SET;
1356	return pm8001_issue_ssp_tmf(dev, lun, &tmf_task);
 
1357}